zstd_decompress.c 87 KB

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  1. /*
  2. * Copyright (c) Yann Collet, Facebook, Inc.
  3. * All rights reserved.
  4. *
  5. * This source code is licensed under both the BSD-style license (found in the
  6. * LICENSE file in the root directory of this source tree) and the GPLv2 (found
  7. * in the COPYING file in the root directory of this source tree).
  8. * You may select, at your option, one of the above-listed licenses.
  9. */
  10. /* ***************************************************************
  11. * Tuning parameters
  12. *****************************************************************/
  13. /*!
  14. * HEAPMODE :
  15. * Select how default decompression function ZSTD_decompress() allocates its context,
  16. * on stack (0), or into heap (1, default; requires malloc()).
  17. * Note that functions with explicit context such as ZSTD_decompressDCtx() are unaffected.
  18. */
  19. #ifndef ZSTD_HEAPMODE
  20. # define ZSTD_HEAPMODE 1
  21. #endif
  22. /*!
  23. * LEGACY_SUPPORT :
  24. * if set to 1+, ZSTD_decompress() can decode older formats (v0.1+)
  25. */
  26. /*!
  27. * MAXWINDOWSIZE_DEFAULT :
  28. * maximum window size accepted by DStream __by default__.
  29. * Frames requiring more memory will be rejected.
  30. * It's possible to set a different limit using ZSTD_DCtx_setMaxWindowSize().
  31. */
  32. #ifndef ZSTD_MAXWINDOWSIZE_DEFAULT
  33. # define ZSTD_MAXWINDOWSIZE_DEFAULT (((U32)1 << ZSTD_WINDOWLOG_LIMIT_DEFAULT) + 1)
  34. #endif
  35. /*!
  36. * NO_FORWARD_PROGRESS_MAX :
  37. * maximum allowed nb of calls to ZSTD_decompressStream()
  38. * without any forward progress
  39. * (defined as: no byte read from input, and no byte flushed to output)
  40. * before triggering an error.
  41. */
  42. #ifndef ZSTD_NO_FORWARD_PROGRESS_MAX
  43. # define ZSTD_NO_FORWARD_PROGRESS_MAX 16
  44. #endif
  45. /*-*******************************************************
  46. * Dependencies
  47. *********************************************************/
  48. #include "../common/zstd_deps.h" /* ZSTD_memcpy, ZSTD_memmove, ZSTD_memset */
  49. #include "../common/mem.h" /* low level memory routines */
  50. #define FSE_STATIC_LINKING_ONLY
  51. #include "../common/fse.h"
  52. #define HUF_STATIC_LINKING_ONLY
  53. #include "../common/huf.h"
  54. #include <linux/xxhash.h> /* xxh64_reset, xxh64_update, xxh64_digest, XXH64 */
  55. #include "../common/zstd_internal.h" /* blockProperties_t */
  56. #include "zstd_decompress_internal.h" /* ZSTD_DCtx */
  57. #include "zstd_ddict.h" /* ZSTD_DDictDictContent */
  58. #include "zstd_decompress_block.h" /* ZSTD_decompressBlock_internal */
  59. /* ***********************************
  60. * Multiple DDicts Hashset internals *
  61. *************************************/
  62. #define DDICT_HASHSET_MAX_LOAD_FACTOR_COUNT_MULT 4
  63. #define DDICT_HASHSET_MAX_LOAD_FACTOR_SIZE_MULT 3 /* These two constants represent SIZE_MULT/COUNT_MULT load factor without using a float.
  64. * Currently, that means a 0.75 load factor.
  65. * So, if count * COUNT_MULT / size * SIZE_MULT != 0, then we've exceeded
  66. * the load factor of the ddict hash set.
  67. */
  68. #define DDICT_HASHSET_TABLE_BASE_SIZE 64
  69. #define DDICT_HASHSET_RESIZE_FACTOR 2
  70. /* Hash function to determine starting position of dict insertion within the table
  71. * Returns an index between [0, hashSet->ddictPtrTableSize]
  72. */
  73. static size_t ZSTD_DDictHashSet_getIndex(const ZSTD_DDictHashSet* hashSet, U32 dictID) {
  74. const U64 hash = xxh64(&dictID, sizeof(U32), 0);
  75. /* DDict ptr table size is a multiple of 2, use size - 1 as mask to get index within [0, hashSet->ddictPtrTableSize) */
  76. return hash & (hashSet->ddictPtrTableSize - 1);
  77. }
  78. /* Adds DDict to a hashset without resizing it.
  79. * If inserting a DDict with a dictID that already exists in the set, replaces the one in the set.
  80. * Returns 0 if successful, or a zstd error code if something went wrong.
  81. */
  82. static size_t ZSTD_DDictHashSet_emplaceDDict(ZSTD_DDictHashSet* hashSet, const ZSTD_DDict* ddict) {
  83. const U32 dictID = ZSTD_getDictID_fromDDict(ddict);
  84. size_t idx = ZSTD_DDictHashSet_getIndex(hashSet, dictID);
  85. const size_t idxRangeMask = hashSet->ddictPtrTableSize - 1;
  86. RETURN_ERROR_IF(hashSet->ddictPtrCount == hashSet->ddictPtrTableSize, GENERIC, "Hash set is full!");
  87. DEBUGLOG(4, "Hashed index: for dictID: %u is %zu", dictID, idx);
  88. while (hashSet->ddictPtrTable[idx] != NULL) {
  89. /* Replace existing ddict if inserting ddict with same dictID */
  90. if (ZSTD_getDictID_fromDDict(hashSet->ddictPtrTable[idx]) == dictID) {
  91. DEBUGLOG(4, "DictID already exists, replacing rather than adding");
  92. hashSet->ddictPtrTable[idx] = ddict;
  93. return 0;
  94. }
  95. idx &= idxRangeMask;
  96. idx++;
  97. }
  98. DEBUGLOG(4, "Final idx after probing for dictID %u is: %zu", dictID, idx);
  99. hashSet->ddictPtrTable[idx] = ddict;
  100. hashSet->ddictPtrCount++;
  101. return 0;
  102. }
  103. /* Expands hash table by factor of DDICT_HASHSET_RESIZE_FACTOR and
  104. * rehashes all values, allocates new table, frees old table.
  105. * Returns 0 on success, otherwise a zstd error code.
  106. */
  107. static size_t ZSTD_DDictHashSet_expand(ZSTD_DDictHashSet* hashSet, ZSTD_customMem customMem) {
  108. size_t newTableSize = hashSet->ddictPtrTableSize * DDICT_HASHSET_RESIZE_FACTOR;
  109. const ZSTD_DDict** newTable = (const ZSTD_DDict**)ZSTD_customCalloc(sizeof(ZSTD_DDict*) * newTableSize, customMem);
  110. const ZSTD_DDict** oldTable = hashSet->ddictPtrTable;
  111. size_t oldTableSize = hashSet->ddictPtrTableSize;
  112. size_t i;
  113. DEBUGLOG(4, "Expanding DDict hash table! Old size: %zu new size: %zu", oldTableSize, newTableSize);
  114. RETURN_ERROR_IF(!newTable, memory_allocation, "Expanded hashset allocation failed!");
  115. hashSet->ddictPtrTable = newTable;
  116. hashSet->ddictPtrTableSize = newTableSize;
  117. hashSet->ddictPtrCount = 0;
  118. for (i = 0; i < oldTableSize; ++i) {
  119. if (oldTable[i] != NULL) {
  120. FORWARD_IF_ERROR(ZSTD_DDictHashSet_emplaceDDict(hashSet, oldTable[i]), "");
  121. }
  122. }
  123. ZSTD_customFree((void*)oldTable, customMem);
  124. DEBUGLOG(4, "Finished re-hash");
  125. return 0;
  126. }
  127. /* Fetches a DDict with the given dictID
  128. * Returns the ZSTD_DDict* with the requested dictID. If it doesn't exist, then returns NULL.
  129. */
  130. static const ZSTD_DDict* ZSTD_DDictHashSet_getDDict(ZSTD_DDictHashSet* hashSet, U32 dictID) {
  131. size_t idx = ZSTD_DDictHashSet_getIndex(hashSet, dictID);
  132. const size_t idxRangeMask = hashSet->ddictPtrTableSize - 1;
  133. DEBUGLOG(4, "Hashed index: for dictID: %u is %zu", dictID, idx);
  134. for (;;) {
  135. size_t currDictID = ZSTD_getDictID_fromDDict(hashSet->ddictPtrTable[idx]);
  136. if (currDictID == dictID || currDictID == 0) {
  137. /* currDictID == 0 implies a NULL ddict entry */
  138. break;
  139. } else {
  140. idx &= idxRangeMask; /* Goes to start of table when we reach the end */
  141. idx++;
  142. }
  143. }
  144. DEBUGLOG(4, "Final idx after probing for dictID %u is: %zu", dictID, idx);
  145. return hashSet->ddictPtrTable[idx];
  146. }
  147. /* Allocates space for and returns a ddict hash set
  148. * The hash set's ZSTD_DDict* table has all values automatically set to NULL to begin with.
  149. * Returns NULL if allocation failed.
  150. */
  151. static ZSTD_DDictHashSet* ZSTD_createDDictHashSet(ZSTD_customMem customMem) {
  152. ZSTD_DDictHashSet* ret = (ZSTD_DDictHashSet*)ZSTD_customMalloc(sizeof(ZSTD_DDictHashSet), customMem);
  153. DEBUGLOG(4, "Allocating new hash set");
  154. if (!ret)
  155. return NULL;
  156. ret->ddictPtrTable = (const ZSTD_DDict**)ZSTD_customCalloc(DDICT_HASHSET_TABLE_BASE_SIZE * sizeof(ZSTD_DDict*), customMem);
  157. if (!ret->ddictPtrTable) {
  158. ZSTD_customFree(ret, customMem);
  159. return NULL;
  160. }
  161. ret->ddictPtrTableSize = DDICT_HASHSET_TABLE_BASE_SIZE;
  162. ret->ddictPtrCount = 0;
  163. return ret;
  164. }
  165. /* Frees the table of ZSTD_DDict* within a hashset, then frees the hashset itself.
  166. * Note: The ZSTD_DDict* within the table are NOT freed.
  167. */
  168. static void ZSTD_freeDDictHashSet(ZSTD_DDictHashSet* hashSet, ZSTD_customMem customMem) {
  169. DEBUGLOG(4, "Freeing ddict hash set");
  170. if (hashSet && hashSet->ddictPtrTable) {
  171. ZSTD_customFree((void*)hashSet->ddictPtrTable, customMem);
  172. }
  173. if (hashSet) {
  174. ZSTD_customFree(hashSet, customMem);
  175. }
  176. }
  177. /* Public function: Adds a DDict into the ZSTD_DDictHashSet, possibly triggering a resize of the hash set.
  178. * Returns 0 on success, or a ZSTD error.
  179. */
  180. static size_t ZSTD_DDictHashSet_addDDict(ZSTD_DDictHashSet* hashSet, const ZSTD_DDict* ddict, ZSTD_customMem customMem) {
  181. DEBUGLOG(4, "Adding dict ID: %u to hashset with - Count: %zu Tablesize: %zu", ZSTD_getDictID_fromDDict(ddict), hashSet->ddictPtrCount, hashSet->ddictPtrTableSize);
  182. if (hashSet->ddictPtrCount * DDICT_HASHSET_MAX_LOAD_FACTOR_COUNT_MULT / hashSet->ddictPtrTableSize * DDICT_HASHSET_MAX_LOAD_FACTOR_SIZE_MULT != 0) {
  183. FORWARD_IF_ERROR(ZSTD_DDictHashSet_expand(hashSet, customMem), "");
  184. }
  185. FORWARD_IF_ERROR(ZSTD_DDictHashSet_emplaceDDict(hashSet, ddict), "");
  186. return 0;
  187. }
  188. /*-*************************************************************
  189. * Context management
  190. ***************************************************************/
  191. size_t ZSTD_sizeof_DCtx (const ZSTD_DCtx* dctx)
  192. {
  193. if (dctx==NULL) return 0; /* support sizeof NULL */
  194. return sizeof(*dctx)
  195. + ZSTD_sizeof_DDict(dctx->ddictLocal)
  196. + dctx->inBuffSize + dctx->outBuffSize;
  197. }
  198. size_t ZSTD_estimateDCtxSize(void) { return sizeof(ZSTD_DCtx); }
  199. static size_t ZSTD_startingInputLength(ZSTD_format_e format)
  200. {
  201. size_t const startingInputLength = ZSTD_FRAMEHEADERSIZE_PREFIX(format);
  202. /* only supports formats ZSTD_f_zstd1 and ZSTD_f_zstd1_magicless */
  203. assert( (format == ZSTD_f_zstd1) || (format == ZSTD_f_zstd1_magicless) );
  204. return startingInputLength;
  205. }
  206. static void ZSTD_DCtx_resetParameters(ZSTD_DCtx* dctx)
  207. {
  208. assert(dctx->streamStage == zdss_init);
  209. dctx->format = ZSTD_f_zstd1;
  210. dctx->maxWindowSize = ZSTD_MAXWINDOWSIZE_DEFAULT;
  211. dctx->outBufferMode = ZSTD_bm_buffered;
  212. dctx->forceIgnoreChecksum = ZSTD_d_validateChecksum;
  213. dctx->refMultipleDDicts = ZSTD_rmd_refSingleDDict;
  214. }
  215. static void ZSTD_initDCtx_internal(ZSTD_DCtx* dctx)
  216. {
  217. dctx->staticSize = 0;
  218. dctx->ddict = NULL;
  219. dctx->ddictLocal = NULL;
  220. dctx->dictEnd = NULL;
  221. dctx->ddictIsCold = 0;
  222. dctx->dictUses = ZSTD_dont_use;
  223. dctx->inBuff = NULL;
  224. dctx->inBuffSize = 0;
  225. dctx->outBuffSize = 0;
  226. dctx->streamStage = zdss_init;
  227. dctx->noForwardProgress = 0;
  228. dctx->oversizedDuration = 0;
  229. #if DYNAMIC_BMI2
  230. dctx->bmi2 = ZSTD_cpuSupportsBmi2();
  231. #endif
  232. dctx->ddictSet = NULL;
  233. ZSTD_DCtx_resetParameters(dctx);
  234. #ifdef FUZZING_BUILD_MODE_UNSAFE_FOR_PRODUCTION
  235. dctx->dictContentEndForFuzzing = NULL;
  236. #endif
  237. }
  238. ZSTD_DCtx* ZSTD_initStaticDCtx(void *workspace, size_t workspaceSize)
  239. {
  240. ZSTD_DCtx* const dctx = (ZSTD_DCtx*) workspace;
  241. if ((size_t)workspace & 7) return NULL; /* 8-aligned */
  242. if (workspaceSize < sizeof(ZSTD_DCtx)) return NULL; /* minimum size */
  243. ZSTD_initDCtx_internal(dctx);
  244. dctx->staticSize = workspaceSize;
  245. dctx->inBuff = (char*)(dctx+1);
  246. return dctx;
  247. }
  248. static ZSTD_DCtx* ZSTD_createDCtx_internal(ZSTD_customMem customMem) {
  249. if ((!customMem.customAlloc) ^ (!customMem.customFree)) return NULL;
  250. { ZSTD_DCtx* const dctx = (ZSTD_DCtx*)ZSTD_customMalloc(sizeof(*dctx), customMem);
  251. if (!dctx) return NULL;
  252. dctx->customMem = customMem;
  253. ZSTD_initDCtx_internal(dctx);
  254. return dctx;
  255. }
  256. }
  257. ZSTD_DCtx* ZSTD_createDCtx_advanced(ZSTD_customMem customMem)
  258. {
  259. return ZSTD_createDCtx_internal(customMem);
  260. }
  261. ZSTD_DCtx* ZSTD_createDCtx(void)
  262. {
  263. DEBUGLOG(3, "ZSTD_createDCtx");
  264. return ZSTD_createDCtx_internal(ZSTD_defaultCMem);
  265. }
  266. static void ZSTD_clearDict(ZSTD_DCtx* dctx)
  267. {
  268. ZSTD_freeDDict(dctx->ddictLocal);
  269. dctx->ddictLocal = NULL;
  270. dctx->ddict = NULL;
  271. dctx->dictUses = ZSTD_dont_use;
  272. }
  273. size_t ZSTD_freeDCtx(ZSTD_DCtx* dctx)
  274. {
  275. if (dctx==NULL) return 0; /* support free on NULL */
  276. RETURN_ERROR_IF(dctx->staticSize, memory_allocation, "not compatible with static DCtx");
  277. { ZSTD_customMem const cMem = dctx->customMem;
  278. ZSTD_clearDict(dctx);
  279. ZSTD_customFree(dctx->inBuff, cMem);
  280. dctx->inBuff = NULL;
  281. if (dctx->ddictSet) {
  282. ZSTD_freeDDictHashSet(dctx->ddictSet, cMem);
  283. dctx->ddictSet = NULL;
  284. }
  285. ZSTD_customFree(dctx, cMem);
  286. return 0;
  287. }
  288. }
  289. /* no longer useful */
  290. void ZSTD_copyDCtx(ZSTD_DCtx* dstDCtx, const ZSTD_DCtx* srcDCtx)
  291. {
  292. size_t const toCopy = (size_t)((char*)(&dstDCtx->inBuff) - (char*)dstDCtx);
  293. ZSTD_memcpy(dstDCtx, srcDCtx, toCopy); /* no need to copy workspace */
  294. }
  295. /* Given a dctx with a digested frame params, re-selects the correct ZSTD_DDict based on
  296. * the requested dict ID from the frame. If there exists a reference to the correct ZSTD_DDict, then
  297. * accordingly sets the ddict to be used to decompress the frame.
  298. *
  299. * If no DDict is found, then no action is taken, and the ZSTD_DCtx::ddict remains as-is.
  300. *
  301. * ZSTD_d_refMultipleDDicts must be enabled for this function to be called.
  302. */
  303. static void ZSTD_DCtx_selectFrameDDict(ZSTD_DCtx* dctx) {
  304. assert(dctx->refMultipleDDicts && dctx->ddictSet);
  305. DEBUGLOG(4, "Adjusting DDict based on requested dict ID from frame");
  306. if (dctx->ddict) {
  307. const ZSTD_DDict* frameDDict = ZSTD_DDictHashSet_getDDict(dctx->ddictSet, dctx->fParams.dictID);
  308. if (frameDDict) {
  309. DEBUGLOG(4, "DDict found!");
  310. ZSTD_clearDict(dctx);
  311. dctx->dictID = dctx->fParams.dictID;
  312. dctx->ddict = frameDDict;
  313. dctx->dictUses = ZSTD_use_indefinitely;
  314. }
  315. }
  316. }
  317. /*-*************************************************************
  318. * Frame header decoding
  319. ***************************************************************/
  320. /*! ZSTD_isFrame() :
  321. * Tells if the content of `buffer` starts with a valid Frame Identifier.
  322. * Note : Frame Identifier is 4 bytes. If `size < 4`, @return will always be 0.
  323. * Note 2 : Legacy Frame Identifiers are considered valid only if Legacy Support is enabled.
  324. * Note 3 : Skippable Frame Identifiers are considered valid. */
  325. unsigned ZSTD_isFrame(const void* buffer, size_t size)
  326. {
  327. if (size < ZSTD_FRAMEIDSIZE) return 0;
  328. { U32 const magic = MEM_readLE32(buffer);
  329. if (magic == ZSTD_MAGICNUMBER) return 1;
  330. if ((magic & ZSTD_MAGIC_SKIPPABLE_MASK) == ZSTD_MAGIC_SKIPPABLE_START) return 1;
  331. }
  332. return 0;
  333. }
  334. /*! ZSTD_isSkippableFrame() :
  335. * Tells if the content of `buffer` starts with a valid Frame Identifier for a skippable frame.
  336. * Note : Frame Identifier is 4 bytes. If `size < 4`, @return will always be 0.
  337. */
  338. unsigned ZSTD_isSkippableFrame(const void* buffer, size_t size)
  339. {
  340. if (size < ZSTD_FRAMEIDSIZE) return 0;
  341. { U32 const magic = MEM_readLE32(buffer);
  342. if ((magic & ZSTD_MAGIC_SKIPPABLE_MASK) == ZSTD_MAGIC_SKIPPABLE_START) return 1;
  343. }
  344. return 0;
  345. }
  346. /* ZSTD_frameHeaderSize_internal() :
  347. * srcSize must be large enough to reach header size fields.
  348. * note : only works for formats ZSTD_f_zstd1 and ZSTD_f_zstd1_magicless.
  349. * @return : size of the Frame Header
  350. * or an error code, which can be tested with ZSTD_isError() */
  351. static size_t ZSTD_frameHeaderSize_internal(const void* src, size_t srcSize, ZSTD_format_e format)
  352. {
  353. size_t const minInputSize = ZSTD_startingInputLength(format);
  354. RETURN_ERROR_IF(srcSize < minInputSize, srcSize_wrong, "");
  355. { BYTE const fhd = ((const BYTE*)src)[minInputSize-1];
  356. U32 const dictID= fhd & 3;
  357. U32 const singleSegment = (fhd >> 5) & 1;
  358. U32 const fcsId = fhd >> 6;
  359. return minInputSize + !singleSegment
  360. + ZSTD_did_fieldSize[dictID] + ZSTD_fcs_fieldSize[fcsId]
  361. + (singleSegment && !fcsId);
  362. }
  363. }
  364. /* ZSTD_frameHeaderSize() :
  365. * srcSize must be >= ZSTD_frameHeaderSize_prefix.
  366. * @return : size of the Frame Header,
  367. * or an error code (if srcSize is too small) */
  368. size_t ZSTD_frameHeaderSize(const void* src, size_t srcSize)
  369. {
  370. return ZSTD_frameHeaderSize_internal(src, srcSize, ZSTD_f_zstd1);
  371. }
  372. /* ZSTD_getFrameHeader_advanced() :
  373. * decode Frame Header, or require larger `srcSize`.
  374. * note : only works for formats ZSTD_f_zstd1 and ZSTD_f_zstd1_magicless
  375. * @return : 0, `zfhPtr` is correctly filled,
  376. * >0, `srcSize` is too small, value is wanted `srcSize` amount,
  377. * or an error code, which can be tested using ZSTD_isError() */
  378. size_t ZSTD_getFrameHeader_advanced(ZSTD_frameHeader* zfhPtr, const void* src, size_t srcSize, ZSTD_format_e format)
  379. {
  380. const BYTE* ip = (const BYTE*)src;
  381. size_t const minInputSize = ZSTD_startingInputLength(format);
  382. ZSTD_memset(zfhPtr, 0, sizeof(*zfhPtr)); /* not strictly necessary, but static analyzer do not understand that zfhPtr is only going to be read only if return value is zero, since they are 2 different signals */
  383. if (srcSize < minInputSize) return minInputSize;
  384. RETURN_ERROR_IF(src==NULL, GENERIC, "invalid parameter");
  385. if ( (format != ZSTD_f_zstd1_magicless)
  386. && (MEM_readLE32(src) != ZSTD_MAGICNUMBER) ) {
  387. if ((MEM_readLE32(src) & ZSTD_MAGIC_SKIPPABLE_MASK) == ZSTD_MAGIC_SKIPPABLE_START) {
  388. /* skippable frame */
  389. if (srcSize < ZSTD_SKIPPABLEHEADERSIZE)
  390. return ZSTD_SKIPPABLEHEADERSIZE; /* magic number + frame length */
  391. ZSTD_memset(zfhPtr, 0, sizeof(*zfhPtr));
  392. zfhPtr->frameContentSize = MEM_readLE32((const char *)src + ZSTD_FRAMEIDSIZE);
  393. zfhPtr->frameType = ZSTD_skippableFrame;
  394. return 0;
  395. }
  396. RETURN_ERROR(prefix_unknown, "");
  397. }
  398. /* ensure there is enough `srcSize` to fully read/decode frame header */
  399. { size_t const fhsize = ZSTD_frameHeaderSize_internal(src, srcSize, format);
  400. if (srcSize < fhsize) return fhsize;
  401. zfhPtr->headerSize = (U32)fhsize;
  402. }
  403. { BYTE const fhdByte = ip[minInputSize-1];
  404. size_t pos = minInputSize;
  405. U32 const dictIDSizeCode = fhdByte&3;
  406. U32 const checksumFlag = (fhdByte>>2)&1;
  407. U32 const singleSegment = (fhdByte>>5)&1;
  408. U32 const fcsID = fhdByte>>6;
  409. U64 windowSize = 0;
  410. U32 dictID = 0;
  411. U64 frameContentSize = ZSTD_CONTENTSIZE_UNKNOWN;
  412. RETURN_ERROR_IF((fhdByte & 0x08) != 0, frameParameter_unsupported,
  413. "reserved bits, must be zero");
  414. if (!singleSegment) {
  415. BYTE const wlByte = ip[pos++];
  416. U32 const windowLog = (wlByte >> 3) + ZSTD_WINDOWLOG_ABSOLUTEMIN;
  417. RETURN_ERROR_IF(windowLog > ZSTD_WINDOWLOG_MAX, frameParameter_windowTooLarge, "");
  418. windowSize = (1ULL << windowLog);
  419. windowSize += (windowSize >> 3) * (wlByte&7);
  420. }
  421. switch(dictIDSizeCode)
  422. {
  423. default:
  424. assert(0); /* impossible */
  425. ZSTD_FALLTHROUGH;
  426. case 0 : break;
  427. case 1 : dictID = ip[pos]; pos++; break;
  428. case 2 : dictID = MEM_readLE16(ip+pos); pos+=2; break;
  429. case 3 : dictID = MEM_readLE32(ip+pos); pos+=4; break;
  430. }
  431. switch(fcsID)
  432. {
  433. default:
  434. assert(0); /* impossible */
  435. ZSTD_FALLTHROUGH;
  436. case 0 : if (singleSegment) frameContentSize = ip[pos]; break;
  437. case 1 : frameContentSize = MEM_readLE16(ip+pos)+256; break;
  438. case 2 : frameContentSize = MEM_readLE32(ip+pos); break;
  439. case 3 : frameContentSize = MEM_readLE64(ip+pos); break;
  440. }
  441. if (singleSegment) windowSize = frameContentSize;
  442. zfhPtr->frameType = ZSTD_frame;
  443. zfhPtr->frameContentSize = frameContentSize;
  444. zfhPtr->windowSize = windowSize;
  445. zfhPtr->blockSizeMax = (unsigned) MIN(windowSize, ZSTD_BLOCKSIZE_MAX);
  446. zfhPtr->dictID = dictID;
  447. zfhPtr->checksumFlag = checksumFlag;
  448. }
  449. return 0;
  450. }
  451. /* ZSTD_getFrameHeader() :
  452. * decode Frame Header, or require larger `srcSize`.
  453. * note : this function does not consume input, it only reads it.
  454. * @return : 0, `zfhPtr` is correctly filled,
  455. * >0, `srcSize` is too small, value is wanted `srcSize` amount,
  456. * or an error code, which can be tested using ZSTD_isError() */
  457. size_t ZSTD_getFrameHeader(ZSTD_frameHeader* zfhPtr, const void* src, size_t srcSize)
  458. {
  459. return ZSTD_getFrameHeader_advanced(zfhPtr, src, srcSize, ZSTD_f_zstd1);
  460. }
  461. /* ZSTD_getFrameContentSize() :
  462. * compatible with legacy mode
  463. * @return : decompressed size of the single frame pointed to be `src` if known, otherwise
  464. * - ZSTD_CONTENTSIZE_UNKNOWN if the size cannot be determined
  465. * - ZSTD_CONTENTSIZE_ERROR if an error occurred (e.g. invalid magic number, srcSize too small) */
  466. unsigned long long ZSTD_getFrameContentSize(const void *src, size_t srcSize)
  467. {
  468. { ZSTD_frameHeader zfh;
  469. if (ZSTD_getFrameHeader(&zfh, src, srcSize) != 0)
  470. return ZSTD_CONTENTSIZE_ERROR;
  471. if (zfh.frameType == ZSTD_skippableFrame) {
  472. return 0;
  473. } else {
  474. return zfh.frameContentSize;
  475. } }
  476. }
  477. static size_t readSkippableFrameSize(void const* src, size_t srcSize)
  478. {
  479. size_t const skippableHeaderSize = ZSTD_SKIPPABLEHEADERSIZE;
  480. U32 sizeU32;
  481. RETURN_ERROR_IF(srcSize < ZSTD_SKIPPABLEHEADERSIZE, srcSize_wrong, "");
  482. sizeU32 = MEM_readLE32((BYTE const*)src + ZSTD_FRAMEIDSIZE);
  483. RETURN_ERROR_IF((U32)(sizeU32 + ZSTD_SKIPPABLEHEADERSIZE) < sizeU32,
  484. frameParameter_unsupported, "");
  485. {
  486. size_t const skippableSize = skippableHeaderSize + sizeU32;
  487. RETURN_ERROR_IF(skippableSize > srcSize, srcSize_wrong, "");
  488. return skippableSize;
  489. }
  490. }
  491. /*! ZSTD_readSkippableFrame() :
  492. * Retrieves a zstd skippable frame containing data given by src, and writes it to dst buffer.
  493. *
  494. * The parameter magicVariant will receive the magicVariant that was supplied when the frame was written,
  495. * i.e. magicNumber - ZSTD_MAGIC_SKIPPABLE_START. This can be NULL if the caller is not interested
  496. * in the magicVariant.
  497. *
  498. * Returns an error if destination buffer is not large enough, or if the frame is not skippable.
  499. *
  500. * @return : number of bytes written or a ZSTD error.
  501. */
  502. ZSTDLIB_API size_t ZSTD_readSkippableFrame(void* dst, size_t dstCapacity, unsigned* magicVariant,
  503. const void* src, size_t srcSize)
  504. {
  505. U32 const magicNumber = MEM_readLE32(src);
  506. size_t skippableFrameSize = readSkippableFrameSize(src, srcSize);
  507. size_t skippableContentSize = skippableFrameSize - ZSTD_SKIPPABLEHEADERSIZE;
  508. /* check input validity */
  509. RETURN_ERROR_IF(!ZSTD_isSkippableFrame(src, srcSize), frameParameter_unsupported, "");
  510. RETURN_ERROR_IF(skippableFrameSize < ZSTD_SKIPPABLEHEADERSIZE || skippableFrameSize > srcSize, srcSize_wrong, "");
  511. RETURN_ERROR_IF(skippableContentSize > dstCapacity, dstSize_tooSmall, "");
  512. /* deliver payload */
  513. if (skippableContentSize > 0 && dst != NULL)
  514. ZSTD_memcpy(dst, (const BYTE *)src + ZSTD_SKIPPABLEHEADERSIZE, skippableContentSize);
  515. if (magicVariant != NULL)
  516. *magicVariant = magicNumber - ZSTD_MAGIC_SKIPPABLE_START;
  517. return skippableContentSize;
  518. }
  519. /* ZSTD_findDecompressedSize() :
  520. * compatible with legacy mode
  521. * `srcSize` must be the exact length of some number of ZSTD compressed and/or
  522. * skippable frames
  523. * @return : decompressed size of the frames contained */
  524. unsigned long long ZSTD_findDecompressedSize(const void* src, size_t srcSize)
  525. {
  526. unsigned long long totalDstSize = 0;
  527. while (srcSize >= ZSTD_startingInputLength(ZSTD_f_zstd1)) {
  528. U32 const magicNumber = MEM_readLE32(src);
  529. if ((magicNumber & ZSTD_MAGIC_SKIPPABLE_MASK) == ZSTD_MAGIC_SKIPPABLE_START) {
  530. size_t const skippableSize = readSkippableFrameSize(src, srcSize);
  531. if (ZSTD_isError(skippableSize)) {
  532. return ZSTD_CONTENTSIZE_ERROR;
  533. }
  534. assert(skippableSize <= srcSize);
  535. src = (const BYTE *)src + skippableSize;
  536. srcSize -= skippableSize;
  537. continue;
  538. }
  539. { unsigned long long const ret = ZSTD_getFrameContentSize(src, srcSize);
  540. if (ret >= ZSTD_CONTENTSIZE_ERROR) return ret;
  541. /* check for overflow */
  542. if (totalDstSize + ret < totalDstSize) return ZSTD_CONTENTSIZE_ERROR;
  543. totalDstSize += ret;
  544. }
  545. { size_t const frameSrcSize = ZSTD_findFrameCompressedSize(src, srcSize);
  546. if (ZSTD_isError(frameSrcSize)) {
  547. return ZSTD_CONTENTSIZE_ERROR;
  548. }
  549. src = (const BYTE *)src + frameSrcSize;
  550. srcSize -= frameSrcSize;
  551. }
  552. } /* while (srcSize >= ZSTD_frameHeaderSize_prefix) */
  553. if (srcSize) return ZSTD_CONTENTSIZE_ERROR;
  554. return totalDstSize;
  555. }
  556. /* ZSTD_getDecompressedSize() :
  557. * compatible with legacy mode
  558. * @return : decompressed size if known, 0 otherwise
  559. note : 0 can mean any of the following :
  560. - frame content is empty
  561. - decompressed size field is not present in frame header
  562. - frame header unknown / not supported
  563. - frame header not complete (`srcSize` too small) */
  564. unsigned long long ZSTD_getDecompressedSize(const void* src, size_t srcSize)
  565. {
  566. unsigned long long const ret = ZSTD_getFrameContentSize(src, srcSize);
  567. ZSTD_STATIC_ASSERT(ZSTD_CONTENTSIZE_ERROR < ZSTD_CONTENTSIZE_UNKNOWN);
  568. return (ret >= ZSTD_CONTENTSIZE_ERROR) ? 0 : ret;
  569. }
  570. /* ZSTD_decodeFrameHeader() :
  571. * `headerSize` must be the size provided by ZSTD_frameHeaderSize().
  572. * If multiple DDict references are enabled, also will choose the correct DDict to use.
  573. * @return : 0 if success, or an error code, which can be tested using ZSTD_isError() */
  574. static size_t ZSTD_decodeFrameHeader(ZSTD_DCtx* dctx, const void* src, size_t headerSize)
  575. {
  576. size_t const result = ZSTD_getFrameHeader_advanced(&(dctx->fParams), src, headerSize, dctx->format);
  577. if (ZSTD_isError(result)) return result; /* invalid header */
  578. RETURN_ERROR_IF(result>0, srcSize_wrong, "headerSize too small");
  579. /* Reference DDict requested by frame if dctx references multiple ddicts */
  580. if (dctx->refMultipleDDicts == ZSTD_rmd_refMultipleDDicts && dctx->ddictSet) {
  581. ZSTD_DCtx_selectFrameDDict(dctx);
  582. }
  583. #ifndef FUZZING_BUILD_MODE_UNSAFE_FOR_PRODUCTION
  584. /* Skip the dictID check in fuzzing mode, because it makes the search
  585. * harder.
  586. */
  587. RETURN_ERROR_IF(dctx->fParams.dictID && (dctx->dictID != dctx->fParams.dictID),
  588. dictionary_wrong, "");
  589. #endif
  590. dctx->validateChecksum = (dctx->fParams.checksumFlag && !dctx->forceIgnoreChecksum) ? 1 : 0;
  591. if (dctx->validateChecksum) xxh64_reset(&dctx->xxhState, 0);
  592. dctx->processedCSize += headerSize;
  593. return 0;
  594. }
  595. static ZSTD_frameSizeInfo ZSTD_errorFrameSizeInfo(size_t ret)
  596. {
  597. ZSTD_frameSizeInfo frameSizeInfo;
  598. frameSizeInfo.compressedSize = ret;
  599. frameSizeInfo.decompressedBound = ZSTD_CONTENTSIZE_ERROR;
  600. return frameSizeInfo;
  601. }
  602. static ZSTD_frameSizeInfo ZSTD_findFrameSizeInfo(const void* src, size_t srcSize)
  603. {
  604. ZSTD_frameSizeInfo frameSizeInfo;
  605. ZSTD_memset(&frameSizeInfo, 0, sizeof(ZSTD_frameSizeInfo));
  606. if ((srcSize >= ZSTD_SKIPPABLEHEADERSIZE)
  607. && (MEM_readLE32(src) & ZSTD_MAGIC_SKIPPABLE_MASK) == ZSTD_MAGIC_SKIPPABLE_START) {
  608. frameSizeInfo.compressedSize = readSkippableFrameSize(src, srcSize);
  609. assert(ZSTD_isError(frameSizeInfo.compressedSize) ||
  610. frameSizeInfo.compressedSize <= srcSize);
  611. return frameSizeInfo;
  612. } else {
  613. const BYTE* ip = (const BYTE*)src;
  614. const BYTE* const ipstart = ip;
  615. size_t remainingSize = srcSize;
  616. size_t nbBlocks = 0;
  617. ZSTD_frameHeader zfh;
  618. /* Extract Frame Header */
  619. { size_t const ret = ZSTD_getFrameHeader(&zfh, src, srcSize);
  620. if (ZSTD_isError(ret))
  621. return ZSTD_errorFrameSizeInfo(ret);
  622. if (ret > 0)
  623. return ZSTD_errorFrameSizeInfo(ERROR(srcSize_wrong));
  624. }
  625. ip += zfh.headerSize;
  626. remainingSize -= zfh.headerSize;
  627. /* Iterate over each block */
  628. while (1) {
  629. blockProperties_t blockProperties;
  630. size_t const cBlockSize = ZSTD_getcBlockSize(ip, remainingSize, &blockProperties);
  631. if (ZSTD_isError(cBlockSize))
  632. return ZSTD_errorFrameSizeInfo(cBlockSize);
  633. if (ZSTD_blockHeaderSize + cBlockSize > remainingSize)
  634. return ZSTD_errorFrameSizeInfo(ERROR(srcSize_wrong));
  635. ip += ZSTD_blockHeaderSize + cBlockSize;
  636. remainingSize -= ZSTD_blockHeaderSize + cBlockSize;
  637. nbBlocks++;
  638. if (blockProperties.lastBlock) break;
  639. }
  640. /* Final frame content checksum */
  641. if (zfh.checksumFlag) {
  642. if (remainingSize < 4)
  643. return ZSTD_errorFrameSizeInfo(ERROR(srcSize_wrong));
  644. ip += 4;
  645. }
  646. frameSizeInfo.compressedSize = (size_t)(ip - ipstart);
  647. frameSizeInfo.decompressedBound = (zfh.frameContentSize != ZSTD_CONTENTSIZE_UNKNOWN)
  648. ? zfh.frameContentSize
  649. : nbBlocks * zfh.blockSizeMax;
  650. return frameSizeInfo;
  651. }
  652. }
  653. /* ZSTD_findFrameCompressedSize() :
  654. * compatible with legacy mode
  655. * `src` must point to the start of a ZSTD frame, ZSTD legacy frame, or skippable frame
  656. * `srcSize` must be at least as large as the frame contained
  657. * @return : the compressed size of the frame starting at `src` */
  658. size_t ZSTD_findFrameCompressedSize(const void *src, size_t srcSize)
  659. {
  660. ZSTD_frameSizeInfo const frameSizeInfo = ZSTD_findFrameSizeInfo(src, srcSize);
  661. return frameSizeInfo.compressedSize;
  662. }
  663. /* ZSTD_decompressBound() :
  664. * compatible with legacy mode
  665. * `src` must point to the start of a ZSTD frame or a skippeable frame
  666. * `srcSize` must be at least as large as the frame contained
  667. * @return : the maximum decompressed size of the compressed source
  668. */
  669. unsigned long long ZSTD_decompressBound(const void* src, size_t srcSize)
  670. {
  671. unsigned long long bound = 0;
  672. /* Iterate over each frame */
  673. while (srcSize > 0) {
  674. ZSTD_frameSizeInfo const frameSizeInfo = ZSTD_findFrameSizeInfo(src, srcSize);
  675. size_t const compressedSize = frameSizeInfo.compressedSize;
  676. unsigned long long const decompressedBound = frameSizeInfo.decompressedBound;
  677. if (ZSTD_isError(compressedSize) || decompressedBound == ZSTD_CONTENTSIZE_ERROR)
  678. return ZSTD_CONTENTSIZE_ERROR;
  679. assert(srcSize >= compressedSize);
  680. src = (const BYTE*)src + compressedSize;
  681. srcSize -= compressedSize;
  682. bound += decompressedBound;
  683. }
  684. return bound;
  685. }
  686. /*-*************************************************************
  687. * Frame decoding
  688. ***************************************************************/
  689. /* ZSTD_insertBlock() :
  690. * insert `src` block into `dctx` history. Useful to track uncompressed blocks. */
  691. size_t ZSTD_insertBlock(ZSTD_DCtx* dctx, const void* blockStart, size_t blockSize)
  692. {
  693. DEBUGLOG(5, "ZSTD_insertBlock: %u bytes", (unsigned)blockSize);
  694. ZSTD_checkContinuity(dctx, blockStart, blockSize);
  695. dctx->previousDstEnd = (const char*)blockStart + blockSize;
  696. return blockSize;
  697. }
  698. static size_t ZSTD_copyRawBlock(void* dst, size_t dstCapacity,
  699. const void* src, size_t srcSize)
  700. {
  701. DEBUGLOG(5, "ZSTD_copyRawBlock");
  702. RETURN_ERROR_IF(srcSize > dstCapacity, dstSize_tooSmall, "");
  703. if (dst == NULL) {
  704. if (srcSize == 0) return 0;
  705. RETURN_ERROR(dstBuffer_null, "");
  706. }
  707. ZSTD_memcpy(dst, src, srcSize);
  708. return srcSize;
  709. }
  710. static size_t ZSTD_setRleBlock(void* dst, size_t dstCapacity,
  711. BYTE b,
  712. size_t regenSize)
  713. {
  714. RETURN_ERROR_IF(regenSize > dstCapacity, dstSize_tooSmall, "");
  715. if (dst == NULL) {
  716. if (regenSize == 0) return 0;
  717. RETURN_ERROR(dstBuffer_null, "");
  718. }
  719. ZSTD_memset(dst, b, regenSize);
  720. return regenSize;
  721. }
  722. static void ZSTD_DCtx_trace_end(ZSTD_DCtx const* dctx, U64 uncompressedSize, U64 compressedSize, unsigned streaming)
  723. {
  724. (void)dctx;
  725. (void)uncompressedSize;
  726. (void)compressedSize;
  727. (void)streaming;
  728. }
  729. /*! ZSTD_decompressFrame() :
  730. * @dctx must be properly initialized
  731. * will update *srcPtr and *srcSizePtr,
  732. * to make *srcPtr progress by one frame. */
  733. static size_t ZSTD_decompressFrame(ZSTD_DCtx* dctx,
  734. void* dst, size_t dstCapacity,
  735. const void** srcPtr, size_t *srcSizePtr)
  736. {
  737. const BYTE* const istart = (const BYTE*)(*srcPtr);
  738. const BYTE* ip = istart;
  739. BYTE* const ostart = (BYTE*)dst;
  740. BYTE* const oend = dstCapacity != 0 ? ostart + dstCapacity : ostart;
  741. BYTE* op = ostart;
  742. size_t remainingSrcSize = *srcSizePtr;
  743. DEBUGLOG(4, "ZSTD_decompressFrame (srcSize:%i)", (int)*srcSizePtr);
  744. /* check */
  745. RETURN_ERROR_IF(
  746. remainingSrcSize < ZSTD_FRAMEHEADERSIZE_MIN(dctx->format)+ZSTD_blockHeaderSize,
  747. srcSize_wrong, "");
  748. /* Frame Header */
  749. { size_t const frameHeaderSize = ZSTD_frameHeaderSize_internal(
  750. ip, ZSTD_FRAMEHEADERSIZE_PREFIX(dctx->format), dctx->format);
  751. if (ZSTD_isError(frameHeaderSize)) return frameHeaderSize;
  752. RETURN_ERROR_IF(remainingSrcSize < frameHeaderSize+ZSTD_blockHeaderSize,
  753. srcSize_wrong, "");
  754. FORWARD_IF_ERROR( ZSTD_decodeFrameHeader(dctx, ip, frameHeaderSize) , "");
  755. ip += frameHeaderSize; remainingSrcSize -= frameHeaderSize;
  756. }
  757. /* Loop on each block */
  758. while (1) {
  759. size_t decodedSize;
  760. blockProperties_t blockProperties;
  761. size_t const cBlockSize = ZSTD_getcBlockSize(ip, remainingSrcSize, &blockProperties);
  762. if (ZSTD_isError(cBlockSize)) return cBlockSize;
  763. ip += ZSTD_blockHeaderSize;
  764. remainingSrcSize -= ZSTD_blockHeaderSize;
  765. RETURN_ERROR_IF(cBlockSize > remainingSrcSize, srcSize_wrong, "");
  766. switch(blockProperties.blockType)
  767. {
  768. case bt_compressed:
  769. decodedSize = ZSTD_decompressBlock_internal(dctx, op, (size_t)(oend-op), ip, cBlockSize, /* frame */ 1, not_streaming);
  770. break;
  771. case bt_raw :
  772. decodedSize = ZSTD_copyRawBlock(op, (size_t)(oend-op), ip, cBlockSize);
  773. break;
  774. case bt_rle :
  775. decodedSize = ZSTD_setRleBlock(op, (size_t)(oend-op), *ip, blockProperties.origSize);
  776. break;
  777. case bt_reserved :
  778. default:
  779. RETURN_ERROR(corruption_detected, "invalid block type");
  780. }
  781. if (ZSTD_isError(decodedSize)) return decodedSize;
  782. if (dctx->validateChecksum)
  783. xxh64_update(&dctx->xxhState, op, decodedSize);
  784. if (decodedSize != 0)
  785. op += decodedSize;
  786. assert(ip != NULL);
  787. ip += cBlockSize;
  788. remainingSrcSize -= cBlockSize;
  789. if (blockProperties.lastBlock) break;
  790. }
  791. if (dctx->fParams.frameContentSize != ZSTD_CONTENTSIZE_UNKNOWN) {
  792. RETURN_ERROR_IF((U64)(op-ostart) != dctx->fParams.frameContentSize,
  793. corruption_detected, "");
  794. }
  795. if (dctx->fParams.checksumFlag) { /* Frame content checksum verification */
  796. RETURN_ERROR_IF(remainingSrcSize<4, checksum_wrong, "");
  797. if (!dctx->forceIgnoreChecksum) {
  798. U32 const checkCalc = (U32)xxh64_digest(&dctx->xxhState);
  799. U32 checkRead;
  800. checkRead = MEM_readLE32(ip);
  801. RETURN_ERROR_IF(checkRead != checkCalc, checksum_wrong, "");
  802. }
  803. ip += 4;
  804. remainingSrcSize -= 4;
  805. }
  806. ZSTD_DCtx_trace_end(dctx, (U64)(op-ostart), (U64)(ip-istart), /* streaming */ 0);
  807. /* Allow caller to get size read */
  808. *srcPtr = ip;
  809. *srcSizePtr = remainingSrcSize;
  810. return (size_t)(op-ostart);
  811. }
  812. static size_t ZSTD_decompressMultiFrame(ZSTD_DCtx* dctx,
  813. void* dst, size_t dstCapacity,
  814. const void* src, size_t srcSize,
  815. const void* dict, size_t dictSize,
  816. const ZSTD_DDict* ddict)
  817. {
  818. void* const dststart = dst;
  819. int moreThan1Frame = 0;
  820. DEBUGLOG(5, "ZSTD_decompressMultiFrame");
  821. assert(dict==NULL || ddict==NULL); /* either dict or ddict set, not both */
  822. if (ddict) {
  823. dict = ZSTD_DDict_dictContent(ddict);
  824. dictSize = ZSTD_DDict_dictSize(ddict);
  825. }
  826. while (srcSize >= ZSTD_startingInputLength(dctx->format)) {
  827. { U32 const magicNumber = MEM_readLE32(src);
  828. DEBUGLOG(4, "reading magic number %08X (expecting %08X)",
  829. (unsigned)magicNumber, ZSTD_MAGICNUMBER);
  830. if ((magicNumber & ZSTD_MAGIC_SKIPPABLE_MASK) == ZSTD_MAGIC_SKIPPABLE_START) {
  831. size_t const skippableSize = readSkippableFrameSize(src, srcSize);
  832. FORWARD_IF_ERROR(skippableSize, "readSkippableFrameSize failed");
  833. assert(skippableSize <= srcSize);
  834. src = (const BYTE *)src + skippableSize;
  835. srcSize -= skippableSize;
  836. continue;
  837. } }
  838. if (ddict) {
  839. /* we were called from ZSTD_decompress_usingDDict */
  840. FORWARD_IF_ERROR(ZSTD_decompressBegin_usingDDict(dctx, ddict), "");
  841. } else {
  842. /* this will initialize correctly with no dict if dict == NULL, so
  843. * use this in all cases but ddict */
  844. FORWARD_IF_ERROR(ZSTD_decompressBegin_usingDict(dctx, dict, dictSize), "");
  845. }
  846. ZSTD_checkContinuity(dctx, dst, dstCapacity);
  847. { const size_t res = ZSTD_decompressFrame(dctx, dst, dstCapacity,
  848. &src, &srcSize);
  849. RETURN_ERROR_IF(
  850. (ZSTD_getErrorCode(res) == ZSTD_error_prefix_unknown)
  851. && (moreThan1Frame==1),
  852. srcSize_wrong,
  853. "At least one frame successfully completed, "
  854. "but following bytes are garbage: "
  855. "it's more likely to be a srcSize error, "
  856. "specifying more input bytes than size of frame(s). "
  857. "Note: one could be unlucky, it might be a corruption error instead, "
  858. "happening right at the place where we expect zstd magic bytes. "
  859. "But this is _much_ less likely than a srcSize field error.");
  860. if (ZSTD_isError(res)) return res;
  861. assert(res <= dstCapacity);
  862. if (res != 0)
  863. dst = (BYTE*)dst + res;
  864. dstCapacity -= res;
  865. }
  866. moreThan1Frame = 1;
  867. } /* while (srcSize >= ZSTD_frameHeaderSize_prefix) */
  868. RETURN_ERROR_IF(srcSize, srcSize_wrong, "input not entirely consumed");
  869. return (size_t)((BYTE*)dst - (BYTE*)dststart);
  870. }
  871. size_t ZSTD_decompress_usingDict(ZSTD_DCtx* dctx,
  872. void* dst, size_t dstCapacity,
  873. const void* src, size_t srcSize,
  874. const void* dict, size_t dictSize)
  875. {
  876. return ZSTD_decompressMultiFrame(dctx, dst, dstCapacity, src, srcSize, dict, dictSize, NULL);
  877. }
  878. static ZSTD_DDict const* ZSTD_getDDict(ZSTD_DCtx* dctx)
  879. {
  880. switch (dctx->dictUses) {
  881. default:
  882. assert(0 /* Impossible */);
  883. ZSTD_FALLTHROUGH;
  884. case ZSTD_dont_use:
  885. ZSTD_clearDict(dctx);
  886. return NULL;
  887. case ZSTD_use_indefinitely:
  888. return dctx->ddict;
  889. case ZSTD_use_once:
  890. dctx->dictUses = ZSTD_dont_use;
  891. return dctx->ddict;
  892. }
  893. }
  894. size_t ZSTD_decompressDCtx(ZSTD_DCtx* dctx, void* dst, size_t dstCapacity, const void* src, size_t srcSize)
  895. {
  896. return ZSTD_decompress_usingDDict(dctx, dst, dstCapacity, src, srcSize, ZSTD_getDDict(dctx));
  897. }
  898. size_t ZSTD_decompress(void* dst, size_t dstCapacity, const void* src, size_t srcSize)
  899. {
  900. #if defined(ZSTD_HEAPMODE) && (ZSTD_HEAPMODE>=1)
  901. size_t regenSize;
  902. ZSTD_DCtx* const dctx = ZSTD_createDCtx_internal(ZSTD_defaultCMem);
  903. RETURN_ERROR_IF(dctx==NULL, memory_allocation, "NULL pointer!");
  904. regenSize = ZSTD_decompressDCtx(dctx, dst, dstCapacity, src, srcSize);
  905. ZSTD_freeDCtx(dctx);
  906. return regenSize;
  907. #else /* stack mode */
  908. ZSTD_DCtx dctx;
  909. ZSTD_initDCtx_internal(&dctx);
  910. return ZSTD_decompressDCtx(&dctx, dst, dstCapacity, src, srcSize);
  911. #endif
  912. }
  913. /*-**************************************
  914. * Advanced Streaming Decompression API
  915. * Bufferless and synchronous
  916. ****************************************/
  917. size_t ZSTD_nextSrcSizeToDecompress(ZSTD_DCtx* dctx) { return dctx->expected; }
  918. /*
  919. * Similar to ZSTD_nextSrcSizeToDecompress(), but when a block input can be streamed,
  920. * we allow taking a partial block as the input. Currently only raw uncompressed blocks can
  921. * be streamed.
  922. *
  923. * For blocks that can be streamed, this allows us to reduce the latency until we produce
  924. * output, and avoid copying the input.
  925. *
  926. * @param inputSize - The total amount of input that the caller currently has.
  927. */
  928. static size_t ZSTD_nextSrcSizeToDecompressWithInputSize(ZSTD_DCtx* dctx, size_t inputSize) {
  929. if (!(dctx->stage == ZSTDds_decompressBlock || dctx->stage == ZSTDds_decompressLastBlock))
  930. return dctx->expected;
  931. if (dctx->bType != bt_raw)
  932. return dctx->expected;
  933. return BOUNDED(1, inputSize, dctx->expected);
  934. }
  935. ZSTD_nextInputType_e ZSTD_nextInputType(ZSTD_DCtx* dctx) {
  936. switch(dctx->stage)
  937. {
  938. default: /* should not happen */
  939. assert(0);
  940. ZSTD_FALLTHROUGH;
  941. case ZSTDds_getFrameHeaderSize:
  942. ZSTD_FALLTHROUGH;
  943. case ZSTDds_decodeFrameHeader:
  944. return ZSTDnit_frameHeader;
  945. case ZSTDds_decodeBlockHeader:
  946. return ZSTDnit_blockHeader;
  947. case ZSTDds_decompressBlock:
  948. return ZSTDnit_block;
  949. case ZSTDds_decompressLastBlock:
  950. return ZSTDnit_lastBlock;
  951. case ZSTDds_checkChecksum:
  952. return ZSTDnit_checksum;
  953. case ZSTDds_decodeSkippableHeader:
  954. ZSTD_FALLTHROUGH;
  955. case ZSTDds_skipFrame:
  956. return ZSTDnit_skippableFrame;
  957. }
  958. }
  959. static int ZSTD_isSkipFrame(ZSTD_DCtx* dctx) { return dctx->stage == ZSTDds_skipFrame; }
  960. /* ZSTD_decompressContinue() :
  961. * srcSize : must be the exact nb of bytes expected (see ZSTD_nextSrcSizeToDecompress())
  962. * @return : nb of bytes generated into `dst` (necessarily <= `dstCapacity)
  963. * or an error code, which can be tested using ZSTD_isError() */
  964. size_t ZSTD_decompressContinue(ZSTD_DCtx* dctx, void* dst, size_t dstCapacity, const void* src, size_t srcSize)
  965. {
  966. DEBUGLOG(5, "ZSTD_decompressContinue (srcSize:%u)", (unsigned)srcSize);
  967. /* Sanity check */
  968. RETURN_ERROR_IF(srcSize != ZSTD_nextSrcSizeToDecompressWithInputSize(dctx, srcSize), srcSize_wrong, "not allowed");
  969. ZSTD_checkContinuity(dctx, dst, dstCapacity);
  970. dctx->processedCSize += srcSize;
  971. switch (dctx->stage)
  972. {
  973. case ZSTDds_getFrameHeaderSize :
  974. assert(src != NULL);
  975. if (dctx->format == ZSTD_f_zstd1) { /* allows header */
  976. assert(srcSize >= ZSTD_FRAMEIDSIZE); /* to read skippable magic number */
  977. if ((MEM_readLE32(src) & ZSTD_MAGIC_SKIPPABLE_MASK) == ZSTD_MAGIC_SKIPPABLE_START) { /* skippable frame */
  978. ZSTD_memcpy(dctx->headerBuffer, src, srcSize);
  979. dctx->expected = ZSTD_SKIPPABLEHEADERSIZE - srcSize; /* remaining to load to get full skippable frame header */
  980. dctx->stage = ZSTDds_decodeSkippableHeader;
  981. return 0;
  982. } }
  983. dctx->headerSize = ZSTD_frameHeaderSize_internal(src, srcSize, dctx->format);
  984. if (ZSTD_isError(dctx->headerSize)) return dctx->headerSize;
  985. ZSTD_memcpy(dctx->headerBuffer, src, srcSize);
  986. dctx->expected = dctx->headerSize - srcSize;
  987. dctx->stage = ZSTDds_decodeFrameHeader;
  988. return 0;
  989. case ZSTDds_decodeFrameHeader:
  990. assert(src != NULL);
  991. ZSTD_memcpy(dctx->headerBuffer + (dctx->headerSize - srcSize), src, srcSize);
  992. FORWARD_IF_ERROR(ZSTD_decodeFrameHeader(dctx, dctx->headerBuffer, dctx->headerSize), "");
  993. dctx->expected = ZSTD_blockHeaderSize;
  994. dctx->stage = ZSTDds_decodeBlockHeader;
  995. return 0;
  996. case ZSTDds_decodeBlockHeader:
  997. { blockProperties_t bp;
  998. size_t const cBlockSize = ZSTD_getcBlockSize(src, ZSTD_blockHeaderSize, &bp);
  999. if (ZSTD_isError(cBlockSize)) return cBlockSize;
  1000. RETURN_ERROR_IF(cBlockSize > dctx->fParams.blockSizeMax, corruption_detected, "Block Size Exceeds Maximum");
  1001. dctx->expected = cBlockSize;
  1002. dctx->bType = bp.blockType;
  1003. dctx->rleSize = bp.origSize;
  1004. if (cBlockSize) {
  1005. dctx->stage = bp.lastBlock ? ZSTDds_decompressLastBlock : ZSTDds_decompressBlock;
  1006. return 0;
  1007. }
  1008. /* empty block */
  1009. if (bp.lastBlock) {
  1010. if (dctx->fParams.checksumFlag) {
  1011. dctx->expected = 4;
  1012. dctx->stage = ZSTDds_checkChecksum;
  1013. } else {
  1014. dctx->expected = 0; /* end of frame */
  1015. dctx->stage = ZSTDds_getFrameHeaderSize;
  1016. }
  1017. } else {
  1018. dctx->expected = ZSTD_blockHeaderSize; /* jump to next header */
  1019. dctx->stage = ZSTDds_decodeBlockHeader;
  1020. }
  1021. return 0;
  1022. }
  1023. case ZSTDds_decompressLastBlock:
  1024. case ZSTDds_decompressBlock:
  1025. DEBUGLOG(5, "ZSTD_decompressContinue: case ZSTDds_decompressBlock");
  1026. { size_t rSize;
  1027. switch(dctx->bType)
  1028. {
  1029. case bt_compressed:
  1030. DEBUGLOG(5, "ZSTD_decompressContinue: case bt_compressed");
  1031. rSize = ZSTD_decompressBlock_internal(dctx, dst, dstCapacity, src, srcSize, /* frame */ 1, is_streaming);
  1032. dctx->expected = 0; /* Streaming not supported */
  1033. break;
  1034. case bt_raw :
  1035. assert(srcSize <= dctx->expected);
  1036. rSize = ZSTD_copyRawBlock(dst, dstCapacity, src, srcSize);
  1037. FORWARD_IF_ERROR(rSize, "ZSTD_copyRawBlock failed");
  1038. assert(rSize == srcSize);
  1039. dctx->expected -= rSize;
  1040. break;
  1041. case bt_rle :
  1042. rSize = ZSTD_setRleBlock(dst, dstCapacity, *(const BYTE*)src, dctx->rleSize);
  1043. dctx->expected = 0; /* Streaming not supported */
  1044. break;
  1045. case bt_reserved : /* should never happen */
  1046. default:
  1047. RETURN_ERROR(corruption_detected, "invalid block type");
  1048. }
  1049. FORWARD_IF_ERROR(rSize, "");
  1050. RETURN_ERROR_IF(rSize > dctx->fParams.blockSizeMax, corruption_detected, "Decompressed Block Size Exceeds Maximum");
  1051. DEBUGLOG(5, "ZSTD_decompressContinue: decoded size from block : %u", (unsigned)rSize);
  1052. dctx->decodedSize += rSize;
  1053. if (dctx->validateChecksum) xxh64_update(&dctx->xxhState, dst, rSize);
  1054. dctx->previousDstEnd = (char*)dst + rSize;
  1055. /* Stay on the same stage until we are finished streaming the block. */
  1056. if (dctx->expected > 0) {
  1057. return rSize;
  1058. }
  1059. if (dctx->stage == ZSTDds_decompressLastBlock) { /* end of frame */
  1060. DEBUGLOG(4, "ZSTD_decompressContinue: decoded size from frame : %u", (unsigned)dctx->decodedSize);
  1061. RETURN_ERROR_IF(
  1062. dctx->fParams.frameContentSize != ZSTD_CONTENTSIZE_UNKNOWN
  1063. && dctx->decodedSize != dctx->fParams.frameContentSize,
  1064. corruption_detected, "");
  1065. if (dctx->fParams.checksumFlag) { /* another round for frame checksum */
  1066. dctx->expected = 4;
  1067. dctx->stage = ZSTDds_checkChecksum;
  1068. } else {
  1069. ZSTD_DCtx_trace_end(dctx, dctx->decodedSize, dctx->processedCSize, /* streaming */ 1);
  1070. dctx->expected = 0; /* ends here */
  1071. dctx->stage = ZSTDds_getFrameHeaderSize;
  1072. }
  1073. } else {
  1074. dctx->stage = ZSTDds_decodeBlockHeader;
  1075. dctx->expected = ZSTD_blockHeaderSize;
  1076. }
  1077. return rSize;
  1078. }
  1079. case ZSTDds_checkChecksum:
  1080. assert(srcSize == 4); /* guaranteed by dctx->expected */
  1081. {
  1082. if (dctx->validateChecksum) {
  1083. U32 const h32 = (U32)xxh64_digest(&dctx->xxhState);
  1084. U32 const check32 = MEM_readLE32(src);
  1085. DEBUGLOG(4, "ZSTD_decompressContinue: checksum : calculated %08X :: %08X read", (unsigned)h32, (unsigned)check32);
  1086. RETURN_ERROR_IF(check32 != h32, checksum_wrong, "");
  1087. }
  1088. ZSTD_DCtx_trace_end(dctx, dctx->decodedSize, dctx->processedCSize, /* streaming */ 1);
  1089. dctx->expected = 0;
  1090. dctx->stage = ZSTDds_getFrameHeaderSize;
  1091. return 0;
  1092. }
  1093. case ZSTDds_decodeSkippableHeader:
  1094. assert(src != NULL);
  1095. assert(srcSize <= ZSTD_SKIPPABLEHEADERSIZE);
  1096. ZSTD_memcpy(dctx->headerBuffer + (ZSTD_SKIPPABLEHEADERSIZE - srcSize), src, srcSize); /* complete skippable header */
  1097. dctx->expected = MEM_readLE32(dctx->headerBuffer + ZSTD_FRAMEIDSIZE); /* note : dctx->expected can grow seriously large, beyond local buffer size */
  1098. dctx->stage = ZSTDds_skipFrame;
  1099. return 0;
  1100. case ZSTDds_skipFrame:
  1101. dctx->expected = 0;
  1102. dctx->stage = ZSTDds_getFrameHeaderSize;
  1103. return 0;
  1104. default:
  1105. assert(0); /* impossible */
  1106. RETURN_ERROR(GENERIC, "impossible to reach"); /* some compiler require default to do something */
  1107. }
  1108. }
  1109. static size_t ZSTD_refDictContent(ZSTD_DCtx* dctx, const void* dict, size_t dictSize)
  1110. {
  1111. dctx->dictEnd = dctx->previousDstEnd;
  1112. dctx->virtualStart = (const char*)dict - ((const char*)(dctx->previousDstEnd) - (const char*)(dctx->prefixStart));
  1113. dctx->prefixStart = dict;
  1114. dctx->previousDstEnd = (const char*)dict + dictSize;
  1115. #ifdef FUZZING_BUILD_MODE_UNSAFE_FOR_PRODUCTION
  1116. dctx->dictContentBeginForFuzzing = dctx->prefixStart;
  1117. dctx->dictContentEndForFuzzing = dctx->previousDstEnd;
  1118. #endif
  1119. return 0;
  1120. }
  1121. /*! ZSTD_loadDEntropy() :
  1122. * dict : must point at beginning of a valid zstd dictionary.
  1123. * @return : size of entropy tables read */
  1124. size_t
  1125. ZSTD_loadDEntropy(ZSTD_entropyDTables_t* entropy,
  1126. const void* const dict, size_t const dictSize)
  1127. {
  1128. const BYTE* dictPtr = (const BYTE*)dict;
  1129. const BYTE* const dictEnd = dictPtr + dictSize;
  1130. RETURN_ERROR_IF(dictSize <= 8, dictionary_corrupted, "dict is too small");
  1131. assert(MEM_readLE32(dict) == ZSTD_MAGIC_DICTIONARY); /* dict must be valid */
  1132. dictPtr += 8; /* skip header = magic + dictID */
  1133. ZSTD_STATIC_ASSERT(offsetof(ZSTD_entropyDTables_t, OFTable) == offsetof(ZSTD_entropyDTables_t, LLTable) + sizeof(entropy->LLTable));
  1134. ZSTD_STATIC_ASSERT(offsetof(ZSTD_entropyDTables_t, MLTable) == offsetof(ZSTD_entropyDTables_t, OFTable) + sizeof(entropy->OFTable));
  1135. ZSTD_STATIC_ASSERT(sizeof(entropy->LLTable) + sizeof(entropy->OFTable) + sizeof(entropy->MLTable) >= HUF_DECOMPRESS_WORKSPACE_SIZE);
  1136. { void* const workspace = &entropy->LLTable; /* use fse tables as temporary workspace; implies fse tables are grouped together */
  1137. size_t const workspaceSize = sizeof(entropy->LLTable) + sizeof(entropy->OFTable) + sizeof(entropy->MLTable);
  1138. #ifdef HUF_FORCE_DECOMPRESS_X1
  1139. /* in minimal huffman, we always use X1 variants */
  1140. size_t const hSize = HUF_readDTableX1_wksp(entropy->hufTable,
  1141. dictPtr, dictEnd - dictPtr,
  1142. workspace, workspaceSize);
  1143. #else
  1144. size_t const hSize = HUF_readDTableX2_wksp(entropy->hufTable,
  1145. dictPtr, (size_t)(dictEnd - dictPtr),
  1146. workspace, workspaceSize);
  1147. #endif
  1148. RETURN_ERROR_IF(HUF_isError(hSize), dictionary_corrupted, "");
  1149. dictPtr += hSize;
  1150. }
  1151. { short offcodeNCount[MaxOff+1];
  1152. unsigned offcodeMaxValue = MaxOff, offcodeLog;
  1153. size_t const offcodeHeaderSize = FSE_readNCount(offcodeNCount, &offcodeMaxValue, &offcodeLog, dictPtr, (size_t)(dictEnd-dictPtr));
  1154. RETURN_ERROR_IF(FSE_isError(offcodeHeaderSize), dictionary_corrupted, "");
  1155. RETURN_ERROR_IF(offcodeMaxValue > MaxOff, dictionary_corrupted, "");
  1156. RETURN_ERROR_IF(offcodeLog > OffFSELog, dictionary_corrupted, "");
  1157. ZSTD_buildFSETable( entropy->OFTable,
  1158. offcodeNCount, offcodeMaxValue,
  1159. OF_base, OF_bits,
  1160. offcodeLog,
  1161. entropy->workspace, sizeof(entropy->workspace),
  1162. /* bmi2 */0);
  1163. dictPtr += offcodeHeaderSize;
  1164. }
  1165. { short matchlengthNCount[MaxML+1];
  1166. unsigned matchlengthMaxValue = MaxML, matchlengthLog;
  1167. size_t const matchlengthHeaderSize = FSE_readNCount(matchlengthNCount, &matchlengthMaxValue, &matchlengthLog, dictPtr, (size_t)(dictEnd-dictPtr));
  1168. RETURN_ERROR_IF(FSE_isError(matchlengthHeaderSize), dictionary_corrupted, "");
  1169. RETURN_ERROR_IF(matchlengthMaxValue > MaxML, dictionary_corrupted, "");
  1170. RETURN_ERROR_IF(matchlengthLog > MLFSELog, dictionary_corrupted, "");
  1171. ZSTD_buildFSETable( entropy->MLTable,
  1172. matchlengthNCount, matchlengthMaxValue,
  1173. ML_base, ML_bits,
  1174. matchlengthLog,
  1175. entropy->workspace, sizeof(entropy->workspace),
  1176. /* bmi2 */ 0);
  1177. dictPtr += matchlengthHeaderSize;
  1178. }
  1179. { short litlengthNCount[MaxLL+1];
  1180. unsigned litlengthMaxValue = MaxLL, litlengthLog;
  1181. size_t const litlengthHeaderSize = FSE_readNCount(litlengthNCount, &litlengthMaxValue, &litlengthLog, dictPtr, (size_t)(dictEnd-dictPtr));
  1182. RETURN_ERROR_IF(FSE_isError(litlengthHeaderSize), dictionary_corrupted, "");
  1183. RETURN_ERROR_IF(litlengthMaxValue > MaxLL, dictionary_corrupted, "");
  1184. RETURN_ERROR_IF(litlengthLog > LLFSELog, dictionary_corrupted, "");
  1185. ZSTD_buildFSETable( entropy->LLTable,
  1186. litlengthNCount, litlengthMaxValue,
  1187. LL_base, LL_bits,
  1188. litlengthLog,
  1189. entropy->workspace, sizeof(entropy->workspace),
  1190. /* bmi2 */ 0);
  1191. dictPtr += litlengthHeaderSize;
  1192. }
  1193. RETURN_ERROR_IF(dictPtr+12 > dictEnd, dictionary_corrupted, "");
  1194. { int i;
  1195. size_t const dictContentSize = (size_t)(dictEnd - (dictPtr+12));
  1196. for (i=0; i<3; i++) {
  1197. U32 const rep = MEM_readLE32(dictPtr); dictPtr += 4;
  1198. RETURN_ERROR_IF(rep==0 || rep > dictContentSize,
  1199. dictionary_corrupted, "");
  1200. entropy->rep[i] = rep;
  1201. } }
  1202. return (size_t)(dictPtr - (const BYTE*)dict);
  1203. }
  1204. static size_t ZSTD_decompress_insertDictionary(ZSTD_DCtx* dctx, const void* dict, size_t dictSize)
  1205. {
  1206. if (dictSize < 8) return ZSTD_refDictContent(dctx, dict, dictSize);
  1207. { U32 const magic = MEM_readLE32(dict);
  1208. if (magic != ZSTD_MAGIC_DICTIONARY) {
  1209. return ZSTD_refDictContent(dctx, dict, dictSize); /* pure content mode */
  1210. } }
  1211. dctx->dictID = MEM_readLE32((const char*)dict + ZSTD_FRAMEIDSIZE);
  1212. /* load entropy tables */
  1213. { size_t const eSize = ZSTD_loadDEntropy(&dctx->entropy, dict, dictSize);
  1214. RETURN_ERROR_IF(ZSTD_isError(eSize), dictionary_corrupted, "");
  1215. dict = (const char*)dict + eSize;
  1216. dictSize -= eSize;
  1217. }
  1218. dctx->litEntropy = dctx->fseEntropy = 1;
  1219. /* reference dictionary content */
  1220. return ZSTD_refDictContent(dctx, dict, dictSize);
  1221. }
  1222. size_t ZSTD_decompressBegin(ZSTD_DCtx* dctx)
  1223. {
  1224. assert(dctx != NULL);
  1225. dctx->expected = ZSTD_startingInputLength(dctx->format); /* dctx->format must be properly set */
  1226. dctx->stage = ZSTDds_getFrameHeaderSize;
  1227. dctx->processedCSize = 0;
  1228. dctx->decodedSize = 0;
  1229. dctx->previousDstEnd = NULL;
  1230. dctx->prefixStart = NULL;
  1231. dctx->virtualStart = NULL;
  1232. dctx->dictEnd = NULL;
  1233. dctx->entropy.hufTable[0] = (HUF_DTable)((HufLog)*0x1000001); /* cover both little and big endian */
  1234. dctx->litEntropy = dctx->fseEntropy = 0;
  1235. dctx->dictID = 0;
  1236. dctx->bType = bt_reserved;
  1237. ZSTD_STATIC_ASSERT(sizeof(dctx->entropy.rep) == sizeof(repStartValue));
  1238. ZSTD_memcpy(dctx->entropy.rep, repStartValue, sizeof(repStartValue)); /* initial repcodes */
  1239. dctx->LLTptr = dctx->entropy.LLTable;
  1240. dctx->MLTptr = dctx->entropy.MLTable;
  1241. dctx->OFTptr = dctx->entropy.OFTable;
  1242. dctx->HUFptr = dctx->entropy.hufTable;
  1243. return 0;
  1244. }
  1245. size_t ZSTD_decompressBegin_usingDict(ZSTD_DCtx* dctx, const void* dict, size_t dictSize)
  1246. {
  1247. FORWARD_IF_ERROR( ZSTD_decompressBegin(dctx) , "");
  1248. if (dict && dictSize)
  1249. RETURN_ERROR_IF(
  1250. ZSTD_isError(ZSTD_decompress_insertDictionary(dctx, dict, dictSize)),
  1251. dictionary_corrupted, "");
  1252. return 0;
  1253. }
  1254. /* ====== ZSTD_DDict ====== */
  1255. size_t ZSTD_decompressBegin_usingDDict(ZSTD_DCtx* dctx, const ZSTD_DDict* ddict)
  1256. {
  1257. DEBUGLOG(4, "ZSTD_decompressBegin_usingDDict");
  1258. assert(dctx != NULL);
  1259. if (ddict) {
  1260. const char* const dictStart = (const char*)ZSTD_DDict_dictContent(ddict);
  1261. size_t const dictSize = ZSTD_DDict_dictSize(ddict);
  1262. const void* const dictEnd = dictStart + dictSize;
  1263. dctx->ddictIsCold = (dctx->dictEnd != dictEnd);
  1264. DEBUGLOG(4, "DDict is %s",
  1265. dctx->ddictIsCold ? "~cold~" : "hot!");
  1266. }
  1267. FORWARD_IF_ERROR( ZSTD_decompressBegin(dctx) , "");
  1268. if (ddict) { /* NULL ddict is equivalent to no dictionary */
  1269. ZSTD_copyDDictParameters(dctx, ddict);
  1270. }
  1271. return 0;
  1272. }
  1273. /*! ZSTD_getDictID_fromDict() :
  1274. * Provides the dictID stored within dictionary.
  1275. * if @return == 0, the dictionary is not conformant with Zstandard specification.
  1276. * It can still be loaded, but as a content-only dictionary. */
  1277. unsigned ZSTD_getDictID_fromDict(const void* dict, size_t dictSize)
  1278. {
  1279. if (dictSize < 8) return 0;
  1280. if (MEM_readLE32(dict) != ZSTD_MAGIC_DICTIONARY) return 0;
  1281. return MEM_readLE32((const char*)dict + ZSTD_FRAMEIDSIZE);
  1282. }
  1283. /*! ZSTD_getDictID_fromFrame() :
  1284. * Provides the dictID required to decompress frame stored within `src`.
  1285. * If @return == 0, the dictID could not be decoded.
  1286. * This could for one of the following reasons :
  1287. * - The frame does not require a dictionary (most common case).
  1288. * - The frame was built with dictID intentionally removed.
  1289. * Needed dictionary is a hidden information.
  1290. * Note : this use case also happens when using a non-conformant dictionary.
  1291. * - `srcSize` is too small, and as a result, frame header could not be decoded.
  1292. * Note : possible if `srcSize < ZSTD_FRAMEHEADERSIZE_MAX`.
  1293. * - This is not a Zstandard frame.
  1294. * When identifying the exact failure cause, it's possible to use
  1295. * ZSTD_getFrameHeader(), which will provide a more precise error code. */
  1296. unsigned ZSTD_getDictID_fromFrame(const void* src, size_t srcSize)
  1297. {
  1298. ZSTD_frameHeader zfp = { 0, 0, 0, ZSTD_frame, 0, 0, 0 };
  1299. size_t const hError = ZSTD_getFrameHeader(&zfp, src, srcSize);
  1300. if (ZSTD_isError(hError)) return 0;
  1301. return zfp.dictID;
  1302. }
  1303. /*! ZSTD_decompress_usingDDict() :
  1304. * Decompression using a pre-digested Dictionary
  1305. * Use dictionary without significant overhead. */
  1306. size_t ZSTD_decompress_usingDDict(ZSTD_DCtx* dctx,
  1307. void* dst, size_t dstCapacity,
  1308. const void* src, size_t srcSize,
  1309. const ZSTD_DDict* ddict)
  1310. {
  1311. /* pass content and size in case legacy frames are encountered */
  1312. return ZSTD_decompressMultiFrame(dctx, dst, dstCapacity, src, srcSize,
  1313. NULL, 0,
  1314. ddict);
  1315. }
  1316. /*=====================================
  1317. * Streaming decompression
  1318. *====================================*/
  1319. ZSTD_DStream* ZSTD_createDStream(void)
  1320. {
  1321. DEBUGLOG(3, "ZSTD_createDStream");
  1322. return ZSTD_createDCtx_internal(ZSTD_defaultCMem);
  1323. }
  1324. ZSTD_DStream* ZSTD_initStaticDStream(void *workspace, size_t workspaceSize)
  1325. {
  1326. return ZSTD_initStaticDCtx(workspace, workspaceSize);
  1327. }
  1328. ZSTD_DStream* ZSTD_createDStream_advanced(ZSTD_customMem customMem)
  1329. {
  1330. return ZSTD_createDCtx_internal(customMem);
  1331. }
  1332. size_t ZSTD_freeDStream(ZSTD_DStream* zds)
  1333. {
  1334. return ZSTD_freeDCtx(zds);
  1335. }
  1336. /* *** Initialization *** */
  1337. size_t ZSTD_DStreamInSize(void) { return ZSTD_BLOCKSIZE_MAX + ZSTD_blockHeaderSize; }
  1338. size_t ZSTD_DStreamOutSize(void) { return ZSTD_BLOCKSIZE_MAX; }
  1339. size_t ZSTD_DCtx_loadDictionary_advanced(ZSTD_DCtx* dctx,
  1340. const void* dict, size_t dictSize,
  1341. ZSTD_dictLoadMethod_e dictLoadMethod,
  1342. ZSTD_dictContentType_e dictContentType)
  1343. {
  1344. RETURN_ERROR_IF(dctx->streamStage != zdss_init, stage_wrong, "");
  1345. ZSTD_clearDict(dctx);
  1346. if (dict && dictSize != 0) {
  1347. dctx->ddictLocal = ZSTD_createDDict_advanced(dict, dictSize, dictLoadMethod, dictContentType, dctx->customMem);
  1348. RETURN_ERROR_IF(dctx->ddictLocal == NULL, memory_allocation, "NULL pointer!");
  1349. dctx->ddict = dctx->ddictLocal;
  1350. dctx->dictUses = ZSTD_use_indefinitely;
  1351. }
  1352. return 0;
  1353. }
  1354. size_t ZSTD_DCtx_loadDictionary_byReference(ZSTD_DCtx* dctx, const void* dict, size_t dictSize)
  1355. {
  1356. return ZSTD_DCtx_loadDictionary_advanced(dctx, dict, dictSize, ZSTD_dlm_byRef, ZSTD_dct_auto);
  1357. }
  1358. size_t ZSTD_DCtx_loadDictionary(ZSTD_DCtx* dctx, const void* dict, size_t dictSize)
  1359. {
  1360. return ZSTD_DCtx_loadDictionary_advanced(dctx, dict, dictSize, ZSTD_dlm_byCopy, ZSTD_dct_auto);
  1361. }
  1362. size_t ZSTD_DCtx_refPrefix_advanced(ZSTD_DCtx* dctx, const void* prefix, size_t prefixSize, ZSTD_dictContentType_e dictContentType)
  1363. {
  1364. FORWARD_IF_ERROR(ZSTD_DCtx_loadDictionary_advanced(dctx, prefix, prefixSize, ZSTD_dlm_byRef, dictContentType), "");
  1365. dctx->dictUses = ZSTD_use_once;
  1366. return 0;
  1367. }
  1368. size_t ZSTD_DCtx_refPrefix(ZSTD_DCtx* dctx, const void* prefix, size_t prefixSize)
  1369. {
  1370. return ZSTD_DCtx_refPrefix_advanced(dctx, prefix, prefixSize, ZSTD_dct_rawContent);
  1371. }
  1372. /* ZSTD_initDStream_usingDict() :
  1373. * return : expected size, aka ZSTD_startingInputLength().
  1374. * this function cannot fail */
  1375. size_t ZSTD_initDStream_usingDict(ZSTD_DStream* zds, const void* dict, size_t dictSize)
  1376. {
  1377. DEBUGLOG(4, "ZSTD_initDStream_usingDict");
  1378. FORWARD_IF_ERROR( ZSTD_DCtx_reset(zds, ZSTD_reset_session_only) , "");
  1379. FORWARD_IF_ERROR( ZSTD_DCtx_loadDictionary(zds, dict, dictSize) , "");
  1380. return ZSTD_startingInputLength(zds->format);
  1381. }
  1382. /* note : this variant can't fail */
  1383. size_t ZSTD_initDStream(ZSTD_DStream* zds)
  1384. {
  1385. DEBUGLOG(4, "ZSTD_initDStream");
  1386. return ZSTD_initDStream_usingDDict(zds, NULL);
  1387. }
  1388. /* ZSTD_initDStream_usingDDict() :
  1389. * ddict will just be referenced, and must outlive decompression session
  1390. * this function cannot fail */
  1391. size_t ZSTD_initDStream_usingDDict(ZSTD_DStream* dctx, const ZSTD_DDict* ddict)
  1392. {
  1393. FORWARD_IF_ERROR( ZSTD_DCtx_reset(dctx, ZSTD_reset_session_only) , "");
  1394. FORWARD_IF_ERROR( ZSTD_DCtx_refDDict(dctx, ddict) , "");
  1395. return ZSTD_startingInputLength(dctx->format);
  1396. }
  1397. /* ZSTD_resetDStream() :
  1398. * return : expected size, aka ZSTD_startingInputLength().
  1399. * this function cannot fail */
  1400. size_t ZSTD_resetDStream(ZSTD_DStream* dctx)
  1401. {
  1402. FORWARD_IF_ERROR(ZSTD_DCtx_reset(dctx, ZSTD_reset_session_only), "");
  1403. return ZSTD_startingInputLength(dctx->format);
  1404. }
  1405. size_t ZSTD_DCtx_refDDict(ZSTD_DCtx* dctx, const ZSTD_DDict* ddict)
  1406. {
  1407. RETURN_ERROR_IF(dctx->streamStage != zdss_init, stage_wrong, "");
  1408. ZSTD_clearDict(dctx);
  1409. if (ddict) {
  1410. dctx->ddict = ddict;
  1411. dctx->dictUses = ZSTD_use_indefinitely;
  1412. if (dctx->refMultipleDDicts == ZSTD_rmd_refMultipleDDicts) {
  1413. if (dctx->ddictSet == NULL) {
  1414. dctx->ddictSet = ZSTD_createDDictHashSet(dctx->customMem);
  1415. if (!dctx->ddictSet) {
  1416. RETURN_ERROR(memory_allocation, "Failed to allocate memory for hash set!");
  1417. }
  1418. }
  1419. assert(!dctx->staticSize); /* Impossible: ddictSet cannot have been allocated if static dctx */
  1420. FORWARD_IF_ERROR(ZSTD_DDictHashSet_addDDict(dctx->ddictSet, ddict, dctx->customMem), "");
  1421. }
  1422. }
  1423. return 0;
  1424. }
  1425. /* ZSTD_DCtx_setMaxWindowSize() :
  1426. * note : no direct equivalence in ZSTD_DCtx_setParameter,
  1427. * since this version sets windowSize, and the other sets windowLog */
  1428. size_t ZSTD_DCtx_setMaxWindowSize(ZSTD_DCtx* dctx, size_t maxWindowSize)
  1429. {
  1430. ZSTD_bounds const bounds = ZSTD_dParam_getBounds(ZSTD_d_windowLogMax);
  1431. size_t const min = (size_t)1 << bounds.lowerBound;
  1432. size_t const max = (size_t)1 << bounds.upperBound;
  1433. RETURN_ERROR_IF(dctx->streamStage != zdss_init, stage_wrong, "");
  1434. RETURN_ERROR_IF(maxWindowSize < min, parameter_outOfBound, "");
  1435. RETURN_ERROR_IF(maxWindowSize > max, parameter_outOfBound, "");
  1436. dctx->maxWindowSize = maxWindowSize;
  1437. return 0;
  1438. }
  1439. size_t ZSTD_DCtx_setFormat(ZSTD_DCtx* dctx, ZSTD_format_e format)
  1440. {
  1441. return ZSTD_DCtx_setParameter(dctx, ZSTD_d_format, (int)format);
  1442. }
  1443. ZSTD_bounds ZSTD_dParam_getBounds(ZSTD_dParameter dParam)
  1444. {
  1445. ZSTD_bounds bounds = { 0, 0, 0 };
  1446. switch(dParam) {
  1447. case ZSTD_d_windowLogMax:
  1448. bounds.lowerBound = ZSTD_WINDOWLOG_ABSOLUTEMIN;
  1449. bounds.upperBound = ZSTD_WINDOWLOG_MAX;
  1450. return bounds;
  1451. case ZSTD_d_format:
  1452. bounds.lowerBound = (int)ZSTD_f_zstd1;
  1453. bounds.upperBound = (int)ZSTD_f_zstd1_magicless;
  1454. ZSTD_STATIC_ASSERT(ZSTD_f_zstd1 < ZSTD_f_zstd1_magicless);
  1455. return bounds;
  1456. case ZSTD_d_stableOutBuffer:
  1457. bounds.lowerBound = (int)ZSTD_bm_buffered;
  1458. bounds.upperBound = (int)ZSTD_bm_stable;
  1459. return bounds;
  1460. case ZSTD_d_forceIgnoreChecksum:
  1461. bounds.lowerBound = (int)ZSTD_d_validateChecksum;
  1462. bounds.upperBound = (int)ZSTD_d_ignoreChecksum;
  1463. return bounds;
  1464. case ZSTD_d_refMultipleDDicts:
  1465. bounds.lowerBound = (int)ZSTD_rmd_refSingleDDict;
  1466. bounds.upperBound = (int)ZSTD_rmd_refMultipleDDicts;
  1467. return bounds;
  1468. default:;
  1469. }
  1470. bounds.error = ERROR(parameter_unsupported);
  1471. return bounds;
  1472. }
  1473. /* ZSTD_dParam_withinBounds:
  1474. * @return 1 if value is within dParam bounds,
  1475. * 0 otherwise */
  1476. static int ZSTD_dParam_withinBounds(ZSTD_dParameter dParam, int value)
  1477. {
  1478. ZSTD_bounds const bounds = ZSTD_dParam_getBounds(dParam);
  1479. if (ZSTD_isError(bounds.error)) return 0;
  1480. if (value < bounds.lowerBound) return 0;
  1481. if (value > bounds.upperBound) return 0;
  1482. return 1;
  1483. }
  1484. #define CHECK_DBOUNDS(p,v) { \
  1485. RETURN_ERROR_IF(!ZSTD_dParam_withinBounds(p, v), parameter_outOfBound, ""); \
  1486. }
  1487. size_t ZSTD_DCtx_getParameter(ZSTD_DCtx* dctx, ZSTD_dParameter param, int* value)
  1488. {
  1489. switch (param) {
  1490. case ZSTD_d_windowLogMax:
  1491. *value = (int)ZSTD_highbit32((U32)dctx->maxWindowSize);
  1492. return 0;
  1493. case ZSTD_d_format:
  1494. *value = (int)dctx->format;
  1495. return 0;
  1496. case ZSTD_d_stableOutBuffer:
  1497. *value = (int)dctx->outBufferMode;
  1498. return 0;
  1499. case ZSTD_d_forceIgnoreChecksum:
  1500. *value = (int)dctx->forceIgnoreChecksum;
  1501. return 0;
  1502. case ZSTD_d_refMultipleDDicts:
  1503. *value = (int)dctx->refMultipleDDicts;
  1504. return 0;
  1505. default:;
  1506. }
  1507. RETURN_ERROR(parameter_unsupported, "");
  1508. }
  1509. size_t ZSTD_DCtx_setParameter(ZSTD_DCtx* dctx, ZSTD_dParameter dParam, int value)
  1510. {
  1511. RETURN_ERROR_IF(dctx->streamStage != zdss_init, stage_wrong, "");
  1512. switch(dParam) {
  1513. case ZSTD_d_windowLogMax:
  1514. if (value == 0) value = ZSTD_WINDOWLOG_LIMIT_DEFAULT;
  1515. CHECK_DBOUNDS(ZSTD_d_windowLogMax, value);
  1516. dctx->maxWindowSize = ((size_t)1) << value;
  1517. return 0;
  1518. case ZSTD_d_format:
  1519. CHECK_DBOUNDS(ZSTD_d_format, value);
  1520. dctx->format = (ZSTD_format_e)value;
  1521. return 0;
  1522. case ZSTD_d_stableOutBuffer:
  1523. CHECK_DBOUNDS(ZSTD_d_stableOutBuffer, value);
  1524. dctx->outBufferMode = (ZSTD_bufferMode_e)value;
  1525. return 0;
  1526. case ZSTD_d_forceIgnoreChecksum:
  1527. CHECK_DBOUNDS(ZSTD_d_forceIgnoreChecksum, value);
  1528. dctx->forceIgnoreChecksum = (ZSTD_forceIgnoreChecksum_e)value;
  1529. return 0;
  1530. case ZSTD_d_refMultipleDDicts:
  1531. CHECK_DBOUNDS(ZSTD_d_refMultipleDDicts, value);
  1532. if (dctx->staticSize != 0) {
  1533. RETURN_ERROR(parameter_unsupported, "Static dctx does not support multiple DDicts!");
  1534. }
  1535. dctx->refMultipleDDicts = (ZSTD_refMultipleDDicts_e)value;
  1536. return 0;
  1537. default:;
  1538. }
  1539. RETURN_ERROR(parameter_unsupported, "");
  1540. }
  1541. size_t ZSTD_DCtx_reset(ZSTD_DCtx* dctx, ZSTD_ResetDirective reset)
  1542. {
  1543. if ( (reset == ZSTD_reset_session_only)
  1544. || (reset == ZSTD_reset_session_and_parameters) ) {
  1545. dctx->streamStage = zdss_init;
  1546. dctx->noForwardProgress = 0;
  1547. }
  1548. if ( (reset == ZSTD_reset_parameters)
  1549. || (reset == ZSTD_reset_session_and_parameters) ) {
  1550. RETURN_ERROR_IF(dctx->streamStage != zdss_init, stage_wrong, "");
  1551. ZSTD_clearDict(dctx);
  1552. ZSTD_DCtx_resetParameters(dctx);
  1553. }
  1554. return 0;
  1555. }
  1556. size_t ZSTD_sizeof_DStream(const ZSTD_DStream* dctx)
  1557. {
  1558. return ZSTD_sizeof_DCtx(dctx);
  1559. }
  1560. size_t ZSTD_decodingBufferSize_min(unsigned long long windowSize, unsigned long long frameContentSize)
  1561. {
  1562. size_t const blockSize = (size_t) MIN(windowSize, ZSTD_BLOCKSIZE_MAX);
  1563. /* space is needed to store the litbuffer after the output of a given block without stomping the extDict of a previous run, as well as to cover both windows against wildcopy*/
  1564. unsigned long long const neededRBSize = windowSize + blockSize + ZSTD_BLOCKSIZE_MAX + (WILDCOPY_OVERLENGTH * 2);
  1565. unsigned long long const neededSize = MIN(frameContentSize, neededRBSize);
  1566. size_t const minRBSize = (size_t) neededSize;
  1567. RETURN_ERROR_IF((unsigned long long)minRBSize != neededSize,
  1568. frameParameter_windowTooLarge, "");
  1569. return minRBSize;
  1570. }
  1571. size_t ZSTD_estimateDStreamSize(size_t windowSize)
  1572. {
  1573. size_t const blockSize = MIN(windowSize, ZSTD_BLOCKSIZE_MAX);
  1574. size_t const inBuffSize = blockSize; /* no block can be larger */
  1575. size_t const outBuffSize = ZSTD_decodingBufferSize_min(windowSize, ZSTD_CONTENTSIZE_UNKNOWN);
  1576. return ZSTD_estimateDCtxSize() + inBuffSize + outBuffSize;
  1577. }
  1578. size_t ZSTD_estimateDStreamSize_fromFrame(const void* src, size_t srcSize)
  1579. {
  1580. U32 const windowSizeMax = 1U << ZSTD_WINDOWLOG_MAX; /* note : should be user-selectable, but requires an additional parameter (or a dctx) */
  1581. ZSTD_frameHeader zfh;
  1582. size_t const err = ZSTD_getFrameHeader(&zfh, src, srcSize);
  1583. if (ZSTD_isError(err)) return err;
  1584. RETURN_ERROR_IF(err>0, srcSize_wrong, "");
  1585. RETURN_ERROR_IF(zfh.windowSize > windowSizeMax,
  1586. frameParameter_windowTooLarge, "");
  1587. return ZSTD_estimateDStreamSize((size_t)zfh.windowSize);
  1588. }
  1589. /* ***** Decompression ***** */
  1590. static int ZSTD_DCtx_isOverflow(ZSTD_DStream* zds, size_t const neededInBuffSize, size_t const neededOutBuffSize)
  1591. {
  1592. return (zds->inBuffSize + zds->outBuffSize) >= (neededInBuffSize + neededOutBuffSize) * ZSTD_WORKSPACETOOLARGE_FACTOR;
  1593. }
  1594. static void ZSTD_DCtx_updateOversizedDuration(ZSTD_DStream* zds, size_t const neededInBuffSize, size_t const neededOutBuffSize)
  1595. {
  1596. if (ZSTD_DCtx_isOverflow(zds, neededInBuffSize, neededOutBuffSize))
  1597. zds->oversizedDuration++;
  1598. else
  1599. zds->oversizedDuration = 0;
  1600. }
  1601. static int ZSTD_DCtx_isOversizedTooLong(ZSTD_DStream* zds)
  1602. {
  1603. return zds->oversizedDuration >= ZSTD_WORKSPACETOOLARGE_MAXDURATION;
  1604. }
  1605. /* Checks that the output buffer hasn't changed if ZSTD_obm_stable is used. */
  1606. static size_t ZSTD_checkOutBuffer(ZSTD_DStream const* zds, ZSTD_outBuffer const* output)
  1607. {
  1608. ZSTD_outBuffer const expect = zds->expectedOutBuffer;
  1609. /* No requirement when ZSTD_obm_stable is not enabled. */
  1610. if (zds->outBufferMode != ZSTD_bm_stable)
  1611. return 0;
  1612. /* Any buffer is allowed in zdss_init, this must be the same for every other call until
  1613. * the context is reset.
  1614. */
  1615. if (zds->streamStage == zdss_init)
  1616. return 0;
  1617. /* The buffer must match our expectation exactly. */
  1618. if (expect.dst == output->dst && expect.pos == output->pos && expect.size == output->size)
  1619. return 0;
  1620. RETURN_ERROR(dstBuffer_wrong, "ZSTD_d_stableOutBuffer enabled but output differs!");
  1621. }
  1622. /* Calls ZSTD_decompressContinue() with the right parameters for ZSTD_decompressStream()
  1623. * and updates the stage and the output buffer state. This call is extracted so it can be
  1624. * used both when reading directly from the ZSTD_inBuffer, and in buffered input mode.
  1625. * NOTE: You must break after calling this function since the streamStage is modified.
  1626. */
  1627. static size_t ZSTD_decompressContinueStream(
  1628. ZSTD_DStream* zds, char** op, char* oend,
  1629. void const* src, size_t srcSize) {
  1630. int const isSkipFrame = ZSTD_isSkipFrame(zds);
  1631. if (zds->outBufferMode == ZSTD_bm_buffered) {
  1632. size_t const dstSize = isSkipFrame ? 0 : zds->outBuffSize - zds->outStart;
  1633. size_t const decodedSize = ZSTD_decompressContinue(zds,
  1634. zds->outBuff + zds->outStart, dstSize, src, srcSize);
  1635. FORWARD_IF_ERROR(decodedSize, "");
  1636. if (!decodedSize && !isSkipFrame) {
  1637. zds->streamStage = zdss_read;
  1638. } else {
  1639. zds->outEnd = zds->outStart + decodedSize;
  1640. zds->streamStage = zdss_flush;
  1641. }
  1642. } else {
  1643. /* Write directly into the output buffer */
  1644. size_t const dstSize = isSkipFrame ? 0 : (size_t)(oend - *op);
  1645. size_t const decodedSize = ZSTD_decompressContinue(zds, *op, dstSize, src, srcSize);
  1646. FORWARD_IF_ERROR(decodedSize, "");
  1647. *op += decodedSize;
  1648. /* Flushing is not needed. */
  1649. zds->streamStage = zdss_read;
  1650. assert(*op <= oend);
  1651. assert(zds->outBufferMode == ZSTD_bm_stable);
  1652. }
  1653. return 0;
  1654. }
  1655. size_t ZSTD_decompressStream(ZSTD_DStream* zds, ZSTD_outBuffer* output, ZSTD_inBuffer* input)
  1656. {
  1657. const char* const src = (const char*)input->src;
  1658. const char* const istart = input->pos != 0 ? src + input->pos : src;
  1659. const char* const iend = input->size != 0 ? src + input->size : src;
  1660. const char* ip = istart;
  1661. char* const dst = (char*)output->dst;
  1662. char* const ostart = output->pos != 0 ? dst + output->pos : dst;
  1663. char* const oend = output->size != 0 ? dst + output->size : dst;
  1664. char* op = ostart;
  1665. U32 someMoreWork = 1;
  1666. DEBUGLOG(5, "ZSTD_decompressStream");
  1667. RETURN_ERROR_IF(
  1668. input->pos > input->size,
  1669. srcSize_wrong,
  1670. "forbidden. in: pos: %u vs size: %u",
  1671. (U32)input->pos, (U32)input->size);
  1672. RETURN_ERROR_IF(
  1673. output->pos > output->size,
  1674. dstSize_tooSmall,
  1675. "forbidden. out: pos: %u vs size: %u",
  1676. (U32)output->pos, (U32)output->size);
  1677. DEBUGLOG(5, "input size : %u", (U32)(input->size - input->pos));
  1678. FORWARD_IF_ERROR(ZSTD_checkOutBuffer(zds, output), "");
  1679. while (someMoreWork) {
  1680. switch(zds->streamStage)
  1681. {
  1682. case zdss_init :
  1683. DEBUGLOG(5, "stage zdss_init => transparent reset ");
  1684. zds->streamStage = zdss_loadHeader;
  1685. zds->lhSize = zds->inPos = zds->outStart = zds->outEnd = 0;
  1686. zds->hostageByte = 0;
  1687. zds->expectedOutBuffer = *output;
  1688. ZSTD_FALLTHROUGH;
  1689. case zdss_loadHeader :
  1690. DEBUGLOG(5, "stage zdss_loadHeader (srcSize : %u)", (U32)(iend - ip));
  1691. { size_t const hSize = ZSTD_getFrameHeader_advanced(&zds->fParams, zds->headerBuffer, zds->lhSize, zds->format);
  1692. if (zds->refMultipleDDicts && zds->ddictSet) {
  1693. ZSTD_DCtx_selectFrameDDict(zds);
  1694. }
  1695. DEBUGLOG(5, "header size : %u", (U32)hSize);
  1696. if (ZSTD_isError(hSize)) {
  1697. return hSize; /* error */
  1698. }
  1699. if (hSize != 0) { /* need more input */
  1700. size_t const toLoad = hSize - zds->lhSize; /* if hSize!=0, hSize > zds->lhSize */
  1701. size_t const remainingInput = (size_t)(iend-ip);
  1702. assert(iend >= ip);
  1703. if (toLoad > remainingInput) { /* not enough input to load full header */
  1704. if (remainingInput > 0) {
  1705. ZSTD_memcpy(zds->headerBuffer + zds->lhSize, ip, remainingInput);
  1706. zds->lhSize += remainingInput;
  1707. }
  1708. input->pos = input->size;
  1709. return (MAX((size_t)ZSTD_FRAMEHEADERSIZE_MIN(zds->format), hSize) - zds->lhSize) + ZSTD_blockHeaderSize; /* remaining header bytes + next block header */
  1710. }
  1711. assert(ip != NULL);
  1712. ZSTD_memcpy(zds->headerBuffer + zds->lhSize, ip, toLoad); zds->lhSize = hSize; ip += toLoad;
  1713. break;
  1714. } }
  1715. /* check for single-pass mode opportunity */
  1716. if (zds->fParams.frameContentSize != ZSTD_CONTENTSIZE_UNKNOWN
  1717. && zds->fParams.frameType != ZSTD_skippableFrame
  1718. && (U64)(size_t)(oend-op) >= zds->fParams.frameContentSize) {
  1719. size_t const cSize = ZSTD_findFrameCompressedSize(istart, (size_t)(iend-istart));
  1720. if (cSize <= (size_t)(iend-istart)) {
  1721. /* shortcut : using single-pass mode */
  1722. size_t const decompressedSize = ZSTD_decompress_usingDDict(zds, op, (size_t)(oend-op), istart, cSize, ZSTD_getDDict(zds));
  1723. if (ZSTD_isError(decompressedSize)) return decompressedSize;
  1724. DEBUGLOG(4, "shortcut to single-pass ZSTD_decompress_usingDDict()")
  1725. ip = istart + cSize;
  1726. op += decompressedSize;
  1727. zds->expected = 0;
  1728. zds->streamStage = zdss_init;
  1729. someMoreWork = 0;
  1730. break;
  1731. } }
  1732. /* Check output buffer is large enough for ZSTD_odm_stable. */
  1733. if (zds->outBufferMode == ZSTD_bm_stable
  1734. && zds->fParams.frameType != ZSTD_skippableFrame
  1735. && zds->fParams.frameContentSize != ZSTD_CONTENTSIZE_UNKNOWN
  1736. && (U64)(size_t)(oend-op) < zds->fParams.frameContentSize) {
  1737. RETURN_ERROR(dstSize_tooSmall, "ZSTD_obm_stable passed but ZSTD_outBuffer is too small");
  1738. }
  1739. /* Consume header (see ZSTDds_decodeFrameHeader) */
  1740. DEBUGLOG(4, "Consume header");
  1741. FORWARD_IF_ERROR(ZSTD_decompressBegin_usingDDict(zds, ZSTD_getDDict(zds)), "");
  1742. if ((MEM_readLE32(zds->headerBuffer) & ZSTD_MAGIC_SKIPPABLE_MASK) == ZSTD_MAGIC_SKIPPABLE_START) { /* skippable frame */
  1743. zds->expected = MEM_readLE32(zds->headerBuffer + ZSTD_FRAMEIDSIZE);
  1744. zds->stage = ZSTDds_skipFrame;
  1745. } else {
  1746. FORWARD_IF_ERROR(ZSTD_decodeFrameHeader(zds, zds->headerBuffer, zds->lhSize), "");
  1747. zds->expected = ZSTD_blockHeaderSize;
  1748. zds->stage = ZSTDds_decodeBlockHeader;
  1749. }
  1750. /* control buffer memory usage */
  1751. DEBUGLOG(4, "Control max memory usage (%u KB <= max %u KB)",
  1752. (U32)(zds->fParams.windowSize >>10),
  1753. (U32)(zds->maxWindowSize >> 10) );
  1754. zds->fParams.windowSize = MAX(zds->fParams.windowSize, 1U << ZSTD_WINDOWLOG_ABSOLUTEMIN);
  1755. RETURN_ERROR_IF(zds->fParams.windowSize > zds->maxWindowSize,
  1756. frameParameter_windowTooLarge, "");
  1757. /* Adapt buffer sizes to frame header instructions */
  1758. { size_t const neededInBuffSize = MAX(zds->fParams.blockSizeMax, 4 /* frame checksum */);
  1759. size_t const neededOutBuffSize = zds->outBufferMode == ZSTD_bm_buffered
  1760. ? ZSTD_decodingBufferSize_min(zds->fParams.windowSize, zds->fParams.frameContentSize)
  1761. : 0;
  1762. ZSTD_DCtx_updateOversizedDuration(zds, neededInBuffSize, neededOutBuffSize);
  1763. { int const tooSmall = (zds->inBuffSize < neededInBuffSize) || (zds->outBuffSize < neededOutBuffSize);
  1764. int const tooLarge = ZSTD_DCtx_isOversizedTooLong(zds);
  1765. if (tooSmall || tooLarge) {
  1766. size_t const bufferSize = neededInBuffSize + neededOutBuffSize;
  1767. DEBUGLOG(4, "inBuff : from %u to %u",
  1768. (U32)zds->inBuffSize, (U32)neededInBuffSize);
  1769. DEBUGLOG(4, "outBuff : from %u to %u",
  1770. (U32)zds->outBuffSize, (U32)neededOutBuffSize);
  1771. if (zds->staticSize) { /* static DCtx */
  1772. DEBUGLOG(4, "staticSize : %u", (U32)zds->staticSize);
  1773. assert(zds->staticSize >= sizeof(ZSTD_DCtx)); /* controlled at init */
  1774. RETURN_ERROR_IF(
  1775. bufferSize > zds->staticSize - sizeof(ZSTD_DCtx),
  1776. memory_allocation, "");
  1777. } else {
  1778. ZSTD_customFree(zds->inBuff, zds->customMem);
  1779. zds->inBuffSize = 0;
  1780. zds->outBuffSize = 0;
  1781. zds->inBuff = (char*)ZSTD_customMalloc(bufferSize, zds->customMem);
  1782. RETURN_ERROR_IF(zds->inBuff == NULL, memory_allocation, "");
  1783. }
  1784. zds->inBuffSize = neededInBuffSize;
  1785. zds->outBuff = zds->inBuff + zds->inBuffSize;
  1786. zds->outBuffSize = neededOutBuffSize;
  1787. } } }
  1788. zds->streamStage = zdss_read;
  1789. ZSTD_FALLTHROUGH;
  1790. case zdss_read:
  1791. DEBUGLOG(5, "stage zdss_read");
  1792. { size_t const neededInSize = ZSTD_nextSrcSizeToDecompressWithInputSize(zds, (size_t)(iend - ip));
  1793. DEBUGLOG(5, "neededInSize = %u", (U32)neededInSize);
  1794. if (neededInSize==0) { /* end of frame */
  1795. zds->streamStage = zdss_init;
  1796. someMoreWork = 0;
  1797. break;
  1798. }
  1799. if ((size_t)(iend-ip) >= neededInSize) { /* decode directly from src */
  1800. FORWARD_IF_ERROR(ZSTD_decompressContinueStream(zds, &op, oend, ip, neededInSize), "");
  1801. ip += neededInSize;
  1802. /* Function modifies the stage so we must break */
  1803. break;
  1804. } }
  1805. if (ip==iend) { someMoreWork = 0; break; } /* no more input */
  1806. zds->streamStage = zdss_load;
  1807. ZSTD_FALLTHROUGH;
  1808. case zdss_load:
  1809. { size_t const neededInSize = ZSTD_nextSrcSizeToDecompress(zds);
  1810. size_t const toLoad = neededInSize - zds->inPos;
  1811. int const isSkipFrame = ZSTD_isSkipFrame(zds);
  1812. size_t loadedSize;
  1813. /* At this point we shouldn't be decompressing a block that we can stream. */
  1814. assert(neededInSize == ZSTD_nextSrcSizeToDecompressWithInputSize(zds, iend - ip));
  1815. if (isSkipFrame) {
  1816. loadedSize = MIN(toLoad, (size_t)(iend-ip));
  1817. } else {
  1818. RETURN_ERROR_IF(toLoad > zds->inBuffSize - zds->inPos,
  1819. corruption_detected,
  1820. "should never happen");
  1821. loadedSize = ZSTD_limitCopy(zds->inBuff + zds->inPos, toLoad, ip, (size_t)(iend-ip));
  1822. }
  1823. ip += loadedSize;
  1824. zds->inPos += loadedSize;
  1825. if (loadedSize < toLoad) { someMoreWork = 0; break; } /* not enough input, wait for more */
  1826. /* decode loaded input */
  1827. zds->inPos = 0; /* input is consumed */
  1828. FORWARD_IF_ERROR(ZSTD_decompressContinueStream(zds, &op, oend, zds->inBuff, neededInSize), "");
  1829. /* Function modifies the stage so we must break */
  1830. break;
  1831. }
  1832. case zdss_flush:
  1833. { size_t const toFlushSize = zds->outEnd - zds->outStart;
  1834. size_t const flushedSize = ZSTD_limitCopy(op, (size_t)(oend-op), zds->outBuff + zds->outStart, toFlushSize);
  1835. op += flushedSize;
  1836. zds->outStart += flushedSize;
  1837. if (flushedSize == toFlushSize) { /* flush completed */
  1838. zds->streamStage = zdss_read;
  1839. if ( (zds->outBuffSize < zds->fParams.frameContentSize)
  1840. && (zds->outStart + zds->fParams.blockSizeMax > zds->outBuffSize) ) {
  1841. DEBUGLOG(5, "restart filling outBuff from beginning (left:%i, needed:%u)",
  1842. (int)(zds->outBuffSize - zds->outStart),
  1843. (U32)zds->fParams.blockSizeMax);
  1844. zds->outStart = zds->outEnd = 0;
  1845. }
  1846. break;
  1847. } }
  1848. /* cannot complete flush */
  1849. someMoreWork = 0;
  1850. break;
  1851. default:
  1852. assert(0); /* impossible */
  1853. RETURN_ERROR(GENERIC, "impossible to reach"); /* some compiler require default to do something */
  1854. } }
  1855. /* result */
  1856. input->pos = (size_t)(ip - (const char*)(input->src));
  1857. output->pos = (size_t)(op - (char*)(output->dst));
  1858. /* Update the expected output buffer for ZSTD_obm_stable. */
  1859. zds->expectedOutBuffer = *output;
  1860. if ((ip==istart) && (op==ostart)) { /* no forward progress */
  1861. zds->noForwardProgress ++;
  1862. if (zds->noForwardProgress >= ZSTD_NO_FORWARD_PROGRESS_MAX) {
  1863. RETURN_ERROR_IF(op==oend, dstSize_tooSmall, "");
  1864. RETURN_ERROR_IF(ip==iend, srcSize_wrong, "");
  1865. assert(0);
  1866. }
  1867. } else {
  1868. zds->noForwardProgress = 0;
  1869. }
  1870. { size_t nextSrcSizeHint = ZSTD_nextSrcSizeToDecompress(zds);
  1871. if (!nextSrcSizeHint) { /* frame fully decoded */
  1872. if (zds->outEnd == zds->outStart) { /* output fully flushed */
  1873. if (zds->hostageByte) {
  1874. if (input->pos >= input->size) {
  1875. /* can't release hostage (not present) */
  1876. zds->streamStage = zdss_read;
  1877. return 1;
  1878. }
  1879. input->pos++; /* release hostage */
  1880. } /* zds->hostageByte */
  1881. return 0;
  1882. } /* zds->outEnd == zds->outStart */
  1883. if (!zds->hostageByte) { /* output not fully flushed; keep last byte as hostage; will be released when all output is flushed */
  1884. input->pos--; /* note : pos > 0, otherwise, impossible to finish reading last block */
  1885. zds->hostageByte=1;
  1886. }
  1887. return 1;
  1888. } /* nextSrcSizeHint==0 */
  1889. nextSrcSizeHint += ZSTD_blockHeaderSize * (ZSTD_nextInputType(zds) == ZSTDnit_block); /* preload header of next block */
  1890. assert(zds->inPos <= nextSrcSizeHint);
  1891. nextSrcSizeHint -= zds->inPos; /* part already loaded*/
  1892. return nextSrcSizeHint;
  1893. }
  1894. }
  1895. size_t ZSTD_decompressStream_simpleArgs (
  1896. ZSTD_DCtx* dctx,
  1897. void* dst, size_t dstCapacity, size_t* dstPos,
  1898. const void* src, size_t srcSize, size_t* srcPos)
  1899. {
  1900. ZSTD_outBuffer output = { dst, dstCapacity, *dstPos };
  1901. ZSTD_inBuffer input = { src, srcSize, *srcPos };
  1902. /* ZSTD_compress_generic() will check validity of dstPos and srcPos */
  1903. size_t const cErr = ZSTD_decompressStream(dctx, &output, &input);
  1904. *dstPos = output.pos;
  1905. *srcPos = input.pos;
  1906. return cErr;
  1907. }