void host_mouse_hid_task(void) #endif { uint8_t i; #ifdef FREERTOS_USED portTickType xLastWakeTime; xLastWakeTime = xTaskGetTickCount(); while (true) { vTaskDelayUntil(&xLastWakeTime, configTSK_USB_HHID_MOUSE_PERIOD); #endif // FREERTOS_USED // First, check the host controller is in full operating mode with the // B-device attached and enumerated if (Is_host_ready()) { // New device connection (executed only once after device connection) if (mouse_hid_new_device_connected) { mouse_hid_new_device_connected = false; // For all supported interfaces for (i = 0; i < Get_nb_supported_interface(); i++) { if(Get_class(i)==HID_CLASS && Get_protocol(i)==MOUSE_PROTOCOL) { host_hid_set_idle(HID_IDLE_DURATION_INDEFINITE, HID_REPORT_ID_ALL, i); host_hid_get_report(HID_REPORT_DESCRIPTOR, 0, i); pipe_mouse_in = Get_ep_pipe(i, 0); Host_enable_continuous_in_mode(pipe_mouse_in); Host_unfreeze_pipe(pipe_mouse_in); mouse_hid_connected=true; break; } } } if( Is_host_mouse_hid_configured() ) { if((Is_host_in_received(pipe_mouse_in)) && (Is_host_stall(pipe_mouse_in)==false) ) { Host_reset_pipe_fifo_access(pipe_mouse_in); usb_report[0]= usb_report[1]= usb_report[2]= usb_report[3]=0; host_read_p_rxpacket(pipe_mouse_in, (void*)usb_report, 4, NULL); Host_ack_in_received(pipe_mouse_in); Host_free_in(pipe_mouse_in); new_x = usb_report[1]; new_y = usb_report[2]; mouse_x += new_x; mouse_y += new_y; if( mouse_x<MOUSE_X_MIN ) mouse_x=MOUSE_X_MIN; else if( mouse_x>MOUSE_X_MAX ) mouse_x=MOUSE_X_MAX; if( mouse_y<MOUSE_Y_MIN ) mouse_y=MOUSE_Y_MIN; else if( mouse_y>MOUSE_Y_MAX ) mouse_y=MOUSE_Y_MAX; mouse_b0=usb_report[0] & 1; mouse_b1=usb_report[0] & 2; mouse_b2=usb_report[0] & 4; disp_led_mouse(); disp_ascii_mouse(); } if(Is_host_nak_received(pipe_mouse_in)) { Host_ack_nak_received(pipe_mouse_in); LED_Off(LED_HOST_MOUSE_B0 ); LED_Off(LED_HOST_MOUSE_B1 ); LED_Off(LED_HOST_MOUSE_B2 ); LED_Off(LED_HOST_MOUSE_B3 ); } } } #ifdef FREERTOS_USED } #endif }
//! This function is the generic control pipe management function. //! This function is used to send and receive control requests over control pipe. //! //! @todo Fix all time-out errors and disconnections in active wait loop. //! //! @param data_pointer void *: Pointer to data to transfer //! //! @return Status_t: Status //! //! @note This function uses the usb_request global structure. Hence, this //! structure should be filled before calling this function. //! Status_t host_transfer_control(void *data_pointer) { int status = CONTROL_GOOD; bool sav_int_sof_enable; bool sav_glob_int_en; uint16_t data_length; uint8_t c; Usb_ack_event(EVT_HOST_SOF); sav_int_sof_enable = Is_host_sof_interrupt_enabled(); Host_enable_sof_interrupt(); // SOF software detection is in interrupt subroutine while (!Is_usb_event(EVT_HOST_SOF)) // Wait 1 SOF { #if defined(Host_wait_action) Host_wait_action(); #endif if (Is_host_emergency_exit()) { Host_freeze_pipe(P_CONTROL); Host_reset_pipe(P_CONTROL); status = CONTROL_TIMEOUT; goto host_transfer_control_end; } } Host_configure_pipe_token(P_CONTROL, TOKEN_SETUP); Host_ack_setup_ready(); Host_unfreeze_pipe(P_CONTROL); // Build and send the setup request fields Host_reset_pipe_fifo_access(P_CONTROL); Host_write_pipe_data(P_CONTROL, 8, usb_request.bmRequestType); Host_write_pipe_data(P_CONTROL, 8, usb_request.bRequest); Host_write_pipe_data(P_CONTROL, 16, usb_format_mcu_to_usb_data(16, usb_request.wValue)); Host_write_pipe_data(P_CONTROL, 16, usb_format_mcu_to_usb_data(16, usb_request.wIndex)); Host_write_pipe_data(P_CONTROL, 16, usb_format_mcu_to_usb_data(16, usb_request.wLength)); Host_send_setup(); while (!Is_host_setup_ready()) // Wait for SETUP ack { #if defined(Host_wait_action) Host_wait_action(); #endif if (Is_host_emergency_exit()) { Host_freeze_pipe(P_CONTROL); Host_reset_pipe(P_CONTROL); status = CONTROL_TIMEOUT; goto host_transfer_control_end; } if (Is_host_pipe_error(P_CONTROL)) // Any error? { c = Host_error_status(P_CONTROL); Host_ack_all_errors(P_CONTROL); status = c; // Send error status goto host_transfer_control_end; } } // Setup token sent; now send IN or OUT token // Before just wait 1 SOF Usb_ack_event(EVT_HOST_SOF); Host_freeze_pipe(P_CONTROL); data_length = usb_request.wLength; while (!Is_usb_event(EVT_HOST_SOF)) // Wait 1 SOF { #if defined(Host_wait_action) Host_wait_action(); #endif if (Is_host_emergency_exit()) { Host_freeze_pipe(P_CONTROL); Host_reset_pipe(P_CONTROL); status = CONTROL_TIMEOUT; goto host_transfer_control_end; } } // IN request management --------------------------------------------- if (usb_request.bmRequestType & 0x80) // Data stage IN (bmRequestType.D7 == 1) { Host_disable_continuous_in_mode(P_CONTROL); Host_configure_pipe_token(P_CONTROL, TOKEN_IN); Host_ack_control_in_received_free(); while (data_length) { Host_unfreeze_pipe(P_CONTROL); private_sof_counter = 0; // Reset the counter in SOF detection subroutine while (!Is_host_control_in_received()) { #if defined(Host_wait_action) Host_wait_action(); #endif if (Is_host_emergency_exit()) { Host_freeze_pipe(P_CONTROL); Host_reset_pipe(P_CONTROL); status = CONTROL_TIMEOUT; goto host_transfer_control_end; } if (Is_host_pipe_error(P_CONTROL)) // Any error? { c = Host_error_status(P_CONTROL); Host_ack_all_errors(P_CONTROL); status = c; // Send error status goto host_transfer_control_end; } if (Is_host_stall(P_CONTROL)) { Host_ack_stall(P_CONTROL); status = CONTROL_STALL; goto host_transfer_control_end; } #if TIMEOUT_DELAY_ENABLE == ENABLE if (1000 < host_get_timeout()) // Count 1s { Host_freeze_pipe(P_CONTROL); Host_reset_pipe(P_CONTROL); status = CONTROL_TIMEOUT; goto host_transfer_control_end; } #endif } Host_reset_pipe_fifo_access(P_CONTROL); c = Host_get_pipe_size(P_CONTROL) - Host_byte_count(P_CONTROL); data_length = host_read_p_rxpacket(P_CONTROL, data_pointer, data_length, &data_pointer); if (usb_request.incomplete_read || c) data_length = 0; Host_freeze_pipe(P_CONTROL); Host_ack_control_in_received_free(); // In low-speed mode, the USB IP may have not yet sent the ACK at this // point. The USB IP does not support a new start of transaction request // from the firmware if the ACK has not been sent. The only means of // making sure the ACK has been sent is to wait for the next Keep-Alive // before starting a new transaction. if (Is_usb_low_speed_mode()) { Usb_ack_event(EVT_HOST_SOF); if ((sav_glob_int_en = cpu_irq_is_enabled())) cpu_irq_disable(); Host_ack_sof(); (void)Is_host_sof_interrupt_enabled(); if (sav_glob_int_en) cpu_irq_enable(); while (!Is_usb_event(EVT_HOST_SOF)) // Wait for next Keep-Alive { if (Is_host_emergency_exit()) { Host_freeze_pipe(P_CONTROL); Host_reset_pipe(P_CONTROL); status = CONTROL_TIMEOUT; goto host_transfer_control_end; } } } } // End of IN data stage Host_configure_pipe_token(P_CONTROL, TOKEN_OUT); Host_ack_control_out_ready_send(); Host_unfreeze_pipe(P_CONTROL); #if TIMEOUT_DELAY_ENABLE == ENABLE private_sof_counter = 0; // Reset the counter in SOF detection subroutine #endif while (!Is_host_control_out_ready()) { #if defined(Host_wait_action) Host_wait_action(); #endif if (Is_host_emergency_exit()) { Host_freeze_pipe(P_CONTROL); Host_reset_pipe(P_CONTROL); status = CONTROL_TIMEOUT; goto host_transfer_control_end; } if (Is_host_pipe_error(P_CONTROL)) // Any error? { c = Host_error_status(P_CONTROL); Host_ack_all_errors(P_CONTROL); status = c; // Send error status goto host_transfer_control_end; } if (Is_host_stall(P_CONTROL)) { Host_ack_stall(P_CONTROL); status = CONTROL_STALL; goto host_transfer_control_end; } #if TIMEOUT_DELAY_ENABLE == ENABLE if (2000 < host_get_timeout()) // Count 2s { Host_freeze_pipe(P_CONTROL); Host_reset_pipe(P_CONTROL); status = CONTROL_TIMEOUT; goto host_transfer_control_end; } #endif } Host_ack_control_out_ready(); } // OUT request management -------------------------------------------- else // Data stage OUT (bmRequestType.D7 == 0) { Host_configure_pipe_token(P_CONTROL, TOKEN_OUT); Host_ack_control_out_ready(); while (data_length) { Host_unfreeze_pipe(P_CONTROL); Host_reset_pipe_fifo_access(P_CONTROL); data_length = host_write_p_txpacket(P_CONTROL, data_pointer, data_length, (const void **)&data_pointer); Host_send_control_out(); while (!Is_host_control_out_ready()) { #if defined(Host_wait_action) Host_wait_action(); #endif if (Is_host_emergency_exit()) { Host_freeze_pipe(P_CONTROL); Host_reset_pipe(P_CONTROL); status = CONTROL_TIMEOUT; goto host_transfer_control_end; } if (Is_host_pipe_error(P_CONTROL)) // Any error? { c = Host_error_status(P_CONTROL); Host_ack_all_errors(P_CONTROL); status = c; // Send error status goto host_transfer_control_end; } if (Is_host_stall(P_CONTROL)) { Host_ack_stall(P_CONTROL); status = CONTROL_STALL; goto host_transfer_control_end; } } Host_ack_control_out_ready(); } // End of OUT data stage Host_freeze_pipe(P_CONTROL); Host_configure_pipe_token(P_CONTROL, TOKEN_IN); Host_ack_control_in_received_free(); Host_unfreeze_pipe(P_CONTROL); #if TIMEOUT_DELAY_ENABLE == ENABLE private_sof_counter = 0; // Reset the counter in SOF detection subroutine #endif while (!Is_host_control_in_received()) { #if defined(Host_wait_action) Host_wait_action(); #endif if (Is_host_emergency_exit()) { Host_freeze_pipe(P_CONTROL); Host_reset_pipe(P_CONTROL); status = CONTROL_TIMEOUT; goto host_transfer_control_end; } if (Is_host_pipe_error(P_CONTROL)) // Any error? { c = Host_error_status(P_CONTROL); Host_ack_all_errors(P_CONTROL); status = c; // Send error status goto host_transfer_control_end; } if (Is_host_stall(P_CONTROL)) { Host_ack_stall(P_CONTROL); status = CONTROL_STALL; goto host_transfer_control_end; } #if TIMEOUT_DELAY_ENABLE == ENABLE if (2000 < host_get_timeout()) // Count 2s { Host_freeze_pipe(P_CONTROL); Host_reset_pipe(P_CONTROL); status = CONTROL_TIMEOUT; goto host_transfer_control_end; } #endif } Host_ack_control_in_received(); Host_freeze_pipe(P_CONTROL); Host_free_control_in(); } host_transfer_control_end: if (!sav_int_sof_enable) // Restore SOF interrupt enable { if ((sav_glob_int_en = cpu_irq_is_enabled())) cpu_irq_disable(); Host_disable_sof_interrupt(); (void)Is_host_sof_interrupt_enabled(); if (sav_glob_int_en) cpu_irq_enable(); } return status; }
//! //! @brief This function receives nb_data bytes pointed to by ptr_buf on the specified pipe. //! //! *nb_data is updated with the final number of data bytes received. //! //! @note This function activates the host SOF interrupt to detect time-outs. //! The initial enable state of this interrupt will be restored. //! //! @param pipe //! @param nb_data //! @param ptr_buf //! //! @return Status_t: Pipe status //! Status_t host_get_data(uint8_t pipe, uint16_t *nb_data, void *ptr_buf) { Status_t status = PIPE_GOOD; // Frame correctly received by default bool sav_int_sof_enable; bool sav_glob_int_en; uint8_t nak_timeout; uint16_t n, i; #if NAK_TIMEOUT_ENABLE == ENABLE uint16_t cpt_nak; #endif n = *nb_data; sav_int_sof_enable = Is_host_sof_interrupt_enabled(); Host_enable_sof_interrupt(); Host_enable_continuous_in_mode(pipe); Host_configure_pipe_token(pipe, TOKEN_IN); Host_ack_in_received(pipe); while (n) // While missing data... { Host_free_in(pipe); Host_unfreeze_pipe(pipe); private_sof_counter = 0; // Reset the counter in SOF detection subroutine nak_timeout = 0; #if NAK_TIMEOUT_ENABLE == ENABLE cpt_nak = 0; #endif while (!Is_host_in_received(pipe)) { if (Is_host_emergency_exit()) // Asynchronous disconnection or role exchange detected under interrupt { status = PIPE_DELAY_TIMEOUT; Host_reset_pipe(pipe); goto host_get_data_end; } #if TIMEOUT_DELAY_ENABLE == ENABLE if (private_sof_counter >= 250) // Time-out management { private_sof_counter = 0; // Done in host SOF interrupt if (nak_timeout++ >= TIMEOUT_DELAY) // Check for local time-out { status = PIPE_DELAY_TIMEOUT; Host_reset_pipe(pipe); goto host_get_data_end; } } #endif if (Is_host_pipe_error(pipe)) // Error management { status = Host_error_status(pipe); Host_ack_all_errors(pipe); goto host_get_data_end; } if (Is_host_stall(pipe)) // STALL management { status = PIPE_STALL; Host_reset_pipe(pipe); Host_ack_stall(pipe); goto host_get_data_end; } #if NAK_TIMEOUT_ENABLE == ENABLE if (Is_host_nak_received(pipe)) // NAK received { Host_ack_nak_received(pipe); if (cpt_nak++ > NAK_RECEIVE_TIMEOUT) { status = PIPE_NAK_TIMEOUT; Host_reset_pipe(pipe); goto host_get_data_end; } } #endif } Host_freeze_pipe(pipe); Host_reset_pipe_fifo_access(pipe); i = Host_get_pipe_size(pipe) - Host_byte_count(pipe); if (!ptr_buf) { if (Host_byte_count(pipe) > n) // More bytes received than expected { n = 0; //! @todo Error code management } else // Nb bytes received <= expected { n -= Host_byte_count(pipe); if (i) // Short packet { *nb_data -= n; n = 0; } } } else { n = host_read_p_rxpacket(pipe, ptr_buf, n, &ptr_buf); if (Host_byte_count(pipe)) // More bytes received than expected { //! @todo Error code management } else if (i) // Short packet with nb bytes received <= expected { *nb_data -= n; n = 0; } } Host_ack_in_received(pipe); // In low-speed mode, the USB IP may have not yet sent the ACK at this // point. The USB IP does not support a new start of transaction request // from the firmware if the ACK has not been sent. The only means of making // sure the ACK has been sent is to wait for the next Keep-Alive before // starting a new transaction. if (Is_usb_low_speed_mode()) { Usb_ack_event(EVT_HOST_SOF); sav_int_sof_enable = Is_host_sof_interrupt_enabled(); if ((sav_glob_int_en = cpu_irq_is_enabled())) cpu_irq_disable(); Host_ack_sof(); (void)Is_host_sof_interrupt_enabled(); if (sav_glob_int_en) cpu_irq_enable(); Host_enable_sof_interrupt(); while (!Is_usb_event(EVT_HOST_SOF)) // Wait for next Keep-Alive { if (Is_host_emergency_exit()) { status = PIPE_DELAY_TIMEOUT; Host_reset_pipe(pipe); goto host_get_data_end; } } if (!sav_int_sof_enable) // Restore SOF interrupt enable { if ((sav_glob_int_en = cpu_irq_is_enabled())) cpu_irq_disable(); Host_disable_sof_interrupt(); (void)Is_host_sof_interrupt_enabled(); if (sav_glob_int_en) cpu_irq_enable(); } } } host_get_data_end: Host_freeze_pipe(pipe); // Restore SOF interrupt enable state if (!sav_int_sof_enable) { if ((sav_glob_int_en = cpu_irq_is_enabled())) cpu_irq_disable(); Host_disable_sof_interrupt(); (void)Is_host_sof_interrupt_enabled(); if (sav_glob_int_en) cpu_irq_enable(); } // And return... return status; }
//! //! @brief This function takes the stream coming from the selected USB pipe and sends //! it to the DAC driver. Moreover, it ensures that both input and output stream //! keep synchronized by adding or deleting samples. //! //! @param side USB_STREAM_HOST for USB host, USB_STREAM_DEVICE for device. //! @param pipe_in Number of the addressed pipe/endpoint //! @param pFifoCount (return parameter) NULL or pointer to the number of used buffers at this time //! //! @return status: (USB_STREAM_STATUS_OK, USB_STREAM_STATUS_NOT_SYNCHRONIZED, //! USB_STREAM_STATUS_SPEED_UP, USB_STREAM_STATUS_SLOW_DOWN, USB_STREAM_STATUS_BUFFER_OVERFLOW) //! int usb_stream_input(usb_stream_side_t side, uint8_t pipe_in, uint32_t* pFifoCount) { uint16_t fifo_used_cnt; uint16_t byte_count=0; uint32_t i; UnionPtr pswap; UnionPtr buffer; // We comes here since we have received something. Let's increase the internal // activity counter. usb_stream_cnt++; fifo_used_cnt=usb_stream_fifo_get_used_room(); if (pFifoCount) *pFifoCount = fifo_used_cnt; // usb_stream_fifo_get_free_room() if( USB_STREAM_BUFFER_NUMBER-fifo_used_cnt==0 ) { // Fatal error: even with the synchro mechanism acting, we are in a case in which the // buffers are full. usb_stream_context->synchronized = false; usb_stream_context->status = USB_STREAM_ERROR_NOT_SYNCHRONIZED; return usb_stream_context->status; } pswap.s8ptr = buffer.s8ptr = usb_stream_fifo_get_buffer(usb_stream_context->wr_id); #if USB_HOST_FEATURE == true if( side==USB_STREAM_HOST ) { byte_count=Host_byte_count(pipe_in); } #endif #if USB_DEVICE_FEATURE == true if( side==USB_STREAM_DEVICE ) { byte_count=Usb_byte_count(pipe_in); } #endif if( byte_count==0 ) { if( cpu_is_timeout(&broken_stream_timer) ) { usb_stream_context->status = USB_STREAM_ERROR_BROKEN_STREAM; } else { usb_stream_context->status = USB_STREAM_ERROR_NO_DATA; } return usb_stream_context->status; } else { // reset time out detection cpu_set_timeout(cpu_ms_2_cy(BROKEN_STREAM_TIMER, FCPU_HZ), &broken_stream_timer); } #if USB_HOST_FEATURE == true if( side==USB_STREAM_HOST ) { Host_reset_pipe_fifo_access(pipe_in); host_read_p_rxpacket(pipe_in, (void*)buffer.s8ptr, byte_count, NULL); } #endif #if USB_DEVICE_FEATURE == true if( side==USB_STREAM_DEVICE ) { Usb_reset_endpoint_fifo_access(pipe_in); usb_read_ep_rxpacket(pipe_in, (void*)buffer.s8ptr, byte_count, NULL); } #endif usb_stream_context->status = USB_STREAM_ERROR_NONE; if( byte_count > USB_STREAM_REAL_BUFFER_SIZE ) { byte_count = USB_STREAM_REAL_BUFFER_SIZE; usb_stream_context->status = USB_STREAM_ERROR_OVERFLOW; } // Swap samples since they are coming from the USB world. if( usb_stream_context->bits_per_sample==16 ) for( i=0 ; i<byte_count/(16/8) ; i++ ) pswap.s16ptr[i] = swap16(pswap.s16ptr[i]); else if( usb_stream_context->bits_per_sample==32 ) for( i=0 ; i<byte_count/(32/8) ; i++ ) pswap.s32ptr[i] = swap32(pswap.s32ptr[i]); //for( i=0 ; i<byte_count/2 ; i++ ) // printf("0x%04hx ", pswap[i]); //printf("\r\n"); usb_stream_fifo_push(byte_count); fifo_used_cnt++; if( !usb_stream_context->synchronized ) { usb_stream_context->status = USB_STREAM_ERROR_NOT_SYNCHRONIZED; if( fifo_used_cnt>=(USB_STREAM_BUFFER_NUMBER/2) ) { // We have enough buffers to start the playback. void* buffer; uint16_t size; // CS2200 cs2200_freq_clk_out(_32_BITS_RATIO(usb_stream_resync_frequency, CS2200_FREF)); usb_stream_resync_step = PPM(usb_stream_resync_frequency, USB_STREAM_RESYNC_PPM_STEPS); usb_stream_resync_freq_ofst = usb_stream_resync_frequency; usb_stream_resync_ppm_ofst = 0; usb_stream_resync_last_room = fifo_used_cnt; #define TIMER_USB_RESYNC_CORRECTION 320 cpu_set_timeout( cpu_ms_2_cy(TIMER_USB_RESYNC_CORRECTION, FCPU_HZ), &usb_resync_timer ); usb_stream_context->synchronized=true; usb_stream_fifo_get(&buffer, &size); audio_mixer_dacs_output_direct(buffer, size/(usb_stream_context->channel_count*usb_stream_context->bits_per_sample/8)); // Fill also the reload stage of the PDCA. usb_stream_fifo_pull(); usb_stream_fifo_get(&buffer, &size); audio_mixer_dacs_output_direct(buffer, size/(usb_stream_context->channel_count*usb_stream_context->bits_per_sample/8)); } } return usb_stream_context->status; }
//! //! @brief USB pipe interrupt subroutine //! void usb_pipe_interrupt(uint8_t pipe) { void *ptr_buf; uint16_t n, i; bool callback = false; // Detect which events generate an interrupt... if (Is_host_pipe_error(pipe)) // Error management { it_pipe_str[pipe].status = Host_error_status(pipe); it_pipe_str[pipe].enable = false; Host_reset_pipe(pipe); Host_ack_all_errors(pipe); callback = true; goto usb_pipe_interrupt_end; } if (Is_host_stall(pipe)) // STALL management { it_pipe_str[pipe].status = PIPE_STALL; it_pipe_str[pipe].enable = false; Host_reset_pipe(pipe); callback = true; goto usb_pipe_interrupt_end; } #if NAK_TIMEOUT_ENABLE == ENABLE if (Is_host_nak_received(pipe)) // NAK received { Host_ack_nak_received(pipe); // Check if NAK time-out error occurs (not for interrupt pipes) if (!--it_pipe_str[pipe].nak_timeout && Host_get_pipe_type(pipe) != TYPE_INTERRUPT) { it_pipe_str[pipe].status = PIPE_NAK_TIMEOUT; it_pipe_str[pipe].enable = false; Host_reset_pipe(pipe); callback = true; goto usb_pipe_interrupt_end; } } #endif if (Is_host_in_received(pipe)) // Pipe IN reception? { ptr_buf = (uint8_t *)it_pipe_str[pipe].ptr_buf + it_pipe_str[pipe].nb_byte_processed; // Build pointer to data buffer n = it_pipe_str[pipe].nb_byte_to_process - it_pipe_str[pipe].nb_byte_processed; // Remaining data bytes Host_freeze_pipe(pipe); Host_reset_pipe_fifo_access(pipe); i = Host_get_pipe_size(pipe) - Host_byte_count(pipe); n = host_read_p_rxpacket(pipe, ptr_buf, n, NULL); it_pipe_str[pipe].nb_byte_processed = it_pipe_str[pipe].nb_byte_to_process - n; if (Host_byte_count(pipe)) // More bytes received than expected { //! @todo Error code management } else if (i) // Short packet with nb bytes received <= expected { n = 0; } Host_ack_in_received(pipe); if (n) // Still data to process { Host_free_in(pipe); Host_unfreeze_pipe(pipe); // Request another IN transfer private_sof_counter = 0; // Reset the counter in SOF detection subroutine it_pipe_str[pipe].timeout = 0; // Reset time-out it_pipe_str[pipe].nak_timeout = NAK_RECEIVE_TIMEOUT; } else // End of transfer { it_pipe_str[pipe].enable = false; it_pipe_str[pipe].status = PIPE_GOOD; Host_reset_pipe(pipe); callback = true; } } if (Is_host_out_ready(pipe)) // Pipe OUT sent? { Host_ack_out_ready(pipe); it_pipe_str[pipe].nb_byte_processed += it_pipe_str[pipe].nb_byte_on_going; it_pipe_str[pipe].nb_byte_on_going = 0; ptr_buf = (uint8_t *)it_pipe_str[pipe].ptr_buf + it_pipe_str[pipe].nb_byte_processed; // Build pointer to data buffer n = it_pipe_str[pipe].nb_byte_to_process - it_pipe_str[pipe].nb_byte_processed; // Remaining data bytes if (n) // Still data to process { Host_unfreeze_pipe(pipe); // Prepare data to be sent Host_reset_pipe_fifo_access(pipe); it_pipe_str[pipe].nb_byte_on_going = n - host_write_p_txpacket(pipe, ptr_buf, n, NULL); private_sof_counter = 0; // Reset the counter in SOF detection subroutine it_pipe_str[pipe].timeout = 0; // Refresh time-out counter it_pipe_str[pipe].nak_timeout = NAK_SEND_TIMEOUT; Host_send_out(pipe); // Send the USB frame } else // End of transfer { it_pipe_str[pipe].enable = false; // Transfer end it_pipe_str[pipe].status = PIPE_GOOD; // Status OK Host_reset_pipe(pipe); callback = true; } } usb_pipe_interrupt_end: if (!is_any_interrupt_pipe_active() && !g_sav_int_sof_enable) // If no more transfer is armed { Host_disable_sof_interrupt(); } if (callback) // Any call-back function to perform? { it_pipe_str[pipe].handler(it_pipe_str[pipe].status, it_pipe_str[pipe].nb_byte_processed); } }