mirror of
https://github.com/gdsports/USBHost_t36
synced 2024-11-14 05:05:09 -05:00
361 lines
8.6 KiB
C++
361 lines
8.6 KiB
C++
/* USB EHCI Host for Teensy 3.6
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* Copyright 2017 Paul Stoffregen (paul@pjrc.com)
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*
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* Permission is hereby granted, free of charge, to any person obtaining a
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* copy of this software and associated documentation files (the
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* "Software"), to deal in the Software without restriction, including
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* without limitation the rights to use, copy, modify, merge, publish,
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* distribute, sublicense, and/or sell copies of the Software, and to
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* permit persons to whom the Software is furnished to do so, subject to
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* the following conditions:
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*
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* The above copyright notice and this permission notice shall be included
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* in 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
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* OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
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* MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.
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* IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY
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* CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT,
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* TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE
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* SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE.
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*/
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#include <Arduino.h>
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#include "USBHost_t36.h" // Read this header first for key info
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// quick hack - ultimately USBHost print & println need to be renamed
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#define print USBHost::print
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#define println USBHost::println
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void USBSerial::init()
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{
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contribute_Pipes(mypipes, sizeof(mypipes)/sizeof(Pipe_t));
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contribute_Transfers(mytransfers, sizeof(mytransfers)/sizeof(Transfer_t));
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driver_ready_for_device(this);
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}
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bool USBSerial::claim(Device_t *dev, int type, const uint8_t *descriptors, uint32_t len)
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{
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// only claim at interface level
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println("USBSerial claim this=", (uint32_t)this, HEX);
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print("vid=", dev->idVendor, HEX);
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println(", pid=", dev->idProduct, HEX);
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if (type == 0) {
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if (dev->idVendor == 0x0403 && dev->idProduct == 0x6001) {
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// FTDI FT232
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println("len = ", len);
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if (len < 23) return false;
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if (descriptors[0] != 9) return false; // length 9
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if (descriptors[9] != 7) return false; // length 7
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if (descriptors[10] != 5) return false; // ep desc
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uint32_t rxep = descriptors[11];
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if (descriptors[12] != 2) return false; // bulk type
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if (descriptors[13] != 64) return false; // size 64
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if (descriptors[14] != 0) return false;
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if (descriptors[16] != 7) return false; // length 7
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if (descriptors[17] != 5) return false; // ep desc
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uint32_t txep = descriptors[18];
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if (descriptors[19] != 2) return false; // bulk type
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if (descriptors[20] != 64) return false; // size 64
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if (descriptors[21] != 0) return false;
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if (!check_rxtx_ep(rxep, txep)) return false;
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print("FTDI, rxep=", rxep & 15);
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println(", txep=", txep);
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if (!init_buffers(64, 64)) return false;
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rxpipe = new_Pipe(dev, 2, rxep & 15, 1, 64);
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if (!rxpipe) return false;
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txpipe = new_Pipe(dev, 2, txep, 0, 64);
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if (!txpipe) {
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// TODO: free rxpipe
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return false;
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}
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sertype = FTDI;
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rxpipe->callback_function = rx_callback;
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queue_Data_Transfer(rxpipe, rx1, 64, this);
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rxstate = 1;
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if (rxsize > 128) {
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queue_Data_Transfer(rxpipe, rx2, 64, this);
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rxstate = 3;
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}
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txpipe->callback_function = tx_callback;
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baudrate = 115200;
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pending_control = 0x0F;
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mk_setup(setup, 0x40, 0, 0, 0, 0); // reset port
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queue_Control_Transfer(dev, &setup, NULL, this);
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return true;
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}
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}
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return false;
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}
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// check if two legal endpoints, 1 receive & 1 transmit
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bool USBSerial::check_rxtx_ep(uint32_t &rxep, uint32_t &txep)
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{
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if ((rxep & 0x0F) == 0) return false;
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if ((txep & 0x0F) == 0) return false;
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uint32_t rxdir = rxep & 0xF0;
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uint32_t txdir = txep & 0xF0;
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if (rxdir == 0x80 && txdir == 0x00) {
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return true;
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}
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if (rxdir == 0x00 && txdir == 0x80) {
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std::swap(rxep, txep);
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return true;
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}
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return false;
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}
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// initialize buffer sizes and pointers
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bool USBSerial::init_buffers(uint32_t rsize, uint32_t tsize)
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{
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// buffer must be able to hold 2 of each packet, plus have room to
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if (sizeof(bigbuffer) < (rsize + tsize) * 3 + 2) return false;
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rx1 = (uint8_t *)bigbuffer;
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rx2 = rx1 + rsize;
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tx1 = rx2 + rsize;
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tx2 = tx1 + tsize;
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rxbuf = tx2 + tsize;
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// FIXME: this assume 50-50 split - not true when rsize != tsize
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rxsize = (sizeof(bigbuffer) - (rsize + tsize) * 2) / 2;
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txsize = rxsize;
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txbuf = rxbuf + rxsize;
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rxhead = 0;
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rxtail = 0;
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txhead = 0;
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txtail = 0;
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rxstate = 0;
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return true;
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}
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void USBSerial::disconnect()
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{
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}
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void USBSerial::control(const Transfer_t *transfer)
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{
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println("control callback (serial)");
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// set data format
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if (pending_control & 1) {
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pending_control &= ~1;
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mk_setup(setup, 0x40, 4, 8, 0, 0); // data format 8N1
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queue_Control_Transfer(device, &setup, NULL, this);
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return;
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}
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// set baud rate
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if (pending_control & 2) {
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pending_control &= ~2;
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uint32_t baudval = 3000000 / baudrate;
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mk_setup(setup, 0x40, 3, baudval, 0, 0);
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queue_Control_Transfer(device, &setup, NULL, this);
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return;
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}
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// configure flow control
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if (pending_control & 4) {
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pending_control &= ~4;
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mk_setup(setup, 0x40, 2, 0, 0, 0);
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queue_Control_Transfer(device, &setup, NULL, this);
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return;
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}
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// set DTR
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if (pending_control & 8) {
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pending_control &= ~8;
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mk_setup(setup, 0x40, 1, 0x0101, 0, 0);
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queue_Control_Transfer(device, &setup, NULL, this);
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return;
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}
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}
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void USBSerial::rx_callback(const Transfer_t *transfer)
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{
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if (!transfer->driver) return;
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((USBSerial *)(transfer->driver))->rx_data(transfer);
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}
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void USBSerial::tx_callback(const Transfer_t *transfer)
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{
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if (!transfer->driver) return;
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((USBSerial *)(transfer->driver))->tx_data(transfer);
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}
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void USBSerial::rx_data(const Transfer_t *transfer)
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{
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uint32_t len = transfer->length - ((transfer->qtd.token >> 16) & 0x7FFF);
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// first update rxstate bitmask, since buffer is no longer queued
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if (transfer->buffer == rx1) {
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rxstate &= 0xFE;
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} else if (transfer->buffer == rx2) {
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rxstate &= 0xFD;
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}
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// get start of data and actual length
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const uint8_t *p = (const uint8_t *)transfer->buffer;
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if (sertype == FTDI) {
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if (len >= 2) {
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p += 2;
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len -= 2;
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} else {
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len = 0;
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}
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}
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if (len > 0) {
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print("rx: ");
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print_hexbytes(p, len);
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}
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// Copy data from packet buffer to circular buffer.
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// Assume the buffer will always have space, since we
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// check before queuing the buffers
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uint32_t head = rxhead;
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uint32_t tail = rxtail;
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uint32_t avail;
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if (len > 0) {
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avail = rxsize - head;
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if (avail > len) avail = len;
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memcpy(rxbuf + head, p, avail);
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if (len <= avail) {
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head += avail;
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if (head >= rxsize) head = 0;
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} else {
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head = len - avail;
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memcpy(rxbuf, p + avail, head);
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}
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rxhead = head;
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}
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// re-queue packet buffer(s) if possible
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if (head >= tail) {
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avail = rxsize - 1 - head + tail;
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} else {
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avail = tail - head - 1;
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}
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uint32_t packetsize = rx2 - rx1;
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if (avail >= packetsize) {
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if ((rxstate & 0x01) == 0) {
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queue_Data_Transfer(rxpipe, rx1, packetsize, this);
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rxstate |= 0x01;
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} else if ((rxstate & 0x02) == 0) {
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queue_Data_Transfer(rxpipe, rx2, packetsize, this);
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rxstate |= 0x02;
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}
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if ((rxstate & 0x03) != 0x03 && avail >= packetsize * 2) {
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if ((rxstate & 0x01) == 0) {
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queue_Data_Transfer(rxpipe, rx1, packetsize, this);
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rxstate |= 0x01;
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} else if ((rxstate & 0x02) == 0) {
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queue_Data_Transfer(rxpipe, rx2, packetsize, this);
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rxstate |= 0x02;
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}
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}
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}
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}
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void USBSerial::tx_data(const Transfer_t *transfer)
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{
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println("tx: ");
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}
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void USBSerial::begin(uint32_t baud, uint32_t format)
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{
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}
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void USBSerial::end(void)
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{
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}
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int USBSerial::available(void)
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{
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if (!device) return 0;
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uint32_t head = rxhead;
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uint32_t tail = rxtail;
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if (head >= tail) return head - tail;
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return 0;
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}
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int USBSerial::peek(void)
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{
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if (!device) return -1;
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uint32_t head = rxhead;
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uint32_t tail = rxtail;
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if (head == tail) return -1;
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if (++tail >= rxsize) tail = 0;
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return rxbuf[tail];
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}
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int USBSerial::read(void)
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{
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if (!device) return -1;
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uint32_t head = rxhead;
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uint32_t tail = rxtail;
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if (head == tail) return -1;
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if (++tail >= rxsize) tail = 0;
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int c = rxbuf[tail];
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rxtail = tail;
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// TODO: if rx packet not queued, and buffer now can fit a full packet, queue it
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return c;
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}
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int USBSerial::availableForWrite()
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{
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if (!device) return 0;
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uint32_t head = txhead;
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uint32_t tail = txtail;
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if (head >= tail) return txsize - 1 - head + tail;
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return tail - head - 1;
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}
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size_t USBSerial::write(uint8_t c)
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{
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if (!device) return 0;
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uint32_t head = txhead;
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if (++head >= txsize) head = 0;
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while (txtail == head) {
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// wait...
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}
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txbuf[head] = c;
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txhead = head;
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// TODO: if full packet in buffer and tx packet ready, queue it
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// TODO: otherwise set a latency timer to transmit partial packet
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return 1;
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}
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