1 /*
2  * Copyright 2017-2020 NXP
3  * All rights reserved.
4  *
5  *
6  * SPDX-License-Identifier: BSD-3-Clause
7  */
8 
9 #include "fsl_spdif.h"
10 
11 /* Component ID definition, used by tools. */
12 #ifndef FSL_COMPONENT_ID
13 #define FSL_COMPONENT_ID "platform.drivers.spdif"
14 #endif
15 
16 /*******************************************************************************
17  * Definitations
18  ******************************************************************************/
19 /*! @brief spdif transfer state. */
20 enum
21 {
22     kSPDIF_Busy = 0x0U, /*!< SPDIF is busy */
23     kSPDIF_Idle,        /*!< Transfer is done. */
24     kSPDIF_Error        /*!< Transfer error occurred. */
25 };
26 
27 /*! @brief Typedef for spdif tx interrupt handler. */
28 typedef void (*spdif_isr_t)(SPDIF_Type *base, spdif_handle_t *handle);
29 /*******************************************************************************
30  * Prototypes
31  ******************************************************************************/
32 
33 /*******************************************************************************
34  * Variables
35  ******************************************************************************/
36 /* Base pointer array */
37 static SPDIF_Type *const s_spdifBases[] = SPDIF_BASE_PTRS;
38 /*! @brief SPDIF handle pointer */
39 static spdif_handle_t *s_spdifHandle[ARRAY_SIZE(s_spdifBases)][2];
40 /* IRQ number array */
41 static const IRQn_Type s_spdifIRQ[] = SPDIF_IRQS;
42 #if !(defined(FSL_SDK_DISABLE_DRIVER_CLOCK_CONTROL) && FSL_SDK_DISABLE_DRIVER_CLOCK_CONTROL)
43 /* Clock name array */
44 static const clock_ip_name_t s_spdifClock[] = SPDIF_CLOCKS;
45 #endif /* FSL_SDK_DISABLE_DRIVER_CLOCK_CONTROL */
46 /*! @brief Pointer to IRQ handler for each instance. */
47 static spdif_isr_t s_spdifTxIsr;
48 /*! @brief Pointer to IRQ handler for each instance. */
49 static spdif_isr_t s_spdifRxIsr;
50 /*! @brief Used for spdif gain */
51 static uint8_t s_spdif_gain[8]         = {24U, 16U, 12U, 8U, 6U, 4U, 3U, 1U};
52 static uint8_t s_spdif_tx_watermark[4] = {16, 12, 8, 4};
53 static uint8_t s_spdif_rx_watermark[4] = {1, 4, 8, 16};
54 
55 /*******************************************************************************
56  * Code
57  ******************************************************************************/
SPDIF_GetInstance(SPDIF_Type * base)58 uint32_t SPDIF_GetInstance(SPDIF_Type *base)
59 {
60     uint32_t instance;
61 
62     /* Find the instance index from base address mappings. */
63     for (instance = 0; instance < ARRAY_SIZE(s_spdifBases); instance++)
64     {
65         if (s_spdifBases[instance] == base)
66         {
67             break;
68         }
69     }
70 
71     assert(instance < ARRAY_SIZE(s_spdifBases));
72 
73     return instance;
74 }
75 
76 /*!
77  * brief Initializes the SPDIF peripheral.
78  *
79  * Ungates the SPDIF clock, resets the module, and configures SPDIF with a configuration structure.
80  * The configuration structure can be custom filled or set with default values by
81  * SPDIF_GetDefaultConfig().
82  *
83  * note  This API should be called at the beginning of the application to use
84  * the SPDIF driver. Otherwise, accessing the SPDIF module can cause a hard fault
85  * because the clock is not enabled.
86  *
87  * param base SPDIF base pointer
88  * param config SPDIF configuration structure.
89  */
SPDIF_Init(SPDIF_Type * base,const spdif_config_t * config)90 void SPDIF_Init(SPDIF_Type *base, const spdif_config_t *config)
91 {
92     uint32_t val = 0;
93 
94 #if !(defined(FSL_SDK_DISABLE_DRIVER_CLOCK_CONTROL) && FSL_SDK_DISABLE_DRIVER_CLOCK_CONTROL)
95     /* Enable the SPDIF clock */
96     CLOCK_EnableClock(s_spdifClock[SPDIF_GetInstance(base)]);
97 #endif /* FSL_SDK_DISABLE_DRIVER_CLOCK_CONTROL */
98 
99     /* Reset the internal logic */
100     base->SCR |= SPDIF_SCR_SOFT_RESET_MASK;
101 
102     /* Waiting for reset finish */
103     while ((base->SCR & SPDIF_SCR_SOFT_RESET_MASK) != 0x00U)
104     {
105     }
106 
107     /* Setting the SPDIF settings */
108     base->SCR = SPDIF_SCR_RXFIFOFULL_SEL(config->rxFullSelect) | SPDIF_SCR_RXAUTOSYNC(config->isRxAutoSync) |
109                 SPDIF_SCR_TXAUTOSYNC(config->isRxAutoSync) | SPDIF_SCR_TXFIFOEMPTY_SEL(config->txFullSelect) |
110                 SPDIF_SCR_TXFIFO_CTRL(1U) | SPDIF_SCR_VALCTRL(config->validityConfig) |
111                 SPDIF_SCR_TXSEL(config->txSource) | SPDIF_SCR_USRC_SEL(config->uChannelSrc);
112 
113     /* Set DPLL clock source */
114     base->SRPC = SPDIF_SRPC_CLKSRC_SEL(config->DPLLClkSource) | SPDIF_SRPC_GAINSEL(config->gain);
115 
116     /* Set SPDIF tx clock source */
117     val = base->STC & ~SPDIF_STC_TXCLK_SOURCE_MASK;
118     val |= SPDIF_STC_TXCLK_SOURCE(config->txClkSource);
119     base->STC = val;
120 
121     /* clear and diable all the interrupt */
122 #if defined FSL_FEATURE_SPDIF_HAS_NO_SIC_REGISTER && FSL_FEATURE_SPDIF_HAS_NO_SIC_REGISTER
123     base->SIS = (uint32_t)kSPDIF_AllInterrupt;
124 #else
125     base->SIC = (uint32_t)kSPDIF_AllInterrupt;
126 #endif
127     base->SIE &= ~(uint32_t)kSPDIF_AllInterrupt;
128 }
129 
130 /*!
131  * brief De-initializes the SPDIF peripheral.
132  *
133  * This API gates the SPDIF clock. The SPDIF module can't operate unless SPDIF_Init is called to enable the clock.
134  *
135  * param base SPDIF base pointer
136  */
SPDIF_Deinit(SPDIF_Type * base)137 void SPDIF_Deinit(SPDIF_Type *base)
138 {
139     SPDIF_TxEnable(base, false);
140     SPDIF_RxEnable(base, false);
141 #if !(defined(FSL_SDK_DISABLE_DRIVER_CLOCK_CONTROL) && FSL_SDK_DISABLE_DRIVER_CLOCK_CONTROL)
142     CLOCK_DisableClock(s_spdifClock[SPDIF_GetInstance(base)]);
143 #endif /* FSL_SDK_DISABLE_DRIVER_CLOCK_CONTROL */
144 }
145 
146 /*!
147  * brief  Sets the SPDIF configuration structure to default values.
148  *
149  * This API initializes the configuration structure for use in SPDIF_Init.
150  * The initialized structure can remain unchanged in SPDIF_Init, or it can be modified
151  *  before calling SPDIF_Init.
152  * This is an example.
153    code
154    spdif_config_t config;
155    SPDIF_GetDefaultConfig(&config);
156    endcode
157  *
158  * param config pointer to master configuration structure
159  */
SPDIF_GetDefaultConfig(spdif_config_t * config)160 void SPDIF_GetDefaultConfig(spdif_config_t *config)
161 {
162     /* Initializes the configure structure to zero. */
163     (void)memset(config, 0, sizeof(*config));
164 
165     config->isTxAutoSync   = true;
166     config->isRxAutoSync   = true;
167     config->DPLLClkSource  = 1;
168     config->txClkSource    = 1;
169     config->rxFullSelect   = kSPDIF_RxFull8Samples;
170     config->txFullSelect   = kSPDIF_TxEmpty8Samples;
171     config->uChannelSrc    = kSPDIF_UChannelFromTx;
172     config->txSource       = kSPDIF_txNormal;
173     config->validityConfig = kSPDIF_validityFlagAlwaysClear;
174     config->gain           = kSPDIF_GAIN_8;
175 }
176 
177 /*!
178  * brief Enables/disables the SPDIF Tx.
179  *
180  * param base SPDIF base pointer
181  * param enable True means enable SPDIF Tx, false means disable.
182  */
SPDIF_TxEnable(SPDIF_Type * base,bool enable)183 void SPDIF_TxEnable(SPDIF_Type *base, bool enable)
184 {
185     uint32_t val = 0;
186 
187     if (enable)
188     {
189         /* Open Tx FIFO */
190         val = base->SCR & (~SPDIF_SCR_TXFIFO_CTRL_MASK);
191         val |= SPDIF_SCR_TXFIFO_CTRL(1U);
192         base->SCR = val;
193         /* Enable transfer clock */
194         base->STC |= SPDIF_STC_TX_ALL_CLK_EN_MASK;
195     }
196     else
197     {
198         base->SCR &= ~(SPDIF_SCR_TXFIFO_CTRL_MASK | SPDIF_SCR_TXSEL_MASK);
199         /* Disable transfer clock */
200         base->STC &= ~SPDIF_STC_TX_ALL_CLK_EN_MASK;
201     }
202 }
203 
204 /*!
205  * brief Configures the SPDIF Tx sample rate.
206  *
207  * The audio format can be changed at run-time. This function configures the sample rate.
208  *
209  * param base SPDIF base pointer.
210  * param sampleRate_Hz SPDIF sample rate frequency in Hz.
211  * param sourceClockFreq_Hz SPDIF tx clock source frequency in Hz.
212  */
SPDIF_TxSetSampleRate(SPDIF_Type * base,uint32_t sampleRate_Hz,uint32_t sourceClockFreq_Hz)213 void SPDIF_TxSetSampleRate(SPDIF_Type *base, uint32_t sampleRate_Hz, uint32_t sourceClockFreq_Hz)
214 {
215     uint32_t clkDiv     = sourceClockFreq_Hz / (sampleRate_Hz * 64U);
216     uint32_t mod        = sourceClockFreq_Hz % (sampleRate_Hz * 64U);
217     uint32_t val        = 0;
218     uint8_t clockSource = (uint8_t)(((base->STC) & SPDIF_STC_TXCLK_SOURCE_MASK) >> SPDIF_STC_TXCLK_SOURCE_SHIFT);
219 
220     /* Compute the nearest divider */
221     if (mod > ((sampleRate_Hz * 64U) / 2U))
222     {
223         clkDiv += 1U;
224     }
225 
226     /* If use divided systeme clock */
227     if (clockSource == 5U)
228     {
229         if (clkDiv > 256U)
230         {
231             val = base->STC & (~(SPDIF_STC_TXCLK_DF_MASK | SPDIF_STC_SYSCLK_DF_MASK));
232             val |= SPDIF_STC_SYSCLK_DF((clkDiv / 128U) - 1U) | SPDIF_STC_TXCLK_DF(127U);
233             base->STC = val;
234         }
235         else
236         {
237             val = base->STC & (~(SPDIF_STC_TXCLK_DF_MASK | SPDIF_STC_SYSCLK_DF_MASK));
238             val |= SPDIF_STC_SYSCLK_DF(1U) | SPDIF_STC_TXCLK_DF(clkDiv - 1U);
239             base->STC = val;
240         }
241     }
242     else
243     {
244         /* Other clock only uses txclk div */
245         val = base->STC & (~(SPDIF_STC_TXCLK_DF_MASK | SPDIF_STC_SYSCLK_DF_MASK));
246         val |= SPDIF_STC_TXCLK_DF(clkDiv - 1U);
247         base->STC = val;
248     }
249 }
250 
251 /*!
252  * brief Configures the SPDIF Rx audio format.
253  *
254  * The audio format can be changed at run-time. This function configures the sample rate and audio data
255  * format to be transferred.
256  *
257  * param base SPDIF base pointer.
258  * param clockSourceFreq_Hz SPDIF system clock frequency in hz.
259  */
SPDIF_GetRxSampleRate(SPDIF_Type * base,uint32_t clockSourceFreq_Hz)260 uint32_t SPDIF_GetRxSampleRate(SPDIF_Type *base, uint32_t clockSourceFreq_Hz)
261 {
262     uint64_t gain       = s_spdif_gain[((base->SRPC & SPDIF_SRPC_GAINSEL_MASK) >> SPDIF_SRPC_GAINSEL_SHIFT)];
263     uint32_t measure    = 0;
264     uint32_t sampleRate = 0;
265     uint64_t temp       = 0;
266 
267     /* Wait the DPLL locked */
268     while ((base->SRPC & SPDIF_SRPC_LOCK_MASK) == 0U)
269     {
270     }
271 
272     /* Get the measure value */
273     measure = base->SRFM;
274     temp    = (uint64_t)measure * (uint64_t)clockSourceFreq_Hz;
275     temp /= 1024U * 1024U * 128U * gain;
276     sampleRate = (uint32_t)temp;
277 
278     return sampleRate;
279 }
280 
281 /*!
282  * brief Sends data using a blocking method.
283  *
284  * note This function blocks by polling until data is ready to be sent.
285  *
286  * param base SPDIF base pointer.
287  * param buffer Pointer to the data to be written.
288  * param size Bytes to be written.
289  */
SPDIF_WriteBlocking(SPDIF_Type * base,uint8_t * buffer,uint32_t size)290 void SPDIF_WriteBlocking(SPDIF_Type *base, uint8_t *buffer, uint32_t size)
291 {
292     assert(buffer != NULL);
293     assert((size % 6U) == 0U);
294 
295     uint32_t i = 0, j = 0, data = 0;
296 
297     while (i < size)
298     {
299         /* Wait until it can write data */
300         while ((SPDIF_GetStatusFlag(base) & (uint32_t)kSPDIF_TxFIFOEmpty) == 0x00U)
301         {
302         }
303 
304         /* Write left channel data */
305         for (j = 0; j < 3U; j++)
306         {
307             data |= ((uint32_t)(*buffer) << (j * 8U));
308             buffer++;
309         }
310         SPDIF_WriteLeftData(base, data);
311 
312         /* Write right channel data */
313         data = 0;
314         for (j = 0; j < 3U; j++)
315         {
316             data |= ((uint32_t)(*buffer) << (j * 8U));
317             buffer++;
318         }
319         SPDIF_WriteRightData(base, data);
320 
321         i += 6U;
322     }
323 }
324 
325 /*!
326  * brief Receives data using a blocking method.
327  *
328  * note This function blocks by polling until data is ready to be sent.
329  *
330  * param base SPDIF base pointer.
331  * param buffer Pointer to the data to be read.
332  * param size Bytes to be read.
333  */
SPDIF_ReadBlocking(SPDIF_Type * base,uint8_t * buffer,uint32_t size)334 void SPDIF_ReadBlocking(SPDIF_Type *base, uint8_t *buffer, uint32_t size)
335 {
336     assert(buffer != NULL);
337     assert((size % 6U) == 0U);
338 
339     uint32_t i = 0, j = 0, data = 0;
340 
341     while (i < size)
342     {
343         /* Wait until it can write data */
344         while ((SPDIF_GetStatusFlag(base) & (uint32_t)kSPDIF_RxFIFOFull) == 0x00U)
345         {
346         }
347 
348         /* Write left channel data */
349         data = SPDIF_ReadLeftData(base);
350         for (j = 0; j < 3U; j++)
351         {
352             *buffer = ((uint8_t)(data >> (j * 8U)) & 0xFFU);
353             buffer++;
354         }
355 
356         /* Write right channel data */
357         data = SPDIF_ReadRightData(base);
358         for (j = 0; j < 3U; j++)
359         {
360             *buffer = ((uint8_t)(data >> (j * 8U)) & 0xFFU);
361             buffer++;
362         }
363 
364         i += 6U;
365     }
366 }
367 
368 /*!
369  * brief Initializes the SPDIF Tx handle.
370  *
371  * This function initializes the Tx handle for the SPDIF Tx transactional APIs. Call
372  * this function once to get the handle initialized.
373  *
374  * param base SPDIF base pointer
375  * param handle SPDIF handle pointer.
376  * param callback Pointer to the user callback function.
377  * param userData User parameter passed to the callback function
378  */
SPDIF_TransferTxCreateHandle(SPDIF_Type * base,spdif_handle_t * handle,spdif_transfer_callback_t callback,void * userData)379 void SPDIF_TransferTxCreateHandle(SPDIF_Type *base,
380                                   spdif_handle_t *handle,
381                                   spdif_transfer_callback_t callback,
382                                   void *userData)
383 {
384     assert(handle != NULL);
385 
386     /* Zero the handle */
387     (void)memset(handle, 0, sizeof(*handle));
388 
389     s_spdifHandle[SPDIF_GetInstance(base)][0] = handle;
390 
391     handle->callback = callback;
392     handle->userData = userData;
393     handle->watermark =
394         s_spdif_tx_watermark[(base->SCR & SPDIF_SCR_TXFIFOEMPTY_SEL_MASK) >> SPDIF_SCR_TXFIFOEMPTY_SEL_SHIFT];
395 
396     /* Set the isr pointer */
397     s_spdifTxIsr = SPDIF_TransferTxHandleIRQ;
398 
399     /* Enable Tx irq */
400     (void)EnableIRQ(s_spdifIRQ[SPDIF_GetInstance(base)]);
401 }
402 
403 /*!
404  * brief Initializes the SPDIF Rx handle.
405  *
406  * This function initializes the Rx handle for the SPDIF Rx transactional APIs. Call
407  * this function once to get the handle initialized.
408  *
409  * param base SPDIF base pointer.
410  * param handle SPDIF handle pointer.
411  * param callback Pointer to the user callback function.
412  * param userData User parameter passed to the callback function.
413  */
SPDIF_TransferRxCreateHandle(SPDIF_Type * base,spdif_handle_t * handle,spdif_transfer_callback_t callback,void * userData)414 void SPDIF_TransferRxCreateHandle(SPDIF_Type *base,
415                                   spdif_handle_t *handle,
416                                   spdif_transfer_callback_t callback,
417                                   void *userData)
418 {
419     assert(handle != NULL);
420 
421     /* Zero the handle */
422     (void)memset(handle, 0, sizeof(*handle));
423 
424     s_spdifHandle[SPDIF_GetInstance(base)][1] = handle;
425 
426     handle->callback = callback;
427     handle->userData = userData;
428     handle->watermark =
429         s_spdif_rx_watermark[(base->SCR & SPDIF_SCR_RXFIFOFULL_SEL_MASK) >> SPDIF_SCR_RXFIFOFULL_SEL_SHIFT];
430 
431     /* Set the isr pointer */
432     s_spdifRxIsr = SPDIF_TransferRxHandleIRQ;
433 
434     /* Enable Rx irq */
435     (void)EnableIRQ(s_spdifIRQ[SPDIF_GetInstance(base)]);
436 }
437 
438 /*!
439  * brief Performs an interrupt non-blocking send transfer on SPDIF.
440  *
441  * note This API returns immediately after the transfer initiates.
442  * Call the SPDIF_TxGetTransferStatusIRQ to poll the transfer status and check whether
443  * the transfer is finished. If the return status is not kStatus_SPDIF_Busy, the transfer
444  * is finished.
445  *
446  * param base SPDIF base pointer.
447  * param handle Pointer to the spdif_handle_t structure which stores the transfer state.
448  * param xfer Pointer to the spdif_transfer_t structure.
449  * retval kStatus_Success Successfully started the data receive.
450  * retval kStatus_SPDIF_TxBusy Previous receive still not finished.
451  * retval kStatus_InvalidArgument The input parameter is invalid.
452  */
SPDIF_TransferSendNonBlocking(SPDIF_Type * base,spdif_handle_t * handle,spdif_transfer_t * xfer)453 status_t SPDIF_TransferSendNonBlocking(SPDIF_Type *base, spdif_handle_t *handle, spdif_transfer_t *xfer)
454 {
455     assert(handle != NULL);
456 
457     /* Check if the queue is full */
458     if (handle->spdifQueue[handle->queueUser].data != NULL)
459     {
460         return kStatus_SPDIF_QueueFull;
461     }
462 
463     /* Add into queue */
464     handle->transferSize[handle->queueUser]        = xfer->dataSize;
465     handle->spdifQueue[handle->queueUser].data     = xfer->data;
466     handle->spdifQueue[handle->queueUser].dataSize = xfer->dataSize;
467     handle->queueUser                              = (handle->queueUser + 0x01U) % SPDIF_XFER_QUEUE_SIZE;
468 
469     /* Set the state to busy */
470     handle->state = kSPDIF_Busy;
471 
472     /* Enable interrupt */
473     SPDIF_EnableInterrupts(base, kSPDIF_TxFIFOEmpty);
474 
475     /* Enable Tx transfer */
476     SPDIF_TxEnable(base, true);
477 
478     return kStatus_Success;
479 }
480 
481 /*!
482  * brief Performs an interrupt non-blocking receive transfer on SPDIF.
483  *
484  * note This API returns immediately after the transfer initiates.
485  * Call the SPDIF_RxGetTransferStatusIRQ to poll the transfer status and check whether
486  * the transfer is finished. If the return status is not kStatus_SPDIF_Busy, the transfer
487  * is finished.
488  *
489  * param base SPDIF base pointer
490  * param handle Pointer to the spdif_handle_t structure which stores the transfer state.
491  * param xfer Pointer to the spdif_transfer_t structure.
492  * retval kStatus_Success Successfully started the data receive.
493  * retval kStatus_SPDIF_RxBusy Previous receive still not finished.
494  * retval kStatus_InvalidArgument The input parameter is invalid.
495  */
SPDIF_TransferReceiveNonBlocking(SPDIF_Type * base,spdif_handle_t * handle,spdif_transfer_t * xfer)496 status_t SPDIF_TransferReceiveNonBlocking(SPDIF_Type *base, spdif_handle_t *handle, spdif_transfer_t *xfer)
497 {
498     assert(handle != NULL);
499 
500     uint32_t enableInterrupts = (uint32_t)kSPDIF_RxFIFOFull | (uint32_t)kSPDIF_RxControlChannelChange;
501 
502     /* Check if the queue is full */
503     if (handle->spdifQueue[handle->queueUser].data != NULL)
504     {
505         return kStatus_SPDIF_QueueFull;
506     }
507 
508     /* Add into queue */
509     handle->transferSize[handle->queueUser]        = xfer->dataSize;
510     handle->spdifQueue[handle->queueUser].data     = xfer->data;
511     handle->spdifQueue[handle->queueUser].dataSize = xfer->dataSize;
512     handle->spdifQueue[handle->queueUser].udata    = xfer->udata;
513     handle->spdifQueue[handle->queueUser].qdata    = xfer->qdata;
514     handle->queueUser                              = (handle->queueUser + 0x01U) % SPDIF_XFER_QUEUE_SIZE;
515 
516     /* Set state to busy */
517     handle->state = kSPDIF_Busy;
518 
519     if (xfer->qdata != NULL)
520     {
521         enableInterrupts |= (uint32_t)kSPDIF_QChannelReceiveRegisterFull;
522     }
523 
524     if (xfer->udata != NULL)
525     {
526         enableInterrupts |= (uint32_t)kSPDIF_UChannelReceiveRegisterFull;
527     }
528 
529     /* Enable interrupt */
530     SPDIF_EnableInterrupts(base, enableInterrupts);
531 
532     /* Enable Rx transfer */
533     SPDIF_RxEnable(base, true);
534 
535     return kStatus_Success;
536 }
537 
538 /*!
539  * brief Gets a set byte count.
540  *
541  * param base SPDIF base pointer.
542  * param handle Pointer to the spdif_handle_t structure which stores the transfer state.
543  * param count Bytes count sent.
544  * retval kStatus_Success Succeed get the transfer count.
545  * retval kStatus_NoTransferInProgress There is not a non-blocking transaction currently in progress.
546  */
SPDIF_TransferGetSendCount(SPDIF_Type * base,spdif_handle_t * handle,size_t * count)547 status_t SPDIF_TransferGetSendCount(SPDIF_Type *base, spdif_handle_t *handle, size_t *count)
548 {
549     assert(handle != NULL);
550 
551     status_t status     = kStatus_Success;
552     uint8_t queueDriver = handle->queueDriver;
553 
554     if (handle->state != (uint32_t)kSPDIF_Busy)
555     {
556         status = kStatus_NoTransferInProgress;
557     }
558     else
559     {
560         *count = (handle->transferSize[queueDriver] - handle->spdifQueue[queueDriver].dataSize);
561     }
562 
563     return status;
564 }
565 
566 /*!
567  * brief Gets a received byte count.
568  *
569  * param base SPDIF base pointer.
570  * param handle Pointer to the spdif_handle_t structure which stores the transfer state.
571  * param count Bytes count received.
572  * retval kStatus_Success Succeed get the transfer count.
573  * retval kStatus_NoTransferInProgress There is not a non-blocking transaction currently in progress.
574  */
SPDIF_TransferGetReceiveCount(SPDIF_Type * base,spdif_handle_t * handle,size_t * count)575 status_t SPDIF_TransferGetReceiveCount(SPDIF_Type *base, spdif_handle_t *handle, size_t *count)
576 {
577     assert(handle != NULL);
578 
579     status_t status     = kStatus_Success;
580     uint8_t queueDriver = handle->queueDriver;
581 
582     if (handle->state != (uint32_t)kSPDIF_Busy)
583     {
584         status = kStatus_NoTransferInProgress;
585     }
586     else
587     {
588         *count = (handle->transferSize[queueDriver] - handle->spdifQueue[queueDriver].dataSize);
589     }
590 
591     return status;
592 }
593 
594 /*!
595  * brief Aborts the current send.
596  *
597  * note This API can be called any time when an interrupt non-blocking transfer initiates
598  * to abort the transfer early.
599  *
600  * param base SPDIF base pointer.
601  * param handle Pointer to the spdif_handle_t structure which stores the transfer state.
602  */
SPDIF_TransferAbortSend(SPDIF_Type * base,spdif_handle_t * handle)603 void SPDIF_TransferAbortSend(SPDIF_Type *base, spdif_handle_t *handle)
604 {
605     assert(handle != NULL);
606 
607     /* Use FIFO request interrupt and fifo error */
608     SPDIF_DisableInterrupts(base, kSPDIF_TxFIFOEmpty);
609 
610     handle->state = kSPDIF_Idle;
611 
612     /* Clear the queue */
613     (void)memset(handle->spdifQueue, 0, sizeof(spdif_transfer_t) * SPDIF_XFER_QUEUE_SIZE);
614     handle->queueDriver = 0;
615     handle->queueUser   = 0;
616 }
617 
618 /*!
619  * brief Aborts the current IRQ receive.
620  *
621  * note This API can be called when an interrupt non-blocking transfer initiates
622  * to abort the transfer early.
623  *
624  * param base SPDIF base pointer
625  * param handle Pointer to the spdif_handle_t structure which stores the transfer state.
626  */
SPDIF_TransferAbortReceive(SPDIF_Type * base,spdif_handle_t * handle)627 void SPDIF_TransferAbortReceive(SPDIF_Type *base, spdif_handle_t *handle)
628 {
629     assert(handle != NULL);
630 
631     /* Disable interrupt */
632     SPDIF_DisableInterrupts(base, (uint32_t)kSPDIF_UChannelReceiveRegisterFull |
633                                       (uint32_t)kSPDIF_QChannelReceiveRegisterFull | (uint32_t)kSPDIF_RxFIFOFull |
634                                       (uint32_t)kSPDIF_RxControlChannelChange);
635 
636     handle->state = kSPDIF_Idle;
637 
638     /* Clear the queue */
639     (void)memset(handle->spdifQueue, 0, sizeof(spdif_transfer_t) * SPDIF_XFER_QUEUE_SIZE);
640     handle->queueDriver = 0;
641     handle->queueUser   = 0;
642 }
643 
644 /*!
645  * brief Tx interrupt handler.
646  *
647  * param base SPDIF base pointer.
648  * param handle Pointer to the spdif_handle_t structure.
649  */
SPDIF_TransferTxHandleIRQ(SPDIF_Type * base,spdif_handle_t * handle)650 void SPDIF_TransferTxHandleIRQ(SPDIF_Type *base, spdif_handle_t *handle)
651 {
652     assert(handle != NULL);
653 
654     uint8_t *buffer  = handle->spdifQueue[handle->queueDriver].data;
655     uint8_t dataSize = 0;
656     uint32_t i = 0, j = 0, data = 0;
657 
658     /* Do Transfer */
659     if (((SPDIF_GetStatusFlag(base) & (uint32_t)kSPDIF_TxFIFOEmpty) != 0x00U) &&
660         ((base->SIE & (uint32_t)kSPDIF_TxFIFOEmpty) != 0x00U))
661     {
662         dataSize = handle->watermark;
663         while (i < dataSize)
664         {
665             data = 0;
666             /* Write left channel data */
667             for (j = 0; j < 3U; j++)
668             {
669                 data |= ((uint32_t)(*buffer) << (j * 8U));
670                 buffer++;
671             }
672             SPDIF_WriteLeftData(base, data);
673 
674             /* Write right channel data */
675             data = 0;
676             for (j = 0; j < 3U; j++)
677             {
678                 data |= ((uint32_t)(*buffer) << (j * 8U));
679                 buffer++;
680             }
681             SPDIF_WriteRightData(base, data);
682 
683             i++;
684         }
685         handle->spdifQueue[handle->queueDriver].dataSize -= (uint32_t)dataSize * 6U;
686         handle->spdifQueue[handle->queueDriver].data += dataSize * 6U;
687 
688         /* If finished a block, call the callback function */
689         if (handle->spdifQueue[handle->queueDriver].dataSize == 0U)
690         {
691             (void)memset(&handle->spdifQueue[handle->queueDriver], 0, sizeof(spdif_transfer_t));
692             handle->queueDriver = (handle->queueDriver + 0x01U) % SPDIF_XFER_QUEUE_SIZE;
693             if (handle->callback != NULL)
694             {
695                 (handle->callback)(base, handle, kStatus_SPDIF_TxIdle, handle->userData);
696             }
697         }
698 
699         /* If all data finished, just stop the transfer */
700         if (handle->spdifQueue[handle->queueDriver].data == NULL)
701         {
702             SPDIF_TransferAbortSend(base, handle);
703         }
704     }
705 }
706 
707 /*!
708  * brief Tx interrupt handler.
709  *
710  * param base SPDIF base pointer.
711  * param handle Pointer to the spdif_handle_t structure.
712  */
SPDIF_TransferRxHandleIRQ(SPDIF_Type * base,spdif_handle_t * handle)713 void SPDIF_TransferRxHandleIRQ(SPDIF_Type *base, spdif_handle_t *handle)
714 {
715     assert(handle != NULL);
716 
717     uint8_t *buffer  = NULL;
718     uint8_t dataSize = 0;
719     uint32_t i = 0, j = 0, data = 0;
720 
721     /* Handle Cnew flag */
722     if ((SPDIF_GetStatusFlag(base) & (uint32_t)kSPDIF_RxControlChannelChange) != 0x00U)
723     {
724         /* Clear the interrupt flag */
725         SPDIF_ClearStatusFlags(base, SPDIF_SIE_CNEW_MASK);
726         if (handle->callback != NULL)
727         {
728             (handle->callback)(base, handle, kStatus_SPDIF_RxCnew, handle->userData);
729         }
730     }
731 
732     /* Handle illegal symbol */
733     if ((SPDIF_GetStatusFlag(base) & (uint32_t)kSPDIF_RxIllegalSymbol) != 0x00U)
734     {
735         SPDIF_ClearStatusFlags(base, kSPDIF_RxIllegalSymbol);
736         if (handle->callback != NULL)
737         {
738             (handle->callback)(base, handle, kStatus_SPDIF_RxIllegalSymbol, handle->userData);
739         }
740     }
741 
742     /* Handle Parity Bit Error */
743     if ((SPDIF_GetStatusFlag(base) & (uint32_t)kSPDIF_RxParityBitError) != 0x00U)
744     {
745         SPDIF_ClearStatusFlags(base, kSPDIF_RxParityBitError);
746         if (handle->callback != NULL)
747         {
748             (handle->callback)(base, handle, kStatus_SPDIF_RxParityBitError, handle->userData);
749         }
750     }
751 
752     /* Handle DPlocked */
753     if ((SPDIF_GetStatusFlag(base) & (uint32_t)kSPDIF_RxDPLLLocked) != 0x00U)
754     {
755         SPDIF_ClearStatusFlags(base, kSPDIF_RxDPLLLocked);
756         if (handle->callback != NULL)
757         {
758             (handle->callback)(base, handle, kStatus_SPDIF_RxDPLLLocked, handle->userData);
759         }
760     }
761 
762     /* Handle Q channel full flag */
763     if (((SPDIF_GetStatusFlag(base) & (uint32_t)kSPDIF_QChannelReceiveRegisterFull) != 0x00U) &&
764         ((base->SIE & (uint32_t)kSPDIF_QChannelReceiveRegisterFull) != 0x00U))
765     {
766         buffer = handle->spdifQueue[handle->queueDriver].qdata;
767         if (buffer != NULL)
768         {
769             data      = SPDIF_ReadQChannel(base);
770             buffer[0] = (uint8_t)data & 0xFFU;
771             buffer[1] = (uint8_t)(data >> 8U) & 0xFFU;
772             buffer[2] = (uint8_t)(data >> 16U) & 0xFFU;
773         }
774     }
775 
776     /* Handle U channel full flag */
777     if (((SPDIF_GetStatusFlag(base) & (uint32_t)kSPDIF_UChannelReceiveRegisterFull) != 0x00U) &&
778         ((base->SIE & (uint32_t)kSPDIF_UChannelReceiveRegisterFull) != 0x00U))
779     {
780         buffer = handle->spdifQueue[handle->queueDriver].udata;
781         if (buffer != NULL)
782         {
783             data      = SPDIF_ReadUChannel(base);
784             buffer[0] = (uint8_t)data & 0xFFU;
785             buffer[1] = (uint8_t)(data >> 8U) & 0xFFU;
786             buffer[2] = (uint8_t)(data >> 16U) & 0xFFU;
787         }
788     }
789 
790     /* Handle audio data transfer */
791     if (((SPDIF_GetStatusFlag(base) & (uint32_t)kSPDIF_RxFIFOFull) != 0x00U) &&
792         ((base->SIE & (uint32_t)kSPDIF_RxFIFOFull) != 0x00U))
793     {
794         dataSize = handle->watermark;
795         buffer   = handle->spdifQueue[handle->queueDriver].data;
796         while (i < dataSize)
797         {
798             /* Read left channel data */
799             data = SPDIF_ReadLeftData(base);
800             for (j = 0; j < 3U; j++)
801             {
802                 *buffer = (uint8_t)((data >> (j * 8U)) & 0xFFU);
803                 buffer++;
804             }
805 
806             /* Read right channel data */
807             data = SPDIF_ReadRightData(base);
808             for (j = 0; j < 3U; j++)
809             {
810                 *buffer = (uint8_t)((data >> (j * 8U)) & 0xFFU);
811                 buffer++;
812             }
813 
814             i++;
815         }
816         handle->spdifQueue[handle->queueDriver].dataSize -= (uint32_t)dataSize * 6U;
817         handle->spdifQueue[handle->queueDriver].data += dataSize * 6U;
818 
819         /* If finished a block, call the callback function */
820         if (handle->spdifQueue[handle->queueDriver].dataSize == 0x00U)
821         {
822             (void)memset(&handle->spdifQueue[handle->queueDriver], 0, sizeof(spdif_transfer_t));
823             handle->queueDriver = (handle->queueDriver + 0x01U) % SPDIF_XFER_QUEUE_SIZE;
824             if (handle->callback != NULL)
825             {
826                 (handle->callback)(base, handle, kStatus_SPDIF_RxIdle, handle->userData);
827             }
828         }
829 
830         /* If all data finished, just stop the transfer */
831         if (handle->spdifQueue[handle->queueDriver].data == NULL)
832         {
833             SPDIF_TransferAbortReceive(base, handle);
834         }
835     }
836 }
837 
838 #if defined(SPDIF)
839 void SPDIF_DriverIRQHandler(void);
SPDIF_DriverIRQHandler(void)840 void SPDIF_DriverIRQHandler(void)
841 {
842     if ((s_spdifHandle[0][0] != NULL) && (s_spdifTxIsr != NULL))
843     {
844         s_spdifTxIsr(SPDIF, s_spdifHandle[0][0]);
845     }
846 
847     if ((s_spdifHandle[0][1] != NULL) && (s_spdifRxIsr != NULL))
848     {
849         s_spdifRxIsr(SPDIF, s_spdifHandle[0][1]);
850     }
851     SDK_ISR_EXIT_BARRIER;
852 }
853 #endif
854