mirror of
https://github.com/hathach/tinyusb.git
synced 2025-01-24 05:42:57 +08:00
4b4f880785
other clean up
471 lines
14 KiB
C
471 lines
14 KiB
C
/*
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* The MIT License (MIT)
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*
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* Copyright (c) 2019 Ha Thach (tinyusb.org)
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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 (TUSB_OPT_DEVICE_ENABLED && CFG_TUD_CDC)
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#include "cdc_device.h"
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#include "device/usbd_pvt.h"
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//--------------------------------------------------------------------+
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// MACRO CONSTANT TYPEDEF
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//--------------------------------------------------------------------+
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enum
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{
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BULK_PACKET_SIZE = (TUD_OPT_HIGH_SPEED ? 512 : 64)
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};
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typedef struct
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{
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uint8_t itf_num;
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uint8_t ep_notif;
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uint8_t ep_in;
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uint8_t ep_out;
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// Bit 0: DTR (Data Terminal Ready), Bit 1: RTS (Request to Send)
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uint8_t line_state;
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/*------------- From this point, data is not cleared by bus reset -------------*/
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char wanted_char;
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cdc_line_coding_t line_coding;
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// FIFO
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tu_fifo_t rx_ff;
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tu_fifo_t tx_ff;
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uint8_t rx_ff_buf[CFG_TUD_CDC_RX_BUFSIZE];
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uint8_t tx_ff_buf[CFG_TUD_CDC_TX_BUFSIZE];
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#if CFG_FIFO_MUTEX
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osal_mutex_def_t rx_ff_mutex;
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osal_mutex_def_t tx_ff_mutex;
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#endif
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// Endpoint Transfer buffer
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CFG_TUSB_MEM_ALIGN uint8_t epout_buf[CFG_TUD_CDC_EP_BUFSIZE];
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CFG_TUSB_MEM_ALIGN uint8_t epin_buf[CFG_TUD_CDC_EP_BUFSIZE];
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}cdcd_interface_t;
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#define ITF_MEM_RESET_SIZE offsetof(cdcd_interface_t, wanted_char)
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//--------------------------------------------------------------------+
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// INTERNAL OBJECT & FUNCTION DECLARATION
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//--------------------------------------------------------------------+
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CFG_TUSB_MEM_SECTION static cdcd_interface_t _cdcd_itf[CFG_TUD_CDC];
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static void _prep_out_transaction (cdcd_interface_t* p_cdc)
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{
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uint8_t const rhport = TUD_OPT_RHPORT;
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uint16_t available = tu_fifo_remaining(&p_cdc->rx_ff);
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// Prepare for incoming data but only allow what we can store in the ring buffer.
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// TODO Actually we can still carry out the transfer, keeping count of received bytes
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// and slowly move it to the FIFO when read().
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// This pre-check reduces endpoint claiming
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TU_VERIFY(available >= sizeof(p_cdc->epout_buf), );
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// claim endpoint
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TU_VERIFY(usbd_edpt_claim(rhport, p_cdc->ep_out), );
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// fifo can be changed before endpoint is claimed
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available = tu_fifo_remaining(&p_cdc->rx_ff);
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if ( available >= sizeof(p_cdc->epout_buf) ) {
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usbd_edpt_xfer(rhport, p_cdc->ep_out, p_cdc->epout_buf, sizeof(p_cdc->epout_buf));
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}else
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{
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// Release endpoint since we don't make any transfer
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usbd_edpt_release(rhport, p_cdc->ep_out);
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}
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}
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//--------------------------------------------------------------------+
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// APPLICATION API
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//--------------------------------------------------------------------+
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bool tud_cdc_n_connected(uint8_t itf)
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{
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// DTR (bit 0) active is considered as connected
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return tud_ready() && tu_bit_test(_cdcd_itf[itf].line_state, 0);
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}
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uint8_t tud_cdc_n_get_line_state (uint8_t itf)
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{
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return _cdcd_itf[itf].line_state;
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}
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void tud_cdc_n_get_line_coding (uint8_t itf, cdc_line_coding_t* coding)
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{
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(*coding) = _cdcd_itf[itf].line_coding;
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}
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void tud_cdc_n_set_wanted_char (uint8_t itf, char wanted)
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{
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_cdcd_itf[itf].wanted_char = wanted;
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}
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//--------------------------------------------------------------------+
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// READ API
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//--------------------------------------------------------------------+
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uint32_t tud_cdc_n_available(uint8_t itf)
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{
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return tu_fifo_count(&_cdcd_itf[itf].rx_ff);
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}
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uint32_t tud_cdc_n_read(uint8_t itf, void* buffer, uint32_t bufsize)
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{
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cdcd_interface_t* p_cdc = &_cdcd_itf[itf];
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uint32_t num_read = tu_fifo_read_n(&p_cdc->rx_ff, buffer, bufsize);
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_prep_out_transaction(p_cdc);
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return num_read;
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}
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bool tud_cdc_n_peek(uint8_t itf, int pos, uint8_t* chr)
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{
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return tu_fifo_peek_at(&_cdcd_itf[itf].rx_ff, pos, chr);
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}
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void tud_cdc_n_read_flush (uint8_t itf)
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{
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cdcd_interface_t* p_cdc = &_cdcd_itf[itf];
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tu_fifo_clear(&p_cdc->rx_ff);
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_prep_out_transaction(p_cdc);
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}
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//--------------------------------------------------------------------+
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// WRITE API
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//--------------------------------------------------------------------+
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uint32_t tud_cdc_n_write(uint8_t itf, void const* buffer, uint32_t bufsize)
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{
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cdcd_interface_t* p_cdc = &_cdcd_itf[itf];
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uint16_t ret = tu_fifo_write_n(&p_cdc->tx_ff, buffer, bufsize);
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// flush if queue more than packet size
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if ( tu_fifo_count(&p_cdc->tx_ff) >= BULK_PACKET_SIZE )
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{
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tud_cdc_n_write_flush(itf);
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}
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return ret;
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}
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uint32_t tud_cdc_n_write_flush (uint8_t itf)
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{
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cdcd_interface_t* p_cdc = &_cdcd_itf[itf];
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// Skip if usb is not ready yet
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TU_VERIFY( tud_ready(), 0 );
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// No data to send
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if ( !tu_fifo_count(&p_cdc->tx_ff) ) return 0;
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uint8_t const rhport = TUD_OPT_RHPORT;
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// Claim the endpoint
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TU_VERIFY( usbd_edpt_claim(rhport, p_cdc->ep_in), 0 );
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// Pull data from FIFO
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uint16_t const count = tu_fifo_read_n(&p_cdc->tx_ff, p_cdc->epin_buf, sizeof(p_cdc->epin_buf));
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if ( count )
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{
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TU_ASSERT( usbd_edpt_xfer(rhport, p_cdc->ep_in, p_cdc->epin_buf, count), 0 );
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return count;
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}else
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{
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// Release endpoint since we don't make any transfer
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// Note: data is dropped if terminal is not connected
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usbd_edpt_release(rhport, p_cdc->ep_in);
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return 0;
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}
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}
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uint32_t tud_cdc_n_write_available (uint8_t itf)
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{
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return tu_fifo_remaining(&_cdcd_itf[itf].tx_ff);
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}
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bool tud_cdc_n_write_clear (uint8_t itf)
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{
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return tu_fifo_clear(&_cdcd_itf[itf].tx_ff);
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}
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//--------------------------------------------------------------------+
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// USBD Driver API
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//--------------------------------------------------------------------+
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void cdcd_init(void)
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{
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tu_memclr(_cdcd_itf, sizeof(_cdcd_itf));
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for(uint8_t i=0; i<CFG_TUD_CDC; i++)
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{
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cdcd_interface_t* p_cdc = &_cdcd_itf[i];
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p_cdc->wanted_char = -1;
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// default line coding is : stop bit = 1, parity = none, data bits = 8
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p_cdc->line_coding.bit_rate = 115200;
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p_cdc->line_coding.stop_bits = 0;
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p_cdc->line_coding.parity = 0;
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p_cdc->line_coding.data_bits = 8;
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// Config RX fifo
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tu_fifo_config(&p_cdc->rx_ff, p_cdc->rx_ff_buf, TU_ARRAY_SIZE(p_cdc->rx_ff_buf), 1, false);
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// Config TX fifo as overwritable at initialization and will be changed to non-overwritable
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// if terminal supports DTR bit. Without DTR we do not know if data is actually polled by terminal.
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// In this way, the most current data is prioritized.
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tu_fifo_config(&p_cdc->tx_ff, p_cdc->tx_ff_buf, TU_ARRAY_SIZE(p_cdc->tx_ff_buf), 1, true);
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#if CFG_FIFO_MUTEX
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tu_fifo_config_mutex(&p_cdc->rx_ff, osal_mutex_create(&p_cdc->rx_ff_mutex));
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tu_fifo_config_mutex(&p_cdc->tx_ff, osal_mutex_create(&p_cdc->tx_ff_mutex));
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#endif
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}
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}
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void cdcd_reset(uint8_t rhport)
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{
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(void) rhport;
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for(uint8_t i=0; i<CFG_TUD_CDC; i++)
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{
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cdcd_interface_t* p_cdc = &_cdcd_itf[i];
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tu_memclr(p_cdc, ITF_MEM_RESET_SIZE);
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tu_fifo_clear(&p_cdc->rx_ff);
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tu_fifo_clear(&p_cdc->tx_ff);
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tu_fifo_set_overwritable(&p_cdc->tx_ff, true);
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}
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}
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uint16_t cdcd_open(uint8_t rhport, tusb_desc_interface_t const * itf_desc, uint16_t max_len)
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{
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// Only support ACM subclass
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TU_VERIFY( TUSB_CLASS_CDC == itf_desc->bInterfaceClass &&
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CDC_COMM_SUBCLASS_ABSTRACT_CONTROL_MODEL == itf_desc->bInterfaceSubClass, 0);
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// Note: 0xFF can be used with RNDIS
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TU_VERIFY(tu_within(CDC_COMM_PROTOCOL_NONE, itf_desc->bInterfaceProtocol, CDC_COMM_PROTOCOL_ATCOMMAND_CDMA), 0);
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// Find available interface
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cdcd_interface_t * p_cdc = NULL;
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for(uint8_t cdc_id=0; cdc_id<CFG_TUD_CDC; cdc_id++)
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{
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if ( _cdcd_itf[cdc_id].ep_in == 0 )
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{
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p_cdc = &_cdcd_itf[cdc_id];
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break;
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}
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}
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TU_ASSERT(p_cdc, 0);
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//------------- Control Interface -------------//
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p_cdc->itf_num = itf_desc->bInterfaceNumber;
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uint16_t drv_len = sizeof(tusb_desc_interface_t);
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uint8_t const * p_desc = tu_desc_next( itf_desc );
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// Communication Functional Descriptors
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while ( TUSB_DESC_CS_INTERFACE == tu_desc_type(p_desc) && drv_len <= max_len )
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{
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drv_len += tu_desc_len(p_desc);
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p_desc = tu_desc_next(p_desc);
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}
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if ( TUSB_DESC_ENDPOINT == tu_desc_type(p_desc) )
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{
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// notification endpoint if any
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TU_ASSERT( usbd_edpt_open(rhport, (tusb_desc_endpoint_t const *) p_desc), 0 );
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p_cdc->ep_notif = ((tusb_desc_endpoint_t const *) p_desc)->bEndpointAddress;
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drv_len += tu_desc_len(p_desc);
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p_desc = tu_desc_next(p_desc);
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}
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//------------- Data Interface (if any) -------------//
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if ( (TUSB_DESC_INTERFACE == tu_desc_type(p_desc)) &&
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(TUSB_CLASS_CDC_DATA == ((tusb_desc_interface_t const *) p_desc)->bInterfaceClass) )
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{
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// next to endpoint descriptor
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drv_len += tu_desc_len(p_desc);
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p_desc = tu_desc_next(p_desc);
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// Open endpoint pair
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TU_ASSERT( usbd_open_edpt_pair(rhport, p_desc, 2, TUSB_XFER_BULK, &p_cdc->ep_out, &p_cdc->ep_in), 0 );
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drv_len += 2*sizeof(tusb_desc_endpoint_t);
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}
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// Prepare for incoming data
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_prep_out_transaction(p_cdc);
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return drv_len;
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}
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// Invoked when a control transfer occurred on an interface of this class
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// Driver response accordingly to the request and the transfer stage (setup/data/ack)
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// return false to stall control endpoint (e.g unsupported request)
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bool cdcd_control_xfer_cb(uint8_t rhport, uint8_t stage, tusb_control_request_t const * request)
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{
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// Handle class request only
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TU_VERIFY(request->bmRequestType_bit.type == TUSB_REQ_TYPE_CLASS);
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uint8_t itf = 0;
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cdcd_interface_t* p_cdc = _cdcd_itf;
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// Identify which interface to use
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for ( ; ; itf++, p_cdc++)
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{
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if (itf >= TU_ARRAY_SIZE(_cdcd_itf)) return false;
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if ( p_cdc->itf_num == request->wIndex ) break;
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}
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switch ( request->bRequest )
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{
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case CDC_REQUEST_SET_LINE_CODING:
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if (stage == CONTROL_STAGE_SETUP)
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{
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TU_LOG2(" Set Line Coding\r\n");
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tud_control_xfer(rhport, request, &p_cdc->line_coding, sizeof(cdc_line_coding_t));
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}
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else if ( stage == CONTROL_STAGE_ACK)
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{
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if ( tud_cdc_line_coding_cb ) tud_cdc_line_coding_cb(itf, &p_cdc->line_coding);
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}
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break;
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case CDC_REQUEST_GET_LINE_CODING:
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if (stage == CONTROL_STAGE_SETUP)
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{
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TU_LOG2(" Get Line Coding\r\n");
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tud_control_xfer(rhport, request, &p_cdc->line_coding, sizeof(cdc_line_coding_t));
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}
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break;
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case CDC_REQUEST_SET_CONTROL_LINE_STATE:
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if (stage == CONTROL_STAGE_SETUP)
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{
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tud_control_status(rhport, request);
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}
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else if (stage == CONTROL_STAGE_ACK)
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{
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// CDC PSTN v1.2 section 6.3.12
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// Bit 0: Indicates if DTE is present or not.
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// This signal corresponds to V.24 signal 108/2 and RS-232 signal DTR (Data Terminal Ready)
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// Bit 1: Carrier control for half-duplex modems.
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// This signal corresponds to V.24 signal 105 and RS-232 signal RTS (Request to Send)
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bool const dtr = tu_bit_test(request->wValue, 0);
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bool const rts = tu_bit_test(request->wValue, 1);
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p_cdc->line_state = (uint8_t) request->wValue;
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// Disable fifo overwriting if DTR bit is set
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tu_fifo_set_overwritable(&p_cdc->tx_ff, !dtr);
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TU_LOG2(" Set Control Line State: DTR = %d, RTS = %d\r\n", dtr, rts);
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// Invoke callback
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if ( tud_cdc_line_state_cb ) tud_cdc_line_state_cb(itf, dtr, rts);
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}
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break;
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default: return false; // stall unsupported request
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}
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return true;
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}
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bool cdcd_xfer_cb(uint8_t rhport, uint8_t ep_addr, xfer_result_t result, uint32_t xferred_bytes)
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{
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(void) result;
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uint8_t itf;
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cdcd_interface_t* p_cdc;
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// Identify which interface to use
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for (itf = 0; itf < CFG_TUD_CDC; itf++)
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{
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p_cdc = &_cdcd_itf[itf];
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if ( ( ep_addr == p_cdc->ep_out ) || ( ep_addr == p_cdc->ep_in ) ) break;
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}
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TU_ASSERT(itf < CFG_TUD_CDC);
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// Received new data
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if ( ep_addr == p_cdc->ep_out )
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{
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// TODO search for wanted char first for better performance
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for(uint32_t i=0; i<xferred_bytes; i++)
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{
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tu_fifo_write(&p_cdc->rx_ff, &p_cdc->epout_buf[i]);
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// Check for wanted char and invoke callback if needed
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if ( tud_cdc_rx_wanted_cb && ( ((signed char) p_cdc->wanted_char) != -1 ) && ( p_cdc->wanted_char == p_cdc->epout_buf[i] ) )
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{
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tud_cdc_rx_wanted_cb(itf, p_cdc->wanted_char);
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}
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}
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// invoke receive callback (if there is still data)
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if (tud_cdc_rx_cb && tu_fifo_count(&p_cdc->rx_ff) ) tud_cdc_rx_cb(itf);
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// prepare for OUT transaction
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_prep_out_transaction(p_cdc);
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}
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// Data sent to host, we continue to fetch from tx fifo to send.
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// Note: This will cause incorrect baudrate set in line coding.
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// Though maybe the baudrate is not really important !!!
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if ( ep_addr == p_cdc->ep_in )
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{
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// invoke transmit callback to possibly refill tx fifo
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if ( tud_cdc_tx_complete_cb ) tud_cdc_tx_complete_cb(itf);
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if ( 0 == tud_cdc_n_write_flush(itf) )
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{
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// If there is no data left, a ZLP should be sent if
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// xferred_bytes is multiple of EP Packet size and not zero
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if ( !tu_fifo_count(&p_cdc->tx_ff) && xferred_bytes && (0 == (xferred_bytes & (BULK_PACKET_SIZE-1))) )
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|
{
|
|
if ( usbd_edpt_claim(rhport, p_cdc->ep_in) )
|
|
{
|
|
usbd_edpt_xfer(rhport, p_cdc->ep_in, NULL, 0);
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
// nothing to do with notif endpoint for now
|
|
|
|
return true;
|
|
}
|
|
|
|
#endif
|