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-rw-r--r--src/portable/analog/max3421/hcd_max3421.c84
-rw-r--r--src/portable/chipidea/ci_hs/dcd_ci_hs.c13
-rw-r--r--src/portable/ehci/ehci.c2
-rw-r--r--src/portable/espressif/esp32sx/dcd_esp32sx.c3
-rw-r--r--src/portable/microchip/samd/dcd_samd.c11
-rw-r--r--src/portable/mindmotion/mm32/dcd_mm32f327x_otg.c11
-rw-r--r--src/portable/nordic/nrf5x/dcd_nrf5x.c629
-rw-r--r--src/portable/nxp/khci/dcd_khci.c2
-rw-r--r--src/portable/nxp/lpc_ip3511/dcd_lpc_ip3511.c13
-rw-r--r--src/portable/raspberrypi/rp2040/rp2040_usb.c13
-rw-r--r--src/portable/renesas/rusb2/dcd_rusb2.c181
-rw-r--r--src/portable/renesas/rusb2/hcd_rusb2.c89
-rw-r--r--src/portable/st/stm32_fsdev/dcd_stm32_fsdev.c1534
-rw-r--r--src/portable/st/stm32_fsdev/dcd_stm32_fsdev.h538
-rw-r--r--src/portable/st/stm32_fsdev/fsdev_ch32.h220
-rw-r--r--src/portable/st/stm32_fsdev/fsdev_stm32.h334
-rw-r--r--src/portable/st/stm32_fsdev/fsdev_type.h282
-rw-r--r--src/portable/sunxi/dcd_sunxi_musb.c14
-rw-r--r--src/portable/synopsys/dwc2/dcd_dwc2.c102
-rw-r--r--src/portable/synopsys/dwc2/dwc2_esp32.h1
-rw-r--r--src/portable/synopsys/dwc2/dwc2_type.h33
-rw-r--r--src/portable/ti/msp430x5xx/dcd_msp430x5xx.c131
-rw-r--r--src/portable/wch/ch32_usbfs_reg.h175
-rw-r--r--src/portable/wch/ch32_usbhs_reg.h82
-rw-r--r--src/portable/wch/dcd_ch32_usbfs.c344
-rw-r--r--src/portable/wch/dcd_ch32_usbhs.c559
26 files changed, 2960 insertions, 2440 deletions
diff --git a/src/portable/analog/max3421/hcd_max3421.c b/src/portable/analog/max3421/hcd_max3421.c
index 39afb7505..d9b8e1fc3 100644
--- a/src/portable/analog/max3421/hcd_max3421.c
+++ b/src/portable/analog/max3421/hcd_max3421.c
@@ -174,7 +174,8 @@ enum {
enum {
EP_STATE_IDLE = 0,
EP_STATE_COMPLETE = 1,
- EP_STATE_ATTEMPT_1 = 2, // pending 1st attempt
+ EP_STATE_ABORTING = 2,
+ EP_STATE_ATTEMPT_1 = 3, // pending 1st attempt
EP_STATE_ATTEMPT_MAX = 15
};
@@ -459,6 +460,7 @@ bool hcd_configure(uint8_t rhport, uint32_t cfg_id, const void* cfg_param) {
tuh_configure_param_t const* cfg = (tuh_configure_param_t const*) cfg_param;
_tuh_cfg = cfg->max3421;
+ _tuh_cfg.max_nak = tu_min8(_tuh_cfg.max_nak, EP_STATE_ATTEMPT_MAX-EP_STATE_ATTEMPT_1);
return true;
}
@@ -479,13 +481,15 @@ bool hcd_init(uint8_t rhport) {
_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_ASSERT(revision == 0x01 || revision == 0x12 || revision == 0x13, false);
TU_LOG2_HEX(revision);
+ TU_ASSERT(revision == 0x01 || revision == 0x12 || revision == 0x13, false);
// reset
reg_write(rhport, USBCTL_ADDR, USBCTL_CHIPRES, false);
@@ -676,7 +680,6 @@ static void xact_generic(uint8_t rhport, max3421_ep_t *ep, bool switch_ep, bool
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);
@@ -700,14 +703,19 @@ bool hcd_edpt_xfer(uint8_t rhport, uint8_t daddr, uint8_t ep_addr, uint8_t * buf
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;
+bool hcd_edpt_abort_xfer(uint8_t rhport, uint8_t daddr, uint8_t ep_addr) {
+ 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);
- return false;
+ if (EP_STATE_ATTEMPT_1 <= ep->state && ep->state < EP_STATE_ATTEMPT_MAX) {
+ hcd_int_disable(rhport);
+ ep->state = EP_STATE_ABORTING;
+ hcd_int_enable(rhport);
+ }
+
+ return true;
}
// Submit a special transfer to send 8-byte Setup Packet, when complete hcd_event_xfer_complete() must be invoked
@@ -817,7 +825,6 @@ static void xfer_complete_isr(uint8_t rhport, max3421_ep_t *ep, xfer_result_t re
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;
@@ -827,34 +834,30 @@ static void handle_xfer_done(uint8_t rhport, bool in_isr) {
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);
+ if (ep->state == EP_STATE_ABORTING) {
+ ep->state = EP_STATE_IDLE;
} else {
- if (ep->state < EP_STATE_ATTEMPT_MAX) {
+ if (ep_num == 0) {
+ // control endpoint -> retry immediately and return
+ hxfr_write(rhport, _hcd_data.hxfr, in_isr);
+ return;
+ } else if (EP_STATE_ATTEMPT_1 <= ep->state && 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);
- }
+ 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;
@@ -862,6 +865,14 @@ static void handle_xfer_done(uint8_t rhport, bool in_isr) {
// occurred when initialized without any pending transfer. Skip for now
return;
+ case HRSL_SUCCESS:
+ xfer_result = XFER_RESULT_SUCCESS;
+ break;
+
+ case HRSL_STALL:
+ xfer_result = XFER_RESULT_STALLED;
+ break;
+
default:
TU_LOG3("HRSL: %02X\r\n", hrsl);
xfer_result = XFER_RESULT_FAILED;
@@ -940,9 +951,8 @@ void hcd_int_handler(uint8_t rhport, bool in_isr) {
if (hirq & HIRQ_FRAME_IRQ) {
_hcd_data.frame_count++;
+ // reset all endpoints nak counter, retry with 1st pending ep.
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) {
@@ -1002,7 +1012,7 @@ void hcd_int_handler(uint8_t rhport, bool 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 ) {
+ if (hirq) {
hirq_write(rhport, hirq, in_isr);
}
}
diff --git a/src/portable/chipidea/ci_hs/dcd_ci_hs.c b/src/portable/chipidea/ci_hs/dcd_ci_hs.c
index f9ec666e5..93e1d78dd 100644
--- a/src/portable/chipidea/ci_hs/dcd_ci_hs.c
+++ b/src/portable/chipidea/ci_hs/dcd_ci_hs.c
@@ -309,10 +309,12 @@ void dcd_disconnect(uint8_t rhport)
void dcd_sof_enable(uint8_t rhport, bool en)
{
- (void) rhport;
- (void) en;
-
- // TODO implement later
+ ci_hs_regs_t* dcd_reg = CI_HS_REG(rhport);
+ if (en) {
+ dcd_reg->USBINTR |= INTR_SOF;
+ } else {
+ dcd_reg->USBINTR &= ~INTR_SOF;
+ }
}
//--------------------------------------------------------------------+
@@ -679,7 +681,8 @@ void dcd_int_handler(uint8_t rhport)
if (int_status & INTR_SOF)
{
- dcd_event_bus_signal(rhport, DCD_EVENT_SOF, true);
+ const uint32_t frame = dcd_reg->FRINDEX;
+ dcd_event_sof(rhport, frame, true);
}
}
diff --git a/src/portable/ehci/ehci.c b/src/portable/ehci/ehci.c
index e145cbb1b..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);
diff --git a/src/portable/espressif/esp32sx/dcd_esp32sx.c b/src/portable/espressif/esp32sx/dcd_esp32sx.c
index bfc0baa56..f912bef89 100644
--- a/src/portable/espressif/esp32sx/dcd_esp32sx.c
+++ b/src/portable/espressif/esp32sx/dcd_esp32sx.c
@@ -31,7 +31,8 @@
#if (((CFG_TUSB_MCU == OPT_MCU_ESP32S2) || (CFG_TUSB_MCU == OPT_MCU_ESP32S3)) && CFG_TUD_ENABLED)
// Espressif
-#include "xtensa_api.h"
+#include "xtensa/xtensa_api.h"
+
#include "esp_intr_alloc.h"
#include "esp_log.h"
#include "soc/dport_reg.h"
diff --git a/src/portable/microchip/samd/dcd_samd.c b/src/portable/microchip/samd/dcd_samd.c
index 976d3dfd0..005b63faf 100644
--- a/src/portable/microchip/samd/dcd_samd.c
+++ b/src/portable/microchip/samd/dcd_samd.c
@@ -183,9 +183,12 @@ void dcd_connect(uint8_t rhport)
void dcd_sof_enable(uint8_t rhport, bool en)
{
(void) rhport;
- (void) en;
- // TODO implement later
+ if (en) {
+ USB->DEVICE.INTENSET.bit.SOF = 1;
+ } else {
+ USB->DEVICE.INTENCLR.bit.SOF = 1;
+ }
}
/*------------------------------------------------------------------*/
@@ -374,7 +377,9 @@ void dcd_int_handler (uint8_t rhport)
if ( int_status & USB_DEVICE_INTFLAG_SOF )
{
USB->DEVICE.INTFLAG.reg = USB_DEVICE_INTFLAG_SOF;
- dcd_event_bus_signal(0, DCD_EVENT_SOF, true);
+ const uint32_t frame = USB->DEVICE.FNUM.bit.FNUM;
+ dcd_event_sof(0, frame, true);
+ //dcd_event_bus_signal(0, DCD_EVENT_SOF, true);
}
// SAMD doesn't distinguish between Suspend and Disconnect state.
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 80a285ef0..1cc5c1836 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 +113,85 @@ 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;
+
+ // Track whether sof has been manually enabled
+ bool sof_enabled;
+} _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, is_in_isr());
+ } 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 +201,7 @@ 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 +215,13 @@ 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 +230,22 @@ static void xact_in_dma(uint8_t epnum)
//--------------------------------------------------------------------+
// Controller API
//--------------------------------------------------------------------+
-void dcd_init (uint8_t rhport)
-{
+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 +260,7 @@ 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 +269,7 @@ 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;
@@ -299,56 +279,51 @@ 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;
-
- // TODO implement later
+ if (en) {
+ _dcd.sof_enabled = true;
+ NRF_USBD->INTENSET = USBD_INTENSET_SOF_Msk;
+ } else {
+ _dcd.sof_enabled = false;
+ NRF_USBD->INTENCLR = USBD_INTENCLR_SOF_Msk;
+ }
}
//--------------------------------------------------------------------+
// 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);
}
// 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
- {
+ } 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;
@@ -361,9 +336,7 @@ 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.
@@ -374,39 +347,38 @@ 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;
}
}
- __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;
@@ -415,107 +387,89 @@ 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);
}
@@ -523,42 +477,37 @@ 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
@@ -571,26 +520,25 @@ 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
@@ -600,43 +548,40 @@ 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;
@@ -645,13 +590,11 @@ 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;
// Transfer from endpoint to RAM only if data is not corrupted
if ((int_status & USBD_INTEN_USBEVENT_Msk) == 0 ||
@@ -661,38 +604,39 @@ void dcd_int_handler(uint8_t rhport)
}
// 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 )
- {
- // 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;
+ if (!iso_enabled && !_dcd.sof_enabled) {
+ // SOF interrupt not manually enabled and ISO endpoint is not used,
+ // SOF is only enabled one-time for remote wakeup so we disable it now
+
+ NRF_USBD->INTENCLR = USBD_INTENCLR_SOF_Msk;
}
- dcd_event_bus_signal(0, DCD_EVENT_SOF, true);
+ const uint32_t frame = NRF_USBD->FRAMECNTR;
+ dcd_event_sof(0, frame, true);
+ //dcd_event_bus_signal(0, DCD_EVENT_SOF, true);
}
- if ( int_status & USBD_INTEN_USBEVENT_Msk )
- {
- TU_LOG(3, "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 | USBD_EVENTCAUSE_ISOOUTCRC_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;
@@ -700,8 +644,7 @@ 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;
@@ -713,34 +656,29 @@ 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();
@@ -782,30 +720,24 @@ 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;
@@ -819,11 +751,11 @@ 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.
@@ -832,22 +764,18 @@ 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);
}
@@ -855,17 +783,13 @@ 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;
@@ -889,76 +813,80 @@ 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
@@ -971,8 +899,7 @@ 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,
@@ -980,51 +907,42 @@ void tusb_hal_nrf_power_event (uint32_t event)
USB_EVT_READY = 2
};
-#if CFG_TUSB_DEBUG >= 2
- const char* const power_evt_str[] = { "Detected", "Removed", "Ready" };
- TU_LOG(2, "Power USB event: %s\r\n", power_evt_str[event]);
+#if CFG_TUSB_DEBUG >= 3
+ const char* const power_evt_str[] = {"Detected", "Removed", "Ready"};
+ TU_LOG(3, "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();
}
@@ -1032,64 +950,58 @@ 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
@@ -1101,30 +1013,31 @@ 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);
@@ -1133,15 +1046,17 @@ 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 dc71117b3..ef61146aa 100644
--- a/src/portable/nxp/khci/dcd_khci.c
+++ b/src/portable/nxp/khci/dcd_khci.c
@@ -540,7 +540,7 @@ void dcd_int_handler(uint8_t rhport)
}
if (is & USB_ISTAT_SLEEP_MASK) {
- // TU_LOG2("Suspend: "); TU_LOG2_HEX(is);
+ // TU_LOG3("Suspend: "); TU_LOG2_HEX(is);
// Note Host usually has extra delay after bus reset (without SOF), which could falsely
// detected as Sleep event. Though usbd has debouncing logic so we are good
diff --git a/src/portable/nxp/lpc_ip3511/dcd_lpc_ip3511.c b/src/portable/nxp/lpc_ip3511/dcd_lpc_ip3511.c
index f4ed09d83..cc18cf59b 100644
--- a/src/portable/nxp/lpc_ip3511/dcd_lpc_ip3511.c
+++ b/src/portable/nxp/lpc_ip3511/dcd_lpc_ip3511.c
@@ -42,7 +42,18 @@
#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"
@@ -239,7 +250,7 @@ TU_ATTR_ALWAYS_INLINE static inline bool ep_is_iso(ep_cmd_sts_t* ep_cs, bool is_
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 static inline bool ep_is_bulk(ep_cmd_sts_t* ep_cs) {
+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);
}
diff --git a/src/portable/raspberrypi/rp2040/rp2040_usb.c b/src/portable/raspberrypi/rp2040/rp2040_usb.c
index 1ca711c77..43f48da39 100644
--- a/src/portable/raspberrypi/rp2040/rp2040_usb.c
+++ b/src/portable/raspberrypi/rp2040/rp2040_usb.c
@@ -53,6 +53,14 @@ TU_ATTR_ALWAYS_INLINE static inline bool is_host_mode(void) {
//--------------------------------------------------------------------+
// Implementation
//--------------------------------------------------------------------+
+// Provide own byte by byte memcpy as not all copies are aligned
+static void unaligned_memcpy(void *dst, const void *src, size_t n) {
+ uint8_t *dst_byte = (uint8_t*)dst;
+ const uint8_t *src_byte = (const uint8_t*)src;
+ while (n--) {
+ *dst_byte++ = *src_byte++;
+ }
+}
void rp2040_usb_init(void) {
// Reset usb controller
@@ -67,7 +75,6 @@ void rp2040_usb_init(void) {
#pragma GCC diagnostic ignored "-Wstringop-overflow"
#endif
#endif
- memset(usb_hw, 0, sizeof(*usb_hw));
memset(usb_dpram, 0, sizeof(*usb_dpram));
#ifdef __GNUC__
#pragma GCC diagnostic pop
@@ -125,7 +132,7 @@ static uint32_t __tusb_irq_path_func(prepare_ep_buffer)(struct hw_endpoint* ep,
if (!ep->rx) {
// Copy data from user buffer to hw buffer
- memcpy(ep->hw_data_buf + buf_id * 64, ep->user_buf, buflen);
+ unaligned_memcpy(ep->hw_data_buf + buf_id * 64, ep->user_buf, buflen);
ep->user_buf += buflen;
// Mark as full
@@ -230,7 +237,7 @@ static uint16_t __tusb_irq_path_func(sync_ep_buffer)(struct hw_endpoint* ep, uin
// 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);
+ unaligned_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;
}
diff --git a/src/portable/renesas/rusb2/dcd_rusb2.c b/src/portable/renesas/rusb2/dcd_rusb2.c
index 24edc30e7..7c6044ca0 100644
--- a/src/portable/renesas/rusb2/dcd_rusb2.c
+++ b/src/portable/renesas/rusb2/dcd_rusb2.c
@@ -29,10 +29,6 @@
#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
-
#include "device/dcd.h"
#include "rusb2_type.h"
@@ -57,30 +53,25 @@
//--------------------------------------------------------------------+
// MACRO TYPEDEF CONSTANT ENUM
//--------------------------------------------------------------------+
+enum {
+ PIPE_COUNT = 10,
+};
-/* 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
-{
+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 */
+ // Track whether sof has been manually enabled
+ bool sof_enabled;
} dcd_data_t;
static dcd_data_t _dcd;
@@ -89,52 +80,44 @@ static dcd_data_t _dcd;
// INTERNAL OBJECT & FUNCTION DECLARATION
//--------------------------------------------------------------------+
-// Transfer conditions specifiable for each pipe:
-// - Pipe 0: Control transfer with 64-byte single buffer
-// - Pipes 1 and 2: Bulk isochronous transfer continuous transfer mode with programmable buffer size up
-// to 2 KB and optional double buffer
-// - Pipes 3 to 5: Bulk transfer continuous transfer mode with programmable buffer size up to 2 KB and
-// optional double buffer
-// - Pipes 6 to 9: Interrupt transfer with 64-byte single buffer
-enum {
- PIPE_1ST_BULK = 3,
- PIPE_1ST_INTERRUPT = 6,
- PIPE_COUNT = 10,
-};
-
-static unsigned find_pipe(unsigned xfer)
-{
- switch (xfer) {
- case TUSB_XFER_ISOCHRONOUS:
- for (int i = 1; i < PIPE_1ST_BULK; ++i) {
- if (0 == _dcd.pipe[i].ep) return i;
- }
- break;
- case TUSB_XFER_BULK:
- for (int i = PIPE_1ST_BULK; i < PIPE_1ST_INTERRUPT; ++i) {
- if (0 == _dcd.pipe[i].ep) return i;
- }
- for (int i = 1; i < PIPE_1ST_BULK; ++i) {
- if (0 == _dcd.pipe[i].ep) return i;
- }
- 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
- case TUSB_XFER_INTERRUPT:
- for (int i = PIPE_1ST_INTERRUPT; i < PIPE_COUNT; ++i) {
- if (0 == _dcd.pipe[i].ep) return i;
- }
- break;
+ // 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];
- default:
- /* No support for control transfer */
- break;
+ 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(rusb2_reg_t *rusb, unsigned num)
-{
+static volatile uint16_t* get_pipectr(rusb2_reg_t *rusb, unsigned num) {
if (num) {
return (volatile uint16_t*)&(rusb->PIPE_CTR[num - 1]);
} else {
@@ -142,8 +125,7 @@ static volatile uint16_t* get_pipectr(rusb2_reg_t *rusb, unsigned num)
}
}
-static volatile reg_pipetre_t* get_pipetre(rusb2_reg_t *rusb, 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*)&(rusb->PIPE_TR[num - 1].E);
@@ -151,8 +133,7 @@ static volatile reg_pipetre_t* get_pipetre(rusb2_reg_t *rusb, unsigned num)
return tre;
}
-static volatile uint16_t* ep_addr_to_pipectr(uint8_t rhport, unsigned ep_addr)
-{
+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);
@@ -165,19 +146,16 @@ static volatile uint16_t* ep_addr_to_pipectr(uint8_t rhport, unsigned ep_addr)
}
}
-static uint16_t edpt0_max_packet_size(rusb2_reg_t* rusb)
-{
+static uint16_t edpt0_max_packet_size(rusb2_reg_t* rusb) {
return rusb->DCPMAXP_b.MXPS;
}
-static uint16_t edpt_max_packet_size(rusb2_reg_t *rusb, unsigned num)
-{
+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(rusb2_reg_t * rusb, unsigned num)
-{
+static inline void pipe_wait_for_ready(rusb2_reg_t * rusb, unsigned num) {
while ( rusb->D0FIFOSEL_b.CURPIPE != num ) {}
while ( !rusb->D0FIFOCTR_b.FRDY ) {}
}
@@ -266,14 +244,6 @@ static void pipe_read_packet_ff(rusb2_reg_t * rusb, tu_fifo_t *f, volatile void
tu_fifo_advance_write_pointer(f, count);
}
-
-static bool wait_pipe_fifo_empty(rusb2_reg_t* rusb, uint8_t num) {
- TU_ASSERT(num);
- while( (rusb->PIPE_CTR[num-1] & RUSB2_PIPE_CTR_INBUFM_Msk) > 0 ) {}
- return true;
-}
-
-
//--------------------------------------------------------------------+
// Pipe Transfer
//--------------------------------------------------------------------+
@@ -347,7 +317,6 @@ static bool pipe_xfer_in(rusb2_reg_t* rusb, unsigned num)
const unsigned rem = pipe->remaining;
if (!rem) {
- wait_pipe_fifo_empty(rusb, num);
pipe->buf = NULL;
return true;
}
@@ -693,6 +662,10 @@ void dcd_init(uint8_t rhport)
rusb2_reg_t* rusb = RUSB2_REG(rhport);
rusb2_module_start(rhport, true);
+// We disable SOF for now until needed later on.
+// Since TinyUSB doesn't use SOF for now, and this interrupt often (1ms interval)
+_dcd.sof_enabled = false;
+
#ifdef RUSB2_SUPPORT_HIGHSPEED
if ( rusb2_is_highspeed_rhport(rhport) ) {
rusb->SYSCFG_b.HSE = 1;
@@ -737,7 +710,7 @@ void dcd_init(uint8_t rhport)
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_DVST_Msk | RUSB2_INTSTS0_CTRT_Msk | (_dcd.sof_enabled ? RUSB2_INTSTS0_SOFR_Msk : 0) |
RUSB2_INTSTS0_RESM_Msk;
rusb->BEMPENB = 1;
rusb->BRDYENB = 1;
@@ -785,10 +758,9 @@ void dcd_disconnect(uint8_t rhport)
void dcd_sof_enable(uint8_t rhport, bool en)
{
- (void) rhport;
- (void) en;
-
- // TODO implement later
+ rusb2_reg_t* rusb = RUSB2_REG(rhport);
+ _dcd.sof_enabled = en;
+ rusb->INTENB0_b.SOFE = en ? 1: 0;
}
//--------------------------------------------------------------------+
@@ -844,7 +816,7 @@ bool dcd_edpt_open(uint8_t rhport, tusb_desc_endpoint_t const * ep_desc)
}
rusb->PIPECFG = cfg;
- rusb->BRDYSTS = 0x1FFu ^ TU_BIT(num);
+ rusb->BRDYSTS = 0x3FFu ^ TU_BIT(num);
rusb->BRDYENB |= TU_BIT(num);
if (dir || (xfer != TUSB_XFER_BULK)) {
@@ -944,6 +916,18 @@ 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)
{
rusb2_reg_t* rusb = RUSB2_REG(rhport);
@@ -966,18 +950,19 @@ void dcd_int_handler(uint8_t rhport)
// Resumed
if ( is0 & RUSB2_INTSTS0_RESM_Msk ) {
dcd_event_bus_signal(rhport, DCD_EVENT_RESUME, true);
-#if (0 == USE_SOF)
- rusb->INTENB0_b.SOFE = 0;
-#endif
+ if (!_dcd.sof_enabled) {
+ rusb->INTENB0_b.SOFE = 0;
+ }
}
// 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)
- rusb->INTENB0_b.SOFE = 0;
-#endif
+ const uint32_t frame = rusb->FRMNUM_b.FRNM;
+ dcd_event_sof(rhport, frame, true);
+ if (!_dcd.sof_enabled) {
+ rusb->INTENB0_b.SOFE = 0;
+ }
}
// Device state changes
@@ -996,9 +981,9 @@ void dcd_int_handler(uint8_t rhport)
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
+ if (!_dcd.sof_enabled) {
+ rusb->INTENB0_b.SOFE = 1;
+ }
default: break;
}
@@ -1035,17 +1020,7 @@ void dcd_int_handler(uint8_t rhport)
/* clear active bits (don't write 0 to already cleared bits according to the HW manual) */
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 bf95be707..f140da690 100644
--- a/src/portable/renesas/rusb2/hcd_rusb2.c
+++ b/src/portable/renesas/rusb2/hcd_rusb2.c
@@ -45,6 +45,9 @@
//--------------------------------------------------------------------+
// MACRO TYPEDEF CONSTANT ENUM DECLARATION
//--------------------------------------------------------------------+
+enum {
+ PIPE_COUNT = 10,
+};
TU_ATTR_PACKED_BEGIN
TU_ATTR_BIT_FIELD_ORDER_BEGIN
@@ -75,7 +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;
@@ -86,46 +89,30 @@ typedef struct
static hcd_data_t _hcd;
// TODO merged with DCD
-// Transfer conditions specifiable for each pipe:
+// Transfer conditions specifiable for each pipe for most MCUs
// - Pipe 0: Control transfer with 64-byte single buffer
-// - Pipes 1 and 2: Bulk isochronous transfer continuous transfer mode with programmable buffer size up
-// to 2 KB and optional double buffer
-// - Pipes 3 to 5: Bulk transfer continuous transfer mode with programmable buffer size up to 2 KB and
-// optional double buffer
-// - Pipes 6 to 9: Interrupt transfer with 64-byte single buffer
-enum {
- PIPE_1ST_BULK = 3,
- PIPE_1ST_INTERRUPT = 6,
- PIPE_COUNT = 10,
-};
-
-static unsigned find_pipe(unsigned xfer) {
- switch ( xfer ) {
- case TUSB_XFER_ISOCHRONOUS:
- for (int i = 1; i < PIPE_1ST_BULK; ++i) {
- if ( 0 == _hcd.pipe[i].ep ) return i;
- }
- break;
-
- case TUSB_XFER_BULK:
- for (int i = PIPE_1ST_BULK; i < PIPE_1ST_INTERRUPT; ++i) {
- if ( 0 == _hcd.pipe[i].ep ) return i;
- }
- for (int i = 1; i < PIPE_1ST_BULK; ++i) {
- if ( 0 == _hcd.pipe[i].ep ) return i;
- }
- break;
+// - 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
+ };
- case TUSB_XFER_INTERRUPT:
- for (int i = PIPE_1ST_INTERRUPT; i < PIPE_COUNT; ++i) {
- if ( 0 == _hcd.pipe[i].ep ) return i;
- }
- break;
+ // 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];
- default:
- /* No support for control transfer */
- break;
+ for (int i = idx_last; i >= idx_first; i--) {
+ if (0 == _hcd.pipe[i].ep) return i;
}
+
return 0;
}
@@ -718,7 +705,7 @@ bool hcd_edpt_open(uint8_t rhport, uint8_t dev_addr, tusb_desc_endpoint_t const
}
rusb->PIPECFG = cfg;
- rusb->BRDYSTS = 0x1FFu ^ TU_BIT(num);
+ rusb->BRDYSTS = 0x3FFu ^ TU_BIT(num);
rusb->NRDYENB |= TU_BIT(num);
rusb->BRDYENB |= TU_BIT(num);
@@ -771,6 +758,17 @@ bool hcd_edpt_clear_stall(uint8_t rhport, uint8_t dev_addr, 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 hcd_int_handler(uint8_t rhport, bool in_isr) {
(void) in_isr;
@@ -820,23 +818,12 @@ void hcd_int_handler(uint8_t rhport, bool in_isr) {
}
}
-#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};
-#endif
-
if (is0 & RUSB2_INTSTS0_NRDY_Msk) {
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);
}
@@ -847,11 +834,7 @@ void hcd_int_handler(uint8_t rhport, bool in_isr) {
/* clear active bits (don't write 0 to already cleared bits according to the HW manual) */
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/st/stm32_fsdev/dcd_stm32_fsdev.c b/src/portable/st/stm32_fsdev/dcd_stm32_fsdev.c
index 7bf726f3f..cff328418 100644
--- a/src/portable/st/stm32_fsdev/dcd_stm32_fsdev.c
+++ b/src/portable/st/stm32_fsdev/dcd_stm32_fsdev.c
@@ -37,14 +37,20 @@
* It also should work with minimal changes for any ST MCU with an "USB A"/"PCD"/"HCD" peripheral. This
* covers:
*
- * F04x, F072, F078, 070x6/B 1024 byte buffer
+ * F04x, F072, F078, F070x6/B 1024 byte buffer
* F102, F103 512 byte buffer; no internal D+ pull-up (maybe many more changes?)
* F302xB/C, F303xB/C, F373 512 byte buffer; no internal D+ pull-up
* F302x6/8, F302xD/E2, F303xD/E 1024 byte buffer; no internal D+ pull-up
+ * G0 2048 byte buffer; 32-bit bus; host mode
+ * G4 1024 byte buffer
+ * H5 2048 byte buffer; 32-bit bus; host mode
* L0x2, L0x3 1024 byte buffer
* L1 512 byte buffer
* L4x2, L4x3 1024 byte buffer
- * G0 2048 byte buffer
+ * L5 1024 byte buffer
+ * U0 1024 byte buffer; 32-bit bus
+ * U535, U545 2048 byte buffer; 32-bit bus; host mode
+ * WB35, WB55 1024 byte buffer
*
* To use this driver, you must:
* - If you are using a device with crystal-less USB, set up the clock recovery system (CRS)
@@ -102,74 +108,53 @@
#include "tusb_option.h"
-#if CFG_TUD_ENABLED && defined(TUP_USBIP_FSDEV)
+#if CFG_TUD_ENABLED && defined(TUP_USBIP_FSDEV) && \
+ !(defined(TUP_USBIP_FSDEV_CH32) && CFG_TUD_WCH_USBIP_FSDEV == 0)
#include "device/dcd.h"
-#ifdef TUP_USBIP_FSDEV_STM32
+#if defined(TUP_USBIP_FSDEV_STM32)
// Undefine to reduce the dependence on HAL
#undef USE_HAL_DRIVER
- #include "portable/st/stm32_fsdev/dcd_stm32_fsdev.h"
-#endif
-
-/*****************************************************
- * Configuration
- *****************************************************/
-
-// 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
+ #include "fsdev_stm32.h"
+#elif defined(TUP_USBIP_FSDEV_CH32)
+ #include "fsdev_ch32.h"
+#else
+ #error "Unknown USB IP"
#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
-#endif
+#include "fsdev_type.h"
-#ifndef DCD_STM32_BTABLE_SIZE
-# define DCD_STM32_BTABLE_SIZE (FSDEV_PMA_SIZE - DCD_STM32_BTABLE_BASE)
-#endif
+//--------------------------------------------------------------------+
+// Configuration
+//--------------------------------------------------------------------+
-/***************************************************
- * Checks, structs, defines, function definitions, etc.
- */
-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_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");
//--------------------------------------------------------------------+
// MACRO CONSTANT TYPEDEF
//--------------------------------------------------------------------+
// 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];
} ep_alloc_t;
-static xfer_ctl_t xfer_status[MAX_EP_COUNT][2];
-
-static ep_alloc_t ep_alloc_status[STFSDEV_EP_COUNT];
-
-static TU_ATTR_ALIGNED(4) uint32_t _setup_packet[6];
+static xfer_ctl_t xfer_status[CFG_TUD_ENDPPOINT_MAX][2];
+static ep_alloc_t ep_alloc_status[FSDEV_EP_COUNT];
static uint8_t remoteWakeCountdown; // When wake is requested
@@ -178,267 +163,86 @@ 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_ep_ctr_handler(void);
+static void handle_bus_reset(uint8_t rhport);
+static void dcd_transmit_packet(xfer_ctl_t *xfer, uint16_t ep_ix);
+static bool edpt_xfer(uint8_t rhport, uint8_t ep_num, uint8_t dir);
// 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 len, 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(uint16_t dst, const void *__restrict src, uint16_t nbytes);
+static bool dcd_read_packet_memory(void *__restrict dst, uint16_t src, uint16_t nbytes);
-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);
+
+static void edpt0_open(uint8_t rhport);
//--------------------------------------------------------------------+
// Inline helper
//--------------------------------------------------------------------+
-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);
- // Fix -Werror=null-dereference
- TU_ASSERT(epnum < MAX_EP_COUNT, &xfer_status[0][0]);
-
+TU_ATTR_ALWAYS_INLINE static inline xfer_ctl_t *xfer_ctl_ptr(uint8_t epnum, uint8_t dir) {
return &xfer_status[epnum][dir];
}
//--------------------------------------------------------------------+
// Controller API
//--------------------------------------------------------------------+
-
-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 */
-
- /* 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
- {
+void dcd_init(uint8_t rhport) {
+ // Follow the RM mentions to use a special ordering of PDWN and FRES
+ for (volatile 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
- {
+ FSDEV_REG->CNTR = USB_CNTR_FRES | USB_CNTR_PDWN;
+ for (volatile uint32_t i = 0; i < 200; i++) { // should be a few us
asm("NOP");
}
- USB->CNTR &= ~USB_CNTR_PDWN;
+ FSDEV_REG->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 (volatile uint32_t i = 0; i < 200; i++) { // should be a few us
asm("NOP");
}
- USB->CNTR = 0; // Enable USB
+ FSDEV_REG->CNTR = 0; // Enable USB
-#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;
+#if !defined(FSDEV_BUS_32BIT)
+ // BTABLE register does not exist any more on 32-bit bus devices
+ FSDEV_REG->BTABLE = FSDEV_BTABLE_BASE;
#endif
- USB->ISTR = 0; // Clear pending interrupts
+
+ FSDEV_REG->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 < FSDEV_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);
+ ep_write(i, 0u);
}
- USB->CNTR |= USB_CNTR_RESETM | USB_CNTR_ESOFM | USB_CNTR_CTRM | USB_CNTR_SUSPM | USB_CNTR_WKUPM;
- dcd_handle_bus_reset();
+ FSDEV_REG->CNTR |= USB_CNTR_RESETM | USB_CNTR_ESOFM | USB_CNTR_CTRM | USB_CNTR_SUSPM | USB_CNTR_WKUPM;
+ handle_bus_reset(rhport);
// Enable pull-up if supported
- if ( dcd_connect ) dcd_connect(rhport);
-}
-
-// Define only on MCU with internal pull-up. BSP can define on MCU without internal PU.
-#if defined(USB_BCDR_DPPU)
-
-// Disable internal D+ PU
-void dcd_disconnect(uint8_t rhport)
-{
- (void) rhport;
- USB->BCDR &= ~(USB_BCDR_DPPU);
-}
-
-// Enable internal D+ PU
-void dcd_connect(uint8_t rhport)
-{
- (void) rhport;
- USB->BCDR |= USB_BCDR_DPPU;
-}
-
-#elif defined(SYSCFG_PMC_USB_PU) // works e.g. on STM32L151
-// Disable internal D+ PU
-void dcd_disconnect(uint8_t rhport)
-{
- (void) rhport;
- SYSCFG->PMC &= ~(SYSCFG_PMC_USB_PU);
-}
-
-// Enable internal D+ PU
-void dcd_connect(uint8_t rhport)
-{
- (void) rhport;
- SYSCFG->PMC |= SYSCFG_PMC_USB_PU;
-}
-#endif
-
-void dcd_sof_enable(uint8_t rhport, bool en)
-{
- (void) rhport;
- (void) en;
-
- if (en)
- {
- USB->CNTR |= USB_CNTR_SOFM;
- }
- else
- {
- USB->CNTR &= ~USB_CNTR_SOFM;
- }
-}
-
-// Enable device interrupt
-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
- 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)
- {
- NVIC_EnableIRQ(USB_HP_IRQn);
- NVIC_EnableIRQ(USB_LP_IRQn);
- NVIC_EnableIRQ(USBWakeUp_RMP_IRQn);
- }
- else
- #endif
- {
- NVIC_EnableIRQ(USB_HP_CAN_TX_IRQn);
- NVIC_EnableIRQ(USB_LP_CAN_RX0_IRQn);
- NVIC_EnableIRQ(USBWakeUp_IRQn);
- }
-#elif CFG_TUSB_MCU == OPT_MCU_STM32F1
- NVIC_EnableIRQ(USB_HP_CAN1_TX_IRQn);
- NVIC_EnableIRQ(USB_LP_CAN1_RX0_IRQn);
- NVIC_EnableIRQ(USBWakeUp_IRQn);
-
-#elif CFG_TUSB_MCU == OPT_MCU_STM32G4
- NVIC_EnableIRQ(USB_HP_IRQn);
- NVIC_EnableIRQ(USB_LP_IRQn);
- 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
-
-#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);
- NVIC_EnableIRQ(USB_LP_IRQn);
-
-#elif CFG_TUSB_MCU == OPT_MCU_STM32L5
- NVIC_EnableIRQ(USB_FS_IRQn);
-
-#else
- #error Unknown arch in USB driver
-#endif
+ dcd_connect(rhport);
}
-// Disable device interrupt
-void dcd_int_disable(uint8_t rhport)
-{
+void dcd_sof_enable(uint8_t rhport, bool en) {
(void)rhport;
-#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)
- {
- NVIC_DisableIRQ(USB_HP_IRQn);
- NVIC_DisableIRQ(USB_LP_IRQn);
- NVIC_DisableIRQ(USBWakeUp_RMP_IRQn);
- }
- else
- #endif
- {
- NVIC_DisableIRQ(USB_HP_CAN_TX_IRQn);
- NVIC_DisableIRQ(USB_LP_CAN_RX0_IRQn);
- NVIC_DisableIRQ(USBWakeUp_IRQn);
+ if (en) {
+ FSDEV_REG->CNTR |= USB_CNTR_SOFM;
+ } else {
+ FSDEV_REG->CNTR &= ~USB_CNTR_SOFM;
}
-#elif CFG_TUSB_MCU == OPT_MCU_STM32F1
- NVIC_DisableIRQ(USB_HP_CAN1_TX_IRQn);
- NVIC_DisableIRQ(USB_LP_CAN1_RX0_IRQn);
- NVIC_DisableIRQ(USBWakeUp_IRQn);
-
-#elif CFG_TUSB_MCU == OPT_MCU_STM32G4
- NVIC_DisableIRQ(USB_HP_IRQn);
- NVIC_DisableIRQ(USB_LP_IRQn);
- 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
-
-#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);
- NVIC_DisableIRQ(USB_LP_IRQn);
-
-#elif CFG_TUSB_MCU == OPT_MCU_STM32L5
- NVIC_DisableIRQ(USB_FS_IRQn);
-
-#else
- #error Unknown arch in USB driver
-#endif
-
- // CMSIS has a membar after disabling interrupts
}
// 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 dcd_set_address(uint8_t rhport, uint8_t dev_addr) {
+ (void)dev_addr;
// Respond with status
dcd_edpt_xfer(rhport, TUSB_DIR_IN_MASK | 0x00, NULL, 0);
@@ -447,46 +251,17 @@ void dcd_set_address(uint8_t rhport, uint8_t dev_addr)
// do it at dcd_edpt0_status_complete()
}
-void dcd_remote_wakeup(uint8_t rhport)
-{
- (void) rhport;
+void dcd_remote_wakeup(uint8_t rhport) {
+ (void)rhport;
- USB->CNTR |= USB_CNTR_RESUME;
+ FSDEV_REG->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 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);
+static void handle_bus_reset(uint8_t rhport) {
+ FSDEV_REG->DADDR = 0u; // disable USB Function
+ for (uint32_t i = 0; i < FSDEV_EP_COUNT; i++) {
// Clear EP allocation status
ep_alloc_status[i].ep_num = 0xFF;
ep_alloc_status[i].ep_type = 0xFF;
@@ -494,47 +269,52 @@ 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 = FSDEV_BTABLE_BASE + 8 * FSDEV_EP_COUNT;
+
+ edpt0_open(rhport); // open control endpoint (both IN & OUT)
- USB->DADDR = USB_DADDR_EF; // Set enable flag, and leaving the device address as zero.
+ FSDEV_REG->DADDR = USB_DADDR_EF; // Enable USB Function
}
// Handle CTR interrupt for the TX/IN direction
-//
-// Upon call, (wIstr & USB_ISTR_DIR) == 0U
-static void dcd_ep_ctr_tx_handler(uint32_t wIstr)
-{
- uint32_t EPindex = wIstr & USB_ISTR_EP_ID;
- uint32_t wEPRegVal = pcd_get_endpoint(USB, EPindex);
- uint8_t ep_addr = (wEPRegVal & USB_EPADDR_FIELD) | TUSB_DIR_IN_MASK;
+static void handle_ctr_tx(uint32_t ep_id) {
+ uint32_t ep_reg = ep_read(ep_id) & USB_EPREG_MASK;
- // 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)
- {
- return;
- }
+ // Verify the CTR bit is set. This was in the ST Micro code, but I'm not sure it's actually necessary?
+ TU_VERIFY(ep_reg & USB_EP_CTR_TX, );
- /* clear int flag */
- pcd_clear_tx_ep_ctr(USB, EPindex);
+ uint8_t const ep_num = ep_reg & USB_EPADDR_FIELD;
+ uint8_t ep_addr = (ep_reg & USB_EPADDR_FIELD) | TUSB_DIR_IN_MASK;
+ xfer_ctl_t *xfer = xfer_ctl_ptr(ep_num, TUSB_DIR_IN);
- xfer_ctl_t * xfer = xfer_ctl_ptr(ep_addr);
- if((xfer->total_len != xfer->queued_len)) /* TX not complete */
- {
- dcd_transmit_packet(xfer, EPindex);
+ if (ep_is_iso(ep_reg)) {
+ // 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;
+ uint8_t buf_id = (ep_reg & USB_EP_DTOG_TX) ? 0 : 1;
+ btable_set_count(ep_id, buf_id, 0);
}
- else /* TX Complete */
- {
+
+ if (xfer->total_len != xfer->queued_len) {
+ dcd_transmit_packet(xfer, ep_id); // also clear CTR bit
+ } else {
dcd_event_xfer_complete(0, ep_addr, xfer->total_len, XFER_RESULT_SUCCESS, true);
+
+ // Clear CTR TX and reserved CTR RX
+ ep_reg = (ep_reg & ~USB_EP_CTR_TX) | USB_EP_CTR_RX;
+
+ ep_write(ep_id, ep_reg);
}
}
// 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
+static void handle_ctr_rx(uint32_t ep_id) {
+#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:
@@ -544,200 +324,157 @@ static void dcd_ep_ctr_rx_handler(uint32_t wIstr) {
* - 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 40 cycles (count = 20).
+ * 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 2 cycle (1 cycle for sub, 1 cycle for compare/jump)
+ cycle_count--; // each count take 3 cycles (1 for sub, jump, and compare)
}
- #endif
+#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;
+ uint32_t ep_reg = ep_read(ep_id);
- xfer_ctl_t *xfer = xfer_ctl_ptr(ep_addr);
+ // Verify the CTR bit is set. This was in the ST Micro code, but I'm not sure it's actually necessary?
+ TU_VERIFY(ep_reg & USB_EP_CTR_RX, );
+ ep_reg = (ep_reg & ~USB_EP_CTR_RX) | USB_EP_CTR_TX; // Clear CTR RX and reserved CTR TX
- // 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) {
- return;
- }
+ uint8_t const ep_num = ep_reg & USB_EPADDR_FIELD;
- 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.
- {
- // 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 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);
-#endif
- }
- }
- else
- {
- uint32_t count;
- /* 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);
- } else {
- count = pcd_get_ep_rx_cnt(USB, EPindex);
- }
+ if (ep_reg & USB_EP_SETUP) {
+ uint32_t count = btable_get_count(ep_id, BTABLE_BUF_RX);
+ // Setup packet should always be 8 bytes. If not, ignore it, and try again.
+ if (count == 8) {
+ uint16_t rx_addr = btable_get_addr(ep_id, BTABLE_BUF_RX);
+ uint32_t setup_packet[2];
+ dcd_read_packet_memory(setup_packet, rx_addr, 8);
+ dcd_event_setup_received(0, (uint8_t*) setup_packet, true);
- TU_ASSERT(count <= xfer->max_packet_size, /**/);
+ // Reset EP to NAK (in case it had been stalling)
+ ep_reg = ep_add_status(ep_reg, TUSB_DIR_IN, EP_STAT_NAK);
+ ep_reg = ep_add_status(ep_reg, TUSB_DIR_OUT, EP_STAT_NAK);
- // Clear RX CTR interrupt flag
- if(ep_addr != 0u)
- {
- pcd_clear_rx_ep_ctr(USB, EPindex);
+ ep_reg = ep_add_dtog(ep_reg, TUSB_DIR_IN, 1);
+ ep_reg = ep_add_dtog(ep_reg, TUSB_DIR_OUT, 1);
+ } else {
+ ep_reg &= USB_EPREG_MASK; // reversed all toggle
}
+ } else {
+ ep_reg &= USB_EPRX_STAT | USB_EPREG_MASK; // reversed all toggle except RX Status
- if (count != 0U)
- {
- uint16_t addr = pcd_get_ep_rx_address(USB, EPindex);
-
- if (xfer->ff)
- {
- dcd_read_packet_memory_ff(xfer->ff, addr, count);
- }
- else
- {
- dcd_read_packet_memory(&(xfer->buffer[xfer->queued_len]), addr, count);
- }
+ bool const is_iso = ep_is_iso(ep_reg);
+ xfer_ctl_t *xfer = xfer_ctl_ptr(ep_num, TUSB_DIR_OUT);
- xfer->queued_len = (uint16_t)(xfer->queued_len + count);
+ uint8_t buf_id;
+ if (is_iso) {
+ buf_id = (ep_reg & USB_EP_DTOG_RX) ? 0 : 1; // ISO are double buffered
+ } else {
+ buf_id = BTABLE_BUF_RX;
}
+ uint32_t rx_count = btable_get_count(ep_id, buf_id);
+ uint16_t pma_addr = (uint16_t) btable_get_addr(ep_id, buf_id);
- if ((count < xfer->max_packet_size) || (xfer->queued_len == xfer->total_len))
- {
- /* RX COMPLETE */
- 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);
+ if (rx_count != 0) {
+ if (xfer->ff) {
+ dcd_read_packet_memory_ff(xfer->ff, pma_addr, rx_count);
} else {
- pcd_set_ep_rx_bufsize(USB, EPindex,remaining);
+ dcd_read_packet_memory(xfer->buffer + xfer->queued_len, pma_addr, rx_count);
}
- 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);
- }
+ xfer->queued_len = (uint16_t)(xfer->queued_len + rx_count);
}
- }
- // 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);
- pcd_clear_rx_ep_ctr(USB, EPindex);
- }
-}
-
-static void dcd_ep_ctr_handler(void) {
- uint32_t wIstr;
+ if ((rx_count < xfer->max_packet_size) || (xfer->queued_len == xfer->total_len)) {
+ uint8_t const ep_addr = ep_num;
+ // all bytes received or short packet
+ dcd_event_xfer_complete(0, ep_addr, xfer->queued_len, XFER_RESULT_SUCCESS, true);
- /* stay in loop while pending interrupts */
- while (((wIstr = USB->ISTR) & USB_ISTR_CTR) != 0U) {
- if ((wIstr & USB_ISTR_DIR) == 0U) {
- /* TX/IN */
- dcd_ep_ctr_tx_handler(wIstr);
+ if (ep_num == 0) {
+ // prepared for status packet
+ btable_set_rx_bufsize(ep_id, BTABLE_BUF_RX, CFG_TUD_ENDPOINT0_SIZE);
+ }
+ ep_reg = ep_add_status(ep_reg, TUSB_DIR_OUT, EP_STAT_NAK);
} else {
- /* RX/OUT*/
- dcd_ep_ctr_rx_handler(wIstr);
+ // Set endpoint active again for receiving more data. Note that isochronous endpoints stay active always
+ if (!is_iso) {
+ uint16_t const cnt = tu_min16(xfer->total_len - xfer->queued_len, xfer->max_packet_size);
+ btable_set_rx_bufsize(ep_id, BTABLE_BUF_RX, cnt);
+ }
+ ep_reg = ep_add_status(ep_reg, TUSB_DIR_OUT, EP_STAT_VALID);
}
}
+
+ ep_write(ep_id, ep_reg);
}
void dcd_int_handler(uint8_t 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 )
+ uint32_t int_status = FSDEV_REG->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 )
// 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 = (fsdev_bus_t)~USB_ISTR_SOF;
- dcd_event_sof(0, USB->FNR & USB_FNR_FN, true);
+ if (int_status & USB_ISTR_SOF) {
+ FSDEV_REG->ISTR = (fsdev_bus_t)~USB_ISTR_SOF;
+ dcd_event_sof(0, FSDEV_REG->FNR & USB_FNR_FN, true);
}
- if(int_status & USB_ISTR_RESET) {
+ if (int_status & USB_ISTR_RESET) {
// USBRST is start of reset.
- USB->ISTR = (fsdev_bus_t)~USB_ISTR_RESET;
- dcd_handle_bus_reset();
+ FSDEV_REG->ISTR = (fsdev_bus_t)~USB_ISTR_RESET;
+ handle_bus_reset(rhport);
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)
- {
- /* 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)
- {
- USB->CNTR &= ~USB_CNTR_LPMODE;
- USB->CNTR &= ~USB_CNTR_FSUSP;
+ if (int_status & USB_ISTR_WKUP) {
+ FSDEV_REG->CNTR &= ~USB_CNTR_LPMODE;
+ FSDEV_REG->CNTR &= ~USB_CNTR_FSUSP;
- USB->ISTR = (fsdev_bus_t)~USB_ISTR_WKUP;
+ FSDEV_REG->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. */
/* Force low-power mode in the macrocell */
- USB->CNTR |= USB_CNTR_FSUSP;
- USB->CNTR |= USB_CNTR_LPMODE;
+ FSDEV_REG->CNTR |= USB_CNTR_FSUSP;
+ FSDEV_REG->CNTR |= USB_CNTR_LPMODE;
/* clear of the ISTR bit must be done after setting of CNTR_FSUSP */
- USB->ISTR = (fsdev_bus_t)~USB_ISTR_SUSP;
+ FSDEV_REG->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)
- {
- USB->CNTR &= ~USB_CNTR_RESUME;
+ if (int_status & USB_ISTR_ESOF) {
+ if (remoteWakeCountdown == 1u) {
+ FSDEV_REG->CNTR &= ~USB_CNTR_RESUME;
}
- if(remoteWakeCountdown > 0u)
- {
+ if (remoteWakeCountdown > 0u) {
remoteWakeCountdown--;
}
- USB->ISTR = (fsdev_bus_t)~USB_ISTR_ESOF;
+ FSDEV_REG->ISTR = (fsdev_bus_t)~USB_ISTR_ESOF;
+ }
+
+ // loop to handle all pending CTR interrupts
+ while (int_status & USB_ISTR_CTR) {
+ uint32_t const ep_id = int_status & USB_ISTR_EP_ID;
+
+ if ((int_status & USB_ISTR_DIR) == 0U) {
+ handle_ctr_tx(ep_id); // TX/IN
+ } else {
+ handle_ctr_rx(ep_id); // RX/OUT or both (RX/TX !!)
+ }
+
+ int_status = FSDEV_REG->ISTR;
}
}
@@ -747,137 +484,67 @@ 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) rhport;
+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 )
- {
- uint8_t const dev_addr = (uint8_t) request->wValue;
-
- // Setting new address after the whole request is complete
- USB->DADDR &= ~USB_DADDR_ADD;
- USB->DADDR |= dev_addr; // leave the enable bit set
- }
-}
-
-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;
+ request->bRequest == TUSB_REQ_SET_ADDRESS) {
+ uint8_t const dev_addr = (uint8_t)request->wValue;
+ FSDEV_REG->DADDR = (USB_DADDR_EF | dev_addr);
}
}
/***
* 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 len, 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;
- }
+ uint8_t blsize, num_block;
+ uint16_t aligned_len = pma_align_buffer_size(len, &blsize, &num_block);
+ (void) blsize;
+ (void) num_block;
- // Ensure allocated buffer is aligned
-#ifdef FSDEV_BUS_32BIT
- length = (length + 3) & ~0x03;
-#else
- length = (length + 1) & ~0x01;
-#endif
+ uint32_t addr = ep_buf_ptr;
+ ep_buf_ptr = (uint16_t)(ep_buf_ptr + aligned_len); // increment buffer pointer
- open_ep_count++;
-
- uint16_t addr = ep_buf_ptr;
- ep_buf_ptr = (uint16_t)(ep_buf_ptr + length); // increment buffer pointer
+ if (dbuf) {
+ addr |= ((uint32_t)ep_buf_ptr) << 16;
+ ep_buf_ptr = (uint16_t)(ep_buf_ptr + aligned_len); // increment buffer pointer
+ }
- // Verify no overflow
+ // Verify packet buffer is not overflowed
TU_ASSERT(ep_buf_ptr <= FSDEV_PMA_SIZE, 0xFFFF);
- epXferCtl->pma_ptr = addr;
- epXferCtl->pma_alloc_size = length;
- //TU_LOG1("dcd_pma_alloc(%x,%x)=%x\r\n",ep_addr,length,addr);
-
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 < FSDEV_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;
@@ -892,469 +559,420 @@ 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);
+void edpt0_open(uint8_t rhport) {
+ (void) rhport;
- 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;
+ dcd_ep_alloc(0x0, TUSB_XFER_CONTROL);
+ dcd_ep_alloc(0x80, TUSB_XFER_CONTROL);
- return;
- }
- }
- }
-}
+ xfer_status[0][0].max_packet_size = CFG_TUD_ENDPOINT0_SIZE;
+ xfer_status[0][0].ep_idx = 0;
-// The STM32F0 doesn't seem to like |= or &= to manipulate the EP#R registers,
-// so I'm using the #define from HAL here, instead.
+ xfer_status[0][1].max_packet_size = CFG_TUD_ENDPOINT0_SIZE;
+ xfer_status[0][1].ep_idx = 0;
-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);
- 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;
+ uint16_t pma_addr0 = dcd_pma_alloc(CFG_TUD_ENDPOINT0_SIZE, false);
+ uint16_t pma_addr1 = dcd_pma_alloc(CFG_TUD_ENDPOINT0_SIZE, false);
- TU_ASSERT(ep_idx < STFSDEV_EP_COUNT);
- TU_ASSERT(buffer_size <= 1024);
+ btable_set_addr(0, BTABLE_BUF_RX, pma_addr0);
+ btable_set_addr(0, BTABLE_BUF_TX, pma_addr1);
- // 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;
+ uint32_t ep_reg = FSDEV_REG->ep[0].reg & ~USB_EPREG_MASK;
+ ep_reg |= USB_EP_CONTROL;
+ ep_reg = ep_add_status(ep_reg, TUSB_DIR_IN, EP_STAT_NAK);
+ ep_reg = ep_add_status(ep_reg, TUSB_DIR_OUT, EP_STAT_NAK);
+ // no need to explicitly set DTOG bits since we aren't masked DTOG bit
- case TUSB_XFER_INTERRUPT:
- wType = USB_EP_INTERRUPT;
- break;
+ // prepare for setup packet
+ btable_set_rx_bufsize(0, BTABLE_BUF_RX, CFG_TUD_ENDPOINT0_SIZE);
- default:
- TU_ASSERT(false);
- }
+ ep_write(0, ep_reg);
+}
- 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);
+bool dcd_edpt_open(uint8_t rhport, tusb_desc_endpoint_t const *desc_ep) {
+ (void)rhport;
+ uint8_t const ep_addr = desc_ep->bEndpointAddress;
+ uint8_t const ep_num = tu_edpt_number(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
+ const uint16_t packet_size = tu_edpt_packet_size(desc_ep);
+ uint8_t const ep_idx = dcd_ep_alloc(ep_addr, desc_ep->bmAttributes.xfer);
+ TU_ASSERT(ep_idx < FSDEV_EP_COUNT);
- /* 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);
+ uint32_t ep_reg = FSDEV_REG->ep[ep_idx].reg & ~USB_EPREG_MASK;
+ ep_reg |= tu_edpt_number(ep_addr) | USB_EP_CTR_RX | USB_EP_CTR_TX;
- if( (dir == TUSB_DIR_IN) || (wType == USB_EP_ISOCHRONOUS) )
- {
- pcd_set_ep_tx_address(USB, ep_idx, pma_addr);
- pcd_set_ep_tx_bufsize(USB, ep_idx, buffer_size);
- pcd_clear_tx_dtog(USB, ep_idx);
- }
+ // Set type
+ switch (desc_ep->bmAttributes.xfer) {
+ case TUSB_XFER_BULK:
+ ep_reg |= USB_EP_BULK;
+ break;
+ case TUSB_XFER_INTERRUPT:
+ ep_reg |= USB_EP_INTERRUPT;
+ break;
- if( (dir == TUSB_DIR_OUT) || (wType == USB_EP_ISOCHRONOUS) )
- {
- pcd_set_ep_rx_address(USB, ep_idx, pma_addr);
- pcd_set_ep_rx_bufsize(USB, ep_idx, buffer_size);
- pcd_clear_rx_dtog(USB, ep_idx);
+ default:
+ // Note: ISO endpoint should use alloc / active functions
+ TU_ASSERT(false);
}
- /* 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);
- }
+ /* Create a packet memory buffer area. */
+ uint16_t pma_addr = dcd_pma_alloc(packet_size, false);
+ btable_set_addr(ep_idx, dir == TUSB_DIR_IN ? BTABLE_BUF_TX : BTABLE_BUF_RX, pma_addr);
+
+ xfer_ctl_t *xfer = xfer_ctl_ptr(ep_num, dir);
+ xfer->max_packet_size = packet_size;
+ xfer->ep_idx = ep_idx;
+
+ ep_reg = ep_add_status(ep_reg, dir, EP_STAT_NAK);
+ ep_reg = ep_add_dtog(ep_reg, dir, 0);
+
+ // reserve other direction toggle bits
+ if (dir == TUSB_DIR_IN) {
+ ep_reg &= ~(USB_EPRX_STAT | USB_EP_DTOG_RX);
+ } else {
+ ep_reg &= ~(USB_EPTX_STAT | USB_EP_DTOG_TX);
}
- xfer_ctl_ptr(p_endpoint_desc->bEndpointAddress)->max_packet_size = packet_size;
- xfer_ctl_ptr(p_endpoint_desc->bEndpointAddress)->ep_idx = ep_idx;
+ ep_write(ep_idx, ep_reg);
return true;
}
-void dcd_edpt_close_all (uint8_t rhport)
-{
- (void) rhport;
- // TODO implement dcd_edpt_close_all()
-}
-
-/**
- * Close an endpoint.
- *
- * This function may be called with interrupts enabled or disabled.
- *
- * 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_all(uint8_t rhport)
{
(void)rhport;
- 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);
-
- 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);
+ for (uint32_t i = 1; i < FSDEV_EP_COUNT; i++) {
+ // Reset endpoint
+ ep_write(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;
}
- dcd_ep_free(ep_addr);
-
- dcd_pma_free(ep_addr);
+ // Reset PMA allocation
+ ep_buf_ptr = FSDEV_BTABLE_BASE + 8 * CFG_TUD_ENDPPOINT_MAX + 2 * CFG_TUD_ENDPOINT0_SIZE;
}
-bool dcd_edpt_iso_alloc(uint8_t rhport, uint8_t ep_addr, uint16_t largest_packet_size)
-{
+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_num = tu_edpt_number(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
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. */
+ uint32_t pma_addr = dcd_pma_alloc(largest_packet_size, true);
+#if FSDEV_PMA_SIZE > 1024u
+ uint16_t pma_addr2 = pma_addr >> 16;
+#else
+ uint16_t pma_addr2 = pma_addr;
+#endif
- pcd_set_eptype(USB, ep_idx, USB_EP_ISOCHRONOUS);
+ btable_set_addr(ep_idx, 0, pma_addr);
+ btable_set_addr(ep_idx, 1, pma_addr2);
- pcd_set_ep_tx_address(USB, ep_idx, pma_addr);
- pcd_set_ep_rx_address(USB, ep_idx, pma_addr);
+ xfer_ctl_t* xfer = xfer_ctl_ptr(ep_num, dir);
+ xfer->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 *desc_ep) {
(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);
- const uint16_t packet_size = tu_edpt_packet_size(p_endpoint_desc);
- const uint16_t buffer_size = pcd_aligned_buffer_size(packet_size);
+ uint8_t const ep_addr = desc_ep->bEndpointAddress;
+ uint8_t const ep_num = tu_edpt_number(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
+ xfer_ctl_t* xfer = xfer_ctl_ptr(ep_num, dir);
- /* 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);
- }
+ uint8_t const ep_idx = xfer->ep_idx;
- 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);
+ xfer->max_packet_size = tu_edpt_packet_size(desc_ep);
- 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);
+ uint32_t ep_reg = FSDEV_REG->ep[0].reg & ~USB_EPREG_MASK;
+ ep_reg |= tu_edpt_number(ep_addr) | USB_EP_ISOCHRONOUS | USB_EP_CTR_RX | USB_EP_CTR_TX;
+ ep_reg = ep_add_status(ep_reg, TUSB_DIR_IN, EP_STAT_DISABLED);
+ ep_reg = ep_add_status(ep_reg, TUSB_DIR_OUT, EP_STAT_DISABLED);
+ ep_reg = ep_add_dtog(ep_reg, dir, 0);
+ ep_reg = ep_add_dtog(ep_reg, 1-dir, 1);
- xfer_ctl_ptr(p_endpoint_desc->bEndpointAddress)->max_packet_size = packet_size;
+ ep_write(ep_idx, ep_reg);
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) {
+ uint16_t len = tu_min16(xfer->total_len - xfer->queued_len, xfer->max_packet_size);
+ uint16_t ep_reg = ep_read(ep_ix) | EP_CTR_TXRX;
+ bool const is_iso = ep_is_iso(ep_reg);
-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
- {
- len = xfer->max_packet_size;
+ uint8_t buf_id;
+ if (is_iso) {
+ buf_id = (ep_reg & USB_EP_DTOG_TX) ? 1 : 0;
+ } else {
+ buf_id = BTABLE_BUF_TX;
}
+ uint16_t addr_ptr = (uint16_t) btable_get_addr(ep_ix, buf_id);
+ btable_set_count(ep_ix, buf_id, len);
- uint16_t ep_reg = pcd_get_endpoint(USB, ep_ix);
- uint16_t addr_ptr = pcd_get_ep_tx_address(USB, ep_ix);
-
- if (xfer->ff)
- {
+ if (xfer->ff) {
dcd_write_packet_memory_ff(xfer->ff, addr_ptr, len);
- }
- else
- {
+ } else {
dcd_write_packet_memory(addr_ptr, &(xfer->buffer[xfer->queued_len]), 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);
- } else {
- pcd_set_ep_tx_cnt(USB, ep_ix, len);
- }
+ ep_reg &= USB_EPREG_MASK | EP_STAT_MASK(TUSB_DIR_IN);
+ ep_reg = ep_add_status(ep_reg, TUSB_DIR_IN, EP_STAT_VALID);
+ ep_reg = ep_clear_ctr(ep_reg, TUSB_DIR_IN);
- pcd_set_ep_tx_status(USB, ep_ix, USB_EP_TX_VALID);
+ dcd_int_disable(0);
+ ep_write(ep_ix, ep_reg);
+ 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_num, uint8_t dir) {
(void) rhport;
- xfer_ctl_t * xfer = xfer_ctl_ptr(ep_addr);
+ xfer_ctl_t *xfer = xfer_ctl_ptr(ep_num, dir);
uint8_t const ep_idx = 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;
- if ( dir == TUSB_DIR_OUT )
- {
- // 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 (dir == TUSB_DIR_IN) {
+ dcd_transmit_packet(xfer, ep_idx);
+ } else {
+ uint32_t cnt = (uint32_t) tu_min16(xfer->total_len, xfer->max_packet_size);
+ uint16_t ep_reg = ep_read(ep_idx) | USB_EP_CTR_TX;
+ ep_reg &= USB_EPREG_MASK | EP_STAT_MASK(dir); // keep CTR TX, clear CTR RX
+ ep_reg = ep_add_status(ep_reg, dir, EP_STAT_VALID);
- if(total_bytes > xfer->max_packet_size)
- {
- pcd_set_ep_rx_bufsize(USB,ep_idx,xfer->max_packet_size);
+ if (ep_is_iso(ep_reg)) {
+ btable_set_rx_bufsize(ep_idx, 0, cnt);
+ btable_set_rx_bufsize(ep_idx, 1, cnt);
} else {
- pcd_set_ep_rx_bufsize(USB,ep_idx,total_bytes);
+ btable_set_rx_bufsize(ep_idx, BTABLE_BUF_RX, cnt);
}
- pcd_set_ep_rx_status(USB, ep_idx, USB_EP_RX_VALID);
- }
- else // IN
- {
- dcd_transmit_packet(xfer,ep_idx);
+
+ ep_write(ep_idx, ep_reg);
}
+
return true;
}
-bool dcd_edpt_xfer_fifo (uint8_t rhport, uint8_t ep_addr, tu_fifo_t * ff, uint16_t total_bytes)
-{
- (void) rhport;
+bool dcd_edpt_xfer(uint8_t rhport, uint8_t ep_addr, uint8_t *buffer, uint16_t total_bytes) {
+ uint8_t const ep_num = tu_edpt_number(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
+ xfer_ctl_t *xfer = xfer_ctl_ptr(ep_num, dir);
+
+ xfer->buffer = buffer;
+ xfer->ff = NULL;
+ xfer->total_len = total_bytes;
+ xfer->queued_len = 0;
+
+ return edpt_xfer(rhport, ep_num, dir);
+}
- 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);
+bool dcd_edpt_xfer_fifo(uint8_t rhport, uint8_t ep_addr, tu_fifo_t *ff, uint16_t total_bytes) {
+ uint8_t const ep_num = tu_edpt_number(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
+ xfer_ctl_t *xfer = xfer_ctl_ptr(ep_num, dir);
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_num, dir);
}
-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);
+ uint8_t const ep_num = tu_edpt_number(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
+ xfer_ctl_t *xfer = xfer_ctl_ptr(ep_num, dir);
uint8_t const ep_idx = xfer->ep_idx;
- uint8_t const dir = tu_edpt_dir(ep_addr);
- if (dir == TUSB_DIR_IN)
- { // IN
- pcd_set_ep_tx_status(USB, ep_idx, USB_EP_TX_STALL);
- }
- else
- { // OUT
- pcd_set_ep_rx_status(USB, ep_idx, USB_EP_RX_STALL);
- }
+ uint32_t ep_reg = ep_read(ep_idx);
+ ep_reg |= USB_EP_CTR_RX | USB_EP_CTR_TX; // reserve CTR bits
+ ep_reg &= USB_EPREG_MASK | EP_STAT_MASK(dir);
+ ep_reg = ep_add_status(ep_reg, dir, EP_STAT_STALL);
+
+ ep_write(ep_idx, ep_reg);
}
-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);
+ uint8_t const ep_num = tu_edpt_number(ep_addr);
+ uint8_t const dir = tu_edpt_dir(ep_addr);
+ xfer_ctl_t *xfer = xfer_ctl_ptr(ep_num, dir);
uint8_t const ep_idx = xfer->ep_idx;
- 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) {
- pcd_set_ep_tx_status(USB, ep_idx, USB_EP_TX_NAK);
- }
+ uint32_t ep_reg = ep_read(ep_idx) | EP_CTR_TXRX;
+ ep_reg &= USB_EPREG_MASK | EP_STAT_MASK(dir) | EP_DTOG_MASK(dir);
- /* 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) {
- pcd_set_ep_rx_status(USB, ep_idx, USB_EP_RX_NAK);
- }
- /* Reset to DATA0 if clearing stall condition. */
- pcd_clear_rx_dtog(USB, ep_idx);
+ if (!ep_is_iso(ep_reg)) {
+ ep_reg = ep_add_status(ep_reg, dir, EP_STAT_NAK);
}
+ ep_reg = ep_add_dtog(ep_reg, dir, 0); // Reset to DATA0
+
+ ep_write(ep_idx, ep_reg);
}
#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);
+static bool dcd_write_packet_memory(uint16_t dst, const void *__restrict src, uint16_t wNBytes) {
+ const uint8_t *src8 = src;
+ volatile uint32_t *pma32 = (volatile uint32_t *)(USB_PMAADDR + dst);
for (uint32_t n = wNBytes / 4; n > 0; --n) {
- *dst32++ = tu_unaligned_read32(srcVal);
- srcVal += 4;
+ *pma32++ = tu_unaligned_read32(src8);
+ src8 += 4;
}
- wNBytes = wNBytes & 0x03;
- if (wNBytes)
- {
- uint32_t wrVal = *srcVal;
- wNBytes--;
+ uint16_t odd = wNBytes & 0x03;
+ if (odd) {
+ uint32_t wrVal = *src8;
+ odd--;
- if (wNBytes)
- {
- wrVal |= *++srcVal << 8;
- wNBytes--;
+ if (odd) {
+ wrVal |= *++src8 << 8;
+ odd--;
- if (wNBytes)
- {
- wrVal |= *++srcVal << 16;
+ if (odd) {
+ wrVal |= *++src8 << 16;
}
}
- *dst32 = wrVal;
+ *pma32 = wrVal;
+ }
+
+ return true;
+}
+
+static bool dcd_read_packet_memory(void *__restrict dst, uint16_t src, uint16_t wNBytes) {
+ uint8_t *dst8 = dst;
+ volatile uint32_t *src32 = (volatile uint32_t *)(USB_PMAADDR + src);
+
+ for (uint32_t n = wNBytes / 4; n > 0; --n) {
+ tu_unaligned_write32(dst8, *src32++);
+ dst8 += 4;
+ }
+
+ uint16_t odd = wNBytes & 0x03;
+ if (odd) {
+ uint32_t rdVal = *src32;
+
+ *dst8 = tu_u32_byte0(rdVal);
+ odd--;
+
+ if (odd) {
+ *++dst8 = tu_u32_byte1(rdVal);
+ odd--;
+
+ if (odd) {
+ *++dst8 = tu_u32_byte2(rdVal);
+ }
+ }
}
return true;
}
+
#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
- */
-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;
+ * @brief Copy a buffer from user memory area to packet memory area (PMA).
+ * This uses un-aligned for user memory 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 nbytes no. of bytes to be copied.
+ * @retval None
+ */
+static bool dcd_write_packet_memory(uint16_t dst, const void *__restrict src, uint16_t nbytes) {
+ uint32_t n16 = (uint32_t)nbytes >> 1U;
+ const uint8_t *src8 = src;
+ fsdev_pma16_t* pma16 = (fsdev_pma16_t*) (USB_PMAADDR + FSDEV_PMA_STRIDE * dst);
- // 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;
+ while (n16--) {
+ pma16->u16 = tu_unaligned_read16(src8);
+ src8 += 2;
+ pma16++;
+ }
+
+ if (nbytes & 0x01) {
+ pma16->u16 = (uint16_t) *src8;
+ }
- srcVal = src;
- pdwVal = &pma[FSDEV_PMA_STRIDE * (dst >> 1)];
+ return true;
+}
- while (n--)
- {
- temp1 = (uint16_t)*srcVal;
- srcVal++;
- temp2 = temp1 | ((uint16_t)(((uint16_t)(*srcVal)) << 8U)) ;
- *pdwVal = temp2;
- pdwVal += FSDEV_PMA_STRIDE;
- srcVal++;
+/**
+ * @brief Copy a buffer from packet memory area (PMA) to user memory area.
+ * Uses unaligned for system memory and 16-bit access of packet memory
+ * @param nbytes no. of bytes to be copied.
+ * @retval None
+ */
+static bool dcd_read_packet_memory(void *__restrict dst, uint16_t src, uint16_t nbytes) {
+ uint32_t n16 = (uint32_t)nbytes >> 1U;
+ fsdev_pma16_t* pma16 = (fsdev_pma16_t*) (USB_PMAADDR + FSDEV_PMA_STRIDE * src);
+ uint8_t *dst8 = (uint8_t *)dst;
+
+ while (n16--) {
+ uint16_t temp16 = pma16->u16;
+ tu_unaligned_write16(dst8, temp16);
+ dst8 += 2;
+ pma16++;
}
- if (wNBytes)
- {
- temp1 = *srcVal;
- *pdwVal = temp1;
+ if (nbytes & 0x01) {
+ *dst8++ = tu_u16_low(pma16->u16);
}
return true;
}
+
#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 FSDEV_BUS_32BIT
- if((cnt_lin & 0x03) && cnt_wrap)
- {
+ 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
@@ -1362,33 +980,31 @@ static bool dcd_write_packet_memory_ff(tu_fifo_t * ff, uint16_t dst, uint16_t wN
dst += 4;
// Copy rest of wrapped byte
- if (wCnt)
- dcd_write_packet_memory(dst, info.ptr_wrap, wCnt);
+ if (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);
}
@@ -1399,101 +1015,29 @@ static bool dcd_write_packet_memory_ff(tu_fifo_t * ff, uint16_t dst, uint16_t wN
return true;
}
-#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);
-
- for (uint32_t n = wNBytes / 4; n > 0; --n) {
- tu_unaligned_write32(dstVal, *src32++);
- dstVal += 4;
- }
-
- wNBytes = wNBytes & 0x03;
- if (wNBytes)
- {
- uint32_t rdVal = *src32;
-
- *dstVal = tu_u32_byte0(rdVal);
- wNBytes--;
-
- if (wNBytes)
- {
- *++dstVal = tu_u32_byte1(rdVal);
- wNBytes--;
-
- if (wNBytes)
- {
- *++dstVal = tu_u32_byte2(rdVal);
- }
- }
- }
-
- return true;
-}
-#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
- */
-static bool dcd_read_packet_memory(void *__restrict dst, uint16_t src, uint16_t wNBytes)
-{
- uint32_t n = (uint32_t)wNBytes >> 1U;
- // 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 const uint16_t *pdwVal;
- uint32_t temp;
-
- pdwVal = &pma[FSDEV_PMA_STRIDE * (src >> 1)];
- uint8_t *dstVal = (uint8_t*)dst;
-
- while (n--)
- {
- temp = *pdwVal;
- pdwVal += FSDEV_PMA_STRIDE;
- *dstVal++ = ((temp >> 0) & 0xFF);
- *dstVal++ = ((temp >> 8) & 0xFF);
- }
-
- if (wNBytes & 0x01)
- {
- temp = *pdwVal;
- pdwVal += FSDEV_PMA_STRIDE;
- *dstVal++ = ((temp >> 0) & 0xFF);
- }
- return true;
-}
-#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 FSDEV_BUS_32BIT
- if((cnt_lin & 0x03) && cnt_wrap)
- {
+ 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];
@@ -1501,48 +1045,44 @@ 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
- if (wCnt)
+ if (wCnt) {
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.h b/src/portable/st/stm32_fsdev/dcd_stm32_fsdev.h
deleted file mode 100644
index 946ad2c7c..000000000
--- a/src/portable/st/stm32_fsdev/dcd_stm32_fsdev.h
+++ /dev/null
@@ -1,538 +0,0 @@
-/*
- * 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.
-
-// 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)
-
-#ifndef PORTABLE_ST_STM32F0_DCD_STM32F0_FSDEV_PVT_ST_H_
-#define PORTABLE_ST_STM32F0_DCD_STM32F0_FSDEV_PVT_ST_H_
-
-#if CFG_TUSB_MCU == OPT_MCU_STM32F0
- #include "stm32f0xx.h"
- #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
- // PMA dedicated to USB (no sharing with CAN)
-
-#elif CFG_TUSB_MCU == OPT_MCU_STM32F1
- #include "stm32f1xx.h"
- #define FSDEV_PMA_SIZE (512u)
- // NO internal Pull-ups
- // *B, and *C: 2 x 16 bits/word
-
- // F1 names this differently from the rest
- #define USB_CNTR_LPMODE USB_CNTR_LP_MODE
-
-#elif defined(STM32F302xB) || defined(STM32F302xC) || \
- defined(STM32F303xB) || defined(STM32F303xC) || \
- defined(STM32F373xC)
- #include "stm32f3xx.h"
- #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)
-
-#elif defined(STM32F302x6) || defined(STM32F302x8) || \
- defined(STM32F302xD) || defined(STM32F302xE) || \
- defined(STM32F303xD) || defined(STM32F303xE)
- #include "stm32f3xx.h"
- #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 FSDEV_PMA_SIZE (1024u)
-
-#elif CFG_TUSB_MCU == OPT_MCU_STM32L1
- #include "stm32l1xx.h"
- #define FSDEV_PMA_SIZE (512u)
-
-#elif CFG_TUSB_MCU == OPT_MCU_STM32G4
- #include "stm32g4xx.h"
- #define FSDEV_PMA_SIZE (1024u)
-
-#elif CFG_TUSB_MCU == OPT_MCU_STM32G0
- #include "stm32g0xx.h"
- #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
- #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_STM32WB
- #include "stm32wbxx.h"
- #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 FSDEV_PMA_SIZE (1024u)
-
-#elif CFG_TUSB_MCU == OPT_MCU_STM32L5
- #include "stm32l5xx.h"
- #define FSDEV_PMA_SIZE (1024u)
-
- #ifndef USB_PMAADDR
- #define USB_PMAADDR (USB_BASE + (USB_PMAADDR_NS - USB_BASE_NS))
- #endif
-
-#else
- #error You are using an untested or unimplemented STM32 variant. Please update the driver.
- // This includes L1x0, L1x1, L1x2, L4x2 and L4x3, G1x1, G1x3, and G1x4
-#endif
-
-// For purposes of accessing the packet
-#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 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) {
- size_t total_word_offset = (((USBx)->BTABLE)>>1) + x;
- 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) {
- 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) {
- 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) {
- /* 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;
-
- // Round up while dividing requested size by blocksize
- uint16_t numblocks = (size + blocksize - 1) / blocksize ;
-
- return numblocks * blocksize;
-}
-
-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;
-#else
- __O uint16_t *reg = (__O uint16_t *)((&USBx->EP0R) + bEpIdx*2u);
- *reg = (uint16_t)wRegValue;
-#endif
-}
-
-TU_ATTR_ALWAYS_INLINE static inline uint32_t pcd_get_endpoint(USB_TypeDef * USBx, uint32_t bEpIdx) {
-#ifdef FSDEV_BUS_32BIT
- (void) USBx;
- __I uint32_t *reg = (__I uint32_t *)(USB_DRD_BASE + bEpIdx*4);
-#else
- __I uint16_t *reg = (__I uint16_t *)((&USBx->EP0R) + bEpIdx*2u);
-#endif
- return *reg;
-}
-
-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;
- regVal |= USB_EP_CTR_RX | USB_EP_CTR_TX; // These clear on write0, so must set high
- pcd_set_endpoint(USBx, bEpIdx, regVal);
-}
-
-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) {
- uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
- regVal &= USB_EPREG_MASK;
- regVal &= ~USB_EP_CTR_RX;
- regVal |= USB_EP_CTR_TX; // preserve CTR_TX (clears on writing 0)
- pcd_set_endpoint(USBx, bEpIdx, regVal);
-}
-
-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 FSDEV_BUS_32BIT
- (void) USBx;
- return (pma32[2*bEpIdx] & 0x03FF0000) >> 16;
-#else
- __I uint16_t *regPtr = pcd_ep_tx_cnt_ptr(USBx, bEpIdx);
- return *regPtr & 0x3ffU;
-#endif
-}
-
-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
- __I uint16_t *regPtr = pcd_ep_rx_cnt_ptr(USBx, bEpIdx);
- return *regPtr & 0x3ffU;
-#endif
-}
-
-/**
- * @brief Sets address in an endpoint register.
- * @param USBx USB peripheral instance register address.
- * @param bEpIdx Endpoint Number.
- * @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) {
- uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
- regVal &= USB_EPREG_MASK;
- regVal |= bAddr;
- regVal |= USB_EP_CTR_RX|USB_EP_CTR_TX;
- 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 FSDEV_BUS_32BIT
- (void) USBx;
- return pma32[2*bEpIdx] & 0x0000FFFFu ;
-#else
- return *pcd_btable_word_ptr(USBx,(bEpIdx)*4u + 0u);
-#endif
-}
-
-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
- return *pcd_btable_word_ptr(USBx,(bEpIdx)*4u + 2u);
-#endif
-}
-
-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
- *pcd_btable_word_ptr(USBx,(bEpIdx)*4u + 0u) = addr;
-#endif
-}
-
-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
- *pcd_btable_word_ptr(USBx,(bEpIdx)*4u + 2u) = addr;
-#endif
-}
-
-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
- __IO uint16_t * reg = pcd_ep_tx_cnt_ptr(USBx, bEpIdx);
- *reg = (uint16_t) (*reg & (uint16_t) ~0x3FFU) | (wCount & 0x3FFU);
-#endif
-}
-
-TU_ATTR_ALWAYS_INLINE static inline void pcd_set_ep_rx_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
- __IO uint16_t * reg = pcd_ep_rx_cnt_ptr(USBx, bEpIdx);
- *reg = (uint16_t) (*reg & (uint16_t) ~0x3FFU) | (wCount & 0x3FFU);
-#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) {
- /* Encode into register. When BLSIZE==1, we need to subtract 1 block count */
-#ifdef FSDEV_BUS_32BIT
- (void) USBx;
- pma32[rxtx_idx] = (pma32[rxtx_idx] & 0x0000FFFFu) | (blocksize << 31) | ((numblocks - blocksize) << 26);
-#else
- __IO uint16_t *pdwReg = pcd_btable_word_ptr(USBx, rxtx_idx*2u + 1u);
- *pdwReg = (blocksize << 15) | ((numblocks - blocksize) << 10);
-#endif
-}
-
-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. */
- uint16_t blocksize = (wCount > 62) ? 1 : 0;
- uint16_t numblocks = wCount / (blocksize ? 32 : 2);
-
- /* There should be no remainder in the above calculation */
- TU_ASSERT((wCount - (numblocks * (blocksize ? 32 : 2))) == 0, /**/);
-
- /* Encode into register. When BLSIZE==1, we need to subtract 1 block count */
- 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) {
- 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) {
- pcd_set_ep_bufsize(USBx, 2*bEpIdx + 1, wCount);
-}
-
-/**
- * @brief sets the status for tx transfer (bits STAT_TX[1:0]).
- * @param USBx USB peripheral instance register address.
- * @param bEpIdx Endpoint Number.
- * @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) {
- uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
- regVal &= USB_EPTX_DTOGMASK;
-
- /* toggle first bit ? */
- if((USB_EPTX_DTOG1 & (wState))!= 0U)
- {
- regVal ^= USB_EPTX_DTOG1;
- }
- /* toggle second bit ? */
- if((USB_EPTX_DTOG2 & ((uint32_t)(wState)))!= 0U)
- {
- regVal ^= USB_EPTX_DTOG2;
- }
-
- regVal |= USB_EP_CTR_RX|USB_EP_CTR_TX;
- pcd_set_endpoint(USBx, bEpIdx, regVal);
-}
-
-/**
- * @brief sets the status for rx transfer (bits STAT_TX[1:0])
- * @param USBx USB peripheral instance register address.
- * @param bEpIdx Endpoint Number.
- * @param wState new state
- * @retval None
- */
-
-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) {
- regVal ^= USB_EPRX_DTOG1;
- }
- /* toggle second bit ? */
- 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);
-}
-
-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);
-}
-
-
-/**
- * @brief Toggles DTOG_RX / DTOG_TX bit 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_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) {
- 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;
- pcd_set_endpoint(USBx, bEpIdx, regVal);
-}
-
-/**
- * @brief Clears DTOG_RX / DTOG_TX bit 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_dtog(USB_TypeDef * USBx, uint32_t bEpIdx) {
- uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
- 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) {
- uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
- if((regVal & USB_EP_DTOG_TX) != 0) {
- pcd_tx_dtog(USBx,bEpIdx);
- }
-}
-
-/**
- * @brief set & clear EP_KIND bit.
- * @param USBx USB peripheral instance register address.
- * @param bEpIdx Endpoint Number.
- * @retval None
- */
-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) {
- uint32_t regVal = pcd_get_endpoint(USBx, bEpIdx);
- regVal &= USB_EPKIND_MASK;
- regVal |= USB_EP_CTR_RX|USB_EP_CTR_TX;
- pcd_set_endpoint(USBx, bEpIdx, regVal);
-}
-
-// This checks if the device has "LPM"
-#if defined(USB_ISTR_L1REQ)
-#define USB_ISTR_L1REQ_FORCED (USB_ISTR_L1REQ)
-#else
-#define USB_ISTR_L1REQ_FORCED ((uint16_t)0x0000U)
-#endif
-
-#define USB_ISTR_ALL_EVENTS (USB_ISTR_PMAOVR | USB_ISTR_ERR | USB_ISTR_WKUP | USB_ISTR_SUSP | \
- USB_ISTR_RESET | USB_ISTR_SOF | USB_ISTR_ESOF | USB_ISTR_L1REQ_FORCED )
-
-// Number of endpoints in hardware
-// TODO should use TUP_DCD_ENDPOINT_MAX
-#define STFSDEV_EP_COUNT (8u)
-
-#endif /* PORTABLE_ST_STM32F0_DCD_STM32F0_FSDEV_PVT_ST_H_ */
diff --git a/src/portable/st/stm32_fsdev/fsdev_ch32.h b/src/portable/st/stm32_fsdev/fsdev_ch32.h
new file mode 100644
index 000000000..8c0961bb9
--- /dev/null
+++ b/src/portable/st/stm32_fsdev/fsdev_ch32.h
@@ -0,0 +1,220 @@
+/*
+* The MIT License (MIT)
+ *
+ * Copyright (c) 2024, hathach (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.
+ *
+ */
+/** <h2><center>&copy; Copyright (c) 2016 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
+ */
+
+#ifndef TUSB_FSDEV_CH32_H
+#define TUSB_FSDEV_CH32_H
+
+#include "common/tusb_compiler.h"
+
+// https://github.com/openwch/ch32v307/pull/90
+// https://github.com/openwch/ch32v20x/pull/12
+#ifdef __GNUC__
+#pragma GCC diagnostic push
+#pragma GCC diagnostic ignored "-Wstrict-prototypes"
+#endif
+
+#if CFG_TUSB_MCU == OPT_MCU_CH32F20X
+ #include <ch32f20x.h>
+#elif CFG_TUSB_MCU == OPT_MCU_CH32V20X
+ #include <ch32v20x.h>
+#endif
+
+#ifdef __GNUC__
+#pragma GCC diagnostic pop
+#endif
+
+#define FSDEV_PMA_SIZE (512u)
+#define FSDEV_REG_BASE 0x40005C00UL
+
+#define USB_BASE (APB1PERIPH_BASE + 0x00005C00UL) /*!< USB_IP Peripheral Registers base address */
+#define USB_PMAADDR (APB1PERIPH_BASE + 0x00006000UL) /*!< USB_IP Packet Memory Area base address */
+#define USB ((USB_TypeDef *)USB_BASE)
+
+/******************************************************************************/
+/* */
+/* USB Device General registers */
+/* */
+/******************************************************************************/
+#define USB_CNTR (USB_BASE + 0x40U) /*!< Control register */
+#define USB_ISTR (USB_BASE + 0x44U) /*!< Interrupt status register */
+#define USB_FNR (USB_BASE + 0x48U) /*!< Frame number register */
+#define USB_DADDR (USB_BASE + 0x4CU) /*!< Device address register */
+#define USB_BTABLE (USB_BASE + 0x50U) /*!< Buffer Table address register */
+
+/**************************** ISTR interrupt events *************************/
+#define USB_ISTR_CTR ((uint16_t)0x8000U) /*!< Correct TRansfer (clear-only bit) */
+#define USB_ISTR_PMAOVR ((uint16_t)0x4000U) /*!< DMA OVeR/underrun (clear-only bit) */
+#define USB_ISTR_ERR ((uint16_t)0x2000U) /*!< ERRor (clear-only bit) */
+#define USB_ISTR_WKUP ((uint16_t)0x1000U) /*!< WaKe UP (clear-only bit) */
+#define USB_ISTR_SUSP ((uint16_t)0x0800U) /*!< SUSPend (clear-only bit) */
+#define USB_ISTR_RESET ((uint16_t)0x0400U) /*!< RESET (clear-only bit) */
+#define USB_ISTR_SOF ((uint16_t)0x0200U) /*!< Start Of Frame (clear-only bit) */
+#define USB_ISTR_ESOF ((uint16_t)0x0100U) /*!< Expected Start Of Frame (clear-only bit) */
+#define USB_ISTR_DIR ((uint16_t)0x0010U) /*!< DIRection of transaction (read-only bit) */
+#define USB_ISTR_EP_ID ((uint16_t)0x000FU) /*!< EndPoint IDentifier (read-only bit) */
+
+/* Legacy defines */
+#define USB_ISTR_PMAOVRM USB_ISTR_PMAOVR
+
+#define USB_CLR_CTR (~USB_ISTR_CTR) /*!< clear Correct TRansfer bit */
+#define USB_CLR_PMAOVR (~USB_ISTR_PMAOVR) /*!< clear DMA OVeR/underrun bit*/
+#define USB_CLR_ERR (~USB_ISTR_ERR) /*!< clear ERRor bit */
+#define USB_CLR_WKUP (~USB_ISTR_WKUP) /*!< clear WaKe UP bit */
+#define USB_CLR_SUSP (~USB_ISTR_SUSP) /*!< clear SUSPend bit */
+#define USB_CLR_RESET (~USB_ISTR_RESET) /*!< clear RESET bit */
+#define USB_CLR_SOF (~USB_ISTR_SOF) /*!< clear Start Of Frame bit */
+#define USB_CLR_ESOF (~USB_ISTR_ESOF) /*!< clear Expected Start Of Frame bit */
+
+/* Legacy defines */
+#define USB_CLR_PMAOVRM USB_CLR_PMAOVR
+
+/************************* CNTR control register bits definitions ***********/
+#define USB_CNTR_CTRM ((uint16_t)0x8000U) /*!< Correct TRansfer Mask */
+#define USB_CNTR_PMAOVR ((uint16_t)0x4000U) /*!< DMA OVeR/underrun Mask */
+#define USB_CNTR_ERRM ((uint16_t)0x2000U) /*!< ERRor Mask */
+#define USB_CNTR_WKUPM ((uint16_t)0x1000U) /*!< WaKe UP Mask */
+#define USB_CNTR_SUSPM ((uint16_t)0x0800U) /*!< SUSPend Mask */
+#define USB_CNTR_RESETM ((uint16_t)0x0400U) /*!< RESET Mask */
+#define USB_CNTR_SOFM ((uint16_t)0x0200U) /*!< Start Of Frame Mask */
+#define USB_CNTR_ESOFM ((uint16_t)0x0100U) /*!< Expected Start Of Frame Mask */
+#define USB_CNTR_RESUME ((uint16_t)0x0010U) /*!< RESUME request */
+#define USB_CNTR_FSUSP ((uint16_t)0x0008U) /*!< Force SUSPend */
+#define USB_CNTR_LPMODE ((uint16_t)0x0004U) /*!< Low-power MODE */
+#define USB_CNTR_PDWN ((uint16_t)0x0002U) /*!< Power DoWN */
+#define USB_CNTR_FRES ((uint16_t)0x0001U) /*!< Force USB RESet */
+
+/* Legacy defines */
+#define USB_CNTR_PMAOVRM USB_CNTR_PMAOVR
+#define USB_CNTR_LP_MODE USB_CNTR_LPMODE
+
+/******************** FNR Frame Number Register bit definitions ************/
+#define USB_FNR_RXDP ((uint16_t)0x8000U) /*!< status of D+ data line */
+#define USB_FNR_RXDM ((uint16_t)0x4000U) /*!< status of D- data line */
+#define USB_FNR_LCK ((uint16_t)0x2000U) /*!< LoCKed */
+#define USB_FNR_LSOF ((uint16_t)0x1800U) /*!< Lost SOF */
+#define USB_FNR_FN ((uint16_t)0x07FFU) /*!< Frame Number */
+
+/******************** DADDR Device ADDRess bit definitions ****************/
+#define USB_DADDR_EF ((uint8_t)0x80U) /*!< USB device address Enable Function */
+#define USB_DADDR_ADD ((uint8_t)0x7FU) /*!< USB device address */
+
+/****************************** Endpoint register *************************/
+#define USB_EP0R USB_BASE /*!< endpoint 0 register address */
+#define USB_EP1R (USB_BASE + 0x04U) /*!< endpoint 1 register address */
+#define USB_EP2R (USB_BASE + 0x08U) /*!< endpoint 2 register address */
+#define USB_EP3R (USB_BASE + 0x0CU) /*!< endpoint 3 register address */
+#define USB_EP4R (USB_BASE + 0x10U) /*!< endpoint 4 register address */
+#define USB_EP5R (USB_BASE + 0x14U) /*!< endpoint 5 register address */
+#define USB_EP6R (USB_BASE + 0x18U) /*!< endpoint 6 register address */
+#define USB_EP7R (USB_BASE + 0x1CU) /*!< endpoint 7 register address */
+/* bit positions */
+#define USB_EP_CTR_RX ((uint16_t)0x8000U) /*!< EndPoint Correct TRansfer RX */
+#define USB_EP_DTOG_RX ((uint16_t)0x4000U) /*!< EndPoint Data TOGGLE RX */
+#define USB_EPRX_STAT ((uint16_t)0x3000U) /*!< EndPoint RX STATus bit field */
+#define USB_EP_SETUP ((uint16_t)0x0800U) /*!< EndPoint SETUP */
+#define USB_EP_T_FIELD ((uint16_t)0x0600U) /*!< EndPoint TYPE */
+#define USB_EP_KIND ((uint16_t)0x0100U) /*!< EndPoint KIND */
+#define USB_EP_CTR_TX ((uint16_t)0x0080U) /*!< EndPoint Correct TRansfer TX */
+#define USB_EP_DTOG_TX ((uint16_t)0x0040U) /*!< EndPoint Data TOGGLE TX */
+#define USB_EPTX_STAT ((uint16_t)0x0030U) /*!< EndPoint TX STATus bit field */
+#define USB_EPADDR_FIELD ((uint16_t)0x000FU) /*!< EndPoint ADDRess FIELD */
+
+/* EndPoint REGister MASK (no toggle fields) */
+#define USB_EPREG_MASK (USB_EP_CTR_RX|USB_EP_SETUP|USB_EP_T_FIELD|USB_EP_KIND|USB_EP_CTR_TX|USB_EPADDR_FIELD)
+ /*!< EP_TYPE[1:0] EndPoint TYPE */
+#define USB_EP_TYPE_MASK ((uint16_t)0x0600U) /*!< EndPoint TYPE Mask */
+#define USB_EP_BULK ((uint16_t)0x0000U) /*!< EndPoint BULK */
+#define USB_EP_CONTROL ((uint16_t)0x0200U) /*!< EndPoint CONTROL */
+#define USB_EP_ISOCHRONOUS ((uint16_t)0x0400U) /*!< EndPoint ISOCHRONOUS */
+#define USB_EP_INTERRUPT ((uint16_t)0x0600U) /*!< EndPoint INTERRUPT */
+#define USB_EP_T_MASK ((uint16_t) ~USB_EP_T_FIELD & USB_EPREG_MASK)
+
+#define USB_EPKIND_MASK ((uint16_t) ~USB_EP_KIND & USB_EPREG_MASK) /*!< EP_KIND EndPoint KIND */
+ /*!< STAT_TX[1:0] STATus for TX transfer */
+#define USB_EP_TX_DIS ((uint16_t)0x0000U) /*!< EndPoint TX DISabled */
+#define USB_EP_TX_STALL ((uint16_t)0x0010U) /*!< EndPoint TX STALLed */
+#define USB_EP_TX_NAK ((uint16_t)0x0020U) /*!< EndPoint TX NAKed */
+#define USB_EP_TX_VALID ((uint16_t)0x0030U) /*!< EndPoint TX VALID */
+#define USB_EPTX_DTOG1 ((uint16_t)0x0010U) /*!< EndPoint TX Data TOGgle bit1 */
+#define USB_EPTX_DTOG2 ((uint16_t)0x0020U) /*!< EndPoint TX Data TOGgle bit2 */
+#define USB_EPTX_DTOGMASK (USB_EPTX_STAT|USB_EPREG_MASK)
+ /*!< STAT_RX[1:0] STATus for RX transfer */
+#define USB_EP_RX_DIS ((uint16_t)0x0000U) /*!< EndPoint RX DISabled */
+#define USB_EP_RX_STALL ((uint16_t)0x1000U) /*!< EndPoint RX STALLed */
+#define USB_EP_RX_NAK ((uint16_t)0x2000U) /*!< EndPoint RX NAKed */
+#define USB_EP_RX_VALID ((uint16_t)0x3000U) /*!< EndPoint RX VALID */
+#define USB_EPRX_DTOG1 ((uint16_t)0x1000U) /*!< EndPoint RX Data TOGgle bit1 */
+#define USB_EPRX_DTOG2 ((uint16_t)0x2000U) /*!< EndPoint RX Data TOGgle bit1 */
+#define USB_EPRX_DTOGMASK (USB_EPRX_STAT|USB_EPREG_MASK)
+
+
+//--------------------------------------------------------------------+
+//
+//--------------------------------------------------------------------+
+
+#if CFG_TUSB_MCU == OPT_MCU_CH32V20X
+static const IRQn_Type fsdev_irq[] = {
+ USB_HP_CAN1_TX_IRQn,
+ USB_LP_CAN1_RX0_IRQn,
+ USBWakeUp_IRQn
+};
+enum { FSDEV_IRQ_NUM = TU_ARRAY_SIZE(fsdev_irq) };
+#else
+ #error "Unsupported MCU"
+#endif
+
+void dcd_int_enable(uint8_t rhport) {
+ (void)rhport;
+ for(uint8_t i=0; i < FSDEV_IRQ_NUM; i++) {
+ NVIC_EnableIRQ(fsdev_irq[i]);
+ }
+}
+
+void dcd_int_disable(uint8_t rhport) {
+ (void)rhport;
+ for(uint8_t i=0; i < FSDEV_IRQ_NUM; i++) {
+ NVIC_DisableIRQ(fsdev_irq[i]);
+ }
+}
+
+void dcd_disconnect(uint8_t rhport) {
+ (void) rhport;
+ EXTEN->EXTEN_CTR &= ~EXTEN_USBD_PU_EN;
+}
+
+void dcd_connect(uint8_t rhport) {
+ (void) rhport;
+ EXTEN->EXTEN_CTR |= EXTEN_USBD_PU_EN;
+}
+
+#endif
diff --git a/src/portable/st/stm32_fsdev/fsdev_stm32.h b/src/portable/st/stm32_fsdev/fsdev_stm32.h
new file mode 100644
index 000000000..bb2c72fd1
--- /dev/null
+++ b/src/portable/st/stm32_fsdev/fsdev_stm32.h
@@ -0,0 +1,334 @@
+/*
+ * The MIT License (MIT)
+ *
+ * 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.
+ */
+
+#ifndef TUSB_FSDEV_STM32_H
+#define TUSB_FSDEV_STM32_H
+
+#if CFG_TUSB_MCU == OPT_MCU_STM32F0
+ #include "stm32f0xx.h"
+ #define FSDEV_PMA_SIZE (1024u)
+ #define FSDEV_REG_BASE USB_BASE
+ // F0x2 models are crystal-less
+ // All have internal D+ pull-up
+ // 070RB: 2 x 16 bits/word memory LPM Support, BCD Support
+ // PMA dedicated to USB (no sharing with CAN)
+
+#elif CFG_TUSB_MCU == OPT_MCU_STM32F1
+ #include "stm32f1xx.h"
+ #define FSDEV_PMA_SIZE (512u)
+ // NO internal Pull-ups
+ // *B, and *C: 2 x 16 bits/word
+
+ // F1 names this differently from the rest
+ #define USB_CNTR_LPMODE USB_CNTR_LP_MODE
+
+#elif defined(STM32F302xB) || defined(STM32F302xC) || \
+ defined(STM32F303xB) || defined(STM32F303xC) || \
+ defined(STM32F373xC)
+ #include "stm32f3xx.h"
+ #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)
+
+#elif defined(STM32F302x6) || defined(STM32F302x8) || \
+ defined(STM32F302xD) || defined(STM32F302xE) || \
+ defined(STM32F303xD) || defined(STM32F303xE)
+ #include "stm32f3xx.h"
+ #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 FSDEV_PMA_SIZE (1024u)
+
+#elif CFG_TUSB_MCU == OPT_MCU_STM32L1
+ #include "stm32l1xx.h"
+ #define FSDEV_PMA_SIZE (512u)
+
+#elif CFG_TUSB_MCU == OPT_MCU_STM32G4
+ #include "stm32g4xx.h"
+ #define FSDEV_PMA_SIZE (1024u)
+
+#elif CFG_TUSB_MCU == OPT_MCU_STM32G0
+ #include "stm32g0xx.h"
+ #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
+ #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_STM32WB
+ #include "stm32wbxx.h"
+ #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 FSDEV_PMA_SIZE (1024u)
+
+#elif CFG_TUSB_MCU == OPT_MCU_STM32L5
+ #include "stm32l5xx.h"
+ #define FSDEV_PMA_SIZE (1024u)
+
+ #ifndef USB_PMAADDR
+ #define USB_PMAADDR (USB_BASE + (USB_PMAADDR_NS - USB_BASE_NS))
+ #endif
+
+#elif CFG_TUSB_MCU == OPT_MCU_STM32U5
+ #include "stm32u5xx.h"
+ #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
+
+#else
+ #error You are using an untested or unimplemented STM32 variant. Please update the driver.
+ // This includes U0
+#endif
+
+#if defined(USB_BASE)
+ #define FSDEV_REG_BASE USB_BASE
+#elif defined(USB_DRD_BASE)
+ #define FSDEV_REG_BASE USB_DRD_BASE
+#elif defined(USB_DRD_FS_BASE)
+ #define FSDEV_REG_BASE USB_DRD_FS_BASE
+#else
+ #error "FSDEV_REG_BASE not defined"
+#endif
+
+// This checks if the device has "LPM"
+#if defined(USB_ISTR_L1REQ)
+#define USB_ISTR_L1REQ_FORCED (USB_ISTR_L1REQ)
+#else
+#define USB_ISTR_L1REQ_FORCED ((uint16_t)0x0000U)
+#endif
+
+#define USB_ISTR_ALL_EVENTS (USB_ISTR_PMAOVR | USB_ISTR_ERR | USB_ISTR_WKUP | USB_ISTR_SUSP | \
+ USB_ISTR_RESET | USB_ISTR_SOF | USB_ISTR_ESOF | USB_ISTR_L1REQ_FORCED )
+
+//--------------------------------------------------------------------+
+//
+//--------------------------------------------------------------------+
+
+#if TU_CHECK_MCU(OPT_MCU_STM32L1) && !defined(USBWakeUp_IRQn)
+ #define USBWakeUp_IRQn USB_FS_WKUP_IRQn
+#endif
+
+static const IRQn_Type fsdev_irq[] = {
+ #if TU_CHECK_MCU(OPT_MCU_STM32F0, OPT_MCU_STM32L0, OPT_MCU_STM32L4)
+ USB_IRQn,
+ #elif CFG_TUSB_MCU == OPT_MCU_STM32F1
+ USB_HP_CAN1_TX_IRQn,
+ USB_LP_CAN1_RX0_IRQn,
+ USBWakeUp_IRQn,
+ #elif CFG_TUSB_MCU == OPT_MCU_STM32F3
+ // USB remap handles dcd functions
+ USB_HP_CAN_TX_IRQn,
+ USB_LP_CAN_RX0_IRQn,
+ USBWakeUp_IRQn,
+ #elif CFG_TUSB_MCU == OPT_MCU_STM32G0
+ #ifdef STM32G0B0xx
+ USB_IRQn,
+ #else
+ USB_UCPD1_2_IRQn,
+ #endif
+ #elif TU_CHECK_MCU(OPT_MCU_STM32G4, OPT_MCU_STM32L1)
+ USB_HP_IRQn,
+ USB_LP_IRQn,
+ USBWakeUp_IRQn,
+ #elif CFG_TUSB_MCU == OPT_MCU_STM32H5
+ USB_DRD_FS_IRQn,
+ #elif CFG_TUSB_MCU == OPT_MCU_STM32L5
+ USB_FS_IRQn,
+ #elif CFG_TUSB_MCU == OPT_MCU_STM32WB
+ USB_HP_IRQn,
+ USB_LP_IRQn,
+ #elif CFG_TUSB_MCU == OPT_MCU_STM32U5
+ USB_IRQn,
+ #else
+ #error Unknown arch in USB driver
+ #endif
+};
+enum { FSDEV_IRQ_NUM = TU_ARRAY_SIZE(fsdev_irq) };
+
+void dcd_int_enable(uint8_t rhport) {
+ (void)rhport;
+
+ // forces write to RAM before allowing ISR to execute
+ __DSB(); __ISB();
+
+ #if CFG_TUSB_MCU == OPT_MCU_STM32F3 && defined(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.
+ 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
+ {
+ for (uint8_t i = 0; i < FSDEV_IRQ_NUM; i++) {
+ NVIC_EnableIRQ(fsdev_irq[i]);
+ }
+ }
+}
+
+void dcd_int_disable(uint8_t rhport) {
+ (void)rhport;
+
+ #if CFG_TUSB_MCU == OPT_MCU_STM32F3 && defined(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.
+ 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
+ {
+ for (uint8_t i = 0; i < FSDEV_IRQ_NUM; i++) {
+ NVIC_DisableIRQ(fsdev_irq[i]);
+ }
+ }
+
+ // CMSIS has a membar after disabling interrupts
+}
+
+// Define only on MCU with internal pull-up. BSP can define on MCU without internal PU.
+#if defined(USB_BCDR_DPPU)
+
+void dcd_disconnect(uint8_t rhport) {
+ (void)rhport;
+ USB->BCDR &= ~(USB_BCDR_DPPU);
+}
+
+void dcd_connect(uint8_t rhport) {
+ (void)rhport;
+ USB->BCDR |= USB_BCDR_DPPU;
+}
+
+#elif defined(SYSCFG_PMC_USB_PU) // works e.g. on STM32L151
+
+void dcd_disconnect(uint8_t rhport) {
+ (void)rhport;
+ SYSCFG->PMC &= ~(SYSCFG_PMC_USB_PU);
+}
+
+void dcd_connect(uint8_t rhport) {
+ (void)rhport;
+ SYSCFG->PMC |= SYSCFG_PMC_USB_PU;
+}
+#endif
+
+
+#endif /* TUSB_FSDEV_STM32_H */
diff --git a/src/portable/st/stm32_fsdev/fsdev_type.h b/src/portable/st/stm32_fsdev/fsdev_type.h
new file mode 100644
index 000000000..e4a0f3f28
--- /dev/null
+++ b/src/portable/st/stm32_fsdev/fsdev_type.h
@@ -0,0 +1,282 @@
+/*
+ * The MIT License (MIT)
+ *
+ * Copyright(c) 2016 STMicroelectronics
+ * Copyright(c) N Conrad
+ * Copyright (c) 2024, hathach (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.
+ *
+ */
+
+#ifndef TUSB_FSDEV_TYPE_H
+#define TUSB_FSDEV_TYPE_H
+
+#ifdef __cplusplus
+ extern "C" {
+#endif
+
+#include "stdint.h"
+
+// 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 FSDEV_BTABLE_BASE
+#define FSDEV_BTABLE_BASE 0U
+#endif
+
+TU_VERIFY_STATIC(FSDEV_BTABLE_BASE % 8 == 0, "BTABLE base must be aligned to 8 bytes");
+
+// FSDEV_PMA_SIZE is PMA buffer size in bytes.
+// - 512-byte devices, access with a stride of two words (use every other 16-bit address)
+// - 1024-byte devices, access with a stride of one word (use every 16-bit address)
+// - 2048-byte devices, access with 32-bit address
+
+// For purposes of accessing the packet
+#if FSDEV_PMA_SIZE == 512
+ #define FSDEV_PMA_STRIDE (2u) // 1x16 bit access scheme
+ #define pma_aligned TU_ATTR_ALIGNED(4)
+#elif FSDEV_PMA_SIZE == 1024
+ #define FSDEV_PMA_STRIDE (1u) // 2x16 bit access scheme
+ #define pma_aligned
+#elif FSDEV_PMA_SIZE == 2048
+ #ifndef FSDEV_BUS_32BIT
+ #warning "FSDEV_PMA_SIZE is 2048, but FSDEV_BUS_32BIT is not defined"
+ #endif
+ #define FSDEV_PMA_STRIDE (1u) // 32 bit access scheme
+ #define pma_aligned
+#endif
+
+//--------------------------------------------------------------------+
+// BTable Typedef
+//--------------------------------------------------------------------+
+enum {
+ BTABLE_BUF_TX = 0,
+ BTABLE_BUF_RX = 1
+};
+
+// hardware limit endpoint
+#define FSDEV_EP_COUNT 8
+
+// Buffer Table is located in Packet Memory Area (PMA) and therefore its address access is forced to either
+// 16-bit or 32-bit depending on FSDEV_BUS_32BIT.
+typedef union {
+ // 0: TX (IN), 1: RX (OUT)
+
+ // strictly 16-bit access (could be 32-bit aligned)
+ struct {
+ volatile pma_aligned uint16_t addr;
+ volatile pma_aligned uint16_t count;
+ } ep16[FSDEV_EP_COUNT][2];
+
+ // strictly 32-bit access
+ struct {
+ volatile uint32_t count_addr;
+ } ep32[FSDEV_EP_COUNT][2];
+} fsdev_btable_t;
+
+TU_VERIFY_STATIC(sizeof(fsdev_btable_t) == FSDEV_EP_COUNT*8*FSDEV_PMA_STRIDE, "size is not correct");
+TU_VERIFY_STATIC(FSDEV_BTABLE_BASE + FSDEV_EP_COUNT*8 <= FSDEV_PMA_SIZE, "BTABLE does not fit in PMA RAM");
+
+#define FSDEV_BTABLE ((volatile fsdev_btable_t*) (USB_PMAADDR+FSDEV_BTABLE_BASE))
+
+typedef struct {
+ volatile pma_aligned uint16_t u16;
+} fsdev_pma16_t;
+
+//--------------------------------------------------------------------+
+// Registers Typedef
+//--------------------------------------------------------------------+
+
+// volatile 32-bit aligned
+#define _va32 volatile TU_ATTR_ALIGNED(4)
+
+// The fsdev_bus_t type can be used for both register and PMA access necessities
+#ifdef FSDEV_BUS_32BIT
+typedef uint32_t fsdev_bus_t;
+#else
+typedef uint16_t fsdev_bus_t;
+#endif
+
+typedef struct {
+ struct {
+ _va32 fsdev_bus_t reg;
+ }ep[FSDEV_EP_COUNT];
+
+ _va32 uint32_t RESERVED7[8]; // Reserved
+ _va32 fsdev_bus_t CNTR; // 40: Control register
+ _va32 fsdev_bus_t ISTR; // 44: Interrupt status register
+ _va32 fsdev_bus_t FNR; // 48: Frame number register
+ _va32 fsdev_bus_t DADDR; // 4C: Device address register
+ _va32 fsdev_bus_t BTABLE; // 50: Buffer Table address register (16-bit only)
+ _va32 fsdev_bus_t LPMCSR; // 54: LPM Control and Status Register (32-bit only)
+ _va32 fsdev_bus_t BCDR; // 58: Battery Charging Detector Register (32-bit only)
+} fsdev_regs_t;
+
+TU_VERIFY_STATIC(offsetof(fsdev_regs_t, CNTR) == 0x40, "Wrong offset");
+TU_VERIFY_STATIC(sizeof(fsdev_regs_t) == 0x5C, "Size is not correct");
+
+#define FSDEV_REG ((fsdev_regs_t*) FSDEV_REG_BASE)
+
+
+#ifndef USB_EPTX_STAT
+#define USB_EPTX_STAT 0x0030U
+#endif
+
+#ifndef USB_EPRX_STAT
+#define USB_EPRX_STAT 0x3000U
+#endif
+
+#ifndef USB_EPTX_STAT_Pos
+#define USB_EPTX_STAT_Pos 4u
+#endif
+
+#ifndef USB_EP_DTOG_TX_Pos
+#define USB_EP_DTOG_TX_Pos 6u
+#endif
+
+#ifndef USB_EP_CTR_TX_Pos
+#define USB_EP_CTR_TX_Pos 7u
+#endif
+
+
+#define EP_CTR_TXRX (USB_EP_CTR_TX | USB_EP_CTR_RX)
+
+typedef enum {
+ EP_STAT_DISABLED = 0,
+ EP_STAT_STALL = 1,
+ EP_STAT_NAK = 2,
+ EP_STAT_VALID = 3
+}ep_stat_t;
+
+#define EP_STAT_MASK(_dir) (3u << (USB_EPTX_STAT_Pos + ((_dir) == TUSB_DIR_IN ? 0 : 8)))
+#define EP_DTOG_MASK(_dir) (1u << (USB_EP_DTOG_TX_Pos + ((_dir) == TUSB_DIR_IN ? 0 : 8)))
+
+//--------------------------------------------------------------------+
+// Endpoint Helper
+// - CTR is write 0 to clear
+// - DTOG and STAT are write 1 to toggle
+//--------------------------------------------------------------------+
+
+TU_ATTR_ALWAYS_INLINE static inline void ep_write(uint32_t ep_id, uint32_t value) {
+ FSDEV_REG->ep[ep_id].reg = (fsdev_bus_t) value;
+}
+
+TU_ATTR_ALWAYS_INLINE static inline uint32_t ep_read(uint32_t ep_id) {
+ return FSDEV_REG->ep[ep_id].reg;
+}
+
+TU_ATTR_ALWAYS_INLINE static inline uint32_t ep_add_status(uint32_t reg, tusb_dir_t dir, ep_stat_t state) {
+ return reg ^ (state << (USB_EPTX_STAT_Pos + (dir == TUSB_DIR_IN ? 0 : 8)));
+}
+
+TU_ATTR_ALWAYS_INLINE static inline uint32_t ep_add_dtog(uint32_t reg, tusb_dir_t dir, uint8_t state) {
+ return reg ^ (state << (USB_EP_DTOG_TX_Pos + (dir == TUSB_DIR_IN ? 0 : 8)));
+}
+
+TU_ATTR_ALWAYS_INLINE static inline uint32_t ep_clear_ctr(uint32_t reg, tusb_dir_t dir) {
+ return reg & ~(1 << (USB_EP_CTR_TX_Pos + (dir == TUSB_DIR_IN ? 0 : 8)));
+}
+
+TU_ATTR_ALWAYS_INLINE static inline bool ep_is_iso(uint32_t reg) {
+ return (reg & USB_EP_TYPE_MASK) == USB_EP_ISOCHRONOUS;
+}
+
+//--------------------------------------------------------------------+
+// BTable Helper
+//--------------------------------------------------------------------+
+
+TU_ATTR_ALWAYS_INLINE static inline uint32_t btable_get_addr(uint32_t ep_id, uint8_t buf_id) {
+#ifdef FSDEV_BUS_32BIT
+ return FSDEV_BTABLE->ep32[ep_id][buf_id].count_addr & 0x0000FFFFu;
+#else
+ return FSDEV_BTABLE->ep16[ep_id][buf_id].addr;
+#endif
+}
+
+TU_ATTR_ALWAYS_INLINE static inline void btable_set_addr(uint32_t ep_id, uint8_t buf_id, uint16_t addr) {
+#ifdef FSDEV_BUS_32BIT
+ uint32_t count_addr = FSDEV_BTABLE->ep32[ep_id][buf_id].count_addr;
+ count_addr = (count_addr & 0xFFFF0000u) | (addr & 0x0000FFFCu);
+ FSDEV_BTABLE->ep32[ep_id][buf_id].count_addr = count_addr;
+#else
+ FSDEV_BTABLE->ep16[ep_id][buf_id].addr = addr;
+#endif
+}
+
+TU_ATTR_ALWAYS_INLINE static inline uint32_t btable_get_count(uint32_t ep_id, uint8_t buf_id) {
+ uint16_t count;
+#ifdef FSDEV_BUS_32BIT
+ count = (FSDEV_BTABLE->ep32[ep_id][buf_id].count_addr >> 16);
+#else
+ count = FSDEV_BTABLE->ep16[ep_id][buf_id].count;
+#endif
+ return count & 0x3FFU;
+}
+
+TU_ATTR_ALWAYS_INLINE static inline void btable_set_count(uint32_t ep_id, uint8_t buf_id, uint16_t byte_count) {
+#ifdef FSDEV_BUS_32BIT
+ uint32_t count_addr = FSDEV_BTABLE->ep32[ep_id][buf_id].count_addr;
+ count_addr = (count_addr & ~0x03FF0000u) | ((byte_count & 0x3FFu) << 16);
+ FSDEV_BTABLE->ep32[ep_id][buf_id].count_addr = count_addr;
+#else
+ uint16_t cnt = FSDEV_BTABLE->ep16[ep_id][buf_id].count;
+ cnt = (cnt & ~0x3FFU) | (byte_count & 0x3FFU);
+ FSDEV_BTABLE->ep16[ep_id][buf_id].count = cnt;
+#endif
+}
+
+/* Aligned buffer size according to hardware */
+TU_ATTR_ALWAYS_INLINE static inline uint16_t pma_align_buffer_size(uint16_t size, uint8_t* blsize, uint8_t* num_block) {
+ /* 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 block_in_bytes;
+ if (size > 62) {
+ block_in_bytes = 32;
+ *blsize = 1;
+ } else {
+ block_in_bytes = 2;
+ *blsize = 0;
+ }
+
+ *num_block = tu_div_ceil(size, block_in_bytes);
+
+ return (*num_block) * block_in_bytes;
+}
+
+TU_ATTR_ALWAYS_INLINE static inline void btable_set_rx_bufsize(uint32_t ep_id, uint8_t buf_id, uint32_t wCount) {
+ uint8_t blsize, num_block;
+ (void) pma_align_buffer_size(wCount, &blsize, &num_block);
+
+ /* Encode into register. When BLSIZE==1, we need to subtract 1 block count */
+ uint16_t bl_nb = (blsize << 15) | ((num_block - blsize) << 10);
+
+#ifdef FSDEV_BUS_32BIT
+ uint32_t count_addr = FSDEV_BTABLE->ep32[ep_id][buf_id].count_addr;
+ count_addr = (bl_nb << 16) | (count_addr & 0x0000FFFFu);
+ FSDEV_BTABLE->ep32[ep_id][buf_id].count_addr = count_addr;
+#else
+ FSDEV_BTABLE->ep16[ep_id][buf_id].count = bl_nb;
+#endif
+}
+
+#ifdef __cplusplus
+ }
+#endif
+
+#endif
diff --git a/src/portable/sunxi/dcd_sunxi_musb.c b/src/portable/sunxi/dcd_sunxi_musb.c
index 6cc1975a8..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)
{
@@ -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));
@@ -594,7 +596,7 @@ static bool handle_xfer_in(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_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;
@@ -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;
diff --git a/src/portable/synopsys/dwc2/dcd_dwc2.c b/src/portable/synopsys/dwc2/dcd_dwc2.c
index 8b13b0753..9a38b46dc 100644
--- a/src/portable/synopsys/dwc2/dcd_dwc2.c
+++ b/src/portable/synopsys/dwc2/dcd_dwc2.c
@@ -112,6 +112,17 @@ 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;
}
+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;
@@ -120,7 +131,7 @@ static bool fifo_alloc(uint8_t rhport, uint8_t ep_addr, uint16_t packet_size) {
TU_ASSERT(epnum < ep_count);
- uint16_t const fifo_size = tu_div_ceil(packet_size, 4);
+ uint16_t fifo_size = tu_div_ceil(packet_size, 4);
// "USB Data FIFOs" section in reference manual
// Peripheral FIFO architecture
@@ -154,10 +165,16 @@ static bool fifo_alloc(uint8_t rhport, uint8_t ep_addr, uint16_t packet_size) {
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 %lu", fifo_size * 4,
+ 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.
@@ -185,10 +202,10 @@ static void edpt_activate(uint8_t rhport, tusb_desc_endpoint_t const * p_endpoin
(xfer->max_size << DOEPCTL_MPSIZ_Pos);
if (dir == TUSB_DIR_OUT) {
- dwc2->epout[epnum].doepctl |= dxepctl;
+ dwc2->epout[epnum].doepctl = dxepctl;
dwc2->daintmsk |= TU_BIT(DAINTMSK_OEPM_Pos + epnum);
} else {
- dwc2->epin[epnum].diepctl |= dxepctl | (epnum << DIEPCTL_TXFNUM_Pos);
+ dwc2->epin[epnum].diepctl = dxepctl | (epnum << DIEPCTL_TXFNUM_Pos);
dwc2->daintmsk |= (1 << (DAINTMSK_IEPM_Pos + epnum));
}
}
@@ -219,8 +236,7 @@ static void edpt_disable(uint8_t rhport, uint8_t ep_addr, bool stall) {
}
// 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) {}
+ fifo_flush_tx(dwc2, epnum);
} else {
dwc2_epout_t* epout = dwc2->epout;
@@ -264,15 +280,17 @@ static void bus_reset(uint8_t rhport) {
dwc2->epout[n].doepctl |= DOEPCTL_SNAK;
}
- // flush all TX fifo and wait for it cleared
- dwc2->grstctl = GRSTCTL_TXFFLSH | (0x10u << GRSTCTL_TXFNUM_Pos);
- while (dwc2->grstctl & GRSTCTL_TXFFLSH_Msk) {}
+ // 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;
+ }
+ }
- // flush RX fifo and wait for it cleared
- dwc2->grstctl = GRSTCTL_RXFFLSH;
- while (dwc2->grstctl & GRSTCTL_RXFFLSH_Msk) {}
+ fifo_flush_tx(dwc2, 0x10); // all tx fifo
+ fifo_flush_rx(dwc2);
- // 2. Set up interrupt mask
+ // 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;
@@ -408,9 +426,9 @@ void print_dwc2_info(dwc2_regs_t* dwc2) {
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%08lX, ", p[i]);
+ TU_LOG(DWC2_DEBUG, "0x%08" PRIX32 ", ", p[i]);
}
- TU_LOG(DWC2_DEBUG, "0x%08lX\r\n", p[5]);
+ TU_LOG(DWC2_DEBUG, "0x%08" PRIX32 "\r\n", p[5]);
}
#endif
@@ -429,11 +447,15 @@ static void reset_core(dwc2_regs_t* dwc2) {
}
static bool phy_hs_supported(dwc2_regs_t* dwc2) {
- // note: esp32 incorrect report its hs_phy_type as utmi
+ (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
}
@@ -578,13 +600,8 @@ void dcd_init(uint8_t rhport) {
// (non zero-length packet), send STALL back and discard.
dwc2->dcfg |= DCFG_NZLSOHSK;
- // flush all TX fifo and wait for it cleared
- dwc2->grstctl = GRSTCTL_TXFFLSH | (0x10u << GRSTCTL_TXFNUM_Pos);
- while (dwc2->grstctl & GRSTCTL_TXFFLSH_Msk) {}
-
- // flush RX fifo and wait for it cleared
- dwc2->grstctl = GRSTCTL_RXFFLSH;
- while (dwc2->grstctl & GRSTCTL_RXFFLSH_Msk) {}
+ fifo_flush_tx(dwc2, 0x10); // all tx fifo
+ fifo_flush_rx(dwc2);
// Clear all interrupts
uint32_t int_mask = dwc2->gintsts;
@@ -596,6 +613,9 @@ void dcd_init(uint8_t rhport) {
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;
@@ -691,16 +711,25 @@ void dcd_edpt_close_all(uint8_t rhport) {
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) {
@@ -1122,16 +1151,14 @@ void dcd_int_handler(uint8_t rhport) {
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.
@@ -1144,7 +1171,7 @@ void dcd_int_handler(uint8_t rhport) {
// Loop until all available packets were handled
do {
handle_rxflvl_irq(rhport);
- } while (dwc2->gotgint & GINTSTS_RXFLVL);
+ } while(dwc2->gintsts & GINTSTS_RXFLVL);
dwc2->gintmsk |= GINTMSK_RXFLVLM;
}
@@ -1168,4 +1195,13 @@ void dcd_int_handler(uint8_t rhport) {
// }
}
+#if CFG_TUD_TEST_MODE
+void dcd_enter_test_mode(uint8_t rhport, tusb_feature_test_mode_t test_selector) {
+ dwc2_regs_t* dwc2 = DWC2_REG(rhport);
+
+ // Enable the test mode
+ dwc2->dctl = (dwc2->dctl & ~DCTL_TCTL_Msk) | (((uint8_t) test_selector) << DCTL_TCTL_Pos);
+}
+#endif
+
#endif
diff --git a/src/portable/synopsys/dwc2/dwc2_esp32.h b/src/portable/synopsys/dwc2/dwc2_esp32.h
index c50dd66b8..932f52f40 100644
--- a/src/portable/synopsys/dwc2/dwc2_esp32.h
+++ b/src/portable/synopsys/dwc2/dwc2_esp32.h
@@ -35,6 +35,7 @@
#include "esp_intr_alloc.h"
#include "soc/periph_defs.h"
//#include "soc/usb_periph.h"
+#include "freertos/task.h"
#define DWC2_REG_BASE 0x60080000UL
#define DWC2_EP_MAX 6 // USB_OUT_EP_NUM. TODO ESP32Sx only has 5 tx fifo (5 endpoint IN)
diff --git a/src/portable/synopsys/dwc2/dwc2_type.h b/src/portable/synopsys/dwc2/dwc2_type.h
index c15771237..cb694b326 100644
--- a/src/portable/synopsys/dwc2/dwc2_type.h
+++ b/src/portable/synopsys/dwc2/dwc2_type.h
@@ -1,17 +1,34 @@
-/**
- * @author MCD Application Team
- * Ha Thach (tinyusb.org)
- *
- * @attention
- *
- * <h2><center>&copy; Copyright (c) 2019 STMicroelectronics.
+/*
+ * The MIT License (MIT)
+ *
+ * Copyright (c) 2024, hathach (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.
+ *
+ */
+/** <h2><center>&copy; Copyright (c) 2019 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
- *
*/
#ifndef _TUSB_DWC2_TYPES_H_
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/ch32_usbfs_reg.h b/src/portable/wch/ch32_usbfs_reg.h
new file mode 100644
index 000000000..68be64f5e
--- /dev/null
+++ b/src/portable/wch/ch32_usbfs_reg.h
@@ -0,0 +1,175 @@
+/*
+ * The MIT License (MIT)
+ *
+ * Copyright (c) 2024 Matthew Tran
+ * Copyright (c) 2024 hathach
+ *
+ * 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.
+ */
+
+#ifndef USB_CH32_USBFS_REG_H
+#define USB_CH32_USBFS_REG_H
+
+// https://github.com/openwch/ch32v307/pull/90
+// https://github.com/openwch/ch32v20x/pull/12
+#ifdef __GNUC__
+#pragma GCC diagnostic push
+#pragma GCC diagnostic ignored "-Wstrict-prototypes"
+#endif
+
+#if CFG_TUSB_MCU == OPT_MCU_CH32F20X
+ #include <ch32f20x.h>
+#elif CFG_TUSB_MCU == OPT_MCU_CH32V103
+ #include <ch32v10x.h>
+ typedef struct
+ {
+ __IO uint8_t BASE_CTRL;
+ __IO uint8_t UDEV_CTRL;
+ __IO uint8_t INT_EN;
+ __IO uint8_t DEV_ADDR;
+ __IO uint8_t Reserve0;
+ __IO uint8_t MIS_ST;
+ __IO uint8_t INT_FG;
+ __IO uint8_t INT_ST;
+ __IO uint32_t RX_LEN;
+ __IO uint8_t UEP4_1_MOD;
+ __IO uint8_t UEP2_3_MOD;
+ __IO uint8_t UEP5_6_MOD;
+ __IO uint8_t UEP7_MOD;
+ __IO uint32_t UEP0_DMA;
+ __IO uint32_t UEP1_DMA;
+ __IO uint32_t UEP2_DMA;
+ __IO uint32_t UEP3_DMA;
+ __IO uint32_t UEP4_DMA;
+ __IO uint32_t UEP5_DMA;
+ __IO uint32_t UEP6_DMA;
+ __IO uint32_t UEP7_DMA;
+ __IO uint16_t UEP0_TX_LEN;
+ __IO uint8_t UEP0_TX_CTRL;
+ __IO uint8_t UEP0_RX_CTRL;
+ __IO uint16_t UEP1_TX_LEN;
+ __IO uint8_t UEP1_TX_CTRL;
+ __IO uint8_t UEP1_RX_CTRL;
+ __IO uint16_t UEP2_TX_LEN;
+ __IO uint8_t UEP2_TX_CTRL;
+ __IO uint8_t UEP2_RX_CTRL;
+ __IO uint16_t UEP3_TX_LEN;
+ __IO uint8_t UEP3_TX_CTRL;
+ __IO uint8_t UEP3_RX_CTRL;
+ __IO uint16_t UEP4_TX_LEN;
+ __IO uint8_t UEP4_TX_CTRL;
+ __IO uint8_t UEP4_RX_CTRL;
+ __IO uint16_t UEP5_TX_LEN;
+ __IO uint8_t UEP5_TX_CTRL;
+ __IO uint8_t UEP5_RX_CTRL;
+ __IO uint16_t UEP6_TX_LEN;
+ __IO uint8_t UEP6_TX_CTRL;
+ __IO uint8_t UEP6_RX_CTRL;
+ __IO uint16_t UEP7_TX_LEN;
+ __IO uint8_t UEP7_TX_CTRL;
+ __IO uint8_t UEP7_RX_CTRL;
+ __IO uint32_t Reserve1;
+ __IO uint32_t OTG_CR;
+ __IO uint32_t OTG_SR;
+ } USBOTG_FS_TypeDef;
+
+ #define USBOTG_FS ((USBOTG_FS_TypeDef *) 0x40023400)
+#elif CFG_TUSB_MCU == OPT_MCU_CH32V20X
+ #include <ch32v20x.h>
+#elif CFG_TUSB_MCU == OPT_MCU_CH32V307
+ #include <ch32v30x.h>
+ #define USBHD_IRQn OTG_FS_IRQn
+#endif
+
+#ifdef __GNUC__
+#pragma GCC diagnostic pop
+#endif
+
+// CTRL
+#define USBFS_CTRL_DMA_EN (1 << 0)
+#define USBFS_CTRL_CLR_ALL (1 << 1)
+#define USBFS_CTRL_RESET_SIE (1 << 2)
+#define USBFS_CTRL_INT_BUSY (1 << 3)
+#define USBFS_CTRL_SYS_CTRL (1 << 4)
+#define USBFS_CTRL_DEV_PUEN (1 << 5)
+#define USBFS_CTRL_LOW_SPEED (1 << 6)
+#define USBFS_CTRL_HOST_MODE (1 << 7)
+
+// INT_EN
+#define USBFS_INT_EN_BUS_RST (1 << 0)
+#define USBFS_INT_EN_DETECT (1 << 0)
+#define USBFS_INT_EN_TRANSFER (1 << 1)
+#define USBFS_INT_EN_SUSPEND (1 << 2)
+#define USBFS_INT_EN_HST_SOF (1 << 3)
+#define USBFS_INT_EN_FIFO_OV (1 << 4)
+#define USBFS_INT_EN_DEV_NAK (1 << 6)
+#define USBFS_INT_EN_DEV_SOF (1 << 7)
+
+// INT_FG
+#define USBFS_INT_FG_BUS_RST (1 << 0)
+#define USBFS_INT_FG_DETECT (1 << 0)
+#define USBFS_INT_FG_TRANSFER (1 << 1)
+#define USBFS_INT_FG_SUSPEND (1 << 2)
+#define USBFS_INT_FG_HST_SOF (1 << 3)
+#define USBFS_INT_FG_FIFO_OV (1 << 4)
+#define USBFS_INT_FG_SIE_FREE (1 << 5)
+#define USBFS_INT_FG_TOG_OK (1 << 6)
+#define USBFS_INT_FG_IS_NAK (1 << 7)
+
+// INT_ST
+#define USBFS_INT_ST_MASK_UIS_ENDP(x) (((x) >> 0) & 0x0F)
+#define USBFS_INT_ST_MASK_UIS_TOKEN(x) (((x) >> 4) & 0x03)
+
+// UDEV_CTRL
+#define USBFS_UDEV_CTRL_PORT_EN (1 << 0)
+#define USBFS_UDEV_CTRL_GP_BIT (1 << 1)
+#define USBFS_UDEV_CTRL_LOW_SPEED (1 << 2)
+#define USBFS_UDEV_CTRL_DM_PIN (1 << 4)
+#define USBFS_UDEV_CTRL_DP_PIN (1 << 5)
+#define USBFS_UDEV_CTRL_PD_DIS (1 << 7)
+
+// TX_CTRL
+#define USBFS_EP_T_RES_MASK (3 << 0)
+#define USBFS_EP_T_TOG (1 << 2)
+#define USBFS_EP_T_AUTO_TOG (1 << 3)
+
+#define USBFS_EP_T_RES_ACK (0 << 0)
+#define USBFS_EP_T_RES_NYET (1 << 0)
+#define USBFS_EP_T_RES_NAK (2 << 0)
+#define USBFS_EP_T_RES_STALL (3 << 0)
+
+// RX_CTRL
+#define USBFS_EP_R_RES_MASK (3 << 0)
+#define USBFS_EP_R_TOG (1 << 2)
+#define USBFS_EP_R_AUTO_TOG (1 << 3)
+
+#define USBFS_EP_R_RES_ACK (0 << 0)
+#define USBFS_EP_R_RES_NYET (1 << 0)
+#define USBFS_EP_R_RES_NAK (2 << 0)
+#define USBFS_EP_R_RES_STALL (3 << 0)
+
+// token PID
+#define PID_OUT 0
+#define PID_SOF 1
+#define PID_IN 2
+#define PID_SETUP 3
+
+#endif // USB_CH32_USBFS_REG_H
diff --git a/src/portable/wch/ch32_usbhs_reg.h b/src/portable/wch/ch32_usbhs_reg.h
index 9b956231f..87300b497 100644
--- a/src/portable/wch/ch32_usbhs_reg.h
+++ b/src/portable/wch/ch32_usbhs_reg.h
@@ -1,12 +1,51 @@
-#ifndef _USB_CH32_USBHS_REG_H
-#define _USB_CH32_USBHS_REG_H
+/*
+ * The MIT License (MIT)
+ *
+ * Copyright (c) 2024 Matthew Tran
+ * Copyright (c) 2024 hathach
+ *
+ * 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.
+ */
-#if (CFG_TUSB_MCU == OPT_MCU_CH32V307)
-#include <ch32v30x.h>
-#elif (CFG_TUSB_MCU == OPT_MCU_CH32F20X)
-#include <ch32f20x.h>
+#ifndef USB_CH32_USBHS_REG_H
+#define USB_CH32_USBHS_REG_H
+
+// https://github.com/openwch/ch32v307/pull/90
+// https://github.com/openwch/ch32v20x/pull/12
+#ifdef __GNUC__
+#pragma GCC diagnostic push
+#pragma GCC diagnostic ignored "-Wstrict-prototypes"
+#endif
+
+#if CFG_TUSB_MCU == OPT_MCU_CH32V307
+ #include <ch32v30x.h>
+#elif CFG_TUSB_MCU == OPT_MCU_CH32F20X
+ #include <ch32f20x.h>
+#endif
+
+#ifdef __GNUC__
+#pragma GCC diagnostic pop
#endif
+
/******************* GLOBAL ******************/
// USB CONTROL
@@ -36,8 +75,13 @@
// USB DEV AD
#define USBHS_DEV_AD_OFFSET 0x03
+
// USB FRAME_NO
#define USBHS_FRAME_NO_OFFSET 0x04
+#define USBHS_FRAME_NO_NUM_MASK (0x7FF)
+#define USBHS_FRAME_NO_MICROFRAME_SHIFT (11)
+#define USBHS_FRAME_NO_MICROFRAME_MASK (0x7 << USBHS_FRAME_NO_MICROFRAME_SHIFT)
+
// USB SUSPEND
#define USBHS_SUSPEND_OFFSET 0x06
#define USBHS_DEV_REMOTE_WAKEUP (1 << 2)
@@ -47,7 +91,10 @@
// USB SPEED TYPE
#define USBHS_SPEED_TYPE_OFFSET 0x08
-#define USBSPEED_MASK (0x03)
+#define USBHS_SPEED_TYPE_MASK 0x03
+#define USBHS_SPEED_TYPE_FULL 0
+#define USBHS_SPEED_TYPE_HIGH 1
+#define USBHS_SPEED_TYPE_LOW 2
// USB_MIS_ST
#define USBHS_MIS_ST_OFFSET 0x09
@@ -72,12 +119,16 @@
#define USBHS_ISO_ACT_FLAG (1 << 6)
// INT_ST
-#define USBHS_INT_ST_OFFSET 0x0B
-#define USBHS_DEV_UIS_IS_NAK (1 << 7)
-#define USBHS_DEV_UIS_TOG_OK (1 << 6)
-#define MASK_UIS_TOKEN (3 << 4)
-#define MASK_UIS_ENDP (0x0F)
-#define MASK_UIS_H_RES (0x0F)
+#define USBHS_INT_ST_OFFSET 0x0B
+#define USBHS_DEV_UIS_IS_NAK (1 << 7)
+#define USBHS_DEV_UIS_TOG_OK (1 << 6)
+#define MASK_UIS_TOKEN (3 << 4)
+#define USBHS_TOKEN_PID_OUT (0 << 4)
+#define USBHS_TOKEN_PID_SOF (1 << 4)
+#define USBHS_TOKEN_PID_IN (2 << 4)
+#define USBHS_TOKEN_PID_SETUP (3 << 4)
+#define MASK_UIS_ENDP (0x0F)
+#define MASK_UIS_H_RES (0x0F)
#define USBHS_TOGGLE_OK (0x40)
#define USBHS_HOST_RES (0x0f)
@@ -340,10 +391,5 @@
#define USBHS_UH_T_TOG_AUTO (1 << 5)
#define USBHS_UH_T_DATA_NO (1 << 6)
-// 00: OUT, 01:SOF, 10:IN, 11:SETUP
-#define PID_OUT 0
-#define PID_SOF 1
-#define PID_IN 2
-#define PID_SETUP 3
#endif
diff --git a/src/portable/wch/dcd_ch32_usbfs.c b/src/portable/wch/dcd_ch32_usbfs.c
new file mode 100644
index 000000000..9ed370b40
--- /dev/null
+++ b/src/portable/wch/dcd_ch32_usbfs.c
@@ -0,0 +1,344 @@
+/*
+ * The MIT License (MIT)
+ *
+ * Copyright (c) 2024 Matthew Tran
+ * Copyright (c) 2024 hathach
+ *
+ * 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_TUD_ENABLED && defined(TUP_USBIP_WCH_USBFS) && CFG_TUD_WCH_USBIP_USBFS
+
+#include "device/dcd.h"
+#include "ch32_usbfs_reg.h"
+
+/* private defines */
+#define EP_MAX (8)
+
+#define EP_DMA(ep) ((&USBOTG_FS->UEP0_DMA)[ep])
+#define EP_TX_LEN(ep) ((&USBOTG_FS->UEP0_TX_LEN)[2 * ep])
+#define EP_TX_CTRL(ep) ((&USBOTG_FS->UEP0_TX_CTRL)[4 * ep])
+#define EP_RX_CTRL(ep) ((&USBOTG_FS->UEP0_RX_CTRL)[4 * ep])
+
+/* private data */
+struct usb_xfer {
+ bool valid;
+ uint8_t* buffer;
+ size_t len;
+ size_t processed_len;
+ size_t max_size;
+};
+
+static struct {
+ bool ep0_tog;
+ bool isochronous[EP_MAX];
+ struct usb_xfer xfer[EP_MAX][2];
+ TU_ATTR_ALIGNED(4) uint8_t buffer[EP_MAX][2][64];
+ TU_ATTR_ALIGNED(4) struct {
+ // OUT transfers >64 bytes will overwrite queued IN data!
+ uint8_t out[64];
+ uint8_t in[1023];
+ uint8_t pad;
+ } ep3_buffer;
+} data;
+
+/* private helpers */
+static void update_in(uint8_t rhport, uint8_t ep, bool force) {
+ struct usb_xfer* xfer = &data.xfer[ep][TUSB_DIR_IN];
+ if (xfer->valid) {
+ if (force || xfer->len) {
+ size_t len = TU_MIN(xfer->max_size, xfer->len);
+ if (ep == 0) {
+ memcpy(data.buffer[ep][TUSB_DIR_OUT], xfer->buffer, len); // ep0 uses same chunk
+ } else if (ep == 3) {
+ memcpy(data.ep3_buffer.in, xfer->buffer, len);
+ } else {
+ memcpy(data.buffer[ep][TUSB_DIR_IN], xfer->buffer, len);
+ }
+ xfer->buffer += len;
+ xfer->len -= len;
+ xfer->processed_len += len;
+
+ EP_TX_LEN(ep) = len;
+ if (ep == 0) {
+ EP_TX_CTRL(0) = USBFS_EP_T_RES_ACK | (data.ep0_tog ? USBFS_EP_T_TOG : 0);
+ data.ep0_tog = !data.ep0_tog;
+ } else if (data.isochronous[ep]) {
+ EP_TX_CTRL(ep) = (EP_TX_CTRL(ep) & ~(USBFS_EP_T_RES_MASK)) | USBFS_EP_T_RES_NYET;
+ } else {
+ EP_TX_CTRL(ep) = (EP_TX_CTRL(ep) & ~(USBFS_EP_T_RES_MASK)) | USBFS_EP_T_RES_ACK;
+ }
+ } else {
+ xfer->valid = false;
+ EP_TX_CTRL(ep) = (EP_TX_CTRL(ep) & ~(USBFS_EP_T_RES_MASK)) | USBFS_EP_T_RES_NAK;
+ dcd_event_xfer_complete(
+ rhport, ep | TUSB_DIR_IN_MASK, xfer->processed_len,
+ XFER_RESULT_SUCCESS, true);
+ }
+ }
+}
+
+static void update_out(uint8_t rhport, uint8_t ep, size_t rx_len) {
+ struct usb_xfer* xfer = &data.xfer[ep][TUSB_DIR_OUT];
+ if (xfer->valid) {
+ size_t len = TU_MIN(xfer->max_size, TU_MIN(xfer->len, rx_len));
+ if (ep == 3) {
+ memcpy(xfer->buffer, data.ep3_buffer.out, len);
+ } else {
+ memcpy(xfer->buffer, data.buffer[ep][TUSB_DIR_OUT], len);
+ }
+ xfer->buffer += len;
+ xfer->len -= len;
+ xfer->processed_len += len;
+
+ if (xfer->len == 0 || len < xfer->max_size) {
+ xfer->valid = false;
+ dcd_event_xfer_complete(rhport, ep, xfer->processed_len, XFER_RESULT_SUCCESS, true);
+ }
+
+ if (ep == 0) {
+ EP_RX_CTRL(0) = USBFS_EP_R_RES_ACK;
+ }
+ }
+}
+
+/* public functions */
+void dcd_init(uint8_t rhport) {
+ // init registers
+ USBOTG_FS->BASE_CTRL = USBFS_CTRL_SYS_CTRL | USBFS_CTRL_INT_BUSY | USBFS_CTRL_DMA_EN;
+ USBOTG_FS->UDEV_CTRL = USBFS_UDEV_CTRL_PD_DIS | USBFS_UDEV_CTRL_PORT_EN;
+ USBOTG_FS->DEV_ADDR = 0x00;
+
+ USBOTG_FS->INT_FG = 0xFF;
+ USBOTG_FS->INT_EN = USBFS_INT_EN_BUS_RST | USBFS_INT_EN_TRANSFER | USBFS_INT_EN_SUSPEND;
+
+ // setup endpoint 0
+ EP_DMA(0) = (uint32_t) &data.buffer[0][0];
+ EP_TX_LEN(0) = 0;
+ EP_TX_CTRL(0) = USBFS_EP_T_RES_NAK;
+ EP_RX_CTRL(0) = USBFS_EP_R_RES_ACK;
+
+ // enable other endpoints but NAK everything
+ USBOTG_FS->UEP4_1_MOD = 0xCC;
+ USBOTG_FS->UEP2_3_MOD = 0xCC;
+ USBOTG_FS->UEP5_6_MOD = 0xCC;
+ USBOTG_FS->UEP7_MOD = 0x0C;
+
+ for (uint8_t ep = 1; ep < EP_MAX; ep++) {
+ EP_DMA(ep) = (uint32_t) &data.buffer[ep][0];
+ EP_TX_LEN(ep) = 0;
+ EP_TX_CTRL(ep) = USBFS_EP_T_AUTO_TOG | USBFS_EP_T_RES_NAK;
+ EP_RX_CTRL(ep) = USBFS_EP_R_AUTO_TOG | USBFS_EP_R_RES_NAK;
+ }
+ EP_DMA(3) = (uint32_t) &data.ep3_buffer.out[0];
+
+ dcd_connect(rhport);
+}
+
+void dcd_int_handler(uint8_t rhport) {
+ (void) rhport;
+ uint8_t status = USBOTG_FS->INT_FG;
+ if (status & USBFS_INT_FG_TRANSFER) {
+ uint8_t ep = USBFS_INT_ST_MASK_UIS_ENDP(USBOTG_FS->INT_ST);
+ uint8_t token = USBFS_INT_ST_MASK_UIS_TOKEN(USBOTG_FS->INT_ST);
+
+ switch (token) {
+ case PID_OUT: {
+ uint16_t rx_len = USBOTG_FS->RX_LEN;
+ update_out(rhport, ep, rx_len);
+ break;
+ }
+
+ case PID_IN:
+ update_in(rhport, ep, false);
+ break;
+
+ case PID_SETUP:
+ // setup clears stall
+ EP_TX_CTRL(0) = USBFS_EP_T_RES_NAK;
+ EP_RX_CTRL(0) = USBFS_EP_R_RES_ACK;
+
+ data.ep0_tog = true;
+ dcd_event_setup_received(rhport, &data.buffer[0][TUSB_DIR_OUT][0], true);
+ break;
+ }
+
+ USBOTG_FS->INT_FG = USBFS_INT_FG_TRANSFER;
+ } else if (status & USBFS_INT_FG_BUS_RST) {
+ data.ep0_tog = true;
+ data.xfer[0][TUSB_DIR_OUT].max_size = 64;
+ data.xfer[0][TUSB_DIR_IN].max_size = 64;
+
+ dcd_event_bus_signal(rhport, DCD_EVENT_BUS_RESET, true);
+
+ USBOTG_FS->DEV_ADDR = 0x00;
+ EP_RX_CTRL(0) = USBFS_EP_R_RES_ACK;
+
+ USBOTG_FS->INT_FG = USBFS_INT_FG_BUS_RST;
+ } else if (status & USBFS_INT_FG_SUSPEND) {
+ dcd_event_t event = {.rhport = rhport, .event_id = DCD_EVENT_SUSPEND};
+ dcd_event_handler(&event, true);
+ USBOTG_FS->INT_FG = USBFS_INT_FG_SUSPEND;
+ }
+}
+
+void dcd_int_enable(uint8_t rhport) {
+ (void) rhport;
+ NVIC_EnableIRQ(USBHD_IRQn);
+}
+
+void dcd_int_disable(uint8_t rhport) {
+ (void) rhport;
+ NVIC_DisableIRQ(USBHD_IRQn);
+}
+
+void dcd_set_address(uint8_t rhport, uint8_t dev_addr) {
+ (void) dev_addr;
+ dcd_edpt_xfer(rhport, 0x80, NULL, 0); // zlp status response
+}
+
+void dcd_remote_wakeup(uint8_t rhport) {
+ (void) rhport;
+ // TODO optional
+}
+
+void dcd_connect(uint8_t rhport) {
+ (void) rhport;
+ USBOTG_FS->BASE_CTRL |= USBFS_CTRL_DEV_PUEN;
+}
+
+void dcd_disconnect(uint8_t rhport) {
+ (void) rhport;
+ USBOTG_FS->BASE_CTRL &= ~USBFS_CTRL_DEV_PUEN;
+}
+
+void dcd_sof_enable(uint8_t rhport, bool en) {
+ (void) rhport;
+ (void) en;
+
+ // TODO implement later
+}
+
+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) {
+ USBOTG_FS->DEV_ADDR = (uint8_t) request->wValue;
+ }
+ EP_TX_CTRL(0) = USBFS_EP_T_RES_NAK;
+ EP_RX_CTRL(0) = USBFS_EP_R_RES_ACK;
+}
+
+bool dcd_edpt_open(uint8_t rhport, tusb_desc_endpoint_t const* desc_ep) {
+ (void) rhport;
+ uint8_t ep = tu_edpt_number(desc_ep->bEndpointAddress);
+ uint8_t dir = tu_edpt_dir(desc_ep->bEndpointAddress);
+ TU_ASSERT(ep < EP_MAX);
+
+ data.isochronous[ep] = desc_ep->bmAttributes.xfer == TUSB_XFER_ISOCHRONOUS;
+ data.xfer[ep][dir].max_size = tu_edpt_packet_size(desc_ep);
+
+ if (ep != 0) {
+ if (dir == TUSB_DIR_OUT) {
+ if (data.isochronous[ep]) {
+ EP_RX_CTRL(ep) = USBFS_EP_R_AUTO_TOG | USBFS_EP_R_RES_NYET;
+ } else {
+ EP_RX_CTRL(ep) = USBFS_EP_R_AUTO_TOG | USBFS_EP_R_RES_ACK;
+ }
+ } else {
+ EP_TX_LEN(ep) = 0;
+ EP_TX_CTRL(ep) = USBFS_EP_T_AUTO_TOG | USBFS_EP_T_RES_NAK;
+ }
+ }
+ return true;
+}
+
+void dcd_edpt_close_all(uint8_t rhport) {
+ (void) rhport;
+ // TODO optional
+}
+
+void dcd_edpt_close(uint8_t rhport, uint8_t ep_addr) {
+ (void) rhport;
+ (void) ep_addr;
+ // TODO optional
+}
+
+bool dcd_edpt_xfer(uint8_t rhport, uint8_t ep_addr, uint8_t* buffer, uint16_t total_bytes) {
+ (void) rhport;
+ uint8_t ep = tu_edpt_number(ep_addr);
+ uint8_t dir = tu_edpt_dir(ep_addr);
+
+ struct usb_xfer* xfer = &data.xfer[ep][dir];
+ dcd_int_disable(rhport);
+ xfer->valid = true;
+ xfer->buffer = buffer;
+ xfer->len = total_bytes;
+ xfer->processed_len = 0;
+ dcd_int_enable(rhport);
+
+ if (dir == TUSB_DIR_IN) {
+ update_in(rhport, ep, true);
+ }
+ return true;
+}
+
+void dcd_edpt_stall(uint8_t rhport, uint8_t ep_addr) {
+ (void) rhport;
+ uint8_t ep = tu_edpt_number(ep_addr);
+ uint8_t dir = tu_edpt_dir(ep_addr);
+ if (ep == 0) {
+ if (dir == TUSB_DIR_OUT) {
+ EP_RX_CTRL(0) = USBFS_EP_R_RES_STALL;
+ } else {
+ EP_TX_LEN(0) = 0;
+ EP_TX_CTRL(0) = USBFS_EP_T_RES_STALL;
+ }
+ } else {
+ if (dir == TUSB_DIR_OUT) {
+ EP_RX_CTRL(ep) = (EP_RX_CTRL(ep) & ~USBFS_EP_R_RES_MASK) | USBFS_EP_R_RES_STALL;
+ } else {
+ EP_TX_CTRL(ep) = (EP_TX_CTRL(ep) & ~USBFS_EP_T_RES_MASK) | USBFS_EP_T_RES_STALL;
+ }
+ }
+}
+
+void dcd_edpt_clear_stall(uint8_t rhport, uint8_t ep_addr) {
+ (void) rhport;
+ uint8_t ep = tu_edpt_number(ep_addr);
+ uint8_t dir = tu_edpt_dir(ep_addr);
+ if (ep == 0) {
+ if (dir == TUSB_DIR_OUT) {
+ EP_RX_CTRL(0) = USBFS_EP_R_RES_ACK;
+ }
+ } else {
+ if (dir == TUSB_DIR_OUT) {
+ EP_RX_CTRL(ep) = (EP_RX_CTRL(ep) & ~(USBFS_EP_R_RES_MASK | USBFS_EP_R_TOG)) | USBFS_EP_R_RES_ACK;
+ } else {
+ EP_TX_CTRL(ep) = (EP_TX_CTRL(ep) & ~(USBFS_EP_T_RES_MASK | USBFS_EP_T_TOG)) | USBFS_EP_T_RES_NAK;
+ }
+ }
+}
+
+#endif
diff --git a/src/portable/wch/dcd_ch32_usbhs.c b/src/portable/wch/dcd_ch32_usbhs.c
index 1f1c0b876..622f9c508 100644
--- a/src/portable/wch/dcd_ch32_usbhs.c
+++ b/src/portable/wch/dcd_ch32_usbhs.c
@@ -2,6 +2,7 @@
* The MIT License (MIT)
*
* Copyright (c) 2022 Greg Davill
+ * Copyright (c) 2023 Denis Krasutski
*
* Permission is hereby granted, free of charge, to any person obtaining a copy
* of this software and associated documentation files (the "Software"), to deal
@@ -26,366 +27,394 @@
#include "tusb_option.h"
-#if CFG_TUD_ENABLED && ((CFG_TUSB_MCU == OPT_MCU_CH32V307) || (CFG_TUSB_MCU == OPT_MCU_CH32F20X))
-#include "device/dcd.h"
-
+#if CFG_TUD_ENABLED && defined(TUP_USBIP_WCH_USBHS) && CFG_TUD_WCH_USBIP_USBHS
#include "ch32_usbhs_reg.h"
+#include "device/dcd.h"
// Max number of bi-directional endpoints including EP0
-#define EP_MAX 16
+#define EP_MAX 16
typedef struct {
- uint8_t *buffer;
- // tu_fifo_t * ff; // TODO support dcd_edpt_xfer_fifo API
- uint16_t total_len;
- uint16_t queued_len;
- uint16_t max_size;
- bool short_packet;
+ uint8_t* buffer;
+ uint16_t total_len;
+ uint16_t queued_len;
+ uint16_t max_size;
+ bool is_last_packet;
+ bool is_iso;
} xfer_ctl_t;
+typedef enum {
+ EP_RESPONSE_ACK,
+ EP_RESPONSE_NAK,
+} ep_response_list_t;
+
#define XFER_CTL_BASE(_ep, _dir) &xfer_status[_ep][_dir]
static xfer_ctl_t xfer_status[EP_MAX][2];
-#define EP_TX_LEN(ep) *(volatile uint16_t *)((volatile uint16_t *)&(USBHSD->UEP0_TX_LEN) + (ep)*2)
-#define EP_TX_CTRL(ep) *(volatile uint8_t *)((volatile uint8_t *)&(USBHSD->UEP0_TX_CTRL) + (ep)*4)
-#define EP_RX_CTRL(ep) *(volatile uint8_t *)((volatile uint8_t *)&(USBHSD->UEP0_RX_CTRL) + (ep)*4)
-#define EP_RX_MAX_LEN(ep) *(volatile uint16_t *)((volatile uint16_t *)&(USBHSD->UEP0_MAX_LEN) + (ep)*2)
+#define EP_TX_LEN(ep) *(volatile uint16_t *)((volatile uint16_t *)&(USBHSD->UEP0_TX_LEN) + (ep) * 2)
+#define EP_TX_CTRL(ep) *(volatile uint8_t *)((volatile uint8_t *)&(USBHSD->UEP0_TX_CTRL) + (ep) * 4)
+#define EP_RX_CTRL(ep) *(volatile uint8_t *)((volatile uint8_t *)&(USBHSD->UEP0_RX_CTRL) + (ep) * 4)
+#define EP_RX_MAX_LEN(ep) *(volatile uint16_t *)((volatile uint16_t *)&(USBHSD->UEP0_MAX_LEN) + (ep) * 2)
#define EP_TX_DMA_ADDR(ep) *(volatile uint32_t *)((volatile uint32_t *)&(USBHSD->UEP1_TX_DMA) + (ep - 1))
#define EP_RX_DMA_ADDR(ep) *(volatile uint32_t *)((volatile uint32_t *)&(USBHSD->UEP1_RX_DMA) + (ep - 1))
/* Endpoint Buffer */
-TU_ATTR_ALIGNED(4) uint8_t EP0_DatabufHD[64]; // ep0(64)
+TU_ATTR_ALIGNED(4) static uint8_t ep0_buffer[CFG_TUD_ENDPOINT0_SIZE];
+
+static void ep_set_response_and_toggle(uint8_t ep_num, tusb_dir_t ep_dir, ep_response_list_t response_type) {
+ if (ep_dir == TUSB_DIR_IN) {
+ uint8_t response = (response_type == EP_RESPONSE_ACK) ? USBHS_EP_T_RES_ACK : USBHS_EP_T_RES_NAK;
+ if (ep_num == 0) {
+ if (response_type == EP_RESPONSE_ACK) {
+ if (EP_TX_LEN(ep_num) == 0) {
+ EP_TX_CTRL(ep_num) |= USBHS_EP_T_TOG_1;
+ } else {
+ EP_TX_CTRL(ep_num) ^= USBHS_EP_T_TOG_1;
+ }
+ }
+ }
+ if (xfer_status[ep_num][TUSB_DIR_IN].is_iso == true) {
+ EP_TX_CTRL(ep_num) = USBHS_EP_T_AUTOTOG;
+ } else {
+ EP_TX_CTRL(ep_num) = (EP_TX_CTRL(ep_num) & ~(USBHS_EP_T_RES_MASK)) | response;
+ }
+ } else {
+ uint8_t response = (response_type == EP_RESPONSE_ACK) ? USBHS_EP_R_RES_ACK : USBHS_EP_R_RES_NAK;
+ if (ep_num == 0) {
+ if (response_type == EP_RESPONSE_ACK) {
+ if (xfer_status[ep_num][TUSB_DIR_OUT].queued_len == 0) {
+ EP_RX_CTRL(ep_num) |= USBHS_EP_R_TOG_1;
+ }
+ } else {
+ EP_RX_CTRL(ep_num) ^= USBHS_EP_R_TOG_1;
+ }
+ }
+ EP_RX_CTRL(ep_num) = (EP_RX_CTRL(ep_num) & ~(USBHS_EP_R_RES_MASK)) | response;
+ }
+}
+
+static void xfer_data_packet(uint8_t ep_num, tusb_dir_t ep_dir, xfer_ctl_t* xfer) {
+ if (ep_dir == TUSB_DIR_IN) {
+ uint16_t remaining = xfer->total_len - xfer->queued_len;
+ uint16_t next_tx_size = TU_MIN(remaining, xfer->max_size);
+
+ if (ep_num == 0) {
+ memcpy(ep0_buffer, &xfer->buffer[xfer->queued_len], next_tx_size);
+ } else {
+ EP_TX_DMA_ADDR(ep_num) = (uint32_t) &xfer->buffer[xfer->queued_len];
+ }
+
+ EP_TX_LEN(ep_num) = next_tx_size;
+ xfer->queued_len += next_tx_size;
+ if (xfer->queued_len == xfer->total_len) {
+ xfer->is_last_packet = true;
+ }
+ if (xfer->is_iso == true) {
+ /* Enable EP to generate ISA_ACT interrupt */
+ USBHSD->ENDP_CONFIG |= (USBHS_EP0_T_EN << ep_num);
+ }
+ } else { /* TUSB_DIR_OUT */
+ uint16_t left_to_receive = xfer->total_len - xfer->queued_len;
+ uint16_t max_possible_rx_size = TU_MIN(xfer->max_size, left_to_receive);
-volatile uint8_t USBHS_Dev_Endp0_Tog = 0x01;
+ if (max_possible_rx_size == left_to_receive) {
+ xfer->is_last_packet = true;
+ }
+
+ if (ep_num > 0) {
+ EP_RX_DMA_ADDR(ep_num) = (uint32_t) &xfer->buffer[xfer->queued_len];
+ EP_RX_MAX_LEN(ep_num) = max_possible_rx_size;
+ }
+ }
+ ep_set_response_and_toggle(ep_num, ep_dir, USBHS_EP_R_RES_ACK);
+}
void dcd_init(uint8_t rhport) {
- (void)rhport;
+ (void) rhport;
- memset(&xfer_status, 0, sizeof(xfer_status));
+ memset(&xfer_status, 0, sizeof(xfer_status));
- USBHSD->HOST_CTRL = 0x00;
- USBHSD->HOST_CTRL = USBHS_PHY_SUSPENDM;
+ USBHSD->HOST_CTRL = 0x00;
+ USBHSD->HOST_CTRL = USBHS_PHY_SUSPENDM;
- USBHSD->CONTROL = 0;
+ USBHSD->CONTROL = 0;
#if TUD_OPT_HIGH_SPEED
- USBHSD->CONTROL = USBHS_DMA_EN | USBHS_INT_BUSY_EN | USBHS_HIGH_SPEED;
+ USBHSD->CONTROL = USBHS_DMA_EN | USBHS_INT_BUSY_EN | USBHS_HIGH_SPEED;
#else
- #error OPT_MODE_FULL_SPEED not currently supported on CH32
- USBHSD->CONTROL = USBHS_DMA_EN | USBHS_INT_BUSY_EN | USBHS_FULL_SPEED;
+ #error OPT_MODE_FULL_SPEED not currently supported on CH32
+ USBHSD->CONTROL = USBHS_DMA_EN | USBHS_INT_BUSY_EN | USBHS_FULL_SPEED;
#endif
- USBHSD->INT_EN = 0;
- USBHSD->INT_EN = USBHS_SETUP_ACT_EN | USBHS_TRANSFER_EN | USBHS_DETECT_EN | USBHS_SUSPEND_EN;
-
- /* ALL endpoint enable */
- USBHSD->ENDP_CONFIG = 0xffffffff;
-
- USBHSD->ENDP_CONFIG = USBHS_EP0_T_EN | USBHS_EP0_R_EN;
- USBHSD->ENDP_TYPE = 0x00;
- USBHSD->BUF_MODE = 0x00;
+ USBHSD->INT_EN = 0;
+ USBHSD->INT_EN = USBHS_SETUP_ACT_EN | USBHS_TRANSFER_EN | USBHS_BUS_RST_EN | USBHS_SUSPEND_EN | USBHS_ISO_ACT_EN;
- USBHSD->UEP0_MAX_LEN = 64;
+ USBHSD->ENDP_CONFIG = USBHS_EP0_T_EN | USBHS_EP0_R_EN;
+ USBHSD->ENDP_TYPE = 0x00;
+ USBHSD->BUF_MODE = 0x00;
- USBHSD->UEP0_DMA = (uint32_t)EP0_DatabufHD;
+ for (int ep = 0; ep < EP_MAX; ep++) {
+ EP_TX_LEN(ep) = 0;
+ EP_TX_CTRL(ep) = USBHS_EP_T_AUTOTOG | USBHS_EP_T_RES_NAK;
+ EP_RX_CTRL(ep) = USBHS_EP_R_AUTOTOG | USBHS_EP_R_RES_NAK;
- USBHSD->UEP0_TX_LEN = 0;
- USBHSD->UEP0_TX_CTRL = USBHS_EP_T_RES_NAK;
- USBHSD->UEP0_RX_CTRL = USBHS_EP_R_RES_ACK;
+ EP_RX_MAX_LEN(ep) = 0;
+ }
- for (int ep = 1; ep < EP_MAX; ep++) {
- EP_TX_LEN(ep) = 0;
- EP_TX_CTRL(ep) = USBHS_EP_T_AUTOTOG | USBHS_EP_T_RES_NAK;
- EP_RX_CTRL(ep) = USBHS_EP_R_AUTOTOG | USBHS_EP_R_RES_NAK;
+ USBHSD->UEP0_DMA = (uint32_t) ep0_buffer;
+ USBHSD->UEP0_MAX_LEN = CFG_TUD_ENDPOINT0_SIZE;
+ xfer_status[0][TUSB_DIR_OUT].max_size = CFG_TUD_ENDPOINT0_SIZE;
+ xfer_status[0][TUSB_DIR_IN].max_size = CFG_TUD_ENDPOINT0_SIZE;
- EP_RX_MAX_LEN(ep) = 512;
- }
-
- USBHSD->DEV_AD = 0;
- USBHSD->CONTROL |= USBHS_DEV_PU_EN;
+ USBHSD->DEV_AD = 0;
+ USBHSD->CONTROL |= USBHS_DEV_PU_EN;
}
void dcd_int_enable(uint8_t rhport) {
- (void)rhport;
-
- NVIC_EnableIRQ(USBHS_IRQn);
+ (void) rhport;
+ NVIC_EnableIRQ(USBHS_IRQn);
}
void dcd_int_disable(uint8_t rhport) {
- (void)rhport;
-
- NVIC_DisableIRQ(USBHS_IRQn);
+ (void) rhport;
+ NVIC_DisableIRQ(USBHS_IRQn);
}
void dcd_edpt_close_all(uint8_t rhport) {
- (void)rhport;
+ (void) rhport;
+
+ for (size_t ep = 1; ep < EP_MAX; ep++) {
+ EP_TX_LEN(ep) = 0;
+ EP_TX_CTRL(ep) = USBHS_EP_T_AUTOTOG | USBHS_EP_T_RES_NAK;
+ EP_RX_CTRL(ep) = USBHS_EP_R_AUTOTOG | USBHS_EP_R_RES_NAK;
+
+ EP_RX_MAX_LEN(ep) = 0;
+ }
+
+ USBHSD->ENDP_CONFIG = USBHS_EP0_T_EN | USBHS_EP0_R_EN;
}
void dcd_set_address(uint8_t rhport, uint8_t dev_addr) {
- (void)dev_addr;
+ (void) dev_addr;
- // Response with zlp status
- dcd_edpt_xfer(rhport, 0x80, NULL, 0);
+ // Response with zlp status
+ dcd_edpt_xfer(rhport, 0x80, NULL, 0);
}
-void dcd_remote_wakeup(uint8_t rhport)
-{
+void dcd_remote_wakeup(uint8_t rhport) {
(void) rhport;
}
-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) {
- USBHSD->DEV_AD = (uint8_t)request->wValue;
- }
-
- EP_TX_CTRL(0) = USBHS_EP_T_RES_NAK;
- EP_RX_CTRL(0) = USBHS_EP_R_RES_ACK;
+void dcd_sof_enable(uint8_t rhport, bool en) {
+ (void) rhport;
+ if (en) {
+ USBHSD->INT_EN |= USBHS_SOF_ACT_EN;
+ } else {
+ USBHSD->INT_EN &= ~(USBHS_SOF_ACT_EN);
+ }
}
-bool dcd_edpt_open(uint8_t rhport, tusb_desc_endpoint_t const *desc_edpt) {
- (void)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);
-
- if (epnum != 0) {
- if (tu_edpt_dir(desc_edpt->bEndpointAddress) == TUSB_DIR_OUT) {
- EP_RX_CTRL(epnum) = USBHS_EP_R_AUTOTOG | USBHS_EP_R_RES_ACK;
- } else {
- EP_TX_LEN(epnum) = 0;
- EP_TX_CTRL(epnum) = USBHS_EP_T_AUTOTOG | USBHS_EP_T_RES_NAK | USBHS_EP_T_TOG_0;
- }
- }
-
- return true;
-}
+void dcd_edpt0_status_complete(uint8_t rhport, tusb_control_request_t const* request) {
+ (void) rhport;
-int usbd_ep_close(const uint8_t ep) {
- (void)ep;
+ if (request->bmRequestType_bit.recipient == TUSB_REQ_RCPT_DEVICE &&
+ request->bmRequestType_bit.type == TUSB_REQ_TYPE_STANDARD &&
+ request->bRequest == TUSB_REQ_SET_ADDRESS) {
+ USBHSD->DEV_AD = (uint8_t) request->wValue;
+ }
- return 0;
+ EP_TX_CTRL(0) = USBHS_EP_T_RES_NAK | USBHS_EP_T_TOG_0;
+ EP_RX_CTRL(0) = USBHS_EP_R_RES_NAK | USBHS_EP_R_TOG_0;
}
-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);
+bool dcd_edpt_open(uint8_t rhport, tusb_desc_endpoint_t const* desc_edpt) {
+ (void) rhport;
- if (epnum == 0) {
- if (dir == TUSB_DIR_OUT) {
- USBHSD->UEP0_RX_CTRL = USBHS_EP_R_RES_STALL;
- } else {
- USBHSD->UEP0_TX_LEN = 0;
- USBHSD->UEP0_TX_CTRL = USBHS_EP_T_RES_STALL;
- }
- } else {
- if (dir == TUSB_DIR_OUT) {
- EP_RX_CTRL(epnum) = (EP_RX_CTRL(epnum) & ~USBHS_EP_R_RES_MASK) | USBHS_EP_R_RES_STALL;
+ uint8_t const ep_num = tu_edpt_number(desc_edpt->bEndpointAddress);
+ tusb_dir_t const dir = tu_edpt_dir(desc_edpt->bEndpointAddress);
- } else {
- EP_TX_CTRL(epnum) = (EP_TX_CTRL(epnum) & ~USBHS_EP_T_RES_MASK) | USBHS_EP_T_RES_STALL;
- }
- }
-}
+ TU_ASSERT(ep_num < EP_MAX);
-void dcd_edpt_clear_stall(uint8_t rhport, uint8_t ep_addr) {
- (void)rhport;
+ if (ep_num == 0) {
+ return true;
+ }
- 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(ep_num, dir);
+ xfer->max_size = tu_edpt_packet_size(desc_edpt);
- if (epnum == 0) {
- if (dir == TUSB_DIR_OUT) {
- USBHSD->UEP0_RX_CTRL = USBHS_EP_R_RES_ACK;
- } else {
- }
+ xfer->is_iso = (desc_edpt->bmAttributes.xfer == TUSB_XFER_ISOCHRONOUS);
+ if (dir == TUSB_DIR_OUT) {
+ USBHSD->ENDP_CONFIG |= (USBHS_EP0_R_EN << ep_num);
+ EP_RX_CTRL(ep_num) = USBHS_EP_R_AUTOTOG | USBHS_EP_R_RES_NAK;
+ if (xfer->is_iso == true) {
+ USBHSD->ENDP_TYPE |= (USBHS_EP0_R_TYP << ep_num);
+ }
+ EP_RX_MAX_LEN(ep_num) = xfer->max_size;
+ } else {
+ if (xfer->is_iso == true) {
+ USBHSD->ENDP_TYPE |= (USBHS_EP0_T_TYP << ep_num);
} else {
- if (dir == TUSB_DIR_OUT) {
- EP_RX_CTRL(epnum) = (EP_RX_CTRL(epnum) & ~(USBHS_EP_R_RES_MASK | USBHS_EP_T_TOG_MASK)) | USBHS_EP_T_RES_ACK;
-
- } else {
- EP_TX_CTRL(epnum) = (EP_TX_CTRL(epnum) & ~(USBHS_EP_T_RES_MASK | USBHS_EP_T_TOG_MASK)) | USBHS_EP_T_RES_NAK;
- }
+ /* Enable all types except Isochronous to avoid ISO_ACT interrupt generation */
+ USBHSD->ENDP_CONFIG |= (USBHS_EP0_T_EN << ep_num);
}
-}
-
-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);
+ EP_TX_LEN(ep_num) = 0;
+ EP_TX_CTRL(ep_num) = USBHS_EP_T_AUTOTOG | USBHS_EP_T_RES_NAK | USBHS_EP_T_TOG_0;
+ }
- xfer_ctl_t *xfer = XFER_CTL_BASE(epnum, dir);
- xfer->buffer = buffer;
- // xfer->ff = NULL; // TODO support dcd_edpt_xfer_fifo API
- xfer->total_len = total_bytes;
- xfer->queued_len = 0;
- xfer->short_packet = false;
-
- // uint16_t num_packets = (total_bytes / xfer->max_size);
- uint16_t short_packet_size = total_bytes % (xfer->max_size + 1);
+ return true;
+}
- // Zero-size packet is special case.
- if (short_packet_size == 0 || (total_bytes == 0)) {
- xfer->short_packet = true;
- }
+void dcd_edpt_close(uint8_t rhport, uint8_t ep_addr) {
+ (void) rhport;
- if (tu_edpt_dir(ep_addr) == TUSB_DIR_IN) {
- if (!total_bytes) {
- xfer->short_packet = true;
- if (epnum == 0) {
- USBHSD->UEP0_TX_LEN = 0;
- USBHSD->UEP0_TX_CTRL = USBHS_EP_T_RES_ACK | (USBHS_Dev_Endp0_Tog ? USBHS_EP_T_TOG_1 : USBHS_EP_T_TOG_0);
- USBHS_Dev_Endp0_Tog ^= 1;
- } else {
- EP_TX_LEN(epnum) = 0;
- EP_TX_CTRL(epnum) = (EP_TX_CTRL(epnum) & ~(USBHS_EP_T_RES_MASK)) | USBHS_EP_T_RES_ACK;
- }
- } else {
- if (epnum == 0) {
- xfer->queued_len += short_packet_size;
- memcpy(&EP0_DatabufHD[0], buffer, short_packet_size);
+ uint8_t const ep_num = tu_edpt_number(ep_addr);
+ tusb_dir_t const dir = tu_edpt_dir(ep_addr);
- USBHSD->UEP0_TX_LEN = short_packet_size;
- USBHSD->UEP0_TX_CTRL = USBHS_EP_T_RES_ACK | (USBHS_Dev_Endp0_Tog ? USBHS_EP_T_TOG_1 : USBHS_EP_T_TOG_0);
- USBHS_Dev_Endp0_Tog ^= 1;
- } else {
- xfer->queued_len += short_packet_size;
+ if (dir == TUSB_DIR_OUT) {
+ EP_RX_CTRL(ep_num) = USBHS_EP_R_AUTOTOG | USBHS_EP_R_RES_NAK;
+ EP_RX_MAX_LEN(ep_num) = 0;
+ USBHSD->ENDP_TYPE &= ~(USBHS_EP0_R_TYP << ep_num);
+ USBHSD->ENDP_CONFIG &= ~(USBHS_EP0_R_EN << ep_num);
+ } else { // TUSB_DIR_IN
+ EP_TX_CTRL(ep_num) = USBHS_EP_T_AUTOTOG | USBHS_EP_T_RES_NAK | USBHS_EP_T_TOG_0;
+ EP_TX_LEN(ep_num) = 0;
+ USBHSD->ENDP_TYPE &= ~(USBHS_EP0_T_TYP << ep_num);
+ USBHSD->ENDP_CONFIG &= ~(USBHS_EP0_T_EN << ep_num);
+ }
+}
- EP_TX_DMA_ADDR(epnum) = (uint32_t)buffer;
- USBHSD->ENDP_CONFIG |= (USBHS_EP0_T_EN << epnum);
- EP_TX_LEN(epnum) = short_packet_size;
- EP_TX_CTRL(epnum) = (EP_TX_CTRL(epnum) & ~(USBHS_EP_T_RES_MASK)) | USBHS_EP_T_RES_ACK;
- }
- }
- } else { /* TUSB_DIR_OUT */
- if (epnum == 0) {
- uint32_t read_count = USBHSD->RX_LEN;
- read_count = TU_MIN(read_count, total_bytes);
+void dcd_edpt_stall(uint8_t rhport, uint8_t ep_addr) {
+ (void) rhport;
- if ((total_bytes == 8)) {
- read_count = 8;
- memcpy(buffer, &EP0_DatabufHD[0], 8);
- } else {
- memcpy(buffer, &EP0_DatabufHD[0], read_count);
- }
- } else {
- EP_RX_DMA_ADDR(epnum) = (uint32_t)xfer->buffer;
- USBHSD->ENDP_CONFIG |= (USBHS_EP0_R_EN << epnum);
- }
+ uint8_t const ep_num = tu_edpt_number(ep_addr);
+ tusb_dir_t const dir = tu_edpt_dir(ep_addr);
- // usbd_ep_read(ep_addr, buffer, total_bytes, &ret_bytes);
- }
- return true;
+ if (dir == TUSB_DIR_OUT) {
+ EP_RX_CTRL(ep_num) = USBHS_EP_R_RES_STALL;
+ } else {
+ EP_TX_LEN(0) = 0;
+ EP_TX_CTRL(ep_num) = USBHS_EP_T_RES_STALL;
+ }
}
+void dcd_edpt_clear_stall(uint8_t rhport, uint8_t ep_addr) {
+ (void) rhport;
-static void receive_packet(xfer_ctl_t *xfer, uint16_t xfer_size) {
- // xfer->queued_len = xfer->total_len - remaining;
+ uint8_t const ep_num = tu_edpt_number(ep_addr);
+ tusb_dir_t const dir = tu_edpt_dir(ep_addr);
- uint16_t remaining = xfer->total_len - xfer->queued_len;
- uint16_t to_recv_size;
+ if (dir == TUSB_DIR_OUT) {
+ EP_RX_CTRL(ep_num) = USBHS_EP_R_AUTOTOG | USBHS_EP_R_RES_NAK;
+ } else {
+ EP_TX_CTRL(ep_num) = USBHS_EP_T_AUTOTOG | USBHS_EP_R_RES_NAK;
+ }
+}
- if (remaining <= xfer->max_size) {
- // Avoid buffer overflow.
- to_recv_size = (xfer_size > remaining) ? remaining : xfer_size;
- } else {
- // Room for full packet, choose recv_size based on what the microcontroller
- // claims.
- to_recv_size = (xfer_size > xfer->max_size) ? xfer->max_size : xfer_size;
- }
+bool dcd_edpt_xfer(uint8_t rhport, uint8_t ep_addr, uint8_t* buffer, uint16_t total_bytes) {
+ (void) rhport;
+ uint8_t const ep_num = tu_edpt_number(ep_addr);
+ tusb_dir_t const dir = tu_edpt_dir(ep_addr);
- if (to_recv_size) {
- }
+ xfer_ctl_t* xfer = XFER_CTL_BASE(ep_num, dir);
+ xfer->buffer = buffer;
+ xfer->total_len = total_bytes;
+ xfer->queued_len = 0;
+ xfer->is_last_packet = false;
- xfer->queued_len += xfer_size;
+ xfer_data_packet(ep_num, dir, xfer);
- // Per USB spec, a short OUT packet (including length 0) is always
- // indicative of the end of a transfer (at least for ctl, bulk, int).
- xfer->short_packet = (xfer_size < xfer->max_size);
+ return true;
}
void dcd_int_handler(uint8_t rhport) {
- (void)rhport;
-
- uint32_t end_num, rx_token;
- uint8_t intflag = 0;
-
- intflag = USBHSD->INT_FG;
-
- if (intflag & USBHS_TRANSFER_FLAG) {
-
- end_num = (USBHSD->INT_ST) & MASK_UIS_ENDP;
- rx_token = (((USBHSD->INT_ST) & MASK_UIS_TOKEN) >> 4) & 0x03;
-
- uint8_t endp = end_num | (rx_token == PID_IN ? TUSB_DIR_IN_MASK : 0);
-
- xfer_ctl_t *xfer = XFER_CTL_BASE(end_num, tu_edpt_dir(endp));
-
- if (rx_token == PID_OUT) {
- uint16_t rx_len = USBHSD->RX_LEN;
-
- receive_packet(xfer, rx_len);
+ (void) rhport;
- if (xfer->short_packet || (xfer->queued_len == xfer->total_len)) {
- xfer->short_packet = false;
+ uint8_t int_flag = USBHSD->INT_FG;
+ uint8_t int_status = USBHSD->INT_ST;
- dcd_event_xfer_complete(0, endp, xfer->queued_len, XFER_RESULT_SUCCESS, true);
- }
+ if (int_flag & (USBHS_ISO_ACT_FLAG | USBHS_TRANSFER_FLAG)) {
+ uint8_t const token = int_status & MASK_UIS_TOKEN;
- if (end_num == 0) {
- USBHSD->UEP0_RX_CTRL = USBHS_EP_R_RES_ACK | USBHS_EP_R_TOG_0;
- }
+ if (token == USBHS_TOKEN_PID_SOF) {
+ uint32_t frame_count = USBHSD->FRAME_NO & USBHS_FRAME_NO_NUM_MASK;
+ dcd_event_sof(rhport, frame_count, true);
+ }else {
+ uint8_t const ep_num = int_status & MASK_UIS_ENDP;
+ tusb_dir_t const ep_dir = (token == USBHS_TOKEN_PID_IN) ? TUSB_DIR_IN : TUSB_DIR_OUT;
+ uint8_t const ep_addr = tu_edpt_addr(ep_num, ep_dir);
+ xfer_ctl_t* xfer = XFER_CTL_BASE(ep_num, ep_dir);
- } else if (rx_token == PID_IN) {
- if (xfer->short_packet || (xfer->queued_len == xfer->total_len)) {
- xfer->short_packet = false;
- xfer->total_len = 0;
- dcd_event_xfer_complete(0, endp, xfer->queued_len, XFER_RESULT_SUCCESS, true);
+ if (token == USBHS_TOKEN_PID_OUT) {
+ uint16_t rx_len = USBHSD->RX_LEN;
- EP_TX_CTRL(end_num) = (EP_TX_CTRL(end_num) & ~(USBHS_EP_T_RES_MASK)) | USBHS_EP_T_RES_NAK;
+ if (ep_num == 0) {
+ memcpy(&xfer->buffer[xfer->queued_len], ep0_buffer, rx_len);
+ }
- if (end_num == 0) {
- }
- } else {
- dcd_edpt_xfer(0, endp, xfer->buffer + xfer->queued_len, xfer->total_len - xfer->queued_len);
- }
+ xfer->queued_len += rx_len;
+ if (rx_len < xfer->max_size) {
+ xfer->is_last_packet = true;
+ }
+ } else if (token == USBHS_TOKEN_PID_IN) {
+ if (xfer->is_iso && xfer->is_last_packet) {
+ /* Disable EP to avoid ISO_ACT interrupt generation */
+ USBHSD->ENDP_CONFIG &= ~(USBHS_EP0_T_EN << ep_num);
+ } else {
+ // Do nothing, no need to update xfer->is_last_packet, it is already updated in xfer_data_packet
}
+ }
- USBHSD->INT_FG = USBHS_TRANSFER_FLAG; /* Clear flag */
- } else if (intflag & USBHS_SETUP_FLAG) {
- USBHS_Dev_Endp0_Tog = 1;
- dcd_event_setup_received(0, EP0_DatabufHD, true);
+ if (xfer->is_last_packet == true) {
+ ep_set_response_and_toggle(ep_num, ep_dir, EP_RESPONSE_NAK);
+ dcd_event_xfer_complete(0, ep_addr, xfer->queued_len, XFER_RESULT_SUCCESS, true);
+ } else {
+ /* prepare next part of packet to xref */
+ xfer_data_packet(ep_num, ep_dir, xfer);
+ }
+ }
- USBHSD->INT_FG = USBHS_SETUP_FLAG; /* Clear flag */
- } else if (intflag & USBHS_DETECT_FLAG) {
- USBHS_Dev_Endp0_Tog = 1;
+ USBHSD->INT_FG = (int_flag & (USBHS_ISO_ACT_FLAG | USBHS_TRANSFER_FLAG)); /* Clear flag */
+ } else if (int_flag & USBHS_SETUP_FLAG) {
+ ep_set_response_and_toggle(0, TUSB_DIR_IN, EP_RESPONSE_NAK);
+ ep_set_response_and_toggle(0, TUSB_DIR_OUT, EP_RESPONSE_NAK);
+ dcd_event_setup_received(0, ep0_buffer, true);
- xfer_status[0][TUSB_DIR_OUT].max_size = 64;
- xfer_status[0][TUSB_DIR_IN].max_size = 64;
+ USBHSD->INT_FG = USBHS_SETUP_FLAG; /* Clear flag */
+ } else if (int_flag & USBHS_BUS_RST_FLAG) {
+ // TODO CH32 does not detect actual speed at this time (should be known at end of reset)
+ // This interrupt probably triggered at start of bus reset
+// tusb_speed_t actual_speed;
+// switch(USBHSD->SPEED_TYPE & USBHS_SPEED_TYPE_MASK){
+// case USBHS_SPEED_TYPE_HIGH:
+// actual_speed = TUSB_SPEED_HIGH;
+// break;
+// case USBHS_SPEED_TYPE_FULL:
+// actual_speed = TUSB_SPEED_FULL;
+// break;
+// case USBHS_SPEED_TYPE_LOW:
+// actual_speed = TUSB_SPEED_LOW;
+// break;
+// default:
+// TU_ASSERT(0,);
+// break;
+// }
+// dcd_event_bus_reset(0, actual_speed, true);
- dcd_event_bus_reset(0, TUSB_SPEED_HIGH, true);
+ dcd_event_bus_reset(0, TUSB_SPEED_HIGH, true);
- USBHSD->DEV_AD = 0;
- USBHSD->UEP0_RX_CTRL = USBHS_EP_R_RES_ACK | USBHS_EP_R_TOG_0;
+ USBHSD->DEV_AD = 0;
+ EP_RX_CTRL(0) = USBHS_EP_R_RES_ACK | USBHS_EP_R_TOG_0;
+ EP_TX_CTRL(0) = USBHS_EP_T_RES_NAK | USBHS_EP_T_TOG_0;
- USBHSD->INT_FG = USBHS_DETECT_FLAG; /* Clear flag */
- } else if (intflag & USBHS_SUSPEND_FLAG) {
- dcd_event_t event = { .rhport = rhport, .event_id = DCD_EVENT_SUSPEND };
- dcd_event_handler(&event, true);
+ USBHSD->INT_FG = USBHS_BUS_RST_FLAG; /* Clear flag */
+ } else if (int_flag & USBHS_SUSPEND_FLAG) {
+ dcd_event_t event = {.rhport = rhport, .event_id = DCD_EVENT_SUSPEND};
+ dcd_event_handler(&event, true);
- USBHSD->INT_FG = USBHS_SUSPEND_FLAG; /* Clear flag */
- }
+ USBHSD->INT_FG = USBHS_SUSPEND_FLAG; /* Clear flag */
+ }
}
#endif