Implement UART debugging by reusing DEBUG_PRINT when ITW not active
This commit is contained in:
+6
-3
@@ -45,15 +45,18 @@ extern "C" {
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/* Exported macro ------------------------------------------------------------*/
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/* Exported macro ------------------------------------------------------------*/
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/* USER CODE BEGIN EM */
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/* USER CODE BEGIN EM */
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//#define DEBUG_ITM
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//#define DEBUG_ITW
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//#define DEBUG_DUMMY_FRAME
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//#define DEBUG_DUMMY_FRAME
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#ifdef DEBUG_ITM
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#ifdef DEBUG_ITW
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#include <stdio.h>
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#include <stdio.h>
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#define DEBUG_PRINT(...) printf(__VA_ARGS__)
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#define DEBUG_PRINT(...) printf(__VA_ARGS__)
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#else
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#else
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#define DEBUG_PRINT(...)
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#include <stdarg.h>
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void uart_debug_print(const char *fmt, ...);
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#define DEBUG_PRINT(...) uart_debug_print(__VA_ARGS__)
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#endif
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#endif
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/* USER CODE END EM */
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/* USER CODE END EM */
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/* Exported functions prototypes ---------------------------------------------*/
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/* Exported functions prototypes ---------------------------------------------*/
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+44
-43
@@ -28,6 +28,9 @@ extern CAN_HandleTypeDef hcan2;
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extern osThreadId_t xCAN1LedTask;
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extern osThreadId_t xCAN1LedTask;
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extern osThreadId_t xCAN2LedTask;
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extern osThreadId_t xCAN2LedTask;
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volatile uint32_t can1_rx_isr_count = 0;
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volatile uint32_t can2_rx_isr_count = 0;
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/* Private function prototypes -----------------------------------------------*/
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/* Private function prototypes -----------------------------------------------*/
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/* USER CODE BEGIN FunctionPrototypes */
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/* USER CODE BEGIN FunctionPrototypes */
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/**
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/**
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@@ -38,22 +41,21 @@ extern osThreadId_t xCAN2LedTask;
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*/
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*/
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void CAN_Logger_Init(CAN_HandleTypeDef *hcan1, CAN_HandleTypeDef *hcan2)
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void CAN_Logger_Init(CAN_HandleTypeDef *hcan1, CAN_HandleTypeDef *hcan2)
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{
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{
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CAN_FilterTypeDef filter = {0};
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CAN_FilterTypeDef filter = {0};
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filter.FilterMode = CAN_FILTERMODE_IDMASK;
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filter.FilterMode = CAN_FILTERMODE_IDMASK;
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filter.FilterScale = CAN_FILTERSCALE_32BIT;
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filter.FilterScale = CAN_FILTERSCALE_32BIT;
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filter.FilterIdHigh = 0x0000;
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filter.FilterIdHigh = 0x0000;
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filter.FilterMaskIdHigh = 0x0000;
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filter.FilterMaskIdHigh = 0x0000;
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filter.FilterIdLow = 0x0000;
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filter.FilterIdLow = 0x0000;
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filter.FilterMaskIdLow = 0x0000;
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filter.FilterMaskIdLow = 0x0000;
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filter.FilterFIFOAssignment = CAN_FILTER_FIFO0;
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filter.FilterFIFOAssignment = CAN_FILTER_FIFO0;
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filter.FilterActivation = ENABLE;
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filter.FilterActivation = ENABLE;
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filter.SlaveStartFilterBank = 14;
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filter.SlaveStartFilterBank = 14;
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filter.FilterBank = 0;
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filter.FilterBank = 0;
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if (HAL_CAN_ConfigFilter(hcan1, &filter) != HAL_OK) Error_Handler();
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if (HAL_CAN_ConfigFilter(hcan1, &filter) != HAL_OK) Error_Handler();
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filter.FilterBank = 14;
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filter.FilterBank = 14;
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if (HAL_CAN_ConfigFilter(hcan2, &filter) != HAL_OK) Error_Handler();
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if (HAL_CAN_ConfigFilter(hcan2, &filter) != HAL_OK) Error_Handler();
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}
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}
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/* END CAN_Logger_Init */
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/* END CAN_Logger_Init */
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@@ -65,38 +67,38 @@ void CAN_Logger_Init(CAN_HandleTypeDef *hcan1, CAN_HandleTypeDef *hcan2)
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*/
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*/
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void HAL_CAN_RxFifo0MsgPendingCallback(CAN_HandleTypeDef *hcan)
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void HAL_CAN_RxFifo0MsgPendingCallback(CAN_HandleTypeDef *hcan)
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{
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{
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CanMessage_t message;
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if (hcan->Instance == CAN1) can1_rx_isr_count++;
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CAN_RxHeaderTypeDef rxHeader;
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else can2_rx_isr_count++;
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uint8_t data[8];
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osMessageQueueId_t queue;
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CanMessage_t message;
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osThreadId_t led_task;
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CAN_RxHeaderTypeDef rxHeader;
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uint8_t data[8];
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// TODO: manage the case of FIFO overflow
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osMessageQueueId_t queue;
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if (HAL_CAN_GetRxMessage(hcan, CAN_RX_FIFO0, &rxHeader, data) != HAL_OK) return;
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osThreadId_t led_task;
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if (rxHeader.IDE == CAN_ID_EXT) message.id = rxHeader.ExtId;
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// TODO: manage the case of FIFO overflow
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else message.id = rxHeader.StdId;
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if (HAL_CAN_GetRxMessage(hcan, CAN_RX_FIFO0, &rxHeader, data) != HAL_OK) return;
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message.dlc = rxHeader.DLC;
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message.isExtended = (rxHeader.IDE == CAN_ID_EXT);
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message.source = (hcan->Instance == CAN1) ? 1 : 2;
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memcpy(message.payload, data, rxHeader.DLC);
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if (hcan->Instance == CAN1)
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if (rxHeader.IDE == CAN_ID_EXT) message.id = rxHeader.ExtId;
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{
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else message.id = rxHeader.StdId;
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queue = xCAN1RxQueue;
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message.dlc = rxHeader.DLC;
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led_task = xCAN1LedTask;
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message.isExtended = (rxHeader.IDE == CAN_ID_EXT);
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}
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message.source = (hcan->Instance == CAN1) ? 1 : 2;
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else
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memcpy(message.payload, data, rxHeader.DLC);
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{
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queue = xCAN2RxQueue;
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led_task = xCAN2LedTask;
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}
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if (osMessageQueuePut(queue, &message, 0U, 0U) == osOK)
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if (hcan->Instance == CAN1)
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{
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{
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osThreadFlagsSet(led_task, 0x01);
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queue = xCAN1RxQueue;
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}
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led_task = xCAN1LedTask;
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}
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else
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{
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queue = xCAN2RxQueue;
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led_task = xCAN2LedTask;
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}
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if (osMessageQueuePut(queue, &message, 0U, 0U) == osOK) osThreadFlagsSet(led_task, 0x01);
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}
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}
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/* END HAL_CAN_RxFifo0MsgPendingCallback */
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/* END HAL_CAN_RxFifo0MsgPendingCallback */
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@@ -128,7 +130,6 @@ void vCANListener(void *argument)
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osMessageQueuePut(xUARTQueue, &message, 0U, 0U);
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osMessageQueuePut(xUARTQueue, &message, 0U, 0U);
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}
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}
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else DEBUG_PRINT("No CAN yet!\r\n");
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else DEBUG_PRINT("No CAN yet!\r\n");
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}
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}
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}
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}
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/* END vCANListener */
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/* END vCANListener */
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+49
-20
@@ -20,11 +20,17 @@
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#include "main.h"
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#include "main.h"
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#include "cmsis_os.h"
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#include "cmsis_os.h"
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#include "canlog.h"
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#include "canlog.h"
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#include <stdio.h>
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#include <stdarg.h>
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/* USER CODE END Includes */
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/* USER CODE END Includes */
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extern UART_HandleTypeDef huart1;
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extern UART_HandleTypeDef huart1;
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extern osSemaphoreId_t xUARTDMASemaphore;
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extern osSemaphoreId_t xUARTDMASemaphore;
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extern osMessageQueueId_t xUARTQueue;
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extern osMessageQueueId_t xUARTQueue;
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extern volatile uint32_t can1_rx_isr_count;
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extern volatile uint32_t can2_rx_isr_count;
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extern CAN_HandleTypeDef hcan1;
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extern CAN_HandleTypeDef hcan2;
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/* BEGIN format_can_message */
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/* BEGIN format_can_message */
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/**
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/**
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@@ -86,10 +92,7 @@ static int format_can_message(char *buf, uint8_t source, const CanMessage_t *mes
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*/
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*/
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void HAL_UART_TxCpltCallback(UART_HandleTypeDef *huart)
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void HAL_UART_TxCpltCallback(UART_HandleTypeDef *huart)
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{
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{
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if (huart->Instance == USART1)
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if (huart->Instance == USART1) osSemaphoreRelease(xUARTDMASemaphore);
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{
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osSemaphoreRelease(xUARTDMASemaphore);
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}
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}
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}
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/* END HAL_UART_TxCpltCallback */
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/* END HAL_UART_TxCpltCallback */
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@@ -102,7 +105,9 @@ void HAL_UART_TxCpltCallback(UART_HandleTypeDef *huart)
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void vUARTLogger(void *argument)
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void vUARTLogger(void *argument)
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{
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{
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CanMessage_t message;
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CanMessage_t message;
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char tx_buffer[45];
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static char tx_buffer[45];
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static char diag_buf[128];
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#ifdef DEBUG_DUMMY_FRAME
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#ifdef DEBUG_DUMMY_FRAME
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CanMessage_t dummy_frame = {
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CanMessage_t dummy_frame = {
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@@ -116,30 +121,27 @@ void vUARTLogger(void *argument)
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for (;;)
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for (;;)
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{
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{
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DEBUG_PRINT("Waiting for CAN traffic...\r\n");
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#ifdef DEBUG_DUMMY_FRAME
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uint32_t queue_timeout = 1000U;
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uint32_t queue_timeout = 1000U;
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#else
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uint32_t queue_timeout = osWaitForever;
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//ALT: uint32_t queue_timeout = osWaitForever;
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#endif
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#ifdef DEBUG_DUMMY_FRAME
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#ifdef DEBUG_DUMMY_FRAME
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osMessageQueuePut(xUARTQueue, &dummy_frame, 0U, 0U);
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osMessageQueuePut(xUARTQueue, &dummy_frame, 0U, 0U);
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osDelay(1000);
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osDelay(1000);
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#endif
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#endif
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if (osMessageQueueGet(xUARTQueue, &message, NULL, queue_timeout) == osOK)
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if (osMessageQueueGet(xUARTQueue, &message, NULL, queue_timeout) == osOK)
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{
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{
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if (huart1.gState != HAL_UART_STATE_READY)
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{
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HAL_UART_Abort(&huart1);
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HAL_UART_Init(&huart1);
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}
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if (osSemaphoreAcquire(xUARTDMASemaphore, queue_timeout) == osOK)
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if (osSemaphoreAcquire(xUARTDMASemaphore, queue_timeout) == osOK)
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{
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{
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int len = format_can_message(tx_buffer, message.source, &message);
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int len = format_can_message(tx_buffer, message.source, &message);
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if (HAL_UART_Transmit_DMA(&huart1, (uint8_t*)tx_buffer, len) != HAL_OK)
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if (HAL_UART_Transmit_DMA(&huart1, (uint8_t*)tx_buffer, len) == HAL_OK)
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{
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DEBUG_PRINT("CAN frame sent via UART\r\n");
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}
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else
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{
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{
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osSemaphoreRelease(xUARTDMASemaphore);
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osSemaphoreRelease(xUARTDMASemaphore);
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DEBUG_PRINT("HAL error, CAN frame NOT sent!\r\n");
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DEBUG_PRINT("HAL error, CAN frame NOT sent!\r\n");
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@@ -148,8 +150,35 @@ void vUARTLogger(void *argument)
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else
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else
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{
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{
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DEBUG_PRINT("ERROR: Semaphore timeout! UART might be stuck in BUSY state.\r\n");
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DEBUG_PRINT("ERROR: Semaphore timeout! UART might be stuck in BUSY state.\r\n");
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HAL_UART_Abort(&huart1);
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HAL_UART_Init(&huart1);
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osSemaphoreRelease(xUARTDMASemaphore);
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}
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}
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}
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}
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else
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{
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if (osSemaphoreAcquire(xUARTDMASemaphore, queue_timeout) == osOK)
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{
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int len = snprintf(diag_buf, sizeof(diag_buf),
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"[D] ISR1:%lu ISR2:%lu | ST1:%lu ST2:%lu | ER1:0x%lX ER2:0x%lX\r\n",
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(unsigned long)can1_rx_isr_count, (unsigned long)can2_rx_isr_count,
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(unsigned long)HAL_CAN_GetState(&hcan1), (unsigned long)HAL_CAN_GetState(&hcan2),
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(unsigned long)HAL_CAN_GetError(&hcan1), (unsigned long)HAL_CAN_GetError(&hcan2));
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if (len > 0)
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{
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if (HAL_UART_Transmit_DMA(&huart1, (uint8_t*)diag_buf, len) != HAL_OK) osSemaphoreRelease(xUARTDMASemaphore);
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}
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else osSemaphoreRelease(xUARTDMASemaphore);
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}
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else
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{
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HAL_UART_Abort(&huart1);
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HAL_UART_Init(&huart1);
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osSemaphoreRelease(xUARTDMASemaphore);
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DEBUG_PRINT("ERROR: Semaphore timeout! UART might be stuck in BUSY state.\r\n");
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}
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}
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}
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}
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}
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}
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/* END vUARTLoggerListen */
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/* END vUARTLoggerListen */
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+23
-3
@@ -21,6 +21,8 @@
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/* USER CODE BEGIN Includes */
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/* USER CODE BEGIN Includes */
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#include "canlog.h"
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#include "canlog.h"
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#include "cansend.h"
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#include "cansend.h"
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#include <stdio.h>
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#include <stdarg.h>
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/* USER CODE END Includes */
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/* USER CODE END Includes */
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/* Private typedef -----------------------------------------------------------*/
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/* Private typedef -----------------------------------------------------------*/
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@@ -64,7 +66,6 @@ osMessageQueueId_t xUARTQueue;
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osSemaphoreId_t xUARTDMASemaphore;
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osSemaphoreId_t xUARTDMASemaphore;
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osThreadId_t xUartTask;
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osThreadId_t xUartTask;
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/* USER CODE END PV */
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/* USER CODE END PV */
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/* Private function prototypes -----------------------------------------------*/
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/* Private function prototypes -----------------------------------------------*/
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@@ -75,14 +76,33 @@ static void MX_CAN1_Init(void);
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static void MX_CAN2_Init(void);
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static void MX_CAN2_Init(void);
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static void MX_SDIO_SD_Init(void);
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static void MX_SDIO_SD_Init(void);
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static void MX_USART1_UART_Init(void);
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static void MX_USART1_UART_Init(void);
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/* USER CODE END PFP */
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/* USER CODE BEGIN PFP */
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/* USER CODE BEGIN PF */
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int _write(int file, char *ptr, int len)
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int _write(int file, char *ptr, int len)
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{
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{
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for (int i = 0; i < len; i++) ITM_SendChar((*ptr++));
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for (int i = 0; i < len; i++) ITM_SendChar((*ptr++));
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return len;
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return len;
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}
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}
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/* USER CODE END PFP */
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#ifndef DEBUG_ITM
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void uart_debug_print(const char *fmt, ...)
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{
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char buf[128];
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va_list args;
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va_start(args, fmt);
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int len = vsnprintf(buf, sizeof(buf), fmt, args);
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va_end(args);
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if (len > 0)
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{
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while (HAL_UART_GetState(&huart1) & HAL_UART_STATE_BUSY_TX);
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HAL_UART_Transmit(&huart1, (uint8_t*)buf, len, 100);
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}
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}
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#endif
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/* USER CODE END PF */
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/* Private user code ---------------------------------------------------------*/
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/* Private user code ---------------------------------------------------------*/
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/* USER CODE BEGIN 0 */
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/* USER CODE BEGIN 0 */
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