mirror of https://github.com/commaai/panda.git
118 lines
3.9 KiB
C
118 lines
3.9 KiB
C
/*
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CAN transactions to and from the host come in the form of
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a certain number of CANPacket_t. The transaction is split
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into multiple transfers or chunks.
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* comms_can_read outputs this buffer in chunks of a specified length.
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chunks are always the given length, except the last one.
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* comms_can_write reads in this buffer in chunks.
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* both functions maintain an overflow buffer for a partial CANPacket_t that
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spans multiple transfers/chunks.
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* the overflow buffers are reset by a dedicated control transfer handler,
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which is sent by the host on each start of a connection.
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*/
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typedef struct {
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uint32_t ptr;
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uint32_t tail_size;
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uint8_t data[72];
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} asm_buffer;
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asm_buffer can_read_buffer = {.ptr = 0U, .tail_size = 0U};
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int comms_can_read(uint8_t *data, uint32_t max_len) {
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uint32_t pos = 0U;
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// Send tail of previous message if it is in buffer
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if (can_read_buffer.ptr > 0U) {
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uint32_t overflow_len = MIN(max_len - pos, can_read_buffer.ptr);
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(void)memcpy(&data[pos], can_read_buffer.data, overflow_len);
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pos += overflow_len;
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(void)memcpy(can_read_buffer.data, &can_read_buffer.data[overflow_len], can_read_buffer.ptr - overflow_len);
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can_read_buffer.ptr -= overflow_len;
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}
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if (can_read_buffer.ptr == 0U) {
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// Fill rest of buffer with new data
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CANPacket_t can_packet;
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while ((pos < max_len) && can_pop(&can_rx_q, &can_packet)) {
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uint32_t pckt_len = CANPACKET_HEAD_SIZE + dlc_to_len[can_packet.data_len_code];
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if ((pos + pckt_len) <= max_len) {
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(void)memcpy(&data[pos], &can_packet, pckt_len);
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pos += pckt_len;
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} else {
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(void)memcpy(&data[pos], &can_packet, max_len - pos);
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can_read_buffer.ptr += pckt_len - (max_len - pos);
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// cppcheck-suppress objectIndex
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(void)memcpy(can_read_buffer.data, &((uint8_t*)&can_packet)[(max_len - pos)], can_read_buffer.ptr);
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pos = max_len;
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}
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}
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}
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return pos;
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}
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asm_buffer can_write_buffer = {.ptr = 0U, .tail_size = 0U};
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// send on CAN
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void comms_can_write(uint8_t *data, uint32_t len) {
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uint32_t pos = 0U;
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// Assembling can message with data from buffer
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if (can_write_buffer.ptr != 0U) {
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if (can_write_buffer.tail_size <= (len - pos)) {
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// we have enough data to complete the buffer
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CANPacket_t to_push;
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(void)memcpy(&can_write_buffer.data[can_write_buffer.ptr], &data[pos], can_write_buffer.tail_size);
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can_write_buffer.ptr += can_write_buffer.tail_size;
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pos += can_write_buffer.tail_size;
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// send out
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(void)memcpy(&to_push, can_write_buffer.data, can_write_buffer.ptr);
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can_send(&to_push, to_push.bus, false);
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// reset overflow buffer
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can_write_buffer.ptr = 0U;
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can_write_buffer.tail_size = 0U;
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} else {
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// maybe next time
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uint32_t data_size = len - pos;
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(void) memcpy(&can_write_buffer.data[can_write_buffer.ptr], &data[pos], data_size);
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can_write_buffer.tail_size -= data_size;
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can_write_buffer.ptr += data_size;
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pos += data_size;
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}
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}
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// rest of the message
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while (pos < len) {
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uint32_t pckt_len = CANPACKET_HEAD_SIZE + dlc_to_len[(data[pos] >> 4U)];
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if ((pos + pckt_len) <= len) {
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CANPacket_t to_push;
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(void)memcpy(&to_push, &data[pos], pckt_len);
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can_send(&to_push, to_push.bus, false);
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pos += pckt_len;
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} else {
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(void)memcpy(can_write_buffer.data, &data[pos], len - pos);
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can_write_buffer.ptr = len - pos;
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can_write_buffer.tail_size = pckt_len - can_write_buffer.ptr;
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pos += can_write_buffer.ptr;
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}
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}
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}
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void comms_can_reset(void) {
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can_write_buffer.ptr = 0U;
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can_write_buffer.tail_size = 0U;
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can_read_buffer.ptr = 0U;
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can_read_buffer.tail_size = 0U;
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}
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// TODO: make this more general!
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void usb_cb_ep3_out_complete(void) {
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if (can_tx_check_min_slots_free(MAX_CAN_MSGS_PER_BULK_TRANSFER)) {
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usb_outep3_resume_if_paused();
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}
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}
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