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authorHiFiPhile <[email protected]>2024-05-09 13:45:44 +0200
committerHiFiPhile <[email protected]>2024-05-09 13:45:44 +0200
commitfd1cde9b894e5312e6c6f9da63cfea5aa05d83d2 (patch)
tree5f43ffeecb05d80788cbe0bbc43913202a922a2a /src/portable
parentd0bff6fd3ec9fc133032dea84732451d93d202b4 (diff)
parent74e57499baac36c4cccf76549259905162031e41 (diff)
Merge branch 'master' into pr/2181
Diffstat (limited to 'src/portable')
-rw-r--r--src/portable/analog/max3421/hcd_max3421.c1012
-rw-r--r--src/portable/chipidea/ci_fs/ci_fs_kinetis.h6
-rw-r--r--src/portable/chipidea/ci_fs/ci_fs_mcx.h25
-rw-r--r--src/portable/chipidea/ci_fs/dcd_ci_fs.c14
-rw-r--r--src/portable/chipidea/ci_hs/ci_hs_lpc18_43.h9
-rw-r--r--src/portable/chipidea/ci_hs/hcd_ci_hs.c43
-rw-r--r--src/portable/dialog/da146xx/dcd_da146xx.c2
-rw-r--r--src/portable/ehci/ehci.c293
-rw-r--r--src/portable/ehci/ehci.h6
-rw-r--r--src/portable/espressif/esp32sx/dcd_esp32sx.c12
-rw-r--r--src/portable/mentor/musb/dcd_musb.c34
-rw-r--r--src/portable/mentor/musb/hcd_musb.c16
-rw-r--r--src/portable/mindmotion/mm32/dcd_mm32f327x_otg.c11
-rw-r--r--src/portable/nordic/nrf5x/dcd_nrf5x.c616
-rw-r--r--src/portable/nxp/khci/dcd_khci.c12
-rw-r--r--src/portable/nxp/khci/hcd_khci.c27
-rw-r--r--src/portable/nxp/lpc_ip3511/dcd_lpc_ip3511.c275
-rw-r--r--src/portable/ohci/ohci.c26
-rw-r--r--src/portable/ohci/ohci.h24
-rw-r--r--src/portable/raspberrypi/pio_usb/hcd_pio_usb.c91
-rw-r--r--src/portable/raspberrypi/rp2040/dcd_rp2040.c358
-rw-r--r--src/portable/raspberrypi/rp2040/hcd_rp2040.c34
-rw-r--r--src/portable/raspberrypi/rp2040/rp2040_usb.c174
-rw-r--r--src/portable/renesas/rusb2/dcd_rusb2.c830
-rw-r--r--src/portable/renesas/rusb2/hcd_rusb2.c548
-rw-r--r--src/portable/renesas/rusb2/rusb2_common.c61
-rw-r--r--src/portable/renesas/rusb2/rusb2_ra.h58
-rw-r--r--src/portable/renesas/rusb2/rusb2_rx.h20
-rw-r--r--src/portable/renesas/rusb2/rusb2_type.h339
-rw-r--r--src/portable/sony/cxd56/dcd_cxd56.c30
-rw-r--r--src/portable/st/stm32_fsdev/dcd_stm32_fsdev.c1066
-rw-r--r--src/portable/st/stm32_fsdev/dcd_stm32_fsdev.h (renamed from src/portable/st/stm32_fsdev/dcd_stm32_fsdev_pvt_st.h)285
-rw-r--r--src/portable/st/synopsys/dcd_synopsys.c1240
-rw-r--r--src/portable/st/synopsys/synopsys_common.h1465
-rw-r--r--src/portable/st/typec/typec_stm32.c18
-rw-r--r--src/portable/sunxi/dcd_sunxi_musb.c46
-rw-r--r--src/portable/synopsys/dwc2/dcd_dwc2.c964
-rw-r--r--src/portable/synopsys/dwc2/dwc2_info.md55
-rw-r--r--src/portable/synopsys/dwc2/dwc2_info.py169
-rw-r--r--src/portable/synopsys/dwc2/dwc2_stm32.h135
-rw-r--r--src/portable/synopsys/dwc2/dwc2_type.h1791
-rw-r--r--src/portable/synopsys/dwc2/hwcfg_list.md777
-rw-r--r--src/portable/template/dcd_template.c4
-rw-r--r--src/portable/template/hcd_template.c163
-rw-r--r--src/portable/ti/msp430x5xx/dcd_msp430x5xx.c131
-rw-r--r--src/portable/wch/ch32_usbhs_reg.h (renamed from src/portable/wch/ch32v307/ch32_usbhs_reg.h)4
-rw-r--r--src/portable/wch/dcd_ch32_usbhs.c (renamed from src/portable/wch/ch32v307/dcd_usbhs.c)6
47 files changed, 5700 insertions, 7625 deletions
diff --git a/src/portable/analog/max3421/hcd_max3421.c b/src/portable/analog/max3421/hcd_max3421.c
new file mode 100644
index 000000000..4dc93d2d8
--- /dev/null
+++ b/src/portable/analog/max3421/hcd_max3421.c
@@ -0,0 +1,1012 @@
+/*
+ * The MIT License (MIT)
+ *
+ * Copyright (c) 2023 Ha Thach (tinyusb.org)
+ *
+ * Permission is hereby granted, free of charge, to any person obtaining a copy
+ * of this software and associated documentation files (the "Software"), to deal
+ * in the Software without restriction, including without limitation the rights
+ * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
+ * copies of the Software, and to permit persons to whom the Software is
+ * furnished to do so, subject to the following conditions:
+ *
+ * The above copyright notice and this permission notice shall be included in
+ * all copies or substantial portions of the Software.
+ *
+ * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
+ * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
+ * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
+ * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
+ * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
+ * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
+ * THE SOFTWARE.
+ *
+ * This file is part of the TinyUSB stack.
+ */
+
+#include "tusb_option.h"
+
+#if CFG_TUH_ENABLED && defined(CFG_TUH_MAX3421) && CFG_TUH_MAX3421
+
+#include <stdatomic.h>
+#include "host/hcd.h"
+#include "host/usbh.h"
+
+//--------------------------------------------------------------------+
+//
+//--------------------------------------------------------------------+
+
+// Command format is
+// Reg [7:3] | 0 [2] | Dir [1] | Ack [0]
+
+enum {
+ CMDBYTE_WRITE = 0x02,
+};
+
+enum {
+ RCVVFIFO_ADDR = 1u << 3, // 0x08
+ SNDFIFO_ADDR = 2u << 3, // 0x10
+ SUDFIFO_ADDR = 4u << 3, // 0x20
+ RCVBC_ADDR = 6u << 3, // 0x30
+ SNDBC_ADDR = 7u << 3, // 0x38
+ USBIRQ_ADDR = 13u << 3, // 0x68
+ USBIEN_ADDR = 14u << 3, // 0x70
+ USBCTL_ADDR = 15u << 3, // 0x78
+ CPUCTL_ADDR = 16u << 3, // 0x80
+ PINCTL_ADDR = 17u << 3, // 0x88
+ REVISION_ADDR = 18u << 3, // 0x90
+ // 19 is not used
+ IOPINS1_ADDR = 20u << 3, // 0xA0
+ IOPINS2_ADDR = 21u << 3, // 0xA8
+ GPINIRQ_ADDR = 22u << 3, // 0xB0
+ GPINIEN_ADDR = 23u << 3, // 0xB8
+ GPINPOL_ADDR = 24u << 3, // 0xC0
+ HIRQ_ADDR = 25u << 3, // 0xC8
+ HIEN_ADDR = 26u << 3, // 0xD0
+ MODE_ADDR = 27u << 3, // 0xD8
+ PERADDR_ADDR = 28u << 3, // 0xE0
+ HCTL_ADDR = 29u << 3, // 0xE8
+ HXFR_ADDR = 30u << 3, // 0xF0
+ HRSL_ADDR = 31u << 3, // 0xF8
+};
+
+enum {
+ USBIRQ_OSCOK_IRQ = 1u << 0,
+ USBIRQ_NOVBUS_IRQ = 1u << 5,
+ USBIRQ_VBUS_IRQ = 1u << 6,
+};
+
+enum {
+ USBCTL_PWRDOWN = 1u << 4,
+ USBCTL_CHIPRES = 1u << 5,
+};
+
+enum {
+ CPUCTL_IE = 1u << 0,
+ CPUCTL_PULSEWID0 = 1u << 6,
+ CPUCTL_PULSEWID1 = 1u << 7,
+};
+
+enum {
+ PINCTL_GPXA = 1u << 0,
+ PINCTL_GPXB = 1u << 1,
+ PINCTL_POSINT = 1u << 2,
+ PINCTL_INTLEVEL = 1u << 3,
+ PINCTL_FDUPSPI = 1u << 4,
+};
+
+enum {
+ HIRQ_BUSEVENT_IRQ = 1u << 0,
+ HIRQ_RWU_IRQ = 1u << 1,
+ HIRQ_RCVDAV_IRQ = 1u << 2,
+ HIRQ_SNDBAV_IRQ = 1u << 3,
+ HIRQ_SUSDN_IRQ = 1u << 4,
+ HIRQ_CONDET_IRQ = 1u << 5,
+ HIRQ_FRAME_IRQ = 1u << 6,
+ HIRQ_HXFRDN_IRQ = 1u << 7,
+};
+
+enum {
+ MODE_HOST = 1u << 0,
+ MODE_LOWSPEED = 1u << 1,
+ MODE_HUBPRE = 1u << 2,
+ MODE_SOFKAENAB = 1u << 3,
+ MODE_SEPIRQ = 1u << 4,
+ MODE_DELAYISO = 1u << 5,
+ MODE_DMPULLDN = 1u << 6,
+ MODE_DPPULLDN = 1u << 7,
+};
+
+enum {
+ HCTL_BUSRST = 1u << 0,
+ HCTL_FRMRST = 1u << 1,
+ HCTL_SAMPLEBUS = 1u << 2,
+ HCTL_SIGRSM = 1u << 3,
+ HCTL_RCVTOG0 = 1u << 4,
+ HCTL_RCVTOG1 = 1u << 5,
+ HCTL_SNDTOG0 = 1u << 6,
+ HCTL_SNDTOG1 = 1u << 7,
+};
+
+enum {
+ HXFR_EPNUM_MASK = 0x0f,
+ HXFR_SETUP = 1u << 4,
+ HXFR_OUT_NIN = 1u << 5,
+ HXFR_ISO = 1u << 6,
+ HXFR_HS = 1u << 7,
+};
+
+enum {
+ HRSL_RESULT_MASK = 0x0f,
+ HRSL_RCVTOGRD = 1u << 4,
+ HRSL_SNDTOGRD = 1u << 5,
+ HRSL_KSTATUS = 1u << 6,
+ HRSL_JSTATUS = 1u << 7,
+};
+
+enum {
+ HRSL_SUCCESS = 0,
+ HRSL_BUSY,
+ HRSL_BAD_REQ,
+ HRSL_UNDEF,
+ HRSL_NAK,
+ HRSL_STALL,
+ HRSL_TOG_ERR,
+ HRSL_WRONG_PID,
+ HRSL_BAD_BYTECOUNT,
+ HRSL_PID_ERR,
+ HRSL_PKT_ERR,
+ HRSL_CRC_ERR,
+ HRSL_K_ERR,
+ HRSL_J_ERR,
+ HRSL_TIMEOUT,
+ HRSL_BABBLE,
+};
+
+enum {
+ DEFAULT_HIEN = HIRQ_CONDET_IRQ | HIRQ_FRAME_IRQ | HIRQ_HXFRDN_IRQ | HIRQ_RCVDAV_IRQ
+};
+
+enum {
+ MAX_NAK_DEFAULT = 1 // Number of NAK per endpoint per usb frame
+};
+
+enum {
+ EP_STATE_IDLE = 0,
+ EP_STATE_COMPLETE = 1,
+ EP_STATE_ATTEMPT_1 = 2, // pending 1st attempt
+ EP_STATE_ATTEMPT_MAX = 15
+};
+
+//--------------------------------------------------------------------+
+//
+//--------------------------------------------------------------------+
+
+typedef struct {
+ uint8_t daddr;
+
+ union { ;
+ struct TU_ATTR_PACKED {
+ uint8_t ep_num : 4;
+ uint8_t is_setup : 1;
+ uint8_t is_out : 1;
+ uint8_t is_iso : 1;
+ }hxfr_bm;
+
+ uint8_t hxfr;
+ };
+
+ struct TU_ATTR_PACKED {
+ uint8_t state : 4;
+ uint8_t data_toggle : 1;
+ uint16_t packet_size : 11;
+ };
+
+ uint16_t total_len;
+ uint16_t xferred_len;
+ uint8_t* buf;
+} max3421_ep_t;
+
+TU_VERIFY_STATIC(sizeof(max3421_ep_t) == 12, "size is not correct");
+
+typedef struct {
+ volatile uint16_t frame_count;
+
+ // cached register
+ uint8_t sndbc;
+ uint8_t hirq;
+ uint8_t hien;
+ uint8_t mode;
+ uint8_t peraddr;
+ uint8_t hxfr;
+
+ atomic_flag busy; // busy transferring
+
+#if OSAL_MUTEX_REQUIRED
+ OSAL_MUTEX_DEF(spi_mutexdef);
+ osal_mutex_t spi_mutex;
+#endif
+
+ max3421_ep_t ep[CFG_TUH_MAX3421_ENDPOINT_TOTAL]; // [0] is reserved for addr0
+} max3421_data_t;
+
+static max3421_data_t _hcd_data;
+
+// max NAK before giving up in a frame. 0 means infinite NAKs
+static tuh_configure_max3421_t _tuh_cfg = {
+ .max_nak = MAX_NAK_DEFAULT,
+ .cpuctl = 0, // default: INT pulse width = 10.6 us
+ .pinctl = 0, // default: negative edge interrupt
+};
+
+//--------------------------------------------------------------------+
+// API: SPI transfer with MAX3421E
+// - spi_cs_api(), spi_xfer_api(), int_api(): must be implemented by application
+// - reg_read(), reg_write(): is implemented by this driver, can be used by application
+//--------------------------------------------------------------------+
+
+// API to control MAX3421 SPI CS
+extern void tuh_max3421_spi_cs_api(uint8_t rhport, bool active);
+
+// API to transfer data with MAX3421 SPI
+// Either tx_buf or rx_buf can be NULL, which means transfer is write or read only
+extern bool tuh_max3421_spi_xfer_api(uint8_t rhport, uint8_t const* tx_buf, uint8_t* rx_buf, size_t xfer_bytes);
+
+// API to enable/disable MAX3421 INTR pin interrupt
+extern void tuh_max3421_int_api(uint8_t rhport, bool enabled);
+
+// API to read MAX3421's register. Implemented by TinyUSB
+uint8_t tuh_max3421_reg_read(uint8_t rhport, uint8_t reg, bool in_isr);
+
+// API to write MAX3421's register. Implemented by TinyUSB
+bool tuh_max3421_reg_write(uint8_t rhport, uint8_t reg, uint8_t data, bool in_isr);
+
+//--------------------------------------------------------------------+
+// SPI Commands and Helper
+//--------------------------------------------------------------------+
+
+#define reg_read tuh_max3421_reg_read
+#define reg_write tuh_max3421_reg_write
+
+static void max3421_spi_lock(uint8_t rhport, bool in_isr) {
+ // disable interrupt and mutex lock (for pre-emptive RTOS) if not in_isr
+ if (!in_isr) {
+ (void) osal_mutex_lock(_hcd_data.spi_mutex, OSAL_TIMEOUT_WAIT_FOREVER);
+ tuh_max3421_int_api(rhport, false);
+ }
+
+ // assert CS
+ tuh_max3421_spi_cs_api(rhport, true);
+}
+
+static void max3421_spi_unlock(uint8_t rhport, bool in_isr) {
+ // de-assert CS
+ tuh_max3421_spi_cs_api(rhport, false);
+
+ // mutex unlock and re-enable interrupt
+ if (!in_isr) {
+ tuh_max3421_int_api(rhport, true);
+ (void) osal_mutex_unlock(_hcd_data.spi_mutex);
+ }
+}
+
+uint8_t tuh_max3421_reg_read(uint8_t rhport, uint8_t reg, bool in_isr) {
+ uint8_t tx_buf[2] = {reg, 0};
+ uint8_t rx_buf[2] = {0, 0};
+
+ max3421_spi_lock(rhport, in_isr);
+ bool ret = tuh_max3421_spi_xfer_api(rhport, tx_buf, rx_buf, 2);
+ max3421_spi_unlock(rhport, in_isr);
+
+ _hcd_data.hirq = rx_buf[0];
+ return ret ? rx_buf[1] : 0;
+}
+
+bool tuh_max3421_reg_write(uint8_t rhport, uint8_t reg, uint8_t data, bool in_isr) {
+ uint8_t tx_buf[2] = {reg | CMDBYTE_WRITE, data};
+ uint8_t rx_buf[2] = {0, 0};
+
+ max3421_spi_lock(rhport, in_isr);
+ bool ret = tuh_max3421_spi_xfer_api(rhport, tx_buf, rx_buf, 2);
+ max3421_spi_unlock(rhport, in_isr);
+
+ // HIRQ register since we are in full-duplex mode
+ _hcd_data.hirq = rx_buf[0];
+
+ return ret;
+}
+
+static void fifo_write(uint8_t rhport, uint8_t reg, uint8_t const * buffer, uint16_t len, bool in_isr) {
+ uint8_t hirq;
+ reg |= CMDBYTE_WRITE;
+
+ max3421_spi_lock(rhport, in_isr);
+
+ tuh_max3421_spi_xfer_api(rhport, &reg, &hirq, 1);
+ _hcd_data.hirq = hirq;
+ tuh_max3421_spi_xfer_api(rhport, buffer, NULL, len);
+
+ max3421_spi_unlock(rhport, in_isr);
+}
+
+static void fifo_read(uint8_t rhport, uint8_t * buffer, uint16_t len, bool in_isr) {
+ uint8_t hirq;
+ uint8_t const reg = RCVVFIFO_ADDR;
+
+ max3421_spi_lock(rhport, in_isr);
+
+ tuh_max3421_spi_xfer_api(rhport, &reg, &hirq, 1);
+ _hcd_data.hirq = hirq;
+ tuh_max3421_spi_xfer_api(rhport, NULL, buffer, len);
+
+ max3421_spi_unlock(rhport, in_isr);
+}
+
+//------------- register write helper -------------//
+TU_ATTR_ALWAYS_INLINE static inline void hirq_write(uint8_t rhport, uint8_t data, bool in_isr) {
+ reg_write(rhport, HIRQ_ADDR, data, in_isr);
+ // HIRQ write 1 is clear
+ _hcd_data.hirq &= (uint8_t) ~data;
+}
+
+TU_ATTR_ALWAYS_INLINE static inline void hien_write(uint8_t rhport, uint8_t data, bool in_isr) {
+ _hcd_data.hien = data;
+ reg_write(rhport, HIEN_ADDR, data, in_isr);
+}
+
+TU_ATTR_ALWAYS_INLINE static inline void mode_write(uint8_t rhport, uint8_t data, bool in_isr) {
+ _hcd_data.mode = data;
+ reg_write(rhport, MODE_ADDR, data, in_isr);
+}
+
+TU_ATTR_ALWAYS_INLINE static inline void peraddr_write(uint8_t rhport, uint8_t data, bool in_isr) {
+ if ( _hcd_data.peraddr == data ) return; // no need to change address
+
+ _hcd_data.peraddr = data;
+ reg_write(rhport, PERADDR_ADDR, data, in_isr);
+}
+
+TU_ATTR_ALWAYS_INLINE static inline void hxfr_write(uint8_t rhport, uint8_t data, bool in_isr) {
+ _hcd_data.hxfr = data;
+ reg_write(rhport, HXFR_ADDR, data, in_isr);
+}
+
+TU_ATTR_ALWAYS_INLINE static inline void sndbc_write(uint8_t rhport, uint8_t data, bool in_isr) {
+ _hcd_data.sndbc = data;
+ reg_write(rhport, SNDBC_ADDR, data, in_isr);
+}
+
+//--------------------------------------------------------------------+
+// Endpoint helper
+//--------------------------------------------------------------------+
+
+static max3421_ep_t* find_ep_not_addr0(uint8_t daddr, uint8_t ep_num, uint8_t ep_dir) {
+ uint8_t const is_out = 1-ep_dir;
+ for(size_t i=1; i<CFG_TUH_MAX3421_ENDPOINT_TOTAL; i++) {
+ max3421_ep_t* ep = &_hcd_data.ep[i];
+ // control endpoint is bi-direction (skip check)
+ if (daddr == ep->daddr && ep_num == ep->hxfr_bm.ep_num && (ep_num == 0 || is_out == ep->hxfr_bm.is_out)) {
+ return ep;
+ }
+ }
+
+ return NULL;
+}
+
+// daddr = 0 and ep_num = 0 means find a free (allocate) endpoint
+TU_ATTR_ALWAYS_INLINE static inline max3421_ep_t * allocate_ep(void) {
+ return find_ep_not_addr0(0, 0, 0);
+}
+
+TU_ATTR_ALWAYS_INLINE static inline max3421_ep_t * find_opened_ep(uint8_t daddr, uint8_t ep_num, uint8_t ep_dir) {
+ if (daddr == 0 && ep_num == 0) {
+ return &_hcd_data.ep[0];
+ }else{
+ return find_ep_not_addr0(daddr, ep_num, ep_dir);
+ }
+}
+
+// free all endpoints belong to device address
+static void free_ep(uint8_t daddr) {
+ for (size_t i=1; i<CFG_TUH_MAX3421_ENDPOINT_TOTAL; i++) {
+ max3421_ep_t* ep = &_hcd_data.ep[i];
+ if (ep->daddr == daddr) {
+ tu_memclr(ep, sizeof(max3421_ep_t));
+ }
+ }
+}
+
+// Check if endpoint has an queued transfer and not reach max NAK
+TU_ATTR_ALWAYS_INLINE static inline bool is_ep_pending(max3421_ep_t const * ep) {
+ uint8_t const state = ep->state;
+ return ep->packet_size && (state >= EP_STATE_ATTEMPT_1) &&
+ (_tuh_cfg.max_nak == 0 || state < EP_STATE_ATTEMPT_1 + _tuh_cfg.max_nak);
+}
+
+// Find the next pending endpoint using round-robin scheduling, starting from next endpoint.
+// return NULL if not found
+// TODO respect interrupt endpoint's interval
+static max3421_ep_t * find_next_pending_ep(max3421_ep_t * cur_ep) {
+ size_t const idx = (size_t) (cur_ep - _hcd_data.ep);
+
+ // starting from next endpoint
+ for (size_t i = idx + 1; i < CFG_TUH_MAX3421_ENDPOINT_TOTAL; i++) {
+ max3421_ep_t* ep = &_hcd_data.ep[i];
+ if (is_ep_pending(ep)) {
+ return ep;
+ }
+ }
+
+ // wrap around including current endpoint
+ for (size_t i = 0; i <= idx; i++) {
+ max3421_ep_t* ep = &_hcd_data.ep[i];
+ if (is_ep_pending(ep)) {
+ return ep;
+ }
+ }
+
+ return NULL;
+}
+
+//--------------------------------------------------------------------+
+// Controller API
+//--------------------------------------------------------------------+
+
+// optional hcd configuration, called by tuh_configure()
+bool hcd_configure(uint8_t rhport, uint32_t cfg_id, const void* cfg_param) {
+ (void) rhport;
+ TU_VERIFY(cfg_id == TUH_CFGID_MAX3421 && cfg_param != NULL);
+
+ tuh_configure_param_t const* cfg = (tuh_configure_param_t const*) cfg_param;
+ _tuh_cfg = cfg->max3421;
+ return true;
+}
+
+// Initialize controller to host mode
+bool hcd_init(uint8_t rhport) {
+ (void) rhport;
+
+ tuh_max3421_int_api(rhport, false);
+
+ TU_LOG2_INT(sizeof(max3421_ep_t));
+ TU_LOG2_INT(sizeof(max3421_data_t));
+ TU_LOG2_INT(offsetof(max3421_data_t, ep));
+
+ tu_memclr(&_hcd_data, sizeof(_hcd_data));
+ _hcd_data.peraddr = 0xff; // invalid
+
+#if OSAL_MUTEX_REQUIRED
+ _hcd_data.spi_mutex = osal_mutex_create(&_hcd_data.spi_mutexdef);
+#endif
+
+ // NOTE: driver does not seem to work without nRST pin signal
+
+ // full duplex, interrupt negative edge
+ reg_write(rhport, PINCTL_ADDR, _tuh_cfg.pinctl | PINCTL_FDUPSPI, false);
+
+ // v1 is 0x01, v2 is 0x12, v3 is 0x13
+ uint8_t const revision = reg_read(rhport, REVISION_ADDR, false);
+ TU_LOG2_HEX(revision);
+ TU_ASSERT(revision == 0x01 || revision == 0x12 || revision == 0x13, false);
+
+ // reset
+ reg_write(rhport, USBCTL_ADDR, USBCTL_CHIPRES, false);
+ reg_write(rhport, USBCTL_ADDR, 0, false);
+ while( !(reg_read(rhport, USBIRQ_ADDR, false) & USBIRQ_OSCOK_IRQ) ) {
+ // wait for oscillator to stabilize
+ }
+
+ // Mode: Host and DP/DM pull down
+ mode_write(rhport, MODE_DPPULLDN | MODE_DMPULLDN | MODE_HOST, false);
+
+ // frame reset & bus reset, this will trigger CONDET IRQ if device is already connected
+ reg_write(rhport, HCTL_ADDR, HCTL_BUSRST | HCTL_FRMRST, false);
+
+ // clear all previously pending IRQ
+ hirq_write(rhport, 0xff, false);
+
+ // Enable IRQ
+ hien_write(rhport, DEFAULT_HIEN, false);
+
+ tuh_max3421_int_api(rhport, true);
+
+ // Enable Interrupt pin
+ reg_write(rhport, CPUCTL_ADDR, _tuh_cfg.cpuctl | CPUCTL_IE, false);
+
+ return true;
+}
+
+bool hcd_deinit(uint8_t rhport) {
+ (void) rhport;
+
+ // disable interrupt
+ tuh_max3421_int_api(rhport, false);
+
+ // reset max3421 and power down
+ reg_write(rhport, USBCTL_ADDR, USBCTL_CHIPRES, false);
+ reg_write(rhport, USBCTL_ADDR, USBCTL_PWRDOWN, false);
+
+ #if OSAL_MUTEX_REQUIRED
+ osal_mutex_delete(_hcd_data.spi_mutex);
+ _hcd_data.spi_mutex = NULL;
+ #endif
+
+ return true;
+}
+
+// Enable USB interrupt
+// Not actually enable GPIO interrupt, just set variable to prevent handler to process
+void hcd_int_enable (uint8_t rhport) {
+ tuh_max3421_int_api(rhport, true);
+}
+
+// Disable USB interrupt
+// Not actually disable GPIO interrupt, just set variable to prevent handler to process
+void hcd_int_disable(uint8_t rhport) {
+ tuh_max3421_int_api(rhport, false);
+}
+
+// Get frame number (1ms)
+uint32_t hcd_frame_number(uint8_t rhport) {
+ (void) rhport;
+ return (uint32_t ) _hcd_data.frame_count;
+}
+
+//--------------------------------------------------------------------+
+// Port API
+//--------------------------------------------------------------------+
+
+// Get the current connect status of roothub port
+bool hcd_port_connect_status(uint8_t rhport) {
+ (void) rhport;
+ return (_hcd_data.mode & MODE_SOFKAENAB) ? true : false;
+}
+
+// Reset USB bus on the port. Return immediately, bus reset sequence may not be complete.
+// Some port would require hcd_port_reset_end() to be invoked after 10ms to complete the reset sequence.
+void hcd_port_reset(uint8_t rhport) {
+ reg_write(rhport, HCTL_ADDR, HCTL_BUSRST, false);
+}
+
+// Complete bus reset sequence, may be required by some controllers
+void hcd_port_reset_end(uint8_t rhport) {
+ reg_write(rhport, HCTL_ADDR, 0, false);
+}
+
+// Get port link speed
+tusb_speed_t hcd_port_speed_get(uint8_t rhport) {
+ (void) rhport;
+ return (_hcd_data.mode & MODE_LOWSPEED) ? TUSB_SPEED_LOW : TUSB_SPEED_FULL;
+}
+
+// HCD closes all opened endpoints belong to this device
+void hcd_device_close(uint8_t rhport, uint8_t dev_addr) {
+ (void) rhport;
+ (void) dev_addr;
+}
+
+//--------------------------------------------------------------------+
+// Endpoints API
+//--------------------------------------------------------------------+
+
+// Open an endpoint
+bool hcd_edpt_open(uint8_t rhport, uint8_t daddr, tusb_desc_endpoint_t const * ep_desc) {
+ (void) rhport;
+
+ uint8_t const ep_num = tu_edpt_number(ep_desc->bEndpointAddress);
+ tusb_dir_t const ep_dir = tu_edpt_dir(ep_desc->bEndpointAddress);
+
+ max3421_ep_t * ep;
+ if (daddr == 0 && ep_num == 0) {
+ ep = &_hcd_data.ep[0];
+ }else {
+ ep = allocate_ep();
+ TU_ASSERT(ep);
+ ep->daddr = daddr;
+ ep->hxfr_bm.ep_num = (uint8_t) (ep_num & 0x0f);
+ ep->hxfr_bm.is_out = (ep_dir == TUSB_DIR_OUT) ? 1 : 0;
+ ep->hxfr_bm.is_iso = (TUSB_XFER_ISOCHRONOUS == ep_desc->bmAttributes.xfer) ? 1 : 0;
+ }
+
+ ep->packet_size = (uint16_t) (tu_edpt_packet_size(ep_desc) & 0x7ff);
+
+ return true;
+}
+
+static void xact_out(uint8_t rhport, max3421_ep_t *ep, bool switch_ep, bool in_isr) {
+ // Page 12: Programming BULK-OUT Transfers
+ // TODO double buffered
+ if (switch_ep) {
+ peraddr_write(rhport, ep->daddr, in_isr);
+
+ uint8_t const hctl = (ep->data_toggle ? HCTL_SNDTOG1 : HCTL_SNDTOG0);
+ reg_write(rhport, HCTL_ADDR, hctl, in_isr);
+ }
+
+ uint8_t const xact_len = (uint8_t) tu_min16(ep->total_len - ep->xferred_len, ep->packet_size);
+ TU_ASSERT(_hcd_data.hirq & HIRQ_SNDBAV_IRQ,);
+ if (xact_len) {
+ fifo_write(rhport, SNDFIFO_ADDR, ep->buf, xact_len, in_isr);
+ }
+ sndbc_write(rhport, xact_len, in_isr);
+ hxfr_write(rhport, ep->hxfr, in_isr);
+}
+
+static void xact_in(uint8_t rhport, max3421_ep_t *ep, bool switch_ep, bool in_isr) {
+ // Page 13: Programming BULK-IN Transfers
+ if (switch_ep) {
+ peraddr_write(rhport, ep->daddr, in_isr);
+
+ uint8_t const hctl = (ep->data_toggle ? HCTL_RCVTOG1 : HCTL_RCVTOG0);
+ reg_write(rhport, HCTL_ADDR, hctl, in_isr);
+ }
+
+ hxfr_write(rhport, ep->hxfr, in_isr);
+}
+
+static void xact_setup(uint8_t rhport, max3421_ep_t *ep, bool in_isr) {
+ peraddr_write(rhport, ep->daddr, in_isr);
+ fifo_write(rhport, SUDFIFO_ADDR, ep->buf, 8, in_isr);
+ hxfr_write(rhport, HXFR_SETUP, in_isr);
+}
+
+static void xact_generic(uint8_t rhport, max3421_ep_t *ep, bool switch_ep, bool in_isr) {
+ if (ep->hxfr_bm.ep_num == 0 ) {
+ // setup
+ if (ep->hxfr_bm.is_setup) {
+ xact_setup(rhport, ep, in_isr);
+ return;
+ }
+
+ // status
+ if (ep->buf == NULL || ep->total_len == 0) {
+ uint8_t const hxfr = (uint8_t) (HXFR_HS | (ep->hxfr & HXFR_OUT_NIN));
+ peraddr_write(rhport, ep->daddr, in_isr);
+ hxfr_write(rhport, hxfr, in_isr);
+ return;
+ }
+ }
+
+ if (ep->hxfr_bm.is_out) {
+ xact_out(rhport, ep, switch_ep, in_isr);
+ }else {
+ xact_in(rhport, ep, switch_ep, in_isr);
+ }
+}
+
+// Submit a transfer, when complete hcd_event_xfer_complete() must be invoked
+bool hcd_edpt_xfer(uint8_t rhport, uint8_t daddr, uint8_t ep_addr, uint8_t * buffer, uint16_t buflen) {
+ uint8_t const ep_num = tu_edpt_number(ep_addr);
+ uint8_t const ep_dir = (uint8_t) tu_edpt_dir(ep_addr);
+
+ max3421_ep_t* ep = find_opened_ep(daddr, ep_num, ep_dir);
+ TU_VERIFY(ep);
+
+ if (ep_num == 0) {
+ // control transfer can switch direction
+ ep->hxfr_bm.is_out = ep_dir ? 0 : 1;
+ ep->hxfr_bm.is_setup = 0;
+ ep->data_toggle = 1;
+ }
+
+ ep->buf = buffer;
+ ep->total_len = buflen;
+ ep->xferred_len = 0;
+ ep->state = EP_STATE_ATTEMPT_1;
+
+ // carry out transfer if not busy
+ if (!atomic_flag_test_and_set(&_hcd_data.busy)) {
+ xact_generic(rhport, ep, true, false);
+ }
+
+ return true;
+}
+
+// Abort a queued transfer. Note: it can only abort transfer that has not been started
+// Return true if a queued transfer is aborted, false if there is no transfer to abort
+bool hcd_edpt_abort_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr) {
+ (void) rhport;
+ (void) dev_addr;
+ (void) ep_addr;
+
+ return false;
+}
+
+// Submit a special transfer to send 8-byte Setup Packet, when complete hcd_event_xfer_complete() must be invoked
+bool hcd_setup_send(uint8_t rhport, uint8_t daddr, uint8_t const setup_packet[8]) {
+ (void) rhport;
+
+ max3421_ep_t* ep = find_opened_ep(daddr, 0, 0);
+ TU_ASSERT(ep);
+
+ ep->hxfr_bm.is_out = 1;
+ ep->hxfr_bm.is_setup = 1;
+ ep->buf = (uint8_t*)(uintptr_t) setup_packet;
+ ep->total_len = 8;
+ ep->xferred_len = 0;
+ ep->state = EP_STATE_ATTEMPT_1;
+
+ // carry out transfer if not busy
+ if (!atomic_flag_test_and_set(&_hcd_data.busy)) {
+ xact_setup(rhport, ep, false);
+ }
+
+ return true;
+}
+
+// clear stall, data toggle is also reset to DATA0
+bool hcd_edpt_clear_stall(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr) {
+ (void) rhport;
+ (void) dev_addr;
+ (void) ep_addr;
+
+ return false;
+}
+
+//--------------------------------------------------------------------+
+// Interrupt Handler
+//--------------------------------------------------------------------+
+
+static void handle_connect_irq(uint8_t rhport, bool in_isr) {
+ uint8_t const hrsl = reg_read(rhport, HRSL_ADDR, in_isr);
+ uint8_t const jk = hrsl & (HRSL_JSTATUS | HRSL_KSTATUS);
+
+ uint8_t new_mode = MODE_DPPULLDN | MODE_DMPULLDN | MODE_HOST;
+ TU_LOG2_HEX(jk);
+
+ switch(jk) {
+ case 0x00: // SEO is disconnected
+ case (HRSL_JSTATUS | HRSL_KSTATUS): // SE1 is illegal
+ mode_write(rhport, new_mode, in_isr);
+
+ // port reset anyway, this will help to stable bus signal for next connection
+ reg_write(rhport, HCTL_ADDR, HCTL_BUSRST, in_isr);
+ hcd_event_device_remove(rhport, in_isr);
+ reg_write(rhport, HCTL_ADDR, 0, in_isr);
+ break;
+
+ default: {
+ // Bus Reset also cause CONDET IRQ, skip if we are already connected and doing bus reset
+ if ((_hcd_data.hirq & HIRQ_BUSEVENT_IRQ) && (_hcd_data.mode & MODE_SOFKAENAB)) {
+ break;
+ }
+
+ // Low speed if (LS = 1 and J-state) or (LS = 0 and K-State)
+ // However, since we are always in full speed mode, we can just check J-state
+ if (jk == HRSL_KSTATUS) {
+ new_mode |= MODE_LOWSPEED;
+ TU_LOG3("Low speed\r\n");
+ }else {
+ TU_LOG3("Full speed\r\n");
+ }
+ new_mode |= MODE_SOFKAENAB;
+ mode_write(rhport, new_mode, in_isr);
+
+ // FIXME multiple MAX3421 rootdevice address is not 1
+ uint8_t const daddr = 1;
+ free_ep(daddr);
+
+ hcd_event_device_attach(rhport, in_isr);
+ break;
+ }
+ }
+}
+
+static void xfer_complete_isr(uint8_t rhport, max3421_ep_t *ep, xfer_result_t result, uint8_t hrsl, bool in_isr) {
+ uint8_t const ep_dir = 1-ep->hxfr_bm.is_out;
+ uint8_t const ep_addr = tu_edpt_addr(ep->hxfr_bm.ep_num, ep_dir);
+
+ // save data toggle
+ if (ep_dir) {
+ ep->data_toggle = (hrsl & HRSL_RCVTOGRD) ? 1u : 0u;
+ }else {
+ ep->data_toggle = (hrsl & HRSL_SNDTOGRD) ? 1u : 0u;
+ }
+
+ ep->state = EP_STATE_IDLE;
+ hcd_event_xfer_complete(ep->daddr, ep_addr, ep->xferred_len, result, in_isr);
+
+ // Find next pending endpoint
+ max3421_ep_t * next_ep = find_next_pending_ep(ep);
+ if (next_ep) {
+ xact_generic(rhport, next_ep, true, in_isr);
+ }else {
+ // no more pending
+ atomic_flag_clear(&_hcd_data.busy);
+ }
+}
+
+static void handle_xfer_done(uint8_t rhport, bool in_isr) {
+ uint8_t const hrsl = reg_read(rhport, HRSL_ADDR, in_isr);
+ uint8_t const hresult = hrsl & HRSL_RESULT_MASK;
+
+ uint8_t const ep_num = _hcd_data.hxfr & HXFR_EPNUM_MASK;
+ uint8_t const hxfr_type = _hcd_data.hxfr & 0xf0;
+ uint8_t const ep_dir = ((hxfr_type & HXFR_SETUP) || (hxfr_type & HXFR_OUT_NIN)) ? 0 : 1;
+
+ max3421_ep_t *ep = find_opened_ep(_hcd_data.peraddr, ep_num, ep_dir);
+ TU_VERIFY(ep, );
+
+ xfer_result_t xfer_result;
+ switch(hresult) {
+ case HRSL_SUCCESS:
+ xfer_result = XFER_RESULT_SUCCESS;
+ break;
+
+ case HRSL_STALL:
+ xfer_result = XFER_RESULT_STALLED;
+ break;
+
+ case HRSL_NAK:
+ if (ep_num == 0) {
+ // control endpoint -> retry immediately
+ hxfr_write(rhport, _hcd_data.hxfr, in_isr);
+ } else {
+ if (ep->state < EP_STATE_ATTEMPT_MAX) {
+ ep->state++;
+ }
+
+ max3421_ep_t * next_ep = find_next_pending_ep(ep);
+ if (ep == next_ep) {
+ // this endpoint is only one pending -> retry immediately
+ hxfr_write(rhport, _hcd_data.hxfr, in_isr);
+ } else if (next_ep) {
+ // switch to next pending endpoint TODO could have issue with double buffered if not clear previously out data
+ xact_generic(rhport, next_ep, true, in_isr);
+ } else {
+ // no more pending in this frame -> clear busy
+ atomic_flag_clear(&_hcd_data.busy);
+ }
+ }
+ return;
+
+ case HRSL_BAD_REQ:
+ // occurred when initialized without any pending transfer. Skip for now
+ return;
+
+ default:
+ TU_LOG3("HRSL: %02X\r\n", hrsl);
+ xfer_result = XFER_RESULT_FAILED;
+ break;
+ }
+
+ if (xfer_result != XFER_RESULT_SUCCESS) {
+ xfer_complete_isr(rhport, ep, xfer_result, hrsl, in_isr);
+ return;
+ }
+
+ if (ep_dir) {
+ // IN transfer: fifo data is already received in RCVDAV IRQ
+
+ // mark control handshake as complete
+ if (hxfr_type & HXFR_HS) {
+ ep->state = EP_STATE_COMPLETE;
+ }
+
+ // short packet or all bytes transferred
+ if (ep->state == EP_STATE_COMPLETE) {
+ xfer_complete_isr(rhport, ep, xfer_result, hrsl, in_isr);
+ }else {
+ // more to transfer
+ hxfr_write(rhport, _hcd_data.hxfr, in_isr);
+ }
+ } else {
+ // SETUP or OUT transfer
+ uint8_t xact_len;
+
+ if (hxfr_type & HXFR_SETUP) {
+ xact_len = 8;
+ } else if (hxfr_type & HXFR_HS) {
+ xact_len = 0;
+ } else {
+ xact_len = _hcd_data.sndbc;
+ }
+
+ ep->xferred_len += xact_len;
+ ep->buf += xact_len;
+
+ if (xact_len < ep->packet_size || ep->xferred_len >= ep->total_len) {
+ xfer_complete_isr(rhport, ep, xfer_result, hrsl, in_isr);
+ } else {
+ // more to transfer
+ xact_out(rhport, ep, false, in_isr);
+ }
+ }
+}
+
+#if CFG_TUSB_DEBUG >= 3
+void print_hirq(uint8_t hirq) {
+ TU_LOG3_HEX(hirq);
+
+ if (hirq & HIRQ_HXFRDN_IRQ) TU_LOG3(" HXFRDN");
+ if (hirq & HIRQ_FRAME_IRQ) TU_LOG3(" FRAME");
+ if (hirq & HIRQ_CONDET_IRQ) TU_LOG3(" CONDET");
+ if (hirq & HIRQ_SUSDN_IRQ) TU_LOG3(" SUSDN");
+ if (hirq & HIRQ_SNDBAV_IRQ) TU_LOG3(" SNDBAV");
+ if (hirq & HIRQ_RCVDAV_IRQ) TU_LOG3(" RCVDAV");
+ if (hirq & HIRQ_RWU_IRQ) TU_LOG3(" RWU");
+ if (hirq & HIRQ_BUSEVENT_IRQ) TU_LOG3(" BUSEVENT");
+
+ TU_LOG3("\r\n");
+}
+#else
+ #define print_hirq(hirq)
+#endif
+
+// Interrupt handler
+void hcd_int_handler(uint8_t rhport, bool in_isr) {
+ uint8_t hirq = reg_read(rhport, HIRQ_ADDR, in_isr) & _hcd_data.hien;
+ if (!hirq) return;
+// print_hirq(hirq);
+
+ if (hirq & HIRQ_FRAME_IRQ) {
+ _hcd_data.frame_count++;
+
+ max3421_ep_t* ep_retry = NULL;
+
+ // reset all endpoints attempt counter
+ for (size_t i = 0; i < CFG_TUH_MAX3421_ENDPOINT_TOTAL; i++) {
+ max3421_ep_t* ep = &_hcd_data.ep[i];
+ if (ep->packet_size && ep->state > EP_STATE_ATTEMPT_1) {
+ ep->state = EP_STATE_ATTEMPT_1;
+
+ if (ep_retry == NULL) {
+ ep_retry = ep;
+ }
+ }
+ }
+
+ // start usb transfer if not busy
+ if (ep_retry != NULL && !atomic_flag_test_and_set(&_hcd_data.busy)) {
+ xact_generic(rhport, ep_retry, true, in_isr);
+ }
+ }
+
+ if (hirq & HIRQ_CONDET_IRQ) {
+ handle_connect_irq(rhport, in_isr);
+ }
+
+ // queue more transfer in handle_xfer_done() can cause hirq to be set again while external IRQ may not catch and/or
+ // not call this handler again. So we need to loop until all IRQ are cleared
+ while (hirq & (HIRQ_RCVDAV_IRQ | HIRQ_HXFRDN_IRQ)) {
+ if (hirq & HIRQ_RCVDAV_IRQ) {
+ uint8_t const ep_num = _hcd_data.hxfr & HXFR_EPNUM_MASK;
+ max3421_ep_t* ep = find_opened_ep(_hcd_data.peraddr, ep_num, 1);
+ uint8_t xact_len = 0;
+
+ // RCVDAV_IRQ can trigger 2 times (dual buffered)
+ while (hirq & HIRQ_RCVDAV_IRQ) {
+ uint8_t rcvbc = reg_read(rhport, RCVBC_ADDR, in_isr);
+ xact_len = (uint8_t) tu_min16(rcvbc, ep->total_len - ep->xferred_len);
+ if (xact_len) {
+ fifo_read(rhport, ep->buf, xact_len, in_isr);
+ ep->buf += xact_len;
+ ep->xferred_len += xact_len;
+ }
+
+ // ack RCVDVAV IRQ
+ hirq_write(rhport, HIRQ_RCVDAV_IRQ, in_isr);
+ hirq = reg_read(rhport, HIRQ_ADDR, in_isr);
+ }
+
+ if (xact_len < ep->packet_size || ep->xferred_len >= ep->total_len) {
+ ep->state = EP_STATE_COMPLETE;
+ }
+ }
+
+ if (hirq & HIRQ_HXFRDN_IRQ) {
+ hirq_write(rhport, HIRQ_HXFRDN_IRQ, in_isr);
+ handle_xfer_done(rhport, in_isr);
+ }
+
+ hirq = reg_read(rhport, HIRQ_ADDR, in_isr);
+ }
+
+ // clear all interrupt except SNDBAV_IRQ (never clear by us). Note RCVDAV_IRQ, HXFRDN_IRQ already clear while processing
+ hirq &= (uint8_t) ~HIRQ_SNDBAV_IRQ;
+ if ( hirq ) {
+ hirq_write(rhport, hirq, in_isr);
+ }
+}
+
+#endif
diff --git a/src/portable/chipidea/ci_fs/ci_fs_kinetis.h b/src/portable/chipidea/ci_fs/ci_fs_kinetis.h
index cd21af1c7..31e14a546 100644
--- a/src/portable/chipidea/ci_fs/ci_fs_kinetis.h
+++ b/src/portable/chipidea/ci_fs/ci_fs_kinetis.h
@@ -36,14 +36,12 @@
#define CI_FS_REG(_port) ((ci_fs_regs_t*) USB0_BASE)
#define CI_REG CI_FS_REG(0)
-void dcd_int_enable(uint8_t rhport)
-{
+void dcd_int_enable(uint8_t rhport) {
(void) rhport;
NVIC_EnableIRQ(USB0_IRQn);
}
-void dcd_int_disable(uint8_t rhport)
-{
+void dcd_int_disable(uint8_t rhport) {
(void) rhport;
NVIC_DisableIRQ(USB0_IRQn);
}
diff --git a/src/portable/chipidea/ci_fs/ci_fs_mcx.h b/src/portable/chipidea/ci_fs/ci_fs_mcx.h
index 3bfcd398e..4b93a03a7 100644
--- a/src/portable/chipidea/ci_fs/ci_fs_mcx.h
+++ b/src/portable/chipidea/ci_fs/ci_fs_mcx.h
@@ -29,19 +29,28 @@
#include "fsl_device_registers.h"
-#define CI_FS_REG(_port) ((ci_fs_regs_t*) USBFS0_BASE)
-#define CI_REG CI_FS_REG(0)
+#if CFG_TUSB_MCU == OPT_MCU_MCXN9
+ #define CI_FS_REG(_port) ((ci_fs_regs_t*) USBFS0_BASE)
+ #define CIFS_IRQN USB0_FS_IRQn
-void dcd_int_enable(uint8_t rhport)
-{
+#elif CFG_TUSB_MCU == OPT_MCU_MCXA15
+ #define CI_FS_REG(_port) ((ci_fs_regs_t*) USB0_BASE)
+ #define CIFS_IRQN USB0_IRQn
+
+#else
+ #error "MCU is not supported"
+#endif
+
+#define CI_REG CI_FS_REG(0)
+
+void dcd_int_enable(uint8_t rhport) {
(void) rhport;
- NVIC_EnableIRQ(USB0_FS_IRQn);
+ NVIC_EnableIRQ(CIFS_IRQN);
}
-void dcd_int_disable(uint8_t rhport)
-{
+void dcd_int_disable(uint8_t rhport) {
(void) rhport;
- NVIC_DisableIRQ(USB0_FS_IRQn);
+ NVIC_DisableIRQ(CIFS_IRQN);
}
#endif
diff --git a/src/portable/chipidea/ci_fs/dcd_ci_fs.c b/src/portable/chipidea/ci_fs/dcd_ci_fs.c
index 9327e09d8..02f813ab5 100644
--- a/src/portable/chipidea/ci_fs/dcd_ci_fs.c
+++ b/src/portable/chipidea/ci_fs/dcd_ci_fs.c
@@ -271,9 +271,21 @@ void dcd_init(uint8_t rhport)
{
(void) rhport;
+ // save crystal-less setting (if available)
+ #if defined(FSL_FEATURE_USB_KHCI_IRC48M_MODULE_CLOCK_ENABLED) && FSL_FEATURE_USB_KHCI_IRC48M_MODULE_CLOCK_ENABLED == 1
+ uint32_t clk_recover_irc_en = CI_REG->CLK_RECOVER_IRC_EN;
+ uint32_t clk_recover_ctrl = CI_REG->CLK_RECOVER_CTRL;
+ #endif
+
CI_REG->USBTRC0 |= USB_USBTRC0_USBRESET_MASK;
while (CI_REG->USBTRC0 & USB_USBTRC0_USBRESET_MASK);
+ // restore crystal-less setting (if available)
+ #if defined(FSL_FEATURE_USB_KHCI_IRC48M_MODULE_CLOCK_ENABLED) && FSL_FEATURE_USB_KHCI_IRC48M_MODULE_CLOCK_ENABLED == 1
+ CI_REG->CLK_RECOVER_IRC_EN = clk_recover_irc_en;
+ CI_REG->CLK_RECOVER_CTRL |= clk_recover_ctrl;
+ #endif
+
tu_memclr(&_dcd, sizeof(_dcd));
CI_REG->USBTRC0 |= TU_BIT(6); /* software must set this bit to 1 */
CI_REG->BDT_PAGE1 = (uint8_t)((uintptr_t)_dcd.bdt >> 8);
@@ -283,7 +295,7 @@ void dcd_init(uint8_t rhport)
CI_REG->INT_EN = USB_INTEN_USBRSTEN_MASK;
dcd_connect(rhport);
- // NVIC_ClearPendingIRQ(USB0_IRQn);
+ // NVIC_ClearPendingIRQ(CIFS_IRQN);
}
void dcd_set_address(uint8_t rhport, uint8_t dev_addr)
diff --git a/src/portable/chipidea/ci_hs/ci_hs_lpc18_43.h b/src/portable/chipidea/ci_hs/ci_hs_lpc18_43.h
index 2e84c93e7..178eec419 100644
--- a/src/portable/chipidea/ci_hs/ci_hs_lpc18_43.h
+++ b/src/portable/chipidea/ci_hs/ci_hs_lpc18_43.h
@@ -27,9 +27,18 @@
#ifndef _CI_HS_LPC18_43_H_
#define _CI_HS_LPC18_43_H_
+#ifdef __GNUC__
+#pragma GCC diagnostic push
+#pragma GCC diagnostic ignored "-Wunused-parameter"
+#endif
+
// LPCOpen for 18xx & 43xx
#include "chip.h"
+#ifdef __GNUC__
+#pragma GCC diagnostic pop
+#endif
+
static const ci_hs_controller_t _ci_controller[] =
{
{ .reg_base = LPC_USB0_BASE, .irqnum = USB0_IRQn },
diff --git a/src/portable/chipidea/ci_hs/hcd_ci_hs.c b/src/portable/chipidea/ci_hs/hcd_ci_hs.c
index 6ee91e18e..462cbd301 100644
--- a/src/portable/chipidea/ci_hs/hcd_ci_hs.c
+++ b/src/portable/chipidea/ci_hs/hcd_ci_hs.c
@@ -39,24 +39,27 @@
#include "ci_hs_type.h"
#if CFG_TUSB_MCU == OPT_MCU_MIMXRT1XXX
- #include "ci_hs_imxrt.h"
- bool hcd_dcache_clean(void const* addr, uint32_t data_size) {
- return imxrt_dcache_clean(addr, data_size);
- }
+#include "ci_hs_imxrt.h"
- bool hcd_dcache_invalidate(void const* addr, uint32_t data_size) {
- return imxrt_dcache_invalidate(addr, data_size);
- }
+bool hcd_dcache_clean(void const* addr, uint32_t data_size) {
+ return imxrt_dcache_clean(addr, data_size);
+}
+
+bool hcd_dcache_invalidate(void const* addr, uint32_t data_size) {
+ return imxrt_dcache_invalidate(addr, data_size);
+}
- bool hcd_dcache_clean_invalidate(void const* addr, uint32_t data_size) {
- return imxrt_dcache_clean_invalidate(addr, data_size);
- }
+bool hcd_dcache_clean_invalidate(void const* addr, uint32_t data_size) {
+ return imxrt_dcache_clean_invalidate(addr, data_size);
+}
#elif TU_CHECK_MCU(OPT_MCU_LPC18XX, OPT_MCU_LPC43XX)
- #include "ci_hs_lpc18_43.h"
+
+#include "ci_hs_lpc18_43.h"
+
#else
- #error "Unsupported MCUs"
+#error "Unsupported MCUs"
#endif
//--------------------------------------------------------------------+
@@ -67,25 +70,25 @@
// Controller API
//--------------------------------------------------------------------+
-bool hcd_init(uint8_t rhport)
-{
- ci_hs_regs_t* hcd_reg = CI_HS_REG(rhport);
+bool hcd_init(uint8_t rhport) {
+ ci_hs_regs_t *hcd_reg = CI_HS_REG(rhport);
// Reset controller
hcd_reg->USBCMD |= USBCMD_RESET;
- while( hcd_reg->USBCMD & USBCMD_RESET ) {}
+ while ( hcd_reg->USBCMD & USBCMD_RESET ) {}
// Set mode to device, must be set immediately after reset
#if CFG_TUSB_MCU == OPT_MCU_LPC18XX || CFG_TUSB_MCU == OPT_MCU_LPC43XX
// LPC18XX/43XX need to set VBUS Power Select to HIGH
// RHPORT1 is fullspeed only (need external PHY for Highspeed)
hcd_reg->USBMODE = USBMODE_CM_HOST | USBMODE_VBUS_POWER_SELECT;
- if (rhport == 1) hcd_reg->PORTSC1 |= PORTSC1_FORCE_FULL_SPEED;
+ if ( rhport == 1 ) hcd_reg->PORTSC1 |= PORTSC1_FORCE_FULL_SPEED;
#else
hcd_reg->USBMODE = USBMODE_CM_HOST;
#endif
// FIXME force full speed, still have issue with Highspeed enumeration
+ // probably due to physical connection bouncing when plug/unplug
// 1. Have issue when plug/unplug devices, maybe the port is not reset properly
// 2. Also does not seems to detect disconnection
hcd_reg->PORTSC1 |= PORTSC1_FORCE_FULL_SPEED;
@@ -93,13 +96,11 @@ bool hcd_init(uint8_t rhport)
return ehci_init(rhport, (uint32_t) &hcd_reg->CAPLENGTH, (uint32_t) &hcd_reg->USBCMD);
}
-void hcd_int_enable(uint8_t rhport)
-{
+void hcd_int_enable(uint8_t rhport) {
CI_HCD_INT_ENABLE(rhport);
}
-void hcd_int_disable(uint8_t rhport)
-{
+void hcd_int_disable(uint8_t rhport) {
CI_HCD_INT_DISABLE(rhport);
}
diff --git a/src/portable/dialog/da146xx/dcd_da146xx.c b/src/portable/dialog/da146xx/dcd_da146xx.c
index 961da81d6..d1e85c2df 100644
--- a/src/portable/dialog/da146xx/dcd_da146xx.c
+++ b/src/portable/dialog/da146xx/dcd_da146xx.c
@@ -651,7 +651,7 @@ static void handle_epx_tx_ev(xfer_ctl_t *xfer)
}
if (txs & USB_USB_TXS1_REG_USB_TX_URUN_Msk)
{
- TU_LOG1("EP %d FIFO underrun\n", epnum);
+ TU_LOG1("EP %d FIFO underrun\r\n", epnum);
}
// Start next or repeated packet.
start_tx_packet(xfer);
diff --git a/src/portable/ehci/ehci.c b/src/portable/ehci/ehci.c
index 241393a39..01bbf62bf 100644
--- a/src/portable/ehci/ehci.c
+++ b/src/portable/ehci/ehci.c
@@ -92,7 +92,7 @@ CFG_TUH_MEM_SECTION TU_ATTR_ALIGNED(4096) static ehci_data_t ehci_data;
//--------------------------------------------------------------------+
// Debug
//--------------------------------------------------------------------+
-#if CFG_TUSB_DEBUG >= (EHCI_DBG + 1)
+#if 0 && CFG_TUSB_DEBUG >= (EHCI_DBG + 1)
static inline void print_portsc(ehci_registers_t* regs) {
TU_LOG_HEX(EHCI_DBG, regs->portsc);
TU_LOG(EHCI_DBG, " Connect Status : %u\r\n", regs->portsc_bm.current_connect_status);
@@ -188,6 +188,11 @@ void hcd_port_reset(uint8_t rhport)
ehci_registers_t* regs = ehci_data.regs;
+ // skip if already in reset
+ if (regs->portsc_bm.port_reset) {
+ return;
+ }
+
// mask out Write-1-to-Clear bits
uint32_t portsc = regs->portsc & ~EHCI_PORTSC_MASK_W1C;
@@ -202,16 +207,18 @@ void hcd_port_reset(uint8_t rhport)
void hcd_port_reset_end(uint8_t rhport)
{
(void) rhport;
-
-#if 0 // TODO check if this is necessary
ehci_registers_t* regs = ehci_data.regs;
+ // skip if reset is already complete
+ if (!regs->portsc_bm.port_reset) {
+ return;
+ }
+
// mask out all change bits since they are Write 1 to clear
- uint32_t portsc = regs->portsc & ~EHCI_PORTSC_MASK_CHANGE_ALL;
- portsc &= ~(EHCI_PORTSC_MASK_PORT_RESET);
+ uint32_t portsc = regs->portsc & ~EHCI_PORTSC_MASK_W1C;
+ portsc &= ~EHCI_PORTSC_MASK_PORT_RESET;
regs->portsc = portsc;
-#endif
}
bool hcd_port_connect_status(uint8_t rhport)
@@ -307,18 +314,18 @@ bool ehci_init(uint8_t rhport, uint32_t capability_reg, uint32_t operatial_reg)
regs->status = (EHCI_INT_MASK_ALL & ~EHCI_INT_MASK_PORT_CHANGE);
// Enable interrupts
- regs->inten = EHCI_INT_MASK_ERROR | EHCI_INT_MASK_PORT_CHANGE | EHCI_INT_MASK_ASYNC_ADVANCE |
- EHCI_INT_MASK_NXP_PERIODIC | EHCI_INT_MASK_NXP_ASYNC | EHCI_INT_MASK_FRAMELIST_ROLLOVER;
+ regs->inten = EHCI_INT_MASK_USB | EHCI_INT_MASK_ERROR | EHCI_INT_MASK_PORT_CHANGE |
+ EHCI_INT_MASK_ASYNC_ADVANCE | EHCI_INT_MASK_FRAMELIST_ROLLOVER;
//------------- Asynchronous List -------------//
ehci_qhd_t * const async_head = list_get_async_head(rhport);
tu_memclr(async_head, sizeof(ehci_qhd_t));
- async_head->next.address = (uint32_t) async_head; // circular list, next is itself
- async_head->next.type = EHCI_QTYPE_QHD;
- async_head->head_list_flag = 1;
- async_head->qtd_overlay.halted = 1; // inactive most of time
- async_head->qtd_overlay.next.terminate = 1; // TODO removed if verified
+ async_head->next.address = (uint32_t) async_head; // circular list, next is itself
+ async_head->next.type = EHCI_QTYPE_QHD;
+ async_head->head_list_flag = 1;
+ async_head->qtd_overlay.halted = 1; // inactive most of time
+ async_head->qtd_overlay.next.terminate = 1; // TODO removed if verified
regs->async_list_addr = (uint32_t) async_head;
@@ -426,6 +433,11 @@ bool hcd_setup_send(uint8_t rhport, uint8_t dev_addr, uint8_t const setup_packet
hcd_dcache_clean(setup_packet, 8);
+ // Control endpoint never be stalled. Skip reset Data Toggle since it is fixed per stage
+ if (qhd->qtd_overlay.halted) {
+ qhd->qtd_overlay.halted = false;
+ }
+
// attach TD to QHD -> start transferring
qhd_attach_qtd(qhd, td);
@@ -443,6 +455,11 @@ bool hcd_edpt_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr, uint8_t *
ehci_qtd_t* qtd;
if (epnum == 0) {
+ // Control endpoint never be stalled. Skip reset Data Toggle since it is fixed per stage
+ if (qhd->qtd_overlay.halted) {
+ qhd->qtd_overlay.halted = false;
+ }
+
qtd = qtd_control(dev_addr);
qtd_init(qtd, buffer, buflen);
@@ -450,6 +467,9 @@ bool hcd_edpt_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr, uint8_t *
qtd->data_toggle = 1;
qtd->pid = dir ? EHCI_PID_IN : EHCI_PID_OUT;
} else {
+ // skip if endpoint is halted
+ TU_VERIFY(!qhd->qtd_overlay.halted);
+
qtd = qtd_find_free();
TU_ASSERT(qtd);
@@ -502,12 +522,13 @@ bool hcd_edpt_abort_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr) {
return still_active; // true if removed an active transfer
}
-bool hcd_edpt_clear_stall(uint8_t daddr, uint8_t ep_addr)
-{
+bool hcd_edpt_clear_stall(uint8_t rhport, uint8_t daddr, uint8_t ep_addr) {
+ (void) rhport;
ehci_qhd_t *qhd = qhd_get_from_addr(daddr, ep_addr);
qhd->qtd_overlay.halted = 0;
+ qhd->qtd_overlay.data_toggle = 0;
hcd_dcache_clean_invalidate(qhd, sizeof(ehci_qhd_t));
- // TODO reset data toggle ?
+
return true;
}
@@ -533,70 +554,76 @@ void async_advance_isr(uint8_t rhport)
}
TU_ATTR_ALWAYS_INLINE static inline
-void port_connect_status_change_isr(uint8_t rhport)
-{
+void port_connect_status_change_isr(uint8_t rhport) {
// NOTE There is an sequence plug->unplug->…..-> plug if device is powering with pre-plugged device
- if (ehci_data.regs->portsc_bm.current_connect_status)
- {
+ if ( ehci_data.regs->portsc_bm.current_connect_status ) {
hcd_port_reset(rhport);
hcd_event_device_attach(rhport, true);
- }else // device unplugged
+ } else // device unplugged
{
hcd_event_device_remove(rhport, true);
}
}
+// Check queue head for potential transfer complete (successful or error)
TU_ATTR_ALWAYS_INLINE static inline
void qhd_xfer_complete_isr(ehci_qhd_t * qhd) {
- // examine TD attached to queue head
- ehci_qtd_t * volatile qtd = qhd->attached_qtd;
+ hcd_dcache_invalidate(qhd, sizeof(ehci_qhd_t)); // HC may have updated the overlay
+ volatile ehci_qtd_t *qtd_overlay = &qhd->qtd_overlay;
- if (qtd == NULL) {
- return; // no TD attached
- }
+ // process non-active (completed) QHD with attached (scheduled) TD
+ if ( !qtd_overlay->active && qhd->attached_qtd != NULL ) {
+ xfer_result_t xfer_result;
- hcd_dcache_invalidate(qtd, sizeof(ehci_qtd_t));
+ if ( qtd_overlay->halted ) {
+ if (qtd_overlay->xact_err || qtd_overlay->err_count == 0 || qtd_overlay->buffer_err || qtd_overlay->babble_err) {
+ // Error count = 0 often occurs when device disconnected, or other bus-related error
+ // clear halted bit if not caused by STALL to allow more transfer
+ xfer_result = XFER_RESULT_FAILED;
+ qtd_overlay->halted = false;
+ TU_LOG3(" QHD xfer err count: %d\r\n", qtd_overlay->err_count);
+ // TU_BREAKPOINT(); // TODO skip unplugged device
+ }else {
+ // no error bits are set, endpoint is halted due to STALL
+ xfer_result = XFER_RESULT_STALLED;
+ }
+ } else {
+ xfer_result = XFER_RESULT_SUCCESS;
+ }
- // TD is still active, no need to process
- if (qtd->active) {
- return;
- }
+ ehci_qtd_t * volatile qtd = qhd->attached_qtd;
+ hcd_dcache_invalidate(qtd, sizeof(ehci_qtd_t)); // HC may have written back TD
- uint8_t dir = (qtd->pid == EHCI_PID_IN) ? 1 : 0;
- uint32_t const xferred_bytes = qtd->expected_bytes - qtd->total_bytes;
+ uint8_t const dir = (qtd->pid == EHCI_PID_IN) ? 1 : 0;
+ uint32_t const xferred_bytes = qtd->expected_bytes - qtd->total_bytes;
- // invalidate dcache if IN transfer
- if (dir == 1 && qhd->attached_buffer != 0 && xferred_bytes > 0) {
- hcd_dcache_invalidate((void*) qhd->attached_buffer, xferred_bytes);
- }
+ // invalidate dcache if IN transfer with data
+ if (dir == 1 && qhd->attached_buffer != 0 && xferred_bytes > 0) {
+ hcd_dcache_invalidate((void*) qhd->attached_buffer, xferred_bytes);
+ }
- // remove and free TD before invoking callback
- qhd_remove_qtd(qhd);
+ // remove and free TD before invoking callback
+ qhd_remove_qtd(qhd);
- // notify usbh
- uint8_t const ep_addr = tu_edpt_addr(qhd->ep_number, dir);
- hcd_event_xfer_complete(qhd->dev_addr, ep_addr, xferred_bytes, XFER_RESULT_SUCCESS, true);
+ // notify usbh
+ uint8_t const ep_addr = tu_edpt_addr(qhd->ep_number, dir);
+ hcd_event_xfer_complete(qhd->dev_addr, ep_addr, xferred_bytes, xfer_result, true);
+ }
}
TU_ATTR_ALWAYS_INLINE static inline
-void async_list_xfer_complete_isr(ehci_qhd_t * const async_head)
+void proccess_async_xfer_isr(ehci_qhd_t * const list_head)
{
- ehci_qhd_t *p_qhd = async_head;
- do
- {
- hcd_dcache_invalidate(p_qhd, sizeof(ehci_qhd_t));
+ ehci_qhd_t *qhd = list_head;
- // halted or error is processed in error isr
- if ( !p_qhd->qtd_overlay.halted ) {
- qhd_xfer_complete_isr(p_qhd);
- }
-
- p_qhd = qhd_next(p_qhd);
- }while(p_qhd != async_head); // async list traversal, stop if loop around
+ do {
+ qhd_xfer_complete_isr(qhd);
+ qhd = qhd_next(qhd);
+ } while ( qhd != list_head ); // async list traversal, stop if loop around
}
TU_ATTR_ALWAYS_INLINE static inline
-void period_list_xfer_complete_isr(uint8_t rhport, uint32_t interval_ms)
+void process_period_xfer_isr(uint8_t rhport, uint32_t interval_ms)
{
uint32_t const period_1ms_addr = (uint32_t) list_get_period_head(rhport, 1u);
ehci_link_t next_link = *list_get_period_head(rhport, interval_ms);
@@ -612,22 +639,13 @@ void period_list_xfer_complete_isr(uint8_t rhport, uint32_t interval_ms)
switch (next_link.type) {
case EHCI_QTYPE_QHD: {
ehci_qhd_t *qhd = (ehci_qhd_t *) entry_addr;
- hcd_dcache_invalidate(qhd, sizeof(ehci_qhd_t));
-
- if (!qhd->qtd_overlay.halted) {
- qhd_xfer_complete_isr(qhd);
- }
+ qhd_xfer_complete_isr(qhd);
}
break;
+ // TODO support hs/fs ISO
case EHCI_QTYPE_ITD:
- // TODO support hs ISO
- break;
-
case EHCI_QTYPE_SITD:
- // TODO support split ISO
- break;
-
case EHCI_QTYPE_FSTN:
default:
break;
@@ -637,116 +655,16 @@ void period_list_xfer_complete_isr(uint8_t rhport, uint32_t interval_ms)
}
}
-// TODO merge with qhd_xfer_complete_isr()
-TU_ATTR_ALWAYS_INLINE static inline
-void qhd_xfer_error_isr(ehci_qhd_t * qhd)
-{
- volatile ehci_qtd_t *qtd_overlay = &qhd->qtd_overlay;
-
- // TD has error
- if (qtd_overlay->halted) {
- xfer_result_t xfer_result;
-
- if (qtd_overlay->xact_err || qtd_overlay->err_count == 0 || qtd_overlay->buffer_err || qtd_overlay->babble_err) {
- // Error count = 0 often occurs when device disconnected, or other bus-related error
- xfer_result = XFER_RESULT_FAILED;
- }else {
- // no error bits are set, endpoint is halted due to STALL
- xfer_result = XFER_RESULT_STALLED;
- }
-
-// if (XFER_RESULT_FAILED == xfer_result ) {
-// TU_LOG1(" QHD xfer err count: %d\n", qtd_overlay->err_count);
-// TU_BREAKPOINT(); // TODO skip unplugged device
-// }
-
- ehci_qtd_t * volatile qtd = (ehci_qtd_t * volatile) qhd->attached_qtd;
- TU_ASSERT(qtd, ); // No TD yet, probably a race condition or cache issue !?
-
- hcd_dcache_invalidate(qtd, sizeof(ehci_qtd_t));
-
- uint8_t dir = (qtd->pid == EHCI_PID_IN) ? 1 : 0;
- uint32_t const xferred_bytes = qtd->expected_bytes - qtd->total_bytes;
-
- // invalidate dcache if IN transfer
- if (dir == 1 && qhd->attached_buffer != 0 && xferred_bytes > 0) {
- hcd_dcache_invalidate((void*) qhd->attached_buffer, xferred_bytes);
- }
-
- // remove and free TD before invoking callback
- qhd_remove_qtd(qhd);
-
- if (0 == qhd->ep_number ) {
- // control cannot be halted
- qhd->qtd_overlay.next.terminate = 1;
- qhd->qtd_overlay.alternate.terminate = 1;
- qhd->qtd_overlay.halted = 0;
-
- hcd_dcache_clean(qhd, sizeof(ehci_qhd_t));
- }
-
- // notify usbh
- uint8_t const ep_addr = tu_edpt_addr(qhd->ep_number, dir);
- hcd_event_xfer_complete(qhd->dev_addr, ep_addr, xferred_bytes, xfer_result, true);
- }
-}
-
-TU_ATTR_ALWAYS_INLINE static inline
-void xfer_error_isr(uint8_t rhport)
-{
- //------------- async list -------------//
- ehci_qhd_t * const async_head = list_get_async_head(rhport);
- ehci_qhd_t *p_qhd = async_head;
- do
- {
- hcd_dcache_invalidate(p_qhd, sizeof(ehci_qhd_t));
- qhd_xfer_error_isr( p_qhd );
- p_qhd = qhd_next(p_qhd);
- }while(p_qhd != async_head); // async list traversal, stop if loop around
-
- //------------- TODO refractor period list -------------//
- uint32_t const period_1ms_addr = (uint32_t) list_get_period_head(rhport, 1u);
- for (uint32_t interval_ms=1; interval_ms <= FRAMELIST_SIZE; interval_ms *= 2)
- {
- ehci_link_t next_item = *list_get_period_head(rhport, interval_ms);
-
- // TODO abstract max loop guard for period
- while( !next_item.terminate &&
- !(interval_ms > 1 && period_1ms_addr == tu_align32(next_item.address)) )
- {
- switch ( next_item.type )
- {
- case EHCI_QTYPE_QHD:
- {
- ehci_qhd_t *p_qhd_int = (ehci_qhd_t *) tu_align32(next_item.address);
- hcd_dcache_invalidate(p_qhd_int, sizeof(ehci_qhd_t));
-
- qhd_xfer_error_isr(p_qhd_int);
- }
- break;
-
- // TODO support hs/fs ISO
- case EHCI_QTYPE_ITD:
- case EHCI_QTYPE_SITD:
- case EHCI_QTYPE_FSTN:
- default: break;
- }
-
- next_item = *list_next(&next_item);
- }
- }
-}
-
//------------- Host Controller Driver's Interrupt Handler -------------//
-void hcd_int_handler(uint8_t rhport)
-{
+void hcd_int_handler(uint8_t rhport, bool in_isr) {
+ (void) in_isr;
ehci_registers_t* regs = ehci_data.regs;
uint32_t const int_status = regs->status;
if (int_status & EHCI_INT_MASK_HC_HALTED) {
// something seriously wrong, maybe forget to flush/invalidate cache
TU_BREAKPOINT();
- TU_LOG1(" HC halted\n");
+ TU_LOG1(" HC halted\r\n");
return;
}
@@ -758,7 +676,7 @@ void hcd_int_handler(uint8_t rhport)
if (int_status & EHCI_INT_MASK_PORT_CHANGE) {
// Including: Force port resume, over-current change, enable/disable change and connect status change.
uint32_t const port_status = regs->portsc & EHCI_PORTSC_MASK_W1C;
- print_portsc(regs);
+ // print_portsc(regs);
if (regs->portsc_bm.connect_status_change) {
port_connect_status_change_isr(rhport);
@@ -768,29 +686,16 @@ void hcd_int_handler(uint8_t rhport)
regs->status = EHCI_INT_MASK_PORT_CHANGE; // Acknowledge
}
- if (int_status & EHCI_INT_MASK_ERROR) {
- xfer_error_isr(rhport);
- regs->status = EHCI_INT_MASK_ERROR; // Acknowledge
- }
+ // A USB transfer is completed (OK or error)
+ uint32_t const usb_int = int_status & (EHCI_INT_MASK_USB | EHCI_INT_MASK_ERROR);
+ if (usb_int) {
+ proccess_async_xfer_isr(list_get_async_head(rhport));
- //------------- some QTD/SITD/ITD with IOC set is completed -------------//
- if (int_status & EHCI_INT_MASK_NXP_ASYNC) {
- async_list_xfer_complete_isr(list_get_async_head(rhport));
- regs->status = EHCI_INT_MASK_NXP_ASYNC; // Acknowledge
- }
-
- if (int_status & EHCI_INT_MASK_NXP_PERIODIC)
- {
- for (uint32_t i=1; i <= FRAMELIST_SIZE; i *= 2)
- {
- period_list_xfer_complete_isr(rhport, i);
+ for ( uint32_t i = 1; i <= FRAMELIST_SIZE; i *= 2 ) {
+ process_period_xfer_isr(rhport, i);
}
- regs->status = EHCI_INT_MASK_NXP_PERIODIC; // Acknowledge
- }
- if (int_status & EHCI_INT_MASK_USB) {
- // TODO standard EHCI xfer complete
- regs->status = EHCI_INT_MASK_USB; // Acknowledge
+ regs->status = usb_int; // Acknowledge
}
//------------- There is some removed async previously -------------//
@@ -999,8 +904,10 @@ static void qhd_remove_qtd(ehci_qhd_t *qhd) {
qhd->attached_qtd = NULL;
qhd->attached_buffer = 0;
+ hcd_dcache_clean(qhd, sizeof(ehci_qhd_t));
qtd->used = 0; // free QTD
+ hcd_dcache_clean(qtd, sizeof(ehci_qtd_t));
}
//--------------------------------------------------------------------+
@@ -1019,8 +926,7 @@ TU_ATTR_ALWAYS_INLINE static inline ehci_qtd_t *qtd_find_free(void) {
return NULL;
}
-static void qtd_init(ehci_qtd_t* qtd, void const* buffer, uint16_t total_bytes)
-{
+static void qtd_init(ehci_qtd_t* qtd, void const* buffer, uint16_t total_bytes) {
tu_memclr(qtd, sizeof(ehci_qtd_t));
qtd->used = 1;
@@ -1034,8 +940,7 @@ static void qtd_init(ehci_qtd_t* qtd, void const* buffer, uint16_t total_bytes)
qtd->expected_bytes = total_bytes;
qtd->buffer[0] = (uint32_t) buffer;
- for(uint8_t i=1; i<5; i++)
- {
+ for(uint8_t i=1; i<5; i++) {
qtd->buffer[i] |= tu_align4k(qtd->buffer[i - 1] ) + 4096;
}
}
diff --git a/src/portable/ehci/ehci.h b/src/portable/ehci/ehci.h
index 05de80539..457adc1d3 100644
--- a/src/portable/ehci/ehci.h
+++ b/src/portable/ehci/ehci.h
@@ -278,14 +278,10 @@ enum {
EHCI_INT_MASK_PERIODIC_SCHED_STATUS = TU_BIT(14),
EHCI_INT_MASK_ASYNC_SCHED_STATUS = TU_BIT(15),
- EHCI_INT_MASK_NXP_ASYNC = TU_BIT(18),
- EHCI_INT_MASK_NXP_PERIODIC = TU_BIT(19),
-
EHCI_INT_MASK_ALL =
EHCI_INT_MASK_USB | EHCI_INT_MASK_ERROR | EHCI_INT_MASK_PORT_CHANGE |
EHCI_INT_MASK_FRAMELIST_ROLLOVER | EHCI_INT_MASK_PCI_HOST_SYSTEM_ERROR |
- EHCI_INT_MASK_ASYNC_ADVANCE | EHCI_INT_MASK_NXP_SOF |
- EHCI_INT_MASK_NXP_ASYNC | EHCI_INT_MASK_NXP_PERIODIC
+ EHCI_INT_MASK_ASYNC_ADVANCE | EHCI_INT_MASK_NXP_SOF
};
enum {
diff --git a/src/portable/espressif/esp32sx/dcd_esp32sx.c b/src/portable/espressif/esp32sx/dcd_esp32sx.c
index 1fcfb6241..bfc0baa56 100644
--- a/src/portable/espressif/esp32sx/dcd_esp32sx.c
+++ b/src/portable/espressif/esp32sx/dcd_esp32sx.c
@@ -31,16 +31,26 @@
#if (((CFG_TUSB_MCU == OPT_MCU_ESP32S2) || (CFG_TUSB_MCU == OPT_MCU_ESP32S3)) && CFG_TUD_ENABLED)
// Espressif
-#include "freertos/xtensa_api.h"
+#include "xtensa_api.h"
#include "esp_intr_alloc.h"
#include "esp_log.h"
#include "soc/dport_reg.h"
#include "soc/gpio_sig_map.h"
#include "soc/usb_periph.h"
+#include "soc/usb_reg.h"
+#include "soc/usb_struct.h"
#include "soc/periph_defs.h" // for interrupt source
#include "device/dcd.h"
+#ifndef USB_OUT_EP_NUM
+#define USB_OUT_EP_NUM ((int) (sizeof(USB0.out_ep_reg) / sizeof(USB0.out_ep_reg[0])))
+#endif
+
+#ifndef USB_IN_EP_NUM
+#define USB_IN_EP_NUM ((int) (sizeof(USB0.in_ep_reg) / sizeof(USB0.in_ep_reg[0])))
+#endif
+
// Max number of bi-directional endpoints including EP0
// Note: ESP32S2 specs say there are only up to 5 IN active endpoints include EP0
// We should probably prohibit enabling Endpoint IN > 4 (not done yet)
diff --git a/src/portable/mentor/musb/dcd_musb.c b/src/portable/mentor/musb/dcd_musb.c
index 487761847..a817c5d6e 100644
--- a/src/portable/mentor/musb/dcd_musb.c
+++ b/src/portable/mentor/musb/dcd_musb.c
@@ -158,9 +158,9 @@ static inline unsigned free_block_size(free_block_t const *blk)
#if 0
static inline void print_block_list(free_block_t const *blk, unsigned num)
{
- TU_LOG1("*************\n");
+ TU_LOG1("*************\r\n");
for (unsigned i = 0; i < num; ++i) {
- TU_LOG1(" Blk%u %u %u\n", i, blk->beg, blk->end);
+ TU_LOG1(" Blk%u %u %u\r\n", i, blk->beg, blk->end);
++blk;
}
}
@@ -317,7 +317,7 @@ static bool handle_xfer_in(uint_fast8_t ep_addr)
const unsigned mps = regs->TXMAXP;
const unsigned len = TU_MIN(mps, rem);
void *buf = pipe->buf;
- // TU_LOG1(" %p mps %d len %d rem %d\n", buf, mps, len, rem);
+ // TU_LOG1(" %p mps %d len %d rem %d\r\n", buf, mps, len, rem);
if (len) {
if (_dcd.pipe_buf_is_fifo[TUSB_DIR_IN] & TU_BIT(epnum_minus1)) {
pipe_read_write_packet_ff(buf, &USB0->FIFO1_WORD + epnum_minus1, len, TUSB_DIR_IN);
@@ -328,7 +328,7 @@ static bool handle_xfer_in(uint_fast8_t ep_addr)
pipe->remaining = rem - len;
}
regs->TXCSRL = USB_TXCSRL1_TXRDY;
- // TU_LOG1(" TXCSRL%d = %x %d\n", epnum_minus1 + 1, regs->TXCSRL, rem - len);
+ // TU_LOG1(" TXCSRL%d = %x %d\r\n", epnum_minus1 + 1, regs->TXCSRL, rem - len);
return false;
}
@@ -337,7 +337,7 @@ static bool handle_xfer_out(uint_fast8_t ep_addr)
unsigned epnum_minus1 = tu_edpt_number(ep_addr) - 1;
pipe_state_t *pipe = &_dcd.pipe[tu_edpt_dir(ep_addr)][epnum_minus1];
volatile hw_endpoint_t *regs = edpt_regs(epnum_minus1);
- // TU_LOG1(" RXCSRL%d = %x\n", epnum_minus1 + 1, regs->RXCSRL);
+ // TU_LOG1(" RXCSRL%d = %x\r\n", epnum_minus1 + 1, regs->RXCSRL);
TU_ASSERT(regs->RXCSRL & USB_RXCSRL1_RXRDY);
@@ -399,14 +399,14 @@ static bool edpt0_xfer(uint8_t rhport, uint8_t ep_addr, uint8_t *buffer, uint16_
* may have already finished and received the next setup packet
* without calling this function, so we have no choice but to
* invoke the callback function of status packet here. */
- // TU_LOG1(" STATUS OUT USB0->CSRL0 = %x\n", USB0->CSRL0);
+ // TU_LOG1(" STATUS OUT USB0->CSRL0 = %x\r\n", USB0->CSRL0);
_dcd.status_out = 0;
if (req == REQUEST_TYPE_INVALID) {
dcd_event_xfer_complete(rhport, ep_addr, total_bytes, XFER_RESULT_SUCCESS, false);
} else {
/* The next setup packet has already been received, it aborts
* invoking callback function to avoid confusing TUSB stack. */
- TU_LOG1("Drop CONTROL_STAGE_ACK\n");
+ TU_LOG1("Drop CONTROL_STAGE_ACK\r\n");
}
return true;
}
@@ -431,16 +431,16 @@ static bool edpt0_xfer(uint8_t rhport, uint8_t ep_addr, uint8_t *buffer, uint16_
} else {
USB0->CSRL0 = USB_CSRL0_TXRDY; /* Flush TX FIFO to return ACK. */
}
- // TU_LOG1(" IN USB0->CSRL0 = %x\n", USB0->CSRL0);
+ // TU_LOG1(" IN USB0->CSRL0 = %x\r\n", USB0->CSRL0);
} else {
- // TU_LOG1(" OUT USB0->CSRL0 = %x\n", USB0->CSRL0);
+ // TU_LOG1(" OUT USB0->CSRL0 = %x\r\n", USB0->CSRL0);
_dcd.pipe0.buf = buffer;
_dcd.pipe0.length = len;
_dcd.pipe0.remaining = len;
USB0->CSRL0 = USB_CSRL0_RXRDYC; /* Clear RX FIFO to return ACK. */
}
} else if (dir_in) {
- // TU_LOG1(" STATUS IN USB0->CSRL0 = %x\n", USB0->CSRL0);
+ // TU_LOG1(" STATUS IN USB0->CSRL0 = %x\r\n", USB0->CSRL0);
_dcd.pipe0.buf = NULL;
_dcd.pipe0.length = 0;
_dcd.pipe0.remaining = 0;
@@ -454,7 +454,7 @@ static void process_ep0(uint8_t rhport)
{
uint_fast8_t csrl = USB0->CSRL0;
- // TU_LOG1(" EP0 USB0->CSRL0 = %x\n", csrl);
+ // TU_LOG1(" EP0 USB0->CSRL0 = %x\r\n", csrl);
if (csrl & USB_CSRL0_STALLED) {
/* Returned STALL packet to HOST. */
@@ -464,7 +464,7 @@ static void process_ep0(uint8_t rhport)
unsigned req = _dcd.setup_packet.bmRequestType;
if (csrl & USB_CSRL0_SETEND) {
- TU_LOG1(" ABORT by the next packets\n");
+ TU_LOG1(" ABORT by the next packets\r\n");
USB0->CSRL0 = USB_CSRL0_SETENDC;
if (req != REQUEST_TYPE_INVALID && _dcd.pipe0.buf) {
/* DATA stage was aborted by receiving STATUS or SETUP packet. */
@@ -539,14 +539,14 @@ static void process_edpt_n(uint8_t rhport, uint_fast8_t ep_addr)
volatile hw_endpoint_t *regs = edpt_regs(epn_minus1);
if (dir_in) {
- // TU_LOG1(" TXCSRL%d = %x\n", epn_minus1 + 1, regs->TXCSRL);
+ // TU_LOG1(" TXCSRL%d = %x\r\n", epn_minus1 + 1, regs->TXCSRL);
if (regs->TXCSRL & USB_TXCSRL1_STALLED) {
regs->TXCSRL &= ~(USB_TXCSRL1_STALLED | USB_TXCSRL1_UNDRN);
return;
}
completed = handle_xfer_in(ep_addr);
} else {
- // TU_LOG1(" RXCSRL%d = %x\n", epn_minus1 + 1, regs->RXCSRL);
+ // TU_LOG1(" RXCSRL%d = %x\r\n", epn_minus1 + 1, regs->RXCSRL);
if (regs->RXCSRL & USB_RXCSRL1_STALLED) {
regs->RXCSRL &= ~(USB_RXCSRL1_STALLED | USB_RXCSRL1_OVER);
return;
@@ -789,7 +789,7 @@ bool dcd_edpt_xfer(uint8_t rhport, uint8_t ep_addr, uint8_t * buffer, uint16_t t
{
(void)rhport;
bool ret;
- // TU_LOG1("X %x %d\n", ep_addr, total_bytes);
+ // TU_LOG1("X %x %d\r\n", ep_addr, total_bytes);
unsigned const epnum = tu_edpt_number(ep_addr);
unsigned const ie = NVIC_GetEnableIRQ(USB0_IRQn);
NVIC_DisableIRQ(USB0_IRQn);
@@ -807,7 +807,7 @@ bool dcd_edpt_xfer_fifo(uint8_t rhport, uint8_t ep_addr, tu_fifo_t * ff, uint16_
{
(void)rhport;
bool ret;
- // TU_LOG1("X %x %d\n", ep_addr, total_bytes);
+ // TU_LOG1("X %x %d\r\n", ep_addr, total_bytes);
unsigned const epnum = tu_edpt_number(ep_addr);
TU_ASSERT(epnum);
unsigned const ie = NVIC_GetEnableIRQ(USB0_IRQn);
@@ -869,7 +869,7 @@ void dcd_int_handler(uint8_t rhport)
is = USB0->IS; /* read and clear interrupt status */
txis = USB0->TXIS; /* read and clear interrupt status */
rxis = USB0->RXIS; /* read and clear interrupt status */
- // TU_LOG1("D%2x T%2x R%2x\n", is, txis, rxis);
+ // TU_LOG1("D%2x T%2x R%2x\r\n", is, txis, rxis);
is &= USB0->IE; /* Clear disabled interrupts */
if (is & USB_IS_DISCON) {
diff --git a/src/portable/mentor/musb/hcd_musb.c b/src/portable/mentor/musb/hcd_musb.c
index 5be67a186..5312c2812 100644
--- a/src/portable/mentor/musb/hcd_musb.c
+++ b/src/portable/mentor/musb/hcd_musb.c
@@ -418,7 +418,7 @@ static void process_ep0(uint8_t rhport)
(void)rhport;
uint_fast8_t csrl = USB0->CSRL0;
- // TU_LOG1(" EP0 CSRL = %x\n", csrl);
+ // TU_LOG1(" EP0 CSRL = %x\r\n", csrl);
unsigned const dev_addr = USB0->TXFUNCADDR0;
unsigned const req = _hcd.bmRequestType;
@@ -508,7 +508,7 @@ static void process_pipe_tx(uint8_t rhport, uint_fast8_t pipenum)
volatile hw_endpoint_t *regs = edpt_regs(pipenum - 1);
unsigned const csrl = regs->TXCSRL;
- // TU_LOG1(" TXCSRL%d = %x\n", pipenum, csrl);
+ // TU_LOG1(" TXCSRL%d = %x\r\n", pipenum, csrl);
if (csrl & (USB_TXCSRL1_STALLED | USB_TXCSRL1_ERROR)) {
if (csrl & USB_TXCSRL1_TXRDY)
regs->TXCSRL = (csrl & ~(USB_TXCSRL1_STALLED | USB_TXCSRL1_ERROR)) | USB_TXCSRL1_FLUSH;
@@ -537,7 +537,7 @@ static void process_pipe_rx(uint8_t rhport, uint_fast8_t pipenum)
volatile hw_endpoint_t *regs = edpt_regs(pipenum - 1);
unsigned const csrl = regs->RXCSRL;
- // TU_LOG1(" RXCSRL%d = %x\n", pipenum, csrl);
+ // TU_LOG1(" RXCSRL%d = %x\r\n", pipenum, csrl);
if (csrl & (USB_RXCSRL1_STALLED | USB_RXCSRL1_ERROR)) {
if (csrl & USB_RXCSRL1_RXRDY)
regs->RXCSRL = (csrl & ~(USB_RXCSRL1_STALLED | USB_RXCSRL1_ERROR)) | USB_RXCSRL1_FLUSH;
@@ -831,8 +831,8 @@ bool hcd_edpt_abort_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr) {
}
// clear stall, data toggle is also reset to DATA0
-bool hcd_edpt_clear_stall(uint8_t dev_addr, uint8_t ep_addr)
-{
+bool hcd_edpt_clear_stall(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr) {
+ (void) rhport;
unsigned const pipenum = find_pipe(dev_addr, ep_addr);
if (!pipenum) return false;
hw_endpoint_t volatile *regs = edpt_regs(pipenum - 1);
@@ -847,14 +847,16 @@ bool hcd_edpt_clear_stall(uint8_t dev_addr, uint8_t ep_addr)
/*-------------------------------------------------------------------
* ISR
*-------------------------------------------------------------------*/
-void hcd_int_handler(uint8_t rhport)
+void hcd_int_handler(uint8_t rhport, bool in_isr)
{
+ (void) in_isr;
+
uint_fast8_t is, txis, rxis;
is = USB0->IS; /* read and clear interrupt status */
txis = USB0->TXIS; /* read and clear interrupt status */
rxis = USB0->RXIS; /* read and clear interrupt status */
- // TU_LOG1("D%2x T%2x R%2x\n", is, txis, rxis);
+ // TU_LOG1("D%2x T%2x R%2x\r\n", is, txis, rxis);
is &= USB0->IE; /* Clear disabled interrupts */
if (is & USB_IS_RESUME) {
diff --git a/src/portable/mindmotion/mm32/dcd_mm32f327x_otg.c b/src/portable/mindmotion/mm32/dcd_mm32f327x_otg.c
index c3d0c7297..d5c0daaeb 100644
--- a/src/portable/mindmotion/mm32/dcd_mm32f327x_otg.c
+++ b/src/portable/mindmotion/mm32/dcd_mm32f327x_otg.c
@@ -283,7 +283,18 @@ void dcd_set_address(uint8_t rhport, uint8_t dev_addr)
/* Response with status first before changing device address */
dcd_edpt_xfer(rhport, tu_edpt_addr(0, TUSB_DIR_IN), NULL, 0);
}
+
+#ifdef __GNUC__ // caused by extra declaration of SystemCoreClock in freeRTOSConfig.h
+#pragma GCC diagnostic push
+#pragma GCC diagnostic ignored "-Wredundant-decls"
+#endif
+
extern u32 SystemCoreClock;
+
+#ifdef __GNUC__
+#pragma GCC diagnostic pop
+#endif
+
void dcd_remote_wakeup(uint8_t rhport)
{
(void) rhport;
diff --git a/src/portable/nordic/nrf5x/dcd_nrf5x.c b/src/portable/nordic/nrf5x/dcd_nrf5x.c
index acc967bb3..2fe721d6b 100644
--- a/src/portable/nordic/nrf5x/dcd_nrf5x.c
+++ b/src/portable/nordic/nrf5x/dcd_nrf5x.c
@@ -40,7 +40,6 @@
#include "nrf.h"
#include "nrf_clock.h"
-#include "nrf_power.h"
#include "nrfx_usbd_errata.h"
#ifdef __GNUC__
@@ -57,28 +56,46 @@
#include "mcu/mcu.h"
#endif
+/* Try to detect nrfx version if not configured with CFG_TUD_NRF_NRFX_VERSION
+ * nrfx v1 and v2 are concurrently developed. There is no NRFX_VERSION only MDK VERSION which is as follows:
+ * - v3.0.0: 8.53.1 (conflict with v2.11.0), v3.1.0: 8.55.0 ...
+ * - v2.11.0: 8.53.1, v2.6.0: 8.44.1, v2.5.0: 8.40.2, v2.4.0: 8.37.0, v2.3.0: 8.35.0, v2.2.0: 8.32.1, v2.1.0: 8.30.2, v2.0.0: 8.29.0
+ * - v1.9.0: 8.40.3, v1.8.6: 8.35.0 (conflict with v2.3.0), v1.8.5: 8.32.3, v1.8.4: 8.32.1 (conflict with v2.2.0),
+ * v1.8.2: 8.32.1 (conflict with v2.2.0), v1.8.1: 8.27.1
+ * Therefore the check for v1 would be:
+ * - MDK < 8.29.0 (v2.0), MDK == 8.32.3, 8.40.3
+ * - in case of conflict User of those version must upgrade to other 1.x version or set CFG_TUD_NRF_NRFX_VERSION
+*/
+#ifndef CFG_TUD_NRF_NRFX_VERSION
+ #define _MDK_VERSION (10000*MDK_MAJOR_VERSION + 100*MDK_MINOR_VERSION + MDK_MICRO_VERSION)
+
+ #if _MDK_VERSION < 82900 || _MDK_VERSION == 83203 || _MDK_VERSION == 84003
+ // nrfx <= 1.8.1, or 1.8.5 or 1.9.0
+ #define CFG_TUD_NRF_NRFX_VERSION 1
+ #else
+ #define CFG_TUD_NRF_NRFX_VERSION 2
+ #endif
+#endif
+
/*------------------------------------------------------------------*/
/* MACRO TYPEDEF CONSTANT ENUM
*------------------------------------------------------------------*/
-enum
-{
+enum {
// Max allowed by USB specs
- MAX_PACKET_SIZE = 64,
+ MAX_PACKET_SIZE = 64,
// Mask of all END event (IN & OUT) for all endpoints. ENDEPIN0-7, ENDEPOUT0-7, ENDISOIN, ENDISOOUT
EDPT_END_ALL_MASK = (0xff << USBD_INTEN_ENDEPIN0_Pos) | (0xff << USBD_INTEN_ENDEPOUT0_Pos) |
USBD_INTENCLR_ENDISOIN_Msk | USBD_INTEN_ENDISOOUT_Msk
};
-enum
-{
- EP_ISO_NUM = 8, // Endpoint number is fixed (8) for ISOOUT and ISOIN
+enum {
+ EP_ISO_NUM = 8, // Endpoint number is fixed (8) for ISOOUT and ISOIN
EP_CBI_COUNT = 8 // Control Bulk Interrupt endpoints count
};
// Transfer Descriptor
-typedef struct
-{
+typedef struct {
uint8_t* buffer;
uint16_t total_len;
volatile uint16_t actual_len;
@@ -96,113 +113,82 @@ typedef struct
} xfer_td_t;
// Data for managing dcd
-static struct
-{
+static struct {
// All 8 endpoints including control IN & OUT (offset 1)
// +1 for ISO endpoints
xfer_td_t xfer[EP_CBI_COUNT + 1][2];
// nRF can only carry one DMA at a time, this is used to guard the access to EasyDMA
- atomic_bool dma_running;
-}_dcd;
+ atomic_flag dma_running;
+} _dcd;
/*------------------------------------------------------------------*/
/* Control / Bulk / Interrupt (CBI) Transfer
*------------------------------------------------------------------*/
-// NVIC_GetEnableIRQ is only available in CMSIS v5
-#ifndef NVIC_GetEnableIRQ
-static inline uint32_t NVIC_GetEnableIRQ(IRQn_Type IRQn)
-{
- if ((int32_t)(IRQn) >= 0)
- {
- return((uint32_t)(((NVIC->ISER[(((uint32_t)(int32_t)IRQn) >> 5UL)] & (1UL << (((uint32_t)(int32_t)IRQn) & 0x1FUL))) != 0UL) ? 1UL : 0UL));
- }
- else
- {
- return(0U);
- }
-}
-#endif
-
// check if we are in ISR
-TU_ATTR_ALWAYS_INLINE static inline bool is_in_isr(void)
-{
+TU_ATTR_ALWAYS_INLINE static inline bool is_in_isr(void) {
return (SCB->ICSR & SCB_ICSR_VECTACTIVE_Msk) ? true : false;
}
// helper to start DMA
-static void start_dma(volatile uint32_t* reg_startep)
-{
+static void start_dma(volatile uint32_t* reg_startep) {
(*reg_startep) = 1;
- __ISB(); __DSB();
+ __ISB();
+ __DSB();
// TASKS_EP0STATUS, TASKS_EP0RCVOUT seem to need EasyDMA to be available
// However these don't trigger any DMA transfer and got ENDED event subsequently
// Therefore dma_pending is corrected right away
- if ( (reg_startep == &NRF_USBD->TASKS_EP0STATUS) || (reg_startep == &NRF_USBD->TASKS_EP0RCVOUT) )
- {
+ if ((reg_startep == &NRF_USBD->TASKS_EP0STATUS) || (reg_startep == &NRF_USBD->TASKS_EP0RCVOUT)) {
atomic_flag_clear(&_dcd.dma_running);
}
}
-static void edpt_dma_start(volatile uint32_t* reg_startep)
-{
- if ( atomic_flag_test_and_set(&_dcd.dma_running) )
- {
- usbd_defer_func((osal_task_func_t) edpt_dma_start, (void*) (uintptr_t) reg_startep, true);
- }else
- {
+static void edpt_dma_start(volatile uint32_t* reg_startep) {
+ if (atomic_flag_test_and_set(&_dcd.dma_running)) {
+ usbd_defer_func((osal_task_func_t)(uintptr_t ) edpt_dma_start, (void*) (uintptr_t) reg_startep, true);
+ } else {
start_dma(reg_startep);
}
}
// DMA is complete
-static void edpt_dma_end(void)
-{
- TU_ASSERT(_dcd.dma_running, );
+static void edpt_dma_end(void) {
atomic_flag_clear(&_dcd.dma_running);
}
// helper getting td
-static inline xfer_td_t* get_td(uint8_t epnum, uint8_t dir)
-{
+static inline xfer_td_t* get_td(uint8_t epnum, uint8_t dir) {
return &_dcd.xfer[epnum][dir];
}
static void xact_out_dma(uint8_t epnum);
+
// Function wraps xact_out_dma which wants uint8_t while usbd_defer_func wants void (*)(void *)
-static void xact_out_dma_wrapper(void *epnum)
-{
- xact_out_dma((uint8_t)((uintptr_t)epnum));
+static void xact_out_dma_wrapper(void* epnum) {
+ xact_out_dma((uint8_t) ((uintptr_t) epnum));
}
// Start DMA to move data from Endpoint -> RAM
-static void xact_out_dma(uint8_t epnum)
-{
+static void xact_out_dma(uint8_t epnum) {
xfer_td_t* xfer = get_td(epnum, TUSB_DIR_OUT);
uint32_t xact_len;
// DMA can't be active during read of SIZE.EPOUT or SIZE.ISOOUT, so try to lock,
// If already running defer call regardless if it was called from ISR or task,
- if ( atomic_flag_test_and_set(&_dcd.dma_running) )
- {
- usbd_defer_func((osal_task_func_t)xact_out_dma_wrapper, (void *)(uint32_t)epnum, is_in_isr());
+ if (atomic_flag_test_and_set(&_dcd.dma_running)) {
+ usbd_defer_func((osal_task_func_t) xact_out_dma_wrapper, (void*) (uint32_t) epnum, is_in_isr());
return;
}
- if (epnum == EP_ISO_NUM)
- {
+ if (epnum == EP_ISO_NUM) {
xact_len = NRF_USBD->SIZE.ISOOUT;
// If ZERO bit is set, ignore ISOOUT length
- if (xact_len & USBD_SIZE_ISOOUT_ZERO_Msk)
- {
+ if (xact_len & USBD_SIZE_ISOOUT_ZERO_Msk) {
xact_len = 0;
atomic_flag_clear(&_dcd.dma_running);
- }
- else
- {
- if (xfer->started)
- {
+ } else {
+ if (xfer->started) {
// Trigger DMA move data from Endpoint -> SRAM
NRF_USBD->ISOOUT.PTR = (uint32_t) xfer->buffer;
NRF_USBD->ISOOUT.MAXCNT = xact_len;
@@ -212,9 +198,7 @@ static void xact_out_dma(uint8_t epnum)
atomic_flag_clear(&_dcd.dma_running);
}
}
- }
- else
- {
+ } else {
// limit xact len to remaining length
xact_len = tu_min16((uint16_t) NRF_USBD->SIZE.EPOUT[epnum], xfer->total_len - xfer->actual_len);
@@ -228,14 +212,13 @@ static void xact_out_dma(uint8_t epnum)
// Prepare for a CBI transaction IN, call at the start
// it start DMA to transfer data from RAM -> Endpoint
-static void xact_in_dma(uint8_t epnum)
-{
+static void xact_in_dma(uint8_t epnum) {
xfer_td_t* xfer = get_td(epnum, TUSB_DIR_IN);
// Each transaction is up to Max Packet Size
uint16_t const xact_len = tu_min16(xfer->total_len - xfer->actual_len, xfer->mps);
- NRF_USBD->EPIN[epnum].PTR = (uint32_t) xfer->buffer;
+ NRF_USBD->EPIN[epnum].PTR = (uint32_t) xfer->buffer;
NRF_USBD->EPIN[epnum].MAXCNT = xact_len;
edpt_dma_start(&NRF_USBD->TASKS_STARTEPIN[epnum]);
@@ -244,26 +227,22 @@ static void xact_in_dma(uint8_t epnum)
//--------------------------------------------------------------------+
// Controller API
//--------------------------------------------------------------------+
-void dcd_init (uint8_t rhport)
-{
- TU_LOG1("dcd init\r\n");
+void dcd_init(uint8_t rhport) {
+ TU_LOG2("dcd init\r\n");
(void) rhport;
}
-void dcd_int_enable(uint8_t rhport)
-{
+void dcd_int_enable(uint8_t rhport) {
(void) rhport;
NVIC_EnableIRQ(USBD_IRQn);
}
-void dcd_int_disable(uint8_t rhport)
-{
+void dcd_int_disable(uint8_t rhport) {
(void) rhport;
NVIC_DisableIRQ(USBD_IRQn);
}
-void dcd_set_address (uint8_t rhport, uint8_t dev_addr)
-{
+void dcd_set_address(uint8_t rhport, uint8_t dev_addr) {
(void) rhport;
(void) dev_addr;
// Set Address is automatically update by hw controller, nothing to do
@@ -278,8 +257,7 @@ void dcd_set_address (uint8_t rhport, uint8_t dev_addr)
NRF_USBD->INTENSET = USBD_INTEN_USBEVENT_Msk;
}
-void dcd_remote_wakeup(uint8_t rhport)
-{
+void dcd_remote_wakeup(uint8_t rhport) {
(void) rhport;
// Bring controller out of low power mode
@@ -288,8 +266,7 @@ void dcd_remote_wakeup(uint8_t rhport)
}
// disconnect by disabling internal pull-up resistor on D+/D-
-void dcd_disconnect(uint8_t rhport)
-{
+void dcd_disconnect(uint8_t rhport) {
(void) rhport;
NRF_USBD->USBPULLUP = 0;
@@ -299,14 +276,12 @@ void dcd_disconnect(uint8_t rhport)
}
// connect by enabling internal pull-up resistor on D+/D-
-void dcd_connect(uint8_t rhport)
-{
+void dcd_connect(uint8_t rhport) {
(void) rhport;
NRF_USBD->USBPULLUP = 1;
}
-void dcd_sof_enable(uint8_t rhport, bool en)
-{
+void dcd_sof_enable(uint8_t rhport, bool en) {
(void) rhport;
(void) en;
@@ -316,36 +291,32 @@ void dcd_sof_enable(uint8_t rhport, bool en)
//--------------------------------------------------------------------+
// Endpoint API
//--------------------------------------------------------------------+
-bool dcd_edpt_open (uint8_t rhport, tusb_desc_endpoint_t const * desc_edpt)
-{
+bool dcd_edpt_open(uint8_t rhport, tusb_desc_endpoint_t const* desc_edpt) {
(void) rhport;
uint8_t const ep_addr = desc_edpt->bEndpointAddress;
- uint8_t const epnum = tu_edpt_number(ep_addr);
- uint8_t const dir = tu_edpt_dir(ep_addr);
+ uint8_t const epnum = tu_edpt_number(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
_dcd.xfer[epnum][dir].mps = tu_edpt_packet_size(desc_edpt);
- if (desc_edpt->bmAttributes.xfer != TUSB_XFER_ISOCHRONOUS)
- {
- if (dir == TUSB_DIR_OUT)
- {
+ if (desc_edpt->bmAttributes.xfer != TUSB_XFER_ISOCHRONOUS) {
+ if (dir == TUSB_DIR_OUT) {
NRF_USBD->INTENSET = TU_BIT(USBD_INTEN_ENDEPOUT0_Pos + epnum);
NRF_USBD->EPOUTEN |= TU_BIT(epnum);
// Write any value to SIZE register will allow nRF to ACK/accept data
NRF_USBD->SIZE.EPOUT[epnum] = 0;
- }else
- {
+ } else {
NRF_USBD->INTENSET = TU_BIT(USBD_INTEN_ENDEPIN0_Pos + epnum);
- NRF_USBD->EPINEN |= TU_BIT(epnum);
+ NRF_USBD->EPINEN |= TU_BIT(epnum);
}
- }
- else
- {
+ // clear stall and reset DataToggle
+ NRF_USBD->EPSTALL = (USBD_EPSTALL_STALL_UnStall << USBD_EPSTALL_STALL_Pos) | ep_addr;
+ NRF_USBD->DTOGGLE = (USBD_DTOGGLE_VALUE_Data0 << USBD_DTOGGLE_VALUE_Pos) | ep_addr;
+ } else {
TU_ASSERT(epnum == EP_ISO_NUM);
- if (dir == TUSB_DIR_OUT)
- {
+ if (dir == TUSB_DIR_OUT) {
// SPLIT ISO buffer when ISO IN endpoint is already opened.
if (_dcd.xfer[EP_ISO_NUM][TUSB_DIR_IN].mps) NRF_USBD->ISOSPLIT = USBD_ISOSPLIT_SPLIT_HalfIN;
@@ -358,9 +329,7 @@ bool dcd_edpt_open (uint8_t rhport, tusb_desc_endpoint_t const * desc_edpt)
// Enable SOF and ISOOUT interrupts, and ISOOUT endpoint.
NRF_USBD->INTENSET = USBD_INTENSET_ENDISOOUT_Msk | USBD_INTENSET_SOF_Msk;
NRF_USBD->EPOUTEN |= USBD_EPOUTEN_ISOOUT_Msk;
- }
- else
- {
+ } else {
NRF_USBD->EVENTS_ENDISOIN = 0;
// SPLIT ISO buffer when ISO OUT endpoint is already opened.
@@ -371,43 +340,38 @@ bool dcd_edpt_open (uint8_t rhport, tusb_desc_endpoint_t const * desc_edpt)
// Enable SOF and ISOIN interrupts, and ISOIN endpoint.
NRF_USBD->INTENSET = USBD_INTENSET_ENDISOIN_Msk | USBD_INTENSET_SOF_Msk;
- NRF_USBD->EPINEN |= USBD_EPINEN_ISOIN_Msk;
+ NRF_USBD->EPINEN |= USBD_EPINEN_ISOIN_Msk;
}
}
- // clear stall and reset DataToggle
- NRF_USBD->EPSTALL = (USBD_EPSTALL_STALL_UnStall << USBD_EPSTALL_STALL_Pos) | ep_addr;
- NRF_USBD->DTOGGLE = (USBD_DTOGGLE_VALUE_Data0 << USBD_DTOGGLE_VALUE_Pos) | ep_addr;
-
- __ISB(); __DSB();
+ __ISB();
+ __DSB();
return true;
}
-void dcd_edpt_close_all (uint8_t rhport)
-{
+void dcd_edpt_close_all(uint8_t rhport) {
// disable interrupt to prevent race condition
dcd_int_disable(rhport);
// disable all non-control (bulk + interrupt) endpoints
- for ( uint8_t ep = 1; ep < EP_CBI_COUNT; ep++ )
- {
+ for (uint8_t ep = 1; ep < EP_CBI_COUNT; ep++) {
NRF_USBD->INTENCLR = TU_BIT(USBD_INTEN_ENDEPOUT0_Pos + ep) | TU_BIT(USBD_INTEN_ENDEPIN0_Pos + ep);
NRF_USBD->TASKS_STARTEPIN[ep] = 0;
NRF_USBD->TASKS_STARTEPOUT[ep] = 0;
- tu_memclr(_dcd.xfer[ep], 2*sizeof(xfer_td_t));
+ tu_memclr(_dcd.xfer[ep], 2 * sizeof(xfer_td_t));
}
// disable both ISO
NRF_USBD->INTENCLR = USBD_INTENCLR_SOF_Msk | USBD_INTENCLR_ENDISOOUT_Msk | USBD_INTENCLR_ENDISOIN_Msk;
NRF_USBD->ISOSPLIT = USBD_ISOSPLIT_SPLIT_OneDir;
- NRF_USBD->TASKS_STARTISOIN = 0;
+ NRF_USBD->TASKS_STARTISOIN = 0;
NRF_USBD->TASKS_STARTISOOUT = 0;
- tu_memclr(_dcd.xfer[EP_ISO_NUM], 2*sizeof(xfer_td_t));
+ tu_memclr(_dcd.xfer[EP_ISO_NUM], 2 * sizeof(xfer_td_t));
// de-activate all non-control
NRF_USBD->EPOUTEN = 1UL;
@@ -416,107 +380,89 @@ void dcd_edpt_close_all (uint8_t rhport)
dcd_int_enable(rhport);
}
-void dcd_edpt_close (uint8_t rhport, uint8_t ep_addr)
-{
+void dcd_edpt_close(uint8_t rhport, uint8_t ep_addr) {
(void) rhport;
uint8_t const epnum = tu_edpt_number(ep_addr);
- uint8_t const dir = tu_edpt_dir(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
- if (epnum != EP_ISO_NUM)
- {
+ if (epnum != EP_ISO_NUM) {
// CBI
- if (dir == TUSB_DIR_OUT)
- {
+ if (dir == TUSB_DIR_OUT) {
NRF_USBD->INTENCLR = TU_BIT(USBD_INTEN_ENDEPOUT0_Pos + epnum);
NRF_USBD->EPOUTEN &= ~TU_BIT(epnum);
- }
- else
- {
+ } else {
NRF_USBD->INTENCLR = TU_BIT(USBD_INTEN_ENDEPIN0_Pos + epnum);
NRF_USBD->EPINEN &= ~TU_BIT(epnum);
}
- }
- else
- {
+ } else {
_dcd.xfer[EP_ISO_NUM][dir].mps = 0;
// ISO
- if (dir == TUSB_DIR_OUT)
- {
+ if (dir == TUSB_DIR_OUT) {
NRF_USBD->INTENCLR = USBD_INTENCLR_ENDISOOUT_Msk;
NRF_USBD->EPOUTEN &= ~USBD_EPOUTEN_ISOOUT_Msk;
NRF_USBD->EVENTS_ENDISOOUT = 0;
- }
- else
- {
+ } else {
NRF_USBD->INTENCLR = USBD_INTENCLR_ENDISOIN_Msk;
NRF_USBD->EPINEN &= ~USBD_EPINEN_ISOIN_Msk;
}
// One of the ISO endpoints closed, no need to split buffers any more.
NRF_USBD->ISOSPLIT = USBD_ISOSPLIT_SPLIT_OneDir;
// When both ISO endpoint are close there is no need for SOF any more.
- if (_dcd.xfer[EP_ISO_NUM][TUSB_DIR_IN].mps + _dcd.xfer[EP_ISO_NUM][TUSB_DIR_OUT].mps == 0) NRF_USBD->INTENCLR = USBD_INTENCLR_SOF_Msk;
+ if (_dcd.xfer[EP_ISO_NUM][TUSB_DIR_IN].mps + _dcd.xfer[EP_ISO_NUM][TUSB_DIR_OUT].mps == 0)
+ NRF_USBD->INTENCLR = USBD_INTENCLR_SOF_Msk;
}
_dcd.xfer[epnum][dir].started = false;
- __ISB(); __DSB();
+ __ISB();
+ __DSB();
}
-bool dcd_edpt_xfer (uint8_t rhport, uint8_t ep_addr, uint8_t * buffer, uint16_t total_bytes)
-{
+bool dcd_edpt_xfer(uint8_t rhport, uint8_t ep_addr, uint8_t* buffer, uint16_t total_bytes) {
(void) rhport;
uint8_t const epnum = tu_edpt_number(ep_addr);
- uint8_t const dir = tu_edpt_dir(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
xfer_td_t* xfer = get_td(epnum, dir);
TU_ASSERT(!xfer->started);
- xfer->buffer = buffer;
- xfer->total_len = total_bytes;
+ xfer->buffer = buffer;
+ xfer->total_len = total_bytes;
xfer->actual_len = 0;
// Control endpoint with zero-length packet and opposite direction to 1st request byte --> status stage
bool const control_status = (epnum == 0 && total_bytes == 0 && dir != tu_edpt_dir(NRF_USBD->BMREQUESTTYPE));
- if ( control_status )
- {
+ if (control_status) {
// Status Phase also requires EasyDMA has to be available as well !!!!
edpt_dma_start(&NRF_USBD->TASKS_EP0STATUS);
// The nRF doesn't interrupt on status transmit so we queue up a success response.
dcd_event_xfer_complete(0, ep_addr, 0, XFER_RESULT_SUCCESS, is_in_isr());
- }
- else if ( dir == TUSB_DIR_OUT )
- {
+ } else if (dir == TUSB_DIR_OUT) {
xfer->started = true;
- if ( epnum == 0 )
- {
+ if (epnum == 0) {
// Accept next Control Out packet. TASKS_EP0RCVOUT also require EasyDMA
edpt_dma_start(&NRF_USBD->TASKS_EP0RCVOUT);
- }else
- {
+ } else {
// started just set, it could start DMA transfer if interrupt was trigger after this line
// code only needs to start transfer (from Endpoint to RAM) when data_received was set
// before started was set. If started is NOT set but data_received is, it means that
// current transfer was already finished and next data is already present in endpoint and
// can be consumed by future transfer
- __ISB(); __DSB();
- if ( xfer->data_received && xfer->started )
- {
+ __ISB();
+ __DSB();
+ if (xfer->data_received && xfer->started) {
// Data is already received previously
// start DMA to copy to SRAM
xfer->data_received = false;
xact_out_dma(epnum);
- }
- else
- {
+ } else {
// nRF auto accept next Bulk/Interrupt OUT packet
// nothing to do
}
}
- }
- else
- {
+ } else {
// Start DMA to copy data from RAM -> Endpoint
xact_in_dma(epnum);
}
@@ -524,42 +470,37 @@ bool dcd_edpt_xfer (uint8_t rhport, uint8_t ep_addr, uint8_t * buffer, uint16_t
return true;
}
-void dcd_edpt_stall (uint8_t rhport, uint8_t ep_addr)
-{
+void dcd_edpt_stall(uint8_t rhport, uint8_t ep_addr) {
(void) rhport;
uint8_t const epnum = tu_edpt_number(ep_addr);
- uint8_t const dir = tu_edpt_dir(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
xfer_td_t* xfer = get_td(epnum, dir);
- if ( epnum == 0 )
- {
+ if (epnum == 0) {
NRF_USBD->TASKS_EP0STALL = 1;
- }else if (epnum != EP_ISO_NUM)
- {
+ } else if (epnum != EP_ISO_NUM) {
NRF_USBD->EPSTALL = (USBD_EPSTALL_STALL_Stall << USBD_EPSTALL_STALL_Pos) | ep_addr;
// Note: nRF can auto ACK packet OUT before get stalled.
// There maybe data in endpoint fifo already, we need to pull it out
- if ( (dir == TUSB_DIR_OUT) && xfer->data_received )
- {
+ if ((dir == TUSB_DIR_OUT) && xfer->data_received) {
xfer->data_received = false;
xact_out_dma(epnum);
}
}
- __ISB(); __DSB();
+ __ISB();
+ __DSB();
}
-void dcd_edpt_clear_stall (uint8_t rhport, uint8_t ep_addr)
-{
+void dcd_edpt_clear_stall(uint8_t rhport, uint8_t ep_addr) {
(void) rhport;
uint8_t const epnum = tu_edpt_number(ep_addr);
- uint8_t const dir = tu_edpt_dir(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
- if ( epnum != 0 && epnum != EP_ISO_NUM )
- {
+ if (epnum != 0 && epnum != EP_ISO_NUM) {
// reset data toggle to DATA0
// First write this register with VALUE=Nop to select the endpoint, then either read it to get the status from
// VALUE, or write it again with VALUE=Data0 or Data1
@@ -572,26 +513,25 @@ void dcd_edpt_clear_stall (uint8_t rhport, uint8_t ep_addr)
// Write any value to SIZE register will allow nRF to ACK/accept data
if (dir == TUSB_DIR_OUT) NRF_USBD->SIZE.EPOUT[epnum] = 0;
- __ISB(); __DSB();
+ __ISB();
+ __DSB();
}
}
/*------------------------------------------------------------------*/
/* Interrupt Handler
*------------------------------------------------------------------*/
-void bus_reset(void)
-{
+void bus_reset(void) {
// 6.35.6 USB controller automatically disabled all endpoints (except control)
NRF_USBD->EPOUTEN = 1UL;
NRF_USBD->EPINEN = 1UL;
- for(int i=0; i<8; i++)
- {
+ for (int i = 0; i < 8; i++) {
NRF_USBD->TASKS_STARTEPIN[i] = 0;
NRF_USBD->TASKS_STARTEPOUT[i] = 0;
}
- NRF_USBD->TASKS_STARTISOIN = 0;
+ NRF_USBD->TASKS_STARTISOIN = 0;
NRF_USBD->TASKS_STARTISOOUT = 0;
// Clear USB Event Interrupt
@@ -601,43 +541,40 @@ void bus_reset(void)
// Reset interrupt
NRF_USBD->INTENCLR = NRF_USBD->INTEN;
NRF_USBD->INTENSET = USBD_INTEN_USBRESET_Msk | USBD_INTEN_USBEVENT_Msk | USBD_INTEN_EPDATA_Msk |
- USBD_INTEN_EP0SETUP_Msk | USBD_INTEN_EP0DATADONE_Msk | USBD_INTEN_ENDEPIN0_Msk | USBD_INTEN_ENDEPOUT0_Msk;
+ USBD_INTEN_EP0SETUP_Msk | USBD_INTEN_EP0DATADONE_Msk | USBD_INTEN_ENDEPIN0_Msk |
+ USBD_INTEN_ENDEPOUT0_Msk;
tu_varclr(&_dcd);
_dcd.xfer[0][TUSB_DIR_IN].mps = MAX_PACKET_SIZE;
_dcd.xfer[0][TUSB_DIR_OUT].mps = MAX_PACKET_SIZE;
}
-void dcd_int_handler(uint8_t rhport)
-{
+void dcd_int_handler(uint8_t rhport) {
(void) rhport;
- uint32_t const inten = NRF_USBD->INTEN;
+ uint32_t const inten = NRF_USBD->INTEN;
uint32_t int_status = 0;
volatile uint32_t* regevt = &NRF_USBD->EVENTS_USBRESET;
- for(uint8_t i=0; i<USBD_INTEN_EPDATA_Pos+1; i++)
- {
- if ( tu_bit_test(inten, i) && regevt[i] )
- {
+ for (uint8_t i = 0; i < USBD_INTEN_EPDATA_Pos + 1; i++) {
+ if (tu_bit_test(inten, i) && regevt[i]) {
int_status |= TU_BIT(i);
// event clear
regevt[i] = 0;
- __ISB(); __DSB();
+ __ISB();
+ __DSB();
}
}
- if ( int_status & USBD_INTEN_USBRESET_Msk )
- {
+ if (int_status & USBD_INTEN_USBRESET_Msk) {
bus_reset();
dcd_event_bus_reset(0, TUSB_SPEED_FULL, true);
}
// ISOIN: Data was moved to endpoint buffer, client will be notified in SOF
- if ( int_status & USBD_INTEN_ENDISOIN_Msk )
- {
+ if (int_status & USBD_INTEN_ENDISOIN_Msk) {
xfer_td_t* xfer = get_td(EP_ISO_NUM, TUSB_DIR_IN);
xfer->actual_len = NRF_USBD->ISOIN.AMOUNT;
@@ -646,32 +583,31 @@ void dcd_int_handler(uint8_t rhport)
xfer->iso_in_transfer_ready = true;
}
- if ( int_status & USBD_INTEN_SOF_Msk )
- {
+ if (int_status & USBD_INTEN_SOF_Msk) {
bool iso_enabled = false;
// ISOOUT: Transfer data gathered in previous frame from buffer to RAM
- if (NRF_USBD->EPOUTEN & USBD_EPOUTEN_ISOOUT_Msk)
- {
+ if (NRF_USBD->EPOUTEN & USBD_EPOUTEN_ISOOUT_Msk) {
iso_enabled = true;
- xact_out_dma(EP_ISO_NUM);
+ // Transfer from endpoint to RAM only if data is not corrupted
+ if ((int_status & USBD_INTEN_USBEVENT_Msk) == 0 ||
+ (NRF_USBD->EVENTCAUSE & USBD_EVENTCAUSE_ISOOUTCRC_Msk) == 0) {
+ xact_out_dma(EP_ISO_NUM);
+ }
}
// ISOIN: Notify client that data was transferred
- if (NRF_USBD->EPINEN & USBD_EPINEN_ISOIN_Msk)
- {
+ if (NRF_USBD->EPINEN & USBD_EPINEN_ISOIN_Msk) {
iso_enabled = true;
xfer_td_t* xfer = get_td(EP_ISO_NUM, TUSB_DIR_IN);
- if ( xfer->iso_in_transfer_ready )
- {
+ if (xfer->iso_in_transfer_ready) {
xfer->iso_in_transfer_ready = false;
dcd_event_xfer_complete(0, EP_ISO_NUM | TUSB_DIR_IN_MASK, xfer->actual_len, XFER_RESULT_SUCCESS, true);
}
}
- if ( !iso_enabled )
- {
+ if (!iso_enabled) {
// ISO endpoint is not used, SOF is only enabled one-time for remote wakeup
// so we disable it now
NRF_USBD->INTENCLR = USBD_INTENSET_SOF_Msk;
@@ -680,16 +616,17 @@ void dcd_int_handler(uint8_t rhport)
dcd_event_bus_signal(0, DCD_EVENT_SOF, true);
}
- if ( int_status & USBD_INTEN_USBEVENT_Msk )
- {
- TU_LOG(2, "EVENTCAUSE = 0x%04lX\r\n", NRF_USBD->EVENTCAUSE);
+ if (int_status & USBD_INTEN_USBEVENT_Msk) {
+ TU_LOG(3, "EVENTCAUSE = 0x%04" PRIX32 "\r\n", NRF_USBD->EVENTCAUSE);
- enum { EVT_CAUSE_MASK = USBD_EVENTCAUSE_SUSPEND_Msk | USBD_EVENTCAUSE_RESUME_Msk | USBD_EVENTCAUSE_USBWUALLOWED_Msk };
+ enum {
+ EVT_CAUSE_MASK = USBD_EVENTCAUSE_SUSPEND_Msk | USBD_EVENTCAUSE_RESUME_Msk | USBD_EVENTCAUSE_USBWUALLOWED_Msk |
+ USBD_EVENTCAUSE_ISOOUTCRC_Msk
+ };
uint32_t const evt_cause = NRF_USBD->EVENTCAUSE & EVT_CAUSE_MASK;
NRF_USBD->EVENTCAUSE = evt_cause; // clear interrupt
- if ( evt_cause & USBD_EVENTCAUSE_SUSPEND_Msk )
- {
+ if (evt_cause & USBD_EVENTCAUSE_SUSPEND_Msk) {
// Put controller into low power mode
// Leave HFXO disable to application, since it may be used by other peripherals
NRF_USBD->LOWPOWER = 1;
@@ -697,8 +634,7 @@ void dcd_int_handler(uint8_t rhport)
dcd_event_bus_signal(0, DCD_EVENT_SUSPEND, true);
}
- if ( evt_cause & USBD_EVENTCAUSE_USBWUALLOWED_Msk )
- {
+ if (evt_cause & USBD_EVENTCAUSE_USBWUALLOWED_Msk) {
// USB is out of low power mode, and wakeup is allowed
// Initiate RESUME signal
NRF_USBD->DPDMVALUE = USBD_DPDMVALUE_STATE_Resume;
@@ -710,34 +646,29 @@ void dcd_int_handler(uint8_t rhport)
NRF_USBD->INTENSET = USBD_INTENSET_SOF_Msk;
}
- if ( evt_cause & USBD_EVENTCAUSE_RESUME_Msk )
- {
+ if (evt_cause & USBD_EVENTCAUSE_RESUME_Msk) {
dcd_event_bus_signal(0, DCD_EVENT_RESUME, true);
}
}
// Setup tokens are specific to the Control endpoint.
- if ( int_status & USBD_INTEN_EP0SETUP_Msk )
- {
- uint8_t const setup[8] =
- {
- NRF_USBD->BMREQUESTTYPE , NRF_USBD->BREQUEST, NRF_USBD->WVALUEL , NRF_USBD->WVALUEH,
- NRF_USBD->WINDEXL , NRF_USBD->WINDEXH , NRF_USBD->WLENGTHL, NRF_USBD->WLENGTHH
+ if (int_status & USBD_INTEN_EP0SETUP_Msk) {
+ uint8_t const setup[8] = {
+ NRF_USBD->BMREQUESTTYPE, NRF_USBD->BREQUEST, NRF_USBD->WVALUEL, NRF_USBD->WVALUEH,
+ NRF_USBD->WINDEXL, NRF_USBD->WINDEXH, NRF_USBD->WLENGTHL, NRF_USBD->WLENGTHH
};
// nrf5x hw auto handle set address, there is no need to inform usb stack
- tusb_control_request_t const * request = (tusb_control_request_t const *) setup;
+ tusb_control_request_t const* request = (tusb_control_request_t const*) setup;
- if ( !(TUSB_REQ_RCPT_DEVICE == request->bmRequestType_bit.recipient &&
- TUSB_REQ_TYPE_STANDARD == request->bmRequestType_bit.type &&
- TUSB_REQ_SET_ADDRESS == request->bRequest) )
- {
+ if (!(TUSB_REQ_RCPT_DEVICE == request->bmRequestType_bit.recipient &&
+ TUSB_REQ_TYPE_STANDARD == request->bmRequestType_bit.type &&
+ TUSB_REQ_SET_ADDRESS == request->bRequest)) {
dcd_event_setup_received(0, setup, true);
}
}
- if ( int_status & EDPT_END_ALL_MASK )
- {
+ if (int_status & EDPT_END_ALL_MASK) {
// DMA complete move data from SRAM <-> Endpoint
// Must before endpoint transfer handling
edpt_dma_end();
@@ -779,30 +710,24 @@ void dcd_int_handler(uint8_t rhport)
* len if Host decides to sent fewer bytes, it this case transaction is also
* complete and next transfer is not initiated here like for CBI.
*/
- for(uint8_t epnum=0; epnum<EP_CBI_COUNT+1; epnum++)
- {
- if ( tu_bit_test(int_status, USBD_INTEN_ENDEPOUT0_Pos+epnum))
- {
+ for (uint8_t epnum = 0; epnum < EP_CBI_COUNT + 1; epnum++) {
+ if (tu_bit_test(int_status, USBD_INTEN_ENDEPOUT0_Pos + epnum)) {
xfer_td_t* xfer = get_td(epnum, TUSB_DIR_OUT);
uint16_t const xact_len = NRF_USBD->EPOUT[epnum].AMOUNT;
- xfer->buffer += xact_len;
+ xfer->buffer += xact_len;
xfer->actual_len += xact_len;
// Transfer complete if transaction len < Max Packet Size or total len is transferred
- if ( (epnum != EP_ISO_NUM) && (xact_len == xfer->mps) && (xfer->actual_len < xfer->total_len) )
- {
- if ( epnum == 0 )
- {
+ if ((epnum != EP_ISO_NUM) && (xact_len == xfer->mps) && (xfer->actual_len < xfer->total_len)) {
+ if (epnum == 0) {
// Accept next Control Out packet. TASKS_EP0RCVOUT also require EasyDMA
edpt_dma_start(&NRF_USBD->TASKS_EP0RCVOUT);
- }else
- {
+ } else {
// nRF auto accept next Bulk/Interrupt OUT packet
// nothing to do
}
- }else
- {
+ } else {
TU_ASSERT(xfer->started,);
xfer->total_len = xfer->actual_len;
xfer->started = false;
@@ -816,11 +741,11 @@ void dcd_int_handler(uint8_t rhport)
}
// Endpoint <-> Host ( In & OUT )
- if ( int_status & (USBD_INTEN_EPDATA_Msk | USBD_INTEN_EP0DATADONE_Msk) )
- {
+ if (int_status & (USBD_INTEN_EPDATA_Msk | USBD_INTEN_EP0DATADONE_Msk)) {
uint32_t data_status = NRF_USBD->EPDATASTATUS;
NRF_USBD->EPDATASTATUS = data_status;
- __ISB(); __DSB();
+ __ISB();
+ __DSB();
// EP0DATADONE is set with either Control Out on IN Data
// Since EPDATASTATUS cannot be used to determine whether it is control OUT or IN.
@@ -829,22 +754,18 @@ void dcd_int_handler(uint8_t rhport)
bool const is_control_out = (int_status & USBD_INTEN_EP0DATADONE_Msk) && !(NRF_USBD->BMREQUESTTYPE & TUSB_DIR_IN_MASK);
// CBI In: Endpoint -> Host (transaction complete)
- for(uint8_t epnum=0; epnum<EP_CBI_COUNT; epnum++)
- {
- if ( tu_bit_test(data_status, epnum) || (epnum == 0 && is_control_in) )
- {
+ for (uint8_t epnum = 0; epnum < EP_CBI_COUNT; epnum++) {
+ if (tu_bit_test(data_status, epnum) || (epnum == 0 && is_control_in)) {
xfer_td_t* xfer = get_td(epnum, TUSB_DIR_IN);
uint8_t const xact_len = NRF_USBD->EPIN[epnum].AMOUNT;
- xfer->buffer += xact_len;
+ xfer->buffer += xact_len;
xfer->actual_len += xact_len;
- if ( xfer->actual_len < xfer->total_len )
- {
+ if (xfer->actual_len < xfer->total_len) {
// Start DMA to copy next data packet
xact_in_dma(epnum);
- } else
- {
+ } else {
// CBI IN complete
dcd_event_xfer_complete(0, epnum | TUSB_DIR_IN_MASK, xfer->actual_len, XFER_RESULT_SUCCESS, true);
}
@@ -852,17 +773,13 @@ void dcd_int_handler(uint8_t rhport)
}
// CBI OUT: Host -> Endpoint
- for(uint8_t epnum=0; epnum<EP_CBI_COUNT; epnum++)
- {
- if ( tu_bit_test(data_status, 16+epnum) || (epnum == 0 && is_control_out) )
- {
+ for (uint8_t epnum = 0; epnum < EP_CBI_COUNT; epnum++) {
+ if (tu_bit_test(data_status, 16 + epnum) || (epnum == 0 && is_control_out)) {
xfer_td_t* xfer = get_td(epnum, TUSB_DIR_OUT);
- if ( xfer->started && xfer->actual_len < xfer->total_len )
- {
+ if (xfer->started && xfer->actual_len < xfer->total_len) {
xact_out_dma(epnum);
- }else
- {
+ } else {
// Data overflow !!! Nah, nRF will auto accept next Bulk/Interrupt OUT packet
// Mark this endpoint with data received
xfer->data_received = true;
@@ -886,76 +803,80 @@ void dcd_int_handler(uint8_t rhport)
#define SD_MAGIC_NUMBER 0x51B1E5DB
#endif
-static inline bool is_sd_existed(void)
-{
+TU_ATTR_ALWAYS_INLINE static inline bool is_sd_existed(void) {
return *((uint32_t*)(SOFTDEVICE_INFO_STRUCT_ADDRESS+4)) == SD_MAGIC_NUMBER;
}
// check if SD is existed and enabled
-static inline bool is_sd_enabled(void)
-{
+TU_ATTR_ALWAYS_INLINE static inline bool is_sd_enabled(void) {
if ( !is_sd_existed() ) return false;
-
uint8_t sd_en = false;
(void) sd_softdevice_is_enabled(&sd_en);
return sd_en;
}
#endif
-static bool hfclk_running(void)
-{
+static bool hfclk_running(void) {
#ifdef SOFTDEVICE_PRESENT
- if ( is_sd_enabled() )
- {
+ if ( is_sd_enabled() ) {
uint32_t is_running = 0;
(void) sd_clock_hfclk_is_running(&is_running);
return (is_running ? true : false);
}
#endif
+#if CFG_TUD_NRF_NRFX_VERSION == 1
+ return nrf_clock_hf_is_running(NRF_CLOCK_HFCLK_HIGH_ACCURACY);
+#else
return nrf_clock_hf_is_running(NRF_CLOCK, NRF_CLOCK_HFCLK_HIGH_ACCURACY);
+#endif
}
-static void hfclk_enable(void)
-{
+static void hfclk_enable(void) {
#if CFG_TUSB_OS == OPT_OS_MYNEWT
usb_clock_request();
return;
#else
// already running, nothing to do
- if ( hfclk_running() ) return;
+ if (hfclk_running()) return;
#ifdef SOFTDEVICE_PRESENT
- if ( is_sd_enabled() )
- {
+ if ( is_sd_enabled() ) {
(void)sd_clock_hfclk_request();
return;
}
#endif
+#if CFG_TUD_NRF_NRFX_VERSION == 1
+ nrf_clock_event_clear(NRF_CLOCK_EVENT_HFCLKSTARTED);
+ nrf_clock_task_trigger(NRF_CLOCK_TASK_HFCLKSTART);
+#else
nrf_clock_event_clear(NRF_CLOCK, NRF_CLOCK_EVENT_HFCLKSTARTED);
nrf_clock_task_trigger(NRF_CLOCK, NRF_CLOCK_TASK_HFCLKSTART);
#endif
+#endif
}
-static void hfclk_disable(void)
-{
+static void hfclk_disable(void) {
#if CFG_TUSB_OS == OPT_OS_MYNEWT
usb_clock_release();
return;
#else
#ifdef SOFTDEVICE_PRESENT
- if ( is_sd_enabled() )
- {
+ if ( is_sd_enabled() ) {
(void)sd_clock_hfclk_release();
return;
}
#endif
+#if CFG_TUD_NRF_NRFX_VERSION == 1
+ nrf_clock_task_trigger(NRF_CLOCK_TASK_HFCLKSTOP);
+#else
nrf_clock_task_trigger(NRF_CLOCK, NRF_CLOCK_TASK_HFCLKSTOP);
#endif
+#endif
}
// Power & Clock Peripheral on nRF5x to manage USB
@@ -968,8 +889,7 @@ static void hfclk_disable(void)
// Therefore this function must be called to handle USB power event by
// - nrfx_power_usbevt_init() : if Softdevice is not used or enabled
// - SoftDevice SOC event : if SD is used and enabled
-void tusb_hal_nrf_power_event (uint32_t event)
-{
+void tusb_hal_nrf_power_event(uint32_t event) {
// Value is chosen to be as same as NRFX_POWER_USB_EVT_* in nrfx_power.h
enum {
USB_EVT_DETECTED = 0,
@@ -978,50 +898,41 @@ void tusb_hal_nrf_power_event (uint32_t event)
};
#if CFG_TUSB_DEBUG >= 2
- const char* const power_evt_str[] = { "Detected", "Removed", "Ready" };
+ const char* const power_evt_str[] = {"Detected", "Removed", "Ready"};
TU_LOG(2, "Power USB event: %s\r\n", power_evt_str[event]);
#endif
- switch ( event )
- {
+ switch (event) {
case USB_EVT_DETECTED:
- if ( !NRF_USBD->ENABLE )
- {
+ if (!NRF_USBD->ENABLE) {
// Prepare for receiving READY event: disable interrupt since we will blocking wait
NRF_USBD->INTENCLR = USBD_INTEN_USBEVENT_Msk;
NRF_USBD->EVENTCAUSE = USBD_EVENTCAUSE_READY_Msk;
- __ISB(); __DSB(); // for sync
+ __ISB();
+ __DSB(); // for sync
#ifdef NRF52_SERIES // NRF53 does not need this errata
// ERRATA 171, 187, 166
- if ( nrfx_usbd_errata_187() )
- {
+ if (nrfx_usbd_errata_187()) {
// CRITICAL_REGION_ENTER();
- if ( *((volatile uint32_t *) (0x4006EC00)) == 0x00000000 )
- {
- *((volatile uint32_t *) (0x4006EC00)) = 0x00009375;
- *((volatile uint32_t *) (0x4006ED14)) = 0x00000003;
- *((volatile uint32_t *) (0x4006EC00)) = 0x00009375;
- }
- else
- {
- *((volatile uint32_t *) (0x4006ED14)) = 0x00000003;
+ if (*((volatile uint32_t*) (0x4006EC00)) == 0x00000000) {
+ *((volatile uint32_t*) (0x4006EC00)) = 0x00009375;
+ *((volatile uint32_t*) (0x4006ED14)) = 0x00000003;
+ *((volatile uint32_t*) (0x4006EC00)) = 0x00009375;
+ } else {
+ *((volatile uint32_t*) (0x4006ED14)) = 0x00000003;
}
// CRITICAL_REGION_EXIT();
}
- if ( nrfx_usbd_errata_171() )
- {
+ if (nrfx_usbd_errata_171()) {
// CRITICAL_REGION_ENTER();
- if ( *((volatile uint32_t *) (0x4006EC00)) == 0x00000000 )
- {
- *((volatile uint32_t *) (0x4006EC00)) = 0x00009375;
- *((volatile uint32_t *) (0x4006EC14)) = 0x000000C0;
- *((volatile uint32_t *) (0x4006EC00)) = 0x00009375;
- }
- else
- {
- *((volatile uint32_t *) (0x4006EC14)) = 0x000000C0;
+ if (*((volatile uint32_t*) (0x4006EC00)) == 0x00000000) {
+ *((volatile uint32_t*) (0x4006EC00)) = 0x00009375;
+ *((volatile uint32_t*) (0x4006EC14)) = 0x000000C0;
+ *((volatile uint32_t*) (0x4006EC00)) = 0x00009375;
+ } else {
+ *((volatile uint32_t*) (0x4006EC14)) = 0x000000C0;
}
// CRITICAL_REGION_EXIT();
}
@@ -1029,64 +940,58 @@ void tusb_hal_nrf_power_event (uint32_t event)
// Enable the peripheral (will cause Ready event)
NRF_USBD->ENABLE = 1;
- __ISB(); __DSB(); // for sync
+ __ISB();
+ __DSB(); // for sync
// Enable HFCLK
hfclk_enable();
}
- break;
+ break;
case USB_EVT_READY:
// Skip if pull-up is enabled and HCLK is already running.
// Application probably call this more than necessary.
- if ( NRF_USBD->USBPULLUP && hfclk_running() ) break;
+ if (NRF_USBD->USBPULLUP && hfclk_running()) break;
// Waiting for USBD peripheral enabled
- while ( !(USBD_EVENTCAUSE_READY_Msk & NRF_USBD->EVENTCAUSE) ) { }
+ while (!(USBD_EVENTCAUSE_READY_Msk & NRF_USBD->EVENTCAUSE)) {}
NRF_USBD->EVENTCAUSE = USBD_EVENTCAUSE_READY_Msk;
- __ISB(); __DSB(); // for sync
+ __ISB();
+ __DSB(); // for sync
#ifdef NRF52_SERIES
- if ( nrfx_usbd_errata_171() )
- {
+ if (nrfx_usbd_errata_171()) {
// CRITICAL_REGION_ENTER();
- if ( *((volatile uint32_t *) (0x4006EC00)) == 0x00000000 )
- {
- *((volatile uint32_t *) (0x4006EC00)) = 0x00009375;
- *((volatile uint32_t *) (0x4006EC14)) = 0x00000000;
- *((volatile uint32_t *) (0x4006EC00)) = 0x00009375;
- }
- else
- {
- *((volatile uint32_t *) (0x4006EC14)) = 0x00000000;
+ if (*((volatile uint32_t*) (0x4006EC00)) == 0x00000000) {
+ *((volatile uint32_t*) (0x4006EC00)) = 0x00009375;
+ *((volatile uint32_t*) (0x4006EC14)) = 0x00000000;
+ *((volatile uint32_t*) (0x4006EC00)) = 0x00009375;
+ } else {
+ *((volatile uint32_t*) (0x4006EC14)) = 0x00000000;
}
// CRITICAL_REGION_EXIT();
}
- if ( nrfx_usbd_errata_187() )
- {
+ if (nrfx_usbd_errata_187()) {
// CRITICAL_REGION_ENTER();
- if ( *((volatile uint32_t *) (0x4006EC00)) == 0x00000000 )
- {
- *((volatile uint32_t *) (0x4006EC00)) = 0x00009375;
- *((volatile uint32_t *) (0x4006ED14)) = 0x00000000;
- *((volatile uint32_t *) (0x4006EC00)) = 0x00009375;
- }
- else
- {
- *((volatile uint32_t *) (0x4006ED14)) = 0x00000000;
+ if (*((volatile uint32_t*) (0x4006EC00)) == 0x00000000) {
+ *((volatile uint32_t*) (0x4006EC00)) = 0x00009375;
+ *((volatile uint32_t*) (0x4006ED14)) = 0x00000000;
+ *((volatile uint32_t*) (0x4006EC00)) = 0x00009375;
+ } else {
+ *((volatile uint32_t*) (0x4006ED14)) = 0x00000000;
}
// CRITICAL_REGION_EXIT();
}
- if ( nrfx_usbd_errata_166() )
- {
- *((volatile uint32_t *) (NRF_USBD_BASE + 0x800)) = 0x7E3;
- *((volatile uint32_t *) (NRF_USBD_BASE + 0x804)) = 0x40;
+ if (nrfx_usbd_errata_166()) {
+ *((volatile uint32_t*) (NRF_USBD_BASE + 0x800)) = 0x7E3;
+ *((volatile uint32_t*) (NRF_USBD_BASE + 0x804)) = 0x40;
- __ISB(); __DSB();
+ __ISB();
+ __DSB();
}
#endif
@@ -1098,30 +1003,31 @@ void tusb_hal_nrf_power_event (uint32_t event)
// Enable interrupt, priorities should be set by application
NVIC_ClearPendingIRQ(USBD_IRQn);
+
// Don't enable USBD interrupt yet, if dcd_init() did not finish yet
// Interrupt will be enabled by tud_init(), when USB stack is ready
// to handle interrupts.
- if (tud_inited())
- {
+ if (tud_inited()) {
NVIC_EnableIRQ(USBD_IRQn);
}
// Wait for HFCLK
- while ( !hfclk_running() ) { }
+ while (!hfclk_running()) {}
// Enable pull up
NRF_USBD->USBPULLUP = 1;
- __ISB(); __DSB(); // for sync
- break;
+ __ISB();
+ __DSB(); // for sync
+ break;
case USB_EVT_REMOVED:
- if ( NRF_USBD->ENABLE )
- {
+ if (NRF_USBD->ENABLE) {
// Abort all transfers
// Disable pull up
NRF_USBD->USBPULLUP = 0;
- __ISB(); __DSB(); // for sync
+ __ISB();
+ __DSB(); // for sync
// Disable Interrupt
NVIC_DisableIRQ(USBD_IRQn);
@@ -1130,15 +1036,17 @@ void tusb_hal_nrf_power_event (uint32_t event)
NRF_USBD->INTENCLR = NRF_USBD->INTEN;
NRF_USBD->ENABLE = 0;
- __ISB(); __DSB(); // for sync
+ __ISB();
+ __DSB(); // for sync
hfclk_disable();
dcd_event_bus_signal(0, DCD_EVENT_UNPLUGGED, is_in_isr());
}
- break;
+ break;
- default: break;
+ default:
+ break;
}
}
diff --git a/src/portable/nxp/khci/dcd_khci.c b/src/portable/nxp/khci/dcd_khci.c
index 5c65ea33d..dc71117b3 100644
--- a/src/portable/nxp/khci/dcd_khci.c
+++ b/src/portable/nxp/khci/dcd_khci.c
@@ -269,9 +269,21 @@ void dcd_init(uint8_t rhport)
{
(void) rhport;
+ // save crystal-less setting (if available)
+ #if defined(FSL_FEATURE_USB_KHCI_IRC48M_MODULE_CLOCK_ENABLED) && FSL_FEATURE_USB_KHCI_IRC48M_MODULE_CLOCK_ENABLED == 1
+ uint32_t clk_recover_irc_en = KHCI->CLK_RECOVER_IRC_EN;
+ uint32_t clk_recover_ctrl = KHCI->CLK_RECOVER_CTRL;
+ #endif
+
KHCI->USBTRC0 |= USB_USBTRC0_USBRESET_MASK;
while (KHCI->USBTRC0 & USB_USBTRC0_USBRESET_MASK);
+ // restore crystal-less setting (if available)
+ #if defined(FSL_FEATURE_USB_KHCI_IRC48M_MODULE_CLOCK_ENABLED) && FSL_FEATURE_USB_KHCI_IRC48M_MODULE_CLOCK_ENABLED == 1
+ KHCI->CLK_RECOVER_IRC_EN = clk_recover_irc_en;
+ KHCI->CLK_RECOVER_CTRL |= clk_recover_ctrl;
+ #endif
+
tu_memclr(&_dcd, sizeof(_dcd));
KHCI->USBTRC0 |= TU_BIT(6); /* software must set this bit to 1 */
KHCI->BDTPAGE1 = (uint8_t)((uintptr_t)_dcd.bdt >> 8);
diff --git a/src/portable/nxp/khci/hcd_khci.c b/src/portable/nxp/khci/hcd_khci.c
index 6784049c5..57684b259 100644
--- a/src/portable/nxp/khci/hcd_khci.c
+++ b/src/portable/nxp/khci/hcd_khci.c
@@ -161,7 +161,7 @@ static int prepare_packets(int pipenum)
buffer_descriptor_t *bd = _hcd.bdt[dir_tx];
TU_ASSERT(0 == bd[odd].own, -1);
- // TU_LOG1(" %p dir %d odd %d data %d\n", &bd[odd], dir_tx, odd, pipe->data);
+ // TU_LOG1(" %p dir %d odd %d data %d\r\n", &bd[odd], dir_tx, odd, pipe->data);
ep->pipenum = pipenum;
@@ -251,7 +251,7 @@ static bool resume_transfer(int pipenum)
flags |= USB_ENDPT_EPHSHK_MASK | USB_ENDPT_EPCTLDIS_MASK | USB_ENDPT_RETRYDIS_MASK;
break;
}
- // TU_LOG1(" resume pipenum %d flags %x\n", pipenum, flags);
+ // TU_LOG1(" resume pipenum %d flags %x\r\n", pipenum, flags);
KHCI->ENDPOINT[0].ENDPT = flags;
KHCI->ADDR = (KHCI->ADDR & USB_ADDR_LSEN_MASK) | pipe->dev_addr;
@@ -302,7 +302,7 @@ static void process_tokdne(uint8_t rhport)
int pipenum = ep->pipenum;
int next_pipenum;
- // TU_LOG1("TOKDNE %x PID %x pipe %d\n", s, pid, pipenum);
+ // TU_LOG1("TOKDNE %x PID %x pipe %d\r\n", s, pid, pipenum);
xfer_result_t result;
switch (pid) {
@@ -447,6 +447,10 @@ void hcd_port_reset(uint8_t rhport)
_hcd.need_reset = false;
}
+void hcd_port_reset_end(uint8_t rhport) {
+ (void) rhport;
+}
+
tusb_speed_t hcd_port_speed_get(uint8_t rhport)
{
(void)rhport;
@@ -479,7 +483,7 @@ void hcd_device_close(uint8_t rhport, uint8_t dev_addr)
bool hcd_setup_send(uint8_t rhport, uint8_t dev_addr, uint8_t const setup_packet[8])
{
(void)rhport;
- // TU_LOG1("SETUP %u\n", dev_addr);
+ // TU_LOG1("SETUP %u\r\n", dev_addr);
TU_ASSERT(0 == (_hcd.in_progress & TU_BIT(0)));
int pipenum = find_pipe(dev_addr, 0);
@@ -510,7 +514,7 @@ bool hcd_edpt_open(uint8_t rhport, uint8_t dev_addr, tusb_desc_endpoint_t const
{
(void)rhport;
uint8_t const ep_addr = ep_desc->bEndpointAddress;
- // TU_LOG1("O %u %x\n", dev_addr, ep_addr);
+ // TU_LOG1("O %u %x\r\n", dev_addr, ep_addr);
/* Find a free pipe */
pipe_state_t *p = &_hcd.pipe[0];
pipe_state_t *end = &_hcd.pipe[CFG_TUH_ENDPOINT_MAX * 2];
@@ -543,7 +547,7 @@ bool hcd_edpt_open(uint8_t rhport, uint8_t dev_addr, tusb_desc_endpoint_t const
bool hcd_edpt_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr, uint8_t * buffer, uint16_t buflen)
{
(void)rhport;
- // TU_LOG1("X %u %x %x %d\n", dev_addr, ep_addr, (uintptr_t)buffer, buflen);
+ // TU_LOG1("X %u %x %x %d\r\n", dev_addr, ep_addr, (uintptr_t)buffer, buflen);
int pipenum = find_pipe(dev_addr, ep_addr);
TU_ASSERT(0 <= pipenum);
@@ -570,8 +574,8 @@ bool hcd_edpt_abort_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr) {
return false;
}
-bool hcd_edpt_clear_stall(uint8_t dev_addr, uint8_t ep_addr)
-{
+bool hcd_edpt_clear_stall(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr) {
+ (void) rhport;
if (!tu_edpt_number(ep_addr)) return true;
int num = find_pipe(dev_addr, ep_addr);
if (num < 0) return false;
@@ -583,12 +587,13 @@ bool hcd_edpt_clear_stall(uint8_t dev_addr, uint8_t ep_addr)
/*--------------------------------------------------------------------+
* ISR
*--------------------------------------------------------------------+*/
-void hcd_int_handler(uint8_t rhport)
+void hcd_int_handler(uint8_t rhport, bool in_isr)
{
+ (void) in_isr;
uint32_t is = KHCI->ISTAT;
uint32_t msk = KHCI->INTEN;
- // TU_LOG1("S %lx\n", is);
+ // TU_LOG1("S %lx\r\n", is);
/* clear disabled interrupts */
KHCI->ISTAT = (is & ~msk & ~USB_ISTAT_TOKDNE_MASK) | USB_ISTAT_SOFTOK_MASK;
@@ -597,7 +602,7 @@ void hcd_int_handler(uint8_t rhport)
if (is & USB_ISTAT_ERROR_MASK) {
unsigned err = KHCI->ERRSTAT;
if (err) {
- TU_LOG1(" ERR %x\n", err);
+ TU_LOG1(" ERR %x\r\n", err);
KHCI->ERRSTAT = err;
} else {
KHCI->INTEN &= ~USB_ISTAT_ERROR_MASK;
diff --git a/src/portable/nxp/lpc_ip3511/dcd_lpc_ip3511.c b/src/portable/nxp/lpc_ip3511/dcd_lpc_ip3511.c
index 7ca698a93..cc18cf59b 100644
--- a/src/portable/nxp/lpc_ip3511/dcd_lpc_ip3511.c
+++ b/src/portable/nxp/lpc_ip3511/dcd_lpc_ip3511.c
@@ -34,20 +34,26 @@
* - LPC54114
* - LPC55s69
*/
-#if CFG_TUD_ENABLED && ( CFG_TUSB_MCU == OPT_MCU_LPC11UXX || \
- CFG_TUSB_MCU == OPT_MCU_LPC13XX || \
- CFG_TUSB_MCU == OPT_MCU_LPC15XX || \
- CFG_TUSB_MCU == OPT_MCU_LPC51UXX || \
- CFG_TUSB_MCU == OPT_MCU_LPC54XXX || \
- CFG_TUSB_MCU == OPT_MCU_LPC55XX)
+#if CFG_TUD_ENABLED && defined(TUP_USBIP_IP3511)
//--------------------------------------------------------------------+
// INCLUDE
//--------------------------------------------------------------------+
-#if CFG_TUSB_MCU == OPT_MCU_LPC11UXX || CFG_TUSB_MCU == OPT_MCU_LPC13XX || CFG_TUSB_MCU == OPT_MCU_LPC15XX
+#if TU_CHECK_MCU(OPT_MCU_LPC11UXX, OPT_MCU_LPC13XX, OPT_MCU_LPC15XX)
// LPCOpen
+ #ifdef __GNUC__
+ #pragma GCC diagnostic push
+ #pragma GCC diagnostic ignored "-Wunused-parameter"
+ #pragma GCC diagnostic ignored "-Wstrict-prototypes"
+ #endif
+
#include "chip.h"
+
+ #ifdef __GNUC__
+ #pragma GCC diagnostic pop
+ #endif
+
#else
// SDK
#include "fsl_device_registers.h"
@@ -80,7 +86,7 @@ typedef struct {
enum {
NBYTES_ISO_FS_MAX = 1023, // FS ISO
NBYTES_ISO_HS_MAX = 1024, // HS ISO
- NBYTES_CBI_FS_MAX = 64, // FS control/bulk/interrupt
+ NBYTES_CBI_FS_MAX = 64, // FS control/bulk/interrupt. TODO some FS can do burst with higher size e.g 1024. Need to test
NBYTES_CBI_HS_MAX = 32767 // can be up to all 15-bit, but only tested with 4096
};
@@ -90,26 +96,36 @@ enum {
};
enum {
- CMDSTAT_DEVICE_ADDR_MASK = TU_BIT(7 )-1,
- CMDSTAT_DEVICE_ENABLE_MASK = TU_BIT(7 ),
- CMDSTAT_SETUP_RECEIVED_MASK = TU_BIT(8 ),
- CMDSTAT_DEVICE_CONNECT_MASK = TU_BIT(16), // reflect the soft-connect only, does not reflect the actual attached state
- CMDSTAT_DEVICE_SUSPEND_MASK = TU_BIT(17),
- // 23-22 is link speed (only available for HighSpeed port)
- CMDSTAT_CONNECT_CHANGE_MASK = TU_BIT(24),
- CMDSTAT_SUSPEND_CHANGE_MASK = TU_BIT(25),
- CMDSTAT_RESET_CHANGE_MASK = TU_BIT(26),
- CMDSTAT_VBUS_DEBOUNCED_MASK = TU_BIT(28),
+ DEVCMDSTAT_DEVICE_ADDR_MASK = TU_BIT(7 )-1,
+ DEVCMDSTAT_DEVICE_ENABLE_MASK = TU_BIT(7 ),
+ DEVCMDSTAT_SETUP_RECEIVED_MASK = TU_BIT(8 ),
+ DEVCMDSTAT_DEVICE_CONNECT_MASK = TU_BIT(16), // reflect the soft-connect only, does not reflect the actual attached state
+ DEVCMDSTAT_DEVICE_SUSPEND_MASK = TU_BIT(17),
+ // 23-22 is link speed (only available for HighSpeed port)
+ DEVCMDSTAT_CONNECT_CHANGE_MASK = TU_BIT(24),
+ DEVCMDSTAT_SUSPEND_CHANGE_MASK = TU_BIT(25),
+ DEVCMDSTAT_RESET_CHANGE_MASK = TU_BIT(26),
+ DEVCMDSTAT_VBUS_DEBOUNCED_MASK = TU_BIT(28),
};
enum {
- CMDSTAT_SPEED_SHIFT = 22
+ DEVCMDSTAT_SPEED_SHIFT = 22
};
//--------------------------------------------------------------------+
// Endpoint Command/Status List
//--------------------------------------------------------------------+
+// EP Command/Status field definition
+enum {
+ EPCS_TYPE = TU_BIT(26),
+ EPCS_RF_TV = TU_BIT(27),
+ EPCS_TOGGLE_RESET = TU_BIT(28),
+ EPCS_STALL = TU_BIT(29),
+ EPCS_DISABLED = TU_BIT(30),
+ EPCS_ACTIVE = TU_BIT(31),
+};
+
// Endpoint Command/Status
typedef union TU_ATTR_PACKED
{
@@ -133,8 +149,8 @@ typedef union TU_ATTR_PACKED
volatile struct {
uint32_t TU_RESERVED : 26;
- uint32_t is_iso : 1 ;
- uint32_t toggle_mode : 1 ;
+ uint32_t type : 1 ;
+ uint32_t rf_tv : 1 ; // rate feedback or toggle value
uint32_t toggle_reset : 1 ;
uint32_t stall : 1 ;
uint32_t disable : 1 ;
@@ -180,6 +196,7 @@ typedef struct
CFG_TUD_MEM_SECTION TU_ATTR_ALIGNED(256) static dcd_data_t _dcd;
// Dummy buffer to fix ZLPs overwriting the buffer (probably an USB/DMA controller bug)
+// TODO find way to save memory
CFG_TUD_MEM_SECTION TU_ATTR_ALIGNED(64) static uint8_t dummy[8];
//--------------------------------------------------------------------+
@@ -188,59 +205,73 @@ CFG_TUD_MEM_SECTION TU_ATTR_ALIGNED(64) static uint8_t dummy[8];
typedef struct
{
- dcd_registers_t* regs; // registers
- const tusb_speed_t max_speed; // max link speed
- const IRQn_Type irqnum; // IRQ number
- const uint8_t ep_pairs; // Max bi-directional Endpoints
+ dcd_registers_t* regs; // registers
+ const bool is_highspeed; // max link speed
+ const IRQn_Type irqnum; // IRQ number
+ const uint8_t ep_pairs; // Max bi-directional Endpoints
}dcd_controller_t;
#ifdef INCLUDE_FSL_DEVICE_REGISTERS
-static const dcd_controller_t _dcd_controller[] =
-{
- { .regs = (dcd_registers_t*) USB0_BASE , .max_speed = TUSB_SPEED_FULL, .irqnum = USB0_IRQn, .ep_pairs = FSL_FEATURE_USB_EP_NUM },
+static const dcd_controller_t _dcd_controller[] = {
+ { .regs = (dcd_registers_t*) USB0_BASE , .is_highspeed = false, .irqnum = USB0_IRQn, .ep_pairs = FSL_FEATURE_USB_EP_NUM },
#if defined(FSL_FEATURE_SOC_USBHSD_COUNT) && FSL_FEATURE_SOC_USBHSD_COUNT
- { .regs = (dcd_registers_t*) USBHSD_BASE, .max_speed = TUSB_SPEED_HIGH, .irqnum = USB1_IRQn, .ep_pairs = FSL_FEATURE_USBHSD_EP_NUM }
+ { .regs = (dcd_registers_t*) USBHSD_BASE, .is_highspeed = true, .irqnum = USB1_IRQn, .ep_pairs = FSL_FEATURE_USBHSD_EP_NUM }
#endif
};
#else
-static const dcd_controller_t _dcd_controller[] =
-{
- { .regs = (dcd_registers_t*) LPC_USB0_BASE, .max_speed = TUSB_SPEED_FULL, .irqnum = USB0_IRQn, .ep_pairs = 5 },
+static const dcd_controller_t _dcd_controller[] = {
+ { .regs = (dcd_registers_t*) LPC_USB0_BASE, .is_highspeed = false, .irqnum = USB0_IRQn, .ep_pairs = 5 },
};
#endif
+#if defined(FSL_FEATURE_SOC_USBHSD_COUNT) && FSL_FEATURE_SOC_USBHSD_COUNT
+ #define IP3511_HAS_HIGHSPEED
+#endif
+
//--------------------------------------------------------------------+
// INTERNAL OBJECT & FUNCTION DECLARATION
//--------------------------------------------------------------------+
-static inline uint16_t get_buf_offset(void const * buffer)
-{
+TU_ATTR_ALWAYS_INLINE static inline uint16_t get_buf_offset(void const * buffer) {
uint32_t addr = (uint32_t) buffer;
TU_ASSERT( (addr & 0x3f) == 0, 0 );
return ( (addr >> 6) & 0xFFFFUL ) ;
}
-static inline uint8_t ep_addr2id(uint8_t ep_addr)
-{
+TU_ATTR_ALWAYS_INLINE static inline uint8_t ep_addr2id(uint8_t ep_addr) {
return 2*(ep_addr & 0x0F) + ((ep_addr & TUSB_DIR_IN_MASK) ? 1 : 0);
}
+TU_ATTR_ALWAYS_INLINE static inline bool ep_is_iso(ep_cmd_sts_t* ep_cs, bool is_highspeed) {
+ return is_highspeed ? (ep_cs[0].cmd_sts.type && !ep_cs[0].cmd_sts.rf_tv) : ep_cs->cmd_sts.type;
+}
+
+TU_ATTR_ALWAYS_INLINE TU_ATTR_UNUSED static inline bool ep_is_bulk(ep_cmd_sts_t* ep_cs) {
+ return (ep_cs[0].cmd_sts.type == 0) && (ep_cs[0].cmd_sts.rf_tv == 0);
+}
+
+TU_ATTR_ALWAYS_INLINE static inline ep_cmd_sts_t* get_ep_cs(uint8_t ep_id) {
+ return _dcd.ep[ep_id];
+}
+
+TU_ATTR_ALWAYS_INLINE static inline bool rhport_is_highspeed(uint8_t rhport) {
+ return _dcd_controller[rhport].is_highspeed;
+}
+
//--------------------------------------------------------------------+
// CONTROLLER API
//--------------------------------------------------------------------+
-static void prepare_setup_packet(uint8_t rhport)
-{
- if (_dcd_controller[rhport].max_speed == TUSB_SPEED_FULL )
- {
- _dcd.ep[0][1].buffer_fs.offset = get_buf_offset(_dcd.setup_packet);
- }else
- {
- _dcd.ep[0][1].buffer_hs.offset = get_buf_offset(_dcd.setup_packet);
+static void prepare_setup_packet(uint8_t rhport) {
+ uint16_t const buf_offset = get_buf_offset(_dcd.setup_packet);
+ if ( _dcd_controller[rhport].is_highspeed ) {
+ _dcd.ep[0][1].buffer_hs.offset = buf_offset;
+ } else {
+ _dcd.ep[0][1].buffer_fs.offset = buf_offset;
}
}
@@ -268,8 +299,8 @@ void dcd_init(uint8_t rhport)
dcd_reg->DATABUFSTART = tu_align((uint32_t) &_dcd, TU_BIT(22)); // 22-bit alignment
dcd_reg->INTSTAT |= dcd_reg->INTSTAT; // clear all pending interrupt
dcd_reg->INTEN = INT_DEVICE_STATUS_MASK;
- dcd_reg->DEVCMDSTAT |= CMDSTAT_DEVICE_ENABLE_MASK | CMDSTAT_DEVICE_CONNECT_MASK |
- CMDSTAT_RESET_CHANGE_MASK | CMDSTAT_CONNECT_CHANGE_MASK | CMDSTAT_SUSPEND_CHANGE_MASK;
+ dcd_reg->DEVCMDSTAT |= DEVCMDSTAT_DEVICE_ENABLE_MASK | DEVCMDSTAT_DEVICE_CONNECT_MASK |
+ DEVCMDSTAT_RESET_CHANGE_MASK | DEVCMDSTAT_CONNECT_CHANGE_MASK | DEVCMDSTAT_SUSPEND_CHANGE_MASK;
NVIC_ClearPendingIRQ(_dcd_controller[rhport].irqnum);
}
@@ -291,7 +322,7 @@ void dcd_set_address(uint8_t rhport, uint8_t dev_addr)
// Response with status first before changing device address
dcd_edpt_xfer(rhport, tu_edpt_addr(0, TUSB_DIR_IN), NULL, 0);
- dcd_reg->DEVCMDSTAT &= ~CMDSTAT_DEVICE_ADDR_MASK;
+ dcd_reg->DEVCMDSTAT &= ~DEVCMDSTAT_DEVICE_ADDR_MASK;
dcd_reg->DEVCMDSTAT |= dev_addr;
}
@@ -303,13 +334,13 @@ void dcd_remote_wakeup(uint8_t rhport)
void dcd_connect(uint8_t rhport)
{
dcd_registers_t* dcd_reg = _dcd_controller[rhport].regs;
- dcd_reg->DEVCMDSTAT |= CMDSTAT_DEVICE_CONNECT_MASK;
+ dcd_reg->DEVCMDSTAT |= DEVCMDSTAT_DEVICE_CONNECT_MASK;
}
void dcd_disconnect(uint8_t rhport)
{
dcd_registers_t* dcd_reg = _dcd_controller[rhport].regs;
- dcd_reg->DEVCMDSTAT &= ~CMDSTAT_DEVICE_CONNECT_MASK;
+ dcd_reg->DEVCMDSTAT &= ~DEVCMDSTAT_DEVICE_CONNECT_MASK;
}
void dcd_sof_enable(uint8_t rhport, bool en)
@@ -340,19 +371,39 @@ void dcd_edpt_clear_stall(uint8_t rhport, uint8_t ep_addr)
_dcd.ep[ep_id][0].cmd_sts.stall = 0;
_dcd.ep[ep_id][0].cmd_sts.toggle_reset = 1;
- _dcd.ep[ep_id][0].cmd_sts.toggle_mode = 0;
+ _dcd.ep[ep_id][0].cmd_sts.rf_tv = 0;
}
bool dcd_edpt_open(uint8_t rhport, tusb_desc_endpoint_t const * p_endpoint_desc)
{
//------------- Prepare Queue Head -------------//
uint8_t ep_id = ep_addr2id(p_endpoint_desc->bEndpointAddress);
+ ep_cmd_sts_t* ep_cs = get_ep_cs(ep_id);
// Check if endpoint is available
- TU_ASSERT( _dcd.ep[ep_id][0].cmd_sts.disable && _dcd.ep[ep_id][1].cmd_sts.disable );
+ TU_ASSERT( ep_cs[0].cmd_sts.disable && ep_cs[1].cmd_sts.disable );
edpt_reset(rhport, ep_id);
- _dcd.ep[ep_id][0].cmd_sts.is_iso = (p_endpoint_desc->bmAttributes.xfer == TUSB_XFER_ISOCHRONOUS);
+
+ switch (p_endpoint_desc->bmAttributes.xfer) {
+ case TUSB_XFER_ISOCHRONOUS:
+ ep_cs[0].cmd_sts.type = 1;
+ break;
+
+ case TUSB_XFER_INTERRUPT:
+ // What is interrupt endpoint in rate feedback mode ?
+ if ( rhport_is_highspeed(rhport) ) {
+ ep_cs[0].cmd_sts.type = 1;
+ ep_cs[0].cmd_sts.rf_tv = 1;
+ }
+ break;
+
+ case TUSB_XFER_BULK:
+ // nothing to do both type and rf_tv are 0
+ break;
+
+ default: break;
+ }
// Enable EP interrupt
dcd_registers_t* dcd_reg = _dcd_controller[rhport].regs;
@@ -379,42 +430,50 @@ void dcd_edpt_close(uint8_t rhport, uint8_t ep_addr)
_dcd.ep[ep_id][0].cmd_sts.disable = _dcd.ep[ep_id][1].cmd_sts.disable = 1;
}
-static void prepare_ep_xfer(uint8_t rhport, uint8_t ep_id, uint16_t buf_offset, uint16_t total_bytes)
-{
+static void prepare_ep_xfer(uint8_t rhport, uint8_t ep_id, uint16_t buf_offset, uint16_t total_bytes) {
uint16_t nbytes;
+ ep_cmd_sts_t* ep_cs = get_ep_cs(ep_id);
- if (_dcd_controller[rhport].max_speed == TUSB_SPEED_FULL )
- {
- nbytes = tu_min16(total_bytes, _dcd.ep[ep_id][0].cmd_sts.is_iso ? NBYTES_ISO_FS_MAX : NBYTES_CBI_FS_MAX);
- _dcd.ep[ep_id][0].buffer_fs.offset = buf_offset;
- _dcd.ep[ep_id][0].buffer_fs.nbytes = nbytes;
- }else
- {
- nbytes = tu_min16(total_bytes, NBYTES_CBI_HS_MAX);
- _dcd.ep[ep_id][0].buffer_hs.offset = buf_offset;
- _dcd.ep[ep_id][0].buffer_hs.nbytes = nbytes;
+ const bool is_iso = ep_is_iso(ep_cs, _dcd_controller[rhport].is_highspeed);
+
+ if ( rhport_is_highspeed(rhport) ) {
+ nbytes = tu_min16(total_bytes, is_iso ? NBYTES_ISO_HS_MAX : NBYTES_CBI_HS_MAX);
+ #if TU_CHECK_MCU(OPT_MCU_LPC54)
+ // LPC54 Errata USB.1: In USB high-speed device mode, the NBytes field does not decrement after BULK OUT transfer.
+ // Suggested Work-around: Program the NByte to the max packet size (512)
+ // Actual Work-around: round up NByte to multiple of 4.
+ // Note: this can cause buffer overflowed and corrupt data if host send more data than total_bytes
+ if ( (ep_id > 1) && (ep_id & 0x01) == 0 && ep_is_bulk(ep_cs) ) {
+ if ( nbytes & 0x03 ) {
+ nbytes = tu_align4(nbytes) + 4;
+ }
+ }
+ #endif
+
+ ep_cs[0].buffer_hs.offset = buf_offset;
+ ep_cs[0].buffer_hs.nbytes = nbytes;
+ }else {
+ nbytes = tu_min16(total_bytes, is_iso ? NBYTES_ISO_FS_MAX : NBYTES_CBI_FS_MAX);
+ ep_cs[0].buffer_fs.offset = buf_offset;
+ ep_cs[0].buffer_fs.nbytes = nbytes;
}
_dcd.dma[ep_id].nbytes = nbytes;
-
- _dcd.ep[ep_id][0].cmd_sts.active = 1;
+ ep_cs[0].cmd_sts.active = 1;
}
-bool dcd_edpt_xfer(uint8_t rhport, uint8_t ep_addr, uint8_t* buffer, uint16_t total_bytes)
-{
+bool dcd_edpt_xfer(uint8_t rhport, uint8_t ep_addr, uint8_t* buffer, uint16_t total_bytes) {
uint8_t const ep_id = ep_addr2id(ep_addr);
+ if (!buffer || total_bytes == 0) {
+ // Although having no data, ZLPs can cause buffer overwritten to zeroes. Probably due to USB/DMA controller side
+ // effect/bug. Assigned buffer offset to (valid) dummy to prevent overwriting to DATABUFSTART
+ buffer = (uint8_t *) (uint32_t) dummy;
+ }
+
tu_memclr(&_dcd.dma[ep_id], sizeof(xfer_dma_t));
_dcd.dma[ep_id].total_bytes = total_bytes;
- if (!buffer)
- {
- // Although having no data, ZLPs can cause buffer overwritten to zeroes.
- // Probably due to USB/DMA controller side effect/bug.
- // Assigned buffer offset to (valid) dummy to prevent overwriting to DATABUFSTART
- buffer = (uint8_t*)(uint32_t)dummy;
- }
-
prepare_ep_xfer(rhport, ep_id, get_buf_offset(buffer), total_bytes);
return true;
@@ -441,23 +500,19 @@ static void bus_reset(uint8_t rhport)
dcd_reg->EPSKIP = 0xFFFFFFFF;
dcd_reg->INTSTAT = dcd_reg->INTSTAT; // clear all pending interrupt
- dcd_reg->DEVCMDSTAT |= CMDSTAT_SETUP_RECEIVED_MASK; // clear setup received interrupt
+ dcd_reg->DEVCMDSTAT |= DEVCMDSTAT_SETUP_RECEIVED_MASK; // clear setup received interrupt
dcd_reg->INTEN = INT_DEVICE_STATUS_MASK | TU_BIT(0) | TU_BIT(1); // enable device status & control endpoints
}
-static void process_xfer_isr(uint8_t rhport, uint32_t int_status)
-{
+static void process_xfer_isr(uint8_t rhport, uint32_t int_status) {
uint8_t const max_ep = 2*_dcd_controller[rhport].ep_pairs;
- for(uint8_t ep_id = 0; ep_id < max_ep; ep_id++ )
- {
- if ( tu_bit_test(int_status, ep_id) )
- {
+ for(uint8_t ep_id = 0; ep_id < max_ep; ep_id++ ) {
+ if ( tu_bit_test(int_status, ep_id) ) {
ep_cmd_sts_t * ep_cs = &_dcd.ep[ep_id][0];
xfer_dma_t* xfer_dma = &_dcd.dma[ep_id];
- if ( ep_id == 0 || ep_id == 1)
- {
+ if ( ep_id <= 1 ) {
// For control endpoint, we need to manually clear Active bit
ep_cs->cmd_sts.active = 0;
}
@@ -465,26 +520,29 @@ static void process_xfer_isr(uint8_t rhport, uint32_t int_status)
uint16_t buf_offset;
uint16_t buf_nbytes;
- if (_dcd_controller[rhport].max_speed == TUSB_SPEED_FULL)
- {
- buf_offset = ep_cs->buffer_fs.offset;
- buf_nbytes = ep_cs->buffer_fs.nbytes;
- }else
- {
+ if ( rhport_is_highspeed(rhport) ) {
buf_offset = ep_cs->buffer_hs.offset;
buf_nbytes = ep_cs->buffer_hs.nbytes;
+
+ #if TU_CHECK_MCU(OPT_MCU_LPC54)
+ // LPC54 Errata USB.2: In USB high-speed device mode, the NBytes field is not correct after BULK IN transfer
+ // There is no work-around. For EP in transfer, the NByte value can be ignored after a packet is transmitted.
+ if ( (ep_id > 1) && (ep_id & 0x01) == 1 && ep_is_bulk(ep_cs) ) {
+ buf_nbytes = 0;
+ }
+ #endif
+ } else {
+ buf_offset = ep_cs->buffer_fs.offset;
+ buf_nbytes = ep_cs->buffer_fs.nbytes;
}
xfer_dma->xferred_bytes += xfer_dma->nbytes - buf_nbytes;
- if ( (buf_nbytes == 0) && (xfer_dma->total_bytes > xfer_dma->xferred_bytes) )
- {
+ if ( (buf_nbytes == 0) && (xfer_dma->total_bytes > xfer_dma->xferred_bytes) ) {
// There is more data to transfer
// buff_offset has been already increased by hw to correct value for next transfer
prepare_ep_xfer(rhport, ep_id, buf_offset, xfer_dma->total_bytes - xfer_dma->xferred_bytes);
- }
- else
- {
+ } else {
// for detecting ZLP
xfer_dma->total_bytes = xfer_dma->xferred_bytes;
@@ -511,19 +569,16 @@ void dcd_int_handler(uint8_t rhport)
//------------- Device Status -------------//
if ( int_status & INT_DEVICE_STATUS_MASK )
{
- dcd_reg->DEVCMDSTAT |= CMDSTAT_RESET_CHANGE_MASK | CMDSTAT_CONNECT_CHANGE_MASK | CMDSTAT_SUSPEND_CHANGE_MASK;
+ dcd_reg->DEVCMDSTAT |= DEVCMDSTAT_RESET_CHANGE_MASK | DEVCMDSTAT_CONNECT_CHANGE_MASK | DEVCMDSTAT_SUSPEND_CHANGE_MASK;
- if ( cmd_stat & CMDSTAT_RESET_CHANGE_MASK) // bus reset
+ if ( cmd_stat & DEVCMDSTAT_RESET_CHANGE_MASK) // bus reset
{
bus_reset(rhport);
tusb_speed_t speed = TUSB_SPEED_FULL;
-
- if (_dcd_controller[rhport].max_speed == TUSB_SPEED_HIGH)
- {
+ if ( _dcd_controller[rhport].is_highspeed ) {
// 0 : reserved, 1 : full, 2 : high, 3: super
- if ( 2 == ((cmd_stat >> CMDSTAT_SPEED_SHIFT) & 0x3UL) )
- {
+ if ( 2 == ((cmd_stat >> DEVCMDSTAT_SPEED_SHIFT) & 0x3UL) ) {
speed= TUSB_SPEED_HIGH;
}
}
@@ -531,35 +586,35 @@ void dcd_int_handler(uint8_t rhport)
dcd_event_bus_reset(rhport, speed, true);
}
- if (cmd_stat & CMDSTAT_CONNECT_CHANGE_MASK)
+ if (cmd_stat & DEVCMDSTAT_CONNECT_CHANGE_MASK)
{
// device disconnect
- if (cmd_stat & CMDSTAT_DEVICE_ADDR_MASK)
+ if (cmd_stat & DEVCMDSTAT_DEVICE_ADDR_MASK)
{
// debouncing as this can be set when device is powering
dcd_event_bus_signal(rhport, DCD_EVENT_UNPLUGGED, true);
}
}
- if (cmd_stat & CMDSTAT_SUSPEND_CHANGE_MASK)
+ if (cmd_stat & DEVCMDSTAT_SUSPEND_CHANGE_MASK)
{
// suspend signal, bus idle for more than 3ms
// Note: Host may delay more than 3 ms before and/or after bus reset before doing enumeration.
- if (cmd_stat & CMDSTAT_DEVICE_ADDR_MASK)
+ if (cmd_stat & DEVCMDSTAT_DEVICE_ADDR_MASK)
{
- dcd_event_bus_signal(rhport, (cmd_stat & CMDSTAT_DEVICE_SUSPEND_MASK) ? DCD_EVENT_SUSPEND : DCD_EVENT_RESUME, true);
+ dcd_event_bus_signal(rhport, (cmd_stat & DEVCMDSTAT_DEVICE_SUSPEND_MASK) ? DCD_EVENT_SUSPEND : DCD_EVENT_RESUME, true);
}
}
}
// Setup Receive
- if ( tu_bit_test(int_status, 0) && (cmd_stat & CMDSTAT_SETUP_RECEIVED_MASK) )
+ if ( tu_bit_test(int_status, 0) && (cmd_stat & DEVCMDSTAT_SETUP_RECEIVED_MASK) )
{
// Follow UM flowchart to clear Active & Stall on both Control IN/OUT endpoints
_dcd.ep[0][0].cmd_sts.active = _dcd.ep[1][0].cmd_sts.active = 0;
_dcd.ep[0][0].cmd_sts.stall = _dcd.ep[1][0].cmd_sts.stall = 0;
- dcd_reg->DEVCMDSTAT |= CMDSTAT_SETUP_RECEIVED_MASK;
+ dcd_reg->DEVCMDSTAT |= DEVCMDSTAT_SETUP_RECEIVED_MASK;
dcd_event_setup_received(rhport, _dcd.setup_packet, true);
diff --git a/src/portable/ohci/ohci.c b/src/portable/ohci/ohci.c
index 9f3af4781..c59d4755e 100644
--- a/src/portable/ohci/ohci.c
+++ b/src/portable/ohci/ohci.c
@@ -157,6 +157,7 @@ static ohci_ed_t * const p_ed_head[] =
static void ed_list_insert(ohci_ed_t * p_pre, ohci_ed_t * p_ed);
static void ed_list_remove_by_addr(ohci_ed_t * p_head, uint8_t dev_addr);
+static gtd_extra_data_t *gtd_get_extra_data(ohci_gtd_t const * const gtd);
//--------------------------------------------------------------------+
// USBH-HCD API
@@ -345,7 +346,7 @@ static void gtd_init(ohci_gtd_t *p_td, uint8_t *data_ptr, uint16_t total_bytes)
tu_memclr(p_td, sizeof(ohci_gtd_t));
p_td->used = 1;
- p_td->expected_bytes = total_bytes;
+ gtd_get_extra_data(p_td)->expected_bytes = total_bytes;
p_td->buffer_rounding = 1; // less than queued length is not a error
p_td->delay_interrupt = OHCI_INT_ON_COMPLETE_NO;
@@ -556,8 +557,8 @@ bool hcd_edpt_abort_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr) {
return false;
}
-bool hcd_edpt_clear_stall(uint8_t dev_addr, uint8_t ep_addr)
-{
+bool hcd_edpt_clear_stall(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr) {
+ (void) rhport;
ohci_ed_t * const p_ed = ed_from_addr(dev_addr, ep_addr);
p_ed->is_stalled = 0;
@@ -610,6 +611,15 @@ static inline ohci_ed_t* gtd_get_ed(ohci_gtd_t const * const p_qtd)
}
}
+static gtd_extra_data_t *gtd_get_extra_data(ohci_gtd_t const * const gtd) {
+ if ( gtd_is_control(gtd) ) {
+ uint8_t idx = ((uintptr_t)gtd - (uintptr_t)&ohci_data.control->gtd) / sizeof(ohci_data.control[0]);
+ return &ohci_data.gtd_extra_control[idx];
+ }else {
+ return &ohci_data.gtd_extra[gtd - ohci_data.gtd_pool];
+ }
+}
+
static inline uint32_t gtd_xfer_byte_left(uint32_t buffer_end, uint32_t current_buffer)
{
// 5.2.9 OHCI sample code
@@ -641,8 +651,7 @@ static void done_queue_isr(uint8_t hostid)
if ( (qtd->delay_interrupt == OHCI_INT_ON_COMPLETE_YES) || (event != XFER_RESULT_SUCCESS) )
{
ohci_ed_t * const ed = gtd_get_ed(qtd);
-
- uint32_t const xferred_bytes = qtd->expected_bytes - gtd_xfer_byte_left((uint32_t) qtd->buffer_end, (uint32_t) qtd->current_buffer_pointer);
+ uint32_t const xferred_bytes = gtd_get_extra_data(qtd)->expected_bytes - gtd_xfer_byte_left((uint32_t) qtd->buffer_end, (uint32_t) qtd->current_buffer_pointer);
// NOTE Assuming the current list is BULK and there is no other EDs in the list has queued TDs.
// When there is a error resulting this ED is halted, and this EP still has other queued TD
@@ -651,7 +660,7 @@ static void done_queue_isr(uint8_t hostid)
// --> HC will not process Control list (due to service ratio when Bulk list not empty)
// To walk-around this, the halted ED will have TailP = HeadP (empty list condition), when clearing halt
// the TailP must be set back to NULL for processing remaining TDs
- if ((event != XFER_RESULT_SUCCESS))
+ if (event != XFER_RESULT_SUCCESS)
{
ed->td_tail &= 0x0Ful;
ed->td_tail |= tu_align16(ed->td_head.address); // mark halted EP as empty queue
@@ -667,8 +676,9 @@ static void done_queue_isr(uint8_t hostid)
}
}
-void hcd_int_handler(uint8_t hostid)
-{
+void hcd_int_handler(uint8_t hostid, bool in_isr) {
+ (void) in_isr;
+
uint32_t const int_en = OHCI_REG->interrupt_enable;
uint32_t const int_status = OHCI_REG->interrupt_status & int_en;
diff --git a/src/portable/ohci/ohci.h b/src/portable/ohci/ohci.h
index 2081ffabb..94bad5df7 100644
--- a/src/portable/ohci/ohci.h
+++ b/src/portable/ohci/ohci.h
@@ -45,6 +45,9 @@ enum {
#define ED_MAX (CFG_TUH_DEVICE_MAX*CFG_TUH_ENDPOINT_MAX)
#define GTD_MAX ED_MAX
+// tinyUSB's OHCI implementation caps number of EDs to 8 bits
+TU_VERIFY_STATIC (ED_MAX <= 256, "Reduce CFG_TUH_DEVICE_MAX or CFG_TUH_ENDPOINT_MAX");
+
//--------------------------------------------------------------------+
// OHCI Data Structure
//--------------------------------------------------------------------+
@@ -70,9 +73,8 @@ typedef struct TU_ATTR_ALIGNED(16)
{
// Word 0
uint32_t used : 1;
- uint32_t index : 4; // endpoint index the td belongs to, or device address in case of control xfer
- uint32_t expected_bytes : 13; // TODO available for hcd
-
+ uint32_t index : 8; // endpoint index the gtd belongs to, or device address in case of control xfer
+ uint32_t : 9; // can be used
uint32_t buffer_rounding : 1;
uint32_t pid : 2;
uint32_t delay_interrupt : 3;
@@ -81,7 +83,7 @@ typedef struct TU_ATTR_ALIGNED(16)
volatile uint32_t condition_code : 4;
// Word 1
- volatile uint8_t* current_buffer_pointer;
+ uint8_t* volatile current_buffer_pointer;
// Word 2 : next TD
volatile uint32_t next;
@@ -152,9 +154,12 @@ typedef struct TU_ATTR_ALIGNED(32)
TU_VERIFY_STATIC( sizeof(ochi_itd_t) == 32, "size is not correct" );
+typedef struct {
+ uint16_t expected_bytes; // up to 8192 bytes so max is 13 bits
+} gtd_extra_data_t;
+
// structure with member alignment required from large to small
-typedef struct TU_ATTR_ALIGNED(256)
-{
+typedef struct TU_ATTR_ALIGNED(256) {
ohci_hcca_t hcca;
ohci_ed_t bulk_head_ed; // static bulk head (dummy)
@@ -164,14 +169,17 @@ typedef struct TU_ATTR_ALIGNED(256)
struct {
ohci_ed_t ed;
ohci_gtd_t gtd;
- }control[CFG_TUH_DEVICE_MAX+CFG_TUH_HUB+1];
+ } control[CFG_TUH_DEVICE_MAX + CFG_TUH_HUB + 1];
// ochi_itd_t itd[OHCI_MAX_ITD]; // itd requires alignment of 32
ohci_ed_t ed_pool[ED_MAX];
ohci_gtd_t gtd_pool[GTD_MAX];
- volatile uint16_t frame_number_hi;
+ // extra data needed by TDs that can't fit in the TD struct
+ gtd_extra_data_t gtd_extra_control[CFG_TUH_DEVICE_MAX + CFG_TUH_HUB + 1];
+ gtd_extra_data_t gtd_extra[GTD_MAX];
+ volatile uint16_t frame_number_hi;
} ohci_data_t;
//--------------------------------------------------------------------+
diff --git a/src/portable/raspberrypi/pio_usb/hcd_pio_usb.c b/src/portable/raspberrypi/pio_usb/hcd_pio_usb.c
index bb41ad638..f4de3c51d 100644
--- a/src/portable/raspberrypi/pio_usb/hcd_pio_usb.c
+++ b/src/portable/raspberrypi/pio_usb/hcd_pio_usb.c
@@ -48,16 +48,14 @@ static pio_usb_configuration_t pio_host_cfg = PIO_USB_DEFAULT_CONFIG;
//--------------------------------------------------------------------+
// HCD API
//--------------------------------------------------------------------+
-bool hcd_configure(uint8_t rhport, uint32_t cfg_id, const void* cfg_param)
-{
+bool hcd_configure(uint8_t rhport, uint32_t cfg_id, const void *cfg_param) {
(void) rhport;
TU_VERIFY(cfg_id == TUH_CFGID_RPI_PIO_USB_CONFIGURATION);
memcpy(&pio_host_cfg, cfg_param, sizeof(pio_usb_configuration_t));
return true;
}
-bool hcd_init(uint8_t rhport)
-{
+bool hcd_init(uint8_t rhport) {
(void) rhport;
// To run USB SOF interrupt in core1, call this init in core1
@@ -66,20 +64,17 @@ bool hcd_init(uint8_t rhport)
return true;
}
-void hcd_port_reset(uint8_t rhport)
-{
+void hcd_port_reset(uint8_t rhport) {
uint8_t const pio_rhport = RHPORT_PIO(rhport);
pio_usb_host_port_reset_start(pio_rhport);
}
-void hcd_port_reset_end(uint8_t rhport)
-{
+void hcd_port_reset_end(uint8_t rhport) {
uint8_t const pio_rhport = RHPORT_PIO(rhport);
pio_usb_host_port_reset_end(pio_rhport);
}
-bool hcd_port_connect_status(uint8_t rhport)
-{
+bool hcd_port_connect_status(uint8_t rhport) {
uint8_t const pio_rhport = RHPORT_PIO(rhport);
root_port_t *root = PIO_USB_ROOT_PORT(pio_rhport);
@@ -88,33 +83,28 @@ bool hcd_port_connect_status(uint8_t rhport)
return line_state != PORT_PIN_SE0;
}
-tusb_speed_t hcd_port_speed_get(uint8_t rhport)
-{
+tusb_speed_t hcd_port_speed_get(uint8_t rhport) {
// TODO determine link speed
uint8_t const pio_rhport = RHPORT_PIO(rhport);
return PIO_USB_ROOT_PORT(pio_rhport)->is_fullspeed ? TUSB_SPEED_FULL : TUSB_SPEED_LOW;
}
// Close all opened endpoint belong to this device
-void hcd_device_close(uint8_t rhport, uint8_t dev_addr)
-{
+void hcd_device_close(uint8_t rhport, uint8_t dev_addr) {
uint8_t const pio_rhport = RHPORT_PIO(rhport);
pio_usb_host_close_device(pio_rhport, dev_addr);
}
-uint32_t hcd_frame_number(uint8_t rhport)
-{
+uint32_t hcd_frame_number(uint8_t rhport) {
(void) rhport;
return pio_usb_host_get_frame_number();
}
-void hcd_int_enable(uint8_t rhport)
-{
+void hcd_int_enable(uint8_t rhport) {
(void) rhport;
}
-void hcd_int_disable(uint8_t rhport)
-{
+void hcd_int_disable(uint8_t rhport) {
(void) rhport;
}
@@ -122,18 +112,16 @@ void hcd_int_disable(uint8_t rhport)
// Endpoint API
//--------------------------------------------------------------------+
-bool hcd_edpt_open(uint8_t rhport, uint8_t dev_addr, tusb_desc_endpoint_t const * desc_ep)
-{
+bool hcd_edpt_open(uint8_t rhport, uint8_t dev_addr, tusb_desc_endpoint_t const *desc_ep) {
hcd_devtree_info_t dev_tree;
hcd_devtree_get_info(dev_addr, &dev_tree);
bool const need_pre = (dev_tree.hub_addr && dev_tree.speed == TUSB_SPEED_LOW);
uint8_t const pio_rhport = RHPORT_PIO(rhport);
- return pio_usb_host_endpoint_open(pio_rhport, dev_addr, (uint8_t const*) desc_ep, need_pre);
+ return pio_usb_host_endpoint_open(pio_rhport, dev_addr, (uint8_t const *) desc_ep, need_pre);
}
-bool hcd_edpt_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr, uint8_t * buffer, uint16_t buflen)
-{
+bool hcd_edpt_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr, uint8_t *buffer, uint16_t buflen) {
uint8_t const pio_rhport = RHPORT_PIO(rhport);
return pio_usb_host_endpoint_transfer(pio_rhport, dev_addr, ep_addr, buffer, buflen);
}
@@ -143,8 +131,7 @@ bool hcd_edpt_abort_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr) {
return pio_usb_host_endpoint_abort_transfer(pio_rhport, dev_addr, ep_addr);
}
-bool hcd_setup_send(uint8_t rhport, uint8_t dev_addr, uint8_t const setup_packet[8])
-{
+bool hcd_setup_send(uint8_t rhport, uint8_t dev_addr, uint8_t const setup_packet[8]) {
uint8_t const pio_rhport = RHPORT_PIO(rhport);
return pio_usb_host_send_setup(pio_rhport, dev_addr, setup_packet);
}
@@ -155,34 +142,32 @@ bool hcd_setup_send(uint8_t rhport, uint8_t dev_addr, uint8_t const setup_packet
// // so if any transfer is active on epx, we are busy. Interrupt endpoints have their own
// // EPX so ep->active will only be busy if there is a pending transfer on that interrupt endpoint
// // on that device
-// pico_trace("hcd_edpt_busy dev addr %d ep_addr 0x%x\n", dev_addr, ep_addr);
+// pico_trace("hcd_edpt_busy dev addr %d ep_addr 0x%x\r\n", dev_addr, ep_addr);
// struct hw_endpoint *ep = get_dev_ep(dev_addr, ep_addr);
// assert(ep);
// bool busy = ep->active;
-// pico_trace("busy == %d\n", busy);
+// pico_trace("busy == %d\r\n", busy);
// return busy;
//}
-bool hcd_edpt_clear_stall(uint8_t dev_addr, uint8_t ep_addr)
-{
+bool hcd_edpt_clear_stall(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr) {
+ (void) rhport;
(void) dev_addr;
(void) ep_addr;
return true;
}
-static void __no_inline_not_in_flash_func(handle_endpoint_irq)(root_port_t* rport, xfer_result_t result, volatile uint32_t* ep_reg)
-{
+static void __no_inline_not_in_flash_func(handle_endpoint_irq)(root_port_t *rport, xfer_result_t result,
+ volatile uint32_t *ep_reg) {
(void) rport;
const uint32_t ep_all = *ep_reg;
- for(uint8_t ep_idx = 0; ep_idx < PIO_USB_EP_POOL_CNT; ep_idx++)
- {
+ for ( uint8_t ep_idx = 0; ep_idx < PIO_USB_EP_POOL_CNT; ep_idx++ ) {
uint32_t const mask = (1u << ep_idx);
- if (ep_all & mask)
- {
- endpoint_t* ep = PIO_USB_ENDPOINT(ep_idx);
+ if ( ep_all & mask ) {
+ endpoint_t * ep = PIO_USB_ENDPOINT(ep_idx);
hcd_event_xfer_complete(ep->dev_addr, ep->ep_num, ep->actual_len, result, true);
}
}
@@ -192,35 +177,29 @@ static void __no_inline_not_in_flash_func(handle_endpoint_irq)(root_port_t* rpor
}
// IRQ Handler
-void __no_inline_not_in_flash_func(pio_usb_host_irq_handler)(uint8_t root_id)
-{
+void __no_inline_not_in_flash_func(pio_usb_host_irq_handler)(uint8_t root_id) {
uint8_t const tu_rhport = root_id + 1;
- root_port_t* rport = PIO_USB_ROOT_PORT(root_id);
+ root_port_t *rport = PIO_USB_ROOT_PORT(root_id);
uint32_t const ints = rport->ints;
- if ( ints & PIO_USB_INTS_CONNECT_BITS )
- {
- hcd_event_device_attach(tu_rhport, true);
+ if ( ints & PIO_USB_INTS_ENDPOINT_COMPLETE_BITS ) {
+ handle_endpoint_irq(rport, XFER_RESULT_SUCCESS, &rport->ep_complete);
}
- if ( ints & PIO_USB_INTS_DISCONNECT_BITS )
- {
- hcd_event_device_remove(tu_rhport, true);
+ if ( ints & PIO_USB_INTS_ENDPOINT_STALLED_BITS ) {
+ handle_endpoint_irq(rport, XFER_RESULT_STALLED, &rport->ep_stalled);
}
- if ( ints & PIO_USB_INTS_ENDPOINT_COMPLETE_BITS )
- {
- handle_endpoint_irq(rport, XFER_RESULT_SUCCESS, &rport->ep_complete);
+ if ( ints & PIO_USB_INTS_ENDPOINT_ERROR_BITS ) {
+ handle_endpoint_irq(rport, XFER_RESULT_FAILED, &rport->ep_error);
}
- if ( ints & PIO_USB_INTS_ENDPOINT_STALLED_BITS )
- {
- handle_endpoint_irq(rport, XFER_RESULT_STALLED, &rport->ep_stalled);
+ if ( ints & PIO_USB_INTS_CONNECT_BITS ) {
+ hcd_event_device_attach(tu_rhport, true);
}
- if ( ints & PIO_USB_INTS_ENDPOINT_ERROR_BITS )
- {
- handle_endpoint_irq(rport, XFER_RESULT_FAILED, &rport->ep_error);
+ if ( ints & PIO_USB_INTS_DISCONNECT_BITS ) {
+ hcd_event_device_remove(tu_rhport, true);
}
// clear all
diff --git a/src/portable/raspberrypi/rp2040/dcd_rp2040.c b/src/portable/raspberrypi/rp2040/dcd_rp2040.c
index 479b17b67..bc0deee32 100644
--- a/src/portable/raspberrypi/rp2040/dcd_rp2040.c
+++ b/src/portable/raspberrypi/rp2040/dcd_rp2040.c
@@ -48,7 +48,7 @@
*------------------------------------------------------------------*/
// Init these in dcd_init
-static uint8_t *next_buffer_ptr;
+static uint8_t* next_buffer_ptr;
// USB_MAX_ENDPOINTS Endpoints, direction TUSB_DIR_OUT for out and TUSB_DIR_IN for in.
static struct hw_endpoint hw_endpoints[USB_MAX_ENDPOINTS][2];
@@ -56,79 +56,70 @@ static struct hw_endpoint hw_endpoints[USB_MAX_ENDPOINTS][2];
// SOF may be used by remote wakeup as RESUME, this indicate whether SOF is actually used by usbd
static bool _sof_enable = false;
-TU_ATTR_ALWAYS_INLINE static inline struct hw_endpoint *hw_endpoint_get_by_num(uint8_t num, tusb_dir_t dir)
-{
+TU_ATTR_ALWAYS_INLINE static inline struct hw_endpoint* hw_endpoint_get_by_num(uint8_t num, tusb_dir_t dir) {
return &hw_endpoints[num][dir];
}
-static struct hw_endpoint *hw_endpoint_get_by_addr(uint8_t ep_addr)
-{
+TU_ATTR_ALWAYS_INLINE static inline struct hw_endpoint* hw_endpoint_get_by_addr(uint8_t ep_addr) {
uint8_t num = tu_edpt_number(ep_addr);
tusb_dir_t dir = tu_edpt_dir(ep_addr);
return hw_endpoint_get_by_num(num, dir);
}
-static void _hw_endpoint_alloc(struct hw_endpoint *ep, uint8_t transfer_type)
-{
+static void _hw_endpoint_alloc(struct hw_endpoint* ep, uint8_t transfer_type) {
// size must be multiple of 64
uint size = tu_div_ceil(ep->wMaxPacketSize, 64) * 64u;
// double buffered Bulk endpoint
- if ( transfer_type == TUSB_XFER_BULK )
- {
+ if (transfer_type == TUSB_XFER_BULK) {
size *= 2u;
}
ep->hw_data_buf = next_buffer_ptr;
next_buffer_ptr += size;
- assert(((uintptr_t )next_buffer_ptr & 0b111111u) == 0);
+ assert(((uintptr_t) next_buffer_ptr & 0b111111u) == 0);
uint dpram_offset = hw_data_offset(ep->hw_data_buf);
hard_assert(hw_data_offset(next_buffer_ptr) <= USB_DPRAM_MAX);
pico_info(" Allocated %d bytes at offset 0x%x (0x%p)\r\n", size, dpram_offset, ep->hw_data_buf);
// Fill in endpoint control register with buffer offset
- uint32_t const reg = EP_CTRL_ENABLE_BITS | ((uint)transfer_type << EP_CTRL_BUFFER_TYPE_LSB) | dpram_offset;
+ uint32_t const reg = EP_CTRL_ENABLE_BITS | ((uint) transfer_type << EP_CTRL_BUFFER_TYPE_LSB) | dpram_offset;
*ep->endpoint_control = reg;
}
-static void _hw_endpoint_close(struct hw_endpoint *ep)
-{
- // Clear hardware registers and then zero the struct
- // Clears endpoint enable
- *ep->endpoint_control = 0;
- // Clears buffer available, etc
- *ep->buffer_control = 0;
- // Clear any endpoint state
- memset(ep, 0, sizeof(struct hw_endpoint));
+static void _hw_endpoint_close(struct hw_endpoint* ep) {
+ // Clear hardware registers and then zero the struct
+ // Clears endpoint enable
+ *ep->endpoint_control = 0;
+ // Clears buffer available, etc
+ *ep->buffer_control = 0;
+ // Clear any endpoint state
+ memset(ep, 0, sizeof(struct hw_endpoint));
- // Reclaim buffer space if all endpoints are closed
- bool reclaim_buffers = true;
- for ( uint8_t i = 1; i < USB_MAX_ENDPOINTS; i++ )
- {
- if (hw_endpoint_get_by_num(i, TUSB_DIR_OUT)->hw_data_buf != NULL || hw_endpoint_get_by_num(i, TUSB_DIR_IN)->hw_data_buf != NULL)
- {
- reclaim_buffers = false;
- break;
- }
- }
- if (reclaim_buffers)
- {
- next_buffer_ptr = &usb_dpram->epx_data[0];
+ // Reclaim buffer space if all endpoints are closed
+ bool reclaim_buffers = true;
+ for (uint8_t i = 1; i < USB_MAX_ENDPOINTS; i++) {
+ if (hw_endpoint_get_by_num(i, TUSB_DIR_OUT)->hw_data_buf != NULL ||
+ hw_endpoint_get_by_num(i, TUSB_DIR_IN)->hw_data_buf != NULL) {
+ reclaim_buffers = false;
+ break;
}
+ }
+ if (reclaim_buffers) {
+ next_buffer_ptr = &usb_dpram->epx_data[0];
+ }
}
-static void hw_endpoint_close(uint8_t ep_addr)
-{
- struct hw_endpoint *ep = hw_endpoint_get_by_addr(ep_addr);
- _hw_endpoint_close(ep);
+static void hw_endpoint_close(uint8_t ep_addr) {
+ struct hw_endpoint* ep = hw_endpoint_get_by_addr(ep_addr);
+ _hw_endpoint_close(ep);
}
-static void hw_endpoint_init(uint8_t ep_addr, uint16_t wMaxPacketSize, uint8_t transfer_type)
-{
- struct hw_endpoint *ep = hw_endpoint_get_by_addr(ep_addr);
+static void hw_endpoint_init(uint8_t ep_addr, uint16_t wMaxPacketSize, uint8_t transfer_type) {
+ struct hw_endpoint* ep = hw_endpoint_get_by_addr(ep_addr);
const uint8_t num = tu_edpt_number(ep_addr);
const tusb_dir_t dir = tu_edpt_dir(ep_addr);
@@ -143,35 +134,26 @@ static void hw_endpoint_init(uint8_t ep_addr, uint16_t wMaxPacketSize, uint8_t t
ep->transfer_type = transfer_type;
// Every endpoint has a buffer control register in dpram
- if ( dir == TUSB_DIR_IN )
- {
+ if (dir == TUSB_DIR_IN) {
ep->buffer_control = &usb_dpram->ep_buf_ctrl[num].in;
- }
- else
- {
+ } else {
ep->buffer_control = &usb_dpram->ep_buf_ctrl[num].out;
}
// Clear existing buffer control state
*ep->buffer_control = 0;
- if ( num == 0 )
- {
+ if (num == 0) {
// EP0 has no endpoint control register because the buffer offsets are fixed
ep->endpoint_control = NULL;
// Buffer offset is fixed (also double buffered)
ep->hw_data_buf = (uint8_t*) &usb_dpram->ep0_buf_a[0];
- }
- else
- {
+ } else {
// Set the endpoint control register (starts at EP1, hence num-1)
- if ( dir == TUSB_DIR_IN )
- {
+ if (dir == TUSB_DIR_IN) {
ep->endpoint_control = &usb_dpram->ep_ctrl[num - 1].in;
- }
- else
- {
+ } else {
ep->endpoint_control = &usb_dpram->ep_ctrl[num - 1].out;
}
@@ -180,76 +162,82 @@ static void hw_endpoint_init(uint8_t ep_addr, uint16_t wMaxPacketSize, uint8_t t
}
}
-static void hw_endpoint_xfer(uint8_t ep_addr, uint8_t *buffer, uint16_t total_bytes)
-{
- struct hw_endpoint *ep = hw_endpoint_get_by_addr(ep_addr);
- hw_endpoint_xfer_start(ep, buffer, total_bytes);
+static void hw_endpoint_xfer(uint8_t ep_addr, uint8_t* buffer, uint16_t total_bytes) {
+ struct hw_endpoint* ep = hw_endpoint_get_by_addr(ep_addr);
+ hw_endpoint_xfer_start(ep, buffer, total_bytes);
}
-static void __tusb_irq_path_func(hw_handle_buff_status)(void)
-{
- uint32_t remaining_buffers = usb_hw->buf_status;
- pico_trace("buf_status = 0x%08lx\n", remaining_buffers);
- uint bit = 1u;
- for (uint8_t i = 0; remaining_buffers && i < USB_MAX_ENDPOINTS * 2; i++)
- {
- if (remaining_buffers & bit)
- {
- // clear this in advance
- usb_hw_clear->buf_status = bit;
+static void __tusb_irq_path_func(hw_handle_buff_status)(void) {
+ uint32_t remaining_buffers = usb_hw->buf_status;
+ pico_trace("buf_status = 0x%08lx\r\n", remaining_buffers);
+ uint bit = 1u;
+ for (uint8_t i = 0; remaining_buffers && i < USB_MAX_ENDPOINTS * 2; i++) {
+ if (remaining_buffers & bit) {
+ // clear this in advance
+ usb_hw_clear->buf_status = bit;
- // IN transfer for even i, OUT transfer for odd i
- struct hw_endpoint *ep = hw_endpoint_get_by_num(i >> 1u, (i & 1u) ? TUSB_DIR_OUT : TUSB_DIR_IN);
+ // IN transfer for even i, OUT transfer for odd i
+ struct hw_endpoint* ep = hw_endpoint_get_by_num(i >> 1u, (i & 1u) ? TUSB_DIR_OUT : TUSB_DIR_IN);
- // Continue xfer
- bool done = hw_endpoint_xfer_continue(ep);
- if (done)
- {
- // Notify
- dcd_event_xfer_complete(0, ep->ep_addr, ep->xferred_len, XFER_RESULT_SUCCESS, true);
- hw_endpoint_reset_transfer(ep);
- }
- remaining_buffers &= ~bit;
- }
- bit <<= 1u;
+ // Continue xfer
+ bool done = hw_endpoint_xfer_continue(ep);
+ if (done) {
+ // Notify
+ dcd_event_xfer_complete(0, ep->ep_addr, ep->xferred_len, XFER_RESULT_SUCCESS, true);
+ hw_endpoint_reset_transfer(ep);
+ }
+ remaining_buffers &= ~bit;
}
+ bit <<= 1u;
+ }
}
-TU_ATTR_ALWAYS_INLINE static inline void reset_ep0_pid(void)
-{
- // If we have finished this transfer on EP0 set pid back to 1 for next
- // setup transfer. Also clear a stall in case
- uint8_t addrs[] = {0x0, 0x80};
- for (uint i = 0 ; i < TU_ARRAY_SIZE(addrs); i++)
- {
- struct hw_endpoint *ep = hw_endpoint_get_by_addr(addrs[i]);
- ep->next_pid = 1u;
+TU_ATTR_ALWAYS_INLINE static inline void reset_ep0(void) {
+ // If we have finished this transfer on EP0 set pid back to 1 for next
+ // setup transfer. Also clear a stall in case
+ for (uint8_t dir = 0; dir < 2; dir++) {
+ struct hw_endpoint* ep = hw_endpoint_get_by_num(0, dir);
+ if (ep->active) {
+ // Abort any pending transfer from a prior control transfer per USB specs
+ // Due to Errata RP2040-E2: ABORT flag is only applicable for B2 and later (unusable for B0, B1).
+ // Which means we are not guaranteed to safely abort pending transfer on B0 and B1.
+ uint32_t const abort_mask = (dir ? USB_EP_ABORT_EP0_IN_BITS : USB_EP_ABORT_EP0_OUT_BITS);
+ if (rp2040_chip_version() >= 2) {
+ usb_hw_set->abort = abort_mask;
+ while ((usb_hw->abort_done & abort_mask) != abort_mask) {}
+ }
+
+ _hw_endpoint_buffer_control_set_value32(ep, USB_BUF_CTRL_DATA1_PID | USB_BUF_CTRL_SEL);
+ hw_endpoint_reset_transfer(ep);
+
+ if (rp2040_chip_version() >= 2) {
+ usb_hw_clear->abort_done = abort_mask;
+ usb_hw_clear->abort = abort_mask;
+ }
}
+ ep->next_pid = 1u;
+ }
}
-static void __tusb_irq_path_func(reset_non_control_endpoints)(void)
-{
+static void __tusb_irq_path_func(reset_non_control_endpoints)(void) {
// Disable all non-control
- for ( uint8_t i = 0; i < USB_MAX_ENDPOINTS-1; i++ )
- {
+ for (uint8_t i = 0; i < USB_MAX_ENDPOINTS - 1; i++) {
usb_dpram->ep_ctrl[i].in = 0;
usb_dpram->ep_ctrl[i].out = 0;
}
// clear non-control hw endpoints
- tu_memclr(hw_endpoints[1], sizeof(hw_endpoints) - 2*sizeof(hw_endpoint_t));
+ tu_memclr(hw_endpoints[1], sizeof(hw_endpoints) - 2 * sizeof(hw_endpoint_t));
// reclaim buffer space
next_buffer_ptr = &usb_dpram->epx_data[0];
}
-static void __tusb_irq_path_func(dcd_rp2040_irq)(void)
-{
+static void __tusb_irq_path_func(dcd_rp2040_irq)(void) {
uint32_t const status = usb_hw->ints;
uint32_t handled = 0;
- if ( status & USB_INTF_DEV_SOF_BITS )
- {
+ if (status & USB_INTF_DEV_SOF_BITS) {
bool keep_sof_alive = false;
handled |= USB_INTF_DEV_SOF_BITS;
@@ -258,20 +246,17 @@ static void __tusb_irq_path_func(dcd_rp2040_irq)(void)
// Errata 15 workaround for Device Bulk-In endpoint
e15_last_sof = time_us_32();
- for ( uint8_t i = 0; i < USB_MAX_ENDPOINTS; i++ )
- {
- struct hw_endpoint * ep = hw_endpoint_get_by_num(i, TUSB_DIR_IN);
+ for (uint8_t i = 0; i < USB_MAX_ENDPOINTS; i++) {
+ struct hw_endpoint* ep = hw_endpoint_get_by_num(i, TUSB_DIR_IN);
// Active Bulk IN endpoint requires SOF
- if ( (ep->transfer_type == TUSB_XFER_BULK) && ep->active )
- {
+ if ((ep->transfer_type == TUSB_XFER_BULK) && ep->active) {
keep_sof_alive = true;
hw_endpoint_lock_update(ep, 1);
// Deferred enable?
- if ( ep->pending )
- {
+ if (ep->pending) {
ep->pending = 0;
hw_endpoint_start_next_buffer(ep);
}
@@ -282,26 +267,24 @@ static void __tusb_irq_path_func(dcd_rp2040_irq)(void)
#endif
// disable SOF interrupt if it is used for RESUME in remote wakeup
- if ( !keep_sof_alive && !_sof_enable ) usb_hw_clear->inte = USB_INTS_DEV_SOF_BITS;
+ if (!keep_sof_alive && !_sof_enable) usb_hw_clear->inte = USB_INTS_DEV_SOF_BITS;
dcd_event_sof(0, usb_hw->sof_rd & USB_SOF_RD_BITS, true);
}
// xfer events are handled before setup req. So if a transfer completes immediately
// before closing the EP, the events will be delivered in same order.
- if ( status & USB_INTS_BUFF_STATUS_BITS )
- {
+ if (status & USB_INTS_BUFF_STATUS_BITS) {
handled |= USB_INTS_BUFF_STATUS_BITS;
hw_handle_buff_status();
}
- if ( status & USB_INTS_SETUP_REQ_BITS )
- {
+ if (status & USB_INTS_SETUP_REQ_BITS) {
handled |= USB_INTS_SETUP_REQ_BITS;
- uint8_t const * setup = remove_volatile_cast(uint8_t const*, &usb_dpram->setup_packet);
+ uint8_t const* setup = remove_volatile_cast(uint8_t const*, &usb_dpram->setup_packet);
// reset pid to both 1 (data and ack)
- reset_ep0_pid();
+ reset_ep0();
// Pass setup packet to tiny usb
dcd_event_setup_received(0, setup, true);
@@ -329,9 +312,8 @@ static void __tusb_irq_path_func(dcd_rp2040_irq)(void)
#endif
// SE0 for 2.5 us or more (will last at least 10ms)
- if ( status & USB_INTS_BUS_RESET_BITS )
- {
- pico_trace("BUS RESET\n");
+ if (status & USB_INTS_BUS_RESET_BITS) {
+ pico_trace("BUS RESET\r\n");
handled |= USB_INTS_BUS_RESET_BITS;
@@ -342,7 +324,7 @@ static void __tusb_irq_path_func(dcd_rp2040_irq)(void)
#if TUD_OPT_RP2040_USB_DEVICE_ENUMERATION_FIX
// Only run enumeration workaround if pull up is enabled
- if ( usb_hw->sie_ctrl & USB_SIE_CTRL_PULLUP_EN_BITS ) rp2040_usb_device_enumeration_fix();
+ if (usb_hw->sie_ctrl & USB_SIE_CTRL_PULLUP_EN_BITS) rp2040_usb_device_enumeration_fix();
#endif
}
@@ -354,22 +336,19 @@ static void __tusb_irq_path_func(dcd_rp2040_irq)(void)
* because without VBUS detection, it is impossible to tell the difference between
* being disconnected and suspended.
*/
- if ( status & USB_INTS_DEV_SUSPEND_BITS )
- {
+ if (status & USB_INTS_DEV_SUSPEND_BITS) {
handled |= USB_INTS_DEV_SUSPEND_BITS;
dcd_event_bus_signal(0, DCD_EVENT_SUSPEND, true);
usb_hw_clear->sie_status = USB_SIE_STATUS_SUSPENDED_BITS;
}
- if ( status & USB_INTS_DEV_RESUME_FROM_HOST_BITS )
- {
+ if (status & USB_INTS_DEV_RESUME_FROM_HOST_BITS) {
handled |= USB_INTS_DEV_RESUME_FROM_HOST_BITS;
dcd_event_bus_signal(0, DCD_EVENT_RESUME, true);
usb_hw_clear->sie_status = USB_SIE_STATUS_RESUME_BITS;
}
- if ( status ^ handled )
- {
+ if (status ^ handled) {
panic("Unhandled IRQ 0x%x\n", (uint) (status ^ handled));
}
}
@@ -390,10 +369,11 @@ static void __tusb_irq_path_func(dcd_rp2040_irq)(void)
#define PICO_SHARED_IRQ_HANDLER_HIGHEST_ORDER_PRIORITY 0xff
#endif
-void dcd_init (uint8_t rhport)
-{
+void dcd_init(uint8_t rhport) {
assert(rhport == 0);
+ TU_LOG(2, "Chip Version B%u\r\n", rp2040_chip_version());
+
// Reset hardware to default state
rp2040_usb_init();
@@ -405,7 +385,7 @@ void dcd_init (uint8_t rhport)
irq_add_shared_handler(USBCTRL_IRQ, dcd_rp2040_irq, PICO_SHARED_IRQ_HANDLER_HIGHEST_ORDER_PRIORITY);
// Init control endpoints
- tu_memclr(hw_endpoints[0], 2*sizeof(hw_endpoint_t));
+ tu_memclr(hw_endpoints[0], 2 * sizeof(hw_endpoint_t));
hw_endpoint_init(0x0, 64, TUSB_XFER_CONTROL);
hw_endpoint_init(0x80, 64, TUSB_XFER_CONTROL);
@@ -420,27 +400,37 @@ void dcd_init (uint8_t rhport)
// for the global interrupt enable...
// Note: Force VBUS detect cause disconnection not detectable
usb_hw->sie_ctrl = USB_SIE_CTRL_EP0_INT_1BUF_BITS;
- usb_hw->inte = USB_INTS_BUFF_STATUS_BITS | USB_INTS_BUS_RESET_BITS | USB_INTS_SETUP_REQ_BITS |
- USB_INTS_DEV_SUSPEND_BITS | USB_INTS_DEV_RESUME_FROM_HOST_BITS |
- (FORCE_VBUS_DETECT ? 0 : USB_INTS_DEV_CONN_DIS_BITS);
+ usb_hw->inte = USB_INTS_BUFF_STATUS_BITS | USB_INTS_BUS_RESET_BITS | USB_INTS_SETUP_REQ_BITS |
+ USB_INTS_DEV_SUSPEND_BITS | USB_INTS_DEV_RESUME_FROM_HOST_BITS |
+ (FORCE_VBUS_DETECT ? 0 : USB_INTS_DEV_CONN_DIS_BITS);
dcd_connect(rhport);
}
-void dcd_int_enable(__unused uint8_t rhport)
-{
- assert(rhport == 0);
- irq_set_enabled(USBCTRL_IRQ, true);
+bool dcd_deinit(uint8_t rhport) {
+ (void) rhport;
+
+ reset_non_control_endpoints();
+ irq_remove_handler(USBCTRL_IRQ, dcd_rp2040_irq);
+
+ // reset usb hardware into initial state
+ reset_block(RESETS_RESET_USBCTRL_BITS);
+ unreset_block_wait(RESETS_RESET_USBCTRL_BITS);
+
+ return true;
+}
+
+void dcd_int_enable(__unused uint8_t rhport) {
+ assert(rhport == 0);
+ irq_set_enabled(USBCTRL_IRQ, true);
}
-void dcd_int_disable(__unused uint8_t rhport)
-{
- assert(rhport == 0);
- irq_set_enabled(USBCTRL_IRQ, false);
+void dcd_int_disable(__unused uint8_t rhport) {
+ assert(rhport == 0);
+ irq_set_enabled(USBCTRL_IRQ, false);
}
-void dcd_set_address (__unused uint8_t rhport, __unused uint8_t dev_addr)
-{
+void dcd_set_address(__unused uint8_t rhport, __unused uint8_t dev_addr) {
assert(rhport == 0);
// Can't set device address in hardware until status xfer has complete
@@ -448,8 +438,7 @@ void dcd_set_address (__unused uint8_t rhport, __unused uint8_t dev_addr)
hw_endpoint_xfer(0x80, NULL, 0);
}
-void dcd_remote_wakeup(__unused uint8_t rhport)
-{
+void dcd_remote_wakeup(__unused uint8_t rhport) {
pico_info("dcd_remote_wakeup %d\n", rhport);
assert(rhport == 0);
@@ -460,100 +449,88 @@ void dcd_remote_wakeup(__unused uint8_t rhport)
}
// disconnect by disabling internal pull-up resistor on D+/D-
-void dcd_disconnect(__unused uint8_t rhport)
-{
+void dcd_disconnect(__unused uint8_t rhport) {
(void) rhport;
usb_hw_clear->sie_ctrl = USB_SIE_CTRL_PULLUP_EN_BITS;
}
// connect by enabling internal pull-up resistor on D+/D-
-void dcd_connect(__unused uint8_t rhport)
-{
+void dcd_connect(__unused uint8_t rhport) {
(void) rhport;
usb_hw_set->sie_ctrl = USB_SIE_CTRL_PULLUP_EN_BITS;
}
-void dcd_sof_enable(uint8_t rhport, bool en)
-{
+void dcd_sof_enable(uint8_t rhport, bool en) {
(void) rhport;
_sof_enable = en;
- if (en)
- {
+ if (en) {
usb_hw_set->inte = USB_INTS_DEV_SOF_BITS;
- }else
- {
+ }
+#if !TUD_OPT_RP2040_USB_DEVICE_UFRAME_FIX
+ else {
// Don't clear immediately if the SOF workaround is in use.
// The SOF handler will conditionally disable the interrupt.
-#if !TUD_OPT_RP2040_USB_DEVICE_UFRAME_FIX
usb_hw_clear->inte = USB_INTS_DEV_SOF_BITS;
-#endif
}
+#endif
}
/*------------------------------------------------------------------*/
/* DCD Endpoint port
*------------------------------------------------------------------*/
-void dcd_edpt0_status_complete(uint8_t rhport, tusb_control_request_t const * request)
-{
+void dcd_edpt0_status_complete(uint8_t rhport, tusb_control_request_t const* request) {
(void) rhport;
- if ( request->bmRequestType_bit.recipient == TUSB_REQ_RCPT_DEVICE &&
- request->bmRequestType_bit.type == TUSB_REQ_TYPE_STANDARD &&
- request->bRequest == TUSB_REQ_SET_ADDRESS )
- {
+ if (request->bmRequestType_bit.recipient == TUSB_REQ_RCPT_DEVICE &&
+ request->bmRequestType_bit.type == TUSB_REQ_TYPE_STANDARD &&
+ request->bRequest == TUSB_REQ_SET_ADDRESS) {
usb_hw->dev_addr_ctrl = (uint8_t) request->wValue;
}
}
-bool dcd_edpt_open (__unused uint8_t rhport, tusb_desc_endpoint_t const * desc_edpt)
-{
- assert(rhport == 0);
- hw_endpoint_init(desc_edpt->bEndpointAddress, tu_edpt_packet_size(desc_edpt), desc_edpt->bmAttributes.xfer);
- return true;
+bool dcd_edpt_open(__unused uint8_t rhport, tusb_desc_endpoint_t const* desc_edpt) {
+ assert(rhport == 0);
+ hw_endpoint_init(desc_edpt->bEndpointAddress, tu_edpt_packet_size(desc_edpt), desc_edpt->bmAttributes.xfer);
+ return true;
}
-void dcd_edpt_close_all (uint8_t rhport)
-{
+void dcd_edpt_close_all(uint8_t rhport) {
(void) rhport;
// may need to use EP Abort
reset_non_control_endpoints();
}
-bool dcd_edpt_xfer(__unused uint8_t rhport, uint8_t ep_addr, uint8_t * buffer, uint16_t total_bytes)
-{
- assert(rhport == 0);
- hw_endpoint_xfer(ep_addr, buffer, total_bytes);
- return true;
+bool dcd_edpt_xfer(__unused uint8_t rhport, uint8_t ep_addr, uint8_t* buffer, uint16_t total_bytes) {
+ assert(rhport == 0);
+ hw_endpoint_xfer(ep_addr, buffer, total_bytes);
+ return true;
}
-void dcd_edpt_stall(uint8_t rhport, uint8_t ep_addr)
-{
+void dcd_edpt_stall(uint8_t rhport, uint8_t ep_addr) {
(void) rhport;
- if ( tu_edpt_number(ep_addr) == 0 )
- {
+ if (tu_edpt_number(ep_addr) == 0) {
// A stall on EP0 has to be armed so it can be cleared on the next setup packet
- usb_hw_set->ep_stall_arm = (tu_edpt_dir(ep_addr) == TUSB_DIR_IN) ? USB_EP_STALL_ARM_EP0_IN_BITS : USB_EP_STALL_ARM_EP0_OUT_BITS;
+ usb_hw_set->ep_stall_arm = (tu_edpt_dir(ep_addr) == TUSB_DIR_IN) ? USB_EP_STALL_ARM_EP0_IN_BITS
+ : USB_EP_STALL_ARM_EP0_OUT_BITS;
}
- struct hw_endpoint *ep = hw_endpoint_get_by_addr(ep_addr);
+ struct hw_endpoint* ep = hw_endpoint_get_by_addr(ep_addr);
// stall and clear current pending buffer
// may need to use EP_ABORT
_hw_endpoint_buffer_control_set_value32(ep, USB_BUF_CTRL_STALL);
}
-void dcd_edpt_clear_stall(uint8_t rhport, uint8_t ep_addr)
-{
+void dcd_edpt_clear_stall(uint8_t rhport, uint8_t ep_addr) {
(void) rhport;
- if (tu_edpt_number(ep_addr))
- {
- struct hw_endpoint *ep = hw_endpoint_get_by_addr(ep_addr);
+ if (tu_edpt_number(ep_addr)) {
+ struct hw_endpoint* ep = hw_endpoint_get_by_addr(ep_addr);
// clear stall also reset toggle to DATA0, ready for next transfer
ep->next_pid = 0;
@@ -561,16 +538,13 @@ void dcd_edpt_clear_stall(uint8_t rhport, uint8_t ep_addr)
}
}
-void dcd_edpt_close (uint8_t rhport, uint8_t ep_addr)
-{
- (void) rhport;
-
- pico_trace("dcd_edpt_close %02x\n", ep_addr);
- hw_endpoint_close(ep_addr);
+void dcd_edpt_close(uint8_t rhport, uint8_t ep_addr) {
+ (void) rhport;
+ pico_trace("dcd_edpt_close %02x\r\n", ep_addr);
+ hw_endpoint_close(ep_addr);
}
-void __tusb_irq_path_func(dcd_int_handler)(uint8_t rhport)
-{
+void __tusb_irq_path_func(dcd_int_handler)(uint8_t rhport) {
(void) rhport;
dcd_rp2040_irq();
}
diff --git a/src/portable/raspberrypi/rp2040/hcd_rp2040.c b/src/portable/raspberrypi/rp2040/hcd_rp2040.c
index 5091fa907..222dbbbf0 100644
--- a/src/portable/raspberrypi/rp2040/hcd_rp2040.c
+++ b/src/portable/raspberrypi/rp2040/hcd_rp2040.c
@@ -27,7 +27,7 @@
#include "tusb_option.h"
-#if CFG_TUH_ENABLED && (CFG_TUSB_MCU == OPT_MCU_RP2040) && !CFG_TUH_RPI_PIO_USB
+#if CFG_TUH_ENABLED && (CFG_TUSB_MCU == OPT_MCU_RP2040) && !CFG_TUH_RPI_PIO_USB && !CFG_TUH_MAX3421
#include "pico.h"
#include "rp2040_usb.h"
@@ -113,7 +113,7 @@ static void __tusb_irq_path_func(_handle_buff_status_bit)(uint bit, struct hw_en
static void __tusb_irq_path_func(hw_handle_buff_status)(void)
{
uint32_t remaining_buffers = usb_hw->buf_status;
- pico_trace("buf_status 0x%08x\n", remaining_buffers);
+ pico_trace("buf_status 0x%08lx\n", remaining_buffers);
// Check EPX first
uint bit = 0b1;
@@ -219,7 +219,7 @@ static void __tusb_irq_path_func(hcd_rp2040_irq)(void)
if ( status & USB_INTS_BUFF_STATUS_BITS )
{
handled |= USB_INTS_BUFF_STATUS_BITS;
- TU_LOG(2, "Buffer complete\n");
+ TU_LOG(2, "Buffer complete\r\n");
hw_handle_buff_status();
}
@@ -227,7 +227,7 @@ static void __tusb_irq_path_func(hcd_rp2040_irq)(void)
{
handled |= USB_INTS_TRANS_COMPLETE_BITS;
usb_hw_clear->sie_status = USB_SIE_STATUS_TRANS_COMPLETE_BITS;
- TU_LOG(2, "Transfer complete\n");
+ TU_LOG(2, "Transfer complete\r\n");
hw_trans_complete();
}
@@ -252,9 +252,9 @@ static void __tusb_irq_path_func(hcd_rp2040_irq)(void)
}
}
-void __tusb_irq_path_func(hcd_int_handler)(uint8_t rhport)
-{
+void __tusb_irq_path_func(hcd_int_handler)(uint8_t rhport, bool in_isr) {
(void) rhport;
+ (void) in_isr;
hcd_rp2040_irq();
}
@@ -325,10 +325,8 @@ static void _hw_endpoint_init(struct hw_endpoint *ep, uint8_t dev_addr, uint8_t
ep->wMaxPacketSize = wMaxPacketSize;
ep->transfer_type = transfer_type;
- pico_trace("hw_endpoint_init dev %d ep %d %s xfer %d\n", ep->dev_addr, tu_edpt_number(ep->ep_addr),
- ep_dir_string[tu_edpt_dir(ep->ep_addr)], ep->transfer_type);
- pico_trace("dev %d ep %d %s setup buffer @ 0x%p\n", ep->dev_addr, tu_edpt_number(ep->ep_addr),
- ep_dir_string[tu_edpt_dir(ep->ep_addr)], ep->hw_data_buf);
+ pico_trace("hw_endpoint_init dev %d ep %02X xfer %d\n", ep->dev_addr, ep->ep_addr, ep->transfer_type);
+ pico_trace("dev %d ep %02X setup buffer @ 0x%p\n", ep->dev_addr, ep->ep_addr, ep->hw_data_buf);
uint dpram_offset = hw_data_offset(ep->hw_data_buf);
// Bits 0-5 should be 0
assert(!(dpram_offset & 0b111111));
@@ -343,7 +341,7 @@ static void _hw_endpoint_init(struct hw_endpoint *ep, uint8_t dev_addr, uint8_t
ep_reg |= (uint32_t) ((bmInterval - 1) << EP_CTRL_HOST_INTERRUPT_INTERVAL_LSB);
}
*ep->endpoint_control = ep_reg;
- pico_trace("endpoint control (0x%p) <- 0x%x\n", ep->endpoint_control, ep_reg);
+ pico_trace("endpoint control (0x%p) <- 0x%lx\n", ep->endpoint_control, ep_reg);
ep->configured = true;
if ( ep != &epx )
@@ -411,6 +409,16 @@ bool hcd_init(uint8_t rhport)
return true;
}
+bool hcd_deinit(uint8_t rhport) {
+ (void) rhport;
+
+ irq_remove_handler(USBCTRL_IRQ, hcd_rp2040_irq);
+ reset_block(RESETS_RESET_USBCTRL_BITS);
+ unreset_block_wait(RESETS_RESET_USBCTRL_BITS);
+
+ return true;
+}
+
void hcd_port_reset(uint8_t rhport)
{
(void) rhport;
@@ -625,8 +633,8 @@ bool hcd_setup_send(uint8_t rhport, uint8_t dev_addr, uint8_t const setup_packet
return true;
}
-bool hcd_edpt_clear_stall(uint8_t dev_addr, uint8_t ep_addr)
-{
+bool hcd_edpt_clear_stall(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr) {
+ (void) rhport;
(void) dev_addr;
(void) ep_addr;
diff --git a/src/portable/raspberrypi/rp2040/rp2040_usb.c b/src/portable/raspberrypi/rp2040/rp2040_usb.c
index 1f49665ff..1ca711c77 100644
--- a/src/portable/raspberrypi/rp2040/rp2040_usb.c
+++ b/src/portable/raspberrypi/rp2040/rp2040_usb.c
@@ -35,26 +35,18 @@
//--------------------------------------------------------------------+
// MACRO CONSTANT TYPEDEF PROTOTYPE
//--------------------------------------------------------------------+
-
-// Direction strings for debug
-const char *ep_dir_string[] = {
- "out",
- "in",
-};
-
-static void _hw_endpoint_xfer_sync(struct hw_endpoint *ep);
+static void _hw_endpoint_xfer_sync(struct hw_endpoint* ep);
#if TUD_OPT_RP2040_USB_DEVICE_UFRAME_FIX
- static bool e15_is_bulkin_ep(struct hw_endpoint *ep);
- static bool e15_is_critical_frame_period(struct hw_endpoint *ep);
+ static bool e15_is_bulkin_ep(struct hw_endpoint* ep);
+ static bool e15_is_critical_frame_period(struct hw_endpoint* ep);
#else
#define e15_is_bulkin_ep(x) (false)
#define e15_is_critical_frame_period(x) (false)
#endif
// if usb hardware is in host mode
-TU_ATTR_ALWAYS_INLINE static inline bool is_host_mode(void)
-{
+TU_ATTR_ALWAYS_INLINE static inline bool is_host_mode(void) {
return (usb_hw->main_ctrl & USB_MAIN_CTRL_HOST_NDEVICE_BITS) ? true : false;
}
@@ -62,8 +54,7 @@ TU_ATTR_ALWAYS_INLINE static inline bool is_host_mode(void)
// Implementation
//--------------------------------------------------------------------+
-void rp2040_usb_init(void)
-{
+void rp2040_usb_init(void) {
// Reset usb controller
reset_block(RESETS_RESET_USBCTRL_BITS);
unreset_block_wait(RESETS_RESET_USBCTRL_BITS);
@@ -88,46 +79,33 @@ void rp2040_usb_init(void)
TU_LOG2_INT(sizeof(hw_endpoint_t));
}
-void __tusb_irq_path_func(hw_endpoint_reset_transfer)(struct hw_endpoint *ep)
-{
+void __tusb_irq_path_func(hw_endpoint_reset_transfer)(struct hw_endpoint* ep) {
ep->active = false;
ep->remaining_len = 0;
ep->xferred_len = 0;
ep->user_buf = 0;
}
-void __tusb_irq_path_func(_hw_endpoint_buffer_control_update32)(struct hw_endpoint *ep, uint32_t and_mask, uint32_t or_mask)
-{
+void __tusb_irq_path_func(_hw_endpoint_buffer_control_update32)(struct hw_endpoint* ep, uint32_t and_mask,
+ uint32_t or_mask) {
uint32_t value = 0;
- if ( and_mask )
- {
+ if (and_mask) {
value = *ep->buffer_control & and_mask;
}
- if ( or_mask )
- {
+ if (or_mask) {
value |= or_mask;
- if ( or_mask & USB_BUF_CTRL_AVAIL )
- {
- if ( *ep->buffer_control & USB_BUF_CTRL_AVAIL )
- {
- panic("ep %d %s was already available", tu_edpt_number(ep->ep_addr), ep_dir_string[tu_edpt_dir(ep->ep_addr)]);
+ if (or_mask & USB_BUF_CTRL_AVAIL) {
+ if (*ep->buffer_control & USB_BUF_CTRL_AVAIL) {
+ panic("ep %02X was already available", ep->ep_addr);
}
*ep->buffer_control = value & ~USB_BUF_CTRL_AVAIL;
- // 12 cycle delay.. (should be good for 48*12Mhz = 576Mhz)
+ // 4.1.2.5.1 Con-current access: 12 cycles (should be good for 48*12Mhz = 576Mhz) after write to buffer control
// Don't need delay in host mode as host is in charge
-#if !CFG_TUH_ENABLED
- __asm volatile (
- "b 1f\n"
- "1: b 1f\n"
- "1: b 1f\n"
- "1: b 1f\n"
- "1: b 1f\n"
- "1: b 1f\n"
- "1:\n"
- : : : "memory");
-#endif
+ if ( !is_host_mode()) {
+ busy_wait_at_least_cycles(12);
+ }
}
}
@@ -135,10 +113,9 @@ void __tusb_irq_path_func(_hw_endpoint_buffer_control_update32)(struct hw_endpoi
}
// prepare buffer, return buffer control
-static uint32_t __tusb_irq_path_func(prepare_ep_buffer)(struct hw_endpoint *ep, uint8_t buf_id)
-{
+static uint32_t __tusb_irq_path_func(prepare_ep_buffer)(struct hw_endpoint* ep, uint8_t buf_id) {
uint16_t const buflen = tu_min16(ep->remaining_len, ep->wMaxPacketSize);
- ep->remaining_len = (uint16_t)(ep->remaining_len - buflen);
+ ep->remaining_len = (uint16_t) (ep->remaining_len - buflen);
uint32_t buf_ctrl = buflen | USB_BUF_CTRL_AVAIL;
@@ -146,10 +123,9 @@ static uint32_t __tusb_irq_path_func(prepare_ep_buffer)(struct hw_endpoint *ep,
buf_ctrl |= ep->next_pid ? USB_BUF_CTRL_DATA1_PID : USB_BUF_CTRL_DATA0_PID;
ep->next_pid ^= 1u;
- if ( !ep->rx )
- {
+ if (!ep->rx) {
// Copy data from user buffer to hw buffer
- memcpy(ep->hw_data_buf + buf_id*64, ep->user_buf, buflen);
+ memcpy(ep->hw_data_buf + buf_id * 64, ep->user_buf, buflen);
ep->user_buf += buflen;
// Mark as full
@@ -159,8 +135,7 @@ static uint32_t __tusb_irq_path_func(prepare_ep_buffer)(struct hw_endpoint *ep,
// Is this the last buffer? Only really matters for host mode. Will trigger
// the trans complete irq but also stop it polling. We only really care about
// trans complete for setup packets being sent
- if (ep->remaining_len == 0)
- {
+ if (ep->remaining_len == 0) {
buf_ctrl |= USB_BUF_CTRL_LAST;
}
@@ -170,8 +145,7 @@ static uint32_t __tusb_irq_path_func(prepare_ep_buffer)(struct hw_endpoint *ep,
}
// Prepare buffer control register value
-void __tusb_irq_path_func(hw_endpoint_start_next_buffer)(struct hw_endpoint *ep)
-{
+void __tusb_irq_path_func(hw_endpoint_start_next_buffer)(struct hw_endpoint* ep) {
uint32_t ep_ctrl = *ep->endpoint_control;
// always compute and start with buffer 0
@@ -186,8 +160,7 @@ void __tusb_irq_path_func(hw_endpoint_start_next_buffer)(struct hw_endpoint *ep)
bool const force_single = (!is_host && !tu_edpt_dir(ep->ep_addr)) ||
(is_host && tu_edpt_number(ep->ep_addr) != 0);
- if(ep->remaining_len && !force_single)
- {
+ if (ep->remaining_len && !force_single) {
// Use buffer 1 (double buffered) if there is still data
// TODO: Isochronous for buffer1 bit-field is different than CBI (control bulk, interrupt)
@@ -196,8 +169,7 @@ void __tusb_irq_path_func(hw_endpoint_start_next_buffer)(struct hw_endpoint *ep)
// Set endpoint control double buffered bit if needed
ep_ctrl &= ~EP_CTRL_INTERRUPT_PER_BUFFER;
ep_ctrl |= EP_CTRL_DOUBLE_BUFFERED_BITS | EP_CTRL_INTERRUPT_PER_DOUBLE_BUFFER;
- }else
- {
+ } else {
// Single buffered since 1 is enough
ep_ctrl &= ~(EP_CTRL_DOUBLE_BUFFERED_BITS | EP_CTRL_INTERRUPT_PER_DOUBLE_BUFFER);
ep_ctrl |= EP_CTRL_INTERRUPT_PER_BUFFER;
@@ -212,35 +184,28 @@ void __tusb_irq_path_func(hw_endpoint_start_next_buffer)(struct hw_endpoint *ep)
_hw_endpoint_buffer_control_set_value32(ep, buf_ctrl);
}
-void hw_endpoint_xfer_start(struct hw_endpoint *ep, uint8_t *buffer, uint16_t total_len)
-{
+void hw_endpoint_xfer_start(struct hw_endpoint* ep, uint8_t* buffer, uint16_t total_len) {
hw_endpoint_lock_update(ep, 1);
- if ( ep->active )
- {
+ if (ep->active) {
// TODO: Is this acceptable for interrupt packets?
- TU_LOG(1, "WARN: starting new transfer on already active ep %d %s\n", tu_edpt_number(ep->ep_addr),
- ep_dir_string[tu_edpt_dir(ep->ep_addr)]);
-
+ TU_LOG(1, "WARN: starting new transfer on already active ep %02X\r\n", ep->ep_addr);
hw_endpoint_reset_transfer(ep);
}
// Fill in info now that we're kicking off the hw
ep->remaining_len = total_len;
- ep->xferred_len = 0;
- ep->active = true;
- ep->user_buf = buffer;
+ ep->xferred_len = 0;
+ ep->active = true;
+ ep->user_buf = buffer;
- if ( e15_is_bulkin_ep(ep) )
- {
+ if (e15_is_bulkin_ep(ep)) {
usb_hw_set->inte = USB_INTS_DEV_SOF_BITS;
}
- if ( e15_is_critical_frame_period(ep) )
- {
+ if (e15_is_critical_frame_period(ep)) {
ep->pending = 1;
- } else
- {
+ } else {
hw_endpoint_start_next_buffer(ep);
}
@@ -248,35 +213,31 @@ void hw_endpoint_xfer_start(struct hw_endpoint *ep, uint8_t *buffer, uint16_t to
}
// sync endpoint buffer and return transferred bytes
-static uint16_t __tusb_irq_path_func(sync_ep_buffer)(struct hw_endpoint *ep, uint8_t buf_id)
-{
+static uint16_t __tusb_irq_path_func(sync_ep_buffer)(struct hw_endpoint* ep, uint8_t buf_id) {
uint32_t buf_ctrl = _hw_endpoint_buffer_control_get_value32(ep);
- if (buf_id) buf_ctrl = buf_ctrl >> 16;
+ if (buf_id) buf_ctrl = buf_ctrl >> 16;
uint16_t xferred_bytes = buf_ctrl & USB_BUF_CTRL_LEN_MASK;
- if ( !ep->rx )
- {
+ if (!ep->rx) {
// We are continuing a transfer here. If we are TX, we have successfully
// sent some data can increase the length we have sent
assert(!(buf_ctrl & USB_BUF_CTRL_FULL));
- ep->xferred_len = (uint16_t)(ep->xferred_len + xferred_bytes);
- }else
- {
+ ep->xferred_len = (uint16_t) (ep->xferred_len + xferred_bytes);
+ } else {
// If we have received some data, so can increase the length
// we have received AFTER we have copied it to the user buffer at the appropriate offset
assert(buf_ctrl & USB_BUF_CTRL_FULL);
- memcpy(ep->user_buf, ep->hw_data_buf + buf_id*64, xferred_bytes);
- ep->xferred_len = (uint16_t)(ep->xferred_len + xferred_bytes);
+ memcpy(ep->user_buf, ep->hw_data_buf + buf_id * 64, xferred_bytes);
+ ep->xferred_len = (uint16_t) (ep->xferred_len + xferred_bytes);
ep->user_buf += xferred_bytes;
}
// Short packet
- if (xferred_bytes < ep->wMaxPacketSize)
- {
- pico_trace(" Short packet on buffer %d with %u bytes\n", buf_id, xferred_bytes);
+ if (xferred_bytes < ep->wMaxPacketSize) {
+ pico_trace(" Short packet on buffer %d with %u bytes\r\n", buf_id, xferred_bytes);
// Reduce total length as this is last packet
ep->remaining_len = 0;
}
@@ -284,8 +245,7 @@ static uint16_t __tusb_irq_path_func(sync_ep_buffer)(struct hw_endpoint *ep, uin
return xferred_bytes;
}
-static void __tusb_irq_path_func(_hw_endpoint_xfer_sync) (struct hw_endpoint *ep)
-{
+static void __tusb_irq_path_func(_hw_endpoint_xfer_sync)(struct hw_endpoint* ep) {
// Update hw endpoint struct with info from hardware
// after a buff status interrupt
@@ -296,14 +256,11 @@ static void __tusb_irq_path_func(_hw_endpoint_xfer_sync) (struct hw_endpoint *ep
uint16_t buf0_bytes = sync_ep_buffer(ep, 0);
// sync buffer 1 if double buffered
- if ( (*ep->endpoint_control) & EP_CTRL_DOUBLE_BUFFERED_BITS )
- {
- if (buf0_bytes == ep->wMaxPacketSize)
- {
+ if ((*ep->endpoint_control) & EP_CTRL_DOUBLE_BUFFERED_BITS) {
+ if (buf0_bytes == ep->wMaxPacketSize) {
// sync buffer 1 if not short packet
sync_ep_buffer(ep, 1);
- }else
- {
+ } else {
// short packet on buffer 0
// TODO couldn't figure out how to handle this case which happen with net_lwip_webserver example
// At this time (currently trigger per 2 buffer), the buffer1 is probably filled with data from
@@ -335,14 +292,12 @@ static void __tusb_irq_path_func(_hw_endpoint_xfer_sync) (struct hw_endpoint *ep
}
// Returns true if transfer is complete
-bool __tusb_irq_path_func(hw_endpoint_xfer_continue)(struct hw_endpoint *ep)
-{
+bool __tusb_irq_path_func(hw_endpoint_xfer_continue)(struct hw_endpoint* ep) {
hw_endpoint_lock_update(ep, 1);
// Part way through a transfer
- if (!ep->active)
- {
- panic("Can't continue xfer on inactive ep %d %s", tu_edpt_number(ep->ep_addr), ep_dir_string[tu_edpt_dir(ep->ep_addr)]);
+ if (!ep->active) {
+ panic("Can't continue xfer on inactive ep %02X", ep->ep_addr);
}
// Update EP struct from hardware state
@@ -350,21 +305,15 @@ bool __tusb_irq_path_func(hw_endpoint_xfer_continue)(struct hw_endpoint *ep)
// Now we have synced our state with the hardware. Is there more data to transfer?
// If we are done then notify tinyusb
- if (ep->remaining_len == 0)
- {
- pico_trace("Completed transfer of %d bytes on ep %d %s\n",
- ep->xferred_len, tu_edpt_number(ep->ep_addr), ep_dir_string[tu_edpt_dir(ep->ep_addr)]);
+ if (ep->remaining_len == 0) {
+ pico_trace("Completed transfer of %d bytes on ep %02X\r\n", ep->xferred_len, ep->ep_addr);
// Notify caller we are done so it can notify the tinyusb stack
hw_endpoint_lock_update(ep, -1);
return true;
- }
- else
- {
- if ( e15_is_critical_frame_period(ep) )
- {
+ } else {
+ if (e15_is_critical_frame_period(ep)) {
ep->pending = 1;
- } else
- {
+ } else {
hw_endpoint_start_next_buffer(ep);
}
}
@@ -399,16 +348,14 @@ bool __tusb_irq_path_func(hw_endpoint_xfer_continue)(struct hw_endpoint *ep)
volatile uint32_t e15_last_sof = 0;
// check if Errata 15 is needed for this endpoint i.e device bulk-in
-static bool __tusb_irq_path_func(e15_is_bulkin_ep) (struct hw_endpoint *ep)
-{
+static bool __tusb_irq_path_func(e15_is_bulkin_ep)(struct hw_endpoint* ep) {
return (!is_host_mode() && tu_edpt_dir(ep->ep_addr) == TUSB_DIR_IN &&
ep->transfer_type == TUSB_XFER_BULK);
}
// check if we need to apply Errata 15 workaround : i.e
// Endpoint is BULK IN and is currently in critical frame period i.e 20% of last usb frame
-static bool __tusb_irq_path_func(e15_is_critical_frame_period) (struct hw_endpoint *ep)
-{
+static bool __tusb_irq_path_func(e15_is_critical_frame_period)(struct hw_endpoint* ep) {
TU_VERIFY(e15_is_bulkin_ep(ep));
/* Avoid the last 200us (uframe 6.5-7) of a frame, up to the EOF2 point.
@@ -419,11 +366,10 @@ static bool __tusb_irq_path_func(e15_is_critical_frame_period) (struct hw_endpoi
if (delta < 800 || delta > 998) {
return false;
}
- TU_LOG(3, "Avoiding sof %lu now %lu last %lu\n", (usb_hw->sof_rd + 1) & USB_SOF_RD_BITS, time_us_32(), e15_last_sof);
+ TU_LOG(3, "Avoiding sof %lu now %lu last %lu\r\n", (usb_hw->sof_rd + 1) & USB_SOF_RD_BITS, time_us_32(),
+ e15_last_sof);
return true;
}
-#endif
-
-
+#endif // TUD_OPT_RP2040_USB_DEVICE_UFRAME_FIX
#endif
diff --git a/src/portable/renesas/rusb2/dcd_rusb2.c b/src/portable/renesas/rusb2/dcd_rusb2.c
index 022c1b5b6..50400d1f5 100644
--- a/src/portable/renesas/rusb2/dcd_rusb2.c
+++ b/src/portable/renesas/rusb2/dcd_rusb2.c
@@ -27,13 +27,12 @@
#include "tusb_option.h"
+#if CFG_TUD_ENABLED && defined(TUP_USBIP_RUSB2)
+
// Since TinyUSB doesn't use SOF for now, and this interrupt too often (1ms interval)
// We disable SOF for now until needed later on
#define USE_SOF 0
-#if CFG_TUD_ENABLED && (TU_CHECK_MCU(OPT_MCU_RX63X, OPT_MCU_RX65X, OPT_MCU_RX72N) || \
- TU_CHECK_MCU(OPT_MCU_RAXXX))
-
#include "device/dcd.h"
#include "rusb2_type.h"
@@ -41,251 +40,280 @@
#include "rusb2_rx.h"
#elif TU_CHECK_MCU(OPT_MCU_RAXXX)
#include "rusb2_ra.h"
+ #if defined(RENESAS_CORTEX_M23)
+ #define D0FIFO CFIFO
+ #define D0FIFOSEL CFIFOSEL
+ #define D0FIFOSEL_b CFIFOSEL_b
+ #define D1FIFOSEL CFIFOSEL
+ #define D1FIFOSEL_b CFIFOSEL_b
+ #define D0FIFOCTR CFIFOCTR
+ #define D0FIFOCTR_b CFIFOCTR_b
+ #endif
+
#else
#error "Unsupported MCU"
#endif
-#define TU_RUSB2_DCD_DBG 0
-
//--------------------------------------------------------------------+
// MACRO TYPEDEF CONSTANT ENUM
//--------------------------------------------------------------------+
+enum {
+ PIPE_COUNT = 10,
+};
-/* LINK core registers */
-#if defined(__CCRX__)
- #define RUSB2 ((RUSB2_REG_t __evenaccess*) RUSB2_REG_BASE)
-#else
- #define RUSB2 ((RUSB2_REG_t*) RUSB2_REG_BASE)
-#endif
-
-/* Start of definition of packed structs (used by the CCRX toolchain) */
-TU_ATTR_PACKED_BEGIN
-TU_ATTR_BIT_FIELD_ORDER_BEGIN
-
-typedef struct TU_ATTR_PACKED {
- union {
- struct {
- uint16_t : 8;
- uint16_t TRCLR: 1;
- uint16_t TRENB: 1;
- uint16_t : 0;
- };
- uint16_t TRE;
- };
- uint16_t TRN;
-} reg_pipetre_t;
-
-typedef union TU_ATTR_PACKED {
- struct {
- volatile uint16_t u8: 8;
- volatile uint16_t : 0;
- };
- volatile uint16_t u16;
-} hw_fifo_t;
-
-typedef struct TU_ATTR_PACKED
-{
+typedef struct {
void *buf; /* the start address of a transfer data buffer */
uint16_t length; /* the number of bytes in the buffer */
uint16_t remaining; /* the number of bytes remaining in the buffer */
- struct {
- uint32_t ep : 8; /* an assigned endpoint address */
- uint32_t ff : 1; /* `buf` is TU_FUFO or POD */
- uint32_t : 0;
- };
-} pipe_state_t;
-TU_ATTR_PACKED_END // End of definition of packed structs (used by the CCRX toolchain)
-TU_ATTR_BIT_FIELD_ORDER_END
+ uint8_t ep; /* an assigned endpoint address */
+ uint8_t ff; /* `buf` is TU_FUFO or POD */
+} pipe_state_t;
typedef struct
{
- pipe_state_t pipe[10];
+ pipe_state_t pipe[PIPE_COUNT];
uint8_t ep[2][16]; /* a lookup table for a pipe index from an endpoint address */
} dcd_data_t;
+static dcd_data_t _dcd;
+
//--------------------------------------------------------------------+
// INTERNAL OBJECT & FUNCTION DECLARATION
//--------------------------------------------------------------------+
-static dcd_data_t _dcd;
-static unsigned find_pipe(unsigned xfer)
-{
- switch (xfer) {
- case TUSB_XFER_ISOCHRONOUS:
- for (int i = 1; i <= 2; ++i) {
- if (0 == _dcd.pipe[i].ep) return i;
- }
- break;
- case TUSB_XFER_BULK:
- for (int i = 3; i <= 5; ++i) {
- if (0 == _dcd.pipe[i].ep) return i;
- }
- for (int i = 1; i <= 1; ++i) {
- if (0 == _dcd.pipe[i].ep) return i;
- }
- break;
- case TUSB_XFER_INTERRUPT:
- for (int i = 6; i <= 9; ++i) {
- if (0 == _dcd.pipe[i].ep) return i;
- }
- break;
- default:
- /* No support for control transfer */
- break;
+
+// Transfer conditions specifiable for each pipe for most MCUs
+// - Pipe 0: Control transfer with 64-byte single buffer
+// - Pipes 1 and 2: Bulk or ISO
+// - Pipes 3 to 5: Bulk
+// - Pipes 6 to 9: Interrupt
+//
+// Note: for small mcu such as
+// - RA2A1: only pipe 4-7 are available, and no support for ISO
+static unsigned find_pipe(unsigned xfer_type) {
+ #if defined(BSP_MCU_GROUP_RA2A1)
+ const uint8_t pipe_idx_arr[4][2] = {
+ { 0, 0 }, // Control
+ { 0, 0 }, // Isochronous not supported
+ { 4, 5 }, // Bulk
+ { 6, 7 }, // Interrupt
+ };
+ #else
+ const uint8_t pipe_idx_arr[4][2] = {
+ { 0, 0 }, // Control
+ { 1, 2 }, // Isochronous
+ { 1, 5 }, // Bulk
+ { 6, 9 }, // Interrupt
+ };
+ #endif
+
+ // find backward since only pipe 1, 2 support ISO
+ const uint8_t idx_first = pipe_idx_arr[xfer_type][0];
+ const uint8_t idx_last = pipe_idx_arr[xfer_type][1];
+
+ for (int i = idx_last; i >= idx_first; i--) {
+ if (0 == _dcd.pipe[i].ep) return i;
}
+
return 0;
}
-static volatile uint16_t* get_pipectr(unsigned num)
-{
+static volatile uint16_t* get_pipectr(rusb2_reg_t *rusb, unsigned num) {
if (num) {
- return (volatile uint16_t*)&(RUSB2->PIPE_CTR[num - 1]);
+ return (volatile uint16_t*)&(rusb->PIPE_CTR[num - 1]);
} else {
- return (volatile uint16_t*)&(RUSB2->DCPCTR);
+ return (volatile uint16_t*)&(rusb->DCPCTR);
}
}
-static volatile reg_pipetre_t* get_pipetre(unsigned num)
-{
+static volatile reg_pipetre_t* get_pipetre(rusb2_reg_t *rusb, unsigned num) {
volatile reg_pipetre_t* tre = NULL;
if ((1 <= num) && (num <= 5)) {
- tre = (volatile reg_pipetre_t*)&(RUSB2->PIPE_TR[num - 1].E);
+ tre = (volatile reg_pipetre_t*)&(rusb->PIPE_TR[num - 1].E);
}
return tre;
}
-static volatile uint16_t* ep_addr_to_pipectr(uint8_t rhport, unsigned ep_addr)
-{
- (void)rhport;
+static volatile uint16_t* ep_addr_to_pipectr(uint8_t rhport, unsigned ep_addr) {
+ rusb2_reg_t *rusb = RUSB2_REG(rhport);
const unsigned epn = tu_edpt_number(ep_addr);
+
if (epn) {
const unsigned dir = tu_edpt_dir(ep_addr);
const unsigned num = _dcd.ep[dir][epn];
- return get_pipectr(num);
+ return get_pipectr(rusb, num);
} else {
- return get_pipectr(0);
+ return get_pipectr(rusb, 0);
}
}
-static unsigned edpt0_max_packet_size(void)
-{
- return RUSB2->DCPMAXP_b.MXPS;
+static uint16_t edpt0_max_packet_size(rusb2_reg_t* rusb) {
+ return rusb->DCPMAXP_b.MXPS;
}
-static unsigned edpt_max_packet_size(unsigned num)
-{
- RUSB2->PIPESEL = num;
- return RUSB2->PIPEMAXP;
+static uint16_t edpt_max_packet_size(rusb2_reg_t *rusb, unsigned num) {
+ rusb->PIPESEL = num;
+ return rusb->PIPEMAXP;
}
-static inline void pipe_wait_for_ready(unsigned num)
-{
- while (RUSB2->D0FIFOSEL_b.CURPIPE != num) ;
- while (!RUSB2->D0FIFOCTR_b.FRDY) ;
+static inline void pipe_wait_for_ready(rusb2_reg_t * rusb, unsigned num) {
+ while ( rusb->D0FIFOSEL_b.CURPIPE != num ) {}
+ while ( !rusb->D0FIFOCTR_b.FRDY ) {}
}
-static void pipe_write_packet(void *buf, volatile void *fifo, unsigned len)
+//--------------------------------------------------------------------+
+// Pipe FIFO
+//--------------------------------------------------------------------+
+
+// Write data buffer --> hw fifo
+static void pipe_write_packet(rusb2_reg_t * rusb, void *buf, volatile void *fifo, unsigned len)
{
- volatile hw_fifo_t *reg = (volatile hw_fifo_t*) fifo;
- uintptr_t addr = (uintptr_t)buf;
+ (void) rusb;
+
+ volatile uint16_t *ff16;
+ volatile uint8_t *ff8;
+
+ // Highspeed FIFO is 32-bit
+ if ( rusb2_is_highspeed_reg(rusb) ) {
+ // TODO 32-bit access for better performance
+ ff16 = (volatile uint16_t*) ((uintptr_t) fifo+2);
+ ff8 = (volatile uint8_t *) ((uintptr_t) fifo+3);
+ }else {
+ ff16 = (volatile uint16_t*) fifo;
+ ff8 = ((volatile uint8_t*) fifo);
+ }
+
+ uint8_t const* buf8 = (uint8_t const*) buf;
+
while (len >= 2) {
- reg->u16 = *(const uint16_t *)addr;
- addr += 2;
+ *ff16 = tu_unaligned_read16(buf8);
+ buf8 += 2;
len -= 2;
}
- if (len) {
- reg->u8 = *(const uint8_t *)addr;
- ++addr;
+
+ if (len > 0) {
+ *ff8 = *buf8;
+ ++buf8;
}
}
-static void pipe_read_packet(void *buf, volatile void *fifo, unsigned len)
+// Read data buffer <-- hw fifo
+static void pipe_read_packet(rusb2_reg_t * rusb, void *buf, volatile void *fifo, unsigned len)
{
- uint8_t *p = (uint8_t*)buf;
+ (void) rusb;
+
+ // TODO 16/32-bit access for better performance
+
+ uint8_t *p = (uint8_t*)buf;
volatile uint8_t *reg = (volatile uint8_t*)fifo; /* byte access is always at base register address */
while (len--) *p++ = *reg;
}
-static void pipe_read_write_packet_ff(tu_fifo_t *f, volatile void *fifo, unsigned len, unsigned dir)
-{
- static const struct {
- void (*tu_fifo_get_info)(tu_fifo_t *f, tu_fifo_buffer_info_t *info);
- void (*tu_fifo_advance)(tu_fifo_t *f, uint16_t n);
- void (*pipe_read_write)(void *buf, volatile void *fifo, unsigned len);
- } ops[] = {
- /* OUT */ {tu_fifo_get_write_info,tu_fifo_advance_write_pointer,pipe_read_packet},
- /* IN */ {tu_fifo_get_read_info, tu_fifo_advance_read_pointer, pipe_write_packet},
- };
+// Write data sw fifo --> hw fifo
+static void pipe_write_packet_ff(rusb2_reg_t * rusb, tu_fifo_t *f, volatile void *fifo, uint16_t total_len) {
+ tu_fifo_buffer_info_t info;
+ tu_fifo_get_read_info(f, &info);
+
+ uint16_t count = tu_min16(total_len, info.len_lin);
+ pipe_write_packet(rusb, info.ptr_lin, fifo, count);
+
+ uint16_t rem = total_len - count;
+ if (rem) {
+ rem = tu_min16(rem, info.len_wrap);
+ pipe_write_packet(rusb, info.ptr_wrap, fifo, rem);
+ count += rem;
+ }
+
+ tu_fifo_advance_read_pointer(f, count);
+}
+
+// Read data sw fifo <-- hw fifo
+static void pipe_read_packet_ff(rusb2_reg_t * rusb, tu_fifo_t *f, volatile void *fifo, uint16_t total_len) {
tu_fifo_buffer_info_t info;
- ops[dir].tu_fifo_get_info(f, &info);
- unsigned total_len = len;
- len = TU_MIN(total_len, info.len_lin);
- ops[dir].pipe_read_write(info.ptr_lin, fifo, len);
- unsigned rem = total_len - len;
+ tu_fifo_get_write_info(f, &info);
+
+ uint16_t count = tu_min16(total_len, info.len_lin);
+ pipe_read_packet(rusb, info.ptr_lin, fifo, count);
+
+ uint16_t rem = total_len - count;
if (rem) {
- len = TU_MIN(rem, info.len_wrap);
- ops[dir].pipe_read_write(info.ptr_wrap, fifo, len);
- rem -= len;
+ rem = tu_min16(rem, info.len_wrap);
+ pipe_read_packet(rusb, info.ptr_wrap, fifo, rem);
+ count += rem;
}
- ops[dir].tu_fifo_advance(f, total_len - rem);
+
+ tu_fifo_advance_write_pointer(f, count);
}
-static bool pipe0_xfer_in(void)
+//--------------------------------------------------------------------+
+// Pipe Transfer
+//--------------------------------------------------------------------+
+
+static bool pipe0_xfer_in(rusb2_reg_t* rusb)
{
pipe_state_t *pipe = &_dcd.pipe[0];
const unsigned rem = pipe->remaining;
+
if (!rem) {
pipe->buf = NULL;
return true;
}
- const unsigned mps = edpt0_max_packet_size();
- const unsigned len = TU_MIN(mps, rem);
+
+ const uint16_t mps = edpt0_max_packet_size(rusb);
+ const uint16_t len = tu_min16(mps, rem);
void *buf = pipe->buf;
+
if (len) {
if (pipe->ff) {
- pipe_read_write_packet_ff((tu_fifo_t*)buf, (volatile void*)&RUSB2->CFIFO, len, TUSB_DIR_IN);
+ pipe_write_packet_ff(rusb, (tu_fifo_t*)buf, (volatile void*)&rusb->CFIFO, len);
} else {
- pipe_write_packet(buf, (volatile void*)&RUSB2->CFIFO, len);
+ pipe_write_packet(rusb, buf, (volatile void*)&rusb->CFIFO, len);
pipe->buf = (uint8_t*)buf + len;
}
}
+
if (len < mps) {
- RUSB2->CFIFOCTR = RUSB2_CFIFOCTR_BVAL_Msk;
+ rusb->CFIFOCTR = RUSB2_CFIFOCTR_BVAL_Msk;
}
+
pipe->remaining = rem - len;
return false;
}
-static bool pipe0_xfer_out(void)
+static bool pipe0_xfer_out(rusb2_reg_t* rusb)
{
pipe_state_t *pipe = &_dcd.pipe[0];
const unsigned rem = pipe->remaining;
- const unsigned mps = edpt0_max_packet_size();
- const unsigned vld = RUSB2->CFIFOCTR_b.DTLN;
- const unsigned len = TU_MIN(TU_MIN(rem, mps), vld);
+ const uint16_t mps = edpt0_max_packet_size(rusb);
+ const uint16_t vld = rusb->CFIFOCTR_b.DTLN;
+ const uint16_t len = tu_min16(tu_min16(rem, mps), vld);
void *buf = pipe->buf;
+
if (len) {
if (pipe->ff) {
- pipe_read_write_packet_ff((tu_fifo_t*)buf, (volatile void*)&RUSB2->CFIFO, len, TUSB_DIR_OUT);
+ pipe_read_packet_ff(rusb, (tu_fifo_t*)buf, (volatile void*)&rusb->CFIFO, len);
} else {
- pipe_read_packet(buf, (volatile void*)&RUSB2->CFIFO, len);
+ pipe_read_packet(rusb, buf, (volatile void*)&rusb->CFIFO, len);
pipe->buf = (uint8_t*)buf + len;
}
}
+
if (len < mps) {
- RUSB2->CFIFOCTR = RUSB2_CFIFOCTR_BCLR_Msk;
+ rusb->CFIFOCTR = RUSB2_CFIFOCTR_BCLR_Msk;
}
+
pipe->remaining = rem - len;
if ((len < mps) || (rem == len)) {
pipe->buf = NULL;
return true;
}
+
return false;
}
-static bool pipe_xfer_in(unsigned num)
+static bool pipe_xfer_in(rusb2_reg_t* rusb, unsigned num)
{
pipe_state_t *pipe = &_dcd.pipe[num];
const unsigned rem = pipe->remaining;
@@ -295,119 +323,141 @@ static bool pipe_xfer_in(unsigned num)
return true;
}
- RUSB2->D0FIFOSEL = num | RUSB2_FIFOSEL_MBW_16BIT | (TU_BYTE_ORDER == TU_BIG_ENDIAN ? RUSB2_FIFOSEL_BIGEND : 0);
- const unsigned mps = edpt_max_packet_size(num);
- pipe_wait_for_ready(num);
- const unsigned len = TU_MIN(rem, mps);
+ rusb->D0FIFOSEL = num | RUSB2_FIFOSEL_MBW_16BIT | (TU_BYTE_ORDER == TU_BIG_ENDIAN ? RUSB2_FIFOSEL_BIGEND : 0);
+ const uint16_t mps = edpt_max_packet_size(rusb, num);
+ pipe_wait_for_ready(rusb, num);
+ const uint16_t len = tu_min16(rem, mps);
void *buf = pipe->buf;
+
if (len) {
if (pipe->ff) {
- pipe_read_write_packet_ff((tu_fifo_t*)buf, (volatile void*)&RUSB2->D0FIFO, len, TUSB_DIR_IN);
+ pipe_write_packet_ff(rusb, (tu_fifo_t*)buf, (volatile void*)&rusb->D0FIFO, len);
} else {
- pipe_write_packet(buf, (volatile void*)&RUSB2->D0FIFO, len);
+ pipe_write_packet(rusb, buf, (volatile void*)&rusb->D0FIFO, len);
pipe->buf = (uint8_t*)buf + len;
}
}
+
if (len < mps) {
- RUSB2->D0FIFOCTR = RUSB2_CFIFOCTR_BVAL_Msk;
+ rusb->D0FIFOCTR = RUSB2_CFIFOCTR_BVAL_Msk;
}
- RUSB2->D0FIFOSEL = 0;
- while (RUSB2->D0FIFOSEL_b.CURPIPE) {} /* if CURPIPE bits changes, check written value */
+
+ rusb->D0FIFOSEL = 0;
+ while (rusb->D0FIFOSEL_b.CURPIPE) {} /* if CURPIPE bits changes, check written value */
+
pipe->remaining = rem - len;
+
return false;
}
-static bool pipe_xfer_out(unsigned num)
+static bool pipe_xfer_out(rusb2_reg_t* rusb, unsigned num)
{
pipe_state_t *pipe = &_dcd.pipe[num];
- const unsigned rem = pipe->remaining;
+ const uint16_t rem = pipe->remaining;
+
+ rusb->D0FIFOSEL = num | RUSB2_FIFOSEL_MBW_8BIT;
+ const uint16_t mps = edpt_max_packet_size(rusb, num);
+ pipe_wait_for_ready(rusb, num);
- RUSB2->D0FIFOSEL = num | RUSB2_FIFOSEL_MBW_8BIT;
- const unsigned mps = edpt_max_packet_size(num);
- pipe_wait_for_ready(num);
- const unsigned vld = RUSB2->D0FIFOCTR_b.DTLN;
- const unsigned len = TU_MIN(TU_MIN(rem, mps), vld);
+ const uint16_t vld = rusb->D0FIFOCTR_b.DTLN;
+ const uint16_t len = tu_min16(tu_min16(rem, mps), vld);
void *buf = pipe->buf;
+
if (len) {
if (pipe->ff) {
- pipe_read_write_packet_ff((tu_fifo_t*)buf, (volatile void*)&RUSB2->D0FIFO, len, TUSB_DIR_OUT);
+ pipe_read_packet_ff(rusb, (tu_fifo_t*)buf, (volatile void*)&rusb->D0FIFO, len);
} else {
- pipe_read_packet(buf, (volatile void*)&RUSB2->D0FIFO, len);
+ pipe_read_packet(rusb, buf, (volatile void*)&rusb->D0FIFO, len);
pipe->buf = (uint8_t*)buf + len;
}
}
+
if (len < mps) {
- RUSB2->D0FIFOCTR = RUSB2_CFIFOCTR_BCLR_Msk;
+ rusb->D0FIFOCTR = RUSB2_CFIFOCTR_BCLR_Msk;
}
- RUSB2->D0FIFOSEL = 0;
- while (RUSB2->D0FIFOSEL_b.CURPIPE) {} /* if CURPIPE bits changes, check written value */
+
+ rusb->D0FIFOSEL = 0;
+ while (rusb->D0FIFOSEL_b.CURPIPE) {} /* if CURPIPE bits changes, check written value */
+
pipe->remaining = rem - len;
if ((len < mps) || (rem == len)) {
pipe->buf = NULL;
return NULL != buf;
}
+
return false;
}
static void process_setup_packet(uint8_t rhport)
{
- uint16_t setup_packet[4];
- if (0 == (RUSB2->INTSTS0 & RUSB2_INTSTS0_VALID_Msk)) return;
- RUSB2->CFIFOCTR = RUSB2_CFIFOCTR_BCLR_Msk;
- setup_packet[0] = tu_le16toh(RUSB2->USBREQ);
- setup_packet[1] = RUSB2->USBVAL;
- setup_packet[2] = RUSB2->USBINDX;
- setup_packet[3] = RUSB2->USBLENG;
- RUSB2->INTSTS0 = ~((uint16_t)RUSB2_INTSTS0_VALID_Msk);
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+ if (0 == (rusb->INTSTS0 & RUSB2_INTSTS0_VALID_Msk)) return;
+
+ rusb->CFIFOCTR = RUSB2_CFIFOCTR_BCLR_Msk;
+ uint16_t setup_packet[4] = {
+ tu_htole16(rusb->USBREQ),
+ tu_htole16(rusb->USBVAL),
+ tu_htole16(rusb->USBINDX),
+ tu_htole16(rusb->USBLENG)
+ };
+
+ rusb->INTSTS0 = ~((uint16_t) RUSB2_INTSTS0_VALID_Msk);
dcd_event_setup_received(rhport, (const uint8_t*)&setup_packet[0], true);
}
static void process_status_completion(uint8_t rhport)
{
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
uint8_t ep_addr;
/* Check the data stage direction */
- if (RUSB2->CFIFOSEL & RUSB2_CFIFOSEL_ISEL_WRITE) {
+ if (rusb->CFIFOSEL & RUSB2_CFIFOSEL_ISEL_WRITE) {
/* IN transfer. */
ep_addr = tu_edpt_addr(0, TUSB_DIR_IN);
} else {
/* OUT transfer. */
ep_addr = tu_edpt_addr(0, TUSB_DIR_OUT);
}
+
dcd_event_xfer_complete(rhport, ep_addr, 0, XFER_RESULT_SUCCESS, true);
}
-static bool process_pipe0_xfer(int buffer_type, uint8_t ep_addr, void* buffer, uint16_t total_bytes)
+static bool process_pipe0_xfer(rusb2_reg_t* rusb, int buffer_type, uint8_t ep_addr, void* buffer, uint16_t total_bytes)
{
/* configure fifo direction and access unit settings */
- if (ep_addr) { /* IN, 2 bytes */
- RUSB2->CFIFOSEL = RUSB2_CFIFOSEL_ISEL_WRITE | RUSB2_FIFOSEL_MBW_16BIT |
- (TU_BYTE_ORDER == TU_BIG_ENDIAN ? RUSB2_FIFOSEL_BIGEND : 0);
- while (!(RUSB2->CFIFOSEL & RUSB2_CFIFOSEL_ISEL_WRITE)) ;
- } else { /* OUT, a byte */
- RUSB2->CFIFOSEL = RUSB2_FIFOSEL_MBW_8BIT;
- while (RUSB2->CFIFOSEL & RUSB2_CFIFOSEL_ISEL_WRITE) ;
+ if ( ep_addr ) {
+ /* IN, 2 bytes */
+ rusb->CFIFOSEL = RUSB2_CFIFOSEL_ISEL_WRITE | RUSB2_FIFOSEL_MBW_16BIT |
+ (TU_BYTE_ORDER == TU_BIG_ENDIAN ? RUSB2_FIFOSEL_BIGEND : 0);
+ while ( !(rusb->CFIFOSEL & RUSB2_CFIFOSEL_ISEL_WRITE) ) {}
+ } else {
+ /* OUT, a byte */
+ rusb->CFIFOSEL = RUSB2_FIFOSEL_MBW_8BIT;
+ while ( rusb->CFIFOSEL & RUSB2_CFIFOSEL_ISEL_WRITE ) {}
}
pipe_state_t *pipe = &_dcd.pipe[0];
pipe->ff = buffer_type;
pipe->length = total_bytes;
pipe->remaining = total_bytes;
- if (total_bytes) {
- pipe->buf = buffer;
- if (ep_addr) { /* IN */
- TU_ASSERT(RUSB2->DCPCTR_b.BSTS && (RUSB2->USBREQ & 0x80));
- pipe0_xfer_in();
+
+ if ( total_bytes ) {
+ pipe->buf = buffer;
+ if ( ep_addr ) {
+ /* IN */
+ TU_ASSERT(rusb->DCPCTR_b.BSTS && (rusb->USBREQ & 0x80));
+ pipe0_xfer_in(rusb);
}
- RUSB2->DCPCTR = RUSB2_PIPE_CTR_PID_BUF;
+ rusb->DCPCTR = RUSB2_PIPE_CTR_PID_BUF;
} else {
/* ZLP */
- pipe->buf = NULL;
- RUSB2->DCPCTR = RUSB2_DCPCTR_CCPL_Msk | RUSB2_PIPE_CTR_PID_BUF;
+ pipe->buf = NULL;
+ rusb->DCPCTR = RUSB2_DCPCTR_CCPL_Msk | RUSB2_PIPE_CTR_PID_BUF;
}
+
return true;
}
-static bool process_pipe_xfer(int buffer_type, uint8_t ep_addr, void* buffer, uint16_t total_bytes)
+static bool process_pipe_xfer(rusb2_reg_t* rusb, int buffer_type, uint8_t ep_addr, void* buffer, uint16_t total_bytes)
{
const unsigned epn = tu_edpt_number(ep_addr);
const unsigned dir = tu_edpt_dir(ep_addr);
@@ -420,49 +470,55 @@ static bool process_pipe_xfer(int buffer_type, uint8_t ep_addr, void* buffer, ui
pipe->buf = buffer;
pipe->length = total_bytes;
pipe->remaining = total_bytes;
- if (dir) { /* IN */
+
+ if (dir) {
+ /* IN */
if (total_bytes) {
- pipe_xfer_in(num);
- } else { /* ZLP */
- RUSB2->D0FIFOSEL = num;
- pipe_wait_for_ready(num);
- RUSB2->D0FIFOCTR = RUSB2_CFIFOCTR_BVAL_Msk;
- RUSB2->D0FIFOSEL = 0;
- while (RUSB2->D0FIFOSEL_b.CURPIPE) ; /* if CURPIPE bits changes, check written value */
+ pipe_xfer_in(rusb, num);
+ } else {
+ /* ZLP */
+ rusb->D0FIFOSEL = num;
+ pipe_wait_for_ready(rusb, num);
+ rusb->D0FIFOCTR = RUSB2_CFIFOCTR_BVAL_Msk;
+ rusb->D0FIFOSEL = 0;
+ /* if CURPIPE bits changes, check written value */
+ while (rusb->D0FIFOSEL_b.CURPIPE) {}
}
} else {
-#if defined(__CCRX__)
- __evenaccess volatile reg_pipetre_t *pt = get_pipetre(num);
-#else
- volatile reg_pipetre_t *pt = get_pipetre(num);
-#endif
+ // OUT
+ volatile reg_pipetre_t *pt = get_pipetre(rusb, num);
+
if (pt) {
- const unsigned mps = edpt_max_packet_size(num);
- volatile uint16_t *ctr = get_pipectr(num);
+ const uint16_t mps = edpt_max_packet_size(rusb, num);
+ volatile uint16_t *ctr = get_pipectr(rusb, num);
+
if (*ctr & 0x3) *ctr = RUSB2_PIPE_CTR_PID_NAK;
+
pt->TRE = TU_BIT(8);
pt->TRN = (total_bytes + mps - 1) / mps;
pt->TRENB = 1;
*ctr = RUSB2_PIPE_CTR_PID_BUF;
}
}
- TU_LOG(TU_RUSB2_DCD_DBG ,"X %x %d %d\r\n", ep_addr, total_bytes, buffer_type);
+
+ // TU_LOG2("X %x %d %d\r\n", ep_addr, total_bytes, buffer_type);
return true;
}
-static bool process_edpt_xfer(int buffer_type, uint8_t ep_addr, void* buffer, uint16_t total_bytes)
+static bool process_edpt_xfer(rusb2_reg_t* rusb, int buffer_type, uint8_t ep_addr, void* buffer, uint16_t total_bytes)
{
const unsigned epn = tu_edpt_number(ep_addr);
if (0 == epn) {
- return process_pipe0_xfer(buffer_type, ep_addr, buffer, total_bytes);
+ return process_pipe0_xfer(rusb, buffer_type, ep_addr, buffer, total_bytes);
} else {
- return process_pipe_xfer(buffer_type, ep_addr, buffer, total_bytes);
+ return process_pipe_xfer(rusb, buffer_type, ep_addr, buffer, total_bytes);
}
}
static void process_pipe0_bemp(uint8_t rhport)
{
- bool completed = pipe0_xfer_in();
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+ bool completed = pipe0_xfer_in(rusb);
if (completed) {
pipe_state_t *pipe = &_dcd.pipe[0];
dcd_event_xfer_complete(rhport, tu_edpt_addr(0, TUSB_DIR_IN),
@@ -472,62 +528,94 @@ static void process_pipe0_bemp(uint8_t rhport)
static void process_pipe_brdy(uint8_t rhport, unsigned num)
{
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
pipe_state_t *pipe = &_dcd.pipe[num];
const unsigned dir = tu_edpt_dir(pipe->ep);
bool completed;
- if (dir) { /* IN */
- completed = pipe_xfer_in(num);
+ if (dir) {
+ /* IN */
+ completed = pipe_xfer_in(rusb, num);
} else {
+ // OUT
if (num) {
- completed = pipe_xfer_out(num);
+ completed = pipe_xfer_out(rusb, num);
} else {
- completed = pipe0_xfer_out();
+ completed = pipe0_xfer_out(rusb);
}
}
if (completed) {
dcd_event_xfer_complete(rhport, pipe->ep,
pipe->length - pipe->remaining,
XFER_RESULT_SUCCESS, true);
- TU_LOG(TU_RUSB2_DCD_DBG, "C %d %d\r\n", num, pipe->length - pipe->remaining);
+ // TU_LOG1("C %d %d\r\n", num, pipe->length - pipe->remaining);
}
}
static void process_bus_reset(uint8_t rhport)
{
- RUSB2->BEMPENB = 1;
- RUSB2->BRDYENB = 1;
- RUSB2->CFIFOCTR = RUSB2_CFIFOCTR_BCLR_Msk;
- RUSB2->D0FIFOSEL = 0;
- while (RUSB2->D0FIFOSEL_b.CURPIPE) ; /* if CURPIPE bits changes, check written value */
- RUSB2->D1FIFOSEL = 0;
- while (RUSB2->D1FIFOSEL_b.CURPIPE) ; /* if CURPIPE bits changes, check written value */
- volatile uint16_t *ctr = (volatile uint16_t*)((uintptr_t) (&RUSB2->PIPE_CTR[0]));
- volatile uint16_t *tre = (volatile uint16_t*)((uintptr_t) (&RUSB2->PIPE_TR[0].E));
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+
+ rusb->BEMPENB = 1;
+ rusb->BRDYENB = 1;
+ rusb->CFIFOCTR = RUSB2_CFIFOCTR_BCLR_Msk;
+
+ rusb->D0FIFOSEL = 0;
+ while (rusb->D0FIFOSEL_b.CURPIPE) {} /* if CURPIPE bits changes, check written value */
+
+ rusb->D1FIFOSEL = 0;
+ while (rusb->D1FIFOSEL_b.CURPIPE) {} /* if CURPIPE bits changes, check written value */
+
+ volatile uint16_t *ctr = (volatile uint16_t*)((uintptr_t) (&rusb->PIPE_CTR[0]));
+ volatile uint16_t *tre = (volatile uint16_t*)((uintptr_t) (&rusb->PIPE_TR[0].E));
+
for (int i = 1; i <= 5; ++i) {
- RUSB2->PIPESEL = i;
- RUSB2->PIPECFG = 0;
+ rusb->PIPESEL = i;
+ rusb->PIPECFG = 0;
*ctr = RUSB2_PIPE_CTR_ACLRM_Msk;
*ctr = 0;
++ctr;
*tre = TU_BIT(8);
tre += 2;
}
+
for (int i = 6; i <= 9; ++i) {
- RUSB2->PIPESEL = i;
- RUSB2->PIPECFG = 0;
+ rusb->PIPESEL = i;
+ rusb->PIPECFG = 0;
*ctr = RUSB2_PIPE_CTR_ACLRM_Msk;
*ctr = 0;
++ctr;
}
tu_varclr(&_dcd);
- dcd_event_bus_reset(rhport, TUSB_SPEED_FULL, true);
+
+ TU_LOG3("Bus reset, RHST = %u\r\n", rusb->DVSTCTR0_b.RHST);
+ tusb_speed_t speed;
+ switch(rusb->DVSTCTR0 & RUSB2_DVSTCTR0_RHST_Msk) {
+ case RUSB2_DVSTCTR0_RHST_LS:
+ speed = TUSB_SPEED_LOW;
+ break;
+
+ case RUSB2_DVSTCTR0_RHST_FS:
+ speed = TUSB_SPEED_FULL;
+ break;
+
+ case RUSB2_DVSTCTR0_RHST_HS:
+ speed = TUSB_SPEED_HIGH;
+ break;
+
+ default:
+ TU_ASSERT(false, );
+ }
+
+ dcd_event_bus_reset(rhport, speed, true);
}
static void process_set_address(uint8_t rhport)
{
- const uint32_t addr = RUSB2->USBADDR_b.USBADDR;
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+ const uint16_t addr = rusb->USBADDR_b.USBADDR;
if (!addr) return;
+
const tusb_control_request_t setup_packet = {
#if defined(__CCRX__)
.bmRequestType = { 0 }, /* Note: CCRX needs the braces over this struct member */
@@ -538,8 +626,9 @@ static void process_set_address(uint8_t rhport)
.wValue = addr,
.wIndex = 0,
.wLength = 0,
- };
- dcd_event_setup_received(rhport, (const uint8_t*)&setup_packet, true);
+ };
+
+ dcd_event_setup_received(rhport, (const uint8_t *) &setup_packet, true);
}
/*------------------------------------------------------------------*/
@@ -572,73 +661,97 @@ static void enable_interrupt(uint32_t pswi)
void dcd_init(uint8_t rhport)
{
- (void)rhport;
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+ rusb2_module_start(rhport, true);
-#if 0 // previously present in the rx driver before generalization
- uint32_t pswi = disable_interrupt();
- SYSTEM.PRCR.WORD = SYSTEM_PRCR_PRKEY | SYSTEM_PRCR_PRC1;
- MSTP(USB0) = 0;
- SYSTEM.PRCR.WORD = SYSTEM_PRCR_PRKEY;
- enable_interrupt(pswi);
-#endif
+#ifdef RUSB2_SUPPORT_HIGHSPEED
+ if ( rusb2_is_highspeed_rhport(rhport) ) {
+ rusb->SYSCFG_b.HSE = 1;
+
+ // leave CLKSEL as default (0x11) 24Mhz
+
+ // Power and reset UTMI Phy
+ uint16_t physet = (rusb->PHYSET | RUSB2_PHYSET_PLLRESET_Msk) & ~RUSB2_PHYSET_DIRPD_Msk;
+ rusb->PHYSET = physet;
+ R_BSP_SoftwareDelay((uint32_t) 1, BSP_DELAY_UNITS_MILLISECONDS);
+ rusb->PHYSET_b.PLLRESET = 0;
+
+ // set UTMI to operating mode and wait for PLL lock confirmation
+ rusb->LPSTS_b.SUSPENDM = 1;
+ while (!rusb->PLLSTA_b.PLLLOCK) {}
+
+ rusb->SYSCFG_b.DRPD = 0;
+ rusb->SYSCFG_b.USBE = 1;
+
+ // Set CPU bus wait time (fine tunne later)
+ // rusb2->BUSWAIT |= 0x0F00U;
- RUSB2->SYSCFG_b.SCKE = 1;
- while (!RUSB2->SYSCFG_b.SCKE) ;
- RUSB2->SYSCFG_b.DRPD = 0;
- RUSB2->SYSCFG_b.DCFM = 0;
- RUSB2->SYSCFG_b.USBE = 1;
+ rusb->PHYSET_b.REPSEL = 1;
+ } else
+#endif
+ {
+ rusb->SYSCFG_b.SCKE = 1;
+ while (!rusb->SYSCFG_b.SCKE) {}
+ rusb->SYSCFG_b.DRPD = 0;
+ rusb->SYSCFG_b.DCFM = 0;
+ rusb->SYSCFG_b.USBE = 1;
- // MCU specific PHY init
- rusb2_phy_init();
+ // MCU specific PHY init
+ rusb2_phy_init();
- RUSB2->PHYSLEW = 0x5;
- RUSB2->DPUSR0R_FS_b.FIXPHY0 = 0u; /* USB_BASE Transceiver Output fixed */
+ rusb->PHYSLEW = 0x5;
+ rusb->DPUSR0R_FS_b.FIXPHY0 = 0u; /* USB_BASE Transceiver Output fixed */
+ }
/* Setup default control pipe */
- RUSB2->DCPMAXP_b.MXPS = 64;
- RUSB2->INTENB0 = RUSB2_INTSTS0_VBINT_Msk | RUSB2_INTSTS0_BRDY_Msk | RUSB2_INTSTS0_BEMP_Msk |
- RUSB2_INTSTS0_DVST_Msk | RUSB2_INTSTS0_CTRT_Msk | (USE_SOF ? RUSB2_INTSTS0_SOFR_Msk : 0) |
- RUSB2_INTSTS0_RESM_Msk;
- RUSB2->BEMPENB = 1;
- RUSB2->BRDYENB = 1;
+ rusb->DCPMAXP_b.MXPS = 64;
+
+ rusb->INTSTS0 = 0;
+ rusb->INTENB0 = RUSB2_INTSTS0_VBINT_Msk | RUSB2_INTSTS0_BRDY_Msk | RUSB2_INTSTS0_BEMP_Msk |
+ RUSB2_INTSTS0_DVST_Msk | RUSB2_INTSTS0_CTRT_Msk | (USE_SOF ? RUSB2_INTSTS0_SOFR_Msk : 0) |
+ RUSB2_INTSTS0_RESM_Msk;
+ rusb->BEMPENB = 1;
+ rusb->BRDYENB = 1;
- if (RUSB2->INTSTS0_b.VBSTS) {
+ // If VBUS (detect) pin is not used, application need to call tud_connect() manually after tud_init()
+ if (rusb->INTSTS0_b.VBSTS) {
dcd_connect(rhport);
}
}
-void dcd_int_enable(uint8_t rhport)
-{
+void dcd_int_enable(uint8_t rhport) {
rusb2_int_enable(rhport);
}
-void dcd_int_disable(uint8_t rhport)
-{
+void dcd_int_disable(uint8_t rhport) {
rusb2_int_disable(rhport);
}
-void dcd_set_address(uint8_t rhport, uint8_t dev_addr)
-{
- (void)rhport;
- (void)dev_addr;
+void dcd_set_address(uint8_t rhport, uint8_t dev_addr) {
+ (void) rhport;
+ (void) dev_addr;
}
void dcd_remote_wakeup(uint8_t rhport)
{
- (void)rhport;
- RUSB2->DVSTCTR0_b.WKUP = 1;
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+ rusb->DVSTCTR0_b.WKUP = 1;
}
void dcd_connect(uint8_t rhport)
{
- (void)rhport;
- RUSB2->SYSCFG_b.DPRPU = 1;
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+
+ if ( rusb2_is_highspeed_rhport(rhport)) {
+ rusb->SYSCFG_b.CNEN = 1;
+ }
+ rusb->SYSCFG_b.DPRPU = 1;
}
void dcd_disconnect(uint8_t rhport)
{
- (void)rhport;
- RUSB2->SYSCFG_b.DPRPU = 0;
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+ rusb->SYSCFG_b.DPRPU = 0;
}
void dcd_sof_enable(uint8_t rhport, bool en)
@@ -656,30 +769,43 @@ bool dcd_edpt_open(uint8_t rhport, tusb_desc_endpoint_t const * ep_desc)
{
(void)rhport;
+ rusb2_reg_t * rusb = RUSB2_REG(rhport);
const unsigned ep_addr = ep_desc->bEndpointAddress;
const unsigned epn = tu_edpt_number(ep_addr);
const unsigned dir = tu_edpt_dir(ep_addr);
const unsigned xfer = ep_desc->bmAttributes.xfer;
const unsigned mps = tu_edpt_packet_size(ep_desc);
- if (xfer == TUSB_XFER_ISOCHRONOUS && mps > 256) {
- /* USBa supports up to 256 bytes */
- return false;
+
+ if (xfer == TUSB_XFER_ISOCHRONOUS) {
+ // Fullspeed ISO is limit to 256 bytes
+ if ( !rusb2_is_highspeed_rhport(rhport) && mps > 256) {
+ return false;
+ }
}
const unsigned num = find_pipe(xfer);
- if (!num) return false;
+ TU_ASSERT(num);
+
_dcd.pipe[num].ep = ep_addr;
_dcd.ep[dir][epn] = num;
/* setup pipe */
dcd_int_disable(rhport);
- RUSB2->PIPESEL = num;
- RUSB2->PIPEMAXP = mps;
- volatile uint16_t *ctr = get_pipectr(num);
+
+ if ( rusb2_is_highspeed_rhport(rhport) ) {
+ // FIXME shouldn't be after pipe selection and config, also the BUFNMB should be changed
+ // depending on the allocation scheme
+ rusb->PIPEBUF = 0x7C08;
+ }
+
+ rusb->PIPESEL = num;
+ rusb->PIPEMAXP = mps;
+ volatile uint16_t *ctr = get_pipectr(rusb, num);
*ctr = RUSB2_PIPE_CTR_ACLRM_Msk | RUSB2_PIPE_CTR_SQCLR_Msk;
*ctr = 0;
unsigned cfg = (dir << 4) | epn;
+
if (xfer == TUSB_XFER_BULK) {
cfg |= (RUSB2_PIPECFG_TYPE_BULK | RUSB2_PIPECFG_SHTNAK_Msk | RUSB2_PIPECFG_DBLB_Msk);
} else if (xfer == TUSB_XFER_INTERRUPT) {
@@ -687,13 +813,16 @@ bool dcd_edpt_open(uint8_t rhport, tusb_desc_endpoint_t const * ep_desc)
} else {
cfg |= (RUSB2_PIPECFG_TYPE_ISO | RUSB2_PIPECFG_DBLB_Msk);
}
- RUSB2->PIPECFG = cfg;
- RUSB2->BRDYSTS = 0x1FFu ^ TU_BIT(num);
- RUSB2->BRDYENB |= TU_BIT(num);
+
+ rusb->PIPECFG = cfg;
+ rusb->BRDYSTS = 0x3FFu ^ TU_BIT(num);
+ rusb->BRDYENB |= TU_BIT(num);
+
if (dir || (xfer != TUSB_XFER_BULK)) {
*ctr = RUSB2_PIPE_CTR_PID_BUF;
}
- TU_LOG(TU_RUSB2_DCD_DBG, "O %d %x %x\r\n", RUSB2->PIPESEL, RUSB2->PIPECFG, RUSB2->PIPEMAXP);
+
+ // TU_LOG1("O %d %x %x\r\n", rusb->PIPESEL, rusb->PIPECFG, rusb->PIPEMAXP);
dcd_int_enable(rhport);
return true;
@@ -713,26 +842,28 @@ void dcd_edpt_close_all(uint8_t rhport)
void dcd_edpt_close(uint8_t rhport, uint8_t ep_addr)
{
- (void)rhport;
+ rusb2_reg_t * rusb = RUSB2_REG(rhport);
const unsigned epn = tu_edpt_number(ep_addr);
const unsigned dir = tu_edpt_dir(ep_addr);
const unsigned num = _dcd.ep[dir][epn];
- RUSB2->BRDYENB &= ~TU_BIT(num);
- volatile uint16_t *ctr = get_pipectr(num);
+ rusb->BRDYENB &= ~TU_BIT(num);
+ volatile uint16_t *ctr = get_pipectr(rusb, num);
*ctr = 0;
- RUSB2->PIPESEL = num;
- RUSB2->PIPECFG = 0;
+ rusb->PIPESEL = num;
+ rusb->PIPECFG = 0;
_dcd.pipe[num].ep = 0;
_dcd.ep[dir][epn] = 0;
}
bool dcd_edpt_xfer(uint8_t rhport, uint8_t ep_addr, uint8_t* buffer, uint16_t total_bytes)
{
- bool r;
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+
dcd_int_disable(rhport);
- r = process_edpt_xfer(0, ep_addr, buffer, total_bytes);
+ bool r = process_edpt_xfer(rusb, 0, ep_addr, buffer, total_bytes);
dcd_int_enable(rhport);
+
return r;
}
@@ -740,10 +871,12 @@ bool dcd_edpt_xfer_fifo(uint8_t rhport, uint8_t ep_addr, tu_fifo_t * ff, uint16_
{
// USB buffers always work in bytes so to avoid unnecessary divisions we demand item_size = 1
TU_ASSERT(ff->item_size == 1);
- bool r;
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+
dcd_int_disable(rhport);
- r = process_edpt_xfer(1, ep_addr, ff, total_bytes);
+ bool r = process_edpt_xfer(rusb, 1, ep_addr, ff, total_bytes);
dcd_int_enable(rhport);
+
return r;
}
@@ -760,8 +893,10 @@ void dcd_edpt_stall(uint8_t rhport, uint8_t ep_addr)
void dcd_edpt_clear_stall(uint8_t rhport, uint8_t ep_addr)
{
+ rusb2_reg_t * rusb = RUSB2_REG(rhport);
volatile uint16_t *ctr = ep_addr_to_pipectr(rhport, ep_addr);
if (!ctr) return;
+
dcd_int_disable(rhport);
*ctr = RUSB2_PIPE_CTR_SQCLR_Msk;
@@ -769,8 +904,8 @@ void dcd_edpt_clear_stall(uint8_t rhport, uint8_t ep_addr)
*ctr = RUSB2_PIPE_CTR_PID_BUF;
} else {
const unsigned num = _dcd.ep[0][tu_edpt_number(ep_addr)];
- RUSB2->PIPESEL = num;
- if (RUSB2->PIPECFG_b.TYPE != 1) {
+ rusb->PIPESEL = num;
+ if (rusb->PIPECFG_b.TYPE != 1) {
*ctr = RUSB2_PIPE_CTR_PID_BUF;
}
}
@@ -780,87 +915,110 @@ void dcd_edpt_clear_stall(uint8_t rhport, uint8_t ep_addr)
//--------------------------------------------------------------------+
// ISR
//--------------------------------------------------------------------+
+
+#if defined(__CCRX__)
+TU_ATTR_ALWAYS_INLINE static inline unsigned __builtin_ctz(unsigned int value) {
+ unsigned int count = 0;
+ while ((value & 1) == 0) {
+ value >>= 1;
+ count++;
+ }
+ return count;
+}
+#endif
+
void dcd_int_handler(uint8_t rhport)
{
- (void)rhport;
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+
+ uint16_t is0 = rusb->INTSTS0;
- unsigned is0 = RUSB2->INTSTS0;
/* clear active bits except VALID (don't write 0 to already cleared bits according to the HW manual) */
- RUSB2->INTSTS0 = ~((RUSB2_INTSTS0_CTRT_Msk | RUSB2_INTSTS0_DVST_Msk | RUSB2_INTSTS0_SOFR_Msk |
- RUSB2_INTSTS0_RESM_Msk | RUSB2_INTSTS0_VBINT_Msk) & is0) | RUSB2_INTSTS0_VALID_Msk;
- if (is0 & RUSB2_INTSTS0_VBINT_Msk) {
- if (RUSB2->INTSTS0_b.VBSTS) {
+ rusb->INTSTS0 = ~((RUSB2_INTSTS0_CTRT_Msk | RUSB2_INTSTS0_DVST_Msk | RUSB2_INTSTS0_SOFR_Msk |
+ RUSB2_INTSTS0_RESM_Msk | RUSB2_INTSTS0_VBINT_Msk) & is0) | RUSB2_INTSTS0_VALID_Msk;
+
+ // VBUS changes
+ if ( is0 & RUSB2_INTSTS0_VBINT_Msk ) {
+ if ( rusb->INTSTS0_b.VBSTS ) {
dcd_connect(rhport);
} else {
dcd_disconnect(rhport);
}
}
- if (is0 & RUSB2_INTSTS0_RESM_Msk) {
+
+ // Resumed
+ if ( is0 & RUSB2_INTSTS0_RESM_Msk ) {
dcd_event_bus_signal(rhport, DCD_EVENT_RESUME, true);
-#if (0==USE_SOF)
- RUSB2->INTENB0_b.SOFE = 0;
+#if (0 == USE_SOF)
+ rusb->INTENB0_b.SOFE = 0;
#endif
}
- if ((is0 & RUSB2_INTSTS0_SOFR_Msk) && RUSB2->INTENB0_b.SOFE) {
+
+ // SOF received
+ if ( (is0 & RUSB2_INTSTS0_SOFR_Msk) && rusb->INTENB0_b.SOFE ) {
// USBD will exit suspended mode when SOF event is received
dcd_event_bus_signal(rhport, DCD_EVENT_SOF, true);
#if (0 == USE_SOF)
- RUSB2->INTENB0_b.SOFE = 0;
+ rusb->INTENB0_b.SOFE = 0;
#endif
}
- if (is0 & RUSB2_INTSTS0_DVST_Msk) {
+
+ // Device state changes
+ if ( is0 & RUSB2_INTSTS0_DVST_Msk ) {
switch (is0 & RUSB2_INTSTS0_DVSQ_Msk) {
- case RUSB2_INTSTS0_DVSQ_STATE_DEF:
- process_bus_reset(rhport);
- break;
- case RUSB2_INTSTS0_DVSQ_STATE_ADDR:
- process_set_address(rhport);
- break;
- case RUSB2_INTSTS0_DVSQ_STATE_SUSP0:
- case RUSB2_INTSTS0_DVSQ_STATE_SUSP1:
- case RUSB2_INTSTS0_DVSQ_STATE_SUSP2:
- case RUSB2_INTSTS0_DVSQ_STATE_SUSP3:
- dcd_event_bus_signal(rhport, DCD_EVENT_SUSPEND, true);
-#if (0==USE_SOF)
- RUSB2->INTENB0_b.SOFE = 1;
+ case RUSB2_INTSTS0_DVSQ_STATE_DEF:
+ process_bus_reset(rhport);
+ break;
+
+ case RUSB2_INTSTS0_DVSQ_STATE_ADDR:
+ process_set_address(rhport);
+ break;
+
+ case RUSB2_INTSTS0_DVSQ_STATE_SUSP0:
+ case RUSB2_INTSTS0_DVSQ_STATE_SUSP1:
+ case RUSB2_INTSTS0_DVSQ_STATE_SUSP2:
+ case RUSB2_INTSTS0_DVSQ_STATE_SUSP3:
+ dcd_event_bus_signal(rhport, DCD_EVENT_SUSPEND, true);
+#if (0 == USE_SOF)
+ rusb->INTENB0_b.SOFE = 1;
#endif
- default:
- break;
+
+ default: break;
}
}
- if (is0 & RUSB2_INTSTS0_CTRT_Msk) {
- if (is0 & RUSB2_INTSTS0_CTSQ_CTRL_RDATA) {
+
+// if ( is0 & RUSB2_INTSTS0_NRDY_Msk ) {
+// rusb->NRDYSTS = 0;
+// }
+
+ // Control transfer stage changes
+ if ( is0 & RUSB2_INTSTS0_CTRT_Msk ) {
+ if ( is0 & RUSB2_INTSTS0_CTSQ_CTRL_RDATA ) {
/* A setup packet has been received. */
process_setup_packet(rhport);
- } else if (0 == (is0 & RUSB2_INTSTS0_CTSQ_Msk)) {
+ } else if ( 0 == (is0 & RUSB2_INTSTS0_CTSQ_Msk) ) {
/* A ZLP has been sent/received. */
process_status_completion(rhport);
}
}
- if (is0 & RUSB2_INTSTS0_BEMP_Msk) {
- const unsigned s = RUSB2->BEMPSTS;
- RUSB2->BEMPSTS = 0;
- if (s & 1) {
+
+ // Buffer empty
+ if ( is0 & RUSB2_INTSTS0_BEMP_Msk ) {
+ const uint16_t s = rusb->BEMPSTS;
+ rusb->BEMPSTS = 0;
+ if ( s & 1 ) {
process_pipe0_bemp(rhport);
}
}
- if (is0 & RUSB2_INTSTS0_BRDY_Msk) {
- const unsigned m = RUSB2->BRDYENB;
- unsigned s = RUSB2->BRDYSTS & m;
+
+ // Buffer ready
+ if ( is0 & RUSB2_INTSTS0_BRDY_Msk ) {
+ const unsigned m = rusb->BRDYENB;
+ unsigned s = rusb->BRDYSTS & m;
/* clear active bits (don't write 0 to already cleared bits according to the HW manual) */
- RUSB2->BRDYSTS = ~s;
+ rusb->BRDYSTS = ~s;
while (s) {
-#if defined(__CCRX__)
- static const int Mod37BitPosition[] = {
- -1, 0, 1, 26, 2, 23, 27, 0, 3, 16, 24, 30, 28, 11, 0, 13, 4,
- 7, 17, 0, 25, 22, 31, 15, 29, 10, 12, 6, 0, 21, 14, 9, 5,
- 20, 8, 19, 18
- };
-
- const unsigned num = Mod37BitPosition[(-s & s) % 37];
-#else
const unsigned num = __builtin_ctz(s);
-#endif
process_pipe_brdy(rhport, num);
s &= ~TU_BIT(num);
}
diff --git a/src/portable/renesas/rusb2/hcd_rusb2.c b/src/portable/renesas/rusb2/hcd_rusb2.c
index 0a75d0b47..f140da690 100644
--- a/src/portable/renesas/rusb2/hcd_rusb2.c
+++ b/src/portable/renesas/rusb2/hcd_rusb2.c
@@ -27,8 +27,7 @@
#include "tusb_option.h"
-#if CFG_TUH_ENABLED && (TU_CHECK_MCU(OPT_MCU_RX63X, OPT_MCU_RX65X, OPT_MCU_RX72N) || \
- TU_CHECK_MCU(OPT_MCU_RAXXX))
+#if CFG_TUH_ENABLED && defined(TUP_USBIP_RUSB2)
#include "host/hcd.h"
#include "rusb2_type.h"
@@ -41,35 +40,18 @@
#error "Unsupported MCU"
#endif
-#define TU_RUSB2_HCD_DBG 0
+#define TU_RUSB2_HCD_DBG 2
//--------------------------------------------------------------------+
// MACRO TYPEDEF CONSTANT ENUM DECLARATION
//--------------------------------------------------------------------+
-
-/* LINK core registers */
-#if defined(__CCRX__)
- #define RUSB2 ((RUSB2_REG_t __evenaccess*) RUSB2_REG_BASE)
-#else
- #define RUSB2 ((RUSB2_REG_t*) RUSB2_REG_BASE)
-#endif
+enum {
+ PIPE_COUNT = 10,
+};
TU_ATTR_PACKED_BEGIN
TU_ATTR_BIT_FIELD_ORDER_BEGIN
-typedef struct TU_ATTR_PACKED {
- union {
- struct {
- uint16_t : 8;
- uint16_t TRCLR: 1;
- uint16_t TRENB: 1;
- uint16_t : 0;
- };
- uint16_t TRE;
- };
- uint16_t TRN;
-} reg_pipetre_t;
-
typedef union TU_ATTR_PACKED {
struct {
volatile uint16_t u8: 8;
@@ -96,7 +78,7 @@ TU_ATTR_BIT_FIELD_ORDER_END
typedef struct
{
bool need_reset; /* The device has not been reset after connection. */
- pipe_state_t pipe[10];
+ pipe_state_t pipe[PIPE_COUNT];
uint8_t ep[4][2][15]; /* a lookup table for a pipe index from an endpoint address */
uint8_t ctl_mps[5]; /* EP0 max packet size for each device */
} hcd_data_t;
@@ -106,83 +88,86 @@ typedef struct
//--------------------------------------------------------------------+
static hcd_data_t _hcd;
-static unsigned find_pipe(unsigned xfer)
-{
- switch (xfer) {
- case TUSB_XFER_ISOCHRONOUS:
- for (int i = 1; i <= 2; ++i) {
- if (0 == _hcd.pipe[i].ep) return i;
- }
- break;
- case TUSB_XFER_BULK:
- for (int i = 3; i <= 5; ++i) {
- if (0 == _hcd.pipe[i].ep) return i;
- }
- for (int i = 1; i <= 2; ++i) {
- if (0 == _hcd.pipe[i].ep) return i;
- }
- break;
- case TUSB_XFER_INTERRUPT:
- for (int i = 6; i <= 9; ++i) {
- if (0 == _hcd.pipe[i].ep) return i;
- }
- break;
- default:
- /* No support for control transfer */
- break;
+// TODO merged with DCD
+// Transfer conditions specifiable for each pipe for most MCUs
+// - Pipe 0: Control transfer with 64-byte single buffer
+// - Pipes 1 and 2: Bulk or ISO
+// - Pipes 3 to 5: Bulk
+// - Pipes 6 to 9: Interrupt
+//
+// Note: for small mcu such as
+// - RA2A1: only pipe 4-7 are available, and no support for ISO
+static unsigned find_pipe(unsigned xfer_type) {
+ const uint8_t pipe_idx_arr[4][2] = {
+ { 0, 0 }, // Control
+ { 1, 2 }, // Isochronous
+ { 1, 5 }, // Bulk
+ { 6, 9 }, // Interrupt
+ };
+
+ // find backward since only pipe 1, 2 support ISO
+ const uint8_t idx_first = pipe_idx_arr[xfer_type][0];
+ const uint8_t idx_last = pipe_idx_arr[xfer_type][1];
+
+ for (int i = idx_last; i >= idx_first; i--) {
+ if (0 == _hcd.pipe[i].ep) return i;
}
+
return 0;
}
-static volatile uint16_t* get_pipectr(unsigned num)
+static volatile uint16_t* get_pipectr(rusb2_reg_t *rusb, unsigned num)
{
if (num) {
- return (volatile uint16_t*)&(RUSB2->PIPE_CTR[num - 1]);
+ return (volatile uint16_t*)&(rusb->PIPE_CTR[num - 1]);
} else {
- return (volatile uint16_t*)&(RUSB2->DCPCTR);
+ return (volatile uint16_t*)&(rusb->DCPCTR);
}
}
-static volatile reg_pipetre_t* get_pipetre(unsigned num)
+static volatile reg_pipetre_t* get_pipetre(rusb2_reg_t *rusb, unsigned num)
{
volatile reg_pipetre_t* tre = NULL;
if ((1 <= num) && (num <= 5)) {
- tre = (volatile reg_pipetre_t*)&(RUSB2->PIPE_TR[num - 1].E);
+ tre = (volatile reg_pipetre_t*)&(rusb->PIPE_TR[num - 1].E);
}
return tre;
}
-static volatile uint16_t* addr_to_pipectr(uint8_t dev_addr, unsigned ep_addr)
+static volatile uint16_t* addr_to_pipectr(uint8_t rhport, uint8_t dev_addr, unsigned ep_addr)
{
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
const unsigned epn = tu_edpt_number(ep_addr);
+
if (epn) {
const unsigned dir_in = tu_edpt_dir(ep_addr);
const unsigned num = _hcd.ep[dev_addr][dir_in][epn - 1];
- return get_pipectr(num);
+ return get_pipectr(rusb, num);
} else {
- return get_pipectr(0);
+ return get_pipectr(rusb, 0);
}
}
-static unsigned edpt0_max_packet_size(void)
+static uint16_t edpt0_max_packet_size(rusb2_reg_t* rusb)
{
- return RUSB2->DCPMAXP_b.MXPS;
+ return rusb->DCPMAXP_b.MXPS;
}
-static unsigned edpt_max_packet_size(unsigned num)
+static uint16_t edpt_max_packet_size(rusb2_reg_t *rusb, unsigned num)
{
- RUSB2->PIPESEL = num;
- return RUSB2->PIPEMAXP_b.MXPS;
+ rusb->PIPESEL = num;
+ return rusb->PIPEMAXP_b.MXPS;
}
-static inline void pipe_wait_for_ready(unsigned num)
+static inline void pipe_wait_for_ready(rusb2_reg_t* rusb, unsigned num)
{
- while (RUSB2->D0FIFOSEL_b.CURPIPE != num) ;
- while (!RUSB2->D0FIFOCTR_b.FRDY) ;
+ while (rusb->D0FIFOSEL_b.CURPIPE != num) ;
+ while (!rusb->D0FIFOCTR_b.FRDY) {}
}
static void pipe_write_packet(void *buf, volatile void *fifo, unsigned len)
{
+ // NOTE: unlike DCD, Highspeed 32-bit FIFO does not need to adjust the fifo address
volatile hw_fifo_t *reg = (volatile hw_fifo_t*)fifo;
uintptr_t addr = (uintptr_t)buf;
while (len >= 2) {
@@ -203,33 +188,33 @@ static void pipe_read_packet(void *buf, volatile void *fifo, unsigned len)
while (len--) *p++ = *reg;
}
-static bool pipe0_xfer_in(void)
+static bool pipe0_xfer_in(rusb2_reg_t* rusb)
{
pipe_state_t *pipe = &_hcd.pipe[0];
const unsigned rem = pipe->remaining;
- const unsigned mps = edpt0_max_packet_size();
- const unsigned vld = RUSB2->CFIFOCTR_b.DTLN;
+ const unsigned mps = edpt0_max_packet_size(rusb);
+ const unsigned vld = rusb->CFIFOCTR_b.DTLN;
const unsigned len = TU_MIN(TU_MIN(rem, mps), vld);
void *buf = pipe->buf;
if (len) {
- RUSB2->DCPCTR = RUSB2_PIPE_CTR_PID_NAK;
- pipe_read_packet(buf, (volatile void*)&RUSB2->CFIFO, len);
+ rusb->DCPCTR = RUSB2_PIPE_CTR_PID_NAK;
+ pipe_read_packet(buf, (volatile void*)&rusb->CFIFO, len);
pipe->buf = (uint8_t*)buf + len;
}
if (len < mps) {
- RUSB2->CFIFOCTR = RUSB2_CFIFOCTR_BCLR_Msk;
+ rusb->CFIFOCTR = RUSB2_CFIFOCTR_BCLR_Msk;
}
pipe->remaining = rem - len;
if ((len < mps) || (rem == len)) {
pipe->buf = NULL;
return true;
}
- RUSB2->DCPCTR = RUSB2_PIPE_CTR_PID_BUF;
+ rusb->DCPCTR = RUSB2_PIPE_CTR_PID_BUF;
return false;
}
-static bool pipe0_xfer_out(void)
+static bool pipe0_xfer_out(rusb2_reg_t* rusb)
{
pipe_state_t *pipe = &_hcd.pipe[0];
const unsigned rem = pipe->remaining;
@@ -237,40 +222,40 @@ static bool pipe0_xfer_out(void)
pipe->buf = NULL;
return true;
}
- const unsigned mps = edpt0_max_packet_size();
+ const unsigned mps = edpt0_max_packet_size(rusb);
const unsigned len = TU_MIN(mps, rem);
void *buf = pipe->buf;
if (len) {
- pipe_write_packet(buf, (volatile void*)&RUSB2->CFIFO, len);
+ pipe_write_packet(buf, (volatile void*)&rusb->CFIFO, len);
pipe->buf = (uint8_t*)buf + len;
}
if (len < mps) {
- RUSB2->CFIFOCTR = RUSB2_CFIFOCTR_BVAL_Msk;
+ rusb->CFIFOCTR = RUSB2_CFIFOCTR_BVAL_Msk;
}
pipe->remaining = rem - len;
return false;
}
-static bool pipe_xfer_in(unsigned num)
+static bool pipe_xfer_in(rusb2_reg_t* rusb, unsigned num)
{
pipe_state_t *pipe = &_hcd.pipe[num];
const unsigned rem = pipe->remaining;
- RUSB2->D0FIFOSEL = num | RUSB2_FIFOSEL_MBW_8BIT;
- const unsigned mps = edpt_max_packet_size(num);
- pipe_wait_for_ready(num);
- const unsigned vld = RUSB2->D0FIFOCTR_b.DTLN;
+ rusb->D0FIFOSEL = num | RUSB2_FIFOSEL_MBW_8BIT;
+ const unsigned mps = edpt_max_packet_size(rusb, num);
+ pipe_wait_for_ready(rusb, num);
+ const unsigned vld = rusb->D0FIFOCTR_b.DTLN;
const unsigned len = TU_MIN(TU_MIN(rem, mps), vld);
void *buf = pipe->buf;
if (len) {
- pipe_read_packet(buf, (volatile void*)&RUSB2->D0FIFO, len);
+ pipe_read_packet(buf, (volatile void*)&rusb->D0FIFO, len);
pipe->buf = (uint8_t*)buf + len;
}
if (len < mps) {
- RUSB2->D0FIFOCTR = RUSB2_CFIFOCTR_BCLR_Msk;
+ rusb->D0FIFOCTR = RUSB2_D0FIFOCTR_BCLR_Msk;
}
- RUSB2->D0FIFOSEL = 0;
- while (RUSB2->D0FIFOSEL_b.CURPIPE) ; /* if CURPIPE bits changes, check written value */
+ rusb->D0FIFOSEL = 0;
+ while (rusb->D0FIFOSEL_b.CURPIPE) ; /* if CURPIPE bits changes, check written value */
pipe->remaining = rem - len;
if ((len < mps) || (rem == len)) {
pipe->buf = NULL;
@@ -279,7 +264,7 @@ static bool pipe_xfer_in(unsigned num)
return false;
}
-static bool pipe_xfer_out(unsigned num)
+static bool pipe_xfer_out(rusb2_reg_t* rusb, unsigned num)
{
pipe_state_t *pipe = &_hcd.pipe[num];
const unsigned rem = pipe->remaining;
@@ -289,36 +274,39 @@ static bool pipe_xfer_out(unsigned num)
return true;
}
- RUSB2->D0FIFOSEL = num | RUSB2_FIFOSEL_MBW_16BIT | (TU_BYTE_ORDER == TU_BIG_ENDIAN ? RUSB2_FIFOSEL_BIGEND : 0);
- const unsigned mps = edpt_max_packet_size(num);
- pipe_wait_for_ready(num);
+ rusb->D0FIFOSEL = num | RUSB2_FIFOSEL_MBW_16BIT | (TU_BYTE_ORDER == TU_BIG_ENDIAN ? RUSB2_FIFOSEL_BIGEND : 0);
+ const unsigned mps = edpt_max_packet_size(rusb, num);
+ pipe_wait_for_ready(rusb, num);
const unsigned len = TU_MIN(rem, mps);
void *buf = pipe->buf;
if (len) {
- pipe_write_packet(buf, (volatile void*)&RUSB2->D0FIFO, len);
+ pipe_write_packet(buf, (volatile void*)&rusb->D0FIFO, len);
pipe->buf = (uint8_t*)buf + len;
}
- if (len < mps)
- RUSB2->D0FIFOCTR = RUSB2_CFIFOCTR_BVAL_Msk;
- RUSB2->D0FIFOSEL = 0;
- while (RUSB2->D0FIFOSEL_b.CURPIPE) ; /* if CURPIPE bits changes, check written value */
+ if (len < mps) {
+ rusb->D0FIFOCTR = RUSB2_D0FIFOCTR_BVAL_Msk;
+ }
+ rusb->D0FIFOSEL = 0;
+ while (rusb->D0FIFOSEL_b.CURPIPE) ; /* if CURPIPE bits changes, check written value */
pipe->remaining = rem - len;
return false;
}
-static bool process_pipe0_xfer(uint8_t dev_addr, uint8_t ep_addr, void* buffer, uint16_t buflen)
+static bool process_pipe0_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr, void* buffer, uint16_t buflen)
{
(void)dev_addr;
+
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
const unsigned dir_in = tu_edpt_dir(ep_addr);
/* configure fifo direction and access unit settings */
if (dir_in) { /* IN, a byte */
- RUSB2->CFIFOSEL = RUSB2_FIFOSEL_MBW_8BIT;
- while (RUSB2->CFIFOSEL & RUSB2_CFIFOSEL_ISEL_WRITE) ;
+ rusb->CFIFOSEL = RUSB2_FIFOSEL_MBW_8BIT;
+ while (rusb->CFIFOSEL & RUSB2_CFIFOSEL_ISEL_WRITE) ;
} else { /* OUT, 2 bytes */
- RUSB2->CFIFOSEL = RUSB2_CFIFOSEL_ISEL_WRITE | RUSB2_FIFOSEL_MBW_16BIT |
+ rusb->CFIFOSEL = RUSB2_CFIFOSEL_ISEL_WRITE | RUSB2_FIFOSEL_MBW_16BIT |
(TU_BYTE_ORDER == TU_BIG_ENDIAN ? RUSB2_FIFOSEL_BIGEND : 0);
- while (!(RUSB2->CFIFOSEL & RUSB2_CFIFOSEL_ISEL_WRITE)) ;
+ while (!(rusb->CFIFOSEL & RUSB2_CFIFOSEL_ISEL_WRITE)) ;
}
pipe_state_t *pipe = &_hcd.pipe[0];
@@ -328,26 +316,28 @@ static bool process_pipe0_xfer(uint8_t dev_addr, uint8_t ep_addr, void* buffer,
if (buflen) {
pipe->buf = buffer;
if (!dir_in) { /* OUT */
- TU_ASSERT(RUSB2->DCPCTR_b.BSTS && (RUSB2->USBREQ & 0x80));
- pipe0_xfer_out();
+ TU_ASSERT(rusb->DCPCTR_b.BSTS && (rusb->USBREQ & 0x80));
+ pipe0_xfer_out(rusb);
}
} else { /* ZLP */
pipe->buf = NULL;
if (!dir_in) { /* OUT */
- RUSB2->CFIFOCTR = RUSB2_CFIFOCTR_BVAL_Msk;
+ rusb->CFIFOCTR = RUSB2_CFIFOCTR_BVAL_Msk;
}
- if (dir_in == RUSB2->DCPCFG_b.DIR) {
- TU_ASSERT(RUSB2_PIPE_CTR_PID_NAK == RUSB2->DCPCTR_b.PID);
- RUSB2->DCPCTR_b.SQSET = 1;
- RUSB2->DCPCFG_b.DIR = dir_in ^ 1;
+ if (dir_in == rusb->DCPCFG_b.DIR) {
+ TU_ASSERT(RUSB2_PIPE_CTR_PID_NAK == rusb->DCPCTR_b.PID);
+ rusb->DCPCTR_b.SQSET = 1;
+ rusb->DCPCFG_b.DIR = dir_in ^ 1;
}
}
- RUSB2->DCPCTR = RUSB2_PIPE_CTR_PID_BUF;
+ rusb->DCPCTR = RUSB2_PIPE_CTR_PID_BUF;
return true;
}
-static bool process_pipe_xfer(uint8_t dev_addr, uint8_t ep_addr, void *buffer, uint16_t buflen)
+static bool process_pipe_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr, void *buffer, uint16_t buflen)
{
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+
const unsigned epn = tu_edpt_number(ep_addr);
const unsigned dir_in = tu_edpt_dir(ep_addr);
const unsigned num = _hcd.ep[dev_addr - 1][dir_in][epn - 1];
@@ -360,19 +350,19 @@ static bool process_pipe_xfer(uint8_t dev_addr, uint8_t ep_addr, void *buffer, u
pipe->remaining = buflen;
if (!dir_in) { /* OUT */
if (buflen) {
- pipe_xfer_out(num);
+ pipe_xfer_out(rusb, num);
} else { /* ZLP */
- RUSB2->D0FIFOSEL = num;
- pipe_wait_for_ready(num);
- RUSB2->D0FIFOCTR = RUSB2_CFIFOCTR_BVAL_Msk;
- RUSB2->D0FIFOSEL = 0;
- while (RUSB2->D0FIFOSEL_b.CURPIPE) {} /* if CURPIPE bits changes, check written value */
+ rusb->D0FIFOSEL = num;
+ pipe_wait_for_ready(rusb, num);
+ rusb->D0FIFOCTR = RUSB2_D0FIFOCTR_BVAL_Msk;
+ rusb->D0FIFOSEL = 0;
+ while (rusb->D0FIFOSEL_b.CURPIPE) {} /* if CURPIPE bits changes, check written value */
}
} else {
- volatile uint16_t *ctr = get_pipectr(num);
- volatile reg_pipetre_t *pt = get_pipetre(num);
+ volatile uint16_t *ctr = get_pipectr(rusb, num);
+ volatile reg_pipetre_t *pt = get_pipetre(rusb, num);
if (pt) {
- const unsigned mps = edpt_max_packet_size(num);
+ const unsigned mps = edpt_max_packet_size(rusb, num);
if (*ctr & 0x3) *ctr = RUSB2_PIPE_CTR_PID_NAK;
pt->TRE = TU_BIT(8);
pt->TRN = (buflen + mps - 1) / mps;
@@ -383,20 +373,20 @@ static bool process_pipe_xfer(uint8_t dev_addr, uint8_t ep_addr, void *buffer, u
return true;
}
-static bool process_edpt_xfer(uint8_t dev_addr, uint8_t ep_addr, void* buffer, uint16_t buflen)
+static bool process_edpt_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr, void* buffer, uint16_t buflen)
{
const unsigned epn = tu_edpt_number(ep_addr);
if (0 == epn) {
- return process_pipe0_xfer(dev_addr, ep_addr, buffer, buflen);
+ return process_pipe0_xfer(rhport, dev_addr, ep_addr, buffer, buflen);
} else {
- return process_pipe_xfer(dev_addr, ep_addr, buffer, buflen);
+ return process_pipe_xfer(rhport, dev_addr, ep_addr, buffer, buflen);
}
}
static void process_pipe0_bemp(uint8_t rhport)
{
- (void)rhport;
- bool completed = pipe0_xfer_out();
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+ bool completed = pipe0_xfer_out(rusb);
if (completed) {
pipe_state_t *pipe = &_hcd.pipe[0];
hcd_event_xfer_complete(pipe->dev,
@@ -408,10 +398,10 @@ static void process_pipe0_bemp(uint8_t rhport)
static void process_pipe_nrdy(uint8_t rhport, unsigned num)
{
- (void)rhport;
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
xfer_result_t result;
- uint16_t volatile *ctr = get_pipectr(num);
- TU_LOG(TU_RUSB2_HCD_DBG, "NRDY %d %x\n", num, *ctr);
+ uint16_t volatile *ctr = get_pipectr(rusb, num);
+ TU_LOG(TU_RUSB2_HCD_DBG, "NRDY %d %x\r\n", num, *ctr);
switch (*ctr & RUSB2_PIPE_CTR_PID_Msk) {
default: return;
case RUSB2_PIPE_CTR_PID_STALL: result = XFER_RESULT_STALLED; break;
@@ -426,19 +416,19 @@ static void process_pipe_nrdy(uint8_t rhport, unsigned num)
static void process_pipe_brdy(uint8_t rhport, unsigned num)
{
- (void)rhport;
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
pipe_state_t *pipe = &_hcd.pipe[num];
const unsigned dir_in = tu_edpt_dir(pipe->ep);
bool completed;
if (dir_in) { /* IN */
if (num) {
- completed = pipe_xfer_in(num);
+ completed = pipe_xfer_in(rusb, num);
} else {
- completed = pipe0_xfer_in();
+ completed = pipe0_xfer_in(rusb);
}
} else {
- completed = pipe_xfer_out(num);
+ completed = pipe_xfer_out(rusb, num);
}
if (completed) {
hcd_event_xfer_complete(pipe->dev, pipe->ep,
@@ -478,126 +468,146 @@ static void enable_interrupt(uint32_t pswi)
bool hcd_init(uint8_t rhport)
{
- (void)rhport;
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+ rusb2_module_start(rhport, true);
-#if 0 // previously present in the rx driver before generalization
- uint32_t pswi = disable_interrupt();
- SYSTEM.PRCR.WORD = SYSTEM_PRCR_PRKEY | SYSTEM_PRCR_PRC1;
- MSTP(USB0) = 0;
- SYSTEM.PRCR.WORD = SYSTEM_PRCR_PRKEY;
- enable_interrupt(pswi);
+#ifdef RUSB2_SUPPORT_HIGHSPEED
+ if (rusb2_is_highspeed_rhport(rhport) ) {
+ rusb->SYSCFG_b.HSE = 1;
+ rusb->PHYSET_b.HSEB = 0;
+ rusb->PHYSET_b.DIRPD = 0;
+ R_BSP_SoftwareDelay((uint32_t) 1, BSP_DELAY_UNITS_MILLISECONDS);
+ rusb->PHYSET_b.PLLRESET = 0;
+ rusb->LPSTS_b.SUSPENDM = 1;
+ while ( !rusb->PLLSTA_b.PLLLOCK );
+ rusb->SYSCFG_b.DRPD = 1;
+ rusb->SYSCFG_b.DCFM = 1;
+ rusb->SYSCFG_b.DPRPU = 0;
+ rusb->SYSCFG_b.CNEN = 1;
+ rusb->BUSWAIT |= 0x0F00U;
+ rusb->SOFCFG_b.INTL = 1;
+ rusb->DVSTCTR0_b.VBUSEN = 1;
+ rusb->CFIFOSEL_b.MBW = 1;
+ rusb->D0FIFOSEL_b.MBW = 1;
+ rusb->D1FIFOSEL_b.MBW = 1;
+ rusb->INTSTS0 = 0;
+ for ( volatile int i = 0; i < 30000; ++i );
+ rusb->SYSCFG_b.USBE = 1;
+ } else
#endif
+ {
+ rusb->SYSCFG_b.SCKE = 1;
+ while ( !rusb->SYSCFG_b.SCKE ) {}
+ rusb->SYSCFG_b.DCFM = 1; // Host function
+ rusb->SYSCFG_b.DPRPU = 0; // Disable D+ pull up
+ rusb->SYSCFG_b.DRPD = 1; // Enable D+/D- pull down
- RUSB2->SYSCFG_b.SCKE = 1;
- while (!RUSB2->SYSCFG_b.SCKE) ;
- RUSB2->SYSCFG_b.DPRPU = 0;
- RUSB2->SYSCFG_b.DRPD = 0;
- RUSB2->SYSCFG_b.DCFM = 1;
+ rusb->DVSTCTR0_b.VBUSEN = 1;
+ for ( volatile int i = 0; i < 30000; ++i ) {} // FIXME do we need to wait here? how long ?
+ //R_BSP_SoftwareDelay(10, BSP_DELAY_UNITS_MILLISECONDS);
+ rusb->SYSCFG_b.USBE = 1;
- RUSB2->DVSTCTR0_b.VBUSEN = 1;
+ // MCU specific PHY init
+ rusb2_phy_init();
- RUSB2->SYSCFG_b.DRPD = 1;
- for (volatile int i = 0; i < 30000; ++i) ;
- RUSB2->SYSCFG_b.USBE = 1;
-
- // MCU specific PHY init
- rusb2_phy_init();
-
- RUSB2->PHYSLEW = 0x5;
- RUSB2->DPUSR0R_FS_b.FIXPHY0 = 0u; /* Transceiver Output fixed */
+ rusb->PHYSLEW = 0x5;
+ rusb->DPUSR0R_FS_b.FIXPHY0 = 0u; /* Transceiver Output fixed */
+ }
/* Setup default control pipe */
- RUSB2->DCPCFG = RUSB2_PIPECFG_SHTNAK_Msk;
- RUSB2->DCPMAXP = 64;
- RUSB2->INTENB0 = RUSB2_INTSTS0_BRDY_Msk | RUSB2_INTSTS0_NRDY_Msk | RUSB2_INTSTS0_BEMP_Msk;
- RUSB2->INTENB1 = RUSB2_INTSTS1_SACK_Msk | RUSB2_INTSTS1_SIGN_Msk | RUSB2_INTSTS1_ATTCH_Msk | RUSB2_INTSTS1_DTCH_Msk;
- RUSB2->BEMPENB = 1;
- RUSB2->NRDYENB = 1;
- RUSB2->BRDYENB = 1;
+ rusb->DCPCFG = RUSB2_PIPECFG_SHTNAK_Msk;
+ rusb->DCPMAXP = 64;
+ rusb->INTENB0 = RUSB2_INTSTS0_BRDY_Msk | RUSB2_INTSTS0_NRDY_Msk | RUSB2_INTSTS0_BEMP_Msk;
+ rusb->INTENB1 = RUSB2_INTSTS1_SACK_Msk | RUSB2_INTSTS1_SIGN_Msk | RUSB2_INTSTS1_ATTCH_Msk | RUSB2_INTSTS1_DTCH_Msk;
+ rusb->BEMPENB = 1;
+ rusb->NRDYENB = 1;
+ rusb->BRDYENB = 1;
return true;
}
-void hcd_int_enable(uint8_t rhport)
-{
+void hcd_int_enable(uint8_t rhport) {
rusb2_int_enable(rhport);
}
-void hcd_int_disable(uint8_t rhport)
-{
+void hcd_int_disable(uint8_t rhport) {
rusb2_int_disable(rhport);
}
uint32_t hcd_frame_number(uint8_t rhport)
{
- (void)rhport;
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+
/* The device must be reset at least once after connection
* in order to start the frame counter. */
if (_hcd.need_reset) hcd_port_reset(rhport);
- return RUSB2->FRMNUM_b.FRNM;
+ return rusb->FRMNUM_b.FRNM;
}
/*--------------------------------------------------------------------+
* Port API
*--------------------------------------------------------------------+*/
-bool hcd_port_connect_status(uint8_t rhport)
-{
- (void)rhport;
- return RUSB2->INTSTS1_b.ATTCH ? true : false;
+bool hcd_port_connect_status(uint8_t rhport) {
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+ return rusb->INTSTS1_b.ATTCH ? true : false;
}
-void hcd_port_reset(uint8_t rhport)
-{
- RUSB2->DCPCTR = RUSB2_PIPE_CTR_PID_NAK;
- while (RUSB2->DCPCTR_b.PBUSY) ;
+void hcd_port_reset(uint8_t rhport) {
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+ rusb->DCPCTR = RUSB2_PIPE_CTR_PID_NAK;
+ while (rusb->DCPCTR_b.PBUSY) {}
+
hcd_int_disable(rhport);
- RUSB2->DVSTCTR0_b.UACT = 0;
- if (RUSB2->DCPCTR_b.SUREQ) {
- RUSB2->DCPCTR_b.SUREQCLR = 1;
+ rusb->DVSTCTR0_b.UACT = 0;
+ if (rusb->DCPCTR_b.SUREQ) {
+ rusb->DCPCTR_b.SUREQCLR = 1;
}
hcd_int_enable(rhport);
+
/* Reset should be asserted 10-20ms. */
- RUSB2->DVSTCTR0_b.USBRST = 1;
- for (volatile int i = 0; i < 2400000; ++i) ;
- RUSB2->DVSTCTR0_b.USBRST = 0;
- RUSB2->DVSTCTR0_b.UACT = 1;
+ rusb->DVSTCTR0_b.USBRST = 1;
+ for (volatile int i = 0; i < 2400000; ++i) {}
+ rusb->DVSTCTR0_b.USBRST = 0;
+
+ rusb->DVSTCTR0_b.UACT = 1;
_hcd.need_reset = false;
}
-void hcd_port_reset_end(uint8_t rhport)
-{
+void hcd_port_reset_end(uint8_t rhport) {
(void) rhport;
}
-tusb_speed_t hcd_port_speed_get(uint8_t rhport)
-{
- (void)rhport;
- switch (RUSB2->DVSTCTR0_b.RHST) {
- default: return TUSB_SPEED_INVALID;
+tusb_speed_t hcd_port_speed_get(uint8_t rhport) {
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+ switch (rusb->DVSTCTR0_b.RHST) {
+ case RUSB2_DVSTCTR0_RHST_HS: return TUSB_SPEED_HIGH;
case RUSB2_DVSTCTR0_RHST_FS: return TUSB_SPEED_FULL;
- case RUSB2_DVSTCTR0_RHST_LS: return TUSB_SPEED_LOW;
+ case RUSB2_DVSTCTR0_RHST_LS: return TUSB_SPEED_LOW;
+ default: return TUSB_SPEED_INVALID;
}
}
-void hcd_device_close(uint8_t rhport, uint8_t dev_addr)
-{
- (void)rhport;
+void hcd_device_close(uint8_t rhport, uint8_t dev_addr) {
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
uint16_t volatile *ctr;
+
TU_ASSERT(dev_addr < 6,); /* USBa can only handle addresses from 0 to 5. */
if (!dev_addr) return;
+
_hcd.ctl_mps[dev_addr] = 0;
uint8_t *ep = &_hcd.ep[dev_addr - 1][0][0];
+
for (int i = 0; i < 2 * 15; ++i, ++ep) {
unsigned num = *ep;
if (!num || (dev_addr != _hcd.pipe[num].dev)) continue;
- ctr = (uint16_t volatile*)&RUSB2->PIPE_CTR[num - 1];
+ ctr = (uint16_t volatile*)&rusb->PIPE_CTR[num - 1];
*ctr = 0;
- RUSB2->NRDYENB &= ~TU_BIT(num);
- RUSB2->BRDYENB &= ~TU_BIT(num);
- RUSB2->PIPESEL = num;
- RUSB2->PIPECFG = 0;
- RUSB2->PIPEMAXP = 0;
+ rusb->NRDYENB &= ~TU_BIT(num);
+ rusb->BRDYENB &= ~TU_BIT(num);
+ rusb->PIPESEL = num;
+ rusb->PIPECFG = 0;
+ rusb->PIPEMAXP = 0;
_hcd.pipe[num].ep = 0;
_hcd.pipe[num].dev = 0;
@@ -610,52 +620,54 @@ void hcd_device_close(uint8_t rhport, uint8_t dev_addr)
*--------------------------------------------------------------------+*/
bool hcd_setup_send(uint8_t rhport, uint8_t dev_addr, uint8_t const setup_packet[8])
{
- (void)rhport;
- TU_LOG(TU_RUSB2_HCD_DBG, "S %d %x\n", dev_addr, RUSB2->DCPCTR);
-
TU_ASSERT(dev_addr < 6); /* USBa can only handle addresses from 0 to 5. */
- TU_ASSERT(0 == RUSB2->DCPCTR_b.SUREQ);
- RUSB2->DCPCTR = RUSB2_PIPE_CTR_PID_NAK;
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+ TU_LOG(TU_RUSB2_HCD_DBG, "S %d %x\r\n", dev_addr, rusb->DCPCTR);
+
+ TU_ASSERT(0 == rusb->DCPCTR_b.SUREQ);
+
+ rusb->DCPCTR = RUSB2_PIPE_CTR_PID_NAK;
_hcd.pipe[0].buf = NULL;
_hcd.pipe[0].length = 8;
_hcd.pipe[0].remaining = 0;
_hcd.pipe[0].dev = dev_addr;
- while (RUSB2->DCPCTR_b.PBUSY) ;
- RUSB2->DCPMAXP = (dev_addr << 12) | _hcd.ctl_mps[dev_addr];
+ while (rusb->DCPCTR_b.PBUSY) ;
+ rusb->DCPMAXP = (dev_addr << 12) | _hcd.ctl_mps[dev_addr];
/* Set direction in advance for DATA stage */
uint8_t const bmRequesttype = setup_packet[0];
- RUSB2->DCPCFG_b.DIR = tu_edpt_dir(bmRequesttype) ? 0: 1;
+ rusb->DCPCFG_b.DIR = tu_edpt_dir(bmRequesttype) ? 0: 1;
uint16_t const* p = (uint16_t const*)(uintptr_t)&setup_packet[0];
- RUSB2->USBREQ = tu_htole16(p[0]);
- RUSB2->USBVAL = p[1];
- RUSB2->USBINDX = p[2];
- RUSB2->USBLENG = p[3];
+ rusb->USBREQ = tu_htole16(p[0]);
+ rusb->USBVAL = p[1];
+ rusb->USBINDX = p[2];
+ rusb->USBLENG = p[3];
- RUSB2->DCPCTR_b.SUREQ = 1;
+ rusb->DCPCTR_b.SUREQ = 1;
return true;
}
bool hcd_edpt_open(uint8_t rhport, uint8_t dev_addr, tusb_desc_endpoint_t const *ep_desc)
{
- (void)rhport;
TU_ASSERT(dev_addr < 6); /* USBa can only handle addresses from 0 to 5. */
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
const unsigned ep_addr = ep_desc->bEndpointAddress;
const unsigned epn = tu_edpt_number(ep_addr);
const unsigned mps = tu_edpt_packet_size(ep_desc);
+
if (0 == epn) {
- RUSB2->DCPCTR = RUSB2_PIPE_CTR_PID_NAK;
+ rusb->DCPCTR = RUSB2_PIPE_CTR_PID_NAK;
hcd_devtree_info_t devtree;
hcd_devtree_get_info(dev_addr, &devtree);
- uint16_t volatile *devadd = (uint16_t volatile *)(uintptr_t) &RUSB2->DEVADD[0];
+ uint16_t volatile *devadd = (uint16_t volatile *)(uintptr_t) &rusb->DEVADD[0];
devadd += dev_addr;
- while (RUSB2->DCPCTR_b.PBUSY) ;
- RUSB2->DCPMAXP = (dev_addr << 12) | mps;
+ while (rusb->DCPCTR_b.PBUSY) {}
+ rusb->DCPMAXP = (dev_addr << 12) | mps;
*devadd = (TUSB_SPEED_FULL == devtree.speed) ? RUSB2_DEVADD_USBSPD_FS : RUSB2_DEVADD_USBSPD_LS;
_hcd.ctl_mps[dev_addr] = mps;
return true;
@@ -669,17 +681,20 @@ bool hcd_edpt_open(uint8_t rhport, uint8_t dev_addr, tusb_desc_endpoint_t const
}
const unsigned num = find_pipe(xfer);
if (!num) return false;
+
_hcd.pipe[num].dev = dev_addr;
_hcd.pipe[num].ep = ep_addr;
_hcd.ep[dev_addr - 1][dir_in][epn - 1] = num;
/* setup pipe */
hcd_int_disable(rhport);
- RUSB2->PIPESEL = num;
- RUSB2->PIPEMAXP = (dev_addr << 12) | mps;
- volatile uint16_t *ctr = get_pipectr(num);
+
+ rusb->PIPESEL = num;
+ rusb->PIPEMAXP = (dev_addr << 12) | mps;
+ volatile uint16_t *ctr = get_pipectr(rusb, num);
*ctr = RUSB2_PIPE_CTR_ACLRM_Msk | RUSB2_PIPE_CTR_SQCLR_Msk;
*ctr = 0;
+
unsigned cfg = ((1 ^ dir_in) << 4) | epn;
if (xfer == TUSB_XFER_BULK) {
cfg |= RUSB2_PIPECFG_TYPE_BULK | RUSB2_PIPECFG_SHTNAK_Msk | RUSB2_PIPECFG_DBLB_Msk;
@@ -688,13 +703,16 @@ bool hcd_edpt_open(uint8_t rhport, uint8_t dev_addr, tusb_desc_endpoint_t const
} else {
cfg |= RUSB2_PIPECFG_TYPE_ISO | RUSB2_PIPECFG_DBLB_Msk;
}
- RUSB2->PIPECFG = cfg;
- RUSB2->BRDYSTS = 0x1FFu ^ TU_BIT(num);
- RUSB2->NRDYENB |= TU_BIT(num);
- RUSB2->BRDYENB |= TU_BIT(num);
+
+ rusb->PIPECFG = cfg;
+ rusb->BRDYSTS = 0x3FFu ^ TU_BIT(num);
+ rusb->NRDYENB |= TU_BIT(num);
+ rusb->BRDYENB |= TU_BIT(num);
+
if (!dir_in) {
*ctr = RUSB2_PIPE_CTR_PID_BUF;
}
+
hcd_int_enable(rhport);
return true;
@@ -704,8 +722,8 @@ bool hcd_edpt_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr, uint8_t *b
{
bool r;
hcd_int_disable(rhport);
- TU_LOG(TU_RUSB2_HCD_DBG, "X %d %x %u\n", dev_addr, ep_addr, buflen);
- r = process_edpt_xfer(dev_addr, ep_addr, buffer, buflen);
+ TU_LOG(TU_RUSB2_HCD_DBG, "X %d %x %u\r\n", dev_addr, ep_addr, buflen);
+ r = process_edpt_xfer(rhport, dev_addr, ep_addr, buffer, buflen);
hcd_int_enable(rhport);
return r;
}
@@ -718,9 +736,8 @@ bool hcd_edpt_abort_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr) {
return false;
}
-bool hcd_edpt_clear_stall(uint8_t dev_addr, uint8_t ep_addr)
-{
- uint16_t volatile *ctr = addr_to_pipectr(dev_addr, ep_addr);
+bool hcd_edpt_clear_stall(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr) {
+ uint16_t volatile *ctr = addr_to_pipectr(rhport, dev_addr, ep_addr);
TU_ASSERT(ctr);
const uint32_t pid = *ctr & 0x3;
@@ -741,80 +758,83 @@ bool hcd_edpt_clear_stall(uint8_t dev_addr, uint8_t ep_addr)
//--------------------------------------------------------------------+
// ISR
//--------------------------------------------------------------------+
-void hcd_int_handler(uint8_t rhport)
-{
- (void)rhport;
#if defined(__CCRX__)
- static const int Mod37BitPosition[] = {
- -1, 0, 1, 26, 2, 23, 27, 0, 3, 16, 24, 30, 28, 11, 0, 13, 4,
- 7, 17, 0, 25, 22, 31, 15, 29, 10, 12, 6, 0, 21, 14, 9, 5,
- 20, 8, 19, 18};
+TU_ATTR_ALWAYS_INLINE static inline unsigned __builtin_ctz(unsigned int value) {
+ unsigned int count = 0;
+ while ((value & 1) == 0) {
+ value >>= 1;
+ count++;
+ }
+ return count;
+}
#endif
- unsigned is1 = RUSB2->INTSTS1;
- unsigned is0 = RUSB2->INTSTS0;
+void hcd_int_handler(uint8_t rhport, bool in_isr) {
+ (void) in_isr;
+
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+ unsigned is0 = rusb->INTSTS0;
+ unsigned is1 = rusb->INTSTS1;
+
/* clear active bits except VALID (don't write 0 to already cleared bits according to the HW manual) */
- RUSB2->INTSTS1 = ~((RUSB2_INTSTS1_SACK_Msk | RUSB2_INTSTS1_SIGN_Msk | RUSB2_INTSTS1_ATTCH_Msk | RUSB2_INTSTS1_DTCH_Msk) & is1);
- RUSB2->INTSTS0 = ~((RUSB2_INTSTS0_BRDY_Msk | RUSB2_INTSTS0_NRDY_Msk | RUSB2_INTSTS0_BEMP_Msk) & is0);
- TU_LOG(TU_RUSB2_HCD_DBG, "IS %04x %04x\n", is0, is1);
- is1 &= RUSB2->INTENB1;
- is0 &= RUSB2->INTENB0;
+ rusb->INTSTS1 = ~((RUSB2_INTSTS1_SACK_Msk | RUSB2_INTSTS1_SIGN_Msk | RUSB2_INTSTS1_ATTCH_Msk | RUSB2_INTSTS1_DTCH_Msk) & is1);
+ rusb->INTSTS0 = ~((RUSB2_INTSTS0_BRDY_Msk | RUSB2_INTSTS0_NRDY_Msk | RUSB2_INTSTS0_BEMP_Msk) & is0);
+
+ TU_LOG3("IS %04x %04x\r\n", is0, is1);
+ is1 &= rusb->INTENB1;
+ is0 &= rusb->INTENB0;
if (is1 & RUSB2_INTSTS1_SACK_Msk) {
/* Set DATA1 in advance for the next transfer. */
- RUSB2->DCPCTR_b.SQSET = 1;
- hcd_event_xfer_complete(RUSB2->DCPMAXP_b.DEVSEL, tu_edpt_addr(0, TUSB_DIR_OUT), 8, XFER_RESULT_SUCCESS, true);
+ rusb->DCPCTR_b.SQSET = 1;
+ hcd_event_xfer_complete(rusb->DCPMAXP_b.DEVSEL, tu_edpt_addr(0, TUSB_DIR_OUT), 8, XFER_RESULT_SUCCESS, true);
}
+
if (is1 & RUSB2_INTSTS1_SIGN_Msk) {
- hcd_event_xfer_complete(RUSB2->DCPMAXP_b.DEVSEL, tu_edpt_addr(0, TUSB_DIR_OUT), 8, XFER_RESULT_FAILED, true);
+ hcd_event_xfer_complete(rusb->DCPMAXP_b.DEVSEL, tu_edpt_addr(0, TUSB_DIR_OUT), 8, XFER_RESULT_FAILED, true);
}
+
if (is1 & RUSB2_INTSTS1_ATTCH_Msk) {
- RUSB2->DVSTCTR0_b.UACT = 1;
+ rusb->DVSTCTR0_b.UACT = 1;
_hcd.need_reset = true;
- RUSB2->INTENB1 = (RUSB2->INTENB1 & ~RUSB2_INTSTS1_ATTCH_Msk) | RUSB2_INTSTS1_DTCH_Msk;
+ rusb->INTENB1 = (rusb->INTENB1 & ~RUSB2_INTSTS1_ATTCH_Msk) | RUSB2_INTSTS1_DTCH_Msk;
hcd_event_device_attach(rhport, true);
}
+
if (is1 & RUSB2_INTSTS1_DTCH_Msk) {
- RUSB2->DVSTCTR0_b.UACT = 0;
- if (RUSB2->DCPCTR_b.SUREQ) {
- RUSB2->DCPCTR_b.SUREQCLR = 1;
+ rusb->DVSTCTR0_b.UACT = 0;
+ if (rusb->DCPCTR_b.SUREQ) {
+ rusb->DCPCTR_b.SUREQCLR = 1;
}
- RUSB2->INTENB1 = (RUSB2->INTENB1 & ~RUSB2_INTSTS1_DTCH_Msk) | RUSB2_INTSTS1_ATTCH_Msk;
+ rusb->INTENB1 = (rusb->INTENB1 & ~RUSB2_INTSTS1_DTCH_Msk) | RUSB2_INTSTS1_ATTCH_Msk;
hcd_event_device_remove(rhport, true);
}
if (is0 & RUSB2_INTSTS0_BEMP_Msk) {
- const unsigned s = RUSB2->BEMPSTS;
- RUSB2->BEMPSTS = 0;
+ const unsigned s = rusb->BEMPSTS;
+ rusb->BEMPSTS = 0;
if (s & 1) {
process_pipe0_bemp(rhport);
}
}
+
if (is0 & RUSB2_INTSTS0_NRDY_Msk) {
- const unsigned m = RUSB2->NRDYENB;
- unsigned s = RUSB2->NRDYSTS & m;
- RUSB2->NRDYSTS = ~s;
+ const unsigned m = rusb->NRDYENB;
+ unsigned s = rusb->NRDYSTS & m;
+ rusb->NRDYSTS = ~s;
while (s) {
-#if defined(__CCRX__)
- const unsigned num = Mod37BitPosition[(-s & s) % 37];
-#else
const unsigned num = __builtin_ctz(s);
-#endif
process_pipe_nrdy(rhport, num);
s &= ~TU_BIT(num);
}
}
if (is0 & RUSB2_INTSTS0_BRDY_Msk) {
- const unsigned m = RUSB2->BRDYENB;
- unsigned s = RUSB2->BRDYSTS & m;
+ const unsigned m = rusb->BRDYENB;
+ unsigned s = rusb->BRDYSTS & m;
/* clear active bits (don't write 0 to already cleared bits according to the HW manual) */
- RUSB2->BRDYSTS = ~s;
+ rusb->BRDYSTS = ~s;
while (s) {
-#if defined(__CCRX__)
- const unsigned num = Mod37BitPosition[(-s & s) % 37];
-#else
const unsigned num = __builtin_ctz(s);
-#endif
process_pipe_brdy(rhport, num);
s &= ~TU_BIT(num);
}
diff --git a/src/portable/renesas/rusb2/rusb2_common.c b/src/portable/renesas/rusb2/rusb2_common.c
new file mode 100644
index 000000000..850060777
--- /dev/null
+++ b/src/portable/renesas/rusb2/rusb2_common.c
@@ -0,0 +1,61 @@
+/*
+ * The MIT License (MIT)
+ *
+ * Copyright (c) 2023 Ha Thach (tinyusb.org)
+ *
+ * Permission is hereby granted, free of charge, to any person obtaining a copy
+ * of this software and associated documentation files (the "Software"), to deal
+ * in the Software without restriction, including without limitation the rights
+ * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
+ * copies of the Software, and to permit persons to whom the Software is
+ * furnished to do so, subject to the following conditions:
+ *
+ * The above copyright notice and this permission notice shall be included in
+ * all copies or substantial portions of the Software.
+ *
+ * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
+ * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
+ * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
+ * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
+ * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
+ * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
+ * THE SOFTWARE.
+ *
+ * This file is part of the TinyUSB stack.
+ */
+
+#include "tusb_option.h"
+
+#if defined(TUP_USBIP_RUSB2) && (CFG_TUH_ENABLED || CFG_TUD_ENABLED)
+
+#include "rusb2_type.h"
+
+#if TU_CHECK_MCU(OPT_MCU_RX63X, OPT_MCU_RX65X, OPT_MCU_RX72N)
+#include "rusb2_rx.h"
+
+#elif TU_CHECK_MCU(OPT_MCU_RAXXX)
+#include "rusb2_ra.h"
+
+// USBFS_INT_IRQn and USBHS_USB_INT_RESUME_IRQn are generated by FSP
+rusb2_controller_t rusb2_controller[] = {
+ { .reg_base = R_USB_FS0_BASE, .irqnum = USBFS_INT_IRQn },
+ #ifdef RUSB2_SUPPORT_HIGHSPEED
+ { .reg_base = R_USB_HS0_BASE, .irqnum = USBHS_USB_INT_RESUME_IRQn },
+ #endif
+};
+
+// Application API for setting IRQ number. May throw warnings for missing prototypes.
+void tusb_rusb2_set_irqnum(uint8_t rhport, int32_t irqnum) {
+ rusb2_controller[rhport].irqnum = irqnum;
+}
+
+// void osal_task_delay(uint32_t msec) {
+// R_BSP_SoftwareDelay(msec, BSP_DELAY_UNITS_MILLISECONDS);
+// }
+
+#else
+ #error "Unsupported MCU"
+#endif
+
+
+#endif
diff --git a/src/portable/renesas/rusb2/rusb2_ra.h b/src/portable/renesas/rusb2/rusb2_ra.h
index df4afdfa0..4774d2e2c 100644
--- a/src/portable/renesas/rusb2/rusb2_ra.h
+++ b/src/portable/renesas/rusb2/rusb2_ra.h
@@ -47,27 +47,59 @@ extern "C" {
#pragma GCC diagnostic pop
#endif
-#define RUSB2_REG_BASE (0x40090000)
-
+// IAR does not have __builtin_ctz
#if defined(__ICCARM__)
- #define __builtin_ctz(x) __iar_builtin_CLZ(__iar_builtin_RBIT(x))
+ #define __builtin_ctz(x) __iar_builtin_CLZ(__iar_builtin_RBIT(x))
#endif
-TU_ATTR_ALWAYS_INLINE static inline void rusb2_int_enable(uint8_t rhport)
-{
- (void) rhport;
- NVIC_EnableIRQ(TU_IRQn);
+//--------------------------------------------------------------------+
+//
+//--------------------------------------------------------------------+
+
+typedef struct {
+ uint32_t reg_base;
+ int32_t irqnum;
+}rusb2_controller_t;
+
+#if defined(BSP_MCU_GROUP_RA6M5) || defined(BSP_MCU_GROUP_RA6M3) || (BSP_CFG_MCU_PART_SERIES == 8)
+ #define RUSB2_SUPPORT_HIGHSPEED
+ #define RUSB2_CONTROLLER_COUNT 2
+
+ #define rusb2_is_highspeed_rhport(_p) (_p == 1)
+ #define rusb2_is_highspeed_reg(_reg) (_reg == RUSB2_REG(1))
+#else
+ #define RUSB2_CONTROLLER_COUNT 1
+
+ #define rusb2_is_highspeed_rhport(_p) (false)
+ #define rusb2_is_highspeed_reg(_reg) (false)
+#endif
+
+extern rusb2_controller_t rusb2_controller[];
+#define RUSB2_REG(_p) ((rusb2_reg_t*) rusb2_controller[_p].reg_base)
+
+//--------------------------------------------------------------------+
+// RUSB2 API
+//--------------------------------------------------------------------+
+
+TU_ATTR_ALWAYS_INLINE static inline void rusb2_module_start(uint8_t rhport, bool start) {
+ uint32_t const mask = 1U << (11+rhport);
+ if (start) {
+ R_MSTP->MSTPCRB &= ~mask;
+ }else {
+ R_MSTP->MSTPCRB |= mask;
+ }
+}
+
+TU_ATTR_ALWAYS_INLINE static inline void rusb2_int_enable(uint8_t rhport) {
+ NVIC_EnableIRQ(rusb2_controller[rhport].irqnum);
}
-TU_ATTR_ALWAYS_INLINE static inline void rusb2_int_disable(uint8_t rhport)
-{
- (void) rhport;
- NVIC_DisableIRQ(TU_IRQn);
+TU_ATTR_ALWAYS_INLINE static inline void rusb2_int_disable(uint8_t rhport) {
+ NVIC_DisableIRQ(rusb2_controller[rhport].irqnum);
}
// MCU specific PHY init
-TU_ATTR_ALWAYS_INLINE static inline void rusb2_phy_init(void)
-{
+TU_ATTR_ALWAYS_INLINE static inline void rusb2_phy_init(void) {
}
#ifdef __cplusplus
diff --git a/src/portable/renesas/rusb2/rusb2_rx.h b/src/portable/renesas/rusb2/rusb2_rx.h
index 397c0d56c..7bf4be47e 100644
--- a/src/portable/renesas/rusb2/rusb2_rx.h
+++ b/src/portable/renesas/rusb2/rusb2_rx.h
@@ -37,6 +37,26 @@ extern "C" {
#define RUSB2_REG_BASE (0x000A0000)
+TU_ATTR_ALWAYS_INLINE static inline rusb2_reg_t* RUSB2_REG(uint8_t rhport) {
+ (void) rhport;
+ return (rusb2_reg_t *) RUSB2_REG_BASE;
+}
+
+
+#define rusb2_is_highspeed_rhport(_p) (false)
+#define rusb2_is_highspeed_reg(_reg) (false)
+
+//--------------------------------------------------------------------+
+//
+//--------------------------------------------------------------------+
+
+
+// Start/Stop MSTP TODO implement later
+TU_ATTR_ALWAYS_INLINE static inline void rusb2_module_start(uint8_t rhport, bool start) {
+ (void) rhport;
+ (void) start;
+}
+
TU_ATTR_ALWAYS_INLINE static inline void rusb2_int_enable(uint8_t rhport)
{
(void) rhport;
diff --git a/src/portable/renesas/rusb2/rusb2_type.h b/src/portable/renesas/rusb2/rusb2_type.h
index 83119507a..dd88f66a7 100644
--- a/src/portable/renesas/rusb2/rusb2_type.h
+++ b/src/portable/renesas/rusb2/rusb2_type.h
@@ -28,11 +28,19 @@
#define _TUSB_RUSB2_TYPE_H_
#include <stdint.h>
+#include <stddef.h>
#ifdef __cplusplus
extern "C" {
#endif
+// CCRX specific attribute to generate a Code that Accesses Variables in the Declared Size
+#ifdef __CCRX__
+ #define _ccrx_evenaccess __evenaccess
+#else
+ #define _ccrx_evenaccess
+#endif
+
/*--------------------------------------------------------------------*/
/* Register Definitions */
/*--------------------------------------------------------------------*/
@@ -41,15 +49,29 @@ extern "C" {
TU_ATTR_PACKED_BEGIN
TU_ATTR_BIT_FIELD_ORDER_BEGIN
+// TODO same as RUSB2_PIPE_TR_t
+typedef struct TU_ATTR_PACKED _ccrx_evenaccess {
+ union {
+ struct {
+ uint16_t : 8;
+ uint16_t TRCLR: 1;
+ uint16_t TRENB: 1;
+ uint16_t : 0;
+ };
+ uint16_t TRE;
+ };
+ uint16_t TRN;
+} reg_pipetre_t;
+
typedef struct {
union {
volatile uint16_t E; /* (@ 0x00000000) Pipe Transaction Counter Enable Register */
struct TU_ATTR_PACKED {
- uint16_t : 8;
+ uint16_t : 8;
volatile uint16_t TRCLR : 1; /* [8..8] Transaction Counter Clear */
volatile uint16_t TRENB : 1; /* [9..9] Transaction Counter Enable */
- uint16_t : 6;
+ uint16_t : 6;
} E_b;
};
@@ -62,8 +84,9 @@ typedef struct {
};
} RUSB2_PIPE_TR_t; /* Size = 4 (0x4) */
-/* LINK_REG Structure */
-typedef struct {
+
+/* RUSB2 Registers Structure */
+typedef struct _ccrx_evenaccess {
union {
volatile uint16_t SYSCFG; /* (@ 0x00000000) System Configuration Control Register */
@@ -74,7 +97,7 @@ typedef struct {
volatile uint16_t DPRPU : 1; /* [4..4] D+ Line Resistor Control */
volatile uint16_t DRPD : 1; /* [5..5] D+/D- Line Resistor Control */
volatile uint16_t DCFM : 1; /* [6..6] Controller Function Select */
- uint16_t : 1;
+ volatile uint16_t HSE : 1; // [7..7] High-Speed Operation Enable
volatile uint16_t CNEN : 1; /* [8..8] CNEN Single End Receiver Enable */
uint16_t : 1;
volatile uint16_t SCKE : 1; /* [10..10] USB Clock Enable */
@@ -87,7 +110,7 @@ typedef struct {
struct TU_ATTR_PACKED {
volatile uint16_t BWAIT : 4; /* [3..0] CPU Bus Access Wait Specification BWAIT waits (BWAIT+2 access cycles) */
- uint16_t : 12;
+ uint16_t : 12;
} BUSWAIT_b;
};
@@ -98,8 +121,7 @@ typedef struct {
volatile const uint16_t LNST : 2; /* [1..0] USB Data Line Status Monitor */
volatile const uint16_t IDMON : 1; /* [2..2] External ID0 Input Pin Monitor */
uint16_t : 2;
- volatile const uint16_t
- SOFEA : 1; /* [5..5] SOF Active Monitor While Host Controller Function is Selected. */
+ volatile const uint16_t SOFEA : 1; /* [5..5] SOF Active Monitor While Host Controller Function is Selected. */
volatile const uint16_t HTACT : 1; /* [6..6] USB Host Sequencer Status Monitor */
uint16_t : 7;
volatile const uint16_t OVCMON : 2; /* [15..14] External USB0_OVRCURA/ USB0_OVRCURB Input Pin Monitor */
@@ -111,7 +133,7 @@ typedef struct {
struct TU_ATTR_PACKED {
volatile const uint16_t PLLLOCK : 1; /* [0..0] PLL Lock Flag */
- uint16_t : 15;
+ uint16_t : 15;
} PLLSTA_b;
};
@@ -139,7 +161,7 @@ typedef struct {
struct TU_ATTR_PACKED {
volatile uint16_t UTST : 4; /* [3..0] Test Mode */
- uint16_t : 12;
+ uint16_t : 12;
} TESTMODE_b;
};
volatile const uint16_t RESERVED1;
@@ -295,7 +317,7 @@ typedef struct {
volatile uint16_t INTENB0; /* (@ 0x00000030) Interrupt Enable Register 0 */
struct TU_ATTR_PACKED {
- uint16_t : 8;
+ uint16_t : 8;
volatile uint16_t BRDYE : 1; /* [8..8] Buffer Ready Interrupt Enable */
volatile uint16_t NRDYE : 1; /* [9..9] Buffer Not Ready Response Interrupt Enable */
volatile uint16_t BEMPE : 1; /* [10..10] Buffer Empty Interrupt Enable */
@@ -316,7 +338,10 @@ typedef struct {
volatile uint16_t SACKE : 1; /* [4..4] Setup Transaction Normal Response Interrupt Enable */
volatile uint16_t SIGNE : 1; /* [5..5] Setup Transaction Error Interrupt Enable */
volatile uint16_t EOFERRE : 1; /* [6..6] EOF Error Detection Interrupt Enable */
- uint16_t : 4;
+ uint16_t : 1;
+ volatile uint16_t LPMENDE : 1; /*!< [8..8] LPM Transaction End Interrupt Enable */
+ volatile uint16_t L1RSMENDE : 1; /*!< [9..9] L1 Resume End Interrupt Enable */
+ uint16_t : 1;
volatile uint16_t ATTCHE : 1; /* [11..11] Connection Detection Interrupt Enable */
volatile uint16_t DTCHE : 1; /* [12..12] Disconnection Detection Interrupt Enable */
uint16_t : 1;
@@ -340,7 +365,7 @@ typedef struct {
volatile uint16_t PIPE7BRDYE : 1; /* [7..7] BRDY Interrupt Enable for PIPE */
volatile uint16_t PIPE8BRDYE : 1; /* [8..8] BRDY Interrupt Enable for PIPE */
volatile uint16_t PIPE9BRDYE : 1; /* [9..9] BRDY Interrupt Enable for PIPE */
- uint16_t : 6;
+ uint16_t : 6;
} BRDYENB_b;
};
@@ -358,7 +383,7 @@ typedef struct {
volatile uint16_t PIPE7NRDYE : 1; /* [7..7] NRDY Interrupt Enable for PIPE */
volatile uint16_t PIPE8NRDYE : 1; /* [8..8] NRDY Interrupt Enable for PIPE */
volatile uint16_t PIPE9NRDYE : 1; /* [9..9] NRDY Interrupt Enable for PIPE */
- uint16_t : 6;
+ uint16_t : 6;
} NRDYENB_b;
};
@@ -376,7 +401,7 @@ typedef struct {
volatile uint16_t PIPE7BEMPE : 1; /* [7..7] BEMP Interrupt Enable for PIPE */
volatile uint16_t PIPE8BEMPE : 1; /* [8..8] BEMP Interrupt Enable for PIPE */
volatile uint16_t PIPE9BEMPE : 1; /* [9..9] BEMP Interrupt Enable for PIPE */
- uint16_t : 6;
+ uint16_t : 6;
} BEMPENB_b;
};
@@ -390,7 +415,7 @@ typedef struct {
volatile uint16_t BRDYM : 1; /* [6..6] BRDY Interrupt Status Clear Timing */
uint16_t : 1;
volatile uint16_t TRNENSEL : 1; /* [8..8] Transaction-Enabled Time Select */
- uint16_t : 7;
+ uint16_t : 7;
} SOFCFG_b;
};
@@ -467,7 +492,7 @@ typedef struct {
volatile uint16_t PIPE7BRDY : 1; /* [7..7] BRDY Interrupt Status for PIPE */
volatile uint16_t PIPE8BRDY : 1; /* [8..8] BRDY Interrupt Status for PIPE */
volatile uint16_t PIPE9BRDY : 1; /* [9..9] BRDY Interrupt Status for PIPE */
- uint16_t : 6;
+ uint16_t : 6;
} BRDYSTS_b;
};
@@ -485,7 +510,7 @@ typedef struct {
volatile uint16_t PIPE7NRDY : 1; /* [7..7] NRDY Interrupt Status for PIPE */
volatile uint16_t PIPE8NRDY : 1; /* [8..8] NRDY Interrupt Status for PIPE */
volatile uint16_t PIPE9NRDY : 1; /* [9..9] NRDY Interrupt Status for PIPE */
- uint16_t : 6;
+ uint16_t : 6;
} NRDYSTS_b;
};
@@ -503,7 +528,7 @@ typedef struct {
volatile uint16_t PIPE7BEMP : 1; /* [7..7] BEMP Interrupt Status for PIPE */
volatile uint16_t PIPE8BEMP : 1; /* [8..8] BEMP Interrupt Status for PIPE */
volatile uint16_t PIPE9BEMP : 1; /* [9..9] BEMP Interrupt Status for PIPE */
- uint16_t : 6;
+ uint16_t : 6;
} BEMPSTS_b;
};
@@ -609,7 +634,8 @@ typedef struct {
volatile uint16_t SQCLR : 1; /* [8..8] Sequence Toggle Bit Clear */
uint16_t : 2;
volatile uint16_t SUREQCLR : 1; /* [11..11] SUREQ Bit Clear */
- uint16_t : 2;
+ volatile uint16_t CSSTS : 1; /* [12..12] Split Transaction COMPLETE SPLIT(CSPLIT) Status */
+ volatile uint16_t CSCLR : 1; /* [13..13] Split Transaction CSPLIT Status Clear */
volatile uint16_t SUREQ : 1; /* [14..14] Setup Token Transmission */
volatile const uint16_t BSTS : 1; /* [15..15] Buffer Status */
} DCPCTR_b;
@@ -621,7 +647,7 @@ typedef struct {
struct TU_ATTR_PACKED {
volatile uint16_t PIPESEL : 4; /* [3..0] Pipe Window Select */
- uint16_t : 12;
+ uint16_t : 12;
} PIPESEL_b;
};
volatile const uint16_t RESERVED11;
@@ -634,21 +660,31 @@ typedef struct {
volatile uint16_t DIR : 1; /* [4..4] Transfer Direction */
uint16_t : 2;
volatile uint16_t SHTNAK : 1; /* [7..7] Pipe Disabled at End of Transfer */
- uint16_t : 1;
+ volatile uint16_t CNTMD : 1; /* [8..8] Continuous Transfer Mode */
volatile uint16_t DBLB : 1; /* [9..9] Double Buffer Mode */
volatile uint16_t BFRE : 1; /* [10..10] BRDY Interrupt Operation Specification */
uint16_t : 3;
volatile uint16_t TYPE : 2; /* [15..14] Transfer Type */
} PIPECFG_b;
};
- volatile const uint16_t RESERVED12;
+
+ union {
+ volatile uint16_t PIPEBUF; /*!< (@ 0x0000006A) Pipe Buffer Register */
+
+ struct {
+ volatile uint16_t BUFNMB : 8; // [7..0] Buffer NumberThese bits specify the FIFO buffer number of the selected pipe (04h to 87h)
+ uint16_t : 2;
+ volatile uint16_t BUFSIZE : 5; /*!< [14..10] Buffer Size 00h: 64 bytes 01h: 128 bytes : 1Fh: 2 Kbytes */
+ uint16_t : 1;
+ } PIPEBUF_b;
+ };
union {
volatile uint16_t PIPEMAXP; /* (@ 0x0000006C) Pipe Maximum Packet Size Register */
struct TU_ATTR_PACKED {
- volatile uint16_t MXPS : 9; /* [8..0] Maximum Packet Size */
- uint16_t : 3;
+ volatile uint16_t MXPS : 11; /* [10..0] Maximum Packet Size */
+ uint16_t : 1;
volatile uint16_t DEVSEL : 4; /* [15..12] Device Select */
} PIPEMAXP_b;
};
@@ -694,11 +730,9 @@ typedef struct {
struct TU_ATTR_PACKED {
volatile uint16_t RPDME0 : 1; /* [0..0] D- Pin Pull-Down Control */
volatile uint16_t IDPSRCE0 : 1; /* [1..1] D+ Pin IDPSRC Output Control */
- volatile uint16_t
- IDMSINKE0 : 1; /* [2..2] D- Pin 0.6 V Input Detection (Comparator and Sink) Control */
+ volatile uint16_t IDMSINKE0 : 1; /* [2..2] D- Pin 0.6 V Input Detection (Comparator and Sink) Control */
volatile uint16_t VDPSRCE0 : 1; /* [3..3] D+ Pin VDPSRC (0.6 V) Output Control */
- volatile uint16_t
- IDPSINKE0 : 1; /* [4..4] D+ Pin 0.6 V Input Detection (Comparator and Sink) Control */
+ volatile uint16_t IDPSINKE0 : 1; /* [4..4] D+ Pin 0.6 V Input Detection (Comparator and Sink) Control */
volatile uint16_t VDMSRCE0 : 1; /* [5..5] D- Pin VDMSRC (0.6 V) Output Control */
uint16_t : 1;
volatile uint16_t BATCHGE0 : 1; /* [7..7] BC (Battery Charger) Function Ch0 General Enable Control */
@@ -715,7 +749,7 @@ typedef struct {
struct TU_ATTR_PACKED {
volatile uint16_t UCKSELC : 1; /* [0..0] USB Clock Selection */
- uint16_t : 15;
+ uint16_t : 15;
} UCKSEL_b;
};
volatile const uint16_t RESERVED18;
@@ -737,11 +771,11 @@ typedef struct {
volatile uint16_t DEVADD[10]; /* (@ 0x000000D0) Device Address Configuration Register */
struct TU_ATTR_PACKED {
- uint16_t : 6;
+ uint16_t : 6;
volatile uint16_t USBSPD : 2; /* [7..6] Transfer Speed of Communication Target Device */
volatile uint16_t HUBPORT : 3; /* [10..8] Communication Target Connecting Hub Port */
volatile uint16_t UPPHUB : 4; /* [14..11] Communication Target Connecting Hub Register */
- uint16_t : 1;
+ uint16_t : 1;
} DEVADD_b[10];
};
volatile const uint32_t RESERVED21[3];
@@ -754,7 +788,7 @@ typedef struct {
volatile uint32_t SLEWR01 : 1; /* [1..1] Receiver Cross Point Adjustment 01 */
volatile uint32_t SLEWF00 : 1; /* [2..2] Receiver Cross Point Adjustment 00 */
volatile uint32_t SLEWF01 : 1; /* [3..3] Receiver Cross Point Adjustment 01 */
- uint32_t : 28;
+ uint32_t : 28;
} PHYSLEW_b;
};
volatile const uint32_t RESERVED22[3];
@@ -763,9 +797,9 @@ typedef struct {
volatile uint16_t LPCTRL; /* (@ 0x00000100) Low Power Control Register */
struct TU_ATTR_PACKED {
- uint16_t : 7;
+ uint16_t : 7;
volatile uint16_t HWUPM : 1; /* [7..7] Resume Return Mode Setting */
- uint16_t : 8;
+ uint16_t : 8;
} LPCTRL_b;
};
@@ -773,9 +807,9 @@ typedef struct {
volatile uint16_t LPSTS; /* (@ 0x00000102) Low Power Status Register */
struct TU_ATTR_PACKED {
- uint16_t : 14;
+ uint16_t : 14;
volatile uint16_t SUSPENDM : 1; /* [14..14] UTMI SuspendM Control */
- uint16_t : 1;
+ uint16_t : 1;
} LPSTS_b;
};
volatile const uint32_t RESERVED23[15];
@@ -793,7 +827,7 @@ typedef struct {
uint16_t : 2;
volatile const uint16_t CHGDETSTS : 1; /* [8..8] CHGDET Status */
volatile const uint16_t PDDETSTS : 1; /* [9..9] PDDET Status */
- uint16_t : 6;
+ uint16_t : 6;
} BCCTRL_b;
};
volatile const uint16_t RESERVED24;
@@ -809,7 +843,7 @@ typedef struct {
volatile uint16_t HIRDTHR : 4; /* [11..8] L1 Response Negotiation Threshold Value */
uint16_t : 2;
volatile uint16_t L1EXTMD : 1; /* [14..14] PHY Control Mode at L1 Return */
- uint16_t : 1;
+ uint16_t : 1;
} PL1CTRL1_b;
};
@@ -817,10 +851,10 @@ typedef struct {
volatile uint16_t PL1CTRL2; /* (@ 0x00000146) Function L1 Control Register 2 */
struct TU_ATTR_PACKED {
- uint16_t : 8;
+ uint16_t : 8;
volatile uint16_t HIRDMON : 4; /* [11..8] HIRD Value Monitor */
volatile uint16_t RWEMON : 1; /* [12..12] RWE Value Monitor */
- uint16_t : 3;
+ uint16_t : 3;
} PL1CTRL2_b;
};
@@ -830,7 +864,7 @@ typedef struct {
struct TU_ATTR_PACKED {
volatile uint16_t L1REQ : 1; /* [0..0] L1 Transition Request */
volatile const uint16_t L1STATUS : 2; /* [2..1] L1 Request Completion Status */
- uint16_t : 13;
+ uint16_t : 13;
} HL1CTRL1_b;
};
@@ -846,18 +880,48 @@ typedef struct {
volatile uint16_t BESL : 1; /* [15..15] BESL & Alternate HIRD */
} HL1CTRL2_b;
};
- volatile const uint32_t RESERVED25[5];
+
+ volatile uint32_t RESERVED25_1;
+
+ union {
+ volatile uint16_t PHYTRIM1; /*!< (@ 0x00000150) PHY Timing Register 1 */
+
+ struct {
+ volatile uint16_t DRISE : 2; /*!< [1..0] FS/LS Rising-Edge Output Waveform Adjustment Function */
+ volatile uint16_t DFALL : 2; /*!< [3..2] FS/LS Falling-Edge Output Waveform Adjustment Function */
+ uint16_t : 3;
+ volatile uint16_t PCOMPENB : 1; /*!< [7..7] PVDD Start-up Detection */
+ volatile uint16_t HSIUP : 4; /*!< [11..8] HS Output Level Setting */
+ volatile uint16_t IMPOFFSET : 3; /*!< [14..12] terminating resistance offset value setting.Offset value for adjusting the terminating resistance. */
+ uint16_t : 1;
+ } PHYTRIM1_b;
+ };
+
+ union {
+ volatile uint16_t PHYTRIM2; /*!< (@ 0x00000152) PHY Timing Register 2 */
+
+ struct {
+ volatile uint16_t SQU : 4; /*!< [3..0] Squelch Detection Level */
+ uint16_t : 3;
+ volatile uint16_t HSRXENMO : 1; /*!< [7..7] HS Receive Enable Control Mode */
+ volatile uint16_t PDR : 2; /*!< [9..8] HS Output Adjustment Function */
+ uint16_t : 2;
+ volatile uint16_t DIS : 3; /*!< [14..12] Disconnect Detection Level */
+ uint16_t : 1;
+ } PHYTRIM2_b;
+ };
+ volatile uint32_t RESERVED25_2[3];
union {
volatile const uint32_t DPUSR0R; /* (@ 0x00000160) Deep Standby USB Transceiver Control/Pin Monitor Register */
struct TU_ATTR_PACKED {
- uint32_t : 20;
+ uint32_t : 20;
volatile const uint32_t DOVCAHM : 1; /* [20..20] OVRCURA InputIndicates OVRCURA input signal on the HS side of USB port. */
volatile const uint32_t DOVCBHM : 1; /* [21..21] OVRCURB InputIndicates OVRCURB input signal on the HS side of USB port. */
uint32_t : 1;
volatile const uint32_t DVBSTSHM : 1; /* [23..23] VBUS InputIndicates VBUS input signal on the HS side of USB port. */
- uint32_t : 8;
+ uint32_t : 8;
} DPUSR0R_b;
};
@@ -865,7 +929,7 @@ typedef struct {
volatile uint32_t DPUSR1R; /* (@ 0x00000164) Deep Standby USB Suspend/Resume Interrupt Register */
struct TU_ATTR_PACKED {
- uint32_t : 4;
+ uint32_t : 4;
volatile uint32_t DOVCAHE : 1; /* [4..4] OVRCURA Interrupt Enable Clear */
volatile uint32_t DOVCBHE : 1; /* [5..5] OVRCURB Interrupt Enable Clear */
uint32_t : 1;
@@ -875,7 +939,7 @@ typedef struct {
volatile const uint32_t DOVCBH : 1; /* [21..21] Indication of Return from OVRCURB Interrupt Source */
uint32_t : 1;
volatile const uint32_t DVBSTSH : 1; /* [23..23] Indication of Return from VBUS Interrupt Source */
- uint32_t : 8;
+ uint32_t : 8;
} DPUSR1R_b;
};
@@ -891,7 +955,7 @@ typedef struct {
uint16_t : 2;
volatile uint16_t DPINTE : 1; /* [8..8] DP Interrupt Enable Clear */
volatile uint16_t DMINTE : 1; /* [9..9] DM Interrupt Enable Clear */
- uint16_t : 6;
+ uint16_t : 6;
} DPUSR2R_b;
};
@@ -901,7 +965,7 @@ typedef struct {
struct TU_ATTR_PACKED {
volatile uint16_t FIXPHY : 1; /* [0..0] USB Transceiver Control Fix */
volatile uint16_t FIXPHYPD : 1; /* [1..1] USB Transceiver Control Fix for PLL */
- uint16_t : 14;
+ uint16_t : 14;
} DPUSRCR_b;
};
volatile const uint32_t RESERVED26[165];
@@ -924,7 +988,7 @@ typedef struct {
volatile const uint32_t DOVCB0 : 1; /* [21..21] USB OVRCURB InputIndicates the OVRCURB input signal of the USB. */
uint32_t : 1;
volatile const uint32_t DVBSTS0 : 1; /* [23..23] USB VBUS InputIndicates the VBUS input signal of the USB. */
- uint32_t : 8;
+ uint32_t : 8;
} DPUSR0R_FS_b;
};
@@ -947,10 +1011,10 @@ typedef struct {
volatile const uint32_t DOVRCRB0 : 1; /* [21..21] USB OVRCURB Interrupt Source Recovery */
uint32_t : 1;
volatile const uint32_t DVBINT0 : 1; /* [23..23] USB VBUS Interrupt Source Recovery */
- uint32_t : 8;
+ uint32_t : 8;
} DPUSR1R_FS_b;
};
-} RUSB2_REG_t; /* Size = 1032 (0x408) */
+} rusb2_reg_t; /* Size = 1032 (0x408) */
TU_ATTR_PACKED_END /* End of definition of packed structs (used by the CCRX toolchain) */
TU_ATTR_BIT_FIELD_ORDER_END
@@ -970,13 +1034,15 @@ TU_ATTR_BIT_FIELD_ORDER_END
#define RUSB2_PIPE_TR_N_TRNCNT_Pos (0UL) /* TRNCNT (Bit 0) */
#define RUSB2_PIPE_TR_N_TRNCNT_Msk (0xffffUL) /* TRNCNT (Bitfield-Mask: 0xffff) */
-// LINK_REG
+// Core Registers
// SYSCFG
#define RUSB2_SYSCFG_SCKE_Pos (10UL) /* SCKE (Bit 10) */
#define RUSB2_SYSCFG_SCKE_Msk (0x400UL) /* SCKE (Bitfield-Mask: 0x01) */
#define RUSB2_SYSCFG_CNEN_Pos (8UL) /* CNEN (Bit 8) */
#define RUSB2_SYSCFG_CNEN_Msk (0x100UL) /* CNEN (Bitfield-Mask: 0x01) */
+#define RUSB2_SYSCFG_HSE_Pos (7UL) /*!< HSE (Bit 7) */
+#define RUSB2_SYSCFG_HSE_Msk (0x80UL) /*!< HSE (Bitfield-Mask: 0x01) */
#define RUSB2_SYSCFG_DCFM_Pos (6UL) /* DCFM (Bit 6) */
#define RUSB2_SYSCFG_DCFM_Msk (0x40UL) /* DCFM (Bitfield-Mask: 0x01) */
#define RUSB2_SYSCFG_DRPD_Pos (5UL) /* DRPD (Bit 5) */
@@ -1135,6 +1201,10 @@ TU_ATTR_BIT_FIELD_ORDER_END
#define RUSB2_INTENB1_DTCHE_Msk (0x1000UL) /* DTCHE (Bitfield-Mask: 0x01) */
#define RUSB2_INTENB1_ATTCHE_Pos (11UL) /* ATTCHE (Bit 11) */
#define RUSB2_INTENB1_ATTCHE_Msk (0x800UL) /* ATTCHE (Bitfield-Mask: 0x01) */
+#define RUSB2_INTENB1_L1RSMENDE_Pos (9UL) /*!< L1RSMENDE (Bit 9) */
+#define RUSB2_INTENB1_L1RSMENDE_Msk (0x200UL) /*!< L1RSMENDE (Bitfield-Mask: 0x01) */
+#define RUSB2_INTENB1_LPMENDE_Pos (8UL) /*!< LPMENDE (Bit 8) */
+#define RUSB2_INTENB1_LPMENDE_Msk (0x100UL) /*!< LPMENDE (Bitfield-Mask: 0x01) */
#define RUSB2_INTENB1_EOFERRE_Pos (6UL) /* EOFERRE (Bit 6) */
#define RUSB2_INTENB1_EOFERRE_Msk (0x40UL) /* EOFERRE (Bitfield-Mask: 0x01) */
#define RUSB2_INTENB1_SIGNE_Pos (5UL) /* SIGNE (Bit 5) */
@@ -1299,6 +1369,10 @@ TU_ATTR_BIT_FIELD_ORDER_END
#define RUSB2_DCPCTR_BSTS_Msk (0x8000UL) /* BSTS (Bitfield-Mask: 0x01) */
#define RUSB2_DCPCTR_SUREQ_Pos (14UL) /* SUREQ (Bit 14) */
#define RUSB2_DCPCTR_SUREQ_Msk (0x4000UL) /* SUREQ (Bitfield-Mask: 0x01) */
+#define R_USB_HS0_DCPCTR_CSCLR_Pos (13UL) /*!< CSCLR (Bit 13) */
+#define RUSB2_DCPCTR_CSCLR_Msk (0x2000UL) /*!< CSCLR (Bitfield-Mask: 0x01) */
+#define RUSB2_DCPCTR_CSSTS_Pos (12UL) /*!< CSSTS (Bit 12) */
+#define RUSB2_DCPCTR_CSSTS_Msk (0x1000UL) /*!< CSSTS (Bitfield-Mask: 0x01) */
#define RUSB2_DCPCTR_SUREQCLR_Pos (11UL) /* SUREQCLR (Bit 11) */
#define RUSB2_DCPCTR_SUREQCLR_Msk (0x800UL) /* SUREQCLR (Bitfield-Mask: 0x01) */
#define RUSB2_DCPCTR_SQCLR_Pos (8UL) /* SQCLR (Bit 8) */
@@ -1325,6 +1399,8 @@ TU_ATTR_BIT_FIELD_ORDER_END
#define RUSB2_PIPECFG_BFRE_Msk (0x400UL) /* BFRE (Bitfield-Mask: 0x01) */
#define RUSB2_PIPECFG_DBLB_Pos (9UL) /* DBLB (Bit 9) */
#define RUSB2_PIPECFG_DBLB_Msk (0x200UL) /* DBLB (Bitfield-Mask: 0x01) */
+#define RUSB2_PIPECFG_CNTMD_Pos (8UL) /*!< CNTMD (Bit 8) */
+#define RUSB2_PIPECFG_CNTMD_Msk (0x100UL) /*!< CNTMD (Bitfield-Mask: 0x01) */
#define RUSB2_PIPECFG_SHTNAK_Pos (7UL) /* SHTNAK (Bit 7) */
#define RUSB2_PIPECFG_SHTNAK_Msk (0x80UL) /* SHTNAK (Bitfield-Mask: 0x01) */
#define RUSB2_PIPECFG_DIR_Pos (4UL) /* DIR (Bit 4) */
@@ -1332,6 +1408,12 @@ TU_ATTR_BIT_FIELD_ORDER_END
#define RUSB2_PIPECFG_EPNUM_Pos (0UL) /* EPNUM (Bit 0) */
#define RUSB2_PIPECFG_EPNUM_Msk (0xfUL) /* EPNUM (Bitfield-Mask: 0x0f) */
+// PIPEBUF
+#define RUSB2_PIPEBUF_BUFSIZE_Pos (10UL) /*!< BUFSIZE (Bit 10) */
+#define RUSB2_PIPEBUF_BUFSIZE_Msk (0x7c00UL) /*!< BUFSIZE (Bitfield-Mask: 0x1f) */
+#define RUSB2_PIPEBUF_BUFNMB_Pos (0UL) /*!< BUFNMB (Bit 0) */
+#define RUSB2_PIPEBUF_BUFNMB_Msk (0xffUL) /*!< BUFNMB (Bitfield-Mask: 0xff) */
+
// PIPEMAXP
#define RUSB2_PIPEMAXP_DEVSEL_Pos (12UL) /* DEVSEL (Bit 12) */
#define RUSB2_PIPEMAXP_DEVSEL_Msk (0xf000UL) /* DEVSEL (Bitfield-Mask: 0x0f) */
@@ -1478,6 +1560,28 @@ TU_ATTR_BIT_FIELD_ORDER_END
#define RUSB2_HL1CTRL2_L1ADDR_Pos (0UL) /* L1ADDR (Bit 0) */
#define RUSB2_HL1CTRL2_L1ADDR_Msk (0xfUL) /* L1ADDR (Bitfield-Mask: 0x0f) */
+// PHYTRIM1
+#define RUSB2_PHYTRIM1_IMPOFFSET_Pos (12UL) /*!< IMPOFFSET (Bit 12) */
+#define RUSB2_PHYTRIM1_IMPOFFSET_Msk (0x7000UL) /*!< IMPOFFSET (Bitfield-Mask: 0x07) */
+#define RUSB2_PHYTRIM1_HSIUP_Pos (8UL) /*!< HSIUP (Bit 8) */
+#define RUSB2_PHYTRIM1_HSIUP_Msk (0xf00UL) /*!< HSIUP (Bitfield-Mask: 0x0f) */
+#define RUSB2_PHYTRIM1_PCOMPENB_Pos (7UL) /*!< PCOMPENB (Bit 7) */
+#define RUSB2_PHYTRIM1_PCOMPENB_Msk (0x80UL) /*!< PCOMPENB (Bitfield-Mask: 0x01) */
+#define RUSB2_PHYTRIM1_DFALL_Pos (2UL) /*!< DFALL (Bit 2) */
+#define RUSB2_PHYTRIM1_DFALL_Msk (0xcUL) /*!< DFALL (Bitfield-Mask: 0x03) */
+#define RUSB2_PHYTRIM1_DRISE_Pos (0UL) /*!< DRISE (Bit 0) */
+#define RUSB2_PHYTRIM1_DRISE_Msk (0x3UL) /*!< DRISE (Bitfield-Mask: 0x03) */
+
+// PHYTRIM2
+#define RUSB2_PHYTRIM2_DIS_Pos (12UL) /*!< DIS (Bit 12) */
+#define RUSB2_PHYTRIM2_DIS_Msk (0x7000UL) /*!< DIS (Bitfield-Mask: 0x07) */
+#define RUSB2_PHYTRIM2_PDR_Pos (8UL) /*!< PDR (Bit 8) */
+#define RUSB2_PHYTRIM2_PDR_Msk (0x300UL) /*!< PDR (Bitfield-Mask: 0x03) */
+#define RUSB2_PHYTRIM2_HSRXENMO_Pos (7UL) /*!< HSRXENMO (Bit 7) */
+#define RUSB2_PHYTRIM2_HSRXENMO_Msk (0x80UL) /*!< HSRXENMO (Bitfield-Mask: 0x01) */
+#define RUSB2_PHYTRIM2_SQU_Pos (0UL) /*!< SQU (Bit 0) */
+#define RUSB2_PHYTRIM2_SQU_Msk (0xfUL) /*!< SQU (Bitfield-Mask: 0x0f) */
+
// DPUSR0R
#define RUSB2_DPUSR0R_DVBSTSHM_Pos (23UL) /* DVBSTSHM (Bit 23) */
#define RUSB2_DPUSR0R_DVBSTSHM_Msk (0x800000UL) /* DVBSTSHM (Bitfield-Mask: 0x01) */
@@ -1572,6 +1676,7 @@ TU_ATTR_BIT_FIELD_ORDER_END
#define RUSB2_DVSTCTR0_RHST_LS (1U << RUSB2_DVSTCTR0_RHST_Pos) /* Low-speed connection */
#define RUSB2_DVSTCTR0_RHST_FS (2U << RUSB2_DVSTCTR0_RHST_Pos) /* Full-speed connection */
+#define RUSB2_DVSTCTR0_RHST_HS (3U << RUSB2_DVSTCTR0_RHST_Pos) /* Full-speed connection */
#define RUSB2_DEVADD_USBSPD_LS (1U << RUSB2_DEVADD_USBSPD_Pos) /* Target Device Low-speed */
#define RUSB2_DEVADD_USBSPD_FS (2U << RUSB2_DEVADD_USBSPD_Pos) /* Target Device Full-speed */
@@ -1581,6 +1686,7 @@ TU_ATTR_BIT_FIELD_ORDER_END
#define RUSB2_FIFOSEL_BIGEND (1U << RUSB2_CFIFOSEL_BIGEND_Pos) /* FIFO Big Endian */
#define RUSB2_FIFOSEL_MBW_8BIT (0U << RUSB2_CFIFOSEL_MBW_Pos) /* 8-bit width */
#define RUSB2_FIFOSEL_MBW_16BIT (1U << RUSB2_CFIFOSEL_MBW_Pos) /* 16-bit width */
+#define RUSB2_FIFOSEL_MBW_32BIT (2U << RUSB2_CFIFOSEL_MBW_Pos) /* 32-bit width */
#define RUSB2_INTSTS0_CTSQ_CTRL_RDATA (1U << RUSB2_INTSTS0_CTSQ_Pos)
@@ -1600,69 +1706,72 @@ TU_ATTR_BIT_FIELD_ORDER_END
//--------------------------------------------------------------------+
TU_VERIFY_STATIC(sizeof(RUSB2_PIPE_TR_t) == 4, "incorrect size");
-TU_VERIFY_STATIC(sizeof(RUSB2_REG_t) == 1032, "incorrect size");
+TU_VERIFY_STATIC(sizeof(rusb2_reg_t) == 1032, "incorrect size");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, SYSCFG ) == 0x00000000, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, BUSWAIT ) == 0x00000002, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, SYSSTS0 ) == 0x00000004, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, PLLSTA ) == 0x00000006, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, DVSTCTR0 ) == 0x00000008, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, TESTMODE ) == 0x0000000C, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, CFIFO ) == 0x00000014, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, D0FIFO ) == 0x00000018, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, D1FIFO ) == 0x0000001C, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, CFIFOSEL ) == 0x00000020, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, CFIFOCTR ) == 0x00000022, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, D0FIFOSEL ) == 0x00000028, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, D0FIFOCTR ) == 0x0000002A, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, D1FIFOSEL ) == 0x0000002C, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, D1FIFOCTR ) == 0x0000002E, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, INTENB0 ) == 0x00000030, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, INTENB1 ) == 0x00000032, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, BRDYENB ) == 0x00000036, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, NRDYENB ) == 0x00000038, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, BEMPENB ) == 0x0000003A, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, SOFCFG ) == 0x0000003C, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, PHYSET ) == 0x0000003E, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, INTSTS0 ) == 0x00000040, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, INTSTS1 ) == 0x00000042, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, BRDYSTS ) == 0x00000046, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, NRDYSTS ) == 0x00000048, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, BEMPSTS ) == 0x0000004A, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, FRMNUM ) == 0x0000004C, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, UFRMNUM ) == 0x0000004E, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, USBADDR ) == 0x00000050, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, USBREQ ) == 0x00000054, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, USBVAL ) == 0x00000056, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, USBINDX ) == 0x00000058, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, USBLENG ) == 0x0000005A, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, DCPCFG ) == 0x0000005C, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, DCPMAXP ) == 0x0000005E, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, DCPCTR ) == 0x00000060, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, PIPESEL ) == 0x00000064, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, PIPECFG ) == 0x00000068, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, PIPEMAXP ) == 0x0000006C, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, PIPEPERI ) == 0x0000006E, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, PIPE_CTR ) == 0x00000070, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, PIPE_TR ) == 0x00000090, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, USBBCCTRL0 ) == 0x000000B0, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, UCKSEL ) == 0x000000C4, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, USBMC ) == 0x000000CC, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, DEVADD ) == 0x000000D0, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, PHYSLEW ) == 0x000000F0, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, LPCTRL ) == 0x00000100, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, LPSTS ) == 0x00000102, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, BCCTRL ) == 0x00000140, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, PL1CTRL1 ) == 0x00000144, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, PL1CTRL2 ) == 0x00000146, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, HL1CTRL1 ) == 0x00000148, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, HL1CTRL2 ) == 0x0000014A, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, DPUSR0R ) == 0x00000160, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, DPUSR1R ) == 0x00000164, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, DPUSR2R ) == 0x00000168, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, DPUSRCR ) == 0x0000016A, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, DPUSR0R_FS ) == 0x00000400, "incorrect offset");
-TU_VERIFY_STATIC(offsetof(RUSB2_REG_t, DPUSR1R_FS ) == 0x00000404, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, SYSCFG ) == 0x0000, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, BUSWAIT ) == 0x0002, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, SYSSTS0 ) == 0x0004, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, PLLSTA ) == 0x0006, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, DVSTCTR0 ) == 0x0008, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, TESTMODE ) == 0x000C, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, CFIFO ) == 0x0014, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, D0FIFO ) == 0x0018, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, D1FIFO ) == 0x001C, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, CFIFOSEL ) == 0x0020, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, CFIFOCTR ) == 0x0022, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, D0FIFOSEL ) == 0x0028, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, D0FIFOCTR ) == 0x002A, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, D1FIFOSEL ) == 0x002C, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, D1FIFOCTR ) == 0x002E, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, INTENB0 ) == 0x0030, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, INTENB1 ) == 0x0032, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, BRDYENB ) == 0x0036, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, NRDYENB ) == 0x0038, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, BEMPENB ) == 0x003A, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, SOFCFG ) == 0x003C, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, PHYSET ) == 0x003E, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, INTSTS0 ) == 0x0040, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, INTSTS1 ) == 0x0042, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, BRDYSTS ) == 0x0046, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, NRDYSTS ) == 0x0048, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, BEMPSTS ) == 0x004A, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, FRMNUM ) == 0x004C, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, UFRMNUM ) == 0x004E, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, USBADDR ) == 0x0050, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, USBREQ ) == 0x0054, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, USBVAL ) == 0x0056, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, USBINDX ) == 0x0058, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, USBLENG ) == 0x005A, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, DCPCFG ) == 0x005C, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, DCPMAXP ) == 0x005E, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, DCPCTR ) == 0x0060, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, PIPESEL ) == 0x0064, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, PIPECFG ) == 0x0068, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, PIPEBUF ) == 0x006A, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, PIPEMAXP ) == 0x006C, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, PIPEPERI ) == 0x006E, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, PIPE_CTR ) == 0x0070, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, PIPE_TR ) == 0x0090, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, USBBCCTRL0 ) == 0x00B0, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, UCKSEL ) == 0x00C4, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, USBMC ) == 0x00CC, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, DEVADD ) == 0x00D0, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, PHYSLEW ) == 0x00F0, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, LPCTRL ) == 0x0100, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, LPSTS ) == 0x0102, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, BCCTRL ) == 0x0140, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, PL1CTRL1 ) == 0x0144, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, PL1CTRL2 ) == 0x0146, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, HL1CTRL1 ) == 0x0148, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, HL1CTRL2 ) == 0x014A, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, PHYTRIM1 ) == 0x0150, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, PHYTRIM2 ) == 0x0152, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, DPUSR0R ) == 0x0160, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, DPUSR1R ) == 0x0164, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, DPUSR2R ) == 0x0168, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, DPUSRCR ) == 0x016A, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, DPUSR0R_FS ) == 0x0400, "incorrect offset");
+TU_VERIFY_STATIC(offsetof(rusb2_reg_t, DPUSR1R_FS ) == 0x0404, "incorrect offset");
#ifdef __cplusplus
}
diff --git a/src/portable/sony/cxd56/dcd_cxd56.c b/src/portable/sony/cxd56/dcd_cxd56.c
index 6677891a5..41814370e 100644
--- a/src/portable/sony/cxd56/dcd_cxd56.c
+++ b/src/portable/sony/cxd56/dcd_cxd56.c
@@ -102,17 +102,25 @@ static int _dcd_bind(FAR struct usbdevclass_driver_s *driver, FAR struct usbdev_
usbdev = dev;
usbdcd_driver.ep[0] = dev->ep0;
+ #ifdef EP_ALLOCREQ
+ // SDK v2
usbdcd_driver.req[0] = EP_ALLOCREQ(usbdcd_driver.ep[0]);
- if (usbdcd_driver.req[0] != NULL)
- {
+ if (usbdcd_driver.req[0] != NULL) {
usbdcd_driver.req[0]->len = 64;
usbdcd_driver.req[0]->buf = EP_ALLOCBUFFER(usbdcd_driver.ep[0], 64);
- if (!usbdcd_driver.req[0]->buf)
- {
+ if (!usbdcd_driver.req[0]->buf) {
EP_FREEREQ(usbdcd_driver.ep[0], usbdcd_driver.req[0]);
usbdcd_driver.req[0] = NULL;
+ return ENOMEM;
}
}
+ #else
+ // SDK v3
+ usbdcd_driver.req[0] = usbdev_allocreq(usbdcd_driver.ep[0], 64);
+ if (usbdcd_driver.req[0] == NULL) {
+ return ENOMEM;
+ }
+ #endif
usbdcd_driver.req[0]->callback = usbdcd_ep0incomplete;
@@ -295,13 +303,19 @@ bool dcd_edpt_open(uint8_t rhport, tusb_desc_endpoint_t const *p_endpoint_desc)
}
usbdcd_driver.req[epnum] = NULL;
+
+ #ifdef EP_ALLOCREQ
+ // sdk v2
usbdcd_driver.req[epnum] = EP_ALLOCREQ(usbdcd_driver.ep[epnum]);
- if (usbdcd_driver.req[epnum] != NULL)
- {
+ if (usbdcd_driver.req[epnum] != NULL) {
usbdcd_driver.req[epnum]->len = ep_mps;
}
- else
- {
+ #else
+ // sdk v3
+ usbdcd_driver.req[epnum] = usbdev_allocreq(usbdcd_driver.ep[epnum], ep_mps);
+ #endif
+
+ if(usbdcd_driver.req[epnum] == NULL) {
return false;
}
diff --git a/src/portable/st/stm32_fsdev/dcd_stm32_fsdev.c b/src/portable/st/stm32_fsdev/dcd_stm32_fsdev.c
index 14cabaf8d..a26c66892 100644
--- a/src/portable/st/stm32_fsdev/dcd_stm32_fsdev.c
+++ b/src/portable/st/stm32_fsdev/dcd_stm32_fsdev.c
@@ -107,9 +107,9 @@
#include "device/dcd.h"
#ifdef TUP_USBIP_FSDEV_STM32
- // Undefine to reduce the dependence on HAL
- #undef USE_HAL_DRIVER
- #include "portable/st/stm32_fsdev/dcd_stm32_fsdev_pvt_st.h"
+// Undefine to reduce the dependence on HAL
+#undef USE_HAL_DRIVER
+#include "portable/st/stm32_fsdev/dcd_stm32_fsdev.h"
#endif
/*****************************************************
@@ -119,17 +119,17 @@
// HW supports max of 8 bidirectional endpoints, but this can be reduced to save RAM
// (8u here would mean 8 IN and 8 OUT)
#ifndef MAX_EP_COUNT
-# define MAX_EP_COUNT 8U
+#define MAX_EP_COUNT 8U
#endif
// If sharing with CAN, one can set this to be non-zero to give CAN space where it wants it
// Both of these MUST be a multiple of 2, and are in byte units.
#ifndef DCD_STM32_BTABLE_BASE
-# define DCD_STM32_BTABLE_BASE 0U
+#define DCD_STM32_BTABLE_BASE 0U
#endif
-#ifndef DCD_STM32_BTABLE_LENGTH
-# define DCD_STM32_BTABLE_LENGTH (PMA_LENGTH - DCD_STM32_BTABLE_BASE)
+#ifndef DCD_STM32_BTABLE_SIZE
+#define DCD_STM32_BTABLE_SIZE (FSDEV_PMA_SIZE - DCD_STM32_BTABLE_BASE)
#endif
/***************************************************
@@ -137,7 +137,7 @@
*/
TU_VERIFY_STATIC((MAX_EP_COUNT) <= STFSDEV_EP_COUNT, "Only 8 endpoints supported on the hardware");
-TU_VERIFY_STATIC(((DCD_STM32_BTABLE_BASE) + (DCD_STM32_BTABLE_LENGTH))<=(PMA_LENGTH), "BTABLE does not fit in PMA RAM");
+TU_VERIFY_STATIC(((DCD_STM32_BTABLE_BASE) + (DCD_STM32_BTABLE_SIZE)) <= (FSDEV_PMA_SIZE), "BTABLE does not fit in PMA RAM");
TU_VERIFY_STATIC(((DCD_STM32_BTABLE_BASE) % 8) == 0, "BTABLE base must be aligned to 8 bytes");
//--------------------------------------------------------------------+
@@ -145,21 +145,18 @@ TU_VERIFY_STATIC(((DCD_STM32_BTABLE_BASE) % 8) == 0, "BTABLE base must be aligne
//--------------------------------------------------------------------+
// One of these for every EP IN & OUT, uses a bit of RAM....
-typedef struct
-{
- uint8_t * buffer;
- tu_fifo_t * ff;
+typedef struct {
+ uint8_t *buffer;
+ tu_fifo_t *ff;
uint16_t total_len;
uint16_t queued_len;
- uint16_t pma_ptr;
uint16_t max_packet_size;
- uint16_t pma_alloc_size;
- uint8_t ep_idx; // index for USB_EPnR register
+ uint8_t ep_idx; // index for USB_EPnR register
+ bool iso_in_sending; // Workaround for ISO IN EP doesn't have interrupt mask
} xfer_ctl_t;
// EP allocator
-typedef struct
-{
+typedef struct {
uint8_t ep_num;
uint8_t ep_type;
bool allocated[2];
@@ -179,28 +176,25 @@ static uint8_t remoteWakeCountdown; // When wake is requested
// into the stack.
static void dcd_handle_bus_reset(void);
-static void dcd_transmit_packet(xfer_ctl_t * xfer, uint16_t ep_ix);
+static void dcd_transmit_packet(xfer_ctl_t *xfer, uint16_t ep_ix);
+static bool edpt_xfer(uint8_t rhport, uint8_t ep_addr);
static void dcd_ep_ctr_handler(void);
// PMA allocation/access
-static uint8_t open_ep_count;
static uint16_t ep_buf_ptr; ///< Points to first free memory location
-static void dcd_pma_alloc_reset(void);
-static uint16_t dcd_pma_alloc(uint8_t ep_addr, uint16_t length);
-static void dcd_pma_free(uint8_t ep_addr);
-static void dcd_ep_free(uint8_t ep_addr);
+static uint32_t dcd_pma_alloc(uint16_t length, bool dbuf);
static uint8_t dcd_ep_alloc(uint8_t ep_addr, uint8_t ep_type);
static bool dcd_write_packet_memory(uint16_t dst, const void *__restrict src, uint16_t wNBytes);
static bool dcd_read_packet_memory(void *__restrict dst, uint16_t src, uint16_t wNBytes);
-static bool dcd_write_packet_memory_ff(tu_fifo_t * ff, uint16_t dst, uint16_t wNBytes);
-static bool dcd_read_packet_memory_ff(tu_fifo_t * ff, uint16_t src, uint16_t wNBytes);
+static bool dcd_write_packet_memory_ff(tu_fifo_t *ff, uint16_t dst, uint16_t wNBytes);
+static bool dcd_read_packet_memory_ff(tu_fifo_t *ff, uint16_t src, uint16_t wNBytes);
//--------------------------------------------------------------------+
// Inline helper
//--------------------------------------------------------------------+
-TU_ATTR_ALWAYS_INLINE static inline xfer_ctl_t* xfer_ctl_ptr(uint32_t ep_addr)
+TU_ATTR_ALWAYS_INLINE static inline xfer_ctl_t *xfer_ctl_ptr(uint32_t ep_addr)
{
uint8_t epnum = tu_edpt_number(ep_addr);
uint8_t dir = tu_edpt_dir(ep_addr);
@@ -214,7 +208,7 @@ TU_ATTR_ALWAYS_INLINE static inline xfer_ctl_t* xfer_ctl_ptr(uint32_t ep_addr)
// Controller API
//--------------------------------------------------------------------+
-void dcd_init (uint8_t rhport)
+void dcd_init(uint8_t rhport)
{
/* Clocks should already be enabled */
/* Use __HAL_RCC_USB_CLK_ENABLE(); to enable the clocks before calling this function */
@@ -222,43 +216,41 @@ void dcd_init (uint8_t rhport)
/* The RM mentions to use a special ordering of PDWN and FRES, but this isn't done in HAL.
* Here, the RM is followed. */
- for(uint32_t i = 0; i<200; i++) // should be a few us
- {
+ for (uint32_t i = 0; i < 200; i++) { // should be a few us
asm("NOP");
}
// Perform USB peripheral reset
USB->CNTR = USB_CNTR_FRES | USB_CNTR_PDWN;
- for(uint32_t i = 0; i<200; i++) // should be a few us
- {
+ for (uint32_t i = 0; i < 200; i++) { // should be a few us
asm("NOP");
}
USB->CNTR &= ~USB_CNTR_PDWN;
// Wait startup time, for F042 and F070, this is <= 1 us.
- for(uint32_t i = 0; i<200; i++) // should be a few us
- {
+ for (uint32_t i = 0; i < 200; i++) { // should be a few us
asm("NOP");
}
USB->CNTR = 0; // Enable USB
-#ifndef STM32G0 // BTABLE register does not exist any more on STM32G0, it is fixed to USB SRAM base address
+#if !defined(STM32G0) && !defined(STM32H5) // BTABLE register does not exist any more on STM32G0, it is fixed to USB SRAM base address
USB->BTABLE = DCD_STM32_BTABLE_BASE;
#endif
USB->ISTR = 0; // Clear pending interrupts
// Reset endpoints to disabled
- for(uint32_t i=0; i<STFSDEV_EP_COUNT; i++)
- {
+ for (uint32_t i = 0; i < STFSDEV_EP_COUNT; i++) {
// This doesn't clear all bits since some bits are "toggle", but does set the type to DISABLED.
- pcd_set_endpoint(USB,i,0u);
+ pcd_set_endpoint(USB, i, 0u);
}
USB->CNTR |= USB_CNTR_RESETM | USB_CNTR_ESOFM | USB_CNTR_CTRM | USB_CNTR_SUSPM | USB_CNTR_WKUPM;
dcd_handle_bus_reset();
// Enable pull-up if supported
- if ( dcd_connect ) dcd_connect(rhport);
+ if (dcd_connect) {
+ dcd_connect(rhport);
+ }
}
// Define only on MCU with internal pull-up. BSP can define on MCU without internal PU.
@@ -267,14 +259,14 @@ void dcd_init (uint8_t rhport)
// Disable internal D+ PU
void dcd_disconnect(uint8_t rhport)
{
- (void) rhport;
+ (void)rhport;
USB->BCDR &= ~(USB_BCDR_DPPU);
}
// Enable internal D+ PU
void dcd_connect(uint8_t rhport)
{
- (void) rhport;
+ (void)rhport;
USB->BCDR |= USB_BCDR_DPPU;
}
@@ -282,60 +274,54 @@ void dcd_connect(uint8_t rhport)
// Disable internal D+ PU
void dcd_disconnect(uint8_t rhport)
{
- (void) rhport;
+ (void)rhport;
SYSCFG->PMC &= ~(SYSCFG_PMC_USB_PU);
}
// Enable internal D+ PU
void dcd_connect(uint8_t rhport)
{
- (void) rhport;
+ (void)rhport;
SYSCFG->PMC |= SYSCFG_PMC_USB_PU;
}
#endif
void dcd_sof_enable(uint8_t rhport, bool en)
{
- (void) rhport;
- (void) en;
+ (void)rhport;
+ (void)en;
- if (en)
- {
+ if (en) {
USB->CNTR |= USB_CNTR_SOFM;
- }
- else
- {
+ } else {
USB->CNTR &= ~USB_CNTR_SOFM;
}
}
// Enable device interrupt
-void dcd_int_enable (uint8_t rhport)
+void dcd_int_enable(uint8_t rhport)
{
(void)rhport;
// Member here forces write to RAM before allowing ISR to execute
__DSB();
__ISB();
-#if CFG_TUSB_MCU == OPT_MCU_STM32F0 || CFG_TUSB_MCU == OPT_MCU_STM32L0 || \
- CFG_TUSB_MCU == OPT_MCU_STM32L4
+#if CFG_TUSB_MCU == OPT_MCU_STM32F0 || CFG_TUSB_MCU == OPT_MCU_STM32L0 || CFG_TUSB_MCU == OPT_MCU_STM32L4
NVIC_EnableIRQ(USB_IRQn);
#elif CFG_TUSB_MCU == OPT_MCU_STM32L1
NVIC_EnableIRQ(USB_LP_IRQn);
#elif CFG_TUSB_MCU == OPT_MCU_STM32F3
- // Some STM32F302/F303 devices allow to remap the USB interrupt vectors from
- // shared USB/CAN IRQs to separate CAN and USB IRQs.
- // This dynamically checks if this remap is active to enable the right IRQs.
- #ifdef SYSCFG_CFGR1_USB_IT_RMP
- if (SYSCFG->CFGR1 & SYSCFG_CFGR1_USB_IT_RMP)
- {
+// Some STM32F302/F303 devices allow to remap the USB interrupt vectors from
+// shared USB/CAN IRQs to separate CAN and USB IRQs.
+// This dynamically checks if this remap is active to enable the right IRQs.
+#ifdef SYSCFG_CFGR1_USB_IT_RMP
+ if (SYSCFG->CFGR1 & SYSCFG_CFGR1_USB_IT_RMP) {
NVIC_EnableIRQ(USB_HP_IRQn);
NVIC_EnableIRQ(USB_LP_IRQn);
NVIC_EnableIRQ(USBWakeUp_RMP_IRQn);
- }
- else
- #endif
+ } else
+#endif
{
NVIC_EnableIRQ(USB_HP_CAN_TX_IRQn);
NVIC_EnableIRQ(USB_LP_CAN_RX0_IRQn);
@@ -352,11 +338,14 @@ void dcd_int_enable (uint8_t rhport)
NVIC_EnableIRQ(USBWakeUp_IRQn);
#elif CFG_TUSB_MCU == OPT_MCU_STM32G0
- #ifdef STM32G0B0xx
- NVIC_EnableIRQ(USB_IRQn);
- #else
- NVIC_EnableIRQ(USB_UCPD1_2_IRQn);
- #endif
+#ifdef STM32G0B0xx
+ NVIC_EnableIRQ(USB_IRQn);
+#else
+ NVIC_EnableIRQ(USB_UCPD1_2_IRQn);
+#endif
+
+#elif CFG_TUSB_MCU == OPT_MCU_STM32H5
+ NVIC_EnableIRQ(USB_DRD_FS_IRQn);
#elif CFG_TUSB_MCU == OPT_MCU_STM32WB
NVIC_EnableIRQ(USB_HP_IRQn);
@@ -366,7 +355,7 @@ void dcd_int_enable (uint8_t rhport)
NVIC_EnableIRQ(USB_FS_IRQn);
#else
- #error Unknown arch in USB driver
+#error Unknown arch in USB driver
#endif
}
@@ -375,24 +364,21 @@ void dcd_int_disable(uint8_t rhport)
{
(void)rhport;
-#if CFG_TUSB_MCU == OPT_MCU_STM32F0 || CFG_TUSB_MCU == OPT_MCU_STM32L0 || \
- CFG_TUSB_MCU == OPT_MCU_STM32L4
+#if CFG_TUSB_MCU == OPT_MCU_STM32F0 || CFG_TUSB_MCU == OPT_MCU_STM32L0 || CFG_TUSB_MCU == OPT_MCU_STM32L4
NVIC_DisableIRQ(USB_IRQn);
#elif CFG_TUSB_MCU == OPT_MCU_STM32L1
NVIC_DisableIRQ(USB_LP_IRQn);
#elif CFG_TUSB_MCU == OPT_MCU_STM32F3
- // Some STM32F302/F303 devices allow to remap the USB interrupt vectors from
- // shared USB/CAN IRQs to separate CAN and USB IRQs.
- // This dynamically checks if this remap is active to disable the right IRQs.
- #ifdef SYSCFG_CFGR1_USB_IT_RMP
- if (SYSCFG->CFGR1 & SYSCFG_CFGR1_USB_IT_RMP)
- {
+// Some STM32F302/F303 devices allow to remap the USB interrupt vectors from
+// shared USB/CAN IRQs to separate CAN and USB IRQs.
+// This dynamically checks if this remap is active to disable the right IRQs.
+#ifdef SYSCFG_CFGR1_USB_IT_RMP
+ if (SYSCFG->CFGR1 & SYSCFG_CFGR1_USB_IT_RMP) {
NVIC_DisableIRQ(USB_HP_IRQn);
NVIC_DisableIRQ(USB_LP_IRQn);
NVIC_DisableIRQ(USBWakeUp_RMP_IRQn);
- }
- else
- #endif
+ } else
+#endif
{
NVIC_DisableIRQ(USB_HP_CAN_TX_IRQn);
NVIC_DisableIRQ(USB_LP_CAN_RX0_IRQn);
@@ -409,11 +395,14 @@ void dcd_int_disable(uint8_t rhport)
NVIC_DisableIRQ(USBWakeUp_IRQn);
#elif CFG_TUSB_MCU == OPT_MCU_STM32G0
- #ifdef STM32G0B0xx
- NVIC_DisableIRQ(USB_IRQn);
- #else
- NVIC_DisableIRQ(USB_UCPD1_2_IRQn);
- #endif
+#ifdef STM32G0B0xx
+ NVIC_DisableIRQ(USB_IRQn);
+#else
+ NVIC_DisableIRQ(USB_UCPD1_2_IRQn);
+#endif
+
+#elif CFG_TUSB_MCU == OPT_MCU_STM32H5
+ NVIC_DisableIRQ(USB_DRD_FS_IRQn);
#elif CFG_TUSB_MCU == OPT_MCU_STM32WB
NVIC_DisableIRQ(USB_HP_IRQn);
@@ -423,7 +412,7 @@ void dcd_int_disable(uint8_t rhport)
NVIC_DisableIRQ(USB_FS_IRQn);
#else
- #error Unknown arch in USB driver
+#error Unknown arch in USB driver
#endif
// CMSIS has a membar after disabling interrupts
@@ -432,8 +421,8 @@ void dcd_int_disable(uint8_t rhport)
// Receive Set Address request, mcu port must also include status IN response
void dcd_set_address(uint8_t rhport, uint8_t dev_addr)
{
- (void) rhport;
- (void) dev_addr;
+ (void)rhport;
+ (void)dev_addr;
// Respond with status
dcd_edpt_xfer(rhport, TUSB_DIR_IN_MASK | 0x00, NULL, 0);
@@ -444,44 +433,35 @@ void dcd_set_address(uint8_t rhport, uint8_t dev_addr)
void dcd_remote_wakeup(uint8_t rhport)
{
- (void) rhport;
+ (void)rhport;
USB->CNTR |= USB_CNTR_RESUME;
remoteWakeCountdown = 4u; // required to be 1 to 15 ms, ESOF should trigger every 1ms.
}
-static const tusb_desc_endpoint_t ep0OUT_desc =
-{
- .bLength = sizeof(tusb_desc_endpoint_t),
- .bDescriptorType = TUSB_DESC_ENDPOINT,
-
- .bEndpointAddress = 0x00,
- .bmAttributes = { .xfer = TUSB_XFER_CONTROL },
- .wMaxPacketSize = CFG_TUD_ENDPOINT0_SIZE,
- .bInterval = 0
+static const tusb_desc_endpoint_t ep0OUT_desc = {
+ .bLength = sizeof(tusb_desc_endpoint_t),
+ .bDescriptorType = TUSB_DESC_ENDPOINT,
+ .bEndpointAddress = 0x00,
+ .bmAttributes = {.xfer = TUSB_XFER_CONTROL},
+ .wMaxPacketSize = CFG_TUD_ENDPOINT0_SIZE,
+ .bInterval = 0
};
-static const tusb_desc_endpoint_t ep0IN_desc =
-{
- .bLength = sizeof(tusb_desc_endpoint_t),
- .bDescriptorType = TUSB_DESC_ENDPOINT,
-
- .bEndpointAddress = 0x80,
- .bmAttributes = { .xfer = TUSB_XFER_CONTROL },
- .wMaxPacketSize = CFG_TUD_ENDPOINT0_SIZE,
- .bInterval = 0
+static const tusb_desc_endpoint_t ep0IN_desc = {
+ .bLength = sizeof(tusb_desc_endpoint_t),
+ .bDescriptorType = TUSB_DESC_ENDPOINT,
+ .bEndpointAddress = 0x80,
+ .bmAttributes = {.xfer = TUSB_XFER_CONTROL},
+ .wMaxPacketSize = CFG_TUD_ENDPOINT0_SIZE,
+ .bInterval = 0
};
static void dcd_handle_bus_reset(void)
{
- //__IO uint16_t * const epreg = &(EPREG(0));
USB->DADDR = 0u; // disable USB peripheral by clearing the EF flag
- for(uint32_t i=0; i<STFSDEV_EP_COUNT; i++)
- {
- // Clear all EPREG (or maybe this is automatic? I'm not sure)
- pcd_set_endpoint(USB,i,0u);
-
+ for (uint32_t i = 0; i < STFSDEV_EP_COUNT; i++) {
// Clear EP allocation status
ep_alloc_status[i].ep_num = 0xFF;
ep_alloc_status[i].ep_type = 0xFF;
@@ -489,9 +469,11 @@ static void dcd_handle_bus_reset(void)
ep_alloc_status[i].allocated[1] = false;
}
- dcd_pma_alloc_reset();
- dcd_edpt_open (0, &ep0OUT_desc);
- dcd_edpt_open (0, &ep0IN_desc);
+ // Reset PMA allocation
+ ep_buf_ptr = DCD_STM32_BTABLE_BASE + 8 * MAX_EP_COUNT;
+
+ dcd_edpt_open(0, &ep0OUT_desc);
+ dcd_edpt_open(0, &ep0IN_desc);
USB->DADDR = USB_DADDR_EF; // Set enable flag, and leaving the device address as zero.
}
@@ -507,30 +489,63 @@ static void dcd_ep_ctr_tx_handler(uint32_t wIstr)
// Verify the CTR_TX bit is set. This was in the ST Micro code,
// but I'm not sure it's actually necessary?
- if((wEPRegVal & USB_EP_CTR_TX) == 0U)
- {
+ if ((wEPRegVal & USB_EP_CTR_TX) == 0U) {
return;
}
/* clear int flag */
pcd_clear_tx_ep_ctr(USB, EPindex);
- xfer_ctl_t * xfer = xfer_ctl_ptr(ep_addr);
- if((xfer->total_len != xfer->queued_len)) /* TX not complete */
- {
- dcd_transmit_packet(xfer, EPindex);
+ xfer_ctl_t *xfer = xfer_ctl_ptr(ep_addr);
+
+ if ((wEPRegVal & USB_EP_TYPE_MASK) == USB_EP_ISOCHRONOUS) {
+ // Ignore spurious interrupts that we don't schedule
+ // host can send IN token while there is no data to send, since ISO does not have NAK
+ // this will result to zero length packet --> trigger interrupt (which cannot be masked)
+ if (!xfer->iso_in_sending) {
+ return;
+ }
+ xfer->iso_in_sending = false;
+
+ if (wEPRegVal & USB_EP_DTOG_TX) {
+ pcd_set_ep_tx_dbuf0_cnt(USB, EPindex, 0);
+ } else {
+ pcd_set_ep_tx_dbuf1_cnt(USB, EPindex, 0);
+ }
}
- else /* TX Complete */
- {
+
+ if ((xfer->total_len != xfer->queued_len)) {
+ dcd_transmit_packet(xfer, EPindex);
+ } else {
dcd_event_xfer_complete(0, ep_addr, xfer->total_len, XFER_RESULT_SUCCESS, true);
}
}
// Handle CTR interrupt for the RX/OUT direction
-//
// Upon call, (wIstr & USB_ISTR_DIR) == 0U
static void dcd_ep_ctr_rx_handler(uint32_t wIstr)
{
+#ifdef FSDEV_BUS_32BIT
+ /* https://www.st.com/resource/en/errata_sheet/es0561-stm32h503cbebkbrb-device-errata-stmicroelectronics.pdf
+ * From STM32H503 errata 2.15.1: Buffer description table update completes after CTR interrupt triggers
+ * Description:
+ * - During OUT transfers, the correct transfer interrupt (CTR) is triggered a little before the last USB SRAM accesses
+ * have completed. If the software responds quickly to the interrupt, the full buffer contents may not be correct.
+ * Workaround:
+ * - Software should ensure that a small delay is included before accessing the SRAM contents. This delay
+ * should be 800 ns in Full Speed mode and 6.4 μs in Low Speed mode
+ * - Since H5 can run up to 250Mhz -> 1 cycle = 4ns. Per errata, we need to wait 200 cycles. Though executing code
+ * also takes time, so we'll wait 60 cycles (count = 20).
+ * - Since Low Speed mode is not supported/popular, we will ignore it for now.
+ *
+ * Note: this errata also seems to apply to G0, U5, H5 etc.
+ */
+ volatile uint32_t cycle_count = 20; // defined as PCD_RX_PMA_CNT in stm32 hal_driver
+ while (cycle_count > 0U) {
+ cycle_count--; // each count take 3 cycles (1 for sub, jump, and compare)
+ }
+#endif
+
uint32_t EPindex = wIstr & USB_ISTR_EP_ID;
uint32_t wEPRegVal = pcd_get_endpoint(USB, EPindex);
uint8_t ep_addr = wEPRegVal & USB_EPADDR_FIELD;
@@ -539,96 +554,83 @@ static void dcd_ep_ctr_rx_handler(uint32_t wIstr)
// Verify the CTR_RX bit is set. This was in the ST Micro code,
// but I'm not sure it's actually necessary?
- if((wEPRegVal & USB_EP_CTR_RX) == 0U)
- {
+ if ((wEPRegVal & USB_EP_CTR_RX) == 0U) {
return;
}
- if((ep_addr == 0U) && ((wEPRegVal & USB_EP_SETUP) != 0U)) /* Setup packet */
- {
+ if ((ep_addr == 0U) && ((wEPRegVal & USB_EP_SETUP) != 0U)) {
+ /* Setup packet */
uint32_t count = pcd_get_ep_rx_cnt(USB, EPindex);
- /* Get SETUP Packet*/
- if(count == 8) // Setup packet should always be 8 bytes. If not, ignore it, and try again.
- {
+ // Setup packet should always be 8 bytes. If not, ignore it, and try again.
+ if (count == 8) {
// Must reset EP to NAK (in case it had been stalling) (though, maybe too late here)
- pcd_set_ep_rx_status(USB,0u,USB_EP_RX_NAK);
- pcd_set_ep_tx_status(USB,0u,USB_EP_TX_NAK);
-#ifdef PMA_32BIT_ACCESS
- dcd_event_setup_received(0, (uint8_t*)(USB_PMAADDR + pcd_get_ep_rx_address(USB, EPindex)), true);
+ pcd_set_ep_rx_status(USB, 0u, USB_EP_RX_NAK);
+ pcd_set_ep_tx_status(USB, 0u, USB_EP_TX_NAK);
+#ifdef FSDEV_BUS_32BIT
+ dcd_event_setup_received(0, (uint8_t *)(USB_PMAADDR + pcd_get_ep_rx_address(USB, EPindex)), true);
#else
// The setup_received function uses memcpy, so this must first copy the setup data into
// user memory, to allow for the 32-bit access that memcpy performs.
uint8_t userMemBuf[8];
- dcd_read_packet_memory(userMemBuf, pcd_get_ep_rx_address(USB,EPindex), 8);
- dcd_event_setup_received(0, (uint8_t*)userMemBuf, true);
+ dcd_read_packet_memory(userMemBuf, pcd_get_ep_rx_address(USB, EPindex), 8);
+ dcd_event_setup_received(0, (uint8_t *)userMemBuf, true);
#endif
}
- }
- else
- {
+ } else {
+ // Clear RX CTR interrupt flag
+ if (ep_addr != 0u) {
+ pcd_clear_rx_ep_ctr(USB, EPindex);
+ }
+
uint32_t count;
+ uint16_t addr;
/* Read from correct register when ISOCHRONOUS (double buffered) */
- if ( (wEPRegVal & USB_EP_DTOG_RX) && ( (wEPRegVal & USB_EP_TYPE_MASK) == USB_EP_ISOCHRONOUS) ) {
- count = pcd_get_ep_tx_cnt(USB, EPindex);
+ if ((wEPRegVal & USB_EP_TYPE_MASK) == USB_EP_ISOCHRONOUS) {
+ if (wEPRegVal & USB_EP_DTOG_RX) {
+ count = pcd_get_ep_dbuf0_cnt(USB, EPindex);
+ addr = pcd_get_ep_dbuf0_address(USB, EPindex);
+ } else {
+ count = pcd_get_ep_dbuf1_cnt(USB, EPindex);
+ addr = pcd_get_ep_dbuf1_address(USB, EPindex);
+ }
} else {
count = pcd_get_ep_rx_cnt(USB, EPindex);
+ addr = pcd_get_ep_rx_address(USB, EPindex);
}
TU_ASSERT(count <= xfer->max_packet_size, /**/);
- // Clear RX CTR interrupt flag
- if(ep_addr != 0u)
- {
- pcd_clear_rx_ep_ctr(USB, EPindex);
- }
-
- if (count != 0U)
- {
- uint16_t addr = pcd_get_ep_rx_address(USB, EPindex);
-
- if (xfer->ff)
- {
+ if (count != 0U) {
+ if (xfer->ff) {
dcd_read_packet_memory_ff(xfer->ff, addr, count);
- }
- else
- {
+ } else {
dcd_read_packet_memory(&(xfer->buffer[xfer->queued_len]), addr, count);
}
xfer->queued_len = (uint16_t)(xfer->queued_len + count);
}
- if ((count < xfer->max_packet_size) || (xfer->queued_len == xfer->total_len))
- {
- /* RX COMPLETE */
+ if ((count < xfer->max_packet_size) || (xfer->queued_len == xfer->total_len)) {
+ // all bytes received or short packet
dcd_event_xfer_complete(0, ep_addr, xfer->queued_len, XFER_RESULT_SUCCESS, true);
- // Though the host could still send, we don't know.
- // Does the bulk pipe need to be reset to valid to allow for a ZLP?
- }
- else
- {
- uint32_t remaining = (uint32_t)xfer->total_len - (uint32_t)xfer->queued_len;
- if(remaining >= xfer->max_packet_size) {
- pcd_set_ep_rx_bufsize(USB, EPindex,xfer->max_packet_size);
- } else {
- pcd_set_ep_rx_bufsize(USB, EPindex,remaining);
- }
-
- if (!((wEPRegVal & USB_EP_TYPE_MASK) == USB_EP_ISOCHRONOUS)) {
- /* Set endpoint active again for receiving more data.
- * Note that isochronous endpoints stay active always */
- pcd_set_ep_rx_status(USB, EPindex, USB_EP_RX_VALID);
+ } else {
+ /* Set endpoint active again for receiving more data.
+ * Note that isochronous endpoints stay active always */
+ if ((wEPRegVal & USB_EP_TYPE_MASK) != USB_EP_ISOCHRONOUS) {
+ uint16_t remaining = xfer->total_len - xfer->queued_len;
+ uint16_t cnt = tu_min16(remaining, xfer->max_packet_size);
+ pcd_set_ep_rx_cnt(USB, EPindex, cnt);
}
+ pcd_set_ep_rx_status(USB, EPindex, USB_EP_RX_VALID);
}
}
// For EP0, prepare to receive another SETUP packet.
// Clear CTR last so that a new packet does not overwrite the packing being read.
// (Based on the docs, it seems SETUP will always be accepted after CTR is cleared)
- if(ep_addr == 0u)
- {
- // Always be prepared for a status packet...
- pcd_set_ep_rx_bufsize(USB, EPindex, CFG_TUD_ENDPOINT0_SIZE);
+ if (ep_addr == 0u) {
+ // Always be prepared for a status packet...
+ pcd_set_ep_rx_cnt(USB, EPindex, CFG_TUD_ENDPOINT0_SIZE);
pcd_clear_rx_ep_ctr(USB, EPindex);
}
}
@@ -638,65 +640,60 @@ static void dcd_ep_ctr_handler(void)
uint32_t wIstr;
/* stay in loop while pending interrupts */
- while (((wIstr = USB->ISTR) & USB_ISTR_CTR) != 0U)
- {
-
- if ((wIstr & USB_ISTR_DIR) == 0U) /* TX/IN */
- {
+ while (((wIstr = USB->ISTR) & USB_ISTR_CTR) != 0U) {
+ if ((wIstr & USB_ISTR_DIR) == 0U) {
+ /* TX/IN */
dcd_ep_ctr_tx_handler(wIstr);
- }
- else /* RX/OUT*/
- {
+ } else {
+ /* RX/OUT*/
dcd_ep_ctr_rx_handler(wIstr);
}
}
}
-void dcd_int_handler(uint8_t rhport) {
+void dcd_int_handler(uint8_t rhport)
+{
- (void) rhport;
+ (void)rhport;
uint32_t int_status = USB->ISTR;
- //const uint32_t handled_ints = USB_ISTR_CTR | USB_ISTR_RESET | USB_ISTR_WKUP
- // | USB_ISTR_SUSP | USB_ISTR_SOF | USB_ISTR_ESOF;
- // unused IRQs: (USB_ISTR_PMAOVR | USB_ISTR_ERR | USB_ISTR_L1REQ )
+ // const uint32_t handled_ints = USB_ISTR_CTR | USB_ISTR_RESET | USB_ISTR_WKUP
+ // | USB_ISTR_SUSP | USB_ISTR_SOF | USB_ISTR_ESOF;
+ // unused IRQs: (USB_ISTR_PMAOVR | USB_ISTR_ERR | USB_ISTR_L1REQ )
// The ST driver loops here on the CTR bit, but that loop has been moved into the
// dcd_ep_ctr_handler(), so less need to loop here. The other interrupts shouldn't
// be triggered repeatedly.
/* Put SOF flag at the beginning of ISR in case to get least amount of jitter if it is used for timing purposes */
- if(int_status & USB_ISTR_SOF) {
- USB->ISTR &=~USB_ISTR_SOF;
+ if (int_status & USB_ISTR_SOF) {
+ USB->ISTR = (fsdev_bus_t)~USB_ISTR_SOF;
dcd_event_sof(0, USB->FNR & USB_FNR_FN, true);
}
- if(int_status & USB_ISTR_RESET) {
+ if (int_status & USB_ISTR_RESET) {
// USBRST is start of reset.
- USB->ISTR &=~USB_ISTR_RESET;
+ USB->ISTR = (fsdev_bus_t)~USB_ISTR_RESET;
dcd_handle_bus_reset();
dcd_event_bus_reset(0, TUSB_SPEED_FULL, true);
return; // Don't do the rest of the things here; perhaps they've been cleared?
}
- if (int_status & USB_ISTR_CTR)
- {
+ if (int_status & USB_ISTR_CTR) {
/* servicing of the endpoint correct transfer interrupt */
/* clear of the CTR flag into the sub */
dcd_ep_ctr_handler();
}
- if (int_status & USB_ISTR_WKUP)
- {
+ if (int_status & USB_ISTR_WKUP) {
USB->CNTR &= ~USB_CNTR_LPMODE;
USB->CNTR &= ~USB_CNTR_FSUSP;
- USB->ISTR &=~USB_ISTR_WKUP;
+ USB->ISTR = (fsdev_bus_t)~USB_ISTR_WKUP;
dcd_event_bus_signal(0, DCD_EVENT_RESUME, true);
}
- if (int_status & USB_ISTR_SUSP)
- {
+ if (int_status & USB_ISTR_SUSP) {
/* Suspend is asserted for both suspend and unplug events. without Vbus monitoring,
* these events cannot be differentiated, so we only trigger suspend. */
@@ -705,20 +702,18 @@ void dcd_int_handler(uint8_t rhport) {
USB->CNTR |= USB_CNTR_LPMODE;
/* clear of the ISTR bit must be done after setting of CNTR_FSUSP */
- USB->ISTR &=~USB_ISTR_SUSP;
+ USB->ISTR = (fsdev_bus_t)~USB_ISTR_SUSP;
dcd_event_bus_signal(0, DCD_EVENT_SUSPEND, true);
}
- if(int_status & USB_ISTR_ESOF) {
- if(remoteWakeCountdown == 1u)
- {
+ if (int_status & USB_ISTR_ESOF) {
+ if (remoteWakeCountdown == 1u) {
USB->CNTR &= ~USB_CNTR_RESUME;
}
- if(remoteWakeCountdown > 0u)
- {
+ if (remoteWakeCountdown > 0u) {
remoteWakeCountdown--;
}
- USB->ISTR &=~USB_ISTR_ESOF;
+ USB->ISTR = (fsdev_bus_t)~USB_ISTR_ESOF;
}
}
@@ -728,15 +723,14 @@ void dcd_int_handler(uint8_t rhport) {
// Invoked when a control transfer's status stage is complete.
// May help DCD to prepare for next control transfer, this API is optional.
-void dcd_edpt0_status_complete(uint8_t rhport, tusb_control_request_t const * request)
+void dcd_edpt0_status_complete(uint8_t rhport, tusb_control_request_t const *request)
{
- (void) rhport;
+ (void)rhport;
if (request->bmRequestType_bit.recipient == TUSB_REQ_RCPT_DEVICE &&
request->bmRequestType_bit.type == TUSB_REQ_TYPE_STANDARD &&
- request->bRequest == TUSB_REQ_SET_ADDRESS )
- {
- uint8_t const dev_addr = (uint8_t) request->wValue;
+ request->bRequest == TUSB_REQ_SET_ADDRESS) {
+ uint8_t const dev_addr = (uint8_t)request->wValue;
// Setting new address after the whole request is complete
USB->DADDR &= ~USB_DADDR_ADD;
@@ -744,121 +738,58 @@ void dcd_edpt0_status_complete(uint8_t rhport, tusb_control_request_t const * re
}
}
-static void dcd_pma_alloc_reset(void)
-{
- open_ep_count = 0;
- ep_buf_ptr = DCD_STM32_BTABLE_BASE + 8*MAX_EP_COUNT; // 8 bytes per endpoint (two TX and two RX words, each)
- //TU_LOG2("dcd_pma_alloc_reset()\r\n");
- for(uint32_t i=0; i<MAX_EP_COUNT; i++)
- {
- xfer_ctl_ptr(tu_edpt_addr(i,TUSB_DIR_OUT))->pma_alloc_size = 0U;
- xfer_ctl_ptr(tu_edpt_addr(i,TUSB_DIR_IN))->pma_alloc_size = 0U;
- xfer_ctl_ptr(tu_edpt_addr(i,TUSB_DIR_OUT))->pma_ptr = 0U;
- xfer_ctl_ptr(tu_edpt_addr(i,TUSB_DIR_IN))->pma_ptr = 0U;
- }
-}
-
/***
* Allocate a section of PMA
- *
- * If the EP number has already been allocated, and the new allocation
- * is larger than the old allocation, then this will fail with a TU_ASSERT.
- * (This is done to simplify the code. More complicated algorithms could be used)
- *
+ * In case of double buffering, high 16bit is the address of 2nd buffer
* During failure, TU_ASSERT is used. If this happens, rework/reallocate memory manually.
*/
-static uint16_t dcd_pma_alloc(uint8_t ep_addr, uint16_t length)
+static uint32_t dcd_pma_alloc(uint16_t length, bool dbuf)
{
- xfer_ctl_t* epXferCtl = xfer_ctl_ptr(ep_addr);
-
- if(epXferCtl->pma_alloc_size != 0U)
- {
- //TU_LOG2("dcd_pma_alloc(%x,%x)=%x (cached)\r\n",ep_addr,length,epXferCtl->pma_ptr);
- // Previously allocated
- TU_ASSERT(length <= epXferCtl->pma_alloc_size, 0xFFFF); // Verify no larger than previous alloc
- return epXferCtl->pma_ptr;
- }
-
// Ensure allocated buffer is aligned
-#ifdef PMA_32BIT_ACCESS
+#ifdef FSDEV_BUS_32BIT
length = (length + 3) & ~0x03;
#else
length = (length + 1) & ~0x01;
#endif
- open_ep_count++;
-
- uint16_t addr = ep_buf_ptr;
+ uint32_t addr = ep_buf_ptr;
ep_buf_ptr = (uint16_t)(ep_buf_ptr + length); // increment buffer pointer
- // Verify no overflow
- TU_ASSERT(ep_buf_ptr <= PMA_LENGTH, 0xFFFF);
+ if (dbuf) {
+ addr |= ((uint32_t)ep_buf_ptr) << 16;
+ ep_buf_ptr = (uint16_t)(ep_buf_ptr + length); // increment buffer pointer
+ }
- epXferCtl->pma_ptr = addr;
- epXferCtl->pma_alloc_size = length;
- //TU_LOG1("dcd_pma_alloc(%x,%x)=%x\r\n",ep_addr,length,addr);
+ // Verify packet buffer is not overflowed
+ TU_ASSERT(ep_buf_ptr <= FSDEV_PMA_SIZE, 0xFFFF);
return addr;
}
/***
- * Free a block of PMA space
- */
-static void dcd_pma_free(uint8_t ep_addr)
-{
- // Presently, this should never be called for EP0 IN/OUT
- TU_ASSERT(open_ep_count > 2, /**/);
- TU_ASSERT(xfer_ctl_ptr(ep_addr)->max_packet_size != 0, /**/);
- open_ep_count--;
-
- // If count is 2, only EP0 should be open, so allocations can be mostly reset.
-
- if(open_ep_count == 2)
- {
- ep_buf_ptr = DCD_STM32_BTABLE_BASE + 8*MAX_EP_COUNT + 2*CFG_TUD_ENDPOINT0_SIZE; // 8 bytes per endpoint (two TX and two RX words, each), and EP0
-
- // Skip EP0
- for(uint32_t i=1; i<MAX_EP_COUNT; i++)
- {
- xfer_ctl_ptr(tu_edpt_addr(i,TUSB_DIR_OUT))->pma_alloc_size = 0U;
- xfer_ctl_ptr(tu_edpt_addr(i,TUSB_DIR_IN))->pma_alloc_size = 0U;
- xfer_ctl_ptr(tu_edpt_addr(i,TUSB_DIR_OUT))->pma_ptr = 0U;
- xfer_ctl_ptr(tu_edpt_addr(i,TUSB_DIR_IN))->pma_ptr = 0U;
- }
- }
-}
-
-/***
* Allocate hardware endpoint
*/
static uint8_t dcd_ep_alloc(uint8_t ep_addr, uint8_t ep_type)
{
uint8_t const epnum = tu_edpt_number(ep_addr);
- uint8_t const dir = tu_edpt_dir(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
- for(uint8_t i = 0; i < STFSDEV_EP_COUNT; i++)
- {
+ for (uint8_t i = 0; i < STFSDEV_EP_COUNT; i++) {
// Check if already allocated
- if(ep_alloc_status[i].allocated[dir] &&
- ep_alloc_status[i].ep_type == ep_type &&
- ep_alloc_status[i].ep_num == epnum)
- {
+ if (ep_alloc_status[i].allocated[dir] &&
+ ep_alloc_status[i].ep_type == ep_type &&
+ ep_alloc_status[i].ep_num == epnum) {
return i;
}
// If EP of current direction is not allocated
// Except for ISO endpoint, both direction should be free
- if(!ep_alloc_status[i].allocated[dir] &&
- (ep_type != TUSB_XFER_ISOCHRONOUS || !ep_alloc_status[i].allocated[dir ^ 1]))
- {
+ if (!ep_alloc_status[i].allocated[dir] &&
+ (ep_type != TUSB_XFER_ISOCHRONOUS || !ep_alloc_status[i].allocated[dir ^ 1])) {
// Check if EP number is the same
- if(ep_alloc_status[i].ep_num == 0xFF ||
- ep_alloc_status[i].ep_num == epnum)
- {
+ if (ep_alloc_status[i].ep_num == 0xFF || ep_alloc_status[i].ep_num == epnum) {
// One EP pair has to be the same type
- if(ep_alloc_status[i].ep_type == 0xFF ||
- ep_alloc_status[i].ep_type == ep_type)
- {
+ if (ep_alloc_status[i].ep_type == 0xFF || ep_alloc_status[i].ep_type == ep_type) {
ep_alloc_status[i].ep_num = epnum;
ep_alloc_status[i].ep_type = ep_type;
ep_alloc_status[i].allocated[dir] = true;
@@ -873,121 +804,79 @@ static uint8_t dcd_ep_alloc(uint8_t ep_addr, uint8_t ep_type)
TU_ASSERT(0);
}
-/***
- * Free hardware endpoint
- */
-static void dcd_ep_free(uint8_t ep_addr)
-{
- uint8_t const epnum = tu_edpt_number(ep_addr);
- uint8_t const dir = tu_edpt_dir(ep_addr);
-
- for(uint8_t i = 0; i < STFSDEV_EP_COUNT; i++)
- {
- // Check if EP number & dir are the same
- if(ep_alloc_status[i].ep_num == epnum &&
- ep_alloc_status[i].allocated[dir] == dir)
- {
- ep_alloc_status[i].allocated[dir] = false;
- // Reset entry if ISO endpoint or both direction are free
- if(ep_alloc_status[i].ep_type == TUSB_XFER_ISOCHRONOUS ||
- !ep_alloc_status[i].allocated[dir ^ 1])
- {
- ep_alloc_status[i].ep_num = 0xFF;
- ep_alloc_status[i].ep_type = 0xFF;
-
- return;
- }
- }
- }
-}
-
// The STM32F0 doesn't seem to like |= or &= to manipulate the EP#R registers,
// so I'm using the #define from HAL here, instead.
-bool dcd_edpt_open (uint8_t rhport, tusb_desc_endpoint_t const * p_endpoint_desc)
+bool dcd_edpt_open(uint8_t rhport, tusb_desc_endpoint_t const *p_endpoint_desc)
{
(void)rhport;
- uint8_t const ep_idx = dcd_ep_alloc(p_endpoint_desc->bEndpointAddress, p_endpoint_desc->bmAttributes.xfer);
- uint8_t const dir = tu_edpt_dir(p_endpoint_desc->bEndpointAddress);
+ uint8_t const ep_addr = p_endpoint_desc->bEndpointAddress;
+ uint8_t const ep_idx = dcd_ep_alloc(ep_addr, p_endpoint_desc->bmAttributes.xfer);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
const uint16_t packet_size = tu_edpt_packet_size(p_endpoint_desc);
const uint16_t buffer_size = pcd_aligned_buffer_size(packet_size);
uint16_t pma_addr;
uint32_t wType;
TU_ASSERT(ep_idx < STFSDEV_EP_COUNT);
- TU_ASSERT(buffer_size <= 1024);
+ TU_ASSERT(buffer_size <= 64);
// Set type
- switch(p_endpoint_desc->bmAttributes.xfer) {
- case TUSB_XFER_CONTROL:
- wType = USB_EP_CONTROL;
- break;
- case TUSB_XFER_ISOCHRONOUS:
- wType = USB_EP_ISOCHRONOUS;
- break;
- case TUSB_XFER_BULK:
- wType = USB_EP_CONTROL;
- break;
+ switch (p_endpoint_desc->bmAttributes.xfer) {
+ case TUSB_XFER_CONTROL:
+ wType = USB_EP_CONTROL;
+ break;
+ case TUSB_XFER_BULK:
+ wType = USB_EP_CONTROL;
+ break;
- case TUSB_XFER_INTERRUPT:
- wType = USB_EP_INTERRUPT;
- break;
+ case TUSB_XFER_INTERRUPT:
+ wType = USB_EP_INTERRUPT;
+ break;
- default:
- TU_ASSERT(false);
+ default:
+ // Note: ISO endpoint should use alloc / active functions
+ TU_ASSERT(false);
}
pcd_set_eptype(USB, ep_idx, wType);
- pcd_set_ep_address(USB, ep_idx, tu_edpt_number(p_endpoint_desc->bEndpointAddress));
- // Be normal, for now, instead of only accepting zero-byte packets (on control endpoint)
- // or being double-buffered (bulk endpoints)
- pcd_clear_ep_kind(USB,0);
+ pcd_set_ep_address(USB, ep_idx, tu_edpt_number(ep_addr));
- /* Create a packet memory buffer area. For isochronous endpoints,
- * use the same buffer as the double buffer, essentially disabling double buffering */
- pma_addr = dcd_pma_alloc(p_endpoint_desc->bEndpointAddress, buffer_size);
+ /* Create a packet memory buffer area. */
+ pma_addr = dcd_pma_alloc(buffer_size, false);
- if( (dir == TUSB_DIR_IN) || (wType == USB_EP_ISOCHRONOUS) )
- {
+ if (dir == TUSB_DIR_IN) {
pcd_set_ep_tx_address(USB, ep_idx, pma_addr);
- pcd_set_ep_tx_bufsize(USB, ep_idx, buffer_size);
+ pcd_set_ep_tx_status(USB, ep_idx, USB_EP_TX_NAK);
pcd_clear_tx_dtog(USB, ep_idx);
- }
-
- if( (dir == TUSB_DIR_OUT) || (wType == USB_EP_ISOCHRONOUS) )
- {
+ } else {
pcd_set_ep_rx_address(USB, ep_idx, pma_addr);
- pcd_set_ep_rx_bufsize(USB, ep_idx, buffer_size);
+ pcd_set_ep_rx_status(USB, ep_idx, USB_EP_RX_NAK);
pcd_clear_rx_dtog(USB, ep_idx);
}
- /* Enable endpoint */
- if (dir == TUSB_DIR_IN)
- {
- if(wType == USB_EP_ISOCHRONOUS) {
- pcd_set_ep_tx_status(USB, ep_idx, USB_EP_TX_DIS);
- } else {
- pcd_set_ep_tx_status(USB, ep_idx, USB_EP_TX_NAK);
- }
- } else
- {
- if(wType == USB_EP_ISOCHRONOUS) {
- pcd_set_ep_rx_status(USB, ep_idx, USB_EP_RX_DIS);
- } else {
- pcd_set_ep_rx_status(USB, ep_idx, USB_EP_RX_NAK);
- }
- }
-
- xfer_ctl_ptr(p_endpoint_desc->bEndpointAddress)->max_packet_size = packet_size;
- xfer_ctl_ptr(p_endpoint_desc->bEndpointAddress)->ep_idx = ep_idx;
+ xfer_ctl_ptr(ep_addr)->max_packet_size = packet_size;
+ xfer_ctl_ptr(ep_addr)->ep_idx = ep_idx;
return true;
}
-void dcd_edpt_close_all (uint8_t rhport)
+void dcd_edpt_close_all(uint8_t rhport)
{
- (void) rhport;
- // TODO implement dcd_edpt_close_all()
+ (void)rhport;
+
+ for (uint32_t i = 1; i < STFSDEV_EP_COUNT; i++) {
+ // Reset endpoint
+ pcd_set_endpoint(USB, i, 0);
+ // Clear EP allocation status
+ ep_alloc_status[i].ep_num = 0xFF;
+ ep_alloc_status[i].ep_type = 0xFF;
+ ep_alloc_status[i].allocated[0] = false;
+ ep_alloc_status[i].allocated[1] = false;
+ }
+
+ // Reset PMA allocation
+ ep_buf_ptr = DCD_STM32_BTABLE_BASE + 8 * MAX_EP_COUNT + 2 * CFG_TUD_ENDPOINT0_SIZE;
}
/**
@@ -997,223 +886,203 @@ void dcd_edpt_close_all (uint8_t rhport)
*
* This also clears transfers in progress, should there be any.
*/
-void dcd_edpt_close (uint8_t rhport, uint8_t ep_addr)
+void dcd_edpt_close(uint8_t rhport, uint8_t ep_addr)
{
(void)rhport;
- xfer_ctl_t * xfer = xfer_ctl_ptr(ep_addr);
+ xfer_ctl_t *xfer = xfer_ctl_ptr(ep_addr);
uint8_t const ep_idx = xfer->ep_idx;
- uint8_t const dir = tu_edpt_dir(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
- if(dir == TUSB_DIR_IN)
- {
+ if (dir == TUSB_DIR_IN) {
pcd_set_ep_tx_status(USB, ep_idx, USB_EP_TX_DIS);
- }
- else
- {
+ } else {
pcd_set_ep_rx_status(USB, ep_idx, USB_EP_RX_DIS);
}
-
- dcd_ep_free(ep_addr);
-
- dcd_pma_free(ep_addr);
}
bool dcd_edpt_iso_alloc(uint8_t rhport, uint8_t ep_addr, uint16_t largest_packet_size)
{
(void)rhport;
- TU_ASSERT(largest_packet_size <= 1024);
-
uint8_t const ep_idx = dcd_ep_alloc(ep_addr, TUSB_XFER_ISOCHRONOUS);
const uint16_t buffer_size = pcd_aligned_buffer_size(largest_packet_size);
- /* Create a packet memory buffer area. For isochronous endpoints,
- * use the same buffer as the double buffer, essentially disabling double buffering */
- uint16_t pma_addr = dcd_pma_alloc(ep_addr, buffer_size);
-
- xfer_ctl_ptr(ep_addr)->ep_idx = ep_idx;
+ /* Create a packet memory buffer area. Enable double buffering for devices with 2048 bytes PMA,
+ for smaller devices double buffering occupy too much space. */
+#if FSDEV_PMA_SIZE > 1024u
+ uint32_t pma_addr = dcd_pma_alloc(buffer_size, true);
+ uint16_t pma_addr2 = pma_addr >> 16;
+#else
+ uint32_t pma_addr = dcd_pma_alloc(buffer_size, true);
+ uint16_t pma_addr2 = pma_addr;
+#endif
+ pcd_set_ep_tx_address(USB, ep_idx, pma_addr);
+ pcd_set_ep_rx_address(USB, ep_idx, pma_addr2);
pcd_set_eptype(USB, ep_idx, USB_EP_ISOCHRONOUS);
- pcd_set_ep_tx_address(USB, ep_idx, pma_addr);
- pcd_set_ep_rx_address(USB, ep_idx, pma_addr);
+ xfer_ctl_ptr(ep_addr)->ep_idx = ep_idx;
return true;
}
-bool dcd_edpt_iso_activate(uint8_t rhport, tusb_desc_endpoint_t const * p_endpoint_desc)
+bool dcd_edpt_iso_activate(uint8_t rhport, tusb_desc_endpoint_t const *p_endpoint_desc)
{
(void)rhport;
- uint8_t const ep_idx = xfer_ctl_ptr(p_endpoint_desc->bEndpointAddress)->ep_idx;
- uint8_t const dir = tu_edpt_dir(p_endpoint_desc->bEndpointAddress);
+ uint8_t const ep_addr = p_endpoint_desc->bEndpointAddress;
+ uint8_t const ep_idx = xfer_ctl_ptr(ep_addr)->ep_idx;
+ uint8_t const dir = tu_edpt_dir(ep_addr);
const uint16_t packet_size = tu_edpt_packet_size(p_endpoint_desc);
- const uint16_t buffer_size = pcd_aligned_buffer_size(packet_size);
- /* Disable endpoint */
- if(dir == TUSB_DIR_IN)
- {
- pcd_set_ep_tx_status(USB, ep_idx, USB_EP_TX_DIS);
- }
- else
- {
- pcd_set_ep_rx_status(USB, ep_idx, USB_EP_RX_DIS);
- }
+ pcd_set_ep_tx_status(USB, ep_idx, USB_EP_TX_DIS);
+ pcd_set_ep_rx_status(USB, ep_idx, USB_EP_RX_DIS);
- pcd_set_ep_address(USB, ep_idx, tu_edpt_number(p_endpoint_desc->bEndpointAddress));
- // Be normal, for now, instead of only accepting zero-byte packets (on control endpoint)
- // or being double-buffered (bulk endpoints)
- pcd_clear_ep_kind(USB,0);
+ pcd_set_ep_address(USB, ep_idx, tu_edpt_number(ep_addr));
- pcd_set_ep_tx_bufsize(USB, ep_idx, buffer_size);
- pcd_set_ep_rx_bufsize(USB, ep_idx, buffer_size);
pcd_clear_tx_dtog(USB, ep_idx);
pcd_clear_rx_dtog(USB, ep_idx);
- xfer_ctl_ptr(p_endpoint_desc->bEndpointAddress)->max_packet_size = packet_size;
+ if (dir == TUSB_DIR_IN) {
+ pcd_rx_dtog(USB, ep_idx);
+ } else {
+ pcd_tx_dtog(USB, ep_idx);
+ }
+
+ xfer_ctl_ptr(ep_addr)->max_packet_size = packet_size;
return true;
}
// Currently, single-buffered, and only 64 bytes at a time (max)
-static void dcd_transmit_packet(xfer_ctl_t * xfer, uint16_t ep_ix)
+static void dcd_transmit_packet(xfer_ctl_t *xfer, uint16_t ep_ix)
{
uint16_t len = (uint16_t)(xfer->total_len - xfer->queued_len);
-
- if(len > xfer->max_packet_size) // max packet size for FS transfer
- {
+ if (len > xfer->max_packet_size) {
len = xfer->max_packet_size;
}
uint16_t ep_reg = pcd_get_endpoint(USB, ep_ix);
- uint16_t addr_ptr = pcd_get_ep_tx_address(USB, ep_ix);
+ bool const is_iso = (ep_reg & USB_EP_TYPE_MASK) == USB_EP_ISOCHRONOUS;
+ uint16_t addr_ptr;
- if (xfer->ff)
- {
- dcd_write_packet_memory_ff(xfer->ff, addr_ptr, len);
- }
- else
- {
- dcd_write_packet_memory(addr_ptr, &(xfer->buffer[xfer->queued_len]), len);
+ if (is_iso) {
+ if (ep_reg & USB_EP_DTOG_TX) {
+ addr_ptr = pcd_get_ep_dbuf1_address(USB, ep_ix);
+ pcd_set_ep_tx_dbuf1_cnt(USB, ep_ix, len);
+ } else {
+ addr_ptr = pcd_get_ep_dbuf0_address(USB, ep_ix);
+ pcd_set_ep_tx_dbuf0_cnt(USB, ep_ix, len);
+ }
+ } else {
+ addr_ptr = pcd_get_ep_tx_address(USB, ep_ix);
+ pcd_set_ep_tx_cnt(USB, ep_ix, len);
}
- xfer->queued_len = (uint16_t)(xfer->queued_len + len);
- /* Write into correct register when ISOCHRONOUS (double buffered) */
- if ( (ep_reg & USB_EP_DTOG_TX) && ( (ep_reg & USB_EP_TYPE_MASK) == USB_EP_ISOCHRONOUS) ) {
- pcd_set_ep_rx_cnt(USB, ep_ix, len);
+ if (xfer->ff) {
+ dcd_write_packet_memory_ff(xfer->ff, addr_ptr, len);
} else {
- pcd_set_ep_tx_cnt(USB, ep_ix, len);
+ dcd_write_packet_memory(addr_ptr, &(xfer->buffer[xfer->queued_len]), len);
}
+ xfer->queued_len = (uint16_t)(xfer->queued_len + len);
+ dcd_int_disable(0);
pcd_set_ep_tx_status(USB, ep_ix, USB_EP_TX_VALID);
+ if (is_iso) {
+ xfer->iso_in_sending = true;
+ }
+ dcd_int_enable(0);
}
-bool dcd_edpt_xfer (uint8_t rhport, uint8_t ep_addr, uint8_t * buffer, uint16_t total_bytes)
+static bool edpt_xfer(uint8_t rhport, uint8_t ep_addr)
{
- (void) rhport;
+ (void)rhport;
- xfer_ctl_t * xfer = xfer_ctl_ptr(ep_addr);
+ xfer_ctl_t *xfer = xfer_ctl_ptr(ep_addr);
uint8_t const ep_idx = xfer->ep_idx;
- uint8_t const dir = tu_edpt_dir(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
- xfer->buffer = buffer;
- xfer->ff = NULL;
- xfer->total_len = total_bytes;
- xfer->queued_len = 0;
-
- if ( dir == TUSB_DIR_OUT )
- {
+ if (dir == TUSB_DIR_IN) {
+ dcd_transmit_packet(xfer, ep_idx);
+ } else {
// A setup token can occur immediately after an OUT STATUS packet so make sure we have a valid
// buffer for the control endpoint.
- if (ep_idx == 0 && buffer == NULL)
- {
- xfer->buffer = (uint8_t*)_setup_packet;
+ if (ep_idx == 0 && xfer->buffer == NULL) {
+ xfer->buffer = (uint8_t *)_setup_packet;
}
- if(total_bytes > xfer->max_packet_size)
- {
- pcd_set_ep_rx_bufsize(USB,ep_idx,xfer->max_packet_size);
+ uint32_t cnt = (uint32_t ) tu_min16(xfer->total_len, xfer->max_packet_size);
+ uint16_t ep_reg = pcd_get_endpoint(USB, ep_idx);
+
+ if ((ep_reg & USB_EP_TYPE_MASK) == USB_EP_ISOCHRONOUS) {
+ pcd_set_ep_rx_dbuf0_cnt(USB, ep_idx, cnt);
+ pcd_set_ep_rx_dbuf1_cnt(USB, ep_idx, cnt);
} else {
- pcd_set_ep_rx_bufsize(USB,ep_idx,total_bytes);
+ pcd_set_ep_rx_cnt(USB, ep_idx, cnt);
}
+
pcd_set_ep_rx_status(USB, ep_idx, USB_EP_RX_VALID);
}
- else // IN
- {
- dcd_transmit_packet(xfer,ep_idx);
- }
+
return true;
}
-bool dcd_edpt_xfer_fifo (uint8_t rhport, uint8_t ep_addr, tu_fifo_t * ff, uint16_t total_bytes)
+bool dcd_edpt_xfer(uint8_t rhport, uint8_t ep_addr, uint8_t *buffer, uint16_t total_bytes)
{
- (void) rhport;
+ xfer_ctl_t *xfer = xfer_ctl_ptr(ep_addr);
- xfer_ctl_t * xfer = xfer_ctl_ptr(ep_addr);
- uint8_t const epnum = xfer->ep_idx;
- uint8_t const dir = tu_edpt_dir(ep_addr);
+ xfer->buffer = buffer;
+ xfer->ff = NULL;
+ xfer->total_len = total_bytes;
+ xfer->queued_len = 0;
+ return edpt_xfer(rhport, ep_addr);
+}
+
+bool dcd_edpt_xfer_fifo(uint8_t rhport, uint8_t ep_addr, tu_fifo_t *ff, uint16_t total_bytes)
+{
+ xfer_ctl_t *xfer = xfer_ctl_ptr(ep_addr);
xfer->buffer = NULL;
- xfer->ff = ff;
+ xfer->ff = ff;
xfer->total_len = total_bytes;
xfer->queued_len = 0;
- if ( dir == TUSB_DIR_OUT )
- {
- if(total_bytes > xfer->max_packet_size)
- {
- pcd_set_ep_rx_bufsize(USB,epnum,xfer->max_packet_size);
- } else {
- pcd_set_ep_rx_bufsize(USB,epnum,total_bytes);
- }
- pcd_set_ep_rx_status(USB, epnum, USB_EP_RX_VALID);
- }
- else // IN
- {
- dcd_transmit_packet(xfer,epnum);
- }
- return true;
+ return edpt_xfer(rhport, ep_addr);
}
-void dcd_edpt_stall (uint8_t rhport, uint8_t ep_addr)
+void dcd_edpt_stall(uint8_t rhport, uint8_t ep_addr)
{
(void)rhport;
- xfer_ctl_t * xfer = xfer_ctl_ptr(ep_addr);
+ xfer_ctl_t *xfer = xfer_ctl_ptr(ep_addr);
uint8_t const ep_idx = xfer->ep_idx;
- uint8_t const dir = tu_edpt_dir(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
- if (dir == TUSB_DIR_IN)
- { // IN
+ if (dir == TUSB_DIR_IN) {
pcd_set_ep_tx_status(USB, ep_idx, USB_EP_TX_STALL);
- }
- else
- { // OUT
+ } else {
pcd_set_ep_rx_status(USB, ep_idx, USB_EP_RX_STALL);
}
}
-void dcd_edpt_clear_stall (uint8_t rhport, uint8_t ep_addr)
+void dcd_edpt_clear_stall(uint8_t rhport, uint8_t ep_addr)
{
(void)rhport;
- xfer_ctl_t * xfer = xfer_ctl_ptr(ep_addr);
+ xfer_ctl_t *xfer = xfer_ctl_ptr(ep_addr);
uint8_t const ep_idx = xfer->ep_idx;
- uint8_t const dir = tu_edpt_dir(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
- if (dir == TUSB_DIR_IN)
- { // IN
- if (pcd_get_eptype(USB, ep_idx) != USB_EP_ISOCHRONOUS) {
+ if (dir == TUSB_DIR_IN) { // IN
+ if (pcd_get_eptype(USB, ep_idx) != USB_EP_ISOCHRONOUS) {
pcd_set_ep_tx_status(USB, ep_idx, USB_EP_TX_NAK);
}
/* Reset to DATA0 if clearing stall condition. */
pcd_clear_tx_dtog(USB, ep_idx);
- }
- else
- { // OUT
- if (pcd_get_eptype(USB, ep_idx) != USB_EP_ISOCHRONOUS) {
+ } else { // OUT
+ if (pcd_get_eptype(USB, ep_idx) != USB_EP_ISOCHRONOUS) {
pcd_set_ep_rx_status(USB, ep_idx, USB_EP_RX_NAK);
}
/* Reset to DATA0 if clearing stall condition. */
@@ -1221,11 +1090,11 @@ void dcd_edpt_clear_stall (uint8_t rhport, uint8_t ep_addr)
}
}
-#ifdef PMA_32BIT_ACCESS
+#ifdef FSDEV_BUS_32BIT
static bool dcd_write_packet_memory(uint16_t dst, const void *__restrict src, uint16_t wNBytes)
{
- const uint8_t* srcVal = src;
- volatile uint32_t* dst32 = (volatile uint32_t*)(USB_PMAADDR + dst);
+ const uint8_t *srcVal = src;
+ volatile uint32_t *dst32 = (volatile uint32_t *)(USB_PMAADDR + dst);
for (uint32_t n = wNBytes / 4; n > 0; --n) {
*dst32++ = tu_unaligned_read32(srcVal);
@@ -1233,18 +1102,15 @@ static bool dcd_write_packet_memory(uint16_t dst, const void *__restrict src, ui
}
wNBytes = wNBytes & 0x03;
- if (wNBytes)
- {
+ if (wNBytes) {
uint32_t wrVal = *srcVal;
wNBytes--;
- if (wNBytes)
- {
+ if (wNBytes) {
wrVal |= *++srcVal << 8;
wNBytes--;
- if (wNBytes)
- {
+ if (wNBytes) {
wrVal |= *++srcVal << 16;
}
}
@@ -1257,40 +1123,38 @@ static bool dcd_write_packet_memory(uint16_t dst, const void *__restrict src, ui
#else
// Packet buffer access can only be 8- or 16-bit.
/**
- * @brief Copy a buffer from user memory area to packet memory area (PMA).
- * This uses byte-access for user memory (so support non-aligned buffers)
- * and 16-bit access for packet memory.
- * @param dst, byte address in PMA; must be 16-bit aligned
- * @param src pointer to user memory area.
- * @param wPMABufAddr address into PMA.
- * @param wNBytes no. of bytes to be copied.
- * @retval None
- */
+ * @brief Copy a buffer from user memory area to packet memory area (PMA).
+ * This uses byte-access for user memory (so support non-aligned buffers)
+ * and 16-bit access for packet memory.
+ * @param dst, byte address in PMA; must be 16-bit aligned
+ * @param src pointer to user memory area.
+ * @param wPMABufAddr address into PMA.
+ * @param wNBytes no. of bytes to be copied.
+ * @retval None
+ */
static bool dcd_write_packet_memory(uint16_t dst, const void *__restrict src, uint16_t wNBytes)
{
uint32_t n = (uint32_t)wNBytes >> 1U;
uint16_t temp1, temp2;
- const uint8_t * srcVal;
+ const uint8_t *srcVal;
// The GCC optimizer will combine access to 32-bit sizes if we let it. Force
// it volatile so that it won't do that.
__IO uint16_t *pdwVal;
srcVal = src;
- pdwVal = &pma[PMA_STRIDE*(dst>>1)];
+ pdwVal = &pma[FSDEV_PMA_STRIDE * (dst >> 1)];
- while (n--)
- {
+ while (n--) {
temp1 = (uint16_t)*srcVal;
srcVal++;
- temp2 = temp1 | ((uint16_t)(((uint16_t)(*srcVal)) << 8U)) ;
+ temp2 = temp1 | ((uint16_t)(((uint16_t)(*srcVal)) << 8U));
*pdwVal = temp2;
- pdwVal += PMA_STRIDE;
+ pdwVal += FSDEV_PMA_STRIDE;
srcVal++;
}
- if (wNBytes)
- {
+ if (wNBytes) {
temp1 = *srcVal;
*pdwVal = temp1;
}
@@ -1300,42 +1164,39 @@ static bool dcd_write_packet_memory(uint16_t dst, const void *__restrict src, ui
#endif
/**
- * @brief Copy from FIFO to packet memory area (PMA).
- * Uses byte-access of system memory and 16-bit access of packet memory
- * @param wNBytes no. of bytes to be copied.
- * @retval None
- */
-static bool dcd_write_packet_memory_ff(tu_fifo_t * ff, uint16_t dst, uint16_t wNBytes)
+ * @brief Copy from FIFO to packet memory area (PMA).
+ * Uses byte-access of system memory and 16-bit access of packet memory
+ * @param wNBytes no. of bytes to be copied.
+ * @retval None
+ */
+static bool dcd_write_packet_memory_ff(tu_fifo_t *ff, uint16_t dst, uint16_t wNBytes)
{
// Since we copy from a ring buffer FIFO, a wrap might occur making it necessary to conduct two copies
tu_fifo_buffer_info_t info;
tu_fifo_get_read_info(ff, &info);
- uint16_t cnt_lin = TU_MIN(wNBytes, info.len_lin);
+ uint16_t cnt_lin = TU_MIN(wNBytes, info.len_lin);
uint16_t cnt_wrap = TU_MIN(wNBytes - cnt_lin, info.len_wrap);
// We want to read from the FIFO and write it into the PMA, if LIN part is ODD and has WRAPPED part,
// last lin byte will be combined with wrapped part
// To ensure PMA is always access aligned (dst aligned to 16 or 32 bit)
-#ifdef PMA_32BIT_ACCESS
- if((cnt_lin & 0x03) && cnt_wrap)
- {
+#ifdef FSDEV_BUS_32BIT
+ if ((cnt_lin & 0x03) && cnt_wrap) {
// Copy first linear part
- dcd_write_packet_memory(dst, info.ptr_lin, cnt_lin &~0x03);
- dst += cnt_lin &~0x03;
+ dcd_write_packet_memory(dst, info.ptr_lin, cnt_lin & ~0x03);
+ dst += cnt_lin & ~0x03;
// Copy last linear bytes & first wrapped bytes to buffer
uint32_t i;
uint8_t tmp[4];
- for (i = 0; i < (cnt_lin & 0x03); i++)
- {
- tmp[i] = ((uint8_t*)info.ptr_lin)[(cnt_lin &~0x03) + i];
+ for (i = 0; i < (cnt_lin & 0x03); i++) {
+ tmp[i] = ((uint8_t *)info.ptr_lin)[(cnt_lin & ~0x03) + i];
}
uint32_t wCnt = cnt_wrap;
- for (; i < 4 && wCnt > 0; i++, wCnt--)
- {
- tmp[i] = *(uint8_t*)info.ptr_wrap;
- info.ptr_wrap = (uint8_t*)info.ptr_wrap + 1;
+ for (; i < 4 && wCnt > 0; i++, wCnt--) {
+ tmp[i] = *(uint8_t *)info.ptr_wrap;
+ info.ptr_wrap = (uint8_t *)info.ptr_wrap + 1;
}
// Write unaligned buffer
@@ -1344,32 +1205,29 @@ static bool dcd_write_packet_memory_ff(tu_fifo_t * ff, uint16_t dst, uint16_t wN
// Copy rest of wrapped byte
if (wCnt)
- dcd_write_packet_memory(dst, info.ptr_wrap, wCnt);
+ dcd_write_packet_memory(dst, info.ptr_wrap, wCnt);
}
#else
- if((cnt_lin & 0x01) && cnt_wrap)
- {
+ if ((cnt_lin & 0x01) && cnt_wrap) {
// Copy first linear part
- dcd_write_packet_memory(dst, info.ptr_lin, cnt_lin &~0x01);
- dst += cnt_lin &~0x01;
+ dcd_write_packet_memory(dst, info.ptr_lin, cnt_lin & ~0x01);
+ dst += cnt_lin & ~0x01;
// Copy last linear byte & first wrapped byte
- uint16_t tmp = ((uint8_t*)info.ptr_lin)[cnt_lin - 1] | ((uint16_t)(((uint8_t*)info.ptr_wrap)[0]) << 8U);
+ uint16_t tmp = ((uint8_t *)info.ptr_lin)[cnt_lin - 1] | ((uint16_t)(((uint8_t *)info.ptr_wrap)[0]) << 8U);
dcd_write_packet_memory(dst, &tmp, 2);
dst += 2;
// Copy rest of wrapped byte
- dcd_write_packet_memory(dst, ((uint8_t*)info.ptr_wrap) + 1, cnt_wrap - 1);
+ dcd_write_packet_memory(dst, ((uint8_t *)info.ptr_wrap) + 1, cnt_wrap - 1);
}
#endif
- else
- {
+ else {
// Copy linear part
dcd_write_packet_memory(dst, info.ptr_lin, cnt_lin);
dst += info.len_lin;
- if(info.len_wrap)
- {
+ if (info.len_wrap) {
// Copy wrapped byte
dcd_write_packet_memory(dst, info.ptr_wrap, cnt_wrap);
}
@@ -1380,11 +1238,11 @@ static bool dcd_write_packet_memory_ff(tu_fifo_t * ff, uint16_t dst, uint16_t wN
return true;
}
-#ifdef PMA_32BIT_ACCESS
+#ifdef FSDEV_BUS_32BIT
static bool dcd_read_packet_memory(void *__restrict dst, uint16_t src, uint16_t wNBytes)
{
- uint8_t* dstVal = dst;
- volatile uint32_t* src32 = (volatile uint32_t*)(USB_PMAADDR + src);
+ uint8_t *dstVal = dst;
+ volatile uint32_t *src32 = (volatile uint32_t *)(USB_PMAADDR + src);
for (uint32_t n = wNBytes / 4; n > 0; --n) {
tu_unaligned_write32(dstVal, *src32++);
@@ -1392,20 +1250,17 @@ static bool dcd_read_packet_memory(void *__restrict dst, uint16_t src, uint16_t
}
wNBytes = wNBytes & 0x03;
- if (wNBytes)
- {
+ if (wNBytes) {
uint32_t rdVal = *src32;
*dstVal = tu_u32_byte0(rdVal);
wNBytes--;
- if (wNBytes)
- {
+ if (wNBytes) {
*++dstVal = tu_u32_byte1(rdVal);
wNBytes--;
- if (wNBytes)
- {
+ if (wNBytes) {
*++dstVal = tu_u32_byte2(rdVal);
}
}
@@ -1415,11 +1270,11 @@ static bool dcd_read_packet_memory(void *__restrict dst, uint16_t src, uint16_t
}
#else
/**
- * @brief Copy a buffer from packet memory area (PMA) to user memory area.
- * Uses byte-access of system memory and 16-bit access of packet memory
- * @param wNBytes no. of bytes to be copied.
- * @retval None
- */
+ * @brief Copy a buffer from packet memory area (PMA) to user memory area.
+ * Uses byte-access of system memory and 16-bit access of packet memory
+ * @param wNBytes no. of bytes to be copied.
+ * @retval None
+ */
static bool dcd_read_packet_memory(void *__restrict dst, uint16_t src, uint16_t wNBytes)
{
uint32_t n = (uint32_t)wNBytes >> 1U;
@@ -1428,21 +1283,19 @@ static bool dcd_read_packet_memory(void *__restrict dst, uint16_t src, uint16_t
__IO const uint16_t *pdwVal;
uint32_t temp;
- pdwVal = &pma[PMA_STRIDE*(src>>1)];
- uint8_t *dstVal = (uint8_t*)dst;
+ pdwVal = &pma[FSDEV_PMA_STRIDE * (src >> 1)];
+ uint8_t *dstVal = (uint8_t *)dst;
- while (n--)
- {
+ while (n--) {
temp = *pdwVal;
- pdwVal += PMA_STRIDE;
+ pdwVal += FSDEV_PMA_STRIDE;
*dstVal++ = ((temp >> 0) & 0xFF);
*dstVal++ = ((temp >> 8) & 0xFF);
}
- if (wNBytes & 0x01)
- {
+ if (wNBytes & 0x01) {
temp = *pdwVal;
- pdwVal += PMA_STRIDE;
+ pdwVal += FSDEV_PMA_STRIDE;
*dstVal++ = ((temp >> 0) & 0xFF);
}
return true;
@@ -1450,31 +1303,29 @@ static bool dcd_read_packet_memory(void *__restrict dst, uint16_t src, uint16_t
#endif
/**
- * @brief Copy a buffer from user packet memory area (PMA) to FIFO.
- * Uses byte-access of system memory and 16-bit access of packet memory
- * @param wNBytes no. of bytes to be copied.
- * @retval None
- */
-static bool dcd_read_packet_memory_ff(tu_fifo_t * ff, uint16_t src, uint16_t wNBytes)
+ * @brief Copy a buffer from user packet memory area (PMA) to FIFO.
+ * Uses byte-access of system memory and 16-bit access of packet memory
+ * @param wNBytes no. of bytes to be copied.
+ * @retval None
+ */
+static bool dcd_read_packet_memory_ff(tu_fifo_t *ff, uint16_t src, uint16_t wNBytes)
{
// Since we copy into a ring buffer FIFO, a wrap might occur making it necessary to conduct two copies
// Check for first linear part
tu_fifo_buffer_info_t info;
- tu_fifo_get_write_info(ff, &info); // We want to read from the FIFO
+ tu_fifo_get_write_info(ff, &info); // We want to read from the FIFO
- uint16_t cnt_lin = TU_MIN(wNBytes, info.len_lin);
+ uint16_t cnt_lin = TU_MIN(wNBytes, info.len_lin);
uint16_t cnt_wrap = TU_MIN(wNBytes - cnt_lin, info.len_wrap);
-
// We want to read from PMA and write it into the FIFO, if LIN part is ODD and has WRAPPED part,
// last lin byte will be combined with wrapped part
// To ensure PMA is always access aligned (src aligned to 16 or 32 bit)
-#ifdef PMA_32BIT_ACCESS
- if((cnt_lin & 0x03) && cnt_wrap)
- {
+#ifdef FSDEV_BUS_32BIT
+ if ((cnt_lin & 0x03) && cnt_wrap) {
// Copy first linear part
- dcd_read_packet_memory(info.ptr_lin, src, cnt_lin &~0x03);
- src += cnt_lin &~0x03;
+ dcd_read_packet_memory(info.ptr_lin, src, cnt_lin & ~0x03);
+ src += cnt_lin & ~0x03;
// Copy last linear bytes & first wrapped bytes
uint8_t tmp[4];
@@ -1482,15 +1333,13 @@ static bool dcd_read_packet_memory_ff(tu_fifo_t * ff, uint16_t src, uint16_t wNB
src += 4;
uint32_t i;
- for (i = 0; i < (cnt_lin & 0x03); i++)
- {
- ((uint8_t*)info.ptr_lin)[(cnt_lin &~0x03) + i] = tmp[i];
+ for (i = 0; i < (cnt_lin & 0x03); i++) {
+ ((uint8_t *)info.ptr_lin)[(cnt_lin & ~0x03) + i] = tmp[i];
}
uint32_t wCnt = cnt_wrap;
- for (; i < 4 && wCnt > 0; i++, wCnt--)
- {
- *(uint8_t*)info.ptr_wrap = tmp[i];
- info.ptr_wrap = (uint8_t*)info.ptr_wrap + 1;
+ for (; i < 4 && wCnt > 0; i++, wCnt--) {
+ *(uint8_t *)info.ptr_wrap = tmp[i];
+ info.ptr_wrap = (uint8_t *)info.ptr_wrap + 1;
}
// Copy rest of wrapped byte
@@ -1498,32 +1347,29 @@ static bool dcd_read_packet_memory_ff(tu_fifo_t * ff, uint16_t src, uint16_t wNB
dcd_read_packet_memory(info.ptr_wrap, src, wCnt);
}
#else
- if((cnt_lin & 0x01) && cnt_wrap)
- {
+ if ((cnt_lin & 0x01) && cnt_wrap) {
// Copy first linear part
- dcd_read_packet_memory(info.ptr_lin, src, cnt_lin &~0x01);
- src += cnt_lin &~0x01;
+ dcd_read_packet_memory(info.ptr_lin, src, cnt_lin & ~0x01);
+ src += cnt_lin & ~0x01;
// Copy last linear byte & first wrapped byte
uint8_t tmp[2];
dcd_read_packet_memory(tmp, src, 2);
src += 2;
- ((uint8_t*)info.ptr_lin)[cnt_lin - 1] = tmp[0];
- ((uint8_t*)info.ptr_wrap)[0] = tmp[1];
+ ((uint8_t *)info.ptr_lin)[cnt_lin - 1] = tmp[0];
+ ((uint8_t *)info.ptr_wrap)[0] = tmp[1];
// Copy rest of wrapped byte
- dcd_read_packet_memory(((uint8_t*)info.ptr_wrap) + 1, src, cnt_wrap - 1);
+ dcd_read_packet_memory(((uint8_t *)info.ptr_wrap) + 1, src, cnt_wrap - 1);
}
#endif
- else
- {
+ else {
// Copy linear part
dcd_read_packet_memory(info.ptr_lin, src, cnt_lin);
src += cnt_lin;
- if(info.len_wrap)
- {
+ if (info.len_wrap) {
// Copy wrapped byte
dcd_read_packet_memory(info.ptr_wrap, src, cnt_wrap);
}
diff --git a/src/portable/st/stm32_fsdev/dcd_stm32_fsdev_pvt_st.h b/src/portable/st/stm32_fsdev/dcd_stm32_fsdev.h
index e6649de5a..7992f34a1 100644
--- a/src/portable/st/stm32_fsdev/dcd_stm32_fsdev_pvt_st.h
+++ b/src/portable/st/stm32_fsdev/dcd_stm32_fsdev.h
@@ -1,34 +1,36 @@
-/**
- * Copyright(c) 2016 STMicroelectronics
- * Copyright(c) N Conrad
- *
- * Redistribution and use in source and binary forms, with or without modification,
- * are permitted provided that the following conditions are met:
- * 1. Redistributions of source code must retain the above copyright notice,
- * this list of conditions and the following disclaimer.
- * 2. Redistributions in binary form must reproduce the above copyright notice,
- * this list of conditions and the following disclaimer in the documentation
- * and/or other materials provided with the distribution.
- * 3. Neither the name of STMicroelectronics nor the names of its contributors
- * may be used to endorse or promote products derived from this software
- * without specific prior written permission.
- *
- * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
- * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
- * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
- * DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE LIABLE
- * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
- * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
- * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER
- * CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
- * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
- * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
- *
- */
+/*
+ * Copyright(c) 2016 STMicroelectronics
+ * Copyright(c) N Conrad
+ * Copyright (c) 2019 Ha Thach (tinyusb.org)
+ *
+ * Redistribution and use in source and binary forms, with or without modification,
+ * are permitted provided that the following conditions are met:
+ * 1. Redistributions of source code must retain the above copyright notice,
+ * this list of conditions and the following disclaimer.
+ * 2. Redistributions in binary form must reproduce the above copyright notice,
+ * this list of conditions and the following disclaimer in the documentation
+ * and/or other materials provided with the distribution.
+ * 3. Neither the name of STMicroelectronics nor the names of its contributors
+ * may be used to endorse or promote products derived from this software
+ * without specific prior written permission.
+ *
+ * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
+ * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
+ * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
+ * DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE LIABLE
+ * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
+ * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
+ * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER
+ * CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
+ * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
+ * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
+ *
+ * This file is part of the TinyUSB stack.
+ */
// This file contains source copied from ST's HAL, and thus should have their copyright statement.
-// PMA_LENGTH is PMA buffer size in bytes.
+// FSDEV_PMA_SIZE is PMA buffer size in bytes.
// On 512-byte devices, access with a stride of two words (use every other 16-bit address)
// On 1024-byte devices, access with a stride of one word (use every 16-bit address)
@@ -37,7 +39,7 @@
#if CFG_TUSB_MCU == OPT_MCU_STM32F0
#include "stm32f0xx.h"
- #define PMA_LENGTH (1024u)
+ #define FSDEV_PMA_SIZE (1024u)
// F0x2 models are crystal-less
// All have internal D+ pull-up
// 070RB: 2 x 16 bits/word memory LPM Support, BCD Support
@@ -45,7 +47,7 @@
#elif CFG_TUSB_MCU == OPT_MCU_STM32F1
#include "stm32f1xx.h"
- #define PMA_LENGTH (512u)
+ #define FSDEV_PMA_SIZE (512u)
// NO internal Pull-ups
// *B, and *C: 2 x 16 bits/word
@@ -56,7 +58,7 @@
defined(STM32F303xB) || defined(STM32F303xC) || \
defined(STM32F373xC)
#include "stm32f3xx.h"
- #define PMA_LENGTH (512u)
+ #define FSDEV_PMA_SIZE (512u)
// NO internal Pull-ups
// *B, and *C: 1 x 16 bits/word
// PMA dedicated to USB (no sharing with CAN)
@@ -65,27 +67,60 @@
defined(STM32F302xD) || defined(STM32F302xE) || \
defined(STM32F303xD) || defined(STM32F303xE)
#include "stm32f3xx.h"
- #define PMA_LENGTH (1024u)
+ #define FSDEV_PMA_SIZE (1024u)
// NO internal Pull-ups
// *6, *8, *D, and *E: 2 x 16 bits/word LPM Support
// When CAN clock is enabled, USB can use first 768 bytes ONLY.
#elif CFG_TUSB_MCU == OPT_MCU_STM32L0
#include "stm32l0xx.h"
- #define PMA_LENGTH (1024u)
+ #define FSDEV_PMA_SIZE (1024u)
#elif CFG_TUSB_MCU == OPT_MCU_STM32L1
#include "stm32l1xx.h"
- #define PMA_LENGTH (512u)
+ #define FSDEV_PMA_SIZE (512u)
#elif CFG_TUSB_MCU == OPT_MCU_STM32G4
#include "stm32g4xx.h"
- #define PMA_LENGTH (1024u)
+ #define FSDEV_PMA_SIZE (1024u)
#elif CFG_TUSB_MCU == OPT_MCU_STM32G0
#include "stm32g0xx.h"
- #define PMA_32BIT_ACCESS
- #define PMA_LENGTH (2048u)
+ #define FSDEV_BUS_32BIT
+ #define FSDEV_PMA_SIZE (2048u)
+ #undef USB_PMAADDR
+ #define USB_PMAADDR USB_DRD_PMAADDR
+ #define USB_TypeDef USB_DRD_TypeDef
+ #define EP0R CHEP0R
+ #define USB_EP_CTR_RX USB_EP_VTRX
+ #define USB_EP_CTR_TX USB_EP_VTTX
+ #define USB_EP_T_FIELD USB_CHEP_UTYPE
+ #define USB_EPREG_MASK USB_CHEP_REG_MASK
+ #define USB_EPTX_DTOGMASK USB_CHEP_TX_DTOGMASK
+ #define USB_EPRX_DTOGMASK USB_CHEP_RX_DTOGMASK
+ #define USB_EPTX_DTOG1 USB_CHEP_TX_DTOG1
+ #define USB_EPTX_DTOG2 USB_CHEP_TX_DTOG2
+ #define USB_EPRX_DTOG1 USB_CHEP_RX_DTOG1
+ #define USB_EPRX_DTOG2 USB_CHEP_RX_DTOG2
+ #define USB_EPRX_STAT USB_CH_RX_VALID
+ #define USB_EPKIND_MASK USB_EP_KIND_MASK
+ #define USB USB_DRD_FS
+ #define USB_CNTR_FRES USB_CNTR_USBRST
+ #define USB_CNTR_RESUME USB_CNTR_L2RES
+ #define USB_ISTR_EP_ID USB_ISTR_IDN
+ #define USB_EPADDR_FIELD USB_CHEP_ADDR
+ #define USB_CNTR_LPMODE USB_CNTR_SUSPRDY
+ #define USB_CNTR_FSUSP USB_CNTR_SUSPEN
+
+#elif CFG_TUSB_MCU == OPT_MCU_STM32H5
+ #include "stm32h5xx.h"
+ #define FSDEV_BUS_32BIT
+
+ #if !defined(USB_DRD_BASE) && defined(USB_DRD_FS_BASE)
+ #define USB_DRD_BASE USB_DRD_FS_BASE
+ #endif
+
+ #define FSDEV_PMA_SIZE (2048u)
#undef USB_PMAADDR
#define USB_PMAADDR USB_DRD_PMAADDR
#define USB_TypeDef USB_DRD_TypeDef
@@ -112,18 +147,18 @@
#elif CFG_TUSB_MCU == OPT_MCU_STM32WB
#include "stm32wbxx.h"
- #define PMA_LENGTH (1024u)
+ #define FSDEV_PMA_SIZE (1024u)
/* ST provided header has incorrect value */
#undef USB_PMAADDR
#define USB_PMAADDR USB1_PMAADDR
#elif CFG_TUSB_MCU == OPT_MCU_STM32L4
#include "stm32l4xx.h"
- #define PMA_LENGTH (1024u)
+ #define FSDEV_PMA_SIZE (1024u)
#elif CFG_TUSB_MCU == OPT_MCU_STM32L5
#include "stm32l5xx.h"
- #define PMA_LENGTH (1024u)
+ #define FSDEV_PMA_SIZE (1024u)
#ifndef USB_PMAADDR
#define USB_PMAADDR (USB_BASE + (USB_PMAADDR_NS - USB_BASE_NS))
@@ -135,41 +170,41 @@
#endif
// For purposes of accessing the packet
-#if ((PMA_LENGTH) == 512u)
- #define PMA_STRIDE (2u)
-#elif ((PMA_LENGTH) == 1024u)
- #define PMA_STRIDE (1u)
+#if ((FSDEV_PMA_SIZE) == 512u)
+ #define FSDEV_PMA_STRIDE (2u)
+#elif ((FSDEV_PMA_SIZE) == 1024u)
+ #define FSDEV_PMA_STRIDE (1u)
#endif
+// The fsdev_bus_t type can be used for both register and PMA access necessities
// For type-safety create a new macro for the volatile address of PMAADDR
// The compiler should warn us if we cast it to a non-volatile type?
-#ifdef PMA_32BIT_ACCESS
+#ifdef FSDEV_BUS_32BIT
+typedef uint32_t fsdev_bus_t;
static __IO uint32_t * const pma32 = (__IO uint32_t*)USB_PMAADDR;
+
#else
+typedef uint16_t fsdev_bus_t;
// Volatile is also needed to prevent the optimizer from changing access to 32-bit (as 32-bit access is forbidden)
static __IO uint16_t * const pma = (__IO uint16_t*)USB_PMAADDR;
-TU_ATTR_ALWAYS_INLINE static inline __IO uint16_t * pcd_btable_word_ptr(USB_TypeDef * USBx, size_t x)
-{
+TU_ATTR_ALWAYS_INLINE static inline __IO uint16_t * pcd_btable_word_ptr(USB_TypeDef * USBx, size_t x) {
size_t total_word_offset = (((USBx)->BTABLE)>>1) + x;
- total_word_offset *= PMA_STRIDE;
+ total_word_offset *= FSDEV_PMA_STRIDE;
return &(pma[total_word_offset]);
}
-TU_ATTR_ALWAYS_INLINE static inline __IO uint16_t* pcd_ep_tx_cnt_ptr(USB_TypeDef * USBx, uint32_t bEpIdx)
-{
+TU_ATTR_ALWAYS_INLINE static inline __IO uint16_t* pcd_ep_tx_cnt_ptr(USB_TypeDef * USBx, uint32_t bEpIdx) {
return pcd_btable_word_ptr(USBx,(bEpIdx)*4u + 1u);
}
-TU_ATTR_ALWAYS_INLINE static inline __IO uint16_t* pcd_ep_rx_cnt_ptr(USB_TypeDef * USBx, uint32_t bEpIdx)
-{
+TU_ATTR_ALWAYS_INLINE static inline __IO uint16_t* pcd_ep_rx_cnt_ptr(USB_TypeDef * USBx, uint32_t bEpIdx) {
return pcd_btable_word_ptr(USBx,(bEpIdx)*4u + 3u);
}
#endif
/* Aligned buffer size according to hardware */
-TU_ATTR_ALWAYS_INLINE static inline uint16_t pcd_aligned_buffer_size(uint16_t size)
-{
+TU_ATTR_ALWAYS_INLINE static inline uint16_t pcd_aligned_buffer_size(uint16_t size) {
/* The STM32 full speed USB peripheral supports only a limited set of
* buffer sizes given by the RX buffer entry format in the USB_BTABLE. */
uint16_t blocksize = (size > 62) ? 32 : 2;
@@ -180,10 +215,8 @@ TU_ATTR_ALWAYS_INLINE static inline uint16_t pcd_aligned_buffer_size(uint16_t si
return numblocks * blocksize;
}
-/* SetENDPOINT */
-TU_ATTR_ALWAYS_INLINE static inline void pcd_set_endpoint(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t wRegValue)
-{
-#ifdef PMA_32BIT_ACCESS
+TU_ATTR_ALWAYS_INLINE static inline void pcd_set_endpoint(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t wRegValue) {
+#ifdef FSDEV_BUS_32BIT
(void) USBx;
__O uint32_t *reg = (__O uint32_t *)(USB_DRD_BASE + bEpIdx*4);
*reg = wRegValue;
@@ -193,9 +226,8 @@ TU_ATTR_ALWAYS_INLINE static inline void pcd_set_endpoint(USB_TypeDef * USBx, ui
#endif
}
-/* GetENDPOINT */
TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_endpoint(USB_TypeDef * USBx, uint32_t bEpIdx) {
-#ifdef PMA_32BIT_ACCESS
+#ifdef FSDEV_BUS_32BIT
(void) USBx;
__I uint32_t *reg = (__I uint32_t *)(USB_DRD_BASE + bEpIdx*4);
#else
@@ -204,8 +236,7 @@ TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_endpoint(USB_TypeDef * USBx
return *reg;
}
-TU_ATTR_ALWAYS_INLINE static inline void pcd_set_eptype(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t wType)
-{
+TU_ATTR_ALWAYS_INLINE static inline void pcd_set_eptype(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t wType) {
uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
regVal &= (uint32_t)USB_EP_T_MASK;
regVal |= wType;
@@ -213,20 +244,19 @@ TU_ATTR_ALWAYS_INLINE static inline void pcd_set_eptype(USB_TypeDef * USBx, uint
pcd_set_endpoint(USBx, bEpIdx, regVal);
}
-TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_eptype(USB_TypeDef * USBx, uint32_t bEpIdx)
-{
+TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_eptype(USB_TypeDef * USBx, uint32_t bEpIdx) {
uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
regVal &= USB_EP_T_FIELD;
return regVal;
}
+
/**
* @brief Clears bit CTR_RX / CTR_TX in the endpoint register.
* @param USBx USB peripheral instance register address.
* @param bEpIdx Endpoint Number.
* @retval None
*/
-TU_ATTR_ALWAYS_INLINE static inline void pcd_clear_rx_ep_ctr(USB_TypeDef * USBx, uint32_t bEpIdx)
-{
+TU_ATTR_ALWAYS_INLINE static inline void pcd_clear_rx_ep_ctr(USB_TypeDef * USBx, uint32_t bEpIdx) {
uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
regVal &= USB_EPREG_MASK;
regVal &= ~USB_EP_CTR_RX;
@@ -234,23 +264,22 @@ TU_ATTR_ALWAYS_INLINE static inline void pcd_clear_rx_ep_ctr(USB_TypeDef * USBx,
pcd_set_endpoint(USBx, bEpIdx, regVal);
}
-TU_ATTR_ALWAYS_INLINE static inline void pcd_clear_tx_ep_ctr(USB_TypeDef * USBx, uint32_t bEpIdx)
-{
+TU_ATTR_ALWAYS_INLINE static inline void pcd_clear_tx_ep_ctr(USB_TypeDef * USBx, uint32_t bEpIdx) {
uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
regVal &= USB_EPREG_MASK;
regVal &= ~USB_EP_CTR_TX;
regVal |= USB_EP_CTR_RX; // preserve CTR_RX (clears on writing 0)
pcd_set_endpoint(USBx, bEpIdx,regVal);
}
+
/**
* @brief gets counter of the tx buffer.
* @param USBx USB peripheral instance register address.
* @param bEpIdx Endpoint Number.
* @retval Counter value
*/
-TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_ep_tx_cnt(USB_TypeDef * USBx, uint32_t bEpIdx)
-{
-#ifdef PMA_32BIT_ACCESS
+TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_ep_tx_cnt(USB_TypeDef * USBx, uint32_t bEpIdx) {
+#ifdef FSDEV_BUS_32BIT
(void) USBx;
return (pma32[2*bEpIdx] & 0x03FF0000) >> 16;
#else
@@ -259,9 +288,8 @@ TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_ep_tx_cnt(USB_TypeDef * USB
#endif
}
-TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_ep_rx_cnt(USB_TypeDef * USBx, uint32_t bEpIdx)
-{
-#ifdef PMA_32BIT_ACCESS
+TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_ep_rx_cnt(USB_TypeDef * USBx, uint32_t bEpIdx) {
+#ifdef FSDEV_BUS_32BIT
(void) USBx;
return (pma32[2*bEpIdx + 1] & 0x03FF0000) >> 16;
#else
@@ -270,6 +298,9 @@ TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_ep_rx_cnt(USB_TypeDef * USB
#endif
}
+#define pcd_get_ep_dbuf0_cnt pcd_get_ep_tx_cnt
+#define pcd_get_ep_dbuf1_cnt pcd_get_ep_rx_cnt
+
/**
* @brief Sets address in an endpoint register.
* @param USBx USB peripheral instance register address.
@@ -277,8 +308,7 @@ TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_ep_rx_cnt(USB_TypeDef * USB
* @param bAddr Address.
* @retval None
*/
-TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_address(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t bAddr)
-{
+TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_address(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t bAddr) {
uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
regVal &= USB_EPREG_MASK;
regVal |= bAddr;
@@ -286,9 +316,8 @@ TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_address(USB_TypeDef * USBx,
pcd_set_endpoint(USBx, bEpIdx,regVal);
}
-TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_ep_tx_address(USB_TypeDef * USBx, uint32_t bEpIdx)
-{
-#ifdef PMA_32BIT_ACCESS
+TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_ep_tx_address(USB_TypeDef * USBx, uint32_t bEpIdx) {
+#ifdef FSDEV_BUS_32BIT
(void) USBx;
return pma32[2*bEpIdx] & 0x0000FFFFu ;
#else
@@ -296,9 +325,8 @@ TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_ep_tx_address(USB_TypeDef *
#endif
}
-TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_ep_rx_address(USB_TypeDef * USBx, uint32_t bEpIdx)
-{
-#ifdef PMA_32BIT_ACCESS
+TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_ep_rx_address(USB_TypeDef * USBx, uint32_t bEpIdx) {
+#ifdef FSDEV_BUS_32BIT
(void) USBx;
return pma32[2*bEpIdx + 1] & 0x0000FFFFu;
#else
@@ -306,9 +334,11 @@ TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_ep_rx_address(USB_TypeDef *
#endif
}
-TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_tx_address(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t addr)
-{
-#ifdef PMA_32BIT_ACCESS
+#define pcd_get_ep_dbuf0_address pcd_get_ep_tx_address
+#define pcd_get_ep_dbuf1_address pcd_get_ep_rx_address
+
+TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_tx_address(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t addr) {
+#ifdef FSDEV_BUS_32BIT
(void) USBx;
pma32[2*bEpIdx] = (pma32[2*bEpIdx] & 0xFFFF0000u) | (addr & 0x0000FFFCu);
#else
@@ -316,9 +346,8 @@ TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_tx_address(USB_TypeDef * USB
#endif
}
-TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_rx_address(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t addr)
-{
-#ifdef PMA_32BIT_ACCESS
+TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_rx_address(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t addr) {
+#ifdef FSDEV_BUS_32BIT
(void) USBx;
pma32[2*bEpIdx + 1] = (pma32[2*bEpIdx + 1] & 0xFFFF0000u) | (addr & 0x0000FFFCu);
#else
@@ -326,9 +355,11 @@ TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_rx_address(USB_TypeDef * USB
#endif
}
-TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_tx_cnt(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t wCount)
-{
-#ifdef PMA_32BIT_ACCESS
+#define pcd_set_ep_dbuf0_address pcd_set_ep_tx_address
+#define pcd_set_ep_dbuf1_address pcd_set_ep_rx_address
+
+TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_tx_cnt(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t wCount) {
+#ifdef FSDEV_BUS_32BIT
(void) USBx;
pma32[2*bEpIdx] = (pma32[2*bEpIdx] & ~0x03FF0000u) | ((wCount & 0x3FFu) << 16);
#else
@@ -337,9 +368,10 @@ TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_tx_cnt(USB_TypeDef * USBx, u
#endif
}
-TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_rx_cnt(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t wCount)
-{
-#ifdef PMA_32BIT_ACCESS
+#define pcd_set_ep_tx_dbuf0_cnt pcd_set_ep_tx_cnt
+
+TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_tx_dbuf1_cnt(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t wCount) {
+#ifdef FSDEV_BUS_32BIT
(void) USBx;
pma32[2*bEpIdx + 1] = (pma32[2*bEpIdx + 1] & ~0x03FF0000u) | ((wCount & 0x3FFu) << 16);
#else
@@ -348,10 +380,10 @@ TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_rx_cnt(USB_TypeDef * USBx, u
#endif
}
-TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_blsize_num_blocks(USB_TypeDef * USBx, uint32_t rxtx_idx, uint32_t blocksize, uint32_t numblocks)
-{
+TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_blsize_num_blocks(USB_TypeDef * USBx, uint32_t rxtx_idx,
+ uint32_t blocksize, uint32_t numblocks) {
/* Encode into register. When BLSIZE==1, we need to subtract 1 block count */
-#ifdef PMA_32BIT_ACCESS
+#ifdef FSDEV_BUS_32BIT
(void) USBx;
pma32[rxtx_idx] = (pma32[rxtx_idx] & 0x0000FFFFu) | (blocksize << 31) | ((numblocks - blocksize) << 26);
#else
@@ -360,8 +392,7 @@ TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_blsize_num_blocks(USB_TypeDe
#endif
}
-TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_bufsize(USB_TypeDef * USBx, uint32_t rxtx_idx, uint32_t wCount)
-{
+TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_bufsize(USB_TypeDef * USBx, uint32_t rxtx_idx, uint32_t wCount) {
wCount = pcd_aligned_buffer_size(wCount);
/* We assume that the buffer size is already aligned to hardware requirements. */
@@ -375,16 +406,16 @@ TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_bufsize(USB_TypeDef * USBx,
pcd_set_ep_blsize_num_blocks(USBx, rxtx_idx, blocksize, numblocks);
}
-TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_tx_bufsize(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t wCount)
-{
+TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_rx_dbuf0_cnt(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t wCount) {
pcd_set_ep_bufsize(USBx, 2*bEpIdx, wCount);
}
-TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_rx_bufsize(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t wCount)
-{
+TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_rx_cnt(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t wCount) {
pcd_set_ep_bufsize(USBx, 2*bEpIdx + 1, wCount);
}
+#define pcd_set_ep_rx_dbuf1_cnt pcd_set_ep_rx_cnt
+
/**
* @brief sets the status for tx transfer (bits STAT_TX[1:0]).
* @param USBx USB peripheral instance register address.
@@ -392,8 +423,7 @@ TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_rx_bufsize(USB_TypeDef * USB
* @param wState new state
* @retval None
*/
-TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_tx_status(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t wState)
-{
+TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_tx_status(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t wState) {
uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
regVal &= USB_EPTX_DTOGMASK;
@@ -410,7 +440,7 @@ TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_tx_status(USB_TypeDef * USBx
regVal |= USB_EP_CTR_RX|USB_EP_CTR_TX;
pcd_set_endpoint(USBx, bEpIdx, regVal);
-} /* pcd_set_ep_tx_status */
+}
/**
* @brief sets the status for rx transfer (bits STAT_TX[1:0])
@@ -420,31 +450,27 @@ TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_tx_status(USB_TypeDef * USBx
* @retval None
*/
-TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_rx_status(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t wState)
-{
+TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_rx_status(USB_TypeDef * USBx, uint32_t bEpIdx, uint32_t wState) {
uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
regVal &= USB_EPRX_DTOGMASK;
/* toggle first bit ? */
- if((USB_EPRX_DTOG1 & wState)!= 0U)
- {
+ if((USB_EPRX_DTOG1 & wState)!= 0U) {
regVal ^= USB_EPRX_DTOG1;
}
/* toggle second bit ? */
- if((USB_EPRX_DTOG2 & wState)!= 0U)
- {
+ if((USB_EPRX_DTOG2 & wState)!= 0U) {
regVal ^= USB_EPRX_DTOG2;
}
regVal |= USB_EP_CTR_RX|USB_EP_CTR_TX;
pcd_set_endpoint(USBx, bEpIdx, regVal);
-} /* pcd_set_ep_rx_status */
+}
-TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_ep_rx_status(USB_TypeDef * USBx, uint32_t bEpIdx)
-{
+TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_ep_rx_status(USB_TypeDef * USBx, uint32_t bEpIdx) {
uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
return (regVal & USB_EPRX_STAT) >> (12u);
-} /* pcd_get_ep_rx_status */
+}
/**
@@ -453,16 +479,14 @@ TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_ep_rx_status(USB_TypeDef *
* @param bEpIdx Endpoint Number.
* @retval None
*/
-TU_ATTR_ALWAYS_INLINE static inline void pcd_rx_dtog(USB_TypeDef * USBx, uint32_t bEpIdx)
-{
+TU_ATTR_ALWAYS_INLINE static inline void pcd_rx_dtog(USB_TypeDef * USBx, uint32_t bEpIdx) {
uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
regVal &= USB_EPREG_MASK;
regVal |= USB_EP_CTR_RX|USB_EP_CTR_TX|USB_EP_DTOG_RX;
pcd_set_endpoint(USBx, bEpIdx, regVal);
}
-TU_ATTR_ALWAYS_INLINE static inline void pcd_tx_dtog(USB_TypeDef * USBx, uint32_t bEpIdx)
-{
+TU_ATTR_ALWAYS_INLINE static inline void pcd_tx_dtog(USB_TypeDef * USBx, uint32_t bEpIdx) {
uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
regVal &= USB_EPREG_MASK;
regVal |= USB_EP_CTR_RX|USB_EP_CTR_TX|USB_EP_DTOG_TX;
@@ -475,21 +499,16 @@ TU_ATTR_ALWAYS_INLINE static inline void pcd_tx_dtog(USB_TypeDef * USBx, uint32
* @param bEpIdx Endpoint Number.
* @retval None
*/
-
-TU_ATTR_ALWAYS_INLINE static inline void pcd_clear_rx_dtog(USB_TypeDef * USBx, uint32_t bEpIdx)
-{
+TU_ATTR_ALWAYS_INLINE static inline void pcd_clear_rx_dtog(USB_TypeDef * USBx, uint32_t bEpIdx) {
uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
- if((regVal & USB_EP_DTOG_RX) != 0)
- {
+ if((regVal & USB_EP_DTOG_RX) != 0) {
pcd_rx_dtog(USBx,bEpIdx);
}
}
-TU_ATTR_ALWAYS_INLINE static inline void pcd_clear_tx_dtog(USB_TypeDef * USBx, uint32_t bEpIdx)
-{
+TU_ATTR_ALWAYS_INLINE static inline void pcd_clear_tx_dtog(USB_TypeDef * USBx, uint32_t bEpIdx) {
uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
- if((regVal & USB_EP_DTOG_TX) != 0)
- {
+ if((regVal & USB_EP_DTOG_TX) != 0) {
pcd_tx_dtog(USBx,bEpIdx);
}
}
@@ -500,17 +519,15 @@ TU_ATTR_ALWAYS_INLINE static inline void pcd_clear_tx_dtog(USB_TypeDef * USBx,
* @param bEpIdx Endpoint Number.
* @retval None
*/
-
-TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_kind(USB_TypeDef * USBx, uint32_t bEpIdx)
-{
+TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_kind(USB_TypeDef * USBx, uint32_t bEpIdx) {
uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
regVal |= USB_EP_KIND;
regVal &= USB_EPREG_MASK;
regVal |= USB_EP_CTR_RX|USB_EP_CTR_TX;
pcd_set_endpoint(USBx, bEpIdx, regVal);
}
-TU_ATTR_ALWAYS_INLINE static inline void pcd_clear_ep_kind(USB_TypeDef * USBx, uint32_t bEpIdx)
-{
+
+TU_ATTR_ALWAYS_INLINE static inline void pcd_clear_ep_kind(USB_TypeDef * USBx, uint32_t bEpIdx) {
uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
regVal &= USB_EPKIND_MASK;
regVal |= USB_EP_CTR_RX|USB_EP_CTR_TX;
diff --git a/src/portable/st/synopsys/dcd_synopsys.c b/src/portable/st/synopsys/dcd_synopsys.c
deleted file mode 100644
index 2fc3adb4f..000000000
--- a/src/portable/st/synopsys/dcd_synopsys.c
+++ /dev/null
@@ -1,1240 +0,0 @@
-/*
- * The MIT License (MIT)
- *
- * Copyright (c) 2018 Scott Shawcroft, 2019 William D. Jones for Adafruit Industries
- * Copyright (c) 2019 Ha Thach (tinyusb.org)
- * Copyright (c) 2020 Jan Duempelmann
- * Copyright (c) 2020 Reinhard Panhuber
- *
- * Permission is hereby granted, free of charge, to any person obtaining a copy
- * of this software and associated documentation files (the "Software"), to deal
- * in the Software without restriction, including without limitation the rights
- * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
- * copies of the Software, and to permit persons to whom the Software is
- * furnished to do so, subject to the following conditions:
- *
- * The above copyright notice and this permission notice shall be included in
- * all copies or substantial portions of the Software.
- *
- * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
- * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
- * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
- * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
- * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
- * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
- * THE SOFTWARE.
- *
- * This file is part of the TinyUSB stack.
- */
-
-#include "tusb_option.h"
-
-// Since TinyUSB doesn't use SOF for now, and this interrupt too often (1ms interval)
-// We disable SOF for now until needed later on
-#define USE_SOF 0
-
-#if defined (STM32F105x8) || defined (STM32F105xB) || defined (STM32F105xC) || \
- defined (STM32F107xB) || defined (STM32F107xC)
-#define STM32F1_SYNOPSYS
-#endif
-
-#if defined (STM32L475xx) || defined (STM32L476xx) || \
- defined (STM32L485xx) || defined (STM32L486xx) || defined (STM32L496xx) || \
- defined (STM32L4R5xx) || defined (STM32L4R7xx) || defined (STM32L4R9xx) || \
- defined (STM32L4S5xx) || defined (STM32L4S7xx) || defined (STM32L4S9xx)
-#define STM32L4_SYNOPSYS
-#endif
-
-#if CFG_TUD_ENABLED && \
- ( (CFG_TUSB_MCU == OPT_MCU_STM32F1 && defined(STM32F1_SYNOPSYS)) || \
- CFG_TUSB_MCU == OPT_MCU_STM32F2 || \
- CFG_TUSB_MCU == OPT_MCU_STM32F4 || \
- CFG_TUSB_MCU == OPT_MCU_STM32F7 || \
- CFG_TUSB_MCU == OPT_MCU_STM32H7 || \
- (CFG_TUSB_MCU == OPT_MCU_STM32L4 && defined(STM32L4_SYNOPSYS) || \
- CFG_TUSB_MCU == OPT_MCU_GD32VF103 ) \
- )
-
-// EP_MAX : Max number of bi-directional endpoints including EP0
-// EP_FIFO_SIZE : Size of dedicated USB SRAM
-#if CFG_TUSB_MCU == OPT_MCU_STM32F1
-#include "stm32f1xx.h"
-#define EP_MAX_FS 4
-#define EP_FIFO_SIZE_FS 1280
-
-#elif CFG_TUSB_MCU == OPT_MCU_STM32F2
-#include "stm32f2xx.h"
-#define EP_MAX_FS USB_OTG_FS_MAX_IN_ENDPOINTS
-#define EP_FIFO_SIZE_FS USB_OTG_FS_TOTAL_FIFO_SIZE
-
-#elif CFG_TUSB_MCU == OPT_MCU_STM32F4
-#include "stm32f4xx.h"
-#define EP_MAX_FS USB_OTG_FS_MAX_IN_ENDPOINTS
-#define EP_FIFO_SIZE_FS USB_OTG_FS_TOTAL_FIFO_SIZE
-#define EP_MAX_HS USB_OTG_HS_MAX_IN_ENDPOINTS
-#define EP_FIFO_SIZE_HS USB_OTG_HS_TOTAL_FIFO_SIZE
-
-#elif CFG_TUSB_MCU == OPT_MCU_STM32H7
-#include "stm32h7xx.h"
-#define EP_MAX_FS 9
-#define EP_FIFO_SIZE_FS 4096
-#define EP_MAX_HS 9
-#define EP_FIFO_SIZE_HS 4096
-
-#elif CFG_TUSB_MCU == OPT_MCU_STM32F7
-#include "stm32f7xx.h"
-#define EP_MAX_FS 6
-#define EP_FIFO_SIZE_FS 1280
-#define EP_MAX_HS 9
-#define EP_FIFO_SIZE_HS 4096
-
-#elif CFG_TUSB_MCU == OPT_MCU_STM32L4
-#include "stm32l4xx.h"
-#define EP_MAX_FS 6
-#define EP_FIFO_SIZE_FS 1280
-
-#elif CFG_TUSB_MCU == OPT_MCU_GD32VF103
-#include "synopsys_common.h"
-
-// for remote wakeup delay
-#define __NOP() __asm volatile ("nop")
-
-// These numbers are the same for the whole GD32VF103 family.
-#define OTG_FS_IRQn 86
-#define EP_MAX_FS 4
-#define EP_FIFO_SIZE_FS 1280
-
-// The GD32VF103 is a RISC-V MCU, which implements the ECLIC Core-Local
-// Interrupt Controller by Nuclei. It is nearly API compatible to the
-// NVIC used by ARM MCUs.
-#define ECLIC_INTERRUPT_ENABLE_BASE 0xD2001001UL
-
-#define NVIC_EnableIRQ __eclic_enable_interrupt
-#define NVIC_DisableIRQ __eclic_disable_interrupt
-
-static inline void __eclic_enable_interrupt (uint32_t irq) {
- *(volatile uint8_t*)(ECLIC_INTERRUPT_ENABLE_BASE + (irq * 4)) = 1;
-}
-
-static inline void __eclic_disable_interrupt (uint32_t irq){
- *(volatile uint8_t*)(ECLIC_INTERRUPT_ENABLE_BASE + (irq * 4)) = 0;
-}
-
-#else
-#error "Unsupported MCUs"
-#endif
-
-#include "device/dcd.h"
-
-//--------------------------------------------------------------------+
-// MACRO TYPEDEF CONSTANT ENUM
-//--------------------------------------------------------------------+
-
-// On STM32 we associate Port0 to OTG_FS, and Port1 to OTG_HS
-#if TUD_OPT_RHPORT == 0
-#define EP_MAX EP_MAX_FS
-#define EP_FIFO_SIZE EP_FIFO_SIZE_FS
-#define RHPORT_REGS_BASE USB_OTG_FS_PERIPH_BASE
-#define RHPORT_IRQn OTG_FS_IRQn
-
-#else
-#define EP_MAX EP_MAX_HS
-#define EP_FIFO_SIZE EP_FIFO_SIZE_HS
-#define RHPORT_REGS_BASE USB_OTG_HS_PERIPH_BASE
-#define RHPORT_IRQn OTG_HS_IRQn
-
-#endif
-
-#define GLOBAL_BASE(_port) ((USB_OTG_GlobalTypeDef*) RHPORT_REGS_BASE)
-#define DEVICE_BASE(_port) (USB_OTG_DeviceTypeDef *) (RHPORT_REGS_BASE + USB_OTG_DEVICE_BASE)
-#define OUT_EP_BASE(_port) (USB_OTG_OUTEndpointTypeDef *) (RHPORT_REGS_BASE + USB_OTG_OUT_ENDPOINT_BASE)
-#define IN_EP_BASE(_port) (USB_OTG_INEndpointTypeDef *) (RHPORT_REGS_BASE + USB_OTG_IN_ENDPOINT_BASE)
-#define FIFO_BASE(_port, _x) ((volatile uint32_t *) (RHPORT_REGS_BASE + USB_OTG_FIFO_BASE + (_x) * USB_OTG_FIFO_SIZE))
-
-enum
-{
- DCD_HIGH_SPEED = 0, // Highspeed mode
- DCD_FULL_SPEED_USE_HS = 1, // Full speed in Highspeed port (probably with internal PHY)
- DCD_FULL_SPEED = 3, // Full speed with internal PHY
-};
-
-static TU_ATTR_ALIGNED(4) uint32_t _setup_packet[2];
-
-typedef struct {
- uint8_t * buffer;
- tu_fifo_t * ff;
- uint16_t total_len;
- uint16_t max_size;
- uint8_t interval;
-} xfer_ctl_t;
-
-typedef volatile uint32_t * usb_fifo_t;
-
-xfer_ctl_t xfer_status[EP_MAX][2];
-#define XFER_CTL_BASE(_ep, _dir) &xfer_status[_ep][_dir]
-
-// EP0 transfers are limited to 1 packet - larger sizes has to be split
-static uint16_t ep0_pending[2]; // Index determines direction as tusb_dir_t type
-
-// TX FIFO RAM allocation so far in words - RX FIFO size is readily available from usb_otg->GRXFSIZ
-static uint16_t _allocated_fifo_words_tx; // TX FIFO size in words (IN EPs)
-static bool _out_ep_closed; // Flag to check if RX FIFO size needs an update (reduce its size)
-
-// Calculate the RX FIFO size according to recommendations from reference manual
-static inline uint16_t calc_rx_ff_size(uint16_t ep_size)
-{
- return 15 + 2*(ep_size/4) + 2*EP_MAX;
-}
-
-static void update_grxfsiz(uint8_t rhport)
-{
- (void) rhport;
-
- USB_OTG_GlobalTypeDef * usb_otg = GLOBAL_BASE(rhport);
-
- // Determine largest EP size for RX FIFO
- uint16_t max_epsize = 0;
- for (uint8_t epnum = 0; epnum < EP_MAX; epnum++)
- {
- max_epsize = tu_max16(max_epsize, xfer_status[epnum][TUSB_DIR_OUT].max_size);
- }
-
- // Update size of RX FIFO
- usb_otg->GRXFSIZ = calc_rx_ff_size(max_epsize);
-}
-
-// Setup the control endpoint 0.
-static void bus_reset(uint8_t rhport)
-{
- (void) rhport;
-
- USB_OTG_GlobalTypeDef * usb_otg = GLOBAL_BASE(rhport);
- USB_OTG_DeviceTypeDef * dev = DEVICE_BASE(rhport);
- USB_OTG_OUTEndpointTypeDef * out_ep = OUT_EP_BASE(rhport);
- USB_OTG_INEndpointTypeDef * in_ep = IN_EP_BASE(rhport);
-
- tu_memclr(xfer_status, sizeof(xfer_status));
- _out_ep_closed = false;
-
- // clear device address
- dev->DCFG &= ~USB_OTG_DCFG_DAD_Msk;
-
- // 1. NAK for all OUT endpoints
- for(uint8_t n = 0; n < EP_MAX; n++) {
- out_ep[n].DOEPCTL |= USB_OTG_DOEPCTL_SNAK;
- }
-
- // 2. Un-mask interrupt bits
- dev->DAINTMSK = (1 << USB_OTG_DAINTMSK_OEPM_Pos) | (1 << USB_OTG_DAINTMSK_IEPM_Pos);
- dev->DOEPMSK = USB_OTG_DOEPMSK_STUPM | USB_OTG_DOEPMSK_XFRCM;
- dev->DIEPMSK = USB_OTG_DIEPMSK_TOM | USB_OTG_DIEPMSK_XFRCM;
-
- // "USB Data FIFOs" section in reference manual
- // Peripheral FIFO architecture
- //
- // The FIFO is split up in a lower part where the RX FIFO is located and an upper part where the TX FIFOs start.
- // We do this to allow the RX FIFO to grow dynamically which is possible since the free space is located
- // between the RX and TX FIFOs. This is required by ISO OUT EPs which need a bigger FIFO than the standard
- // configuration done below.
- //
- // Dynamically FIFO sizes are of interest only for ISO EPs since all others are usually not opened and closed.
- // All EPs other than ISO are opened as soon as the driver starts up i.e. when the host sends a
- // configure interface command. Hence, all IN EPs other the ISO will be located at the top. IN ISO EPs are usually
- // opened when the host sends an additional command: setInterface. At this point in time
- // the ISO EP will be located next to the free space and can change its size. In case more IN EPs change its size
- // an additional memory
- //
- // --------------- 320 or 1024 ( 1280 or 4096 bytes )
- // | IN FIFO 0 |
- // --------------- (320 or 1024) - 16
- // | IN FIFO 1 |
- // --------------- (320 or 1024) - 16 - x
- // | . . . . |
- // --------------- (320 or 1024) - 16 - x - y - ... - z
- // | IN FIFO MAX |
- // ---------------
- // | FREE |
- // --------------- GRXFSIZ
- // | OUT FIFO |
- // | ( Shared ) |
- // --------------- 0
- //
- // According to "FIFO RAM allocation" section in RM, FIFO RAM are allocated as follows (each word 32-bits):
- // - Each EP IN needs at least max packet size, 16 words is sufficient for EP0 IN
- //
- // - All EP OUT shared a unique OUT FIFO which uses
- // - 13 for setup packets + control words (up to 3 setup packets).
- // - 1 for global NAK (not required/used here).
- // - Largest-EPsize / 4 + 1. ( FS: 64 bytes, HS: 512 bytes). Recommended is "2 x (Largest-EPsize/4) + 1"
- // - 2 for each used OUT endpoint
- //
- // Therefore GRXFSIZ = 13 + 1 + 1 + 2 x (Largest-EPsize/4) + 2 x EPOUTnum
- // - FullSpeed (64 Bytes ): GRXFSIZ = 15 + 2 x 16 + 2 x EP_MAX = 47 + 2 x EP_MAX
- // - Highspeed (512 bytes): GRXFSIZ = 15 + 2 x 128 + 2 x EP_MAX = 271 + 2 x EP_MAX
- //
- // NOTE: Largest-EPsize & EPOUTnum is actual used endpoints in configuration. Since DCD has no knowledge
- // of the overall picture yet. We will use the worst scenario: largest possible + EP_MAX
- //
- // For Isochronous, largest EP size can be 1023/1024 for FS/HS respectively. In addition if multiple ISO
- // are enabled at least "2 x (Largest-EPsize/4) + 1" are recommended. Maybe provide a macro for application to
- // overwrite this.
-
- usb_otg->GRXFSIZ = calc_rx_ff_size(TUD_OPT_HIGH_SPEED ? 512 : 64);
-
- _allocated_fifo_words_tx = 16;
-
- // Control IN uses FIFO 0 with 64 bytes ( 16 32-bit word )
- usb_otg->DIEPTXF0_HNPTXFSIZ = (16 << USB_OTG_TX0FD_Pos) | (EP_FIFO_SIZE/4 - _allocated_fifo_words_tx);
-
- // Fixed control EP0 size to 64 bytes
- in_ep[0].DIEPCTL &= ~(0x03 << USB_OTG_DIEPCTL_MPSIZ_Pos);
- xfer_status[0][TUSB_DIR_OUT].max_size = xfer_status[0][TUSB_DIR_IN].max_size = 64;
-
- out_ep[0].DOEPTSIZ |= (3 << USB_OTG_DOEPTSIZ_STUPCNT_Pos);
-
- usb_otg->GINTMSK |= USB_OTG_GINTMSK_OEPINT | USB_OTG_GINTMSK_IEPINT;
-}
-
-// Set turn-around timeout according to link speed
-extern uint32_t SystemCoreClock;
-static void set_turnaround(USB_OTG_GlobalTypeDef * usb_otg, tusb_speed_t speed)
-{
- usb_otg->GUSBCFG &= ~USB_OTG_GUSBCFG_TRDT;
-
- if ( speed == TUSB_SPEED_HIGH )
- {
- // Use fixed 0x09 for Highspeed
- usb_otg->GUSBCFG |= (0x09 << USB_OTG_GUSBCFG_TRDT_Pos);
- }
- else
- {
- // Turnaround timeout depends on the MCU clock
- uint32_t turnaround;
-
- if ( SystemCoreClock >= 32000000U )
- turnaround = 0x6U;
- else if ( SystemCoreClock >= 27500000U )
- turnaround = 0x7U;
- else if ( SystemCoreClock >= 24000000U )
- turnaround = 0x8U;
- else if ( SystemCoreClock >= 21800000U )
- turnaround = 0x9U;
- else if ( SystemCoreClock >= 20000000U )
- turnaround = 0xAU;
- else if ( SystemCoreClock >= 18500000U )
- turnaround = 0xBU;
- else if ( SystemCoreClock >= 17200000U )
- turnaround = 0xCU;
- else if ( SystemCoreClock >= 16000000U )
- turnaround = 0xDU;
- else if ( SystemCoreClock >= 15000000U )
- turnaround = 0xEU;
- else
- turnaround = 0xFU;
-
- // Fullspeed depends on MCU clocks, but we will use 0x06 for 32+ Mhz
- usb_otg->GUSBCFG |= (turnaround << USB_OTG_GUSBCFG_TRDT_Pos);
- }
-}
-
-static tusb_speed_t get_speed(uint8_t rhport)
-{
- (void) rhport;
- USB_OTG_DeviceTypeDef * dev = DEVICE_BASE(rhport);
- uint32_t const enum_spd = (dev->DSTS & USB_OTG_DSTS_ENUMSPD_Msk) >> USB_OTG_DSTS_ENUMSPD_Pos;
- return (enum_spd == DCD_HIGH_SPEED) ? TUSB_SPEED_HIGH : TUSB_SPEED_FULL;
-}
-
-static void set_speed(uint8_t rhport, tusb_speed_t speed)
-{
- uint32_t bitvalue;
-
- if ( rhport == 1 )
- {
- bitvalue = ((TUSB_SPEED_HIGH == speed) ? DCD_HIGH_SPEED : DCD_FULL_SPEED_USE_HS);
- }
- else
- {
- bitvalue = DCD_FULL_SPEED;
- }
-
- USB_OTG_DeviceTypeDef * dev = DEVICE_BASE(rhport);
-
- // Clear and set speed bits
- dev->DCFG &= ~(3 << USB_OTG_DCFG_DSPD_Pos);
- dev->DCFG |= (bitvalue << USB_OTG_DCFG_DSPD_Pos);
-}
-
-#if defined(USB_HS_PHYC)
-static bool USB_HS_PHYCInit(void)
-{
- USB_HS_PHYC_GlobalTypeDef *usb_hs_phyc = (USB_HS_PHYC_GlobalTypeDef*) USB_HS_PHYC_CONTROLLER_BASE;
-
- // Enable LDO: Note STM32F72/3xx Reference Manual rev 3 June 2018 incorrectly defined this bit as Disabled !!
- usb_hs_phyc->USB_HS_PHYC_LDO |= USB_HS_PHYC_LDO_ENABLE;
-
- // Wait until LDO ready
- while ( 0 == (usb_hs_phyc->USB_HS_PHYC_LDO & USB_HS_PHYC_LDO_STATUS) ) {}
-
- uint32_t phyc_pll = 0;
-
- // TODO Try to get HSE_VALUE from registers instead of depending CFLAGS
- switch ( HSE_VALUE )
- {
- case 12000000: phyc_pll = USB_HS_PHYC_PLL1_PLLSEL_12MHZ ; break;
- case 12500000: phyc_pll = USB_HS_PHYC_PLL1_PLLSEL_12_5MHZ ; break;
- case 16000000: phyc_pll = USB_HS_PHYC_PLL1_PLLSEL_16MHZ ; break;
- case 24000000: phyc_pll = USB_HS_PHYC_PLL1_PLLSEL_24MHZ ; break;
- case 25000000: phyc_pll = USB_HS_PHYC_PLL1_PLLSEL_25MHZ ; break;
- case 32000000: phyc_pll = USB_HS_PHYC_PLL1_PLLSEL_Msk ; break; // Value not defined in header
- default:
- TU_ASSERT(0);
- }
- usb_hs_phyc->USB_HS_PHYC_PLL = phyc_pll;
-
- // Control the tuning interface of the High Speed PHY
- // Use magic value (USB_HS_PHYC_TUNE_VALUE) from ST driver
- usb_hs_phyc->USB_HS_PHYC_TUNE |= 0x00000F13U;
-
- // Enable PLL internal PHY
- usb_hs_phyc->USB_HS_PHYC_PLL |= USB_HS_PHYC_PLL_PLLEN;
-
- // Original ST code has 2 ms delay for PLL stabilization.
- // Primitive test shows that more than 10 USB un/replug cycle showed no error with enumeration
-
- return true;
-}
-#endif
-
-static void edpt_schedule_packets(uint8_t rhport, uint8_t const epnum, uint8_t const dir, uint16_t const num_packets, uint16_t total_bytes)
-{
- (void) rhport;
-
- USB_OTG_DeviceTypeDef * dev = DEVICE_BASE(rhport);
- USB_OTG_OUTEndpointTypeDef * out_ep = OUT_EP_BASE(rhport);
- USB_OTG_INEndpointTypeDef * in_ep = IN_EP_BASE(rhport);
-
- // EP0 is limited to one packet each xfer
- // We use multiple transaction of xfer->max_size length to get a whole transfer done
- if(epnum == 0) {
- xfer_ctl_t * const xfer = XFER_CTL_BASE(epnum, dir);
- total_bytes = tu_min16(ep0_pending[dir], xfer->max_size);
- ep0_pending[dir] -= total_bytes;
- }
-
- // IN and OUT endpoint xfers are interrupt-driven, we just schedule them here.
- if(dir == TUSB_DIR_IN) {
- // A full IN transfer (multiple packets, possibly) triggers XFRC.
- in_ep[epnum].DIEPTSIZ = (num_packets << USB_OTG_DIEPTSIZ_PKTCNT_Pos) |
- ((total_bytes << USB_OTG_DIEPTSIZ_XFRSIZ_Pos) & USB_OTG_DIEPTSIZ_XFRSIZ_Msk);
-
- in_ep[epnum].DIEPCTL |= USB_OTG_DIEPCTL_EPENA | USB_OTG_DIEPCTL_CNAK;
- // For ISO endpoint set correct odd/even bit for next frame.
- if ((in_ep[epnum].DIEPCTL & USB_OTG_DIEPCTL_EPTYP) == USB_OTG_DIEPCTL_EPTYP_0 && (XFER_CTL_BASE(epnum, dir))->interval == 1)
- {
- // Take odd/even bit from frame counter.
- uint32_t const odd_frame_now = (dev->DSTS & (1u << USB_OTG_DSTS_FNSOF_Pos));
- in_ep[epnum].DIEPCTL |= (odd_frame_now ? USB_OTG_DIEPCTL_SD0PID_SEVNFRM_Msk : USB_OTG_DIEPCTL_SODDFRM_Msk);
- }
- // Enable fifo empty interrupt only if there are something to put in the fifo.
- if(total_bytes != 0) {
- dev->DIEPEMPMSK |= (1 << epnum);
- }
- } else {
- // A full OUT transfer (multiple packets, possibly) triggers XFRC.
- out_ep[epnum].DOEPTSIZ &= ~(USB_OTG_DOEPTSIZ_PKTCNT_Msk | USB_OTG_DOEPTSIZ_XFRSIZ);
- out_ep[epnum].DOEPTSIZ |= (num_packets << USB_OTG_DOEPTSIZ_PKTCNT_Pos) |
- ((total_bytes << USB_OTG_DOEPTSIZ_XFRSIZ_Pos) & USB_OTG_DOEPTSIZ_XFRSIZ_Msk);
-
- out_ep[epnum].DOEPCTL |= USB_OTG_DOEPCTL_EPENA | USB_OTG_DOEPCTL_CNAK;
- if ((out_ep[epnum].DOEPCTL & USB_OTG_DOEPCTL_EPTYP) == USB_OTG_DOEPCTL_EPTYP_0 && (XFER_CTL_BASE(epnum, dir))->interval == 1)
- {
- // Take odd/even bit from frame counter.
- uint32_t const odd_frame_now = (dev->DSTS & (1u << USB_OTG_DSTS_FNSOF_Pos));
- out_ep[epnum].DOEPCTL |= (odd_frame_now ? USB_OTG_DOEPCTL_SD0PID_SEVNFRM_Msk : USB_OTG_DOEPCTL_SODDFRM_Msk);
- }
- }
-}
-
-/*------------------------------------------------------------------*/
-/* Controller API
- *------------------------------------------------------------------*/
-void dcd_init (uint8_t rhport)
-{
- // Programming model begins in the last section of the chapter on the USB
- // peripheral in each Reference Manual.
-
- USB_OTG_GlobalTypeDef * usb_otg = GLOBAL_BASE(rhport);
-
- // No HNP/SRP (no OTG support), program timeout later.
- if ( rhport == 1 )
- {
- // On selected MCUs HS port1 can be used with external PHY via ULPI interface
-#if CFG_TUSB_RHPORT1_MODE & OPT_MODE_HIGH_SPEED
- // deactivate internal PHY
- usb_otg->GCCFG &= ~USB_OTG_GCCFG_PWRDWN;
-
- // Init The UTMI Interface
- usb_otg->GUSBCFG &= ~(USB_OTG_GUSBCFG_TSDPS | USB_OTG_GUSBCFG_ULPIFSLS | USB_OTG_GUSBCFG_PHYSEL);
-
- // Select default internal VBUS Indicator and Drive for ULPI
- usb_otg->GUSBCFG &= ~(USB_OTG_GUSBCFG_ULPIEVBUSD | USB_OTG_GUSBCFG_ULPIEVBUSI);
-#else
- usb_otg->GUSBCFG |= USB_OTG_GUSBCFG_PHYSEL;
-#endif
-
-#if defined(USB_HS_PHYC)
- // Highspeed with embedded UTMI PHYC
-
- // Select UTMI Interface
- usb_otg->GUSBCFG &= ~USB_OTG_GUSBCFG_ULPI_UTMI_SEL;
- usb_otg->GCCFG |= USB_OTG_GCCFG_PHYHSEN;
-
- // Enables control of a High Speed USB PHY
- USB_HS_PHYCInit();
-#endif
- } else
- {
- // Enable internal PHY
- usb_otg->GUSBCFG |= USB_OTG_GUSBCFG_PHYSEL;
- }
-
- // Reset core after selecting PHY
- // Wait AHB IDLE, reset then wait until it is cleared
- while ((usb_otg->GRSTCTL & USB_OTG_GRSTCTL_AHBIDL) == 0U) {}
- usb_otg->GRSTCTL |= USB_OTG_GRSTCTL_CSRST;
- while ((usb_otg->GRSTCTL & USB_OTG_GRSTCTL_CSRST) == USB_OTG_GRSTCTL_CSRST) {}
-
- // Restart PHY clock
- *((volatile uint32_t *)(RHPORT_REGS_BASE + USB_OTG_PCGCCTL_BASE)) = 0;
-
- // Clear all interrupts
- usb_otg->GINTSTS |= usb_otg->GINTSTS;
-
- // Required as part of core initialization.
- // TODO: How should mode mismatch be handled? It will cause
- // the core to stop working/require reset.
- usb_otg->GINTMSK |= USB_OTG_GINTMSK_OTGINT | USB_OTG_GINTMSK_MMISM;
-
- USB_OTG_DeviceTypeDef * dev = DEVICE_BASE(rhport);
-
- // If USB host misbehaves during status portion of control xfer
- // (non zero-length packet), send STALL back and discard.
- dev->DCFG |= USB_OTG_DCFG_NZLSOHSK;
-
- set_speed(rhport, TUD_OPT_HIGH_SPEED ? TUSB_SPEED_HIGH : TUSB_SPEED_FULL);
-
- // Enable internal USB transceiver, unless using HS core (port 1) with external PHY.
- if (!(rhport == 1 && (CFG_TUSB_RHPORT1_MODE & OPT_MODE_HIGH_SPEED))) usb_otg->GCCFG |= USB_OTG_GCCFG_PWRDWN;
-
- usb_otg->GINTMSK |= USB_OTG_GINTMSK_USBRST | USB_OTG_GINTMSK_ENUMDNEM |
- USB_OTG_GINTMSK_USBSUSPM | USB_OTG_GINTMSK_WUIM |
- USB_OTG_GINTMSK_RXFLVLM | (USE_SOF ? USB_OTG_GINTMSK_SOFM : 0);
-
- // Enable global interrupt
- usb_otg->GAHBCFG |= USB_OTG_GAHBCFG_GINT;
-
- dcd_connect(rhport);
-}
-
-void dcd_int_enable (uint8_t rhport)
-{
- (void) rhport;
- NVIC_EnableIRQ(RHPORT_IRQn);
-}
-
-void dcd_int_disable (uint8_t rhport)
-{
- (void) rhport;
- NVIC_DisableIRQ(RHPORT_IRQn);
-}
-
-void dcd_set_address (uint8_t rhport, uint8_t dev_addr)
-{
- USB_OTG_DeviceTypeDef * dev = DEVICE_BASE(rhport);
- dev->DCFG = (dev->DCFG & ~USB_OTG_DCFG_DAD_Msk) | (dev_addr << USB_OTG_DCFG_DAD_Pos);
-
- // Response with status after changing device address
- dcd_edpt_xfer(rhport, tu_edpt_addr(0, TUSB_DIR_IN), NULL, 0);
-}
-
-static void remote_wakeup_delay(void)
-{
- // try to delay for 1 ms
- uint32_t count = SystemCoreClock / 1000;
- while ( count-- )
- {
- __NOP();
- }
-}
-
-void dcd_remote_wakeup(uint8_t rhport)
-{
- (void) rhport;
-
- USB_OTG_GlobalTypeDef * usb_otg = GLOBAL_BASE(rhport);
- USB_OTG_DeviceTypeDef * dev = DEVICE_BASE(rhport);
-
- // set remote wakeup
- dev->DCTL |= USB_OTG_DCTL_RWUSIG;
-
- // enable SOF to detect bus resume
- usb_otg->GINTSTS = USB_OTG_GINTSTS_SOF;
- usb_otg->GINTMSK |= USB_OTG_GINTMSK_SOFM;
-
- // Per specs: remote wakeup signal bit must be clear within 1-15ms
- remote_wakeup_delay();
-
- dev->DCTL &= ~USB_OTG_DCTL_RWUSIG;
-}
-
-void dcd_connect(uint8_t rhport)
-{
- (void) rhport;
- USB_OTG_DeviceTypeDef * dev = DEVICE_BASE(rhport);
- dev->DCTL &= ~USB_OTG_DCTL_SDIS;
-}
-
-void dcd_disconnect(uint8_t rhport)
-{
- (void) rhport;
- USB_OTG_DeviceTypeDef * dev = DEVICE_BASE(rhport);
- dev->DCTL |= USB_OTG_DCTL_SDIS;
-}
-
-void dcd_sof_enable(uint8_t rhport, bool en)
-{
- (void) rhport;
- (void) en;
-
- // TODO implement later
-}
-
-/*------------------------------------------------------------------*/
-/* DCD Endpoint port
- *------------------------------------------------------------------*/
-
-bool dcd_edpt_open (uint8_t rhport, tusb_desc_endpoint_t const * desc_edpt)
-{
- (void) rhport;
-
- USB_OTG_GlobalTypeDef * usb_otg = GLOBAL_BASE(rhport);
- USB_OTG_DeviceTypeDef * dev = DEVICE_BASE(rhport);
- USB_OTG_OUTEndpointTypeDef * out_ep = OUT_EP_BASE(rhport);
- USB_OTG_INEndpointTypeDef * in_ep = IN_EP_BASE(rhport);
-
- uint8_t const epnum = tu_edpt_number(desc_edpt->bEndpointAddress);
- uint8_t const dir = tu_edpt_dir(desc_edpt->bEndpointAddress);
-
- TU_ASSERT(epnum < EP_MAX);
-
- xfer_ctl_t * xfer = XFER_CTL_BASE(epnum, dir);
- xfer->max_size = tu_edpt_packet_size(desc_edpt);
- xfer->interval = desc_edpt->bInterval;
-
- uint16_t const fifo_size = (xfer->max_size + 3) / 4; // Round up to next full word
-
- if(dir == TUSB_DIR_OUT)
- {
- // Calculate required size of RX FIFO
- uint16_t const sz = calc_rx_ff_size(4*fifo_size);
-
- // If size_rx needs to be extended check if possible and if so enlarge it
- if (usb_otg->GRXFSIZ < sz)
- {
- TU_ASSERT(sz + _allocated_fifo_words_tx <= EP_FIFO_SIZE/4);
-
- // Enlarge RX FIFO
- usb_otg->GRXFSIZ = sz;
- }
-
- out_ep[epnum].DOEPCTL |= (1 << USB_OTG_DOEPCTL_USBAEP_Pos) |
- (desc_edpt->bmAttributes.xfer << USB_OTG_DOEPCTL_EPTYP_Pos) |
- (desc_edpt->bmAttributes.xfer != TUSB_XFER_ISOCHRONOUS ? USB_OTG_DOEPCTL_SD0PID_SEVNFRM : 0) |
- (xfer->max_size << USB_OTG_DOEPCTL_MPSIZ_Pos);
-
- dev->DAINTMSK |= (1 << (USB_OTG_DAINTMSK_OEPM_Pos + epnum));
- }
- else
- {
- // "USB Data FIFOs" section in reference manual
- // Peripheral FIFO architecture
- //
- // --------------- 320 or 1024 ( 1280 or 4096 bytes )
- // | IN FIFO 0 |
- // --------------- (320 or 1024) - 16
- // | IN FIFO 1 |
- // --------------- (320 or 1024) - 16 - x
- // | . . . . |
- // --------------- (320 or 1024) - 16 - x - y - ... - z
- // | IN FIFO MAX |
- // ---------------
- // | FREE |
- // --------------- GRXFSIZ
- // | OUT FIFO |
- // | ( Shared ) |
- // --------------- 0
- //
- // In FIFO is allocated by following rules:
- // - IN EP 1 gets FIFO 1, IN EP "n" gets FIFO "n".
-
- // Check if free space is available
- TU_ASSERT(_allocated_fifo_words_tx + fifo_size + usb_otg->GRXFSIZ <= EP_FIFO_SIZE/4);
-
- _allocated_fifo_words_tx += fifo_size;
-
- TU_LOG(2, " Allocated %u bytes at offset %u", fifo_size*4, EP_FIFO_SIZE-_allocated_fifo_words_tx*4);
-
- // DIEPTXF starts at FIFO #1.
- // Both TXFD and TXSA are in unit of 32-bit words.
- usb_otg->DIEPTXF[epnum - 1] = (fifo_size << USB_OTG_DIEPTXF_INEPTXFD_Pos) | (EP_FIFO_SIZE/4 - _allocated_fifo_words_tx);
-
- in_ep[epnum].DIEPCTL |= (1 << USB_OTG_DIEPCTL_USBAEP_Pos) |
- (epnum << USB_OTG_DIEPCTL_TXFNUM_Pos) |
- (desc_edpt->bmAttributes.xfer << USB_OTG_DIEPCTL_EPTYP_Pos) |
- (desc_edpt->bmAttributes.xfer != TUSB_XFER_ISOCHRONOUS ? USB_OTG_DIEPCTL_SD0PID_SEVNFRM : 0) |
- (xfer->max_size << USB_OTG_DIEPCTL_MPSIZ_Pos);
-
- dev->DAINTMSK |= (1 << (USB_OTG_DAINTMSK_IEPM_Pos + epnum));
- }
-
- return true;
-}
-
-// Close all non-control endpoints, cancel all pending transfers if any.
-void dcd_edpt_close_all (uint8_t rhport)
-{
- (void) rhport;
-
-// USB_OTG_GlobalTypeDef * usb_otg = GLOBAL_BASE(rhport);
- USB_OTG_DeviceTypeDef * dev = DEVICE_BASE(rhport);
- USB_OTG_OUTEndpointTypeDef * out_ep = OUT_EP_BASE(rhport);
- USB_OTG_INEndpointTypeDef * in_ep = IN_EP_BASE(rhport);
-
- // Disable non-control interrupt
- dev->DAINTMSK = (1 << USB_OTG_DAINTMSK_OEPM_Pos) | (1 << USB_OTG_DAINTMSK_IEPM_Pos);
-
- for(uint8_t n = 1; n < EP_MAX; n++)
- {
- // disable OUT endpoint
- out_ep[n].DOEPCTL = 0;
- xfer_status[n][TUSB_DIR_OUT].max_size = 0;
-
- // disable IN endpoint
- in_ep[n].DIEPCTL = 0;
- xfer_status[n][TUSB_DIR_IN].max_size = 0;
- }
-
- // reset allocated fifo IN
- _allocated_fifo_words_tx = 16;
-}
-
-bool dcd_edpt_xfer (uint8_t rhport, uint8_t ep_addr, uint8_t * buffer, uint16_t total_bytes)
-{
- uint8_t const epnum = tu_edpt_number(ep_addr);
- uint8_t const dir = tu_edpt_dir(ep_addr);
-
- xfer_ctl_t * xfer = XFER_CTL_BASE(epnum, dir);
- xfer->buffer = buffer;
- xfer->ff = NULL;
- xfer->total_len = total_bytes;
-
- // EP0 can only handle one packet
- if(epnum == 0) {
- ep0_pending[dir] = total_bytes;
- // Schedule the first transaction for EP0 transfer
- edpt_schedule_packets(rhport, epnum, dir, 1, ep0_pending[dir]);
- return true;
- }
-
- uint16_t num_packets = (total_bytes / xfer->max_size);
- uint16_t const short_packet_size = total_bytes % xfer->max_size;
-
- // Zero-size packet is special case.
- if(short_packet_size > 0 || (total_bytes == 0)) {
- num_packets++;
- }
-
- // Schedule packets to be sent within interrupt
- edpt_schedule_packets(rhport, epnum, dir, num_packets, total_bytes);
-
- return true;
-}
-
-// The number of bytes has to be given explicitly to allow more flexible control of how many
-// bytes should be written and second to keep the return value free to give back a boolean
-// success message. If total_bytes is too big, the FIFO will copy only what is available
-// into the USB buffer!
-bool dcd_edpt_xfer_fifo (uint8_t rhport, uint8_t ep_addr, tu_fifo_t * ff, uint16_t total_bytes)
-{
- // USB buffers always work in bytes so to avoid unnecessary divisions we demand item_size = 1
- TU_ASSERT(ff->item_size == 1);
-
- uint8_t const epnum = tu_edpt_number(ep_addr);
- uint8_t const dir = tu_edpt_dir(ep_addr);
-
- xfer_ctl_t * xfer = XFER_CTL_BASE(epnum, dir);
- xfer->buffer = NULL;
- xfer->ff = ff;
- xfer->total_len = total_bytes;
-
- uint16_t num_packets = (total_bytes / xfer->max_size);
- uint16_t const short_packet_size = total_bytes % xfer->max_size;
-
- // Zero-size packet is special case.
- if(short_packet_size > 0 || (total_bytes == 0)) num_packets++;
-
- // Schedule packets to be sent within interrupt
- edpt_schedule_packets(rhport, epnum, dir, num_packets, total_bytes);
-
- return true;
-}
-
-static void dcd_edpt_disable (uint8_t rhport, uint8_t ep_addr, bool stall)
-{
- (void) rhport;
-
- USB_OTG_GlobalTypeDef * usb_otg = GLOBAL_BASE(rhport);
- USB_OTG_DeviceTypeDef * dev = DEVICE_BASE(rhport);
- USB_OTG_OUTEndpointTypeDef * out_ep = OUT_EP_BASE(rhport);
- USB_OTG_INEndpointTypeDef * in_ep = IN_EP_BASE(rhport);
-
- uint8_t const epnum = tu_edpt_number(ep_addr);
- uint8_t const dir = tu_edpt_dir(ep_addr);
-
- if(dir == TUSB_DIR_IN) {
- // Only disable currently enabled non-control endpoint
- if ( (epnum == 0) || !(in_ep[epnum].DIEPCTL & USB_OTG_DIEPCTL_EPENA) ){
- in_ep[epnum].DIEPCTL |= USB_OTG_DIEPCTL_SNAK | (stall ? USB_OTG_DIEPCTL_STALL : 0);
- } else {
- // Stop transmitting packets and NAK IN xfers.
- in_ep[epnum].DIEPCTL |= USB_OTG_DIEPCTL_SNAK;
- while((in_ep[epnum].DIEPINT & USB_OTG_DIEPINT_INEPNE) == 0);
-
- // Disable the endpoint.
- in_ep[epnum].DIEPCTL |= USB_OTG_DIEPCTL_EPDIS | (stall ? USB_OTG_DIEPCTL_STALL : 0);
- while((in_ep[epnum].DIEPINT & USB_OTG_DIEPINT_EPDISD_Msk) == 0);
- in_ep[epnum].DIEPINT = USB_OTG_DIEPINT_EPDISD;
- }
-
- // Flush the FIFO, and wait until we have confirmed it cleared.
- usb_otg->GRSTCTL |= (epnum << USB_OTG_GRSTCTL_TXFNUM_Pos);
- usb_otg->GRSTCTL |= USB_OTG_GRSTCTL_TXFFLSH;
- while((usb_otg->GRSTCTL & USB_OTG_GRSTCTL_TXFFLSH_Msk) != 0);
- } else {
- // Only disable currently enabled non-control endpoint
- if ( (epnum == 0) || !(out_ep[epnum].DOEPCTL & USB_OTG_DOEPCTL_EPENA) ){
- out_ep[epnum].DOEPCTL |= stall ? USB_OTG_DOEPCTL_STALL : 0;
- } else {
- // Asserting GONAK is required to STALL an OUT endpoint.
- // Simpler to use polling here, we don't use the "B"OUTNAKEFF interrupt
- // anyway, and it can't be cleared by user code. If this while loop never
- // finishes, we have bigger problems than just the stack.
- dev->DCTL |= USB_OTG_DCTL_SGONAK;
- while((usb_otg->GINTSTS & USB_OTG_GINTSTS_BOUTNAKEFF_Msk) == 0);
-
- // Ditto here- disable the endpoint.
- out_ep[epnum].DOEPCTL |= USB_OTG_DOEPCTL_EPDIS | (stall ? USB_OTG_DOEPCTL_STALL : 0);
- while((out_ep[epnum].DOEPINT & USB_OTG_DOEPINT_EPDISD_Msk) == 0);
- out_ep[epnum].DOEPINT = USB_OTG_DOEPINT_EPDISD;
-
- // Allow other OUT endpoints to keep receiving.
- dev->DCTL |= USB_OTG_DCTL_CGONAK;
- }
- }
-}
-
-/**
- * Close an endpoint.
- */
-void dcd_edpt_close (uint8_t rhport, uint8_t ep_addr)
-{
- USB_OTG_GlobalTypeDef * usb_otg = GLOBAL_BASE(rhport);
-
- uint8_t const epnum = tu_edpt_number(ep_addr);
- uint8_t const dir = tu_edpt_dir(ep_addr);
-
- dcd_edpt_disable(rhport, ep_addr, false);
-
- // Update max_size
- xfer_status[epnum][dir].max_size = 0; // max_size = 0 marks a disabled EP - required for changing FIFO allocation
-
- if (dir == TUSB_DIR_IN)
- {
- uint16_t const fifo_size = (usb_otg->DIEPTXF[epnum - 1] & USB_OTG_DIEPTXF_INEPTXFD_Msk) >> USB_OTG_DIEPTXF_INEPTXFD_Pos;
- uint16_t const fifo_start = (usb_otg->DIEPTXF[epnum - 1] & USB_OTG_DIEPTXF_INEPTXSA_Msk) >> USB_OTG_DIEPTXF_INEPTXSA_Pos;
- // For now only the last opened endpoint can be closed without fuss.
- TU_ASSERT(fifo_start == EP_FIFO_SIZE/4 - _allocated_fifo_words_tx,);
- _allocated_fifo_words_tx -= fifo_size;
- }
- else
- {
- _out_ep_closed = true; // Set flag such that RX FIFO gets reduced in size once RX FIFO is empty
- }
-}
-
-void dcd_edpt_stall (uint8_t rhport, uint8_t ep_addr)
-{
- dcd_edpt_disable(rhport, ep_addr, true);
-}
-
-void dcd_edpt_clear_stall (uint8_t rhport, uint8_t ep_addr)
-{
- (void) rhport;
-
- USB_OTG_OUTEndpointTypeDef * out_ep = OUT_EP_BASE(rhport);
- USB_OTG_INEndpointTypeDef * in_ep = IN_EP_BASE(rhport);
-
- uint8_t const epnum = tu_edpt_number(ep_addr);
- uint8_t const dir = tu_edpt_dir(ep_addr);
-
- // Clear stall and reset data toggle
- if(dir == TUSB_DIR_IN) {
- in_ep[epnum].DIEPCTL &= ~USB_OTG_DIEPCTL_STALL;
- in_ep[epnum].DIEPCTL |= USB_OTG_DIEPCTL_SD0PID_SEVNFRM;
- } else {
- out_ep[epnum].DOEPCTL &= ~USB_OTG_DOEPCTL_STALL;
- out_ep[epnum].DOEPCTL |= USB_OTG_DOEPCTL_SD0PID_SEVNFRM;
- }
-}
-
-/*------------------------------------------------------------------*/
-
-// Read a single data packet from receive FIFO
-static void read_fifo_packet(uint8_t rhport, uint8_t * dst, uint16_t len)
-{
- (void) rhport;
-
- usb_fifo_t rx_fifo = FIFO_BASE(rhport, 0);
-
- // Reading full available 32 bit words from fifo
- uint16_t full_words = len >> 2;
- for(uint16_t i = 0; i < full_words; i++) {
- uint32_t tmp = *rx_fifo;
- dst[0] = tmp & 0x000000FF;
- dst[1] = (tmp & 0x0000FF00) >> 8;
- dst[2] = (tmp & 0x00FF0000) >> 16;
- dst[3] = (tmp & 0xFF000000) >> 24;
- dst += 4;
- }
-
- // Read the remaining 1-3 bytes from fifo
- uint8_t bytes_rem = len & 0x03;
- if(bytes_rem != 0) {
- uint32_t tmp = *rx_fifo;
- dst[0] = tmp & 0x000000FF;
- if(bytes_rem > 1) {
- dst[1] = (tmp & 0x0000FF00) >> 8;
- }
- if(bytes_rem > 2) {
- dst[2] = (tmp & 0x00FF0000) >> 16;
- }
- }
-}
-
-// Write a single data packet to EPIN FIFO
-static void write_fifo_packet(uint8_t rhport, uint8_t fifo_num, uint8_t * src, uint16_t len)
-{
- (void) rhport;
-
- usb_fifo_t tx_fifo = FIFO_BASE(rhport, fifo_num);
-
- // Pushing full available 32 bit words to fifo
- uint16_t full_words = len >> 2;
- for(uint16_t i = 0; i < full_words; i++){
- *tx_fifo = (src[3] << 24) | (src[2] << 16) | (src[1] << 8) | src[0];
- src += 4;
- }
-
- // Write the remaining 1-3 bytes into fifo
- uint8_t bytes_rem = len & 0x03;
- if(bytes_rem){
- uint32_t tmp_word = 0;
- tmp_word |= src[0];
- if(bytes_rem > 1){
- tmp_word |= src[1] << 8;
- }
- if(bytes_rem > 2){
- tmp_word |= src[2] << 16;
- }
- *tx_fifo = tmp_word;
- }
-}
-
-static void handle_rxflvl_ints(uint8_t rhport, USB_OTG_OUTEndpointTypeDef * out_ep) {
- USB_OTG_GlobalTypeDef * usb_otg = GLOBAL_BASE(rhport);
- usb_fifo_t rx_fifo = FIFO_BASE(rhport, 0);
-
- // Pop control word off FIFO
- uint32_t ctl_word = usb_otg->GRXSTSP;
- uint8_t pktsts = (ctl_word & USB_OTG_GRXSTSP_PKTSTS_Msk) >> USB_OTG_GRXSTSP_PKTSTS_Pos;
- uint8_t epnum = (ctl_word & USB_OTG_GRXSTSP_EPNUM_Msk) >> USB_OTG_GRXSTSP_EPNUM_Pos;
- uint16_t bcnt = (ctl_word & USB_OTG_GRXSTSP_BCNT_Msk) >> USB_OTG_GRXSTSP_BCNT_Pos;
-
- switch(pktsts) {
- case 0x01: // Global OUT NAK (Interrupt)
- break;
-
- case 0x02: // Out packet recvd
- {
- xfer_ctl_t * xfer = XFER_CTL_BASE(epnum, TUSB_DIR_OUT);
-
- // Read packet off RxFIFO
- if (xfer->ff)
- {
- // Ring buffer
- tu_fifo_write_n_const_addr_full_words(xfer->ff, (const void *)(uintptr_t) rx_fifo, bcnt);
- }
- else
- {
- // Linear buffer
- read_fifo_packet(rhport, xfer->buffer, bcnt);
-
- // Increment pointer to xfer data
- xfer->buffer += bcnt;
- }
-
- // Truncate transfer length in case of short packet
- if(bcnt < xfer->max_size) {
- xfer->total_len -= (out_ep[epnum].DOEPTSIZ & USB_OTG_DOEPTSIZ_XFRSIZ_Msk) >> USB_OTG_DOEPTSIZ_XFRSIZ_Pos;
- if(epnum == 0) {
- xfer->total_len -= ep0_pending[TUSB_DIR_OUT];
- ep0_pending[TUSB_DIR_OUT] = 0;
- }
- }
- }
- break;
-
- case 0x03: // Out packet done (Interrupt)
- break;
-
- case 0x04: // Setup packet done (Interrupt)
- out_ep[epnum].DOEPTSIZ |= (3 << USB_OTG_DOEPTSIZ_STUPCNT_Pos);
- break;
-
- case 0x06: // Setup packet recvd
- // We can receive up to three setup packets in succession, but
- // only the last one is valid.
- _setup_packet[0] = (* rx_fifo);
- _setup_packet[1] = (* rx_fifo);
- break;
-
- default: // Invalid
- TU_BREAKPOINT();
- break;
- }
-}
-
-static void handle_epout_ints(uint8_t rhport, USB_OTG_DeviceTypeDef * dev, USB_OTG_OUTEndpointTypeDef * out_ep) {
- // DAINT for a given EP clears when DOEPINTx is cleared.
- // OEPINT will be cleared when DAINT's out bits are cleared.
- for(uint8_t n = 0; n < EP_MAX; n++) {
- xfer_ctl_t * xfer = XFER_CTL_BASE(n, TUSB_DIR_OUT);
-
- if(dev->DAINT & (1 << (USB_OTG_DAINT_OEPINT_Pos + n))) {
- // SETUP packet Setup Phase done.
- if(out_ep[n].DOEPINT & USB_OTG_DOEPINT_STUP) {
- out_ep[n].DOEPINT = USB_OTG_DOEPINT_STUP;
- dcd_event_setup_received(rhport, (uint8_t*) &_setup_packet[0], true);
- }
-
- // OUT XFER complete
- if(out_ep[n].DOEPINT & USB_OTG_DOEPINT_XFRC) {
- out_ep[n].DOEPINT = USB_OTG_DOEPINT_XFRC;
-
- // EP0 can only handle one packet
- if((n == 0) && ep0_pending[TUSB_DIR_OUT]) {
- // Schedule another packet to be received.
- edpt_schedule_packets(rhport, n, TUSB_DIR_OUT, 1, ep0_pending[TUSB_DIR_OUT]);
- } else {
- dcd_event_xfer_complete(rhport, n, xfer->total_len, XFER_RESULT_SUCCESS, true);
- }
- }
- }
- }
-}
-
-static void handle_epin_ints(uint8_t rhport, USB_OTG_DeviceTypeDef * dev, USB_OTG_INEndpointTypeDef * in_ep) {
- // DAINT for a given EP clears when DIEPINTx is cleared.
- // IEPINT will be cleared when DAINT's out bits are cleared.
- for ( uint8_t n = 0; n < EP_MAX; n++ )
- {
- xfer_ctl_t *xfer = XFER_CTL_BASE(n, TUSB_DIR_IN);
-
- if ( dev->DAINT & (1 << (USB_OTG_DAINT_IEPINT_Pos + n)) )
- {
- // IN XFER complete (entire xfer).
- if ( in_ep[n].DIEPINT & USB_OTG_DIEPINT_XFRC )
- {
- in_ep[n].DIEPINT = USB_OTG_DIEPINT_XFRC;
-
- // EP0 can only handle one packet
- if((n == 0) && ep0_pending[TUSB_DIR_IN]) {
- // Schedule another packet to be transmitted.
- edpt_schedule_packets(rhport, n, TUSB_DIR_IN, 1, ep0_pending[TUSB_DIR_IN]);
- } else {
- dcd_event_xfer_complete(rhport, n | TUSB_DIR_IN_MASK, xfer->total_len, XFER_RESULT_SUCCESS, true);
- }
- }
-
- // XFER FIFO empty
- if ( (in_ep[n].DIEPINT & USB_OTG_DIEPINT_TXFE) && (dev->DIEPEMPMSK & (1 << n)) )
- {
- // DIEPINT's TXFE bit is read-only, software cannot clear it.
- // It will only be cleared by hardware when written bytes is more than
- // - 64 bytes or
- // - Half of TX FIFO size (configured by DIEPTXF)
-
- uint16_t remaining_packets = (in_ep[n].DIEPTSIZ & USB_OTG_DIEPTSIZ_PKTCNT_Msk) >> USB_OTG_DIEPTSIZ_PKTCNT_Pos;
-
- // Process every single packet (only whole packets can be written to fifo)
- for(uint16_t i = 0; i < remaining_packets; i++)
- {
- uint16_t const remaining_bytes = (in_ep[n].DIEPTSIZ & USB_OTG_DIEPTSIZ_XFRSIZ_Msk) >> USB_OTG_DIEPTSIZ_XFRSIZ_Pos;
-
- // Packet can not be larger than ep max size
- uint16_t const packet_size = tu_min16(remaining_bytes, xfer->max_size);
-
- // It's only possible to write full packets into FIFO. Therefore DTXFSTS register of current
- // EP has to be checked if the buffer can take another WHOLE packet
- if(packet_size > ((in_ep[n].DTXFSTS & USB_OTG_DTXFSTS_INEPTFSAV_Msk) << 2)) break;
-
- // Push packet to Tx-FIFO
- if (xfer->ff)
- {
- usb_fifo_t tx_fifo = FIFO_BASE(rhport, n);
- tu_fifo_read_n_const_addr_full_words(xfer->ff, (void *)(uintptr_t) tx_fifo, packet_size);
- }
- else
- {
- write_fifo_packet(rhport, n, xfer->buffer, packet_size);
-
- // Increment pointer to xfer data
- xfer->buffer += packet_size;
- }
- }
-
- // Turn off TXFE if all bytes are written.
- if (((in_ep[n].DIEPTSIZ & USB_OTG_DIEPTSIZ_XFRSIZ_Msk) >> USB_OTG_DIEPTSIZ_XFRSIZ_Pos) == 0)
- {
- dev->DIEPEMPMSK &= ~(1 << n);
- }
- }
- }
- }
-}
-
-void dcd_int_handler(uint8_t rhport)
-{
- USB_OTG_GlobalTypeDef * usb_otg = GLOBAL_BASE(rhport);
- USB_OTG_DeviceTypeDef * dev = DEVICE_BASE(rhport);
- USB_OTG_OUTEndpointTypeDef * out_ep = OUT_EP_BASE(rhport);
- USB_OTG_INEndpointTypeDef * in_ep = IN_EP_BASE(rhport);
-
- uint32_t const int_status = usb_otg->GINTSTS & usb_otg->GINTMSK;
-
- if(int_status & USB_OTG_GINTSTS_USBRST)
- {
- // USBRST is start of reset.
- usb_otg->GINTSTS = USB_OTG_GINTSTS_USBRST;
- bus_reset(rhport);
- }
-
- if(int_status & USB_OTG_GINTSTS_ENUMDNE)
- {
- // ENUMDNE is the end of reset where speed of the link is detected
-
- usb_otg->GINTSTS = USB_OTG_GINTSTS_ENUMDNE;
-
- tusb_speed_t const speed = get_speed(rhport);
-
- set_turnaround(usb_otg, speed);
- dcd_event_bus_reset(rhport, speed, true);
- }
-
- if(int_status & USB_OTG_GINTSTS_USBSUSP)
- {
- usb_otg->GINTSTS = USB_OTG_GINTSTS_USBSUSP;
- dcd_event_bus_signal(rhport, DCD_EVENT_SUSPEND, true);
- }
-
- if(int_status & USB_OTG_GINTSTS_WKUINT)
- {
- usb_otg->GINTSTS = USB_OTG_GINTSTS_WKUINT;
- dcd_event_bus_signal(rhport, DCD_EVENT_RESUME, true);
- }
-
- // TODO check USB_OTG_GINTSTS_DISCINT for disconnect detection
- // if(int_status & USB_OTG_GINTSTS_DISCINT)
-
- if(int_status & USB_OTG_GINTSTS_OTGINT)
- {
- // OTG INT bit is read-only
- uint32_t const otg_int = usb_otg->GOTGINT;
-
- if (otg_int & USB_OTG_GOTGINT_SEDET)
- {
- dcd_event_bus_signal(rhport, DCD_EVENT_UNPLUGGED, true);
- }
-
- usb_otg->GOTGINT = otg_int;
- }
-
- if(int_status & USB_OTG_GINTSTS_SOF)
- {
- usb_otg->GINTSTS = USB_OTG_GINTSTS_SOF;
-
- // Disable SOF interrupt since currently only used for remote wakeup detection
- usb_otg->GINTMSK &= ~USB_OTG_GINTMSK_SOFM;
-
- dcd_event_bus_signal(rhport, DCD_EVENT_SOF, true);
- }
-
- // RxFIFO non-empty interrupt handling.
- if(int_status & USB_OTG_GINTSTS_RXFLVL)
- {
- // RXFLVL bit is read-only
-
- // Mask out RXFLVL while reading data from FIFO
- usb_otg->GINTMSK &= ~USB_OTG_GINTMSK_RXFLVLM;
-
- // Loop until all available packets were handled
- do
- {
- handle_rxflvl_ints(rhport, out_ep);
- } while(usb_otg->GINTSTS & USB_OTG_GINTSTS_RXFLVL);
-
- // Manage RX FIFO size
- if (_out_ep_closed)
- {
- update_grxfsiz(rhport);
-
- // Disable flag
- _out_ep_closed = false;
- }
-
- usb_otg->GINTMSK |= USB_OTG_GINTMSK_RXFLVLM;
- }
-
- // OUT endpoint interrupt handling.
- if(int_status & USB_OTG_GINTSTS_OEPINT)
- {
- // OEPINT is read-only
- handle_epout_ints(rhport, dev, out_ep);
- }
-
- // IN endpoint interrupt handling.
- if(int_status & USB_OTG_GINTSTS_IEPINT)
- {
- // IEPINT bit read-only
- handle_epin_ints(rhport, dev, in_ep);
- }
-
- // // Check for Incomplete isochronous IN transfer
- // if(int_status & USB_OTG_GINTSTS_IISOIXFR) {
- // printf(" IISOIXFR!\r\n");
- //// TU_LOG2(" IISOIXFR!\r\n");
- // }
-}
-
-#endif
diff --git a/src/portable/st/synopsys/synopsys_common.h b/src/portable/st/synopsys/synopsys_common.h
deleted file mode 100644
index ce3195b23..000000000
--- a/src/portable/st/synopsys/synopsys_common.h
+++ /dev/null
@@ -1,1465 +0,0 @@
-/**
- ******************************************************************************
- * @file synopsys_common.h
- * @author MCD Application Team
- * @brief CMSIS Cortex-M3 Device USB OTG peripheral Header File.
- * This file contains the USB OTG peripheral register's definitions, bits
- * definitions and memory mapping for STM32F1xx devices.
- *
- * This file contains:
- * - Data structures and the address mapping for the USB OTG peripheral
- * - The Peripheral's registers declarations and bits definition
- * - Macros to access the peripheral's registers hardware
- *
- ******************************************************************************
- * @attention
- *
- * <h2><center>&copy; Copyright (c) 2017 STMicroelectronics.
- * All rights reserved.</center></h2>
- *
- * This software component is licensed by ST under BSD 3-Clause license,
- * the "License"; You may not use this file except in compliance with the
- * License. You may obtain a copy of the License at:
- * opensource.org/licenses/BSD-3-Clause
- *
- ******************************************************************************
- */
-
-#include "stdint.h"
-
-#pragma once
-
-#ifdef __cplusplus
- #define __I volatile
-#else
- #define __I volatile const
-#endif
-#define __O volatile
-#define __IO volatile
-#define __IM volatile const
-#define __OM volatile
-#define __IOM volatile
-
-/**
- * @brief __USB_OTG_Core_register
- */
-
-typedef struct
-{
- __IO uint32_t GOTGCTL; /*!< USB_OTG Control and Status Register Address offset: 000h */
- __IO uint32_t GOTGINT; /*!< USB_OTG Interrupt Register Address offset: 004h */
- __IO uint32_t GAHBCFG; /*!< Core AHB Configuration Register Address offset: 008h */
- __IO uint32_t GUSBCFG; /*!< Core USB Configuration Register Address offset: 00Ch */
- __IO uint32_t GRSTCTL; /*!< Core Reset Register Address offset: 010h */
- __IO uint32_t GINTSTS; /*!< Core Interrupt Register Address offset: 014h */
- __IO uint32_t GINTMSK; /*!< Core Interrupt Mask Register Address offset: 018h */
- __IO uint32_t GRXSTSR; /*!< Receive Sts Q Read Register Address offset: 01Ch */
- __IO uint32_t GRXSTSP; /*!< Receive Sts Q Read & POP Register Address offset: 020h */
- __IO uint32_t GRXFSIZ; /*!< Receive FIFO Size Register Address offset: 024h */
- __IO uint32_t DIEPTXF0_HNPTXFSIZ; /*!< EP0 / Non Periodic Tx FIFO Size Register Address offset: 028h */
- __IO uint32_t HNPTXSTS; /*!< Non Periodic Tx FIFO/Queue Sts reg Address offset: 02Ch */
- uint32_t Reserved30[2]; /*!< Reserved 030h*/
- __IO uint32_t GCCFG; /*!< General Purpose IO Register Address offset: 038h */
- __IO uint32_t CID; /*!< User ID Register Address offset: 03Ch */
- uint32_t Reserved40[48]; /*!< Reserved 040h-0FFh */
- __IO uint32_t HPTXFSIZ; /*!< Host Periodic Tx FIFO Size Reg Address offset: 100h */
- __IO uint32_t DIEPTXF[0x0F]; /*!< dev Periodic Transmit FIFO Address offset: 0x104 */
-} USB_OTG_GlobalTypeDef;
-
-/**
- * @brief __device_Registers
- */
-
-typedef struct
-{
- __IO uint32_t DCFG; /*!< dev Configuration Register Address offset: 800h*/
- __IO uint32_t DCTL; /*!< dev Control Register Address offset: 804h*/
- __IO uint32_t DSTS; /*!< dev Status Register (RO) Address offset: 808h*/
- uint32_t Reserved0C; /*!< Reserved 80Ch*/
- __IO uint32_t DIEPMSK; /*!< dev IN Endpoint Mask Address offset: 810h*/
- __IO uint32_t DOEPMSK; /*!< dev OUT Endpoint Mask Address offset: 814h*/
- __IO uint32_t DAINT; /*!< dev All Endpoints Itr Reg Address offset: 818h*/
- __IO uint32_t DAINTMSK; /*!< dev All Endpoints Itr Mask Address offset: 81Ch*/
- uint32_t Reserved20; /*!< Reserved 820h*/
- uint32_t Reserved9; /*!< Reserved 824h*/
- __IO uint32_t DVBUSDIS; /*!< dev VBUS discharge Register Address offset: 828h*/
- __IO uint32_t DVBUSPULSE; /*!< dev VBUS Pulse Register Address offset: 82Ch*/
- __IO uint32_t DTHRCTL; /*!< dev thr Address offset: 830h*/
- __IO uint32_t DIEPEMPMSK; /*!< dev empty msk Address offset: 834h*/
- __IO uint32_t DEACHINT; /*!< dedicated EP interrupt Address offset: 838h*/
- __IO uint32_t DEACHMSK; /*!< dedicated EP msk Address offset: 83Ch*/
- uint32_t Reserved40; /*!< dedicated EP mask Address offset: 840h*/
- __IO uint32_t DINEP1MSK; /*!< dedicated EP mask Address offset: 844h*/
- uint32_t Reserved44[15]; /*!< Reserved 844-87Ch*/
- __IO uint32_t DOUTEP1MSK; /*!< dedicated EP msk Address offset: 884h*/
-} USB_OTG_DeviceTypeDef;
-
-/**
- * @brief __IN_Endpoint-Specific_Register
- */
-
-typedef struct
-{
- __IO uint32_t DIEPCTL; /*!< dev IN Endpoint Control Reg 900h + (ep_num * 20h) + 00h*/
- uint32_t Reserved04; /*!< Reserved 900h + (ep_num * 20h) + 04h*/
- __IO uint32_t DIEPINT; /*!< dev IN Endpoint Itr Reg 900h + (ep_num * 20h) + 08h*/
- uint32_t Reserved0C; /*!< Reserved 900h + (ep_num * 20h) + 0Ch*/
- __IO uint32_t DIEPTSIZ; /*!< IN Endpoint Txfer Size 900h + (ep_num * 20h) + 10h*/
- __IO uint32_t DIEPDMA; /*!< IN Endpoint DMA Address Reg 900h + (ep_num * 20h) + 14h*/
- __IO uint32_t DTXFSTS; /*!< IN Endpoint Tx FIFO Status Reg 900h + (ep_num * 20h) + 18h*/
- uint32_t Reserved18; /*!< Reserved 900h+(ep_num*20h)+1Ch-900h+ (ep_num * 20h) + 1Ch*/
-} USB_OTG_INEndpointTypeDef;
-
-/**
- * @brief __OUT_Endpoint-Specific_Registers
- */
-
-typedef struct
-{
- __IO uint32_t DOEPCTL; /*!< dev OUT Endpoint Control Reg B00h + (ep_num * 20h) + 00h*/
- uint32_t Reserved04; /*!< Reserved B00h + (ep_num * 20h) + 04h*/
- __IO uint32_t DOEPINT; /*!< dev OUT Endpoint Itr Reg B00h + (ep_num * 20h) + 08h*/
- uint32_t Reserved0C; /*!< Reserved B00h + (ep_num * 20h) + 0Ch*/
- __IO uint32_t DOEPTSIZ; /*!< dev OUT Endpoint Txfer Size B00h + (ep_num * 20h) + 10h*/
- __IO uint32_t DOEPDMA; /*!< dev OUT Endpoint DMA Address B00h + (ep_num * 20h) + 14h*/
- uint32_t Reserved18[2]; /*!< Reserved B00h + (ep_num * 20h) + 18h - B00h + (ep_num * 20h) + 1Ch*/
-} USB_OTG_OUTEndpointTypeDef;
-
-/**
- * @brief __Host_Mode_Register_Structures
- */
-
-typedef struct
-{
- __IO uint32_t HCFG; /*!< Host Configuration Register 400h*/
- __IO uint32_t HFIR; /*!< Host Frame Interval Register 404h*/
- __IO uint32_t HFNUM; /*!< Host Frame Nbr/Frame Remaining 408h*/
- uint32_t Reserved40C; /*!< Reserved 40Ch*/
- __IO uint32_t HPTXSTS; /*!< Host Periodic Tx FIFO/ Queue Status 410h*/
- __IO uint32_t HAINT; /*!< Host All Channels Interrupt Register 414h*/
- __IO uint32_t HAINTMSK; /*!< Host All Channels Interrupt Mask 418h*/
-} USB_OTG_HostTypeDef;
-
-/**
- * @brief __Host_Channel_Specific_Registers
- */
-
-typedef struct
-{
- __IO uint32_t HCCHAR;
- __IO uint32_t HCSPLT;
- __IO uint32_t HCINT;
- __IO uint32_t HCINTMSK;
- __IO uint32_t HCTSIZ;
- __IO uint32_t HCDMA;
- uint32_t Reserved[2];
-} USB_OTG_HostChannelTypeDef;
-
-/*!< USB registers base address */
-#define USB_OTG_FS_PERIPH_BASE 0x50000000UL
-
-#define USB_OTG_GLOBAL_BASE 0x00000000UL
-#define USB_OTG_DEVICE_BASE 0x00000800UL
-#define USB_OTG_IN_ENDPOINT_BASE 0x00000900UL
-#define USB_OTG_OUT_ENDPOINT_BASE 0x00000B00UL
-#define USB_OTG_EP_REG_SIZE 0x00000020UL
-#define USB_OTG_HOST_BASE 0x00000400UL
-#define USB_OTG_HOST_PORT_BASE 0x00000440UL
-#define USB_OTG_HOST_CHANNEL_BASE 0x00000500UL
-#define USB_OTG_HOST_CHANNEL_SIZE 0x00000020UL
-#define USB_OTG_PCGCCTL_BASE 0x00000E00UL
-#define USB_OTG_FIFO_BASE 0x00001000UL
-#define USB_OTG_FIFO_SIZE 0x00001000UL
-
-/******************************************************************************/
-/* */
-/* USB_OTG */
-/* */
-/******************************************************************************/
-/******************** Bit definition for USB_OTG_GOTGCTL register ***********/
-#define USB_OTG_GOTGCTL_SRQSCS_Pos (0U)
-#define USB_OTG_GOTGCTL_SRQSCS_Msk (0x1UL << USB_OTG_GOTGCTL_SRQSCS_Pos) /*!< 0x00000001 */
-#define USB_OTG_GOTGCTL_SRQSCS USB_OTG_GOTGCTL_SRQSCS_Msk /*!< Session request success */
-#define USB_OTG_GOTGCTL_SRQ_Pos (1U)
-#define USB_OTG_GOTGCTL_SRQ_Msk (0x1UL << USB_OTG_GOTGCTL_SRQ_Pos) /*!< 0x00000002 */
-#define USB_OTG_GOTGCTL_SRQ USB_OTG_GOTGCTL_SRQ_Msk /*!< Session request */
-#define USB_OTG_GOTGCTL_HNGSCS_Pos (8U)
-#define USB_OTG_GOTGCTL_HNGSCS_Msk (0x1UL << USB_OTG_GOTGCTL_HNGSCS_Pos) /*!< 0x00000100 */
-#define USB_OTG_GOTGCTL_HNGSCS USB_OTG_GOTGCTL_HNGSCS_Msk /*!< Host set HNP enable */
-#define USB_OTG_GOTGCTL_HNPRQ_Pos (9U)
-#define USB_OTG_GOTGCTL_HNPRQ_Msk (0x1UL << USB_OTG_GOTGCTL_HNPRQ_Pos) /*!< 0x00000200 */
-#define USB_OTG_GOTGCTL_HNPRQ USB_OTG_GOTGCTL_HNPRQ_Msk /*!< HNP request */
-#define USB_OTG_GOTGCTL_HSHNPEN_Pos (10U)
-#define USB_OTG_GOTGCTL_HSHNPEN_Msk (0x1UL << USB_OTG_GOTGCTL_HSHNPEN_Pos) /*!< 0x00000400 */
-#define USB_OTG_GOTGCTL_HSHNPEN USB_OTG_GOTGCTL_HSHNPEN_Msk /*!< Host set HNP enable */
-#define USB_OTG_GOTGCTL_DHNPEN_Pos (11U)
-#define USB_OTG_GOTGCTL_DHNPEN_Msk (0x1UL << USB_OTG_GOTGCTL_DHNPEN_Pos) /*!< 0x00000800 */
-#define USB_OTG_GOTGCTL_DHNPEN USB_OTG_GOTGCTL_DHNPEN_Msk /*!< Device HNP enabled */
-#define USB_OTG_GOTGCTL_CIDSTS_Pos (16U)
-#define USB_OTG_GOTGCTL_CIDSTS_Msk (0x1UL << USB_OTG_GOTGCTL_CIDSTS_Pos) /*!< 0x00010000 */
-#define USB_OTG_GOTGCTL_CIDSTS USB_OTG_GOTGCTL_CIDSTS_Msk /*!< Connector ID status */
-#define USB_OTG_GOTGCTL_DBCT_Pos (17U)
-#define USB_OTG_GOTGCTL_DBCT_Msk (0x1UL << USB_OTG_GOTGCTL_DBCT_Pos) /*!< 0x00020000 */
-#define USB_OTG_GOTGCTL_DBCT USB_OTG_GOTGCTL_DBCT_Msk /*!< Long/short debounce time */
-#define USB_OTG_GOTGCTL_ASVLD_Pos (18U)
-#define USB_OTG_GOTGCTL_ASVLD_Msk (0x1UL << USB_OTG_GOTGCTL_ASVLD_Pos) /*!< 0x00040000 */
-#define USB_OTG_GOTGCTL_ASVLD USB_OTG_GOTGCTL_ASVLD_Msk /*!< A-session valid */
-#define USB_OTG_GOTGCTL_BSVLD_Pos (19U)
-#define USB_OTG_GOTGCTL_BSVLD_Msk (0x1UL << USB_OTG_GOTGCTL_BSVLD_Pos) /*!< 0x00080000 */
-#define USB_OTG_GOTGCTL_BSVLD USB_OTG_GOTGCTL_BSVLD_Msk /*!< B-session valid */
-
-/******************** Bit definition for USB_OTG_HCFG register ********************/
-
-#define USB_OTG_HCFG_FSLSPCS_Pos (0U)
-#define USB_OTG_HCFG_FSLSPCS_Msk (0x3UL << USB_OTG_HCFG_FSLSPCS_Pos) /*!< 0x00000003 */
-#define USB_OTG_HCFG_FSLSPCS USB_OTG_HCFG_FSLSPCS_Msk /*!< FS/LS PHY clock select */
-#define USB_OTG_HCFG_FSLSPCS_0 (0x1UL << USB_OTG_HCFG_FSLSPCS_Pos) /*!< 0x00000001 */
-#define USB_OTG_HCFG_FSLSPCS_1 (0x2UL << USB_OTG_HCFG_FSLSPCS_Pos) /*!< 0x00000002 */
-#define USB_OTG_HCFG_FSLSS_Pos (2U)
-#define USB_OTG_HCFG_FSLSS_Msk (0x1UL << USB_OTG_HCFG_FSLSS_Pos) /*!< 0x00000004 */
-#define USB_OTG_HCFG_FSLSS USB_OTG_HCFG_FSLSS_Msk /*!< FS- and LS-only support */
-
-/******************** Bit definition for USB_OTG_DCFG register ********************/
-
-#define USB_OTG_DCFG_DSPD_Pos (0U)
-#define USB_OTG_DCFG_DSPD_Msk (0x3UL << USB_OTG_DCFG_DSPD_Pos) /*!< 0x00000003 */
-#define USB_OTG_DCFG_DSPD USB_OTG_DCFG_DSPD_Msk /*!< Device speed */
-#define USB_OTG_DCFG_DSPD_0 (0x1UL << USB_OTG_DCFG_DSPD_Pos) /*!< 0x00000001 */
-#define USB_OTG_DCFG_DSPD_1 (0x2UL << USB_OTG_DCFG_DSPD_Pos) /*!< 0x00000002 */
-#define USB_OTG_DCFG_NZLSOHSK_Pos (2U)
-#define USB_OTG_DCFG_NZLSOHSK_Msk (0x1UL << USB_OTG_DCFG_NZLSOHSK_Pos) /*!< 0x00000004 */
-#define USB_OTG_DCFG_NZLSOHSK USB_OTG_DCFG_NZLSOHSK_Msk /*!< Nonzero-length status OUT handshake */
-
-#define USB_OTG_DCFG_DAD_Pos (4U)
-#define USB_OTG_DCFG_DAD_Msk (0x7FUL << USB_OTG_DCFG_DAD_Pos) /*!< 0x000007F0 */
-#define USB_OTG_DCFG_DAD USB_OTG_DCFG_DAD_Msk /*!< Device address */
-#define USB_OTG_DCFG_DAD_0 (0x01UL << USB_OTG_DCFG_DAD_Pos) /*!< 0x00000010 */
-#define USB_OTG_DCFG_DAD_1 (0x02UL << USB_OTG_DCFG_DAD_Pos) /*!< 0x00000020 */
-#define USB_OTG_DCFG_DAD_2 (0x04UL << USB_OTG_DCFG_DAD_Pos) /*!< 0x00000040 */
-#define USB_OTG_DCFG_DAD_3 (0x08UL << USB_OTG_DCFG_DAD_Pos) /*!< 0x00000080 */
-#define USB_OTG_DCFG_DAD_4 (0x10UL << USB_OTG_DCFG_DAD_Pos) /*!< 0x00000100 */
-#define USB_OTG_DCFG_DAD_5 (0x20UL << USB_OTG_DCFG_DAD_Pos) /*!< 0x00000200 */
-#define USB_OTG_DCFG_DAD_6 (0x40UL << USB_OTG_DCFG_DAD_Pos) /*!< 0x00000400 */
-
-#define USB_OTG_DCFG_PFIVL_Pos (11U)
-#define USB_OTG_DCFG_PFIVL_Msk (0x3UL << USB_OTG_DCFG_PFIVL_Pos) /*!< 0x00001800 */
-#define USB_OTG_DCFG_PFIVL USB_OTG_DCFG_PFIVL_Msk /*!< Periodic (micro)frame interval */
-#define USB_OTG_DCFG_PFIVL_0 (0x1UL << USB_OTG_DCFG_PFIVL_Pos) /*!< 0x00000800 */
-#define USB_OTG_DCFG_PFIVL_1 (0x2UL << USB_OTG_DCFG_PFIVL_Pos) /*!< 0x00001000 */
-
-#define USB_OTG_DCFG_PERSCHIVL_Pos (24U)
-#define USB_OTG_DCFG_PERSCHIVL_Msk (0x3UL << USB_OTG_DCFG_PERSCHIVL_Pos) /*!< 0x03000000 */
-#define USB_OTG_DCFG_PERSCHIVL USB_OTG_DCFG_PERSCHIVL_Msk /*!< Periodic scheduling interval */
-#define USB_OTG_DCFG_PERSCHIVL_0 (0x1UL << USB_OTG_DCFG_PERSCHIVL_Pos) /*!< 0x01000000 */
-#define USB_OTG_DCFG_PERSCHIVL_1 (0x2UL << USB_OTG_DCFG_PERSCHIVL_Pos) /*!< 0x02000000 */
-
-/******************** Bit definition for USB_OTG_PCGCR register ********************/
-#define USB_OTG_PCGCR_STPPCLK_Pos (0U)
-#define USB_OTG_PCGCR_STPPCLK_Msk (0x1UL << USB_OTG_PCGCR_STPPCLK_Pos) /*!< 0x00000001 */
-#define USB_OTG_PCGCR_STPPCLK USB_OTG_PCGCR_STPPCLK_Msk /*!< Stop PHY clock */
-#define USB_OTG_PCGCR_GATEHCLK_Pos (1U)
-#define USB_OTG_PCGCR_GATEHCLK_Msk (0x1UL << USB_OTG_PCGCR_GATEHCLK_Pos) /*!< 0x00000002 */
-#define USB_OTG_PCGCR_GATEHCLK USB_OTG_PCGCR_GATEHCLK_Msk /*!< Gate HCLK */
-#define USB_OTG_PCGCR_PHYSUSP_Pos (4U)
-#define USB_OTG_PCGCR_PHYSUSP_Msk (0x1UL << USB_OTG_PCGCR_PHYSUSP_Pos) /*!< 0x00000010 */
-#define USB_OTG_PCGCR_PHYSUSP USB_OTG_PCGCR_PHYSUSP_Msk /*!< PHY suspended */
-
-/******************** Bit definition for USB_OTG_GOTGINT register ********************/
-#define USB_OTG_GOTGINT_SEDET_Pos (2U)
-#define USB_OTG_GOTGINT_SEDET_Msk (0x1UL << USB_OTG_GOTGINT_SEDET_Pos) /*!< 0x00000004 */
-#define USB_OTG_GOTGINT_SEDET USB_OTG_GOTGINT_SEDET_Msk /*!< Session end detected */
-#define USB_OTG_GOTGINT_SRSSCHG_Pos (8U)
-#define USB_OTG_GOTGINT_SRSSCHG_Msk (0x1UL << USB_OTG_GOTGINT_SRSSCHG_Pos) /*!< 0x00000100 */
-#define USB_OTG_GOTGINT_SRSSCHG USB_OTG_GOTGINT_SRSSCHG_Msk /*!< Session request success status change */
-#define USB_OTG_GOTGINT_HNSSCHG_Pos (9U)
-#define USB_OTG_GOTGINT_HNSSCHG_Msk (0x1UL << USB_OTG_GOTGINT_HNSSCHG_Pos) /*!< 0x00000200 */
-#define USB_OTG_GOTGINT_HNSSCHG USB_OTG_GOTGINT_HNSSCHG_Msk /*!< Host negotiation success status change */
-#define USB_OTG_GOTGINT_HNGDET_Pos (17U)
-#define USB_OTG_GOTGINT_HNGDET_Msk (0x1UL << USB_OTG_GOTGINT_HNGDET_Pos) /*!< 0x00020000 */
-#define USB_OTG_GOTGINT_HNGDET USB_OTG_GOTGINT_HNGDET_Msk /*!< Host negotiation detected */
-#define USB_OTG_GOTGINT_ADTOCHG_Pos (18U)
-#define USB_OTG_GOTGINT_ADTOCHG_Msk (0x1UL << USB_OTG_GOTGINT_ADTOCHG_Pos) /*!< 0x00040000 */
-#define USB_OTG_GOTGINT_ADTOCHG USB_OTG_GOTGINT_ADTOCHG_Msk /*!< A-device timeout change */
-#define USB_OTG_GOTGINT_DBCDNE_Pos (19U)
-#define USB_OTG_GOTGINT_DBCDNE_Msk (0x1UL << USB_OTG_GOTGINT_DBCDNE_Pos) /*!< 0x00080000 */
-#define USB_OTG_GOTGINT_DBCDNE USB_OTG_GOTGINT_DBCDNE_Msk /*!< Debounce done */
-
-/******************** Bit definition for USB_OTG_DCTL register ********************/
-#define USB_OTG_DCTL_RWUSIG_Pos (0U)
-#define USB_OTG_DCTL_RWUSIG_Msk (0x1UL << USB_OTG_DCTL_RWUSIG_Pos) /*!< 0x00000001 */
-#define USB_OTG_DCTL_RWUSIG USB_OTG_DCTL_RWUSIG_Msk /*!< Remote wakeup signaling */
-#define USB_OTG_DCTL_SDIS_Pos (1U)
-#define USB_OTG_DCTL_SDIS_Msk (0x1UL << USB_OTG_DCTL_SDIS_Pos) /*!< 0x00000002 */
-#define USB_OTG_DCTL_SDIS USB_OTG_DCTL_SDIS_Msk /*!< Soft disconnect */
-#define USB_OTG_DCTL_GINSTS_Pos (2U)
-#define USB_OTG_DCTL_GINSTS_Msk (0x1UL << USB_OTG_DCTL_GINSTS_Pos) /*!< 0x00000004 */
-#define USB_OTG_DCTL_GINSTS USB_OTG_DCTL_GINSTS_Msk /*!< Global IN NAK status */
-#define USB_OTG_DCTL_GONSTS_Pos (3U)
-#define USB_OTG_DCTL_GONSTS_Msk (0x1UL << USB_OTG_DCTL_GONSTS_Pos) /*!< 0x00000008 */
-#define USB_OTG_DCTL_GONSTS USB_OTG_DCTL_GONSTS_Msk /*!< Global OUT NAK status */
-
-#define USB_OTG_DCTL_TCTL_Pos (4U)
-#define USB_OTG_DCTL_TCTL_Msk (0x7UL << USB_OTG_DCTL_TCTL_Pos) /*!< 0x00000070 */
-#define USB_OTG_DCTL_TCTL USB_OTG_DCTL_TCTL_Msk /*!< Test control */
-#define USB_OTG_DCTL_TCTL_0 (0x1UL << USB_OTG_DCTL_TCTL_Pos) /*!< 0x00000010 */
-#define USB_OTG_DCTL_TCTL_1 (0x2UL << USB_OTG_DCTL_TCTL_Pos) /*!< 0x00000020 */
-#define USB_OTG_DCTL_TCTL_2 (0x4UL << USB_OTG_DCTL_TCTL_Pos) /*!< 0x00000040 */
-#define USB_OTG_DCTL_SGINAK_Pos (7U)
-#define USB_OTG_DCTL_SGINAK_Msk (0x1UL << USB_OTG_DCTL_SGINAK_Pos) /*!< 0x00000080 */
-#define USB_OTG_DCTL_SGINAK USB_OTG_DCTL_SGINAK_Msk /*!< Set global IN NAK */
-#define USB_OTG_DCTL_CGINAK_Pos (8U)
-#define USB_OTG_DCTL_CGINAK_Msk (0x1UL << USB_OTG_DCTL_CGINAK_Pos) /*!< 0x00000100 */
-#define USB_OTG_DCTL_CGINAK USB_OTG_DCTL_CGINAK_Msk /*!< Clear global IN NAK */
-#define USB_OTG_DCTL_SGONAK_Pos (9U)
-#define USB_OTG_DCTL_SGONAK_Msk (0x1UL << USB_OTG_DCTL_SGONAK_Pos) /*!< 0x00000200 */
-#define USB_OTG_DCTL_SGONAK USB_OTG_DCTL_SGONAK_Msk /*!< Set global OUT NAK */
-#define USB_OTG_DCTL_CGONAK_Pos (10U)
-#define USB_OTG_DCTL_CGONAK_Msk (0x1UL << USB_OTG_DCTL_CGONAK_Pos) /*!< 0x00000400 */
-#define USB_OTG_DCTL_CGONAK USB_OTG_DCTL_CGONAK_Msk /*!< Clear global OUT NAK */
-#define USB_OTG_DCTL_POPRGDNE_Pos (11U)
-#define USB_OTG_DCTL_POPRGDNE_Msk (0x1UL << USB_OTG_DCTL_POPRGDNE_Pos) /*!< 0x00000800 */
-#define USB_OTG_DCTL_POPRGDNE USB_OTG_DCTL_POPRGDNE_Msk /*!< Power-on programming done */
-
-/******************** Bit definition for USB_OTG_HFIR register ********************/
-#define USB_OTG_HFIR_FRIVL_Pos (0U)
-#define USB_OTG_HFIR_FRIVL_Msk (0xFFFFUL << USB_OTG_HFIR_FRIVL_Pos) /*!< 0x0000FFFF */
-#define USB_OTG_HFIR_FRIVL USB_OTG_HFIR_FRIVL_Msk /*!< Frame interval */
-
-/******************** Bit definition for USB_OTG_HFNUM register ********************/
-#define USB_OTG_HFNUM_FRNUM_Pos (0U)
-#define USB_OTG_HFNUM_FRNUM_Msk (0xFFFFUL << USB_OTG_HFNUM_FRNUM_Pos) /*!< 0x0000FFFF */
-#define USB_OTG_HFNUM_FRNUM USB_OTG_HFNUM_FRNUM_Msk /*!< Frame number */
-#define USB_OTG_HFNUM_FTREM_Pos (16U)
-#define USB_OTG_HFNUM_FTREM_Msk (0xFFFFUL << USB_OTG_HFNUM_FTREM_Pos) /*!< 0xFFFF0000 */
-#define USB_OTG_HFNUM_FTREM USB_OTG_HFNUM_FTREM_Msk /*!< Frame time remaining */
-
-/******************** Bit definition for USB_OTG_DSTS register ********************/
-#define USB_OTG_DSTS_SUSPSTS_Pos (0U)
-#define USB_OTG_DSTS_SUSPSTS_Msk (0x1UL << USB_OTG_DSTS_SUSPSTS_Pos) /*!< 0x00000001 */
-#define USB_OTG_DSTS_SUSPSTS USB_OTG_DSTS_SUSPSTS_Msk /*!< Suspend status */
-
-#define USB_OTG_DSTS_ENUMSPD_Pos (1U)
-#define USB_OTG_DSTS_ENUMSPD_Msk (0x3UL << USB_OTG_DSTS_ENUMSPD_Pos) /*!< 0x00000006 */
-#define USB_OTG_DSTS_ENUMSPD USB_OTG_DSTS_ENUMSPD_Msk /*!< Enumerated speed */
-#define USB_OTG_DSTS_ENUMSPD_0 (0x1UL << USB_OTG_DSTS_ENUMSPD_Pos) /*!< 0x00000002 */
-#define USB_OTG_DSTS_ENUMSPD_1 (0x2UL << USB_OTG_DSTS_ENUMSPD_Pos) /*!< 0x00000004 */
-#define USB_OTG_DSTS_EERR_Pos (3U)
-#define USB_OTG_DSTS_EERR_Msk (0x1UL << USB_OTG_DSTS_EERR_Pos) /*!< 0x00000008 */
-#define USB_OTG_DSTS_EERR USB_OTG_DSTS_EERR_Msk /*!< Erratic error */
-#define USB_OTG_DSTS_FNSOF_Pos (8U)
-#define USB_OTG_DSTS_FNSOF_Msk (0x3FFFUL << USB_OTG_DSTS_FNSOF_Pos) /*!< 0x003FFF00 */
-#define USB_OTG_DSTS_FNSOF USB_OTG_DSTS_FNSOF_Msk /*!< Frame number of the received SOF */
-
-/******************** Bit definition for USB_OTG_GAHBCFG register ********************/
-#define USB_OTG_GAHBCFG_GINT_Pos (0U)
-#define USB_OTG_GAHBCFG_GINT_Msk (0x1UL << USB_OTG_GAHBCFG_GINT_Pos) /*!< 0x00000001 */
-#define USB_OTG_GAHBCFG_GINT USB_OTG_GAHBCFG_GINT_Msk /*!< Global interrupt mask */
-#define USB_OTG_GAHBCFG_HBSTLEN_Pos (1U)
-#define USB_OTG_GAHBCFG_HBSTLEN_Msk (0xFUL << USB_OTG_GAHBCFG_HBSTLEN_Pos) /*!< 0x0000001E */
-#define USB_OTG_GAHBCFG_HBSTLEN USB_OTG_GAHBCFG_HBSTLEN_Msk /*!< Burst length/type */
-#define USB_OTG_GAHBCFG_HBSTLEN_0 (0x0UL << USB_OTG_GAHBCFG_HBSTLEN_Pos) /*!< Single */
-#define USB_OTG_GAHBCFG_HBSTLEN_1 (0x1UL << USB_OTG_GAHBCFG_HBSTLEN_Pos) /*!< INCR */
-#define USB_OTG_GAHBCFG_HBSTLEN_2 (0x3UL << USB_OTG_GAHBCFG_HBSTLEN_Pos) /*!< INCR4 */
-#define USB_OTG_GAHBCFG_HBSTLEN_3 (0x5UL << USB_OTG_GAHBCFG_HBSTLEN_Pos) /*!< INCR8 */
-#define USB_OTG_GAHBCFG_HBSTLEN_4 (0x7UL << USB_OTG_GAHBCFG_HBSTLEN_Pos) /*!< INCR16 */
-#define USB_OTG_GAHBCFG_DMAEN_Pos (5U)
-#define USB_OTG_GAHBCFG_DMAEN_Msk (0x1UL << USB_OTG_GAHBCFG_DMAEN_Pos) /*!< 0x00000020 */
-#define USB_OTG_GAHBCFG_DMAEN USB_OTG_GAHBCFG_DMAEN_Msk /*!< DMA enable */
-#define USB_OTG_GAHBCFG_TXFELVL_Pos (7U)
-#define USB_OTG_GAHBCFG_TXFELVL_Msk (0x1UL << USB_OTG_GAHBCFG_TXFELVL_Pos) /*!< 0x00000080 */
-#define USB_OTG_GAHBCFG_TXFELVL USB_OTG_GAHBCFG_TXFELVL_Msk /*!< TxFIFO empty level */
-#define USB_OTG_GAHBCFG_PTXFELVL_Pos (8U)
-#define USB_OTG_GAHBCFG_PTXFELVL_Msk (0x1UL << USB_OTG_GAHBCFG_PTXFELVL_Pos) /*!< 0x00000100 */
-#define USB_OTG_GAHBCFG_PTXFELVL USB_OTG_GAHBCFG_PTXFELVL_Msk /*!< Periodic TxFIFO empty level */
-
-/******************** Bit definition for USB_OTG_GUSBCFG register ********************/
-
-#define USB_OTG_GUSBCFG_TOCAL_Pos (0U)
-#define USB_OTG_GUSBCFG_TOCAL_Msk (0x7UL << USB_OTG_GUSBCFG_TOCAL_Pos) /*!< 0x00000007 */
-#define USB_OTG_GUSBCFG_TOCAL USB_OTG_GUSBCFG_TOCAL_Msk /*!< FS timeout calibration */
-#define USB_OTG_GUSBCFG_TOCAL_0 (0x1UL << USB_OTG_GUSBCFG_TOCAL_Pos) /*!< 0x00000001 */
-#define USB_OTG_GUSBCFG_TOCAL_1 (0x2UL << USB_OTG_GUSBCFG_TOCAL_Pos) /*!< 0x00000002 */
-#define USB_OTG_GUSBCFG_TOCAL_2 (0x4UL << USB_OTG_GUSBCFG_TOCAL_Pos) /*!< 0x00000004 */
-#define USB_OTG_GUSBCFG_PHYSEL_Pos (6U)
-#define USB_OTG_GUSBCFG_PHYSEL_Msk (0x1UL << USB_OTG_GUSBCFG_PHYSEL_Pos) /*!< 0x00000040 */
-#define USB_OTG_GUSBCFG_PHYSEL USB_OTG_GUSBCFG_PHYSEL_Msk /*!< USB 2.0 high-speed ULPI PHY or USB 1.1 full-speed serial transceiver select */
-#define USB_OTG_GUSBCFG_SRPCAP_Pos (8U)
-#define USB_OTG_GUSBCFG_SRPCAP_Msk (0x1UL << USB_OTG_GUSBCFG_SRPCAP_Pos) /*!< 0x00000100 */
-#define USB_OTG_GUSBCFG_SRPCAP USB_OTG_GUSBCFG_SRPCAP_Msk /*!< SRP-capable */
-#define USB_OTG_GUSBCFG_HNPCAP_Pos (9U)
-#define USB_OTG_GUSBCFG_HNPCAP_Msk (0x1UL << USB_OTG_GUSBCFG_HNPCAP_Pos) /*!< 0x00000200 */
-#define USB_OTG_GUSBCFG_HNPCAP USB_OTG_GUSBCFG_HNPCAP_Msk /*!< HNP-capable */
-#define USB_OTG_GUSBCFG_TRDT_Pos (10U)
-#define USB_OTG_GUSBCFG_TRDT_Msk (0xFUL << USB_OTG_GUSBCFG_TRDT_Pos) /*!< 0x00003C00 */
-#define USB_OTG_GUSBCFG_TRDT USB_OTG_GUSBCFG_TRDT_Msk /*!< USB turnaround time */
-#define USB_OTG_GUSBCFG_TRDT_0 (0x1UL << USB_OTG_GUSBCFG_TRDT_Pos) /*!< 0x00000400 */
-#define USB_OTG_GUSBCFG_TRDT_1 (0x2UL << USB_OTG_GUSBCFG_TRDT_Pos) /*!< 0x00000800 */
-#define USB_OTG_GUSBCFG_TRDT_2 (0x4UL << USB_OTG_GUSBCFG_TRDT_Pos) /*!< 0x00001000 */
-#define USB_OTG_GUSBCFG_TRDT_3 (0x8UL << USB_OTG_GUSBCFG_TRDT_Pos) /*!< 0x00002000 */
-#define USB_OTG_GUSBCFG_PHYLPCS_Pos (15U)
-#define USB_OTG_GUSBCFG_PHYLPCS_Msk (0x1UL << USB_OTG_GUSBCFG_PHYLPCS_Pos) /*!< 0x00008000 */
-#define USB_OTG_GUSBCFG_PHYLPCS USB_OTG_GUSBCFG_PHYLPCS_Msk /*!< PHY Low-power clock select */
-#define USB_OTG_GUSBCFG_ULPIFSLS_Pos (17U)
-#define USB_OTG_GUSBCFG_ULPIFSLS_Msk (0x1UL << USB_OTG_GUSBCFG_ULPIFSLS_Pos) /*!< 0x00020000 */
-#define USB_OTG_GUSBCFG_ULPIFSLS USB_OTG_GUSBCFG_ULPIFSLS_Msk /*!< ULPI FS/LS select */
-#define USB_OTG_GUSBCFG_ULPIAR_Pos (18U)
-#define USB_OTG_GUSBCFG_ULPIAR_Msk (0x1UL << USB_OTG_GUSBCFG_ULPIAR_Pos) /*!< 0x00040000 */
-#define USB_OTG_GUSBCFG_ULPIAR USB_OTG_GUSBCFG_ULPIAR_Msk /*!< ULPI Auto-resume */
-#define USB_OTG_GUSBCFG_ULPICSM_Pos (19U)
-#define USB_OTG_GUSBCFG_ULPICSM_Msk (0x1UL << USB_OTG_GUSBCFG_ULPICSM_Pos) /*!< 0x00080000 */
-#define USB_OTG_GUSBCFG_ULPICSM USB_OTG_GUSBCFG_ULPICSM_Msk /*!< ULPI Clock SuspendM */
-#define USB_OTG_GUSBCFG_ULPIEVBUSD_Pos (20U)
-#define USB_OTG_GUSBCFG_ULPIEVBUSD_Msk (0x1UL << USB_OTG_GUSBCFG_ULPIEVBUSD_Pos) /*!< 0x00100000 */
-#define USB_OTG_GUSBCFG_ULPIEVBUSD USB_OTG_GUSBCFG_ULPIEVBUSD_Msk /*!< ULPI External VBUS Drive */
-#define USB_OTG_GUSBCFG_ULPIEVBUSI_Pos (21U)
-#define USB_OTG_GUSBCFG_ULPIEVBUSI_Msk (0x1UL << USB_OTG_GUSBCFG_ULPIEVBUSI_Pos) /*!< 0x00200000 */
-#define USB_OTG_GUSBCFG_ULPIEVBUSI USB_OTG_GUSBCFG_ULPIEVBUSI_Msk /*!< ULPI external VBUS indicator */
-#define USB_OTG_GUSBCFG_TSDPS_Pos (22U)
-#define USB_OTG_GUSBCFG_TSDPS_Msk (0x1UL << USB_OTG_GUSBCFG_TSDPS_Pos) /*!< 0x00400000 */
-#define USB_OTG_GUSBCFG_TSDPS USB_OTG_GUSBCFG_TSDPS_Msk /*!< TermSel DLine pulsing selection */
-#define USB_OTG_GUSBCFG_PCCI_Pos (23U)
-#define USB_OTG_GUSBCFG_PCCI_Msk (0x1UL << USB_OTG_GUSBCFG_PCCI_Pos) /*!< 0x00800000 */
-#define USB_OTG_GUSBCFG_PCCI USB_OTG_GUSBCFG_PCCI_Msk /*!< Indicator complement */
-#define USB_OTG_GUSBCFG_PTCI_Pos (24U)
-#define USB_OTG_GUSBCFG_PTCI_Msk (0x1UL << USB_OTG_GUSBCFG_PTCI_Pos) /*!< 0x01000000 */
-#define USB_OTG_GUSBCFG_PTCI USB_OTG_GUSBCFG_PTCI_Msk /*!< Indicator pass through */
-#define USB_OTG_GUSBCFG_ULPIIPD_Pos (25U)
-#define USB_OTG_GUSBCFG_ULPIIPD_Msk (0x1UL << USB_OTG_GUSBCFG_ULPIIPD_Pos) /*!< 0x02000000 */
-#define USB_OTG_GUSBCFG_ULPIIPD USB_OTG_GUSBCFG_ULPIIPD_Msk /*!< ULPI interface protect disable */
-#define USB_OTG_GUSBCFG_FHMOD_Pos (29U)
-#define USB_OTG_GUSBCFG_FHMOD_Msk (0x1UL << USB_OTG_GUSBCFG_FHMOD_Pos) /*!< 0x20000000 */
-#define USB_OTG_GUSBCFG_FHMOD USB_OTG_GUSBCFG_FHMOD_Msk /*!< Forced host mode */
-#define USB_OTG_GUSBCFG_FDMOD_Pos (30U)
-#define USB_OTG_GUSBCFG_FDMOD_Msk (0x1UL << USB_OTG_GUSBCFG_FDMOD_Pos) /*!< 0x40000000 */
-#define USB_OTG_GUSBCFG_FDMOD USB_OTG_GUSBCFG_FDMOD_Msk /*!< Forced peripheral mode */
-#define USB_OTG_GUSBCFG_CTXPKT_Pos (31U)
-#define USB_OTG_GUSBCFG_CTXPKT_Msk (0x1UL << USB_OTG_GUSBCFG_CTXPKT_Pos) /*!< 0x80000000 */
-#define USB_OTG_GUSBCFG_CTXPKT USB_OTG_GUSBCFG_CTXPKT_Msk /*!< Corrupt Tx packet */
-
-/******************** Bit definition for USB_OTG_GRSTCTL register ********************/
-#define USB_OTG_GRSTCTL_CSRST_Pos (0U)
-#define USB_OTG_GRSTCTL_CSRST_Msk (0x1UL << USB_OTG_GRSTCTL_CSRST_Pos) /*!< 0x00000001 */
-#define USB_OTG_GRSTCTL_CSRST USB_OTG_GRSTCTL_CSRST_Msk /*!< Core soft reset */
-#define USB_OTG_GRSTCTL_HSRST_Pos (1U)
-#define USB_OTG_GRSTCTL_HSRST_Msk (0x1UL << USB_OTG_GRSTCTL_HSRST_Pos) /*!< 0x00000002 */
-#define USB_OTG_GRSTCTL_HSRST USB_OTG_GRSTCTL_HSRST_Msk /*!< HCLK soft reset */
-#define USB_OTG_GRSTCTL_FCRST_Pos (2U)
-#define USB_OTG_GRSTCTL_FCRST_Msk (0x1UL << USB_OTG_GRSTCTL_FCRST_Pos) /*!< 0x00000004 */
-#define USB_OTG_GRSTCTL_FCRST USB_OTG_GRSTCTL_FCRST_Msk /*!< Host frame counter reset */
-#define USB_OTG_GRSTCTL_RXFFLSH_Pos (4U)
-#define USB_OTG_GRSTCTL_RXFFLSH_Msk (0x1UL << USB_OTG_GRSTCTL_RXFFLSH_Pos) /*!< 0x00000010 */
-#define USB_OTG_GRSTCTL_RXFFLSH USB_OTG_GRSTCTL_RXFFLSH_Msk /*!< RxFIFO flush */
-#define USB_OTG_GRSTCTL_TXFFLSH_Pos (5U)
-#define USB_OTG_GRSTCTL_TXFFLSH_Msk (0x1UL << USB_OTG_GRSTCTL_TXFFLSH_Pos) /*!< 0x00000020 */
-#define USB_OTG_GRSTCTL_TXFFLSH USB_OTG_GRSTCTL_TXFFLSH_Msk /*!< TxFIFO flush */
-
-
-#define USB_OTG_GRSTCTL_TXFNUM_Pos (6U)
-#define USB_OTG_GRSTCTL_TXFNUM_Msk (0x1FUL << USB_OTG_GRSTCTL_TXFNUM_Pos) /*!< 0x000007C0 */
-#define USB_OTG_GRSTCTL_TXFNUM USB_OTG_GRSTCTL_TXFNUM_Msk /*!< TxFIFO number */
-#define USB_OTG_GRSTCTL_TXFNUM_0 (0x01UL << USB_OTG_GRSTCTL_TXFNUM_Pos) /*!< 0x00000040 */
-#define USB_OTG_GRSTCTL_TXFNUM_1 (0x02UL << USB_OTG_GRSTCTL_TXFNUM_Pos) /*!< 0x00000080 */
-#define USB_OTG_GRSTCTL_TXFNUM_2 (0x04UL << USB_OTG_GRSTCTL_TXFNUM_Pos) /*!< 0x00000100 */
-#define USB_OTG_GRSTCTL_TXFNUM_3 (0x08UL << USB_OTG_GRSTCTL_TXFNUM_Pos) /*!< 0x00000200 */
-#define USB_OTG_GRSTCTL_TXFNUM_4 (0x10UL << USB_OTG_GRSTCTL_TXFNUM_Pos) /*!< 0x00000400 */
-#define USB_OTG_GRSTCTL_DMAREQ_Pos (30U)
-#define USB_OTG_GRSTCTL_DMAREQ_Msk (0x1UL << USB_OTG_GRSTCTL_DMAREQ_Pos) /*!< 0x40000000 */
-#define USB_OTG_GRSTCTL_DMAREQ USB_OTG_GRSTCTL_DMAREQ_Msk /*!< DMA request signal */
-#define USB_OTG_GRSTCTL_AHBIDL_Pos (31U)
-#define USB_OTG_GRSTCTL_AHBIDL_Msk (0x1UL << USB_OTG_GRSTCTL_AHBIDL_Pos) /*!< 0x80000000 */
-#define USB_OTG_GRSTCTL_AHBIDL USB_OTG_GRSTCTL_AHBIDL_Msk /*!< AHB master idle */
-
-/******************** Bit definition for USB_OTG_DIEPMSK register ********************/
-#define USB_OTG_DIEPMSK_XFRCM_Pos (0U)
-#define USB_OTG_DIEPMSK_XFRCM_Msk (0x1UL << USB_OTG_DIEPMSK_XFRCM_Pos) /*!< 0x00000001 */
-#define USB_OTG_DIEPMSK_XFRCM USB_OTG_DIEPMSK_XFRCM_Msk /*!< Transfer completed interrupt mask */
-#define USB_OTG_DIEPMSK_EPDM_Pos (1U)
-#define USB_OTG_DIEPMSK_EPDM_Msk (0x1UL << USB_OTG_DIEPMSK_EPDM_Pos) /*!< 0x00000002 */
-#define USB_OTG_DIEPMSK_EPDM USB_OTG_DIEPMSK_EPDM_Msk /*!< Endpoint disabled interrupt mask */
-#define USB_OTG_DIEPMSK_TOM_Pos (3U)
-#define USB_OTG_DIEPMSK_TOM_Msk (0x1UL << USB_OTG_DIEPMSK_TOM_Pos) /*!< 0x00000008 */
-#define USB_OTG_DIEPMSK_TOM USB_OTG_DIEPMSK_TOM_Msk /*!< Timeout condition mask (nonisochronous endpoints) */
-#define USB_OTG_DIEPMSK_ITTXFEMSK_Pos (4U)
-#define USB_OTG_DIEPMSK_ITTXFEMSK_Msk (0x1UL << USB_OTG_DIEPMSK_ITTXFEMSK_Pos) /*!< 0x00000010 */
-#define USB_OTG_DIEPMSK_ITTXFEMSK USB_OTG_DIEPMSK_ITTXFEMSK_Msk /*!< IN token received when TxFIFO empty mask */
-#define USB_OTG_DIEPMSK_INEPNMM_Pos (5U)
-#define USB_OTG_DIEPMSK_INEPNMM_Msk (0x1UL << USB_OTG_DIEPMSK_INEPNMM_Pos) /*!< 0x00000020 */
-#define USB_OTG_DIEPMSK_INEPNMM USB_OTG_DIEPMSK_INEPNMM_Msk /*!< IN token received with EP mismatch mask */
-#define USB_OTG_DIEPMSK_INEPNEM_Pos (6U)
-#define USB_OTG_DIEPMSK_INEPNEM_Msk (0x1UL << USB_OTG_DIEPMSK_INEPNEM_Pos) /*!< 0x00000040 */
-#define USB_OTG_DIEPMSK_INEPNEM USB_OTG_DIEPMSK_INEPNEM_Msk /*!< IN endpoint NAK effective mask */
-#define USB_OTG_DIEPMSK_TXFURM_Pos (8U)
-#define USB_OTG_DIEPMSK_TXFURM_Msk (0x1UL << USB_OTG_DIEPMSK_TXFURM_Pos) /*!< 0x00000100 */
-#define USB_OTG_DIEPMSK_TXFURM USB_OTG_DIEPMSK_TXFURM_Msk /*!< FIFO underrun mask */
-#define USB_OTG_DIEPMSK_BIM_Pos (9U)
-#define USB_OTG_DIEPMSK_BIM_Msk (0x1UL << USB_OTG_DIEPMSK_BIM_Pos) /*!< 0x00000200 */
-#define USB_OTG_DIEPMSK_BIM USB_OTG_DIEPMSK_BIM_Msk /*!< BNA interrupt mask */
-
-/******************** Bit definition for USB_OTG_HPTXSTS register ********************/
-#define USB_OTG_HPTXSTS_PTXFSAVL_Pos (0U)
-#define USB_OTG_HPTXSTS_PTXFSAVL_Msk (0xFFFFUL << USB_OTG_HPTXSTS_PTXFSAVL_Pos) /*!< 0x0000FFFF */
-#define USB_OTG_HPTXSTS_PTXFSAVL USB_OTG_HPTXSTS_PTXFSAVL_Msk /*!< Periodic transmit data FIFO space available */
-#define USB_OTG_HPTXSTS_PTXQSAV_Pos (16U)
-#define USB_OTG_HPTXSTS_PTXQSAV_Msk (0xFFUL << USB_OTG_HPTXSTS_PTXQSAV_Pos) /*!< 0x00FF0000 */
-#define USB_OTG_HPTXSTS_PTXQSAV USB_OTG_HPTXSTS_PTXQSAV_Msk /*!< Periodic transmit request queue space available */
-#define USB_OTG_HPTXSTS_PTXQSAV_0 (0x01UL << USB_OTG_HPTXSTS_PTXQSAV_Pos) /*!< 0x00010000 */
-#define USB_OTG_HPTXSTS_PTXQSAV_1 (0x02UL << USB_OTG_HPTXSTS_PTXQSAV_Pos) /*!< 0x00020000 */
-#define USB_OTG_HPTXSTS_PTXQSAV_2 (0x04UL << USB_OTG_HPTXSTS_PTXQSAV_Pos) /*!< 0x00040000 */
-#define USB_OTG_HPTXSTS_PTXQSAV_3 (0x08UL << USB_OTG_HPTXSTS_PTXQSAV_Pos) /*!< 0x00080000 */
-#define USB_OTG_HPTXSTS_PTXQSAV_4 (0x10UL << USB_OTG_HPTXSTS_PTXQSAV_Pos) /*!< 0x00100000 */
-#define USB_OTG_HPTXSTS_PTXQSAV_5 (0x20UL << USB_OTG_HPTXSTS_PTXQSAV_Pos) /*!< 0x00200000 */
-#define USB_OTG_HPTXSTS_PTXQSAV_6 (0x40UL << USB_OTG_HPTXSTS_PTXQSAV_Pos) /*!< 0x00400000 */
-#define USB_OTG_HPTXSTS_PTXQSAV_7 (0x80UL << USB_OTG_HPTXSTS_PTXQSAV_Pos) /*!< 0x00800000 */
-
-#define USB_OTG_HPTXSTS_PTXQTOP_Pos (24U)
-#define USB_OTG_HPTXSTS_PTXQTOP_Msk (0xFFUL << USB_OTG_HPTXSTS_PTXQTOP_Pos) /*!< 0xFF000000 */
-#define USB_OTG_HPTXSTS_PTXQTOP USB_OTG_HPTXSTS_PTXQTOP_Msk /*!< Top of the periodic transmit request queue */
-#define USB_OTG_HPTXSTS_PTXQTOP_0 (0x01UL << USB_OTG_HPTXSTS_PTXQTOP_Pos) /*!< 0x01000000 */
-#define USB_OTG_HPTXSTS_PTXQTOP_1 (0x02UL << USB_OTG_HPTXSTS_PTXQTOP_Pos) /*!< 0x02000000 */
-#define USB_OTG_HPTXSTS_PTXQTOP_2 (0x04UL << USB_OTG_HPTXSTS_PTXQTOP_Pos) /*!< 0x04000000 */
-#define USB_OTG_HPTXSTS_PTXQTOP_3 (0x08UL << USB_OTG_HPTXSTS_PTXQTOP_Pos) /*!< 0x08000000 */
-#define USB_OTG_HPTXSTS_PTXQTOP_4 (0x10UL << USB_OTG_HPTXSTS_PTXQTOP_Pos) /*!< 0x10000000 */
-#define USB_OTG_HPTXSTS_PTXQTOP_5 (0x20UL << USB_OTG_HPTXSTS_PTXQTOP_Pos) /*!< 0x20000000 */
-#define USB_OTG_HPTXSTS_PTXQTOP_6 (0x40UL << USB_OTG_HPTXSTS_PTXQTOP_Pos) /*!< 0x40000000 */
-#define USB_OTG_HPTXSTS_PTXQTOP_7 (0x80UL << USB_OTG_HPTXSTS_PTXQTOP_Pos) /*!< 0x80000000 */
-
-/******************** Bit definition for USB_OTG_HAINT register ********************/
-#define USB_OTG_HAINT_HAINT_Pos (0U)
-#define USB_OTG_HAINT_HAINT_Msk (0xFFFFUL << USB_OTG_HAINT_HAINT_Pos) /*!< 0x0000FFFF */
-#define USB_OTG_HAINT_HAINT USB_OTG_HAINT_HAINT_Msk /*!< Channel interrupts */
-
-/******************** Bit definition for USB_OTG_DOEPMSK register ********************/
-#define USB_OTG_DOEPMSK_XFRCM_Pos (0U)
-#define USB_OTG_DOEPMSK_XFRCM_Msk (0x1UL << USB_OTG_DOEPMSK_XFRCM_Pos) /*!< 0x00000001 */
-#define USB_OTG_DOEPMSK_XFRCM USB_OTG_DOEPMSK_XFRCM_Msk /*!< Transfer completed interrupt mask */
-#define USB_OTG_DOEPMSK_EPDM_Pos (1U)
-#define USB_OTG_DOEPMSK_EPDM_Msk (0x1UL << USB_OTG_DOEPMSK_EPDM_Pos) /*!< 0x00000002 */
-#define USB_OTG_DOEPMSK_EPDM USB_OTG_DOEPMSK_EPDM_Msk /*!< Endpoint disabled interrupt mask */
-#define USB_OTG_DOEPMSK_AHBERRM_Pos (2U)
-#define USB_OTG_DOEPMSK_AHBERRM_Msk (0x1UL << USB_OTG_DOEPMSK_AHBERRM_Pos) /*!< 0x00000004 */
-#define USB_OTG_DOEPMSK_AHBERRM USB_OTG_DOEPMSK_AHBERRM_Msk /*!< OUT transaction AHB Error interrupt mask */
-#define USB_OTG_DOEPMSK_STUPM_Pos (3U)
-#define USB_OTG_DOEPMSK_STUPM_Msk (0x1UL << USB_OTG_DOEPMSK_STUPM_Pos) /*!< 0x00000008 */
-#define USB_OTG_DOEPMSK_STUPM USB_OTG_DOEPMSK_STUPM_Msk /*!< SETUP phase done mask */
-#define USB_OTG_DOEPMSK_OTEPDM_Pos (4U)
-#define USB_OTG_DOEPMSK_OTEPDM_Msk (0x1UL << USB_OTG_DOEPMSK_OTEPDM_Pos) /*!< 0x00000010 */
-#define USB_OTG_DOEPMSK_OTEPDM USB_OTG_DOEPMSK_OTEPDM_Msk /*!< OUT token received when endpoint disabled mask */
-#define USB_OTG_DOEPMSK_OTEPSPRM_Pos (5U)
-#define USB_OTG_DOEPMSK_OTEPSPRM_Msk (0x1UL << USB_OTG_DOEPMSK_OTEPSPRM_Pos) /*!< 0x00000020 */
-#define USB_OTG_DOEPMSK_OTEPSPRM USB_OTG_DOEPMSK_OTEPSPRM_Msk /*!< Status Phase Received mask */
-#define USB_OTG_DOEPMSK_B2BSTUP_Pos (6U)
-#define USB_OTG_DOEPMSK_B2BSTUP_Msk (0x1UL << USB_OTG_DOEPMSK_B2BSTUP_Pos) /*!< 0x00000040 */
-#define USB_OTG_DOEPMSK_B2BSTUP USB_OTG_DOEPMSK_B2BSTUP_Msk /*!< Back-to-back SETUP packets received mask */
-#define USB_OTG_DOEPMSK_OPEM_Pos (8U)
-#define USB_OTG_DOEPMSK_OPEM_Msk (0x1UL << USB_OTG_DOEPMSK_OPEM_Pos) /*!< 0x00000100 */
-#define USB_OTG_DOEPMSK_OPEM USB_OTG_DOEPMSK_OPEM_Msk /*!< OUT packet error mask */
-#define USB_OTG_DOEPMSK_BOIM_Pos (9U)
-#define USB_OTG_DOEPMSK_BOIM_Msk (0x1UL << USB_OTG_DOEPMSK_BOIM_Pos) /*!< 0x00000200 */
-#define USB_OTG_DOEPMSK_BOIM USB_OTG_DOEPMSK_BOIM_Msk /*!< BNA interrupt mask */
-#define USB_OTG_DOEPMSK_BERRM_Pos (12U)
-#define USB_OTG_DOEPMSK_BERRM_Msk (0x1UL << USB_OTG_DOEPMSK_BERRM_Pos) /*!< 0x00001000 */
-#define USB_OTG_DOEPMSK_BERRM USB_OTG_DOEPMSK_BERRM_Msk /*!< Babble error interrupt mask */
-#define USB_OTG_DOEPMSK_NAKM_Pos (13U)
-#define USB_OTG_DOEPMSK_NAKM_Msk (0x1UL << USB_OTG_DOEPMSK_NAKM_Pos) /*!< 0x00002000 */
-#define USB_OTG_DOEPMSK_NAKM USB_OTG_DOEPMSK_NAKM_Msk /*!< OUT Packet NAK interrupt mask */
-#define USB_OTG_DOEPMSK_NYETM_Pos (14U)
-#define USB_OTG_DOEPMSK_NYETM_Msk (0x1UL << USB_OTG_DOEPMSK_NYETM_Pos) /*!< 0x00004000 */
-#define USB_OTG_DOEPMSK_NYETM USB_OTG_DOEPMSK_NYETM_Msk /*!< NYET interrupt mask */
-/******************** Bit definition for USB_OTG_GINTSTS register ********************/
-#define USB_OTG_GINTSTS_CMOD_Pos (0U)
-#define USB_OTG_GINTSTS_CMOD_Msk (0x1UL << USB_OTG_GINTSTS_CMOD_Pos) /*!< 0x00000001 */
-#define USB_OTG_GINTSTS_CMOD USB_OTG_GINTSTS_CMOD_Msk /*!< Current mode of operation */
-#define USB_OTG_GINTSTS_MMIS_Pos (1U)
-#define USB_OTG_GINTSTS_MMIS_Msk (0x1UL << USB_OTG_GINTSTS_MMIS_Pos) /*!< 0x00000002 */
-#define USB_OTG_GINTSTS_MMIS USB_OTG_GINTSTS_MMIS_Msk /*!< Mode mismatch interrupt */
-#define USB_OTG_GINTSTS_OTGINT_Pos (2U)
-#define USB_OTG_GINTSTS_OTGINT_Msk (0x1UL << USB_OTG_GINTSTS_OTGINT_Pos) /*!< 0x00000004 */
-#define USB_OTG_GINTSTS_OTGINT USB_OTG_GINTSTS_OTGINT_Msk /*!< OTG interrupt */
-#define USB_OTG_GINTSTS_SOF_Pos (3U)
-#define USB_OTG_GINTSTS_SOF_Msk (0x1UL << USB_OTG_GINTSTS_SOF_Pos) /*!< 0x00000008 */
-#define USB_OTG_GINTSTS_SOF USB_OTG_GINTSTS_SOF_Msk /*!< Start of frame */
-#define USB_OTG_GINTSTS_RXFLVL_Pos (4U)
-#define USB_OTG_GINTSTS_RXFLVL_Msk (0x1UL << USB_OTG_GINTSTS_RXFLVL_Pos) /*!< 0x00000010 */
-#define USB_OTG_GINTSTS_RXFLVL USB_OTG_GINTSTS_RXFLVL_Msk /*!< RxFIFO nonempty */
-#define USB_OTG_GINTSTS_NPTXFE_Pos (5U)
-#define USB_OTG_GINTSTS_NPTXFE_Msk (0x1UL << USB_OTG_GINTSTS_NPTXFE_Pos) /*!< 0x00000020 */
-#define USB_OTG_GINTSTS_NPTXFE USB_OTG_GINTSTS_NPTXFE_Msk /*!< Nonperiodic TxFIFO empty */
-#define USB_OTG_GINTSTS_GINAKEFF_Pos (6U)
-#define USB_OTG_GINTSTS_GINAKEFF_Msk (0x1UL << USB_OTG_GINTSTS_GINAKEFF_Pos) /*!< 0x00000040 */
-#define USB_OTG_GINTSTS_GINAKEFF USB_OTG_GINTSTS_GINAKEFF_Msk /*!< Global IN nonperiodic NAK effective */
-#define USB_OTG_GINTSTS_BOUTNAKEFF_Pos (7U)
-#define USB_OTG_GINTSTS_BOUTNAKEFF_Msk (0x1UL << USB_OTG_GINTSTS_BOUTNAKEFF_Pos) /*!< 0x00000080 */
-#define USB_OTG_GINTSTS_BOUTNAKEFF USB_OTG_GINTSTS_BOUTNAKEFF_Msk /*!< Global OUT NAK effective */
-#define USB_OTG_GINTSTS_ESUSP_Pos (10U)
-#define USB_OTG_GINTSTS_ESUSP_Msk (0x1UL << USB_OTG_GINTSTS_ESUSP_Pos) /*!< 0x00000400 */
-#define USB_OTG_GINTSTS_ESUSP USB_OTG_GINTSTS_ESUSP_Msk /*!< Early suspend */
-#define USB_OTG_GINTSTS_USBSUSP_Pos (11U)
-#define USB_OTG_GINTSTS_USBSUSP_Msk (0x1UL << USB_OTG_GINTSTS_USBSUSP_Pos) /*!< 0x00000800 */
-#define USB_OTG_GINTSTS_USBSUSP USB_OTG_GINTSTS_USBSUSP_Msk /*!< USB suspend */
-#define USB_OTG_GINTSTS_USBRST_Pos (12U)
-#define USB_OTG_GINTSTS_USBRST_Msk (0x1UL << USB_OTG_GINTSTS_USBRST_Pos) /*!< 0x00001000 */
-#define USB_OTG_GINTSTS_USBRST USB_OTG_GINTSTS_USBRST_Msk /*!< USB reset */
-#define USB_OTG_GINTSTS_ENUMDNE_Pos (13U)
-#define USB_OTG_GINTSTS_ENUMDNE_Msk (0x1UL << USB_OTG_GINTSTS_ENUMDNE_Pos) /*!< 0x00002000 */
-#define USB_OTG_GINTSTS_ENUMDNE USB_OTG_GINTSTS_ENUMDNE_Msk /*!< Enumeration done */
-#define USB_OTG_GINTSTS_ISOODRP_Pos (14U)
-#define USB_OTG_GINTSTS_ISOODRP_Msk (0x1UL << USB_OTG_GINTSTS_ISOODRP_Pos) /*!< 0x00004000 */
-#define USB_OTG_GINTSTS_ISOODRP USB_OTG_GINTSTS_ISOODRP_Msk /*!< Isochronous OUT packet dropped interrupt */
-#define USB_OTG_GINTSTS_EOPF_Pos (15U)
-#define USB_OTG_GINTSTS_EOPF_Msk (0x1UL << USB_OTG_GINTSTS_EOPF_Pos) /*!< 0x00008000 */
-#define USB_OTG_GINTSTS_EOPF USB_OTG_GINTSTS_EOPF_Msk /*!< End of periodic frame interrupt */
-#define USB_OTG_GINTSTS_IEPINT_Pos (18U)
-#define USB_OTG_GINTSTS_IEPINT_Msk (0x1UL << USB_OTG_GINTSTS_IEPINT_Pos) /*!< 0x00040000 */
-#define USB_OTG_GINTSTS_IEPINT USB_OTG_GINTSTS_IEPINT_Msk /*!< IN endpoint interrupt */
-#define USB_OTG_GINTSTS_OEPINT_Pos (19U)
-#define USB_OTG_GINTSTS_OEPINT_Msk (0x1UL << USB_OTG_GINTSTS_OEPINT_Pos) /*!< 0x00080000 */
-#define USB_OTG_GINTSTS_OEPINT USB_OTG_GINTSTS_OEPINT_Msk /*!< OUT endpoint interrupt */
-#define USB_OTG_GINTSTS_IISOIXFR_Pos (20U)
-#define USB_OTG_GINTSTS_IISOIXFR_Msk (0x1UL << USB_OTG_GINTSTS_IISOIXFR_Pos) /*!< 0x00100000 */
-#define USB_OTG_GINTSTS_IISOIXFR USB_OTG_GINTSTS_IISOIXFR_Msk /*!< Incomplete isochronous IN transfer */
-#define USB_OTG_GINTSTS_PXFR_INCOMPISOOUT_Pos (21U)
-#define USB_OTG_GINTSTS_PXFR_INCOMPISOOUT_Msk (0x1UL << USB_OTG_GINTSTS_PXFR_INCOMPISOOUT_Pos) /*!< 0x00200000 */
-#define USB_OTG_GINTSTS_PXFR_INCOMPISOOUT USB_OTG_GINTSTS_PXFR_INCOMPISOOUT_Msk /*!< Incomplete periodic transfer */
-#define USB_OTG_GINTSTS_DATAFSUSP_Pos (22U)
-#define USB_OTG_GINTSTS_DATAFSUSP_Msk (0x1UL << USB_OTG_GINTSTS_DATAFSUSP_Pos) /*!< 0x00400000 */
-#define USB_OTG_GINTSTS_DATAFSUSP USB_OTG_GINTSTS_DATAFSUSP_Msk /*!< Data fetch suspended */
-#define USB_OTG_GINTSTS_HPRTINT_Pos (24U)
-#define USB_OTG_GINTSTS_HPRTINT_Msk (0x1UL << USB_OTG_GINTSTS_HPRTINT_Pos) /*!< 0x01000000 */
-#define USB_OTG_GINTSTS_HPRTINT USB_OTG_GINTSTS_HPRTINT_Msk /*!< Host port interrupt */
-#define USB_OTG_GINTSTS_HCINT_Pos (25U)
-#define USB_OTG_GINTSTS_HCINT_Msk (0x1UL << USB_OTG_GINTSTS_HCINT_Pos) /*!< 0x02000000 */
-#define USB_OTG_GINTSTS_HCINT USB_OTG_GINTSTS_HCINT_Msk /*!< Host channels interrupt */
-#define USB_OTG_GINTSTS_PTXFE_Pos (26U)
-#define USB_OTG_GINTSTS_PTXFE_Msk (0x1UL << USB_OTG_GINTSTS_PTXFE_Pos) /*!< 0x04000000 */
-#define USB_OTG_GINTSTS_PTXFE USB_OTG_GINTSTS_PTXFE_Msk /*!< Periodic TxFIFO empty */
-#define USB_OTG_GINTSTS_CIDSCHG_Pos (28U)
-#define USB_OTG_GINTSTS_CIDSCHG_Msk (0x1UL << USB_OTG_GINTSTS_CIDSCHG_Pos) /*!< 0x10000000 */
-#define USB_OTG_GINTSTS_CIDSCHG USB_OTG_GINTSTS_CIDSCHG_Msk /*!< Connector ID status change */
-#define USB_OTG_GINTSTS_DISCINT_Pos (29U)
-#define USB_OTG_GINTSTS_DISCINT_Msk (0x1UL << USB_OTG_GINTSTS_DISCINT_Pos) /*!< 0x20000000 */
-#define USB_OTG_GINTSTS_DISCINT USB_OTG_GINTSTS_DISCINT_Msk /*!< Disconnect detected interrupt */
-#define USB_OTG_GINTSTS_SRQINT_Pos (30U)
-#define USB_OTG_GINTSTS_SRQINT_Msk (0x1UL << USB_OTG_GINTSTS_SRQINT_Pos) /*!< 0x40000000 */
-#define USB_OTG_GINTSTS_SRQINT USB_OTG_GINTSTS_SRQINT_Msk /*!< Session request/new session detected interrupt */
-#define USB_OTG_GINTSTS_WKUINT_Pos (31U)
-#define USB_OTG_GINTSTS_WKUINT_Msk (0x1UL << USB_OTG_GINTSTS_WKUINT_Pos) /*!< 0x80000000 */
-#define USB_OTG_GINTSTS_WKUINT USB_OTG_GINTSTS_WKUINT_Msk /*!< Resume/remote wakeup detected interrupt */
-
-/******************** Bit definition for USB_OTG_GINTMSK register ********************/
-#define USB_OTG_GINTMSK_MMISM_Pos (1U)
-#define USB_OTG_GINTMSK_MMISM_Msk (0x1UL << USB_OTG_GINTMSK_MMISM_Pos) /*!< 0x00000002 */
-#define USB_OTG_GINTMSK_MMISM USB_OTG_GINTMSK_MMISM_Msk /*!< Mode mismatch interrupt mask */
-#define USB_OTG_GINTMSK_OTGINT_Pos (2U)
-#define USB_OTG_GINTMSK_OTGINT_Msk (0x1UL << USB_OTG_GINTMSK_OTGINT_Pos) /*!< 0x00000004 */
-#define USB_OTG_GINTMSK_OTGINT USB_OTG_GINTMSK_OTGINT_Msk /*!< OTG interrupt mask */
-#define USB_OTG_GINTMSK_SOFM_Pos (3U)
-#define USB_OTG_GINTMSK_SOFM_Msk (0x1UL << USB_OTG_GINTMSK_SOFM_Pos) /*!< 0x00000008 */
-#define USB_OTG_GINTMSK_SOFM USB_OTG_GINTMSK_SOFM_Msk /*!< Start of frame mask */
-#define USB_OTG_GINTMSK_RXFLVLM_Pos (4U)
-#define USB_OTG_GINTMSK_RXFLVLM_Msk (0x1UL << USB_OTG_GINTMSK_RXFLVLM_Pos) /*!< 0x00000010 */
-#define USB_OTG_GINTMSK_RXFLVLM USB_OTG_GINTMSK_RXFLVLM_Msk /*!< Receive FIFO nonempty mask */
-#define USB_OTG_GINTMSK_NPTXFEM_Pos (5U)
-#define USB_OTG_GINTMSK_NPTXFEM_Msk (0x1UL << USB_OTG_GINTMSK_NPTXFEM_Pos) /*!< 0x00000020 */
-#define USB_OTG_GINTMSK_NPTXFEM USB_OTG_GINTMSK_NPTXFEM_Msk /*!< Nonperiodic TxFIFO empty mask */
-#define USB_OTG_GINTMSK_GINAKEFFM_Pos (6U)
-#define USB_OTG_GINTMSK_GINAKEFFM_Msk (0x1UL << USB_OTG_GINTMSK_GINAKEFFM_Pos) /*!< 0x00000040 */
-#define USB_OTG_GINTMSK_GINAKEFFM USB_OTG_GINTMSK_GINAKEFFM_Msk /*!< Global nonperiodic IN NAK effective mask */
-#define USB_OTG_GINTMSK_GONAKEFFM_Pos (7U)
-#define USB_OTG_GINTMSK_GONAKEFFM_Msk (0x1UL << USB_OTG_GINTMSK_GONAKEFFM_Pos) /*!< 0x00000080 */
-#define USB_OTG_GINTMSK_GONAKEFFM USB_OTG_GINTMSK_GONAKEFFM_Msk /*!< Global OUT NAK effective mask */
-#define USB_OTG_GINTMSK_ESUSPM_Pos (10U)
-#define USB_OTG_GINTMSK_ESUSPM_Msk (0x1UL << USB_OTG_GINTMSK_ESUSPM_Pos) /*!< 0x00000400 */
-#define USB_OTG_GINTMSK_ESUSPM USB_OTG_GINTMSK_ESUSPM_Msk /*!< Early suspend mask */
-#define USB_OTG_GINTMSK_USBSUSPM_Pos (11U)
-#define USB_OTG_GINTMSK_USBSUSPM_Msk (0x1UL << USB_OTG_GINTMSK_USBSUSPM_Pos) /*!< 0x00000800 */
-#define USB_OTG_GINTMSK_USBSUSPM USB_OTG_GINTMSK_USBSUSPM_Msk /*!< USB suspend mask */
-#define USB_OTG_GINTMSK_USBRST_Pos (12U)
-#define USB_OTG_GINTMSK_USBRST_Msk (0x1UL << USB_OTG_GINTMSK_USBRST_Pos) /*!< 0x00001000 */
-#define USB_OTG_GINTMSK_USBRST USB_OTG_GINTMSK_USBRST_Msk /*!< USB reset mask */
-#define USB_OTG_GINTMSK_ENUMDNEM_Pos (13U)
-#define USB_OTG_GINTMSK_ENUMDNEM_Msk (0x1UL << USB_OTG_GINTMSK_ENUMDNEM_Pos) /*!< 0x00002000 */
-#define USB_OTG_GINTMSK_ENUMDNEM USB_OTG_GINTMSK_ENUMDNEM_Msk /*!< Enumeration done mask */
-#define USB_OTG_GINTMSK_ISOODRPM_Pos (14U)
-#define USB_OTG_GINTMSK_ISOODRPM_Msk (0x1UL << USB_OTG_GINTMSK_ISOODRPM_Pos) /*!< 0x00004000 */
-#define USB_OTG_GINTMSK_ISOODRPM USB_OTG_GINTMSK_ISOODRPM_Msk /*!< Isochronous OUT packet dropped interrupt mask */
-#define USB_OTG_GINTMSK_EOPFM_Pos (15U)
-#define USB_OTG_GINTMSK_EOPFM_Msk (0x1UL << USB_OTG_GINTMSK_EOPFM_Pos) /*!< 0x00008000 */
-#define USB_OTG_GINTMSK_EOPFM USB_OTG_GINTMSK_EOPFM_Msk /*!< End of periodic frame interrupt mask */
-#define USB_OTG_GINTMSK_EPMISM_Pos (17U)
-#define USB_OTG_GINTMSK_EPMISM_Msk (0x1UL << USB_OTG_GINTMSK_EPMISM_Pos) /*!< 0x00020000 */
-#define USB_OTG_GINTMSK_EPMISM USB_OTG_GINTMSK_EPMISM_Msk /*!< Endpoint mismatch interrupt mask */
-#define USB_OTG_GINTMSK_IEPINT_Pos (18U)
-#define USB_OTG_GINTMSK_IEPINT_Msk (0x1UL << USB_OTG_GINTMSK_IEPINT_Pos) /*!< 0x00040000 */
-#define USB_OTG_GINTMSK_IEPINT USB_OTG_GINTMSK_IEPINT_Msk /*!< IN endpoints interrupt mask */
-#define USB_OTG_GINTMSK_OEPINT_Pos (19U)
-#define USB_OTG_GINTMSK_OEPINT_Msk (0x1UL << USB_OTG_GINTMSK_OEPINT_Pos) /*!< 0x00080000 */
-#define USB_OTG_GINTMSK_OEPINT USB_OTG_GINTMSK_OEPINT_Msk /*!< OUT endpoints interrupt mask */
-#define USB_OTG_GINTMSK_IISOIXFRM_Pos (20U)
-#define USB_OTG_GINTMSK_IISOIXFRM_Msk (0x1UL << USB_OTG_GINTMSK_IISOIXFRM_Pos) /*!< 0x00100000 */
-#define USB_OTG_GINTMSK_IISOIXFRM USB_OTG_GINTMSK_IISOIXFRM_Msk /*!< Incomplete isochronous IN transfer mask */
-#define USB_OTG_GINTMSK_PXFRM_IISOOXFRM_Pos (21U)
-#define USB_OTG_GINTMSK_PXFRM_IISOOXFRM_Msk (0x1UL << USB_OTG_GINTMSK_PXFRM_IISOOXFRM_Pos) /*!< 0x00200000 */
-#define USB_OTG_GINTMSK_PXFRM_IISOOXFRM USB_OTG_GINTMSK_PXFRM_IISOOXFRM_Msk /*!< Incomplete periodic transfer mask */
-#define USB_OTG_GINTMSK_FSUSPM_Pos (22U)
-#define USB_OTG_GINTMSK_FSUSPM_Msk (0x1UL << USB_OTG_GINTMSK_FSUSPM_Pos) /*!< 0x00400000 */
-#define USB_OTG_GINTMSK_FSUSPM USB_OTG_GINTMSK_FSUSPM_Msk /*!< Data fetch suspended mask */
-#define USB_OTG_GINTMSK_PRTIM_Pos (24U)
-#define USB_OTG_GINTMSK_PRTIM_Msk (0x1UL << USB_OTG_GINTMSK_PRTIM_Pos) /*!< 0x01000000 */
-#define USB_OTG_GINTMSK_PRTIM USB_OTG_GINTMSK_PRTIM_Msk /*!< Host port interrupt mask */
-#define USB_OTG_GINTMSK_HCIM_Pos (25U)
-#define USB_OTG_GINTMSK_HCIM_Msk (0x1UL << USB_OTG_GINTMSK_HCIM_Pos) /*!< 0x02000000 */
-#define USB_OTG_GINTMSK_HCIM USB_OTG_GINTMSK_HCIM_Msk /*!< Host channels interrupt mask */
-#define USB_OTG_GINTMSK_PTXFEM_Pos (26U)
-#define USB_OTG_GINTMSK_PTXFEM_Msk (0x1UL << USB_OTG_GINTMSK_PTXFEM_Pos) /*!< 0x04000000 */
-#define USB_OTG_GINTMSK_PTXFEM USB_OTG_GINTMSK_PTXFEM_Msk /*!< Periodic TxFIFO empty mask */
-#define USB_OTG_GINTMSK_CIDSCHGM_Pos (28U)
-#define USB_OTG_GINTMSK_CIDSCHGM_Msk (0x1UL << USB_OTG_GINTMSK_CIDSCHGM_Pos) /*!< 0x10000000 */
-#define USB_OTG_GINTMSK_CIDSCHGM USB_OTG_GINTMSK_CIDSCHGM_Msk /*!< Connector ID status change mask */
-#define USB_OTG_GINTMSK_DISCINT_Pos (29U)
-#define USB_OTG_GINTMSK_DISCINT_Msk (0x1UL << USB_OTG_GINTMSK_DISCINT_Pos) /*!< 0x20000000 */
-#define USB_OTG_GINTMSK_DISCINT USB_OTG_GINTMSK_DISCINT_Msk /*!< Disconnect detected interrupt mask */
-#define USB_OTG_GINTMSK_SRQIM_Pos (30U)
-#define USB_OTG_GINTMSK_SRQIM_Msk (0x1UL << USB_OTG_GINTMSK_SRQIM_Pos) /*!< 0x40000000 */
-#define USB_OTG_GINTMSK_SRQIM USB_OTG_GINTMSK_SRQIM_Msk /*!< Session request/new session detected interrupt mask */
-#define USB_OTG_GINTMSK_WUIM_Pos (31U)
-#define USB_OTG_GINTMSK_WUIM_Msk (0x1UL << USB_OTG_GINTMSK_WUIM_Pos) /*!< 0x80000000 */
-#define USB_OTG_GINTMSK_WUIM USB_OTG_GINTMSK_WUIM_Msk /*!< Resume/remote wakeup detected interrupt mask */
-
-/******************** Bit definition for USB_OTG_DAINT register ********************/
-#define USB_OTG_DAINT_IEPINT_Pos (0U)
-#define USB_OTG_DAINT_IEPINT_Msk (0xFFFFUL << USB_OTG_DAINT_IEPINT_Pos) /*!< 0x0000FFFF */
-#define USB_OTG_DAINT_IEPINT USB_OTG_DAINT_IEPINT_Msk /*!< IN endpoint interrupt bits */
-#define USB_OTG_DAINT_OEPINT_Pos (16U)
-#define USB_OTG_DAINT_OEPINT_Msk (0xFFFFUL << USB_OTG_DAINT_OEPINT_Pos) /*!< 0xFFFF0000 */
-#define USB_OTG_DAINT_OEPINT USB_OTG_DAINT_OEPINT_Msk /*!< OUT endpoint interrupt bits */
-
-/******************** Bit definition for USB_OTG_HAINTMSK register ********************/
-#define USB_OTG_HAINTMSK_HAINTM_Pos (0U)
-#define USB_OTG_HAINTMSK_HAINTM_Msk (0xFFFFUL << USB_OTG_HAINTMSK_HAINTM_Pos) /*!< 0x0000FFFF */
-#define USB_OTG_HAINTMSK_HAINTM USB_OTG_HAINTMSK_HAINTM_Msk /*!< Channel interrupt mask */
-
-/******************** Bit definition for USB_OTG_GRXSTSP register ********************/
-#define USB_OTG_GRXSTSP_EPNUM_Pos (0U)
-#define USB_OTG_GRXSTSP_EPNUM_Msk (0xFUL << USB_OTG_GRXSTSP_EPNUM_Pos) /*!< 0x0000000F */
-#define USB_OTG_GRXSTSP_EPNUM USB_OTG_GRXSTSP_EPNUM_Msk /*!< IN EP interrupt mask bits */
-#define USB_OTG_GRXSTSP_BCNT_Pos (4U)
-#define USB_OTG_GRXSTSP_BCNT_Msk (0x7FFUL << USB_OTG_GRXSTSP_BCNT_Pos) /*!< 0x00007FF0 */
-#define USB_OTG_GRXSTSP_BCNT USB_OTG_GRXSTSP_BCNT_Msk /*!< OUT EP interrupt mask bits */
-#define USB_OTG_GRXSTSP_DPID_Pos (15U)
-#define USB_OTG_GRXSTSP_DPID_Msk (0x3UL << USB_OTG_GRXSTSP_DPID_Pos) /*!< 0x00018000 */
-#define USB_OTG_GRXSTSP_DPID USB_OTG_GRXSTSP_DPID_Msk /*!< OUT EP interrupt mask bits */
-#define USB_OTG_GRXSTSP_PKTSTS_Pos (17U)
-#define USB_OTG_GRXSTSP_PKTSTS_Msk (0xFUL << USB_OTG_GRXSTSP_PKTSTS_Pos) /*!< 0x001E0000 */
-#define USB_OTG_GRXSTSP_PKTSTS USB_OTG_GRXSTSP_PKTSTS_Msk /*!< OUT EP interrupt mask bits */
-
-/******************** Bit definition for USB_OTG_DAINTMSK register ********************/
-#define USB_OTG_DAINTMSK_IEPM_Pos (0U)
-#define USB_OTG_DAINTMSK_IEPM_Msk (0xFFFFUL << USB_OTG_DAINTMSK_IEPM_Pos) /*!< 0x0000FFFF */
-#define USB_OTG_DAINTMSK_IEPM USB_OTG_DAINTMSK_IEPM_Msk /*!< IN EP interrupt mask bits */
-#define USB_OTG_DAINTMSK_OEPM_Pos (16U)
-#define USB_OTG_DAINTMSK_OEPM_Msk (0xFFFFUL << USB_OTG_DAINTMSK_OEPM_Pos) /*!< 0xFFFF0000 */
-#define USB_OTG_DAINTMSK_OEPM USB_OTG_DAINTMSK_OEPM_Msk /*!< OUT EP interrupt mask bits */
-
-/******************** Bit definition for USB_OTG_GRXFSIZ register ********************/
-#define USB_OTG_GRXFSIZ_RXFD_Pos (0U)
-#define USB_OTG_GRXFSIZ_RXFD_Msk (0xFFFFUL << USB_OTG_GRXFSIZ_RXFD_Pos) /*!< 0x0000FFFF */
-#define USB_OTG_GRXFSIZ_RXFD USB_OTG_GRXFSIZ_RXFD_Msk /*!< RxFIFO depth */
-
-/******************** Bit definition for USB_OTG_DVBUSDIS register ********************/
-#define USB_OTG_DVBUSDIS_VBUSDT_Pos (0U)
-#define USB_OTG_DVBUSDIS_VBUSDT_Msk (0xFFFFUL << USB_OTG_DVBUSDIS_VBUSDT_Pos) /*!< 0x0000FFFF */
-#define USB_OTG_DVBUSDIS_VBUSDT USB_OTG_DVBUSDIS_VBUSDT_Msk /*!< Device VBUS discharge time */
-
-/******************** Bit definition for OTG register ********************/
-#define USB_OTG_NPTXFSA_Pos (0U)
-#define USB_OTG_NPTXFSA_Msk (0xFFFFUL << USB_OTG_NPTXFSA_Pos) /*!< 0x0000FFFF */
-#define USB_OTG_NPTXFSA USB_OTG_NPTXFSA_Msk /*!< Nonperiodic transmit RAM start address */
-#define USB_OTG_NPTXFD_Pos (16U)
-#define USB_OTG_NPTXFD_Msk (0xFFFFUL << USB_OTG_NPTXFD_Pos) /*!< 0xFFFF0000 */
-#define USB_OTG_NPTXFD USB_OTG_NPTXFD_Msk /*!< Nonperiodic TxFIFO depth */
-#define USB_OTG_TX0FSA_Pos (0U)
-#define USB_OTG_TX0FSA_Msk (0xFFFFUL << USB_OTG_TX0FSA_Pos) /*!< 0x0000FFFF */
-#define USB_OTG_TX0FSA USB_OTG_TX0FSA_Msk /*!< Endpoint 0 transmit RAM start address */
-#define USB_OTG_TX0FD_Pos (16U)
-#define USB_OTG_TX0FD_Msk (0xFFFFUL << USB_OTG_TX0FD_Pos) /*!< 0xFFFF0000 */
-#define USB_OTG_TX0FD USB_OTG_TX0FD_Msk /*!< Endpoint 0 TxFIFO depth */
-
-/******************** Bit definition for USB_OTG_DVBUSPULSE register ********************/
-#define USB_OTG_DVBUSPULSE_DVBUSP_Pos (0U)
-#define USB_OTG_DVBUSPULSE_DVBUSP_Msk (0xFFFUL << USB_OTG_DVBUSPULSE_DVBUSP_Pos) /*!< 0x00000FFF */
-#define USB_OTG_DVBUSPULSE_DVBUSP USB_OTG_DVBUSPULSE_DVBUSP_Msk /*!< Device VBUS pulsing time */
-
-/******************** Bit definition for USB_OTG_GNPTXSTS register ********************/
-#define USB_OTG_GNPTXSTS_NPTXFSAV_Pos (0U)
-#define USB_OTG_GNPTXSTS_NPTXFSAV_Msk (0xFFFFUL << USB_OTG_GNPTXSTS_NPTXFSAV_Pos) /*!< 0x0000FFFF */
-#define USB_OTG_GNPTXSTS_NPTXFSAV USB_OTG_GNPTXSTS_NPTXFSAV_Msk /*!< Nonperiodic TxFIFO space available */
-
-#define USB_OTG_GNPTXSTS_NPTQXSAV_Pos (16U)
-#define USB_OTG_GNPTXSTS_NPTQXSAV_Msk (0xFFUL << USB_OTG_GNPTXSTS_NPTQXSAV_Pos) /*!< 0x00FF0000 */
-#define USB_OTG_GNPTXSTS_NPTQXSAV USB_OTG_GNPTXSTS_NPTQXSAV_Msk /*!< Nonperiodic transmit request queue space available */
-#define USB_OTG_GNPTXSTS_NPTQXSAV_0 (0x01UL << USB_OTG_GNPTXSTS_NPTQXSAV_Pos) /*!< 0x00010000 */
-#define USB_OTG_GNPTXSTS_NPTQXSAV_1 (0x02UL << USB_OTG_GNPTXSTS_NPTQXSAV_Pos) /*!< 0x00020000 */
-#define USB_OTG_GNPTXSTS_NPTQXSAV_2 (0x04UL << USB_OTG_GNPTXSTS_NPTQXSAV_Pos) /*!< 0x00040000 */
-#define USB_OTG_GNPTXSTS_NPTQXSAV_3 (0x08UL << USB_OTG_GNPTXSTS_NPTQXSAV_Pos) /*!< 0x00080000 */
-#define USB_OTG_GNPTXSTS_NPTQXSAV_4 (0x10UL << USB_OTG_GNPTXSTS_NPTQXSAV_Pos) /*!< 0x00100000 */
-#define USB_OTG_GNPTXSTS_NPTQXSAV_5 (0x20UL << USB_OTG_GNPTXSTS_NPTQXSAV_Pos) /*!< 0x00200000 */
-#define USB_OTG_GNPTXSTS_NPTQXSAV_6 (0x40UL << USB_OTG_GNPTXSTS_NPTQXSAV_Pos) /*!< 0x00400000 */
-#define USB_OTG_GNPTXSTS_NPTQXSAV_7 (0x80UL << USB_OTG_GNPTXSTS_NPTQXSAV_Pos) /*!< 0x00800000 */
-
-#define USB_OTG_GNPTXSTS_NPTXQTOP_Pos (24U)
-#define USB_OTG_GNPTXSTS_NPTXQTOP_Msk (0x7FUL << USB_OTG_GNPTXSTS_NPTXQTOP_Pos) /*!< 0x7F000000 */
-#define USB_OTG_GNPTXSTS_NPTXQTOP USB_OTG_GNPTXSTS_NPTXQTOP_Msk /*!< Top of the nonperiodic transmit request queue */
-#define USB_OTG_GNPTXSTS_NPTXQTOP_0 (0x01UL << USB_OTG_GNPTXSTS_NPTXQTOP_Pos) /*!< 0x01000000 */
-#define USB_OTG_GNPTXSTS_NPTXQTOP_1 (0x02UL << USB_OTG_GNPTXSTS_NPTXQTOP_Pos) /*!< 0x02000000 */
-#define USB_OTG_GNPTXSTS_NPTXQTOP_2 (0x04UL << USB_OTG_GNPTXSTS_NPTXQTOP_Pos) /*!< 0x04000000 */
-#define USB_OTG_GNPTXSTS_NPTXQTOP_3 (0x08UL << USB_OTG_GNPTXSTS_NPTXQTOP_Pos) /*!< 0x08000000 */
-#define USB_OTG_GNPTXSTS_NPTXQTOP_4 (0x10UL << USB_OTG_GNPTXSTS_NPTXQTOP_Pos) /*!< 0x10000000 */
-#define USB_OTG_GNPTXSTS_NPTXQTOP_5 (0x20UL << USB_OTG_GNPTXSTS_NPTXQTOP_Pos) /*!< 0x20000000 */
-#define USB_OTG_GNPTXSTS_NPTXQTOP_6 (0x40UL << USB_OTG_GNPTXSTS_NPTXQTOP_Pos) /*!< 0x40000000 */
-
-/******************** Bit definition for USB_OTG_DTHRCTL register ********************/
-#define USB_OTG_DTHRCTL_NONISOTHREN_Pos (0U)
-#define USB_OTG_DTHRCTL_NONISOTHREN_Msk (0x1UL << USB_OTG_DTHRCTL_NONISOTHREN_Pos) /*!< 0x00000001 */
-#define USB_OTG_DTHRCTL_NONISOTHREN USB_OTG_DTHRCTL_NONISOTHREN_Msk /*!< Nonisochronous IN endpoints threshold enable */
-#define USB_OTG_DTHRCTL_ISOTHREN_Pos (1U)
-#define USB_OTG_DTHRCTL_ISOTHREN_Msk (0x1UL << USB_OTG_DTHRCTL_ISOTHREN_Pos) /*!< 0x00000002 */
-#define USB_OTG_DTHRCTL_ISOTHREN USB_OTG_DTHRCTL_ISOTHREN_Msk /*!< ISO IN endpoint threshold enable */
-
-#define USB_OTG_DTHRCTL_TXTHRLEN_Pos (2U)
-#define USB_OTG_DTHRCTL_TXTHRLEN_Msk (0x1FFUL << USB_OTG_DTHRCTL_TXTHRLEN_Pos) /*!< 0x000007FC */
-#define USB_OTG_DTHRCTL_TXTHRLEN USB_OTG_DTHRCTL_TXTHRLEN_Msk /*!< Transmit threshold length */
-#define USB_OTG_DTHRCTL_TXTHRLEN_0 (0x001UL << USB_OTG_DTHRCTL_TXTHRLEN_Pos) /*!< 0x00000004 */
-#define USB_OTG_DTHRCTL_TXTHRLEN_1 (0x002UL << USB_OTG_DTHRCTL_TXTHRLEN_Pos) /*!< 0x00000008 */
-#define USB_OTG_DTHRCTL_TXTHRLEN_2 (0x004UL << USB_OTG_DTHRCTL_TXTHRLEN_Pos) /*!< 0x00000010 */
-#define USB_OTG_DTHRCTL_TXTHRLEN_3 (0x008UL << USB_OTG_DTHRCTL_TXTHRLEN_Pos) /*!< 0x00000020 */
-#define USB_OTG_DTHRCTL_TXTHRLEN_4 (0x010UL << USB_OTG_DTHRCTL_TXTHRLEN_Pos) /*!< 0x00000040 */
-#define USB_OTG_DTHRCTL_TXTHRLEN_5 (0x020UL << USB_OTG_DTHRCTL_TXTHRLEN_Pos) /*!< 0x00000080 */
-#define USB_OTG_DTHRCTL_TXTHRLEN_6 (0x040UL << USB_OTG_DTHRCTL_TXTHRLEN_Pos) /*!< 0x00000100 */
-#define USB_OTG_DTHRCTL_TXTHRLEN_7 (0x080UL << USB_OTG_DTHRCTL_TXTHRLEN_Pos) /*!< 0x00000200 */
-#define USB_OTG_DTHRCTL_TXTHRLEN_8 (0x100UL << USB_OTG_DTHRCTL_TXTHRLEN_Pos) /*!< 0x00000400 */
-#define USB_OTG_DTHRCTL_RXTHREN_Pos (16U)
-#define USB_OTG_DTHRCTL_RXTHREN_Msk (0x1UL << USB_OTG_DTHRCTL_RXTHREN_Pos) /*!< 0x00010000 */
-#define USB_OTG_DTHRCTL_RXTHREN USB_OTG_DTHRCTL_RXTHREN_Msk /*!< Receive threshold enable */
-
-#define USB_OTG_DTHRCTL_RXTHRLEN_Pos (17U)
-#define USB_OTG_DTHRCTL_RXTHRLEN_Msk (0x1FFUL << USB_OTG_DTHRCTL_RXTHRLEN_Pos) /*!< 0x03FE0000 */
-#define USB_OTG_DTHRCTL_RXTHRLEN USB_OTG_DTHRCTL_RXTHRLEN_Msk /*!< Receive threshold length */
-#define USB_OTG_DTHRCTL_RXTHRLEN_0 (0x001UL << USB_OTG_DTHRCTL_RXTHRLEN_Pos) /*!< 0x00020000 */
-#define USB_OTG_DTHRCTL_RXTHRLEN_1 (0x002UL << USB_OTG_DTHRCTL_RXTHRLEN_Pos) /*!< 0x00040000 */
-#define USB_OTG_DTHRCTL_RXTHRLEN_2 (0x004UL << USB_OTG_DTHRCTL_RXTHRLEN_Pos) /*!< 0x00080000 */
-#define USB_OTG_DTHRCTL_RXTHRLEN_3 (0x008UL << USB_OTG_DTHRCTL_RXTHRLEN_Pos) /*!< 0x00100000 */
-#define USB_OTG_DTHRCTL_RXTHRLEN_4 (0x010UL << USB_OTG_DTHRCTL_RXTHRLEN_Pos) /*!< 0x00200000 */
-#define USB_OTG_DTHRCTL_RXTHRLEN_5 (0x020UL << USB_OTG_DTHRCTL_RXTHRLEN_Pos) /*!< 0x00400000 */
-#define USB_OTG_DTHRCTL_RXTHRLEN_6 (0x040UL << USB_OTG_DTHRCTL_RXTHRLEN_Pos) /*!< 0x00800000 */
-#define USB_OTG_DTHRCTL_RXTHRLEN_7 (0x080UL << USB_OTG_DTHRCTL_RXTHRLEN_Pos) /*!< 0x01000000 */
-#define USB_OTG_DTHRCTL_RXTHRLEN_8 (0x100UL << USB_OTG_DTHRCTL_RXTHRLEN_Pos) /*!< 0x02000000 */
-#define USB_OTG_DTHRCTL_ARPEN_Pos (27U)
-#define USB_OTG_DTHRCTL_ARPEN_Msk (0x1UL << USB_OTG_DTHRCTL_ARPEN_Pos) /*!< 0x08000000 */
-#define USB_OTG_DTHRCTL_ARPEN USB_OTG_DTHRCTL_ARPEN_Msk /*!< Arbiter parking enable */
-
-/******************** Bit definition for USB_OTG_DIEPEMPMSK register ********************/
-#define USB_OTG_DIEPEMPMSK_INEPTXFEM_Pos (0U)
-#define USB_OTG_DIEPEMPMSK_INEPTXFEM_Msk (0xFFFFUL << USB_OTG_DIEPEMPMSK_INEPTXFEM_Pos) /*!< 0x0000FFFF */
-#define USB_OTG_DIEPEMPMSK_INEPTXFEM USB_OTG_DIEPEMPMSK_INEPTXFEM_Msk /*!< IN EP Tx FIFO empty interrupt mask bits */
-
-/******************** Bit definition for USB_OTG_DEACHINT register ********************/
-#define USB_OTG_DEACHINT_IEP1INT_Pos (1U)
-#define USB_OTG_DEACHINT_IEP1INT_Msk (0x1UL << USB_OTG_DEACHINT_IEP1INT_Pos) /*!< 0x00000002 */
-#define USB_OTG_DEACHINT_IEP1INT USB_OTG_DEACHINT_IEP1INT_Msk /*!< IN endpoint 1interrupt bit */
-#define USB_OTG_DEACHINT_OEP1INT_Pos (17U)
-#define USB_OTG_DEACHINT_OEP1INT_Msk (0x1UL << USB_OTG_DEACHINT_OEP1INT_Pos) /*!< 0x00020000 */
-#define USB_OTG_DEACHINT_OEP1INT USB_OTG_DEACHINT_OEP1INT_Msk /*!< OUT endpoint 1 interrupt bit */
-
-/******************** Bit definition for USB_OTG_GCCFG register ********************/
-#define USB_OTG_GCCFG_PWRDWN_Pos (16U)
-#define USB_OTG_GCCFG_PWRDWN_Msk (0x1UL << USB_OTG_GCCFG_PWRDWN_Pos) /*!< 0x00010000 */
-#define USB_OTG_GCCFG_PWRDWN USB_OTG_GCCFG_PWRDWN_Msk /*!< Power down */
-#define USB_OTG_GCCFG_VBUSASEN_Pos (18U)
-#define USB_OTG_GCCFG_VBUSASEN_Msk (0x1UL << USB_OTG_GCCFG_VBUSASEN_Pos) /*!< 0x00040000 */
-#define USB_OTG_GCCFG_VBUSASEN USB_OTG_GCCFG_VBUSASEN_Msk /*!< Enable the VBUS sensing device */
-#define USB_OTG_GCCFG_VBUSBSEN_Pos (19U)
-#define USB_OTG_GCCFG_VBUSBSEN_Msk (0x1UL << USB_OTG_GCCFG_VBUSBSEN_Pos) /*!< 0x00080000 */
-#define USB_OTG_GCCFG_VBUSBSEN USB_OTG_GCCFG_VBUSBSEN_Msk /*!< Enable the VBUS sensing device */
-#define USB_OTG_GCCFG_SOFOUTEN_Pos (20U)
-#define USB_OTG_GCCFG_SOFOUTEN_Msk (0x1UL << USB_OTG_GCCFG_SOFOUTEN_Pos) /*!< 0x00100000 */
-#define USB_OTG_GCCFG_SOFOUTEN USB_OTG_GCCFG_SOFOUTEN_Msk /*!< SOF output enable */
-
-/******************** Bit definition for USB_OTG_DEACHINTMSK register ********************/
-#define USB_OTG_DEACHINTMSK_IEP1INTM_Pos (1U)
-#define USB_OTG_DEACHINTMSK_IEP1INTM_Msk (0x1UL << USB_OTG_DEACHINTMSK_IEP1INTM_Pos) /*!< 0x00000002 */
-#define USB_OTG_DEACHINTMSK_IEP1INTM USB_OTG_DEACHINTMSK_IEP1INTM_Msk /*!< IN Endpoint 1 interrupt mask bit */
-#define USB_OTG_DEACHINTMSK_OEP1INTM_Pos (17U)
-#define USB_OTG_DEACHINTMSK_OEP1INTM_Msk (0x1UL << USB_OTG_DEACHINTMSK_OEP1INTM_Pos) /*!< 0x00020000 */
-#define USB_OTG_DEACHINTMSK_OEP1INTM USB_OTG_DEACHINTMSK_OEP1INTM_Msk /*!< OUT Endpoint 1 interrupt mask bit */
-
-/******************** Bit definition for USB_OTG_CID register ********************/
-#define USB_OTG_CID_PRODUCT_ID_Pos (0U)
-#define USB_OTG_CID_PRODUCT_ID_Msk (0xFFFFFFFFUL << USB_OTG_CID_PRODUCT_ID_Pos) /*!< 0xFFFFFFFF */
-#define USB_OTG_CID_PRODUCT_ID USB_OTG_CID_PRODUCT_ID_Msk /*!< Product ID field */
-
-/******************** Bit definition for USB_OTG_DIEPEACHMSK1 register ********************/
-#define USB_OTG_DIEPEACHMSK1_XFRCM_Pos (0U)
-#define USB_OTG_DIEPEACHMSK1_XFRCM_Msk (0x1UL << USB_OTG_DIEPEACHMSK1_XFRCM_Pos) /*!< 0x00000001 */
-#define USB_OTG_DIEPEACHMSK1_XFRCM USB_OTG_DIEPEACHMSK1_XFRCM_Msk /*!< Transfer completed interrupt mask */
-#define USB_OTG_DIEPEACHMSK1_EPDM_Pos (1U)
-#define USB_OTG_DIEPEACHMSK1_EPDM_Msk (0x1UL << USB_OTG_DIEPEACHMSK1_EPDM_Pos) /*!< 0x00000002 */
-#define USB_OTG_DIEPEACHMSK1_EPDM USB_OTG_DIEPEACHMSK1_EPDM_Msk /*!< Endpoint disabled interrupt mask */
-#define USB_OTG_DIEPEACHMSK1_TOM_Pos (3U)
-#define USB_OTG_DIEPEACHMSK1_TOM_Msk (0x1UL << USB_OTG_DIEPEACHMSK1_TOM_Pos) /*!< 0x00000008 */
-#define USB_OTG_DIEPEACHMSK1_TOM USB_OTG_DIEPEACHMSK1_TOM_Msk /*!< Timeout condition mask (nonisochronous endpoints) */
-#define USB_OTG_DIEPEACHMSK1_ITTXFEMSK_Pos (4U)
-#define USB_OTG_DIEPEACHMSK1_ITTXFEMSK_Msk (0x1UL << USB_OTG_DIEPEACHMSK1_ITTXFEMSK_Pos) /*!< 0x00000010 */
-#define USB_OTG_DIEPEACHMSK1_ITTXFEMSK USB_OTG_DIEPEACHMSK1_ITTXFEMSK_Msk /*!< IN token received when TxFIFO empty mask */
-#define USB_OTG_DIEPEACHMSK1_INEPNMM_Pos (5U)
-#define USB_OTG_DIEPEACHMSK1_INEPNMM_Msk (0x1UL << USB_OTG_DIEPEACHMSK1_INEPNMM_Pos) /*!< 0x00000020 */
-#define USB_OTG_DIEPEACHMSK1_INEPNMM USB_OTG_DIEPEACHMSK1_INEPNMM_Msk /*!< IN token received with EP mismatch mask */
-#define USB_OTG_DIEPEACHMSK1_INEPNEM_Pos (6U)
-#define USB_OTG_DIEPEACHMSK1_INEPNEM_Msk (0x1UL << USB_OTG_DIEPEACHMSK1_INEPNEM_Pos) /*!< 0x00000040 */
-#define USB_OTG_DIEPEACHMSK1_INEPNEM USB_OTG_DIEPEACHMSK1_INEPNEM_Msk /*!< IN endpoint NAK effective mask */
-#define USB_OTG_DIEPEACHMSK1_TXFURM_Pos (8U)
-#define USB_OTG_DIEPEACHMSK1_TXFURM_Msk (0x1UL << USB_OTG_DIEPEACHMSK1_TXFURM_Pos) /*!< 0x00000100 */
-#define USB_OTG_DIEPEACHMSK1_TXFURM USB_OTG_DIEPEACHMSK1_TXFURM_Msk /*!< FIFO underrun mask */
-#define USB_OTG_DIEPEACHMSK1_BIM_Pos (9U)
-#define USB_OTG_DIEPEACHMSK1_BIM_Msk (0x1UL << USB_OTG_DIEPEACHMSK1_BIM_Pos) /*!< 0x00000200 */
-#define USB_OTG_DIEPEACHMSK1_BIM USB_OTG_DIEPEACHMSK1_BIM_Msk /*!< BNA interrupt mask */
-#define USB_OTG_DIEPEACHMSK1_NAKM_Pos (13U)
-#define USB_OTG_DIEPEACHMSK1_NAKM_Msk (0x1UL << USB_OTG_DIEPEACHMSK1_NAKM_Pos) /*!< 0x00002000 */
-#define USB_OTG_DIEPEACHMSK1_NAKM USB_OTG_DIEPEACHMSK1_NAKM_Msk /*!< NAK interrupt mask */
-
-/******************** Bit definition for USB_OTG_HPRT register ********************/
-#define USB_OTG_HPRT_PCSTS_Pos (0U)
-#define USB_OTG_HPRT_PCSTS_Msk (0x1UL << USB_OTG_HPRT_PCSTS_Pos) /*!< 0x00000001 */
-#define USB_OTG_HPRT_PCSTS USB_OTG_HPRT_PCSTS_Msk /*!< Port connect status */
-#define USB_OTG_HPRT_PCDET_Pos (1U)
-#define USB_OTG_HPRT_PCDET_Msk (0x1UL << USB_OTG_HPRT_PCDET_Pos) /*!< 0x00000002 */
-#define USB_OTG_HPRT_PCDET USB_OTG_HPRT_PCDET_Msk /*!< Port connect detected */
-#define USB_OTG_HPRT_PENA_Pos (2U)
-#define USB_OTG_HPRT_PENA_Msk (0x1UL << USB_OTG_HPRT_PENA_Pos) /*!< 0x00000004 */
-#define USB_OTG_HPRT_PENA USB_OTG_HPRT_PENA_Msk /*!< Port enable */
-#define USB_OTG_HPRT_PENCHNG_Pos (3U)
-#define USB_OTG_HPRT_PENCHNG_Msk (0x1UL << USB_OTG_HPRT_PENCHNG_Pos) /*!< 0x00000008 */
-#define USB_OTG_HPRT_PENCHNG USB_OTG_HPRT_PENCHNG_Msk /*!< Port enable/disable change */
-#define USB_OTG_HPRT_POCA_Pos (4U)
-#define USB_OTG_HPRT_POCA_Msk (0x1UL << USB_OTG_HPRT_POCA_Pos) /*!< 0x00000010 */
-#define USB_OTG_HPRT_POCA USB_OTG_HPRT_POCA_Msk /*!< Port overcurrent active */
-#define USB_OTG_HPRT_POCCHNG_Pos (5U)
-#define USB_OTG_HPRT_POCCHNG_Msk (0x1UL << USB_OTG_HPRT_POCCHNG_Pos) /*!< 0x00000020 */
-#define USB_OTG_HPRT_POCCHNG USB_OTG_HPRT_POCCHNG_Msk /*!< Port overcurrent change */
-#define USB_OTG_HPRT_PRES_Pos (6U)
-#define USB_OTG_HPRT_PRES_Msk (0x1UL << USB_OTG_HPRT_PRES_Pos) /*!< 0x00000040 */
-#define USB_OTG_HPRT_PRES USB_OTG_HPRT_PRES_Msk /*!< Port resume */
-#define USB_OTG_HPRT_PSUSP_Pos (7U)
-#define USB_OTG_HPRT_PSUSP_Msk (0x1UL << USB_OTG_HPRT_PSUSP_Pos) /*!< 0x00000080 */
-#define USB_OTG_HPRT_PSUSP USB_OTG_HPRT_PSUSP_Msk /*!< Port suspend */
-#define USB_OTG_HPRT_PRST_Pos (8U)
-#define USB_OTG_HPRT_PRST_Msk (0x1UL << USB_OTG_HPRT_PRST_Pos) /*!< 0x00000100 */
-#define USB_OTG_HPRT_PRST USB_OTG_HPRT_PRST_Msk /*!< Port reset */
-
-#define USB_OTG_HPRT_PLSTS_Pos (10U)
-#define USB_OTG_HPRT_PLSTS_Msk (0x3UL << USB_OTG_HPRT_PLSTS_Pos) /*!< 0x00000C00 */
-#define USB_OTG_HPRT_PLSTS USB_OTG_HPRT_PLSTS_Msk /*!< Port line status */
-#define USB_OTG_HPRT_PLSTS_0 (0x1UL << USB_OTG_HPRT_PLSTS_Pos) /*!< 0x00000400 */
-#define USB_OTG_HPRT_PLSTS_1 (0x2UL << USB_OTG_HPRT_PLSTS_Pos) /*!< 0x00000800 */
-#define USB_OTG_HPRT_PPWR_Pos (12U)
-#define USB_OTG_HPRT_PPWR_Msk (0x1UL << USB_OTG_HPRT_PPWR_Pos) /*!< 0x00001000 */
-#define USB_OTG_HPRT_PPWR USB_OTG_HPRT_PPWR_Msk /*!< Port power */
-
-#define USB_OTG_HPRT_PTCTL_Pos (13U)
-#define USB_OTG_HPRT_PTCTL_Msk (0xFUL << USB_OTG_HPRT_PTCTL_Pos) /*!< 0x0001E000 */
-#define USB_OTG_HPRT_PTCTL USB_OTG_HPRT_PTCTL_Msk /*!< Port test control */
-#define USB_OTG_HPRT_PTCTL_0 (0x1UL << USB_OTG_HPRT_PTCTL_Pos) /*!< 0x00002000 */
-#define USB_OTG_HPRT_PTCTL_1 (0x2UL << USB_OTG_HPRT_PTCTL_Pos) /*!< 0x00004000 */
-#define USB_OTG_HPRT_PTCTL_2 (0x4UL << USB_OTG_HPRT_PTCTL_Pos) /*!< 0x00008000 */
-#define USB_OTG_HPRT_PTCTL_3 (0x8UL << USB_OTG_HPRT_PTCTL_Pos) /*!< 0x00010000 */
-
-#define USB_OTG_HPRT_PSPD_Pos (17U)
-#define USB_OTG_HPRT_PSPD_Msk (0x3UL << USB_OTG_HPRT_PSPD_Pos) /*!< 0x00060000 */
-#define USB_OTG_HPRT_PSPD USB_OTG_HPRT_PSPD_Msk /*!< Port speed */
-#define USB_OTG_HPRT_PSPD_0 (0x1UL << USB_OTG_HPRT_PSPD_Pos) /*!< 0x00020000 */
-#define USB_OTG_HPRT_PSPD_1 (0x2UL << USB_OTG_HPRT_PSPD_Pos) /*!< 0x00040000 */
-
-/******************** Bit definition for USB_OTG_DOEPEACHMSK1 register ********************/
-#define USB_OTG_DOEPEACHMSK1_XFRCM_Pos (0U)
-#define USB_OTG_DOEPEACHMSK1_XFRCM_Msk (0x1UL << USB_OTG_DOEPEACHMSK1_XFRCM_Pos) /*!< 0x00000001 */
-#define USB_OTG_DOEPEACHMSK1_XFRCM USB_OTG_DOEPEACHMSK1_XFRCM_Msk /*!< Transfer completed interrupt mask */
-#define USB_OTG_DOEPEACHMSK1_EPDM_Pos (1U)
-#define USB_OTG_DOEPEACHMSK1_EPDM_Msk (0x1UL << USB_OTG_DOEPEACHMSK1_EPDM_Pos) /*!< 0x00000002 */
-#define USB_OTG_DOEPEACHMSK1_EPDM USB_OTG_DOEPEACHMSK1_EPDM_Msk /*!< Endpoint disabled interrupt mask */
-#define USB_OTG_DOEPEACHMSK1_TOM_Pos (3U)
-#define USB_OTG_DOEPEACHMSK1_TOM_Msk (0x1UL << USB_OTG_DOEPEACHMSK1_TOM_Pos) /*!< 0x00000008 */
-#define USB_OTG_DOEPEACHMSK1_TOM USB_OTG_DOEPEACHMSK1_TOM_Msk /*!< Timeout condition mask */
-#define USB_OTG_DOEPEACHMSK1_ITTXFEMSK_Pos (4U)
-#define USB_OTG_DOEPEACHMSK1_ITTXFEMSK_Msk (0x1UL << USB_OTG_DOEPEACHMSK1_ITTXFEMSK_Pos) /*!< 0x00000010 */
-#define USB_OTG_DOEPEACHMSK1_ITTXFEMSK USB_OTG_DOEPEACHMSK1_ITTXFEMSK_Msk /*!< IN token received when TxFIFO empty mask */
-#define USB_OTG_DOEPEACHMSK1_INEPNMM_Pos (5U)
-#define USB_OTG_DOEPEACHMSK1_INEPNMM_Msk (0x1UL << USB_OTG_DOEPEACHMSK1_INEPNMM_Pos) /*!< 0x00000020 */
-#define USB_OTG_DOEPEACHMSK1_INEPNMM USB_OTG_DOEPEACHMSK1_INEPNMM_Msk /*!< IN token received with EP mismatch mask */
-#define USB_OTG_DOEPEACHMSK1_INEPNEM_Pos (6U)
-#define USB_OTG_DOEPEACHMSK1_INEPNEM_Msk (0x1UL << USB_OTG_DOEPEACHMSK1_INEPNEM_Pos) /*!< 0x00000040 */
-#define USB_OTG_DOEPEACHMSK1_INEPNEM USB_OTG_DOEPEACHMSK1_INEPNEM_Msk /*!< IN endpoint NAK effective mask */
-#define USB_OTG_DOEPEACHMSK1_TXFURM_Pos (8U)
-#define USB_OTG_DOEPEACHMSK1_TXFURM_Msk (0x1UL << USB_OTG_DOEPEACHMSK1_TXFURM_Pos) /*!< 0x00000100 */
-#define USB_OTG_DOEPEACHMSK1_TXFURM USB_OTG_DOEPEACHMSK1_TXFURM_Msk /*!< OUT packet error mask */
-#define USB_OTG_DOEPEACHMSK1_BIM_Pos (9U)
-#define USB_OTG_DOEPEACHMSK1_BIM_Msk (0x1UL << USB_OTG_DOEPEACHMSK1_BIM_Pos) /*!< 0x00000200 */
-#define USB_OTG_DOEPEACHMSK1_BIM USB_OTG_DOEPEACHMSK1_BIM_Msk /*!< BNA interrupt mask */
-#define USB_OTG_DOEPEACHMSK1_BERRM_Pos (12U)
-#define USB_OTG_DOEPEACHMSK1_BERRM_Msk (0x1UL << USB_OTG_DOEPEACHMSK1_BERRM_Pos) /*!< 0x00001000 */
-#define USB_OTG_DOEPEACHMSK1_BERRM USB_OTG_DOEPEACHMSK1_BERRM_Msk /*!< Bubble error interrupt mask */
-#define USB_OTG_DOEPEACHMSK1_NAKM_Pos (13U)
-#define USB_OTG_DOEPEACHMSK1_NAKM_Msk (0x1UL << USB_OTG_DOEPEACHMSK1_NAKM_Pos) /*!< 0x00002000 */
-#define USB_OTG_DOEPEACHMSK1_NAKM USB_OTG_DOEPEACHMSK1_NAKM_Msk /*!< NAK interrupt mask */
-#define USB_OTG_DOEPEACHMSK1_NYETM_Pos (14U)
-#define USB_OTG_DOEPEACHMSK1_NYETM_Msk (0x1UL << USB_OTG_DOEPEACHMSK1_NYETM_Pos) /*!< 0x00004000 */
-#define USB_OTG_DOEPEACHMSK1_NYETM USB_OTG_DOEPEACHMSK1_NYETM_Msk /*!< NYET interrupt mask */
-
-/******************** Bit definition for USB_OTG_HPTXFSIZ register ********************/
-#define USB_OTG_HPTXFSIZ_PTXSA_Pos (0U)
-#define USB_OTG_HPTXFSIZ_PTXSA_Msk (0xFFFFUL << USB_OTG_HPTXFSIZ_PTXSA_Pos) /*!< 0x0000FFFF */
-#define USB_OTG_HPTXFSIZ_PTXSA USB_OTG_HPTXFSIZ_PTXSA_Msk /*!< Host periodic TxFIFO start address */
-#define USB_OTG_HPTXFSIZ_PTXFD_Pos (16U)
-#define USB_OTG_HPTXFSIZ_PTXFD_Msk (0xFFFFUL << USB_OTG_HPTXFSIZ_PTXFD_Pos) /*!< 0xFFFF0000 */
-#define USB_OTG_HPTXFSIZ_PTXFD USB_OTG_HPTXFSIZ_PTXFD_Msk /*!< Host periodic TxFIFO depth */
-
-/******************** Bit definition for USB_OTG_DIEPCTL register ********************/
-#define USB_OTG_DIEPCTL_MPSIZ_Pos (0U)
-#define USB_OTG_DIEPCTL_MPSIZ_Msk (0x7FFUL << USB_OTG_DIEPCTL_MPSIZ_Pos) /*!< 0x000007FF */
-#define USB_OTG_DIEPCTL_MPSIZ USB_OTG_DIEPCTL_MPSIZ_Msk /*!< Maximum packet size */
-#define USB_OTG_DIEPCTL_USBAEP_Pos (15U)
-#define USB_OTG_DIEPCTL_USBAEP_Msk (0x1UL << USB_OTG_DIEPCTL_USBAEP_Pos) /*!< 0x00008000 */
-#define USB_OTG_DIEPCTL_USBAEP USB_OTG_DIEPCTL_USBAEP_Msk /*!< USB active endpoint */
-#define USB_OTG_DIEPCTL_EONUM_DPID_Pos (16U)
-#define USB_OTG_DIEPCTL_EONUM_DPID_Msk (0x1UL << USB_OTG_DIEPCTL_EONUM_DPID_Pos) /*!< 0x00010000 */
-#define USB_OTG_DIEPCTL_EONUM_DPID USB_OTG_DIEPCTL_EONUM_DPID_Msk /*!< Even/odd frame */
-#define USB_OTG_DIEPCTL_NAKSTS_Pos (17U)
-#define USB_OTG_DIEPCTL_NAKSTS_Msk (0x1UL << USB_OTG_DIEPCTL_NAKSTS_Pos) /*!< 0x00020000 */
-#define USB_OTG_DIEPCTL_NAKSTS USB_OTG_DIEPCTL_NAKSTS_Msk /*!< NAK status */
-
-#define USB_OTG_DIEPCTL_EPTYP_Pos (18U)
-#define USB_OTG_DIEPCTL_EPTYP_Msk (0x3UL << USB_OTG_DIEPCTL_EPTYP_Pos) /*!< 0x000C0000 */
-#define USB_OTG_DIEPCTL_EPTYP USB_OTG_DIEPCTL_EPTYP_Msk /*!< Endpoint type */
-#define USB_OTG_DIEPCTL_EPTYP_0 (0x1UL << USB_OTG_DIEPCTL_EPTYP_Pos) /*!< 0x00040000 */
-#define USB_OTG_DIEPCTL_EPTYP_1 (0x2UL << USB_OTG_DIEPCTL_EPTYP_Pos) /*!< 0x00080000 */
-#define USB_OTG_DIEPCTL_STALL_Pos (21U)
-#define USB_OTG_DIEPCTL_STALL_Msk (0x1UL << USB_OTG_DIEPCTL_STALL_Pos) /*!< 0x00200000 */
-#define USB_OTG_DIEPCTL_STALL USB_OTG_DIEPCTL_STALL_Msk /*!< STALL handshake */
-
-#define USB_OTG_DIEPCTL_TXFNUM_Pos (22U)
-#define USB_OTG_DIEPCTL_TXFNUM_Msk (0xFUL << USB_OTG_DIEPCTL_TXFNUM_Pos) /*!< 0x03C00000 */
-#define USB_OTG_DIEPCTL_TXFNUM USB_OTG_DIEPCTL_TXFNUM_Msk /*!< TxFIFO number */
-#define USB_OTG_DIEPCTL_TXFNUM_0 (0x1UL << USB_OTG_DIEPCTL_TXFNUM_Pos) /*!< 0x00400000 */
-#define USB_OTG_DIEPCTL_TXFNUM_1 (0x2UL << USB_OTG_DIEPCTL_TXFNUM_Pos) /*!< 0x00800000 */
-#define USB_OTG_DIEPCTL_TXFNUM_2 (0x4UL << USB_OTG_DIEPCTL_TXFNUM_Pos) /*!< 0x01000000 */
-#define USB_OTG_DIEPCTL_TXFNUM_3 (0x8UL << USB_OTG_DIEPCTL_TXFNUM_Pos) /*!< 0x02000000 */
-#define USB_OTG_DIEPCTL_CNAK_Pos (26U)
-#define USB_OTG_DIEPCTL_CNAK_Msk (0x1UL << USB_OTG_DIEPCTL_CNAK_Pos) /*!< 0x04000000 */
-#define USB_OTG_DIEPCTL_CNAK USB_OTG_DIEPCTL_CNAK_Msk /*!< Clear NAK */
-#define USB_OTG_DIEPCTL_SNAK_Pos (27U)
-#define USB_OTG_DIEPCTL_SNAK_Msk (0x1UL << USB_OTG_DIEPCTL_SNAK_Pos) /*!< 0x08000000 */
-#define USB_OTG_DIEPCTL_SNAK USB_OTG_DIEPCTL_SNAK_Msk /*!< Set NAK */
-#define USB_OTG_DIEPCTL_SD0PID_SEVNFRM_Pos (28U)
-#define USB_OTG_DIEPCTL_SD0PID_SEVNFRM_Msk (0x1UL << USB_OTG_DIEPCTL_SD0PID_SEVNFRM_Pos) /*!< 0x10000000 */
-#define USB_OTG_DIEPCTL_SD0PID_SEVNFRM USB_OTG_DIEPCTL_SD0PID_SEVNFRM_Msk /*!< Set DATA0 PID */
-#define USB_OTG_DIEPCTL_SODDFRM_Pos (29U)
-#define USB_OTG_DIEPCTL_SODDFRM_Msk (0x1UL << USB_OTG_DIEPCTL_SODDFRM_Pos) /*!< 0x20000000 */
-#define USB_OTG_DIEPCTL_SODDFRM USB_OTG_DIEPCTL_SODDFRM_Msk /*!< Set odd frame */
-#define USB_OTG_DIEPCTL_EPDIS_Pos (30U)
-#define USB_OTG_DIEPCTL_EPDIS_Msk (0x1UL << USB_OTG_DIEPCTL_EPDIS_Pos) /*!< 0x40000000 */
-#define USB_OTG_DIEPCTL_EPDIS USB_OTG_DIEPCTL_EPDIS_Msk /*!< Endpoint disable */
-#define USB_OTG_DIEPCTL_EPENA_Pos (31U)
-#define USB_OTG_DIEPCTL_EPENA_Msk (0x1UL << USB_OTG_DIEPCTL_EPENA_Pos) /*!< 0x80000000 */
-#define USB_OTG_DIEPCTL_EPENA USB_OTG_DIEPCTL_EPENA_Msk /*!< Endpoint enable */
-
-/******************** Bit definition for USB_OTG_HCCHAR register ********************/
-#define USB_OTG_HCCHAR_MPSIZ_Pos (0U)
-#define USB_OTG_HCCHAR_MPSIZ_Msk (0x7FFUL << USB_OTG_HCCHAR_MPSIZ_Pos) /*!< 0x000007FF */
-#define USB_OTG_HCCHAR_MPSIZ USB_OTG_HCCHAR_MPSIZ_Msk /*!< Maximum packet size */
-
-#define USB_OTG_HCCHAR_EPNUM_Pos (11U)
-#define USB_OTG_HCCHAR_EPNUM_Msk (0xFUL << USB_OTG_HCCHAR_EPNUM_Pos) /*!< 0x00007800 */
-#define USB_OTG_HCCHAR_EPNUM USB_OTG_HCCHAR_EPNUM_Msk /*!< Endpoint number */
-#define USB_OTG_HCCHAR_EPNUM_0 (0x1UL << USB_OTG_HCCHAR_EPNUM_Pos) /*!< 0x00000800 */
-#define USB_OTG_HCCHAR_EPNUM_1 (0x2UL << USB_OTG_HCCHAR_EPNUM_Pos) /*!< 0x00001000 */
-#define USB_OTG_HCCHAR_EPNUM_2 (0x4UL << USB_OTG_HCCHAR_EPNUM_Pos) /*!< 0x00002000 */
-#define USB_OTG_HCCHAR_EPNUM_3 (0x8UL << USB_OTG_HCCHAR_EPNUM_Pos) /*!< 0x00004000 */
-#define USB_OTG_HCCHAR_EPDIR_Pos (15U)
-#define USB_OTG_HCCHAR_EPDIR_Msk (0x1UL << USB_OTG_HCCHAR_EPDIR_Pos) /*!< 0x00008000 */
-#define USB_OTG_HCCHAR_EPDIR USB_OTG_HCCHAR_EPDIR_Msk /*!< Endpoint direction */
-#define USB_OTG_HCCHAR_LSDEV_Pos (17U)
-#define USB_OTG_HCCHAR_LSDEV_Msk (0x1UL << USB_OTG_HCCHAR_LSDEV_Pos) /*!< 0x00020000 */
-#define USB_OTG_HCCHAR_LSDEV USB_OTG_HCCHAR_LSDEV_Msk /*!< Low-speed device */
-
-#define USB_OTG_HCCHAR_EPTYP_Pos (18U)
-#define USB_OTG_HCCHAR_EPTYP_Msk (0x3UL << USB_OTG_HCCHAR_EPTYP_Pos) /*!< 0x000C0000 */
-#define USB_OTG_HCCHAR_EPTYP USB_OTG_HCCHAR_EPTYP_Msk /*!< Endpoint type */
-#define USB_OTG_HCCHAR_EPTYP_0 (0x1UL << USB_OTG_HCCHAR_EPTYP_Pos) /*!< 0x00040000 */
-#define USB_OTG_HCCHAR_EPTYP_1 (0x2UL << USB_OTG_HCCHAR_EPTYP_Pos) /*!< 0x00080000 */
-
-#define USB_OTG_HCCHAR_MC_Pos (20U)
-#define USB_OTG_HCCHAR_MC_Msk (0x3UL << USB_OTG_HCCHAR_MC_Pos) /*!< 0x00300000 */
-#define USB_OTG_HCCHAR_MC USB_OTG_HCCHAR_MC_Msk /*!< Multi Count (MC) / Error Count (EC) */
-#define USB_OTG_HCCHAR_MC_0 (0x1UL << USB_OTG_HCCHAR_MC_Pos) /*!< 0x00100000 */
-#define USB_OTG_HCCHAR_MC_1 (0x2UL << USB_OTG_HCCHAR_MC_Pos) /*!< 0x00200000 */
-
-#define USB_OTG_HCCHAR_DAD_Pos (22U)
-#define USB_OTG_HCCHAR_DAD_Msk (0x7FUL << USB_OTG_HCCHAR_DAD_Pos) /*!< 0x1FC00000 */
-#define USB_OTG_HCCHAR_DAD USB_OTG_HCCHAR_DAD_Msk /*!< Device address */
-#define USB_OTG_HCCHAR_DAD_0 (0x01UL << USB_OTG_HCCHAR_DAD_Pos) /*!< 0x00400000 */
-#define USB_OTG_HCCHAR_DAD_1 (0x02UL << USB_OTG_HCCHAR_DAD_Pos) /*!< 0x00800000 */
-#define USB_OTG_HCCHAR_DAD_2 (0x04UL << USB_OTG_HCCHAR_DAD_Pos) /*!< 0x01000000 */
-#define USB_OTG_HCCHAR_DAD_3 (0x08UL << USB_OTG_HCCHAR_DAD_Pos) /*!< 0x02000000 */
-#define USB_OTG_HCCHAR_DAD_4 (0x10UL << USB_OTG_HCCHAR_DAD_Pos) /*!< 0x04000000 */
-#define USB_OTG_HCCHAR_DAD_5 (0x20UL << USB_OTG_HCCHAR_DAD_Pos) /*!< 0x08000000 */
-#define USB_OTG_HCCHAR_DAD_6 (0x40UL << USB_OTG_HCCHAR_DAD_Pos) /*!< 0x10000000 */
-#define USB_OTG_HCCHAR_ODDFRM_Pos (29U)
-#define USB_OTG_HCCHAR_ODDFRM_Msk (0x1UL << USB_OTG_HCCHAR_ODDFRM_Pos) /*!< 0x20000000 */
-#define USB_OTG_HCCHAR_ODDFRM USB_OTG_HCCHAR_ODDFRM_Msk /*!< Odd frame */
-#define USB_OTG_HCCHAR_CHDIS_Pos (30U)
-#define USB_OTG_HCCHAR_CHDIS_Msk (0x1UL << USB_OTG_HCCHAR_CHDIS_Pos) /*!< 0x40000000 */
-#define USB_OTG_HCCHAR_CHDIS USB_OTG_HCCHAR_CHDIS_Msk /*!< Channel disable */
-#define USB_OTG_HCCHAR_CHENA_Pos (31U)
-#define USB_OTG_HCCHAR_CHENA_Msk (0x1UL << USB_OTG_HCCHAR_CHENA_Pos) /*!< 0x80000000 */
-#define USB_OTG_HCCHAR_CHENA USB_OTG_HCCHAR_CHENA_Msk /*!< Channel enable */
-
-/******************** Bit definition for USB_OTG_HCSPLT register ********************/
-
-#define USB_OTG_HCSPLT_PRTADDR_Pos (0U)
-#define USB_OTG_HCSPLT_PRTADDR_Msk (0x7FUL << USB_OTG_HCSPLT_PRTADDR_Pos) /*!< 0x0000007F */
-#define USB_OTG_HCSPLT_PRTADDR USB_OTG_HCSPLT_PRTADDR_Msk /*!< Port address */
-#define USB_OTG_HCSPLT_PRTADDR_0 (0x01UL << USB_OTG_HCSPLT_PRTADDR_Pos) /*!< 0x00000001 */
-#define USB_OTG_HCSPLT_PRTADDR_1 (0x02UL << USB_OTG_HCSPLT_PRTADDR_Pos) /*!< 0x00000002 */
-#define USB_OTG_HCSPLT_PRTADDR_2 (0x04UL << USB_OTG_HCSPLT_PRTADDR_Pos) /*!< 0x00000004 */
-#define USB_OTG_HCSPLT_PRTADDR_3 (0x08UL << USB_OTG_HCSPLT_PRTADDR_Pos) /*!< 0x00000008 */
-#define USB_OTG_HCSPLT_PRTADDR_4 (0x10UL << USB_OTG_HCSPLT_PRTADDR_Pos) /*!< 0x00000010 */
-#define USB_OTG_HCSPLT_PRTADDR_5 (0x20UL << USB_OTG_HCSPLT_PRTADDR_Pos) /*!< 0x00000020 */
-#define USB_OTG_HCSPLT_PRTADDR_6 (0x40UL << USB_OTG_HCSPLT_PRTADDR_Pos) /*!< 0x00000040 */
-
-#define USB_OTG_HCSPLT_HUBADDR_Pos (7U)
-#define USB_OTG_HCSPLT_HUBADDR_Msk (0x7FUL << USB_OTG_HCSPLT_HUBADDR_Pos) /*!< 0x00003F80 */
-#define USB_OTG_HCSPLT_HUBADDR USB_OTG_HCSPLT_HUBADDR_Msk /*!< Hub address */
-#define USB_OTG_HCSPLT_HUBADDR_0 (0x01UL << USB_OTG_HCSPLT_HUBADDR_Pos) /*!< 0x00000080 */
-#define USB_OTG_HCSPLT_HUBADDR_1 (0x02UL << USB_OTG_HCSPLT_HUBADDR_Pos) /*!< 0x00000100 */
-#define USB_OTG_HCSPLT_HUBADDR_2 (0x04UL << USB_OTG_HCSPLT_HUBADDR_Pos) /*!< 0x00000200 */
-#define USB_OTG_HCSPLT_HUBADDR_3 (0x08UL << USB_OTG_HCSPLT_HUBADDR_Pos) /*!< 0x00000400 */
-#define USB_OTG_HCSPLT_HUBADDR_4 (0x10UL << USB_OTG_HCSPLT_HUBADDR_Pos) /*!< 0x00000800 */
-#define USB_OTG_HCSPLT_HUBADDR_5 (0x20UL << USB_OTG_HCSPLT_HUBADDR_Pos) /*!< 0x00001000 */
-#define USB_OTG_HCSPLT_HUBADDR_6 (0x40UL << USB_OTG_HCSPLT_HUBADDR_Pos) /*!< 0x00002000 */
-
-#define USB_OTG_HCSPLT_XACTPOS_Pos (14U)
-#define USB_OTG_HCSPLT_XACTPOS_Msk (0x3UL << USB_OTG_HCSPLT_XACTPOS_Pos) /*!< 0x0000C000 */
-#define USB_OTG_HCSPLT_XACTPOS USB_OTG_HCSPLT_XACTPOS_Msk /*!< XACTPOS */
-#define USB_OTG_HCSPLT_XACTPOS_0 (0x1UL << USB_OTG_HCSPLT_XACTPOS_Pos) /*!< 0x00004000 */
-#define USB_OTG_HCSPLT_XACTPOS_1 (0x2UL << USB_OTG_HCSPLT_XACTPOS_Pos) /*!< 0x00008000 */
-#define USB_OTG_HCSPLT_COMPLSPLT_Pos (16U)
-#define USB_OTG_HCSPLT_COMPLSPLT_Msk (0x1UL << USB_OTG_HCSPLT_COMPLSPLT_Pos) /*!< 0x00010000 */
-#define USB_OTG_HCSPLT_COMPLSPLT USB_OTG_HCSPLT_COMPLSPLT_Msk /*!< Do complete split */
-#define USB_OTG_HCSPLT_SPLITEN_Pos (31U)
-#define USB_OTG_HCSPLT_SPLITEN_Msk (0x1UL << USB_OTG_HCSPLT_SPLITEN_Pos) /*!< 0x80000000 */
-#define USB_OTG_HCSPLT_SPLITEN USB_OTG_HCSPLT_SPLITEN_Msk /*!< Split enable */
-
-/******************** Bit definition for USB_OTG_HCINT register ********************/
-#define USB_OTG_HCINT_XFRC_Pos (0U)
-#define USB_OTG_HCINT_XFRC_Msk (0x1UL << USB_OTG_HCINT_XFRC_Pos) /*!< 0x00000001 */
-#define USB_OTG_HCINT_XFRC USB_OTG_HCINT_XFRC_Msk /*!< Transfer completed */
-#define USB_OTG_HCINT_CHH_Pos (1U)
-#define USB_OTG_HCINT_CHH_Msk (0x1UL << USB_OTG_HCINT_CHH_Pos) /*!< 0x00000002 */
-#define USB_OTG_HCINT_CHH USB_OTG_HCINT_CHH_Msk /*!< Channel halted */
-#define USB_OTG_HCINT_AHBERR_Pos (2U)
-#define USB_OTG_HCINT_AHBERR_Msk (0x1UL << USB_OTG_HCINT_AHBERR_Pos) /*!< 0x00000004 */
-#define USB_OTG_HCINT_AHBERR USB_OTG_HCINT_AHBERR_Msk /*!< AHB error */
-#define USB_OTG_HCINT_STALL_Pos (3U)
-#define USB_OTG_HCINT_STALL_Msk (0x1UL << USB_OTG_HCINT_STALL_Pos) /*!< 0x00000008 */
-#define USB_OTG_HCINT_STALL USB_OTG_HCINT_STALL_Msk /*!< STALL response received interrupt */
-#define USB_OTG_HCINT_NAK_Pos (4U)
-#define USB_OTG_HCINT_NAK_Msk (0x1UL << USB_OTG_HCINT_NAK_Pos) /*!< 0x00000010 */
-#define USB_OTG_HCINT_NAK USB_OTG_HCINT_NAK_Msk /*!< NAK response received interrupt */
-#define USB_OTG_HCINT_ACK_Pos (5U)
-#define USB_OTG_HCINT_ACK_Msk (0x1UL << USB_OTG_HCINT_ACK_Pos) /*!< 0x00000020 */
-#define USB_OTG_HCINT_ACK USB_OTG_HCINT_ACK_Msk /*!< ACK response received/transmitted interrupt */
-#define USB_OTG_HCINT_NYET_Pos (6U)
-#define USB_OTG_HCINT_NYET_Msk (0x1UL << USB_OTG_HCINT_NYET_Pos) /*!< 0x00000040 */
-#define USB_OTG_HCINT_NYET USB_OTG_HCINT_NYET_Msk /*!< Response received interrupt */
-#define USB_OTG_HCINT_TXERR_Pos (7U)
-#define USB_OTG_HCINT_TXERR_Msk (0x1UL << USB_OTG_HCINT_TXERR_Pos) /*!< 0x00000080 */
-#define USB_OTG_HCINT_TXERR USB_OTG_HCINT_TXERR_Msk /*!< Transaction error */
-#define USB_OTG_HCINT_BBERR_Pos (8U)
-#define USB_OTG_HCINT_BBERR_Msk (0x1UL << USB_OTG_HCINT_BBERR_Pos) /*!< 0x00000100 */
-#define USB_OTG_HCINT_BBERR USB_OTG_HCINT_BBERR_Msk /*!< Babble error */
-#define USB_OTG_HCINT_FRMOR_Pos (9U)
-#define USB_OTG_HCINT_FRMOR_Msk (0x1UL << USB_OTG_HCINT_FRMOR_Pos) /*!< 0x00000200 */
-#define USB_OTG_HCINT_FRMOR USB_OTG_HCINT_FRMOR_Msk /*!< Frame overrun */
-#define USB_OTG_HCINT_DTERR_Pos (10U)
-#define USB_OTG_HCINT_DTERR_Msk (0x1UL << USB_OTG_HCINT_DTERR_Pos) /*!< 0x00000400 */
-#define USB_OTG_HCINT_DTERR USB_OTG_HCINT_DTERR_Msk /*!< Data toggle error */
-
-/******************** Bit definition for USB_OTG_DIEPINT register ********************/
-#define USB_OTG_DIEPINT_XFRC_Pos (0U)
-#define USB_OTG_DIEPINT_XFRC_Msk (0x1UL << USB_OTG_DIEPINT_XFRC_Pos) /*!< 0x00000001 */
-#define USB_OTG_DIEPINT_XFRC USB_OTG_DIEPINT_XFRC_Msk /*!< Transfer completed interrupt */
-#define USB_OTG_DIEPINT_EPDISD_Pos (1U)
-#define USB_OTG_DIEPINT_EPDISD_Msk (0x1UL << USB_OTG_DIEPINT_EPDISD_Pos) /*!< 0x00000002 */
-#define USB_OTG_DIEPINT_EPDISD USB_OTG_DIEPINT_EPDISD_Msk /*!< Endpoint disabled interrupt */
-#define USB_OTG_DIEPINT_AHBERR_Pos (2U)
-#define USB_OTG_DIEPINT_AHBERR_Msk (0x1UL << USB_OTG_DIEPINT_AHBERR_Pos) /*!< 0x00000004 */
-#define USB_OTG_DIEPINT_AHBERR USB_OTG_DIEPINT_AHBERR_Msk /*!< AHB Error (AHBErr) during an IN transaction */
-#define USB_OTG_DIEPINT_TOC_Pos (3U)
-#define USB_OTG_DIEPINT_TOC_Msk (0x1UL << USB_OTG_DIEPINT_TOC_Pos) /*!< 0x00000008 */
-#define USB_OTG_DIEPINT_TOC USB_OTG_DIEPINT_TOC_Msk /*!< Timeout condition */
-#define USB_OTG_DIEPINT_ITTXFE_Pos (4U)
-#define USB_OTG_DIEPINT_ITTXFE_Msk (0x1UL << USB_OTG_DIEPINT_ITTXFE_Pos) /*!< 0x00000010 */
-#define USB_OTG_DIEPINT_ITTXFE USB_OTG_DIEPINT_ITTXFE_Msk /*!< IN token received when TxFIFO is empty */
-#define USB_OTG_DIEPINT_INEPNM_Pos (5U)
-#define USB_OTG_DIEPINT_INEPNM_Msk (0x1UL << USB_OTG_DIEPINT_INEPNM_Pos) /*!< 0x00000004 */
-#define USB_OTG_DIEPINT_INEPNM USB_OTG_DIEPINT_INEPNM_Msk /*!< IN token received with EP mismatch */
-#define USB_OTG_DIEPINT_INEPNE_Pos (6U)
-#define USB_OTG_DIEPINT_INEPNE_Msk (0x1UL << USB_OTG_DIEPINT_INEPNE_Pos) /*!< 0x00000040 */
-#define USB_OTG_DIEPINT_INEPNE USB_OTG_DIEPINT_INEPNE_Msk /*!< IN endpoint NAK effective */
-#define USB_OTG_DIEPINT_TXFE_Pos (7U)
-#define USB_OTG_DIEPINT_TXFE_Msk (0x1UL << USB_OTG_DIEPINT_TXFE_Pos) /*!< 0x00000080 */
-#define USB_OTG_DIEPINT_TXFE USB_OTG_DIEPINT_TXFE_Msk /*!< Transmit FIFO empty */
-#define USB_OTG_DIEPINT_TXFIFOUDRN_Pos (8U)
-#define USB_OTG_DIEPINT_TXFIFOUDRN_Msk (0x1UL << USB_OTG_DIEPINT_TXFIFOUDRN_Pos) /*!< 0x00000100 */
-#define USB_OTG_DIEPINT_TXFIFOUDRN USB_OTG_DIEPINT_TXFIFOUDRN_Msk /*!< Transmit Fifo Underrun */
-#define USB_OTG_DIEPINT_BNA_Pos (9U)
-#define USB_OTG_DIEPINT_BNA_Msk (0x1UL << USB_OTG_DIEPINT_BNA_Pos) /*!< 0x00000200 */
-#define USB_OTG_DIEPINT_BNA USB_OTG_DIEPINT_BNA_Msk /*!< Buffer not available interrupt */
-#define USB_OTG_DIEPINT_PKTDRPSTS_Pos (11U)
-#define USB_OTG_DIEPINT_PKTDRPSTS_Msk (0x1UL << USB_OTG_DIEPINT_PKTDRPSTS_Pos) /*!< 0x00000800 */
-#define USB_OTG_DIEPINT_PKTDRPSTS USB_OTG_DIEPINT_PKTDRPSTS_Msk /*!< Packet dropped status */
-#define USB_OTG_DIEPINT_BERR_Pos (12U)
-#define USB_OTG_DIEPINT_BERR_Msk (0x1UL << USB_OTG_DIEPINT_BERR_Pos) /*!< 0x00001000 */
-#define USB_OTG_DIEPINT_BERR USB_OTG_DIEPINT_BERR_Msk /*!< Babble error interrupt */
-#define USB_OTG_DIEPINT_NAK_Pos (13U)
-#define USB_OTG_DIEPINT_NAK_Msk (0x1UL << USB_OTG_DIEPINT_NAK_Pos) /*!< 0x00002000 */
-#define USB_OTG_DIEPINT_NAK USB_OTG_DIEPINT_NAK_Msk /*!< NAK interrupt */
-
-/******************** Bit definition for USB_OTG_HCINTMSK register ********************/
-#define USB_OTG_HCINTMSK_XFRCM_Pos (0U)
-#define USB_OTG_HCINTMSK_XFRCM_Msk (0x1UL << USB_OTG_HCINTMSK_XFRCM_Pos) /*!< 0x00000001 */
-#define USB_OTG_HCINTMSK_XFRCM USB_OTG_HCINTMSK_XFRCM_Msk /*!< Transfer completed mask */
-#define USB_OTG_HCINTMSK_CHHM_Pos (1U)
-#define USB_OTG_HCINTMSK_CHHM_Msk (0x1UL << USB_OTG_HCINTMSK_CHHM_Pos) /*!< 0x00000002 */
-#define USB_OTG_HCINTMSK_CHHM USB_OTG_HCINTMSK_CHHM_Msk /*!< Channel halted mask */
-#define USB_OTG_HCINTMSK_AHBERR_Pos (2U)
-#define USB_OTG_HCINTMSK_AHBERR_Msk (0x1UL << USB_OTG_HCINTMSK_AHBERR_Pos) /*!< 0x00000004 */
-#define USB_OTG_HCINTMSK_AHBERR USB_OTG_HCINTMSK_AHBERR_Msk /*!< AHB error */
-#define USB_OTG_HCINTMSK_STALLM_Pos (3U)
-#define USB_OTG_HCINTMSK_STALLM_Msk (0x1UL << USB_OTG_HCINTMSK_STALLM_Pos) /*!< 0x00000008 */
-#define USB_OTG_HCINTMSK_STALLM USB_OTG_HCINTMSK_STALLM_Msk /*!< STALL response received interrupt mask */
-#define USB_OTG_HCINTMSK_NAKM_Pos (4U)
-#define USB_OTG_HCINTMSK_NAKM_Msk (0x1UL << USB_OTG_HCINTMSK_NAKM_Pos) /*!< 0x00000010 */
-#define USB_OTG_HCINTMSK_NAKM USB_OTG_HCINTMSK_NAKM_Msk /*!< NAK response received interrupt mask */
-#define USB_OTG_HCINTMSK_ACKM_Pos (5U)
-#define USB_OTG_HCINTMSK_ACKM_Msk (0x1UL << USB_OTG_HCINTMSK_ACKM_Pos) /*!< 0x00000020 */
-#define USB_OTG_HCINTMSK_ACKM USB_OTG_HCINTMSK_ACKM_Msk /*!< ACK response received/transmitted interrupt mask */
-#define USB_OTG_HCINTMSK_NYET_Pos (6U)
-#define USB_OTG_HCINTMSK_NYET_Msk (0x1UL << USB_OTG_HCINTMSK_NYET_Pos) /*!< 0x00000040 */
-#define USB_OTG_HCINTMSK_NYET USB_OTG_HCINTMSK_NYET_Msk /*!< response received interrupt mask */
-#define USB_OTG_HCINTMSK_TXERRM_Pos (7U)
-#define USB_OTG_HCINTMSK_TXERRM_Msk (0x1UL << USB_OTG_HCINTMSK_TXERRM_Pos) /*!< 0x00000080 */
-#define USB_OTG_HCINTMSK_TXERRM USB_OTG_HCINTMSK_TXERRM_Msk /*!< Transaction error mask */
-#define USB_OTG_HCINTMSK_BBERRM_Pos (8U)
-#define USB_OTG_HCINTMSK_BBERRM_Msk (0x1UL << USB_OTG_HCINTMSK_BBERRM_Pos) /*!< 0x00000100 */
-#define USB_OTG_HCINTMSK_BBERRM USB_OTG_HCINTMSK_BBERRM_Msk /*!< Babble error mask */
-#define USB_OTG_HCINTMSK_FRMORM_Pos (9U)
-#define USB_OTG_HCINTMSK_FRMORM_Msk (0x1UL << USB_OTG_HCINTMSK_FRMORM_Pos) /*!< 0x00000200 */
-#define USB_OTG_HCINTMSK_FRMORM USB_OTG_HCINTMSK_FRMORM_Msk /*!< Frame overrun mask */
-#define USB_OTG_HCINTMSK_DTERRM_Pos (10U)
-#define USB_OTG_HCINTMSK_DTERRM_Msk (0x1UL << USB_OTG_HCINTMSK_DTERRM_Pos) /*!< 0x00000400 */
-#define USB_OTG_HCINTMSK_DTERRM USB_OTG_HCINTMSK_DTERRM_Msk /*!< Data toggle error mask */
-
-/******************** Bit definition for USB_OTG_DIEPTSIZ register ********************/
-
-#define USB_OTG_DIEPTSIZ_XFRSIZ_Pos (0U)
-#define USB_OTG_DIEPTSIZ_XFRSIZ_Msk (0x7FFFFUL << USB_OTG_DIEPTSIZ_XFRSIZ_Pos) /*!< 0x0007FFFF */
-#define USB_OTG_DIEPTSIZ_XFRSIZ USB_OTG_DIEPTSIZ_XFRSIZ_Msk /*!< Transfer size */
-#define USB_OTG_DIEPTSIZ_PKTCNT_Pos (19U)
-#define USB_OTG_DIEPTSIZ_PKTCNT_Msk (0x3FFUL << USB_OTG_DIEPTSIZ_PKTCNT_Pos) /*!< 0x1FF80000 */
-#define USB_OTG_DIEPTSIZ_PKTCNT USB_OTG_DIEPTSIZ_PKTCNT_Msk /*!< Packet count */
-#define USB_OTG_DIEPTSIZ_MULCNT_Pos (29U)
-#define USB_OTG_DIEPTSIZ_MULCNT_Msk (0x3UL << USB_OTG_DIEPTSIZ_MULCNT_Pos) /*!< 0x60000000 */
-#define USB_OTG_DIEPTSIZ_MULCNT USB_OTG_DIEPTSIZ_MULCNT_Msk /*!< Packet count */
-/******************** Bit definition for USB_OTG_HCTSIZ register ********************/
-#define USB_OTG_HCTSIZ_XFRSIZ_Pos (0U)
-#define USB_OTG_HCTSIZ_XFRSIZ_Msk (0x7FFFFUL << USB_OTG_HCTSIZ_XFRSIZ_Pos) /*!< 0x0007FFFF */
-#define USB_OTG_HCTSIZ_XFRSIZ USB_OTG_HCTSIZ_XFRSIZ_Msk /*!< Transfer size */
-#define USB_OTG_HCTSIZ_PKTCNT_Pos (19U)
-#define USB_OTG_HCTSIZ_PKTCNT_Msk (0x3FFUL << USB_OTG_HCTSIZ_PKTCNT_Pos) /*!< 0x1FF80000 */
-#define USB_OTG_HCTSIZ_PKTCNT USB_OTG_HCTSIZ_PKTCNT_Msk /*!< Packet count */
-#define USB_OTG_HCTSIZ_DOPING_Pos (31U)
-#define USB_OTG_HCTSIZ_DOPING_Msk (0x1UL << USB_OTG_HCTSIZ_DOPING_Pos) /*!< 0x80000000 */
-#define USB_OTG_HCTSIZ_DOPING USB_OTG_HCTSIZ_DOPING_Msk /*!< Do PING */
-#define USB_OTG_HCTSIZ_DPID_Pos (29U)
-#define USB_OTG_HCTSIZ_DPID_Msk (0x3UL << USB_OTG_HCTSIZ_DPID_Pos) /*!< 0x60000000 */
-#define USB_OTG_HCTSIZ_DPID USB_OTG_HCTSIZ_DPID_Msk /*!< Data PID */
-#define USB_OTG_HCTSIZ_DPID_0 (0x1UL << USB_OTG_HCTSIZ_DPID_Pos) /*!< 0x20000000 */
-#define USB_OTG_HCTSIZ_DPID_1 (0x2UL << USB_OTG_HCTSIZ_DPID_Pos) /*!< 0x40000000 */
-
-/******************** Bit definition for USB_OTG_DIEPDMA register ********************/
-#define USB_OTG_DIEPDMA_DMAADDR_Pos (0U)
-#define USB_OTG_DIEPDMA_DMAADDR_Msk (0xFFFFFFFFUL << USB_OTG_DIEPDMA_DMAADDR_Pos) /*!< 0xFFFFFFFF */
-#define USB_OTG_DIEPDMA_DMAADDR USB_OTG_DIEPDMA_DMAADDR_Msk /*!< DMA address */
-
-/******************** Bit definition for USB_OTG_HCDMA register ********************/
-#define USB_OTG_HCDMA_DMAADDR_Pos (0U)
-#define USB_OTG_HCDMA_DMAADDR_Msk (0xFFFFFFFFUL << USB_OTG_HCDMA_DMAADDR_Pos) /*!< 0xFFFFFFFF */
-#define USB_OTG_HCDMA_DMAADDR USB_OTG_HCDMA_DMAADDR_Msk /*!< DMA address */
-
-/******************** Bit definition for USB_OTG_DTXFSTS register ********************/
-#define USB_OTG_DTXFSTS_INEPTFSAV_Pos (0U)
-#define USB_OTG_DTXFSTS_INEPTFSAV_Msk (0xFFFFUL << USB_OTG_DTXFSTS_INEPTFSAV_Pos) /*!< 0x0000FFFF */
-#define USB_OTG_DTXFSTS_INEPTFSAV USB_OTG_DTXFSTS_INEPTFSAV_Msk /*!< IN endpoint TxFIFO space available */
-
-/******************** Bit definition for USB_OTG_DIEPTXF register ********************/
-#define USB_OTG_DIEPTXF_INEPTXSA_Pos (0U)
-#define USB_OTG_DIEPTXF_INEPTXSA_Msk (0xFFFFUL << USB_OTG_DIEPTXF_INEPTXSA_Pos) /*!< 0x0000FFFF */
-#define USB_OTG_DIEPTXF_INEPTXSA USB_OTG_DIEPTXF_INEPTXSA_Msk /*!< IN endpoint FIFOx transmit RAM start address */
-#define USB_OTG_DIEPTXF_INEPTXFD_Pos (16U)
-#define USB_OTG_DIEPTXF_INEPTXFD_Msk (0xFFFFUL << USB_OTG_DIEPTXF_INEPTXFD_Pos) /*!< 0xFFFF0000 */
-#define USB_OTG_DIEPTXF_INEPTXFD USB_OTG_DIEPTXF_INEPTXFD_Msk /*!< IN endpoint TxFIFO depth */
-
-/******************** Bit definition for USB_OTG_DOEPCTL register ********************/
-
-#define USB_OTG_DOEPCTL_MPSIZ_Pos (0U)
-#define USB_OTG_DOEPCTL_MPSIZ_Msk (0x7FFUL << USB_OTG_DOEPCTL_MPSIZ_Pos) /*!< 0x000007FF */
-#define USB_OTG_DOEPCTL_MPSIZ USB_OTG_DOEPCTL_MPSIZ_Msk /*!< Maximum packet size */ /*!<Bit 1 */
-#define USB_OTG_DOEPCTL_USBAEP_Pos (15U)
-#define USB_OTG_DOEPCTL_USBAEP_Msk (0x1UL << USB_OTG_DOEPCTL_USBAEP_Pos) /*!< 0x00008000 */
-#define USB_OTG_DOEPCTL_USBAEP USB_OTG_DOEPCTL_USBAEP_Msk /*!< USB active endpoint */
-#define USB_OTG_DOEPCTL_NAKSTS_Pos (17U)
-#define USB_OTG_DOEPCTL_NAKSTS_Msk (0x1UL << USB_OTG_DOEPCTL_NAKSTS_Pos) /*!< 0x00020000 */
-#define USB_OTG_DOEPCTL_NAKSTS USB_OTG_DOEPCTL_NAKSTS_Msk /*!< NAK status */
-#define USB_OTG_DOEPCTL_SD0PID_SEVNFRM_Pos (28U)
-#define USB_OTG_DOEPCTL_SD0PID_SEVNFRM_Msk (0x1UL << USB_OTG_DOEPCTL_SD0PID_SEVNFRM_Pos) /*!< 0x10000000 */
-#define USB_OTG_DOEPCTL_SD0PID_SEVNFRM USB_OTG_DOEPCTL_SD0PID_SEVNFRM_Msk /*!< Set DATA0 PID */
-#define USB_OTG_DOEPCTL_SODDFRM_Pos (29U)
-#define USB_OTG_DOEPCTL_SODDFRM_Msk (0x1UL << USB_OTG_DOEPCTL_SODDFRM_Pos) /*!< 0x20000000 */
-#define USB_OTG_DOEPCTL_SODDFRM USB_OTG_DOEPCTL_SODDFRM_Msk /*!< Set odd frame */
-#define USB_OTG_DOEPCTL_EPTYP_Pos (18U)
-#define USB_OTG_DOEPCTL_EPTYP_Msk (0x3UL << USB_OTG_DOEPCTL_EPTYP_Pos) /*!< 0x000C0000 */
-#define USB_OTG_DOEPCTL_EPTYP USB_OTG_DOEPCTL_EPTYP_Msk /*!< Endpoint type */
-#define USB_OTG_DOEPCTL_EPTYP_0 (0x1UL << USB_OTG_DOEPCTL_EPTYP_Pos) /*!< 0x00040000 */
-#define USB_OTG_DOEPCTL_EPTYP_1 (0x2UL << USB_OTG_DOEPCTL_EPTYP_Pos) /*!< 0x00080000 */
-#define USB_OTG_DOEPCTL_SNPM_Pos (20U)
-#define USB_OTG_DOEPCTL_SNPM_Msk (0x1UL << USB_OTG_DOEPCTL_SNPM_Pos) /*!< 0x00100000 */
-#define USB_OTG_DOEPCTL_SNPM USB_OTG_DOEPCTL_SNPM_Msk /*!< Snoop mode */
-#define USB_OTG_DOEPCTL_STALL_Pos (21U)
-#define USB_OTG_DOEPCTL_STALL_Msk (0x1UL << USB_OTG_DOEPCTL_STALL_Pos) /*!< 0x00200000 */
-#define USB_OTG_DOEPCTL_STALL USB_OTG_DOEPCTL_STALL_Msk /*!< STALL handshake */
-#define USB_OTG_DOEPCTL_CNAK_Pos (26U)
-#define USB_OTG_DOEPCTL_CNAK_Msk (0x1UL << USB_OTG_DOEPCTL_CNAK_Pos) /*!< 0x04000000 */
-#define USB_OTG_DOEPCTL_CNAK USB_OTG_DOEPCTL_CNAK_Msk /*!< Clear NAK */
-#define USB_OTG_DOEPCTL_SNAK_Pos (27U)
-#define USB_OTG_DOEPCTL_SNAK_Msk (0x1UL << USB_OTG_DOEPCTL_SNAK_Pos) /*!< 0x08000000 */
-#define USB_OTG_DOEPCTL_SNAK USB_OTG_DOEPCTL_SNAK_Msk /*!< Set NAK */
-#define USB_OTG_DOEPCTL_EPDIS_Pos (30U)
-#define USB_OTG_DOEPCTL_EPDIS_Msk (0x1UL << USB_OTG_DOEPCTL_EPDIS_Pos) /*!< 0x40000000 */
-#define USB_OTG_DOEPCTL_EPDIS USB_OTG_DOEPCTL_EPDIS_Msk /*!< Endpoint disable */
-#define USB_OTG_DOEPCTL_EPENA_Pos (31U)
-#define USB_OTG_DOEPCTL_EPENA_Msk (0x1UL << USB_OTG_DOEPCTL_EPENA_Pos) /*!< 0x80000000 */
-#define USB_OTG_DOEPCTL_EPENA USB_OTG_DOEPCTL_EPENA_Msk /*!< Endpoint enable */
-
-/******************** Bit definition for USB_OTG_DOEPINT register ********************/
-#define USB_OTG_DOEPINT_XFRC_Pos (0U)
-#define USB_OTG_DOEPINT_XFRC_Msk (0x1UL << USB_OTG_DOEPINT_XFRC_Pos) /*!< 0x00000001 */
-#define USB_OTG_DOEPINT_XFRC USB_OTG_DOEPINT_XFRC_Msk /*!< Transfer completed interrupt */
-#define USB_OTG_DOEPINT_EPDISD_Pos (1U)
-#define USB_OTG_DOEPINT_EPDISD_Msk (0x1UL << USB_OTG_DOEPINT_EPDISD_Pos) /*!< 0x00000002 */
-#define USB_OTG_DOEPINT_EPDISD USB_OTG_DOEPINT_EPDISD_Msk /*!< Endpoint disabled interrupt */
-#define USB_OTG_DOEPINT_AHBERR_Pos (2U)
-#define USB_OTG_DOEPINT_AHBERR_Msk (0x1UL << USB_OTG_DOEPINT_AHBERR_Pos) /*!< 0x00000004 */
-#define USB_OTG_DOEPINT_AHBERR USB_OTG_DOEPINT_AHBERR_Msk /*!< AHB Error (AHBErr) during an OUT transaction */
-#define USB_OTG_DOEPINT_STUP_Pos (3U)
-#define USB_OTG_DOEPINT_STUP_Msk (0x1UL << USB_OTG_DOEPINT_STUP_Pos) /*!< 0x00000008 */
-#define USB_OTG_DOEPINT_STUP USB_OTG_DOEPINT_STUP_Msk /*!< SETUP phase done */
-#define USB_OTG_DOEPINT_OTEPDIS_Pos (4U)
-#define USB_OTG_DOEPINT_OTEPDIS_Msk (0x1UL << USB_OTG_DOEPINT_OTEPDIS_Pos) /*!< 0x00000010 */
-#define USB_OTG_DOEPINT_OTEPDIS USB_OTG_DOEPINT_OTEPDIS_Msk /*!< OUT token received when endpoint disabled */
-#define USB_OTG_DOEPINT_OTEPSPR_Pos (5U)
-#define USB_OTG_DOEPINT_OTEPSPR_Msk (0x1UL << USB_OTG_DOEPINT_OTEPSPR_Pos) /*!< 0x00000020 */
-#define USB_OTG_DOEPINT_OTEPSPR USB_OTG_DOEPINT_OTEPSPR_Msk /*!< Status Phase Received For Control Write */
-#define USB_OTG_DOEPINT_B2BSTUP_Pos (6U)
-#define USB_OTG_DOEPINT_B2BSTUP_Msk (0x1UL << USB_OTG_DOEPINT_B2BSTUP_Pos) /*!< 0x00000040 */
-#define USB_OTG_DOEPINT_B2BSTUP USB_OTG_DOEPINT_B2BSTUP_Msk /*!< Back-to-back SETUP packets received */
-#define USB_OTG_DOEPINT_OUTPKTERR_Pos (8U)
-#define USB_OTG_DOEPINT_OUTPKTERR_Msk (0x1UL << USB_OTG_DOEPINT_OUTPKTERR_Pos) /*!< 0x00000100 */
-#define USB_OTG_DOEPINT_OUTPKTERR USB_OTG_DOEPINT_OUTPKTERR_Msk /*!< OUT packet error */
-#define USB_OTG_DOEPINT_NAK_Pos (13U)
-#define USB_OTG_DOEPINT_NAK_Msk (0x1UL << USB_OTG_DOEPINT_NAK_Pos) /*!< 0x00002000 */
-#define USB_OTG_DOEPINT_NAK USB_OTG_DOEPINT_NAK_Msk /*!< NAK Packet is transmitted by the device */
-#define USB_OTG_DOEPINT_NYET_Pos (14U)
-#define USB_OTG_DOEPINT_NYET_Msk (0x1UL << USB_OTG_DOEPINT_NYET_Pos) /*!< 0x00004000 */
-#define USB_OTG_DOEPINT_NYET USB_OTG_DOEPINT_NYET_Msk /*!< NYET interrupt */
-#define USB_OTG_DOEPINT_STPKTRX_Pos (15U)
-#define USB_OTG_DOEPINT_STPKTRX_Msk (0x1UL << USB_OTG_DOEPINT_STPKTRX_Pos) /*!< 0x00008000 */
-#define USB_OTG_DOEPINT_STPKTRX USB_OTG_DOEPINT_STPKTRX_Msk /*!< Setup Packet Received */
-/******************** Bit definition for USB_OTG_DOEPTSIZ register ********************/
-
-#define USB_OTG_DOEPTSIZ_XFRSIZ_Pos (0U)
-#define USB_OTG_DOEPTSIZ_XFRSIZ_Msk (0x7FFFFUL << USB_OTG_DOEPTSIZ_XFRSIZ_Pos) /*!< 0x0007FFFF */
-#define USB_OTG_DOEPTSIZ_XFRSIZ USB_OTG_DOEPTSIZ_XFRSIZ_Msk /*!< Transfer size */
-#define USB_OTG_DOEPTSIZ_PKTCNT_Pos (19U)
-#define USB_OTG_DOEPTSIZ_PKTCNT_Msk (0x3FFUL << USB_OTG_DOEPTSIZ_PKTCNT_Pos) /*!< 0x1FF80000 */
-#define USB_OTG_DOEPTSIZ_PKTCNT USB_OTG_DOEPTSIZ_PKTCNT_Msk /*!< Packet count */
-
-#define USB_OTG_DOEPTSIZ_STUPCNT_Pos (29U)
-#define USB_OTG_DOEPTSIZ_STUPCNT_Msk (0x3UL << USB_OTG_DOEPTSIZ_STUPCNT_Pos) /*!< 0x60000000 */
-#define USB_OTG_DOEPTSIZ_STUPCNT USB_OTG_DOEPTSIZ_STUPCNT_Msk /*!< SETUP packet count */
-#define USB_OTG_DOEPTSIZ_STUPCNT_0 (0x1UL << USB_OTG_DOEPTSIZ_STUPCNT_Pos) /*!< 0x20000000 */
-#define USB_OTG_DOEPTSIZ_STUPCNT_1 (0x2UL << USB_OTG_DOEPTSIZ_STUPCNT_Pos) /*!< 0x40000000 */
-
-/******************** Bit definition for PCGCCTL register ********************/
-#define USB_OTG_PCGCCTL_STOPCLK_Pos (0U)
-#define USB_OTG_PCGCCTL_STOPCLK_Msk (0x1UL << USB_OTG_PCGCCTL_STOPCLK_Pos) /*!< 0x00000001 */
-#define USB_OTG_PCGCCTL_STOPCLK USB_OTG_PCGCCTL_STOPCLK_Msk /*!< SETUP packet count */
-#define USB_OTG_PCGCCTL_GATECLK_Pos (1U)
-#define USB_OTG_PCGCCTL_GATECLK_Msk (0x1UL << USB_OTG_PCGCCTL_GATECLK_Pos) /*!< 0x00000002 */
-#define USB_OTG_PCGCCTL_GATECLK USB_OTG_PCGCCTL_GATECLK_Msk /*!<Bit 0 */
-#define USB_OTG_PCGCCTL_PHYSUSP_Pos (4U)
-#define USB_OTG_PCGCCTL_PHYSUSP_Msk (0x1UL << USB_OTG_PCGCCTL_PHYSUSP_Pos) /*!< 0x00000010 */
-#define USB_OTG_PCGCCTL_PHYSUSP USB_OTG_PCGCCTL_PHYSUSP_Msk /*!<Bit 1 */
-
-/* Legacy define */
-/******************** Bit definition for OTG register ********************/
-#define USB_OTG_CHNUM_Pos (0U)
-#define USB_OTG_CHNUM_Msk (0xFUL << USB_OTG_CHNUM_Pos) /*!< 0x0000000F */
-#define USB_OTG_CHNUM USB_OTG_CHNUM_Msk /*!< Channel number */
-#define USB_OTG_CHNUM_0 (0x1UL << USB_OTG_CHNUM_Pos) /*!< 0x00000001 */
-#define USB_OTG_CHNUM_1 (0x2UL << USB_OTG_CHNUM_Pos) /*!< 0x00000002 */
-#define USB_OTG_CHNUM_2 (0x4UL << USB_OTG_CHNUM_Pos) /*!< 0x00000004 */
-#define USB_OTG_CHNUM_3 (0x8UL << USB_OTG_CHNUM_Pos) /*!< 0x00000008 */
-#define USB_OTG_BCNT_Pos (4U)
-#define USB_OTG_BCNT_Msk (0x7FFUL << USB_OTG_BCNT_Pos) /*!< 0x00007FF0 */
-#define USB_OTG_BCNT USB_OTG_BCNT_Msk /*!< Byte count */
-
-#define USB_OTG_DPID_Pos (15U)
-#define USB_OTG_DPID_Msk (0x3UL << USB_OTG_DPID_Pos) /*!< 0x00018000 */
-#define USB_OTG_DPID USB_OTG_DPID_Msk /*!< Data PID */
-#define USB_OTG_DPID_0 (0x1UL << USB_OTG_DPID_Pos) /*!< 0x00008000 */
-#define USB_OTG_DPID_1 (0x2UL << USB_OTG_DPID_Pos) /*!< 0x00010000 */
-
-#define USB_OTG_PKTSTS_Pos (17U)
-#define USB_OTG_PKTSTS_Msk (0xFUL << USB_OTG_PKTSTS_Pos) /*!< 0x001E0000 */
-#define USB_OTG_PKTSTS USB_OTG_PKTSTS_Msk /*!< Packet status */
-#define USB_OTG_PKTSTS_0 (0x1UL << USB_OTG_PKTSTS_Pos) /*!< 0x00020000 */
-#define USB_OTG_PKTSTS_1 (0x2UL << USB_OTG_PKTSTS_Pos) /*!< 0x00040000 */
-#define USB_OTG_PKTSTS_2 (0x4UL << USB_OTG_PKTSTS_Pos) /*!< 0x00080000 */
-#define USB_OTG_PKTSTS_3 (0x8UL << USB_OTG_PKTSTS_Pos) /*!< 0x00100000 */
-
-#define USB_OTG_EPNUM_Pos (0U)
-#define USB_OTG_EPNUM_Msk (0xFUL << USB_OTG_EPNUM_Pos) /*!< 0x0000000F */
-#define USB_OTG_EPNUM USB_OTG_EPNUM_Msk /*!< Endpoint number */
-#define USB_OTG_EPNUM_0 (0x1UL << USB_OTG_EPNUM_Pos) /*!< 0x00000001 */
-#define USB_OTG_EPNUM_1 (0x2UL << USB_OTG_EPNUM_Pos) /*!< 0x00000002 */
-#define USB_OTG_EPNUM_2 (0x4UL << USB_OTG_EPNUM_Pos) /*!< 0x00000004 */
-#define USB_OTG_EPNUM_3 (0x8UL << USB_OTG_EPNUM_Pos) /*!< 0x00000008 */
-
-#define USB_OTG_FRMNUM_Pos (21U)
-#define USB_OTG_FRMNUM_Msk (0xFUL << USB_OTG_FRMNUM_Pos) /*!< 0x01E00000 */
-#define USB_OTG_FRMNUM USB_OTG_FRMNUM_Msk /*!< Frame number */
-#define USB_OTG_FRMNUM_0 (0x1UL << USB_OTG_FRMNUM_Pos) /*!< 0x00200000 */
-#define USB_OTG_FRMNUM_1 (0x2UL << USB_OTG_FRMNUM_Pos) /*!< 0x00400000 */
-#define USB_OTG_FRMNUM_2 (0x4UL << USB_OTG_FRMNUM_Pos) /*!< 0x00800000 */
-#define USB_OTG_FRMNUM_3 (0x8UL << USB_OTG_FRMNUM_Pos) /*!< 0x01000000 */
-
-/************************ (C) COPYRIGHT STMicroelectronics *****END OF FILE****/
diff --git a/src/portable/st/typec/typec_stm32.c b/src/portable/st/typec/typec_stm32.c
index bf8b660f0..8da2e39ba 100644
--- a/src/portable/st/typec/typec_stm32.c
+++ b/src/portable/st/typec/typec_stm32.c
@@ -246,7 +246,7 @@ void tcd_int_handler(uint8_t rhport) {
v_cc[0] = (UCPD1->SR >> UCPD_SR_TYPEC_VSTATE_CC1_Pos) & 0x03;
v_cc[1] = (UCPD1->SR >> UCPD_SR_TYPEC_VSTATE_CC2_Pos) & 0x03;
- TU_LOG3("VState CC1 = %lu, CC2 = %lu\n", v_cc[0], v_cc[1]);
+ TU_LOG3("VState CC1 = %lu, CC2 = %lu\r\n", v_cc[0], v_cc[1]);
uint32_t cr = UCPD1->CR;
@@ -255,15 +255,15 @@ void tcd_int_handler(uint8_t rhport) {
// FIXME somehow CC2 is vstate is not correct, always 1 even not attached.
// on DPOW1 board, it is connected to PA10 (USBPD_DBCC2), we probably miss something.
if ((sr & UCPD_SR_TYPECEVT1) && (v_cc[0] == 3)) {
- TU_LOG3("Attach CC1\n");
+ TU_LOG3("Attach CC1\r\n");
cr &= ~(UCPD_CR_PHYCCSEL | UCPD_CR_CCENABLE);
cr |= UCPD_CR_PHYRXEN | UCPD_CR_CCENABLE_0;
} else if ((sr & UCPD_SR_TYPECEVT2) && (v_cc[1] == 3)) {
- TU_LOG3("Attach CC2\n");
+ TU_LOG3("Attach CC2\r\n");
cr &= ~UCPD_CR_CCENABLE;
cr |= (UCPD_CR_PHYCCSEL | UCPD_CR_PHYRXEN | UCPD_CR_CCENABLE_1);
} else {
- TU_LOG3("Detach\n");
+ TU_LOG3("Detach\r\n");
cr &= ~UCPD_CR_PHYRXEN;
cr |= UCPD_CR_CCENABLE_0 | UCPD_CR_CCENABLE_1;
}
@@ -290,7 +290,7 @@ void tcd_int_handler(uint8_t rhport) {
//------------- RX -------------//
if (sr & UCPD_SR_RXORDDET) {
// SOP: Start of Packet.
- TU_LOG3("SOP\n");
+ TU_LOG3("SOP\r\n");
// UCPD1->RX_ORDSET & UCPD_RX_ORDSET_RXORDSET_Msk;
// ack
@@ -299,7 +299,7 @@ void tcd_int_handler(uint8_t rhport) {
// Received full message
if (sr & UCPD_SR_RXMSGEND) {
- TU_LOG3("RX MSG END\n");
+ TU_LOG3("RX MSG END\r\n");
// stop TX
dma_stop(rhport, true);
@@ -328,7 +328,7 @@ void tcd_int_handler(uint8_t rhport) {
}
if (sr & UCPD_SR_RXOVR) {
- TU_LOG3("RXOVR\n");
+ TU_LOG3("RXOVR\r\n");
// ack
UCPD1->ICR = UCPD_ICR_RXOVRCF;
}
@@ -343,12 +343,12 @@ void tcd_int_handler(uint8_t rhport) {
uint8_t result;
if ( sr & UCPD_SR_TXMSGSENT ) {
- TU_LOG3("TX MSG SENT\n");
+ TU_LOG3("TX MSG SENT\r\n");
result = XFER_RESULT_SUCCESS;
// ack
UCPD1->ICR = UCPD_ICR_TXMSGSENTCF;
}else {
- TU_LOG3("TX Error\n");
+ TU_LOG3("TX Error\r\n");
result = XFER_RESULT_FAILED;
// ack
UCPD1->ICR = UCPD_SR_TXMSGDISC | UCPD_SR_TXMSGABT | UCPD_SR_TXUND;
diff --git a/src/portable/sunxi/dcd_sunxi_musb.c b/src/portable/sunxi/dcd_sunxi_musb.c
index e26be775d..6f36ad441 100644
--- a/src/portable/sunxi/dcd_sunxi_musb.c
+++ b/src/portable/sunxi/dcd_sunxi_musb.c
@@ -35,7 +35,9 @@
#include <f1c100s-irq.h>
#include <device/dcd.h>
#include "musb_def.h"
-#include "bsp/board.h"
+
+//#include "bsp/board_api.h"
+extern uint32_t board_millis(void); // TODO remove
typedef uint32_t u32;
typedef uint16_t u16;
@@ -58,7 +60,7 @@ typedef struct TU_ATTR_PACKED
typedef struct
{
- tusb_control_request_t setup_packet;
+ CFG_TUD_MEM_ALIGN tusb_control_request_t setup_packet;
uint16_t remaining_ctrl; /* The number of bytes remaining in data stage of control transfer. */
int8_t status_out;
pipe_state_t pipe0;
@@ -350,7 +352,7 @@ static void USBC_INT_DisableRxEp(u8 ep_index)
* INTERNAL FUNCTION DECLARATION
*------------------------------------------------------------------*/
-static dcd_data_t _dcd;
+CFG_TUD_MEM_ALIGN static dcd_data_t _dcd;
static inline free_block_t *find_containing_block(free_block_t *beg, free_block_t *end, uint_fast16_t addr)
{
@@ -408,9 +410,9 @@ static inline unsigned free_block_size(free_block_t const *blk)
#if 0
static inline void print_block_list(free_block_t const *blk, unsigned num)
{
- TU_LOG1("*************\n");
+ TU_LOG1("*************\r\n");
for (unsigned i = 0; i < num; ++i) {
- TU_LOG1(" Blk%u %u %u\n", i, blk->beg, blk->end);
+ TU_LOG1(" Blk%u %u %u\r\n", i, blk->beg, blk->end);
++blk;
}
}
@@ -560,7 +562,7 @@ static void pipe_read_write_packet_ff(tu_fifo_t *f, volatile void *fifo, unsigne
static void process_setup_packet(uint8_t rhport)
{
- uint32_t *p = (uint32_t*)&_dcd.setup_packet;
+ uint32_t *p = (uint32_t*)(uintptr_t) &_dcd.setup_packet;
p[0] = USBC_Readl(USBC_REG_EPFIFO0(USBC0_BASE));
p[1] = USBC_Readl(USBC_REG_EPFIFO0(USBC0_BASE));
@@ -590,11 +592,11 @@ static bool handle_xfer_in(uint_fast8_t ep_addr)
const unsigned mps = USBC_Readw(USBC_REG_TXMAXP(USBC0_BASE));
const unsigned len = TU_MIN(mps, rem);
uint8_t *buf = pipe->buf;
- // TU_LOG1(" %p mps %d len %d rem %d\n", buf, mps, len, rem);
+ // TU_LOG1(" %p mps %d len %d rem %d\r\n", buf, mps, len, rem);
if (len) {
volatile void* addr = (volatile void*)(USBC_REG_EPFIFO1(USBC0_BASE) + (epnum_minus1 << 2));
if (_dcd.pipe_buf_is_fifo[TUSB_DIR_IN] & TU_BIT(epnum_minus1)) {
- pipe_read_write_packet_ff((tu_fifo_t *)buf, addr, len, TUSB_DIR_IN);
+ pipe_read_write_packet_ff((tu_fifo_t *)(uintptr_t) buf, addr, len, TUSB_DIR_IN);
} else {
pipe_write_packet(buf, addr, len);
pipe->buf = buf + len;
@@ -602,7 +604,7 @@ static bool handle_xfer_in(uint_fast8_t ep_addr)
pipe->remaining = rem - len;
}
__USBC_Dev_Tx_WriteDataComplete();
- // TU_LOG1(" TXCSRL%d = %x %d\n", epnum_minus1 + 1, regs->TXCSRL, rem - len);
+ // TU_LOG1(" TXCSRL%d = %x %d\r\n", epnum_minus1 + 1, regs->TXCSRL, rem - len);
return false;
}
@@ -610,7 +612,7 @@ static bool handle_xfer_out(uint_fast8_t ep_addr)
{
unsigned epnum_minus1 = tu_edpt_number(ep_addr) - 1;
pipe_state_t *pipe = &_dcd.pipe[tu_edpt_dir(ep_addr)][epnum_minus1];
- // TU_LOG1(" RXCSRL%d = %x\n", epnum_minus1 + 1, regs->RXCSRL);
+ // TU_LOG1(" RXCSRL%d = %x\r\n", epnum_minus1 + 1, regs->RXCSRL);
TU_ASSERT(__USBC_Dev_Rx_IsReadDataReady());
@@ -622,7 +624,7 @@ static bool handle_xfer_out(uint_fast8_t ep_addr)
if (len) {
volatile void* addr = (volatile void*)(USBC_REG_EPFIFO1(USBC0_BASE) + (epnum_minus1 << 2));
if (_dcd.pipe_buf_is_fifo[TUSB_DIR_OUT] & TU_BIT(epnum_minus1)) {
- pipe_read_write_packet_ff((tu_fifo_t *)buf, addr, len, TUSB_DIR_OUT);
+ pipe_read_write_packet_ff((tu_fifo_t *)(uintptr_t )buf, addr, len, TUSB_DIR_OUT);
} else {
pipe_read_packet(buf, addr, len);
pipe->buf = buf + len;
@@ -677,14 +679,14 @@ static bool edpt0_xfer(uint8_t rhport, uint8_t ep_addr, uint8_t *buffer, uint16_
* may have already finished and received the next setup packet
* without calling this function, so we have no choice but to
* invoke the callback function of status packet here. */
- // TU_LOG1(" STATUS OUT CSRL0 = %x\n", CSRL0);
+ // TU_LOG1(" STATUS OUT CSRL0 = %x\r\n", CSRL0);
_dcd.status_out = 0;
if (req == REQUEST_TYPE_INVALID) {
dcd_event_xfer_complete(rhport, ep_addr, total_bytes, XFER_RESULT_SUCCESS, false);
} else {
/* The next setup packet has already been received, it aborts
* invoking callback function to avoid confusing TUSB stack. */
- TU_LOG1("Drop CONTROL_STAGE_ACK\n");
+ TU_LOG1("Drop CONTROL_STAGE_ACK\r\n");
}
return true;
}
@@ -709,16 +711,16 @@ static bool edpt0_xfer(uint8_t rhport, uint8_t ep_addr, uint8_t *buffer, uint16_
} else {
__USBC_Dev_ep0_WriteDataHalf();
}
- // TU_LOG1(" IN CSRL0 = %x\n", CSRL0);
+ // TU_LOG1(" IN CSRL0 = %x\r\n", CSRL0);
} else {
- // TU_LOG1(" OUT CSRL0 = %x\n", CSRL0);
+ // TU_LOG1(" OUT CSRL0 = %x\r\n", CSRL0);
_dcd.pipe0.buf = buffer;
_dcd.pipe0.length = len;
_dcd.pipe0.remaining = len;
__USBC_Dev_ep0_ReadDataHalf();
}
} else if (dir_in) {
- // TU_LOG1(" STATUS IN CSRL0 = %x\n", CSRL0);
+ // TU_LOG1(" STATUS IN CSRL0 = %x\r\n", CSRL0);
_dcd.pipe0.buf = NULL;
_dcd.pipe0.length = 0;
_dcd.pipe0.remaining = 0;
@@ -733,7 +735,7 @@ static void process_ep0(uint8_t rhport)
USBC_SelectActiveEp(0);
uint_fast8_t csrl = USBC_Readw(USBC_REG_CSR0(USBC0_BASE));
- // TU_LOG1(" EP0 CSRL0 = %x\n", csrl);
+ // TU_LOG1(" EP0 CSRL0 = %x\r\n", csrl);
if (csrl & USB_CSRL0_STALLED) {
/* Returned STALL packet to HOST. */
@@ -743,7 +745,7 @@ static void process_ep0(uint8_t rhport)
unsigned req = _dcd.setup_packet.bmRequestType;
if (csrl & USB_CSRL0_SETEND) {
- // TU_LOG1(" ABORT by the next packets\n");
+ // TU_LOG1(" ABORT by the next packets\r\n");
USBC_Dev_Ctrl_ClearSetupEnd();
if (req != REQUEST_TYPE_INVALID && _dcd.pipe0.buf) {
/* DATA stage was aborted by receiving STATUS or SETUP packet. */
@@ -819,14 +821,14 @@ static void process_edpt_n(uint8_t rhport, uint_fast8_t ep_addr)
USBC_SelectActiveEp(epn);
if (dir_in) {
- // TU_LOG1(" TXCSRL%d = %x\n", epn_minus1 + 1, regs->TXCSRL);
+ // TU_LOG1(" TXCSRL%d = %x\r\n", epn_minus1 + 1, regs->TXCSRL);
if (__USBC_Dev_Tx_IsEpStall()) {
__USBC_Dev_Tx_ClearStall();
return;
}
completed = handle_xfer_in(ep_addr);
} else {
- // TU_LOG1(" RXCSRL%d = %x\n", epn_minus1 + 1, regs->RXCSRL);
+ // TU_LOG1(" RXCSRL%d = %x\r\n", epn_minus1 + 1, regs->RXCSRL);
if (__USBC_Dev_Rx_IsEpStall()) {
__USBC_Dev_Rx_ClearStall();
return;
@@ -1092,7 +1094,7 @@ bool dcd_edpt_xfer(uint8_t rhport, uint8_t ep_addr, uint8_t * buffer, uint16_t t
{
(void)rhport;
bool ret;
- // TU_LOG1("X %x %d\n", ep_addr, total_bytes);
+ // TU_LOG1("X %x %d\r\n", ep_addr, total_bytes);
unsigned const epnum = tu_edpt_number(ep_addr);
musb_int_mask();
@@ -1111,7 +1113,7 @@ bool dcd_edpt_xfer_fifo(uint8_t rhport, uint8_t ep_addr, tu_fifo_t * ff, uint16_
{
(void)rhport;
bool ret;
- // TU_LOG1("X %x %d\n", ep_addr, total_bytes);
+ // TU_LOG1("X %x %d\r\n", ep_addr, total_bytes);
unsigned const epnum = tu_edpt_number(ep_addr);
TU_ASSERT(epnum);
diff --git a/src/portable/synopsys/dwc2/dcd_dwc2.c b/src/portable/synopsys/dwc2/dcd_dwc2.c
index c6132a1f5..692096fc8 100644
--- a/src/portable/synopsys/dwc2/dcd_dwc2.c
+++ b/src/portable/synopsys/dwc2/dcd_dwc2.c
@@ -82,8 +82,8 @@
static TU_ATTR_ALIGNED(4) uint32_t _setup_packet[2];
typedef struct {
- uint8_t * buffer;
- tu_fifo_t * ff;
+ uint8_t* buffer;
+ tu_fifo_t* ff;
uint16_t total_len;
uint16_t max_size;
uint8_t interval;
@@ -93,45 +93,182 @@ static xfer_ctl_t xfer_status[DWC2_EP_MAX][2];
#define XFER_CTL_BASE(_ep, _dir) (&xfer_status[_ep][_dir])
// EP0 transfers are limited to 1 packet - larger sizes has to be split
-static uint16_t ep0_pending[2]; // Index determines direction as tusb_dir_t type
+static uint16_t ep0_pending[2]; // Index determines direction as tusb_dir_t type
// TX FIFO RAM allocation so far in words - RX FIFO size is readily available from dwc2->grxfsiz
-static uint16_t _allocated_fifo_words_tx; // TX FIFO size in words (IN EPs)
-static bool _out_ep_closed; // Flag to check if RX FIFO size needs an update (reduce its size)
+static uint16_t _allocated_fifo_words_tx; // TX FIFO size in words (IN EPs)
// SOF enabling flag - required for SOF to not get disabled in ISR when SOF was enabled by
static bool _sof_en;
-// Calculate the RX FIFO size according to recommendations from reference manual
-static inline uint16_t calc_grxfsiz(uint16_t max_ep_size, uint8_t ep_count)
-{
- return 15 + 2*(max_ep_size/4) + 2*ep_count;
+// Calculate the RX FIFO size according to minimum recommendations from reference manual
+// RxFIFO = (5 * number of control endpoints + 8) +
+// ((largest USB packet used / 4) + 1 for status information) +
+// (2 * number of OUT endpoints) + 1 for Global NAK
+// with number of control endpoints = 1 we have
+// RxFIFO = 15 + (largest USB packet used / 4) + 2 * number of OUT endpoints
+// we double the largest USB packet size to be able to hold up to 2 packets
+static inline uint16_t calc_grxfsiz(uint16_t max_ep_size, uint8_t ep_count) {
+ return 15 + 2 * (max_ep_size / 4) + 2 * ep_count;
}
-static void update_grxfsiz(uint8_t rhport)
-{
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
+TU_ATTR_ALWAYS_INLINE static inline void fifo_flush_tx(dwc2_regs_t* dwc2, uint8_t epnum) {
+ // flush TX fifo and wait for it cleared
+ dwc2->grstctl = GRSTCTL_TXFFLSH | (epnum << GRSTCTL_TXFNUM_Pos);
+ while (dwc2->grstctl & GRSTCTL_TXFFLSH_Msk) {}
+}
+TU_ATTR_ALWAYS_INLINE static inline void fifo_flush_rx(dwc2_regs_t* dwc2) {
+ // flush RX fifo and wait for it cleared
+ dwc2->grstctl = GRSTCTL_RXFFLSH;
+ while (dwc2->grstctl & GRSTCTL_RXFFLSH_Msk) {}
+}
+
+static bool fifo_alloc(uint8_t rhport, uint8_t ep_addr, uint16_t packet_size) {
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
uint8_t const ep_count = _dwc2_controller[rhport].ep_count;
+ uint8_t const epnum = tu_edpt_number(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
+
+ TU_ASSERT(epnum < ep_count);
+
+ uint16_t fifo_size = tu_div_ceil(packet_size, 4);
+
+ // "USB Data FIFOs" section in reference manual
+ // Peripheral FIFO architecture
+ //
+ // --------------- 320 or 1024 ( 1280 or 4096 bytes )
+ // | IN FIFO 0 |
+ // --------------- (320 or 1024) - 16
+ // | IN FIFO 1 |
+ // --------------- (320 or 1024) - 16 - x
+ // | . . . . |
+ // --------------- (320 or 1024) - 16 - x - y - ... - z
+ // | IN FIFO MAX |
+ // ---------------
+ // | FREE |
+ // --------------- GRXFSIZ
+ // | OUT FIFO |
+ // | ( Shared ) |
+ // --------------- 0
+ //
+ // In FIFO is allocated by following rules:
+ // - IN EP 1 gets FIFO 1, IN EP "n" gets FIFO "n".
+ if (dir == TUSB_DIR_OUT) {
+ // Calculate required size of RX FIFO
+ uint16_t const sz = calc_grxfsiz(4 * fifo_size, ep_count);
+
+ // If size_rx needs to be extended check if possible and if so enlarge it
+ if (dwc2->grxfsiz < sz) {
+ TU_ASSERT(sz + _allocated_fifo_words_tx <= _dwc2_controller[rhport].ep_fifo_size / 4);
- // Determine largest EP size for RX FIFO
- uint16_t max_epsize = 0;
- for (uint8_t epnum = 0; epnum < ep_count; epnum++)
- {
- max_epsize = tu_max16(max_epsize, xfer_status[epnum][TUSB_DIR_OUT].max_size);
+ // Enlarge RX FIFO
+ dwc2->grxfsiz = sz;
+ }
+ } else {
+ // Note if The TXFELVL is configured as half empty. In order
+ // to be able to write a packet at that point, the fifo must be twice the max_size.
+ if ((dwc2->gahbcfg & GAHBCFG_TXFELVL) == 0) {
+ fifo_size *= 2;
+ }
+
+ // Check if free space is available
+ TU_ASSERT(_allocated_fifo_words_tx + fifo_size + dwc2->grxfsiz <= _dwc2_controller[rhport].ep_fifo_size / 4);
+ _allocated_fifo_words_tx += fifo_size;
+ TU_LOG(DWC2_DEBUG, " Allocated %u bytes at offset %" PRIu32, fifo_size * 4,
+ _dwc2_controller[rhport].ep_fifo_size - _allocated_fifo_words_tx * 4);
+
+ // DIEPTXF starts at FIFO #1.
+ // Both TXFD and TXSA are in unit of 32-bit words.
+ dwc2->dieptxf[epnum - 1] = (fifo_size << DIEPTXF_INEPTXFD_Pos) |
+ (_dwc2_controller[rhport].ep_fifo_size / 4 - _allocated_fifo_words_tx);
}
- // Update size of RX FIFO
- dwc2->grxfsiz = calc_grxfsiz(max_epsize, ep_count);
+ return true;
+}
+
+static void edpt_activate(uint8_t rhport, tusb_desc_endpoint_t const * p_endpoint_desc) {
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
+ uint8_t const epnum = tu_edpt_number(p_endpoint_desc->bEndpointAddress);
+ uint8_t const dir = tu_edpt_dir(p_endpoint_desc->bEndpointAddress);
+
+ xfer_ctl_t* xfer = XFER_CTL_BASE(epnum, dir);
+ xfer->max_size = tu_edpt_packet_size(p_endpoint_desc);
+ xfer->interval = p_endpoint_desc->bInterval;
+
+ // USBAEP, EPTYP, SD0PID_SEVNFRM, MPSIZ are the same for IN and OUT endpoints.
+ uint32_t const dxepctl = (1 << DOEPCTL_USBAEP_Pos) |
+ (p_endpoint_desc->bmAttributes.xfer << DOEPCTL_EPTYP_Pos) |
+ (p_endpoint_desc->bmAttributes.xfer != TUSB_XFER_ISOCHRONOUS ? DOEPCTL_SD0PID_SEVNFRM : 0) |
+ (xfer->max_size << DOEPCTL_MPSIZ_Pos);
+
+ if (dir == TUSB_DIR_OUT) {
+ dwc2->epout[epnum].doepctl = dxepctl;
+ dwc2->daintmsk |= TU_BIT(DAINTMSK_OEPM_Pos + epnum);
+ } else {
+ dwc2->epin[epnum].diepctl = dxepctl | (epnum << DIEPCTL_TXFNUM_Pos);
+ dwc2->daintmsk |= (1 << (DAINTMSK_IEPM_Pos + epnum));
+ }
+}
+
+static void edpt_disable(uint8_t rhport, uint8_t ep_addr, bool stall) {
+ (void) rhport;
+
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
+ uint8_t const epnum = tu_edpt_number(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
+
+ if (dir == TUSB_DIR_IN) {
+ dwc2_epin_t* epin = dwc2->epin;
+
+ // Only disable currently enabled non-control endpoint
+ if ((epnum == 0) || !(epin[epnum].diepctl & DIEPCTL_EPENA)) {
+ epin[epnum].diepctl |= DIEPCTL_SNAK | (stall ? DIEPCTL_STALL : 0);
+ } else {
+ // Stop transmitting packets and NAK IN xfers.
+ epin[epnum].diepctl |= DIEPCTL_SNAK;
+ while ((epin[epnum].diepint & DIEPINT_INEPNE) == 0) {}
+
+ // Disable the endpoint.
+ epin[epnum].diepctl |= DIEPCTL_EPDIS | (stall ? DIEPCTL_STALL : 0);
+ while ((epin[epnum].diepint & DIEPINT_EPDISD_Msk) == 0) {}
+
+ epin[epnum].diepint = DIEPINT_EPDISD;
+ }
+
+ // Flush the FIFO, and wait until we have confirmed it cleared.
+ fifo_flush_tx(dwc2, epnum);
+ } else {
+ dwc2_epout_t* epout = dwc2->epout;
+
+ // Only disable currently enabled non-control endpoint
+ if ((epnum == 0) || !(epout[epnum].doepctl & DOEPCTL_EPENA)) {
+ epout[epnum].doepctl |= stall ? DOEPCTL_STALL : 0;
+ } else {
+ // Asserting GONAK is required to STALL an OUT endpoint.
+ // Simpler to use polling here, we don't use the "B"OUTNAKEFF interrupt
+ // anyway, and it can't be cleared by user code. If this while loop never
+ // finishes, we have bigger problems than just the stack.
+ dwc2->dctl |= DCTL_SGONAK;
+ while ((dwc2->gintsts & GINTSTS_BOUTNAKEFF_Msk) == 0) {}
+
+ // Ditto here- disable the endpoint.
+ epout[epnum].doepctl |= DOEPCTL_EPDIS | (stall ? DOEPCTL_STALL : 0);
+ while ((epout[epnum].doepint & DOEPINT_EPDISD_Msk) == 0) {}
+
+ epout[epnum].doepint = DOEPINT_EPDISD;
+
+ // Allow other OUT endpoints to keep receiving.
+ dwc2->dctl |= DCTL_CGONAK;
+ }
+ }
}
// Start of Bus Reset
-static void bus_reset(uint8_t rhport)
-{
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
+static void bus_reset(uint8_t rhport) {
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
uint8_t const ep_count = _dwc2_controller[rhport].ep_count;
tu_memclr(xfer_status, sizeof(xfer_status));
- _out_ep_closed = false;
_sof_en = false;
@@ -139,15 +276,24 @@ static void bus_reset(uint8_t rhport)
dwc2->dcfg &= ~DCFG_DAD_Msk;
// 1. NAK for all OUT endpoints
- for ( uint8_t n = 0; n < ep_count; n++ )
- {
+ for (uint8_t n = 0; n < ep_count; n++) {
dwc2->epout[n].doepctl |= DOEPCTL_SNAK;
}
- // 2. Set up interrupt mask
+ // 2. Disable all IN endpoints
+ for (uint8_t n = 0; n < ep_count; n++) {
+ if (dwc2->epin[n].diepctl & DIEPCTL_EPENA) {
+ dwc2->epin[n].diepctl |= DIEPCTL_SNAK | DIEPCTL_EPDIS;
+ }
+ }
+
+ fifo_flush_tx(dwc2, 0x10); // all tx fifo
+ fifo_flush_rx(dwc2);
+
+ // 3. Set up interrupt mask
dwc2->daintmsk = TU_BIT(DAINTMSK_OEPM_Pos) | TU_BIT(DAINTMSK_IEPM_Pos);
- dwc2->doepmsk = DOEPMSK_STUPM | DOEPMSK_XFRCM;
- dwc2->diepmsk = DIEPMSK_TOM | DIEPMSK_XFRCM;
+ dwc2->doepmsk = DOEPMSK_STUPM | DOEPMSK_XFRCM;
+ dwc2->diepmsk = DIEPMSK_TOM | DIEPMSK_XFRCM;
// "USB Data FIFOs" section in reference manual
// Peripheral FIFO architecture
@@ -206,36 +352,34 @@ static void bus_reset(uint8_t rhport)
_allocated_fifo_words_tx = 16;
// Control IN uses FIFO 0 with 64 bytes ( 16 32-bit word )
- dwc2->dieptxf0 = (16 << DIEPTXF0_TX0FD_Pos) | (_dwc2_controller[rhport].ep_fifo_size/4 - _allocated_fifo_words_tx);
+ dwc2->dieptxf0 = (16 << DIEPTXF0_TX0FD_Pos) | (_dwc2_controller[rhport].ep_fifo_size / 4 - _allocated_fifo_words_tx);
// Fixed control EP0 size to 64 bytes
dwc2->epin[0].diepctl &= ~(0x03 << DIEPCTL_MPSIZ_Pos);
xfer_status[0][TUSB_DIR_OUT].max_size = 64;
- xfer_status[0][TUSB_DIR_IN ].max_size = 64;
+ xfer_status[0][TUSB_DIR_IN].max_size = 64;
dwc2->epout[0].doeptsiz |= (3 << DOEPTSIZ_STUPCNT_Pos);
dwc2->gintmsk |= GINTMSK_OEPINT | GINTMSK_IEPINT;
}
-static void edpt_schedule_packets(uint8_t rhport, uint8_t const epnum, uint8_t const dir, uint16_t const num_packets, uint16_t total_bytes)
-{
+static void edpt_schedule_packets(uint8_t rhport, uint8_t const epnum, uint8_t const dir, uint16_t const num_packets,
+ uint16_t total_bytes) {
(void) rhport;
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
// EP0 is limited to one packet each xfer
// We use multiple transaction of xfer->max_size length to get a whole transfer done
- if ( epnum == 0 )
- {
- xfer_ctl_t *const xfer = XFER_CTL_BASE(epnum, dir);
+ if (epnum == 0) {
+ xfer_ctl_t* const xfer = XFER_CTL_BASE(epnum, dir);
total_bytes = tu_min16(ep0_pending[dir], xfer->max_size);
ep0_pending[dir] -= total_bytes;
}
// IN and OUT endpoint xfers are interrupt-driven, we just schedule them here.
- if ( dir == TUSB_DIR_IN )
- {
+ if (dir == TUSB_DIR_IN) {
dwc2_epin_t* epin = dwc2->epin;
// A full IN transfer (multiple packets, possibly) triggers XFRC.
@@ -245,20 +389,16 @@ static void edpt_schedule_packets(uint8_t rhport, uint8_t const epnum, uint8_t c
epin[epnum].diepctl |= DIEPCTL_EPENA | DIEPCTL_CNAK;
// For ISO endpoint set correct odd/even bit for next frame.
- if ( (epin[epnum].diepctl & DIEPCTL_EPTYP) == DIEPCTL_EPTYP_0 && (XFER_CTL_BASE(epnum, dir))->interval == 1 )
- {
+ if ((epin[epnum].diepctl & DIEPCTL_EPTYP) == DIEPCTL_EPTYP_0 && (XFER_CTL_BASE(epnum, dir))->interval == 1) {
// Take odd/even bit from frame counter.
uint32_t const odd_frame_now = (dwc2->dsts & (1u << DSTS_FNSOF_Pos));
epin[epnum].diepctl |= (odd_frame_now ? DIEPCTL_SD0PID_SEVNFRM_Msk : DIEPCTL_SODDFRM_Msk);
}
// Enable fifo empty interrupt only if there are something to put in the fifo.
- if ( total_bytes != 0 )
- {
+ if (total_bytes != 0) {
dwc2->diepempmsk |= (1 << epnum);
}
- }
- else
- {
+ } else {
dwc2_epout_t* epout = dwc2->epout;
// A full OUT transfer (multiple packets, possibly) triggers XFRC.
@@ -267,9 +407,8 @@ static void edpt_schedule_packets(uint8_t rhport, uint8_t const epnum, uint8_t c
((total_bytes << DOEPTSIZ_XFRSIZ_Pos) & DOEPTSIZ_XFRSIZ_Msk);
epout[epnum].doepctl |= DOEPCTL_EPENA | DOEPCTL_CNAK;
- if ( (epout[epnum].doepctl & DOEPCTL_EPTYP) == DOEPCTL_EPTYP_0 &&
- XFER_CTL_BASE(epnum, dir)->interval == 1 )
- {
+ if ((epout[epnum].doepctl & DOEPCTL_EPTYP) == DOEPCTL_EPTYP_0 &&
+ XFER_CTL_BASE(epnum, dir)->interval == 1) {
// Take odd/even bit from frame counter.
uint32_t const odd_frame_now = (dwc2->dsts & (1u << DSTS_FNSOF_Pos));
epout[epnum].doepctl |= (odd_frame_now ? DOEPCTL_SD0PID_SEVNFRM_Msk : DOEPCTL_SODDFRM_Msk);
@@ -281,103 +420,46 @@ static void edpt_schedule_packets(uint8_t rhport, uint8_t const epnum, uint8_t c
/* Controller API
*------------------------------------------------------------------*/
#if CFG_TUSB_DEBUG >= DWC2_DEBUG
-void print_dwc2_info(dwc2_regs_t * dwc2)
-{
- dwc2_ghwcfg2_t const * hw_cfg2 = &dwc2->ghwcfg2_bm;
- dwc2_ghwcfg3_t const * hw_cfg3 = &dwc2->ghwcfg3_bm;
- dwc2_ghwcfg4_t const * hw_cfg4 = &dwc2->ghwcfg4_bm;
-
-// TU_LOG_HEX(DWC2_DEBUG, dwc2->gotgctl);
-// TU_LOG_HEX(DWC2_DEBUG, dwc2->gusbcfg);
-// TU_LOG_HEX(DWC2_DEBUG, dwc2->dcfg);
- TU_LOG_HEX(DWC2_DEBUG, dwc2->guid);
- TU_LOG_HEX(DWC2_DEBUG, dwc2->gsnpsid);
- TU_LOG_HEX(DWC2_DEBUG, dwc2->ghwcfg1);
-
- // HW configure 2
- TU_LOG(DWC2_DEBUG, "\r\n");
- TU_LOG_HEX(DWC2_DEBUG, dwc2->ghwcfg2);
- TU_LOG_INT(DWC2_DEBUG, hw_cfg2->op_mode );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg2->arch );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg2->point2point );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg2->hs_phy_type );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg2->fs_phy_type );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg2->num_dev_ep );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg2->num_host_ch );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg2->period_channel_support );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg2->enable_dynamic_fifo );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg2->mul_cpu_int );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg2->nperiod_tx_q_depth );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg2->host_period_tx_q_depth );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg2->dev_token_q_depth );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg2->otg_enable_ic_usb );
-
- // HW configure 3
- TU_LOG(DWC2_DEBUG, "\r\n");
- TU_LOG_HEX(DWC2_DEBUG, dwc2->ghwcfg3);
- TU_LOG_INT(DWC2_DEBUG, hw_cfg3->xfer_size_width );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg3->packet_size_width );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg3->otg_enable );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg3->i2c_enable );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg3->vendor_ctrl_itf );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg3->optional_feature_removed );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg3->synch_reset );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg3->otg_adp_support );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg3->otg_enable_hsic );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg3->battery_charger_support );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg3->lpm_mode );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg3->total_fifo_size );
-
- // HW configure 4
- TU_LOG(DWC2_DEBUG, "\r\n");
- TU_LOG_HEX(DWC2_DEBUG, dwc2->ghwcfg4);
- TU_LOG_INT(DWC2_DEBUG, hw_cfg4->num_dev_period_in_ep );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg4->power_optimized );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg4->ahb_freq_min );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg4->hibernation );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg4->service_interval_mode );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg4->ipg_isoc_en );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg4->acg_enable );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg4->utmi_phy_data_width );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg4->dev_ctrl_ep_num );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg4->iddg_filter_enabled );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg4->vbus_valid_filter_enabled );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg4->a_valid_filter_enabled );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg4->b_valid_filter_enabled );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg4->dedicated_fifos );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg4->num_dev_in_eps );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg4->dma_desc_enable );
- TU_LOG_INT(DWC2_DEBUG, hw_cfg4->dma_dynamic );
+void print_dwc2_info(dwc2_regs_t* dwc2) {
+ // print guid, gsnpsid, ghwcfg1, ghwcfg2, ghwcfg3, ghwcfg4
+ // use dwc2_info.py/md for bit-field value and comparison with other ports
+ volatile uint32_t const* p = (volatile uint32_t const*) &dwc2->guid;
+ TU_LOG(DWC2_DEBUG, "guid, gsnpsid, ghwcfg1, ghwcfg2, ghwcfg3, ghwcfg4\r\n");
+ for (size_t i = 0; i < 5; i++) {
+ TU_LOG(DWC2_DEBUG, "0x%08" PRIX32 ", ", p[i]);
+ }
+ TU_LOG(DWC2_DEBUG, "0x%08" PRIX32 "\r\n", p[5]);
}
#endif
-static void reset_core(dwc2_regs_t * dwc2)
-{
+static void reset_core(dwc2_regs_t* dwc2) {
// reset core
dwc2->grstctl |= GRSTCTL_CSRST;
// wait for reset bit is cleared
// TODO version 4.20a should wait for RESET DONE mask
- while (dwc2->grstctl & GRSTCTL_CSRST) { }
+ while (dwc2->grstctl & GRSTCTL_CSRST) {}
// wait for AHB master IDLE
- while ( !(dwc2->grstctl & GRSTCTL_AHBIDL) ) { }
+ while (!(dwc2->grstctl & GRSTCTL_AHBIDL)) {}
// wait for device mode ?
}
-static bool phy_hs_supported(dwc2_regs_t * dwc2)
-{
- // note: esp32 incorrect report its hs_phy_type as utmi
+static bool phy_hs_supported(dwc2_regs_t* dwc2) {
+ (void) dwc2;
+
#if TU_CHECK_MCU(OPT_MCU_ESP32S2, OPT_MCU_ESP32S3)
+ // note: esp32 incorrect report its hs_phy_type as utmi
+ return false;
+#elif !TUD_OPT_HIGH_SPEED
return false;
#else
- return TUD_OPT_HIGH_SPEED && dwc2->ghwcfg2_bm.hs_phy_type != HS_PHY_TYPE_NONE;
+ return dwc2->ghwcfg2_bm.hs_phy_type != HS_PHY_TYPE_NONE;
#endif
}
-static void phy_fs_init(dwc2_regs_t * dwc2)
-{
+static void phy_fs_init(dwc2_regs_t* dwc2) {
TU_LOG(DWC2_DEBUG, "Fullspeed PHY init\r\n");
// Select FS PHY
@@ -401,15 +483,13 @@ static void phy_fs_init(dwc2_regs_t * dwc2)
dwc2->dcfg = (dwc2->dcfg & ~DCFG_DSPD_Msk) | (DCFG_DSPD_FS << DCFG_DSPD_Pos);
}
-static void phy_hs_init(dwc2_regs_t * dwc2)
-{
+static void phy_hs_init(dwc2_regs_t* dwc2) {
uint32_t gusbcfg = dwc2->gusbcfg;
// De-select FS PHY
gusbcfg &= ~GUSBCFG_PHYSEL;
- if (dwc2->ghwcfg2_bm.hs_phy_type == HS_PHY_TYPE_ULPI)
- {
+ if (dwc2->ghwcfg2_bm.hs_phy_type == HS_PHY_TYPE_ULPI) {
TU_LOG(DWC2_DEBUG, "Highspeed ULPI PHY init\r\n");
// Select ULPI
@@ -423,8 +503,7 @@ static void phy_hs_init(dwc2_regs_t * dwc2)
// Disable FS/LS ULPI
gusbcfg &= ~(GUSBCFG_ULPIFSLS | GUSBCFG_ULPICSM);
- }else
- {
+ } else {
TU_LOG(DWC2_DEBUG, "Highspeed UTMI+ PHY init\r\n");
// Select UTMI+ with 8-bit interface
@@ -465,8 +544,7 @@ static void phy_hs_init(dwc2_regs_t * dwc2)
dwc2->dcfg = dcfg;
}
-static bool check_dwc2(dwc2_regs_t * dwc2)
-{
+static bool check_dwc2(dwc2_regs_t* dwc2) {
#if CFG_TUSB_DEBUG >= DWC2_DEBUG
print_dwc2_info(dwc2);
#endif
@@ -481,41 +559,35 @@ static bool check_dwc2(dwc2_regs_t * dwc2)
return true;
}
-void dcd_init (uint8_t rhport)
-{
+void dcd_init(uint8_t rhport) {
// Programming model begins in the last section of the chapter on the USB
// peripheral in each Reference Manual.
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
// Check Synopsys ID register, failed if controller clock/power is not enabled
- TU_VERIFY(check_dwc2(dwc2), );
-
+ if (!check_dwc2(dwc2)) return;
dcd_disconnect(rhport);
// max number of endpoints & total_fifo_size are:
// hw_cfg2->num_dev_ep, hw_cfg2->total_fifo_size
- if( phy_hs_supported(dwc2) )
- {
- // Highspeed
- phy_hs_init(dwc2);
- }else
- {
- // core does not support highspeed or hs-phy is not present
- phy_fs_init(dwc2);
+ if (phy_hs_supported(dwc2)) {
+ phy_hs_init(dwc2); // Highspeed
+ } else {
+ phy_fs_init(dwc2); // core does not support highspeed or hs phy is not present
}
// Restart PHY clock
dwc2->pcgctl &= ~(PCGCTL_STOPPCLK | PCGCTL_GATEHCLK | PCGCTL_PWRCLMP | PCGCTL_RSTPDWNMODULE);
- /* Set HS/FS Timeout Calibration to 7 (max available value).
- * The number of PHY clocks that the application programs in
- * this field is added to the high/full speed interpacket timeout
- * duration in the core to account for any additional delays
- * introduced by the PHY. This can be required, because the delay
- * introduced by the PHY in generating the linestate condition
- * can vary from one PHY to another.
- */
+ /* Set HS/FS Timeout Calibration to 7 (max available value).
+ * The number of PHY clocks that the application programs in
+ * this field is added to the high/full speed interpacket timeout
+ * duration in the core to account for any additional delays
+ * introduced by the PHY. This can be required, because the delay
+ * introduced by the PHY in generating the linestate condition
+ * can vary from one PHY to another.
+ */
dwc2->gusbcfg |= (7ul << GUSBCFG_TOCAL_Pos);
// Force device mode
@@ -528,6 +600,9 @@ void dcd_init (uint8_t rhport)
// (non zero-length packet), send STALL back and discard.
dwc2->dcfg |= DCFG_NZLSOHSK;
+ fifo_flush_tx(dwc2, 0x10); // all tx fifo
+ fifo_flush_rx(dwc2);
+
// Clear all interrupts
uint32_t int_mask = dwc2->gintsts;
dwc2->gintsts |= int_mask;
@@ -535,11 +610,12 @@ void dcd_init (uint8_t rhport)
dwc2->gotgint |= int_mask;
// Required as part of core initialization.
- // TODO: How should mode mismatch be handled? It will cause
- // the core to stop working/require reset.
- dwc2->gintmsk = GINTMSK_OTGINT | GINTMSK_MMISM | GINTMSK_RXFLVLM |
+ dwc2->gintmsk = GINTMSK_OTGINT | GINTMSK_RXFLVLM |
GINTMSK_USBSUSPM | GINTMSK_USBRST | GINTMSK_ENUMDNEM | GINTMSK_WUIM;
+ // Configure TX FIFO empty level for interrupt. Default is complete empty
+ dwc2->gahbcfg |= GAHBCFG_TXFELVL;
+
// Enable global interrupt
dwc2->gahbcfg |= GAHBCFG_GINT;
@@ -554,30 +630,26 @@ void dcd_init (uint8_t rhport)
dcd_connect(rhport);
}
-void dcd_int_enable (uint8_t rhport)
-{
+void dcd_int_enable(uint8_t rhport) {
dwc2_dcd_int_enable(rhport);
}
-void dcd_int_disable (uint8_t rhport)
-{
+void dcd_int_disable(uint8_t rhport) {
dwc2_dcd_int_disable(rhport);
}
-void dcd_set_address (uint8_t rhport, uint8_t dev_addr)
-{
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
+void dcd_set_address(uint8_t rhport, uint8_t dev_addr) {
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
dwc2->dcfg = (dwc2->dcfg & ~DCFG_DAD_Msk) | (dev_addr << DCFG_DAD_Pos);
// Response with status after changing device address
dcd_edpt_xfer(rhport, tu_edpt_addr(0, TUSB_DIR_IN), NULL, 0);
}
-void dcd_remote_wakeup(uint8_t rhport)
-{
+void dcd_remote_wakeup(uint8_t rhport) {
(void) rhport;
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
// set remote wakeup
dwc2->dctl |= DCTL_RWUSIG;
@@ -592,35 +664,29 @@ void dcd_remote_wakeup(uint8_t rhport)
dwc2->dctl &= ~DCTL_RWUSIG;
}
-void dcd_connect(uint8_t rhport)
-{
+void dcd_connect(uint8_t rhport) {
(void) rhport;
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
dwc2->dctl &= ~DCTL_SDIS;
}
-void dcd_disconnect(uint8_t rhport)
-{
+void dcd_disconnect(uint8_t rhport) {
(void) rhport;
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
dwc2->dctl |= DCTL_SDIS;
}
// Be advised: audio, video and possibly other iso-ep classes use dcd_sof_enable() to enable/disable its corresponding ISR on purpose!
-void dcd_sof_enable(uint8_t rhport, bool en)
-{
+void dcd_sof_enable(uint8_t rhport, bool en) {
(void) rhport;
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
_sof_en = en;
- if (en)
- {
+ if (en) {
dwc2->gintsts = GINTSTS_SOF;
dwc2->gintmsk |= GINTMSK_SOFM;
- }
- else
- {
+ } else {
dwc2->gintmsk &= ~GINTMSK_SOFM;
}
}
@@ -629,140 +695,78 @@ void dcd_sof_enable(uint8_t rhport, bool en)
/* DCD Endpoint port
*------------------------------------------------------------------*/
-bool dcd_edpt_open (uint8_t rhport, tusb_desc_endpoint_t const * desc_edpt)
-{
- (void) rhport;
-
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
- uint8_t const ep_count = _dwc2_controller[rhport].ep_count;
-
- uint8_t const epnum = tu_edpt_number(desc_edpt->bEndpointAddress);
- uint8_t const dir = tu_edpt_dir(desc_edpt->bEndpointAddress);
-
- TU_ASSERT(epnum < ep_count);
-
- xfer_ctl_t * xfer = XFER_CTL_BASE(epnum, dir);
- xfer->max_size = tu_edpt_packet_size(desc_edpt);
- xfer->interval = desc_edpt->bInterval;
-
- uint16_t const fifo_size = tu_div_ceil(xfer->max_size, 4);
-
- if(dir == TUSB_DIR_OUT)
- {
- // Calculate required size of RX FIFO
- uint16_t const sz = calc_grxfsiz(4*fifo_size, ep_count);
-
- // If size_rx needs to be extended check if possible and if so enlarge it
- if (dwc2->grxfsiz < sz)
- {
- TU_ASSERT(sz + _allocated_fifo_words_tx <= _dwc2_controller[rhport].ep_fifo_size/4);
-
- // Enlarge RX FIFO
- dwc2->grxfsiz = sz;
- }
-
- dwc2->epout[epnum].doepctl |= (1 << DOEPCTL_USBAEP_Pos) |
- (desc_edpt->bmAttributes.xfer << DOEPCTL_EPTYP_Pos) |
- (desc_edpt->bmAttributes.xfer != TUSB_XFER_ISOCHRONOUS ? DOEPCTL_SD0PID_SEVNFRM : 0) |
- (xfer->max_size << DOEPCTL_MPSIZ_Pos);
-
- dwc2->daintmsk |= TU_BIT(DAINTMSK_OEPM_Pos + epnum);
- }
- else
- {
- // "USB Data FIFOs" section in reference manual
- // Peripheral FIFO architecture
- //
- // --------------- 320 or 1024 ( 1280 or 4096 bytes )
- // | IN FIFO 0 |
- // --------------- (320 or 1024) - 16
- // | IN FIFO 1 |
- // --------------- (320 or 1024) - 16 - x
- // | . . . . |
- // --------------- (320 or 1024) - 16 - x - y - ... - z
- // | IN FIFO MAX |
- // ---------------
- // | FREE |
- // --------------- GRXFSIZ
- // | OUT FIFO |
- // | ( Shared ) |
- // --------------- 0
- //
- // In FIFO is allocated by following rules:
- // - IN EP 1 gets FIFO 1, IN EP "n" gets FIFO "n".
-
- // Check if free space is available
- TU_ASSERT(_allocated_fifo_words_tx + fifo_size + dwc2->grxfsiz <= _dwc2_controller[rhport].ep_fifo_size/4);
-
- _allocated_fifo_words_tx += fifo_size;
-
- TU_LOG(DWC2_DEBUG, " Allocated %u bytes at offset %lu", fifo_size*4, _dwc2_controller[rhport].ep_fifo_size-_allocated_fifo_words_tx*4);
-
- // DIEPTXF starts at FIFO #1.
- // Both TXFD and TXSA are in unit of 32-bit words.
- dwc2->dieptxf[epnum - 1] = (fifo_size << DIEPTXF_INEPTXFD_Pos) | (_dwc2_controller[rhport].ep_fifo_size/4 - _allocated_fifo_words_tx);
-
- dwc2->epin[epnum].diepctl |= (1 << DIEPCTL_USBAEP_Pos) |
- (epnum << DIEPCTL_TXFNUM_Pos) |
- (desc_edpt->bmAttributes.xfer << DIEPCTL_EPTYP_Pos) |
- (desc_edpt->bmAttributes.xfer != TUSB_XFER_ISOCHRONOUS ? DIEPCTL_SD0PID_SEVNFRM : 0) |
- (xfer->max_size << DIEPCTL_MPSIZ_Pos);
-
- dwc2->daintmsk |= (1 << (DAINTMSK_IEPM_Pos + epnum));
- }
-
+bool dcd_edpt_open(uint8_t rhport, tusb_desc_endpoint_t const* desc_edpt) {
+ TU_ASSERT(fifo_alloc(rhport, desc_edpt->bEndpointAddress, tu_edpt_packet_size(desc_edpt)));
+ edpt_activate(rhport, desc_edpt);
return true;
}
// Close all non-control endpoints, cancel all pending transfers if any.
-void dcd_edpt_close_all (uint8_t rhport)
-{
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
+void dcd_edpt_close_all(uint8_t rhport) {
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
uint8_t const ep_count = _dwc2_controller[rhport].ep_count;
// Disable non-control interrupt
dwc2->daintmsk = (1 << DAINTMSK_OEPM_Pos) | (1 << DAINTMSK_IEPM_Pos);
- for(uint8_t n = 1; n < ep_count; n++)
- {
+ for (uint8_t n = 1; n < ep_count; n++) {
// disable OUT endpoint
- dwc2->epout[n].doepctl = 0;
+ if (dwc2->epout[n].doepctl & DOEPCTL_EPENA) {
+ dwc2->epout[n].doepctl |= DOEPCTL_SNAK | DOEPCTL_EPDIS;
+ }
xfer_status[n][TUSB_DIR_OUT].max_size = 0;
// disable IN endpoint
- dwc2->epin[n].diepctl = 0;
+ if (dwc2->epin[n].diepctl & DIEPCTL_EPENA) {
+ dwc2->epin[n].diepctl |= DIEPCTL_SNAK | DIEPCTL_EPDIS;
+ }
xfer_status[n][TUSB_DIR_IN].max_size = 0;
}
+ // reset allocated fifo OUT
+ dwc2->grxfsiz = calc_grxfsiz(64, ep_count);
// reset allocated fifo IN
_allocated_fifo_words_tx = 16;
+
+ fifo_flush_tx(dwc2, 0x10); // all tx fifo
+ fifo_flush_rx(dwc2);
+}
+
+bool dcd_edpt_iso_alloc(uint8_t rhport, uint8_t ep_addr, uint16_t largest_packet_size) {
+ TU_ASSERT(fifo_alloc(rhport, ep_addr, largest_packet_size));
+ return true;
}
-bool dcd_edpt_xfer (uint8_t rhport, uint8_t ep_addr, uint8_t * buffer, uint16_t total_bytes)
-{
+bool dcd_edpt_iso_activate(uint8_t rhport, tusb_desc_endpoint_t const * p_endpoint_desc) {
+ // Disable EP to clear potential incomplete transfers
+ edpt_disable(rhport, p_endpoint_desc->bEndpointAddress, false);
+
+ edpt_activate(rhport, p_endpoint_desc);
+
+ return true;
+}
+
+bool dcd_edpt_xfer(uint8_t rhport, uint8_t ep_addr, uint8_t* buffer, uint16_t total_bytes) {
uint8_t const epnum = tu_edpt_number(ep_addr);
- uint8_t const dir = tu_edpt_dir(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
- xfer_ctl_t * xfer = XFER_CTL_BASE(epnum, dir);
- xfer->buffer = buffer;
- xfer->ff = NULL;
- xfer->total_len = total_bytes;
+ xfer_ctl_t* xfer = XFER_CTL_BASE(epnum, dir);
+ xfer->buffer = buffer;
+ xfer->ff = NULL;
+ xfer->total_len = total_bytes;
// EP0 can only handle one packet
- if(epnum == 0)
- {
+ if (epnum == 0) {
ep0_pending[dir] = total_bytes;
// Schedule the first transaction for EP0 transfer
edpt_schedule_packets(rhport, epnum, dir, 1, ep0_pending[dir]);
- }
- else
- {
+ } else {
uint16_t num_packets = (total_bytes / xfer->max_size);
uint16_t const short_packet_size = total_bytes % xfer->max_size;
// Zero-size packet is special case.
- if ( (short_packet_size > 0) || (total_bytes == 0) ) num_packets++;
+ if ((short_packet_size > 0) || (total_bytes == 0)) num_packets++;
// Schedule packets to be sent within interrupt
edpt_schedule_packets(rhport, epnum, dir, num_packets, total_bytes);
@@ -775,24 +779,23 @@ bool dcd_edpt_xfer (uint8_t rhport, uint8_t ep_addr, uint8_t * buffer, uint16_t
// bytes should be written and second to keep the return value free to give back a boolean
// success message. If total_bytes is too big, the FIFO will copy only what is available
// into the USB buffer!
-bool dcd_edpt_xfer_fifo (uint8_t rhport, uint8_t ep_addr, tu_fifo_t * ff, uint16_t total_bytes)
-{
+bool dcd_edpt_xfer_fifo(uint8_t rhport, uint8_t ep_addr, tu_fifo_t* ff, uint16_t total_bytes) {
// USB buffers always work in bytes so to avoid unnecessary divisions we demand item_size = 1
TU_ASSERT(ff->item_size == 1);
uint8_t const epnum = tu_edpt_number(ep_addr);
- uint8_t const dir = tu_edpt_dir(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
- xfer_ctl_t * xfer = XFER_CTL_BASE(epnum, dir);
- xfer->buffer = NULL;
- xfer->ff = ff;
- xfer->total_len = total_bytes;
+ xfer_ctl_t* xfer = XFER_CTL_BASE(epnum, dir);
+ xfer->buffer = NULL;
+ xfer->ff = ff;
+ xfer->total_len = total_bytes;
uint16_t num_packets = (total_bytes / xfer->max_size);
uint16_t const short_packet_size = total_bytes % xfer->max_size;
// Zero-size packet is special case.
- if ( short_packet_size > 0 || (total_bytes == 0) ) num_packets++;
+ if (short_packet_size > 0 || (total_bytes == 0)) num_packets++;
// Schedule packets to be sent within interrupt
edpt_schedule_packets(rhport, epnum, dir, num_packets, total_bytes);
@@ -800,123 +803,27 @@ bool dcd_edpt_xfer_fifo (uint8_t rhport, uint8_t ep_addr, tu_fifo_t * ff, uint16
return true;
}
-static void dcd_edpt_disable (uint8_t rhport, uint8_t ep_addr, bool stall)
-{
- (void) rhport;
-
- dwc2_regs_t *dwc2 = DWC2_REG(rhport);
-
- uint8_t const epnum = tu_edpt_number(ep_addr);
- uint8_t const dir = tu_edpt_dir(ep_addr);
-
- if ( dir == TUSB_DIR_IN )
- {
- dwc2_epin_t* epin = dwc2->epin;
-
- // Only disable currently enabled non-control endpoint
- if ( (epnum == 0) || !(epin[epnum].diepctl & DIEPCTL_EPENA) )
- {
- epin[epnum].diepctl |= DIEPCTL_SNAK | (stall ? DIEPCTL_STALL : 0);
- }
- else
- {
- // Stop transmitting packets and NAK IN xfers.
- epin[epnum].diepctl |= DIEPCTL_SNAK;
- while ( (epin[epnum].diepint & DIEPINT_INEPNE) == 0 ) {}
-
- // Disable the endpoint.
- epin[epnum].diepctl |= DIEPCTL_EPDIS | (stall ? DIEPCTL_STALL : 0);
- while ( (epin[epnum].diepint & DIEPINT_EPDISD_Msk) == 0 ) {}
-
- epin[epnum].diepint = DIEPINT_EPDISD;
- }
-
- // Flush the FIFO, and wait until we have confirmed it cleared.
- dwc2->grstctl = ((epnum << GRSTCTL_TXFNUM_Pos) | GRSTCTL_TXFFLSH);
- while ( (dwc2->grstctl & GRSTCTL_TXFFLSH_Msk) != 0 ) {}
- }
- else
- {
- dwc2_epout_t* epout = dwc2->epout;
-
- // Only disable currently enabled non-control endpoint
- if ( (epnum == 0) || !(epout[epnum].doepctl & DOEPCTL_EPENA) )
- {
- epout[epnum].doepctl |= stall ? DOEPCTL_STALL : 0;
- }
- else
- {
- // Asserting GONAK is required to STALL an OUT endpoint.
- // Simpler to use polling here, we don't use the "B"OUTNAKEFF interrupt
- // anyway, and it can't be cleared by user code. If this while loop never
- // finishes, we have bigger problems than just the stack.
- dwc2->dctl |= DCTL_SGONAK;
- while ( (dwc2->gintsts & GINTSTS_BOUTNAKEFF_Msk) == 0 ) {}
-
- // Ditto here- disable the endpoint.
- epout[epnum].doepctl |= DOEPCTL_EPDIS | (stall ? DOEPCTL_STALL : 0);
- while ( (epout[epnum].doepint & DOEPINT_EPDISD_Msk) == 0 ) {}
-
- epout[epnum].doepint = DOEPINT_EPDISD;
-
- // Allow other OUT endpoints to keep receiving.
- dwc2->dctl |= DCTL_CGONAK;
- }
- }
+void dcd_edpt_close(uint8_t rhport, uint8_t ep_addr) {
+ edpt_disable(rhport, ep_addr, false);
}
-/**
- * Close an endpoint.
- */
-void dcd_edpt_close (uint8_t rhport, uint8_t ep_addr)
-{
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
-
- uint8_t const epnum = tu_edpt_number(ep_addr);
- uint8_t const dir = tu_edpt_dir(ep_addr);
-
- dcd_edpt_disable(rhport, ep_addr, false);
-
- // Update max_size
- xfer_status[epnum][dir].max_size = 0; // max_size = 0 marks a disabled EP - required for changing FIFO allocation
-
- if (dir == TUSB_DIR_IN)
- {
- uint16_t const fifo_size = (dwc2->dieptxf[epnum - 1] & DIEPTXF_INEPTXFD_Msk) >> DIEPTXF_INEPTXFD_Pos;
- uint16_t const fifo_start = (dwc2->dieptxf[epnum - 1] & DIEPTXF_INEPTXSA_Msk) >> DIEPTXF_INEPTXSA_Pos;
-
- // For now only the last opened endpoint can be closed without fuss.
- TU_ASSERT(fifo_start == _dwc2_controller[rhport].ep_fifo_size/4 - _allocated_fifo_words_tx,);
- _allocated_fifo_words_tx -= fifo_size;
- }
- else
- {
- _out_ep_closed = true; // Set flag such that RX FIFO gets reduced in size once RX FIFO is empty
- }
+void dcd_edpt_stall(uint8_t rhport, uint8_t ep_addr) {
+ edpt_disable(rhport, ep_addr, true);
}
-void dcd_edpt_stall (uint8_t rhport, uint8_t ep_addr)
-{
- dcd_edpt_disable(rhport, ep_addr, true);
-}
-
-void dcd_edpt_clear_stall (uint8_t rhport, uint8_t ep_addr)
-{
+void dcd_edpt_clear_stall(uint8_t rhport, uint8_t ep_addr) {
(void) rhport;
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
uint8_t const epnum = tu_edpt_number(ep_addr);
- uint8_t const dir = tu_edpt_dir(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
// Clear stall and reset data toggle
- if ( dir == TUSB_DIR_IN )
- {
+ if (dir == TUSB_DIR_IN) {
dwc2->epin[epnum].diepctl &= ~DIEPCTL_STALL;
dwc2->epin[epnum].diepctl |= DIEPCTL_SD0PID_SEVNFRM;
- }
- else
- {
+ } else {
dwc2->epout[epnum].doepctl &= ~DOEPCTL_STALL;
dwc2->epout[epnum].doepctl |= DOEPCTL_SD0PID_SEVNFRM;
}
@@ -925,70 +832,63 @@ void dcd_edpt_clear_stall (uint8_t rhport, uint8_t ep_addr)
/*------------------------------------------------------------------*/
// Read a single data packet from receive FIFO
-static void read_fifo_packet(uint8_t rhport, uint8_t * dst, uint16_t len)
-{
+static void read_fifo_packet(uint8_t rhport, uint8_t* dst, uint16_t len) {
(void) rhport;
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
- volatile const uint32_t * rx_fifo = dwc2->fifo[0];
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
+ volatile const uint32_t* rx_fifo = dwc2->fifo[0];
// Reading full available 32 bit words from fifo
uint16_t full_words = len >> 2;
- while(full_words--)
- {
+ while (full_words--) {
tu_unaligned_write32(dst, *rx_fifo);
dst += 4;
}
// Read the remaining 1-3 bytes from fifo
uint8_t const bytes_rem = len & 0x03;
- if ( bytes_rem != 0 )
- {
+ if (bytes_rem != 0) {
uint32_t const tmp = *rx_fifo;
dst[0] = tu_u32_byte0(tmp);
- if ( bytes_rem > 1 ) dst[1] = tu_u32_byte1(tmp);
- if ( bytes_rem > 2 ) dst[2] = tu_u32_byte2(tmp);
+ if (bytes_rem > 1) dst[1] = tu_u32_byte1(tmp);
+ if (bytes_rem > 2) dst[2] = tu_u32_byte2(tmp);
}
}
// Write a single data packet to EPIN FIFO
-static void write_fifo_packet(uint8_t rhport, uint8_t fifo_num, uint8_t const * src, uint16_t len)
-{
+static void write_fifo_packet(uint8_t rhport, uint8_t fifo_num, uint8_t const* src, uint16_t len) {
(void) rhport;
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
- volatile uint32_t * tx_fifo = dwc2->fifo[fifo_num];
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
+ volatile uint32_t* tx_fifo = dwc2->fifo[fifo_num];
// Pushing full available 32 bit words to fifo
uint16_t full_words = len >> 2;
- while(full_words--)
- {
+ while (full_words--) {
*tx_fifo = tu_unaligned_read32(src);
src += 4;
}
// Write the remaining 1-3 bytes into fifo
uint8_t const bytes_rem = len & 0x03;
- if ( bytes_rem )
- {
+ if (bytes_rem) {
uint32_t tmp_word = src[0];
- if ( bytes_rem > 1 ) tmp_word |= (src[1] << 8);
- if ( bytes_rem > 2 ) tmp_word |= (src[2] << 16);
+ if (bytes_rem > 1) tmp_word |= (src[1] << 8);
+ if (bytes_rem > 2) tmp_word |= (src[2] << 16);
*tx_fifo = tmp_word;
}
}
-static void handle_rxflvl_irq(uint8_t rhport)
-{
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
- volatile uint32_t const * rx_fifo = dwc2->fifo[0];
+static void handle_rxflvl_irq(uint8_t rhport) {
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
+ volatile uint32_t const* rx_fifo = dwc2->fifo[0];
// Pop control word off FIFO
uint32_t const ctl_word = dwc2->grxstsp;
- uint8_t const pktsts = (ctl_word & GRXSTSP_PKTSTS_Msk ) >> GRXSTSP_PKTSTS_Pos;
- uint8_t const epnum = (ctl_word & GRXSTSP_EPNUM_Msk ) >> GRXSTSP_EPNUM_Pos;
- uint16_t const bcnt = (ctl_word & GRXSTSP_BCNT_Msk ) >> GRXSTSP_BCNT_Pos;
+ uint8_t const pktsts = (ctl_word & GRXSTSP_PKTSTS_Msk) >> GRXSTSP_PKTSTS_Pos;
+ uint8_t const epnum = (ctl_word & GRXSTSP_EPNUM_Msk) >> GRXSTSP_EPNUM_Pos;
+ uint16_t const bcnt = (ctl_word & GRXSTSP_BCNT_Msk) >> GRXSTSP_BCNT_Pos;
dwc2_epout_t* epout = &dwc2->epout[epnum];
@@ -1003,10 +903,10 @@ static void handle_rxflvl_irq(uint8_t rhport)
// TU_LOG(DWC2_DEBUG, " daint = %08lX, doepint = %04X\r\n", (unsigned long) dwc2->daint, (unsigned int) epout->doepint);
//#endif
- switch ( pktsts )
- {
+ switch (pktsts) {
// Global OUT NAK: do nothing
- case GRXSTS_PKTSTS_GLOBALOUTNAK: break;
+ case GRXSTS_PKTSTS_GLOBALOUTNAK:
+ break;
case GRXSTS_PKTSTS_SETUPRX:
// Setup packet received
@@ -1015,26 +915,22 @@ static void handle_rxflvl_irq(uint8_t rhport)
// only the last one is valid.
_setup_packet[0] = (*rx_fifo);
_setup_packet[1] = (*rx_fifo);
- break;
+ break;
case GRXSTS_PKTSTS_SETUPDONE:
// Setup packet done (Interrupt)
epout->doeptsiz |= (3 << DOEPTSIZ_STUPCNT_Pos);
- break;
+ break;
- case GRXSTS_PKTSTS_OUTRX:
- {
+ case GRXSTS_PKTSTS_OUTRX: {
// Out packet received
- xfer_ctl_t *xfer = XFER_CTL_BASE(epnum, TUSB_DIR_OUT);
+ xfer_ctl_t* xfer = XFER_CTL_BASE(epnum, TUSB_DIR_OUT);
// Read packet off RxFIFO
- if ( xfer->ff )
- {
+ if (xfer->ff) {
// Ring buffer
tu_fifo_write_n_const_addr_full_words(xfer->ff, (const void*) (uintptr_t) rx_fifo, bcnt);
- }
- else
- {
+ } else {
// Linear buffer
read_fifo_packet(rhport, xfer->buffer, bcnt);
@@ -1043,73 +939,64 @@ static void handle_rxflvl_irq(uint8_t rhport)
}
// Truncate transfer length in case of short packet
- if ( bcnt < xfer->max_size )
- {
+ if (bcnt < xfer->max_size) {
xfer->total_len -= (epout->doeptsiz & DOEPTSIZ_XFRSIZ_Msk) >> DOEPTSIZ_XFRSIZ_Pos;
- if ( epnum == 0 )
- {
+ if (epnum == 0) {
xfer->total_len -= ep0_pending[TUSB_DIR_OUT];
ep0_pending[TUSB_DIR_OUT] = 0;
}
}
}
- break;
+ break;
- // Out packet done (Interrupt)
+ // Out packet done (Interrupt)
case GRXSTS_PKTSTS_OUTDONE:
- // Occurred on STM32L47 with dwc2 version 3.10a but not found on other version like 2.80a or 3.30a
- // May (or not) be 3.10a specific feature/bug or depending on MCU configuration
- // XFRC complete is additionally generated when
- // - setup packet is received
- // - complete the data stage of control write is complete
- if ((epnum == 0) && (bcnt == 0) && (dwc2->gsnpsid >= DWC2_CORE_REV_3_00a))
- {
- uint32_t doepint = epout->doepint;
+ // Occurred on STM32L47 with dwc2 version 3.10a but not found on other version like 2.80a or 3.30a
+ // May (or not) be 3.10a specific feature/bug or depending on MCU configuration
+ // XFRC complete is additionally generated when
+ // - setup packet is received
+ // - complete the data stage of control write is complete
+ if ((epnum == 0) && (bcnt == 0) && (dwc2->gsnpsid >= DWC2_CORE_REV_3_00a)) {
+ uint32_t doepint = epout->doepint;
- if (doepint & (DOEPINT_STPKTRX | DOEPINT_OTEPSPR))
- {
- // skip this "no-data" transfer complete event
- // Note: STPKTRX will be clear later by setup received handler
- uint32_t clear_flags = DOEPINT_XFRC;
+ if (doepint & (DOEPINT_STPKTRX | DOEPINT_OTEPSPR)) {
+ // skip this "no-data" transfer complete event
+ // Note: STPKTRX will be clear later by setup received handler
+ uint32_t clear_flags = DOEPINT_XFRC;
- if (doepint & DOEPINT_OTEPSPR) clear_flags |= DOEPINT_OTEPSPR;
+ if (doepint & DOEPINT_OTEPSPR) clear_flags |= DOEPINT_OTEPSPR;
- epout->doepint = clear_flags;
+ epout->doepint = clear_flags;
- // TU_LOG(DWC2_DEBUG, " FIX extra transfer complete on setup/data compete\r\n");
- }
+ // TU_LOG(DWC2_DEBUG, " FIX extra transfer complete on setup/data compete\r\n");
}
- break;
+ }
+ break;
default: // Invalid
TU_BREAKPOINT();
- break;
+ break;
}
}
-static void handle_epout_irq (uint8_t rhport)
-{
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
+static void handle_epout_irq(uint8_t rhport) {
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
uint8_t const ep_count = _dwc2_controller[rhport].ep_count;
// DAINT for a given EP clears when DOEPINTx is cleared.
// OEPINT will be cleared when DAINT's out bits are cleared.
- for ( uint8_t n = 0; n < ep_count; n++ )
- {
- if ( dwc2->daint & TU_BIT(DAINT_OEPINT_Pos + n) )
- {
+ for (uint8_t n = 0; n < ep_count; n++) {
+ if (dwc2->daint & TU_BIT(DAINT_OEPINT_Pos + n)) {
dwc2_epout_t* epout = &dwc2->epout[n];
uint32_t const doepint = epout->doepint;
// SETUP packet Setup Phase done.
- if ( doepint & DOEPINT_STUP )
- {
+ if (doepint & DOEPINT_STUP) {
uint32_t clear_flag = DOEPINT_STUP;
// STPKTRX is only available for version from 3_00a
- if ((doepint & DOEPINT_STPKTRX) && (dwc2->gsnpsid >= DWC2_CORE_REV_3_00a))
- {
+ if ((doepint & DOEPINT_STPKTRX) && (dwc2->gsnpsid >= DWC2_CORE_REV_3_00a)) {
clear_flag |= DOEPINT_STPKTRX;
}
@@ -1118,20 +1005,16 @@ static void handle_epout_irq (uint8_t rhport)
}
// OUT XFER complete
- if ( epout->doepint & DOEPINT_XFRC )
- {
+ if (epout->doepint & DOEPINT_XFRC) {
epout->doepint = DOEPINT_XFRC;
- xfer_ctl_t *xfer = XFER_CTL_BASE(n, TUSB_DIR_OUT);
+ xfer_ctl_t* xfer = XFER_CTL_BASE(n, TUSB_DIR_OUT);
// EP0 can only handle one packet
- if ( (n == 0) && ep0_pending[TUSB_DIR_OUT] )
- {
+ if ((n == 0) && ep0_pending[TUSB_DIR_OUT]) {
// Schedule another packet to be received.
edpt_schedule_packets(rhport, n, TUSB_DIR_OUT, 1, ep0_pending[TUSB_DIR_OUT]);
- }
- else
- {
+ } else {
dcd_event_xfer_complete(rhport, n, xfer->total_len, XFER_RESULT_SUCCESS, true);
}
}
@@ -1139,40 +1022,32 @@ static void handle_epout_irq (uint8_t rhport)
}
}
-static void handle_epin_irq (uint8_t rhport)
-{
- dwc2_regs_t * dwc2 = DWC2_REG(rhport);
+static void handle_epin_irq(uint8_t rhport) {
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
uint8_t const ep_count = _dwc2_controller[rhport].ep_count;
- dwc2_epin_t* epin = dwc2->epin;
+ dwc2_epin_t* epin = dwc2->epin;
// DAINT for a given EP clears when DIEPINTx is cleared.
// IEPINT will be cleared when DAINT's out bits are cleared.
- for ( uint8_t n = 0; n < ep_count; n++ )
- {
- if ( dwc2->daint & TU_BIT(DAINT_IEPINT_Pos + n) )
- {
+ for (uint8_t n = 0; n < ep_count; n++) {
+ if (dwc2->daint & TU_BIT(DAINT_IEPINT_Pos + n)) {
// IN XFER complete (entire xfer).
- xfer_ctl_t *xfer = XFER_CTL_BASE(n, TUSB_DIR_IN);
+ xfer_ctl_t* xfer = XFER_CTL_BASE(n, TUSB_DIR_IN);
- if ( epin[n].diepint & DIEPINT_XFRC )
- {
+ if (epin[n].diepint & DIEPINT_XFRC) {
epin[n].diepint = DIEPINT_XFRC;
// EP0 can only handle one packet
- if ( (n == 0) && ep0_pending[TUSB_DIR_IN] )
- {
+ if ((n == 0) && ep0_pending[TUSB_DIR_IN]) {
// Schedule another packet to be transmitted.
edpt_schedule_packets(rhport, n, TUSB_DIR_IN, 1, ep0_pending[TUSB_DIR_IN]);
- }
- else
- {
+ } else {
dcd_event_xfer_complete(rhport, n | TUSB_DIR_IN_MASK, xfer->total_len, XFER_RESULT_SUCCESS, true);
}
}
// XFER FIFO empty
- if ( (epin[n].diepint & DIEPINT_TXFE) && (dwc2->diepempmsk & (1 << n)) )
- {
+ if ((epin[n].diepint & DIEPINT_TXFE) && (dwc2->diepempmsk & (1 << n))) {
// diepint's TXFE bit is read-only, software cannot clear it.
// It will only be cleared by hardware when written bytes is more than
// - 64 bytes or
@@ -1181,8 +1056,7 @@ static void handle_epin_irq (uint8_t rhport)
uint16_t remaining_packets = (epin[n].dieptsiz & DIEPTSIZ_PKTCNT_Msk) >> DIEPTSIZ_PKTCNT_Pos;
// Process every single packet (only whole packets can be written to fifo)
- for ( uint16_t i = 0; i < remaining_packets; i++ )
- {
+ for (uint16_t i = 0; i < remaining_packets; i++) {
uint16_t const remaining_bytes = (epin[n].dieptsiz & DIEPTSIZ_XFRSIZ_Msk) >> DIEPTSIZ_XFRSIZ_Pos;
// Packet can not be larger than ep max size
@@ -1190,16 +1064,13 @@ static void handle_epin_irq (uint8_t rhport)
// It's only possible to write full packets into FIFO. Therefore DTXFSTS register of current
// EP has to be checked if the buffer can take another WHOLE packet
- if ( packet_size > ((epin[n].dtxfsts & DTXFSTS_INEPTFSAV_Msk) << 2) ) break;
+ if (packet_size > ((epin[n].dtxfsts & DTXFSTS_INEPTFSAV_Msk) << 2)) break;
// Push packet to Tx-FIFO
- if ( xfer->ff )
- {
- volatile uint32_t *tx_fifo = dwc2->fifo[n];
+ if (xfer->ff) {
+ volatile uint32_t* tx_fifo = dwc2->fifo[n];
tu_fifo_read_n_const_addr_full_words(xfer->ff, (void*) (uintptr_t) tx_fifo, packet_size);
- }
- else
- {
+ } else {
write_fifo_packet(rhport, n, xfer->buffer, packet_size);
// Increment pointer to xfer data
@@ -1208,8 +1079,7 @@ static void handle_epin_irq (uint8_t rhport)
}
// Turn off TXFE if all bytes are written.
- if ( ((epin[n].dieptsiz & DIEPTSIZ_XFRSIZ_Msk) >> DIEPTSIZ_XFRSIZ_Pos) == 0 )
- {
+ if (((epin[n].dieptsiz & DIEPTSIZ_XFRSIZ_Msk) >> DIEPTSIZ_XFRSIZ_Pos) == 0) {
dwc2->diepempmsk &= ~(1 << n);
}
}
@@ -1217,55 +1087,50 @@ static void handle_epin_irq (uint8_t rhport)
}
}
-void dcd_int_handler(uint8_t rhport)
-{
- dwc2_regs_t *dwc2 = DWC2_REG(rhport);
+void dcd_int_handler(uint8_t rhport) {
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
uint32_t const int_mask = dwc2->gintmsk;
uint32_t const int_status = dwc2->gintsts & int_mask;
- if(int_status & GINTSTS_USBRST)
- {
+ if (int_status & GINTSTS_USBRST) {
// USBRST is start of reset.
dwc2->gintsts = GINTSTS_USBRST;
bus_reset(rhport);
}
- if(int_status & GINTSTS_ENUMDNE)
- {
+ if (int_status & GINTSTS_ENUMDNE) {
// ENUMDNE is the end of reset where speed of the link is detected
-
dwc2->gintsts = GINTSTS_ENUMDNE;
tusb_speed_t speed;
- switch ((dwc2->dsts & DSTS_ENUMSPD_Msk) >> DSTS_ENUMSPD_Pos)
- {
+ switch ((dwc2->dsts & DSTS_ENUMSPD_Msk) >> DSTS_ENUMSPD_Pos) {
case DSTS_ENUMSPD_HS:
speed = TUSB_SPEED_HIGH;
- break;
+ break;
case DSTS_ENUMSPD_LS:
speed = TUSB_SPEED_LOW;
- break;
+ break;
case DSTS_ENUMSPD_FS_HSPHY:
case DSTS_ENUMSPD_FS:
default:
speed = TUSB_SPEED_FULL;
- break;
+ break;
}
+ // TODO must update GUSBCFG_TRDT according to link speed
+
dcd_event_bus_reset(rhport, speed, true);
}
- if(int_status & GINTSTS_USBSUSP)
- {
+ if (int_status & GINTSTS_USBSUSP) {
dwc2->gintsts = GINTSTS_USBSUSP;
dcd_event_bus_signal(rhport, DCD_EVENT_SUSPEND, true);
}
- if(int_status & GINTSTS_WKUINT)
- {
+ if (int_status & GINTSTS_WKUINT) {
dwc2->gintsts = GINTSTS_WKUINT;
dcd_event_bus_signal(rhport, DCD_EVENT_RESUME, true);
}
@@ -1273,73 +1138,52 @@ void dcd_int_handler(uint8_t rhport)
// TODO check GINTSTS_DISCINT for disconnect detection
// if(int_status & GINTSTS_DISCINT)
- if(int_status & GINTSTS_OTGINT)
- {
+ if (int_status & GINTSTS_OTGINT) {
// OTG INT bit is read-only
uint32_t const otg_int = dwc2->gotgint;
- if (otg_int & GOTGINT_SEDET)
- {
+ if (otg_int & GOTGINT_SEDET) {
dcd_event_bus_signal(rhport, DCD_EVENT_UNPLUGGED, true);
}
dwc2->gotgint = otg_int;
}
- if(int_status & GINTSTS_SOF)
- {
- dwc2->gotgint = GINTSTS_SOF;
+ if(int_status & GINTSTS_SOF) {
+ dwc2->gintsts = GINTSTS_SOF;
+ const uint32_t frame = (dwc2->dsts & DSTS_FNSOF) >> DSTS_FNSOF_Pos;
- if (_sof_en)
- {
- uint32_t frame = (dwc2->dsts & (DSTS_FNSOF)) >> 8;
- dcd_event_sof(rhport, frame, true);
- }
- else
- {
- // Disable SOF interrupt if SOF was not explicitly enabled. SOF was used for remote wakeup detection
+ // Disable SOF interrupt if SOF was not explicitly enabled since SOF was used for remote wakeup detection
+ if (!_sof_en) {
dwc2->gintmsk &= ~GINTMSK_SOFM;
}
- dcd_event_bus_signal(rhport, DCD_EVENT_SOF, true);
+ dcd_event_sof(rhport, frame, true);
}
// RxFIFO non-empty interrupt handling.
- if(int_status & GINTSTS_RXFLVL)
- {
+ if (int_status & GINTSTS_RXFLVL) {
// RXFLVL bit is read-only
// Mask out RXFLVL while reading data from FIFO
dwc2->gintmsk &= ~GINTMSK_RXFLVLM;
// Loop until all available packets were handled
- do
- {
+ do {
handle_rxflvl_irq(rhport);
- } while(dwc2->gotgint & GINTSTS_RXFLVL);
-
- // Manage RX FIFO size
- if (_out_ep_closed)
- {
- update_grxfsiz(rhport);
-
- // Disable flag
- _out_ep_closed = false;
- }
+ } while(dwc2->gintsts & GINTSTS_RXFLVL);
dwc2->gintmsk |= GINTMSK_RXFLVLM;
}
// OUT endpoint interrupt handling.
- if(int_status & GINTSTS_OEPINT)
- {
+ if (int_status & GINTSTS_OEPINT) {
// OEPINT is read-only, clear using DOEPINTn
handle_epout_irq(rhport);
}
// IN endpoint interrupt handling.
- if(int_status & GINTSTS_IEPINT)
- {
+ if (int_status & GINTSTS_IEPINT) {
// IEPINT bit read-only, clear using DIEPINTn
handle_epin_irq(rhport);
}
diff --git a/src/portable/synopsys/dwc2/dwc2_info.md b/src/portable/synopsys/dwc2/dwc2_info.md
new file mode 100644
index 000000000..8690a0755
--- /dev/null
+++ b/src/portable/synopsys/dwc2/dwc2_info.md
@@ -0,0 +1,55 @@
+| | BCM2711 (Pi4) | EFM32GG FullSpeed | ESP32-S2 | STM32F407 Fullspeed | STM32F407 Highspeed | STM32F411 Fullspeed | STM32F412 Fullspeed | STM32F429 Fullspeed | STM32F429 Highspeed | STM32F723 Fullspeed | STM32F723 HighSpeed | STM32F767 Fullspeed | STM32H743 Highspeed | STM32L476 Fullspeed | STM32U5A5 Highspeed | GD32VF103 Fullspeed | XMC4500 |
+|:----------------------------|:----------------|:--------------------|:-----------|:----------------------|:----------------------|:----------------------|:----------------------|:----------------------|:----------------------|:----------------------|:----------------------|:----------------------|:----------------------|:----------------------|:----------------------|:----------------------|:-----------|
+| guid | 0x2708A000 | 0x00000000 | 0x00000000 | 0x00001200 | 0x00001100 | 0x00001200 | 0x00002000 | 0x00001200 | 0x00001100 | 0x00003000 | 0x00003100 | 0x00002000 | 0x00002300 | 0x00002000 | 0x00005000 | 0x00001000 | 0x00AEC000 |
+| gsnpsid | 0x4F54280A | 0x4F54330A | 0x4F54400A | 0x4F54281A | 0x4F54281A | 0x4F54281A | 0x4F54320A | 0x4F54281A | 0x4F54281A | 0x4F54330A | 0x4F54330A | 0x4F54320A | 0x4F54330A | 0x4F54310A | 0x4F54411A | 0x00000000 | 0x4F54292A |
+| - specs version | 2.80a | 3.30a | 4.00a | 2.81a | 2.81a | 2.81a | 3.20a | 2.81a | 2.81a | 3.30a | 3.30a | 3.20a | 3.30a | 3.10a | 4.11a | 0.00W | 2.92a |
+| ghwcfg1 | 0x00000000 | 0x00000000 | 0x00000000 | 0x00000000 | 0x00000000 | 0x00000000 | 0x00000000 | 0x00000000 | 0x00000000 | 0x00000000 | 0x00000000 | 0x00000000 | 0x00000000 | 0x00000000 | 0x00000000 | 0x00000000 | 0x00000000 |
+| ghwcfg2 | 0x228DDD50 | 0x228F5910 | 0x224DD930 | 0x229DCD20 | 0x229ED590 | 0x229DCD20 | 0x229ED520 | 0x229DCD20 | 0x229ED590 | 0x229ED520 | 0x229FE1D0 | 0x229ED520 | 0x229FE190 | 0x229ED520 | 0x228FE052 | 0x00000000 | 0x228F5930 |
+| - op_mode | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 2 | 0 | 0 |
+| - arch | 2 | 2 | 2 | 0 | 2 | 0 | 0 | 0 | 2 | 0 | 2 | 0 | 2 | 0 | 2 | 0 | 2 |
+| - point2point | 0 | 0 | 1 | 1 | 0 | 1 | 1 | 1 | 0 | 1 | 0 | 1 | 0 | 1 | 0 | 0 | 1 |
+| - hs_phy_type | 1 | 0 | 0 | 0 | 2 | 0 | 0 | 0 | 2 | 0 | 3 | 0 | 2 | 0 | 1 | 0 | 0 |
+| - fs_phy_type | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 0 | 0 | 1 |
+| - num_dev_ep | 7 | 6 | 6 | 3 | 5 | 3 | 5 | 3 | 5 | 5 | 8 | 5 | 8 | 5 | 8 | 0 | 6 |
+| - num_host_ch | 7 | 13 | 7 | 7 | 11 | 7 | 11 | 7 | 11 | 11 | 15 | 11 | 15 | 11 | 15 | 0 | 13 |
+| - period_channel_support | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 0 | 1 |
+| - enable_dynamic_fifo | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 0 | 1 |
+| - mul_cpu_int | 0 | 0 | 0 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 0 | 0 | 0 |
+| - reserved21 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
+| - nperiod_tx_q_depth | 2 | 2 | 1 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 0 | 2 |
+| - host_period_tx_q_depth | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 0 | 2 |
+| - dev_token_q_depth | 8 | 8 | 8 | 8 | 8 | 8 | 8 | 8 | 8 | 8 | 8 | 8 | 8 | 8 | 8 | 0 | 8 |
+| - otg_enable_ic_usb | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
+| ghwcfg3 | 0x0FF000E8 | 0x01F204E8 | 0x00C804B5 | 0x020001E8 | 0x03F403E8 | 0x020001E8 | 0x0200D1E8 | 0x020001E8 | 0x03F403E8 | 0x0200D1E8 | 0x03EED2E8 | 0x0200D1E8 | 0x03B8D2E8 | 0x0200D1E8 | 0x03B882E8 | 0x00000000 | 0x027A01E5 |
+| - xfer_size_width | 8 | 8 | 5 | 8 | 8 | 8 | 8 | 8 | 8 | 8 | 8 | 8 | 8 | 8 | 8 | 0 | 5 |
+| - packet_size_width | 6 | 6 | 3 | 6 | 6 | 6 | 6 | 6 | 6 | 6 | 6 | 6 | 6 | 6 | 6 | 0 | 6 |
+| - otg_enable | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 0 | 1 |
+| - i2c_enable | 0 | 0 | 0 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 0 | 1 | 0 | 1 | 0 | 0 | 1 |
+| - vendor_ctrl_itf | 0 | 0 | 0 | 0 | 1 | 0 | 0 | 0 | 1 | 0 | 1 | 0 | 1 | 0 | 1 | 0 | 0 |
+| - optional_feature_removed | 0 | 1 | 1 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
+| - synch_reset | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
+| - otg_adp_support | 0 | 0 | 0 | 0 | 0 | 0 | 1 | 0 | 0 | 1 | 1 | 1 | 1 | 1 | 0 | 0 | 0 |
+| - otg_enable_hsic | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
+| - battery_charger_support | 0 | 0 | 0 | 0 | 0 | 0 | 1 | 0 | 0 | 1 | 1 | 1 | 1 | 1 | 0 | 0 | 0 |
+| - lpm_mode | 0 | 0 | 0 | 0 | 0 | 0 | 1 | 0 | 0 | 1 | 1 | 1 | 1 | 1 | 1 | 0 | 0 |
+| - total_fifo_size | 4080 | 498 | 200 | 512 | 1012 | 512 | 512 | 512 | 1012 | 512 | 1006 | 512 | 952 | 512 | 952 | 0 | 634 |
+| ghwcfg4 | 0x1FF00020 | 0x1BF08030 | 0xD3F0A030 | 0x0FF08030 | 0x17F00030 | 0x0FF08030 | 0x17F08030 | 0x0FF08030 | 0x17F00030 | 0x17F08030 | 0x23F00030 | 0x17F08030 | 0xE3F00030 | 0x17F08030 | 0xE2103E30 | 0x00000000 | 0xDBF08030 |
+| - num_dev_period_in_ep | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
+| - power_optimized | 0 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 0 | 1 |
+| - ahb_freq_min | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 0 | 1 |
+| - hibernation | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
+| - reserved7 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 4 | 0 | 0 |
+| - service_interval_mode | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 1 | 0 | 0 |
+| - ipg_isoc_en | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 1 | 0 | 0 |
+| - acg_enable | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 1 | 0 | 0 |
+| - reserved13 | 0 | 0 | 1 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 1 | 0 | 0 |
+| - utmi_phy_data_width | 0 | 2 | 2 | 2 | 0 | 2 | 2 | 2 | 0 | 2 | 0 | 2 | 0 | 2 | 0 | 0 | 2 |
+| - dev_ctrl_ep_num | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
+| - iddg_filter_enabled | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 0 | 1 |
+| - vbus_valid_filter_enabled | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 0 | 0 | 1 |
+| - a_valid_filter_enabled | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 0 | 0 | 1 |
+| - b_valid_filter_enabled | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 0 | 0 | 1 |
+| - dedicated_fifos | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 0 | 0 | 1 |
+| - num_dev_in_eps | 15 | 13 | 9 | 7 | 11 | 7 | 11 | 7 | 11 | 11 | 1 | 11 | 1 | 11 | 1 | 0 | 13 |
+| - dma_desc_enable | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 1 | 0 | 1 | 0 | 1 | 0 | 0 |
+| - dma_dynamic | 0 | 0 | 1 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 1 | 0 | 1 | 0 | 1 |
diff --git a/src/portable/synopsys/dwc2/dwc2_info.py b/src/portable/synopsys/dwc2/dwc2_info.py
new file mode 100644
index 000000000..55bec3d23
--- /dev/null
+++ b/src/portable/synopsys/dwc2/dwc2_info.py
@@ -0,0 +1,169 @@
+import click
+import ctypes
+import pandas as pd
+
+# hex value for register: guid, gsnpsid, ghwcfg1, ghwcfg2, ghwcfg3, ghwcfg4
+dwc2_reg_list = ['guid', 'gsnpsid', 'ghwcfg1', 'ghwcfg2', 'ghwcfg3', 'ghwcfg4']
+dwc2_reg_value = {
+ 'BCM2711 (Pi4)': [0x2708A000, 0x4F54280A, 0, 0x228DDD50, 0xFF000E8, 0x1FF00020],
+ 'EFM32GG FullSpeed': [0, 0x4F54330A, 0, 0x228F5910, 0x1F204E8, 0x1BF08030],
+ 'ESP32-S2': [0, 0x4F54400A, 0, 0x224DD930, 0xC804B5, 0xD3F0A030],
+ 'STM32F407 Fullspeed': [0x1200, 0x4F54281A, 0, 0x229DCD20, 0x20001E8, 0xFF08030],
+ 'STM32F407 Highspeed': [0x1100, 0x4F54281A, 0, 0x229ED590, 0x3F403E8, 0x17F00030],
+ 'STM32F411 Fullspeed': [0x1200, 0x4F54281A, 0, 0x229DCD20, 0x20001E8, 0xFF08030],
+ 'STM32F412 Fullspeed': [0x2000, 0x4F54320A, 0, 0x229ED520, 0x200D1E8, 0x17F08030],
+ 'STM32F429 Fullspeed': [0x1200, 0x4F54281A, 0, 0x229DCD20, 0x20001E8, 0xFF08030],
+ 'STM32F429 Highspeed': [0x1100, 0x4F54281A, 0, 0x229ED590, 0x3F403E8, 0x17F00030],
+ 'STM32F723 Fullspeed': [0x3000, 0x4F54330A, 0, 0x229ED520, 0x200D1E8, 0x17F08030],
+ 'STM32F723 HighSpeed': [0x3100, 0x4F54330A, 0, 0x229FE1D0, 0x3EED2E8, 0x23F00030],
+ 'STM32F767 Fullspeed': [0x2000, 0x4F54320A, 0, 0x229ED520, 0x200D1E8, 0x17F08030],
+ 'STM32H743 Highspeed': [0x2300, 0x4F54330A, 0, 0x229FE190, 0x3B8D2E8, 0xE3F00030], # both HS cores
+ 'STM32L476 Fullspeed': [0x2000, 0x4F54310A, 0, 0x229ED520, 0x200D1E8, 0x17F08030],
+ 'STM32U5A5 Highspeed': [0x00005000, 0x4F54411A, 0x00000000, 0x228FE052, 0x03B882E8, 0xE2103E30],
+ 'GD32VF103 Fullspeed': [0x1000, 0, 0, 0, 0, 0],
+ 'XMC4500': [0xAEC000, 0x4F54292A, 0, 0x228F5930, 0x27A01E5, 0xDBF08030]
+}
+
+# Combine dwc2_info with dwc2_reg_list
+# dwc2_info = {
+# 'BCM2711 (Pi4)': {
+# 'guid': 0x2708A000,
+# 'gsnpsid': 0x4F54280A,
+# 'ghwcfg1': 0,
+# 'ghwcfg2': 0x228DDD50,
+# 'ghwcfg3': 0xFF000E8,
+# 'ghwcfg4': 0x1FF00020
+# },
+dwc2_info = {key: {field: value for field, value in zip(dwc2_reg_list, values)} for key, values in dwc2_reg_value.items()}
+
+
+class GHWCFG2(ctypes.LittleEndianStructure):
+ _fields_ = [
+ ("op_mode", ctypes.c_uint32, 3),
+ ("arch", ctypes.c_uint32, 2),
+ ("point2point", ctypes.c_uint32, 1),
+ ("hs_phy_type", ctypes.c_uint32, 2),
+ ("fs_phy_type", ctypes.c_uint32, 2),
+ ("num_dev_ep", ctypes.c_uint32, 4),
+ ("num_host_ch", ctypes.c_uint32, 4),
+ ("period_channel_support", ctypes.c_uint32, 1),
+ ("enable_dynamic_fifo", ctypes.c_uint32, 1),
+ ("mul_cpu_int", ctypes.c_uint32, 1),
+ ("reserved21", ctypes.c_uint32, 1),
+ ("nperiod_tx_q_depth", ctypes.c_uint32, 2),
+ ("host_period_tx_q_depth", ctypes.c_uint32, 2),
+ ("dev_token_q_depth", ctypes.c_uint32, 5),
+ ("otg_enable_ic_usb", ctypes.c_uint32, 1)
+ ]
+
+
+class GHWCFG3(ctypes.LittleEndianStructure):
+ _fields_ = [
+ ("xfer_size_width", ctypes.c_uint32, 4),
+ ("packet_size_width", ctypes.c_uint32, 3),
+ ("otg_enable", ctypes.c_uint32, 1),
+ ("i2c_enable", ctypes.c_uint32, 1),
+ ("vendor_ctrl_itf", ctypes.c_uint32, 1),
+ ("optional_feature_removed", ctypes.c_uint32, 1),
+ ("synch_reset", ctypes.c_uint32, 1),
+ ("otg_adp_support", ctypes.c_uint32, 1),
+ ("otg_enable_hsic", ctypes.c_uint32, 1),
+ ("battery_charger_support", ctypes.c_uint32, 1),
+ ("lpm_mode", ctypes.c_uint32, 1),
+ ("total_fifo_size", ctypes.c_uint32, 16)
+ ]
+
+
+class GHWCFG4(ctypes.LittleEndianStructure):
+ _fields_ = [
+ ("num_dev_period_in_ep", ctypes.c_uint32, 4),
+ ("power_optimized", ctypes.c_uint32, 1),
+ ("ahb_freq_min", ctypes.c_uint32, 1),
+ ("hibernation", ctypes.c_uint32, 1),
+ ("reserved7", ctypes.c_uint32, 3),
+ ("service_interval_mode", ctypes.c_uint32, 1),
+ ("ipg_isoc_en", ctypes.c_uint32, 1),
+ ("acg_enable", ctypes.c_uint32, 1),
+ ("reserved13", ctypes.c_uint32, 1),
+ ("utmi_phy_data_width", ctypes.c_uint32, 2),
+ ("dev_ctrl_ep_num", ctypes.c_uint32, 4),
+ ("iddg_filter_enabled", ctypes.c_uint32, 1),
+ ("vbus_valid_filter_enabled", ctypes.c_uint32, 1),
+ ("a_valid_filter_enabled", ctypes.c_uint32, 1),
+ ("b_valid_filter_enabled", ctypes.c_uint32, 1),
+ ("dedicated_fifos", ctypes.c_uint32, 1),
+ ("num_dev_in_eps", ctypes.c_uint32, 4),
+ ("dma_desc_enable", ctypes.c_uint32, 1),
+ ("dma_dynamic", ctypes.c_uint32, 1)
+ ]
+
+
+def cli():
+ pass
+
+
[email protected]('mcus', nargs=-1)
[email protected]('-a', '--all', is_flag=True, help='Print all bit-field values')
+def info(mcus, all):
+ """Print DWC2 register values for given MCU(s)"""
+ if len(mcus) == 0:
+ mcus = dwc2_info
+
+ for mcu in mcus:
+ for entry in dwc2_info:
+ if mcu.lower() in entry.lower():
+ print(f"## {entry}")
+ for r_name, r_value in dwc2_info[entry].items():
+ print(f"{r_name} = 0x{r_value:08X}")
+ # Print bit-field values
+ if all and r_name.upper() in globals():
+ class_name = globals()[r_name.upper()]
+ ghwcfg = class_name.from_buffer_copy(r_value.to_bytes(4, byteorder='little'))
+ for field_name, field_type, _ in class_name._fields_:
+ print(f" {field_name} = {getattr(ghwcfg, field_name)}")
+
+
+def render_md():
+ """Render dwc2_info to Markdown table"""
+ # Create an empty list to hold the dictionaries
+ dwc2_info_list = []
+
+ # Iterate over the dwc2_info dictionary and extract fields
+ for device, reg_values in dwc2_info.items():
+ entry_dict = {"Device": device}
+ for r_name, r_value in reg_values.items():
+ entry_dict[r_name] = f"0x{r_value:08X}"
+
+ if r_name == 'gsnpsid':
+ # Get dwc2 specs version
+ major = ((r_value >> 8) >> 4) & 0x0F
+ minor = (r_value >> 4) & 0xFF
+ patch = chr((r_value & 0x0F) + ord('a') - 0xA)
+ entry_dict[f' - specs version'] = f"{major:X}.{minor:02X}{patch}"
+ elif r_name.upper() in globals():
+ # Get bit-field values which exist as ctypes structures
+ class_name = globals()[r_name.upper()]
+ ghwcfg = class_name.from_buffer_copy(r_value.to_bytes(4, byteorder='little'))
+ for field_name, field_type, _ in class_name._fields_:
+ entry_dict[f' - {field_name}'] = getattr(ghwcfg, field_name)
+
+ dwc2_info_list.append(entry_dict)
+
+ # Create a Pandas DataFrame from the list of dictionaries
+ df = pd.DataFrame(dwc2_info_list).set_index('Device')
+
+ # Transpose the DataFrame to switch rows and columns
+ df = df.T
+ #print(df)
+
+ # Write the Markdown table to a file
+ with open('dwc2_info.md', 'w') as md_file:
+ md_file.write(df.to_markdown())
+ md_file.write('\n')
+
+
+if __name__ == '__main__':
+ cli()
diff --git a/src/portable/synopsys/dwc2/dwc2_stm32.h b/src/portable/synopsys/dwc2/dwc2_stm32.h
index cb455bd90..3237a50f6 100644
--- a/src/portable/synopsys/dwc2/dwc2_stm32.h
+++ b/src/portable/synopsys/dwc2/dwc2_stm32.h
@@ -24,11 +24,11 @@
* This file is part of the TinyUSB stack.
*/
-#ifndef _DWC2_STM32_H_
-#define _DWC2_STM32_H_
+#ifndef DWC2_STM32_H_
+#define DWC2_STM32_H_
#ifdef __cplusplus
- extern "C" {
+extern "C" {
#endif
// EP_MAX : Max number of bi-directional endpoints including EP0
@@ -84,10 +84,16 @@
#elif CFG_TUSB_MCU == OPT_MCU_STM32U5
#include "stm32u5xx.h"
- #define USB_OTG_FS_PERIPH_BASE USB_OTG_FS_BASE
- #define EP_MAX_FS 6
- #define EP_FIFO_SIZE_FS 1280
-
+ // U59x/5Ax/5Fx/5Gx are highspeed with built-in HS PHY
+ #ifdef USB_OTG_FS
+ #define USB_OTG_FS_PERIPH_BASE USB_OTG_FS_BASE
+ #define EP_MAX_FS 6
+ #define EP_FIFO_SIZE_FS 1280
+ #else
+ #define USB_OTG_HS_PERIPH_BASE USB_OTG_HS_BASE
+ #define EP_MAX_HS 9
+ #define EP_FIFO_SIZE_HS 4096
+ #endif
#else
#error "Unsupported MCUs"
#endif
@@ -101,15 +107,14 @@
// On STM32 for consistency we associate
// - Port0 to OTG_FS, and Port1 to OTG_HS
-static const dwc2_controller_t _dwc2_controller[] =
-{
-#ifdef USB_OTG_FS_PERIPH_BASE
- { .reg_base = USB_OTG_FS_PERIPH_BASE, .irqnum = OTG_FS_IRQn, .ep_count = EP_MAX_FS, .ep_fifo_size = EP_FIFO_SIZE_FS },
-#endif
+static const dwc2_controller_t _dwc2_controller[] = {
+ #ifdef USB_OTG_FS_PERIPH_BASE
+ { .reg_base = USB_OTG_FS_PERIPH_BASE, .irqnum = OTG_FS_IRQn, .ep_count = EP_MAX_FS, .ep_fifo_size = EP_FIFO_SIZE_FS },
+ #endif
-#ifdef USB_OTG_HS_PERIPH_BASE
- { .reg_base = USB_OTG_HS_PERIPH_BASE, .irqnum = OTG_HS_IRQn, .ep_count = EP_MAX_HS, .ep_fifo_size = EP_FIFO_SIZE_HS },
-#endif
+ #ifdef USB_OTG_HS_PERIPH_BASE
+ { .reg_base = USB_OTG_HS_PERIPH_BASE, .irqnum = OTG_HS_IRQn, .ep_count = EP_MAX_HS, .ep_fifo_size = EP_FIFO_SIZE_HS },
+ #endif
};
//--------------------------------------------------------------------+
@@ -119,42 +124,59 @@ static const dwc2_controller_t _dwc2_controller[] =
// SystemCoreClock is already included by family header
// extern uint32_t SystemCoreClock;
-TU_ATTR_ALWAYS_INLINE
-static inline void dwc2_dcd_int_enable(uint8_t rhport)
-{
- NVIC_EnableIRQ((IRQn_Type)_dwc2_controller[rhport].irqnum);
+TU_ATTR_ALWAYS_INLINE static inline void dwc2_dcd_int_enable(uint8_t rhport) {
+ NVIC_EnableIRQ((IRQn_Type) _dwc2_controller[rhport].irqnum);
}
-TU_ATTR_ALWAYS_INLINE
-static inline void dwc2_dcd_int_disable (uint8_t rhport)
-{
- NVIC_DisableIRQ((IRQn_Type)_dwc2_controller[rhport].irqnum);
+TU_ATTR_ALWAYS_INLINE static inline void dwc2_dcd_int_disable(uint8_t rhport) {
+ NVIC_DisableIRQ((IRQn_Type) _dwc2_controller[rhport].irqnum);
}
-TU_ATTR_ALWAYS_INLINE
-static inline void dwc2_remote_wakeup_delay(void)
-{
+TU_ATTR_ALWAYS_INLINE static inline void dwc2_remote_wakeup_delay(void) {
// try to delay for 1 ms
uint32_t count = SystemCoreClock / 1000;
- while ( count-- ) __NOP();
+ while (count--) __NOP();
}
// MCU specific PHY init, called BEFORE core reset
-static inline void dwc2_phy_init(dwc2_regs_t * dwc2, uint8_t hs_phy_type)
-{
- if ( hs_phy_type == HS_PHY_TYPE_NONE )
- {
+// - dwc2 3.30a (H5) use USB_HS_PHYC
+// - dwc2 4.11a (U5) use femtoPHY
+static inline void dwc2_phy_init(dwc2_regs_t* dwc2, uint8_t hs_phy_type) {
+ if (hs_phy_type == HS_PHY_TYPE_NONE) {
// Enable on-chip FS PHY
dwc2->stm32_gccfg |= STM32_GCCFG_PWRDWN;
- }else
- {
- // Disable FS PHY
+
+ // https://community.st.com/t5/stm32cubemx-mcus/why-stm32h743-usb-fs-doesn-t-work-if-freertos-tickless-idle/m-p/349480#M18867
+ // H7 running on full-speed phy need to disable ULPI clock in sleep mode.
+ // Otherwise, USB won't work when mcu executing WFI/WFE instruction i.e tick-less RTOS.
+ // Note: there may be other family that is affected by this, but only H7 and F7 is tested so far
+ #if defined(USB_OTG_FS_PERIPH_BASE) && defined(RCC_AHB1LPENR_USB2OTGFSULPILPEN)
+ if ( USB_OTG_FS_PERIPH_BASE == (uint32_t) dwc2 ) {
+ RCC->AHB1LPENR &= ~RCC_AHB1LPENR_USB2OTGFSULPILPEN;
+ }
+ #endif
+
+ #if defined(USB_OTG_HS_PERIPH_BASE) && defined(RCC_AHB1LPENR_USB1OTGHSULPILPEN)
+ if ( USB_OTG_HS_PERIPH_BASE == (uint32_t) dwc2 ) {
+ RCC->AHB1LPENR &= ~RCC_AHB1LPENR_USB1OTGHSULPILPEN;
+ }
+ #endif
+
+ #if defined(USB_OTG_HS_PERIPH_BASE) && defined(RCC_AHB1LPENR_OTGHSULPILPEN)
+ if ( USB_OTG_HS_PERIPH_BASE == (uint32_t) dwc2 ) {
+ RCC->AHB1LPENR &= ~RCC_AHB1LPENR_OTGHSULPILPEN;
+ }
+ #endif
+
+ } else {
+#if CFG_TUSB_MCU != OPT_MCU_STM32U5
+ // Disable FS PHY, TODO on U5A5 (dwc2 4.11a) 16th bit is 'Host CDP behavior enable'
dwc2->stm32_gccfg &= ~STM32_GCCFG_PWRDWN;
+#endif
// Enable on-chip HS PHY
- if (hs_phy_type == HS_PHY_TYPE_UTMI || hs_phy_type == HS_PHY_TYPE_UTMI_ULPI)
- {
-#ifdef USB_HS_PHYC
+ if (hs_phy_type == HS_PHY_TYPE_UTMI || hs_phy_type == HS_PHY_TYPE_UTMI_ULPI) {
+ #ifdef USB_HS_PHYC
// Enable UTMI HS PHY
dwc2->stm32_gccfg |= STM32_GCCFG_PHYHSEN;
@@ -186,40 +208,47 @@ static inline void dwc2_phy_init(dwc2_regs_t * dwc2, uint8_t hs_phy_type)
// Enable PLL internal PHY
USB_HS_PHYC->USB_HS_PHYC_PLL |= USB_HS_PHYC_PLL_PLLEN;
-#endif
+ #else
+
+ #endif
}
}
}
// MCU specific PHY update, it is called AFTER init() and core reset
-static inline void dwc2_phy_update(dwc2_regs_t * dwc2, uint8_t hs_phy_type)
-{
+static inline void dwc2_phy_update(dwc2_regs_t* dwc2, uint8_t hs_phy_type) {
// used to set turnaround time for fullspeed, nothing to do in highspeed mode
- if ( hs_phy_type == HS_PHY_TYPE_NONE )
- {
+ if (hs_phy_type == HS_PHY_TYPE_NONE) {
// Turnaround timeout depends on the AHB clock dictated by STM32 Reference Manual
uint32_t turnaround;
- if ( SystemCoreClock >= 32000000u )
+ if (SystemCoreClock >= 32000000u) {
turnaround = 0x6u;
- else if ( SystemCoreClock >= 27500000u )
+ } else if (SystemCoreClock >= 27500000u) {
turnaround = 0x7u;
- else if ( SystemCoreClock >= 24000000u )
+ } else if (SystemCoreClock >= 24000000u) {
turnaround = 0x8u;
- else if ( SystemCoreClock >= 21800000u )
+ } else if (SystemCoreClock >= 21800000u) {
turnaround = 0x9u;
- else if ( SystemCoreClock >= 20000000u )
+ }
+ else if (SystemCoreClock >= 20000000u) {
turnaround = 0xAu;
- else if ( SystemCoreClock >= 18500000u )
+ }
+ else if (SystemCoreClock >= 18500000u) {
turnaround = 0xBu;
- else if ( SystemCoreClock >= 17200000u )
+ }
+ else if (SystemCoreClock >= 17200000u) {
turnaround = 0xCu;
- else if ( SystemCoreClock >= 16000000u )
+ }
+ else if (SystemCoreClock >= 16000000u) {
turnaround = 0xDu;
- else if ( SystemCoreClock >= 15000000u )
+ }
+ else if (SystemCoreClock >= 15000000u) {
turnaround = 0xEu;
- else
+ }
+ else {
turnaround = 0xFu;
+ }
dwc2->gusbcfg = (dwc2->gusbcfg & ~GUSBCFG_TRDT_Msk) | (turnaround << GUSBCFG_TRDT_Pos);
}
@@ -229,4 +258,4 @@ static inline void dwc2_phy_update(dwc2_regs_t * dwc2, uint8_t hs_phy_type)
}
#endif
-#endif /* _DWC2_STM32_H_ */
+#endif
diff --git a/src/portable/synopsys/dwc2/dwc2_type.h b/src/portable/synopsys/dwc2/dwc2_type.h
index 3fc979337..c15771237 100644
--- a/src/portable/synopsys/dwc2/dwc2_type.h
+++ b/src/portable/synopsys/dwc2/dwc2_type.h
@@ -32,7 +32,7 @@ typedef struct
uint32_t ep_fifo_size;
}dwc2_controller_t;
-/* DWC OTG HW Release versions */
+// DWC OTG HW Release versions
#define DWC2_CORE_REV_2_71a 0x4f54271a
#define DWC2_CORE_REV_2_72a 0x4f54272a
#define DWC2_CORE_REV_2_80a 0x4f54280a
@@ -43,12 +43,13 @@ typedef struct
#define DWC2_CORE_REV_3_00a 0x4f54300a
#define DWC2_CORE_REV_3_10a 0x4f54310a
#define DWC2_CORE_REV_4_00a 0x4f54400a
+#define DWC2_CORE_REV_4_11a 0x4f54411a
#define DWC2_CORE_REV_4_20a 0x4f54420a
#define DWC2_FS_IOT_REV_1_00a 0x5531100a
#define DWC2_HS_IOT_REV_1_00a 0x5532100a
#define DWC2_CORE_REV_MASK 0x0000ffff
-/* DWC OTG HW Core ID */
+// DWC OTG HW Core ID
#define DWC2_OTG_ID 0x4f540000
#define DWC2_FS_IOT_ID 0x55310000
#define DWC2_HS_IOT_ID 0x55320000
@@ -57,13 +58,13 @@ typedef struct
// HS PHY
typedef struct
{
- volatile uint32_t HS_PHYC_PLL; // This register is used to control the PLL of the HS PHY. 000h */
- volatile uint32_t Reserved04; // Reserved 004h */
- volatile uint32_t Reserved08; // Reserved 008h */
- volatile uint32_t HS_PHYC_TUNE; // This register is used to control the tuning interface of the High Speed PHY. 00Ch */
- volatile uint32_t Reserved10; // Reserved 010h */
- volatile uint32_t Reserved14; // Reserved 014h */
- volatile uint32_t HS_PHYC_LDO; // This register is used to control the regulator (LDO). 018h */
+ volatile uint32_t HS_PHYC_PLL; // 000h This register is used to control the PLL of the HS PHY.
+ volatile uint32_t Reserved04; // 004h Reserved
+ volatile uint32_t Reserved08; // 008h Reserved
+ volatile uint32_t HS_PHYC_TUNE; // 00Ch This register is used to control the tuning interface of the High Speed PHY.
+ volatile uint32_t Reserved10; // 010h Reserved
+ volatile uint32_t Reserved14; // 014h Reserved
+ volatile uint32_t HS_PHYC_LDO; // 018h This register is used to control the regulator (LDO).
} HS_PHYC_GlobalTypeDef;
#endif
@@ -298,103 +299,103 @@ TU_VERIFY_STATIC(offsetof(dwc2_regs_t, fifo ) == 0x1000, "incorrect size");
/******************** Bit definition for GOTGCTL register ********************/
#define GOTGCTL_SRQSCS_Pos (0U)
-#define GOTGCTL_SRQSCS_Msk (0x1UL << GOTGCTL_SRQSCS_Pos) // 0x00000001 */
-#define GOTGCTL_SRQSCS GOTGCTL_SRQSCS_Msk // Session request success */
+#define GOTGCTL_SRQSCS_Msk (0x1UL << GOTGCTL_SRQSCS_Pos) // 0x00000001
+#define GOTGCTL_SRQSCS GOTGCTL_SRQSCS_Msk // Session request success
#define GOTGCTL_SRQ_Pos (1U)
-#define GOTGCTL_SRQ_Msk (0x1UL << GOTGCTL_SRQ_Pos) // 0x00000002 */
-#define GOTGCTL_SRQ GOTGCTL_SRQ_Msk // Session request */
+#define GOTGCTL_SRQ_Msk (0x1UL << GOTGCTL_SRQ_Pos) // 0x00000002
+#define GOTGCTL_SRQ GOTGCTL_SRQ_Msk // Session request
#define GOTGCTL_VBVALOEN_Pos (2U)
-#define GOTGCTL_VBVALOEN_Msk (0x1UL << GOTGCTL_VBVALOEN_Pos) // 0x00000004 */
-#define GOTGCTL_VBVALOEN GOTGCTL_VBVALOEN_Msk // VBUS valid override enable */
+#define GOTGCTL_VBVALOEN_Msk (0x1UL << GOTGCTL_VBVALOEN_Pos) // 0x00000004
+#define GOTGCTL_VBVALOEN GOTGCTL_VBVALOEN_Msk // VBUS valid override enable
#define GOTGCTL_VBVALOVAL_Pos (3U)
-#define GOTGCTL_VBVALOVAL_Msk (0x1UL << GOTGCTL_VBVALOVAL_Pos) // 0x00000008 */
-#define GOTGCTL_VBVALOVAL GOTGCTL_VBVALOVAL_Msk // VBUS valid override value */
+#define GOTGCTL_VBVALOVAL_Msk (0x1UL << GOTGCTL_VBVALOVAL_Pos) // 0x00000008
+#define GOTGCTL_VBVALOVAL GOTGCTL_VBVALOVAL_Msk // VBUS valid override value
#define GOTGCTL_AVALOEN_Pos (4U)
-#define GOTGCTL_AVALOEN_Msk (0x1UL << GOTGCTL_AVALOEN_Pos) // 0x00000010 */
-#define GOTGCTL_AVALOEN GOTGCTL_AVALOEN_Msk // A-peripheral session valid override enable */
+#define GOTGCTL_AVALOEN_Msk (0x1UL << GOTGCTL_AVALOEN_Pos) // 0x00000010
+#define GOTGCTL_AVALOEN GOTGCTL_AVALOEN_Msk // A-peripheral session valid override enable
#define GOTGCTL_AVALOVAL_Pos (5U)
-#define GOTGCTL_AVALOVAL_Msk (0x1UL << GOTGCTL_AVALOVAL_Pos) // 0x00000020 */
-#define GOTGCTL_AVALOVAL GOTGCTL_AVALOVAL_Msk // A-peripheral session valid override value */
+#define GOTGCTL_AVALOVAL_Msk (0x1UL << GOTGCTL_AVALOVAL_Pos) // 0x00000020
+#define GOTGCTL_AVALOVAL GOTGCTL_AVALOVAL_Msk // A-peripheral session valid override value
#define GOTGCTL_BVALOEN_Pos (6U)
-#define GOTGCTL_BVALOEN_Msk (0x1UL << GOTGCTL_BVALOEN_Pos) // 0x00000040 */
-#define GOTGCTL_BVALOEN GOTGCTL_BVALOEN_Msk // B-peripheral session valid override enable */
+#define GOTGCTL_BVALOEN_Msk (0x1UL << GOTGCTL_BVALOEN_Pos) // 0x00000040
+#define GOTGCTL_BVALOEN GOTGCTL_BVALOEN_Msk // B-peripheral session valid override enable
#define GOTGCTL_BVALOVAL_Pos (7U)
-#define GOTGCTL_BVALOVAL_Msk (0x1UL << GOTGCTL_BVALOVAL_Pos) // 0x00000080 */
-#define GOTGCTL_BVALOVAL GOTGCTL_BVALOVAL_Msk // B-peripheral session valid override value */
+#define GOTGCTL_BVALOVAL_Msk (0x1UL << GOTGCTL_BVALOVAL_Pos) // 0x00000080
+#define GOTGCTL_BVALOVAL GOTGCTL_BVALOVAL_Msk // B-peripheral session valid override value
#define GOTGCTL_HNGSCS_Pos (8U)
-#define GOTGCTL_HNGSCS_Msk (0x1UL << GOTGCTL_HNGSCS_Pos) // 0x00000100 */
-#define GOTGCTL_HNGSCS GOTGCTL_HNGSCS_Msk // Host set HNP enable */
+#define GOTGCTL_HNGSCS_Msk (0x1UL << GOTGCTL_HNGSCS_Pos) // 0x00000100
+#define GOTGCTL_HNGSCS GOTGCTL_HNGSCS_Msk // Host set HNP enable
#define GOTGCTL_HNPRQ_Pos (9U)
-#define GOTGCTL_HNPRQ_Msk (0x1UL << GOTGCTL_HNPRQ_Pos) // 0x00000200 */
-#define GOTGCTL_HNPRQ GOTGCTL_HNPRQ_Msk // HNP request */
+#define GOTGCTL_HNPRQ_Msk (0x1UL << GOTGCTL_HNPRQ_Pos) // 0x00000200
+#define GOTGCTL_HNPRQ GOTGCTL_HNPRQ_Msk // HNP request
#define GOTGCTL_HSHNPEN_Pos (10U)
-#define GOTGCTL_HSHNPEN_Msk (0x1UL << GOTGCTL_HSHNPEN_Pos) // 0x00000400 */
-#define GOTGCTL_HSHNPEN GOTGCTL_HSHNPEN_Msk // Host set HNP enable */
+#define GOTGCTL_HSHNPEN_Msk (0x1UL << GOTGCTL_HSHNPEN_Pos) // 0x00000400
+#define GOTGCTL_HSHNPEN GOTGCTL_HSHNPEN_Msk // Host set HNP enable
#define GOTGCTL_DHNPEN_Pos (11U)
-#define GOTGCTL_DHNPEN_Msk (0x1UL << GOTGCTL_DHNPEN_Pos) // 0x00000800 */
-#define GOTGCTL_DHNPEN GOTGCTL_DHNPEN_Msk // Device HNP enabled */
+#define GOTGCTL_DHNPEN_Msk (0x1UL << GOTGCTL_DHNPEN_Pos) // 0x00000800
+#define GOTGCTL_DHNPEN GOTGCTL_DHNPEN_Msk // Device HNP enabled
#define GOTGCTL_EHEN_Pos (12U)
-#define GOTGCTL_EHEN_Msk (0x1UL << GOTGCTL_EHEN_Pos) // 0x00001000 */
-#define GOTGCTL_EHEN GOTGCTL_EHEN_Msk // Embedded host enable */
+#define GOTGCTL_EHEN_Msk (0x1UL << GOTGCTL_EHEN_Pos) // 0x00001000
+#define GOTGCTL_EHEN GOTGCTL_EHEN_Msk // Embedded host enable
#define GOTGCTL_CIDSTS_Pos (16U)
-#define GOTGCTL_CIDSTS_Msk (0x1UL << GOTGCTL_CIDSTS_Pos) // 0x00010000 */
-#define GOTGCTL_CIDSTS GOTGCTL_CIDSTS_Msk // Connector ID status */
+#define GOTGCTL_CIDSTS_Msk (0x1UL << GOTGCTL_CIDSTS_Pos) // 0x00010000
+#define GOTGCTL_CIDSTS GOTGCTL_CIDSTS_Msk // Connector ID status
#define GOTGCTL_DBCT_Pos (17U)
-#define GOTGCTL_DBCT_Msk (0x1UL << GOTGCTL_DBCT_Pos) // 0x00020000 */
-#define GOTGCTL_DBCT GOTGCTL_DBCT_Msk // Long/short debounce time */
+#define GOTGCTL_DBCT_Msk (0x1UL << GOTGCTL_DBCT_Pos) // 0x00020000
+#define GOTGCTL_DBCT GOTGCTL_DBCT_Msk // Long/short debounce time
#define GOTGCTL_ASVLD_Pos (18U)
-#define GOTGCTL_ASVLD_Msk (0x1UL << GOTGCTL_ASVLD_Pos) // 0x00040000 */
-#define GOTGCTL_ASVLD GOTGCTL_ASVLD_Msk // A-session valid */
+#define GOTGCTL_ASVLD_Msk (0x1UL << GOTGCTL_ASVLD_Pos) // 0x00040000
+#define GOTGCTL_ASVLD GOTGCTL_ASVLD_Msk // A-session valid
#define GOTGCTL_BSESVLD_Pos (19U)
-#define GOTGCTL_BSESVLD_Msk (0x1UL << GOTGCTL_BSESVLD_Pos) // 0x00080000 */
-#define GOTGCTL_BSESVLD GOTGCTL_BSESVLD_Msk // B-session valid */
+#define GOTGCTL_BSESVLD_Msk (0x1UL << GOTGCTL_BSESVLD_Pos) // 0x00080000
+#define GOTGCTL_BSESVLD GOTGCTL_BSESVLD_Msk // B-session valid
#define GOTGCTL_OTGVER_Pos (20U)
-#define GOTGCTL_OTGVER_Msk (0x1UL << GOTGCTL_OTGVER_Pos) // 0x00100000 */
-#define GOTGCTL_OTGVER GOTGCTL_OTGVER_Msk // OTG version */
+#define GOTGCTL_OTGVER_Msk (0x1UL << GOTGCTL_OTGVER_Pos) // 0x00100000
+#define GOTGCTL_OTGVER GOTGCTL_OTGVER_Msk // OTG version
/******************** Bit definition for HCFG register ********************/
#define HCFG_FSLSPCS_Pos (0U)
-#define HCFG_FSLSPCS_Msk (0x3UL << HCFG_FSLSPCS_Pos) // 0x00000003 */
-#define HCFG_FSLSPCS HCFG_FSLSPCS_Msk // FS/LS PHY clock select */
-#define HCFG_FSLSPCS_0 (0x1UL << HCFG_FSLSPCS_Pos) // 0x00000001 */
-#define HCFG_FSLSPCS_1 (0x2UL << HCFG_FSLSPCS_Pos) // 0x00000002 */
+#define HCFG_FSLSPCS_Msk (0x3UL << HCFG_FSLSPCS_Pos) // 0x00000003
+#define HCFG_FSLSPCS HCFG_FSLSPCS_Msk // FS/LS PHY clock select
+#define HCFG_FSLSPCS_0 (0x1UL << HCFG_FSLSPCS_Pos) // 0x00000001
+#define HCFG_FSLSPCS_1 (0x2UL << HCFG_FSLSPCS_Pos) // 0x00000002
#define HCFG_FSLSS_Pos (2U)
-#define HCFG_FSLSS_Msk (0x1UL << HCFG_FSLSS_Pos) // 0x00000004 */
-#define HCFG_FSLSS HCFG_FSLSS_Msk // FS- and LS-only support */
+#define HCFG_FSLSS_Msk (0x1UL << HCFG_FSLSS_Pos) // 0x00000004
+#define HCFG_FSLSS HCFG_FSLSS_Msk // FS- and LS-only support
/******************** Bit definition for PCGCR register ********************/
#define PCGCR_STPPCLK_Pos (0U)
-#define PCGCR_STPPCLK_Msk (0x1UL << PCGCR_STPPCLK_Pos) // 0x00000001 */
-#define PCGCR_STPPCLK PCGCR_STPPCLK_Msk // Stop PHY clock */
+#define PCGCR_STPPCLK_Msk (0x1UL << PCGCR_STPPCLK_Pos) // 0x00000001
+#define PCGCR_STPPCLK PCGCR_STPPCLK_Msk // Stop PHY clock
#define PCGCR_GATEHCLK_Pos (1U)
-#define PCGCR_GATEHCLK_Msk (0x1UL << PCGCR_GATEHCLK_Pos) // 0x00000002 */
-#define PCGCR_GATEHCLK PCGCR_GATEHCLK_Msk // Gate HCLK */
+#define PCGCR_GATEHCLK_Msk (0x1UL << PCGCR_GATEHCLK_Pos) // 0x00000002
+#define PCGCR_GATEHCLK PCGCR_GATEHCLK_Msk // Gate HCLK
#define PCGCR_PHYSUSP_Pos (4U)
-#define PCGCR_PHYSUSP_Msk (0x1UL << PCGCR_PHYSUSP_Pos) // 0x00000010 */
-#define PCGCR_PHYSUSP PCGCR_PHYSUSP_Msk // PHY suspended */
+#define PCGCR_PHYSUSP_Msk (0x1UL << PCGCR_PHYSUSP_Pos) // 0x00000010
+#define PCGCR_PHYSUSP PCGCR_PHYSUSP_Msk // PHY suspended
/******************** Bit definition for GOTGINT register ********************/
#define GOTGINT_SEDET_Pos (2U)
-#define GOTGINT_SEDET_Msk (0x1UL << GOTGINT_SEDET_Pos) // 0x00000004 */
-#define GOTGINT_SEDET GOTGINT_SEDET_Msk // Session end detected */
+#define GOTGINT_SEDET_Msk (0x1UL << GOTGINT_SEDET_Pos) // 0x00000004
+#define GOTGINT_SEDET GOTGINT_SEDET_Msk // Session end detected
#define GOTGINT_SRSSCHG_Pos (8U)
-#define GOTGINT_SRSSCHG_Msk (0x1UL << GOTGINT_SRSSCHG_Pos) // 0x00000100 */
-#define GOTGINT_SRSSCHG GOTGINT_SRSSCHG_Msk // Session request success status change */
+#define GOTGINT_SRSSCHG_Msk (0x1UL << GOTGINT_SRSSCHG_Pos) // 0x00000100
+#define GOTGINT_SRSSCHG GOTGINT_SRSSCHG_Msk // Session request success status change
#define GOTGINT_HNSSCHG_Pos (9U)
-#define GOTGINT_HNSSCHG_Msk (0x1UL << GOTGINT_HNSSCHG_Pos) // 0x00000200 */
-#define GOTGINT_HNSSCHG GOTGINT_HNSSCHG_Msk // Host negotiation success status change */
+#define GOTGINT_HNSSCHG_Msk (0x1UL << GOTGINT_HNSSCHG_Pos) // 0x00000200
+#define GOTGINT_HNSSCHG GOTGINT_HNSSCHG_Msk // Host negotiation success status change
#define GOTGINT_HNGDET_Pos (17U)
-#define GOTGINT_HNGDET_Msk (0x1UL << GOTGINT_HNGDET_Pos) // 0x00020000 */
-#define GOTGINT_HNGDET GOTGINT_HNGDET_Msk // Host negotiation detected */
+#define GOTGINT_HNGDET_Msk (0x1UL << GOTGINT_HNGDET_Pos) // 0x00020000
+#define GOTGINT_HNGDET GOTGINT_HNGDET_Msk // Host negotiation detected
#define GOTGINT_ADTOCHG_Pos (18U)
-#define GOTGINT_ADTOCHG_Msk (0x1UL << GOTGINT_ADTOCHG_Pos) // 0x00040000 */
-#define GOTGINT_ADTOCHG GOTGINT_ADTOCHG_Msk // A-device timeout change */
+#define GOTGINT_ADTOCHG_Msk (0x1UL << GOTGINT_ADTOCHG_Pos) // 0x00040000
+#define GOTGINT_ADTOCHG GOTGINT_ADTOCHG_Msk // A-device timeout change
#define GOTGINT_DBCDNE_Pos (19U)
-#define GOTGINT_DBCDNE_Msk (0x1UL << GOTGINT_DBCDNE_Pos) // 0x00080000 */
-#define GOTGINT_DBCDNE GOTGINT_DBCDNE_Msk // Debounce done */
+#define GOTGINT_DBCDNE_Msk (0x1UL << GOTGINT_DBCDNE_Pos) // 0x00080000
+#define GOTGINT_DBCDNE GOTGINT_DBCDNE_Msk // Debounce done
#define GOTGINT_IDCHNG_Pos (20U)
-#define GOTGINT_IDCHNG_Msk (0x1UL << GOTGINT_IDCHNG_Pos) // 0x00100000 */
-#define GOTGINT_IDCHNG GOTGINT_IDCHNG_Msk // Change in ID pin input value */
+#define GOTGINT_IDCHNG_Msk (0x1UL << GOTGINT_IDCHNG_Pos) // 0x00100000
+#define GOTGINT_IDCHNG GOTGINT_IDCHNG_Msk // Change in ID pin input value
/******************** Bit definition for DCFG register ********************/
#define DCFG_DSPD_Pos (0U)
@@ -405,92 +406,92 @@ TU_VERIFY_STATIC(offsetof(dwc2_regs_t, fifo ) == 0x1000, "incorrect size");
#define DCFG_DSPD_FS 3 // Fullspeed on FS PHY
#define DCFG_NZLSOHSK_Pos (2U)
-#define DCFG_NZLSOHSK_Msk (0x1UL << DCFG_NZLSOHSK_Pos) // 0x00000004 */
-#define DCFG_NZLSOHSK DCFG_NZLSOHSK_Msk // Nonzero-length status OUT handshake */
+#define DCFG_NZLSOHSK_Msk (0x1UL << DCFG_NZLSOHSK_Pos) // 0x00000004
+#define DCFG_NZLSOHSK DCFG_NZLSOHSK_Msk // Nonzero-length status OUT handshake
#define DCFG_DAD_Pos (4U)
-#define DCFG_DAD_Msk (0x7FUL << DCFG_DAD_Pos) // 0x000007F0 */
-#define DCFG_DAD DCFG_DAD_Msk // Device address */
-#define DCFG_DAD_0 (0x01UL << DCFG_DAD_Pos) // 0x00000010 */
-#define DCFG_DAD_1 (0x02UL << DCFG_DAD_Pos) // 0x00000020 */
-#define DCFG_DAD_2 (0x04UL << DCFG_DAD_Pos) // 0x00000040 */
-#define DCFG_DAD_3 (0x08UL << DCFG_DAD_Pos) // 0x00000080 */
-#define DCFG_DAD_4 (0x10UL << DCFG_DAD_Pos) // 0x00000100 */
-#define DCFG_DAD_5 (0x20UL << DCFG_DAD_Pos) // 0x00000200 */
-#define DCFG_DAD_6 (0x40UL << DCFG_DAD_Pos) // 0x00000400 */
+#define DCFG_DAD_Msk (0x7FUL << DCFG_DAD_Pos) // 0x000007F0
+#define DCFG_DAD DCFG_DAD_Msk // Device address
+#define DCFG_DAD_0 (0x01UL << DCFG_DAD_Pos) // 0x00000010
+#define DCFG_DAD_1 (0x02UL << DCFG_DAD_Pos) // 0x00000020
+#define DCFG_DAD_2 (0x04UL << DCFG_DAD_Pos) // 0x00000040
+#define DCFG_DAD_3 (0x08UL << DCFG_DAD_Pos) // 0x00000080
+#define DCFG_DAD_4 (0x10UL << DCFG_DAD_Pos) // 0x00000100
+#define DCFG_DAD_5 (0x20UL << DCFG_DAD_Pos) // 0x00000200
+#define DCFG_DAD_6 (0x40UL << DCFG_DAD_Pos) // 0x00000400
#define DCFG_PFIVL_Pos (11U)
-#define DCFG_PFIVL_Msk (0x3UL << DCFG_PFIVL_Pos) // 0x00001800 */
-#define DCFG_PFIVL DCFG_PFIVL_Msk // Periodic (micro)frame interval */
-#define DCFG_PFIVL_0 (0x1UL << DCFG_PFIVL_Pos) // 0x00000800 */
-#define DCFG_PFIVL_1 (0x2UL << DCFG_PFIVL_Pos) // 0x00001000 */
+#define DCFG_PFIVL_Msk (0x3UL << DCFG_PFIVL_Pos) // 0x00001800
+#define DCFG_PFIVL DCFG_PFIVL_Msk // Periodic (micro)frame interval
+#define DCFG_PFIVL_0 (0x1UL << DCFG_PFIVL_Pos) // 0x00000800
+#define DCFG_PFIVL_1 (0x2UL << DCFG_PFIVL_Pos) // 0x00001000
#define DCFG_XCVRDLY_Pos (14U)
-#define DCFG_XCVRDLY_Msk (0x1UL << DCFG_XCVRDLY_Pos) /*!< 0x00004000 */
+#define DCFG_XCVRDLY_Msk (0x1UL << DCFG_XCVRDLY_Pos) // 0x00004000
#define DCFG_XCVRDLY DCFG_XCVRDLY_Msk // Enables delay between xcvr_sel and txvalid during device chirp
#define DCFG_PERSCHIVL_Pos (24U)
-#define DCFG_PERSCHIVL_Msk (0x3UL << DCFG_PERSCHIVL_Pos) // 0x03000000 */
-#define DCFG_PERSCHIVL DCFG_PERSCHIVL_Msk // Periodic scheduling interval */
-#define DCFG_PERSCHIVL_0 (0x1UL << DCFG_PERSCHIVL_Pos) // 0x01000000 */
-#define DCFG_PERSCHIVL_1 (0x2UL << DCFG_PERSCHIVL_Pos) // 0x02000000 */
+#define DCFG_PERSCHIVL_Msk (0x3UL << DCFG_PERSCHIVL_Pos) // 0x03000000
+#define DCFG_PERSCHIVL DCFG_PERSCHIVL_Msk // Periodic scheduling interval
+#define DCFG_PERSCHIVL_0 (0x1UL << DCFG_PERSCHIVL_Pos) // 0x01000000
+#define DCFG_PERSCHIVL_1 (0x2UL << DCFG_PERSCHIVL_Pos) // 0x02000000
/******************** Bit definition for DCTL register ********************/
#define DCTL_RWUSIG_Pos (0U)
-#define DCTL_RWUSIG_Msk (0x1UL << DCTL_RWUSIG_Pos) // 0x00000001 */
-#define DCTL_RWUSIG DCTL_RWUSIG_Msk // Remote wakeup signaling */
+#define DCTL_RWUSIG_Msk (0x1UL << DCTL_RWUSIG_Pos) // 0x00000001
+#define DCTL_RWUSIG DCTL_RWUSIG_Msk // Remote wakeup signaling
#define DCTL_SDIS_Pos (1U)
-#define DCTL_SDIS_Msk (0x1UL << DCTL_SDIS_Pos) // 0x00000002 */
-#define DCTL_SDIS DCTL_SDIS_Msk // Soft disconnect */
+#define DCTL_SDIS_Msk (0x1UL << DCTL_SDIS_Pos) // 0x00000002
+#define DCTL_SDIS DCTL_SDIS_Msk // Soft disconnect
#define DCTL_GINSTS_Pos (2U)
-#define DCTL_GINSTS_Msk (0x1UL << DCTL_GINSTS_Pos) // 0x00000004 */
-#define DCTL_GINSTS DCTL_GINSTS_Msk // Global IN NAK status */
+#define DCTL_GINSTS_Msk (0x1UL << DCTL_GINSTS_Pos) // 0x00000004
+#define DCTL_GINSTS DCTL_GINSTS_Msk // Global IN NAK status
#define DCTL_GONSTS_Pos (3U)
-#define DCTL_GONSTS_Msk (0x1UL << DCTL_GONSTS_Pos) // 0x00000008 */
-#define DCTL_GONSTS DCTL_GONSTS_Msk // Global OUT NAK status */
+#define DCTL_GONSTS_Msk (0x1UL << DCTL_GONSTS_Pos) // 0x00000008
+#define DCTL_GONSTS DCTL_GONSTS_Msk // Global OUT NAK status
#define DCTL_TCTL_Pos (4U)
-#define DCTL_TCTL_Msk (0x7UL << DCTL_TCTL_Pos) // 0x00000070 */
-#define DCTL_TCTL DCTL_TCTL_Msk // Test control */
-#define DCTL_TCTL_0 (0x1UL << DCTL_TCTL_Pos) // 0x00000010 */
-#define DCTL_TCTL_1 (0x2UL << DCTL_TCTL_Pos) // 0x00000020 */
-#define DCTL_TCTL_2 (0x4UL << DCTL_TCTL_Pos) // 0x00000040 */
+#define DCTL_TCTL_Msk (0x7UL << DCTL_TCTL_Pos) // 0x00000070
+#define DCTL_TCTL DCTL_TCTL_Msk // Test control
+#define DCTL_TCTL_0 (0x1UL << DCTL_TCTL_Pos) // 0x00000010
+#define DCTL_TCTL_1 (0x2UL << DCTL_TCTL_Pos) // 0x00000020
+#define DCTL_TCTL_2 (0x4UL << DCTL_TCTL_Pos) // 0x00000040
#define DCTL_SGINAK_Pos (7U)
-#define DCTL_SGINAK_Msk (0x1UL << DCTL_SGINAK_Pos) // 0x00000080 */
-#define DCTL_SGINAK DCTL_SGINAK_Msk // Set global IN NAK */
+#define DCTL_SGINAK_Msk (0x1UL << DCTL_SGINAK_Pos) // 0x00000080
+#define DCTL_SGINAK DCTL_SGINAK_Msk // Set global IN NAK
#define DCTL_CGINAK_Pos (8U)
-#define DCTL_CGINAK_Msk (0x1UL << DCTL_CGINAK_Pos) // 0x00000100 */
-#define DCTL_CGINAK DCTL_CGINAK_Msk // Clear global IN NAK */
+#define DCTL_CGINAK_Msk (0x1UL << DCTL_CGINAK_Pos) // 0x00000100
+#define DCTL_CGINAK DCTL_CGINAK_Msk // Clear global IN NAK
#define DCTL_SGONAK_Pos (9U)
-#define DCTL_SGONAK_Msk (0x1UL << DCTL_SGONAK_Pos) // 0x00000200 */
-#define DCTL_SGONAK DCTL_SGONAK_Msk // Set global OUT NAK */
+#define DCTL_SGONAK_Msk (0x1UL << DCTL_SGONAK_Pos) // 0x00000200
+#define DCTL_SGONAK DCTL_SGONAK_Msk // Set global OUT NAK
#define DCTL_CGONAK_Pos (10U)
-#define DCTL_CGONAK_Msk (0x1UL << DCTL_CGONAK_Pos) // 0x00000400 */
-#define DCTL_CGONAK DCTL_CGONAK_Msk // Clear global OUT NAK */
+#define DCTL_CGONAK_Msk (0x1UL << DCTL_CGONAK_Pos) // 0x00000400
+#define DCTL_CGONAK DCTL_CGONAK_Msk // Clear global OUT NAK
#define DCTL_POPRGDNE_Pos (11U)
-#define DCTL_POPRGDNE_Msk (0x1UL << DCTL_POPRGDNE_Pos) // 0x00000800 */
-#define DCTL_POPRGDNE DCTL_POPRGDNE_Msk // Power-on programming done */
+#define DCTL_POPRGDNE_Msk (0x1UL << DCTL_POPRGDNE_Pos) // 0x00000800
+#define DCTL_POPRGDNE DCTL_POPRGDNE_Msk // Power-on programming done
/******************** Bit definition for HFIR register ********************/
#define HFIR_FRIVL_Pos (0U)
-#define HFIR_FRIVL_Msk (0xFFFFUL << HFIR_FRIVL_Pos) // 0x0000FFFF */
-#define HFIR_FRIVL HFIR_FRIVL_Msk // Frame interval */
+#define HFIR_FRIVL_Msk (0xFFFFUL << HFIR_FRIVL_Pos) // 0x0000FFFF
+#define HFIR_FRIVL HFIR_FRIVL_Msk // Frame interval
/******************** Bit definition for HFNUM register ********************/
#define HFNUM_FRNUM_Pos (0U)
-#define HFNUM_FRNUM_Msk (0xFFFFUL << HFNUM_FRNUM_Pos) // 0x0000FFFF */
-#define HFNUM_FRNUM HFNUM_FRNUM_Msk // Frame number */
+#define HFNUM_FRNUM_Msk (0xFFFFUL << HFNUM_FRNUM_Pos) // 0x0000FFFF
+#define HFNUM_FRNUM HFNUM_FRNUM_Msk // Frame number
#define HFNUM_FTREM_Pos (16U)
-#define HFNUM_FTREM_Msk (0xFFFFUL << HFNUM_FTREM_Pos) // 0xFFFF0000 */
-#define HFNUM_FTREM HFNUM_FTREM_Msk // Frame time remaining */
+#define HFNUM_FTREM_Msk (0xFFFFUL << HFNUM_FTREM_Pos) // 0xFFFF0000
+#define HFNUM_FTREM HFNUM_FTREM_Msk // Frame time remaining
/******************** Bit definition for DSTS register ********************/
#define DSTS_SUSPSTS_Pos (0U)
-#define DSTS_SUSPSTS_Msk (0x1UL << DSTS_SUSPSTS_Pos) // 0x00000001 */
-#define DSTS_SUSPSTS DSTS_SUSPSTS_Msk // Suspend status */
+#define DSTS_SUSPSTS_Msk (0x1UL << DSTS_SUSPSTS_Pos) // 0x00000001
+#define DSTS_SUSPSTS DSTS_SUSPSTS_Msk // Suspend status
#define DSTS_ENUMSPD_Pos (1U)
-#define DSTS_ENUMSPD_Msk (0x3UL << DSTS_ENUMSPD_Pos) // 0x00000006 */
-#define DSTS_ENUMSPD DSTS_ENUMSPD_Msk // Enumerated speed */
+#define DSTS_ENUMSPD_Msk (0x3UL << DSTS_ENUMSPD_Pos) // 0x00000006
+#define DSTS_ENUMSPD DSTS_ENUMSPD_Msk // Enumerated speed
#define DSTS_ENUMSPD_HS 0 // Highspeed
#define DSTS_ENUMSPD_FS_HSPHY 1 // Fullspeed on HS PHY
#define DSTS_ENUMSPD_LS 2 // Lowspeed
@@ -498,427 +499,427 @@ TU_VERIFY_STATIC(offsetof(dwc2_regs_t, fifo ) == 0x1000, "incorrect size");
#define DSTS_EERR_Pos (3U)
-#define DSTS_EERR_Msk (0x1UL << DSTS_EERR_Pos) // 0x00000008 */
-#define DSTS_EERR DSTS_EERR_Msk // Erratic error */
+#define DSTS_EERR_Msk (0x1UL << DSTS_EERR_Pos) // 0x00000008
+#define DSTS_EERR DSTS_EERR_Msk // Erratic error
#define DSTS_FNSOF_Pos (8U)
-#define DSTS_FNSOF_Msk (0x3FFFUL << DSTS_FNSOF_Pos) // 0x003FFF00 */
-#define DSTS_FNSOF DSTS_FNSOF_Msk // Frame number of the received SOF */
+#define DSTS_FNSOF_Msk (0x3FFFUL << DSTS_FNSOF_Pos) // 0x003FFF00
+#define DSTS_FNSOF DSTS_FNSOF_Msk // Frame number of the received SOF
/******************** Bit definition for GAHBCFG register ********************/
#define GAHBCFG_GINT_Pos (0U)
-#define GAHBCFG_GINT_Msk (0x1UL << GAHBCFG_GINT_Pos) // 0x00000001 */
-#define GAHBCFG_GINT GAHBCFG_GINT_Msk // Global interrupt mask */
+#define GAHBCFG_GINT_Msk (0x1UL << GAHBCFG_GINT_Pos) // 0x00000001
+#define GAHBCFG_GINT GAHBCFG_GINT_Msk // Global interrupt mask
#define GAHBCFG_HBSTLEN_Pos (1U)
-#define GAHBCFG_HBSTLEN_Msk (0xFUL << GAHBCFG_HBSTLEN_Pos) // 0x0000001E */
-#define GAHBCFG_HBSTLEN GAHBCFG_HBSTLEN_Msk // Burst length/type */
-#define GAHBCFG_HBSTLEN_0 (0x0UL << GAHBCFG_HBSTLEN_Pos) // Single */
-#define GAHBCFG_HBSTLEN_1 (0x1UL << GAHBCFG_HBSTLEN_Pos) // INCR */
-#define GAHBCFG_HBSTLEN_2 (0x3UL << GAHBCFG_HBSTLEN_Pos) // INCR4 */
-#define GAHBCFG_HBSTLEN_3 (0x5UL << GAHBCFG_HBSTLEN_Pos) // INCR8 */
-#define GAHBCFG_HBSTLEN_4 (0x7UL << GAHBCFG_HBSTLEN_Pos) // INCR16 */
+#define GAHBCFG_HBSTLEN_Msk (0xFUL << GAHBCFG_HBSTLEN_Pos) // 0x0000001E
+#define GAHBCFG_HBSTLEN GAHBCFG_HBSTLEN_Msk // Burst length/type
+#define GAHBCFG_HBSTLEN_0 (0x0UL << GAHBCFG_HBSTLEN_Pos) // Single
+#define GAHBCFG_HBSTLEN_1 (0x1UL << GAHBCFG_HBSTLEN_Pos) // INCR
+#define GAHBCFG_HBSTLEN_2 (0x3UL << GAHBCFG_HBSTLEN_Pos) // INCR4
+#define GAHBCFG_HBSTLEN_3 (0x5UL << GAHBCFG_HBSTLEN_Pos) // INCR8
+#define GAHBCFG_HBSTLEN_4 (0x7UL << GAHBCFG_HBSTLEN_Pos) // INCR16
#define GAHBCFG_DMAEN_Pos (5U)
-#define GAHBCFG_DMAEN_Msk (0x1UL << GAHBCFG_DMAEN_Pos) // 0x00000020 */
-#define GAHBCFG_DMAEN GAHBCFG_DMAEN_Msk // DMA enable */
+#define GAHBCFG_DMAEN_Msk (0x1UL << GAHBCFG_DMAEN_Pos) // 0x00000020
+#define GAHBCFG_DMAEN GAHBCFG_DMAEN_Msk // DMA enable
#define GAHBCFG_TXFELVL_Pos (7U)
-#define GAHBCFG_TXFELVL_Msk (0x1UL << GAHBCFG_TXFELVL_Pos) // 0x00000080 */
-#define GAHBCFG_TXFELVL GAHBCFG_TXFELVL_Msk // TxFIFO empty level */
+#define GAHBCFG_TXFELVL_Msk (0x1UL << GAHBCFG_TXFELVL_Pos) // 0x00000080
+#define GAHBCFG_TXFELVL GAHBCFG_TXFELVL_Msk // TxFIFO empty level
#define GAHBCFG_PTXFELVL_Pos (8U)
-#define GAHBCFG_PTXFELVL_Msk (0x1UL << GAHBCFG_PTXFELVL_Pos) // 0x00000100 */
-#define GAHBCFG_PTXFELVL GAHBCFG_PTXFELVL_Msk // Periodic TxFIFO empty level */
+#define GAHBCFG_PTXFELVL_Msk (0x1UL << GAHBCFG_PTXFELVL_Pos) // 0x00000100
+#define GAHBCFG_PTXFELVL GAHBCFG_PTXFELVL_Msk // Periodic TxFIFO empty level
#define GSNPSID_ID_MASK TU_GENMASK(31, 16)
/******************** Bit definition for GUSBCFG register ********************/
#define GUSBCFG_TOCAL_Pos (0U)
-#define GUSBCFG_TOCAL_Msk (0x7UL << GUSBCFG_TOCAL_Pos) // 0x00000007 */
-#define GUSBCFG_TOCAL GUSBCFG_TOCAL_Msk // FS timeout calibration */
+#define GUSBCFG_TOCAL_Msk (0x7UL << GUSBCFG_TOCAL_Pos) // 0x00000007
+#define GUSBCFG_TOCAL GUSBCFG_TOCAL_Msk // FS timeout calibration
#define GUSBCFG_PHYIF16_Pos (3U)
-#define GUSBCFG_PHYIF16_Msk (0x1UL << GUSBCFG_PHYIF16_Pos) // 0x00000008 */
-#define GUSBCFG_PHYIF16 GUSBCFG_PHYIF16_Msk // PHY Interface (PHYIf) */
+#define GUSBCFG_PHYIF16_Msk (0x1UL << GUSBCFG_PHYIF16_Pos) // 0x00000008
+#define GUSBCFG_PHYIF16 GUSBCFG_PHYIF16_Msk // PHY Interface (PHYIf)
#define GUSBCFG_ULPI_UTMI_SEL_Pos (4U)
-#define GUSBCFG_ULPI_UTMI_SEL_Msk (0x1UL << GUSBCFG_ULPI_UTMI_SEL_Pos) // 0x00000010 */
-#define GUSBCFG_ULPI_UTMI_SEL GUSBCFG_ULPI_UTMI_SEL_Msk // ULPI or UTMI+ Select (ULPI_UTMI_Sel) */
+#define GUSBCFG_ULPI_UTMI_SEL_Msk (0x1UL << GUSBCFG_ULPI_UTMI_SEL_Pos) // 0x00000010
+#define GUSBCFG_ULPI_UTMI_SEL GUSBCFG_ULPI_UTMI_SEL_Msk // ULPI or UTMI+ Select (ULPI_UTMI_Sel)
#define GUSBCFG_PHYSEL_Pos (6U)
-#define GUSBCFG_PHYSEL_Msk (0x1UL << GUSBCFG_PHYSEL_Pos) // 0x00000040 */
-#define GUSBCFG_PHYSEL GUSBCFG_PHYSEL_Msk // USB 2.0 high-speed ULPI PHY or USB 1.1 full-speed serial transceiver select */
+#define GUSBCFG_PHYSEL_Msk (0x1UL << GUSBCFG_PHYSEL_Pos) // 0x00000040
+#define GUSBCFG_PHYSEL GUSBCFG_PHYSEL_Msk // USB 2.0 high-speed ULPI PHY or USB 1.1 full-speed serial transceiver select
#define GUSBCFG_DDRSEL TU_BIT(7) // Single Data Rate (SDR) or Double Data Rate (DDR) or ULPI interface.
#define GUSBCFG_SRPCAP_Pos (8U)
-#define GUSBCFG_SRPCAP_Msk (0x1UL << GUSBCFG_SRPCAP_Pos) // 0x00000100 */
-#define GUSBCFG_SRPCAP GUSBCFG_SRPCAP_Msk // SRP-capable */
+#define GUSBCFG_SRPCAP_Msk (0x1UL << GUSBCFG_SRPCAP_Pos) // 0x00000100
+#define GUSBCFG_SRPCAP GUSBCFG_SRPCAP_Msk // SRP-capable
#define GUSBCFG_HNPCAP_Pos (9U)
-#define GUSBCFG_HNPCAP_Msk (0x1UL << GUSBCFG_HNPCAP_Pos) // 0x00000200 */
-#define GUSBCFG_HNPCAP GUSBCFG_HNPCAP_Msk // HNP-capable */
+#define GUSBCFG_HNPCAP_Msk (0x1UL << GUSBCFG_HNPCAP_Pos) // 0x00000200
+#define GUSBCFG_HNPCAP GUSBCFG_HNPCAP_Msk // HNP-capable
#define GUSBCFG_TRDT_Pos (10U)
-#define GUSBCFG_TRDT_Msk (0xFUL << GUSBCFG_TRDT_Pos) // 0x00003C00 */
-#define GUSBCFG_TRDT GUSBCFG_TRDT_Msk // USB turnaround time */
+#define GUSBCFG_TRDT_Msk (0xFUL << GUSBCFG_TRDT_Pos) // 0x00003C00
+#define GUSBCFG_TRDT GUSBCFG_TRDT_Msk // USB turnaround time
#define GUSBCFG_PHYLPCS_Pos (15U)
-#define GUSBCFG_PHYLPCS_Msk (0x1UL << GUSBCFG_PHYLPCS_Pos) // 0x00008000 */
-#define GUSBCFG_PHYLPCS GUSBCFG_PHYLPCS_Msk // PHY Low-power clock select */
+#define GUSBCFG_PHYLPCS_Msk (0x1UL << GUSBCFG_PHYLPCS_Pos) // 0x00008000
+#define GUSBCFG_PHYLPCS GUSBCFG_PHYLPCS_Msk // PHY Low-power clock select
#define GUSBCFG_ULPIFSLS_Pos (17U)
-#define GUSBCFG_ULPIFSLS_Msk (0x1UL << GUSBCFG_ULPIFSLS_Pos) // 0x00020000 */
-#define GUSBCFG_ULPIFSLS GUSBCFG_ULPIFSLS_Msk // ULPI FS/LS select */
+#define GUSBCFG_ULPIFSLS_Msk (0x1UL << GUSBCFG_ULPIFSLS_Pos) // 0x00020000
+#define GUSBCFG_ULPIFSLS GUSBCFG_ULPIFSLS_Msk // ULPI FS/LS select
#define GUSBCFG_ULPIAR_Pos (18U)
-#define GUSBCFG_ULPIAR_Msk (0x1UL << GUSBCFG_ULPIAR_Pos) // 0x00040000 */
-#define GUSBCFG_ULPIAR GUSBCFG_ULPIAR_Msk // ULPI Auto-resume */
+#define GUSBCFG_ULPIAR_Msk (0x1UL << GUSBCFG_ULPIAR_Pos) // 0x00040000
+#define GUSBCFG_ULPIAR GUSBCFG_ULPIAR_Msk // ULPI Auto-resume
#define GUSBCFG_ULPICSM_Pos (19U)
-#define GUSBCFG_ULPICSM_Msk (0x1UL << GUSBCFG_ULPICSM_Pos) // 0x00080000 */
-#define GUSBCFG_ULPICSM GUSBCFG_ULPICSM_Msk // ULPI Clock SuspendM */
+#define GUSBCFG_ULPICSM_Msk (0x1UL << GUSBCFG_ULPICSM_Pos) // 0x00080000
+#define GUSBCFG_ULPICSM GUSBCFG_ULPICSM_Msk // ULPI Clock SuspendM
#define GUSBCFG_ULPIEVBUSD_Pos (20U)
-#define GUSBCFG_ULPIEVBUSD_Msk (0x1UL << GUSBCFG_ULPIEVBUSD_Pos) // 0x00100000 */
-#define GUSBCFG_ULPIEVBUSD GUSBCFG_ULPIEVBUSD_Msk // ULPI External VBUS Drive */
+#define GUSBCFG_ULPIEVBUSD_Msk (0x1UL << GUSBCFG_ULPIEVBUSD_Pos) // 0x00100000
+#define GUSBCFG_ULPIEVBUSD GUSBCFG_ULPIEVBUSD_Msk // ULPI External VBUS Drive
#define GUSBCFG_ULPIEVBUSI_Pos (21U)
-#define GUSBCFG_ULPIEVBUSI_Msk (0x1UL << GUSBCFG_ULPIEVBUSI_Pos) // 0x00200000 */
-#define GUSBCFG_ULPIEVBUSI GUSBCFG_ULPIEVBUSI_Msk // ULPI external VBUS indicator */
+#define GUSBCFG_ULPIEVBUSI_Msk (0x1UL << GUSBCFG_ULPIEVBUSI_Pos) // 0x00200000
+#define GUSBCFG_ULPIEVBUSI GUSBCFG_ULPIEVBUSI_Msk // ULPI external VBUS indicator
#define GUSBCFG_TSDPS_Pos (22U)
-#define GUSBCFG_TSDPS_Msk (0x1UL << GUSBCFG_TSDPS_Pos) // 0x00400000 */
-#define GUSBCFG_TSDPS GUSBCFG_TSDPS_Msk // TermSel DLine pulsing selection */
+#define GUSBCFG_TSDPS_Msk (0x1UL << GUSBCFG_TSDPS_Pos) // 0x00400000
+#define GUSBCFG_TSDPS GUSBCFG_TSDPS_Msk // TermSel DLine pulsing selection
#define GUSBCFG_PCCI_Pos (23U)
-#define GUSBCFG_PCCI_Msk (0x1UL << GUSBCFG_PCCI_Pos) // 0x00800000 */
-#define GUSBCFG_PCCI GUSBCFG_PCCI_Msk // Indicator complement */
+#define GUSBCFG_PCCI_Msk (0x1UL << GUSBCFG_PCCI_Pos) // 0x00800000
+#define GUSBCFG_PCCI GUSBCFG_PCCI_Msk // Indicator complement
#define GUSBCFG_PTCI_Pos (24U)
-#define GUSBCFG_PTCI_Msk (0x1UL << GUSBCFG_PTCI_Pos) // 0x01000000 */
-#define GUSBCFG_PTCI GUSBCFG_PTCI_Msk // Indicator pass through */
+#define GUSBCFG_PTCI_Msk (0x1UL << GUSBCFG_PTCI_Pos) // 0x01000000
+#define GUSBCFG_PTCI GUSBCFG_PTCI_Msk // Indicator pass through
#define GUSBCFG_ULPIIPD_Pos (25U)
-#define GUSBCFG_ULPIIPD_Msk (0x1UL << GUSBCFG_ULPIIPD_Pos) // 0x02000000 */
-#define GUSBCFG_ULPIIPD GUSBCFG_ULPIIPD_Msk // ULPI interface protect disable */
+#define GUSBCFG_ULPIIPD_Msk (0x1UL << GUSBCFG_ULPIIPD_Pos) // 0x02000000
+#define GUSBCFG_ULPIIPD GUSBCFG_ULPIIPD_Msk // ULPI interface protect disable
#define GUSBCFG_FHMOD_Pos (29U)
-#define GUSBCFG_FHMOD_Msk (0x1UL << GUSBCFG_FHMOD_Pos) // 0x20000000 */
-#define GUSBCFG_FHMOD GUSBCFG_FHMOD_Msk // Forced host mode */
+#define GUSBCFG_FHMOD_Msk (0x1UL << GUSBCFG_FHMOD_Pos) // 0x20000000
+#define GUSBCFG_FHMOD GUSBCFG_FHMOD_Msk // Forced host mode
#define GUSBCFG_FDMOD_Pos (30U)
-#define GUSBCFG_FDMOD_Msk (0x1UL << GUSBCFG_FDMOD_Pos) // 0x40000000 */
-#define GUSBCFG_FDMOD GUSBCFG_FDMOD_Msk // Forced peripheral mode */
+#define GUSBCFG_FDMOD_Msk (0x1UL << GUSBCFG_FDMOD_Pos) // 0x40000000
+#define GUSBCFG_FDMOD GUSBCFG_FDMOD_Msk // Forced peripheral mode
#define GUSBCFG_CTXPKT_Pos (31U)
-#define GUSBCFG_CTXPKT_Msk (0x1UL << GUSBCFG_CTXPKT_Pos) // 0x80000000 */
-#define GUSBCFG_CTXPKT GUSBCFG_CTXPKT_Msk // Corrupt Tx packet */
+#define GUSBCFG_CTXPKT_Msk (0x1UL << GUSBCFG_CTXPKT_Pos) // 0x80000000
+#define GUSBCFG_CTXPKT GUSBCFG_CTXPKT_Msk // Corrupt Tx packet
/******************** Bit definition for GRSTCTL register ********************/
#define GRSTCTL_CSRST_Pos (0U)
-#define GRSTCTL_CSRST_Msk (0x1UL << GRSTCTL_CSRST_Pos) // 0x00000001 */
-#define GRSTCTL_CSRST GRSTCTL_CSRST_Msk // Core soft reset */
+#define GRSTCTL_CSRST_Msk (0x1UL << GRSTCTL_CSRST_Pos) // 0x00000001
+#define GRSTCTL_CSRST GRSTCTL_CSRST_Msk // Core soft reset
#define GRSTCTL_HSRST_Pos (1U)
-#define GRSTCTL_HSRST_Msk (0x1UL << GRSTCTL_HSRST_Pos) // 0x00000002 */
-#define GRSTCTL_HSRST GRSTCTL_HSRST_Msk // HCLK soft reset */
+#define GRSTCTL_HSRST_Msk (0x1UL << GRSTCTL_HSRST_Pos) // 0x00000002
+#define GRSTCTL_HSRST GRSTCTL_HSRST_Msk // HCLK soft reset
#define GRSTCTL_FCRST_Pos (2U)
-#define GRSTCTL_FCRST_Msk (0x1UL << GRSTCTL_FCRST_Pos) // 0x00000004 */
-#define GRSTCTL_FCRST GRSTCTL_FCRST_Msk // Host frame counter reset */
+#define GRSTCTL_FCRST_Msk (0x1UL << GRSTCTL_FCRST_Pos) // 0x00000004
+#define GRSTCTL_FCRST GRSTCTL_FCRST_Msk // Host frame counter reset
#define GRSTCTL_RXFFLSH_Pos (4U)
-#define GRSTCTL_RXFFLSH_Msk (0x1UL << GRSTCTL_RXFFLSH_Pos) // 0x00000010 */
-#define GRSTCTL_RXFFLSH GRSTCTL_RXFFLSH_Msk // RxFIFO flush */
+#define GRSTCTL_RXFFLSH_Msk (0x1UL << GRSTCTL_RXFFLSH_Pos) // 0x00000010
+#define GRSTCTL_RXFFLSH GRSTCTL_RXFFLSH_Msk // RxFIFO flush
#define GRSTCTL_TXFFLSH_Pos (5U)
-#define GRSTCTL_TXFFLSH_Msk (0x1UL << GRSTCTL_TXFFLSH_Pos) // 0x00000020 */
-#define GRSTCTL_TXFFLSH GRSTCTL_TXFFLSH_Msk // TxFIFO flush */
+#define GRSTCTL_TXFFLSH_Msk (0x1UL << GRSTCTL_TXFFLSH_Pos) // 0x00000020
+#define GRSTCTL_TXFFLSH GRSTCTL_TXFFLSH_Msk // TxFIFO flush
#define GRSTCTL_TXFNUM_Pos (6U)
-#define GRSTCTL_TXFNUM_Msk (0x1FUL << GRSTCTL_TXFNUM_Pos) // 0x000007C0 */
-#define GRSTCTL_TXFNUM GRSTCTL_TXFNUM_Msk // TxFIFO number */
-#define GRSTCTL_TXFNUM_0 (0x01UL << GRSTCTL_TXFNUM_Pos) // 0x00000040 */
-#define GRSTCTL_TXFNUM_1 (0x02UL << GRSTCTL_TXFNUM_Pos) // 0x00000080 */
-#define GRSTCTL_TXFNUM_2 (0x04UL << GRSTCTL_TXFNUM_Pos) // 0x00000100 */
-#define GRSTCTL_TXFNUM_3 (0x08UL << GRSTCTL_TXFNUM_Pos) // 0x00000200 */
-#define GRSTCTL_TXFNUM_4 (0x10UL << GRSTCTL_TXFNUM_Pos) // 0x00000400 */
+#define GRSTCTL_TXFNUM_Msk (0x1FUL << GRSTCTL_TXFNUM_Pos) // 0x000007C0
+#define GRSTCTL_TXFNUM GRSTCTL_TXFNUM_Msk // TxFIFO number
+#define GRSTCTL_TXFNUM_0 (0x01UL << GRSTCTL_TXFNUM_Pos) // 0x00000040
+#define GRSTCTL_TXFNUM_1 (0x02UL << GRSTCTL_TXFNUM_Pos) // 0x00000080
+#define GRSTCTL_TXFNUM_2 (0x04UL << GRSTCTL_TXFNUM_Pos) // 0x00000100
+#define GRSTCTL_TXFNUM_3 (0x08UL << GRSTCTL_TXFNUM_Pos) // 0x00000200
+#define GRSTCTL_TXFNUM_4 (0x10UL << GRSTCTL_TXFNUM_Pos) // 0x00000400
#define GRSTCTL_CSFTRST_DONE_Pos (29)
#define GRSTCTL_CSFTRST_DONE (1u << GRSTCTL_CSFTRST_DONE_Pos) // Reset Done, only available from v4.20a
#define GRSTCTL_DMAREQ_Pos (30U)
-#define GRSTCTL_DMAREQ_Msk (0x1UL << GRSTCTL_DMAREQ_Pos) // 0x40000000 */
-#define GRSTCTL_DMAREQ GRSTCTL_DMAREQ_Msk // DMA request signal */
+#define GRSTCTL_DMAREQ_Msk (0x1UL << GRSTCTL_DMAREQ_Pos) // 0x40000000
+#define GRSTCTL_DMAREQ GRSTCTL_DMAREQ_Msk // DMA request signal
#define GRSTCTL_AHBIDL_Pos (31U)
-#define GRSTCTL_AHBIDL_Msk (0x1UL << GRSTCTL_AHBIDL_Pos) // 0x80000000 */
-#define GRSTCTL_AHBIDL GRSTCTL_AHBIDL_Msk // AHB master idle */
+#define GRSTCTL_AHBIDL_Msk (0x1UL << GRSTCTL_AHBIDL_Pos) // 0x80000000
+#define GRSTCTL_AHBIDL GRSTCTL_AHBIDL_Msk // AHB master idle
/******************** Bit definition for DIEPMSK register ********************/
#define DIEPMSK_XFRCM_Pos (0U)
-#define DIEPMSK_XFRCM_Msk (0x1UL << DIEPMSK_XFRCM_Pos) // 0x00000001 */
-#define DIEPMSK_XFRCM DIEPMSK_XFRCM_Msk // Transfer completed interrupt mask */
+#define DIEPMSK_XFRCM_Msk (0x1UL << DIEPMSK_XFRCM_Pos) // 0x00000001
+#define DIEPMSK_XFRCM DIEPMSK_XFRCM_Msk // Transfer completed interrupt mask
#define DIEPMSK_EPDM_Pos (1U)
-#define DIEPMSK_EPDM_Msk (0x1UL << DIEPMSK_EPDM_Pos) // 0x00000002 */
-#define DIEPMSK_EPDM DIEPMSK_EPDM_Msk // Endpoint disabled interrupt mask */
+#define DIEPMSK_EPDM_Msk (0x1UL << DIEPMSK_EPDM_Pos) // 0x00000002
+#define DIEPMSK_EPDM DIEPMSK_EPDM_Msk // Endpoint disabled interrupt mask
#define DIEPMSK_TOM_Pos (3U)
-#define DIEPMSK_TOM_Msk (0x1UL << DIEPMSK_TOM_Pos) // 0x00000008 */
-#define DIEPMSK_TOM DIEPMSK_TOM_Msk // Timeout condition mask (nonisochronous endpoints) */
+#define DIEPMSK_TOM_Msk (0x1UL << DIEPMSK_TOM_Pos) // 0x00000008
+#define DIEPMSK_TOM DIEPMSK_TOM_Msk // Timeout condition mask (nonisochronous endpoints)
#define DIEPMSK_ITTXFEMSK_Pos (4U)
-#define DIEPMSK_ITTXFEMSK_Msk (0x1UL << DIEPMSK_ITTXFEMSK_Pos) // 0x00000010 */
-#define DIEPMSK_ITTXFEMSK DIEPMSK_ITTXFEMSK_Msk // IN token received when TxFIFO empty mask */
+#define DIEPMSK_ITTXFEMSK_Msk (0x1UL << DIEPMSK_ITTXFEMSK_Pos) // 0x00000010
+#define DIEPMSK_ITTXFEMSK DIEPMSK_ITTXFEMSK_Msk // IN token received when TxFIFO empty mask
#define DIEPMSK_INEPNMM_Pos (5U)
-#define DIEPMSK_INEPNMM_Msk (0x1UL << DIEPMSK_INEPNMM_Pos) // 0x00000020 */
-#define DIEPMSK_INEPNMM DIEPMSK_INEPNMM_Msk // IN token received with EP mismatch mask */
+#define DIEPMSK_INEPNMM_Msk (0x1UL << DIEPMSK_INEPNMM_Pos) // 0x00000020
+#define DIEPMSK_INEPNMM DIEPMSK_INEPNMM_Msk // IN token received with EP mismatch mask
#define DIEPMSK_INEPNEM_Pos (6U)
-#define DIEPMSK_INEPNEM_Msk (0x1UL << DIEPMSK_INEPNEM_Pos) // 0x00000040 */
-#define DIEPMSK_INEPNEM DIEPMSK_INEPNEM_Msk // IN endpoint NAK effective mask */
+#define DIEPMSK_INEPNEM_Msk (0x1UL << DIEPMSK_INEPNEM_Pos) // 0x00000040
+#define DIEPMSK_INEPNEM DIEPMSK_INEPNEM_Msk // IN endpoint NAK effective mask
#define DIEPMSK_TXFURM_Pos (8U)
-#define DIEPMSK_TXFURM_Msk (0x1UL << DIEPMSK_TXFURM_Pos) // 0x00000100 */
-#define DIEPMSK_TXFURM DIEPMSK_TXFURM_Msk // FIFO underrun mask */
+#define DIEPMSK_TXFURM_Msk (0x1UL << DIEPMSK_TXFURM_Pos) // 0x00000100
+#define DIEPMSK_TXFURM DIEPMSK_TXFURM_Msk // FIFO underrun mask
#define DIEPMSK_BIM_Pos (9U)
-#define DIEPMSK_BIM_Msk (0x1UL << DIEPMSK_BIM_Pos) // 0x00000200 */
-#define DIEPMSK_BIM DIEPMSK_BIM_Msk // BNA interrupt mask */
+#define DIEPMSK_BIM_Msk (0x1UL << DIEPMSK_BIM_Pos) // 0x00000200
+#define DIEPMSK_BIM DIEPMSK_BIM_Msk // BNA interrupt mask
/******************** Bit definition for HPTXSTS register ********************/
#define HPTXSTS_PTXFSAVL_Pos (0U)
-#define HPTXSTS_PTXFSAVL_Msk (0xFFFFUL << HPTXSTS_PTXFSAVL_Pos) // 0x0000FFFF */
-#define HPTXSTS_PTXFSAVL HPTXSTS_PTXFSAVL_Msk // Periodic transmit data FIFO space available */
+#define HPTXSTS_PTXFSAVL_Msk (0xFFFFUL << HPTXSTS_PTXFSAVL_Pos) // 0x0000FFFF
+#define HPTXSTS_PTXFSAVL HPTXSTS_PTXFSAVL_Msk // Periodic transmit data FIFO space available
#define HPTXSTS_PTXQSAV_Pos (16U)
-#define HPTXSTS_PTXQSAV_Msk (0xFFUL << HPTXSTS_PTXQSAV_Pos) // 0x00FF0000 */
-#define HPTXSTS_PTXQSAV HPTXSTS_PTXQSAV_Msk // Periodic transmit request queue space available */
-#define HPTXSTS_PTXQSAV_0 (0x01UL << HPTXSTS_PTXQSAV_Pos) // 0x00010000 */
-#define HPTXSTS_PTXQSAV_1 (0x02UL << HPTXSTS_PTXQSAV_Pos) // 0x00020000 */
-#define HPTXSTS_PTXQSAV_2 (0x04UL << HPTXSTS_PTXQSAV_Pos) // 0x00040000 */
-#define HPTXSTS_PTXQSAV_3 (0x08UL << HPTXSTS_PTXQSAV_Pos) // 0x00080000 */
-#define HPTXSTS_PTXQSAV_4 (0x10UL << HPTXSTS_PTXQSAV_Pos) // 0x00100000 */
-#define HPTXSTS_PTXQSAV_5 (0x20UL << HPTXSTS_PTXQSAV_Pos) // 0x00200000 */
-#define HPTXSTS_PTXQSAV_6 (0x40UL << HPTXSTS_PTXQSAV_Pos) // 0x00400000 */
-#define HPTXSTS_PTXQSAV_7 (0x80UL << HPTXSTS_PTXQSAV_Pos) // 0x00800000 */
+#define HPTXSTS_PTXQSAV_Msk (0xFFUL << HPTXSTS_PTXQSAV_Pos) // 0x00FF0000
+#define HPTXSTS_PTXQSAV HPTXSTS_PTXQSAV_Msk // Periodic transmit request queue space available
+#define HPTXSTS_PTXQSAV_0 (0x01UL << HPTXSTS_PTXQSAV_Pos) // 0x00010000
+#define HPTXSTS_PTXQSAV_1 (0x02UL << HPTXSTS_PTXQSAV_Pos) // 0x00020000
+#define HPTXSTS_PTXQSAV_2 (0x04UL << HPTXSTS_PTXQSAV_Pos) // 0x00040000
+#define HPTXSTS_PTXQSAV_3 (0x08UL << HPTXSTS_PTXQSAV_Pos) // 0x00080000
+#define HPTXSTS_PTXQSAV_4 (0x10UL << HPTXSTS_PTXQSAV_Pos) // 0x00100000
+#define HPTXSTS_PTXQSAV_5 (0x20UL << HPTXSTS_PTXQSAV_Pos) // 0x00200000
+#define HPTXSTS_PTXQSAV_6 (0x40UL << HPTXSTS_PTXQSAV_Pos) // 0x00400000
+#define HPTXSTS_PTXQSAV_7 (0x80UL << HPTXSTS_PTXQSAV_Pos) // 0x00800000
#define HPTXSTS_PTXQTOP_Pos (24U)
-#define HPTXSTS_PTXQTOP_Msk (0xFFUL << HPTXSTS_PTXQTOP_Pos) // 0xFF000000 */
-#define HPTXSTS_PTXQTOP HPTXSTS_PTXQTOP_Msk // Top of the periodic transmit request queue */
-#define HPTXSTS_PTXQTOP_0 (0x01UL << HPTXSTS_PTXQTOP_Pos) // 0x01000000 */
-#define HPTXSTS_PTXQTOP_1 (0x02UL << HPTXSTS_PTXQTOP_Pos) // 0x02000000 */
-#define HPTXSTS_PTXQTOP_2 (0x04UL << HPTXSTS_PTXQTOP_Pos) // 0x04000000 */
-#define HPTXSTS_PTXQTOP_3 (0x08UL << HPTXSTS_PTXQTOP_Pos) // 0x08000000 */
-#define HPTXSTS_PTXQTOP_4 (0x10UL << HPTXSTS_PTXQTOP_Pos) // 0x10000000 */
-#define HPTXSTS_PTXQTOP_5 (0x20UL << HPTXSTS_PTXQTOP_Pos) // 0x20000000 */
-#define HPTXSTS_PTXQTOP_6 (0x40UL << HPTXSTS_PTXQTOP_Pos) // 0x40000000 */
-#define HPTXSTS_PTXQTOP_7 (0x80UL << HPTXSTS_PTXQTOP_Pos) // 0x80000000 */
+#define HPTXSTS_PTXQTOP_Msk (0xFFUL << HPTXSTS_PTXQTOP_Pos) // 0xFF000000
+#define HPTXSTS_PTXQTOP HPTXSTS_PTXQTOP_Msk // Top of the periodic transmit request queue
+#define HPTXSTS_PTXQTOP_0 (0x01UL << HPTXSTS_PTXQTOP_Pos) // 0x01000000
+#define HPTXSTS_PTXQTOP_1 (0x02UL << HPTXSTS_PTXQTOP_Pos) // 0x02000000
+#define HPTXSTS_PTXQTOP_2 (0x04UL << HPTXSTS_PTXQTOP_Pos) // 0x04000000
+#define HPTXSTS_PTXQTOP_3 (0x08UL << HPTXSTS_PTXQTOP_Pos) // 0x08000000
+#define HPTXSTS_PTXQTOP_4 (0x10UL << HPTXSTS_PTXQTOP_Pos) // 0x10000000
+#define HPTXSTS_PTXQTOP_5 (0x20UL << HPTXSTS_PTXQTOP_Pos) // 0x20000000
+#define HPTXSTS_PTXQTOP_6 (0x40UL << HPTXSTS_PTXQTOP_Pos) // 0x40000000
+#define HPTXSTS_PTXQTOP_7 (0x80UL << HPTXSTS_PTXQTOP_Pos) // 0x80000000
/******************** Bit definition for HAINT register ********************/
#define HAINT_HAINT_Pos (0U)
-#define HAINT_HAINT_Msk (0xFFFFUL << HAINT_HAINT_Pos) // 0x0000FFFF */
-#define HAINT_HAINT HAINT_HAINT_Msk // Channel interrupts */
+#define HAINT_HAINT_Msk (0xFFFFUL << HAINT_HAINT_Pos) // 0x0000FFFF
+#define HAINT_HAINT HAINT_HAINT_Msk // Channel interrupts
/******************** Bit definition for DOEPMSK register ********************/
#define DOEPMSK_XFRCM_Pos (0U)
-#define DOEPMSK_XFRCM_Msk (0x1UL << DOEPMSK_XFRCM_Pos) // 0x00000001 */
-#define DOEPMSK_XFRCM DOEPMSK_XFRCM_Msk // Transfer completed interrupt mask */
+#define DOEPMSK_XFRCM_Msk (0x1UL << DOEPMSK_XFRCM_Pos) // 0x00000001
+#define DOEPMSK_XFRCM DOEPMSK_XFRCM_Msk // Transfer completed interrupt mask
#define DOEPMSK_EPDM_Pos (1U)
-#define DOEPMSK_EPDM_Msk (0x1UL << DOEPMSK_EPDM_Pos) // 0x00000002 */
-#define DOEPMSK_EPDM DOEPMSK_EPDM_Msk // Endpoint disabled interrupt mask */
+#define DOEPMSK_EPDM_Msk (0x1UL << DOEPMSK_EPDM_Pos) // 0x00000002
+#define DOEPMSK_EPDM DOEPMSK_EPDM_Msk // Endpoint disabled interrupt mask
#define DOEPMSK_AHBERRM_Pos (2U)
-#define DOEPMSK_AHBERRM_Msk (0x1UL << DOEPMSK_AHBERRM_Pos) // 0x00000004 */
-#define DOEPMSK_AHBERRM DOEPMSK_AHBERRM_Msk // OUT transaction AHB Error interrupt mask */
+#define DOEPMSK_AHBERRM_Msk (0x1UL << DOEPMSK_AHBERRM_Pos) // 0x00000004
+#define DOEPMSK_AHBERRM DOEPMSK_AHBERRM_Msk // OUT transaction AHB Error interrupt mask
#define DOEPMSK_STUPM_Pos (3U)
-#define DOEPMSK_STUPM_Msk (0x1UL << DOEPMSK_STUPM_Pos) // 0x00000008 */
-#define DOEPMSK_STUPM DOEPMSK_STUPM_Msk // SETUP phase done mask */
+#define DOEPMSK_STUPM_Msk (0x1UL << DOEPMSK_STUPM_Pos) // 0x00000008
+#define DOEPMSK_STUPM DOEPMSK_STUPM_Msk // SETUP phase done mask
#define DOEPMSK_OTEPDM_Pos (4U)
-#define DOEPMSK_OTEPDM_Msk (0x1UL << DOEPMSK_OTEPDM_Pos) // 0x00000010 */
-#define DOEPMSK_OTEPDM DOEPMSK_OTEPDM_Msk // OUT token received when endpoint disabled mask */
+#define DOEPMSK_OTEPDM_Msk (0x1UL << DOEPMSK_OTEPDM_Pos) // 0x00000010
+#define DOEPMSK_OTEPDM DOEPMSK_OTEPDM_Msk // OUT token received when endpoint disabled mask
#define DOEPMSK_OTEPSPRM_Pos (5U)
-#define DOEPMSK_OTEPSPRM_Msk (0x1UL << DOEPMSK_OTEPSPRM_Pos) // 0x00000020 */
-#define DOEPMSK_OTEPSPRM DOEPMSK_OTEPSPRM_Msk // Status Phase Received mask */
+#define DOEPMSK_OTEPSPRM_Msk (0x1UL << DOEPMSK_OTEPSPRM_Pos) // 0x00000020
+#define DOEPMSK_OTEPSPRM DOEPMSK_OTEPSPRM_Msk // Status Phase Received mask
#define DOEPMSK_B2BSTUP_Pos (6U)
-#define DOEPMSK_B2BSTUP_Msk (0x1UL << DOEPMSK_B2BSTUP_Pos) // 0x00000040 */
-#define DOEPMSK_B2BSTUP DOEPMSK_B2BSTUP_Msk // Back-to-back SETUP packets received mask */
+#define DOEPMSK_B2BSTUP_Msk (0x1UL << DOEPMSK_B2BSTUP_Pos) // 0x00000040
+#define DOEPMSK_B2BSTUP DOEPMSK_B2BSTUP_Msk // Back-to-back SETUP packets received mask
#define DOEPMSK_OPEM_Pos (8U)
-#define DOEPMSK_OPEM_Msk (0x1UL << DOEPMSK_OPEM_Pos) // 0x00000100 */
-#define DOEPMSK_OPEM DOEPMSK_OPEM_Msk // OUT packet error mask */
+#define DOEPMSK_OPEM_Msk (0x1UL << DOEPMSK_OPEM_Pos) // 0x00000100
+#define DOEPMSK_OPEM DOEPMSK_OPEM_Msk // OUT packet error mask
#define DOEPMSK_BOIM_Pos (9U)
-#define DOEPMSK_BOIM_Msk (0x1UL << DOEPMSK_BOIM_Pos) // 0x00000200 */
-#define DOEPMSK_BOIM DOEPMSK_BOIM_Msk // BNA interrupt mask */
+#define DOEPMSK_BOIM_Msk (0x1UL << DOEPMSK_BOIM_Pos) // 0x00000200
+#define DOEPMSK_BOIM DOEPMSK_BOIM_Msk // BNA interrupt mask
#define DOEPMSK_BERRM_Pos (12U)
-#define DOEPMSK_BERRM_Msk (0x1UL << DOEPMSK_BERRM_Pos) // 0x00001000 */
-#define DOEPMSK_BERRM DOEPMSK_BERRM_Msk // Babble error interrupt mask */
+#define DOEPMSK_BERRM_Msk (0x1UL << DOEPMSK_BERRM_Pos) // 0x00001000
+#define DOEPMSK_BERRM DOEPMSK_BERRM_Msk // Babble error interrupt mask
#define DOEPMSK_NAKM_Pos (13U)
-#define DOEPMSK_NAKM_Msk (0x1UL << DOEPMSK_NAKM_Pos) // 0x00002000 */
-#define DOEPMSK_NAKM DOEPMSK_NAKM_Msk // OUT Packet NAK interrupt mask */
+#define DOEPMSK_NAKM_Msk (0x1UL << DOEPMSK_NAKM_Pos) // 0x00002000
+#define DOEPMSK_NAKM DOEPMSK_NAKM_Msk // OUT Packet NAK interrupt mask
#define DOEPMSK_NYETM_Pos (14U)
-#define DOEPMSK_NYETM_Msk (0x1UL << DOEPMSK_NYETM_Pos) // 0x00004000 */
-#define DOEPMSK_NYETM DOEPMSK_NYETM_Msk // NYET interrupt mask */
+#define DOEPMSK_NYETM_Msk (0x1UL << DOEPMSK_NYETM_Pos) // 0x00004000
+#define DOEPMSK_NYETM DOEPMSK_NYETM_Msk // NYET interrupt mask
/******************** Bit definition for GINTSTS register ********************/
#define GINTSTS_CMOD_Pos (0U)
-#define GINTSTS_CMOD_Msk (0x1UL << GINTSTS_CMOD_Pos) // 0x00000001 */
-#define GINTSTS_CMOD GINTSTS_CMOD_Msk // Current mode of operation */
+#define GINTSTS_CMOD_Msk (0x1UL << GINTSTS_CMOD_Pos) // 0x00000001
+#define GINTSTS_CMOD GINTSTS_CMOD_Msk // Current mode of operation
#define GINTSTS_MMIS_Pos (1U)
-#define GINTSTS_MMIS_Msk (0x1UL << GINTSTS_MMIS_Pos) // 0x00000002 */
-#define GINTSTS_MMIS GINTSTS_MMIS_Msk // Mode mismatch interrupt */
+#define GINTSTS_MMIS_Msk (0x1UL << GINTSTS_MMIS_Pos) // 0x00000002
+#define GINTSTS_MMIS GINTSTS_MMIS_Msk // Mode mismatch interrupt
#define GINTSTS_OTGINT_Pos (2U)
-#define GINTSTS_OTGINT_Msk (0x1UL << GINTSTS_OTGINT_Pos) // 0x00000004 */
-#define GINTSTS_OTGINT GINTSTS_OTGINT_Msk // OTG interrupt */
+#define GINTSTS_OTGINT_Msk (0x1UL << GINTSTS_OTGINT_Pos) // 0x00000004
+#define GINTSTS_OTGINT GINTSTS_OTGINT_Msk // OTG interrupt
#define GINTSTS_SOF_Pos (3U)
-#define GINTSTS_SOF_Msk (0x1UL << GINTSTS_SOF_Pos) // 0x00000008 */
-#define GINTSTS_SOF GINTSTS_SOF_Msk // Start of frame */
+#define GINTSTS_SOF_Msk (0x1UL << GINTSTS_SOF_Pos) // 0x00000008
+#define GINTSTS_SOF GINTSTS_SOF_Msk // Start of frame
#define GINTSTS_RXFLVL_Pos (4U)
-#define GINTSTS_RXFLVL_Msk (0x1UL << GINTSTS_RXFLVL_Pos) // 0x00000010 */
-#define GINTSTS_RXFLVL GINTSTS_RXFLVL_Msk // RxFIFO nonempty */
+#define GINTSTS_RXFLVL_Msk (0x1UL << GINTSTS_RXFLVL_Pos) // 0x00000010
+#define GINTSTS_RXFLVL GINTSTS_RXFLVL_Msk // RxFIFO nonempty
#define GINTSTS_NPTXFE_Pos (5U)
-#define GINTSTS_NPTXFE_Msk (0x1UL << GINTSTS_NPTXFE_Pos) // 0x00000020 */
-#define GINTSTS_NPTXFE GINTSTS_NPTXFE_Msk // Nonperiodic TxFIFO empty */
+#define GINTSTS_NPTXFE_Msk (0x1UL << GINTSTS_NPTXFE_Pos) // 0x00000020
+#define GINTSTS_NPTXFE GINTSTS_NPTXFE_Msk // Nonperiodic TxFIFO empty
#define GINTSTS_GINAKEFF_Pos (6U)
-#define GINTSTS_GINAKEFF_Msk (0x1UL << GINTSTS_GINAKEFF_Pos) // 0x00000040 */
-#define GINTSTS_GINAKEFF GINTSTS_GINAKEFF_Msk // Global IN nonperiodic NAK effective */
+#define GINTSTS_GINAKEFF_Msk (0x1UL << GINTSTS_GINAKEFF_Pos) // 0x00000040
+#define GINTSTS_GINAKEFF GINTSTS_GINAKEFF_Msk // Global IN nonperiodic NAK effective
#define GINTSTS_BOUTNAKEFF_Pos (7U)
-#define GINTSTS_BOUTNAKEFF_Msk (0x1UL << GINTSTS_BOUTNAKEFF_Pos) // 0x00000080 */
-#define GINTSTS_BOUTNAKEFF GINTSTS_BOUTNAKEFF_Msk // Global OUT NAK effective */
+#define GINTSTS_BOUTNAKEFF_Msk (0x1UL << GINTSTS_BOUTNAKEFF_Pos) // 0x00000080
+#define GINTSTS_BOUTNAKEFF GINTSTS_BOUTNAKEFF_Msk // Global OUT NAK effective
#define GINTSTS_ESUSP_Pos (10U)
-#define GINTSTS_ESUSP_Msk (0x1UL << GINTSTS_ESUSP_Pos) // 0x00000400 */
-#define GINTSTS_ESUSP GINTSTS_ESUSP_Msk // Early suspend */
+#define GINTSTS_ESUSP_Msk (0x1UL << GINTSTS_ESUSP_Pos) // 0x00000400
+#define GINTSTS_ESUSP GINTSTS_ESUSP_Msk // Early suspend
#define GINTSTS_USBSUSP_Pos (11U)
-#define GINTSTS_USBSUSP_Msk (0x1UL << GINTSTS_USBSUSP_Pos) // 0x00000800 */
-#define GINTSTS_USBSUSP GINTSTS_USBSUSP_Msk // USB suspend */
+#define GINTSTS_USBSUSP_Msk (0x1UL << GINTSTS_USBSUSP_Pos) // 0x00000800
+#define GINTSTS_USBSUSP GINTSTS_USBSUSP_Msk // USB suspend
#define GINTSTS_USBRST_Pos (12U)
-#define GINTSTS_USBRST_Msk (0x1UL << GINTSTS_USBRST_Pos) // 0x00001000 */
-#define GINTSTS_USBRST GINTSTS_USBRST_Msk // USB reset */
+#define GINTSTS_USBRST_Msk (0x1UL << GINTSTS_USBRST_Pos) // 0x00001000
+#define GINTSTS_USBRST GINTSTS_USBRST_Msk // USB reset
#define GINTSTS_ENUMDNE_Pos (13U)
-#define GINTSTS_ENUMDNE_Msk (0x1UL << GINTSTS_ENUMDNE_Pos) // 0x00002000 */
-#define GINTSTS_ENUMDNE GINTSTS_ENUMDNE_Msk // Enumeration done */
+#define GINTSTS_ENUMDNE_Msk (0x1UL << GINTSTS_ENUMDNE_Pos) // 0x00002000
+#define GINTSTS_ENUMDNE GINTSTS_ENUMDNE_Msk // Enumeration done
#define GINTSTS_ISOODRP_Pos (14U)
-#define GINTSTS_ISOODRP_Msk (0x1UL << GINTSTS_ISOODRP_Pos) // 0x00004000 */
-#define GINTSTS_ISOODRP GINTSTS_ISOODRP_Msk // Isochronous OUT packet dropped interrupt */
+#define GINTSTS_ISOODRP_Msk (0x1UL << GINTSTS_ISOODRP_Pos) // 0x00004000
+#define GINTSTS_ISOODRP GINTSTS_ISOODRP_Msk // Isochronous OUT packet dropped interrupt
#define GINTSTS_EOPF_Pos (15U)
-#define GINTSTS_EOPF_Msk (0x1UL << GINTSTS_EOPF_Pos) // 0x00008000 */
-#define GINTSTS_EOPF GINTSTS_EOPF_Msk // End of periodic frame interrupt */
+#define GINTSTS_EOPF_Msk (0x1UL << GINTSTS_EOPF_Pos) // 0x00008000
+#define GINTSTS_EOPF GINTSTS_EOPF_Msk // End of periodic frame interrupt
#define GINTSTS_IEPINT_Pos (18U)
-#define GINTSTS_IEPINT_Msk (0x1UL << GINTSTS_IEPINT_Pos) // 0x00040000 */
-#define GINTSTS_IEPINT GINTSTS_IEPINT_Msk // IN endpoint interrupt */
+#define GINTSTS_IEPINT_Msk (0x1UL << GINTSTS_IEPINT_Pos) // 0x00040000
+#define GINTSTS_IEPINT GINTSTS_IEPINT_Msk // IN endpoint interrupt
#define GINTSTS_OEPINT_Pos (19U)
-#define GINTSTS_OEPINT_Msk (0x1UL << GINTSTS_OEPINT_Pos) // 0x00080000 */
-#define GINTSTS_OEPINT GINTSTS_OEPINT_Msk // OUT endpoint interrupt */
+#define GINTSTS_OEPINT_Msk (0x1UL << GINTSTS_OEPINT_Pos) // 0x00080000
+#define GINTSTS_OEPINT GINTSTS_OEPINT_Msk // OUT endpoint interrupt
#define GINTSTS_IISOIXFR_Pos (20U)
-#define GINTSTS_IISOIXFR_Msk (0x1UL << GINTSTS_IISOIXFR_Pos) // 0x00100000 */
-#define GINTSTS_IISOIXFR GINTSTS_IISOIXFR_Msk // Incomplete isochronous IN transfer */
+#define GINTSTS_IISOIXFR_Msk (0x1UL << GINTSTS_IISOIXFR_Pos) // 0x00100000
+#define GINTSTS_IISOIXFR GINTSTS_IISOIXFR_Msk // Incomplete isochronous IN transfer
#define GINTSTS_PXFR_INCOMPISOOUT_Pos (21U)
-#define GINTSTS_PXFR_INCOMPISOOUT_Msk (0x1UL << GINTSTS_PXFR_INCOMPISOOUT_Pos) // 0x00200000 */
-#define GINTSTS_PXFR_INCOMPISOOUT GINTSTS_PXFR_INCOMPISOOUT_Msk // Incomplete periodic transfer */
+#define GINTSTS_PXFR_INCOMPISOOUT_Msk (0x1UL << GINTSTS_PXFR_INCOMPISOOUT_Pos) // 0x00200000
+#define GINTSTS_PXFR_INCOMPISOOUT GINTSTS_PXFR_INCOMPISOOUT_Msk // Incomplete periodic transfer
#define GINTSTS_DATAFSUSP_Pos (22U)
-#define GINTSTS_DATAFSUSP_Msk (0x1UL << GINTSTS_DATAFSUSP_Pos) // 0x00400000 */
-#define GINTSTS_DATAFSUSP GINTSTS_DATAFSUSP_Msk // Data fetch suspended */
+#define GINTSTS_DATAFSUSP_Msk (0x1UL << GINTSTS_DATAFSUSP_Pos) // 0x00400000
+#define GINTSTS_DATAFSUSP GINTSTS_DATAFSUSP_Msk // Data fetch suspended
#define GINTSTS_RSTDET_Pos (23U)
-#define GINTSTS_RSTDET_Msk (0x1UL << GINTSTS_RSTDET_Pos) // 0x00800000 */
-#define GINTSTS_RSTDET GINTSTS_RSTDET_Msk // Reset detected interrupt */
+#define GINTSTS_RSTDET_Msk (0x1UL << GINTSTS_RSTDET_Pos) // 0x00800000
+#define GINTSTS_RSTDET GINTSTS_RSTDET_Msk // Reset detected interrupt
#define GINTSTS_HPRTINT_Pos (24U)
-#define GINTSTS_HPRTINT_Msk (0x1UL << GINTSTS_HPRTINT_Pos) // 0x01000000 */
-#define GINTSTS_HPRTINT GINTSTS_HPRTINT_Msk // Host port interrupt */
+#define GINTSTS_HPRTINT_Msk (0x1UL << GINTSTS_HPRTINT_Pos) // 0x01000000
+#define GINTSTS_HPRTINT GINTSTS_HPRTINT_Msk // Host port interrupt
#define GINTSTS_HCINT_Pos (25U)
-#define GINTSTS_HCINT_Msk (0x1UL << GINTSTS_HCINT_Pos) // 0x02000000 */
-#define GINTSTS_HCINT GINTSTS_HCINT_Msk // Host channels interrupt */
+#define GINTSTS_HCINT_Msk (0x1UL << GINTSTS_HCINT_Pos) // 0x02000000
+#define GINTSTS_HCINT GINTSTS_HCINT_Msk // Host channels interrupt
#define GINTSTS_PTXFE_Pos (26U)
-#define GINTSTS_PTXFE_Msk (0x1UL << GINTSTS_PTXFE_Pos) // 0x04000000 */
-#define GINTSTS_PTXFE GINTSTS_PTXFE_Msk // Periodic TxFIFO empty */
+#define GINTSTS_PTXFE_Msk (0x1UL << GINTSTS_PTXFE_Pos) // 0x04000000
+#define GINTSTS_PTXFE GINTSTS_PTXFE_Msk // Periodic TxFIFO empty
#define GINTSTS_LPMINT_Pos (27U)
-#define GINTSTS_LPMINT_Msk (0x1UL << GINTSTS_LPMINT_Pos) // 0x08000000 */
-#define GINTSTS_LPMINT GINTSTS_LPMINT_Msk // LPM interrupt */
+#define GINTSTS_LPMINT_Msk (0x1UL << GINTSTS_LPMINT_Pos) // 0x08000000
+#define GINTSTS_LPMINT GINTSTS_LPMINT_Msk // LPM interrupt
#define GINTSTS_CIDSCHG_Pos (28U)
-#define GINTSTS_CIDSCHG_Msk (0x1UL << GINTSTS_CIDSCHG_Pos) // 0x10000000 */
-#define GINTSTS_CIDSCHG GINTSTS_CIDSCHG_Msk // Connector ID status change */
+#define GINTSTS_CIDSCHG_Msk (0x1UL << GINTSTS_CIDSCHG_Pos) // 0x10000000
+#define GINTSTS_CIDSCHG GINTSTS_CIDSCHG_Msk // Connector ID status change
#define GINTSTS_DISCINT_Pos (29U)
-#define GINTSTS_DISCINT_Msk (0x1UL << GINTSTS_DISCINT_Pos) // 0x20000000 */
-#define GINTSTS_DISCINT GINTSTS_DISCINT_Msk // Disconnect detected interrupt */
+#define GINTSTS_DISCINT_Msk (0x1UL << GINTSTS_DISCINT_Pos) // 0x20000000
+#define GINTSTS_DISCINT GINTSTS_DISCINT_Msk // Disconnect detected interrupt
#define GINTSTS_SRQINT_Pos (30U)
-#define GINTSTS_SRQINT_Msk (0x1UL << GINTSTS_SRQINT_Pos) // 0x40000000 */
-#define GINTSTS_SRQINT GINTSTS_SRQINT_Msk // Session request/new session detected interrupt */
+#define GINTSTS_SRQINT_Msk (0x1UL << GINTSTS_SRQINT_Pos) // 0x40000000
+#define GINTSTS_SRQINT GINTSTS_SRQINT_Msk // Session request/new session detected interrupt
#define GINTSTS_WKUINT_Pos (31U)
-#define GINTSTS_WKUINT_Msk (0x1UL << GINTSTS_WKUINT_Pos) // 0x80000000 */
-#define GINTSTS_WKUINT GINTSTS_WKUINT_Msk // Resume/remote wakeup detected interrupt */
+#define GINTSTS_WKUINT_Msk (0x1UL << GINTSTS_WKUINT_Pos) // 0x80000000
+#define GINTSTS_WKUINT GINTSTS_WKUINT_Msk // Resume/remote wakeup detected interrupt
/******************** Bit definition for GINTMSK register ********************/
#define GINTMSK_MMISM_Pos (1U)
-#define GINTMSK_MMISM_Msk (0x1UL << GINTMSK_MMISM_Pos) // 0x00000002 */
-#define GINTMSK_MMISM GINTMSK_MMISM_Msk // Mode mismatch interrupt mask */
+#define GINTMSK_MMISM_Msk (0x1UL << GINTMSK_MMISM_Pos) // 0x00000002
+#define GINTMSK_MMISM GINTMSK_MMISM_Msk // Mode mismatch interrupt mask
#define GINTMSK_OTGINT_Pos (2U)
-#define GINTMSK_OTGINT_Msk (0x1UL << GINTMSK_OTGINT_Pos) // 0x00000004 */
-#define GINTMSK_OTGINT GINTMSK_OTGINT_Msk // OTG interrupt mask */
+#define GINTMSK_OTGINT_Msk (0x1UL << GINTMSK_OTGINT_Pos) // 0x00000004
+#define GINTMSK_OTGINT GINTMSK_OTGINT_Msk // OTG interrupt mask
#define GINTMSK_SOFM_Pos (3U)
-#define GINTMSK_SOFM_Msk (0x1UL << GINTMSK_SOFM_Pos) // 0x00000008 */
-#define GINTMSK_SOFM GINTMSK_SOFM_Msk // Start of frame mask */
+#define GINTMSK_SOFM_Msk (0x1UL << GINTMSK_SOFM_Pos) // 0x00000008
+#define GINTMSK_SOFM GINTMSK_SOFM_Msk // Start of frame mask
#define GINTMSK_RXFLVLM_Pos (4U)
-#define GINTMSK_RXFLVLM_Msk (0x1UL << GINTMSK_RXFLVLM_Pos) // 0x00000010 */
-#define GINTMSK_RXFLVLM GINTMSK_RXFLVLM_Msk // Receive FIFO nonempty mask */
+#define GINTMSK_RXFLVLM_Msk (0x1UL << GINTMSK_RXFLVLM_Pos) // 0x00000010
+#define GINTMSK_RXFLVLM GINTMSK_RXFLVLM_Msk // Receive FIFO nonempty mask
#define GINTMSK_NPTXFEM_Pos (5U)
-#define GINTMSK_NPTXFEM_Msk (0x1UL << GINTMSK_NPTXFEM_Pos) // 0x00000020 */
-#define GINTMSK_NPTXFEM GINTMSK_NPTXFEM_Msk // Nonperiodic TxFIFO empty mask */
+#define GINTMSK_NPTXFEM_Msk (0x1UL << GINTMSK_NPTXFEM_Pos) // 0x00000020
+#define GINTMSK_NPTXFEM GINTMSK_NPTXFEM_Msk // Nonperiodic TxFIFO empty mask
#define GINTMSK_GINAKEFFM_Pos (6U)
-#define GINTMSK_GINAKEFFM_Msk (0x1UL << GINTMSK_GINAKEFFM_Pos) // 0x00000040 */
-#define GINTMSK_GINAKEFFM GINTMSK_GINAKEFFM_Msk // Global nonperiodic IN NAK effective mask */
+#define GINTMSK_GINAKEFFM_Msk (0x1UL << GINTMSK_GINAKEFFM_Pos) // 0x00000040
+#define GINTMSK_GINAKEFFM GINTMSK_GINAKEFFM_Msk // Global nonperiodic IN NAK effective mask
#define GINTMSK_GONAKEFFM_Pos (7U)
-#define GINTMSK_GONAKEFFM_Msk (0x1UL << GINTMSK_GONAKEFFM_Pos) // 0x00000080 */
-#define GINTMSK_GONAKEFFM GINTMSK_GONAKEFFM_Msk // Global OUT NAK effective mask */
+#define GINTMSK_GONAKEFFM_Msk (0x1UL << GINTMSK_GONAKEFFM_Pos) // 0x00000080
+#define GINTMSK_GONAKEFFM GINTMSK_GONAKEFFM_Msk // Global OUT NAK effective mask
#define GINTMSK_ESUSPM_Pos (10U)
-#define GINTMSK_ESUSPM_Msk (0x1UL << GINTMSK_ESUSPM_Pos) // 0x00000400 */
-#define GINTMSK_ESUSPM GINTMSK_ESUSPM_Msk // Early suspend mask */
+#define GINTMSK_ESUSPM_Msk (0x1UL << GINTMSK_ESUSPM_Pos) // 0x00000400
+#define GINTMSK_ESUSPM GINTMSK_ESUSPM_Msk // Early suspend mask
#define GINTMSK_USBSUSPM_Pos (11U)
-#define GINTMSK_USBSUSPM_Msk (0x1UL << GINTMSK_USBSUSPM_Pos) // 0x00000800 */
-#define GINTMSK_USBSUSPM GINTMSK_USBSUSPM_Msk // USB suspend mask */
+#define GINTMSK_USBSUSPM_Msk (0x1UL << GINTMSK_USBSUSPM_Pos) // 0x00000800
+#define GINTMSK_USBSUSPM GINTMSK_USBSUSPM_Msk // USB suspend mask
#define GINTMSK_USBRST_Pos (12U)
-#define GINTMSK_USBRST_Msk (0x1UL << GINTMSK_USBRST_Pos) // 0x00001000 */
-#define GINTMSK_USBRST GINTMSK_USBRST_Msk // USB reset mask */
+#define GINTMSK_USBRST_Msk (0x1UL << GINTMSK_USBRST_Pos) // 0x00001000
+#define GINTMSK_USBRST GINTMSK_USBRST_Msk // USB reset mask
#define GINTMSK_ENUMDNEM_Pos (13U)
-#define GINTMSK_ENUMDNEM_Msk (0x1UL << GINTMSK_ENUMDNEM_Pos) // 0x00002000 */
-#define GINTMSK_ENUMDNEM GINTMSK_ENUMDNEM_Msk // Enumeration done mask */
+#define GINTMSK_ENUMDNEM_Msk (0x1UL << GINTMSK_ENUMDNEM_Pos) // 0x00002000
+#define GINTMSK_ENUMDNEM GINTMSK_ENUMDNEM_Msk // Enumeration done mask
#define GINTMSK_ISOODRPM_Pos (14U)
-#define GINTMSK_ISOODRPM_Msk (0x1UL << GINTMSK_ISOODRPM_Pos) // 0x00004000 */
-#define GINTMSK_ISOODRPM GINTMSK_ISOODRPM_Msk // Isochronous OUT packet dropped interrupt mask */
+#define GINTMSK_ISOODRPM_Msk (0x1UL << GINTMSK_ISOODRPM_Pos) // 0x00004000
+#define GINTMSK_ISOODRPM GINTMSK_ISOODRPM_Msk // Isochronous OUT packet dropped interrupt mask
#define GINTMSK_EOPFM_Pos (15U)
-#define GINTMSK_EOPFM_Msk (0x1UL << GINTMSK_EOPFM_Pos) // 0x00008000 */
-#define GINTMSK_EOPFM GINTMSK_EOPFM_Msk // End of periodic frame interrupt mask */
+#define GINTMSK_EOPFM_Msk (0x1UL << GINTMSK_EOPFM_Pos) // 0x00008000
+#define GINTMSK_EOPFM GINTMSK_EOPFM_Msk // End of periodic frame interrupt mask
#define GINTMSK_EPMISM_Pos (17U)
-#define GINTMSK_EPMISM_Msk (0x1UL << GINTMSK_EPMISM_Pos) // 0x00020000 */
-#define GINTMSK_EPMISM GINTMSK_EPMISM_Msk // Endpoint mismatch interrupt mask */
+#define GINTMSK_EPMISM_Msk (0x1UL << GINTMSK_EPMISM_Pos) // 0x00020000
+#define GINTMSK_EPMISM GINTMSK_EPMISM_Msk // Endpoint mismatch interrupt mask
#define GINTMSK_IEPINT_Pos (18U)
-#define GINTMSK_IEPINT_Msk (0x1UL << GINTMSK_IEPINT_Pos) // 0x00040000 */
-#define GINTMSK_IEPINT GINTMSK_IEPINT_Msk // IN endpoints interrupt mask */
+#define GINTMSK_IEPINT_Msk (0x1UL << GINTMSK_IEPINT_Pos) // 0x00040000
+#define GINTMSK_IEPINT GINTMSK_IEPINT_Msk // IN endpoints interrupt mask
#define GINTMSK_OEPINT_Pos (19U)
-#define GINTMSK_OEPINT_Msk (0x1UL << GINTMSK_OEPINT_Pos) // 0x00080000 */
-#define GINTMSK_OEPINT GINTMSK_OEPINT_Msk // OUT endpoints interrupt mask */
+#define GINTMSK_OEPINT_Msk (0x1UL << GINTMSK_OEPINT_Pos) // 0x00080000
+#define GINTMSK_OEPINT GINTMSK_OEPINT_Msk // OUT endpoints interrupt mask
#define GINTMSK_IISOIXFRM_Pos (20U)
-#define GINTMSK_IISOIXFRM_Msk (0x1UL << GINTMSK_IISOIXFRM_Pos) // 0x00100000 */
-#define GINTMSK_IISOIXFRM GINTMSK_IISOIXFRM_Msk // Incomplete isochronous IN transfer mask */
+#define GINTMSK_IISOIXFRM_Msk (0x1UL << GINTMSK_IISOIXFRM_Pos) // 0x00100000
+#define GINTMSK_IISOIXFRM GINTMSK_IISOIXFRM_Msk // Incomplete isochronous IN transfer mask
#define GINTMSK_PXFRM_IISOOXFRM_Pos (21U)
-#define GINTMSK_PXFRM_IISOOXFRM_Msk (0x1UL << GINTMSK_PXFRM_IISOOXFRM_Pos) // 0x00200000 */
-#define GINTMSK_PXFRM_IISOOXFRM GINTMSK_PXFRM_IISOOXFRM_Msk // Incomplete periodic transfer mask */
+#define GINTMSK_PXFRM_IISOOXFRM_Msk (0x1UL << GINTMSK_PXFRM_IISOOXFRM_Pos) // 0x00200000
+#define GINTMSK_PXFRM_IISOOXFRM GINTMSK_PXFRM_IISOOXFRM_Msk // Incomplete periodic transfer mask
#define GINTMSK_FSUSPM_Pos (22U)
-#define GINTMSK_FSUSPM_Msk (0x1UL << GINTMSK_FSUSPM_Pos) // 0x00400000 */
-#define GINTMSK_FSUSPM GINTMSK_FSUSPM_Msk // Data fetch suspended mask */
+#define GINTMSK_FSUSPM_Msk (0x1UL << GINTMSK_FSUSPM_Pos) // 0x00400000
+#define GINTMSK_FSUSPM GINTMSK_FSUSPM_Msk // Data fetch suspended mask
#define GINTMSK_RSTDEM_Pos (23U)
-#define GINTMSK_RSTDEM_Msk (0x1UL << GINTMSK_RSTDEM_Pos) // 0x00800000 */
-#define GINTMSK_RSTDEM GINTMSK_RSTDEM_Msk // Reset detected interrupt mask */
+#define GINTMSK_RSTDEM_Msk (0x1UL << GINTMSK_RSTDEM_Pos) // 0x00800000
+#define GINTMSK_RSTDEM GINTMSK_RSTDEM_Msk // Reset detected interrupt mask
#define GINTMSK_PRTIM_Pos (24U)
-#define GINTMSK_PRTIM_Msk (0x1UL << GINTMSK_PRTIM_Pos) // 0x01000000 */
-#define GINTMSK_PRTIM GINTMSK_PRTIM_Msk // Host port interrupt mask */
+#define GINTMSK_PRTIM_Msk (0x1UL << GINTMSK_PRTIM_Pos) // 0x01000000
+#define GINTMSK_PRTIM GINTMSK_PRTIM_Msk // Host port interrupt mask
#define GINTMSK_HCIM_Pos (25U)
-#define GINTMSK_HCIM_Msk (0x1UL << GINTMSK_HCIM_Pos) // 0x02000000 */
-#define GINTMSK_HCIM GINTMSK_HCIM_Msk // Host channels interrupt mask */
+#define GINTMSK_HCIM_Msk (0x1UL << GINTMSK_HCIM_Pos) // 0x02000000
+#define GINTMSK_HCIM GINTMSK_HCIM_Msk // Host channels interrupt mask
#define GINTMSK_PTXFEM_Pos (26U)
-#define GINTMSK_PTXFEM_Msk (0x1UL << GINTMSK_PTXFEM_Pos) // 0x04000000 */
-#define GINTMSK_PTXFEM GINTMSK_PTXFEM_Msk // Periodic TxFIFO empty mask */
+#define GINTMSK_PTXFEM_Msk (0x1UL << GINTMSK_PTXFEM_Pos) // 0x04000000
+#define GINTMSK_PTXFEM GINTMSK_PTXFEM_Msk // Periodic TxFIFO empty mask
#define GINTMSK_LPMINTM_Pos (27U)
-#define GINTMSK_LPMINTM_Msk (0x1UL << GINTMSK_LPMINTM_Pos) // 0x08000000 */
-#define GINTMSK_LPMINTM GINTMSK_LPMINTM_Msk // LPM interrupt Mask */
+#define GINTMSK_LPMINTM_Msk (0x1UL << GINTMSK_LPMINTM_Pos) // 0x08000000
+#define GINTMSK_LPMINTM GINTMSK_LPMINTM_Msk // LPM interrupt Mask
#define GINTMSK_CIDSCHGM_Pos (28U)
-#define GINTMSK_CIDSCHGM_Msk (0x1UL << GINTMSK_CIDSCHGM_Pos) // 0x10000000 */
-#define GINTMSK_CIDSCHGM GINTMSK_CIDSCHGM_Msk // Connector ID status change mask */
+#define GINTMSK_CIDSCHGM_Msk (0x1UL << GINTMSK_CIDSCHGM_Pos) // 0x10000000
+#define GINTMSK_CIDSCHGM GINTMSK_CIDSCHGM_Msk // Connector ID status change mask
#define GINTMSK_DISCINT_Pos (29U)
-#define GINTMSK_DISCINT_Msk (0x1UL << GINTMSK_DISCINT_Pos) // 0x20000000 */
-#define GINTMSK_DISCINT GINTMSK_DISCINT_Msk // Disconnect detected interrupt mask */
+#define GINTMSK_DISCINT_Msk (0x1UL << GINTMSK_DISCINT_Pos) // 0x20000000
+#define GINTMSK_DISCINT GINTMSK_DISCINT_Msk // Disconnect detected interrupt mask
#define GINTMSK_SRQIM_Pos (30U)
-#define GINTMSK_SRQIM_Msk (0x1UL << GINTMSK_SRQIM_Pos) // 0x40000000 */
-#define GINTMSK_SRQIM GINTMSK_SRQIM_Msk // Session request/new session detected interrupt mask */
+#define GINTMSK_SRQIM_Msk (0x1UL << GINTMSK_SRQIM_Pos) // 0x40000000
+#define GINTMSK_SRQIM GINTMSK_SRQIM_Msk // Session request/new session detected interrupt mask
#define GINTMSK_WUIM_Pos (31U)
-#define GINTMSK_WUIM_Msk (0x1UL << GINTMSK_WUIM_Pos) // 0x80000000 */
-#define GINTMSK_WUIM GINTMSK_WUIM_Msk // Resume/remote wakeup detected interrupt mask */
+#define GINTMSK_WUIM_Msk (0x1UL << GINTMSK_WUIM_Pos) // 0x80000000
+#define GINTMSK_WUIM GINTMSK_WUIM_Msk // Resume/remote wakeup detected interrupt mask
/******************** Bit definition for DAINT register ********************/
#define DAINT_IEPINT_Pos (0U)
-#define DAINT_IEPINT_Msk (0xFFFFUL << DAINT_IEPINT_Pos) // 0x0000FFFF */
-#define DAINT_IEPINT DAINT_IEPINT_Msk // IN endpoint interrupt bits */
+#define DAINT_IEPINT_Msk (0xFFFFUL << DAINT_IEPINT_Pos) // 0x0000FFFF
+#define DAINT_IEPINT DAINT_IEPINT_Msk // IN endpoint interrupt bits
#define DAINT_OEPINT_Pos (16U)
-#define DAINT_OEPINT_Msk (0xFFFFUL << DAINT_OEPINT_Pos) // 0xFFFF0000 */
-#define DAINT_OEPINT DAINT_OEPINT_Msk // OUT endpoint interrupt bits */
+#define DAINT_OEPINT_Msk (0xFFFFUL << DAINT_OEPINT_Pos) // 0xFFFF0000
+#define DAINT_OEPINT DAINT_OEPINT_Msk // OUT endpoint interrupt bits
/******************** Bit definition for HAINTMSK register ********************/
#define HAINTMSK_HAINTM_Pos (0U)
-#define HAINTMSK_HAINTM_Msk (0xFFFFUL << HAINTMSK_HAINTM_Pos) // 0x0000FFFF */
-#define HAINTMSK_HAINTM HAINTMSK_HAINTM_Msk // Channel interrupt mask */
+#define HAINTMSK_HAINTM_Msk (0xFFFFUL << HAINTMSK_HAINTM_Pos) // 0x0000FFFF
+#define HAINTMSK_HAINTM HAINTMSK_HAINTM_Msk // Channel interrupt mask
/******************** Bit definition for GRXSTSP register ********************/
#define GRXSTSP_EPNUM_Pos (0U)
-#define GRXSTSP_EPNUM_Msk (0xFUL << GRXSTSP_EPNUM_Pos) // 0x0000000F */
-#define GRXSTSP_EPNUM GRXSTSP_EPNUM_Msk // IN EP interrupt mask bits */
+#define GRXSTSP_EPNUM_Msk (0xFUL << GRXSTSP_EPNUM_Pos) // 0x0000000F
+#define GRXSTSP_EPNUM GRXSTSP_EPNUM_Msk // IN EP interrupt mask bits
#define GRXSTSP_BCNT_Pos (4U)
-#define GRXSTSP_BCNT_Msk (0x7FFUL << GRXSTSP_BCNT_Pos) // 0x00007FF0 */
-#define GRXSTSP_BCNT GRXSTSP_BCNT_Msk // OUT EP interrupt mask bits */
+#define GRXSTSP_BCNT_Msk (0x7FFUL << GRXSTSP_BCNT_Pos) // 0x00007FF0
+#define GRXSTSP_BCNT GRXSTSP_BCNT_Msk // OUT EP interrupt mask bits
#define GRXSTSP_DPID_Pos (15U)
-#define GRXSTSP_DPID_Msk (0x3UL << GRXSTSP_DPID_Pos) // 0x00018000 */
-#define GRXSTSP_DPID GRXSTSP_DPID_Msk // OUT EP interrupt mask bits */
+#define GRXSTSP_DPID_Msk (0x3UL << GRXSTSP_DPID_Pos) // 0x00018000
+#define GRXSTSP_DPID GRXSTSP_DPID_Msk // OUT EP interrupt mask bits
#define GRXSTSP_PKTSTS_Pos (17U)
-#define GRXSTSP_PKTSTS_Msk (0xFUL << GRXSTSP_PKTSTS_Pos) // 0x001E0000 */
-#define GRXSTSP_PKTSTS GRXSTSP_PKTSTS_Msk // OUT EP interrupt mask bits */
+#define GRXSTSP_PKTSTS_Msk (0xFUL << GRXSTSP_PKTSTS_Pos) // 0x001E0000
+#define GRXSTSP_PKTSTS GRXSTSP_PKTSTS_Msk // OUT EP interrupt mask bits
#define GRXSTS_PKTSTS_GLOBALOUTNAK 1
#define GRXSTS_PKTSTS_OUTRX 2
@@ -933,773 +934,803 @@ TU_VERIFY_STATIC(offsetof(dwc2_regs_t, fifo ) == 0x1000, "incorrect size");
/******************** Bit definition for DAINTMSK register ********************/
#define DAINTMSK_IEPM_Pos (0U)
-#define DAINTMSK_IEPM_Msk (0xFFFFUL << DAINTMSK_IEPM_Pos) // 0x0000FFFF */
-#define DAINTMSK_IEPM DAINTMSK_IEPM_Msk // IN EP interrupt mask bits */
+#define DAINTMSK_IEPM_Msk (0xFFFFUL << DAINTMSK_IEPM_Pos) // 0x0000FFFF
+#define DAINTMSK_IEPM DAINTMSK_IEPM_Msk // IN EP interrupt mask bits
#define DAINTMSK_OEPM_Pos (16U)
-#define DAINTMSK_OEPM_Msk (0xFFFFUL << DAINTMSK_OEPM_Pos) // 0xFFFF0000 */
-#define DAINTMSK_OEPM DAINTMSK_OEPM_Msk // OUT EP interrupt mask bits */
+#define DAINTMSK_OEPM_Msk (0xFFFFUL << DAINTMSK_OEPM_Pos) // 0xFFFF0000
+#define DAINTMSK_OEPM DAINTMSK_OEPM_Msk // OUT EP interrupt mask bits
#if 0
/******************** Bit definition for OTG register ********************/
#define CHNUM_Pos (0U)
-#define CHNUM_Msk (0xFUL << CHNUM_Pos) // 0x0000000F */
-#define CHNUM CHNUM_Msk // Channel number */
-#define CHNUM_0 (0x1UL << CHNUM_Pos) // 0x00000001 */
-#define CHNUM_1 (0x2UL << CHNUM_Pos) // 0x00000002 */
-#define CHNUM_2 (0x4UL << CHNUM_Pos) // 0x00000004 */
-#define CHNUM_3 (0x8UL << CHNUM_Pos) // 0x00000008 */
+#define CHNUM_Msk (0xFUL << CHNUM_Pos) // 0x0000000F
+#define CHNUM CHNUM_Msk // Channel number
+#define CHNUM_0 (0x1UL << CHNUM_Pos) // 0x00000001
+#define CHNUM_1 (0x2UL << CHNUM_Pos) // 0x00000002
+#define CHNUM_2 (0x4UL << CHNUM_Pos) // 0x00000004
+#define CHNUM_3 (0x8UL << CHNUM_Pos) // 0x00000008
#define BCNT_Pos (4U)
-#define BCNT_Msk (0x7FFUL << BCNT_Pos) // 0x00007FF0 */
-#define BCNT BCNT_Msk // Byte count */
+#define BCNT_Msk (0x7FFUL << BCNT_Pos) // 0x00007FF0
+#define BCNT BCNT_Msk // Byte count
#define DPID_Pos (15U)
-#define DPID_Msk (0x3UL << DPID_Pos) // 0x00018000 */
-#define DPID DPID_Msk // Data PID */
-#define DPID_0 (0x1UL << DPID_Pos) // 0x00008000 */
-#define DPID_1 (0x2UL << DPID_Pos) // 0x00010000 */
+#define DPID_Msk (0x3UL << DPID_Pos) // 0x00018000
+#define DPID DPID_Msk // Data PID
+#define DPID_0 (0x1UL << DPID_Pos) // 0x00008000
+#define DPID_1 (0x2UL << DPID_Pos) // 0x00010000
#define PKTSTS_Pos (17U)
-#define PKTSTS_Msk (0xFUL << PKTSTS_Pos) // 0x001E0000 */
-#define PKTSTS PKTSTS_Msk // Packet status */
-#define PKTSTS_0 (0x1UL << PKTSTS_Pos) // 0x00020000 */
-#define PKTSTS_1 (0x2UL << PKTSTS_Pos) // 0x00040000 */
-#define PKTSTS_2 (0x4UL << PKTSTS_Pos) // 0x00080000 */
-#define PKTSTS_3 (0x8UL << PKTSTS_Pos) // 0x00100000 */
+#define PKTSTS_Msk (0xFUL << PKTSTS_Pos) // 0x001E0000
+#define PKTSTS PKTSTS_Msk // Packet status
+#define PKTSTS_0 (0x1UL << PKTSTS_Pos) // 0x00020000
+#define PKTSTS_1 (0x2UL << PKTSTS_Pos) // 0x00040000
+#define PKTSTS_2 (0x4UL << PKTSTS_Pos) // 0x00080000
+#define PKTSTS_3 (0x8UL << PKTSTS_Pos) // 0x00100000
#define EPNUM_Pos (0U)
-#define EPNUM_Msk (0xFUL << EPNUM_Pos) // 0x0000000F */
-#define EPNUM EPNUM_Msk // Endpoint number */
-#define EPNUM_0 (0x1UL << EPNUM_Pos) // 0x00000001 */
-#define EPNUM_1 (0x2UL << EPNUM_Pos) // 0x00000002 */
-#define EPNUM_2 (0x4UL << EPNUM_Pos) // 0x00000004 */
-#define EPNUM_3 (0x8UL << EPNUM_Pos) // 0x00000008 */
+#define EPNUM_Msk (0xFUL << EPNUM_Pos) // 0x0000000F
+#define EPNUM EPNUM_Msk // Endpoint number
+#define EPNUM_0 (0x1UL << EPNUM_Pos) // 0x00000001
+#define EPNUM_1 (0x2UL << EPNUM_Pos) // 0x00000002
+#define EPNUM_2 (0x4UL << EPNUM_Pos) // 0x00000004
+#define EPNUM_3 (0x8UL << EPNUM_Pos) // 0x00000008
#define FRMNUM_Pos (21U)
-#define FRMNUM_Msk (0xFUL << FRMNUM_Pos) // 0x01E00000 */
-#define FRMNUM FRMNUM_Msk // Frame number */
-#define FRMNUM_0 (0x1UL << FRMNUM_Pos) // 0x00200000 */
-#define FRMNUM_1 (0x2UL << FRMNUM_Pos) // 0x00400000 */
-#define FRMNUM_2 (0x4UL << FRMNUM_Pos) // 0x00800000 */
-#define FRMNUM_3 (0x8UL << FRMNUM_Pos) // 0x01000000 */
+#define FRMNUM_Msk (0xFUL << FRMNUM_Pos) // 0x01E00000
+#define FRMNUM FRMNUM_Msk // Frame number
+#define FRMNUM_0 (0x1UL << FRMNUM_Pos) // 0x00200000
+#define FRMNUM_1 (0x2UL << FRMNUM_Pos) // 0x00400000
+#define FRMNUM_2 (0x4UL << FRMNUM_Pos) // 0x00800000
+#define FRMNUM_3 (0x8UL << FRMNUM_Pos) // 0x01000000
#endif
/******************** Bit definition for GRXFSIZ register ********************/
#define GRXFSIZ_RXFD_Pos (0U)
-#define GRXFSIZ_RXFD_Msk (0xFFFFUL << GRXFSIZ_RXFD_Pos) // 0x0000FFFF */
-#define GRXFSIZ_RXFD GRXFSIZ_RXFD_Msk // RxFIFO depth */
+#define GRXFSIZ_RXFD_Msk (0xFFFFUL << GRXFSIZ_RXFD_Pos) // 0x0000FFFF
+#define GRXFSIZ_RXFD GRXFSIZ_RXFD_Msk // RxFIFO depth
/******************** Bit definition for DVBUSDIS register ********************/
#define DVBUSDIS_VBUSDT_Pos (0U)
-#define DVBUSDIS_VBUSDT_Msk (0xFFFFUL << DVBUSDIS_VBUSDT_Pos) // 0x0000FFFF */
-#define DVBUSDIS_VBUSDT DVBUSDIS_VBUSDT_Msk // Device VBUS discharge time */
+#define DVBUSDIS_VBUSDT_Msk (0xFFFFUL << DVBUSDIS_VBUSDT_Pos) // 0x0000FFFF
+#define DVBUSDIS_VBUSDT DVBUSDIS_VBUSDT_Msk // Device VBUS discharge time
/******************** Bit definition for OTG register ********************/
#define GNPTXFSIZ_NPTXFSA_Pos (0U)
-#define GNPTXFSIZ_NPTXFSA_Msk (0xFFFFUL << GNPTXFSIZ_NPTXFSA_Pos) // 0x0000FFFF */
-#define GNPTXFSIZ_NPTXFSA GNPTXFSIZ_NPTXFSA_Msk // Nonperiodic transmit RAM start address */
+#define GNPTXFSIZ_NPTXFSA_Msk (0xFFFFUL << GNPTXFSIZ_NPTXFSA_Pos) // 0x0000FFFF
+#define GNPTXFSIZ_NPTXFSA GNPTXFSIZ_NPTXFSA_Msk // Nonperiodic transmit RAM start address
#define GNPTXFSIZ_NPTXFD_Pos (16U)
-#define GNPTXFSIZ_NPTXFD_Msk (0xFFFFUL << GNPTXFSIZ_NPTXFD_Pos) // 0xFFFF0000 */
-#define GNPTXFSIZ_NPTXFD GNPTXFSIZ_NPTXFD_Msk // Nonperiodic TxFIFO depth */
+#define GNPTXFSIZ_NPTXFD_Msk (0xFFFFUL << GNPTXFSIZ_NPTXFD_Pos) // 0xFFFF0000
+#define GNPTXFSIZ_NPTXFD GNPTXFSIZ_NPTXFD_Msk // Nonperiodic TxFIFO depth
#define DIEPTXF0_TX0FSA_Pos (0U)
-#define DIEPTXF0_TX0FSA_Msk (0xFFFFUL << DIEPTXF0_TX0FSA_Pos) // 0x0000FFFF */
-#define DIEPTXF0_TX0FSA DIEPTXF0_TX0FSA_Msk // Endpoint 0 transmit RAM start address */
+#define DIEPTXF0_TX0FSA_Msk (0xFFFFUL << DIEPTXF0_TX0FSA_Pos) // 0x0000FFFF
+#define DIEPTXF0_TX0FSA DIEPTXF0_TX0FSA_Msk // Endpoint 0 transmit RAM start address
#define DIEPTXF0_TX0FD_Pos (16U)
-#define DIEPTXF0_TX0FD_Msk (0xFFFFUL << DIEPTXF0_TX0FD_Pos) // 0xFFFF0000 */
-#define DIEPTXF0_TX0FD DIEPTXF0_TX0FD_Msk // Endpoint 0 TxFIFO depth */
+#define DIEPTXF0_TX0FD_Msk (0xFFFFUL << DIEPTXF0_TX0FD_Pos) // 0xFFFF0000
+#define DIEPTXF0_TX0FD DIEPTXF0_TX0FD_Msk // Endpoint 0 TxFIFO depth
/******************** Bit definition for DVBUSPULSE register ********************/
#define DVBUSPULSE_DVBUSP_Pos (0U)
-#define DVBUSPULSE_DVBUSP_Msk (0xFFFUL << DVBUSPULSE_DVBUSP_Pos) // 0x00000FFF */
-#define DVBUSPULSE_DVBUSP DVBUSPULSE_DVBUSP_Msk // Device VBUS pulsing time */
+#define DVBUSPULSE_DVBUSP_Msk (0xFFFUL << DVBUSPULSE_DVBUSP_Pos) // 0x00000FFF
+#define DVBUSPULSE_DVBUSP DVBUSPULSE_DVBUSP_Msk // Device VBUS pulsing time
/******************** Bit definition for GNPTXSTS register ********************/
#define GNPTXSTS_NPTXFSAV_Pos (0U)
-#define GNPTXSTS_NPTXFSAV_Msk (0xFFFFUL << GNPTXSTS_NPTXFSAV_Pos) // 0x0000FFFF */
-#define GNPTXSTS_NPTXFSAV GNPTXSTS_NPTXFSAV_Msk // Nonperiodic TxFIFO space available */
+#define GNPTXSTS_NPTXFSAV_Msk (0xFFFFUL << GNPTXSTS_NPTXFSAV_Pos) // 0x0000FFFF
+#define GNPTXSTS_NPTXFSAV GNPTXSTS_NPTXFSAV_Msk // Nonperiodic TxFIFO space available
#define GNPTXSTS_NPTQXSAV_Pos (16U)
-#define GNPTXSTS_NPTQXSAV_Msk (0xFFUL << GNPTXSTS_NPTQXSAV_Pos) // 0x00FF0000 */
-#define GNPTXSTS_NPTQXSAV GNPTXSTS_NPTQXSAV_Msk // Nonperiodic transmit request queue space available */
-#define GNPTXSTS_NPTQXSAV_0 (0x01UL << GNPTXSTS_NPTQXSAV_Pos) // 0x00010000 */
-#define GNPTXSTS_NPTQXSAV_1 (0x02UL << GNPTXSTS_NPTQXSAV_Pos) // 0x00020000 */
-#define GNPTXSTS_NPTQXSAV_2 (0x04UL << GNPTXSTS_NPTQXSAV_Pos) // 0x00040000 */
-#define GNPTXSTS_NPTQXSAV_3 (0x08UL << GNPTXSTS_NPTQXSAV_Pos) // 0x00080000 */
-#define GNPTXSTS_NPTQXSAV_4 (0x10UL << GNPTXSTS_NPTQXSAV_Pos) // 0x00100000 */
-#define GNPTXSTS_NPTQXSAV_5 (0x20UL << GNPTXSTS_NPTQXSAV_Pos) // 0x00200000 */
-#define GNPTXSTS_NPTQXSAV_6 (0x40UL << GNPTXSTS_NPTQXSAV_Pos) // 0x00400000 */
-#define GNPTXSTS_NPTQXSAV_7 (0x80UL << GNPTXSTS_NPTQXSAV_Pos) // 0x00800000 */
+#define GNPTXSTS_NPTQXSAV_Msk (0xFFUL << GNPTXSTS_NPTQXSAV_Pos) // 0x00FF0000
+#define GNPTXSTS_NPTQXSAV GNPTXSTS_NPTQXSAV_Msk // Nonperiodic transmit request queue space available
+#define GNPTXSTS_NPTQXSAV_0 (0x01UL << GNPTXSTS_NPTQXSAV_Pos) // 0x00010000
+#define GNPTXSTS_NPTQXSAV_1 (0x02UL << GNPTXSTS_NPTQXSAV_Pos) // 0x00020000
+#define GNPTXSTS_NPTQXSAV_2 (0x04UL << GNPTXSTS_NPTQXSAV_Pos) // 0x00040000
+#define GNPTXSTS_NPTQXSAV_3 (0x08UL << GNPTXSTS_NPTQXSAV_Pos) // 0x00080000
+#define GNPTXSTS_NPTQXSAV_4 (0x10UL << GNPTXSTS_NPTQXSAV_Pos) // 0x00100000
+#define GNPTXSTS_NPTQXSAV_5 (0x20UL << GNPTXSTS_NPTQXSAV_Pos) // 0x00200000
+#define GNPTXSTS_NPTQXSAV_6 (0x40UL << GNPTXSTS_NPTQXSAV_Pos) // 0x00400000
+#define GNPTXSTS_NPTQXSAV_7 (0x80UL << GNPTXSTS_NPTQXSAV_Pos) // 0x00800000
#define GNPTXSTS_NPTXQTOP_Pos (24U)
-#define GNPTXSTS_NPTXQTOP_Msk (0x7FUL << GNPTXSTS_NPTXQTOP_Pos) // 0x7F000000 */
-#define GNPTXSTS_NPTXQTOP GNPTXSTS_NPTXQTOP_Msk // Top of the nonperiodic transmit request queue */
-#define GNPTXSTS_NPTXQTOP_0 (0x01UL << GNPTXSTS_NPTXQTOP_Pos) // 0x01000000 */
-#define GNPTXSTS_NPTXQTOP_1 (0x02UL << GNPTXSTS_NPTXQTOP_Pos) // 0x02000000 */
-#define GNPTXSTS_NPTXQTOP_2 (0x04UL << GNPTXSTS_NPTXQTOP_Pos) // 0x04000000 */
-#define GNPTXSTS_NPTXQTOP_3 (0x08UL << GNPTXSTS_NPTXQTOP_Pos) // 0x08000000 */
-#define GNPTXSTS_NPTXQTOP_4 (0x10UL << GNPTXSTS_NPTXQTOP_Pos) // 0x10000000 */
-#define GNPTXSTS_NPTXQTOP_5 (0x20UL << GNPTXSTS_NPTXQTOP_Pos) // 0x20000000 */
-#define GNPTXSTS_NPTXQTOP_6 (0x40UL << GNPTXSTS_NPTXQTOP_Pos) // 0x40000000 */
+#define GNPTXSTS_NPTXQTOP_Msk (0x7FUL << GNPTXSTS_NPTXQTOP_Pos) // 0x7F000000
+#define GNPTXSTS_NPTXQTOP GNPTXSTS_NPTXQTOP_Msk // Top of the nonperiodic transmit request queue
+#define GNPTXSTS_NPTXQTOP_0 (0x01UL << GNPTXSTS_NPTXQTOP_Pos) // 0x01000000
+#define GNPTXSTS_NPTXQTOP_1 (0x02UL << GNPTXSTS_NPTXQTOP_Pos) // 0x02000000
+#define GNPTXSTS_NPTXQTOP_2 (0x04UL << GNPTXSTS_NPTXQTOP_Pos) // 0x04000000
+#define GNPTXSTS_NPTXQTOP_3 (0x08UL << GNPTXSTS_NPTXQTOP_Pos) // 0x08000000
+#define GNPTXSTS_NPTXQTOP_4 (0x10UL << GNPTXSTS_NPTXQTOP_Pos) // 0x10000000
+#define GNPTXSTS_NPTXQTOP_5 (0x20UL << GNPTXSTS_NPTXQTOP_Pos) // 0x20000000
+#define GNPTXSTS_NPTXQTOP_6 (0x40UL << GNPTXSTS_NPTXQTOP_Pos) // 0x40000000
/******************** Bit definition for DTHRCTL register ********************/
#define DTHRCTL_NONISOTHREN_Pos (0U)
-#define DTHRCTL_NONISOTHREN_Msk (0x1UL << DTHRCTL_NONISOTHREN_Pos) // 0x00000001 */
-#define DTHRCTL_NONISOTHREN DTHRCTL_NONISOTHREN_Msk // Nonisochronous IN endpoints threshold enable */
+#define DTHRCTL_NONISOTHREN_Msk (0x1UL << DTHRCTL_NONISOTHREN_Pos) // 0x00000001
+#define DTHRCTL_NONISOTHREN DTHRCTL_NONISOTHREN_Msk // Nonisochronous IN endpoints threshold enable
#define DTHRCTL_ISOTHREN_Pos (1U)
-#define DTHRCTL_ISOTHREN_Msk (0x1UL << DTHRCTL_ISOTHREN_Pos) // 0x00000002 */
-#define DTHRCTL_ISOTHREN DTHRCTL_ISOTHREN_Msk // ISO IN endpoint threshold enable */
+#define DTHRCTL_ISOTHREN_Msk (0x1UL << DTHRCTL_ISOTHREN_Pos) // 0x00000002
+#define DTHRCTL_ISOTHREN DTHRCTL_ISOTHREN_Msk // ISO IN endpoint threshold enable
#define DTHRCTL_TXTHRLEN_Pos (2U)
-#define DTHRCTL_TXTHRLEN_Msk (0x1FFUL << DTHRCTL_TXTHRLEN_Pos) // 0x000007FC */
-#define DTHRCTL_TXTHRLEN DTHRCTL_TXTHRLEN_Msk // Transmit threshold length */
-#define DTHRCTL_TXTHRLEN_0 (0x001UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000004 */
-#define DTHRCTL_TXTHRLEN_1 (0x002UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000008 */
-#define DTHRCTL_TXTHRLEN_2 (0x004UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000010 */
-#define DTHRCTL_TXTHRLEN_3 (0x008UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000020 */
-#define DTHRCTL_TXTHRLEN_4 (0x010UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000040 */
-#define DTHRCTL_TXTHRLEN_5 (0x020UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000080 */
-#define DTHRCTL_TXTHRLEN_6 (0x040UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000100 */
-#define DTHRCTL_TXTHRLEN_7 (0x080UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000200 */
-#define DTHRCTL_TXTHRLEN_8 (0x100UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000400 */
+#define DTHRCTL_TXTHRLEN_Msk (0x1FFUL << DTHRCTL_TXTHRLEN_Pos) // 0x000007FC
+#define DTHRCTL_TXTHRLEN DTHRCTL_TXTHRLEN_Msk // Transmit threshold length
+#define DTHRCTL_TXTHRLEN_0 (0x001UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000004
+#define DTHRCTL_TXTHRLEN_1 (0x002UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000008
+#define DTHRCTL_TXTHRLEN_2 (0x004UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000010
+#define DTHRCTL_TXTHRLEN_3 (0x008UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000020
+#define DTHRCTL_TXTHRLEN_4 (0x010UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000040
+#define DTHRCTL_TXTHRLEN_5 (0x020UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000080
+#define DTHRCTL_TXTHRLEN_6 (0x040UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000100
+#define DTHRCTL_TXTHRLEN_7 (0x080UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000200
+#define DTHRCTL_TXTHRLEN_8 (0x100UL << DTHRCTL_TXTHRLEN_Pos) // 0x00000400
#define DTHRCTL_RXTHREN_Pos (16U)
-#define DTHRCTL_RXTHREN_Msk (0x1UL << DTHRCTL_RXTHREN_Pos) // 0x00010000 */
-#define DTHRCTL_RXTHREN DTHRCTL_RXTHREN_Msk // Receive threshold enable */
+#define DTHRCTL_RXTHREN_Msk (0x1UL << DTHRCTL_RXTHREN_Pos) // 0x00010000
+#define DTHRCTL_RXTHREN DTHRCTL_RXTHREN_Msk // Receive threshold enable
#define DTHRCTL_RXTHRLEN_Pos (17U)
-#define DTHRCTL_RXTHRLEN_Msk (0x1FFUL << DTHRCTL_RXTHRLEN_Pos) // 0x03FE0000 */
-#define DTHRCTL_RXTHRLEN DTHRCTL_RXTHRLEN_Msk // Receive threshold length */
-#define DTHRCTL_RXTHRLEN_0 (0x001UL << DTHRCTL_RXTHRLEN_Pos) // 0x00020000 */
-#define DTHRCTL_RXTHRLEN_1 (0x002UL << DTHRCTL_RXTHRLEN_Pos) // 0x00040000 */
-#define DTHRCTL_RXTHRLEN_2 (0x004UL << DTHRCTL_RXTHRLEN_Pos) // 0x00080000 */
-#define DTHRCTL_RXTHRLEN_3 (0x008UL << DTHRCTL_RXTHRLEN_Pos) // 0x00100000 */
-#define DTHRCTL_RXTHRLEN_4 (0x010UL << DTHRCTL_RXTHRLEN_Pos) // 0x00200000 */
-#define DTHRCTL_RXTHRLEN_5 (0x020UL << DTHRCTL_RXTHRLEN_Pos) // 0x00400000 */
-#define DTHRCTL_RXTHRLEN_6 (0x040UL << DTHRCTL_RXTHRLEN_Pos) // 0x00800000 */
-#define DTHRCTL_RXTHRLEN_7 (0x080UL << DTHRCTL_RXTHRLEN_Pos) // 0x01000000 */
-#define DTHRCTL_RXTHRLEN_8 (0x100UL << DTHRCTL_RXTHRLEN_Pos) // 0x02000000 */
+#define DTHRCTL_RXTHRLEN_Msk (0x1FFUL << DTHRCTL_RXTHRLEN_Pos) // 0x03FE0000
+#define DTHRCTL_RXTHRLEN DTHRCTL_RXTHRLEN_Msk // Receive threshold length
+#define DTHRCTL_RXTHRLEN_0 (0x001UL << DTHRCTL_RXTHRLEN_Pos) // 0x00020000
+#define DTHRCTL_RXTHRLEN_1 (0x002UL << DTHRCTL_RXTHRLEN_Pos) // 0x00040000
+#define DTHRCTL_RXTHRLEN_2 (0x004UL << DTHRCTL_RXTHRLEN_Pos) // 0x00080000
+#define DTHRCTL_RXTHRLEN_3 (0x008UL << DTHRCTL_RXTHRLEN_Pos) // 0x00100000
+#define DTHRCTL_RXTHRLEN_4 (0x010UL << DTHRCTL_RXTHRLEN_Pos) // 0x00200000
+#define DTHRCTL_RXTHRLEN_5 (0x020UL << DTHRCTL_RXTHRLEN_Pos) // 0x00400000
+#define DTHRCTL_RXTHRLEN_6 (0x040UL << DTHRCTL_RXTHRLEN_Pos) // 0x00800000
+#define DTHRCTL_RXTHRLEN_7 (0x080UL << DTHRCTL_RXTHRLEN_Pos) // 0x01000000
+#define DTHRCTL_RXTHRLEN_8 (0x100UL << DTHRCTL_RXTHRLEN_Pos) // 0x02000000
#define DTHRCTL_ARPEN_Pos (27U)
-#define DTHRCTL_ARPEN_Msk (0x1UL << DTHRCTL_ARPEN_Pos) // 0x08000000 */
-#define DTHRCTL_ARPEN DTHRCTL_ARPEN_Msk // Arbiter parking enable */
+#define DTHRCTL_ARPEN_Msk (0x1UL << DTHRCTL_ARPEN_Pos) // 0x08000000
+#define DTHRCTL_ARPEN DTHRCTL_ARPEN_Msk // Arbiter parking enable
/******************** Bit definition for DIEPEMPMSK register ********************/
#define DIEPEMPMSK_INEPTXFEM_Pos (0U)
-#define DIEPEMPMSK_INEPTXFEM_Msk (0xFFFFUL << DIEPEMPMSK_INEPTXFEM_Pos) // 0x0000FFFF */
-#define DIEPEMPMSK_INEPTXFEM DIEPEMPMSK_INEPTXFEM_Msk // IN EP Tx FIFO empty interrupt mask bits */
+#define DIEPEMPMSK_INEPTXFEM_Msk (0xFFFFUL << DIEPEMPMSK_INEPTXFEM_Pos) // 0x0000FFFF
+#define DIEPEMPMSK_INEPTXFEM DIEPEMPMSK_INEPTXFEM_Msk // IN EP Tx FIFO empty interrupt mask bits
/******************** Bit definition for DEACHINT register ********************/
#define DEACHINT_IEP1INT_Pos (1U)
-#define DEACHINT_IEP1INT_Msk (0x1UL << DEACHINT_IEP1INT_Pos) // 0x00000002 */
-#define DEACHINT_IEP1INT DEACHINT_IEP1INT_Msk // IN endpoint 1interrupt bit */
+#define DEACHINT_IEP1INT_Msk (0x1UL << DEACHINT_IEP1INT_Pos) // 0x00000002
+#define DEACHINT_IEP1INT DEACHINT_IEP1INT_Msk // IN endpoint 1interrupt bit
#define DEACHINT_OEP1INT_Pos (17U)
-#define DEACHINT_OEP1INT_Msk (0x1UL << DEACHINT_OEP1INT_Pos) // 0x00020000 */
-#define DEACHINT_OEP1INT DEACHINT_OEP1INT_Msk // OUT endpoint 1 interrupt bit */
+#define DEACHINT_OEP1INT_Msk (0x1UL << DEACHINT_OEP1INT_Pos) // 0x00020000
+#define DEACHINT_OEP1INT DEACHINT_OEP1INT_Msk // OUT endpoint 1 interrupt bit
/******************** Bit definition for GCCFG register ********************/
#define STM32_GCCFG_DCDET_Pos (0U)
-#define STM32_GCCFG_DCDET_Msk (0x1UL << STM32_GCCFG_DCDET_Pos) // 0x00000001 */
-#define STM32_GCCFG_DCDET STM32_GCCFG_DCDET_Msk // Data contact detection (DCD) status */
+#define STM32_GCCFG_DCDET_Msk (0x1UL << STM32_GCCFG_DCDET_Pos) // 0x00000001
+#define STM32_GCCFG_DCDET STM32_GCCFG_DCDET_Msk // Data contact detection (DCD) status
+
#define STM32_GCCFG_PDET_Pos (1U)
-#define STM32_GCCFG_PDET_Msk (0x1UL << STM32_GCCFG_PDET_Pos) // 0x00000002 */
-#define STM32_GCCFG_PDET STM32_GCCFG_PDET_Msk // Primary detection (PD) status */
+#define STM32_GCCFG_PDET_Msk (0x1UL << STM32_GCCFG_PDET_Pos) // 0x00000002
+#define STM32_GCCFG_PDET STM32_GCCFG_PDET_Msk // Primary detection (PD) status
+
#define STM32_GCCFG_SDET_Pos (2U)
-#define STM32_GCCFG_SDET_Msk (0x1UL << STM32_GCCFG_SDET_Pos) // 0x00000004 */
-#define STM32_GCCFG_SDET STM32_GCCFG_SDET_Msk // Secondary detection (SD) status */
+#define STM32_GCCFG_SDET_Msk (0x1UL << STM32_GCCFG_SDET_Pos) // 0x00000004
+#define STM32_GCCFG_SDET STM32_GCCFG_SDET_Msk // Secondary detection (SD) status
+
#define STM32_GCCFG_PS2DET_Pos (3U)
-#define STM32_GCCFG_PS2DET_Msk (0x1UL << STM32_GCCFG_PS2DET_Pos) // 0x00000008 */
-#define STM32_GCCFG_PS2DET STM32_GCCFG_PS2DET_Msk // DM pull-up detection status */
+#define STM32_GCCFG_PS2DET_Msk (0x1UL << STM32_GCCFG_PS2DET_Pos) // 0x00000008
+#define STM32_GCCFG_PS2DET STM32_GCCFG_PS2DET_Msk // DM pull-up detection status
+
#define STM32_GCCFG_PWRDWN_Pos (16U)
-#define STM32_GCCFG_PWRDWN_Msk (0x1UL << STM32_GCCFG_PWRDWN_Pos) // 0x00010000 */
-#define STM32_GCCFG_PWRDWN STM32_GCCFG_PWRDWN_Msk // Power down */
+#define STM32_GCCFG_PWRDWN_Msk (0x1UL << STM32_GCCFG_PWRDWN_Pos) // 0x00010000
+#define STM32_GCCFG_PWRDWN STM32_GCCFG_PWRDWN_Msk // Power down
+
#define STM32_GCCFG_BCDEN_Pos (17U)
-#define STM32_GCCFG_BCDEN_Msk (0x1UL << STM32_GCCFG_BCDEN_Pos) // 0x00020000 */
-#define STM32_GCCFG_BCDEN STM32_GCCFG_BCDEN_Msk // Battery charging detector (BCD) enable */
+#define STM32_GCCFG_BCDEN_Msk (0x1UL << STM32_GCCFG_BCDEN_Pos) // 0x00020000
+#define STM32_GCCFG_BCDEN STM32_GCCFG_BCDEN_Msk // Battery charging detector (BCD) enable
+
#define STM32_GCCFG_DCDEN_Pos (18U)
-#define STM32_GCCFG_DCDEN_Msk (0x1UL << STM32_GCCFG_DCDEN_Pos) // 0x00040000 */
+#define STM32_GCCFG_DCDEN_Msk (0x1UL << STM32_GCCFG_DCDEN_Pos) // 0x00040000
#define STM32_GCCFG_DCDEN STM32_GCCFG_DCDEN_Msk // Data contact detection (DCD) mode enable*/
+
#define STM32_GCCFG_PDEN_Pos (19U)
-#define STM32_GCCFG_PDEN_Msk (0x1UL << STM32_GCCFG_PDEN_Pos) // 0x00080000 */
+#define STM32_GCCFG_PDEN_Msk (0x1UL << STM32_GCCFG_PDEN_Pos) // 0x00080000
#define STM32_GCCFG_PDEN STM32_GCCFG_PDEN_Msk // Primary detection (PD) mode enable*/
+
#define STM32_GCCFG_SDEN_Pos (20U)
-#define STM32_GCCFG_SDEN_Msk (0x1UL << STM32_GCCFG_SDEN_Pos) // 0x00100000 */
-#define STM32_GCCFG_SDEN STM32_GCCFG_SDEN_Msk // Secondary detection (SD) mode enable */
+#define STM32_GCCFG_SDEN_Msk (0x1UL << STM32_GCCFG_SDEN_Pos) // 0x00100000
+#define STM32_GCCFG_SDEN STM32_GCCFG_SDEN_Msk // Secondary detection (SD) mode enable
+
#define STM32_GCCFG_VBDEN_Pos (21U)
-#define STM32_GCCFG_VBDEN_Msk (0x1UL << STM32_GCCFG_VBDEN_Pos) // 0x00200000 */
-#define STM32_GCCFG_VBDEN STM32_GCCFG_VBDEN_Msk // VBUS mode enable */
+#define STM32_GCCFG_VBDEN_Msk (0x1UL << STM32_GCCFG_VBDEN_Pos) // 0x00200000
+#define STM32_GCCFG_VBDEN STM32_GCCFG_VBDEN_Msk // VBUS mode enable
+
#define STM32_GCCFG_OTGIDEN_Pos (22U)
-#define STM32_GCCFG_OTGIDEN_Msk (0x1UL << STM32_GCCFG_OTGIDEN_Pos) // 0x00400000 */
-#define STM32_GCCFG_OTGIDEN STM32_GCCFG_OTGIDEN_Msk // OTG Id enable */
+#define STM32_GCCFG_OTGIDEN_Msk (0x1UL << STM32_GCCFG_OTGIDEN_Pos) // 0x00400000
+#define STM32_GCCFG_OTGIDEN STM32_GCCFG_OTGIDEN_Msk // OTG Id enable
+
#define STM32_GCCFG_PHYHSEN_Pos (23U)
-#define STM32_GCCFG_PHYHSEN_Msk (0x1UL << STM32_GCCFG_PHYHSEN_Pos) // 0x00800000 */
-#define STM32_GCCFG_PHYHSEN STM32_GCCFG_PHYHSEN_Msk // HS PHY enable */
+#define STM32_GCCFG_PHYHSEN_Msk (0x1UL << STM32_GCCFG_PHYHSEN_Pos) // 0x00800000
+#define STM32_GCCFG_PHYHSEN STM32_GCCFG_PHYHSEN_Msk // HS PHY enable
+
+// TODO stm32u5a5 SDEN is 22nd bit, conflict with 20th bit above
+//#define STM32_GCCFG_SDEN_Pos (22U)
+//#define STM32_GCCFG_SDEN_Msk (0x1U << STM32_GCCFG_SDEN_Pos) // 0x00400000
+//#define STM32_GCCFG_SDEN STM32_GCCFG_SDEN_Msk // Secondary detection (PD) mode enable
+
+// TODO stm32u5a5 VBVALOVA is 23rd bit, conflict with PHYHSEN bit above
+#define STM32_GCCFG_VBVALOVAL_Pos (23U)
+#define STM32_GCCFG_VBVALOVAL_Msk (0x1U << STM32_GCCFG_VBVALOVAL_Pos) // 0x00800000
+#define STM32_GCCFG_VBVALOVAL STM32_GCCFG_VBVALOVAL_Msk // Value of VBUSVLDEXT0 femtoPHY input
+
+#define STM32_GCCFG_VBVALEXTOEN_Pos (24U)
+#define STM32_GCCFG_VBVALEXTOEN_Msk (0x1U << STM32_GCCFG_VBVALEXTOEN_Pos) // 0x01000000
+#define STM32_GCCFG_VBVALEXTOEN STM32_GCCFG_VBVALEXTOEN_Msk // Enables of VBUSVLDEXT0 femtoPHY input override
+
+#define STM32_GCCFG_PULLDOWNEN_Pos (25U)
+#define STM32_GCCFG_PULLDOWNEN_Msk (0x1U << STM32_GCCFG_PULLDOWNEN_Pos) // 0x02000000
+#define STM32_GCCFG_PULLDOWNEN STM32_GCCFG_PULLDOWNEN_Msk // Enables of femtoPHY pulldown resistors, used when ID PAD is disabled
+
/******************** Bit definition for DEACHINTMSK register ********************/
#define DEACHINTMSK_IEP1INTM_Pos (1U)
-#define DEACHINTMSK_IEP1INTM_Msk (0x1UL << DEACHINTMSK_IEP1INTM_Pos) // 0x00000002 */
-#define DEACHINTMSK_IEP1INTM DEACHINTMSK_IEP1INTM_Msk // IN Endpoint 1 interrupt mask bit */
+#define DEACHINTMSK_IEP1INTM_Msk (0x1UL << DEACHINTMSK_IEP1INTM_Pos) // 0x00000002
+#define DEACHINTMSK_IEP1INTM DEACHINTMSK_IEP1INTM_Msk // IN Endpoint 1 interrupt mask bit
#define DEACHINTMSK_OEP1INTM_Pos (17U)
-#define DEACHINTMSK_OEP1INTM_Msk (0x1UL << DEACHINTMSK_OEP1INTM_Pos) // 0x00020000 */
-#define DEACHINTMSK_OEP1INTM DEACHINTMSK_OEP1INTM_Msk // OUT Endpoint 1 interrupt mask bit */
+#define DEACHINTMSK_OEP1INTM_Msk (0x1UL << DEACHINTMSK_OEP1INTM_Pos) // 0x00020000
+#define DEACHINTMSK_OEP1INTM DEACHINTMSK_OEP1INTM_Msk // OUT Endpoint 1 interrupt mask bit
/******************** Bit definition for CID register ********************/
#define CID_PRODUCT_ID_Pos (0U)
-#define CID_PRODUCT_ID_Msk (0xFFFFFFFFUL << CID_PRODUCT_ID_Pos) // 0xFFFFFFFF */
-#define CID_PRODUCT_ID CID_PRODUCT_ID_Msk // Product ID field */
+#define CID_PRODUCT_ID_Msk (0xFFFFFFFFUL << CID_PRODUCT_ID_Pos) // 0xFFFFFFFF
+#define CID_PRODUCT_ID CID_PRODUCT_ID_Msk // Product ID field
/******************** Bit definition for GLPMCFG register ********************/
#define GLPMCFG_LPMEN_Pos (0U)
-#define GLPMCFG_LPMEN_Msk (0x1UL << GLPMCFG_LPMEN_Pos) // 0x00000001 */
-#define GLPMCFG_LPMEN GLPMCFG_LPMEN_Msk // LPM support enable */
+#define GLPMCFG_LPMEN_Msk (0x1UL << GLPMCFG_LPMEN_Pos) // 0x00000001
+#define GLPMCFG_LPMEN GLPMCFG_LPMEN_Msk // LPM support enable
#define GLPMCFG_LPMACK_Pos (1U)
-#define GLPMCFG_LPMACK_Msk (0x1UL << GLPMCFG_LPMACK_Pos) // 0x00000002 */
-#define GLPMCFG_LPMACK GLPMCFG_LPMACK_Msk // LPM Token acknowledge enable */
+#define GLPMCFG_LPMACK_Msk (0x1UL << GLPMCFG_LPMACK_Pos) // 0x00000002
+#define GLPMCFG_LPMACK GLPMCFG_LPMACK_Msk // LPM Token acknowledge enable
#define GLPMCFG_BESL_Pos (2U)
-#define GLPMCFG_BESL_Msk (0xFUL << GLPMCFG_BESL_Pos) // 0x0000003C */
-#define GLPMCFG_BESL GLPMCFG_BESL_Msk // BESL value received with last ACKed LPM Token */
+#define GLPMCFG_BESL_Msk (0xFUL << GLPMCFG_BESL_Pos) // 0x0000003C
+#define GLPMCFG_BESL GLPMCFG_BESL_Msk // BESL value received with last ACKed LPM Token
#define GLPMCFG_REMWAKE_Pos (6U)
-#define GLPMCFG_REMWAKE_Msk (0x1UL << GLPMCFG_REMWAKE_Pos) // 0x00000040 */
-#define GLPMCFG_REMWAKE GLPMCFG_REMWAKE_Msk // bRemoteWake value received with last ACKed LPM Token */
+#define GLPMCFG_REMWAKE_Msk (0x1UL << GLPMCFG_REMWAKE_Pos) // 0x00000040
+#define GLPMCFG_REMWAKE GLPMCFG_REMWAKE_Msk // bRemoteWake value received with last ACKed LPM Token
#define GLPMCFG_L1SSEN_Pos (7U)
-#define GLPMCFG_L1SSEN_Msk (0x1UL << GLPMCFG_L1SSEN_Pos) // 0x00000080 */
-#define GLPMCFG_L1SSEN GLPMCFG_L1SSEN_Msk // L1 shallow sleep enable */
+#define GLPMCFG_L1SSEN_Msk (0x1UL << GLPMCFG_L1SSEN_Pos) // 0x00000080
+#define GLPMCFG_L1SSEN GLPMCFG_L1SSEN_Msk // L1 shallow sleep enable
#define GLPMCFG_BESLTHRS_Pos (8U)
-#define GLPMCFG_BESLTHRS_Msk (0xFUL << GLPMCFG_BESLTHRS_Pos) // 0x00000F00 */
-#define GLPMCFG_BESLTHRS GLPMCFG_BESLTHRS_Msk // BESL threshold */
+#define GLPMCFG_BESLTHRS_Msk (0xFUL << GLPMCFG_BESLTHRS_Pos) // 0x00000F00
+#define GLPMCFG_BESLTHRS GLPMCFG_BESLTHRS_Msk // BESL threshold
#define GLPMCFG_L1DSEN_Pos (12U)
-#define GLPMCFG_L1DSEN_Msk (0x1UL << GLPMCFG_L1DSEN_Pos) // 0x00001000 */
-#define GLPMCFG_L1DSEN GLPMCFG_L1DSEN_Msk // L1 deep sleep enable */
+#define GLPMCFG_L1DSEN_Msk (0x1UL << GLPMCFG_L1DSEN_Pos) // 0x00001000
+#define GLPMCFG_L1DSEN GLPMCFG_L1DSEN_Msk // L1 deep sleep enable
#define GLPMCFG_LPMRSP_Pos (13U)
-#define GLPMCFG_LPMRSP_Msk (0x3UL << GLPMCFG_LPMRSP_Pos) // 0x00006000 */
-#define GLPMCFG_LPMRSP GLPMCFG_LPMRSP_Msk // LPM response */
+#define GLPMCFG_LPMRSP_Msk (0x3UL << GLPMCFG_LPMRSP_Pos) // 0x00006000
+#define GLPMCFG_LPMRSP GLPMCFG_LPMRSP_Msk // LPM response
#define GLPMCFG_SLPSTS_Pos (15U)
-#define GLPMCFG_SLPSTS_Msk (0x1UL << GLPMCFG_SLPSTS_Pos) // 0x00008000 */
-#define GLPMCFG_SLPSTS GLPMCFG_SLPSTS_Msk // Port sleep status */
+#define GLPMCFG_SLPSTS_Msk (0x1UL << GLPMCFG_SLPSTS_Pos) // 0x00008000
+#define GLPMCFG_SLPSTS GLPMCFG_SLPSTS_Msk // Port sleep status
#define GLPMCFG_L1RSMOK_Pos (16U)
-#define GLPMCFG_L1RSMOK_Msk (0x1UL << GLPMCFG_L1RSMOK_Pos) // 0x00010000 */
-#define GLPMCFG_L1RSMOK GLPMCFG_L1RSMOK_Msk // Sleep State Resume OK */
+#define GLPMCFG_L1RSMOK_Msk (0x1UL << GLPMCFG_L1RSMOK_Pos) // 0x00010000
+#define GLPMCFG_L1RSMOK GLPMCFG_L1RSMOK_Msk // Sleep State Resume OK
#define GLPMCFG_LPMCHIDX_Pos (17U)
-#define GLPMCFG_LPMCHIDX_Msk (0xFUL << GLPMCFG_LPMCHIDX_Pos) // 0x001E0000 */
-#define GLPMCFG_LPMCHIDX GLPMCFG_LPMCHIDX_Msk // LPM Channel Index */
+#define GLPMCFG_LPMCHIDX_Msk (0xFUL << GLPMCFG_LPMCHIDX_Pos) // 0x001E0000
+#define GLPMCFG_LPMCHIDX GLPMCFG_LPMCHIDX_Msk // LPM Channel Index
#define GLPMCFG_LPMRCNT_Pos (21U)
-#define GLPMCFG_LPMRCNT_Msk (0x7UL << GLPMCFG_LPMRCNT_Pos) // 0x00E00000 */
-#define GLPMCFG_LPMRCNT GLPMCFG_LPMRCNT_Msk // LPM retry count */
+#define GLPMCFG_LPMRCNT_Msk (0x7UL << GLPMCFG_LPMRCNT_Pos) // 0x00E00000
+#define GLPMCFG_LPMRCNT GLPMCFG_LPMRCNT_Msk // LPM retry count
#define GLPMCFG_SNDLPM_Pos (24U)
-#define GLPMCFG_SNDLPM_Msk (0x1UL << GLPMCFG_SNDLPM_Pos) // 0x01000000 */
-#define GLPMCFG_SNDLPM GLPMCFG_SNDLPM_Msk // Send LPM transaction */
+#define GLPMCFG_SNDLPM_Msk (0x1UL << GLPMCFG_SNDLPM_Pos) // 0x01000000
+#define GLPMCFG_SNDLPM GLPMCFG_SNDLPM_Msk // Send LPM transaction
#define GLPMCFG_LPMRCNTSTS_Pos (25U)
-#define GLPMCFG_LPMRCNTSTS_Msk (0x7UL << GLPMCFG_LPMRCNTSTS_Pos) // 0x0E000000 */
-#define GLPMCFG_LPMRCNTSTS GLPMCFG_LPMRCNTSTS_Msk // LPM retry count status */
+#define GLPMCFG_LPMRCNTSTS_Msk (0x7UL << GLPMCFG_LPMRCNTSTS_Pos) // 0x0E000000
+#define GLPMCFG_LPMRCNTSTS GLPMCFG_LPMRCNTSTS_Msk // LPM retry count status
#define GLPMCFG_ENBESL_Pos (28U)
-#define GLPMCFG_ENBESL_Msk (0x1UL << GLPMCFG_ENBESL_Pos) // 0x10000000 */
-#define GLPMCFG_ENBESL GLPMCFG_ENBESL_Msk // Enable best effort service latency */
+#define GLPMCFG_ENBESL_Msk (0x1UL << GLPMCFG_ENBESL_Pos) // 0x10000000
+#define GLPMCFG_ENBESL GLPMCFG_ENBESL_Msk // Enable best effort service latency
/******************** Bit definition for DIEPEACHMSK1 register ********************/
#define DIEPEACHMSK1_XFRCM_Pos (0U)
-#define DIEPEACHMSK1_XFRCM_Msk (0x1UL << DIEPEACHMSK1_XFRCM_Pos) // 0x00000001 */
-#define DIEPEACHMSK1_XFRCM DIEPEACHMSK1_XFRCM_Msk // Transfer completed interrupt mask */
+#define DIEPEACHMSK1_XFRCM_Msk (0x1UL << DIEPEACHMSK1_XFRCM_Pos) // 0x00000001
+#define DIEPEACHMSK1_XFRCM DIEPEACHMSK1_XFRCM_Msk // Transfer completed interrupt mask
#define DIEPEACHMSK1_EPDM_Pos (1U)
-#define DIEPEACHMSK1_EPDM_Msk (0x1UL << DIEPEACHMSK1_EPDM_Pos) // 0x00000002 */
-#define DIEPEACHMSK1_EPDM DIEPEACHMSK1_EPDM_Msk // Endpoint disabled interrupt mask */
+#define DIEPEACHMSK1_EPDM_Msk (0x1UL << DIEPEACHMSK1_EPDM_Pos) // 0x00000002
+#define DIEPEACHMSK1_EPDM DIEPEACHMSK1_EPDM_Msk // Endpoint disabled interrupt mask
#define DIEPEACHMSK1_TOM_Pos (3U)
-#define DIEPEACHMSK1_TOM_Msk (0x1UL << DIEPEACHMSK1_TOM_Pos) // 0x00000008 */
-#define DIEPEACHMSK1_TOM DIEPEACHMSK1_TOM_Msk // Timeout condition mask (nonisochronous endpoints) */
+#define DIEPEACHMSK1_TOM_Msk (0x1UL << DIEPEACHMSK1_TOM_Pos) // 0x00000008
+#define DIEPEACHMSK1_TOM DIEPEACHMSK1_TOM_Msk // Timeout condition mask (nonisochronous endpoints)
#define DIEPEACHMSK1_ITTXFEMSK_Pos (4U)
-#define DIEPEACHMSK1_ITTXFEMSK_Msk (0x1UL << DIEPEACHMSK1_ITTXFEMSK_Pos) // 0x00000010 */
-#define DIEPEACHMSK1_ITTXFEMSK DIEPEACHMSK1_ITTXFEMSK_Msk // IN token received when TxFIFO empty mask */
+#define DIEPEACHMSK1_ITTXFEMSK_Msk (0x1UL << DIEPEACHMSK1_ITTXFEMSK_Pos) // 0x00000010
+#define DIEPEACHMSK1_ITTXFEMSK DIEPEACHMSK1_ITTXFEMSK_Msk // IN token received when TxFIFO empty mask
#define DIEPEACHMSK1_INEPNMM_Pos (5U)
-#define DIEPEACHMSK1_INEPNMM_Msk (0x1UL << DIEPEACHMSK1_INEPNMM_Pos) // 0x00000020 */
-#define DIEPEACHMSK1_INEPNMM DIEPEACHMSK1_INEPNMM_Msk // IN token received with EP mismatch mask */
+#define DIEPEACHMSK1_INEPNMM_Msk (0x1UL << DIEPEACHMSK1_INEPNMM_Pos) // 0x00000020
+#define DIEPEACHMSK1_INEPNMM DIEPEACHMSK1_INEPNMM_Msk // IN token received with EP mismatch mask
#define DIEPEACHMSK1_INEPNEM_Pos (6U)
-#define DIEPEACHMSK1_INEPNEM_Msk (0x1UL << DIEPEACHMSK1_INEPNEM_Pos) // 0x00000040 */
-#define DIEPEACHMSK1_INEPNEM DIEPEACHMSK1_INEPNEM_Msk // IN endpoint NAK effective mask */
+#define DIEPEACHMSK1_INEPNEM_Msk (0x1UL << DIEPEACHMSK1_INEPNEM_Pos) // 0x00000040
+#define DIEPEACHMSK1_INEPNEM DIEPEACHMSK1_INEPNEM_Msk // IN endpoint NAK effective mask
#define DIEPEACHMSK1_TXFURM_Pos (8U)
-#define DIEPEACHMSK1_TXFURM_Msk (0x1UL << DIEPEACHMSK1_TXFURM_Pos) // 0x00000100 */
-#define DIEPEACHMSK1_TXFURM DIEPEACHMSK1_TXFURM_Msk // FIFO underrun mask */
+#define DIEPEACHMSK1_TXFURM_Msk (0x1UL << DIEPEACHMSK1_TXFURM_Pos) // 0x00000100
+#define DIEPEACHMSK1_TXFURM DIEPEACHMSK1_TXFURM_Msk // FIFO underrun mask
#define DIEPEACHMSK1_BIM_Pos (9U)
-#define DIEPEACHMSK1_BIM_Msk (0x1UL << DIEPEACHMSK1_BIM_Pos) // 0x00000200 */
-#define DIEPEACHMSK1_BIM DIEPEACHMSK1_BIM_Msk // BNA interrupt mask */
+#define DIEPEACHMSK1_BIM_Msk (0x1UL << DIEPEACHMSK1_BIM_Pos) // 0x00000200
+#define DIEPEACHMSK1_BIM DIEPEACHMSK1_BIM_Msk // BNA interrupt mask
#define DIEPEACHMSK1_NAKM_Pos (13U)
-#define DIEPEACHMSK1_NAKM_Msk (0x1UL << DIEPEACHMSK1_NAKM_Pos) // 0x00002000 */
-#define DIEPEACHMSK1_NAKM DIEPEACHMSK1_NAKM_Msk // NAK interrupt mask */
+#define DIEPEACHMSK1_NAKM_Msk (0x1UL << DIEPEACHMSK1_NAKM_Pos) // 0x00002000
+#define DIEPEACHMSK1_NAKM DIEPEACHMSK1_NAKM_Msk // NAK interrupt mask
/******************** Bit definition for HPRT register ********************/
#define HPRT_PCSTS_Pos (0U)
-#define HPRT_PCSTS_Msk (0x1UL << HPRT_PCSTS_Pos) // 0x00000001 */
-#define HPRT_PCSTS HPRT_PCSTS_Msk // Port connect status */
+#define HPRT_PCSTS_Msk (0x1UL << HPRT_PCSTS_Pos) // 0x00000001
+#define HPRT_PCSTS HPRT_PCSTS_Msk // Port connect status
#define HPRT_PCDET_Pos (1U)
-#define HPRT_PCDET_Msk (0x1UL << HPRT_PCDET_Pos) // 0x00000002 */
-#define HPRT_PCDET HPRT_PCDET_Msk // Port connect detected */
+#define HPRT_PCDET_Msk (0x1UL << HPRT_PCDET_Pos) // 0x00000002
+#define HPRT_PCDET HPRT_PCDET_Msk // Port connect detected
#define HPRT_PENA_Pos (2U)
-#define HPRT_PENA_Msk (0x1UL << HPRT_PENA_Pos) // 0x00000004 */
-#define HPRT_PENA HPRT_PENA_Msk // Port enable */
+#define HPRT_PENA_Msk (0x1UL << HPRT_PENA_Pos) // 0x00000004
+#define HPRT_PENA HPRT_PENA_Msk // Port enable
#define HPRT_PENCHNG_Pos (3U)
-#define HPRT_PENCHNG_Msk (0x1UL << HPRT_PENCHNG_Pos) // 0x00000008 */
-#define HPRT_PENCHNG HPRT_PENCHNG_Msk // Port enable/disable change */
+#define HPRT_PENCHNG_Msk (0x1UL << HPRT_PENCHNG_Pos) // 0x00000008
+#define HPRT_PENCHNG HPRT_PENCHNG_Msk // Port enable/disable change
#define HPRT_POCA_Pos (4U)
-#define HPRT_POCA_Msk (0x1UL << HPRT_POCA_Pos) // 0x00000010 */
-#define HPRT_POCA HPRT_POCA_Msk // Port overcurrent active */
+#define HPRT_POCA_Msk (0x1UL << HPRT_POCA_Pos) // 0x00000010
+#define HPRT_POCA HPRT_POCA_Msk // Port overcurrent active
#define HPRT_POCCHNG_Pos (5U)
-#define HPRT_POCCHNG_Msk (0x1UL << HPRT_POCCHNG_Pos) // 0x00000020 */
-#define HPRT_POCCHNG HPRT_POCCHNG_Msk // Port overcurrent change */
+#define HPRT_POCCHNG_Msk (0x1UL << HPRT_POCCHNG_Pos) // 0x00000020
+#define HPRT_POCCHNG HPRT_POCCHNG_Msk // Port overcurrent change
#define HPRT_PRES_Pos (6U)
-#define HPRT_PRES_Msk (0x1UL << HPRT_PRES_Pos) // 0x00000040 */
-#define HPRT_PRES HPRT_PRES_Msk // Port resume */
+#define HPRT_PRES_Msk (0x1UL << HPRT_PRES_Pos) // 0x00000040
+#define HPRT_PRES HPRT_PRES_Msk // Port resume
#define HPRT_PSUSP_Pos (7U)
-#define HPRT_PSUSP_Msk (0x1UL << HPRT_PSUSP_Pos) // 0x00000080 */
-#define HPRT_PSUSP HPRT_PSUSP_Msk // Port suspend */
+#define HPRT_PSUSP_Msk (0x1UL << HPRT_PSUSP_Pos) // 0x00000080
+#define HPRT_PSUSP HPRT_PSUSP_Msk // Port suspend
#define HPRT_PRST_Pos (8U)
-#define HPRT_PRST_Msk (0x1UL << HPRT_PRST_Pos) // 0x00000100 */
-#define HPRT_PRST HPRT_PRST_Msk // Port reset */
+#define HPRT_PRST_Msk (0x1UL << HPRT_PRST_Pos) // 0x00000100
+#define HPRT_PRST HPRT_PRST_Msk // Port reset
#define HPRT_PLSTS_Pos (10U)
-#define HPRT_PLSTS_Msk (0x3UL << HPRT_PLSTS_Pos) // 0x00000C00 */
-#define HPRT_PLSTS HPRT_PLSTS_Msk // Port line status */
-#define HPRT_PLSTS_0 (0x1UL << HPRT_PLSTS_Pos) // 0x00000400 */
-#define HPRT_PLSTS_1 (0x2UL << HPRT_PLSTS_Pos) // 0x00000800 */
+#define HPRT_PLSTS_Msk (0x3UL << HPRT_PLSTS_Pos) // 0x00000C00
+#define HPRT_PLSTS HPRT_PLSTS_Msk // Port line status
+#define HPRT_PLSTS_0 (0x1UL << HPRT_PLSTS_Pos) // 0x00000400
+#define HPRT_PLSTS_1 (0x2UL << HPRT_PLSTS_Pos) // 0x00000800
#define HPRT_PPWR_Pos (12U)
-#define HPRT_PPWR_Msk (0x1UL << HPRT_PPWR_Pos) // 0x00001000 */
-#define HPRT_PPWR HPRT_PPWR_Msk // Port power */
+#define HPRT_PPWR_Msk (0x1UL << HPRT_PPWR_Pos) // 0x00001000
+#define HPRT_PPWR HPRT_PPWR_Msk // Port power
#define HPRT_PTCTL_Pos (13U)
-#define HPRT_PTCTL_Msk (0xFUL << HPRT_PTCTL_Pos) // 0x0001E000 */
-#define HPRT_PTCTL HPRT_PTCTL_Msk // Port test control */
-#define HPRT_PTCTL_0 (0x1UL << HPRT_PTCTL_Pos) // 0x00002000 */
-#define HPRT_PTCTL_1 (0x2UL << HPRT_PTCTL_Pos) // 0x00004000 */
-#define HPRT_PTCTL_2 (0x4UL << HPRT_PTCTL_Pos) // 0x00008000 */
-#define HPRT_PTCTL_3 (0x8UL << HPRT_PTCTL_Pos) // 0x00010000 */
+#define HPRT_PTCTL_Msk (0xFUL << HPRT_PTCTL_Pos) // 0x0001E000
+#define HPRT_PTCTL HPRT_PTCTL_Msk // Port test control
+#define HPRT_PTCTL_0 (0x1UL << HPRT_PTCTL_Pos) // 0x00002000
+#define HPRT_PTCTL_1 (0x2UL << HPRT_PTCTL_Pos) // 0x00004000
+#define HPRT_PTCTL_2 (0x4UL << HPRT_PTCTL_Pos) // 0x00008000
+#define HPRT_PTCTL_3 (0x8UL << HPRT_PTCTL_Pos) // 0x00010000
#define HPRT_PSPD_Pos (17U)
-#define HPRT_PSPD_Msk (0x3UL << HPRT_PSPD_Pos) // 0x00060000 */
-#define HPRT_PSPD HPRT_PSPD_Msk // Port speed */
-#define HPRT_PSPD_0 (0x1UL << HPRT_PSPD_Pos) // 0x00020000 */
-#define HPRT_PSPD_1 (0x2UL << HPRT_PSPD_Pos) // 0x00040000 */
+#define HPRT_PSPD_Msk (0x3UL << HPRT_PSPD_Pos) // 0x00060000
+#define HPRT_PSPD HPRT_PSPD_Msk // Port speed
+#define HPRT_PSPD_0 (0x1UL << HPRT_PSPD_Pos) // 0x00020000
+#define HPRT_PSPD_1 (0x2UL << HPRT_PSPD_Pos) // 0x00040000
/******************** Bit definition for DOEPEACHMSK1 register ********************/
#define DOEPEACHMSK1_XFRCM_Pos (0U)
-#define DOEPEACHMSK1_XFRCM_Msk (0x1UL << DOEPEACHMSK1_XFRCM_Pos) // 0x00000001 */
-#define DOEPEACHMSK1_XFRCM DOEPEACHMSK1_XFRCM_Msk // Transfer completed interrupt mask */
+#define DOEPEACHMSK1_XFRCM_Msk (0x1UL << DOEPEACHMSK1_XFRCM_Pos) // 0x00000001
+#define DOEPEACHMSK1_XFRCM DOEPEACHMSK1_XFRCM_Msk // Transfer completed interrupt mask
#define DOEPEACHMSK1_EPDM_Pos (1U)
-#define DOEPEACHMSK1_EPDM_Msk (0x1UL << DOEPEACHMSK1_EPDM_Pos) // 0x00000002 */
-#define DOEPEACHMSK1_EPDM DOEPEACHMSK1_EPDM_Msk // Endpoint disabled interrupt mask */
+#define DOEPEACHMSK1_EPDM_Msk (0x1UL << DOEPEACHMSK1_EPDM_Pos) // 0x00000002
+#define DOEPEACHMSK1_EPDM DOEPEACHMSK1_EPDM_Msk // Endpoint disabled interrupt mask
#define DOEPEACHMSK1_TOM_Pos (3U)
-#define DOEPEACHMSK1_TOM_Msk (0x1UL << DOEPEACHMSK1_TOM_Pos) // 0x00000008 */
-#define DOEPEACHMSK1_TOM DOEPEACHMSK1_TOM_Msk // Timeout condition mask */
+#define DOEPEACHMSK1_TOM_Msk (0x1UL << DOEPEACHMSK1_TOM_Pos) // 0x00000008
+#define DOEPEACHMSK1_TOM DOEPEACHMSK1_TOM_Msk // Timeout condition mask
#define DOEPEACHMSK1_ITTXFEMSK_Pos (4U)
-#define DOEPEACHMSK1_ITTXFEMSK_Msk (0x1UL << DOEPEACHMSK1_ITTXFEMSK_Pos) // 0x00000010 */
-#define DOEPEACHMSK1_ITTXFEMSK DOEPEACHMSK1_ITTXFEMSK_Msk // IN token received when TxFIFO empty mask */
+#define DOEPEACHMSK1_ITTXFEMSK_Msk (0x1UL << DOEPEACHMSK1_ITTXFEMSK_Pos) // 0x00000010
+#define DOEPEACHMSK1_ITTXFEMSK DOEPEACHMSK1_ITTXFEMSK_Msk // IN token received when TxFIFO empty mask
#define DOEPEACHMSK1_INEPNMM_Pos (5U)
-#define DOEPEACHMSK1_INEPNMM_Msk (0x1UL << DOEPEACHMSK1_INEPNMM_Pos) // 0x00000020 */
-#define DOEPEACHMSK1_INEPNMM DOEPEACHMSK1_INEPNMM_Msk // IN token received with EP mismatch mask */
+#define DOEPEACHMSK1_INEPNMM_Msk (0x1UL << DOEPEACHMSK1_INEPNMM_Pos) // 0x00000020
+#define DOEPEACHMSK1_INEPNMM DOEPEACHMSK1_INEPNMM_Msk // IN token received with EP mismatch mask
#define DOEPEACHMSK1_INEPNEM_Pos (6U)
-#define DOEPEACHMSK1_INEPNEM_Msk (0x1UL << DOEPEACHMSK1_INEPNEM_Pos) // 0x00000040 */
-#define DOEPEACHMSK1_INEPNEM DOEPEACHMSK1_INEPNEM_Msk // IN endpoint NAK effective mask */
+#define DOEPEACHMSK1_INEPNEM_Msk (0x1UL << DOEPEACHMSK1_INEPNEM_Pos) // 0x00000040
+#define DOEPEACHMSK1_INEPNEM DOEPEACHMSK1_INEPNEM_Msk // IN endpoint NAK effective mask
#define DOEPEACHMSK1_TXFURM_Pos (8U)
-#define DOEPEACHMSK1_TXFURM_Msk (0x1UL << DOEPEACHMSK1_TXFURM_Pos) // 0x00000100 */
-#define DOEPEACHMSK1_TXFURM DOEPEACHMSK1_TXFURM_Msk // OUT packet error mask */
+#define DOEPEACHMSK1_TXFURM_Msk (0x1UL << DOEPEACHMSK1_TXFURM_Pos) // 0x00000100
+#define DOEPEACHMSK1_TXFURM DOEPEACHMSK1_TXFURM_Msk // OUT packet error mask
#define DOEPEACHMSK1_BIM_Pos (9U)
-#define DOEPEACHMSK1_BIM_Msk (0x1UL << DOEPEACHMSK1_BIM_Pos) // 0x00000200 */
-#define DOEPEACHMSK1_BIM DOEPEACHMSK1_BIM_Msk // BNA interrupt mask */
+#define DOEPEACHMSK1_BIM_Msk (0x1UL << DOEPEACHMSK1_BIM_Pos) // 0x00000200
+#define DOEPEACHMSK1_BIM DOEPEACHMSK1_BIM_Msk // BNA interrupt mask
#define DOEPEACHMSK1_BERRM_Pos (12U)
-#define DOEPEACHMSK1_BERRM_Msk (0x1UL << DOEPEACHMSK1_BERRM_Pos) // 0x00001000 */
-#define DOEPEACHMSK1_BERRM DOEPEACHMSK1_BERRM_Msk // Bubble error interrupt mask */
+#define DOEPEACHMSK1_BERRM_Msk (0x1UL << DOEPEACHMSK1_BERRM_Pos) // 0x00001000
+#define DOEPEACHMSK1_BERRM DOEPEACHMSK1_BERRM_Msk // Bubble error interrupt mask
#define DOEPEACHMSK1_NAKM_Pos (13U)
-#define DOEPEACHMSK1_NAKM_Msk (0x1UL << DOEPEACHMSK1_NAKM_Pos) // 0x00002000 */
-#define DOEPEACHMSK1_NAKM DOEPEACHMSK1_NAKM_Msk // NAK interrupt mask */
+#define DOEPEACHMSK1_NAKM_Msk (0x1UL << DOEPEACHMSK1_NAKM_Pos) // 0x00002000
+#define DOEPEACHMSK1_NAKM DOEPEACHMSK1_NAKM_Msk // NAK interrupt mask
#define DOEPEACHMSK1_NYETM_Pos (14U)
-#define DOEPEACHMSK1_NYETM_Msk (0x1UL << DOEPEACHMSK1_NYETM_Pos) // 0x00004000 */
-#define DOEPEACHMSK1_NYETM DOEPEACHMSK1_NYETM_Msk // NYET interrupt mask */
+#define DOEPEACHMSK1_NYETM_Msk (0x1UL << DOEPEACHMSK1_NYETM_Pos) // 0x00004000
+#define DOEPEACHMSK1_NYETM DOEPEACHMSK1_NYETM_Msk // NYET interrupt mask
/******************** Bit definition for HPTXFSIZ register ********************/
#define HPTXFSIZ_PTXSA_Pos (0U)
-#define HPTXFSIZ_PTXSA_Msk (0xFFFFUL << HPTXFSIZ_PTXSA_Pos) // 0x0000FFFF */
-#define HPTXFSIZ_PTXSA HPTXFSIZ_PTXSA_Msk // Host periodic TxFIFO start address */
+#define HPTXFSIZ_PTXSA_Msk (0xFFFFUL << HPTXFSIZ_PTXSA_Pos) // 0x0000FFFF
+#define HPTXFSIZ_PTXSA HPTXFSIZ_PTXSA_Msk // Host periodic TxFIFO start address
#define HPTXFSIZ_PTXFD_Pos (16U)
-#define HPTXFSIZ_PTXFD_Msk (0xFFFFUL << HPTXFSIZ_PTXFD_Pos) // 0xFFFF0000 */
-#define HPTXFSIZ_PTXFD HPTXFSIZ_PTXFD_Msk // Host periodic TxFIFO depth */
+#define HPTXFSIZ_PTXFD_Msk (0xFFFFUL << HPTXFSIZ_PTXFD_Pos) // 0xFFFF0000
+#define HPTXFSIZ_PTXFD HPTXFSIZ_PTXFD_Msk // Host periodic TxFIFO depth
/******************** Bit definition for DIEPCTL register ********************/
#define DIEPCTL_MPSIZ_Pos (0U)
-#define DIEPCTL_MPSIZ_Msk (0x7FFUL << DIEPCTL_MPSIZ_Pos) // 0x000007FF */
-#define DIEPCTL_MPSIZ DIEPCTL_MPSIZ_Msk // Maximum packet size */
+#define DIEPCTL_MPSIZ_Msk (0x7FFUL << DIEPCTL_MPSIZ_Pos) // 0x000007FF
+#define DIEPCTL_MPSIZ DIEPCTL_MPSIZ_Msk // Maximum packet size
#define DIEPCTL_USBAEP_Pos (15U)
-#define DIEPCTL_USBAEP_Msk (0x1UL << DIEPCTL_USBAEP_Pos) // 0x00008000 */
-#define DIEPCTL_USBAEP DIEPCTL_USBAEP_Msk // USB active endpoint */
+#define DIEPCTL_USBAEP_Msk (0x1UL << DIEPCTL_USBAEP_Pos) // 0x00008000
+#define DIEPCTL_USBAEP DIEPCTL_USBAEP_Msk // USB active endpoint
#define DIEPCTL_EONUM_DPID_Pos (16U)
-#define DIEPCTL_EONUM_DPID_Msk (0x1UL << DIEPCTL_EONUM_DPID_Pos) // 0x00010000 */
-#define DIEPCTL_EONUM_DPID DIEPCTL_EONUM_DPID_Msk // Even/odd frame */
+#define DIEPCTL_EONUM_DPID_Msk (0x1UL << DIEPCTL_EONUM_DPID_Pos) // 0x00010000
+#define DIEPCTL_EONUM_DPID DIEPCTL_EONUM_DPID_Msk // Even/odd frame
#define DIEPCTL_NAKSTS_Pos (17U)
-#define DIEPCTL_NAKSTS_Msk (0x1UL << DIEPCTL_NAKSTS_Pos) // 0x00020000 */
-#define DIEPCTL_NAKSTS DIEPCTL_NAKSTS_Msk // NAK status */
+#define DIEPCTL_NAKSTS_Msk (0x1UL << DIEPCTL_NAKSTS_Pos) // 0x00020000
+#define DIEPCTL_NAKSTS DIEPCTL_NAKSTS_Msk // NAK status
#define DIEPCTL_EPTYP_Pos (18U)
-#define DIEPCTL_EPTYP_Msk (0x3UL << DIEPCTL_EPTYP_Pos) // 0x000C0000 */
-#define DIEPCTL_EPTYP DIEPCTL_EPTYP_Msk // Endpoint type */
-#define DIEPCTL_EPTYP_0 (0x1UL << DIEPCTL_EPTYP_Pos) // 0x00040000 */
-#define DIEPCTL_EPTYP_1 (0x2UL << DIEPCTL_EPTYP_Pos) // 0x00080000 */
+#define DIEPCTL_EPTYP_Msk (0x3UL << DIEPCTL_EPTYP_Pos) // 0x000C0000
+#define DIEPCTL_EPTYP DIEPCTL_EPTYP_Msk // Endpoint type
+#define DIEPCTL_EPTYP_0 (0x1UL << DIEPCTL_EPTYP_Pos) // 0x00040000
+#define DIEPCTL_EPTYP_1 (0x2UL << DIEPCTL_EPTYP_Pos) // 0x00080000
#define DIEPCTL_STALL_Pos (21U)
-#define DIEPCTL_STALL_Msk (0x1UL << DIEPCTL_STALL_Pos) // 0x00200000 */
-#define DIEPCTL_STALL DIEPCTL_STALL_Msk // STALL handshake */
+#define DIEPCTL_STALL_Msk (0x1UL << DIEPCTL_STALL_Pos) // 0x00200000
+#define DIEPCTL_STALL DIEPCTL_STALL_Msk // STALL handshake
#define DIEPCTL_TXFNUM_Pos (22U)
-#define DIEPCTL_TXFNUM_Msk (0xFUL << DIEPCTL_TXFNUM_Pos) // 0x03C00000 */
-#define DIEPCTL_TXFNUM DIEPCTL_TXFNUM_Msk // TxFIFO number */
-#define DIEPCTL_TXFNUM_0 (0x1UL << DIEPCTL_TXFNUM_Pos) // 0x00400000 */
-#define DIEPCTL_TXFNUM_1 (0x2UL << DIEPCTL_TXFNUM_Pos) // 0x00800000 */
-#define DIEPCTL_TXFNUM_2 (0x4UL << DIEPCTL_TXFNUM_Pos) // 0x01000000 */
-#define DIEPCTL_TXFNUM_3 (0x8UL << DIEPCTL_TXFNUM_Pos) // 0x02000000 */
+#define DIEPCTL_TXFNUM_Msk (0xFUL << DIEPCTL_TXFNUM_Pos) // 0x03C00000
+#define DIEPCTL_TXFNUM DIEPCTL_TXFNUM_Msk // TxFIFO number
+#define DIEPCTL_TXFNUM_0 (0x1UL << DIEPCTL_TXFNUM_Pos) // 0x00400000
+#define DIEPCTL_TXFNUM_1 (0x2UL << DIEPCTL_TXFNUM_Pos) // 0x00800000
+#define DIEPCTL_TXFNUM_2 (0x4UL << DIEPCTL_TXFNUM_Pos) // 0x01000000
+#define DIEPCTL_TXFNUM_3 (0x8UL << DIEPCTL_TXFNUM_Pos) // 0x02000000
#define DIEPCTL_CNAK_Pos (26U)
-#define DIEPCTL_CNAK_Msk (0x1UL << DIEPCTL_CNAK_Pos) // 0x04000000 */
-#define DIEPCTL_CNAK DIEPCTL_CNAK_Msk // Clear NAK */
+#define DIEPCTL_CNAK_Msk (0x1UL << DIEPCTL_CNAK_Pos) // 0x04000000
+#define DIEPCTL_CNAK DIEPCTL_CNAK_Msk // Clear NAK
#define DIEPCTL_SNAK_Pos (27U)
-#define DIEPCTL_SNAK_Msk (0x1UL << DIEPCTL_SNAK_Pos) // 0x08000000 */
-#define DIEPCTL_SNAK DIEPCTL_SNAK_Msk // Set NAK */
+#define DIEPCTL_SNAK_Msk (0x1UL << DIEPCTL_SNAK_Pos) // 0x08000000
+#define DIEPCTL_SNAK DIEPCTL_SNAK_Msk // Set NAK
#define DIEPCTL_SD0PID_SEVNFRM_Pos (28U)
-#define DIEPCTL_SD0PID_SEVNFRM_Msk (0x1UL << DIEPCTL_SD0PID_SEVNFRM_Pos) // 0x10000000 */
-#define DIEPCTL_SD0PID_SEVNFRM DIEPCTL_SD0PID_SEVNFRM_Msk // Set DATA0 PID */
+#define DIEPCTL_SD0PID_SEVNFRM_Msk (0x1UL << DIEPCTL_SD0PID_SEVNFRM_Pos) // 0x10000000
+#define DIEPCTL_SD0PID_SEVNFRM DIEPCTL_SD0PID_SEVNFRM_Msk // Set DATA0 PID
#define DIEPCTL_SODDFRM_Pos (29U)
-#define DIEPCTL_SODDFRM_Msk (0x1UL << DIEPCTL_SODDFRM_Pos) // 0x20000000 */
-#define DIEPCTL_SODDFRM DIEPCTL_SODDFRM_Msk // Set odd frame */
+#define DIEPCTL_SODDFRM_Msk (0x1UL << DIEPCTL_SODDFRM_Pos) // 0x20000000
+#define DIEPCTL_SODDFRM DIEPCTL_SODDFRM_Msk // Set odd frame
#define DIEPCTL_EPDIS_Pos (30U)
-#define DIEPCTL_EPDIS_Msk (0x1UL << DIEPCTL_EPDIS_Pos) // 0x40000000 */
-#define DIEPCTL_EPDIS DIEPCTL_EPDIS_Msk // Endpoint disable */
+#define DIEPCTL_EPDIS_Msk (0x1UL << DIEPCTL_EPDIS_Pos) // 0x40000000
+#define DIEPCTL_EPDIS DIEPCTL_EPDIS_Msk // Endpoint disable
#define DIEPCTL_EPENA_Pos (31U)
-#define DIEPCTL_EPENA_Msk (0x1UL << DIEPCTL_EPENA_Pos) // 0x80000000 */
-#define DIEPCTL_EPENA DIEPCTL_EPENA_Msk // Endpoint enable */
+#define DIEPCTL_EPENA_Msk (0x1UL << DIEPCTL_EPENA_Pos) // 0x80000000
+#define DIEPCTL_EPENA DIEPCTL_EPENA_Msk // Endpoint enable
/******************** Bit definition for HCCHAR register ********************/
#define HCCHAR_MPSIZ_Pos (0U)
-#define HCCHAR_MPSIZ_Msk (0x7FFUL << HCCHAR_MPSIZ_Pos) // 0x000007FF */
-#define HCCHAR_MPSIZ HCCHAR_MPSIZ_Msk // Maximum packet size */
+#define HCCHAR_MPSIZ_Msk (0x7FFUL << HCCHAR_MPSIZ_Pos) // 0x000007FF
+#define HCCHAR_MPSIZ HCCHAR_MPSIZ_Msk // Maximum packet size
#define HCCHAR_EPNUM_Pos (11U)
-#define HCCHAR_EPNUM_Msk (0xFUL << HCCHAR_EPNUM_Pos) // 0x00007800 */
-#define HCCHAR_EPNUM HCCHAR_EPNUM_Msk // Endpoint number */
-#define HCCHAR_EPNUM_0 (0x1UL << HCCHAR_EPNUM_Pos) // 0x00000800 */
-#define HCCHAR_EPNUM_1 (0x2UL << HCCHAR_EPNUM_Pos) // 0x00001000 */
-#define HCCHAR_EPNUM_2 (0x4UL << HCCHAR_EPNUM_Pos) // 0x00002000 */
-#define HCCHAR_EPNUM_3 (0x8UL << HCCHAR_EPNUM_Pos) // 0x00004000 */
+#define HCCHAR_EPNUM_Msk (0xFUL << HCCHAR_EPNUM_Pos) // 0x00007800
+#define HCCHAR_EPNUM HCCHAR_EPNUM_Msk // Endpoint number
+#define HCCHAR_EPNUM_0 (0x1UL << HCCHAR_EPNUM_Pos) // 0x00000800
+#define HCCHAR_EPNUM_1 (0x2UL << HCCHAR_EPNUM_Pos) // 0x00001000
+#define HCCHAR_EPNUM_2 (0x4UL << HCCHAR_EPNUM_Pos) // 0x00002000
+#define HCCHAR_EPNUM_3 (0x8UL << HCCHAR_EPNUM_Pos) // 0x00004000
#define HCCHAR_EPDIR_Pos (15U)
-#define HCCHAR_EPDIR_Msk (0x1UL << HCCHAR_EPDIR_Pos) // 0x00008000 */
-#define HCCHAR_EPDIR HCCHAR_EPDIR_Msk // Endpoint direction */
+#define HCCHAR_EPDIR_Msk (0x1UL << HCCHAR_EPDIR_Pos) // 0x00008000
+#define HCCHAR_EPDIR HCCHAR_EPDIR_Msk // Endpoint direction
#define HCCHAR_LSDEV_Pos (17U)
-#define HCCHAR_LSDEV_Msk (0x1UL << HCCHAR_LSDEV_Pos) // 0x00020000 */
-#define HCCHAR_LSDEV HCCHAR_LSDEV_Msk // Low-speed device */
+#define HCCHAR_LSDEV_Msk (0x1UL << HCCHAR_LSDEV_Pos) // 0x00020000
+#define HCCHAR_LSDEV HCCHAR_LSDEV_Msk // Low-speed device
#define HCCHAR_EPTYP_Pos (18U)
-#define HCCHAR_EPTYP_Msk (0x3UL << HCCHAR_EPTYP_Pos) // 0x000C0000 */
-#define HCCHAR_EPTYP HCCHAR_EPTYP_Msk // Endpoint type */
-#define HCCHAR_EPTYP_0 (0x1UL << HCCHAR_EPTYP_Pos) // 0x00040000 */
-#define HCCHAR_EPTYP_1 (0x2UL << HCCHAR_EPTYP_Pos) // 0x00080000 */
+#define HCCHAR_EPTYP_Msk (0x3UL << HCCHAR_EPTYP_Pos) // 0x000C0000
+#define HCCHAR_EPTYP HCCHAR_EPTYP_Msk // Endpoint type
+#define HCCHAR_EPTYP_0 (0x1UL << HCCHAR_EPTYP_Pos) // 0x00040000
+#define HCCHAR_EPTYP_1 (0x2UL << HCCHAR_EPTYP_Pos) // 0x00080000
#define HCCHAR_MC_Pos (20U)
-#define HCCHAR_MC_Msk (0x3UL << HCCHAR_MC_Pos) // 0x00300000 */
-#define HCCHAR_MC HCCHAR_MC_Msk // Multi Count (MC) / Error Count (EC) */
-#define HCCHAR_MC_0 (0x1UL << HCCHAR_MC_Pos) // 0x00100000 */
-#define HCCHAR_MC_1 (0x2UL << HCCHAR_MC_Pos) // 0x00200000 */
+#define HCCHAR_MC_Msk (0x3UL << HCCHAR_MC_Pos) // 0x00300000
+#define HCCHAR_MC HCCHAR_MC_Msk // Multi Count (MC) / Error Count (EC)
+#define HCCHAR_MC_0 (0x1UL << HCCHAR_MC_Pos) // 0x00100000
+#define HCCHAR_MC_1 (0x2UL << HCCHAR_MC_Pos) // 0x00200000
#define HCCHAR_DAD_Pos (22U)
-#define HCCHAR_DAD_Msk (0x7FUL << HCCHAR_DAD_Pos) // 0x1FC00000 */
-#define HCCHAR_DAD HCCHAR_DAD_Msk // Device address */
-#define HCCHAR_DAD_0 (0x01UL << HCCHAR_DAD_Pos) // 0x00400000 */
-#define HCCHAR_DAD_1 (0x02UL << HCCHAR_DAD_Pos) // 0x00800000 */
-#define HCCHAR_DAD_2 (0x04UL << HCCHAR_DAD_Pos) // 0x01000000 */
-#define HCCHAR_DAD_3 (0x08UL << HCCHAR_DAD_Pos) // 0x02000000 */
-#define HCCHAR_DAD_4 (0x10UL << HCCHAR_DAD_Pos) // 0x04000000 */
-#define HCCHAR_DAD_5 (0x20UL << HCCHAR_DAD_Pos) // 0x08000000 */
-#define HCCHAR_DAD_6 (0x40UL << HCCHAR_DAD_Pos) // 0x10000000 */
+#define HCCHAR_DAD_Msk (0x7FUL << HCCHAR_DAD_Pos) // 0x1FC00000
+#define HCCHAR_DAD HCCHAR_DAD_Msk // Device address
+#define HCCHAR_DAD_0 (0x01UL << HCCHAR_DAD_Pos) // 0x00400000
+#define HCCHAR_DAD_1 (0x02UL << HCCHAR_DAD_Pos) // 0x00800000
+#define HCCHAR_DAD_2 (0x04UL << HCCHAR_DAD_Pos) // 0x01000000
+#define HCCHAR_DAD_3 (0x08UL << HCCHAR_DAD_Pos) // 0x02000000
+#define HCCHAR_DAD_4 (0x10UL << HCCHAR_DAD_Pos) // 0x04000000
+#define HCCHAR_DAD_5 (0x20UL << HCCHAR_DAD_Pos) // 0x08000000
+#define HCCHAR_DAD_6 (0x40UL << HCCHAR_DAD_Pos) // 0x10000000
#define HCCHAR_ODDFRM_Pos (29U)
-#define HCCHAR_ODDFRM_Msk (0x1UL << HCCHAR_ODDFRM_Pos) // 0x20000000 */
-#define HCCHAR_ODDFRM HCCHAR_ODDFRM_Msk // Odd frame */
+#define HCCHAR_ODDFRM_Msk (0x1UL << HCCHAR_ODDFRM_Pos) // 0x20000000
+#define HCCHAR_ODDFRM HCCHAR_ODDFRM_Msk // Odd frame
#define HCCHAR_CHDIS_Pos (30U)
-#define HCCHAR_CHDIS_Msk (0x1UL << HCCHAR_CHDIS_Pos) // 0x40000000 */
-#define HCCHAR_CHDIS HCCHAR_CHDIS_Msk // Channel disable */
+#define HCCHAR_CHDIS_Msk (0x1UL << HCCHAR_CHDIS_Pos) // 0x40000000
+#define HCCHAR_CHDIS HCCHAR_CHDIS_Msk // Channel disable
#define HCCHAR_CHENA_Pos (31U)
-#define HCCHAR_CHENA_Msk (0x1UL << HCCHAR_CHENA_Pos) // 0x80000000 */
-#define HCCHAR_CHENA HCCHAR_CHENA_Msk // Channel enable */
+#define HCCHAR_CHENA_Msk (0x1UL << HCCHAR_CHENA_Pos) // 0x80000000
+#define HCCHAR_CHENA HCCHAR_CHENA_Msk // Channel enable
/******************** Bit definition for HCSPLT register ********************/
#define HCSPLT_PRTADDR_Pos (0U)
-#define HCSPLT_PRTADDR_Msk (0x7FUL << HCSPLT_PRTADDR_Pos) // 0x0000007F */
-#define HCSPLT_PRTADDR HCSPLT_PRTADDR_Msk // Port address */
-#define HCSPLT_PRTADDR_0 (0x01UL << HCSPLT_PRTADDR_Pos) // 0x00000001 */
-#define HCSPLT_PRTADDR_1 (0x02UL << HCSPLT_PRTADDR_Pos) // 0x00000002 */
-#define HCSPLT_PRTADDR_2 (0x04UL << HCSPLT_PRTADDR_Pos) // 0x00000004 */
-#define HCSPLT_PRTADDR_3 (0x08UL << HCSPLT_PRTADDR_Pos) // 0x00000008 */
-#define HCSPLT_PRTADDR_4 (0x10UL << HCSPLT_PRTADDR_Pos) // 0x00000010 */
-#define HCSPLT_PRTADDR_5 (0x20UL << HCSPLT_PRTADDR_Pos) // 0x00000020 */
-#define HCSPLT_PRTADDR_6 (0x40UL << HCSPLT_PRTADDR_Pos) // 0x00000040 */
+#define HCSPLT_PRTADDR_Msk (0x7FUL << HCSPLT_PRTADDR_Pos) // 0x0000007F
+#define HCSPLT_PRTADDR HCSPLT_PRTADDR_Msk // Port address
+#define HCSPLT_PRTADDR_0 (0x01UL << HCSPLT_PRTADDR_Pos) // 0x00000001
+#define HCSPLT_PRTADDR_1 (0x02UL << HCSPLT_PRTADDR_Pos) // 0x00000002
+#define HCSPLT_PRTADDR_2 (0x04UL << HCSPLT_PRTADDR_Pos) // 0x00000004
+#define HCSPLT_PRTADDR_3 (0x08UL << HCSPLT_PRTADDR_Pos) // 0x00000008
+#define HCSPLT_PRTADDR_4 (0x10UL << HCSPLT_PRTADDR_Pos) // 0x00000010
+#define HCSPLT_PRTADDR_5 (0x20UL << HCSPLT_PRTADDR_Pos) // 0x00000020
+#define HCSPLT_PRTADDR_6 (0x40UL << HCSPLT_PRTADDR_Pos) // 0x00000040
#define HCSPLT_HUBADDR_Pos (7U)
-#define HCSPLT_HUBADDR_Msk (0x7FUL << HCSPLT_HUBADDR_Pos) // 0x00003F80 */
-#define HCSPLT_HUBADDR HCSPLT_HUBADDR_Msk // Hub address */
-#define HCSPLT_HUBADDR_0 (0x01UL << HCSPLT_HUBADDR_Pos) // 0x00000080 */
-#define HCSPLT_HUBADDR_1 (0x02UL << HCSPLT_HUBADDR_Pos) // 0x00000100 */
-#define HCSPLT_HUBADDR_2 (0x04UL << HCSPLT_HUBADDR_Pos) // 0x00000200 */
-#define HCSPLT_HUBADDR_3 (0x08UL << HCSPLT_HUBADDR_Pos) // 0x00000400 */
-#define HCSPLT_HUBADDR_4 (0x10UL << HCSPLT_HUBADDR_Pos) // 0x00000800 */
-#define HCSPLT_HUBADDR_5 (0x20UL << HCSPLT_HUBADDR_Pos) // 0x00001000 */
-#define HCSPLT_HUBADDR_6 (0x40UL << HCSPLT_HUBADDR_Pos) // 0x00002000 */
+#define HCSPLT_HUBADDR_Msk (0x7FUL << HCSPLT_HUBADDR_Pos) // 0x00003F80
+#define HCSPLT_HUBADDR HCSPLT_HUBADDR_Msk // Hub address
+#define HCSPLT_HUBADDR_0 (0x01UL << HCSPLT_HUBADDR_Pos) // 0x00000080
+#define HCSPLT_HUBADDR_1 (0x02UL << HCSPLT_HUBADDR_Pos) // 0x00000100
+#define HCSPLT_HUBADDR_2 (0x04UL << HCSPLT_HUBADDR_Pos) // 0x00000200
+#define HCSPLT_HUBADDR_3 (0x08UL << HCSPLT_HUBADDR_Pos) // 0x00000400
+#define HCSPLT_HUBADDR_4 (0x10UL << HCSPLT_HUBADDR_Pos) // 0x00000800
+#define HCSPLT_HUBADDR_5 (0x20UL << HCSPLT_HUBADDR_Pos) // 0x00001000
+#define HCSPLT_HUBADDR_6 (0x40UL << HCSPLT_HUBADDR_Pos) // 0x00002000
#define HCSPLT_XACTPOS_Pos (14U)
-#define HCSPLT_XACTPOS_Msk (0x3UL << HCSPLT_XACTPOS_Pos) // 0x0000C000 */
-#define HCSPLT_XACTPOS HCSPLT_XACTPOS_Msk // XACTPOS */
-#define HCSPLT_XACTPOS_0 (0x1UL << HCSPLT_XACTPOS_Pos) // 0x00004000 */
-#define HCSPLT_XACTPOS_1 (0x2UL << HCSPLT_XACTPOS_Pos) // 0x00008000 */
+#define HCSPLT_XACTPOS_Msk (0x3UL << HCSPLT_XACTPOS_Pos) // 0x0000C000
+#define HCSPLT_XACTPOS HCSPLT_XACTPOS_Msk // XACTPOS
+#define HCSPLT_XACTPOS_0 (0x1UL << HCSPLT_XACTPOS_Pos) // 0x00004000
+#define HCSPLT_XACTPOS_1 (0x2UL << HCSPLT_XACTPOS_Pos) // 0x00008000
#define HCSPLT_COMPLSPLT_Pos (16U)
-#define HCSPLT_COMPLSPLT_Msk (0x1UL << HCSPLT_COMPLSPLT_Pos) // 0x00010000 */
-#define HCSPLT_COMPLSPLT HCSPLT_COMPLSPLT_Msk // Do complete split */
+#define HCSPLT_COMPLSPLT_Msk (0x1UL << HCSPLT_COMPLSPLT_Pos) // 0x00010000
+#define HCSPLT_COMPLSPLT HCSPLT_COMPLSPLT_Msk // Do complete split
#define HCSPLT_SPLITEN_Pos (31U)
-#define HCSPLT_SPLITEN_Msk (0x1UL << HCSPLT_SPLITEN_Pos) // 0x80000000 */
-#define HCSPLT_SPLITEN HCSPLT_SPLITEN_Msk // Split enable */
+#define HCSPLT_SPLITEN_Msk (0x1UL << HCSPLT_SPLITEN_Pos) // 0x80000000
+#define HCSPLT_SPLITEN HCSPLT_SPLITEN_Msk // Split enable
/******************** Bit definition for HCINT register ********************/
#define HCINT_XFRC_Pos (0U)
-#define HCINT_XFRC_Msk (0x1UL << HCINT_XFRC_Pos) // 0x00000001 */
-#define HCINT_XFRC HCINT_XFRC_Msk // Transfer completed */
+#define HCINT_XFRC_Msk (0x1UL << HCINT_XFRC_Pos) // 0x00000001
+#define HCINT_XFRC HCINT_XFRC_Msk // Transfer completed
#define HCINT_CHH_Pos (1U)
-#define HCINT_CHH_Msk (0x1UL << HCINT_CHH_Pos) // 0x00000002 */
-#define HCINT_CHH HCINT_CHH_Msk // Channel halted */
+#define HCINT_CHH_Msk (0x1UL << HCINT_CHH_Pos) // 0x00000002
+#define HCINT_CHH HCINT_CHH_Msk // Channel halted
#define HCINT_AHBERR_Pos (2U)
-#define HCINT_AHBERR_Msk (0x1UL << HCINT_AHBERR_Pos) // 0x00000004 */
-#define HCINT_AHBERR HCINT_AHBERR_Msk // AHB error */
+#define HCINT_AHBERR_Msk (0x1UL << HCINT_AHBERR_Pos) // 0x00000004
+#define HCINT_AHBERR HCINT_AHBERR_Msk // AHB error
#define HCINT_STALL_Pos (3U)
-#define HCINT_STALL_Msk (0x1UL << HCINT_STALL_Pos) // 0x00000008 */
-#define HCINT_STALL HCINT_STALL_Msk // STALL response received interrupt */
+#define HCINT_STALL_Msk (0x1UL << HCINT_STALL_Pos) // 0x00000008
+#define HCINT_STALL HCINT_STALL_Msk // STALL response received interrupt
#define HCINT_NAK_Pos (4U)
-#define HCINT_NAK_Msk (0x1UL << HCINT_NAK_Pos) // 0x00000010 */
-#define HCINT_NAK HCINT_NAK_Msk // NAK response received interrupt */
+#define HCINT_NAK_Msk (0x1UL << HCINT_NAK_Pos) // 0x00000010
+#define HCINT_NAK HCINT_NAK_Msk // NAK response received interrupt
#define HCINT_ACK_Pos (5U)
-#define HCINT_ACK_Msk (0x1UL << HCINT_ACK_Pos) // 0x00000020 */
-#define HCINT_ACK HCINT_ACK_Msk // ACK response received/transmitted interrupt */
+#define HCINT_ACK_Msk (0x1UL << HCINT_ACK_Pos) // 0x00000020
+#define HCINT_ACK HCINT_ACK_Msk // ACK response received/transmitted interrupt
#define HCINT_NYET_Pos (6U)
-#define HCINT_NYET_Msk (0x1UL << HCINT_NYET_Pos) // 0x00000040 */
-#define HCINT_NYET HCINT_NYET_Msk // Response received interrupt */
+#define HCINT_NYET_Msk (0x1UL << HCINT_NYET_Pos) // 0x00000040
+#define HCINT_NYET HCINT_NYET_Msk // Response received interrupt
#define HCINT_TXERR_Pos (7U)
-#define HCINT_TXERR_Msk (0x1UL << HCINT_TXERR_Pos) // 0x00000080 */
-#define HCINT_TXERR HCINT_TXERR_Msk // Transaction error */
+#define HCINT_TXERR_Msk (0x1UL << HCINT_TXERR_Pos) // 0x00000080
+#define HCINT_TXERR HCINT_TXERR_Msk // Transaction error
#define HCINT_BBERR_Pos (8U)
-#define HCINT_BBERR_Msk (0x1UL << HCINT_BBERR_Pos) // 0x00000100 */
-#define HCINT_BBERR HCINT_BBERR_Msk // Babble error */
+#define HCINT_BBERR_Msk (0x1UL << HCINT_BBERR_Pos) // 0x00000100
+#define HCINT_BBERR HCINT_BBERR_Msk // Babble error
#define HCINT_FRMOR_Pos (9U)
-#define HCINT_FRMOR_Msk (0x1UL << HCINT_FRMOR_Pos) // 0x00000200 */
-#define HCINT_FRMOR HCINT_FRMOR_Msk // Frame overrun */
+#define HCINT_FRMOR_Msk (0x1UL << HCINT_FRMOR_Pos) // 0x00000200
+#define HCINT_FRMOR HCINT_FRMOR_Msk // Frame overrun
#define HCINT_DTERR_Pos (10U)
-#define HCINT_DTERR_Msk (0x1UL << HCINT_DTERR_Pos) // 0x00000400 */
-#define HCINT_DTERR HCINT_DTERR_Msk // Data toggle error */
+#define HCINT_DTERR_Msk (0x1UL << HCINT_DTERR_Pos) // 0x00000400
+#define HCINT_DTERR HCINT_DTERR_Msk // Data toggle error
/******************** Bit definition for DIEPINT register ********************/
#define DIEPINT_XFRC_Pos (0U)
-#define DIEPINT_XFRC_Msk (0x1UL << DIEPINT_XFRC_Pos) // 0x00000001 */
-#define DIEPINT_XFRC DIEPINT_XFRC_Msk // Transfer completed interrupt */
+#define DIEPINT_XFRC_Msk (0x1UL << DIEPINT_XFRC_Pos) // 0x00000001
+#define DIEPINT_XFRC DIEPINT_XFRC_Msk // Transfer completed interrupt
#define DIEPINT_EPDISD_Pos (1U)
-#define DIEPINT_EPDISD_Msk (0x1UL << DIEPINT_EPDISD_Pos) // 0x00000002 */
-#define DIEPINT_EPDISD DIEPINT_EPDISD_Msk // Endpoint disabled interrupt */
+#define DIEPINT_EPDISD_Msk (0x1UL << DIEPINT_EPDISD_Pos) // 0x00000002
+#define DIEPINT_EPDISD DIEPINT_EPDISD_Msk // Endpoint disabled interrupt
#define DIEPINT_AHBERR_Pos (2U)
-#define DIEPINT_AHBERR_Msk (0x1UL << DIEPINT_AHBERR_Pos) // 0x00000004 */
-#define DIEPINT_AHBERR DIEPINT_AHBERR_Msk // AHB Error (AHBErr) during an IN transaction */
+#define DIEPINT_AHBERR_Msk (0x1UL << DIEPINT_AHBERR_Pos) // 0x00000004
+#define DIEPINT_AHBERR DIEPINT_AHBERR_Msk // AHB Error (AHBErr) during an IN transaction
#define DIEPINT_TOC_Pos (3U)
-#define DIEPINT_TOC_Msk (0x1UL << DIEPINT_TOC_Pos) // 0x00000008 */
-#define DIEPINT_TOC DIEPINT_TOC_Msk // Timeout condition */
+#define DIEPINT_TOC_Msk (0x1UL << DIEPINT_TOC_Pos) // 0x00000008
+#define DIEPINT_TOC DIEPINT_TOC_Msk // Timeout condition
#define DIEPINT_ITTXFE_Pos (4U)
-#define DIEPINT_ITTXFE_Msk (0x1UL << DIEPINT_ITTXFE_Pos) // 0x00000010 */
-#define DIEPINT_ITTXFE DIEPINT_ITTXFE_Msk // IN token received when TxFIFO is empty */
+#define DIEPINT_ITTXFE_Msk (0x1UL << DIEPINT_ITTXFE_Pos) // 0x00000010
+#define DIEPINT_ITTXFE DIEPINT_ITTXFE_Msk // IN token received when TxFIFO is empty
#define DIEPINT_INEPNM_Pos (5U)
-#define DIEPINT_INEPNM_Msk (0x1UL << DIEPINT_INEPNM_Pos) // 0x00000020 */
-#define DIEPINT_INEPNM DIEPINT_INEPNM_Msk // IN token received with EP mismatch */
+#define DIEPINT_INEPNM_Msk (0x1UL << DIEPINT_INEPNM_Pos) // 0x00000020
+#define DIEPINT_INEPNM DIEPINT_INEPNM_Msk // IN token received with EP mismatch
#define DIEPINT_INEPNE_Pos (6U)
-#define DIEPINT_INEPNE_Msk (0x1UL << DIEPINT_INEPNE_Pos) // 0x00000040 */
-#define DIEPINT_INEPNE DIEPINT_INEPNE_Msk // IN endpoint NAK effective */
+#define DIEPINT_INEPNE_Msk (0x1UL << DIEPINT_INEPNE_Pos) // 0x00000040
+#define DIEPINT_INEPNE DIEPINT_INEPNE_Msk // IN endpoint NAK effective
#define DIEPINT_TXFE_Pos (7U)
-#define DIEPINT_TXFE_Msk (0x1UL << DIEPINT_TXFE_Pos) // 0x00000080 */
-#define DIEPINT_TXFE DIEPINT_TXFE_Msk // Transmit FIFO empty */
+#define DIEPINT_TXFE_Msk (0x1UL << DIEPINT_TXFE_Pos) // 0x00000080
+#define DIEPINT_TXFE DIEPINT_TXFE_Msk // Transmit FIFO empty
#define DIEPINT_TXFIFOUDRN_Pos (8U)
-#define DIEPINT_TXFIFOUDRN_Msk (0x1UL << DIEPINT_TXFIFOUDRN_Pos) // 0x00000100 */
-#define DIEPINT_TXFIFOUDRN DIEPINT_TXFIFOUDRN_Msk // Transmit Fifo Underrun */
+#define DIEPINT_TXFIFOUDRN_Msk (0x1UL << DIEPINT_TXFIFOUDRN_Pos) // 0x00000100
+#define DIEPINT_TXFIFOUDRN DIEPINT_TXFIFOUDRN_Msk // Transmit Fifo Underrun
#define DIEPINT_BNA_Pos (9U)
-#define DIEPINT_BNA_Msk (0x1UL << DIEPINT_BNA_Pos) // 0x00000200 */
-#define DIEPINT_BNA DIEPINT_BNA_Msk // Buffer not available interrupt */
+#define DIEPINT_BNA_Msk (0x1UL << DIEPINT_BNA_Pos) // 0x00000200
+#define DIEPINT_BNA DIEPINT_BNA_Msk // Buffer not available interrupt
#define DIEPINT_PKTDRPSTS_Pos (11U)
-#define DIEPINT_PKTDRPSTS_Msk (0x1UL << DIEPINT_PKTDRPSTS_Pos) // 0x00000800 */
-#define DIEPINT_PKTDRPSTS DIEPINT_PKTDRPSTS_Msk // Packet dropped status */
+#define DIEPINT_PKTDRPSTS_Msk (0x1UL << DIEPINT_PKTDRPSTS_Pos) // 0x00000800
+#define DIEPINT_PKTDRPSTS DIEPINT_PKTDRPSTS_Msk // Packet dropped status
#define DIEPINT_BERR_Pos (12U)
-#define DIEPINT_BERR_Msk (0x1UL << DIEPINT_BERR_Pos) // 0x00001000 */
-#define DIEPINT_BERR DIEPINT_BERR_Msk // Babble error interrupt */
+#define DIEPINT_BERR_Msk (0x1UL << DIEPINT_BERR_Pos) // 0x00001000
+#define DIEPINT_BERR DIEPINT_BERR_Msk // Babble error interrupt
#define DIEPINT_NAK_Pos (13U)
-#define DIEPINT_NAK_Msk (0x1UL << DIEPINT_NAK_Pos) // 0x00002000 */
-#define DIEPINT_NAK DIEPINT_NAK_Msk // NAK interrupt */
+#define DIEPINT_NAK_Msk (0x1UL << DIEPINT_NAK_Pos) // 0x00002000
+#define DIEPINT_NAK DIEPINT_NAK_Msk // NAK interrupt
/******************** Bit definition for HCINTMSK register ********************/
#define HCINTMSK_XFRCM_Pos (0U)
-#define HCINTMSK_XFRCM_Msk (0x1UL << HCINTMSK_XFRCM_Pos) // 0x00000001 */
-#define HCINTMSK_XFRCM HCINTMSK_XFRCM_Msk // Transfer completed mask */
+#define HCINTMSK_XFRCM_Msk (0x1UL << HCINTMSK_XFRCM_Pos) // 0x00000001
+#define HCINTMSK_XFRCM HCINTMSK_XFRCM_Msk // Transfer completed mask
#define HCINTMSK_CHHM_Pos (1U)
-#define HCINTMSK_CHHM_Msk (0x1UL << HCINTMSK_CHHM_Pos) // 0x00000002 */
-#define HCINTMSK_CHHM HCINTMSK_CHHM_Msk // Channel halted mask */
+#define HCINTMSK_CHHM_Msk (0x1UL << HCINTMSK_CHHM_Pos) // 0x00000002
+#define HCINTMSK_CHHM HCINTMSK_CHHM_Msk // Channel halted mask
#define HCINTMSK_AHBERR_Pos (2U)
-#define HCINTMSK_AHBERR_Msk (0x1UL << HCINTMSK_AHBERR_Pos) // 0x00000004 */
-#define HCINTMSK_AHBERR HCINTMSK_AHBERR_Msk // AHB error */
+#define HCINTMSK_AHBERR_Msk (0x1UL << HCINTMSK_AHBERR_Pos) // 0x00000004
+#define HCINTMSK_AHBERR HCINTMSK_AHBERR_Msk // AHB error
#define HCINTMSK_STALLM_Pos (3U)
-#define HCINTMSK_STALLM_Msk (0x1UL << HCINTMSK_STALLM_Pos) // 0x00000008 */
-#define HCINTMSK_STALLM HCINTMSK_STALLM_Msk // STALL response received interrupt mask */
+#define HCINTMSK_STALLM_Msk (0x1UL << HCINTMSK_STALLM_Pos) // 0x00000008
+#define HCINTMSK_STALLM HCINTMSK_STALLM_Msk // STALL response received interrupt mask
#define HCINTMSK_NAKM_Pos (4U)
-#define HCINTMSK_NAKM_Msk (0x1UL << HCINTMSK_NAKM_Pos) // 0x00000010 */
-#define HCINTMSK_NAKM HCINTMSK_NAKM_Msk // NAK response received interrupt mask */
+#define HCINTMSK_NAKM_Msk (0x1UL << HCINTMSK_NAKM_Pos) // 0x00000010
+#define HCINTMSK_NAKM HCINTMSK_NAKM_Msk // NAK response received interrupt mask
#define HCINTMSK_ACKM_Pos (5U)
-#define HCINTMSK_ACKM_Msk (0x1UL << HCINTMSK_ACKM_Pos) // 0x00000020 */
-#define HCINTMSK_ACKM HCINTMSK_ACKM_Msk // ACK response received/transmitted interrupt mask */
+#define HCINTMSK_ACKM_Msk (0x1UL << HCINTMSK_ACKM_Pos) // 0x00000020
+#define HCINTMSK_ACKM HCINTMSK_ACKM_Msk // ACK response received/transmitted interrupt mask
#define HCINTMSK_NYET_Pos (6U)
-#define HCINTMSK_NYET_Msk (0x1UL << HCINTMSK_NYET_Pos) // 0x00000040 */
-#define HCINTMSK_NYET HCINTMSK_NYET_Msk // response received interrupt mask */
+#define HCINTMSK_NYET_Msk (0x1UL << HCINTMSK_NYET_Pos) // 0x00000040
+#define HCINTMSK_NYET HCINTMSK_NYET_Msk // response received interrupt mask
#define HCINTMSK_TXERRM_Pos (7U)
-#define HCINTMSK_TXERRM_Msk (0x1UL << HCINTMSK_TXERRM_Pos) // 0x00000080 */
-#define HCINTMSK_TXERRM HCINTMSK_TXERRM_Msk // Transaction error mask */
+#define HCINTMSK_TXERRM_Msk (0x1UL << HCINTMSK_TXERRM_Pos) // 0x00000080
+#define HCINTMSK_TXERRM HCINTMSK_TXERRM_Msk // Transaction error mask
#define HCINTMSK_BBERRM_Pos (8U)
-#define HCINTMSK_BBERRM_Msk (0x1UL << HCINTMSK_BBERRM_Pos) // 0x00000100 */
-#define HCINTMSK_BBERRM HCINTMSK_BBERRM_Msk // Babble error mask */
+#define HCINTMSK_BBERRM_Msk (0x1UL << HCINTMSK_BBERRM_Pos) // 0x00000100
+#define HCINTMSK_BBERRM HCINTMSK_BBERRM_Msk // Babble error mask
#define HCINTMSK_FRMORM_Pos (9U)
-#define HCINTMSK_FRMORM_Msk (0x1UL << HCINTMSK_FRMORM_Pos) // 0x00000200 */
-#define HCINTMSK_FRMORM HCINTMSK_FRMORM_Msk // Frame overrun mask */
+#define HCINTMSK_FRMORM_Msk (0x1UL << HCINTMSK_FRMORM_Pos) // 0x00000200
+#define HCINTMSK_FRMORM HCINTMSK_FRMORM_Msk // Frame overrun mask
#define HCINTMSK_DTERRM_Pos (10U)
-#define HCINTMSK_DTERRM_Msk (0x1UL << HCINTMSK_DTERRM_Pos) // 0x00000400 */
-#define HCINTMSK_DTERRM HCINTMSK_DTERRM_Msk // Data toggle error mask */
+#define HCINTMSK_DTERRM_Msk (0x1UL << HCINTMSK_DTERRM_Pos) // 0x00000400
+#define HCINTMSK_DTERRM HCINTMSK_DTERRM_Msk // Data toggle error mask
/******************** Bit definition for DIEPTSIZ register ********************/
#define DIEPTSIZ_XFRSIZ_Pos (0U)
-#define DIEPTSIZ_XFRSIZ_Msk (0x7FFFFUL << DIEPTSIZ_XFRSIZ_Pos) // 0x0007FFFF */
-#define DIEPTSIZ_XFRSIZ DIEPTSIZ_XFRSIZ_Msk // Transfer size */
+#define DIEPTSIZ_XFRSIZ_Msk (0x7FFFFUL << DIEPTSIZ_XFRSIZ_Pos) // 0x0007FFFF
+#define DIEPTSIZ_XFRSIZ DIEPTSIZ_XFRSIZ_Msk // Transfer size
#define DIEPTSIZ_PKTCNT_Pos (19U)
-#define DIEPTSIZ_PKTCNT_Msk (0x3FFUL << DIEPTSIZ_PKTCNT_Pos) // 0x1FF80000 */
-#define DIEPTSIZ_PKTCNT DIEPTSIZ_PKTCNT_Msk // Packet count */
+#define DIEPTSIZ_PKTCNT_Msk (0x3FFUL << DIEPTSIZ_PKTCNT_Pos) // 0x1FF80000
+#define DIEPTSIZ_PKTCNT DIEPTSIZ_PKTCNT_Msk // Packet count
#define DIEPTSIZ_MULCNT_Pos (29U)
-#define DIEPTSIZ_MULCNT_Msk (0x3UL << DIEPTSIZ_MULCNT_Pos) // 0x60000000 */
-#define DIEPTSIZ_MULCNT DIEPTSIZ_MULCNT_Msk // Packet count */
+#define DIEPTSIZ_MULCNT_Msk (0x3UL << DIEPTSIZ_MULCNT_Pos) // 0x60000000
+#define DIEPTSIZ_MULCNT DIEPTSIZ_MULCNT_Msk // Packet count
/******************** Bit definition for HCTSIZ register ********************/
#define HCTSIZ_XFRSIZ_Pos (0U)
-#define HCTSIZ_XFRSIZ_Msk (0x7FFFFUL << HCTSIZ_XFRSIZ_Pos) // 0x0007FFFF */
-#define HCTSIZ_XFRSIZ HCTSIZ_XFRSIZ_Msk // Transfer size */
+#define HCTSIZ_XFRSIZ_Msk (0x7FFFFUL << HCTSIZ_XFRSIZ_Pos) // 0x0007FFFF
+#define HCTSIZ_XFRSIZ HCTSIZ_XFRSIZ_Msk // Transfer size
#define HCTSIZ_PKTCNT_Pos (19U)
-#define HCTSIZ_PKTCNT_Msk (0x3FFUL << HCTSIZ_PKTCNT_Pos) // 0x1FF80000 */
-#define HCTSIZ_PKTCNT HCTSIZ_PKTCNT_Msk // Packet count */
+#define HCTSIZ_PKTCNT_Msk (0x3FFUL << HCTSIZ_PKTCNT_Pos) // 0x1FF80000
+#define HCTSIZ_PKTCNT HCTSIZ_PKTCNT_Msk // Packet count
#define HCTSIZ_DOPING_Pos (31U)
-#define HCTSIZ_DOPING_Msk (0x1UL << HCTSIZ_DOPING_Pos) // 0x80000000 */
-#define HCTSIZ_DOPING HCTSIZ_DOPING_Msk // Do PING */
+#define HCTSIZ_DOPING_Msk (0x1UL << HCTSIZ_DOPING_Pos) // 0x80000000
+#define HCTSIZ_DOPING HCTSIZ_DOPING_Msk // Do PING
#define HCTSIZ_DPID_Pos (29U)
-#define HCTSIZ_DPID_Msk (0x3UL << HCTSIZ_DPID_Pos) // 0x60000000 */
-#define HCTSIZ_DPID HCTSIZ_DPID_Msk // Data PID */
-#define HCTSIZ_DPID_0 (0x1UL << HCTSIZ_DPID_Pos) // 0x20000000 */
-#define HCTSIZ_DPID_1 (0x2UL << HCTSIZ_DPID_Pos) // 0x40000000 */
+#define HCTSIZ_DPID_Msk (0x3UL << HCTSIZ_DPID_Pos) // 0x60000000
+#define HCTSIZ_DPID HCTSIZ_DPID_Msk // Data PID
+#define HCTSIZ_DPID_0 (0x1UL << HCTSIZ_DPID_Pos) // 0x20000000
+#define HCTSIZ_DPID_1 (0x2UL << HCTSIZ_DPID_Pos) // 0x40000000
/******************** Bit definition for DIEPDMA register ********************/
#define DIEPDMA_DMAADDR_Pos (0U)
-#define DIEPDMA_DMAADDR_Msk (0xFFFFFFFFUL << DIEPDMA_DMAADDR_Pos) // 0xFFFFFFFF */
-#define DIEPDMA_DMAADDR DIEPDMA_DMAADDR_Msk // DMA address */
+#define DIEPDMA_DMAADDR_Msk (0xFFFFFFFFUL << DIEPDMA_DMAADDR_Pos) // 0xFFFFFFFF
+#define DIEPDMA_DMAADDR DIEPDMA_DMAADDR_Msk // DMA address
/******************** Bit definition for HCDMA register ********************/
#define HCDMA_DMAADDR_Pos (0U)
-#define HCDMA_DMAADDR_Msk (0xFFFFFFFFUL << HCDMA_DMAADDR_Pos) // 0xFFFFFFFF */
-#define HCDMA_DMAADDR HCDMA_DMAADDR_Msk // DMA address */
+#define HCDMA_DMAADDR_Msk (0xFFFFFFFFUL << HCDMA_DMAADDR_Pos) // 0xFFFFFFFF
+#define HCDMA_DMAADDR HCDMA_DMAADDR_Msk // DMA address
/******************** Bit definition for DTXFSTS register ********************/
#define DTXFSTS_INEPTFSAV_Pos (0U)
-#define DTXFSTS_INEPTFSAV_Msk (0xFFFFUL << DTXFSTS_INEPTFSAV_Pos) // 0x0000FFFF */
-#define DTXFSTS_INEPTFSAV DTXFSTS_INEPTFSAV_Msk // IN endpoint TxFIFO space available */
+#define DTXFSTS_INEPTFSAV_Msk (0xFFFFUL << DTXFSTS_INEPTFSAV_Pos) // 0x0000FFFF
+#define DTXFSTS_INEPTFSAV DTXFSTS_INEPTFSAV_Msk // IN endpoint TxFIFO space available
/******************** Bit definition for DIEPTXF register ********************/
#define DIEPTXF_INEPTXSA_Pos (0U)
-#define DIEPTXF_INEPTXSA_Msk (0xFFFFUL << DIEPTXF_INEPTXSA_Pos) // 0x0000FFFF */
-#define DIEPTXF_INEPTXSA DIEPTXF_INEPTXSA_Msk // IN endpoint FIFOx transmit RAM start address */
+#define DIEPTXF_INEPTXSA_Msk (0xFFFFUL << DIEPTXF_INEPTXSA_Pos) // 0x0000FFFF
+#define DIEPTXF_INEPTXSA DIEPTXF_INEPTXSA_Msk // IN endpoint FIFOx transmit RAM start address
#define DIEPTXF_INEPTXFD_Pos (16U)
-#define DIEPTXF_INEPTXFD_Msk (0xFFFFUL << DIEPTXF_INEPTXFD_Pos) // 0xFFFF0000 */
-#define DIEPTXF_INEPTXFD DIEPTXF_INEPTXFD_Msk // IN endpoint TxFIFO depth */
+#define DIEPTXF_INEPTXFD_Msk (0xFFFFUL << DIEPTXF_INEPTXFD_Pos) // 0xFFFF0000
+#define DIEPTXF_INEPTXFD DIEPTXF_INEPTXFD_Msk // IN endpoint TxFIFO depth
/******************** Bit definition for DOEPCTL register ********************/
#define DOEPCTL_MPSIZ_Pos (0U)
-#define DOEPCTL_MPSIZ_Msk (0x7FFUL << DOEPCTL_MPSIZ_Pos) // 0x000007FF */
-#define DOEPCTL_MPSIZ DOEPCTL_MPSIZ_Msk // Maximum packet size */ //Bit 1 */
+#define DOEPCTL_MPSIZ_Msk (0x7FFUL << DOEPCTL_MPSIZ_Pos) // 0x000007FF
+#define DOEPCTL_MPSIZ DOEPCTL_MPSIZ_Msk // Maximum packet size //Bit 1
#define DOEPCTL_USBAEP_Pos (15U)
-#define DOEPCTL_USBAEP_Msk (0x1UL << DOEPCTL_USBAEP_Pos) // 0x00008000 */
-#define DOEPCTL_USBAEP DOEPCTL_USBAEP_Msk // USB active endpoint */
+#define DOEPCTL_USBAEP_Msk (0x1UL << DOEPCTL_USBAEP_Pos) // 0x00008000
+#define DOEPCTL_USBAEP DOEPCTL_USBAEP_Msk // USB active endpoint
#define DOEPCTL_NAKSTS_Pos (17U)
-#define DOEPCTL_NAKSTS_Msk (0x1UL << DOEPCTL_NAKSTS_Pos) // 0x00020000 */
-#define DOEPCTL_NAKSTS DOEPCTL_NAKSTS_Msk // NAK status */
+#define DOEPCTL_NAKSTS_Msk (0x1UL << DOEPCTL_NAKSTS_Pos) // 0x00020000
+#define DOEPCTL_NAKSTS DOEPCTL_NAKSTS_Msk // NAK status
#define DOEPCTL_SD0PID_SEVNFRM_Pos (28U)
-#define DOEPCTL_SD0PID_SEVNFRM_Msk (0x1UL << DOEPCTL_SD0PID_SEVNFRM_Pos) // 0x10000000 */
-#define DOEPCTL_SD0PID_SEVNFRM DOEPCTL_SD0PID_SEVNFRM_Msk // Set DATA0 PID */
+#define DOEPCTL_SD0PID_SEVNFRM_Msk (0x1UL << DOEPCTL_SD0PID_SEVNFRM_Pos) // 0x10000000
+#define DOEPCTL_SD0PID_SEVNFRM DOEPCTL_SD0PID_SEVNFRM_Msk // Set DATA0 PID
#define DOEPCTL_SODDFRM_Pos (29U)
-#define DOEPCTL_SODDFRM_Msk (0x1UL << DOEPCTL_SODDFRM_Pos) // 0x20000000 */
-#define DOEPCTL_SODDFRM DOEPCTL_SODDFRM_Msk // Set odd frame */
+#define DOEPCTL_SODDFRM_Msk (0x1UL << DOEPCTL_SODDFRM_Pos) // 0x20000000
+#define DOEPCTL_SODDFRM DOEPCTL_SODDFRM_Msk // Set odd frame
#define DOEPCTL_EPTYP_Pos (18U)
-#define DOEPCTL_EPTYP_Msk (0x3UL << DOEPCTL_EPTYP_Pos) // 0x000C0000 */
-#define DOEPCTL_EPTYP DOEPCTL_EPTYP_Msk // Endpoint type */
-#define DOEPCTL_EPTYP_0 (0x1UL << DOEPCTL_EPTYP_Pos) // 0x00040000 */
-#define DOEPCTL_EPTYP_1 (0x2UL << DOEPCTL_EPTYP_Pos) // 0x00080000 */
+#define DOEPCTL_EPTYP_Msk (0x3UL << DOEPCTL_EPTYP_Pos) // 0x000C0000
+#define DOEPCTL_EPTYP DOEPCTL_EPTYP_Msk // Endpoint type
+#define DOEPCTL_EPTYP_0 (0x1UL << DOEPCTL_EPTYP_Pos) // 0x00040000
+#define DOEPCTL_EPTYP_1 (0x2UL << DOEPCTL_EPTYP_Pos) // 0x00080000
#define DOEPCTL_SNPM_Pos (20U)
-#define DOEPCTL_SNPM_Msk (0x1UL << DOEPCTL_SNPM_Pos) // 0x00100000 */
-#define DOEPCTL_SNPM DOEPCTL_SNPM_Msk // Snoop mode */
+#define DOEPCTL_SNPM_Msk (0x1UL << DOEPCTL_SNPM_Pos) // 0x00100000
+#define DOEPCTL_SNPM DOEPCTL_SNPM_Msk // Snoop mode
#define DOEPCTL_STALL_Pos (21U)
-#define DOEPCTL_STALL_Msk (0x1UL << DOEPCTL_STALL_Pos) // 0x00200000 */
-#define DOEPCTL_STALL DOEPCTL_STALL_Msk // STALL handshake */
+#define DOEPCTL_STALL_Msk (0x1UL << DOEPCTL_STALL_Pos) // 0x00200000
+#define DOEPCTL_STALL DOEPCTL_STALL_Msk // STALL handshake
#define DOEPCTL_CNAK_Pos (26U)
-#define DOEPCTL_CNAK_Msk (0x1UL << DOEPCTL_CNAK_Pos) // 0x04000000 */
-#define DOEPCTL_CNAK DOEPCTL_CNAK_Msk // Clear NAK */
+#define DOEPCTL_CNAK_Msk (0x1UL << DOEPCTL_CNAK_Pos) // 0x04000000
+#define DOEPCTL_CNAK DOEPCTL_CNAK_Msk // Clear NAK
#define DOEPCTL_SNAK_Pos (27U)
-#define DOEPCTL_SNAK_Msk (0x1UL << DOEPCTL_SNAK_Pos) // 0x08000000 */
-#define DOEPCTL_SNAK DOEPCTL_SNAK_Msk // Set NAK */
+#define DOEPCTL_SNAK_Msk (0x1UL << DOEPCTL_SNAK_Pos) // 0x08000000
+#define DOEPCTL_SNAK DOEPCTL_SNAK_Msk // Set NAK
#define DOEPCTL_EPDIS_Pos (30U)
-#define DOEPCTL_EPDIS_Msk (0x1UL << DOEPCTL_EPDIS_Pos) // 0x40000000 */
-#define DOEPCTL_EPDIS DOEPCTL_EPDIS_Msk // Endpoint disable */
+#define DOEPCTL_EPDIS_Msk (0x1UL << DOEPCTL_EPDIS_Pos) // 0x40000000
+#define DOEPCTL_EPDIS DOEPCTL_EPDIS_Msk // Endpoint disable
#define DOEPCTL_EPENA_Pos (31U)
-#define DOEPCTL_EPENA_Msk (0x1UL << DOEPCTL_EPENA_Pos) // 0x80000000 */
-#define DOEPCTL_EPENA DOEPCTL_EPENA_Msk // Endpoint enable */
+#define DOEPCTL_EPENA_Msk (0x1UL << DOEPCTL_EPENA_Pos) // 0x80000000
+#define DOEPCTL_EPENA DOEPCTL_EPENA_Msk // Endpoint enable
/******************** Bit definition for DOEPINT register ********************/
#define DOEPINT_XFRC_Pos (0U)
-#define DOEPINT_XFRC_Msk (0x1UL << DOEPINT_XFRC_Pos) // 0x00000001 */
-#define DOEPINT_XFRC DOEPINT_XFRC_Msk // Transfer completed interrupt */
+#define DOEPINT_XFRC_Msk (0x1UL << DOEPINT_XFRC_Pos) // 0x00000001
+#define DOEPINT_XFRC DOEPINT_XFRC_Msk // Transfer completed interrupt
#define DOEPINT_EPDISD_Pos (1U)
-#define DOEPINT_EPDISD_Msk (0x1UL << DOEPINT_EPDISD_Pos) // 0x00000002 */
-#define DOEPINT_EPDISD DOEPINT_EPDISD_Msk // Endpoint disabled interrupt */
+#define DOEPINT_EPDISD_Msk (0x1UL << DOEPINT_EPDISD_Pos) // 0x00000002
+#define DOEPINT_EPDISD DOEPINT_EPDISD_Msk // Endpoint disabled interrupt
#define DOEPINT_AHBERR_Pos (2U)
-#define DOEPINT_AHBERR_Msk (0x1UL << DOEPINT_AHBERR_Pos) // 0x00000004 */
-#define DOEPINT_AHBERR DOEPINT_AHBERR_Msk // AHB Error (AHBErr) during an OUT transaction */
+#define DOEPINT_AHBERR_Msk (0x1UL << DOEPINT_AHBERR_Pos) // 0x00000004
+#define DOEPINT_AHBERR DOEPINT_AHBERR_Msk // AHB Error (AHBErr) during an OUT transaction
#define DOEPINT_STUP_Pos (3U)
-#define DOEPINT_STUP_Msk (0x1UL << DOEPINT_STUP_Pos) // 0x00000008 */
-#define DOEPINT_STUP DOEPINT_STUP_Msk // SETUP phase done */
+#define DOEPINT_STUP_Msk (0x1UL << DOEPINT_STUP_Pos) // 0x00000008
+#define DOEPINT_STUP DOEPINT_STUP_Msk // SETUP phase done
#define DOEPINT_OTEPDIS_Pos (4U)
-#define DOEPINT_OTEPDIS_Msk (0x1UL << DOEPINT_OTEPDIS_Pos) // 0x00000010 */
-#define DOEPINT_OTEPDIS DOEPINT_OTEPDIS_Msk // OUT token received when endpoint disabled */
+#define DOEPINT_OTEPDIS_Msk (0x1UL << DOEPINT_OTEPDIS_Pos) // 0x00000010
+#define DOEPINT_OTEPDIS DOEPINT_OTEPDIS_Msk // OUT token received when endpoint disabled
#define DOEPINT_OTEPSPR_Pos (5U)
-#define DOEPINT_OTEPSPR_Msk (0x1UL << DOEPINT_OTEPSPR_Pos) // 0x00000020 */
-#define DOEPINT_OTEPSPR DOEPINT_OTEPSPR_Msk // Status Phase Received For Control Write */
+#define DOEPINT_OTEPSPR_Msk (0x1UL << DOEPINT_OTEPSPR_Pos) // 0x00000020
+#define DOEPINT_OTEPSPR DOEPINT_OTEPSPR_Msk // Status Phase Received For Control Write
#define DOEPINT_B2BSTUP_Pos (6U)
-#define DOEPINT_B2BSTUP_Msk (0x1UL << DOEPINT_B2BSTUP_Pos) // 0x00000040 */
-#define DOEPINT_B2BSTUP DOEPINT_B2BSTUP_Msk // Back-to-back SETUP packets received */
+#define DOEPINT_B2BSTUP_Msk (0x1UL << DOEPINT_B2BSTUP_Pos) // 0x00000040
+#define DOEPINT_B2BSTUP DOEPINT_B2BSTUP_Msk // Back-to-back SETUP packets received
#define DOEPINT_OUTPKTERR_Pos (8U)
-#define DOEPINT_OUTPKTERR_Msk (0x1UL << DOEPINT_OUTPKTERR_Pos) // 0x00000100 */
-#define DOEPINT_OUTPKTERR DOEPINT_OUTPKTERR_Msk // OUT packet error */
+#define DOEPINT_OUTPKTERR_Msk (0x1UL << DOEPINT_OUTPKTERR_Pos) // 0x00000100
+#define DOEPINT_OUTPKTERR DOEPINT_OUTPKTERR_Msk // OUT packet error
#define DOEPINT_NAK_Pos (13U)
-#define DOEPINT_NAK_Msk (0x1UL << DOEPINT_NAK_Pos) // 0x00002000 */
-#define DOEPINT_NAK DOEPINT_NAK_Msk // NAK Packet is transmitted by the device */
+#define DOEPINT_NAK_Msk (0x1UL << DOEPINT_NAK_Pos) // 0x00002000
+#define DOEPINT_NAK DOEPINT_NAK_Msk // NAK Packet is transmitted by the device
#define DOEPINT_NYET_Pos (14U)
-#define DOEPINT_NYET_Msk (0x1UL << DOEPINT_NYET_Pos) // 0x00004000 */
-#define DOEPINT_NYET DOEPINT_NYET_Msk // NYET interrupt */
+#define DOEPINT_NYET_Msk (0x1UL << DOEPINT_NYET_Pos) // 0x00004000
+#define DOEPINT_NYET DOEPINT_NYET_Msk // NYET interrupt
#define DOEPINT_STPKTRX_Pos (15U)
-#define DOEPINT_STPKTRX_Msk (0x1UL << DOEPINT_STPKTRX_Pos) // 0x00008000 */
-#define DOEPINT_STPKTRX DOEPINT_STPKTRX_Msk // Setup Packet Received */
+#define DOEPINT_STPKTRX_Msk (0x1UL << DOEPINT_STPKTRX_Pos) // 0x00008000
+#define DOEPINT_STPKTRX DOEPINT_STPKTRX_Msk // Setup Packet Received
/******************** Bit definition for DOEPTSIZ register ********************/
#define DOEPTSIZ_XFRSIZ_Pos (0U)
-#define DOEPTSIZ_XFRSIZ_Msk (0x7FFFFUL << DOEPTSIZ_XFRSIZ_Pos) // 0x0007FFFF */
-#define DOEPTSIZ_XFRSIZ DOEPTSIZ_XFRSIZ_Msk // Transfer size */
+#define DOEPTSIZ_XFRSIZ_Msk (0x7FFFFUL << DOEPTSIZ_XFRSIZ_Pos) // 0x0007FFFF
+#define DOEPTSIZ_XFRSIZ DOEPTSIZ_XFRSIZ_Msk // Transfer size
#define DOEPTSIZ_PKTCNT_Pos (19U)
-#define DOEPTSIZ_PKTCNT_Msk (0x3FFUL << DOEPTSIZ_PKTCNT_Pos) // 0x1FF80000 */
-#define DOEPTSIZ_PKTCNT DOEPTSIZ_PKTCNT_Msk // Packet count */
+#define DOEPTSIZ_PKTCNT_Msk (0x3FFUL << DOEPTSIZ_PKTCNT_Pos) // 0x1FF80000
+#define DOEPTSIZ_PKTCNT DOEPTSIZ_PKTCNT_Msk // Packet count
#define DOEPTSIZ_STUPCNT_Pos (29U)
-#define DOEPTSIZ_STUPCNT_Msk (0x3UL << DOEPTSIZ_STUPCNT_Pos) // 0x60000000 */
-#define DOEPTSIZ_STUPCNT DOEPTSIZ_STUPCNT_Msk // SETUP packet count */
-#define DOEPTSIZ_STUPCNT_0 (0x1UL << DOEPTSIZ_STUPCNT_Pos) // 0x20000000 */
-#define DOEPTSIZ_STUPCNT_1 (0x2UL << DOEPTSIZ_STUPCNT_Pos) // 0x40000000 */
+#define DOEPTSIZ_STUPCNT_Msk (0x3UL << DOEPTSIZ_STUPCNT_Pos) // 0x60000000
+#define DOEPTSIZ_STUPCNT DOEPTSIZ_STUPCNT_Msk // SETUP packet count
+#define DOEPTSIZ_STUPCNT_0 (0x1UL << DOEPTSIZ_STUPCNT_Pos) // 0x20000000
+#define DOEPTSIZ_STUPCNT_1 (0x2UL << DOEPTSIZ_STUPCNT_Pos) // 0x40000000
/******************** Bit definition for PCGCTL register ********************/
#define PCGCTL_IF_DEV_MODE TU_BIT(31)
diff --git a/src/portable/synopsys/dwc2/hwcfg_list.md b/src/portable/synopsys/dwc2/hwcfg_list.md
deleted file mode 100644
index b5590da00..000000000
--- a/src/portable/synopsys/dwc2/hwcfg_list.md
+++ /dev/null
@@ -1,777 +0,0 @@
-# DWC2 Hardware Configuration Registers
-
-## Broadcom BCM2711 (Pi4)
-
-dwc2->guid = 2708A000
-dwc2->gsnpsid = 4F54280A
-dwc2->ghwcfg1 = 0
-
-dwc2->ghwcfg2 = 228DDD50
-hw_cfg2->op_mode = 0
-hw_cfg2->arch = 2
-hw_cfg2->point2point = 0
-hw_cfg2->hs_phy_type = 1
-hw_cfg2->fs_phy_type = 1
-hw_cfg2->num_dev_ep = 7
-hw_cfg2->num_host_ch = 7
-hw_cfg2->period_channel_support = 1
-hw_cfg2->enable_dynamic_fifo = 1
-hw_cfg2->mul_cpu_int = 0
-hw_cfg2->nperiod_tx_q_depth = 2
-hw_cfg2->host_period_tx_q_depth = 2
-hw_cfg2->dev_token_q_depth = 8
-hw_cfg2->otg_enable_ic_usb = 0
-
-dwc2->ghwcfg3 = FF000E8
-hw_cfg3->xfer_size_width = 8
-hw_cfg3->packet_size_width = 6
-hw_cfg3->otg_enable = 1
-hw_cfg3->i2c_enable = 0
-hw_cfg3->vendor_ctrl_itf = 0
-hw_cfg3->optional_feature_removed = 0
-hw_cfg3->synch_reset = 0
-hw_cfg3->otg_adp_support = 0
-hw_cfg3->otg_enable_hsic = 0
-hw_cfg3->battery_charger_support = 0
-hw_cfg3->lpm_mode = 0
-hw_cfg3->total_fifo_size = 4080
-
-dwc2->ghwcfg4 = 1FF00020
-hw_cfg4->num_dev_period_in_ep = 0
-hw_cfg4->power_optimized = 0
-hw_cfg4->ahb_freq_min = 1
-hw_cfg4->hibernation = 0
-hw_cfg4->service_interval_mode = 0
-hw_cfg4->ipg_isoc_en = 0
-hw_cfg4->acg_enable = 0
-hw_cfg4->utmi_phy_data_width = 0
-hw_cfg4->dev_ctrl_ep_num = 0
-hw_cfg4->iddg_filter_enabled = 1
-hw_cfg4->vbus_valid_filter_enabled = 1
-hw_cfg4->a_valid_filter_enabled = 1
-hw_cfg4->b_valid_filter_enabled = 1
-hw_cfg4->dedicated_fifos = 1
-hw_cfg4->num_dev_in_eps = 15
-hw_cfg4->dma_desc_enable = 0
-hw_cfg4->dma_dynamic = 0
-
-## EFM32GG FS
-
-dwc2->guid = 0
-dwc2->gsnpsid = 4F54330A
-dwc2->ghwcfg1 = 0
-
-dwc2->ghwcfg2 = 228F5910
-hw_cfg2->op_mode = 0
-hw_cfg2->arch = 2
-hw_cfg2->point2point = 0
-hw_cfg2->hs_phy_type = 0
-hw_cfg2->fs_phy_type = 1
-hw_cfg2->num_dev_ep = 6
-hw_cfg2->num_host_ch = 13
-hw_cfg2->period_channel_support = 1
-hw_cfg2->enable_dynamic_fifo = 1
-hw_cfg2->mul_cpu_int = 0
-hw_cfg2->nperiod_tx_q_depth = 2
-hw_cfg2->host_period_tx_q_depth = 2
-hw_cfg2->dev_token_q_depth = 8
-hw_cfg2->otg_enable_ic_usb = 0
-
-dwc2->ghwcfg3 = 1F204E8
-hw_cfg3->xfer_size_width = 8
-hw_cfg3->packet_size_width = 6
-hw_cfg3->otg_enable = 1
-hw_cfg3->i2c_enable = 0
-hw_cfg3->vendor_ctrl_itf = 0
-hw_cfg3->optional_feature_removed = 1
-hw_cfg3->synch_reset = 0
-hw_cfg3->otg_adp_support = 0
-hw_cfg3->otg_enable_hsic = 0
-hw_cfg3->battery_charger_support = 0
-hw_cfg3->lpm_mode = 0
-hw_cfg3->total_fifo_size = 498
-
-dwc2->ghwcfg4 = 1BF08030
-hw_cfg4->num_dev_period_in_ep = 0
-hw_cfg4->power_optimized = 1
-hw_cfg4->ahb_freq_min = 1
-hw_cfg4->hibernation = 0
-hw_cfg4->service_interval_mode = 0
-hw_cfg4->ipg_isoc_en = 0
-hw_cfg4->acg_enable = 0
-hw_cfg4->utmi_phy_data_width = 2
-hw_cfg4->dev_ctrl_ep_num = 0
-hw_cfg4->iddg_filter_enabled = 1
-hw_cfg4->vbus_valid_filter_enabled = 1
-hw_cfg4->a_valid_filter_enabled = 1
-hw_cfg4->b_valid_filter_enabled = 1
-hw_cfg4->dedicated_fifos = 1
-hw_cfg4->num_dev_in_eps = 13
-hw_cfg4->dma_desc_enable = 0
-hw_cfg4->dma_dynamic = 0
-
-## ESP32-S2 Fullspeed
-
-dwc2->guid = 0
-dwc2->gsnpsid = 4F54400A
-dwc2->ghwcfg1 = 0
-
-dwc2->ghwcfg2 = 224DD930
-hw_cfg2->op_mode = 2
-hw_cfg2->arch = 3
-hw_cfg2->point2point = 0
-hw_cfg2->hs_phy_type = 1
-hw_cfg2->fs_phy_type = 2
-hw_cfg2->num_dev_ep = 6
-hw_cfg2->num_host_ch = 9
-hw_cfg2->period_channel_support = 0
-hw_cfg2->enable_dynamic_fifo = 1
-hw_cfg2->mul_cpu_int = 1
-hw_cfg2->nperiod_tx_q_depth = 1
-hw_cfg2->host_period_tx_q_depth = 2
-hw_cfg2->dev_token_q_depth = 22
-hw_cfg2->otg_enable_ic_usb = 0
-
-dwc2->ghwcfg3 = C804B5
-hw_cfg3->xfer_size_width = 10
-hw_cfg3->packet_size_width = 5
-hw_cfg3->otg_enable = 0
-hw_cfg3->i2c_enable = 0
-hw_cfg3->vendor_ctrl_itf = 1
-hw_cfg3->optional_feature_removed = 0
-hw_cfg3->synch_reset = 1
-hw_cfg3->otg_adp_support = 1
-hw_cfg3->otg_enable_hsic = 0
-hw_cfg3->battery_charger_support = 1
-hw_cfg3->lpm_mode = 0
-hw_cfg3->total_fifo_size = 23130
-
-dwc2->ghwcfg4 = D3F0A030
-hw_cfg4->num_dev_period_in_ep = 10
-hw_cfg4->power_optimized = 1
-hw_cfg4->ahb_freq_min = 0
-hw_cfg4->hibernation = 1
-hw_cfg4->service_interval_mode = 0
-hw_cfg4->ipg_isoc_en = 1
-hw_cfg4->acg_enable = 1
-hw_cfg4->utmi_phy_data_width = 1
-hw_cfg4->dev_ctrl_ep_num = 10
-hw_cfg4->iddg_filter_enabled = 1
-hw_cfg4->vbus_valid_filter_enabled = 0
-hw_cfg4->a_valid_filter_enabled = 1
-hw_cfg4->b_valid_filter_enabled = 0
-hw_cfg4->dedicated_fifos = 0
-hw_cfg4->num_dev_in_eps = 13
-hw_cfg4->dma_desc_enable = 0
-hw_cfg4->dma_dynamic = 1
-
-## STM32F407 and STM32F207
-
-STM32F407 and STM32F207 are exactly the same
-
-### STM32F407 Fullspeed
-
-dwc2->guid = 1200
-dwc2->gsnpsid = 4F54281A
-dwc2->ghwcfg1 = 0
-
-dwc2->ghwcfg2 = 229DCD20
-hw_cfg2->op_mode = 0
-hw_cfg2->arch = 0
-hw_cfg2->point2point = 1
-hw_cfg2->hs_phy_type = 0
-hw_cfg2->fs_phy_type = 1
-hw_cfg2->num_dev_ep = 3
-hw_cfg2->num_host_ch = 7
-hw_cfg2->period_channel_support = 1
-hw_cfg2->enable_dynamic_fifo = 1
-hw_cfg2->mul_cpu_int = 1
-hw_cfg2->nperiod_tx_q_depth = 2
-hw_cfg2->host_period_tx_q_depth = 2
-hw_cfg2->dev_token_q_depth = 8
-hw_cfg2->otg_enable_ic_usb = 0
-
-dwc2->ghwcfg3 = 20001E8
-hw_cfg3->xfer_size_width = 8
-hw_cfg3->packet_size_width = 6
-hw_cfg3->otg_enable = 1
-hw_cfg3->i2c_enable = 1
-hw_cfg3->vendor_ctrl_itf = 0
-hw_cfg3->optional_feature_removed = 0
-hw_cfg3->synch_reset = 0
-hw_cfg3->otg_adp_support = 0
-hw_cfg3->otg_enable_hsic = 0
-hw_cfg3->battery_charger_support = 0
-hw_cfg3->lpm_mode = 0
-hw_cfg3->total_fifo_size = 512
-
-dwc2->ghwcfg4 = FF08030
-hw_cfg4->num_dev_period_in_ep = 0
-hw_cfg4->power_optimized = 1
-hw_cfg4->ahb_freq_min = 1
-hw_cfg4->hibernation = 0
-hw_cfg4->service_interval_mode = 0
-hw_cfg4->ipg_isoc_en = 0
-hw_cfg4->acg_enable = 0
-hw_cfg4->utmi_phy_data_width = 2
-hw_cfg4->dev_ctrl_ep_num = 0
-hw_cfg4->iddg_filter_enabled = 1
-hw_cfg4->vbus_valid_filter_enabled = 1
-hw_cfg4->a_valid_filter_enabled = 1
-hw_cfg4->b_valid_filter_enabled = 1
-hw_cfg4->dedicated_fifos = 1
-hw_cfg4->num_dev_in_eps = 7
-hw_cfg4->dma_desc_enable = 0
-hw_cfg4->dma_dynamic = 0
-
-### STM32F407 Highspeed
-
-dwc2->guid = 1100
-dwc2->gsnpsid = 4F54281A
-dwc2->ghwcfg1 = 0
-
-dwc2->ghwcfg2 = 229ED590
-hw_cfg2->op_mode = 0
-hw_cfg2->arch = 2
-hw_cfg2->point2point = 0
-hw_cfg2->hs_phy_type = 2
-hw_cfg2->fs_phy_type = 1
-hw_cfg2->num_dev_ep = 5
-hw_cfg2->num_host_ch = 11
-hw_cfg2->period_channel_support = 1
-hw_cfg2->enable_dynamic_fifo = 1
-hw_cfg2->mul_cpu_int = 1
-hw_cfg2->nperiod_tx_q_depth = 2
-hw_cfg2->host_period_tx_q_depth = 2
-hw_cfg2->dev_token_q_depth = 8
-hw_cfg2->otg_enable_ic_usb = 0
-
-dwc2->ghwcfg3 = 3F403E8
-hw_cfg3->xfer_size_width = 8
-hw_cfg3->packet_size_width = 6
-hw_cfg3->otg_enable = 1
-hw_cfg3->i2c_enable = 1
-hw_cfg3->vendor_ctrl_itf = 1
-hw_cfg3->optional_feature_removed = 0
-hw_cfg3->synch_reset = 0
-hw_cfg3->otg_adp_support = 0
-hw_cfg3->otg_enable_hsic = 0
-hw_cfg3->battery_charger_support = 0
-hw_cfg3->lpm_mode = 0
-hw_cfg3->total_fifo_size = 1012
-
-dwc2->ghwcfg4 = 17F00030
-hw_cfg4->num_dev_period_in_ep = 0
-hw_cfg4->power_optimized = 1
-hw_cfg4->ahb_freq_min = 1
-hw_cfg4->hibernation = 0
-hw_cfg4->service_interval_mode = 0
-hw_cfg4->ipg_isoc_en = 0
-hw_cfg4->acg_enable = 0
-hw_cfg4->utmi_phy_data_width = 0
-hw_cfg4->dev_ctrl_ep_num = 0
-hw_cfg4->iddg_filter_enabled = 1
-hw_cfg4->vbus_valid_filter_enabled = 1
-hw_cfg4->a_valid_filter_enabled = 1
-hw_cfg4->b_valid_filter_enabled = 1
-hw_cfg4->dedicated_fifos = 1
-hw_cfg4->num_dev_in_eps = 11
-hw_cfg4->dma_desc_enable = 0
-hw_cfg4->dma_dynamic = 0
-
-## STM32F411 Fullspeed
-
-dwc2->guid = 1200
-dwc2->gsnpsid = 4F54281A
-dwc2->ghwcfg1 = 0
-
-dwc2->ghwcfg2 = 229DCD20
-hw_cfg2->op_mode = 0
-hw_cfg2->arch = 0
-hw_cfg2->point2point = 1
-hw_cfg2->hs_phy_type = 0
-hw_cfg2->fs_phy_type = 1
-hw_cfg2->num_dev_ep = 3
-hw_cfg2->num_host_ch = 7
-hw_cfg2->period_channel_support = 1
-hw_cfg2->enable_dynamic_fifo = 1
-hw_cfg2->mul_cpu_int = 1
-hw_cfg2->nperiod_tx_q_depth = 2
-hw_cfg2->host_period_tx_q_depth = 2
-hw_cfg2->dev_token_q_depth = 8
-hw_cfg2->otg_enable_ic_usb = 0
-
-dwc2->ghwcfg3 = 20001E8
-hw_cfg3->xfer_size_width = 8
-hw_cfg3->packet_size_width = 6
-hw_cfg3->otg_enable = 1
-hw_cfg3->i2c_enable = 1
-hw_cfg3->vendor_ctrl_itf = 0
-hw_cfg3->optional_feature_removed = 0
-hw_cfg3->synch_reset = 0
-hw_cfg3->otg_adp_support = 0
-hw_cfg3->otg_enable_hsic = 0
-hw_cfg3->battery_charger_support = 0
-hw_cfg3->lpm_mode = 0
-hw_cfg3->total_fifo_size = 512
-
-dwc2->ghwcfg4 = FF08030
-hw_cfg4->num_dev_period_in_ep = 0
-hw_cfg4->power_optimized = 1
-hw_cfg4->ahb_freq_min = 1
-hw_cfg4->hibernation = 0
-hw_cfg4->service_interval_mode = 0
-hw_cfg4->ipg_isoc_en = 0
-hw_cfg4->acg_enable = 0
-hw_cfg4->utmi_phy_data_width = 2
-hw_cfg4->dev_ctrl_ep_num = 0
-hw_cfg4->iddg_filter_enabled = 1
-hw_cfg4->vbus_valid_filter_enabled = 1
-hw_cfg4->a_valid_filter_enabled = 1
-hw_cfg4->b_valid_filter_enabled = 1
-hw_cfg4->dedicated_fifos = 1
-hw_cfg4->num_dev_in_eps = 7
-hw_cfg4->dma_desc_enable = 0
-hw_cfg4->dma_dynamic = 0
-
-## STM32F412 FS
-
-dwc2->guid = 2000
-dwc2->gsnpsid = 4F54320A
-dwc2->ghwcfg1 = 0
-
-dwc2->ghwcfg2 = 229ED520
-hw_cfg2->op_mode = 0
-hw_cfg2->arch = 0
-hw_cfg2->point2point = 1
-hw_cfg2->hs_phy_type = 0
-hw_cfg2->fs_phy_type = 1
-hw_cfg2->num_dev_ep = 5
-hw_cfg2->num_host_ch = 11
-hw_cfg2->period_channel_support = 1
-hw_cfg2->enable_dynamic_fifo = 1
-hw_cfg2->mul_cpu_int = 1
-hw_cfg2->nperiod_tx_q_depth = 2
-hw_cfg2->host_period_tx_q_depth = 2
-hw_cfg2->dev_token_q_depth = 8
-hw_cfg2->otg_enable_ic_usb = 0
-
-dwc2->ghwcfg3 = 200D1E8
-hw_cfg3->xfer_size_width = 8
-hw_cfg3->packet_size_width = 6
-hw_cfg3->otg_enable = 1
-hw_cfg3->i2c_enable = 1
-hw_cfg3->vendor_ctrl_itf = 0
-hw_cfg3->optional_feature_removed = 0
-hw_cfg3->synch_reset = 0
-hw_cfg3->otg_adp_support = 1
-hw_cfg3->otg_enable_hsic = 0
-hw_cfg3->battery_charger_support = 1
-hw_cfg3->lpm_mode = 1
-hw_cfg3->total_fifo_size = 512
-
-dwc2->ghwcfg4 = 17F08030
-hw_cfg4->num_dev_period_in_ep = 0
-hw_cfg4->power_optimized = 1
-hw_cfg4->ahb_freq_min = 1
-hw_cfg4->hibernation = 0
-hw_cfg4->service_interval_mode = 0
-hw_cfg4->ipg_isoc_en = 0
-hw_cfg4->acg_enable = 0
-hw_cfg4->utmi_phy_data_width = 2
-hw_cfg4->dev_ctrl_ep_num = 0
-hw_cfg4->iddg_filter_enabled = 1
-hw_cfg4->vbus_valid_filter_enabled = 1
-hw_cfg4->a_valid_filter_enabled = 1
-hw_cfg4->b_valid_filter_enabled = 1
-hw_cfg4->dedicated_fifos = 1
-hw_cfg4->num_dev_in_eps = 11
-hw_cfg4->dma_desc_enable = 0
-hw_cfg4->dma_dynamic = 0
-
-## STM32F723
-
-### STM32F723 HighSpeed
-
-dwc2->guid = 3100
-dwc2->gsnpsid = 4F54330A
-dwc2->ghwcfg1 = 0
-
-dwc2->ghwcfg2 = 229FE1D0
-hw_cfg2->op_mode = 0
-hw_cfg2->arch = 2
-hw_cfg2->point2point = 0
-hw_cfg2->hs_phy_type = 3
-hw_cfg2->fs_phy_type = 1
-hw_cfg2->num_dev_ep = 8
-hw_cfg2->num_host_ch = 15
-hw_cfg2->period_channel_support = 1
-hw_cfg2->enable_dynamic_fifo = 1
-hw_cfg2->mul_cpu_int = 1
-hw_cfg2->nperiod_tx_q_depth = 2
-hw_cfg2->host_period_tx_q_depth = 2
-hw_cfg2->dev_token_q_depth = 8
-hw_cfg2->otg_enable_ic_usb = 0
-
-dwc2->ghwcfg3 = 3EED2E8
-hw_cfg3->xfer_size_width = 8
-hw_cfg3->packet_size_width = 6
-hw_cfg3->otg_enable = 1
-hw_cfg3->i2c_enable = 0
-hw_cfg3->vendor_ctrl_itf = 1
-hw_cfg3->optional_feature_removed = 0
-hw_cfg3->synch_reset = 0
-hw_cfg3->otg_adp_support = 1
-hw_cfg3->otg_enable_hsic = 0
-hw_cfg3->battery_charger_support = 1
-hw_cfg3->lpm_mode = 1
-hw_cfg3->total_fifo_size = 1006
-
-dwc2->ghwcfg4 = 23F00030
-hw_cfg4->num_dev_period_in_ep = 0
-hw_cfg4->power_optimized = 1
-hw_cfg4->ahb_freq_min = 1
-hw_cfg4->hibernation = 0
-hw_cfg4->service_interval_mode = 0
-hw_cfg4->ipg_isoc_en = 0
-hw_cfg4->acg_enable = 0
-hw_cfg4->utmi_phy_data_width = 0
-hw_cfg4->dev_ctrl_ep_num = 0
-hw_cfg4->iddg_filter_enabled = 1
-hw_cfg4->vbus_valid_filter_enabled = 1
-hw_cfg4->a_valid_filter_enabled = 1
-hw_cfg4->b_valid_filter_enabled = 1
-hw_cfg4->dedicated_fifos = 1
-hw_cfg4->num_dev_in_eps = 1
-hw_cfg4->dma_desc_enable = 1
-hw_cfg4->dma_dynamic = 0
-
-### STM32F723 Fullspeed
-
-dwc2->guid = 3000
-dwc2->gsnpsid = 4F54330A
-dwc2->ghwcfg1 = 0
-
-dwc2->ghwcfg2 = 229ED520
-hw_cfg2->op_mode = 0
-hw_cfg2->arch = 0
-hw_cfg2->point2point = 1
-hw_cfg2->hs_phy_type = 0
-hw_cfg2->fs_phy_type = 1
-hw_cfg2->num_dev_ep = 5
-hw_cfg2->num_host_ch = 11
-hw_cfg2->period_channel_support = 1
-hw_cfg2->enable_dynamic_fifo = 1
-hw_cfg2->mul_cpu_int = 1
-hw_cfg2->nperiod_tx_q_depth = 2
-hw_cfg2->host_period_tx_q_depth = 2
-hw_cfg2->dev_token_q_depth = 8
-hw_cfg2->otg_enable_ic_usb = 0
-
-dwc2->ghwcfg3 = 200D1E8
-hw_cfg3->xfer_size_width = 8
-hw_cfg3->packet_size_width = 6
-hw_cfg3->otg_enable = 1
-hw_cfg3->i2c_enable = 1
-hw_cfg3->vendor_ctrl_itf = 0
-hw_cfg3->optional_feature_removed = 0
-hw_cfg3->synch_reset = 0
-hw_cfg3->otg_adp_support = 1
-hw_cfg3->otg_enable_hsic = 0
-hw_cfg3->battery_charger_support = 1
-hw_cfg3->lpm_mode = 1
-hw_cfg3->total_fifo_size = 512
-
-dwc2->ghwcfg4 = 17F08030
-hw_cfg4->num_dev_period_in_ep = 0
-hw_cfg4->power_optimized = 1
-hw_cfg4->ahb_freq_min = 1
-hw_cfg4->hibernation = 0
-hw_cfg4->service_interval_mode = 0
-hw_cfg4->ipg_isoc_en = 0
-hw_cfg4->acg_enable = 0
-hw_cfg4->utmi_phy_data_width = 2
-hw_cfg4->dev_ctrl_ep_num = 0
-hw_cfg4->iddg_filter_enabled = 1
-hw_cfg4->vbus_valid_filter_enabled = 1
-hw_cfg4->a_valid_filter_enabled = 1
-hw_cfg4->b_valid_filter_enabled = 1
-hw_cfg4->dedicated_fifos = 1
-hw_cfg4->num_dev_in_eps = 11
-hw_cfg4->dma_desc_enable = 0
-hw_cfg4->dma_dynamic = 0
-
-## STM32F767 FS
-
-dwc2->guid = 2000
-dwc2->gsnpsid = 4F54320A
-dwc2->ghwcfg1 = 0
-
-dwc2->ghwcfg2 = 229ED520
-hw_cfg2->op_mode = 0
-hw_cfg2->arch = 0
-hw_cfg2->point2point = 1
-hw_cfg2->hs_phy_type = 0
-hw_cfg2->fs_phy_type = 1
-hw_cfg2->num_dev_ep = 5
-hw_cfg2->num_host_ch = 11
-hw_cfg2->period_channel_support = 1
-hw_cfg2->enable_dynamic_fifo = 1
-hw_cfg2->mul_cpu_int = 1
-hw_cfg2->nperiod_tx_q_depth = 2
-hw_cfg2->host_period_tx_q_depth = 2
-hw_cfg2->dev_token_q_depth = 8
-hw_cfg2->otg_enable_ic_usb = 0
-
-dwc2->ghwcfg3 = 200D1E8
-hw_cfg3->xfer_size_width = 8
-hw_cfg3->packet_size_width = 6
-hw_cfg3->otg_enable = 1
-hw_cfg3->i2c_enable = 1
-hw_cfg3->vendor_ctrl_itf = 0
-hw_cfg3->optional_feature_removed = 0
-hw_cfg3->synch_reset = 0
-hw_cfg3->otg_adp_support = 1
-hw_cfg3->otg_enable_hsic = 0
-hw_cfg3->battery_charger_support = 1
-hw_cfg3->lpm_mode = 1
-hw_cfg3->total_fifo_size = 512
-
-dwc2->ghwcfg4 = 17F08030
-hw_cfg4->num_dev_period_in_ep = 0
-hw_cfg4->power_optimized = 1
-hw_cfg4->ahb_freq_min = 1
-hw_cfg4->hibernation = 0
-hw_cfg4->service_interval_mode = 0
-hw_cfg4->ipg_isoc_en = 0
-hw_cfg4->acg_enable = 0
-hw_cfg4->utmi_phy_data_width = 2
-hw_cfg4->dev_ctrl_ep_num = 0
-hw_cfg4->iddg_filter_enabled = 1
-hw_cfg4->vbus_valid_filter_enabled = 1
-hw_cfg4->a_valid_filter_enabled = 1
-hw_cfg4->b_valid_filter_enabled = 1
-hw_cfg4->dedicated_fifos = 1
-hw_cfg4->num_dev_in_eps = 11
-hw_cfg4->dma_desc_enable = 0
-hw_cfg4->dma_dynamic = 0
-
-## STM32H743 (both cores HS)
-
-dwc2->guid = 2300
-dwc2->gsnpsid = 4F54330A
-dwc2->ghwcfg1 = 0
-
-dwc2->ghwcfg2 = 229FE190
-hw_cfg2->op_mode = 0
-hw_cfg2->arch = 2
-hw_cfg2->point2point = 0
-hw_cfg2->hs_phy_type = 2
-hw_cfg2->fs_phy_type = 1
-hw_cfg2->num_dev_ep = 8
-hw_cfg2->num_host_ch = 15
-hw_cfg2->period_channel_support = 1
-hw_cfg2->enable_dynamic_fifo = 1
-hw_cfg2->mul_cpu_int = 1
-hw_cfg2->nperiod_tx_q_depth = 2
-hw_cfg2->host_period_tx_q_depth = 2
-hw_cfg2->dev_token_q_depth = 8
-hw_cfg2->otg_enable_ic_usb = 0
-
-dwc2->ghwcfg3 = 3B8D2E8
-hw_cfg3->xfer_size_width = 8
-hw_cfg3->packet_size_width = 6
-hw_cfg3->otg_enable = 1
-hw_cfg3->i2c_enable = 0
-hw_cfg3->vendor_ctrl_itf = 1
-hw_cfg3->optional_feature_removed = 0
-hw_cfg3->synch_reset = 0
-hw_cfg3->otg_adp_support = 1
-hw_cfg3->otg_enable_hsic = 0
-hw_cfg3->battery_charger_support = 1
-hw_cfg3->lpm_mode = 1
-hw_cfg3->total_fifo_size = 952
-
-dwc2->ghwcfg4 = E3F00030
-hw_cfg4->num_dev_period_in_ep = 0
-hw_cfg4->power_optimized = 1
-hw_cfg4->ahb_freq_min = 1
-hw_cfg4->hibernation = 0
-hw_cfg4->service_interval_mode = 0
-hw_cfg4->ipg_isoc_en = 0
-hw_cfg4->acg_enable = 0
-hw_cfg4->utmi_phy_data_width = 0
-hw_cfg4->dev_ctrl_ep_num = 0
-hw_cfg4->iddg_filter_enabled = 1
-hw_cfg4->vbus_valid_filter_enabled = 1
-hw_cfg4->a_valid_filter_enabled = 1
-hw_cfg4->b_valid_filter_enabled = 1
-hw_cfg4->dedicated_fifos = 1
-hw_cfg4->num_dev_in_eps = 1
-hw_cfg4->dma_desc_enable = 1
-hw_cfg4->dma_dynamic = 1
-
-## STM32L476 FS
-
-dwc2->guid = 2000
-dwc2->gsnpsid = 4F54310A
-dwc2->ghwcfg1 = 0
-
-dwc2->ghwcfg2 = 229ED520
-hw_cfg2->op_mode = 0
-hw_cfg2->arch = 0
-hw_cfg2->point2point = 1
-hw_cfg2->hs_phy_type = 0
-hw_cfg2->fs_phy_type = 1
-hw_cfg2->num_dev_ep = 5
-hw_cfg2->num_host_ch = 11
-hw_cfg2->period_channel_support = 1
-hw_cfg2->enable_dynamic_fifo = 1
-hw_cfg2->mul_cpu_int = 1
-hw_cfg2->nperiod_tx_q_depth = 2
-hw_cfg2->host_period_tx_q_depth = 2
-hw_cfg2->dev_token_q_depth = 8
-hw_cfg2->otg_enable_ic_usb = 0
-
-dwc2->ghwcfg3 = 200D1E8
-hw_cfg3->xfer_size_width = 8
-hw_cfg3->packet_size_width = 6
-hw_cfg3->otg_enable = 1
-hw_cfg3->i2c_enable = 1
-hw_cfg3->vendor_ctrl_itf = 0
-hw_cfg3->optional_feature_removed = 0
-hw_cfg3->synch_reset = 0
-hw_cfg3->otg_adp_support = 1
-hw_cfg3->otg_enable_hsic = 0
-hw_cfg3->battery_charger_support = 1
-hw_cfg3->lpm_mode = 1
-hw_cfg3->total_fifo_size = 512
-
-dwc2->ghwcfg4 = 17F08030
-hw_cfg4->num_dev_period_in_ep = 0
-hw_cfg4->power_optimized = 1
-hw_cfg4->ahb_freq_min = 1
-hw_cfg4->hibernation = 0
-hw_cfg4->service_interval_mode = 0
-hw_cfg4->ipg_isoc_en = 0
-hw_cfg4->acg_enable = 0
-hw_cfg4->utmi_phy_data_width = 2
-hw_cfg4->dev_ctrl_ep_num = 0
-hw_cfg4->iddg_filter_enabled = 1
-hw_cfg4->vbus_valid_filter_enabled = 1
-hw_cfg4->a_valid_filter_enabled = 1
-hw_cfg4->b_valid_filter_enabled = 1
-hw_cfg4->dedicated_fifos = 1
-hw_cfg4->num_dev_in_eps = 11
-hw_cfg4->dma_desc_enable = 0
-hw_cfg4->dma_dynamic = 0
-
-## GD32VF103 Fullspeed
-
-dwc2->guid = 1000
-dwc2->gsnpsid = 0
-dwc2->ghwcfg1 = 0
-
-dwc2->ghwcfg2 = 0
-hw_cfg2->op_mode = 0
-hw_cfg2->arch = 0
-hw_cfg2->point2point = 0
-hw_cfg2->hs_phy_type = 0
-hw_cfg2->fs_phy_type = 0
-hw_cfg2->num_dev_ep = 0
-hw_cfg2->num_host_ch = 0
-hw_cfg2->period_channel_support = 0
-hw_cfg2->enable_dynamic_fifo = 0
-hw_cfg2->mul_cpu_int = 0
-hw_cfg2->nperiod_tx_q_depth = 0
-hw_cfg2->host_period_tx_q_depth = 0
-hw_cfg2->dev_token_q_depth = 0
-hw_cfg2->otg_enable_ic_usb = 0
-
-dwc2->ghwcfg3 = 0
-hw_cfg3->xfer_size_width = 0
-hw_cfg3->packet_size_width = 0
-hw_cfg3->otg_enable = 0
-hw_cfg3->i2c_enable = 0
-hw_cfg3->vendor_ctrl_itf = 0
-hw_cfg3->optional_feature_removed = 0
-hw_cfg3->synch_reset = 0
-hw_cfg3->otg_adp_support = 0
-hw_cfg3->otg_enable_hsic = 0
-hw_cfg3->battery_charger_support = 0
-hw_cfg3->lpm_mode = 0
-hw_cfg3->total_fifo_size = 0
-
-dwc2->ghwcfg4 = 0
-hw_cfg4->num_dev_period_in_ep = 0
-hw_cfg4->power_optimized = 0
-hw_cfg4->ahb_freq_min = 0
-hw_cfg4->hibernation = 0
-hw_cfg4->service_interval_mode = 0
-hw_cfg4->ipg_isoc_en = 0
-hw_cfg4->acg_enable = 0
-hw_cfg4->utmi_phy_data_width = 0
-hw_cfg4->dev_ctrl_ep_num = 0
-hw_cfg4->iddg_filter_enabled = 0
-hw_cfg4->vbus_valid_filter_enabled = 0
-hw_cfg4->a_valid_filter_enabled = 0
-hw_cfg4->b_valid_filter_enabled = 0
-hw_cfg4->dedicated_fifos = 0
-hw_cfg4->num_dev_in_eps = 0
-hw_cfg4->dma_desc_enable = 0
-hw_cfg4->dma_dynamic = 0
-
-## XMC4500
-
-dwc2->guid = AEC000
-dwc2->gsnpsid = 4F54292A
-dwc2->ghwcfg1 = 0
-
-dwc2->ghwcfg2 = 228F5930
-hw_cfg2->op_mode = 0
-hw_cfg2->arch = 2
-hw_cfg2->point2point = 1
-hw_cfg2->hs_phy_type = 0
-hw_cfg2->fs_phy_type = 1
-hw_cfg2->num_dev_ep = 6
-hw_cfg2->num_host_ch = 13
-hw_cfg2->period_channel_support = 1
-hw_cfg2->enable_dynamic_fifo = 1
-hw_cfg2->mul_cpu_int = 0
-hw_cfg2->nperiod_tx_q_depth = 2
-hw_cfg2->host_period_tx_q_depth = 2
-hw_cfg2->dev_token_q_depth = 8
-hw_cfg2->otg_enable_ic_usb = 0
-
-dwc2->ghwcfg3 = 27A01E5
-hw_cfg3->xfer_size_width = 5
-hw_cfg3->packet_size_width = 6
-hw_cfg3->otg_enable = 1
-hw_cfg3->i2c_enable = 1
-hw_cfg3->vendor_ctrl_itf = 0
-hw_cfg3->optional_feature_removed = 0
-hw_cfg3->synch_reset = 0
-hw_cfg3->otg_adp_support = 0
-hw_cfg3->otg_enable_hsic = 0
-hw_cfg3->battery_charger_support = 0
-hw_cfg3->lpm_mode = 0
-hw_cfg3->total_fifo_size = 634
-
-dwc2->ghwcfg4 = DBF08030
-hw_cfg4->num_dev_period_in_ep = 0
-hw_cfg4->power_optimized = 1
-hw_cfg4->ahb_freq_min = 1
-hw_cfg4->hibernation = 0
-hw_cfg4->service_interval_mode = 0
-hw_cfg4->ipg_isoc_en = 0
-hw_cfg4->acg_enable = 0
-hw_cfg4->utmi_phy_data_width = 2
-hw_cfg4->dev_ctrl_ep_num = 0
-hw_cfg4->iddg_filter_enabled = 1
-hw_cfg4->vbus_valid_filter_enabled = 1
-hw_cfg4->a_valid_filter_enabled = 1
-hw_cfg4->b_valid_filter_enabled = 1
-hw_cfg4->dedicated_fifos = 1
-hw_cfg4->num_dev_in_eps = 13
-hw_cfg4->dma_desc_enable = 0
-hw_cfg4->dma_dynamic = 1
diff --git a/src/portable/template/dcd_template.c b/src/portable/template/dcd_template.c
index 590dd9fcf..12d610bd6 100644
--- a/src/portable/template/dcd_template.c
+++ b/src/portable/template/dcd_template.c
@@ -26,7 +26,7 @@
#include "tusb_option.h"
-#if CFG_TUSB_MCU == OPT_MCU_NONE
+#if CFG_TUD_ENABLED && CFG_TUSB_MCU == OPT_MCU_NONE
#include "device/dcd.h"
@@ -141,4 +141,6 @@ void dcd_edpt_clear_stall (uint8_t rhport, uint8_t ep_addr)
(void) ep_addr;
}
+
+
#endif
diff --git a/src/portable/template/hcd_template.c b/src/portable/template/hcd_template.c
new file mode 100644
index 000000000..b073d6057
--- /dev/null
+++ b/src/portable/template/hcd_template.c
@@ -0,0 +1,163 @@
+/*
+ * The MIT License (MIT)
+ *
+ * Copyright (c) 2023 Ha Thach (tinyusb.org)
+ *
+ * Permission is hereby granted, free of charge, to any person obtaining a copy
+ * of this software and associated documentation files (the "Software"), to deal
+ * in the Software without restriction, including without limitation the rights
+ * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
+ * copies of the Software, and to permit persons to whom the Software is
+ * furnished to do so, subject to the following conditions:
+ *
+ * The above copyright notice and this permission notice shall be included in
+ * all copies or substantial portions of the Software.
+ *
+ * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
+ * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
+ * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
+ * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
+ * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
+ * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
+ * THE SOFTWARE.
+ *
+ * This file is part of the TinyUSB stack.
+ */
+
+#include "tusb_option.h"
+
+#if CFG_TUH_ENABLED && CFG_TUSB_MCU == OPT_MCU_NONE
+
+#include "host/hcd.h"
+
+//--------------------------------------------------------------------+
+// Controller API
+//--------------------------------------------------------------------+
+
+// optional hcd configuration, called by tuh_configure()
+bool hcd_configure(uint8_t rhport, uint32_t cfg_id, const void* cfg_param) {
+ (void) rhport;
+ (void) cfg_id;
+ (void) cfg_param;
+
+ return false;
+}
+
+// Initialize controller to host mode
+bool hcd_init(uint8_t rhport) {
+ (void) rhport;
+
+ return false;
+}
+
+// Interrupt Handler
+void hcd_int_handler(uint8_t rhport, bool in_isr) {
+ (void) rhport;
+ (void) in_isr;
+}
+
+// Enable USB interrupt
+void hcd_int_enable (uint8_t rhport) {
+ (void) rhport;
+}
+
+// Disable USB interrupt
+void hcd_int_disable(uint8_t rhport) {
+ (void) rhport;
+}
+
+// Get frame number (1ms)
+uint32_t hcd_frame_number(uint8_t rhport) {
+ (void) rhport;
+
+ return 0;
+}
+
+//--------------------------------------------------------------------+
+// Port API
+//--------------------------------------------------------------------+
+
+// Get the current connect status of roothub port
+bool hcd_port_connect_status(uint8_t rhport) {
+ (void) rhport;
+
+ return false;
+}
+
+// Reset USB bus on the port. Return immediately, bus reset sequence may not be complete.
+// Some port would require hcd_port_reset_end() to be invoked after 10ms to complete the reset sequence.
+void hcd_port_reset(uint8_t rhport) {
+ (void) rhport;
+}
+
+// Complete bus reset sequence, may be required by some controllers
+void hcd_port_reset_end(uint8_t rhport) {
+ (void) rhport;
+}
+
+// Get port link speed
+tusb_speed_t hcd_port_speed_get(uint8_t rhport) {
+ (void) rhport;
+
+ return TUSB_SPEED_FULL;
+}
+
+// HCD closes all opened endpoints belong to this device
+void hcd_device_close(uint8_t rhport, uint8_t dev_addr) {
+ (void) rhport;
+ (void) dev_addr;
+}
+
+//--------------------------------------------------------------------+
+// Endpoints API
+//--------------------------------------------------------------------+
+
+// Open an endpoint
+bool hcd_edpt_open(uint8_t rhport, uint8_t dev_addr, tusb_desc_endpoint_t const * ep_desc) {
+ (void) rhport;
+ (void) dev_addr;
+ (void) ep_desc;
+
+ return false;
+}
+
+// Submit a transfer, when complete hcd_event_xfer_complete() must be invoked
+bool hcd_edpt_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr, uint8_t * buffer, uint16_t buflen) {
+ (void) rhport;
+ (void) dev_addr;
+ (void) ep_addr;
+ (void) buffer;
+ (void) buflen;
+
+ return false;
+}
+
+// Abort a queued transfer. Note: it can only abort transfer that has not been started
+// Return true if a queued transfer is aborted, false if there is no transfer to abort
+bool hcd_edpt_abort_xfer(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr) {
+ (void) rhport;
+ (void) dev_addr;
+ (void) ep_addr;
+
+ return false;
+}
+
+// Submit a special transfer to send 8-byte Setup Packet, when complete hcd_event_xfer_complete() must be invoked
+bool hcd_setup_send(uint8_t rhport, uint8_t dev_addr, uint8_t const setup_packet[8]) {
+ (void) rhport;
+ (void) dev_addr;
+ (void) setup_packet;
+
+ return false;
+}
+
+// clear stall, data toggle is also reset to DATA0
+bool hcd_edpt_clear_stall(uint8_t rhport, uint8_t dev_addr, uint8_t ep_addr) {
+ (void) rhport;
+ (void) dev_addr;
+ (void) ep_addr;
+
+ return false;
+}
+
+#endif
diff --git a/src/portable/ti/msp430x5xx/dcd_msp430x5xx.c b/src/portable/ti/msp430x5xx/dcd_msp430x5xx.c
index b4dfda575..8005f5f7b 100644
--- a/src/portable/ti/msp430x5xx/dcd_msp430x5xx.c
+++ b/src/portable/ti/msp430x5xx/dcd_msp430x5xx.c
@@ -94,7 +94,8 @@ static void bus_reset(void)
USBOEPCNT_0 &= ~NAK;
USBIEPCNT_0 &= ~NAK;
- USBCTL |= FEN; // Enable responding to packets.
+ // Enable responding to packets.
+ USBCTL |= FEN;
// Dedicated buffers in hardware for SETUP and EP0, no setup needed.
// Now safe to respond to SETUP packets.
@@ -103,6 +104,28 @@ static void bus_reset(void)
USBKEYPID = 0;
}
+// Controls reset behavior of the USB module on receipt of a bus reset event.
+// - enable: When true, bus reset events will cause a reset the USB module.
+static void enable_functional_reset(const bool enable)
+{
+ // Check whether or not the USB configuration registers were
+ // locked prior to this function being called so that, if
+ // necessary, the lock state can be restored on exit.
+ bool unlocked = (USBKEYPID == 0xA528) ? true : false;
+
+ if(!unlocked) USBKEYPID = USBKEY;
+
+ if(enable)
+ {
+ USBCTL |= FRSTE;
+ }
+ else
+ {
+ USBCTL &= ~FRSTE;
+ }
+
+ if(!unlocked) USBKEYPID = 0;
+}
/*------------------------------------------------------------------*/
/* Controller API
@@ -131,11 +154,14 @@ void dcd_init (uint8_t rhport)
USBVECINT = 0;
- // Enable reset and wait for it before continuing.
- USBIE |= RSTRIE;
-
- // Enable pullup.
- USBCNF |= PUR_EN;
+ if(USBPWRCTL & USBBGVBV) {// Bus power detected?
+ USBPWRCTL |= VBOFFIE; // Enable bus-power-removed interrupt.
+ USBIE |= RSTRIE; // Enable reset and wait for it before continuing.
+ USBCNF |= PUR_EN; // Enable pullup.
+ } else {
+ USBPWRCTL |= VBONIE; // Enable bus-power-applied interrupt.
+ USBCNF &= ~USB_EN; // Disable USB module until bus power is detected.
+ }
USBKEYPID = 0;
}
@@ -610,14 +636,76 @@ static void handle_setup_packet(void)
_setup_packet[i] = setup_buf[i];
}
- // Clearing SETUPIFG by reading USBVECINT does not set NAK, so now that we
- // have a SETUP packet, force NAKs until tinyusb can handle the SETUP
- // packet and prepare for a new xfer.
+ // Force NAKs until tinyusb can handle the SETUP packet and prepare for a new xfer.
USBIEPCNT_0 |= NAK;
USBOEPCNT_0 |= NAK;
+
+ // Clear SETUPIFG to avoid handling in the USBVECINT switch statement.
+ // When handled there the NAKs applied to the endpoints above are
+ // cleared by hardware and the host will receive stale/duplicate data.
+ //
+ // Excerpt from MSP430x5xx and MSP430x6xx Family User's Guide:
+ //
+ // "...the SETUPIFG is cleared upon reading USBIV. In addition, the NAK on
+ // input endpoint 0 and output endpoint 0 is also cleared."
+ USBIEPCNF_0 &= ~UBME; // Errata USB10 workaround.
+ USBOEPCNF_0 &= ~UBME; // Errata USB10 workaround.
+ USBIFG &= ~SETUPIFG;
+ USBIEPCNF_0 |= UBME; // Errata USB10 workaround.
+ USBOEPCNF_0 |= UBME; // Errata USB10 workaround.
dcd_event_setup_received(0, (uint8_t*) &_setup_packet[0], true);
}
+#if CFG_TUSB_OS == OPT_OS_NONE
+TU_ATTR_ALWAYS_INLINE static inline void tu_delay(uint32_t ms) {
+ // msp430 can run up to 25Mhz -> 40ns per cycle. 1 ms = 25000 cycles
+ // each loop need 4 cycle: 1 sub, 1 cmp, 1 jump, 1 nop
+ volatile uint32_t cycles = (25000 * ms) >> 2;
+ while (cycles > 0) {
+ cycles--;
+ asm("nop");
+ }
+}
+#else
+#define tu_delay(ms) osal_task_delay(ms)
+#endif
+
+static void handle_bus_power_event(void *param) {
+ (void) param;
+
+ tu_delay(5); // Bus power settling delay.
+
+ USBKEYPID = USBKEY;
+
+ if(USBPWRCTL & USBBGVBV) { // Event caused by application of bus power.
+ USBPWRCTL |= VBOFFIE; // Enable bus-power-removed interrupt.
+ USBPLLDIVB = USBPLLDIVB; // For some reason the PLL will *NOT* lock unless the divider
+ // register is re-written. The assumption here is that this
+ // register was already properly configured during board-level
+ // initialization.
+ USBPLLCTL |= (UPLLEN | UPFDEN); // Enable the PLL.
+
+ uint16_t attempts = 0;
+ do { // Poll the PLL, checking for a successful lock.
+ USBPLLIR = 0;
+ tu_delay(1);
+ attempts++;
+ } while ((attempts < 10) && (USBPLLIR != 0));
+
+ // A successful lock is indicated by all PLL-related interrupt flags being cleared.
+ if(!USBPLLIR) {
+ dcd_init(0); // Re-initialize the USB module.
+ }
+ } else { // Event caused by removal of bus power.
+ USBPWRCTL |= VBONIE; // Enable bus-power-applied interrupt.
+ USBPLLCTL &= ~(UPLLEN | UPFDEN); // Disable the PLL.
+ USBCNF = 0; // Disable the USB module.
+ dcd_event_bus_signal(0, DCD_EVENT_UNPLUGGED, false);
+ }
+
+ USBKEYPID = 0;
+}
+
void dcd_int_handler(uint8_t rhport)
{
(void) rhport;
@@ -628,6 +716,7 @@ void dcd_int_handler(uint8_t rhport)
if(setup_status)
{
+ enable_functional_reset(true);
handle_setup_packet();
}
@@ -646,11 +735,32 @@ void dcd_int_handler(uint8_t rhport)
switch(curr_vector)
{
+ case USBVECINT_NONE:
+ break;
+
case USBVECINT_RSTR:
+ enable_functional_reset(false); // Errata USB4 workaround.
bus_reset();
dcd_event_bus_reset(0, TUSB_SPEED_FULL, true);
break;
+ case USBVECINT_PWR_VBUSOn:
+ case USBVECINT_PWR_VBUSOff: {
+ USBKEYPID = USBKEY;
+ // Prevent (possibly) unstable power from generating spurious interrupts.
+ USBPWRCTL &= ~(VBONIE | VBOFFIE);
+ USBKEYPID = 0;
+
+ dcd_event_t event;
+
+ event.rhport = 0;
+ event.event_id = USBD_EVENT_FUNC_CALL;
+ event.func_call.func = handle_bus_power_event;
+
+ dcd_event_handler(&event, true);
+ }
+ break;
+
// Clear the (hardware-enforced) NAK on EP 0 after a SETUP packet
// is received. At this point, even though the hardware is no longer
// forcing NAKs, the EP0 NAK bits should still be set to avoid
@@ -675,10 +785,12 @@ void dcd_int_handler(uint8_t rhport)
break;
case USBVECINT_INPUT_ENDPOINT0:
+ enable_functional_reset(true);
transmit_packet(0);
break;
case USBVECINT_OUTPUT_ENDPOINT0:
+ enable_functional_reset(true);
receive_packet(0);
break;
@@ -710,7 +822,6 @@ void dcd_int_handler(uint8_t rhport)
default:
while(true);
- break;
}
}
diff --git a/src/portable/wch/ch32v307/ch32_usbhs_reg.h b/src/portable/wch/ch32_usbhs_reg.h
index 5a2c1fbc9..9b956231f 100644
--- a/src/portable/wch/ch32v307/ch32_usbhs_reg.h
+++ b/src/portable/wch/ch32_usbhs_reg.h
@@ -1,7 +1,11 @@
#ifndef _USB_CH32_USBHS_REG_H
#define _USB_CH32_USBHS_REG_H
+#if (CFG_TUSB_MCU == OPT_MCU_CH32V307)
#include <ch32v30x.h>
+#elif (CFG_TUSB_MCU == OPT_MCU_CH32F20X)
+#include <ch32f20x.h>
+#endif
/******************* GLOBAL ******************/
diff --git a/src/portable/wch/ch32v307/dcd_usbhs.c b/src/portable/wch/dcd_ch32_usbhs.c
index 843643ef7..41c1d8c7c 100644
--- a/src/portable/wch/ch32v307/dcd_usbhs.c
+++ b/src/portable/wch/dcd_ch32_usbhs.c
@@ -26,11 +26,11 @@
#include "tusb_option.h"
-#if CFG_TUD_ENABLED && (CFG_TUSB_MCU == OPT_MCU_CH32V307)
+#if CFG_TUD_ENABLED && ((CFG_TUSB_MCU == OPT_MCU_CH32V307) || (CFG_TUSB_MCU == OPT_MCU_CH32F20X))
#include "device/dcd.h"
#include "ch32_usbhs_reg.h"
-#include "core_riscv.h"
+
// Max number of bi-directional endpoints including EP0
#define EP_MAX 16
@@ -73,7 +73,7 @@ void dcd_init(uint8_t rhport) {
#if TUD_OPT_HIGH_SPEED
USBHSD->CONTROL = USBHS_DMA_EN | USBHS_INT_BUSY_EN | USBHS_HIGH_SPEED;
#else
- #error OPT_MODE_FULL_SPEED not currently supported on CH32V307
+ #error OPT_MODE_FULL_SPEED not currently supported on CH32
USBHSD->CONTROL = USBHS_DMA_EN | USBHS_INT_BUSY_EN | USBHS_FULL_SPEED;
#endif