stm32h7xx_hal_sai.c 72.0 KB
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/**
  ******************************************************************************
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  * @file    stm32h7xx_hal_sai.c
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  * @author  MCD Application Team
  * @brief   SAI HAL module driver.
  *          This file provides firmware functions to manage the following
  *          functionalities of the Serial Audio Interface (SAI) peripheral:
  *           + Initialization/de-initialization functions
  *           + I/O operation functions
  *           + Peripheral Control functions
  *           + Peripheral State functions
  *
  @verbatim
  ==============================================================================
                  ##### How to use this driver #####
  ==============================================================================

  [..]
    The SAI HAL driver can be used as follows:

    (#) Declare a SAI_HandleTypeDef handle structure (eg. SAI_HandleTypeDef hsai).
    (#) Initialize the SAI low level resources by implementing the HAL_SAI_MspInit() API:
        (##) Enable the SAI interface clock.
        (##) SAI pins configuration:
            (+++) Enable the clock for the SAI GPIOs.
            (+++) Configure these SAI pins as alternate function pull-up.
        (##) NVIC configuration if you need to use interrupt process (HAL_SAI_Transmit_IT()
             and HAL_SAI_Receive_IT() APIs):
            (+++) Configure the SAI interrupt priority.
            (+++) Enable the NVIC SAI IRQ handle.

        (##) DMA Configuration if you need to use DMA process (HAL_SAI_Transmit_DMA()
             and HAL_SAI_Receive_DMA() APIs):
            (+++) Declare a DMA handle structure for the Tx/Rx stream.
            (+++) Enable the DMAx interface clock.
            (+++) Configure the declared DMA handle structure with the required Tx/Rx parameters.
            (+++) Configure the DMA Tx/Rx Stream.
            (+++) Associate the initialized DMA handle to the SAI DMA Tx/Rx handle.
            (+++) Configure the priority and enable the NVIC for the transfer complete interrupt on the
                DMA Tx/Rx Stream.

    (#) The initialization can be done by two ways
        (##) Expert mode : Initialize the structures Init, FrameInit and SlotInit and call HAL_SAI_Init().
        (##) Simplified mode : Initialize the high part of Init Structure and call HAL_SAI_InitProtocol().

  [..]
    (@) The specific SAI interrupts (FIFO request and Overrun underrun interrupt)
        will be managed using the macros __HAL_SAI_ENABLE_IT() and __HAL_SAI_DISABLE_IT()
        inside the transmit and receive process.
  [..]
    (@) Make sure that either:
        (+@) PLLSAI1CLK output is configured or
        (+@) PLLSAI2CLK output is configured or
        (+@) PLLSAI3CLK output is configured or
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        (+@) PLLSAI4ACLK output is configured or
        (+@) PLLSAI4BCLK output is configured or
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        (+@) External clock source is configured after setting correctly
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             the define constant EXTERNAL_CLOCK_VALUE in the stm32h7xx_hal_conf.h file.
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  [..]
    (@) In master Tx mode: enabling the audio block immediately generates the bit clock
        for the external slaves even if there is no data in the FIFO, However FS signal
        generation is conditioned by the presence of data in the FIFO.

  [..]
    (@) In master Rx mode: enabling the audio block immediately generates the bit clock
        and FS signal for the external slaves.

  [..]
    (@) It is mandatory to respect the following conditions in order to avoid bad SAI behavior:
        (+@) First bit Offset <= (SLOT size - Data size)
        (+@) Data size <= SLOT size
        (+@) Number of SLOT x SLOT size = Frame length
        (+@) The number of slots should be even when SAI_FS_CHANNEL_IDENTIFICATION is selected.

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  [..]
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    (@) PDM interface can be activated through HAL_SAI_Init function.
        Please note that PDM interface is only available for SAIx sub-block A.
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        PDM microphone delays can be tuned with HAL_SAIEx_ConfigPdmMicDelay function.

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  [..]
    Three operation modes are available within this driver :

    *** Polling mode IO operation ***
    =================================
    [..]
      (+) Send an amount of data in blocking mode using HAL_SAI_Transmit()
      (+) Receive an amount of data in blocking mode using HAL_SAI_Receive()

    *** Interrupt mode IO operation ***
    ===================================
    [..]
      (+) Send an amount of data in non-blocking mode using HAL_SAI_Transmit_IT()
      (+) At transmission end of transfer HAL_SAI_TxCpltCallback() is executed and user can
          add his own code by customization of function pointer HAL_SAI_TxCpltCallback()
      (+) Receive an amount of data in non-blocking mode using HAL_SAI_Receive_IT()
      (+) At reception end of transfer HAL_SAI_RxCpltCallback() is executed and user can
          add his own code by customization of function pointer HAL_SAI_RxCpltCallback()
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      (+) In case of flag error, HAL_SAI_ErrorCallback() function is executed and user can
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          add his own code by customization of function pointer HAL_SAI_ErrorCallback()

    *** DMA mode IO operation ***
    =============================
    [..]
      (+) Send an amount of data in non-blocking mode (DMA) using HAL_SAI_Transmit_DMA()
      (+) At transmission end of transfer HAL_SAI_TxCpltCallback() is executed and user can
          add his own code by customization of function pointer HAL_SAI_TxCpltCallback()
      (+) Receive an amount of data in non-blocking mode (DMA) using HAL_SAI_Receive_DMA()
      (+) At reception end of transfer HAL_SAI_RxCpltCallback() is executed and user can
          add his own code by customization of function pointer HAL_SAI_RxCpltCallback()
      (+) In case of flag error, HAL_SAI_ErrorCallback() function is executed and user can
          add his own code by customization of function pointer HAL_SAI_ErrorCallback()
      (+) Pause the DMA Transfer using HAL_SAI_DMAPause()
      (+) Resume the DMA Transfer using HAL_SAI_DMAResume()
      (+) Stop the DMA Transfer using HAL_SAI_DMAStop()

    *** SAI HAL driver additional function list ***
    ===============================================
    [..]
      Below the list the others API available SAI HAL driver :

      (+) HAL_SAI_EnableTxMuteMode(): Enable the mute in tx mode
      (+) HAL_SAI_DisableTxMuteMode(): Disable the mute in tx mode
      (+) HAL_SAI_EnableRxMuteMode(): Enable the mute in Rx mode
      (+) HAL_SAI_DisableRxMuteMode(): Disable the mute in Rx mode
      (+) HAL_SAI_FlushRxFifo(): Flush the rx fifo.
      (+) HAL_SAI_Abort(): Abort the current transfer

    *** SAI HAL driver macros list ***
    ==================================
    [..]
      Below the list of most used macros in SAI HAL driver :

      (+) __HAL_SAI_ENABLE(): Enable the SAI peripheral
      (+) __HAL_SAI_DISABLE(): Disable the SAI peripheral
      (+) __HAL_SAI_ENABLE_IT(): Enable the specified SAI interrupts
      (+) __HAL_SAI_DISABLE_IT(): Disable the specified SAI interrupts
      (+) __HAL_SAI_GET_IT_SOURCE(): Check if the specified SAI interrupt source is
          enabled or disabled
      (+) __HAL_SAI_GET_FLAG(): Check whether the specified SAI flag is set or not

  @endverbatim
  ******************************************************************************
  * @attention
  *
  * <h2><center>&copy; COPYRIGHT(c) 2017 STMicroelectronics</center></h2>
  *
  * Redistribution and use in source and binary forms, with or without modification,
  * are permitted provided that the following conditions are met:
  *   1. Redistributions of source code must retain the above copyright notice,
  *      this list of conditions and the following disclaimer.
  *   2. Redistributions in binary form must reproduce the above copyright notice,
  *      this list of conditions and the following disclaimer in the documentation
  *      and/or other materials provided with the distribution.
  *   3. Neither the name of STMicroelectronics nor the names of its contributors
  *      may be used to endorse or promote products derived from this software
  *      without specific prior written permission.
  *
  * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
  * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
  * DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE LIABLE
  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
  * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER
  * CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
  * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
  * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
  *
  ******************************************************************************
  */

/* Includes ------------------------------------------------------------------*/
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#include "stm32h7xx_hal.h"
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/** @addtogroup STM32H7xx_HAL_Driver
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  * @{
  */

/** @defgroup SAI SAI
  * @brief SAI HAL module driver
  * @{
  */

#ifdef HAL_SAI_MODULE_ENABLED

/* Private typedef -----------------------------------------------------------*/

/** @defgroup SAI_Private_Typedefs  SAI Private Typedefs
  * @{
  */
typedef enum {
  SAI_MODE_DMA,
  SAI_MODE_IT
}SAI_ModeTypedef;
/**
  * @}
  */

/* Private define ------------------------------------------------------------*/

/** @defgroup SAI_Private_Constants  SAI Private Constants
  * @{
  */
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#define SAI_FIFO_SIZE            8U
#define SAI_DEFAULT_TIMEOUT      4U /* 4ms */
#define SAI_LONG_TIMEOUT         1000U
#define SAI_xCR2_MUTECNT_OFFSET  POSITION_VAL(SAI_xCR2_MUTECNT)
#define SAI_PDMCR_MICNBR_OFFSET  POSITION_VAL(SAI_PDMCR_MICNBR)
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/**
  * @}
  */

/* Private macro -------------------------------------------------------------*/
/* Private variables ---------------------------------------------------------*/
/* Private function prototypes -----------------------------------------------*/

/** @defgroup SAI_Private_Functions  SAI Private Functions
  * @{
  */
static void SAI_FillFifo(SAI_HandleTypeDef *hsai);
static uint32_t SAI_InterruptFlag(SAI_HandleTypeDef *hsai, uint32_t mode);
static HAL_StatusTypeDef SAI_InitI2S(SAI_HandleTypeDef *hsai, uint32_t protocol, uint32_t datasize, uint32_t nbslot);
static HAL_StatusTypeDef SAI_InitPCM(SAI_HandleTypeDef *hsai, uint32_t protocol, uint32_t datasize, uint32_t nbslot);

static HAL_StatusTypeDef SAI_Disable(SAI_HandleTypeDef *hsai);
static void SAI_Transmit_IT8Bit(SAI_HandleTypeDef *hsai);
static void SAI_Transmit_IT16Bit(SAI_HandleTypeDef *hsai);
static void SAI_Transmit_IT32Bit(SAI_HandleTypeDef *hsai);
static void SAI_Receive_IT8Bit(SAI_HandleTypeDef *hsai);
static void SAI_Receive_IT16Bit(SAI_HandleTypeDef *hsai);
static void SAI_Receive_IT32Bit(SAI_HandleTypeDef *hsai);

static void SAI_DMATxCplt(DMA_HandleTypeDef *hdma);
static void SAI_DMATxHalfCplt(DMA_HandleTypeDef *hdma);
static void SAI_DMARxCplt(DMA_HandleTypeDef *hdma);
static void SAI_DMARxHalfCplt(DMA_HandleTypeDef *hdma);
static void SAI_DMAError(DMA_HandleTypeDef *hdma);
static void SAI_DMAAbort(DMA_HandleTypeDef *hdma);
/**
  * @}
  */

/* Exported functions ---------------------------------------------------------*/

/** @defgroup SAI_Exported_Functions SAI Exported Functions
  * @{
  */

/** @defgroup SAI_Exported_Functions_Group1 Initialization and de-initialization functions
 *  @brief    Initialization and Configuration functions
 *
@verbatim
 ===============================================================================
             ##### Initialization and de-initialization functions #####
 ===============================================================================
  [..]  This subsection provides a set of functions allowing to initialize and
        de-initialize the SAIx peripheral:

      (+) User must implement HAL_SAI_MspInit() function in which he configures
          all related peripherals resources (CLOCK, GPIO, DMA, IT and NVIC ).

      (+) Call the function HAL_SAI_Init() to configure the selected device with
          the selected configuration:
        (++) Mode (Master/slave TX/RX)
        (++) Protocol
        (++) Data Size
        (++) MCLK Output
        (++) Audio frequency
        (++) FIFO Threshold
        (++) Frame Config
        (++) Slot Config
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    (++) PDM Config
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      (+) Call the function HAL_SAI_DeInit() to restore the default configuration
          of the selected SAI peripheral.

@endverbatim
  * @{
  */

/**
  * @brief  Initialize the structure FrameInit, SlotInit and the low part of
  *         Init according to the specified parameters and call the function
  *         HAL_SAI_Init to initialize the SAI block.
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  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
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  *              the configuration information for SAI module.
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  * @param  protocol one of the supported protocol @ref SAI_Protocol
  * @param  datasize one of the supported datasize @ref SAI_Protocol_DataSize
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  *                   the configuration information for SAI module.
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  * @param  nbslot Number of slot.
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  * @retval HAL status
  */
HAL_StatusTypeDef HAL_SAI_InitProtocol(SAI_HandleTypeDef *hsai, uint32_t protocol, uint32_t datasize, uint32_t nbslot)
{
  HAL_StatusTypeDef status = HAL_OK;
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  /* Check the parameters */
  assert_param(IS_SAI_SUPPORTED_PROTOCOL(protocol));
  assert_param(IS_SAI_PROTOCOL_DATASIZE(datasize));
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  switch(protocol)
  {
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    case SAI_I2S_STANDARD :
    case SAI_I2S_MSBJUSTIFIED :
    case SAI_I2S_LSBJUSTIFIED :
      status = SAI_InitI2S(hsai, protocol, datasize, nbslot);
      break;
    case SAI_PCM_LONG :
    case SAI_PCM_SHORT :
      status = SAI_InitPCM(hsai, protocol, datasize, nbslot);
      break;
    default :
      status = HAL_ERROR;
      break;
  }

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  if(status == HAL_OK)
  {
    status = HAL_SAI_Init(hsai);
  }
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  return status;
}

/**
  * @brief  Initialize the SAI according to the specified parameters.
  *         in the SAI_InitTypeDef structure and initialize the associated handle.
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  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
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  *              the configuration information for SAI module.
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  * @retval HAL status
  */
HAL_StatusTypeDef HAL_SAI_Init(SAI_HandleTypeDef *hsai)
{
  uint32_t tmpregisterGCR = 0;
  uint32_t ckstr_bits  = 0;
  uint32_t syncen_bits = 0;
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  SAI_TypeDef *SaiBaseAddress;

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  /* Check the SAI handle allocation */
  if(hsai == NULL)
  {
    return HAL_ERROR;
  }
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  /* check the instance */
  assert_param(IS_SAI_ALL_INSTANCE(hsai->Instance));
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  /* Check the SAI Block parameters */
  assert_param(IS_SAI_AUDIO_FREQUENCY(hsai->Init.AudioFrequency));
  assert_param(IS_SAI_BLOCK_PROTOCOL(hsai->Init.Protocol));
  assert_param(IS_SAI_BLOCK_MODE(hsai->Init.AudioMode));
  assert_param(IS_SAI_BLOCK_DATASIZE(hsai->Init.DataSize));
  assert_param(IS_SAI_BLOCK_FIRST_BIT(hsai->Init.FirstBit));
  assert_param(IS_SAI_BLOCK_CLOCK_STROBING(hsai->Init.ClockStrobing));
  assert_param(IS_SAI_BLOCK_SYNCHRO(hsai->Init.Synchro));
  assert_param(IS_SAI_BLOCK_OUTPUT_DRIVE(hsai->Init.OutputDrive));
  assert_param(IS_SAI_BLOCK_NODIVIDER(hsai->Init.NoDivider));
  assert_param(IS_SAI_BLOCK_FIFO_THRESHOLD(hsai->Init.FIFOThreshold));
  assert_param(IS_SAI_MONO_STEREO_MODE(hsai->Init.MonoStereoMode));
  assert_param(IS_SAI_BLOCK_COMPANDING_MODE(hsai->Init.CompandingMode));
  assert_param(IS_SAI_BLOCK_TRISTATE_MANAGEMENT(hsai->Init.TriState));
  assert_param(IS_SAI_BLOCK_SYNCEXT(hsai->Init.SynchroExt));
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  assert_param(IS_SAI_BLOCK_MCK_OVERSAMPLING(hsai->Init.MckOverSampling));
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  /* Check the SAI Block Frame parameters */
  assert_param(IS_SAI_BLOCK_FRAME_LENGTH(hsai->FrameInit.FrameLength));
  assert_param(IS_SAI_BLOCK_ACTIVE_FRAME(hsai->FrameInit.ActiveFrameLength));
  assert_param(IS_SAI_BLOCK_FS_DEFINITION(hsai->FrameInit.FSDefinition));
  assert_param(IS_SAI_BLOCK_FS_POLARITY(hsai->FrameInit.FSPolarity));
  assert_param(IS_SAI_BLOCK_FS_OFFSET(hsai->FrameInit.FSOffset));
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  /* Check the SAI Block Slot parameters */
  assert_param(IS_SAI_BLOCK_FIRSTBIT_OFFSET(hsai->SlotInit.FirstBitOffset));
  assert_param(IS_SAI_BLOCK_SLOT_SIZE(hsai->SlotInit.SlotSize));
  assert_param(IS_SAI_BLOCK_SLOT_NUMBER(hsai->SlotInit.SlotNumber));
  assert_param(IS_SAI_SLOT_ACTIVE(hsai->SlotInit.SlotActive));
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  /* Check the SAI PDM parameters */
  assert_param(IS_FUNCTIONAL_STATE(hsai->Init.PdmInit.Activation));
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  if(hsai->Init.PdmInit.Activation == ENABLE)
  {
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    /* Check the SAI PDM Microphone pairs number parameter */
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    assert_param(IS_SAI_PDM_MIC_PAIRS_NUMBER(hsai->Init.PdmInit.MicPairsNbr));
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    /* Check the SAI PDM clock enable paramater */
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    assert_param(IS_SAI_PDM_CLOCK_ENABLE(hsai->Init.PdmInit.ClockEnable));
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    /* The PDM function is intended to be used in conjunction with SAI_A sub-block
       configured in TDM MASTER mode. It cannot be used with SAI_B sub-block.
       Make sure that the SAI is already operating in TDM master mode before
       enabling the PDM interface */
    if(((hsai->Instance != SAI1_Block_A) && (hsai->Instance != SAI2_Block_A) && \
        (hsai->Instance != SAI3_Block_A) && (hsai->Instance != SAI4_Block_A)) || \
        (hsai->Init.AudioMode != SAI_MODEMASTER_RX) ||  \
        (hsai->Init.Protocol != SAI_FREE_PROTOCOL))
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    {
      return HAL_ERROR;
    }
  }
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  /* Get the SAI base address according to the SAI handle */
  if((hsai->Instance == SAI1_Block_A) || (hsai->Instance == SAI1_Block_B))
  {
    SaiBaseAddress = SAI1;
  }
  else if((hsai->Instance == SAI2_Block_A) || (hsai->Instance == SAI2_Block_B))
  {
    SaiBaseAddress = SAI2;
  }
  else if((hsai->Instance == SAI3_Block_A) || (hsai->Instance == SAI3_Block_B))
  {
    SaiBaseAddress = SAI3;
  }
  else
  {
    SaiBaseAddress = SAI4;
  }

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  if(hsai->State == HAL_SAI_STATE_RESET)
  {
    /* Allocate lock resource and initialize it */
    hsai->Lock = HAL_UNLOCKED;
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    /* Init the low level hardware : GPIO, CLOCK, NVIC and DMA */
    HAL_SAI_MspInit(hsai);
  }
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  hsai->State = HAL_SAI_STATE_BUSY;
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  /* Disable the selected SAI peripheral */
  SAI_Disable(hsai);
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  /* SAI PDM Configuration -----------------------------------------*/
  /* Disable PDM interface */
  CLEAR_BIT(SaiBaseAddress->PDMCR, SAI_PDMCR_PDMEN);

  if(hsai->Init.PdmInit.Activation == ENABLE)
  {
    /* Configure and enable the PDM interface */
    SaiBaseAddress->PDMCR = (hsai->Init.PdmInit.ClockEnable |
                           ((hsai->Init.PdmInit.MicPairsNbr - 1) << SAI_PDMCR_MICNBR_OFFSET));
    SET_BIT(SaiBaseAddress->PDMCR, SAI_PDMCR_PDMEN);
  }

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  /* SAI Block Synchro Configuration -----------------------------------------*/
  /* This setting must be done with both audio block (A & B) disabled         */
  switch(hsai->Init.SynchroExt)
  {
    case SAI_SYNCEXT_DISABLE :
      tmpregisterGCR = 0;
      break;
    case SAI_SYNCEXT_OUTBLOCKA_ENABLE :
      tmpregisterGCR = SAI_GCR_SYNCOUT_0;
      break;
    case SAI_SYNCEXT_OUTBLOCKB_ENABLE :
      tmpregisterGCR = SAI_GCR_SYNCOUT_1;
      break;
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    default:
      break;
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  }
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  switch(hsai->Init.Synchro)
  {
    case SAI_ASYNCHRONOUS :
      {
        syncen_bits = 0;
      }
      break;
    case SAI_SYNCHRONOUS :
      {
        syncen_bits = SAI_xCR1_SYNCEN_0;
      }
      break;
    case SAI_SYNCHRONOUS_EXT_SAI1 :
      {
        syncen_bits = SAI_xCR1_SYNCEN_1;
      }
      break;
    case SAI_SYNCHRONOUS_EXT_SAI2 :
      {
        syncen_bits = SAI_xCR1_SYNCEN_1;
        tmpregisterGCR |= SAI_GCR_SYNCIN_0;
      }
      break;
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    default:
      break;
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  }
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  /* Set the SAI Block Synchro Configuration */
  SaiBaseAddress->GCR = tmpregisterGCR;

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  if(hsai->Init.AudioFrequency != SAI_AUDIO_FREQUENCY_MCKDIV)
  {
    uint32_t freq = 0;
    uint32_t tmpval;
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    if((hsai->Instance == SAI1_Block_A ) || (hsai->Instance == SAI1_Block_B ))
    {
      freq = HAL_RCCEx_GetPeriphCLKFreq(RCC_PERIPHCLK_SAI1);
    }
    if((hsai->Instance == SAI2_Block_A ) || (hsai->Instance == SAI2_Block_B ))
    {
      freq = HAL_RCCEx_GetPeriphCLKFreq(RCC_PERIPHCLK_SAI2);
    }
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    if((hsai->Instance == SAI3_Block_A ) || (hsai->Instance == SAI3_Block_B ))
    {
      freq = HAL_RCCEx_GetPeriphCLKFreq(RCC_PERIPHCLK_SAI3);
    }
    if(hsai->Instance == SAI4_Block_A)
    {
      freq = HAL_RCCEx_GetPeriphCLKFreq(RCC_PERIPHCLK_SAI4A);
    }
    if(hsai->Instance == SAI4_Block_B)
    {
      freq = HAL_RCCEx_GetPeriphCLKFreq(RCC_PERIPHCLK_SAI4B);
    }

    /* Configure Master Clock using the following formula :
       If NOMCK = 1
       MCKDIV[5:0] = SAI_CK_x / (FS * (FRL + 1))
       If NOMCK = 0
       MCKDIV[5:0] = SAI_CK_x / (FS * (OSR + 1) * 256) */
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    if(hsai->Init.NoDivider == SAI_MASTERDIVIDER_DISABLE)
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    {
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      /* (freq x 10) to keep Significant digits */
      tmpval = (freq * 10) / (hsai->Init.AudioFrequency * hsai->FrameInit.FrameLength);
    }
    else
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    {
      /* NOMCK = 0 */
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      uint32_t tmposr;
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      tmposr = (hsai->Init.MckOverSampling == SAI_MCK_OVERSAMPLING_ENABLE)? 2 : 1;

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      /* (freq x 10) to keep Significant digits */
      tmpval = (freq * 10) / (hsai->Init.AudioFrequency * tmposr * 256);
    }
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    hsai->Init.Mckdiv = tmpval / 10;
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    /* Round result to the nearest integer */
    if((tmpval % 10) > 8)
    {
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      hsai->Init.Mckdiv += 1;
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    }
  }
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  /* Compute CKSTR bits of SAI CR1 according ClockStrobing and AudioMode */
  if((hsai->Init.AudioMode == SAI_MODEMASTER_TX) || (hsai->Init.AudioMode == SAI_MODESLAVE_TX))
  { /* Transmit */
    ckstr_bits = (hsai->Init.ClockStrobing == SAI_CLOCKSTROBING_RISINGEDGE) ? 0 : SAI_xCR1_CKSTR;
  }
  else
  { /* Receive */
    ckstr_bits = (hsai->Init.ClockStrobing == SAI_CLOCKSTROBING_RISINGEDGE) ? SAI_xCR1_CKSTR : 0;
  }
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  /* SAI Block Configuration -------------------------------------------------*/
  /* SAI CR1 Configuration */
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  hsai->Instance->CR1 &=~ (SAI_xCR1_MODE | SAI_xCR1_PRTCFG |  SAI_xCR1_DS |      \
                           SAI_xCR1_LSBFIRST | SAI_xCR1_CKSTR | SAI_xCR1_SYNCEN |\
                           SAI_xCR1_MONO | SAI_xCR1_OUTDRIV  | SAI_xCR1_DMAEN |  \
                           SAI_xCR1_NOMCK | SAI_xCR1_MCKDIV);

  hsai->Instance->CR1 |= (hsai->Init.AudioMode | hsai->Init.Protocol |           \
                          hsai->Init.DataSize | hsai->Init.FirstBit  |           \
                          ckstr_bits | syncen_bits |                             \
                          hsai->Init.MonoStereoMode | hsai->Init.OutputDrive |   \
                          hsai->Init.NoDivider | (hsai->Init.Mckdiv << 20) |     \
572
                        hsai->Init.MckOverSampling);
573

574
  /* SAI CR2 Configuration */
575 576 577
  hsai->Instance->CR2 &= ~(SAI_xCR2_FTH | SAI_xCR2_FFLUSH | SAI_xCR2_COMP | SAI_xCR2_CPL);
  hsai->Instance->CR2 |=  (hsai->Init.FIFOThreshold | hsai->Init.CompandingMode | hsai->Init.TriState);

578
  /* SAI Frame Configuration -----------------------------------------*/
579 580 581 582 583 584 585 586
  hsai->Instance->FRCR &= (~(SAI_xFRCR_FRL | SAI_xFRCR_FSALL | SAI_xFRCR_FSDEF | \
                            SAI_xFRCR_FSPOL | SAI_xFRCR_FSOFF));
  hsai->Instance->FRCR |= ((hsai->FrameInit.FrameLength - 1) | \
                            hsai->FrameInit.FSOffset |         \
                            hsai->FrameInit.FSDefinition |     \
                            hsai->FrameInit.FSPolarity   |     \
                            ((hsai->FrameInit.ActiveFrameLength - 1) << 8));

587 588
  /* SAI Block_x SLOT Configuration ------------------------------------------*/
  /* This register has no meaning in AC 97 and SPDIF audio protocol */
589
  hsai->Instance->SLOTR &= (~(SAI_xSLOTR_FBOFF | SAI_xSLOTR_SLOTSZ |  \
590
                             SAI_xSLOTR_NBSLOT | SAI_xSLOTR_SLOTEN ));
591 592 593 594

  hsai->Instance->SLOTR |=  hsai->SlotInit.FirstBitOffset |  hsai->SlotInit.SlotSize | \
                            (hsai->SlotInit.SlotActive << 16) | ((hsai->SlotInit.SlotNumber - 1) <<  8);

595 596
  /* Initialize the error code */
  hsai->ErrorCode = HAL_SAI_ERROR_NONE;
597

598 599
  /* Initialize the SAI state */
  hsai->State= HAL_SAI_STATE_READY;
600

601 602
  /* Release Lock */
  __HAL_UNLOCK(hsai);
603

604 605 606 607 608
  return HAL_OK;
}

/**
  * @brief  DeInitialize the SAI peripheral.
609
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
610
  *              the configuration information for SAI module.
611 612 613 614
  * @retval HAL status
  */
HAL_StatusTypeDef HAL_SAI_DeInit(SAI_HandleTypeDef *hsai)
{
615 616
  SAI_TypeDef *SaiBaseAddress;

617 618 619 620 621
  /* Check the SAI handle allocation */
  if(hsai == NULL)
  {
    return HAL_ERROR;
  }
622

623
  hsai->State = HAL_SAI_STATE_BUSY;
624

625 626 627
  /* Disabled All interrupt and clear all the flag */
  hsai->Instance->IMR = 0;
  hsai->Instance->CLRFR = 0xFFFFFFFFU;
628 629 630 631 632 633 634 635 636 637 638 639 640 641

  /* Disable the SAI PDM interface */
  if((hsai->Instance == SAI1_Block_A) || (hsai->Instance == SAI2_Block_A) || \
     (hsai->Instance == SAI3_Block_A) || (hsai->Instance == SAI4_Block_A))
  {
    /* Get the SAI base address according to the SAI handle */
    SaiBaseAddress = (hsai->Instance == SAI1_Block_A)   ? SAI1 : \
                      ((hsai->Instance == SAI2_Block_A) ? SAI2 : \
                      ((hsai->Instance == SAI3_Block_A) ? SAI3 : SAI4));

    /* Disable PDM interface */
    CLEAR_BIT(SaiBaseAddress->PDMCR, SAI_PDMCR_PDMEN);
  }

642 643
  /* Disable the SAI */
  SAI_Disable(hsai);
644

645 646
  /* Flush the fifo */
  SET_BIT(hsai->Instance->CR2, SAI_xCR2_FFLUSH);
647

648 649
  /* DeInit the low level hardware: GPIO, CLOCK, NVIC and DMA */
  HAL_SAI_MspDeInit(hsai);
650

651 652
  /* Initialize the error code */
  hsai->ErrorCode = HAL_SAI_ERROR_NONE;
653

654 655
  /* Initialize the SAI state */
  hsai->State = HAL_SAI_STATE_RESET;
656

657 658
  /* Release Lock */
  __HAL_UNLOCK(hsai);
659

660 661 662 663 664
  return HAL_OK;
}

/**
  * @brief Initialize the SAI MSP.
665
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
666
  *              the configuration information for SAI module.
667 668 669 670 671 672
  * @retval None
  */
__weak void HAL_SAI_MspInit(SAI_HandleTypeDef *hsai)
{
  /* Prevent unused argument(s) compilation warning */
  UNUSED(hsai);
673

674 675 676 677 678 679 680
  /* NOTE : This function should not be modified, when the callback is needed,
            the HAL_SAI_MspInit could be implemented in the user file
   */
}

/**
  * @brief DeInitialize the SAI MSP.
681
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
682
  *              the configuration information for SAI module.
683 684 685 686 687 688
  * @retval None
  */
__weak void HAL_SAI_MspDeInit(SAI_HandleTypeDef *hsai)
{
  /* Prevent unused argument(s) compilation warning */
  UNUSED(hsai);
689

690 691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711 712 713 714 715 716 717 718 719 720 721 722 723 724 725 726 727 728 729 730 731 732 733 734 735 736 737 738 739 740 741 742
  /* NOTE : This function should not be modified, when the callback is needed,
            the HAL_SAI_MspDeInit could be implemented in the user file
   */
}

/**
  * @}
  */

/** @defgroup SAI_Exported_Functions_Group2 IO operation functions
 *  @brief    Data transfers functions
 *
@verbatim
  ==============================================================================
                      ##### IO operation functions #####
  ==============================================================================
  [..]
    This subsection provides a set of functions allowing to manage the SAI data
    transfers.

    (+) There are two modes of transfer:
      (++) Blocking mode : The communication is performed in the polling mode.
           The status of all data processing is returned by the same function
           after finishing transfer.
      (++) No-Blocking mode : The communication is performed using Interrupts
           or DMA. These functions return the status of the transfer startup.
           The end of the data processing will be indicated through the
           dedicated SAI IRQ when using Interrupt mode or the DMA IRQ when
           using DMA mode.

    (+) Blocking mode functions are :
      (++) HAL_SAI_Transmit()
      (++) HAL_SAI_Receive()

    (+) Non Blocking mode functions with Interrupt are :
      (++) HAL_SAI_Transmit_IT()
      (++) HAL_SAI_Receive_IT()

    (+) Non Blocking mode functions with DMA are :
      (++) HAL_SAI_Transmit_DMA()
      (++) HAL_SAI_Receive_DMA()

    (+) A set of Transfer Complete Callbacks are provided in non Blocking mode:
      (++) HAL_SAI_TxCpltCallback()
      (++) HAL_SAI_RxCpltCallback()
      (++) HAL_SAI_ErrorCallback()

@endverbatim
  * @{
  */

/**
  * @brief  Transmit an amount of data in blocking mode.
743
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
744
  *              the configuration information for SAI module.
745 746 747
  * @param  pData Pointer to data buffer
  * @param  Size Amount of data to be sent
  * @param  Timeout Timeout duration
748 749 750 751 752
  * @retval HAL status
  */
HAL_StatusTypeDef HAL_SAI_Transmit(SAI_HandleTypeDef *hsai, uint8_t* pData, uint16_t Size, uint32_t Timeout)
{
  uint32_t tickstart = HAL_GetTick();
753

754 755 756 757
  if((pData == NULL ) || (Size == 0))
  {
    return  HAL_ERROR;
  }
758

759 760 761 762
  if(hsai->State == HAL_SAI_STATE_READY)
  {
    /* Process Locked */
    __HAL_LOCK(hsai);
763

764 765 766 767 768
    hsai->XferSize = Size;
    hsai->XferCount = Size;
    hsai->pBuffPtr = pData;
    hsai->State = HAL_SAI_STATE_BUSY_TX;
    hsai->ErrorCode = HAL_SAI_ERROR_NONE;
769

770 771 772 773 774 775 776 777
    /* Check if the SAI is already enabled */
    if((hsai->Instance->CR1 & SAI_xCR1_SAIEN) == RESET)
    {
      /* fill the fifo with data before to enabled the SAI */
      SAI_FillFifo(hsai);
      /* Enable SAI peripheral */
      __HAL_SAI_ENABLE(hsai);
    }
778

779 780 781 782 783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799 800 801 802 803 804 805 806
    while(hsai->XferCount > 0)
    {
      /* Write data if the FIFO is not full */
      if((hsai->Instance->SR & SAI_xSR_FLVL) != SAI_FIFOSTATUS_FULL)
      {
        if((hsai->Init.DataSize == SAI_DATASIZE_8) && (hsai->Init.CompandingMode == SAI_NOCOMPANDING))
        {
          hsai->Instance->DR = (*hsai->pBuffPtr++);
        }
        else if(hsai->Init.DataSize <= SAI_DATASIZE_16)
        {
          hsai->Instance->DR = *((uint16_t *)hsai->pBuffPtr);
          hsai->pBuffPtr+= 2;
        }
        else
        {
          hsai->Instance->DR = *((uint32_t *)hsai->pBuffPtr);
          hsai->pBuffPtr+= 4;
        }
        hsai->XferCount--;
      }
      else
      {
        /* Check for the Timeout */
        if((Timeout != HAL_MAX_DELAY) && ((Timeout == 0)||((HAL_GetTick() - tickstart ) > Timeout)))
        {
          /* Update error code */
          hsai->ErrorCode |= HAL_SAI_ERROR_TIMEOUT;
807

808 809
          /* Clear all the flags */
          hsai->Instance->CLRFR = 0xFFFFFFFFU;
810

811 812
          /* Disable SAI peripheral */
          SAI_Disable(hsai);
813

814 815
          /* Flush the fifo */
          SET_BIT(hsai->Instance->CR2, SAI_xCR2_FFLUSH);
816

817 818
          /* Change the SAI state */
          hsai->State = HAL_SAI_STATE_READY;
819

820 821
          /* Process Unlocked */
          __HAL_UNLOCK(hsai);
822

823 824 825 826
          return HAL_ERROR;
        }
      }
    }
827

828
    hsai->State = HAL_SAI_STATE_READY;
829

830 831
    /* Process Unlocked */
    __HAL_UNLOCK(hsai);
832

833 834 835 836 837 838 839 840 841 842
    return HAL_OK;
  }
  else
  {
    return HAL_BUSY;
  }
}

/**
  * @brief  Receive an amount of data in blocking mode.
843
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
844
  *              the configuration information for SAI module.
845 846 847
  * @param  pData Pointer to data buffer
  * @param  Size Amount of data to be received
  * @param  Timeout Timeout duration
848 849 850 851 852
  * @retval HAL status
  */
HAL_StatusTypeDef HAL_SAI_Receive(SAI_HandleTypeDef *hsai, uint8_t *pData, uint16_t Size, uint32_t Timeout)
{
  uint32_t tickstart = HAL_GetTick();
853

854 855 856 857
  if((pData == NULL ) || (Size == 0))
  {
    return  HAL_ERROR;
  }
858

859 860 861 862
  if(hsai->State == HAL_SAI_STATE_READY)
  {
    /* Process Locked */
    __HAL_LOCK(hsai);
863

864 865 866 867 868
    hsai->pBuffPtr = pData;
    hsai->XferSize = Size;
    hsai->XferCount = Size;
    hsai->State = HAL_SAI_STATE_BUSY_RX;
    hsai->ErrorCode = HAL_SAI_ERROR_NONE;
869

870 871 872 873 874 875
    /* Check if the SAI is already enabled */
    if((hsai->Instance->CR1 & SAI_xCR1_SAIEN) == RESET)
    {
      /* Enable SAI peripheral */
      __HAL_SAI_ENABLE(hsai);
    }
876

877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904
    /* Receive data */
    while(hsai->XferCount > 0)
    {
      if((hsai->Instance->SR & SAI_xSR_FLVL) != SAI_FIFOSTATUS_EMPTY)
      {
        if((hsai->Init.DataSize == SAI_DATASIZE_8) && (hsai->Init.CompandingMode == SAI_NOCOMPANDING))
        {
          (*hsai->pBuffPtr++) = hsai->Instance->DR;
        }
        else if(hsai->Init.DataSize <= SAI_DATASIZE_16)
        {
          *((uint16_t*)hsai->pBuffPtr) = hsai->Instance->DR;
          hsai->pBuffPtr+= 2;
        }
        else
        {
          *((uint32_t*)hsai->pBuffPtr) = hsai->Instance->DR;
          hsai->pBuffPtr+= 4;
        }
        hsai->XferCount--;
      }
      else
      {
        /* Check for the Timeout */
        if((Timeout != HAL_MAX_DELAY) && ((Timeout == 0)||((HAL_GetTick() - tickstart ) > Timeout)))
        {
          /* Update error code */
          hsai->ErrorCode |= HAL_SAI_ERROR_TIMEOUT;
905

906 907
          /* Clear all the flags */
          hsai->Instance->CLRFR = 0xFFFFFFFFU;
908

909 910
          /* Disable SAI peripheral */
          SAI_Disable(hsai);
911

912 913
          /* Flush the fifo */
          SET_BIT(hsai->Instance->CR2, SAI_xCR2_FFLUSH);
914

915 916
          /* Change the SAI state */
          hsai->State = HAL_SAI_STATE_READY;
917

918 919
          /* Process Unlocked */
          __HAL_UNLOCK(hsai);
920

921 922 923 924
          return HAL_ERROR;
        }
      }
    }
925

926
    hsai->State = HAL_SAI_STATE_READY;
927

928 929
    /* Process Unlocked */
    __HAL_UNLOCK(hsai);
930

931 932 933 934 935 936 937 938 939 940
    return HAL_OK;
  }
  else
  {
    return HAL_BUSY;
  }
}

/**
  * @brief  Transmit an amount of data in non-blocking mode with Interrupt.
941
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
942
  *              the configuration information for SAI module.
943 944
  * @param  pData Pointer to data buffer
  * @param  Size Amount of data to be sent
945 946 947 948 949 950 951 952
  * @retval HAL status
  */
HAL_StatusTypeDef HAL_SAI_Transmit_IT(SAI_HandleTypeDef *hsai, uint8_t *pData, uint16_t Size)
{
  if((pData == NULL) || (Size == 0))
  {
    return  HAL_ERROR;
  }
953

954 955 956 957
  if(hsai->State == HAL_SAI_STATE_READY)
  {
    /* Process Locked */
    __HAL_LOCK(hsai);
958

959 960 961 962 963
    hsai->pBuffPtr = pData;
    hsai->XferSize = Size;
    hsai->XferCount = Size;
    hsai->ErrorCode = HAL_SAI_ERROR_NONE;
    hsai->State = HAL_SAI_STATE_BUSY_TX;
964

965 966 967 968 969 970 971 972 973 974 975 976
    if((hsai->Init.DataSize == SAI_DATASIZE_8) && (hsai->Init.CompandingMode == SAI_NOCOMPANDING))
    {
      hsai->InterruptServiceRoutine = SAI_Transmit_IT8Bit;
    }
    else if(hsai->Init.DataSize <= SAI_DATASIZE_16)
    {
      hsai->InterruptServiceRoutine = SAI_Transmit_IT16Bit;
    }
    else
    {
      hsai->InterruptServiceRoutine = SAI_Transmit_IT32Bit;
    }
977

978 979
    /* Fill the fifo before starting the communication */
    SAI_FillFifo(hsai);
980

981 982
    /* Enable FRQ and OVRUDR interrupts */
    __HAL_SAI_ENABLE_IT(hsai, SAI_InterruptFlag(hsai, SAI_MODE_IT));
983

984 985 986 987 988 989 990 991
    /* Check if the SAI is already enabled */
    if((hsai->Instance->CR1 & SAI_xCR1_SAIEN) == RESET)
    {
      /* Enable SAI peripheral */
      __HAL_SAI_ENABLE(hsai);
    }
    /* Process Unlocked */
    __HAL_UNLOCK(hsai);
992

993 994 995 996 997 998 999 1000 1001 1002
    return HAL_OK;
  }
  else
  {
    return HAL_BUSY;
  }
}

/**
  * @brief  Receive an amount of data in non-blocking mode with Interrupt.
1003
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1004
  *              the configuration information for SAI module.
1005 1006
  * @param  pData Pointer to data buffer
  * @param  Size Amount of data to be received
1007 1008 1009 1010 1011 1012 1013 1014
  * @retval HAL status
  */
HAL_StatusTypeDef HAL_SAI_Receive_IT(SAI_HandleTypeDef *hsai, uint8_t *pData, uint16_t Size)
{
  if((pData == NULL) || (Size == 0))
  {
    return  HAL_ERROR;
  }
1015

1016 1017 1018 1019
  if(hsai->State == HAL_SAI_STATE_READY)
  {
    /* Process Locked */
    __HAL_LOCK(hsai);
1020

1021 1022 1023 1024 1025
    hsai->pBuffPtr = pData;
    hsai->XferSize = Size;
    hsai->XferCount = Size;
    hsai->ErrorCode = HAL_SAI_ERROR_NONE;
    hsai->State = HAL_SAI_STATE_BUSY_RX;
1026

1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038
    if((hsai->Init.DataSize == SAI_DATASIZE_8) && (hsai->Init.CompandingMode == SAI_NOCOMPANDING))
    {
      hsai->InterruptServiceRoutine = SAI_Receive_IT8Bit;
    }
    else if(hsai->Init.DataSize <= SAI_DATASIZE_16)
    {
      hsai->InterruptServiceRoutine = SAI_Receive_IT16Bit;
    }
    else
    {
      hsai->InterruptServiceRoutine = SAI_Receive_IT32Bit;
    }
1039

1040 1041
    /* Enable TXE and OVRUDR interrupts */
    __HAL_SAI_ENABLE_IT(hsai, SAI_InterruptFlag(hsai, SAI_MODE_IT));
1042

1043 1044 1045 1046 1047 1048
    /* Check if the SAI is already enabled */
    if((hsai->Instance->CR1 & SAI_xCR1_SAIEN) == RESET)
    {
      /* Enable SAI peripheral */
      __HAL_SAI_ENABLE(hsai);
    }
1049

1050 1051
    /* Process Unlocked */
    __HAL_UNLOCK(hsai);
1052

1053 1054 1055 1056 1057 1058 1059 1060 1061 1062
    return HAL_OK;
  }
  else
  {
    return HAL_BUSY;
  }
}

/**
  * @brief Pause the audio stream playing from the Media.
1063
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1064
  *              the configuration information for SAI module.
1065 1066 1067 1068 1069 1070
  * @retval HAL status
  */
HAL_StatusTypeDef HAL_SAI_DMAPause(SAI_HandleTypeDef *hsai)
{
  /* Process Locked */
  __HAL_LOCK(hsai);
1071

1072 1073
  /* Pause the audio file playing by disabling the SAI DMA requests */
  hsai->Instance->CR1 &= ~SAI_xCR1_DMAEN;
1074

1075 1076
  /* Process Unlocked */
  __HAL_UNLOCK(hsai);
1077

1078 1079 1080 1081 1082
  return HAL_OK;
}

/**
  * @brief Resume the audio stream playing from the Media.
1083
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1084
  *              the configuration information for SAI module.
1085 1086 1087 1088 1089 1090
  * @retval HAL status
  */
HAL_StatusTypeDef HAL_SAI_DMAResume(SAI_HandleTypeDef *hsai)
{
  /* Process Locked */
  __HAL_LOCK(hsai);
1091

1092 1093
  /* Enable the SAI DMA requests */
  hsai->Instance->CR1 |= SAI_xCR1_DMAEN;
1094

1095 1096 1097 1098 1099 1100
  /* If the SAI peripheral is still not enabled, enable it */
  if ((hsai->Instance->CR1 & SAI_xCR1_SAIEN) == RESET)
  {
    /* Enable SAI peripheral */
    __HAL_SAI_ENABLE(hsai);
  }
1101

1102 1103
  /* Process Unlocked */
  __HAL_UNLOCK(hsai);
1104

1105 1106 1107 1108 1109
  return HAL_OK;
}

/**
  * @brief Stop the audio stream playing from the Media.
1110
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1111
  *              the configuration information for SAI module.
1112 1113 1114 1115
  * @retval HAL status
  */
HAL_StatusTypeDef HAL_SAI_DMAStop(SAI_HandleTypeDef *hsai)
{
1116 1117
  HAL_StatusTypeDef status = HAL_OK;

1118 1119
  /* Process Locked */
  __HAL_LOCK(hsai);
1120

1121 1122
  /* Disable the SAI DMA request */
  hsai->Instance->CR1 &= ~SAI_xCR1_DMAEN;
1123 1124 1125

  /* Abort the SAI Tx DMA Stream */
  if((hsai->hdmatx != NULL) && (hsai->State == HAL_SAI_STATE_BUSY_TX))
1126 1127 1128
  {
    if(HAL_DMA_Abort(hsai->hdmatx) != HAL_OK)
    {
1129 1130 1131 1132 1133
      /* If the DMA Tx errorCode is different from DMA No Transfer then return Error */
      if(hsai->hdmatx->ErrorCode != HAL_DMA_ERROR_NO_XFER)
      {
        status = HAL_ERROR;
      }
1134 1135
    }
  }
1136 1137 1138

  /* Abort the SAI Rx DMA Stream */
  if((hsai->hdmarx != NULL) && (hsai->State == HAL_SAI_STATE_BUSY_RX))
1139 1140 1141
  {
    if(HAL_DMA_Abort(hsai->hdmarx) != HAL_OK)
    {
1142 1143 1144 1145 1146
      /* If the DMA Rx errorCode is different from DMA No Transfer then return Error */
      if(hsai->hdmarx->ErrorCode != HAL_DMA_ERROR_NO_XFER)
      {
        status = HAL_ERROR;
      }
1147 1148
    }
  }
1149

1150 1151
  /* Disable SAI peripheral */
  SAI_Disable(hsai);
1152

1153
  /* Set hsai state to ready */
1154
  hsai->State = HAL_SAI_STATE_READY;
1155

1156 1157
  /* Process Unlocked */
  __HAL_UNLOCK(hsai);
1158 1159

  return status;
1160 1161 1162 1163
}

/**
  * @brief Abort the current transfer and disable the SAI.
1164
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1165
  *              the configuration information for SAI module.
1166 1167 1168 1169 1170 1171
  * @retval HAL status
  */
HAL_StatusTypeDef HAL_SAI_Abort(SAI_HandleTypeDef *hsai)
{
  /* Process Locked */
  __HAL_LOCK(hsai);
1172

1173 1174 1175 1176 1177
  /* Check SAI DMA is enabled or not */
  if((hsai->Instance->CR1 & SAI_xCR1_DMAEN) == SAI_xCR1_DMAEN)
  {
    /* Disable the SAI DMA request */
    hsai->Instance->CR1 &= ~SAI_xCR1_DMAEN;
1178

1179 1180 1181 1182 1183 1184 1185 1186
    /* Abort the SAI DMA Streams */
    if(hsai->hdmatx != NULL)
    {
      if(HAL_DMA_Abort(hsai->hdmatx) != HAL_OK)
      {
        return HAL_ERROR;
      }
    }
1187

1188 1189 1190 1191 1192 1193 1194 1195
    if(hsai->hdmarx != NULL)
    {
      if(HAL_DMA_Abort(hsai->hdmarx) != HAL_OK)
      {
        return HAL_ERROR;
      }
    }
  }
1196

1197 1198 1199
  /* Disabled All interrupt and clear all the flag */
  hsai->Instance->IMR = 0;
  hsai->Instance->CLRFR = 0xFFFFFFFFU;
1200

1201 1202
  /* Disable SAI peripheral */
  SAI_Disable(hsai);
1203

1204 1205
  /* Flush the fifo */
  SET_BIT(hsai->Instance->CR2, SAI_xCR2_FFLUSH);
1206

1207
  hsai->State = HAL_SAI_STATE_READY;
1208

1209 1210
  /* Process Unlocked */
  __HAL_UNLOCK(hsai);
1211

1212 1213 1214 1215 1216
  return HAL_OK;
}

/**
  * @brief  Transmit an amount of data in non-blocking mode with DMA.
1217
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1218
  *              the configuration information for SAI module.
1219 1220
  * @param  pData Pointer to data buffer
  * @param  Size Amount of data to be sent
1221 1222 1223 1224 1225 1226 1227 1228 1229 1230
  * @retval HAL status
  */
HAL_StatusTypeDef HAL_SAI_Transmit_DMA(SAI_HandleTypeDef *hsai, uint8_t *pData, uint16_t Size)
{
  uint32_t tickstart = HAL_GetTick();

  if((pData == NULL) || (Size == 0))
  {
    return  HAL_ERROR;
  }
1231

1232 1233 1234 1235
  if(hsai->State == HAL_SAI_STATE_READY)
  {
    /* Process Locked */
    __HAL_LOCK(hsai);
1236

1237 1238 1239 1240 1241
    hsai->pBuffPtr = pData;
    hsai->XferSize = Size;
    hsai->XferCount = Size;
    hsai->ErrorCode = HAL_SAI_ERROR_NONE;
    hsai->State = HAL_SAI_STATE_BUSY_TX;
1242

1243 1244
    /* Set the SAI Tx DMA Half transfer complete callback */
    hsai->hdmatx->XferHalfCpltCallback = SAI_DMATxHalfCplt;
1245

1246 1247
    /* Set the SAI TxDMA transfer complete callback */
    hsai->hdmatx->XferCpltCallback = SAI_DMATxCplt;
1248

1249 1250
    /* Set the DMA error callback */
    hsai->hdmatx->XferErrorCallback = SAI_DMAError;
1251

1252 1253
    /* Set the DMA Tx abort callback */
    hsai->hdmatx->XferAbortCallback = NULL;
1254

1255 1256 1257 1258 1259 1260
    /* Enable the Tx DMA Stream */
    if(HAL_DMA_Start_IT(hsai->hdmatx, (uint32_t)hsai->pBuffPtr, (uint32_t)&hsai->Instance->DR, hsai->XferSize) != HAL_OK)
    {
      __HAL_UNLOCK(hsai);
      return  HAL_ERROR;
    }
1261

1262 1263
    /* Enable the interrupts for error handling */
    __HAL_SAI_ENABLE_IT(hsai, SAI_InterruptFlag(hsai, SAI_MODE_DMA));
1264

1265 1266
    /* Enable SAI Tx DMA Request */
    hsai->Instance->CR1 |= SAI_xCR1_DMAEN;
1267

1268 1269 1270 1271 1272 1273 1274 1275
    /* Wait untill FIFO is not empty */
    while((hsai->Instance->SR & SAI_xSR_FLVL) == SAI_FIFOSTATUS_EMPTY)
    {
      /* Check for the Timeout */
      if((HAL_GetTick() - tickstart) > SAI_LONG_TIMEOUT)
      {
        /* Update error code */
        hsai->ErrorCode |= HAL_SAI_ERROR_TIMEOUT;
1276

1277 1278 1279 1280 1281 1282
        /* Process Unlocked */
        __HAL_UNLOCK(hsai);

        return HAL_TIMEOUT;
      }
    }
1283

1284 1285 1286 1287 1288 1289
    /* Check if the SAI is already enabled */
    if((hsai->Instance->CR1 & SAI_xCR1_SAIEN) == RESET)
    {
      /* Enable SAI peripheral */
      __HAL_SAI_ENABLE(hsai);
    }
1290

1291 1292
    /* Process Unlocked */
    __HAL_UNLOCK(hsai);
1293

1294 1295 1296 1297 1298 1299 1300 1301 1302 1303
    return HAL_OK;
  }
  else
  {
    return HAL_BUSY;
  }
}

/**
  * @brief  Receive an amount of data in non-blocking mode with DMA.
1304
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1305
  *              the configuration information for SAI module.
1306 1307
  * @param  pData Pointer to data buffer
  * @param  Size Amount of data to be received
1308 1309 1310 1311 1312 1313 1314 1315 1316
  * @retval HAL status
  */
HAL_StatusTypeDef HAL_SAI_Receive_DMA(SAI_HandleTypeDef *hsai, uint8_t *pData, uint16_t Size)
{

  if((pData == NULL) || (Size == 0))
  {
    return  HAL_ERROR;
  }
1317

1318 1319 1320 1321
  if(hsai->State == HAL_SAI_STATE_READY)
  {
    /* Process Locked */
    __HAL_LOCK(hsai);
1322

1323 1324 1325 1326 1327
    hsai->pBuffPtr = pData;
    hsai->XferSize = Size;
    hsai->XferCount = Size;
    hsai->ErrorCode = HAL_SAI_ERROR_NONE;
    hsai->State = HAL_SAI_STATE_BUSY_RX;
1328

1329 1330
    /* Set the SAI Rx DMA Half transfer complete callback */
    hsai->hdmarx->XferHalfCpltCallback = SAI_DMARxHalfCplt;
1331

1332 1333
    /* Set the SAI Rx DMA transfer complete callback */
    hsai->hdmarx->XferCpltCallback = SAI_DMARxCplt;
1334

1335 1336
    /* Set the DMA error callback */
    hsai->hdmarx->XferErrorCallback = SAI_DMAError;
1337

1338 1339
    /* Set the DMA Rx abort callback */
    hsai->hdmarx->XferAbortCallback = NULL;
1340

1341 1342 1343 1344 1345 1346
    /* Enable the Rx DMA Stream */
    if(HAL_DMA_Start_IT(hsai->hdmarx, (uint32_t)&hsai->Instance->DR, (uint32_t)hsai->pBuffPtr, hsai->XferSize) != HAL_OK)
    {
      __HAL_UNLOCK(hsai);
      return  HAL_ERROR;
    }
1347

1348 1349 1350 1351 1352 1353
    /* Check if the SAI is already enabled */
    if((hsai->Instance->CR1 & SAI_xCR1_SAIEN) == RESET)
    {
      /* Enable SAI peripheral */
      __HAL_SAI_ENABLE(hsai);
    }
1354

1355 1356
    /* Enable the interrupts for error handling */
    __HAL_SAI_ENABLE_IT(hsai, SAI_InterruptFlag(hsai, SAI_MODE_DMA));
1357

1358 1359
    /* Enable SAI Rx DMA Request */
    hsai->Instance->CR1 |= SAI_xCR1_DMAEN;
1360

1361 1362
    /* Process Unlocked */
    __HAL_UNLOCK(hsai);
1363

1364 1365 1366 1367 1368 1369 1370 1371 1372 1373
    return HAL_OK;
  }
  else
  {
    return HAL_BUSY;
  }
}

/**
  * @brief  Enable the Tx mute mode.
1374
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1375
  *              the configuration information for SAI module.
1376
  * @param  val  value sent during the mute @ref SAI_Block_Mute_Value
1377 1378 1379 1380 1381
  * @retval HAL status
  */
HAL_StatusTypeDef HAL_SAI_EnableTxMuteMode(SAI_HandleTypeDef *hsai, uint16_t val)
{
  assert_param(IS_SAI_BLOCK_MUTE_VALUE(val));
1382

1383 1384 1385 1386 1387 1388 1389 1390 1391 1392 1393
  if(hsai->State != HAL_SAI_STATE_RESET)
  {
    CLEAR_BIT(hsai->Instance->CR2, SAI_xCR2_MUTEVAL | SAI_xCR2_MUTE);
    SET_BIT(hsai->Instance->CR2, SAI_xCR2_MUTE | val);
    return HAL_OK;
  }
  return HAL_ERROR;
}

/**
  * @brief  Disable the Tx mute mode.
1394
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1395
  *              the configuration information for SAI module.
1396 1397 1398 1399 1400 1401 1402 1403 1404 1405 1406 1407 1408 1409
  * @retval HAL status
  */
HAL_StatusTypeDef HAL_SAI_DisableTxMuteMode(SAI_HandleTypeDef *hsai)
{
  if(hsai->State != HAL_SAI_STATE_RESET)
  {
    CLEAR_BIT(hsai->Instance->CR2, SAI_xCR2_MUTEVAL | SAI_xCR2_MUTE);
    return HAL_OK;
  }
  return HAL_ERROR;
}

/**
  * @brief  Enable the Rx mute detection.
1410
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1411
  *              the configuration information for SAI module.
1412 1413
  * @param  callback function called when the mute is detected.
  * @param  counter number a data before mute detection max 63.
1414 1415 1416 1417 1418
  * @retval HAL status
  */
HAL_StatusTypeDef HAL_SAI_EnableRxMuteMode(SAI_HandleTypeDef *hsai, SAIcallback callback, uint16_t counter)
{
  assert_param(IS_SAI_BLOCK_MUTE_COUNTER(counter));
1419

1420 1421 1422 1423
  if(hsai->State != HAL_SAI_STATE_RESET)
  {
    /* set the mute counter */
    CLEAR_BIT(hsai->Instance->CR2, SAI_xCR2_MUTECNT);
1424
    SET_BIT(hsai->Instance->CR2, (uint32_t)((uint32_t)counter << SAI_xCR2_MUTECNT_OFFSET));
1425 1426 1427 1428 1429 1430 1431 1432 1433 1434
    hsai->mutecallback = callback;
    /* enable the IT interrupt */
    __HAL_SAI_ENABLE_IT(hsai, SAI_IT_MUTEDET);
    return HAL_OK;
  }
  return HAL_ERROR;
}

/**
  * @brief  Disable the Rx mute detection.
1435
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1436
  *              the configuration information for SAI module.
1437 1438 1439 1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453
  * @retval HAL status
  */
HAL_StatusTypeDef HAL_SAI_DisableRxMuteMode(SAI_HandleTypeDef *hsai)
{
  if(hsai->State != HAL_SAI_STATE_RESET)
  {
    /* set the mutecallback to NULL */
    hsai->mutecallback = (SAIcallback)NULL;
    /* enable the IT interrupt */
    __HAL_SAI_DISABLE_IT(hsai, SAI_IT_MUTEDET);
    return HAL_OK;
  }
  return HAL_ERROR;
}

/**
  * @brief  Handle SAI interrupt request.
1454
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1455
  *              the configuration information for SAI module.
1456 1457 1458 1459 1460 1461 1462 1463 1464 1465
  * @retval None
  */
void HAL_SAI_IRQHandler(SAI_HandleTypeDef *hsai)
{
  if(hsai->State != HAL_SAI_STATE_RESET)
  {
    uint32_t itflags = hsai->Instance->SR;
    uint32_t itsources = hsai->Instance->IMR;
    uint32_t cr1config = hsai->Instance->CR1;
    uint32_t tmperror;
1466

1467 1468 1469 1470 1471 1472 1473 1474 1475 1476 1477 1478 1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500
    /* SAI Fifo request interrupt occured ------------------------------------*/
    if(((itflags & SAI_xSR_FREQ) == SAI_xSR_FREQ) && ((itsources & SAI_IT_FREQ) == SAI_IT_FREQ))
    {
      hsai->InterruptServiceRoutine(hsai);
    }
    /* SAI Overrun error interrupt occurred ----------------------------------*/
    else if(((itflags & SAI_FLAG_OVRUDR) == SAI_FLAG_OVRUDR) && ((itsources & SAI_IT_OVRUDR) == SAI_IT_OVRUDR))
    {
      /* Clear the SAI Overrun flag */
      __HAL_SAI_CLEAR_FLAG(hsai, SAI_FLAG_OVRUDR);
      /* Get the SAI error code */
      tmperror = ((hsai->State == HAL_SAI_STATE_BUSY_RX) ? HAL_SAI_ERROR_OVR : HAL_SAI_ERROR_UDR);
      /* Change the SAI error code */
      hsai->ErrorCode |= tmperror;
      /* the transfer is not stopped, we will forward the information to the user and we let the user decide what needs to be done */
      HAL_SAI_ErrorCallback(hsai);
    }
    /* SAI mutedet interrupt occurred ----------------------------------*/
    else if(((itflags & SAI_FLAG_MUTEDET) == SAI_FLAG_MUTEDET) && ((itsources & SAI_IT_MUTEDET) == SAI_IT_MUTEDET))
    {
      /* Clear the SAI mutedet flag */
      __HAL_SAI_CLEAR_FLAG(hsai, SAI_FLAG_MUTEDET);
      /* call the call back function */
      if(hsai->mutecallback != (SAIcallback)NULL)
      {
        /* inform the user that an RX mute event has been detected */
        hsai->mutecallback();
      }
    }
    /* SAI AFSDET interrupt occurred ----------------------------------*/
    else if(((itflags & SAI_FLAG_AFSDET) == SAI_FLAG_AFSDET) && ((itsources & SAI_IT_AFSDET) == SAI_IT_AFSDET))
    {
      /* Change the SAI error code */
      hsai->ErrorCode |= HAL_SAI_ERROR_AFSDET;
1501

1502 1503 1504 1505 1506 1507 1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524
      /* Check SAI DMA is enabled or not */
      if((cr1config & SAI_xCR1_DMAEN) == SAI_xCR1_DMAEN)
      {
        /* Abort the SAI DMA Streams */
        if(hsai->hdmatx != NULL)
        {
          /* Set the DMA Tx abort callback */
          hsai->hdmatx->XferAbortCallback = SAI_DMAAbort;

          /* Abort DMA in IT mode */
          HAL_DMA_Abort_IT(hsai->hdmatx);
        }
        else if(hsai->hdmarx != NULL)
        {
          /* Set the DMA Rx abort callback */
          hsai->hdmarx->XferAbortCallback = SAI_DMAAbort;

          /* Abort DMA in IT mode */
          HAL_DMA_Abort_IT(hsai->hdmarx);
        }
      }
      else
      {
1525
        /* Abort SAI */
1526
        HAL_SAI_Abort(hsai);
1527

1528
        /* Set error callback */
1529
        HAL_SAI_ErrorCallback(hsai);
1530 1531 1532 1533 1534 1535 1536
      }
    }
    /* SAI LFSDET interrupt occurred ----------------------------------*/
    else if(((itflags & SAI_FLAG_LFSDET) == SAI_FLAG_LFSDET) && ((itsources & SAI_IT_LFSDET) == SAI_IT_LFSDET))
    {
      /* Change the SAI error code */
      hsai->ErrorCode |= HAL_SAI_ERROR_LFSDET;
1537

1538 1539 1540 1541 1542 1543 1544 1545
      /* Check SAI DMA is enabled or not */
      if((cr1config & SAI_xCR1_DMAEN) == SAI_xCR1_DMAEN)
      {
        /* Abort the SAI DMA Streams */
        if(hsai->hdmatx != NULL)
        {
          /* Set the DMA Tx abort callback */
          hsai->hdmatx->XferAbortCallback = SAI_DMAAbort;
1546

1547 1548 1549 1550 1551 1552 1553
          /* Abort DMA in IT mode */
          HAL_DMA_Abort_IT(hsai->hdmatx);
        }
        else if(hsai->hdmarx != NULL)
        {
          /* Set the DMA Rx abort callback */
          hsai->hdmarx->XferAbortCallback = SAI_DMAAbort;
1554

1555 1556 1557 1558 1559 1560
          /* Abort DMA in IT mode */
          HAL_DMA_Abort_IT(hsai->hdmarx);
        }
      }
      else
      {
1561
        /* Abort SAI */
1562
        HAL_SAI_Abort(hsai);
1563

1564 1565 1566 1567 1568 1569 1570 1571 1572
        /* Set error callback */
        HAL_SAI_ErrorCallback(hsai);
      }
    }
    /* SAI WCKCFG interrupt occurred ----------------------------------*/
    else if(((itflags & SAI_FLAG_WCKCFG) == SAI_FLAG_WCKCFG) && ((itsources & SAI_IT_WCKCFG) == SAI_IT_WCKCFG))
    {
      /* Change the SAI error code */
      hsai->ErrorCode |= HAL_SAI_ERROR_WCKCFG;
1573

1574 1575 1576 1577 1578 1579 1580 1581
      /* Check SAI DMA is enabled or not */
      if((cr1config & SAI_xCR1_DMAEN) == SAI_xCR1_DMAEN)
      {
        /* Abort the SAI DMA Streams */
        if(hsai->hdmatx != NULL)
        {
          /* Set the DMA Tx abort callback */
          hsai->hdmatx->XferAbortCallback = SAI_DMAAbort;
1582

1583 1584 1585 1586 1587 1588 1589
          /* Abort DMA in IT mode */
          HAL_DMA_Abort_IT(hsai->hdmatx);
        }
        else if(hsai->hdmarx != NULL)
        {
          /* Set the DMA Rx abort callback */
          hsai->hdmarx->XferAbortCallback = SAI_DMAAbort;
1590

1591 1592 1593 1594 1595 1596 1597 1598 1599 1600 1601 1602
          /* Abort DMA in IT mode */
          HAL_DMA_Abort_IT(hsai->hdmarx);
        }
      }
      else
      {
        /* If WCKCFG occurs, SAI audio block is automatically disabled */
        /* Disable all interrupts and clear all flags */
        hsai->Instance->IMR = 0U;
        hsai->Instance->CLRFR = 0xFFFFFFFFU;
        /* Set the SAI state to ready to be able to start again the process */
        hsai->State = HAL_SAI_STATE_READY;
1603

1604 1605
        /* Initialize XferCount */
        hsai->XferCount = 0U;
1606

1607
        /* SAI error Callback */
1608
        HAL_SAI_ErrorCallback(hsai);
1609 1610 1611 1612 1613 1614 1615 1616 1617 1618 1619 1620 1621 1622 1623 1624 1625 1626 1627 1628 1629
      }
    }
    /* SAI CNRDY interrupt occurred ----------------------------------*/
    else if(((itflags & SAI_FLAG_CNRDY) == SAI_FLAG_CNRDY) && ((itsources & SAI_IT_CNRDY) == SAI_IT_CNRDY))
    {
      /* Clear the SAI CNRDY flag */
      __HAL_SAI_CLEAR_FLAG(hsai, SAI_FLAG_CNRDY);
      /* Change the SAI error code */
      hsai->ErrorCode |= HAL_SAI_ERROR_CNREADY;
      /* the transfer is not stopped, we will forward the information to the user and we let the user decide what needs to be done */
      HAL_SAI_ErrorCallback(hsai);
    }
    else
    {
      /* Nothing to do */
    }
  }
}

/**
  * @brief Tx Transfer completed callback.
1630
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1631
  *              the configuration information for SAI module.
1632 1633 1634 1635 1636 1637
  * @retval None
  */
__weak void HAL_SAI_TxCpltCallback(SAI_HandleTypeDef *hsai)
{
  /* Prevent unused argument(s) compilation warning */
  UNUSED(hsai);
1638

1639 1640 1641 1642 1643 1644 1645
  /* NOTE : This function should not be modified, when the callback is needed,
            the HAL_SAI_TxCpltCallback could be implemented in the user file
   */
}

/**
  * @brief Tx Transfer Half completed callback.
1646
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1647
  *              the configuration information for SAI module.
1648 1649 1650 1651 1652 1653
  * @retval None
  */
__weak void HAL_SAI_TxHalfCpltCallback(SAI_HandleTypeDef *hsai)
{
  /* Prevent unused argument(s) compilation warning */
  UNUSED(hsai);
1654

1655 1656 1657 1658 1659 1660 1661
  /* NOTE : This function should not be modified, when the callback is needed,
            the HAL_SAI_TxHalfCpltCallback could be implemented in the user file
   */
}

/**
  * @brief Rx Transfer completed callback.
1662
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1663
  *              the configuration information for SAI module.
1664 1665 1666 1667 1668 1669
  * @retval None
  */
__weak void HAL_SAI_RxCpltCallback(SAI_HandleTypeDef *hsai)
{
  /* Prevent unused argument(s) compilation warning */
  UNUSED(hsai);
1670

1671 1672 1673 1674 1675 1676 1677
  /* NOTE : This function should not be modified, when the callback is needed,
            the HAL_SAI_RxCpltCallback could be implemented in the user file
   */
}

/**
  * @brief Rx Transfer half completed callback.
1678
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1679
  *              the configuration information for SAI module.
1680 1681 1682 1683 1684 1685
  * @retval None
  */
__weak void HAL_SAI_RxHalfCpltCallback(SAI_HandleTypeDef *hsai)
{
  /* Prevent unused argument(s) compilation warning */
  UNUSED(hsai);
1686

1687 1688 1689 1690 1691 1692 1693
  /* NOTE : This function should not be modified, when the callback is needed,
            the HAL_SAI_RxHalfCpltCallback could be implemented in the user file
   */
}

/**
  * @brief SAI error callback.
1694
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1695
  *              the configuration information for SAI module.
1696 1697 1698 1699 1700 1701
  * @retval None
  */
__weak void HAL_SAI_ErrorCallback(SAI_HandleTypeDef *hsai)
{
  /* Prevent unused argument(s) compilation warning */
  UNUSED(hsai);
1702

1703 1704 1705 1706 1707 1708 1709 1710 1711 1712 1713 1714 1715 1716 1717 1718 1719 1720 1721 1722 1723 1724 1725 1726 1727 1728 1729
  /* NOTE : This function should not be modified, when the callback is needed,
            the HAL_SAI_ErrorCallback could be implemented in the user file
   */
}

/**
  * @}
  */


/** @defgroup SAI_Exported_Functions_Group3 Peripheral State functions
 *  @brief    Peripheral State functions
 *
@verbatim
  ===============================================================================
                ##### Peripheral State and Errors functions #####
  ===============================================================================
  [..]
    This subsection permits to get in run-time the status of the peripheral
    and the data flow.

@endverbatim
  * @{
  */

/**
  * @brief  Return the SAI handle state.
1730
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1731
  *              the configuration information for SAI module.
1732 1733 1734 1735 1736 1737 1738 1739 1740
  * @retval HAL state
  */
HAL_SAI_StateTypeDef HAL_SAI_GetState(SAI_HandleTypeDef *hsai)
{
  return hsai->State;
}

/**
* @brief  Return the SAI error code.
1741
* @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1742
  *            the configuration information for the specified SAI Block.
1743 1744 1745 1746 1747 1748 1749 1750 1751 1752 1753 1754 1755 1756 1757 1758 1759 1760 1761 1762 1763 1764
* @retval SAI Error Code
*/
uint32_t HAL_SAI_GetError(SAI_HandleTypeDef *hsai)
{
  return hsai->ErrorCode;
}
/**
  * @}
  */

/**
  * @}
  */

/** @addtogroup SAI_Private_Functions
 *  @brief      Private functions
  * @{
  */

/**
  * @brief  Initialize the SAI I2S protocol according to the specified parameters
  *         in the SAI_InitTypeDef and create the associated handle.
1765
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1766
  *              the configuration information for SAI module.
1767
  * @param  protocol one of the supported protocol.
1768
  * @param  datasize one of the supported datasize @ref SAI_Protocol_DataSize.
1769
  * @param  nbslot number of slot minimum value is 2 and max is 16.
1770
  *         the value must be a multiple of 2.
1771 1772 1773 1774 1775 1776 1777 1778 1779 1780 1781 1782 1783 1784 1785 1786 1787 1788 1789
  * @retval HAL status
  */
static HAL_StatusTypeDef SAI_InitI2S(SAI_HandleTypeDef *hsai, uint32_t protocol, uint32_t datasize, uint32_t nbslot)
{
  hsai->Init.Protocol            = SAI_FREE_PROTOCOL;
  hsai->Init.FirstBit            = SAI_FIRSTBIT_MSB;
  /* Compute ClockStrobing according AudioMode */
  if((hsai->Init.AudioMode == SAI_MODEMASTER_TX) || (hsai->Init.AudioMode == SAI_MODESLAVE_TX))
  { /* Transmit */
    hsai->Init.ClockStrobing     = SAI_CLOCKSTROBING_FALLINGEDGE;
  }
  else
  { /* Receive */
    hsai->Init.ClockStrobing     = SAI_CLOCKSTROBING_RISINGEDGE;
  }
  hsai->FrameInit.FSDefinition   = SAI_FS_CHANNEL_IDENTIFICATION;
  hsai->SlotInit.SlotActive      = SAI_SLOTACTIVE_ALL;
  hsai->SlotInit.FirstBitOffset  = 0;
  hsai->SlotInit.SlotNumber      = nbslot;
1790

1791 1792 1793 1794 1795
  /* in IS2 the number of slot must be even */
  if((nbslot & 0x1) != 0 )
  {
    return HAL_ERROR;
  }
1796

1797 1798
  switch(protocol)
  {
1799 1800 1801 1802 1803 1804 1805 1806 1807 1808 1809
    case SAI_I2S_STANDARD :
      hsai->FrameInit.FSPolarity = SAI_FS_ACTIVE_LOW;
      hsai->FrameInit.FSOffset   = SAI_FS_BEFOREFIRSTBIT;
      break;
    case SAI_I2S_MSBJUSTIFIED :
    case SAI_I2S_LSBJUSTIFIED :
      hsai->FrameInit.FSPolarity = SAI_FS_ACTIVE_HIGH;
      hsai->FrameInit.FSOffset   = SAI_FS_FIRSTBIT;
      break;
    default :
      return HAL_ERROR;
1810
  }
1811

1812 1813 1814
  /* Frame definition */
  switch(datasize)
  {
1815 1816 1817 1818 1819 1820 1821 1822 1823 1824 1825 1826 1827 1828 1829 1830 1831 1832 1833 1834 1835 1836 1837 1838 1839 1840
    case SAI_PROTOCOL_DATASIZE_16BIT:
      hsai->Init.DataSize = SAI_DATASIZE_16;
      hsai->FrameInit.FrameLength = 32*(nbslot/2);
      hsai->FrameInit.ActiveFrameLength = 16*(nbslot/2);
      hsai->SlotInit.SlotSize = SAI_SLOTSIZE_16B;
      break;
    case SAI_PROTOCOL_DATASIZE_16BITEXTENDED :
      hsai->Init.DataSize = SAI_DATASIZE_16;
      hsai->FrameInit.FrameLength = 64*(nbslot/2);
      hsai->FrameInit.ActiveFrameLength = 32*(nbslot/2);
      hsai->SlotInit.SlotSize = SAI_SLOTSIZE_32B;
      break;
    case SAI_PROTOCOL_DATASIZE_24BIT:
      hsai->Init.DataSize = SAI_DATASIZE_24;
      hsai->FrameInit.FrameLength = 64*(nbslot/2);
      hsai->FrameInit.ActiveFrameLength = 32*(nbslot/2);
      hsai->SlotInit.SlotSize = SAI_SLOTSIZE_32B;
      break;
    case SAI_PROTOCOL_DATASIZE_32BIT:
      hsai->Init.DataSize = SAI_DATASIZE_32;
      hsai->FrameInit.FrameLength = 64*(nbslot/2);
      hsai->FrameInit.ActiveFrameLength = 32*(nbslot/2);
      hsai->SlotInit.SlotSize = SAI_SLOTSIZE_32B;
      break;
    default :
      return HAL_ERROR;
1841 1842 1843 1844 1845 1846 1847 1848 1849 1850 1851 1852 1853 1854 1855 1856 1857 1858
  }
  if(protocol == SAI_I2S_LSBJUSTIFIED)
  {
    if (datasize == SAI_PROTOCOL_DATASIZE_16BITEXTENDED)
    {
      hsai->SlotInit.FirstBitOffset = 16;
    }
    if (datasize == SAI_PROTOCOL_DATASIZE_24BIT)
    {
      hsai->SlotInit.FirstBitOffset = 8;
    }
  }
  return HAL_OK;
}

/**
  * @brief  Initialize the SAI PCM protocol according to the specified parameters
  *         in the SAI_InitTypeDef and create the associated handle.
1859
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1860
  *              the configuration information for SAI module.
1861 1862 1863
  * @param  protocol one of the supported protocol
  * @param  datasize one of the supported datasize @ref SAI_Protocol_DataSize
  * @param  nbslot number of slot minimum value is 1 and the max is 16.
1864 1865 1866 1867 1868 1869 1870 1871 1872 1873 1874 1875 1876 1877 1878 1879 1880 1881 1882 1883 1884
  * @retval HAL status
  */
static HAL_StatusTypeDef SAI_InitPCM(SAI_HandleTypeDef *hsai, uint32_t protocol, uint32_t datasize, uint32_t nbslot)
{
  hsai->Init.Protocol            = SAI_FREE_PROTOCOL;
  hsai->Init.FirstBit            = SAI_FIRSTBIT_MSB;
  /* Compute ClockStrobing according AudioMode */
  if((hsai->Init.AudioMode == SAI_MODEMASTER_TX) || (hsai->Init.AudioMode == SAI_MODESLAVE_TX))
  { /* Transmit */
    hsai->Init.ClockStrobing     = SAI_CLOCKSTROBING_RISINGEDGE;
  }
  else
  { /* Receive */
    hsai->Init.ClockStrobing     = SAI_CLOCKSTROBING_FALLINGEDGE;
  }
  hsai->FrameInit.FSDefinition   = SAI_FS_STARTFRAME;
  hsai->FrameInit.FSPolarity     = SAI_FS_ACTIVE_HIGH;
  hsai->FrameInit.FSOffset       = SAI_FS_BEFOREFIRSTBIT;
  hsai->SlotInit.FirstBitOffset  = 0;
  hsai->SlotInit.SlotNumber      = nbslot;
  hsai->SlotInit.SlotActive      = SAI_SLOTACTIVE_ALL;
1885

1886 1887
  switch(protocol)
  {
1888 1889 1890 1891 1892 1893 1894 1895
    case SAI_PCM_SHORT :
      hsai->FrameInit.ActiveFrameLength = 1;
      break;
    case SAI_PCM_LONG :
      hsai->FrameInit.ActiveFrameLength = 13;
      break;
    default :
      return HAL_ERROR;
1896
  }
1897

1898 1899
  switch(datasize)
  {
1900 1901 1902 1903 1904 1905 1906 1907 1908 1909 1910 1911 1912 1913 1914 1915 1916 1917 1918 1919 1920 1921
    case SAI_PROTOCOL_DATASIZE_16BIT:
      hsai->Init.DataSize = SAI_DATASIZE_16;
      hsai->FrameInit.FrameLength = 16 * nbslot;
      hsai->SlotInit.SlotSize = SAI_SLOTSIZE_16B;
      break;
    case SAI_PROTOCOL_DATASIZE_16BITEXTENDED :
      hsai->Init.DataSize = SAI_DATASIZE_16;
      hsai->FrameInit.FrameLength = 32 * nbslot;
      hsai->SlotInit.SlotSize = SAI_SLOTSIZE_32B;
      break;
    case SAI_PROTOCOL_DATASIZE_24BIT :
      hsai->Init.DataSize = SAI_DATASIZE_24;
      hsai->FrameInit.FrameLength = 32 * nbslot;
      hsai->SlotInit.SlotSize = SAI_SLOTSIZE_32B;
      break;
    case SAI_PROTOCOL_DATASIZE_32BIT:
      hsai->Init.DataSize = SAI_DATASIZE_32;
      hsai->FrameInit.FrameLength = 32 * nbslot;
      hsai->SlotInit.SlotSize = SAI_SLOTSIZE_32B;
      break;
    default :
      return HAL_ERROR;
1922
  }
1923

1924 1925 1926 1927 1928
  return HAL_OK;
}

/**
  * @brief  Fill the fifo.
1929
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1930
  *              the configuration information for SAI module.
1931 1932 1933 1934 1935 1936 1937 1938 1939 1940 1941 1942 1943 1944 1945 1946 1947 1948 1949 1950 1951 1952 1953 1954 1955 1956 1957
  * @retval None
  */
static void SAI_FillFifo(SAI_HandleTypeDef *hsai)
{
  /* fill the fifo with data before to enabled the SAI */
  while(((hsai->Instance->SR & SAI_xSR_FLVL) != SAI_FIFOSTATUS_FULL) && (hsai->XferCount > 0))
  {
    if((hsai->Init.DataSize == SAI_DATASIZE_8) && (hsai->Init.CompandingMode == SAI_NOCOMPANDING))
    {
      hsai->Instance->DR = (*hsai->pBuffPtr++);
    }
    else if(hsai->Init.DataSize <= SAI_DATASIZE_16)
    {
      hsai->Instance->DR = *((uint32_t *)hsai->pBuffPtr);
      hsai->pBuffPtr+= 2;
    }
    else
    {
      hsai->Instance->DR = *((uint32_t *)hsai->pBuffPtr);
      hsai->pBuffPtr+= 4;
    }
    hsai->XferCount--;
  }
}

/**
  * @brief  Return the interrupt flag to set according the SAI setup.
1958
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1959
  *              the configuration information for SAI module.
1960
  * @param  mode SAI_MODE_DMA or SAI_MODE_IT
1961 1962 1963 1964 1965
  * @retval the list of the IT flag to enable
 */
static uint32_t SAI_InterruptFlag(SAI_HandleTypeDef *hsai, uint32_t mode)
{
  uint32_t tmpIT = SAI_IT_OVRUDR;
1966

1967 1968 1969 1970
  if(mode == SAI_MODE_IT)
  {
    tmpIT|= SAI_IT_FREQ;
  }
1971

1972 1973 1974 1975 1976
  if((hsai->Init.Protocol == SAI_AC97_PROTOCOL) &&
    ((hsai->Init.AudioMode == SAI_MODESLAVE_RX) || (hsai->Init.AudioMode == SAI_MODEMASTER_RX)))
  {
    tmpIT|= SAI_IT_CNRDY;
  }
1977

1978 1979 1980 1981 1982 1983 1984 1985 1986 1987 1988 1989 1990 1991
  if((hsai->Init.AudioMode == SAI_MODESLAVE_RX) || (hsai->Init.AudioMode == SAI_MODESLAVE_TX))
  {
    tmpIT|= SAI_IT_AFSDET | SAI_IT_LFSDET;
  }
  else
  {
    /* hsai has been configured in master mode */
    tmpIT|= SAI_IT_WCKCFG;
  }
  return tmpIT;
}

/**
  * @brief  Disable the SAI and wait for the disabling.
1992
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
1993
  *              the configuration information for SAI module.
1994 1995 1996 1997
  * @retval None
  */
static HAL_StatusTypeDef SAI_Disable(SAI_HandleTypeDef *hsai)
{
1998
  register uint32_t count = SAI_DEFAULT_TIMEOUT * (SystemCoreClock /7/1000);
1999
  HAL_StatusTypeDef status = HAL_OK;
2000 2001

  /* Disable the SAI instance */
2002
  __HAL_SAI_DISABLE(hsai);
2003 2004

  do
2005 2006
  {
    /* Check for the Timeout */
2007
    if (count-- == 0)
2008 2009 2010
    {
      /* Update error code */
      hsai->ErrorCode |= HAL_SAI_ERROR_TIMEOUT;
2011 2012
      status = HAL_TIMEOUT;
      break;
2013
    }
2014 2015
  } while((hsai->Instance->CR1 & SAI_xCR1_SAIEN) != RESET);

2016 2017 2018 2019 2020
  return status;
}

/**
  * @brief  Tx Handler for Transmit in Interrupt mode 8-Bit transfer.
2021
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
2022
  *              the configuration information for SAI module.
2023 2024 2025 2026 2027 2028 2029 2030 2031 2032 2033 2034 2035 2036 2037 2038 2039 2040 2041 2042 2043 2044
  * @retval None
  */
static void SAI_Transmit_IT8Bit(SAI_HandleTypeDef *hsai)
{
  if(hsai->XferCount == 0)
  {
    /* Handle the end of the transmission */
    /* Disable FREQ and OVRUDR interrupts */
    __HAL_SAI_DISABLE_IT(hsai, SAI_InterruptFlag(hsai, SAI_MODE_IT));
    hsai->State = HAL_SAI_STATE_READY;
    HAL_SAI_TxCpltCallback(hsai);
  }
  else
  {
    /* Write data on DR register */
    hsai->Instance->DR = (*hsai->pBuffPtr++);
    hsai->XferCount--;
  }
}

/**
  * @brief  Tx Handler for Transmit in Interrupt mode for 16-Bit transfer.
2045
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
2046
  *              the configuration information for SAI module.
2047 2048 2049 2050 2051 2052 2053 2054 2055 2056 2057 2058 2059 2060 2061 2062 2063 2064 2065 2066 2067 2068 2069
  * @retval None
  */
static void SAI_Transmit_IT16Bit(SAI_HandleTypeDef *hsai)
{
  if(hsai->XferCount == 0)
  {
    /* Handle the end of the transmission */
    /* Disable FREQ and OVRUDR interrupts */
    __HAL_SAI_DISABLE_IT(hsai, SAI_InterruptFlag(hsai, SAI_MODE_IT));
    hsai->State = HAL_SAI_STATE_READY;
    HAL_SAI_TxCpltCallback(hsai);
  }
  else
  {
    /* Write data on DR register */
    hsai->Instance->DR = *(uint16_t *)hsai->pBuffPtr;
    hsai->pBuffPtr+=2;
    hsai->XferCount--;
  }
}

/**
  * @brief  Tx Handler for Transmit in Interrupt mode for 32-Bit transfer.
2070
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
2071
  *              the configuration information for SAI module.
2072 2073 2074 2075 2076 2077 2078 2079 2080 2081 2082 2083 2084 2085 2086 2087 2088 2089 2090 2091 2092 2093 2094
  * @retval None
  */
static void SAI_Transmit_IT32Bit(SAI_HandleTypeDef *hsai)
{
  if(hsai->XferCount == 0)
  {
    /* Handle the end of the transmission */
    /* Disable FREQ and OVRUDR interrupts */
    __HAL_SAI_DISABLE_IT(hsai, SAI_InterruptFlag(hsai, SAI_MODE_IT));
    hsai->State = HAL_SAI_STATE_READY;
    HAL_SAI_TxCpltCallback(hsai);
  }
  else
  {
    /* Write data on DR register */
    hsai->Instance->DR = *(uint32_t *)hsai->pBuffPtr;
    hsai->pBuffPtr+=4;
    hsai->XferCount--;
  }
}

/**
  * @brief  Rx Handler for Receive in Interrupt mode 8-Bit transfer.
2095
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
2096
  *              the configuration information for SAI module.
2097 2098 2099 2100 2101 2102 2103
  * @retval None
  */
static void SAI_Receive_IT8Bit(SAI_HandleTypeDef *hsai)
{
  /* Receive data */
  (*hsai->pBuffPtr++) = hsai->Instance->DR;
  hsai->XferCount--;
2104

2105 2106 2107 2108 2109
  /* Check end of the transfer */
  if(hsai->XferCount == 0)
  {
    /* Disable TXE and OVRUDR interrupts */
    __HAL_SAI_DISABLE_IT(hsai, SAI_InterruptFlag(hsai, SAI_MODE_IT));
2110

2111 2112
    /* Clear the SAI Overrun flag */
    __HAL_SAI_CLEAR_FLAG(hsai, SAI_FLAG_OVRUDR);
2113

2114 2115 2116 2117 2118 2119 2120
    hsai->State = HAL_SAI_STATE_READY;
    HAL_SAI_RxCpltCallback(hsai);
  }
}

/**
  * @brief  Rx Handler for Receive in Interrupt mode for 16-Bit transfer.
2121
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
2122
  *              the configuration information for SAI module.
2123 2124 2125 2126 2127 2128 2129 2130
  * @retval None
  */
static void SAI_Receive_IT16Bit(SAI_HandleTypeDef *hsai)
{
  /* Receive data */
  *(uint16_t*)hsai->pBuffPtr = hsai->Instance->DR;
  hsai->pBuffPtr+=2;
  hsai->XferCount--;
2131

2132 2133 2134 2135 2136
  /* Check end of the transfer */
  if(hsai->XferCount == 0)
  {
    /* Disable TXE and OVRUDR interrupts */
    __HAL_SAI_DISABLE_IT(hsai, SAI_InterruptFlag(hsai, SAI_MODE_IT));
2137

2138 2139
    /* Clear the SAI Overrun flag */
    __HAL_SAI_CLEAR_FLAG(hsai, SAI_FLAG_OVRUDR);
2140

2141 2142 2143 2144 2145 2146
    hsai->State = HAL_SAI_STATE_READY;
    HAL_SAI_RxCpltCallback(hsai);
  }
}
/**
  * @brief  Rx Handler for Receive in Interrupt mode for 32-Bit transfer.
2147
  * @param  hsai pointer to a SAI_HandleTypeDef structure that contains
2148
  *              the configuration information for SAI module.
2149 2150 2151 2152 2153 2154 2155 2156
  * @retval None
  */
static void SAI_Receive_IT32Bit(SAI_HandleTypeDef *hsai)
{
  /* Receive data */
  *(uint32_t*)hsai->pBuffPtr = hsai->Instance->DR;
  hsai->pBuffPtr+=4;
  hsai->XferCount--;
2157

2158 2159 2160 2161 2162
  /* Check end of the transfer */
  if(hsai->XferCount == 0)
  {
    /* Disable TXE and OVRUDR interrupts */
    __HAL_SAI_DISABLE_IT(hsai, SAI_InterruptFlag(hsai, SAI_MODE_IT));
2163

2164 2165
    /* Clear the SAI Overrun flag */
    __HAL_SAI_CLEAR_FLAG(hsai, SAI_FLAG_OVRUDR);
2166

2167 2168 2169 2170 2171 2172 2173
    hsai->State = HAL_SAI_STATE_READY;
    HAL_SAI_RxCpltCallback(hsai);
  }
}

/**
  * @brief  DMA SAI transmit process complete callback.
2174
  * @param  hdma pointer to a DMA_HandleTypeDef structure that contains
2175
  *              the configuration information for the specified DMA module.
2176 2177 2178 2179 2180
  * @retval None
  */
static void SAI_DMATxCplt(DMA_HandleTypeDef *hdma)
{
  SAI_HandleTypeDef* hsai = (SAI_HandleTypeDef*)((DMA_HandleTypeDef* )hdma)->Parent;
2181 2182

  if(hdma->Init.Mode != DMA_CIRCULAR)
2183 2184
  {
    hsai->XferCount = 0;
2185

2186 2187
    /* Disable SAI Tx DMA Request */
    hsai->Instance->CR1 &= (uint32_t)(~SAI_xCR1_DMAEN);
2188

2189 2190
    /* Stop the interrupts error handling */
    __HAL_SAI_DISABLE_IT(hsai, SAI_InterruptFlag(hsai, SAI_MODE_DMA));
2191

2192 2193 2194 2195 2196 2197 2198
    hsai->State= HAL_SAI_STATE_READY;
  }
  HAL_SAI_TxCpltCallback(hsai);
}

/**
  * @brief  DMA SAI transmit process half complete callback.
2199
  * @param  hdma pointer to a DMA_HandleTypeDef structure that contains
2200
  *              the configuration information for the specified DMA module.
2201 2202 2203 2204 2205
  * @retval None
  */
static void SAI_DMATxHalfCplt(DMA_HandleTypeDef *hdma)
{
  SAI_HandleTypeDef* hsai = (SAI_HandleTypeDef*)((DMA_HandleTypeDef*)hdma)->Parent;
2206

2207 2208 2209 2210 2211
  HAL_SAI_TxHalfCpltCallback(hsai);
}

/**
  * @brief  DMA SAI receive process complete callback.
2212
  * @param  hdma pointer to a DMA_HandleTypeDef structure that contains
2213
  *              the configuration information for the specified DMA module.
2214 2215 2216 2217 2218
  * @retval None
  */
static void SAI_DMARxCplt(DMA_HandleTypeDef *hdma)
{
  SAI_HandleTypeDef* hsai = ( SAI_HandleTypeDef* )((DMA_HandleTypeDef* )hdma)->Parent;
2219 2220

  if(hdma->Init.Mode != DMA_CIRCULAR)
2221 2222 2223 2224
  {
    /* Disable Rx DMA Request */
    hsai->Instance->CR1 &= (uint32_t)(~SAI_xCR1_DMAEN);
    hsai->XferCount = 0;
2225

2226 2227
    /* Stop the interrupts error handling */
    __HAL_SAI_DISABLE_IT(hsai, SAI_InterruptFlag(hsai, SAI_MODE_DMA));
2228

2229 2230 2231 2232 2233 2234 2235
    hsai->State = HAL_SAI_STATE_READY;
  }
  HAL_SAI_RxCpltCallback(hsai);
}

/**
  * @brief  DMA SAI receive process half complete callback
2236
  * @param  hdma pointer to a DMA_HandleTypeDef structure that contains
2237
  *              the configuration information for the specified DMA module.
2238 2239 2240 2241 2242
  * @retval None
  */
static void SAI_DMARxHalfCplt(DMA_HandleTypeDef *hdma)
{
  SAI_HandleTypeDef* hsai = (SAI_HandleTypeDef*)((DMA_HandleTypeDef*)hdma)->Parent;
2243

2244 2245 2246 2247
  HAL_SAI_RxHalfCpltCallback(hsai);
}
/**
  * @brief  DMA SAI communication error callback.
2248
  * @param  hdma pointer to a DMA_HandleTypeDef structure that contains
2249
  *              the configuration information for the specified DMA module.
2250 2251 2252 2253 2254 2255
  * @retval None
  */
static void SAI_DMAError(DMA_HandleTypeDef *hdma)
{
  SAI_HandleTypeDef* hsai = ( SAI_HandleTypeDef* )((DMA_HandleTypeDef* )hdma)->Parent;

2256 2257 2258 2259
  if((hsai->hdmatx->ErrorCode == HAL_DMA_ERROR_TE) || (hsai->hdmarx->ErrorCode == HAL_DMA_ERROR_TE))
  {
    /* Disable the SAI DMA request */
    hsai->Instance->CR1 &= ~SAI_xCR1_DMAEN;
2260

2261 2262
    /* Disable SAI peripheral */
    SAI_Disable(hsai);
2263

2264 2265
    /* Set the SAI state ready to be able to start again the process */
    hsai->State = HAL_SAI_STATE_READY;
2266

2267 2268 2269 2270 2271 2272 2273 2274 2275 2276 2277 2278 2279
    /* Initialize XferCount */
    hsai->XferCount = 0U;
  }

  /* Ignore DMA FIFO error */
  if(HAL_DMA_GetError(hdma) != HAL_DMA_ERROR_FE)
  {
    /* Set SAI error code */
    hsai->ErrorCode |= HAL_SAI_ERROR_DMA;

    /* SAI error Callback */
    HAL_SAI_ErrorCallback(hsai);
  }
2280 2281 2282 2283
}

/**
  * @brief  DMA SAI Abort callback.
2284
  * @param  hdma pointer to a DMA_HandleTypeDef structure that contains
2285
  *              the configuration information for the specified DMA module.
2286 2287 2288 2289 2290
  * @retval None
  */
static void SAI_DMAAbort(DMA_HandleTypeDef *hdma)
{
  SAI_HandleTypeDef* hsai = ( SAI_HandleTypeDef* )((DMA_HandleTypeDef* )hdma)->Parent;
2291

2292 2293 2294 2295 2296 2297
  /* Disable DMA request */
  hsai->Instance->CR1 &= ~SAI_xCR1_DMAEN;

  /* Disable all interrupts and clear all flags */
  hsai->Instance->IMR = 0U;
  hsai->Instance->CLRFR = 0xFFFFFFFFU;
2298

2299 2300 2301 2302 2303 2304 2305 2306 2307 2308
  if(hsai->ErrorCode != HAL_SAI_ERROR_WCKCFG)
  {
    /* Disable SAI peripheral */
    SAI_Disable(hsai);

    /* Flush the fifo */
    SET_BIT(hsai->Instance->CR2, SAI_xCR2_FFLUSH);
  }
  /* Set the SAI state to ready to be able to start again the process */
  hsai->State = HAL_SAI_STATE_READY;
2309

2310 2311 2312 2313 2314 2315 2316 2317 2318 2319 2320 2321 2322 2323 2324 2325 2326 2327 2328 2329 2330
  /* Initialize XferCount */
  hsai->XferCount = 0U;

  /* SAI error Callback */
  HAL_SAI_ErrorCallback(hsai);
}

/**
  * @}
  */

#endif /* HAL_SAI_MODULE_ENABLED */
/**
  * @}
  */

/**
  * @}
  */

/************************ (C) COPYRIGHT STMicroelectronics *****END OF FILE****/