Audio plugin host https://kx.studio/carla
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  1. /*
  2. * Carla Plugin Host
  3. * Copyright (C) 2011-2019 Filipe Coelho <falktx@falktx.com>
  4. *
  5. * This program is free software; you can redistribute it and/or
  6. * modify it under the terms of the GNU General Public License as
  7. * published by the Free Software Foundation; either version 2 of
  8. * the License, or any later version.
  9. *
  10. * This program is distributed in the hope that it will be useful,
  11. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  12. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  13. * GNU General Public License for more details.
  14. *
  15. * For a full copy of the GNU General Public License see the doc/GPL.txt file.
  16. */
  17. #include "CarlaEngineGraph.hpp"
  18. #include "CarlaEngineInternal.hpp"
  19. #include "CarlaBackendUtils.hpp"
  20. #include "CarlaMathUtils.hpp"
  21. #include "CarlaStringList.hpp"
  22. #include "RtLinkedList.hpp"
  23. #include "jackbridge/JackBridge.hpp"
  24. #if defined(__clang__)
  25. # pragma clang diagnostic push
  26. # pragma clang diagnostic ignored "-Wconversion"
  27. # pragma clang diagnostic ignored "-Weffc++"
  28. #elif defined(__GNUC__) && (__GNUC__ > 4 || (__GNUC__ == 4 && __GNUC_MINOR__ >= 6))
  29. # pragma GCC diagnostic push
  30. # pragma GCC diagnostic ignored "-Wconversion"
  31. # pragma GCC diagnostic ignored "-Weffc++"
  32. # pragma GCC diagnostic ignored "-Wzero-as-null-pointer-constant"
  33. #endif
  34. #include "rtaudio/RtAudio.h"
  35. #include "rtmidi/RtMidi.h"
  36. #if defined(__clang__)
  37. # pragma clang diagnostic pop
  38. #elif defined(__GNUC__) && (__GNUC__ > 4 || (__GNUC__ == 4 && __GNUC_MINOR__ >= 6))
  39. # pragma GCC diagnostic pop
  40. #endif
  41. CARLA_BACKEND_START_NAMESPACE
  42. // -------------------------------------------------------------------------------------------------------------------
  43. // Global static data
  44. static CharStringListPtr gDeviceNames;
  45. static std::vector<RtAudio::Api> gRtAudioApis;
  46. // -------------------------------------------------------------------------------------------------------------------
  47. static void initRtAudioAPIsIfNeeded()
  48. {
  49. static bool needsInit = true;
  50. if (! needsInit)
  51. return;
  52. needsInit = false;
  53. // get APIs in a local var, and pass wanted ones into gRtAudioApis
  54. std::vector<RtAudio::Api> apis;
  55. RtAudio::getCompiledApi(apis);
  56. for (std::vector<RtAudio::Api>::const_iterator it = apis.begin(), end=apis.end(); it != end; ++it)
  57. {
  58. const RtAudio::Api& api(*it);
  59. if (api == RtAudio::UNIX_JACK)
  60. {
  61. #if defined(CARLA_OS_LINUX) || defined(CARLA_OS_MAC) || defined(CARLA_OS_WIN)
  62. if ( ! jackbridge_is_ok())
  63. continue;
  64. #else
  65. /* NOTE
  66. * RtMidi doesn't have a native MIDI backend for these OSes,
  67. * Using RtAudio JACK funcitonality is only useful when we need to access the native MIDI APIs.
  68. * (JACK audio + ALSA MIDI, or JACK audio + CoreMidi, or JACK audio + Windows MIDI)
  69. * Because RtMidi has no native MIDI support outside of win/mac/linux, we skip these RtAudio APIs.
  70. * Those OSes can use Carla's JACK support directly, which is much better than RtAudio classes.
  71. */
  72. continue;
  73. #endif
  74. }
  75. gRtAudioApis.push_back(api);
  76. }
  77. }
  78. static const char* getRtAudioApiName(const RtAudio::Api api) noexcept
  79. {
  80. switch (api)
  81. {
  82. case RtAudio::UNSPECIFIED:
  83. return "Unspecified";
  84. case RtAudio::LINUX_ALSA:
  85. return "ALSA";
  86. case RtAudio::LINUX_OSS:
  87. return "OSS";
  88. case RtAudio::UNIX_PULSE:
  89. return "PulseAudio";
  90. case RtAudio::UNIX_JACK:
  91. #if defined(CARLA_OS_LINUX) && defined(__LINUX_ALSA__)
  92. return "JACK with ALSA-MIDI";
  93. #elif defined(CARLA_OS_MAC)
  94. return "JACK with CoreMidi";
  95. #elif defined(CARLA_OS_WIN)
  96. return "JACK with WinMM";
  97. #else
  98. return "JACK (RtAudio)";
  99. #endif
  100. case RtAudio::MACOSX_CORE:
  101. return "CoreAudio";
  102. case RtAudio::WINDOWS_ASIO:
  103. return "ASIO";
  104. case RtAudio::WINDOWS_DS:
  105. return "DirectSound";
  106. case RtAudio::WINDOWS_WASAPI:
  107. return "WASAPI";
  108. case RtAudio::RTAUDIO_DUMMY:
  109. return "Dummy";
  110. }
  111. carla_stderr("CarlaBackend::getRtAudioApiName(%i) - invalid API", api);
  112. return nullptr;
  113. }
  114. static RtMidi::Api getMatchedAudioMidiAPI(const RtAudio::Api rtApi) noexcept
  115. {
  116. switch (rtApi)
  117. {
  118. case RtAudio::UNSPECIFIED:
  119. return RtMidi::UNSPECIFIED;
  120. case RtAudio::LINUX_ALSA:
  121. case RtAudio::LINUX_OSS:
  122. return RtMidi::LINUX_ALSA;
  123. case RtAudio::UNIX_PULSE:
  124. case RtAudio::UNIX_JACK:
  125. #if defined(CARLA_OS_LINUX) && defined(__LINUX_ALSA__)
  126. return RtMidi::LINUX_ALSA;
  127. #elif defined(CARLA_OS_MAC)
  128. return RtMidi::MACOSX_CORE;
  129. #elif defined(CARLA_OS_WIN)
  130. return RtMidi::WINDOWS_MM;
  131. #else
  132. return RtMidi::RTMIDI_DUMMY;
  133. #endif
  134. case RtAudio::MACOSX_CORE:
  135. return RtMidi::MACOSX_CORE;
  136. case RtAudio::WINDOWS_ASIO:
  137. case RtAudio::WINDOWS_DS:
  138. case RtAudio::WINDOWS_WASAPI:
  139. return RtMidi::WINDOWS_MM;
  140. case RtAudio::RTAUDIO_DUMMY:
  141. return RtMidi::RTMIDI_DUMMY;
  142. }
  143. return RtMidi::UNSPECIFIED;
  144. }
  145. // -------------------------------------------------------------------------------------------------------------------
  146. // RtAudio Engine
  147. class CarlaEngineRtAudio : public CarlaEngine
  148. {
  149. public:
  150. CarlaEngineRtAudio(const RtAudio::Api api)
  151. : CarlaEngine(),
  152. fAudio(api),
  153. fAudioInterleaved(false),
  154. fAudioInCount(0),
  155. fAudioOutCount(0),
  156. fLastEventTime(0),
  157. fDeviceName(),
  158. fAudioIntBufIn(nullptr),
  159. fAudioIntBufOut(nullptr),
  160. fMidiIns(),
  161. fMidiInEvents(),
  162. fMidiOuts(),
  163. fMidiOutMutex(),
  164. fMidiOutVector(EngineMidiEvent::kDataSize)
  165. {
  166. carla_debug("CarlaEngineRtAudio::CarlaEngineRtAudio(%i)", api);
  167. // just to make sure
  168. pData->options.transportMode = ENGINE_TRANSPORT_MODE_INTERNAL;
  169. }
  170. ~CarlaEngineRtAudio() override
  171. {
  172. CARLA_SAFE_ASSERT(fAudioInCount == 0);
  173. CARLA_SAFE_ASSERT(fAudioOutCount == 0);
  174. CARLA_SAFE_ASSERT(fLastEventTime == 0);
  175. carla_debug("CarlaEngineRtAudio::~CarlaEngineRtAudio()");
  176. }
  177. // -------------------------------------
  178. bool init(const char* const clientName) override
  179. {
  180. CARLA_SAFE_ASSERT_RETURN(fAudioInCount == 0, false);
  181. CARLA_SAFE_ASSERT_RETURN(fAudioOutCount == 0, false);
  182. CARLA_SAFE_ASSERT_RETURN(fLastEventTime == 0, false);
  183. CARLA_SAFE_ASSERT_RETURN(clientName != nullptr && clientName[0] != '\0', false);
  184. carla_debug("CarlaEngineRtAudio::init(\"%s\")", clientName);
  185. if (pData->options.processMode != ENGINE_PROCESS_MODE_CONTINUOUS_RACK && pData->options.processMode != ENGINE_PROCESS_MODE_PATCHBAY)
  186. {
  187. setLastError("Invalid process mode");
  188. return false;
  189. }
  190. const bool isDummy(fAudio.getCurrentApi() == RtAudio::RtAudio::RTAUDIO_DUMMY);
  191. bool deviceSet = false;
  192. RtAudio::StreamParameters iParams, oParams;
  193. if (isDummy)
  194. {
  195. if (pData->options.processMode == ENGINE_PROCESS_MODE_CONTINUOUS_RACK)
  196. {
  197. setLastError("Cannot use dummy driver in Rack mode");
  198. return false;
  199. }
  200. fDeviceName = "Dummy";
  201. }
  202. else
  203. {
  204. const uint devCount(fAudio.getDeviceCount());
  205. if (devCount == 0)
  206. {
  207. setLastError("No audio devices available for this driver");
  208. return false;
  209. }
  210. if (pData->options.audioDevice != nullptr && pData->options.audioDevice[0] != '\0')
  211. {
  212. for (uint i=0; i < devCount; ++i)
  213. {
  214. RtAudio::DeviceInfo devInfo(fAudio.getDeviceInfo(i));
  215. if (devInfo.probed && devInfo.outputChannels > 0 && devInfo.name == pData->options.audioDevice)
  216. {
  217. deviceSet = true;
  218. fDeviceName = devInfo.name.c_str();
  219. iParams.deviceId = i;
  220. oParams.deviceId = i;
  221. iParams.nChannels = devInfo.inputChannels;
  222. oParams.nChannels = devInfo.outputChannels;
  223. break;
  224. }
  225. }
  226. }
  227. if (! deviceSet)
  228. {
  229. iParams.deviceId = fAudio.getDefaultInputDevice();
  230. oParams.deviceId = fAudio.getDefaultOutputDevice();
  231. iParams.nChannels = fAudio.getDeviceInfo(iParams.deviceId).inputChannels;
  232. oParams.nChannels = fAudio.getDeviceInfo(oParams.deviceId).outputChannels;
  233. carla_stdout("No device set, using %i inputs and %i outputs", iParams.nChannels, oParams.nChannels);
  234. }
  235. if (oParams.nChannels == 0 && pData->options.processMode == ENGINE_PROCESS_MODE_CONTINUOUS_RACK)
  236. {
  237. setLastError("Current audio setup has no outputs, cannot continue");
  238. return false;
  239. }
  240. iParams.nChannels = carla_fixedValue(0U, 128U, iParams.nChannels);
  241. oParams.nChannels = carla_fixedValue(0U, 128U, oParams.nChannels);
  242. fAudioInterleaved = fAudio.getCurrentApi() == RtAudio::UNIX_PULSE;
  243. }
  244. RtAudio::StreamOptions rtOptions;
  245. rtOptions.flags = RTAUDIO_MINIMIZE_LATENCY | RTAUDIO_SCHEDULE_REALTIME;
  246. rtOptions.numberOfBuffers = pData->options.audioTripleBuffer ? 3 : 2;
  247. rtOptions.streamName = clientName;
  248. rtOptions.priority = 85;
  249. if (fAudio.getCurrentApi() == RtAudio::LINUX_ALSA && ! deviceSet)
  250. rtOptions.flags |= RTAUDIO_ALSA_USE_DEFAULT;
  251. if (! fAudioInterleaved)
  252. rtOptions.flags |= RTAUDIO_NONINTERLEAVED;
  253. uint bufferFrames = pData->options.audioBufferSize;
  254. try {
  255. fAudio.openStream(oParams.nChannels > 0 ? &oParams : nullptr,
  256. iParams.nChannels > 0 ? &iParams : nullptr,
  257. RTAUDIO_FLOAT32, pData->options.audioSampleRate, &bufferFrames,
  258. carla_rtaudio_process_callback, this, &rtOptions,
  259. carla_rtaudio_buffer_size_callback);
  260. }
  261. catch (const RtAudioError& e) {
  262. setLastError(e.what());
  263. return false;
  264. }
  265. if (! pData->init(clientName))
  266. {
  267. close();
  268. setLastError("Failed to init internal data");
  269. return false;
  270. }
  271. pData->bufferSize = bufferFrames;
  272. pData->sampleRate = isDummy ? 44100.0 : fAudio.getStreamSampleRate();
  273. pData->initTime(pData->options.transportExtra);
  274. fAudioInCount = iParams.nChannels;
  275. fAudioOutCount = oParams.nChannels;
  276. fLastEventTime = 0;
  277. if (fAudioInCount > 0)
  278. fAudioIntBufIn = new float[fAudioInCount*bufferFrames];
  279. if (fAudioOutCount > 0)
  280. fAudioIntBufOut = new float[fAudioOutCount*bufferFrames];
  281. pData->graph.create(fAudioInCount, fAudioOutCount);
  282. try {
  283. fAudio.startStream();
  284. }
  285. catch (const RtAudioError& e)
  286. {
  287. close();
  288. setLastError(e.what());
  289. return false;
  290. }
  291. patchbayRefresh(false);
  292. if (pData->options.processMode == ENGINE_PROCESS_MODE_PATCHBAY)
  293. refreshExternalGraphPorts<PatchbayGraph>(pData->graph.getPatchbayGraph(), false);
  294. callback(true, true,
  295. ENGINE_CALLBACK_ENGINE_STARTED,
  296. 0,
  297. pData->options.processMode,
  298. pData->options.transportMode,
  299. static_cast<int>(pData->bufferSize),
  300. static_cast<float>(pData->sampleRate),
  301. getCurrentDriverName());
  302. return true;
  303. }
  304. bool close() override
  305. {
  306. carla_debug("CarlaEngineRtAudio::close()");
  307. bool hasError = false;
  308. // stop stream first
  309. if (fAudio.isStreamOpen() && fAudio.isStreamRunning())
  310. {
  311. try {
  312. fAudio.stopStream();
  313. }
  314. catch (const RtAudioError& e)
  315. {
  316. setLastError(e.what());
  317. hasError = true;
  318. }
  319. }
  320. // clear engine data
  321. CarlaEngine::close();
  322. pData->graph.destroy();
  323. for (LinkedList<MidiInPort>::Itenerator it = fMidiIns.begin2(); it.valid(); it.next())
  324. {
  325. static MidiInPort fallback = { nullptr, { '\0' } };
  326. MidiInPort& inPort(it.getValue(fallback));
  327. CARLA_SAFE_ASSERT_CONTINUE(inPort.port != nullptr);
  328. inPort.port->cancelCallback();
  329. inPort.port->closePort();
  330. delete inPort.port;
  331. }
  332. fMidiIns.clear();
  333. fMidiInEvents.clear();
  334. fMidiOutMutex.lock();
  335. for (LinkedList<MidiOutPort>::Itenerator it = fMidiOuts.begin2(); it.valid(); it.next())
  336. {
  337. static MidiOutPort fallback = { nullptr, { '\0' } };
  338. MidiOutPort& outPort(it.getValue(fallback));
  339. CARLA_SAFE_ASSERT_CONTINUE(outPort.port != nullptr);
  340. outPort.port->closePort();
  341. delete outPort.port;
  342. }
  343. fMidiOuts.clear();
  344. fMidiOutMutex.unlock();
  345. fAudioInCount = 0;
  346. fAudioOutCount = 0;
  347. fLastEventTime = 0;
  348. fDeviceName.clear();
  349. if (fAudioIntBufIn != nullptr)
  350. {
  351. delete[] fAudioIntBufIn;
  352. fAudioIntBufIn = nullptr;
  353. }
  354. if (fAudioIntBufOut != nullptr)
  355. {
  356. delete[] fAudioIntBufOut;
  357. fAudioIntBufOut = nullptr;
  358. }
  359. // close stream
  360. if (fAudio.isStreamOpen())
  361. fAudio.closeStream();
  362. return !hasError;
  363. }
  364. bool isRunning() const noexcept override
  365. {
  366. return fAudio.isStreamOpen();
  367. }
  368. bool isOffline() const noexcept override
  369. {
  370. return false;
  371. }
  372. EngineType getType() const noexcept override
  373. {
  374. return kEngineTypeRtAudio;
  375. }
  376. const char* getCurrentDriverName() const noexcept override
  377. {
  378. return CarlaBackend::getRtAudioApiName(fAudio.getCurrentApi());
  379. }
  380. // -------------------------------------------------------------------
  381. // Patchbay
  382. template<class Graph>
  383. bool refreshExternalGraphPorts(Graph* const graph, const bool sendCallback)
  384. {
  385. CARLA_SAFE_ASSERT_RETURN(graph != nullptr, false);
  386. char strBuf[STR_MAX+1U];
  387. strBuf[STR_MAX] = '\0';
  388. ExternalGraph& extGraph(graph->extGraph);
  389. // ---------------------------------------------------------------
  390. // clear last ports
  391. extGraph.clear();
  392. // ---------------------------------------------------------------
  393. // fill in new ones
  394. // Audio In
  395. for (uint i=0; i < fAudioInCount; ++i)
  396. {
  397. std::snprintf(strBuf, STR_MAX, "capture_%i", i+1);
  398. PortNameToId portNameToId;
  399. portNameToId.setData(kExternalGraphGroupAudioIn, i+1, strBuf, "");
  400. extGraph.audioPorts.ins.append(portNameToId);
  401. }
  402. // Audio Out
  403. for (uint i=0; i < fAudioOutCount; ++i)
  404. {
  405. std::snprintf(strBuf, STR_MAX, "playback_%i", i+1);
  406. PortNameToId portNameToId;
  407. portNameToId.setData(kExternalGraphGroupAudioOut, i+1, strBuf, "");
  408. extGraph.audioPorts.outs.append(portNameToId);
  409. }
  410. // MIDI In
  411. try
  412. {
  413. RtMidiIn midiIn(getMatchedAudioMidiAPI(fAudio.getCurrentApi()), "carla-discovery-in");
  414. for (uint i=0, count = midiIn.getPortCount(); i < count; ++i)
  415. {
  416. PortNameToId portNameToId;
  417. portNameToId.setData(kExternalGraphGroupMidiIn, i+1, midiIn.getPortName(i).c_str(), "");
  418. extGraph.midiPorts.ins.append(portNameToId);
  419. }
  420. } CARLA_SAFE_EXCEPTION("RtMidiIn discovery");
  421. // MIDI Out
  422. try
  423. {
  424. RtMidiOut midiOut(getMatchedAudioMidiAPI(fAudio.getCurrentApi()), "carla-discovery-out");
  425. for (uint i=0, count = midiOut.getPortCount(); i < count; ++i)
  426. {
  427. PortNameToId portNameToId;
  428. portNameToId.setData(kExternalGraphGroupMidiOut, i+1, midiOut.getPortName(i).c_str(), "");
  429. extGraph.midiPorts.outs.append(portNameToId);
  430. }
  431. } CARLA_SAFE_EXCEPTION("RtMidiOut discovery");
  432. // ---------------------------------------------------------------
  433. // now refresh
  434. if (sendCallback)
  435. graph->refresh(fDeviceName.buffer());
  436. // ---------------------------------------------------------------
  437. // add midi connections
  438. for (LinkedList<MidiInPort>::Itenerator it=fMidiIns.begin2(); it.valid(); it.next())
  439. {
  440. static const MidiInPort fallback = { nullptr, { '\0' } };
  441. const MidiInPort& inPort(it.getValue(fallback));
  442. CARLA_SAFE_ASSERT_CONTINUE(inPort.port != nullptr);
  443. const uint portId(extGraph.midiPorts.getPortId(true, inPort.name));
  444. CARLA_SAFE_ASSERT_CONTINUE(portId < extGraph.midiPorts.ins.count());
  445. ConnectionToId connectionToId;
  446. connectionToId.setData(++(extGraph.connections.lastId), kExternalGraphGroupMidiIn, portId, kExternalGraphGroupCarla, kExternalGraphCarlaPortMidiIn);
  447. std::snprintf(strBuf, STR_MAX, "%i:%i:%i:%i", connectionToId.groupA, connectionToId.portA, connectionToId.groupB, connectionToId.portB);
  448. extGraph.connections.list.append(connectionToId);
  449. if (sendCallback) {
  450. callback(true, true,
  451. ENGINE_CALLBACK_PATCHBAY_CONNECTION_ADDED,
  452. connectionToId.id,
  453. 0, 0, 0, 0.0f,
  454. strBuf);
  455. }
  456. }
  457. fMidiOutMutex.lock();
  458. for (LinkedList<MidiOutPort>::Itenerator it=fMidiOuts.begin2(); it.valid(); it.next())
  459. {
  460. static const MidiOutPort fallback = { nullptr, { '\0' } };
  461. const MidiOutPort& outPort(it.getValue(fallback));
  462. CARLA_SAFE_ASSERT_CONTINUE(outPort.port != nullptr);
  463. const uint portId(extGraph.midiPorts.getPortId(false, outPort.name));
  464. CARLA_SAFE_ASSERT_CONTINUE(portId < extGraph.midiPorts.outs.count());
  465. ConnectionToId connectionToId;
  466. connectionToId.setData(++(extGraph.connections.lastId), kExternalGraphGroupCarla, kExternalGraphCarlaPortMidiOut, kExternalGraphGroupMidiOut, portId);
  467. std::snprintf(strBuf, STR_MAX, "%i:%i:%i:%i", connectionToId.groupA, connectionToId.portA, connectionToId.groupB, connectionToId.portB);
  468. extGraph.connections.list.append(connectionToId);
  469. if (sendCallback) {
  470. callback(true, true,
  471. ENGINE_CALLBACK_PATCHBAY_CONNECTION_ADDED,
  472. connectionToId.id,
  473. 0, 0, 0, 0.0f,
  474. strBuf);
  475. }
  476. }
  477. fMidiOutMutex.unlock();
  478. return true;
  479. }
  480. bool patchbayRefresh(const bool external) override
  481. {
  482. CARLA_SAFE_ASSERT_RETURN(pData->graph.isReady(), false);
  483. if (pData->options.processMode == ENGINE_PROCESS_MODE_CONTINUOUS_RACK)
  484. return refreshExternalGraphPorts<RackGraph>(pData->graph.getRackGraph(), true);
  485. pData->graph.setUsingExternal(external);
  486. if (external)
  487. return refreshExternalGraphPorts<PatchbayGraph>(pData->graph.getPatchbayGraph(), true);
  488. return CarlaEngine::patchbayRefresh(false);
  489. }
  490. // -------------------------------------------------------------------
  491. protected:
  492. void handleAudioProcessCallback(void* outputBuffer, void* inputBuffer,
  493. uint nframes, double streamTime, RtAudioStreamStatus status)
  494. {
  495. const PendingRtEventsRunner prt(this, nframes, true);
  496. if (status & RTAUDIO_INPUT_OVERFLOW)
  497. ++pData->xruns;
  498. if (status & RTAUDIO_OUTPUT_UNDERFLOW)
  499. ++pData->xruns;
  500. // get buffers from RtAudio
  501. const float* const insPtr = (const float*)inputBuffer;
  502. /* */ float* const outsPtr = (float*)outputBuffer;
  503. // assert rtaudio buffers
  504. CARLA_SAFE_ASSERT_RETURN(outputBuffer != nullptr,);
  505. // set rtaudio buffers as non-interleaved
  506. const float* inBuf[fAudioInCount];
  507. /* */ float* outBuf[fAudioOutCount];
  508. if (fAudioInterleaved)
  509. {
  510. // FIXME - this looks completely wrong!
  511. float* inBuf2[fAudioInCount];
  512. for (uint i=0, count=fAudioInCount; i<count; ++i)
  513. {
  514. inBuf [i] = fAudioIntBufIn + (nframes*i);
  515. inBuf2[i] = fAudioIntBufIn + (nframes*i);
  516. }
  517. for (uint i=0, count=fAudioOutCount; i<count; ++i)
  518. outBuf[i] = fAudioIntBufOut + (nframes*i);
  519. // init input
  520. for (uint i=0; i<nframes; ++i)
  521. for (uint j=0; j<fAudioInCount; ++j)
  522. inBuf2[j][i] = insPtr[i*fAudioInCount+j];
  523. // clear output
  524. carla_zeroFloats(fAudioIntBufOut, fAudioOutCount*nframes);
  525. }
  526. else
  527. {
  528. for (uint i=0; i < fAudioInCount; ++i)
  529. inBuf[i] = insPtr+(nframes*i);
  530. for (uint i=0; i < fAudioOutCount; ++i)
  531. outBuf[i] = outsPtr+(nframes*i);
  532. // clear output
  533. carla_zeroFloats(outsPtr, nframes*fAudioOutCount);
  534. }
  535. // initialize events
  536. carla_zeroStructs(pData->events.in, kMaxEngineEventInternalCount);
  537. carla_zeroStructs(pData->events.out, kMaxEngineEventInternalCount);
  538. if (fMidiInEvents.mutex.tryLock())
  539. {
  540. uint32_t engineEventIndex = 0;
  541. fMidiInEvents.splice();
  542. for (LinkedList<RtMidiEvent>::Itenerator it = fMidiInEvents.data.begin2(); it.valid(); it.next())
  543. {
  544. static const RtMidiEvent fallback = { 0, 0, { 0 } };
  545. const RtMidiEvent& midiEvent(it.getValue(fallback));
  546. CARLA_SAFE_ASSERT_CONTINUE(midiEvent.size > 0);
  547. EngineEvent& engineEvent(pData->events.in[engineEventIndex++]);
  548. if (midiEvent.time < pData->timeInfo.frame)
  549. {
  550. engineEvent.time = 0;
  551. }
  552. else if (midiEvent.time >= pData->timeInfo.frame + nframes)
  553. {
  554. carla_stderr("MIDI Event in the future!, %i vs %i", engineEvent.time, pData->timeInfo.frame);
  555. engineEvent.time = static_cast<uint32_t>(pData->timeInfo.frame) + nframes - 1;
  556. }
  557. else
  558. engineEvent.time = static_cast<uint32_t>(midiEvent.time - pData->timeInfo.frame);
  559. engineEvent.fillFromMidiData(midiEvent.size, midiEvent.data, 0);
  560. if (engineEventIndex >= kMaxEngineEventInternalCount)
  561. break;
  562. }
  563. fMidiInEvents.data.clear();
  564. fMidiInEvents.mutex.unlock();
  565. }
  566. pData->graph.process(pData, inBuf, outBuf, nframes);
  567. fMidiOutMutex.lock();
  568. if (fMidiOuts.count() > 0)
  569. {
  570. uint8_t size = 0;
  571. uint8_t mdata[3] = { 0, 0, 0 };
  572. uint8_t mdataTmp[EngineMidiEvent::kDataSize];
  573. const uint8_t* mdataPtr;
  574. for (ushort i=0; i < kMaxEngineEventInternalCount; ++i)
  575. {
  576. const EngineEvent& engineEvent(pData->events.out[i]);
  577. /**/ if (engineEvent.type == kEngineEventTypeNull)
  578. {
  579. break;
  580. }
  581. else if (engineEvent.type == kEngineEventTypeControl)
  582. {
  583. const EngineControlEvent& ctrlEvent(engineEvent.ctrl);
  584. size = ctrlEvent.convertToMidiData(engineEvent.channel, mdata);
  585. mdataPtr = mdata;
  586. }
  587. else if (engineEvent.type == kEngineEventTypeMidi)
  588. {
  589. const EngineMidiEvent& midiEvent(engineEvent.midi);
  590. size = midiEvent.size;
  591. CARLA_SAFE_ASSERT_CONTINUE(size > 0);
  592. if (size > EngineMidiEvent::kDataSize)
  593. {
  594. CARLA_SAFE_ASSERT_CONTINUE(midiEvent.dataExt != nullptr);
  595. mdataPtr = midiEvent.dataExt;
  596. }
  597. else
  598. {
  599. // set first byte
  600. mdataTmp[0] = static_cast<uint8_t>(midiEvent.data[0] | (engineEvent.channel & MIDI_CHANNEL_BIT));
  601. // copy rest
  602. carla_copy<uint8_t>(mdataTmp+1, midiEvent.data+1, size-1U);
  603. // done
  604. mdataPtr = mdataTmp;
  605. }
  606. }
  607. else
  608. {
  609. continue;
  610. }
  611. if (size > 0)
  612. {
  613. fMidiOutVector.assign(mdataPtr, mdataPtr + size);
  614. for (LinkedList<MidiOutPort>::Itenerator it=fMidiOuts.begin2(); it.valid(); it.next())
  615. {
  616. static MidiOutPort fallback = { nullptr, { '\0' } };
  617. MidiOutPort& outPort(it.getValue(fallback));
  618. CARLA_SAFE_ASSERT_CONTINUE(outPort.port != nullptr);
  619. outPort.port->sendMessage(&fMidiOutVector);
  620. }
  621. }
  622. }
  623. }
  624. fMidiOutMutex.unlock();
  625. if (fAudioInterleaved)
  626. {
  627. for (uint i=0; i < nframes; ++i)
  628. for (uint j=0; j<fAudioOutCount; ++j)
  629. outsPtr[i*fAudioOutCount+j] = outBuf[j][i];
  630. }
  631. return; // unused
  632. (void)streamTime;
  633. }
  634. void handleBufferSizeCallback(const uint newBufferSize)
  635. {
  636. carla_stdout("bufferSize callback %u %u", pData->bufferSize, newBufferSize);
  637. if (pData->bufferSize == newBufferSize)
  638. return;
  639. if (fAudioInCount > 0)
  640. {
  641. delete[] fAudioIntBufIn;
  642. fAudioIntBufIn = new float[fAudioInCount*newBufferSize];
  643. }
  644. if (fAudioOutCount > 0)
  645. {
  646. delete[] fAudioIntBufOut;
  647. fAudioIntBufOut = new float[fAudioOutCount*newBufferSize];
  648. }
  649. pData->bufferSize = newBufferSize;
  650. bufferSizeChanged(newBufferSize);
  651. }
  652. void handleMidiCallback(double timeStamp, std::vector<uchar>* const message)
  653. {
  654. const size_t messageSize(message->size());
  655. if (messageSize == 0 || messageSize > EngineMidiEvent::kDataSize)
  656. return;
  657. timeStamp /= 2;
  658. if (timeStamp > 0.95)
  659. timeStamp = 0.95;
  660. else if (timeStamp < 0.0)
  661. timeStamp = 0.0;
  662. RtMidiEvent midiEvent;
  663. midiEvent.time = pData->timeInfo.frame + uint64_t(timeStamp * (double)pData->bufferSize);
  664. if (midiEvent.time < fLastEventTime)
  665. midiEvent.time = fLastEventTime;
  666. else
  667. fLastEventTime = midiEvent.time;
  668. midiEvent.size = static_cast<uint8_t>(messageSize);
  669. size_t i=0;
  670. for (; i < messageSize; ++i)
  671. midiEvent.data[i] = message->at(i);
  672. for (; i < EngineMidiEvent::kDataSize; ++i)
  673. midiEvent.data[i] = 0;
  674. fMidiInEvents.append(midiEvent);
  675. }
  676. // -------------------------------------------------------------------
  677. bool connectExternalGraphPort(const uint connectionType, const uint portId, const char* const portName) override
  678. {
  679. CARLA_SAFE_ASSERT_RETURN(connectionType != 0 || (portName != nullptr && portName[0] != '\0'), false);
  680. carla_debug("CarlaEngineRtAudio::connectExternalGraphPort(%u, %u, \"%s\")", connectionType, portId, portName);
  681. switch (connectionType)
  682. {
  683. case kExternalGraphConnectionAudioIn1:
  684. case kExternalGraphConnectionAudioIn2:
  685. case kExternalGraphConnectionAudioOut1:
  686. case kExternalGraphConnectionAudioOut2:
  687. return CarlaEngine::connectExternalGraphPort(connectionType, portId, portName);
  688. case kExternalGraphConnectionMidiInput: {
  689. CarlaString newRtMidiPortName;
  690. newRtMidiPortName += getName();
  691. newRtMidiPortName += ":";
  692. newRtMidiPortName += portName;
  693. RtMidiIn* rtMidiIn;
  694. try {
  695. rtMidiIn = new RtMidiIn(getMatchedAudioMidiAPI(fAudio.getCurrentApi()), newRtMidiPortName.buffer(), 512);
  696. } CARLA_SAFE_EXCEPTION_RETURN("new RtMidiIn", false);
  697. rtMidiIn->ignoreTypes();
  698. rtMidiIn->setCallback(carla_rtmidi_callback, this);
  699. bool found = false;
  700. uint rtMidiPortIndex;
  701. for (uint i=0, count=rtMidiIn->getPortCount(); i < count; ++i)
  702. {
  703. if (rtMidiIn->getPortName(i) == portName)
  704. {
  705. found = true;
  706. rtMidiPortIndex = i;
  707. break;
  708. }
  709. }
  710. if (! found)
  711. {
  712. delete rtMidiIn;
  713. return false;
  714. }
  715. try {
  716. rtMidiIn->openPort(rtMidiPortIndex, portName);
  717. }
  718. catch(...) {
  719. delete rtMidiIn;
  720. return false;
  721. };
  722. MidiInPort midiPort;
  723. midiPort.port = rtMidiIn;
  724. std::strncpy(midiPort.name, portName, STR_MAX);
  725. midiPort.name[STR_MAX] = '\0';
  726. fMidiIns.append(midiPort);
  727. return true;
  728. } break;
  729. case kExternalGraphConnectionMidiOutput: {
  730. CarlaString newRtMidiPortName;
  731. newRtMidiPortName += getName();
  732. newRtMidiPortName += ":";
  733. newRtMidiPortName += portName;
  734. RtMidiOut* rtMidiOut;
  735. try {
  736. rtMidiOut = new RtMidiOut(getMatchedAudioMidiAPI(fAudio.getCurrentApi()), newRtMidiPortName.buffer());
  737. } CARLA_SAFE_EXCEPTION_RETURN("new RtMidiOut", false);
  738. bool found = false;
  739. uint rtMidiPortIndex;
  740. for (uint i=0, count=rtMidiOut->getPortCount(); i < count; ++i)
  741. {
  742. if (rtMidiOut->getPortName(i) == portName)
  743. {
  744. found = true;
  745. rtMidiPortIndex = i;
  746. break;
  747. }
  748. }
  749. if (! found)
  750. {
  751. delete rtMidiOut;
  752. return false;
  753. }
  754. try {
  755. rtMidiOut->openPort(rtMidiPortIndex, portName);
  756. }
  757. catch(...) {
  758. delete rtMidiOut;
  759. return false;
  760. };
  761. MidiOutPort midiPort;
  762. midiPort.port = rtMidiOut;
  763. std::strncpy(midiPort.name, portName, STR_MAX);
  764. midiPort.name[STR_MAX] = '\0';
  765. const CarlaMutexLocker cml(fMidiOutMutex);
  766. fMidiOuts.append(midiPort);
  767. return true;
  768. } break;
  769. }
  770. return false;
  771. }
  772. bool disconnectExternalGraphPort(const uint connectionType, const uint portId, const char* const portName) override
  773. {
  774. CARLA_SAFE_ASSERT_RETURN(connectionType != 0 || (portName != nullptr && portName[0] != '\0'), false);
  775. carla_debug("CarlaEngineRtAudio::disconnectExternalGraphPort(%u, %u, \"%s\")", connectionType, portId, portName);
  776. switch (connectionType)
  777. {
  778. case kExternalGraphConnectionAudioIn1:
  779. case kExternalGraphConnectionAudioIn2:
  780. case kExternalGraphConnectionAudioOut1:
  781. case kExternalGraphConnectionAudioOut2:
  782. return CarlaEngine::disconnectExternalGraphPort(connectionType, portId, portName);
  783. case kExternalGraphConnectionMidiInput:
  784. for (LinkedList<MidiInPort>::Itenerator it=fMidiIns.begin2(); it.valid(); it.next())
  785. {
  786. static MidiInPort fallback = { nullptr, { '\0' } };
  787. MidiInPort& inPort(it.getValue(fallback));
  788. CARLA_SAFE_ASSERT_CONTINUE(inPort.port != nullptr);
  789. if (std::strncmp(inPort.name, portName, STR_MAX) != 0)
  790. continue;
  791. inPort.port->cancelCallback();
  792. inPort.port->closePort();
  793. delete inPort.port;
  794. fMidiIns.remove(it);
  795. return true;
  796. }
  797. break;
  798. case kExternalGraphConnectionMidiOutput: {
  799. const CarlaMutexLocker cml(fMidiOutMutex);
  800. for (LinkedList<MidiOutPort>::Itenerator it=fMidiOuts.begin2(); it.valid(); it.next())
  801. {
  802. static MidiOutPort fallback = { nullptr, { '\0' } };
  803. MidiOutPort& outPort(it.getValue(fallback));
  804. CARLA_SAFE_ASSERT_CONTINUE(outPort.port != nullptr);
  805. if (std::strncmp(outPort.name, portName, STR_MAX) != 0)
  806. continue;
  807. outPort.port->closePort();
  808. delete outPort.port;
  809. fMidiOuts.remove(it);
  810. return true;
  811. }
  812. } break;
  813. }
  814. return false;
  815. }
  816. // -------------------------------------------------------------------
  817. private:
  818. RtAudio fAudio;
  819. // useful info
  820. bool fAudioInterleaved;
  821. uint fAudioInCount;
  822. uint fAudioOutCount;
  823. uint64_t fLastEventTime;
  824. // current device name
  825. CarlaString fDeviceName;
  826. // temp buffer for interleaved audio
  827. float* fAudioIntBufIn;
  828. float* fAudioIntBufOut;
  829. struct MidiInPort {
  830. RtMidiIn* port;
  831. char name[STR_MAX+1];
  832. };
  833. struct MidiOutPort {
  834. RtMidiOut* port;
  835. char name[STR_MAX+1];
  836. };
  837. struct RtMidiEvent {
  838. uint64_t time; // needs to compare to internal time
  839. uint8_t size;
  840. uint8_t data[EngineMidiEvent::kDataSize];
  841. };
  842. struct RtMidiEvents {
  843. CarlaMutex mutex;
  844. RtLinkedList<RtMidiEvent>::Pool dataPool;
  845. RtLinkedList<RtMidiEvent> data;
  846. RtLinkedList<RtMidiEvent> dataPending;
  847. RtMidiEvents()
  848. : mutex(),
  849. dataPool(512, 512),
  850. data(dataPool),
  851. dataPending(dataPool) {}
  852. ~RtMidiEvents()
  853. {
  854. clear();
  855. }
  856. void append(const RtMidiEvent& event)
  857. {
  858. mutex.lock();
  859. dataPending.append(event);
  860. mutex.unlock();
  861. }
  862. void clear()
  863. {
  864. mutex.lock();
  865. data.clear();
  866. dataPending.clear();
  867. mutex.unlock();
  868. }
  869. void splice()
  870. {
  871. if (dataPending.count() > 0)
  872. dataPending.moveTo(data, true /* append */);
  873. }
  874. };
  875. LinkedList<MidiInPort> fMidiIns;
  876. RtMidiEvents fMidiInEvents;
  877. LinkedList<MidiOutPort> fMidiOuts;
  878. CarlaMutex fMidiOutMutex;
  879. std::vector<uint8_t> fMidiOutVector;
  880. #define handlePtr ((CarlaEngineRtAudio*)userData)
  881. static int carla_rtaudio_process_callback(void* outputBuffer, void* inputBuffer, uint nframes, double streamTime, RtAudioStreamStatus status, void* userData)
  882. {
  883. handlePtr->handleAudioProcessCallback(outputBuffer, inputBuffer, nframes, streamTime, status);
  884. return 0;
  885. }
  886. static bool carla_rtaudio_buffer_size_callback(unsigned int bufferSize, void* userData)
  887. {
  888. handlePtr->handleBufferSizeCallback(bufferSize);
  889. return true;
  890. }
  891. static void carla_rtmidi_callback(double timeStamp, std::vector<uchar>* message, void* userData)
  892. {
  893. handlePtr->handleMidiCallback(timeStamp, message);
  894. }
  895. #undef handlePtr
  896. CARLA_DECLARE_NON_COPYABLE_WITH_LEAK_DETECTOR(CarlaEngineRtAudio)
  897. };
  898. // -----------------------------------------
  899. CarlaEngine* CarlaEngine::newRtAudio(const AudioApi api)
  900. {
  901. initRtAudioAPIsIfNeeded();
  902. RtAudio::Api rtApi(RtAudio::UNSPECIFIED);
  903. switch (api)
  904. {
  905. case AUDIO_API_NULL:
  906. rtApi = RtAudio::RTAUDIO_DUMMY;
  907. break;
  908. case AUDIO_API_JACK:
  909. rtApi = RtAudio::UNIX_JACK;
  910. break;
  911. case AUDIO_API_OSS:
  912. rtApi = RtAudio::LINUX_OSS;
  913. break;
  914. case AUDIO_API_ALSA:
  915. rtApi = RtAudio::LINUX_ALSA;
  916. break;
  917. case AUDIO_API_PULSEAUDIO:
  918. rtApi = RtAudio::UNIX_PULSE;
  919. break;
  920. case AUDIO_API_COREAUDIO:
  921. rtApi = RtAudio::MACOSX_CORE;
  922. break;
  923. case AUDIO_API_ASIO:
  924. rtApi = RtAudio::WINDOWS_ASIO;
  925. break;
  926. case AUDIO_API_DIRECTSOUND:
  927. rtApi = RtAudio::WINDOWS_DS;
  928. break;
  929. case AUDIO_API_WASAPI:
  930. rtApi = RtAudio::WINDOWS_WASAPI;
  931. break;
  932. }
  933. return new CarlaEngineRtAudio(rtApi);
  934. }
  935. uint CarlaEngine::getRtAudioApiCount()
  936. {
  937. initRtAudioAPIsIfNeeded();
  938. return static_cast<uint>(gRtAudioApis.size());
  939. }
  940. const char* CarlaEngine::getRtAudioApiName(const uint index)
  941. {
  942. initRtAudioAPIsIfNeeded();
  943. CARLA_SAFE_ASSERT_RETURN(index < gRtAudioApis.size(), nullptr);
  944. return CarlaBackend::getRtAudioApiName(gRtAudioApis[index]);
  945. }
  946. const char* const* CarlaEngine::getRtAudioApiDeviceNames(const uint index)
  947. {
  948. initRtAudioAPIsIfNeeded();
  949. if (index >= gRtAudioApis.size())
  950. return nullptr;
  951. const RtAudio::Api& api(gRtAudioApis[index]);
  952. CarlaStringList devNames;
  953. try {
  954. RtAudio rtAudio(api);
  955. const uint devCount(rtAudio.getDeviceCount());
  956. if (devCount == 0)
  957. return nullptr;
  958. for (uint i=0; i < devCount; ++i)
  959. {
  960. RtAudio::DeviceInfo devInfo(rtAudio.getDeviceInfo(i));
  961. if (devInfo.probed && devInfo.outputChannels > 0 /*&& (devInfo.nativeFormats & RTAUDIO_FLOAT32) != 0*/)
  962. devNames.append(devInfo.name.c_str());
  963. }
  964. } CARLA_SAFE_EXCEPTION_RETURN("RtAudio device names", nullptr);
  965. gDeviceNames = devNames.toCharStringListPtr();
  966. return gDeviceNames;
  967. }
  968. const EngineDriverDeviceInfo* CarlaEngine::getRtAudioDeviceInfo(const uint index, const char* const deviceName)
  969. {
  970. initRtAudioAPIsIfNeeded();
  971. if (index >= gRtAudioApis.size())
  972. return nullptr;
  973. static EngineDriverDeviceInfo devInfo = { 0x0, nullptr, nullptr };
  974. static uint32_t dummyBufferSizes[] = { 16, 32, 64, 128, 256, 512, 1024, 2048, 4096, 8192, 0 };
  975. static double dummySampleRates[] = { 22050.0, 32000.0, 44100.0, 48000.0, 88200.0, 96000.0, 176400.0, 192000.0, 0.0 };
  976. // reset
  977. devInfo.hints = 0x0;
  978. // cleanup
  979. if (devInfo.bufferSizes != nullptr && devInfo.bufferSizes != dummyBufferSizes)
  980. {
  981. delete[] devInfo.bufferSizes;
  982. devInfo.bufferSizes = nullptr;
  983. }
  984. if (devInfo.sampleRates != nullptr && devInfo.sampleRates != dummySampleRates)
  985. {
  986. delete[] devInfo.sampleRates;
  987. devInfo.sampleRates = nullptr;
  988. }
  989. const RtAudio::Api& api(gRtAudioApis[index]);
  990. if (api == RtAudio::UNIX_JACK)
  991. {
  992. devInfo.bufferSizes = nullptr;
  993. devInfo.sampleRates = nullptr;
  994. return &devInfo;
  995. }
  996. RtAudio::DeviceInfo rtAudioDevInfo;
  997. try {
  998. RtAudio rtAudio(api);
  999. const uint devCount(rtAudio.getDeviceCount());
  1000. if (devCount == 0)
  1001. return nullptr;
  1002. uint i;
  1003. for (i=0; i < devCount; ++i)
  1004. {
  1005. rtAudioDevInfo = rtAudio.getDeviceInfo(i);
  1006. if (rtAudioDevInfo.name == deviceName)
  1007. break;
  1008. }
  1009. if (i == devCount)
  1010. rtAudioDevInfo = rtAudio.getDeviceInfo(rtAudio.getDefaultOutputDevice());
  1011. } CARLA_SAFE_EXCEPTION_RETURN("RtAudio device discovery", nullptr);
  1012. // a few APIs can do triple buffer
  1013. switch (api)
  1014. {
  1015. case RtAudio::LINUX_ALSA:
  1016. case RtAudio::LINUX_OSS:
  1017. case RtAudio::WINDOWS_DS:
  1018. devInfo.hints |= ENGINE_DRIVER_DEVICE_CAN_TRIPLE_BUFFER;
  1019. break;
  1020. default:
  1021. break;
  1022. }
  1023. // always use default buffer sizes
  1024. devInfo.bufferSizes = dummyBufferSizes;
  1025. // valid sample rates
  1026. if (const size_t sampleRatesCount = rtAudioDevInfo.sampleRates.size())
  1027. {
  1028. double* const sampleRates(new double[sampleRatesCount+1]);
  1029. for (size_t i=0; i < sampleRatesCount; ++i)
  1030. sampleRates[i] = rtAudioDevInfo.sampleRates[i];
  1031. sampleRates[sampleRatesCount] = 0.0;
  1032. devInfo.sampleRates = sampleRates;
  1033. }
  1034. else
  1035. {
  1036. devInfo.sampleRates = dummySampleRates;
  1037. }
  1038. return &devInfo;
  1039. }
  1040. // -----------------------------------------
  1041. CARLA_BACKEND_END_NAMESPACE