audio_spdif.cpp 22 KB

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  1. /**
  2. * Copyright (C) 2023 saybur
  3. *
  4. * This program is free software: you can redistribute it and/or modify
  5. * it under the terms of the GNU General Public License as published by
  6. * the Free Software Foundation, either version 3 of the License, or
  7. * (at your option) any later version. 
  8. *
  9. * This program is distributed in the hope that it will be useful,
  10. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
  12. * GNU General Public License for more details. 
  13. *
  14. * You should have received a copy of the GNU General Public License
  15. * along with this program.  If not, see <https://www.gnu.org/licenses/>.
  16. **/
  17. #ifdef ENABLE_AUDIO_OUTPUT_SPDIF
  18. #include <SdFat.h>
  19. #include <stdbool.h>
  20. #include <hardware/dma.h>
  21. #include <hardware/irq.h>
  22. #include <hardware/spi.h>
  23. #include <pico/multicore.h>
  24. #include "audio_spdif.h"
  25. #include "BlueSCSI_audio.h"
  26. #include "BlueSCSI_config.h"
  27. #include "BlueSCSI_log.h"
  28. #include "BlueSCSI_platform.h"
  29. extern SdFs SD;
  30. // Table with the number of '1' bits for each index.
  31. // Used for S/PDIF parity calculations.
  32. // Placed in SRAM5 for the second core to use with reduced contention.
  33. const uint8_t snd_parity[256] __attribute__((aligned(256), section(".scratch_y.snd_parity"))) = {
  34. 0, 1, 1, 2, 1, 2, 2, 3, 1, 2, 2, 3, 2, 3, 3, 4,
  35. 1, 2, 2, 3, 2, 3, 3, 4, 2, 3, 3, 4, 3, 4, 4, 5,
  36. 1, 2, 2, 3, 2, 3, 3, 4, 2, 3, 3, 4, 3, 4, 4, 5,
  37. 2, 3, 3, 4, 3, 4, 4, 5, 3, 4, 4, 5, 4, 5, 5, 6,
  38. 1, 2, 2, 3, 2, 3, 3, 4, 2, 3, 3, 4, 3, 4, 4, 5,
  39. 2, 3, 3, 4, 3, 4, 4, 5, 3, 4, 4, 5, 4, 5, 5, 6,
  40. 2, 3, 3, 4, 3, 4, 4, 5, 3, 4, 4, 5, 4, 5, 5, 6,
  41. 3, 4, 4, 5, 4, 5, 5, 6, 4, 5, 5, 6, 5, 6, 6, 7,
  42. 1, 2, 2, 3, 2, 3, 3, 4, 2, 3, 3, 4, 3, 4, 4, 5,
  43. 2, 3, 3, 4, 3, 4, 4, 5, 3, 4, 4, 5, 4, 5, 5, 6,
  44. 2, 3, 3, 4, 3, 4, 4, 5, 3, 4, 4, 5, 4, 5, 5, 6,
  45. 3, 4, 4, 5, 4, 5, 5, 6, 4, 5, 5, 6, 5, 6, 6, 7,
  46. 2, 3, 3, 4, 3, 4, 4, 5, 3, 4, 4, 5, 4, 5, 5, 6,
  47. 3, 4, 4, 5, 4, 5, 5, 6, 4, 5, 5, 6, 5, 6, 6, 7,
  48. 3, 4, 4, 5, 4, 5, 5, 6, 4, 5, 5, 6, 5, 6, 6, 7,
  49. 4, 5, 5, 6, 5, 6, 6, 7, 5, 6, 6, 7, 6, 7, 7, 8, };
  50. /*
  51. * Precomputed biphase-mark patterns for data. For an 8-bit value this has
  52. * 16-bits in MSB-first order for the correct high/low transitions to
  53. * represent the data, given an output clocking rate twice the bitrate (so the
  54. * bits '11' or '00' reflect a zero and '10' or '01' represent a one). Each
  55. * value below starts with a '1' and will need to be inverted if the last bit
  56. * of the previous mask was also a '1'. These values can be written to an
  57. * appropriately configured SPI peripheral to blast biphase data at a
  58. * receiver.
  59. *
  60. * To facilitate fast lookups this table should be put in SRAM with low
  61. * contention, aligned to an apppropriate boundry.
  62. */
  63. const uint16_t biphase[256] __attribute__((aligned(512), section(".scratch_y.biphase"))) = {
  64. 0xCCCC, 0xB333, 0xD333, 0xACCC, 0xCB33, 0xB4CC, 0xD4CC, 0xAB33,
  65. 0xCD33, 0xB2CC, 0xD2CC, 0xAD33, 0xCACC, 0xB533, 0xD533, 0xAACC,
  66. 0xCCB3, 0xB34C, 0xD34C, 0xACB3, 0xCB4C, 0xB4B3, 0xD4B3, 0xAB4C,
  67. 0xCD4C, 0xB2B3, 0xD2B3, 0xAD4C, 0xCAB3, 0xB54C, 0xD54C, 0xAAB3,
  68. 0xCCD3, 0xB32C, 0xD32C, 0xACD3, 0xCB2C, 0xB4D3, 0xD4D3, 0xAB2C,
  69. 0xCD2C, 0xB2D3, 0xD2D3, 0xAD2C, 0xCAD3, 0xB52C, 0xD52C, 0xAAD3,
  70. 0xCCAC, 0xB353, 0xD353, 0xACAC, 0xCB53, 0xB4AC, 0xD4AC, 0xAB53,
  71. 0xCD53, 0xB2AC, 0xD2AC, 0xAD53, 0xCAAC, 0xB553, 0xD553, 0xAAAC,
  72. 0xCCCB, 0xB334, 0xD334, 0xACCB, 0xCB34, 0xB4CB, 0xD4CB, 0xAB34,
  73. 0xCD34, 0xB2CB, 0xD2CB, 0xAD34, 0xCACB, 0xB534, 0xD534, 0xAACB,
  74. 0xCCB4, 0xB34B, 0xD34B, 0xACB4, 0xCB4B, 0xB4B4, 0xD4B4, 0xAB4B,
  75. 0xCD4B, 0xB2B4, 0xD2B4, 0xAD4B, 0xCAB4, 0xB54B, 0xD54B, 0xAAB4,
  76. 0xCCD4, 0xB32B, 0xD32B, 0xACD4, 0xCB2B, 0xB4D4, 0xD4D4, 0xAB2B,
  77. 0xCD2B, 0xB2D4, 0xD2D4, 0xAD2B, 0xCAD4, 0xB52B, 0xD52B, 0xAAD4,
  78. 0xCCAB, 0xB354, 0xD354, 0xACAB, 0xCB54, 0xB4AB, 0xD4AB, 0xAB54,
  79. 0xCD54, 0xB2AB, 0xD2AB, 0xAD54, 0xCAAB, 0xB554, 0xD554, 0xAAAB,
  80. 0xCCCD, 0xB332, 0xD332, 0xACCD, 0xCB32, 0xB4CD, 0xD4CD, 0xAB32,
  81. 0xCD32, 0xB2CD, 0xD2CD, 0xAD32, 0xCACD, 0xB532, 0xD532, 0xAACD,
  82. 0xCCB2, 0xB34D, 0xD34D, 0xACB2, 0xCB4D, 0xB4B2, 0xD4B2, 0xAB4D,
  83. 0xCD4D, 0xB2B2, 0xD2B2, 0xAD4D, 0xCAB2, 0xB54D, 0xD54D, 0xAAB2,
  84. 0xCCD2, 0xB32D, 0xD32D, 0xACD2, 0xCB2D, 0xB4D2, 0xD4D2, 0xAB2D,
  85. 0xCD2D, 0xB2D2, 0xD2D2, 0xAD2D, 0xCAD2, 0xB52D, 0xD52D, 0xAAD2,
  86. 0xCCAD, 0xB352, 0xD352, 0xACAD, 0xCB52, 0xB4AD, 0xD4AD, 0xAB52,
  87. 0xCD52, 0xB2AD, 0xD2AD, 0xAD52, 0xCAAD, 0xB552, 0xD552, 0xAAAD,
  88. 0xCCCA, 0xB335, 0xD335, 0xACCA, 0xCB35, 0xB4CA, 0xD4CA, 0xAB35,
  89. 0xCD35, 0xB2CA, 0xD2CA, 0xAD35, 0xCACA, 0xB535, 0xD535, 0xAACA,
  90. 0xCCB5, 0xB34A, 0xD34A, 0xACB5, 0xCB4A, 0xB4B5, 0xD4B5, 0xAB4A,
  91. 0xCD4A, 0xB2B5, 0xD2B5, 0xAD4A, 0xCAB5, 0xB54A, 0xD54A, 0xAAB5,
  92. 0xCCD5, 0xB32A, 0xD32A, 0xACD5, 0xCB2A, 0xB4D5, 0xD4D5, 0xAB2A,
  93. 0xCD2A, 0xB2D5, 0xD2D5, 0xAD2A, 0xCAD5, 0xB52A, 0xD52A, 0xAAD5,
  94. 0xCCAA, 0xB355, 0xD355, 0xACAA, 0xCB55, 0xB4AA, 0xD4AA, 0xAB55,
  95. 0xCD55, 0xB2AA, 0xD2AA, 0xAD55, 0xCAAA, 0xB555, 0xD555, 0xAAAA };
  96. /*
  97. * Biphase frame headers for S/PDIF, including the special bit framing
  98. * errors used to detect (sub)frame start conditions. See above table
  99. * for details.
  100. */
  101. const uint16_t x_preamble = 0xE2CC;
  102. const uint16_t y_preamble = 0xE4CC;
  103. const uint16_t z_preamble = 0xE8CC;
  104. // DMA configuration info
  105. static dma_channel_config snd_dma_a_cfg;
  106. static dma_channel_config snd_dma_b_cfg;
  107. // some chonky buffers to store audio samples
  108. static uint8_t sample_buf_a[AUDIO_BUFFER_SIZE];
  109. static uint8_t sample_buf_b[AUDIO_BUFFER_SIZE];
  110. // tracking for the state of the above buffers
  111. enum bufstate { STALE, FILLING, READY };
  112. static volatile bufstate sbufst_a = STALE;
  113. static volatile bufstate sbufst_b = STALE;
  114. enum bufselect { A, B };
  115. static bufselect sbufsel = A;
  116. static uint16_t sbufpos = 0;
  117. static uint8_t sbufswap = 0;
  118. // buffers for storing biphase patterns
  119. #define SAMPLE_CHUNK_SIZE 1024 // ~5.8ms
  120. #define WIRE_BUFFER_SIZE (SAMPLE_CHUNK_SIZE * 2)
  121. static uint16_t wire_buf_a[WIRE_BUFFER_SIZE];
  122. static uint16_t wire_buf_b[WIRE_BUFFER_SIZE];
  123. // tracking for audio playback
  124. static uint8_t audio_owner; // SCSI ID or 0xFF when idle
  125. static volatile bool audio_paused = false;
  126. static ImageBackingStore* audio_file;
  127. static uint64_t fpos;
  128. static uint32_t fleft;
  129. // historical playback status information
  130. static audio_status_code audio_last_status[8] = {ASC_NO_STATUS, ASC_NO_STATUS, ASC_NO_STATUS, ASC_NO_STATUS,
  131. ASC_NO_STATUS, ASC_NO_STATUS, ASC_NO_STATUS, ASC_NO_STATUS};
  132. // volume information for targets
  133. static volatile uint16_t volumes[8] = {
  134. DEFAULT_VOLUME_LEVEL_2CH, DEFAULT_VOLUME_LEVEL_2CH, DEFAULT_VOLUME_LEVEL_2CH, DEFAULT_VOLUME_LEVEL_2CH,
  135. DEFAULT_VOLUME_LEVEL_2CH, DEFAULT_VOLUME_LEVEL_2CH, DEFAULT_VOLUME_LEVEL_2CH, DEFAULT_VOLUME_LEVEL_2CH
  136. };
  137. static volatile uint16_t channels[8] = {
  138. AUDIO_CHANNEL_ENABLE_MASK, AUDIO_CHANNEL_ENABLE_MASK, AUDIO_CHANNEL_ENABLE_MASK, AUDIO_CHANNEL_ENABLE_MASK,
  139. AUDIO_CHANNEL_ENABLE_MASK, AUDIO_CHANNEL_ENABLE_MASK, AUDIO_CHANNEL_ENABLE_MASK, AUDIO_CHANNEL_ENABLE_MASK
  140. };
  141. // mechanism for cleanly stopping DMA units
  142. static volatile bool audio_stopping = false;
  143. // trackers for the below function call
  144. static uint16_t sfcnt = 0; // sub-frame count; 2 per frame, 192 frames/block
  145. static uint8_t invert = 0; // biphase encode help: set if last wire bit was '1'
  146. /*
  147. * Translates 16-bit stereo sound samples to biphase wire patterns for the
  148. * SPI peripheral. Produces 8 patterns (128 bits, or 1 S/PDIF frame) per pair
  149. * of input samples. Provided length is the total number of sample bytes present,
  150. * _twice_ the number of samples (little-endian order assumed)
  151. *
  152. * This function operates with side-effects and is not safe to call from both
  153. * cores. It must also be called in the same order data is intended to be
  154. * output.
  155. */
  156. static void snd_encode(uint8_t* samples, uint16_t* wire_patterns, uint16_t len, uint8_t swap) {
  157. uint16_t wvol = volumes[audio_owner & 7];
  158. uint8_t lvol = ((wvol >> 8) + (wvol & 0xFF)) >> 1; // average of both values
  159. // limit maximum volume; with my DACs I've had persistent issues
  160. // with signal clipping when sending data in the highest bit position
  161. lvol = lvol >> 2;
  162. uint8_t rvol = lvol;
  163. // enable or disable based on the channel information for both output
  164. // ports, where the high byte and mask control the right channel, and
  165. // the low control the left channel
  166. uint16_t chn = channels[audio_owner & 7] & AUDIO_CHANNEL_ENABLE_MASK;
  167. if (!(chn >> 8)) rvol = 0;
  168. if (!(chn & 0xFF)) lvol = 0;
  169. uint16_t widx = 0;
  170. for (uint16_t i = 0; i < len; i += 2) {
  171. uint32_t sample = 0;
  172. uint8_t parity = 0;
  173. if (samples != NULL) {
  174. int32_t rsamp;
  175. if (swap) {
  176. rsamp = (int16_t)(samples[i + 1] + (samples[i] << 8));
  177. } else {
  178. rsamp = (int16_t)(samples[i] + (samples[i + 1] << 8));
  179. }
  180. // linear scale to requested audio value
  181. if (i & 2) {
  182. rsamp *= rvol;
  183. } else {
  184. rsamp *= lvol;
  185. }
  186. // use 20 bits of value only, which allows ignoring the lowest 8
  187. // bits during biphase conversion (after including sample shift)
  188. sample = ((uint32_t)rsamp) & 0xFFFFF0;
  189. // determine parity, simplified to one lookup via XOR
  190. parity = ((sample >> 16) ^ (sample >> 8)) ^ sample;
  191. parity = snd_parity[parity];
  192. // shift sample into the correct bit positions of the sub-frame.
  193. sample = sample << 4;
  194. }
  195. // if needed, establish even parity with P bit
  196. if (parity % 2) sample |= 0x80000000;
  197. // translate sample into biphase encoding
  198. // first is low 8 bits: preamble and 4 least-significant bits of
  199. // 24-bit audio, pre-encoded as all '0' due to 16-bit samples
  200. uint16_t wp;
  201. if (sfcnt == 0) {
  202. wp = z_preamble; // left channel, block start
  203. } else if (sfcnt % 2) {
  204. wp = y_preamble; // right channel
  205. } else {
  206. wp = x_preamble; // left channel, not block start
  207. }
  208. if (invert) wp = ~wp;
  209. invert = wp & 1;
  210. wire_patterns[widx++] = wp;
  211. // next 8 bits
  212. wp = biphase[(uint8_t) (sample >> 8)];
  213. if (invert) wp = ~wp;
  214. invert = wp & 1;
  215. wire_patterns[widx++] = wp;
  216. // next 8 again, all audio data
  217. wp = biphase[(uint8_t) (sample >> 16)];
  218. if (invert) wp = ~wp;
  219. invert = wp & 1;
  220. wire_patterns[widx++] = wp;
  221. // final 8, low 4 audio data and high 4 control bits
  222. wp = biphase[(uint8_t) (sample >> 24)];
  223. if (invert) wp = ~wp;
  224. invert = wp & 1;
  225. wire_patterns[widx++] = wp;
  226. // increment subframe counter for next pass
  227. sfcnt++;
  228. if (sfcnt == 384) sfcnt = 0; // if true, block complete
  229. }
  230. }
  231. // functions for passing to Core1
  232. static void snd_process_a() {
  233. if (sbufsel == A) {
  234. if (sbufst_a == READY) {
  235. snd_encode(sample_buf_a + sbufpos, wire_buf_a, SAMPLE_CHUNK_SIZE, sbufswap);
  236. sbufpos += SAMPLE_CHUNK_SIZE;
  237. if (sbufpos >= AUDIO_BUFFER_SIZE) {
  238. sbufsel = B;
  239. sbufpos = 0;
  240. sbufst_a = STALE;
  241. }
  242. } else {
  243. snd_encode(NULL, wire_buf_a, SAMPLE_CHUNK_SIZE, sbufswap);
  244. }
  245. } else {
  246. if (sbufst_b == READY) {
  247. snd_encode(sample_buf_b + sbufpos, wire_buf_a, SAMPLE_CHUNK_SIZE, sbufswap);
  248. sbufpos += SAMPLE_CHUNK_SIZE;
  249. if (sbufpos >= AUDIO_BUFFER_SIZE) {
  250. sbufsel = A;
  251. sbufpos = 0;
  252. sbufst_b = STALE;
  253. }
  254. } else {
  255. snd_encode(NULL, wire_buf_a, SAMPLE_CHUNK_SIZE, sbufswap);
  256. }
  257. }
  258. }
  259. static void snd_process_b() {
  260. // clone of above for the other wire buffer
  261. if (sbufsel == A) {
  262. if (sbufst_a == READY) {
  263. snd_encode(sample_buf_a + sbufpos, wire_buf_b, SAMPLE_CHUNK_SIZE, sbufswap);
  264. sbufpos += SAMPLE_CHUNK_SIZE;
  265. if (sbufpos >= AUDIO_BUFFER_SIZE) {
  266. sbufsel = B;
  267. sbufpos = 0;
  268. sbufst_a = STALE;
  269. }
  270. } else {
  271. snd_encode(NULL, wire_buf_b, SAMPLE_CHUNK_SIZE, sbufswap);
  272. }
  273. } else {
  274. if (sbufst_b == READY) {
  275. snd_encode(sample_buf_b + sbufpos, wire_buf_b, SAMPLE_CHUNK_SIZE, sbufswap);
  276. sbufpos += SAMPLE_CHUNK_SIZE;
  277. if (sbufpos >= AUDIO_BUFFER_SIZE) {
  278. sbufsel = A;
  279. sbufpos = 0;
  280. sbufst_b = STALE;
  281. }
  282. } else {
  283. snd_encode(NULL, wire_buf_b, SAMPLE_CHUNK_SIZE, sbufswap);
  284. }
  285. }
  286. }
  287. // Allows execution on Core1 via function pointers. Each function can take
  288. // no parameters and should return nothing, operating via side-effects only.
  289. static void core1_handler() {
  290. while (1) {
  291. void (*function)() = (void (*)()) multicore_fifo_pop_blocking();
  292. (*function)();
  293. }
  294. }
  295. /* ------------------------------------------------------------------------ */
  296. /* ---------- VISIBLE FUNCTIONS ------------------------------------------- */
  297. /* ------------------------------------------------------------------------ */
  298. void audio_dma_irq() {
  299. if (dma_hw->intr & (1 << SOUND_DMA_CHA)) {
  300. dma_hw->ints0 = (1 << SOUND_DMA_CHA);
  301. multicore_fifo_push_blocking((uintptr_t) &snd_process_a);
  302. if (audio_stopping) {
  303. channel_config_set_chain_to(&snd_dma_a_cfg, SOUND_DMA_CHA);
  304. }
  305. dma_channel_configure(SOUND_DMA_CHA,
  306. &snd_dma_a_cfg,
  307. &(spi_get_hw(AUDIO_SPI)->dr),
  308. &wire_buf_a,
  309. WIRE_BUFFER_SIZE,
  310. false);
  311. } else if (dma_hw->intr & (1 << SOUND_DMA_CHB)) {
  312. dma_hw->ints0 = (1 << SOUND_DMA_CHB);
  313. multicore_fifo_push_blocking((uintptr_t) &snd_process_b);
  314. if (audio_stopping) {
  315. channel_config_set_chain_to(&snd_dma_b_cfg, SOUND_DMA_CHB);
  316. }
  317. dma_channel_configure(SOUND_DMA_CHB,
  318. &snd_dma_b_cfg,
  319. &(spi_get_hw(AUDIO_SPI)->dr),
  320. &wire_buf_b,
  321. WIRE_BUFFER_SIZE,
  322. false);
  323. }
  324. }
  325. bool audio_is_active() {
  326. return audio_owner != 0xFF;
  327. }
  328. bool audio_is_playing(uint8_t id) {
  329. return audio_owner == (id & 7);
  330. }
  331. void audio_setup() {
  332. // setup SPI to blast S/PDIF data over the TX pin
  333. spi_set_baudrate(AUDIO_SPI, 5644800); // will be slightly wrong, ~0.03% slow
  334. hw_write_masked(&spi_get_hw(AUDIO_SPI)->cr0,
  335. 0x1F, // TI mode with 16 bits
  336. SPI_SSPCR0_DSS_BITS | SPI_SSPCR0_FRF_BITS);
  337. spi_get_hw(AUDIO_SPI)->dmacr = SPI_SSPDMACR_TXDMAE_BITS;
  338. hw_set_bits(&spi_get_hw(AUDIO_SPI)->cr1, SPI_SSPCR1_SSE_BITS);
  339. dma_channel_claim(SOUND_DMA_CHA);
  340. dma_channel_claim(SOUND_DMA_CHB);
  341. logmsg("Starting Core1 for audio");
  342. multicore_launch_core1(core1_handler);
  343. }
  344. void audio_poll() {
  345. if (!audio_is_active()) return;
  346. if (audio_paused) return;
  347. if (fleft == 0 && sbufst_a == STALE && sbufst_b == STALE) {
  348. // out of data and ready to stop
  349. audio_stop(audio_owner);
  350. return;
  351. } else if (fleft == 0) {
  352. // out of data to read but still working on remainder
  353. return;
  354. } else if (!audio_file->isOpen()) {
  355. // closed elsewhere, maybe disk ejected?
  356. dbgmsg("------ Playback stop due to closed file");
  357. audio_stop(audio_owner);
  358. return;
  359. }
  360. // are new audio samples needed from the memory card?
  361. uint8_t* audiobuf;
  362. if (sbufst_a == STALE) {
  363. sbufst_a = FILLING;
  364. audiobuf = sample_buf_a;
  365. } else if (sbufst_b == STALE) {
  366. sbufst_b = FILLING;
  367. audiobuf = sample_buf_b;
  368. } else {
  369. // no data needed this time
  370. return;
  371. }
  372. platform_set_sd_callback(NULL, NULL);
  373. uint16_t toRead = AUDIO_BUFFER_SIZE;
  374. if (fleft < toRead) toRead = fleft;
  375. if (audio_file->position() != fpos) {
  376. // should be uncommon due to SCSI command restrictions on devices
  377. // playing audio; if this is showing up in logs a different approach
  378. // will be needed to avoid seek performance issues on FAT32 vols
  379. dbgmsg("------ Audio seek required on ", audio_owner);
  380. if (!audio_file->seek(fpos)) {
  381. logmsg("Audio error, unable to seek to ", fpos, ", ID:", audio_owner);
  382. }
  383. }
  384. if (audio_file->read(audiobuf, toRead) != toRead) {
  385. logmsg("Audio sample data underrun");
  386. }
  387. fpos += toRead;
  388. fleft -= toRead;
  389. if (sbufst_a == FILLING) {
  390. sbufst_a = READY;
  391. } else if (sbufst_b == FILLING) {
  392. sbufst_b = READY;
  393. }
  394. }
  395. bool audio_play(uint8_t owner, image_config_t* img, uint64_t start, uint64_t end, bool swap) {
  396. // stop any existing playback first
  397. if (audio_is_active()) audio_stop(audio_owner);
  398. // dbgmsg("Request to play ('", file, "':", start, ":", end, ")");
  399. // verify audio file is present and inputs are (somewhat) sane
  400. if (owner == 0xFF) {
  401. logmsg("Illegal audio owner");
  402. return false;
  403. }
  404. if (start >= end) {
  405. logmsg("Invalid range for audio (", start, ":", end, ")");
  406. return false;
  407. }
  408. platform_set_sd_callback(NULL, NULL);
  409. audio_file = &img->file;
  410. if (!audio_file->isOpen()) {
  411. logmsg("File not open for audio playback, ", owner);
  412. return false;
  413. }
  414. uint64_t len = audio_file->size();
  415. if (start > len) {
  416. logmsg("File playback request start (", start, ":", len, ") outside file bounds");
  417. return false;
  418. }
  419. // truncate playback end to end of file
  420. // we will not consider this to be an error at the moment
  421. if (end > len) {
  422. dbgmsg("------ Truncate audio play request end ", end, " to file size ", len);
  423. end = len;
  424. }
  425. fleft = end - start;
  426. if (fleft <= 2 * AUDIO_BUFFER_SIZE) {
  427. logmsg("File playback request (", start, ":", end, ") too short");
  428. return false;
  429. }
  430. // read in initial sample buffers
  431. if (!audio_file->seek(start)) {
  432. logmsg("Sample file failed start seek to ", start);
  433. return false;
  434. }
  435. if (audio_file->read(sample_buf_a, AUDIO_BUFFER_SIZE) != AUDIO_BUFFER_SIZE) {
  436. logmsg("File playback start returned fewer bytes than allowed");
  437. return false;
  438. }
  439. if (audio_file->read(sample_buf_b, AUDIO_BUFFER_SIZE) != AUDIO_BUFFER_SIZE) {
  440. logmsg("File playback start returned fewer bytes than allowed");
  441. return false;
  442. }
  443. // prepare initial tracking state
  444. fpos = audio_file->position();
  445. fleft -= AUDIO_BUFFER_SIZE * 2;
  446. sbufsel = A;
  447. sbufpos = 0;
  448. sbufswap = swap;
  449. sbufst_a = READY;
  450. sbufst_b = READY;
  451. audio_owner = owner & 7;
  452. audio_last_status[audio_owner] = ASC_PLAYING;
  453. audio_paused = false;
  454. // prepare the wire buffers
  455. for (uint16_t i = 0; i < WIRE_BUFFER_SIZE; i++) {
  456. wire_buf_a[i] = 0;
  457. wire_buf_b[i] = 0;
  458. }
  459. sfcnt = 0;
  460. invert = 0;
  461. // setup the two DMA units to hand-off to each other
  462. // to maintain a stable bitstream these need to run without interruption
  463. snd_dma_a_cfg = dma_channel_get_default_config(SOUND_DMA_CHA);
  464. channel_config_set_transfer_data_size(&snd_dma_a_cfg, DMA_SIZE_16);
  465. channel_config_set_dreq(&snd_dma_a_cfg, spi_get_dreq(AUDIO_SPI, true));
  466. channel_config_set_read_increment(&snd_dma_a_cfg, true);
  467. channel_config_set_chain_to(&snd_dma_a_cfg, SOUND_DMA_CHB);
  468. // version of pico-sdk lacks channel_config_set_high_priority()
  469. snd_dma_a_cfg.ctrl |= DMA_CH0_CTRL_TRIG_HIGH_PRIORITY_BITS;
  470. dma_channel_configure(SOUND_DMA_CHA, &snd_dma_a_cfg, &(spi_get_hw(AUDIO_SPI)->dr),
  471. &wire_buf_a, WIRE_BUFFER_SIZE, false);
  472. dma_channel_set_irq0_enabled(SOUND_DMA_CHA, true);
  473. snd_dma_b_cfg = dma_channel_get_default_config(SOUND_DMA_CHB);
  474. channel_config_set_transfer_data_size(&snd_dma_b_cfg, DMA_SIZE_16);
  475. channel_config_set_dreq(&snd_dma_b_cfg, spi_get_dreq(AUDIO_SPI, true));
  476. channel_config_set_read_increment(&snd_dma_b_cfg, true);
  477. channel_config_set_chain_to(&snd_dma_b_cfg, SOUND_DMA_CHA);
  478. snd_dma_b_cfg.ctrl |= DMA_CH0_CTRL_TRIG_HIGH_PRIORITY_BITS;
  479. dma_channel_configure(SOUND_DMA_CHB, &snd_dma_b_cfg, &(spi_get_hw(AUDIO_SPI)->dr),
  480. &wire_buf_b, WIRE_BUFFER_SIZE, false);
  481. dma_channel_set_irq0_enabled(SOUND_DMA_CHB, true);
  482. // ready to go
  483. dma_channel_start(SOUND_DMA_CHA);
  484. return true;
  485. }
  486. bool audio_set_paused(uint8_t id, bool paused) {
  487. if (audio_owner != (id & 7)) return false;
  488. else if (audio_paused && paused) return false;
  489. else if (!audio_paused && !paused) return false;
  490. audio_paused = paused;
  491. if (paused) {
  492. audio_last_status[audio_owner] = ASC_PAUSED;
  493. } else {
  494. audio_last_status[audio_owner] = ASC_PLAYING;
  495. }
  496. return true;
  497. }
  498. void audio_stop(uint8_t id) {
  499. if (audio_owner != (id & 7)) return;
  500. // to help mute external hardware, send a bunch of '0' samples prior to
  501. // halting the datastream; easiest way to do this is invalidating the
  502. // sample buffers, same as if there was a sample data underrun
  503. sbufst_a = STALE;
  504. sbufst_b = STALE;
  505. // then indicate that the streams should no longer chain to one another
  506. // and wait for them to shut down naturally
  507. audio_stopping = true;
  508. while (dma_channel_is_busy(SOUND_DMA_CHA)) tight_loop_contents();
  509. while (dma_channel_is_busy(SOUND_DMA_CHB)) tight_loop_contents();
  510. while (spi_is_busy(AUDIO_SPI)) tight_loop_contents();
  511. audio_stopping = false;
  512. // idle the subsystem
  513. audio_last_status[audio_owner] = ASC_COMPLETED;
  514. audio_paused = false;
  515. audio_owner = 0xFF;
  516. }
  517. audio_status_code audio_get_status_code(uint8_t id) {
  518. audio_status_code tmp = audio_last_status[id & 7];
  519. if (tmp == ASC_COMPLETED || tmp == ASC_ERRORED) {
  520. audio_last_status[id & 7] = ASC_NO_STATUS;
  521. }
  522. return tmp;
  523. }
  524. uint16_t audio_get_volume(uint8_t id) {
  525. return volumes[id & 7];
  526. }
  527. void audio_set_volume(uint8_t id, uint16_t vol) {
  528. volumes[id & 7] = vol;
  529. }
  530. uint16_t audio_get_channel(uint8_t id) {
  531. return channels[id & 7];
  532. }
  533. void audio_set_channel(uint8_t id, uint16_t chn) {
  534. channels[id & 7] = chn;
  535. }
  536. uint64_t audio_get_file_position()
  537. {
  538. return fpos;
  539. }
  540. void audio_set_file_position(uint8_t id, uint32_t lba)
  541. {
  542. fpos = 2352 * (uint64_t)lba;
  543. }
  544. #endif // ENABLE_AUDIO_OUTPUT_SPDIF