coreaudio-output.c 8.6 KB

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  1. #include <AudioUnit/AudioUnit.h>
  2. #include <AudioToolbox/AudioQueue.h>
  3. #include <CoreFoundation/CFString.h>
  4. #include <CoreAudio/CoreAudio.h>
  5. #include "../../media-io/audio-resampler.h"
  6. #include "../../util/circlebuf.h"
  7. #include "../../util/threading.h"
  8. #include "../../util/platform.h"
  9. #include "../../obs-internal.h"
  10. #include "../../util/darray.h"
  11. #include "mac-helpers.h"
  12. struct audio_monitor {
  13. obs_source_t *source;
  14. AudioQueueRef queue;
  15. AudioQueueBufferRef buffers[3];
  16. pthread_mutex_t mutex;
  17. struct circlebuf empty_buffers;
  18. struct circlebuf new_data;
  19. audio_resampler_t *resampler;
  20. size_t buffer_size;
  21. size_t wait_size;
  22. uint32_t channels;
  23. volatile bool active;
  24. bool paused;
  25. bool ignore;
  26. };
  27. static inline bool fill_buffer(struct audio_monitor *monitor)
  28. {
  29. AudioQueueBufferRef buf;
  30. OSStatus stat;
  31. if (monitor->new_data.size < monitor->buffer_size) {
  32. return false;
  33. }
  34. circlebuf_pop_front(&monitor->empty_buffers, &buf, sizeof(buf));
  35. circlebuf_pop_front(&monitor->new_data, buf->mAudioData,
  36. monitor->buffer_size);
  37. buf->mAudioDataByteSize = monitor->buffer_size;
  38. stat = AudioQueueEnqueueBuffer(monitor->queue, buf, 0, NULL);
  39. if (!success(stat, "AudioQueueEnqueueBuffer")) {
  40. blog(LOG_WARNING, "%s: %s", __FUNCTION__,
  41. "Failed to enqueue buffer");
  42. AudioQueueStop(monitor->queue, false);
  43. }
  44. return true;
  45. }
  46. static void on_audio_pause(void *data, calldata_t *calldata)
  47. {
  48. UNUSED_PARAMETER(calldata);
  49. struct audio_monitor *monitor = data;
  50. pthread_mutex_lock(&monitor->mutex);
  51. circlebuf_free(&monitor->new_data);
  52. pthread_mutex_unlock(&monitor->mutex);
  53. }
  54. static void on_audio_playback(void *param, obs_source_t *source,
  55. const struct audio_data *audio_data, bool muted)
  56. {
  57. struct audio_monitor *monitor = param;
  58. float vol = source->user_volume;
  59. uint32_t bytes;
  60. if (!os_atomic_load_bool(&monitor->active)) {
  61. return;
  62. }
  63. if (os_atomic_load_long(&source->activate_refs) == 0) {
  64. return;
  65. }
  66. uint8_t *resample_data[MAX_AV_PLANES];
  67. uint32_t resample_frames;
  68. uint64_t ts_offset;
  69. bool success;
  70. success = audio_resampler_resample(
  71. monitor->resampler, resample_data, &resample_frames, &ts_offset,
  72. (const uint8_t *const *)audio_data->data,
  73. (uint32_t)audio_data->frames);
  74. if (!success) {
  75. return;
  76. }
  77. bytes = sizeof(float) * monitor->channels * resample_frames;
  78. if (muted) {
  79. memset(resample_data[0], 0, bytes);
  80. } else {
  81. /* apply volume */
  82. if (!close_float(vol, 1.0f, EPSILON)) {
  83. register float *cur = (float *)resample_data[0];
  84. register float *end =
  85. cur + resample_frames * monitor->channels;
  86. while (cur < end)
  87. *(cur++) *= vol;
  88. }
  89. }
  90. pthread_mutex_lock(&monitor->mutex);
  91. circlebuf_push_back(&monitor->new_data, resample_data[0], bytes);
  92. if (monitor->new_data.size >= monitor->wait_size) {
  93. monitor->wait_size = 0;
  94. while (monitor->empty_buffers.size > 0) {
  95. if (!fill_buffer(monitor)) {
  96. break;
  97. }
  98. }
  99. if (monitor->paused) {
  100. AudioQueueStart(monitor->queue, NULL);
  101. monitor->paused = false;
  102. }
  103. }
  104. pthread_mutex_unlock(&monitor->mutex);
  105. }
  106. static void buffer_audio(void *data, AudioQueueRef aq, AudioQueueBufferRef buf)
  107. {
  108. struct audio_monitor *monitor = data;
  109. pthread_mutex_lock(&monitor->mutex);
  110. circlebuf_push_back(&monitor->empty_buffers, &buf, sizeof(buf));
  111. while (monitor->empty_buffers.size > 0) {
  112. if (!fill_buffer(monitor)) {
  113. break;
  114. }
  115. }
  116. if (monitor->empty_buffers.size == sizeof(buf) * 3) {
  117. monitor->paused = true;
  118. monitor->wait_size = monitor->buffer_size * 3;
  119. AudioQueuePause(monitor->queue);
  120. }
  121. pthread_mutex_unlock(&monitor->mutex);
  122. UNUSED_PARAMETER(aq);
  123. }
  124. extern bool devices_match(const char *id1, const char *id2);
  125. static bool audio_monitor_init(struct audio_monitor *monitor,
  126. obs_source_t *source)
  127. {
  128. const struct audio_output_info *info =
  129. audio_output_get_info(obs->audio.audio);
  130. uint32_t channels = get_audio_channels(info->speakers);
  131. OSStatus stat;
  132. AudioStreamBasicDescription desc = {
  133. .mSampleRate = (Float64)info->samples_per_sec,
  134. .mFormatID = kAudioFormatLinearPCM,
  135. .mFormatFlags = kAudioFormatFlagIsFloat |
  136. kAudioFormatFlagIsPacked,
  137. .mBytesPerPacket = sizeof(float) * channels,
  138. .mFramesPerPacket = 1,
  139. .mBytesPerFrame = sizeof(float) * channels,
  140. .mChannelsPerFrame = channels,
  141. .mBitsPerChannel = sizeof(float) * 8};
  142. monitor->source = source;
  143. monitor->channels = channels;
  144. monitor->buffer_size =
  145. channels * sizeof(float) * info->samples_per_sec / 100 * 3;
  146. monitor->wait_size = monitor->buffer_size * 3;
  147. pthread_mutex_init_value(&monitor->mutex);
  148. const char *uid = obs->audio.monitoring_device_id;
  149. if (!uid || !*uid) {
  150. return false;
  151. }
  152. if (source->info.output_flags & OBS_SOURCE_DO_NOT_SELF_MONITOR) {
  153. obs_data_t *s = obs_source_get_settings(source);
  154. const char *s_dev_id = obs_data_get_string(s, "device_id");
  155. bool match = devices_match(s_dev_id, uid);
  156. obs_data_release(s);
  157. if (match) {
  158. monitor->ignore = true;
  159. return true;
  160. }
  161. }
  162. stat = AudioQueueNewOutput(&desc, buffer_audio, monitor, NULL, NULL, 0,
  163. &monitor->queue);
  164. if (!success(stat, "AudioStreamBasicDescription")) {
  165. return false;
  166. }
  167. if (strcmp(uid, "default") != 0) {
  168. CFStringRef cf_uid = CFStringCreateWithBytes(
  169. NULL, (const UInt8 *)uid, strlen(uid),
  170. kCFStringEncodingUTF8, false);
  171. stat = AudioQueueSetProperty(monitor->queue,
  172. kAudioQueueProperty_CurrentDevice,
  173. &cf_uid, sizeof(cf_uid));
  174. CFRelease(cf_uid);
  175. if (!success(stat, "set current device")) {
  176. return false;
  177. }
  178. }
  179. stat = AudioQueueSetParameter(monitor->queue, kAudioQueueParam_Volume,
  180. 1.0);
  181. if (!success(stat, "set volume")) {
  182. return false;
  183. }
  184. for (size_t i = 0; i < 3; i++) {
  185. stat = AudioQueueAllocateBuffer(monitor->queue,
  186. monitor->buffer_size,
  187. &monitor->buffers[i]);
  188. if (!success(stat, "allocation of buffer")) {
  189. return false;
  190. }
  191. circlebuf_push_back(&monitor->empty_buffers,
  192. &monitor->buffers[i],
  193. sizeof(monitor->buffers[i]));
  194. }
  195. if (pthread_mutex_init(&monitor->mutex, NULL) != 0) {
  196. blog(LOG_WARNING, "%s: %s", __FUNCTION__,
  197. "Failed to init mutex");
  198. return false;
  199. }
  200. struct resample_info from = {.samples_per_sec = info->samples_per_sec,
  201. .speakers = info->speakers,
  202. .format = AUDIO_FORMAT_FLOAT_PLANAR};
  203. struct resample_info to = {.samples_per_sec = info->samples_per_sec,
  204. .speakers = info->speakers,
  205. .format = AUDIO_FORMAT_FLOAT};
  206. monitor->resampler = audio_resampler_create(&to, &from);
  207. if (!monitor->resampler) {
  208. blog(LOG_WARNING, "%s: %s", __FUNCTION__,
  209. "Failed to create resampler");
  210. return false;
  211. }
  212. stat = AudioQueueStart(monitor->queue, NULL);
  213. if (!success(stat, "start")) {
  214. return false;
  215. }
  216. monitor->active = true;
  217. return true;
  218. }
  219. static void audio_monitor_free(struct audio_monitor *monitor)
  220. {
  221. if (monitor->source) {
  222. obs_source_remove_audio_capture_callback(
  223. monitor->source, on_audio_playback, monitor);
  224. obs_source_remove_audio_pause_callback(monitor->source,
  225. on_audio_pause, monitor);
  226. }
  227. if (monitor->active) {
  228. AudioQueueStop(monitor->queue, true);
  229. }
  230. for (size_t i = 0; i < 3; i++) {
  231. if (monitor->buffers[i]) {
  232. AudioQueueFreeBuffer(monitor->queue,
  233. monitor->buffers[i]);
  234. }
  235. }
  236. if (monitor->queue) {
  237. AudioQueueDispose(monitor->queue, true);
  238. }
  239. audio_resampler_destroy(monitor->resampler);
  240. circlebuf_free(&monitor->empty_buffers);
  241. circlebuf_free(&monitor->new_data);
  242. pthread_mutex_destroy(&monitor->mutex);
  243. }
  244. static void audio_monitor_init_final(struct audio_monitor *monitor)
  245. {
  246. if (monitor->ignore)
  247. return;
  248. obs_source_add_audio_capture_callback(monitor->source,
  249. on_audio_playback, monitor);
  250. obs_source_add_audio_pause_callback(monitor->source, on_audio_pause,
  251. monitor);
  252. }
  253. struct audio_monitor *audio_monitor_create(obs_source_t *source)
  254. {
  255. struct audio_monitor *monitor = bzalloc(sizeof(*monitor));
  256. if (!audio_monitor_init(monitor, source)) {
  257. goto fail;
  258. }
  259. pthread_mutex_lock(&obs->audio.monitoring_mutex);
  260. da_push_back(obs->audio.monitors, &monitor);
  261. pthread_mutex_unlock(&obs->audio.monitoring_mutex);
  262. audio_monitor_init_final(monitor);
  263. return monitor;
  264. fail:
  265. audio_monitor_free(monitor);
  266. bfree(monitor);
  267. return NULL;
  268. }
  269. void audio_monitor_reset(struct audio_monitor *monitor)
  270. {
  271. bool success;
  272. obs_source_t *source = monitor->source;
  273. audio_monitor_free(monitor);
  274. memset(monitor, 0, sizeof(*monitor));
  275. success = audio_monitor_init(monitor, source);
  276. if (success)
  277. audio_monitor_init_final(monitor);
  278. }
  279. void audio_monitor_destroy(struct audio_monitor *monitor)
  280. {
  281. if (monitor) {
  282. audio_monitor_free(monitor);
  283. pthread_mutex_lock(&obs->audio.monitoring_mutex);
  284. da_erase_item(obs->audio.monitors, &monitor);
  285. pthread_mutex_unlock(&obs->audio.monitoring_mutex);
  286. bfree(monitor);
  287. }
  288. }