winmm.c 24 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 <stdlib.h>
  22. #include <stdio.h>
  23. #include <memory.h>
  24. #include <windows.h>
  25. #include <mmsystem.h>
  26. #include "alMain.h"
  27. #include "alu.h"
  28. #include "threads.h"
  29. #include "backends/base.h"
  30. #ifndef WAVE_FORMAT_IEEE_FLOAT
  31. #define WAVE_FORMAT_IEEE_FLOAT 0x0003
  32. #endif
  33. #define DEVNAME_TAIL " on OpenAL Soft"
  34. static vector_al_string PlaybackDevices;
  35. static vector_al_string CaptureDevices;
  36. static void clear_devlist(vector_al_string *list)
  37. {
  38. VECTOR_FOR_EACH(al_string, *list, al_string_deinit);
  39. VECTOR_RESIZE(*list, 0);
  40. }
  41. static void ProbePlaybackDevices(void)
  42. {
  43. ALuint numdevs;
  44. ALuint i;
  45. clear_devlist(&PlaybackDevices);
  46. numdevs = waveOutGetNumDevs();
  47. VECTOR_RESERVE(PlaybackDevices, numdevs);
  48. for(i = 0;i < numdevs;i++)
  49. {
  50. WAVEOUTCAPSW WaveCaps;
  51. const al_string *iter;
  52. al_string dname;
  53. AL_STRING_INIT(dname);
  54. if(waveOutGetDevCapsW(i, &WaveCaps, sizeof(WaveCaps)) == MMSYSERR_NOERROR)
  55. {
  56. ALuint count = 0;
  57. while(1)
  58. {
  59. al_string_copy_wcstr(&dname, WaveCaps.szPname);
  60. if(count == 0)
  61. al_string_append_cstr(&dname, DEVNAME_TAIL);
  62. else
  63. {
  64. char str[64];
  65. snprintf(str, sizeof(str), " #%d"DEVNAME_TAIL, count+1);
  66. al_string_append_cstr(&dname, str);
  67. }
  68. count++;
  69. #define MATCH_ENTRY(i) (al_string_cmp(dname, *(i)) == 0)
  70. VECTOR_FIND_IF(iter, const al_string, PlaybackDevices, MATCH_ENTRY);
  71. if(iter == VECTOR_ITER_END(PlaybackDevices)) break;
  72. #undef MATCH_ENTRY
  73. }
  74. TRACE("Got device \"%s\", ID %u\n", al_string_get_cstr(dname), i);
  75. }
  76. VECTOR_PUSH_BACK(PlaybackDevices, dname);
  77. }
  78. }
  79. static void ProbeCaptureDevices(void)
  80. {
  81. ALuint numdevs;
  82. ALuint i;
  83. clear_devlist(&CaptureDevices);
  84. numdevs = waveInGetNumDevs();
  85. VECTOR_RESERVE(CaptureDevices, numdevs);
  86. for(i = 0;i < numdevs;i++)
  87. {
  88. WAVEINCAPSW WaveCaps;
  89. const al_string *iter;
  90. al_string dname;
  91. AL_STRING_INIT(dname);
  92. if(waveInGetDevCapsW(i, &WaveCaps, sizeof(WaveCaps)) == MMSYSERR_NOERROR)
  93. {
  94. ALuint count = 0;
  95. while(1)
  96. {
  97. al_string_copy_wcstr(&dname, WaveCaps.szPname);
  98. if(count == 0)
  99. al_string_append_cstr(&dname, DEVNAME_TAIL);
  100. else
  101. {
  102. char str[64];
  103. snprintf(str, sizeof(str), " #%d"DEVNAME_TAIL, count+1);
  104. al_string_append_cstr(&dname, str);
  105. }
  106. count++;
  107. #define MATCH_ENTRY(i) (al_string_cmp(dname, *(i)) == 0)
  108. VECTOR_FIND_IF(iter, const al_string, CaptureDevices, MATCH_ENTRY);
  109. if(iter == VECTOR_ITER_END(CaptureDevices)) break;
  110. #undef MATCH_ENTRY
  111. }
  112. TRACE("Got device \"%s\", ID %u\n", al_string_get_cstr(dname), i);
  113. }
  114. VECTOR_PUSH_BACK(CaptureDevices, dname);
  115. }
  116. }
  117. typedef struct ALCwinmmPlayback {
  118. DERIVE_FROM_TYPE(ALCbackend);
  119. RefCount WaveBuffersCommitted;
  120. WAVEHDR WaveBuffer[4];
  121. HWAVEOUT OutHdl;
  122. WAVEFORMATEX Format;
  123. volatile ALboolean killNow;
  124. althrd_t thread;
  125. } ALCwinmmPlayback;
  126. static void ALCwinmmPlayback_Construct(ALCwinmmPlayback *self, ALCdevice *device);
  127. static void ALCwinmmPlayback_Destruct(ALCwinmmPlayback *self);
  128. static void CALLBACK ALCwinmmPlayback_waveOutProc(HWAVEOUT device, UINT msg, DWORD_PTR instance, DWORD_PTR param1, DWORD_PTR param2);
  129. static int ALCwinmmPlayback_mixerProc(void *arg);
  130. static ALCenum ALCwinmmPlayback_open(ALCwinmmPlayback *self, const ALCchar *name);
  131. static void ALCwinmmPlayback_close(ALCwinmmPlayback *self);
  132. static ALCboolean ALCwinmmPlayback_reset(ALCwinmmPlayback *self);
  133. static ALCboolean ALCwinmmPlayback_start(ALCwinmmPlayback *self);
  134. static void ALCwinmmPlayback_stop(ALCwinmmPlayback *self);
  135. static DECLARE_FORWARD2(ALCwinmmPlayback, ALCbackend, ALCenum, captureSamples, ALCvoid*, ALCuint)
  136. static DECLARE_FORWARD(ALCwinmmPlayback, ALCbackend, ALCuint, availableSamples)
  137. static DECLARE_FORWARD(ALCwinmmPlayback, ALCbackend, ALint64, getLatency)
  138. static DECLARE_FORWARD(ALCwinmmPlayback, ALCbackend, void, lock)
  139. static DECLARE_FORWARD(ALCwinmmPlayback, ALCbackend, void, unlock)
  140. DECLARE_DEFAULT_ALLOCATORS(ALCwinmmPlayback)
  141. DEFINE_ALCBACKEND_VTABLE(ALCwinmmPlayback);
  142. static void ALCwinmmPlayback_Construct(ALCwinmmPlayback *self, ALCdevice *device)
  143. {
  144. ALCbackend_Construct(STATIC_CAST(ALCbackend, self), device);
  145. SET_VTABLE2(ALCwinmmPlayback, ALCbackend, self);
  146. InitRef(&self->WaveBuffersCommitted, 0);
  147. self->OutHdl = NULL;
  148. self->killNow = AL_TRUE;
  149. }
  150. static void ALCwinmmPlayback_Destruct(ALCwinmmPlayback *self)
  151. {
  152. if(self->OutHdl)
  153. waveOutClose(self->OutHdl);
  154. self->OutHdl = 0;
  155. ALCbackend_Destruct(STATIC_CAST(ALCbackend, self));
  156. }
  157. /* ALCwinmmPlayback_waveOutProc
  158. *
  159. * Posts a message to 'ALCwinmmPlayback_mixerProc' everytime a WaveOut Buffer
  160. * is completed and returns to the application (for more data)
  161. */
  162. static void CALLBACK ALCwinmmPlayback_waveOutProc(HWAVEOUT UNUSED(device), UINT msg, DWORD_PTR instance, DWORD_PTR param1, DWORD_PTR UNUSED(param2))
  163. {
  164. ALCwinmmPlayback *self = (ALCwinmmPlayback*)instance;
  165. if(msg != WOM_DONE)
  166. return;
  167. DecrementRef(&self->WaveBuffersCommitted);
  168. PostThreadMessage(self->thread, msg, 0, param1);
  169. }
  170. FORCE_ALIGN static int ALCwinmmPlayback_mixerProc(void *arg)
  171. {
  172. ALCwinmmPlayback *self = arg;
  173. ALCdevice *device = STATIC_CAST(ALCbackend, self)->mDevice;
  174. WAVEHDR *WaveHdr;
  175. MSG msg;
  176. SetRTPriority();
  177. althrd_setname(althrd_current(), MIXER_THREAD_NAME);
  178. while(GetMessage(&msg, NULL, 0, 0))
  179. {
  180. if(msg.message != WOM_DONE)
  181. continue;
  182. if(self->killNow)
  183. {
  184. if(ReadRef(&self->WaveBuffersCommitted) == 0)
  185. break;
  186. continue;
  187. }
  188. WaveHdr = ((WAVEHDR*)msg.lParam);
  189. aluMixData(device, WaveHdr->lpData, WaveHdr->dwBufferLength /
  190. self->Format.nBlockAlign);
  191. // Send buffer back to play more data
  192. waveOutWrite(self->OutHdl, WaveHdr, sizeof(WAVEHDR));
  193. IncrementRef(&self->WaveBuffersCommitted);
  194. }
  195. return 0;
  196. }
  197. static ALCenum ALCwinmmPlayback_open(ALCwinmmPlayback *self, const ALCchar *deviceName)
  198. {
  199. ALCdevice *device = STATIC_CAST(ALCbackend, self)->mDevice;
  200. const al_string *iter;
  201. UINT DeviceID;
  202. MMRESULT res;
  203. if(VECTOR_SIZE(PlaybackDevices) == 0)
  204. ProbePlaybackDevices();
  205. // Find the Device ID matching the deviceName if valid
  206. #define MATCH_DEVNAME(iter) (!al_string_empty(*(iter)) && \
  207. (!deviceName || al_string_cmp_cstr(*(iter), deviceName) == 0))
  208. VECTOR_FIND_IF(iter, const al_string, PlaybackDevices, MATCH_DEVNAME);
  209. if(iter == VECTOR_ITER_END(PlaybackDevices))
  210. return ALC_INVALID_VALUE;
  211. #undef MATCH_DEVNAME
  212. DeviceID = (UINT)(iter - VECTOR_ITER_BEGIN(PlaybackDevices));
  213. retry_open:
  214. memset(&self->Format, 0, sizeof(WAVEFORMATEX));
  215. if(device->FmtType == DevFmtFloat)
  216. {
  217. self->Format.wFormatTag = WAVE_FORMAT_IEEE_FLOAT;
  218. self->Format.wBitsPerSample = 32;
  219. }
  220. else
  221. {
  222. self->Format.wFormatTag = WAVE_FORMAT_PCM;
  223. if(device->FmtType == DevFmtUByte || device->FmtType == DevFmtByte)
  224. self->Format.wBitsPerSample = 8;
  225. else
  226. self->Format.wBitsPerSample = 16;
  227. }
  228. self->Format.nChannels = ((device->FmtChans == DevFmtMono) ? 1 : 2);
  229. self->Format.nBlockAlign = self->Format.wBitsPerSample *
  230. self->Format.nChannels / 8;
  231. self->Format.nSamplesPerSec = device->Frequency;
  232. self->Format.nAvgBytesPerSec = self->Format.nSamplesPerSec *
  233. self->Format.nBlockAlign;
  234. self->Format.cbSize = 0;
  235. if((res=waveOutOpen(&self->OutHdl, DeviceID, &self->Format, (DWORD_PTR)&ALCwinmmPlayback_waveOutProc, (DWORD_PTR)self, CALLBACK_FUNCTION)) != MMSYSERR_NOERROR)
  236. {
  237. if(device->FmtType == DevFmtFloat)
  238. {
  239. device->FmtType = DevFmtShort;
  240. goto retry_open;
  241. }
  242. ERR("waveOutOpen failed: %u\n", res);
  243. goto failure;
  244. }
  245. al_string_copy(&device->DeviceName, VECTOR_ELEM(PlaybackDevices, DeviceID));
  246. return ALC_NO_ERROR;
  247. failure:
  248. if(self->OutHdl)
  249. waveOutClose(self->OutHdl);
  250. self->OutHdl = NULL;
  251. return ALC_INVALID_VALUE;
  252. }
  253. static void ALCwinmmPlayback_close(ALCwinmmPlayback* UNUSED(self))
  254. { }
  255. static ALCboolean ALCwinmmPlayback_reset(ALCwinmmPlayback *self)
  256. {
  257. ALCdevice *device = STATIC_CAST(ALCbackend, self)->mDevice;
  258. device->UpdateSize = (ALuint)((ALuint64)device->UpdateSize *
  259. self->Format.nSamplesPerSec /
  260. device->Frequency);
  261. device->UpdateSize = (device->UpdateSize*device->NumUpdates + 3) / 4;
  262. device->NumUpdates = 4;
  263. device->Frequency = self->Format.nSamplesPerSec;
  264. if(self->Format.wFormatTag == WAVE_FORMAT_IEEE_FLOAT)
  265. {
  266. if(self->Format.wBitsPerSample == 32)
  267. device->FmtType = DevFmtFloat;
  268. else
  269. {
  270. ERR("Unhandled IEEE float sample depth: %d\n", self->Format.wBitsPerSample);
  271. return ALC_FALSE;
  272. }
  273. }
  274. else if(self->Format.wFormatTag == WAVE_FORMAT_PCM)
  275. {
  276. if(self->Format.wBitsPerSample == 16)
  277. device->FmtType = DevFmtShort;
  278. else if(self->Format.wBitsPerSample == 8)
  279. device->FmtType = DevFmtUByte;
  280. else
  281. {
  282. ERR("Unhandled PCM sample depth: %d\n", self->Format.wBitsPerSample);
  283. return ALC_FALSE;
  284. }
  285. }
  286. else
  287. {
  288. ERR("Unhandled format tag: 0x%04x\n", self->Format.wFormatTag);
  289. return ALC_FALSE;
  290. }
  291. if(self->Format.nChannels == 2)
  292. device->FmtChans = DevFmtStereo;
  293. else if(self->Format.nChannels == 1)
  294. device->FmtChans = DevFmtMono;
  295. else
  296. {
  297. ERR("Unhandled channel count: %d\n", self->Format.nChannels);
  298. return ALC_FALSE;
  299. }
  300. SetDefaultWFXChannelOrder(device);
  301. return ALC_TRUE;
  302. }
  303. static ALCboolean ALCwinmmPlayback_start(ALCwinmmPlayback *self)
  304. {
  305. ALCdevice *device = STATIC_CAST(ALCbackend, self)->mDevice;
  306. ALbyte *BufferData;
  307. ALint BufferSize;
  308. ALuint i;
  309. self->killNow = AL_FALSE;
  310. if(althrd_create(&self->thread, ALCwinmmPlayback_mixerProc, self) != althrd_success)
  311. return ALC_FALSE;
  312. InitRef(&self->WaveBuffersCommitted, 0);
  313. // Create 4 Buffers
  314. BufferSize = device->UpdateSize*device->NumUpdates / 4;
  315. BufferSize *= FrameSizeFromDevFmt(device->FmtChans, device->FmtType);
  316. BufferData = calloc(4, BufferSize);
  317. for(i = 0;i < 4;i++)
  318. {
  319. memset(&self->WaveBuffer[i], 0, sizeof(WAVEHDR));
  320. self->WaveBuffer[i].dwBufferLength = BufferSize;
  321. self->WaveBuffer[i].lpData = ((i==0) ? (CHAR*)BufferData :
  322. (self->WaveBuffer[i-1].lpData +
  323. self->WaveBuffer[i-1].dwBufferLength));
  324. waveOutPrepareHeader(self->OutHdl, &self->WaveBuffer[i], sizeof(WAVEHDR));
  325. waveOutWrite(self->OutHdl, &self->WaveBuffer[i], sizeof(WAVEHDR));
  326. IncrementRef(&self->WaveBuffersCommitted);
  327. }
  328. return ALC_TRUE;
  329. }
  330. static void ALCwinmmPlayback_stop(ALCwinmmPlayback *self)
  331. {
  332. void *buffer = NULL;
  333. int i;
  334. if(self->killNow)
  335. return;
  336. // Set flag to stop processing headers
  337. self->killNow = AL_TRUE;
  338. althrd_join(self->thread, &i);
  339. // Release the wave buffers
  340. for(i = 0;i < 4;i++)
  341. {
  342. waveOutUnprepareHeader(self->OutHdl, &self->WaveBuffer[i], sizeof(WAVEHDR));
  343. if(i == 0) buffer = self->WaveBuffer[i].lpData;
  344. self->WaveBuffer[i].lpData = NULL;
  345. }
  346. free(buffer);
  347. }
  348. typedef struct ALCwinmmCapture {
  349. DERIVE_FROM_TYPE(ALCbackend);
  350. RefCount WaveBuffersCommitted;
  351. WAVEHDR WaveBuffer[4];
  352. HWAVEIN InHdl;
  353. RingBuffer *Ring;
  354. WAVEFORMATEX Format;
  355. volatile ALboolean killNow;
  356. althrd_t thread;
  357. } ALCwinmmCapture;
  358. static void ALCwinmmCapture_Construct(ALCwinmmCapture *self, ALCdevice *device);
  359. static void ALCwinmmCapture_Destruct(ALCwinmmCapture *self);
  360. static void CALLBACK ALCwinmmCapture_waveInProc(HWAVEIN device, UINT msg, DWORD_PTR instance, DWORD_PTR param1, DWORD_PTR param2);
  361. static int ALCwinmmCapture_captureProc(void *arg);
  362. static ALCenum ALCwinmmCapture_open(ALCwinmmCapture *self, const ALCchar *name);
  363. static void ALCwinmmCapture_close(ALCwinmmCapture *self);
  364. static DECLARE_FORWARD(ALCwinmmCapture, ALCbackend, ALCboolean, reset)
  365. static ALCboolean ALCwinmmCapture_start(ALCwinmmCapture *self);
  366. static void ALCwinmmCapture_stop(ALCwinmmCapture *self);
  367. static ALCenum ALCwinmmCapture_captureSamples(ALCwinmmCapture *self, ALCvoid *buffer, ALCuint samples);
  368. static ALCuint ALCwinmmCapture_availableSamples(ALCwinmmCapture *self);
  369. static DECLARE_FORWARD(ALCwinmmCapture, ALCbackend, ALint64, getLatency)
  370. static DECLARE_FORWARD(ALCwinmmCapture, ALCbackend, void, lock)
  371. static DECLARE_FORWARD(ALCwinmmCapture, ALCbackend, void, unlock)
  372. DECLARE_DEFAULT_ALLOCATORS(ALCwinmmCapture)
  373. DEFINE_ALCBACKEND_VTABLE(ALCwinmmCapture);
  374. static void ALCwinmmCapture_Construct(ALCwinmmCapture *self, ALCdevice *device)
  375. {
  376. ALCbackend_Construct(STATIC_CAST(ALCbackend, self), device);
  377. SET_VTABLE2(ALCwinmmCapture, ALCbackend, self);
  378. InitRef(&self->WaveBuffersCommitted, 0);
  379. self->InHdl = NULL;
  380. self->killNow = AL_TRUE;
  381. }
  382. static void ALCwinmmCapture_Destruct(ALCwinmmCapture *self)
  383. {
  384. if(self->InHdl)
  385. waveInClose(self->InHdl);
  386. self->InHdl = 0;
  387. ALCbackend_Destruct(STATIC_CAST(ALCbackend, self));
  388. }
  389. /* ALCwinmmCapture_waveInProc
  390. *
  391. * Posts a message to 'ALCwinmmCapture_captureProc' everytime a WaveIn Buffer
  392. * is completed and returns to the application (with more data).
  393. */
  394. static void CALLBACK ALCwinmmCapture_waveInProc(HWAVEIN UNUSED(device), UINT msg, DWORD_PTR instance, DWORD_PTR param1, DWORD_PTR UNUSED(param2))
  395. {
  396. ALCwinmmCapture *self = (ALCwinmmCapture*)instance;
  397. if(msg != WIM_DATA)
  398. return;
  399. DecrementRef(&self->WaveBuffersCommitted);
  400. PostThreadMessage(self->thread, msg, 0, param1);
  401. }
  402. static int ALCwinmmCapture_captureProc(void *arg)
  403. {
  404. ALCwinmmCapture *self = arg;
  405. WAVEHDR *WaveHdr;
  406. MSG msg;
  407. althrd_setname(althrd_current(), RECORD_THREAD_NAME);
  408. while(GetMessage(&msg, NULL, 0, 0))
  409. {
  410. if(msg.message != WIM_DATA)
  411. continue;
  412. /* Don't wait for other buffers to finish before quitting. We're
  413. * closing so we don't need them. */
  414. if(self->killNow)
  415. break;
  416. WaveHdr = ((WAVEHDR*)msg.lParam);
  417. WriteRingBuffer(self->Ring, (ALubyte*)WaveHdr->lpData,
  418. WaveHdr->dwBytesRecorded/self->Format.nBlockAlign);
  419. // Send buffer back to capture more data
  420. waveInAddBuffer(self->InHdl, WaveHdr, sizeof(WAVEHDR));
  421. IncrementRef(&self->WaveBuffersCommitted);
  422. }
  423. return 0;
  424. }
  425. static ALCenum ALCwinmmCapture_open(ALCwinmmCapture *self, const ALCchar *name)
  426. {
  427. ALCdevice *device = STATIC_CAST(ALCbackend, self)->mDevice;
  428. const al_string *iter;
  429. ALbyte *BufferData = NULL;
  430. DWORD CapturedDataSize;
  431. ALint BufferSize;
  432. UINT DeviceID;
  433. MMRESULT res;
  434. ALuint i;
  435. if(VECTOR_SIZE(CaptureDevices) == 0)
  436. ProbeCaptureDevices();
  437. // Find the Device ID matching the deviceName if valid
  438. #define MATCH_DEVNAME(iter) (!al_string_empty(*(iter)) && (!name || al_string_cmp_cstr(*iter, name) == 0))
  439. VECTOR_FIND_IF(iter, const al_string, CaptureDevices, MATCH_DEVNAME);
  440. if(iter == VECTOR_ITER_END(CaptureDevices))
  441. return ALC_INVALID_VALUE;
  442. #undef MATCH_DEVNAME
  443. DeviceID = (UINT)(iter - VECTOR_ITER_BEGIN(CaptureDevices));
  444. switch(device->FmtChans)
  445. {
  446. case DevFmtMono:
  447. case DevFmtStereo:
  448. break;
  449. case DevFmtQuad:
  450. case DevFmtX51:
  451. case DevFmtX51Rear:
  452. case DevFmtX61:
  453. case DevFmtX71:
  454. case DevFmtBFormat3D:
  455. return ALC_INVALID_ENUM;
  456. }
  457. switch(device->FmtType)
  458. {
  459. case DevFmtUByte:
  460. case DevFmtShort:
  461. case DevFmtInt:
  462. case DevFmtFloat:
  463. break;
  464. case DevFmtByte:
  465. case DevFmtUShort:
  466. case DevFmtUInt:
  467. return ALC_INVALID_ENUM;
  468. }
  469. memset(&self->Format, 0, sizeof(WAVEFORMATEX));
  470. self->Format.wFormatTag = ((device->FmtType == DevFmtFloat) ?
  471. WAVE_FORMAT_IEEE_FLOAT : WAVE_FORMAT_PCM);
  472. self->Format.nChannels = ChannelsFromDevFmt(device->FmtChans);
  473. self->Format.wBitsPerSample = BytesFromDevFmt(device->FmtType) * 8;
  474. self->Format.nBlockAlign = self->Format.wBitsPerSample *
  475. self->Format.nChannels / 8;
  476. self->Format.nSamplesPerSec = device->Frequency;
  477. self->Format.nAvgBytesPerSec = self->Format.nSamplesPerSec *
  478. self->Format.nBlockAlign;
  479. self->Format.cbSize = 0;
  480. if((res=waveInOpen(&self->InHdl, DeviceID, &self->Format, (DWORD_PTR)&ALCwinmmCapture_waveInProc, (DWORD_PTR)self, CALLBACK_FUNCTION)) != MMSYSERR_NOERROR)
  481. {
  482. ERR("waveInOpen failed: %u\n", res);
  483. goto failure;
  484. }
  485. // Allocate circular memory buffer for the captured audio
  486. CapturedDataSize = device->UpdateSize*device->NumUpdates;
  487. // Make sure circular buffer is at least 100ms in size
  488. if(CapturedDataSize < (self->Format.nSamplesPerSec / 10))
  489. CapturedDataSize = self->Format.nSamplesPerSec / 10;
  490. self->Ring = CreateRingBuffer(self->Format.nBlockAlign, CapturedDataSize);
  491. if(!self->Ring) goto failure;
  492. InitRef(&self->WaveBuffersCommitted, 0);
  493. // Create 4 Buffers of 50ms each
  494. BufferSize = self->Format.nAvgBytesPerSec / 20;
  495. BufferSize -= (BufferSize % self->Format.nBlockAlign);
  496. BufferData = calloc(4, BufferSize);
  497. if(!BufferData) goto failure;
  498. for(i = 0;i < 4;i++)
  499. {
  500. memset(&self->WaveBuffer[i], 0, sizeof(WAVEHDR));
  501. self->WaveBuffer[i].dwBufferLength = BufferSize;
  502. self->WaveBuffer[i].lpData = ((i==0) ? (CHAR*)BufferData :
  503. (self->WaveBuffer[i-1].lpData +
  504. self->WaveBuffer[i-1].dwBufferLength));
  505. self->WaveBuffer[i].dwFlags = 0;
  506. self->WaveBuffer[i].dwLoops = 0;
  507. waveInPrepareHeader(self->InHdl, &self->WaveBuffer[i], sizeof(WAVEHDR));
  508. waveInAddBuffer(self->InHdl, &self->WaveBuffer[i], sizeof(WAVEHDR));
  509. IncrementRef(&self->WaveBuffersCommitted);
  510. }
  511. self->killNow = AL_FALSE;
  512. if(althrd_create(&self->thread, ALCwinmmCapture_captureProc, self) != althrd_success)
  513. goto failure;
  514. al_string_copy(&device->DeviceName, VECTOR_ELEM(CaptureDevices, DeviceID));
  515. return ALC_NO_ERROR;
  516. failure:
  517. if(BufferData)
  518. {
  519. for(i = 0;i < 4;i++)
  520. waveInUnprepareHeader(self->InHdl, &self->WaveBuffer[i], sizeof(WAVEHDR));
  521. free(BufferData);
  522. }
  523. if(self->Ring)
  524. DestroyRingBuffer(self->Ring);
  525. self->Ring = NULL;
  526. if(self->InHdl)
  527. waveInClose(self->InHdl);
  528. self->InHdl = NULL;
  529. return ALC_INVALID_VALUE;
  530. }
  531. static void ALCwinmmCapture_close(ALCwinmmCapture *self)
  532. {
  533. void *buffer = NULL;
  534. int i;
  535. /* Tell the processing thread to quit and wait for it to do so. */
  536. self->killNow = AL_TRUE;
  537. PostThreadMessage(self->thread, WM_QUIT, 0, 0);
  538. althrd_join(self->thread, &i);
  539. /* Make sure capture is stopped and all pending buffers are flushed. */
  540. waveInReset(self->InHdl);
  541. // Release the wave buffers
  542. for(i = 0;i < 4;i++)
  543. {
  544. waveInUnprepareHeader(self->InHdl, &self->WaveBuffer[i], sizeof(WAVEHDR));
  545. if(i == 0) buffer = self->WaveBuffer[i].lpData;
  546. self->WaveBuffer[i].lpData = NULL;
  547. }
  548. free(buffer);
  549. DestroyRingBuffer(self->Ring);
  550. self->Ring = NULL;
  551. // Close the Wave device
  552. waveInClose(self->InHdl);
  553. self->InHdl = NULL;
  554. }
  555. static ALCboolean ALCwinmmCapture_start(ALCwinmmCapture *self)
  556. {
  557. waveInStart(self->InHdl);
  558. return ALC_TRUE;
  559. }
  560. static void ALCwinmmCapture_stop(ALCwinmmCapture *self)
  561. {
  562. waveInStop(self->InHdl);
  563. }
  564. static ALCenum ALCwinmmCapture_captureSamples(ALCwinmmCapture *self, ALCvoid *buffer, ALCuint samples)
  565. {
  566. ReadRingBuffer(self->Ring, buffer, samples);
  567. return ALC_NO_ERROR;
  568. }
  569. static ALCuint ALCwinmmCapture_availableSamples(ALCwinmmCapture *self)
  570. {
  571. return RingBufferSize(self->Ring);
  572. }
  573. static inline void AppendAllDevicesList2(const al_string *name)
  574. {
  575. if(!al_string_empty(*name))
  576. AppendAllDevicesList(al_string_get_cstr(*name));
  577. }
  578. static inline void AppendCaptureDeviceList2(const al_string *name)
  579. {
  580. if(!al_string_empty(*name))
  581. AppendCaptureDeviceList(al_string_get_cstr(*name));
  582. }
  583. typedef struct ALCwinmmBackendFactory {
  584. DERIVE_FROM_TYPE(ALCbackendFactory);
  585. } ALCwinmmBackendFactory;
  586. #define ALCWINMMBACKENDFACTORY_INITIALIZER { { GET_VTABLE2(ALCwinmmBackendFactory, ALCbackendFactory) } }
  587. static ALCboolean ALCwinmmBackendFactory_init(ALCwinmmBackendFactory *self);
  588. static void ALCwinmmBackendFactory_deinit(ALCwinmmBackendFactory *self);
  589. static ALCboolean ALCwinmmBackendFactory_querySupport(ALCwinmmBackendFactory *self, ALCbackend_Type type);
  590. static void ALCwinmmBackendFactory_probe(ALCwinmmBackendFactory *self, enum DevProbe type);
  591. static ALCbackend* ALCwinmmBackendFactory_createBackend(ALCwinmmBackendFactory *self, ALCdevice *device, ALCbackend_Type type);
  592. DEFINE_ALCBACKENDFACTORY_VTABLE(ALCwinmmBackendFactory);
  593. static ALCboolean ALCwinmmBackendFactory_init(ALCwinmmBackendFactory* UNUSED(self))
  594. {
  595. VECTOR_INIT(PlaybackDevices);
  596. VECTOR_INIT(CaptureDevices);
  597. return ALC_TRUE;
  598. }
  599. static void ALCwinmmBackendFactory_deinit(ALCwinmmBackendFactory* UNUSED(self))
  600. {
  601. clear_devlist(&PlaybackDevices);
  602. VECTOR_DEINIT(PlaybackDevices);
  603. clear_devlist(&CaptureDevices);
  604. VECTOR_DEINIT(CaptureDevices);
  605. }
  606. static ALCboolean ALCwinmmBackendFactory_querySupport(ALCwinmmBackendFactory* UNUSED(self), ALCbackend_Type type)
  607. {
  608. if(type == ALCbackend_Playback || type == ALCbackend_Capture)
  609. return ALC_TRUE;
  610. return ALC_FALSE;
  611. }
  612. static void ALCwinmmBackendFactory_probe(ALCwinmmBackendFactory* UNUSED(self), enum DevProbe type)
  613. {
  614. switch(type)
  615. {
  616. case ALL_DEVICE_PROBE:
  617. ProbePlaybackDevices();
  618. VECTOR_FOR_EACH(const al_string, PlaybackDevices, AppendAllDevicesList2);
  619. break;
  620. case CAPTURE_DEVICE_PROBE:
  621. ProbeCaptureDevices();
  622. VECTOR_FOR_EACH(const al_string, CaptureDevices, AppendCaptureDeviceList2);
  623. break;
  624. }
  625. }
  626. static ALCbackend* ALCwinmmBackendFactory_createBackend(ALCwinmmBackendFactory* UNUSED(self), ALCdevice *device, ALCbackend_Type type)
  627. {
  628. if(type == ALCbackend_Playback)
  629. {
  630. ALCwinmmPlayback *backend;
  631. NEW_OBJ(backend, ALCwinmmPlayback)(device);
  632. if(!backend) return NULL;
  633. return STATIC_CAST(ALCbackend, backend);
  634. }
  635. if(type == ALCbackend_Capture)
  636. {
  637. ALCwinmmCapture *backend;
  638. NEW_OBJ(backend, ALCwinmmCapture)(device);
  639. if(!backend) return NULL;
  640. return STATIC_CAST(ALCbackend, backend);
  641. }
  642. return NULL;
  643. }
  644. ALCbackendFactory *ALCwinmmBackendFactory_getFactory(void)
  645. {
  646. static ALCwinmmBackendFactory factory = ALCWINMMBACKENDFACTORY_INITIALIZER;
  647. return STATIC_CAST(ALCbackendFactory, &factory);
  648. }