alc.cpp 126 KB

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  1. /**
  2. * OpenAL cross platform audio library
  3. * Copyright (C) 1999-2007 by authors.
  4. * This library is free software; you can redistribute it and/or
  5. * modify it under the terms of the GNU Library General Public
  6. * License as published by the Free Software Foundation; either
  7. * version 2 of the License, or (at your option) any later version.
  8. *
  9. * This library 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 GNU
  12. * Library General Public License for more details.
  13. *
  14. * You should have received a copy of the GNU Library General Public
  15. * License along with this library; if not, write to the
  16. * Free Software Foundation, Inc.,
  17. * 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA.
  18. * Or go to http://www.gnu.org/copyleft/lgpl.html
  19. */
  20. #include "config.h"
  21. #include "version.h"
  22. #ifdef _WIN32
  23. #define WIN32_LEAN_AND_MEAN
  24. #include <windows.h>
  25. #endif
  26. #include <exception>
  27. #include <algorithm>
  28. #include <array>
  29. #include <atomic>
  30. #include <cctype>
  31. #include <chrono>
  32. #include <cinttypes>
  33. #include <climits>
  34. #include <cmath>
  35. #include <csignal>
  36. #include <cstdint>
  37. #include <cstdio>
  38. #include <cstdlib>
  39. #include <cstring>
  40. #include <functional>
  41. #include <iterator>
  42. #include <limits>
  43. #include <memory>
  44. #include <mutex>
  45. #include <new>
  46. #include <numeric>
  47. #include <string>
  48. #include <thread>
  49. #include <utility>
  50. #include "AL/al.h"
  51. #include "AL/alc.h"
  52. #include "AL/alext.h"
  53. #include "AL/efx.h"
  54. #include "al/auxeffectslot.h"
  55. #include "al/buffer.h"
  56. #include "al/effect.h"
  57. #include "al/event.h"
  58. #include "al/filter.h"
  59. #include "al/listener.h"
  60. #include "al/source.h"
  61. #include "albit.h"
  62. #include "alcmain.h"
  63. #include "albyte.h"
  64. #include "alconfig.h"
  65. #include "alcontext.h"
  66. #include "almalloc.h"
  67. #include "alnumeric.h"
  68. #include "aloptional.h"
  69. #include "alspan.h"
  70. #include "alstring.h"
  71. #include "alu.h"
  72. #include "async_event.h"
  73. #include "atomic.h"
  74. #include "bformatdec.h"
  75. #include "compat.h"
  76. #include "core/ambidefs.h"
  77. #include "core/bs2b.h"
  78. #include "core/cpu_caps.h"
  79. #include "core/devformat.h"
  80. #include "core/except.h"
  81. #include "core/mastering.h"
  82. #include "core/filters/nfc.h"
  83. #include "core/filters/splitter.h"
  84. #include "core/fpu_ctrl.h"
  85. #include "core/logging.h"
  86. #include "core/uhjfilter.h"
  87. #include "effects/base.h"
  88. #include "front_stablizer.h"
  89. #include "hrtf.h"
  90. #include "inprogext.h"
  91. #include "intrusive_ptr.h"
  92. #include "opthelpers.h"
  93. #include "pragmadefs.h"
  94. #include "ringbuffer.h"
  95. #include "strutils.h"
  96. #include "threads.h"
  97. #include "vecmat.h"
  98. #include "vector.h"
  99. #include "voice_change.h"
  100. #include "backends/base.h"
  101. #include "backends/null.h"
  102. #include "backends/loopback.h"
  103. #ifdef HAVE_JACK
  104. #include "backends/jack.h"
  105. #endif
  106. #ifdef HAVE_PULSEAUDIO
  107. #include "backends/pulseaudio.h"
  108. #endif
  109. #ifdef HAVE_ALSA
  110. #include "backends/alsa.h"
  111. #endif
  112. #ifdef HAVE_WASAPI
  113. #include "backends/wasapi.h"
  114. #endif
  115. #ifdef HAVE_COREAUDIO
  116. #include "backends/coreaudio.h"
  117. #endif
  118. #ifdef HAVE_OPENSL
  119. #include "backends/opensl.h"
  120. #endif
  121. #ifdef HAVE_OBOE
  122. #include "backends/oboe.h"
  123. #endif
  124. #ifdef HAVE_SOLARIS
  125. #include "backends/solaris.h"
  126. #endif
  127. #ifdef HAVE_SNDIO
  128. #include "backends/sndio.h"
  129. #endif
  130. #ifdef HAVE_OSS
  131. #include "backends/oss.h"
  132. #endif
  133. #ifdef HAVE_DSOUND
  134. #include "backends/dsound.h"
  135. #endif
  136. #ifdef HAVE_WINMM
  137. #include "backends/winmm.h"
  138. #endif
  139. #ifdef HAVE_PORTAUDIO
  140. #include "backends/portaudio.h"
  141. #endif
  142. #ifdef HAVE_SDL2
  143. #include "backends/sdl2.h"
  144. #endif
  145. #ifdef HAVE_WAVE
  146. #include "backends/wave.h"
  147. #endif
  148. namespace {
  149. using namespace std::placeholders;
  150. using std::chrono::seconds;
  151. using std::chrono::nanoseconds;
  152. using voidp = void*;
  153. /************************************************
  154. * Backends
  155. ************************************************/
  156. struct BackendInfo {
  157. const char *name;
  158. BackendFactory& (*getFactory)(void);
  159. };
  160. BackendInfo BackendList[] = {
  161. #ifdef HAVE_JACK
  162. { "jack", JackBackendFactory::getFactory },
  163. #endif
  164. #ifdef HAVE_PULSEAUDIO
  165. { "pulse", PulseBackendFactory::getFactory },
  166. #endif
  167. #ifdef HAVE_ALSA
  168. { "alsa", AlsaBackendFactory::getFactory },
  169. #endif
  170. #ifdef HAVE_WASAPI
  171. { "wasapi", WasapiBackendFactory::getFactory },
  172. #endif
  173. #ifdef HAVE_COREAUDIO
  174. { "core", CoreAudioBackendFactory::getFactory },
  175. #endif
  176. #ifdef HAVE_OBOE
  177. { "oboe", OboeBackendFactory::getFactory },
  178. #endif
  179. #ifdef HAVE_OPENSL
  180. { "opensl", OSLBackendFactory::getFactory },
  181. #endif
  182. #ifdef HAVE_SOLARIS
  183. { "solaris", SolarisBackendFactory::getFactory },
  184. #endif
  185. #ifdef HAVE_SNDIO
  186. { "sndio", SndIOBackendFactory::getFactory },
  187. #endif
  188. #ifdef HAVE_OSS
  189. { "oss", OSSBackendFactory::getFactory },
  190. #endif
  191. #ifdef HAVE_DSOUND
  192. { "dsound", DSoundBackendFactory::getFactory },
  193. #endif
  194. #ifdef HAVE_WINMM
  195. { "winmm", WinMMBackendFactory::getFactory },
  196. #endif
  197. #ifdef HAVE_PORTAUDIO
  198. { "port", PortBackendFactory::getFactory },
  199. #endif
  200. #ifdef HAVE_SDL2
  201. { "sdl2", SDL2BackendFactory::getFactory },
  202. #endif
  203. { "null", NullBackendFactory::getFactory },
  204. #ifdef HAVE_WAVE
  205. { "wave", WaveBackendFactory::getFactory },
  206. #endif
  207. };
  208. BackendFactory *PlaybackFactory{};
  209. BackendFactory *CaptureFactory{};
  210. /************************************************
  211. * Functions, enums, and errors
  212. ************************************************/
  213. #define DECL(x) { #x, reinterpret_cast<void*>(x) }
  214. const struct {
  215. const char *funcName;
  216. void *address;
  217. } alcFunctions[] = {
  218. DECL(alcCreateContext),
  219. DECL(alcMakeContextCurrent),
  220. DECL(alcProcessContext),
  221. DECL(alcSuspendContext),
  222. DECL(alcDestroyContext),
  223. DECL(alcGetCurrentContext),
  224. DECL(alcGetContextsDevice),
  225. DECL(alcOpenDevice),
  226. DECL(alcCloseDevice),
  227. DECL(alcGetError),
  228. DECL(alcIsExtensionPresent),
  229. DECL(alcGetProcAddress),
  230. DECL(alcGetEnumValue),
  231. DECL(alcGetString),
  232. DECL(alcGetIntegerv),
  233. DECL(alcCaptureOpenDevice),
  234. DECL(alcCaptureCloseDevice),
  235. DECL(alcCaptureStart),
  236. DECL(alcCaptureStop),
  237. DECL(alcCaptureSamples),
  238. DECL(alcSetThreadContext),
  239. DECL(alcGetThreadContext),
  240. DECL(alcLoopbackOpenDeviceSOFT),
  241. DECL(alcIsRenderFormatSupportedSOFT),
  242. DECL(alcRenderSamplesSOFT),
  243. DECL(alcDevicePauseSOFT),
  244. DECL(alcDeviceResumeSOFT),
  245. DECL(alcGetStringiSOFT),
  246. DECL(alcResetDeviceSOFT),
  247. DECL(alcGetInteger64vSOFT),
  248. DECL(alEnable),
  249. DECL(alDisable),
  250. DECL(alIsEnabled),
  251. DECL(alGetString),
  252. DECL(alGetBooleanv),
  253. DECL(alGetIntegerv),
  254. DECL(alGetFloatv),
  255. DECL(alGetDoublev),
  256. DECL(alGetBoolean),
  257. DECL(alGetInteger),
  258. DECL(alGetFloat),
  259. DECL(alGetDouble),
  260. DECL(alGetError),
  261. DECL(alIsExtensionPresent),
  262. DECL(alGetProcAddress),
  263. DECL(alGetEnumValue),
  264. DECL(alListenerf),
  265. DECL(alListener3f),
  266. DECL(alListenerfv),
  267. DECL(alListeneri),
  268. DECL(alListener3i),
  269. DECL(alListeneriv),
  270. DECL(alGetListenerf),
  271. DECL(alGetListener3f),
  272. DECL(alGetListenerfv),
  273. DECL(alGetListeneri),
  274. DECL(alGetListener3i),
  275. DECL(alGetListeneriv),
  276. DECL(alGenSources),
  277. DECL(alDeleteSources),
  278. DECL(alIsSource),
  279. DECL(alSourcef),
  280. DECL(alSource3f),
  281. DECL(alSourcefv),
  282. DECL(alSourcei),
  283. DECL(alSource3i),
  284. DECL(alSourceiv),
  285. DECL(alGetSourcef),
  286. DECL(alGetSource3f),
  287. DECL(alGetSourcefv),
  288. DECL(alGetSourcei),
  289. DECL(alGetSource3i),
  290. DECL(alGetSourceiv),
  291. DECL(alSourcePlayv),
  292. DECL(alSourceStopv),
  293. DECL(alSourceRewindv),
  294. DECL(alSourcePausev),
  295. DECL(alSourcePlay),
  296. DECL(alSourceStop),
  297. DECL(alSourceRewind),
  298. DECL(alSourcePause),
  299. DECL(alSourceQueueBuffers),
  300. DECL(alSourceUnqueueBuffers),
  301. DECL(alGenBuffers),
  302. DECL(alDeleteBuffers),
  303. DECL(alIsBuffer),
  304. DECL(alBufferData),
  305. DECL(alBufferf),
  306. DECL(alBuffer3f),
  307. DECL(alBufferfv),
  308. DECL(alBufferi),
  309. DECL(alBuffer3i),
  310. DECL(alBufferiv),
  311. DECL(alGetBufferf),
  312. DECL(alGetBuffer3f),
  313. DECL(alGetBufferfv),
  314. DECL(alGetBufferi),
  315. DECL(alGetBuffer3i),
  316. DECL(alGetBufferiv),
  317. DECL(alDopplerFactor),
  318. DECL(alDopplerVelocity),
  319. DECL(alSpeedOfSound),
  320. DECL(alDistanceModel),
  321. DECL(alGenFilters),
  322. DECL(alDeleteFilters),
  323. DECL(alIsFilter),
  324. DECL(alFilteri),
  325. DECL(alFilteriv),
  326. DECL(alFilterf),
  327. DECL(alFilterfv),
  328. DECL(alGetFilteri),
  329. DECL(alGetFilteriv),
  330. DECL(alGetFilterf),
  331. DECL(alGetFilterfv),
  332. DECL(alGenEffects),
  333. DECL(alDeleteEffects),
  334. DECL(alIsEffect),
  335. DECL(alEffecti),
  336. DECL(alEffectiv),
  337. DECL(alEffectf),
  338. DECL(alEffectfv),
  339. DECL(alGetEffecti),
  340. DECL(alGetEffectiv),
  341. DECL(alGetEffectf),
  342. DECL(alGetEffectfv),
  343. DECL(alGenAuxiliaryEffectSlots),
  344. DECL(alDeleteAuxiliaryEffectSlots),
  345. DECL(alIsAuxiliaryEffectSlot),
  346. DECL(alAuxiliaryEffectSloti),
  347. DECL(alAuxiliaryEffectSlotiv),
  348. DECL(alAuxiliaryEffectSlotf),
  349. DECL(alAuxiliaryEffectSlotfv),
  350. DECL(alGetAuxiliaryEffectSloti),
  351. DECL(alGetAuxiliaryEffectSlotiv),
  352. DECL(alGetAuxiliaryEffectSlotf),
  353. DECL(alGetAuxiliaryEffectSlotfv),
  354. DECL(alDeferUpdatesSOFT),
  355. DECL(alProcessUpdatesSOFT),
  356. DECL(alSourcedSOFT),
  357. DECL(alSource3dSOFT),
  358. DECL(alSourcedvSOFT),
  359. DECL(alGetSourcedSOFT),
  360. DECL(alGetSource3dSOFT),
  361. DECL(alGetSourcedvSOFT),
  362. DECL(alSourcei64SOFT),
  363. DECL(alSource3i64SOFT),
  364. DECL(alSourcei64vSOFT),
  365. DECL(alGetSourcei64SOFT),
  366. DECL(alGetSource3i64SOFT),
  367. DECL(alGetSourcei64vSOFT),
  368. DECL(alGetStringiSOFT),
  369. DECL(alBufferStorageSOFT),
  370. DECL(alMapBufferSOFT),
  371. DECL(alUnmapBufferSOFT),
  372. DECL(alFlushMappedBufferSOFT),
  373. DECL(alEventControlSOFT),
  374. DECL(alEventCallbackSOFT),
  375. DECL(alGetPointerSOFT),
  376. DECL(alGetPointervSOFT),
  377. DECL(alBufferCallbackSOFT),
  378. DECL(alGetBufferPtrSOFT),
  379. DECL(alGetBuffer3PtrSOFT),
  380. DECL(alGetBufferPtrvSOFT),
  381. DECL(alAuxiliaryEffectSlotPlaySOFT),
  382. DECL(alAuxiliaryEffectSlotPlayvSOFT),
  383. DECL(alAuxiliaryEffectSlotStopSOFT),
  384. DECL(alAuxiliaryEffectSlotStopvSOFT),
  385. };
  386. #undef DECL
  387. #define DECL(x) { #x, (x) }
  388. constexpr struct {
  389. const ALCchar *enumName;
  390. ALCenum value;
  391. } alcEnumerations[] = {
  392. DECL(ALC_INVALID),
  393. DECL(ALC_FALSE),
  394. DECL(ALC_TRUE),
  395. DECL(ALC_MAJOR_VERSION),
  396. DECL(ALC_MINOR_VERSION),
  397. DECL(ALC_ATTRIBUTES_SIZE),
  398. DECL(ALC_ALL_ATTRIBUTES),
  399. DECL(ALC_DEFAULT_DEVICE_SPECIFIER),
  400. DECL(ALC_DEVICE_SPECIFIER),
  401. DECL(ALC_ALL_DEVICES_SPECIFIER),
  402. DECL(ALC_DEFAULT_ALL_DEVICES_SPECIFIER),
  403. DECL(ALC_EXTENSIONS),
  404. DECL(ALC_FREQUENCY),
  405. DECL(ALC_REFRESH),
  406. DECL(ALC_SYNC),
  407. DECL(ALC_MONO_SOURCES),
  408. DECL(ALC_STEREO_SOURCES),
  409. DECL(ALC_CAPTURE_DEVICE_SPECIFIER),
  410. DECL(ALC_CAPTURE_DEFAULT_DEVICE_SPECIFIER),
  411. DECL(ALC_CAPTURE_SAMPLES),
  412. DECL(ALC_CONNECTED),
  413. DECL(ALC_EFX_MAJOR_VERSION),
  414. DECL(ALC_EFX_MINOR_VERSION),
  415. DECL(ALC_MAX_AUXILIARY_SENDS),
  416. DECL(ALC_FORMAT_CHANNELS_SOFT),
  417. DECL(ALC_FORMAT_TYPE_SOFT),
  418. DECL(ALC_MONO_SOFT),
  419. DECL(ALC_STEREO_SOFT),
  420. DECL(ALC_QUAD_SOFT),
  421. DECL(ALC_5POINT1_SOFT),
  422. DECL(ALC_6POINT1_SOFT),
  423. DECL(ALC_7POINT1_SOFT),
  424. DECL(ALC_BFORMAT3D_SOFT),
  425. DECL(ALC_BYTE_SOFT),
  426. DECL(ALC_UNSIGNED_BYTE_SOFT),
  427. DECL(ALC_SHORT_SOFT),
  428. DECL(ALC_UNSIGNED_SHORT_SOFT),
  429. DECL(ALC_INT_SOFT),
  430. DECL(ALC_UNSIGNED_INT_SOFT),
  431. DECL(ALC_FLOAT_SOFT),
  432. DECL(ALC_HRTF_SOFT),
  433. DECL(ALC_DONT_CARE_SOFT),
  434. DECL(ALC_HRTF_STATUS_SOFT),
  435. DECL(ALC_HRTF_DISABLED_SOFT),
  436. DECL(ALC_HRTF_ENABLED_SOFT),
  437. DECL(ALC_HRTF_DENIED_SOFT),
  438. DECL(ALC_HRTF_REQUIRED_SOFT),
  439. DECL(ALC_HRTF_HEADPHONES_DETECTED_SOFT),
  440. DECL(ALC_HRTF_UNSUPPORTED_FORMAT_SOFT),
  441. DECL(ALC_NUM_HRTF_SPECIFIERS_SOFT),
  442. DECL(ALC_HRTF_SPECIFIER_SOFT),
  443. DECL(ALC_HRTF_ID_SOFT),
  444. DECL(ALC_AMBISONIC_LAYOUT_SOFT),
  445. DECL(ALC_AMBISONIC_SCALING_SOFT),
  446. DECL(ALC_AMBISONIC_ORDER_SOFT),
  447. DECL(ALC_ACN_SOFT),
  448. DECL(ALC_FUMA_SOFT),
  449. DECL(ALC_N3D_SOFT),
  450. DECL(ALC_SN3D_SOFT),
  451. DECL(ALC_OUTPUT_LIMITER_SOFT),
  452. DECL(ALC_NO_ERROR),
  453. DECL(ALC_INVALID_DEVICE),
  454. DECL(ALC_INVALID_CONTEXT),
  455. DECL(ALC_INVALID_ENUM),
  456. DECL(ALC_INVALID_VALUE),
  457. DECL(ALC_OUT_OF_MEMORY),
  458. DECL(AL_INVALID),
  459. DECL(AL_NONE),
  460. DECL(AL_FALSE),
  461. DECL(AL_TRUE),
  462. DECL(AL_SOURCE_RELATIVE),
  463. DECL(AL_CONE_INNER_ANGLE),
  464. DECL(AL_CONE_OUTER_ANGLE),
  465. DECL(AL_PITCH),
  466. DECL(AL_POSITION),
  467. DECL(AL_DIRECTION),
  468. DECL(AL_VELOCITY),
  469. DECL(AL_LOOPING),
  470. DECL(AL_BUFFER),
  471. DECL(AL_GAIN),
  472. DECL(AL_MIN_GAIN),
  473. DECL(AL_MAX_GAIN),
  474. DECL(AL_ORIENTATION),
  475. DECL(AL_REFERENCE_DISTANCE),
  476. DECL(AL_ROLLOFF_FACTOR),
  477. DECL(AL_CONE_OUTER_GAIN),
  478. DECL(AL_MAX_DISTANCE),
  479. DECL(AL_SEC_OFFSET),
  480. DECL(AL_SAMPLE_OFFSET),
  481. DECL(AL_BYTE_OFFSET),
  482. DECL(AL_SOURCE_TYPE),
  483. DECL(AL_STATIC),
  484. DECL(AL_STREAMING),
  485. DECL(AL_UNDETERMINED),
  486. DECL(AL_METERS_PER_UNIT),
  487. DECL(AL_LOOP_POINTS_SOFT),
  488. DECL(AL_DIRECT_CHANNELS_SOFT),
  489. DECL(AL_DIRECT_FILTER),
  490. DECL(AL_AUXILIARY_SEND_FILTER),
  491. DECL(AL_AIR_ABSORPTION_FACTOR),
  492. DECL(AL_ROOM_ROLLOFF_FACTOR),
  493. DECL(AL_CONE_OUTER_GAINHF),
  494. DECL(AL_DIRECT_FILTER_GAINHF_AUTO),
  495. DECL(AL_AUXILIARY_SEND_FILTER_GAIN_AUTO),
  496. DECL(AL_AUXILIARY_SEND_FILTER_GAINHF_AUTO),
  497. DECL(AL_SOURCE_STATE),
  498. DECL(AL_INITIAL),
  499. DECL(AL_PLAYING),
  500. DECL(AL_PAUSED),
  501. DECL(AL_STOPPED),
  502. DECL(AL_BUFFERS_QUEUED),
  503. DECL(AL_BUFFERS_PROCESSED),
  504. DECL(AL_FORMAT_MONO8),
  505. DECL(AL_FORMAT_MONO16),
  506. DECL(AL_FORMAT_MONO_FLOAT32),
  507. DECL(AL_FORMAT_MONO_DOUBLE_EXT),
  508. DECL(AL_FORMAT_STEREO8),
  509. DECL(AL_FORMAT_STEREO16),
  510. DECL(AL_FORMAT_STEREO_FLOAT32),
  511. DECL(AL_FORMAT_STEREO_DOUBLE_EXT),
  512. DECL(AL_FORMAT_MONO_IMA4),
  513. DECL(AL_FORMAT_STEREO_IMA4),
  514. DECL(AL_FORMAT_MONO_MSADPCM_SOFT),
  515. DECL(AL_FORMAT_STEREO_MSADPCM_SOFT),
  516. DECL(AL_FORMAT_QUAD8_LOKI),
  517. DECL(AL_FORMAT_QUAD16_LOKI),
  518. DECL(AL_FORMAT_QUAD8),
  519. DECL(AL_FORMAT_QUAD16),
  520. DECL(AL_FORMAT_QUAD32),
  521. DECL(AL_FORMAT_51CHN8),
  522. DECL(AL_FORMAT_51CHN16),
  523. DECL(AL_FORMAT_51CHN32),
  524. DECL(AL_FORMAT_61CHN8),
  525. DECL(AL_FORMAT_61CHN16),
  526. DECL(AL_FORMAT_61CHN32),
  527. DECL(AL_FORMAT_71CHN8),
  528. DECL(AL_FORMAT_71CHN16),
  529. DECL(AL_FORMAT_71CHN32),
  530. DECL(AL_FORMAT_REAR8),
  531. DECL(AL_FORMAT_REAR16),
  532. DECL(AL_FORMAT_REAR32),
  533. DECL(AL_FORMAT_MONO_MULAW),
  534. DECL(AL_FORMAT_MONO_MULAW_EXT),
  535. DECL(AL_FORMAT_STEREO_MULAW),
  536. DECL(AL_FORMAT_STEREO_MULAW_EXT),
  537. DECL(AL_FORMAT_QUAD_MULAW),
  538. DECL(AL_FORMAT_51CHN_MULAW),
  539. DECL(AL_FORMAT_61CHN_MULAW),
  540. DECL(AL_FORMAT_71CHN_MULAW),
  541. DECL(AL_FORMAT_REAR_MULAW),
  542. DECL(AL_FORMAT_MONO_ALAW_EXT),
  543. DECL(AL_FORMAT_STEREO_ALAW_EXT),
  544. DECL(AL_FORMAT_BFORMAT2D_8),
  545. DECL(AL_FORMAT_BFORMAT2D_16),
  546. DECL(AL_FORMAT_BFORMAT2D_FLOAT32),
  547. DECL(AL_FORMAT_BFORMAT2D_MULAW),
  548. DECL(AL_FORMAT_BFORMAT3D_8),
  549. DECL(AL_FORMAT_BFORMAT3D_16),
  550. DECL(AL_FORMAT_BFORMAT3D_FLOAT32),
  551. DECL(AL_FORMAT_BFORMAT3D_MULAW),
  552. DECL(AL_FREQUENCY),
  553. DECL(AL_BITS),
  554. DECL(AL_CHANNELS),
  555. DECL(AL_SIZE),
  556. DECL(AL_UNPACK_BLOCK_ALIGNMENT_SOFT),
  557. DECL(AL_PACK_BLOCK_ALIGNMENT_SOFT),
  558. DECL(AL_SOURCE_RADIUS),
  559. DECL(AL_STEREO_ANGLES),
  560. DECL(AL_UNUSED),
  561. DECL(AL_PENDING),
  562. DECL(AL_PROCESSED),
  563. DECL(AL_NO_ERROR),
  564. DECL(AL_INVALID_NAME),
  565. DECL(AL_INVALID_ENUM),
  566. DECL(AL_INVALID_VALUE),
  567. DECL(AL_INVALID_OPERATION),
  568. DECL(AL_OUT_OF_MEMORY),
  569. DECL(AL_VENDOR),
  570. DECL(AL_VERSION),
  571. DECL(AL_RENDERER),
  572. DECL(AL_EXTENSIONS),
  573. DECL(AL_DOPPLER_FACTOR),
  574. DECL(AL_DOPPLER_VELOCITY),
  575. DECL(AL_DISTANCE_MODEL),
  576. DECL(AL_SPEED_OF_SOUND),
  577. DECL(AL_SOURCE_DISTANCE_MODEL),
  578. DECL(AL_DEFERRED_UPDATES_SOFT),
  579. DECL(AL_GAIN_LIMIT_SOFT),
  580. DECL(AL_INVERSE_DISTANCE),
  581. DECL(AL_INVERSE_DISTANCE_CLAMPED),
  582. DECL(AL_LINEAR_DISTANCE),
  583. DECL(AL_LINEAR_DISTANCE_CLAMPED),
  584. DECL(AL_EXPONENT_DISTANCE),
  585. DECL(AL_EXPONENT_DISTANCE_CLAMPED),
  586. DECL(AL_FILTER_TYPE),
  587. DECL(AL_FILTER_NULL),
  588. DECL(AL_FILTER_LOWPASS),
  589. DECL(AL_FILTER_HIGHPASS),
  590. DECL(AL_FILTER_BANDPASS),
  591. DECL(AL_LOWPASS_GAIN),
  592. DECL(AL_LOWPASS_GAINHF),
  593. DECL(AL_HIGHPASS_GAIN),
  594. DECL(AL_HIGHPASS_GAINLF),
  595. DECL(AL_BANDPASS_GAIN),
  596. DECL(AL_BANDPASS_GAINHF),
  597. DECL(AL_BANDPASS_GAINLF),
  598. DECL(AL_EFFECT_TYPE),
  599. DECL(AL_EFFECT_NULL),
  600. DECL(AL_EFFECT_REVERB),
  601. DECL(AL_EFFECT_EAXREVERB),
  602. DECL(AL_EFFECT_CHORUS),
  603. DECL(AL_EFFECT_DISTORTION),
  604. DECL(AL_EFFECT_ECHO),
  605. DECL(AL_EFFECT_FLANGER),
  606. DECL(AL_EFFECT_PITCH_SHIFTER),
  607. DECL(AL_EFFECT_FREQUENCY_SHIFTER),
  608. DECL(AL_EFFECT_VOCAL_MORPHER),
  609. DECL(AL_EFFECT_RING_MODULATOR),
  610. DECL(AL_EFFECT_AUTOWAH),
  611. DECL(AL_EFFECT_COMPRESSOR),
  612. DECL(AL_EFFECT_EQUALIZER),
  613. DECL(AL_EFFECT_DEDICATED_LOW_FREQUENCY_EFFECT),
  614. DECL(AL_EFFECT_DEDICATED_DIALOGUE),
  615. DECL(AL_EFFECTSLOT_EFFECT),
  616. DECL(AL_EFFECTSLOT_GAIN),
  617. DECL(AL_EFFECTSLOT_AUXILIARY_SEND_AUTO),
  618. DECL(AL_EFFECTSLOT_NULL),
  619. DECL(AL_EAXREVERB_DENSITY),
  620. DECL(AL_EAXREVERB_DIFFUSION),
  621. DECL(AL_EAXREVERB_GAIN),
  622. DECL(AL_EAXREVERB_GAINHF),
  623. DECL(AL_EAXREVERB_GAINLF),
  624. DECL(AL_EAXREVERB_DECAY_TIME),
  625. DECL(AL_EAXREVERB_DECAY_HFRATIO),
  626. DECL(AL_EAXREVERB_DECAY_LFRATIO),
  627. DECL(AL_EAXREVERB_REFLECTIONS_GAIN),
  628. DECL(AL_EAXREVERB_REFLECTIONS_DELAY),
  629. DECL(AL_EAXREVERB_REFLECTIONS_PAN),
  630. DECL(AL_EAXREVERB_LATE_REVERB_GAIN),
  631. DECL(AL_EAXREVERB_LATE_REVERB_DELAY),
  632. DECL(AL_EAXREVERB_LATE_REVERB_PAN),
  633. DECL(AL_EAXREVERB_ECHO_TIME),
  634. DECL(AL_EAXREVERB_ECHO_DEPTH),
  635. DECL(AL_EAXREVERB_MODULATION_TIME),
  636. DECL(AL_EAXREVERB_MODULATION_DEPTH),
  637. DECL(AL_EAXREVERB_AIR_ABSORPTION_GAINHF),
  638. DECL(AL_EAXREVERB_HFREFERENCE),
  639. DECL(AL_EAXREVERB_LFREFERENCE),
  640. DECL(AL_EAXREVERB_ROOM_ROLLOFF_FACTOR),
  641. DECL(AL_EAXREVERB_DECAY_HFLIMIT),
  642. DECL(AL_REVERB_DENSITY),
  643. DECL(AL_REVERB_DIFFUSION),
  644. DECL(AL_REVERB_GAIN),
  645. DECL(AL_REVERB_GAINHF),
  646. DECL(AL_REVERB_DECAY_TIME),
  647. DECL(AL_REVERB_DECAY_HFRATIO),
  648. DECL(AL_REVERB_REFLECTIONS_GAIN),
  649. DECL(AL_REVERB_REFLECTIONS_DELAY),
  650. DECL(AL_REVERB_LATE_REVERB_GAIN),
  651. DECL(AL_REVERB_LATE_REVERB_DELAY),
  652. DECL(AL_REVERB_AIR_ABSORPTION_GAINHF),
  653. DECL(AL_REVERB_ROOM_ROLLOFF_FACTOR),
  654. DECL(AL_REVERB_DECAY_HFLIMIT),
  655. DECL(AL_CHORUS_WAVEFORM),
  656. DECL(AL_CHORUS_PHASE),
  657. DECL(AL_CHORUS_RATE),
  658. DECL(AL_CHORUS_DEPTH),
  659. DECL(AL_CHORUS_FEEDBACK),
  660. DECL(AL_CHORUS_DELAY),
  661. DECL(AL_DISTORTION_EDGE),
  662. DECL(AL_DISTORTION_GAIN),
  663. DECL(AL_DISTORTION_LOWPASS_CUTOFF),
  664. DECL(AL_DISTORTION_EQCENTER),
  665. DECL(AL_DISTORTION_EQBANDWIDTH),
  666. DECL(AL_ECHO_DELAY),
  667. DECL(AL_ECHO_LRDELAY),
  668. DECL(AL_ECHO_DAMPING),
  669. DECL(AL_ECHO_FEEDBACK),
  670. DECL(AL_ECHO_SPREAD),
  671. DECL(AL_FLANGER_WAVEFORM),
  672. DECL(AL_FLANGER_PHASE),
  673. DECL(AL_FLANGER_RATE),
  674. DECL(AL_FLANGER_DEPTH),
  675. DECL(AL_FLANGER_FEEDBACK),
  676. DECL(AL_FLANGER_DELAY),
  677. DECL(AL_FREQUENCY_SHIFTER_FREQUENCY),
  678. DECL(AL_FREQUENCY_SHIFTER_LEFT_DIRECTION),
  679. DECL(AL_FREQUENCY_SHIFTER_RIGHT_DIRECTION),
  680. DECL(AL_RING_MODULATOR_FREQUENCY),
  681. DECL(AL_RING_MODULATOR_HIGHPASS_CUTOFF),
  682. DECL(AL_RING_MODULATOR_WAVEFORM),
  683. DECL(AL_PITCH_SHIFTER_COARSE_TUNE),
  684. DECL(AL_PITCH_SHIFTER_FINE_TUNE),
  685. DECL(AL_COMPRESSOR_ONOFF),
  686. DECL(AL_EQUALIZER_LOW_GAIN),
  687. DECL(AL_EQUALIZER_LOW_CUTOFF),
  688. DECL(AL_EQUALIZER_MID1_GAIN),
  689. DECL(AL_EQUALIZER_MID1_CENTER),
  690. DECL(AL_EQUALIZER_MID1_WIDTH),
  691. DECL(AL_EQUALIZER_MID2_GAIN),
  692. DECL(AL_EQUALIZER_MID2_CENTER),
  693. DECL(AL_EQUALIZER_MID2_WIDTH),
  694. DECL(AL_EQUALIZER_HIGH_GAIN),
  695. DECL(AL_EQUALIZER_HIGH_CUTOFF),
  696. DECL(AL_DEDICATED_GAIN),
  697. DECL(AL_AUTOWAH_ATTACK_TIME),
  698. DECL(AL_AUTOWAH_RELEASE_TIME),
  699. DECL(AL_AUTOWAH_RESONANCE),
  700. DECL(AL_AUTOWAH_PEAK_GAIN),
  701. DECL(AL_VOCAL_MORPHER_PHONEMEA),
  702. DECL(AL_VOCAL_MORPHER_PHONEMEB_COARSE_TUNING),
  703. DECL(AL_VOCAL_MORPHER_PHONEMEB),
  704. DECL(AL_VOCAL_MORPHER_PHONEMEB_COARSE_TUNING),
  705. DECL(AL_VOCAL_MORPHER_WAVEFORM),
  706. DECL(AL_VOCAL_MORPHER_RATE),
  707. DECL(AL_EFFECTSLOT_TARGET_SOFT),
  708. DECL(AL_NUM_RESAMPLERS_SOFT),
  709. DECL(AL_DEFAULT_RESAMPLER_SOFT),
  710. DECL(AL_SOURCE_RESAMPLER_SOFT),
  711. DECL(AL_RESAMPLER_NAME_SOFT),
  712. DECL(AL_SOURCE_SPATIALIZE_SOFT),
  713. DECL(AL_AUTO_SOFT),
  714. DECL(AL_MAP_READ_BIT_SOFT),
  715. DECL(AL_MAP_WRITE_BIT_SOFT),
  716. DECL(AL_MAP_PERSISTENT_BIT_SOFT),
  717. DECL(AL_PRESERVE_DATA_BIT_SOFT),
  718. DECL(AL_EVENT_CALLBACK_FUNCTION_SOFT),
  719. DECL(AL_EVENT_CALLBACK_USER_PARAM_SOFT),
  720. DECL(AL_EVENT_TYPE_BUFFER_COMPLETED_SOFT),
  721. DECL(AL_EVENT_TYPE_SOURCE_STATE_CHANGED_SOFT),
  722. DECL(AL_EVENT_TYPE_DISCONNECTED_SOFT),
  723. DECL(AL_DROP_UNMATCHED_SOFT),
  724. DECL(AL_REMIX_UNMATCHED_SOFT),
  725. DECL(AL_AMBISONIC_LAYOUT_SOFT),
  726. DECL(AL_AMBISONIC_SCALING_SOFT),
  727. DECL(AL_FUMA_SOFT),
  728. DECL(AL_ACN_SOFT),
  729. DECL(AL_SN3D_SOFT),
  730. DECL(AL_N3D_SOFT),
  731. DECL(AL_BUFFER_CALLBACK_FUNCTION_SOFT),
  732. DECL(AL_BUFFER_CALLBACK_USER_PARAM_SOFT),
  733. DECL(AL_UNPACK_AMBISONIC_ORDER_SOFT),
  734. DECL(AL_EFFECT_CONVOLUTION_REVERB_SOFT),
  735. DECL(AL_EFFECTSLOT_STATE_SOFT),
  736. };
  737. #undef DECL
  738. constexpr ALCchar alcNoError[] = "No Error";
  739. constexpr ALCchar alcErrInvalidDevice[] = "Invalid Device";
  740. constexpr ALCchar alcErrInvalidContext[] = "Invalid Context";
  741. constexpr ALCchar alcErrInvalidEnum[] = "Invalid Enum";
  742. constexpr ALCchar alcErrInvalidValue[] = "Invalid Value";
  743. constexpr ALCchar alcErrOutOfMemory[] = "Out of Memory";
  744. /************************************************
  745. * Global variables
  746. ************************************************/
  747. /* Enumerated device names */
  748. constexpr ALCchar alcDefaultName[] = "OpenAL Soft\0";
  749. std::string alcAllDevicesList;
  750. std::string alcCaptureDeviceList;
  751. /* Default is always the first in the list */
  752. al::string alcDefaultAllDevicesSpecifier;
  753. al::string alcCaptureDefaultDeviceSpecifier;
  754. /* Default context extensions */
  755. constexpr ALchar alExtList[] =
  756. "AL_EXT_ALAW "
  757. "AL_EXT_BFORMAT "
  758. "AL_EXT_DOUBLE "
  759. "AL_EXT_EXPONENT_DISTANCE "
  760. "AL_EXT_FLOAT32 "
  761. "AL_EXT_IMA4 "
  762. "AL_EXT_LINEAR_DISTANCE "
  763. "AL_EXT_MCFORMATS "
  764. "AL_EXT_MULAW "
  765. "AL_EXT_MULAW_BFORMAT "
  766. "AL_EXT_MULAW_MCFORMATS "
  767. "AL_EXT_OFFSET "
  768. "AL_EXT_source_distance_model "
  769. "AL_EXT_SOURCE_RADIUS "
  770. "AL_EXT_STEREO_ANGLES "
  771. "AL_LOKI_quadriphonic "
  772. "AL_SOFT_bformat_ex "
  773. "AL_SOFTX_bformat_hoa "
  774. "AL_SOFT_block_alignment "
  775. "AL_SOFTX_callback_buffer "
  776. "AL_SOFTX_convolution_reverb "
  777. "AL_SOFT_deferred_updates "
  778. "AL_SOFT_direct_channels "
  779. "AL_SOFT_direct_channels_remix "
  780. "AL_SOFT_effect_target "
  781. "AL_SOFT_events "
  782. "AL_SOFTX_filter_gain_ex "
  783. "AL_SOFT_gain_clamp_ex "
  784. "AL_SOFT_loop_points "
  785. "AL_SOFTX_map_buffer "
  786. "AL_SOFT_MSADPCM "
  787. "AL_SOFT_source_latency "
  788. "AL_SOFT_source_length "
  789. "AL_SOFT_source_resampler "
  790. "AL_SOFT_source_spatialize";
  791. std::atomic<ALCenum> LastNullDeviceError{ALC_NO_ERROR};
  792. /* Thread-local current context. The handling may look a little obtuse, but
  793. * it's designed this way to avoid a bug with 32-bit GCC/MinGW, which causes
  794. * thread-local object destructors to get a junk 'this' pointer. This method
  795. * has the benefit of making LocalContext access more efficient since it's a
  796. * a plain pointer, with the ThreadContext object used to check it at thread
  797. * exit (and given no data fields, 'this' being junk is inconsequential since
  798. * it's never accessed).
  799. */
  800. thread_local ALCcontext *LocalContext{nullptr};
  801. class ThreadCtx {
  802. public:
  803. ~ThreadCtx()
  804. {
  805. if(ALCcontext *ctx{LocalContext})
  806. {
  807. const bool result{ctx->releaseIfNoDelete()};
  808. ERR("Context %p current for thread being destroyed%s!\n", voidp{ctx},
  809. result ? "" : ", leak detected");
  810. }
  811. }
  812. void set(ALCcontext *ctx) const noexcept { LocalContext = ctx; }
  813. };
  814. thread_local ThreadCtx ThreadContext;
  815. /* Process-wide current context */
  816. std::atomic<ALCcontext*> GlobalContext{nullptr};
  817. /* Flag to trap ALC device errors */
  818. bool TrapALCError{false};
  819. /* One-time configuration init control */
  820. std::once_flag alc_config_once{};
  821. /* Default effect that applies to sources that don't have an effect on send 0 */
  822. ALeffect DefaultEffect;
  823. /* Flag to specify if alcSuspendContext/alcProcessContext should defer/process
  824. * updates.
  825. */
  826. bool SuspendDefers{true};
  827. /* Initial seed for dithering. */
  828. constexpr uint DitherRNGSeed{22222u};
  829. /************************************************
  830. * ALC information
  831. ************************************************/
  832. constexpr ALCchar alcNoDeviceExtList[] =
  833. "ALC_ENUMERATE_ALL_EXT "
  834. "ALC_ENUMERATION_EXT "
  835. "ALC_EXT_CAPTURE "
  836. "ALC_EXT_thread_local_context "
  837. "ALC_SOFT_loopback "
  838. "ALC_SOFT_loopback_bformat";
  839. constexpr ALCchar alcExtensionList[] =
  840. "ALC_ENUMERATE_ALL_EXT "
  841. "ALC_ENUMERATION_EXT "
  842. "ALC_EXT_CAPTURE "
  843. "ALC_EXT_DEDICATED "
  844. "ALC_EXT_disconnect "
  845. "ALC_EXT_EFX "
  846. "ALC_EXT_thread_local_context "
  847. "ALC_SOFT_device_clock "
  848. "ALC_SOFT_HRTF "
  849. "ALC_SOFT_loopback "
  850. "ALC_SOFT_loopback_bformat "
  851. "ALC_SOFT_output_limiter "
  852. "ALC_SOFT_pause_device";
  853. constexpr int alcMajorVersion{1};
  854. constexpr int alcMinorVersion{1};
  855. constexpr int alcEFXMajorVersion{1};
  856. constexpr int alcEFXMinorVersion{0};
  857. /* To avoid extraneous allocations, a 0-sized FlexArray<ALCcontext*> is defined
  858. * globally as a sharable object.
  859. */
  860. al::FlexArray<ALCcontext*> EmptyContextArray{0u};
  861. using DeviceRef = al::intrusive_ptr<ALCdevice>;
  862. /************************************************
  863. * Device lists
  864. ************************************************/
  865. al::vector<ALCdevice*> DeviceList;
  866. al::vector<ALCcontext*> ContextList;
  867. std::recursive_mutex ListLock;
  868. void alc_initconfig(void)
  869. {
  870. if(auto loglevel = al::getenv("ALSOFT_LOGLEVEL"))
  871. {
  872. long lvl = strtol(loglevel->c_str(), nullptr, 0);
  873. if(lvl >= static_cast<long>(LogLevel::Trace))
  874. gLogLevel = LogLevel::Trace;
  875. else if(lvl <= static_cast<long>(LogLevel::Disable))
  876. gLogLevel = LogLevel::Disable;
  877. else
  878. gLogLevel = static_cast<LogLevel>(lvl);
  879. }
  880. #ifdef _WIN32
  881. if(const auto logfile = al::getenv(L"ALSOFT_LOGFILE"))
  882. {
  883. FILE *logf{_wfopen(logfile->c_str(), L"wt")};
  884. if(logf) gLogFile = logf;
  885. else
  886. {
  887. auto u8name = wstr_to_utf8(logfile->c_str());
  888. ERR("Failed to open log file '%s'\n", u8name.c_str());
  889. }
  890. }
  891. #else
  892. if(const auto logfile = al::getenv("ALSOFT_LOGFILE"))
  893. {
  894. FILE *logf{fopen(logfile->c_str(), "wt")};
  895. if(logf) gLogFile = logf;
  896. else ERR("Failed to open log file '%s'\n", logfile->c_str());
  897. }
  898. #endif
  899. TRACE("Initializing library v%s-%s %s\n", ALSOFT_VERSION, ALSOFT_GIT_COMMIT_HASH,
  900. ALSOFT_GIT_BRANCH);
  901. {
  902. al::string names;
  903. if(al::size(BackendList) < 1)
  904. names = "(none)";
  905. else
  906. {
  907. const al::span<const BackendInfo> infos{BackendList};
  908. names = infos[0].name;
  909. for(const auto &backend : infos.subspan<1>())
  910. {
  911. names += ", ";
  912. names += backend.name;
  913. }
  914. }
  915. TRACE("Supported backends: %s\n", names.c_str());
  916. }
  917. ReadALConfig();
  918. if(auto suspendmode = al::getenv("__ALSOFT_SUSPEND_CONTEXT"))
  919. {
  920. if(al::strcasecmp(suspendmode->c_str(), "ignore") == 0)
  921. {
  922. SuspendDefers = false;
  923. TRACE("Selected context suspend behavior, \"ignore\"\n");
  924. }
  925. else
  926. ERR("Unhandled context suspend behavior setting: \"%s\"\n", suspendmode->c_str());
  927. }
  928. int capfilter{0};
  929. #if defined(HAVE_SSE4_1)
  930. capfilter |= CPU_CAP_SSE | CPU_CAP_SSE2 | CPU_CAP_SSE3 | CPU_CAP_SSE4_1;
  931. #elif defined(HAVE_SSE3)
  932. capfilter |= CPU_CAP_SSE | CPU_CAP_SSE2 | CPU_CAP_SSE3;
  933. #elif defined(HAVE_SSE2)
  934. capfilter |= CPU_CAP_SSE | CPU_CAP_SSE2;
  935. #elif defined(HAVE_SSE)
  936. capfilter |= CPU_CAP_SSE;
  937. #endif
  938. #ifdef HAVE_NEON
  939. capfilter |= CPU_CAP_NEON;
  940. #endif
  941. if(auto cpuopt = ConfigValueStr(nullptr, nullptr, "disable-cpu-exts"))
  942. {
  943. const char *str{cpuopt->c_str()};
  944. if(al::strcasecmp(str, "all") == 0)
  945. capfilter = 0;
  946. else
  947. {
  948. const char *next = str;
  949. do {
  950. str = next;
  951. while(isspace(str[0]))
  952. str++;
  953. next = strchr(str, ',');
  954. if(!str[0] || str[0] == ',')
  955. continue;
  956. size_t len{next ? static_cast<size_t>(next-str) : strlen(str)};
  957. while(len > 0 && isspace(str[len-1]))
  958. len--;
  959. if(len == 3 && al::strncasecmp(str, "sse", len) == 0)
  960. capfilter &= ~CPU_CAP_SSE;
  961. else if(len == 4 && al::strncasecmp(str, "sse2", len) == 0)
  962. capfilter &= ~CPU_CAP_SSE2;
  963. else if(len == 4 && al::strncasecmp(str, "sse3", len) == 0)
  964. capfilter &= ~CPU_CAP_SSE3;
  965. else if(len == 6 && al::strncasecmp(str, "sse4.1", len) == 0)
  966. capfilter &= ~CPU_CAP_SSE4_1;
  967. else if(len == 4 && al::strncasecmp(str, "neon", len) == 0)
  968. capfilter &= ~CPU_CAP_NEON;
  969. else
  970. WARN("Invalid CPU extension \"%s\"\n", str);
  971. } while(next++);
  972. }
  973. }
  974. if(auto cpuopt = GetCPUInfo())
  975. {
  976. if(!cpuopt->mVendor.empty() || !cpuopt->mName.empty())
  977. {
  978. TRACE("Vendor ID: \"%s\"\n", cpuopt->mVendor.c_str());
  979. TRACE("Name: \"%s\"\n", cpuopt->mName.c_str());
  980. }
  981. const int caps{cpuopt->mCaps};
  982. TRACE("Extensions:%s%s%s%s%s%s\n",
  983. ((capfilter&CPU_CAP_SSE) ? ((caps&CPU_CAP_SSE) ? " +SSE" : " -SSE") : ""),
  984. ((capfilter&CPU_CAP_SSE2) ? ((caps&CPU_CAP_SSE2) ? " +SSE2" : " -SSE2") : ""),
  985. ((capfilter&CPU_CAP_SSE3) ? ((caps&CPU_CAP_SSE3) ? " +SSE3" : " -SSE3") : ""),
  986. ((capfilter&CPU_CAP_SSE4_1) ? ((caps&CPU_CAP_SSE4_1) ? " +SSE4.1" : " -SSE4.1") : ""),
  987. ((capfilter&CPU_CAP_NEON) ? ((caps&CPU_CAP_NEON) ? " +NEON" : " -NEON") : ""),
  988. ((!capfilter) ? " -none-" : ""));
  989. CPUCapFlags = caps & capfilter;
  990. }
  991. if(auto priopt = ConfigValueInt(nullptr, nullptr, "rt-prio"))
  992. RTPrioLevel = *priopt;
  993. aluInit();
  994. aluInitMixer();
  995. auto traperr = al::getenv("ALSOFT_TRAP_ERROR");
  996. if(traperr && (al::strcasecmp(traperr->c_str(), "true") == 0
  997. || std::strtol(traperr->c_str(), nullptr, 0) == 1))
  998. {
  999. TrapALError = true;
  1000. TrapALCError = true;
  1001. }
  1002. else
  1003. {
  1004. traperr = al::getenv("ALSOFT_TRAP_AL_ERROR");
  1005. if(traperr)
  1006. TrapALError = al::strcasecmp(traperr->c_str(), "true") == 0
  1007. || strtol(traperr->c_str(), nullptr, 0) == 1;
  1008. else
  1009. TrapALError = !!GetConfigValueBool(nullptr, nullptr, "trap-al-error", false);
  1010. traperr = al::getenv("ALSOFT_TRAP_ALC_ERROR");
  1011. if(traperr)
  1012. TrapALCError = al::strcasecmp(traperr->c_str(), "true") == 0
  1013. || strtol(traperr->c_str(), nullptr, 0) == 1;
  1014. else
  1015. TrapALCError = !!GetConfigValueBool(nullptr, nullptr, "trap-alc-error", false);
  1016. }
  1017. if(auto boostopt = ConfigValueFloat(nullptr, "reverb", "boost"))
  1018. {
  1019. const float valf{std::isfinite(*boostopt) ? clampf(*boostopt, -24.0f, 24.0f) : 0.0f};
  1020. ReverbBoost *= std::pow(10.0f, valf / 20.0f);
  1021. }
  1022. auto BackendListEnd = std::end(BackendList);
  1023. auto devopt = al::getenv("ALSOFT_DRIVERS");
  1024. if(devopt || (devopt=ConfigValueStr(nullptr, nullptr, "drivers")))
  1025. {
  1026. auto backendlist_cur = std::begin(BackendList);
  1027. bool endlist{true};
  1028. const char *next{devopt->c_str()};
  1029. do {
  1030. const char *devs{next};
  1031. while(isspace(devs[0]))
  1032. devs++;
  1033. next = strchr(devs, ',');
  1034. const bool delitem{devs[0] == '-'};
  1035. if(devs[0] == '-') devs++;
  1036. if(!devs[0] || devs[0] == ',')
  1037. {
  1038. endlist = false;
  1039. continue;
  1040. }
  1041. endlist = true;
  1042. size_t len{next ? (static_cast<size_t>(next-devs)) : strlen(devs)};
  1043. while(len > 0 && isspace(devs[len-1])) --len;
  1044. #ifdef HAVE_WASAPI
  1045. /* HACK: For backwards compatibility, convert backend references of
  1046. * mmdevapi to wasapi. This should eventually be removed.
  1047. */
  1048. if(len == 8 && strncmp(devs, "mmdevapi", len) == 0)
  1049. {
  1050. devs = "wasapi";
  1051. len = 6;
  1052. }
  1053. #endif
  1054. auto find_backend = [devs,len](const BackendInfo &backend) -> bool
  1055. { return len == strlen(backend.name) && strncmp(backend.name, devs, len) == 0; };
  1056. auto this_backend = std::find_if(std::begin(BackendList), BackendListEnd,
  1057. find_backend);
  1058. if(this_backend == BackendListEnd)
  1059. continue;
  1060. if(delitem)
  1061. BackendListEnd = std::move(this_backend+1, BackendListEnd, this_backend);
  1062. else
  1063. backendlist_cur = std::rotate(backendlist_cur, this_backend, this_backend+1);
  1064. } while(next++);
  1065. if(endlist)
  1066. BackendListEnd = backendlist_cur;
  1067. }
  1068. auto init_backend = [](BackendInfo &backend) -> void
  1069. {
  1070. if(PlaybackFactory && CaptureFactory)
  1071. return;
  1072. BackendFactory &factory = backend.getFactory();
  1073. if(!factory.init())
  1074. {
  1075. WARN("Failed to initialize backend \"%s\"\n", backend.name);
  1076. return;
  1077. }
  1078. TRACE("Initialized backend \"%s\"\n", backend.name);
  1079. if(!PlaybackFactory && factory.querySupport(BackendType::Playback))
  1080. {
  1081. PlaybackFactory = &factory;
  1082. TRACE("Added \"%s\" for playback\n", backend.name);
  1083. }
  1084. if(!CaptureFactory && factory.querySupport(BackendType::Capture))
  1085. {
  1086. CaptureFactory = &factory;
  1087. TRACE("Added \"%s\" for capture\n", backend.name);
  1088. }
  1089. };
  1090. std::for_each(std::begin(BackendList), BackendListEnd, init_backend);
  1091. LoopbackBackendFactory::getFactory().init();
  1092. if(!PlaybackFactory)
  1093. WARN("No playback backend available!\n");
  1094. if(!CaptureFactory)
  1095. WARN("No capture backend available!\n");
  1096. if(auto exclopt = ConfigValueStr(nullptr, nullptr, "excludefx"))
  1097. {
  1098. const char *next{exclopt->c_str()};
  1099. do {
  1100. const char *str{next};
  1101. next = strchr(str, ',');
  1102. if(!str[0] || next == str)
  1103. continue;
  1104. size_t len{next ? static_cast<size_t>(next-str) : strlen(str)};
  1105. for(const EffectList &effectitem : gEffectList)
  1106. {
  1107. if(len == strlen(effectitem.name) &&
  1108. strncmp(effectitem.name, str, len) == 0)
  1109. DisabledEffects[effectitem.type] = true;
  1110. }
  1111. } while(next++);
  1112. }
  1113. InitEffect(&DefaultEffect);
  1114. auto defrevopt = al::getenv("ALSOFT_DEFAULT_REVERB");
  1115. if(defrevopt || (defrevopt=ConfigValueStr(nullptr, nullptr, "default-reverb")))
  1116. LoadReverbPreset(defrevopt->c_str(), &DefaultEffect);
  1117. }
  1118. #define DO_INITCONFIG() std::call_once(alc_config_once, [](){alc_initconfig();})
  1119. /************************************************
  1120. * Device enumeration
  1121. ************************************************/
  1122. void ProbeAllDevicesList()
  1123. {
  1124. DO_INITCONFIG();
  1125. std::lock_guard<std::recursive_mutex> _{ListLock};
  1126. if(!PlaybackFactory)
  1127. decltype(alcAllDevicesList){}.swap(alcAllDevicesList);
  1128. else
  1129. {
  1130. std::string names{PlaybackFactory->probe(BackendType::Playback)};
  1131. if(names.empty()) names += '\0';
  1132. names.swap(alcAllDevicesList);
  1133. }
  1134. }
  1135. void ProbeCaptureDeviceList()
  1136. {
  1137. DO_INITCONFIG();
  1138. std::lock_guard<std::recursive_mutex> _{ListLock};
  1139. if(!CaptureFactory)
  1140. decltype(alcCaptureDeviceList){}.swap(alcCaptureDeviceList);
  1141. else
  1142. {
  1143. std::string names{CaptureFactory->probe(BackendType::Capture)};
  1144. if(names.empty()) names += '\0';
  1145. names.swap(alcCaptureDeviceList);
  1146. }
  1147. }
  1148. } // namespace
  1149. /* Mixing thread piority level */
  1150. int RTPrioLevel{1};
  1151. FILE *gLogFile{stderr};
  1152. #ifdef _DEBUG
  1153. LogLevel gLogLevel{LogLevel::Warning};
  1154. #else
  1155. LogLevel gLogLevel{LogLevel::Error};
  1156. #endif
  1157. /************************************************
  1158. * Library initialization
  1159. ************************************************/
  1160. #if defined(_WIN32) && !defined(AL_LIBTYPE_STATIC)
  1161. BOOL APIENTRY DllMain(HINSTANCE module, DWORD reason, LPVOID /*reserved*/)
  1162. {
  1163. switch(reason)
  1164. {
  1165. case DLL_PROCESS_ATTACH:
  1166. /* Pin the DLL so we won't get unloaded until the process terminates */
  1167. GetModuleHandleExW(GET_MODULE_HANDLE_EX_FLAG_PIN | GET_MODULE_HANDLE_EX_FLAG_FROM_ADDRESS,
  1168. reinterpret_cast<WCHAR*>(module), &module);
  1169. break;
  1170. }
  1171. return TRUE;
  1172. }
  1173. #endif
  1174. /************************************************
  1175. * Device format information
  1176. ************************************************/
  1177. namespace {
  1178. struct DevFmtPair { DevFmtChannels chans; DevFmtType type; };
  1179. al::optional<DevFmtPair> DecomposeDevFormat(ALenum format)
  1180. {
  1181. static const struct {
  1182. ALenum format;
  1183. DevFmtChannels channels;
  1184. DevFmtType type;
  1185. } list[] = {
  1186. { AL_FORMAT_MONO8, DevFmtMono, DevFmtUByte },
  1187. { AL_FORMAT_MONO16, DevFmtMono, DevFmtShort },
  1188. { AL_FORMAT_MONO_FLOAT32, DevFmtMono, DevFmtFloat },
  1189. { AL_FORMAT_STEREO8, DevFmtStereo, DevFmtUByte },
  1190. { AL_FORMAT_STEREO16, DevFmtStereo, DevFmtShort },
  1191. { AL_FORMAT_STEREO_FLOAT32, DevFmtStereo, DevFmtFloat },
  1192. { AL_FORMAT_QUAD8, DevFmtQuad, DevFmtUByte },
  1193. { AL_FORMAT_QUAD16, DevFmtQuad, DevFmtShort },
  1194. { AL_FORMAT_QUAD32, DevFmtQuad, DevFmtFloat },
  1195. { AL_FORMAT_51CHN8, DevFmtX51, DevFmtUByte },
  1196. { AL_FORMAT_51CHN16, DevFmtX51, DevFmtShort },
  1197. { AL_FORMAT_51CHN32, DevFmtX51, DevFmtFloat },
  1198. { AL_FORMAT_61CHN8, DevFmtX61, DevFmtUByte },
  1199. { AL_FORMAT_61CHN16, DevFmtX61, DevFmtShort },
  1200. { AL_FORMAT_61CHN32, DevFmtX61, DevFmtFloat },
  1201. { AL_FORMAT_71CHN8, DevFmtX71, DevFmtUByte },
  1202. { AL_FORMAT_71CHN16, DevFmtX71, DevFmtShort },
  1203. { AL_FORMAT_71CHN32, DevFmtX71, DevFmtFloat },
  1204. };
  1205. for(const auto &item : list)
  1206. {
  1207. if(item.format == format)
  1208. return al::make_optional(DevFmtPair{item.channels, item.type});
  1209. }
  1210. return al::nullopt;
  1211. }
  1212. al::optional<DevFmtType> DevFmtTypeFromEnum(ALCenum type)
  1213. {
  1214. switch(type)
  1215. {
  1216. case ALC_BYTE_SOFT: return al::make_optional(DevFmtByte);
  1217. case ALC_UNSIGNED_BYTE_SOFT: return al::make_optional(DevFmtUByte);
  1218. case ALC_SHORT_SOFT: return al::make_optional(DevFmtShort);
  1219. case ALC_UNSIGNED_SHORT_SOFT: return al::make_optional(DevFmtUShort);
  1220. case ALC_INT_SOFT: return al::make_optional(DevFmtInt);
  1221. case ALC_UNSIGNED_INT_SOFT: return al::make_optional(DevFmtUInt);
  1222. case ALC_FLOAT_SOFT: return al::make_optional(DevFmtFloat);
  1223. }
  1224. WARN("Unsupported format type: 0x%04x\n", type);
  1225. return al::nullopt;
  1226. }
  1227. ALCenum EnumFromDevFmt(DevFmtType type)
  1228. {
  1229. switch(type)
  1230. {
  1231. case DevFmtByte: return ALC_BYTE_SOFT;
  1232. case DevFmtUByte: return ALC_UNSIGNED_BYTE_SOFT;
  1233. case DevFmtShort: return ALC_SHORT_SOFT;
  1234. case DevFmtUShort: return ALC_UNSIGNED_SHORT_SOFT;
  1235. case DevFmtInt: return ALC_INT_SOFT;
  1236. case DevFmtUInt: return ALC_UNSIGNED_INT_SOFT;
  1237. case DevFmtFloat: return ALC_FLOAT_SOFT;
  1238. }
  1239. throw std::runtime_error{"Invalid DevFmtType: "+std::to_string(int(type))};
  1240. }
  1241. al::optional<DevFmtChannels> DevFmtChannelsFromEnum(ALCenum channels)
  1242. {
  1243. switch(channels)
  1244. {
  1245. case ALC_MONO_SOFT: return al::make_optional(DevFmtMono);
  1246. case ALC_STEREO_SOFT: return al::make_optional(DevFmtStereo);
  1247. case ALC_QUAD_SOFT: return al::make_optional(DevFmtQuad);
  1248. case ALC_5POINT1_SOFT: return al::make_optional(DevFmtX51);
  1249. case ALC_6POINT1_SOFT: return al::make_optional(DevFmtX61);
  1250. case ALC_7POINT1_SOFT: return al::make_optional(DevFmtX71);
  1251. case ALC_BFORMAT3D_SOFT: return al::make_optional(DevFmtAmbi3D);
  1252. }
  1253. WARN("Unsupported format channels: 0x%04x\n", channels);
  1254. return al::nullopt;
  1255. }
  1256. ALCenum EnumFromDevFmt(DevFmtChannels channels)
  1257. {
  1258. switch(channels)
  1259. {
  1260. case DevFmtMono: return ALC_MONO_SOFT;
  1261. case DevFmtStereo: return ALC_STEREO_SOFT;
  1262. case DevFmtQuad: return ALC_QUAD_SOFT;
  1263. case DevFmtX51: /* fall-through */
  1264. case DevFmtX51Rear: return ALC_5POINT1_SOFT;
  1265. case DevFmtX61: return ALC_6POINT1_SOFT;
  1266. case DevFmtX71: return ALC_7POINT1_SOFT;
  1267. case DevFmtAmbi3D: return ALC_BFORMAT3D_SOFT;
  1268. }
  1269. throw std::runtime_error{"Invalid DevFmtChannels: "+std::to_string(int(channels))};
  1270. }
  1271. al::optional<DevAmbiLayout> DevAmbiLayoutFromEnum(ALCenum layout)
  1272. {
  1273. switch(layout)
  1274. {
  1275. case ALC_FUMA_SOFT: return al::make_optional(DevAmbiLayout::FuMa);
  1276. case ALC_ACN_SOFT: return al::make_optional(DevAmbiLayout::ACN);
  1277. }
  1278. WARN("Unsupported ambisonic layout: 0x%04x\n", layout);
  1279. return al::nullopt;
  1280. }
  1281. ALCenum EnumFromDevAmbi(DevAmbiLayout layout)
  1282. {
  1283. switch(layout)
  1284. {
  1285. case DevAmbiLayout::FuMa: return ALC_FUMA_SOFT;
  1286. case DevAmbiLayout::ACN: return ALC_ACN_SOFT;
  1287. }
  1288. throw std::runtime_error{"Invalid DevAmbiLayout: "+std::to_string(int(layout))};
  1289. }
  1290. al::optional<DevAmbiScaling> DevAmbiScalingFromEnum(ALCenum scaling)
  1291. {
  1292. switch(scaling)
  1293. {
  1294. case ALC_FUMA_SOFT: return al::make_optional(DevAmbiScaling::FuMa);
  1295. case ALC_SN3D_SOFT: return al::make_optional(DevAmbiScaling::SN3D);
  1296. case ALC_N3D_SOFT: return al::make_optional(DevAmbiScaling::N3D);
  1297. }
  1298. WARN("Unsupported ambisonic scaling: 0x%04x\n", scaling);
  1299. return al::nullopt;
  1300. }
  1301. ALCenum EnumFromDevAmbi(DevAmbiScaling scaling)
  1302. {
  1303. switch(scaling)
  1304. {
  1305. case DevAmbiScaling::FuMa: return ALC_FUMA_SOFT;
  1306. case DevAmbiScaling::SN3D: return ALC_SN3D_SOFT;
  1307. case DevAmbiScaling::N3D: return ALC_N3D_SOFT;
  1308. }
  1309. throw std::runtime_error{"Invalid DevAmbiScaling: "+std::to_string(int(scaling))};
  1310. }
  1311. /* Downmixing channel arrays, to map the given format's missing channels to
  1312. * existing ones. Based on Wine's DSound downmix values, which are based on
  1313. * PulseAudio's.
  1314. */
  1315. const std::array<InputRemixMap,7> MonoDownmix{{
  1316. { FrontLeft, {{{FrontCenter, 0.5f}, {LFE, 0.0f}}} },
  1317. { FrontRight, {{{FrontCenter, 0.5f}, {LFE, 0.0f}}} },
  1318. { SideLeft, {{{FrontCenter, 0.5f/9.0f}, {LFE, 0.0f}}} },
  1319. { SideRight, {{{FrontCenter, 0.5f/9.0f}, {LFE, 0.0f}}} },
  1320. { BackLeft, {{{FrontCenter, 0.5f/9.0f}, {LFE, 0.0f}}} },
  1321. { BackRight, {{{FrontCenter, 0.5f/9.0f}, {LFE, 0.0f}}} },
  1322. { BackCenter, {{{FrontCenter, 1.0f/9.0f}, {LFE, 0.0f}}} },
  1323. }};
  1324. const std::array<InputRemixMap,6> StereoDownmix{{
  1325. { FrontCenter, {{{FrontLeft, 0.5f}, {FrontRight, 0.5f}}} },
  1326. { SideLeft, {{{FrontLeft, 1.0f/9.0f}, {FrontRight, 0.0f}}} },
  1327. { SideRight, {{{FrontLeft, 0.0f}, {FrontRight, 1.0f/9.0f}}} },
  1328. { BackLeft, {{{FrontLeft, 1.0f/9.0f}, {FrontRight, 0.0f}}} },
  1329. { BackRight, {{{FrontLeft, 0.0f}, {FrontRight, 1.0f/9.0f}}} },
  1330. { BackCenter, {{{FrontLeft, 0.5f/9.0f}, {FrontRight, 0.5f/9.0f}}} },
  1331. }};
  1332. const std::array<InputRemixMap,4> QuadDownmix{{
  1333. { FrontCenter, {{{FrontLeft, 0.5f}, {FrontRight, 0.5f}}} },
  1334. { SideLeft, {{{FrontLeft, 0.5f}, {BackLeft, 0.5f}}} },
  1335. { SideRight, {{{FrontRight, 0.5f}, {BackRight, 0.5f}}} },
  1336. { BackCenter, {{{BackLeft, 0.5f}, {BackRight, 0.5f}}} },
  1337. }};
  1338. const std::array<InputRemixMap,3> X51Downmix{{
  1339. { BackLeft, {{{SideLeft, 1.0f}, {SideRight, 0.0f}}} },
  1340. { BackRight, {{{SideLeft, 0.0f}, {SideRight, 1.0f}}} },
  1341. { BackCenter, {{{SideLeft, 0.5f}, {SideRight, 0.5f}}} },
  1342. }};
  1343. const std::array<InputRemixMap,3> X51RearDownmix{{
  1344. { SideLeft, {{{BackLeft, 1.0f}, {BackRight, 0.0f}}} },
  1345. { SideRight, {{{BackLeft, 0.0f}, {BackRight, 1.0f}}} },
  1346. { BackCenter, {{{BackLeft, 0.5f}, {BackRight, 0.5f}}} },
  1347. }};
  1348. const std::array<InputRemixMap,2> X61Downmix{{
  1349. { BackLeft, {{{BackCenter, 0.5f}, {SideLeft, 0.5f}}} },
  1350. { BackRight, {{{BackCenter, 0.5f}, {SideRight, 0.5f}}} },
  1351. }};
  1352. const std::array<InputRemixMap,1> X71Downmix{{
  1353. { BackCenter, {{{BackLeft, 0.5f}, {BackRight, 0.5f}}} },
  1354. }};
  1355. } // namespace
  1356. /************************************************
  1357. * Miscellaneous ALC helpers
  1358. ************************************************/
  1359. void ALCcontext::processUpdates()
  1360. {
  1361. std::lock_guard<std::mutex> _{mPropLock};
  1362. if(mDeferUpdates.exchange(false, std::memory_order_acq_rel))
  1363. {
  1364. /* Tell the mixer to stop applying updates, then wait for any active
  1365. * updating to finish, before providing updates.
  1366. */
  1367. mHoldUpdates.store(true, std::memory_order_release);
  1368. while((mUpdateCount.load(std::memory_order_acquire)&1) != 0) {
  1369. /* busy-wait */
  1370. }
  1371. if(!mPropsClean.test_and_set(std::memory_order_acq_rel))
  1372. UpdateContextProps(this);
  1373. if(!mListener.PropsClean.test_and_set(std::memory_order_acq_rel))
  1374. UpdateListenerProps(this);
  1375. UpdateAllEffectSlotProps(this);
  1376. UpdateAllSourceProps(this);
  1377. /* Now with all updates declared, let the mixer continue applying them
  1378. * so they all happen at once.
  1379. */
  1380. mHoldUpdates.store(false, std::memory_order_release);
  1381. }
  1382. }
  1383. void ALCcontext::allocVoiceChanges(size_t addcount)
  1384. {
  1385. constexpr size_t clustersize{128};
  1386. /* Convert element count to cluster count. */
  1387. addcount = (addcount+(clustersize-1)) / clustersize;
  1388. while(addcount)
  1389. {
  1390. VoiceChangeCluster cluster{std::make_unique<VoiceChange[]>(clustersize)};
  1391. for(size_t i{1};i < clustersize;++i)
  1392. cluster[i-1].mNext.store(std::addressof(cluster[i]), std::memory_order_relaxed);
  1393. cluster[clustersize-1].mNext.store(mVoiceChangeTail, std::memory_order_relaxed);
  1394. mVoiceChangeClusters.emplace_back(std::move(cluster));
  1395. mVoiceChangeTail = mVoiceChangeClusters.back().get();
  1396. --addcount;
  1397. }
  1398. }
  1399. void ALCcontext::allocVoices(size_t addcount)
  1400. {
  1401. constexpr size_t clustersize{32};
  1402. /* Convert element count to cluster count. */
  1403. addcount = (addcount+(clustersize-1)) / clustersize;
  1404. if(addcount >= std::numeric_limits<int>::max()/clustersize - mVoiceClusters.size())
  1405. throw std::runtime_error{"Allocating too many voices"};
  1406. const size_t totalcount{(mVoiceClusters.size()+addcount) * clustersize};
  1407. TRACE("Increasing allocated voices to %zu\n", totalcount);
  1408. auto newarray = VoiceArray::Create(totalcount);
  1409. while(addcount)
  1410. {
  1411. mVoiceClusters.emplace_back(std::make_unique<Voice[]>(clustersize));
  1412. --addcount;
  1413. }
  1414. auto voice_iter = newarray->begin();
  1415. for(VoiceCluster &cluster : mVoiceClusters)
  1416. {
  1417. for(size_t i{0};i < clustersize;++i)
  1418. *(voice_iter++) = &cluster[i];
  1419. }
  1420. if(auto *oldvoices = mVoices.exchange(newarray.release(), std::memory_order_acq_rel))
  1421. {
  1422. mDevice->waitForMix();
  1423. delete oldvoices;
  1424. }
  1425. }
  1426. /** Stores the latest ALC device error. */
  1427. static void alcSetError(ALCdevice *device, ALCenum errorCode)
  1428. {
  1429. WARN("Error generated on device %p, code 0x%04x\n", voidp{device}, errorCode);
  1430. if(TrapALCError)
  1431. {
  1432. #ifdef _WIN32
  1433. /* DebugBreak() will cause an exception if there is no debugger */
  1434. if(IsDebuggerPresent())
  1435. DebugBreak();
  1436. #elif defined(SIGTRAP)
  1437. raise(SIGTRAP);
  1438. #endif
  1439. }
  1440. if(device)
  1441. device->LastError.store(errorCode);
  1442. else
  1443. LastNullDeviceError.store(errorCode);
  1444. }
  1445. static std::unique_ptr<Compressor> CreateDeviceLimiter(const ALCdevice *device, const float threshold)
  1446. {
  1447. constexpr bool AutoKnee{true};
  1448. constexpr bool AutoAttack{true};
  1449. constexpr bool AutoRelease{true};
  1450. constexpr bool AutoPostGain{true};
  1451. constexpr bool AutoDeclip{true};
  1452. constexpr float LookAheadTime{0.001f};
  1453. constexpr float HoldTime{0.002f};
  1454. constexpr float PreGainDb{0.0f};
  1455. constexpr float PostGainDb{0.0f};
  1456. constexpr float Ratio{std::numeric_limits<float>::infinity()};
  1457. constexpr float KneeDb{0.0f};
  1458. constexpr float AttackTime{0.02f};
  1459. constexpr float ReleaseTime{0.2f};
  1460. return Compressor::Create(device->RealOut.Buffer.size(), static_cast<float>(device->Frequency),
  1461. AutoKnee, AutoAttack, AutoRelease, AutoPostGain, AutoDeclip, LookAheadTime, HoldTime,
  1462. PreGainDb, PostGainDb, threshold, Ratio, KneeDb, AttackTime, ReleaseTime);
  1463. }
  1464. /**
  1465. * Updates the device's base clock time with however many samples have been
  1466. * done. This is used so frequency changes on the device don't cause the time
  1467. * to jump forward or back. Must not be called while the device is running/
  1468. * mixing.
  1469. */
  1470. static inline void UpdateClockBase(ALCdevice *device)
  1471. {
  1472. IncrementRef(device->MixCount);
  1473. device->ClockBase += nanoseconds{seconds{device->SamplesDone}} / device->Frequency;
  1474. device->SamplesDone = 0;
  1475. IncrementRef(device->MixCount);
  1476. }
  1477. /**
  1478. * Updates device parameters according to the attribute list (caller is
  1479. * responsible for holding the list lock).
  1480. */
  1481. static ALCenum UpdateDeviceParams(ALCdevice *device, const int *attrList)
  1482. {
  1483. HrtfRequestMode hrtf_userreq{Hrtf_Default};
  1484. HrtfRequestMode hrtf_appreq{Hrtf_Default};
  1485. ALCenum gainLimiter{device->LimiterState};
  1486. uint new_sends{device->NumAuxSends};
  1487. DevFmtChannels oldChans;
  1488. DevFmtType oldType;
  1489. int hrtf_id{-1};
  1490. uint oldFreq;
  1491. if((!attrList || !attrList[0]) && device->Type == DeviceType::Loopback)
  1492. {
  1493. WARN("Missing attributes for loopback device\n");
  1494. return ALC_INVALID_VALUE;
  1495. }
  1496. // Check for attributes
  1497. if(attrList && attrList[0])
  1498. {
  1499. uint numMono{device->NumMonoSources};
  1500. uint numStereo{device->NumStereoSources};
  1501. uint numSends{device->NumAuxSends};
  1502. al::optional<DevFmtChannels> optchans;
  1503. al::optional<DevFmtType> opttype;
  1504. al::optional<DevAmbiLayout> optlayout;
  1505. al::optional<DevAmbiScaling> optscale;
  1506. uint aorder{0u};
  1507. uint freq{0u};
  1508. #define TRACE_ATTR(a, v) TRACE("%s = %d\n", #a, v)
  1509. size_t attrIdx{0};
  1510. while(attrList[attrIdx])
  1511. {
  1512. switch(attrList[attrIdx])
  1513. {
  1514. case ALC_FORMAT_CHANNELS_SOFT:
  1515. TRACE_ATTR(ALC_FORMAT_CHANNELS_SOFT, attrList[attrIdx + 1]);
  1516. optchans = DevFmtChannelsFromEnum(attrList[attrIdx + 1]);
  1517. break;
  1518. case ALC_FORMAT_TYPE_SOFT:
  1519. TRACE_ATTR(ALC_FORMAT_TYPE_SOFT, attrList[attrIdx + 1]);
  1520. opttype = DevFmtTypeFromEnum(attrList[attrIdx + 1]);
  1521. break;
  1522. case ALC_FREQUENCY:
  1523. freq = static_cast<uint>(attrList[attrIdx + 1]);
  1524. TRACE_ATTR(ALC_FREQUENCY, freq);
  1525. break;
  1526. case ALC_AMBISONIC_LAYOUT_SOFT:
  1527. TRACE_ATTR(ALC_AMBISONIC_LAYOUT_SOFT, attrList[attrIdx + 1]);
  1528. optlayout = DevAmbiLayoutFromEnum(attrList[attrIdx + 1]);
  1529. break;
  1530. case ALC_AMBISONIC_SCALING_SOFT:
  1531. TRACE_ATTR(ALC_AMBISONIC_SCALING_SOFT, attrList[attrIdx + 1]);
  1532. optscale = DevAmbiScalingFromEnum(attrList[attrIdx + 1]);
  1533. break;
  1534. case ALC_AMBISONIC_ORDER_SOFT:
  1535. aorder = static_cast<uint>(attrList[attrIdx + 1]);
  1536. TRACE_ATTR(ALC_AMBISONIC_ORDER_SOFT, aorder);
  1537. break;
  1538. case ALC_MONO_SOURCES:
  1539. numMono = static_cast<uint>(attrList[attrIdx + 1]);
  1540. TRACE_ATTR(ALC_MONO_SOURCES, numMono);
  1541. if(numMono > INT_MAX) numMono = 0;
  1542. break;
  1543. case ALC_STEREO_SOURCES:
  1544. numStereo = static_cast<uint>(attrList[attrIdx + 1]);
  1545. TRACE_ATTR(ALC_STEREO_SOURCES, numStereo);
  1546. if(numStereo > INT_MAX) numStereo = 0;
  1547. break;
  1548. case ALC_MAX_AUXILIARY_SENDS:
  1549. numSends = static_cast<uint>(attrList[attrIdx + 1]);
  1550. TRACE_ATTR(ALC_MAX_AUXILIARY_SENDS, numSends);
  1551. if(numSends > INT_MAX) numSends = 0;
  1552. else numSends = minu(numSends, MAX_SENDS);
  1553. break;
  1554. case ALC_HRTF_SOFT:
  1555. TRACE_ATTR(ALC_HRTF_SOFT, attrList[attrIdx + 1]);
  1556. if(attrList[attrIdx + 1] == ALC_FALSE)
  1557. hrtf_appreq = Hrtf_Disable;
  1558. else if(attrList[attrIdx + 1] == ALC_TRUE)
  1559. hrtf_appreq = Hrtf_Enable;
  1560. else
  1561. hrtf_appreq = Hrtf_Default;
  1562. break;
  1563. case ALC_HRTF_ID_SOFT:
  1564. hrtf_id = attrList[attrIdx + 1];
  1565. TRACE_ATTR(ALC_HRTF_ID_SOFT, hrtf_id);
  1566. break;
  1567. case ALC_OUTPUT_LIMITER_SOFT:
  1568. gainLimiter = attrList[attrIdx + 1];
  1569. TRACE_ATTR(ALC_OUTPUT_LIMITER_SOFT, gainLimiter);
  1570. break;
  1571. default:
  1572. TRACE("0x%04X = %d (0x%x)\n", attrList[attrIdx],
  1573. attrList[attrIdx + 1], attrList[attrIdx + 1]);
  1574. break;
  1575. }
  1576. attrIdx += 2;
  1577. }
  1578. #undef TRACE_ATTR
  1579. const bool loopback{device->Type == DeviceType::Loopback};
  1580. if(loopback)
  1581. {
  1582. if(!optchans || !opttype)
  1583. return ALC_INVALID_VALUE;
  1584. if(freq < MIN_OUTPUT_RATE || freq > MAX_OUTPUT_RATE)
  1585. return ALC_INVALID_VALUE;
  1586. if(*optchans == DevFmtAmbi3D)
  1587. {
  1588. if(!optlayout || !optscale)
  1589. return ALC_INVALID_VALUE;
  1590. if(aorder < 1 || aorder > MaxAmbiOrder)
  1591. return ALC_INVALID_VALUE;
  1592. if((*optlayout == DevAmbiLayout::FuMa || *optscale == DevAmbiScaling::FuMa)
  1593. && aorder > 3)
  1594. return ALC_INVALID_VALUE;
  1595. }
  1596. }
  1597. /* If a context is already running on the device, stop playback so the
  1598. * device attributes can be updated.
  1599. */
  1600. if(device->Flags.test(DeviceRunning))
  1601. device->Backend->stop();
  1602. device->Flags.reset(DeviceRunning);
  1603. UpdateClockBase(device);
  1604. const char *devname{nullptr};
  1605. if(loopback)
  1606. {
  1607. device->Frequency = freq;
  1608. device->FmtChans = *optchans;
  1609. device->FmtType = *opttype;
  1610. if(device->FmtChans == DevFmtAmbi3D)
  1611. {
  1612. device->mAmbiOrder = aorder;
  1613. device->mAmbiLayout = *optlayout;
  1614. device->mAmbiScale = *optscale;
  1615. }
  1616. }
  1617. else
  1618. {
  1619. devname = device->DeviceName.c_str();
  1620. device->BufferSize = DEFAULT_UPDATE_SIZE * DEFAULT_NUM_UPDATES;
  1621. device->UpdateSize = DEFAULT_UPDATE_SIZE;
  1622. device->Frequency = DEFAULT_OUTPUT_RATE;
  1623. freq = ConfigValueUInt(devname, nullptr, "frequency").value_or(freq);
  1624. if(freq < 1)
  1625. device->Flags.reset(FrequencyRequest);
  1626. else
  1627. {
  1628. freq = clampu(freq, MIN_OUTPUT_RATE, MAX_OUTPUT_RATE);
  1629. const double scale{static_cast<double>(freq) / device->Frequency};
  1630. device->UpdateSize = static_cast<uint>(device->UpdateSize*scale + 0.5);
  1631. device->BufferSize = static_cast<uint>(device->BufferSize*scale + 0.5);
  1632. device->Frequency = freq;
  1633. device->Flags.set(FrequencyRequest);
  1634. }
  1635. if(auto persizeopt = ConfigValueUInt(devname, nullptr, "period_size"))
  1636. device->UpdateSize = clampu(*persizeopt, 64, 8192);
  1637. if(auto peropt = ConfigValueUInt(devname, nullptr, "periods"))
  1638. device->BufferSize = device->UpdateSize * clampu(*peropt, 2, 16);
  1639. else
  1640. device->BufferSize = maxu(device->BufferSize, device->UpdateSize*2);
  1641. }
  1642. if(numMono > INT_MAX-numStereo)
  1643. numMono = INT_MAX-numStereo;
  1644. numMono += numStereo;
  1645. if(auto srcsopt = ConfigValueUInt(devname, nullptr, "sources"))
  1646. {
  1647. if(*srcsopt <= 0) numMono = 256;
  1648. else numMono = *srcsopt;
  1649. }
  1650. else
  1651. numMono = maxu(numMono, 256);
  1652. numStereo = minu(numStereo, numMono);
  1653. numMono -= numStereo;
  1654. device->SourcesMax = numMono + numStereo;
  1655. device->NumMonoSources = numMono;
  1656. device->NumStereoSources = numStereo;
  1657. if(auto sendsopt = ConfigValueInt(devname, nullptr, "sends"))
  1658. new_sends = minu(numSends, static_cast<uint>(clampi(*sendsopt, 0, MAX_SENDS)));
  1659. else
  1660. new_sends = numSends;
  1661. }
  1662. if(device->Flags.test(DeviceRunning))
  1663. return ALC_NO_ERROR;
  1664. device->AvgSpeakerDist = 0.0f;
  1665. device->Uhj_Encoder = nullptr;
  1666. device->AmbiDecoder = nullptr;
  1667. device->Bs2b = nullptr;
  1668. device->PostProcess = nullptr;
  1669. device->Limiter = nullptr;
  1670. device->ChannelDelays = nullptr;
  1671. std::fill(std::begin(device->HrtfAccumData), std::end(device->HrtfAccumData), float2{});
  1672. device->Dry.AmbiMap.fill(BFChannelConfig{});
  1673. device->Dry.Buffer = {};
  1674. std::fill(std::begin(device->NumChannelsPerOrder), std::end(device->NumChannelsPerOrder), 0u);
  1675. device->RealOut.RemixMap = {};
  1676. device->RealOut.ChannelIndex.fill(INVALID_CHANNEL_INDEX);
  1677. device->RealOut.Buffer = {};
  1678. device->MixBuffer.clear();
  1679. device->MixBuffer.shrink_to_fit();
  1680. UpdateClockBase(device);
  1681. device->FixedLatency = nanoseconds::zero();
  1682. device->DitherDepth = 0.0f;
  1683. device->DitherSeed = DitherRNGSeed;
  1684. /*************************************************************************
  1685. * Update device format request if HRTF is requested
  1686. */
  1687. device->HrtfStatus = ALC_HRTF_DISABLED_SOFT;
  1688. if(device->Type != DeviceType::Loopback)
  1689. {
  1690. if(auto hrtfopt = ConfigValueStr(device->DeviceName.c_str(), nullptr, "hrtf"))
  1691. {
  1692. const char *hrtf{hrtfopt->c_str()};
  1693. if(al::strcasecmp(hrtf, "true") == 0)
  1694. hrtf_userreq = Hrtf_Enable;
  1695. else if(al::strcasecmp(hrtf, "false") == 0)
  1696. hrtf_userreq = Hrtf_Disable;
  1697. else if(al::strcasecmp(hrtf, "auto") != 0)
  1698. ERR("Unexpected hrtf value: %s\n", hrtf);
  1699. }
  1700. if(hrtf_userreq == Hrtf_Enable || (hrtf_userreq != Hrtf_Disable && hrtf_appreq == Hrtf_Enable))
  1701. {
  1702. device->FmtChans = DevFmtStereo;
  1703. device->Flags.set(ChannelsRequest);
  1704. }
  1705. }
  1706. oldFreq = device->Frequency;
  1707. oldChans = device->FmtChans;
  1708. oldType = device->FmtType;
  1709. TRACE("Pre-reset: %s%s, %s%s, %s%uhz, %u / %u buffer\n",
  1710. device->Flags.test(ChannelsRequest)?"*":"", DevFmtChannelsString(device->FmtChans),
  1711. device->Flags.test(SampleTypeRequest)?"*":"", DevFmtTypeString(device->FmtType),
  1712. device->Flags.test(FrequencyRequest)?"*":"", device->Frequency,
  1713. device->UpdateSize, device->BufferSize);
  1714. try {
  1715. auto backend = device->Backend.get();
  1716. if(!backend->reset())
  1717. throw al::backend_exception{al::backend_error::DeviceError, "Device reset failure"};
  1718. }
  1719. catch(std::exception &e) {
  1720. device->handleDisconnect("%s", e.what());
  1721. return ALC_INVALID_DEVICE;
  1722. }
  1723. if(device->FmtChans != oldChans && device->Flags.test(ChannelsRequest))
  1724. {
  1725. ERR("Failed to set %s, got %s instead\n", DevFmtChannelsString(oldChans),
  1726. DevFmtChannelsString(device->FmtChans));
  1727. device->Flags.reset(ChannelsRequest);
  1728. }
  1729. if(device->FmtType != oldType && device->Flags.test(SampleTypeRequest))
  1730. {
  1731. ERR("Failed to set %s, got %s instead\n", DevFmtTypeString(oldType),
  1732. DevFmtTypeString(device->FmtType));
  1733. device->Flags.reset(SampleTypeRequest);
  1734. }
  1735. if(device->Frequency != oldFreq && device->Flags.test(FrequencyRequest))
  1736. {
  1737. WARN("Failed to set %uhz, got %uhz instead\n", oldFreq, device->Frequency);
  1738. device->Flags.reset(FrequencyRequest);
  1739. }
  1740. TRACE("Post-reset: %s, %s, %uhz, %u / %u buffer\n",
  1741. DevFmtChannelsString(device->FmtChans), DevFmtTypeString(device->FmtType),
  1742. device->Frequency, device->UpdateSize, device->BufferSize);
  1743. switch(device->FmtChans)
  1744. {
  1745. case DevFmtMono: device->RealOut.RemixMap = MonoDownmix; break;
  1746. case DevFmtStereo: device->RealOut.RemixMap = StereoDownmix; break;
  1747. case DevFmtQuad: device->RealOut.RemixMap = QuadDownmix; break;
  1748. case DevFmtX51: device->RealOut.RemixMap = X51Downmix; break;
  1749. case DevFmtX51Rear: device->RealOut.RemixMap = X51RearDownmix; break;
  1750. case DevFmtX61: device->RealOut.RemixMap = X61Downmix; break;
  1751. case DevFmtX71: device->RealOut.RemixMap = X71Downmix; break;
  1752. case DevFmtAmbi3D: break;
  1753. }
  1754. aluInitRenderer(device, hrtf_id, hrtf_appreq, hrtf_userreq);
  1755. device->NumAuxSends = new_sends;
  1756. TRACE("Max sources: %d (%d + %d), effect slots: %d, sends: %d\n",
  1757. device->SourcesMax, device->NumMonoSources, device->NumStereoSources,
  1758. device->AuxiliaryEffectSlotMax, device->NumAuxSends);
  1759. nanoseconds::rep sample_delay{0};
  1760. if(device->Uhj_Encoder)
  1761. sample_delay += Uhj2Encoder::sFilterSize;
  1762. if(device->mHrtfState)
  1763. sample_delay += HrtfDirectDelay;
  1764. if(auto *ambidec = device->AmbiDecoder.get())
  1765. {
  1766. if(ambidec->hasStablizer())
  1767. sample_delay += FrontStablizer::DelayLength;
  1768. }
  1769. if(GetConfigValueBool(device->DeviceName.c_str(), nullptr, "dither", 1))
  1770. {
  1771. int depth{ConfigValueInt(device->DeviceName.c_str(), nullptr, "dither-depth").value_or(0)};
  1772. if(depth <= 0)
  1773. {
  1774. switch(device->FmtType)
  1775. {
  1776. case DevFmtByte:
  1777. case DevFmtUByte:
  1778. depth = 8;
  1779. break;
  1780. case DevFmtShort:
  1781. case DevFmtUShort:
  1782. depth = 16;
  1783. break;
  1784. case DevFmtInt:
  1785. case DevFmtUInt:
  1786. case DevFmtFloat:
  1787. break;
  1788. }
  1789. }
  1790. if(depth > 0)
  1791. {
  1792. depth = clampi(depth, 2, 24);
  1793. device->DitherDepth = std::pow(2.0f, static_cast<float>(depth-1));
  1794. }
  1795. }
  1796. if(!(device->DitherDepth > 0.0f))
  1797. TRACE("Dithering disabled\n");
  1798. else
  1799. TRACE("Dithering enabled (%d-bit, %g)\n", float2int(std::log2(device->DitherDepth)+0.5f)+1,
  1800. device->DitherDepth);
  1801. device->LimiterState = gainLimiter;
  1802. if(auto limopt = ConfigValueBool(device->DeviceName.c_str(), nullptr, "output-limiter"))
  1803. gainLimiter = *limopt ? ALC_TRUE : ALC_FALSE;
  1804. /* Valid values for gainLimiter are ALC_DONT_CARE_SOFT, ALC_TRUE, and
  1805. * ALC_FALSE. For ALC_DONT_CARE_SOFT, use the limiter for integer-based
  1806. * output (where samples must be clamped), and don't for floating-point
  1807. * (which can take unclamped samples).
  1808. */
  1809. if(gainLimiter == ALC_DONT_CARE_SOFT)
  1810. {
  1811. switch(device->FmtType)
  1812. {
  1813. case DevFmtByte:
  1814. case DevFmtUByte:
  1815. case DevFmtShort:
  1816. case DevFmtUShort:
  1817. case DevFmtInt:
  1818. case DevFmtUInt:
  1819. gainLimiter = ALC_TRUE;
  1820. break;
  1821. case DevFmtFloat:
  1822. gainLimiter = ALC_FALSE;
  1823. break;
  1824. }
  1825. }
  1826. if(gainLimiter == ALC_FALSE)
  1827. TRACE("Output limiter disabled\n");
  1828. else
  1829. {
  1830. float thrshld{1.0f};
  1831. switch(device->FmtType)
  1832. {
  1833. case DevFmtByte:
  1834. case DevFmtUByte:
  1835. thrshld = 127.0f / 128.0f;
  1836. break;
  1837. case DevFmtShort:
  1838. case DevFmtUShort:
  1839. thrshld = 32767.0f / 32768.0f;
  1840. break;
  1841. case DevFmtInt:
  1842. case DevFmtUInt:
  1843. case DevFmtFloat:
  1844. break;
  1845. }
  1846. if(device->DitherDepth > 0.0f)
  1847. thrshld -= 1.0f / device->DitherDepth;
  1848. const float thrshld_dB{std::log10(thrshld) * 20.0f};
  1849. auto limiter = CreateDeviceLimiter(device, thrshld_dB);
  1850. sample_delay += limiter->getLookAhead();
  1851. device->Limiter = std::move(limiter);
  1852. TRACE("Output limiter enabled, %.4fdB limit\n", thrshld_dB);
  1853. }
  1854. /* Convert the sample delay from samples to nanosamples to nanoseconds. */
  1855. device->FixedLatency += nanoseconds{seconds{sample_delay}} / device->Frequency;
  1856. TRACE("Fixed device latency: %" PRId64 "ns\n", int64_t{device->FixedLatency.count()});
  1857. FPUCtl mixer_mode{};
  1858. for(ALCcontext *context : *device->mContexts.load())
  1859. {
  1860. auto GetEffectBuffer = [](ALbuffer *buffer) noexcept -> EffectState::Buffer
  1861. {
  1862. if(!buffer) return EffectState::Buffer{};
  1863. return EffectState::Buffer{buffer, buffer->mData};
  1864. };
  1865. std::unique_lock<std::mutex> proplock{context->mPropLock};
  1866. std::unique_lock<std::mutex> slotlock{context->mEffectSlotLock};
  1867. /* Clear out unused wet buffers. */
  1868. auto buffer_not_in_use = [](WetBufferPtr &wetbuffer) noexcept -> bool
  1869. { return !wetbuffer->mInUse; };
  1870. auto wetbuffer_iter = std::remove_if(context->mWetBuffers.begin(),
  1871. context->mWetBuffers.end(), buffer_not_in_use);
  1872. context->mWetBuffers.erase(wetbuffer_iter, context->mWetBuffers.end());
  1873. if(ALeffectslot *slot{context->mDefaultSlot.get()})
  1874. {
  1875. aluInitEffectPanning(&slot->mSlot, context);
  1876. EffectState *state{slot->Effect.State.get()};
  1877. state->mOutTarget = device->Dry.Buffer;
  1878. state->deviceUpdate(device, GetEffectBuffer(slot->Buffer));
  1879. slot->updateProps(context);
  1880. }
  1881. if(EffectSlotArray *curarray{context->mActiveAuxSlots.load(std::memory_order_relaxed)})
  1882. std::fill_n(curarray->end(), curarray->size(), nullptr);
  1883. for(auto &sublist : context->mEffectSlotList)
  1884. {
  1885. uint64_t usemask{~sublist.FreeMask};
  1886. while(usemask)
  1887. {
  1888. const int idx{al::countr_zero(usemask)};
  1889. ALeffectslot *slot{sublist.EffectSlots + idx};
  1890. usemask &= ~(1_u64 << idx);
  1891. aluInitEffectPanning(&slot->mSlot, context);
  1892. EffectState *state{slot->Effect.State.get()};
  1893. state->mOutTarget = device->Dry.Buffer;
  1894. state->deviceUpdate(device, GetEffectBuffer(slot->Buffer));
  1895. slot->updateProps(context);
  1896. }
  1897. }
  1898. slotlock.unlock();
  1899. const uint num_sends{device->NumAuxSends};
  1900. std::unique_lock<std::mutex> srclock{context->mSourceLock};
  1901. for(auto &sublist : context->mSourceList)
  1902. {
  1903. uint64_t usemask{~sublist.FreeMask};
  1904. while(usemask)
  1905. {
  1906. const int idx{al::countr_zero(usemask)};
  1907. ALsource *source{sublist.Sources + idx};
  1908. usemask &= ~(1_u64 << idx);
  1909. auto clear_send = [](ALsource::SendData &send) -> void
  1910. {
  1911. if(send.Slot)
  1912. DecrementRef(send.Slot->ref);
  1913. send.Slot = nullptr;
  1914. send.Gain = 1.0f;
  1915. send.GainHF = 1.0f;
  1916. send.HFReference = LOWPASSFREQREF;
  1917. send.GainLF = 1.0f;
  1918. send.LFReference = HIGHPASSFREQREF;
  1919. };
  1920. auto send_begin = source->Send.begin() + static_cast<ptrdiff_t>(num_sends);
  1921. std::for_each(send_begin, source->Send.end(), clear_send);
  1922. source->PropsClean.clear(std::memory_order_release);
  1923. }
  1924. }
  1925. /* Clear any pre-existing voice property structs, in case the number of
  1926. * auxiliary sends is changing. Active sources will have updates
  1927. * respecified in UpdateAllSourceProps.
  1928. */
  1929. VoicePropsItem *vprops{context->mFreeVoiceProps.exchange(nullptr, std::memory_order_acq_rel)};
  1930. while(vprops)
  1931. {
  1932. VoicePropsItem *next = vprops->next.load(std::memory_order_relaxed);
  1933. delete vprops;
  1934. vprops = next;
  1935. }
  1936. auto voicelist = context->getVoicesSpan();
  1937. for(Voice *voice : voicelist)
  1938. {
  1939. /* Clear extraneous property set sends. */
  1940. std::fill(std::begin(voice->mProps.Send)+num_sends, std::end(voice->mProps.Send),
  1941. VoiceProps::SendData{});
  1942. std::fill(voice->mSend.begin()+num_sends, voice->mSend.end(), Voice::TargetData{});
  1943. for(auto &chandata : voice->mChans)
  1944. {
  1945. std::fill(chandata.mWetParams.begin()+num_sends, chandata.mWetParams.end(),
  1946. SendParams{});
  1947. }
  1948. delete voice->mUpdate.exchange(nullptr, std::memory_order_acq_rel);
  1949. /* Force the voice to stopped if it was stopping. */
  1950. Voice::State vstate{Voice::Stopping};
  1951. voice->mPlayState.compare_exchange_strong(vstate, Voice::Stopped,
  1952. std::memory_order_acquire, std::memory_order_acquire);
  1953. if(voice->mSourceID.load(std::memory_order_relaxed) == 0u)
  1954. continue;
  1955. voice->mStep = 0;
  1956. voice->mFlags |= VoiceIsFading;
  1957. if(voice->mAmbiOrder && device->mAmbiOrder > voice->mAmbiOrder)
  1958. {
  1959. const uint8_t *OrderFromChan{(voice->mFmtChannels == FmtBFormat2D) ?
  1960. AmbiIndex::OrderFrom2DChannel().data() :
  1961. AmbiIndex::OrderFromChannel().data()};
  1962. const BandSplitter splitter{device->mXOverFreq /
  1963. static_cast<float>(device->Frequency)};
  1964. const auto scales = BFormatDec::GetHFOrderScales(voice->mAmbiOrder,
  1965. device->mAmbiOrder);
  1966. for(auto &chandata : voice->mChans)
  1967. {
  1968. chandata.mPrevSamples.fill(0.0f);
  1969. chandata.mAmbiScale = scales[*(OrderFromChan++)];
  1970. chandata.mAmbiSplitter = splitter;
  1971. chandata.mDryParams = DirectParams{};
  1972. std::fill_n(chandata.mWetParams.begin(), num_sends, SendParams{});
  1973. }
  1974. voice->mFlags |= VoiceIsAmbisonic;
  1975. }
  1976. else
  1977. {
  1978. /* Clear previous samples. */
  1979. for(auto &chandata : voice->mChans)
  1980. {
  1981. chandata.mPrevSamples.fill(0.0f);
  1982. chandata.mDryParams = DirectParams{};
  1983. std::fill_n(chandata.mWetParams.begin(), num_sends, SendParams{});
  1984. }
  1985. voice->mFlags &= ~VoiceIsAmbisonic;
  1986. }
  1987. if(device->AvgSpeakerDist > 0.0f)
  1988. {
  1989. /* Reinitialize the NFC filters for new parameters. */
  1990. const float w1{SpeedOfSoundMetersPerSec /
  1991. (device->AvgSpeakerDist * static_cast<float>(device->Frequency))};
  1992. for(auto &chandata : voice->mChans)
  1993. chandata.mDryParams.NFCtrlFilter.init(w1);
  1994. }
  1995. }
  1996. srclock.unlock();
  1997. context->mPropsClean.test_and_set(std::memory_order_release);
  1998. UpdateContextProps(context);
  1999. context->mListener.PropsClean.test_and_set(std::memory_order_release);
  2000. UpdateListenerProps(context);
  2001. UpdateAllSourceProps(context);
  2002. }
  2003. mixer_mode.leave();
  2004. if(!device->Flags.test(DevicePaused))
  2005. {
  2006. try {
  2007. auto backend = device->Backend.get();
  2008. backend->start();
  2009. device->Flags.set(DeviceRunning);
  2010. }
  2011. catch(al::backend_exception& e) {
  2012. device->handleDisconnect("%s", e.what());
  2013. return ALC_INVALID_DEVICE;
  2014. }
  2015. }
  2016. return ALC_NO_ERROR;
  2017. }
  2018. ALCdevice::ALCdevice(DeviceType type) : Type{type}, mContexts{&EmptyContextArray}
  2019. {
  2020. }
  2021. ALCdevice::~ALCdevice()
  2022. {
  2023. TRACE("Freeing device %p\n", voidp{this});
  2024. Backend = nullptr;
  2025. size_t count{std::accumulate(BufferList.cbegin(), BufferList.cend(), size_t{0u},
  2026. [](size_t cur, const BufferSubList &sublist) noexcept -> size_t
  2027. { return cur + static_cast<uint>(al::popcount(~sublist.FreeMask)); })};
  2028. if(count > 0)
  2029. WARN("%zu Buffer%s not deleted\n", count, (count==1)?"":"s");
  2030. count = std::accumulate(EffectList.cbegin(), EffectList.cend(), size_t{0u},
  2031. [](size_t cur, const EffectSubList &sublist) noexcept -> size_t
  2032. { return cur + static_cast<uint>(al::popcount(~sublist.FreeMask)); });
  2033. if(count > 0)
  2034. WARN("%zu Effect%s not deleted\n", count, (count==1)?"":"s");
  2035. count = std::accumulate(FilterList.cbegin(), FilterList.cend(), size_t{0u},
  2036. [](size_t cur, const FilterSubList &sublist) noexcept -> size_t
  2037. { return cur + static_cast<uint>(al::popcount(~sublist.FreeMask)); });
  2038. if(count > 0)
  2039. WARN("%zu Filter%s not deleted\n", count, (count==1)?"":"s");
  2040. mHrtf = nullptr;
  2041. auto *oldarray = mContexts.exchange(nullptr, std::memory_order_relaxed);
  2042. if(oldarray != &EmptyContextArray) delete oldarray;
  2043. }
  2044. /** Checks if the device handle is valid, and returns a new reference if so. */
  2045. static DeviceRef VerifyDevice(ALCdevice *device)
  2046. {
  2047. std::lock_guard<std::recursive_mutex> _{ListLock};
  2048. auto iter = std::lower_bound(DeviceList.begin(), DeviceList.end(), device);
  2049. if(iter != DeviceList.end() && *iter == device)
  2050. {
  2051. (*iter)->add_ref();
  2052. return DeviceRef{*iter};
  2053. }
  2054. return nullptr;
  2055. }
  2056. ALCcontext::ALCcontext(al::intrusive_ptr<ALCdevice> device) : mDevice{std::move(device)}
  2057. {
  2058. mPropsClean.test_and_set(std::memory_order_relaxed);
  2059. }
  2060. ALCcontext::~ALCcontext()
  2061. {
  2062. TRACE("Freeing context %p\n", voidp{this});
  2063. size_t count{0};
  2064. ContextProps *cprops{mParams.ContextUpdate.exchange(nullptr, std::memory_order_relaxed)};
  2065. if(cprops)
  2066. {
  2067. ++count;
  2068. delete cprops;
  2069. }
  2070. cprops = mFreeContextProps.exchange(nullptr, std::memory_order_acquire);
  2071. while(cprops)
  2072. {
  2073. std::unique_ptr<ContextProps> old{cprops};
  2074. cprops = old->next.load(std::memory_order_relaxed);
  2075. ++count;
  2076. }
  2077. TRACE("Freed %zu context property object%s\n", count, (count==1)?"":"s");
  2078. count = std::accumulate(mSourceList.cbegin(), mSourceList.cend(), size_t{0u},
  2079. [](size_t cur, const SourceSubList &sublist) noexcept -> size_t
  2080. { return cur + static_cast<uint>(al::popcount(~sublist.FreeMask)); });
  2081. if(count > 0)
  2082. WARN("%zu Source%s not deleted\n", count, (count==1)?"":"s");
  2083. mSourceList.clear();
  2084. mNumSources = 0;
  2085. count = 0;
  2086. EffectSlotProps *eprops{mFreeEffectslotProps.exchange(nullptr, std::memory_order_acquire)};
  2087. while(eprops)
  2088. {
  2089. std::unique_ptr<EffectSlotProps> old{eprops};
  2090. eprops = old->next.load(std::memory_order_relaxed);
  2091. ++count;
  2092. }
  2093. TRACE("Freed %zu AuxiliaryEffectSlot property object%s\n", count, (count==1)?"":"s");
  2094. if(EffectSlotArray *curarray{mActiveAuxSlots.exchange(nullptr, std::memory_order_relaxed)})
  2095. {
  2096. al::destroy_n(curarray->end(), curarray->size());
  2097. delete curarray;
  2098. }
  2099. mDefaultSlot = nullptr;
  2100. count = std::accumulate(mEffectSlotList.cbegin(), mEffectSlotList.cend(), size_t{0u},
  2101. [](size_t cur, const EffectSlotSubList &sublist) noexcept -> size_t
  2102. { return cur + static_cast<uint>(al::popcount(~sublist.FreeMask)); });
  2103. if(count > 0)
  2104. WARN("%zu AuxiliaryEffectSlot%s not deleted\n", count, (count==1)?"":"s");
  2105. mEffectSlotList.clear();
  2106. mNumEffectSlots = 0;
  2107. count = 0;
  2108. VoicePropsItem *vprops{mFreeVoiceProps.exchange(nullptr, std::memory_order_acquire)};
  2109. while(vprops)
  2110. {
  2111. std::unique_ptr<VoicePropsItem> old{vprops};
  2112. vprops = old->next.load(std::memory_order_relaxed);
  2113. ++count;
  2114. }
  2115. TRACE("Freed %zu voice property object%s\n", count, (count==1)?"":"s");
  2116. delete mVoices.exchange(nullptr, std::memory_order_relaxed);
  2117. count = 0;
  2118. ListenerProps *lprops{mParams.ListenerUpdate.exchange(nullptr, std::memory_order_relaxed)};
  2119. if(lprops)
  2120. {
  2121. ++count;
  2122. delete lprops;
  2123. }
  2124. lprops = mFreeListenerProps.exchange(nullptr, std::memory_order_acquire);
  2125. while(lprops)
  2126. {
  2127. std::unique_ptr<ListenerProps> old{lprops};
  2128. lprops = old->next.load(std::memory_order_relaxed);
  2129. ++count;
  2130. }
  2131. TRACE("Freed %zu listener property object%s\n", count, (count==1)?"":"s");
  2132. if(mAsyncEvents)
  2133. {
  2134. count = 0;
  2135. auto evt_vec = mAsyncEvents->getReadVector();
  2136. if(evt_vec.first.len > 0)
  2137. {
  2138. al::destroy_n(reinterpret_cast<AsyncEvent*>(evt_vec.first.buf), evt_vec.first.len);
  2139. count += evt_vec.first.len;
  2140. }
  2141. if(evt_vec.second.len > 0)
  2142. {
  2143. al::destroy_n(reinterpret_cast<AsyncEvent*>(evt_vec.second.buf), evt_vec.second.len);
  2144. count += evt_vec.second.len;
  2145. }
  2146. if(count > 0)
  2147. TRACE("Destructed %zu orphaned event%s\n", count, (count==1)?"":"s");
  2148. mAsyncEvents->readAdvance(count);
  2149. }
  2150. }
  2151. void ALCcontext::init()
  2152. {
  2153. if(DefaultEffect.type != AL_EFFECT_NULL && mDevice->Type == DeviceType::Playback)
  2154. {
  2155. mDefaultSlot = std::make_unique<ALeffectslot>();
  2156. aluInitEffectPanning(&mDefaultSlot->mSlot, this);
  2157. }
  2158. EffectSlotArray *auxslots;
  2159. if(!mDefaultSlot)
  2160. auxslots = EffectSlot::CreatePtrArray(0);
  2161. else
  2162. {
  2163. auxslots = EffectSlot::CreatePtrArray(1);
  2164. (*auxslots)[0] = &mDefaultSlot->mSlot;
  2165. mDefaultSlot->mState = SlotState::Playing;
  2166. }
  2167. mActiveAuxSlots.store(auxslots, std::memory_order_relaxed);
  2168. allocVoiceChanges(1);
  2169. {
  2170. VoiceChange *cur{mVoiceChangeTail};
  2171. while(VoiceChange *next{cur->mNext.load(std::memory_order_relaxed)})
  2172. cur = next;
  2173. mCurrentVoiceChange.store(cur, std::memory_order_relaxed);
  2174. }
  2175. mExtensionList = alExtList;
  2176. mParams.Matrix = alu::Matrix::Identity();
  2177. mParams.Velocity = alu::Vector{};
  2178. mParams.Gain = mListener.Gain;
  2179. mParams.MetersPerUnit = mListener.mMetersPerUnit;
  2180. mParams.DopplerFactor = mDopplerFactor;
  2181. mParams.SpeedOfSound = mSpeedOfSound * mDopplerVelocity;
  2182. mParams.SourceDistanceModel = mSourceDistanceModel;
  2183. mParams.mDistanceModel = mDistanceModel;
  2184. mAsyncEvents = RingBuffer::Create(511, sizeof(AsyncEvent), false);
  2185. StartEventThrd(this);
  2186. allocVoices(256);
  2187. mActiveVoiceCount.store(64, std::memory_order_relaxed);
  2188. }
  2189. bool ALCcontext::deinit()
  2190. {
  2191. if(LocalContext == this)
  2192. {
  2193. WARN("%p released while current on thread\n", voidp{this});
  2194. ThreadContext.set(nullptr);
  2195. release();
  2196. }
  2197. ALCcontext *origctx{this};
  2198. if(GlobalContext.compare_exchange_strong(origctx, nullptr))
  2199. release();
  2200. bool ret{};
  2201. /* First make sure this context exists in the device's list. */
  2202. auto *oldarray = mDevice->mContexts.load(std::memory_order_acquire);
  2203. if(auto toremove = static_cast<size_t>(std::count(oldarray->begin(), oldarray->end(), this)))
  2204. {
  2205. using ContextArray = al::FlexArray<ALCcontext*>;
  2206. auto alloc_ctx_array = [](const size_t count) -> ContextArray*
  2207. {
  2208. if(count == 0) return &EmptyContextArray;
  2209. return ContextArray::Create(count).release();
  2210. };
  2211. auto *newarray = alloc_ctx_array(oldarray->size() - toremove);
  2212. /* Copy the current/old context handles to the new array, excluding the
  2213. * given context.
  2214. */
  2215. std::copy_if(oldarray->begin(), oldarray->end(), newarray->begin(),
  2216. std::bind(std::not_equal_to<ALCcontext*>{}, _1, this));
  2217. /* Store the new context array in the device. Wait for any current mix
  2218. * to finish before deleting the old array.
  2219. */
  2220. mDevice->mContexts.store(newarray);
  2221. if(oldarray != &EmptyContextArray)
  2222. {
  2223. mDevice->waitForMix();
  2224. delete oldarray;
  2225. }
  2226. ret = !newarray->empty();
  2227. }
  2228. else
  2229. ret = !oldarray->empty();
  2230. StopEventThrd(this);
  2231. return ret;
  2232. }
  2233. /**
  2234. * Checks if the given context is valid, returning a new reference to it if so.
  2235. */
  2236. static ContextRef VerifyContext(ALCcontext *context)
  2237. {
  2238. std::lock_guard<std::recursive_mutex> _{ListLock};
  2239. auto iter = std::lower_bound(ContextList.begin(), ContextList.end(), context);
  2240. if(iter != ContextList.end() && *iter == context)
  2241. {
  2242. (*iter)->add_ref();
  2243. return ContextRef{*iter};
  2244. }
  2245. return nullptr;
  2246. }
  2247. /** Returns a new reference to the currently active context for this thread. */
  2248. ContextRef GetContextRef(void)
  2249. {
  2250. ALCcontext *context{LocalContext};
  2251. if(context)
  2252. context->add_ref();
  2253. else
  2254. {
  2255. std::lock_guard<std::recursive_mutex> _{ListLock};
  2256. context = GlobalContext.load(std::memory_order_acquire);
  2257. if(context) context->add_ref();
  2258. }
  2259. return ContextRef{context};
  2260. }
  2261. /************************************************
  2262. * Standard ALC functions
  2263. ************************************************/
  2264. ALC_API ALCenum ALC_APIENTRY alcGetError(ALCdevice *device)
  2265. START_API_FUNC
  2266. {
  2267. DeviceRef dev{VerifyDevice(device)};
  2268. if(dev) return dev->LastError.exchange(ALC_NO_ERROR);
  2269. return LastNullDeviceError.exchange(ALC_NO_ERROR);
  2270. }
  2271. END_API_FUNC
  2272. ALC_API void ALC_APIENTRY alcSuspendContext(ALCcontext *context)
  2273. START_API_FUNC
  2274. {
  2275. if(!SuspendDefers)
  2276. return;
  2277. ContextRef ctx{VerifyContext(context)};
  2278. if(!ctx)
  2279. alcSetError(nullptr, ALC_INVALID_CONTEXT);
  2280. else
  2281. ctx->deferUpdates();
  2282. }
  2283. END_API_FUNC
  2284. ALC_API void ALC_APIENTRY alcProcessContext(ALCcontext *context)
  2285. START_API_FUNC
  2286. {
  2287. if(!SuspendDefers)
  2288. return;
  2289. ContextRef ctx{VerifyContext(context)};
  2290. if(!ctx)
  2291. alcSetError(nullptr, ALC_INVALID_CONTEXT);
  2292. else
  2293. ctx->processUpdates();
  2294. }
  2295. END_API_FUNC
  2296. ALC_API const ALCchar* ALC_APIENTRY alcGetString(ALCdevice *Device, ALCenum param)
  2297. START_API_FUNC
  2298. {
  2299. const ALCchar *value{nullptr};
  2300. switch(param)
  2301. {
  2302. case ALC_NO_ERROR:
  2303. value = alcNoError;
  2304. break;
  2305. case ALC_INVALID_ENUM:
  2306. value = alcErrInvalidEnum;
  2307. break;
  2308. case ALC_INVALID_VALUE:
  2309. value = alcErrInvalidValue;
  2310. break;
  2311. case ALC_INVALID_DEVICE:
  2312. value = alcErrInvalidDevice;
  2313. break;
  2314. case ALC_INVALID_CONTEXT:
  2315. value = alcErrInvalidContext;
  2316. break;
  2317. case ALC_OUT_OF_MEMORY:
  2318. value = alcErrOutOfMemory;
  2319. break;
  2320. case ALC_DEVICE_SPECIFIER:
  2321. value = alcDefaultName;
  2322. break;
  2323. case ALC_ALL_DEVICES_SPECIFIER:
  2324. if(DeviceRef dev{VerifyDevice(Device)})
  2325. value = dev->DeviceName.c_str();
  2326. else
  2327. {
  2328. ProbeAllDevicesList();
  2329. value = alcAllDevicesList.c_str();
  2330. }
  2331. break;
  2332. case ALC_CAPTURE_DEVICE_SPECIFIER:
  2333. if(DeviceRef dev{VerifyDevice(Device)})
  2334. value = dev->DeviceName.c_str();
  2335. else
  2336. {
  2337. ProbeCaptureDeviceList();
  2338. value = alcCaptureDeviceList.c_str();
  2339. }
  2340. break;
  2341. /* Default devices are always first in the list */
  2342. case ALC_DEFAULT_DEVICE_SPECIFIER:
  2343. value = alcDefaultName;
  2344. break;
  2345. case ALC_DEFAULT_ALL_DEVICES_SPECIFIER:
  2346. if(alcAllDevicesList.empty())
  2347. ProbeAllDevicesList();
  2348. /* Copy first entry as default. */
  2349. alcDefaultAllDevicesSpecifier = alcAllDevicesList.c_str();
  2350. value = alcDefaultAllDevicesSpecifier.c_str();
  2351. break;
  2352. case ALC_CAPTURE_DEFAULT_DEVICE_SPECIFIER:
  2353. if(alcCaptureDeviceList.empty())
  2354. ProbeCaptureDeviceList();
  2355. /* Copy first entry as default. */
  2356. alcCaptureDefaultDeviceSpecifier = alcCaptureDeviceList.c_str();
  2357. value = alcCaptureDefaultDeviceSpecifier.c_str();
  2358. break;
  2359. case ALC_EXTENSIONS:
  2360. if(VerifyDevice(Device))
  2361. value = alcExtensionList;
  2362. else
  2363. value = alcNoDeviceExtList;
  2364. break;
  2365. case ALC_HRTF_SPECIFIER_SOFT:
  2366. if(DeviceRef dev{VerifyDevice(Device)})
  2367. {
  2368. std::lock_guard<std::mutex> _{dev->StateLock};
  2369. value = (dev->mHrtf ? dev->HrtfName.c_str() : "");
  2370. }
  2371. else
  2372. alcSetError(nullptr, ALC_INVALID_DEVICE);
  2373. break;
  2374. default:
  2375. alcSetError(VerifyDevice(Device).get(), ALC_INVALID_ENUM);
  2376. break;
  2377. }
  2378. return value;
  2379. }
  2380. END_API_FUNC
  2381. static inline int NumAttrsForDevice(ALCdevice *device)
  2382. {
  2383. if(device->Type == DeviceType::Capture) return 9;
  2384. if(device->Type != DeviceType::Loopback) return 29;
  2385. if(device->FmtChans == DevFmtAmbi3D)
  2386. return 35;
  2387. return 29;
  2388. }
  2389. static size_t GetIntegerv(ALCdevice *device, ALCenum param, const al::span<int> values)
  2390. {
  2391. size_t i;
  2392. if(values.empty())
  2393. {
  2394. alcSetError(device, ALC_INVALID_VALUE);
  2395. return 0;
  2396. }
  2397. if(!device)
  2398. {
  2399. switch(param)
  2400. {
  2401. case ALC_MAJOR_VERSION:
  2402. values[0] = alcMajorVersion;
  2403. return 1;
  2404. case ALC_MINOR_VERSION:
  2405. values[0] = alcMinorVersion;
  2406. return 1;
  2407. case ALC_ATTRIBUTES_SIZE:
  2408. case ALC_ALL_ATTRIBUTES:
  2409. case ALC_FREQUENCY:
  2410. case ALC_REFRESH:
  2411. case ALC_SYNC:
  2412. case ALC_MONO_SOURCES:
  2413. case ALC_STEREO_SOURCES:
  2414. case ALC_CAPTURE_SAMPLES:
  2415. case ALC_FORMAT_CHANNELS_SOFT:
  2416. case ALC_FORMAT_TYPE_SOFT:
  2417. case ALC_AMBISONIC_LAYOUT_SOFT:
  2418. case ALC_AMBISONIC_SCALING_SOFT:
  2419. case ALC_AMBISONIC_ORDER_SOFT:
  2420. case ALC_MAX_AMBISONIC_ORDER_SOFT:
  2421. alcSetError(nullptr, ALC_INVALID_DEVICE);
  2422. return 0;
  2423. default:
  2424. alcSetError(nullptr, ALC_INVALID_ENUM);
  2425. }
  2426. return 0;
  2427. }
  2428. if(device->Type == DeviceType::Capture)
  2429. {
  2430. switch(param)
  2431. {
  2432. case ALC_ATTRIBUTES_SIZE:
  2433. values[0] = NumAttrsForDevice(device);
  2434. return 1;
  2435. case ALC_ALL_ATTRIBUTES:
  2436. i = 0;
  2437. if(values.size() < static_cast<size_t>(NumAttrsForDevice(device)))
  2438. alcSetError(device, ALC_INVALID_VALUE);
  2439. else
  2440. {
  2441. std::lock_guard<std::mutex> _{device->StateLock};
  2442. values[i++] = ALC_MAJOR_VERSION;
  2443. values[i++] = alcMajorVersion;
  2444. values[i++] = ALC_MINOR_VERSION;
  2445. values[i++] = alcMinorVersion;
  2446. values[i++] = ALC_CAPTURE_SAMPLES;
  2447. values[i++] = static_cast<int>(device->Backend->availableSamples());
  2448. values[i++] = ALC_CONNECTED;
  2449. values[i++] = device->Connected.load(std::memory_order_relaxed);
  2450. values[i++] = 0;
  2451. }
  2452. return i;
  2453. case ALC_MAJOR_VERSION:
  2454. values[0] = alcMajorVersion;
  2455. return 1;
  2456. case ALC_MINOR_VERSION:
  2457. values[0] = alcMinorVersion;
  2458. return 1;
  2459. case ALC_CAPTURE_SAMPLES:
  2460. {
  2461. std::lock_guard<std::mutex> _{device->StateLock};
  2462. values[0] = static_cast<int>(device->Backend->availableSamples());
  2463. }
  2464. return 1;
  2465. case ALC_CONNECTED:
  2466. {
  2467. std::lock_guard<std::mutex> _{device->StateLock};
  2468. values[0] = device->Connected.load(std::memory_order_acquire);
  2469. }
  2470. return 1;
  2471. default:
  2472. alcSetError(device, ALC_INVALID_ENUM);
  2473. }
  2474. return 0;
  2475. }
  2476. /* render device */
  2477. switch(param)
  2478. {
  2479. case ALC_ATTRIBUTES_SIZE:
  2480. values[0] = NumAttrsForDevice(device);
  2481. return 1;
  2482. case ALC_ALL_ATTRIBUTES:
  2483. i = 0;
  2484. if(values.size() < static_cast<size_t>(NumAttrsForDevice(device)))
  2485. alcSetError(device, ALC_INVALID_VALUE);
  2486. else
  2487. {
  2488. std::lock_guard<std::mutex> _{device->StateLock};
  2489. values[i++] = ALC_MAJOR_VERSION;
  2490. values[i++] = alcMajorVersion;
  2491. values[i++] = ALC_MINOR_VERSION;
  2492. values[i++] = alcMinorVersion;
  2493. values[i++] = ALC_EFX_MAJOR_VERSION;
  2494. values[i++] = alcEFXMajorVersion;
  2495. values[i++] = ALC_EFX_MINOR_VERSION;
  2496. values[i++] = alcEFXMinorVersion;
  2497. values[i++] = ALC_FREQUENCY;
  2498. values[i++] = static_cast<int>(device->Frequency);
  2499. if(device->Type != DeviceType::Loopback)
  2500. {
  2501. values[i++] = ALC_REFRESH;
  2502. values[i++] = static_cast<int>(device->Frequency / device->UpdateSize);
  2503. values[i++] = ALC_SYNC;
  2504. values[i++] = ALC_FALSE;
  2505. }
  2506. else
  2507. {
  2508. if(device->FmtChans == DevFmtAmbi3D)
  2509. {
  2510. values[i++] = ALC_AMBISONIC_LAYOUT_SOFT;
  2511. values[i++] = EnumFromDevAmbi(device->mAmbiLayout);
  2512. values[i++] = ALC_AMBISONIC_SCALING_SOFT;
  2513. values[i++] = EnumFromDevAmbi(device->mAmbiScale);
  2514. values[i++] = ALC_AMBISONIC_ORDER_SOFT;
  2515. values[i++] = static_cast<int>(device->mAmbiOrder);
  2516. }
  2517. values[i++] = ALC_FORMAT_CHANNELS_SOFT;
  2518. values[i++] = EnumFromDevFmt(device->FmtChans);
  2519. values[i++] = ALC_FORMAT_TYPE_SOFT;
  2520. values[i++] = EnumFromDevFmt(device->FmtType);
  2521. }
  2522. values[i++] = ALC_MONO_SOURCES;
  2523. values[i++] = static_cast<int>(device->NumMonoSources);
  2524. values[i++] = ALC_STEREO_SOURCES;
  2525. values[i++] = static_cast<int>(device->NumStereoSources);
  2526. values[i++] = ALC_MAX_AUXILIARY_SENDS;
  2527. values[i++] = static_cast<int>(device->NumAuxSends);
  2528. values[i++] = ALC_HRTF_SOFT;
  2529. values[i++] = (device->mHrtf ? ALC_TRUE : ALC_FALSE);
  2530. values[i++] = ALC_HRTF_STATUS_SOFT;
  2531. values[i++] = device->HrtfStatus;
  2532. values[i++] = ALC_OUTPUT_LIMITER_SOFT;
  2533. values[i++] = device->Limiter ? ALC_TRUE : ALC_FALSE;
  2534. values[i++] = ALC_MAX_AMBISONIC_ORDER_SOFT;
  2535. values[i++] = MaxAmbiOrder;
  2536. values[i++] = 0;
  2537. }
  2538. return i;
  2539. case ALC_MAJOR_VERSION:
  2540. values[0] = alcMajorVersion;
  2541. return 1;
  2542. case ALC_MINOR_VERSION:
  2543. values[0] = alcMinorVersion;
  2544. return 1;
  2545. case ALC_EFX_MAJOR_VERSION:
  2546. values[0] = alcEFXMajorVersion;
  2547. return 1;
  2548. case ALC_EFX_MINOR_VERSION:
  2549. values[0] = alcEFXMinorVersion;
  2550. return 1;
  2551. case ALC_FREQUENCY:
  2552. values[0] = static_cast<int>(device->Frequency);
  2553. return 1;
  2554. case ALC_REFRESH:
  2555. if(device->Type == DeviceType::Loopback)
  2556. {
  2557. alcSetError(device, ALC_INVALID_DEVICE);
  2558. return 0;
  2559. }
  2560. {
  2561. std::lock_guard<std::mutex> _{device->StateLock};
  2562. values[0] = static_cast<int>(device->Frequency / device->UpdateSize);
  2563. }
  2564. return 1;
  2565. case ALC_SYNC:
  2566. if(device->Type == DeviceType::Loopback)
  2567. {
  2568. alcSetError(device, ALC_INVALID_DEVICE);
  2569. return 0;
  2570. }
  2571. values[0] = ALC_FALSE;
  2572. return 1;
  2573. case ALC_FORMAT_CHANNELS_SOFT:
  2574. if(device->Type != DeviceType::Loopback)
  2575. {
  2576. alcSetError(device, ALC_INVALID_DEVICE);
  2577. return 0;
  2578. }
  2579. values[0] = EnumFromDevFmt(device->FmtChans);
  2580. return 1;
  2581. case ALC_FORMAT_TYPE_SOFT:
  2582. if(device->Type != DeviceType::Loopback)
  2583. {
  2584. alcSetError(device, ALC_INVALID_DEVICE);
  2585. return 0;
  2586. }
  2587. values[0] = EnumFromDevFmt(device->FmtType);
  2588. return 1;
  2589. case ALC_AMBISONIC_LAYOUT_SOFT:
  2590. if(device->Type != DeviceType::Loopback || device->FmtChans != DevFmtAmbi3D)
  2591. {
  2592. alcSetError(device, ALC_INVALID_DEVICE);
  2593. return 0;
  2594. }
  2595. values[0] = EnumFromDevAmbi(device->mAmbiLayout);
  2596. return 1;
  2597. case ALC_AMBISONIC_SCALING_SOFT:
  2598. if(device->Type != DeviceType::Loopback || device->FmtChans != DevFmtAmbi3D)
  2599. {
  2600. alcSetError(device, ALC_INVALID_DEVICE);
  2601. return 0;
  2602. }
  2603. values[0] = EnumFromDevAmbi(device->mAmbiScale);
  2604. return 1;
  2605. case ALC_AMBISONIC_ORDER_SOFT:
  2606. if(device->Type != DeviceType::Loopback || device->FmtChans != DevFmtAmbi3D)
  2607. {
  2608. alcSetError(device, ALC_INVALID_DEVICE);
  2609. return 0;
  2610. }
  2611. values[0] = static_cast<int>(device->mAmbiOrder);
  2612. return 1;
  2613. case ALC_MONO_SOURCES:
  2614. values[0] = static_cast<int>(device->NumMonoSources);
  2615. return 1;
  2616. case ALC_STEREO_SOURCES:
  2617. values[0] = static_cast<int>(device->NumStereoSources);
  2618. return 1;
  2619. case ALC_MAX_AUXILIARY_SENDS:
  2620. values[0] = static_cast<int>(device->NumAuxSends);
  2621. return 1;
  2622. case ALC_CONNECTED:
  2623. {
  2624. std::lock_guard<std::mutex> _{device->StateLock};
  2625. values[0] = device->Connected.load(std::memory_order_acquire);
  2626. }
  2627. return 1;
  2628. case ALC_HRTF_SOFT:
  2629. values[0] = (device->mHrtf ? ALC_TRUE : ALC_FALSE);
  2630. return 1;
  2631. case ALC_HRTF_STATUS_SOFT:
  2632. values[0] = device->HrtfStatus;
  2633. return 1;
  2634. case ALC_NUM_HRTF_SPECIFIERS_SOFT:
  2635. {
  2636. std::lock_guard<std::mutex> _{device->StateLock};
  2637. device->HrtfList = EnumerateHrtf(device->DeviceName.c_str());
  2638. values[0] = static_cast<int>(minz(device->HrtfList.size(),
  2639. std::numeric_limits<int>::max()));
  2640. }
  2641. return 1;
  2642. case ALC_OUTPUT_LIMITER_SOFT:
  2643. values[0] = device->Limiter ? ALC_TRUE : ALC_FALSE;
  2644. return 1;
  2645. case ALC_MAX_AMBISONIC_ORDER_SOFT:
  2646. values[0] = MaxAmbiOrder;
  2647. return 1;
  2648. default:
  2649. alcSetError(device, ALC_INVALID_ENUM);
  2650. }
  2651. return 0;
  2652. }
  2653. ALC_API void ALC_APIENTRY alcGetIntegerv(ALCdevice *device, ALCenum param, ALCsizei size, ALCint *values)
  2654. START_API_FUNC
  2655. {
  2656. DeviceRef dev{VerifyDevice(device)};
  2657. if(size <= 0 || values == nullptr)
  2658. alcSetError(dev.get(), ALC_INVALID_VALUE);
  2659. else
  2660. GetIntegerv(dev.get(), param, {values, static_cast<uint>(size)});
  2661. }
  2662. END_API_FUNC
  2663. ALC_API void ALC_APIENTRY alcGetInteger64vSOFT(ALCdevice *device, ALCenum pname, ALCsizei size, ALCint64SOFT *values)
  2664. START_API_FUNC
  2665. {
  2666. DeviceRef dev{VerifyDevice(device)};
  2667. if(size <= 0 || values == nullptr)
  2668. {
  2669. alcSetError(dev.get(), ALC_INVALID_VALUE);
  2670. return;
  2671. }
  2672. if(!dev || dev->Type == DeviceType::Capture)
  2673. {
  2674. auto ivals = al::vector<int>(static_cast<uint>(size));
  2675. size_t got{GetIntegerv(dev.get(), pname, ivals)};
  2676. std::copy_n(ivals.begin(), got, values);
  2677. return;
  2678. }
  2679. /* render device */
  2680. switch(pname)
  2681. {
  2682. case ALC_ATTRIBUTES_SIZE:
  2683. *values = NumAttrsForDevice(dev.get())+4;
  2684. break;
  2685. case ALC_ALL_ATTRIBUTES:
  2686. if(size < NumAttrsForDevice(dev.get())+4)
  2687. alcSetError(dev.get(), ALC_INVALID_VALUE);
  2688. else
  2689. {
  2690. size_t i{0};
  2691. std::lock_guard<std::mutex> _{dev->StateLock};
  2692. values[i++] = ALC_FREQUENCY;
  2693. values[i++] = dev->Frequency;
  2694. if(dev->Type != DeviceType::Loopback)
  2695. {
  2696. values[i++] = ALC_REFRESH;
  2697. values[i++] = dev->Frequency / dev->UpdateSize;
  2698. values[i++] = ALC_SYNC;
  2699. values[i++] = ALC_FALSE;
  2700. }
  2701. else
  2702. {
  2703. if(dev->FmtChans == DevFmtAmbi3D)
  2704. {
  2705. values[i++] = ALC_AMBISONIC_LAYOUT_SOFT;
  2706. values[i++] = EnumFromDevAmbi(dev->mAmbiLayout);
  2707. values[i++] = ALC_AMBISONIC_SCALING_SOFT;
  2708. values[i++] = EnumFromDevAmbi(dev->mAmbiScale);
  2709. values[i++] = ALC_AMBISONIC_ORDER_SOFT;
  2710. values[i++] = dev->mAmbiOrder;
  2711. }
  2712. values[i++] = ALC_FORMAT_CHANNELS_SOFT;
  2713. values[i++] = EnumFromDevFmt(dev->FmtChans);
  2714. values[i++] = ALC_FORMAT_TYPE_SOFT;
  2715. values[i++] = EnumFromDevFmt(dev->FmtType);
  2716. }
  2717. values[i++] = ALC_MONO_SOURCES;
  2718. values[i++] = dev->NumMonoSources;
  2719. values[i++] = ALC_STEREO_SOURCES;
  2720. values[i++] = dev->NumStereoSources;
  2721. values[i++] = ALC_MAX_AUXILIARY_SENDS;
  2722. values[i++] = dev->NumAuxSends;
  2723. values[i++] = ALC_HRTF_SOFT;
  2724. values[i++] = (dev->mHrtf ? ALC_TRUE : ALC_FALSE);
  2725. values[i++] = ALC_HRTF_STATUS_SOFT;
  2726. values[i++] = dev->HrtfStatus;
  2727. values[i++] = ALC_OUTPUT_LIMITER_SOFT;
  2728. values[i++] = dev->Limiter ? ALC_TRUE : ALC_FALSE;
  2729. ClockLatency clock{GetClockLatency(dev.get())};
  2730. values[i++] = ALC_DEVICE_CLOCK_SOFT;
  2731. values[i++] = clock.ClockTime.count();
  2732. values[i++] = ALC_DEVICE_LATENCY_SOFT;
  2733. values[i++] = clock.Latency.count();
  2734. values[i++] = 0;
  2735. }
  2736. break;
  2737. case ALC_DEVICE_CLOCK_SOFT:
  2738. {
  2739. std::lock_guard<std::mutex> _{dev->StateLock};
  2740. uint samplecount, refcount;
  2741. nanoseconds basecount;
  2742. do {
  2743. refcount = dev->waitForMix();
  2744. basecount = dev->ClockBase;
  2745. samplecount = dev->SamplesDone;
  2746. } while(refcount != ReadRef(dev->MixCount));
  2747. basecount += nanoseconds{seconds{samplecount}} / dev->Frequency;
  2748. *values = basecount.count();
  2749. }
  2750. break;
  2751. case ALC_DEVICE_LATENCY_SOFT:
  2752. {
  2753. std::lock_guard<std::mutex> _{dev->StateLock};
  2754. ClockLatency clock{GetClockLatency(dev.get())};
  2755. *values = clock.Latency.count();
  2756. }
  2757. break;
  2758. case ALC_DEVICE_CLOCK_LATENCY_SOFT:
  2759. if(size < 2)
  2760. alcSetError(dev.get(), ALC_INVALID_VALUE);
  2761. else
  2762. {
  2763. std::lock_guard<std::mutex> _{dev->StateLock};
  2764. ClockLatency clock{GetClockLatency(dev.get())};
  2765. values[0] = clock.ClockTime.count();
  2766. values[1] = clock.Latency.count();
  2767. }
  2768. break;
  2769. default:
  2770. auto ivals = al::vector<int>(static_cast<uint>(size));
  2771. size_t got{GetIntegerv(dev.get(), pname, ivals)};
  2772. std::copy_n(ivals.begin(), got, values);
  2773. break;
  2774. }
  2775. }
  2776. END_API_FUNC
  2777. ALC_API ALCboolean ALC_APIENTRY alcIsExtensionPresent(ALCdevice *device, const ALCchar *extName)
  2778. START_API_FUNC
  2779. {
  2780. DeviceRef dev{VerifyDevice(device)};
  2781. if(!extName)
  2782. alcSetError(dev.get(), ALC_INVALID_VALUE);
  2783. else
  2784. {
  2785. size_t len = strlen(extName);
  2786. const char *ptr = (dev ? alcExtensionList : alcNoDeviceExtList);
  2787. while(ptr && *ptr)
  2788. {
  2789. if(al::strncasecmp(ptr, extName, len) == 0 && (ptr[len] == '\0' || isspace(ptr[len])))
  2790. return ALC_TRUE;
  2791. if((ptr=strchr(ptr, ' ')) != nullptr)
  2792. {
  2793. do {
  2794. ++ptr;
  2795. } while(isspace(*ptr));
  2796. }
  2797. }
  2798. }
  2799. return ALC_FALSE;
  2800. }
  2801. END_API_FUNC
  2802. ALC_API ALCvoid* ALC_APIENTRY alcGetProcAddress(ALCdevice *device, const ALCchar *funcName)
  2803. START_API_FUNC
  2804. {
  2805. if(!funcName)
  2806. {
  2807. DeviceRef dev{VerifyDevice(device)};
  2808. alcSetError(dev.get(), ALC_INVALID_VALUE);
  2809. }
  2810. else
  2811. {
  2812. for(const auto &func : alcFunctions)
  2813. {
  2814. if(strcmp(func.funcName, funcName) == 0)
  2815. return func.address;
  2816. }
  2817. }
  2818. return nullptr;
  2819. }
  2820. END_API_FUNC
  2821. ALC_API ALCenum ALC_APIENTRY alcGetEnumValue(ALCdevice *device, const ALCchar *enumName)
  2822. START_API_FUNC
  2823. {
  2824. if(!enumName)
  2825. {
  2826. DeviceRef dev{VerifyDevice(device)};
  2827. alcSetError(dev.get(), ALC_INVALID_VALUE);
  2828. }
  2829. else
  2830. {
  2831. for(const auto &enm : alcEnumerations)
  2832. {
  2833. if(strcmp(enm.enumName, enumName) == 0)
  2834. return enm.value;
  2835. }
  2836. }
  2837. return 0;
  2838. }
  2839. END_API_FUNC
  2840. ALC_API ALCcontext* ALC_APIENTRY alcCreateContext(ALCdevice *device, const ALCint *attrList)
  2841. START_API_FUNC
  2842. {
  2843. /* Explicitly hold the list lock while taking the StateLock in case the
  2844. * device is asynchronously destroyed, to ensure this new context is
  2845. * properly cleaned up after being made.
  2846. */
  2847. std::unique_lock<std::recursive_mutex> listlock{ListLock};
  2848. DeviceRef dev{VerifyDevice(device)};
  2849. if(!dev || dev->Type == DeviceType::Capture || !dev->Connected.load(std::memory_order_relaxed))
  2850. {
  2851. listlock.unlock();
  2852. alcSetError(dev.get(), ALC_INVALID_DEVICE);
  2853. return nullptr;
  2854. }
  2855. std::unique_lock<std::mutex> statelock{dev->StateLock};
  2856. listlock.unlock();
  2857. dev->LastError.store(ALC_NO_ERROR);
  2858. ALCenum err{UpdateDeviceParams(dev.get(), attrList)};
  2859. if(err != ALC_NO_ERROR)
  2860. {
  2861. alcSetError(dev.get(), err);
  2862. return nullptr;
  2863. }
  2864. ContextRef context{new ALCcontext{dev}};
  2865. context->init();
  2866. if(auto volopt = ConfigValueFloat(dev->DeviceName.c_str(), nullptr, "volume-adjust"))
  2867. {
  2868. const float valf{*volopt};
  2869. if(!std::isfinite(valf))
  2870. ERR("volume-adjust must be finite: %f\n", valf);
  2871. else
  2872. {
  2873. const float db{clampf(valf, -24.0f, 24.0f)};
  2874. if(db != valf)
  2875. WARN("volume-adjust clamped: %f, range: +/-%f\n", valf, 24.0f);
  2876. context->mGainBoost = std::pow(10.0f, db/20.0f);
  2877. TRACE("volume-adjust gain: %f\n", context->mGainBoost);
  2878. }
  2879. }
  2880. UpdateListenerProps(context.get());
  2881. {
  2882. using ContextArray = al::FlexArray<ALCcontext*>;
  2883. /* Allocate a new context array, which holds 1 more than the current/
  2884. * old array.
  2885. */
  2886. auto *oldarray = device->mContexts.load();
  2887. const size_t newcount{oldarray->size()+1};
  2888. std::unique_ptr<ContextArray> newarray{ContextArray::Create(newcount)};
  2889. /* Copy the current/old context handles to the new array, appending the
  2890. * new context.
  2891. */
  2892. auto iter = std::copy(oldarray->begin(), oldarray->end(), newarray->begin());
  2893. *iter = context.get();
  2894. /* Store the new context array in the device. Wait for any current mix
  2895. * to finish before deleting the old array.
  2896. */
  2897. dev->mContexts.store(newarray.release());
  2898. if(oldarray != &EmptyContextArray)
  2899. {
  2900. dev->waitForMix();
  2901. delete oldarray;
  2902. }
  2903. }
  2904. statelock.unlock();
  2905. {
  2906. std::lock_guard<std::recursive_mutex> _{ListLock};
  2907. auto iter = std::lower_bound(ContextList.cbegin(), ContextList.cend(), context.get());
  2908. ContextList.emplace(iter, context.get());
  2909. }
  2910. if(ALeffectslot *slot{context->mDefaultSlot.get()})
  2911. {
  2912. if(slot->initEffect(&DefaultEffect, context.get()) == AL_NO_ERROR)
  2913. slot->updateProps(context.get());
  2914. else
  2915. ERR("Failed to initialize the default effect\n");
  2916. }
  2917. TRACE("Created context %p\n", voidp{context.get()});
  2918. return context.release();
  2919. }
  2920. END_API_FUNC
  2921. ALC_API void ALC_APIENTRY alcDestroyContext(ALCcontext *context)
  2922. START_API_FUNC
  2923. {
  2924. std::unique_lock<std::recursive_mutex> listlock{ListLock};
  2925. auto iter = std::lower_bound(ContextList.begin(), ContextList.end(), context);
  2926. if(iter == ContextList.end() || *iter != context)
  2927. {
  2928. listlock.unlock();
  2929. alcSetError(nullptr, ALC_INVALID_CONTEXT);
  2930. return;
  2931. }
  2932. /* Hold a reference to this context so it remains valid until the ListLock
  2933. * is released.
  2934. */
  2935. ContextRef ctx{*iter};
  2936. ContextList.erase(iter);
  2937. ALCdevice *Device{ctx->mDevice.get()};
  2938. std::lock_guard<std::mutex> _{Device->StateLock};
  2939. if(!ctx->deinit() && Device->Flags.test(DeviceRunning))
  2940. {
  2941. Device->Backend->stop();
  2942. Device->Flags.reset(DeviceRunning);
  2943. }
  2944. }
  2945. END_API_FUNC
  2946. ALC_API ALCcontext* ALC_APIENTRY alcGetCurrentContext(void)
  2947. START_API_FUNC
  2948. {
  2949. ALCcontext *Context{LocalContext};
  2950. if(!Context) Context = GlobalContext.load();
  2951. return Context;
  2952. }
  2953. END_API_FUNC
  2954. /** Returns the currently active thread-local context. */
  2955. ALC_API ALCcontext* ALC_APIENTRY alcGetThreadContext(void)
  2956. START_API_FUNC
  2957. { return LocalContext; }
  2958. END_API_FUNC
  2959. ALC_API ALCboolean ALC_APIENTRY alcMakeContextCurrent(ALCcontext *context)
  2960. START_API_FUNC
  2961. {
  2962. /* context must be valid or nullptr */
  2963. ContextRef ctx;
  2964. if(context)
  2965. {
  2966. ctx = VerifyContext(context);
  2967. if(!ctx)
  2968. {
  2969. alcSetError(nullptr, ALC_INVALID_CONTEXT);
  2970. return ALC_FALSE;
  2971. }
  2972. }
  2973. /* Release this reference (if any) to store it in the GlobalContext
  2974. * pointer. Take ownership of the reference (if any) that was previously
  2975. * stored there.
  2976. */
  2977. ctx = ContextRef{GlobalContext.exchange(ctx.release())};
  2978. /* Reset (decrement) the previous global reference by replacing it with the
  2979. * thread-local context. Take ownership of the thread-local context
  2980. * reference (if any), clearing the storage to null.
  2981. */
  2982. ctx = ContextRef{LocalContext};
  2983. if(ctx) ThreadContext.set(nullptr);
  2984. /* Reset (decrement) the previous thread-local reference. */
  2985. return ALC_TRUE;
  2986. }
  2987. END_API_FUNC
  2988. /** Makes the given context the active context for the current thread. */
  2989. ALC_API ALCboolean ALC_APIENTRY alcSetThreadContext(ALCcontext *context)
  2990. START_API_FUNC
  2991. {
  2992. /* context must be valid or nullptr */
  2993. ContextRef ctx;
  2994. if(context)
  2995. {
  2996. ctx = VerifyContext(context);
  2997. if(!ctx)
  2998. {
  2999. alcSetError(nullptr, ALC_INVALID_CONTEXT);
  3000. return ALC_FALSE;
  3001. }
  3002. }
  3003. /* context's reference count is already incremented */
  3004. ContextRef old{LocalContext};
  3005. ThreadContext.set(ctx.release());
  3006. return ALC_TRUE;
  3007. }
  3008. END_API_FUNC
  3009. ALC_API ALCdevice* ALC_APIENTRY alcGetContextsDevice(ALCcontext *Context)
  3010. START_API_FUNC
  3011. {
  3012. ContextRef ctx{VerifyContext(Context)};
  3013. if(!ctx)
  3014. {
  3015. alcSetError(nullptr, ALC_INVALID_CONTEXT);
  3016. return nullptr;
  3017. }
  3018. return ctx->mDevice.get();
  3019. }
  3020. END_API_FUNC
  3021. ALC_API ALCdevice* ALC_APIENTRY alcOpenDevice(const ALCchar *deviceName)
  3022. START_API_FUNC
  3023. {
  3024. DO_INITCONFIG();
  3025. if(!PlaybackFactory)
  3026. {
  3027. alcSetError(nullptr, ALC_INVALID_VALUE);
  3028. return nullptr;
  3029. }
  3030. if(deviceName)
  3031. {
  3032. if(!deviceName[0] || al::strcasecmp(deviceName, alcDefaultName) == 0
  3033. #ifdef _WIN32
  3034. /* Some old Windows apps hardcode these expecting OpenAL to use a
  3035. * specific audio API, even when they're not enumerated. Creative's
  3036. * router effectively ignores them too.
  3037. */
  3038. || al::strcasecmp(deviceName, "DirectSound3D") == 0
  3039. || al::strcasecmp(deviceName, "DirectSound") == 0
  3040. || al::strcasecmp(deviceName, "MMSYSTEM") == 0
  3041. #endif
  3042. || al::strcasecmp(deviceName, "openal-soft") == 0)
  3043. deviceName = nullptr;
  3044. }
  3045. DeviceRef device{new ALCdevice{DeviceType::Playback}};
  3046. /* Set output format */
  3047. device->FmtChans = DevFmtChannelsDefault;
  3048. device->FmtType = DevFmtTypeDefault;
  3049. device->Frequency = DEFAULT_OUTPUT_RATE;
  3050. device->UpdateSize = DEFAULT_UPDATE_SIZE;
  3051. device->BufferSize = DEFAULT_UPDATE_SIZE * DEFAULT_NUM_UPDATES;
  3052. device->SourcesMax = 256;
  3053. device->AuxiliaryEffectSlotMax = 64;
  3054. device->NumAuxSends = DEFAULT_SENDS;
  3055. try {
  3056. auto backend = PlaybackFactory->createBackend(device.get(), BackendType::Playback);
  3057. std::lock_guard<std::recursive_mutex> _{ListLock};
  3058. backend->open(deviceName);
  3059. device->Backend = std::move(backend);
  3060. }
  3061. catch(al::backend_exception &e) {
  3062. WARN("Failed to open playback device: %s\n", e.what());
  3063. alcSetError(nullptr, (e.errorCode() == al::backend_error::OutOfMemory)
  3064. ? ALC_OUT_OF_MEMORY : ALC_INVALID_VALUE);
  3065. return nullptr;
  3066. }
  3067. deviceName = device->DeviceName.c_str();
  3068. if(auto chanopt = ConfigValueStr(deviceName, nullptr, "channels"))
  3069. {
  3070. static const struct ChannelMap {
  3071. const char name[16];
  3072. DevFmtChannels chans;
  3073. uint order;
  3074. } chanlist[] = {
  3075. { "mono", DevFmtMono, 0 },
  3076. { "stereo", DevFmtStereo, 0 },
  3077. { "quad", DevFmtQuad, 0 },
  3078. { "surround51", DevFmtX51, 0 },
  3079. { "surround61", DevFmtX61, 0 },
  3080. { "surround71", DevFmtX71, 0 },
  3081. { "surround51rear", DevFmtX51Rear, 0 },
  3082. { "ambi1", DevFmtAmbi3D, 1 },
  3083. { "ambi2", DevFmtAmbi3D, 2 },
  3084. { "ambi3", DevFmtAmbi3D, 3 },
  3085. };
  3086. const ALCchar *fmt{chanopt->c_str()};
  3087. auto iter = std::find_if(std::begin(chanlist), std::end(chanlist),
  3088. [fmt](const ChannelMap &entry) -> bool
  3089. { return al::strcasecmp(entry.name, fmt) == 0; }
  3090. );
  3091. if(iter == std::end(chanlist))
  3092. ERR("Unsupported channels: %s\n", fmt);
  3093. else
  3094. {
  3095. device->FmtChans = iter->chans;
  3096. device->mAmbiOrder = iter->order;
  3097. device->Flags.set(ChannelsRequest);
  3098. }
  3099. }
  3100. if(auto typeopt = ConfigValueStr(deviceName, nullptr, "sample-type"))
  3101. {
  3102. static const struct TypeMap {
  3103. const char name[16];
  3104. DevFmtType type;
  3105. } typelist[] = {
  3106. { "int8", DevFmtByte },
  3107. { "uint8", DevFmtUByte },
  3108. { "int16", DevFmtShort },
  3109. { "uint16", DevFmtUShort },
  3110. { "int32", DevFmtInt },
  3111. { "uint32", DevFmtUInt },
  3112. { "float32", DevFmtFloat },
  3113. };
  3114. const ALCchar *fmt{typeopt->c_str()};
  3115. auto iter = std::find_if(std::begin(typelist), std::end(typelist),
  3116. [fmt](const TypeMap &entry) -> bool
  3117. { return al::strcasecmp(entry.name, fmt) == 0; }
  3118. );
  3119. if(iter == std::end(typelist))
  3120. ERR("Unsupported sample-type: %s\n", fmt);
  3121. else
  3122. {
  3123. device->FmtType = iter->type;
  3124. device->Flags.set(SampleTypeRequest);
  3125. }
  3126. }
  3127. if(uint freq{ConfigValueUInt(deviceName, nullptr, "frequency").value_or(0u)})
  3128. {
  3129. if(freq < MIN_OUTPUT_RATE || freq > MAX_OUTPUT_RATE)
  3130. {
  3131. const uint newfreq{clampu(freq, MIN_OUTPUT_RATE, MAX_OUTPUT_RATE)};
  3132. ERR("%uhz request clamped to %uhz\n", freq, newfreq);
  3133. freq = newfreq;
  3134. }
  3135. const double scale{static_cast<double>(freq) / device->Frequency};
  3136. device->UpdateSize = static_cast<uint>(device->UpdateSize*scale + 0.5);
  3137. device->BufferSize = static_cast<uint>(device->BufferSize*scale + 0.5);
  3138. device->Frequency = freq;
  3139. device->Flags.set(FrequencyRequest);
  3140. }
  3141. if(auto persizeopt = ConfigValueUInt(deviceName, nullptr, "period_size"))
  3142. device->UpdateSize = clampu(*persizeopt, 64, 8192);
  3143. if(auto peropt = ConfigValueUInt(deviceName, nullptr, "periods"))
  3144. device->BufferSize = device->UpdateSize * clampu(*peropt, 2, 16);
  3145. else
  3146. device->BufferSize = maxu(device->BufferSize, device->UpdateSize*2);
  3147. if(auto srcsmax = ConfigValueUInt(deviceName, nullptr, "sources").value_or(0))
  3148. device->SourcesMax = srcsmax;
  3149. if(auto slotsmax = ConfigValueUInt(deviceName, nullptr, "slots").value_or(0))
  3150. device->AuxiliaryEffectSlotMax = minu(slotsmax, INT_MAX);
  3151. if(auto sendsopt = ConfigValueInt(deviceName, nullptr, "sends"))
  3152. device->NumAuxSends = minu(DEFAULT_SENDS,
  3153. static_cast<uint>(clampi(*sendsopt, 0, MAX_SENDS)));
  3154. device->NumStereoSources = 1;
  3155. device->NumMonoSources = device->SourcesMax - device->NumStereoSources;
  3156. if(auto ambiopt = ConfigValueStr(deviceName, nullptr, "ambi-format"))
  3157. {
  3158. const ALCchar *fmt{ambiopt->c_str()};
  3159. if(al::strcasecmp(fmt, "fuma") == 0)
  3160. {
  3161. if(device->mAmbiOrder > 3)
  3162. ERR("FuMa is incompatible with %d%s order ambisonics (up to third-order only)\n",
  3163. device->mAmbiOrder,
  3164. (((device->mAmbiOrder%100)/10) == 1) ? "th" :
  3165. ((device->mAmbiOrder%10) == 1) ? "st" :
  3166. ((device->mAmbiOrder%10) == 2) ? "nd" :
  3167. ((device->mAmbiOrder%10) == 3) ? "rd" : "th");
  3168. else
  3169. {
  3170. device->mAmbiLayout = DevAmbiLayout::FuMa;
  3171. device->mAmbiScale = DevAmbiScaling::FuMa;
  3172. }
  3173. }
  3174. else if(al::strcasecmp(fmt, "ambix") == 0 || al::strcasecmp(fmt, "acn+sn3d") == 0)
  3175. {
  3176. device->mAmbiLayout = DevAmbiLayout::ACN;
  3177. device->mAmbiScale = DevAmbiScaling::SN3D;
  3178. }
  3179. else if(al::strcasecmp(fmt, "acn+n3d") == 0)
  3180. {
  3181. device->mAmbiLayout = DevAmbiLayout::ACN;
  3182. device->mAmbiScale = DevAmbiScaling::N3D;
  3183. }
  3184. else
  3185. ERR("Unsupported ambi-format: %s\n", fmt);
  3186. }
  3187. {
  3188. std::lock_guard<std::recursive_mutex> _{ListLock};
  3189. auto iter = std::lower_bound(DeviceList.cbegin(), DeviceList.cend(), device.get());
  3190. DeviceList.emplace(iter, device.get());
  3191. }
  3192. TRACE("Created device %p, \"%s\"\n", voidp{device.get()}, device->DeviceName.c_str());
  3193. return device.release();
  3194. }
  3195. END_API_FUNC
  3196. ALC_API ALCboolean ALC_APIENTRY alcCloseDevice(ALCdevice *device)
  3197. START_API_FUNC
  3198. {
  3199. std::unique_lock<std::recursive_mutex> listlock{ListLock};
  3200. auto iter = std::lower_bound(DeviceList.begin(), DeviceList.end(), device);
  3201. if(iter == DeviceList.end() || *iter != device)
  3202. {
  3203. alcSetError(nullptr, ALC_INVALID_DEVICE);
  3204. return ALC_FALSE;
  3205. }
  3206. if((*iter)->Type == DeviceType::Capture)
  3207. {
  3208. alcSetError(*iter, ALC_INVALID_DEVICE);
  3209. return ALC_FALSE;
  3210. }
  3211. /* Erase the device, and any remaining contexts left on it, from their
  3212. * respective lists.
  3213. */
  3214. DeviceRef dev{*iter};
  3215. DeviceList.erase(iter);
  3216. std::unique_lock<std::mutex> statelock{dev->StateLock};
  3217. al::vector<ContextRef> orphanctxs;
  3218. for(ALCcontext *ctx : *dev->mContexts.load())
  3219. {
  3220. auto ctxiter = std::lower_bound(ContextList.begin(), ContextList.end(), ctx);
  3221. if(ctxiter != ContextList.end() && *ctxiter == ctx)
  3222. {
  3223. orphanctxs.emplace_back(ContextRef{*ctxiter});
  3224. ContextList.erase(ctxiter);
  3225. }
  3226. }
  3227. listlock.unlock();
  3228. for(ContextRef &context : orphanctxs)
  3229. {
  3230. WARN("Releasing orphaned context %p\n", voidp{context.get()});
  3231. context->deinit();
  3232. }
  3233. orphanctxs.clear();
  3234. if(dev->Flags.test(DeviceRunning))
  3235. dev->Backend->stop();
  3236. dev->Flags.reset(DeviceRunning);
  3237. return ALC_TRUE;
  3238. }
  3239. END_API_FUNC
  3240. /************************************************
  3241. * ALC capture functions
  3242. ************************************************/
  3243. ALC_API ALCdevice* ALC_APIENTRY alcCaptureOpenDevice(const ALCchar *deviceName, ALCuint frequency, ALCenum format, ALCsizei samples)
  3244. START_API_FUNC
  3245. {
  3246. DO_INITCONFIG();
  3247. if(!CaptureFactory)
  3248. {
  3249. alcSetError(nullptr, ALC_INVALID_VALUE);
  3250. return nullptr;
  3251. }
  3252. if(samples <= 0)
  3253. {
  3254. alcSetError(nullptr, ALC_INVALID_VALUE);
  3255. return nullptr;
  3256. }
  3257. if(deviceName)
  3258. {
  3259. if(!deviceName[0] || al::strcasecmp(deviceName, alcDefaultName) == 0
  3260. || al::strcasecmp(deviceName, "openal-soft") == 0)
  3261. deviceName = nullptr;
  3262. }
  3263. DeviceRef device{new ALCdevice{DeviceType::Capture}};
  3264. auto decompfmt = DecomposeDevFormat(format);
  3265. if(!decompfmt)
  3266. {
  3267. alcSetError(nullptr, ALC_INVALID_ENUM);
  3268. return nullptr;
  3269. }
  3270. device->Frequency = frequency;
  3271. device->FmtChans = decompfmt->chans;
  3272. device->FmtType = decompfmt->type;
  3273. device->Flags.set(FrequencyRequest);
  3274. device->Flags.set(ChannelsRequest);
  3275. device->Flags.set(SampleTypeRequest);
  3276. device->UpdateSize = static_cast<uint>(samples);
  3277. device->BufferSize = static_cast<uint>(samples);
  3278. try {
  3279. TRACE("Capture format: %s, %s, %uhz, %u / %u buffer\n",
  3280. DevFmtChannelsString(device->FmtChans), DevFmtTypeString(device->FmtType),
  3281. device->Frequency, device->UpdateSize, device->BufferSize);
  3282. auto backend = CaptureFactory->createBackend(device.get(), BackendType::Capture);
  3283. std::lock_guard<std::recursive_mutex> _{ListLock};
  3284. backend->open(deviceName);
  3285. device->Backend = std::move(backend);
  3286. }
  3287. catch(al::backend_exception &e) {
  3288. WARN("Failed to open capture device: %s\n", e.what());
  3289. alcSetError(nullptr, (e.errorCode() == al::backend_error::OutOfMemory)
  3290. ? ALC_OUT_OF_MEMORY : ALC_INVALID_VALUE);
  3291. return nullptr;
  3292. }
  3293. {
  3294. std::lock_guard<std::recursive_mutex> _{ListLock};
  3295. auto iter = std::lower_bound(DeviceList.cbegin(), DeviceList.cend(), device.get());
  3296. DeviceList.emplace(iter, device.get());
  3297. }
  3298. TRACE("Created capture device %p, \"%s\"\n", voidp{device.get()}, device->DeviceName.c_str());
  3299. return device.release();
  3300. }
  3301. END_API_FUNC
  3302. ALC_API ALCboolean ALC_APIENTRY alcCaptureCloseDevice(ALCdevice *device)
  3303. START_API_FUNC
  3304. {
  3305. std::unique_lock<std::recursive_mutex> listlock{ListLock};
  3306. auto iter = std::lower_bound(DeviceList.begin(), DeviceList.end(), device);
  3307. if(iter == DeviceList.end() || *iter != device)
  3308. {
  3309. alcSetError(nullptr, ALC_INVALID_DEVICE);
  3310. return ALC_FALSE;
  3311. }
  3312. if((*iter)->Type != DeviceType::Capture)
  3313. {
  3314. alcSetError(*iter, ALC_INVALID_DEVICE);
  3315. return ALC_FALSE;
  3316. }
  3317. DeviceRef dev{*iter};
  3318. DeviceList.erase(iter);
  3319. listlock.unlock();
  3320. std::lock_guard<std::mutex> _{dev->StateLock};
  3321. if(dev->Flags.test(DeviceRunning))
  3322. dev->Backend->stop();
  3323. dev->Flags.reset(DeviceRunning);
  3324. return ALC_TRUE;
  3325. }
  3326. END_API_FUNC
  3327. ALC_API void ALC_APIENTRY alcCaptureStart(ALCdevice *device)
  3328. START_API_FUNC
  3329. {
  3330. DeviceRef dev{VerifyDevice(device)};
  3331. if(!dev || dev->Type != DeviceType::Capture)
  3332. {
  3333. alcSetError(dev.get(), ALC_INVALID_DEVICE);
  3334. return;
  3335. }
  3336. std::lock_guard<std::mutex> _{dev->StateLock};
  3337. if(!dev->Connected.load(std::memory_order_acquire))
  3338. alcSetError(dev.get(), ALC_INVALID_DEVICE);
  3339. else if(!dev->Flags.test(DeviceRunning))
  3340. {
  3341. try {
  3342. auto backend = dev->Backend.get();
  3343. backend->start();
  3344. dev->Flags.set(DeviceRunning);
  3345. }
  3346. catch(al::backend_exception& e) {
  3347. dev->handleDisconnect("%s", e.what());
  3348. alcSetError(dev.get(), ALC_INVALID_DEVICE);
  3349. }
  3350. }
  3351. }
  3352. END_API_FUNC
  3353. ALC_API void ALC_APIENTRY alcCaptureStop(ALCdevice *device)
  3354. START_API_FUNC
  3355. {
  3356. DeviceRef dev{VerifyDevice(device)};
  3357. if(!dev || dev->Type != DeviceType::Capture)
  3358. alcSetError(dev.get(), ALC_INVALID_DEVICE);
  3359. else
  3360. {
  3361. std::lock_guard<std::mutex> _{dev->StateLock};
  3362. if(dev->Flags.test(DeviceRunning))
  3363. dev->Backend->stop();
  3364. dev->Flags.reset(DeviceRunning);
  3365. }
  3366. }
  3367. END_API_FUNC
  3368. ALC_API void ALC_APIENTRY alcCaptureSamples(ALCdevice *device, ALCvoid *buffer, ALCsizei samples)
  3369. START_API_FUNC
  3370. {
  3371. DeviceRef dev{VerifyDevice(device)};
  3372. if(!dev || dev->Type != DeviceType::Capture)
  3373. {
  3374. alcSetError(dev.get(), ALC_INVALID_DEVICE);
  3375. return;
  3376. }
  3377. if(samples < 0 || (samples > 0 && buffer == nullptr))
  3378. {
  3379. alcSetError(dev.get(), ALC_INVALID_VALUE);
  3380. return;
  3381. }
  3382. if(samples < 1)
  3383. return;
  3384. std::lock_guard<std::mutex> _{dev->StateLock};
  3385. BackendBase *backend{dev->Backend.get()};
  3386. const auto usamples = static_cast<uint>(samples);
  3387. if(usamples > backend->availableSamples())
  3388. {
  3389. alcSetError(dev.get(), ALC_INVALID_VALUE);
  3390. return;
  3391. }
  3392. backend->captureSamples(static_cast<al::byte*>(buffer), usamples);
  3393. }
  3394. END_API_FUNC
  3395. /************************************************
  3396. * ALC loopback functions
  3397. ************************************************/
  3398. /** Open a loopback device, for manual rendering. */
  3399. ALC_API ALCdevice* ALC_APIENTRY alcLoopbackOpenDeviceSOFT(const ALCchar *deviceName)
  3400. START_API_FUNC
  3401. {
  3402. DO_INITCONFIG();
  3403. /* Make sure the device name, if specified, is us. */
  3404. if(deviceName && strcmp(deviceName, alcDefaultName) != 0)
  3405. {
  3406. alcSetError(nullptr, ALC_INVALID_VALUE);
  3407. return nullptr;
  3408. }
  3409. DeviceRef device{new ALCdevice{DeviceType::Loopback}};
  3410. device->SourcesMax = 256;
  3411. device->AuxiliaryEffectSlotMax = 64;
  3412. device->NumAuxSends = DEFAULT_SENDS;
  3413. //Set output format
  3414. device->BufferSize = 0;
  3415. device->UpdateSize = 0;
  3416. device->Frequency = DEFAULT_OUTPUT_RATE;
  3417. device->FmtChans = DevFmtChannelsDefault;
  3418. device->FmtType = DevFmtTypeDefault;
  3419. if(auto srcsmax = ConfigValueUInt(nullptr, nullptr, "sources").value_or(0))
  3420. device->SourcesMax = srcsmax;
  3421. if(auto slotsmax = ConfigValueUInt(nullptr, nullptr, "slots").value_or(0))
  3422. device->AuxiliaryEffectSlotMax = minu(slotsmax, INT_MAX);
  3423. if(auto sendsopt = ConfigValueInt(nullptr, nullptr, "sends"))
  3424. device->NumAuxSends = minu(DEFAULT_SENDS,
  3425. static_cast<uint>(clampi(*sendsopt, 0, MAX_SENDS)));
  3426. device->NumStereoSources = 1;
  3427. device->NumMonoSources = device->SourcesMax - device->NumStereoSources;
  3428. try {
  3429. auto backend = LoopbackBackendFactory::getFactory().createBackend(device.get(),
  3430. BackendType::Playback);
  3431. backend->open("Loopback");
  3432. device->Backend = std::move(backend);
  3433. }
  3434. catch(al::backend_exception &e) {
  3435. WARN("Failed to open loopback device: %s\n", e.what());
  3436. alcSetError(nullptr, (e.errorCode() == al::backend_error::OutOfMemory)
  3437. ? ALC_OUT_OF_MEMORY : ALC_INVALID_VALUE);
  3438. return nullptr;
  3439. }
  3440. {
  3441. std::lock_guard<std::recursive_mutex> _{ListLock};
  3442. auto iter = std::lower_bound(DeviceList.cbegin(), DeviceList.cend(), device.get());
  3443. DeviceList.emplace(iter, device.get());
  3444. }
  3445. TRACE("Created loopback device %p\n", voidp{device.get()});
  3446. return device.release();
  3447. }
  3448. END_API_FUNC
  3449. /**
  3450. * Determines if the loopback device supports the given format for rendering.
  3451. */
  3452. ALC_API ALCboolean ALC_APIENTRY alcIsRenderFormatSupportedSOFT(ALCdevice *device, ALCsizei freq, ALCenum channels, ALCenum type)
  3453. START_API_FUNC
  3454. {
  3455. DeviceRef dev{VerifyDevice(device)};
  3456. if(!dev || dev->Type != DeviceType::Loopback)
  3457. alcSetError(dev.get(), ALC_INVALID_DEVICE);
  3458. else if(freq <= 0)
  3459. alcSetError(dev.get(), ALC_INVALID_VALUE);
  3460. else
  3461. {
  3462. if(DevFmtTypeFromEnum(type).has_value() && DevFmtChannelsFromEnum(channels).has_value()
  3463. && freq >= MIN_OUTPUT_RATE && freq <= MAX_OUTPUT_RATE)
  3464. return ALC_TRUE;
  3465. }
  3466. return ALC_FALSE;
  3467. }
  3468. END_API_FUNC
  3469. /**
  3470. * Renders some samples into a buffer, using the format last set by the
  3471. * attributes given to alcCreateContext.
  3472. */
  3473. FORCE_ALIGN ALC_API void ALC_APIENTRY alcRenderSamplesSOFT(ALCdevice *device, ALCvoid *buffer, ALCsizei samples)
  3474. START_API_FUNC
  3475. {
  3476. DeviceRef dev{VerifyDevice(device)};
  3477. if(!dev || dev->Type != DeviceType::Loopback)
  3478. alcSetError(dev.get(), ALC_INVALID_DEVICE);
  3479. else if(samples < 0 || (samples > 0 && buffer == nullptr))
  3480. alcSetError(dev.get(), ALC_INVALID_VALUE);
  3481. else
  3482. dev->renderSamples(buffer, static_cast<uint>(samples), dev->channelsFromFmt());
  3483. }
  3484. END_API_FUNC
  3485. /************************************************
  3486. * ALC DSP pause/resume functions
  3487. ************************************************/
  3488. /** Pause the DSP to stop audio processing. */
  3489. ALC_API void ALC_APIENTRY alcDevicePauseSOFT(ALCdevice *device)
  3490. START_API_FUNC
  3491. {
  3492. DeviceRef dev{VerifyDevice(device)};
  3493. if(!dev || dev->Type != DeviceType::Playback)
  3494. alcSetError(dev.get(), ALC_INVALID_DEVICE);
  3495. else
  3496. {
  3497. std::lock_guard<std::mutex> _{dev->StateLock};
  3498. if(dev->Flags.test(DeviceRunning))
  3499. dev->Backend->stop();
  3500. dev->Flags.reset(DeviceRunning);
  3501. dev->Flags.set(DevicePaused);
  3502. }
  3503. }
  3504. END_API_FUNC
  3505. /** Resume the DSP to restart audio processing. */
  3506. ALC_API void ALC_APIENTRY alcDeviceResumeSOFT(ALCdevice *device)
  3507. START_API_FUNC
  3508. {
  3509. DeviceRef dev{VerifyDevice(device)};
  3510. if(!dev || dev->Type != DeviceType::Playback)
  3511. {
  3512. alcSetError(dev.get(), ALC_INVALID_DEVICE);
  3513. return;
  3514. }
  3515. std::lock_guard<std::mutex> _{dev->StateLock};
  3516. if(!dev->Flags.test(DevicePaused))
  3517. return;
  3518. dev->Flags.reset(DevicePaused);
  3519. if(dev->mContexts.load()->empty())
  3520. return;
  3521. try {
  3522. auto backend = dev->Backend.get();
  3523. backend->start();
  3524. dev->Flags.set(DeviceRunning);
  3525. }
  3526. catch(al::backend_exception& e) {
  3527. dev->handleDisconnect("%s", e.what());
  3528. alcSetError(dev.get(), ALC_INVALID_DEVICE);
  3529. }
  3530. }
  3531. END_API_FUNC
  3532. /************************************************
  3533. * ALC HRTF functions
  3534. ************************************************/
  3535. /** Gets a string parameter at the given index. */
  3536. ALC_API const ALCchar* ALC_APIENTRY alcGetStringiSOFT(ALCdevice *device, ALCenum paramName, ALCsizei index)
  3537. START_API_FUNC
  3538. {
  3539. DeviceRef dev{VerifyDevice(device)};
  3540. if(!dev || dev->Type == DeviceType::Capture)
  3541. alcSetError(dev.get(), ALC_INVALID_DEVICE);
  3542. else switch(paramName)
  3543. {
  3544. case ALC_HRTF_SPECIFIER_SOFT:
  3545. if(index >= 0 && static_cast<uint>(index) < dev->HrtfList.size())
  3546. return dev->HrtfList[static_cast<uint>(index)].c_str();
  3547. alcSetError(dev.get(), ALC_INVALID_VALUE);
  3548. break;
  3549. default:
  3550. alcSetError(dev.get(), ALC_INVALID_ENUM);
  3551. break;
  3552. }
  3553. return nullptr;
  3554. }
  3555. END_API_FUNC
  3556. /** Resets the given device output, using the specified attribute list. */
  3557. ALC_API ALCboolean ALC_APIENTRY alcResetDeviceSOFT(ALCdevice *device, const ALCint *attribs)
  3558. START_API_FUNC
  3559. {
  3560. std::unique_lock<std::recursive_mutex> listlock{ListLock};
  3561. DeviceRef dev{VerifyDevice(device)};
  3562. if(!dev || dev->Type == DeviceType::Capture)
  3563. {
  3564. listlock.unlock();
  3565. alcSetError(dev.get(), ALC_INVALID_DEVICE);
  3566. return ALC_FALSE;
  3567. }
  3568. std::lock_guard<std::mutex> _{dev->StateLock};
  3569. listlock.unlock();
  3570. /* Force the backend to stop mixing first since we're resetting. Also reset
  3571. * the connected state so lost devices can attempt recover.
  3572. */
  3573. if(dev->Flags.test(DeviceRunning))
  3574. dev->Backend->stop();
  3575. dev->Flags.reset(DeviceRunning);
  3576. if(!dev->Connected.load(std::memory_order_relaxed))
  3577. {
  3578. /* Make sure disconnection is finished before continuing on. */
  3579. dev->waitForMix();
  3580. for(ALCcontext *ctx : *dev->mContexts.load(std::memory_order_acquire))
  3581. {
  3582. /* Clear any pending voice changes and reallocate voices to get a
  3583. * clean restart.
  3584. */
  3585. std::lock_guard<std::mutex> __{ctx->mSourceLock};
  3586. auto *vchg = ctx->mCurrentVoiceChange.load(std::memory_order_acquire);
  3587. while(auto *next = vchg->mNext.load(std::memory_order_acquire))
  3588. vchg = next;
  3589. ctx->mCurrentVoiceChange.store(vchg, std::memory_order_release);
  3590. ctx->mVoiceClusters.clear();
  3591. ctx->allocVoices(std::max<size_t>(256,
  3592. ctx->mActiveVoiceCount.load(std::memory_order_relaxed)));
  3593. }
  3594. dev->Connected.store(true);
  3595. }
  3596. ALCenum err{UpdateDeviceParams(dev.get(), attribs)};
  3597. if LIKELY(err == ALC_NO_ERROR) return ALC_TRUE;
  3598. alcSetError(dev.get(), err);
  3599. return ALC_FALSE;
  3600. }
  3601. END_API_FUNC