stm32l4xx_hal_usart.c 130 KB

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  1. /**
  2. ******************************************************************************
  3. * @file stm32l4xx_hal_usart.c
  4. * @author MCD Application Team
  5. * @brief USART HAL module driver.
  6. * This file provides firmware functions to manage the following
  7. * functionalities of the Universal Synchronous/Asynchronous Receiver Transmitter
  8. * Peripheral (USART).
  9. * + Initialization and de-initialization functions
  10. * + IO operation functions
  11. * + Peripheral Control functions
  12. * + Peripheral State and Error functions
  13. *
  14. ******************************************************************************
  15. * @attention
  16. *
  17. * Copyright (c) 2017 STMicroelectronics.
  18. * All rights reserved.
  19. *
  20. * This software is licensed under terms that can be found in the LICENSE file
  21. * in the root directory of this software component.
  22. * If no LICENSE file comes with this software, it is provided AS-IS.
  23. *
  24. ******************************************************************************
  25. @verbatim
  26. ===============================================================================
  27. ##### How to use this driver #####
  28. ===============================================================================
  29. [..]
  30. The USART HAL driver can be used as follows:
  31. (#) Declare a USART_HandleTypeDef handle structure (eg. USART_HandleTypeDef husart).
  32. (#) Initialize the USART low level resources by implementing the HAL_USART_MspInit() API:
  33. (++) Enable the USARTx interface clock.
  34. (++) USART pins configuration:
  35. (+++) Enable the clock for the USART GPIOs.
  36. (+++) Configure these USART pins as alternate function pull-up.
  37. (++) NVIC configuration if you need to use interrupt process (HAL_USART_Transmit_IT(),
  38. HAL_USART_Receive_IT() and HAL_USART_TransmitReceive_IT() APIs):
  39. (+++) Configure the USARTx interrupt priority.
  40. (+++) Enable the NVIC USART IRQ handle.
  41. (++) USART interrupts handling:
  42. -@@- The specific USART interrupts (Transmission complete interrupt,
  43. RXNE interrupt and Error Interrupts) will be managed using the macros
  44. __HAL_USART_ENABLE_IT() and __HAL_USART_DISABLE_IT() inside the transmit and receive process.
  45. (++) DMA Configuration if you need to use DMA process (HAL_USART_Transmit_DMA()
  46. HAL_USART_Receive_DMA() and HAL_USART_TransmitReceive_DMA() APIs):
  47. (+++) Declare a DMA handle structure for the Tx/Rx channel.
  48. (+++) Enable the DMAx interface clock.
  49. (+++) Configure the declared DMA handle structure with the required Tx/Rx parameters.
  50. (+++) Configure the DMA Tx/Rx channel.
  51. (+++) Associate the initialized DMA handle to the USART DMA Tx/Rx handle.
  52. (+++) Configure the priority and enable the NVIC for the transfer
  53. complete interrupt on the DMA Tx/Rx channel.
  54. (#) Program the Baud Rate, Word Length, Stop Bit, Parity, and Mode
  55. (Receiver/Transmitter) in the husart handle Init structure.
  56. (#) Initialize the USART registers by calling the HAL_USART_Init() API:
  57. (++) This API configures also the low level Hardware GPIO, CLOCK, CORTEX...etc)
  58. by calling the customized HAL_USART_MspInit(&husart) API.
  59. [..]
  60. (@) To configure and enable/disable the USART to wake up the MCU from stop mode, resort to UART API's
  61. HAL_UARTEx_StopModeWakeUpSourceConfig(), HAL_UARTEx_EnableStopMode() and
  62. HAL_UARTEx_DisableStopMode() in casting the USART handle to UART type UART_HandleTypeDef.
  63. ##### Callback registration #####
  64. ==================================
  65. [..]
  66. The compilation define USE_HAL_USART_REGISTER_CALLBACKS when set to 1
  67. allows the user to configure dynamically the driver callbacks.
  68. [..]
  69. Use Function HAL_USART_RegisterCallback() to register a user callback.
  70. Function HAL_USART_RegisterCallback() allows to register following callbacks:
  71. (+) TxHalfCpltCallback : Tx Half Complete Callback.
  72. (+) TxCpltCallback : Tx Complete Callback.
  73. (+) RxHalfCpltCallback : Rx Half Complete Callback.
  74. (+) RxCpltCallback : Rx Complete Callback.
  75. (+) TxRxCpltCallback : Tx Rx Complete Callback.
  76. (+) ErrorCallback : Error Callback.
  77. (+) AbortCpltCallback : Abort Complete Callback.
  78. (+) RxFifoFullCallback : Rx Fifo Full Callback.
  79. (+) TxFifoEmptyCallback : Tx Fifo Empty Callback.
  80. (+) MspInitCallback : USART MspInit.
  81. (+) MspDeInitCallback : USART MspDeInit.
  82. This function takes as parameters the HAL peripheral handle, the Callback ID
  83. and a pointer to the user callback function.
  84. [..]
  85. Use function HAL_USART_UnRegisterCallback() to reset a callback to the default
  86. weak (surcharged) function.
  87. HAL_USART_UnRegisterCallback() takes as parameters the HAL peripheral handle,
  88. and the Callback ID.
  89. This function allows to reset following callbacks:
  90. (+) TxHalfCpltCallback : Tx Half Complete Callback.
  91. (+) TxCpltCallback : Tx Complete Callback.
  92. (+) RxHalfCpltCallback : Rx Half Complete Callback.
  93. (+) RxCpltCallback : Rx Complete Callback.
  94. (+) TxRxCpltCallback : Tx Rx Complete Callback.
  95. (+) ErrorCallback : Error Callback.
  96. (+) AbortCpltCallback : Abort Complete Callback.
  97. (+) RxFifoFullCallback : Rx Fifo Full Callback.
  98. (+) TxFifoEmptyCallback : Tx Fifo Empty Callback.
  99. (+) MspInitCallback : USART MspInit.
  100. (+) MspDeInitCallback : USART MspDeInit.
  101. [..]
  102. By default, after the HAL_USART_Init() and when the state is HAL_USART_STATE_RESET
  103. all callbacks are set to the corresponding weak (surcharged) functions:
  104. examples HAL_USART_TxCpltCallback(), HAL_USART_RxHalfCpltCallback().
  105. Exception done for MspInit and MspDeInit functions that are respectively
  106. reset to the legacy weak (surcharged) functions in the HAL_USART_Init()
  107. and HAL_USART_DeInit() only when these callbacks are null (not registered beforehand).
  108. If not, MspInit or MspDeInit are not null, the HAL_USART_Init() and HAL_USART_DeInit()
  109. keep and use the user MspInit/MspDeInit callbacks (registered beforehand).
  110. [..]
  111. Callbacks can be registered/unregistered in HAL_USART_STATE_READY state only.
  112. Exception done MspInit/MspDeInit that can be registered/unregistered
  113. in HAL_USART_STATE_READY or HAL_USART_STATE_RESET state, thus registered (user)
  114. MspInit/DeInit callbacks can be used during the Init/DeInit.
  115. In that case first register the MspInit/MspDeInit user callbacks
  116. using HAL_USART_RegisterCallback() before calling HAL_USART_DeInit()
  117. or HAL_USART_Init() function.
  118. [..]
  119. When The compilation define USE_HAL_USART_REGISTER_CALLBACKS is set to 0 or
  120. not defined, the callback registration feature is not available
  121. and weak (surcharged) callbacks are used.
  122. @endverbatim
  123. ******************************************************************************
  124. */
  125. /* Includes ------------------------------------------------------------------*/
  126. #include "stm32l4xx_hal.h"
  127. /** @addtogroup STM32L4xx_HAL_Driver
  128. * @{
  129. */
  130. /** @defgroup USART USART
  131. * @brief HAL USART Synchronous module driver
  132. * @{
  133. */
  134. #ifdef HAL_USART_MODULE_ENABLED
  135. /* Private typedef -----------------------------------------------------------*/
  136. /* Private define ------------------------------------------------------------*/
  137. /** @defgroup USART_Private_Constants USART Private Constants
  138. * @{
  139. */
  140. #define USART_DUMMY_DATA ((uint16_t) 0xFFFF) /*!< USART transmitted dummy data */
  141. #define USART_TEACK_REACK_TIMEOUT 1000U /*!< USART TX or RX enable acknowledge time-out value */
  142. #if defined(USART_CR1_FIFOEN)
  143. #define USART_CR1_FIELDS ((uint32_t)(USART_CR1_M | USART_CR1_PCE | USART_CR1_PS | \
  144. USART_CR1_TE | USART_CR1_RE | USART_CR1_OVER8 | \
  145. USART_CR1_FIFOEN )) /*!< USART CR1 fields of parameters set by USART_SetConfig API */
  146. #define USART_CR2_FIELDS ((uint32_t)(USART_CR2_CPHA | USART_CR2_CPOL | USART_CR2_CLKEN | \
  147. USART_CR2_LBCL | USART_CR2_STOP | USART_CR2_SLVEN | \
  148. USART_CR2_DIS_NSS)) /*!< USART CR2 fields of parameters set by USART_SetConfig API */
  149. #define USART_CR3_FIELDS ((uint32_t)(USART_CR3_TXFTCFG | USART_CR3_RXFTCFG )) /*!< USART or USART CR3 fields of parameters set by USART_SetConfig API */
  150. #else
  151. #define USART_CR1_FIELDS ((uint32_t)(USART_CR1_M | USART_CR1_PCE | USART_CR1_PS | \
  152. USART_CR1_TE | USART_CR1_RE | USART_CR1_OVER8)) /*!< USART CR1 fields of parameters set by USART_SetConfig API */
  153. #define USART_CR2_FIELDS ((uint32_t)(USART_CR2_CPHA | USART_CR2_CPOL | \
  154. USART_CR2_CLKEN | USART_CR2_LBCL | USART_CR2_STOP)) /*!< USART CR2 fields of parameters set by USART_SetConfig API */
  155. #endif /* USART_CR1_FIFOEN */
  156. #define USART_BRR_MIN 0x10U /* USART BRR minimum authorized value */
  157. #define USART_BRR_MAX 0xFFFFU /* USART BRR maximum authorized value */
  158. /**
  159. * @}
  160. */
  161. /* Private macros ------------------------------------------------------------*/
  162. /* Private variables ---------------------------------------------------------*/
  163. /* Private function prototypes -----------------------------------------------*/
  164. /** @addtogroup USART_Private_Functions
  165. * @{
  166. */
  167. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  168. void USART_InitCallbacksToDefault(USART_HandleTypeDef *husart);
  169. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  170. static void USART_EndTransfer(USART_HandleTypeDef *husart);
  171. static void USART_DMATransmitCplt(DMA_HandleTypeDef *hdma);
  172. static void USART_DMAReceiveCplt(DMA_HandleTypeDef *hdma);
  173. static void USART_DMATxHalfCplt(DMA_HandleTypeDef *hdma);
  174. static void USART_DMARxHalfCplt(DMA_HandleTypeDef *hdma);
  175. static void USART_DMAError(DMA_HandleTypeDef *hdma);
  176. static void USART_DMAAbortOnError(DMA_HandleTypeDef *hdma);
  177. static void USART_DMATxAbortCallback(DMA_HandleTypeDef *hdma);
  178. static void USART_DMARxAbortCallback(DMA_HandleTypeDef *hdma);
  179. static HAL_StatusTypeDef USART_WaitOnFlagUntilTimeout(USART_HandleTypeDef *husart, uint32_t Flag, FlagStatus Status,
  180. uint32_t Tickstart, uint32_t Timeout);
  181. static HAL_StatusTypeDef USART_SetConfig(USART_HandleTypeDef *husart);
  182. static HAL_StatusTypeDef USART_CheckIdleState(USART_HandleTypeDef *husart);
  183. static void USART_TxISR_8BIT(USART_HandleTypeDef *husart);
  184. static void USART_TxISR_16BIT(USART_HandleTypeDef *husart);
  185. #if defined(USART_CR1_FIFOEN)
  186. static void USART_TxISR_8BIT_FIFOEN(USART_HandleTypeDef *husart);
  187. static void USART_TxISR_16BIT_FIFOEN(USART_HandleTypeDef *husart);
  188. #endif /* USART_CR1_FIFOEN */
  189. static void USART_EndTransmit_IT(USART_HandleTypeDef *husart);
  190. static void USART_RxISR_8BIT(USART_HandleTypeDef *husart);
  191. static void USART_RxISR_16BIT(USART_HandleTypeDef *husart);
  192. #if defined(USART_CR1_FIFOEN)
  193. static void USART_RxISR_8BIT_FIFOEN(USART_HandleTypeDef *husart);
  194. static void USART_RxISR_16BIT_FIFOEN(USART_HandleTypeDef *husart);
  195. #endif /* USART_CR1_FIFOEN */
  196. /**
  197. * @}
  198. */
  199. /* Exported functions --------------------------------------------------------*/
  200. /** @defgroup USART_Exported_Functions USART Exported Functions
  201. * @{
  202. */
  203. /** @defgroup USART_Exported_Functions_Group1 Initialization and de-initialization functions
  204. * @brief Initialization and Configuration functions
  205. *
  206. @verbatim
  207. ===============================================================================
  208. ##### Initialization and Configuration functions #####
  209. ===============================================================================
  210. [..]
  211. This subsection provides a set of functions allowing to initialize the USART
  212. in asynchronous and in synchronous modes.
  213. (+) For the asynchronous mode only these parameters can be configured:
  214. (++) Baud Rate
  215. (++) Word Length
  216. (++) Stop Bit
  217. (++) Parity: If the parity is enabled, then the MSB bit of the data written
  218. in the data register is transmitted but is changed by the parity bit.
  219. (++) USART polarity
  220. (++) USART phase
  221. (++) USART LastBit
  222. (++) Receiver/transmitter modes
  223. [..]
  224. The HAL_USART_Init() function follows the USART synchronous configuration
  225. procedure (details for the procedure are available in reference manual).
  226. @endverbatim
  227. Depending on the frame length defined by the M1 and M0 bits (7-bit,
  228. 8-bit or 9-bit), the possible USART formats are listed in the
  229. following table.
  230. Table 1. USART frame format.
  231. +-----------------------------------------------------------------------+
  232. | M1 bit | M0 bit | PCE bit | USART frame |
  233. |---------|---------|-----------|---------------------------------------|
  234. | 0 | 0 | 0 | | SB | 8 bit data | STB | |
  235. |---------|---------|-----------|---------------------------------------|
  236. | 0 | 0 | 1 | | SB | 7 bit data | PB | STB | |
  237. |---------|---------|-----------|---------------------------------------|
  238. | 0 | 1 | 0 | | SB | 9 bit data | STB | |
  239. |---------|---------|-----------|---------------------------------------|
  240. | 0 | 1 | 1 | | SB | 8 bit data | PB | STB | |
  241. |---------|---------|-----------|---------------------------------------|
  242. | 1 | 0 | 0 | | SB | 7 bit data | STB | |
  243. |---------|---------|-----------|---------------------------------------|
  244. | 1 | 0 | 1 | | SB | 6 bit data | PB | STB | |
  245. +-----------------------------------------------------------------------+
  246. * @{
  247. */
  248. /**
  249. * @brief Initialize the USART mode according to the specified
  250. * parameters in the USART_InitTypeDef and initialize the associated handle.
  251. * @param husart USART handle.
  252. * @retval HAL status
  253. */
  254. HAL_StatusTypeDef HAL_USART_Init(USART_HandleTypeDef *husart)
  255. {
  256. /* Check the USART handle allocation */
  257. if (husart == NULL)
  258. {
  259. return HAL_ERROR;
  260. }
  261. /* Check the parameters */
  262. assert_param(IS_USART_INSTANCE(husart->Instance));
  263. if (husart->State == HAL_USART_STATE_RESET)
  264. {
  265. /* Allocate lock resource and initialize it */
  266. husart->Lock = HAL_UNLOCKED;
  267. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  268. USART_InitCallbacksToDefault(husart);
  269. if (husart->MspInitCallback == NULL)
  270. {
  271. husart->MspInitCallback = HAL_USART_MspInit;
  272. }
  273. /* Init the low level hardware */
  274. husart->MspInitCallback(husart);
  275. #else
  276. /* Init the low level hardware : GPIO, CLOCK */
  277. HAL_USART_MspInit(husart);
  278. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  279. }
  280. husart->State = HAL_USART_STATE_BUSY;
  281. /* Disable the Peripheral */
  282. __HAL_USART_DISABLE(husart);
  283. /* Set the Usart Communication parameters */
  284. if (USART_SetConfig(husart) == HAL_ERROR)
  285. {
  286. return HAL_ERROR;
  287. }
  288. /* In Synchronous mode, the following bits must be kept cleared:
  289. - LINEN bit in the USART_CR2 register
  290. - HDSEL, SCEN and IREN bits in the USART_CR3 register.
  291. */
  292. husart->Instance->CR2 &= ~USART_CR2_LINEN;
  293. husart->Instance->CR3 &= ~(USART_CR3_SCEN | USART_CR3_HDSEL | USART_CR3_IREN);
  294. /* Enable the Peripheral */
  295. __HAL_USART_ENABLE(husart);
  296. /* TEACK and/or REACK to check before moving husart->State to Ready */
  297. return (USART_CheckIdleState(husart));
  298. }
  299. /**
  300. * @brief DeInitialize the USART peripheral.
  301. * @param husart USART handle.
  302. * @retval HAL status
  303. */
  304. HAL_StatusTypeDef HAL_USART_DeInit(USART_HandleTypeDef *husart)
  305. {
  306. /* Check the USART handle allocation */
  307. if (husart == NULL)
  308. {
  309. return HAL_ERROR;
  310. }
  311. /* Check the parameters */
  312. assert_param(IS_USART_INSTANCE(husart->Instance));
  313. husart->State = HAL_USART_STATE_BUSY;
  314. husart->Instance->CR1 = 0x0U;
  315. husart->Instance->CR2 = 0x0U;
  316. husart->Instance->CR3 = 0x0U;
  317. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  318. if (husart->MspDeInitCallback == NULL)
  319. {
  320. husart->MspDeInitCallback = HAL_USART_MspDeInit;
  321. }
  322. /* DeInit the low level hardware */
  323. husart->MspDeInitCallback(husart);
  324. #else
  325. /* DeInit the low level hardware */
  326. HAL_USART_MspDeInit(husart);
  327. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  328. husart->ErrorCode = HAL_USART_ERROR_NONE;
  329. husart->State = HAL_USART_STATE_RESET;
  330. /* Process Unlock */
  331. __HAL_UNLOCK(husart);
  332. return HAL_OK;
  333. }
  334. /**
  335. * @brief Initialize the USART MSP.
  336. * @param husart USART handle.
  337. * @retval None
  338. */
  339. __weak void HAL_USART_MspInit(USART_HandleTypeDef *husart)
  340. {
  341. /* Prevent unused argument(s) compilation warning */
  342. UNUSED(husart);
  343. /* NOTE : This function should not be modified, when the callback is needed,
  344. the HAL_USART_MspInit can be implemented in the user file
  345. */
  346. }
  347. /**
  348. * @brief DeInitialize the USART MSP.
  349. * @param husart USART handle.
  350. * @retval None
  351. */
  352. __weak void HAL_USART_MspDeInit(USART_HandleTypeDef *husart)
  353. {
  354. /* Prevent unused argument(s) compilation warning */
  355. UNUSED(husart);
  356. /* NOTE : This function should not be modified, when the callback is needed,
  357. the HAL_USART_MspDeInit can be implemented in the user file
  358. */
  359. }
  360. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  361. /**
  362. * @brief Register a User USART Callback
  363. * To be used instead of the weak predefined callback
  364. * @param husart usart handle
  365. * @param CallbackID ID of the callback to be registered
  366. * This parameter can be one of the following values:
  367. * @arg @ref HAL_USART_TX_HALFCOMPLETE_CB_ID Tx Half Complete Callback ID
  368. * @arg @ref HAL_USART_TX_COMPLETE_CB_ID Tx Complete Callback ID
  369. * @arg @ref HAL_USART_RX_HALFCOMPLETE_CB_ID Rx Half Complete Callback ID
  370. * @arg @ref HAL_USART_RX_COMPLETE_CB_ID Rx Complete Callback ID
  371. * @arg @ref HAL_USART_TX_RX_COMPLETE_CB_ID Rx Complete Callback ID
  372. * @arg @ref HAL_USART_ERROR_CB_ID Error Callback ID
  373. * @arg @ref HAL_USART_ABORT_COMPLETE_CB_ID Abort Complete Callback ID
  374. * @arg @ref HAL_USART_RX_FIFO_FULL_CB_ID Rx Fifo Full Callback ID
  375. * @arg @ref HAL_USART_TX_FIFO_EMPTY_CB_ID Tx Fifo Empty Callback ID
  376. * @arg @ref HAL_USART_MSPINIT_CB_ID MspInit Callback ID
  377. * @arg @ref HAL_USART_MSPDEINIT_CB_ID MspDeInit Callback ID
  378. * @param pCallback pointer to the Callback function
  379. * @retval HAL status
  380. + */
  381. HAL_StatusTypeDef HAL_USART_RegisterCallback(USART_HandleTypeDef *husart, HAL_USART_CallbackIDTypeDef CallbackID,
  382. pUSART_CallbackTypeDef pCallback)
  383. {
  384. HAL_StatusTypeDef status = HAL_OK;
  385. if (pCallback == NULL)
  386. {
  387. /* Update the error code */
  388. husart->ErrorCode |= HAL_USART_ERROR_INVALID_CALLBACK;
  389. return HAL_ERROR;
  390. }
  391. /* Process locked */
  392. __HAL_LOCK(husart);
  393. if (husart->State == HAL_USART_STATE_READY)
  394. {
  395. switch (CallbackID)
  396. {
  397. case HAL_USART_TX_HALFCOMPLETE_CB_ID :
  398. husart->TxHalfCpltCallback = pCallback;
  399. break;
  400. case HAL_USART_TX_COMPLETE_CB_ID :
  401. husart->TxCpltCallback = pCallback;
  402. break;
  403. case HAL_USART_RX_HALFCOMPLETE_CB_ID :
  404. husart->RxHalfCpltCallback = pCallback;
  405. break;
  406. case HAL_USART_RX_COMPLETE_CB_ID :
  407. husart->RxCpltCallback = pCallback;
  408. break;
  409. case HAL_USART_TX_RX_COMPLETE_CB_ID :
  410. husart->TxRxCpltCallback = pCallback;
  411. break;
  412. case HAL_USART_ERROR_CB_ID :
  413. husart->ErrorCallback = pCallback;
  414. break;
  415. case HAL_USART_ABORT_COMPLETE_CB_ID :
  416. husart->AbortCpltCallback = pCallback;
  417. break;
  418. #if defined(USART_CR1_FIFOEN)
  419. case HAL_USART_RX_FIFO_FULL_CB_ID :
  420. husart->RxFifoFullCallback = pCallback;
  421. break;
  422. case HAL_USART_TX_FIFO_EMPTY_CB_ID :
  423. husart->TxFifoEmptyCallback = pCallback;
  424. break;
  425. #endif /* USART_CR1_FIFOEN */
  426. case HAL_USART_MSPINIT_CB_ID :
  427. husart->MspInitCallback = pCallback;
  428. break;
  429. case HAL_USART_MSPDEINIT_CB_ID :
  430. husart->MspDeInitCallback = pCallback;
  431. break;
  432. default :
  433. /* Update the error code */
  434. husart->ErrorCode |= HAL_USART_ERROR_INVALID_CALLBACK;
  435. /* Return error status */
  436. status = HAL_ERROR;
  437. break;
  438. }
  439. }
  440. else if (husart->State == HAL_USART_STATE_RESET)
  441. {
  442. switch (CallbackID)
  443. {
  444. case HAL_USART_MSPINIT_CB_ID :
  445. husart->MspInitCallback = pCallback;
  446. break;
  447. case HAL_USART_MSPDEINIT_CB_ID :
  448. husart->MspDeInitCallback = pCallback;
  449. break;
  450. default :
  451. /* Update the error code */
  452. husart->ErrorCode |= HAL_USART_ERROR_INVALID_CALLBACK;
  453. /* Return error status */
  454. status = HAL_ERROR;
  455. break;
  456. }
  457. }
  458. else
  459. {
  460. /* Update the error code */
  461. husart->ErrorCode |= HAL_USART_ERROR_INVALID_CALLBACK;
  462. /* Return error status */
  463. status = HAL_ERROR;
  464. }
  465. /* Release Lock */
  466. __HAL_UNLOCK(husart);
  467. return status;
  468. }
  469. /**
  470. * @brief Unregister an USART Callback
  471. * USART callaback is redirected to the weak predefined callback
  472. * @param husart usart handle
  473. * @param CallbackID ID of the callback to be unregistered
  474. * This parameter can be one of the following values:
  475. * @arg @ref HAL_USART_TX_HALFCOMPLETE_CB_ID Tx Half Complete Callback ID
  476. * @arg @ref HAL_USART_TX_COMPLETE_CB_ID Tx Complete Callback ID
  477. * @arg @ref HAL_USART_RX_HALFCOMPLETE_CB_ID Rx Half Complete Callback ID
  478. * @arg @ref HAL_USART_RX_COMPLETE_CB_ID Rx Complete Callback ID
  479. * @arg @ref HAL_USART_TX_RX_COMPLETE_CB_ID Rx Complete Callback ID
  480. * @arg @ref HAL_USART_ERROR_CB_ID Error Callback ID
  481. * @arg @ref HAL_USART_ABORT_COMPLETE_CB_ID Abort Complete Callback ID
  482. * @arg @ref HAL_USART_RX_FIFO_FULL_CB_ID Rx Fifo Full Callback ID
  483. * @arg @ref HAL_USART_TX_FIFO_EMPTY_CB_ID Tx Fifo Empty Callback ID
  484. * @arg @ref HAL_USART_MSPINIT_CB_ID MspInit Callback ID
  485. * @arg @ref HAL_USART_MSPDEINIT_CB_ID MspDeInit Callback ID
  486. * @retval HAL status
  487. */
  488. HAL_StatusTypeDef HAL_USART_UnRegisterCallback(USART_HandleTypeDef *husart, HAL_USART_CallbackIDTypeDef CallbackID)
  489. {
  490. HAL_StatusTypeDef status = HAL_OK;
  491. /* Process locked */
  492. __HAL_LOCK(husart);
  493. if (HAL_USART_STATE_READY == husart->State)
  494. {
  495. switch (CallbackID)
  496. {
  497. case HAL_USART_TX_HALFCOMPLETE_CB_ID :
  498. husart->TxHalfCpltCallback = HAL_USART_TxHalfCpltCallback; /* Legacy weak TxHalfCpltCallback */
  499. break;
  500. case HAL_USART_TX_COMPLETE_CB_ID :
  501. husart->TxCpltCallback = HAL_USART_TxCpltCallback; /* Legacy weak TxCpltCallback */
  502. break;
  503. case HAL_USART_RX_HALFCOMPLETE_CB_ID :
  504. husart->RxHalfCpltCallback = HAL_USART_RxHalfCpltCallback; /* Legacy weak RxHalfCpltCallback */
  505. break;
  506. case HAL_USART_RX_COMPLETE_CB_ID :
  507. husart->RxCpltCallback = HAL_USART_RxCpltCallback; /* Legacy weak RxCpltCallback */
  508. break;
  509. case HAL_USART_TX_RX_COMPLETE_CB_ID :
  510. husart->TxRxCpltCallback = HAL_USART_TxRxCpltCallback; /* Legacy weak TxRxCpltCallback */
  511. break;
  512. case HAL_USART_ERROR_CB_ID :
  513. husart->ErrorCallback = HAL_USART_ErrorCallback; /* Legacy weak ErrorCallback */
  514. break;
  515. case HAL_USART_ABORT_COMPLETE_CB_ID :
  516. husart->AbortCpltCallback = HAL_USART_AbortCpltCallback; /* Legacy weak AbortCpltCallback */
  517. break;
  518. #if defined(USART_CR1_FIFOEN)
  519. case HAL_USART_RX_FIFO_FULL_CB_ID :
  520. husart->RxFifoFullCallback = HAL_USARTEx_RxFifoFullCallback; /* Legacy weak RxFifoFullCallback */
  521. break;
  522. case HAL_USART_TX_FIFO_EMPTY_CB_ID :
  523. husart->TxFifoEmptyCallback = HAL_USARTEx_TxFifoEmptyCallback; /* Legacy weak TxFifoEmptyCallback */
  524. break;
  525. #endif /* USART_CR1_FIFOEN */
  526. case HAL_USART_MSPINIT_CB_ID :
  527. husart->MspInitCallback = HAL_USART_MspInit; /* Legacy weak MspInitCallback */
  528. break;
  529. case HAL_USART_MSPDEINIT_CB_ID :
  530. husart->MspDeInitCallback = HAL_USART_MspDeInit; /* Legacy weak MspDeInitCallback */
  531. break;
  532. default :
  533. /* Update the error code */
  534. husart->ErrorCode |= HAL_USART_ERROR_INVALID_CALLBACK;
  535. /* Return error status */
  536. status = HAL_ERROR;
  537. break;
  538. }
  539. }
  540. else if (HAL_USART_STATE_RESET == husart->State)
  541. {
  542. switch (CallbackID)
  543. {
  544. case HAL_USART_MSPINIT_CB_ID :
  545. husart->MspInitCallback = HAL_USART_MspInit;
  546. break;
  547. case HAL_USART_MSPDEINIT_CB_ID :
  548. husart->MspDeInitCallback = HAL_USART_MspDeInit;
  549. break;
  550. default :
  551. /* Update the error code */
  552. husart->ErrorCode |= HAL_USART_ERROR_INVALID_CALLBACK;
  553. /* Return error status */
  554. status = HAL_ERROR;
  555. break;
  556. }
  557. }
  558. else
  559. {
  560. /* Update the error code */
  561. husart->ErrorCode |= HAL_USART_ERROR_INVALID_CALLBACK;
  562. /* Return error status */
  563. status = HAL_ERROR;
  564. }
  565. /* Release Lock */
  566. __HAL_UNLOCK(husart);
  567. return status;
  568. }
  569. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  570. /**
  571. * @}
  572. */
  573. /** @defgroup USART_Exported_Functions_Group2 IO operation functions
  574. * @brief USART Transmit and Receive functions
  575. *
  576. @verbatim
  577. ===============================================================================
  578. ##### IO operation functions #####
  579. ===============================================================================
  580. [..] This subsection provides a set of functions allowing to manage the USART synchronous
  581. data transfers.
  582. [..] The USART supports master mode only: it cannot receive or send data related to an input
  583. clock (SCLK is always an output).
  584. [..]
  585. (#) There are two modes of transfer:
  586. (++) Blocking mode: The communication is performed in polling mode.
  587. The HAL status of all data processing is returned by the same function
  588. after finishing transfer.
  589. (++) No-Blocking mode: The communication is performed using Interrupts
  590. or DMA, These API's return the HAL status.
  591. The end of the data processing will be indicated through the
  592. dedicated USART IRQ when using Interrupt mode or the DMA IRQ when
  593. using DMA mode.
  594. The HAL_USART_TxCpltCallback(), HAL_USART_RxCpltCallback() and HAL_USART_TxRxCpltCallback() user callbacks
  595. will be executed respectively at the end of the transmit or Receive process
  596. The HAL_USART_ErrorCallback()user callback will be executed when a communication error is detected
  597. (#) Blocking mode API's are :
  598. (++) HAL_USART_Transmit() in simplex mode
  599. (++) HAL_USART_Receive() in full duplex receive only
  600. (++) HAL_USART_TransmitReceive() in full duplex mode
  601. (#) Non-Blocking mode API's with Interrupt are :
  602. (++) HAL_USART_Transmit_IT() in simplex mode
  603. (++) HAL_USART_Receive_IT() in full duplex receive only
  604. (++) HAL_USART_TransmitReceive_IT() in full duplex mode
  605. (++) HAL_USART_IRQHandler()
  606. (#) No-Blocking mode API's with DMA are :
  607. (++) HAL_USART_Transmit_DMA() in simplex mode
  608. (++) HAL_USART_Receive_DMA() in full duplex receive only
  609. (++) HAL_USART_TransmitReceive_DMA() in full duplex mode
  610. (++) HAL_USART_DMAPause()
  611. (++) HAL_USART_DMAResume()
  612. (++) HAL_USART_DMAStop()
  613. (#) A set of Transfer Complete Callbacks are provided in Non_Blocking mode:
  614. (++) HAL_USART_TxCpltCallback()
  615. (++) HAL_USART_RxCpltCallback()
  616. (++) HAL_USART_TxHalfCpltCallback()
  617. (++) HAL_USART_RxHalfCpltCallback()
  618. (++) HAL_USART_ErrorCallback()
  619. (++) HAL_USART_TxRxCpltCallback()
  620. (#) Non-Blocking mode transfers could be aborted using Abort API's :
  621. (++) HAL_USART_Abort()
  622. (++) HAL_USART_Abort_IT()
  623. (#) For Abort services based on interrupts (HAL_USART_Abort_IT), a Abort Complete Callbacks is provided:
  624. (++) HAL_USART_AbortCpltCallback()
  625. (#) In Non-Blocking mode transfers, possible errors are split into 2 categories.
  626. Errors are handled as follows :
  627. (++) Error is considered as Recoverable and non blocking : Transfer could go till end, but error severity is
  628. to be evaluated by user : this concerns Frame Error,
  629. Parity Error or Noise Error in Interrupt mode reception .
  630. Received character is then retrieved and stored in Rx buffer, Error code is set to allow user to identify
  631. error type, and HAL_USART_ErrorCallback() user callback is executed.
  632. Transfer is kept ongoing on USART side.
  633. If user wants to abort it, Abort services should be called by user.
  634. (++) Error is considered as Blocking : Transfer could not be completed properly and is aborted.
  635. This concerns Overrun Error In Interrupt mode reception and all errors in DMA mode.
  636. Error code is set to allow user to identify error type,
  637. and HAL_USART_ErrorCallback() user callback is executed.
  638. @endverbatim
  639. * @{
  640. */
  641. /**
  642. * @brief Simplex send an amount of data in blocking mode.
  643. * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
  644. * the sent data is handled as a set of u16. In this case, Size must indicate the number
  645. * of u16 provided through pTxData.
  646. * @param husart USART handle.
  647. * @param pTxData Pointer to data buffer (u8 or u16 data elements).
  648. * @param Size Amount of data elements (u8 or u16) to be sent.
  649. * @param Timeout Timeout duration.
  650. * @retval HAL status
  651. */
  652. HAL_StatusTypeDef HAL_USART_Transmit(USART_HandleTypeDef *husart, const uint8_t *pTxData, uint16_t Size,
  653. uint32_t Timeout)
  654. {
  655. const uint8_t *ptxdata8bits;
  656. const uint16_t *ptxdata16bits;
  657. uint32_t tickstart;
  658. if (husart->State == HAL_USART_STATE_READY)
  659. {
  660. if ((pTxData == NULL) || (Size == 0U))
  661. {
  662. return HAL_ERROR;
  663. }
  664. /* Process Locked */
  665. __HAL_LOCK(husart);
  666. husart->ErrorCode = HAL_USART_ERROR_NONE;
  667. husart->State = HAL_USART_STATE_BUSY_TX;
  668. /* Init tickstart for timeout management */
  669. tickstart = HAL_GetTick();
  670. husart->TxXferSize = Size;
  671. husart->TxXferCount = Size;
  672. /* In case of 9bits/No Parity transfer, pTxData needs to be handled as a uint16_t pointer */
  673. if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
  674. {
  675. ptxdata8bits = NULL;
  676. ptxdata16bits = (const uint16_t *) pTxData;
  677. }
  678. else
  679. {
  680. ptxdata8bits = pTxData;
  681. ptxdata16bits = NULL;
  682. }
  683. /* Check the remaining data to be sent */
  684. while (husart->TxXferCount > 0U)
  685. {
  686. if (USART_WaitOnFlagUntilTimeout(husart, USART_FLAG_TXE, RESET, tickstart, Timeout) != HAL_OK)
  687. {
  688. return HAL_TIMEOUT;
  689. }
  690. if (ptxdata8bits == NULL)
  691. {
  692. husart->Instance->TDR = (uint16_t)(*ptxdata16bits & 0x01FFU);
  693. ptxdata16bits++;
  694. }
  695. else
  696. {
  697. husart->Instance->TDR = (uint8_t)(*ptxdata8bits & 0xFFU);
  698. ptxdata8bits++;
  699. }
  700. husart->TxXferCount--;
  701. }
  702. if (USART_WaitOnFlagUntilTimeout(husart, USART_FLAG_TC, RESET, tickstart, Timeout) != HAL_OK)
  703. {
  704. return HAL_TIMEOUT;
  705. }
  706. /* Clear Transmission Complete Flag */
  707. __HAL_USART_CLEAR_FLAG(husart, USART_CLEAR_TCF);
  708. /* Clear overrun flag and discard the received data */
  709. __HAL_USART_CLEAR_OREFLAG(husart);
  710. __HAL_USART_SEND_REQ(husart, USART_RXDATA_FLUSH_REQUEST);
  711. __HAL_USART_SEND_REQ(husart, USART_TXDATA_FLUSH_REQUEST);
  712. /* At end of Tx process, restore husart->State to Ready */
  713. husart->State = HAL_USART_STATE_READY;
  714. /* Process Unlocked */
  715. __HAL_UNLOCK(husart);
  716. return HAL_OK;
  717. }
  718. else
  719. {
  720. return HAL_BUSY;
  721. }
  722. }
  723. /**
  724. * @brief Receive an amount of data in blocking mode.
  725. * @note To receive synchronous data, dummy data are simultaneously transmitted.
  726. * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
  727. * the received data is handled as a set of u16. In this case, Size must indicate the number
  728. * of u16 available through pRxData.
  729. * @param husart USART handle.
  730. * @param pRxData Pointer to data buffer (u8 or u16 data elements).
  731. * @param Size Amount of data elements (u8 or u16) to be received.
  732. * @param Timeout Timeout duration.
  733. * @retval HAL status
  734. */
  735. HAL_StatusTypeDef HAL_USART_Receive(USART_HandleTypeDef *husart, uint8_t *pRxData, uint16_t Size, uint32_t Timeout)
  736. {
  737. uint8_t *prxdata8bits;
  738. uint16_t *prxdata16bits;
  739. uint16_t uhMask;
  740. uint32_t tickstart;
  741. if (husart->State == HAL_USART_STATE_READY)
  742. {
  743. if ((pRxData == NULL) || (Size == 0U))
  744. {
  745. return HAL_ERROR;
  746. }
  747. /* Process Locked */
  748. __HAL_LOCK(husart);
  749. husart->ErrorCode = HAL_USART_ERROR_NONE;
  750. husart->State = HAL_USART_STATE_BUSY_RX;
  751. /* Init tickstart for timeout management */
  752. tickstart = HAL_GetTick();
  753. husart->RxXferSize = Size;
  754. husart->RxXferCount = Size;
  755. /* Computation of USART mask to apply to RDR register */
  756. USART_MASK_COMPUTATION(husart);
  757. uhMask = husart->Mask;
  758. /* In case of 9bits/No Parity transfer, pRxData needs to be handled as a uint16_t pointer */
  759. if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
  760. {
  761. prxdata8bits = NULL;
  762. prxdata16bits = (uint16_t *) pRxData;
  763. }
  764. else
  765. {
  766. prxdata8bits = pRxData;
  767. prxdata16bits = NULL;
  768. }
  769. /* as long as data have to be received */
  770. while (husart->RxXferCount > 0U)
  771. {
  772. #if defined(USART_CR2_SLVEN)
  773. if (husart->SlaveMode == USART_SLAVEMODE_DISABLE)
  774. #endif /* USART_CR2_SLVEN */
  775. {
  776. /* Wait until TXE flag is set to send dummy byte in order to generate the
  777. * clock for the slave to send data.
  778. * Whatever the frame length (7, 8 or 9-bit long), the same dummy value
  779. * can be written for all the cases. */
  780. if (USART_WaitOnFlagUntilTimeout(husart, USART_FLAG_TXE, RESET, tickstart, Timeout) != HAL_OK)
  781. {
  782. return HAL_TIMEOUT;
  783. }
  784. husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x0FF);
  785. }
  786. /* Wait for RXNE Flag */
  787. if (USART_WaitOnFlagUntilTimeout(husart, USART_FLAG_RXNE, RESET, tickstart, Timeout) != HAL_OK)
  788. {
  789. return HAL_TIMEOUT;
  790. }
  791. if (prxdata8bits == NULL)
  792. {
  793. *prxdata16bits = (uint16_t)(husart->Instance->RDR & uhMask);
  794. prxdata16bits++;
  795. }
  796. else
  797. {
  798. *prxdata8bits = (uint8_t)(husart->Instance->RDR & (uint8_t)(uhMask & 0xFFU));
  799. prxdata8bits++;
  800. }
  801. husart->RxXferCount--;
  802. }
  803. #if defined(USART_CR2_SLVEN)
  804. /* Clear SPI slave underrun flag and discard transmit data */
  805. if (husart->SlaveMode == USART_SLAVEMODE_ENABLE)
  806. {
  807. __HAL_USART_CLEAR_UDRFLAG(husart);
  808. __HAL_USART_SEND_REQ(husart, USART_TXDATA_FLUSH_REQUEST);
  809. }
  810. #endif /* USART_CR2_SLVEN */
  811. /* At end of Rx process, restore husart->State to Ready */
  812. husart->State = HAL_USART_STATE_READY;
  813. /* Process Unlocked */
  814. __HAL_UNLOCK(husart);
  815. return HAL_OK;
  816. }
  817. else
  818. {
  819. return HAL_BUSY;
  820. }
  821. }
  822. /**
  823. * @brief Full-Duplex Send and Receive an amount of data in blocking mode.
  824. * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
  825. * the sent data and the received data are handled as sets of u16. In this case, Size must indicate the number
  826. * of u16 available through pTxData and through pRxData.
  827. * @param husart USART handle.
  828. * @param pTxData pointer to TX data buffer (u8 or u16 data elements).
  829. * @param pRxData pointer to RX data buffer (u8 or u16 data elements).
  830. * @param Size amount of data elements (u8 or u16) to be sent (same amount to be received).
  831. * @param Timeout Timeout duration.
  832. * @retval HAL status
  833. */
  834. HAL_StatusTypeDef HAL_USART_TransmitReceive(USART_HandleTypeDef *husart, const uint8_t *pTxData, uint8_t *pRxData,
  835. uint16_t Size, uint32_t Timeout)
  836. {
  837. uint8_t *prxdata8bits;
  838. uint16_t *prxdata16bits;
  839. const uint8_t *ptxdata8bits;
  840. const uint16_t *ptxdata16bits;
  841. uint16_t uhMask;
  842. uint16_t rxdatacount;
  843. uint32_t tickstart;
  844. if (husart->State == HAL_USART_STATE_READY)
  845. {
  846. if ((pTxData == NULL) || (pRxData == NULL) || (Size == 0U))
  847. {
  848. return HAL_ERROR;
  849. }
  850. /* Process Locked */
  851. __HAL_LOCK(husart);
  852. husart->ErrorCode = HAL_USART_ERROR_NONE;
  853. husart->State = HAL_USART_STATE_BUSY_RX;
  854. /* Init tickstart for timeout management */
  855. tickstart = HAL_GetTick();
  856. husart->RxXferSize = Size;
  857. husart->TxXferSize = Size;
  858. husart->TxXferCount = Size;
  859. husart->RxXferCount = Size;
  860. /* Computation of USART mask to apply to RDR register */
  861. USART_MASK_COMPUTATION(husart);
  862. uhMask = husart->Mask;
  863. /* In case of 9bits/No Parity transfer, pRxData needs to be handled as a uint16_t pointer */
  864. if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
  865. {
  866. prxdata8bits = NULL;
  867. ptxdata8bits = NULL;
  868. ptxdata16bits = (const uint16_t *) pTxData;
  869. prxdata16bits = (uint16_t *) pRxData;
  870. }
  871. else
  872. {
  873. prxdata8bits = pRxData;
  874. ptxdata8bits = pTxData;
  875. ptxdata16bits = NULL;
  876. prxdata16bits = NULL;
  877. }
  878. #if defined(USART_CR2_SLVEN)
  879. if ((husart->TxXferCount == 0x01U) || (husart->SlaveMode == USART_SLAVEMODE_ENABLE))
  880. #else
  881. if (husart->TxXferCount == 0x01U)
  882. #endif /* USART_CR2_SLVEN */
  883. {
  884. /* Wait until TXE flag is set to send data */
  885. if (USART_WaitOnFlagUntilTimeout(husart, USART_FLAG_TXE, RESET, tickstart, Timeout) != HAL_OK)
  886. {
  887. return HAL_TIMEOUT;
  888. }
  889. if (ptxdata8bits == NULL)
  890. {
  891. husart->Instance->TDR = (uint16_t)(*ptxdata16bits & uhMask);
  892. ptxdata16bits++;
  893. }
  894. else
  895. {
  896. husart->Instance->TDR = (uint8_t)(*ptxdata8bits & (uint8_t)(uhMask & 0xFFU));
  897. ptxdata8bits++;
  898. }
  899. husart->TxXferCount--;
  900. }
  901. /* Check the remain data to be sent */
  902. /* rxdatacount is a temporary variable for MISRAC2012-Rule-13.5 */
  903. rxdatacount = husart->RxXferCount;
  904. while ((husart->TxXferCount > 0U) || (rxdatacount > 0U))
  905. {
  906. if (husart->TxXferCount > 0U)
  907. {
  908. /* Wait until TXE flag is set to send data */
  909. if (USART_WaitOnFlagUntilTimeout(husart, USART_FLAG_TXE, RESET, tickstart, Timeout) != HAL_OK)
  910. {
  911. return HAL_TIMEOUT;
  912. }
  913. if (ptxdata8bits == NULL)
  914. {
  915. husart->Instance->TDR = (uint16_t)(*ptxdata16bits & uhMask);
  916. ptxdata16bits++;
  917. }
  918. else
  919. {
  920. husart->Instance->TDR = (uint8_t)(*ptxdata8bits & (uint8_t)(uhMask & 0xFFU));
  921. ptxdata8bits++;
  922. }
  923. husart->TxXferCount--;
  924. }
  925. if (husart->RxXferCount > 0U)
  926. {
  927. /* Wait for RXNE Flag */
  928. if (USART_WaitOnFlagUntilTimeout(husart, USART_FLAG_RXNE, RESET, tickstart, Timeout) != HAL_OK)
  929. {
  930. return HAL_TIMEOUT;
  931. }
  932. if (prxdata8bits == NULL)
  933. {
  934. *prxdata16bits = (uint16_t)(husart->Instance->RDR & uhMask);
  935. prxdata16bits++;
  936. }
  937. else
  938. {
  939. *prxdata8bits = (uint8_t)(husart->Instance->RDR & (uint8_t)(uhMask & 0xFFU));
  940. prxdata8bits++;
  941. }
  942. husart->RxXferCount--;
  943. }
  944. rxdatacount = husart->RxXferCount;
  945. }
  946. /* At end of TxRx process, restore husart->State to Ready */
  947. husart->State = HAL_USART_STATE_READY;
  948. /* Process Unlocked */
  949. __HAL_UNLOCK(husart);
  950. return HAL_OK;
  951. }
  952. else
  953. {
  954. return HAL_BUSY;
  955. }
  956. }
  957. /**
  958. * @brief Send an amount of data in interrupt mode.
  959. * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
  960. * the sent data is handled as a set of u16. In this case, Size must indicate the number
  961. * of u16 provided through pTxData.
  962. * @param husart USART handle.
  963. * @param pTxData pointer to data buffer (u8 or u16 data elements).
  964. * @param Size amount of data elements (u8 or u16) to be sent.
  965. * @retval HAL status
  966. */
  967. HAL_StatusTypeDef HAL_USART_Transmit_IT(USART_HandleTypeDef *husart, const uint8_t *pTxData, uint16_t Size)
  968. {
  969. if (husart->State == HAL_USART_STATE_READY)
  970. {
  971. if ((pTxData == NULL) || (Size == 0U))
  972. {
  973. return HAL_ERROR;
  974. }
  975. /* Process Locked */
  976. __HAL_LOCK(husart);
  977. husart->pTxBuffPtr = pTxData;
  978. husart->TxXferSize = Size;
  979. husart->TxXferCount = Size;
  980. husart->TxISR = NULL;
  981. husart->ErrorCode = HAL_USART_ERROR_NONE;
  982. husart->State = HAL_USART_STATE_BUSY_TX;
  983. /* The USART Error Interrupts: (Frame error, noise error, overrun error)
  984. are not managed by the USART Transmit Process to avoid the overrun interrupt
  985. when the usart mode is configured for transmit and receive "USART_MODE_TX_RX"
  986. to benefit for the frame error and noise interrupts the usart mode should be
  987. configured only for transmit "USART_MODE_TX" */
  988. #if defined(USART_CR1_FIFOEN)
  989. /* Configure Tx interrupt processing */
  990. if (husart->FifoMode == USART_FIFOMODE_ENABLE)
  991. {
  992. /* Set the Tx ISR function pointer according to the data word length */
  993. if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
  994. {
  995. husart->TxISR = USART_TxISR_16BIT_FIFOEN;
  996. }
  997. else
  998. {
  999. husart->TxISR = USART_TxISR_8BIT_FIFOEN;
  1000. }
  1001. /* Process Unlocked */
  1002. __HAL_UNLOCK(husart);
  1003. /* Enable the TX FIFO threshold interrupt */
  1004. __HAL_USART_ENABLE_IT(husart, USART_IT_TXFT);
  1005. }
  1006. else
  1007. #endif /* USART_CR1_FIFOEN */
  1008. {
  1009. /* Set the Tx ISR function pointer according to the data word length */
  1010. if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
  1011. {
  1012. husart->TxISR = USART_TxISR_16BIT;
  1013. }
  1014. else
  1015. {
  1016. husart->TxISR = USART_TxISR_8BIT;
  1017. }
  1018. /* Process Unlocked */
  1019. __HAL_UNLOCK(husart);
  1020. /* Enable the USART Transmit Data Register Empty Interrupt */
  1021. __HAL_USART_ENABLE_IT(husart, USART_IT_TXE);
  1022. }
  1023. return HAL_OK;
  1024. }
  1025. else
  1026. {
  1027. return HAL_BUSY;
  1028. }
  1029. }
  1030. /**
  1031. * @brief Receive an amount of data in interrupt mode.
  1032. * @note To receive synchronous data, dummy data are simultaneously transmitted.
  1033. * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
  1034. * the received data is handled as a set of u16. In this case, Size must indicate the number
  1035. * of u16 available through pRxData.
  1036. * @param husart USART handle.
  1037. * @param pRxData pointer to data buffer (u8 or u16 data elements).
  1038. * @param Size amount of data elements (u8 or u16) to be received.
  1039. * @retval HAL status
  1040. */
  1041. HAL_StatusTypeDef HAL_USART_Receive_IT(USART_HandleTypeDef *husart, uint8_t *pRxData, uint16_t Size)
  1042. {
  1043. #if defined(USART_CR1_FIFOEN)
  1044. uint16_t nb_dummy_data;
  1045. #endif /* USART_CR1_FIFOEN */
  1046. if (husart->State == HAL_USART_STATE_READY)
  1047. {
  1048. if ((pRxData == NULL) || (Size == 0U))
  1049. {
  1050. return HAL_ERROR;
  1051. }
  1052. /* Process Locked */
  1053. __HAL_LOCK(husart);
  1054. husart->pRxBuffPtr = pRxData;
  1055. husart->RxXferSize = Size;
  1056. husart->RxXferCount = Size;
  1057. husart->RxISR = NULL;
  1058. USART_MASK_COMPUTATION(husart);
  1059. husart->ErrorCode = HAL_USART_ERROR_NONE;
  1060. husart->State = HAL_USART_STATE_BUSY_RX;
  1061. /* Enable the USART Error Interrupt: (Frame error, noise error, overrun error) */
  1062. SET_BIT(husart->Instance->CR3, USART_CR3_EIE);
  1063. #if defined(USART_CR1_FIFOEN)
  1064. /* Configure Rx interrupt processing */
  1065. if ((husart->FifoMode == USART_FIFOMODE_ENABLE) && (Size >= husart->NbRxDataToProcess))
  1066. {
  1067. /* Set the Rx ISR function pointer according to the data word length */
  1068. if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
  1069. {
  1070. husart->RxISR = USART_RxISR_16BIT_FIFOEN;
  1071. }
  1072. else
  1073. {
  1074. husart->RxISR = USART_RxISR_8BIT_FIFOEN;
  1075. }
  1076. /* Process Unlocked */
  1077. __HAL_UNLOCK(husart);
  1078. /* Enable the USART Parity Error interrupt and RX FIFO Threshold interrupt */
  1079. if (husart->Init.Parity != USART_PARITY_NONE)
  1080. {
  1081. SET_BIT(husart->Instance->CR1, USART_CR1_PEIE);
  1082. }
  1083. SET_BIT(husart->Instance->CR3, USART_CR3_RXFTIE);
  1084. }
  1085. else
  1086. #endif /* USART_CR1_FIFOEN */
  1087. {
  1088. /* Set the Rx ISR function pointer according to the data word length */
  1089. if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
  1090. {
  1091. husart->RxISR = USART_RxISR_16BIT;
  1092. }
  1093. else
  1094. {
  1095. husart->RxISR = USART_RxISR_8BIT;
  1096. }
  1097. /* Process Unlocked */
  1098. __HAL_UNLOCK(husart);
  1099. /* Enable the USART Parity Error and Data Register not empty Interrupts */
  1100. #if defined(USART_CR1_FIFOEN)
  1101. if (husart->Init.Parity != USART_PARITY_NONE)
  1102. {
  1103. SET_BIT(husart->Instance->CR1, USART_CR1_PEIE | USART_CR1_RXNEIE_RXFNEIE);
  1104. }
  1105. else
  1106. {
  1107. SET_BIT(husart->Instance->CR1, USART_CR1_RXNEIE_RXFNEIE);
  1108. }
  1109. #else
  1110. if (husart->Init.Parity != USART_PARITY_NONE)
  1111. {
  1112. SET_BIT(husart->Instance->CR1, USART_CR1_PEIE | USART_CR1_RXNEIE);
  1113. }
  1114. else
  1115. {
  1116. SET_BIT(husart->Instance->CR1, USART_CR1_RXNEIE);
  1117. }
  1118. #endif /* USART_CR1_FIFOEN */
  1119. }
  1120. #if defined(USART_CR2_SLVEN)
  1121. if (husart->SlaveMode == USART_SLAVEMODE_DISABLE)
  1122. #endif /* USART_CR2_SLVEN */
  1123. {
  1124. /* Send dummy data in order to generate the clock for the Slave to send the next data.
  1125. When FIFO mode is disabled only one data must be transferred.
  1126. When FIFO mode is enabled data must be transmitted until the RX FIFO reaches its threshold.
  1127. */
  1128. #if defined(USART_CR1_FIFOEN)
  1129. if ((husart->FifoMode == USART_FIFOMODE_ENABLE) && (Size >= husart->NbRxDataToProcess))
  1130. {
  1131. for (nb_dummy_data = husart->NbRxDataToProcess ; nb_dummy_data > 0U ; nb_dummy_data--)
  1132. {
  1133. husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x00FF);
  1134. }
  1135. }
  1136. else
  1137. #endif /* USART_CR1_FIFOEN */
  1138. {
  1139. husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x00FF);
  1140. }
  1141. }
  1142. return HAL_OK;
  1143. }
  1144. else
  1145. {
  1146. return HAL_BUSY;
  1147. }
  1148. }
  1149. /**
  1150. * @brief Full-Duplex Send and Receive an amount of data in interrupt mode.
  1151. * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
  1152. * the sent data and the received data are handled as sets of u16. In this case, Size must indicate the number
  1153. * of u16 available through pTxData and through pRxData.
  1154. * @param husart USART handle.
  1155. * @param pTxData pointer to TX data buffer (u8 or u16 data elements).
  1156. * @param pRxData pointer to RX data buffer (u8 or u16 data elements).
  1157. * @param Size amount of data elements (u8 or u16) to be sent (same amount to be received).
  1158. * @retval HAL status
  1159. */
  1160. HAL_StatusTypeDef HAL_USART_TransmitReceive_IT(USART_HandleTypeDef *husart, const uint8_t *pTxData, uint8_t *pRxData,
  1161. uint16_t Size)
  1162. {
  1163. if (husart->State == HAL_USART_STATE_READY)
  1164. {
  1165. if ((pTxData == NULL) || (pRxData == NULL) || (Size == 0U))
  1166. {
  1167. return HAL_ERROR;
  1168. }
  1169. /* Process Locked */
  1170. __HAL_LOCK(husart);
  1171. husart->pRxBuffPtr = pRxData;
  1172. husart->RxXferSize = Size;
  1173. husart->RxXferCount = Size;
  1174. husart->pTxBuffPtr = pTxData;
  1175. husart->TxXferSize = Size;
  1176. husart->TxXferCount = Size;
  1177. /* Computation of USART mask to apply to RDR register */
  1178. USART_MASK_COMPUTATION(husart);
  1179. husart->ErrorCode = HAL_USART_ERROR_NONE;
  1180. husart->State = HAL_USART_STATE_BUSY_TX_RX;
  1181. #if defined(USART_CR1_FIFOEN)
  1182. /* Configure TxRx interrupt processing */
  1183. if ((husart->FifoMode == USART_FIFOMODE_ENABLE) && (Size >= husart->NbRxDataToProcess))
  1184. {
  1185. /* Set the Rx ISR function pointer according to the data word length */
  1186. if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
  1187. {
  1188. husart->TxISR = USART_TxISR_16BIT_FIFOEN;
  1189. husart->RxISR = USART_RxISR_16BIT_FIFOEN;
  1190. }
  1191. else
  1192. {
  1193. husart->TxISR = USART_TxISR_8BIT_FIFOEN;
  1194. husart->RxISR = USART_RxISR_8BIT_FIFOEN;
  1195. }
  1196. /* Process Locked */
  1197. __HAL_UNLOCK(husart);
  1198. /* Enable the USART Error Interrupt: (Frame error, noise error, overrun error) */
  1199. SET_BIT(husart->Instance->CR3, USART_CR3_EIE);
  1200. if (husart->Init.Parity != USART_PARITY_NONE)
  1201. {
  1202. /* Enable the USART Parity Error interrupt */
  1203. SET_BIT(husart->Instance->CR1, USART_CR1_PEIE);
  1204. }
  1205. /* Enable the TX and RX FIFO Threshold interrupts */
  1206. SET_BIT(husart->Instance->CR3, (USART_CR3_TXFTIE | USART_CR3_RXFTIE));
  1207. }
  1208. else
  1209. #endif /* USART_CR1_FIFOEN */
  1210. {
  1211. if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
  1212. {
  1213. husart->TxISR = USART_TxISR_16BIT;
  1214. husart->RxISR = USART_RxISR_16BIT;
  1215. }
  1216. else
  1217. {
  1218. husart->TxISR = USART_TxISR_8BIT;
  1219. husart->RxISR = USART_RxISR_8BIT;
  1220. }
  1221. /* Process Locked */
  1222. __HAL_UNLOCK(husart);
  1223. /* Enable the USART Error Interrupt: (Frame error, noise error, overrun error) */
  1224. SET_BIT(husart->Instance->CR3, USART_CR3_EIE);
  1225. /* Enable the USART Parity Error and USART Data Register not empty Interrupts */
  1226. #if defined(USART_CR1_FIFOEN)
  1227. if (husart->Init.Parity != USART_PARITY_NONE)
  1228. {
  1229. SET_BIT(husart->Instance->CR1, USART_CR1_PEIE | USART_CR1_RXNEIE_RXFNEIE);
  1230. }
  1231. else
  1232. {
  1233. SET_BIT(husart->Instance->CR1, USART_CR1_RXNEIE_RXFNEIE);
  1234. }
  1235. #else
  1236. if (husart->Init.Parity != USART_PARITY_NONE)
  1237. {
  1238. SET_BIT(husart->Instance->CR1, USART_CR1_PEIE | USART_CR1_RXNEIE);
  1239. }
  1240. else
  1241. {
  1242. SET_BIT(husart->Instance->CR1, USART_CR1_RXNEIE);
  1243. }
  1244. #endif /* USART_CR1_FIFOEN */
  1245. /* Enable the USART Transmit Data Register Empty Interrupt */
  1246. #if defined(USART_CR1_FIFOEN)
  1247. SET_BIT(husart->Instance->CR1, USART_CR1_TXEIE_TXFNFIE);
  1248. #else
  1249. SET_BIT(husart->Instance->CR1, USART_CR1_TXEIE);
  1250. #endif /* USART_CR1_FIFOEN */
  1251. }
  1252. return HAL_OK;
  1253. }
  1254. else
  1255. {
  1256. return HAL_BUSY;
  1257. }
  1258. }
  1259. /**
  1260. * @brief Send an amount of data in DMA mode.
  1261. * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
  1262. * the sent data is handled as a set of u16. In this case, Size must indicate the number
  1263. * of u16 provided through pTxData.
  1264. * @param husart USART handle.
  1265. * @param pTxData pointer to data buffer (u8 or u16 data elements).
  1266. * @param Size amount of data elements (u8 or u16) to be sent.
  1267. * @retval HAL status
  1268. */
  1269. HAL_StatusTypeDef HAL_USART_Transmit_DMA(USART_HandleTypeDef *husart, const uint8_t *pTxData, uint16_t Size)
  1270. {
  1271. HAL_StatusTypeDef status = HAL_OK;
  1272. const uint32_t *tmp;
  1273. if (husart->State == HAL_USART_STATE_READY)
  1274. {
  1275. if ((pTxData == NULL) || (Size == 0U))
  1276. {
  1277. return HAL_ERROR;
  1278. }
  1279. /* Process Locked */
  1280. __HAL_LOCK(husart);
  1281. husart->pTxBuffPtr = pTxData;
  1282. husart->TxXferSize = Size;
  1283. husart->TxXferCount = Size;
  1284. husart->ErrorCode = HAL_USART_ERROR_NONE;
  1285. husart->State = HAL_USART_STATE_BUSY_TX;
  1286. if (husart->hdmatx != NULL)
  1287. {
  1288. /* Set the USART DMA transfer complete callback */
  1289. husart->hdmatx->XferCpltCallback = USART_DMATransmitCplt;
  1290. /* Set the USART DMA Half transfer complete callback */
  1291. husart->hdmatx->XferHalfCpltCallback = USART_DMATxHalfCplt;
  1292. /* Set the DMA error callback */
  1293. husart->hdmatx->XferErrorCallback = USART_DMAError;
  1294. /* Enable the USART transmit DMA channel */
  1295. tmp = (const uint32_t *)&pTxData;
  1296. status = HAL_DMA_Start_IT(husart->hdmatx, *(const uint32_t *)tmp, (uint32_t)&husart->Instance->TDR, Size);
  1297. }
  1298. if (status == HAL_OK)
  1299. {
  1300. /* Clear the TC flag in the ICR register */
  1301. __HAL_USART_CLEAR_FLAG(husart, USART_CLEAR_TCF);
  1302. /* Process Unlocked */
  1303. __HAL_UNLOCK(husart);
  1304. /* Enable the DMA transfer for transmit request by setting the DMAT bit
  1305. in the USART CR3 register */
  1306. SET_BIT(husart->Instance->CR3, USART_CR3_DMAT);
  1307. return HAL_OK;
  1308. }
  1309. else
  1310. {
  1311. /* Set error code to DMA */
  1312. husart->ErrorCode = HAL_USART_ERROR_DMA;
  1313. /* Process Unlocked */
  1314. __HAL_UNLOCK(husart);
  1315. /* Restore husart->State to ready */
  1316. husart->State = HAL_USART_STATE_READY;
  1317. return HAL_ERROR;
  1318. }
  1319. }
  1320. else
  1321. {
  1322. return HAL_BUSY;
  1323. }
  1324. }
  1325. /**
  1326. * @brief Receive an amount of data in DMA mode.
  1327. * @note When the USART parity is enabled (PCE = 1), the received data contain
  1328. * the parity bit (MSB position).
  1329. * @note The USART DMA transmit channel must be configured in order to generate the clock for the slave.
  1330. * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
  1331. * the received data is handled as a set of u16. In this case, Size must indicate the number
  1332. * of u16 available through pRxData.
  1333. * @param husart USART handle.
  1334. * @param pRxData pointer to data buffer (u8 or u16 data elements).
  1335. * @param Size amount of data elements (u8 or u16) to be received.
  1336. * @retval HAL status
  1337. */
  1338. HAL_StatusTypeDef HAL_USART_Receive_DMA(USART_HandleTypeDef *husart, uint8_t *pRxData, uint16_t Size)
  1339. {
  1340. HAL_StatusTypeDef status = HAL_OK;
  1341. uint32_t *tmp = (uint32_t *)&pRxData;
  1342. /* Check that a Rx process is not already ongoing */
  1343. if (husart->State == HAL_USART_STATE_READY)
  1344. {
  1345. if ((pRxData == NULL) || (Size == 0U))
  1346. {
  1347. return HAL_ERROR;
  1348. }
  1349. /* Process Locked */
  1350. __HAL_LOCK(husart);
  1351. husart->pRxBuffPtr = pRxData;
  1352. husart->RxXferSize = Size;
  1353. husart->pTxBuffPtr = pRxData;
  1354. husart->TxXferSize = Size;
  1355. husart->ErrorCode = HAL_USART_ERROR_NONE;
  1356. husart->State = HAL_USART_STATE_BUSY_RX;
  1357. if (husart->hdmarx != NULL)
  1358. {
  1359. /* Set the USART DMA Rx transfer complete callback */
  1360. husart->hdmarx->XferCpltCallback = USART_DMAReceiveCplt;
  1361. /* Set the USART DMA Half transfer complete callback */
  1362. husart->hdmarx->XferHalfCpltCallback = USART_DMARxHalfCplt;
  1363. /* Set the USART DMA Rx transfer error callback */
  1364. husart->hdmarx->XferErrorCallback = USART_DMAError;
  1365. /* Enable the USART receive DMA channel */
  1366. status = HAL_DMA_Start_IT(husart->hdmarx, (uint32_t)&husart->Instance->RDR, *(uint32_t *)tmp, Size);
  1367. }
  1368. #if defined(USART_CR2_SLVEN)
  1369. if ((status == HAL_OK) &&
  1370. (husart->SlaveMode == USART_SLAVEMODE_DISABLE))
  1371. #endif /* USART_CR2_SLVEN */
  1372. {
  1373. /* Enable the USART transmit DMA channel: the transmit channel is used in order
  1374. to generate in the non-blocking mode the clock to the slave device,
  1375. this mode isn't a simplex receive mode but a full-duplex receive mode */
  1376. /* Set the USART DMA Tx Complete and Error callback to Null */
  1377. if (husart->hdmatx != NULL)
  1378. {
  1379. husart->hdmatx->XferErrorCallback = NULL;
  1380. husart->hdmatx->XferHalfCpltCallback = NULL;
  1381. husart->hdmatx->XferCpltCallback = NULL;
  1382. status = HAL_DMA_Start_IT(husart->hdmatx, *(uint32_t *)tmp, (uint32_t)&husart->Instance->TDR, Size);
  1383. }
  1384. }
  1385. if (status == HAL_OK)
  1386. {
  1387. /* Process Unlocked */
  1388. __HAL_UNLOCK(husart);
  1389. if (husart->Init.Parity != USART_PARITY_NONE)
  1390. {
  1391. /* Enable the USART Parity Error Interrupt */
  1392. SET_BIT(husart->Instance->CR1, USART_CR1_PEIE);
  1393. }
  1394. /* Enable the USART Error Interrupt: (Frame error, noise error, overrun error) */
  1395. SET_BIT(husart->Instance->CR3, USART_CR3_EIE);
  1396. /* Enable the DMA transfer for the receiver request by setting the DMAR bit
  1397. in the USART CR3 register */
  1398. SET_BIT(husart->Instance->CR3, USART_CR3_DMAR);
  1399. /* Enable the DMA transfer for transmit request by setting the DMAT bit
  1400. in the USART CR3 register */
  1401. SET_BIT(husart->Instance->CR3, USART_CR3_DMAT);
  1402. return HAL_OK;
  1403. }
  1404. else
  1405. {
  1406. if (husart->hdmarx != NULL)
  1407. {
  1408. status = HAL_DMA_Abort(husart->hdmarx);
  1409. }
  1410. /* No need to check on error code */
  1411. UNUSED(status);
  1412. /* Set error code to DMA */
  1413. husart->ErrorCode = HAL_USART_ERROR_DMA;
  1414. /* Process Unlocked */
  1415. __HAL_UNLOCK(husart);
  1416. /* Restore husart->State to ready */
  1417. husart->State = HAL_USART_STATE_READY;
  1418. return HAL_ERROR;
  1419. }
  1420. }
  1421. else
  1422. {
  1423. return HAL_BUSY;
  1424. }
  1425. }
  1426. /**
  1427. * @brief Full-Duplex Transmit Receive an amount of data in non-blocking mode.
  1428. * @note When the USART parity is enabled (PCE = 1) the data received contain the parity bit.
  1429. * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
  1430. * the sent data and the received data are handled as sets of u16. In this case, Size must indicate the number
  1431. * of u16 available through pTxData and through pRxData.
  1432. * @param husart USART handle.
  1433. * @param pTxData pointer to TX data buffer (u8 or u16 data elements).
  1434. * @param pRxData pointer to RX data buffer (u8 or u16 data elements).
  1435. * @param Size amount of data elements (u8 or u16) to be received/sent.
  1436. * @retval HAL status
  1437. */
  1438. HAL_StatusTypeDef HAL_USART_TransmitReceive_DMA(USART_HandleTypeDef *husart, const uint8_t *pTxData, uint8_t *pRxData,
  1439. uint16_t Size)
  1440. {
  1441. HAL_StatusTypeDef status;
  1442. const uint32_t *tmp;
  1443. if (husart->State == HAL_USART_STATE_READY)
  1444. {
  1445. if ((pTxData == NULL) || (pRxData == NULL) || (Size == 0U))
  1446. {
  1447. return HAL_ERROR;
  1448. }
  1449. /* Process Locked */
  1450. __HAL_LOCK(husart);
  1451. husart->pRxBuffPtr = pRxData;
  1452. husart->RxXferSize = Size;
  1453. husart->pTxBuffPtr = pTxData;
  1454. husart->TxXferSize = Size;
  1455. husart->ErrorCode = HAL_USART_ERROR_NONE;
  1456. husart->State = HAL_USART_STATE_BUSY_TX_RX;
  1457. if ((husart->hdmarx != NULL) && (husart->hdmatx != NULL))
  1458. {
  1459. /* Set the USART DMA Rx transfer complete callback */
  1460. husart->hdmarx->XferCpltCallback = USART_DMAReceiveCplt;
  1461. /* Set the USART DMA Half transfer complete callback */
  1462. husart->hdmarx->XferHalfCpltCallback = USART_DMARxHalfCplt;
  1463. /* Set the USART DMA Tx transfer complete callback */
  1464. husart->hdmatx->XferCpltCallback = USART_DMATransmitCplt;
  1465. /* Set the USART DMA Half transfer complete callback */
  1466. husart->hdmatx->XferHalfCpltCallback = USART_DMATxHalfCplt;
  1467. /* Set the USART DMA Tx transfer error callback */
  1468. husart->hdmatx->XferErrorCallback = USART_DMAError;
  1469. /* Set the USART DMA Rx transfer error callback */
  1470. husart->hdmarx->XferErrorCallback = USART_DMAError;
  1471. /* Enable the USART receive DMA channel */
  1472. tmp = (uint32_t *)&pRxData;
  1473. status = HAL_DMA_Start_IT(husart->hdmarx, (uint32_t)&husart->Instance->RDR, *(const uint32_t *)tmp, Size);
  1474. /* Enable the USART transmit DMA channel */
  1475. if (status == HAL_OK)
  1476. {
  1477. tmp = (const uint32_t *)&pTxData;
  1478. status = HAL_DMA_Start_IT(husart->hdmatx, *(const uint32_t *)tmp, (uint32_t)&husart->Instance->TDR, Size);
  1479. }
  1480. }
  1481. else
  1482. {
  1483. status = HAL_ERROR;
  1484. }
  1485. if (status == HAL_OK)
  1486. {
  1487. /* Process Unlocked */
  1488. __HAL_UNLOCK(husart);
  1489. if (husart->Init.Parity != USART_PARITY_NONE)
  1490. {
  1491. /* Enable the USART Parity Error Interrupt */
  1492. SET_BIT(husart->Instance->CR1, USART_CR1_PEIE);
  1493. }
  1494. /* Enable the USART Error Interrupt: (Frame error, noise error, overrun error) */
  1495. SET_BIT(husart->Instance->CR3, USART_CR3_EIE);
  1496. /* Clear the TC flag in the ICR register */
  1497. __HAL_USART_CLEAR_FLAG(husart, USART_CLEAR_TCF);
  1498. /* Enable the DMA transfer for the receiver request by setting the DMAR bit
  1499. in the USART CR3 register */
  1500. SET_BIT(husart->Instance->CR3, USART_CR3_DMAR);
  1501. /* Enable the DMA transfer for transmit request by setting the DMAT bit
  1502. in the USART CR3 register */
  1503. SET_BIT(husart->Instance->CR3, USART_CR3_DMAT);
  1504. return HAL_OK;
  1505. }
  1506. else
  1507. {
  1508. if (husart->hdmarx != NULL)
  1509. {
  1510. status = HAL_DMA_Abort(husart->hdmarx);
  1511. }
  1512. /* No need to check on error code */
  1513. UNUSED(status);
  1514. /* Set error code to DMA */
  1515. husart->ErrorCode = HAL_USART_ERROR_DMA;
  1516. /* Process Unlocked */
  1517. __HAL_UNLOCK(husart);
  1518. /* Restore husart->State to ready */
  1519. husart->State = HAL_USART_STATE_READY;
  1520. return HAL_ERROR;
  1521. }
  1522. }
  1523. else
  1524. {
  1525. return HAL_BUSY;
  1526. }
  1527. }
  1528. /**
  1529. * @brief Pause the DMA Transfer.
  1530. * @param husart USART handle.
  1531. * @retval HAL status
  1532. */
  1533. HAL_StatusTypeDef HAL_USART_DMAPause(USART_HandleTypeDef *husart)
  1534. {
  1535. const HAL_USART_StateTypeDef state = husart->State;
  1536. /* Process Locked */
  1537. __HAL_LOCK(husart);
  1538. if ((HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAT)) &&
  1539. (state == HAL_USART_STATE_BUSY_TX))
  1540. {
  1541. /* Disable the USART DMA Tx request */
  1542. CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAT);
  1543. }
  1544. else if ((state == HAL_USART_STATE_BUSY_RX) ||
  1545. (state == HAL_USART_STATE_BUSY_TX_RX))
  1546. {
  1547. if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAT))
  1548. {
  1549. /* Disable the USART DMA Tx request */
  1550. CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAT);
  1551. }
  1552. if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAR))
  1553. {
  1554. /* Disable PE and ERR (Frame error, noise error, overrun error) interrupts */
  1555. CLEAR_BIT(husart->Instance->CR1, USART_CR1_PEIE);
  1556. CLEAR_BIT(husart->Instance->CR3, USART_CR3_EIE);
  1557. /* Disable the USART DMA Rx request */
  1558. CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAR);
  1559. }
  1560. }
  1561. else
  1562. {
  1563. /* Nothing to do */
  1564. }
  1565. /* Process Unlocked */
  1566. __HAL_UNLOCK(husart);
  1567. return HAL_OK;
  1568. }
  1569. /**
  1570. * @brief Resume the DMA Transfer.
  1571. * @param husart USART handle.
  1572. * @retval HAL status
  1573. */
  1574. HAL_StatusTypeDef HAL_USART_DMAResume(USART_HandleTypeDef *husart)
  1575. {
  1576. const HAL_USART_StateTypeDef state = husart->State;
  1577. /* Process Locked */
  1578. __HAL_LOCK(husart);
  1579. if (state == HAL_USART_STATE_BUSY_TX)
  1580. {
  1581. /* Enable the USART DMA Tx request */
  1582. SET_BIT(husart->Instance->CR3, USART_CR3_DMAT);
  1583. }
  1584. else if ((state == HAL_USART_STATE_BUSY_RX) ||
  1585. (state == HAL_USART_STATE_BUSY_TX_RX))
  1586. {
  1587. /* Clear the Overrun flag before resuming the Rx transfer*/
  1588. __HAL_USART_CLEAR_FLAG(husart, USART_CLEAR_OREF);
  1589. /* Re-enable PE and ERR (Frame error, noise error, overrun error) interrupts */
  1590. if (husart->Init.Parity != USART_PARITY_NONE)
  1591. {
  1592. SET_BIT(husart->Instance->CR1, USART_CR1_PEIE);
  1593. }
  1594. SET_BIT(husart->Instance->CR3, USART_CR3_EIE);
  1595. /* Enable the USART DMA Rx request before the DMA Tx request */
  1596. SET_BIT(husart->Instance->CR3, USART_CR3_DMAR);
  1597. /* Enable the USART DMA Tx request */
  1598. SET_BIT(husart->Instance->CR3, USART_CR3_DMAT);
  1599. }
  1600. else
  1601. {
  1602. /* Nothing to do */
  1603. }
  1604. /* Process Unlocked */
  1605. __HAL_UNLOCK(husart);
  1606. return HAL_OK;
  1607. }
  1608. /**
  1609. * @brief Stop the DMA Transfer.
  1610. * @param husart USART handle.
  1611. * @retval HAL status
  1612. */
  1613. HAL_StatusTypeDef HAL_USART_DMAStop(USART_HandleTypeDef *husart)
  1614. {
  1615. /* The Lock is not implemented on this API to allow the user application
  1616. to call the HAL USART API under callbacks HAL_USART_TxCpltCallback() / HAL_USART_RxCpltCallback() /
  1617. HAL_USART_TxHalfCpltCallback / HAL_USART_RxHalfCpltCallback:
  1618. indeed, when HAL_DMA_Abort() API is called, the DMA TX/RX Transfer or Half Transfer complete
  1619. interrupt is generated if the DMA transfer interruption occurs at the middle or at the end of
  1620. the stream and the corresponding call back is executed. */
  1621. /* Disable the USART Tx/Rx DMA requests */
  1622. CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAT);
  1623. CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAR);
  1624. /* Abort the USART DMA tx channel */
  1625. if (husart->hdmatx != NULL)
  1626. {
  1627. if (HAL_DMA_Abort(husart->hdmatx) != HAL_OK)
  1628. {
  1629. if (HAL_DMA_GetError(husart->hdmatx) == HAL_DMA_ERROR_TIMEOUT)
  1630. {
  1631. /* Set error code to DMA */
  1632. husart->ErrorCode = HAL_USART_ERROR_DMA;
  1633. return HAL_TIMEOUT;
  1634. }
  1635. }
  1636. }
  1637. /* Abort the USART DMA rx channel */
  1638. if (husart->hdmarx != NULL)
  1639. {
  1640. if (HAL_DMA_Abort(husart->hdmarx) != HAL_OK)
  1641. {
  1642. if (HAL_DMA_GetError(husart->hdmarx) == HAL_DMA_ERROR_TIMEOUT)
  1643. {
  1644. /* Set error code to DMA */
  1645. husart->ErrorCode = HAL_USART_ERROR_DMA;
  1646. return HAL_TIMEOUT;
  1647. }
  1648. }
  1649. }
  1650. USART_EndTransfer(husart);
  1651. husart->State = HAL_USART_STATE_READY;
  1652. return HAL_OK;
  1653. }
  1654. /**
  1655. * @brief Abort ongoing transfers (blocking mode).
  1656. * @param husart USART handle.
  1657. * @note This procedure could be used for aborting any ongoing transfer started in Interrupt or DMA mode.
  1658. * This procedure performs following operations :
  1659. * - Disable USART Interrupts (Tx and Rx)
  1660. * - Disable the DMA transfer in the peripheral register (if enabled)
  1661. * - Abort DMA transfer by calling HAL_DMA_Abort (in case of transfer in DMA mode)
  1662. * - Set handle State to READY
  1663. * @note This procedure is executed in blocking mode : when exiting function, Abort is considered as completed.
  1664. * @retval HAL status
  1665. */
  1666. HAL_StatusTypeDef HAL_USART_Abort(USART_HandleTypeDef *husart)
  1667. {
  1668. #if defined(USART_CR1_FIFOEN)
  1669. /* Disable TXEIE, TCIE, RXNE, RXFT, TXFT, PE and ERR (Frame error, noise error, overrun error) interrupts */
  1670. CLEAR_BIT(husart->Instance->CR1, (USART_CR1_RXNEIE_RXFNEIE | USART_CR1_PEIE | USART_CR1_TXEIE_TXFNFIE |
  1671. USART_CR1_TCIE));
  1672. CLEAR_BIT(husart->Instance->CR3, (USART_CR3_EIE | USART_CR3_RXFTIE | USART_CR3_TXFTIE));
  1673. #else
  1674. CLEAR_BIT(husart->Instance->CR1, (USART_CR1_RXNEIE | USART_CR1_PEIE | USART_CR1_TXEIE | USART_CR1_TCIE));
  1675. CLEAR_BIT(husart->Instance->CR3, USART_CR3_EIE);
  1676. #endif /* USART_CR1_FIFOEN */
  1677. /* Abort the USART DMA Tx channel if enabled */
  1678. if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAT))
  1679. {
  1680. /* Disable the USART DMA Tx request if enabled */
  1681. CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAT);
  1682. /* Abort the USART DMA Tx channel : use blocking DMA Abort API (no callback) */
  1683. if (husart->hdmatx != NULL)
  1684. {
  1685. /* Set the USART DMA Abort callback to Null.
  1686. No call back execution at end of DMA abort procedure */
  1687. husart->hdmatx->XferAbortCallback = NULL;
  1688. if (HAL_DMA_Abort(husart->hdmatx) != HAL_OK)
  1689. {
  1690. if (HAL_DMA_GetError(husart->hdmatx) == HAL_DMA_ERROR_TIMEOUT)
  1691. {
  1692. /* Set error code to DMA */
  1693. husart->ErrorCode = HAL_USART_ERROR_DMA;
  1694. return HAL_TIMEOUT;
  1695. }
  1696. }
  1697. }
  1698. }
  1699. /* Abort the USART DMA Rx channel if enabled */
  1700. if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAR))
  1701. {
  1702. /* Disable the USART DMA Rx request if enabled */
  1703. CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAR);
  1704. /* Abort the USART DMA Rx channel : use blocking DMA Abort API (no callback) */
  1705. if (husart->hdmarx != NULL)
  1706. {
  1707. /* Set the USART DMA Abort callback to Null.
  1708. No call back execution at end of DMA abort procedure */
  1709. husart->hdmarx->XferAbortCallback = NULL;
  1710. if (HAL_DMA_Abort(husart->hdmarx) != HAL_OK)
  1711. {
  1712. if (HAL_DMA_GetError(husart->hdmarx) == HAL_DMA_ERROR_TIMEOUT)
  1713. {
  1714. /* Set error code to DMA */
  1715. husart->ErrorCode = HAL_USART_ERROR_DMA;
  1716. return HAL_TIMEOUT;
  1717. }
  1718. }
  1719. }
  1720. }
  1721. /* Reset Tx and Rx transfer counters */
  1722. husart->TxXferCount = 0U;
  1723. husart->RxXferCount = 0U;
  1724. /* Clear the Error flags in the ICR register */
  1725. __HAL_USART_CLEAR_FLAG(husart, USART_CLEAR_OREF | USART_CLEAR_NEF | USART_CLEAR_PEF | USART_CLEAR_FEF);
  1726. #if defined(USART_CR1_FIFOEN)
  1727. /* Flush the whole TX FIFO (if needed) */
  1728. if (husart->FifoMode == USART_FIFOMODE_ENABLE)
  1729. {
  1730. __HAL_USART_SEND_REQ(husart, USART_TXDATA_FLUSH_REQUEST);
  1731. }
  1732. #endif /* USART_CR1_FIFOEN */
  1733. /* Discard the received data */
  1734. __HAL_USART_SEND_REQ(husart, USART_RXDATA_FLUSH_REQUEST);
  1735. /* Restore husart->State to Ready */
  1736. husart->State = HAL_USART_STATE_READY;
  1737. /* Reset Handle ErrorCode to No Error */
  1738. husart->ErrorCode = HAL_USART_ERROR_NONE;
  1739. return HAL_OK;
  1740. }
  1741. /**
  1742. * @brief Abort ongoing transfers (Interrupt mode).
  1743. * @param husart USART handle.
  1744. * @note This procedure could be used for aborting any ongoing transfer started in Interrupt or DMA mode.
  1745. * This procedure performs following operations :
  1746. * - Disable USART Interrupts (Tx and Rx)
  1747. * - Disable the DMA transfer in the peripheral register (if enabled)
  1748. * - Abort DMA transfer by calling HAL_DMA_Abort_IT (in case of transfer in DMA mode)
  1749. * - Set handle State to READY
  1750. * - At abort completion, call user abort complete callback
  1751. * @note This procedure is executed in Interrupt mode, meaning that abort procedure could be
  1752. * considered as completed only when user abort complete callback is executed (not when exiting function).
  1753. * @retval HAL status
  1754. */
  1755. HAL_StatusTypeDef HAL_USART_Abort_IT(USART_HandleTypeDef *husart)
  1756. {
  1757. uint32_t abortcplt = 1U;
  1758. #if defined(USART_CR1_FIFOEN)
  1759. /* Disable TXEIE, TCIE, RXNE, RXFT, TXFT, PE and ERR (Frame error, noise error, overrun error) interrupts */
  1760. CLEAR_BIT(husart->Instance->CR1, (USART_CR1_RXNEIE_RXFNEIE | USART_CR1_PEIE | USART_CR1_TXEIE_TXFNFIE |
  1761. USART_CR1_TCIE));
  1762. CLEAR_BIT(husart->Instance->CR3, (USART_CR3_EIE | USART_CR3_RXFTIE | USART_CR3_TXFTIE));
  1763. #else
  1764. CLEAR_BIT(husart->Instance->CR1, (USART_CR1_RXNEIE | USART_CR1_PEIE | USART_CR1_TXEIE | USART_CR1_TCIE));
  1765. CLEAR_BIT(husart->Instance->CR3, USART_CR3_EIE);
  1766. #endif /* USART_CR1_FIFOEN */
  1767. /* If DMA Tx and/or DMA Rx Handles are associated to USART Handle, DMA Abort complete callbacks should be initialised
  1768. before any call to DMA Abort functions */
  1769. /* DMA Tx Handle is valid */
  1770. if (husart->hdmatx != NULL)
  1771. {
  1772. /* Set DMA Abort Complete callback if USART DMA Tx request if enabled.
  1773. Otherwise, set it to NULL */
  1774. if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAT))
  1775. {
  1776. husart->hdmatx->XferAbortCallback = USART_DMATxAbortCallback;
  1777. }
  1778. else
  1779. {
  1780. husart->hdmatx->XferAbortCallback = NULL;
  1781. }
  1782. }
  1783. /* DMA Rx Handle is valid */
  1784. if (husart->hdmarx != NULL)
  1785. {
  1786. /* Set DMA Abort Complete callback if USART DMA Rx request if enabled.
  1787. Otherwise, set it to NULL */
  1788. if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAR))
  1789. {
  1790. husart->hdmarx->XferAbortCallback = USART_DMARxAbortCallback;
  1791. }
  1792. else
  1793. {
  1794. husart->hdmarx->XferAbortCallback = NULL;
  1795. }
  1796. }
  1797. /* Abort the USART DMA Tx channel if enabled */
  1798. if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAT))
  1799. {
  1800. /* Disable DMA Tx at USART level */
  1801. CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAT);
  1802. /* Abort the USART DMA Tx channel : use non blocking DMA Abort API (callback) */
  1803. if (husart->hdmatx != NULL)
  1804. {
  1805. /* USART Tx DMA Abort callback has already been initialised :
  1806. will lead to call HAL_USART_AbortCpltCallback() at end of DMA abort procedure */
  1807. /* Abort DMA TX */
  1808. if (HAL_DMA_Abort_IT(husart->hdmatx) != HAL_OK)
  1809. {
  1810. husart->hdmatx->XferAbortCallback = NULL;
  1811. }
  1812. else
  1813. {
  1814. abortcplt = 0U;
  1815. }
  1816. }
  1817. }
  1818. /* Abort the USART DMA Rx channel if enabled */
  1819. if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAR))
  1820. {
  1821. /* Disable the USART DMA Rx request if enabled */
  1822. CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAR);
  1823. /* Abort the USART DMA Rx channel : use non blocking DMA Abort API (callback) */
  1824. if (husart->hdmarx != NULL)
  1825. {
  1826. /* USART Rx DMA Abort callback has already been initialised :
  1827. will lead to call HAL_USART_AbortCpltCallback() at end of DMA abort procedure */
  1828. /* Abort DMA RX */
  1829. if (HAL_DMA_Abort_IT(husart->hdmarx) != HAL_OK)
  1830. {
  1831. husart->hdmarx->XferAbortCallback = NULL;
  1832. abortcplt = 1U;
  1833. }
  1834. else
  1835. {
  1836. abortcplt = 0U;
  1837. }
  1838. }
  1839. }
  1840. /* if no DMA abort complete callback execution is required => call user Abort Complete callback */
  1841. if (abortcplt == 1U)
  1842. {
  1843. /* Reset Tx and Rx transfer counters */
  1844. husart->TxXferCount = 0U;
  1845. husart->RxXferCount = 0U;
  1846. /* Reset errorCode */
  1847. husart->ErrorCode = HAL_USART_ERROR_NONE;
  1848. /* Clear the Error flags in the ICR register */
  1849. __HAL_USART_CLEAR_FLAG(husart, USART_CLEAR_OREF | USART_CLEAR_NEF | USART_CLEAR_PEF | USART_CLEAR_FEF);
  1850. #if defined(USART_CR1_FIFOEN)
  1851. /* Flush the whole TX FIFO (if needed) */
  1852. if (husart->FifoMode == USART_FIFOMODE_ENABLE)
  1853. {
  1854. __HAL_USART_SEND_REQ(husart, USART_TXDATA_FLUSH_REQUEST);
  1855. }
  1856. #endif /* USART_CR1_FIFOEN */
  1857. /* Discard the received data */
  1858. __HAL_USART_SEND_REQ(husart, USART_RXDATA_FLUSH_REQUEST);
  1859. /* Restore husart->State to Ready */
  1860. husart->State = HAL_USART_STATE_READY;
  1861. /* As no DMA to be aborted, call directly user Abort complete callback */
  1862. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  1863. /* Call registered Abort Complete Callback */
  1864. husart->AbortCpltCallback(husart);
  1865. #else
  1866. /* Call legacy weak Abort Complete Callback */
  1867. HAL_USART_AbortCpltCallback(husart);
  1868. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  1869. }
  1870. return HAL_OK;
  1871. }
  1872. /**
  1873. * @brief Handle USART interrupt request.
  1874. * @param husart USART handle.
  1875. * @retval None
  1876. */
  1877. void HAL_USART_IRQHandler(USART_HandleTypeDef *husart)
  1878. {
  1879. uint32_t isrflags = READ_REG(husart->Instance->ISR);
  1880. uint32_t cr1its = READ_REG(husart->Instance->CR1);
  1881. uint32_t cr3its = READ_REG(husart->Instance->CR3);
  1882. uint32_t errorflags;
  1883. uint32_t errorcode;
  1884. /* If no error occurs */
  1885. #if defined(USART_CR2_SLVEN)
  1886. errorflags = (isrflags & (uint32_t)(USART_ISR_PE | USART_ISR_FE | USART_ISR_ORE | USART_ISR_NE | USART_ISR_RTOF |
  1887. USART_ISR_UDR));
  1888. #else
  1889. errorflags = (isrflags & (uint32_t)(USART_ISR_PE | USART_ISR_FE | USART_ISR_ORE | USART_ISR_NE | USART_ISR_RTOF));
  1890. #endif /* USART_CR2_SLVEN */
  1891. if (errorflags == 0U)
  1892. {
  1893. /* USART in mode Receiver ---------------------------------------------------*/
  1894. #if defined(USART_CR1_FIFOEN)
  1895. if (((isrflags & USART_ISR_RXNE_RXFNE) != 0U)
  1896. && (((cr1its & USART_CR1_RXNEIE_RXFNEIE) != 0U)
  1897. || ((cr3its & USART_CR3_RXFTIE) != 0U)))
  1898. #else
  1899. if (((isrflags & USART_ISR_RXNE) != 0U)
  1900. && ((cr1its & USART_CR1_RXNEIE) != 0U))
  1901. #endif /* USART_CR1_FIFOEN */
  1902. {
  1903. if (husart->RxISR != NULL)
  1904. {
  1905. husart->RxISR(husart);
  1906. }
  1907. return;
  1908. }
  1909. }
  1910. /* If some errors occur */
  1911. #if defined(USART_CR1_FIFOEN)
  1912. if ((errorflags != 0U)
  1913. && (((cr3its & (USART_CR3_RXFTIE | USART_CR3_EIE)) != 0U)
  1914. || ((cr1its & (USART_CR1_RXNEIE_RXFNEIE | USART_CR1_PEIE)) != 0U)))
  1915. #else
  1916. if ((errorflags != 0U)
  1917. && (((cr3its & USART_CR3_EIE) != 0U)
  1918. || ((cr1its & (USART_CR1_RXNEIE | USART_CR1_PEIE)) != 0U)))
  1919. #endif /* USART_CR1_FIFOEN */
  1920. {
  1921. /* USART parity error interrupt occurred -------------------------------------*/
  1922. if (((isrflags & USART_ISR_PE) != 0U) && ((cr1its & USART_CR1_PEIE) != 0U))
  1923. {
  1924. __HAL_USART_CLEAR_IT(husart, USART_CLEAR_PEF);
  1925. husart->ErrorCode |= HAL_USART_ERROR_PE;
  1926. }
  1927. /* USART frame error interrupt occurred --------------------------------------*/
  1928. if (((isrflags & USART_ISR_FE) != 0U) && ((cr3its & USART_CR3_EIE) != 0U))
  1929. {
  1930. __HAL_USART_CLEAR_IT(husart, USART_CLEAR_FEF);
  1931. husart->ErrorCode |= HAL_USART_ERROR_FE;
  1932. }
  1933. /* USART noise error interrupt occurred --------------------------------------*/
  1934. if (((isrflags & USART_ISR_NE) != 0U) && ((cr3its & USART_CR3_EIE) != 0U))
  1935. {
  1936. __HAL_USART_CLEAR_IT(husart, USART_CLEAR_NEF);
  1937. husart->ErrorCode |= HAL_USART_ERROR_NE;
  1938. }
  1939. /* USART Over-Run interrupt occurred -----------------------------------------*/
  1940. #if defined(USART_CR1_FIFOEN)
  1941. if (((isrflags & USART_ISR_ORE) != 0U)
  1942. && (((cr1its & USART_CR1_RXNEIE_RXFNEIE) != 0U) ||
  1943. ((cr3its & (USART_CR3_RXFTIE | USART_CR3_EIE)) != 0U)))
  1944. #else
  1945. if (((isrflags & USART_ISR_ORE) != 0U)
  1946. && (((cr1its & USART_CR1_RXNEIE) != 0U) ||
  1947. ((cr3its & USART_CR3_EIE) != 0U)))
  1948. #endif /* USART_CR1_FIFOEN */
  1949. {
  1950. __HAL_USART_CLEAR_IT(husart, USART_CLEAR_OREF);
  1951. husart->ErrorCode |= HAL_USART_ERROR_ORE;
  1952. }
  1953. /* USART Receiver Timeout interrupt occurred ---------------------------------*/
  1954. if (((isrflags & USART_ISR_RTOF) != 0U) && ((cr1its & USART_CR1_RTOIE) != 0U))
  1955. {
  1956. __HAL_USART_CLEAR_IT(husart, USART_CLEAR_RTOF);
  1957. husart->ErrorCode |= HAL_USART_ERROR_RTO;
  1958. }
  1959. #if defined(USART_CR2_SLVEN)
  1960. /* USART SPI slave underrun error interrupt occurred -------------------------*/
  1961. if (((isrflags & USART_ISR_UDR) != 0U) && ((cr3its & USART_CR3_EIE) != 0U))
  1962. {
  1963. /* Ignore SPI slave underrun errors when reception is going on */
  1964. if (husart->State == HAL_USART_STATE_BUSY_RX)
  1965. {
  1966. __HAL_USART_CLEAR_UDRFLAG(husart);
  1967. return;
  1968. }
  1969. else
  1970. {
  1971. __HAL_USART_CLEAR_UDRFLAG(husart);
  1972. husart->ErrorCode |= HAL_USART_ERROR_UDR;
  1973. }
  1974. }
  1975. #endif /* USART_CR2_SLVEN */
  1976. /* Call USART Error Call back function if need be --------------------------*/
  1977. if (husart->ErrorCode != HAL_USART_ERROR_NONE)
  1978. {
  1979. /* USART in mode Receiver ---------------------------------------------------*/
  1980. #if defined(USART_CR1_FIFOEN)
  1981. if (((isrflags & USART_ISR_RXNE_RXFNE) != 0U)
  1982. && (((cr1its & USART_CR1_RXNEIE_RXFNEIE) != 0U)
  1983. || ((cr3its & USART_CR3_RXFTIE) != 0U)))
  1984. #else
  1985. if (((isrflags & USART_ISR_RXNE) != 0U)
  1986. && ((cr1its & USART_CR1_RXNEIE) != 0U))
  1987. #endif /* USART_CR1_FIFOEN */
  1988. {
  1989. if (husart->RxISR != NULL)
  1990. {
  1991. husart->RxISR(husart);
  1992. }
  1993. }
  1994. /* If Overrun error occurs, or if any error occurs in DMA mode reception,
  1995. consider error as blocking */
  1996. errorcode = husart->ErrorCode & HAL_USART_ERROR_ORE;
  1997. if ((HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAR)) ||
  1998. (errorcode != 0U))
  1999. {
  2000. /* Blocking error : transfer is aborted
  2001. Set the USART state ready to be able to start again the process,
  2002. Disable Interrupts, and disable DMA requests, if ongoing */
  2003. USART_EndTransfer(husart);
  2004. /* Abort the USART DMA Rx channel if enabled */
  2005. if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAR))
  2006. {
  2007. /* Disable the USART DMA Rx request if enabled */
  2008. CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAR | USART_CR3_DMAR);
  2009. /* Abort the USART DMA Tx channel */
  2010. if (husart->hdmatx != NULL)
  2011. {
  2012. /* Set the USART Tx DMA Abort callback to NULL : no callback
  2013. executed at end of DMA abort procedure */
  2014. husart->hdmatx->XferAbortCallback = NULL;
  2015. /* Abort DMA TX */
  2016. (void)HAL_DMA_Abort_IT(husart->hdmatx);
  2017. }
  2018. /* Abort the USART DMA Rx channel */
  2019. if (husart->hdmarx != NULL)
  2020. {
  2021. /* Set the USART Rx DMA Abort callback :
  2022. will lead to call HAL_USART_ErrorCallback() at end of DMA abort procedure */
  2023. husart->hdmarx->XferAbortCallback = USART_DMAAbortOnError;
  2024. /* Abort DMA RX */
  2025. if (HAL_DMA_Abort_IT(husart->hdmarx) != HAL_OK)
  2026. {
  2027. /* Call Directly husart->hdmarx->XferAbortCallback function in case of error */
  2028. husart->hdmarx->XferAbortCallback(husart->hdmarx);
  2029. }
  2030. }
  2031. else
  2032. {
  2033. /* Call user error callback */
  2034. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2035. /* Call registered Error Callback */
  2036. husart->ErrorCallback(husart);
  2037. #else
  2038. /* Call legacy weak Error Callback */
  2039. HAL_USART_ErrorCallback(husart);
  2040. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2041. }
  2042. }
  2043. else
  2044. {
  2045. /* Call user error callback */
  2046. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2047. /* Call registered Error Callback */
  2048. husart->ErrorCallback(husart);
  2049. #else
  2050. /* Call legacy weak Error Callback */
  2051. HAL_USART_ErrorCallback(husart);
  2052. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2053. }
  2054. }
  2055. else
  2056. {
  2057. /* Non Blocking error : transfer could go on.
  2058. Error is notified to user through user error callback */
  2059. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2060. /* Call registered Error Callback */
  2061. husart->ErrorCallback(husart);
  2062. #else
  2063. /* Call legacy weak Error Callback */
  2064. HAL_USART_ErrorCallback(husart);
  2065. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2066. husart->ErrorCode = HAL_USART_ERROR_NONE;
  2067. }
  2068. }
  2069. return;
  2070. } /* End if some error occurs */
  2071. /* USART in mode Transmitter ------------------------------------------------*/
  2072. #if defined(USART_CR1_FIFOEN)
  2073. if (((isrflags & USART_ISR_TXE_TXFNF) != 0U)
  2074. && (((cr1its & USART_CR1_TXEIE_TXFNFIE) != 0U)
  2075. || ((cr3its & USART_CR3_TXFTIE) != 0U)))
  2076. #else
  2077. if (((isrflags & USART_ISR_TXE) != 0U)
  2078. && ((cr1its & USART_CR1_TXEIE) != 0U))
  2079. #endif /* USART_CR1_FIFOEN */
  2080. {
  2081. if (husart->TxISR != NULL)
  2082. {
  2083. husart->TxISR(husart);
  2084. }
  2085. return;
  2086. }
  2087. /* USART in mode Transmitter (transmission end) -----------------------------*/
  2088. if (((isrflags & USART_ISR_TC) != 0U) && ((cr1its & USART_CR1_TCIE) != 0U))
  2089. {
  2090. USART_EndTransmit_IT(husart);
  2091. return;
  2092. }
  2093. #if defined(USART_CR1_FIFOEN)
  2094. /* USART TX Fifo Empty occurred ----------------------------------------------*/
  2095. if (((isrflags & USART_ISR_TXFE) != 0U) && ((cr1its & USART_CR1_TXFEIE) != 0U))
  2096. {
  2097. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2098. /* Call registered Tx Fifo Empty Callback */
  2099. husart->TxFifoEmptyCallback(husart);
  2100. #else
  2101. /* Call legacy weak Tx Fifo Empty Callback */
  2102. HAL_USARTEx_TxFifoEmptyCallback(husart);
  2103. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2104. return;
  2105. }
  2106. /* USART RX Fifo Full occurred ----------------------------------------------*/
  2107. if (((isrflags & USART_ISR_RXFF) != 0U) && ((cr1its & USART_CR1_RXFFIE) != 0U))
  2108. {
  2109. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2110. /* Call registered Rx Fifo Full Callback */
  2111. husart->RxFifoFullCallback(husart);
  2112. #else
  2113. /* Call legacy weak Rx Fifo Full Callback */
  2114. HAL_USARTEx_RxFifoFullCallback(husart);
  2115. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2116. return;
  2117. }
  2118. #endif /* USART_CR1_FIFOEN */
  2119. }
  2120. /**
  2121. * @brief Tx Transfer completed callback.
  2122. * @param husart USART handle.
  2123. * @retval None
  2124. */
  2125. __weak void HAL_USART_TxCpltCallback(USART_HandleTypeDef *husart)
  2126. {
  2127. /* Prevent unused argument(s) compilation warning */
  2128. UNUSED(husart);
  2129. /* NOTE : This function should not be modified, when the callback is needed,
  2130. the HAL_USART_TxCpltCallback can be implemented in the user file.
  2131. */
  2132. }
  2133. /**
  2134. * @brief Tx Half Transfer completed callback.
  2135. * @param husart USART handle.
  2136. * @retval None
  2137. */
  2138. __weak void HAL_USART_TxHalfCpltCallback(USART_HandleTypeDef *husart)
  2139. {
  2140. /* Prevent unused argument(s) compilation warning */
  2141. UNUSED(husart);
  2142. /* NOTE: This function should not be modified, when the callback is needed,
  2143. the HAL_USART_TxHalfCpltCallback can be implemented in the user file.
  2144. */
  2145. }
  2146. /**
  2147. * @brief Rx Transfer completed callback.
  2148. * @param husart USART handle.
  2149. * @retval None
  2150. */
  2151. __weak void HAL_USART_RxCpltCallback(USART_HandleTypeDef *husart)
  2152. {
  2153. /* Prevent unused argument(s) compilation warning */
  2154. UNUSED(husart);
  2155. /* NOTE: This function should not be modified, when the callback is needed,
  2156. the HAL_USART_RxCpltCallback can be implemented in the user file.
  2157. */
  2158. }
  2159. /**
  2160. * @brief Rx Half Transfer completed callback.
  2161. * @param husart USART handle.
  2162. * @retval None
  2163. */
  2164. __weak void HAL_USART_RxHalfCpltCallback(USART_HandleTypeDef *husart)
  2165. {
  2166. /* Prevent unused argument(s) compilation warning */
  2167. UNUSED(husart);
  2168. /* NOTE : This function should not be modified, when the callback is needed,
  2169. the HAL_USART_RxHalfCpltCallback can be implemented in the user file
  2170. */
  2171. }
  2172. /**
  2173. * @brief Tx/Rx Transfers completed callback for the non-blocking process.
  2174. * @param husart USART handle.
  2175. * @retval None
  2176. */
  2177. __weak void HAL_USART_TxRxCpltCallback(USART_HandleTypeDef *husart)
  2178. {
  2179. /* Prevent unused argument(s) compilation warning */
  2180. UNUSED(husart);
  2181. /* NOTE : This function should not be modified, when the callback is needed,
  2182. the HAL_USART_TxRxCpltCallback can be implemented in the user file
  2183. */
  2184. }
  2185. /**
  2186. * @brief USART error callback.
  2187. * @param husart USART handle.
  2188. * @retval None
  2189. */
  2190. __weak void HAL_USART_ErrorCallback(USART_HandleTypeDef *husart)
  2191. {
  2192. /* Prevent unused argument(s) compilation warning */
  2193. UNUSED(husart);
  2194. /* NOTE : This function should not be modified, when the callback is needed,
  2195. the HAL_USART_ErrorCallback can be implemented in the user file.
  2196. */
  2197. }
  2198. /**
  2199. * @brief USART Abort Complete callback.
  2200. * @param husart USART handle.
  2201. * @retval None
  2202. */
  2203. __weak void HAL_USART_AbortCpltCallback(USART_HandleTypeDef *husart)
  2204. {
  2205. /* Prevent unused argument(s) compilation warning */
  2206. UNUSED(husart);
  2207. /* NOTE : This function should not be modified, when the callback is needed,
  2208. the HAL_USART_AbortCpltCallback can be implemented in the user file.
  2209. */
  2210. }
  2211. /**
  2212. * @}
  2213. */
  2214. /** @defgroup USART_Exported_Functions_Group4 Peripheral State and Error functions
  2215. * @brief USART Peripheral State and Error functions
  2216. *
  2217. @verbatim
  2218. ==============================================================================
  2219. ##### Peripheral State and Error functions #####
  2220. ==============================================================================
  2221. [..]
  2222. This subsection provides functions allowing to :
  2223. (+) Return the USART handle state
  2224. (+) Return the USART handle error code
  2225. @endverbatim
  2226. * @{
  2227. */
  2228. /**
  2229. * @brief Return the USART handle state.
  2230. * @param husart pointer to a USART_HandleTypeDef structure that contains
  2231. * the configuration information for the specified USART.
  2232. * @retval USART handle state
  2233. */
  2234. HAL_USART_StateTypeDef HAL_USART_GetState(const USART_HandleTypeDef *husart)
  2235. {
  2236. return husart->State;
  2237. }
  2238. /**
  2239. * @brief Return the USART error code.
  2240. * @param husart pointer to a USART_HandleTypeDef structure that contains
  2241. * the configuration information for the specified USART.
  2242. * @retval USART handle Error Code
  2243. */
  2244. uint32_t HAL_USART_GetError(const USART_HandleTypeDef *husart)
  2245. {
  2246. return husart->ErrorCode;
  2247. }
  2248. /**
  2249. * @}
  2250. */
  2251. /**
  2252. * @}
  2253. */
  2254. /** @defgroup USART_Private_Functions USART Private Functions
  2255. * @{
  2256. */
  2257. /**
  2258. * @brief Initialize the callbacks to their default values.
  2259. * @param husart USART handle.
  2260. * @retval none
  2261. */
  2262. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2263. void USART_InitCallbacksToDefault(USART_HandleTypeDef *husart)
  2264. {
  2265. /* Init the USART Callback settings */
  2266. husart->TxHalfCpltCallback = HAL_USART_TxHalfCpltCallback; /* Legacy weak TxHalfCpltCallback */
  2267. husart->TxCpltCallback = HAL_USART_TxCpltCallback; /* Legacy weak TxCpltCallback */
  2268. husart->RxHalfCpltCallback = HAL_USART_RxHalfCpltCallback; /* Legacy weak RxHalfCpltCallback */
  2269. husart->RxCpltCallback = HAL_USART_RxCpltCallback; /* Legacy weak RxCpltCallback */
  2270. husart->TxRxCpltCallback = HAL_USART_TxRxCpltCallback; /* Legacy weak TxRxCpltCallback */
  2271. husart->ErrorCallback = HAL_USART_ErrorCallback; /* Legacy weak ErrorCallback */
  2272. husart->AbortCpltCallback = HAL_USART_AbortCpltCallback; /* Legacy weak AbortCpltCallback */
  2273. #if defined(USART_CR1_FIFOEN)
  2274. husart->RxFifoFullCallback = HAL_USARTEx_RxFifoFullCallback; /* Legacy weak RxFifoFullCallback */
  2275. husart->TxFifoEmptyCallback = HAL_USARTEx_TxFifoEmptyCallback; /* Legacy weak TxFifoEmptyCallback */
  2276. #endif /* USART_CR1_FIFOEN */
  2277. }
  2278. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2279. /**
  2280. * @brief End ongoing transfer on USART peripheral (following error detection or Transfer completion).
  2281. * @param husart USART handle.
  2282. * @retval None
  2283. */
  2284. static void USART_EndTransfer(USART_HandleTypeDef *husart)
  2285. {
  2286. #if defined(USART_CR1_FIFOEN)
  2287. /* Disable TXEIE, TCIE, RXNE, RXFT, TXFT, PE and ERR (Frame error, noise error, overrun error) interrupts */
  2288. CLEAR_BIT(husart->Instance->CR1, (USART_CR1_RXNEIE_RXFNEIE | USART_CR1_PEIE | USART_CR1_TXEIE_TXFNFIE |
  2289. USART_CR1_TCIE));
  2290. CLEAR_BIT(husart->Instance->CR3, (USART_CR3_EIE | USART_CR3_RXFTIE | USART_CR3_TXFTIE));
  2291. #else
  2292. /* Disable TXEIE, TCIE, RXNE, PE and ERR (Frame error, noise error, overrun error) interrupts */
  2293. CLEAR_BIT(husart->Instance->CR1, (USART_CR1_RXNEIE | USART_CR1_PEIE | USART_CR1_TXEIE | USART_CR1_TCIE));
  2294. CLEAR_BIT(husart->Instance->CR3, USART_CR3_EIE);
  2295. #endif /* USART_CR1_FIFOEN */
  2296. /* At end of process, restore husart->State to Ready */
  2297. husart->State = HAL_USART_STATE_READY;
  2298. }
  2299. /**
  2300. * @brief DMA USART transmit process complete callback.
  2301. * @param hdma DMA handle.
  2302. * @retval None
  2303. */
  2304. static void USART_DMATransmitCplt(DMA_HandleTypeDef *hdma)
  2305. {
  2306. USART_HandleTypeDef *husart = (USART_HandleTypeDef *)(hdma->Parent);
  2307. /* DMA Normal mode */
  2308. if (HAL_IS_BIT_CLR(hdma->Instance->CCR, DMA_CCR_CIRC))
  2309. {
  2310. husart->TxXferCount = 0U;
  2311. if (husart->State == HAL_USART_STATE_BUSY_TX)
  2312. {
  2313. /* Disable the DMA transfer for transmit request by resetting the DMAT bit
  2314. in the USART CR3 register */
  2315. CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAT);
  2316. /* Enable the USART Transmit Complete Interrupt */
  2317. __HAL_USART_ENABLE_IT(husart, USART_IT_TC);
  2318. }
  2319. }
  2320. /* DMA Circular mode */
  2321. else
  2322. {
  2323. if (husart->State == HAL_USART_STATE_BUSY_TX)
  2324. {
  2325. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2326. /* Call registered Tx Complete Callback */
  2327. husart->TxCpltCallback(husart);
  2328. #else
  2329. /* Call legacy weak Tx Complete Callback */
  2330. HAL_USART_TxCpltCallback(husart);
  2331. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2332. }
  2333. }
  2334. }
  2335. /**
  2336. * @brief DMA USART transmit process half complete callback.
  2337. * @param hdma DMA handle.
  2338. * @retval None
  2339. */
  2340. static void USART_DMATxHalfCplt(DMA_HandleTypeDef *hdma)
  2341. {
  2342. USART_HandleTypeDef *husart = (USART_HandleTypeDef *)(hdma->Parent);
  2343. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2344. /* Call registered Tx Half Complete Callback */
  2345. husart->TxHalfCpltCallback(husart);
  2346. #else
  2347. /* Call legacy weak Tx Half Complete Callback */
  2348. HAL_USART_TxHalfCpltCallback(husart);
  2349. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2350. }
  2351. /**
  2352. * @brief DMA USART receive process complete callback.
  2353. * @param hdma DMA handle.
  2354. * @retval None
  2355. */
  2356. static void USART_DMAReceiveCplt(DMA_HandleTypeDef *hdma)
  2357. {
  2358. USART_HandleTypeDef *husart = (USART_HandleTypeDef *)(hdma->Parent);
  2359. /* DMA Normal mode */
  2360. if (HAL_IS_BIT_CLR(hdma->Instance->CCR, DMA_CCR_CIRC))
  2361. {
  2362. husart->RxXferCount = 0U;
  2363. /* Disable PE and ERR (Frame error, noise error, overrun error) interrupts */
  2364. CLEAR_BIT(husart->Instance->CR1, USART_CR1_PEIE);
  2365. CLEAR_BIT(husart->Instance->CR3, USART_CR3_EIE);
  2366. /* Disable the DMA RX transfer for the receiver request by resetting the DMAR bit
  2367. in USART CR3 register */
  2368. CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAR);
  2369. /* similarly, disable the DMA TX transfer that was started to provide the
  2370. clock to the slave device */
  2371. CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAT);
  2372. if (husart->State == HAL_USART_STATE_BUSY_RX)
  2373. {
  2374. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2375. /* Call registered Rx Complete Callback */
  2376. husart->RxCpltCallback(husart);
  2377. #else
  2378. /* Call legacy weak Rx Complete Callback */
  2379. HAL_USART_RxCpltCallback(husart);
  2380. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2381. }
  2382. /* The USART state is HAL_USART_STATE_BUSY_TX_RX */
  2383. else
  2384. {
  2385. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2386. /* Call registered Tx Rx Complete Callback */
  2387. husart->TxRxCpltCallback(husart);
  2388. #else
  2389. /* Call legacy weak Tx Rx Complete Callback */
  2390. HAL_USART_TxRxCpltCallback(husart);
  2391. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2392. }
  2393. husart->State = HAL_USART_STATE_READY;
  2394. }
  2395. /* DMA circular mode */
  2396. else
  2397. {
  2398. if (husart->State == HAL_USART_STATE_BUSY_RX)
  2399. {
  2400. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2401. /* Call registered Rx Complete Callback */
  2402. husart->RxCpltCallback(husart);
  2403. #else
  2404. /* Call legacy weak Rx Complete Callback */
  2405. HAL_USART_RxCpltCallback(husart);
  2406. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2407. }
  2408. /* The USART state is HAL_USART_STATE_BUSY_TX_RX */
  2409. else
  2410. {
  2411. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2412. /* Call registered Tx Rx Complete Callback */
  2413. husart->TxRxCpltCallback(husart);
  2414. #else
  2415. /* Call legacy weak Tx Rx Complete Callback */
  2416. HAL_USART_TxRxCpltCallback(husart);
  2417. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2418. }
  2419. }
  2420. }
  2421. /**
  2422. * @brief DMA USART receive process half complete callback.
  2423. * @param hdma DMA handle.
  2424. * @retval None
  2425. */
  2426. static void USART_DMARxHalfCplt(DMA_HandleTypeDef *hdma)
  2427. {
  2428. USART_HandleTypeDef *husart = (USART_HandleTypeDef *)(hdma->Parent);
  2429. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2430. /* Call registered Rx Half Complete Callback */
  2431. husart->RxHalfCpltCallback(husart);
  2432. #else
  2433. /* Call legacy weak Rx Half Complete Callback */
  2434. HAL_USART_RxHalfCpltCallback(husart);
  2435. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2436. }
  2437. /**
  2438. * @brief DMA USART communication error callback.
  2439. * @param hdma DMA handle.
  2440. * @retval None
  2441. */
  2442. static void USART_DMAError(DMA_HandleTypeDef *hdma)
  2443. {
  2444. USART_HandleTypeDef *husart = (USART_HandleTypeDef *)(hdma->Parent);
  2445. husart->RxXferCount = 0U;
  2446. husart->TxXferCount = 0U;
  2447. USART_EndTransfer(husart);
  2448. husart->ErrorCode |= HAL_USART_ERROR_DMA;
  2449. husart->State = HAL_USART_STATE_READY;
  2450. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2451. /* Call registered Error Callback */
  2452. husart->ErrorCallback(husart);
  2453. #else
  2454. /* Call legacy weak Error Callback */
  2455. HAL_USART_ErrorCallback(husart);
  2456. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2457. }
  2458. /**
  2459. * @brief DMA USART communication abort callback, when initiated by HAL services on Error
  2460. * (To be called at end of DMA Abort procedure following error occurrence).
  2461. * @param hdma DMA handle.
  2462. * @retval None
  2463. */
  2464. static void USART_DMAAbortOnError(DMA_HandleTypeDef *hdma)
  2465. {
  2466. USART_HandleTypeDef *husart = (USART_HandleTypeDef *)(hdma->Parent);
  2467. husart->RxXferCount = 0U;
  2468. husart->TxXferCount = 0U;
  2469. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2470. /* Call registered Error Callback */
  2471. husart->ErrorCallback(husart);
  2472. #else
  2473. /* Call legacy weak Error Callback */
  2474. HAL_USART_ErrorCallback(husart);
  2475. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2476. }
  2477. /**
  2478. * @brief DMA USART Tx communication abort callback, when initiated by user
  2479. * (To be called at end of DMA Tx Abort procedure following user abort request).
  2480. * @note When this callback is executed, User Abort complete call back is called only if no
  2481. * Abort still ongoing for Rx DMA Handle.
  2482. * @param hdma DMA handle.
  2483. * @retval None
  2484. */
  2485. static void USART_DMATxAbortCallback(DMA_HandleTypeDef *hdma)
  2486. {
  2487. USART_HandleTypeDef *husart = (USART_HandleTypeDef *)(hdma->Parent);
  2488. husart->hdmatx->XferAbortCallback = NULL;
  2489. /* Check if an Abort process is still ongoing */
  2490. if (husart->hdmarx != NULL)
  2491. {
  2492. if (husart->hdmarx->XferAbortCallback != NULL)
  2493. {
  2494. return;
  2495. }
  2496. }
  2497. /* No Abort process still ongoing : All DMA channels are aborted, call user Abort Complete callback */
  2498. husart->TxXferCount = 0U;
  2499. husart->RxXferCount = 0U;
  2500. /* Reset errorCode */
  2501. husart->ErrorCode = HAL_USART_ERROR_NONE;
  2502. /* Clear the Error flags in the ICR register */
  2503. __HAL_USART_CLEAR_FLAG(husart, USART_CLEAR_OREF | USART_CLEAR_NEF | USART_CLEAR_PEF | USART_CLEAR_FEF);
  2504. /* Restore husart->State to Ready */
  2505. husart->State = HAL_USART_STATE_READY;
  2506. /* Call user Abort complete callback */
  2507. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2508. /* Call registered Abort Complete Callback */
  2509. husart->AbortCpltCallback(husart);
  2510. #else
  2511. /* Call legacy weak Abort Complete Callback */
  2512. HAL_USART_AbortCpltCallback(husart);
  2513. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2514. }
  2515. /**
  2516. * @brief DMA USART Rx communication abort callback, when initiated by user
  2517. * (To be called at end of DMA Rx Abort procedure following user abort request).
  2518. * @note When this callback is executed, User Abort complete call back is called only if no
  2519. * Abort still ongoing for Tx DMA Handle.
  2520. * @param hdma DMA handle.
  2521. * @retval None
  2522. */
  2523. static void USART_DMARxAbortCallback(DMA_HandleTypeDef *hdma)
  2524. {
  2525. USART_HandleTypeDef *husart = (USART_HandleTypeDef *)(hdma->Parent);
  2526. husart->hdmarx->XferAbortCallback = NULL;
  2527. /* Check if an Abort process is still ongoing */
  2528. if (husart->hdmatx != NULL)
  2529. {
  2530. if (husart->hdmatx->XferAbortCallback != NULL)
  2531. {
  2532. return;
  2533. }
  2534. }
  2535. /* No Abort process still ongoing : All DMA channels are aborted, call user Abort Complete callback */
  2536. husart->TxXferCount = 0U;
  2537. husart->RxXferCount = 0U;
  2538. /* Reset errorCode */
  2539. husart->ErrorCode = HAL_USART_ERROR_NONE;
  2540. /* Clear the Error flags in the ICR register */
  2541. __HAL_USART_CLEAR_FLAG(husart, USART_CLEAR_OREF | USART_CLEAR_NEF | USART_CLEAR_PEF | USART_CLEAR_FEF);
  2542. /* Restore husart->State to Ready */
  2543. husart->State = HAL_USART_STATE_READY;
  2544. /* Call user Abort complete callback */
  2545. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2546. /* Call registered Abort Complete Callback */
  2547. husart->AbortCpltCallback(husart);
  2548. #else
  2549. /* Call legacy weak Abort Complete Callback */
  2550. HAL_USART_AbortCpltCallback(husart);
  2551. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2552. }
  2553. /**
  2554. * @brief Handle USART Communication Timeout. It waits
  2555. * until a flag is no longer in the specified status.
  2556. * @param husart USART handle.
  2557. * @param Flag Specifies the USART flag to check.
  2558. * @param Status the actual Flag status (SET or RESET).
  2559. * @param Tickstart Tick start value
  2560. * @param Timeout timeout duration.
  2561. * @retval HAL status
  2562. */
  2563. static HAL_StatusTypeDef USART_WaitOnFlagUntilTimeout(USART_HandleTypeDef *husart, uint32_t Flag, FlagStatus Status,
  2564. uint32_t Tickstart, uint32_t Timeout)
  2565. {
  2566. /* Wait until flag is set */
  2567. while ((__HAL_USART_GET_FLAG(husart, Flag) ? SET : RESET) == Status)
  2568. {
  2569. /* Check for the Timeout */
  2570. if (Timeout != HAL_MAX_DELAY)
  2571. {
  2572. if (((HAL_GetTick() - Tickstart) > Timeout) || (Timeout == 0U))
  2573. {
  2574. husart->State = HAL_USART_STATE_READY;
  2575. /* Process Unlocked */
  2576. __HAL_UNLOCK(husart);
  2577. return HAL_TIMEOUT;
  2578. }
  2579. }
  2580. }
  2581. return HAL_OK;
  2582. }
  2583. /**
  2584. * @brief Configure the USART peripheral.
  2585. * @param husart USART handle.
  2586. * @retval HAL status
  2587. */
  2588. static HAL_StatusTypeDef USART_SetConfig(USART_HandleTypeDef *husart)
  2589. {
  2590. uint32_t tmpreg;
  2591. USART_ClockSourceTypeDef clocksource;
  2592. HAL_StatusTypeDef ret = HAL_OK;
  2593. uint16_t brrtemp;
  2594. uint32_t usartdiv = 0x00000000;
  2595. uint32_t pclk;
  2596. /* Check the parameters */
  2597. assert_param(IS_USART_POLARITY(husart->Init.CLKPolarity));
  2598. assert_param(IS_USART_PHASE(husart->Init.CLKPhase));
  2599. assert_param(IS_USART_LASTBIT(husart->Init.CLKLastBit));
  2600. assert_param(IS_USART_BAUDRATE(husart->Init.BaudRate));
  2601. assert_param(IS_USART_WORD_LENGTH(husart->Init.WordLength));
  2602. assert_param(IS_USART_STOPBITS(husart->Init.StopBits));
  2603. assert_param(IS_USART_PARITY(husart->Init.Parity));
  2604. assert_param(IS_USART_MODE(husart->Init.Mode));
  2605. #if defined(USART_PRESC_PRESCALER)
  2606. assert_param(IS_USART_PRESCALER(husart->Init.ClockPrescaler));
  2607. #endif /* USART_PRESC_PRESCALER */
  2608. /*-------------------------- USART CR1 Configuration -----------------------*/
  2609. /* Clear M, PCE, PS, TE and RE bits and configure
  2610. * the USART Word Length, Parity and Mode:
  2611. * set the M bits according to husart->Init.WordLength value
  2612. * set PCE and PS bits according to husart->Init.Parity value
  2613. * set TE and RE bits according to husart->Init.Mode value
  2614. * force OVER8 to 1 to allow to reach the maximum speed (Fclock/8) */
  2615. tmpreg = (uint32_t)husart->Init.WordLength | husart->Init.Parity | husart->Init.Mode | USART_CR1_OVER8;
  2616. MODIFY_REG(husart->Instance->CR1, USART_CR1_FIELDS, tmpreg);
  2617. /*---------------------------- USART CR2 Configuration ---------------------*/
  2618. /* Clear and configure the USART Clock, CPOL, CPHA, LBCL STOP and SLVEN bits:
  2619. * set CPOL bit according to husart->Init.CLKPolarity value
  2620. * set CPHA bit according to husart->Init.CLKPhase value
  2621. * set LBCL bit according to husart->Init.CLKLastBit value (used in SPI master mode only)
  2622. * set STOP[13:12] bits according to husart->Init.StopBits value */
  2623. tmpreg = (uint32_t)(USART_CLOCK_ENABLE);
  2624. tmpreg |= (uint32_t)husart->Init.CLKLastBit;
  2625. tmpreg |= ((uint32_t)husart->Init.CLKPolarity | (uint32_t)husart->Init.CLKPhase);
  2626. tmpreg |= (uint32_t)husart->Init.StopBits;
  2627. MODIFY_REG(husart->Instance->CR2, USART_CR2_FIELDS, tmpreg);
  2628. #if defined(USART_PRESC_PRESCALER)
  2629. /*-------------------------- USART PRESC Configuration -----------------------*/
  2630. /* Configure
  2631. * - USART Clock Prescaler : set PRESCALER according to husart->Init.ClockPrescaler value */
  2632. MODIFY_REG(husart->Instance->PRESC, USART_PRESC_PRESCALER, husart->Init.ClockPrescaler);
  2633. #endif /* USART_PRESC_PRESCALER */
  2634. /*-------------------------- USART BRR Configuration -----------------------*/
  2635. /* BRR is filled-up according to OVER8 bit setting which is forced to 1 */
  2636. USART_GETCLOCKSOURCE(husart, clocksource);
  2637. switch (clocksource)
  2638. {
  2639. case USART_CLOCKSOURCE_PCLK1:
  2640. pclk = HAL_RCC_GetPCLK1Freq();
  2641. #if defined(USART_PRESC_PRESCALER)
  2642. usartdiv = (uint32_t)(USART_DIV_SAMPLING8(pclk, husart->Init.BaudRate, husart->Init.ClockPrescaler));
  2643. #else
  2644. usartdiv = (uint32_t)(USART_DIV_SAMPLING8(pclk, husart->Init.BaudRate));
  2645. #endif /* USART_PRESC_PRESCALER */
  2646. break;
  2647. case USART_CLOCKSOURCE_PCLK2:
  2648. pclk = HAL_RCC_GetPCLK2Freq();
  2649. #if defined(USART_PRESC_PRESCALER)
  2650. usartdiv = (uint32_t)(USART_DIV_SAMPLING8(pclk, husart->Init.BaudRate, husart->Init.ClockPrescaler));
  2651. #else
  2652. usartdiv = (uint32_t)(USART_DIV_SAMPLING8(pclk, husart->Init.BaudRate));
  2653. #endif /* USART_PRESC_PRESCALER */
  2654. break;
  2655. case USART_CLOCKSOURCE_HSI:
  2656. #if defined(USART_PRESC_PRESCALER)
  2657. usartdiv = (uint32_t)(USART_DIV_SAMPLING8(HSI_VALUE, husart->Init.BaudRate, husart->Init.ClockPrescaler));
  2658. #else
  2659. usartdiv = (uint32_t)(USART_DIV_SAMPLING8(HSI_VALUE, husart->Init.BaudRate));
  2660. #endif /* USART_PRESC_PRESCALER */
  2661. break;
  2662. case USART_CLOCKSOURCE_SYSCLK:
  2663. pclk = HAL_RCC_GetSysClockFreq();
  2664. #if defined(USART_PRESC_PRESCALER)
  2665. usartdiv = (uint32_t)(USART_DIV_SAMPLING8(pclk, husart->Init.BaudRate, husart->Init.ClockPrescaler));
  2666. #else
  2667. usartdiv = (uint32_t)(USART_DIV_SAMPLING8(pclk, husart->Init.BaudRate));
  2668. #endif /* USART_PRESC_PRESCALER */
  2669. break;
  2670. case USART_CLOCKSOURCE_LSE:
  2671. #if defined(USART_PRESC_PRESCALER)
  2672. usartdiv = (uint32_t)(USART_DIV_SAMPLING8(LSE_VALUE, husart->Init.BaudRate, husart->Init.ClockPrescaler));
  2673. #else
  2674. usartdiv = (uint32_t)(USART_DIV_SAMPLING8(LSE_VALUE, husart->Init.BaudRate));
  2675. #endif /* USART_PRESC_PRESCALER */
  2676. break;
  2677. default:
  2678. ret = HAL_ERROR;
  2679. break;
  2680. }
  2681. /* USARTDIV must be greater than or equal to 0d16 and smaller than or equal to ffff */
  2682. if ((usartdiv >= USART_BRR_MIN) && (usartdiv <= USART_BRR_MAX))
  2683. {
  2684. brrtemp = (uint16_t)(usartdiv & 0xFFF0U);
  2685. brrtemp |= (uint16_t)((usartdiv & (uint16_t)0x000FU) >> 1U);
  2686. husart->Instance->BRR = brrtemp;
  2687. }
  2688. else
  2689. {
  2690. ret = HAL_ERROR;
  2691. }
  2692. #if defined(USART_CR1_FIFOEN)
  2693. /* Initialize the number of data to process during RX/TX ISR execution */
  2694. husart->NbTxDataToProcess = 1U;
  2695. husart->NbRxDataToProcess = 1U;
  2696. #endif /* USART_CR1_FIFOEN */
  2697. /* Clear ISR function pointers */
  2698. husart->RxISR = NULL;
  2699. husart->TxISR = NULL;
  2700. return ret;
  2701. }
  2702. /**
  2703. * @brief Check the USART Idle State.
  2704. * @param husart USART handle.
  2705. * @retval HAL status
  2706. */
  2707. static HAL_StatusTypeDef USART_CheckIdleState(USART_HandleTypeDef *husart)
  2708. {
  2709. uint32_t tickstart;
  2710. /* Initialize the USART ErrorCode */
  2711. husart->ErrorCode = HAL_USART_ERROR_NONE;
  2712. /* Init tickstart for timeout management */
  2713. tickstart = HAL_GetTick();
  2714. /* Check if the Transmitter is enabled */
  2715. if ((husart->Instance->CR1 & USART_CR1_TE) == USART_CR1_TE)
  2716. {
  2717. /* Wait until TEACK flag is set */
  2718. if (USART_WaitOnFlagUntilTimeout(husart, USART_ISR_TEACK, RESET, tickstart, USART_TEACK_REACK_TIMEOUT) != HAL_OK)
  2719. {
  2720. /* Timeout occurred */
  2721. return HAL_TIMEOUT;
  2722. }
  2723. }
  2724. /* Check if the Receiver is enabled */
  2725. if ((husart->Instance->CR1 & USART_CR1_RE) == USART_CR1_RE)
  2726. {
  2727. /* Wait until REACK flag is set */
  2728. if (USART_WaitOnFlagUntilTimeout(husart, USART_ISR_REACK, RESET, tickstart, USART_TEACK_REACK_TIMEOUT) != HAL_OK)
  2729. {
  2730. /* Timeout occurred */
  2731. return HAL_TIMEOUT;
  2732. }
  2733. }
  2734. /* Initialize the USART state*/
  2735. husart->State = HAL_USART_STATE_READY;
  2736. /* Process Unlocked */
  2737. __HAL_UNLOCK(husart);
  2738. return HAL_OK;
  2739. }
  2740. /**
  2741. * @brief Simplex send an amount of data in non-blocking mode.
  2742. * @note Function called under interruption only, once
  2743. * interruptions have been enabled by HAL_USART_Transmit_IT().
  2744. * @note The USART errors are not managed to avoid the overrun error.
  2745. * @note ISR function executed when FIFO mode is disabled and when the
  2746. * data word length is less than 9 bits long.
  2747. * @param husart USART handle.
  2748. * @retval None
  2749. */
  2750. static void USART_TxISR_8BIT(USART_HandleTypeDef *husart)
  2751. {
  2752. const HAL_USART_StateTypeDef state = husart->State;
  2753. /* Check that a Tx process is ongoing */
  2754. if ((state == HAL_USART_STATE_BUSY_TX) ||
  2755. (state == HAL_USART_STATE_BUSY_TX_RX))
  2756. {
  2757. if (husart->TxXferCount == 0U)
  2758. {
  2759. /* Disable the USART Transmit data register empty interrupt */
  2760. __HAL_USART_DISABLE_IT(husart, USART_IT_TXE);
  2761. /* Enable the USART Transmit Complete Interrupt */
  2762. __HAL_USART_ENABLE_IT(husart, USART_IT_TC);
  2763. }
  2764. else
  2765. {
  2766. husart->Instance->TDR = (uint8_t)(*husart->pTxBuffPtr & (uint8_t)0xFF);
  2767. husart->pTxBuffPtr++;
  2768. husart->TxXferCount--;
  2769. }
  2770. }
  2771. }
  2772. /**
  2773. * @brief Simplex send an amount of data in non-blocking mode.
  2774. * @note Function called under interruption only, once
  2775. * interruptions have been enabled by HAL_USART_Transmit_IT().
  2776. * @note The USART errors are not managed to avoid the overrun error.
  2777. * @note ISR function executed when FIFO mode is disabled and when the
  2778. * data word length is 9 bits long.
  2779. * @param husart USART handle.
  2780. * @retval None
  2781. */
  2782. static void USART_TxISR_16BIT(USART_HandleTypeDef *husart)
  2783. {
  2784. const HAL_USART_StateTypeDef state = husart->State;
  2785. const uint16_t *tmp;
  2786. if ((state == HAL_USART_STATE_BUSY_TX) ||
  2787. (state == HAL_USART_STATE_BUSY_TX_RX))
  2788. {
  2789. if (husart->TxXferCount == 0U)
  2790. {
  2791. /* Disable the USART Transmit data register empty interrupt */
  2792. __HAL_USART_DISABLE_IT(husart, USART_IT_TXE);
  2793. /* Enable the USART Transmit Complete Interrupt */
  2794. __HAL_USART_ENABLE_IT(husart, USART_IT_TC);
  2795. }
  2796. else
  2797. {
  2798. tmp = (const uint16_t *) husart->pTxBuffPtr;
  2799. husart->Instance->TDR = (uint16_t)(*tmp & 0x01FFU);
  2800. husart->pTxBuffPtr += 2U;
  2801. husart->TxXferCount--;
  2802. }
  2803. }
  2804. }
  2805. #if defined(USART_CR1_FIFOEN)
  2806. /**
  2807. * @brief Simplex send an amount of data in non-blocking mode.
  2808. * @note Function called under interruption only, once
  2809. * interruptions have been enabled by HAL_USART_Transmit_IT().
  2810. * @note The USART errors are not managed to avoid the overrun error.
  2811. * @note ISR function executed when FIFO mode is enabled and when the
  2812. * data word length is less than 9 bits long.
  2813. * @param husart USART handle.
  2814. * @retval None
  2815. */
  2816. static void USART_TxISR_8BIT_FIFOEN(USART_HandleTypeDef *husart)
  2817. {
  2818. const HAL_USART_StateTypeDef state = husart->State;
  2819. uint16_t nb_tx_data;
  2820. /* Check that a Tx process is ongoing */
  2821. if ((state == HAL_USART_STATE_BUSY_TX) ||
  2822. (state == HAL_USART_STATE_BUSY_TX_RX))
  2823. {
  2824. for (nb_tx_data = husart->NbTxDataToProcess ; nb_tx_data > 0U ; nb_tx_data--)
  2825. {
  2826. if (husart->TxXferCount == 0U)
  2827. {
  2828. /* Disable the TX FIFO threshold interrupt */
  2829. __HAL_USART_DISABLE_IT(husart, USART_IT_TXFT);
  2830. /* Enable the USART Transmit Complete Interrupt */
  2831. __HAL_USART_ENABLE_IT(husart, USART_IT_TC);
  2832. break; /* force exit loop */
  2833. }
  2834. else if (__HAL_USART_GET_FLAG(husart, USART_FLAG_TXFNF) == SET)
  2835. {
  2836. husart->Instance->TDR = (uint8_t)(*husart->pTxBuffPtr & (uint8_t)0xFF);
  2837. husart->pTxBuffPtr++;
  2838. husart->TxXferCount--;
  2839. }
  2840. else
  2841. {
  2842. /* Nothing to do */
  2843. }
  2844. }
  2845. }
  2846. }
  2847. /**
  2848. * @brief Simplex send an amount of data in non-blocking mode.
  2849. * @note Function called under interruption only, once
  2850. * interruptions have been enabled by HAL_USART_Transmit_IT().
  2851. * @note The USART errors are not managed to avoid the overrun error.
  2852. * @note ISR function executed when FIFO mode is enabled and when the
  2853. * data word length is 9 bits long.
  2854. * @param husart USART handle.
  2855. * @retval None
  2856. */
  2857. static void USART_TxISR_16BIT_FIFOEN(USART_HandleTypeDef *husart)
  2858. {
  2859. const HAL_USART_StateTypeDef state = husart->State;
  2860. const uint16_t *tmp;
  2861. uint16_t nb_tx_data;
  2862. /* Check that a Tx process is ongoing */
  2863. if ((state == HAL_USART_STATE_BUSY_TX) ||
  2864. (state == HAL_USART_STATE_BUSY_TX_RX))
  2865. {
  2866. for (nb_tx_data = husart->NbTxDataToProcess ; nb_tx_data > 0U ; nb_tx_data--)
  2867. {
  2868. if (husart->TxXferCount == 0U)
  2869. {
  2870. /* Disable the TX FIFO threshold interrupt */
  2871. __HAL_USART_DISABLE_IT(husart, USART_IT_TXFT);
  2872. /* Enable the USART Transmit Complete Interrupt */
  2873. __HAL_USART_ENABLE_IT(husart, USART_IT_TC);
  2874. break; /* force exit loop */
  2875. }
  2876. else if (__HAL_USART_GET_FLAG(husart, USART_FLAG_TXFNF) == SET)
  2877. {
  2878. tmp = (const uint16_t *) husart->pTxBuffPtr;
  2879. husart->Instance->TDR = (uint16_t)(*tmp & 0x01FFU);
  2880. husart->pTxBuffPtr += 2U;
  2881. husart->TxXferCount--;
  2882. }
  2883. else
  2884. {
  2885. /* Nothing to do */
  2886. }
  2887. }
  2888. }
  2889. }
  2890. #endif /* USART_CR1_FIFOEN */
  2891. /**
  2892. * @brief Wraps up transmission in non-blocking mode.
  2893. * @param husart Pointer to a USART_HandleTypeDef structure that contains
  2894. * the configuration information for the specified USART module.
  2895. * @retval None
  2896. */
  2897. static void USART_EndTransmit_IT(USART_HandleTypeDef *husart)
  2898. {
  2899. /* Disable the USART Transmit Complete Interrupt */
  2900. __HAL_USART_DISABLE_IT(husart, USART_IT_TC);
  2901. /* Disable the USART Error Interrupt: (Frame error, noise error, overrun error) */
  2902. __HAL_USART_DISABLE_IT(husart, USART_IT_ERR);
  2903. /* Clear TxISR function pointer */
  2904. husart->TxISR = NULL;
  2905. if (husart->State == HAL_USART_STATE_BUSY_TX)
  2906. {
  2907. /* Clear overrun flag and discard the received data */
  2908. __HAL_USART_CLEAR_OREFLAG(husart);
  2909. __HAL_USART_SEND_REQ(husart, USART_RXDATA_FLUSH_REQUEST);
  2910. /* Tx process is completed, restore husart->State to Ready */
  2911. husart->State = HAL_USART_STATE_READY;
  2912. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2913. /* Call registered Tx Complete Callback */
  2914. husart->TxCpltCallback(husart);
  2915. #else
  2916. /* Call legacy weak Tx Complete Callback */
  2917. HAL_USART_TxCpltCallback(husart);
  2918. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2919. }
  2920. else if (husart->RxXferCount == 0U)
  2921. {
  2922. /* TxRx process is completed, restore husart->State to Ready */
  2923. husart->State = HAL_USART_STATE_READY;
  2924. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2925. /* Call registered Tx Rx Complete Callback */
  2926. husart->TxRxCpltCallback(husart);
  2927. #else
  2928. /* Call legacy weak Tx Rx Complete Callback */
  2929. HAL_USART_TxRxCpltCallback(husart);
  2930. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2931. }
  2932. else
  2933. {
  2934. /* Nothing to do */
  2935. }
  2936. }
  2937. /**
  2938. * @brief Simplex receive an amount of data in non-blocking mode.
  2939. * @note Function called under interruption only, once
  2940. * interruptions have been enabled by HAL_USART_Receive_IT().
  2941. * @note ISR function executed when FIFO mode is disabled and when the
  2942. * data word length is less than 9 bits long.
  2943. * @param husart USART handle
  2944. * @retval None
  2945. */
  2946. static void USART_RxISR_8BIT(USART_HandleTypeDef *husart)
  2947. {
  2948. const HAL_USART_StateTypeDef state = husart->State;
  2949. uint16_t txdatacount;
  2950. uint16_t uhMask = husart->Mask;
  2951. #if defined(USART_CR1_FIFOEN)
  2952. uint32_t txftie;
  2953. #endif /* USART_CR1_FIFOEN */
  2954. if ((state == HAL_USART_STATE_BUSY_RX) ||
  2955. (state == HAL_USART_STATE_BUSY_TX_RX))
  2956. {
  2957. *husart->pRxBuffPtr = (uint8_t)(husart->Instance->RDR & (uint8_t)uhMask);
  2958. husart->pRxBuffPtr++;
  2959. husart->RxXferCount--;
  2960. if (husart->RxXferCount == 0U)
  2961. {
  2962. /* Disable the USART Parity Error Interrupt and RXNE interrupt*/
  2963. #if defined(USART_CR1_FIFOEN)
  2964. CLEAR_BIT(husart->Instance->CR1, (USART_CR1_RXNEIE_RXFNEIE | USART_CR1_PEIE));
  2965. #else
  2966. CLEAR_BIT(husart->Instance->CR1, (USART_CR1_RXNEIE | USART_CR1_PEIE));
  2967. #endif /* USART_CR1_FIFOEN */
  2968. /* Disable the USART Error Interrupt: (Frame error, noise error, overrun error) */
  2969. CLEAR_BIT(husart->Instance->CR3, USART_CR3_EIE);
  2970. /* Clear RxISR function pointer */
  2971. husart->RxISR = NULL;
  2972. #if defined(USART_CR1_FIFOEN)
  2973. /* txftie and txdatacount are temporary variables for MISRAC2012-Rule-13.5 */
  2974. txftie = READ_BIT(husart->Instance->CR3, USART_CR3_TXFTIE);
  2975. #else
  2976. /* txdatacount is a temporary variable for MISRAC2012-Rule-13.5 */
  2977. #endif /* USART_CR1_FIFOEN */
  2978. txdatacount = husart->TxXferCount;
  2979. if (state == HAL_USART_STATE_BUSY_RX)
  2980. {
  2981. #if defined(USART_CR2_SLVEN)
  2982. /* Clear SPI slave underrun flag and discard transmit data */
  2983. if (husart->SlaveMode == USART_SLAVEMODE_ENABLE)
  2984. {
  2985. __HAL_USART_CLEAR_UDRFLAG(husart);
  2986. __HAL_USART_SEND_REQ(husart, USART_TXDATA_FLUSH_REQUEST);
  2987. }
  2988. #endif /* USART_CR2_SLVEN */
  2989. /* Rx process is completed, restore husart->State to Ready */
  2990. husart->State = HAL_USART_STATE_READY;
  2991. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  2992. /* Call registered Rx Complete Callback */
  2993. husart->RxCpltCallback(husart);
  2994. #else
  2995. /* Call legacy weak Rx Complete Callback */
  2996. HAL_USART_RxCpltCallback(husart);
  2997. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  2998. }
  2999. #if defined(USART_CR1_FIFOEN)
  3000. else if ((READ_BIT(husart->Instance->CR1, USART_CR1_TCIE) != USART_CR1_TCIE) &&
  3001. (txftie != USART_CR3_TXFTIE) &&
  3002. (txdatacount == 0U))
  3003. #else
  3004. else if ((READ_BIT(husart->Instance->CR1, USART_CR1_TCIE) != USART_CR1_TCIE) &&
  3005. (txdatacount == 0U))
  3006. #endif /* USART_CR1_FIFOEN */
  3007. {
  3008. /* TxRx process is completed, restore husart->State to Ready */
  3009. husart->State = HAL_USART_STATE_READY;
  3010. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  3011. /* Call registered Tx Rx Complete Callback */
  3012. husart->TxRxCpltCallback(husart);
  3013. #else
  3014. /* Call legacy weak Tx Rx Complete Callback */
  3015. HAL_USART_TxRxCpltCallback(husart);
  3016. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  3017. }
  3018. else
  3019. {
  3020. /* Nothing to do */
  3021. }
  3022. }
  3023. #if defined(USART_CR2_SLVEN)
  3024. else if ((state == HAL_USART_STATE_BUSY_RX) &&
  3025. (husart->SlaveMode == USART_SLAVEMODE_DISABLE))
  3026. #else
  3027. else if (state == HAL_USART_STATE_BUSY_RX)
  3028. #endif /* USART_CR2_SLVEN */
  3029. {
  3030. /* Send dummy byte in order to generate the clock for the Slave to Send the next data */
  3031. husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x00FF);
  3032. }
  3033. else
  3034. {
  3035. /* Nothing to do */
  3036. }
  3037. }
  3038. }
  3039. /**
  3040. * @brief Simplex receive an amount of data in non-blocking mode.
  3041. * @note Function called under interruption only, once
  3042. * interruptions have been enabled by HAL_USART_Receive_IT().
  3043. * @note ISR function executed when FIFO mode is disabled and when the
  3044. * data word length is 9 bits long.
  3045. * @param husart USART handle
  3046. * @retval None
  3047. */
  3048. static void USART_RxISR_16BIT(USART_HandleTypeDef *husart)
  3049. {
  3050. const HAL_USART_StateTypeDef state = husart->State;
  3051. uint16_t txdatacount;
  3052. uint16_t *tmp;
  3053. uint16_t uhMask = husart->Mask;
  3054. #if defined(USART_CR1_FIFOEN)
  3055. uint32_t txftie;
  3056. #endif /* USART_CR1_FIFOEN */
  3057. if ((state == HAL_USART_STATE_BUSY_RX) ||
  3058. (state == HAL_USART_STATE_BUSY_TX_RX))
  3059. {
  3060. tmp = (uint16_t *) husart->pRxBuffPtr;
  3061. *tmp = (uint16_t)(husart->Instance->RDR & uhMask);
  3062. husart->pRxBuffPtr += 2U;
  3063. husart->RxXferCount--;
  3064. if (husart->RxXferCount == 0U)
  3065. {
  3066. /* Disable the USART Parity Error Interrupt and RXNE interrupt*/
  3067. #if defined(USART_CR1_FIFOEN)
  3068. CLEAR_BIT(husart->Instance->CR1, (USART_CR1_RXNEIE_RXFNEIE | USART_CR1_PEIE));
  3069. #else
  3070. CLEAR_BIT(husart->Instance->CR1, (USART_CR1_RXNEIE | USART_CR1_PEIE));
  3071. #endif /* USART_CR1_FIFOEN */
  3072. /* Disable the USART Error Interrupt: (Frame error, noise error, overrun error) */
  3073. CLEAR_BIT(husart->Instance->CR3, USART_CR3_EIE);
  3074. /* Clear RxISR function pointer */
  3075. husart->RxISR = NULL;
  3076. #if defined(USART_CR1_FIFOEN)
  3077. /* txftie and txdatacount are temporary variables for MISRAC2012-Rule-13.5 */
  3078. txftie = READ_BIT(husart->Instance->CR3, USART_CR3_TXFTIE);
  3079. #else
  3080. /* txdatacount is a temporary variable for MISRAC2012-Rule-13.5 */
  3081. #endif /* USART_CR1_FIFOEN */
  3082. txdatacount = husart->TxXferCount;
  3083. if (state == HAL_USART_STATE_BUSY_RX)
  3084. {
  3085. #if defined(USART_CR2_SLVEN)
  3086. /* Clear SPI slave underrun flag and discard transmit data */
  3087. if (husart->SlaveMode == USART_SLAVEMODE_ENABLE)
  3088. {
  3089. __HAL_USART_CLEAR_UDRFLAG(husart);
  3090. __HAL_USART_SEND_REQ(husart, USART_TXDATA_FLUSH_REQUEST);
  3091. }
  3092. #endif /* USART_CR2_SLVEN */
  3093. /* Rx process is completed, restore husart->State to Ready */
  3094. husart->State = HAL_USART_STATE_READY;
  3095. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  3096. /* Call registered Rx Complete Callback */
  3097. husart->RxCpltCallback(husart);
  3098. #else
  3099. /* Call legacy weak Rx Complete Callback */
  3100. HAL_USART_RxCpltCallback(husart);
  3101. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  3102. }
  3103. #if defined(USART_CR1_FIFOEN)
  3104. else if ((READ_BIT(husart->Instance->CR1, USART_CR1_TCIE) != USART_CR1_TCIE) &&
  3105. (txftie != USART_CR3_TXFTIE) &&
  3106. (txdatacount == 0U))
  3107. #else
  3108. else if ((READ_BIT(husart->Instance->CR1, USART_CR1_TCIE) != USART_CR1_TCIE) &&
  3109. (txdatacount == 0U))
  3110. #endif /* USART_CR1_FIFOEN */
  3111. {
  3112. /* TxRx process is completed, restore husart->State to Ready */
  3113. husart->State = HAL_USART_STATE_READY;
  3114. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  3115. /* Call registered Tx Rx Complete Callback */
  3116. husart->TxRxCpltCallback(husart);
  3117. #else
  3118. /* Call legacy weak Tx Rx Complete Callback */
  3119. HAL_USART_TxRxCpltCallback(husart);
  3120. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  3121. }
  3122. else
  3123. {
  3124. /* Nothing to do */
  3125. }
  3126. }
  3127. #if defined(USART_CR2_SLVEN)
  3128. else if ((state == HAL_USART_STATE_BUSY_RX) &&
  3129. (husart->SlaveMode == USART_SLAVEMODE_DISABLE))
  3130. #else
  3131. else if (state == HAL_USART_STATE_BUSY_RX)
  3132. #endif /* USART_CR2_SLVEN */
  3133. {
  3134. /* Send dummy byte in order to generate the clock for the Slave to Send the next data */
  3135. husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x00FF);
  3136. }
  3137. else
  3138. {
  3139. /* Nothing to do */
  3140. }
  3141. }
  3142. }
  3143. #if defined(USART_CR1_FIFOEN)
  3144. /**
  3145. * @brief Simplex receive an amount of data in non-blocking mode.
  3146. * @note Function called under interruption only, once
  3147. * interruptions have been enabled by HAL_USART_Receive_IT().
  3148. * @note ISR function executed when FIFO mode is enabled and when the
  3149. * data word length is less than 9 bits long.
  3150. * @param husart USART handle
  3151. * @retval None
  3152. */
  3153. static void USART_RxISR_8BIT_FIFOEN(USART_HandleTypeDef *husart)
  3154. {
  3155. HAL_USART_StateTypeDef state = husart->State;
  3156. uint16_t txdatacount;
  3157. uint16_t rxdatacount;
  3158. uint16_t uhMask = husart->Mask;
  3159. uint16_t nb_rx_data;
  3160. uint32_t txftie;
  3161. /* Check that a Rx process is ongoing */
  3162. if ((state == HAL_USART_STATE_BUSY_RX) ||
  3163. (state == HAL_USART_STATE_BUSY_TX_RX))
  3164. {
  3165. for (nb_rx_data = husart->NbRxDataToProcess ; nb_rx_data > 0U ; nb_rx_data--)
  3166. {
  3167. if (__HAL_USART_GET_FLAG(husart, USART_FLAG_RXFNE) == SET)
  3168. {
  3169. *husart->pRxBuffPtr = (uint8_t)(husart->Instance->RDR & (uint8_t)(uhMask & 0xFFU));
  3170. husart->pRxBuffPtr++;
  3171. husart->RxXferCount--;
  3172. if (husart->RxXferCount == 0U)
  3173. {
  3174. /* Disable the USART Parity Error Interrupt */
  3175. CLEAR_BIT(husart->Instance->CR1, USART_CR1_PEIE);
  3176. /* Disable the USART Error Interrupt: (Frame error, noise error, overrun error)
  3177. and RX FIFO Threshold interrupt */
  3178. CLEAR_BIT(husart->Instance->CR3, (USART_CR3_EIE | USART_CR3_RXFTIE));
  3179. /* Clear RxISR function pointer */
  3180. husart->RxISR = NULL;
  3181. /* txftie and txdatacount are temporary variables for MISRAC2012-Rule-13.5 */
  3182. txftie = READ_BIT(husart->Instance->CR3, USART_CR3_TXFTIE);
  3183. txdatacount = husart->TxXferCount;
  3184. if (state == HAL_USART_STATE_BUSY_RX)
  3185. {
  3186. #if defined(USART_CR2_SLVEN)
  3187. /* Clear SPI slave underrun flag and discard transmit data */
  3188. if (husart->SlaveMode == USART_SLAVEMODE_ENABLE)
  3189. {
  3190. __HAL_USART_CLEAR_UDRFLAG(husart);
  3191. __HAL_USART_SEND_REQ(husart, USART_TXDATA_FLUSH_REQUEST);
  3192. }
  3193. #endif /* USART_CR2_SLVEN */
  3194. /* Rx process is completed, restore husart->State to Ready */
  3195. husart->State = HAL_USART_STATE_READY;
  3196. state = HAL_USART_STATE_READY;
  3197. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  3198. /* Call registered Rx Complete Callback */
  3199. husart->RxCpltCallback(husart);
  3200. #else
  3201. /* Call legacy weak Rx Complete Callback */
  3202. HAL_USART_RxCpltCallback(husart);
  3203. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  3204. }
  3205. else if ((READ_BIT(husart->Instance->CR1, USART_CR1_TCIE) != USART_CR1_TCIE) &&
  3206. (txftie != USART_CR3_TXFTIE) &&
  3207. (txdatacount == 0U))
  3208. {
  3209. /* TxRx process is completed, restore husart->State to Ready */
  3210. husart->State = HAL_USART_STATE_READY;
  3211. state = HAL_USART_STATE_READY;
  3212. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  3213. /* Call registered Tx Rx Complete Callback */
  3214. husart->TxRxCpltCallback(husart);
  3215. #else
  3216. /* Call legacy weak Tx Rx Complete Callback */
  3217. HAL_USART_TxRxCpltCallback(husart);
  3218. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  3219. }
  3220. else
  3221. {
  3222. /* Nothing to do */
  3223. }
  3224. }
  3225. #if defined(USART_CR2_SLVEN)
  3226. else if ((state == HAL_USART_STATE_BUSY_RX) &&
  3227. (husart->SlaveMode == USART_SLAVEMODE_DISABLE))
  3228. #else
  3229. else if (state == HAL_USART_STATE_BUSY_RX)
  3230. #endif /* USART_CR2_SLVEN */
  3231. {
  3232. /* Send dummy byte in order to generate the clock for the Slave to Send the next data */
  3233. husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x00FF);
  3234. }
  3235. else
  3236. {
  3237. /* Nothing to do */
  3238. }
  3239. }
  3240. }
  3241. /* When remaining number of bytes to receive is less than the RX FIFO
  3242. threshold, next incoming frames are processed as if FIFO mode was
  3243. disabled (i.e. one interrupt per received frame).
  3244. */
  3245. rxdatacount = husart->RxXferCount;
  3246. if (((rxdatacount != 0U)) && (rxdatacount < husart->NbRxDataToProcess))
  3247. {
  3248. /* Disable the USART RXFT interrupt*/
  3249. CLEAR_BIT(husart->Instance->CR3, USART_CR3_RXFTIE);
  3250. /* Update the RxISR function pointer */
  3251. husart->RxISR = USART_RxISR_8BIT;
  3252. /* Enable the USART Data Register Not Empty interrupt */
  3253. SET_BIT(husart->Instance->CR1, USART_CR1_RXNEIE_RXFNEIE);
  3254. #if defined(USART_CR2_SLVEN)
  3255. if ((husart->TxXferCount == 0U) &&
  3256. (state == HAL_USART_STATE_BUSY_TX_RX) &&
  3257. (husart->SlaveMode == USART_SLAVEMODE_DISABLE))
  3258. #else
  3259. if ((husart->TxXferCount == 0U) &&
  3260. (state == HAL_USART_STATE_BUSY_TX_RX))
  3261. #endif /* USART_CR2_SLVEN */
  3262. {
  3263. /* Send dummy byte in order to generate the clock for the Slave to Send the next data */
  3264. husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x00FF);
  3265. }
  3266. }
  3267. }
  3268. else
  3269. {
  3270. /* Clear RXNE interrupt flag */
  3271. __HAL_USART_SEND_REQ(husart, USART_RXDATA_FLUSH_REQUEST);
  3272. }
  3273. }
  3274. /**
  3275. * @brief Simplex receive an amount of data in non-blocking mode.
  3276. * @note Function called under interruption only, once
  3277. * interruptions have been enabled by HAL_USART_Receive_IT().
  3278. * @note ISR function executed when FIFO mode is enabled and when the
  3279. * data word length is 9 bits long.
  3280. * @param husart USART handle
  3281. * @retval None
  3282. */
  3283. static void USART_RxISR_16BIT_FIFOEN(USART_HandleTypeDef *husart)
  3284. {
  3285. HAL_USART_StateTypeDef state = husart->State;
  3286. uint16_t txdatacount;
  3287. uint16_t rxdatacount;
  3288. uint16_t *tmp;
  3289. uint16_t uhMask = husart->Mask;
  3290. uint16_t nb_rx_data;
  3291. uint32_t txftie;
  3292. /* Check that a Tx process is ongoing */
  3293. if ((state == HAL_USART_STATE_BUSY_RX) ||
  3294. (state == HAL_USART_STATE_BUSY_TX_RX))
  3295. {
  3296. for (nb_rx_data = husart->NbRxDataToProcess ; nb_rx_data > 0U ; nb_rx_data--)
  3297. {
  3298. if (__HAL_USART_GET_FLAG(husart, USART_FLAG_RXFNE) == SET)
  3299. {
  3300. tmp = (uint16_t *) husart->pRxBuffPtr;
  3301. *tmp = (uint16_t)(husart->Instance->RDR & uhMask);
  3302. husart->pRxBuffPtr += 2U;
  3303. husart->RxXferCount--;
  3304. if (husart->RxXferCount == 0U)
  3305. {
  3306. /* Disable the USART Parity Error Interrupt */
  3307. CLEAR_BIT(husart->Instance->CR1, USART_CR1_PEIE);
  3308. /* Disable the USART Error Interrupt: (Frame error, noise error, overrun error)
  3309. and RX FIFO Threshold interrupt */
  3310. CLEAR_BIT(husart->Instance->CR3, (USART_CR3_EIE | USART_CR3_RXFTIE));
  3311. /* Clear RxISR function pointer */
  3312. husart->RxISR = NULL;
  3313. /* txftie and txdatacount are temporary variables for MISRAC2012-Rule-13.5 */
  3314. txftie = READ_BIT(husart->Instance->CR3, USART_CR3_TXFTIE);
  3315. txdatacount = husart->TxXferCount;
  3316. if (state == HAL_USART_STATE_BUSY_RX)
  3317. {
  3318. #if defined(USART_CR2_SLVEN)
  3319. /* Clear SPI slave underrun flag and discard transmit data */
  3320. if (husart->SlaveMode == USART_SLAVEMODE_ENABLE)
  3321. {
  3322. __HAL_USART_CLEAR_UDRFLAG(husart);
  3323. __HAL_USART_SEND_REQ(husart, USART_TXDATA_FLUSH_REQUEST);
  3324. }
  3325. #endif /* USART_CR2_SLVEN */
  3326. /* Rx process is completed, restore husart->State to Ready */
  3327. husart->State = HAL_USART_STATE_READY;
  3328. state = HAL_USART_STATE_READY;
  3329. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  3330. /* Call registered Rx Complete Callback */
  3331. husart->RxCpltCallback(husart);
  3332. #else
  3333. /* Call legacy weak Rx Complete Callback */
  3334. HAL_USART_RxCpltCallback(husart);
  3335. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  3336. }
  3337. else if ((READ_BIT(husart->Instance->CR1, USART_CR1_TCIE) != USART_CR1_TCIE) &&
  3338. (txftie != USART_CR3_TXFTIE) &&
  3339. (txdatacount == 0U))
  3340. {
  3341. /* TxRx process is completed, restore husart->State to Ready */
  3342. husart->State = HAL_USART_STATE_READY;
  3343. state = HAL_USART_STATE_READY;
  3344. #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
  3345. /* Call registered Tx Rx Complete Callback */
  3346. husart->TxRxCpltCallback(husart);
  3347. #else
  3348. /* Call legacy weak Tx Rx Complete Callback */
  3349. HAL_USART_TxRxCpltCallback(husart);
  3350. #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
  3351. }
  3352. else
  3353. {
  3354. /* Nothing to do */
  3355. }
  3356. }
  3357. #if defined(USART_CR2_SLVEN)
  3358. else if ((state == HAL_USART_STATE_BUSY_RX) &&
  3359. (husart->SlaveMode == USART_SLAVEMODE_DISABLE))
  3360. #else
  3361. else if (state == HAL_USART_STATE_BUSY_RX)
  3362. #endif /* USART_CR2_SLVEN */
  3363. {
  3364. /* Send dummy byte in order to generate the clock for the Slave to Send the next data */
  3365. husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x00FF);
  3366. }
  3367. else
  3368. {
  3369. /* Nothing to do */
  3370. }
  3371. }
  3372. }
  3373. /* When remaining number of bytes to receive is less than the RX FIFO
  3374. threshold, next incoming frames are processed as if FIFO mode was
  3375. disabled (i.e. one interrupt per received frame).
  3376. */
  3377. rxdatacount = husart->RxXferCount;
  3378. if (((rxdatacount != 0U)) && (rxdatacount < husart->NbRxDataToProcess))
  3379. {
  3380. /* Disable the USART RXFT interrupt*/
  3381. CLEAR_BIT(husart->Instance->CR3, USART_CR3_RXFTIE);
  3382. /* Update the RxISR function pointer */
  3383. husart->RxISR = USART_RxISR_16BIT;
  3384. /* Enable the USART Data Register Not Empty interrupt */
  3385. SET_BIT(husart->Instance->CR1, USART_CR1_RXNEIE_RXFNEIE);
  3386. #if defined(USART_CR2_SLVEN)
  3387. if ((husart->TxXferCount == 0U) &&
  3388. (state == HAL_USART_STATE_BUSY_TX_RX) &&
  3389. (husart->SlaveMode == USART_SLAVEMODE_DISABLE))
  3390. #else
  3391. if ((husart->TxXferCount == 0U) &&
  3392. (state == HAL_USART_STATE_BUSY_TX_RX))
  3393. #endif /* USART_CR2_SLVEN */
  3394. {
  3395. /* Send dummy byte in order to generate the clock for the Slave to Send the next data */
  3396. husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x00FF);
  3397. }
  3398. }
  3399. }
  3400. else
  3401. {
  3402. /* Clear RXNE interrupt flag */
  3403. __HAL_USART_SEND_REQ(husart, USART_RXDATA_FLUSH_REQUEST);
  3404. }
  3405. }
  3406. #endif /* USART_CR1_FIFOEN */
  3407. /**
  3408. * @}
  3409. */
  3410. #endif /* HAL_USART_MODULE_ENABLED */
  3411. /**
  3412. * @}
  3413. */
  3414. /**
  3415. * @}
  3416. */