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audio-io.c 12 KB

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  1. /******************************************************************************
  2. Copyright (C) 2013 by Hugh Bailey <[email protected]>
  3. This program is free software: you can redistribute it and/or modify
  4. it under the terms of the GNU General Public License as published by
  5. the Free Software Foundation, either version 2 of the License, or
  6. (at your option) any later version.
  7. This program is distributed in the hope that it will be useful,
  8. but WITHOUT ANY WARRANTY; without even the implied warranty of
  9. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  10. GNU General Public License for more details.
  11. You should have received a copy of the GNU General Public License
  12. along with this program. If not, see <http://www.gnu.org/licenses/>.
  13. ******************************************************************************/
  14. #include <math.h>
  15. #include <inttypes.h>
  16. #include "../util/threading.h"
  17. #include "../util/darray.h"
  18. #include "../util/circlebuf.h"
  19. #include "../util/platform.h"
  20. #include "../util/profiler.h"
  21. #include "../util/util_uint64.h"
  22. #include "audio-io.h"
  23. #include "audio-resampler.h"
  24. #ifdef _WIN32
  25. #define WIN32_LEAN_AND_MEAN
  26. #include <Windows.h>
  27. #include <avrt.h>
  28. #endif
  29. extern profiler_name_store_t *obs_get_profiler_name_store(void);
  30. /* #define DEBUG_AUDIO */
  31. #define nop() \
  32. do { \
  33. int invalid = 0; \
  34. } while (0)
  35. struct audio_input {
  36. struct audio_convert_info conversion;
  37. audio_resampler_t *resampler;
  38. audio_output_callback_t callback;
  39. void *param;
  40. };
  41. static inline void audio_input_free(struct audio_input *input)
  42. {
  43. audio_resampler_destroy(input->resampler);
  44. }
  45. struct audio_mix {
  46. DARRAY(struct audio_input) inputs;
  47. float buffer[MAX_AUDIO_CHANNELS][AUDIO_OUTPUT_FRAMES];
  48. };
  49. struct audio_output {
  50. struct audio_output_info info;
  51. size_t block_size;
  52. size_t channels;
  53. size_t planes;
  54. pthread_t thread;
  55. os_event_t *stop_event;
  56. bool initialized;
  57. audio_input_callback_t input_cb;
  58. void *input_param;
  59. pthread_mutex_t input_mutex;
  60. struct audio_mix mixes[MAX_AUDIO_MIXES];
  61. };
  62. /* ------------------------------------------------------------------------- */
  63. static bool resample_audio_output(struct audio_input *input,
  64. struct audio_data *data)
  65. {
  66. bool success = true;
  67. if (input->resampler) {
  68. uint8_t *output[MAX_AV_PLANES];
  69. uint32_t frames;
  70. uint64_t offset;
  71. memset(output, 0, sizeof(output));
  72. success = audio_resampler_resample(
  73. input->resampler, output, &frames, &offset,
  74. (const uint8_t *const *)data->data, data->frames);
  75. for (size_t i = 0; i < MAX_AV_PLANES; i++)
  76. data->data[i] = output[i];
  77. data->frames = frames;
  78. data->timestamp -= offset;
  79. }
  80. return success;
  81. }
  82. static inline void do_audio_output(struct audio_output *audio, size_t mix_idx,
  83. uint64_t timestamp, uint32_t frames)
  84. {
  85. struct audio_mix *mix = &audio->mixes[mix_idx];
  86. struct audio_data data;
  87. pthread_mutex_lock(&audio->input_mutex);
  88. for (size_t i = mix->inputs.num; i > 0; i--) {
  89. struct audio_input *input = mix->inputs.array + (i - 1);
  90. for (size_t i = 0; i < audio->planes; i++)
  91. data.data[i] = (uint8_t *)mix->buffer[i];
  92. data.frames = frames;
  93. data.timestamp = timestamp;
  94. if (resample_audio_output(input, &data))
  95. input->callback(input->param, mix_idx, &data);
  96. }
  97. pthread_mutex_unlock(&audio->input_mutex);
  98. }
  99. static inline void clamp_audio_output(struct audio_output *audio, size_t bytes)
  100. {
  101. size_t float_size = bytes / sizeof(float);
  102. for (size_t mix_idx = 0; mix_idx < MAX_AUDIO_MIXES; mix_idx++) {
  103. struct audio_mix *mix = &audio->mixes[mix_idx];
  104. /* do not process mixing if a specific mix is inactive */
  105. if (!mix->inputs.num)
  106. continue;
  107. for (size_t plane = 0; plane < audio->planes; plane++) {
  108. float *mix_data = mix->buffer[plane];
  109. float *mix_end = &mix_data[float_size];
  110. while (mix_data < mix_end) {
  111. float val = *mix_data;
  112. val = (val > 1.0f) ? 1.0f : val;
  113. val = (val < -1.0f) ? -1.0f : val;
  114. *(mix_data++) = val;
  115. }
  116. }
  117. }
  118. }
  119. static void input_and_output(struct audio_output *audio, uint64_t audio_time,
  120. uint64_t prev_time)
  121. {
  122. size_t bytes = AUDIO_OUTPUT_FRAMES * audio->block_size;
  123. struct audio_output_data data[MAX_AUDIO_MIXES];
  124. uint32_t active_mixes = 0;
  125. uint64_t new_ts = 0;
  126. bool success;
  127. memset(data, 0, sizeof(data));
  128. #ifdef DEBUG_AUDIO
  129. blog(LOG_DEBUG, "audio_time: %llu, prev_time: %llu, bytes: %lu",
  130. audio_time, prev_time, bytes);
  131. #endif
  132. /* get mixers */
  133. pthread_mutex_lock(&audio->input_mutex);
  134. for (size_t i = 0; i < MAX_AUDIO_MIXES; i++) {
  135. if (audio->mixes[i].inputs.num)
  136. active_mixes |= (1 << i);
  137. }
  138. pthread_mutex_unlock(&audio->input_mutex);
  139. /* clear mix buffers */
  140. for (size_t mix_idx = 0; mix_idx < MAX_AUDIO_MIXES; mix_idx++) {
  141. struct audio_mix *mix = &audio->mixes[mix_idx];
  142. memset(mix->buffer, 0, sizeof(mix->buffer));
  143. for (size_t i = 0; i < audio->planes; i++)
  144. data[mix_idx].data[i] = mix->buffer[i];
  145. }
  146. /* get new audio data */
  147. success = audio->input_cb(audio->input_param, prev_time, audio_time,
  148. &new_ts, active_mixes, data);
  149. if (!success)
  150. return;
  151. /* clamps audio data to -1.0..1.0 */
  152. clamp_audio_output(audio, bytes);
  153. /* output */
  154. for (size_t i = 0; i < MAX_AUDIO_MIXES; i++)
  155. do_audio_output(audio, i, new_ts, AUDIO_OUTPUT_FRAMES);
  156. }
  157. static void *audio_thread(void *param)
  158. {
  159. #ifdef _WIN32
  160. DWORD unused = 0;
  161. const HANDLE handle = AvSetMmThreadCharacteristics(L"Audio", &unused);
  162. #endif
  163. struct audio_output *audio = param;
  164. size_t rate = audio->info.samples_per_sec;
  165. uint64_t samples = 0;
  166. uint64_t start_time = os_gettime_ns();
  167. uint64_t prev_time = start_time;
  168. uint64_t audio_time = prev_time;
  169. uint32_t audio_wait_time =
  170. (uint32_t)(audio_frames_to_ns(rate, AUDIO_OUTPUT_FRAMES) /
  171. 1000000);
  172. os_set_thread_name("audio-io: audio thread");
  173. const char *audio_thread_name =
  174. profile_store_name(obs_get_profiler_name_store(),
  175. "audio_thread(%s)", audio->info.name);
  176. while (os_event_try(audio->stop_event) == EAGAIN) {
  177. uint64_t cur_time;
  178. os_sleep_ms(audio_wait_time);
  179. profile_start(audio_thread_name);
  180. cur_time = os_gettime_ns();
  181. while (audio_time <= cur_time) {
  182. samples += AUDIO_OUTPUT_FRAMES;
  183. audio_time =
  184. start_time + audio_frames_to_ns(rate, samples);
  185. input_and_output(audio, audio_time, prev_time);
  186. prev_time = audio_time;
  187. }
  188. profile_end(audio_thread_name);
  189. profile_reenable_thread();
  190. }
  191. #ifdef _WIN32
  192. if (handle)
  193. AvRevertMmThreadCharacteristics(handle);
  194. #endif
  195. return NULL;
  196. }
  197. /* ------------------------------------------------------------------------- */
  198. static size_t audio_get_input_idx(const audio_t *audio, size_t mix_idx,
  199. audio_output_callback_t callback, void *param)
  200. {
  201. const struct audio_mix *mix = &audio->mixes[mix_idx];
  202. for (size_t i = 0; i < mix->inputs.num; i++) {
  203. struct audio_input *input = mix->inputs.array + i;
  204. if (input->callback == callback && input->param == param)
  205. return i;
  206. }
  207. return DARRAY_INVALID;
  208. }
  209. static inline bool audio_input_init(struct audio_input *input,
  210. struct audio_output *audio)
  211. {
  212. if (input->conversion.format != audio->info.format ||
  213. input->conversion.samples_per_sec != audio->info.samples_per_sec ||
  214. input->conversion.speakers != audio->info.speakers) {
  215. struct resample_info from = {
  216. .format = audio->info.format,
  217. .samples_per_sec = audio->info.samples_per_sec,
  218. .speakers = audio->info.speakers};
  219. struct resample_info to = {
  220. .format = input->conversion.format,
  221. .samples_per_sec = input->conversion.samples_per_sec,
  222. .speakers = input->conversion.speakers};
  223. input->resampler = audio_resampler_create(&to, &from);
  224. if (!input->resampler) {
  225. blog(LOG_ERROR, "audio_input_init: Failed to "
  226. "create resampler");
  227. return false;
  228. }
  229. } else {
  230. input->resampler = NULL;
  231. }
  232. return true;
  233. }
  234. bool audio_output_connect(audio_t *audio, size_t mi,
  235. const struct audio_convert_info *conversion,
  236. audio_output_callback_t callback, void *param)
  237. {
  238. bool success = false;
  239. if (!audio || mi >= MAX_AUDIO_MIXES)
  240. return false;
  241. pthread_mutex_lock(&audio->input_mutex);
  242. if (audio_get_input_idx(audio, mi, callback, param) == DARRAY_INVALID) {
  243. struct audio_mix *mix = &audio->mixes[mi];
  244. struct audio_input input;
  245. input.callback = callback;
  246. input.param = param;
  247. if (conversion) {
  248. input.conversion = *conversion;
  249. } else {
  250. input.conversion.format = audio->info.format;
  251. input.conversion.speakers = audio->info.speakers;
  252. input.conversion.samples_per_sec =
  253. audio->info.samples_per_sec;
  254. }
  255. if (input.conversion.format == AUDIO_FORMAT_UNKNOWN)
  256. input.conversion.format = audio->info.format;
  257. if (input.conversion.speakers == SPEAKERS_UNKNOWN)
  258. input.conversion.speakers = audio->info.speakers;
  259. if (input.conversion.samples_per_sec == 0)
  260. input.conversion.samples_per_sec =
  261. audio->info.samples_per_sec;
  262. success = audio_input_init(&input, audio);
  263. if (success)
  264. da_push_back(mix->inputs, &input);
  265. }
  266. pthread_mutex_unlock(&audio->input_mutex);
  267. return success;
  268. }
  269. void audio_output_disconnect(audio_t *audio, size_t mix_idx,
  270. audio_output_callback_t callback, void *param)
  271. {
  272. if (!audio || mix_idx >= MAX_AUDIO_MIXES)
  273. return;
  274. pthread_mutex_lock(&audio->input_mutex);
  275. size_t idx = audio_get_input_idx(audio, mix_idx, callback, param);
  276. if (idx != DARRAY_INVALID) {
  277. struct audio_mix *mix = &audio->mixes[mix_idx];
  278. audio_input_free(mix->inputs.array + idx);
  279. da_erase(mix->inputs, idx);
  280. }
  281. pthread_mutex_unlock(&audio->input_mutex);
  282. }
  283. static inline bool valid_audio_params(const struct audio_output_info *info)
  284. {
  285. return info->format && info->name && info->samples_per_sec > 0 &&
  286. info->speakers > 0;
  287. }
  288. int audio_output_open(audio_t **audio, struct audio_output_info *info)
  289. {
  290. struct audio_output *out;
  291. bool planar = is_audio_planar(info->format);
  292. if (!valid_audio_params(info))
  293. return AUDIO_OUTPUT_INVALIDPARAM;
  294. out = bzalloc(sizeof(struct audio_output));
  295. if (!out)
  296. goto fail0;
  297. memcpy(&out->info, info, sizeof(struct audio_output_info));
  298. out->channels = get_audio_channels(info->speakers);
  299. out->planes = planar ? out->channels : 1;
  300. out->input_cb = info->input_callback;
  301. out->input_param = info->input_param;
  302. out->block_size = (planar ? 1 : out->channels) *
  303. get_audio_bytes_per_channel(info->format);
  304. if (pthread_mutex_init_recursive(&out->input_mutex) != 0)
  305. goto fail0;
  306. if (os_event_init(&out->stop_event, OS_EVENT_TYPE_MANUAL) != 0)
  307. goto fail1;
  308. if (pthread_create(&out->thread, NULL, audio_thread, out) != 0)
  309. goto fail2;
  310. out->initialized = true;
  311. *audio = out;
  312. return AUDIO_OUTPUT_SUCCESS;
  313. fail2:
  314. os_event_destroy(out->stop_event);
  315. fail1:
  316. pthread_mutex_destroy(&out->input_mutex);
  317. fail0:
  318. audio_output_close(out);
  319. return AUDIO_OUTPUT_FAIL;
  320. }
  321. void audio_output_close(audio_t *audio)
  322. {
  323. void *thread_ret;
  324. if (!audio)
  325. return;
  326. if (audio->initialized) {
  327. os_event_signal(audio->stop_event);
  328. pthread_join(audio->thread, &thread_ret);
  329. os_event_destroy(audio->stop_event);
  330. pthread_mutex_destroy(&audio->input_mutex);
  331. }
  332. for (size_t mix_idx = 0; mix_idx < MAX_AUDIO_MIXES; mix_idx++) {
  333. struct audio_mix *mix = &audio->mixes[mix_idx];
  334. for (size_t i = 0; i < mix->inputs.num; i++)
  335. audio_input_free(mix->inputs.array + i);
  336. da_free(mix->inputs);
  337. }
  338. bfree(audio);
  339. }
  340. const struct audio_output_info *audio_output_get_info(const audio_t *audio)
  341. {
  342. return audio ? &audio->info : NULL;
  343. }
  344. bool audio_output_active(const audio_t *audio)
  345. {
  346. if (!audio)
  347. return false;
  348. for (size_t mix_idx = 0; mix_idx < MAX_AUDIO_MIXES; mix_idx++) {
  349. const struct audio_mix *mix = &audio->mixes[mix_idx];
  350. if (mix->inputs.num != 0)
  351. return true;
  352. }
  353. return false;
  354. }
  355. size_t audio_output_get_block_size(const audio_t *audio)
  356. {
  357. return audio ? audio->block_size : 0;
  358. }
  359. size_t audio_output_get_planes(const audio_t *audio)
  360. {
  361. return audio ? audio->planes : 0;
  362. }
  363. size_t audio_output_get_channels(const audio_t *audio)
  364. {
  365. return audio ? audio->channels : 0;
  366. }
  367. uint32_t audio_output_get_sample_rate(const audio_t *audio)
  368. {
  369. return audio ? audio->info.samples_per_sec : 0;
  370. }