mac-audio.c 20 KB

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  1. #include <AudioUnit/AudioUnit.h>
  2. #include <CoreFoundation/CFString.h>
  3. #include <CoreAudio/CoreAudio.h>
  4. #include <unistd.h>
  5. #include <errno.h>
  6. #include <obs-module.h>
  7. #include <util/threading.h>
  8. #include <util/c99defs.h>
  9. #include "mac-helpers.h"
  10. #include "audio-device-enum.h"
  11. #define PROPERTY_DEFAULT_DEVICE kAudioHardwarePropertyDefaultInputDevice
  12. #define PROPERTY_FORMATS kAudioStreamPropertyAvailablePhysicalFormats
  13. #define SCOPE_OUTPUT kAudioUnitScope_Output
  14. #define SCOPE_INPUT kAudioUnitScope_Input
  15. #define SCOPE_GLOBAL kAudioUnitScope_Global
  16. #define BUS_OUTPUT 0
  17. #define BUS_INPUT 1
  18. #define MAX_DEVICES 20
  19. #define set_property AudioUnitSetProperty
  20. #define get_property AudioUnitGetProperty
  21. #define TEXT_AUDIO_INPUT obs_module_text("CoreAudio.InputCapture");
  22. #define TEXT_AUDIO_OUTPUT obs_module_text("CoreAudio.OutputCapture");
  23. #define TEXT_DEVICE obs_module_text("CoreAudio.Device")
  24. #define TEXT_DEVICE_DEFAULT obs_module_text("CoreAudio.Device.Default")
  25. struct coreaudio_data {
  26. char *device_name;
  27. char *device_uid;
  28. AudioUnit unit;
  29. AudioDeviceID device_id;
  30. AudioBufferList *buf_list;
  31. bool au_initialized;
  32. bool active;
  33. bool default_device;
  34. bool input;
  35. bool no_devices;
  36. uint32_t sample_rate;
  37. enum audio_format format;
  38. enum speaker_layout speakers;
  39. pthread_t reconnect_thread;
  40. os_event_t *exit_event;
  41. volatile bool reconnecting;
  42. unsigned long retry_time;
  43. obs_source_t *source;
  44. };
  45. static bool get_default_output_device(struct coreaudio_data *ca)
  46. {
  47. struct device_list list;
  48. memset(&list, 0, sizeof(struct device_list));
  49. coreaudio_enum_devices(&list, false);
  50. if (!list.items.num)
  51. return false;
  52. bfree(ca->device_uid);
  53. ca->device_uid = bstrdup(list.items.array[0].value.array);
  54. device_list_free(&list);
  55. return true;
  56. }
  57. static bool find_device_id_by_uid(struct coreaudio_data *ca)
  58. {
  59. UInt32 size = sizeof(AudioDeviceID);
  60. CFStringRef cf_uid = NULL;
  61. CFStringRef qual = NULL;
  62. UInt32 qual_size = 0;
  63. OSStatus stat;
  64. bool success;
  65. AudioObjectPropertyAddress addr = {
  66. .mScope = kAudioObjectPropertyScopeGlobal,
  67. .mElement = kAudioObjectPropertyElementMaster
  68. };
  69. if (!ca->device_uid)
  70. ca->device_uid = bstrdup("default");
  71. /* have to do this because mac output devices don't actually exist */
  72. if (astrcmpi(ca->device_uid, "default") == 0) {
  73. if (ca->input) {
  74. ca->default_device = true;
  75. } else {
  76. if (!get_default_output_device(ca)) {
  77. ca->no_devices = true;
  78. return false;
  79. }
  80. }
  81. }
  82. cf_uid = CFStringCreateWithCString(NULL, ca->device_uid,
  83. kCFStringEncodingUTF8);
  84. if (ca->default_device) {
  85. addr.mSelector = PROPERTY_DEFAULT_DEVICE;
  86. stat = AudioObjectGetPropertyData(kAudioObjectSystemObject,
  87. &addr, qual_size, &qual, &size, &ca->device_id);
  88. success = (stat == noErr);
  89. } else {
  90. success = coreaudio_get_device_id(cf_uid, &ca->device_id);
  91. }
  92. if (cf_uid)
  93. CFRelease(cf_uid);
  94. return success;
  95. }
  96. static inline void ca_warn(struct coreaudio_data *ca, const char *func,
  97. const char *format, ...)
  98. {
  99. va_list args;
  100. struct dstr str = {0};
  101. va_start(args, format);
  102. dstr_printf(&str, "[%s]:[device '%s'] ", func, ca->device_name);
  103. dstr_vcatf(&str, format, args);
  104. blog(LOG_WARNING, "%s", str.array);
  105. dstr_free(&str);
  106. va_end(args);
  107. }
  108. static inline bool ca_success(OSStatus stat, struct coreaudio_data *ca,
  109. const char *func, const char *action)
  110. {
  111. if (stat != noErr) {
  112. blog(LOG_WARNING, "[%s]:[device '%s'] %s failed: %d",
  113. func, ca->device_name, action, (int)stat);
  114. return false;
  115. }
  116. return true;
  117. }
  118. enum coreaudio_io_type {
  119. IO_TYPE_INPUT,
  120. IO_TYPE_OUTPUT,
  121. };
  122. static inline bool enable_io(struct coreaudio_data *ca,
  123. enum coreaudio_io_type type, bool enable)
  124. {
  125. UInt32 enable_int = enable;
  126. return set_property(ca->unit, kAudioOutputUnitProperty_EnableIO,
  127. (type == IO_TYPE_INPUT) ? SCOPE_INPUT : SCOPE_OUTPUT,
  128. (type == IO_TYPE_INPUT) ? BUS_INPUT : BUS_OUTPUT,
  129. &enable_int, sizeof(enable_int));
  130. }
  131. static inline enum audio_format convert_ca_format(UInt32 format_flags,
  132. UInt32 bits)
  133. {
  134. bool planar = (format_flags & kAudioFormatFlagIsNonInterleaved) != 0;
  135. if (format_flags & kAudioFormatFlagIsFloat)
  136. return planar ? AUDIO_FORMAT_FLOAT_PLANAR : AUDIO_FORMAT_FLOAT;
  137. if (!(format_flags & kAudioFormatFlagIsSignedInteger) && bits == 8)
  138. return planar ? AUDIO_FORMAT_U8BIT_PLANAR : AUDIO_FORMAT_U8BIT;
  139. /* not float? not signed int? no clue, fail */
  140. if ((format_flags & kAudioFormatFlagIsSignedInteger) == 0)
  141. return AUDIO_FORMAT_UNKNOWN;
  142. if (bits == 16)
  143. return planar ? AUDIO_FORMAT_16BIT_PLANAR : AUDIO_FORMAT_16BIT;
  144. else if (bits == 32)
  145. return planar ? AUDIO_FORMAT_32BIT_PLANAR : AUDIO_FORMAT_32BIT;
  146. return AUDIO_FORMAT_UNKNOWN;
  147. }
  148. static inline enum speaker_layout convert_ca_speaker_layout(UInt32 channels)
  149. {
  150. switch (channels) {
  151. case 1: return SPEAKERS_MONO;
  152. case 2: return SPEAKERS_STEREO;
  153. case 3: return SPEAKERS_2POINT1;
  154. case 4: return SPEAKERS_QUAD;
  155. case 5: return SPEAKERS_4POINT1;
  156. case 6: return SPEAKERS_5POINT1;
  157. case 8: return SPEAKERS_7POINT1;
  158. }
  159. return SPEAKERS_UNKNOWN;
  160. }
  161. static bool coreaudio_init_format(struct coreaudio_data *ca)
  162. {
  163. AudioStreamBasicDescription desc;
  164. OSStatus stat;
  165. UInt32 size = sizeof(desc);
  166. stat = get_property(ca->unit, kAudioUnitProperty_StreamFormat,
  167. SCOPE_INPUT, BUS_INPUT, &desc, &size);
  168. if (!ca_success(stat, ca, "coreaudio_init_format", "get input format"))
  169. return false;
  170. /* Certain types of devices have no limit on channel count, and
  171. * there's no way to know the actual number of channels it's using,
  172. * so if we encounter this situation just force to stereo */
  173. if (desc.mChannelsPerFrame > 8) {
  174. desc.mChannelsPerFrame = 2;
  175. desc.mBytesPerFrame = 2 * desc.mBitsPerChannel / 8;
  176. desc.mBytesPerPacket =
  177. desc.mFramesPerPacket * desc.mBytesPerFrame;
  178. }
  179. stat = set_property(ca->unit, kAudioUnitProperty_StreamFormat,
  180. SCOPE_OUTPUT, BUS_INPUT, &desc, size);
  181. if (!ca_success(stat, ca, "coreaudio_init_format", "set output format"))
  182. return false;
  183. if (desc.mFormatID != kAudioFormatLinearPCM) {
  184. ca_warn(ca, "coreaudio_init_format", "format is not PCM");
  185. return false;
  186. }
  187. ca->format = convert_ca_format(desc.mFormatFlags, desc.mBitsPerChannel);
  188. if (ca->format == AUDIO_FORMAT_UNKNOWN) {
  189. ca_warn(ca, "coreaudio_init_format", "unknown format flags: "
  190. "%u, bits: %u",
  191. (unsigned int)desc.mFormatFlags,
  192. (unsigned int)desc.mBitsPerChannel);
  193. return false;
  194. }
  195. ca->sample_rate = (uint32_t)desc.mSampleRate;
  196. ca->speakers = convert_ca_speaker_layout(desc.mChannelsPerFrame);
  197. if (ca->speakers == SPEAKERS_UNKNOWN) {
  198. ca_warn(ca, "coreaudio_init_format", "unknown speaker layout: "
  199. "%u channels",
  200. (unsigned int)desc.mChannelsPerFrame);
  201. return false;
  202. }
  203. return true;
  204. }
  205. static bool coreaudio_init_buffer(struct coreaudio_data *ca)
  206. {
  207. UInt32 buf_size = 0;
  208. UInt32 size = 0;
  209. UInt32 frames = 0;
  210. OSStatus stat;
  211. AudioObjectPropertyAddress addr = {
  212. kAudioDevicePropertyStreamConfiguration,
  213. kAudioDevicePropertyScopeInput,
  214. kAudioObjectPropertyElementMaster
  215. };
  216. stat = AudioObjectGetPropertyDataSize(ca->device_id, &addr, 0, NULL,
  217. &buf_size);
  218. if (!ca_success(stat, ca, "coreaudio_init_buffer", "get list size"))
  219. return false;
  220. size = sizeof(frames);
  221. stat = get_property(ca->unit, kAudioDevicePropertyBufferFrameSize,
  222. SCOPE_GLOBAL, 0, &frames, &size);
  223. if (!ca_success(stat, ca, "coreaudio_init_buffer", "get frame size"))
  224. return false;
  225. /* ---------------------- */
  226. ca->buf_list = bmalloc(buf_size);
  227. stat = AudioObjectGetPropertyData(ca->device_id, &addr, 0, NULL,
  228. &buf_size, ca->buf_list);
  229. if (!ca_success(stat, ca, "coreaudio_init_buffer", "allocate")) {
  230. bfree(ca->buf_list);
  231. ca->buf_list = NULL;
  232. return false;
  233. }
  234. for (UInt32 i = 0; i < ca->buf_list->mNumberBuffers; i++) {
  235. size = ca->buf_list->mBuffers[i].mDataByteSize;
  236. ca->buf_list->mBuffers[i].mData = bmalloc(size);
  237. }
  238. return true;
  239. }
  240. static void buf_list_free(AudioBufferList *buf_list)
  241. {
  242. if (buf_list) {
  243. for (UInt32 i = 0; i < buf_list->mNumberBuffers; i++)
  244. bfree(buf_list->mBuffers[i].mData);
  245. bfree(buf_list);
  246. }
  247. }
  248. static OSStatus input_callback(
  249. void *data,
  250. AudioUnitRenderActionFlags *action_flags,
  251. const AudioTimeStamp *ts_data,
  252. UInt32 bus_num,
  253. UInt32 frames,
  254. AudioBufferList *ignored_buffers)
  255. {
  256. struct coreaudio_data *ca = data;
  257. OSStatus stat;
  258. struct obs_source_audio audio;
  259. stat = AudioUnitRender(ca->unit, action_flags, ts_data, bus_num, frames,
  260. ca->buf_list);
  261. if (!ca_success(stat, ca, "input_callback", "audio retrieval"))
  262. return noErr;
  263. for (UInt32 i = 0; i < ca->buf_list->mNumberBuffers; i++)
  264. audio.data[i] = ca->buf_list->mBuffers[i].mData;
  265. audio.frames = frames;
  266. audio.speakers = ca->speakers;
  267. audio.format = ca->format;
  268. audio.samples_per_sec = ca->sample_rate;
  269. audio.timestamp = ts_data->mHostTime;
  270. obs_source_output_audio(ca->source, &audio);
  271. UNUSED_PARAMETER(ignored_buffers);
  272. return noErr;
  273. }
  274. static void coreaudio_stop(struct coreaudio_data *ca);
  275. static bool coreaudio_init(struct coreaudio_data *ca);
  276. static void coreaudio_uninit(struct coreaudio_data *ca);
  277. static void *reconnect_thread(void *param)
  278. {
  279. struct coreaudio_data *ca = param;
  280. ca->reconnecting = true;
  281. while (os_event_timedwait(ca->exit_event, ca->retry_time) == ETIMEDOUT) {
  282. if (coreaudio_init(ca))
  283. break;
  284. }
  285. blog(LOG_DEBUG, "coreaudio: exit the reconnect thread");
  286. ca->reconnecting = false;
  287. return NULL;
  288. }
  289. static void coreaudio_begin_reconnect(struct coreaudio_data *ca)
  290. {
  291. int ret;
  292. if (ca->reconnecting)
  293. return;
  294. ret = pthread_create(&ca->reconnect_thread, NULL, reconnect_thread, ca);
  295. if (ret != 0)
  296. blog(LOG_WARNING, "[coreaudio_begin_reconnect] failed to "
  297. "create thread, error code: %d", ret);
  298. }
  299. static OSStatus notification_callback(
  300. AudioObjectID id,
  301. UInt32 num_addresses,
  302. const AudioObjectPropertyAddress addresses[],
  303. void *data)
  304. {
  305. struct coreaudio_data *ca = data;
  306. coreaudio_stop(ca);
  307. coreaudio_uninit(ca);
  308. if (addresses[0].mSelector == PROPERTY_DEFAULT_DEVICE)
  309. ca->retry_time = 300;
  310. else
  311. ca->retry_time = 2000;
  312. blog(LOG_INFO, "coreaudio: device '%s' disconnected or changed. "
  313. "attempting to reconnect", ca->device_name);
  314. coreaudio_begin_reconnect(ca);
  315. UNUSED_PARAMETER(id);
  316. UNUSED_PARAMETER(num_addresses);
  317. return noErr;
  318. }
  319. static OSStatus add_listener(struct coreaudio_data *ca, UInt32 property)
  320. {
  321. AudioObjectPropertyAddress addr = {
  322. property,
  323. kAudioObjectPropertyScopeGlobal,
  324. kAudioObjectPropertyElementMaster
  325. };
  326. return AudioObjectAddPropertyListener(ca->device_id, &addr,
  327. notification_callback, ca);
  328. }
  329. static bool coreaudio_init_hooks(struct coreaudio_data *ca)
  330. {
  331. OSStatus stat;
  332. AURenderCallbackStruct callback_info = {
  333. .inputProc = input_callback,
  334. .inputProcRefCon = ca
  335. };
  336. stat = add_listener(ca, kAudioDevicePropertyDeviceIsAlive);
  337. if (!ca_success(stat, ca, "coreaudio_init_hooks",
  338. "set disconnect callback"))
  339. return false;
  340. stat = add_listener(ca, PROPERTY_FORMATS);
  341. if (!ca_success(stat, ca, "coreaudio_init_hooks",
  342. "set format change callback"))
  343. return false;
  344. if (ca->default_device) {
  345. AudioObjectPropertyAddress addr = {
  346. PROPERTY_DEFAULT_DEVICE,
  347. kAudioObjectPropertyScopeGlobal,
  348. kAudioObjectPropertyElementMaster
  349. };
  350. stat = AudioObjectAddPropertyListener(kAudioObjectSystemObject,
  351. &addr, notification_callback, ca);
  352. if (!ca_success(stat, ca, "coreaudio_init_hooks",
  353. "set device change callback"))
  354. return false;
  355. }
  356. stat = set_property(ca->unit, kAudioOutputUnitProperty_SetInputCallback,
  357. SCOPE_GLOBAL, 0, &callback_info, sizeof(callback_info));
  358. if (!ca_success(stat, ca, "coreaudio_init_hooks", "set input callback"))
  359. return false;
  360. return true;
  361. }
  362. static void coreaudio_remove_hooks(struct coreaudio_data *ca)
  363. {
  364. AURenderCallbackStruct callback_info = {
  365. .inputProc = NULL,
  366. .inputProcRefCon = NULL
  367. };
  368. AudioObjectPropertyAddress addr = {
  369. kAudioDevicePropertyDeviceIsAlive,
  370. kAudioObjectPropertyScopeGlobal,
  371. kAudioObjectPropertyElementMaster
  372. };
  373. AudioObjectRemovePropertyListener(ca->device_id, &addr,
  374. notification_callback, ca);
  375. addr.mSelector = PROPERTY_FORMATS;
  376. AudioObjectRemovePropertyListener(ca->device_id, &addr,
  377. notification_callback, ca);
  378. if (ca->default_device) {
  379. addr.mSelector = PROPERTY_DEFAULT_DEVICE;
  380. AudioObjectRemovePropertyListener(kAudioObjectSystemObject,
  381. &addr, notification_callback, ca);
  382. }
  383. set_property(ca->unit, kAudioOutputUnitProperty_SetInputCallback,
  384. SCOPE_GLOBAL, 0, &callback_info, sizeof(callback_info));
  385. }
  386. static bool coreaudio_get_device_name(struct coreaudio_data *ca)
  387. {
  388. CFStringRef cf_name = NULL;
  389. UInt32 size = sizeof(CFStringRef);
  390. char name[1024];
  391. const AudioObjectPropertyAddress addr = {
  392. kAudioDevicePropertyDeviceNameCFString,
  393. kAudioObjectPropertyScopeInput,
  394. kAudioObjectPropertyElementMaster
  395. };
  396. OSStatus stat = AudioObjectGetPropertyData(ca->device_id, &addr,
  397. 0, NULL, &size, &cf_name);
  398. if (stat != noErr) {
  399. blog(LOG_WARNING, "[coreaudio_get_device_name] failed to "
  400. "get name: %d", (int)stat);
  401. return false;
  402. }
  403. if (!cf_to_cstr(cf_name, name, 1024)) {
  404. blog(LOG_WARNING, "[coreaudio_get_device_name] failed to "
  405. "convert name to cstr for some reason");
  406. return false;
  407. }
  408. bfree(ca->device_name);
  409. ca->device_name = bstrdup(name);
  410. if (cf_name)
  411. CFRelease(cf_name);
  412. return true;
  413. }
  414. static bool coreaudio_start(struct coreaudio_data *ca)
  415. {
  416. OSStatus stat;
  417. if (ca->active)
  418. return true;
  419. stat = AudioOutputUnitStart(ca->unit);
  420. return ca_success(stat, ca, "coreaudio_start", "start audio");
  421. }
  422. static void coreaudio_stop(struct coreaudio_data *ca)
  423. {
  424. OSStatus stat;
  425. if (!ca->active)
  426. return;
  427. ca->active = false;
  428. stat = AudioOutputUnitStop(ca->unit);
  429. ca_success(stat, ca, "coreaudio_stop", "stop audio");
  430. }
  431. static bool coreaudio_init_unit(struct coreaudio_data *ca)
  432. {
  433. AudioComponentDescription desc = {
  434. .componentType = kAudioUnitType_Output,
  435. .componentSubType = kAudioUnitSubType_HALOutput
  436. };
  437. AudioComponent component = AudioComponentFindNext(NULL, &desc);
  438. if (!component) {
  439. ca_warn(ca, "coreaudio_init_unit", "find component failed");
  440. return false;
  441. }
  442. OSStatus stat = AudioComponentInstanceNew(component, &ca->unit);
  443. if (!ca_success(stat, ca, "coreaudio_init_unit", "instance unit"))
  444. return false;
  445. ca->au_initialized = true;
  446. return true;
  447. }
  448. static bool coreaudio_init(struct coreaudio_data *ca)
  449. {
  450. OSStatus stat;
  451. if (ca->au_initialized)
  452. return true;
  453. if (!find_device_id_by_uid(ca))
  454. return false;
  455. if (!coreaudio_get_device_name(ca))
  456. return false;
  457. if (!coreaudio_init_unit(ca))
  458. return false;
  459. stat = enable_io(ca, IO_TYPE_INPUT, true);
  460. if (!ca_success(stat, ca, "coreaudio_init", "enable input io"))
  461. goto fail;
  462. stat = enable_io(ca, IO_TYPE_OUTPUT, false);
  463. if (!ca_success(stat, ca, "coreaudio_init", "disable output io"))
  464. goto fail;
  465. stat = set_property(ca->unit, kAudioOutputUnitProperty_CurrentDevice,
  466. SCOPE_GLOBAL, 0, &ca->device_id, sizeof(ca->device_id));
  467. if (!ca_success(stat, ca, "coreaudio_init", "set current device"))
  468. goto fail;
  469. if (!coreaudio_init_format(ca))
  470. goto fail;
  471. if (!coreaudio_init_buffer(ca))
  472. goto fail;
  473. if (!coreaudio_init_hooks(ca))
  474. goto fail;
  475. stat = AudioUnitInitialize(ca->unit);
  476. if (!ca_success(stat, ca, "coreaudio_initialize", "initialize"))
  477. goto fail;
  478. if (!coreaudio_start(ca))
  479. goto fail;
  480. blog(LOG_INFO, "coreaudio: device '%s' initialized", ca->device_name);
  481. return ca->au_initialized;
  482. fail:
  483. coreaudio_uninit(ca);
  484. return false;
  485. }
  486. static void coreaudio_try_init(struct coreaudio_data *ca)
  487. {
  488. if (!coreaudio_init(ca)) {
  489. blog(LOG_INFO, "coreaudio: failed to find device "
  490. "uid: %s, waiting for connection",
  491. ca->device_uid);
  492. ca->retry_time = 2000;
  493. if (ca->no_devices)
  494. blog(LOG_INFO, "coreaudio: no device found");
  495. else
  496. coreaudio_begin_reconnect(ca);
  497. }
  498. }
  499. static void coreaudio_uninit(struct coreaudio_data *ca)
  500. {
  501. if (!ca->au_initialized)
  502. return;
  503. if (ca->unit) {
  504. coreaudio_stop(ca);
  505. OSStatus stat = AudioUnitUninitialize(ca->unit);
  506. ca_success(stat, ca, "coreaudio_uninit", "uninitialize");
  507. coreaudio_remove_hooks(ca);
  508. stat = AudioComponentInstanceDispose(ca->unit);
  509. ca_success(stat, ca, "coreaudio_uninit", "dispose");
  510. ca->unit = NULL;
  511. }
  512. ca->au_initialized = false;
  513. buf_list_free(ca->buf_list);
  514. ca->buf_list = NULL;
  515. }
  516. /* ------------------------------------------------------------------------- */
  517. static const char *coreaudio_input_getname(void *unused)
  518. {
  519. UNUSED_PARAMETER(unused);
  520. return TEXT_AUDIO_INPUT;
  521. }
  522. static const char *coreaudio_output_getname(void *unused)
  523. {
  524. UNUSED_PARAMETER(unused);
  525. return TEXT_AUDIO_OUTPUT;
  526. }
  527. static void coreaudio_shutdown(struct coreaudio_data *ca)
  528. {
  529. if (ca->reconnecting) {
  530. os_event_signal(ca->exit_event);
  531. pthread_join(ca->reconnect_thread, NULL);
  532. os_event_reset(ca->exit_event);
  533. }
  534. coreaudio_uninit(ca);
  535. if (ca->unit)
  536. AudioComponentInstanceDispose(ca->unit);
  537. }
  538. static void coreaudio_destroy(void *data)
  539. {
  540. struct coreaudio_data *ca = data;
  541. if (ca) {
  542. coreaudio_shutdown(ca);
  543. os_event_destroy(ca->exit_event);
  544. bfree(ca->device_name);
  545. bfree(ca->device_uid);
  546. bfree(ca);
  547. }
  548. }
  549. static void coreaudio_update(void *data, obs_data_t *settings)
  550. {
  551. struct coreaudio_data *ca = data;
  552. coreaudio_shutdown(ca);
  553. bfree(ca->device_uid);
  554. ca->device_uid = bstrdup(obs_data_get_string(settings, "device_id"));
  555. coreaudio_try_init(ca);
  556. }
  557. static void coreaudio_defaults(obs_data_t *settings)
  558. {
  559. obs_data_set_default_string(settings, "device_id", "default");
  560. }
  561. static void *coreaudio_create(obs_data_t *settings, obs_source_t *source,
  562. bool input)
  563. {
  564. struct coreaudio_data *ca = bzalloc(sizeof(struct coreaudio_data));
  565. if (os_event_init(&ca->exit_event, OS_EVENT_TYPE_MANUAL) != 0) {
  566. blog(LOG_ERROR, "[coreaudio_create] failed to create "
  567. "semephore: %d", errno);
  568. bfree(ca);
  569. return NULL;
  570. }
  571. ca->device_uid = bstrdup(obs_data_get_string(settings, "device_id"));
  572. ca->source = source;
  573. ca->input = input;
  574. if (!ca->device_uid)
  575. ca->device_uid = bstrdup("default");
  576. coreaudio_try_init(ca);
  577. return ca;
  578. }
  579. static void *coreaudio_create_input_capture(obs_data_t *settings,
  580. obs_source_t *source)
  581. {
  582. return coreaudio_create(settings, source, true);
  583. }
  584. static void *coreaudio_create_output_capture(obs_data_t *settings,
  585. obs_source_t *source)
  586. {
  587. return coreaudio_create(settings, source, false);
  588. }
  589. static obs_properties_t *coreaudio_properties(bool input)
  590. {
  591. obs_properties_t *props = obs_properties_create();
  592. obs_property_t *property;
  593. struct device_list devices;
  594. memset(&devices, 0, sizeof(struct device_list));
  595. property = obs_properties_add_list(props, "device_id", TEXT_DEVICE,
  596. OBS_COMBO_TYPE_LIST, OBS_COMBO_FORMAT_STRING);
  597. coreaudio_enum_devices(&devices, input);
  598. if (devices.items.num)
  599. obs_property_list_add_string(property, TEXT_DEVICE_DEFAULT,
  600. "default");
  601. for (size_t i = 0; i < devices.items.num; i++) {
  602. struct device_item *item = devices.items.array+i;
  603. obs_property_list_add_string(property,
  604. item->name.array, item->value.array);
  605. }
  606. device_list_free(&devices);
  607. return props;
  608. }
  609. static obs_properties_t *coreaudio_input_properties(void *unused)
  610. {
  611. UNUSED_PARAMETER(unused);
  612. return coreaudio_properties(true);
  613. }
  614. static obs_properties_t *coreaudio_output_properties(void *unused)
  615. {
  616. UNUSED_PARAMETER(unused);
  617. return coreaudio_properties(false);
  618. }
  619. struct obs_source_info coreaudio_input_capture_info = {
  620. .id = "coreaudio_input_capture",
  621. .type = OBS_SOURCE_TYPE_INPUT,
  622. .output_flags = OBS_SOURCE_AUDIO |
  623. OBS_SOURCE_DO_NOT_DUPLICATE,
  624. .get_name = coreaudio_input_getname,
  625. .create = coreaudio_create_input_capture,
  626. .destroy = coreaudio_destroy,
  627. .update = coreaudio_update,
  628. .get_defaults = coreaudio_defaults,
  629. .get_properties = coreaudio_input_properties
  630. };
  631. struct obs_source_info coreaudio_output_capture_info = {
  632. .id = "coreaudio_output_capture",
  633. .type = OBS_SOURCE_TYPE_INPUT,
  634. .output_flags = OBS_SOURCE_AUDIO |
  635. OBS_SOURCE_DO_NOT_DUPLICATE |
  636. OBS_SOURCE_DO_NOT_SELF_MONITOR,
  637. .get_name = coreaudio_output_getname,
  638. .create = coreaudio_create_output_capture,
  639. .destroy = coreaudio_destroy,
  640. .update = coreaudio_update,
  641. .get_defaults = coreaudio_defaults,
  642. .get_properties = coreaudio_output_properties
  643. };