53 Commits

Author SHA1 Message Date
eeeck 1ad8e5b04f Change define name
- "DEBUG" is also used by STM32 for... something...
2026-06-18 13:38:28 +02:00
eeeck ef034f3195 Add debug dummy CAN frame sent regularly
- Activated by defining DEBUG_DUMMY_FRAME
2026-06-18 13:37:10 +02:00
eeeck 825ddc6961 Add debug print after 1s of no CAN traffic 2026-06-18 08:28:56 +02:00
eeeck 604e9e603b Add USART DMA in Normal mode from CubeMX 2026-06-18 06:21:41 +02:00
eeeck 7b30c3cedd Fix declaration bug 2026-06-17 21:27:26 +02:00
eeeck 8d0b508ff6 Merge branch 'dev_debug' into dev_serial-send 2026-06-17 20:52:23 +02:00
eeeck 4afa6702fb Return exact length 2026-06-17 20:33:38 +02:00
eeeck 907c0b170d Move to PFP block in main.c and use more standard logic 2026-06-17 20:33:22 +02:00
eeeck 60849ebb78 Testing: SDIO stuff deactivated until implemented
- Goes into error handling
2026-06-17 20:32:36 +02:00
eeeck aeb553994c Update LED struct 2026-06-17 20:14:56 +02:00
eeeck 5e28758a5e Use serial mode instad of JTAG 2026-06-17 20:09:45 +02:00
eeeck 9980dafb5c Initialize JTAG hardware
- To debug with ST-Link
2026-06-17 18:27:55 +02:00
eeeck 1d70a35f95 Move to proper block 2026-06-17 18:26:01 +02:00
eeeck 5c8961efa7 Include stdint 2026-06-17 18:16:13 +02:00
eeeck 17c500e39a Add debug messages for UART 2026-06-17 18:11:46 +02:00
eeeck 6ad1acc2ee Removing duplicate, again... 2026-06-17 18:07:22 +02:00
eeeck 91218e782e Include main header 2026-06-17 18:05:45 +02:00
eeeck 63e3e81986 Fix spacing 2026-06-17 18:05:04 +02:00
eeeck 84ea393dd6 Implement ITM debug via ST-Link
- Enable Instrumentation Trace Macroblock
- Remove PB3 initialization conflict with ITM
- Add a bunch of debug prints
2026-06-17 18:04:48 +02:00
eeeck d69cb0231b Removing duplicate, again... 2026-06-17 08:41:19 +02:00
eeeck 6bcc977c65 Switch ISR semaphore release to normal semaphore release 2026-06-16 23:07:50 +02:00
eeeck 8ec62d9fcd Fix typo in comment 2026-06-16 23:07:03 +02:00
eeeck cbefb45099 Add externs 2026-06-16 23:06:54 +02:00
eeeck f7581d49ce Fix task priority with correct handles 2026-06-16 23:06:35 +02:00
eeeck e123c0172f Small variable name change 2026-06-16 22:39:30 +02:00
eeeck cd0b412d74 Remove whitespace 2026-06-16 22:35:04 +02:00
eeeck 24e100cae6 Use better name for CAN listener task function 2026-06-16 22:34:55 +02:00
eeeck 7d5b3f9be2 Increase all queue sizes and double the UART queue 2026-06-16 22:29:00 +02:00
eeeck c540ff7800 Remove dead code 2026-06-16 22:13:52 +02:00
eeeck dfc116b2e9 Fix linker error by moving RTOS thread declaration to global scope 2026-06-16 22:12:40 +02:00
eeeck 59b0aca092 Refactor: implement data relay from vCANLoggerListen to xUARTQueue
- No RTOS event, just queue put and get: cleaner way to send data and
  more clear separation of concerns
2026-06-16 22:09:49 +02:00
eeeck 5f11cf5213 Revert decision on moving CAN event flag outside ISR
- Would have caused destruction of the queue data itself
2026-06-16 21:34:43 +02:00
eeeck 74bf4bde77 Implement identical queue drain for CAN2 to that of CAN1 2026-06-16 21:29:32 +02:00
eeeck 3691918196 Non-blocking on CAN1 queue check
- Check queue instantly
- Use DMA to move tx_buffer to UART peripheral
- Use a semaphore to DMA is being done, to avoid moving to next loop
  iteration and overwriting tx_buffer
- HAL_UART_TxCpltCallback will release semaphore when DMA done
2026-06-16 21:27:52 +02:00
eeeck 79f317cec5 Wait until CAN1 or CAN2 save anything to FIFO buffer
- Moving CAN event flag to vCANLoggerListen to avoid possible race
  condition and to make ISR leaner
2026-06-16 21:06:32 +02:00
eeeck da1c13fcb0 Fix comment blocks and function descriptions 2026-06-16 21:02:15 +02:00
eeeck 59274272d3 Remove not useful comment blocks
- Not really used by CubeMX so worth removing
2026-06-16 20:25:21 +02:00
eeeck bc71cd7371 Add comment headers 2026-06-16 20:06:21 +02:00
eeeck 84980d2378 Implement hex converter
- Avoids snprintf
- Can be read from minicom/screen, but it's also friendly for other MCU
- This single function was AI generated
2026-06-16 19:55:44 +02:00
eeeck 8b1b3b7ff3 Implement safe UART semaphore release inside ISR
- It uses safe way to release semaphore
- Yields in case task interrupted was of lower priority: UART has
  minimal latency
2026-06-16 19:49:13 +02:00
eeeck 0d0e485193 Initialize cansend headers 2026-06-16 19:34:12 +02:00
eeeck ac5d9f6a72 Set CAN event flag and LED thread flag in ISR
- This is efficient specifically for
  STM32F4x with Thumb-2 IT block
  optimization enabled (-02 or -03)
2026-06-16 19:11:38 +02:00
eeeck 76628dec90 Initialize UART task and semaphore and CAN event flags 2026-06-16 19:10:53 +02:00
eeeck cedd6cc0f8 Merge pull request 'Switch to task notification from semaphore' (#20) from dev_task-notification into dev_serial-send
Reviewed-on: erickahmed/j1939_logger#20
2026-06-16 18:23:18 +02:00
eeeck f260dfe972 Use define instead of hardcoded value 2026-06-16 18:11:12 +02:00
eeeck 12ef44d3d8 Use clearer variable name 2026-06-16 18:06:26 +02:00
eeeck af4ce2f9e8 Remove unecessary MXCube comments 2026-06-16 18:01:54 +02:00
eeeck 34df5e51b7 Remove LED contexts
- Are now unnecessary with the move to task notification
2026-06-16 17:59:57 +02:00
eeeck 266efdfa7c Fix spacing 2026-06-16 17:57:42 +02:00
eeeck 7d40531250 Return instead of critical error
- To find a way to handle overflows on the FIFO buffer
2026-06-16 17:57:35 +02:00
eeeck 6446f5209b Remove semaphores in favor of task notifications
- Less overhead, simpler to manage
- Semaphores are apparently overkill for a simple blink timer
2026-06-16 17:56:11 +02:00
eeeck cc3a37ba4b Increase UART baudrate 2026-06-16 16:16:51 +02:00
eeeck 990a85c002 Enable UART interface from MXCube 2026-06-16 16:01:49 +02:00
15 changed files with 7812 additions and 681 deletions
+8 -14
View File
@@ -18,14 +18,17 @@
/* Define to prevent recursive inclusion -------------------------------------*/ /* Define to prevent recursive inclusion -------------------------------------*/
#ifndef CANLOG_H #ifndef CANLOG_H
#define CANLOG_H #define CANLOG_H
/* Includes ------------------------------------------------------------------*/
#include "main.h" #include "main.h"
#include "cmsis_os.h" #include "cmsis_os.h"
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
#define LED_BLINK_MS 25U
/* USER CODE END PD */
extern osMessageQueueId_t xCAN1RxQueue; extern osMessageQueueId_t xCAN1RxQueue;
extern osMessageQueueId_t xCAN2RxQueue; extern osMessageQueueId_t xCAN2RxQueue;
extern osSemaphoreId_t xSemaphoreCAN1; extern osMessageQueueId_t xUARTQueue;
extern osSemaphoreId_t xSemaphoreCAN2;
/* USER CODE BEGIN PTD */ /* USER CODE BEGIN PTD */
typedef struct { typedef struct {
@@ -38,24 +41,15 @@ typedef struct {
uint8_t payload[8]; uint8_t payload[8];
uint8_t dlc; uint8_t dlc;
uint8_t isExtended; uint8_t isExtended;
uint8_t source;
//uint32_t timestamp; //Enable TIM2: 42 MHz / (41+1) = 1 MHz → 1 µs tick; 32bit autoreload freerunning //uint32_t timestamp; //Enable TIM2: 42 MHz / (41+1) = 1 MHz → 1 µs tick; 32bit autoreload freerunning
// this is for getting timestamps on can messages // this is for getting timestamps on can messages
} CanMessage_t; } CanMessage_t;
typedef struct {
LED_Config *led;
osSemaphoreId_t semaphore;
} LEDContext;
/* USER CODE END PTD */ /* USER CODE END PTD */
/**
* @brief Initializes the CAN logger modules, OS threads, queues, and hardware.
* @param hcan1 Pointer to the CAN1 handle
* @param hcan2 Pointer to the CAN2 handle
*/
void CAN_Logger_Init(CAN_HandleTypeDef *hcan1, CAN_HandleTypeDef *hcan2); void CAN_Logger_Init(CAN_HandleTypeDef *hcan1, CAN_HandleTypeDef *hcan2);
void HAL_CAN_RxFifo0MsgPendingCallback(CAN_HandleTypeDef *hcan); void HAL_CAN_RxFifo0MsgPendingCallback(CAN_HandleTypeDef *hcan);
void vCANLoggerListen(void *argument); void vCANListener(void *argument);
void vLEDHeartbeat(void *argument); void vLEDHeartbeat(void *argument);
#endif /* CANLOG_H */ #endif /* CANLOG_H */
+28
View File
@@ -0,0 +1,28 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : CANSEND.h
* @brief : Header for cansend.c file.
* This file contains the defines related to CAN data sent
* via UART/USART and save via .
******************************************************************************
* @attention
*
* Copyright (c) 2026 Erick Ahmed.
*
* SPDX-License-Identifier: GPL-3.0-or-later
*
******************************************************************************
*/
/* USER CODE END Header */
/* Define to prevent recursive inclusion -------------------------------------*/
#ifndef CANSEND_H
#define CANSEND_H
#include "main.h"
void HAL_UART_TxCpltCallback(UART_HandleTypeDef *huart);
void vUARTLogger(void *argument);
#endif /* CANSEND_H */
+10 -2
View File
@@ -26,11 +26,11 @@ extern "C" {
/* Includes ------------------------------------------------------------------*/ /* Includes ------------------------------------------------------------------*/
#include "stm32f4xx_hal.h" #include "stm32f4xx_hal.h"
#include "canlog.h"
/* Private includes ----------------------------------------------------------*/ /* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */ /* USER CODE BEGIN Includes */
#include <stdint.h>
#include "canlog.h"
/* USER CODE END Includes */ /* USER CODE END Includes */
/* Exported types ------------------------------------------------------------*/ /* Exported types ------------------------------------------------------------*/
@@ -45,7 +45,15 @@ extern "C" {
/* Exported macro ------------------------------------------------------------*/ /* Exported macro ------------------------------------------------------------*/
/* USER CODE BEGIN EM */ /* USER CODE BEGIN EM */
#define DEBUG_ITM
#define DEBUG_DUMMY_FRAME
#ifdef DEBUG_ITM
#include <stdio.h>
#define DEBUG_PRINT(...) printf(__VA_ARGS__)
#else
#define DEBUG_PRINT(...)
#endif
/* USER CODE END EM */ /* USER CODE END EM */
/* Exported functions prototypes ---------------------------------------------*/ /* Exported functions prototypes ---------------------------------------------*/
+1 -1
View File
@@ -64,7 +64,7 @@
/* #define HAL_MMC_MODULE_ENABLED */ /* #define HAL_MMC_MODULE_ENABLED */
/* #define HAL_SPI_MODULE_ENABLED */ /* #define HAL_SPI_MODULE_ENABLED */
#define HAL_TIM_MODULE_ENABLED #define HAL_TIM_MODULE_ENABLED
/* #define HAL_UART_MODULE_ENABLED */ #define HAL_UART_MODULE_ENABLED
/* #define HAL_USART_MODULE_ENABLED */ /* #define HAL_USART_MODULE_ENABLED */
/* #define HAL_IRDA_MODULE_ENABLED */ /* #define HAL_IRDA_MODULE_ENABLED */
/* #define HAL_SMARTCARD_MODULE_ENABLED */ /* #define HAL_SMARTCARD_MODULE_ENABLED */
+1
View File
@@ -56,6 +56,7 @@ void SDIO_IRQHandler(void);
void TIM6_DAC_IRQHandler(void); void TIM6_DAC_IRQHandler(void);
void DMA2_Stream3_IRQHandler(void); void DMA2_Stream3_IRQHandler(void);
void DMA2_Stream6_IRQHandler(void); void DMA2_Stream6_IRQHandler(void);
void DMA2_Stream7_IRQHandler(void);
/* USER CODE BEGIN EFP */ /* USER CODE BEGIN EFP */
/* USER CODE END EFP */ /* USER CODE END EFP */
-435
View File
@@ -1,435 +0,0 @@
/**
******************************************************************************
* @file newlib_lock_glue.c
* @author STMicroelectronics
* @brief Implementation of newlib lock interface
*
* @details This file implements locking glue necessary to protect C library
* functions and initialization of local static objects in C++.
* Lock strategies are defined in stm32_lock.h that implements
* different level of thread-safety.
*
* For more information about which C functions need which of these
* low level functions, please consult the newlib libc manual,
* see https://sourceware.org/newlib/libc.html
*
* For more information about the one-time construction API for C++,
* see https://itanium-cxx-abi.github.io/cxx-abi/abi.html#once-ctor
*
******************************************************************************
* @attention
*
* Copyright (c) 2026 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
#if !defined (__GNUC__) || defined (__CC_ARM)
#error "newlib_lock_glue.c" should be used with GNU Compilers only
#endif /* !defined (__GNUC__) || defined (__CC_ARM) */
/* Includes ------------------------------------------------------------------*/
#include <cmsis_compiler.h>
/* Private functions prototypes ----------------------------------------------*/
__WEAK void Error_Handler(void);
/* Private functions ---------------------------------------------------------*/
/**
* @brief Global Error_Handler
*/
__WEAK void Error_Handler(void)
{
/* Not used if it exists in project */
while (1);
}
#ifdef __SINGLE_THREAD__
#warning C library is in single-threaded mode. Please take care when using C library functions in threaded contexts
#else
/* Includes ------------------------------------------------------------------*/
#include <newlib.h>
#include <stdatomic.h>
#include "stm32_lock.h"
/**
* @defgroup _newlib_lock_functions newlib library locks
* @see https://sourceware.org/newlib/libc.html
* @{
*/
#if __NEWLIB__ >= 3 && defined (_RETARGETABLE_LOCKING)
#include <errno.h>
#include <stdlib.h>
#include <sys/lock.h>
/* Private macros ------------------------------------------------------------*/
/** See struct __lock definition */
#define STM32_LOCK_PARAMETER(lock) (&(lock)->lock_data)
/* shared variables for bare metal allow lock ------------------------------------------------------*/
#if defined(STM32_THREAD_SAFE_BAREMETAL_ALLOW_LOCKS) && (STM32_THREAD_SAFE_BAREMETAL_ALLOW_LOCKS != 0)
uint32_t gflag = 0;
uint32_t call_counter = 0;
#endif /* defined(STM32_THREAD_SAFE_BAREMETAL_ALLOW_LOCKS) && (STM32_THREAD_SAFE_BAREMETAL_ALLOW_LOCKS != 0) */
/* Private variables ---------------------------------------------------------*/
struct __lock
{
LockingData_t lock_data; /**< The STM32 lock instance */
};
/** Implementing mutex from <a href="https://sourceware.org/git/?p=newlib-cygwin.git;a=blob_plain;f=newlib/libc/misc/lock.c">newlib/libc/misc/lock.c</a> */
struct __lock __lock___sinit_recursive_mutex = { LOCKING_DATA_INIT };
/** Implementing mutex from <a href="https://sourceware.org/git/?p=newlib-cygwin.git;a=blob_plain;f=newlib/libc/misc/lock.c">newlib/libc/misc/lock.c</a> */
struct __lock __lock___sfp_recursive_mutex = { LOCKING_DATA_INIT };
/** Implementing mutex from <a href="https://sourceware.org/git/?p=newlib-cygwin.git;a=blob_plain;f=newlib/libc/misc/lock.c">newlib/libc/misc/lock.c</a> */
struct __lock __lock___atexit_recursive_mutex = { LOCKING_DATA_INIT };
/** Implementing mutex from <a href="https://sourceware.org/git/?p=newlib-cygwin.git;a=blob_plain;f=newlib/libc/misc/lock.c">newlib/libc/misc/lock.c</a> */
struct __lock __lock___at_quick_exit_mutex = { LOCKING_DATA_INIT };
/** Implementing mutex from <a href="https://sourceware.org/git/?p=newlib-cygwin.git;a=blob_plain;f=newlib/libc/misc/lock.c">newlib/libc/misc/lock.c</a> */
struct __lock __lock___malloc_recursive_mutex = { LOCKING_DATA_INIT };
/** Implementing mutex from <a href="https://sourceware.org/git/?p=newlib-cygwin.git;a=blob_plain;f=newlib/libc/misc/lock.c">newlib/libc/misc/lock.c</a> */
struct __lock __lock___env_recursive_mutex = { LOCKING_DATA_INIT };
/** Implementing mutex from <a href="https://sourceware.org/git/?p=newlib-cygwin.git;a=blob_plain;f=newlib/libc/misc/lock.c">newlib/libc/misc/lock.c</a> */
struct __lock __lock___tz_mutex = { LOCKING_DATA_INIT };
/** Implementing mutex from <a href="https://sourceware.org/git/?p=newlib-cygwin.git;a=blob_plain;f=newlib/libc/misc/lock.c">newlib/libc/misc/lock.c</a> */
struct __lock __lock___dd_hash_mutex = { LOCKING_DATA_INIT };
/** Implementing mutex from <a href="https://sourceware.org/git/?p=newlib-cygwin.git;a=blob_plain;f=newlib/libc/misc/lock.c">newlib/libc/misc/lock.c</a> */
struct __lock __lock___arc4random_mutex = { LOCKING_DATA_INIT };
/* Private functions ---------------------------------------------------------*/
/**
* @brief Initialize lock
* @param lock The lock
*/
void __retarget_lock_init(_LOCK_T *lock)
{
__retarget_lock_init_recursive(lock);
}
/**
* @brief Initialize recursive lock
* @param lock The lock
*/
void __retarget_lock_init_recursive(_LOCK_T *lock)
{
if (lock == NULL)
{
errno = EINVAL;
return;
}
*lock = (_LOCK_T)malloc(sizeof(struct __lock));
if (*lock != NULL)
{
stm32_lock_init(STM32_LOCK_PARAMETER(*lock));
return;
}
/* Unable to allocate memory */
STM32_LOCK_BLOCK();
}
/**
* @brief Close lock
* @param lock The lock
*/
void __retarget_lock_close(_LOCK_T lock)
{
__retarget_lock_close_recursive(lock);
}
/**
* @brief Close recursive lock
* @param lock The lock
*/
void __retarget_lock_close_recursive(_LOCK_T lock)
{
free(lock);
}
/**
* @brief Acquire lock
* @param lock The lock
*/
void __retarget_lock_acquire(_LOCK_T lock)
{
STM32_LOCK_BLOCK_IF_NULL_ARGUMENT(lock);
stm32_lock_acquire(STM32_LOCK_PARAMETER(lock));
}
/**
* @brief Acquire recursive lock
* @param lock The lock
*/
void __retarget_lock_acquire_recursive(_LOCK_T lock)
{
STM32_LOCK_BLOCK_IF_NULL_ARGUMENT(lock);
stm32_lock_acquire(STM32_LOCK_PARAMETER(lock));
}
/**
* @brief Try acquire lock
* @param lock The lock
* @return 0 always
*/
int __retarget_lock_try_acquire(_LOCK_T lock)
{
__retarget_lock_acquire(lock);
return 0;
}
/**
* @brief Try acquire recursive lock
* @param lock The lock
* @return 0 always
*/
int __retarget_lock_try_acquire_recursive(_LOCK_T lock)
{
__retarget_lock_acquire_recursive(lock);
return 0;
}
/**
* @brief Release lock
* @param lock The lock
*/
void __retarget_lock_release(_LOCK_T lock)
{
STM32_LOCK_BLOCK_IF_NULL_ARGUMENT(lock);
stm32_lock_release(STM32_LOCK_PARAMETER(lock));
}
/**
* @brief Release recursive lock
* @param lock The lock
*/
void __retarget_lock_release_recursive(_LOCK_T lock)
{
STM32_LOCK_BLOCK_IF_NULL_ARGUMENT(lock);
stm32_lock_release(STM32_LOCK_PARAMETER(lock));
}
#else
#warning This makes malloc, env, and TZ calls thread-safe, not the entire newlib
/* Includes ------------------------------------------------------------------*/
#include <reent.h>
/* Private variables ---------------------------------------------------------*/
/** Mutex used in __malloc_lock and __malloc_unlock */
static LockingData_t __lock___malloc_recursive_mutex = LOCKING_DATA_INIT;
/** Mutex used in __env_lock and __env_unlock */
static LockingData_t __lock___env_recursive_mutex = LOCKING_DATA_INIT;
/** Mutex used in __tz_lock and __tz_unlock */
static LockingData_t __lock___tz_mutex = LOCKING_DATA_INIT;
/* Private functions ---------------------------------------------------------*/
#if __STD_C
/**
* @brief Acquire malloc lock
* @param reent The reentrance struct
*/
void __malloc_lock(struct _reent *reent)
{
STM32_LOCK_UNUSED(reent);
stm32_lock_acquire(&__lock___malloc_recursive_mutex);
}
/**
* @brief Release malloc lock
* @param reent The reentrance struct
*/
void __malloc_unlock(struct _reent *reent)
{
STM32_LOCK_UNUSED(reent);
stm32_lock_release(&__lock___malloc_recursive_mutex);
}
#else
/**
* @brief Acquire malloc lock
*/
void __malloc_lock()
{
stm32_lock_acquire(&__lock___malloc_recursive_mutex);
}
/**
* @brief Release malloc lock
*/
void __malloc_unlock()
{
stm32_lock_release(&__lock___malloc_recursive_mutex);
}
#endif /* __STD_C */
/**
* @brief Acquire env lock
* @param reent The reentrance struct
*/
void __env_lock(struct _reent *reent)
{
STM32_LOCK_UNUSED(reent);
stm32_lock_acquire(&__lock___env_recursive_mutex);
}
/**
* @brief Release env lock
* @param reent The reentrance struct
*/
void __env_unlock(struct _reent *reent)
{
STM32_LOCK_UNUSED(reent);
stm32_lock_release(&__lock___env_recursive_mutex);
}
/**
* @brief Acquire tz lock
*/
void __tz_lock()
{
stm32_lock_acquire(&__lock___tz_mutex);
}
/**
* @brief Release tz lock
*/
void __tz_unlock()
{
stm32_lock_release(&__lock___tz_mutex);
}
#endif /* __NEWLIB__ >= 3 && defined (_RETARGETABLE_LOCKING) */
/**
* @}
*/
/**
* @defgroup __cxa_guard_ GNU C++ one-time construction API
* @see https://itanium-cxx-abi.github.io/cxx-abi/abi.html#once-ctor
*
* When building for C++, please make sure that <tt>-fno-threadsafe-statics</tt> is not passed to the compiler
* @{
*/
/* Private typedef -----------------------------------------------------------*/
/** The guard object is created by the C++ compiler and is 32 bit for ARM EABI. */
typedef struct
{
atomic_uchar initialized; /**< Indicate if object is initialized */
uint8_t acquired; /**< Ensure non-recursive lock */
uint16_t unused; /**< Padding */
} __attribute__((packed)) CxaGuardObject_t;
/* Private variables ---------------------------------------------------------*/
/** Mutex used in __cxa_guard_acquire, __cxa_guard_release and __cxa_guard_abort */
static LockingData_t __cxa_guard_mutex = LOCKING_DATA_INIT;
/* Private functions prototype ---------------------------------------------------------*/
int __cxa_guard_acquire(CxaGuardObject_t *guard_object);
void __cxa_guard_abort(CxaGuardObject_t *guard_object);
void __cxa_guard_release(CxaGuardObject_t *guard_object);
/* Private functions ---------------------------------------------------------*/
/**
* @brief Acquire __cxa_guard mutex
* @param guard_object Guard object
* @return 0 if object is initialized, else initialization of object required
*/
int __cxa_guard_acquire(CxaGuardObject_t *guard_object)
{
STM32_LOCK_BLOCK_IF_NULL_ARGUMENT(guard_object);
if (atomic_load(&guard_object->initialized) == 0)
{
/* Object needs initialization, lock threading context */
stm32_lock_acquire(&__cxa_guard_mutex);
if (atomic_load(&guard_object->initialized) == 0)
{
/* Object needs initialization */
if (guard_object->acquired)
{
/* Object initialization already in progress */
STM32_LOCK_BLOCK();
}
/* Lock acquired */
guard_object->acquired = 1;
return 1;
}
else
{
/* Object initialized in another thread */
stm32_lock_release(&__cxa_guard_mutex);
}
}
/* Object already initialized */
return 0;
}
/**
* @brief Abort __cxa_guard mutex
* @param guard_object Guard object
*/
void __cxa_guard_abort(CxaGuardObject_t *guard_object)
{
STM32_LOCK_BLOCK_IF_NULL_ARGUMENT(guard_object);
if (guard_object->acquired)
{
/* Release lock */
guard_object->acquired = 0;
stm32_lock_release(&__cxa_guard_mutex);
}
else
{
/* Trying to release non-acquired lock */
STM32_LOCK_BLOCK();
}
}
/**
* @brief Release __cxa_guard mutex
* @param guard_object Guard object
*/
void __cxa_guard_release(CxaGuardObject_t *guard_object)
{
STM32_LOCK_BLOCK_IF_NULL_ARGUMENT(guard_object);
/* Object initialized */
atomic_store(&guard_object->initialized, 1);
/* Release lock */
__cxa_guard_abort(guard_object);
}
/**
* @}
*/
#endif /* __SINGLE_THREAD__ */
+41 -26
View File
@@ -15,6 +15,7 @@
/* USER CODE END Header */ /* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/ /* Includes ------------------------------------------------------------------*/
#include "canlog.h" #include "canlog.h"
#include "main.h"
/* Private includes ----------------------------------------------------------*/ /* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */ /* USER CODE BEGIN Includes */
#include "cmsis_os.h" #include "cmsis_os.h"
@@ -24,12 +25,15 @@
extern CAN_HandleTypeDef hcan1; extern CAN_HandleTypeDef hcan1;
extern CAN_HandleTypeDef hcan2; extern CAN_HandleTypeDef hcan2;
extern osThreadId_t xCAN1LedTask;
extern osThreadId_t xCAN2LedTask;
/* Private function prototypes -----------------------------------------------*/ /* Private function prototypes -----------------------------------------------*/
/* USER CODE BEGIN FunctionPrototypes */ /* USER CODE BEGIN FunctionPrototypes */
/* BEGIN CAN_Logger_Init */
/** /**
* @brief Initialize CAN bus logger. * @brief Initializes the CAN logger modules, OS threads, queues, and hardware.
* @param argument: hcan1, hcan2 * @param hcan1 Pointer to the CAN1 handle
* @param hcan2 Pointer to the CAN2 handle
* @retval None * @retval None
*/ */
void CAN_Logger_Init(CAN_HandleTypeDef *hcan1, CAN_HandleTypeDef *hcan2) void CAN_Logger_Init(CAN_HandleTypeDef *hcan1, CAN_HandleTypeDef *hcan2)
@@ -58,46 +62,53 @@ void CAN_Logger_Init(CAN_HandleTypeDef *hcan1, CAN_HandleTypeDef *hcan2)
/* BEGIN HAL_CAN_RxFifo0MsgPendingCallback */ /* BEGIN HAL_CAN_RxFifo0MsgPendingCallback */
/** /**
* @brief ISR for CAN message pending in FIFO0 * @brief ISR for CAN message pending in FIFO0
* @param argument: Can handle hcan (hcan1 or hcan2) * @param hcan: CAN handle hcan (hcan1 or hcan2)
* @retval None * @retval None
*/ */
void HAL_CAN_RxFifo0MsgPendingCallback(CAN_HandleTypeDef *hcan) void HAL_CAN_RxFifo0MsgPendingCallback(CAN_HandleTypeDef *hcan)
{ {
/* CODE BEGIN */
CanMessage_t message; CanMessage_t message;
CAN_RxHeaderTypeDef rxHeader; CAN_RxHeaderTypeDef rxHeader;
uint8_t data[8]; uint8_t data[8];
if (HAL_CAN_GetRxMessage(hcan, CAN_RX_FIFO0, &rxHeader, data) != HAL_OK) Error_Handler(); osMessageQueueId_t queue;
osThreadId_t led_task;
// TODO: manage the case of FIFO overflow
if (HAL_CAN_GetRxMessage(hcan, CAN_RX_FIFO0, &rxHeader, data) != HAL_OK) return;
message.id = rxHeader.ExtId; message.id = rxHeader.ExtId;
message.dlc = rxHeader.DLC; message.dlc = rxHeader.DLC;
message.isExtended = (rxHeader.IDE == CAN_ID_EXT); message.isExtended = (rxHeader.IDE == CAN_ID_EXT);
message.source = (hcan->Instance == CAN1) ? 1 : 2;
memcpy(message.payload, data, rxHeader.DLC); memcpy(message.payload, data, rxHeader.DLC);
osMessageQueueId_t queue = (hcan->Instance == CAN1) ? xCAN1RxQueue : xCAN2RxQueue; if (hcan->Instance == CAN1)
if (osMessageQueuePut(queue, &message, 0U, 0U) != osOK)
{ {
// TODO: better handling: flash error_led on osTimeout, call Error_Handler() when other errors queue = xCAN1RxQueue;
led_task = xCAN1LedTask;
// send errors like queue full via UART }
else
{
queue = xCAN2RxQueue;
led_task = xCAN2LedTask;
} }
osSemaphoreId_t semaphore = (hcan->Instance == CAN1) ? xSemaphoreCAN1 : xSemaphoreCAN2; if (osMessageQueuePut(queue, &message, 0U, 0U) == osOK)
osSemaphoreRelease(semaphore); {
/* CODE END */ osThreadFlagsSet(led_task, 0x01);
}
} }
/* END HAL_CAN_RxFifo0MsgPendingCallback */ /* END HAL_CAN_RxFifo0MsgPendingCallback */
/* BEGIN vCANLoggerListen */ /* BEGIN vCANListener */
/** /**
* @brief Log incoming CAN bus traffic in FIFO buffer * @brief Log incoming CAN bus traffic in FIFO buffer
* @param argument: Not used * @param argument: Not used
* @retval None * @retval None
*/ */
void vCANLoggerListen(void *argument) void vCANListener(void *argument)
{ {
/* CODE BEGIN */
CAN_HandleTypeDef *hcan = (CAN_HandleTypeDef*)argument; CAN_HandleTypeDef *hcan = (CAN_HandleTypeDef*)argument;
osMessageQueueId_t queue = (hcan->Instance == CAN1) ? xCAN1RxQueue : xCAN2RxQueue; osMessageQueueId_t queue = (hcan->Instance == CAN1) ? xCAN1RxQueue : xCAN2RxQueue;
CanMessage_t message; CanMessage_t message;
@@ -106,14 +117,18 @@ void vCANLoggerListen(void *argument)
for (;;) for (;;)
{ {
if (osMessageQueueGet(queue, &message, NULL, osWaitForever) == osOK) if (osMessageQueueGet(queue, &message, NULL, 1000) == osOK)
{ {
// // J1939 decoding
// RELAY: Push to the UART queue
osMessageQueuePut(xUARTQueue, &message, 0U, 0U);
} }
else DEBUG_PRINT("No CAN yet!\r\n");
} }
/* CODE END */
} }
/* END vCANLoggerListen */ /* END vCANListener */
/* BEGIN vLEDHeartbeat */ /* BEGIN vLEDHeartbeat */
/** /**
@@ -123,15 +138,15 @@ void vCANLoggerListen(void *argument)
*/ */
void vLEDHeartbeat(void *argument) void vLEDHeartbeat(void *argument)
{ {
/* CODE BEGIN */ LED_Config *led = (LED_Config*)argument;
LEDContext *context = (LEDContext*)argument;
for (;;) for (;;)
{ {
if (osSemaphoreAcquire(context->semaphore, 25U) == osOK) HAL_GPIO_WritePin(context->led->port, context->led->pin, GPIO_PIN_SET); uint32_t notification = osThreadFlagsWait(0x01, osFlagsWaitAny, LED_BLINK_MS);
else HAL_GPIO_WritePin(context->led->port, context->led->pin, GPIO_PIN_RESET);
if (notification & 0x01) HAL_GPIO_WritePin(led->port, led->pin, GPIO_PIN_SET);
else HAL_GPIO_WritePin(led->port, led->pin, GPIO_PIN_RESET);
} }
/* CODE END */
} }
/* END vLEDHeartbeat */ /* END vLEDHeartbeat */
/* USER CODE END FunctionPrototypes */ /* USER CODE END FunctionPrototypes */
+140
View File
@@ -0,0 +1,140 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : cansend.c
* @brief : Send logged SAE J1939 CAN via serial and save via SDIO.
******************************************************************************
* @attention
*
* Copyright (c) 2026 Erick Ahmed.
*
* SPDX-License-Identifier: GPL-3.0-or-later
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "cansend.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "main.h"
#include "cmsis_os.h"
#include "canlog.h"
/* USER CODE END Includes */
extern UART_HandleTypeDef huart1;
extern osSemaphoreId_t xUARTDMASemaphore;
extern osMessageQueueId_t xUARTQueue;
/* BEGIN format_can_message */
/**
* @brief Format CAN message for friendly reading on terminal emulators and other MCUs.
* @param arguments: buffer, source, message
* @retval None
*/
static int format_can_message(char *buf, uint8_t source, const CanMessage_t *message)
{
const char hex[] = "0123456789ABCDEF";
buf[0] = 'C';
buf[1] = (source == 1) ? '1' : '2';
buf[2] = ':';
buf[3] = hex[(message->id >> 28) & 0x0F];
buf[4] = hex[(message->id >> 24) & 0x0F];
buf[5] = hex[(message->id >> 20) & 0x0F];
buf[6] = hex[(message->id >> 16) & 0x0F];
buf[7] = hex[(message->id >> 12) & 0x0F];
buf[8] = hex[(message->id >> 8) & 0x0F];
buf[9] = hex[(message->id >> 4) & 0x0F];
buf[10] = hex[message->id & 0x0F];
buf[11] = ' ';
buf[12] = hex[(message->dlc >> 4) & 0x0F];
buf[13] = hex[message->dlc & 0x0F];
buf[14] = ' ';
int idx = 15;
for (int i = 0; i < 8; i++)
{
if (i < message->dlc)
{
buf[idx++] = hex[(message->payload[i] >> 4) & 0x0F];
buf[idx++] = hex[message->payload[i] & 0x0F];
}
else
{
buf[idx++] = ' ';
buf[idx++] = ' ';
}
if (i < 7) buf[idx++] = ' ';
}
buf[idx++] = '\r';
buf[idx++] = '\n';
buf[idx] = '\0';
return idx;
}
/* END format_can_message */
/* BEGIN HAL_UART_TxCpltCallback */
/**
* @brief Safely release UART semaphore inside ISR and yield task if possible.
* @param argument: UART handle
* @retval None
*/
void HAL_UART_TxCpltCallback(UART_HandleTypeDef *huart)
{
if (huart->Instance == USART1)
{
osSemaphoreRelease(xUARTDMASemaphore);
}
}
/* END HAL_UART_TxCpltCallback */
/* BEGIN vUARTLoggerListen */
/**
* @brief Send CAN bus traffic saved in FIFO buffer to USART1
* @param argument: Not used
* @retval None
*/
void vUARTLogger(void *argument)
{
CanMessage_t message;
char tx_buffer[45];
#ifdef DEBUG_DUMMY_FRAME
CanMessage_t dummy_frame = {
.id = 0x0CF00400, // J1939 EEC1 ID
.dlc = 8, // 8 bytes of data
.isExtended = 1, // 29-bit Extended ID
.source = 1, // CAN1
.payload = {0xAA, 0xBB, 0xCC, 0xDD, 0xEE, 0xFF, 0x11, 0x22}
};
#endif
for (;;)
{
DEBUG_PRINT("Waiting for CAN traffic...\r\n");
#ifdef DEBUG_DUMMY_FRAME
osMessageQueuePut(xUARTQueue, &dummy_frame, 0U, 0U);
osDelay(1000);
#endif
if (osMessageQueueGet(xUARTQueue, &message, NULL, osWaitForever) == osOK)
{
DEBUG_PRINT("Waiting for CAN traffic...\r\n");
if (osMessageQueueGet(xUARTQueue, &message, NULL, osWaitForever) == osOK)
{
DEBUG_PRINT("CAN frame detected\r\n");
int len = format_can_message(tx_buffer, message.source, &message);
HAL_UART_Transmit_DMA(&huart1, (uint8_t*)tx_buffer, len);
osSemaphoreAcquire(xUARTDMASemaphore, osWaitForever);
DEBUG_PRINT("CAN frame sent via UART\r\n");
}
}
}
}
/* END vUARTLoggerListen */
+124 -112
View File
@@ -20,6 +20,7 @@
/* Private includes ----------------------------------------------------------*/ /* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */ /* USER CODE BEGIN Includes */
#include "canlog.h" #include "canlog.h"
#include "cansend.h"
/* USER CODE END Includes */ /* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/ /* Private typedef -----------------------------------------------------------*/
@@ -28,28 +29,12 @@
/* Private define ------------------------------------------------------------*/ /* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */ /* USER CODE BEGIN PD */
#define CAN_QUEUE_DEPTH 32
#define CAN_TASK_STACK_WORDS 128
#define CAN_QUEUE_CB_SIZE 128
#define CAN_MSG_SIZE sizeof(CanMessage_t)
/* USER CODE END PD */ /* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/ /* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */ /* USER CODE BEGIN PM */
//CCRAM: stack; control bank; queue memory
__attribute__((section(".ccmram")))
StackType_t xCAN1_Stack[CAN_TASK_STACK_WORDS];
__attribute__((section(".ccmram"), aligned(4)))
uint8_t can1_queue_cb[CAN_QUEUE_CB_SIZE];
__attribute__((section(".ccmram"), aligned(4)))
uint8_t can1_queue_mq[CAN_QUEUE_DEPTH * CAN_MSG_SIZE];
__attribute__((section(".ccmram")))
StackType_t xCAN2_Stack[CAN_TASK_STACK_WORDS];
__attribute__((section(".ccmram"), aligned(4)))
uint8_t can2_queue_cb[CAN_QUEUE_CB_SIZE];
__attribute__((section(".ccmram"), aligned(4)))
uint8_t can2_queue_mq[CAN_QUEUE_DEPTH * CAN_MSG_SIZE];
/* USER CODE END PM */ /* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/ /* Private variables ---------------------------------------------------------*/
@@ -60,19 +45,26 @@ SD_HandleTypeDef hsd;
DMA_HandleTypeDef hdma_sdio_rx; DMA_HandleTypeDef hdma_sdio_rx;
DMA_HandleTypeDef hdma_sdio_tx; DMA_HandleTypeDef hdma_sdio_tx;
UART_HandleTypeDef huart1;
DMA_HandleTypeDef hdma_usart1_tx;
/* USER CODE BEGIN PV */ /* USER CODE BEGIN PV */
LED_Config led_can1 = {GPIOB, GPIO_PIN_2}; LED_Config led_can1 = {GPIOB, GPIO_PIN_5};
LED_Config led_can2 = {GPIOB, GPIO_PIN_5}; LED_Config led_can2 = {GPIOB, GPIO_PIN_6};
LED_Config led_error = {GPIOB, GPIO_PIN_3}; LED_Config led_error = {GPIOB, GPIO_PIN_7};
LEDContext ledContextCAN1; osThreadId_t xCAN1rxTask;
LEDContext ledContextCAN2; osThreadId_t xCAN2rxTask;
osThreadId_t xCAN1LedTask;
osSemaphoreId_t xSemaphoreCAN1; osThreadId_t xCAN2LedTask;
osSemaphoreId_t xSemaphoreCAN2;
osMessageQueueId_t xCAN1RxQueue; osMessageQueueId_t xCAN1RxQueue;
osMessageQueueId_t xCAN2RxQueue; osMessageQueueId_t xCAN2RxQueue;
osMessageQueueId_t xUARTQueue;
osSemaphoreId_t xUARTDMASemaphore;
osThreadId_t xUartTask;
/* USER CODE END PV */ /* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/ /* Private function prototypes -----------------------------------------------*/
@@ -82,8 +74,15 @@ static void MX_DMA_Init(void);
static void MX_CAN1_Init(void); static void MX_CAN1_Init(void);
static void MX_CAN2_Init(void); static void MX_CAN2_Init(void);
static void MX_SDIO_SD_Init(void); static void MX_SDIO_SD_Init(void);
static void MX_USART1_UART_Init(void);
/* USER CODE BEGIN PFP */ /* USER CODE BEGIN PFP */
int _write(int file, char *ptr, int len) {
for (int i = 0; i < len; i++) {
ITM_SendChar((*ptr++));
}
return len;
}
/* USER CODE END PFP */ /* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/ /* Private user code ---------------------------------------------------------*/
@@ -99,7 +98,11 @@ int main(void)
{ {
/* USER CODE BEGIN 1 */ /* USER CODE BEGIN 1 */
CoreDebug->DEMCR |= CoreDebug_DEMCR_TRCENA_Msk;
ITM->LAR = 0xC5ACCE55;
ITM->TER = 1 << 0;
ITM->TCR = ITM_TCR_ITMENA_Msk | ITM_TCR_SYNCENA_Msk | ITM_TCR_SWOENA_Msk;
DEBUG_PRINT("Booting system\r\n");
/* USER CODE END 1 */ /* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/ /* MCU Configuration--------------------------------------------------------*/
@@ -108,6 +111,7 @@ int main(void)
HAL_Init(); HAL_Init();
/* USER CODE BEGIN Init */ /* USER CODE BEGIN Init */
DEBUG_PRINT("Configuring system clock\r\n");
/* USER CODE END Init */ /* USER CODE END Init */
@@ -115,7 +119,7 @@ int main(void)
SystemClock_Config(); SystemClock_Config();
/* USER CODE BEGIN SysInit */ /* USER CODE BEGIN SysInit */
DEBUG_PRINT("Initializing configured peripherals...\r\n");
/* USER CODE END SysInit */ /* USER CODE END SysInit */
/* Initialize all configured peripherals */ /* Initialize all configured peripherals */
@@ -124,108 +128,77 @@ int main(void)
MX_CAN1_Init(); MX_CAN1_Init();
MX_CAN2_Init(); MX_CAN2_Init();
MX_SDIO_SD_Init(); MX_SDIO_SD_Init();
MX_USART1_UART_Init();
/* USER CODE BEGIN 2 */ /* USER CODE BEGIN 2 */
DEBUG_PRINT("Initializing CAN bus logger\r\n");
CAN_Logger_Init(&hcan1, &hcan2); CAN_Logger_Init(&hcan1, &hcan2);
/* USER CODE END 2 */ /* USER CODE END 2 */
/* Init scheduler */ /* Init scheduler */
osKernelInitialize(); osKernelInitialize();
DEBUG_PRINT("Creating RTOS entities\r\n");
/* USER CODE BEGIN RTOS_TASKS */ /* USER CODE BEGIN RTOS_TASKS */
osThreadId_t xCAN1rx;
const osThreadAttr_t CAN1rxAttributes = { const osThreadAttr_t CAN1rxAttributes = {
.name = "CAN1rx", .name = "CAN1rx",
.stack_size = sizeof(xCAN1_Stack), .stack_size = 128 * 4,
.priority = (osPriority_t) osPriorityRealtime1, .priority = (osPriority_t) osPriorityRealtime1,
}; };
osThreadId_t xCAN2rx;
const osThreadAttr_t CAN2rxAttributes = { const osThreadAttr_t CAN2rxAttributes = {
.name = "CAN2rx", .name = "CAN2rx",
.cb_mem = NULL, .stack_size = 128 * 4,
.cb_size = 0U,
.stack_mem = xCAN2_Stack,
.stack_size = sizeof(xCAN2_Stack),
.priority = (osPriority_t) osPriorityRealtime, .priority = (osPriority_t) osPriorityRealtime,
}; };
const osThreadAttr_t UartLoggerAttributes = {
osThreadId_t xLEDHeartbeatCAN1; .name = "UART_Logger",
.stack_size = 256 * 4,
.priority = (osPriority_t) osPriorityHigh,
};
const osThreadAttr_t LEDHeartbeatCAN1Attributes = { const osThreadAttr_t LEDHeartbeatCAN1Attributes = {
.name = "LED_HB_CAN1", .name = "LED_HB_CAN1",
.cb_mem = NULL,
.cb_size = 0U,
.stack_mem = xCAN2_Stack,
.stack_size = 128 * 4, .stack_size = 128 * 4,
.priority = (osPriority_t) osPriorityVeryLow1, .priority = (osPriority_t) osPriorityLow1,
}; };
osThreadId_t xLEDHeartbeatCAN2;
const osThreadAttr_t LEDHeartbeatCAN2Attributes = { const osThreadAttr_t LEDHeartbeatCAN2Attributes = {
.name = "LED_HB_CAN2", .name = "LED_HB_CAN2",
.stack_size = 128 * 4, .stack_size = 128 * 4,
.priority = (osPriority_t) osPriorityVeryLow, .priority = (osPriority_t) osPriorityLow,
}; };
/* USER END RTOS_TASKS */ /* USER CODE END RTOS_TASKS */
/* USER CODE BEGIN RTOS_MUTEX */ /* USER CODE BEGIN RTOS_MUTEX */
/* add mutexes, ... */
/* USER CODE END RTOS_MUTEX */ /* USER CODE END RTOS_MUTEX */
/* USER CODE BEGIN RTOS_SEMAPHORES */ /* USER CODE BEGIN RTOS_SEMAPHORES */
xSemaphoreCAN1 = osSemaphoreNew(CAN_QUEUE_DEPTH, 0, NULL); xUARTDMASemaphore = osSemaphoreNew(1, 0, NULL);
xSemaphoreCAN2 = osSemaphoreNew(CAN_QUEUE_DEPTH, 0, NULL); if (xUARTDMASemaphore == NULL) Error_Handler();
if (xSemaphoreCAN1 == NULL || xSemaphoreCAN2 == NULL) Error_Handler();
ledContextCAN1.led = &led_can1;
ledContextCAN1.semaphore = xSemaphoreCAN1;
ledContextCAN2.led = &led_can2;
ledContextCAN2.semaphore = xSemaphoreCAN2;
/* USER CODE END RTOS_SEMAPHORES */ /* USER CODE END RTOS_SEMAPHORES */
/* USER CODE BEGIN RTOS_TIMERS */ /* USER CODE BEGIN RTOS_TIMERS */
/* add timers, ... */
/* USER CODE END RTOS_TIMERS */ /* USER CODE END RTOS_TIMERS */
/* USER CODE BEGIN RTOS_QUEUES */ /* USER CODE BEGIN RTOS_QUEUES */
const osMessageQueueAttr_t can1_queue_attr = { xCAN1RxQueue = osMessageQueueNew(64, sizeof(CanMessage_t), NULL);
.name = "CAN1_Q", xCAN2RxQueue = osMessageQueueNew(64, sizeof(CanMessage_t), NULL);
.cb_mem = can1_queue_cb, xUARTQueue = osMessageQueueNew(128, sizeof(CanMessage_t), NULL);
.cb_size = sizeof(can1_queue_cb),
.mq_mem = can1_queue_mq,
.mq_size = sizeof(can1_queue_mq)
};
const osMessageQueueAttr_t can2_queue_attr = { if (xCAN1RxQueue == NULL || xCAN2RxQueue == NULL || xUARTQueue == NULL) Error_Handler();
.name = "CAN2_Q",
.cb_mem = can2_queue_cb,
.cb_size = sizeof(can2_queue_cb),
.mq_mem = can2_queue_mq,
.mq_size = sizeof(can2_queue_mq)
};
xCAN1RxQueue = osMessageQueueNew(CAN_QUEUE_DEPTH, sizeof(CanMessage_t), &can1_queue_attr);
xCAN2RxQueue = osMessageQueueNew(CAN_QUEUE_DEPTH, sizeof(CanMessage_t), &can2_queue_attr);
if (xCAN1RxQueue == NULL || xCAN2RxQueue == NULL) Error_Handler();
/* USER CODE END RTOS_QUEUES */ /* USER CODE END RTOS_QUEUES */
/* USER CODE BEGIN RTOS_THREADS */ /* USER CODE BEGIN RTOS_THREADS */
xCAN1rx = osThreadNew(vCANLoggerListen, &hcan1, &CAN1rxAttributes); xCAN1rxTask = osThreadNew(vCANListener, &hcan1, &CAN1rxAttributes);
xCAN2rx = osThreadNew(vCANLoggerListen, &hcan2, &CAN2rxAttributes); xCAN2rxTask = osThreadNew(vCANListener, &hcan2, &CAN2rxAttributes);
xLEDHeartbeatCAN1 = osThreadNew(vLEDHeartbeat, &ledContextCAN1, &LEDHeartbeatCAN1Attributes); xUartTask = osThreadNew(vUARTLogger, NULL, &UartLoggerAttributes);
xLEDHeartbeatCAN2 = osThreadNew(vLEDHeartbeat, &ledContextCAN2, &LEDHeartbeatCAN2Attributes); xCAN1LedTask = osThreadNew(vLEDHeartbeat, &led_can1, &LEDHeartbeatCAN1Attributes);
xCAN2LedTask = osThreadNew(vLEDHeartbeat, &led_can2, &LEDHeartbeatCAN2Attributes);
/* USER CODE END RTOS_THREADS */ /* USER CODE END RTOS_THREADS */
/* USER CODE BEGIN RTOS_EVENTS */ /* USER CODE BEGIN RTOS_EVENTS */
/* add events, ... */
/* USER CODE END RTOS_EVENTS */ /* USER CODE END RTOS_EVENTS */
/* USER CODE BEGIN 3 */
/* USER CODE END 3 */
/* Start scheduler */ /* Start scheduler */
DEBUG_PRINT("Starting RTOS init scheduler\r\n");
osKernelStart(); osKernelStart();
/* We should never get here as control is now taken by the scheduler */ /* We should never get here as control is now taken by the scheduler */
@@ -236,9 +209,10 @@ int main(void)
{ {
/* USER CODE END WHILE */ /* USER CODE END WHILE */
/* USER CODE BEGIN 4 */ /* USER CODE BEGIN 3 */
DEBUG_PRINT("ERROR: RTOS scheduler crashed!\r\n");
/* USER CODE END 3 */
} }
/* USER CODE END 4 */
} }
/** /**
@@ -319,7 +293,7 @@ static void MX_CAN1_Init(void)
Error_Handler(); Error_Handler();
} }
/* USER CODE BEGIN CAN1_Init 2 */ /* USER CODE BEGIN CAN1_Init 2 */
DEBUG_PRINT("CAN1 initialized!\r\n");
/* USER CODE END CAN1_Init 2 */ /* USER CODE END CAN1_Init 2 */
} }
@@ -356,7 +330,7 @@ static void MX_CAN2_Init(void)
Error_Handler(); Error_Handler();
} }
/* USER CODE BEGIN CAN2_Init 2 */ /* USER CODE BEGIN CAN2_Init 2 */
DEBUG_PRINT("CAN2 initialized!\r\n");
/* USER CODE END CAN2_Init 2 */ /* USER CODE END CAN2_Init 2 */
} }
@@ -383,20 +357,53 @@ static void MX_SDIO_SD_Init(void)
hsd.Init.BusWide = SDIO_BUS_WIDE_1B; hsd.Init.BusWide = SDIO_BUS_WIDE_1B;
hsd.Init.HardwareFlowControl = SDIO_HARDWARE_FLOW_CONTROL_DISABLE; hsd.Init.HardwareFlowControl = SDIO_HARDWARE_FLOW_CONTROL_DISABLE;
hsd.Init.ClockDiv = 0; hsd.Init.ClockDiv = 0;
if (HAL_SD_Init(&hsd) != HAL_OK) //if (HAL_SD_Init(&hsd) != HAL_OK)
{ //{
Error_Handler(); // Error_Handler();
} //}
if (HAL_SD_ConfigWideBusOperation(&hsd, SDIO_BUS_WIDE_4B) != HAL_OK) //if (HAL_SD_ConfigWideBusOperation(&hsd, SDIO_BUS_WIDE_4B) != HAL_OK)
{ //{
Error_Handler(); // Error_Handler();
} //}
/* USER CODE BEGIN SDIO_Init 2 */ /* USER CODE BEGIN SDIO_Init 2 */
//DEBUG_PRINT("SDIO initialized!\r\n");
/* USER CODE END SDIO_Init 2 */ /* USER CODE END SDIO_Init 2 */
} }
/**
* @brief USART1 Initialization Function
* @param None
* @retval None
*/
static void MX_USART1_UART_Init(void)
{
/* USER CODE BEGIN USART1_Init 0 */
/* USER CODE END USART1_Init 0 */
/* USER CODE BEGIN USART1_Init 1 */
/* USER CODE END USART1_Init 1 */
huart1.Instance = USART1;
huart1.Init.BaudRate = 115200;
huart1.Init.WordLength = UART_WORDLENGTH_8B;
huart1.Init.StopBits = UART_STOPBITS_1;
huart1.Init.Parity = UART_PARITY_NONE;
huart1.Init.Mode = UART_MODE_TX_RX;
huart1.Init.HwFlowCtl = UART_HWCONTROL_NONE;
huart1.Init.OverSampling = UART_OVERSAMPLING_16;
if (HAL_UART_Init(&huart1) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN USART1_Init 2 */
DEBUG_PRINT("USART1 initialized!\r\n");
/* USER CODE END USART1_Init 2 */
}
/** /**
* Enable DMA controller clock * Enable DMA controller clock
*/ */
@@ -413,7 +420,13 @@ static void MX_DMA_Init(void)
/* DMA2_Stream6_IRQn interrupt configuration */ /* DMA2_Stream6_IRQn interrupt configuration */
HAL_NVIC_SetPriority(DMA2_Stream6_IRQn, 5, 0); HAL_NVIC_SetPriority(DMA2_Stream6_IRQn, 5, 0);
HAL_NVIC_EnableIRQ(DMA2_Stream6_IRQn); HAL_NVIC_EnableIRQ(DMA2_Stream6_IRQn);
/* DMA2_Stream7_IRQn interrupt configuration */
HAL_NVIC_SetPriority(DMA2_Stream7_IRQn, 5, 0);
HAL_NVIC_EnableIRQ(DMA2_Stream7_IRQn);
/* USER CODE BEGIN MX_DMA_Init 1 */
DEBUG_PRINT("DMA initialized!\r\n");
/* USER CODE END MX_DMA_Init 1 */
} }
/** /**
@@ -436,7 +449,7 @@ static void MX_GPIO_Init(void)
__HAL_RCC_GPIOD_CLK_ENABLE(); __HAL_RCC_GPIOD_CLK_ENABLE();
/*Configure GPIO pin Output Level */ /*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOB, GPIO_PIN_3|GPIO_PIN_4|GPIO_PIN_5, GPIO_PIN_RESET); HAL_GPIO_WritePin(GPIOB, GPIO_PIN_5|GPIO_PIN_6|GPIO_PIN_7, GPIO_PIN_RESET);
/*Configure GPIO pins : PC13 PC14 PC15 PC0 /*Configure GPIO pins : PC13 PC14 PC15 PC0
PC1 PC2 PC3 PC4 PC1 PC2 PC3 PC4
@@ -456,41 +469,38 @@ static void MX_GPIO_Init(void)
/*Configure GPIO pins : PA0 PA1 PA2 PA3 /*Configure GPIO pins : PA0 PA1 PA2 PA3
PA4 PA5 PA6 PA7 PA4 PA5 PA6 PA7
PA8 PA9 PA10 PA11 PA8 PA11 PA12 PA15 */
PA12 PA13 PA14 PA15 */
GPIO_InitStruct.Pin = GPIO_PIN_0|GPIO_PIN_1|GPIO_PIN_2|GPIO_PIN_3 GPIO_InitStruct.Pin = GPIO_PIN_0|GPIO_PIN_1|GPIO_PIN_2|GPIO_PIN_3
|GPIO_PIN_4|GPIO_PIN_5|GPIO_PIN_6|GPIO_PIN_7 |GPIO_PIN_4|GPIO_PIN_5|GPIO_PIN_6|GPIO_PIN_7
|GPIO_PIN_8|GPIO_PIN_9|GPIO_PIN_10|GPIO_PIN_11 |GPIO_PIN_8|GPIO_PIN_11|GPIO_PIN_12|GPIO_PIN_15;
|GPIO_PIN_12|GPIO_PIN_13|GPIO_PIN_14|GPIO_PIN_15;
GPIO_InitStruct.Mode = GPIO_MODE_ANALOG; GPIO_InitStruct.Mode = GPIO_MODE_ANALOG;
GPIO_InitStruct.Pull = GPIO_NOPULL; GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOA, &GPIO_InitStruct); HAL_GPIO_Init(GPIOA, &GPIO_InitStruct);
/*Configure GPIO pins : PB0 PB1 PB2 PB10 /*Configure GPIO pins : PB0 PB1 PB2 PB10
PB11 PB14 PB15 PB6 PB11 PB14 PB15 PB3
PB7 */ PB4 */
GPIO_InitStruct.Pin = GPIO_PIN_0|GPIO_PIN_1|GPIO_PIN_2|GPIO_PIN_10 GPIO_InitStruct.Pin = GPIO_PIN_0|GPIO_PIN_1|GPIO_PIN_2|GPIO_PIN_10
|GPIO_PIN_11|GPIO_PIN_14|GPIO_PIN_15|GPIO_PIN_6 |GPIO_PIN_11|GPIO_PIN_14|GPIO_PIN_15|GPIO_PIN_3
|GPIO_PIN_7; |GPIO_PIN_4;
GPIO_InitStruct.Mode = GPIO_MODE_ANALOG; GPIO_InitStruct.Mode = GPIO_MODE_ANALOG;
GPIO_InitStruct.Pull = GPIO_NOPULL; GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct); HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : PB3 PB4 PB5 */ /*Configure GPIO pins : PB5 PB6 PB7 */
GPIO_InitStruct.Pin = GPIO_PIN_3|GPIO_PIN_4|GPIO_PIN_5; GPIO_InitStruct.Pin = GPIO_PIN_5|GPIO_PIN_6|GPIO_PIN_7;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP; GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL; GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW; GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct); HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */ /* USER CODE BEGIN MX_GPIO_Init_2 */
DEBUG_PRINT("GPIO initialized!\r\n");
/* USER CODE END MX_GPIO_Init_2 */ /* USER CODE END MX_GPIO_Init_2 */
} }
/* USER CODE BEGIN 5 */ /* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/* USER CODE END 5 */
/** /**
* @brief Period elapsed callback in non blocking mode * @brief Period elapsed callback in non blocking mode
@@ -520,6 +530,8 @@ void HAL_TIM_PeriodElapsedCallback(TIM_HandleTypeDef *htim)
*/ */
void Error_Handler(void) void Error_Handler(void)
{ {
DEBUG_PRINT("ERROR: entering error handler\r\n");
/* USER CODE BEGIN Error_Handler_Debug */ /* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */ /* User can add his own implementation to report the HAL error return state */
__disable_irq(); __disable_irq();
+89
View File
@@ -26,6 +26,8 @@ extern DMA_HandleTypeDef hdma_sdio_rx;
extern DMA_HandleTypeDef hdma_sdio_tx; extern DMA_HandleTypeDef hdma_sdio_tx;
extern DMA_HandleTypeDef hdma_usart1_tx;
/* Private typedef -----------------------------------------------------------*/ /* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN TD */ /* USER CODE BEGIN TD */
@@ -342,6 +344,93 @@ void HAL_SD_MspDeInit(SD_HandleTypeDef* hsd)
} }
/**
* @brief UART MSP Initialization
* This function configures the hardware resources used in this example
* @param huart: UART handle pointer
* @retval None
*/
void HAL_UART_MspInit(UART_HandleTypeDef* huart)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
if(huart->Instance==USART1)
{
/* USER CODE BEGIN USART1_MspInit 0 */
/* USER CODE END USART1_MspInit 0 */
/* Peripheral clock enable */
__HAL_RCC_USART1_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
/**USART1 GPIO Configuration
PA9 ------> USART1_TX
PA10 ------> USART1_RX
*/
GPIO_InitStruct.Pin = GPIO_PIN_9|GPIO_PIN_10;
GPIO_InitStruct.Mode = GPIO_MODE_AF_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_VERY_HIGH;
GPIO_InitStruct.Alternate = GPIO_AF7_USART1;
HAL_GPIO_Init(GPIOA, &GPIO_InitStruct);
/* USART1 DMA Init */
/* USART1_TX Init */
hdma_usart1_tx.Instance = DMA2_Stream7;
hdma_usart1_tx.Init.Channel = DMA_CHANNEL_4;
hdma_usart1_tx.Init.Direction = DMA_MEMORY_TO_PERIPH;
hdma_usart1_tx.Init.PeriphInc = DMA_PINC_DISABLE;
hdma_usart1_tx.Init.MemInc = DMA_MINC_ENABLE;
hdma_usart1_tx.Init.PeriphDataAlignment = DMA_PDATAALIGN_BYTE;
hdma_usart1_tx.Init.MemDataAlignment = DMA_MDATAALIGN_BYTE;
hdma_usart1_tx.Init.Mode = DMA_NORMAL;
hdma_usart1_tx.Init.Priority = DMA_PRIORITY_LOW;
hdma_usart1_tx.Init.FIFOMode = DMA_FIFOMODE_DISABLE;
if (HAL_DMA_Init(&hdma_usart1_tx) != HAL_OK)
{
Error_Handler();
}
__HAL_LINKDMA(huart,hdmatx,hdma_usart1_tx);
/* USER CODE BEGIN USART1_MspInit 1 */
/* USER CODE END USART1_MspInit 1 */
}
}
/**
* @brief UART MSP De-Initialization
* This function freeze the hardware resources used in this example
* @param huart: UART handle pointer
* @retval None
*/
void HAL_UART_MspDeInit(UART_HandleTypeDef* huart)
{
if(huart->Instance==USART1)
{
/* USER CODE BEGIN USART1_MspDeInit 0 */
/* USER CODE END USART1_MspDeInit 0 */
/* Peripheral clock disable */
__HAL_RCC_USART1_CLK_DISABLE();
/**USART1 GPIO Configuration
PA9 ------> USART1_TX
PA10 ------> USART1_RX
*/
HAL_GPIO_DeInit(GPIOA, GPIO_PIN_9|GPIO_PIN_10);
/* USART1 DMA DeInit */
HAL_DMA_DeInit(huart->hdmatx);
/* USER CODE BEGIN USART1_MspDeInit 1 */
/* USER CODE END USART1_MspDeInit 1 */
}
}
/* USER CODE BEGIN 1 */ /* USER CODE BEGIN 1 */
/* USER CODE END 1 */ /* USER CODE END 1 */
+15
View File
@@ -58,6 +58,7 @@
extern DMA_HandleTypeDef hdma_sdio_rx; extern DMA_HandleTypeDef hdma_sdio_rx;
extern DMA_HandleTypeDef hdma_sdio_tx; extern DMA_HandleTypeDef hdma_sdio_tx;
extern SD_HandleTypeDef hsd; extern SD_HandleTypeDef hsd;
extern DMA_HandleTypeDef hdma_usart1_tx;
extern TIM_HandleTypeDef htim6; extern TIM_HandleTypeDef htim6;
/* USER CODE BEGIN EV */ /* USER CODE BEGIN EV */
@@ -218,6 +219,20 @@ void DMA2_Stream6_IRQHandler(void)
/* USER CODE END DMA2_Stream6_IRQn 1 */ /* USER CODE END DMA2_Stream6_IRQn 1 */
} }
/**
* @brief This function handles DMA2 stream7 global interrupt.
*/
void DMA2_Stream7_IRQHandler(void)
{
/* USER CODE BEGIN DMA2_Stream7_IRQn 0 */
/* USER CODE END DMA2_Stream7_IRQn 0 */
HAL_DMA_IRQHandler(&hdma_usart1_tx);
/* USER CODE BEGIN DMA2_Stream7_IRQn 1 */
/* USER CODE END DMA2_Stream7_IRQn 1 */
}
/* USER CODE BEGIN 1 */ /* USER CODE BEGIN 1 */
/* USER CODE END 1 */ /* USER CODE END 1 */
@@ -0,0 +1,909 @@
/**
******************************************************************************
* @file stm32f4xx_hal_uart.h
* @author MCD Application Team
* @brief Header file of UART HAL module.
******************************************************************************
* @attention
*
* Copyright (c) 2016 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* Define to prevent recursive inclusion -------------------------------------*/
#ifndef __STM32F4xx_HAL_UART_H
#define __STM32F4xx_HAL_UART_H
#ifdef __cplusplus
extern "C" {
#endif
/* Includes ------------------------------------------------------------------*/
#include "stm32f4xx_hal_def.h"
/** @addtogroup STM32F4xx_HAL_Driver
* @{
*/
/** @addtogroup UART
* @{
*/
/* Exported types ------------------------------------------------------------*/
/** @defgroup UART_Exported_Types UART Exported Types
* @{
*/
/**
* @brief UART Init Structure definition
*/
typedef struct
{
uint32_t BaudRate; /*!< This member configures the UART communication baud rate.
The baud rate is computed using the following formula:
- IntegerDivider = ((PCLKx) / (8 * (OVR8+1) * (huart->Init.BaudRate)))
- FractionalDivider = ((IntegerDivider - ((uint32_t) IntegerDivider)) * 8 * (OVR8+1)) + 0.5
Where OVR8 is the "oversampling by 8 mode" configuration bit in the CR1 register. */
uint32_t WordLength; /*!< Specifies the number of data bits transmitted or received in a frame.
This parameter can be a value of @ref UART_Word_Length */
uint32_t StopBits; /*!< Specifies the number of stop bits transmitted.
This parameter can be a value of @ref UART_Stop_Bits */
uint32_t Parity; /*!< Specifies the parity mode.
This parameter can be a value of @ref UART_Parity
@note When parity is enabled, the computed parity is inserted
at the MSB position of the transmitted data (9th bit when
the word length is set to 9 data bits; 8th bit when the
word length is set to 8 data bits). */
uint32_t Mode; /*!< Specifies whether the Receive or Transmit mode is enabled or disabled.
This parameter can be a value of @ref UART_Mode */
uint32_t HwFlowCtl; /*!< Specifies whether the hardware flow control mode is enabled or disabled.
This parameter can be a value of @ref UART_Hardware_Flow_Control */
uint32_t OverSampling; /*!< Specifies whether the Over sampling 8 is enabled or disabled, to achieve higher speed (up to fPCLK/8).
This parameter can be a value of @ref UART_Over_Sampling */
} UART_InitTypeDef;
/**
* @brief HAL UART State structures definition
* @note HAL UART State value is a combination of 2 different substates: gState and RxState.
* - gState contains UART state information related to global Handle management
* and also information related to Tx operations.
* gState value coding follow below described bitmap :
* b7-b6 Error information
* 00 : No Error
* 01 : (Not Used)
* 10 : Timeout
* 11 : Error
* b5 Peripheral initialization status
* 0 : Reset (Peripheral not initialized)
* 1 : Init done (Peripheral initialized. HAL UART Init function already called)
* b4-b3 (not used)
* xx : Should be set to 00
* b2 Intrinsic process state
* 0 : Ready
* 1 : Busy (Peripheral busy with some configuration or internal operations)
* b1 (not used)
* x : Should be set to 0
* b0 Tx state
* 0 : Ready (no Tx operation ongoing)
* 1 : Busy (Tx operation ongoing)
* - RxState contains information related to Rx operations.
* RxState value coding follow below described bitmap :
* b7-b6 (not used)
* xx : Should be set to 00
* b5 Peripheral initialization status
* 0 : Reset (Peripheral not initialized)
* 1 : Init done (Peripheral initialized)
* b4-b2 (not used)
* xxx : Should be set to 000
* b1 Rx state
* 0 : Ready (no Rx operation ongoing)
* 1 : Busy (Rx operation ongoing)
* b0 (not used)
* x : Should be set to 0.
*/
typedef enum
{
HAL_UART_STATE_RESET = 0x00U, /*!< Peripheral is not yet Initialized
Value is allowed for gState and RxState */
HAL_UART_STATE_READY = 0x20U, /*!< Peripheral Initialized and ready for use
Value is allowed for gState and RxState */
HAL_UART_STATE_BUSY = 0x24U, /*!< an internal process is ongoing
Value is allowed for gState only */
HAL_UART_STATE_BUSY_TX = 0x21U, /*!< Data Transmission process is ongoing
Value is allowed for gState only */
HAL_UART_STATE_BUSY_RX = 0x22U, /*!< Data Reception process is ongoing
Value is allowed for RxState only */
HAL_UART_STATE_BUSY_TX_RX = 0x23U, /*!< Data Transmission and Reception process is ongoing
Not to be used for neither gState nor RxState.
Value is result of combination (Or) between gState and RxState values */
HAL_UART_STATE_TIMEOUT = 0xA0U, /*!< Timeout state
Value is allowed for gState only */
HAL_UART_STATE_ERROR = 0xE0U /*!< Error
Value is allowed for gState only */
} HAL_UART_StateTypeDef;
/**
* @brief HAL UART Reception type definition
* @note HAL UART Reception type value aims to identify which type of Reception is ongoing.
* This parameter can be a value of @ref UART_Reception_Type_Values :
* HAL_UART_RECEPTION_STANDARD = 0x00U,
* HAL_UART_RECEPTION_TOIDLE = 0x01U,
*/
typedef uint32_t HAL_UART_RxTypeTypeDef;
/**
* @brief HAL UART Rx Event type definition
* @note HAL UART Rx Event type value aims to identify which type of Event has occurred
* leading to call of the RxEvent callback.
* This parameter can be a value of @ref UART_RxEvent_Type_Values :
* HAL_UART_RXEVENT_TC = 0x00U,
* HAL_UART_RXEVENT_HT = 0x01U,
* HAL_UART_RXEVENT_IDLE = 0x02U,
*/
typedef uint32_t HAL_UART_RxEventTypeTypeDef;
/**
* @brief UART handle Structure definition
*/
typedef struct __UART_HandleTypeDef
{
USART_TypeDef *Instance; /*!< UART registers base address */
UART_InitTypeDef Init; /*!< UART communication parameters */
const uint8_t *pTxBuffPtr; /*!< Pointer to UART Tx transfer Buffer */
uint16_t TxXferSize; /*!< UART Tx Transfer size */
__IO uint16_t TxXferCount; /*!< UART Tx Transfer Counter */
uint8_t *pRxBuffPtr; /*!< Pointer to UART Rx transfer Buffer */
uint16_t RxXferSize; /*!< UART Rx Transfer size */
__IO uint16_t RxXferCount; /*!< UART Rx Transfer Counter */
__IO HAL_UART_RxTypeTypeDef ReceptionType; /*!< Type of ongoing reception */
__IO HAL_UART_RxEventTypeTypeDef RxEventType; /*!< Type of Rx Event */
DMA_HandleTypeDef *hdmatx; /*!< UART Tx DMA Handle parameters */
DMA_HandleTypeDef *hdmarx; /*!< UART Rx DMA Handle parameters */
HAL_LockTypeDef Lock; /*!< Locking object */
__IO HAL_UART_StateTypeDef gState; /*!< UART state information related to global Handle management
and also related to Tx operations.
This parameter can be a value of @ref HAL_UART_StateTypeDef */
__IO HAL_UART_StateTypeDef RxState; /*!< UART state information related to Rx operations.
This parameter can be a value of @ref HAL_UART_StateTypeDef */
__IO uint32_t ErrorCode; /*!< UART Error code */
#if (USE_HAL_UART_REGISTER_CALLBACKS == 1)
void (* TxHalfCpltCallback)(struct __UART_HandleTypeDef *huart); /*!< UART Tx Half Complete Callback */
void (* TxCpltCallback)(struct __UART_HandleTypeDef *huart); /*!< UART Tx Complete Callback */
void (* RxHalfCpltCallback)(struct __UART_HandleTypeDef *huart); /*!< UART Rx Half Complete Callback */
void (* RxCpltCallback)(struct __UART_HandleTypeDef *huart); /*!< UART Rx Complete Callback */
void (* ErrorCallback)(struct __UART_HandleTypeDef *huart); /*!< UART Error Callback */
void (* AbortCpltCallback)(struct __UART_HandleTypeDef *huart); /*!< UART Abort Complete Callback */
void (* AbortTransmitCpltCallback)(struct __UART_HandleTypeDef *huart); /*!< UART Abort Transmit Complete Callback */
void (* AbortReceiveCpltCallback)(struct __UART_HandleTypeDef *huart); /*!< UART Abort Receive Complete Callback */
void (* WakeupCallback)(struct __UART_HandleTypeDef *huart); /*!< UART Wakeup Callback */
void (* RxEventCallback)(struct __UART_HandleTypeDef *huart, uint16_t Pos); /*!< UART Reception Event Callback */
void (* MspInitCallback)(struct __UART_HandleTypeDef *huart); /*!< UART Msp Init callback */
void (* MspDeInitCallback)(struct __UART_HandleTypeDef *huart); /*!< UART Msp DeInit callback */
#endif /* USE_HAL_UART_REGISTER_CALLBACKS */
} UART_HandleTypeDef;
#if (USE_HAL_UART_REGISTER_CALLBACKS == 1)
/**
* @brief HAL UART Callback ID enumeration definition
*/
typedef enum
{
HAL_UART_TX_HALFCOMPLETE_CB_ID = 0x00U, /*!< UART Tx Half Complete Callback ID */
HAL_UART_TX_COMPLETE_CB_ID = 0x01U, /*!< UART Tx Complete Callback ID */
HAL_UART_RX_HALFCOMPLETE_CB_ID = 0x02U, /*!< UART Rx Half Complete Callback ID */
HAL_UART_RX_COMPLETE_CB_ID = 0x03U, /*!< UART Rx Complete Callback ID */
HAL_UART_ERROR_CB_ID = 0x04U, /*!< UART Error Callback ID */
HAL_UART_ABORT_COMPLETE_CB_ID = 0x05U, /*!< UART Abort Complete Callback ID */
HAL_UART_ABORT_TRANSMIT_COMPLETE_CB_ID = 0x06U, /*!< UART Abort Transmit Complete Callback ID */
HAL_UART_ABORT_RECEIVE_COMPLETE_CB_ID = 0x07U, /*!< UART Abort Receive Complete Callback ID */
HAL_UART_WAKEUP_CB_ID = 0x08U, /*!< UART Wakeup Callback ID */
HAL_UART_MSPINIT_CB_ID = 0x0BU, /*!< UART MspInit callback ID */
HAL_UART_MSPDEINIT_CB_ID = 0x0CU /*!< UART MspDeInit callback ID */
} HAL_UART_CallbackIDTypeDef;
/**
* @brief HAL UART Callback pointer definition
*/
typedef void (*pUART_CallbackTypeDef)(UART_HandleTypeDef *huart); /*!< pointer to an UART callback function */
typedef void (*pUART_RxEventCallbackTypeDef)(struct __UART_HandleTypeDef *huart, uint16_t Pos); /*!< pointer to a UART Rx Event specific callback function */
#endif /* USE_HAL_UART_REGISTER_CALLBACKS */
/**
* @}
*/
/* Exported constants --------------------------------------------------------*/
/** @defgroup UART_Exported_Constants UART Exported Constants
* @{
*/
/** @defgroup UART_Error_Code UART Error Code
* @{
*/
#define HAL_UART_ERROR_NONE 0x00000000U /*!< No error */
#define HAL_UART_ERROR_PE 0x00000001U /*!< Parity error */
#define HAL_UART_ERROR_NE 0x00000002U /*!< Noise error */
#define HAL_UART_ERROR_FE 0x00000004U /*!< Frame error */
#define HAL_UART_ERROR_ORE 0x00000008U /*!< Overrun error */
#define HAL_UART_ERROR_DMA 0x00000010U /*!< DMA transfer error */
#if (USE_HAL_UART_REGISTER_CALLBACKS == 1)
#define HAL_UART_ERROR_INVALID_CALLBACK 0x00000020U /*!< Invalid Callback error */
#endif /* USE_HAL_UART_REGISTER_CALLBACKS */
/**
* @}
*/
/** @defgroup UART_Word_Length UART Word Length
* @{
*/
#define UART_WORDLENGTH_8B 0x00000000U
#define UART_WORDLENGTH_9B ((uint32_t)USART_CR1_M)
/**
* @}
*/
/** @defgroup UART_Stop_Bits UART Number of Stop Bits
* @{
*/
#define UART_STOPBITS_1 0x00000000U
#define UART_STOPBITS_2 ((uint32_t)USART_CR2_STOP_1)
/**
* @}
*/
/** @defgroup UART_Parity UART Parity
* @{
*/
#define UART_PARITY_NONE 0x00000000U
#define UART_PARITY_EVEN ((uint32_t)USART_CR1_PCE)
#define UART_PARITY_ODD ((uint32_t)(USART_CR1_PCE | USART_CR1_PS))
/**
* @}
*/
/** @defgroup UART_Hardware_Flow_Control UART Hardware Flow Control
* @{
*/
#define UART_HWCONTROL_NONE 0x00000000U
#define UART_HWCONTROL_RTS ((uint32_t)USART_CR3_RTSE)
#define UART_HWCONTROL_CTS ((uint32_t)USART_CR3_CTSE)
#define UART_HWCONTROL_RTS_CTS ((uint32_t)(USART_CR3_RTSE | USART_CR3_CTSE))
/**
* @}
*/
/** @defgroup UART_Mode UART Transfer Mode
* @{
*/
#define UART_MODE_RX ((uint32_t)USART_CR1_RE)
#define UART_MODE_TX ((uint32_t)USART_CR1_TE)
#define UART_MODE_TX_RX ((uint32_t)(USART_CR1_TE | USART_CR1_RE))
/**
* @}
*/
/** @defgroup UART_State UART State
* @{
*/
#define UART_STATE_DISABLE 0x00000000U
#define UART_STATE_ENABLE ((uint32_t)USART_CR1_UE)
/**
* @}
*/
/** @defgroup UART_Over_Sampling UART Over Sampling
* @{
*/
#define UART_OVERSAMPLING_16 0x00000000U
#define UART_OVERSAMPLING_8 ((uint32_t)USART_CR1_OVER8)
/**
* @}
*/
/** @defgroup UART_LIN_Break_Detection_Length UART LIN Break Detection Length
* @{
*/
#define UART_LINBREAKDETECTLENGTH_10B 0x00000000U
#define UART_LINBREAKDETECTLENGTH_11B ((uint32_t)USART_CR2_LBDL)
/**
* @}
*/
/** @defgroup UART_WakeUp_functions UART Wakeup Functions
* @{
*/
#define UART_WAKEUPMETHOD_IDLELINE 0x00000000U
#define UART_WAKEUPMETHOD_ADDRESSMARK ((uint32_t)USART_CR1_WAKE)
/**
* @}
*/
/** @defgroup UART_Flags UART FLags
* Elements values convention: 0xXXXX
* - 0xXXXX : Flag mask in the SR register
* @{
*/
#define UART_FLAG_CTS ((uint32_t)USART_SR_CTS)
#define UART_FLAG_LBD ((uint32_t)USART_SR_LBD)
#define UART_FLAG_TXE ((uint32_t)USART_SR_TXE)
#define UART_FLAG_TC ((uint32_t)USART_SR_TC)
#define UART_FLAG_RXNE ((uint32_t)USART_SR_RXNE)
#define UART_FLAG_IDLE ((uint32_t)USART_SR_IDLE)
#define UART_FLAG_ORE ((uint32_t)USART_SR_ORE)
#define UART_FLAG_NE ((uint32_t)USART_SR_NE)
#define UART_FLAG_FE ((uint32_t)USART_SR_FE)
#define UART_FLAG_PE ((uint32_t)USART_SR_PE)
/**
* @}
*/
/** @defgroup UART_Interrupt_definition UART Interrupt Definitions
* Elements values convention: 0xY000XXXX
* - XXXX : Interrupt mask (16 bits) in the Y register
* - Y : Interrupt source register (2bits)
* - 0001: CR1 register
* - 0010: CR2 register
* - 0011: CR3 register
* @{
*/
#define UART_IT_PE ((uint32_t)(UART_CR1_REG_INDEX << 28U | USART_CR1_PEIE))
#define UART_IT_TXE ((uint32_t)(UART_CR1_REG_INDEX << 28U | USART_CR1_TXEIE))
#define UART_IT_TC ((uint32_t)(UART_CR1_REG_INDEX << 28U | USART_CR1_TCIE))
#define UART_IT_RXNE ((uint32_t)(UART_CR1_REG_INDEX << 28U | USART_CR1_RXNEIE))
#define UART_IT_IDLE ((uint32_t)(UART_CR1_REG_INDEX << 28U | USART_CR1_IDLEIE))
#define UART_IT_LBD ((uint32_t)(UART_CR2_REG_INDEX << 28U | USART_CR2_LBDIE))
#define UART_IT_CTS ((uint32_t)(UART_CR3_REG_INDEX << 28U | USART_CR3_CTSIE))
#define UART_IT_ERR ((uint32_t)(UART_CR3_REG_INDEX << 28U | USART_CR3_EIE))
/**
* @}
*/
/** @defgroup UART_Reception_Type_Values UART Reception type values
* @{
*/
#define HAL_UART_RECEPTION_STANDARD (0x00000000U) /*!< Standard reception */
#define HAL_UART_RECEPTION_TOIDLE (0x00000001U) /*!< Reception till completion or IDLE event */
/**
* @}
*/
/** @defgroup UART_RxEvent_Type_Values UART RxEvent type values
* @{
*/
#define HAL_UART_RXEVENT_TC (0x00000000U) /*!< RxEvent linked to Transfer Complete event */
#define HAL_UART_RXEVENT_HT (0x00000001U) /*!< RxEvent linked to Half Transfer event */
#define HAL_UART_RXEVENT_IDLE (0x00000002U)
/**
* @}
*/
/**
* @}
*/
/* Exported macro ------------------------------------------------------------*/
/** @defgroup UART_Exported_Macros UART Exported Macros
* @{
*/
/** @brief Reset UART handle gstate & RxState
* @param __HANDLE__ specifies the UART Handle.
* UART Handle selects the USARTx or UARTy peripheral
* (USART,UART availability and x,y values depending on device).
* @retval None
*/
#if (USE_HAL_UART_REGISTER_CALLBACKS == 1)
#define __HAL_UART_RESET_HANDLE_STATE(__HANDLE__) do{ \
(__HANDLE__)->gState = HAL_UART_STATE_RESET; \
(__HANDLE__)->RxState = HAL_UART_STATE_RESET; \
(__HANDLE__)->MspInitCallback = NULL; \
(__HANDLE__)->MspDeInitCallback = NULL; \
} while(0U)
#else
#define __HAL_UART_RESET_HANDLE_STATE(__HANDLE__) do{ \
(__HANDLE__)->gState = HAL_UART_STATE_RESET; \
(__HANDLE__)->RxState = HAL_UART_STATE_RESET; \
} while(0U)
#endif /*USE_HAL_UART_REGISTER_CALLBACKS */
/** @brief Flushes the UART DR register
* @param __HANDLE__ specifies the UART Handle.
* UART Handle selects the USARTx or UARTy peripheral
* (USART,UART availability and x,y values depending on device).
*/
#define __HAL_UART_FLUSH_DRREGISTER(__HANDLE__) ((__HANDLE__)->Instance->DR)
/** @brief Checks whether the specified UART flag is set or not.
* @param __HANDLE__ specifies the UART Handle.
* UART Handle selects the USARTx or UARTy peripheral
* (USART,UART availability and x,y values depending on device).
* @param __FLAG__ specifies the flag to check.
* This parameter can be one of the following values:
* @arg UART_FLAG_CTS: CTS Change flag (not available for UART4 and UART5)
* @arg UART_FLAG_LBD: LIN Break detection flag
* @arg UART_FLAG_TXE: Transmit data register empty flag
* @arg UART_FLAG_TC: Transmission Complete flag
* @arg UART_FLAG_RXNE: Receive data register not empty flag
* @arg UART_FLAG_IDLE: Idle Line detection flag
* @arg UART_FLAG_ORE: Overrun Error flag
* @arg UART_FLAG_NE: Noise Error flag
* @arg UART_FLAG_FE: Framing Error flag
* @arg UART_FLAG_PE: Parity Error flag
* @retval The new state of __FLAG__ (TRUE or FALSE).
*/
#define __HAL_UART_GET_FLAG(__HANDLE__, __FLAG__) (((__HANDLE__)->Instance->SR & (__FLAG__)) == (__FLAG__))
/** @brief Clears the specified UART pending flag.
* @param __HANDLE__ specifies the UART Handle.
* UART Handle selects the USARTx or UARTy peripheral
* (USART,UART availability and x,y values depending on device).
* @param __FLAG__ specifies the flag to check.
* This parameter can be any combination of the following values:
* @arg UART_FLAG_CTS: CTS Change flag (not available for UART4 and UART5).
* @arg UART_FLAG_LBD: LIN Break detection flag.
* @arg UART_FLAG_TC: Transmission Complete flag.
* @arg UART_FLAG_RXNE: Receive data register not empty flag.
*
* @note PE (Parity error), FE (Framing error), NE (Noise error), ORE (Overrun
* error) and IDLE (Idle line detected) flags are cleared by software
* sequence: a read operation to USART_SR register followed by a read
* operation to USART_DR register.
* @note RXNE flag can be also cleared by a read to the USART_DR register.
* @note TC flag can be also cleared by software sequence: a read operation to
* USART_SR register followed by a write operation to USART_DR register.
* @note TXE flag is cleared only by a write to the USART_DR register.
*
* @retval None
*/
#define __HAL_UART_CLEAR_FLAG(__HANDLE__, __FLAG__) ((__HANDLE__)->Instance->SR = ~(__FLAG__))
/** @brief Clears the UART PE pending flag.
* @param __HANDLE__ specifies the UART Handle.
* UART Handle selects the USARTx or UARTy peripheral
* (USART,UART availability and x,y values depending on device).
* @retval None
*/
#define __HAL_UART_CLEAR_PEFLAG(__HANDLE__) \
do{ \
__IO uint32_t tmpreg = 0x00U; \
tmpreg = (__HANDLE__)->Instance->SR; \
tmpreg = (__HANDLE__)->Instance->DR; \
UNUSED(tmpreg); \
} while(0U)
/** @brief Clears the UART FE pending flag.
* @param __HANDLE__ specifies the UART Handle.
* UART Handle selects the USARTx or UARTy peripheral
* (USART,UART availability and x,y values depending on device).
* @retval None
*/
#define __HAL_UART_CLEAR_FEFLAG(__HANDLE__) __HAL_UART_CLEAR_PEFLAG(__HANDLE__)
/** @brief Clears the UART NE pending flag.
* @param __HANDLE__ specifies the UART Handle.
* UART Handle selects the USARTx or UARTy peripheral
* (USART,UART availability and x,y values depending on device).
* @retval None
*/
#define __HAL_UART_CLEAR_NEFLAG(__HANDLE__) __HAL_UART_CLEAR_PEFLAG(__HANDLE__)
/** @brief Clears the UART ORE pending flag.
* @param __HANDLE__ specifies the UART Handle.
* UART Handle selects the USARTx or UARTy peripheral
* (USART,UART availability and x,y values depending on device).
* @retval None
*/
#define __HAL_UART_CLEAR_OREFLAG(__HANDLE__) __HAL_UART_CLEAR_PEFLAG(__HANDLE__)
/** @brief Clears the UART IDLE pending flag.
* @param __HANDLE__ specifies the UART Handle.
* UART Handle selects the USARTx or UARTy peripheral
* (USART,UART availability and x,y values depending on device).
* @retval None
*/
#define __HAL_UART_CLEAR_IDLEFLAG(__HANDLE__) __HAL_UART_CLEAR_PEFLAG(__HANDLE__)
/** @brief Enable the specified UART interrupt.
* @param __HANDLE__ specifies the UART Handle.
* UART Handle selects the USARTx or UARTy peripheral
* (USART,UART availability and x,y values depending on device).
* @param __INTERRUPT__ specifies the UART interrupt source to enable.
* This parameter can be one of the following values:
* @arg UART_IT_CTS: CTS change interrupt
* @arg UART_IT_LBD: LIN Break detection interrupt
* @arg UART_IT_TXE: Transmit Data Register empty interrupt
* @arg UART_IT_TC: Transmission complete interrupt
* @arg UART_IT_RXNE: Receive Data register not empty interrupt
* @arg UART_IT_IDLE: Idle line detection interrupt
* @arg UART_IT_PE: Parity Error interrupt
* @arg UART_IT_ERR: Error interrupt(Frame error, noise error, overrun error)
* @retval None
*/
#define __HAL_UART_ENABLE_IT(__HANDLE__, __INTERRUPT__) ((((__INTERRUPT__) >> 28U) == UART_CR1_REG_INDEX)? ((__HANDLE__)->Instance->CR1 |= ((__INTERRUPT__) & UART_IT_MASK)): \
(((__INTERRUPT__) >> 28U) == UART_CR2_REG_INDEX)? ((__HANDLE__)->Instance->CR2 |= ((__INTERRUPT__) & UART_IT_MASK)): \
((__HANDLE__)->Instance->CR3 |= ((__INTERRUPT__) & UART_IT_MASK)))
/** @brief Disable the specified UART interrupt.
* @param __HANDLE__ specifies the UART Handle.
* UART Handle selects the USARTx or UARTy peripheral
* (USART,UART availability and x,y values depending on device).
* @param __INTERRUPT__ specifies the UART interrupt source to disable.
* This parameter can be one of the following values:
* @arg UART_IT_CTS: CTS change interrupt
* @arg UART_IT_LBD: LIN Break detection interrupt
* @arg UART_IT_TXE: Transmit Data Register empty interrupt
* @arg UART_IT_TC: Transmission complete interrupt
* @arg UART_IT_RXNE: Receive Data register not empty interrupt
* @arg UART_IT_IDLE: Idle line detection interrupt
* @arg UART_IT_PE: Parity Error interrupt
* @arg UART_IT_ERR: Error interrupt(Frame error, noise error, overrun error)
* @retval None
*/
#define __HAL_UART_DISABLE_IT(__HANDLE__, __INTERRUPT__) ((((__INTERRUPT__) >> 28U) == UART_CR1_REG_INDEX)? ((__HANDLE__)->Instance->CR1 &= ~((__INTERRUPT__) & UART_IT_MASK)): \
(((__INTERRUPT__) >> 28U) == UART_CR2_REG_INDEX)? ((__HANDLE__)->Instance->CR2 &= ~((__INTERRUPT__) & UART_IT_MASK)): \
((__HANDLE__)->Instance->CR3 &= ~ ((__INTERRUPT__) & UART_IT_MASK)))
/** @brief Checks whether the specified UART interrupt source is enabled or not.
* @param __HANDLE__ specifies the UART Handle.
* UART Handle selects the USARTx or UARTy peripheral
* (USART,UART availability and x,y values depending on device).
* @param __IT__ specifies the UART interrupt source to check.
* This parameter can be one of the following values:
* @arg UART_IT_CTS: CTS change interrupt (not available for UART4 and UART5)
* @arg UART_IT_LBD: LIN Break detection interrupt
* @arg UART_IT_TXE: Transmit Data Register empty interrupt
* @arg UART_IT_TC: Transmission complete interrupt
* @arg UART_IT_RXNE: Receive Data register not empty interrupt
* @arg UART_IT_IDLE: Idle line detection interrupt
* @arg UART_IT_ERR: Error interrupt
* @retval The new state of __IT__ (TRUE or FALSE).
*/
#define __HAL_UART_GET_IT_SOURCE(__HANDLE__, __IT__) (((((__IT__) >> 28U) == UART_CR1_REG_INDEX)? (__HANDLE__)->Instance->CR1:(((((uint32_t)(__IT__)) >> 28U) == UART_CR2_REG_INDEX)? \
(__HANDLE__)->Instance->CR2 : (__HANDLE__)->Instance->CR3)) & (((uint32_t)(__IT__)) & UART_IT_MASK))
/** @brief Enable CTS flow control
* @note This macro allows to enable CTS hardware flow control for a given UART instance,
* without need to call HAL_UART_Init() function.
* As involving direct access to UART registers, usage of this macro should be fully endorsed by user.
* @note As macro is expected to be used for modifying CTS Hw flow control feature activation, without need
* for USART instance Deinit/Init, following conditions for macro call should be fulfilled :
* - UART instance should have already been initialised (through call of HAL_UART_Init() )
* - macro could only be called when corresponding UART instance is disabled (i.e __HAL_UART_DISABLE(__HANDLE__))
* and should be followed by an Enable macro (i.e __HAL_UART_ENABLE(__HANDLE__)).
* @param __HANDLE__ specifies the UART Handle.
* The Handle Instance can be any USARTx (supporting the HW Flow control feature).
* It is used to select the USART peripheral (USART availability and x value depending on device).
* @retval None
*/
#define __HAL_UART_HWCONTROL_CTS_ENABLE(__HANDLE__) \
do{ \
ATOMIC_SET_BIT((__HANDLE__)->Instance->CR3, USART_CR3_CTSE); \
(__HANDLE__)->Init.HwFlowCtl |= USART_CR3_CTSE; \
} while(0U)
/** @brief Disable CTS flow control
* @note This macro allows to disable CTS hardware flow control for a given UART instance,
* without need to call HAL_UART_Init() function.
* As involving direct access to UART registers, usage of this macro should be fully endorsed by user.
* @note As macro is expected to be used for modifying CTS Hw flow control feature activation, without need
* for USART instance Deinit/Init, following conditions for macro call should be fulfilled :
* - UART instance should have already been initialised (through call of HAL_UART_Init() )
* - macro could only be called when corresponding UART instance is disabled (i.e __HAL_UART_DISABLE(__HANDLE__))
* and should be followed by an Enable macro (i.e __HAL_UART_ENABLE(__HANDLE__)).
* @param __HANDLE__ specifies the UART Handle.
* The Handle Instance can be any USARTx (supporting the HW Flow control feature).
* It is used to select the USART peripheral (USART availability and x value depending on device).
* @retval None
*/
#define __HAL_UART_HWCONTROL_CTS_DISABLE(__HANDLE__) \
do{ \
ATOMIC_CLEAR_BIT((__HANDLE__)->Instance->CR3, USART_CR3_CTSE); \
(__HANDLE__)->Init.HwFlowCtl &= ~(USART_CR3_CTSE); \
} while(0U)
/** @brief Enable RTS flow control
* This macro allows to enable RTS hardware flow control for a given UART instance,
* without need to call HAL_UART_Init() function.
* As involving direct access to UART registers, usage of this macro should be fully endorsed by user.
* @note As macro is expected to be used for modifying RTS Hw flow control feature activation, without need
* for USART instance Deinit/Init, following conditions for macro call should be fulfilled :
* - UART instance should have already been initialised (through call of HAL_UART_Init() )
* - macro could only be called when corresponding UART instance is disabled (i.e __HAL_UART_DISABLE(__HANDLE__))
* and should be followed by an Enable macro (i.e __HAL_UART_ENABLE(__HANDLE__)).
* @param __HANDLE__ specifies the UART Handle.
* The Handle Instance can be any USARTx (supporting the HW Flow control feature).
* It is used to select the USART peripheral (USART availability and x value depending on device).
* @retval None
*/
#define __HAL_UART_HWCONTROL_RTS_ENABLE(__HANDLE__) \
do{ \
ATOMIC_SET_BIT((__HANDLE__)->Instance->CR3, USART_CR3_RTSE); \
(__HANDLE__)->Init.HwFlowCtl |= USART_CR3_RTSE; \
} while(0U)
/** @brief Disable RTS flow control
* This macro allows to disable RTS hardware flow control for a given UART instance,
* without need to call HAL_UART_Init() function.
* As involving direct access to UART registers, usage of this macro should be fully endorsed by user.
* @note As macro is expected to be used for modifying RTS Hw flow control feature activation, without need
* for USART instance Deinit/Init, following conditions for macro call should be fulfilled :
* - UART instance should have already been initialised (through call of HAL_UART_Init() )
* - macro could only be called when corresponding UART instance is disabled (i.e __HAL_UART_DISABLE(__HANDLE__))
* and should be followed by an Enable macro (i.e __HAL_UART_ENABLE(__HANDLE__)).
* @param __HANDLE__ specifies the UART Handle.
* The Handle Instance can be any USARTx (supporting the HW Flow control feature).
* It is used to select the USART peripheral (USART availability and x value depending on device).
* @retval None
*/
#define __HAL_UART_HWCONTROL_RTS_DISABLE(__HANDLE__) \
do{ \
ATOMIC_CLEAR_BIT((__HANDLE__)->Instance->CR3, USART_CR3_RTSE);\
(__HANDLE__)->Init.HwFlowCtl &= ~(USART_CR3_RTSE); \
} while(0U)
/** @brief Macro to enable the UART's one bit sample method
* @param __HANDLE__ specifies the UART Handle.
* @retval None
*/
#define __HAL_UART_ONE_BIT_SAMPLE_ENABLE(__HANDLE__) ((__HANDLE__)->Instance->CR3|= USART_CR3_ONEBIT)
/** @brief Macro to disable the UART's one bit sample method
* @param __HANDLE__ specifies the UART Handle.
* @retval None
*/
#define __HAL_UART_ONE_BIT_SAMPLE_DISABLE(__HANDLE__) ((__HANDLE__)->Instance->CR3\
&= (uint16_t)~((uint16_t)USART_CR3_ONEBIT))
/** @brief Enable UART
* @param __HANDLE__ specifies the UART Handle.
* @retval None
*/
#define __HAL_UART_ENABLE(__HANDLE__) ((__HANDLE__)->Instance->CR1 |= USART_CR1_UE)
/** @brief Disable UART
* @param __HANDLE__ specifies the UART Handle.
* @retval None
*/
#define __HAL_UART_DISABLE(__HANDLE__) ((__HANDLE__)->Instance->CR1 &= ~USART_CR1_UE)
/**
* @}
*/
/* Exported functions --------------------------------------------------------*/
/** @addtogroup UART_Exported_Functions
* @{
*/
/** @addtogroup UART_Exported_Functions_Group1 Initialization and de-initialization functions
* @{
*/
/* Initialization/de-initialization functions **********************************/
HAL_StatusTypeDef HAL_UART_Init(UART_HandleTypeDef *huart);
HAL_StatusTypeDef HAL_HalfDuplex_Init(UART_HandleTypeDef *huart);
HAL_StatusTypeDef HAL_LIN_Init(UART_HandleTypeDef *huart, uint32_t BreakDetectLength);
HAL_StatusTypeDef HAL_MultiProcessor_Init(UART_HandleTypeDef *huart, uint8_t Address, uint32_t WakeUpMethod);
HAL_StatusTypeDef HAL_UART_DeInit(UART_HandleTypeDef *huart);
void HAL_UART_MspInit(UART_HandleTypeDef *huart);
void HAL_UART_MspDeInit(UART_HandleTypeDef *huart);
/* Callbacks Register/UnRegister functions ***********************************/
#if (USE_HAL_UART_REGISTER_CALLBACKS == 1)
HAL_StatusTypeDef HAL_UART_RegisterCallback(UART_HandleTypeDef *huart, HAL_UART_CallbackIDTypeDef CallbackID,
pUART_CallbackTypeDef pCallback);
HAL_StatusTypeDef HAL_UART_UnRegisterCallback(UART_HandleTypeDef *huart, HAL_UART_CallbackIDTypeDef CallbackID);
HAL_StatusTypeDef HAL_UART_RegisterRxEventCallback(UART_HandleTypeDef *huart, pUART_RxEventCallbackTypeDef pCallback);
HAL_StatusTypeDef HAL_UART_UnRegisterRxEventCallback(UART_HandleTypeDef *huart);
#endif /* USE_HAL_UART_REGISTER_CALLBACKS */
/**
* @}
*/
/** @addtogroup UART_Exported_Functions_Group2 IO operation functions
* @{
*/
/* IO operation functions *******************************************************/
HAL_StatusTypeDef HAL_UART_Transmit(UART_HandleTypeDef *huart, const uint8_t *pData, uint16_t Size, uint32_t Timeout);
HAL_StatusTypeDef HAL_UART_Receive(UART_HandleTypeDef *huart, uint8_t *pData, uint16_t Size, uint32_t Timeout);
HAL_StatusTypeDef HAL_UART_Transmit_IT(UART_HandleTypeDef *huart, const uint8_t *pData, uint16_t Size);
HAL_StatusTypeDef HAL_UART_Receive_IT(UART_HandleTypeDef *huart, uint8_t *pData, uint16_t Size);
HAL_StatusTypeDef HAL_UART_Transmit_DMA(UART_HandleTypeDef *huart, const uint8_t *pData, uint16_t Size);
HAL_StatusTypeDef HAL_UART_Receive_DMA(UART_HandleTypeDef *huart, uint8_t *pData, uint16_t Size);
HAL_StatusTypeDef HAL_UART_DMAPause(UART_HandleTypeDef *huart);
HAL_StatusTypeDef HAL_UART_DMAResume(UART_HandleTypeDef *huart);
HAL_StatusTypeDef HAL_UART_DMAStop(UART_HandleTypeDef *huart);
HAL_StatusTypeDef HAL_UARTEx_ReceiveToIdle(UART_HandleTypeDef *huart, uint8_t *pData, uint16_t Size, uint16_t *RxLen,
uint32_t Timeout);
HAL_StatusTypeDef HAL_UARTEx_ReceiveToIdle_IT(UART_HandleTypeDef *huart, uint8_t *pData, uint16_t Size);
HAL_StatusTypeDef HAL_UARTEx_ReceiveToIdle_DMA(UART_HandleTypeDef *huart, uint8_t *pData, uint16_t Size);
HAL_UART_RxEventTypeTypeDef HAL_UARTEx_GetRxEventType(UART_HandleTypeDef *huart);
/* Transfer Abort functions */
HAL_StatusTypeDef HAL_UART_Abort(UART_HandleTypeDef *huart);
HAL_StatusTypeDef HAL_UART_AbortTransmit(UART_HandleTypeDef *huart);
HAL_StatusTypeDef HAL_UART_AbortReceive(UART_HandleTypeDef *huart);
HAL_StatusTypeDef HAL_UART_Abort_IT(UART_HandleTypeDef *huart);
HAL_StatusTypeDef HAL_UART_AbortTransmit_IT(UART_HandleTypeDef *huart);
HAL_StatusTypeDef HAL_UART_AbortReceive_IT(UART_HandleTypeDef *huart);
void HAL_UART_IRQHandler(UART_HandleTypeDef *huart);
void HAL_UART_TxCpltCallback(UART_HandleTypeDef *huart);
void HAL_UART_TxHalfCpltCallback(UART_HandleTypeDef *huart);
void HAL_UART_RxCpltCallback(UART_HandleTypeDef *huart);
void HAL_UART_RxHalfCpltCallback(UART_HandleTypeDef *huart);
void HAL_UART_ErrorCallback(UART_HandleTypeDef *huart);
void HAL_UART_AbortCpltCallback(UART_HandleTypeDef *huart);
void HAL_UART_AbortTransmitCpltCallback(UART_HandleTypeDef *huart);
void HAL_UART_AbortReceiveCpltCallback(UART_HandleTypeDef *huart);
void HAL_UARTEx_RxEventCallback(UART_HandleTypeDef *huart, uint16_t Size);
/**
* @}
*/
/** @addtogroup UART_Exported_Functions_Group3
* @{
*/
/* Peripheral Control functions ************************************************/
HAL_StatusTypeDef HAL_LIN_SendBreak(UART_HandleTypeDef *huart);
HAL_StatusTypeDef HAL_MultiProcessor_EnterMuteMode(UART_HandleTypeDef *huart);
HAL_StatusTypeDef HAL_MultiProcessor_ExitMuteMode(UART_HandleTypeDef *huart);
HAL_StatusTypeDef HAL_HalfDuplex_EnableTransmitter(UART_HandleTypeDef *huart);
HAL_StatusTypeDef HAL_HalfDuplex_EnableReceiver(UART_HandleTypeDef *huart);
/**
* @}
*/
/** @addtogroup UART_Exported_Functions_Group4
* @{
*/
/* Peripheral State functions **************************************************/
HAL_UART_StateTypeDef HAL_UART_GetState(const UART_HandleTypeDef *huart);
uint32_t HAL_UART_GetError(const UART_HandleTypeDef *huart);
/**
* @}
*/
/**
* @}
*/
/* Private types -------------------------------------------------------------*/
/* Private variables ---------------------------------------------------------*/
/* Private constants ---------------------------------------------------------*/
/** @defgroup UART_Private_Constants UART Private Constants
* @{
*/
/** @brief UART interruptions flag mask
*
*/
#define UART_IT_MASK 0x0000FFFFU
#define UART_CR1_REG_INDEX 1U
#define UART_CR2_REG_INDEX 2U
#define UART_CR3_REG_INDEX 3U
/**
* @}
*/
/* Private macros ------------------------------------------------------------*/
/** @defgroup UART_Private_Macros UART Private Macros
* @{
*/
#define IS_UART_WORD_LENGTH(LENGTH) (((LENGTH) == UART_WORDLENGTH_8B) || \
((LENGTH) == UART_WORDLENGTH_9B))
#define IS_UART_LIN_WORD_LENGTH(LENGTH) (((LENGTH) == UART_WORDLENGTH_8B))
#define IS_UART_STOPBITS(STOPBITS) (((STOPBITS) == UART_STOPBITS_1) || \
((STOPBITS) == UART_STOPBITS_2))
#define IS_UART_PARITY(PARITY) (((PARITY) == UART_PARITY_NONE) || \
((PARITY) == UART_PARITY_EVEN) || \
((PARITY) == UART_PARITY_ODD))
#define IS_UART_HARDWARE_FLOW_CONTROL(CONTROL)\
(((CONTROL) == UART_HWCONTROL_NONE) || \
((CONTROL) == UART_HWCONTROL_RTS) || \
((CONTROL) == UART_HWCONTROL_CTS) || \
((CONTROL) == UART_HWCONTROL_RTS_CTS))
#define IS_UART_MODE(MODE) ((((MODE) & 0x0000FFF3U) == 0x00U) && ((MODE) != 0x00U))
#define IS_UART_STATE(STATE) (((STATE) == UART_STATE_DISABLE) || \
((STATE) == UART_STATE_ENABLE))
#define IS_UART_OVERSAMPLING(SAMPLING) (((SAMPLING) == UART_OVERSAMPLING_16) || \
((SAMPLING) == UART_OVERSAMPLING_8))
#define IS_UART_LIN_OVERSAMPLING(SAMPLING) (((SAMPLING) == UART_OVERSAMPLING_16))
#define IS_UART_LIN_BREAK_DETECT_LENGTH(LENGTH) (((LENGTH) == UART_LINBREAKDETECTLENGTH_10B) || \
((LENGTH) == UART_LINBREAKDETECTLENGTH_11B))
#define IS_UART_WAKEUPMETHOD(WAKEUP) (((WAKEUP) == UART_WAKEUPMETHOD_IDLELINE) || \
((WAKEUP) == UART_WAKEUPMETHOD_ADDRESSMARK))
#define IS_UART_BAUDRATE(BAUDRATE) ((BAUDRATE) <= 10500000U)
#define IS_UART_ADDRESS(ADDRESS) ((ADDRESS) <= 0x0FU)
#define UART_DIV_SAMPLING16(_PCLK_, _BAUD_) ((uint32_t)((((uint64_t)(_PCLK_))*25U)/(4U*((uint64_t)(_BAUD_)))))
#define UART_DIVMANT_SAMPLING16(_PCLK_, _BAUD_) (UART_DIV_SAMPLING16((_PCLK_), (_BAUD_))/100U)
#define UART_DIVFRAQ_SAMPLING16(_PCLK_, _BAUD_) ((((UART_DIV_SAMPLING16((_PCLK_), (_BAUD_)) - (UART_DIVMANT_SAMPLING16((_PCLK_), (_BAUD_)) * 100U)) * 16U)\
+ 50U) / 100U)
/* UART BRR = mantissa + overflow + fraction
= (UART DIVMANT << 4) + (UART DIVFRAQ & 0xF0) + (UART DIVFRAQ & 0x0FU) */
#define UART_BRR_SAMPLING16(_PCLK_, _BAUD_) ((UART_DIVMANT_SAMPLING16((_PCLK_), (_BAUD_)) << 4U) + \
(UART_DIVFRAQ_SAMPLING16((_PCLK_), (_BAUD_)) & 0xF0U) + \
(UART_DIVFRAQ_SAMPLING16((_PCLK_), (_BAUD_)) & 0x0FU))
#define UART_DIV_SAMPLING8(_PCLK_, _BAUD_) ((uint32_t)((((uint64_t)(_PCLK_))*25U)/(2U*((uint64_t)(_BAUD_)))))
#define UART_DIVMANT_SAMPLING8(_PCLK_, _BAUD_) (UART_DIV_SAMPLING8((_PCLK_), (_BAUD_))/100U)
#define UART_DIVFRAQ_SAMPLING8(_PCLK_, _BAUD_) ((((UART_DIV_SAMPLING8((_PCLK_), (_BAUD_)) - (UART_DIVMANT_SAMPLING8((_PCLK_), (_BAUD_)) * 100U)) * 8U)\
+ 50U) / 100U)
/* UART BRR = mantissa + overflow + fraction
= (UART DIVMANT << 4) + ((UART DIVFRAQ & 0xF8) << 1) + (UART DIVFRAQ & 0x07U) */
#define UART_BRR_SAMPLING8(_PCLK_, _BAUD_) ((UART_DIVMANT_SAMPLING8((_PCLK_), (_BAUD_)) << 4U) + \
((UART_DIVFRAQ_SAMPLING8((_PCLK_), (_BAUD_)) & 0xF8U) << 1U) + \
(UART_DIVFRAQ_SAMPLING8((_PCLK_), (_BAUD_)) & 0x07U))
/**
* @}
*/
/* Private functions ---------------------------------------------------------*/
/** @defgroup UART_Private_Functions UART Private Functions
* @{
*/
HAL_StatusTypeDef UART_Start_Receive_IT(UART_HandleTypeDef *huart, uint8_t *pData, uint16_t Size);
HAL_StatusTypeDef UART_Start_Receive_DMA(UART_HandleTypeDef *huart, uint8_t *pData, uint16_t Size);
/**
* @}
*/
/**
* @}
*/
/**
* @}
*/
#ifdef __cplusplus
}
#endif
#endif /* __STM32F4xx_HAL_UART_H */
File diff suppressed because it is too large Load Diff
File diff suppressed because it is too large Load Diff
+47 -20
View File
@@ -20,7 +20,8 @@ CAN2.Mode=CAN_MODE_SILENT
CAN2.Prescaler=8 CAN2.Prescaler=8
Dma.Request0=SDIO_RX Dma.Request0=SDIO_RX
Dma.Request1=SDIO_TX Dma.Request1=SDIO_TX
Dma.RequestsNb=2 Dma.Request2=USART1_TX
Dma.RequestsNb=3
Dma.SDIO_RX.0.Direction=DMA_PERIPH_TO_MEMORY Dma.SDIO_RX.0.Direction=DMA_PERIPH_TO_MEMORY
Dma.SDIO_RX.0.FIFOMode=DMA_FIFOMODE_ENABLE Dma.SDIO_RX.0.FIFOMode=DMA_FIFOMODE_ENABLE
Dma.SDIO_RX.0.FIFOThreshold=DMA_FIFO_THRESHOLD_FULL Dma.SDIO_RX.0.FIFOThreshold=DMA_FIFO_THRESHOLD_FULL
@@ -47,12 +48,22 @@ Dma.SDIO_TX.1.PeriphDataAlignment=DMA_PDATAALIGN_WORD
Dma.SDIO_TX.1.PeriphInc=DMA_PINC_DISABLE Dma.SDIO_TX.1.PeriphInc=DMA_PINC_DISABLE
Dma.SDIO_TX.1.Priority=DMA_PRIORITY_LOW Dma.SDIO_TX.1.Priority=DMA_PRIORITY_LOW
Dma.SDIO_TX.1.RequestParameters=Instance,Direction,PeriphInc,MemInc,PeriphDataAlignment,MemDataAlignment,Mode,Priority,FIFOMode,FIFOThreshold,MemBurst,PeriphBurst Dma.SDIO_TX.1.RequestParameters=Instance,Direction,PeriphInc,MemInc,PeriphDataAlignment,MemDataAlignment,Mode,Priority,FIFOMode,FIFOThreshold,MemBurst,PeriphBurst
Dma.USART1_TX.2.Direction=DMA_MEMORY_TO_PERIPH
Dma.USART1_TX.2.FIFOMode=DMA_FIFOMODE_DISABLE
Dma.USART1_TX.2.Instance=DMA2_Stream7
Dma.USART1_TX.2.MemDataAlignment=DMA_MDATAALIGN_BYTE
Dma.USART1_TX.2.MemInc=DMA_MINC_ENABLE
Dma.USART1_TX.2.Mode=DMA_NORMAL
Dma.USART1_TX.2.PeriphDataAlignment=DMA_PDATAALIGN_BYTE
Dma.USART1_TX.2.PeriphInc=DMA_PINC_DISABLE
Dma.USART1_TX.2.Priority=DMA_PRIORITY_LOW
Dma.USART1_TX.2.RequestParameters=Instance,Direction,PeriphInc,MemInc,PeriphDataAlignment,MemDataAlignment,Mode,Priority,FIFOMode
FREERTOS.FootprintOK=true FREERTOS.FootprintOK=true
FREERTOS.IPParameters=Tasks01,configUSE_NEWLIB_REENTRANT,FootprintOK FREERTOS.IPParameters=Tasks01,configUSE_NEWLIB_REENTRANT,FootprintOK
FREERTOS.Tasks01=DefaultTask,49,128,can_listen,Default,NULL,Dynamic,NULL,NULL FREERTOS.Tasks01=DefaultTask,49,128,can_listen,Default,NULL,Dynamic,NULL,NULL
FREERTOS.configUSE_NEWLIB_REENTRANT=1 FREERTOS.configUSE_NEWLIB_REENTRANT=1
File.Version=6 File.Version=6
GPIO.groupedBy= GPIO.groupedBy=Group By Peripherals
KeepUserPlacement=false KeepUserPlacement=false
Mcu.CPN=STM32F405RGT6 Mcu.CPN=STM32F405RGT6
Mcu.Family=STM32F4 Mcu.Family=STM32F4
@@ -64,25 +75,30 @@ Mcu.IP4=NVIC
Mcu.IP5=RCC Mcu.IP5=RCC
Mcu.IP6=SDIO Mcu.IP6=SDIO
Mcu.IP7=SYS Mcu.IP7=SYS
Mcu.IPNb=8 Mcu.IP8=USART1
Mcu.IPNb=9
Mcu.Name=STM32F405RGTx Mcu.Name=STM32F405RGTx
Mcu.Package=LQFP64 Mcu.Package=LQFP64
Mcu.Pin0=PB12 Mcu.Pin0=PB12
Mcu.Pin1=PB13 Mcu.Pin1=PB13
Mcu.Pin10=PB5 Mcu.Pin10=PC12
Mcu.Pin11=PB8 Mcu.Pin11=PD2
Mcu.Pin12=PB9 Mcu.Pin12=PB5
Mcu.Pin13=VP_FREERTOS_VS_CMSIS_V2 Mcu.Pin13=PB6
Mcu.Pin14=VP_SYS_VS_tim6 Mcu.Pin14=PB7
Mcu.Pin15=PB8
Mcu.Pin16=PB9
Mcu.Pin17=VP_FREERTOS_VS_CMSIS_V2
Mcu.Pin18=VP_SYS_VS_tim6
Mcu.Pin2=PC8 Mcu.Pin2=PC8
Mcu.Pin3=PC9 Mcu.Pin3=PC9
Mcu.Pin4=PC10 Mcu.Pin4=PA9
Mcu.Pin5=PC11 Mcu.Pin5=PA10
Mcu.Pin6=PC12 Mcu.Pin6=PA13
Mcu.Pin7=PD2 Mcu.Pin7=PA14
Mcu.Pin8=PB3 Mcu.Pin8=PC10
Mcu.Pin9=PB4 Mcu.Pin9=PC11
Mcu.PinsNb=15 Mcu.PinsNb=19
Mcu.ThirdPartyNb=0 Mcu.ThirdPartyNb=0
Mcu.UserConstants= Mcu.UserConstants=
Mcu.UserName=STM32F405RGTx Mcu.UserName=STM32F405RGTx
@@ -91,6 +107,7 @@ MxDb.Version=DB.6.0.170
NVIC.BusFault_IRQn=true\:0\:0\:false\:false\:true\:false\:false\:false\:false NVIC.BusFault_IRQn=true\:0\:0\:false\:false\:true\:false\:false\:false\:false
NVIC.DMA2_Stream3_IRQn=true\:5\:0\:false\:false\:true\:true\:false\:true\:true NVIC.DMA2_Stream3_IRQn=true\:5\:0\:false\:false\:true\:true\:false\:true\:true
NVIC.DMA2_Stream6_IRQn=true\:5\:0\:false\:false\:true\:true\:false\:true\:true NVIC.DMA2_Stream6_IRQn=true\:5\:0\:false\:false\:true\:true\:false\:true\:true
NVIC.DMA2_Stream7_IRQn=true\:5\:0\:false\:false\:true\:true\:false\:true\:true
NVIC.DebugMonitor_IRQn=true\:0\:0\:false\:false\:true\:false\:false\:false\:false NVIC.DebugMonitor_IRQn=true\:0\:0\:false\:false\:true\:false\:false\:false\:false
NVIC.ForceEnableDMAVector=true NVIC.ForceEnableDMAVector=true
NVIC.HardFault_IRQn=true\:0\:0\:false\:false\:true\:false\:false\:false\:false NVIC.HardFault_IRQn=true\:0\:0\:false\:false\:true\:false\:false\:false\:false
@@ -108,16 +125,24 @@ NVIC.TIM6_DAC_IRQn=true\:15\:0\:false\:false\:true\:false\:false\:true\:true
NVIC.TimeBase=TIM6_DAC_IRQn NVIC.TimeBase=TIM6_DAC_IRQn
NVIC.TimeBaseIP=TIM6 NVIC.TimeBaseIP=TIM6
NVIC.UsageFault_IRQn=true\:0\:0\:false\:false\:true\:false\:false\:false\:false NVIC.UsageFault_IRQn=true\:0\:0\:false\:false\:true\:false\:false\:false\:false
PA10.Mode=Asynchronous
PA10.Signal=USART1_RX
PA13.Mode=Serial_Wire
PA13.Signal=SYS_JTMS-SWDIO
PA14.Mode=Serial_Wire
PA14.Signal=SYS_JTCK-SWCLK
PA9.Mode=Asynchronous
PA9.Signal=USART1_TX
PB12.Mode=CAN_Activate PB12.Mode=CAN_Activate
PB12.Signal=CAN2_RX PB12.Signal=CAN2_RX
PB13.Mode=CAN_Activate PB13.Mode=CAN_Activate
PB13.Signal=CAN2_TX PB13.Signal=CAN2_TX
PB3.Locked=true
PB3.Signal=GPIO_Output
PB4.Locked=true
PB4.Signal=GPIO_Output
PB5.Locked=true PB5.Locked=true
PB5.Signal=GPIO_Output PB5.Signal=GPIO_Output
PB6.Locked=true
PB6.Signal=GPIO_Output
PB7.Locked=true
PB7.Signal=GPIO_Output
PB8.Mode=CAN_Activate PB8.Mode=CAN_Activate
PB8.Signal=CAN1_RX PB8.Signal=CAN1_RX
PB9.Locked=true PB9.Locked=true
@@ -178,7 +203,7 @@ ProjectManager.ToolChainLocation=
ProjectManager.UAScriptAfterPath= ProjectManager.UAScriptAfterPath=
ProjectManager.UAScriptBeforePath= ProjectManager.UAScriptBeforePath=
ProjectManager.UnderRoot=true ProjectManager.UnderRoot=true
ProjectManager.functionlistsort=1-SystemClock_Config-RCC-false-HAL-false,2-MX_GPIO_Init-GPIO-false-HAL-true,3-MX_DMA_Init-DMA-false-HAL-true,4-MX_CAN1_Init-CAN1-false-HAL-true,5-MX_CAN2_Init-CAN2-false-HAL-true,6-MX_SDIO_SD_Init-SDIO-false-HAL-true ProjectManager.functionlistsort=1-SystemClock_Config-RCC-false-HAL-false,2-MX_GPIO_Init-GPIO-false-HAL-true,3-MX_DMA_Init-DMA-false-HAL-true,4-MX_CAN1_Init-CAN1-false-HAL-true,5-MX_CAN2_Init-CAN2-false-HAL-true,6-MX_SDIO_SD_Init-SDIO-false-HAL-true,7-MX_USART1_UART_Init-USART1-false-HAL-true
RCC.48MHZClocksFreq_Value=48000000 RCC.48MHZClocksFreq_Value=48000000
RCC.AHBFreq_Value=168000000 RCC.AHBFreq_Value=168000000
RCC.APB1CLKDivider=RCC_HCLK_DIV4 RCC.APB1CLKDivider=RCC_HCLK_DIV4
@@ -211,6 +236,8 @@ RCC.VCOI2SOutputFreq_Value=192000000
RCC.VCOInputFreq_Value=1000000 RCC.VCOInputFreq_Value=1000000
RCC.VCOOutputFreq_Value=336000000 RCC.VCOOutputFreq_Value=336000000
RCC.VcooutputI2S=96000000 RCC.VcooutputI2S=96000000
USART1.IPParameters=VirtualMode
USART1.VirtualMode=VM_ASYNC
VP_FREERTOS_VS_CMSIS_V2.Mode=CMSIS_V2 VP_FREERTOS_VS_CMSIS_V2.Mode=CMSIS_V2
VP_FREERTOS_VS_CMSIS_V2.Signal=FREERTOS_VS_CMSIS_V2 VP_FREERTOS_VS_CMSIS_V2.Signal=FREERTOS_VS_CMSIS_V2
VP_SYS_VS_tim6.Mode=TIM6 VP_SYS_VS_tim6.Mode=TIM6