1 /**
2 ******************************************************************************
3 * @file stm32c0xx_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) 2022 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
32 (#) Declare a USART_HandleTypeDef handle structure (eg. USART_HandleTypeDef husart).
33 (#) Initialize the USART low level resources by implementing the HAL_USART_MspInit() API:
34 (++) Enable the USARTx interface clock.
35 (++) USART pins configuration:
36 (+++) Enable the clock for the USART GPIOs.
37 (+++) Configure these USART pins as alternate function pull-up.
38 (++) NVIC configuration if you need to use interrupt process (HAL_USART_Transmit_IT(),
39 HAL_USART_Receive_IT() and HAL_USART_TransmitReceive_IT() APIs):
40 (+++) Configure the USARTx interrupt priority.
41 (+++) Enable the NVIC USART IRQ handle.
42 (++) USART interrupts handling:
43 -@@- The specific USART interrupts (Transmission complete interrupt,
44 RXNE interrupt and Error Interrupts) will be managed using the macros
45 __HAL_USART_ENABLE_IT() and __HAL_USART_DISABLE_IT() inside the transmit and receive process.
46 (++) DMA Configuration if you need to use DMA process (HAL_USART_Transmit_DMA()
47 HAL_USART_Receive_DMA() and HAL_USART_TransmitReceive_DMA() APIs):
48 (+++) Declare a DMA handle structure for the Tx/Rx channel.
49 (+++) Enable the DMAx interface clock.
50 (+++) Configure the declared DMA handle structure with the required Tx/Rx parameters.
51 (+++) Configure the DMA Tx/Rx channel.
52 (+++) Associate the initialized DMA handle to the USART DMA Tx/Rx handle.
53 (+++) Configure the priority and enable the NVIC for the transfer
54 complete interrupt on the DMA Tx/Rx channel.
55
56 (#) Program the Baud Rate, Word Length, Stop Bit, Parity, and Mode
57 (Receiver/Transmitter) in the husart handle Init structure.
58
59 (#) Initialize the USART registers by calling the HAL_USART_Init() API:
60 (++) This API configures also the low level Hardware GPIO, CLOCK, CORTEX...etc)
61 by calling the customized HAL_USART_MspInit(&husart) API.
62
63 [..]
64 (@) To configure and enable/disable the USART to wake up the MCU from stop mode, resort to UART API's
65 HAL_UARTEx_StopModeWakeUpSourceConfig(), HAL_UARTEx_EnableStopMode() and
66 HAL_UARTEx_DisableStopMode() in casting the USART handle to UART type UART_HandleTypeDef.
67
68 ##### Callback registration #####
69 ==================================
70
71 [..]
72 The compilation define USE_HAL_USART_REGISTER_CALLBACKS when set to 1
73 allows the user to configure dynamically the driver callbacks.
74
75 [..]
76 Use Function HAL_USART_RegisterCallback() to register a user callback.
77 Function HAL_USART_RegisterCallback() allows to register following callbacks:
78 (+) TxHalfCpltCallback : Tx Half Complete Callback.
79 (+) TxCpltCallback : Tx Complete Callback.
80 (+) RxHalfCpltCallback : Rx Half Complete Callback.
81 (+) RxCpltCallback : Rx Complete Callback.
82 (+) TxRxCpltCallback : Tx Rx Complete Callback.
83 (+) ErrorCallback : Error Callback.
84 (+) AbortCpltCallback : Abort Complete Callback.
85 (+) RxFifoFullCallback : Rx Fifo Full Callback.
86 (+) TxFifoEmptyCallback : Tx Fifo Empty Callback.
87 (+) MspInitCallback : USART MspInit.
88 (+) MspDeInitCallback : USART MspDeInit.
89 This function takes as parameters the HAL peripheral handle, the Callback ID
90 and a pointer to the user callback function.
91
92 [..]
93 Use function HAL_USART_UnRegisterCallback() to reset a callback to the default
94 weak function.
95 HAL_USART_UnRegisterCallback() takes as parameters the HAL peripheral handle,
96 and the Callback ID.
97 This function allows to reset following callbacks:
98 (+) TxHalfCpltCallback : Tx Half Complete Callback.
99 (+) TxCpltCallback : Tx Complete Callback.
100 (+) RxHalfCpltCallback : Rx Half Complete Callback.
101 (+) RxCpltCallback : Rx Complete Callback.
102 (+) TxRxCpltCallback : Tx Rx Complete Callback.
103 (+) ErrorCallback : Error Callback.
104 (+) AbortCpltCallback : Abort Complete Callback.
105 (+) RxFifoFullCallback : Rx Fifo Full Callback.
106 (+) TxFifoEmptyCallback : Tx Fifo Empty Callback.
107 (+) MspInitCallback : USART MspInit.
108 (+) MspDeInitCallback : USART MspDeInit.
109
110 [..]
111 By default, after the HAL_USART_Init() and when the state is HAL_USART_STATE_RESET
112 all callbacks are set to the corresponding weak functions:
113 examples HAL_USART_TxCpltCallback(), HAL_USART_RxHalfCpltCallback().
114 Exception done for MspInit and MspDeInit functions that are respectively
115 reset to the legacy weak functions in the HAL_USART_Init()
116 and HAL_USART_DeInit() only when these callbacks are null (not registered beforehand).
117 If not, MspInit or MspDeInit are not null, the HAL_USART_Init() and HAL_USART_DeInit()
118 keep and use the user MspInit/MspDeInit callbacks (registered beforehand).
119
120 [..]
121 Callbacks can be registered/unregistered in HAL_USART_STATE_READY state only.
122 Exception done MspInit/MspDeInit that can be registered/unregistered
123 in HAL_USART_STATE_READY or HAL_USART_STATE_RESET state, thus registered (user)
124 MspInit/DeInit callbacks can be used during the Init/DeInit.
125 In that case first register the MspInit/MspDeInit user callbacks
126 using HAL_USART_RegisterCallback() before calling HAL_USART_DeInit()
127 or HAL_USART_Init() function.
128
129 [..]
130 When The compilation define USE_HAL_USART_REGISTER_CALLBACKS is set to 0 or
131 not defined, the callback registration feature is not available
132 and weak callbacks are used.
133
134
135 @endverbatim
136 ******************************************************************************
137 */
138
139 /* Includes ------------------------------------------------------------------*/
140 #include "stm32c0xx_hal.h"
141
142 /** @addtogroup STM32C0xx_HAL_Driver
143 * @{
144 */
145
146 /** @defgroup USART USART
147 * @brief HAL USART Synchronous SPI module driver
148 * @{
149 */
150
151 #ifdef HAL_USART_MODULE_ENABLED
152
153 /* Private typedef -----------------------------------------------------------*/
154 /* Private define ------------------------------------------------------------*/
155 /** @defgroup USART_Private_Constants USART Private Constants
156 * @{
157 */
158 #define USART_DUMMY_DATA ((uint16_t) 0xFFFF) /*!< USART transmitted dummy data */
159 #define USART_TEACK_REACK_TIMEOUT 1000U /*!< USART TX or RX enable acknowledge time-out value */
160 #define USART_CR1_FIELDS ((uint32_t)(USART_CR1_M | USART_CR1_PCE | USART_CR1_PS | \
161 USART_CR1_TE | USART_CR1_RE | USART_CR1_OVER8 | \
162 USART_CR1_FIFOEN )) /*!< USART CR1 fields of parameters set by USART_SetConfig API */
163
164 #define USART_CR2_FIELDS ((uint32_t)(USART_CR2_CPHA | USART_CR2_CPOL | USART_CR2_CLKEN | \
165 USART_CR2_LBCL | USART_CR2_STOP | USART_CR2_SLVEN | \
166 USART_CR2_DIS_NSS)) /*!< USART CR2 fields of parameters set by USART_SetConfig API */
167
168 #define USART_CR3_FIELDS ((uint32_t)(USART_CR3_TXFTCFG | USART_CR3_RXFTCFG )) /*!< USART or USART CR3 fields of parameters set by USART_SetConfig API */
169
170 #define USART_BRR_MIN 0x10U /* USART BRR minimum authorized value */
171 #define USART_BRR_MAX 0xFFFFU /* USART BRR maximum authorized value */
172 /**
173 * @}
174 */
175
176 /* Private macros ------------------------------------------------------------*/
177 /* Private variables ---------------------------------------------------------*/
178 /* Private function prototypes -----------------------------------------------*/
179 /** @addtogroup USART_Private_Functions
180 * @{
181 */
182 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
183 void USART_InitCallbacksToDefault(USART_HandleTypeDef *husart);
184 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
185 static void USART_EndTransfer(USART_HandleTypeDef *husart);
186 #if defined(HAL_DMA_MODULE_ENABLED)
187 static void USART_DMATransmitCplt(DMA_HandleTypeDef *hdma);
188 static void USART_DMAReceiveCplt(DMA_HandleTypeDef *hdma);
189 static void USART_DMATxHalfCplt(DMA_HandleTypeDef *hdma);
190 static void USART_DMARxHalfCplt(DMA_HandleTypeDef *hdma);
191 static void USART_DMAError(DMA_HandleTypeDef *hdma);
192 static void USART_DMAAbortOnError(DMA_HandleTypeDef *hdma);
193 static void USART_DMATxAbortCallback(DMA_HandleTypeDef *hdma);
194 static void USART_DMARxAbortCallback(DMA_HandleTypeDef *hdma);
195 #endif /* HAL_DMA_MODULE_ENABLED */
196 static HAL_StatusTypeDef USART_WaitOnFlagUntilTimeout(USART_HandleTypeDef *husart, uint32_t Flag, FlagStatus Status,
197 uint32_t Tickstart, uint32_t Timeout);
198 static HAL_StatusTypeDef USART_SetConfig(USART_HandleTypeDef *husart);
199 static HAL_StatusTypeDef USART_CheckIdleState(USART_HandleTypeDef *husart);
200 static void USART_TxISR_8BIT(USART_HandleTypeDef *husart);
201 static void USART_TxISR_16BIT(USART_HandleTypeDef *husart);
202 static void USART_TxISR_8BIT_FIFOEN(USART_HandleTypeDef *husart);
203 static void USART_TxISR_16BIT_FIFOEN(USART_HandleTypeDef *husart);
204 static void USART_EndTransmit_IT(USART_HandleTypeDef *husart);
205 static void USART_RxISR_8BIT(USART_HandleTypeDef *husart);
206 static void USART_RxISR_16BIT(USART_HandleTypeDef *husart);
207 static void USART_RxISR_8BIT_FIFOEN(USART_HandleTypeDef *husart);
208 static void USART_RxISR_16BIT_FIFOEN(USART_HandleTypeDef *husart);
209
210
211 /**
212 * @}
213 */
214
215 /* Exported functions --------------------------------------------------------*/
216
217 /** @defgroup USART_Exported_Functions USART Exported Functions
218 * @{
219 */
220
221 /** @defgroup USART_Exported_Functions_Group1 Initialization and de-initialization functions
222 * @brief Initialization and Configuration functions
223 *
224 @verbatim
225 ===============================================================================
226 ##### Initialization and Configuration functions #####
227 ===============================================================================
228 [..]
229 This subsection provides a set of functions allowing to initialize the USART
230 in synchronous SPI master/slave mode.
231 (+) For the synchronous SPI mode only these parameters can be configured:
232 (++) Baud Rate
233 (++) Word Length
234 (++) Stop Bit
235 (++) Parity: If the parity is enabled, then the MSB bit of the data written
236 in the data register is transmitted but is changed by the parity bit.
237 (++) USART polarity
238 (++) USART phase
239 (++) USART LastBit
240 (++) Receiver/transmitter modes
241
242 [..]
243 The HAL_USART_Init() function follows the USART synchronous SPI configuration
244 procedure (details for the procedure are available in reference manual).
245
246 @endverbatim
247
248 Depending on the frame length defined by the M1 and M0 bits (7-bit,
249 8-bit or 9-bit), the possible USART formats are listed in the
250 following table.
251
252 Table 1. USART frame format.
253 +-----------------------------------------------------------------------+
254 | M1 bit | M0 bit | PCE bit | USART frame |
255 |---------|---------|-----------|---------------------------------------|
256 | 0 | 0 | 0 | | SB | 8 bit data | STB | |
257 |---------|---------|-----------|---------------------------------------|
258 | 0 | 0 | 1 | | SB | 7 bit data | PB | STB | |
259 |---------|---------|-----------|---------------------------------------|
260 | 0 | 1 | 0 | | SB | 9 bit data | STB | |
261 |---------|---------|-----------|---------------------------------------|
262 | 0 | 1 | 1 | | SB | 8 bit data | PB | STB | |
263 |---------|---------|-----------|---------------------------------------|
264 | 1 | 0 | 0 | | SB | 7 bit data | STB | |
265 |---------|---------|-----------|---------------------------------------|
266 | 1 | 0 | 1 | | SB | 6 bit data | PB | STB | |
267 +-----------------------------------------------------------------------+
268
269 * @{
270 */
271
272 /**
273 * @brief Initialize the USART mode according to the specified
274 * parameters in the USART_InitTypeDef and initialize the associated handle.
275 * @param husart USART handle.
276 * @retval HAL status
277 */
HAL_USART_Init(USART_HandleTypeDef * husart)278 HAL_StatusTypeDef HAL_USART_Init(USART_HandleTypeDef *husart)
279 {
280 /* Check the USART handle allocation */
281 if (husart == NULL)
282 {
283 return HAL_ERROR;
284 }
285
286 /* Check the parameters */
287 assert_param(IS_USART_INSTANCE(husart->Instance));
288
289 if (husart->State == HAL_USART_STATE_RESET)
290 {
291 /* Allocate lock resource and initialize it */
292 husart->Lock = HAL_UNLOCKED;
293
294 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
295 USART_InitCallbacksToDefault(husart);
296
297 if (husart->MspInitCallback == NULL)
298 {
299 husart->MspInitCallback = HAL_USART_MspInit;
300 }
301
302 /* Init the low level hardware */
303 husart->MspInitCallback(husart);
304 #else
305 /* Init the low level hardware : GPIO, CLOCK */
306 HAL_USART_MspInit(husart);
307 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
308 }
309
310 husart->State = HAL_USART_STATE_BUSY;
311
312 /* Disable the Peripheral */
313 __HAL_USART_DISABLE(husart);
314
315 /* Set the Usart Communication parameters */
316 if (USART_SetConfig(husart) == HAL_ERROR)
317 {
318 return HAL_ERROR;
319 }
320
321 /* In Synchronous SPI mode, the following bits must be kept cleared:
322 - LINEN bit in the USART_CR2 register
323 - HDSEL, SCEN and IREN bits in the USART_CR3 register.
324 */
325 husart->Instance->CR2 &= ~USART_CR2_LINEN;
326 husart->Instance->CR3 &= ~(USART_CR3_SCEN | USART_CR3_HDSEL | USART_CR3_IREN);
327
328 /* Enable the Peripheral */
329 __HAL_USART_ENABLE(husart);
330
331 /* TEACK and/or REACK to check before moving husart->State to Ready */
332 return (USART_CheckIdleState(husart));
333 }
334
335 /**
336 * @brief DeInitialize the USART peripheral.
337 * @param husart USART handle.
338 * @retval HAL status
339 */
HAL_USART_DeInit(USART_HandleTypeDef * husart)340 HAL_StatusTypeDef HAL_USART_DeInit(USART_HandleTypeDef *husart)
341 {
342 /* Check the USART handle allocation */
343 if (husart == NULL)
344 {
345 return HAL_ERROR;
346 }
347
348 /* Check the parameters */
349 assert_param(IS_USART_INSTANCE(husart->Instance));
350
351 husart->State = HAL_USART_STATE_BUSY;
352
353 husart->Instance->CR1 = 0x0U;
354 husart->Instance->CR2 = 0x0U;
355 husart->Instance->CR3 = 0x0U;
356
357 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
358 if (husart->MspDeInitCallback == NULL)
359 {
360 husart->MspDeInitCallback = HAL_USART_MspDeInit;
361 }
362 /* DeInit the low level hardware */
363 husart->MspDeInitCallback(husart);
364 #else
365 /* DeInit the low level hardware */
366 HAL_USART_MspDeInit(husart);
367 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
368
369 husart->ErrorCode = HAL_USART_ERROR_NONE;
370 husart->State = HAL_USART_STATE_RESET;
371
372 /* Process Unlock */
373 __HAL_UNLOCK(husart);
374
375 return HAL_OK;
376 }
377
378 /**
379 * @brief Initialize the USART MSP.
380 * @param husart USART handle.
381 * @retval None
382 */
HAL_USART_MspInit(USART_HandleTypeDef * husart)383 __weak void HAL_USART_MspInit(USART_HandleTypeDef *husart)
384 {
385 /* Prevent unused argument(s) compilation warning */
386 UNUSED(husart);
387
388 /* NOTE : This function should not be modified, when the callback is needed,
389 the HAL_USART_MspInit can be implemented in the user file
390 */
391 }
392
393 /**
394 * @brief DeInitialize the USART MSP.
395 * @param husart USART handle.
396 * @retval None
397 */
HAL_USART_MspDeInit(USART_HandleTypeDef * husart)398 __weak void HAL_USART_MspDeInit(USART_HandleTypeDef *husart)
399 {
400 /* Prevent unused argument(s) compilation warning */
401 UNUSED(husart);
402
403 /* NOTE : This function should not be modified, when the callback is needed,
404 the HAL_USART_MspDeInit can be implemented in the user file
405 */
406 }
407
408 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
409 /**
410 * @brief Register a User USART Callback
411 * To be used to override the weak predefined callback
412 * @note The HAL_USART_RegisterCallback() may be called before HAL_USART_Init() in HAL_USART_STATE_RESET
413 * to register callbacks for HAL_USART_MSPINIT_CB_ID and HAL_USART_MSPDEINIT_CB_ID
414 * @param husart usart handle
415 * @param CallbackID ID of the callback to be registered
416 * This parameter can be one of the following values:
417 * @arg @ref HAL_USART_TX_HALFCOMPLETE_CB_ID Tx Half Complete Callback ID
418 * @arg @ref HAL_USART_TX_COMPLETE_CB_ID Tx Complete Callback ID
419 * @arg @ref HAL_USART_RX_HALFCOMPLETE_CB_ID Rx Half Complete Callback ID
420 * @arg @ref HAL_USART_RX_COMPLETE_CB_ID Rx Complete Callback ID
421 * @arg @ref HAL_USART_TX_RX_COMPLETE_CB_ID Rx Complete Callback ID
422 * @arg @ref HAL_USART_ERROR_CB_ID Error Callback ID
423 * @arg @ref HAL_USART_ABORT_COMPLETE_CB_ID Abort Complete Callback ID
424 * @arg @ref HAL_USART_RX_FIFO_FULL_CB_ID Rx Fifo Full Callback ID
425 * @arg @ref HAL_USART_TX_FIFO_EMPTY_CB_ID Tx Fifo Empty Callback ID
426 * @arg @ref HAL_USART_MSPINIT_CB_ID MspInit Callback ID
427 * @arg @ref HAL_USART_MSPDEINIT_CB_ID MspDeInit Callback ID
428 * @param pCallback pointer to the Callback function
429 * @retval HAL status
430 + */
HAL_USART_RegisterCallback(USART_HandleTypeDef * husart,HAL_USART_CallbackIDTypeDef CallbackID,pUSART_CallbackTypeDef pCallback)431 HAL_StatusTypeDef HAL_USART_RegisterCallback(USART_HandleTypeDef *husart, HAL_USART_CallbackIDTypeDef CallbackID,
432 pUSART_CallbackTypeDef pCallback)
433 {
434 HAL_StatusTypeDef status = HAL_OK;
435
436 if (pCallback == NULL)
437 {
438 /* Update the error code */
439 husart->ErrorCode |= HAL_USART_ERROR_INVALID_CALLBACK;
440
441 return HAL_ERROR;
442 }
443
444 if (husart->State == HAL_USART_STATE_READY)
445 {
446 switch (CallbackID)
447 {
448 case HAL_USART_TX_HALFCOMPLETE_CB_ID :
449 husart->TxHalfCpltCallback = pCallback;
450 break;
451
452 case HAL_USART_TX_COMPLETE_CB_ID :
453 husart->TxCpltCallback = pCallback;
454 break;
455
456 case HAL_USART_RX_HALFCOMPLETE_CB_ID :
457 husart->RxHalfCpltCallback = pCallback;
458 break;
459
460 case HAL_USART_RX_COMPLETE_CB_ID :
461 husart->RxCpltCallback = pCallback;
462 break;
463
464 case HAL_USART_TX_RX_COMPLETE_CB_ID :
465 husart->TxRxCpltCallback = pCallback;
466 break;
467
468 case HAL_USART_ERROR_CB_ID :
469 husart->ErrorCallback = pCallback;
470 break;
471
472 case HAL_USART_ABORT_COMPLETE_CB_ID :
473 husart->AbortCpltCallback = pCallback;
474 break;
475
476 case HAL_USART_RX_FIFO_FULL_CB_ID :
477 husart->RxFifoFullCallback = pCallback;
478 break;
479
480 case HAL_USART_TX_FIFO_EMPTY_CB_ID :
481 husart->TxFifoEmptyCallback = pCallback;
482 break;
483
484 case HAL_USART_MSPINIT_CB_ID :
485 husart->MspInitCallback = pCallback;
486 break;
487
488 case HAL_USART_MSPDEINIT_CB_ID :
489 husart->MspDeInitCallback = pCallback;
490 break;
491
492 default :
493 /* Update the error code */
494 husart->ErrorCode |= HAL_USART_ERROR_INVALID_CALLBACK;
495
496 /* Return error status */
497 status = HAL_ERROR;
498 break;
499 }
500 }
501 else if (husart->State == HAL_USART_STATE_RESET)
502 {
503 switch (CallbackID)
504 {
505 case HAL_USART_MSPINIT_CB_ID :
506 husart->MspInitCallback = pCallback;
507 break;
508
509 case HAL_USART_MSPDEINIT_CB_ID :
510 husart->MspDeInitCallback = pCallback;
511 break;
512
513 default :
514 /* Update the error code */
515 husart->ErrorCode |= HAL_USART_ERROR_INVALID_CALLBACK;
516
517 /* Return error status */
518 status = HAL_ERROR;
519 break;
520 }
521 }
522 else
523 {
524 /* Update the error code */
525 husart->ErrorCode |= HAL_USART_ERROR_INVALID_CALLBACK;
526
527 /* Return error status */
528 status = HAL_ERROR;
529 }
530
531 return status;
532 }
533
534 /**
535 * @brief Unregister an USART Callback
536 * USART callaback is redirected to the weak predefined callback
537 * @note The HAL_USART_UnRegisterCallback() may be called before HAL_USART_Init() in HAL_USART_STATE_RESET
538 * to un-register callbacks for HAL_USART_MSPINIT_CB_ID and HAL_USART_MSPDEINIT_CB_ID
539 * @param husart usart handle
540 * @param CallbackID ID of the callback to be unregistered
541 * This parameter can be one of the following values:
542 * @arg @ref HAL_USART_TX_HALFCOMPLETE_CB_ID Tx Half Complete Callback ID
543 * @arg @ref HAL_USART_TX_COMPLETE_CB_ID Tx Complete Callback ID
544 * @arg @ref HAL_USART_RX_HALFCOMPLETE_CB_ID Rx Half Complete Callback ID
545 * @arg @ref HAL_USART_RX_COMPLETE_CB_ID Rx Complete Callback ID
546 * @arg @ref HAL_USART_TX_RX_COMPLETE_CB_ID Rx Complete Callback ID
547 * @arg @ref HAL_USART_ERROR_CB_ID Error Callback ID
548 * @arg @ref HAL_USART_ABORT_COMPLETE_CB_ID Abort Complete Callback ID
549 * @arg @ref HAL_USART_RX_FIFO_FULL_CB_ID Rx Fifo Full Callback ID
550 * @arg @ref HAL_USART_TX_FIFO_EMPTY_CB_ID Tx Fifo Empty Callback ID
551 * @arg @ref HAL_USART_MSPINIT_CB_ID MspInit Callback ID
552 * @arg @ref HAL_USART_MSPDEINIT_CB_ID MspDeInit Callback ID
553 * @retval HAL status
554 */
HAL_USART_UnRegisterCallback(USART_HandleTypeDef * husart,HAL_USART_CallbackIDTypeDef CallbackID)555 HAL_StatusTypeDef HAL_USART_UnRegisterCallback(USART_HandleTypeDef *husart, HAL_USART_CallbackIDTypeDef CallbackID)
556 {
557 HAL_StatusTypeDef status = HAL_OK;
558
559 if (HAL_USART_STATE_READY == husart->State)
560 {
561 switch (CallbackID)
562 {
563 case HAL_USART_TX_HALFCOMPLETE_CB_ID :
564 husart->TxHalfCpltCallback = HAL_USART_TxHalfCpltCallback; /* Legacy weak TxHalfCpltCallback */
565 break;
566
567 case HAL_USART_TX_COMPLETE_CB_ID :
568 husart->TxCpltCallback = HAL_USART_TxCpltCallback; /* Legacy weak TxCpltCallback */
569 break;
570
571 case HAL_USART_RX_HALFCOMPLETE_CB_ID :
572 husart->RxHalfCpltCallback = HAL_USART_RxHalfCpltCallback; /* Legacy weak RxHalfCpltCallback */
573 break;
574
575 case HAL_USART_RX_COMPLETE_CB_ID :
576 husart->RxCpltCallback = HAL_USART_RxCpltCallback; /* Legacy weak RxCpltCallback */
577 break;
578
579 case HAL_USART_TX_RX_COMPLETE_CB_ID :
580 husart->TxRxCpltCallback = HAL_USART_TxRxCpltCallback; /* Legacy weak TxRxCpltCallback */
581 break;
582
583 case HAL_USART_ERROR_CB_ID :
584 husart->ErrorCallback = HAL_USART_ErrorCallback; /* Legacy weak ErrorCallback */
585 break;
586
587 case HAL_USART_ABORT_COMPLETE_CB_ID :
588 husart->AbortCpltCallback = HAL_USART_AbortCpltCallback; /* Legacy weak AbortCpltCallback */
589 break;
590
591 case HAL_USART_RX_FIFO_FULL_CB_ID :
592 husart->RxFifoFullCallback = HAL_USARTEx_RxFifoFullCallback; /* Legacy weak RxFifoFullCallback */
593 break;
594
595 case HAL_USART_TX_FIFO_EMPTY_CB_ID :
596 husart->TxFifoEmptyCallback = HAL_USARTEx_TxFifoEmptyCallback; /* Legacy weak TxFifoEmptyCallback */
597 break;
598
599 case HAL_USART_MSPINIT_CB_ID :
600 husart->MspInitCallback = HAL_USART_MspInit; /* Legacy weak MspInitCallback */
601 break;
602
603 case HAL_USART_MSPDEINIT_CB_ID :
604 husart->MspDeInitCallback = HAL_USART_MspDeInit; /* Legacy weak MspDeInitCallback */
605 break;
606
607 default :
608 /* Update the error code */
609 husart->ErrorCode |= HAL_USART_ERROR_INVALID_CALLBACK;
610
611 /* Return error status */
612 status = HAL_ERROR;
613 break;
614 }
615 }
616 else if (HAL_USART_STATE_RESET == husart->State)
617 {
618 switch (CallbackID)
619 {
620 case HAL_USART_MSPINIT_CB_ID :
621 husart->MspInitCallback = HAL_USART_MspInit;
622 break;
623
624 case HAL_USART_MSPDEINIT_CB_ID :
625 husart->MspDeInitCallback = HAL_USART_MspDeInit;
626 break;
627
628 default :
629 /* Update the error code */
630 husart->ErrorCode |= HAL_USART_ERROR_INVALID_CALLBACK;
631
632 /* Return error status */
633 status = HAL_ERROR;
634 break;
635 }
636 }
637 else
638 {
639 /* Update the error code */
640 husart->ErrorCode |= HAL_USART_ERROR_INVALID_CALLBACK;
641
642 /* Return error status */
643 status = HAL_ERROR;
644 }
645
646 return status;
647 }
648 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
649
650
651 /**
652 * @}
653 */
654
655 /** @defgroup USART_Exported_Functions_Group2 IO operation functions
656 * @brief USART Transmit and Receive functions
657 *
658 @verbatim
659 ===============================================================================
660 ##### IO operation functions #####
661 ===============================================================================
662 [..] This subsection provides a set of functions allowing to manage the USART synchronous SPI
663 data transfers.
664
665 [..] The USART Synchronous SPI supports master and slave modes (SCLK as output or input).
666
667 [..]
668
669 (#) There are two modes of transfer:
670 (++) Blocking mode: The communication is performed in polling mode.
671 The HAL status of all data processing is returned by the same function
672 after finishing transfer.
673 (++) No-Blocking mode: The communication is performed using Interrupts
674 or DMA, These API's return the HAL status.
675 The end of the data processing will be indicated through the
676 dedicated USART IRQ when using Interrupt mode or the DMA IRQ when
677 using DMA mode.
678 The HAL_USART_TxCpltCallback(), HAL_USART_RxCpltCallback() and HAL_USART_TxRxCpltCallback() user callbacks
679 will be executed respectively at the end of the transmit or Receive process
680 The HAL_USART_ErrorCallback()user callback will be executed when a communication error is detected
681
682 (#) Blocking mode API's are :
683 (++) HAL_USART_Transmit() in simplex mode
684 (++) HAL_USART_Receive() in full duplex receive only
685 (++) HAL_USART_TransmitReceive() in full duplex mode
686
687 (#) Non-Blocking mode API's with Interrupt are :
688 (++) HAL_USART_Transmit_IT() in simplex mode
689 (++) HAL_USART_Receive_IT() in full duplex receive only
690 (++) HAL_USART_TransmitReceive_IT() in full duplex mode
691 (++) HAL_USART_IRQHandler()
692
693 (#) No-Blocking mode API's with DMA are :
694 (++) HAL_USART_Transmit_DMA() in simplex mode
695 (++) HAL_USART_Receive_DMA() in full duplex receive only
696 (++) HAL_USART_TransmitReceive_DMA() in full duplex mode
697 (++) HAL_USART_DMAPause()
698 (++) HAL_USART_DMAResume()
699 (++) HAL_USART_DMAStop()
700
701 (#) A set of Transfer Complete Callbacks are provided in Non_Blocking mode:
702 (++) HAL_USART_TxCpltCallback()
703 (++) HAL_USART_RxCpltCallback()
704 (++) HAL_USART_TxHalfCpltCallback()
705 (++) HAL_USART_RxHalfCpltCallback()
706 (++) HAL_USART_ErrorCallback()
707 (++) HAL_USART_TxRxCpltCallback()
708
709 (#) Non-Blocking mode transfers could be aborted using Abort API's :
710 (++) HAL_USART_Abort()
711 (++) HAL_USART_Abort_IT()
712
713 (#) For Abort services based on interrupts (HAL_USART_Abort_IT), a Abort Complete Callbacks is provided:
714 (++) HAL_USART_AbortCpltCallback()
715
716 (#) In Non-Blocking mode transfers, possible errors are split into 2 categories.
717 Errors are handled as follows :
718 (++) Error is considered as Recoverable and non blocking : Transfer could go till end, but error severity is
719 to be evaluated by user : this concerns Frame Error,
720 Parity Error or Noise Error in Interrupt mode reception .
721 Received character is then retrieved and stored in Rx buffer, Error code is set to allow user to identify
722 error type, and HAL_USART_ErrorCallback() user callback is executed.
723 Transfer is kept ongoing on USART side.
724 If user wants to abort it, Abort services should be called by user.
725 (++) Error is considered as Blocking : Transfer could not be completed properly and is aborted.
726 This concerns Overrun Error In Interrupt mode reception and all errors in DMA mode.
727 Error code is set to allow user to identify error type,
728 and HAL_USART_ErrorCallback() user callback is executed.
729
730 @endverbatim
731 * @{
732 */
733
734 /**
735 * @brief Simplex send an amount of data in blocking mode.
736 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
737 * the sent data is handled as a set of u16. In this case, Size must indicate the number
738 * of u16 provided through pTxData.
739 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
740 * address of user data buffer containing data to be sent, should be aligned on a half word frontier (16 bits)
741 * (as sent data will be handled using u16 pointer cast). Depending on compilation chain,
742 * use of specific alignment compilation directives or pragmas might be required
743 * to ensure proper alignment for pTxData.
744 * @param husart USART handle.
745 * @param pTxData Pointer to data buffer (u8 or u16 data elements).
746 * @param Size Amount of data elements (u8 or u16) to be sent.
747 * @param Timeout Timeout duration.
748 * @retval HAL status
749 */
HAL_USART_Transmit(USART_HandleTypeDef * husart,const uint8_t * pTxData,uint16_t Size,uint32_t Timeout)750 HAL_StatusTypeDef HAL_USART_Transmit(USART_HandleTypeDef *husart, const uint8_t *pTxData, uint16_t Size,
751 uint32_t Timeout)
752 {
753 const uint8_t *ptxdata8bits;
754 const uint16_t *ptxdata16bits;
755 uint32_t tickstart;
756
757 if (husart->State == HAL_USART_STATE_READY)
758 {
759 if ((pTxData == NULL) || (Size == 0U))
760 {
761 return HAL_ERROR;
762 }
763
764 /* In case of 9bits/No Parity transfer, pTxData buffer provided as input parameter
765 should be aligned on a u16 frontier, as data to be filled into TDR will be
766 handled through a u16 cast. */
767 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
768 {
769 if ((((uint32_t)pTxData) & 1U) != 0U)
770 {
771 return HAL_ERROR;
772 }
773 }
774
775 /* Process Locked */
776 __HAL_LOCK(husart);
777
778 husart->ErrorCode = HAL_USART_ERROR_NONE;
779 husart->State = HAL_USART_STATE_BUSY_TX;
780
781 /* Init tickstart for timeout management */
782 tickstart = HAL_GetTick();
783
784 husart->TxXferSize = Size;
785 husart->TxXferCount = Size;
786
787 /* In case of 9bits/No Parity transfer, pTxData needs to be handled as a uint16_t pointer */
788 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
789 {
790 ptxdata8bits = NULL;
791 ptxdata16bits = (const uint16_t *) pTxData;
792 }
793 else
794 {
795 ptxdata8bits = pTxData;
796 ptxdata16bits = NULL;
797 }
798
799 /* Check the remaining data to be sent */
800 while (husart->TxXferCount > 0U)
801 {
802 if (USART_WaitOnFlagUntilTimeout(husart, USART_FLAG_TXE, RESET, tickstart, Timeout) != HAL_OK)
803 {
804 return HAL_TIMEOUT;
805 }
806 if (ptxdata8bits == NULL)
807 {
808 husart->Instance->TDR = (uint16_t)(*ptxdata16bits & 0x01FFU);
809 ptxdata16bits++;
810 }
811 else
812 {
813 husart->Instance->TDR = (uint8_t)(*ptxdata8bits & 0xFFU);
814 ptxdata8bits++;
815 }
816
817 husart->TxXferCount--;
818 }
819
820 if (USART_WaitOnFlagUntilTimeout(husart, USART_FLAG_TC, RESET, tickstart, Timeout) != HAL_OK)
821 {
822 return HAL_TIMEOUT;
823 }
824
825 /* Clear Transmission Complete Flag */
826 __HAL_USART_CLEAR_FLAG(husart, USART_CLEAR_TCF);
827
828 /* Clear overrun flag and discard the received data */
829 __HAL_USART_CLEAR_OREFLAG(husart);
830 __HAL_USART_SEND_REQ(husart, USART_RXDATA_FLUSH_REQUEST);
831 __HAL_USART_SEND_REQ(husart, USART_TXDATA_FLUSH_REQUEST);
832
833 /* At end of Tx process, restore husart->State to Ready */
834 husart->State = HAL_USART_STATE_READY;
835
836 /* Process Unlocked */
837 __HAL_UNLOCK(husart);
838
839 return HAL_OK;
840 }
841 else
842 {
843 return HAL_BUSY;
844 }
845 }
846
847 /**
848 * @brief Receive an amount of data in blocking mode.
849 * @note To receive synchronous data, dummy data are simultaneously transmitted.
850 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
851 * the received data is handled as a set of u16. In this case, Size must indicate the number
852 * of u16 available through pRxData.
853 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
854 * address of user data buffer for storing data to be received, should be aligned on a half word frontier
855 * (16 bits) (as received data will be handled using u16 pointer cast). Depending on compilation chain,
856 * use of specific alignment compilation directives or pragmas might be required to ensure
857 * proper alignment for pRxData.
858 * @param husart USART handle.
859 * @param pRxData Pointer to data buffer (u8 or u16 data elements).
860 * @param Size Amount of data elements (u8 or u16) to be received.
861 * @param Timeout Timeout duration.
862 * @retval HAL status
863 */
HAL_USART_Receive(USART_HandleTypeDef * husart,uint8_t * pRxData,uint16_t Size,uint32_t Timeout)864 HAL_StatusTypeDef HAL_USART_Receive(USART_HandleTypeDef *husart, uint8_t *pRxData, uint16_t Size, uint32_t Timeout)
865 {
866 uint8_t *prxdata8bits;
867 uint16_t *prxdata16bits;
868 uint16_t uhMask;
869 uint32_t tickstart;
870
871 if (husart->State == HAL_USART_STATE_READY)
872 {
873 if ((pRxData == NULL) || (Size == 0U))
874 {
875 return HAL_ERROR;
876 }
877
878 /* In case of 9bits/No Parity transfer, pRxData buffer provided as input parameter
879 should be aligned on a u16 frontier, as data to be received from RDR will be
880 handled through a u16 cast. */
881 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
882 {
883 if ((((uint32_t)pRxData) & 1U) != 0U)
884 {
885 return HAL_ERROR;
886 }
887 }
888
889 /* Process Locked */
890 __HAL_LOCK(husart);
891
892 husart->ErrorCode = HAL_USART_ERROR_NONE;
893 husart->State = HAL_USART_STATE_BUSY_RX;
894
895 /* Init tickstart for timeout management */
896 tickstart = HAL_GetTick();
897
898 husart->RxXferSize = Size;
899 husart->RxXferCount = Size;
900
901 /* Computation of USART mask to apply to RDR register */
902 USART_MASK_COMPUTATION(husart);
903 uhMask = husart->Mask;
904
905 /* In case of 9bits/No Parity transfer, pRxData needs to be handled as a uint16_t pointer */
906 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
907 {
908 prxdata8bits = NULL;
909 prxdata16bits = (uint16_t *) pRxData;
910 }
911 else
912 {
913 prxdata8bits = pRxData;
914 prxdata16bits = NULL;
915 }
916
917 /* as long as data have to be received */
918 while (husart->RxXferCount > 0U)
919 {
920 if (husart->SlaveMode == USART_SLAVEMODE_DISABLE)
921 {
922 /* Wait until TXE flag is set to send dummy byte in order to generate the
923 * clock for the slave to send data.
924 * Whatever the frame length (7, 8 or 9-bit long), the same dummy value
925 * can be written for all the cases. */
926 if (USART_WaitOnFlagUntilTimeout(husart, USART_FLAG_TXE, RESET, tickstart, Timeout) != HAL_OK)
927 {
928 return HAL_TIMEOUT;
929 }
930 husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x0FF);
931 }
932
933 /* Wait for RXNE Flag */
934 if (USART_WaitOnFlagUntilTimeout(husart, USART_FLAG_RXNE, RESET, tickstart, Timeout) != HAL_OK)
935 {
936 return HAL_TIMEOUT;
937 }
938
939 if (prxdata8bits == NULL)
940 {
941 *prxdata16bits = (uint16_t)(husart->Instance->RDR & uhMask);
942 prxdata16bits++;
943 }
944 else
945 {
946 *prxdata8bits = (uint8_t)(husart->Instance->RDR & (uint8_t)(uhMask & 0xFFU));
947 prxdata8bits++;
948 }
949
950 husart->RxXferCount--;
951
952 }
953
954 /* Clear SPI slave underrun flag and discard transmit data */
955 if (husart->SlaveMode == USART_SLAVEMODE_ENABLE)
956 {
957 __HAL_USART_CLEAR_UDRFLAG(husart);
958 __HAL_USART_SEND_REQ(husart, USART_TXDATA_FLUSH_REQUEST);
959 }
960
961 /* At end of Rx process, restore husart->State to Ready */
962 husart->State = HAL_USART_STATE_READY;
963
964 /* Process Unlocked */
965 __HAL_UNLOCK(husart);
966
967 return HAL_OK;
968 }
969 else
970 {
971 return HAL_BUSY;
972 }
973 }
974
975 /**
976 * @brief Full-Duplex Send and Receive an amount of data in blocking mode.
977 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
978 * the sent data and the received data are handled as sets of u16. In this case, Size must indicate the number
979 * of u16 available through pTxData and through pRxData.
980 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
981 * address of user data buffers containing data to be sent/received, should be aligned on a half word frontier
982 * (16 bits) (as sent/received data will be handled using u16 pointer cast). Depending on compilation chain,
983 * use of specific alignment compilation directives or pragmas might be required to ensure
984 * proper alignment for pTxData and pRxData.
985 * @param husart USART handle.
986 * @param pTxData pointer to TX data buffer (u8 or u16 data elements).
987 * @param pRxData pointer to RX data buffer (u8 or u16 data elements).
988 * @param Size amount of data elements (u8 or u16) to be sent (same amount to be received).
989 * @param Timeout Timeout duration.
990 * @retval HAL status
991 */
HAL_USART_TransmitReceive(USART_HandleTypeDef * husart,const uint8_t * pTxData,uint8_t * pRxData,uint16_t Size,uint32_t Timeout)992 HAL_StatusTypeDef HAL_USART_TransmitReceive(USART_HandleTypeDef *husart, const uint8_t *pTxData, uint8_t *pRxData,
993 uint16_t Size, uint32_t Timeout)
994 {
995 uint8_t *prxdata8bits;
996 uint16_t *prxdata16bits;
997 const uint8_t *ptxdata8bits;
998 const uint16_t *ptxdata16bits;
999 uint16_t uhMask;
1000 uint16_t rxdatacount;
1001 uint32_t tickstart;
1002
1003 if (husart->State == HAL_USART_STATE_READY)
1004 {
1005 if ((pTxData == NULL) || (pRxData == NULL) || (Size == 0U))
1006 {
1007 return HAL_ERROR;
1008 }
1009
1010 /* In case of 9bits/No Parity transfer, pTxData and pRxData buffers provided as input parameter
1011 should be aligned on a u16 frontier, as data to be filled into TDR/retrieved from RDR will be
1012 handled through a u16 cast. */
1013 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
1014 {
1015 if (((((uint32_t)pTxData) & 1U) != 0U) || ((((uint32_t)pRxData) & 1U) != 0U))
1016 {
1017 return HAL_ERROR;
1018 }
1019 }
1020
1021 /* Process Locked */
1022 __HAL_LOCK(husart);
1023
1024 husart->ErrorCode = HAL_USART_ERROR_NONE;
1025 husart->State = HAL_USART_STATE_BUSY_RX;
1026
1027 /* Init tickstart for timeout management */
1028 tickstart = HAL_GetTick();
1029
1030 husart->RxXferSize = Size;
1031 husart->TxXferSize = Size;
1032 husart->TxXferCount = Size;
1033 husart->RxXferCount = Size;
1034
1035 /* Computation of USART mask to apply to RDR register */
1036 USART_MASK_COMPUTATION(husart);
1037 uhMask = husart->Mask;
1038
1039 /* In case of 9bits/No Parity transfer, pRxData needs to be handled as a uint16_t pointer */
1040 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
1041 {
1042 prxdata8bits = NULL;
1043 ptxdata8bits = NULL;
1044 ptxdata16bits = (const uint16_t *) pTxData;
1045 prxdata16bits = (uint16_t *) pRxData;
1046 }
1047 else
1048 {
1049 prxdata8bits = pRxData;
1050 ptxdata8bits = pTxData;
1051 ptxdata16bits = NULL;
1052 prxdata16bits = NULL;
1053 }
1054
1055 if ((husart->TxXferCount == 0x01U) || (husart->SlaveMode == USART_SLAVEMODE_ENABLE))
1056 {
1057 /* Wait until TXE flag is set to send data */
1058 if (USART_WaitOnFlagUntilTimeout(husart, USART_FLAG_TXE, RESET, tickstart, Timeout) != HAL_OK)
1059 {
1060 return HAL_TIMEOUT;
1061 }
1062 if (ptxdata8bits == NULL)
1063 {
1064 husart->Instance->TDR = (uint16_t)(*ptxdata16bits & uhMask);
1065 ptxdata16bits++;
1066 }
1067 else
1068 {
1069 husart->Instance->TDR = (uint8_t)(*ptxdata8bits & (uint8_t)(uhMask & 0xFFU));
1070 ptxdata8bits++;
1071 }
1072
1073 husart->TxXferCount--;
1074 }
1075
1076 /* Check the remain data to be sent */
1077 /* rxdatacount is a temporary variable for MISRAC2012-Rule-13.5 */
1078 rxdatacount = husart->RxXferCount;
1079 while ((husart->TxXferCount > 0U) || (rxdatacount > 0U))
1080 {
1081 if (husart->TxXferCount > 0U)
1082 {
1083 /* Wait until TXE flag is set to send data */
1084 if (USART_WaitOnFlagUntilTimeout(husart, USART_FLAG_TXE, RESET, tickstart, Timeout) != HAL_OK)
1085 {
1086 return HAL_TIMEOUT;
1087 }
1088 if (ptxdata8bits == NULL)
1089 {
1090 husart->Instance->TDR = (uint16_t)(*ptxdata16bits & uhMask);
1091 ptxdata16bits++;
1092 }
1093 else
1094 {
1095 husart->Instance->TDR = (uint8_t)(*ptxdata8bits & (uint8_t)(uhMask & 0xFFU));
1096 ptxdata8bits++;
1097 }
1098
1099 husart->TxXferCount--;
1100 }
1101
1102 if (husart->RxXferCount > 0U)
1103 {
1104 /* Wait for RXNE Flag */
1105 if (USART_WaitOnFlagUntilTimeout(husart, USART_FLAG_RXNE, RESET, tickstart, Timeout) != HAL_OK)
1106 {
1107 return HAL_TIMEOUT;
1108 }
1109
1110 if (prxdata8bits == NULL)
1111 {
1112 *prxdata16bits = (uint16_t)(husart->Instance->RDR & uhMask);
1113 prxdata16bits++;
1114 }
1115 else
1116 {
1117 *prxdata8bits = (uint8_t)(husart->Instance->RDR & (uint8_t)(uhMask & 0xFFU));
1118 prxdata8bits++;
1119 }
1120
1121 husart->RxXferCount--;
1122 }
1123 rxdatacount = husart->RxXferCount;
1124 }
1125
1126 /* At end of TxRx process, restore husart->State to Ready */
1127 husart->State = HAL_USART_STATE_READY;
1128
1129 /* Process Unlocked */
1130 __HAL_UNLOCK(husart);
1131
1132 return HAL_OK;
1133 }
1134 else
1135 {
1136 return HAL_BUSY;
1137 }
1138 }
1139
1140 /**
1141 * @brief Send an amount of data in interrupt mode.
1142 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
1143 * the sent data is handled as a set of u16. In this case, Size must indicate the number
1144 * of u16 provided through pTxData.
1145 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
1146 * address of user data buffer containing data to be sent, should be aligned on a half word frontier
1147 * (16 bits) (as sent data will be handled using u16 pointer cast). Depending on compilation chain,
1148 * use of specific alignment compilation directives or pragmas might be required to ensure
1149 * proper alignment for pTxData.
1150 * @param husart USART handle.
1151 * @param pTxData pointer to data buffer (u8 or u16 data elements).
1152 * @param Size amount of data elements (u8 or u16) to be sent.
1153 * @retval HAL status
1154 */
HAL_USART_Transmit_IT(USART_HandleTypeDef * husart,const uint8_t * pTxData,uint16_t Size)1155 HAL_StatusTypeDef HAL_USART_Transmit_IT(USART_HandleTypeDef *husart, const uint8_t *pTxData, uint16_t Size)
1156 {
1157 if (husart->State == HAL_USART_STATE_READY)
1158 {
1159 if ((pTxData == NULL) || (Size == 0U))
1160 {
1161 return HAL_ERROR;
1162 }
1163
1164 /* In case of 9bits/No Parity transfer, pTxData buffer provided as input parameter
1165 should be aligned on a u16 frontier, as data to be filled into TDR will be
1166 handled through a u16 cast. */
1167 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
1168 {
1169 if ((((uint32_t)pTxData) & 1U) != 0U)
1170 {
1171 return HAL_ERROR;
1172 }
1173 }
1174
1175 /* Process Locked */
1176 __HAL_LOCK(husart);
1177
1178 husart->pTxBuffPtr = pTxData;
1179 husart->TxXferSize = Size;
1180 husart->TxXferCount = Size;
1181 husart->TxISR = NULL;
1182
1183 husart->ErrorCode = HAL_USART_ERROR_NONE;
1184 husart->State = HAL_USART_STATE_BUSY_TX;
1185
1186 /* The USART Error Interrupts: (Frame error, noise error, overrun error)
1187 are not managed by the USART Transmit Process to avoid the overrun interrupt
1188 when the usart mode is configured for transmit and receive "USART_MODE_TX_RX"
1189 to benefit for the frame error and noise interrupts the usart mode should be
1190 configured only for transmit "USART_MODE_TX" */
1191
1192 /* Configure Tx interrupt processing */
1193 if (husart->FifoMode == USART_FIFOMODE_ENABLE)
1194 {
1195 /* Set the Tx ISR function pointer according to the data word length */
1196 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
1197 {
1198 husart->TxISR = USART_TxISR_16BIT_FIFOEN;
1199 }
1200 else
1201 {
1202 husart->TxISR = USART_TxISR_8BIT_FIFOEN;
1203 }
1204
1205 /* Process Unlocked */
1206 __HAL_UNLOCK(husart);
1207
1208 /* Enable the TX FIFO threshold interrupt */
1209 __HAL_USART_ENABLE_IT(husart, USART_IT_TXFT);
1210 }
1211 else
1212 {
1213 /* Set the Tx ISR function pointer according to the data word length */
1214 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
1215 {
1216 husart->TxISR = USART_TxISR_16BIT;
1217 }
1218 else
1219 {
1220 husart->TxISR = USART_TxISR_8BIT;
1221 }
1222
1223 /* Process Unlocked */
1224 __HAL_UNLOCK(husart);
1225
1226 /* Enable the USART Transmit Data Register Empty Interrupt */
1227 __HAL_USART_ENABLE_IT(husart, USART_IT_TXE);
1228 }
1229
1230 return HAL_OK;
1231 }
1232 else
1233 {
1234 return HAL_BUSY;
1235 }
1236 }
1237
1238 /**
1239 * @brief Receive an amount of data in interrupt mode.
1240 * @note To receive synchronous data, dummy data are simultaneously transmitted.
1241 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
1242 * the received data is handled as a set of u16. In this case, Size must indicate the number
1243 * of u16 available through pRxData.
1244 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
1245 * address of user data buffer for storing data to be received, should be aligned on a half word frontier
1246 * (16 bits) (as received data will be handled using u16 pointer cast). Depending on compilation chain,
1247 * use of specific alignment compilation directives or pragmas might be required to ensure
1248 * proper alignment for pRxData.
1249 * @param husart USART handle.
1250 * @param pRxData pointer to data buffer (u8 or u16 data elements).
1251 * @param Size amount of data elements (u8 or u16) to be received.
1252 * @retval HAL status
1253 */
HAL_USART_Receive_IT(USART_HandleTypeDef * husart,uint8_t * pRxData,uint16_t Size)1254 HAL_StatusTypeDef HAL_USART_Receive_IT(USART_HandleTypeDef *husart, uint8_t *pRxData, uint16_t Size)
1255 {
1256 uint16_t nb_dummy_data;
1257
1258 if (husart->State == HAL_USART_STATE_READY)
1259 {
1260 if ((pRxData == NULL) || (Size == 0U))
1261 {
1262 return HAL_ERROR;
1263 }
1264
1265 /* In case of 9bits/No Parity transfer, pRxData buffer provided as input parameter
1266 should be aligned on a u16 frontier, as data to be received from RDR will be
1267 handled through a u16 cast. */
1268 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
1269 {
1270 if ((((uint32_t)pRxData) & 1U) != 0U)
1271 {
1272 return HAL_ERROR;
1273 }
1274 }
1275
1276 /* Process Locked */
1277 __HAL_LOCK(husart);
1278
1279 husart->pRxBuffPtr = pRxData;
1280 husart->RxXferSize = Size;
1281 husart->RxXferCount = Size;
1282 husart->RxISR = NULL;
1283
1284 USART_MASK_COMPUTATION(husart);
1285
1286 husart->ErrorCode = HAL_USART_ERROR_NONE;
1287 husart->State = HAL_USART_STATE_BUSY_RX;
1288
1289 /* Enable the USART Error Interrupt: (Frame error, noise error, overrun error) */
1290 SET_BIT(husart->Instance->CR3, USART_CR3_EIE);
1291
1292 /* Configure Rx interrupt processing */
1293 if ((husart->FifoMode == USART_FIFOMODE_ENABLE) && (Size >= husart->NbRxDataToProcess))
1294 {
1295 /* Set the Rx ISR function pointer according to the data word length */
1296 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
1297 {
1298 husart->RxISR = USART_RxISR_16BIT_FIFOEN;
1299 }
1300 else
1301 {
1302 husart->RxISR = USART_RxISR_8BIT_FIFOEN;
1303 }
1304
1305 /* Process Unlocked */
1306 __HAL_UNLOCK(husart);
1307
1308 /* Enable the USART Parity Error interrupt and RX FIFO Threshold interrupt */
1309 if (husart->Init.Parity != USART_PARITY_NONE)
1310 {
1311 SET_BIT(husart->Instance->CR1, USART_CR1_PEIE);
1312 }
1313 SET_BIT(husart->Instance->CR3, USART_CR3_RXFTIE);
1314 }
1315 else
1316 {
1317 /* Set the Rx ISR function pointer according to the data word length */
1318 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
1319 {
1320 husart->RxISR = USART_RxISR_16BIT;
1321 }
1322 else
1323 {
1324 husart->RxISR = USART_RxISR_8BIT;
1325 }
1326
1327 /* Process Unlocked */
1328 __HAL_UNLOCK(husart);
1329
1330 /* Enable the USART Parity Error and Data Register not empty Interrupts */
1331 if (husart->Init.Parity != USART_PARITY_NONE)
1332 {
1333 SET_BIT(husart->Instance->CR1, USART_CR1_PEIE | USART_CR1_RXNEIE_RXFNEIE);
1334 }
1335 else
1336 {
1337 SET_BIT(husart->Instance->CR1, USART_CR1_RXNEIE_RXFNEIE);
1338 }
1339 }
1340
1341 if (husart->SlaveMode == USART_SLAVEMODE_DISABLE)
1342 {
1343 /* Send dummy data in order to generate the clock for the Slave to send the next data.
1344 When FIFO mode is disabled only one data must be transferred.
1345 When FIFO mode is enabled data must be transmitted until the RX FIFO reaches its threshold.
1346 */
1347 if ((husart->FifoMode == USART_FIFOMODE_ENABLE) && (Size >= husart->NbRxDataToProcess))
1348 {
1349 for (nb_dummy_data = husart->NbRxDataToProcess ; nb_dummy_data > 0U ; nb_dummy_data--)
1350 {
1351 husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x00FF);
1352 }
1353 }
1354 else
1355 {
1356 husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x00FF);
1357 }
1358 }
1359
1360 return HAL_OK;
1361 }
1362 else
1363 {
1364 return HAL_BUSY;
1365 }
1366 }
1367
1368 /**
1369 * @brief Full-Duplex Send and Receive an amount of data in interrupt mode.
1370 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
1371 * the sent data and the received data are handled as sets of u16. In this case, Size must indicate the number
1372 * of u16 available through pTxData and through pRxData.
1373 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
1374 * address of user data buffers containing data to be sent/received, should be aligned on a half word frontier
1375 * (16 bits) (as sent/received data will be handled using u16 pointer cast). Depending on compilation chain,
1376 * use of specific alignment compilation directives or pragmas might be required to ensure
1377 * proper alignment for pTxData and pRxData.
1378 * @param husart USART handle.
1379 * @param pTxData pointer to TX data buffer (u8 or u16 data elements).
1380 * @param pRxData pointer to RX data buffer (u8 or u16 data elements).
1381 * @param Size amount of data elements (u8 or u16) to be sent (same amount to be received).
1382 * @retval HAL status
1383 */
HAL_USART_TransmitReceive_IT(USART_HandleTypeDef * husart,const uint8_t * pTxData,uint8_t * pRxData,uint16_t Size)1384 HAL_StatusTypeDef HAL_USART_TransmitReceive_IT(USART_HandleTypeDef *husart, const uint8_t *pTxData, uint8_t *pRxData,
1385 uint16_t Size)
1386 {
1387
1388 if (husart->State == HAL_USART_STATE_READY)
1389 {
1390 if ((pTxData == NULL) || (pRxData == NULL) || (Size == 0U))
1391 {
1392 return HAL_ERROR;
1393 }
1394
1395 /* In case of 9bits/No Parity transfer, pTxData and pRxData buffers provided as input parameter
1396 should be aligned on a u16 frontier, as data to be filled into TDR/retrieved from RDR will be
1397 handled through a u16 cast. */
1398 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
1399 {
1400 if (((((uint32_t)pTxData) & 1U) != 0U) || ((((uint32_t)pRxData) & 1U) != 0U))
1401 {
1402 return HAL_ERROR;
1403 }
1404 }
1405
1406 /* Process Locked */
1407 __HAL_LOCK(husart);
1408
1409 husart->pRxBuffPtr = pRxData;
1410 husart->RxXferSize = Size;
1411 husart->RxXferCount = Size;
1412 husart->pTxBuffPtr = pTxData;
1413 husart->TxXferSize = Size;
1414 husart->TxXferCount = Size;
1415
1416 /* Computation of USART mask to apply to RDR register */
1417 USART_MASK_COMPUTATION(husart);
1418
1419 husart->ErrorCode = HAL_USART_ERROR_NONE;
1420 husart->State = HAL_USART_STATE_BUSY_TX_RX;
1421
1422 /* Configure TxRx interrupt processing */
1423 if ((husart->FifoMode == USART_FIFOMODE_ENABLE) && (Size >= husart->NbRxDataToProcess))
1424 {
1425 /* Set the Rx ISR function pointer according to the data word length */
1426 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
1427 {
1428 husart->TxISR = USART_TxISR_16BIT_FIFOEN;
1429 husart->RxISR = USART_RxISR_16BIT_FIFOEN;
1430 }
1431 else
1432 {
1433 husart->TxISR = USART_TxISR_8BIT_FIFOEN;
1434 husart->RxISR = USART_RxISR_8BIT_FIFOEN;
1435 }
1436
1437 /* Process Locked */
1438 __HAL_UNLOCK(husart);
1439
1440 /* Enable the USART Error Interrupt: (Frame error, noise error, overrun error) */
1441 SET_BIT(husart->Instance->CR3, USART_CR3_EIE);
1442
1443 if (husart->Init.Parity != USART_PARITY_NONE)
1444 {
1445 /* Enable the USART Parity Error interrupt */
1446 SET_BIT(husart->Instance->CR1, USART_CR1_PEIE);
1447 }
1448
1449 /* Enable the TX and RX FIFO Threshold interrupts */
1450 SET_BIT(husart->Instance->CR3, (USART_CR3_TXFTIE | USART_CR3_RXFTIE));
1451 }
1452 else
1453 {
1454 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
1455 {
1456 husart->TxISR = USART_TxISR_16BIT;
1457 husart->RxISR = USART_RxISR_16BIT;
1458 }
1459 else
1460 {
1461 husart->TxISR = USART_TxISR_8BIT;
1462 husart->RxISR = USART_RxISR_8BIT;
1463 }
1464
1465 /* Process Locked */
1466 __HAL_UNLOCK(husart);
1467
1468 /* Enable the USART Error Interrupt: (Frame error, noise error, overrun error) */
1469 SET_BIT(husart->Instance->CR3, USART_CR3_EIE);
1470
1471 /* Enable the USART Parity Error and USART Data Register not empty Interrupts */
1472 if (husart->Init.Parity != USART_PARITY_NONE)
1473 {
1474 SET_BIT(husart->Instance->CR1, USART_CR1_PEIE | USART_CR1_RXNEIE_RXFNEIE);
1475 }
1476 else
1477 {
1478 SET_BIT(husart->Instance->CR1, USART_CR1_RXNEIE_RXFNEIE);
1479 }
1480
1481 /* Enable the USART Transmit Data Register Empty Interrupt */
1482 SET_BIT(husart->Instance->CR1, USART_CR1_TXEIE_TXFNFIE);
1483 }
1484
1485 return HAL_OK;
1486 }
1487 else
1488 {
1489 return HAL_BUSY;
1490 }
1491 }
1492
1493 #if defined(HAL_DMA_MODULE_ENABLED)
1494 /**
1495 * @brief Send an amount of data in DMA mode.
1496 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
1497 * the sent data is handled as a set of u16. In this case, Size must indicate the number
1498 * of u16 provided through pTxData.
1499 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
1500 * address of user data buffer containing data to be sent, should be aligned on a half word frontier (16 bits)
1501 * (as sent data will be handled by DMA from halfword frontier). Depending on compilation chain,
1502 * use of specific alignment compilation directives or pragmas might be required
1503 * to ensure proper alignment for pTxData.
1504 * @param husart USART handle.
1505 * @param pTxData pointer to data buffer (u8 or u16 data elements).
1506 * @param Size amount of data elements (u8 or u16) to be sent.
1507 * @retval HAL status
1508 */
HAL_USART_Transmit_DMA(USART_HandleTypeDef * husart,const uint8_t * pTxData,uint16_t Size)1509 HAL_StatusTypeDef HAL_USART_Transmit_DMA(USART_HandleTypeDef *husart, const uint8_t *pTxData, uint16_t Size)
1510 {
1511 HAL_StatusTypeDef status = HAL_OK;
1512 const uint32_t *tmp;
1513
1514 if (husart->State == HAL_USART_STATE_READY)
1515 {
1516 if ((pTxData == NULL) || (Size == 0U))
1517 {
1518 return HAL_ERROR;
1519 }
1520
1521 /* In case of 9bits/No Parity transfer, pTxData buffer provided as input parameter
1522 should be aligned on a u16 frontier, as data copy into TDR will be
1523 handled by DMA from a u16 frontier. */
1524 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
1525 {
1526 if ((((uint32_t)pTxData) & 1U) != 0U)
1527 {
1528 return HAL_ERROR;
1529 }
1530 }
1531
1532 /* Process Locked */
1533 __HAL_LOCK(husart);
1534
1535 husart->pTxBuffPtr = pTxData;
1536 husart->TxXferSize = Size;
1537 husart->TxXferCount = Size;
1538
1539 husart->ErrorCode = HAL_USART_ERROR_NONE;
1540 husart->State = HAL_USART_STATE_BUSY_TX;
1541
1542 if (husart->hdmatx != NULL)
1543 {
1544 /* Set the USART DMA transfer complete callback */
1545 husart->hdmatx->XferCpltCallback = USART_DMATransmitCplt;
1546
1547 /* Set the USART DMA Half transfer complete callback */
1548 husart->hdmatx->XferHalfCpltCallback = USART_DMATxHalfCplt;
1549
1550 /* Set the DMA error callback */
1551 husart->hdmatx->XferErrorCallback = USART_DMAError;
1552
1553 /* Enable the USART transmit DMA channel */
1554 tmp = (const uint32_t *)&pTxData;
1555 status = HAL_DMA_Start_IT(husart->hdmatx, *(const uint32_t *)tmp, (uint32_t)&husart->Instance->TDR, Size);
1556 }
1557
1558 if (status == HAL_OK)
1559 {
1560 /* Clear the TC flag in the ICR register */
1561 __HAL_USART_CLEAR_FLAG(husart, USART_CLEAR_TCF);
1562
1563 /* Process Unlocked */
1564 __HAL_UNLOCK(husart);
1565
1566 /* Enable the DMA transfer for transmit request by setting the DMAT bit
1567 in the USART CR3 register */
1568 SET_BIT(husart->Instance->CR3, USART_CR3_DMAT);
1569
1570 return HAL_OK;
1571 }
1572 else
1573 {
1574 /* Set error code to DMA */
1575 husart->ErrorCode = HAL_USART_ERROR_DMA;
1576
1577 /* Process Unlocked */
1578 __HAL_UNLOCK(husart);
1579
1580 /* Restore husart->State to ready */
1581 husart->State = HAL_USART_STATE_READY;
1582
1583 return HAL_ERROR;
1584 }
1585 }
1586 else
1587 {
1588 return HAL_BUSY;
1589 }
1590 }
1591
1592 /**
1593 * @brief Receive an amount of data in DMA mode.
1594 * @note When the USART parity is enabled (PCE = 1), the received data contain
1595 * the parity bit (MSB position).
1596 * @note The USART DMA transmit channel must be configured in order to generate the clock for the slave.
1597 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
1598 * the received data is handled as a set of u16. In this case, Size must indicate the number
1599 * of u16 available through pRxData.
1600 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
1601 * address of user data buffer for storing data to be received, should be aligned on
1602 * a half word frontier (16 bits) (as received data will be handled by DMA from halfword frontier).
1603 * Depending on compilation chain, use of specific alignment compilation directives or pragmas
1604 * might be required to ensure proper alignment for pRxData.
1605 * @param husart USART handle.
1606 * @param pRxData pointer to data buffer (u8 or u16 data elements).
1607 * @param Size amount of data elements (u8 or u16) to be received.
1608 * @retval HAL status
1609 */
HAL_USART_Receive_DMA(USART_HandleTypeDef * husart,uint8_t * pRxData,uint16_t Size)1610 HAL_StatusTypeDef HAL_USART_Receive_DMA(USART_HandleTypeDef *husart, uint8_t *pRxData, uint16_t Size)
1611 {
1612 HAL_StatusTypeDef status = HAL_OK;
1613 uint32_t *tmp = (uint32_t *)&pRxData;
1614
1615 /* Check that a Rx process is not already ongoing */
1616 if (husart->State == HAL_USART_STATE_READY)
1617 {
1618 if ((pRxData == NULL) || (Size == 0U))
1619 {
1620 return HAL_ERROR;
1621 }
1622
1623 /* In case of 9bits/No Parity transfer, pRxData buffer provided as input parameter
1624 should be aligned on a u16 frontier, as data copy from RDR will be
1625 handled by DMA from a u16 frontier. */
1626 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
1627 {
1628 if ((((uint32_t)pRxData) & 1U) != 0U)
1629 {
1630 return HAL_ERROR;
1631 }
1632 }
1633
1634 /* Process Locked */
1635 __HAL_LOCK(husart);
1636
1637 husart->pRxBuffPtr = pRxData;
1638 husart->RxXferSize = Size;
1639 husart->pTxBuffPtr = pRxData;
1640 husart->TxXferSize = Size;
1641
1642 husart->ErrorCode = HAL_USART_ERROR_NONE;
1643 husart->State = HAL_USART_STATE_BUSY_RX;
1644
1645 if (husart->hdmarx != NULL)
1646 {
1647 /* Set the USART DMA Rx transfer complete callback */
1648 husart->hdmarx->XferCpltCallback = USART_DMAReceiveCplt;
1649
1650 /* Set the USART DMA Half transfer complete callback */
1651 husart->hdmarx->XferHalfCpltCallback = USART_DMARxHalfCplt;
1652
1653 /* Set the USART DMA Rx transfer error callback */
1654 husart->hdmarx->XferErrorCallback = USART_DMAError;
1655
1656 /* Enable the USART receive DMA channel */
1657 status = HAL_DMA_Start_IT(husart->hdmarx, (uint32_t)&husart->Instance->RDR, *(uint32_t *)tmp, Size);
1658 }
1659
1660 if ((status == HAL_OK) &&
1661 (husart->SlaveMode == USART_SLAVEMODE_DISABLE))
1662 {
1663 /* Enable the USART transmit DMA channel: the transmit channel is used in order
1664 to generate in the non-blocking mode the clock to the slave device,
1665 this mode isn't a simplex receive mode but a full-duplex receive mode */
1666
1667 /* Set the USART DMA Tx Complete and Error callback to Null */
1668 if (husart->hdmatx != NULL)
1669 {
1670 husart->hdmatx->XferErrorCallback = NULL;
1671 husart->hdmatx->XferHalfCpltCallback = NULL;
1672 husart->hdmatx->XferCpltCallback = NULL;
1673 status = HAL_DMA_Start_IT(husart->hdmatx, *(uint32_t *)tmp, (uint32_t)&husart->Instance->TDR, Size);
1674 }
1675 }
1676
1677 if (status == HAL_OK)
1678 {
1679 /* Process Unlocked */
1680 __HAL_UNLOCK(husart);
1681
1682 if (husart->Init.Parity != USART_PARITY_NONE)
1683 {
1684 /* Enable the USART Parity Error Interrupt */
1685 SET_BIT(husart->Instance->CR1, USART_CR1_PEIE);
1686 }
1687
1688 /* Enable the USART Error Interrupt: (Frame error, noise error, overrun error) */
1689 SET_BIT(husart->Instance->CR3, USART_CR3_EIE);
1690
1691 /* Enable the DMA transfer for the receiver request by setting the DMAR bit
1692 in the USART CR3 register */
1693 SET_BIT(husart->Instance->CR3, USART_CR3_DMAR);
1694
1695 /* Enable the DMA transfer for transmit request by setting the DMAT bit
1696 in the USART CR3 register */
1697 SET_BIT(husart->Instance->CR3, USART_CR3_DMAT);
1698
1699 return HAL_OK;
1700 }
1701 else
1702 {
1703 if (husart->hdmarx != NULL)
1704 {
1705 status = HAL_DMA_Abort(husart->hdmarx);
1706 }
1707
1708 /* No need to check on error code */
1709 UNUSED(status);
1710
1711 /* Set error code to DMA */
1712 husart->ErrorCode = HAL_USART_ERROR_DMA;
1713
1714 /* Process Unlocked */
1715 __HAL_UNLOCK(husart);
1716
1717 /* Restore husart->State to ready */
1718 husart->State = HAL_USART_STATE_READY;
1719
1720 return HAL_ERROR;
1721 }
1722 }
1723 else
1724 {
1725 return HAL_BUSY;
1726 }
1727 }
1728
1729 /**
1730 * @brief Full-Duplex Transmit Receive an amount of data in non-blocking mode.
1731 * @note When the USART parity is enabled (PCE = 1) the data received contain the parity bit.
1732 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
1733 * the sent data and the received data are handled as sets of u16. In this case, Size must indicate the number
1734 * of u16 available through pTxData and through pRxData.
1735 * @note When USART parity is not enabled (PCE = 0), and Word Length is configured to 9 bits (M1-M0 = 01),
1736 * address of user data buffers containing data to be sent/received, should be aligned on a half word frontier
1737 * (16 bits) (as sent/received data will be handled by DMA from halfword frontier). Depending on compilation
1738 * chain, use of specific alignment compilation directives or pragmas might be required
1739 * to ensure proper alignment for pTxData and pRxData.
1740 * @param husart USART handle.
1741 * @param pTxData pointer to TX data buffer (u8 or u16 data elements).
1742 * @param pRxData pointer to RX data buffer (u8 or u16 data elements).
1743 * @param Size amount of data elements (u8 or u16) to be received/sent.
1744 * @retval HAL status
1745 */
HAL_USART_TransmitReceive_DMA(USART_HandleTypeDef * husart,const uint8_t * pTxData,uint8_t * pRxData,uint16_t Size)1746 HAL_StatusTypeDef HAL_USART_TransmitReceive_DMA(USART_HandleTypeDef *husart, const uint8_t *pTxData, uint8_t *pRxData,
1747 uint16_t Size)
1748 {
1749 HAL_StatusTypeDef status;
1750 const uint32_t *tmp;
1751
1752 if (husart->State == HAL_USART_STATE_READY)
1753 {
1754 if ((pTxData == NULL) || (pRxData == NULL) || (Size == 0U))
1755 {
1756 return HAL_ERROR;
1757 }
1758
1759 /* In case of 9bits/No Parity transfer, pTxData and pRxData buffers provided as input parameter
1760 should be aligned on a u16 frontier, as data copy to/from TDR/RDR will be
1761 handled by DMA from a u16 frontier. */
1762 if ((husart->Init.WordLength == USART_WORDLENGTH_9B) && (husart->Init.Parity == USART_PARITY_NONE))
1763 {
1764 if (((((uint32_t)pTxData) & 1U) != 0U) || ((((uint32_t)pRxData) & 1U) != 0U))
1765 {
1766 return HAL_ERROR;
1767 }
1768 }
1769
1770 /* Process Locked */
1771 __HAL_LOCK(husart);
1772
1773 husart->pRxBuffPtr = pRxData;
1774 husart->RxXferSize = Size;
1775 husart->pTxBuffPtr = pTxData;
1776 husart->TxXferSize = Size;
1777
1778 husart->ErrorCode = HAL_USART_ERROR_NONE;
1779 husart->State = HAL_USART_STATE_BUSY_TX_RX;
1780
1781 if ((husart->hdmarx != NULL) && (husart->hdmatx != NULL))
1782 {
1783 /* Set the USART DMA Rx transfer complete callback */
1784 husart->hdmarx->XferCpltCallback = USART_DMAReceiveCplt;
1785
1786 /* Set the USART DMA Half transfer complete callback */
1787 husart->hdmarx->XferHalfCpltCallback = USART_DMARxHalfCplt;
1788
1789 /* Set the USART DMA Tx transfer complete callback */
1790 husart->hdmatx->XferCpltCallback = USART_DMATransmitCplt;
1791
1792 /* Set the USART DMA Half transfer complete callback */
1793 husart->hdmatx->XferHalfCpltCallback = USART_DMATxHalfCplt;
1794
1795 /* Set the USART DMA Tx transfer error callback */
1796 husart->hdmatx->XferErrorCallback = USART_DMAError;
1797
1798 /* Set the USART DMA Rx transfer error callback */
1799 husart->hdmarx->XferErrorCallback = USART_DMAError;
1800
1801 /* Enable the USART receive DMA channel */
1802 tmp = (uint32_t *)&pRxData;
1803 status = HAL_DMA_Start_IT(husart->hdmarx, (uint32_t)&husart->Instance->RDR, *(const uint32_t *)tmp, Size);
1804
1805 /* Enable the USART transmit DMA channel */
1806 if (status == HAL_OK)
1807 {
1808 tmp = (const uint32_t *)&pTxData;
1809 status = HAL_DMA_Start_IT(husart->hdmatx, *(const uint32_t *)tmp, (uint32_t)&husart->Instance->TDR, Size);
1810 }
1811 }
1812 else
1813 {
1814 status = HAL_ERROR;
1815 }
1816
1817 if (status == HAL_OK)
1818 {
1819 /* Process Unlocked */
1820 __HAL_UNLOCK(husart);
1821
1822 if (husart->Init.Parity != USART_PARITY_NONE)
1823 {
1824 /* Enable the USART Parity Error Interrupt */
1825 SET_BIT(husart->Instance->CR1, USART_CR1_PEIE);
1826 }
1827
1828 /* Enable the USART Error Interrupt: (Frame error, noise error, overrun error) */
1829 SET_BIT(husart->Instance->CR3, USART_CR3_EIE);
1830
1831 /* Clear the TC flag in the ICR register */
1832 __HAL_USART_CLEAR_FLAG(husart, USART_CLEAR_TCF);
1833
1834 /* Enable the DMA transfer for the receiver request by setting the DMAR bit
1835 in the USART CR3 register */
1836 SET_BIT(husart->Instance->CR3, USART_CR3_DMAR);
1837
1838 /* Enable the DMA transfer for transmit request by setting the DMAT bit
1839 in the USART CR3 register */
1840 SET_BIT(husart->Instance->CR3, USART_CR3_DMAT);
1841
1842 return HAL_OK;
1843 }
1844 else
1845 {
1846 if (husart->hdmarx != NULL)
1847 {
1848 status = HAL_DMA_Abort(husart->hdmarx);
1849 }
1850
1851 /* No need to check on error code */
1852 UNUSED(status);
1853
1854 /* Set error code to DMA */
1855 husart->ErrorCode = HAL_USART_ERROR_DMA;
1856
1857 /* Process Unlocked */
1858 __HAL_UNLOCK(husart);
1859
1860 /* Restore husart->State to ready */
1861 husart->State = HAL_USART_STATE_READY;
1862
1863 return HAL_ERROR;
1864 }
1865 }
1866 else
1867 {
1868 return HAL_BUSY;
1869 }
1870 }
1871
1872 /**
1873 * @brief Pause the DMA Transfer.
1874 * @param husart USART handle.
1875 * @retval HAL status
1876 */
HAL_USART_DMAPause(USART_HandleTypeDef * husart)1877 HAL_StatusTypeDef HAL_USART_DMAPause(USART_HandleTypeDef *husart)
1878 {
1879 const HAL_USART_StateTypeDef state = husart->State;
1880
1881 /* Process Locked */
1882 __HAL_LOCK(husart);
1883
1884 if ((HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAT)) &&
1885 (state == HAL_USART_STATE_BUSY_TX))
1886 {
1887 /* Disable the USART DMA Tx request */
1888 CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAT);
1889 }
1890 else if ((state == HAL_USART_STATE_BUSY_RX) ||
1891 (state == HAL_USART_STATE_BUSY_TX_RX))
1892 {
1893 if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAT))
1894 {
1895 /* Disable the USART DMA Tx request */
1896 CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAT);
1897 }
1898 if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAR))
1899 {
1900 /* Disable PE and ERR (Frame error, noise error, overrun error) interrupts */
1901 CLEAR_BIT(husart->Instance->CR1, USART_CR1_PEIE);
1902 CLEAR_BIT(husart->Instance->CR3, USART_CR3_EIE);
1903
1904 /* Disable the USART DMA Rx request */
1905 CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAR);
1906 }
1907 }
1908 else
1909 {
1910 /* Nothing to do */
1911 }
1912
1913 /* Process Unlocked */
1914 __HAL_UNLOCK(husart);
1915
1916 return HAL_OK;
1917 }
1918
1919 /**
1920 * @brief Resume the DMA Transfer.
1921 * @param husart USART handle.
1922 * @retval HAL status
1923 */
HAL_USART_DMAResume(USART_HandleTypeDef * husart)1924 HAL_StatusTypeDef HAL_USART_DMAResume(USART_HandleTypeDef *husart)
1925 {
1926 const HAL_USART_StateTypeDef state = husart->State;
1927
1928 /* Process Locked */
1929 __HAL_LOCK(husart);
1930
1931 if (state == HAL_USART_STATE_BUSY_TX)
1932 {
1933 /* Enable the USART DMA Tx request */
1934 SET_BIT(husart->Instance->CR3, USART_CR3_DMAT);
1935 }
1936 else if ((state == HAL_USART_STATE_BUSY_RX) ||
1937 (state == HAL_USART_STATE_BUSY_TX_RX))
1938 {
1939 /* Clear the Overrun flag before resuming the Rx transfer*/
1940 __HAL_USART_CLEAR_FLAG(husart, USART_CLEAR_OREF);
1941
1942 /* Re-enable PE and ERR (Frame error, noise error, overrun error) interrupts */
1943 if (husart->Init.Parity != USART_PARITY_NONE)
1944 {
1945 SET_BIT(husart->Instance->CR1, USART_CR1_PEIE);
1946 }
1947 SET_BIT(husart->Instance->CR3, USART_CR3_EIE);
1948
1949 /* Enable the USART DMA Rx request before the DMA Tx request */
1950 SET_BIT(husart->Instance->CR3, USART_CR3_DMAR);
1951
1952 /* Enable the USART DMA Tx request */
1953 SET_BIT(husart->Instance->CR3, USART_CR3_DMAT);
1954 }
1955 else
1956 {
1957 /* Nothing to do */
1958 }
1959
1960 /* Process Unlocked */
1961 __HAL_UNLOCK(husart);
1962
1963 return HAL_OK;
1964 }
1965
1966 /**
1967 * @brief Stop the DMA Transfer.
1968 * @param husart USART handle.
1969 * @retval HAL status
1970 */
HAL_USART_DMAStop(USART_HandleTypeDef * husart)1971 HAL_StatusTypeDef HAL_USART_DMAStop(USART_HandleTypeDef *husart)
1972 {
1973 /* The Lock is not implemented on this API to allow the user application
1974 to call the HAL USART API under callbacks HAL_USART_TxCpltCallback() / HAL_USART_RxCpltCallback() /
1975 HAL_USART_TxHalfCpltCallback / HAL_USART_RxHalfCpltCallback:
1976 indeed, when HAL_DMA_Abort() API is called, the DMA TX/RX Transfer or Half Transfer complete
1977 interrupt is generated if the DMA transfer interruption occurs at the middle or at the end of
1978 the stream and the corresponding call back is executed. */
1979
1980 /* Disable the USART Tx/Rx DMA requests */
1981 CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAT);
1982 CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAR);
1983
1984 /* Abort the USART DMA tx channel */
1985 if (husart->hdmatx != NULL)
1986 {
1987 if (HAL_DMA_Abort(husart->hdmatx) != HAL_OK)
1988 {
1989 if (HAL_DMA_GetError(husart->hdmatx) == HAL_DMA_ERROR_TIMEOUT)
1990 {
1991 /* Set error code to DMA */
1992 husart->ErrorCode = HAL_USART_ERROR_DMA;
1993
1994 return HAL_TIMEOUT;
1995 }
1996 }
1997 }
1998 /* Abort the USART DMA rx channel */
1999 if (husart->hdmarx != NULL)
2000 {
2001 if (HAL_DMA_Abort(husart->hdmarx) != HAL_OK)
2002 {
2003 if (HAL_DMA_GetError(husart->hdmarx) == HAL_DMA_ERROR_TIMEOUT)
2004 {
2005 /* Set error code to DMA */
2006 husart->ErrorCode = HAL_USART_ERROR_DMA;
2007
2008 return HAL_TIMEOUT;
2009 }
2010 }
2011 }
2012
2013 USART_EndTransfer(husart);
2014 husart->State = HAL_USART_STATE_READY;
2015
2016 return HAL_OK;
2017 }
2018 #endif /* HAL_DMA_MODULE_ENABLED */
2019
2020 /**
2021 * @brief Abort ongoing transfers (blocking mode).
2022 * @param husart USART handle.
2023 * @note This procedure could be used for aborting any ongoing transfer started in Interrupt or DMA mode.
2024 * This procedure performs following operations :
2025 * - Disable USART Interrupts (Tx and Rx)
2026 * - Disable the DMA transfer in the peripheral register (if enabled)
2027 * - Abort DMA transfer by calling HAL_DMA_Abort (in case of transfer in DMA mode)
2028 * - Set handle State to READY
2029 * @note This procedure is executed in blocking mode : when exiting function, Abort is considered as completed.
2030 * @retval HAL status
2031 */
HAL_USART_Abort(USART_HandleTypeDef * husart)2032 HAL_StatusTypeDef HAL_USART_Abort(USART_HandleTypeDef *husart)
2033 {
2034 /* Disable TXEIE, TCIE, RXNE, RXFT, TXFT, PE and ERR (Frame error, noise error, overrun error) interrupts */
2035 CLEAR_BIT(husart->Instance->CR1, (USART_CR1_RXNEIE_RXFNEIE | USART_CR1_PEIE | USART_CR1_TXEIE_TXFNFIE |
2036 USART_CR1_TCIE));
2037 CLEAR_BIT(husart->Instance->CR3, (USART_CR3_EIE | USART_CR3_RXFTIE | USART_CR3_TXFTIE));
2038
2039 #if defined(HAL_DMA_MODULE_ENABLED)
2040 /* Abort the USART DMA Tx channel if enabled */
2041 if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAT))
2042 {
2043 /* Disable the USART DMA Tx request if enabled */
2044 CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAT);
2045
2046 /* Abort the USART DMA Tx channel : use blocking DMA Abort API (no callback) */
2047 if (husart->hdmatx != NULL)
2048 {
2049 /* Set the USART DMA Abort callback to Null.
2050 No call back execution at end of DMA abort procedure */
2051 husart->hdmatx->XferAbortCallback = NULL;
2052
2053 if (HAL_DMA_Abort(husart->hdmatx) != HAL_OK)
2054 {
2055 if (HAL_DMA_GetError(husart->hdmatx) == HAL_DMA_ERROR_TIMEOUT)
2056 {
2057 /* Set error code to DMA */
2058 husart->ErrorCode = HAL_USART_ERROR_DMA;
2059
2060 return HAL_TIMEOUT;
2061 }
2062 }
2063 }
2064 }
2065
2066 /* Abort the USART DMA Rx channel if enabled */
2067 if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAR))
2068 {
2069 /* Disable the USART DMA Rx request if enabled */
2070 CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAR);
2071
2072 /* Abort the USART DMA Rx channel : use blocking DMA Abort API (no callback) */
2073 if (husart->hdmarx != NULL)
2074 {
2075 /* Set the USART DMA Abort callback to Null.
2076 No call back execution at end of DMA abort procedure */
2077 husart->hdmarx->XferAbortCallback = NULL;
2078
2079 if (HAL_DMA_Abort(husart->hdmarx) != HAL_OK)
2080 {
2081 if (HAL_DMA_GetError(husart->hdmarx) == HAL_DMA_ERROR_TIMEOUT)
2082 {
2083 /* Set error code to DMA */
2084 husart->ErrorCode = HAL_USART_ERROR_DMA;
2085
2086 return HAL_TIMEOUT;
2087 }
2088 }
2089 }
2090 }
2091 #endif /* HAL_DMA_MODULE_ENABLED */
2092
2093 /* Reset Tx and Rx transfer counters */
2094 husart->TxXferCount = 0U;
2095 husart->RxXferCount = 0U;
2096
2097 /* Clear the Error flags in the ICR register */
2098 __HAL_USART_CLEAR_FLAG(husart, USART_CLEAR_OREF | USART_CLEAR_NEF | USART_CLEAR_PEF | USART_CLEAR_FEF);
2099
2100 /* Flush the whole TX FIFO (if needed) */
2101 if (husart->FifoMode == USART_FIFOMODE_ENABLE)
2102 {
2103 __HAL_USART_SEND_REQ(husart, USART_TXDATA_FLUSH_REQUEST);
2104 }
2105
2106 /* Discard the received data */
2107 __HAL_USART_SEND_REQ(husart, USART_RXDATA_FLUSH_REQUEST);
2108
2109 /* Restore husart->State to Ready */
2110 husart->State = HAL_USART_STATE_READY;
2111
2112 /* Reset Handle ErrorCode to No Error */
2113 husart->ErrorCode = HAL_USART_ERROR_NONE;
2114
2115 return HAL_OK;
2116 }
2117
2118 /**
2119 * @brief Abort ongoing transfers (Interrupt mode).
2120 * @param husart USART handle.
2121 * @note This procedure could be used for aborting any ongoing transfer started in Interrupt or DMA mode.
2122 * This procedure performs following operations :
2123 * - Disable USART Interrupts (Tx and Rx)
2124 * - Disable the DMA transfer in the peripheral register (if enabled)
2125 * - Abort DMA transfer by calling HAL_DMA_Abort_IT (in case of transfer in DMA mode)
2126 * - Set handle State to READY
2127 * - At abort completion, call user abort complete callback
2128 * @note This procedure is executed in Interrupt mode, meaning that abort procedure could be
2129 * considered as completed only when user abort complete callback is executed (not when exiting function).
2130 * @retval HAL status
2131 */
HAL_USART_Abort_IT(USART_HandleTypeDef * husart)2132 HAL_StatusTypeDef HAL_USART_Abort_IT(USART_HandleTypeDef *husart)
2133 {
2134 uint32_t abortcplt = 1U;
2135
2136 /* Disable TXEIE, TCIE, RXNE, RXFT, TXFT, PE and ERR (Frame error, noise error, overrun error) interrupts */
2137 CLEAR_BIT(husart->Instance->CR1, (USART_CR1_RXNEIE_RXFNEIE | USART_CR1_PEIE | USART_CR1_TXEIE_TXFNFIE |
2138 USART_CR1_TCIE));
2139 CLEAR_BIT(husart->Instance->CR3, (USART_CR3_EIE | USART_CR3_RXFTIE | USART_CR3_TXFTIE));
2140
2141 #if defined(HAL_DMA_MODULE_ENABLED)
2142 /* If DMA Tx and/or DMA Rx Handles are associated to USART Handle, DMA Abort complete callbacks should be initialised
2143 before any call to DMA Abort functions */
2144 /* DMA Tx Handle is valid */
2145 if (husart->hdmatx != NULL)
2146 {
2147 /* Set DMA Abort Complete callback if USART DMA Tx request if enabled.
2148 Otherwise, set it to NULL */
2149 if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAT))
2150 {
2151 husart->hdmatx->XferAbortCallback = USART_DMATxAbortCallback;
2152 }
2153 else
2154 {
2155 husart->hdmatx->XferAbortCallback = NULL;
2156 }
2157 }
2158 /* DMA Rx Handle is valid */
2159 if (husart->hdmarx != NULL)
2160 {
2161 /* Set DMA Abort Complete callback if USART DMA Rx request if enabled.
2162 Otherwise, set it to NULL */
2163 if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAR))
2164 {
2165 husart->hdmarx->XferAbortCallback = USART_DMARxAbortCallback;
2166 }
2167 else
2168 {
2169 husart->hdmarx->XferAbortCallback = NULL;
2170 }
2171 }
2172
2173 /* Abort the USART DMA Tx channel if enabled */
2174 if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAT))
2175 {
2176 /* Disable DMA Tx at USART level */
2177 CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAT);
2178
2179 /* Abort the USART DMA Tx channel : use non blocking DMA Abort API (callback) */
2180 if (husart->hdmatx != NULL)
2181 {
2182 /* USART Tx DMA Abort callback has already been initialised :
2183 will lead to call HAL_USART_AbortCpltCallback() at end of DMA abort procedure */
2184
2185 /* Abort DMA TX */
2186 if (HAL_DMA_Abort_IT(husart->hdmatx) != HAL_OK)
2187 {
2188 husart->hdmatx->XferAbortCallback = NULL;
2189 }
2190 else
2191 {
2192 abortcplt = 0U;
2193 }
2194 }
2195 }
2196
2197 /* Abort the USART DMA Rx channel if enabled */
2198 if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAR))
2199 {
2200 /* Disable the USART DMA Rx request if enabled */
2201 CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAR);
2202
2203 /* Abort the USART DMA Rx channel : use non blocking DMA Abort API (callback) */
2204 if (husart->hdmarx != NULL)
2205 {
2206 /* USART Rx DMA Abort callback has already been initialised :
2207 will lead to call HAL_USART_AbortCpltCallback() at end of DMA abort procedure */
2208
2209 /* Abort DMA RX */
2210 if (HAL_DMA_Abort_IT(husart->hdmarx) != HAL_OK)
2211 {
2212 husart->hdmarx->XferAbortCallback = NULL;
2213 abortcplt = 1U;
2214 }
2215 else
2216 {
2217 abortcplt = 0U;
2218 }
2219 }
2220 }
2221 #endif /* HAL_DMA_MODULE_ENABLED */
2222
2223 /* if no DMA abort complete callback execution is required => call user Abort Complete callback */
2224 if (abortcplt == 1U)
2225 {
2226 /* Reset Tx and Rx transfer counters */
2227 husart->TxXferCount = 0U;
2228 husart->RxXferCount = 0U;
2229
2230 /* Reset errorCode */
2231 husart->ErrorCode = HAL_USART_ERROR_NONE;
2232
2233 /* Clear the Error flags in the ICR register */
2234 __HAL_USART_CLEAR_FLAG(husart, USART_CLEAR_OREF | USART_CLEAR_NEF | USART_CLEAR_PEF | USART_CLEAR_FEF);
2235
2236 /* Flush the whole TX FIFO (if needed) */
2237 if (husart->FifoMode == USART_FIFOMODE_ENABLE)
2238 {
2239 __HAL_USART_SEND_REQ(husart, USART_TXDATA_FLUSH_REQUEST);
2240 }
2241
2242 /* Discard the received data */
2243 __HAL_USART_SEND_REQ(husart, USART_RXDATA_FLUSH_REQUEST);
2244
2245 /* Restore husart->State to Ready */
2246 husart->State = HAL_USART_STATE_READY;
2247
2248 /* As no DMA to be aborted, call directly user Abort complete callback */
2249 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
2250 /* Call registered Abort Complete Callback */
2251 husart->AbortCpltCallback(husart);
2252 #else
2253 /* Call legacy weak Abort Complete Callback */
2254 HAL_USART_AbortCpltCallback(husart);
2255 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2256 }
2257
2258 return HAL_OK;
2259 }
2260
2261 /**
2262 * @brief Handle USART interrupt request.
2263 * @param husart USART handle.
2264 * @retval None
2265 */
HAL_USART_IRQHandler(USART_HandleTypeDef * husart)2266 void HAL_USART_IRQHandler(USART_HandleTypeDef *husart)
2267 {
2268 uint32_t isrflags = READ_REG(husart->Instance->ISR);
2269 uint32_t cr1its = READ_REG(husart->Instance->CR1);
2270 uint32_t cr3its = READ_REG(husart->Instance->CR3);
2271
2272 uint32_t errorflags;
2273 uint32_t errorcode;
2274
2275 /* If no error occurs */
2276 errorflags = (isrflags & (uint32_t)(USART_ISR_PE | USART_ISR_FE | USART_ISR_ORE | USART_ISR_NE | USART_ISR_RTOF |
2277 USART_ISR_UDR));
2278 if (errorflags == 0U)
2279 {
2280 /* USART in mode Receiver ---------------------------------------------------*/
2281 if (((isrflags & USART_ISR_RXNE_RXFNE) != 0U)
2282 && (((cr1its & USART_CR1_RXNEIE_RXFNEIE) != 0U)
2283 || ((cr3its & USART_CR3_RXFTIE) != 0U)))
2284 {
2285 if (husart->RxISR != NULL)
2286 {
2287 husart->RxISR(husart);
2288 }
2289 return;
2290 }
2291 }
2292
2293 /* If some errors occur */
2294 if ((errorflags != 0U)
2295 && (((cr3its & (USART_CR3_RXFTIE | USART_CR3_EIE)) != 0U)
2296 || ((cr1its & (USART_CR1_RXNEIE_RXFNEIE | USART_CR1_PEIE)) != 0U)))
2297 {
2298 /* USART parity error interrupt occurred -------------------------------------*/
2299 if (((isrflags & USART_ISR_PE) != 0U) && ((cr1its & USART_CR1_PEIE) != 0U))
2300 {
2301 __HAL_USART_CLEAR_IT(husart, USART_CLEAR_PEF);
2302
2303 husart->ErrorCode |= HAL_USART_ERROR_PE;
2304 }
2305
2306 /* USART frame error interrupt occurred --------------------------------------*/
2307 if (((isrflags & USART_ISR_FE) != 0U) && ((cr3its & USART_CR3_EIE) != 0U))
2308 {
2309 __HAL_USART_CLEAR_IT(husart, USART_CLEAR_FEF);
2310
2311 husart->ErrorCode |= HAL_USART_ERROR_FE;
2312 }
2313
2314 /* USART noise error interrupt occurred --------------------------------------*/
2315 if (((isrflags & USART_ISR_NE) != 0U) && ((cr3its & USART_CR3_EIE) != 0U))
2316 {
2317 __HAL_USART_CLEAR_IT(husart, USART_CLEAR_NEF);
2318
2319 husart->ErrorCode |= HAL_USART_ERROR_NE;
2320 }
2321
2322 /* USART Over-Run interrupt occurred -----------------------------------------*/
2323 if (((isrflags & USART_ISR_ORE) != 0U)
2324 && (((cr1its & USART_CR1_RXNEIE_RXFNEIE) != 0U) ||
2325 ((cr3its & (USART_CR3_RXFTIE | USART_CR3_EIE)) != 0U)))
2326 {
2327 __HAL_USART_CLEAR_IT(husart, USART_CLEAR_OREF);
2328
2329 husart->ErrorCode |= HAL_USART_ERROR_ORE;
2330 }
2331
2332 /* USART Receiver Timeout interrupt occurred ---------------------------------*/
2333 if (((isrflags & USART_ISR_RTOF) != 0U) && ((cr1its & USART_CR1_RTOIE) != 0U))
2334 {
2335 __HAL_USART_CLEAR_IT(husart, USART_CLEAR_RTOF);
2336
2337 husart->ErrorCode |= HAL_USART_ERROR_RTO;
2338 }
2339
2340 /* USART SPI slave underrun error interrupt occurred -------------------------*/
2341 if (((isrflags & USART_ISR_UDR) != 0U) && ((cr3its & USART_CR3_EIE) != 0U))
2342 {
2343 /* Ignore SPI slave underrun errors when reception is going on */
2344 if (husart->State == HAL_USART_STATE_BUSY_RX)
2345 {
2346 __HAL_USART_CLEAR_UDRFLAG(husart);
2347 return;
2348 }
2349 else
2350 {
2351 __HAL_USART_CLEAR_UDRFLAG(husart);
2352 husart->ErrorCode |= HAL_USART_ERROR_UDR;
2353 }
2354 }
2355
2356 /* Call USART Error Call back function if need be --------------------------*/
2357 if (husart->ErrorCode != HAL_USART_ERROR_NONE)
2358 {
2359 /* USART in mode Receiver ---------------------------------------------------*/
2360 if (((isrflags & USART_ISR_RXNE_RXFNE) != 0U)
2361 && (((cr1its & USART_CR1_RXNEIE_RXFNEIE) != 0U)
2362 || ((cr3its & USART_CR3_RXFTIE) != 0U)))
2363 {
2364 if (husart->RxISR != NULL)
2365 {
2366 husart->RxISR(husart);
2367 }
2368 }
2369
2370 /* If Overrun error occurs, or if any error occurs in DMA mode reception,
2371 consider error as blocking */
2372 errorcode = husart->ErrorCode & HAL_USART_ERROR_ORE;
2373 if ((HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAR)) ||
2374 (errorcode != 0U))
2375 {
2376 /* Blocking error : transfer is aborted
2377 Set the USART state ready to be able to start again the process,
2378 Disable Interrupts, and disable DMA requests, if ongoing */
2379 USART_EndTransfer(husart);
2380
2381 #if defined(HAL_DMA_MODULE_ENABLED)
2382 /* Abort the USART DMA Rx channel if enabled */
2383 if (HAL_IS_BIT_SET(husart->Instance->CR3, USART_CR3_DMAR))
2384 {
2385 /* Disable the USART DMA Rx request if enabled */
2386 CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAR | USART_CR3_DMAR);
2387
2388 /* Abort the USART DMA Tx channel */
2389 if (husart->hdmatx != NULL)
2390 {
2391 /* Set the USART Tx DMA Abort callback to NULL : no callback
2392 executed at end of DMA abort procedure */
2393 husart->hdmatx->XferAbortCallback = NULL;
2394
2395 /* Abort DMA TX */
2396 (void)HAL_DMA_Abort_IT(husart->hdmatx);
2397 }
2398
2399 /* Abort the USART DMA Rx channel */
2400 if (husart->hdmarx != NULL)
2401 {
2402 /* Set the USART Rx DMA Abort callback :
2403 will lead to call HAL_USART_ErrorCallback() at end of DMA abort procedure */
2404 husart->hdmarx->XferAbortCallback = USART_DMAAbortOnError;
2405
2406 /* Abort DMA RX */
2407 if (HAL_DMA_Abort_IT(husart->hdmarx) != HAL_OK)
2408 {
2409 /* Call Directly husart->hdmarx->XferAbortCallback function in case of error */
2410 husart->hdmarx->XferAbortCallback(husart->hdmarx);
2411 }
2412 }
2413 else
2414 {
2415 /* Call user error callback */
2416 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
2417 /* Call registered Error Callback */
2418 husart->ErrorCallback(husart);
2419 #else
2420 /* Call legacy weak Error Callback */
2421 HAL_USART_ErrorCallback(husart);
2422 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2423 }
2424 }
2425 else
2426 #endif /* HAL_DMA_MODULE_ENABLED */
2427 {
2428 /* Call user error callback */
2429 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
2430 /* Call registered Error Callback */
2431 husart->ErrorCallback(husart);
2432 #else
2433 /* Call legacy weak Error Callback */
2434 HAL_USART_ErrorCallback(husart);
2435 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2436 }
2437 }
2438 else
2439 {
2440 /* Non Blocking error : transfer could go on.
2441 Error is notified to user through user error callback */
2442 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
2443 /* Call registered Error Callback */
2444 husart->ErrorCallback(husart);
2445 #else
2446 /* Call legacy weak Error Callback */
2447 HAL_USART_ErrorCallback(husart);
2448 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2449 husart->ErrorCode = HAL_USART_ERROR_NONE;
2450 }
2451 }
2452 return;
2453
2454 } /* End if some error occurs */
2455
2456
2457 /* USART in mode Transmitter ------------------------------------------------*/
2458 if (((isrflags & USART_ISR_TXE_TXFNF) != 0U)
2459 && (((cr1its & USART_CR1_TXEIE_TXFNFIE) != 0U)
2460 || ((cr3its & USART_CR3_TXFTIE) != 0U)))
2461 {
2462 if (husart->TxISR != NULL)
2463 {
2464 husart->TxISR(husart);
2465 }
2466 return;
2467 }
2468
2469 /* USART in mode Transmitter (transmission end) -----------------------------*/
2470 if (((isrflags & USART_ISR_TC) != 0U) && ((cr1its & USART_CR1_TCIE) != 0U))
2471 {
2472 USART_EndTransmit_IT(husart);
2473 return;
2474 }
2475
2476 /* USART TX Fifo Empty occurred ----------------------------------------------*/
2477 if (((isrflags & USART_ISR_TXFE) != 0U) && ((cr1its & USART_CR1_TXFEIE) != 0U))
2478 {
2479 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
2480 /* Call registered Tx Fifo Empty Callback */
2481 husart->TxFifoEmptyCallback(husart);
2482 #else
2483 /* Call legacy weak Tx Fifo Empty Callback */
2484 HAL_USARTEx_TxFifoEmptyCallback(husart);
2485 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2486 return;
2487 }
2488
2489 /* USART RX Fifo Full occurred ----------------------------------------------*/
2490 if (((isrflags & USART_ISR_RXFF) != 0U) && ((cr1its & USART_CR1_RXFFIE) != 0U))
2491 {
2492 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
2493 /* Call registered Rx Fifo Full Callback */
2494 husart->RxFifoFullCallback(husart);
2495 #else
2496 /* Call legacy weak Rx Fifo Full Callback */
2497 HAL_USARTEx_RxFifoFullCallback(husart);
2498 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2499 return;
2500 }
2501 }
2502
2503 /**
2504 * @brief Tx Transfer completed callback.
2505 * @param husart USART handle.
2506 * @retval None
2507 */
HAL_USART_TxCpltCallback(USART_HandleTypeDef * husart)2508 __weak void HAL_USART_TxCpltCallback(USART_HandleTypeDef *husart)
2509 {
2510 /* Prevent unused argument(s) compilation warning */
2511 UNUSED(husart);
2512
2513 /* NOTE : This function should not be modified, when the callback is needed,
2514 the HAL_USART_TxCpltCallback can be implemented in the user file.
2515 */
2516 }
2517
2518 /**
2519 * @brief Tx Half Transfer completed callback.
2520 * @param husart USART handle.
2521 * @retval None
2522 */
HAL_USART_TxHalfCpltCallback(USART_HandleTypeDef * husart)2523 __weak void HAL_USART_TxHalfCpltCallback(USART_HandleTypeDef *husart)
2524 {
2525 /* Prevent unused argument(s) compilation warning */
2526 UNUSED(husart);
2527
2528 /* NOTE: This function should not be modified, when the callback is needed,
2529 the HAL_USART_TxHalfCpltCallback can be implemented in the user file.
2530 */
2531 }
2532
2533 /**
2534 * @brief Rx Transfer completed callback.
2535 * @param husart USART handle.
2536 * @retval None
2537 */
HAL_USART_RxCpltCallback(USART_HandleTypeDef * husart)2538 __weak void HAL_USART_RxCpltCallback(USART_HandleTypeDef *husart)
2539 {
2540 /* Prevent unused argument(s) compilation warning */
2541 UNUSED(husart);
2542
2543 /* NOTE: This function should not be modified, when the callback is needed,
2544 the HAL_USART_RxCpltCallback can be implemented in the user file.
2545 */
2546 }
2547
2548 /**
2549 * @brief Rx Half Transfer completed callback.
2550 * @param husart USART handle.
2551 * @retval None
2552 */
HAL_USART_RxHalfCpltCallback(USART_HandleTypeDef * husart)2553 __weak void HAL_USART_RxHalfCpltCallback(USART_HandleTypeDef *husart)
2554 {
2555 /* Prevent unused argument(s) compilation warning */
2556 UNUSED(husart);
2557
2558 /* NOTE : This function should not be modified, when the callback is needed,
2559 the HAL_USART_RxHalfCpltCallback can be implemented in the user file
2560 */
2561 }
2562
2563 /**
2564 * @brief Tx/Rx Transfers completed callback for the non-blocking process.
2565 * @param husart USART handle.
2566 * @retval None
2567 */
HAL_USART_TxRxCpltCallback(USART_HandleTypeDef * husart)2568 __weak void HAL_USART_TxRxCpltCallback(USART_HandleTypeDef *husart)
2569 {
2570 /* Prevent unused argument(s) compilation warning */
2571 UNUSED(husart);
2572
2573 /* NOTE : This function should not be modified, when the callback is needed,
2574 the HAL_USART_TxRxCpltCallback can be implemented in the user file
2575 */
2576 }
2577
2578 /**
2579 * @brief USART error callback.
2580 * @param husart USART handle.
2581 * @retval None
2582 */
HAL_USART_ErrorCallback(USART_HandleTypeDef * husart)2583 __weak void HAL_USART_ErrorCallback(USART_HandleTypeDef *husart)
2584 {
2585 /* Prevent unused argument(s) compilation warning */
2586 UNUSED(husart);
2587
2588 /* NOTE : This function should not be modified, when the callback is needed,
2589 the HAL_USART_ErrorCallback can be implemented in the user file.
2590 */
2591 }
2592
2593 /**
2594 * @brief USART Abort Complete callback.
2595 * @param husart USART handle.
2596 * @retval None
2597 */
HAL_USART_AbortCpltCallback(USART_HandleTypeDef * husart)2598 __weak void HAL_USART_AbortCpltCallback(USART_HandleTypeDef *husart)
2599 {
2600 /* Prevent unused argument(s) compilation warning */
2601 UNUSED(husart);
2602
2603 /* NOTE : This function should not be modified, when the callback is needed,
2604 the HAL_USART_AbortCpltCallback can be implemented in the user file.
2605 */
2606 }
2607
2608 /**
2609 * @}
2610 */
2611
2612 /** @defgroup USART_Exported_Functions_Group4 Peripheral State and Error functions
2613 * @brief USART Peripheral State and Error functions
2614 *
2615 @verbatim
2616 ==============================================================================
2617 ##### Peripheral State and Error functions #####
2618 ==============================================================================
2619 [..]
2620 This subsection provides functions allowing to :
2621 (+) Return the USART handle state
2622 (+) Return the USART handle error code
2623
2624 @endverbatim
2625 * @{
2626 */
2627
2628
2629 /**
2630 * @brief Return the USART handle state.
2631 * @param husart pointer to a USART_HandleTypeDef structure that contains
2632 * the configuration information for the specified USART.
2633 * @retval USART handle state
2634 */
HAL_USART_GetState(const USART_HandleTypeDef * husart)2635 HAL_USART_StateTypeDef HAL_USART_GetState(const USART_HandleTypeDef *husart)
2636 {
2637 return husart->State;
2638 }
2639
2640 /**
2641 * @brief Return the USART error code.
2642 * @param husart pointer to a USART_HandleTypeDef structure that contains
2643 * the configuration information for the specified USART.
2644 * @retval USART handle Error Code
2645 */
HAL_USART_GetError(const USART_HandleTypeDef * husart)2646 uint32_t HAL_USART_GetError(const USART_HandleTypeDef *husart)
2647 {
2648 return husart->ErrorCode;
2649 }
2650
2651 /**
2652 * @}
2653 */
2654
2655 /**
2656 * @}
2657 */
2658
2659 /** @defgroup USART_Private_Functions USART Private Functions
2660 * @{
2661 */
2662
2663 /**
2664 * @brief Initialize the callbacks to their default values.
2665 * @param husart USART handle.
2666 * @retval none
2667 */
2668 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
USART_InitCallbacksToDefault(USART_HandleTypeDef * husart)2669 void USART_InitCallbacksToDefault(USART_HandleTypeDef *husart)
2670 {
2671 /* Init the USART Callback settings */
2672 husart->TxHalfCpltCallback = HAL_USART_TxHalfCpltCallback; /* Legacy weak TxHalfCpltCallback */
2673 husart->TxCpltCallback = HAL_USART_TxCpltCallback; /* Legacy weak TxCpltCallback */
2674 husart->RxHalfCpltCallback = HAL_USART_RxHalfCpltCallback; /* Legacy weak RxHalfCpltCallback */
2675 husart->RxCpltCallback = HAL_USART_RxCpltCallback; /* Legacy weak RxCpltCallback */
2676 husart->TxRxCpltCallback = HAL_USART_TxRxCpltCallback; /* Legacy weak TxRxCpltCallback */
2677 husart->ErrorCallback = HAL_USART_ErrorCallback; /* Legacy weak ErrorCallback */
2678 husart->AbortCpltCallback = HAL_USART_AbortCpltCallback; /* Legacy weak AbortCpltCallback */
2679 husart->RxFifoFullCallback = HAL_USARTEx_RxFifoFullCallback; /* Legacy weak RxFifoFullCallback */
2680 husart->TxFifoEmptyCallback = HAL_USARTEx_TxFifoEmptyCallback; /* Legacy weak TxFifoEmptyCallback */
2681 }
2682 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2683
2684 /**
2685 * @brief End ongoing transfer on USART peripheral (following error detection or Transfer completion).
2686 * @param husart USART handle.
2687 * @retval None
2688 */
USART_EndTransfer(USART_HandleTypeDef * husart)2689 static void USART_EndTransfer(USART_HandleTypeDef *husart)
2690 {
2691 /* Disable TXEIE, TCIE, RXNE, RXFT, TXFT, PE and ERR (Frame error, noise error, overrun error) interrupts */
2692 CLEAR_BIT(husart->Instance->CR1, (USART_CR1_RXNEIE_RXFNEIE | USART_CR1_PEIE | USART_CR1_TXEIE_TXFNFIE |
2693 USART_CR1_TCIE));
2694 CLEAR_BIT(husart->Instance->CR3, (USART_CR3_EIE | USART_CR3_RXFTIE | USART_CR3_TXFTIE));
2695
2696 /* At end of process, restore husart->State to Ready */
2697 husart->State = HAL_USART_STATE_READY;
2698 }
2699
2700 #if defined(HAL_DMA_MODULE_ENABLED)
2701 /**
2702 * @brief DMA USART transmit process complete callback.
2703 * @param hdma DMA handle.
2704 * @retval None
2705 */
USART_DMATransmitCplt(DMA_HandleTypeDef * hdma)2706 static void USART_DMATransmitCplt(DMA_HandleTypeDef *hdma)
2707 {
2708 USART_HandleTypeDef *husart = (USART_HandleTypeDef *)(hdma->Parent);
2709
2710 /* DMA Normal mode */
2711 if (HAL_IS_BIT_CLR(hdma->Instance->CCR, DMA_CCR_CIRC))
2712 {
2713 husart->TxXferCount = 0U;
2714
2715 if (husart->State == HAL_USART_STATE_BUSY_TX)
2716 {
2717 /* Disable the DMA transfer for transmit request by resetting the DMAT bit
2718 in the USART CR3 register */
2719 CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAT);
2720
2721 /* Enable the USART Transmit Complete Interrupt */
2722 __HAL_USART_ENABLE_IT(husart, USART_IT_TC);
2723 }
2724 }
2725 /* DMA Circular mode */
2726 else
2727 {
2728 if (husart->State == HAL_USART_STATE_BUSY_TX)
2729 {
2730 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
2731 /* Call registered Tx Complete Callback */
2732 husart->TxCpltCallback(husart);
2733 #else
2734 /* Call legacy weak Tx Complete Callback */
2735 HAL_USART_TxCpltCallback(husart);
2736 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2737 }
2738 }
2739 }
2740
2741 /**
2742 * @brief DMA USART transmit process half complete callback.
2743 * @param hdma DMA handle.
2744 * @retval None
2745 */
USART_DMATxHalfCplt(DMA_HandleTypeDef * hdma)2746 static void USART_DMATxHalfCplt(DMA_HandleTypeDef *hdma)
2747 {
2748 USART_HandleTypeDef *husart = (USART_HandleTypeDef *)(hdma->Parent);
2749
2750 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
2751 /* Call registered Tx Half Complete Callback */
2752 husart->TxHalfCpltCallback(husart);
2753 #else
2754 /* Call legacy weak Tx Half Complete Callback */
2755 HAL_USART_TxHalfCpltCallback(husart);
2756 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2757 }
2758
2759 /**
2760 * @brief DMA USART receive process complete callback.
2761 * @param hdma DMA handle.
2762 * @retval None
2763 */
USART_DMAReceiveCplt(DMA_HandleTypeDef * hdma)2764 static void USART_DMAReceiveCplt(DMA_HandleTypeDef *hdma)
2765 {
2766 USART_HandleTypeDef *husart = (USART_HandleTypeDef *)(hdma->Parent);
2767
2768 /* DMA Normal mode */
2769 if (HAL_IS_BIT_CLR(hdma->Instance->CCR, DMA_CCR_CIRC))
2770 {
2771 husart->RxXferCount = 0U;
2772
2773 /* Disable PE and ERR (Frame error, noise error, overrun error) interrupts */
2774 CLEAR_BIT(husart->Instance->CR1, USART_CR1_PEIE);
2775 CLEAR_BIT(husart->Instance->CR3, USART_CR3_EIE);
2776
2777 /* Disable the DMA RX transfer for the receiver request by resetting the DMAR bit
2778 in USART CR3 register */
2779 CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAR);
2780 /* similarly, disable the DMA TX transfer that was started to provide the
2781 clock to the slave device */
2782 CLEAR_BIT(husart->Instance->CR3, USART_CR3_DMAT);
2783
2784 if (husart->State == HAL_USART_STATE_BUSY_RX)
2785 {
2786 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
2787 /* Call registered Rx Complete Callback */
2788 husart->RxCpltCallback(husart);
2789 #else
2790 /* Call legacy weak Rx Complete Callback */
2791 HAL_USART_RxCpltCallback(husart);
2792 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2793 }
2794 /* The USART state is HAL_USART_STATE_BUSY_TX_RX */
2795 else
2796 {
2797 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
2798 /* Call registered Tx Rx Complete Callback */
2799 husart->TxRxCpltCallback(husart);
2800 #else
2801 /* Call legacy weak Tx Rx Complete Callback */
2802 HAL_USART_TxRxCpltCallback(husart);
2803 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2804 }
2805 husart->State = HAL_USART_STATE_READY;
2806 }
2807 /* DMA circular mode */
2808 else
2809 {
2810 if (husart->State == HAL_USART_STATE_BUSY_RX)
2811 {
2812 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
2813 /* Call registered Rx Complete Callback */
2814 husart->RxCpltCallback(husart);
2815 #else
2816 /* Call legacy weak Rx Complete Callback */
2817 HAL_USART_RxCpltCallback(husart);
2818 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2819 }
2820 /* The USART state is HAL_USART_STATE_BUSY_TX_RX */
2821 else
2822 {
2823 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
2824 /* Call registered Tx Rx Complete Callback */
2825 husart->TxRxCpltCallback(husart);
2826 #else
2827 /* Call legacy weak Tx Rx Complete Callback */
2828 HAL_USART_TxRxCpltCallback(husart);
2829 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2830 }
2831 }
2832 }
2833
2834 /**
2835 * @brief DMA USART receive process half complete callback.
2836 * @param hdma DMA handle.
2837 * @retval None
2838 */
USART_DMARxHalfCplt(DMA_HandleTypeDef * hdma)2839 static void USART_DMARxHalfCplt(DMA_HandleTypeDef *hdma)
2840 {
2841 USART_HandleTypeDef *husart = (USART_HandleTypeDef *)(hdma->Parent);
2842
2843 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
2844 /* Call registered Rx Half Complete Callback */
2845 husart->RxHalfCpltCallback(husart);
2846 #else
2847 /* Call legacy weak Rx Half Complete Callback */
2848 HAL_USART_RxHalfCpltCallback(husart);
2849 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2850 }
2851
2852 /**
2853 * @brief DMA USART communication error callback.
2854 * @param hdma DMA handle.
2855 * @retval None
2856 */
USART_DMAError(DMA_HandleTypeDef * hdma)2857 static void USART_DMAError(DMA_HandleTypeDef *hdma)
2858 {
2859 USART_HandleTypeDef *husart = (USART_HandleTypeDef *)(hdma->Parent);
2860
2861 husart->RxXferCount = 0U;
2862 husart->TxXferCount = 0U;
2863 USART_EndTransfer(husart);
2864
2865 husart->ErrorCode |= HAL_USART_ERROR_DMA;
2866 husart->State = HAL_USART_STATE_READY;
2867
2868 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
2869 /* Call registered Error Callback */
2870 husart->ErrorCallback(husart);
2871 #else
2872 /* Call legacy weak Error Callback */
2873 HAL_USART_ErrorCallback(husart);
2874 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2875 }
2876
2877 /**
2878 * @brief DMA USART communication abort callback, when initiated by HAL services on Error
2879 * (To be called at end of DMA Abort procedure following error occurrence).
2880 * @param hdma DMA handle.
2881 * @retval None
2882 */
USART_DMAAbortOnError(DMA_HandleTypeDef * hdma)2883 static void USART_DMAAbortOnError(DMA_HandleTypeDef *hdma)
2884 {
2885 USART_HandleTypeDef *husart = (USART_HandleTypeDef *)(hdma->Parent);
2886 husart->RxXferCount = 0U;
2887 husart->TxXferCount = 0U;
2888
2889 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
2890 /* Call registered Error Callback */
2891 husart->ErrorCallback(husart);
2892 #else
2893 /* Call legacy weak Error Callback */
2894 HAL_USART_ErrorCallback(husart);
2895 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2896 }
2897
2898 /**
2899 * @brief DMA USART Tx communication abort callback, when initiated by user
2900 * (To be called at end of DMA Tx Abort procedure following user abort request).
2901 * @note When this callback is executed, User Abort complete call back is called only if no
2902 * Abort still ongoing for Rx DMA Handle.
2903 * @param hdma DMA handle.
2904 * @retval None
2905 */
USART_DMATxAbortCallback(DMA_HandleTypeDef * hdma)2906 static void USART_DMATxAbortCallback(DMA_HandleTypeDef *hdma)
2907 {
2908 USART_HandleTypeDef *husart = (USART_HandleTypeDef *)(hdma->Parent);
2909
2910 husart->hdmatx->XferAbortCallback = NULL;
2911
2912 /* Check if an Abort process is still ongoing */
2913 if (husart->hdmarx != NULL)
2914 {
2915 if (husart->hdmarx->XferAbortCallback != NULL)
2916 {
2917 return;
2918 }
2919 }
2920
2921 /* No Abort process still ongoing : All DMA channels are aborted, call user Abort Complete callback */
2922 husart->TxXferCount = 0U;
2923 husart->RxXferCount = 0U;
2924
2925 /* Reset errorCode */
2926 husart->ErrorCode = HAL_USART_ERROR_NONE;
2927
2928 /* Clear the Error flags in the ICR register */
2929 __HAL_USART_CLEAR_FLAG(husart, USART_CLEAR_OREF | USART_CLEAR_NEF | USART_CLEAR_PEF | USART_CLEAR_FEF);
2930
2931 /* Restore husart->State to Ready */
2932 husart->State = HAL_USART_STATE_READY;
2933
2934 /* Call user Abort complete callback */
2935 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
2936 /* Call registered Abort Complete Callback */
2937 husart->AbortCpltCallback(husart);
2938 #else
2939 /* Call legacy weak Abort Complete Callback */
2940 HAL_USART_AbortCpltCallback(husart);
2941 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2942
2943 }
2944
2945
2946 /**
2947 * @brief DMA USART Rx communication abort callback, when initiated by user
2948 * (To be called at end of DMA Rx Abort procedure following user abort request).
2949 * @note When this callback is executed, User Abort complete call back is called only if no
2950 * Abort still ongoing for Tx DMA Handle.
2951 * @param hdma DMA handle.
2952 * @retval None
2953 */
USART_DMARxAbortCallback(DMA_HandleTypeDef * hdma)2954 static void USART_DMARxAbortCallback(DMA_HandleTypeDef *hdma)
2955 {
2956 USART_HandleTypeDef *husart = (USART_HandleTypeDef *)(hdma->Parent);
2957
2958 husart->hdmarx->XferAbortCallback = NULL;
2959
2960 /* Check if an Abort process is still ongoing */
2961 if (husart->hdmatx != NULL)
2962 {
2963 if (husart->hdmatx->XferAbortCallback != NULL)
2964 {
2965 return;
2966 }
2967 }
2968
2969 /* No Abort process still ongoing : All DMA channels are aborted, call user Abort Complete callback */
2970 husart->TxXferCount = 0U;
2971 husart->RxXferCount = 0U;
2972
2973 /* Reset errorCode */
2974 husart->ErrorCode = HAL_USART_ERROR_NONE;
2975
2976 /* Clear the Error flags in the ICR register */
2977 __HAL_USART_CLEAR_FLAG(husart, USART_CLEAR_OREF | USART_CLEAR_NEF | USART_CLEAR_PEF | USART_CLEAR_FEF);
2978
2979 /* Restore husart->State to Ready */
2980 husart->State = HAL_USART_STATE_READY;
2981
2982 /* Call user Abort complete callback */
2983 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
2984 /* Call registered Abort Complete Callback */
2985 husart->AbortCpltCallback(husart);
2986 #else
2987 /* Call legacy weak Abort Complete Callback */
2988 HAL_USART_AbortCpltCallback(husart);
2989 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
2990 }
2991
2992 #endif /* HAL_DMA_MODULE_ENABLED */
2993
2994 /**
2995 * @brief Handle USART Communication Timeout. It waits
2996 * until a flag is no longer in the specified status.
2997 * @param husart USART handle.
2998 * @param Flag Specifies the USART flag to check.
2999 * @param Status the actual Flag status (SET or RESET).
3000 * @param Tickstart Tick start value
3001 * @param Timeout timeout duration.
3002 * @retval HAL status
3003 */
USART_WaitOnFlagUntilTimeout(USART_HandleTypeDef * husart,uint32_t Flag,FlagStatus Status,uint32_t Tickstart,uint32_t Timeout)3004 static HAL_StatusTypeDef USART_WaitOnFlagUntilTimeout(USART_HandleTypeDef *husart, uint32_t Flag, FlagStatus Status,
3005 uint32_t Tickstart, uint32_t Timeout)
3006 {
3007 /* Wait until flag is set */
3008 while ((__HAL_USART_GET_FLAG(husart, Flag) ? SET : RESET) == Status)
3009 {
3010 /* Check for the Timeout */
3011 if (Timeout != HAL_MAX_DELAY)
3012 {
3013 if (((HAL_GetTick() - Tickstart) > Timeout) || (Timeout == 0U))
3014 {
3015 husart->State = HAL_USART_STATE_READY;
3016
3017 /* Process Unlocked */
3018 __HAL_UNLOCK(husart);
3019
3020 return HAL_TIMEOUT;
3021 }
3022 }
3023 }
3024 return HAL_OK;
3025 }
3026
3027 /**
3028 * @brief Configure the USART peripheral.
3029 * @param husart USART handle.
3030 * @retval HAL status
3031 */
USART_SetConfig(USART_HandleTypeDef * husart)3032 static HAL_StatusTypeDef USART_SetConfig(USART_HandleTypeDef *husart)
3033 {
3034 uint32_t tmpreg;
3035 USART_ClockSourceTypeDef clocksource;
3036 HAL_StatusTypeDef ret = HAL_OK;
3037 uint16_t brrtemp;
3038 uint32_t usartdiv = 0x00000000;
3039 uint32_t pclk;
3040
3041 /* Check the parameters */
3042 assert_param(IS_USART_POLARITY(husart->Init.CLKPolarity));
3043 assert_param(IS_USART_PHASE(husart->Init.CLKPhase));
3044 assert_param(IS_USART_LASTBIT(husart->Init.CLKLastBit));
3045 assert_param(IS_USART_BAUDRATE(husart->Init.BaudRate));
3046 assert_param(IS_USART_WORD_LENGTH(husart->Init.WordLength));
3047 assert_param(IS_USART_STOPBITS(husart->Init.StopBits));
3048 assert_param(IS_USART_PARITY(husart->Init.Parity));
3049 assert_param(IS_USART_MODE(husart->Init.Mode));
3050 assert_param(IS_USART_PRESCALER(husart->Init.ClockPrescaler));
3051
3052 /*-------------------------- USART CR1 Configuration -----------------------*/
3053 /* Clear M, PCE, PS, TE and RE bits and configure
3054 * the USART Word Length, Parity and Mode:
3055 * set the M bits according to husart->Init.WordLength value
3056 * set PCE and PS bits according to husart->Init.Parity value
3057 * set TE and RE bits according to husart->Init.Mode value
3058 * force OVER8 to 1 to allow to reach the maximum speed (Fclock/8) */
3059 tmpreg = (uint32_t)husart->Init.WordLength | husart->Init.Parity | husart->Init.Mode | USART_CR1_OVER8;
3060 MODIFY_REG(husart->Instance->CR1, USART_CR1_FIELDS, tmpreg);
3061
3062 /*---------------------------- USART CR2 Configuration ---------------------*/
3063 /* Clear and configure the USART Clock, CPOL, CPHA, LBCL STOP and SLVEN bits:
3064 * set CPOL bit according to husart->Init.CLKPolarity value
3065 * set CPHA bit according to husart->Init.CLKPhase value
3066 * set LBCL bit according to husart->Init.CLKLastBit value (used in USART Synchronous SPI master mode only)
3067 * set STOP[13:12] bits according to husart->Init.StopBits value */
3068 tmpreg = (uint32_t)(USART_CLOCK_ENABLE);
3069 tmpreg |= (uint32_t)husart->Init.CLKLastBit;
3070 tmpreg |= ((uint32_t)husart->Init.CLKPolarity | (uint32_t)husart->Init.CLKPhase);
3071 tmpreg |= (uint32_t)husart->Init.StopBits;
3072 MODIFY_REG(husart->Instance->CR2, USART_CR2_FIELDS, tmpreg);
3073
3074 /*-------------------------- USART PRESC Configuration -----------------------*/
3075 /* Configure
3076 * - USART Clock Prescaler : set PRESCALER according to husart->Init.ClockPrescaler value */
3077 MODIFY_REG(husart->Instance->PRESC, USART_PRESC_PRESCALER, husart->Init.ClockPrescaler);
3078
3079 /*-------------------------- USART BRR Configuration -----------------------*/
3080 /* BRR is filled-up according to OVER8 bit setting which is forced to 1 */
3081 USART_GETCLOCKSOURCE(husart, clocksource);
3082
3083 switch (clocksource)
3084 {
3085 case USART_CLOCKSOURCE_PCLK1:
3086 pclk = HAL_RCC_GetPCLK1Freq();
3087 usartdiv = (uint32_t)(USART_DIV_SAMPLING8(pclk, husart->Init.BaudRate, husart->Init.ClockPrescaler));
3088 break;
3089 case USART_CLOCKSOURCE_HSI:
3090 pclk = (HSI_VALUE / ((__HAL_RCC_GET_HSIKER_DIVIDER() >> RCC_CR_HSIKERDIV_Pos) + 1U));
3091 usartdiv = (uint32_t)(USART_DIV_SAMPLING8(pclk, husart->Init.BaudRate, husart->Init.ClockPrescaler));
3092 break;
3093 case USART_CLOCKSOURCE_SYSCLK:
3094 pclk = HAL_RCC_GetSysClockFreq();
3095 usartdiv = (uint32_t)(USART_DIV_SAMPLING8(pclk, husart->Init.BaudRate, husart->Init.ClockPrescaler));
3096 break;
3097 case USART_CLOCKSOURCE_LSE:
3098 usartdiv = (uint32_t)(USART_DIV_SAMPLING8(LSE_VALUE, husart->Init.BaudRate, husart->Init.ClockPrescaler));
3099 break;
3100 default:
3101 ret = HAL_ERROR;
3102 break;
3103 }
3104
3105 /* USARTDIV must be greater than or equal to 0d16 and smaller than or equal to ffff */
3106 if ((usartdiv >= USART_BRR_MIN) && (usartdiv <= USART_BRR_MAX))
3107 {
3108 brrtemp = (uint16_t)(usartdiv & 0xFFF0U);
3109 brrtemp |= (uint16_t)((usartdiv & (uint16_t)0x000FU) >> 1U);
3110 husart->Instance->BRR = brrtemp;
3111 }
3112 else
3113 {
3114 ret = HAL_ERROR;
3115 }
3116
3117 /* Initialize the number of data to process during RX/TX ISR execution */
3118 husart->NbTxDataToProcess = 1U;
3119 husart->NbRxDataToProcess = 1U;
3120
3121 /* Clear ISR function pointers */
3122 husart->RxISR = NULL;
3123 husart->TxISR = NULL;
3124
3125 return ret;
3126 }
3127
3128 /**
3129 * @brief Check the USART Idle State.
3130 * @param husart USART handle.
3131 * @retval HAL status
3132 */
USART_CheckIdleState(USART_HandleTypeDef * husart)3133 static HAL_StatusTypeDef USART_CheckIdleState(USART_HandleTypeDef *husart)
3134 {
3135 uint32_t tickstart;
3136
3137 /* Initialize the USART ErrorCode */
3138 husart->ErrorCode = HAL_USART_ERROR_NONE;
3139
3140 /* Init tickstart for timeout management */
3141 tickstart = HAL_GetTick();
3142
3143 /* Check if the Transmitter is enabled */
3144 if ((husart->Instance->CR1 & USART_CR1_TE) == USART_CR1_TE)
3145 {
3146 /* Wait until TEACK flag is set */
3147 if (USART_WaitOnFlagUntilTimeout(husart, USART_ISR_TEACK, RESET, tickstart, USART_TEACK_REACK_TIMEOUT) != HAL_OK)
3148 {
3149 /* Timeout occurred */
3150 return HAL_TIMEOUT;
3151 }
3152 }
3153 /* Check if the Receiver is enabled */
3154 if ((husart->Instance->CR1 & USART_CR1_RE) == USART_CR1_RE)
3155 {
3156 /* Wait until REACK flag is set */
3157 if (USART_WaitOnFlagUntilTimeout(husart, USART_ISR_REACK, RESET, tickstart, USART_TEACK_REACK_TIMEOUT) != HAL_OK)
3158 {
3159 /* Timeout occurred */
3160 return HAL_TIMEOUT;
3161 }
3162 }
3163
3164 /* Initialize the USART state*/
3165 husart->State = HAL_USART_STATE_READY;
3166
3167 /* Process Unlocked */
3168 __HAL_UNLOCK(husart);
3169
3170 return HAL_OK;
3171 }
3172
3173 /**
3174 * @brief Simplex send an amount of data in non-blocking mode.
3175 * @note Function called under interruption only, once
3176 * interruptions have been enabled by HAL_USART_Transmit_IT().
3177 * @note The USART errors are not managed to avoid the overrun error.
3178 * @note ISR function executed when FIFO mode is disabled and when the
3179 * data word length is less than 9 bits long.
3180 * @param husart USART handle.
3181 * @retval None
3182 */
USART_TxISR_8BIT(USART_HandleTypeDef * husart)3183 static void USART_TxISR_8BIT(USART_HandleTypeDef *husart)
3184 {
3185 const HAL_USART_StateTypeDef state = husart->State;
3186
3187 /* Check that a Tx process is ongoing */
3188 if ((state == HAL_USART_STATE_BUSY_TX) ||
3189 (state == HAL_USART_STATE_BUSY_TX_RX))
3190 {
3191 if (husart->TxXferCount == 0U)
3192 {
3193 /* Disable the USART Transmit data register empty interrupt */
3194 __HAL_USART_DISABLE_IT(husart, USART_IT_TXE);
3195
3196 /* Enable the USART Transmit Complete Interrupt */
3197 __HAL_USART_ENABLE_IT(husart, USART_IT_TC);
3198 }
3199 else
3200 {
3201 husart->Instance->TDR = (uint8_t)(*husart->pTxBuffPtr & (uint8_t)0xFF);
3202 husart->pTxBuffPtr++;
3203 husart->TxXferCount--;
3204 }
3205 }
3206 }
3207
3208 /**
3209 * @brief Simplex send an amount of data in non-blocking mode.
3210 * @note Function called under interruption only, once
3211 * interruptions have been enabled by HAL_USART_Transmit_IT().
3212 * @note The USART errors are not managed to avoid the overrun error.
3213 * @note ISR function executed when FIFO mode is disabled and when the
3214 * data word length is 9 bits long.
3215 * @param husart USART handle.
3216 * @retval None
3217 */
USART_TxISR_16BIT(USART_HandleTypeDef * husart)3218 static void USART_TxISR_16BIT(USART_HandleTypeDef *husart)
3219 {
3220 const HAL_USART_StateTypeDef state = husart->State;
3221 const uint16_t *tmp;
3222
3223 if ((state == HAL_USART_STATE_BUSY_TX) ||
3224 (state == HAL_USART_STATE_BUSY_TX_RX))
3225 {
3226 if (husart->TxXferCount == 0U)
3227 {
3228 /* Disable the USART Transmit data register empty interrupt */
3229 __HAL_USART_DISABLE_IT(husart, USART_IT_TXE);
3230
3231 /* Enable the USART Transmit Complete Interrupt */
3232 __HAL_USART_ENABLE_IT(husart, USART_IT_TC);
3233 }
3234 else
3235 {
3236 tmp = (const uint16_t *) husart->pTxBuffPtr;
3237 husart->Instance->TDR = (uint16_t)(*tmp & 0x01FFU);
3238 husart->pTxBuffPtr += 2U;
3239 husart->TxXferCount--;
3240 }
3241 }
3242 }
3243
3244 /**
3245 * @brief Simplex send an amount of data in non-blocking mode.
3246 * @note Function called under interruption only, once
3247 * interruptions have been enabled by HAL_USART_Transmit_IT().
3248 * @note The USART errors are not managed to avoid the overrun error.
3249 * @note ISR function executed when FIFO mode is enabled and when the
3250 * data word length is less than 9 bits long.
3251 * @param husart USART handle.
3252 * @retval None
3253 */
USART_TxISR_8BIT_FIFOEN(USART_HandleTypeDef * husart)3254 static void USART_TxISR_8BIT_FIFOEN(USART_HandleTypeDef *husart)
3255 {
3256 const HAL_USART_StateTypeDef state = husart->State;
3257 uint16_t nb_tx_data;
3258
3259 /* Check that a Tx process is ongoing */
3260 if ((state == HAL_USART_STATE_BUSY_TX) ||
3261 (state == HAL_USART_STATE_BUSY_TX_RX))
3262 {
3263 for (nb_tx_data = husart->NbTxDataToProcess ; nb_tx_data > 0U ; nb_tx_data--)
3264 {
3265 if (husart->TxXferCount == 0U)
3266 {
3267 /* Disable the TX FIFO threshold interrupt */
3268 __HAL_USART_DISABLE_IT(husart, USART_IT_TXFT);
3269
3270 /* Enable the USART Transmit Complete Interrupt */
3271 __HAL_USART_ENABLE_IT(husart, USART_IT_TC);
3272
3273 break; /* force exit loop */
3274 }
3275 else if (__HAL_USART_GET_FLAG(husart, USART_FLAG_TXFNF) == SET)
3276 {
3277 husart->Instance->TDR = (uint8_t)(*husart->pTxBuffPtr & (uint8_t)0xFF);
3278 husart->pTxBuffPtr++;
3279 husart->TxXferCount--;
3280 }
3281 else
3282 {
3283 /* Nothing to do */
3284 }
3285 }
3286 }
3287 }
3288
3289 /**
3290 * @brief Simplex send an amount of data in non-blocking mode.
3291 * @note Function called under interruption only, once
3292 * interruptions have been enabled by HAL_USART_Transmit_IT().
3293 * @note The USART errors are not managed to avoid the overrun error.
3294 * @note ISR function executed when FIFO mode is enabled and when the
3295 * data word length is 9 bits long.
3296 * @param husart USART handle.
3297 * @retval None
3298 */
USART_TxISR_16BIT_FIFOEN(USART_HandleTypeDef * husart)3299 static void USART_TxISR_16BIT_FIFOEN(USART_HandleTypeDef *husart)
3300 {
3301 const HAL_USART_StateTypeDef state = husart->State;
3302 const uint16_t *tmp;
3303 uint16_t nb_tx_data;
3304
3305 /* Check that a Tx process is ongoing */
3306 if ((state == HAL_USART_STATE_BUSY_TX) ||
3307 (state == HAL_USART_STATE_BUSY_TX_RX))
3308 {
3309 for (nb_tx_data = husart->NbTxDataToProcess ; nb_tx_data > 0U ; nb_tx_data--)
3310 {
3311 if (husart->TxXferCount == 0U)
3312 {
3313 /* Disable the TX FIFO threshold interrupt */
3314 __HAL_USART_DISABLE_IT(husart, USART_IT_TXFT);
3315
3316 /* Enable the USART Transmit Complete Interrupt */
3317 __HAL_USART_ENABLE_IT(husart, USART_IT_TC);
3318
3319 break; /* force exit loop */
3320 }
3321 else if (__HAL_USART_GET_FLAG(husart, USART_FLAG_TXFNF) == SET)
3322 {
3323 tmp = (const uint16_t *) husart->pTxBuffPtr;
3324 husart->Instance->TDR = (uint16_t)(*tmp & 0x01FFU);
3325 husart->pTxBuffPtr += 2U;
3326 husart->TxXferCount--;
3327 }
3328 else
3329 {
3330 /* Nothing to do */
3331 }
3332 }
3333 }
3334 }
3335
3336 /**
3337 * @brief Wraps up transmission in non-blocking mode.
3338 * @param husart Pointer to a USART_HandleTypeDef structure that contains
3339 * the configuration information for the specified USART module.
3340 * @retval None
3341 */
USART_EndTransmit_IT(USART_HandleTypeDef * husart)3342 static void USART_EndTransmit_IT(USART_HandleTypeDef *husart)
3343 {
3344 /* Disable the USART Transmit Complete Interrupt */
3345 __HAL_USART_DISABLE_IT(husart, USART_IT_TC);
3346
3347 /* Disable the USART Error Interrupt: (Frame error, noise error, overrun error) */
3348 __HAL_USART_DISABLE_IT(husart, USART_IT_ERR);
3349
3350 /* Clear TxISR function pointer */
3351 husart->TxISR = NULL;
3352
3353 if (husart->State == HAL_USART_STATE_BUSY_TX)
3354 {
3355 /* Clear overrun flag and discard the received data */
3356 __HAL_USART_CLEAR_OREFLAG(husart);
3357 __HAL_USART_SEND_REQ(husart, USART_RXDATA_FLUSH_REQUEST);
3358
3359 /* Tx process is completed, restore husart->State to Ready */
3360 husart->State = HAL_USART_STATE_READY;
3361
3362 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
3363 /* Call registered Tx Complete Callback */
3364 husart->TxCpltCallback(husart);
3365 #else
3366 /* Call legacy weak Tx Complete Callback */
3367 HAL_USART_TxCpltCallback(husart);
3368 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
3369 }
3370 else if (husart->RxXferCount == 0U)
3371 {
3372 /* TxRx process is completed, restore husart->State to Ready */
3373 husart->State = HAL_USART_STATE_READY;
3374
3375 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
3376 /* Call registered Tx Rx Complete Callback */
3377 husart->TxRxCpltCallback(husart);
3378 #else
3379 /* Call legacy weak Tx Rx Complete Callback */
3380 HAL_USART_TxRxCpltCallback(husart);
3381 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
3382 }
3383 else
3384 {
3385 /* Nothing to do */
3386 }
3387 }
3388
3389
3390 /**
3391 * @brief Simplex receive an amount of data in non-blocking mode.
3392 * @note Function called under interruption only, once
3393 * interruptions have been enabled by HAL_USART_Receive_IT().
3394 * @note ISR function executed when FIFO mode is disabled and when the
3395 * data word length is less than 9 bits long.
3396 * @param husart USART handle
3397 * @retval None
3398 */
USART_RxISR_8BIT(USART_HandleTypeDef * husart)3399 static void USART_RxISR_8BIT(USART_HandleTypeDef *husart)
3400 {
3401 const HAL_USART_StateTypeDef state = husart->State;
3402 uint16_t txdatacount;
3403 uint16_t uhMask = husart->Mask;
3404 uint32_t txftie;
3405
3406 if ((state == HAL_USART_STATE_BUSY_RX) ||
3407 (state == HAL_USART_STATE_BUSY_TX_RX))
3408 {
3409 *husart->pRxBuffPtr = (uint8_t)(husart->Instance->RDR & (uint8_t)uhMask);
3410 husart->pRxBuffPtr++;
3411 husart->RxXferCount--;
3412
3413 if (husart->RxXferCount == 0U)
3414 {
3415 /* Disable the USART Parity Error Interrupt and RXNE interrupt*/
3416 CLEAR_BIT(husart->Instance->CR1, (USART_CR1_RXNEIE_RXFNEIE | USART_CR1_PEIE));
3417
3418 /* Disable the USART Error Interrupt: (Frame error, noise error, overrun error) */
3419 CLEAR_BIT(husart->Instance->CR3, USART_CR3_EIE);
3420
3421 /* Clear RxISR function pointer */
3422 husart->RxISR = NULL;
3423
3424 /* txftie and txdatacount are temporary variables for MISRAC2012-Rule-13.5 */
3425 txftie = READ_BIT(husart->Instance->CR3, USART_CR3_TXFTIE);
3426 txdatacount = husart->TxXferCount;
3427
3428 if (state == HAL_USART_STATE_BUSY_RX)
3429 {
3430 /* Clear SPI slave underrun flag and discard transmit data */
3431 if (husart->SlaveMode == USART_SLAVEMODE_ENABLE)
3432 {
3433 __HAL_USART_CLEAR_UDRFLAG(husart);
3434 __HAL_USART_SEND_REQ(husart, USART_TXDATA_FLUSH_REQUEST);
3435 }
3436
3437 /* Rx process is completed, restore husart->State to Ready */
3438 husart->State = HAL_USART_STATE_READY;
3439
3440 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
3441 /* Call registered Rx Complete Callback */
3442 husart->RxCpltCallback(husart);
3443 #else
3444 /* Call legacy weak Rx Complete Callback */
3445 HAL_USART_RxCpltCallback(husart);
3446 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
3447 }
3448 else if ((READ_BIT(husart->Instance->CR1, USART_CR1_TCIE) != USART_CR1_TCIE) &&
3449 (txftie != USART_CR3_TXFTIE) &&
3450 (txdatacount == 0U))
3451 {
3452 /* TxRx process is completed, restore husart->State to Ready */
3453 husart->State = HAL_USART_STATE_READY;
3454
3455 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
3456 /* Call registered Tx Rx Complete Callback */
3457 husart->TxRxCpltCallback(husart);
3458 #else
3459 /* Call legacy weak Tx Rx Complete Callback */
3460 HAL_USART_TxRxCpltCallback(husart);
3461 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
3462 }
3463 else
3464 {
3465 /* Nothing to do */
3466 }
3467 }
3468 else if ((state == HAL_USART_STATE_BUSY_RX) &&
3469 (husart->SlaveMode == USART_SLAVEMODE_DISABLE))
3470 {
3471 /* Send dummy byte in order to generate the clock for the Slave to Send the next data */
3472 husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x00FF);
3473 }
3474 else
3475 {
3476 /* Nothing to do */
3477 }
3478 }
3479 }
3480
3481 /**
3482 * @brief Simplex receive an amount of data in non-blocking mode.
3483 * @note Function called under interruption only, once
3484 * interruptions have been enabled by HAL_USART_Receive_IT().
3485 * @note ISR function executed when FIFO mode is disabled and when the
3486 * data word length is 9 bits long.
3487 * @param husart USART handle
3488 * @retval None
3489 */
USART_RxISR_16BIT(USART_HandleTypeDef * husart)3490 static void USART_RxISR_16BIT(USART_HandleTypeDef *husart)
3491 {
3492 const HAL_USART_StateTypeDef state = husart->State;
3493 uint16_t txdatacount;
3494 uint16_t *tmp;
3495 uint16_t uhMask = husart->Mask;
3496 uint32_t txftie;
3497
3498 if ((state == HAL_USART_STATE_BUSY_RX) ||
3499 (state == HAL_USART_STATE_BUSY_TX_RX))
3500 {
3501 tmp = (uint16_t *) husart->pRxBuffPtr;
3502 *tmp = (uint16_t)(husart->Instance->RDR & uhMask);
3503 husart->pRxBuffPtr += 2U;
3504 husart->RxXferCount--;
3505
3506 if (husart->RxXferCount == 0U)
3507 {
3508 /* Disable the USART Parity Error Interrupt and RXNE interrupt*/
3509 CLEAR_BIT(husart->Instance->CR1, (USART_CR1_RXNEIE_RXFNEIE | USART_CR1_PEIE));
3510
3511 /* Disable the USART Error Interrupt: (Frame error, noise error, overrun error) */
3512 CLEAR_BIT(husart->Instance->CR3, USART_CR3_EIE);
3513
3514 /* Clear RxISR function pointer */
3515 husart->RxISR = NULL;
3516
3517 /* txftie and txdatacount are temporary variables for MISRAC2012-Rule-13.5 */
3518 txftie = READ_BIT(husart->Instance->CR3, USART_CR3_TXFTIE);
3519 txdatacount = husart->TxXferCount;
3520
3521 if (state == HAL_USART_STATE_BUSY_RX)
3522 {
3523 /* Clear SPI slave underrun flag and discard transmit data */
3524 if (husart->SlaveMode == USART_SLAVEMODE_ENABLE)
3525 {
3526 __HAL_USART_CLEAR_UDRFLAG(husart);
3527 __HAL_USART_SEND_REQ(husart, USART_TXDATA_FLUSH_REQUEST);
3528 }
3529
3530 /* Rx process is completed, restore husart->State to Ready */
3531 husart->State = HAL_USART_STATE_READY;
3532
3533 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
3534 /* Call registered Rx Complete Callback */
3535 husart->RxCpltCallback(husart);
3536 #else
3537 /* Call legacy weak Rx Complete Callback */
3538 HAL_USART_RxCpltCallback(husart);
3539 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
3540 }
3541 else if ((READ_BIT(husart->Instance->CR1, USART_CR1_TCIE) != USART_CR1_TCIE) &&
3542 (txftie != USART_CR3_TXFTIE) &&
3543 (txdatacount == 0U))
3544 {
3545 /* TxRx process is completed, restore husart->State to Ready */
3546 husart->State = HAL_USART_STATE_READY;
3547
3548 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
3549 /* Call registered Tx Rx Complete Callback */
3550 husart->TxRxCpltCallback(husart);
3551 #else
3552 /* Call legacy weak Tx Rx Complete Callback */
3553 HAL_USART_TxRxCpltCallback(husart);
3554 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
3555 }
3556 else
3557 {
3558 /* Nothing to do */
3559 }
3560 }
3561 else if ((state == HAL_USART_STATE_BUSY_RX) &&
3562 (husart->SlaveMode == USART_SLAVEMODE_DISABLE))
3563 {
3564 /* Send dummy byte in order to generate the clock for the Slave to Send the next data */
3565 husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x00FF);
3566 }
3567 else
3568 {
3569 /* Nothing to do */
3570 }
3571 }
3572 }
3573
3574 /**
3575 * @brief Simplex receive an amount of data in non-blocking mode.
3576 * @note Function called under interruption only, once
3577 * interruptions have been enabled by HAL_USART_Receive_IT().
3578 * @note ISR function executed when FIFO mode is enabled and when the
3579 * data word length is less than 9 bits long.
3580 * @param husart USART handle
3581 * @retval None
3582 */
USART_RxISR_8BIT_FIFOEN(USART_HandleTypeDef * husart)3583 static void USART_RxISR_8BIT_FIFOEN(USART_HandleTypeDef *husart)
3584 {
3585 HAL_USART_StateTypeDef state = husart->State;
3586 uint16_t txdatacount;
3587 uint16_t rxdatacount;
3588 uint16_t uhMask = husart->Mask;
3589 uint16_t nb_rx_data;
3590 uint32_t txftie;
3591
3592 /* Check that a Rx process is ongoing */
3593 if ((state == HAL_USART_STATE_BUSY_RX) ||
3594 (state == HAL_USART_STATE_BUSY_TX_RX))
3595 {
3596 for (nb_rx_data = husart->NbRxDataToProcess ; nb_rx_data > 0U ; nb_rx_data--)
3597 {
3598 if (__HAL_USART_GET_FLAG(husart, USART_FLAG_RXFNE) == SET)
3599 {
3600 *husart->pRxBuffPtr = (uint8_t)(husart->Instance->RDR & (uint8_t)(uhMask & 0xFFU));
3601 husart->pRxBuffPtr++;
3602 husart->RxXferCount--;
3603
3604 if (husart->RxXferCount == 0U)
3605 {
3606 /* Disable the USART Parity Error Interrupt */
3607 CLEAR_BIT(husart->Instance->CR1, USART_CR1_PEIE);
3608
3609 /* Disable the USART Error Interrupt: (Frame error, noise error, overrun error)
3610 and RX FIFO Threshold interrupt */
3611 CLEAR_BIT(husart->Instance->CR3, (USART_CR3_EIE | USART_CR3_RXFTIE));
3612
3613 /* Clear RxISR function pointer */
3614 husart->RxISR = NULL;
3615
3616 /* txftie and txdatacount are temporary variables for MISRAC2012-Rule-13.5 */
3617 txftie = READ_BIT(husart->Instance->CR3, USART_CR3_TXFTIE);
3618 txdatacount = husart->TxXferCount;
3619
3620 if (state == HAL_USART_STATE_BUSY_RX)
3621 {
3622 /* Clear SPI slave underrun flag and discard transmit data */
3623 if (husart->SlaveMode == USART_SLAVEMODE_ENABLE)
3624 {
3625 __HAL_USART_CLEAR_UDRFLAG(husart);
3626 __HAL_USART_SEND_REQ(husart, USART_TXDATA_FLUSH_REQUEST);
3627 }
3628
3629 /* Rx process is completed, restore husart->State to Ready */
3630 husart->State = HAL_USART_STATE_READY;
3631 state = HAL_USART_STATE_READY;
3632
3633 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
3634 /* Call registered Rx Complete Callback */
3635 husart->RxCpltCallback(husart);
3636 #else
3637 /* Call legacy weak Rx Complete Callback */
3638 HAL_USART_RxCpltCallback(husart);
3639 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
3640 }
3641 else if ((READ_BIT(husart->Instance->CR1, USART_CR1_TCIE) != USART_CR1_TCIE) &&
3642 (txftie != USART_CR3_TXFTIE) &&
3643 (txdatacount == 0U))
3644 {
3645 /* TxRx process is completed, restore husart->State to Ready */
3646 husart->State = HAL_USART_STATE_READY;
3647 state = HAL_USART_STATE_READY;
3648
3649 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
3650 /* Call registered Tx Rx Complete Callback */
3651 husart->TxRxCpltCallback(husart);
3652 #else
3653 /* Call legacy weak Tx Rx Complete Callback */
3654 HAL_USART_TxRxCpltCallback(husart);
3655 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
3656 }
3657 else
3658 {
3659 /* Nothing to do */
3660 }
3661 }
3662 else if ((state == HAL_USART_STATE_BUSY_RX) &&
3663 (husart->SlaveMode == USART_SLAVEMODE_DISABLE))
3664 {
3665 /* Send dummy byte in order to generate the clock for the Slave to Send the next data */
3666 husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x00FF);
3667 }
3668 else
3669 {
3670 /* Nothing to do */
3671 }
3672 }
3673 }
3674
3675 /* When remaining number of bytes to receive is less than the RX FIFO
3676 threshold, next incoming frames are processed as if FIFO mode was
3677 disabled (i.e. one interrupt per received frame).
3678 */
3679 rxdatacount = husart->RxXferCount;
3680 if (((rxdatacount != 0U)) && (rxdatacount < husart->NbRxDataToProcess))
3681 {
3682 /* Disable the USART RXFT interrupt*/
3683 CLEAR_BIT(husart->Instance->CR3, USART_CR3_RXFTIE);
3684
3685 /* Update the RxISR function pointer */
3686 husart->RxISR = USART_RxISR_8BIT;
3687
3688 /* Enable the USART Data Register Not Empty interrupt */
3689 SET_BIT(husart->Instance->CR1, USART_CR1_RXNEIE_RXFNEIE);
3690
3691 if ((husart->TxXferCount == 0U) &&
3692 (state == HAL_USART_STATE_BUSY_TX_RX) &&
3693 (husart->SlaveMode == USART_SLAVEMODE_DISABLE))
3694 {
3695 /* Send dummy byte in order to generate the clock for the Slave to Send the next data */
3696 husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x00FF);
3697 }
3698 }
3699 }
3700 else
3701 {
3702 /* Clear RXNE interrupt flag */
3703 __HAL_USART_SEND_REQ(husart, USART_RXDATA_FLUSH_REQUEST);
3704 }
3705 }
3706
3707 /**
3708 * @brief Simplex receive an amount of data in non-blocking mode.
3709 * @note Function called under interruption only, once
3710 * interruptions have been enabled by HAL_USART_Receive_IT().
3711 * @note ISR function executed when FIFO mode is enabled and when the
3712 * data word length is 9 bits long.
3713 * @param husart USART handle
3714 * @retval None
3715 */
USART_RxISR_16BIT_FIFOEN(USART_HandleTypeDef * husart)3716 static void USART_RxISR_16BIT_FIFOEN(USART_HandleTypeDef *husart)
3717 {
3718 HAL_USART_StateTypeDef state = husart->State;
3719 uint16_t txdatacount;
3720 uint16_t rxdatacount;
3721 uint16_t *tmp;
3722 uint16_t uhMask = husart->Mask;
3723 uint16_t nb_rx_data;
3724 uint32_t txftie;
3725
3726 /* Check that a Tx process is ongoing */
3727 if ((state == HAL_USART_STATE_BUSY_RX) ||
3728 (state == HAL_USART_STATE_BUSY_TX_RX))
3729 {
3730 for (nb_rx_data = husart->NbRxDataToProcess ; nb_rx_data > 0U ; nb_rx_data--)
3731 {
3732 if (__HAL_USART_GET_FLAG(husart, USART_FLAG_RXFNE) == SET)
3733 {
3734 tmp = (uint16_t *) husart->pRxBuffPtr;
3735 *tmp = (uint16_t)(husart->Instance->RDR & uhMask);
3736 husart->pRxBuffPtr += 2U;
3737 husart->RxXferCount--;
3738
3739 if (husart->RxXferCount == 0U)
3740 {
3741 /* Disable the USART Parity Error Interrupt */
3742 CLEAR_BIT(husart->Instance->CR1, USART_CR1_PEIE);
3743
3744 /* Disable the USART Error Interrupt: (Frame error, noise error, overrun error)
3745 and RX FIFO Threshold interrupt */
3746 CLEAR_BIT(husart->Instance->CR3, (USART_CR3_EIE | USART_CR3_RXFTIE));
3747
3748 /* Clear RxISR function pointer */
3749 husart->RxISR = NULL;
3750
3751 /* txftie and txdatacount are temporary variables for MISRAC2012-Rule-13.5 */
3752 txftie = READ_BIT(husart->Instance->CR3, USART_CR3_TXFTIE);
3753 txdatacount = husart->TxXferCount;
3754
3755 if (state == HAL_USART_STATE_BUSY_RX)
3756 {
3757 /* Clear SPI slave underrun flag and discard transmit data */
3758 if (husart->SlaveMode == USART_SLAVEMODE_ENABLE)
3759 {
3760 __HAL_USART_CLEAR_UDRFLAG(husart);
3761 __HAL_USART_SEND_REQ(husart, USART_TXDATA_FLUSH_REQUEST);
3762 }
3763
3764 /* Rx process is completed, restore husart->State to Ready */
3765 husart->State = HAL_USART_STATE_READY;
3766 state = HAL_USART_STATE_READY;
3767
3768 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
3769 /* Call registered Rx Complete Callback */
3770 husart->RxCpltCallback(husart);
3771 #else
3772 /* Call legacy weak Rx Complete Callback */
3773 HAL_USART_RxCpltCallback(husart);
3774 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
3775 }
3776 else if ((READ_BIT(husart->Instance->CR1, USART_CR1_TCIE) != USART_CR1_TCIE) &&
3777 (txftie != USART_CR3_TXFTIE) &&
3778 (txdatacount == 0U))
3779 {
3780 /* TxRx process is completed, restore husart->State to Ready */
3781 husart->State = HAL_USART_STATE_READY;
3782 state = HAL_USART_STATE_READY;
3783
3784 #if (USE_HAL_USART_REGISTER_CALLBACKS == 1)
3785 /* Call registered Tx Rx Complete Callback */
3786 husart->TxRxCpltCallback(husart);
3787 #else
3788 /* Call legacy weak Tx Rx Complete Callback */
3789 HAL_USART_TxRxCpltCallback(husart);
3790 #endif /* USE_HAL_USART_REGISTER_CALLBACKS */
3791 }
3792 else
3793 {
3794 /* Nothing to do */
3795 }
3796 }
3797 else if ((state == HAL_USART_STATE_BUSY_RX) &&
3798 (husart->SlaveMode == USART_SLAVEMODE_DISABLE))
3799 {
3800 /* Send dummy byte in order to generate the clock for the Slave to Send the next data */
3801 husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x00FF);
3802 }
3803 else
3804 {
3805 /* Nothing to do */
3806 }
3807 }
3808 }
3809
3810 /* When remaining number of bytes to receive is less than the RX FIFO
3811 threshold, next incoming frames are processed as if FIFO mode was
3812 disabled (i.e. one interrupt per received frame).
3813 */
3814 rxdatacount = husart->RxXferCount;
3815 if (((rxdatacount != 0U)) && (rxdatacount < husart->NbRxDataToProcess))
3816 {
3817 /* Disable the USART RXFT interrupt*/
3818 CLEAR_BIT(husart->Instance->CR3, USART_CR3_RXFTIE);
3819
3820 /* Update the RxISR function pointer */
3821 husart->RxISR = USART_RxISR_16BIT;
3822
3823 /* Enable the USART Data Register Not Empty interrupt */
3824 SET_BIT(husart->Instance->CR1, USART_CR1_RXNEIE_RXFNEIE);
3825
3826 if ((husart->TxXferCount == 0U) &&
3827 (state == HAL_USART_STATE_BUSY_TX_RX) &&
3828 (husart->SlaveMode == USART_SLAVEMODE_DISABLE))
3829 {
3830 /* Send dummy byte in order to generate the clock for the Slave to Send the next data */
3831 husart->Instance->TDR = (USART_DUMMY_DATA & (uint16_t)0x00FF);
3832 }
3833 }
3834 }
3835 else
3836 {
3837 /* Clear RXNE interrupt flag */
3838 __HAL_USART_SEND_REQ(husart, USART_RXDATA_FLUSH_REQUEST);
3839 }
3840 }
3841
3842 /**
3843 * @}
3844 */
3845
3846 #endif /* HAL_USART_MODULE_ENABLED */
3847 /**
3848 * @}
3849 */
3850
3851 /**
3852 * @}
3853 */
3854
3855