Audio plugin host https://kx.studio/carla
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  1. /*
  2. * Carla FluidSynth Plugin
  3. * Copyright (C) 2011-2020 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 "CarlaPluginInternal.hpp"
  18. #include "CarlaEngine.hpp"
  19. #ifdef HAVE_FLUIDSYNTH
  20. #include "CarlaBackendUtils.hpp"
  21. #include "CarlaMathUtils.hpp"
  22. #include "water/text/StringArray.h"
  23. #include <fluidsynth.h>
  24. #define FLUID_DEFAULT_POLYPHONY 64
  25. using water::String;
  26. using water::StringArray;
  27. CARLA_BACKEND_START_NAMESPACE
  28. // -------------------------------------------------------------------------------------------------------------------
  29. // Fallback data
  30. static const ExternalMidiNote kExternalMidiNoteFallback = { -1, 0, 0 };
  31. // -------------------------------------------------------------------------------------------------------------------
  32. class CarlaPluginFluidSynth : public CarlaPlugin
  33. {
  34. public:
  35. CarlaPluginFluidSynth(CarlaEngine* const engine, const uint id, const bool use16Outs)
  36. : CarlaPlugin(engine, id),
  37. kUse16Outs(use16Outs),
  38. fSettings(nullptr),
  39. fSynth(nullptr),
  40. fSynthId(0),
  41. fAudio16Buffers(nullptr),
  42. fLabel(nullptr)
  43. {
  44. carla_debug("CarlaPluginFluidSynth::CarlaPluginFluidSynth(%p, %i, %s)", engine, id, bool2str(use16Outs));
  45. carla_zeroFloats(fParamBuffers, FluidSynthParametersMax);
  46. carla_fill<int32_t>(fCurMidiProgs, 0, MAX_MIDI_CHANNELS);
  47. // create settings
  48. fSettings = new_fluid_settings();
  49. CARLA_SAFE_ASSERT_RETURN(fSettings != nullptr,);
  50. // define settings
  51. fluid_settings_setint(fSettings, "synth.audio-channels", use16Outs ? 16 : 1);
  52. fluid_settings_setint(fSettings, "synth.audio-groups", use16Outs ? 16 : 1);
  53. fluid_settings_setnum(fSettings, "synth.sample-rate", pData->engine->getSampleRate());
  54. //fluid_settings_setnum(fSettings, "synth.cpu-cores", 2);
  55. fluid_settings_setint(fSettings, "synth.ladspa.active", 0);
  56. fluid_settings_setint(fSettings, "synth.lock-memory", 1);
  57. #if FLUIDSYNTH_VERSION_MAJOR < 2
  58. fluid_settings_setint(fSettings, "synth.parallel-render", 1);
  59. #endif
  60. fluid_settings_setint(fSettings, "synth.threadsafe-api", 0);
  61. #ifdef DEBUG
  62. fluid_settings_setint(fSettings, "synth.verbose", 1);
  63. #endif
  64. // create synth
  65. fSynth = new_fluid_synth(fSettings);
  66. CARLA_SAFE_ASSERT_RETURN(fSynth != nullptr,);
  67. initializeFluidDefaultsIfNeeded();
  68. #if FLUIDSYNTH_VERSION_MAJOR < 2
  69. fluid_synth_set_sample_rate(fSynth, static_cast<float>(pData->engine->getSampleRate()));
  70. #endif
  71. // set default values
  72. fluid_synth_set_reverb_on(fSynth, 1);
  73. fluid_synth_set_reverb(fSynth,
  74. sFluidDefaults[FluidSynthReverbRoomSize],
  75. sFluidDefaults[FluidSynthReverbDamp],
  76. sFluidDefaults[FluidSynthReverbWidth],
  77. sFluidDefaults[FluidSynthReverbLevel]);
  78. fluid_synth_set_chorus_on(fSynth, 1);
  79. fluid_synth_set_chorus(fSynth,
  80. static_cast<int>(sFluidDefaults[FluidSynthChorusNr] + 0.5f),
  81. sFluidDefaults[FluidSynthChorusLevel],
  82. sFluidDefaults[FluidSynthChorusSpeedHz],
  83. sFluidDefaults[FluidSynthChorusDepthMs],
  84. static_cast<int>(sFluidDefaults[FluidSynthChorusType] + 0.5f));
  85. fluid_synth_set_polyphony(fSynth, FLUID_DEFAULT_POLYPHONY);
  86. fluid_synth_set_gain(fSynth, 1.0f);
  87. for (int i=0; i < MAX_MIDI_CHANNELS; ++i)
  88. fluid_synth_set_interp_method(fSynth, i, static_cast<int>(sFluidDefaults[FluidSynthInterpolation] + 0.5f));
  89. }
  90. ~CarlaPluginFluidSynth() override
  91. {
  92. carla_debug("CarlaPluginFluidSynth::~CarlaPluginFluidSynth()");
  93. pData->singleMutex.lock();
  94. pData->masterMutex.lock();
  95. if (pData->client != nullptr && pData->client->isActive())
  96. pData->client->deactivate(true);
  97. if (pData->active)
  98. {
  99. deactivate();
  100. pData->active = false;
  101. }
  102. if (fSynth != nullptr)
  103. {
  104. delete_fluid_synth(fSynth);
  105. fSynth = nullptr;
  106. }
  107. if (fSettings != nullptr)
  108. {
  109. delete_fluid_settings(fSettings);
  110. fSettings = nullptr;
  111. }
  112. if (fLabel != nullptr)
  113. {
  114. delete[] fLabel;
  115. fLabel = nullptr;
  116. }
  117. clearBuffers();
  118. }
  119. // -------------------------------------------------------------------
  120. // Information (base)
  121. PluginType getType() const noexcept override
  122. {
  123. return PLUGIN_SF2;
  124. }
  125. PluginCategory getCategory() const noexcept override
  126. {
  127. return PLUGIN_CATEGORY_SYNTH;
  128. }
  129. // -------------------------------------------------------------------
  130. // Information (count)
  131. uint32_t getParameterScalePointCount(const uint32_t parameterId) const noexcept override
  132. {
  133. switch (parameterId)
  134. {
  135. case FluidSynthChorusType:
  136. return 2;
  137. case FluidSynthInterpolation:
  138. return 4;
  139. default:
  140. return 0;
  141. }
  142. }
  143. // -------------------------------------------------------------------
  144. // Information (current data)
  145. // nothing
  146. // -------------------------------------------------------------------
  147. // Information (per-plugin data)
  148. uint getOptionsAvailable() const noexcept override
  149. {
  150. uint options = 0x0;
  151. options |= PLUGIN_OPTION_MAP_PROGRAM_CHANGES;
  152. options |= PLUGIN_OPTION_SEND_CONTROL_CHANGES;
  153. options |= PLUGIN_OPTION_SEND_CHANNEL_PRESSURE;
  154. options |= PLUGIN_OPTION_SEND_PITCHBEND;
  155. options |= PLUGIN_OPTION_SEND_ALL_SOUND_OFF;
  156. options |= PLUGIN_OPTION_SKIP_SENDING_NOTES;
  157. return options;
  158. }
  159. float getParameterValue(const uint32_t parameterId) const noexcept override
  160. {
  161. CARLA_SAFE_ASSERT_RETURN(parameterId < pData->param.count, 0.0f);
  162. return fParamBuffers[parameterId];
  163. }
  164. float getParameterScalePointValue(const uint32_t parameterId, const uint32_t scalePointId) const noexcept override
  165. {
  166. switch (parameterId)
  167. {
  168. case FluidSynthChorusType:
  169. switch (scalePointId)
  170. {
  171. case 0:
  172. return FLUID_CHORUS_MOD_SINE;
  173. case 1:
  174. return FLUID_CHORUS_MOD_TRIANGLE;
  175. default:
  176. return sFluidDefaults[FluidSynthChorusType];
  177. }
  178. case FluidSynthInterpolation:
  179. switch (scalePointId)
  180. {
  181. case 0:
  182. return FLUID_INTERP_NONE;
  183. case 1:
  184. return FLUID_INTERP_LINEAR;
  185. case 2:
  186. return FLUID_INTERP_4THORDER;
  187. case 3:
  188. return FLUID_INTERP_7THORDER;
  189. default:
  190. return sFluidDefaults[FluidSynthInterpolation];
  191. }
  192. default:
  193. return 0.0f;
  194. }
  195. }
  196. bool getLabel(char* const strBuf) const noexcept override
  197. {
  198. if (fLabel != nullptr)
  199. {
  200. std::strncpy(strBuf, fLabel, STR_MAX);
  201. return true;
  202. }
  203. return CarlaPlugin::getLabel(strBuf);
  204. }
  205. bool getMaker(char* const strBuf) const noexcept override
  206. {
  207. std::strncpy(strBuf, "FluidSynth SF2 engine", STR_MAX);
  208. return true;
  209. }
  210. bool getCopyright(char* const strBuf) const noexcept override
  211. {
  212. std::strncpy(strBuf, "GNU GPL v2+", STR_MAX);
  213. return true;
  214. }
  215. bool getRealName(char* const strBuf) const noexcept override
  216. {
  217. return getLabel(strBuf);
  218. }
  219. bool getParameterName(const uint32_t parameterId, char* const strBuf) const noexcept override
  220. {
  221. CARLA_SAFE_ASSERT_RETURN(parameterId < pData->param.count, false);
  222. switch (parameterId)
  223. {
  224. case FluidSynthReverbOnOff:
  225. std::strncpy(strBuf, "Reverb On/Off", STR_MAX);
  226. return true;
  227. case FluidSynthReverbRoomSize:
  228. std::strncpy(strBuf, "Reverb Room Size", STR_MAX);
  229. return true;
  230. case FluidSynthReverbDamp:
  231. std::strncpy(strBuf, "Reverb Damp", STR_MAX);
  232. return true;
  233. case FluidSynthReverbLevel:
  234. std::strncpy(strBuf, "Reverb Level", STR_MAX);
  235. return true;
  236. case FluidSynthReverbWidth:
  237. std::strncpy(strBuf, "Reverb Width", STR_MAX);
  238. return true;
  239. case FluidSynthChorusOnOff:
  240. std::strncpy(strBuf, "Chorus On/Off", STR_MAX);
  241. return true;
  242. case FluidSynthChorusNr:
  243. std::strncpy(strBuf, "Chorus Voice Count", STR_MAX);
  244. return true;
  245. case FluidSynthChorusLevel:
  246. std::strncpy(strBuf, "Chorus Level", STR_MAX);
  247. return true;
  248. case FluidSynthChorusSpeedHz:
  249. std::strncpy(strBuf, "Chorus Speed", STR_MAX);
  250. return true;
  251. case FluidSynthChorusDepthMs:
  252. std::strncpy(strBuf, "Chorus Depth", STR_MAX);
  253. return true;
  254. case FluidSynthChorusType:
  255. std::strncpy(strBuf, "Chorus Type", STR_MAX);
  256. return true;
  257. case FluidSynthPolyphony:
  258. std::strncpy(strBuf, "Polyphony", STR_MAX);
  259. return true;
  260. case FluidSynthInterpolation:
  261. std::strncpy(strBuf, "Interpolation", STR_MAX);
  262. return true;
  263. case FluidSynthVoiceCount:
  264. std::strncpy(strBuf, "Voice Count", STR_MAX);
  265. return true;
  266. }
  267. return CarlaPlugin::getParameterName(parameterId, strBuf);
  268. }
  269. bool getParameterUnit(const uint32_t parameterId, char* const strBuf) const noexcept override
  270. {
  271. CARLA_SAFE_ASSERT_RETURN(parameterId < pData->param.count, false);
  272. switch (parameterId)
  273. {
  274. case FluidSynthChorusSpeedHz:
  275. std::strncpy(strBuf, "Hz", STR_MAX);
  276. return true;
  277. case FluidSynthChorusDepthMs:
  278. std::strncpy(strBuf, "ms", STR_MAX);
  279. return true;
  280. }
  281. return CarlaPlugin::getParameterUnit(parameterId, strBuf);
  282. }
  283. bool getParameterScalePointLabel(const uint32_t parameterId, const uint32_t scalePointId, char* const strBuf) const noexcept override
  284. {
  285. CARLA_SAFE_ASSERT_RETURN(parameterId < pData->param.count, false);
  286. CARLA_SAFE_ASSERT_RETURN(scalePointId < getParameterScalePointCount(parameterId), false);
  287. switch (parameterId)
  288. {
  289. case FluidSynthChorusType:
  290. switch (scalePointId)
  291. {
  292. case 0:
  293. std::strncpy(strBuf, "Sine wave", STR_MAX);
  294. return true;
  295. case 1:
  296. std::strncpy(strBuf, "Triangle wave", STR_MAX);
  297. return true;
  298. }
  299. break;
  300. case FluidSynthInterpolation:
  301. switch (scalePointId)
  302. {
  303. case 0:
  304. std::strncpy(strBuf, "None", STR_MAX);
  305. return true;
  306. case 1:
  307. std::strncpy(strBuf, "Straight-line", STR_MAX);
  308. return true;
  309. case 2:
  310. std::strncpy(strBuf, "Fourth-order", STR_MAX);
  311. return true;
  312. case 3:
  313. std::strncpy(strBuf, "Seventh-order", STR_MAX);
  314. return true;
  315. }
  316. break;
  317. }
  318. return CarlaPlugin::getParameterScalePointLabel(parameterId, scalePointId, strBuf);
  319. }
  320. // -------------------------------------------------------------------
  321. // Set data (state)
  322. void prepareForSave(bool) override
  323. {
  324. char strBuf[STR_MAX+1];
  325. std::snprintf(strBuf, STR_MAX, "%i:%i:%i:%i:%i:%i:%i:%i:%i:%i:%i:%i:%i:%i:%i:%i",
  326. fCurMidiProgs[0], fCurMidiProgs[1], fCurMidiProgs[2], fCurMidiProgs[3],
  327. fCurMidiProgs[4], fCurMidiProgs[5], fCurMidiProgs[6], fCurMidiProgs[7],
  328. fCurMidiProgs[8], fCurMidiProgs[9], fCurMidiProgs[10], fCurMidiProgs[11],
  329. fCurMidiProgs[12], fCurMidiProgs[13], fCurMidiProgs[14], fCurMidiProgs[15]);
  330. CarlaPlugin::setCustomData(CUSTOM_DATA_TYPE_STRING, "midiPrograms", strBuf, false);
  331. }
  332. // -------------------------------------------------------------------
  333. // Set data (internal stuff)
  334. void setCtrlChannel(const int8_t channel, const bool sendOsc, const bool sendCallback) noexcept override
  335. {
  336. if (channel >= 0 && channel < MAX_MIDI_CHANNELS)
  337. pData->midiprog.current = fCurMidiProgs[channel];
  338. CarlaPlugin::setCtrlChannel(channel, sendOsc, sendCallback);
  339. }
  340. // -------------------------------------------------------------------
  341. // Set data (plugin-specific stuff)
  342. void setParameterValue(const uint32_t parameterId, const float value, const bool sendGui, const bool sendOsc, const bool sendCallback) noexcept override
  343. {
  344. CARLA_SAFE_ASSERT_RETURN(parameterId < pData->param.count,);
  345. CARLA_SAFE_ASSERT_RETURN(sendGui || sendOsc || sendCallback,);
  346. float fixedValue;
  347. {
  348. const ScopedSingleProcessLocker spl(this, (sendGui || sendOsc || sendCallback));
  349. fixedValue = setParameterValueInFluidSynth(parameterId, value);
  350. }
  351. CarlaPlugin::setParameterValue(parameterId, fixedValue, sendGui, sendOsc, sendCallback);
  352. }
  353. void setParameterValueRT(const uint32_t parameterId, const float value, const bool sendCallbackLater) noexcept override
  354. {
  355. const float fixedValue = setParameterValueInFluidSynth(parameterId, value);
  356. CarlaPlugin::setParameterValueRT(parameterId, fixedValue, sendCallbackLater);
  357. }
  358. float setParameterValueInFluidSynth(const uint32_t parameterId, const float value) noexcept
  359. {
  360. CARLA_SAFE_ASSERT_RETURN(parameterId < pData->param.count, value);
  361. const float fixedValue(pData->param.getFixedValue(parameterId, value));
  362. fParamBuffers[parameterId] = fixedValue;
  363. switch (parameterId)
  364. {
  365. case FluidSynthReverbOnOff:
  366. try {
  367. fluid_synth_set_reverb_on(fSynth, (fixedValue > 0.5f) ? 1 : 0);
  368. } CARLA_SAFE_EXCEPTION("fluid_synth_set_reverb_on")
  369. break;
  370. case FluidSynthReverbRoomSize:
  371. case FluidSynthReverbDamp:
  372. case FluidSynthReverbLevel:
  373. case FluidSynthReverbWidth:
  374. try {
  375. fluid_synth_set_reverb(fSynth,
  376. fParamBuffers[FluidSynthReverbRoomSize],
  377. fParamBuffers[FluidSynthReverbDamp],
  378. fParamBuffers[FluidSynthReverbWidth],
  379. fParamBuffers[FluidSynthReverbLevel]);
  380. } CARLA_SAFE_EXCEPTION("fluid_synth_set_reverb")
  381. break;
  382. case FluidSynthChorusOnOff:
  383. try {
  384. fluid_synth_set_chorus_on(fSynth, (value > 0.5f) ? 1 : 0);
  385. } CARLA_SAFE_EXCEPTION("fluid_synth_set_chorus_on")
  386. break;
  387. case FluidSynthChorusNr:
  388. case FluidSynthChorusLevel:
  389. case FluidSynthChorusSpeedHz:
  390. case FluidSynthChorusDepthMs:
  391. case FluidSynthChorusType:
  392. try {
  393. fluid_synth_set_chorus(fSynth,
  394. static_cast<int>(fParamBuffers[FluidSynthChorusNr] + 0.5f),
  395. fParamBuffers[FluidSynthChorusLevel],
  396. fParamBuffers[FluidSynthChorusSpeedHz],
  397. fParamBuffers[FluidSynthChorusDepthMs],
  398. static_cast<int>(fParamBuffers[FluidSynthChorusType] + 0.5f));
  399. } CARLA_SAFE_EXCEPTION("fluid_synth_set_chorus")
  400. break;
  401. case FluidSynthPolyphony:
  402. try {
  403. fluid_synth_set_polyphony(fSynth, static_cast<int>(value + 0.5f));
  404. } CARLA_SAFE_EXCEPTION("fluid_synth_set_polyphony")
  405. break;
  406. case FluidSynthInterpolation:
  407. for (int i=0; i < MAX_MIDI_CHANNELS; ++i)
  408. {
  409. try {
  410. fluid_synth_set_interp_method(fSynth, i, static_cast<int>(value + 0.5f));
  411. } CARLA_SAFE_EXCEPTION_BREAK("fluid_synth_set_interp_method")
  412. }
  413. break;
  414. default:
  415. break;
  416. }
  417. return fixedValue;
  418. }
  419. void setCustomData(const char* const type, const char* const key, const char* const value, const bool sendGui) override
  420. {
  421. CARLA_SAFE_ASSERT_RETURN(fSynth != nullptr,);
  422. CARLA_SAFE_ASSERT_RETURN(type != nullptr && type[0] != '\0',);
  423. CARLA_SAFE_ASSERT_RETURN(key != nullptr && key[0] != '\0',);
  424. CARLA_SAFE_ASSERT_RETURN(value != nullptr && value[0] != '\0',);
  425. carla_debug("CarlaPluginFluidSynth::setCustomData(%s, \"%s\", \"%s\", %s)", type, key, value, bool2str(sendGui));
  426. if (std::strcmp(type, CUSTOM_DATA_TYPE_PROPERTY) == 0)
  427. return CarlaPlugin::setCustomData(type, key, value, sendGui);
  428. if (std::strcmp(type, CUSTOM_DATA_TYPE_STRING) != 0)
  429. return carla_stderr2("CarlaPluginFluidSynth::setCustomData(\"%s\", \"%s\", \"%s\", %s) - type is not string", type, key, value, bool2str(sendGui));
  430. if (std::strcmp(key, "midiPrograms") != 0)
  431. return carla_stderr2("CarlaPluginFluidSynth::setCustomData(\"%s\", \"%s\", \"%s\", %s) - type is not string", type, key, value, bool2str(sendGui));
  432. StringArray midiProgramList(StringArray::fromTokens(value, ":", ""));
  433. if (midiProgramList.size() == MAX_MIDI_CHANNELS)
  434. {
  435. uint8_t channel = 0;
  436. for (String *it=midiProgramList.begin(), *end=midiProgramList.end(); it != end; ++it)
  437. {
  438. const int index(it->getIntValue());
  439. if (index >= 0 && index < static_cast<int>(pData->midiprog.count))
  440. {
  441. const uint32_t bank = pData->midiprog.data[index].bank;
  442. const uint32_t program = pData->midiprog.data[index].program;
  443. #if FLUIDSYNTH_VERSION_MAJOR >= 2
  444. fluid_synth_program_select(fSynth,
  445. static_cast<int>(channel),
  446. fSynthId,
  447. static_cast<int>(bank),
  448. static_cast<int>(program));
  449. #else
  450. fluid_synth_program_select(fSynth, channel, fSynthId, bank, program);
  451. #endif
  452. fCurMidiProgs[channel] = index;
  453. if (pData->ctrlChannel == static_cast<int32_t>(channel))
  454. {
  455. pData->midiprog.current = index;
  456. pData->engine->callback(true, true,
  457. ENGINE_CALLBACK_MIDI_PROGRAM_CHANGED,
  458. pData->id,
  459. index,
  460. 0, 0, 0.0f, nullptr);
  461. }
  462. }
  463. ++channel;
  464. }
  465. CARLA_SAFE_ASSERT(channel == MAX_MIDI_CHANNELS);
  466. }
  467. CarlaPlugin::setCustomData(type, key, value, sendGui);
  468. }
  469. void setMidiProgram(const int32_t index, const bool sendGui, const bool sendOsc, const bool sendCallback, const bool doingInit) noexcept override
  470. {
  471. CARLA_SAFE_ASSERT_RETURN(fSynth != nullptr,);
  472. CARLA_SAFE_ASSERT_RETURN(index >= -1 && index < static_cast<int32_t>(pData->midiprog.count),);
  473. CARLA_SAFE_ASSERT_RETURN(sendGui || sendOsc || sendCallback || doingInit,);
  474. if (index >= 0 && pData->ctrlChannel >= 0 && pData->ctrlChannel < MAX_MIDI_CHANNELS)
  475. {
  476. const uint32_t bank = pData->midiprog.data[index].bank;
  477. const uint32_t program = pData->midiprog.data[index].program;
  478. const ScopedSingleProcessLocker spl(this, (sendGui || sendOsc || sendCallback));
  479. try {
  480. #if FLUIDSYNTH_VERSION_MAJOR >= 2
  481. fluid_synth_program_select(fSynth, pData->ctrlChannel, fSynthId,
  482. static_cast<int>(bank), static_cast<int>(program));
  483. #else
  484. fluid_synth_program_select(fSynth, pData->ctrlChannel, fSynthId, bank, program);
  485. #endif
  486. } CARLA_SAFE_EXCEPTION("fluid_synth_program_select")
  487. fCurMidiProgs[pData->ctrlChannel] = index;
  488. }
  489. CarlaPlugin::setMidiProgram(index, sendGui, sendOsc, sendCallback, doingInit);
  490. }
  491. // FIXME: this is never used
  492. void setMidiProgramRT(const uint32_t uindex, const bool sendCallbackLater) noexcept override
  493. {
  494. CARLA_SAFE_ASSERT_RETURN(fSynth != nullptr,);
  495. CARLA_SAFE_ASSERT_RETURN(uindex < pData->midiprog.count,);
  496. if (pData->ctrlChannel >= 0 && pData->ctrlChannel < MAX_MIDI_CHANNELS)
  497. {
  498. const uint32_t bank = pData->midiprog.data[uindex].bank;
  499. const uint32_t program = pData->midiprog.data[uindex].program;
  500. try {
  501. #if FLUIDSYNTH_VERSION_MAJOR >= 2
  502. fluid_synth_program_select(fSynth, pData->ctrlChannel, fSynthId,
  503. static_cast<int>(bank), static_cast<int>(program));
  504. #else
  505. fluid_synth_program_select(fSynth, pData->ctrlChannel, fSynthId, bank, program);
  506. #endif
  507. } CARLA_SAFE_EXCEPTION("fluid_synth_program_select")
  508. fCurMidiProgs[pData->ctrlChannel] = static_cast<int32_t>(uindex);
  509. }
  510. CarlaPlugin::setMidiProgramRT(uindex, sendCallbackLater);
  511. }
  512. // -------------------------------------------------------------------
  513. // Set ui stuff
  514. // nothing
  515. // -------------------------------------------------------------------
  516. // Plugin state
  517. void reload() override
  518. {
  519. CARLA_SAFE_ASSERT_RETURN(pData->engine != nullptr,);
  520. CARLA_SAFE_ASSERT_RETURN(fSynth != nullptr,);
  521. carla_debug("CarlaPluginFluidSynth::reload() - start");
  522. const EngineProcessMode processMode(pData->engine->getProccessMode());
  523. // Safely disable plugin for reload
  524. const ScopedDisabler sd(this);
  525. if (pData->active)
  526. deactivate();
  527. clearBuffers();
  528. uint32_t aOuts, params;
  529. aOuts = kUse16Outs ? 32 : 2;
  530. params = FluidSynthParametersMax;
  531. pData->audioOut.createNew(aOuts);
  532. pData->param.createNew(params, false);
  533. const uint portNameSize(pData->engine->getMaxPortNameSize());
  534. CarlaString portName;
  535. // ---------------------------------------
  536. // Audio Outputs
  537. if (kUse16Outs)
  538. {
  539. for (uint32_t i=0; i < 32; ++i)
  540. {
  541. portName.clear();
  542. if (processMode == ENGINE_PROCESS_MODE_SINGLE_CLIENT)
  543. {
  544. portName = pData->name;
  545. portName += ":";
  546. }
  547. portName += "out-";
  548. if ((i+2)/2 < 9)
  549. portName += "0";
  550. portName += CarlaString((i+2)/2);
  551. if (i % 2 == 0)
  552. portName += "L";
  553. else
  554. portName += "R";
  555. portName.truncate(portNameSize);
  556. pData->audioOut.ports[i].port = (CarlaEngineAudioPort*)pData->client->addPort(kEnginePortTypeAudio, portName, false, i);
  557. pData->audioOut.ports[i].rindex = i;
  558. }
  559. fAudio16Buffers = new float*[aOuts];
  560. for (uint32_t i=0; i < aOuts; ++i)
  561. fAudio16Buffers[i] = nullptr;
  562. }
  563. else
  564. {
  565. // out-left
  566. portName.clear();
  567. if (processMode == ENGINE_PROCESS_MODE_SINGLE_CLIENT)
  568. {
  569. portName = pData->name;
  570. portName += ":";
  571. }
  572. portName += "out-left";
  573. portName.truncate(portNameSize);
  574. pData->audioOut.ports[0].port = (CarlaEngineAudioPort*)pData->client->addPort(kEnginePortTypeAudio, portName, false, 0);
  575. pData->audioOut.ports[0].rindex = 0;
  576. // out-right
  577. portName.clear();
  578. if (processMode == ENGINE_PROCESS_MODE_SINGLE_CLIENT)
  579. {
  580. portName = pData->name;
  581. portName += ":";
  582. }
  583. portName += "out-right";
  584. portName.truncate(portNameSize);
  585. pData->audioOut.ports[1].port = (CarlaEngineAudioPort*)pData->client->addPort(kEnginePortTypeAudio, portName, false, 1);
  586. pData->audioOut.ports[1].rindex = 1;
  587. }
  588. // ---------------------------------------
  589. // Event Input
  590. {
  591. portName.clear();
  592. if (processMode == ENGINE_PROCESS_MODE_SINGLE_CLIENT)
  593. {
  594. portName = pData->name;
  595. portName += ":";
  596. }
  597. portName += "events-in";
  598. portName.truncate(portNameSize);
  599. pData->event.portIn = (CarlaEngineEventPort*)pData->client->addPort(kEnginePortTypeEvent, portName, true, 0);
  600. }
  601. // ---------------------------------------
  602. // Event Output
  603. {
  604. portName.clear();
  605. if (processMode == ENGINE_PROCESS_MODE_SINGLE_CLIENT)
  606. {
  607. portName = pData->name;
  608. portName += ":";
  609. }
  610. portName += "events-out";
  611. portName.truncate(portNameSize);
  612. pData->event.portOut = (CarlaEngineEventPort*)pData->client->addPort(kEnginePortTypeEvent, portName, false, 0);
  613. }
  614. // ---------------------------------------
  615. // Parameters
  616. {
  617. int j;
  618. // ----------------------
  619. j = FluidSynthReverbOnOff;
  620. pData->param.data[j].type = PARAMETER_INPUT;
  621. pData->param.data[j].hints = PARAMETER_IS_ENABLED /*| PARAMETER_IS_AUTOMABLE*/ | PARAMETER_IS_BOOLEAN;
  622. pData->param.data[j].index = j;
  623. pData->param.data[j].rindex = j;
  624. pData->param.ranges[j].min = 0.0f;
  625. pData->param.ranges[j].max = 1.0f;
  626. pData->param.ranges[j].def = sFluidDefaults[j];
  627. pData->param.ranges[j].step = 1.0f;
  628. pData->param.ranges[j].stepSmall = 1.0f;
  629. pData->param.ranges[j].stepLarge = 1.0f;
  630. // ----------------------
  631. j = FluidSynthReverbRoomSize;
  632. pData->param.data[j].type = PARAMETER_INPUT;
  633. pData->param.data[j].hints = PARAMETER_IS_ENABLED /*| PARAMETER_IS_AUTOMABLE*/;
  634. pData->param.data[j].index = j;
  635. pData->param.data[j].rindex = j;
  636. pData->param.ranges[j].min = 0.0f;
  637. pData->param.ranges[j].max = 1.0f;
  638. pData->param.ranges[j].def = sFluidDefaults[j];
  639. pData->param.ranges[j].step = 0.01f;
  640. pData->param.ranges[j].stepSmall = 0.0001f;
  641. pData->param.ranges[j].stepLarge = 0.1f;
  642. // ----------------------
  643. j = FluidSynthReverbDamp;
  644. pData->param.data[j].type = PARAMETER_INPUT;
  645. pData->param.data[j].hints = PARAMETER_IS_ENABLED /*| PARAMETER_IS_AUTOMABLE*/;
  646. pData->param.data[j].index = j;
  647. pData->param.data[j].rindex = j;
  648. pData->param.ranges[j].min = 0.0f;
  649. pData->param.ranges[j].max = 1.0f;
  650. pData->param.ranges[j].def = sFluidDefaults[j];
  651. pData->param.ranges[j].step = 0.01f;
  652. pData->param.ranges[j].stepSmall = 0.0001f;
  653. pData->param.ranges[j].stepLarge = 0.1f;
  654. // ----------------------
  655. j = FluidSynthReverbLevel;
  656. pData->param.data[j].type = PARAMETER_INPUT;
  657. pData->param.data[j].hints = PARAMETER_IS_ENABLED /*| PARAMETER_IS_AUTOMABLE*/;
  658. pData->param.data[j].index = j;
  659. pData->param.data[j].rindex = j;
  660. pData->param.data[j].mappedControlIndex = MIDI_CONTROL_REVERB_SEND_LEVEL;
  661. pData->param.ranges[j].min = 0.0f;
  662. pData->param.ranges[j].max = 1.0f;
  663. pData->param.ranges[j].def = sFluidDefaults[j];
  664. pData->param.ranges[j].step = 0.01f;
  665. pData->param.ranges[j].stepSmall = 0.0001f;
  666. pData->param.ranges[j].stepLarge = 0.1f;
  667. // ----------------------
  668. j = FluidSynthReverbWidth;
  669. pData->param.data[j].type = PARAMETER_INPUT;
  670. pData->param.data[j].hints = PARAMETER_IS_ENABLED /*| PARAMETER_IS_AUTOMABLE*/;
  671. pData->param.data[j].index = j;
  672. pData->param.data[j].rindex = j;
  673. pData->param.ranges[j].min = 0.0f;
  674. pData->param.ranges[j].max = 10.0f; // should be 100, but that sounds too much
  675. pData->param.ranges[j].def = sFluidDefaults[j];
  676. pData->param.ranges[j].step = 0.01f;
  677. pData->param.ranges[j].stepSmall = 0.0001f;
  678. pData->param.ranges[j].stepLarge = 0.1f;
  679. // ----------------------
  680. j = FluidSynthChorusOnOff;
  681. pData->param.data[j].type = PARAMETER_INPUT;
  682. pData->param.data[j].hints = PARAMETER_IS_ENABLED | PARAMETER_IS_BOOLEAN;
  683. pData->param.data[j].index = j;
  684. pData->param.data[j].rindex = j;
  685. pData->param.ranges[j].min = 0.0f;
  686. pData->param.ranges[j].max = 1.0f;
  687. pData->param.ranges[j].def = sFluidDefaults[j];
  688. pData->param.ranges[j].step = 1.0f;
  689. pData->param.ranges[j].stepSmall = 1.0f;
  690. pData->param.ranges[j].stepLarge = 1.0f;
  691. // ----------------------
  692. j = FluidSynthChorusNr;
  693. pData->param.data[j].type = PARAMETER_INPUT;
  694. pData->param.data[j].hints = PARAMETER_IS_ENABLED | PARAMETER_IS_INTEGER;
  695. pData->param.data[j].index = j;
  696. pData->param.data[j].rindex = j;
  697. pData->param.ranges[j].min = 0.0f;
  698. pData->param.ranges[j].max = 99.0f;
  699. pData->param.ranges[j].def = sFluidDefaults[j];
  700. pData->param.ranges[j].step = 1.0f;
  701. pData->param.ranges[j].stepSmall = 1.0f;
  702. pData->param.ranges[j].stepLarge = 10.0f;
  703. // ----------------------
  704. j = FluidSynthChorusLevel;
  705. pData->param.data[j].type = PARAMETER_INPUT;
  706. pData->param.data[j].hints = PARAMETER_IS_ENABLED;
  707. pData->param.data[j].index = j;
  708. pData->param.data[j].rindex = j;
  709. pData->param.ranges[j].min = 0.0f;
  710. pData->param.ranges[j].max = 10.0f;
  711. pData->param.ranges[j].def = sFluidDefaults[j];
  712. pData->param.ranges[j].step = 0.01f;
  713. pData->param.ranges[j].stepSmall = 0.0001f;
  714. pData->param.ranges[j].stepLarge = 0.1f;
  715. // ----------------------
  716. j = FluidSynthChorusSpeedHz;
  717. pData->param.data[j].type = PARAMETER_INPUT;
  718. pData->param.data[j].hints = PARAMETER_IS_ENABLED;
  719. pData->param.data[j].index = j;
  720. pData->param.data[j].rindex = j;
  721. pData->param.ranges[j].min = 0.29f;
  722. pData->param.ranges[j].max = 5.0f;
  723. pData->param.ranges[j].def = sFluidDefaults[j];
  724. pData->param.ranges[j].step = 0.01f;
  725. pData->param.ranges[j].stepSmall = 0.0001f;
  726. pData->param.ranges[j].stepLarge = 0.1f;
  727. // ----------------------
  728. j = FluidSynthChorusDepthMs;
  729. pData->param.data[j].type = PARAMETER_INPUT;
  730. pData->param.data[j].hints = PARAMETER_IS_ENABLED;
  731. pData->param.data[j].index = j;
  732. pData->param.data[j].rindex = j;
  733. pData->param.ranges[j].min = 0.0f;
  734. #if FLUIDSYNTH_VERSION_MAJOR >= 2
  735. pData->param.ranges[j].max = 256.0f;
  736. #else
  737. pData->param.ranges[j].max = float(2048.0 * 1000.0 / pData->engine->getSampleRate()); // FIXME?
  738. #endif
  739. pData->param.ranges[j].def = sFluidDefaults[j];
  740. pData->param.ranges[j].step = 0.01f;
  741. pData->param.ranges[j].stepSmall = 0.0001f;
  742. pData->param.ranges[j].stepLarge = 0.1f;
  743. // ----------------------
  744. j = FluidSynthChorusType;
  745. pData->param.data[j].type = PARAMETER_INPUT;
  746. pData->param.data[j].hints = PARAMETER_IS_ENABLED | PARAMETER_IS_INTEGER | PARAMETER_USES_SCALEPOINTS;
  747. pData->param.data[j].index = j;
  748. pData->param.data[j].rindex = j;
  749. pData->param.ranges[j].min = FLUID_CHORUS_MOD_SINE;
  750. pData->param.ranges[j].max = FLUID_CHORUS_MOD_TRIANGLE;
  751. pData->param.ranges[j].def = sFluidDefaults[j];
  752. pData->param.ranges[j].step = 1.0f;
  753. pData->param.ranges[j].stepSmall = 1.0f;
  754. pData->param.ranges[j].stepLarge = 1.0f;
  755. // ----------------------
  756. j = FluidSynthPolyphony;
  757. pData->param.data[j].type = PARAMETER_INPUT;
  758. pData->param.data[j].hints = PARAMETER_IS_ENABLED | PARAMETER_IS_INTEGER;
  759. pData->param.data[j].index = j;
  760. pData->param.data[j].rindex = j;
  761. pData->param.ranges[j].min = 1.0f;
  762. pData->param.ranges[j].max = 512.0f; // max theoric is 65535
  763. pData->param.ranges[j].def = sFluidDefaults[j];
  764. pData->param.ranges[j].step = 1.0f;
  765. pData->param.ranges[j].stepSmall = 1.0f;
  766. pData->param.ranges[j].stepLarge = 10.0f;
  767. // ----------------------
  768. j = FluidSynthInterpolation;
  769. pData->param.data[j].type = PARAMETER_INPUT;
  770. pData->param.data[j].hints = PARAMETER_IS_ENABLED | PARAMETER_IS_INTEGER | PARAMETER_USES_SCALEPOINTS;
  771. pData->param.data[j].index = j;
  772. pData->param.data[j].rindex = j;
  773. pData->param.ranges[j].min = FLUID_INTERP_NONE;
  774. pData->param.ranges[j].max = FLUID_INTERP_HIGHEST;
  775. pData->param.ranges[j].def = sFluidDefaults[j];
  776. pData->param.ranges[j].step = 1.0f;
  777. pData->param.ranges[j].stepSmall = 1.0f;
  778. pData->param.ranges[j].stepLarge = 1.0f;
  779. // ----------------------
  780. j = FluidSynthVoiceCount;
  781. pData->param.data[j].type = PARAMETER_OUTPUT;
  782. pData->param.data[j].hints = PARAMETER_IS_ENABLED | PARAMETER_IS_AUTOMABLE | PARAMETER_IS_INTEGER;
  783. pData->param.data[j].index = j;
  784. pData->param.data[j].rindex = j;
  785. pData->param.ranges[j].min = 0.0f;
  786. pData->param.ranges[j].max = 65535.0f;
  787. pData->param.ranges[j].def = 0.0f;
  788. pData->param.ranges[j].step = 1.0f;
  789. pData->param.ranges[j].stepSmall = 1.0f;
  790. pData->param.ranges[j].stepLarge = 1.0f;
  791. for (j=0; j<FluidSynthParametersMax; ++j)
  792. fParamBuffers[j] = pData->param.ranges[j].def;
  793. }
  794. // ---------------------------------------
  795. // plugin hints
  796. pData->hints = 0x0;
  797. pData->hints |= PLUGIN_IS_SYNTH;
  798. pData->hints |= PLUGIN_CAN_VOLUME;
  799. pData->hints |= PLUGIN_USES_MULTI_PROGS;
  800. if (! kUse16Outs)
  801. pData->hints |= PLUGIN_CAN_BALANCE;
  802. // extra plugin hints
  803. pData->extraHints = 0x0;
  804. pData->extraHints |= PLUGIN_EXTRA_HINT_HAS_MIDI_IN;
  805. bufferSizeChanged(pData->engine->getBufferSize());
  806. reloadPrograms(true);
  807. if (pData->active)
  808. activate();
  809. carla_debug("CarlaPluginFluidSynth::reload() - end");
  810. }
  811. void reloadPrograms(const bool doInit) override
  812. {
  813. carla_debug("CarlaPluginFluidSynth::reloadPrograms(%s)", bool2str(doInit));
  814. // save drum info in case we have one program for it
  815. bool hasDrums = false;
  816. uint32_t drumIndex, drumProg;
  817. drumIndex = drumProg = 0;
  818. // Delete old programs
  819. pData->midiprog.clear();
  820. // Query new programs
  821. uint32_t count = 0;
  822. if (fluid_sfont_t* const f_sfont = fluid_synth_get_sfont_by_id(fSynth, fSynthId))
  823. {
  824. #if FLUIDSYNTH_VERSION_MAJOR >= 2
  825. fluid_preset_t* f_preset;
  826. // initial check to know how many midi-programs we have
  827. fluid_sfont_iteration_start(f_sfont);
  828. for (; fluid_sfont_iteration_next(f_sfont);)
  829. ++count;
  830. // sound kits must always have at least 1 midi-program
  831. CARLA_SAFE_ASSERT_RETURN(count > 0,);
  832. pData->midiprog.createNew(count);
  833. // Update data
  834. int tmp;
  835. uint32_t i = 0;
  836. fluid_sfont_iteration_start(f_sfont);
  837. for (; (f_preset = fluid_sfont_iteration_next(f_sfont));)
  838. {
  839. CARLA_SAFE_ASSERT_BREAK(i < count);
  840. tmp = fluid_preset_get_banknum(f_preset);
  841. pData->midiprog.data[i].bank = (tmp >= 0) ? static_cast<uint32_t>(tmp) : 0;
  842. tmp = fluid_preset_get_num(f_preset);
  843. pData->midiprog.data[i].program = (tmp >= 0) ? static_cast<uint32_t>(tmp) : 0;
  844. pData->midiprog.data[i].name = carla_strdup(fluid_preset_get_name(f_preset));
  845. #else
  846. fluid_preset_t f_preset;
  847. // initial check to know how many midi-programs we have
  848. f_sfont->iteration_start(f_sfont);
  849. for (; f_sfont->iteration_next(f_sfont, &f_preset);)
  850. ++count;
  851. // sound kits must always have at least 1 midi-program
  852. CARLA_SAFE_ASSERT_RETURN(count > 0,);
  853. pData->midiprog.createNew(count);
  854. // Update data
  855. int tmp;
  856. uint32_t i = 0;
  857. f_sfont->iteration_start(f_sfont);
  858. for (; f_sfont->iteration_next(f_sfont, &f_preset);)
  859. {
  860. CARLA_SAFE_ASSERT_BREAK(i < count);
  861. tmp = f_preset.get_banknum(&f_preset);
  862. pData->midiprog.data[i].bank = (tmp >= 0) ? static_cast<uint32_t>(tmp) : 0;
  863. tmp = f_preset.get_num(&f_preset);
  864. pData->midiprog.data[i].program = (tmp >= 0) ? static_cast<uint32_t>(tmp) : 0;
  865. pData->midiprog.data[i].name = carla_strdup(f_preset.get_name(&f_preset));
  866. #endif
  867. if (pData->midiprog.data[i].bank == 128 && ! hasDrums)
  868. {
  869. hasDrums = true;
  870. drumIndex = i;
  871. drumProg = pData->midiprog.data[i].program;
  872. }
  873. ++i;
  874. }
  875. }
  876. else
  877. {
  878. // failing means 0 midi-programs, it shouldn't happen!
  879. carla_safe_assert("fluid_sfont_t* const f_sfont = fluid_synth_get_sfont_by_id(fSynth, fSynthId)", __FILE__, __LINE__);
  880. return;
  881. }
  882. if (doInit)
  883. {
  884. fluid_synth_program_reset(fSynth);
  885. // select first program, or 128 for ch10
  886. for (int i=0; i < MAX_MIDI_CHANNELS && i != 9; ++i)
  887. {
  888. fluid_synth_set_channel_type(fSynth, i, CHANNEL_TYPE_MELODIC);
  889. #if FLUIDSYNTH_VERSION_MAJOR >= 2
  890. fluid_synth_program_select(fSynth, i, fSynthId,
  891. static_cast<int>(pData->midiprog.data[0].bank),
  892. static_cast<int>(pData->midiprog.data[0].program));
  893. #else
  894. fluid_synth_program_select(fSynth, i, fSynthId,
  895. pData->midiprog.data[0].bank, pData->midiprog.data[0].program);
  896. #endif
  897. fCurMidiProgs[i] = 0;
  898. }
  899. if (hasDrums)
  900. {
  901. fluid_synth_set_channel_type(fSynth, 9, CHANNEL_TYPE_DRUM);
  902. #if FLUIDSYNTH_VERSION_MAJOR >= 2
  903. fluid_synth_program_select(fSynth, 9, fSynthId, 128, static_cast<int>(drumProg));
  904. #else
  905. fluid_synth_program_select(fSynth, 9, fSynthId, 128, drumProg);
  906. #endif
  907. fCurMidiProgs[9] = static_cast<int32_t>(drumIndex);
  908. }
  909. else
  910. {
  911. fluid_synth_set_channel_type(fSynth, 9, CHANNEL_TYPE_MELODIC);
  912. #if FLUIDSYNTH_VERSION_MAJOR >= 2
  913. fluid_synth_program_select(fSynth, 9, fSynthId,
  914. static_cast<int>(pData->midiprog.data[0].bank),
  915. static_cast<int>(pData->midiprog.data[0].program));
  916. #else
  917. fluid_synth_program_select(fSynth, 9, fSynthId,
  918. pData->midiprog.data[0].bank, pData->midiprog.data[0].program);
  919. #endif
  920. fCurMidiProgs[9] = 0;
  921. }
  922. pData->midiprog.current = 0;
  923. }
  924. else
  925. {
  926. pData->engine->callback(true, true, ENGINE_CALLBACK_RELOAD_PROGRAMS, pData->id, 0, 0, 0, 0.0f, nullptr);
  927. }
  928. }
  929. // -------------------------------------------------------------------
  930. // Plugin processing
  931. void process(const float* const* const, float** const audioOut,
  932. const float* const*, float**, const uint32_t frames) override
  933. {
  934. // --------------------------------------------------------------------------------------------------------
  935. // Check if active
  936. if (! pData->active)
  937. {
  938. // disable any output sound
  939. for (uint32_t i=0; i < pData->audioOut.count; ++i)
  940. carla_zeroFloats(audioOut[i], frames);
  941. return;
  942. }
  943. // --------------------------------------------------------------------------------------------------------
  944. // Check if needs reset
  945. if (pData->needsReset)
  946. {
  947. if (pData->options & PLUGIN_OPTION_SEND_ALL_SOUND_OFF)
  948. {
  949. for (int i=0; i < MAX_MIDI_CHANNELS; ++i)
  950. {
  951. fluid_synth_all_notes_off(fSynth, i);
  952. fluid_synth_all_sounds_off(fSynth, i);
  953. }
  954. }
  955. else if (pData->ctrlChannel >= 0 && pData->ctrlChannel < MAX_MIDI_CHANNELS)
  956. {
  957. for (int i=0; i < MAX_MIDI_NOTE; ++i)
  958. fluid_synth_noteoff(fSynth, pData->ctrlChannel, i);
  959. }
  960. pData->needsReset = false;
  961. }
  962. // --------------------------------------------------------------------------------------------------------
  963. // Event Input and Processing
  964. {
  965. // ----------------------------------------------------------------------------------------------------
  966. // MIDI Input (External)
  967. if (pData->extNotes.mutex.tryLock())
  968. {
  969. for (RtLinkedList<ExternalMidiNote>::Itenerator it = pData->extNotes.data.begin2(); it.valid(); it.next())
  970. {
  971. const ExternalMidiNote& note(it.getValue(kExternalMidiNoteFallback));
  972. CARLA_SAFE_ASSERT_CONTINUE(note.channel >= 0 && note.channel < MAX_MIDI_CHANNELS);
  973. if (note.velo > 0)
  974. fluid_synth_noteon(fSynth, note.channel, note.note, note.velo);
  975. else
  976. fluid_synth_noteoff(fSynth,note.channel, note.note);
  977. }
  978. pData->extNotes.data.clear();
  979. pData->extNotes.mutex.unlock();
  980. } // End of MIDI Input (External)
  981. // ----------------------------------------------------------------------------------------------------
  982. // Event Input (System)
  983. #ifndef BUILD_BRIDGE
  984. bool allNotesOffSent = false;
  985. #endif
  986. uint32_t timeOffset = 0;
  987. uint32_t nextBankIds[MAX_MIDI_CHANNELS] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 128, 0, 0, 0, 0, 0, 0 };
  988. if (pData->midiprog.current >= 0 && pData->midiprog.count > 0 && pData->ctrlChannel >= 0 && pData->ctrlChannel < MAX_MIDI_CHANNELS)
  989. nextBankIds[pData->ctrlChannel] = pData->midiprog.data[pData->midiprog.current].bank;
  990. for (uint32_t i=0, numEvents=pData->event.portIn->getEventCount(); i < numEvents; ++i)
  991. {
  992. const EngineEvent& event(pData->event.portIn->getEvent(i));
  993. uint32_t eventTime = event.time;
  994. CARLA_SAFE_ASSERT_UINT2_CONTINUE(eventTime < frames, eventTime, frames);
  995. if (eventTime < timeOffset)
  996. {
  997. carla_stderr2("Timing error, eventTime:%u < timeOffset:%u for '%s'",
  998. eventTime, timeOffset, pData->name);
  999. eventTime = timeOffset;
  1000. }
  1001. else if (eventTime > timeOffset)
  1002. {
  1003. if (processSingle(audioOut, eventTime - timeOffset, timeOffset))
  1004. {
  1005. timeOffset = eventTime;
  1006. if (pData->midiprog.current >= 0 && pData->midiprog.count > 0 && pData->ctrlChannel >= 0 && pData->ctrlChannel < MAX_MIDI_CHANNELS)
  1007. nextBankIds[pData->ctrlChannel] = pData->midiprog.data[pData->midiprog.current].bank;
  1008. }
  1009. }
  1010. // Control change
  1011. switch (event.type)
  1012. {
  1013. case kEngineEventTypeNull:
  1014. break;
  1015. case kEngineEventTypeControl:
  1016. {
  1017. const EngineControlEvent& ctrlEvent = event.ctrl;
  1018. switch (ctrlEvent.type)
  1019. {
  1020. case kEngineControlEventTypeNull:
  1021. break;
  1022. case kEngineControlEventTypeParameter:
  1023. {
  1024. float value;
  1025. #ifndef BUILD_BRIDGE_ALTERNATIVE_ARCH
  1026. // Control backend stuff
  1027. if (event.channel == pData->ctrlChannel)
  1028. {
  1029. if (MIDI_IS_CONTROL_BREATH_CONTROLLER(ctrlEvent.param) && (pData->hints & PLUGIN_CAN_DRYWET) != 0)
  1030. {
  1031. value = ctrlEvent.normalizedValue;
  1032. setDryWetRT(value, true);
  1033. }
  1034. if (MIDI_IS_CONTROL_CHANNEL_VOLUME(ctrlEvent.param) && (pData->hints & PLUGIN_CAN_VOLUME) != 0)
  1035. {
  1036. value = ctrlEvent.normalizedValue*127.0f/100.0f;
  1037. setVolumeRT(value, true);
  1038. }
  1039. if (MIDI_IS_CONTROL_BALANCE(ctrlEvent.param) && (pData->hints & PLUGIN_CAN_BALANCE) != 0)
  1040. {
  1041. float left, right;
  1042. value = ctrlEvent.normalizedValue/0.5f - 1.0f;
  1043. if (value < 0.0f)
  1044. {
  1045. left = -1.0f;
  1046. right = (value*2.0f)+1.0f;
  1047. }
  1048. else if (value > 0.0f)
  1049. {
  1050. left = (value*2.0f)-1.0f;
  1051. right = 1.0f;
  1052. }
  1053. else
  1054. {
  1055. left = -1.0f;
  1056. right = 1.0f;
  1057. }
  1058. setBalanceLeftRT(left, true);
  1059. setBalanceRightRT(right, true);
  1060. }
  1061. }
  1062. #endif
  1063. // Control plugin parameters
  1064. for (uint32_t k=0; k < pData->param.count; ++k)
  1065. {
  1066. if (pData->param.data[k].midiChannel != event.channel)
  1067. continue;
  1068. if (pData->param.data[k].mappedControlIndex != ctrlEvent.param)
  1069. continue;
  1070. if (pData->param.data[k].hints != PARAMETER_INPUT)
  1071. continue;
  1072. if ((pData->param.data[k].hints & PARAMETER_IS_AUTOMABLE) == 0)
  1073. continue;
  1074. value = pData->param.getFinalUnnormalizedValue(k, ctrlEvent.normalizedValue);
  1075. setParameterValueRT(k, value, true);
  1076. }
  1077. if ((pData->options & PLUGIN_OPTION_SEND_CONTROL_CHANGES) != 0 && ctrlEvent.param < MAX_MIDI_VALUE)
  1078. {
  1079. fluid_synth_cc(fSynth, event.channel, ctrlEvent.param, int(ctrlEvent.normalizedValue*127.0f));
  1080. }
  1081. break;
  1082. }
  1083. case kEngineControlEventTypeMidiBank:
  1084. if (event.channel < MAX_MIDI_CHANNELS && (pData->options & PLUGIN_OPTION_MAP_PROGRAM_CHANGES) != 0)
  1085. nextBankIds[event.channel] = ctrlEvent.param;
  1086. break;
  1087. case kEngineControlEventTypeMidiProgram:
  1088. if (event.channel < MAX_MIDI_CHANNELS && (pData->options & PLUGIN_OPTION_MAP_PROGRAM_CHANGES) != 0)
  1089. {
  1090. const uint32_t bankId(nextBankIds[event.channel]);
  1091. const uint32_t progId(ctrlEvent.param);
  1092. // TODO int32_t midiprog.find(bank, prog)
  1093. for (uint32_t k=0; k < pData->midiprog.count; ++k)
  1094. {
  1095. if (pData->midiprog.data[k].bank == bankId && pData->midiprog.data[k].program == progId)
  1096. {
  1097. #if FLUIDSYNTH_VERSION_MAJOR >= 2
  1098. fluid_synth_program_select(fSynth, event.channel, fSynthId,
  1099. static_cast<int>(bankId), static_cast<int>(progId));
  1100. #else
  1101. fluid_synth_program_select(fSynth, event.channel, fSynthId, bankId, progId);
  1102. #endif
  1103. fCurMidiProgs[event.channel] = static_cast<int32_t>(k);
  1104. if (event.channel == pData->ctrlChannel)
  1105. {
  1106. pData->postponeRtEvent(kPluginPostRtEventMidiProgramChange,
  1107. true,
  1108. static_cast<int32_t>(k),
  1109. 0, 0, 0.0f);
  1110. }
  1111. break;
  1112. }
  1113. }
  1114. }
  1115. break;
  1116. case kEngineControlEventTypeAllSoundOff:
  1117. if (pData->options & PLUGIN_OPTION_SEND_ALL_SOUND_OFF)
  1118. fluid_synth_all_sounds_off(fSynth, event.channel);
  1119. break;
  1120. case kEngineControlEventTypeAllNotesOff:
  1121. if (pData->options & PLUGIN_OPTION_SEND_ALL_SOUND_OFF)
  1122. {
  1123. #ifndef BUILD_BRIDGE
  1124. if (event.channel == pData->ctrlChannel && ! allNotesOffSent)
  1125. {
  1126. allNotesOffSent = true;
  1127. postponeRtAllNotesOff();
  1128. }
  1129. #endif
  1130. fluid_synth_all_notes_off(fSynth, event.channel);
  1131. }
  1132. break;
  1133. }
  1134. break;
  1135. }
  1136. case kEngineEventTypeMidi: {
  1137. const EngineMidiEvent& midiEvent(event.midi);
  1138. if (midiEvent.size > EngineMidiEvent::kDataSize)
  1139. continue;
  1140. uint8_t status = uint8_t(MIDI_GET_STATUS_FROM_DATA(midiEvent.data));
  1141. // Fix bad note-off
  1142. if (status == MIDI_STATUS_NOTE_ON && midiEvent.data[2] == 0)
  1143. status = MIDI_STATUS_NOTE_OFF;
  1144. switch (status)
  1145. {
  1146. case MIDI_STATUS_NOTE_OFF:
  1147. if ((pData->options & PLUGIN_OPTION_SKIP_SENDING_NOTES) == 0x0)
  1148. {
  1149. const uint8_t note = midiEvent.data[1];
  1150. fluid_synth_noteoff(fSynth, event.channel, note);
  1151. pData->postponeRtEvent(kPluginPostRtEventNoteOff, true, event.channel, note, 0, 0.0f);
  1152. }
  1153. break;
  1154. case MIDI_STATUS_NOTE_ON:
  1155. if ((pData->options & PLUGIN_OPTION_SKIP_SENDING_NOTES) == 0x0)
  1156. {
  1157. const uint8_t note = midiEvent.data[1];
  1158. const uint8_t velo = midiEvent.data[2];
  1159. fluid_synth_noteon(fSynth, event.channel, note, velo);
  1160. pData->postponeRtEvent(kPluginPostRtEventNoteOn, true, event.channel, note, velo, 0.0f);
  1161. }
  1162. break;
  1163. case MIDI_STATUS_POLYPHONIC_AFTERTOUCH:
  1164. if (pData->options & PLUGIN_OPTION_SEND_NOTE_AFTERTOUCH)
  1165. {
  1166. //const uint8_t note = midiEvent.data[1];
  1167. //const uint8_t pressure = midiEvent.data[2];
  1168. // not in fluidsynth API
  1169. }
  1170. break;
  1171. case MIDI_STATUS_CONTROL_CHANGE:
  1172. if (pData->options & PLUGIN_OPTION_SEND_CONTROL_CHANGES)
  1173. {
  1174. const uint8_t control = midiEvent.data[1];
  1175. const uint8_t value = midiEvent.data[2];
  1176. fluid_synth_cc(fSynth, event.channel, control, value);
  1177. }
  1178. break;
  1179. case MIDI_STATUS_CHANNEL_PRESSURE:
  1180. if (pData->options & PLUGIN_OPTION_SEND_CHANNEL_PRESSURE)
  1181. {
  1182. const uint8_t pressure = midiEvent.data[1];
  1183. fluid_synth_channel_pressure(fSynth, event.channel, pressure);;
  1184. }
  1185. break;
  1186. case MIDI_STATUS_PITCH_WHEEL_CONTROL:
  1187. if (pData->options & PLUGIN_OPTION_SEND_PITCHBEND)
  1188. {
  1189. const uint8_t lsb = midiEvent.data[1];
  1190. const uint8_t msb = midiEvent.data[2];
  1191. const int value = ((msb << 7) | lsb);
  1192. fluid_synth_pitch_bend(fSynth, event.channel, value);
  1193. }
  1194. break;
  1195. default:
  1196. continue;
  1197. break;
  1198. } // switch (status)
  1199. } break;
  1200. } // switch (event.type)
  1201. }
  1202. pData->postRtEvents.trySplice();
  1203. if (frames > timeOffset)
  1204. processSingle(audioOut, frames - timeOffset, timeOffset);
  1205. } // End of Event Input and Processing
  1206. #ifndef BUILD_BRIDGE
  1207. // --------------------------------------------------------------------------------------------------------
  1208. // Control Output
  1209. {
  1210. uint32_t k = FluidSynthVoiceCount;
  1211. fParamBuffers[k] = float(fluid_synth_get_active_voice_count(fSynth));
  1212. pData->param.ranges[k].fixValue(fParamBuffers[k]);
  1213. if (pData->param.data[k].mappedControlIndex > 0)
  1214. {
  1215. float value(pData->param.ranges[k].getNormalizedValue(fParamBuffers[k]));
  1216. pData->event.portOut->writeControlEvent(0,
  1217. pData->param.data[k].midiChannel,
  1218. kEngineControlEventTypeParameter,
  1219. static_cast<uint16_t>(pData->param.data[k].mappedControlIndex),
  1220. -1,
  1221. value);
  1222. }
  1223. } // End of Control Output
  1224. #endif
  1225. }
  1226. bool processSingle(float** const outBuffer, const uint32_t frames, const uint32_t timeOffset)
  1227. {
  1228. CARLA_SAFE_ASSERT_RETURN(outBuffer != nullptr, false);
  1229. CARLA_SAFE_ASSERT_RETURN(frames > 0, false);
  1230. // --------------------------------------------------------------------------------------------------------
  1231. // Try lock, silence otherwise
  1232. #ifndef STOAT_TEST_BUILD
  1233. if (pData->engine->isOffline())
  1234. {
  1235. pData->singleMutex.lock();
  1236. }
  1237. else
  1238. #endif
  1239. if (! pData->singleMutex.tryLock())
  1240. {
  1241. for (uint32_t i=0; i < pData->audioOut.count; ++i)
  1242. {
  1243. for (uint32_t k=0; k < frames; ++k)
  1244. outBuffer[i][k+timeOffset] = 0.0f;
  1245. }
  1246. return false;
  1247. }
  1248. // --------------------------------------------------------------------------------------------------------
  1249. // Fill plugin buffers and Run plugin
  1250. if (kUse16Outs)
  1251. {
  1252. for (uint32_t i=0; i < pData->audioOut.count; ++i)
  1253. carla_zeroFloats(fAudio16Buffers[i], frames);
  1254. // FIXME use '32' or '16' instead of outs
  1255. fluid_synth_process(fSynth, static_cast<int>(frames),
  1256. 0, nullptr,
  1257. static_cast<int>(pData->audioOut.count), fAudio16Buffers);
  1258. }
  1259. else
  1260. {
  1261. fluid_synth_write_float(fSynth, static_cast<int>(frames),
  1262. outBuffer[0] + timeOffset, 0, 1,
  1263. outBuffer[1] + timeOffset, 0, 1);
  1264. }
  1265. #ifndef BUILD_BRIDGE
  1266. // --------------------------------------------------------------------------------------------------------
  1267. // Post-processing (volume and balance)
  1268. {
  1269. // note - balance not possible with kUse16Outs, so we can safely skip fAudioOutBuffers
  1270. const bool doVolume = (pData->hints & PLUGIN_CAN_VOLUME) != 0 && carla_isNotEqual(pData->postProc.volume, 1.0f);
  1271. const bool doBalance = (pData->hints & PLUGIN_CAN_BALANCE) != 0 && ! (carla_isEqual(pData->postProc.balanceLeft, -1.0f) && carla_isEqual(pData->postProc.balanceRight, 1.0f));
  1272. float oldBufLeft[doBalance ? frames : 1];
  1273. for (uint32_t i=0; i < pData->audioOut.count; ++i)
  1274. {
  1275. // Balance
  1276. if (doBalance)
  1277. {
  1278. if (i % 2 == 0)
  1279. carla_copyFloats(oldBufLeft, outBuffer[i]+timeOffset, frames);
  1280. float balRangeL = (pData->postProc.balanceLeft + 1.0f)/2.0f;
  1281. float balRangeR = (pData->postProc.balanceRight + 1.0f)/2.0f;
  1282. for (uint32_t k=0; k < frames; ++k)
  1283. {
  1284. if (i % 2 == 0)
  1285. {
  1286. // left
  1287. outBuffer[i][k+timeOffset] = oldBufLeft[k] * (1.0f - balRangeL);
  1288. outBuffer[i][k+timeOffset] += outBuffer[i+1][k+timeOffset] * (1.0f - balRangeR);
  1289. }
  1290. else
  1291. {
  1292. // right
  1293. outBuffer[i][k+timeOffset] = outBuffer[i][k+timeOffset] * balRangeR;
  1294. outBuffer[i][k+timeOffset] += oldBufLeft[k] * balRangeL;
  1295. }
  1296. }
  1297. }
  1298. // Volume
  1299. if (kUse16Outs)
  1300. {
  1301. for (uint32_t k=0; k < frames; ++k)
  1302. outBuffer[i][k+timeOffset] = fAudio16Buffers[i][k] * pData->postProc.volume;
  1303. }
  1304. else if (doVolume)
  1305. {
  1306. for (uint32_t k=0; k < frames; ++k)
  1307. outBuffer[i][k+timeOffset] *= pData->postProc.volume;
  1308. }
  1309. }
  1310. } // End of Post-processing
  1311. #else
  1312. if (kUse16Outs)
  1313. {
  1314. for (uint32_t i=0; i < pData->audioOut.count; ++i)
  1315. {
  1316. for (uint32_t k=0; k < frames; ++k)
  1317. outBuffer[i][k+timeOffset] = fAudio16Buffers[i][k];
  1318. }
  1319. }
  1320. #endif
  1321. // --------------------------------------------------------------------------------------------------------
  1322. pData->singleMutex.unlock();
  1323. return true;
  1324. }
  1325. void bufferSizeChanged(const uint32_t newBufferSize) override
  1326. {
  1327. if (! kUse16Outs)
  1328. return;
  1329. for (uint32_t i=0; i < pData->audioOut.count; ++i)
  1330. {
  1331. if (fAudio16Buffers[i] != nullptr)
  1332. delete[] fAudio16Buffers[i];
  1333. fAudio16Buffers[i] = new float[newBufferSize];
  1334. }
  1335. }
  1336. void sampleRateChanged(const double newSampleRate) override
  1337. {
  1338. CARLA_SAFE_ASSERT_RETURN(fSettings != nullptr,);
  1339. fluid_settings_setnum(fSettings, "synth.sample-rate", newSampleRate);
  1340. #if FLUIDSYNTH_VERSION_MAJOR < 2
  1341. CARLA_SAFE_ASSERT_RETURN(fSynth != nullptr,);
  1342. fluid_synth_set_sample_rate(fSynth, static_cast<float>(newSampleRate));
  1343. #endif
  1344. }
  1345. // -------------------------------------------------------------------
  1346. // Plugin buffers
  1347. void clearBuffers() noexcept override
  1348. {
  1349. carla_debug("CarlaPluginFluidSynth::clearBuffers() - start");
  1350. if (fAudio16Buffers != nullptr)
  1351. {
  1352. for (uint32_t i=0; i < pData->audioOut.count; ++i)
  1353. {
  1354. if (fAudio16Buffers[i] != nullptr)
  1355. {
  1356. delete[] fAudio16Buffers[i];
  1357. fAudio16Buffers[i] = nullptr;
  1358. }
  1359. }
  1360. delete[] fAudio16Buffers;
  1361. fAudio16Buffers = nullptr;
  1362. }
  1363. CarlaPlugin::clearBuffers();
  1364. carla_debug("CarlaPluginFluidSynth::clearBuffers() - end");
  1365. }
  1366. // -------------------------------------------------------------------
  1367. const void* getExtraStuff() const noexcept override
  1368. {
  1369. static const char xtrue[] = "true";
  1370. static const char xfalse[] = "false";
  1371. return kUse16Outs ? xtrue : xfalse;
  1372. }
  1373. // -------------------------------------------------------------------
  1374. bool init(const CarlaPluginPtr plugin,
  1375. const char* const filename, const char* const name, const char* const label, const uint options)
  1376. {
  1377. CARLA_SAFE_ASSERT_RETURN(pData->engine != nullptr, false);
  1378. // ---------------------------------------------------------------
  1379. // first checks
  1380. if (pData->client != nullptr)
  1381. {
  1382. pData->engine->setLastError("Plugin client is already registered");
  1383. return false;
  1384. }
  1385. if (fSynth == nullptr)
  1386. {
  1387. pData->engine->setLastError("null synth");
  1388. return false;
  1389. }
  1390. if (filename == nullptr || filename[0] == '\0')
  1391. {
  1392. pData->engine->setLastError("null filename");
  1393. return false;
  1394. }
  1395. if (label == nullptr || label[0] == '\0')
  1396. {
  1397. pData->engine->setLastError("null label");
  1398. return false;
  1399. }
  1400. // ---------------------------------------------------------------
  1401. // open soundfont
  1402. const int synthId = fluid_synth_sfload(fSynth, filename, 0);
  1403. if (synthId < 0)
  1404. {
  1405. pData->engine->setLastError("Failed to load SoundFont file");
  1406. return false;
  1407. }
  1408. #if FLUIDSYNTH_VERSION_MAJOR >= 2
  1409. fSynthId = synthId;
  1410. #else
  1411. fSynthId = static_cast<uint>(synthId);
  1412. #endif
  1413. // ---------------------------------------------------------------
  1414. // get info
  1415. CarlaString label2(label);
  1416. if (kUse16Outs && ! label2.endsWith(" (16 outs)"))
  1417. label2 += " (16 outs)";
  1418. fLabel = label2.dup();
  1419. pData->filename = carla_strdup(filename);
  1420. if (name != nullptr && name[0] != '\0')
  1421. pData->name = pData->engine->getUniquePluginName(name);
  1422. else
  1423. pData->name = pData->engine->getUniquePluginName(label);
  1424. // ---------------------------------------------------------------
  1425. // register client
  1426. pData->client = pData->engine->addClient(plugin);
  1427. if (pData->client == nullptr || ! pData->client->isOk())
  1428. {
  1429. pData->engine->setLastError("Failed to register plugin client");
  1430. return false;
  1431. }
  1432. // ---------------------------------------------------------------
  1433. // set options
  1434. pData->options = 0x0;
  1435. if (isPluginOptionEnabled(options, PLUGIN_OPTION_SEND_CONTROL_CHANGES))
  1436. pData->options |= PLUGIN_OPTION_SEND_CONTROL_CHANGES;
  1437. if (isPluginOptionEnabled(options, PLUGIN_OPTION_SEND_CHANNEL_PRESSURE))
  1438. pData->options |= PLUGIN_OPTION_SEND_CHANNEL_PRESSURE;
  1439. if (isPluginOptionEnabled(options, PLUGIN_OPTION_SEND_PITCHBEND))
  1440. pData->options |= PLUGIN_OPTION_SEND_PITCHBEND;
  1441. if (isPluginOptionEnabled(options, PLUGIN_OPTION_SEND_ALL_SOUND_OFF))
  1442. pData->options |= PLUGIN_OPTION_SEND_ALL_SOUND_OFF;
  1443. if (isPluginOptionEnabled(options, PLUGIN_OPTION_MAP_PROGRAM_CHANGES))
  1444. pData->options |= PLUGIN_OPTION_MAP_PROGRAM_CHANGES;
  1445. if (isPluginOptionInverseEnabled(options, PLUGIN_OPTION_SKIP_SENDING_NOTES))
  1446. pData->options |= PLUGIN_OPTION_SKIP_SENDING_NOTES;
  1447. return true;
  1448. }
  1449. private:
  1450. void initializeFluidDefaultsIfNeeded()
  1451. {
  1452. if (sFluidDefaultsStored)
  1453. return;
  1454. sFluidDefaultsStored = true;
  1455. // reverb defaults
  1456. sFluidDefaults[FluidSynthReverbOnOff] = 1.0f;
  1457. #if FLUIDSYNTH_VERSION_MAJOR >= 2
  1458. double reverbVal;
  1459. reverbVal = 0.2;
  1460. fluid_settings_getnum_default(fSettings, "synth.reverb.room-size", &reverbVal);
  1461. sFluidDefaults[FluidSynthReverbRoomSize] = static_cast<float>(reverbVal);
  1462. reverbVal = 0.0;
  1463. fluid_settings_getnum_default(fSettings, "synth.reverb.damp", &reverbVal);
  1464. sFluidDefaults[FluidSynthReverbDamp] = static_cast<float>(reverbVal);
  1465. reverbVal = 0.9;
  1466. fluid_settings_getnum_default(fSettings, "synth.reverb.level", &reverbVal);
  1467. sFluidDefaults[FluidSynthReverbLevel] = static_cast<float>(reverbVal);
  1468. reverbVal = 0.5;
  1469. fluid_settings_getnum_default(fSettings, "synth.reverb.width", &reverbVal);
  1470. sFluidDefaults[FluidSynthReverbWidth] = static_cast<float>(reverbVal);
  1471. #else
  1472. sFluidDefaults[FluidSynthReverbRoomSize] = FLUID_REVERB_DEFAULT_ROOMSIZE;
  1473. sFluidDefaults[FluidSynthReverbDamp] = FLUID_REVERB_DEFAULT_DAMP;
  1474. sFluidDefaults[FluidSynthReverbLevel] = FLUID_REVERB_DEFAULT_LEVEL;
  1475. sFluidDefaults[FluidSynthReverbWidth] = FLUID_REVERB_DEFAULT_WIDTH;
  1476. #endif
  1477. // chorus defaults
  1478. sFluidDefaults[FluidSynthChorusOnOff] = 1.0f;
  1479. #if FLUIDSYNTH_VERSION_MAJOR >= 2
  1480. double chorusVal;
  1481. chorusVal = 3.0;
  1482. fluid_settings_getnum_default(fSettings, "synth.chorus.nr", &chorusVal);
  1483. sFluidDefaults[FluidSynthChorusNr] = static_cast<float>(chorusVal);
  1484. chorusVal = 2.0;
  1485. fluid_settings_getnum_default(fSettings, "synth.chorus.level", &chorusVal);
  1486. sFluidDefaults[FluidSynthChorusLevel] = static_cast<float>(chorusVal);
  1487. chorusVal = 0.3;
  1488. fluid_settings_getnum_default(fSettings, "synth.chorus.speed", &chorusVal);
  1489. sFluidDefaults[FluidSynthChorusSpeedHz] = static_cast<float>(chorusVal);
  1490. chorusVal = 8.0;
  1491. fluid_settings_getnum_default(fSettings, "synth.chorus.depth", &chorusVal);
  1492. sFluidDefaults[FluidSynthChorusDepthMs] = static_cast<float>(chorusVal);
  1493. // There is no settings for chorus default type
  1494. sFluidDefaults[FluidSynthChorusType] = static_cast<float>(fluid_synth_get_chorus_type(fSynth));
  1495. #else
  1496. sFluidDefaults[FluidSynthChorusNr] = FLUID_CHORUS_DEFAULT_N;
  1497. sFluidDefaults[FluidSynthChorusLevel] = FLUID_CHORUS_DEFAULT_LEVEL;
  1498. sFluidDefaults[FluidSynthChorusSpeedHz] = FLUID_CHORUS_DEFAULT_SPEED;
  1499. sFluidDefaults[FluidSynthChorusDepthMs] = FLUID_CHORUS_DEFAULT_DEPTH;
  1500. sFluidDefaults[FluidSynthChorusType] = FLUID_CHORUS_DEFAULT_TYPE;
  1501. #endif
  1502. // misc. defaults
  1503. sFluidDefaults[FluidSynthInterpolation] = FLUID_INTERP_DEFAULT;
  1504. sFluidDefaults[FluidSynthPolyphony] = FLUID_DEFAULT_POLYPHONY;
  1505. }
  1506. enum FluidSynthParameters {
  1507. FluidSynthReverbOnOff = 0,
  1508. FluidSynthReverbRoomSize = 1,
  1509. FluidSynthReverbDamp = 2,
  1510. FluidSynthReverbLevel = 3,
  1511. FluidSynthReverbWidth = 4,
  1512. FluidSynthChorusOnOff = 5,
  1513. FluidSynthChorusNr = 6,
  1514. FluidSynthChorusLevel = 7,
  1515. FluidSynthChorusSpeedHz = 8,
  1516. FluidSynthChorusDepthMs = 9,
  1517. FluidSynthChorusType = 10,
  1518. FluidSynthPolyphony = 11,
  1519. FluidSynthInterpolation = 12,
  1520. FluidSynthVoiceCount = 13,
  1521. FluidSynthParametersMax = 14
  1522. };
  1523. const bool kUse16Outs;
  1524. fluid_settings_t* fSettings;
  1525. fluid_synth_t* fSynth;
  1526. #if FLUIDSYNTH_VERSION_MAJOR >= 2
  1527. int fSynthId;
  1528. #else
  1529. uint fSynthId;
  1530. #endif
  1531. float** fAudio16Buffers;
  1532. float fParamBuffers[FluidSynthParametersMax];
  1533. static bool sFluidDefaultsStored;
  1534. static float sFluidDefaults[FluidSynthParametersMax];
  1535. int32_t fCurMidiProgs[MAX_MIDI_CHANNELS];
  1536. const char* fLabel;
  1537. CARLA_DECLARE_NON_COPYABLE_WITH_LEAK_DETECTOR(CarlaPluginFluidSynth)
  1538. };
  1539. bool CarlaPluginFluidSynth::sFluidDefaultsStored = false;
  1540. float CarlaPluginFluidSynth::sFluidDefaults[FluidSynthParametersMax] = {
  1541. 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f, 0.0f,
  1542. };
  1543. CARLA_BACKEND_END_NAMESPACE
  1544. #endif // HAVE_FLUIDSYNTH
  1545. CARLA_BACKEND_START_NAMESPACE
  1546. // -------------------------------------------------------------------------------------------------------------------
  1547. CarlaPluginPtr CarlaPlugin::newFluidSynth(const Initializer& init, PluginType ptype, bool use16Outs)
  1548. {
  1549. carla_debug("CarlaPlugin::newFluidSynth({%p, \"%s\", \"%s\", \"%s\", " P_INT64 "}, %s)",
  1550. init.engine, init.filename, init.name, init.label, init.uniqueId, bool2str(use16Outs));
  1551. #ifdef HAVE_FLUIDSYNTH
  1552. if (init.engine->getProccessMode() == ENGINE_PROCESS_MODE_CONTINUOUS_RACK)
  1553. use16Outs = false;
  1554. if (ptype == PLUGIN_SF2 && ! fluid_is_soundfont(init.filename))
  1555. {
  1556. init.engine->setLastError("Requested file is not a valid SoundFont");
  1557. return nullptr;
  1558. }
  1559. #ifndef HAVE_FLUIDSYNTH_INSTPATCH
  1560. if (ptype == PLUGIN_DLS)
  1561. {
  1562. init.engine->setLastError("DLS file support not available");
  1563. return nullptr;
  1564. }
  1565. if (ptype == PLUGIN_GIG)
  1566. {
  1567. init.engine->setLastError("GIG file support not available");
  1568. return nullptr;
  1569. }
  1570. #endif
  1571. std::shared_ptr<CarlaPluginFluidSynth> plugin(new CarlaPluginFluidSynth(init.engine, init.id, use16Outs));
  1572. if (! plugin->init(plugin, init.filename, init.name, init.label, init.options))
  1573. return nullptr;
  1574. return plugin;
  1575. #else
  1576. init.engine->setLastError("fluidsynth support not available");
  1577. return nullptr;
  1578. // unused
  1579. (void)ptype;
  1580. (void)use16Outs;
  1581. #endif
  1582. }
  1583. // -------------------------------------------------------------------------------------------------------------------
  1584. CARLA_BACKEND_END_NAMESPACE