The JUCE cross-platform C++ framework, with DISTRHO/KXStudio specific changes
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  1. /*
  2. ==============================================================================
  3. This file is part of the JUCE 7 technical preview.
  4. Copyright (c) 2022 - Raw Material Software Limited
  5. You may use this code under the terms of the GPL v3
  6. (see www.gnu.org/licenses).
  7. For the technical preview this file cannot be licensed commercially.
  8. JUCE IS PROVIDED "AS IS" WITHOUT ANY WARRANTY, AND ALL WARRANTIES, WHETHER
  9. EXPRESSED OR IMPLIED, INCLUDING MERCHANTABILITY AND FITNESS FOR PURPOSE, ARE
  10. DISCLAIMED.
  11. ==============================================================================
  12. */
  13. namespace juce
  14. {
  15. using StringMap = std::unordered_map<String, String>;
  16. static auto toMap (const StringPairArray& array)
  17. {
  18. StringMap result;
  19. for (auto i = 0; i < array.size(); ++i)
  20. result[array.getAllKeys()[i]] = array.getAllValues()[i];
  21. return result;
  22. }
  23. static auto getValueWithDefault (const StringMap& m, const String& key, const String& fallback = {})
  24. {
  25. const auto iter = m.find (key);
  26. return iter != m.cend() ? iter->second : fallback;
  27. }
  28. static const char* const wavFormatName = "WAV file";
  29. //==============================================================================
  30. const char* const WavAudioFormat::bwavDescription = "bwav description";
  31. const char* const WavAudioFormat::bwavOriginator = "bwav originator";
  32. const char* const WavAudioFormat::bwavOriginatorRef = "bwav originator ref";
  33. const char* const WavAudioFormat::bwavOriginationDate = "bwav origination date";
  34. const char* const WavAudioFormat::bwavOriginationTime = "bwav origination time";
  35. const char* const WavAudioFormat::bwavTimeReference = "bwav time reference";
  36. const char* const WavAudioFormat::bwavCodingHistory = "bwav coding history";
  37. StringPairArray WavAudioFormat::createBWAVMetadata (const String& description,
  38. const String& originator,
  39. const String& originatorRef,
  40. Time date,
  41. int64 timeReferenceSamples,
  42. const String& codingHistory)
  43. {
  44. StringPairArray m;
  45. m.set (bwavDescription, description);
  46. m.set (bwavOriginator, originator);
  47. m.set (bwavOriginatorRef, originatorRef);
  48. m.set (bwavOriginationDate, date.formatted ("%Y-%m-%d"));
  49. m.set (bwavOriginationTime, date.formatted ("%H:%M:%S"));
  50. m.set (bwavTimeReference, String (timeReferenceSamples));
  51. m.set (bwavCodingHistory, codingHistory);
  52. return m;
  53. }
  54. const char* const WavAudioFormat::acidOneShot = "acid one shot";
  55. const char* const WavAudioFormat::acidRootSet = "acid root set";
  56. const char* const WavAudioFormat::acidStretch = "acid stretch";
  57. const char* const WavAudioFormat::acidDiskBased = "acid disk based";
  58. const char* const WavAudioFormat::acidizerFlag = "acidizer flag";
  59. const char* const WavAudioFormat::acidRootNote = "acid root note";
  60. const char* const WavAudioFormat::acidBeats = "acid beats";
  61. const char* const WavAudioFormat::acidDenominator = "acid denominator";
  62. const char* const WavAudioFormat::acidNumerator = "acid numerator";
  63. const char* const WavAudioFormat::acidTempo = "acid tempo";
  64. const char* const WavAudioFormat::riffInfoArchivalLocation = "IARL";
  65. const char* const WavAudioFormat::riffInfoArtist = "IART";
  66. const char* const WavAudioFormat::riffInfoBaseURL = "IBSU";
  67. const char* const WavAudioFormat::riffInfoCinematographer = "ICNM";
  68. const char* const WavAudioFormat::riffInfoComment = "CMNT";
  69. const char* const WavAudioFormat::riffInfoComment2 = "ICMT";
  70. const char* const WavAudioFormat::riffInfoComments = "COMM";
  71. const char* const WavAudioFormat::riffInfoCommissioned = "ICMS";
  72. const char* const WavAudioFormat::riffInfoCopyright = "ICOP";
  73. const char* const WavAudioFormat::riffInfoCostumeDesigner = "ICDS";
  74. const char* const WavAudioFormat::riffInfoCountry = "ICNT";
  75. const char* const WavAudioFormat::riffInfoCropped = "ICRP";
  76. const char* const WavAudioFormat::riffInfoDateCreated = "ICRD";
  77. const char* const WavAudioFormat::riffInfoDateTimeOriginal = "IDIT";
  78. const char* const WavAudioFormat::riffInfoDefaultAudioStream = "ICAS";
  79. const char* const WavAudioFormat::riffInfoDimension = "IDIM";
  80. const char* const WavAudioFormat::riffInfoDirectory = "DIRC";
  81. const char* const WavAudioFormat::riffInfoDistributedBy = "IDST";
  82. const char* const WavAudioFormat::riffInfoDotsPerInch = "IDPI";
  83. const char* const WavAudioFormat::riffInfoEditedBy = "IEDT";
  84. const char* const WavAudioFormat::riffInfoEighthLanguage = "IAS8";
  85. const char* const WavAudioFormat::riffInfoEncodedBy = "CODE";
  86. const char* const WavAudioFormat::riffInfoEndTimecode = "TCDO";
  87. const char* const WavAudioFormat::riffInfoEngineer = "IENG";
  88. const char* const WavAudioFormat::riffInfoFifthLanguage = "IAS5";
  89. const char* const WavAudioFormat::riffInfoFirstLanguage = "IAS1";
  90. const char* const WavAudioFormat::riffInfoFourthLanguage = "IAS4";
  91. const char* const WavAudioFormat::riffInfoGenre = "GENR";
  92. const char* const WavAudioFormat::riffInfoKeywords = "IKEY";
  93. const char* const WavAudioFormat::riffInfoLanguage = "LANG";
  94. const char* const WavAudioFormat::riffInfoLength = "TLEN";
  95. const char* const WavAudioFormat::riffInfoLightness = "ILGT";
  96. const char* const WavAudioFormat::riffInfoLocation = "LOCA";
  97. const char* const WavAudioFormat::riffInfoLogoIconURL = "ILIU";
  98. const char* const WavAudioFormat::riffInfoLogoURL = "ILGU";
  99. const char* const WavAudioFormat::riffInfoMedium = "IMED";
  100. const char* const WavAudioFormat::riffInfoMoreInfoBannerImage = "IMBI";
  101. const char* const WavAudioFormat::riffInfoMoreInfoBannerURL = "IMBU";
  102. const char* const WavAudioFormat::riffInfoMoreInfoText = "IMIT";
  103. const char* const WavAudioFormat::riffInfoMoreInfoURL = "IMIU";
  104. const char* const WavAudioFormat::riffInfoMusicBy = "IMUS";
  105. const char* const WavAudioFormat::riffInfoNinthLanguage = "IAS9";
  106. const char* const WavAudioFormat::riffInfoNumberOfParts = "PRT2";
  107. const char* const WavAudioFormat::riffInfoOrganisation = "TORG";
  108. const char* const WavAudioFormat::riffInfoPart = "PRT1";
  109. const char* const WavAudioFormat::riffInfoProducedBy = "IPRO";
  110. const char* const WavAudioFormat::riffInfoProductName = "IPRD";
  111. const char* const WavAudioFormat::riffInfoProductionDesigner = "IPDS";
  112. const char* const WavAudioFormat::riffInfoProductionStudio = "ISDT";
  113. const char* const WavAudioFormat::riffInfoRate = "RATE";
  114. const char* const WavAudioFormat::riffInfoRated = "AGES";
  115. const char* const WavAudioFormat::riffInfoRating = "IRTD";
  116. const char* const WavAudioFormat::riffInfoRippedBy = "IRIP";
  117. const char* const WavAudioFormat::riffInfoSecondaryGenre = "ISGN";
  118. const char* const WavAudioFormat::riffInfoSecondLanguage = "IAS2";
  119. const char* const WavAudioFormat::riffInfoSeventhLanguage = "IAS7";
  120. const char* const WavAudioFormat::riffInfoSharpness = "ISHP";
  121. const char* const WavAudioFormat::riffInfoSixthLanguage = "IAS6";
  122. const char* const WavAudioFormat::riffInfoSoftware = "ISFT";
  123. const char* const WavAudioFormat::riffInfoSoundSchemeTitle = "DISP";
  124. const char* const WavAudioFormat::riffInfoSource = "ISRC";
  125. const char* const WavAudioFormat::riffInfoSourceFrom = "ISRF";
  126. const char* const WavAudioFormat::riffInfoStarring_ISTR = "ISTR";
  127. const char* const WavAudioFormat::riffInfoStarring_STAR = "STAR";
  128. const char* const WavAudioFormat::riffInfoStartTimecode = "TCOD";
  129. const char* const WavAudioFormat::riffInfoStatistics = "STAT";
  130. const char* const WavAudioFormat::riffInfoSubject = "ISBJ";
  131. const char* const WavAudioFormat::riffInfoTapeName = "TAPE";
  132. const char* const WavAudioFormat::riffInfoTechnician = "ITCH";
  133. const char* const WavAudioFormat::riffInfoThirdLanguage = "IAS3";
  134. const char* const WavAudioFormat::riffInfoTimeCode = "ISMP";
  135. const char* const WavAudioFormat::riffInfoTitle = "INAM";
  136. const char* const WavAudioFormat::riffInfoTrackNo = "IPRT";
  137. const char* const WavAudioFormat::riffInfoTrackNumber = "TRCK";
  138. const char* const WavAudioFormat::riffInfoURL = "TURL";
  139. const char* const WavAudioFormat::riffInfoVegasVersionMajor = "VMAJ";
  140. const char* const WavAudioFormat::riffInfoVegasVersionMinor = "VMIN";
  141. const char* const WavAudioFormat::riffInfoVersion = "TVER";
  142. const char* const WavAudioFormat::riffInfoWatermarkURL = "IWMU";
  143. const char* const WavAudioFormat::riffInfoWrittenBy = "IWRI";
  144. const char* const WavAudioFormat::riffInfoYear = "YEAR";
  145. const char* const WavAudioFormat::aswgContentType = "contentType";
  146. const char* const WavAudioFormat::aswgProject = "project";
  147. const char* const WavAudioFormat::aswgOriginator = "originator";
  148. const char* const WavAudioFormat::aswgOriginatorStudio = "originatorStudio";
  149. const char* const WavAudioFormat::aswgNotes = "notes";
  150. const char* const WavAudioFormat::aswgSession = "session";
  151. const char* const WavAudioFormat::aswgState = "state";
  152. const char* const WavAudioFormat::aswgEditor = "editor";
  153. const char* const WavAudioFormat::aswgMixer = "mixer";
  154. const char* const WavAudioFormat::aswgFxChainName = "fxChainName";
  155. const char* const WavAudioFormat::aswgChannelConfig = "channelConfig";
  156. const char* const WavAudioFormat::aswgAmbisonicFormat = "ambisonicFormat";
  157. const char* const WavAudioFormat::aswgAmbisonicChnOrder = "ambisonicChnOrder";
  158. const char* const WavAudioFormat::aswgAmbisonicNorm = "ambisonicNorm";
  159. const char* const WavAudioFormat::aswgMicType = "micType";
  160. const char* const WavAudioFormat::aswgMicConfig = "micConfig";
  161. const char* const WavAudioFormat::aswgMicDistance = "micDistance";
  162. const char* const WavAudioFormat::aswgRecordingLoc = "recordingLoc";
  163. const char* const WavAudioFormat::aswgIsDesigned = "isDesigned";
  164. const char* const WavAudioFormat::aswgRecEngineer = "recEngineer";
  165. const char* const WavAudioFormat::aswgRecStudio = "recStudio";
  166. const char* const WavAudioFormat::aswgImpulseLocation = "impulseLocation";
  167. const char* const WavAudioFormat::aswgCategory = "category";
  168. const char* const WavAudioFormat::aswgSubCategory = "subCategory";
  169. const char* const WavAudioFormat::aswgCatId = "catId";
  170. const char* const WavAudioFormat::aswgUserCategory = "userCategory";
  171. const char* const WavAudioFormat::aswgUserData = "userData";
  172. const char* const WavAudioFormat::aswgVendorCategory = "vendorCategory";
  173. const char* const WavAudioFormat::aswgFxName = "fxName";
  174. const char* const WavAudioFormat::aswgLibrary = "library";
  175. const char* const WavAudioFormat::aswgCreatorId = "creatorId";
  176. const char* const WavAudioFormat::aswgSourceId = "sourceId";
  177. const char* const WavAudioFormat::aswgRmsPower = "rmsPower";
  178. const char* const WavAudioFormat::aswgLoudness = "loudness";
  179. const char* const WavAudioFormat::aswgLoudnessRange = "loudnessRange";
  180. const char* const WavAudioFormat::aswgMaxPeak = "maxPeak";
  181. const char* const WavAudioFormat::aswgSpecDensity = "specDensity";
  182. const char* const WavAudioFormat::aswgZeroCrossRate = "zeroCrossRate";
  183. const char* const WavAudioFormat::aswgPapr = "papr";
  184. const char* const WavAudioFormat::aswgText = "text";
  185. const char* const WavAudioFormat::aswgEfforts = "efforts";
  186. const char* const WavAudioFormat::aswgEffortType = "effortType";
  187. const char* const WavAudioFormat::aswgProjection = "projection";
  188. const char* const WavAudioFormat::aswgLanguage = "language";
  189. const char* const WavAudioFormat::aswgTimingRestriction = "timingRestriction";
  190. const char* const WavAudioFormat::aswgCharacterName = "characterName";
  191. const char* const WavAudioFormat::aswgCharacterGender = "characterGender";
  192. const char* const WavAudioFormat::aswgCharacterAge = "characterAge";
  193. const char* const WavAudioFormat::aswgCharacterRole = "characterRole";
  194. const char* const WavAudioFormat::aswgActorName = "actorName";
  195. const char* const WavAudioFormat::aswgActorGender = "actorGender";
  196. const char* const WavAudioFormat::aswgDirector = "director";
  197. const char* const WavAudioFormat::aswgDirection = "direction";
  198. const char* const WavAudioFormat::aswgFxUsed = "fxUsed";
  199. const char* const WavAudioFormat::aswgUsageRights = "usageRights";
  200. const char* const WavAudioFormat::aswgIsUnion = "isUnion";
  201. const char* const WavAudioFormat::aswgAccent = "accent";
  202. const char* const WavAudioFormat::aswgEmotion = "emotion";
  203. const char* const WavAudioFormat::aswgComposor = "composor";
  204. const char* const WavAudioFormat::aswgArtist = "artist";
  205. const char* const WavAudioFormat::aswgSongTitle = "songTitle";
  206. const char* const WavAudioFormat::aswgGenre = "genre";
  207. const char* const WavAudioFormat::aswgSubGenre = "subGenre";
  208. const char* const WavAudioFormat::aswgProducer = "producer";
  209. const char* const WavAudioFormat::aswgMusicSup = "musicSup";
  210. const char* const WavAudioFormat::aswgInstrument = "instrument";
  211. const char* const WavAudioFormat::aswgMusicPublisher = "musicPublisher";
  212. const char* const WavAudioFormat::aswgRightsOwner = "rightsOwner";
  213. const char* const WavAudioFormat::aswgIsSource = "isSource";
  214. const char* const WavAudioFormat::aswgIsLoop = "isLoop";
  215. const char* const WavAudioFormat::aswgIntensity = "intensity";
  216. const char* const WavAudioFormat::aswgIsFinal = "isFinal";
  217. const char* const WavAudioFormat::aswgOrderRef = "orderRef";
  218. const char* const WavAudioFormat::aswgIsOst = "isOst";
  219. const char* const WavAudioFormat::aswgIsCinematic = "isCinematic";
  220. const char* const WavAudioFormat::aswgIsLicensed = "isLicensed";
  221. const char* const WavAudioFormat::aswgIsDiegetic = "isDiegetic";
  222. const char* const WavAudioFormat::aswgMusicVersion = "musicVersion";
  223. const char* const WavAudioFormat::aswgIsrcId = "isrcId";
  224. const char* const WavAudioFormat::aswgTempo = "tempo";
  225. const char* const WavAudioFormat::aswgTimeSig = "timeSig";
  226. const char* const WavAudioFormat::aswgInKey = "inKey";
  227. const char* const WavAudioFormat::aswgBillingCode = "billingCode";
  228. const char* const WavAudioFormat::aswgVersion = "IXML_VERSION";
  229. const char* const WavAudioFormat::ISRC = "ISRC";
  230. const char* const WavAudioFormat::internationalStandardRecordingCode = "international standard recording code";
  231. const char* const WavAudioFormat::tracktionLoopInfo = "tracktion loop info";
  232. //==============================================================================
  233. namespace WavFileHelpers
  234. {
  235. constexpr inline int chunkName (const char* name) noexcept { return (int) ByteOrder::littleEndianInt (name); }
  236. constexpr inline size_t roundUpSize (size_t sz) noexcept { return (sz + 3) & ~3u; }
  237. #if JUCE_MSVC
  238. #pragma pack (push, 1)
  239. #endif
  240. struct BWAVChunk
  241. {
  242. char description[256];
  243. char originator[32];
  244. char originatorRef[32];
  245. char originationDate[10];
  246. char originationTime[8];
  247. uint32 timeRefLow;
  248. uint32 timeRefHigh;
  249. uint16 version;
  250. uint8 umid[64];
  251. uint8 reserved[190];
  252. char codingHistory[1];
  253. void copyTo (StringMap& values, const int totalSize) const
  254. {
  255. values[WavAudioFormat::bwavDescription] = String::fromUTF8 (description, sizeof (description));
  256. values[WavAudioFormat::bwavOriginator] = String::fromUTF8 (originator, sizeof (originator));
  257. values[WavAudioFormat::bwavOriginatorRef] = String::fromUTF8 (originatorRef, sizeof (originatorRef));
  258. values[WavAudioFormat::bwavOriginationDate] = String::fromUTF8 (originationDate, sizeof (originationDate));
  259. values[WavAudioFormat::bwavOriginationTime] = String::fromUTF8 (originationTime, sizeof (originationTime));
  260. auto timeLow = ByteOrder::swapIfBigEndian (timeRefLow);
  261. auto timeHigh = ByteOrder::swapIfBigEndian (timeRefHigh);
  262. auto time = (((int64) timeHigh) << 32) + timeLow;
  263. values[WavAudioFormat::bwavTimeReference] = String (time);
  264. values[WavAudioFormat::bwavCodingHistory] = String::fromUTF8 (codingHistory, totalSize - (int) offsetof (BWAVChunk, codingHistory));
  265. }
  266. static MemoryBlock createFrom (const StringMap& values)
  267. {
  268. MemoryBlock data (roundUpSize (sizeof (BWAVChunk) + getValueWithDefault (values, WavAudioFormat::bwavCodingHistory).getNumBytesAsUTF8()));
  269. data.fillWith (0);
  270. auto* b = (BWAVChunk*) data.getData();
  271. // Allow these calls to overwrite an extra byte at the end, which is fine as long
  272. // as they get called in the right order.
  273. getValueWithDefault (values, WavAudioFormat::bwavDescription) .copyToUTF8 (b->description, 257);
  274. getValueWithDefault (values, WavAudioFormat::bwavOriginator) .copyToUTF8 (b->originator, 33);
  275. getValueWithDefault (values, WavAudioFormat::bwavOriginatorRef) .copyToUTF8 (b->originatorRef, 33);
  276. getValueWithDefault (values, WavAudioFormat::bwavOriginationDate).copyToUTF8 (b->originationDate, 11);
  277. getValueWithDefault (values, WavAudioFormat::bwavOriginationTime).copyToUTF8 (b->originationTime, 9);
  278. auto time = getValueWithDefault (values, WavAudioFormat::bwavTimeReference).getLargeIntValue();
  279. b->timeRefLow = ByteOrder::swapIfBigEndian ((uint32) (time & 0xffffffff));
  280. b->timeRefHigh = ByteOrder::swapIfBigEndian ((uint32) (time >> 32));
  281. getValueWithDefault (values, WavAudioFormat::bwavCodingHistory).copyToUTF8 (b->codingHistory, 0x7fffffff);
  282. if (b->description[0] != 0
  283. || b->originator[0] != 0
  284. || b->originationDate[0] != 0
  285. || b->originationTime[0] != 0
  286. || b->codingHistory[0] != 0
  287. || time != 0)
  288. {
  289. return data;
  290. }
  291. return {};
  292. }
  293. } JUCE_PACKED;
  294. //==============================================================================
  295. inline AudioChannelSet canonicalWavChannelSet (int numChannels)
  296. {
  297. if (numChannels == 1) return AudioChannelSet::mono();
  298. if (numChannels == 2) return AudioChannelSet::stereo();
  299. if (numChannels == 3) return AudioChannelSet::createLCR();
  300. if (numChannels == 4) return AudioChannelSet::quadraphonic();
  301. if (numChannels == 5) return AudioChannelSet::create5point0();
  302. if (numChannels == 6) return AudioChannelSet::create5point1();
  303. if (numChannels == 7) return AudioChannelSet::create7point0SDDS();
  304. if (numChannels == 8) return AudioChannelSet::create7point1SDDS();
  305. return AudioChannelSet::discreteChannels (numChannels);
  306. }
  307. //==============================================================================
  308. struct SMPLChunk
  309. {
  310. struct SampleLoop
  311. {
  312. uint32 identifier;
  313. uint32 type; // these are different in AIFF and WAV
  314. uint32 start;
  315. uint32 end;
  316. uint32 fraction;
  317. uint32 playCount;
  318. } JUCE_PACKED;
  319. uint32 manufacturer;
  320. uint32 product;
  321. uint32 samplePeriod;
  322. uint32 midiUnityNote;
  323. uint32 midiPitchFraction;
  324. uint32 smpteFormat;
  325. uint32 smpteOffset;
  326. uint32 numSampleLoops;
  327. uint32 samplerData;
  328. SampleLoop loops[1];
  329. template <typename NameType>
  330. static void setValue (StringMap& values, NameType name, uint32 val)
  331. {
  332. values[name] = String (ByteOrder::swapIfBigEndian (val));
  333. }
  334. static void setValue (StringMap& values, int prefix, const char* name, uint32 val)
  335. {
  336. setValue (values, "Loop" + String (prefix) + name, val);
  337. }
  338. void copyTo (StringMap& values, const int totalSize) const
  339. {
  340. setValue (values, "Manufacturer", manufacturer);
  341. setValue (values, "Product", product);
  342. setValue (values, "SamplePeriod", samplePeriod);
  343. setValue (values, "MidiUnityNote", midiUnityNote);
  344. setValue (values, "MidiPitchFraction", midiPitchFraction);
  345. setValue (values, "SmpteFormat", smpteFormat);
  346. setValue (values, "SmpteOffset", smpteOffset);
  347. setValue (values, "NumSampleLoops", numSampleLoops);
  348. setValue (values, "SamplerData", samplerData);
  349. for (int i = 0; i < (int) numSampleLoops; ++i)
  350. {
  351. if ((uint8*) (loops + (i + 1)) > ((uint8*) this) + totalSize)
  352. break;
  353. setValue (values, i, "Identifier", loops[i].identifier);
  354. setValue (values, i, "Type", loops[i].type);
  355. setValue (values, i, "Start", loops[i].start);
  356. setValue (values, i, "End", loops[i].end);
  357. setValue (values, i, "Fraction", loops[i].fraction);
  358. setValue (values, i, "PlayCount", loops[i].playCount);
  359. }
  360. }
  361. template <typename NameType>
  362. static uint32 getValue (const StringMap& values, NameType name, const char* def)
  363. {
  364. return ByteOrder::swapIfBigEndian ((uint32) getValueWithDefault (values, name, def).getIntValue());
  365. }
  366. static uint32 getValue (const StringMap& values, int prefix, const char* name, const char* def)
  367. {
  368. return getValue (values, "Loop" + String (prefix) + name, def);
  369. }
  370. static MemoryBlock createFrom (const StringMap& values)
  371. {
  372. MemoryBlock data;
  373. auto numLoops = jmin (64, getValueWithDefault (values, "NumSampleLoops", "0").getIntValue());
  374. data.setSize (roundUpSize (sizeof (SMPLChunk) + (size_t) (jmax (0, numLoops - 1)) * sizeof (SampleLoop)), true);
  375. auto s = static_cast<SMPLChunk*> (data.getData());
  376. s->manufacturer = getValue (values, "Manufacturer", "0");
  377. s->product = getValue (values, "Product", "0");
  378. s->samplePeriod = getValue (values, "SamplePeriod", "0");
  379. s->midiUnityNote = getValue (values, "MidiUnityNote", "60");
  380. s->midiPitchFraction = getValue (values, "MidiPitchFraction", "0");
  381. s->smpteFormat = getValue (values, "SmpteFormat", "0");
  382. s->smpteOffset = getValue (values, "SmpteOffset", "0");
  383. s->numSampleLoops = ByteOrder::swapIfBigEndian ((uint32) numLoops);
  384. s->samplerData = getValue (values, "SamplerData", "0");
  385. for (int i = 0; i < numLoops; ++i)
  386. {
  387. auto& loop = s->loops[i];
  388. loop.identifier = getValue (values, i, "Identifier", "0");
  389. loop.type = getValue (values, i, "Type", "0");
  390. loop.start = getValue (values, i, "Start", "0");
  391. loop.end = getValue (values, i, "End", "0");
  392. loop.fraction = getValue (values, i, "Fraction", "0");
  393. loop.playCount = getValue (values, i, "PlayCount", "0");
  394. }
  395. return data;
  396. }
  397. } JUCE_PACKED;
  398. //==============================================================================
  399. struct InstChunk
  400. {
  401. int8 baseNote;
  402. int8 detune;
  403. int8 gain;
  404. int8 lowNote;
  405. int8 highNote;
  406. int8 lowVelocity;
  407. int8 highVelocity;
  408. static void setValue (StringMap& values, const char* name, int val)
  409. {
  410. values[name] = String (val);
  411. }
  412. void copyTo (StringMap& values) const
  413. {
  414. setValue (values, "MidiUnityNote", baseNote);
  415. setValue (values, "Detune", detune);
  416. setValue (values, "Gain", gain);
  417. setValue (values, "LowNote", lowNote);
  418. setValue (values, "HighNote", highNote);
  419. setValue (values, "LowVelocity", lowVelocity);
  420. setValue (values, "HighVelocity", highVelocity);
  421. }
  422. static int8 getValue (const StringMap& values, const char* name, const char* def)
  423. {
  424. return (int8) getValueWithDefault (values, name, def).getIntValue();
  425. }
  426. static MemoryBlock createFrom (const StringMap& values)
  427. {
  428. MemoryBlock data;
  429. if ( values.find ("LowNote") != values.cend()
  430. && values.find ("HighNote") != values.cend())
  431. {
  432. data.setSize (8, true);
  433. auto* inst = static_cast<InstChunk*> (data.getData());
  434. inst->baseNote = getValue (values, "MidiUnityNote", "60");
  435. inst->detune = getValue (values, "Detune", "0");
  436. inst->gain = getValue (values, "Gain", "0");
  437. inst->lowNote = getValue (values, "LowNote", "0");
  438. inst->highNote = getValue (values, "HighNote", "127");
  439. inst->lowVelocity = getValue (values, "LowVelocity", "1");
  440. inst->highVelocity = getValue (values, "HighVelocity", "127");
  441. }
  442. return data;
  443. }
  444. } JUCE_PACKED;
  445. //==============================================================================
  446. struct CueChunk
  447. {
  448. struct Cue
  449. {
  450. uint32 identifier;
  451. uint32 order;
  452. uint32 chunkID;
  453. uint32 chunkStart;
  454. uint32 blockStart;
  455. uint32 offset;
  456. } JUCE_PACKED;
  457. uint32 numCues;
  458. Cue cues[1];
  459. static void setValue (StringMap& values, int prefix, const char* name, uint32 val)
  460. {
  461. values["Cue" + String (prefix) + name] = String (ByteOrder::swapIfBigEndian (val));
  462. }
  463. void copyTo (StringMap& values, const int totalSize) const
  464. {
  465. values["NumCuePoints"] = String (ByteOrder::swapIfBigEndian (numCues));
  466. for (int i = 0; i < (int) numCues; ++i)
  467. {
  468. if ((uint8*) (cues + (i + 1)) > ((uint8*) this) + totalSize)
  469. break;
  470. setValue (values, i, "Identifier", cues[i].identifier);
  471. setValue (values, i, "Order", cues[i].order);
  472. setValue (values, i, "ChunkID", cues[i].chunkID);
  473. setValue (values, i, "ChunkStart", cues[i].chunkStart);
  474. setValue (values, i, "BlockStart", cues[i].blockStart);
  475. setValue (values, i, "Offset", cues[i].offset);
  476. }
  477. }
  478. static MemoryBlock createFrom (const StringMap& values)
  479. {
  480. MemoryBlock data;
  481. const int numCues = getValueWithDefault (values, "NumCuePoints", "0").getIntValue();
  482. if (numCues > 0)
  483. {
  484. data.setSize (roundUpSize (sizeof (CueChunk) + (size_t) (numCues - 1) * sizeof (Cue)), true);
  485. auto c = static_cast<CueChunk*> (data.getData());
  486. c->numCues = ByteOrder::swapIfBigEndian ((uint32) numCues);
  487. const String dataChunkID (chunkName ("data"));
  488. int nextOrder = 0;
  489. #if JUCE_DEBUG
  490. Array<uint32> identifiers;
  491. #endif
  492. for (int i = 0; i < numCues; ++i)
  493. {
  494. auto prefix = "Cue" + String (i);
  495. auto identifier = (uint32) getValueWithDefault (values, prefix + "Identifier", "0").getIntValue();
  496. #if JUCE_DEBUG
  497. jassert (! identifiers.contains (identifier));
  498. identifiers.add (identifier);
  499. #endif
  500. auto order = getValueWithDefault (values, prefix + "Order", String (nextOrder)).getIntValue();
  501. nextOrder = jmax (nextOrder, order) + 1;
  502. auto& cue = c->cues[i];
  503. cue.identifier = ByteOrder::swapIfBigEndian ((uint32) identifier);
  504. cue.order = ByteOrder::swapIfBigEndian ((uint32) order);
  505. cue.chunkID = ByteOrder::swapIfBigEndian ((uint32) getValueWithDefault (values, prefix + "ChunkID", dataChunkID).getIntValue());
  506. cue.chunkStart = ByteOrder::swapIfBigEndian ((uint32) getValueWithDefault (values, prefix + "ChunkStart", "0").getIntValue());
  507. cue.blockStart = ByteOrder::swapIfBigEndian ((uint32) getValueWithDefault (values, prefix + "BlockStart", "0").getIntValue());
  508. cue.offset = ByteOrder::swapIfBigEndian ((uint32) getValueWithDefault (values, prefix + "Offset", "0").getIntValue());
  509. }
  510. }
  511. return data;
  512. }
  513. } JUCE_PACKED;
  514. //==============================================================================
  515. namespace ListChunk
  516. {
  517. static int getValue (const StringMap& values, const String& name)
  518. {
  519. return getValueWithDefault (values, name, "0").getIntValue();
  520. }
  521. static int getValue (const StringMap& values, const String& prefix, const char* name)
  522. {
  523. return getValue (values, prefix + name);
  524. }
  525. static void appendLabelOrNoteChunk (const StringMap& values, const String& prefix,
  526. const int chunkType, MemoryOutputStream& out)
  527. {
  528. auto label = getValueWithDefault (values, prefix + "Text", prefix);
  529. auto labelLength = (int) label.getNumBytesAsUTF8() + 1;
  530. auto chunkLength = 4 + labelLength + (labelLength & 1);
  531. out.writeInt (chunkType);
  532. out.writeInt (chunkLength);
  533. out.writeInt (getValue (values, prefix, "Identifier"));
  534. out.write (label.toUTF8(), (size_t) labelLength);
  535. if ((out.getDataSize() & 1) != 0)
  536. out.writeByte (0);
  537. }
  538. static void appendExtraChunk (const StringMap& values, const String& prefix, MemoryOutputStream& out)
  539. {
  540. auto text = getValueWithDefault (values, prefix + "Text", prefix);
  541. auto textLength = (int) text.getNumBytesAsUTF8() + 1; // include null terminator
  542. auto chunkLength = textLength + 20 + (textLength & 1);
  543. out.writeInt (chunkName ("ltxt"));
  544. out.writeInt (chunkLength);
  545. out.writeInt (getValue (values, prefix, "Identifier"));
  546. out.writeInt (getValue (values, prefix, "SampleLength"));
  547. out.writeInt (getValue (values, prefix, "Purpose"));
  548. out.writeShort ((short) getValue (values, prefix, "Country"));
  549. out.writeShort ((short) getValue (values, prefix, "Language"));
  550. out.writeShort ((short) getValue (values, prefix, "Dialect"));
  551. out.writeShort ((short) getValue (values, prefix, "CodePage"));
  552. out.write (text.toUTF8(), (size_t) textLength);
  553. if ((out.getDataSize() & 1) != 0)
  554. out.writeByte (0);
  555. }
  556. static MemoryBlock createFrom (const StringMap& values)
  557. {
  558. auto numCueLabels = getValue (values, "NumCueLabels");
  559. auto numCueNotes = getValue (values, "NumCueNotes");
  560. auto numCueRegions = getValue (values, "NumCueRegions");
  561. MemoryOutputStream out;
  562. if (numCueLabels + numCueNotes + numCueRegions > 0)
  563. {
  564. out.writeInt (chunkName ("adtl"));
  565. for (int i = 0; i < numCueLabels; ++i)
  566. appendLabelOrNoteChunk (values, "CueLabel" + String (i), chunkName ("labl"), out);
  567. for (int i = 0; i < numCueNotes; ++i)
  568. appendLabelOrNoteChunk (values, "CueNote" + String (i), chunkName ("note"), out);
  569. for (int i = 0; i < numCueRegions; ++i)
  570. appendExtraChunk (values, "CueRegion" + String (i), out);
  571. }
  572. return out.getMemoryBlock();
  573. }
  574. }
  575. //==============================================================================
  576. /** Reads a RIFF List Info chunk from a stream positioned just after the size byte. */
  577. namespace ListInfoChunk
  578. {
  579. static const char* const types[] =
  580. {
  581. WavAudioFormat::riffInfoArchivalLocation,
  582. WavAudioFormat::riffInfoArtist,
  583. WavAudioFormat::riffInfoBaseURL,
  584. WavAudioFormat::riffInfoCinematographer,
  585. WavAudioFormat::riffInfoComment,
  586. WavAudioFormat::riffInfoComments,
  587. WavAudioFormat::riffInfoComment2,
  588. WavAudioFormat::riffInfoCommissioned,
  589. WavAudioFormat::riffInfoCopyright,
  590. WavAudioFormat::riffInfoCostumeDesigner,
  591. WavAudioFormat::riffInfoCountry,
  592. WavAudioFormat::riffInfoCropped,
  593. WavAudioFormat::riffInfoDateCreated,
  594. WavAudioFormat::riffInfoDateTimeOriginal,
  595. WavAudioFormat::riffInfoDefaultAudioStream,
  596. WavAudioFormat::riffInfoDimension,
  597. WavAudioFormat::riffInfoDirectory,
  598. WavAudioFormat::riffInfoDistributedBy,
  599. WavAudioFormat::riffInfoDotsPerInch,
  600. WavAudioFormat::riffInfoEditedBy,
  601. WavAudioFormat::riffInfoEighthLanguage,
  602. WavAudioFormat::riffInfoEncodedBy,
  603. WavAudioFormat::riffInfoEndTimecode,
  604. WavAudioFormat::riffInfoEngineer,
  605. WavAudioFormat::riffInfoFifthLanguage,
  606. WavAudioFormat::riffInfoFirstLanguage,
  607. WavAudioFormat::riffInfoFourthLanguage,
  608. WavAudioFormat::riffInfoGenre,
  609. WavAudioFormat::riffInfoKeywords,
  610. WavAudioFormat::riffInfoLanguage,
  611. WavAudioFormat::riffInfoLength,
  612. WavAudioFormat::riffInfoLightness,
  613. WavAudioFormat::riffInfoLocation,
  614. WavAudioFormat::riffInfoLogoIconURL,
  615. WavAudioFormat::riffInfoLogoURL,
  616. WavAudioFormat::riffInfoMedium,
  617. WavAudioFormat::riffInfoMoreInfoBannerImage,
  618. WavAudioFormat::riffInfoMoreInfoBannerURL,
  619. WavAudioFormat::riffInfoMoreInfoText,
  620. WavAudioFormat::riffInfoMoreInfoURL,
  621. WavAudioFormat::riffInfoMusicBy,
  622. WavAudioFormat::riffInfoNinthLanguage,
  623. WavAudioFormat::riffInfoNumberOfParts,
  624. WavAudioFormat::riffInfoOrganisation,
  625. WavAudioFormat::riffInfoPart,
  626. WavAudioFormat::riffInfoProducedBy,
  627. WavAudioFormat::riffInfoProductName,
  628. WavAudioFormat::riffInfoProductionDesigner,
  629. WavAudioFormat::riffInfoProductionStudio,
  630. WavAudioFormat::riffInfoRate,
  631. WavAudioFormat::riffInfoRated,
  632. WavAudioFormat::riffInfoRating,
  633. WavAudioFormat::riffInfoRippedBy,
  634. WavAudioFormat::riffInfoSecondaryGenre,
  635. WavAudioFormat::riffInfoSecondLanguage,
  636. WavAudioFormat::riffInfoSeventhLanguage,
  637. WavAudioFormat::riffInfoSharpness,
  638. WavAudioFormat::riffInfoSixthLanguage,
  639. WavAudioFormat::riffInfoSoftware,
  640. WavAudioFormat::riffInfoSoundSchemeTitle,
  641. WavAudioFormat::riffInfoSource,
  642. WavAudioFormat::riffInfoSourceFrom,
  643. WavAudioFormat::riffInfoStarring_ISTR,
  644. WavAudioFormat::riffInfoStarring_STAR,
  645. WavAudioFormat::riffInfoStartTimecode,
  646. WavAudioFormat::riffInfoStatistics,
  647. WavAudioFormat::riffInfoSubject,
  648. WavAudioFormat::riffInfoTapeName,
  649. WavAudioFormat::riffInfoTechnician,
  650. WavAudioFormat::riffInfoThirdLanguage,
  651. WavAudioFormat::riffInfoTimeCode,
  652. WavAudioFormat::riffInfoTitle,
  653. WavAudioFormat::riffInfoTrackNo,
  654. WavAudioFormat::riffInfoTrackNumber,
  655. WavAudioFormat::riffInfoURL,
  656. WavAudioFormat::riffInfoVegasVersionMajor,
  657. WavAudioFormat::riffInfoVegasVersionMinor,
  658. WavAudioFormat::riffInfoVersion,
  659. WavAudioFormat::riffInfoWatermarkURL,
  660. WavAudioFormat::riffInfoWrittenBy,
  661. WavAudioFormat::riffInfoYear
  662. };
  663. static bool isMatchingTypeIgnoringCase (const int value, const char* const name) noexcept
  664. {
  665. for (int i = 0; i < 4; ++i)
  666. if ((juce_wchar) name[i] != CharacterFunctions::toUpperCase ((juce_wchar) ((value >> (i * 8)) & 0xff)))
  667. return false;
  668. return true;
  669. }
  670. static void addToMetadata (StringMap& values, InputStream& input, int64 chunkEnd)
  671. {
  672. while (input.getPosition() < chunkEnd)
  673. {
  674. auto infoType = input.readInt();
  675. auto infoLength = chunkEnd - input.getPosition();
  676. if (infoLength > 0)
  677. {
  678. infoLength = jmin (infoLength, (int64) input.readInt());
  679. if (infoLength <= 0)
  680. return;
  681. for (auto& type : types)
  682. {
  683. if (isMatchingTypeIgnoringCase (infoType, type))
  684. {
  685. MemoryBlock mb;
  686. input.readIntoMemoryBlock (mb, (ssize_t) infoLength);
  687. values[type] = String::createStringFromData ((const char*) mb.getData(),
  688. (int) mb.getSize());
  689. break;
  690. }
  691. }
  692. }
  693. }
  694. }
  695. static bool writeValue (const StringMap& values, MemoryOutputStream& out, const char* paramName)
  696. {
  697. auto value = getValueWithDefault (values, paramName, {});
  698. if (value.isEmpty())
  699. return false;
  700. auto valueLength = (int) value.getNumBytesAsUTF8() + 1;
  701. auto chunkLength = valueLength + (valueLength & 1);
  702. out.writeInt (chunkName (paramName));
  703. out.writeInt (chunkLength);
  704. out.write (value.toUTF8(), (size_t) valueLength);
  705. if ((out.getDataSize() & 1) != 0)
  706. out.writeByte (0);
  707. return true;
  708. }
  709. static MemoryBlock createFrom (const StringMap& values)
  710. {
  711. MemoryOutputStream out;
  712. out.writeInt (chunkName ("INFO"));
  713. bool anyParamsDefined = false;
  714. for (auto& type : types)
  715. if (writeValue (values, out, type))
  716. anyParamsDefined = true;
  717. return anyParamsDefined ? out.getMemoryBlock() : MemoryBlock();
  718. }
  719. }
  720. //==============================================================================
  721. struct AcidChunk
  722. {
  723. /** Reads an acid RIFF chunk from a stream positioned just after the size byte. */
  724. AcidChunk (InputStream& input, size_t length)
  725. {
  726. zerostruct (*this);
  727. input.read (this, (int) jmin (sizeof (*this), length));
  728. }
  729. AcidChunk (const StringMap& values)
  730. {
  731. zerostruct (*this);
  732. flags = getFlagIfPresent (values, WavAudioFormat::acidOneShot, 0x01)
  733. | getFlagIfPresent (values, WavAudioFormat::acidRootSet, 0x02)
  734. | getFlagIfPresent (values, WavAudioFormat::acidStretch, 0x04)
  735. | getFlagIfPresent (values, WavAudioFormat::acidDiskBased, 0x08)
  736. | getFlagIfPresent (values, WavAudioFormat::acidizerFlag, 0x10);
  737. if (getValueWithDefault (values, WavAudioFormat::acidRootSet).getIntValue() != 0)
  738. rootNote = ByteOrder::swapIfBigEndian ((uint16) getValueWithDefault (values, WavAudioFormat::acidRootNote).getIntValue());
  739. numBeats = ByteOrder::swapIfBigEndian ((uint32) getValueWithDefault (values, WavAudioFormat::acidBeats).getIntValue());
  740. meterDenominator = ByteOrder::swapIfBigEndian ((uint16) getValueWithDefault (values, WavAudioFormat::acidDenominator).getIntValue());
  741. meterNumerator = ByteOrder::swapIfBigEndian ((uint16) getValueWithDefault (values, WavAudioFormat::acidNumerator).getIntValue());
  742. const auto iter = values.find (WavAudioFormat::acidTempo);
  743. if (iter != values.cend())
  744. tempo = swapFloatByteOrder (iter->second.getFloatValue());
  745. }
  746. static MemoryBlock createFrom (const StringMap& values)
  747. {
  748. return AcidChunk (values).toMemoryBlock();
  749. }
  750. MemoryBlock toMemoryBlock() const
  751. {
  752. return (flags != 0 || rootNote != 0 || numBeats != 0 || meterDenominator != 0 || meterNumerator != 0)
  753. ? MemoryBlock (this, sizeof (*this)) : MemoryBlock();
  754. }
  755. void addToMetadata (StringMap& values) const
  756. {
  757. setBoolFlag (values, WavAudioFormat::acidOneShot, 0x01);
  758. setBoolFlag (values, WavAudioFormat::acidRootSet, 0x02);
  759. setBoolFlag (values, WavAudioFormat::acidStretch, 0x04);
  760. setBoolFlag (values, WavAudioFormat::acidDiskBased, 0x08);
  761. setBoolFlag (values, WavAudioFormat::acidizerFlag, 0x10);
  762. if (flags & 0x02) // root note set
  763. values[WavAudioFormat::acidRootNote] = String (ByteOrder::swapIfBigEndian (rootNote));
  764. values[WavAudioFormat::acidBeats] = String (ByteOrder::swapIfBigEndian (numBeats));
  765. values[WavAudioFormat::acidDenominator] = String (ByteOrder::swapIfBigEndian (meterDenominator));
  766. values[WavAudioFormat::acidNumerator] = String (ByteOrder::swapIfBigEndian (meterNumerator));
  767. values[WavAudioFormat::acidTempo] = String (swapFloatByteOrder (tempo));
  768. }
  769. void setBoolFlag (StringMap& values, const char* name, uint32 mask) const
  770. {
  771. values[name] = (flags & ByteOrder::swapIfBigEndian (mask)) ? "1" : "0";
  772. }
  773. static uint32 getFlagIfPresent (const StringMap& values, const char* name, uint32 flag)
  774. {
  775. return getValueWithDefault (values, name).getIntValue() != 0 ? ByteOrder::swapIfBigEndian (flag) : 0;
  776. }
  777. static float swapFloatByteOrder (const float x) noexcept
  778. {
  779. #ifdef JUCE_BIG_ENDIAN
  780. union { uint32 asInt; float asFloat; } n;
  781. n.asFloat = x;
  782. n.asInt = ByteOrder::swap (n.asInt);
  783. return n.asFloat;
  784. #else
  785. return x;
  786. #endif
  787. }
  788. uint32 flags;
  789. uint16 rootNote;
  790. uint16 reserved1;
  791. float reserved2;
  792. uint32 numBeats;
  793. uint16 meterDenominator;
  794. uint16 meterNumerator;
  795. float tempo;
  796. } JUCE_PACKED;
  797. //==============================================================================
  798. struct TracktionChunk
  799. {
  800. static MemoryBlock createFrom (const StringMap& values)
  801. {
  802. MemoryOutputStream out;
  803. auto s = getValueWithDefault (values, WavAudioFormat::tracktionLoopInfo);
  804. if (s.isNotEmpty())
  805. {
  806. out.writeString (s);
  807. if ((out.getDataSize() & 1) != 0)
  808. out.writeByte (0);
  809. }
  810. return out.getMemoryBlock();
  811. }
  812. };
  813. //=============================================================================
  814. namespace IXMLChunk
  815. {
  816. static const std::unordered_set<String> aswgMetadataKeys
  817. {
  818. WavAudioFormat::aswgContentType,
  819. WavAudioFormat::aswgProject,
  820. WavAudioFormat::aswgOriginator,
  821. WavAudioFormat::aswgOriginatorStudio,
  822. WavAudioFormat::aswgNotes,
  823. WavAudioFormat::aswgSession,
  824. WavAudioFormat::aswgState,
  825. WavAudioFormat::aswgEditor,
  826. WavAudioFormat::aswgMixer,
  827. WavAudioFormat::aswgFxChainName,
  828. WavAudioFormat::aswgChannelConfig,
  829. WavAudioFormat::aswgAmbisonicFormat,
  830. WavAudioFormat::aswgAmbisonicChnOrder,
  831. WavAudioFormat::aswgAmbisonicNorm,
  832. WavAudioFormat::aswgMicType,
  833. WavAudioFormat::aswgMicConfig,
  834. WavAudioFormat::aswgMicDistance,
  835. WavAudioFormat::aswgRecordingLoc,
  836. WavAudioFormat::aswgIsDesigned,
  837. WavAudioFormat::aswgRecEngineer,
  838. WavAudioFormat::aswgRecStudio,
  839. WavAudioFormat::aswgImpulseLocation,
  840. WavAudioFormat::aswgCategory,
  841. WavAudioFormat::aswgSubCategory,
  842. WavAudioFormat::aswgCatId,
  843. WavAudioFormat::aswgUserCategory,
  844. WavAudioFormat::aswgUserData,
  845. WavAudioFormat::aswgVendorCategory,
  846. WavAudioFormat::aswgFxName,
  847. WavAudioFormat::aswgLibrary,
  848. WavAudioFormat::aswgCreatorId,
  849. WavAudioFormat::aswgSourceId,
  850. WavAudioFormat::aswgRmsPower,
  851. WavAudioFormat::aswgLoudness,
  852. WavAudioFormat::aswgLoudnessRange,
  853. WavAudioFormat::aswgMaxPeak,
  854. WavAudioFormat::aswgSpecDensity,
  855. WavAudioFormat::aswgZeroCrossRate,
  856. WavAudioFormat::aswgPapr,
  857. WavAudioFormat::aswgText,
  858. WavAudioFormat::aswgEfforts,
  859. WavAudioFormat::aswgEffortType,
  860. WavAudioFormat::aswgProjection,
  861. WavAudioFormat::aswgLanguage,
  862. WavAudioFormat::aswgTimingRestriction,
  863. WavAudioFormat::aswgCharacterName,
  864. WavAudioFormat::aswgCharacterGender,
  865. WavAudioFormat::aswgCharacterAge,
  866. WavAudioFormat::aswgCharacterRole,
  867. WavAudioFormat::aswgActorName,
  868. WavAudioFormat::aswgActorGender,
  869. WavAudioFormat::aswgDirector,
  870. WavAudioFormat::aswgDirection,
  871. WavAudioFormat::aswgFxUsed,
  872. WavAudioFormat::aswgUsageRights,
  873. WavAudioFormat::aswgIsUnion,
  874. WavAudioFormat::aswgAccent,
  875. WavAudioFormat::aswgEmotion,
  876. WavAudioFormat::aswgComposor,
  877. WavAudioFormat::aswgArtist,
  878. WavAudioFormat::aswgSongTitle,
  879. WavAudioFormat::aswgGenre,
  880. WavAudioFormat::aswgSubGenre,
  881. WavAudioFormat::aswgProducer,
  882. WavAudioFormat::aswgMusicSup,
  883. WavAudioFormat::aswgInstrument,
  884. WavAudioFormat::aswgMusicPublisher,
  885. WavAudioFormat::aswgRightsOwner,
  886. WavAudioFormat::aswgIsSource,
  887. WavAudioFormat::aswgIsLoop,
  888. WavAudioFormat::aswgIntensity,
  889. WavAudioFormat::aswgIsFinal,
  890. WavAudioFormat::aswgOrderRef,
  891. WavAudioFormat::aswgIsOst,
  892. WavAudioFormat::aswgIsCinematic,
  893. WavAudioFormat::aswgIsLicensed,
  894. WavAudioFormat::aswgIsDiegetic,
  895. WavAudioFormat::aswgMusicVersion,
  896. WavAudioFormat::aswgIsrcId,
  897. WavAudioFormat::aswgTempo,
  898. WavAudioFormat::aswgTimeSig,
  899. WavAudioFormat::aswgInKey,
  900. WavAudioFormat::aswgBillingCode
  901. };
  902. static void addToMetadata (StringMap& destValues, const String& source)
  903. {
  904. if (auto xml = parseXML (source))
  905. {
  906. if (xml->hasTagName ("BWFXML"))
  907. {
  908. if (const auto* entry = xml->getChildByName (WavAudioFormat::aswgVersion))
  909. destValues[WavAudioFormat::aswgVersion] = entry->getAllSubText();
  910. if (const auto* aswgElement = xml->getChildByName ("ASWG"))
  911. {
  912. for (const auto* entry : aswgElement->getChildIterator())
  913. {
  914. const auto& tag = entry->getTagName();
  915. if (aswgMetadataKeys.find (tag) != aswgMetadataKeys.end())
  916. destValues[tag] = entry->getAllSubText();
  917. }
  918. }
  919. }
  920. }
  921. }
  922. static MemoryBlock createFrom (const StringMap& values)
  923. {
  924. auto createTextElement = [] (const StringRef& key, const StringRef& value)
  925. {
  926. auto* elem = new XmlElement (key);
  927. elem->addTextElement (value);
  928. return elem;
  929. };
  930. std::unique_ptr<XmlElement> aswgElement;
  931. for (const auto& pair : values)
  932. {
  933. if (aswgMetadataKeys.find (pair.first) != aswgMetadataKeys.end())
  934. {
  935. if (aswgElement == nullptr)
  936. aswgElement = std::make_unique<XmlElement> ("ASWG");
  937. aswgElement->addChildElement (createTextElement (pair.first, pair.second));
  938. }
  939. }
  940. MemoryOutputStream outputStream;
  941. if (aswgElement != nullptr)
  942. {
  943. XmlElement xml ("BWFXML");
  944. auto aswgVersion = getValueWithDefault (values, WavAudioFormat::aswgVersion, "3.01");
  945. xml.addChildElement (createTextElement (WavAudioFormat::aswgVersion, aswgVersion));
  946. xml.addChildElement (aswgElement.release());
  947. xml.writeTo (outputStream);
  948. outputStream.writeRepeatedByte (0, outputStream.getDataSize());
  949. }
  950. return outputStream.getMemoryBlock();
  951. }
  952. }
  953. //==============================================================================
  954. namespace AXMLChunk
  955. {
  956. static void addToMetadata (StringMap& destValues, const String& source)
  957. {
  958. if (auto xml = parseXML (source))
  959. {
  960. if (xml->hasTagName ("ebucore:ebuCoreMain"))
  961. {
  962. if (auto xml2 = xml->getChildByName ("ebucore:coreMetadata"))
  963. {
  964. if (auto xml3 = xml2->getChildByName ("ebucore:identifier"))
  965. {
  966. if (auto xml4 = xml3->getChildByName ("dc:identifier"))
  967. {
  968. auto ISRCCode = xml4->getAllSubText().fromFirstOccurrenceOf ("ISRC:", false, true);
  969. if (ISRCCode.isNotEmpty())
  970. {
  971. // We set ISRC here for backwards compatibility.
  972. // If the INFO 'source' field is set in the info chunk, then the
  973. // value for this key will be overwritten later.
  974. destValues[WavAudioFormat::riffInfoSource] = destValues[WavAudioFormat::internationalStandardRecordingCode] = ISRCCode;
  975. }
  976. }
  977. }
  978. }
  979. }
  980. }
  981. }
  982. static MemoryBlock createFrom (const StringMap& values)
  983. {
  984. // Use the new ISRC key if it is present, but fall back to the
  985. // INFO 'source' value for backwards compatibility.
  986. auto ISRC = getValueWithDefault (values,
  987. WavAudioFormat::internationalStandardRecordingCode,
  988. getValueWithDefault (values, WavAudioFormat::riffInfoSource));
  989. MemoryOutputStream xml;
  990. if (ISRC.isNotEmpty())
  991. {
  992. // If you are trying to set the ISRC, make sure that you are using
  993. // WavAudioFormat::internationalStandardRecordingCode as the metadata key,
  994. // and that the value is 12 characters long. If you are trying to set the
  995. // 'source' field in the INFO chunk, set the
  996. // WavAudioFormat::internationalStandardRecordingCode metadata field to the
  997. // empty string to silence this assertion.
  998. jassert (ISRC.length() == 12);
  999. xml << "<ebucore:ebuCoreMain xmlns:dc=\" http://purl.org/dc/elements/1.1/\" "
  1000. "xmlns:ebucore=\"urn:ebu:metadata-schema:ebuCore_2012\">"
  1001. "<ebucore:coreMetadata>"
  1002. "<ebucore:identifier typeLabel=\"GUID\" "
  1003. "typeDefinition=\"Globally Unique Identifier\" "
  1004. "formatLabel=\"ISRC\" "
  1005. "formatDefinition=\"International Standard Recording Code\" "
  1006. "formatLink=\"http://www.ebu.ch/metadata/cs/ebu_IdentifierTypeCodeCS.xml#3.7\">"
  1007. "<dc:identifier>ISRC:" << ISRC << "</dc:identifier>"
  1008. "</ebucore:identifier>"
  1009. "</ebucore:coreMetadata>"
  1010. "</ebucore:ebuCoreMain>";
  1011. xml.writeRepeatedByte (0, xml.getDataSize()); // ensures even size, null termination and room for future growing
  1012. }
  1013. return xml.getMemoryBlock();
  1014. }
  1015. }
  1016. //==============================================================================
  1017. struct ExtensibleWavSubFormat
  1018. {
  1019. uint32 data1;
  1020. uint16 data2;
  1021. uint16 data3;
  1022. uint8 data4[8];
  1023. bool operator== (const ExtensibleWavSubFormat& other) const noexcept { return memcmp (this, &other, sizeof (*this)) == 0; }
  1024. bool operator!= (const ExtensibleWavSubFormat& other) const noexcept { return ! operator== (other); }
  1025. } JUCE_PACKED;
  1026. static const ExtensibleWavSubFormat pcmFormat = { 0x00000001, 0x0000, 0x0010, { 0x80, 0x00, 0x00, 0xaa, 0x00, 0x38, 0x9b, 0x71 } };
  1027. static const ExtensibleWavSubFormat IEEEFloatFormat = { 0x00000003, 0x0000, 0x0010, { 0x80, 0x00, 0x00, 0xaa, 0x00, 0x38, 0x9b, 0x71 } };
  1028. static const ExtensibleWavSubFormat ambisonicFormat = { 0x00000001, 0x0721, 0x11d3, { 0x86, 0x44, 0xC8, 0xC1, 0xCA, 0x00, 0x00, 0x00 } };
  1029. struct DataSize64Chunk // chunk ID = 'ds64' if data size > 0xffffffff, 'JUNK' otherwise
  1030. {
  1031. uint32 riffSizeLow; // low 4 byte size of RF64 block
  1032. uint32 riffSizeHigh; // high 4 byte size of RF64 block
  1033. uint32 dataSizeLow; // low 4 byte size of data chunk
  1034. uint32 dataSizeHigh; // high 4 byte size of data chunk
  1035. uint32 sampleCountLow; // low 4 byte sample count of fact chunk
  1036. uint32 sampleCountHigh; // high 4 byte sample count of fact chunk
  1037. uint32 tableLength; // number of valid entries in array 'table'
  1038. } JUCE_PACKED;
  1039. #if JUCE_MSVC
  1040. #pragma pack (pop)
  1041. #endif
  1042. }
  1043. //==============================================================================
  1044. class WavAudioFormatReader : public AudioFormatReader
  1045. {
  1046. public:
  1047. WavAudioFormatReader (InputStream* in) : AudioFormatReader (in, wavFormatName)
  1048. {
  1049. using namespace WavFileHelpers;
  1050. uint64 len = 0, end = 0;
  1051. int cueNoteIndex = 0;
  1052. int cueLabelIndex = 0;
  1053. int cueRegionIndex = 0;
  1054. StringMap dict;
  1055. auto streamStartPos = input->getPosition();
  1056. auto firstChunkType = input->readInt();
  1057. if (firstChunkType == chunkName ("RF64"))
  1058. {
  1059. input->skipNextBytes (4); // size is -1 for RF64
  1060. isRF64 = true;
  1061. }
  1062. else if (firstChunkType == chunkName ("RIFF"))
  1063. {
  1064. len = (uint64) (uint32) input->readInt();
  1065. end = len + (uint64) input->getPosition();
  1066. }
  1067. else
  1068. {
  1069. return;
  1070. }
  1071. auto startOfRIFFChunk = input->getPosition();
  1072. if (input->readInt() == chunkName ("WAVE"))
  1073. {
  1074. if (isRF64 && input->readInt() == chunkName ("ds64"))
  1075. {
  1076. auto length = (uint32) input->readInt();
  1077. if (length < 28)
  1078. return;
  1079. auto chunkEnd = input->getPosition() + length + (length & 1);
  1080. len = (uint64) input->readInt64();
  1081. end = len + (uint64) startOfRIFFChunk;
  1082. dataLength = input->readInt64();
  1083. input->setPosition (chunkEnd);
  1084. }
  1085. while ((uint64) input->getPosition() < end && ! input->isExhausted())
  1086. {
  1087. auto chunkType = input->readInt();
  1088. auto length = (uint32) input->readInt();
  1089. auto chunkEnd = input->getPosition() + length + (length & 1);
  1090. if (chunkType == chunkName ("fmt "))
  1091. {
  1092. // read the format chunk
  1093. auto format = (unsigned short) input->readShort();
  1094. numChannels = (unsigned int) input->readShort();
  1095. sampleRate = input->readInt();
  1096. auto bytesPerSec = input->readInt();
  1097. input->skipNextBytes (2);
  1098. bitsPerSample = (unsigned int) (int) input->readShort();
  1099. if (bitsPerSample > 64 && (int) sampleRate != 0)
  1100. {
  1101. bytesPerFrame = bytesPerSec / (int) sampleRate;
  1102. if (numChannels != 0)
  1103. bitsPerSample = 8 * (unsigned int) bytesPerFrame / numChannels;
  1104. }
  1105. else
  1106. {
  1107. bytesPerFrame = (int) (numChannels * bitsPerSample / 8);
  1108. }
  1109. if (format == 3)
  1110. {
  1111. usesFloatingPointData = true;
  1112. }
  1113. else if (format == 0xfffe) // WAVE_FORMAT_EXTENSIBLE
  1114. {
  1115. if (length < 40) // too short
  1116. {
  1117. bytesPerFrame = 0;
  1118. }
  1119. else
  1120. {
  1121. input->skipNextBytes (4); // skip over size and bitsPerSample
  1122. auto channelMask = input->readInt();
  1123. dict["ChannelMask"] = String (channelMask);
  1124. channelLayout = getChannelLayoutFromMask (channelMask, numChannels);
  1125. ExtensibleWavSubFormat subFormat;
  1126. subFormat.data1 = (uint32) input->readInt();
  1127. subFormat.data2 = (uint16) input->readShort();
  1128. subFormat.data3 = (uint16) input->readShort();
  1129. input->read (subFormat.data4, sizeof (subFormat.data4));
  1130. if (subFormat == IEEEFloatFormat)
  1131. usesFloatingPointData = true;
  1132. else if (subFormat != pcmFormat && subFormat != ambisonicFormat)
  1133. bytesPerFrame = 0;
  1134. }
  1135. }
  1136. else if (format == 0x674f // WAVE_FORMAT_OGG_VORBIS_MODE_1
  1137. || format == 0x6750 // WAVE_FORMAT_OGG_VORBIS_MODE_2
  1138. || format == 0x6751 // WAVE_FORMAT_OGG_VORBIS_MODE_3
  1139. || format == 0x676f // WAVE_FORMAT_OGG_VORBIS_MODE_1_PLUS
  1140. || format == 0x6770 // WAVE_FORMAT_OGG_VORBIS_MODE_2_PLUS
  1141. || format == 0x6771) // WAVE_FORMAT_OGG_VORBIS_MODE_3_PLUS
  1142. {
  1143. isSubformatOggVorbis = true;
  1144. sampleRate = 0; // to mark the wav reader as failed
  1145. input->setPosition (streamStartPos);
  1146. return;
  1147. }
  1148. else if (format != 1)
  1149. {
  1150. bytesPerFrame = 0;
  1151. }
  1152. }
  1153. else if (chunkType == chunkName ("data"))
  1154. {
  1155. if (isRF64)
  1156. {
  1157. if (dataLength > 0)
  1158. chunkEnd = input->getPosition() + dataLength + (dataLength & 1);
  1159. }
  1160. else
  1161. {
  1162. dataLength = length;
  1163. }
  1164. dataChunkStart = input->getPosition();
  1165. lengthInSamples = (bytesPerFrame > 0) ? (dataLength / bytesPerFrame) : 0;
  1166. }
  1167. else if (chunkType == chunkName ("bext"))
  1168. {
  1169. bwavChunkStart = input->getPosition();
  1170. bwavSize = length;
  1171. HeapBlock<BWAVChunk> bwav;
  1172. bwav.calloc (jmax ((size_t) length + 1, sizeof (BWAVChunk)), 1);
  1173. input->read (bwav, (int) length);
  1174. bwav->copyTo (dict, (int) length);
  1175. }
  1176. else if (chunkType == chunkName ("smpl"))
  1177. {
  1178. HeapBlock<SMPLChunk> smpl;
  1179. smpl.calloc (jmax ((size_t) length + 1, sizeof (SMPLChunk)), 1);
  1180. input->read (smpl, (int) length);
  1181. smpl->copyTo (dict, (int) length);
  1182. }
  1183. else if (chunkType == chunkName ("inst") || chunkType == chunkName ("INST")) // need to check which...
  1184. {
  1185. HeapBlock<InstChunk> inst;
  1186. inst.calloc (jmax ((size_t) length + 1, sizeof (InstChunk)), 1);
  1187. input->read (inst, (int) length);
  1188. inst->copyTo (dict);
  1189. }
  1190. else if (chunkType == chunkName ("cue "))
  1191. {
  1192. HeapBlock<CueChunk> cue;
  1193. cue.calloc (jmax ((size_t) length + 1, sizeof (CueChunk)), 1);
  1194. input->read (cue, (int) length);
  1195. cue->copyTo (dict, (int) length);
  1196. }
  1197. else if (chunkType == chunkName ("axml"))
  1198. {
  1199. MemoryBlock axml;
  1200. input->readIntoMemoryBlock (axml, (ssize_t) length);
  1201. AXMLChunk::addToMetadata (dict, axml.toString());
  1202. }
  1203. else if (chunkType == chunkName ("iXML"))
  1204. {
  1205. MemoryBlock ixml;
  1206. input->readIntoMemoryBlock (ixml, (ssize_t) length);
  1207. IXMLChunk::addToMetadata (dict, ixml.toString());
  1208. }
  1209. else if (chunkType == chunkName ("LIST"))
  1210. {
  1211. auto subChunkType = input->readInt();
  1212. if (subChunkType == chunkName ("info") || subChunkType == chunkName ("INFO"))
  1213. {
  1214. ListInfoChunk::addToMetadata (dict, *input, chunkEnd);
  1215. }
  1216. else if (subChunkType == chunkName ("adtl"))
  1217. {
  1218. while (input->getPosition() < chunkEnd)
  1219. {
  1220. auto adtlChunkType = input->readInt();
  1221. auto adtlLength = (uint32) input->readInt();
  1222. auto adtlChunkEnd = input->getPosition() + (adtlLength + (adtlLength & 1));
  1223. if (adtlChunkType == chunkName ("labl") || adtlChunkType == chunkName ("note"))
  1224. {
  1225. String prefix;
  1226. if (adtlChunkType == chunkName ("labl"))
  1227. prefix << "CueLabel" << cueLabelIndex++;
  1228. else if (adtlChunkType == chunkName ("note"))
  1229. prefix << "CueNote" << cueNoteIndex++;
  1230. auto identifier = (uint32) input->readInt();
  1231. auto stringLength = (int) adtlLength - 4;
  1232. MemoryBlock textBlock;
  1233. input->readIntoMemoryBlock (textBlock, stringLength);
  1234. dict[prefix + "Identifier"] = String (identifier);
  1235. dict[prefix + "Text"] = textBlock.toString();
  1236. }
  1237. else if (adtlChunkType == chunkName ("ltxt"))
  1238. {
  1239. auto prefix = "CueRegion" + String (cueRegionIndex++);
  1240. auto identifier = (uint32) input->readInt();
  1241. auto sampleLength = (uint32) input->readInt();
  1242. auto purpose = (uint32) input->readInt();
  1243. auto country = (uint16) input->readShort();
  1244. auto language = (uint16) input->readShort();
  1245. auto dialect = (uint16) input->readShort();
  1246. auto codePage = (uint16) input->readShort();
  1247. auto stringLength = adtlLength - 20;
  1248. MemoryBlock textBlock;
  1249. input->readIntoMemoryBlock (textBlock, (int) stringLength);
  1250. dict[prefix + "Identifier"] = String (identifier);
  1251. dict[prefix + "SampleLength"] = String (sampleLength);
  1252. dict[prefix + "Purpose"] = String (purpose);
  1253. dict[prefix + "Country"] = String (country);
  1254. dict[prefix + "Language"] = String (language);
  1255. dict[prefix + "Dialect"] = String (dialect);
  1256. dict[prefix + "CodePage"] = String (codePage);
  1257. dict[prefix + "Text"] = textBlock.toString();
  1258. }
  1259. input->setPosition (adtlChunkEnd);
  1260. }
  1261. }
  1262. }
  1263. else if (chunkType == chunkName ("acid"))
  1264. {
  1265. AcidChunk (*input, length).addToMetadata (dict);
  1266. }
  1267. else if (chunkType == chunkName ("Trkn"))
  1268. {
  1269. MemoryBlock tracktion;
  1270. input->readIntoMemoryBlock (tracktion, (ssize_t) length);
  1271. dict[WavAudioFormat::tracktionLoopInfo] = tracktion.toString();
  1272. }
  1273. else if (chunkEnd <= input->getPosition())
  1274. {
  1275. break;
  1276. }
  1277. input->setPosition (chunkEnd);
  1278. }
  1279. }
  1280. if (cueLabelIndex > 0) dict["NumCueLabels"] = String (cueLabelIndex);
  1281. if (cueNoteIndex > 0) dict["NumCueNotes"] = String (cueNoteIndex);
  1282. if (cueRegionIndex > 0) dict["NumCueRegions"] = String (cueRegionIndex);
  1283. if (dict.size() > 0) dict["MetaDataSource"] = "WAV";
  1284. metadataValues.addUnorderedMap (dict);
  1285. }
  1286. //==============================================================================
  1287. bool readSamples (int** destSamples, int numDestChannels, int startOffsetInDestBuffer,
  1288. int64 startSampleInFile, int numSamples) override
  1289. {
  1290. clearSamplesBeyondAvailableLength (destSamples, numDestChannels, startOffsetInDestBuffer,
  1291. startSampleInFile, numSamples, lengthInSamples);
  1292. if (numSamples <= 0)
  1293. return true;
  1294. input->setPosition (dataChunkStart + startSampleInFile * bytesPerFrame);
  1295. while (numSamples > 0)
  1296. {
  1297. const int tempBufSize = 480 * 3 * 4; // (keep this a multiple of 3)
  1298. char tempBuffer[tempBufSize];
  1299. auto numThisTime = jmin (tempBufSize / bytesPerFrame, numSamples);
  1300. auto bytesRead = input->read (tempBuffer, numThisTime * bytesPerFrame);
  1301. if (bytesRead < numThisTime * bytesPerFrame)
  1302. {
  1303. jassert (bytesRead >= 0);
  1304. zeromem (tempBuffer + bytesRead, (size_t) (numThisTime * bytesPerFrame - bytesRead));
  1305. }
  1306. copySampleData (bitsPerSample, usesFloatingPointData,
  1307. destSamples, startOffsetInDestBuffer, numDestChannels,
  1308. tempBuffer, (int) numChannels, numThisTime);
  1309. startOffsetInDestBuffer += numThisTime;
  1310. numSamples -= numThisTime;
  1311. }
  1312. return true;
  1313. }
  1314. static void copySampleData (unsigned int numBitsPerSample, const bool floatingPointData,
  1315. int* const* destSamples, int startOffsetInDestBuffer, int numDestChannels,
  1316. const void* sourceData, int numberOfChannels, int numSamples) noexcept
  1317. {
  1318. switch (numBitsPerSample)
  1319. {
  1320. case 8: ReadHelper<AudioData::Int32, AudioData::UInt8, AudioData::LittleEndian>::read (destSamples, startOffsetInDestBuffer, numDestChannels, sourceData, numberOfChannels, numSamples); break;
  1321. case 16: ReadHelper<AudioData::Int32, AudioData::Int16, AudioData::LittleEndian>::read (destSamples, startOffsetInDestBuffer, numDestChannels, sourceData, numberOfChannels, numSamples); break;
  1322. case 24: ReadHelper<AudioData::Int32, AudioData::Int24, AudioData::LittleEndian>::read (destSamples, startOffsetInDestBuffer, numDestChannels, sourceData, numberOfChannels, numSamples); break;
  1323. case 32: if (floatingPointData) ReadHelper<AudioData::Float32, AudioData::Float32, AudioData::LittleEndian>::read (destSamples, startOffsetInDestBuffer, numDestChannels, sourceData, numberOfChannels, numSamples);
  1324. else ReadHelper<AudioData::Int32, AudioData::Int32, AudioData::LittleEndian>::read (destSamples, startOffsetInDestBuffer, numDestChannels, sourceData, numberOfChannels, numSamples);
  1325. break;
  1326. default: jassertfalse; break;
  1327. }
  1328. }
  1329. //==============================================================================
  1330. AudioChannelSet getChannelLayout() override
  1331. {
  1332. if (channelLayout.size() == static_cast<int> (numChannels))
  1333. return channelLayout;
  1334. return WavFileHelpers::canonicalWavChannelSet (static_cast<int> (numChannels));
  1335. }
  1336. static AudioChannelSet getChannelLayoutFromMask (int dwChannelMask, size_t totalNumChannels)
  1337. {
  1338. AudioChannelSet wavFileChannelLayout;
  1339. // AudioChannelSet and wav's dwChannelMask are compatible
  1340. BigInteger channelBits (dwChannelMask);
  1341. for (auto bit = channelBits.findNextSetBit (0); bit >= 0; bit = channelBits.findNextSetBit (bit + 1))
  1342. wavFileChannelLayout.addChannel (static_cast<AudioChannelSet::ChannelType> (bit + 1));
  1343. // channel layout and number of channels do not match
  1344. if (wavFileChannelLayout.size() != static_cast<int> (totalNumChannels))
  1345. {
  1346. // for backward compatibility with old wav files, assume 1 or 2
  1347. // channel wav files are mono/stereo respectively
  1348. if (totalNumChannels <= 2 && dwChannelMask == 0)
  1349. wavFileChannelLayout = AudioChannelSet::canonicalChannelSet (static_cast<int> (totalNumChannels));
  1350. else
  1351. {
  1352. auto discreteSpeaker = static_cast<int> (AudioChannelSet::discreteChannel0);
  1353. while (wavFileChannelLayout.size() < static_cast<int> (totalNumChannels))
  1354. wavFileChannelLayout.addChannel (static_cast<AudioChannelSet::ChannelType> (discreteSpeaker++));
  1355. }
  1356. }
  1357. return wavFileChannelLayout;
  1358. }
  1359. int64 bwavChunkStart = 0, bwavSize = 0;
  1360. int64 dataChunkStart = 0, dataLength = 0;
  1361. int bytesPerFrame = 0;
  1362. bool isRF64 = false;
  1363. bool isSubformatOggVorbis = false;
  1364. AudioChannelSet channelLayout;
  1365. private:
  1366. JUCE_DECLARE_NON_COPYABLE_WITH_LEAK_DETECTOR (WavAudioFormatReader)
  1367. };
  1368. //==============================================================================
  1369. class WavAudioFormatWriter : public AudioFormatWriter
  1370. {
  1371. public:
  1372. WavAudioFormatWriter (OutputStream* const out, const double rate,
  1373. const AudioChannelSet& channelLayoutToUse, const unsigned int bits,
  1374. const StringPairArray& metadataValues)
  1375. : AudioFormatWriter (out, wavFormatName, rate, channelLayoutToUse, bits)
  1376. {
  1377. using namespace WavFileHelpers;
  1378. if (metadataValues.size() > 0)
  1379. {
  1380. // The meta data should have been sanitised for the WAV format.
  1381. // If it was originally sourced from an AIFF file the MetaDataSource
  1382. // key should be removed (or set to "WAV") once this has been done
  1383. jassert (metadataValues.getValue ("MetaDataSource", "None") != "AIFF");
  1384. const auto map = toMap (metadataValues);
  1385. bwavChunk = BWAVChunk::createFrom (map);
  1386. ixmlChunk = IXMLChunk::createFrom (map);
  1387. axmlChunk = AXMLChunk::createFrom (map);
  1388. smplChunk = SMPLChunk::createFrom (map);
  1389. instChunk = InstChunk::createFrom (map);
  1390. cueChunk = CueChunk ::createFrom (map);
  1391. listChunk = ListChunk::createFrom (map);
  1392. listInfoChunk = ListInfoChunk::createFrom (map);
  1393. acidChunk = AcidChunk::createFrom (map);
  1394. trckChunk = TracktionChunk::createFrom (map);
  1395. }
  1396. headerPosition = out->getPosition();
  1397. writeHeader();
  1398. }
  1399. ~WavAudioFormatWriter() override
  1400. {
  1401. writeHeader();
  1402. }
  1403. //==============================================================================
  1404. bool write (const int** data, int numSamples) override
  1405. {
  1406. jassert (numSamples >= 0);
  1407. jassert (data != nullptr && *data != nullptr); // the input must contain at least one channel!
  1408. if (writeFailed)
  1409. return false;
  1410. auto bytes = numChannels * (size_t) numSamples * bitsPerSample / 8;
  1411. tempBlock.ensureSize (bytes, false);
  1412. switch (bitsPerSample)
  1413. {
  1414. case 8: WriteHelper<AudioData::UInt8, AudioData::Int32, AudioData::LittleEndian>::write (tempBlock.getData(), (int) numChannels, data, numSamples); break;
  1415. case 16: WriteHelper<AudioData::Int16, AudioData::Int32, AudioData::LittleEndian>::write (tempBlock.getData(), (int) numChannels, data, numSamples); break;
  1416. case 24: WriteHelper<AudioData::Int24, AudioData::Int32, AudioData::LittleEndian>::write (tempBlock.getData(), (int) numChannels, data, numSamples); break;
  1417. case 32: WriteHelper<AudioData::Int32, AudioData::Int32, AudioData::LittleEndian>::write (tempBlock.getData(), (int) numChannels, data, numSamples); break;
  1418. default: jassertfalse; break;
  1419. }
  1420. if (! output->write (tempBlock.getData(), bytes))
  1421. {
  1422. // failed to write to disk, so let's try writing the header.
  1423. // If it's just run out of disk space, then if it does manage
  1424. // to write the header, we'll still have a usable file..
  1425. writeHeader();
  1426. writeFailed = true;
  1427. return false;
  1428. }
  1429. bytesWritten += bytes;
  1430. lengthInSamples += (uint64) numSamples;
  1431. return true;
  1432. }
  1433. bool flush() override
  1434. {
  1435. auto lastWritePos = output->getPosition();
  1436. writeHeader();
  1437. if (output->setPosition (lastWritePos))
  1438. return true;
  1439. // if this fails, you've given it an output stream that can't seek! It needs
  1440. // to be able to seek back to write the header
  1441. jassertfalse;
  1442. return false;
  1443. }
  1444. private:
  1445. MemoryBlock tempBlock, bwavChunk, ixmlChunk, axmlChunk, smplChunk, instChunk, cueChunk, listChunk, listInfoChunk, acidChunk, trckChunk;
  1446. uint64 lengthInSamples = 0, bytesWritten = 0;
  1447. int64 headerPosition = 0;
  1448. bool writeFailed = false;
  1449. void writeHeader()
  1450. {
  1451. if ((bytesWritten & 1) != 0) // pad to an even length
  1452. output->writeByte (0);
  1453. using namespace WavFileHelpers;
  1454. if (headerPosition != output->getPosition() && ! output->setPosition (headerPosition))
  1455. {
  1456. // if this fails, you've given it an output stream that can't seek! It needs to be
  1457. // able to seek back to go back and write the header after the data has been written.
  1458. jassertfalse;
  1459. return;
  1460. }
  1461. const size_t bytesPerFrame = numChannels * bitsPerSample / 8;
  1462. uint64 audioDataSize = bytesPerFrame * lengthInSamples;
  1463. auto channelMask = getChannelMaskFromChannelLayout (channelLayout);
  1464. const bool isRF64 = (bytesWritten >= 0x100000000LL);
  1465. const bool isWaveFmtEx = isRF64 || (channelMask != 0);
  1466. int64 riffChunkSize = (int64) (4 /* 'RIFF' */ + 8 + 40 /* WAVEFORMATEX */
  1467. + 8 + audioDataSize + (audioDataSize & 1)
  1468. + chunkSize (bwavChunk)
  1469. + chunkSize (ixmlChunk)
  1470. + chunkSize (axmlChunk)
  1471. + chunkSize (smplChunk)
  1472. + chunkSize (instChunk)
  1473. + chunkSize (cueChunk)
  1474. + chunkSize (listChunk)
  1475. + chunkSize (listInfoChunk)
  1476. + chunkSize (acidChunk)
  1477. + chunkSize (trckChunk)
  1478. + (8 + 28)); // (ds64 chunk)
  1479. riffChunkSize += (riffChunkSize & 1);
  1480. if (isRF64)
  1481. writeChunkHeader (chunkName ("RF64"), -1);
  1482. else
  1483. writeChunkHeader (chunkName ("RIFF"), (int) riffChunkSize);
  1484. output->writeInt (chunkName ("WAVE"));
  1485. if (! isRF64)
  1486. {
  1487. #if ! JUCE_WAV_DO_NOT_PAD_HEADER_SIZE
  1488. /* NB: This junk chunk is added for padding, so that the header is a fixed size
  1489. regardless of whether it's RF64 or not. That way, we can begin recording a file,
  1490. and when it's finished, can go back and write either a RIFF or RF64 header,
  1491. depending on whether more than 2^32 samples were written.
  1492. The JUCE_WAV_DO_NOT_PAD_HEADER_SIZE macro allows you to disable this feature in case
  1493. you need to create files for crappy WAV players with bugs that stop them skipping chunks
  1494. which they don't recognise. But DO NOT USE THIS option unless you really have no choice,
  1495. because it means that if you write more than 2^32 samples to the file, you'll corrupt it.
  1496. */
  1497. writeChunkHeader (chunkName ("JUNK"), 28 + (isWaveFmtEx? 0 : 24));
  1498. output->writeRepeatedByte (0, 28 /* ds64 */ + (isWaveFmtEx? 0 : 24));
  1499. #endif
  1500. }
  1501. else
  1502. {
  1503. #if JUCE_WAV_DO_NOT_PAD_HEADER_SIZE
  1504. // If you disable padding, then you MUST NOT write more than 2^32 samples to a file.
  1505. jassertfalse;
  1506. #endif
  1507. writeChunkHeader (chunkName ("ds64"), 28); // chunk size for uncompressed data (no table)
  1508. output->writeInt64 (riffChunkSize);
  1509. output->writeInt64 ((int64) audioDataSize);
  1510. output->writeRepeatedByte (0, 12);
  1511. }
  1512. if (isWaveFmtEx)
  1513. {
  1514. writeChunkHeader (chunkName ("fmt "), 40);
  1515. output->writeShort ((short) (uint16) 0xfffe); // WAVE_FORMAT_EXTENSIBLE
  1516. }
  1517. else
  1518. {
  1519. writeChunkHeader (chunkName ("fmt "), 16);
  1520. output->writeShort (bitsPerSample < 32 ? (short) 1 /*WAVE_FORMAT_PCM*/
  1521. : (short) 3 /*WAVE_FORMAT_IEEE_FLOAT*/);
  1522. }
  1523. output->writeShort ((short) numChannels);
  1524. output->writeInt ((int) sampleRate);
  1525. output->writeInt ((int) ((double) bytesPerFrame * sampleRate)); // nAvgBytesPerSec
  1526. output->writeShort ((short) bytesPerFrame); // nBlockAlign
  1527. output->writeShort ((short) bitsPerSample); // wBitsPerSample
  1528. if (isWaveFmtEx)
  1529. {
  1530. output->writeShort (22); // cbSize (size of the extension)
  1531. output->writeShort ((short) bitsPerSample); // wValidBitsPerSample
  1532. output->writeInt (channelMask);
  1533. const ExtensibleWavSubFormat& subFormat = bitsPerSample < 32 ? pcmFormat : IEEEFloatFormat;
  1534. output->writeInt ((int) subFormat.data1);
  1535. output->writeShort ((short) subFormat.data2);
  1536. output->writeShort ((short) subFormat.data3);
  1537. output->write (subFormat.data4, sizeof (subFormat.data4));
  1538. }
  1539. writeChunk (bwavChunk, chunkName ("bext"));
  1540. writeChunk (ixmlChunk, chunkName ("iXML"));
  1541. writeChunk (axmlChunk, chunkName ("axml"));
  1542. writeChunk (smplChunk, chunkName ("smpl"));
  1543. writeChunk (instChunk, chunkName ("inst"), 7);
  1544. writeChunk (cueChunk, chunkName ("cue "));
  1545. writeChunk (listChunk, chunkName ("LIST"));
  1546. writeChunk (listInfoChunk, chunkName ("LIST"));
  1547. writeChunk (acidChunk, chunkName ("acid"));
  1548. writeChunk (trckChunk, chunkName ("Trkn"));
  1549. writeChunkHeader (chunkName ("data"), isRF64 ? -1 : (int) (lengthInSamples * bytesPerFrame));
  1550. usesFloatingPointData = (bitsPerSample == 32);
  1551. }
  1552. static size_t chunkSize (const MemoryBlock& data) noexcept { return data.isEmpty() ? 0 : (8 + data.getSize()); }
  1553. void writeChunkHeader (int chunkType, int size) const
  1554. {
  1555. output->writeInt (chunkType);
  1556. output->writeInt (size);
  1557. }
  1558. void writeChunk (const MemoryBlock& data, int chunkType, int size = 0) const
  1559. {
  1560. if (! data.isEmpty())
  1561. {
  1562. writeChunkHeader (chunkType, size != 0 ? size : (int) data.getSize());
  1563. *output << data;
  1564. }
  1565. }
  1566. static int getChannelMaskFromChannelLayout (const AudioChannelSet& layout)
  1567. {
  1568. if (layout.isDiscreteLayout())
  1569. return 0;
  1570. // Don't add an extended format chunk for mono and stereo. Basically, all wav players
  1571. // interpret a wav file with only one or two channels to be mono or stereo anyway.
  1572. if (layout == AudioChannelSet::mono() || layout == AudioChannelSet::stereo())
  1573. return 0;
  1574. auto channels = layout.getChannelTypes();
  1575. auto wavChannelMask = 0;
  1576. for (auto channel : channels)
  1577. {
  1578. int wavChannelBit = static_cast<int> (channel) - 1;
  1579. jassert (wavChannelBit >= 0 && wavChannelBit <= 31);
  1580. wavChannelMask |= (1 << wavChannelBit);
  1581. }
  1582. return wavChannelMask;
  1583. }
  1584. JUCE_DECLARE_NON_COPYABLE_WITH_LEAK_DETECTOR (WavAudioFormatWriter)
  1585. };
  1586. //==============================================================================
  1587. class MemoryMappedWavReader : public MemoryMappedAudioFormatReader
  1588. {
  1589. public:
  1590. MemoryMappedWavReader (const File& wavFile, const WavAudioFormatReader& reader)
  1591. : MemoryMappedAudioFormatReader (wavFile, reader, reader.dataChunkStart,
  1592. reader.dataLength, reader.bytesPerFrame)
  1593. {
  1594. }
  1595. bool readSamples (int** destSamples, int numDestChannels, int startOffsetInDestBuffer,
  1596. int64 startSampleInFile, int numSamples) override
  1597. {
  1598. clearSamplesBeyondAvailableLength (destSamples, numDestChannels, startOffsetInDestBuffer,
  1599. startSampleInFile, numSamples, lengthInSamples);
  1600. if (map == nullptr || ! mappedSection.contains (Range<int64> (startSampleInFile, startSampleInFile + numSamples)))
  1601. {
  1602. jassertfalse; // you must make sure that the window contains all the samples you're going to attempt to read.
  1603. return false;
  1604. }
  1605. WavAudioFormatReader::copySampleData (bitsPerSample, usesFloatingPointData,
  1606. destSamples, startOffsetInDestBuffer, numDestChannels,
  1607. sampleToPointer (startSampleInFile), (int) numChannels, numSamples);
  1608. return true;
  1609. }
  1610. void getSample (int64 sample, float* result) const noexcept override
  1611. {
  1612. auto num = (int) numChannels;
  1613. if (map == nullptr || ! mappedSection.contains (sample))
  1614. {
  1615. jassertfalse; // you must make sure that the window contains all the samples you're going to attempt to read.
  1616. zeromem (result, (size_t) num * sizeof (float));
  1617. return;
  1618. }
  1619. auto dest = &result;
  1620. auto source = sampleToPointer (sample);
  1621. switch (bitsPerSample)
  1622. {
  1623. case 8: ReadHelper<AudioData::Float32, AudioData::UInt8, AudioData::LittleEndian>::read (dest, 0, 1, source, 1, num); break;
  1624. case 16: ReadHelper<AudioData::Float32, AudioData::Int16, AudioData::LittleEndian>::read (dest, 0, 1, source, 1, num); break;
  1625. case 24: ReadHelper<AudioData::Float32, AudioData::Int24, AudioData::LittleEndian>::read (dest, 0, 1, source, 1, num); break;
  1626. case 32: if (usesFloatingPointData) ReadHelper<AudioData::Float32, AudioData::Float32, AudioData::LittleEndian>::read (dest, 0, 1, source, 1, num);
  1627. else ReadHelper<AudioData::Float32, AudioData::Int32, AudioData::LittleEndian>::read (dest, 0, 1, source, 1, num);
  1628. break;
  1629. default: jassertfalse; break;
  1630. }
  1631. }
  1632. void readMaxLevels (int64 startSampleInFile, int64 numSamples, Range<float>* results, int numChannelsToRead) override
  1633. {
  1634. numSamples = jmin (numSamples, lengthInSamples - startSampleInFile);
  1635. if (map == nullptr || numSamples <= 0 || ! mappedSection.contains (Range<int64> (startSampleInFile, startSampleInFile + numSamples)))
  1636. {
  1637. jassert (numSamples <= 0); // you must make sure that the window contains all the samples you're going to attempt to read.
  1638. for (int i = 0; i < numChannelsToRead; ++i)
  1639. results[i] = {};
  1640. return;
  1641. }
  1642. switch (bitsPerSample)
  1643. {
  1644. case 8: scanMinAndMax<AudioData::UInt8> (startSampleInFile, numSamples, results, numChannelsToRead); break;
  1645. case 16: scanMinAndMax<AudioData::Int16> (startSampleInFile, numSamples, results, numChannelsToRead); break;
  1646. case 24: scanMinAndMax<AudioData::Int24> (startSampleInFile, numSamples, results, numChannelsToRead); break;
  1647. case 32: if (usesFloatingPointData) scanMinAndMax<AudioData::Float32> (startSampleInFile, numSamples, results, numChannelsToRead);
  1648. else scanMinAndMax<AudioData::Int32> (startSampleInFile, numSamples, results, numChannelsToRead);
  1649. break;
  1650. default: jassertfalse; break;
  1651. }
  1652. }
  1653. using AudioFormatReader::readMaxLevels;
  1654. private:
  1655. template <typename SampleType>
  1656. void scanMinAndMax (int64 startSampleInFile, int64 numSamples, Range<float>* results, int numChannelsToRead) const noexcept
  1657. {
  1658. for (int i = 0; i < numChannelsToRead; ++i)
  1659. results[i] = scanMinAndMaxInterleaved<SampleType, AudioData::LittleEndian> (i, startSampleInFile, numSamples);
  1660. }
  1661. JUCE_DECLARE_NON_COPYABLE_WITH_LEAK_DETECTOR (MemoryMappedWavReader)
  1662. };
  1663. //==============================================================================
  1664. WavAudioFormat::WavAudioFormat() : AudioFormat (wavFormatName, ".wav .bwf") {}
  1665. WavAudioFormat::~WavAudioFormat() {}
  1666. Array<int> WavAudioFormat::getPossibleSampleRates()
  1667. {
  1668. return { 8000, 11025, 12000, 16000, 22050, 32000, 44100,
  1669. 48000, 88200, 96000, 176400, 192000, 352800, 384000 };
  1670. }
  1671. Array<int> WavAudioFormat::getPossibleBitDepths()
  1672. {
  1673. return { 8, 16, 24, 32 };
  1674. }
  1675. bool WavAudioFormat::canDoStereo() { return true; }
  1676. bool WavAudioFormat::canDoMono() { return true; }
  1677. bool WavAudioFormat::isChannelLayoutSupported (const AudioChannelSet& channelSet)
  1678. {
  1679. auto channelTypes = channelSet.getChannelTypes();
  1680. // When
  1681. if (channelSet.isDiscreteLayout())
  1682. return true;
  1683. // WAV supports all channel types from left ... topRearRight
  1684. for (auto channel : channelTypes)
  1685. if (channel < AudioChannelSet::left || channel > AudioChannelSet::topRearRight)
  1686. return false;
  1687. return true;
  1688. }
  1689. AudioFormatReader* WavAudioFormat::createReaderFor (InputStream* sourceStream, bool deleteStreamIfOpeningFails)
  1690. {
  1691. std::unique_ptr<WavAudioFormatReader> r (new WavAudioFormatReader (sourceStream));
  1692. #if JUCE_USE_OGGVORBIS
  1693. if (r->isSubformatOggVorbis)
  1694. {
  1695. r->input = nullptr;
  1696. return OggVorbisAudioFormat().createReaderFor (sourceStream, deleteStreamIfOpeningFails);
  1697. }
  1698. #endif
  1699. if (r->sampleRate > 0 && r->numChannels > 0 && r->bytesPerFrame > 0 && r->bitsPerSample <= 32)
  1700. return r.release();
  1701. if (! deleteStreamIfOpeningFails)
  1702. r->input = nullptr;
  1703. return nullptr;
  1704. }
  1705. MemoryMappedAudioFormatReader* WavAudioFormat::createMemoryMappedReader (const File& file)
  1706. {
  1707. return createMemoryMappedReader (file.createInputStream().release());
  1708. }
  1709. MemoryMappedAudioFormatReader* WavAudioFormat::createMemoryMappedReader (FileInputStream* fin)
  1710. {
  1711. if (fin != nullptr)
  1712. {
  1713. WavAudioFormatReader reader (fin);
  1714. if (reader.lengthInSamples > 0)
  1715. return new MemoryMappedWavReader (fin->getFile(), reader);
  1716. }
  1717. return nullptr;
  1718. }
  1719. AudioFormatWriter* WavAudioFormat::createWriterFor (OutputStream* out, double sampleRate,
  1720. unsigned int numChannels, int bitsPerSample,
  1721. const StringPairArray& metadataValues, int qualityOptionIndex)
  1722. {
  1723. return createWriterFor (out, sampleRate, WavFileHelpers::canonicalWavChannelSet (static_cast<int> (numChannels)),
  1724. bitsPerSample, metadataValues, qualityOptionIndex);
  1725. }
  1726. AudioFormatWriter* WavAudioFormat::createWriterFor (OutputStream* out,
  1727. double sampleRate,
  1728. const AudioChannelSet& channelLayout,
  1729. int bitsPerSample,
  1730. const StringPairArray& metadataValues,
  1731. int /*qualityOptionIndex*/)
  1732. {
  1733. if (out != nullptr && getPossibleBitDepths().contains (bitsPerSample) && isChannelLayoutSupported (channelLayout))
  1734. return new WavAudioFormatWriter (out, sampleRate, channelLayout,
  1735. (unsigned int) bitsPerSample, metadataValues);
  1736. return nullptr;
  1737. }
  1738. namespace WavFileHelpers
  1739. {
  1740. static bool slowCopyWavFileWithNewMetadata (const File& file, const StringPairArray& metadata)
  1741. {
  1742. TemporaryFile tempFile (file);
  1743. WavAudioFormat wav;
  1744. std::unique_ptr<AudioFormatReader> reader (wav.createReaderFor (file.createInputStream().release(), true));
  1745. if (reader != nullptr)
  1746. {
  1747. std::unique_ptr<OutputStream> outStream (tempFile.getFile().createOutputStream());
  1748. if (outStream != nullptr)
  1749. {
  1750. std::unique_ptr<AudioFormatWriter> writer (wav.createWriterFor (outStream.get(), reader->sampleRate,
  1751. reader->numChannels, (int) reader->bitsPerSample,
  1752. metadata, 0));
  1753. if (writer != nullptr)
  1754. {
  1755. outStream.release();
  1756. bool ok = writer->writeFromAudioReader (*reader, 0, -1);
  1757. writer.reset();
  1758. reader.reset();
  1759. return ok && tempFile.overwriteTargetFileWithTemporary();
  1760. }
  1761. }
  1762. }
  1763. return false;
  1764. }
  1765. }
  1766. bool WavAudioFormat::replaceMetadataInFile (const File& wavFile, const StringPairArray& newMetadata)
  1767. {
  1768. using namespace WavFileHelpers;
  1769. std::unique_ptr<WavAudioFormatReader> reader (static_cast<WavAudioFormatReader*> (createReaderFor (wavFile.createInputStream().release(), true)));
  1770. if (reader != nullptr)
  1771. {
  1772. auto bwavPos = reader->bwavChunkStart;
  1773. auto bwavSize = reader->bwavSize;
  1774. reader.reset();
  1775. if (bwavSize > 0)
  1776. {
  1777. auto chunk = BWAVChunk::createFrom (toMap (newMetadata));
  1778. if (chunk.getSize() <= (size_t) bwavSize)
  1779. {
  1780. // the new one will fit in the space available, so write it directly..
  1781. auto oldSize = wavFile.getSize();
  1782. {
  1783. FileOutputStream out (wavFile);
  1784. if (out.openedOk())
  1785. {
  1786. out.setPosition (bwavPos);
  1787. out << chunk;
  1788. out.setPosition (oldSize);
  1789. }
  1790. }
  1791. jassert (wavFile.getSize() == oldSize);
  1792. return true;
  1793. }
  1794. }
  1795. }
  1796. return slowCopyWavFileWithNewMetadata (wavFile, newMetadata);
  1797. }
  1798. //==============================================================================
  1799. //==============================================================================
  1800. #if JUCE_UNIT_TESTS
  1801. struct WaveAudioFormatTests : public UnitTest
  1802. {
  1803. WaveAudioFormatTests()
  1804. : UnitTest ("Wave audio format tests", UnitTestCategories::audio)
  1805. {}
  1806. void runTest() override
  1807. {
  1808. beginTest ("Setting up metadata");
  1809. auto metadataValues = toMap (WavAudioFormat::createBWAVMetadata ("description",
  1810. "originator",
  1811. "originatorRef",
  1812. Time::getCurrentTime(),
  1813. numTestAudioBufferSamples,
  1814. "codingHistory"));
  1815. for (int i = numElementsInArray (WavFileHelpers::ListInfoChunk::types); --i >= 0;)
  1816. metadataValues[WavFileHelpers::ListInfoChunk::types[i]] = WavFileHelpers::ListInfoChunk::types[i];
  1817. metadataValues[WavAudioFormat::internationalStandardRecordingCode] = WavAudioFormat::internationalStandardRecordingCode;
  1818. if (metadataValues.size() > 0)
  1819. metadataValues["MetaDataSource"] = "WAV";
  1820. const auto smplMetadata = createDefaultSMPLMetadata();
  1821. metadataValues.insert (smplMetadata.cbegin(), smplMetadata.cend());
  1822. WavAudioFormat format;
  1823. MemoryBlock memoryBlock;
  1824. StringPairArray metadataArray;
  1825. metadataArray.addUnorderedMap (metadataValues);
  1826. {
  1827. beginTest ("Metadata can be written and read");
  1828. const auto newMetadata = getMetadataAfterReading (format, writeToBlock (format, metadataArray));
  1829. expect (newMetadata == metadataArray, "Somehow, the metadata is different!");
  1830. }
  1831. {
  1832. beginTest ("Files containing a riff info source and an empty ISRC associate the source with the riffInfoSource key");
  1833. StringPairArray meta;
  1834. meta.addMap ({ { WavAudioFormat::riffInfoSource, "customsource" },
  1835. { WavAudioFormat::internationalStandardRecordingCode, "" } });
  1836. const auto mb = writeToBlock (format, meta);
  1837. checkPatternsPresent (mb, { "INFOISRC" });
  1838. checkPatternsNotPresent (mb, { "ISRC:", "<ebucore" });
  1839. const auto a = getMetadataAfterReading (format, mb);
  1840. expect (a[WavAudioFormat::riffInfoSource] == "customsource");
  1841. expect (a[WavAudioFormat::internationalStandardRecordingCode] == "");
  1842. }
  1843. {
  1844. beginTest ("Files containing a riff info source and no ISRC associate the source with both keys "
  1845. "for backwards compatibility");
  1846. StringPairArray meta;
  1847. meta.addMap ({ { WavAudioFormat::riffInfoSource, "customsource" } });
  1848. const auto mb = writeToBlock (format, meta);
  1849. checkPatternsPresent (mb, { "INFOISRC", "ISRC:customsource", "<ebucore" });
  1850. const auto a = getMetadataAfterReading (format, mb);
  1851. expect (a[WavAudioFormat::riffInfoSource] == "customsource");
  1852. expect (a[WavAudioFormat::internationalStandardRecordingCode] == "customsource");
  1853. }
  1854. {
  1855. beginTest ("Files containing an ISRC associate the value with the internationalStandardRecordingCode key "
  1856. "and the riffInfoSource key for backwards compatibility");
  1857. StringPairArray meta;
  1858. meta.addMap ({ { WavAudioFormat::internationalStandardRecordingCode, "AABBBCCDDDDD" } });
  1859. const auto mb = writeToBlock (format, meta);
  1860. checkPatternsPresent (mb, { "ISRC:AABBBCCDDDDD", "<ebucore" });
  1861. checkPatternsNotPresent (mb, { "INFOISRC" });
  1862. const auto a = getMetadataAfterReading (format, mb);
  1863. expect (a[WavAudioFormat::riffInfoSource] == "AABBBCCDDDDD");
  1864. expect (a[WavAudioFormat::internationalStandardRecordingCode] == "AABBBCCDDDDD");
  1865. }
  1866. {
  1867. beginTest ("Files containing an ISRC and a riff info source associate the values with the appropriate keys");
  1868. StringPairArray meta;
  1869. meta.addMap ({ { WavAudioFormat::riffInfoSource, "source" } });
  1870. meta.addMap ({ { WavAudioFormat::internationalStandardRecordingCode, "UUVVVXXYYYYY" } });
  1871. const auto mb = writeToBlock (format, meta);
  1872. checkPatternsPresent (mb, { "INFOISRC", "ISRC:UUVVVXXYYYYY", "<ebucore" });
  1873. const auto a = getMetadataAfterReading (format, mb);
  1874. expect (a[WavAudioFormat::riffInfoSource] == "source");
  1875. expect (a[WavAudioFormat::internationalStandardRecordingCode] == "UUVVVXXYYYYY");
  1876. }
  1877. {
  1878. beginTest ("Files containing ASWG metadata read and write correctly");
  1879. MemoryBlock block;
  1880. StringPairArray meta;
  1881. for (const auto& key : WavFileHelpers::IXMLChunk::aswgMetadataKeys)
  1882. meta.set (key, "Test123&<>");
  1883. {
  1884. auto writer = rawToUniquePtr (WavAudioFormat().createWriterFor (new MemoryOutputStream (block, false), 48000, 1, 32, meta, 0));
  1885. expect (writer != nullptr);
  1886. }
  1887. expect ([&]
  1888. {
  1889. auto input = std::make_unique<MemoryInputStream> (block, false);
  1890. while (! input->isExhausted())
  1891. {
  1892. char chunkType[4] {};
  1893. auto pos = input->getPosition();
  1894. input->read (chunkType, 4);
  1895. if (memcmp (chunkType, "iXML", 4) == 0)
  1896. {
  1897. auto length = (uint32) input->readInt();
  1898. MemoryBlock xmlBlock;
  1899. input->readIntoMemoryBlock (xmlBlock, (ssize_t) length);
  1900. return parseXML (xmlBlock.toString()) != nullptr;
  1901. }
  1902. input->setPosition (pos + 1);
  1903. }
  1904. return false;
  1905. }());
  1906. {
  1907. auto reader = rawToUniquePtr (WavAudioFormat().createReaderFor (new MemoryInputStream (block, false), true));
  1908. expect (reader != nullptr);
  1909. for (const auto& key : meta.getAllKeys())
  1910. {
  1911. const auto oldValue = meta.getValue (key, "!");
  1912. const auto newValue = reader->metadataValues.getValue (key, "");
  1913. expectEquals (oldValue, newValue);
  1914. }
  1915. expect (reader->metadataValues.getValue (WavAudioFormat::aswgVersion, "") == "3.01");
  1916. }
  1917. }
  1918. }
  1919. private:
  1920. MemoryBlock writeToBlock (WavAudioFormat& format, StringPairArray meta)
  1921. {
  1922. MemoryBlock mb;
  1923. {
  1924. // The destructor of the writer will modify the block, so make sure that we've
  1925. // destroyed the writer before returning the block!
  1926. auto writer = rawToUniquePtr (format.createWriterFor (new MemoryOutputStream (mb, false),
  1927. 44100.0,
  1928. numTestAudioBufferChannels,
  1929. 16,
  1930. meta,
  1931. 0));
  1932. expect (writer != nullptr);
  1933. AudioBuffer<float> buffer (numTestAudioBufferChannels, numTestAudioBufferSamples);
  1934. expect (writer->writeFromAudioSampleBuffer (buffer, 0, numTestAudioBufferSamples));
  1935. }
  1936. return mb;
  1937. }
  1938. StringPairArray getMetadataAfterReading (WavAudioFormat& format, const MemoryBlock& mb)
  1939. {
  1940. auto reader = rawToUniquePtr (format.createReaderFor (new MemoryInputStream (mb, false), true));
  1941. expect (reader != nullptr);
  1942. return reader->metadataValues;
  1943. }
  1944. template <typename Fn>
  1945. void checkPatterns (const MemoryBlock& mb, const std::vector<std::string>& patterns, Fn&& fn)
  1946. {
  1947. for (const auto& pattern : patterns)
  1948. {
  1949. const auto begin = static_cast<const char*> (mb.getData());
  1950. const auto end = begin + mb.getSize();
  1951. expect (fn (std::search (begin, end, pattern.begin(), pattern.end()), end));
  1952. }
  1953. }
  1954. void checkPatternsPresent (const MemoryBlock& mb, const std::vector<std::string>& patterns)
  1955. {
  1956. checkPatterns (mb, patterns, std::not_equal_to<>{});
  1957. }
  1958. void checkPatternsNotPresent (const MemoryBlock& mb, const std::vector<std::string>& patterns)
  1959. {
  1960. checkPatterns (mb, patterns, std::equal_to<>{});
  1961. }
  1962. enum
  1963. {
  1964. numTestAudioBufferChannels = 2,
  1965. numTestAudioBufferSamples = 256
  1966. };
  1967. static StringMap createDefaultSMPLMetadata()
  1968. {
  1969. StringMap m;
  1970. m["Manufacturer"] = "0";
  1971. m["Product"] = "0";
  1972. m["SamplePeriod"] = "0";
  1973. m["MidiUnityNote"] = "60";
  1974. m["MidiPitchFraction"] = "0";
  1975. m["SmpteFormat"] = "0";
  1976. m["SmpteOffset"] = "0";
  1977. m["NumSampleLoops"] = "0";
  1978. m["SamplerData"] = "0";
  1979. return m;
  1980. }
  1981. JUCE_DECLARE_NON_COPYABLE (WaveAudioFormatTests)
  1982. };
  1983. static const WaveAudioFormatTests waveAudioFormatTests;
  1984. #endif
  1985. } // namespace juce