383 lines
14 KiB
C
383 lines
14 KiB
C
/*
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* The MIT License (MIT)
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*
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* Copyright (c) 2020 Raspberry Pi (Trading) Ltd.
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* Copyright (c) 2021 Ha Thach (tinyusb.org) for Double Buffered
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*
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* Permission is hereby granted, free of charge, to any person obtaining a copy
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* of this software and associated documentation files (the "Software"), to deal
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* in the Software without restriction, including without limitation the rights
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* to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
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* copies of the Software, and to permit persons to whom the Software is
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* furnished to do so, subject to the following conditions:
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*
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* The above copyright notice and this permission notice shall be included in
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* all copies or substantial portions of the Software.
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*
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* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
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* IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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* FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
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* AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
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* LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
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* OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
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* THE SOFTWARE.
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*
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* This file is part of the TinyUSB stack.
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*/
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#include "tusb_option.h"
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#if CFG_TUSB_MCU == OPT_MCU_RP2040
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#include <stdlib.h>
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#include "rp2040_usb.h"
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//--------------------------------------------------------------------+
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// MACRO CONSTANT TYPEDEF PROTOTYPE
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//--------------------------------------------------------------------+
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static void _hw_endpoint_xfer_sync(struct hw_endpoint* ep);
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#if TUD_OPT_RP2040_USB_DEVICE_UFRAME_FIX
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static bool e15_is_bulkin_ep(struct hw_endpoint* ep);
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static bool e15_is_critical_frame_period(struct hw_endpoint* ep);
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#else
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#define e15_is_bulkin_ep(x) (false)
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#define e15_is_critical_frame_period(x) (false)
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#endif
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// if usb hardware is in host mode
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TU_ATTR_ALWAYS_INLINE static inline bool is_host_mode(void) {
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return (usb_hw->main_ctrl & USB_MAIN_CTRL_HOST_NDEVICE_BITS) ? true : false;
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}
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//--------------------------------------------------------------------+
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// Implementation
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//--------------------------------------------------------------------+
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// Provide own byte by byte memcpy as not all copies are aligned
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static void unaligned_memcpy(void *dst, const void *src, size_t n) {
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uint8_t *dst_byte = (uint8_t*)dst;
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const uint8_t *src_byte = (const uint8_t*)src;
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while (n--) {
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*dst_byte++ = *src_byte++;
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}
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}
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void rp2040_usb_init(void) {
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// Reset usb controller
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reset_block(RESETS_RESET_USBCTRL_BITS);
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unreset_block_wait(RESETS_RESET_USBCTRL_BITS);
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#ifdef __GNUC__
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// Clear any previous state just in case
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#pragma GCC diagnostic push
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#pragma GCC diagnostic ignored "-Warray-bounds"
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#if __GNUC__ > 6
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#pragma GCC diagnostic ignored "-Wstringop-overflow"
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#endif
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#endif
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memset(usb_dpram, 0, sizeof(*usb_dpram));
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#ifdef __GNUC__
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#pragma GCC diagnostic pop
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#endif
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// Mux the controller to the onboard usb phy
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usb_hw->muxing = USB_USB_MUXING_TO_PHY_BITS | USB_USB_MUXING_SOFTCON_BITS;
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TU_LOG2_INT(sizeof(hw_endpoint_t));
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}
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void __tusb_irq_path_func(hw_endpoint_reset_transfer)(struct hw_endpoint* ep) {
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ep->active = false;
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ep->remaining_len = 0;
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ep->xferred_len = 0;
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ep->user_buf = 0;
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}
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void __tusb_irq_path_func(_hw_endpoint_buffer_control_update32)(struct hw_endpoint* ep, uint32_t and_mask,
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uint32_t or_mask) {
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uint32_t value = 0;
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if (and_mask) {
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value = *ep->buffer_control & and_mask;
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}
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if (or_mask) {
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value |= or_mask;
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if (or_mask & USB_BUF_CTRL_AVAIL) {
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if (*ep->buffer_control & USB_BUF_CTRL_AVAIL) {
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panic("ep %02X was already available", ep->ep_addr);
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}
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*ep->buffer_control = value & ~USB_BUF_CTRL_AVAIL;
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// 4.1.2.5.1 Con-current access: 12 cycles (should be good for 48*12Mhz = 576Mhz) after write to buffer control
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// Don't need delay in host mode as host is in charge
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if (!is_host_mode()) {
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busy_wait_at_least_cycles(12);
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}
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}
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}
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*ep->buffer_control = value;
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}
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// prepare buffer, return buffer control
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static uint32_t __tusb_irq_path_func(prepare_ep_buffer)(struct hw_endpoint* ep, uint8_t buf_id) {
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uint16_t const buflen = tu_min16(ep->remaining_len, ep->wMaxPacketSize);
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ep->remaining_len = (uint16_t) (ep->remaining_len - buflen);
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uint32_t buf_ctrl = buflen | USB_BUF_CTRL_AVAIL;
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// PID
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buf_ctrl |= ep->next_pid ? USB_BUF_CTRL_DATA1_PID : USB_BUF_CTRL_DATA0_PID;
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ep->next_pid ^= 1u;
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if (!ep->rx) {
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// Copy data from user buffer to hw buffer
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unaligned_memcpy(ep->hw_data_buf + buf_id * 64, ep->user_buf, buflen);
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ep->user_buf += buflen;
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// Mark as full
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buf_ctrl |= USB_BUF_CTRL_FULL;
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}
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// Is this the last buffer? Only really matters for host mode. Will trigger
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// the trans complete irq but also stop it polling. We only really care about
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// trans complete for setup packets being sent
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if (ep->remaining_len == 0) {
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buf_ctrl |= USB_BUF_CTRL_LAST;
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}
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if (buf_id) buf_ctrl = buf_ctrl << 16;
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return buf_ctrl;
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}
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// Prepare buffer control register value
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void __tusb_irq_path_func(hw_endpoint_start_next_buffer)(struct hw_endpoint* ep) {
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uint32_t ep_ctrl = *ep->endpoint_control;
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// always compute and start with buffer 0
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uint32_t buf_ctrl = prepare_ep_buffer(ep, 0) | USB_BUF_CTRL_SEL;
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// For now: skip double buffered for OUT endpoint in Device mode, since
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// host could send < 64 bytes and cause short packet on buffer0
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// NOTE: this could happen to Host mode IN endpoint
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// Also, Host mode "interrupt" endpoint hardware is only single buffered,
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// NOTE2: Currently Host bulk is implemented using "interrupt" endpoint
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bool const is_host = is_host_mode();
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bool const force_single = (!is_host && !tu_edpt_dir(ep->ep_addr)) ||
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(is_host && tu_edpt_number(ep->ep_addr) != 0);
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if (ep->remaining_len && !force_single) {
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// Use buffer 1 (double buffered) if there is still data
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// TODO: Isochronous for buffer1 bit-field is different than CBI (control bulk, interrupt)
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buf_ctrl |= prepare_ep_buffer(ep, 1);
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// Set endpoint control double buffered bit if needed
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ep_ctrl &= ~EP_CTRL_INTERRUPT_PER_BUFFER;
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ep_ctrl |= EP_CTRL_DOUBLE_BUFFERED_BITS | EP_CTRL_INTERRUPT_PER_DOUBLE_BUFFER;
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} else {
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// Single buffered since 1 is enough
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ep_ctrl &= ~(EP_CTRL_DOUBLE_BUFFERED_BITS | EP_CTRL_INTERRUPT_PER_DOUBLE_BUFFER);
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ep_ctrl |= EP_CTRL_INTERRUPT_PER_BUFFER;
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}
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*ep->endpoint_control = ep_ctrl;
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TU_LOG(3, " Prepare BufCtrl: [0] = 0x%04x [1] = 0x%04x\r\n", tu_u32_low16(buf_ctrl), tu_u32_high16(buf_ctrl));
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// Finally, write to buffer_control which will trigger the transfer
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// the next time the controller polls this dpram address
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_hw_endpoint_buffer_control_set_value32(ep, buf_ctrl);
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}
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void hw_endpoint_xfer_start(struct hw_endpoint* ep, uint8_t* buffer, uint16_t total_len) {
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hw_endpoint_lock_update(ep, 1);
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if (ep->active) {
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// TODO: Is this acceptable for interrupt packets?
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TU_LOG(1, "WARN: starting new transfer on already active ep %02X\r\n", ep->ep_addr);
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hw_endpoint_reset_transfer(ep);
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}
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// Fill in info now that we're kicking off the hw
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ep->remaining_len = total_len;
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ep->xferred_len = 0;
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ep->active = true;
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ep->user_buf = buffer;
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if (e15_is_bulkin_ep(ep)) {
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usb_hw_set->inte = USB_INTS_DEV_SOF_BITS;
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}
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if (e15_is_critical_frame_period(ep)) {
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ep->pending = 1;
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} else {
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hw_endpoint_start_next_buffer(ep);
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}
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hw_endpoint_lock_update(ep, -1);
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}
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// sync endpoint buffer and return transferred bytes
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static uint16_t __tusb_irq_path_func(sync_ep_buffer)(struct hw_endpoint* ep, uint8_t buf_id) {
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uint32_t buf_ctrl = _hw_endpoint_buffer_control_get_value32(ep);
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if (buf_id) buf_ctrl = buf_ctrl >> 16;
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uint16_t xferred_bytes = buf_ctrl & USB_BUF_CTRL_LEN_MASK;
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if (!ep->rx) {
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// We are continuing a transfer here. If we are TX, we have successfully
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// sent some data can increase the length we have sent
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assert(!(buf_ctrl & USB_BUF_CTRL_FULL));
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ep->xferred_len = (uint16_t) (ep->xferred_len + xferred_bytes);
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} else {
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// If we have received some data, so can increase the length
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// we have received AFTER we have copied it to the user buffer at the appropriate offset
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assert(buf_ctrl & USB_BUF_CTRL_FULL);
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unaligned_memcpy(ep->user_buf, ep->hw_data_buf + buf_id * 64, xferred_bytes);
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ep->xferred_len = (uint16_t) (ep->xferred_len + xferred_bytes);
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ep->user_buf += xferred_bytes;
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}
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// Short packet
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if (xferred_bytes < ep->wMaxPacketSize) {
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pico_trace(" Short packet on buffer %d with %u bytes\r\n", buf_id, xferred_bytes);
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// Reduce total length as this is last packet
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ep->remaining_len = 0;
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}
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return xferred_bytes;
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}
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static void __tusb_irq_path_func(_hw_endpoint_xfer_sync)(struct hw_endpoint* ep) {
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// Update hw endpoint struct with info from hardware
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// after a buff status interrupt
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uint32_t __unused buf_ctrl = _hw_endpoint_buffer_control_get_value32(ep);
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TU_LOG(3, " Sync BufCtrl: [0] = 0x%04x [1] = 0x%04x\r\n", tu_u32_low16(buf_ctrl), tu_u32_high16(buf_ctrl));
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// always sync buffer 0
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uint16_t buf0_bytes = sync_ep_buffer(ep, 0);
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// sync buffer 1 if double buffered
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if ((*ep->endpoint_control) & EP_CTRL_DOUBLE_BUFFERED_BITS) {
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if (buf0_bytes == ep->wMaxPacketSize) {
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// sync buffer 1 if not short packet
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sync_ep_buffer(ep, 1);
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} else {
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// short packet on buffer 0
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// TODO couldn't figure out how to handle this case which happen with net_lwip_webserver example
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// At this time (currently trigger per 2 buffer), the buffer1 is probably filled with data from
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// the next transfer (not current one). For now we disable double buffered for device OUT
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// NOTE this could happen to Host IN
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#if 0
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uint8_t const ep_num = tu_edpt_number(ep->ep_addr);
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uint8_t const dir = (uint8_t) tu_edpt_dir(ep->ep_addr);
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uint8_t const ep_id = 2*ep_num + (dir ? 0 : 1);
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// abort queued transfer on buffer 1
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usb_hw->abort |= TU_BIT(ep_id);
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while ( !(usb_hw->abort_done & TU_BIT(ep_id)) ) {}
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uint32_t ep_ctrl = *ep->endpoint_control;
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ep_ctrl &= ~(EP_CTRL_DOUBLE_BUFFERED_BITS | EP_CTRL_INTERRUPT_PER_DOUBLE_BUFFER);
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ep_ctrl |= EP_CTRL_INTERRUPT_PER_BUFFER;
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_hw_endpoint_buffer_control_set_value32(ep, 0);
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usb_hw->abort &= ~TU_BIT(ep_id);
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TU_LOG(3, "----SHORT PACKET buffer0 on EP %02X:\r\n", ep->ep_addr);
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TU_LOG(3, " BufCtrl: [0] = 0x%04x [1] = 0x%04x\r\n", tu_u32_low16(buf_ctrl), tu_u32_high16(buf_ctrl));
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#endif
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}
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}
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}
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// Returns true if transfer is complete
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bool __tusb_irq_path_func(hw_endpoint_xfer_continue)(struct hw_endpoint* ep) {
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hw_endpoint_lock_update(ep, 1);
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// Part way through a transfer
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if (!ep->active) {
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panic("Can't continue xfer on inactive ep %02X", ep->ep_addr);
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}
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// Update EP struct from hardware state
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_hw_endpoint_xfer_sync(ep);
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// Now we have synced our state with the hardware. Is there more data to transfer?
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// If we are done then notify tinyusb
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if (ep->remaining_len == 0) {
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pico_trace("Completed transfer of %d bytes on ep %02X\r\n", ep->xferred_len, ep->ep_addr);
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// Notify caller we are done so it can notify the tinyusb stack
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hw_endpoint_lock_update(ep, -1);
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return true;
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} else {
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if (e15_is_critical_frame_period(ep)) {
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ep->pending = 1;
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} else {
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hw_endpoint_start_next_buffer(ep);
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}
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}
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hw_endpoint_lock_update(ep, -1);
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// More work to do
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return false;
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}
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//--------------------------------------------------------------------+
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// Errata 15
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//--------------------------------------------------------------------+
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#if TUD_OPT_RP2040_USB_DEVICE_UFRAME_FIX
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/* Don't mark IN buffers as available during the last 200us of a full-speed
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frame. This avoids a situation seen with the USB2.0 hub on a Raspberry
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Pi 4 where a late IN token before the next full-speed SOF can cause port
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babble and a corrupt ACK packet. The nature of the data corruption has a
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chance to cause device lockup.
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Use the next SOF to mark delayed buffers as available. This reduces
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available Bulk IN bandwidth by approximately 20%, and requires that the
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SOF interrupt is enabled while these transfers are ongoing.
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Inherit the top-level enable from the corresponding Pico-SDK flag.
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Applications that will not use the device in a situation where it could
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be plugged into a Pi 4 or Pi 400 (for example, when directly connected
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to a commodity hub or other host) can turn off the flag in the SDK.
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*/
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volatile uint32_t e15_last_sof = 0;
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// check if Errata 15 is needed for this endpoint i.e device bulk-in
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static bool __tusb_irq_path_func(e15_is_bulkin_ep)(struct hw_endpoint* ep) {
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return (!is_host_mode() && tu_edpt_dir(ep->ep_addr) == TUSB_DIR_IN &&
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ep->transfer_type == TUSB_XFER_BULK);
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}
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// check if we need to apply Errata 15 workaround : i.e
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// Endpoint is BULK IN and is currently in critical frame period i.e 20% of last usb frame
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static bool __tusb_irq_path_func(e15_is_critical_frame_period)(struct hw_endpoint* ep) {
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TU_VERIFY(e15_is_bulkin_ep(ep));
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/* Avoid the last 200us (uframe 6.5-7) of a frame, up to the EOF2 point.
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* The device state machine cannot recover from receiving an incorrect PID
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* when it is expecting an ACK.
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*/
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uint32_t delta = time_us_32() - e15_last_sof;
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if (delta < 800 || delta > 998) {
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return false;
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}
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TU_LOG(3, "Avoiding sof %lu now %lu last %lu\r\n", (usb_hw->sof_rd + 1) & USB_SOF_RD_BITS, time_us_32(),
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e15_last_sof);
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return true;
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}
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#endif // TUD_OPT_RP2040_USB_DEVICE_UFRAME_FIX
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#endif
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