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77 mjames 1
/**
2
  ******************************************************************************
3
  * @file    stm32l1xx_hal_sd.c
4
  * @author  MCD Application Team
5
  * @brief   SD card HAL module driver.
6
  *          This file provides firmware functions to manage the following
7
  *          functionalities of the Secure Digital (SD) peripheral:
8
  *           + Initialization and de-initialization functions
9
  *           + IO operation functions
10
  *           + Peripheral Control functions
11
  *           + Peripheral State functions
12
  *
13
  ******************************************************************************
14
  * @attention
15
  *
16
  * Copyright (c) 2016 STMicroelectronics.
17
  * All rights reserved.
18
  *
19
  * This software is licensed under terms that can be found in the LICENSE file
20
  * in the root directory of this software component.
21
  * If no LICENSE file comes with this software, it is provided AS-IS.
22
  *
23
  ******************************************************************************
24
  @verbatim
25
  ==============================================================================
26
                        ##### How to use this driver #####
27
  ==============================================================================
28
  [..]
29
    This driver implements a high level communication layer for read and write from/to
30
    this memory. The needed STM32 hardware resources (SDIO and GPIO) are performed by
31
    the user in HAL_SD_MspInit() function (MSP layer).
32
    Basically, the MSP layer configuration should be the same as we provide in the
33
    examples.
34
    You can easily tailor this configuration according to hardware resources.
35
 
36
  [..]
37
    This driver is a generic layered driver for SDIO memories which uses the HAL
38
    SDIO driver functions to interface with SD and uSD cards devices.
39
    It is used as follows:
40
 
41
    (#)Initialize the SDIO low level resources by implementing the HAL_SD_MspInit() API:
42
        (##) Enable the SDIO interface clock using __HAL_RCC_SDIO_CLK_ENABLE();
43
        (##) SDIO pins configuration for SD card
44
            (+++) Enable the clock for the SDIO GPIOs using the functions __HAL_RCC_GPIOx_CLK_ENABLE();
45
            (+++) Configure these SDIO pins as alternate function pull-up using HAL_GPIO_Init()
46
                  and according to your pin assignment;
47
        (##) DMA configuration if you need to use DMA process (HAL_SD_ReadBlocks_DMA()
48
             and HAL_SD_WriteBlocks_DMA() APIs).
49
            (+++) Enable the DMAx interface clock using __HAL_RCC_DMAx_CLK_ENABLE();
50
            (+++) Configure the DMA using the function HAL_DMA_Init() with predeclared and filled.
51
        (##) NVIC configuration if you need to use interrupt process when using DMA transfer.
52
            (+++) Configure the SDIO and DMA interrupt priorities using functions
53
                  HAL_NVIC_SetPriority(); DMA priority is superior to SDIO's priority
54
            (+++) Enable the NVIC DMA and SDIO IRQs using function HAL_NVIC_EnableIRQ()
55
            (+++) SDIO interrupts are managed using the macros __HAL_SD_ENABLE_IT()
56
                  and __HAL_SD_DISABLE_IT() inside the communication process.
57
            (+++) SDIO interrupts pending bits are managed using the macros __HAL_SD_GET_IT()
58
                  and __HAL_SD_CLEAR_IT()
59
        (##) NVIC configuration if you need to use interrupt process (HAL_SD_ReadBlocks_IT()
60
             and HAL_SD_WriteBlocks_IT() APIs).
61
            (+++) Configure the SDIO interrupt priorities using function HAL_NVIC_SetPriority();
62
            (+++) Enable the NVIC SDIO IRQs using function HAL_NVIC_EnableIRQ()
63
            (+++) SDIO interrupts are managed using the macros __HAL_SD_ENABLE_IT()
64
                  and __HAL_SD_DISABLE_IT() inside the communication process.
65
            (+++) SDIO interrupts pending bits are managed using the macros __HAL_SD_GET_IT()
66
                  and __HAL_SD_CLEAR_IT()
67
    (#) At this stage, you can perform SD read/write/erase operations after SD card initialization
68
 
69
 
70
  *** SD Card Initialization and configuration ***
71
  ================================================
72
  [..]
73
    To initialize the SD Card, use the HAL_SD_Init() function. It Initializes
74
    SDIO Peripheral(STM32 side) and the SD Card, and put it into StandBy State (Ready for data transfer).
75
    This function provide the following operations:
76
 
77
    (#) Apply the SD Card initialization process at 400KHz and check the SD Card
78
        type (Standard Capacity or High Capacity). You can change or adapt this
79
        frequency by adjusting the "ClockDiv" field.
80
        The SD Card frequency (SDIO_CK) is computed as follows:
81
 
82
           SDIO_CK = SDIOCLK / (ClockDiv + 2)
83
 
84
        In initialization mode and according to the SD Card standard,
85
        make sure that the SDIO_CK frequency doesn't exceed 400KHz.
86
 
87
        This phase of initialization is done through SDIO_Init() and
88
        SDIO_PowerState_ON() SDIO low level APIs.
89
 
90
    (#) Initialize the SD card. The API used is HAL_SD_InitCard().
91
        This phase allows the card initialization and identification
92
        and check the SD Card type (Standard Capacity or High Capacity)
93
        The initialization flow is compatible with SD standard.
94
 
95
        This API (HAL_SD_InitCard()) could be used also to reinitialize the card in case
96
        of plug-off plug-in.
97
 
98
    (#) Configure the SD Card Data transfer frequency. You can change or adapt this
99
        frequency by adjusting the "ClockDiv" field.
100
        In transfer mode and according to the SD Card standard, make sure that the
101
        SDIO_CK frequency doesn't exceed 25MHz and 50MHz in High-speed mode switch.
102
        To be able to use a frequency higher than 24MHz, you should use the SDIO
103
        peripheral in bypass mode. Refer to the corresponding reference manual
104
        for more details.
105
 
106
    (#) Select the corresponding SD Card according to the address read with the step 2.
107
 
108
    (#) Configure the SD Card in wide bus mode: 4-bits data.
109
 
110
  *** SD Card Read operation ***
111
  ==============================
112
  [..]
113
    (+) You can read from SD card in polling mode by using function HAL_SD_ReadBlocks().
114
        This function support only 512-bytes block length (the block size should be
115
        chosen as 512 bytes).
116
        You can choose either one block read operation or multiple block read operation
117
        by adjusting the "NumberOfBlocks" parameter.
118
        After this, you have to ensure that the transfer is done correctly. The check is done
119
        through HAL_SD_GetCardState() function for SD card state.
120
 
121
    (+) You can read from SD card in DMA mode by using function HAL_SD_ReadBlocks_DMA().
122
        This function support only 512-bytes block length (the block size should be
123
        chosen as 512 bytes).
124
        You can choose either one block read operation or multiple block read operation
125
        by adjusting the "NumberOfBlocks" parameter.
126
        After this, you have to ensure that the transfer is done correctly. The check is done
127
        through HAL_SD_GetCardState() function for SD card state.
128
        You could also check the DMA transfer process through the SD Rx interrupt event.
129
 
130
    (+) You can read from SD card in Interrupt mode by using function HAL_SD_ReadBlocks_IT().
131
        This function support only 512-bytes block length (the block size should be
132
        chosen as 512 bytes).
133
        You can choose either one block read operation or multiple block read operation
134
        by adjusting the "NumberOfBlocks" parameter.
135
        After this, you have to ensure that the transfer is done correctly. The check is done
136
        through HAL_SD_GetCardState() function for SD card state.
137
        You could also check the IT transfer process through the SD Rx interrupt event.
138
 
139
  *** SD Card Write operation ***
140
  ===============================
141
  [..]
142
    (+) You can write to SD card in polling mode by using function HAL_SD_WriteBlocks().
143
        This function support only 512-bytes block length (the block size should be
144
        chosen as 512 bytes).
145
        You can choose either one block read operation or multiple block read operation
146
        by adjusting the "NumberOfBlocks" parameter.
147
        After this, you have to ensure that the transfer is done correctly. The check is done
148
        through HAL_SD_GetCardState() function for SD card state.
149
 
150
    (+) You can write to SD card in DMA mode by using function HAL_SD_WriteBlocks_DMA().
151
        This function support only 512-bytes block length (the block size should be
152
        chosen as 512 bytes).
153
        You can choose either one block read operation or multiple block read operation
154
        by adjusting the "NumberOfBlocks" parameter.
155
        After this, you have to ensure that the transfer is done correctly. The check is done
156
        through HAL_SD_GetCardState() function for SD card state.
157
        You could also check the DMA transfer process through the SD Tx interrupt event.
158
 
159
    (+) You can write to SD card in Interrupt mode by using function HAL_SD_WriteBlocks_IT().
160
        This function support only 512-bytes block length (the block size should be
161
        chosen as 512 bytes).
162
        You can choose either one block read operation or multiple block read operation
163
        by adjusting the "NumberOfBlocks" parameter.
164
        After this, you have to ensure that the transfer is done correctly. The check is done
165
        through HAL_SD_GetCardState() function for SD card state.
166
        You could also check the IT transfer process through the SD Tx interrupt event.
167
 
168
  *** SD card status ***
169
  ======================
170
  [..]
171
    (+) The SD Status contains status bits that are related to the SD Memory
172
        Card proprietary features. To get SD card status use the HAL_SD_GetCardStatus().
173
 
174
  *** SD card information ***
175
  ===========================
176
  [..]
177
    (+) To get SD card information, you can use the function HAL_SD_GetCardInfo().
178
        It returns useful information about the SD card such as block size, card type,
179
        block number ...
180
 
181
  *** SD card CSD register ***
182
  ============================
183
    (+) The HAL_SD_GetCardCSD() API allows to get the parameters of the CSD register.
184
        Some of the CSD parameters are useful for card initialization and identification.
185
 
186
  *** SD card CID register ***
187
  ============================
188
    (+) The HAL_SD_GetCardCID() API allows to get the parameters of the CID register.
189
        Some of the CSD parameters are useful for card initialization and identification.
190
 
191
  *** SD HAL driver macros list ***
192
  ==================================
193
  [..]
194
    Below the list of most used macros in SD HAL driver.
195
 
196
    (+) __HAL_SD_ENABLE : Enable the SD device
197
    (+) __HAL_SD_DISABLE : Disable the SD device
198
    (+) __HAL_SD_DMA_ENABLE: Enable the SDIO DMA transfer
199
    (+) __HAL_SD_DMA_DISABLE: Disable the SDIO DMA transfer
200
    (+) __HAL_SD_ENABLE_IT: Enable the SD device interrupt
201
    (+) __HAL_SD_DISABLE_IT: Disable the SD device interrupt
202
    (+) __HAL_SD_GET_FLAG:Check whether the specified SD flag is set or not
203
    (+) __HAL_SD_CLEAR_FLAG: Clear the SD's pending flags
204
 
205
    (@) You can refer to the SD HAL driver header file for more useful macros
206
 
207
  *** Callback registration ***
208
  =============================================
209
  [..]
210
    The compilation define USE_HAL_SD_REGISTER_CALLBACKS when set to 1
211
    allows the user to configure dynamically the driver callbacks.
212
 
213
    Use Functions HAL_SD_RegisterCallback() to register a user callback,
214
    it allows to register following callbacks:
215
      (+) TxCpltCallback : callback when a transmission transfer is completed.
216
      (+) RxCpltCallback : callback when a reception transfer is completed.
217
      (+) ErrorCallback : callback when error occurs.
218
      (+) AbortCpltCallback : callback when abort is completed.
219
      (+) MspInitCallback    : SD MspInit.
220
      (+) MspDeInitCallback  : SD MspDeInit.
221
    This function takes as parameters the HAL peripheral handle, the Callback ID
222
    and a pointer to the user callback function.
223
 
224
    Use function HAL_SD_UnRegisterCallback() to reset a callback to the default
225
    weak (surcharged) function. It allows to reset following callbacks:
226
      (+) TxCpltCallback : callback when a transmission transfer is completed.
227
      (+) RxCpltCallback : callback when a reception transfer is completed.
228
      (+) ErrorCallback : callback when error occurs.
229
      (+) AbortCpltCallback : callback when abort is completed.
230
      (+) MspInitCallback    : SD MspInit.
231
      (+) MspDeInitCallback  : SD MspDeInit.
232
    This function) takes as parameters the HAL peripheral handle and the Callback ID.
233
 
234
    By default, after the HAL_SD_Init and if the state is HAL_SD_STATE_RESET
235
    all callbacks are reset to the corresponding legacy weak (surcharged) functions.
236
    Exception done for MspInit and MspDeInit callbacks that are respectively
237
    reset to the legacy weak (surcharged) functions in the HAL_SD_Init
238
    and  HAL_SD_DeInit only when these callbacks are null (not registered beforehand).
239
    If not, MspInit or MspDeInit are not null, the HAL_SD_Init and HAL_SD_DeInit
240
    keep and use the user MspInit/MspDeInit callbacks (registered beforehand)
241
 
242
    Callbacks can be registered/unregistered in READY state only.
243
    Exception done for MspInit/MspDeInit callbacks that can be registered/unregistered
244
    in READY or RESET state, thus registered (user) MspInit/DeInit callbacks can be used
245
    during the Init/DeInit.
246
    In that case first register the MspInit/MspDeInit user callbacks
247
    using HAL_SD_RegisterCallback before calling HAL_SD_DeInit
248
    or HAL_SD_Init function.
249
 
250
    When The compilation define USE_HAL_SD_REGISTER_CALLBACKS is set to 0 or
251
    not defined, the callback registering feature is not available
252
    and weak (surcharged) callbacks are used.
253
 
254
  @endverbatim
255
  ******************************************************************************
256
  */
257
 
258
/* Includes ------------------------------------------------------------------*/
259
#include "stm32l1xx_hal.h"
260
 
261
#if defined(SDIO)
262
 
263
/** @addtogroup STM32L1xx_HAL_Driver
264
  * @{
265
  */
266
 
267
/** @addtogroup SD
268
  * @{
269
  */
270
 
271
#ifdef HAL_SD_MODULE_ENABLED
272
 
273
/* Private typedef -----------------------------------------------------------*/
274
/* Private define ------------------------------------------------------------*/
275
/** @addtogroup SD_Private_Defines
276
  * @{
277
  */
278
 
279
/**
280
  * @}
281
  */
282
 
283
/* Private macro -------------------------------------------------------------*/
284
/* Private variables ---------------------------------------------------------*/
285
/* Private function prototypes -----------------------------------------------*/
286
/* Private functions ---------------------------------------------------------*/
287
/** @defgroup SD_Private_Functions SD Private Functions
288
  * @{
289
  */
290
static uint32_t SD_InitCard(SD_HandleTypeDef *hsd);
291
static uint32_t SD_PowerON(SD_HandleTypeDef *hsd);
292
static uint32_t SD_SendSDStatus(SD_HandleTypeDef *hsd, uint32_t *pSDstatus);
293
static uint32_t SD_SendStatus(SD_HandleTypeDef *hsd, uint32_t *pCardStatus);
294
static uint32_t SD_WideBus_Enable(SD_HandleTypeDef *hsd);
295
static uint32_t SD_WideBus_Disable(SD_HandleTypeDef *hsd);
296
static uint32_t SD_FindSCR(SD_HandleTypeDef *hsd, uint32_t *pSCR);
297
static void SD_PowerOFF(SD_HandleTypeDef *hsd);
298
static void SD_Write_IT(SD_HandleTypeDef *hsd);
299
static void SD_Read_IT(SD_HandleTypeDef *hsd);
300
static void SD_DMATransmitCplt(DMA_HandleTypeDef *hdma);
301
static void SD_DMAReceiveCplt(DMA_HandleTypeDef *hdma);
302
static void SD_DMAError(DMA_HandleTypeDef *hdma);
303
static void SD_DMATxAbort(DMA_HandleTypeDef *hdma);
304
static void SD_DMARxAbort(DMA_HandleTypeDef *hdma);
305
/**
306
  * @}
307
  */
308
 
309
/* Exported functions --------------------------------------------------------*/
310
/** @addtogroup SD_Exported_Functions
311
  * @{
312
  */
313
 
314
/** @addtogroup SD_Exported_Functions_Group1
315
 *  @brief   Initialization and de-initialization functions
316
 *
317
@verbatim
318
  ==============================================================================
319
          ##### Initialization and de-initialization functions #####
320
  ==============================================================================
321
  [..]
322
    This section provides functions allowing to initialize/de-initialize the SD
323
    card device to be ready for use.
324
 
325
@endverbatim
326
  * @{
327
  */
328
 
329
/**
330
  * @brief  Initializes the SD according to the specified parameters in the
331
            SD_HandleTypeDef and create the associated handle.
332
  * @param  hsd: Pointer to the SD handle
333
  * @retval HAL status
334
  */
335
HAL_StatusTypeDef HAL_SD_Init(SD_HandleTypeDef *hsd)
336
{
337
  /* Check the SD handle allocation */
338
  if(hsd == NULL)
339
  {
340
    return HAL_ERROR;
341
  }
342
 
343
  /* Check the parameters */
344
  assert_param(IS_SDIO_ALL_INSTANCE(hsd->Instance));
345
  assert_param(IS_SDIO_CLOCK_EDGE(hsd->Init.ClockEdge));
346
  assert_param(IS_SDIO_CLOCK_BYPASS(hsd->Init.ClockBypass));
347
  assert_param(IS_SDIO_CLOCK_POWER_SAVE(hsd->Init.ClockPowerSave));
348
  assert_param(IS_SDIO_BUS_WIDE(hsd->Init.BusWide));
349
  assert_param(IS_SDIO_HARDWARE_FLOW_CONTROL(hsd->Init.HardwareFlowControl));
350
  assert_param(IS_SDIO_CLKDIV(hsd->Init.ClockDiv));
351
 
352
  if(hsd->State == HAL_SD_STATE_RESET)
353
  {
354
    /* Allocate lock resource and initialize it */
355
    hsd->Lock = HAL_UNLOCKED;
356
#if defined (USE_HAL_SD_REGISTER_CALLBACKS) && (USE_HAL_SD_REGISTER_CALLBACKS == 1U)
357
    /* Reset Callback pointers in HAL_SD_STATE_RESET only */
358
    hsd->TxCpltCallback    = HAL_SD_TxCpltCallback;
359
    hsd->RxCpltCallback    = HAL_SD_RxCpltCallback;
360
    hsd->ErrorCallback     = HAL_SD_ErrorCallback;
361
    hsd->AbortCpltCallback = HAL_SD_AbortCallback;
362
 
363
    if(hsd->MspInitCallback == NULL)
364
    {
365
      hsd->MspInitCallback = HAL_SD_MspInit;
366
    }
367
 
368
    /* Init the low level hardware */
369
    hsd->MspInitCallback(hsd);
370
#else
371
    /* Init the low level hardware : GPIO, CLOCK, CORTEX...etc */
372
    HAL_SD_MspInit(hsd);
373
#endif /* USE_HAL_SD_REGISTER_CALLBACKS */
374
  }
375
 
376
  hsd->State = HAL_SD_STATE_BUSY;
377
 
378
  /* Initialize the Card parameters */
379
  if (HAL_SD_InitCard(hsd) != HAL_OK)
380
  {
381
    return HAL_ERROR;
382
  }
383
 
384
  /* Initialize the error code */
385
  hsd->ErrorCode = HAL_SD_ERROR_NONE;
386
 
387
  /* Initialize the SD operation */
388
  hsd->Context = SD_CONTEXT_NONE;
389
 
390
  /* Initialize the SD state */
391
  hsd->State = HAL_SD_STATE_READY;
392
 
393
  return HAL_OK;
394
}
395
 
396
/**
397
  * @brief  Initializes the SD Card.
398
  * @param  hsd: Pointer to SD handle
399
  * @note   This function initializes the SD card. It could be used when a card
400
            re-initialization is needed.
401
  * @retval HAL status
402
  */
403
HAL_StatusTypeDef HAL_SD_InitCard(SD_HandleTypeDef *hsd)
404
{
405
  uint32_t errorstate;
406
  HAL_StatusTypeDef status;
407
  SD_InitTypeDef Init;
408
 
409
  /* Default SDIO peripheral configuration for SD card initialization */
410
  Init.ClockEdge           = SDIO_CLOCK_EDGE_RISING;
411
  Init.ClockBypass         = SDIO_CLOCK_BYPASS_DISABLE;
412
  Init.ClockPowerSave      = SDIO_CLOCK_POWER_SAVE_DISABLE;
413
  Init.BusWide             = SDIO_BUS_WIDE_1B;
414
  Init.HardwareFlowControl = SDIO_HARDWARE_FLOW_CONTROL_DISABLE;
415
  Init.ClockDiv            = SDIO_INIT_CLK_DIV;
416
 
417
  /* Initialize SDIO peripheral interface with default configuration */
418
  status = SDIO_Init(hsd->Instance, Init);
419
  if(status != HAL_OK)
420
  {
421
    return HAL_ERROR;
422
  }
423
 
424
  /* Disable SDIO Clock */
425
  __HAL_SD_DISABLE(hsd);
426
 
427
  /* Set Power State to ON */
428
  (void)SDIO_PowerState_ON(hsd->Instance);
429
 
430
  /* Enable SDIO Clock */
431
  __HAL_SD_ENABLE(hsd);
432
 
433
  /* Required power up waiting time before starting the SD initialization  sequence */
434
  HAL_Delay(2);
435
 
436
  /* Identify card operating voltage */
437
  errorstate = SD_PowerON(hsd);
438
  if(errorstate != HAL_SD_ERROR_NONE)
439
  {
440
    hsd->State = HAL_SD_STATE_READY;
441
    hsd->ErrorCode |= errorstate;
442
    return HAL_ERROR;
443
  }
444
 
445
  /* Card initialization */
446
  errorstate = SD_InitCard(hsd);
447
  if(errorstate != HAL_SD_ERROR_NONE)
448
  {
449
    hsd->State = HAL_SD_STATE_READY;
450
    hsd->ErrorCode |= errorstate;
451
    return HAL_ERROR;
452
  }
453
 
454
  /* Set Block Size for Card */
455
  errorstate = SDMMC_CmdBlockLength(hsd->Instance, BLOCKSIZE);
456
  if(errorstate != HAL_SD_ERROR_NONE)
457
  {
458
    /* Clear all the static flags */
459
    __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
460
    hsd->ErrorCode |= errorstate;
461
    hsd->State = HAL_SD_STATE_READY;
462
    return HAL_ERROR;
463
  }
464
 
465
  return HAL_OK;
466
}
467
 
468
/**
469
  * @brief  De-Initializes the SD card.
470
  * @param  hsd: Pointer to SD handle
471
  * @retval HAL status
472
  */
473
HAL_StatusTypeDef HAL_SD_DeInit(SD_HandleTypeDef *hsd)
474
{
475
  /* Check the SD handle allocation */
476
  if(hsd == NULL)
477
  {
478
    return HAL_ERROR;
479
  }
480
 
481
  /* Check the parameters */
482
  assert_param(IS_SDIO_ALL_INSTANCE(hsd->Instance));
483
 
484
  hsd->State = HAL_SD_STATE_BUSY;
485
 
486
  /* Set SD power state to off */
487
  SD_PowerOFF(hsd);
488
 
489
#if defined (USE_HAL_SD_REGISTER_CALLBACKS) && (USE_HAL_SD_REGISTER_CALLBACKS == 1U)
490
  if(hsd->MspDeInitCallback == NULL)
491
  {
492
    hsd->MspDeInitCallback = HAL_SD_MspDeInit;
493
  }
494
 
495
  /* DeInit the low level hardware */
496
  hsd->MspDeInitCallback(hsd);
497
#else
498
  /* De-Initialize the MSP layer */
499
  HAL_SD_MspDeInit(hsd);
500
#endif /* USE_HAL_SD_REGISTER_CALLBACKS */
501
 
502
  hsd->ErrorCode = HAL_SD_ERROR_NONE;
503
  hsd->State = HAL_SD_STATE_RESET;
504
 
505
  return HAL_OK;
506
}
507
 
508
 
509
/**
510
  * @brief  Initializes the SD MSP.
511
  * @param  hsd: Pointer to SD handle
512
  * @retval None
513
  */
514
__weak void HAL_SD_MspInit(SD_HandleTypeDef *hsd)
515
{
516
  /* Prevent unused argument(s) compilation warning */
517
  UNUSED(hsd);
518
 
519
  /* NOTE : This function should not be modified, when the callback is needed,
520
            the HAL_SD_MspInit could be implemented in the user file
521
   */
522
}
523
 
524
/**
525
  * @brief  De-Initialize SD MSP.
526
  * @param  hsd: Pointer to SD handle
527
  * @retval None
528
  */
529
__weak void HAL_SD_MspDeInit(SD_HandleTypeDef *hsd)
530
{
531
  /* Prevent unused argument(s) compilation warning */
532
  UNUSED(hsd);
533
 
534
  /* NOTE : This function should not be modified, when the callback is needed,
535
            the HAL_SD_MspDeInit could be implemented in the user file
536
   */
537
}
538
 
539
/**
540
  * @}
541
  */
542
 
543
/** @addtogroup SD_Exported_Functions_Group2
544
 *  @brief   Data transfer functions
545
 *
546
@verbatim
547
  ==============================================================================
548
                        ##### IO operation functions #####
549
  ==============================================================================
550
  [..]
551
    This subsection provides a set of functions allowing to manage the data
552
    transfer from/to SD card.
553
 
554
@endverbatim
555
  * @{
556
  */
557
 
558
/**
559
  * @brief  Reads block(s) from a specified address in a card. The Data transfer
560
  *         is managed by polling mode.
561
  * @note   This API should be followed by a check on the card state through
562
  *         HAL_SD_GetCardState().
563
  * @param  hsd: Pointer to SD handle
564
  * @param  pData: pointer to the buffer that will contain the received data
565
  * @param  BlockAdd: Block Address from where data is to be read
566
  * @param  NumberOfBlocks: Number of SD blocks to read
567
  * @param  Timeout: Specify timeout value
568
  * @retval HAL status
569
  */
570
HAL_StatusTypeDef HAL_SD_ReadBlocks(SD_HandleTypeDef *hsd, uint8_t *pData, uint32_t BlockAdd, uint32_t NumberOfBlocks, uint32_t Timeout)
571
{
572
  SDIO_DataInitTypeDef config;
573
  uint32_t errorstate;
574
  uint32_t tickstart = HAL_GetTick();
575
  uint32_t count, data, dataremaining;
576
  uint32_t add = BlockAdd;
577
  uint8_t *tempbuff = pData;
578
 
579
  if(NULL == pData)
580
  {
581
    hsd->ErrorCode |= HAL_SD_ERROR_PARAM;
582
    return HAL_ERROR;
583
  }
584
 
585
  if(hsd->State == HAL_SD_STATE_READY)
586
  {
587
    hsd->ErrorCode = HAL_SD_ERROR_NONE;
588
 
589
    if((add + NumberOfBlocks) > (hsd->SdCard.LogBlockNbr))
590
    {
591
      hsd->ErrorCode |= HAL_SD_ERROR_ADDR_OUT_OF_RANGE;
592
      return HAL_ERROR;
593
    }
594
 
595
    hsd->State = HAL_SD_STATE_BUSY;
596
 
597
    /* Initialize data control register */
598
    hsd->Instance->DCTRL = 0U;
599
 
600
    if(hsd->SdCard.CardType != CARD_SDHC_SDXC)
601
    {
602
      add *= 512U;
603
    }
604
 
605
    /* Configure the SD DPSM (Data Path State Machine) */
606
    config.DataTimeOut   = SDMMC_DATATIMEOUT;
607
    config.DataLength    = NumberOfBlocks * BLOCKSIZE;
608
    config.DataBlockSize = SDIO_DATABLOCK_SIZE_512B;
609
    config.TransferDir   = SDIO_TRANSFER_DIR_TO_SDIO;
610
    config.TransferMode  = SDIO_TRANSFER_MODE_BLOCK;
611
    config.DPSM          = SDIO_DPSM_ENABLE;
612
    (void)SDIO_ConfigData(hsd->Instance, &config);
613
 
614
    /* Read block(s) in polling mode */
615
    if(NumberOfBlocks > 1U)
616
    {
617
      hsd->Context = SD_CONTEXT_READ_MULTIPLE_BLOCK;
618
 
619
      /* Read Multi Block command */
620
      errorstate = SDMMC_CmdReadMultiBlock(hsd->Instance, add);
621
    }
622
    else
623
    {
624
      hsd->Context = SD_CONTEXT_READ_SINGLE_BLOCK;
625
 
626
      /* Read Single Block command */
627
      errorstate = SDMMC_CmdReadSingleBlock(hsd->Instance, add);
628
    }
629
    if(errorstate != HAL_SD_ERROR_NONE)
630
    {
631
      /* Clear all the static flags */
632
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
633
      hsd->ErrorCode |= errorstate;
634
      hsd->State = HAL_SD_STATE_READY;
635
      hsd->Context = SD_CONTEXT_NONE;
636
      return HAL_ERROR;
637
    }
638
 
639
    /* Poll on SDIO flags */
640
    dataremaining = config.DataLength;
641
    while(!__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_RXOVERR | SDIO_FLAG_DCRCFAIL | SDIO_FLAG_DTIMEOUT | SDIO_FLAG_DATAEND | SDIO_FLAG_STBITERR))
642
    {
643
      if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_RXFIFOHF) && (dataremaining > 0U))
644
      {
645
        /* Read data from SDIO Rx FIFO */
646
        for(count = 0U; count < 8U; count++)
647
        {
648
          data = SDIO_ReadFIFO(hsd->Instance);
649
          *tempbuff = (uint8_t)(data & 0xFFU);
650
          tempbuff++;
651
          dataremaining--;
652
          *tempbuff = (uint8_t)((data >> 8U) & 0xFFU);
653
          tempbuff++;
654
          dataremaining--;
655
          *tempbuff = (uint8_t)((data >> 16U) & 0xFFU);
656
          tempbuff++;
657
          dataremaining--;
658
          *tempbuff = (uint8_t)((data >> 24U) & 0xFFU);
659
          tempbuff++;
660
          dataremaining--;
661
        }
662
      }
663
 
664
      if(((HAL_GetTick()-tickstart) >=  Timeout) || (Timeout == 0U))
665
      {
666
        /* Clear all the static flags */
667
        __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
668
        hsd->ErrorCode |= HAL_SD_ERROR_TIMEOUT;
669
        hsd->State= HAL_SD_STATE_READY;
670
        hsd->Context = SD_CONTEXT_NONE;
671
        return HAL_TIMEOUT;
672
      }
673
    }
674
 
675
    /* Send stop transmission command in case of multiblock read */
676
    if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_DATAEND) && (NumberOfBlocks > 1U))
677
    {
678
      if(hsd->SdCard.CardType != CARD_SECURED)
679
      {
680
        /* Send stop transmission command */
681
        errorstate = SDMMC_CmdStopTransfer(hsd->Instance);
682
        if(errorstate != HAL_SD_ERROR_NONE)
683
        {
684
          /* Clear all the static flags */
685
          __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
686
          hsd->ErrorCode |= errorstate;
687
          hsd->State = HAL_SD_STATE_READY;
688
          hsd->Context = SD_CONTEXT_NONE;
689
          return HAL_ERROR;
690
        }
691
      }
692
    }
693
 
694
    /* Get error state */
695
    if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_DTIMEOUT))
696
    {
697
      /* Clear all the static flags */
698
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
699
      hsd->ErrorCode |= HAL_SD_ERROR_DATA_TIMEOUT;
700
      hsd->State = HAL_SD_STATE_READY;
701
      hsd->Context = SD_CONTEXT_NONE;
702
      return HAL_ERROR;
703
    }
704
    else if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_DCRCFAIL))
705
    {
706
      /* Clear all the static flags */
707
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
708
      hsd->ErrorCode |= HAL_SD_ERROR_DATA_CRC_FAIL;
709
      hsd->State = HAL_SD_STATE_READY;
710
      hsd->Context = SD_CONTEXT_NONE;
711
      return HAL_ERROR;
712
    }
713
    else if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_RXOVERR))
714
    {
715
      /* Clear all the static flags */
716
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
717
      hsd->ErrorCode |= HAL_SD_ERROR_RX_OVERRUN;
718
      hsd->State = HAL_SD_STATE_READY;
719
      hsd->Context = SD_CONTEXT_NONE;
720
      return HAL_ERROR;
721
    }
722
    else
723
    {
724
      /* Nothing to do */
725
    }
726
 
727
    /* Empty FIFO if there is still any data */
728
    while ((__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_RXDAVL)) && (dataremaining > 0U))
729
    {
730
      data = SDIO_ReadFIFO(hsd->Instance);
731
      *tempbuff = (uint8_t)(data & 0xFFU);
732
      tempbuff++;
733
      dataremaining--;
734
      *tempbuff = (uint8_t)((data >> 8U) & 0xFFU);
735
      tempbuff++;
736
      dataremaining--;
737
      *tempbuff = (uint8_t)((data >> 16U) & 0xFFU);
738
      tempbuff++;
739
      dataremaining--;
740
      *tempbuff = (uint8_t)((data >> 24U) & 0xFFU);
741
      tempbuff++;
742
      dataremaining--;
743
 
744
      if(((HAL_GetTick()-tickstart) >=  Timeout) || (Timeout == 0U))
745
      {
746
        /* Clear all the static flags */
747
        __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
748
        hsd->ErrorCode |= HAL_SD_ERROR_TIMEOUT;
749
        hsd->State= HAL_SD_STATE_READY;
750
        hsd->Context = SD_CONTEXT_NONE;
751
        return HAL_ERROR;
752
      }
753
    }
754
 
755
    /* Clear all the static flags */
756
    __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_DATA_FLAGS);
757
 
758
    hsd->State = HAL_SD_STATE_READY;
759
 
760
    return HAL_OK;
761
  }
762
  else
763
  {
764
    hsd->ErrorCode |= HAL_SD_ERROR_BUSY;
765
    return HAL_ERROR;
766
  }
767
}
768
 
769
/**
770
  * @brief  Allows to write block(s) to a specified address in a card. The Data
771
  *         transfer is managed by polling mode.
772
  * @note   This API should be followed by a check on the card state through
773
  *         HAL_SD_GetCardState().
774
  * @param  hsd: Pointer to SD handle
775
  * @param  pData: pointer to the buffer that will contain the data to transmit
776
  * @param  BlockAdd: Block Address where data will be written
777
  * @param  NumberOfBlocks: Number of SD blocks to write
778
  * @param  Timeout: Specify timeout value
779
  * @note   Due to limitation "SDIO hardware flow control" indicated in Errata Sheet :
780
  *         In 4-bits bus wide mode, do not use this API otherwise underrun will occur and
781
  *         there is not possibility to activate the flow control.
782
  *         Use DMA mode when using 4-bits bus wide mode or decrease the frequency.
783
  * @retval HAL status
784
  */
785
HAL_StatusTypeDef HAL_SD_WriteBlocks(SD_HandleTypeDef *hsd, uint8_t *pData, uint32_t BlockAdd, uint32_t NumberOfBlocks, uint32_t Timeout)
786
{
787
  SDIO_DataInitTypeDef config;
788
  uint32_t errorstate;
789
  uint32_t tickstart = HAL_GetTick();
790
  uint32_t count, data, dataremaining;
791
  uint32_t add = BlockAdd;
792
  uint8_t *tempbuff = pData;
793
 
794
  if(NULL == pData)
795
  {
796
    hsd->ErrorCode |= HAL_SD_ERROR_PARAM;
797
    return HAL_ERROR;
798
  }
799
 
800
  if(hsd->State == HAL_SD_STATE_READY)
801
  {
802
    hsd->ErrorCode = HAL_SD_ERROR_NONE;
803
 
804
    if((add + NumberOfBlocks) > (hsd->SdCard.LogBlockNbr))
805
    {
806
      hsd->ErrorCode |= HAL_SD_ERROR_ADDR_OUT_OF_RANGE;
807
      return HAL_ERROR;
808
    }
809
 
810
    hsd->State = HAL_SD_STATE_BUSY;
811
 
812
    /* Initialize data control register */
813
    hsd->Instance->DCTRL = 0U;
814
 
815
    if(hsd->SdCard.CardType != CARD_SDHC_SDXC)
816
    {
817
      add *= 512U;
818
    }
819
 
820
    /* Configure the SD DPSM (Data Path State Machine) */
821
    config.DataTimeOut   = SDMMC_DATATIMEOUT;
822
    config.DataLength    = NumberOfBlocks * BLOCKSIZE;
823
    config.DataBlockSize = SDIO_DATABLOCK_SIZE_512B;
824
    config.TransferDir   = SDIO_TRANSFER_DIR_TO_CARD;
825
    config.TransferMode  = SDIO_TRANSFER_MODE_BLOCK;
826
    config.DPSM          = SDIO_DPSM_ENABLE;
827
    (void)SDIO_ConfigData(hsd->Instance, &config);
828
 
829
    /* Write Blocks in Polling mode */
830
    if(NumberOfBlocks > 1U)
831
    {
832
      hsd->Context = SD_CONTEXT_WRITE_MULTIPLE_BLOCK;
833
 
834
      /* Write Multi Block command */
835
      errorstate = SDMMC_CmdWriteMultiBlock(hsd->Instance, add);
836
    }
837
    else
838
    {
839
      hsd->Context = SD_CONTEXT_WRITE_SINGLE_BLOCK;
840
 
841
      /* Write Single Block command */
842
      errorstate = SDMMC_CmdWriteSingleBlock(hsd->Instance, add);
843
    }
844
    if(errorstate != HAL_SD_ERROR_NONE)
845
    {
846
      /* Clear all the static flags */
847
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
848
      hsd->ErrorCode |= errorstate;
849
      hsd->State = HAL_SD_STATE_READY;
850
      hsd->Context = SD_CONTEXT_NONE;
851
      return HAL_ERROR;
852
    }
853
 
854
    /* Write block(s) in polling mode */
855
    dataremaining = config.DataLength;
856
    while(!__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_TXUNDERR | SDIO_FLAG_DCRCFAIL | SDIO_FLAG_DTIMEOUT | SDIO_FLAG_DATAEND | SDIO_FLAG_STBITERR))
857
    {
858
      if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_TXFIFOHE) && (dataremaining > 0U))
859
      {
860
        /* Write data to SDIO Tx FIFO */
861
        for(count = 0U; count < 8U; count++)
862
        {
863
          data = (uint32_t)(*tempbuff);
864
          tempbuff++;
865
          dataremaining--;
866
          data |= ((uint32_t)(*tempbuff) << 8U);
867
          tempbuff++;
868
          dataremaining--;
869
          data |= ((uint32_t)(*tempbuff) << 16U);
870
          tempbuff++;
871
          dataremaining--;
872
          data |= ((uint32_t)(*tempbuff) << 24U);
873
          tempbuff++;
874
          dataremaining--;
875
          (void)SDIO_WriteFIFO(hsd->Instance, &data);
876
        }
877
      }
878
 
879
      if(((HAL_GetTick()-tickstart) >=  Timeout) || (Timeout == 0U))
880
      {
881
        /* Clear all the static flags */
882
        __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
883
        hsd->ErrorCode |= errorstate;
884
        hsd->State = HAL_SD_STATE_READY;
885
        hsd->Context = SD_CONTEXT_NONE;
886
        return HAL_TIMEOUT;
887
      }
888
    }
889
 
890
    /* Send stop transmission command in case of multiblock write */
891
    if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_DATAEND) && (NumberOfBlocks > 1U))
892
    {
893
      if(hsd->SdCard.CardType != CARD_SECURED)
894
      {
895
        /* Send stop transmission command */
896
        errorstate = SDMMC_CmdStopTransfer(hsd->Instance);
897
        if(errorstate != HAL_SD_ERROR_NONE)
898
        {
899
          /* Clear all the static flags */
900
          __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
901
          hsd->ErrorCode |= errorstate;
902
          hsd->State = HAL_SD_STATE_READY;
903
          hsd->Context = SD_CONTEXT_NONE;
904
          return HAL_ERROR;
905
        }
906
      }
907
    }
908
 
909
    /* Get error state */
910
    if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_DTIMEOUT))
911
    {
912
      /* Clear all the static flags */
913
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
914
      hsd->ErrorCode |= HAL_SD_ERROR_DATA_TIMEOUT;
915
      hsd->State = HAL_SD_STATE_READY;
916
      hsd->Context = SD_CONTEXT_NONE;
917
      return HAL_ERROR;
918
    }
919
    else if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_DCRCFAIL))
920
    {
921
      /* Clear all the static flags */
922
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
923
      hsd->ErrorCode |= HAL_SD_ERROR_DATA_CRC_FAIL;
924
      hsd->State = HAL_SD_STATE_READY;
925
      hsd->Context = SD_CONTEXT_NONE;
926
      return HAL_ERROR;
927
    }
928
    else if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_TXUNDERR))
929
    {
930
      /* Clear all the static flags */
931
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
932
      hsd->ErrorCode |= HAL_SD_ERROR_TX_UNDERRUN;
933
      hsd->State = HAL_SD_STATE_READY;
934
      hsd->Context = SD_CONTEXT_NONE;
935
      return HAL_ERROR;
936
    }
937
    else
938
    {
939
      /* Nothing to do */
940
    }
941
 
942
    /* Clear all the static flags */
943
    __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_DATA_FLAGS);
944
 
945
    hsd->State = HAL_SD_STATE_READY;
946
 
947
    return HAL_OK;
948
  }
949
  else
950
  {
951
    hsd->ErrorCode |= HAL_SD_ERROR_BUSY;
952
    return HAL_ERROR;
953
  }
954
}
955
 
956
/**
957
  * @brief  Reads block(s) from a specified address in a card. The Data transfer
958
  *         is managed in interrupt mode.
959
  * @note   This API should be followed by a check on the card state through
960
  *         HAL_SD_GetCardState().
961
  * @note   You could also check the IT transfer process through the SD Rx
962
  *         interrupt event.
963
  * @param  hsd: Pointer to SD handle
964
  * @param  pData: Pointer to the buffer that will contain the received data
965
  * @param  BlockAdd: Block Address from where data is to be read
966
  * @param  NumberOfBlocks: Number of blocks to read.
967
  * @retval HAL status
968
  */
969
HAL_StatusTypeDef HAL_SD_ReadBlocks_IT(SD_HandleTypeDef *hsd, uint8_t *pData, uint32_t BlockAdd, uint32_t NumberOfBlocks)
970
{
971
  SDIO_DataInitTypeDef config;
972
  uint32_t errorstate;
973
  uint32_t add = BlockAdd;
974
 
975
  if(NULL == pData)
976
  {
977
    hsd->ErrorCode |= HAL_SD_ERROR_PARAM;
978
    return HAL_ERROR;
979
  }
980
 
981
  if(hsd->State == HAL_SD_STATE_READY)
982
  {
983
    hsd->ErrorCode = HAL_SD_ERROR_NONE;
984
 
985
    if((add + NumberOfBlocks) > (hsd->SdCard.LogBlockNbr))
986
    {
987
      hsd->ErrorCode |= HAL_SD_ERROR_ADDR_OUT_OF_RANGE;
988
      return HAL_ERROR;
989
    }
990
 
991
    hsd->State = HAL_SD_STATE_BUSY;
992
 
993
    /* Initialize data control register */
994
    hsd->Instance->DCTRL = 0U;
995
 
996
    hsd->pRxBuffPtr = pData;
997
    hsd->RxXferSize = BLOCKSIZE * NumberOfBlocks;
998
 
999
    __HAL_SD_ENABLE_IT(hsd, (SDIO_IT_DCRCFAIL | SDIO_IT_DTIMEOUT | SDIO_IT_RXOVERR | SDIO_IT_DATAEND | SDIO_FLAG_RXFIFOHF | SDIO_IT_STBITERR));
1000
 
1001
    if(hsd->SdCard.CardType != CARD_SDHC_SDXC)
1002
    {
1003
      add *= 512U;
1004
    }
1005
 
1006
    /* Configure the SD DPSM (Data Path State Machine) */
1007
    config.DataTimeOut   = SDMMC_DATATIMEOUT;
1008
    config.DataLength    = BLOCKSIZE * NumberOfBlocks;
1009
    config.DataBlockSize = SDIO_DATABLOCK_SIZE_512B;
1010
    config.TransferDir   = SDIO_TRANSFER_DIR_TO_SDIO;
1011
    config.TransferMode  = SDIO_TRANSFER_MODE_BLOCK;
1012
    config.DPSM          = SDIO_DPSM_ENABLE;
1013
    (void)SDIO_ConfigData(hsd->Instance, &config);
1014
 
1015
    /* Read Blocks in IT mode */
1016
    if(NumberOfBlocks > 1U)
1017
    {
1018
      hsd->Context = (SD_CONTEXT_READ_MULTIPLE_BLOCK | SD_CONTEXT_IT);
1019
 
1020
      /* Read Multi Block command */
1021
      errorstate = SDMMC_CmdReadMultiBlock(hsd->Instance, add);
1022
    }
1023
    else
1024
    {
1025
      hsd->Context = (SD_CONTEXT_READ_SINGLE_BLOCK | SD_CONTEXT_IT);
1026
 
1027
      /* Read Single Block command */
1028
      errorstate = SDMMC_CmdReadSingleBlock(hsd->Instance, add);
1029
    }
1030
    if(errorstate != HAL_SD_ERROR_NONE)
1031
    {
1032
      /* Clear all the static flags */
1033
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
1034
      hsd->ErrorCode |= errorstate;
1035
      hsd->State = HAL_SD_STATE_READY;
1036
      hsd->Context = SD_CONTEXT_NONE;
1037
      return HAL_ERROR;
1038
    }
1039
 
1040
    return HAL_OK;
1041
  }
1042
  else
1043
  {
1044
    return HAL_BUSY;
1045
  }
1046
}
1047
 
1048
/**
1049
  * @brief  Writes block(s) to a specified address in a card. The Data transfer
1050
  *         is managed in interrupt mode.
1051
  * @note   This API should be followed by a check on the card state through
1052
  *         HAL_SD_GetCardState().
1053
  * @note   You could also check the IT transfer process through the SD Tx
1054
  *         interrupt event.
1055
  * @param  hsd: Pointer to SD handle
1056
  * @param  pData: Pointer to the buffer that will contain the data to transmit
1057
  * @param  BlockAdd: Block Address where data will be written
1058
  * @param  NumberOfBlocks: Number of blocks to write
1059
  * @note   Due to limitation "SDIO hardware flow control" indicated in Errata Sheet :
1060
  *         In 4-bits bus wide mode, do not use this API otherwise underrun will occur and
1061
  *         there is not possibility to activate the flow control.
1062
  *         Use DMA mode when using 4-bits bus wide mode or decrease the frequency.
1063
  * @retval HAL status
1064
  */
1065
HAL_StatusTypeDef HAL_SD_WriteBlocks_IT(SD_HandleTypeDef *hsd, uint8_t *pData, uint32_t BlockAdd, uint32_t NumberOfBlocks)
1066
{
1067
  SDIO_DataInitTypeDef config;
1068
  uint32_t errorstate;
1069
  uint32_t add = BlockAdd;
1070
 
1071
  if(NULL == pData)
1072
  {
1073
    hsd->ErrorCode |= HAL_SD_ERROR_PARAM;
1074
    return HAL_ERROR;
1075
  }
1076
 
1077
  if(hsd->State == HAL_SD_STATE_READY)
1078
  {
1079
    hsd->ErrorCode = HAL_SD_ERROR_NONE;
1080
 
1081
    if((add + NumberOfBlocks) > (hsd->SdCard.LogBlockNbr))
1082
    {
1083
      hsd->ErrorCode |= HAL_SD_ERROR_ADDR_OUT_OF_RANGE;
1084
      return HAL_ERROR;
1085
    }
1086
 
1087
    hsd->State = HAL_SD_STATE_BUSY;
1088
 
1089
    /* Initialize data control register */
1090
    hsd->Instance->DCTRL = 0U;
1091
 
1092
    hsd->pTxBuffPtr = pData;
1093
    hsd->TxXferSize = BLOCKSIZE * NumberOfBlocks;
1094
 
1095
    /* Enable transfer interrupts */
1096
    __HAL_SD_ENABLE_IT(hsd, (SDIO_IT_DCRCFAIL | SDIO_IT_DTIMEOUT | SDIO_IT_TXUNDERR | SDIO_IT_DATAEND | SDIO_FLAG_TXFIFOHE | SDIO_IT_STBITERR));
1097
 
1098
    if(hsd->SdCard.CardType != CARD_SDHC_SDXC)
1099
    {
1100
      add *= 512U;
1101
    }
1102
 
1103
    /* Write Blocks in Polling mode */
1104
    if(NumberOfBlocks > 1U)
1105
    {
1106
      hsd->Context = (SD_CONTEXT_WRITE_MULTIPLE_BLOCK| SD_CONTEXT_IT);
1107
 
1108
      /* Write Multi Block command */
1109
      errorstate = SDMMC_CmdWriteMultiBlock(hsd->Instance, add);
1110
    }
1111
    else
1112
    {
1113
      hsd->Context = (SD_CONTEXT_WRITE_SINGLE_BLOCK | SD_CONTEXT_IT);
1114
 
1115
      /* Write Single Block command */
1116
      errorstate = SDMMC_CmdWriteSingleBlock(hsd->Instance, add);
1117
    }
1118
    if(errorstate != HAL_SD_ERROR_NONE)
1119
    {
1120
      /* Clear all the static flags */
1121
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
1122
      hsd->ErrorCode |= errorstate;
1123
      hsd->State = HAL_SD_STATE_READY;
1124
      hsd->Context = SD_CONTEXT_NONE;
1125
      return HAL_ERROR;
1126
    }
1127
 
1128
    /* Configure the SD DPSM (Data Path State Machine) */
1129
    config.DataTimeOut   = SDMMC_DATATIMEOUT;
1130
    config.DataLength    = BLOCKSIZE * NumberOfBlocks;
1131
    config.DataBlockSize = SDIO_DATABLOCK_SIZE_512B;
1132
    config.TransferDir   = SDIO_TRANSFER_DIR_TO_CARD;
1133
    config.TransferMode  = SDIO_TRANSFER_MODE_BLOCK;
1134
    config.DPSM          = SDIO_DPSM_ENABLE;
1135
    (void)SDIO_ConfigData(hsd->Instance, &config);
1136
 
1137
    return HAL_OK;
1138
  }
1139
  else
1140
  {
1141
    return HAL_BUSY;
1142
  }
1143
}
1144
 
1145
/**
1146
  * @brief  Reads block(s) from a specified address in a card. The Data transfer
1147
  *         is managed by DMA mode.
1148
  * @note   This API should be followed by a check on the card state through
1149
  *         HAL_SD_GetCardState().
1150
  * @note   You could also check the DMA transfer process through the SD Rx
1151
  *         interrupt event.
1152
  * @param  hsd: Pointer SD handle
1153
  * @param  pData: Pointer to the buffer that will contain the received data
1154
  * @param  BlockAdd: Block Address from where data is to be read
1155
  * @param  NumberOfBlocks: Number of blocks to read.
1156
  * @retval HAL status
1157
  */
1158
HAL_StatusTypeDef HAL_SD_ReadBlocks_DMA(SD_HandleTypeDef *hsd, uint8_t *pData, uint32_t BlockAdd, uint32_t NumberOfBlocks)
1159
{
1160
  SDIO_DataInitTypeDef config;
1161
  uint32_t errorstate;
1162
  uint32_t add = BlockAdd;
1163
 
1164
  if(NULL == pData)
1165
  {
1166
    hsd->ErrorCode |= HAL_SD_ERROR_PARAM;
1167
    return HAL_ERROR;
1168
  }
1169
 
1170
  if(hsd->State == HAL_SD_STATE_READY)
1171
  {
1172
    hsd->ErrorCode = HAL_SD_ERROR_NONE;
1173
 
1174
    if((add + NumberOfBlocks) > (hsd->SdCard.LogBlockNbr))
1175
    {
1176
      hsd->ErrorCode |= HAL_SD_ERROR_ADDR_OUT_OF_RANGE;
1177
      return HAL_ERROR;
1178
    }
1179
 
1180
    hsd->State = HAL_SD_STATE_BUSY;
1181
 
1182
    /* Initialize data control register */
1183
    hsd->Instance->DCTRL = 0U;
1184
 
1185
    __HAL_SD_ENABLE_IT(hsd, (SDIO_IT_DCRCFAIL | SDIO_IT_DTIMEOUT | SDIO_IT_RXOVERR | SDIO_IT_DATAEND | SDIO_IT_STBITERR));
1186
 
1187
    /* Set the DMA transfer complete callback */
1188
    hsd->hdmarx->XferCpltCallback = SD_DMAReceiveCplt;
1189
 
1190
    /* Set the DMA error callback */
1191
    hsd->hdmarx->XferErrorCallback = SD_DMAError;
1192
 
1193
    /* Set the DMA Abort callback */
1194
    hsd->hdmarx->XferAbortCallback = NULL;
1195
 
1196
    /* Force DMA Direction */
1197
    hsd->hdmarx->Init.Direction = DMA_PERIPH_TO_MEMORY;
1198
    MODIFY_REG(hsd->hdmarx->Instance->CCR, DMA_CCR_DIR, hsd->hdmarx->Init.Direction);
1199
 
1200
    /* Enable the DMA Channel */
1201
    if(HAL_DMA_Start_IT(hsd->hdmarx, (uint32_t)&hsd->Instance->FIFO, (uint32_t)pData, (uint32_t)(BLOCKSIZE * NumberOfBlocks)/4U) != HAL_OK)
1202
    {
1203
      __HAL_SD_DISABLE_IT(hsd, (SDIO_IT_DCRCFAIL | SDIO_IT_DTIMEOUT | SDIO_IT_RXOVERR | SDIO_IT_DATAEND));
1204
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
1205
      hsd->ErrorCode |= HAL_SD_ERROR_DMA;
1206
      hsd->State = HAL_SD_STATE_READY;
1207
      return HAL_ERROR;
1208
    }
1209
    else
1210
    {
1211
      /* Enable SD DMA transfer */
1212
      __HAL_SD_DMA_ENABLE(hsd);
1213
 
1214
      if(hsd->SdCard.CardType != CARD_SDHC_SDXC)
1215
      {
1216
        add *= 512U;
1217
      }
1218
 
1219
      /* Configure the SD DPSM (Data Path State Machine) */
1220
      config.DataTimeOut   = SDMMC_DATATIMEOUT;
1221
      config.DataLength    = BLOCKSIZE * NumberOfBlocks;
1222
      config.DataBlockSize = SDIO_DATABLOCK_SIZE_512B;
1223
      config.TransferDir   = SDIO_TRANSFER_DIR_TO_SDIO;
1224
      config.TransferMode  = SDIO_TRANSFER_MODE_BLOCK;
1225
      config.DPSM          = SDIO_DPSM_ENABLE;
1226
      (void)SDIO_ConfigData(hsd->Instance, &config);
1227
 
1228
      /* Read Blocks in DMA mode */
1229
      if(NumberOfBlocks > 1U)
1230
      {
1231
        hsd->Context = (SD_CONTEXT_READ_MULTIPLE_BLOCK | SD_CONTEXT_DMA);
1232
 
1233
        /* Read Multi Block command */
1234
        errorstate = SDMMC_CmdReadMultiBlock(hsd->Instance, add);
1235
      }
1236
      else
1237
      {
1238
        hsd->Context = (SD_CONTEXT_READ_SINGLE_BLOCK | SD_CONTEXT_DMA);
1239
 
1240
        /* Read Single Block command */
1241
        errorstate = SDMMC_CmdReadSingleBlock(hsd->Instance, add);
1242
      }
1243
      if(errorstate != HAL_SD_ERROR_NONE)
1244
      {
1245
        /* Clear all the static flags */
1246
        __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
1247
        hsd->ErrorCode |= errorstate;
1248
        hsd->State = HAL_SD_STATE_READY;
1249
        hsd->Context = SD_CONTEXT_NONE;
1250
        return HAL_ERROR;
1251
      }
1252
 
1253
      return HAL_OK;
1254
    }
1255
  }
1256
  else
1257
  {
1258
    return HAL_BUSY;
1259
  }
1260
}
1261
 
1262
/**
1263
  * @brief  Writes block(s) to a specified address in a card. The Data transfer
1264
  *         is managed by DMA mode.
1265
  * @note   This API should be followed by a check on the card state through
1266
  *         HAL_SD_GetCardState().
1267
  * @note   You could also check the DMA transfer process through the SD Tx
1268
  *         interrupt event.
1269
  * @param  hsd: Pointer to SD handle
1270
  * @param  pData: Pointer to the buffer that will contain the data to transmit
1271
  * @param  BlockAdd: Block Address where data will be written
1272
  * @param  NumberOfBlocks: Number of blocks to write
1273
  * @retval HAL status
1274
  */
1275
HAL_StatusTypeDef HAL_SD_WriteBlocks_DMA(SD_HandleTypeDef *hsd, uint8_t *pData, uint32_t BlockAdd, uint32_t NumberOfBlocks)
1276
{
1277
  SDIO_DataInitTypeDef config;
1278
  uint32_t errorstate;
1279
  uint32_t add = BlockAdd;
1280
 
1281
  if(NULL == pData)
1282
  {
1283
    hsd->ErrorCode |= HAL_SD_ERROR_PARAM;
1284
    return HAL_ERROR;
1285
  }
1286
 
1287
  if(hsd->State == HAL_SD_STATE_READY)
1288
  {
1289
    hsd->ErrorCode = HAL_SD_ERROR_NONE;
1290
 
1291
    if((add + NumberOfBlocks) > (hsd->SdCard.LogBlockNbr))
1292
    {
1293
      hsd->ErrorCode |= HAL_SD_ERROR_ADDR_OUT_OF_RANGE;
1294
      return HAL_ERROR;
1295
    }
1296
 
1297
    hsd->State = HAL_SD_STATE_BUSY;
1298
 
1299
    /* Initialize data control register */
1300
    hsd->Instance->DCTRL = 0U;
1301
 
1302
    /* Enable SD Error interrupts */
1303
    __HAL_SD_ENABLE_IT(hsd, (SDIO_IT_DCRCFAIL | SDIO_IT_DTIMEOUT | SDIO_IT_TXUNDERR | SDIO_IT_STBITERR));
1304
 
1305
    /* Set the DMA transfer complete callback */
1306
    hsd->hdmatx->XferCpltCallback = SD_DMATransmitCplt;
1307
 
1308
    /* Set the DMA error callback */
1309
    hsd->hdmatx->XferErrorCallback = SD_DMAError;
1310
 
1311
    /* Set the DMA Abort callback */
1312
    hsd->hdmatx->XferAbortCallback = NULL;
1313
 
1314
    if(hsd->SdCard.CardType != CARD_SDHC_SDXC)
1315
    {
1316
      add *= 512U;
1317
    }
1318
 
1319
    /* Write Blocks in Polling mode */
1320
    if(NumberOfBlocks > 1U)
1321
    {
1322
      hsd->Context = (SD_CONTEXT_WRITE_MULTIPLE_BLOCK | SD_CONTEXT_DMA);
1323
 
1324
      /* Write Multi Block command */
1325
      errorstate = SDMMC_CmdWriteMultiBlock(hsd->Instance, add);
1326
    }
1327
    else
1328
    {
1329
      hsd->Context = (SD_CONTEXT_WRITE_SINGLE_BLOCK | SD_CONTEXT_DMA);
1330
 
1331
      /* Write Single Block command */
1332
      errorstate = SDMMC_CmdWriteSingleBlock(hsd->Instance, add);
1333
    }
1334
    if(errorstate != HAL_SD_ERROR_NONE)
1335
    {
1336
      /* Clear all the static flags */
1337
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
1338
      hsd->ErrorCode |= errorstate;
1339
      hsd->State = HAL_SD_STATE_READY;
1340
      hsd->Context = SD_CONTEXT_NONE;
1341
      return HAL_ERROR;
1342
    }
1343
 
1344
    /* Enable SDIO DMA transfer */
1345
    __HAL_SD_DMA_ENABLE(hsd);
1346
 
1347
    /* Force DMA Direction */
1348
    hsd->hdmatx->Init.Direction = DMA_MEMORY_TO_PERIPH;
1349
    MODIFY_REG(hsd->hdmatx->Instance->CCR, DMA_CCR_DIR, hsd->hdmatx->Init.Direction);
1350
 
1351
    /* Enable the DMA Channel */
1352
    if(HAL_DMA_Start_IT(hsd->hdmatx, (uint32_t)pData, (uint32_t)&hsd->Instance->FIFO, (uint32_t)(BLOCKSIZE * NumberOfBlocks)/4U) != HAL_OK)
1353
    {
1354
      __HAL_SD_DISABLE_IT(hsd, (SDIO_IT_DCRCFAIL | SDIO_IT_DTIMEOUT | SDIO_IT_TXUNDERR | SDIO_IT_STBITERR));
1355
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
1356
      hsd->ErrorCode |= HAL_SD_ERROR_DMA;
1357
      hsd->State = HAL_SD_STATE_READY;
1358
      hsd->Context = SD_CONTEXT_NONE;
1359
      return HAL_ERROR;
1360
    }
1361
    else
1362
    {
1363
      /* Configure the SD DPSM (Data Path State Machine) */
1364
      config.DataTimeOut   = SDMMC_DATATIMEOUT;
1365
      config.DataLength    = BLOCKSIZE * NumberOfBlocks;
1366
      config.DataBlockSize = SDIO_DATABLOCK_SIZE_512B;
1367
      config.TransferDir   = SDIO_TRANSFER_DIR_TO_CARD;
1368
      config.TransferMode  = SDIO_TRANSFER_MODE_BLOCK;
1369
      config.DPSM          = SDIO_DPSM_ENABLE;
1370
      (void)SDIO_ConfigData(hsd->Instance, &config);
1371
 
1372
      return HAL_OK;
1373
    }
1374
  }
1375
  else
1376
  {
1377
    return HAL_BUSY;
1378
  }
1379
}
1380
 
1381
/**
1382
  * @brief  Erases the specified memory area of the given SD card.
1383
  * @note   This API should be followed by a check on the card state through
1384
  *         HAL_SD_GetCardState().
1385
  * @param  hsd: Pointer to SD handle
1386
  * @param  BlockStartAdd: Start Block address
1387
  * @param  BlockEndAdd: End Block address
1388
  * @retval HAL status
1389
  */
1390
HAL_StatusTypeDef HAL_SD_Erase(SD_HandleTypeDef *hsd, uint32_t BlockStartAdd, uint32_t BlockEndAdd)
1391
{
1392
  uint32_t errorstate;
1393
  uint32_t start_add = BlockStartAdd;
1394
  uint32_t end_add = BlockEndAdd;
1395
 
1396
  if(hsd->State == HAL_SD_STATE_READY)
1397
  {
1398
    hsd->ErrorCode = HAL_SD_ERROR_NONE;
1399
 
1400
    if(end_add < start_add)
1401
    {
1402
      hsd->ErrorCode |= HAL_SD_ERROR_PARAM;
1403
      return HAL_ERROR;
1404
    }
1405
 
1406
    if(end_add > (hsd->SdCard.LogBlockNbr))
1407
    {
1408
      hsd->ErrorCode |= HAL_SD_ERROR_ADDR_OUT_OF_RANGE;
1409
      return HAL_ERROR;
1410
    }
1411
 
1412
    hsd->State = HAL_SD_STATE_BUSY;
1413
 
1414
    /* Check if the card command class supports erase command */
1415
    if(((hsd->SdCard.Class) & SDIO_CCCC_ERASE) == 0U)
1416
    {
1417
      /* Clear all the static flags */
1418
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
1419
      hsd->ErrorCode |= HAL_SD_ERROR_REQUEST_NOT_APPLICABLE;
1420
      hsd->State = HAL_SD_STATE_READY;
1421
      return HAL_ERROR;
1422
    }
1423
 
1424
    if((SDIO_GetResponse(hsd->Instance, SDIO_RESP1) & SDMMC_CARD_LOCKED) == SDMMC_CARD_LOCKED)
1425
    {
1426
      /* Clear all the static flags */
1427
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
1428
      hsd->ErrorCode |= HAL_SD_ERROR_LOCK_UNLOCK_FAILED;
1429
      hsd->State = HAL_SD_STATE_READY;
1430
      return HAL_ERROR;
1431
    }
1432
 
1433
    /* Get start and end block for high capacity cards */
1434
    if(hsd->SdCard.CardType != CARD_SDHC_SDXC)
1435
    {
1436
      start_add *= 512U;
1437
      end_add   *= 512U;
1438
    }
1439
 
1440
    /* According to sd-card spec 1.0 ERASE_GROUP_START (CMD32) and erase_group_end(CMD33) */
1441
    if(hsd->SdCard.CardType != CARD_SECURED)
1442
    {
1443
      /* Send CMD32 SD_ERASE_GRP_START with argument as addr  */
1444
      errorstate = SDMMC_CmdSDEraseStartAdd(hsd->Instance, start_add);
1445
      if(errorstate != HAL_SD_ERROR_NONE)
1446
      {
1447
        /* Clear all the static flags */
1448
        __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
1449
        hsd->ErrorCode |= errorstate;
1450
        hsd->State = HAL_SD_STATE_READY;
1451
        return HAL_ERROR;
1452
      }
1453
 
1454
      /* Send CMD33 SD_ERASE_GRP_END with argument as addr  */
1455
      errorstate = SDMMC_CmdSDEraseEndAdd(hsd->Instance, end_add);
1456
      if(errorstate != HAL_SD_ERROR_NONE)
1457
      {
1458
        /* Clear all the static flags */
1459
        __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
1460
        hsd->ErrorCode |= errorstate;
1461
        hsd->State = HAL_SD_STATE_READY;
1462
        return HAL_ERROR;
1463
      }
1464
    }
1465
 
1466
    /* Send CMD38 ERASE */
1467
    errorstate = SDMMC_CmdErase(hsd->Instance);
1468
    if(errorstate != HAL_SD_ERROR_NONE)
1469
    {
1470
      /* Clear all the static flags */
1471
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
1472
      hsd->ErrorCode |= errorstate;
1473
      hsd->State = HAL_SD_STATE_READY;
1474
      return HAL_ERROR;
1475
    }
1476
 
1477
    hsd->State = HAL_SD_STATE_READY;
1478
 
1479
    return HAL_OK;
1480
  }
1481
  else
1482
  {
1483
    return HAL_BUSY;
1484
  }
1485
}
1486
 
1487
/**
1488
  * @brief  This function handles SD card interrupt request.
1489
  * @param  hsd: Pointer to SD handle
1490
  * @retval None
1491
  */
1492
void HAL_SD_IRQHandler(SD_HandleTypeDef *hsd)
1493
{
1494
  uint32_t errorstate;
1495
  uint32_t context = hsd->Context;
1496
 
1497
  /* Check for SDIO interrupt flags */
1498
  if((__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_RXFIFOHF) != RESET) && ((context & SD_CONTEXT_IT) != 0U))
1499
  {
1500
    SD_Read_IT(hsd);
1501
  }
1502
 
1503
  else if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_DATAEND) != RESET)
1504
  {
1505
    __HAL_SD_CLEAR_FLAG(hsd, SDIO_FLAG_DATAEND);
1506
 
1507
    __HAL_SD_DISABLE_IT(hsd, SDIO_IT_DATAEND  | SDIO_IT_DCRCFAIL | SDIO_IT_DTIMEOUT|\
1508
                             SDIO_IT_TXUNDERR | SDIO_IT_RXOVERR  | SDIO_IT_TXFIFOHE |\
1509
                             SDIO_IT_RXFIFOHF | SDIO_IT_STBITERR);
1510
 
1511
    hsd->Instance->DCTRL &= ~(SDIO_DCTRL_DTEN);
1512
 
1513
    if((context & SD_CONTEXT_IT) != 0U)
1514
    {
1515
      if(((context & SD_CONTEXT_READ_MULTIPLE_BLOCK) != 0U) || ((context & SD_CONTEXT_WRITE_MULTIPLE_BLOCK) != 0U))
1516
      {
1517
        errorstate = SDMMC_CmdStopTransfer(hsd->Instance);
1518
        if(errorstate != HAL_SD_ERROR_NONE)
1519
        {
1520
          hsd->ErrorCode |= errorstate;
1521
#if defined (USE_HAL_SD_REGISTER_CALLBACKS) && (USE_HAL_SD_REGISTER_CALLBACKS == 1U)
1522
          hsd->ErrorCallback(hsd);
1523
#else
1524
          HAL_SD_ErrorCallback(hsd);
1525
#endif /* USE_HAL_SD_REGISTER_CALLBACKS */
1526
        }
1527
      }
1528
 
1529
      /* Clear all the static flags */
1530
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_DATA_FLAGS);
1531
 
1532
      hsd->State = HAL_SD_STATE_READY;
1533
      hsd->Context = SD_CONTEXT_NONE;
1534
      if(((context & SD_CONTEXT_READ_SINGLE_BLOCK) != 0U) || ((context & SD_CONTEXT_READ_MULTIPLE_BLOCK) != 0U))
1535
      {
1536
#if defined (USE_HAL_SD_REGISTER_CALLBACKS) && (USE_HAL_SD_REGISTER_CALLBACKS == 1U)
1537
        hsd->RxCpltCallback(hsd);
1538
#else
1539
        HAL_SD_RxCpltCallback(hsd);
1540
#endif /* USE_HAL_SD_REGISTER_CALLBACKS */
1541
      }
1542
      else
1543
      {
1544
#if defined (USE_HAL_SD_REGISTER_CALLBACKS) && (USE_HAL_SD_REGISTER_CALLBACKS == 1U)
1545
        hsd->TxCpltCallback(hsd);
1546
#else
1547
        HAL_SD_TxCpltCallback(hsd);
1548
#endif /* USE_HAL_SD_REGISTER_CALLBACKS */
1549
      }
1550
    }
1551
    else if((context & SD_CONTEXT_DMA) != 0U)
1552
    {
1553
      if((context & SD_CONTEXT_WRITE_MULTIPLE_BLOCK) != 0U)
1554
      {
1555
        errorstate = SDMMC_CmdStopTransfer(hsd->Instance);
1556
        if(errorstate != HAL_SD_ERROR_NONE)
1557
        {
1558
          hsd->ErrorCode |= errorstate;
1559
#if defined (USE_HAL_SD_REGISTER_CALLBACKS) && (USE_HAL_SD_REGISTER_CALLBACKS == 1U)
1560
          hsd->ErrorCallback(hsd);
1561
#else
1562
          HAL_SD_ErrorCallback(hsd);
1563
#endif /* USE_HAL_SD_REGISTER_CALLBACKS */
1564
        }
1565
      }
1566
      if(((context & SD_CONTEXT_READ_SINGLE_BLOCK) == 0U) && ((context & SD_CONTEXT_READ_MULTIPLE_BLOCK) == 0U))
1567
      {
1568
        /* Disable the DMA transfer for transmit request by setting the DMAEN bit
1569
        in the SD DCTRL register */
1570
        hsd->Instance->DCTRL &= (uint32_t)~((uint32_t)SDIO_DCTRL_DMAEN);
1571
 
1572
        hsd->State = HAL_SD_STATE_READY;
1573
 
1574
#if defined (USE_HAL_SD_REGISTER_CALLBACKS) && (USE_HAL_SD_REGISTER_CALLBACKS == 1U)
1575
        hsd->TxCpltCallback(hsd);
1576
#else
1577
        HAL_SD_TxCpltCallback(hsd);
1578
#endif /* USE_HAL_SD_REGISTER_CALLBACKS */
1579
      }
1580
    }
1581
    else
1582
    {
1583
      /* Nothing to do */
1584
    }
1585
  }
1586
 
1587
  else if((__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_TXFIFOHE) != RESET) && ((context & SD_CONTEXT_IT) != 0U))
1588
  {
1589
    SD_Write_IT(hsd);
1590
  }
1591
 
1592
  else if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_DCRCFAIL | SDIO_FLAG_DTIMEOUT | SDIO_FLAG_RXOVERR | SDIO_FLAG_TXUNDERR | SDIO_FLAG_STBITERR) != RESET)
1593
  {
1594
    /* Set Error code */
1595
    if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_DCRCFAIL) != RESET)
1596
    {
1597
      hsd->ErrorCode |= HAL_SD_ERROR_DATA_CRC_FAIL;
1598
    }
1599
    if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_DTIMEOUT) != RESET)
1600
    {
1601
      hsd->ErrorCode |= HAL_SD_ERROR_DATA_TIMEOUT;
1602
    }
1603
    if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_RXOVERR) != RESET)
1604
    {
1605
      hsd->ErrorCode |= HAL_SD_ERROR_RX_OVERRUN;
1606
    }
1607
    if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_TXUNDERR) != RESET)
1608
    {
1609
      hsd->ErrorCode |= HAL_SD_ERROR_TX_UNDERRUN;
1610
    }
1611
    if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_STBITERR) != RESET)
1612
    {
1613
      hsd->ErrorCode |= HAL_SD_ERROR_DATA_TIMEOUT;
1614
    }
1615
 
1616
    /* Clear All flags */
1617
    __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_DATA_FLAGS | SDIO_FLAG_STBITERR);
1618
 
1619
    /* Disable all interrupts */
1620
    __HAL_SD_DISABLE_IT(hsd, SDIO_IT_DATAEND | SDIO_IT_DCRCFAIL | SDIO_IT_DTIMEOUT|\
1621
                             SDIO_IT_TXUNDERR| SDIO_IT_RXOVERR | SDIO_IT_STBITERR);
1622
 
1623
    hsd->ErrorCode |= SDMMC_CmdStopTransfer(hsd->Instance);
1624
 
1625
    if((context & SD_CONTEXT_IT) != 0U)
1626
    {
1627
      /* Set the SD state to ready to be able to start again the process */
1628
      hsd->State = HAL_SD_STATE_READY;
1629
      hsd->Context = SD_CONTEXT_NONE;
1630
#if defined (USE_HAL_SD_REGISTER_CALLBACKS) && (USE_HAL_SD_REGISTER_CALLBACKS == 1U)
1631
      hsd->ErrorCallback(hsd);
1632
#else
1633
      HAL_SD_ErrorCallback(hsd);
1634
#endif /* USE_HAL_SD_REGISTER_CALLBACKS */
1635
    }
1636
    else if((context & SD_CONTEXT_DMA) != 0U)
1637
    {
1638
      /* Abort the SD DMA channel */
1639
      if(((context & SD_CONTEXT_WRITE_SINGLE_BLOCK) != 0U) || ((context & SD_CONTEXT_WRITE_MULTIPLE_BLOCK) != 0U))
1640
      {
1641
        /* Set the DMA Tx abort callback */
1642
        hsd->hdmatx->XferAbortCallback = SD_DMATxAbort;
1643
        /* Abort DMA in IT mode */
1644
        if(HAL_DMA_Abort_IT(hsd->hdmatx) != HAL_OK)
1645
        {
1646
          SD_DMATxAbort(hsd->hdmatx);
1647
        }
1648
      }
1649
      else if(((context & SD_CONTEXT_READ_SINGLE_BLOCK) != 0U) || ((context & SD_CONTEXT_READ_MULTIPLE_BLOCK) != 0U))
1650
      {
1651
        /* Set the DMA Rx abort callback */
1652
        hsd->hdmarx->XferAbortCallback = SD_DMARxAbort;
1653
        /* Abort DMA in IT mode */
1654
        if(HAL_DMA_Abort_IT(hsd->hdmarx) != HAL_OK)
1655
        {
1656
          SD_DMARxAbort(hsd->hdmarx);
1657
        }
1658
      }
1659
      else
1660
      {
1661
        hsd->ErrorCode = HAL_SD_ERROR_NONE;
1662
        hsd->State = HAL_SD_STATE_READY;
1663
        hsd->Context = SD_CONTEXT_NONE;
1664
#if defined (USE_HAL_SD_REGISTER_CALLBACKS) && (USE_HAL_SD_REGISTER_CALLBACKS == 1U)
1665
        hsd->AbortCpltCallback(hsd);
1666
#else
1667
        HAL_SD_AbortCallback(hsd);
1668
#endif /* USE_HAL_SD_REGISTER_CALLBACKS */
1669
      }
1670
    }
1671
    else
1672
    {
1673
      /* Nothing to do */
1674
    }
1675
  }
1676
  else
1677
  {
1678
    /* Nothing to do */
1679
  }
1680
}
1681
 
1682
/**
1683
  * @brief return the SD state
1684
  * @param hsd: Pointer to sd handle
1685
  * @retval HAL state
1686
  */
1687
HAL_SD_StateTypeDef HAL_SD_GetState(SD_HandleTypeDef *hsd)
1688
{
1689
  return hsd->State;
1690
}
1691
 
1692
/**
1693
* @brief  Return the SD error code
1694
* @param  hsd : Pointer to a SD_HandleTypeDef structure that contains
1695
  *              the configuration information.
1696
* @retval SD Error Code
1697
*/
1698
uint32_t HAL_SD_GetError(SD_HandleTypeDef *hsd)
1699
{
1700
  return hsd->ErrorCode;
1701
}
1702
 
1703
/**
1704
  * @brief Tx Transfer completed callbacks
1705
  * @param hsd: Pointer to SD handle
1706
  * @retval None
1707
  */
1708
__weak void HAL_SD_TxCpltCallback(SD_HandleTypeDef *hsd)
1709
{
1710
  /* Prevent unused argument(s) compilation warning */
1711
  UNUSED(hsd);
1712
 
1713
  /* NOTE : This function should not be modified, when the callback is needed,
1714
            the HAL_SD_TxCpltCallback can be implemented in the user file
1715
   */
1716
}
1717
 
1718
/**
1719
  * @brief Rx Transfer completed callbacks
1720
  * @param hsd: Pointer SD handle
1721
  * @retval None
1722
  */
1723
__weak void HAL_SD_RxCpltCallback(SD_HandleTypeDef *hsd)
1724
{
1725
  /* Prevent unused argument(s) compilation warning */
1726
  UNUSED(hsd);
1727
 
1728
  /* NOTE : This function should not be modified, when the callback is needed,
1729
            the HAL_SD_RxCpltCallback can be implemented in the user file
1730
   */
1731
}
1732
 
1733
/**
1734
  * @brief SD error callbacks
1735
  * @param hsd: Pointer SD handle
1736
  * @retval None
1737
  */
1738
__weak void HAL_SD_ErrorCallback(SD_HandleTypeDef *hsd)
1739
{
1740
  /* Prevent unused argument(s) compilation warning */
1741
  UNUSED(hsd);
1742
 
1743
  /* NOTE : This function should not be modified, when the callback is needed,
1744
            the HAL_SD_ErrorCallback can be implemented in the user file
1745
   */
1746
}
1747
 
1748
/**
1749
  * @brief SD Abort callbacks
1750
  * @param hsd: Pointer SD handle
1751
  * @retval None
1752
  */
1753
__weak void HAL_SD_AbortCallback(SD_HandleTypeDef *hsd)
1754
{
1755
  /* Prevent unused argument(s) compilation warning */
1756
  UNUSED(hsd);
1757
 
1758
  /* NOTE : This function should not be modified, when the callback is needed,
1759
            the HAL_SD_AbortCallback can be implemented in the user file
1760
   */
1761
}
1762
 
1763
#if defined (USE_HAL_SD_REGISTER_CALLBACKS) && (USE_HAL_SD_REGISTER_CALLBACKS == 1U)
1764
/**
1765
  * @brief  Register a User SD Callback
1766
  *         To be used instead of the weak (surcharged) predefined callback
1767
  * @param hsd : SD handle
1768
  * @param CallbackID : ID of the callback to be registered
1769
  *        This parameter can be one of the following values:
1770
  *          @arg @ref HAL_SD_TX_CPLT_CB_ID    SD Tx Complete Callback ID
1771
  *          @arg @ref HAL_SD_RX_CPLT_CB_ID    SD Rx Complete Callback ID
1772
  *          @arg @ref HAL_SD_ERROR_CB_ID      SD Error Callback ID
1773
  *          @arg @ref HAL_SD_ABORT_CB_ID      SD Abort Callback ID
1774
  *          @arg @ref HAL_SD_MSP_INIT_CB_ID   SD MspInit Callback ID
1775
  *          @arg @ref HAL_SD_MSP_DEINIT_CB_ID SD MspDeInit Callback ID
1776
  * @param pCallback : pointer to the Callback function
1777
  * @retval status
1778
  */
1779
HAL_StatusTypeDef HAL_SD_RegisterCallback(SD_HandleTypeDef *hsd, HAL_SD_CallbackIDTypeDef CallbackID, pSD_CallbackTypeDef pCallback)
1780
{
1781
  HAL_StatusTypeDef status = HAL_OK;
1782
 
1783
  if(pCallback == NULL)
1784
  {
1785
    /* Update the error code */
1786
    hsd->ErrorCode |= HAL_SD_ERROR_INVALID_CALLBACK;
1787
    return HAL_ERROR;
1788
  }
1789
 
1790
  /* Process locked */
1791
  __HAL_LOCK(hsd);
1792
 
1793
  if(hsd->State == HAL_SD_STATE_READY)
1794
  {
1795
    switch (CallbackID)
1796
    {
1797
    case HAL_SD_TX_CPLT_CB_ID :
1798
      hsd->TxCpltCallback = pCallback;
1799
      break;
1800
    case HAL_SD_RX_CPLT_CB_ID :
1801
      hsd->RxCpltCallback = pCallback;
1802
      break;
1803
    case HAL_SD_ERROR_CB_ID :
1804
      hsd->ErrorCallback = pCallback;
1805
      break;
1806
    case HAL_SD_ABORT_CB_ID :
1807
      hsd->AbortCpltCallback = pCallback;
1808
      break;
1809
    case HAL_SD_MSP_INIT_CB_ID :
1810
      hsd->MspInitCallback = pCallback;
1811
      break;
1812
    case HAL_SD_MSP_DEINIT_CB_ID :
1813
      hsd->MspDeInitCallback = pCallback;
1814
      break;
1815
    default :
1816
      /* Update the error code */
1817
      hsd->ErrorCode |= HAL_SD_ERROR_INVALID_CALLBACK;
1818
      /* update return status */
1819
      status =  HAL_ERROR;
1820
      break;
1821
    }
1822
  }
1823
  else if (hsd->State == HAL_SD_STATE_RESET)
1824
  {
1825
    switch (CallbackID)
1826
    {
1827
    case HAL_SD_MSP_INIT_CB_ID :
1828
      hsd->MspInitCallback = pCallback;
1829
      break;
1830
    case HAL_SD_MSP_DEINIT_CB_ID :
1831
      hsd->MspDeInitCallback = pCallback;
1832
      break;
1833
    default :
1834
      /* Update the error code */
1835
      hsd->ErrorCode |= HAL_SD_ERROR_INVALID_CALLBACK;
1836
      /* update return status */
1837
      status =  HAL_ERROR;
1838
      break;
1839
    }
1840
  }
1841
  else
1842
  {
1843
    /* Update the error code */
1844
    hsd->ErrorCode |= HAL_SD_ERROR_INVALID_CALLBACK;
1845
    /* update return status */
1846
    status =  HAL_ERROR;
1847
  }
1848
 
1849
  /* Release Lock */
1850
  __HAL_UNLOCK(hsd);
1851
  return status;
1852
}
1853
 
1854
/**
1855
  * @brief  Unregister a User SD Callback
1856
  *         SD Callback is redirected to the weak (surcharged) predefined callback
1857
  * @param hsd : SD handle
1858
  * @param CallbackID : ID of the callback to be unregistered
1859
  *        This parameter can be one of the following values:
1860
  *          @arg @ref HAL_SD_TX_CPLT_CB_ID    SD Tx Complete Callback ID
1861
  *          @arg @ref HAL_SD_RX_CPLT_CB_ID    SD Rx Complete Callback ID
1862
  *          @arg @ref HAL_SD_ERROR_CB_ID      SD Error Callback ID
1863
  *          @arg @ref HAL_SD_ABORT_CB_ID      SD Abort Callback ID
1864
  *          @arg @ref HAL_SD_MSP_INIT_CB_ID   SD MspInit Callback ID
1865
  *          @arg @ref HAL_SD_MSP_DEINIT_CB_ID SD MspDeInit Callback ID
1866
  * @retval status
1867
  */
1868
HAL_StatusTypeDef HAL_SD_UnRegisterCallback(SD_HandleTypeDef *hsd, HAL_SD_CallbackIDTypeDef CallbackID)
1869
{
1870
  HAL_StatusTypeDef status = HAL_OK;
1871
 
1872
  /* Process locked */
1873
  __HAL_LOCK(hsd);
1874
 
1875
  if(hsd->State == HAL_SD_STATE_READY)
1876
  {
1877
    switch (CallbackID)
1878
    {
1879
    case HAL_SD_TX_CPLT_CB_ID :
1880
      hsd->TxCpltCallback = HAL_SD_TxCpltCallback;
1881
      break;
1882
    case HAL_SD_RX_CPLT_CB_ID :
1883
      hsd->RxCpltCallback = HAL_SD_RxCpltCallback;
1884
      break;
1885
    case HAL_SD_ERROR_CB_ID :
1886
      hsd->ErrorCallback = HAL_SD_ErrorCallback;
1887
      break;
1888
    case HAL_SD_ABORT_CB_ID :
1889
      hsd->AbortCpltCallback = HAL_SD_AbortCallback;
1890
      break;
1891
    case HAL_SD_MSP_INIT_CB_ID :
1892
      hsd->MspInitCallback = HAL_SD_MspInit;
1893
      break;
1894
    case HAL_SD_MSP_DEINIT_CB_ID :
1895
      hsd->MspDeInitCallback = HAL_SD_MspDeInit;
1896
      break;
1897
    default :
1898
      /* Update the error code */
1899
      hsd->ErrorCode |= HAL_SD_ERROR_INVALID_CALLBACK;
1900
      /* update return status */
1901
      status =  HAL_ERROR;
1902
      break;
1903
    }
1904
  }
1905
  else if (hsd->State == HAL_SD_STATE_RESET)
1906
  {
1907
    switch (CallbackID)
1908
    {
1909
    case HAL_SD_MSP_INIT_CB_ID :
1910
      hsd->MspInitCallback = HAL_SD_MspInit;
1911
      break;
1912
    case HAL_SD_MSP_DEINIT_CB_ID :
1913
      hsd->MspDeInitCallback = HAL_SD_MspDeInit;
1914
      break;
1915
    default :
1916
      /* Update the error code */
1917
      hsd->ErrorCode |= HAL_SD_ERROR_INVALID_CALLBACK;
1918
      /* update return status */
1919
      status =  HAL_ERROR;
1920
      break;
1921
    }
1922
  }
1923
  else
1924
  {
1925
    /* Update the error code */
1926
    hsd->ErrorCode |= HAL_SD_ERROR_INVALID_CALLBACK;
1927
    /* update return status */
1928
    status =  HAL_ERROR;
1929
  }
1930
 
1931
  /* Release Lock */
1932
  __HAL_UNLOCK(hsd);
1933
  return status;
1934
}
1935
#endif /* USE_HAL_SD_REGISTER_CALLBACKS */
1936
 
1937
/**
1938
  * @}
1939
  */
1940
 
1941
/** @addtogroup SD_Exported_Functions_Group3
1942
 *  @brief   management functions
1943
 *
1944
@verbatim
1945
  ==============================================================================
1946
                      ##### Peripheral Control functions #####
1947
  ==============================================================================
1948
  [..]
1949
    This subsection provides a set of functions allowing to control the SD card
1950
    operations and get the related information
1951
 
1952
@endverbatim
1953
  * @{
1954
  */
1955
 
1956
/**
1957
  * @brief  Returns information the information of the card which are stored on
1958
  *         the CID register.
1959
  * @param  hsd: Pointer to SD handle
1960
  * @param  pCID: Pointer to a HAL_SD_CardCIDTypeDef structure that  
1961
  *         contains all CID register parameters
1962
  * @retval HAL status
1963
  */
1964
HAL_StatusTypeDef HAL_SD_GetCardCID(SD_HandleTypeDef *hsd, HAL_SD_CardCIDTypeDef *pCID)
1965
{
1966
  pCID->ManufacturerID = (uint8_t)((hsd->CID[0] & 0xFF000000U) >> 24U);
1967
 
1968
  pCID->OEM_AppliID = (uint16_t)((hsd->CID[0] & 0x00FFFF00U) >> 8U);
1969
 
1970
  pCID->ProdName1 = (((hsd->CID[0] & 0x000000FFU) << 24U) | ((hsd->CID[1] & 0xFFFFFF00U) >> 8U));
1971
 
1972
  pCID->ProdName2 = (uint8_t)(hsd->CID[1] & 0x000000FFU);
1973
 
1974
  pCID->ProdRev = (uint8_t)((hsd->CID[2] & 0xFF000000U) >> 24U);
1975
 
1976
  pCID->ProdSN = (((hsd->CID[2] & 0x00FFFFFFU) << 8U) | ((hsd->CID[3] & 0xFF000000U) >> 24U));
1977
 
1978
  pCID->Reserved1 = (uint8_t)((hsd->CID[3] & 0x00F00000U) >> 20U);
1979
 
1980
  pCID->ManufactDate = (uint16_t)((hsd->CID[3] & 0x000FFF00U) >> 8U);
1981
 
1982
  pCID->CID_CRC = (uint8_t)((hsd->CID[3] & 0x000000FEU) >> 1U);
1983
 
1984
  pCID->Reserved2 = 1U;
1985
 
1986
  return HAL_OK;
1987
}
1988
 
1989
/**
1990
  * @brief  Returns information the information of the card which are stored on
1991
  *         the CSD register.
1992
  * @param  hsd: Pointer to SD handle
1993
  * @param  pCSD: Pointer to a HAL_SD_CardCSDTypeDef structure that  
1994
  *         contains all CSD register parameters
1995
  * @retval HAL status
1996
  */
1997
HAL_StatusTypeDef HAL_SD_GetCardCSD(SD_HandleTypeDef *hsd, HAL_SD_CardCSDTypeDef *pCSD)
1998
{
1999
  pCSD->CSDStruct = (uint8_t)((hsd->CSD[0] & 0xC0000000U) >> 30U);
2000
 
2001
  pCSD->SysSpecVersion = (uint8_t)((hsd->CSD[0] & 0x3C000000U) >> 26U);
2002
 
2003
  pCSD->Reserved1 = (uint8_t)((hsd->CSD[0] & 0x03000000U) >> 24U);
2004
 
2005
  pCSD->TAAC = (uint8_t)((hsd->CSD[0] & 0x00FF0000U) >> 16U);
2006
 
2007
  pCSD->NSAC = (uint8_t)((hsd->CSD[0] & 0x0000FF00U) >> 8U);
2008
 
2009
  pCSD->MaxBusClkFrec = (uint8_t)(hsd->CSD[0] & 0x000000FFU);
2010
 
2011
  pCSD->CardComdClasses = (uint16_t)((hsd->CSD[1] & 0xFFF00000U) >> 20U);
2012
 
2013
  pCSD->RdBlockLen = (uint8_t)((hsd->CSD[1] & 0x000F0000U) >> 16U);
2014
 
2015
  pCSD->PartBlockRead   = (uint8_t)((hsd->CSD[1] & 0x00008000U) >> 15U);
2016
 
2017
  pCSD->WrBlockMisalign = (uint8_t)((hsd->CSD[1] & 0x00004000U) >> 14U);
2018
 
2019
  pCSD->RdBlockMisalign = (uint8_t)((hsd->CSD[1] & 0x00002000U) >> 13U);
2020
 
2021
  pCSD->DSRImpl = (uint8_t)((hsd->CSD[1] & 0x00001000U) >> 12U);
2022
 
2023
  pCSD->Reserved2 = 0U; /*!< Reserved */
2024
 
2025
  if(hsd->SdCard.CardType == CARD_SDSC)
2026
  {
2027
    pCSD->DeviceSize = (((hsd->CSD[1] & 0x000003FFU) << 2U) | ((hsd->CSD[2] & 0xC0000000U) >> 30U));
2028
 
2029
    pCSD->MaxRdCurrentVDDMin = (uint8_t)((hsd->CSD[2] & 0x38000000U) >> 27U);
2030
 
2031
    pCSD->MaxRdCurrentVDDMax = (uint8_t)((hsd->CSD[2] & 0x07000000U) >> 24U);
2032
 
2033
    pCSD->MaxWrCurrentVDDMin = (uint8_t)((hsd->CSD[2] & 0x00E00000U) >> 21U);
2034
 
2035
    pCSD->MaxWrCurrentVDDMax = (uint8_t)((hsd->CSD[2] & 0x001C0000U) >> 18U);
2036
 
2037
    pCSD->DeviceSizeMul = (uint8_t)((hsd->CSD[2] & 0x00038000U) >> 15U);
2038
 
2039
    hsd->SdCard.BlockNbr  = (pCSD->DeviceSize + 1U) ;
2040
    hsd->SdCard.BlockNbr *= (1UL << ((pCSD->DeviceSizeMul & 0x07U) + 2U));
2041
    hsd->SdCard.BlockSize = (1UL << (pCSD->RdBlockLen & 0x0FU));
2042
 
2043
    hsd->SdCard.LogBlockNbr =  (hsd->SdCard.BlockNbr) * ((hsd->SdCard.BlockSize) / 512U);
2044
    hsd->SdCard.LogBlockSize = 512U;
2045
  }
2046
  else if(hsd->SdCard.CardType == CARD_SDHC_SDXC)
2047
  {
2048
    /* Byte 7 */
2049
    pCSD->DeviceSize = (((hsd->CSD[1] & 0x0000003FU) << 16U) | ((hsd->CSD[2] & 0xFFFF0000U) >> 16U));
2050
 
2051
    hsd->SdCard.BlockNbr = ((pCSD->DeviceSize + 1U) * 1024U);
2052
    hsd->SdCard.LogBlockNbr = hsd->SdCard.BlockNbr;
2053
    hsd->SdCard.BlockSize = 512U;
2054
    hsd->SdCard.LogBlockSize = hsd->SdCard.BlockSize;
2055
  }
2056
  else
2057
  {
2058
    /* Clear all the static flags */
2059
    __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
2060
    hsd->ErrorCode |= HAL_SD_ERROR_UNSUPPORTED_FEATURE;
2061
    hsd->State = HAL_SD_STATE_READY;
2062
    return HAL_ERROR;
2063
  }
2064
 
2065
  pCSD->EraseGrSize = (uint8_t)((hsd->CSD[2] & 0x00004000U) >> 14U);
2066
 
2067
  pCSD->EraseGrMul = (uint8_t)((hsd->CSD[2] & 0x00003F80U) >> 7U);
2068
 
2069
  pCSD->WrProtectGrSize = (uint8_t)(hsd->CSD[2] & 0x0000007FU);
2070
 
2071
  pCSD->WrProtectGrEnable = (uint8_t)((hsd->CSD[3] & 0x80000000U) >> 31U);
2072
 
2073
  pCSD->ManDeflECC = (uint8_t)((hsd->CSD[3] & 0x60000000U) >> 29U);
2074
 
2075
  pCSD->WrSpeedFact = (uint8_t)((hsd->CSD[3] & 0x1C000000U) >> 26U);
2076
 
2077
  pCSD->MaxWrBlockLen= (uint8_t)((hsd->CSD[3] & 0x03C00000U) >> 22U);
2078
 
2079
  pCSD->WriteBlockPaPartial = (uint8_t)((hsd->CSD[3] & 0x00200000U) >> 21U);
2080
 
2081
  pCSD->Reserved3 = 0;
2082
 
2083
  pCSD->ContentProtectAppli = (uint8_t)((hsd->CSD[3] & 0x00010000U) >> 16U);
2084
 
2085
  pCSD->FileFormatGroup = (uint8_t)((hsd->CSD[3] & 0x00008000U) >> 15U);
2086
 
2087
  pCSD->CopyFlag = (uint8_t)((hsd->CSD[3] & 0x00004000U) >> 14U);
2088
 
2089
  pCSD->PermWrProtect = (uint8_t)((hsd->CSD[3] & 0x00002000U) >> 13U);
2090
 
2091
  pCSD->TempWrProtect = (uint8_t)((hsd->CSD[3] & 0x00001000U) >> 12U);
2092
 
2093
  pCSD->FileFormat = (uint8_t)((hsd->CSD[3] & 0x00000C00U) >> 10U);
2094
 
2095
  pCSD->ECC= (uint8_t)((hsd->CSD[3] & 0x00000300U) >> 8U);
2096
 
2097
  pCSD->CSD_CRC = (uint8_t)((hsd->CSD[3] & 0x000000FEU) >> 1U);
2098
 
2099
  pCSD->Reserved4 = 1;
2100
 
2101
  return HAL_OK;
2102
}
2103
 
2104
/**
2105
  * @brief  Gets the SD status info.
2106
  * @param  hsd: Pointer to SD handle
2107
  * @param  pStatus: Pointer to the HAL_SD_CardStatusTypeDef structure that
2108
  *         will contain the SD card status information
2109
  * @retval HAL status
2110
  */
2111
HAL_StatusTypeDef HAL_SD_GetCardStatus(SD_HandleTypeDef *hsd, HAL_SD_CardStatusTypeDef *pStatus)
2112
{
2113
  uint32_t sd_status[16];
2114
  uint32_t errorstate;
2115
  HAL_StatusTypeDef status = HAL_OK;
2116
 
2117
  errorstate = SD_SendSDStatus(hsd, sd_status);
2118
  if(errorstate != HAL_SD_ERROR_NONE)
2119
  {
2120
    /* Clear all the static flags */
2121
    __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
2122
    hsd->ErrorCode |= errorstate;
2123
    hsd->State = HAL_SD_STATE_READY;
2124
    status = HAL_ERROR;
2125
  }
2126
  else
2127
  {
2128
    pStatus->DataBusWidth = (uint8_t)((sd_status[0] & 0xC0U) >> 6U);
2129
 
2130
    pStatus->SecuredMode = (uint8_t)((sd_status[0] & 0x20U) >> 5U);
2131
 
2132
    pStatus->CardType = (uint16_t)(((sd_status[0] & 0x00FF0000U) >> 8U) | ((sd_status[0] & 0xFF000000U) >> 24U));
2133
 
2134
    pStatus->ProtectedAreaSize = (((sd_status[1] & 0xFFU) << 24U)    | ((sd_status[1] & 0xFF00U) << 8U) |
2135
                                  ((sd_status[1] & 0xFF0000U) >> 8U) | ((sd_status[1] & 0xFF000000U) >> 24U));
2136
 
2137
    pStatus->SpeedClass = (uint8_t)(sd_status[2] & 0xFFU);
2138
 
2139
    pStatus->PerformanceMove = (uint8_t)((sd_status[2] & 0xFF00U) >> 8U);
2140
 
2141
    pStatus->AllocationUnitSize = (uint8_t)((sd_status[2] & 0xF00000U) >> 20U);
2142
 
2143
    pStatus->EraseSize = (uint16_t)(((sd_status[2] & 0xFF000000U) >> 16U) | (sd_status[3] & 0xFFU));
2144
 
2145
    pStatus->EraseTimeout = (uint8_t)((sd_status[3] & 0xFC00U) >> 10U);
2146
 
2147
    pStatus->EraseOffset = (uint8_t)((sd_status[3] & 0x0300U) >> 8U);
2148
  }
2149
 
2150
  /* Set Block Size for Card */
2151
  errorstate = SDMMC_CmdBlockLength(hsd->Instance, BLOCKSIZE);
2152
  if(errorstate != HAL_SD_ERROR_NONE)
2153
  {
2154
    /* Clear all the static flags */
2155
    __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
2156
    hsd->ErrorCode = errorstate;
2157
    hsd->State = HAL_SD_STATE_READY;
2158
    status = HAL_ERROR;
2159
  }
2160
 
2161
  return status;
2162
}
2163
 
2164
/**
2165
  * @brief  Gets the SD card info.
2166
  * @param  hsd: Pointer to SD handle
2167
  * @param  pCardInfo: Pointer to the HAL_SD_CardInfoTypeDef structure that
2168
  *         will contain the SD card status information
2169
  * @retval HAL status
2170
  */
2171
HAL_StatusTypeDef HAL_SD_GetCardInfo(SD_HandleTypeDef *hsd, HAL_SD_CardInfoTypeDef *pCardInfo)
2172
{
2173
  pCardInfo->CardType     = (uint32_t)(hsd->SdCard.CardType);
2174
  pCardInfo->CardVersion  = (uint32_t)(hsd->SdCard.CardVersion);
2175
  pCardInfo->Class        = (uint32_t)(hsd->SdCard.Class);
2176
  pCardInfo->RelCardAdd   = (uint32_t)(hsd->SdCard.RelCardAdd);
2177
  pCardInfo->BlockNbr     = (uint32_t)(hsd->SdCard.BlockNbr);
2178
  pCardInfo->BlockSize    = (uint32_t)(hsd->SdCard.BlockSize);
2179
  pCardInfo->LogBlockNbr  = (uint32_t)(hsd->SdCard.LogBlockNbr);
2180
  pCardInfo->LogBlockSize = (uint32_t)(hsd->SdCard.LogBlockSize);
2181
 
2182
  return HAL_OK;
2183
}
2184
 
2185
/**
2186
  * @brief  Enables wide bus operation for the requested card if supported by
2187
  *         card.
2188
  * @param  hsd: Pointer to SD handle
2189
  * @param  WideMode: Specifies the SD card wide bus mode
2190
  *          This parameter can be one of the following values:
2191
  *            @arg SDIO_BUS_WIDE_8B: 8-bit data transfer
2192
  *            @arg SDIO_BUS_WIDE_4B: 4-bit data transfer
2193
  *            @arg SDIO_BUS_WIDE_1B: 1-bit data transfer
2194
  * @retval HAL status
2195
  */
2196
HAL_StatusTypeDef HAL_SD_ConfigWideBusOperation(SD_HandleTypeDef *hsd, uint32_t WideMode)
2197
{
2198
  SDIO_InitTypeDef Init;
2199
  uint32_t errorstate;
2200
  HAL_StatusTypeDef status = HAL_OK;
2201
 
2202
  /* Check the parameters */
2203
  assert_param(IS_SDIO_BUS_WIDE(WideMode));
2204
 
2205
  /* Change State */
2206
  hsd->State = HAL_SD_STATE_BUSY;
2207
 
2208
  if(hsd->SdCard.CardType != CARD_SECURED)
2209
  {
2210
    if(WideMode == SDIO_BUS_WIDE_8B)
2211
    {
2212
      hsd->ErrorCode |= HAL_SD_ERROR_UNSUPPORTED_FEATURE;
2213
    }
2214
    else if(WideMode == SDIO_BUS_WIDE_4B)
2215
    {
2216
      errorstate = SD_WideBus_Enable(hsd);
2217
 
2218
      hsd->ErrorCode |= errorstate;
2219
    }
2220
    else if(WideMode == SDIO_BUS_WIDE_1B)
2221
    {
2222
      errorstate = SD_WideBus_Disable(hsd);
2223
 
2224
      hsd->ErrorCode |= errorstate;
2225
    }
2226
    else
2227
    {
2228
      /* WideMode is not a valid argument*/
2229
      hsd->ErrorCode |= HAL_SD_ERROR_PARAM;
2230
    }
2231
  }
2232
  else
2233
  {
2234
    /* MMC Card does not support this feature */
2235
    hsd->ErrorCode |= HAL_SD_ERROR_UNSUPPORTED_FEATURE;
2236
  }
2237
 
2238
  if(hsd->ErrorCode != HAL_SD_ERROR_NONE)
2239
  {
2240
    /* Clear all the static flags */
2241
    __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
2242
    hsd->State = HAL_SD_STATE_READY;
2243
    status = HAL_ERROR;
2244
  }
2245
  else
2246
  {
2247
    /* Configure the SDIO peripheral */
2248
    Init.ClockEdge           = hsd->Init.ClockEdge;
2249
    Init.ClockBypass         = hsd->Init.ClockBypass;
2250
    Init.ClockPowerSave      = hsd->Init.ClockPowerSave;
2251
    Init.BusWide             = WideMode;
2252
    Init.HardwareFlowControl = hsd->Init.HardwareFlowControl;
2253
    Init.ClockDiv            = hsd->Init.ClockDiv;
2254
    (void)SDIO_Init(hsd->Instance, Init);
2255
  }
2256
 
2257
  /* Set Block Size for Card */
2258
  errorstate = SDMMC_CmdBlockLength(hsd->Instance, BLOCKSIZE);
2259
  if(errorstate != HAL_SD_ERROR_NONE)
2260
  {
2261
    /* Clear all the static flags */
2262
    __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
2263
    hsd->ErrorCode |= errorstate;
2264
    status = HAL_ERROR;
2265
  }
2266
 
2267
  /* Change State */
2268
  hsd->State = HAL_SD_STATE_READY;
2269
 
2270
  return status;
2271
}
2272
 
2273
/**
2274
  * @brief  Gets the current sd card data state.
2275
  * @param  hsd: pointer to SD handle
2276
  * @retval Card state
2277
  */
2278
HAL_SD_CardStateTypeDef HAL_SD_GetCardState(SD_HandleTypeDef *hsd)
2279
{
2280
  uint32_t cardstate;
2281
  uint32_t errorstate;
2282
  uint32_t resp1 = 0;
2283
 
2284
  errorstate = SD_SendStatus(hsd, &resp1);
2285
  if(errorstate != HAL_SD_ERROR_NONE)
2286
  {
2287
    hsd->ErrorCode |= errorstate;
2288
  }
2289
 
2290
  cardstate = ((resp1 >> 9U) & 0x0FU);
2291
 
2292
  return (HAL_SD_CardStateTypeDef)cardstate;
2293
}
2294
 
2295
/**
2296
  * @brief  Abort the current transfer and disable the SD.
2297
  * @param  hsd: pointer to a SD_HandleTypeDef structure that contains
2298
  *                the configuration information for SD module.
2299
  * @retval HAL status
2300
  */
2301
HAL_StatusTypeDef HAL_SD_Abort(SD_HandleTypeDef *hsd)
2302
{
2303
  HAL_SD_CardStateTypeDef CardState;
2304
  uint32_t context = hsd->Context;
2305
 
2306
  /* DIsable All interrupts */
2307
  __HAL_SD_DISABLE_IT(hsd, SDIO_IT_DATAEND | SDIO_IT_DCRCFAIL | SDIO_IT_DTIMEOUT|\
2308
                           SDIO_IT_TXUNDERR| SDIO_IT_RXOVERR);
2309
 
2310
  /* Clear All flags */
2311
  __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_DATA_FLAGS);
2312
 
2313
  CLEAR_BIT(hsd->Instance->DCTRL, SDIO_DCTRL_DTEN);
2314
 
2315
  if ((context & SD_CONTEXT_DMA) != 0U)
2316
  {
2317
    /* Disable the SD DMA request */
2318
    hsd->Instance->DCTRL &= (uint32_t)~((uint32_t)SDIO_DCTRL_DMAEN);
2319
 
2320
    /* Abort the SD DMA Tx channel */
2321
    if (((context & SD_CONTEXT_WRITE_SINGLE_BLOCK) != 0U) || ((context & SD_CONTEXT_WRITE_MULTIPLE_BLOCK) != 0U))
2322
    {
2323
      if(HAL_DMA_Abort(hsd->hdmatx) != HAL_OK)
2324
      {
2325
        hsd->ErrorCode |= HAL_SD_ERROR_DMA;
2326
      }
2327
    }
2328
    /* Abort the SD DMA Rx channel */
2329
    else if (((context & SD_CONTEXT_READ_SINGLE_BLOCK) != 0U) || ((context & SD_CONTEXT_READ_MULTIPLE_BLOCK) != 0U))
2330
    {
2331
      if(HAL_DMA_Abort(hsd->hdmarx) != HAL_OK)
2332
      {
2333
        hsd->ErrorCode |= HAL_SD_ERROR_DMA;
2334
      }
2335
    }
2336
    else
2337
    {
2338
      /* Nothing to do */
2339
    }
2340
  }
2341
 
2342
  hsd->State = HAL_SD_STATE_READY;
2343
 
2344
  /* Initialize the SD operation */
2345
  hsd->Context = SD_CONTEXT_NONE;
2346
 
2347
  CardState = HAL_SD_GetCardState(hsd);
2348
  if((CardState == HAL_SD_CARD_RECEIVING) || (CardState == HAL_SD_CARD_SENDING))
2349
  {
2350
    hsd->ErrorCode = SDMMC_CmdStopTransfer(hsd->Instance);
2351
  }
2352
  if(hsd->ErrorCode != HAL_SD_ERROR_NONE)
2353
  {
2354
    return HAL_ERROR;
2355
  }
2356
  return HAL_OK;
2357
}
2358
 
2359
/**
2360
  * @brief  Abort the current transfer and disable the SD (IT mode).
2361
  * @param  hsd: pointer to a SD_HandleTypeDef structure that contains
2362
  *                the configuration information for SD module.
2363
  * @retval HAL status
2364
  */
2365
HAL_StatusTypeDef HAL_SD_Abort_IT(SD_HandleTypeDef *hsd)
2366
{
2367
  HAL_SD_CardStateTypeDef CardState;
2368
  uint32_t context = hsd->Context;
2369
 
2370
  /* Disable All interrupts */
2371
  __HAL_SD_DISABLE_IT(hsd, SDIO_IT_DATAEND | SDIO_IT_DCRCFAIL | SDIO_IT_DTIMEOUT|\
2372
                           SDIO_IT_TXUNDERR| SDIO_IT_RXOVERR);
2373
 
2374
  CLEAR_BIT(hsd->Instance->DCTRL, SDIO_DCTRL_DTEN);
2375
 
2376
  if ((context & SD_CONTEXT_DMA) != 0U)
2377
  {
2378
    /* Disable the SD DMA request */
2379
    hsd->Instance->DCTRL &= (uint32_t)~((uint32_t)SDIO_DCTRL_DMAEN);
2380
 
2381
    /* Abort the SD DMA Tx channel */
2382
    if (((context & SD_CONTEXT_WRITE_SINGLE_BLOCK) != 0U) || ((context & SD_CONTEXT_WRITE_MULTIPLE_BLOCK) != 0U))
2383
    {
2384
      hsd->hdmatx->XferAbortCallback = SD_DMATxAbort;
2385
      if(HAL_DMA_Abort_IT(hsd->hdmatx) != HAL_OK)
2386
      {
2387
        hsd->hdmatx = NULL;
2388
      }
2389
    }
2390
    /* Abort the SD DMA Rx channel */
2391
    else if (((context & SD_CONTEXT_READ_SINGLE_BLOCK) != 0U) || ((context & SD_CONTEXT_READ_MULTIPLE_BLOCK) != 0U))
2392
    {
2393
      hsd->hdmarx->XferAbortCallback = SD_DMARxAbort;
2394
      if(HAL_DMA_Abort_IT(hsd->hdmarx) != HAL_OK)
2395
      {
2396
        hsd->hdmarx = NULL;
2397
      }
2398
    }
2399
    else
2400
    {
2401
      /* Nothing to do */
2402
    }
2403
  }
2404
  /* No transfer ongoing on both DMA channels*/
2405
  else
2406
  {
2407
    /* Clear All flags */
2408
    __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_DATA_FLAGS);
2409
 
2410
    CardState = HAL_SD_GetCardState(hsd);
2411
    hsd->State = HAL_SD_STATE_READY;
2412
    hsd->Context = SD_CONTEXT_NONE;
2413
    if((CardState == HAL_SD_CARD_RECEIVING) || (CardState == HAL_SD_CARD_SENDING))
2414
    {
2415
      hsd->ErrorCode = SDMMC_CmdStopTransfer(hsd->Instance);
2416
    }
2417
    if(hsd->ErrorCode != HAL_SD_ERROR_NONE)
2418
    {
2419
      return HAL_ERROR;
2420
    }
2421
    else
2422
    {
2423
#if defined (USE_HAL_SD_REGISTER_CALLBACKS) && (USE_HAL_SD_REGISTER_CALLBACKS == 1U)
2424
      hsd->AbortCpltCallback(hsd);
2425
#else
2426
      HAL_SD_AbortCallback(hsd);
2427
#endif /* USE_HAL_SD_REGISTER_CALLBACKS */
2428
    }
2429
  }
2430
 
2431
  return HAL_OK;
2432
}
2433
 
2434
/**
2435
  * @}
2436
  */
2437
 
2438
/**
2439
  * @}
2440
  */
2441
 
2442
/* Private function ----------------------------------------------------------*/
2443
/** @addtogroup SD_Private_Functions
2444
  * @{
2445
  */
2446
 
2447
/**
2448
  * @brief  DMA SD transmit process complete callback
2449
  * @param  hdma: DMA handle
2450
  * @retval None
2451
  */
2452
static void SD_DMATransmitCplt(DMA_HandleTypeDef *hdma)
2453
{
2454
  SD_HandleTypeDef* hsd = (SD_HandleTypeDef* )(hdma->Parent);
2455
 
2456
  /* Enable DATAEND Interrupt */
2457
  __HAL_SD_ENABLE_IT(hsd, (SDIO_IT_DATAEND));
2458
}
2459
 
2460
/**
2461
  * @brief  DMA SD receive process complete callback
2462
  * @param  hdma: DMA handle
2463
  * @retval None
2464
  */
2465
static void SD_DMAReceiveCplt(DMA_HandleTypeDef *hdma)
2466
{
2467
  SD_HandleTypeDef* hsd = (SD_HandleTypeDef* )(hdma->Parent);
2468
  uint32_t errorstate;
2469
 
2470
  /* Send stop command in multiblock write */
2471
  if(hsd->Context == (SD_CONTEXT_READ_MULTIPLE_BLOCK | SD_CONTEXT_DMA))
2472
  {
2473
    errorstate = SDMMC_CmdStopTransfer(hsd->Instance);
2474
    if(errorstate != HAL_SD_ERROR_NONE)
2475
    {
2476
      hsd->ErrorCode |= errorstate;
2477
#if (USE_HAL_SD_REGISTER_CALLBACKS == 1)
2478
      hsd->ErrorCallback(hsd);
2479
#else
2480
      HAL_SD_ErrorCallback(hsd);
2481
#endif
2482
    }
2483
  }
2484
 
2485
  /* Disable the DMA transfer for transmit request by setting the DMAEN bit
2486
  in the SD DCTRL register */
2487
  hsd->Instance->DCTRL &= (uint32_t)~((uint32_t)SDIO_DCTRL_DMAEN);
2488
 
2489
  /* Clear all the static flags */
2490
  __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_DATA_FLAGS);
2491
 
2492
  hsd->State = HAL_SD_STATE_READY;
2493
  hsd->Context = SD_CONTEXT_NONE;
2494
 
2495
#if (USE_HAL_SD_REGISTER_CALLBACKS == 1)
2496
  hsd->RxCpltCallback(hsd);
2497
#else
2498
  HAL_SD_RxCpltCallback(hsd);
2499
#endif
2500
}
2501
 
2502
/**
2503
  * @brief  DMA SD communication error callback
2504
  * @param  hdma: DMA handle
2505
  * @retval None
2506
  */
2507
static void SD_DMAError(DMA_HandleTypeDef *hdma)
2508
{
2509
  SD_HandleTypeDef* hsd = (SD_HandleTypeDef* )(hdma->Parent);
2510
  HAL_SD_CardStateTypeDef CardState;
2511
  uint32_t RxErrorCode, TxErrorCode;
2512
 
2513
    RxErrorCode = hsd->hdmarx->ErrorCode;
2514
    TxErrorCode = hsd->hdmatx->ErrorCode;  
2515
    if((RxErrorCode == HAL_DMA_ERROR_TE) || (TxErrorCode == HAL_DMA_ERROR_TE))
2516
    {
2517
      /* Clear All flags */
2518
      __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_FLAGS);
2519
 
2520
      /* Disable All interrupts */
2521
      __HAL_SD_DISABLE_IT(hsd, SDIO_IT_DATAEND | SDIO_IT_DCRCFAIL | SDIO_IT_DTIMEOUT|\
2522
        SDIO_IT_TXUNDERR| SDIO_IT_RXOVERR);
2523
 
2524
      hsd->ErrorCode |= HAL_SD_ERROR_DMA;
2525
      CardState = HAL_SD_GetCardState(hsd);
2526
      if((CardState == HAL_SD_CARD_RECEIVING) || (CardState == HAL_SD_CARD_SENDING))
2527
      {
2528
        hsd->ErrorCode |= SDMMC_CmdStopTransfer(hsd->Instance);
2529
      }
2530
 
2531
      hsd->State= HAL_SD_STATE_READY;
2532
      hsd->Context = SD_CONTEXT_NONE;
2533
    }
2534
 
2535
#if (USE_HAL_SD_REGISTER_CALLBACKS == 1)
2536
    hsd->ErrorCallback(hsd);
2537
#else
2538
    HAL_SD_ErrorCallback(hsd);
2539
#endif
2540
}
2541
 
2542
/**
2543
  * @brief  DMA SD Tx Abort callback
2544
  * @param  hdma: DMA handle
2545
  * @retval None
2546
  */
2547
static void SD_DMATxAbort(DMA_HandleTypeDef *hdma)
2548
{
2549
  SD_HandleTypeDef* hsd = (SD_HandleTypeDef* )(hdma->Parent);
2550
  HAL_SD_CardStateTypeDef CardState;
2551
 
2552
  /* Clear All flags */
2553
  __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_DATA_FLAGS);
2554
 
2555
  CardState = HAL_SD_GetCardState(hsd);
2556
  hsd->State = HAL_SD_STATE_READY;
2557
  hsd->Context = SD_CONTEXT_NONE;
2558
  if((CardState == HAL_SD_CARD_RECEIVING) || (CardState == HAL_SD_CARD_SENDING))
2559
  {
2560
    hsd->ErrorCode |= SDMMC_CmdStopTransfer(hsd->Instance);
2561
  }
2562
 
2563
  if(hsd->ErrorCode == HAL_SD_ERROR_NONE)
2564
  {
2565
#if (USE_HAL_SD_REGISTER_CALLBACKS == 1)
2566
    hsd->AbortCpltCallback(hsd);
2567
#else
2568
    HAL_SD_AbortCallback(hsd);
2569
#endif
2570
  }
2571
  else
2572
  {
2573
#if (USE_HAL_SD_REGISTER_CALLBACKS == 1)
2574
    hsd->ErrorCallback(hsd);
2575
#else
2576
    HAL_SD_ErrorCallback(hsd);
2577
#endif
2578
  }
2579
}
2580
 
2581
/**
2582
  * @brief  DMA SD Rx Abort callback
2583
  * @param  hdma: DMA handle
2584
  * @retval None
2585
  */
2586
static void SD_DMARxAbort(DMA_HandleTypeDef *hdma)
2587
{
2588
  SD_HandleTypeDef* hsd = (SD_HandleTypeDef* )(hdma->Parent);
2589
  HAL_SD_CardStateTypeDef CardState;
2590
 
2591
  /* Clear All flags */
2592
  __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_DATA_FLAGS);
2593
 
2594
  CardState = HAL_SD_GetCardState(hsd);
2595
  hsd->State = HAL_SD_STATE_READY;
2596
  hsd->Context = SD_CONTEXT_NONE;
2597
  if((CardState == HAL_SD_CARD_RECEIVING) || (CardState == HAL_SD_CARD_SENDING))
2598
  {
2599
    hsd->ErrorCode |= SDMMC_CmdStopTransfer(hsd->Instance);
2600
  }
2601
 
2602
  if(hsd->ErrorCode == HAL_SD_ERROR_NONE)
2603
  {
2604
#if (USE_HAL_SD_REGISTER_CALLBACKS == 1)
2605
    hsd->AbortCpltCallback(hsd);
2606
#else
2607
    HAL_SD_AbortCallback(hsd);
2608
#endif
2609
  }
2610
  else
2611
  {
2612
#if (USE_HAL_SD_REGISTER_CALLBACKS == 1)
2613
    hsd->ErrorCallback(hsd);
2614
#else
2615
    HAL_SD_ErrorCallback(hsd);
2616
#endif
2617
  }
2618
}
2619
 
2620
/**
2621
  * @brief  Initializes the sd card.
2622
  * @param  hsd: Pointer to SD handle
2623
  * @retval SD Card error state
2624
  */
2625
static uint32_t SD_InitCard(SD_HandleTypeDef *hsd)
2626
{
2627
  HAL_SD_CardCSDTypeDef CSD;
2628
  uint32_t errorstate;
2629
  uint16_t sd_rca = 1U;
2630
 
2631
  /* Check the power State */
2632
  if(SDIO_GetPowerState(hsd->Instance) == 0U)
2633
  {
2634
    /* Power off */
2635
    return HAL_SD_ERROR_REQUEST_NOT_APPLICABLE;
2636
  }
2637
 
2638
  if(hsd->SdCard.CardType != CARD_SECURED)
2639
  {
2640
    /* Send CMD2 ALL_SEND_CID */
2641
    errorstate = SDMMC_CmdSendCID(hsd->Instance);
2642
    if(errorstate != HAL_SD_ERROR_NONE)
2643
    {
2644
      return errorstate;
2645
    }
2646
    else
2647
    {
2648
      /* Get Card identification number data */
2649
      hsd->CID[0U] = SDIO_GetResponse(hsd->Instance, SDIO_RESP1);
2650
      hsd->CID[1U] = SDIO_GetResponse(hsd->Instance, SDIO_RESP2);
2651
      hsd->CID[2U] = SDIO_GetResponse(hsd->Instance, SDIO_RESP3);
2652
      hsd->CID[3U] = SDIO_GetResponse(hsd->Instance, SDIO_RESP4);
2653
    }
2654
  }
2655
 
2656
  if(hsd->SdCard.CardType != CARD_SECURED)
2657
  {
2658
    /* Send CMD3 SET_REL_ADDR with argument 0 */
2659
    /* SD Card publishes its RCA. */
2660
    errorstate = SDMMC_CmdSetRelAdd(hsd->Instance, &sd_rca);
2661
    if(errorstate != HAL_SD_ERROR_NONE)
2662
    {
2663
      return errorstate;
2664
    }
2665
  }
2666
  if(hsd->SdCard.CardType != CARD_SECURED)
2667
  {
2668
    /* Get the SD card RCA */
2669
    hsd->SdCard.RelCardAdd = sd_rca;
2670
 
2671
    /* Send CMD9 SEND_CSD with argument as card's RCA */
2672
    errorstate = SDMMC_CmdSendCSD(hsd->Instance, (uint32_t)(hsd->SdCard.RelCardAdd << 16U));
2673
    if(errorstate != HAL_SD_ERROR_NONE)
2674
    {
2675
      return errorstate;
2676
    }
2677
    else
2678
    {
2679
      /* Get Card Specific Data */
2680
      hsd->CSD[0U] = SDIO_GetResponse(hsd->Instance, SDIO_RESP1);
2681
      hsd->CSD[1U] = SDIO_GetResponse(hsd->Instance, SDIO_RESP2);
2682
      hsd->CSD[2U] = SDIO_GetResponse(hsd->Instance, SDIO_RESP3);
2683
      hsd->CSD[3U] = SDIO_GetResponse(hsd->Instance, SDIO_RESP4);
2684
    }
2685
  }
2686
 
2687
  /* Get the Card Class */
2688
  hsd->SdCard.Class = (SDIO_GetResponse(hsd->Instance, SDIO_RESP2) >> 20U);
2689
 
2690
  /* Get CSD parameters */
2691
  if (HAL_SD_GetCardCSD(hsd, &CSD) != HAL_OK)
2692
  {
2693
    return HAL_SD_ERROR_UNSUPPORTED_FEATURE;
2694
  }
2695
 
2696
  /* Select the Card */
2697
  errorstate = SDMMC_CmdSelDesel(hsd->Instance, (uint32_t)(((uint32_t)hsd->SdCard.RelCardAdd) << 16U));
2698
  if(errorstate != HAL_SD_ERROR_NONE)
2699
  {
2700
    return errorstate;
2701
  }
2702
 
2703
  /* Configure SDIO peripheral interface */
2704
  (void)SDIO_Init(hsd->Instance, hsd->Init);
2705
 
2706
  /* All cards are initialized */
2707
  return HAL_SD_ERROR_NONE;
2708
}
2709
 
2710
/**
2711
  * @brief  Enquires cards about their operating voltage and configures clock
2712
  *         controls and stores SD information that will be needed in future
2713
  *         in the SD handle.
2714
  * @param  hsd: Pointer to SD handle
2715
  * @retval error state
2716
  */
2717
static uint32_t SD_PowerON(SD_HandleTypeDef *hsd)
2718
{
2719
  __IO uint32_t count = 0U;
2720
  uint32_t response = 0U, validvoltage = 0U;
2721
  uint32_t errorstate;
2722
 
2723
  /* CMD0: GO_IDLE_STATE */
2724
  errorstate = SDMMC_CmdGoIdleState(hsd->Instance);
2725
  if(errorstate != HAL_SD_ERROR_NONE)
2726
  {
2727
    return errorstate;
2728
  }
2729
 
2730
  /* CMD8: SEND_IF_COND: Command available only on V2.0 cards */
2731
  errorstate = SDMMC_CmdOperCond(hsd->Instance);
2732
  if(errorstate != HAL_SD_ERROR_NONE)
2733
  {
2734
    hsd->SdCard.CardVersion = CARD_V1_X;
2735
    /* CMD0: GO_IDLE_STATE */
2736
    errorstate = SDMMC_CmdGoIdleState(hsd->Instance);
2737
    if(errorstate != HAL_SD_ERROR_NONE)
2738
    {
2739
      return errorstate;
2740
    }
2741
 
2742
  }
2743
  else
2744
  {
2745
    hsd->SdCard.CardVersion = CARD_V2_X;
2746
  }
2747
 
2748
  if( hsd->SdCard.CardVersion == CARD_V2_X)
2749
  {
2750
    /* SEND CMD55 APP_CMD with RCA as 0 */
2751
    errorstate = SDMMC_CmdAppCommand(hsd->Instance, 0);
2752
    if(errorstate != HAL_SD_ERROR_NONE)
2753
    {
2754
      return HAL_SD_ERROR_UNSUPPORTED_FEATURE;
2755
    }
2756
  }
2757
  /* SD CARD */
2758
  /* Send ACMD41 SD_APP_OP_COND with Argument 0x80100000 */
2759
  while((count < SDMMC_MAX_VOLT_TRIAL) && (validvoltage == 0U))
2760
  {
2761
    /* SEND CMD55 APP_CMD with RCA as 0 */
2762
    errorstate = SDMMC_CmdAppCommand(hsd->Instance, 0);
2763
    if(errorstate != HAL_SD_ERROR_NONE)
2764
    {
2765
      return errorstate;
2766
    }
2767
 
2768
    /* Send CMD41 */
2769
    errorstate = SDMMC_CmdAppOperCommand(hsd->Instance, SDMMC_VOLTAGE_WINDOW_SD | SDMMC_HIGH_CAPACITY | SD_SWITCH_1_8V_CAPACITY);
2770
    if(errorstate != HAL_SD_ERROR_NONE)
2771
    {
2772
      return HAL_SD_ERROR_UNSUPPORTED_FEATURE;
2773
    }
2774
 
2775
    /* Get command response */
2776
    response = SDIO_GetResponse(hsd->Instance, SDIO_RESP1);
2777
 
2778
    /* Get operating voltage*/
2779
    validvoltage = (((response >> 31U) == 1U) ? 1U : 0U);
2780
 
2781
    count++;
2782
  }
2783
 
2784
  if(count >= SDMMC_MAX_VOLT_TRIAL)
2785
  {
2786
    return HAL_SD_ERROR_INVALID_VOLTRANGE;
2787
  }
2788
 
2789
  if((response & SDMMC_HIGH_CAPACITY) == SDMMC_HIGH_CAPACITY) /* (response &= SD_HIGH_CAPACITY) */
2790
  {
2791
    hsd->SdCard.CardType = CARD_SDHC_SDXC;
2792
  }
2793
  else
2794
  {
2795
    hsd->SdCard.CardType = CARD_SDSC;
2796
  }
2797
 
2798
 
2799
  return HAL_SD_ERROR_NONE;
2800
}
2801
 
2802
/**
2803
  * @brief  Turns the SDIO output signals off.
2804
  * @param  hsd: Pointer to SD handle
2805
  * @retval None
2806
  */
2807
static void SD_PowerOFF(SD_HandleTypeDef *hsd)
2808
{
2809
  /* Set Power State to OFF */
2810
  (void)SDIO_PowerState_OFF(hsd->Instance);
2811
}
2812
 
2813
/**
2814
  * @brief  Send Status info command.
2815
  * @param  hsd: pointer to SD handle
2816
  * @param  pSDstatus: Pointer to the buffer that will contain the SD card status
2817
  *         SD Status register)
2818
  * @retval error state
2819
  */
2820
static uint32_t SD_SendSDStatus(SD_HandleTypeDef *hsd, uint32_t *pSDstatus)
2821
{
2822
  SDIO_DataInitTypeDef config;
2823
  uint32_t errorstate;
2824
  uint32_t tickstart = HAL_GetTick();
2825
  uint32_t count;
2826
  uint32_t *pData = pSDstatus;
2827
 
2828
  /* Check SD response */
2829
  if((SDIO_GetResponse(hsd->Instance, SDIO_RESP1) & SDMMC_CARD_LOCKED) == SDMMC_CARD_LOCKED)
2830
  {
2831
    return HAL_SD_ERROR_LOCK_UNLOCK_FAILED;
2832
  }
2833
 
2834
  /* Set block size for card if it is not equal to current block size for card */
2835
  errorstate = SDMMC_CmdBlockLength(hsd->Instance, 64U);
2836
  if(errorstate != HAL_SD_ERROR_NONE)
2837
  {
2838
    hsd->ErrorCode |= HAL_SD_ERROR_NONE;
2839
    return errorstate;
2840
  }
2841
 
2842
  /* Send CMD55 */
2843
  errorstate = SDMMC_CmdAppCommand(hsd->Instance, (uint32_t)(hsd->SdCard.RelCardAdd << 16U));
2844
  if(errorstate != HAL_SD_ERROR_NONE)
2845
  {
2846
    hsd->ErrorCode |= HAL_SD_ERROR_NONE;
2847
    return errorstate;
2848
  }
2849
 
2850
  /* Configure the SD DPSM (Data Path State Machine) */
2851
  config.DataTimeOut   = SDMMC_DATATIMEOUT;
2852
  config.DataLength    = 64U;
2853
  config.DataBlockSize = SDIO_DATABLOCK_SIZE_64B;
2854
  config.TransferDir   = SDIO_TRANSFER_DIR_TO_SDIO;
2855
  config.TransferMode  = SDIO_TRANSFER_MODE_BLOCK;
2856
  config.DPSM          = SDIO_DPSM_ENABLE;
2857
  (void)SDIO_ConfigData(hsd->Instance, &config);
2858
 
2859
  /* Send ACMD13 (SD_APP_STAUS)  with argument as card's RCA */
2860
  errorstate = SDMMC_CmdStatusRegister(hsd->Instance);
2861
  if(errorstate != HAL_SD_ERROR_NONE)
2862
  {
2863
    hsd->ErrorCode |= HAL_SD_ERROR_NONE;
2864
    return errorstate;
2865
  }
2866
 
2867
  /* Get status data */
2868
  while(!__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_RXOVERR | SDIO_FLAG_DCRCFAIL | SDIO_FLAG_DTIMEOUT | SDIO_FLAG_DBCKEND))
2869
  {
2870
    if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_RXFIFOHF))
2871
    {
2872
      for(count = 0U; count < 8U; count++)
2873
      {
2874
        *pData = SDIO_ReadFIFO(hsd->Instance);
2875
        pData++;
2876
      }
2877
    }
2878
 
2879
    if((HAL_GetTick() - tickstart) >=  SDMMC_DATATIMEOUT)
2880
    {
2881
      return HAL_SD_ERROR_TIMEOUT;
2882
    }
2883
  }
2884
 
2885
  if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_DTIMEOUT))
2886
  {
2887
    return HAL_SD_ERROR_DATA_TIMEOUT;
2888
  }
2889
  else if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_DCRCFAIL))
2890
  {
2891
    return HAL_SD_ERROR_DATA_CRC_FAIL;
2892
  }
2893
  else if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_RXOVERR))
2894
  {
2895
    return HAL_SD_ERROR_RX_OVERRUN;
2896
  }
2897
  else
2898
  {
2899
    /* Nothing to do */
2900
  }
2901
 
2902
  while ((__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_RXDAVL)))
2903
  {
2904
    *pData = SDIO_ReadFIFO(hsd->Instance);
2905
    pData++;
2906
 
2907
    if((HAL_GetTick() - tickstart) >=  SDMMC_DATATIMEOUT)
2908
    {
2909
      return HAL_SD_ERROR_TIMEOUT;
2910
    }
2911
  }
2912
 
2913
  /* Clear all the static status flags*/
2914
  __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_DATA_FLAGS);
2915
 
2916
  return HAL_SD_ERROR_NONE;
2917
}
2918
 
2919
/**
2920
  * @brief  Returns the current card's status.
2921
  * @param  hsd: Pointer to SD handle
2922
  * @param  pCardStatus: pointer to the buffer that will contain the SD card
2923
  *         status (Card Status register)
2924
  * @retval error state
2925
  */
2926
static uint32_t SD_SendStatus(SD_HandleTypeDef *hsd, uint32_t *pCardStatus)
2927
{
2928
  uint32_t errorstate;
2929
 
2930
  if(pCardStatus == NULL)
2931
  {
2932
    return HAL_SD_ERROR_PARAM;
2933
  }
2934
 
2935
  /* Send Status command */
2936
  errorstate = SDMMC_CmdSendStatus(hsd->Instance, (uint32_t)(hsd->SdCard.RelCardAdd << 16U));
2937
  if(errorstate != HAL_SD_ERROR_NONE)
2938
  {
2939
    return errorstate;
2940
  }
2941
 
2942
  /* Get SD card status */
2943
  *pCardStatus = SDIO_GetResponse(hsd->Instance, SDIO_RESP1);
2944
 
2945
  return HAL_SD_ERROR_NONE;
2946
}
2947
 
2948
/**
2949
  * @brief  Enables the SDIO wide bus mode.
2950
  * @param  hsd: pointer to SD handle
2951
  * @retval error state
2952
  */
2953
static uint32_t SD_WideBus_Enable(SD_HandleTypeDef *hsd)
2954
{
2955
  uint32_t scr[2U] = {0U, 0U};
2956
  uint32_t errorstate;
2957
 
2958
  if((SDIO_GetResponse(hsd->Instance, SDIO_RESP1) & SDMMC_CARD_LOCKED) == SDMMC_CARD_LOCKED)
2959
  {
2960
    return HAL_SD_ERROR_LOCK_UNLOCK_FAILED;
2961
  }
2962
 
2963
  /* Get SCR Register */
2964
  errorstate = SD_FindSCR(hsd, scr);
2965
  if(errorstate != HAL_SD_ERROR_NONE)
2966
  {
2967
    return errorstate;
2968
  }
2969
 
2970
  /* If requested card supports wide bus operation */
2971
  if((scr[1U] & SDMMC_WIDE_BUS_SUPPORT) != SDMMC_ALLZERO)
2972
  {
2973
    /* Send CMD55 APP_CMD with argument as card's RCA.*/
2974
    errorstate = SDMMC_CmdAppCommand(hsd->Instance, (uint32_t)(hsd->SdCard.RelCardAdd << 16U));
2975
    if(errorstate != HAL_SD_ERROR_NONE)
2976
    {
2977
      return errorstate;
2978
    }
2979
 
2980
    /* Send ACMD6 APP_CMD with argument as 2 for wide bus mode */
2981
    errorstate = SDMMC_CmdBusWidth(hsd->Instance, 2U);
2982
    if(errorstate != HAL_SD_ERROR_NONE)
2983
    {
2984
      return errorstate;
2985
    }
2986
 
2987
    return HAL_SD_ERROR_NONE;
2988
  }
2989
  else
2990
  {
2991
    return HAL_SD_ERROR_REQUEST_NOT_APPLICABLE;
2992
  }
2993
}
2994
 
2995
/**
2996
  * @brief  Disables the SDIO wide bus mode.
2997
  * @param  hsd: Pointer to SD handle
2998
  * @retval error state
2999
  */
3000
static uint32_t SD_WideBus_Disable(SD_HandleTypeDef *hsd)
3001
{
3002
  uint32_t scr[2U] = {0U, 0U};
3003
  uint32_t errorstate;
3004
 
3005
  if((SDIO_GetResponse(hsd->Instance, SDIO_RESP1) & SDMMC_CARD_LOCKED) == SDMMC_CARD_LOCKED)
3006
  {
3007
    return HAL_SD_ERROR_LOCK_UNLOCK_FAILED;
3008
  }
3009
 
3010
  /* Get SCR Register */
3011
  errorstate = SD_FindSCR(hsd, scr);
3012
  if(errorstate != HAL_SD_ERROR_NONE)
3013
  {
3014
    return errorstate;
3015
  }
3016
 
3017
  /* If requested card supports 1 bit mode operation */
3018
  if((scr[1U] & SDMMC_SINGLE_BUS_SUPPORT) != SDMMC_ALLZERO)
3019
  {
3020
    /* Send CMD55 APP_CMD with argument as card's RCA */
3021
    errorstate = SDMMC_CmdAppCommand(hsd->Instance, (uint32_t)(hsd->SdCard.RelCardAdd << 16U));
3022
    if(errorstate != HAL_SD_ERROR_NONE)
3023
    {
3024
      return errorstate;
3025
    }
3026
 
3027
    /* Send ACMD6 APP_CMD with argument as 0 for single bus mode */
3028
    errorstate = SDMMC_CmdBusWidth(hsd->Instance, 0U);
3029
    if(errorstate != HAL_SD_ERROR_NONE)
3030
    {
3031
      return errorstate;
3032
    }
3033
 
3034
    return HAL_SD_ERROR_NONE;
3035
  }
3036
  else
3037
  {
3038
    return HAL_SD_ERROR_REQUEST_NOT_APPLICABLE;
3039
  }
3040
}
3041
 
3042
 
3043
/**
3044
  * @brief  Finds the SD card SCR register value.
3045
  * @param  hsd: Pointer to SD handle
3046
  * @param  pSCR: pointer to the buffer that will contain the SCR value
3047
  * @retval error state
3048
  */
3049
static uint32_t SD_FindSCR(SD_HandleTypeDef *hsd, uint32_t *pSCR)
3050
{
3051
  SDIO_DataInitTypeDef config;
3052
  uint32_t errorstate;
3053
  uint32_t tickstart = HAL_GetTick();
3054
  uint32_t index = 0U;
3055
  uint32_t tempscr[2U] = {0U, 0U};
3056
  uint32_t *scr = pSCR;
3057
 
3058
  /* Set Block Size To 8 Bytes */
3059
  errorstate = SDMMC_CmdBlockLength(hsd->Instance, 8U);
3060
  if(errorstate != HAL_SD_ERROR_NONE)
3061
  {
3062
    return errorstate;
3063
  }
3064
 
3065
  /* Send CMD55 APP_CMD with argument as card's RCA */
3066
  errorstate = SDMMC_CmdAppCommand(hsd->Instance, (uint32_t)((hsd->SdCard.RelCardAdd) << 16U));
3067
  if(errorstate != HAL_SD_ERROR_NONE)
3068
  {
3069
    return errorstate;
3070
  }
3071
 
3072
  config.DataTimeOut   = SDMMC_DATATIMEOUT;
3073
  config.DataLength    = 8U;
3074
  config.DataBlockSize = SDIO_DATABLOCK_SIZE_8B;
3075
  config.TransferDir   = SDIO_TRANSFER_DIR_TO_SDIO;
3076
  config.TransferMode  = SDIO_TRANSFER_MODE_BLOCK;
3077
  config.DPSM          = SDIO_DPSM_ENABLE;
3078
  (void)SDIO_ConfigData(hsd->Instance, &config);
3079
 
3080
  /* Send ACMD51 SD_APP_SEND_SCR with argument as 0 */
3081
  errorstate = SDMMC_CmdSendSCR(hsd->Instance);
3082
  if(errorstate != HAL_SD_ERROR_NONE)
3083
  {
3084
    return errorstate;
3085
  }
3086
 
3087
  while(!__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_RXOVERR | SDIO_FLAG_DCRCFAIL | SDIO_FLAG_DTIMEOUT))
3088
  {
3089
    if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_RXDAVL))
3090
    {
3091
      *(tempscr + index) = SDIO_ReadFIFO(hsd->Instance);
3092
      index++;
3093
    }
3094
    else if(!__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_RXACT))
3095
    {
3096
      break;
3097
    }
3098
 
3099
    if((HAL_GetTick() - tickstart) >=  SDMMC_DATATIMEOUT)
3100
    {
3101
      return HAL_SD_ERROR_TIMEOUT;
3102
    }
3103
  }
3104
 
3105
  if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_DTIMEOUT))
3106
  {
3107
    __HAL_SD_CLEAR_FLAG(hsd, SDIO_FLAG_DTIMEOUT);
3108
 
3109
    return HAL_SD_ERROR_DATA_TIMEOUT;
3110
  }
3111
  else if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_DCRCFAIL))
3112
  {
3113
    __HAL_SD_CLEAR_FLAG(hsd, SDIO_FLAG_DCRCFAIL);
3114
 
3115
    return HAL_SD_ERROR_DATA_CRC_FAIL;
3116
  }
3117
  else if(__HAL_SD_GET_FLAG(hsd, SDIO_FLAG_RXOVERR))
3118
  {
3119
    __HAL_SD_CLEAR_FLAG(hsd, SDIO_FLAG_RXOVERR);
3120
 
3121
    return HAL_SD_ERROR_RX_OVERRUN;
3122
  }
3123
  else
3124
  {
3125
    /* No error flag set */
3126
    /* Clear all the static flags */
3127
    __HAL_SD_CLEAR_FLAG(hsd, SDIO_STATIC_DATA_FLAGS);
3128
 
3129
    *scr = (((tempscr[1] & SDMMC_0TO7BITS) << 24)  | ((tempscr[1] & SDMMC_8TO15BITS) << 8) |\
3130
            ((tempscr[1] & SDMMC_16TO23BITS) >> 8) | ((tempscr[1] & SDMMC_24TO31BITS) >> 24));
3131
    scr++;
3132
    *scr = (((tempscr[0] & SDMMC_0TO7BITS) << 24)  | ((tempscr[0] & SDMMC_8TO15BITS) << 8) |\
3133
            ((tempscr[0] & SDMMC_16TO23BITS) >> 8) | ((tempscr[0] & SDMMC_24TO31BITS) >> 24));
3134
 
3135
  }
3136
 
3137
  return HAL_SD_ERROR_NONE;
3138
}
3139
 
3140
/**
3141
  * @brief  Wrap up reading in non-blocking mode.
3142
  * @param  hsd: pointer to a SD_HandleTypeDef structure that contains
3143
  *              the configuration information.
3144
  * @retval None
3145
  */
3146
static void SD_Read_IT(SD_HandleTypeDef *hsd)
3147
{
3148
  uint32_t count, data, dataremaining;
3149
  uint8_t* tmp;
3150
 
3151
  tmp = hsd->pRxBuffPtr;
3152
  dataremaining = hsd->RxXferSize;
3153
 
3154
  if (dataremaining > 0U)
3155
  {
3156
    /* Read data from SDIO Rx FIFO */
3157
    for(count = 0U; count < 8U; count++)
3158
    {
3159
      data = SDIO_ReadFIFO(hsd->Instance);
3160
      *tmp = (uint8_t)(data & 0xFFU);
3161
      tmp++;
3162
      dataremaining--;
3163
      *tmp = (uint8_t)((data >> 8U) & 0xFFU);
3164
      tmp++;
3165
      dataremaining--;
3166
      *tmp = (uint8_t)((data >> 16U) & 0xFFU);
3167
      tmp++;
3168
      dataremaining--;
3169
      *tmp = (uint8_t)((data >> 24U) & 0xFFU);
3170
      tmp++;
3171
      dataremaining--;
3172
    }
3173
 
3174
    hsd->pRxBuffPtr = tmp;
3175
    hsd->RxXferSize = dataremaining;
3176
  }
3177
}
3178
 
3179
/**
3180
  * @brief  Wrap up writing in non-blocking mode.
3181
  * @param  hsd: pointer to a SD_HandleTypeDef structure that contains
3182
  *              the configuration information.
3183
  * @retval None
3184
  */
3185
static void SD_Write_IT(SD_HandleTypeDef *hsd)
3186
{
3187
  uint32_t count, data, dataremaining;
3188
  uint8_t* tmp;
3189
 
3190
  tmp = hsd->pTxBuffPtr;
3191
  dataremaining = hsd->TxXferSize;
3192
 
3193
  if (dataremaining > 0U)
3194
  {
3195
    /* Write data to SDIO Tx FIFO */
3196
    for(count = 0U; count < 8U; count++)
3197
    {
3198
      data = (uint32_t)(*tmp);
3199
      tmp++;
3200
      dataremaining--;
3201
      data |= ((uint32_t)(*tmp) << 8U);
3202
      tmp++;
3203
      dataremaining--;
3204
      data |= ((uint32_t)(*tmp) << 16U);
3205
      tmp++;
3206
      dataremaining--;
3207
      data |= ((uint32_t)(*tmp) << 24U);
3208
      tmp++;
3209
      dataremaining--;
3210
      (void)SDIO_WriteFIFO(hsd->Instance, &data);
3211
    }
3212
 
3213
    hsd->pTxBuffPtr = tmp;
3214
    hsd->TxXferSize = dataremaining;
3215
  }
3216
}
3217
 
3218
/**
3219
  * @}
3220
  */
3221
 
3222
#endif /* HAL_SD_MODULE_ENABLED */
3223
 
3224
/**
3225
  * @}
3226
  */
3227
 
3228
/**
3229
  * @}
3230
  */
3231
 
3232
#endif /* SDIO */