1 // SPDX-License-Identifier: GPL-2.0+ OR BSD-3-Clause
2 /*
3 * Copyright (c) Meta Platforms, Inc. and affiliates.
4 * All rights reserved.
5 *
6 * This source code is licensed under both the BSD-style license (found in the
7 * LICENSE file in the root directory of this source tree) and the GPLv2 (found
8 * in the COPYING file in the root directory of this source tree).
9 * You may select, at your option, one of the above-listed licenses.
10 */
11
12 /*-*************************************
13 * Dependencies
14 ***************************************/
15 #include "../common/allocations.h" /* ZSTD_customMalloc, ZSTD_customCalloc, ZSTD_customFree */
16 #include "../common/zstd_deps.h" /* INT_MAX, ZSTD_memset, ZSTD_memcpy */
17 #include "../common/mem.h"
18 #include "../common/error_private.h"
19 #include "hist.h" /* HIST_countFast_wksp */
20 #define FSE_STATIC_LINKING_ONLY /* FSE_encodeSymbol */
21 #include "../common/fse.h"
22 #include "../common/huf.h"
23 #include "zstd_compress_internal.h"
24 #include "zstd_compress_sequences.h"
25 #include "zstd_compress_literals.h"
26 #include "zstd_fast.h"
27 #include "zstd_double_fast.h"
28 #include "zstd_lazy.h"
29 #include "zstd_opt.h"
30 #include "zstd_ldm.h"
31 #include "zstd_compress_superblock.h"
32 #include "../common/bits.h" /* ZSTD_highbit32, ZSTD_rotateRight_U64 */
33
34 /* ***************************************************************
35 * Tuning parameters
36 *****************************************************************/
37 /*!
38 * COMPRESS_HEAPMODE :
39 * Select how default decompression function ZSTD_compress() allocates its context,
40 * on stack (0, default), or into heap (1).
41 * Note that functions with explicit context such as ZSTD_compressCCtx() are unaffected.
42 */
43
44 /*!
45 * ZSTD_HASHLOG3_MAX :
46 * Maximum size of the hash table dedicated to find 3-bytes matches,
47 * in log format, aka 17 => 1 << 17 == 128Ki positions.
48 * This structure is only used in zstd_opt.
49 * Since allocation is centralized for all strategies, it has to be known here.
50 * The actual (selected) size of the hash table is then stored in ZSTD_MatchState_t.hashLog3,
51 * so that zstd_opt.c doesn't need to know about this constant.
52 */
53 #ifndef ZSTD_HASHLOG3_MAX
54 # define ZSTD_HASHLOG3_MAX 17
55 #endif
56
57 /*-*************************************
58 * Helper functions
59 ***************************************/
60 /* ZSTD_compressBound()
61 * Note that the result from this function is only valid for
62 * the one-pass compression functions.
63 * When employing the streaming mode,
64 * if flushes are frequently altering the size of blocks,
65 * the overhead from block headers can make the compressed data larger
66 * than the return value of ZSTD_compressBound().
67 */
ZSTD_compressBound(size_t srcSize)68 size_t ZSTD_compressBound(size_t srcSize) {
69 size_t const r = ZSTD_COMPRESSBOUND(srcSize);
70 if (r==0) return ERROR(srcSize_wrong);
71 return r;
72 }
73
74
75 /*-*************************************
76 * Context memory management
77 ***************************************/
78 struct ZSTD_CDict_s {
79 const void* dictContent;
80 size_t dictContentSize;
81 ZSTD_dictContentType_e dictContentType; /* The dictContentType the CDict was created with */
82 U32* entropyWorkspace; /* entropy workspace of HUF_WORKSPACE_SIZE bytes */
83 ZSTD_cwksp workspace;
84 ZSTD_MatchState_t matchState;
85 ZSTD_compressedBlockState_t cBlockState;
86 ZSTD_customMem customMem;
87 U32 dictID;
88 int compressionLevel; /* 0 indicates that advanced API was used to select CDict params */
89 ZSTD_ParamSwitch_e useRowMatchFinder; /* Indicates whether the CDict was created with params that would use
90 * row-based matchfinder. Unless the cdict is reloaded, we will use
91 * the same greedy/lazy matchfinder at compression time.
92 */
93 }; /* typedef'd to ZSTD_CDict within "zstd.h" */
94
ZSTD_createCCtx(void)95 ZSTD_CCtx* ZSTD_createCCtx(void)
96 {
97 return ZSTD_createCCtx_advanced(ZSTD_defaultCMem);
98 }
99
ZSTD_initCCtx(ZSTD_CCtx * cctx,ZSTD_customMem memManager)100 static void ZSTD_initCCtx(ZSTD_CCtx* cctx, ZSTD_customMem memManager)
101 {
102 assert(cctx != NULL);
103 ZSTD_memset(cctx, 0, sizeof(*cctx));
104 cctx->customMem = memManager;
105 cctx->bmi2 = ZSTD_cpuSupportsBmi2();
106 { size_t const err = ZSTD_CCtx_reset(cctx, ZSTD_reset_parameters);
107 assert(!ZSTD_isError(err));
108 (void)err;
109 }
110 }
111
ZSTD_createCCtx_advanced(ZSTD_customMem customMem)112 ZSTD_CCtx* ZSTD_createCCtx_advanced(ZSTD_customMem customMem)
113 {
114 ZSTD_STATIC_ASSERT(zcss_init==0);
115 ZSTD_STATIC_ASSERT(ZSTD_CONTENTSIZE_UNKNOWN==(0ULL - 1));
116 if ((!customMem.customAlloc) ^ (!customMem.customFree)) return NULL;
117 { ZSTD_CCtx* const cctx = (ZSTD_CCtx*)ZSTD_customMalloc(sizeof(ZSTD_CCtx), customMem);
118 if (!cctx) return NULL;
119 ZSTD_initCCtx(cctx, customMem);
120 return cctx;
121 }
122 }
123
ZSTD_initStaticCCtx(void * workspace,size_t workspaceSize)124 ZSTD_CCtx* ZSTD_initStaticCCtx(void* workspace, size_t workspaceSize)
125 {
126 ZSTD_cwksp ws;
127 ZSTD_CCtx* cctx;
128 if (workspaceSize <= sizeof(ZSTD_CCtx)) return NULL; /* minimum size */
129 if ((size_t)workspace & 7) return NULL; /* must be 8-aligned */
130 ZSTD_cwksp_init(&ws, workspace, workspaceSize, ZSTD_cwksp_static_alloc);
131
132 cctx = (ZSTD_CCtx*)ZSTD_cwksp_reserve_object(&ws, sizeof(ZSTD_CCtx));
133 if (cctx == NULL) return NULL;
134
135 ZSTD_memset(cctx, 0, sizeof(ZSTD_CCtx));
136 ZSTD_cwksp_move(&cctx->workspace, &ws);
137 cctx->staticSize = workspaceSize;
138
139 /* statically sized space. tmpWorkspace never moves (but prev/next block swap places) */
140 if (!ZSTD_cwksp_check_available(&cctx->workspace, TMP_WORKSPACE_SIZE + 2 * sizeof(ZSTD_compressedBlockState_t))) return NULL;
141 cctx->blockState.prevCBlock = (ZSTD_compressedBlockState_t*)ZSTD_cwksp_reserve_object(&cctx->workspace, sizeof(ZSTD_compressedBlockState_t));
142 cctx->blockState.nextCBlock = (ZSTD_compressedBlockState_t*)ZSTD_cwksp_reserve_object(&cctx->workspace, sizeof(ZSTD_compressedBlockState_t));
143 cctx->tmpWorkspace = ZSTD_cwksp_reserve_object(&cctx->workspace, TMP_WORKSPACE_SIZE);
144 cctx->tmpWkspSize = TMP_WORKSPACE_SIZE;
145 cctx->bmi2 = ZSTD_cpuid_bmi2(ZSTD_cpuid());
146 return cctx;
147 }
148
149 /*
150 * Clears and frees all of the dictionaries in the CCtx.
151 */
ZSTD_clearAllDicts(ZSTD_CCtx * cctx)152 static void ZSTD_clearAllDicts(ZSTD_CCtx* cctx)
153 {
154 ZSTD_customFree(cctx->localDict.dictBuffer, cctx->customMem);
155 ZSTD_freeCDict(cctx->localDict.cdict);
156 ZSTD_memset(&cctx->localDict, 0, sizeof(cctx->localDict));
157 ZSTD_memset(&cctx->prefixDict, 0, sizeof(cctx->prefixDict));
158 cctx->cdict = NULL;
159 }
160
ZSTD_sizeof_localDict(ZSTD_localDict dict)161 static size_t ZSTD_sizeof_localDict(ZSTD_localDict dict)
162 {
163 size_t const bufferSize = dict.dictBuffer != NULL ? dict.dictSize : 0;
164 size_t const cdictSize = ZSTD_sizeof_CDict(dict.cdict);
165 return bufferSize + cdictSize;
166 }
167
ZSTD_freeCCtxContent(ZSTD_CCtx * cctx)168 static void ZSTD_freeCCtxContent(ZSTD_CCtx* cctx)
169 {
170 assert(cctx != NULL);
171 assert(cctx->staticSize == 0);
172 ZSTD_clearAllDicts(cctx);
173 ZSTD_cwksp_free(&cctx->workspace, cctx->customMem);
174 }
175
ZSTD_freeCCtx(ZSTD_CCtx * cctx)176 size_t ZSTD_freeCCtx(ZSTD_CCtx* cctx)
177 {
178 DEBUGLOG(3, "ZSTD_freeCCtx (address: %p)", (void*)cctx);
179 if (cctx==NULL) return 0; /* support free on NULL */
180 RETURN_ERROR_IF(cctx->staticSize, memory_allocation,
181 "not compatible with static CCtx");
182 { int cctxInWorkspace = ZSTD_cwksp_owns_buffer(&cctx->workspace, cctx);
183 ZSTD_freeCCtxContent(cctx);
184 if (!cctxInWorkspace) ZSTD_customFree(cctx, cctx->customMem);
185 }
186 return 0;
187 }
188
189
ZSTD_sizeof_mtctx(const ZSTD_CCtx * cctx)190 static size_t ZSTD_sizeof_mtctx(const ZSTD_CCtx* cctx)
191 {
192 (void)cctx;
193 return 0;
194 }
195
196
ZSTD_sizeof_CCtx(const ZSTD_CCtx * cctx)197 size_t ZSTD_sizeof_CCtx(const ZSTD_CCtx* cctx)
198 {
199 if (cctx==NULL) return 0; /* support sizeof on NULL */
200 /* cctx may be in the workspace */
201 return (cctx->workspace.workspace == cctx ? 0 : sizeof(*cctx))
202 + ZSTD_cwksp_sizeof(&cctx->workspace)
203 + ZSTD_sizeof_localDict(cctx->localDict)
204 + ZSTD_sizeof_mtctx(cctx);
205 }
206
ZSTD_sizeof_CStream(const ZSTD_CStream * zcs)207 size_t ZSTD_sizeof_CStream(const ZSTD_CStream* zcs)
208 {
209 return ZSTD_sizeof_CCtx(zcs); /* same object */
210 }
211
212 /* private API call, for dictBuilder only */
ZSTD_getSeqStore(const ZSTD_CCtx * ctx)213 const SeqStore_t* ZSTD_getSeqStore(const ZSTD_CCtx* ctx) { return &(ctx->seqStore); }
214
215 /* Returns true if the strategy supports using a row based matchfinder */
ZSTD_rowMatchFinderSupported(const ZSTD_strategy strategy)216 static int ZSTD_rowMatchFinderSupported(const ZSTD_strategy strategy) {
217 return (strategy >= ZSTD_greedy && strategy <= ZSTD_lazy2);
218 }
219
220 /* Returns true if the strategy and useRowMatchFinder mode indicate that we will use the row based matchfinder
221 * for this compression.
222 */
ZSTD_rowMatchFinderUsed(const ZSTD_strategy strategy,const ZSTD_ParamSwitch_e mode)223 static int ZSTD_rowMatchFinderUsed(const ZSTD_strategy strategy, const ZSTD_ParamSwitch_e mode) {
224 assert(mode != ZSTD_ps_auto);
225 return ZSTD_rowMatchFinderSupported(strategy) && (mode == ZSTD_ps_enable);
226 }
227
228 /* Returns row matchfinder usage given an initial mode and cParams */
ZSTD_resolveRowMatchFinderMode(ZSTD_ParamSwitch_e mode,const ZSTD_compressionParameters * const cParams)229 static ZSTD_ParamSwitch_e ZSTD_resolveRowMatchFinderMode(ZSTD_ParamSwitch_e mode,
230 const ZSTD_compressionParameters* const cParams) {
231 /* The Linux Kernel does not use SIMD, and 128KB is a very common size, e.g. in BtrFS.
232 * The row match finder is slower for this size without SIMD, so disable it.
233 */
234 const unsigned kWindowLogLowerBound = 17;
235 if (mode != ZSTD_ps_auto) return mode; /* if requested enabled, but no SIMD, we still will use row matchfinder */
236 mode = ZSTD_ps_disable;
237 if (!ZSTD_rowMatchFinderSupported(cParams->strategy)) return mode;
238 if (cParams->windowLog > kWindowLogLowerBound) mode = ZSTD_ps_enable;
239 return mode;
240 }
241
242 /* Returns block splitter usage (generally speaking, when using slower/stronger compression modes) */
ZSTD_resolveBlockSplitterMode(ZSTD_ParamSwitch_e mode,const ZSTD_compressionParameters * const cParams)243 static ZSTD_ParamSwitch_e ZSTD_resolveBlockSplitterMode(ZSTD_ParamSwitch_e mode,
244 const ZSTD_compressionParameters* const cParams) {
245 if (mode != ZSTD_ps_auto) return mode;
246 return (cParams->strategy >= ZSTD_btopt && cParams->windowLog >= 17) ? ZSTD_ps_enable : ZSTD_ps_disable;
247 }
248
249 /* Returns 1 if the arguments indicate that we should allocate a chainTable, 0 otherwise */
ZSTD_allocateChainTable(const ZSTD_strategy strategy,const ZSTD_ParamSwitch_e useRowMatchFinder,const U32 forDDSDict)250 static int ZSTD_allocateChainTable(const ZSTD_strategy strategy,
251 const ZSTD_ParamSwitch_e useRowMatchFinder,
252 const U32 forDDSDict) {
253 assert(useRowMatchFinder != ZSTD_ps_auto);
254 /* We always should allocate a chaintable if we are allocating a matchstate for a DDS dictionary matchstate.
255 * We do not allocate a chaintable if we are using ZSTD_fast, or are using the row-based matchfinder.
256 */
257 return forDDSDict || ((strategy != ZSTD_fast) && !ZSTD_rowMatchFinderUsed(strategy, useRowMatchFinder));
258 }
259
260 /* Returns ZSTD_ps_enable if compression parameters are such that we should
261 * enable long distance matching (wlog >= 27, strategy >= btopt).
262 * Returns ZSTD_ps_disable otherwise.
263 */
ZSTD_resolveEnableLdm(ZSTD_ParamSwitch_e mode,const ZSTD_compressionParameters * const cParams)264 static ZSTD_ParamSwitch_e ZSTD_resolveEnableLdm(ZSTD_ParamSwitch_e mode,
265 const ZSTD_compressionParameters* const cParams) {
266 if (mode != ZSTD_ps_auto) return mode;
267 return (cParams->strategy >= ZSTD_btopt && cParams->windowLog >= 27) ? ZSTD_ps_enable : ZSTD_ps_disable;
268 }
269
ZSTD_resolveExternalSequenceValidation(int mode)270 static int ZSTD_resolveExternalSequenceValidation(int mode) {
271 return mode;
272 }
273
274 /* Resolves maxBlockSize to the default if no value is present. */
ZSTD_resolveMaxBlockSize(size_t maxBlockSize)275 static size_t ZSTD_resolveMaxBlockSize(size_t maxBlockSize) {
276 if (maxBlockSize == 0) {
277 return ZSTD_BLOCKSIZE_MAX;
278 } else {
279 return maxBlockSize;
280 }
281 }
282
ZSTD_resolveExternalRepcodeSearch(ZSTD_ParamSwitch_e value,int cLevel)283 static ZSTD_ParamSwitch_e ZSTD_resolveExternalRepcodeSearch(ZSTD_ParamSwitch_e value, int cLevel) {
284 if (value != ZSTD_ps_auto) return value;
285 if (cLevel < 10) {
286 return ZSTD_ps_disable;
287 } else {
288 return ZSTD_ps_enable;
289 }
290 }
291
292 /* Returns 1 if compression parameters are such that CDict hashtable and chaintable indices are tagged.
293 * If so, the tags need to be removed in ZSTD_resetCCtx_byCopyingCDict. */
ZSTD_CDictIndicesAreTagged(const ZSTD_compressionParameters * const cParams)294 static int ZSTD_CDictIndicesAreTagged(const ZSTD_compressionParameters* const cParams) {
295 return cParams->strategy == ZSTD_fast || cParams->strategy == ZSTD_dfast;
296 }
297
ZSTD_makeCCtxParamsFromCParams(ZSTD_compressionParameters cParams)298 static ZSTD_CCtx_params ZSTD_makeCCtxParamsFromCParams(
299 ZSTD_compressionParameters cParams)
300 {
301 ZSTD_CCtx_params cctxParams;
302 /* should not matter, as all cParams are presumed properly defined */
303 ZSTD_CCtxParams_init(&cctxParams, ZSTD_CLEVEL_DEFAULT);
304 cctxParams.cParams = cParams;
305
306 /* Adjust advanced params according to cParams */
307 cctxParams.ldmParams.enableLdm = ZSTD_resolveEnableLdm(cctxParams.ldmParams.enableLdm, &cParams);
308 if (cctxParams.ldmParams.enableLdm == ZSTD_ps_enable) {
309 ZSTD_ldm_adjustParameters(&cctxParams.ldmParams, &cParams);
310 assert(cctxParams.ldmParams.hashLog >= cctxParams.ldmParams.bucketSizeLog);
311 assert(cctxParams.ldmParams.hashRateLog < 32);
312 }
313 cctxParams.postBlockSplitter = ZSTD_resolveBlockSplitterMode(cctxParams.postBlockSplitter, &cParams);
314 cctxParams.useRowMatchFinder = ZSTD_resolveRowMatchFinderMode(cctxParams.useRowMatchFinder, &cParams);
315 cctxParams.validateSequences = ZSTD_resolveExternalSequenceValidation(cctxParams.validateSequences);
316 cctxParams.maxBlockSize = ZSTD_resolveMaxBlockSize(cctxParams.maxBlockSize);
317 cctxParams.searchForExternalRepcodes = ZSTD_resolveExternalRepcodeSearch(cctxParams.searchForExternalRepcodes,
318 cctxParams.compressionLevel);
319 assert(!ZSTD_checkCParams(cParams));
320 return cctxParams;
321 }
322
ZSTD_createCCtxParams_advanced(ZSTD_customMem customMem)323 static ZSTD_CCtx_params* ZSTD_createCCtxParams_advanced(
324 ZSTD_customMem customMem)
325 {
326 ZSTD_CCtx_params* params;
327 if ((!customMem.customAlloc) ^ (!customMem.customFree)) return NULL;
328 params = (ZSTD_CCtx_params*)ZSTD_customCalloc(
329 sizeof(ZSTD_CCtx_params), customMem);
330 if (!params) { return NULL; }
331 ZSTD_CCtxParams_init(params, ZSTD_CLEVEL_DEFAULT);
332 params->customMem = customMem;
333 return params;
334 }
335
ZSTD_createCCtxParams(void)336 ZSTD_CCtx_params* ZSTD_createCCtxParams(void)
337 {
338 return ZSTD_createCCtxParams_advanced(ZSTD_defaultCMem);
339 }
340
ZSTD_freeCCtxParams(ZSTD_CCtx_params * params)341 size_t ZSTD_freeCCtxParams(ZSTD_CCtx_params* params)
342 {
343 if (params == NULL) { return 0; }
344 ZSTD_customFree(params, params->customMem);
345 return 0;
346 }
347
ZSTD_CCtxParams_reset(ZSTD_CCtx_params * params)348 size_t ZSTD_CCtxParams_reset(ZSTD_CCtx_params* params)
349 {
350 return ZSTD_CCtxParams_init(params, ZSTD_CLEVEL_DEFAULT);
351 }
352
ZSTD_CCtxParams_init(ZSTD_CCtx_params * cctxParams,int compressionLevel)353 size_t ZSTD_CCtxParams_init(ZSTD_CCtx_params* cctxParams, int compressionLevel) {
354 RETURN_ERROR_IF(!cctxParams, GENERIC, "NULL pointer!");
355 ZSTD_memset(cctxParams, 0, sizeof(*cctxParams));
356 cctxParams->compressionLevel = compressionLevel;
357 cctxParams->fParams.contentSizeFlag = 1;
358 return 0;
359 }
360
361 #define ZSTD_NO_CLEVEL 0
362
363 /*
364 * Initializes `cctxParams` from `params` and `compressionLevel`.
365 * @param compressionLevel If params are derived from a compression level then that compression level, otherwise ZSTD_NO_CLEVEL.
366 */
367 static void
ZSTD_CCtxParams_init_internal(ZSTD_CCtx_params * cctxParams,const ZSTD_parameters * params,int compressionLevel)368 ZSTD_CCtxParams_init_internal(ZSTD_CCtx_params* cctxParams,
369 const ZSTD_parameters* params,
370 int compressionLevel)
371 {
372 assert(!ZSTD_checkCParams(params->cParams));
373 ZSTD_memset(cctxParams, 0, sizeof(*cctxParams));
374 cctxParams->cParams = params->cParams;
375 cctxParams->fParams = params->fParams;
376 /* Should not matter, as all cParams are presumed properly defined.
377 * But, set it for tracing anyway.
378 */
379 cctxParams->compressionLevel = compressionLevel;
380 cctxParams->useRowMatchFinder = ZSTD_resolveRowMatchFinderMode(cctxParams->useRowMatchFinder, ¶ms->cParams);
381 cctxParams->postBlockSplitter = ZSTD_resolveBlockSplitterMode(cctxParams->postBlockSplitter, ¶ms->cParams);
382 cctxParams->ldmParams.enableLdm = ZSTD_resolveEnableLdm(cctxParams->ldmParams.enableLdm, ¶ms->cParams);
383 cctxParams->validateSequences = ZSTD_resolveExternalSequenceValidation(cctxParams->validateSequences);
384 cctxParams->maxBlockSize = ZSTD_resolveMaxBlockSize(cctxParams->maxBlockSize);
385 cctxParams->searchForExternalRepcodes = ZSTD_resolveExternalRepcodeSearch(cctxParams->searchForExternalRepcodes, compressionLevel);
386 DEBUGLOG(4, "ZSTD_CCtxParams_init_internal: useRowMatchFinder=%d, useBlockSplitter=%d ldm=%d",
387 cctxParams->useRowMatchFinder, cctxParams->postBlockSplitter, cctxParams->ldmParams.enableLdm);
388 }
389
ZSTD_CCtxParams_init_advanced(ZSTD_CCtx_params * cctxParams,ZSTD_parameters params)390 size_t ZSTD_CCtxParams_init_advanced(ZSTD_CCtx_params* cctxParams, ZSTD_parameters params)
391 {
392 RETURN_ERROR_IF(!cctxParams, GENERIC, "NULL pointer!");
393 FORWARD_IF_ERROR( ZSTD_checkCParams(params.cParams) , "");
394 ZSTD_CCtxParams_init_internal(cctxParams, ¶ms, ZSTD_NO_CLEVEL);
395 return 0;
396 }
397
398 /*
399 * Sets cctxParams' cParams and fParams from params, but otherwise leaves them alone.
400 * @param params Validated zstd parameters.
401 */
ZSTD_CCtxParams_setZstdParams(ZSTD_CCtx_params * cctxParams,const ZSTD_parameters * params)402 static void ZSTD_CCtxParams_setZstdParams(
403 ZSTD_CCtx_params* cctxParams, const ZSTD_parameters* params)
404 {
405 assert(!ZSTD_checkCParams(params->cParams));
406 cctxParams->cParams = params->cParams;
407 cctxParams->fParams = params->fParams;
408 /* Should not matter, as all cParams are presumed properly defined.
409 * But, set it for tracing anyway.
410 */
411 cctxParams->compressionLevel = ZSTD_NO_CLEVEL;
412 }
413
ZSTD_cParam_getBounds(ZSTD_cParameter param)414 ZSTD_bounds ZSTD_cParam_getBounds(ZSTD_cParameter param)
415 {
416 ZSTD_bounds bounds = { 0, 0, 0 };
417
418 switch(param)
419 {
420 case ZSTD_c_compressionLevel:
421 bounds.lowerBound = ZSTD_minCLevel();
422 bounds.upperBound = ZSTD_maxCLevel();
423 return bounds;
424
425 case ZSTD_c_windowLog:
426 bounds.lowerBound = ZSTD_WINDOWLOG_MIN;
427 bounds.upperBound = ZSTD_WINDOWLOG_MAX;
428 return bounds;
429
430 case ZSTD_c_hashLog:
431 bounds.lowerBound = ZSTD_HASHLOG_MIN;
432 bounds.upperBound = ZSTD_HASHLOG_MAX;
433 return bounds;
434
435 case ZSTD_c_chainLog:
436 bounds.lowerBound = ZSTD_CHAINLOG_MIN;
437 bounds.upperBound = ZSTD_CHAINLOG_MAX;
438 return bounds;
439
440 case ZSTD_c_searchLog:
441 bounds.lowerBound = ZSTD_SEARCHLOG_MIN;
442 bounds.upperBound = ZSTD_SEARCHLOG_MAX;
443 return bounds;
444
445 case ZSTD_c_minMatch:
446 bounds.lowerBound = ZSTD_MINMATCH_MIN;
447 bounds.upperBound = ZSTD_MINMATCH_MAX;
448 return bounds;
449
450 case ZSTD_c_targetLength:
451 bounds.lowerBound = ZSTD_TARGETLENGTH_MIN;
452 bounds.upperBound = ZSTD_TARGETLENGTH_MAX;
453 return bounds;
454
455 case ZSTD_c_strategy:
456 bounds.lowerBound = ZSTD_STRATEGY_MIN;
457 bounds.upperBound = ZSTD_STRATEGY_MAX;
458 return bounds;
459
460 case ZSTD_c_contentSizeFlag:
461 bounds.lowerBound = 0;
462 bounds.upperBound = 1;
463 return bounds;
464
465 case ZSTD_c_checksumFlag:
466 bounds.lowerBound = 0;
467 bounds.upperBound = 1;
468 return bounds;
469
470 case ZSTD_c_dictIDFlag:
471 bounds.lowerBound = 0;
472 bounds.upperBound = 1;
473 return bounds;
474
475 case ZSTD_c_nbWorkers:
476 bounds.lowerBound = 0;
477 bounds.upperBound = 0;
478 return bounds;
479
480 case ZSTD_c_jobSize:
481 bounds.lowerBound = 0;
482 bounds.upperBound = 0;
483 return bounds;
484
485 case ZSTD_c_overlapLog:
486 bounds.lowerBound = 0;
487 bounds.upperBound = 0;
488 return bounds;
489
490 case ZSTD_c_enableDedicatedDictSearch:
491 bounds.lowerBound = 0;
492 bounds.upperBound = 1;
493 return bounds;
494
495 case ZSTD_c_enableLongDistanceMatching:
496 bounds.lowerBound = (int)ZSTD_ps_auto;
497 bounds.upperBound = (int)ZSTD_ps_disable;
498 return bounds;
499
500 case ZSTD_c_ldmHashLog:
501 bounds.lowerBound = ZSTD_LDM_HASHLOG_MIN;
502 bounds.upperBound = ZSTD_LDM_HASHLOG_MAX;
503 return bounds;
504
505 case ZSTD_c_ldmMinMatch:
506 bounds.lowerBound = ZSTD_LDM_MINMATCH_MIN;
507 bounds.upperBound = ZSTD_LDM_MINMATCH_MAX;
508 return bounds;
509
510 case ZSTD_c_ldmBucketSizeLog:
511 bounds.lowerBound = ZSTD_LDM_BUCKETSIZELOG_MIN;
512 bounds.upperBound = ZSTD_LDM_BUCKETSIZELOG_MAX;
513 return bounds;
514
515 case ZSTD_c_ldmHashRateLog:
516 bounds.lowerBound = ZSTD_LDM_HASHRATELOG_MIN;
517 bounds.upperBound = ZSTD_LDM_HASHRATELOG_MAX;
518 return bounds;
519
520 /* experimental parameters */
521 case ZSTD_c_rsyncable:
522 bounds.lowerBound = 0;
523 bounds.upperBound = 1;
524 return bounds;
525
526 case ZSTD_c_forceMaxWindow :
527 bounds.lowerBound = 0;
528 bounds.upperBound = 1;
529 return bounds;
530
531 case ZSTD_c_format:
532 ZSTD_STATIC_ASSERT(ZSTD_f_zstd1 < ZSTD_f_zstd1_magicless);
533 bounds.lowerBound = ZSTD_f_zstd1;
534 bounds.upperBound = ZSTD_f_zstd1_magicless; /* note : how to ensure at compile time that this is the highest value enum ? */
535 return bounds;
536
537 case ZSTD_c_forceAttachDict:
538 ZSTD_STATIC_ASSERT(ZSTD_dictDefaultAttach < ZSTD_dictForceLoad);
539 bounds.lowerBound = ZSTD_dictDefaultAttach;
540 bounds.upperBound = ZSTD_dictForceLoad; /* note : how to ensure at compile time that this is the highest value enum ? */
541 return bounds;
542
543 case ZSTD_c_literalCompressionMode:
544 ZSTD_STATIC_ASSERT(ZSTD_ps_auto < ZSTD_ps_enable && ZSTD_ps_enable < ZSTD_ps_disable);
545 bounds.lowerBound = (int)ZSTD_ps_auto;
546 bounds.upperBound = (int)ZSTD_ps_disable;
547 return bounds;
548
549 case ZSTD_c_targetCBlockSize:
550 bounds.lowerBound = ZSTD_TARGETCBLOCKSIZE_MIN;
551 bounds.upperBound = ZSTD_TARGETCBLOCKSIZE_MAX;
552 return bounds;
553
554 case ZSTD_c_srcSizeHint:
555 bounds.lowerBound = ZSTD_SRCSIZEHINT_MIN;
556 bounds.upperBound = ZSTD_SRCSIZEHINT_MAX;
557 return bounds;
558
559 case ZSTD_c_stableInBuffer:
560 case ZSTD_c_stableOutBuffer:
561 bounds.lowerBound = (int)ZSTD_bm_buffered;
562 bounds.upperBound = (int)ZSTD_bm_stable;
563 return bounds;
564
565 case ZSTD_c_blockDelimiters:
566 bounds.lowerBound = (int)ZSTD_sf_noBlockDelimiters;
567 bounds.upperBound = (int)ZSTD_sf_explicitBlockDelimiters;
568 return bounds;
569
570 case ZSTD_c_validateSequences:
571 bounds.lowerBound = 0;
572 bounds.upperBound = 1;
573 return bounds;
574
575 case ZSTD_c_splitAfterSequences:
576 bounds.lowerBound = (int)ZSTD_ps_auto;
577 bounds.upperBound = (int)ZSTD_ps_disable;
578 return bounds;
579
580 case ZSTD_c_blockSplitterLevel:
581 bounds.lowerBound = 0;
582 bounds.upperBound = ZSTD_BLOCKSPLITTER_LEVEL_MAX;
583 return bounds;
584
585 case ZSTD_c_useRowMatchFinder:
586 bounds.lowerBound = (int)ZSTD_ps_auto;
587 bounds.upperBound = (int)ZSTD_ps_disable;
588 return bounds;
589
590 case ZSTD_c_deterministicRefPrefix:
591 bounds.lowerBound = 0;
592 bounds.upperBound = 1;
593 return bounds;
594
595 case ZSTD_c_prefetchCDictTables:
596 bounds.lowerBound = (int)ZSTD_ps_auto;
597 bounds.upperBound = (int)ZSTD_ps_disable;
598 return bounds;
599
600 case ZSTD_c_enableSeqProducerFallback:
601 bounds.lowerBound = 0;
602 bounds.upperBound = 1;
603 return bounds;
604
605 case ZSTD_c_maxBlockSize:
606 bounds.lowerBound = ZSTD_BLOCKSIZE_MAX_MIN;
607 bounds.upperBound = ZSTD_BLOCKSIZE_MAX;
608 return bounds;
609
610 case ZSTD_c_repcodeResolution:
611 bounds.lowerBound = (int)ZSTD_ps_auto;
612 bounds.upperBound = (int)ZSTD_ps_disable;
613 return bounds;
614
615 default:
616 bounds.error = ERROR(parameter_unsupported);
617 return bounds;
618 }
619 }
620
621 /* ZSTD_cParam_clampBounds:
622 * Clamps the value into the bounded range.
623 */
ZSTD_cParam_clampBounds(ZSTD_cParameter cParam,int * value)624 static size_t ZSTD_cParam_clampBounds(ZSTD_cParameter cParam, int* value)
625 {
626 ZSTD_bounds const bounds = ZSTD_cParam_getBounds(cParam);
627 if (ZSTD_isError(bounds.error)) return bounds.error;
628 if (*value < bounds.lowerBound) *value = bounds.lowerBound;
629 if (*value > bounds.upperBound) *value = bounds.upperBound;
630 return 0;
631 }
632
633 #define BOUNDCHECK(cParam, val) \
634 do { \
635 RETURN_ERROR_IF(!ZSTD_cParam_withinBounds(cParam,val), \
636 parameter_outOfBound, "Param out of bounds"); \
637 } while (0)
638
639
ZSTD_isUpdateAuthorized(ZSTD_cParameter param)640 static int ZSTD_isUpdateAuthorized(ZSTD_cParameter param)
641 {
642 switch(param)
643 {
644 case ZSTD_c_compressionLevel:
645 case ZSTD_c_hashLog:
646 case ZSTD_c_chainLog:
647 case ZSTD_c_searchLog:
648 case ZSTD_c_minMatch:
649 case ZSTD_c_targetLength:
650 case ZSTD_c_strategy:
651 case ZSTD_c_blockSplitterLevel:
652 return 1;
653
654 case ZSTD_c_format:
655 case ZSTD_c_windowLog:
656 case ZSTD_c_contentSizeFlag:
657 case ZSTD_c_checksumFlag:
658 case ZSTD_c_dictIDFlag:
659 case ZSTD_c_forceMaxWindow :
660 case ZSTD_c_nbWorkers:
661 case ZSTD_c_jobSize:
662 case ZSTD_c_overlapLog:
663 case ZSTD_c_rsyncable:
664 case ZSTD_c_enableDedicatedDictSearch:
665 case ZSTD_c_enableLongDistanceMatching:
666 case ZSTD_c_ldmHashLog:
667 case ZSTD_c_ldmMinMatch:
668 case ZSTD_c_ldmBucketSizeLog:
669 case ZSTD_c_ldmHashRateLog:
670 case ZSTD_c_forceAttachDict:
671 case ZSTD_c_literalCompressionMode:
672 case ZSTD_c_targetCBlockSize:
673 case ZSTD_c_srcSizeHint:
674 case ZSTD_c_stableInBuffer:
675 case ZSTD_c_stableOutBuffer:
676 case ZSTD_c_blockDelimiters:
677 case ZSTD_c_validateSequences:
678 case ZSTD_c_splitAfterSequences:
679 case ZSTD_c_useRowMatchFinder:
680 case ZSTD_c_deterministicRefPrefix:
681 case ZSTD_c_prefetchCDictTables:
682 case ZSTD_c_enableSeqProducerFallback:
683 case ZSTD_c_maxBlockSize:
684 case ZSTD_c_repcodeResolution:
685 default:
686 return 0;
687 }
688 }
689
ZSTD_CCtx_setParameter(ZSTD_CCtx * cctx,ZSTD_cParameter param,int value)690 size_t ZSTD_CCtx_setParameter(ZSTD_CCtx* cctx, ZSTD_cParameter param, int value)
691 {
692 DEBUGLOG(4, "ZSTD_CCtx_setParameter (%i, %i)", (int)param, value);
693 if (cctx->streamStage != zcss_init) {
694 if (ZSTD_isUpdateAuthorized(param)) {
695 cctx->cParamsChanged = 1;
696 } else {
697 RETURN_ERROR(stage_wrong, "can only set params in cctx init stage");
698 } }
699
700 switch(param)
701 {
702 case ZSTD_c_nbWorkers:
703 RETURN_ERROR_IF((value!=0) && cctx->staticSize, parameter_unsupported,
704 "MT not compatible with static alloc");
705 break;
706
707 case ZSTD_c_compressionLevel:
708 case ZSTD_c_windowLog:
709 case ZSTD_c_hashLog:
710 case ZSTD_c_chainLog:
711 case ZSTD_c_searchLog:
712 case ZSTD_c_minMatch:
713 case ZSTD_c_targetLength:
714 case ZSTD_c_strategy:
715 case ZSTD_c_ldmHashRateLog:
716 case ZSTD_c_format:
717 case ZSTD_c_contentSizeFlag:
718 case ZSTD_c_checksumFlag:
719 case ZSTD_c_dictIDFlag:
720 case ZSTD_c_forceMaxWindow:
721 case ZSTD_c_forceAttachDict:
722 case ZSTD_c_literalCompressionMode:
723 case ZSTD_c_jobSize:
724 case ZSTD_c_overlapLog:
725 case ZSTD_c_rsyncable:
726 case ZSTD_c_enableDedicatedDictSearch:
727 case ZSTD_c_enableLongDistanceMatching:
728 case ZSTD_c_ldmHashLog:
729 case ZSTD_c_ldmMinMatch:
730 case ZSTD_c_ldmBucketSizeLog:
731 case ZSTD_c_targetCBlockSize:
732 case ZSTD_c_srcSizeHint:
733 case ZSTD_c_stableInBuffer:
734 case ZSTD_c_stableOutBuffer:
735 case ZSTD_c_blockDelimiters:
736 case ZSTD_c_validateSequences:
737 case ZSTD_c_splitAfterSequences:
738 case ZSTD_c_blockSplitterLevel:
739 case ZSTD_c_useRowMatchFinder:
740 case ZSTD_c_deterministicRefPrefix:
741 case ZSTD_c_prefetchCDictTables:
742 case ZSTD_c_enableSeqProducerFallback:
743 case ZSTD_c_maxBlockSize:
744 case ZSTD_c_repcodeResolution:
745 break;
746
747 default: RETURN_ERROR(parameter_unsupported, "unknown parameter");
748 }
749 return ZSTD_CCtxParams_setParameter(&cctx->requestedParams, param, value);
750 }
751
ZSTD_CCtxParams_setParameter(ZSTD_CCtx_params * CCtxParams,ZSTD_cParameter param,int value)752 size_t ZSTD_CCtxParams_setParameter(ZSTD_CCtx_params* CCtxParams,
753 ZSTD_cParameter param, int value)
754 {
755 DEBUGLOG(4, "ZSTD_CCtxParams_setParameter (%i, %i)", (int)param, value);
756 switch(param)
757 {
758 case ZSTD_c_format :
759 BOUNDCHECK(ZSTD_c_format, value);
760 CCtxParams->format = (ZSTD_format_e)value;
761 return (size_t)CCtxParams->format;
762
763 case ZSTD_c_compressionLevel : {
764 FORWARD_IF_ERROR(ZSTD_cParam_clampBounds(param, &value), "");
765 if (value == 0)
766 CCtxParams->compressionLevel = ZSTD_CLEVEL_DEFAULT; /* 0 == default */
767 else
768 CCtxParams->compressionLevel = value;
769 if (CCtxParams->compressionLevel >= 0) return (size_t)CCtxParams->compressionLevel;
770 return 0; /* return type (size_t) cannot represent negative values */
771 }
772
773 case ZSTD_c_windowLog :
774 if (value!=0) /* 0 => use default */
775 BOUNDCHECK(ZSTD_c_windowLog, value);
776 CCtxParams->cParams.windowLog = (U32)value;
777 return CCtxParams->cParams.windowLog;
778
779 case ZSTD_c_hashLog :
780 if (value!=0) /* 0 => use default */
781 BOUNDCHECK(ZSTD_c_hashLog, value);
782 CCtxParams->cParams.hashLog = (U32)value;
783 return CCtxParams->cParams.hashLog;
784
785 case ZSTD_c_chainLog :
786 if (value!=0) /* 0 => use default */
787 BOUNDCHECK(ZSTD_c_chainLog, value);
788 CCtxParams->cParams.chainLog = (U32)value;
789 return CCtxParams->cParams.chainLog;
790
791 case ZSTD_c_searchLog :
792 if (value!=0) /* 0 => use default */
793 BOUNDCHECK(ZSTD_c_searchLog, value);
794 CCtxParams->cParams.searchLog = (U32)value;
795 return (size_t)value;
796
797 case ZSTD_c_minMatch :
798 if (value!=0) /* 0 => use default */
799 BOUNDCHECK(ZSTD_c_minMatch, value);
800 CCtxParams->cParams.minMatch = (U32)value;
801 return CCtxParams->cParams.minMatch;
802
803 case ZSTD_c_targetLength :
804 BOUNDCHECK(ZSTD_c_targetLength, value);
805 CCtxParams->cParams.targetLength = (U32)value;
806 return CCtxParams->cParams.targetLength;
807
808 case ZSTD_c_strategy :
809 if (value!=0) /* 0 => use default */
810 BOUNDCHECK(ZSTD_c_strategy, value);
811 CCtxParams->cParams.strategy = (ZSTD_strategy)value;
812 return (size_t)CCtxParams->cParams.strategy;
813
814 case ZSTD_c_contentSizeFlag :
815 /* Content size written in frame header _when known_ (default:1) */
816 DEBUGLOG(4, "set content size flag = %u", (value!=0));
817 CCtxParams->fParams.contentSizeFlag = value != 0;
818 return (size_t)CCtxParams->fParams.contentSizeFlag;
819
820 case ZSTD_c_checksumFlag :
821 /* A 32-bits content checksum will be calculated and written at end of frame (default:0) */
822 CCtxParams->fParams.checksumFlag = value != 0;
823 return (size_t)CCtxParams->fParams.checksumFlag;
824
825 case ZSTD_c_dictIDFlag : /* When applicable, dictionary's dictID is provided in frame header (default:1) */
826 DEBUGLOG(4, "set dictIDFlag = %u", (value!=0));
827 CCtxParams->fParams.noDictIDFlag = !value;
828 return !CCtxParams->fParams.noDictIDFlag;
829
830 case ZSTD_c_forceMaxWindow :
831 CCtxParams->forceWindow = (value != 0);
832 return (size_t)CCtxParams->forceWindow;
833
834 case ZSTD_c_forceAttachDict : {
835 const ZSTD_dictAttachPref_e pref = (ZSTD_dictAttachPref_e)value;
836 BOUNDCHECK(ZSTD_c_forceAttachDict, (int)pref);
837 CCtxParams->attachDictPref = pref;
838 return CCtxParams->attachDictPref;
839 }
840
841 case ZSTD_c_literalCompressionMode : {
842 const ZSTD_ParamSwitch_e lcm = (ZSTD_ParamSwitch_e)value;
843 BOUNDCHECK(ZSTD_c_literalCompressionMode, (int)lcm);
844 CCtxParams->literalCompressionMode = lcm;
845 return CCtxParams->literalCompressionMode;
846 }
847
848 case ZSTD_c_nbWorkers :
849 RETURN_ERROR_IF(value!=0, parameter_unsupported, "not compiled with multithreading");
850 return 0;
851
852 case ZSTD_c_jobSize :
853 RETURN_ERROR_IF(value!=0, parameter_unsupported, "not compiled with multithreading");
854 return 0;
855
856 case ZSTD_c_overlapLog :
857 RETURN_ERROR_IF(value!=0, parameter_unsupported, "not compiled with multithreading");
858 return 0;
859
860 case ZSTD_c_rsyncable :
861 RETURN_ERROR_IF(value!=0, parameter_unsupported, "not compiled with multithreading");
862 return 0;
863
864 case ZSTD_c_enableDedicatedDictSearch :
865 CCtxParams->enableDedicatedDictSearch = (value!=0);
866 return (size_t)CCtxParams->enableDedicatedDictSearch;
867
868 case ZSTD_c_enableLongDistanceMatching :
869 BOUNDCHECK(ZSTD_c_enableLongDistanceMatching, value);
870 CCtxParams->ldmParams.enableLdm = (ZSTD_ParamSwitch_e)value;
871 return CCtxParams->ldmParams.enableLdm;
872
873 case ZSTD_c_ldmHashLog :
874 if (value!=0) /* 0 ==> auto */
875 BOUNDCHECK(ZSTD_c_ldmHashLog, value);
876 CCtxParams->ldmParams.hashLog = (U32)value;
877 return CCtxParams->ldmParams.hashLog;
878
879 case ZSTD_c_ldmMinMatch :
880 if (value!=0) /* 0 ==> default */
881 BOUNDCHECK(ZSTD_c_ldmMinMatch, value);
882 CCtxParams->ldmParams.minMatchLength = (U32)value;
883 return CCtxParams->ldmParams.minMatchLength;
884
885 case ZSTD_c_ldmBucketSizeLog :
886 if (value!=0) /* 0 ==> default */
887 BOUNDCHECK(ZSTD_c_ldmBucketSizeLog, value);
888 CCtxParams->ldmParams.bucketSizeLog = (U32)value;
889 return CCtxParams->ldmParams.bucketSizeLog;
890
891 case ZSTD_c_ldmHashRateLog :
892 if (value!=0) /* 0 ==> default */
893 BOUNDCHECK(ZSTD_c_ldmHashRateLog, value);
894 CCtxParams->ldmParams.hashRateLog = (U32)value;
895 return CCtxParams->ldmParams.hashRateLog;
896
897 case ZSTD_c_targetCBlockSize :
898 if (value!=0) { /* 0 ==> default */
899 value = MAX(value, ZSTD_TARGETCBLOCKSIZE_MIN);
900 BOUNDCHECK(ZSTD_c_targetCBlockSize, value);
901 }
902 CCtxParams->targetCBlockSize = (U32)value;
903 return CCtxParams->targetCBlockSize;
904
905 case ZSTD_c_srcSizeHint :
906 if (value!=0) /* 0 ==> default */
907 BOUNDCHECK(ZSTD_c_srcSizeHint, value);
908 CCtxParams->srcSizeHint = value;
909 return (size_t)CCtxParams->srcSizeHint;
910
911 case ZSTD_c_stableInBuffer:
912 BOUNDCHECK(ZSTD_c_stableInBuffer, value);
913 CCtxParams->inBufferMode = (ZSTD_bufferMode_e)value;
914 return CCtxParams->inBufferMode;
915
916 case ZSTD_c_stableOutBuffer:
917 BOUNDCHECK(ZSTD_c_stableOutBuffer, value);
918 CCtxParams->outBufferMode = (ZSTD_bufferMode_e)value;
919 return CCtxParams->outBufferMode;
920
921 case ZSTD_c_blockDelimiters:
922 BOUNDCHECK(ZSTD_c_blockDelimiters, value);
923 CCtxParams->blockDelimiters = (ZSTD_SequenceFormat_e)value;
924 return CCtxParams->blockDelimiters;
925
926 case ZSTD_c_validateSequences:
927 BOUNDCHECK(ZSTD_c_validateSequences, value);
928 CCtxParams->validateSequences = value;
929 return (size_t)CCtxParams->validateSequences;
930
931 case ZSTD_c_splitAfterSequences:
932 BOUNDCHECK(ZSTD_c_splitAfterSequences, value);
933 CCtxParams->postBlockSplitter = (ZSTD_ParamSwitch_e)value;
934 return CCtxParams->postBlockSplitter;
935
936 case ZSTD_c_blockSplitterLevel:
937 BOUNDCHECK(ZSTD_c_blockSplitterLevel, value);
938 CCtxParams->preBlockSplitter_level = value;
939 return (size_t)CCtxParams->preBlockSplitter_level;
940
941 case ZSTD_c_useRowMatchFinder:
942 BOUNDCHECK(ZSTD_c_useRowMatchFinder, value);
943 CCtxParams->useRowMatchFinder = (ZSTD_ParamSwitch_e)value;
944 return CCtxParams->useRowMatchFinder;
945
946 case ZSTD_c_deterministicRefPrefix:
947 BOUNDCHECK(ZSTD_c_deterministicRefPrefix, value);
948 CCtxParams->deterministicRefPrefix = !!value;
949 return (size_t)CCtxParams->deterministicRefPrefix;
950
951 case ZSTD_c_prefetchCDictTables:
952 BOUNDCHECK(ZSTD_c_prefetchCDictTables, value);
953 CCtxParams->prefetchCDictTables = (ZSTD_ParamSwitch_e)value;
954 return CCtxParams->prefetchCDictTables;
955
956 case ZSTD_c_enableSeqProducerFallback:
957 BOUNDCHECK(ZSTD_c_enableSeqProducerFallback, value);
958 CCtxParams->enableMatchFinderFallback = value;
959 return (size_t)CCtxParams->enableMatchFinderFallback;
960
961 case ZSTD_c_maxBlockSize:
962 if (value!=0) /* 0 ==> default */
963 BOUNDCHECK(ZSTD_c_maxBlockSize, value);
964 assert(value>=0);
965 CCtxParams->maxBlockSize = (size_t)value;
966 return CCtxParams->maxBlockSize;
967
968 case ZSTD_c_repcodeResolution:
969 BOUNDCHECK(ZSTD_c_repcodeResolution, value);
970 CCtxParams->searchForExternalRepcodes = (ZSTD_ParamSwitch_e)value;
971 return CCtxParams->searchForExternalRepcodes;
972
973 default: RETURN_ERROR(parameter_unsupported, "unknown parameter");
974 }
975 }
976
ZSTD_CCtx_getParameter(ZSTD_CCtx const * cctx,ZSTD_cParameter param,int * value)977 size_t ZSTD_CCtx_getParameter(ZSTD_CCtx const* cctx, ZSTD_cParameter param, int* value)
978 {
979 return ZSTD_CCtxParams_getParameter(&cctx->requestedParams, param, value);
980 }
981
ZSTD_CCtxParams_getParameter(ZSTD_CCtx_params const * CCtxParams,ZSTD_cParameter param,int * value)982 size_t ZSTD_CCtxParams_getParameter(
983 ZSTD_CCtx_params const* CCtxParams, ZSTD_cParameter param, int* value)
984 {
985 switch(param)
986 {
987 case ZSTD_c_format :
988 *value = (int)CCtxParams->format;
989 break;
990 case ZSTD_c_compressionLevel :
991 *value = CCtxParams->compressionLevel;
992 break;
993 case ZSTD_c_windowLog :
994 *value = (int)CCtxParams->cParams.windowLog;
995 break;
996 case ZSTD_c_hashLog :
997 *value = (int)CCtxParams->cParams.hashLog;
998 break;
999 case ZSTD_c_chainLog :
1000 *value = (int)CCtxParams->cParams.chainLog;
1001 break;
1002 case ZSTD_c_searchLog :
1003 *value = (int)CCtxParams->cParams.searchLog;
1004 break;
1005 case ZSTD_c_minMatch :
1006 *value = (int)CCtxParams->cParams.minMatch;
1007 break;
1008 case ZSTD_c_targetLength :
1009 *value = (int)CCtxParams->cParams.targetLength;
1010 break;
1011 case ZSTD_c_strategy :
1012 *value = (int)CCtxParams->cParams.strategy;
1013 break;
1014 case ZSTD_c_contentSizeFlag :
1015 *value = CCtxParams->fParams.contentSizeFlag;
1016 break;
1017 case ZSTD_c_checksumFlag :
1018 *value = CCtxParams->fParams.checksumFlag;
1019 break;
1020 case ZSTD_c_dictIDFlag :
1021 *value = !CCtxParams->fParams.noDictIDFlag;
1022 break;
1023 case ZSTD_c_forceMaxWindow :
1024 *value = CCtxParams->forceWindow;
1025 break;
1026 case ZSTD_c_forceAttachDict :
1027 *value = (int)CCtxParams->attachDictPref;
1028 break;
1029 case ZSTD_c_literalCompressionMode :
1030 *value = (int)CCtxParams->literalCompressionMode;
1031 break;
1032 case ZSTD_c_nbWorkers :
1033 assert(CCtxParams->nbWorkers == 0);
1034 *value = CCtxParams->nbWorkers;
1035 break;
1036 case ZSTD_c_jobSize :
1037 RETURN_ERROR(parameter_unsupported, "not compiled with multithreading");
1038 case ZSTD_c_overlapLog :
1039 RETURN_ERROR(parameter_unsupported, "not compiled with multithreading");
1040 case ZSTD_c_rsyncable :
1041 RETURN_ERROR(parameter_unsupported, "not compiled with multithreading");
1042 case ZSTD_c_enableDedicatedDictSearch :
1043 *value = CCtxParams->enableDedicatedDictSearch;
1044 break;
1045 case ZSTD_c_enableLongDistanceMatching :
1046 *value = (int)CCtxParams->ldmParams.enableLdm;
1047 break;
1048 case ZSTD_c_ldmHashLog :
1049 *value = (int)CCtxParams->ldmParams.hashLog;
1050 break;
1051 case ZSTD_c_ldmMinMatch :
1052 *value = (int)CCtxParams->ldmParams.minMatchLength;
1053 break;
1054 case ZSTD_c_ldmBucketSizeLog :
1055 *value = (int)CCtxParams->ldmParams.bucketSizeLog;
1056 break;
1057 case ZSTD_c_ldmHashRateLog :
1058 *value = (int)CCtxParams->ldmParams.hashRateLog;
1059 break;
1060 case ZSTD_c_targetCBlockSize :
1061 *value = (int)CCtxParams->targetCBlockSize;
1062 break;
1063 case ZSTD_c_srcSizeHint :
1064 *value = (int)CCtxParams->srcSizeHint;
1065 break;
1066 case ZSTD_c_stableInBuffer :
1067 *value = (int)CCtxParams->inBufferMode;
1068 break;
1069 case ZSTD_c_stableOutBuffer :
1070 *value = (int)CCtxParams->outBufferMode;
1071 break;
1072 case ZSTD_c_blockDelimiters :
1073 *value = (int)CCtxParams->blockDelimiters;
1074 break;
1075 case ZSTD_c_validateSequences :
1076 *value = (int)CCtxParams->validateSequences;
1077 break;
1078 case ZSTD_c_splitAfterSequences :
1079 *value = (int)CCtxParams->postBlockSplitter;
1080 break;
1081 case ZSTD_c_blockSplitterLevel :
1082 *value = CCtxParams->preBlockSplitter_level;
1083 break;
1084 case ZSTD_c_useRowMatchFinder :
1085 *value = (int)CCtxParams->useRowMatchFinder;
1086 break;
1087 case ZSTD_c_deterministicRefPrefix:
1088 *value = (int)CCtxParams->deterministicRefPrefix;
1089 break;
1090 case ZSTD_c_prefetchCDictTables:
1091 *value = (int)CCtxParams->prefetchCDictTables;
1092 break;
1093 case ZSTD_c_enableSeqProducerFallback:
1094 *value = CCtxParams->enableMatchFinderFallback;
1095 break;
1096 case ZSTD_c_maxBlockSize:
1097 *value = (int)CCtxParams->maxBlockSize;
1098 break;
1099 case ZSTD_c_repcodeResolution:
1100 *value = (int)CCtxParams->searchForExternalRepcodes;
1101 break;
1102 default: RETURN_ERROR(parameter_unsupported, "unknown parameter");
1103 }
1104 return 0;
1105 }
1106
1107 /* ZSTD_CCtx_setParametersUsingCCtxParams() :
1108 * just applies `params` into `cctx`
1109 * no action is performed, parameters are merely stored.
1110 * If ZSTDMT is enabled, parameters are pushed to cctx->mtctx.
1111 * This is possible even if a compression is ongoing.
1112 * In which case, new parameters will be applied on the fly, starting with next compression job.
1113 */
ZSTD_CCtx_setParametersUsingCCtxParams(ZSTD_CCtx * cctx,const ZSTD_CCtx_params * params)1114 size_t ZSTD_CCtx_setParametersUsingCCtxParams(
1115 ZSTD_CCtx* cctx, const ZSTD_CCtx_params* params)
1116 {
1117 DEBUGLOG(4, "ZSTD_CCtx_setParametersUsingCCtxParams");
1118 RETURN_ERROR_IF(cctx->streamStage != zcss_init, stage_wrong,
1119 "The context is in the wrong stage!");
1120 RETURN_ERROR_IF(cctx->cdict, stage_wrong,
1121 "Can't override parameters with cdict attached (some must "
1122 "be inherited from the cdict).");
1123
1124 cctx->requestedParams = *params;
1125 return 0;
1126 }
1127
ZSTD_CCtx_setCParams(ZSTD_CCtx * cctx,ZSTD_compressionParameters cparams)1128 size_t ZSTD_CCtx_setCParams(ZSTD_CCtx* cctx, ZSTD_compressionParameters cparams)
1129 {
1130 ZSTD_STATIC_ASSERT(sizeof(cparams) == 7 * 4 /* all params are listed below */);
1131 DEBUGLOG(4, "ZSTD_CCtx_setCParams");
1132 /* only update if all parameters are valid */
1133 FORWARD_IF_ERROR(ZSTD_checkCParams(cparams), "");
1134 FORWARD_IF_ERROR(ZSTD_CCtx_setParameter(cctx, ZSTD_c_windowLog, (int)cparams.windowLog), "");
1135 FORWARD_IF_ERROR(ZSTD_CCtx_setParameter(cctx, ZSTD_c_chainLog, (int)cparams.chainLog), "");
1136 FORWARD_IF_ERROR(ZSTD_CCtx_setParameter(cctx, ZSTD_c_hashLog, (int)cparams.hashLog), "");
1137 FORWARD_IF_ERROR(ZSTD_CCtx_setParameter(cctx, ZSTD_c_searchLog, (int)cparams.searchLog), "");
1138 FORWARD_IF_ERROR(ZSTD_CCtx_setParameter(cctx, ZSTD_c_minMatch, (int)cparams.minMatch), "");
1139 FORWARD_IF_ERROR(ZSTD_CCtx_setParameter(cctx, ZSTD_c_targetLength, (int)cparams.targetLength), "");
1140 FORWARD_IF_ERROR(ZSTD_CCtx_setParameter(cctx, ZSTD_c_strategy, (int)cparams.strategy), "");
1141 return 0;
1142 }
1143
ZSTD_CCtx_setFParams(ZSTD_CCtx * cctx,ZSTD_frameParameters fparams)1144 size_t ZSTD_CCtx_setFParams(ZSTD_CCtx* cctx, ZSTD_frameParameters fparams)
1145 {
1146 ZSTD_STATIC_ASSERT(sizeof(fparams) == 3 * 4 /* all params are listed below */);
1147 DEBUGLOG(4, "ZSTD_CCtx_setFParams");
1148 FORWARD_IF_ERROR(ZSTD_CCtx_setParameter(cctx, ZSTD_c_contentSizeFlag, fparams.contentSizeFlag != 0), "");
1149 FORWARD_IF_ERROR(ZSTD_CCtx_setParameter(cctx, ZSTD_c_checksumFlag, fparams.checksumFlag != 0), "");
1150 FORWARD_IF_ERROR(ZSTD_CCtx_setParameter(cctx, ZSTD_c_dictIDFlag, fparams.noDictIDFlag == 0), "");
1151 return 0;
1152 }
1153
ZSTD_CCtx_setParams(ZSTD_CCtx * cctx,ZSTD_parameters params)1154 size_t ZSTD_CCtx_setParams(ZSTD_CCtx* cctx, ZSTD_parameters params)
1155 {
1156 DEBUGLOG(4, "ZSTD_CCtx_setParams");
1157 /* First check cParams, because we want to update all or none. */
1158 FORWARD_IF_ERROR(ZSTD_checkCParams(params.cParams), "");
1159 /* Next set fParams, because this could fail if the cctx isn't in init stage. */
1160 FORWARD_IF_ERROR(ZSTD_CCtx_setFParams(cctx, params.fParams), "");
1161 /* Finally set cParams, which should succeed. */
1162 FORWARD_IF_ERROR(ZSTD_CCtx_setCParams(cctx, params.cParams), "");
1163 return 0;
1164 }
1165
ZSTD_CCtx_setPledgedSrcSize(ZSTD_CCtx * cctx,unsigned long long pledgedSrcSize)1166 size_t ZSTD_CCtx_setPledgedSrcSize(ZSTD_CCtx* cctx, unsigned long long pledgedSrcSize)
1167 {
1168 DEBUGLOG(4, "ZSTD_CCtx_setPledgedSrcSize to %llu bytes", pledgedSrcSize);
1169 RETURN_ERROR_IF(cctx->streamStage != zcss_init, stage_wrong,
1170 "Can't set pledgedSrcSize when not in init stage.");
1171 cctx->pledgedSrcSizePlusOne = pledgedSrcSize+1;
1172 return 0;
1173 }
1174
1175 static ZSTD_compressionParameters ZSTD_dedicatedDictSearch_getCParams(
1176 int const compressionLevel,
1177 size_t const dictSize);
1178 static int ZSTD_dedicatedDictSearch_isSupported(
1179 const ZSTD_compressionParameters* cParams);
1180 static void ZSTD_dedicatedDictSearch_revertCParams(
1181 ZSTD_compressionParameters* cParams);
1182
1183 /*
1184 * Initializes the local dictionary using requested parameters.
1185 * NOTE: Initialization does not employ the pledged src size,
1186 * because the dictionary may be used for multiple compressions.
1187 */
ZSTD_initLocalDict(ZSTD_CCtx * cctx)1188 static size_t ZSTD_initLocalDict(ZSTD_CCtx* cctx)
1189 {
1190 ZSTD_localDict* const dl = &cctx->localDict;
1191 if (dl->dict == NULL) {
1192 /* No local dictionary. */
1193 assert(dl->dictBuffer == NULL);
1194 assert(dl->cdict == NULL);
1195 assert(dl->dictSize == 0);
1196 return 0;
1197 }
1198 if (dl->cdict != NULL) {
1199 /* Local dictionary already initialized. */
1200 assert(cctx->cdict == dl->cdict);
1201 return 0;
1202 }
1203 assert(dl->dictSize > 0);
1204 assert(cctx->cdict == NULL);
1205 assert(cctx->prefixDict.dict == NULL);
1206
1207 dl->cdict = ZSTD_createCDict_advanced2(
1208 dl->dict,
1209 dl->dictSize,
1210 ZSTD_dlm_byRef,
1211 dl->dictContentType,
1212 &cctx->requestedParams,
1213 cctx->customMem);
1214 RETURN_ERROR_IF(!dl->cdict, memory_allocation, "ZSTD_createCDict_advanced failed");
1215 cctx->cdict = dl->cdict;
1216 return 0;
1217 }
1218
ZSTD_CCtx_loadDictionary_advanced(ZSTD_CCtx * cctx,const void * dict,size_t dictSize,ZSTD_dictLoadMethod_e dictLoadMethod,ZSTD_dictContentType_e dictContentType)1219 size_t ZSTD_CCtx_loadDictionary_advanced(
1220 ZSTD_CCtx* cctx,
1221 const void* dict, size_t dictSize,
1222 ZSTD_dictLoadMethod_e dictLoadMethod,
1223 ZSTD_dictContentType_e dictContentType)
1224 {
1225 DEBUGLOG(4, "ZSTD_CCtx_loadDictionary_advanced (size: %u)", (U32)dictSize);
1226 RETURN_ERROR_IF(cctx->streamStage != zcss_init, stage_wrong,
1227 "Can't load a dictionary when cctx is not in init stage.");
1228 ZSTD_clearAllDicts(cctx); /* erase any previously set dictionary */
1229 if (dict == NULL || dictSize == 0) /* no dictionary */
1230 return 0;
1231 if (dictLoadMethod == ZSTD_dlm_byRef) {
1232 cctx->localDict.dict = dict;
1233 } else {
1234 /* copy dictionary content inside CCtx to own its lifetime */
1235 void* dictBuffer;
1236 RETURN_ERROR_IF(cctx->staticSize, memory_allocation,
1237 "static CCtx can't allocate for an internal copy of dictionary");
1238 dictBuffer = ZSTD_customMalloc(dictSize, cctx->customMem);
1239 RETURN_ERROR_IF(dictBuffer==NULL, memory_allocation,
1240 "allocation failed for dictionary content");
1241 ZSTD_memcpy(dictBuffer, dict, dictSize);
1242 cctx->localDict.dictBuffer = dictBuffer; /* owned ptr to free */
1243 cctx->localDict.dict = dictBuffer; /* read-only reference */
1244 }
1245 cctx->localDict.dictSize = dictSize;
1246 cctx->localDict.dictContentType = dictContentType;
1247 return 0;
1248 }
1249
ZSTD_CCtx_loadDictionary_byReference(ZSTD_CCtx * cctx,const void * dict,size_t dictSize)1250 size_t ZSTD_CCtx_loadDictionary_byReference(
1251 ZSTD_CCtx* cctx, const void* dict, size_t dictSize)
1252 {
1253 return ZSTD_CCtx_loadDictionary_advanced(
1254 cctx, dict, dictSize, ZSTD_dlm_byRef, ZSTD_dct_auto);
1255 }
1256
ZSTD_CCtx_loadDictionary(ZSTD_CCtx * cctx,const void * dict,size_t dictSize)1257 size_t ZSTD_CCtx_loadDictionary(ZSTD_CCtx* cctx, const void* dict, size_t dictSize)
1258 {
1259 return ZSTD_CCtx_loadDictionary_advanced(
1260 cctx, dict, dictSize, ZSTD_dlm_byCopy, ZSTD_dct_auto);
1261 }
1262
1263
ZSTD_CCtx_refCDict(ZSTD_CCtx * cctx,const ZSTD_CDict * cdict)1264 size_t ZSTD_CCtx_refCDict(ZSTD_CCtx* cctx, const ZSTD_CDict* cdict)
1265 {
1266 RETURN_ERROR_IF(cctx->streamStage != zcss_init, stage_wrong,
1267 "Can't ref a dict when ctx not in init stage.");
1268 /* Free the existing local cdict (if any) to save memory. */
1269 ZSTD_clearAllDicts(cctx);
1270 cctx->cdict = cdict;
1271 return 0;
1272 }
1273
ZSTD_CCtx_refThreadPool(ZSTD_CCtx * cctx,ZSTD_threadPool * pool)1274 size_t ZSTD_CCtx_refThreadPool(ZSTD_CCtx* cctx, ZSTD_threadPool* pool)
1275 {
1276 RETURN_ERROR_IF(cctx->streamStage != zcss_init, stage_wrong,
1277 "Can't ref a pool when ctx not in init stage.");
1278 cctx->pool = pool;
1279 return 0;
1280 }
1281
ZSTD_CCtx_refPrefix(ZSTD_CCtx * cctx,const void * prefix,size_t prefixSize)1282 size_t ZSTD_CCtx_refPrefix(ZSTD_CCtx* cctx, const void* prefix, size_t prefixSize)
1283 {
1284 return ZSTD_CCtx_refPrefix_advanced(cctx, prefix, prefixSize, ZSTD_dct_rawContent);
1285 }
1286
ZSTD_CCtx_refPrefix_advanced(ZSTD_CCtx * cctx,const void * prefix,size_t prefixSize,ZSTD_dictContentType_e dictContentType)1287 size_t ZSTD_CCtx_refPrefix_advanced(
1288 ZSTD_CCtx* cctx, const void* prefix, size_t prefixSize, ZSTD_dictContentType_e dictContentType)
1289 {
1290 RETURN_ERROR_IF(cctx->streamStage != zcss_init, stage_wrong,
1291 "Can't ref a prefix when ctx not in init stage.");
1292 ZSTD_clearAllDicts(cctx);
1293 if (prefix != NULL && prefixSize > 0) {
1294 cctx->prefixDict.dict = prefix;
1295 cctx->prefixDict.dictSize = prefixSize;
1296 cctx->prefixDict.dictContentType = dictContentType;
1297 }
1298 return 0;
1299 }
1300
1301 /*! ZSTD_CCtx_reset() :
1302 * Also dumps dictionary */
ZSTD_CCtx_reset(ZSTD_CCtx * cctx,ZSTD_ResetDirective reset)1303 size_t ZSTD_CCtx_reset(ZSTD_CCtx* cctx, ZSTD_ResetDirective reset)
1304 {
1305 if ( (reset == ZSTD_reset_session_only)
1306 || (reset == ZSTD_reset_session_and_parameters) ) {
1307 cctx->streamStage = zcss_init;
1308 cctx->pledgedSrcSizePlusOne = 0;
1309 }
1310 if ( (reset == ZSTD_reset_parameters)
1311 || (reset == ZSTD_reset_session_and_parameters) ) {
1312 RETURN_ERROR_IF(cctx->streamStage != zcss_init, stage_wrong,
1313 "Reset parameters is only possible during init stage.");
1314 ZSTD_clearAllDicts(cctx);
1315 return ZSTD_CCtxParams_reset(&cctx->requestedParams);
1316 }
1317 return 0;
1318 }
1319
1320
1321 /* ZSTD_checkCParams() :
1322 control CParam values remain within authorized range.
1323 @return : 0, or an error code if one value is beyond authorized range */
ZSTD_checkCParams(ZSTD_compressionParameters cParams)1324 size_t ZSTD_checkCParams(ZSTD_compressionParameters cParams)
1325 {
1326 BOUNDCHECK(ZSTD_c_windowLog, (int)cParams.windowLog);
1327 BOUNDCHECK(ZSTD_c_chainLog, (int)cParams.chainLog);
1328 BOUNDCHECK(ZSTD_c_hashLog, (int)cParams.hashLog);
1329 BOUNDCHECK(ZSTD_c_searchLog, (int)cParams.searchLog);
1330 BOUNDCHECK(ZSTD_c_minMatch, (int)cParams.minMatch);
1331 BOUNDCHECK(ZSTD_c_targetLength,(int)cParams.targetLength);
1332 BOUNDCHECK(ZSTD_c_strategy, (int)cParams.strategy);
1333 return 0;
1334 }
1335
1336 /* ZSTD_clampCParams() :
1337 * make CParam values within valid range.
1338 * @return : valid CParams */
1339 static ZSTD_compressionParameters
ZSTD_clampCParams(ZSTD_compressionParameters cParams)1340 ZSTD_clampCParams(ZSTD_compressionParameters cParams)
1341 {
1342 # define CLAMP_TYPE(cParam, val, type) \
1343 do { \
1344 ZSTD_bounds const bounds = ZSTD_cParam_getBounds(cParam); \
1345 if ((int)val<bounds.lowerBound) val=(type)bounds.lowerBound; \
1346 else if ((int)val>bounds.upperBound) val=(type)bounds.upperBound; \
1347 } while (0)
1348 # define CLAMP(cParam, val) CLAMP_TYPE(cParam, val, unsigned)
1349 CLAMP(ZSTD_c_windowLog, cParams.windowLog);
1350 CLAMP(ZSTD_c_chainLog, cParams.chainLog);
1351 CLAMP(ZSTD_c_hashLog, cParams.hashLog);
1352 CLAMP(ZSTD_c_searchLog, cParams.searchLog);
1353 CLAMP(ZSTD_c_minMatch, cParams.minMatch);
1354 CLAMP(ZSTD_c_targetLength,cParams.targetLength);
1355 CLAMP_TYPE(ZSTD_c_strategy,cParams.strategy, ZSTD_strategy);
1356 return cParams;
1357 }
1358
1359 /* ZSTD_cycleLog() :
1360 * condition for correct operation : hashLog > 1 */
ZSTD_cycleLog(U32 hashLog,ZSTD_strategy strat)1361 U32 ZSTD_cycleLog(U32 hashLog, ZSTD_strategy strat)
1362 {
1363 U32 const btScale = ((U32)strat >= (U32)ZSTD_btlazy2);
1364 return hashLog - btScale;
1365 }
1366
1367 /* ZSTD_dictAndWindowLog() :
1368 * Returns an adjusted window log that is large enough to fit the source and the dictionary.
1369 * The zstd format says that the entire dictionary is valid if one byte of the dictionary
1370 * is within the window. So the hashLog and chainLog should be large enough to reference both
1371 * the dictionary and the window. So we must use this adjusted dictAndWindowLog when downsizing
1372 * the hashLog and windowLog.
1373 * NOTE: srcSize must not be ZSTD_CONTENTSIZE_UNKNOWN.
1374 */
ZSTD_dictAndWindowLog(U32 windowLog,U64 srcSize,U64 dictSize)1375 static U32 ZSTD_dictAndWindowLog(U32 windowLog, U64 srcSize, U64 dictSize)
1376 {
1377 const U64 maxWindowSize = 1ULL << ZSTD_WINDOWLOG_MAX;
1378 /* No dictionary ==> No change */
1379 if (dictSize == 0) {
1380 return windowLog;
1381 }
1382 assert(windowLog <= ZSTD_WINDOWLOG_MAX);
1383 assert(srcSize != ZSTD_CONTENTSIZE_UNKNOWN); /* Handled in ZSTD_adjustCParams_internal() */
1384 {
1385 U64 const windowSize = 1ULL << windowLog;
1386 U64 const dictAndWindowSize = dictSize + windowSize;
1387 /* If the window size is already large enough to fit both the source and the dictionary
1388 * then just use the window size. Otherwise adjust so that it fits the dictionary and
1389 * the window.
1390 */
1391 if (windowSize >= dictSize + srcSize) {
1392 return windowLog; /* Window size large enough already */
1393 } else if (dictAndWindowSize >= maxWindowSize) {
1394 return ZSTD_WINDOWLOG_MAX; /* Larger than max window log */
1395 } else {
1396 return ZSTD_highbit32((U32)dictAndWindowSize - 1) + 1;
1397 }
1398 }
1399 }
1400
1401 /* ZSTD_adjustCParams_internal() :
1402 * optimize `cPar` for a specified input (`srcSize` and `dictSize`).
1403 * mostly downsize to reduce memory consumption and initialization latency.
1404 * `srcSize` can be ZSTD_CONTENTSIZE_UNKNOWN when not known.
1405 * `mode` is the mode for parameter adjustment. See docs for `ZSTD_CParamMode_e`.
1406 * note : `srcSize==0` means 0!
1407 * condition : cPar is presumed validated (can be checked using ZSTD_checkCParams()). */
1408 static ZSTD_compressionParameters
ZSTD_adjustCParams_internal(ZSTD_compressionParameters cPar,unsigned long long srcSize,size_t dictSize,ZSTD_CParamMode_e mode,ZSTD_ParamSwitch_e useRowMatchFinder)1409 ZSTD_adjustCParams_internal(ZSTD_compressionParameters cPar,
1410 unsigned long long srcSize,
1411 size_t dictSize,
1412 ZSTD_CParamMode_e mode,
1413 ZSTD_ParamSwitch_e useRowMatchFinder)
1414 {
1415 const U64 minSrcSize = 513; /* (1<<9) + 1 */
1416 const U64 maxWindowResize = 1ULL << (ZSTD_WINDOWLOG_MAX-1);
1417 assert(ZSTD_checkCParams(cPar)==0);
1418
1419 /* Cascade the selected strategy down to the next-highest one built into
1420 * this binary. */
1421 #ifdef ZSTD_EXCLUDE_BTULTRA_BLOCK_COMPRESSOR
1422 if (cPar.strategy == ZSTD_btultra2) {
1423 cPar.strategy = ZSTD_btultra;
1424 }
1425 if (cPar.strategy == ZSTD_btultra) {
1426 cPar.strategy = ZSTD_btopt;
1427 }
1428 #endif
1429 #ifdef ZSTD_EXCLUDE_BTOPT_BLOCK_COMPRESSOR
1430 if (cPar.strategy == ZSTD_btopt) {
1431 cPar.strategy = ZSTD_btlazy2;
1432 }
1433 #endif
1434 #ifdef ZSTD_EXCLUDE_BTLAZY2_BLOCK_COMPRESSOR
1435 if (cPar.strategy == ZSTD_btlazy2) {
1436 cPar.strategy = ZSTD_lazy2;
1437 }
1438 #endif
1439 #ifdef ZSTD_EXCLUDE_LAZY2_BLOCK_COMPRESSOR
1440 if (cPar.strategy == ZSTD_lazy2) {
1441 cPar.strategy = ZSTD_lazy;
1442 }
1443 #endif
1444 #ifdef ZSTD_EXCLUDE_LAZY_BLOCK_COMPRESSOR
1445 if (cPar.strategy == ZSTD_lazy) {
1446 cPar.strategy = ZSTD_greedy;
1447 }
1448 #endif
1449 #ifdef ZSTD_EXCLUDE_GREEDY_BLOCK_COMPRESSOR
1450 if (cPar.strategy == ZSTD_greedy) {
1451 cPar.strategy = ZSTD_dfast;
1452 }
1453 #endif
1454 #ifdef ZSTD_EXCLUDE_DFAST_BLOCK_COMPRESSOR
1455 if (cPar.strategy == ZSTD_dfast) {
1456 cPar.strategy = ZSTD_fast;
1457 cPar.targetLength = 0;
1458 }
1459 #endif
1460
1461 switch (mode) {
1462 case ZSTD_cpm_unknown:
1463 case ZSTD_cpm_noAttachDict:
1464 /* If we don't know the source size, don't make any
1465 * assumptions about it. We will already have selected
1466 * smaller parameters if a dictionary is in use.
1467 */
1468 break;
1469 case ZSTD_cpm_createCDict:
1470 /* Assume a small source size when creating a dictionary
1471 * with an unknown source size.
1472 */
1473 if (dictSize && srcSize == ZSTD_CONTENTSIZE_UNKNOWN)
1474 srcSize = minSrcSize;
1475 break;
1476 case ZSTD_cpm_attachDict:
1477 /* Dictionary has its own dedicated parameters which have
1478 * already been selected. We are selecting parameters
1479 * for only the source.
1480 */
1481 dictSize = 0;
1482 break;
1483 default:
1484 assert(0);
1485 break;
1486 }
1487
1488 /* resize windowLog if input is small enough, to use less memory */
1489 if ( (srcSize <= maxWindowResize)
1490 && (dictSize <= maxWindowResize) ) {
1491 U32 const tSize = (U32)(srcSize + dictSize);
1492 static U32 const hashSizeMin = 1 << ZSTD_HASHLOG_MIN;
1493 U32 const srcLog = (tSize < hashSizeMin) ? ZSTD_HASHLOG_MIN :
1494 ZSTD_highbit32(tSize-1) + 1;
1495 if (cPar.windowLog > srcLog) cPar.windowLog = srcLog;
1496 }
1497 if (srcSize != ZSTD_CONTENTSIZE_UNKNOWN) {
1498 U32 const dictAndWindowLog = ZSTD_dictAndWindowLog(cPar.windowLog, (U64)srcSize, (U64)dictSize);
1499 U32 const cycleLog = ZSTD_cycleLog(cPar.chainLog, cPar.strategy);
1500 if (cPar.hashLog > dictAndWindowLog+1) cPar.hashLog = dictAndWindowLog+1;
1501 if (cycleLog > dictAndWindowLog)
1502 cPar.chainLog -= (cycleLog - dictAndWindowLog);
1503 }
1504
1505 if (cPar.windowLog < ZSTD_WINDOWLOG_ABSOLUTEMIN)
1506 cPar.windowLog = ZSTD_WINDOWLOG_ABSOLUTEMIN; /* minimum wlog required for valid frame header */
1507
1508 /* We can't use more than 32 bits of hash in total, so that means that we require:
1509 * (hashLog + 8) <= 32 && (chainLog + 8) <= 32
1510 */
1511 if (mode == ZSTD_cpm_createCDict && ZSTD_CDictIndicesAreTagged(&cPar)) {
1512 U32 const maxShortCacheHashLog = 32 - ZSTD_SHORT_CACHE_TAG_BITS;
1513 if (cPar.hashLog > maxShortCacheHashLog) {
1514 cPar.hashLog = maxShortCacheHashLog;
1515 }
1516 if (cPar.chainLog > maxShortCacheHashLog) {
1517 cPar.chainLog = maxShortCacheHashLog;
1518 }
1519 }
1520
1521
1522 /* At this point, we aren't 100% sure if we are using the row match finder.
1523 * Unless it is explicitly disabled, conservatively assume that it is enabled.
1524 * In this case it will only be disabled for small sources, so shrinking the
1525 * hash log a little bit shouldn't result in any ratio loss.
1526 */
1527 if (useRowMatchFinder == ZSTD_ps_auto)
1528 useRowMatchFinder = ZSTD_ps_enable;
1529
1530 /* We can't hash more than 32-bits in total. So that means that we require:
1531 * (hashLog - rowLog + 8) <= 32
1532 */
1533 if (ZSTD_rowMatchFinderUsed(cPar.strategy, useRowMatchFinder)) {
1534 /* Switch to 32-entry rows if searchLog is 5 (or more) */
1535 U32 const rowLog = BOUNDED(4, cPar.searchLog, 6);
1536 U32 const maxRowHashLog = 32 - ZSTD_ROW_HASH_TAG_BITS;
1537 U32 const maxHashLog = maxRowHashLog + rowLog;
1538 assert(cPar.hashLog >= rowLog);
1539 if (cPar.hashLog > maxHashLog) {
1540 cPar.hashLog = maxHashLog;
1541 }
1542 }
1543
1544 return cPar;
1545 }
1546
1547 ZSTD_compressionParameters
ZSTD_adjustCParams(ZSTD_compressionParameters cPar,unsigned long long srcSize,size_t dictSize)1548 ZSTD_adjustCParams(ZSTD_compressionParameters cPar,
1549 unsigned long long srcSize,
1550 size_t dictSize)
1551 {
1552 cPar = ZSTD_clampCParams(cPar); /* resulting cPar is necessarily valid (all parameters within range) */
1553 if (srcSize == 0) srcSize = ZSTD_CONTENTSIZE_UNKNOWN;
1554 return ZSTD_adjustCParams_internal(cPar, srcSize, dictSize, ZSTD_cpm_unknown, ZSTD_ps_auto);
1555 }
1556
1557 static ZSTD_compressionParameters ZSTD_getCParams_internal(int compressionLevel, unsigned long long srcSizeHint, size_t dictSize, ZSTD_CParamMode_e mode);
1558 static ZSTD_parameters ZSTD_getParams_internal(int compressionLevel, unsigned long long srcSizeHint, size_t dictSize, ZSTD_CParamMode_e mode);
1559
ZSTD_overrideCParams(ZSTD_compressionParameters * cParams,const ZSTD_compressionParameters * overrides)1560 static void ZSTD_overrideCParams(
1561 ZSTD_compressionParameters* cParams,
1562 const ZSTD_compressionParameters* overrides)
1563 {
1564 if (overrides->windowLog) cParams->windowLog = overrides->windowLog;
1565 if (overrides->hashLog) cParams->hashLog = overrides->hashLog;
1566 if (overrides->chainLog) cParams->chainLog = overrides->chainLog;
1567 if (overrides->searchLog) cParams->searchLog = overrides->searchLog;
1568 if (overrides->minMatch) cParams->minMatch = overrides->minMatch;
1569 if (overrides->targetLength) cParams->targetLength = overrides->targetLength;
1570 if (overrides->strategy) cParams->strategy = overrides->strategy;
1571 }
1572
ZSTD_getCParamsFromCCtxParams(const ZSTD_CCtx_params * CCtxParams,U64 srcSizeHint,size_t dictSize,ZSTD_CParamMode_e mode)1573 ZSTD_compressionParameters ZSTD_getCParamsFromCCtxParams(
1574 const ZSTD_CCtx_params* CCtxParams, U64 srcSizeHint, size_t dictSize, ZSTD_CParamMode_e mode)
1575 {
1576 ZSTD_compressionParameters cParams;
1577 if (srcSizeHint == ZSTD_CONTENTSIZE_UNKNOWN && CCtxParams->srcSizeHint > 0) {
1578 assert(CCtxParams->srcSizeHint>=0);
1579 srcSizeHint = (U64)CCtxParams->srcSizeHint;
1580 }
1581 cParams = ZSTD_getCParams_internal(CCtxParams->compressionLevel, srcSizeHint, dictSize, mode);
1582 if (CCtxParams->ldmParams.enableLdm == ZSTD_ps_enable) cParams.windowLog = ZSTD_LDM_DEFAULT_WINDOW_LOG;
1583 ZSTD_overrideCParams(&cParams, &CCtxParams->cParams);
1584 assert(!ZSTD_checkCParams(cParams));
1585 /* srcSizeHint == 0 means 0 */
1586 return ZSTD_adjustCParams_internal(cParams, srcSizeHint, dictSize, mode, CCtxParams->useRowMatchFinder);
1587 }
1588
1589 static size_t
ZSTD_sizeof_matchState(const ZSTD_compressionParameters * const cParams,const ZSTD_ParamSwitch_e useRowMatchFinder,const int enableDedicatedDictSearch,const U32 forCCtx)1590 ZSTD_sizeof_matchState(const ZSTD_compressionParameters* const cParams,
1591 const ZSTD_ParamSwitch_e useRowMatchFinder,
1592 const int enableDedicatedDictSearch,
1593 const U32 forCCtx)
1594 {
1595 /* chain table size should be 0 for fast or row-hash strategies */
1596 size_t const chainSize = ZSTD_allocateChainTable(cParams->strategy, useRowMatchFinder, enableDedicatedDictSearch && !forCCtx)
1597 ? ((size_t)1 << cParams->chainLog)
1598 : 0;
1599 size_t const hSize = ((size_t)1) << cParams->hashLog;
1600 U32 const hashLog3 = (forCCtx && cParams->minMatch==3) ? MIN(ZSTD_HASHLOG3_MAX, cParams->windowLog) : 0;
1601 size_t const h3Size = hashLog3 ? ((size_t)1) << hashLog3 : 0;
1602 /* We don't use ZSTD_cwksp_alloc_size() here because the tables aren't
1603 * surrounded by redzones in ASAN. */
1604 size_t const tableSpace = chainSize * sizeof(U32)
1605 + hSize * sizeof(U32)
1606 + h3Size * sizeof(U32);
1607 size_t const optPotentialSpace =
1608 ZSTD_cwksp_aligned64_alloc_size((MaxML+1) * sizeof(U32))
1609 + ZSTD_cwksp_aligned64_alloc_size((MaxLL+1) * sizeof(U32))
1610 + ZSTD_cwksp_aligned64_alloc_size((MaxOff+1) * sizeof(U32))
1611 + ZSTD_cwksp_aligned64_alloc_size((1<<Litbits) * sizeof(U32))
1612 + ZSTD_cwksp_aligned64_alloc_size(ZSTD_OPT_SIZE * sizeof(ZSTD_match_t))
1613 + ZSTD_cwksp_aligned64_alloc_size(ZSTD_OPT_SIZE * sizeof(ZSTD_optimal_t));
1614 size_t const lazyAdditionalSpace = ZSTD_rowMatchFinderUsed(cParams->strategy, useRowMatchFinder)
1615 ? ZSTD_cwksp_aligned64_alloc_size(hSize)
1616 : 0;
1617 size_t const optSpace = (forCCtx && (cParams->strategy >= ZSTD_btopt))
1618 ? optPotentialSpace
1619 : 0;
1620 size_t const slackSpace = ZSTD_cwksp_slack_space_required();
1621
1622 /* tables are guaranteed to be sized in multiples of 64 bytes (or 16 uint32_t) */
1623 ZSTD_STATIC_ASSERT(ZSTD_HASHLOG_MIN >= 4 && ZSTD_WINDOWLOG_MIN >= 4 && ZSTD_CHAINLOG_MIN >= 4);
1624 assert(useRowMatchFinder != ZSTD_ps_auto);
1625
1626 DEBUGLOG(4, "chainSize: %u - hSize: %u - h3Size: %u",
1627 (U32)chainSize, (U32)hSize, (U32)h3Size);
1628 return tableSpace + optSpace + slackSpace + lazyAdditionalSpace;
1629 }
1630
1631 /* Helper function for calculating memory requirements.
1632 * Gives a tighter bound than ZSTD_sequenceBound() by taking minMatch into account. */
ZSTD_maxNbSeq(size_t blockSize,unsigned minMatch,int useSequenceProducer)1633 static size_t ZSTD_maxNbSeq(size_t blockSize, unsigned minMatch, int useSequenceProducer) {
1634 U32 const divider = (minMatch==3 || useSequenceProducer) ? 3 : 4;
1635 return blockSize / divider;
1636 }
1637
ZSTD_estimateCCtxSize_usingCCtxParams_internal(const ZSTD_compressionParameters * cParams,const ldmParams_t * ldmParams,const int isStatic,const ZSTD_ParamSwitch_e useRowMatchFinder,const size_t buffInSize,const size_t buffOutSize,const U64 pledgedSrcSize,int useSequenceProducer,size_t maxBlockSize)1638 static size_t ZSTD_estimateCCtxSize_usingCCtxParams_internal(
1639 const ZSTD_compressionParameters* cParams,
1640 const ldmParams_t* ldmParams,
1641 const int isStatic,
1642 const ZSTD_ParamSwitch_e useRowMatchFinder,
1643 const size_t buffInSize,
1644 const size_t buffOutSize,
1645 const U64 pledgedSrcSize,
1646 int useSequenceProducer,
1647 size_t maxBlockSize)
1648 {
1649 size_t const windowSize = (size_t) BOUNDED(1ULL, 1ULL << cParams->windowLog, pledgedSrcSize);
1650 size_t const blockSize = MIN(ZSTD_resolveMaxBlockSize(maxBlockSize), windowSize);
1651 size_t const maxNbSeq = ZSTD_maxNbSeq(blockSize, cParams->minMatch, useSequenceProducer);
1652 size_t const tokenSpace = ZSTD_cwksp_alloc_size(WILDCOPY_OVERLENGTH + blockSize)
1653 + ZSTD_cwksp_aligned64_alloc_size(maxNbSeq * sizeof(SeqDef))
1654 + 3 * ZSTD_cwksp_alloc_size(maxNbSeq * sizeof(BYTE));
1655 size_t const tmpWorkSpace = ZSTD_cwksp_alloc_size(TMP_WORKSPACE_SIZE);
1656 size_t const blockStateSpace = 2 * ZSTD_cwksp_alloc_size(sizeof(ZSTD_compressedBlockState_t));
1657 size_t const matchStateSize = ZSTD_sizeof_matchState(cParams, useRowMatchFinder, /* enableDedicatedDictSearch */ 0, /* forCCtx */ 1);
1658
1659 size_t const ldmSpace = ZSTD_ldm_getTableSize(*ldmParams);
1660 size_t const maxNbLdmSeq = ZSTD_ldm_getMaxNbSeq(*ldmParams, blockSize);
1661 size_t const ldmSeqSpace = ldmParams->enableLdm == ZSTD_ps_enable ?
1662 ZSTD_cwksp_aligned64_alloc_size(maxNbLdmSeq * sizeof(rawSeq)) : 0;
1663
1664
1665 size_t const bufferSpace = ZSTD_cwksp_alloc_size(buffInSize)
1666 + ZSTD_cwksp_alloc_size(buffOutSize);
1667
1668 size_t const cctxSpace = isStatic ? ZSTD_cwksp_alloc_size(sizeof(ZSTD_CCtx)) : 0;
1669
1670 size_t const maxNbExternalSeq = ZSTD_sequenceBound(blockSize);
1671 size_t const externalSeqSpace = useSequenceProducer
1672 ? ZSTD_cwksp_aligned64_alloc_size(maxNbExternalSeq * sizeof(ZSTD_Sequence))
1673 : 0;
1674
1675 size_t const neededSpace =
1676 cctxSpace +
1677 tmpWorkSpace +
1678 blockStateSpace +
1679 ldmSpace +
1680 ldmSeqSpace +
1681 matchStateSize +
1682 tokenSpace +
1683 bufferSpace +
1684 externalSeqSpace;
1685
1686 DEBUGLOG(5, "estimate workspace : %u", (U32)neededSpace);
1687 return neededSpace;
1688 }
1689
ZSTD_estimateCCtxSize_usingCCtxParams(const ZSTD_CCtx_params * params)1690 size_t ZSTD_estimateCCtxSize_usingCCtxParams(const ZSTD_CCtx_params* params)
1691 {
1692 ZSTD_compressionParameters const cParams =
1693 ZSTD_getCParamsFromCCtxParams(params, ZSTD_CONTENTSIZE_UNKNOWN, 0, ZSTD_cpm_noAttachDict);
1694 ZSTD_ParamSwitch_e const useRowMatchFinder = ZSTD_resolveRowMatchFinderMode(params->useRowMatchFinder,
1695 &cParams);
1696
1697 RETURN_ERROR_IF(params->nbWorkers > 0, GENERIC, "Estimate CCtx size is supported for single-threaded compression only.");
1698 /* estimateCCtxSize is for one-shot compression. So no buffers should
1699 * be needed. However, we still allocate two 0-sized buffers, which can
1700 * take space under ASAN. */
1701 return ZSTD_estimateCCtxSize_usingCCtxParams_internal(
1702 &cParams, ¶ms->ldmParams, 1, useRowMatchFinder, 0, 0, ZSTD_CONTENTSIZE_UNKNOWN, ZSTD_hasExtSeqProd(params), params->maxBlockSize);
1703 }
1704
ZSTD_estimateCCtxSize_usingCParams(ZSTD_compressionParameters cParams)1705 size_t ZSTD_estimateCCtxSize_usingCParams(ZSTD_compressionParameters cParams)
1706 {
1707 ZSTD_CCtx_params initialParams = ZSTD_makeCCtxParamsFromCParams(cParams);
1708 if (ZSTD_rowMatchFinderSupported(cParams.strategy)) {
1709 /* Pick bigger of not using and using row-based matchfinder for greedy and lazy strategies */
1710 size_t noRowCCtxSize;
1711 size_t rowCCtxSize;
1712 initialParams.useRowMatchFinder = ZSTD_ps_disable;
1713 noRowCCtxSize = ZSTD_estimateCCtxSize_usingCCtxParams(&initialParams);
1714 initialParams.useRowMatchFinder = ZSTD_ps_enable;
1715 rowCCtxSize = ZSTD_estimateCCtxSize_usingCCtxParams(&initialParams);
1716 return MAX(noRowCCtxSize, rowCCtxSize);
1717 } else {
1718 return ZSTD_estimateCCtxSize_usingCCtxParams(&initialParams);
1719 }
1720 }
1721
ZSTD_estimateCCtxSize_internal(int compressionLevel)1722 static size_t ZSTD_estimateCCtxSize_internal(int compressionLevel)
1723 {
1724 int tier = 0;
1725 size_t largestSize = 0;
1726 static const unsigned long long srcSizeTiers[4] = {16 KB, 128 KB, 256 KB, ZSTD_CONTENTSIZE_UNKNOWN};
1727 for (; tier < 4; ++tier) {
1728 /* Choose the set of cParams for a given level across all srcSizes that give the largest cctxSize */
1729 ZSTD_compressionParameters const cParams = ZSTD_getCParams_internal(compressionLevel, srcSizeTiers[tier], 0, ZSTD_cpm_noAttachDict);
1730 largestSize = MAX(ZSTD_estimateCCtxSize_usingCParams(cParams), largestSize);
1731 }
1732 return largestSize;
1733 }
1734
ZSTD_estimateCCtxSize(int compressionLevel)1735 size_t ZSTD_estimateCCtxSize(int compressionLevel)
1736 {
1737 int level;
1738 size_t memBudget = 0;
1739 for (level=MIN(compressionLevel, 1); level<=compressionLevel; level++) {
1740 /* Ensure monotonically increasing memory usage as compression level increases */
1741 size_t const newMB = ZSTD_estimateCCtxSize_internal(level);
1742 if (newMB > memBudget) memBudget = newMB;
1743 }
1744 return memBudget;
1745 }
1746
ZSTD_estimateCStreamSize_usingCCtxParams(const ZSTD_CCtx_params * params)1747 size_t ZSTD_estimateCStreamSize_usingCCtxParams(const ZSTD_CCtx_params* params)
1748 {
1749 RETURN_ERROR_IF(params->nbWorkers > 0, GENERIC, "Estimate CCtx size is supported for single-threaded compression only.");
1750 { ZSTD_compressionParameters const cParams =
1751 ZSTD_getCParamsFromCCtxParams(params, ZSTD_CONTENTSIZE_UNKNOWN, 0, ZSTD_cpm_noAttachDict);
1752 size_t const blockSize = MIN(ZSTD_resolveMaxBlockSize(params->maxBlockSize), (size_t)1 << cParams.windowLog);
1753 size_t const inBuffSize = (params->inBufferMode == ZSTD_bm_buffered)
1754 ? ((size_t)1 << cParams.windowLog) + blockSize
1755 : 0;
1756 size_t const outBuffSize = (params->outBufferMode == ZSTD_bm_buffered)
1757 ? ZSTD_compressBound(blockSize) + 1
1758 : 0;
1759 ZSTD_ParamSwitch_e const useRowMatchFinder = ZSTD_resolveRowMatchFinderMode(params->useRowMatchFinder, ¶ms->cParams);
1760
1761 return ZSTD_estimateCCtxSize_usingCCtxParams_internal(
1762 &cParams, ¶ms->ldmParams, 1, useRowMatchFinder, inBuffSize, outBuffSize,
1763 ZSTD_CONTENTSIZE_UNKNOWN, ZSTD_hasExtSeqProd(params), params->maxBlockSize);
1764 }
1765 }
1766
ZSTD_estimateCStreamSize_usingCParams(ZSTD_compressionParameters cParams)1767 size_t ZSTD_estimateCStreamSize_usingCParams(ZSTD_compressionParameters cParams)
1768 {
1769 ZSTD_CCtx_params initialParams = ZSTD_makeCCtxParamsFromCParams(cParams);
1770 if (ZSTD_rowMatchFinderSupported(cParams.strategy)) {
1771 /* Pick bigger of not using and using row-based matchfinder for greedy and lazy strategies */
1772 size_t noRowCCtxSize;
1773 size_t rowCCtxSize;
1774 initialParams.useRowMatchFinder = ZSTD_ps_disable;
1775 noRowCCtxSize = ZSTD_estimateCStreamSize_usingCCtxParams(&initialParams);
1776 initialParams.useRowMatchFinder = ZSTD_ps_enable;
1777 rowCCtxSize = ZSTD_estimateCStreamSize_usingCCtxParams(&initialParams);
1778 return MAX(noRowCCtxSize, rowCCtxSize);
1779 } else {
1780 return ZSTD_estimateCStreamSize_usingCCtxParams(&initialParams);
1781 }
1782 }
1783
ZSTD_estimateCStreamSize_internal(int compressionLevel)1784 static size_t ZSTD_estimateCStreamSize_internal(int compressionLevel)
1785 {
1786 ZSTD_compressionParameters const cParams = ZSTD_getCParams_internal(compressionLevel, ZSTD_CONTENTSIZE_UNKNOWN, 0, ZSTD_cpm_noAttachDict);
1787 return ZSTD_estimateCStreamSize_usingCParams(cParams);
1788 }
1789
ZSTD_estimateCStreamSize(int compressionLevel)1790 size_t ZSTD_estimateCStreamSize(int compressionLevel)
1791 {
1792 int level;
1793 size_t memBudget = 0;
1794 for (level=MIN(compressionLevel, 1); level<=compressionLevel; level++) {
1795 size_t const newMB = ZSTD_estimateCStreamSize_internal(level);
1796 if (newMB > memBudget) memBudget = newMB;
1797 }
1798 return memBudget;
1799 }
1800
1801 /* ZSTD_getFrameProgression():
1802 * tells how much data has been consumed (input) and produced (output) for current frame.
1803 * able to count progression inside worker threads (non-blocking mode).
1804 */
ZSTD_getFrameProgression(const ZSTD_CCtx * cctx)1805 ZSTD_frameProgression ZSTD_getFrameProgression(const ZSTD_CCtx* cctx)
1806 {
1807 { ZSTD_frameProgression fp;
1808 size_t const buffered = (cctx->inBuff == NULL) ? 0 :
1809 cctx->inBuffPos - cctx->inToCompress;
1810 if (buffered) assert(cctx->inBuffPos >= cctx->inToCompress);
1811 assert(buffered <= ZSTD_BLOCKSIZE_MAX);
1812 fp.ingested = cctx->consumedSrcSize + buffered;
1813 fp.consumed = cctx->consumedSrcSize;
1814 fp.produced = cctx->producedCSize;
1815 fp.flushed = cctx->producedCSize; /* simplified; some data might still be left within streaming output buffer */
1816 fp.currentJobID = 0;
1817 fp.nbActiveWorkers = 0;
1818 return fp;
1819 } }
1820
1821 /*! ZSTD_toFlushNow()
1822 * Only useful for multithreading scenarios currently (nbWorkers >= 1).
1823 */
ZSTD_toFlushNow(ZSTD_CCtx * cctx)1824 size_t ZSTD_toFlushNow(ZSTD_CCtx* cctx)
1825 {
1826 (void)cctx;
1827 return 0; /* over-simplification; could also check if context is currently running in streaming mode, and in which case, report how many bytes are left to be flushed within output buffer */
1828 }
1829
ZSTD_assertEqualCParams(ZSTD_compressionParameters cParams1,ZSTD_compressionParameters cParams2)1830 static void ZSTD_assertEqualCParams(ZSTD_compressionParameters cParams1,
1831 ZSTD_compressionParameters cParams2)
1832 {
1833 (void)cParams1;
1834 (void)cParams2;
1835 assert(cParams1.windowLog == cParams2.windowLog);
1836 assert(cParams1.chainLog == cParams2.chainLog);
1837 assert(cParams1.hashLog == cParams2.hashLog);
1838 assert(cParams1.searchLog == cParams2.searchLog);
1839 assert(cParams1.minMatch == cParams2.minMatch);
1840 assert(cParams1.targetLength == cParams2.targetLength);
1841 assert(cParams1.strategy == cParams2.strategy);
1842 }
1843
ZSTD_reset_compressedBlockState(ZSTD_compressedBlockState_t * bs)1844 void ZSTD_reset_compressedBlockState(ZSTD_compressedBlockState_t* bs)
1845 {
1846 int i;
1847 for (i = 0; i < ZSTD_REP_NUM; ++i)
1848 bs->rep[i] = repStartValue[i];
1849 bs->entropy.huf.repeatMode = HUF_repeat_none;
1850 bs->entropy.fse.offcode_repeatMode = FSE_repeat_none;
1851 bs->entropy.fse.matchlength_repeatMode = FSE_repeat_none;
1852 bs->entropy.fse.litlength_repeatMode = FSE_repeat_none;
1853 }
1854
1855 /*! ZSTD_invalidateMatchState()
1856 * Invalidate all the matches in the match finder tables.
1857 * Requires nextSrc and base to be set (can be NULL).
1858 */
ZSTD_invalidateMatchState(ZSTD_MatchState_t * ms)1859 static void ZSTD_invalidateMatchState(ZSTD_MatchState_t* ms)
1860 {
1861 ZSTD_window_clear(&ms->window);
1862
1863 ms->nextToUpdate = ms->window.dictLimit;
1864 ms->loadedDictEnd = 0;
1865 ms->opt.litLengthSum = 0; /* force reset of btopt stats */
1866 ms->dictMatchState = NULL;
1867 }
1868
1869 /*
1870 * Controls, for this matchState reset, whether the tables need to be cleared /
1871 * prepared for the coming compression (ZSTDcrp_makeClean), or whether the
1872 * tables can be left unclean (ZSTDcrp_leaveDirty), because we know that a
1873 * subsequent operation will overwrite the table space anyways (e.g., copying
1874 * the matchState contents in from a CDict).
1875 */
1876 typedef enum {
1877 ZSTDcrp_makeClean,
1878 ZSTDcrp_leaveDirty
1879 } ZSTD_compResetPolicy_e;
1880
1881 /*
1882 * Controls, for this matchState reset, whether indexing can continue where it
1883 * left off (ZSTDirp_continue), or whether it needs to be restarted from zero
1884 * (ZSTDirp_reset).
1885 */
1886 typedef enum {
1887 ZSTDirp_continue,
1888 ZSTDirp_reset
1889 } ZSTD_indexResetPolicy_e;
1890
1891 typedef enum {
1892 ZSTD_resetTarget_CDict,
1893 ZSTD_resetTarget_CCtx
1894 } ZSTD_resetTarget_e;
1895
1896 /* Mixes bits in a 64 bits in a value, based on XXH3_rrmxmx */
ZSTD_bitmix(U64 val,U64 len)1897 static U64 ZSTD_bitmix(U64 val, U64 len) {
1898 val ^= ZSTD_rotateRight_U64(val, 49) ^ ZSTD_rotateRight_U64(val, 24);
1899 val *= 0x9FB21C651E98DF25ULL;
1900 val ^= (val >> 35) + len ;
1901 val *= 0x9FB21C651E98DF25ULL;
1902 return val ^ (val >> 28);
1903 }
1904
1905 /* Mixes in the hashSalt and hashSaltEntropy to create a new hashSalt */
ZSTD_advanceHashSalt(ZSTD_MatchState_t * ms)1906 static void ZSTD_advanceHashSalt(ZSTD_MatchState_t* ms) {
1907 ms->hashSalt = ZSTD_bitmix(ms->hashSalt, 8) ^ ZSTD_bitmix((U64) ms->hashSaltEntropy, 4);
1908 }
1909
1910 static size_t
ZSTD_reset_matchState(ZSTD_MatchState_t * ms,ZSTD_cwksp * ws,const ZSTD_compressionParameters * cParams,const ZSTD_ParamSwitch_e useRowMatchFinder,const ZSTD_compResetPolicy_e crp,const ZSTD_indexResetPolicy_e forceResetIndex,const ZSTD_resetTarget_e forWho)1911 ZSTD_reset_matchState(ZSTD_MatchState_t* ms,
1912 ZSTD_cwksp* ws,
1913 const ZSTD_compressionParameters* cParams,
1914 const ZSTD_ParamSwitch_e useRowMatchFinder,
1915 const ZSTD_compResetPolicy_e crp,
1916 const ZSTD_indexResetPolicy_e forceResetIndex,
1917 const ZSTD_resetTarget_e forWho)
1918 {
1919 /* disable chain table allocation for fast or row-based strategies */
1920 size_t const chainSize = ZSTD_allocateChainTable(cParams->strategy, useRowMatchFinder,
1921 ms->dedicatedDictSearch && (forWho == ZSTD_resetTarget_CDict))
1922 ? ((size_t)1 << cParams->chainLog)
1923 : 0;
1924 size_t const hSize = ((size_t)1) << cParams->hashLog;
1925 U32 const hashLog3 = ((forWho == ZSTD_resetTarget_CCtx) && cParams->minMatch==3) ? MIN(ZSTD_HASHLOG3_MAX, cParams->windowLog) : 0;
1926 size_t const h3Size = hashLog3 ? ((size_t)1) << hashLog3 : 0;
1927
1928 DEBUGLOG(4, "reset indices : %u", forceResetIndex == ZSTDirp_reset);
1929 assert(useRowMatchFinder != ZSTD_ps_auto);
1930 if (forceResetIndex == ZSTDirp_reset) {
1931 ZSTD_window_init(&ms->window);
1932 ZSTD_cwksp_mark_tables_dirty(ws);
1933 }
1934
1935 ms->hashLog3 = hashLog3;
1936 ms->lazySkipping = 0;
1937
1938 ZSTD_invalidateMatchState(ms);
1939
1940 assert(!ZSTD_cwksp_reserve_failed(ws)); /* check that allocation hasn't already failed */
1941
1942 ZSTD_cwksp_clear_tables(ws);
1943
1944 DEBUGLOG(5, "reserving table space");
1945 /* table Space */
1946 ms->hashTable = (U32*)ZSTD_cwksp_reserve_table(ws, hSize * sizeof(U32));
1947 ms->chainTable = (U32*)ZSTD_cwksp_reserve_table(ws, chainSize * sizeof(U32));
1948 ms->hashTable3 = (U32*)ZSTD_cwksp_reserve_table(ws, h3Size * sizeof(U32));
1949 RETURN_ERROR_IF(ZSTD_cwksp_reserve_failed(ws), memory_allocation,
1950 "failed a workspace allocation in ZSTD_reset_matchState");
1951
1952 DEBUGLOG(4, "reset table : %u", crp!=ZSTDcrp_leaveDirty);
1953 if (crp!=ZSTDcrp_leaveDirty) {
1954 /* reset tables only */
1955 ZSTD_cwksp_clean_tables(ws);
1956 }
1957
1958 if (ZSTD_rowMatchFinderUsed(cParams->strategy, useRowMatchFinder)) {
1959 /* Row match finder needs an additional table of hashes ("tags") */
1960 size_t const tagTableSize = hSize;
1961 /* We want to generate a new salt in case we reset a Cctx, but we always want to use
1962 * 0 when we reset a Cdict */
1963 if(forWho == ZSTD_resetTarget_CCtx) {
1964 ms->tagTable = (BYTE*) ZSTD_cwksp_reserve_aligned_init_once(ws, tagTableSize);
1965 ZSTD_advanceHashSalt(ms);
1966 } else {
1967 /* When we are not salting we want to always memset the memory */
1968 ms->tagTable = (BYTE*) ZSTD_cwksp_reserve_aligned64(ws, tagTableSize);
1969 ZSTD_memset(ms->tagTable, 0, tagTableSize);
1970 ms->hashSalt = 0;
1971 }
1972 { /* Switch to 32-entry rows if searchLog is 5 (or more) */
1973 U32 const rowLog = BOUNDED(4, cParams->searchLog, 6);
1974 assert(cParams->hashLog >= rowLog);
1975 ms->rowHashLog = cParams->hashLog - rowLog;
1976 }
1977 }
1978
1979 /* opt parser space */
1980 if ((forWho == ZSTD_resetTarget_CCtx) && (cParams->strategy >= ZSTD_btopt)) {
1981 DEBUGLOG(4, "reserving optimal parser space");
1982 ms->opt.litFreq = (unsigned*)ZSTD_cwksp_reserve_aligned64(ws, (1<<Litbits) * sizeof(unsigned));
1983 ms->opt.litLengthFreq = (unsigned*)ZSTD_cwksp_reserve_aligned64(ws, (MaxLL+1) * sizeof(unsigned));
1984 ms->opt.matchLengthFreq = (unsigned*)ZSTD_cwksp_reserve_aligned64(ws, (MaxML+1) * sizeof(unsigned));
1985 ms->opt.offCodeFreq = (unsigned*)ZSTD_cwksp_reserve_aligned64(ws, (MaxOff+1) * sizeof(unsigned));
1986 ms->opt.matchTable = (ZSTD_match_t*)ZSTD_cwksp_reserve_aligned64(ws, ZSTD_OPT_SIZE * sizeof(ZSTD_match_t));
1987 ms->opt.priceTable = (ZSTD_optimal_t*)ZSTD_cwksp_reserve_aligned64(ws, ZSTD_OPT_SIZE * sizeof(ZSTD_optimal_t));
1988 }
1989
1990 ms->cParams = *cParams;
1991
1992 RETURN_ERROR_IF(ZSTD_cwksp_reserve_failed(ws), memory_allocation,
1993 "failed a workspace allocation in ZSTD_reset_matchState");
1994 return 0;
1995 }
1996
1997 /* ZSTD_indexTooCloseToMax() :
1998 * minor optimization : prefer memset() rather than reduceIndex()
1999 * which is measurably slow in some circumstances (reported for Visual Studio).
2000 * Works when re-using a context for a lot of smallish inputs :
2001 * if all inputs are smaller than ZSTD_INDEXOVERFLOW_MARGIN,
2002 * memset() will be triggered before reduceIndex().
2003 */
2004 #define ZSTD_INDEXOVERFLOW_MARGIN (16 MB)
ZSTD_indexTooCloseToMax(ZSTD_window_t w)2005 static int ZSTD_indexTooCloseToMax(ZSTD_window_t w)
2006 {
2007 return (size_t)(w.nextSrc - w.base) > (ZSTD_CURRENT_MAX - ZSTD_INDEXOVERFLOW_MARGIN);
2008 }
2009
2010 /* ZSTD_dictTooBig():
2011 * When dictionaries are larger than ZSTD_CHUNKSIZE_MAX they can't be loaded in
2012 * one go generically. So we ensure that in that case we reset the tables to zero,
2013 * so that we can load as much of the dictionary as possible.
2014 */
ZSTD_dictTooBig(size_t const loadedDictSize)2015 static int ZSTD_dictTooBig(size_t const loadedDictSize)
2016 {
2017 return loadedDictSize > ZSTD_CHUNKSIZE_MAX;
2018 }
2019
2020 /*! ZSTD_resetCCtx_internal() :
2021 * @param loadedDictSize The size of the dictionary to be loaded
2022 * into the context, if any. If no dictionary is used, or the
2023 * dictionary is being attached / copied, then pass 0.
2024 * note : `params` are assumed fully validated at this stage.
2025 */
ZSTD_resetCCtx_internal(ZSTD_CCtx * zc,ZSTD_CCtx_params const * params,U64 const pledgedSrcSize,size_t const loadedDictSize,ZSTD_compResetPolicy_e const crp,ZSTD_buffered_policy_e const zbuff)2026 static size_t ZSTD_resetCCtx_internal(ZSTD_CCtx* zc,
2027 ZSTD_CCtx_params const* params,
2028 U64 const pledgedSrcSize,
2029 size_t const loadedDictSize,
2030 ZSTD_compResetPolicy_e const crp,
2031 ZSTD_buffered_policy_e const zbuff)
2032 {
2033 ZSTD_cwksp* const ws = &zc->workspace;
2034 DEBUGLOG(4, "ZSTD_resetCCtx_internal: pledgedSrcSize=%u, wlog=%u, useRowMatchFinder=%d useBlockSplitter=%d",
2035 (U32)pledgedSrcSize, params->cParams.windowLog, (int)params->useRowMatchFinder, (int)params->postBlockSplitter);
2036 assert(!ZSTD_isError(ZSTD_checkCParams(params->cParams)));
2037
2038 zc->isFirstBlock = 1;
2039
2040 /* Set applied params early so we can modify them for LDM,
2041 * and point params at the applied params.
2042 */
2043 zc->appliedParams = *params;
2044 params = &zc->appliedParams;
2045
2046 assert(params->useRowMatchFinder != ZSTD_ps_auto);
2047 assert(params->postBlockSplitter != ZSTD_ps_auto);
2048 assert(params->ldmParams.enableLdm != ZSTD_ps_auto);
2049 assert(params->maxBlockSize != 0);
2050 if (params->ldmParams.enableLdm == ZSTD_ps_enable) {
2051 /* Adjust long distance matching parameters */
2052 ZSTD_ldm_adjustParameters(&zc->appliedParams.ldmParams, ¶ms->cParams);
2053 assert(params->ldmParams.hashLog >= params->ldmParams.bucketSizeLog);
2054 assert(params->ldmParams.hashRateLog < 32);
2055 }
2056
2057 { size_t const windowSize = MAX(1, (size_t)MIN(((U64)1 << params->cParams.windowLog), pledgedSrcSize));
2058 size_t const blockSize = MIN(params->maxBlockSize, windowSize);
2059 size_t const maxNbSeq = ZSTD_maxNbSeq(blockSize, params->cParams.minMatch, ZSTD_hasExtSeqProd(params));
2060 size_t const buffOutSize = (zbuff == ZSTDb_buffered && params->outBufferMode == ZSTD_bm_buffered)
2061 ? ZSTD_compressBound(blockSize) + 1
2062 : 0;
2063 size_t const buffInSize = (zbuff == ZSTDb_buffered && params->inBufferMode == ZSTD_bm_buffered)
2064 ? windowSize + blockSize
2065 : 0;
2066 size_t const maxNbLdmSeq = ZSTD_ldm_getMaxNbSeq(params->ldmParams, blockSize);
2067
2068 int const indexTooClose = ZSTD_indexTooCloseToMax(zc->blockState.matchState.window);
2069 int const dictTooBig = ZSTD_dictTooBig(loadedDictSize);
2070 ZSTD_indexResetPolicy_e needsIndexReset =
2071 (indexTooClose || dictTooBig || !zc->initialized) ? ZSTDirp_reset : ZSTDirp_continue;
2072
2073 size_t const neededSpace =
2074 ZSTD_estimateCCtxSize_usingCCtxParams_internal(
2075 ¶ms->cParams, ¶ms->ldmParams, zc->staticSize != 0, params->useRowMatchFinder,
2076 buffInSize, buffOutSize, pledgedSrcSize, ZSTD_hasExtSeqProd(params), params->maxBlockSize);
2077
2078 FORWARD_IF_ERROR(neededSpace, "cctx size estimate failed!");
2079
2080 if (!zc->staticSize) ZSTD_cwksp_bump_oversized_duration(ws, 0);
2081
2082 { /* Check if workspace is large enough, alloc a new one if needed */
2083 int const workspaceTooSmall = ZSTD_cwksp_sizeof(ws) < neededSpace;
2084 int const workspaceWasteful = ZSTD_cwksp_check_wasteful(ws, neededSpace);
2085 int resizeWorkspace = workspaceTooSmall || workspaceWasteful;
2086 DEBUGLOG(4, "Need %zu B workspace", neededSpace);
2087 DEBUGLOG(4, "windowSize: %zu - blockSize: %zu", windowSize, blockSize);
2088
2089 if (resizeWorkspace) {
2090 DEBUGLOG(4, "Resize workspaceSize from %zuKB to %zuKB",
2091 ZSTD_cwksp_sizeof(ws) >> 10,
2092 neededSpace >> 10);
2093
2094 RETURN_ERROR_IF(zc->staticSize, memory_allocation, "static cctx : no resize");
2095
2096 needsIndexReset = ZSTDirp_reset;
2097
2098 ZSTD_cwksp_free(ws, zc->customMem);
2099 FORWARD_IF_ERROR(ZSTD_cwksp_create(ws, neededSpace, zc->customMem), "");
2100
2101 DEBUGLOG(5, "reserving object space");
2102 /* Statically sized space.
2103 * tmpWorkspace never moves,
2104 * though prev/next block swap places */
2105 assert(ZSTD_cwksp_check_available(ws, 2 * sizeof(ZSTD_compressedBlockState_t)));
2106 zc->blockState.prevCBlock = (ZSTD_compressedBlockState_t*) ZSTD_cwksp_reserve_object(ws, sizeof(ZSTD_compressedBlockState_t));
2107 RETURN_ERROR_IF(zc->blockState.prevCBlock == NULL, memory_allocation, "couldn't allocate prevCBlock");
2108 zc->blockState.nextCBlock = (ZSTD_compressedBlockState_t*) ZSTD_cwksp_reserve_object(ws, sizeof(ZSTD_compressedBlockState_t));
2109 RETURN_ERROR_IF(zc->blockState.nextCBlock == NULL, memory_allocation, "couldn't allocate nextCBlock");
2110 zc->tmpWorkspace = ZSTD_cwksp_reserve_object(ws, TMP_WORKSPACE_SIZE);
2111 RETURN_ERROR_IF(zc->tmpWorkspace == NULL, memory_allocation, "couldn't allocate tmpWorkspace");
2112 zc->tmpWkspSize = TMP_WORKSPACE_SIZE;
2113 } }
2114
2115 ZSTD_cwksp_clear(ws);
2116
2117 /* init params */
2118 zc->blockState.matchState.cParams = params->cParams;
2119 zc->blockState.matchState.prefetchCDictTables = params->prefetchCDictTables == ZSTD_ps_enable;
2120 zc->pledgedSrcSizePlusOne = pledgedSrcSize+1;
2121 zc->consumedSrcSize = 0;
2122 zc->producedCSize = 0;
2123 if (pledgedSrcSize == ZSTD_CONTENTSIZE_UNKNOWN)
2124 zc->appliedParams.fParams.contentSizeFlag = 0;
2125 DEBUGLOG(4, "pledged content size : %u ; flag : %u",
2126 (unsigned)pledgedSrcSize, zc->appliedParams.fParams.contentSizeFlag);
2127 zc->blockSizeMax = blockSize;
2128
2129 xxh64_reset(&zc->xxhState, 0);
2130 zc->stage = ZSTDcs_init;
2131 zc->dictID = 0;
2132 zc->dictContentSize = 0;
2133
2134 ZSTD_reset_compressedBlockState(zc->blockState.prevCBlock);
2135
2136 FORWARD_IF_ERROR(ZSTD_reset_matchState(
2137 &zc->blockState.matchState,
2138 ws,
2139 ¶ms->cParams,
2140 params->useRowMatchFinder,
2141 crp,
2142 needsIndexReset,
2143 ZSTD_resetTarget_CCtx), "");
2144
2145 zc->seqStore.sequencesStart = (SeqDef*)ZSTD_cwksp_reserve_aligned64(ws, maxNbSeq * sizeof(SeqDef));
2146
2147 /* ldm hash table */
2148 if (params->ldmParams.enableLdm == ZSTD_ps_enable) {
2149 /* TODO: avoid memset? */
2150 size_t const ldmHSize = ((size_t)1) << params->ldmParams.hashLog;
2151 zc->ldmState.hashTable = (ldmEntry_t*)ZSTD_cwksp_reserve_aligned64(ws, ldmHSize * sizeof(ldmEntry_t));
2152 ZSTD_memset(zc->ldmState.hashTable, 0, ldmHSize * sizeof(ldmEntry_t));
2153 zc->ldmSequences = (rawSeq*)ZSTD_cwksp_reserve_aligned64(ws, maxNbLdmSeq * sizeof(rawSeq));
2154 zc->maxNbLdmSequences = maxNbLdmSeq;
2155
2156 ZSTD_window_init(&zc->ldmState.window);
2157 zc->ldmState.loadedDictEnd = 0;
2158 }
2159
2160 /* reserve space for block-level external sequences */
2161 if (ZSTD_hasExtSeqProd(params)) {
2162 size_t const maxNbExternalSeq = ZSTD_sequenceBound(blockSize);
2163 zc->extSeqBufCapacity = maxNbExternalSeq;
2164 zc->extSeqBuf =
2165 (ZSTD_Sequence*)ZSTD_cwksp_reserve_aligned64(ws, maxNbExternalSeq * sizeof(ZSTD_Sequence));
2166 }
2167
2168 /* buffers */
2169
2170 /* ZSTD_wildcopy() is used to copy into the literals buffer,
2171 * so we have to oversize the buffer by WILDCOPY_OVERLENGTH bytes.
2172 */
2173 zc->seqStore.litStart = ZSTD_cwksp_reserve_buffer(ws, blockSize + WILDCOPY_OVERLENGTH);
2174 zc->seqStore.maxNbLit = blockSize;
2175
2176 zc->bufferedPolicy = zbuff;
2177 zc->inBuffSize = buffInSize;
2178 zc->inBuff = (char*)ZSTD_cwksp_reserve_buffer(ws, buffInSize);
2179 zc->outBuffSize = buffOutSize;
2180 zc->outBuff = (char*)ZSTD_cwksp_reserve_buffer(ws, buffOutSize);
2181
2182 /* ldm bucketOffsets table */
2183 if (params->ldmParams.enableLdm == ZSTD_ps_enable) {
2184 /* TODO: avoid memset? */
2185 size_t const numBuckets =
2186 ((size_t)1) << (params->ldmParams.hashLog -
2187 params->ldmParams.bucketSizeLog);
2188 zc->ldmState.bucketOffsets = ZSTD_cwksp_reserve_buffer(ws, numBuckets);
2189 ZSTD_memset(zc->ldmState.bucketOffsets, 0, numBuckets);
2190 }
2191
2192 /* sequences storage */
2193 ZSTD_referenceExternalSequences(zc, NULL, 0);
2194 zc->seqStore.maxNbSeq = maxNbSeq;
2195 zc->seqStore.llCode = ZSTD_cwksp_reserve_buffer(ws, maxNbSeq * sizeof(BYTE));
2196 zc->seqStore.mlCode = ZSTD_cwksp_reserve_buffer(ws, maxNbSeq * sizeof(BYTE));
2197 zc->seqStore.ofCode = ZSTD_cwksp_reserve_buffer(ws, maxNbSeq * sizeof(BYTE));
2198
2199 DEBUGLOG(3, "wksp: finished allocating, %zd bytes remain available", ZSTD_cwksp_available_space(ws));
2200 assert(ZSTD_cwksp_estimated_space_within_bounds(ws, neededSpace));
2201
2202 zc->initialized = 1;
2203
2204 return 0;
2205 }
2206 }
2207
2208 /* ZSTD_invalidateRepCodes() :
2209 * ensures next compression will not use repcodes from previous block.
2210 * Note : only works with regular variant;
2211 * do not use with extDict variant ! */
ZSTD_invalidateRepCodes(ZSTD_CCtx * cctx)2212 void ZSTD_invalidateRepCodes(ZSTD_CCtx* cctx) {
2213 int i;
2214 for (i=0; i<ZSTD_REP_NUM; i++) cctx->blockState.prevCBlock->rep[i] = 0;
2215 assert(!ZSTD_window_hasExtDict(cctx->blockState.matchState.window));
2216 }
2217
2218 /* These are the approximate sizes for each strategy past which copying the
2219 * dictionary tables into the working context is faster than using them
2220 * in-place.
2221 */
2222 static const size_t attachDictSizeCutoffs[ZSTD_STRATEGY_MAX+1] = {
2223 8 KB, /* unused */
2224 8 KB, /* ZSTD_fast */
2225 16 KB, /* ZSTD_dfast */
2226 32 KB, /* ZSTD_greedy */
2227 32 KB, /* ZSTD_lazy */
2228 32 KB, /* ZSTD_lazy2 */
2229 32 KB, /* ZSTD_btlazy2 */
2230 32 KB, /* ZSTD_btopt */
2231 8 KB, /* ZSTD_btultra */
2232 8 KB /* ZSTD_btultra2 */
2233 };
2234
ZSTD_shouldAttachDict(const ZSTD_CDict * cdict,const ZSTD_CCtx_params * params,U64 pledgedSrcSize)2235 static int ZSTD_shouldAttachDict(const ZSTD_CDict* cdict,
2236 const ZSTD_CCtx_params* params,
2237 U64 pledgedSrcSize)
2238 {
2239 size_t cutoff = attachDictSizeCutoffs[cdict->matchState.cParams.strategy];
2240 int const dedicatedDictSearch = cdict->matchState.dedicatedDictSearch;
2241 return dedicatedDictSearch
2242 || ( ( pledgedSrcSize <= cutoff
2243 || pledgedSrcSize == ZSTD_CONTENTSIZE_UNKNOWN
2244 || params->attachDictPref == ZSTD_dictForceAttach )
2245 && params->attachDictPref != ZSTD_dictForceCopy
2246 && !params->forceWindow ); /* dictMatchState isn't correctly
2247 * handled in _enforceMaxDist */
2248 }
2249
2250 static size_t
ZSTD_resetCCtx_byAttachingCDict(ZSTD_CCtx * cctx,const ZSTD_CDict * cdict,ZSTD_CCtx_params params,U64 pledgedSrcSize,ZSTD_buffered_policy_e zbuff)2251 ZSTD_resetCCtx_byAttachingCDict(ZSTD_CCtx* cctx,
2252 const ZSTD_CDict* cdict,
2253 ZSTD_CCtx_params params,
2254 U64 pledgedSrcSize,
2255 ZSTD_buffered_policy_e zbuff)
2256 {
2257 DEBUGLOG(4, "ZSTD_resetCCtx_byAttachingCDict() pledgedSrcSize=%llu",
2258 (unsigned long long)pledgedSrcSize);
2259 {
2260 ZSTD_compressionParameters adjusted_cdict_cParams = cdict->matchState.cParams;
2261 unsigned const windowLog = params.cParams.windowLog;
2262 assert(windowLog != 0);
2263 /* Resize working context table params for input only, since the dict
2264 * has its own tables. */
2265 /* pledgedSrcSize == 0 means 0! */
2266
2267 if (cdict->matchState.dedicatedDictSearch) {
2268 ZSTD_dedicatedDictSearch_revertCParams(&adjusted_cdict_cParams);
2269 }
2270
2271 params.cParams = ZSTD_adjustCParams_internal(adjusted_cdict_cParams, pledgedSrcSize,
2272 cdict->dictContentSize, ZSTD_cpm_attachDict,
2273 params.useRowMatchFinder);
2274 params.cParams.windowLog = windowLog;
2275 params.useRowMatchFinder = cdict->useRowMatchFinder; /* cdict overrides */
2276 FORWARD_IF_ERROR(ZSTD_resetCCtx_internal(cctx, ¶ms, pledgedSrcSize,
2277 /* loadedDictSize */ 0,
2278 ZSTDcrp_makeClean, zbuff), "");
2279 assert(cctx->appliedParams.cParams.strategy == adjusted_cdict_cParams.strategy);
2280 }
2281
2282 { const U32 cdictEnd = (U32)( cdict->matchState.window.nextSrc
2283 - cdict->matchState.window.base);
2284 const U32 cdictLen = cdictEnd - cdict->matchState.window.dictLimit;
2285 if (cdictLen == 0) {
2286 /* don't even attach dictionaries with no contents */
2287 DEBUGLOG(4, "skipping attaching empty dictionary");
2288 } else {
2289 DEBUGLOG(4, "attaching dictionary into context");
2290 cctx->blockState.matchState.dictMatchState = &cdict->matchState;
2291
2292 /* prep working match state so dict matches never have negative indices
2293 * when they are translated to the working context's index space. */
2294 if (cctx->blockState.matchState.window.dictLimit < cdictEnd) {
2295 cctx->blockState.matchState.window.nextSrc =
2296 cctx->blockState.matchState.window.base + cdictEnd;
2297 ZSTD_window_clear(&cctx->blockState.matchState.window);
2298 }
2299 /* loadedDictEnd is expressed within the referential of the active context */
2300 cctx->blockState.matchState.loadedDictEnd = cctx->blockState.matchState.window.dictLimit;
2301 } }
2302
2303 cctx->dictID = cdict->dictID;
2304 cctx->dictContentSize = cdict->dictContentSize;
2305
2306 /* copy block state */
2307 ZSTD_memcpy(cctx->blockState.prevCBlock, &cdict->cBlockState, sizeof(cdict->cBlockState));
2308
2309 return 0;
2310 }
2311
ZSTD_copyCDictTableIntoCCtx(U32 * dst,U32 const * src,size_t tableSize,ZSTD_compressionParameters const * cParams)2312 static void ZSTD_copyCDictTableIntoCCtx(U32* dst, U32 const* src, size_t tableSize,
2313 ZSTD_compressionParameters const* cParams) {
2314 if (ZSTD_CDictIndicesAreTagged(cParams)){
2315 /* Remove tags from the CDict table if they are present.
2316 * See docs on "short cache" in zstd_compress_internal.h for context. */
2317 size_t i;
2318 for (i = 0; i < tableSize; i++) {
2319 U32 const taggedIndex = src[i];
2320 U32 const index = taggedIndex >> ZSTD_SHORT_CACHE_TAG_BITS;
2321 dst[i] = index;
2322 }
2323 } else {
2324 ZSTD_memcpy(dst, src, tableSize * sizeof(U32));
2325 }
2326 }
2327
ZSTD_resetCCtx_byCopyingCDict(ZSTD_CCtx * cctx,const ZSTD_CDict * cdict,ZSTD_CCtx_params params,U64 pledgedSrcSize,ZSTD_buffered_policy_e zbuff)2328 static size_t ZSTD_resetCCtx_byCopyingCDict(ZSTD_CCtx* cctx,
2329 const ZSTD_CDict* cdict,
2330 ZSTD_CCtx_params params,
2331 U64 pledgedSrcSize,
2332 ZSTD_buffered_policy_e zbuff)
2333 {
2334 const ZSTD_compressionParameters *cdict_cParams = &cdict->matchState.cParams;
2335
2336 assert(!cdict->matchState.dedicatedDictSearch);
2337 DEBUGLOG(4, "ZSTD_resetCCtx_byCopyingCDict() pledgedSrcSize=%llu",
2338 (unsigned long long)pledgedSrcSize);
2339
2340 { unsigned const windowLog = params.cParams.windowLog;
2341 assert(windowLog != 0);
2342 /* Copy only compression parameters related to tables. */
2343 params.cParams = *cdict_cParams;
2344 params.cParams.windowLog = windowLog;
2345 params.useRowMatchFinder = cdict->useRowMatchFinder;
2346 FORWARD_IF_ERROR(ZSTD_resetCCtx_internal(cctx, ¶ms, pledgedSrcSize,
2347 /* loadedDictSize */ 0,
2348 ZSTDcrp_leaveDirty, zbuff), "");
2349 assert(cctx->appliedParams.cParams.strategy == cdict_cParams->strategy);
2350 assert(cctx->appliedParams.cParams.hashLog == cdict_cParams->hashLog);
2351 assert(cctx->appliedParams.cParams.chainLog == cdict_cParams->chainLog);
2352 }
2353
2354 ZSTD_cwksp_mark_tables_dirty(&cctx->workspace);
2355 assert(params.useRowMatchFinder != ZSTD_ps_auto);
2356
2357 /* copy tables */
2358 { size_t const chainSize = ZSTD_allocateChainTable(cdict_cParams->strategy, cdict->useRowMatchFinder, 0 /* DDS guaranteed disabled */)
2359 ? ((size_t)1 << cdict_cParams->chainLog)
2360 : 0;
2361 size_t const hSize = (size_t)1 << cdict_cParams->hashLog;
2362
2363 ZSTD_copyCDictTableIntoCCtx(cctx->blockState.matchState.hashTable,
2364 cdict->matchState.hashTable,
2365 hSize, cdict_cParams);
2366
2367 /* Do not copy cdict's chainTable if cctx has parameters such that it would not use chainTable */
2368 if (ZSTD_allocateChainTable(cctx->appliedParams.cParams.strategy, cctx->appliedParams.useRowMatchFinder, 0 /* forDDSDict */)) {
2369 ZSTD_copyCDictTableIntoCCtx(cctx->blockState.matchState.chainTable,
2370 cdict->matchState.chainTable,
2371 chainSize, cdict_cParams);
2372 }
2373 /* copy tag table */
2374 if (ZSTD_rowMatchFinderUsed(cdict_cParams->strategy, cdict->useRowMatchFinder)) {
2375 size_t const tagTableSize = hSize;
2376 ZSTD_memcpy(cctx->blockState.matchState.tagTable,
2377 cdict->matchState.tagTable,
2378 tagTableSize);
2379 cctx->blockState.matchState.hashSalt = cdict->matchState.hashSalt;
2380 }
2381 }
2382
2383 /* Zero the hashTable3, since the cdict never fills it */
2384 assert(cctx->blockState.matchState.hashLog3 <= 31);
2385 { U32 const h3log = cctx->blockState.matchState.hashLog3;
2386 size_t const h3Size = h3log ? ((size_t)1 << h3log) : 0;
2387 assert(cdict->matchState.hashLog3 == 0);
2388 ZSTD_memset(cctx->blockState.matchState.hashTable3, 0, h3Size * sizeof(U32));
2389 }
2390
2391 ZSTD_cwksp_mark_tables_clean(&cctx->workspace);
2392
2393 /* copy dictionary offsets */
2394 { ZSTD_MatchState_t const* srcMatchState = &cdict->matchState;
2395 ZSTD_MatchState_t* dstMatchState = &cctx->blockState.matchState;
2396 dstMatchState->window = srcMatchState->window;
2397 dstMatchState->nextToUpdate = srcMatchState->nextToUpdate;
2398 dstMatchState->loadedDictEnd= srcMatchState->loadedDictEnd;
2399 }
2400
2401 cctx->dictID = cdict->dictID;
2402 cctx->dictContentSize = cdict->dictContentSize;
2403
2404 /* copy block state */
2405 ZSTD_memcpy(cctx->blockState.prevCBlock, &cdict->cBlockState, sizeof(cdict->cBlockState));
2406
2407 return 0;
2408 }
2409
2410 /* We have a choice between copying the dictionary context into the working
2411 * context, or referencing the dictionary context from the working context
2412 * in-place. We decide here which strategy to use. */
ZSTD_resetCCtx_usingCDict(ZSTD_CCtx * cctx,const ZSTD_CDict * cdict,const ZSTD_CCtx_params * params,U64 pledgedSrcSize,ZSTD_buffered_policy_e zbuff)2413 static size_t ZSTD_resetCCtx_usingCDict(ZSTD_CCtx* cctx,
2414 const ZSTD_CDict* cdict,
2415 const ZSTD_CCtx_params* params,
2416 U64 pledgedSrcSize,
2417 ZSTD_buffered_policy_e zbuff)
2418 {
2419
2420 DEBUGLOG(4, "ZSTD_resetCCtx_usingCDict (pledgedSrcSize=%u)",
2421 (unsigned)pledgedSrcSize);
2422
2423 if (ZSTD_shouldAttachDict(cdict, params, pledgedSrcSize)) {
2424 return ZSTD_resetCCtx_byAttachingCDict(
2425 cctx, cdict, *params, pledgedSrcSize, zbuff);
2426 } else {
2427 return ZSTD_resetCCtx_byCopyingCDict(
2428 cctx, cdict, *params, pledgedSrcSize, zbuff);
2429 }
2430 }
2431
2432 /*! ZSTD_copyCCtx_internal() :
2433 * Duplicate an existing context `srcCCtx` into another one `dstCCtx`.
2434 * Only works during stage ZSTDcs_init (i.e. after creation, but before first call to ZSTD_compressContinue()).
2435 * The "context", in this case, refers to the hash and chain tables,
2436 * entropy tables, and dictionary references.
2437 * `windowLog` value is enforced if != 0, otherwise value is copied from srcCCtx.
2438 * @return : 0, or an error code */
ZSTD_copyCCtx_internal(ZSTD_CCtx * dstCCtx,const ZSTD_CCtx * srcCCtx,ZSTD_frameParameters fParams,U64 pledgedSrcSize,ZSTD_buffered_policy_e zbuff)2439 static size_t ZSTD_copyCCtx_internal(ZSTD_CCtx* dstCCtx,
2440 const ZSTD_CCtx* srcCCtx,
2441 ZSTD_frameParameters fParams,
2442 U64 pledgedSrcSize,
2443 ZSTD_buffered_policy_e zbuff)
2444 {
2445 RETURN_ERROR_IF(srcCCtx->stage!=ZSTDcs_init, stage_wrong,
2446 "Can't copy a ctx that's not in init stage.");
2447 DEBUGLOG(5, "ZSTD_copyCCtx_internal");
2448 ZSTD_memcpy(&dstCCtx->customMem, &srcCCtx->customMem, sizeof(ZSTD_customMem));
2449 { ZSTD_CCtx_params params = dstCCtx->requestedParams;
2450 /* Copy only compression parameters related to tables. */
2451 params.cParams = srcCCtx->appliedParams.cParams;
2452 assert(srcCCtx->appliedParams.useRowMatchFinder != ZSTD_ps_auto);
2453 assert(srcCCtx->appliedParams.postBlockSplitter != ZSTD_ps_auto);
2454 assert(srcCCtx->appliedParams.ldmParams.enableLdm != ZSTD_ps_auto);
2455 params.useRowMatchFinder = srcCCtx->appliedParams.useRowMatchFinder;
2456 params.postBlockSplitter = srcCCtx->appliedParams.postBlockSplitter;
2457 params.ldmParams = srcCCtx->appliedParams.ldmParams;
2458 params.fParams = fParams;
2459 params.maxBlockSize = srcCCtx->appliedParams.maxBlockSize;
2460 ZSTD_resetCCtx_internal(dstCCtx, ¶ms, pledgedSrcSize,
2461 /* loadedDictSize */ 0,
2462 ZSTDcrp_leaveDirty, zbuff);
2463 assert(dstCCtx->appliedParams.cParams.windowLog == srcCCtx->appliedParams.cParams.windowLog);
2464 assert(dstCCtx->appliedParams.cParams.strategy == srcCCtx->appliedParams.cParams.strategy);
2465 assert(dstCCtx->appliedParams.cParams.hashLog == srcCCtx->appliedParams.cParams.hashLog);
2466 assert(dstCCtx->appliedParams.cParams.chainLog == srcCCtx->appliedParams.cParams.chainLog);
2467 assert(dstCCtx->blockState.matchState.hashLog3 == srcCCtx->blockState.matchState.hashLog3);
2468 }
2469
2470 ZSTD_cwksp_mark_tables_dirty(&dstCCtx->workspace);
2471
2472 /* copy tables */
2473 { size_t const chainSize = ZSTD_allocateChainTable(srcCCtx->appliedParams.cParams.strategy,
2474 srcCCtx->appliedParams.useRowMatchFinder,
2475 0 /* forDDSDict */)
2476 ? ((size_t)1 << srcCCtx->appliedParams.cParams.chainLog)
2477 : 0;
2478 size_t const hSize = (size_t)1 << srcCCtx->appliedParams.cParams.hashLog;
2479 U32 const h3log = srcCCtx->blockState.matchState.hashLog3;
2480 size_t const h3Size = h3log ? ((size_t)1 << h3log) : 0;
2481
2482 ZSTD_memcpy(dstCCtx->blockState.matchState.hashTable,
2483 srcCCtx->blockState.matchState.hashTable,
2484 hSize * sizeof(U32));
2485 ZSTD_memcpy(dstCCtx->blockState.matchState.chainTable,
2486 srcCCtx->blockState.matchState.chainTable,
2487 chainSize * sizeof(U32));
2488 ZSTD_memcpy(dstCCtx->blockState.matchState.hashTable3,
2489 srcCCtx->blockState.matchState.hashTable3,
2490 h3Size * sizeof(U32));
2491 }
2492
2493 ZSTD_cwksp_mark_tables_clean(&dstCCtx->workspace);
2494
2495 /* copy dictionary offsets */
2496 {
2497 const ZSTD_MatchState_t* srcMatchState = &srcCCtx->blockState.matchState;
2498 ZSTD_MatchState_t* dstMatchState = &dstCCtx->blockState.matchState;
2499 dstMatchState->window = srcMatchState->window;
2500 dstMatchState->nextToUpdate = srcMatchState->nextToUpdate;
2501 dstMatchState->loadedDictEnd= srcMatchState->loadedDictEnd;
2502 }
2503 dstCCtx->dictID = srcCCtx->dictID;
2504 dstCCtx->dictContentSize = srcCCtx->dictContentSize;
2505
2506 /* copy block state */
2507 ZSTD_memcpy(dstCCtx->blockState.prevCBlock, srcCCtx->blockState.prevCBlock, sizeof(*srcCCtx->blockState.prevCBlock));
2508
2509 return 0;
2510 }
2511
2512 /*! ZSTD_copyCCtx() :
2513 * Duplicate an existing context `srcCCtx` into another one `dstCCtx`.
2514 * Only works during stage ZSTDcs_init (i.e. after creation, but before first call to ZSTD_compressContinue()).
2515 * pledgedSrcSize==0 means "unknown".
2516 * @return : 0, or an error code */
ZSTD_copyCCtx(ZSTD_CCtx * dstCCtx,const ZSTD_CCtx * srcCCtx,unsigned long long pledgedSrcSize)2517 size_t ZSTD_copyCCtx(ZSTD_CCtx* dstCCtx, const ZSTD_CCtx* srcCCtx, unsigned long long pledgedSrcSize)
2518 {
2519 ZSTD_frameParameters fParams = { 1 /*content*/, 0 /*checksum*/, 0 /*noDictID*/ };
2520 ZSTD_buffered_policy_e const zbuff = srcCCtx->bufferedPolicy;
2521 ZSTD_STATIC_ASSERT((U32)ZSTDb_buffered==1);
2522 if (pledgedSrcSize==0) pledgedSrcSize = ZSTD_CONTENTSIZE_UNKNOWN;
2523 fParams.contentSizeFlag = (pledgedSrcSize != ZSTD_CONTENTSIZE_UNKNOWN);
2524
2525 return ZSTD_copyCCtx_internal(dstCCtx, srcCCtx,
2526 fParams, pledgedSrcSize,
2527 zbuff);
2528 }
2529
2530
2531 #define ZSTD_ROWSIZE 16
2532 /*! ZSTD_reduceTable() :
2533 * reduce table indexes by `reducerValue`, or squash to zero.
2534 * PreserveMark preserves "unsorted mark" for btlazy2 strategy.
2535 * It must be set to a clear 0/1 value, to remove branch during inlining.
2536 * Presume table size is a multiple of ZSTD_ROWSIZE
2537 * to help auto-vectorization */
2538 FORCE_INLINE_TEMPLATE void
ZSTD_reduceTable_internal(U32 * const table,U32 const size,U32 const reducerValue,int const preserveMark)2539 ZSTD_reduceTable_internal (U32* const table, U32 const size, U32 const reducerValue, int const preserveMark)
2540 {
2541 int const nbRows = (int)size / ZSTD_ROWSIZE;
2542 int cellNb = 0;
2543 int rowNb;
2544 /* Protect special index values < ZSTD_WINDOW_START_INDEX. */
2545 U32 const reducerThreshold = reducerValue + ZSTD_WINDOW_START_INDEX;
2546 assert((size & (ZSTD_ROWSIZE-1)) == 0); /* multiple of ZSTD_ROWSIZE */
2547 assert(size < (1U<<31)); /* can be cast to int */
2548
2549
2550 for (rowNb=0 ; rowNb < nbRows ; rowNb++) {
2551 int column;
2552 for (column=0; column<ZSTD_ROWSIZE; column++) {
2553 U32 newVal;
2554 if (preserveMark && table[cellNb] == ZSTD_DUBT_UNSORTED_MARK) {
2555 /* This write is pointless, but is required(?) for the compiler
2556 * to auto-vectorize the loop. */
2557 newVal = ZSTD_DUBT_UNSORTED_MARK;
2558 } else if (table[cellNb] < reducerThreshold) {
2559 newVal = 0;
2560 } else {
2561 newVal = table[cellNb] - reducerValue;
2562 }
2563 table[cellNb] = newVal;
2564 cellNb++;
2565 } }
2566 }
2567
ZSTD_reduceTable(U32 * const table,U32 const size,U32 const reducerValue)2568 static void ZSTD_reduceTable(U32* const table, U32 const size, U32 const reducerValue)
2569 {
2570 ZSTD_reduceTable_internal(table, size, reducerValue, 0);
2571 }
2572
ZSTD_reduceTable_btlazy2(U32 * const table,U32 const size,U32 const reducerValue)2573 static void ZSTD_reduceTable_btlazy2(U32* const table, U32 const size, U32 const reducerValue)
2574 {
2575 ZSTD_reduceTable_internal(table, size, reducerValue, 1);
2576 }
2577
2578 /*! ZSTD_reduceIndex() :
2579 * rescale all indexes to avoid future overflow (indexes are U32) */
ZSTD_reduceIndex(ZSTD_MatchState_t * ms,ZSTD_CCtx_params const * params,const U32 reducerValue)2580 static void ZSTD_reduceIndex (ZSTD_MatchState_t* ms, ZSTD_CCtx_params const* params, const U32 reducerValue)
2581 {
2582 { U32 const hSize = (U32)1 << params->cParams.hashLog;
2583 ZSTD_reduceTable(ms->hashTable, hSize, reducerValue);
2584 }
2585
2586 if (ZSTD_allocateChainTable(params->cParams.strategy, params->useRowMatchFinder, (U32)ms->dedicatedDictSearch)) {
2587 U32 const chainSize = (U32)1 << params->cParams.chainLog;
2588 if (params->cParams.strategy == ZSTD_btlazy2)
2589 ZSTD_reduceTable_btlazy2(ms->chainTable, chainSize, reducerValue);
2590 else
2591 ZSTD_reduceTable(ms->chainTable, chainSize, reducerValue);
2592 }
2593
2594 if (ms->hashLog3) {
2595 U32 const h3Size = (U32)1 << ms->hashLog3;
2596 ZSTD_reduceTable(ms->hashTable3, h3Size, reducerValue);
2597 }
2598 }
2599
2600
2601 /*-*******************************************************
2602 * Block entropic compression
2603 *********************************************************/
2604
2605 /* See doc/zstd_compression_format.md for detailed format description */
2606
ZSTD_seqToCodes(const SeqStore_t * seqStorePtr)2607 int ZSTD_seqToCodes(const SeqStore_t* seqStorePtr)
2608 {
2609 const SeqDef* const sequences = seqStorePtr->sequencesStart;
2610 BYTE* const llCodeTable = seqStorePtr->llCode;
2611 BYTE* const ofCodeTable = seqStorePtr->ofCode;
2612 BYTE* const mlCodeTable = seqStorePtr->mlCode;
2613 U32 const nbSeq = (U32)(seqStorePtr->sequences - seqStorePtr->sequencesStart);
2614 U32 u;
2615 int longOffsets = 0;
2616 assert(nbSeq <= seqStorePtr->maxNbSeq);
2617 for (u=0; u<nbSeq; u++) {
2618 U32 const llv = sequences[u].litLength;
2619 U32 const ofCode = ZSTD_highbit32(sequences[u].offBase);
2620 U32 const mlv = sequences[u].mlBase;
2621 llCodeTable[u] = (BYTE)ZSTD_LLcode(llv);
2622 ofCodeTable[u] = (BYTE)ofCode;
2623 mlCodeTable[u] = (BYTE)ZSTD_MLcode(mlv);
2624 assert(!(MEM_64bits() && ofCode >= STREAM_ACCUMULATOR_MIN));
2625 if (MEM_32bits() && ofCode >= STREAM_ACCUMULATOR_MIN)
2626 longOffsets = 1;
2627 }
2628 if (seqStorePtr->longLengthType==ZSTD_llt_literalLength)
2629 llCodeTable[seqStorePtr->longLengthPos] = MaxLL;
2630 if (seqStorePtr->longLengthType==ZSTD_llt_matchLength)
2631 mlCodeTable[seqStorePtr->longLengthPos] = MaxML;
2632 return longOffsets;
2633 }
2634
2635 /* ZSTD_useTargetCBlockSize():
2636 * Returns if target compressed block size param is being used.
2637 * If used, compression will do best effort to make a compressed block size to be around targetCBlockSize.
2638 * Returns 1 if true, 0 otherwise. */
ZSTD_useTargetCBlockSize(const ZSTD_CCtx_params * cctxParams)2639 static int ZSTD_useTargetCBlockSize(const ZSTD_CCtx_params* cctxParams)
2640 {
2641 DEBUGLOG(5, "ZSTD_useTargetCBlockSize (targetCBlockSize=%zu)", cctxParams->targetCBlockSize);
2642 return (cctxParams->targetCBlockSize != 0);
2643 }
2644
2645 /* ZSTD_blockSplitterEnabled():
2646 * Returns if block splitting param is being used
2647 * If used, compression will do best effort to split a block in order to improve compression ratio.
2648 * At the time this function is called, the parameter must be finalized.
2649 * Returns 1 if true, 0 otherwise. */
ZSTD_blockSplitterEnabled(ZSTD_CCtx_params * cctxParams)2650 static int ZSTD_blockSplitterEnabled(ZSTD_CCtx_params* cctxParams)
2651 {
2652 DEBUGLOG(5, "ZSTD_blockSplitterEnabled (postBlockSplitter=%d)", cctxParams->postBlockSplitter);
2653 assert(cctxParams->postBlockSplitter != ZSTD_ps_auto);
2654 return (cctxParams->postBlockSplitter == ZSTD_ps_enable);
2655 }
2656
2657 /* Type returned by ZSTD_buildSequencesStatistics containing finalized symbol encoding types
2658 * and size of the sequences statistics
2659 */
2660 typedef struct {
2661 U32 LLtype;
2662 U32 Offtype;
2663 U32 MLtype;
2664 size_t size;
2665 size_t lastCountSize; /* Accounts for bug in 1.3.4. More detail in ZSTD_entropyCompressSeqStore_internal() */
2666 int longOffsets;
2667 } ZSTD_symbolEncodingTypeStats_t;
2668
2669 /* ZSTD_buildSequencesStatistics():
2670 * Returns a ZSTD_symbolEncodingTypeStats_t, or a zstd error code in the `size` field.
2671 * Modifies `nextEntropy` to have the appropriate values as a side effect.
2672 * nbSeq must be greater than 0.
2673 *
2674 * entropyWkspSize must be of size at least ENTROPY_WORKSPACE_SIZE - (MaxSeq + 1)*sizeof(U32)
2675 */
2676 static ZSTD_symbolEncodingTypeStats_t
ZSTD_buildSequencesStatistics(const SeqStore_t * seqStorePtr,size_t nbSeq,const ZSTD_fseCTables_t * prevEntropy,ZSTD_fseCTables_t * nextEntropy,BYTE * dst,const BYTE * const dstEnd,ZSTD_strategy strategy,unsigned * countWorkspace,void * entropyWorkspace,size_t entropyWkspSize)2677 ZSTD_buildSequencesStatistics(
2678 const SeqStore_t* seqStorePtr, size_t nbSeq,
2679 const ZSTD_fseCTables_t* prevEntropy, ZSTD_fseCTables_t* nextEntropy,
2680 BYTE* dst, const BYTE* const dstEnd,
2681 ZSTD_strategy strategy, unsigned* countWorkspace,
2682 void* entropyWorkspace, size_t entropyWkspSize)
2683 {
2684 BYTE* const ostart = dst;
2685 const BYTE* const oend = dstEnd;
2686 BYTE* op = ostart;
2687 FSE_CTable* CTable_LitLength = nextEntropy->litlengthCTable;
2688 FSE_CTable* CTable_OffsetBits = nextEntropy->offcodeCTable;
2689 FSE_CTable* CTable_MatchLength = nextEntropy->matchlengthCTable;
2690 const BYTE* const ofCodeTable = seqStorePtr->ofCode;
2691 const BYTE* const llCodeTable = seqStorePtr->llCode;
2692 const BYTE* const mlCodeTable = seqStorePtr->mlCode;
2693 ZSTD_symbolEncodingTypeStats_t stats;
2694
2695 stats.lastCountSize = 0;
2696 /* convert length/distances into codes */
2697 stats.longOffsets = ZSTD_seqToCodes(seqStorePtr);
2698 assert(op <= oend);
2699 assert(nbSeq != 0); /* ZSTD_selectEncodingType() divides by nbSeq */
2700 /* build CTable for Literal Lengths */
2701 { unsigned max = MaxLL;
2702 size_t const mostFrequent = HIST_countFast_wksp(countWorkspace, &max, llCodeTable, nbSeq, entropyWorkspace, entropyWkspSize); /* can't fail */
2703 DEBUGLOG(5, "Building LL table");
2704 nextEntropy->litlength_repeatMode = prevEntropy->litlength_repeatMode;
2705 stats.LLtype = ZSTD_selectEncodingType(&nextEntropy->litlength_repeatMode,
2706 countWorkspace, max, mostFrequent, nbSeq,
2707 LLFSELog, prevEntropy->litlengthCTable,
2708 LL_defaultNorm, LL_defaultNormLog,
2709 ZSTD_defaultAllowed, strategy);
2710 assert(set_basic < set_compressed && set_rle < set_compressed);
2711 assert(!(stats.LLtype < set_compressed && nextEntropy->litlength_repeatMode != FSE_repeat_none)); /* We don't copy tables */
2712 { size_t const countSize = ZSTD_buildCTable(
2713 op, (size_t)(oend - op),
2714 CTable_LitLength, LLFSELog, (SymbolEncodingType_e)stats.LLtype,
2715 countWorkspace, max, llCodeTable, nbSeq,
2716 LL_defaultNorm, LL_defaultNormLog, MaxLL,
2717 prevEntropy->litlengthCTable,
2718 sizeof(prevEntropy->litlengthCTable),
2719 entropyWorkspace, entropyWkspSize);
2720 if (ZSTD_isError(countSize)) {
2721 DEBUGLOG(3, "ZSTD_buildCTable for LitLens failed");
2722 stats.size = countSize;
2723 return stats;
2724 }
2725 if (stats.LLtype == set_compressed)
2726 stats.lastCountSize = countSize;
2727 op += countSize;
2728 assert(op <= oend);
2729 } }
2730 /* build CTable for Offsets */
2731 { unsigned max = MaxOff;
2732 size_t const mostFrequent = HIST_countFast_wksp(
2733 countWorkspace, &max, ofCodeTable, nbSeq, entropyWorkspace, entropyWkspSize); /* can't fail */
2734 /* We can only use the basic table if max <= DefaultMaxOff, otherwise the offsets are too large */
2735 ZSTD_DefaultPolicy_e const defaultPolicy = (max <= DefaultMaxOff) ? ZSTD_defaultAllowed : ZSTD_defaultDisallowed;
2736 DEBUGLOG(5, "Building OF table");
2737 nextEntropy->offcode_repeatMode = prevEntropy->offcode_repeatMode;
2738 stats.Offtype = ZSTD_selectEncodingType(&nextEntropy->offcode_repeatMode,
2739 countWorkspace, max, mostFrequent, nbSeq,
2740 OffFSELog, prevEntropy->offcodeCTable,
2741 OF_defaultNorm, OF_defaultNormLog,
2742 defaultPolicy, strategy);
2743 assert(!(stats.Offtype < set_compressed && nextEntropy->offcode_repeatMode != FSE_repeat_none)); /* We don't copy tables */
2744 { size_t const countSize = ZSTD_buildCTable(
2745 op, (size_t)(oend - op),
2746 CTable_OffsetBits, OffFSELog, (SymbolEncodingType_e)stats.Offtype,
2747 countWorkspace, max, ofCodeTable, nbSeq,
2748 OF_defaultNorm, OF_defaultNormLog, DefaultMaxOff,
2749 prevEntropy->offcodeCTable,
2750 sizeof(prevEntropy->offcodeCTable),
2751 entropyWorkspace, entropyWkspSize);
2752 if (ZSTD_isError(countSize)) {
2753 DEBUGLOG(3, "ZSTD_buildCTable for Offsets failed");
2754 stats.size = countSize;
2755 return stats;
2756 }
2757 if (stats.Offtype == set_compressed)
2758 stats.lastCountSize = countSize;
2759 op += countSize;
2760 assert(op <= oend);
2761 } }
2762 /* build CTable for MatchLengths */
2763 { unsigned max = MaxML;
2764 size_t const mostFrequent = HIST_countFast_wksp(
2765 countWorkspace, &max, mlCodeTable, nbSeq, entropyWorkspace, entropyWkspSize); /* can't fail */
2766 DEBUGLOG(5, "Building ML table (remaining space : %i)", (int)(oend-op));
2767 nextEntropy->matchlength_repeatMode = prevEntropy->matchlength_repeatMode;
2768 stats.MLtype = ZSTD_selectEncodingType(&nextEntropy->matchlength_repeatMode,
2769 countWorkspace, max, mostFrequent, nbSeq,
2770 MLFSELog, prevEntropy->matchlengthCTable,
2771 ML_defaultNorm, ML_defaultNormLog,
2772 ZSTD_defaultAllowed, strategy);
2773 assert(!(stats.MLtype < set_compressed && nextEntropy->matchlength_repeatMode != FSE_repeat_none)); /* We don't copy tables */
2774 { size_t const countSize = ZSTD_buildCTable(
2775 op, (size_t)(oend - op),
2776 CTable_MatchLength, MLFSELog, (SymbolEncodingType_e)stats.MLtype,
2777 countWorkspace, max, mlCodeTable, nbSeq,
2778 ML_defaultNorm, ML_defaultNormLog, MaxML,
2779 prevEntropy->matchlengthCTable,
2780 sizeof(prevEntropy->matchlengthCTable),
2781 entropyWorkspace, entropyWkspSize);
2782 if (ZSTD_isError(countSize)) {
2783 DEBUGLOG(3, "ZSTD_buildCTable for MatchLengths failed");
2784 stats.size = countSize;
2785 return stats;
2786 }
2787 if (stats.MLtype == set_compressed)
2788 stats.lastCountSize = countSize;
2789 op += countSize;
2790 assert(op <= oend);
2791 } }
2792 stats.size = (size_t)(op-ostart);
2793 return stats;
2794 }
2795
2796 /* ZSTD_entropyCompressSeqStore_internal():
2797 * compresses both literals and sequences
2798 * Returns compressed size of block, or a zstd error.
2799 */
2800 #define SUSPECT_UNCOMPRESSIBLE_LITERAL_RATIO 20
2801 MEM_STATIC size_t
ZSTD_entropyCompressSeqStore_internal(void * dst,size_t dstCapacity,const void * literals,size_t litSize,const SeqStore_t * seqStorePtr,const ZSTD_entropyCTables_t * prevEntropy,ZSTD_entropyCTables_t * nextEntropy,const ZSTD_CCtx_params * cctxParams,void * entropyWorkspace,size_t entropyWkspSize,const int bmi2)2802 ZSTD_entropyCompressSeqStore_internal(
2803 void* dst, size_t dstCapacity,
2804 const void* literals, size_t litSize,
2805 const SeqStore_t* seqStorePtr,
2806 const ZSTD_entropyCTables_t* prevEntropy,
2807 ZSTD_entropyCTables_t* nextEntropy,
2808 const ZSTD_CCtx_params* cctxParams,
2809 void* entropyWorkspace, size_t entropyWkspSize,
2810 const int bmi2)
2811 {
2812 ZSTD_strategy const strategy = cctxParams->cParams.strategy;
2813 unsigned* count = (unsigned*)entropyWorkspace;
2814 FSE_CTable* CTable_LitLength = nextEntropy->fse.litlengthCTable;
2815 FSE_CTable* CTable_OffsetBits = nextEntropy->fse.offcodeCTable;
2816 FSE_CTable* CTable_MatchLength = nextEntropy->fse.matchlengthCTable;
2817 const SeqDef* const sequences = seqStorePtr->sequencesStart;
2818 const size_t nbSeq = (size_t)(seqStorePtr->sequences - seqStorePtr->sequencesStart);
2819 const BYTE* const ofCodeTable = seqStorePtr->ofCode;
2820 const BYTE* const llCodeTable = seqStorePtr->llCode;
2821 const BYTE* const mlCodeTable = seqStorePtr->mlCode;
2822 BYTE* const ostart = (BYTE*)dst;
2823 BYTE* const oend = ostart + dstCapacity;
2824 BYTE* op = ostart;
2825 size_t lastCountSize;
2826 int longOffsets = 0;
2827
2828 entropyWorkspace = count + (MaxSeq + 1);
2829 entropyWkspSize -= (MaxSeq + 1) * sizeof(*count);
2830
2831 DEBUGLOG(5, "ZSTD_entropyCompressSeqStore_internal (nbSeq=%zu, dstCapacity=%zu)", nbSeq, dstCapacity);
2832 ZSTD_STATIC_ASSERT(HUF_WORKSPACE_SIZE >= (1<<MAX(MLFSELog,LLFSELog)));
2833 assert(entropyWkspSize >= HUF_WORKSPACE_SIZE);
2834
2835 /* Compress literals */
2836 { size_t const numSequences = (size_t)(seqStorePtr->sequences - seqStorePtr->sequencesStart);
2837 /* Base suspicion of uncompressibility on ratio of literals to sequences */
2838 int const suspectUncompressible = (numSequences == 0) || (litSize / numSequences >= SUSPECT_UNCOMPRESSIBLE_LITERAL_RATIO);
2839
2840 size_t const cSize = ZSTD_compressLiterals(
2841 op, dstCapacity,
2842 literals, litSize,
2843 entropyWorkspace, entropyWkspSize,
2844 &prevEntropy->huf, &nextEntropy->huf,
2845 cctxParams->cParams.strategy,
2846 ZSTD_literalsCompressionIsDisabled(cctxParams),
2847 suspectUncompressible, bmi2);
2848 FORWARD_IF_ERROR(cSize, "ZSTD_compressLiterals failed");
2849 assert(cSize <= dstCapacity);
2850 op += cSize;
2851 }
2852
2853 /* Sequences Header */
2854 RETURN_ERROR_IF((oend-op) < 3 /*max nbSeq Size*/ + 1 /*seqHead*/,
2855 dstSize_tooSmall, "Can't fit seq hdr in output buf!");
2856 if (nbSeq < 128) {
2857 *op++ = (BYTE)nbSeq;
2858 } else if (nbSeq < LONGNBSEQ) {
2859 op[0] = (BYTE)((nbSeq>>8) + 0x80);
2860 op[1] = (BYTE)nbSeq;
2861 op+=2;
2862 } else {
2863 op[0]=0xFF;
2864 MEM_writeLE16(op+1, (U16)(nbSeq - LONGNBSEQ));
2865 op+=3;
2866 }
2867 assert(op <= oend);
2868 if (nbSeq==0) {
2869 /* Copy the old tables over as if we repeated them */
2870 ZSTD_memcpy(&nextEntropy->fse, &prevEntropy->fse, sizeof(prevEntropy->fse));
2871 return (size_t)(op - ostart);
2872 }
2873 { BYTE* const seqHead = op++;
2874 /* build stats for sequences */
2875 const ZSTD_symbolEncodingTypeStats_t stats =
2876 ZSTD_buildSequencesStatistics(seqStorePtr, nbSeq,
2877 &prevEntropy->fse, &nextEntropy->fse,
2878 op, oend,
2879 strategy, count,
2880 entropyWorkspace, entropyWkspSize);
2881 FORWARD_IF_ERROR(stats.size, "ZSTD_buildSequencesStatistics failed!");
2882 *seqHead = (BYTE)((stats.LLtype<<6) + (stats.Offtype<<4) + (stats.MLtype<<2));
2883 lastCountSize = stats.lastCountSize;
2884 op += stats.size;
2885 longOffsets = stats.longOffsets;
2886 }
2887
2888 { size_t const bitstreamSize = ZSTD_encodeSequences(
2889 op, (size_t)(oend - op),
2890 CTable_MatchLength, mlCodeTable,
2891 CTable_OffsetBits, ofCodeTable,
2892 CTable_LitLength, llCodeTable,
2893 sequences, nbSeq,
2894 longOffsets, bmi2);
2895 FORWARD_IF_ERROR(bitstreamSize, "ZSTD_encodeSequences failed");
2896 op += bitstreamSize;
2897 assert(op <= oend);
2898 /* zstd versions <= 1.3.4 mistakenly report corruption when
2899 * FSE_readNCount() receives a buffer < 4 bytes.
2900 * Fixed by https://github.com/facebook/zstd/pull/1146.
2901 * This can happen when the last set_compressed table present is 2
2902 * bytes and the bitstream is only one byte.
2903 * In this exceedingly rare case, we will simply emit an uncompressed
2904 * block, since it isn't worth optimizing.
2905 */
2906 if (lastCountSize && (lastCountSize + bitstreamSize) < 4) {
2907 /* lastCountSize >= 2 && bitstreamSize > 0 ==> lastCountSize == 3 */
2908 assert(lastCountSize + bitstreamSize == 3);
2909 DEBUGLOG(5, "Avoiding bug in zstd decoder in versions <= 1.3.4 by "
2910 "emitting an uncompressed block.");
2911 return 0;
2912 }
2913 }
2914
2915 DEBUGLOG(5, "compressed block size : %u", (unsigned)(op - ostart));
2916 return (size_t)(op - ostart);
2917 }
2918
2919 static size_t
ZSTD_entropyCompressSeqStore_wExtLitBuffer(void * dst,size_t dstCapacity,const void * literals,size_t litSize,size_t blockSize,const SeqStore_t * seqStorePtr,const ZSTD_entropyCTables_t * prevEntropy,ZSTD_entropyCTables_t * nextEntropy,const ZSTD_CCtx_params * cctxParams,void * entropyWorkspace,size_t entropyWkspSize,int bmi2)2920 ZSTD_entropyCompressSeqStore_wExtLitBuffer(
2921 void* dst, size_t dstCapacity,
2922 const void* literals, size_t litSize,
2923 size_t blockSize,
2924 const SeqStore_t* seqStorePtr,
2925 const ZSTD_entropyCTables_t* prevEntropy,
2926 ZSTD_entropyCTables_t* nextEntropy,
2927 const ZSTD_CCtx_params* cctxParams,
2928 void* entropyWorkspace, size_t entropyWkspSize,
2929 int bmi2)
2930 {
2931 size_t const cSize = ZSTD_entropyCompressSeqStore_internal(
2932 dst, dstCapacity,
2933 literals, litSize,
2934 seqStorePtr, prevEntropy, nextEntropy, cctxParams,
2935 entropyWorkspace, entropyWkspSize, bmi2);
2936 if (cSize == 0) return 0;
2937 /* When srcSize <= dstCapacity, there is enough space to write a raw uncompressed block.
2938 * Since we ran out of space, block must be not compressible, so fall back to raw uncompressed block.
2939 */
2940 if ((cSize == ERROR(dstSize_tooSmall)) & (blockSize <= dstCapacity)) {
2941 DEBUGLOG(4, "not enough dstCapacity (%zu) for ZSTD_entropyCompressSeqStore_internal()=> do not compress block", dstCapacity);
2942 return 0; /* block not compressed */
2943 }
2944 FORWARD_IF_ERROR(cSize, "ZSTD_entropyCompressSeqStore_internal failed");
2945
2946 /* Check compressibility */
2947 { size_t const maxCSize = blockSize - ZSTD_minGain(blockSize, cctxParams->cParams.strategy);
2948 if (cSize >= maxCSize) return 0; /* block not compressed */
2949 }
2950 DEBUGLOG(5, "ZSTD_entropyCompressSeqStore() cSize: %zu", cSize);
2951 /* libzstd decoder before > v1.5.4 is not compatible with compressed blocks of size ZSTD_BLOCKSIZE_MAX exactly.
2952 * This restriction is indirectly already fulfilled by respecting ZSTD_minGain() condition above.
2953 */
2954 assert(cSize < ZSTD_BLOCKSIZE_MAX);
2955 return cSize;
2956 }
2957
2958 static size_t
ZSTD_entropyCompressSeqStore(const SeqStore_t * seqStorePtr,const ZSTD_entropyCTables_t * prevEntropy,ZSTD_entropyCTables_t * nextEntropy,const ZSTD_CCtx_params * cctxParams,void * dst,size_t dstCapacity,size_t srcSize,void * entropyWorkspace,size_t entropyWkspSize,int bmi2)2959 ZSTD_entropyCompressSeqStore(
2960 const SeqStore_t* seqStorePtr,
2961 const ZSTD_entropyCTables_t* prevEntropy,
2962 ZSTD_entropyCTables_t* nextEntropy,
2963 const ZSTD_CCtx_params* cctxParams,
2964 void* dst, size_t dstCapacity,
2965 size_t srcSize,
2966 void* entropyWorkspace, size_t entropyWkspSize,
2967 int bmi2)
2968 {
2969 return ZSTD_entropyCompressSeqStore_wExtLitBuffer(
2970 dst, dstCapacity,
2971 seqStorePtr->litStart, (size_t)(seqStorePtr->lit - seqStorePtr->litStart),
2972 srcSize,
2973 seqStorePtr,
2974 prevEntropy, nextEntropy,
2975 cctxParams,
2976 entropyWorkspace, entropyWkspSize,
2977 bmi2);
2978 }
2979
2980 /* ZSTD_selectBlockCompressor() :
2981 * Not static, but internal use only (used by long distance matcher)
2982 * assumption : strat is a valid strategy */
ZSTD_selectBlockCompressor(ZSTD_strategy strat,ZSTD_ParamSwitch_e useRowMatchFinder,ZSTD_dictMode_e dictMode)2983 ZSTD_BlockCompressor_f ZSTD_selectBlockCompressor(ZSTD_strategy strat, ZSTD_ParamSwitch_e useRowMatchFinder, ZSTD_dictMode_e dictMode)
2984 {
2985 static const ZSTD_BlockCompressor_f blockCompressor[4][ZSTD_STRATEGY_MAX+1] = {
2986 { ZSTD_compressBlock_fast /* default for 0 */,
2987 ZSTD_compressBlock_fast,
2988 ZSTD_COMPRESSBLOCK_DOUBLEFAST,
2989 ZSTD_COMPRESSBLOCK_GREEDY,
2990 ZSTD_COMPRESSBLOCK_LAZY,
2991 ZSTD_COMPRESSBLOCK_LAZY2,
2992 ZSTD_COMPRESSBLOCK_BTLAZY2,
2993 ZSTD_COMPRESSBLOCK_BTOPT,
2994 ZSTD_COMPRESSBLOCK_BTULTRA,
2995 ZSTD_COMPRESSBLOCK_BTULTRA2
2996 },
2997 { ZSTD_compressBlock_fast_extDict /* default for 0 */,
2998 ZSTD_compressBlock_fast_extDict,
2999 ZSTD_COMPRESSBLOCK_DOUBLEFAST_EXTDICT,
3000 ZSTD_COMPRESSBLOCK_GREEDY_EXTDICT,
3001 ZSTD_COMPRESSBLOCK_LAZY_EXTDICT,
3002 ZSTD_COMPRESSBLOCK_LAZY2_EXTDICT,
3003 ZSTD_COMPRESSBLOCK_BTLAZY2_EXTDICT,
3004 ZSTD_COMPRESSBLOCK_BTOPT_EXTDICT,
3005 ZSTD_COMPRESSBLOCK_BTULTRA_EXTDICT,
3006 ZSTD_COMPRESSBLOCK_BTULTRA_EXTDICT
3007 },
3008 { ZSTD_compressBlock_fast_dictMatchState /* default for 0 */,
3009 ZSTD_compressBlock_fast_dictMatchState,
3010 ZSTD_COMPRESSBLOCK_DOUBLEFAST_DICTMATCHSTATE,
3011 ZSTD_COMPRESSBLOCK_GREEDY_DICTMATCHSTATE,
3012 ZSTD_COMPRESSBLOCK_LAZY_DICTMATCHSTATE,
3013 ZSTD_COMPRESSBLOCK_LAZY2_DICTMATCHSTATE,
3014 ZSTD_COMPRESSBLOCK_BTLAZY2_DICTMATCHSTATE,
3015 ZSTD_COMPRESSBLOCK_BTOPT_DICTMATCHSTATE,
3016 ZSTD_COMPRESSBLOCK_BTULTRA_DICTMATCHSTATE,
3017 ZSTD_COMPRESSBLOCK_BTULTRA_DICTMATCHSTATE
3018 },
3019 { NULL /* default for 0 */,
3020 NULL,
3021 NULL,
3022 ZSTD_COMPRESSBLOCK_GREEDY_DEDICATEDDICTSEARCH,
3023 ZSTD_COMPRESSBLOCK_LAZY_DEDICATEDDICTSEARCH,
3024 ZSTD_COMPRESSBLOCK_LAZY2_DEDICATEDDICTSEARCH,
3025 NULL,
3026 NULL,
3027 NULL,
3028 NULL }
3029 };
3030 ZSTD_BlockCompressor_f selectedCompressor;
3031 ZSTD_STATIC_ASSERT((unsigned)ZSTD_fast == 1);
3032
3033 assert(ZSTD_cParam_withinBounds(ZSTD_c_strategy, (int)strat));
3034 DEBUGLOG(5, "Selected block compressor: dictMode=%d strat=%d rowMatchfinder=%d", (int)dictMode, (int)strat, (int)useRowMatchFinder);
3035 if (ZSTD_rowMatchFinderUsed(strat, useRowMatchFinder)) {
3036 static const ZSTD_BlockCompressor_f rowBasedBlockCompressors[4][3] = {
3037 {
3038 ZSTD_COMPRESSBLOCK_GREEDY_ROW,
3039 ZSTD_COMPRESSBLOCK_LAZY_ROW,
3040 ZSTD_COMPRESSBLOCK_LAZY2_ROW
3041 },
3042 {
3043 ZSTD_COMPRESSBLOCK_GREEDY_EXTDICT_ROW,
3044 ZSTD_COMPRESSBLOCK_LAZY_EXTDICT_ROW,
3045 ZSTD_COMPRESSBLOCK_LAZY2_EXTDICT_ROW
3046 },
3047 {
3048 ZSTD_COMPRESSBLOCK_GREEDY_DICTMATCHSTATE_ROW,
3049 ZSTD_COMPRESSBLOCK_LAZY_DICTMATCHSTATE_ROW,
3050 ZSTD_COMPRESSBLOCK_LAZY2_DICTMATCHSTATE_ROW
3051 },
3052 {
3053 ZSTD_COMPRESSBLOCK_GREEDY_DEDICATEDDICTSEARCH_ROW,
3054 ZSTD_COMPRESSBLOCK_LAZY_DEDICATEDDICTSEARCH_ROW,
3055 ZSTD_COMPRESSBLOCK_LAZY2_DEDICATEDDICTSEARCH_ROW
3056 }
3057 };
3058 DEBUGLOG(5, "Selecting a row-based matchfinder");
3059 assert(useRowMatchFinder != ZSTD_ps_auto);
3060 selectedCompressor = rowBasedBlockCompressors[(int)dictMode][(int)strat - (int)ZSTD_greedy];
3061 } else {
3062 selectedCompressor = blockCompressor[(int)dictMode][(int)strat];
3063 }
3064 assert(selectedCompressor != NULL);
3065 return selectedCompressor;
3066 }
3067
ZSTD_storeLastLiterals(SeqStore_t * seqStorePtr,const BYTE * anchor,size_t lastLLSize)3068 static void ZSTD_storeLastLiterals(SeqStore_t* seqStorePtr,
3069 const BYTE* anchor, size_t lastLLSize)
3070 {
3071 ZSTD_memcpy(seqStorePtr->lit, anchor, lastLLSize);
3072 seqStorePtr->lit += lastLLSize;
3073 }
3074
ZSTD_resetSeqStore(SeqStore_t * ssPtr)3075 void ZSTD_resetSeqStore(SeqStore_t* ssPtr)
3076 {
3077 ssPtr->lit = ssPtr->litStart;
3078 ssPtr->sequences = ssPtr->sequencesStart;
3079 ssPtr->longLengthType = ZSTD_llt_none;
3080 }
3081
3082 /* ZSTD_postProcessSequenceProducerResult() :
3083 * Validates and post-processes sequences obtained through the external matchfinder API:
3084 * - Checks whether nbExternalSeqs represents an error condition.
3085 * - Appends a block delimiter to outSeqs if one is not already present.
3086 * See zstd.h for context regarding block delimiters.
3087 * Returns the number of sequences after post-processing, or an error code. */
ZSTD_postProcessSequenceProducerResult(ZSTD_Sequence * outSeqs,size_t nbExternalSeqs,size_t outSeqsCapacity,size_t srcSize)3088 static size_t ZSTD_postProcessSequenceProducerResult(
3089 ZSTD_Sequence* outSeqs, size_t nbExternalSeqs, size_t outSeqsCapacity, size_t srcSize
3090 ) {
3091 RETURN_ERROR_IF(
3092 nbExternalSeqs > outSeqsCapacity,
3093 sequenceProducer_failed,
3094 "External sequence producer returned error code %lu",
3095 (unsigned long)nbExternalSeqs
3096 );
3097
3098 RETURN_ERROR_IF(
3099 nbExternalSeqs == 0 && srcSize > 0,
3100 sequenceProducer_failed,
3101 "Got zero sequences from external sequence producer for a non-empty src buffer!"
3102 );
3103
3104 if (srcSize == 0) {
3105 ZSTD_memset(&outSeqs[0], 0, sizeof(ZSTD_Sequence));
3106 return 1;
3107 }
3108
3109 {
3110 ZSTD_Sequence const lastSeq = outSeqs[nbExternalSeqs - 1];
3111
3112 /* We can return early if lastSeq is already a block delimiter. */
3113 if (lastSeq.offset == 0 && lastSeq.matchLength == 0) {
3114 return nbExternalSeqs;
3115 }
3116
3117 /* This error condition is only possible if the external matchfinder
3118 * produced an invalid parse, by definition of ZSTD_sequenceBound(). */
3119 RETURN_ERROR_IF(
3120 nbExternalSeqs == outSeqsCapacity,
3121 sequenceProducer_failed,
3122 "nbExternalSeqs == outSeqsCapacity but lastSeq is not a block delimiter!"
3123 );
3124
3125 /* lastSeq is not a block delimiter, so we need to append one. */
3126 ZSTD_memset(&outSeqs[nbExternalSeqs], 0, sizeof(ZSTD_Sequence));
3127 return nbExternalSeqs + 1;
3128 }
3129 }
3130
3131 /* ZSTD_fastSequenceLengthSum() :
3132 * Returns sum(litLen) + sum(matchLen) + lastLits for *seqBuf*.
3133 * Similar to another function in zstd_compress.c (determine_blockSize),
3134 * except it doesn't check for a block delimiter to end summation.
3135 * Removing the early exit allows the compiler to auto-vectorize (https://godbolt.org/z/cY1cajz9P).
3136 * This function can be deleted and replaced by determine_blockSize after we resolve issue #3456. */
ZSTD_fastSequenceLengthSum(ZSTD_Sequence const * seqBuf,size_t seqBufSize)3137 static size_t ZSTD_fastSequenceLengthSum(ZSTD_Sequence const* seqBuf, size_t seqBufSize) {
3138 size_t matchLenSum, litLenSum, i;
3139 matchLenSum = 0;
3140 litLenSum = 0;
3141 for (i = 0; i < seqBufSize; i++) {
3142 litLenSum += seqBuf[i].litLength;
3143 matchLenSum += seqBuf[i].matchLength;
3144 }
3145 return litLenSum + matchLenSum;
3146 }
3147
3148 /*
3149 * Function to validate sequences produced by a block compressor.
3150 */
ZSTD_validateSeqStore(const SeqStore_t * seqStore,const ZSTD_compressionParameters * cParams)3151 static void ZSTD_validateSeqStore(const SeqStore_t* seqStore, const ZSTD_compressionParameters* cParams)
3152 {
3153 #if DEBUGLEVEL >= 1
3154 const SeqDef* seq = seqStore->sequencesStart;
3155 const SeqDef* const seqEnd = seqStore->sequences;
3156 size_t const matchLenLowerBound = cParams->minMatch == 3 ? 3 : 4;
3157 for (; seq < seqEnd; ++seq) {
3158 const ZSTD_SequenceLength seqLength = ZSTD_getSequenceLength(seqStore, seq);
3159 assert(seqLength.matchLength >= matchLenLowerBound);
3160 (void)seqLength;
3161 (void)matchLenLowerBound;
3162 }
3163 #else
3164 (void)seqStore;
3165 (void)cParams;
3166 #endif
3167 }
3168
3169 static size_t
3170 ZSTD_transferSequences_wBlockDelim(ZSTD_CCtx* cctx,
3171 ZSTD_SequencePosition* seqPos,
3172 const ZSTD_Sequence* const inSeqs, size_t inSeqsSize,
3173 const void* src, size_t blockSize,
3174 ZSTD_ParamSwitch_e externalRepSearch);
3175
3176 typedef enum { ZSTDbss_compress, ZSTDbss_noCompress } ZSTD_BuildSeqStore_e;
3177
ZSTD_buildSeqStore(ZSTD_CCtx * zc,const void * src,size_t srcSize)3178 static size_t ZSTD_buildSeqStore(ZSTD_CCtx* zc, const void* src, size_t srcSize)
3179 {
3180 ZSTD_MatchState_t* const ms = &zc->blockState.matchState;
3181 DEBUGLOG(5, "ZSTD_buildSeqStore (srcSize=%zu)", srcSize);
3182 assert(srcSize <= ZSTD_BLOCKSIZE_MAX);
3183 /* Assert that we have correctly flushed the ctx params into the ms's copy */
3184 ZSTD_assertEqualCParams(zc->appliedParams.cParams, ms->cParams);
3185 /* TODO: See 3090. We reduced MIN_CBLOCK_SIZE from 3 to 2 so to compensate we are adding
3186 * additional 1. We need to revisit and change this logic to be more consistent */
3187 if (srcSize < MIN_CBLOCK_SIZE+ZSTD_blockHeaderSize+1+1) {
3188 if (zc->appliedParams.cParams.strategy >= ZSTD_btopt) {
3189 ZSTD_ldm_skipRawSeqStoreBytes(&zc->externSeqStore, srcSize);
3190 } else {
3191 ZSTD_ldm_skipSequences(&zc->externSeqStore, srcSize, zc->appliedParams.cParams.minMatch);
3192 }
3193 return ZSTDbss_noCompress; /* don't even attempt compression below a certain srcSize */
3194 }
3195 ZSTD_resetSeqStore(&(zc->seqStore));
3196 /* required for optimal parser to read stats from dictionary */
3197 ms->opt.symbolCosts = &zc->blockState.prevCBlock->entropy;
3198 /* tell the optimal parser how we expect to compress literals */
3199 ms->opt.literalCompressionMode = zc->appliedParams.literalCompressionMode;
3200 /* a gap between an attached dict and the current window is not safe,
3201 * they must remain adjacent,
3202 * and when that stops being the case, the dict must be unset */
3203 assert(ms->dictMatchState == NULL || ms->loadedDictEnd == ms->window.dictLimit);
3204
3205 /* limited update after a very long match */
3206 { const BYTE* const base = ms->window.base;
3207 const BYTE* const istart = (const BYTE*)src;
3208 const U32 curr = (U32)(istart-base);
3209 if (sizeof(ptrdiff_t)==8) assert(istart - base < (ptrdiff_t)(U32)(-1)); /* ensure no overflow */
3210 if (curr > ms->nextToUpdate + 384)
3211 ms->nextToUpdate = curr - MIN(192, (U32)(curr - ms->nextToUpdate - 384));
3212 }
3213
3214 /* select and store sequences */
3215 { ZSTD_dictMode_e const dictMode = ZSTD_matchState_dictMode(ms);
3216 size_t lastLLSize;
3217 { int i;
3218 for (i = 0; i < ZSTD_REP_NUM; ++i)
3219 zc->blockState.nextCBlock->rep[i] = zc->blockState.prevCBlock->rep[i];
3220 }
3221 if (zc->externSeqStore.pos < zc->externSeqStore.size) {
3222 assert(zc->appliedParams.ldmParams.enableLdm == ZSTD_ps_disable);
3223
3224 /* External matchfinder + LDM is technically possible, just not implemented yet.
3225 * We need to revisit soon and implement it. */
3226 RETURN_ERROR_IF(
3227 ZSTD_hasExtSeqProd(&zc->appliedParams),
3228 parameter_combination_unsupported,
3229 "Long-distance matching with external sequence producer enabled is not currently supported."
3230 );
3231
3232 /* Updates ldmSeqStore.pos */
3233 lastLLSize =
3234 ZSTD_ldm_blockCompress(&zc->externSeqStore,
3235 ms, &zc->seqStore,
3236 zc->blockState.nextCBlock->rep,
3237 zc->appliedParams.useRowMatchFinder,
3238 src, srcSize);
3239 assert(zc->externSeqStore.pos <= zc->externSeqStore.size);
3240 } else if (zc->appliedParams.ldmParams.enableLdm == ZSTD_ps_enable) {
3241 RawSeqStore_t ldmSeqStore = kNullRawSeqStore;
3242
3243 /* External matchfinder + LDM is technically possible, just not implemented yet.
3244 * We need to revisit soon and implement it. */
3245 RETURN_ERROR_IF(
3246 ZSTD_hasExtSeqProd(&zc->appliedParams),
3247 parameter_combination_unsupported,
3248 "Long-distance matching with external sequence producer enabled is not currently supported."
3249 );
3250
3251 ldmSeqStore.seq = zc->ldmSequences;
3252 ldmSeqStore.capacity = zc->maxNbLdmSequences;
3253 /* Updates ldmSeqStore.size */
3254 FORWARD_IF_ERROR(ZSTD_ldm_generateSequences(&zc->ldmState, &ldmSeqStore,
3255 &zc->appliedParams.ldmParams,
3256 src, srcSize), "");
3257 /* Updates ldmSeqStore.pos */
3258 lastLLSize =
3259 ZSTD_ldm_blockCompress(&ldmSeqStore,
3260 ms, &zc->seqStore,
3261 zc->blockState.nextCBlock->rep,
3262 zc->appliedParams.useRowMatchFinder,
3263 src, srcSize);
3264 assert(ldmSeqStore.pos == ldmSeqStore.size);
3265 } else if (ZSTD_hasExtSeqProd(&zc->appliedParams)) {
3266 assert(
3267 zc->extSeqBufCapacity >= ZSTD_sequenceBound(srcSize)
3268 );
3269 assert(zc->appliedParams.extSeqProdFunc != NULL);
3270
3271 { U32 const windowSize = (U32)1 << zc->appliedParams.cParams.windowLog;
3272
3273 size_t const nbExternalSeqs = (zc->appliedParams.extSeqProdFunc)(
3274 zc->appliedParams.extSeqProdState,
3275 zc->extSeqBuf,
3276 zc->extSeqBufCapacity,
3277 src, srcSize,
3278 NULL, 0, /* dict and dictSize, currently not supported */
3279 zc->appliedParams.compressionLevel,
3280 windowSize
3281 );
3282
3283 size_t const nbPostProcessedSeqs = ZSTD_postProcessSequenceProducerResult(
3284 zc->extSeqBuf,
3285 nbExternalSeqs,
3286 zc->extSeqBufCapacity,
3287 srcSize
3288 );
3289
3290 /* Return early if there is no error, since we don't need to worry about last literals */
3291 if (!ZSTD_isError(nbPostProcessedSeqs)) {
3292 ZSTD_SequencePosition seqPos = {0,0,0};
3293 size_t const seqLenSum = ZSTD_fastSequenceLengthSum(zc->extSeqBuf, nbPostProcessedSeqs);
3294 RETURN_ERROR_IF(seqLenSum > srcSize, externalSequences_invalid, "External sequences imply too large a block!");
3295 FORWARD_IF_ERROR(
3296 ZSTD_transferSequences_wBlockDelim(
3297 zc, &seqPos,
3298 zc->extSeqBuf, nbPostProcessedSeqs,
3299 src, srcSize,
3300 zc->appliedParams.searchForExternalRepcodes
3301 ),
3302 "Failed to copy external sequences to seqStore!"
3303 );
3304 ms->ldmSeqStore = NULL;
3305 DEBUGLOG(5, "Copied %lu sequences from external sequence producer to internal seqStore.", (unsigned long)nbExternalSeqs);
3306 return ZSTDbss_compress;
3307 }
3308
3309 /* Propagate the error if fallback is disabled */
3310 if (!zc->appliedParams.enableMatchFinderFallback) {
3311 return nbPostProcessedSeqs;
3312 }
3313
3314 /* Fallback to software matchfinder */
3315 { ZSTD_BlockCompressor_f const blockCompressor =
3316 ZSTD_selectBlockCompressor(
3317 zc->appliedParams.cParams.strategy,
3318 zc->appliedParams.useRowMatchFinder,
3319 dictMode);
3320 ms->ldmSeqStore = NULL;
3321 DEBUGLOG(
3322 5,
3323 "External sequence producer returned error code %lu. Falling back to internal parser.",
3324 (unsigned long)nbExternalSeqs
3325 );
3326 lastLLSize = blockCompressor(ms, &zc->seqStore, zc->blockState.nextCBlock->rep, src, srcSize);
3327 } }
3328 } else { /* not long range mode and no external matchfinder */
3329 ZSTD_BlockCompressor_f const blockCompressor = ZSTD_selectBlockCompressor(
3330 zc->appliedParams.cParams.strategy,
3331 zc->appliedParams.useRowMatchFinder,
3332 dictMode);
3333 ms->ldmSeqStore = NULL;
3334 lastLLSize = blockCompressor(ms, &zc->seqStore, zc->blockState.nextCBlock->rep, src, srcSize);
3335 }
3336 { const BYTE* const lastLiterals = (const BYTE*)src + srcSize - lastLLSize;
3337 ZSTD_storeLastLiterals(&zc->seqStore, lastLiterals, lastLLSize);
3338 } }
3339 ZSTD_validateSeqStore(&zc->seqStore, &zc->appliedParams.cParams);
3340 return ZSTDbss_compress;
3341 }
3342
ZSTD_copyBlockSequences(SeqCollector * seqCollector,const SeqStore_t * seqStore,const U32 prevRepcodes[ZSTD_REP_NUM])3343 static size_t ZSTD_copyBlockSequences(SeqCollector* seqCollector, const SeqStore_t* seqStore, const U32 prevRepcodes[ZSTD_REP_NUM])
3344 {
3345 const SeqDef* inSeqs = seqStore->sequencesStart;
3346 const size_t nbInSequences = (size_t)(seqStore->sequences - inSeqs);
3347 const size_t nbInLiterals = (size_t)(seqStore->lit - seqStore->litStart);
3348
3349 ZSTD_Sequence* outSeqs = seqCollector->seqIndex == 0 ? seqCollector->seqStart : seqCollector->seqStart + seqCollector->seqIndex;
3350 const size_t nbOutSequences = nbInSequences + 1;
3351 size_t nbOutLiterals = 0;
3352 Repcodes_t repcodes;
3353 size_t i;
3354
3355 /* Bounds check that we have enough space for every input sequence
3356 * and the block delimiter
3357 */
3358 assert(seqCollector->seqIndex <= seqCollector->maxSequences);
3359 RETURN_ERROR_IF(
3360 nbOutSequences > (size_t)(seqCollector->maxSequences - seqCollector->seqIndex),
3361 dstSize_tooSmall,
3362 "Not enough space to copy sequences");
3363
3364 ZSTD_memcpy(&repcodes, prevRepcodes, sizeof(repcodes));
3365 for (i = 0; i < nbInSequences; ++i) {
3366 U32 rawOffset;
3367 outSeqs[i].litLength = inSeqs[i].litLength;
3368 outSeqs[i].matchLength = inSeqs[i].mlBase + MINMATCH;
3369 outSeqs[i].rep = 0;
3370
3371 /* Handle the possible single length >= 64K
3372 * There can only be one because we add MINMATCH to every match length,
3373 * and blocks are at most 128K.
3374 */
3375 if (i == seqStore->longLengthPos) {
3376 if (seqStore->longLengthType == ZSTD_llt_literalLength) {
3377 outSeqs[i].litLength += 0x10000;
3378 } else if (seqStore->longLengthType == ZSTD_llt_matchLength) {
3379 outSeqs[i].matchLength += 0x10000;
3380 }
3381 }
3382
3383 /* Determine the raw offset given the offBase, which may be a repcode. */
3384 if (OFFBASE_IS_REPCODE(inSeqs[i].offBase)) {
3385 const U32 repcode = OFFBASE_TO_REPCODE(inSeqs[i].offBase);
3386 assert(repcode > 0);
3387 outSeqs[i].rep = repcode;
3388 if (outSeqs[i].litLength != 0) {
3389 rawOffset = repcodes.rep[repcode - 1];
3390 } else {
3391 if (repcode == 3) {
3392 assert(repcodes.rep[0] > 1);
3393 rawOffset = repcodes.rep[0] - 1;
3394 } else {
3395 rawOffset = repcodes.rep[repcode];
3396 }
3397 }
3398 } else {
3399 rawOffset = OFFBASE_TO_OFFSET(inSeqs[i].offBase);
3400 }
3401 outSeqs[i].offset = rawOffset;
3402
3403 /* Update repcode history for the sequence */
3404 ZSTD_updateRep(repcodes.rep,
3405 inSeqs[i].offBase,
3406 inSeqs[i].litLength == 0);
3407
3408 nbOutLiterals += outSeqs[i].litLength;
3409 }
3410 /* Insert last literals (if any exist) in the block as a sequence with ml == off == 0.
3411 * If there are no last literals, then we'll emit (of: 0, ml: 0, ll: 0), which is a marker
3412 * for the block boundary, according to the API.
3413 */
3414 assert(nbInLiterals >= nbOutLiterals);
3415 {
3416 const size_t lastLLSize = nbInLiterals - nbOutLiterals;
3417 outSeqs[nbInSequences].litLength = (U32)lastLLSize;
3418 outSeqs[nbInSequences].matchLength = 0;
3419 outSeqs[nbInSequences].offset = 0;
3420 assert(nbOutSequences == nbInSequences + 1);
3421 }
3422 seqCollector->seqIndex += nbOutSequences;
3423 assert(seqCollector->seqIndex <= seqCollector->maxSequences);
3424
3425 return 0;
3426 }
3427
ZSTD_sequenceBound(size_t srcSize)3428 size_t ZSTD_sequenceBound(size_t srcSize) {
3429 const size_t maxNbSeq = (srcSize / ZSTD_MINMATCH_MIN) + 1;
3430 const size_t maxNbDelims = (srcSize / ZSTD_BLOCKSIZE_MAX_MIN) + 1;
3431 return maxNbSeq + maxNbDelims;
3432 }
3433
ZSTD_generateSequences(ZSTD_CCtx * zc,ZSTD_Sequence * outSeqs,size_t outSeqsSize,const void * src,size_t srcSize)3434 size_t ZSTD_generateSequences(ZSTD_CCtx* zc, ZSTD_Sequence* outSeqs,
3435 size_t outSeqsSize, const void* src, size_t srcSize)
3436 {
3437 const size_t dstCapacity = ZSTD_compressBound(srcSize);
3438 void* dst; /* Make C90 happy. */
3439 SeqCollector seqCollector;
3440 {
3441 int targetCBlockSize;
3442 FORWARD_IF_ERROR(ZSTD_CCtx_getParameter(zc, ZSTD_c_targetCBlockSize, &targetCBlockSize), "");
3443 RETURN_ERROR_IF(targetCBlockSize != 0, parameter_unsupported, "targetCBlockSize != 0");
3444 }
3445 {
3446 int nbWorkers;
3447 FORWARD_IF_ERROR(ZSTD_CCtx_getParameter(zc, ZSTD_c_nbWorkers, &nbWorkers), "");
3448 RETURN_ERROR_IF(nbWorkers != 0, parameter_unsupported, "nbWorkers != 0");
3449 }
3450
3451 dst = ZSTD_customMalloc(dstCapacity, ZSTD_defaultCMem);
3452 RETURN_ERROR_IF(dst == NULL, memory_allocation, "NULL pointer!");
3453
3454 seqCollector.collectSequences = 1;
3455 seqCollector.seqStart = outSeqs;
3456 seqCollector.seqIndex = 0;
3457 seqCollector.maxSequences = outSeqsSize;
3458 zc->seqCollector = seqCollector;
3459
3460 {
3461 const size_t ret = ZSTD_compress2(zc, dst, dstCapacity, src, srcSize);
3462 ZSTD_customFree(dst, ZSTD_defaultCMem);
3463 FORWARD_IF_ERROR(ret, "ZSTD_compress2 failed");
3464 }
3465 assert(zc->seqCollector.seqIndex <= ZSTD_sequenceBound(srcSize));
3466 return zc->seqCollector.seqIndex;
3467 }
3468
ZSTD_mergeBlockDelimiters(ZSTD_Sequence * sequences,size_t seqsSize)3469 size_t ZSTD_mergeBlockDelimiters(ZSTD_Sequence* sequences, size_t seqsSize) {
3470 size_t in = 0;
3471 size_t out = 0;
3472 for (; in < seqsSize; ++in) {
3473 if (sequences[in].offset == 0 && sequences[in].matchLength == 0) {
3474 if (in != seqsSize - 1) {
3475 sequences[in+1].litLength += sequences[in].litLength;
3476 }
3477 } else {
3478 sequences[out] = sequences[in];
3479 ++out;
3480 }
3481 }
3482 return out;
3483 }
3484
3485 /* Unrolled loop to read four size_ts of input at a time. Returns 1 if is RLE, 0 if not. */
ZSTD_isRLE(const BYTE * src,size_t length)3486 static int ZSTD_isRLE(const BYTE* src, size_t length) {
3487 const BYTE* ip = src;
3488 const BYTE value = ip[0];
3489 const size_t valueST = (size_t)((U64)value * 0x0101010101010101ULL);
3490 const size_t unrollSize = sizeof(size_t) * 4;
3491 const size_t unrollMask = unrollSize - 1;
3492 const size_t prefixLength = length & unrollMask;
3493 size_t i;
3494 if (length == 1) return 1;
3495 /* Check if prefix is RLE first before using unrolled loop */
3496 if (prefixLength && ZSTD_count(ip+1, ip, ip+prefixLength) != prefixLength-1) {
3497 return 0;
3498 }
3499 for (i = prefixLength; i != length; i += unrollSize) {
3500 size_t u;
3501 for (u = 0; u < unrollSize; u += sizeof(size_t)) {
3502 if (MEM_readST(ip + i + u) != valueST) {
3503 return 0;
3504 } } }
3505 return 1;
3506 }
3507
3508 /* Returns true if the given block may be RLE.
3509 * This is just a heuristic based on the compressibility.
3510 * It may return both false positives and false negatives.
3511 */
ZSTD_maybeRLE(SeqStore_t const * seqStore)3512 static int ZSTD_maybeRLE(SeqStore_t const* seqStore)
3513 {
3514 size_t const nbSeqs = (size_t)(seqStore->sequences - seqStore->sequencesStart);
3515 size_t const nbLits = (size_t)(seqStore->lit - seqStore->litStart);
3516
3517 return nbSeqs < 4 && nbLits < 10;
3518 }
3519
3520 static void
ZSTD_blockState_confirmRepcodesAndEntropyTables(ZSTD_blockState_t * const bs)3521 ZSTD_blockState_confirmRepcodesAndEntropyTables(ZSTD_blockState_t* const bs)
3522 {
3523 ZSTD_compressedBlockState_t* const tmp = bs->prevCBlock;
3524 bs->prevCBlock = bs->nextCBlock;
3525 bs->nextCBlock = tmp;
3526 }
3527
3528 /* Writes the block header */
3529 static void
writeBlockHeader(void * op,size_t cSize,size_t blockSize,U32 lastBlock)3530 writeBlockHeader(void* op, size_t cSize, size_t blockSize, U32 lastBlock)
3531 {
3532 U32 const cBlockHeader = cSize == 1 ?
3533 lastBlock + (((U32)bt_rle)<<1) + (U32)(blockSize << 3) :
3534 lastBlock + (((U32)bt_compressed)<<1) + (U32)(cSize << 3);
3535 MEM_writeLE24(op, cBlockHeader);
3536 DEBUGLOG(5, "writeBlockHeader: cSize: %zu blockSize: %zu lastBlock: %u", cSize, blockSize, lastBlock);
3537 }
3538
3539 /* ZSTD_buildBlockEntropyStats_literals() :
3540 * Builds entropy for the literals.
3541 * Stores literals block type (raw, rle, compressed, repeat) and
3542 * huffman description table to hufMetadata.
3543 * Requires ENTROPY_WORKSPACE_SIZE workspace
3544 * @return : size of huffman description table, or an error code
3545 */
3546 static size_t
ZSTD_buildBlockEntropyStats_literals(void * const src,size_t srcSize,const ZSTD_hufCTables_t * prevHuf,ZSTD_hufCTables_t * nextHuf,ZSTD_hufCTablesMetadata_t * hufMetadata,const int literalsCompressionIsDisabled,void * workspace,size_t wkspSize,int hufFlags)3547 ZSTD_buildBlockEntropyStats_literals(void* const src, size_t srcSize,
3548 const ZSTD_hufCTables_t* prevHuf,
3549 ZSTD_hufCTables_t* nextHuf,
3550 ZSTD_hufCTablesMetadata_t* hufMetadata,
3551 const int literalsCompressionIsDisabled,
3552 void* workspace, size_t wkspSize,
3553 int hufFlags)
3554 {
3555 BYTE* const wkspStart = (BYTE*)workspace;
3556 BYTE* const wkspEnd = wkspStart + wkspSize;
3557 BYTE* const countWkspStart = wkspStart;
3558 unsigned* const countWksp = (unsigned*)workspace;
3559 const size_t countWkspSize = (HUF_SYMBOLVALUE_MAX + 1) * sizeof(unsigned);
3560 BYTE* const nodeWksp = countWkspStart + countWkspSize;
3561 const size_t nodeWkspSize = (size_t)(wkspEnd - nodeWksp);
3562 unsigned maxSymbolValue = HUF_SYMBOLVALUE_MAX;
3563 unsigned huffLog = LitHufLog;
3564 HUF_repeat repeat = prevHuf->repeatMode;
3565 DEBUGLOG(5, "ZSTD_buildBlockEntropyStats_literals (srcSize=%zu)", srcSize);
3566
3567 /* Prepare nextEntropy assuming reusing the existing table */
3568 ZSTD_memcpy(nextHuf, prevHuf, sizeof(*prevHuf));
3569
3570 if (literalsCompressionIsDisabled) {
3571 DEBUGLOG(5, "set_basic - disabled");
3572 hufMetadata->hType = set_basic;
3573 return 0;
3574 }
3575
3576 /* small ? don't even attempt compression (speed opt) */
3577 #ifndef COMPRESS_LITERALS_SIZE_MIN
3578 # define COMPRESS_LITERALS_SIZE_MIN 63 /* heuristic */
3579 #endif
3580 { size_t const minLitSize = (prevHuf->repeatMode == HUF_repeat_valid) ? 6 : COMPRESS_LITERALS_SIZE_MIN;
3581 if (srcSize <= minLitSize) {
3582 DEBUGLOG(5, "set_basic - too small");
3583 hufMetadata->hType = set_basic;
3584 return 0;
3585 } }
3586
3587 /* Scan input and build symbol stats */
3588 { size_t const largest =
3589 HIST_count_wksp (countWksp, &maxSymbolValue,
3590 (const BYTE*)src, srcSize,
3591 workspace, wkspSize);
3592 FORWARD_IF_ERROR(largest, "HIST_count_wksp failed");
3593 if (largest == srcSize) {
3594 /* only one literal symbol */
3595 DEBUGLOG(5, "set_rle");
3596 hufMetadata->hType = set_rle;
3597 return 0;
3598 }
3599 if (largest <= (srcSize >> 7)+4) {
3600 /* heuristic: likely not compressible */
3601 DEBUGLOG(5, "set_basic - no gain");
3602 hufMetadata->hType = set_basic;
3603 return 0;
3604 } }
3605
3606 /* Validate the previous Huffman table */
3607 if (repeat == HUF_repeat_check
3608 && !HUF_validateCTable((HUF_CElt const*)prevHuf->CTable, countWksp, maxSymbolValue)) {
3609 repeat = HUF_repeat_none;
3610 }
3611
3612 /* Build Huffman Tree */
3613 ZSTD_memset(nextHuf->CTable, 0, sizeof(nextHuf->CTable));
3614 huffLog = HUF_optimalTableLog(huffLog, srcSize, maxSymbolValue, nodeWksp, nodeWkspSize, nextHuf->CTable, countWksp, hufFlags);
3615 assert(huffLog <= LitHufLog);
3616 { size_t const maxBits = HUF_buildCTable_wksp((HUF_CElt*)nextHuf->CTable, countWksp,
3617 maxSymbolValue, huffLog,
3618 nodeWksp, nodeWkspSize);
3619 FORWARD_IF_ERROR(maxBits, "HUF_buildCTable_wksp");
3620 huffLog = (U32)maxBits;
3621 }
3622 { /* Build and write the CTable */
3623 size_t const newCSize = HUF_estimateCompressedSize(
3624 (HUF_CElt*)nextHuf->CTable, countWksp, maxSymbolValue);
3625 size_t const hSize = HUF_writeCTable_wksp(
3626 hufMetadata->hufDesBuffer, sizeof(hufMetadata->hufDesBuffer),
3627 (HUF_CElt*)nextHuf->CTable, maxSymbolValue, huffLog,
3628 nodeWksp, nodeWkspSize);
3629 /* Check against repeating the previous CTable */
3630 if (repeat != HUF_repeat_none) {
3631 size_t const oldCSize = HUF_estimateCompressedSize(
3632 (HUF_CElt const*)prevHuf->CTable, countWksp, maxSymbolValue);
3633 if (oldCSize < srcSize && (oldCSize <= hSize + newCSize || hSize + 12 >= srcSize)) {
3634 DEBUGLOG(5, "set_repeat - smaller");
3635 ZSTD_memcpy(nextHuf, prevHuf, sizeof(*prevHuf));
3636 hufMetadata->hType = set_repeat;
3637 return 0;
3638 } }
3639 if (newCSize + hSize >= srcSize) {
3640 DEBUGLOG(5, "set_basic - no gains");
3641 ZSTD_memcpy(nextHuf, prevHuf, sizeof(*prevHuf));
3642 hufMetadata->hType = set_basic;
3643 return 0;
3644 }
3645 DEBUGLOG(5, "set_compressed (hSize=%u)", (U32)hSize);
3646 hufMetadata->hType = set_compressed;
3647 nextHuf->repeatMode = HUF_repeat_check;
3648 return hSize;
3649 }
3650 }
3651
3652
3653 /* ZSTD_buildDummySequencesStatistics():
3654 * Returns a ZSTD_symbolEncodingTypeStats_t with all encoding types as set_basic,
3655 * and updates nextEntropy to the appropriate repeatMode.
3656 */
3657 static ZSTD_symbolEncodingTypeStats_t
ZSTD_buildDummySequencesStatistics(ZSTD_fseCTables_t * nextEntropy)3658 ZSTD_buildDummySequencesStatistics(ZSTD_fseCTables_t* nextEntropy)
3659 {
3660 ZSTD_symbolEncodingTypeStats_t stats = {set_basic, set_basic, set_basic, 0, 0, 0};
3661 nextEntropy->litlength_repeatMode = FSE_repeat_none;
3662 nextEntropy->offcode_repeatMode = FSE_repeat_none;
3663 nextEntropy->matchlength_repeatMode = FSE_repeat_none;
3664 return stats;
3665 }
3666
3667 /* ZSTD_buildBlockEntropyStats_sequences() :
3668 * Builds entropy for the sequences.
3669 * Stores symbol compression modes and fse table to fseMetadata.
3670 * Requires ENTROPY_WORKSPACE_SIZE wksp.
3671 * @return : size of fse tables or error code */
3672 static size_t
ZSTD_buildBlockEntropyStats_sequences(const SeqStore_t * seqStorePtr,const ZSTD_fseCTables_t * prevEntropy,ZSTD_fseCTables_t * nextEntropy,const ZSTD_CCtx_params * cctxParams,ZSTD_fseCTablesMetadata_t * fseMetadata,void * workspace,size_t wkspSize)3673 ZSTD_buildBlockEntropyStats_sequences(
3674 const SeqStore_t* seqStorePtr,
3675 const ZSTD_fseCTables_t* prevEntropy,
3676 ZSTD_fseCTables_t* nextEntropy,
3677 const ZSTD_CCtx_params* cctxParams,
3678 ZSTD_fseCTablesMetadata_t* fseMetadata,
3679 void* workspace, size_t wkspSize)
3680 {
3681 ZSTD_strategy const strategy = cctxParams->cParams.strategy;
3682 size_t const nbSeq = (size_t)(seqStorePtr->sequences - seqStorePtr->sequencesStart);
3683 BYTE* const ostart = fseMetadata->fseTablesBuffer;
3684 BYTE* const oend = ostart + sizeof(fseMetadata->fseTablesBuffer);
3685 BYTE* op = ostart;
3686 unsigned* countWorkspace = (unsigned*)workspace;
3687 unsigned* entropyWorkspace = countWorkspace + (MaxSeq + 1);
3688 size_t entropyWorkspaceSize = wkspSize - (MaxSeq + 1) * sizeof(*countWorkspace);
3689 ZSTD_symbolEncodingTypeStats_t stats;
3690
3691 DEBUGLOG(5, "ZSTD_buildBlockEntropyStats_sequences (nbSeq=%zu)", nbSeq);
3692 stats = nbSeq != 0 ? ZSTD_buildSequencesStatistics(seqStorePtr, nbSeq,
3693 prevEntropy, nextEntropy, op, oend,
3694 strategy, countWorkspace,
3695 entropyWorkspace, entropyWorkspaceSize)
3696 : ZSTD_buildDummySequencesStatistics(nextEntropy);
3697 FORWARD_IF_ERROR(stats.size, "ZSTD_buildSequencesStatistics failed!");
3698 fseMetadata->llType = (SymbolEncodingType_e) stats.LLtype;
3699 fseMetadata->ofType = (SymbolEncodingType_e) stats.Offtype;
3700 fseMetadata->mlType = (SymbolEncodingType_e) stats.MLtype;
3701 fseMetadata->lastCountSize = stats.lastCountSize;
3702 return stats.size;
3703 }
3704
3705
3706 /* ZSTD_buildBlockEntropyStats() :
3707 * Builds entropy for the block.
3708 * Requires workspace size ENTROPY_WORKSPACE_SIZE
3709 * @return : 0 on success, or an error code
3710 * Note : also employed in superblock
3711 */
ZSTD_buildBlockEntropyStats(const SeqStore_t * seqStorePtr,const ZSTD_entropyCTables_t * prevEntropy,ZSTD_entropyCTables_t * nextEntropy,const ZSTD_CCtx_params * cctxParams,ZSTD_entropyCTablesMetadata_t * entropyMetadata,void * workspace,size_t wkspSize)3712 size_t ZSTD_buildBlockEntropyStats(
3713 const SeqStore_t* seqStorePtr,
3714 const ZSTD_entropyCTables_t* prevEntropy,
3715 ZSTD_entropyCTables_t* nextEntropy,
3716 const ZSTD_CCtx_params* cctxParams,
3717 ZSTD_entropyCTablesMetadata_t* entropyMetadata,
3718 void* workspace, size_t wkspSize)
3719 {
3720 size_t const litSize = (size_t)(seqStorePtr->lit - seqStorePtr->litStart);
3721 int const huf_useOptDepth = (cctxParams->cParams.strategy >= HUF_OPTIMAL_DEPTH_THRESHOLD);
3722 int const hufFlags = huf_useOptDepth ? HUF_flags_optimalDepth : 0;
3723
3724 entropyMetadata->hufMetadata.hufDesSize =
3725 ZSTD_buildBlockEntropyStats_literals(seqStorePtr->litStart, litSize,
3726 &prevEntropy->huf, &nextEntropy->huf,
3727 &entropyMetadata->hufMetadata,
3728 ZSTD_literalsCompressionIsDisabled(cctxParams),
3729 workspace, wkspSize, hufFlags);
3730
3731 FORWARD_IF_ERROR(entropyMetadata->hufMetadata.hufDesSize, "ZSTD_buildBlockEntropyStats_literals failed");
3732 entropyMetadata->fseMetadata.fseTablesSize =
3733 ZSTD_buildBlockEntropyStats_sequences(seqStorePtr,
3734 &prevEntropy->fse, &nextEntropy->fse,
3735 cctxParams,
3736 &entropyMetadata->fseMetadata,
3737 workspace, wkspSize);
3738 FORWARD_IF_ERROR(entropyMetadata->fseMetadata.fseTablesSize, "ZSTD_buildBlockEntropyStats_sequences failed");
3739 return 0;
3740 }
3741
3742 /* Returns the size estimate for the literals section (header + content) of a block */
3743 static size_t
ZSTD_estimateBlockSize_literal(const BYTE * literals,size_t litSize,const ZSTD_hufCTables_t * huf,const ZSTD_hufCTablesMetadata_t * hufMetadata,void * workspace,size_t wkspSize,int writeEntropy)3744 ZSTD_estimateBlockSize_literal(const BYTE* literals, size_t litSize,
3745 const ZSTD_hufCTables_t* huf,
3746 const ZSTD_hufCTablesMetadata_t* hufMetadata,
3747 void* workspace, size_t wkspSize,
3748 int writeEntropy)
3749 {
3750 unsigned* const countWksp = (unsigned*)workspace;
3751 unsigned maxSymbolValue = HUF_SYMBOLVALUE_MAX;
3752 size_t literalSectionHeaderSize = 3 + (litSize >= 1 KB) + (litSize >= 16 KB);
3753 U32 singleStream = litSize < 256;
3754
3755 if (hufMetadata->hType == set_basic) return litSize;
3756 else if (hufMetadata->hType == set_rle) return 1;
3757 else if (hufMetadata->hType == set_compressed || hufMetadata->hType == set_repeat) {
3758 size_t const largest = HIST_count_wksp (countWksp, &maxSymbolValue, (const BYTE*)literals, litSize, workspace, wkspSize);
3759 if (ZSTD_isError(largest)) return litSize;
3760 { size_t cLitSizeEstimate = HUF_estimateCompressedSize((const HUF_CElt*)huf->CTable, countWksp, maxSymbolValue);
3761 if (writeEntropy) cLitSizeEstimate += hufMetadata->hufDesSize;
3762 if (!singleStream) cLitSizeEstimate += 6; /* multi-stream huffman uses 6-byte jump table */
3763 return cLitSizeEstimate + literalSectionHeaderSize;
3764 } }
3765 assert(0); /* impossible */
3766 return 0;
3767 }
3768
3769 /* Returns the size estimate for the FSE-compressed symbols (of, ml, ll) of a block */
3770 static size_t
ZSTD_estimateBlockSize_symbolType(SymbolEncodingType_e type,const BYTE * codeTable,size_t nbSeq,unsigned maxCode,const FSE_CTable * fseCTable,const U8 * additionalBits,short const * defaultNorm,U32 defaultNormLog,U32 defaultMax,void * workspace,size_t wkspSize)3771 ZSTD_estimateBlockSize_symbolType(SymbolEncodingType_e type,
3772 const BYTE* codeTable, size_t nbSeq, unsigned maxCode,
3773 const FSE_CTable* fseCTable,
3774 const U8* additionalBits,
3775 short const* defaultNorm, U32 defaultNormLog, U32 defaultMax,
3776 void* workspace, size_t wkspSize)
3777 {
3778 unsigned* const countWksp = (unsigned*)workspace;
3779 const BYTE* ctp = codeTable;
3780 const BYTE* const ctStart = ctp;
3781 const BYTE* const ctEnd = ctStart + nbSeq;
3782 size_t cSymbolTypeSizeEstimateInBits = 0;
3783 unsigned max = maxCode;
3784
3785 HIST_countFast_wksp(countWksp, &max, codeTable, nbSeq, workspace, wkspSize); /* can't fail */
3786 if (type == set_basic) {
3787 /* We selected this encoding type, so it must be valid. */
3788 assert(max <= defaultMax);
3789 (void)defaultMax;
3790 cSymbolTypeSizeEstimateInBits = ZSTD_crossEntropyCost(defaultNorm, defaultNormLog, countWksp, max);
3791 } else if (type == set_rle) {
3792 cSymbolTypeSizeEstimateInBits = 0;
3793 } else if (type == set_compressed || type == set_repeat) {
3794 cSymbolTypeSizeEstimateInBits = ZSTD_fseBitCost(fseCTable, countWksp, max);
3795 }
3796 if (ZSTD_isError(cSymbolTypeSizeEstimateInBits)) {
3797 return nbSeq * 10;
3798 }
3799 while (ctp < ctEnd) {
3800 if (additionalBits) cSymbolTypeSizeEstimateInBits += additionalBits[*ctp];
3801 else cSymbolTypeSizeEstimateInBits += *ctp; /* for offset, offset code is also the number of additional bits */
3802 ctp++;
3803 }
3804 return cSymbolTypeSizeEstimateInBits >> 3;
3805 }
3806
3807 /* Returns the size estimate for the sequences section (header + content) of a block */
3808 static size_t
ZSTD_estimateBlockSize_sequences(const BYTE * ofCodeTable,const BYTE * llCodeTable,const BYTE * mlCodeTable,size_t nbSeq,const ZSTD_fseCTables_t * fseTables,const ZSTD_fseCTablesMetadata_t * fseMetadata,void * workspace,size_t wkspSize,int writeEntropy)3809 ZSTD_estimateBlockSize_sequences(const BYTE* ofCodeTable,
3810 const BYTE* llCodeTable,
3811 const BYTE* mlCodeTable,
3812 size_t nbSeq,
3813 const ZSTD_fseCTables_t* fseTables,
3814 const ZSTD_fseCTablesMetadata_t* fseMetadata,
3815 void* workspace, size_t wkspSize,
3816 int writeEntropy)
3817 {
3818 size_t sequencesSectionHeaderSize = 1 /* seqHead */ + 1 /* min seqSize size */ + (nbSeq >= 128) + (nbSeq >= LONGNBSEQ);
3819 size_t cSeqSizeEstimate = 0;
3820 cSeqSizeEstimate += ZSTD_estimateBlockSize_symbolType(fseMetadata->ofType, ofCodeTable, nbSeq, MaxOff,
3821 fseTables->offcodeCTable, NULL,
3822 OF_defaultNorm, OF_defaultNormLog, DefaultMaxOff,
3823 workspace, wkspSize);
3824 cSeqSizeEstimate += ZSTD_estimateBlockSize_symbolType(fseMetadata->llType, llCodeTable, nbSeq, MaxLL,
3825 fseTables->litlengthCTable, LL_bits,
3826 LL_defaultNorm, LL_defaultNormLog, MaxLL,
3827 workspace, wkspSize);
3828 cSeqSizeEstimate += ZSTD_estimateBlockSize_symbolType(fseMetadata->mlType, mlCodeTable, nbSeq, MaxML,
3829 fseTables->matchlengthCTable, ML_bits,
3830 ML_defaultNorm, ML_defaultNormLog, MaxML,
3831 workspace, wkspSize);
3832 if (writeEntropy) cSeqSizeEstimate += fseMetadata->fseTablesSize;
3833 return cSeqSizeEstimate + sequencesSectionHeaderSize;
3834 }
3835
3836 /* Returns the size estimate for a given stream of literals, of, ll, ml */
3837 static size_t
ZSTD_estimateBlockSize(const BYTE * literals,size_t litSize,const BYTE * ofCodeTable,const BYTE * llCodeTable,const BYTE * mlCodeTable,size_t nbSeq,const ZSTD_entropyCTables_t * entropy,const ZSTD_entropyCTablesMetadata_t * entropyMetadata,void * workspace,size_t wkspSize,int writeLitEntropy,int writeSeqEntropy)3838 ZSTD_estimateBlockSize(const BYTE* literals, size_t litSize,
3839 const BYTE* ofCodeTable,
3840 const BYTE* llCodeTable,
3841 const BYTE* mlCodeTable,
3842 size_t nbSeq,
3843 const ZSTD_entropyCTables_t* entropy,
3844 const ZSTD_entropyCTablesMetadata_t* entropyMetadata,
3845 void* workspace, size_t wkspSize,
3846 int writeLitEntropy, int writeSeqEntropy)
3847 {
3848 size_t const literalsSize = ZSTD_estimateBlockSize_literal(literals, litSize,
3849 &entropy->huf, &entropyMetadata->hufMetadata,
3850 workspace, wkspSize, writeLitEntropy);
3851 size_t const seqSize = ZSTD_estimateBlockSize_sequences(ofCodeTable, llCodeTable, mlCodeTable,
3852 nbSeq, &entropy->fse, &entropyMetadata->fseMetadata,
3853 workspace, wkspSize, writeSeqEntropy);
3854 return seqSize + literalsSize + ZSTD_blockHeaderSize;
3855 }
3856
3857 /* Builds entropy statistics and uses them for blocksize estimation.
3858 *
3859 * @return: estimated compressed size of the seqStore, or a zstd error.
3860 */
3861 static size_t
ZSTD_buildEntropyStatisticsAndEstimateSubBlockSize(SeqStore_t * seqStore,ZSTD_CCtx * zc)3862 ZSTD_buildEntropyStatisticsAndEstimateSubBlockSize(SeqStore_t* seqStore, ZSTD_CCtx* zc)
3863 {
3864 ZSTD_entropyCTablesMetadata_t* const entropyMetadata = &zc->blockSplitCtx.entropyMetadata;
3865 DEBUGLOG(6, "ZSTD_buildEntropyStatisticsAndEstimateSubBlockSize()");
3866 FORWARD_IF_ERROR(ZSTD_buildBlockEntropyStats(seqStore,
3867 &zc->blockState.prevCBlock->entropy,
3868 &zc->blockState.nextCBlock->entropy,
3869 &zc->appliedParams,
3870 entropyMetadata,
3871 zc->tmpWorkspace, zc->tmpWkspSize), "");
3872 return ZSTD_estimateBlockSize(
3873 seqStore->litStart, (size_t)(seqStore->lit - seqStore->litStart),
3874 seqStore->ofCode, seqStore->llCode, seqStore->mlCode,
3875 (size_t)(seqStore->sequences - seqStore->sequencesStart),
3876 &zc->blockState.nextCBlock->entropy,
3877 entropyMetadata,
3878 zc->tmpWorkspace, zc->tmpWkspSize,
3879 (int)(entropyMetadata->hufMetadata.hType == set_compressed), 1);
3880 }
3881
3882 /* Returns literals bytes represented in a seqStore */
ZSTD_countSeqStoreLiteralsBytes(const SeqStore_t * const seqStore)3883 static size_t ZSTD_countSeqStoreLiteralsBytes(const SeqStore_t* const seqStore)
3884 {
3885 size_t literalsBytes = 0;
3886 size_t const nbSeqs = (size_t)(seqStore->sequences - seqStore->sequencesStart);
3887 size_t i;
3888 for (i = 0; i < nbSeqs; ++i) {
3889 SeqDef const seq = seqStore->sequencesStart[i];
3890 literalsBytes += seq.litLength;
3891 if (i == seqStore->longLengthPos && seqStore->longLengthType == ZSTD_llt_literalLength) {
3892 literalsBytes += 0x10000;
3893 } }
3894 return literalsBytes;
3895 }
3896
3897 /* Returns match bytes represented in a seqStore */
ZSTD_countSeqStoreMatchBytes(const SeqStore_t * const seqStore)3898 static size_t ZSTD_countSeqStoreMatchBytes(const SeqStore_t* const seqStore)
3899 {
3900 size_t matchBytes = 0;
3901 size_t const nbSeqs = (size_t)(seqStore->sequences - seqStore->sequencesStart);
3902 size_t i;
3903 for (i = 0; i < nbSeqs; ++i) {
3904 SeqDef seq = seqStore->sequencesStart[i];
3905 matchBytes += seq.mlBase + MINMATCH;
3906 if (i == seqStore->longLengthPos && seqStore->longLengthType == ZSTD_llt_matchLength) {
3907 matchBytes += 0x10000;
3908 } }
3909 return matchBytes;
3910 }
3911
3912 /* Derives the seqStore that is a chunk of the originalSeqStore from [startIdx, endIdx).
3913 * Stores the result in resultSeqStore.
3914 */
ZSTD_deriveSeqStoreChunk(SeqStore_t * resultSeqStore,const SeqStore_t * originalSeqStore,size_t startIdx,size_t endIdx)3915 static void ZSTD_deriveSeqStoreChunk(SeqStore_t* resultSeqStore,
3916 const SeqStore_t* originalSeqStore,
3917 size_t startIdx, size_t endIdx)
3918 {
3919 *resultSeqStore = *originalSeqStore;
3920 if (startIdx > 0) {
3921 resultSeqStore->sequences = originalSeqStore->sequencesStart + startIdx;
3922 resultSeqStore->litStart += ZSTD_countSeqStoreLiteralsBytes(resultSeqStore);
3923 }
3924
3925 /* Move longLengthPos into the correct position if necessary */
3926 if (originalSeqStore->longLengthType != ZSTD_llt_none) {
3927 if (originalSeqStore->longLengthPos < startIdx || originalSeqStore->longLengthPos > endIdx) {
3928 resultSeqStore->longLengthType = ZSTD_llt_none;
3929 } else {
3930 resultSeqStore->longLengthPos -= (U32)startIdx;
3931 }
3932 }
3933 resultSeqStore->sequencesStart = originalSeqStore->sequencesStart + startIdx;
3934 resultSeqStore->sequences = originalSeqStore->sequencesStart + endIdx;
3935 if (endIdx == (size_t)(originalSeqStore->sequences - originalSeqStore->sequencesStart)) {
3936 /* This accounts for possible last literals if the derived chunk reaches the end of the block */
3937 assert(resultSeqStore->lit == originalSeqStore->lit);
3938 } else {
3939 size_t const literalsBytes = ZSTD_countSeqStoreLiteralsBytes(resultSeqStore);
3940 resultSeqStore->lit = resultSeqStore->litStart + literalsBytes;
3941 }
3942 resultSeqStore->llCode += startIdx;
3943 resultSeqStore->mlCode += startIdx;
3944 resultSeqStore->ofCode += startIdx;
3945 }
3946
3947 /*
3948 * Returns the raw offset represented by the combination of offBase, ll0, and repcode history.
3949 * offBase must represent a repcode in the numeric representation of ZSTD_storeSeq().
3950 */
3951 static U32
ZSTD_resolveRepcodeToRawOffset(const U32 rep[ZSTD_REP_NUM],const U32 offBase,const U32 ll0)3952 ZSTD_resolveRepcodeToRawOffset(const U32 rep[ZSTD_REP_NUM], const U32 offBase, const U32 ll0)
3953 {
3954 U32 const adjustedRepCode = OFFBASE_TO_REPCODE(offBase) - 1 + ll0; /* [ 0 - 3 ] */
3955 assert(OFFBASE_IS_REPCODE(offBase));
3956 if (adjustedRepCode == ZSTD_REP_NUM) {
3957 assert(ll0);
3958 /* litlength == 0 and offCode == 2 implies selection of first repcode - 1
3959 * This is only valid if it results in a valid offset value, aka > 0.
3960 * Note : it may happen that `rep[0]==1` in exceptional circumstances.
3961 * In which case this function will return 0, which is an invalid offset.
3962 * It's not an issue though, since this value will be
3963 * compared and discarded within ZSTD_seqStore_resolveOffCodes().
3964 */
3965 return rep[0] - 1;
3966 }
3967 return rep[adjustedRepCode];
3968 }
3969
3970 /*
3971 * ZSTD_seqStore_resolveOffCodes() reconciles any possible divergences in offset history that may arise
3972 * due to emission of RLE/raw blocks that disturb the offset history,
3973 * and replaces any repcodes within the seqStore that may be invalid.
3974 *
3975 * dRepcodes are updated as would be on the decompression side.
3976 * cRepcodes are updated exactly in accordance with the seqStore.
3977 *
3978 * Note : this function assumes seq->offBase respects the following numbering scheme :
3979 * 0 : invalid
3980 * 1-3 : repcode 1-3
3981 * 4+ : real_offset+3
3982 */
3983 static void
ZSTD_seqStore_resolveOffCodes(Repcodes_t * const dRepcodes,Repcodes_t * const cRepcodes,const SeqStore_t * const seqStore,U32 const nbSeq)3984 ZSTD_seqStore_resolveOffCodes(Repcodes_t* const dRepcodes, Repcodes_t* const cRepcodes,
3985 const SeqStore_t* const seqStore, U32 const nbSeq)
3986 {
3987 U32 idx = 0;
3988 U32 const longLitLenIdx = seqStore->longLengthType == ZSTD_llt_literalLength ? seqStore->longLengthPos : nbSeq;
3989 for (; idx < nbSeq; ++idx) {
3990 SeqDef* const seq = seqStore->sequencesStart + idx;
3991 U32 const ll0 = (seq->litLength == 0) && (idx != longLitLenIdx);
3992 U32 const offBase = seq->offBase;
3993 assert(offBase > 0);
3994 if (OFFBASE_IS_REPCODE(offBase)) {
3995 U32 const dRawOffset = ZSTD_resolveRepcodeToRawOffset(dRepcodes->rep, offBase, ll0);
3996 U32 const cRawOffset = ZSTD_resolveRepcodeToRawOffset(cRepcodes->rep, offBase, ll0);
3997 /* Adjust simulated decompression repcode history if we come across a mismatch. Replace
3998 * the repcode with the offset it actually references, determined by the compression
3999 * repcode history.
4000 */
4001 if (dRawOffset != cRawOffset) {
4002 seq->offBase = OFFSET_TO_OFFBASE(cRawOffset);
4003 }
4004 }
4005 /* Compression repcode history is always updated with values directly from the unmodified seqStore.
4006 * Decompression repcode history may use modified seq->offset value taken from compression repcode history.
4007 */
4008 ZSTD_updateRep(dRepcodes->rep, seq->offBase, ll0);
4009 ZSTD_updateRep(cRepcodes->rep, offBase, ll0);
4010 }
4011 }
4012
4013 /* ZSTD_compressSeqStore_singleBlock():
4014 * Compresses a seqStore into a block with a block header, into the buffer dst.
4015 *
4016 * Returns the total size of that block (including header) or a ZSTD error code.
4017 */
4018 static size_t
ZSTD_compressSeqStore_singleBlock(ZSTD_CCtx * zc,const SeqStore_t * const seqStore,Repcodes_t * const dRep,Repcodes_t * const cRep,void * dst,size_t dstCapacity,const void * src,size_t srcSize,U32 lastBlock,U32 isPartition)4019 ZSTD_compressSeqStore_singleBlock(ZSTD_CCtx* zc,
4020 const SeqStore_t* const seqStore,
4021 Repcodes_t* const dRep, Repcodes_t* const cRep,
4022 void* dst, size_t dstCapacity,
4023 const void* src, size_t srcSize,
4024 U32 lastBlock, U32 isPartition)
4025 {
4026 const U32 rleMaxLength = 25;
4027 BYTE* op = (BYTE*)dst;
4028 const BYTE* ip = (const BYTE*)src;
4029 size_t cSize;
4030 size_t cSeqsSize;
4031
4032 /* In case of an RLE or raw block, the simulated decompression repcode history must be reset */
4033 Repcodes_t const dRepOriginal = *dRep;
4034 DEBUGLOG(5, "ZSTD_compressSeqStore_singleBlock");
4035 if (isPartition)
4036 ZSTD_seqStore_resolveOffCodes(dRep, cRep, seqStore, (U32)(seqStore->sequences - seqStore->sequencesStart));
4037
4038 RETURN_ERROR_IF(dstCapacity < ZSTD_blockHeaderSize, dstSize_tooSmall, "Block header doesn't fit");
4039 cSeqsSize = ZSTD_entropyCompressSeqStore(seqStore,
4040 &zc->blockState.prevCBlock->entropy, &zc->blockState.nextCBlock->entropy,
4041 &zc->appliedParams,
4042 op + ZSTD_blockHeaderSize, dstCapacity - ZSTD_blockHeaderSize,
4043 srcSize,
4044 zc->tmpWorkspace, zc->tmpWkspSize /* statically allocated in resetCCtx */,
4045 zc->bmi2);
4046 FORWARD_IF_ERROR(cSeqsSize, "ZSTD_entropyCompressSeqStore failed!");
4047
4048 if (!zc->isFirstBlock &&
4049 cSeqsSize < rleMaxLength &&
4050 ZSTD_isRLE((BYTE const*)src, srcSize)) {
4051 /* We don't want to emit our first block as a RLE even if it qualifies because
4052 * doing so will cause the decoder (cli only) to throw a "should consume all input error."
4053 * This is only an issue for zstd <= v1.4.3
4054 */
4055 cSeqsSize = 1;
4056 }
4057
4058 /* Sequence collection not supported when block splitting */
4059 if (zc->seqCollector.collectSequences) {
4060 FORWARD_IF_ERROR(ZSTD_copyBlockSequences(&zc->seqCollector, seqStore, dRepOriginal.rep), "copyBlockSequences failed");
4061 ZSTD_blockState_confirmRepcodesAndEntropyTables(&zc->blockState);
4062 return 0;
4063 }
4064
4065 if (cSeqsSize == 0) {
4066 cSize = ZSTD_noCompressBlock(op, dstCapacity, ip, srcSize, lastBlock);
4067 FORWARD_IF_ERROR(cSize, "Nocompress block failed");
4068 DEBUGLOG(5, "Writing out nocompress block, size: %zu", cSize);
4069 *dRep = dRepOriginal; /* reset simulated decompression repcode history */
4070 } else if (cSeqsSize == 1) {
4071 cSize = ZSTD_rleCompressBlock(op, dstCapacity, *ip, srcSize, lastBlock);
4072 FORWARD_IF_ERROR(cSize, "RLE compress block failed");
4073 DEBUGLOG(5, "Writing out RLE block, size: %zu", cSize);
4074 *dRep = dRepOriginal; /* reset simulated decompression repcode history */
4075 } else {
4076 ZSTD_blockState_confirmRepcodesAndEntropyTables(&zc->blockState);
4077 writeBlockHeader(op, cSeqsSize, srcSize, lastBlock);
4078 cSize = ZSTD_blockHeaderSize + cSeqsSize;
4079 DEBUGLOG(5, "Writing out compressed block, size: %zu", cSize);
4080 }
4081
4082 if (zc->blockState.prevCBlock->entropy.fse.offcode_repeatMode == FSE_repeat_valid)
4083 zc->blockState.prevCBlock->entropy.fse.offcode_repeatMode = FSE_repeat_check;
4084
4085 return cSize;
4086 }
4087
4088 /* Struct to keep track of where we are in our recursive calls. */
4089 typedef struct {
4090 U32* splitLocations; /* Array of split indices */
4091 size_t idx; /* The current index within splitLocations being worked on */
4092 } seqStoreSplits;
4093
4094 #define MIN_SEQUENCES_BLOCK_SPLITTING 300
4095
4096 /* Helper function to perform the recursive search for block splits.
4097 * Estimates the cost of seqStore prior to split, and estimates the cost of splitting the sequences in half.
4098 * If advantageous to split, then we recurse down the two sub-blocks.
4099 * If not, or if an error occurred in estimation, then we do not recurse.
4100 *
4101 * Note: The recursion depth is capped by a heuristic minimum number of sequences,
4102 * defined by MIN_SEQUENCES_BLOCK_SPLITTING.
4103 * In theory, this means the absolute largest recursion depth is 10 == log2(maxNbSeqInBlock/MIN_SEQUENCES_BLOCK_SPLITTING).
4104 * In practice, recursion depth usually doesn't go beyond 4.
4105 *
4106 * Furthermore, the number of splits is capped by ZSTD_MAX_NB_BLOCK_SPLITS.
4107 * At ZSTD_MAX_NB_BLOCK_SPLITS == 196 with the current existing blockSize
4108 * maximum of 128 KB, this value is actually impossible to reach.
4109 */
4110 static void
ZSTD_deriveBlockSplitsHelper(seqStoreSplits * splits,size_t startIdx,size_t endIdx,ZSTD_CCtx * zc,const SeqStore_t * origSeqStore)4111 ZSTD_deriveBlockSplitsHelper(seqStoreSplits* splits, size_t startIdx, size_t endIdx,
4112 ZSTD_CCtx* zc, const SeqStore_t* origSeqStore)
4113 {
4114 SeqStore_t* const fullSeqStoreChunk = &zc->blockSplitCtx.fullSeqStoreChunk;
4115 SeqStore_t* const firstHalfSeqStore = &zc->blockSplitCtx.firstHalfSeqStore;
4116 SeqStore_t* const secondHalfSeqStore = &zc->blockSplitCtx.secondHalfSeqStore;
4117 size_t estimatedOriginalSize;
4118 size_t estimatedFirstHalfSize;
4119 size_t estimatedSecondHalfSize;
4120 size_t midIdx = (startIdx + endIdx)/2;
4121
4122 DEBUGLOG(5, "ZSTD_deriveBlockSplitsHelper: startIdx=%zu endIdx=%zu", startIdx, endIdx);
4123 assert(endIdx >= startIdx);
4124 if (endIdx - startIdx < MIN_SEQUENCES_BLOCK_SPLITTING || splits->idx >= ZSTD_MAX_NB_BLOCK_SPLITS) {
4125 DEBUGLOG(6, "ZSTD_deriveBlockSplitsHelper: Too few sequences (%zu)", endIdx - startIdx);
4126 return;
4127 }
4128 ZSTD_deriveSeqStoreChunk(fullSeqStoreChunk, origSeqStore, startIdx, endIdx);
4129 ZSTD_deriveSeqStoreChunk(firstHalfSeqStore, origSeqStore, startIdx, midIdx);
4130 ZSTD_deriveSeqStoreChunk(secondHalfSeqStore, origSeqStore, midIdx, endIdx);
4131 estimatedOriginalSize = ZSTD_buildEntropyStatisticsAndEstimateSubBlockSize(fullSeqStoreChunk, zc);
4132 estimatedFirstHalfSize = ZSTD_buildEntropyStatisticsAndEstimateSubBlockSize(firstHalfSeqStore, zc);
4133 estimatedSecondHalfSize = ZSTD_buildEntropyStatisticsAndEstimateSubBlockSize(secondHalfSeqStore, zc);
4134 DEBUGLOG(5, "Estimated original block size: %zu -- First half split: %zu -- Second half split: %zu",
4135 estimatedOriginalSize, estimatedFirstHalfSize, estimatedSecondHalfSize);
4136 if (ZSTD_isError(estimatedOriginalSize) || ZSTD_isError(estimatedFirstHalfSize) || ZSTD_isError(estimatedSecondHalfSize)) {
4137 return;
4138 }
4139 if (estimatedFirstHalfSize + estimatedSecondHalfSize < estimatedOriginalSize) {
4140 DEBUGLOG(5, "split decided at seqNb:%zu", midIdx);
4141 ZSTD_deriveBlockSplitsHelper(splits, startIdx, midIdx, zc, origSeqStore);
4142 splits->splitLocations[splits->idx] = (U32)midIdx;
4143 splits->idx++;
4144 ZSTD_deriveBlockSplitsHelper(splits, midIdx, endIdx, zc, origSeqStore);
4145 }
4146 }
4147
4148 /* Base recursive function.
4149 * Populates a table with intra-block partition indices that can improve compression ratio.
4150 *
4151 * @return: number of splits made (which equals the size of the partition table - 1).
4152 */
ZSTD_deriveBlockSplits(ZSTD_CCtx * zc,U32 partitions[],U32 nbSeq)4153 static size_t ZSTD_deriveBlockSplits(ZSTD_CCtx* zc, U32 partitions[], U32 nbSeq)
4154 {
4155 seqStoreSplits splits;
4156 splits.splitLocations = partitions;
4157 splits.idx = 0;
4158 if (nbSeq <= 4) {
4159 DEBUGLOG(5, "ZSTD_deriveBlockSplits: Too few sequences to split (%u <= 4)", nbSeq);
4160 /* Refuse to try and split anything with less than 4 sequences */
4161 return 0;
4162 }
4163 ZSTD_deriveBlockSplitsHelper(&splits, 0, nbSeq, zc, &zc->seqStore);
4164 splits.splitLocations[splits.idx] = nbSeq;
4165 DEBUGLOG(5, "ZSTD_deriveBlockSplits: final nb partitions: %zu", splits.idx+1);
4166 return splits.idx;
4167 }
4168
4169 /* ZSTD_compressBlock_splitBlock():
4170 * Attempts to split a given block into multiple blocks to improve compression ratio.
4171 *
4172 * Returns combined size of all blocks (which includes headers), or a ZSTD error code.
4173 */
4174 static size_t
ZSTD_compressBlock_splitBlock_internal(ZSTD_CCtx * zc,void * dst,size_t dstCapacity,const void * src,size_t blockSize,U32 lastBlock,U32 nbSeq)4175 ZSTD_compressBlock_splitBlock_internal(ZSTD_CCtx* zc,
4176 void* dst, size_t dstCapacity,
4177 const void* src, size_t blockSize,
4178 U32 lastBlock, U32 nbSeq)
4179 {
4180 size_t cSize = 0;
4181 const BYTE* ip = (const BYTE*)src;
4182 BYTE* op = (BYTE*)dst;
4183 size_t i = 0;
4184 size_t srcBytesTotal = 0;
4185 U32* const partitions = zc->blockSplitCtx.partitions; /* size == ZSTD_MAX_NB_BLOCK_SPLITS */
4186 SeqStore_t* const nextSeqStore = &zc->blockSplitCtx.nextSeqStore;
4187 SeqStore_t* const currSeqStore = &zc->blockSplitCtx.currSeqStore;
4188 size_t const numSplits = ZSTD_deriveBlockSplits(zc, partitions, nbSeq);
4189
4190 /* If a block is split and some partitions are emitted as RLE/uncompressed, then repcode history
4191 * may become invalid. In order to reconcile potentially invalid repcodes, we keep track of two
4192 * separate repcode histories that simulate repcode history on compression and decompression side,
4193 * and use the histories to determine whether we must replace a particular repcode with its raw offset.
4194 *
4195 * 1) cRep gets updated for each partition, regardless of whether the block was emitted as uncompressed
4196 * or RLE. This allows us to retrieve the offset value that an invalid repcode references within
4197 * a nocompress/RLE block.
4198 * 2) dRep gets updated only for compressed partitions, and when a repcode gets replaced, will use
4199 * the replacement offset value rather than the original repcode to update the repcode history.
4200 * dRep also will be the final repcode history sent to the next block.
4201 *
4202 * See ZSTD_seqStore_resolveOffCodes() for more details.
4203 */
4204 Repcodes_t dRep;
4205 Repcodes_t cRep;
4206 ZSTD_memcpy(dRep.rep, zc->blockState.prevCBlock->rep, sizeof(Repcodes_t));
4207 ZSTD_memcpy(cRep.rep, zc->blockState.prevCBlock->rep, sizeof(Repcodes_t));
4208 ZSTD_memset(nextSeqStore, 0, sizeof(SeqStore_t));
4209
4210 DEBUGLOG(5, "ZSTD_compressBlock_splitBlock_internal (dstCapacity=%u, dictLimit=%u, nextToUpdate=%u)",
4211 (unsigned)dstCapacity, (unsigned)zc->blockState.matchState.window.dictLimit,
4212 (unsigned)zc->blockState.matchState.nextToUpdate);
4213
4214 if (numSplits == 0) {
4215 size_t cSizeSingleBlock =
4216 ZSTD_compressSeqStore_singleBlock(zc, &zc->seqStore,
4217 &dRep, &cRep,
4218 op, dstCapacity,
4219 ip, blockSize,
4220 lastBlock, 0 /* isPartition */);
4221 FORWARD_IF_ERROR(cSizeSingleBlock, "Compressing single block from splitBlock_internal() failed!");
4222 DEBUGLOG(5, "ZSTD_compressBlock_splitBlock_internal: No splits");
4223 assert(zc->blockSizeMax <= ZSTD_BLOCKSIZE_MAX);
4224 assert(cSizeSingleBlock <= zc->blockSizeMax + ZSTD_blockHeaderSize);
4225 return cSizeSingleBlock;
4226 }
4227
4228 ZSTD_deriveSeqStoreChunk(currSeqStore, &zc->seqStore, 0, partitions[0]);
4229 for (i = 0; i <= numSplits; ++i) {
4230 size_t cSizeChunk;
4231 U32 const lastPartition = (i == numSplits);
4232 U32 lastBlockEntireSrc = 0;
4233
4234 size_t srcBytes = ZSTD_countSeqStoreLiteralsBytes(currSeqStore) + ZSTD_countSeqStoreMatchBytes(currSeqStore);
4235 srcBytesTotal += srcBytes;
4236 if (lastPartition) {
4237 /* This is the final partition, need to account for possible last literals */
4238 srcBytes += blockSize - srcBytesTotal;
4239 lastBlockEntireSrc = lastBlock;
4240 } else {
4241 ZSTD_deriveSeqStoreChunk(nextSeqStore, &zc->seqStore, partitions[i], partitions[i+1]);
4242 }
4243
4244 cSizeChunk = ZSTD_compressSeqStore_singleBlock(zc, currSeqStore,
4245 &dRep, &cRep,
4246 op, dstCapacity,
4247 ip, srcBytes,
4248 lastBlockEntireSrc, 1 /* isPartition */);
4249 DEBUGLOG(5, "Estimated size: %zu vs %zu : actual size",
4250 ZSTD_buildEntropyStatisticsAndEstimateSubBlockSize(currSeqStore, zc), cSizeChunk);
4251 FORWARD_IF_ERROR(cSizeChunk, "Compressing chunk failed!");
4252
4253 ip += srcBytes;
4254 op += cSizeChunk;
4255 dstCapacity -= cSizeChunk;
4256 cSize += cSizeChunk;
4257 *currSeqStore = *nextSeqStore;
4258 assert(cSizeChunk <= zc->blockSizeMax + ZSTD_blockHeaderSize);
4259 }
4260 /* cRep and dRep may have diverged during the compression.
4261 * If so, we use the dRep repcodes for the next block.
4262 */
4263 ZSTD_memcpy(zc->blockState.prevCBlock->rep, dRep.rep, sizeof(Repcodes_t));
4264 return cSize;
4265 }
4266
4267 static size_t
ZSTD_compressBlock_splitBlock(ZSTD_CCtx * zc,void * dst,size_t dstCapacity,const void * src,size_t srcSize,U32 lastBlock)4268 ZSTD_compressBlock_splitBlock(ZSTD_CCtx* zc,
4269 void* dst, size_t dstCapacity,
4270 const void* src, size_t srcSize, U32 lastBlock)
4271 {
4272 U32 nbSeq;
4273 size_t cSize;
4274 DEBUGLOG(5, "ZSTD_compressBlock_splitBlock");
4275 assert(zc->appliedParams.postBlockSplitter == ZSTD_ps_enable);
4276
4277 { const size_t bss = ZSTD_buildSeqStore(zc, src, srcSize);
4278 FORWARD_IF_ERROR(bss, "ZSTD_buildSeqStore failed");
4279 if (bss == ZSTDbss_noCompress) {
4280 if (zc->blockState.prevCBlock->entropy.fse.offcode_repeatMode == FSE_repeat_valid)
4281 zc->blockState.prevCBlock->entropy.fse.offcode_repeatMode = FSE_repeat_check;
4282 RETURN_ERROR_IF(zc->seqCollector.collectSequences, sequenceProducer_failed, "Uncompressible block");
4283 cSize = ZSTD_noCompressBlock(dst, dstCapacity, src, srcSize, lastBlock);
4284 FORWARD_IF_ERROR(cSize, "ZSTD_noCompressBlock failed");
4285 DEBUGLOG(5, "ZSTD_compressBlock_splitBlock: Nocompress block");
4286 return cSize;
4287 }
4288 nbSeq = (U32)(zc->seqStore.sequences - zc->seqStore.sequencesStart);
4289 }
4290
4291 cSize = ZSTD_compressBlock_splitBlock_internal(zc, dst, dstCapacity, src, srcSize, lastBlock, nbSeq);
4292 FORWARD_IF_ERROR(cSize, "Splitting blocks failed!");
4293 return cSize;
4294 }
4295
4296 static size_t
ZSTD_compressBlock_internal(ZSTD_CCtx * zc,void * dst,size_t dstCapacity,const void * src,size_t srcSize,U32 frame)4297 ZSTD_compressBlock_internal(ZSTD_CCtx* zc,
4298 void* dst, size_t dstCapacity,
4299 const void* src, size_t srcSize, U32 frame)
4300 {
4301 /* This is an estimated upper bound for the length of an rle block.
4302 * This isn't the actual upper bound.
4303 * Finding the real threshold needs further investigation.
4304 */
4305 const U32 rleMaxLength = 25;
4306 size_t cSize;
4307 const BYTE* ip = (const BYTE*)src;
4308 BYTE* op = (BYTE*)dst;
4309 DEBUGLOG(5, "ZSTD_compressBlock_internal (dstCapacity=%u, dictLimit=%u, nextToUpdate=%u)",
4310 (unsigned)dstCapacity, (unsigned)zc->blockState.matchState.window.dictLimit,
4311 (unsigned)zc->blockState.matchState.nextToUpdate);
4312
4313 { const size_t bss = ZSTD_buildSeqStore(zc, src, srcSize);
4314 FORWARD_IF_ERROR(bss, "ZSTD_buildSeqStore failed");
4315 if (bss == ZSTDbss_noCompress) {
4316 RETURN_ERROR_IF(zc->seqCollector.collectSequences, sequenceProducer_failed, "Uncompressible block");
4317 cSize = 0;
4318 goto out;
4319 }
4320 }
4321
4322 if (zc->seqCollector.collectSequences) {
4323 FORWARD_IF_ERROR(ZSTD_copyBlockSequences(&zc->seqCollector, ZSTD_getSeqStore(zc), zc->blockState.prevCBlock->rep), "copyBlockSequences failed");
4324 ZSTD_blockState_confirmRepcodesAndEntropyTables(&zc->blockState);
4325 return 0;
4326 }
4327
4328 /* encode sequences and literals */
4329 cSize = ZSTD_entropyCompressSeqStore(&zc->seqStore,
4330 &zc->blockState.prevCBlock->entropy, &zc->blockState.nextCBlock->entropy,
4331 &zc->appliedParams,
4332 dst, dstCapacity,
4333 srcSize,
4334 zc->tmpWorkspace, zc->tmpWkspSize /* statically allocated in resetCCtx */,
4335 zc->bmi2);
4336
4337 if (frame &&
4338 /* We don't want to emit our first block as a RLE even if it qualifies because
4339 * doing so will cause the decoder (cli only) to throw a "should consume all input error."
4340 * This is only an issue for zstd <= v1.4.3
4341 */
4342 !zc->isFirstBlock &&
4343 cSize < rleMaxLength &&
4344 ZSTD_isRLE(ip, srcSize))
4345 {
4346 cSize = 1;
4347 op[0] = ip[0];
4348 }
4349
4350 out:
4351 if (!ZSTD_isError(cSize) && cSize > 1) {
4352 ZSTD_blockState_confirmRepcodesAndEntropyTables(&zc->blockState);
4353 }
4354 /* We check that dictionaries have offset codes available for the first
4355 * block. After the first block, the offcode table might not have large
4356 * enough codes to represent the offsets in the data.
4357 */
4358 if (zc->blockState.prevCBlock->entropy.fse.offcode_repeatMode == FSE_repeat_valid)
4359 zc->blockState.prevCBlock->entropy.fse.offcode_repeatMode = FSE_repeat_check;
4360
4361 return cSize;
4362 }
4363
ZSTD_compressBlock_targetCBlockSize_body(ZSTD_CCtx * zc,void * dst,size_t dstCapacity,const void * src,size_t srcSize,const size_t bss,U32 lastBlock)4364 static size_t ZSTD_compressBlock_targetCBlockSize_body(ZSTD_CCtx* zc,
4365 void* dst, size_t dstCapacity,
4366 const void* src, size_t srcSize,
4367 const size_t bss, U32 lastBlock)
4368 {
4369 DEBUGLOG(6, "Attempting ZSTD_compressSuperBlock()");
4370 if (bss == ZSTDbss_compress) {
4371 if (/* We don't want to emit our first block as a RLE even if it qualifies because
4372 * doing so will cause the decoder (cli only) to throw a "should consume all input error."
4373 * This is only an issue for zstd <= v1.4.3
4374 */
4375 !zc->isFirstBlock &&
4376 ZSTD_maybeRLE(&zc->seqStore) &&
4377 ZSTD_isRLE((BYTE const*)src, srcSize))
4378 {
4379 return ZSTD_rleCompressBlock(dst, dstCapacity, *(BYTE const*)src, srcSize, lastBlock);
4380 }
4381 /* Attempt superblock compression.
4382 *
4383 * Note that compressed size of ZSTD_compressSuperBlock() is not bound by the
4384 * standard ZSTD_compressBound(). This is a problem, because even if we have
4385 * space now, taking an extra byte now could cause us to run out of space later
4386 * and violate ZSTD_compressBound().
4387 *
4388 * Define blockBound(blockSize) = blockSize + ZSTD_blockHeaderSize.
4389 *
4390 * In order to respect ZSTD_compressBound() we must attempt to emit a raw
4391 * uncompressed block in these cases:
4392 * * cSize == 0: Return code for an uncompressed block.
4393 * * cSize == dstSize_tooSmall: We may have expanded beyond blockBound(srcSize).
4394 * ZSTD_noCompressBlock() will return dstSize_tooSmall if we are really out of
4395 * output space.
4396 * * cSize >= blockBound(srcSize): We have expanded the block too much so
4397 * emit an uncompressed block.
4398 */
4399 { size_t const cSize =
4400 ZSTD_compressSuperBlock(zc, dst, dstCapacity, src, srcSize, lastBlock);
4401 if (cSize != ERROR(dstSize_tooSmall)) {
4402 size_t const maxCSize =
4403 srcSize - ZSTD_minGain(srcSize, zc->appliedParams.cParams.strategy);
4404 FORWARD_IF_ERROR(cSize, "ZSTD_compressSuperBlock failed");
4405 if (cSize != 0 && cSize < maxCSize + ZSTD_blockHeaderSize) {
4406 ZSTD_blockState_confirmRepcodesAndEntropyTables(&zc->blockState);
4407 return cSize;
4408 }
4409 }
4410 }
4411 } /* if (bss == ZSTDbss_compress)*/
4412
4413 DEBUGLOG(6, "Resorting to ZSTD_noCompressBlock()");
4414 /* Superblock compression failed, attempt to emit a single no compress block.
4415 * The decoder will be able to stream this block since it is uncompressed.
4416 */
4417 return ZSTD_noCompressBlock(dst, dstCapacity, src, srcSize, lastBlock);
4418 }
4419
ZSTD_compressBlock_targetCBlockSize(ZSTD_CCtx * zc,void * dst,size_t dstCapacity,const void * src,size_t srcSize,U32 lastBlock)4420 static size_t ZSTD_compressBlock_targetCBlockSize(ZSTD_CCtx* zc,
4421 void* dst, size_t dstCapacity,
4422 const void* src, size_t srcSize,
4423 U32 lastBlock)
4424 {
4425 size_t cSize = 0;
4426 const size_t bss = ZSTD_buildSeqStore(zc, src, srcSize);
4427 DEBUGLOG(5, "ZSTD_compressBlock_targetCBlockSize (dstCapacity=%u, dictLimit=%u, nextToUpdate=%u, srcSize=%zu)",
4428 (unsigned)dstCapacity, (unsigned)zc->blockState.matchState.window.dictLimit, (unsigned)zc->blockState.matchState.nextToUpdate, srcSize);
4429 FORWARD_IF_ERROR(bss, "ZSTD_buildSeqStore failed");
4430
4431 cSize = ZSTD_compressBlock_targetCBlockSize_body(zc, dst, dstCapacity, src, srcSize, bss, lastBlock);
4432 FORWARD_IF_ERROR(cSize, "ZSTD_compressBlock_targetCBlockSize_body failed");
4433
4434 if (zc->blockState.prevCBlock->entropy.fse.offcode_repeatMode == FSE_repeat_valid)
4435 zc->blockState.prevCBlock->entropy.fse.offcode_repeatMode = FSE_repeat_check;
4436
4437 return cSize;
4438 }
4439
ZSTD_overflowCorrectIfNeeded(ZSTD_MatchState_t * ms,ZSTD_cwksp * ws,ZSTD_CCtx_params const * params,void const * ip,void const * iend)4440 static void ZSTD_overflowCorrectIfNeeded(ZSTD_MatchState_t* ms,
4441 ZSTD_cwksp* ws,
4442 ZSTD_CCtx_params const* params,
4443 void const* ip,
4444 void const* iend)
4445 {
4446 U32 const cycleLog = ZSTD_cycleLog(params->cParams.chainLog, params->cParams.strategy);
4447 U32 const maxDist = (U32)1 << params->cParams.windowLog;
4448 if (ZSTD_window_needOverflowCorrection(ms->window, cycleLog, maxDist, ms->loadedDictEnd, ip, iend)) {
4449 U32 const correction = ZSTD_window_correctOverflow(&ms->window, cycleLog, maxDist, ip);
4450 ZSTD_STATIC_ASSERT(ZSTD_CHAINLOG_MAX <= 30);
4451 ZSTD_STATIC_ASSERT(ZSTD_WINDOWLOG_MAX_32 <= 30);
4452 ZSTD_STATIC_ASSERT(ZSTD_WINDOWLOG_MAX <= 31);
4453 ZSTD_cwksp_mark_tables_dirty(ws);
4454 ZSTD_reduceIndex(ms, params, correction);
4455 ZSTD_cwksp_mark_tables_clean(ws);
4456 if (ms->nextToUpdate < correction) ms->nextToUpdate = 0;
4457 else ms->nextToUpdate -= correction;
4458 /* invalidate dictionaries on overflow correction */
4459 ms->loadedDictEnd = 0;
4460 ms->dictMatchState = NULL;
4461 }
4462 }
4463
4464 #include "zstd_preSplit.h"
4465
ZSTD_optimalBlockSize(ZSTD_CCtx * cctx,const void * src,size_t srcSize,size_t blockSizeMax,int splitLevel,ZSTD_strategy strat,S64 savings)4466 static size_t ZSTD_optimalBlockSize(ZSTD_CCtx* cctx, const void* src, size_t srcSize, size_t blockSizeMax, int splitLevel, ZSTD_strategy strat, S64 savings)
4467 {
4468 /* split level based on compression strategy, from `fast` to `btultra2` */
4469 static const int splitLevels[] = { 0, 0, 1, 2, 2, 3, 3, 4, 4, 4 };
4470 /* note: conservatively only split full blocks (128 KB) currently.
4471 * While it's possible to go lower, let's keep it simple for a first implementation.
4472 * Besides, benefits of splitting are reduced when blocks are already small.
4473 */
4474 if (srcSize < 128 KB || blockSizeMax < 128 KB)
4475 return MIN(srcSize, blockSizeMax);
4476 /* do not split incompressible data though:
4477 * require verified savings to allow pre-splitting.
4478 * Note: as a consequence, the first full block is not split.
4479 */
4480 if (savings < 3) {
4481 DEBUGLOG(6, "don't attempt splitting: savings (%i) too low", (int)savings);
4482 return 128 KB;
4483 }
4484 /* apply @splitLevel, or use default value (which depends on @strat).
4485 * note that splitting heuristic is still conditioned by @savings >= 3,
4486 * so the first block will not reach this code path */
4487 if (splitLevel == 1) return 128 KB;
4488 if (splitLevel == 0) {
4489 assert(ZSTD_fast <= strat && strat <= ZSTD_btultra2);
4490 splitLevel = splitLevels[strat];
4491 } else {
4492 assert(2 <= splitLevel && splitLevel <= 6);
4493 splitLevel -= 2;
4494 }
4495 return ZSTD_splitBlock(src, blockSizeMax, splitLevel, cctx->tmpWorkspace, cctx->tmpWkspSize);
4496 }
4497
4498 /*! ZSTD_compress_frameChunk() :
4499 * Compress a chunk of data into one or multiple blocks.
4500 * All blocks will be terminated, all input will be consumed.
4501 * Function will issue an error if there is not enough `dstCapacity` to hold the compressed content.
4502 * Frame is supposed already started (header already produced)
4503 * @return : compressed size, or an error code
4504 */
ZSTD_compress_frameChunk(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const void * src,size_t srcSize,U32 lastFrameChunk)4505 static size_t ZSTD_compress_frameChunk(ZSTD_CCtx* cctx,
4506 void* dst, size_t dstCapacity,
4507 const void* src, size_t srcSize,
4508 U32 lastFrameChunk)
4509 {
4510 size_t blockSizeMax = cctx->blockSizeMax;
4511 size_t remaining = srcSize;
4512 const BYTE* ip = (const BYTE*)src;
4513 BYTE* const ostart = (BYTE*)dst;
4514 BYTE* op = ostart;
4515 U32 const maxDist = (U32)1 << cctx->appliedParams.cParams.windowLog;
4516 S64 savings = (S64)cctx->consumedSrcSize - (S64)cctx->producedCSize;
4517
4518 assert(cctx->appliedParams.cParams.windowLog <= ZSTD_WINDOWLOG_MAX);
4519
4520 DEBUGLOG(5, "ZSTD_compress_frameChunk (srcSize=%u, blockSizeMax=%u)", (unsigned)srcSize, (unsigned)blockSizeMax);
4521 if (cctx->appliedParams.fParams.checksumFlag && srcSize)
4522 xxh64_update(&cctx->xxhState, src, srcSize);
4523
4524 while (remaining) {
4525 ZSTD_MatchState_t* const ms = &cctx->blockState.matchState;
4526 size_t const blockSize = ZSTD_optimalBlockSize(cctx,
4527 ip, remaining,
4528 blockSizeMax,
4529 cctx->appliedParams.preBlockSplitter_level,
4530 cctx->appliedParams.cParams.strategy,
4531 savings);
4532 U32 const lastBlock = lastFrameChunk & (blockSize == remaining);
4533 assert(blockSize <= remaining);
4534
4535 /* TODO: See 3090. We reduced MIN_CBLOCK_SIZE from 3 to 2 so to compensate we are adding
4536 * additional 1. We need to revisit and change this logic to be more consistent */
4537 RETURN_ERROR_IF(dstCapacity < ZSTD_blockHeaderSize + MIN_CBLOCK_SIZE + 1,
4538 dstSize_tooSmall,
4539 "not enough space to store compressed block");
4540
4541 ZSTD_overflowCorrectIfNeeded(
4542 ms, &cctx->workspace, &cctx->appliedParams, ip, ip + blockSize);
4543 ZSTD_checkDictValidity(&ms->window, ip + blockSize, maxDist, &ms->loadedDictEnd, &ms->dictMatchState);
4544 ZSTD_window_enforceMaxDist(&ms->window, ip, maxDist, &ms->loadedDictEnd, &ms->dictMatchState);
4545
4546 /* Ensure hash/chain table insertion resumes no sooner than lowlimit */
4547 if (ms->nextToUpdate < ms->window.lowLimit) ms->nextToUpdate = ms->window.lowLimit;
4548
4549 { size_t cSize;
4550 if (ZSTD_useTargetCBlockSize(&cctx->appliedParams)) {
4551 cSize = ZSTD_compressBlock_targetCBlockSize(cctx, op, dstCapacity, ip, blockSize, lastBlock);
4552 FORWARD_IF_ERROR(cSize, "ZSTD_compressBlock_targetCBlockSize failed");
4553 assert(cSize > 0);
4554 assert(cSize <= blockSize + ZSTD_blockHeaderSize);
4555 } else if (ZSTD_blockSplitterEnabled(&cctx->appliedParams)) {
4556 cSize = ZSTD_compressBlock_splitBlock(cctx, op, dstCapacity, ip, blockSize, lastBlock);
4557 FORWARD_IF_ERROR(cSize, "ZSTD_compressBlock_splitBlock failed");
4558 assert(cSize > 0 || cctx->seqCollector.collectSequences == 1);
4559 } else {
4560 cSize = ZSTD_compressBlock_internal(cctx,
4561 op+ZSTD_blockHeaderSize, dstCapacity-ZSTD_blockHeaderSize,
4562 ip, blockSize, 1 /* frame */);
4563 FORWARD_IF_ERROR(cSize, "ZSTD_compressBlock_internal failed");
4564
4565 if (cSize == 0) { /* block is not compressible */
4566 cSize = ZSTD_noCompressBlock(op, dstCapacity, ip, blockSize, lastBlock);
4567 FORWARD_IF_ERROR(cSize, "ZSTD_noCompressBlock failed");
4568 } else {
4569 U32 const cBlockHeader = cSize == 1 ?
4570 lastBlock + (((U32)bt_rle)<<1) + (U32)(blockSize << 3) :
4571 lastBlock + (((U32)bt_compressed)<<1) + (U32)(cSize << 3);
4572 MEM_writeLE24(op, cBlockHeader);
4573 cSize += ZSTD_blockHeaderSize;
4574 }
4575 } /* if (ZSTD_useTargetCBlockSize(&cctx->appliedParams))*/
4576
4577 /* @savings is employed to ensure that splitting doesn't worsen expansion of incompressible data.
4578 * Without splitting, the maximum expansion is 3 bytes per full block.
4579 * An adversarial input could attempt to fudge the split detector,
4580 * and make it split incompressible data, resulting in more block headers.
4581 * Note that, since ZSTD_COMPRESSBOUND() assumes a worst case scenario of 1KB per block,
4582 * and the splitter never creates blocks that small (current lower limit is 8 KB),
4583 * there is already no risk to expand beyond ZSTD_COMPRESSBOUND() limit.
4584 * But if the goal is to not expand by more than 3-bytes per 128 KB full block,
4585 * then yes, it becomes possible to make the block splitter oversplit incompressible data.
4586 * Using @savings, we enforce an even more conservative condition,
4587 * requiring the presence of enough savings (at least 3 bytes) to authorize splitting,
4588 * otherwise only full blocks are used.
4589 * But being conservative is fine,
4590 * since splitting barely compressible blocks is not fruitful anyway */
4591 savings += (S64)blockSize - (S64)cSize;
4592
4593 ip += blockSize;
4594 assert(remaining >= blockSize);
4595 remaining -= blockSize;
4596 op += cSize;
4597 assert(dstCapacity >= cSize);
4598 dstCapacity -= cSize;
4599 cctx->isFirstBlock = 0;
4600 DEBUGLOG(5, "ZSTD_compress_frameChunk: adding a block of size %u",
4601 (unsigned)cSize);
4602 } }
4603
4604 if (lastFrameChunk && (op>ostart)) cctx->stage = ZSTDcs_ending;
4605 return (size_t)(op-ostart);
4606 }
4607
4608
ZSTD_writeFrameHeader(void * dst,size_t dstCapacity,const ZSTD_CCtx_params * params,U64 pledgedSrcSize,U32 dictID)4609 static size_t ZSTD_writeFrameHeader(void* dst, size_t dstCapacity,
4610 const ZSTD_CCtx_params* params,
4611 U64 pledgedSrcSize, U32 dictID)
4612 {
4613 BYTE* const op = (BYTE*)dst;
4614 U32 const dictIDSizeCodeLength = (dictID>0) + (dictID>=256) + (dictID>=65536); /* 0-3 */
4615 U32 const dictIDSizeCode = params->fParams.noDictIDFlag ? 0 : dictIDSizeCodeLength; /* 0-3 */
4616 U32 const checksumFlag = params->fParams.checksumFlag>0;
4617 U32 const windowSize = (U32)1 << params->cParams.windowLog;
4618 U32 const singleSegment = params->fParams.contentSizeFlag && (windowSize >= pledgedSrcSize);
4619 BYTE const windowLogByte = (BYTE)((params->cParams.windowLog - ZSTD_WINDOWLOG_ABSOLUTEMIN) << 3);
4620 U32 const fcsCode = params->fParams.contentSizeFlag ?
4621 (pledgedSrcSize>=256) + (pledgedSrcSize>=65536+256) + (pledgedSrcSize>=0xFFFFFFFFU) : 0; /* 0-3 */
4622 BYTE const frameHeaderDescriptionByte = (BYTE)(dictIDSizeCode + (checksumFlag<<2) + (singleSegment<<5) + (fcsCode<<6) );
4623 size_t pos=0;
4624
4625 assert(!(params->fParams.contentSizeFlag && pledgedSrcSize == ZSTD_CONTENTSIZE_UNKNOWN));
4626 RETURN_ERROR_IF(dstCapacity < ZSTD_FRAMEHEADERSIZE_MAX, dstSize_tooSmall,
4627 "dst buf is too small to fit worst-case frame header size.");
4628 DEBUGLOG(4, "ZSTD_writeFrameHeader : dictIDFlag : %u ; dictID : %u ; dictIDSizeCode : %u",
4629 !params->fParams.noDictIDFlag, (unsigned)dictID, (unsigned)dictIDSizeCode);
4630 if (params->format == ZSTD_f_zstd1) {
4631 MEM_writeLE32(dst, ZSTD_MAGICNUMBER);
4632 pos = 4;
4633 }
4634 op[pos++] = frameHeaderDescriptionByte;
4635 if (!singleSegment) op[pos++] = windowLogByte;
4636 switch(dictIDSizeCode)
4637 {
4638 default:
4639 assert(0); /* impossible */
4640 ZSTD_FALLTHROUGH;
4641 case 0 : break;
4642 case 1 : op[pos] = (BYTE)(dictID); pos++; break;
4643 case 2 : MEM_writeLE16(op+pos, (U16)dictID); pos+=2; break;
4644 case 3 : MEM_writeLE32(op+pos, dictID); pos+=4; break;
4645 }
4646 switch(fcsCode)
4647 {
4648 default:
4649 assert(0); /* impossible */
4650 ZSTD_FALLTHROUGH;
4651 case 0 : if (singleSegment) op[pos++] = (BYTE)(pledgedSrcSize); break;
4652 case 1 : MEM_writeLE16(op+pos, (U16)(pledgedSrcSize-256)); pos+=2; break;
4653 case 2 : MEM_writeLE32(op+pos, (U32)(pledgedSrcSize)); pos+=4; break;
4654 case 3 : MEM_writeLE64(op+pos, (U64)(pledgedSrcSize)); pos+=8; break;
4655 }
4656 return pos;
4657 }
4658
4659 /* ZSTD_writeSkippableFrame_advanced() :
4660 * Writes out a skippable frame with the specified magic number variant (16 are supported),
4661 * from ZSTD_MAGIC_SKIPPABLE_START to ZSTD_MAGIC_SKIPPABLE_START+15, and the desired source data.
4662 *
4663 * Returns the total number of bytes written, or a ZSTD error code.
4664 */
ZSTD_writeSkippableFrame(void * dst,size_t dstCapacity,const void * src,size_t srcSize,unsigned magicVariant)4665 size_t ZSTD_writeSkippableFrame(void* dst, size_t dstCapacity,
4666 const void* src, size_t srcSize, unsigned magicVariant) {
4667 BYTE* op = (BYTE*)dst;
4668 RETURN_ERROR_IF(dstCapacity < srcSize + ZSTD_SKIPPABLEHEADERSIZE /* Skippable frame overhead */,
4669 dstSize_tooSmall, "Not enough room for skippable frame");
4670 RETURN_ERROR_IF(srcSize > (unsigned)0xFFFFFFFF, srcSize_wrong, "Src size too large for skippable frame");
4671 RETURN_ERROR_IF(magicVariant > 15, parameter_outOfBound, "Skippable frame magic number variant not supported");
4672
4673 MEM_writeLE32(op, (U32)(ZSTD_MAGIC_SKIPPABLE_START + magicVariant));
4674 MEM_writeLE32(op+4, (U32)srcSize);
4675 ZSTD_memcpy(op+8, src, srcSize);
4676 return srcSize + ZSTD_SKIPPABLEHEADERSIZE;
4677 }
4678
4679 /* ZSTD_writeLastEmptyBlock() :
4680 * output an empty Block with end-of-frame mark to complete a frame
4681 * @return : size of data written into `dst` (== ZSTD_blockHeaderSize (defined in zstd_internal.h))
4682 * or an error code if `dstCapacity` is too small (<ZSTD_blockHeaderSize)
4683 */
ZSTD_writeLastEmptyBlock(void * dst,size_t dstCapacity)4684 size_t ZSTD_writeLastEmptyBlock(void* dst, size_t dstCapacity)
4685 {
4686 RETURN_ERROR_IF(dstCapacity < ZSTD_blockHeaderSize, dstSize_tooSmall,
4687 "dst buf is too small to write frame trailer empty block.");
4688 { U32 const cBlockHeader24 = 1 /*lastBlock*/ + (((U32)bt_raw)<<1); /* 0 size */
4689 MEM_writeLE24(dst, cBlockHeader24);
4690 return ZSTD_blockHeaderSize;
4691 }
4692 }
4693
ZSTD_referenceExternalSequences(ZSTD_CCtx * cctx,rawSeq * seq,size_t nbSeq)4694 void ZSTD_referenceExternalSequences(ZSTD_CCtx* cctx, rawSeq* seq, size_t nbSeq)
4695 {
4696 assert(cctx->stage == ZSTDcs_init);
4697 assert(nbSeq == 0 || cctx->appliedParams.ldmParams.enableLdm != ZSTD_ps_enable);
4698 cctx->externSeqStore.seq = seq;
4699 cctx->externSeqStore.size = nbSeq;
4700 cctx->externSeqStore.capacity = nbSeq;
4701 cctx->externSeqStore.pos = 0;
4702 cctx->externSeqStore.posInSequence = 0;
4703 }
4704
4705
ZSTD_compressContinue_internal(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const void * src,size_t srcSize,U32 frame,U32 lastFrameChunk)4706 static size_t ZSTD_compressContinue_internal (ZSTD_CCtx* cctx,
4707 void* dst, size_t dstCapacity,
4708 const void* src, size_t srcSize,
4709 U32 frame, U32 lastFrameChunk)
4710 {
4711 ZSTD_MatchState_t* const ms = &cctx->blockState.matchState;
4712 size_t fhSize = 0;
4713
4714 DEBUGLOG(5, "ZSTD_compressContinue_internal, stage: %u, srcSize: %u",
4715 cctx->stage, (unsigned)srcSize);
4716 RETURN_ERROR_IF(cctx->stage==ZSTDcs_created, stage_wrong,
4717 "missing init (ZSTD_compressBegin)");
4718
4719 if (frame && (cctx->stage==ZSTDcs_init)) {
4720 fhSize = ZSTD_writeFrameHeader(dst, dstCapacity, &cctx->appliedParams,
4721 cctx->pledgedSrcSizePlusOne-1, cctx->dictID);
4722 FORWARD_IF_ERROR(fhSize, "ZSTD_writeFrameHeader failed");
4723 assert(fhSize <= dstCapacity);
4724 dstCapacity -= fhSize;
4725 dst = (char*)dst + fhSize;
4726 cctx->stage = ZSTDcs_ongoing;
4727 }
4728
4729 if (!srcSize) return fhSize; /* do not generate an empty block if no input */
4730
4731 if (!ZSTD_window_update(&ms->window, src, srcSize, ms->forceNonContiguous)) {
4732 ms->forceNonContiguous = 0;
4733 ms->nextToUpdate = ms->window.dictLimit;
4734 }
4735 if (cctx->appliedParams.ldmParams.enableLdm == ZSTD_ps_enable) {
4736 ZSTD_window_update(&cctx->ldmState.window, src, srcSize, /* forceNonContiguous */ 0);
4737 }
4738
4739 if (!frame) {
4740 /* overflow check and correction for block mode */
4741 ZSTD_overflowCorrectIfNeeded(
4742 ms, &cctx->workspace, &cctx->appliedParams,
4743 src, (BYTE const*)src + srcSize);
4744 }
4745
4746 DEBUGLOG(5, "ZSTD_compressContinue_internal (blockSize=%u)", (unsigned)cctx->blockSizeMax);
4747 { size_t const cSize = frame ?
4748 ZSTD_compress_frameChunk (cctx, dst, dstCapacity, src, srcSize, lastFrameChunk) :
4749 ZSTD_compressBlock_internal (cctx, dst, dstCapacity, src, srcSize, 0 /* frame */);
4750 FORWARD_IF_ERROR(cSize, "%s", frame ? "ZSTD_compress_frameChunk failed" : "ZSTD_compressBlock_internal failed");
4751 cctx->consumedSrcSize += srcSize;
4752 cctx->producedCSize += (cSize + fhSize);
4753 assert(!(cctx->appliedParams.fParams.contentSizeFlag && cctx->pledgedSrcSizePlusOne == 0));
4754 if (cctx->pledgedSrcSizePlusOne != 0) { /* control src size */
4755 ZSTD_STATIC_ASSERT(ZSTD_CONTENTSIZE_UNKNOWN == (unsigned long long)-1);
4756 RETURN_ERROR_IF(
4757 cctx->consumedSrcSize+1 > cctx->pledgedSrcSizePlusOne,
4758 srcSize_wrong,
4759 "error : pledgedSrcSize = %u, while realSrcSize >= %u",
4760 (unsigned)cctx->pledgedSrcSizePlusOne-1,
4761 (unsigned)cctx->consumedSrcSize);
4762 }
4763 return cSize + fhSize;
4764 }
4765 }
4766
ZSTD_compressContinue_public(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const void * src,size_t srcSize)4767 size_t ZSTD_compressContinue_public(ZSTD_CCtx* cctx,
4768 void* dst, size_t dstCapacity,
4769 const void* src, size_t srcSize)
4770 {
4771 DEBUGLOG(5, "ZSTD_compressContinue (srcSize=%u)", (unsigned)srcSize);
4772 return ZSTD_compressContinue_internal(cctx, dst, dstCapacity, src, srcSize, 1 /* frame mode */, 0 /* last chunk */);
4773 }
4774
4775 /* NOTE: Must just wrap ZSTD_compressContinue_public() */
ZSTD_compressContinue(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const void * src,size_t srcSize)4776 size_t ZSTD_compressContinue(ZSTD_CCtx* cctx,
4777 void* dst, size_t dstCapacity,
4778 const void* src, size_t srcSize)
4779 {
4780 return ZSTD_compressContinue_public(cctx, dst, dstCapacity, src, srcSize);
4781 }
4782
ZSTD_getBlockSize_deprecated(const ZSTD_CCtx * cctx)4783 static size_t ZSTD_getBlockSize_deprecated(const ZSTD_CCtx* cctx)
4784 {
4785 ZSTD_compressionParameters const cParams = cctx->appliedParams.cParams;
4786 assert(!ZSTD_checkCParams(cParams));
4787 return MIN(cctx->appliedParams.maxBlockSize, (size_t)1 << cParams.windowLog);
4788 }
4789
4790 /* NOTE: Must just wrap ZSTD_getBlockSize_deprecated() */
ZSTD_getBlockSize(const ZSTD_CCtx * cctx)4791 size_t ZSTD_getBlockSize(const ZSTD_CCtx* cctx)
4792 {
4793 return ZSTD_getBlockSize_deprecated(cctx);
4794 }
4795
4796 /* NOTE: Must just wrap ZSTD_compressBlock_deprecated() */
ZSTD_compressBlock_deprecated(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const void * src,size_t srcSize)4797 size_t ZSTD_compressBlock_deprecated(ZSTD_CCtx* cctx, void* dst, size_t dstCapacity, const void* src, size_t srcSize)
4798 {
4799 DEBUGLOG(5, "ZSTD_compressBlock: srcSize = %u", (unsigned)srcSize);
4800 { size_t const blockSizeMax = ZSTD_getBlockSize_deprecated(cctx);
4801 RETURN_ERROR_IF(srcSize > blockSizeMax, srcSize_wrong, "input is larger than a block"); }
4802
4803 return ZSTD_compressContinue_internal(cctx, dst, dstCapacity, src, srcSize, 0 /* frame mode */, 0 /* last chunk */);
4804 }
4805
4806 /* NOTE: Must just wrap ZSTD_compressBlock_deprecated() */
ZSTD_compressBlock(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const void * src,size_t srcSize)4807 size_t ZSTD_compressBlock(ZSTD_CCtx* cctx, void* dst, size_t dstCapacity, const void* src, size_t srcSize)
4808 {
4809 return ZSTD_compressBlock_deprecated(cctx, dst, dstCapacity, src, srcSize);
4810 }
4811
4812 /*! ZSTD_loadDictionaryContent() :
4813 * @return : 0, or an error code
4814 */
4815 static size_t
ZSTD_loadDictionaryContent(ZSTD_MatchState_t * ms,ldmState_t * ls,ZSTD_cwksp * ws,ZSTD_CCtx_params const * params,const void * src,size_t srcSize,ZSTD_dictTableLoadMethod_e dtlm,ZSTD_tableFillPurpose_e tfp)4816 ZSTD_loadDictionaryContent(ZSTD_MatchState_t* ms,
4817 ldmState_t* ls,
4818 ZSTD_cwksp* ws,
4819 ZSTD_CCtx_params const* params,
4820 const void* src, size_t srcSize,
4821 ZSTD_dictTableLoadMethod_e dtlm,
4822 ZSTD_tableFillPurpose_e tfp)
4823 {
4824 const BYTE* ip = (const BYTE*) src;
4825 const BYTE* const iend = ip + srcSize;
4826 int const loadLdmDict = params->ldmParams.enableLdm == ZSTD_ps_enable && ls != NULL;
4827
4828 /* Assert that the ms params match the params we're being given */
4829 ZSTD_assertEqualCParams(params->cParams, ms->cParams);
4830
4831 { /* Ensure large dictionaries can't cause index overflow */
4832
4833 /* Allow the dictionary to set indices up to exactly ZSTD_CURRENT_MAX.
4834 * Dictionaries right at the edge will immediately trigger overflow
4835 * correction, but I don't want to insert extra constraints here.
4836 */
4837 U32 maxDictSize = ZSTD_CURRENT_MAX - ZSTD_WINDOW_START_INDEX;
4838
4839 int const CDictTaggedIndices = ZSTD_CDictIndicesAreTagged(¶ms->cParams);
4840 if (CDictTaggedIndices && tfp == ZSTD_tfp_forCDict) {
4841 /* Some dictionary matchfinders in zstd use "short cache",
4842 * which treats the lower ZSTD_SHORT_CACHE_TAG_BITS of each
4843 * CDict hashtable entry as a tag rather than as part of an index.
4844 * When short cache is used, we need to truncate the dictionary
4845 * so that its indices don't overlap with the tag. */
4846 U32 const shortCacheMaxDictSize = (1u << (32 - ZSTD_SHORT_CACHE_TAG_BITS)) - ZSTD_WINDOW_START_INDEX;
4847 maxDictSize = MIN(maxDictSize, shortCacheMaxDictSize);
4848 assert(!loadLdmDict);
4849 }
4850
4851 /* If the dictionary is too large, only load the suffix of the dictionary. */
4852 if (srcSize > maxDictSize) {
4853 ip = iend - maxDictSize;
4854 src = ip;
4855 srcSize = maxDictSize;
4856 }
4857 }
4858
4859 if (srcSize > ZSTD_CHUNKSIZE_MAX) {
4860 /* We must have cleared our windows when our source is this large. */
4861 assert(ZSTD_window_isEmpty(ms->window));
4862 if (loadLdmDict) assert(ZSTD_window_isEmpty(ls->window));
4863 }
4864 ZSTD_window_update(&ms->window, src, srcSize, /* forceNonContiguous */ 0);
4865
4866 DEBUGLOG(4, "ZSTD_loadDictionaryContent: useRowMatchFinder=%d", (int)params->useRowMatchFinder);
4867
4868 if (loadLdmDict) { /* Load the entire dict into LDM matchfinders. */
4869 DEBUGLOG(4, "ZSTD_loadDictionaryContent: Trigger loadLdmDict");
4870 ZSTD_window_update(&ls->window, src, srcSize, /* forceNonContiguous */ 0);
4871 ls->loadedDictEnd = params->forceWindow ? 0 : (U32)(iend - ls->window.base);
4872 ZSTD_ldm_fillHashTable(ls, ip, iend, ¶ms->ldmParams);
4873 DEBUGLOG(4, "ZSTD_loadDictionaryContent: ZSTD_ldm_fillHashTable completes");
4874 }
4875
4876 /* If the dict is larger than we can reasonably index in our tables, only load the suffix. */
4877 { U32 maxDictSize = 1U << MIN(MAX(params->cParams.hashLog + 3, params->cParams.chainLog + 1), 31);
4878 if (srcSize > maxDictSize) {
4879 ip = iend - maxDictSize;
4880 src = ip;
4881 srcSize = maxDictSize;
4882 }
4883 }
4884
4885 ms->nextToUpdate = (U32)(ip - ms->window.base);
4886 ms->loadedDictEnd = params->forceWindow ? 0 : (U32)(iend - ms->window.base);
4887 ms->forceNonContiguous = params->deterministicRefPrefix;
4888
4889 if (srcSize <= HASH_READ_SIZE) return 0;
4890
4891 ZSTD_overflowCorrectIfNeeded(ms, ws, params, ip, iend);
4892
4893 switch(params->cParams.strategy)
4894 {
4895 case ZSTD_fast:
4896 ZSTD_fillHashTable(ms, iend, dtlm, tfp);
4897 break;
4898 case ZSTD_dfast:
4899 #ifndef ZSTD_EXCLUDE_DFAST_BLOCK_COMPRESSOR
4900 ZSTD_fillDoubleHashTable(ms, iend, dtlm, tfp);
4901 #else
4902 assert(0); /* shouldn't be called: cparams should've been adjusted. */
4903 #endif
4904 break;
4905
4906 case ZSTD_greedy:
4907 case ZSTD_lazy:
4908 case ZSTD_lazy2:
4909 #if !defined(ZSTD_EXCLUDE_GREEDY_BLOCK_COMPRESSOR) \
4910 || !defined(ZSTD_EXCLUDE_LAZY_BLOCK_COMPRESSOR) \
4911 || !defined(ZSTD_EXCLUDE_LAZY2_BLOCK_COMPRESSOR)
4912 assert(srcSize >= HASH_READ_SIZE);
4913 if (ms->dedicatedDictSearch) {
4914 assert(ms->chainTable != NULL);
4915 ZSTD_dedicatedDictSearch_lazy_loadDictionary(ms, iend-HASH_READ_SIZE);
4916 } else {
4917 assert(params->useRowMatchFinder != ZSTD_ps_auto);
4918 if (params->useRowMatchFinder == ZSTD_ps_enable) {
4919 size_t const tagTableSize = ((size_t)1 << params->cParams.hashLog);
4920 ZSTD_memset(ms->tagTable, 0, tagTableSize);
4921 ZSTD_row_update(ms, iend-HASH_READ_SIZE);
4922 DEBUGLOG(4, "Using row-based hash table for lazy dict");
4923 } else {
4924 ZSTD_insertAndFindFirstIndex(ms, iend-HASH_READ_SIZE);
4925 DEBUGLOG(4, "Using chain-based hash table for lazy dict");
4926 }
4927 }
4928 #else
4929 assert(0); /* shouldn't be called: cparams should've been adjusted. */
4930 #endif
4931 break;
4932
4933 case ZSTD_btlazy2: /* we want the dictionary table fully sorted */
4934 case ZSTD_btopt:
4935 case ZSTD_btultra:
4936 case ZSTD_btultra2:
4937 #if !defined(ZSTD_EXCLUDE_BTLAZY2_BLOCK_COMPRESSOR) \
4938 || !defined(ZSTD_EXCLUDE_BTOPT_BLOCK_COMPRESSOR) \
4939 || !defined(ZSTD_EXCLUDE_BTULTRA_BLOCK_COMPRESSOR)
4940 assert(srcSize >= HASH_READ_SIZE);
4941 DEBUGLOG(4, "Fill %u bytes into the Binary Tree", (unsigned)srcSize);
4942 ZSTD_updateTree(ms, iend-HASH_READ_SIZE, iend);
4943 #else
4944 assert(0); /* shouldn't be called: cparams should've been adjusted. */
4945 #endif
4946 break;
4947
4948 default:
4949 assert(0); /* not possible : not a valid strategy id */
4950 }
4951
4952 ms->nextToUpdate = (U32)(iend - ms->window.base);
4953 return 0;
4954 }
4955
4956
4957 /* Dictionaries that assign zero probability to symbols that show up causes problems
4958 * when FSE encoding. Mark dictionaries with zero probability symbols as FSE_repeat_check
4959 * and only dictionaries with 100% valid symbols can be assumed valid.
4960 */
ZSTD_dictNCountRepeat(short * normalizedCounter,unsigned dictMaxSymbolValue,unsigned maxSymbolValue)4961 static FSE_repeat ZSTD_dictNCountRepeat(short* normalizedCounter, unsigned dictMaxSymbolValue, unsigned maxSymbolValue)
4962 {
4963 U32 s;
4964 if (dictMaxSymbolValue < maxSymbolValue) {
4965 return FSE_repeat_check;
4966 }
4967 for (s = 0; s <= maxSymbolValue; ++s) {
4968 if (normalizedCounter[s] == 0) {
4969 return FSE_repeat_check;
4970 }
4971 }
4972 return FSE_repeat_valid;
4973 }
4974
ZSTD_loadCEntropy(ZSTD_compressedBlockState_t * bs,void * workspace,const void * const dict,size_t dictSize)4975 size_t ZSTD_loadCEntropy(ZSTD_compressedBlockState_t* bs, void* workspace,
4976 const void* const dict, size_t dictSize)
4977 {
4978 short offcodeNCount[MaxOff+1];
4979 unsigned offcodeMaxValue = MaxOff;
4980 const BYTE* dictPtr = (const BYTE*)dict; /* skip magic num and dict ID */
4981 const BYTE* const dictEnd = dictPtr + dictSize;
4982 dictPtr += 8;
4983 bs->entropy.huf.repeatMode = HUF_repeat_check;
4984
4985 { unsigned maxSymbolValue = 255;
4986 unsigned hasZeroWeights = 1;
4987 size_t const hufHeaderSize = HUF_readCTable((HUF_CElt*)bs->entropy.huf.CTable, &maxSymbolValue, dictPtr,
4988 (size_t)(dictEnd-dictPtr), &hasZeroWeights);
4989
4990 /* We only set the loaded table as valid if it contains all non-zero
4991 * weights. Otherwise, we set it to check */
4992 if (!hasZeroWeights && maxSymbolValue == 255)
4993 bs->entropy.huf.repeatMode = HUF_repeat_valid;
4994
4995 RETURN_ERROR_IF(HUF_isError(hufHeaderSize), dictionary_corrupted, "");
4996 dictPtr += hufHeaderSize;
4997 }
4998
4999 { unsigned offcodeLog;
5000 size_t const offcodeHeaderSize = FSE_readNCount(offcodeNCount, &offcodeMaxValue, &offcodeLog, dictPtr, (size_t)(dictEnd-dictPtr));
5001 RETURN_ERROR_IF(FSE_isError(offcodeHeaderSize), dictionary_corrupted, "");
5002 RETURN_ERROR_IF(offcodeLog > OffFSELog, dictionary_corrupted, "");
5003 /* fill all offset symbols to avoid garbage at end of table */
5004 RETURN_ERROR_IF(FSE_isError(FSE_buildCTable_wksp(
5005 bs->entropy.fse.offcodeCTable,
5006 offcodeNCount, MaxOff, offcodeLog,
5007 workspace, HUF_WORKSPACE_SIZE)),
5008 dictionary_corrupted, "");
5009 /* Defer checking offcodeMaxValue because we need to know the size of the dictionary content */
5010 dictPtr += offcodeHeaderSize;
5011 }
5012
5013 { short matchlengthNCount[MaxML+1];
5014 unsigned matchlengthMaxValue = MaxML, matchlengthLog;
5015 size_t const matchlengthHeaderSize = FSE_readNCount(matchlengthNCount, &matchlengthMaxValue, &matchlengthLog, dictPtr, (size_t)(dictEnd-dictPtr));
5016 RETURN_ERROR_IF(FSE_isError(matchlengthHeaderSize), dictionary_corrupted, "");
5017 RETURN_ERROR_IF(matchlengthLog > MLFSELog, dictionary_corrupted, "");
5018 RETURN_ERROR_IF(FSE_isError(FSE_buildCTable_wksp(
5019 bs->entropy.fse.matchlengthCTable,
5020 matchlengthNCount, matchlengthMaxValue, matchlengthLog,
5021 workspace, HUF_WORKSPACE_SIZE)),
5022 dictionary_corrupted, "");
5023 bs->entropy.fse.matchlength_repeatMode = ZSTD_dictNCountRepeat(matchlengthNCount, matchlengthMaxValue, MaxML);
5024 dictPtr += matchlengthHeaderSize;
5025 }
5026
5027 { short litlengthNCount[MaxLL+1];
5028 unsigned litlengthMaxValue = MaxLL, litlengthLog;
5029 size_t const litlengthHeaderSize = FSE_readNCount(litlengthNCount, &litlengthMaxValue, &litlengthLog, dictPtr, (size_t)(dictEnd-dictPtr));
5030 RETURN_ERROR_IF(FSE_isError(litlengthHeaderSize), dictionary_corrupted, "");
5031 RETURN_ERROR_IF(litlengthLog > LLFSELog, dictionary_corrupted, "");
5032 RETURN_ERROR_IF(FSE_isError(FSE_buildCTable_wksp(
5033 bs->entropy.fse.litlengthCTable,
5034 litlengthNCount, litlengthMaxValue, litlengthLog,
5035 workspace, HUF_WORKSPACE_SIZE)),
5036 dictionary_corrupted, "");
5037 bs->entropy.fse.litlength_repeatMode = ZSTD_dictNCountRepeat(litlengthNCount, litlengthMaxValue, MaxLL);
5038 dictPtr += litlengthHeaderSize;
5039 }
5040
5041 RETURN_ERROR_IF(dictPtr+12 > dictEnd, dictionary_corrupted, "");
5042 bs->rep[0] = MEM_readLE32(dictPtr+0);
5043 bs->rep[1] = MEM_readLE32(dictPtr+4);
5044 bs->rep[2] = MEM_readLE32(dictPtr+8);
5045 dictPtr += 12;
5046
5047 { size_t const dictContentSize = (size_t)(dictEnd - dictPtr);
5048 U32 offcodeMax = MaxOff;
5049 if (dictContentSize <= ((U32)-1) - 128 KB) {
5050 U32 const maxOffset = (U32)dictContentSize + 128 KB; /* The maximum offset that must be supported */
5051 offcodeMax = ZSTD_highbit32(maxOffset); /* Calculate minimum offset code required to represent maxOffset */
5052 }
5053 /* All offset values <= dictContentSize + 128 KB must be representable for a valid table */
5054 bs->entropy.fse.offcode_repeatMode = ZSTD_dictNCountRepeat(offcodeNCount, offcodeMaxValue, MIN(offcodeMax, MaxOff));
5055
5056 /* All repCodes must be <= dictContentSize and != 0 */
5057 { U32 u;
5058 for (u=0; u<3; u++) {
5059 RETURN_ERROR_IF(bs->rep[u] == 0, dictionary_corrupted, "");
5060 RETURN_ERROR_IF(bs->rep[u] > dictContentSize, dictionary_corrupted, "");
5061 } } }
5062
5063 return (size_t)(dictPtr - (const BYTE*)dict);
5064 }
5065
5066 /* Dictionary format :
5067 * See :
5068 * https://github.com/facebook/zstd/blob/release/doc/zstd_compression_format.md#dictionary-format
5069 */
5070 /*! ZSTD_loadZstdDictionary() :
5071 * @return : dictID, or an error code
5072 * assumptions : magic number supposed already checked
5073 * dictSize supposed >= 8
5074 */
ZSTD_loadZstdDictionary(ZSTD_compressedBlockState_t * bs,ZSTD_MatchState_t * ms,ZSTD_cwksp * ws,ZSTD_CCtx_params const * params,const void * dict,size_t dictSize,ZSTD_dictTableLoadMethod_e dtlm,ZSTD_tableFillPurpose_e tfp,void * workspace)5075 static size_t ZSTD_loadZstdDictionary(ZSTD_compressedBlockState_t* bs,
5076 ZSTD_MatchState_t* ms,
5077 ZSTD_cwksp* ws,
5078 ZSTD_CCtx_params const* params,
5079 const void* dict, size_t dictSize,
5080 ZSTD_dictTableLoadMethod_e dtlm,
5081 ZSTD_tableFillPurpose_e tfp,
5082 void* workspace)
5083 {
5084 const BYTE* dictPtr = (const BYTE*)dict;
5085 const BYTE* const dictEnd = dictPtr + dictSize;
5086 size_t dictID;
5087 size_t eSize;
5088 ZSTD_STATIC_ASSERT(HUF_WORKSPACE_SIZE >= (1<<MAX(MLFSELog,LLFSELog)));
5089 assert(dictSize >= 8);
5090 assert(MEM_readLE32(dictPtr) == ZSTD_MAGIC_DICTIONARY);
5091
5092 dictID = params->fParams.noDictIDFlag ? 0 : MEM_readLE32(dictPtr + 4 /* skip magic number */ );
5093 eSize = ZSTD_loadCEntropy(bs, workspace, dict, dictSize);
5094 FORWARD_IF_ERROR(eSize, "ZSTD_loadCEntropy failed");
5095 dictPtr += eSize;
5096
5097 {
5098 size_t const dictContentSize = (size_t)(dictEnd - dictPtr);
5099 FORWARD_IF_ERROR(ZSTD_loadDictionaryContent(
5100 ms, NULL, ws, params, dictPtr, dictContentSize, dtlm, tfp), "");
5101 }
5102 return dictID;
5103 }
5104
5105 /* ZSTD_compress_insertDictionary() :
5106 * @return : dictID, or an error code */
5107 static size_t
ZSTD_compress_insertDictionary(ZSTD_compressedBlockState_t * bs,ZSTD_MatchState_t * ms,ldmState_t * ls,ZSTD_cwksp * ws,const ZSTD_CCtx_params * params,const void * dict,size_t dictSize,ZSTD_dictContentType_e dictContentType,ZSTD_dictTableLoadMethod_e dtlm,ZSTD_tableFillPurpose_e tfp,void * workspace)5108 ZSTD_compress_insertDictionary(ZSTD_compressedBlockState_t* bs,
5109 ZSTD_MatchState_t* ms,
5110 ldmState_t* ls,
5111 ZSTD_cwksp* ws,
5112 const ZSTD_CCtx_params* params,
5113 const void* dict, size_t dictSize,
5114 ZSTD_dictContentType_e dictContentType,
5115 ZSTD_dictTableLoadMethod_e dtlm,
5116 ZSTD_tableFillPurpose_e tfp,
5117 void* workspace)
5118 {
5119 DEBUGLOG(4, "ZSTD_compress_insertDictionary (dictSize=%u)", (U32)dictSize);
5120 if ((dict==NULL) || (dictSize<8)) {
5121 RETURN_ERROR_IF(dictContentType == ZSTD_dct_fullDict, dictionary_wrong, "");
5122 return 0;
5123 }
5124
5125 ZSTD_reset_compressedBlockState(bs);
5126
5127 /* dict restricted modes */
5128 if (dictContentType == ZSTD_dct_rawContent)
5129 return ZSTD_loadDictionaryContent(ms, ls, ws, params, dict, dictSize, dtlm, tfp);
5130
5131 if (MEM_readLE32(dict) != ZSTD_MAGIC_DICTIONARY) {
5132 if (dictContentType == ZSTD_dct_auto) {
5133 DEBUGLOG(4, "raw content dictionary detected");
5134 return ZSTD_loadDictionaryContent(
5135 ms, ls, ws, params, dict, dictSize, dtlm, tfp);
5136 }
5137 RETURN_ERROR_IF(dictContentType == ZSTD_dct_fullDict, dictionary_wrong, "");
5138 assert(0); /* impossible */
5139 }
5140
5141 /* dict as full zstd dictionary */
5142 return ZSTD_loadZstdDictionary(
5143 bs, ms, ws, params, dict, dictSize, dtlm, tfp, workspace);
5144 }
5145
5146 #define ZSTD_USE_CDICT_PARAMS_SRCSIZE_CUTOFF (128 KB)
5147 #define ZSTD_USE_CDICT_PARAMS_DICTSIZE_MULTIPLIER (6ULL)
5148
5149 /*! ZSTD_compressBegin_internal() :
5150 * Assumption : either @dict OR @cdict (or none) is non-NULL, never both
5151 * @return : 0, or an error code */
ZSTD_compressBegin_internal(ZSTD_CCtx * cctx,const void * dict,size_t dictSize,ZSTD_dictContentType_e dictContentType,ZSTD_dictTableLoadMethod_e dtlm,const ZSTD_CDict * cdict,const ZSTD_CCtx_params * params,U64 pledgedSrcSize,ZSTD_buffered_policy_e zbuff)5152 static size_t ZSTD_compressBegin_internal(ZSTD_CCtx* cctx,
5153 const void* dict, size_t dictSize,
5154 ZSTD_dictContentType_e dictContentType,
5155 ZSTD_dictTableLoadMethod_e dtlm,
5156 const ZSTD_CDict* cdict,
5157 const ZSTD_CCtx_params* params, U64 pledgedSrcSize,
5158 ZSTD_buffered_policy_e zbuff)
5159 {
5160 size_t const dictContentSize = cdict ? cdict->dictContentSize : dictSize;
5161 DEBUGLOG(4, "ZSTD_compressBegin_internal: wlog=%u", params->cParams.windowLog);
5162 /* params are supposed to be fully validated at this point */
5163 assert(!ZSTD_isError(ZSTD_checkCParams(params->cParams)));
5164 assert(!((dict) && (cdict))); /* either dict or cdict, not both */
5165 if ( (cdict)
5166 && (cdict->dictContentSize > 0)
5167 && ( pledgedSrcSize < ZSTD_USE_CDICT_PARAMS_SRCSIZE_CUTOFF
5168 || pledgedSrcSize < cdict->dictContentSize * ZSTD_USE_CDICT_PARAMS_DICTSIZE_MULTIPLIER
5169 || pledgedSrcSize == ZSTD_CONTENTSIZE_UNKNOWN
5170 || cdict->compressionLevel == 0)
5171 && (params->attachDictPref != ZSTD_dictForceLoad) ) {
5172 return ZSTD_resetCCtx_usingCDict(cctx, cdict, params, pledgedSrcSize, zbuff);
5173 }
5174
5175 FORWARD_IF_ERROR( ZSTD_resetCCtx_internal(cctx, params, pledgedSrcSize,
5176 dictContentSize,
5177 ZSTDcrp_makeClean, zbuff) , "");
5178 { size_t const dictID = cdict ?
5179 ZSTD_compress_insertDictionary(
5180 cctx->blockState.prevCBlock, &cctx->blockState.matchState,
5181 &cctx->ldmState, &cctx->workspace, &cctx->appliedParams, cdict->dictContent,
5182 cdict->dictContentSize, cdict->dictContentType, dtlm,
5183 ZSTD_tfp_forCCtx, cctx->tmpWorkspace)
5184 : ZSTD_compress_insertDictionary(
5185 cctx->blockState.prevCBlock, &cctx->blockState.matchState,
5186 &cctx->ldmState, &cctx->workspace, &cctx->appliedParams, dict, dictSize,
5187 dictContentType, dtlm, ZSTD_tfp_forCCtx, cctx->tmpWorkspace);
5188 FORWARD_IF_ERROR(dictID, "ZSTD_compress_insertDictionary failed");
5189 assert(dictID <= UINT_MAX);
5190 cctx->dictID = (U32)dictID;
5191 cctx->dictContentSize = dictContentSize;
5192 }
5193 return 0;
5194 }
5195
ZSTD_compressBegin_advanced_internal(ZSTD_CCtx * cctx,const void * dict,size_t dictSize,ZSTD_dictContentType_e dictContentType,ZSTD_dictTableLoadMethod_e dtlm,const ZSTD_CDict * cdict,const ZSTD_CCtx_params * params,unsigned long long pledgedSrcSize)5196 size_t ZSTD_compressBegin_advanced_internal(ZSTD_CCtx* cctx,
5197 const void* dict, size_t dictSize,
5198 ZSTD_dictContentType_e dictContentType,
5199 ZSTD_dictTableLoadMethod_e dtlm,
5200 const ZSTD_CDict* cdict,
5201 const ZSTD_CCtx_params* params,
5202 unsigned long long pledgedSrcSize)
5203 {
5204 DEBUGLOG(4, "ZSTD_compressBegin_advanced_internal: wlog=%u", params->cParams.windowLog);
5205 /* compression parameters verification and optimization */
5206 FORWARD_IF_ERROR( ZSTD_checkCParams(params->cParams) , "");
5207 return ZSTD_compressBegin_internal(cctx,
5208 dict, dictSize, dictContentType, dtlm,
5209 cdict,
5210 params, pledgedSrcSize,
5211 ZSTDb_not_buffered);
5212 }
5213
5214 /*! ZSTD_compressBegin_advanced() :
5215 * @return : 0, or an error code */
ZSTD_compressBegin_advanced(ZSTD_CCtx * cctx,const void * dict,size_t dictSize,ZSTD_parameters params,unsigned long long pledgedSrcSize)5216 size_t ZSTD_compressBegin_advanced(ZSTD_CCtx* cctx,
5217 const void* dict, size_t dictSize,
5218 ZSTD_parameters params, unsigned long long pledgedSrcSize)
5219 {
5220 ZSTD_CCtx_params cctxParams;
5221 ZSTD_CCtxParams_init_internal(&cctxParams, ¶ms, ZSTD_NO_CLEVEL);
5222 return ZSTD_compressBegin_advanced_internal(cctx,
5223 dict, dictSize, ZSTD_dct_auto, ZSTD_dtlm_fast,
5224 NULL /*cdict*/,
5225 &cctxParams, pledgedSrcSize);
5226 }
5227
5228 static size_t
ZSTD_compressBegin_usingDict_deprecated(ZSTD_CCtx * cctx,const void * dict,size_t dictSize,int compressionLevel)5229 ZSTD_compressBegin_usingDict_deprecated(ZSTD_CCtx* cctx, const void* dict, size_t dictSize, int compressionLevel)
5230 {
5231 ZSTD_CCtx_params cctxParams;
5232 { ZSTD_parameters const params = ZSTD_getParams_internal(compressionLevel, ZSTD_CONTENTSIZE_UNKNOWN, dictSize, ZSTD_cpm_noAttachDict);
5233 ZSTD_CCtxParams_init_internal(&cctxParams, ¶ms, (compressionLevel == 0) ? ZSTD_CLEVEL_DEFAULT : compressionLevel);
5234 }
5235 DEBUGLOG(4, "ZSTD_compressBegin_usingDict (dictSize=%u)", (unsigned)dictSize);
5236 return ZSTD_compressBegin_internal(cctx, dict, dictSize, ZSTD_dct_auto, ZSTD_dtlm_fast, NULL,
5237 &cctxParams, ZSTD_CONTENTSIZE_UNKNOWN, ZSTDb_not_buffered);
5238 }
5239
5240 size_t
ZSTD_compressBegin_usingDict(ZSTD_CCtx * cctx,const void * dict,size_t dictSize,int compressionLevel)5241 ZSTD_compressBegin_usingDict(ZSTD_CCtx* cctx, const void* dict, size_t dictSize, int compressionLevel)
5242 {
5243 return ZSTD_compressBegin_usingDict_deprecated(cctx, dict, dictSize, compressionLevel);
5244 }
5245
ZSTD_compressBegin(ZSTD_CCtx * cctx,int compressionLevel)5246 size_t ZSTD_compressBegin(ZSTD_CCtx* cctx, int compressionLevel)
5247 {
5248 return ZSTD_compressBegin_usingDict_deprecated(cctx, NULL, 0, compressionLevel);
5249 }
5250
5251
5252 /*! ZSTD_writeEpilogue() :
5253 * Ends a frame.
5254 * @return : nb of bytes written into dst (or an error code) */
ZSTD_writeEpilogue(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity)5255 static size_t ZSTD_writeEpilogue(ZSTD_CCtx* cctx, void* dst, size_t dstCapacity)
5256 {
5257 BYTE* const ostart = (BYTE*)dst;
5258 BYTE* op = ostart;
5259
5260 DEBUGLOG(4, "ZSTD_writeEpilogue");
5261 RETURN_ERROR_IF(cctx->stage == ZSTDcs_created, stage_wrong, "init missing");
5262
5263 /* special case : empty frame */
5264 if (cctx->stage == ZSTDcs_init) {
5265 size_t fhSize = ZSTD_writeFrameHeader(dst, dstCapacity, &cctx->appliedParams, 0, 0);
5266 FORWARD_IF_ERROR(fhSize, "ZSTD_writeFrameHeader failed");
5267 dstCapacity -= fhSize;
5268 op += fhSize;
5269 cctx->stage = ZSTDcs_ongoing;
5270 }
5271
5272 if (cctx->stage != ZSTDcs_ending) {
5273 /* write one last empty block, make it the "last" block */
5274 U32 const cBlockHeader24 = 1 /* last block */ + (((U32)bt_raw)<<1) + 0;
5275 ZSTD_STATIC_ASSERT(ZSTD_BLOCKHEADERSIZE == 3);
5276 RETURN_ERROR_IF(dstCapacity<3, dstSize_tooSmall, "no room for epilogue");
5277 MEM_writeLE24(op, cBlockHeader24);
5278 op += ZSTD_blockHeaderSize;
5279 dstCapacity -= ZSTD_blockHeaderSize;
5280 }
5281
5282 if (cctx->appliedParams.fParams.checksumFlag) {
5283 U32 const checksum = (U32) xxh64_digest(&cctx->xxhState);
5284 RETURN_ERROR_IF(dstCapacity<4, dstSize_tooSmall, "no room for checksum");
5285 DEBUGLOG(4, "ZSTD_writeEpilogue: write checksum : %08X", (unsigned)checksum);
5286 MEM_writeLE32(op, checksum);
5287 op += 4;
5288 }
5289
5290 cctx->stage = ZSTDcs_created; /* return to "created but no init" status */
5291 return (size_t)(op-ostart);
5292 }
5293
ZSTD_CCtx_trace(ZSTD_CCtx * cctx,size_t extraCSize)5294 void ZSTD_CCtx_trace(ZSTD_CCtx* cctx, size_t extraCSize)
5295 {
5296 (void)cctx;
5297 (void)extraCSize;
5298 }
5299
ZSTD_compressEnd_public(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const void * src,size_t srcSize)5300 size_t ZSTD_compressEnd_public(ZSTD_CCtx* cctx,
5301 void* dst, size_t dstCapacity,
5302 const void* src, size_t srcSize)
5303 {
5304 size_t endResult;
5305 size_t const cSize = ZSTD_compressContinue_internal(cctx,
5306 dst, dstCapacity, src, srcSize,
5307 1 /* frame mode */, 1 /* last chunk */);
5308 FORWARD_IF_ERROR(cSize, "ZSTD_compressContinue_internal failed");
5309 endResult = ZSTD_writeEpilogue(cctx, (char*)dst + cSize, dstCapacity-cSize);
5310 FORWARD_IF_ERROR(endResult, "ZSTD_writeEpilogue failed");
5311 assert(!(cctx->appliedParams.fParams.contentSizeFlag && cctx->pledgedSrcSizePlusOne == 0));
5312 if (cctx->pledgedSrcSizePlusOne != 0) { /* control src size */
5313 ZSTD_STATIC_ASSERT(ZSTD_CONTENTSIZE_UNKNOWN == (unsigned long long)-1);
5314 DEBUGLOG(4, "end of frame : controlling src size");
5315 RETURN_ERROR_IF(
5316 cctx->pledgedSrcSizePlusOne != cctx->consumedSrcSize+1,
5317 srcSize_wrong,
5318 "error : pledgedSrcSize = %u, while realSrcSize = %u",
5319 (unsigned)cctx->pledgedSrcSizePlusOne-1,
5320 (unsigned)cctx->consumedSrcSize);
5321 }
5322 ZSTD_CCtx_trace(cctx, endResult);
5323 return cSize + endResult;
5324 }
5325
5326 /* NOTE: Must just wrap ZSTD_compressEnd_public() */
ZSTD_compressEnd(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const void * src,size_t srcSize)5327 size_t ZSTD_compressEnd(ZSTD_CCtx* cctx,
5328 void* dst, size_t dstCapacity,
5329 const void* src, size_t srcSize)
5330 {
5331 return ZSTD_compressEnd_public(cctx, dst, dstCapacity, src, srcSize);
5332 }
5333
ZSTD_compress_advanced(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const void * src,size_t srcSize,const void * dict,size_t dictSize,ZSTD_parameters params)5334 size_t ZSTD_compress_advanced (ZSTD_CCtx* cctx,
5335 void* dst, size_t dstCapacity,
5336 const void* src, size_t srcSize,
5337 const void* dict,size_t dictSize,
5338 ZSTD_parameters params)
5339 {
5340 DEBUGLOG(4, "ZSTD_compress_advanced");
5341 FORWARD_IF_ERROR(ZSTD_checkCParams(params.cParams), "");
5342 ZSTD_CCtxParams_init_internal(&cctx->simpleApiParams, ¶ms, ZSTD_NO_CLEVEL);
5343 return ZSTD_compress_advanced_internal(cctx,
5344 dst, dstCapacity,
5345 src, srcSize,
5346 dict, dictSize,
5347 &cctx->simpleApiParams);
5348 }
5349
5350 /* Internal */
ZSTD_compress_advanced_internal(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const void * src,size_t srcSize,const void * dict,size_t dictSize,const ZSTD_CCtx_params * params)5351 size_t ZSTD_compress_advanced_internal(
5352 ZSTD_CCtx* cctx,
5353 void* dst, size_t dstCapacity,
5354 const void* src, size_t srcSize,
5355 const void* dict,size_t dictSize,
5356 const ZSTD_CCtx_params* params)
5357 {
5358 DEBUGLOG(4, "ZSTD_compress_advanced_internal (srcSize:%u)", (unsigned)srcSize);
5359 FORWARD_IF_ERROR( ZSTD_compressBegin_internal(cctx,
5360 dict, dictSize, ZSTD_dct_auto, ZSTD_dtlm_fast, NULL,
5361 params, srcSize, ZSTDb_not_buffered) , "");
5362 return ZSTD_compressEnd_public(cctx, dst, dstCapacity, src, srcSize);
5363 }
5364
ZSTD_compress_usingDict(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const void * src,size_t srcSize,const void * dict,size_t dictSize,int compressionLevel)5365 size_t ZSTD_compress_usingDict(ZSTD_CCtx* cctx,
5366 void* dst, size_t dstCapacity,
5367 const void* src, size_t srcSize,
5368 const void* dict, size_t dictSize,
5369 int compressionLevel)
5370 {
5371 {
5372 ZSTD_parameters const params = ZSTD_getParams_internal(compressionLevel, srcSize, dict ? dictSize : 0, ZSTD_cpm_noAttachDict);
5373 assert(params.fParams.contentSizeFlag == 1);
5374 ZSTD_CCtxParams_init_internal(&cctx->simpleApiParams, ¶ms, (compressionLevel == 0) ? ZSTD_CLEVEL_DEFAULT: compressionLevel);
5375 }
5376 DEBUGLOG(4, "ZSTD_compress_usingDict (srcSize=%u)", (unsigned)srcSize);
5377 return ZSTD_compress_advanced_internal(cctx, dst, dstCapacity, src, srcSize, dict, dictSize, &cctx->simpleApiParams);
5378 }
5379
ZSTD_compressCCtx(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const void * src,size_t srcSize,int compressionLevel)5380 size_t ZSTD_compressCCtx(ZSTD_CCtx* cctx,
5381 void* dst, size_t dstCapacity,
5382 const void* src, size_t srcSize,
5383 int compressionLevel)
5384 {
5385 DEBUGLOG(4, "ZSTD_compressCCtx (srcSize=%u)", (unsigned)srcSize);
5386 assert(cctx != NULL);
5387 return ZSTD_compress_usingDict(cctx, dst, dstCapacity, src, srcSize, NULL, 0, compressionLevel);
5388 }
5389
ZSTD_compress(void * dst,size_t dstCapacity,const void * src,size_t srcSize,int compressionLevel)5390 size_t ZSTD_compress(void* dst, size_t dstCapacity,
5391 const void* src, size_t srcSize,
5392 int compressionLevel)
5393 {
5394 size_t result;
5395 ZSTD_CCtx* cctx = ZSTD_createCCtx();
5396 RETURN_ERROR_IF(!cctx, memory_allocation, "ZSTD_createCCtx failed");
5397 result = ZSTD_compressCCtx(cctx, dst, dstCapacity, src, srcSize, compressionLevel);
5398 ZSTD_freeCCtx(cctx);
5399 return result;
5400 }
5401
5402
5403 /* ===== Dictionary API ===== */
5404
5405 /*! ZSTD_estimateCDictSize_advanced() :
5406 * Estimate amount of memory that will be needed to create a dictionary with following arguments */
ZSTD_estimateCDictSize_advanced(size_t dictSize,ZSTD_compressionParameters cParams,ZSTD_dictLoadMethod_e dictLoadMethod)5407 size_t ZSTD_estimateCDictSize_advanced(
5408 size_t dictSize, ZSTD_compressionParameters cParams,
5409 ZSTD_dictLoadMethod_e dictLoadMethod)
5410 {
5411 DEBUGLOG(5, "sizeof(ZSTD_CDict) : %u", (unsigned)sizeof(ZSTD_CDict));
5412 return ZSTD_cwksp_alloc_size(sizeof(ZSTD_CDict))
5413 + ZSTD_cwksp_alloc_size(HUF_WORKSPACE_SIZE)
5414 /* enableDedicatedDictSearch == 1 ensures that CDict estimation will not be too small
5415 * in case we are using DDS with row-hash. */
5416 + ZSTD_sizeof_matchState(&cParams, ZSTD_resolveRowMatchFinderMode(ZSTD_ps_auto, &cParams),
5417 /* enableDedicatedDictSearch */ 1, /* forCCtx */ 0)
5418 + (dictLoadMethod == ZSTD_dlm_byRef ? 0
5419 : ZSTD_cwksp_alloc_size(ZSTD_cwksp_align(dictSize, sizeof(void *))));
5420 }
5421
ZSTD_estimateCDictSize(size_t dictSize,int compressionLevel)5422 size_t ZSTD_estimateCDictSize(size_t dictSize, int compressionLevel)
5423 {
5424 ZSTD_compressionParameters const cParams = ZSTD_getCParams_internal(compressionLevel, ZSTD_CONTENTSIZE_UNKNOWN, dictSize, ZSTD_cpm_createCDict);
5425 return ZSTD_estimateCDictSize_advanced(dictSize, cParams, ZSTD_dlm_byCopy);
5426 }
5427
ZSTD_sizeof_CDict(const ZSTD_CDict * cdict)5428 size_t ZSTD_sizeof_CDict(const ZSTD_CDict* cdict)
5429 {
5430 if (cdict==NULL) return 0; /* support sizeof on NULL */
5431 DEBUGLOG(5, "sizeof(*cdict) : %u", (unsigned)sizeof(*cdict));
5432 /* cdict may be in the workspace */
5433 return (cdict->workspace.workspace == cdict ? 0 : sizeof(*cdict))
5434 + ZSTD_cwksp_sizeof(&cdict->workspace);
5435 }
5436
ZSTD_initCDict_internal(ZSTD_CDict * cdict,const void * dictBuffer,size_t dictSize,ZSTD_dictLoadMethod_e dictLoadMethod,ZSTD_dictContentType_e dictContentType,ZSTD_CCtx_params params)5437 static size_t ZSTD_initCDict_internal(
5438 ZSTD_CDict* cdict,
5439 const void* dictBuffer, size_t dictSize,
5440 ZSTD_dictLoadMethod_e dictLoadMethod,
5441 ZSTD_dictContentType_e dictContentType,
5442 ZSTD_CCtx_params params)
5443 {
5444 DEBUGLOG(3, "ZSTD_initCDict_internal (dictContentType:%u)", (unsigned)dictContentType);
5445 assert(!ZSTD_checkCParams(params.cParams));
5446 cdict->matchState.cParams = params.cParams;
5447 cdict->matchState.dedicatedDictSearch = params.enableDedicatedDictSearch;
5448 if ((dictLoadMethod == ZSTD_dlm_byRef) || (!dictBuffer) || (!dictSize)) {
5449 cdict->dictContent = dictBuffer;
5450 } else {
5451 void *internalBuffer = ZSTD_cwksp_reserve_object(&cdict->workspace, ZSTD_cwksp_align(dictSize, sizeof(void*)));
5452 RETURN_ERROR_IF(!internalBuffer, memory_allocation, "NULL pointer!");
5453 cdict->dictContent = internalBuffer;
5454 ZSTD_memcpy(internalBuffer, dictBuffer, dictSize);
5455 }
5456 cdict->dictContentSize = dictSize;
5457 cdict->dictContentType = dictContentType;
5458
5459 cdict->entropyWorkspace = (U32*)ZSTD_cwksp_reserve_object(&cdict->workspace, HUF_WORKSPACE_SIZE);
5460
5461
5462 /* Reset the state to no dictionary */
5463 ZSTD_reset_compressedBlockState(&cdict->cBlockState);
5464 FORWARD_IF_ERROR(ZSTD_reset_matchState(
5465 &cdict->matchState,
5466 &cdict->workspace,
5467 ¶ms.cParams,
5468 params.useRowMatchFinder,
5469 ZSTDcrp_makeClean,
5470 ZSTDirp_reset,
5471 ZSTD_resetTarget_CDict), "");
5472 /* (Maybe) load the dictionary
5473 * Skips loading the dictionary if it is < 8 bytes.
5474 */
5475 { params.compressionLevel = ZSTD_CLEVEL_DEFAULT;
5476 params.fParams.contentSizeFlag = 1;
5477 { size_t const dictID = ZSTD_compress_insertDictionary(
5478 &cdict->cBlockState, &cdict->matchState, NULL, &cdict->workspace,
5479 ¶ms, cdict->dictContent, cdict->dictContentSize,
5480 dictContentType, ZSTD_dtlm_full, ZSTD_tfp_forCDict, cdict->entropyWorkspace);
5481 FORWARD_IF_ERROR(dictID, "ZSTD_compress_insertDictionary failed");
5482 assert(dictID <= (size_t)(U32)-1);
5483 cdict->dictID = (U32)dictID;
5484 }
5485 }
5486
5487 return 0;
5488 }
5489
5490 static ZSTD_CDict*
ZSTD_createCDict_advanced_internal(size_t dictSize,ZSTD_dictLoadMethod_e dictLoadMethod,ZSTD_compressionParameters cParams,ZSTD_ParamSwitch_e useRowMatchFinder,int enableDedicatedDictSearch,ZSTD_customMem customMem)5491 ZSTD_createCDict_advanced_internal(size_t dictSize,
5492 ZSTD_dictLoadMethod_e dictLoadMethod,
5493 ZSTD_compressionParameters cParams,
5494 ZSTD_ParamSwitch_e useRowMatchFinder,
5495 int enableDedicatedDictSearch,
5496 ZSTD_customMem customMem)
5497 {
5498 if ((!customMem.customAlloc) ^ (!customMem.customFree)) return NULL;
5499 DEBUGLOG(3, "ZSTD_createCDict_advanced_internal (dictSize=%u)", (unsigned)dictSize);
5500
5501 { size_t const workspaceSize =
5502 ZSTD_cwksp_alloc_size(sizeof(ZSTD_CDict)) +
5503 ZSTD_cwksp_alloc_size(HUF_WORKSPACE_SIZE) +
5504 ZSTD_sizeof_matchState(&cParams, useRowMatchFinder, enableDedicatedDictSearch, /* forCCtx */ 0) +
5505 (dictLoadMethod == ZSTD_dlm_byRef ? 0
5506 : ZSTD_cwksp_alloc_size(ZSTD_cwksp_align(dictSize, sizeof(void*))));
5507 void* const workspace = ZSTD_customMalloc(workspaceSize, customMem);
5508 ZSTD_cwksp ws;
5509 ZSTD_CDict* cdict;
5510
5511 if (!workspace) {
5512 ZSTD_customFree(workspace, customMem);
5513 return NULL;
5514 }
5515
5516 ZSTD_cwksp_init(&ws, workspace, workspaceSize, ZSTD_cwksp_dynamic_alloc);
5517
5518 cdict = (ZSTD_CDict*)ZSTD_cwksp_reserve_object(&ws, sizeof(ZSTD_CDict));
5519 assert(cdict != NULL);
5520 ZSTD_cwksp_move(&cdict->workspace, &ws);
5521 cdict->customMem = customMem;
5522 cdict->compressionLevel = ZSTD_NO_CLEVEL; /* signals advanced API usage */
5523 cdict->useRowMatchFinder = useRowMatchFinder;
5524 return cdict;
5525 }
5526 }
5527
ZSTD_createCDict_advanced(const void * dictBuffer,size_t dictSize,ZSTD_dictLoadMethod_e dictLoadMethod,ZSTD_dictContentType_e dictContentType,ZSTD_compressionParameters cParams,ZSTD_customMem customMem)5528 ZSTD_CDict* ZSTD_createCDict_advanced(const void* dictBuffer, size_t dictSize,
5529 ZSTD_dictLoadMethod_e dictLoadMethod,
5530 ZSTD_dictContentType_e dictContentType,
5531 ZSTD_compressionParameters cParams,
5532 ZSTD_customMem customMem)
5533 {
5534 ZSTD_CCtx_params cctxParams;
5535 ZSTD_memset(&cctxParams, 0, sizeof(cctxParams));
5536 DEBUGLOG(3, "ZSTD_createCDict_advanced, dictSize=%u, mode=%u", (unsigned)dictSize, (unsigned)dictContentType);
5537 ZSTD_CCtxParams_init(&cctxParams, 0);
5538 cctxParams.cParams = cParams;
5539 cctxParams.customMem = customMem;
5540 return ZSTD_createCDict_advanced2(
5541 dictBuffer, dictSize,
5542 dictLoadMethod, dictContentType,
5543 &cctxParams, customMem);
5544 }
5545
ZSTD_createCDict_advanced2(const void * dict,size_t dictSize,ZSTD_dictLoadMethod_e dictLoadMethod,ZSTD_dictContentType_e dictContentType,const ZSTD_CCtx_params * originalCctxParams,ZSTD_customMem customMem)5546 ZSTD_CDict* ZSTD_createCDict_advanced2(
5547 const void* dict, size_t dictSize,
5548 ZSTD_dictLoadMethod_e dictLoadMethod,
5549 ZSTD_dictContentType_e dictContentType,
5550 const ZSTD_CCtx_params* originalCctxParams,
5551 ZSTD_customMem customMem)
5552 {
5553 ZSTD_CCtx_params cctxParams = *originalCctxParams;
5554 ZSTD_compressionParameters cParams;
5555 ZSTD_CDict* cdict;
5556
5557 DEBUGLOG(3, "ZSTD_createCDict_advanced2, dictSize=%u, mode=%u", (unsigned)dictSize, (unsigned)dictContentType);
5558 if (!customMem.customAlloc ^ !customMem.customFree) return NULL;
5559
5560 if (cctxParams.enableDedicatedDictSearch) {
5561 cParams = ZSTD_dedicatedDictSearch_getCParams(
5562 cctxParams.compressionLevel, dictSize);
5563 ZSTD_overrideCParams(&cParams, &cctxParams.cParams);
5564 } else {
5565 cParams = ZSTD_getCParamsFromCCtxParams(
5566 &cctxParams, ZSTD_CONTENTSIZE_UNKNOWN, dictSize, ZSTD_cpm_createCDict);
5567 }
5568
5569 if (!ZSTD_dedicatedDictSearch_isSupported(&cParams)) {
5570 /* Fall back to non-DDSS params */
5571 cctxParams.enableDedicatedDictSearch = 0;
5572 cParams = ZSTD_getCParamsFromCCtxParams(
5573 &cctxParams, ZSTD_CONTENTSIZE_UNKNOWN, dictSize, ZSTD_cpm_createCDict);
5574 }
5575
5576 DEBUGLOG(3, "ZSTD_createCDict_advanced2: DedicatedDictSearch=%u", cctxParams.enableDedicatedDictSearch);
5577 cctxParams.cParams = cParams;
5578 cctxParams.useRowMatchFinder = ZSTD_resolveRowMatchFinderMode(cctxParams.useRowMatchFinder, &cParams);
5579
5580 cdict = ZSTD_createCDict_advanced_internal(dictSize,
5581 dictLoadMethod, cctxParams.cParams,
5582 cctxParams.useRowMatchFinder, cctxParams.enableDedicatedDictSearch,
5583 customMem);
5584
5585 if (!cdict || ZSTD_isError( ZSTD_initCDict_internal(cdict,
5586 dict, dictSize,
5587 dictLoadMethod, dictContentType,
5588 cctxParams) )) {
5589 ZSTD_freeCDict(cdict);
5590 return NULL;
5591 }
5592
5593 return cdict;
5594 }
5595
ZSTD_createCDict(const void * dict,size_t dictSize,int compressionLevel)5596 ZSTD_CDict* ZSTD_createCDict(const void* dict, size_t dictSize, int compressionLevel)
5597 {
5598 ZSTD_compressionParameters cParams = ZSTD_getCParams_internal(compressionLevel, ZSTD_CONTENTSIZE_UNKNOWN, dictSize, ZSTD_cpm_createCDict);
5599 ZSTD_CDict* const cdict = ZSTD_createCDict_advanced(dict, dictSize,
5600 ZSTD_dlm_byCopy, ZSTD_dct_auto,
5601 cParams, ZSTD_defaultCMem);
5602 if (cdict)
5603 cdict->compressionLevel = (compressionLevel == 0) ? ZSTD_CLEVEL_DEFAULT : compressionLevel;
5604 return cdict;
5605 }
5606
ZSTD_createCDict_byReference(const void * dict,size_t dictSize,int compressionLevel)5607 ZSTD_CDict* ZSTD_createCDict_byReference(const void* dict, size_t dictSize, int compressionLevel)
5608 {
5609 ZSTD_compressionParameters cParams = ZSTD_getCParams_internal(compressionLevel, ZSTD_CONTENTSIZE_UNKNOWN, dictSize, ZSTD_cpm_createCDict);
5610 ZSTD_CDict* const cdict = ZSTD_createCDict_advanced(dict, dictSize,
5611 ZSTD_dlm_byRef, ZSTD_dct_auto,
5612 cParams, ZSTD_defaultCMem);
5613 if (cdict)
5614 cdict->compressionLevel = (compressionLevel == 0) ? ZSTD_CLEVEL_DEFAULT : compressionLevel;
5615 return cdict;
5616 }
5617
ZSTD_freeCDict(ZSTD_CDict * cdict)5618 size_t ZSTD_freeCDict(ZSTD_CDict* cdict)
5619 {
5620 if (cdict==NULL) return 0; /* support free on NULL */
5621 { ZSTD_customMem const cMem = cdict->customMem;
5622 int cdictInWorkspace = ZSTD_cwksp_owns_buffer(&cdict->workspace, cdict);
5623 ZSTD_cwksp_free(&cdict->workspace, cMem);
5624 if (!cdictInWorkspace) {
5625 ZSTD_customFree(cdict, cMem);
5626 }
5627 return 0;
5628 }
5629 }
5630
5631 /*! ZSTD_initStaticCDict_advanced() :
5632 * Generate a digested dictionary in provided memory area.
5633 * workspace: The memory area to emplace the dictionary into.
5634 * Provided pointer must 8-bytes aligned.
5635 * It must outlive dictionary usage.
5636 * workspaceSize: Use ZSTD_estimateCDictSize()
5637 * to determine how large workspace must be.
5638 * cParams : use ZSTD_getCParams() to transform a compression level
5639 * into its relevant cParams.
5640 * @return : pointer to ZSTD_CDict*, or NULL if error (size too small)
5641 * Note : there is no corresponding "free" function.
5642 * Since workspace was allocated externally, it must be freed externally.
5643 */
ZSTD_initStaticCDict(void * workspace,size_t workspaceSize,const void * dict,size_t dictSize,ZSTD_dictLoadMethod_e dictLoadMethod,ZSTD_dictContentType_e dictContentType,ZSTD_compressionParameters cParams)5644 const ZSTD_CDict* ZSTD_initStaticCDict(
5645 void* workspace, size_t workspaceSize,
5646 const void* dict, size_t dictSize,
5647 ZSTD_dictLoadMethod_e dictLoadMethod,
5648 ZSTD_dictContentType_e dictContentType,
5649 ZSTD_compressionParameters cParams)
5650 {
5651 ZSTD_ParamSwitch_e const useRowMatchFinder = ZSTD_resolveRowMatchFinderMode(ZSTD_ps_auto, &cParams);
5652 /* enableDedicatedDictSearch == 1 ensures matchstate is not too small in case this CDict will be used for DDS + row hash */
5653 size_t const matchStateSize = ZSTD_sizeof_matchState(&cParams, useRowMatchFinder, /* enableDedicatedDictSearch */ 1, /* forCCtx */ 0);
5654 size_t const neededSize = ZSTD_cwksp_alloc_size(sizeof(ZSTD_CDict))
5655 + (dictLoadMethod == ZSTD_dlm_byRef ? 0
5656 : ZSTD_cwksp_alloc_size(ZSTD_cwksp_align(dictSize, sizeof(void*))))
5657 + ZSTD_cwksp_alloc_size(HUF_WORKSPACE_SIZE)
5658 + matchStateSize;
5659 ZSTD_CDict* cdict;
5660 ZSTD_CCtx_params params;
5661
5662 DEBUGLOG(4, "ZSTD_initStaticCDict (dictSize==%u)", (unsigned)dictSize);
5663 if ((size_t)workspace & 7) return NULL; /* 8-aligned */
5664
5665 {
5666 ZSTD_cwksp ws;
5667 ZSTD_cwksp_init(&ws, workspace, workspaceSize, ZSTD_cwksp_static_alloc);
5668 cdict = (ZSTD_CDict*)ZSTD_cwksp_reserve_object(&ws, sizeof(ZSTD_CDict));
5669 if (cdict == NULL) return NULL;
5670 ZSTD_cwksp_move(&cdict->workspace, &ws);
5671 }
5672
5673 if (workspaceSize < neededSize) return NULL;
5674
5675 ZSTD_CCtxParams_init(¶ms, 0);
5676 params.cParams = cParams;
5677 params.useRowMatchFinder = useRowMatchFinder;
5678 cdict->useRowMatchFinder = useRowMatchFinder;
5679 cdict->compressionLevel = ZSTD_NO_CLEVEL;
5680
5681 if (ZSTD_isError( ZSTD_initCDict_internal(cdict,
5682 dict, dictSize,
5683 dictLoadMethod, dictContentType,
5684 params) ))
5685 return NULL;
5686
5687 return cdict;
5688 }
5689
ZSTD_getCParamsFromCDict(const ZSTD_CDict * cdict)5690 ZSTD_compressionParameters ZSTD_getCParamsFromCDict(const ZSTD_CDict* cdict)
5691 {
5692 assert(cdict != NULL);
5693 return cdict->matchState.cParams;
5694 }
5695
5696 /*! ZSTD_getDictID_fromCDict() :
5697 * Provides the dictID of the dictionary loaded into `cdict`.
5698 * If @return == 0, the dictionary is not conformant to Zstandard specification, or empty.
5699 * Non-conformant dictionaries can still be loaded, but as content-only dictionaries. */
ZSTD_getDictID_fromCDict(const ZSTD_CDict * cdict)5700 unsigned ZSTD_getDictID_fromCDict(const ZSTD_CDict* cdict)
5701 {
5702 if (cdict==NULL) return 0;
5703 return cdict->dictID;
5704 }
5705
5706 /* ZSTD_compressBegin_usingCDict_internal() :
5707 * Implementation of various ZSTD_compressBegin_usingCDict* functions.
5708 */
ZSTD_compressBegin_usingCDict_internal(ZSTD_CCtx * const cctx,const ZSTD_CDict * const cdict,ZSTD_frameParameters const fParams,unsigned long long const pledgedSrcSize)5709 static size_t ZSTD_compressBegin_usingCDict_internal(
5710 ZSTD_CCtx* const cctx, const ZSTD_CDict* const cdict,
5711 ZSTD_frameParameters const fParams, unsigned long long const pledgedSrcSize)
5712 {
5713 ZSTD_CCtx_params cctxParams;
5714 DEBUGLOG(4, "ZSTD_compressBegin_usingCDict_internal");
5715 RETURN_ERROR_IF(cdict==NULL, dictionary_wrong, "NULL pointer!");
5716 /* Initialize the cctxParams from the cdict */
5717 {
5718 ZSTD_parameters params;
5719 params.fParams = fParams;
5720 params.cParams = ( pledgedSrcSize < ZSTD_USE_CDICT_PARAMS_SRCSIZE_CUTOFF
5721 || pledgedSrcSize < cdict->dictContentSize * ZSTD_USE_CDICT_PARAMS_DICTSIZE_MULTIPLIER
5722 || pledgedSrcSize == ZSTD_CONTENTSIZE_UNKNOWN
5723 || cdict->compressionLevel == 0 ) ?
5724 ZSTD_getCParamsFromCDict(cdict)
5725 : ZSTD_getCParams(cdict->compressionLevel,
5726 pledgedSrcSize,
5727 cdict->dictContentSize);
5728 ZSTD_CCtxParams_init_internal(&cctxParams, ¶ms, cdict->compressionLevel);
5729 }
5730 /* Increase window log to fit the entire dictionary and source if the
5731 * source size is known. Limit the increase to 19, which is the
5732 * window log for compression level 1 with the largest source size.
5733 */
5734 if (pledgedSrcSize != ZSTD_CONTENTSIZE_UNKNOWN) {
5735 U32 const limitedSrcSize = (U32)MIN(pledgedSrcSize, 1U << 19);
5736 U32 const limitedSrcLog = limitedSrcSize > 1 ? ZSTD_highbit32(limitedSrcSize - 1) + 1 : 1;
5737 cctxParams.cParams.windowLog = MAX(cctxParams.cParams.windowLog, limitedSrcLog);
5738 }
5739 return ZSTD_compressBegin_internal(cctx,
5740 NULL, 0, ZSTD_dct_auto, ZSTD_dtlm_fast,
5741 cdict,
5742 &cctxParams, pledgedSrcSize,
5743 ZSTDb_not_buffered);
5744 }
5745
5746
5747 /* ZSTD_compressBegin_usingCDict_advanced() :
5748 * This function is DEPRECATED.
5749 * cdict must be != NULL */
ZSTD_compressBegin_usingCDict_advanced(ZSTD_CCtx * const cctx,const ZSTD_CDict * const cdict,ZSTD_frameParameters const fParams,unsigned long long const pledgedSrcSize)5750 size_t ZSTD_compressBegin_usingCDict_advanced(
5751 ZSTD_CCtx* const cctx, const ZSTD_CDict* const cdict,
5752 ZSTD_frameParameters const fParams, unsigned long long const pledgedSrcSize)
5753 {
5754 return ZSTD_compressBegin_usingCDict_internal(cctx, cdict, fParams, pledgedSrcSize);
5755 }
5756
5757 /* ZSTD_compressBegin_usingCDict() :
5758 * cdict must be != NULL */
ZSTD_compressBegin_usingCDict_deprecated(ZSTD_CCtx * cctx,const ZSTD_CDict * cdict)5759 size_t ZSTD_compressBegin_usingCDict_deprecated(ZSTD_CCtx* cctx, const ZSTD_CDict* cdict)
5760 {
5761 ZSTD_frameParameters const fParams = { 0 /*content*/, 0 /*checksum*/, 0 /*noDictID*/ };
5762 return ZSTD_compressBegin_usingCDict_internal(cctx, cdict, fParams, ZSTD_CONTENTSIZE_UNKNOWN);
5763 }
5764
ZSTD_compressBegin_usingCDict(ZSTD_CCtx * cctx,const ZSTD_CDict * cdict)5765 size_t ZSTD_compressBegin_usingCDict(ZSTD_CCtx* cctx, const ZSTD_CDict* cdict)
5766 {
5767 return ZSTD_compressBegin_usingCDict_deprecated(cctx, cdict);
5768 }
5769
5770 /*! ZSTD_compress_usingCDict_internal():
5771 * Implementation of various ZSTD_compress_usingCDict* functions.
5772 */
ZSTD_compress_usingCDict_internal(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const void * src,size_t srcSize,const ZSTD_CDict * cdict,ZSTD_frameParameters fParams)5773 static size_t ZSTD_compress_usingCDict_internal(ZSTD_CCtx* cctx,
5774 void* dst, size_t dstCapacity,
5775 const void* src, size_t srcSize,
5776 const ZSTD_CDict* cdict, ZSTD_frameParameters fParams)
5777 {
5778 FORWARD_IF_ERROR(ZSTD_compressBegin_usingCDict_internal(cctx, cdict, fParams, srcSize), ""); /* will check if cdict != NULL */
5779 return ZSTD_compressEnd_public(cctx, dst, dstCapacity, src, srcSize);
5780 }
5781
5782 /*! ZSTD_compress_usingCDict_advanced():
5783 * This function is DEPRECATED.
5784 */
ZSTD_compress_usingCDict_advanced(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const void * src,size_t srcSize,const ZSTD_CDict * cdict,ZSTD_frameParameters fParams)5785 size_t ZSTD_compress_usingCDict_advanced(ZSTD_CCtx* cctx,
5786 void* dst, size_t dstCapacity,
5787 const void* src, size_t srcSize,
5788 const ZSTD_CDict* cdict, ZSTD_frameParameters fParams)
5789 {
5790 return ZSTD_compress_usingCDict_internal(cctx, dst, dstCapacity, src, srcSize, cdict, fParams);
5791 }
5792
5793 /*! ZSTD_compress_usingCDict() :
5794 * Compression using a digested Dictionary.
5795 * Faster startup than ZSTD_compress_usingDict(), recommended when same dictionary is used multiple times.
5796 * Note that compression parameters are decided at CDict creation time
5797 * while frame parameters are hardcoded */
ZSTD_compress_usingCDict(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const void * src,size_t srcSize,const ZSTD_CDict * cdict)5798 size_t ZSTD_compress_usingCDict(ZSTD_CCtx* cctx,
5799 void* dst, size_t dstCapacity,
5800 const void* src, size_t srcSize,
5801 const ZSTD_CDict* cdict)
5802 {
5803 ZSTD_frameParameters const fParams = { 1 /*content*/, 0 /*checksum*/, 0 /*noDictID*/ };
5804 return ZSTD_compress_usingCDict_internal(cctx, dst, dstCapacity, src, srcSize, cdict, fParams);
5805 }
5806
5807
5808
5809 /* ******************************************************************
5810 * Streaming
5811 ********************************************************************/
5812
ZSTD_createCStream(void)5813 ZSTD_CStream* ZSTD_createCStream(void)
5814 {
5815 DEBUGLOG(3, "ZSTD_createCStream");
5816 return ZSTD_createCStream_advanced(ZSTD_defaultCMem);
5817 }
5818
ZSTD_initStaticCStream(void * workspace,size_t workspaceSize)5819 ZSTD_CStream* ZSTD_initStaticCStream(void *workspace, size_t workspaceSize)
5820 {
5821 return ZSTD_initStaticCCtx(workspace, workspaceSize);
5822 }
5823
ZSTD_createCStream_advanced(ZSTD_customMem customMem)5824 ZSTD_CStream* ZSTD_createCStream_advanced(ZSTD_customMem customMem)
5825 { /* CStream and CCtx are now same object */
5826 return ZSTD_createCCtx_advanced(customMem);
5827 }
5828
ZSTD_freeCStream(ZSTD_CStream * zcs)5829 size_t ZSTD_freeCStream(ZSTD_CStream* zcs)
5830 {
5831 return ZSTD_freeCCtx(zcs); /* same object */
5832 }
5833
5834
5835
5836 /*====== Initialization ======*/
5837
ZSTD_CStreamInSize(void)5838 size_t ZSTD_CStreamInSize(void) { return ZSTD_BLOCKSIZE_MAX; }
5839
ZSTD_CStreamOutSize(void)5840 size_t ZSTD_CStreamOutSize(void)
5841 {
5842 return ZSTD_compressBound(ZSTD_BLOCKSIZE_MAX) + ZSTD_blockHeaderSize + 4 /* 32-bits hash */ ;
5843 }
5844
ZSTD_getCParamMode(ZSTD_CDict const * cdict,ZSTD_CCtx_params const * params,U64 pledgedSrcSize)5845 static ZSTD_CParamMode_e ZSTD_getCParamMode(ZSTD_CDict const* cdict, ZSTD_CCtx_params const* params, U64 pledgedSrcSize)
5846 {
5847 if (cdict != NULL && ZSTD_shouldAttachDict(cdict, params, pledgedSrcSize))
5848 return ZSTD_cpm_attachDict;
5849 else
5850 return ZSTD_cpm_noAttachDict;
5851 }
5852
5853 /* ZSTD_resetCStream():
5854 * pledgedSrcSize == 0 means "unknown" */
ZSTD_resetCStream(ZSTD_CStream * zcs,unsigned long long pss)5855 size_t ZSTD_resetCStream(ZSTD_CStream* zcs, unsigned long long pss)
5856 {
5857 /* temporary : 0 interpreted as "unknown" during transition period.
5858 * Users willing to specify "unknown" **must** use ZSTD_CONTENTSIZE_UNKNOWN.
5859 * 0 will be interpreted as "empty" in the future.
5860 */
5861 U64 const pledgedSrcSize = (pss==0) ? ZSTD_CONTENTSIZE_UNKNOWN : pss;
5862 DEBUGLOG(4, "ZSTD_resetCStream: pledgedSrcSize = %u", (unsigned)pledgedSrcSize);
5863 FORWARD_IF_ERROR( ZSTD_CCtx_reset(zcs, ZSTD_reset_session_only) , "");
5864 FORWARD_IF_ERROR( ZSTD_CCtx_setPledgedSrcSize(zcs, pledgedSrcSize) , "");
5865 return 0;
5866 }
5867
5868 /*! ZSTD_initCStream_internal() :
5869 * Note : for lib/compress only. Used by zstdmt_compress.c.
5870 * Assumption 1 : params are valid
5871 * Assumption 2 : either dict, or cdict, is defined, not both */
ZSTD_initCStream_internal(ZSTD_CStream * zcs,const void * dict,size_t dictSize,const ZSTD_CDict * cdict,const ZSTD_CCtx_params * params,unsigned long long pledgedSrcSize)5872 size_t ZSTD_initCStream_internal(ZSTD_CStream* zcs,
5873 const void* dict, size_t dictSize, const ZSTD_CDict* cdict,
5874 const ZSTD_CCtx_params* params,
5875 unsigned long long pledgedSrcSize)
5876 {
5877 DEBUGLOG(4, "ZSTD_initCStream_internal");
5878 FORWARD_IF_ERROR( ZSTD_CCtx_reset(zcs, ZSTD_reset_session_only) , "");
5879 FORWARD_IF_ERROR( ZSTD_CCtx_setPledgedSrcSize(zcs, pledgedSrcSize) , "");
5880 assert(!ZSTD_isError(ZSTD_checkCParams(params->cParams)));
5881 zcs->requestedParams = *params;
5882 assert(!((dict) && (cdict))); /* either dict or cdict, not both */
5883 if (dict) {
5884 FORWARD_IF_ERROR( ZSTD_CCtx_loadDictionary(zcs, dict, dictSize) , "");
5885 } else {
5886 /* Dictionary is cleared if !cdict */
5887 FORWARD_IF_ERROR( ZSTD_CCtx_refCDict(zcs, cdict) , "");
5888 }
5889 return 0;
5890 }
5891
5892 /* ZSTD_initCStream_usingCDict_advanced() :
5893 * same as ZSTD_initCStream_usingCDict(), with control over frame parameters */
ZSTD_initCStream_usingCDict_advanced(ZSTD_CStream * zcs,const ZSTD_CDict * cdict,ZSTD_frameParameters fParams,unsigned long long pledgedSrcSize)5894 size_t ZSTD_initCStream_usingCDict_advanced(ZSTD_CStream* zcs,
5895 const ZSTD_CDict* cdict,
5896 ZSTD_frameParameters fParams,
5897 unsigned long long pledgedSrcSize)
5898 {
5899 DEBUGLOG(4, "ZSTD_initCStream_usingCDict_advanced");
5900 FORWARD_IF_ERROR( ZSTD_CCtx_reset(zcs, ZSTD_reset_session_only) , "");
5901 FORWARD_IF_ERROR( ZSTD_CCtx_setPledgedSrcSize(zcs, pledgedSrcSize) , "");
5902 zcs->requestedParams.fParams = fParams;
5903 FORWARD_IF_ERROR( ZSTD_CCtx_refCDict(zcs, cdict) , "");
5904 return 0;
5905 }
5906
5907 /* note : cdict must outlive compression session */
ZSTD_initCStream_usingCDict(ZSTD_CStream * zcs,const ZSTD_CDict * cdict)5908 size_t ZSTD_initCStream_usingCDict(ZSTD_CStream* zcs, const ZSTD_CDict* cdict)
5909 {
5910 DEBUGLOG(4, "ZSTD_initCStream_usingCDict");
5911 FORWARD_IF_ERROR( ZSTD_CCtx_reset(zcs, ZSTD_reset_session_only) , "");
5912 FORWARD_IF_ERROR( ZSTD_CCtx_refCDict(zcs, cdict) , "");
5913 return 0;
5914 }
5915
5916
5917 /* ZSTD_initCStream_advanced() :
5918 * pledgedSrcSize must be exact.
5919 * if srcSize is not known at init time, use value ZSTD_CONTENTSIZE_UNKNOWN.
5920 * dict is loaded with default parameters ZSTD_dct_auto and ZSTD_dlm_byCopy. */
ZSTD_initCStream_advanced(ZSTD_CStream * zcs,const void * dict,size_t dictSize,ZSTD_parameters params,unsigned long long pss)5921 size_t ZSTD_initCStream_advanced(ZSTD_CStream* zcs,
5922 const void* dict, size_t dictSize,
5923 ZSTD_parameters params, unsigned long long pss)
5924 {
5925 /* for compatibility with older programs relying on this behavior.
5926 * Users should now specify ZSTD_CONTENTSIZE_UNKNOWN.
5927 * This line will be removed in the future.
5928 */
5929 U64 const pledgedSrcSize = (pss==0 && params.fParams.contentSizeFlag==0) ? ZSTD_CONTENTSIZE_UNKNOWN : pss;
5930 DEBUGLOG(4, "ZSTD_initCStream_advanced");
5931 FORWARD_IF_ERROR( ZSTD_CCtx_reset(zcs, ZSTD_reset_session_only) , "");
5932 FORWARD_IF_ERROR( ZSTD_CCtx_setPledgedSrcSize(zcs, pledgedSrcSize) , "");
5933 FORWARD_IF_ERROR( ZSTD_checkCParams(params.cParams) , "");
5934 ZSTD_CCtxParams_setZstdParams(&zcs->requestedParams, ¶ms);
5935 FORWARD_IF_ERROR( ZSTD_CCtx_loadDictionary(zcs, dict, dictSize) , "");
5936 return 0;
5937 }
5938
ZSTD_initCStream_usingDict(ZSTD_CStream * zcs,const void * dict,size_t dictSize,int compressionLevel)5939 size_t ZSTD_initCStream_usingDict(ZSTD_CStream* zcs, const void* dict, size_t dictSize, int compressionLevel)
5940 {
5941 DEBUGLOG(4, "ZSTD_initCStream_usingDict");
5942 FORWARD_IF_ERROR( ZSTD_CCtx_reset(zcs, ZSTD_reset_session_only) , "");
5943 FORWARD_IF_ERROR( ZSTD_CCtx_setParameter(zcs, ZSTD_c_compressionLevel, compressionLevel) , "");
5944 FORWARD_IF_ERROR( ZSTD_CCtx_loadDictionary(zcs, dict, dictSize) , "");
5945 return 0;
5946 }
5947
ZSTD_initCStream_srcSize(ZSTD_CStream * zcs,int compressionLevel,unsigned long long pss)5948 size_t ZSTD_initCStream_srcSize(ZSTD_CStream* zcs, int compressionLevel, unsigned long long pss)
5949 {
5950 /* temporary : 0 interpreted as "unknown" during transition period.
5951 * Users willing to specify "unknown" **must** use ZSTD_CONTENTSIZE_UNKNOWN.
5952 * 0 will be interpreted as "empty" in the future.
5953 */
5954 U64 const pledgedSrcSize = (pss==0) ? ZSTD_CONTENTSIZE_UNKNOWN : pss;
5955 DEBUGLOG(4, "ZSTD_initCStream_srcSize");
5956 FORWARD_IF_ERROR( ZSTD_CCtx_reset(zcs, ZSTD_reset_session_only) , "");
5957 FORWARD_IF_ERROR( ZSTD_CCtx_refCDict(zcs, NULL) , "");
5958 FORWARD_IF_ERROR( ZSTD_CCtx_setParameter(zcs, ZSTD_c_compressionLevel, compressionLevel) , "");
5959 FORWARD_IF_ERROR( ZSTD_CCtx_setPledgedSrcSize(zcs, pledgedSrcSize) , "");
5960 return 0;
5961 }
5962
ZSTD_initCStream(ZSTD_CStream * zcs,int compressionLevel)5963 size_t ZSTD_initCStream(ZSTD_CStream* zcs, int compressionLevel)
5964 {
5965 DEBUGLOG(4, "ZSTD_initCStream");
5966 FORWARD_IF_ERROR( ZSTD_CCtx_reset(zcs, ZSTD_reset_session_only) , "");
5967 FORWARD_IF_ERROR( ZSTD_CCtx_refCDict(zcs, NULL) , "");
5968 FORWARD_IF_ERROR( ZSTD_CCtx_setParameter(zcs, ZSTD_c_compressionLevel, compressionLevel) , "");
5969 return 0;
5970 }
5971
5972 /*====== Compression ======*/
5973
ZSTD_nextInputSizeHint(const ZSTD_CCtx * cctx)5974 static size_t ZSTD_nextInputSizeHint(const ZSTD_CCtx* cctx)
5975 {
5976 if (cctx->appliedParams.inBufferMode == ZSTD_bm_stable) {
5977 return cctx->blockSizeMax - cctx->stableIn_notConsumed;
5978 }
5979 assert(cctx->appliedParams.inBufferMode == ZSTD_bm_buffered);
5980 { size_t hintInSize = cctx->inBuffTarget - cctx->inBuffPos;
5981 if (hintInSize==0) hintInSize = cctx->blockSizeMax;
5982 return hintInSize;
5983 }
5984 }
5985
5986 /* ZSTD_compressStream_generic():
5987 * internal function for all *compressStream*() variants
5988 * @return : hint size for next input to complete ongoing block */
ZSTD_compressStream_generic(ZSTD_CStream * zcs,ZSTD_outBuffer * output,ZSTD_inBuffer * input,ZSTD_EndDirective const flushMode)5989 static size_t ZSTD_compressStream_generic(ZSTD_CStream* zcs,
5990 ZSTD_outBuffer* output,
5991 ZSTD_inBuffer* input,
5992 ZSTD_EndDirective const flushMode)
5993 {
5994 const char* const istart = (assert(input != NULL), (const char*)input->src);
5995 const char* const iend = (istart != NULL) ? istart + input->size : istart;
5996 const char* ip = (istart != NULL) ? istart + input->pos : istart;
5997 char* const ostart = (assert(output != NULL), (char*)output->dst);
5998 char* const oend = (ostart != NULL) ? ostart + output->size : ostart;
5999 char* op = (ostart != NULL) ? ostart + output->pos : ostart;
6000 U32 someMoreWork = 1;
6001
6002 /* check expectations */
6003 DEBUGLOG(5, "ZSTD_compressStream_generic, flush=%i, srcSize = %zu", (int)flushMode, input->size - input->pos);
6004 assert(zcs != NULL);
6005 if (zcs->appliedParams.inBufferMode == ZSTD_bm_stable) {
6006 assert(input->pos >= zcs->stableIn_notConsumed);
6007 input->pos -= zcs->stableIn_notConsumed;
6008 if (ip) ip -= zcs->stableIn_notConsumed;
6009 zcs->stableIn_notConsumed = 0;
6010 }
6011 if (zcs->appliedParams.inBufferMode == ZSTD_bm_buffered) {
6012 assert(zcs->inBuff != NULL);
6013 assert(zcs->inBuffSize > 0);
6014 }
6015 if (zcs->appliedParams.outBufferMode == ZSTD_bm_buffered) {
6016 assert(zcs->outBuff != NULL);
6017 assert(zcs->outBuffSize > 0);
6018 }
6019 if (input->src == NULL) assert(input->size == 0);
6020 assert(input->pos <= input->size);
6021 if (output->dst == NULL) assert(output->size == 0);
6022 assert(output->pos <= output->size);
6023 assert((U32)flushMode <= (U32)ZSTD_e_end);
6024
6025 while (someMoreWork) {
6026 switch(zcs->streamStage)
6027 {
6028 case zcss_init:
6029 RETURN_ERROR(init_missing, "call ZSTD_initCStream() first!");
6030
6031 case zcss_load:
6032 if ( (flushMode == ZSTD_e_end)
6033 && ( (size_t)(oend-op) >= ZSTD_compressBound((size_t)(iend-ip)) /* Enough output space */
6034 || zcs->appliedParams.outBufferMode == ZSTD_bm_stable) /* OR we are allowed to return dstSizeTooSmall */
6035 && (zcs->inBuffPos == 0) ) {
6036 /* shortcut to compression pass directly into output buffer */
6037 size_t const cSize = ZSTD_compressEnd_public(zcs,
6038 op, (size_t)(oend-op),
6039 ip, (size_t)(iend-ip));
6040 DEBUGLOG(4, "ZSTD_compressEnd : cSize=%u", (unsigned)cSize);
6041 FORWARD_IF_ERROR(cSize, "ZSTD_compressEnd failed");
6042 ip = iend;
6043 op += cSize;
6044 zcs->frameEnded = 1;
6045 ZSTD_CCtx_reset(zcs, ZSTD_reset_session_only);
6046 someMoreWork = 0; break;
6047 }
6048 /* complete loading into inBuffer in buffered mode */
6049 if (zcs->appliedParams.inBufferMode == ZSTD_bm_buffered) {
6050 size_t const toLoad = zcs->inBuffTarget - zcs->inBuffPos;
6051 size_t const loaded = ZSTD_limitCopy(
6052 zcs->inBuff + zcs->inBuffPos, toLoad,
6053 ip, (size_t)(iend-ip));
6054 zcs->inBuffPos += loaded;
6055 if (ip) ip += loaded;
6056 if ( (flushMode == ZSTD_e_continue)
6057 && (zcs->inBuffPos < zcs->inBuffTarget) ) {
6058 /* not enough input to fill full block : stop here */
6059 someMoreWork = 0; break;
6060 }
6061 if ( (flushMode == ZSTD_e_flush)
6062 && (zcs->inBuffPos == zcs->inToCompress) ) {
6063 /* empty */
6064 someMoreWork = 0; break;
6065 }
6066 } else {
6067 assert(zcs->appliedParams.inBufferMode == ZSTD_bm_stable);
6068 if ( (flushMode == ZSTD_e_continue)
6069 && ( (size_t)(iend - ip) < zcs->blockSizeMax) ) {
6070 /* can't compress a full block : stop here */
6071 zcs->stableIn_notConsumed = (size_t)(iend - ip);
6072 ip = iend; /* pretend to have consumed input */
6073 someMoreWork = 0; break;
6074 }
6075 if ( (flushMode == ZSTD_e_flush)
6076 && (ip == iend) ) {
6077 /* empty */
6078 someMoreWork = 0; break;
6079 }
6080 }
6081 /* compress current block (note : this stage cannot be stopped in the middle) */
6082 DEBUGLOG(5, "stream compression stage (flushMode==%u)", flushMode);
6083 { int const inputBuffered = (zcs->appliedParams.inBufferMode == ZSTD_bm_buffered);
6084 void* cDst;
6085 size_t cSize;
6086 size_t oSize = (size_t)(oend-op);
6087 size_t const iSize = inputBuffered ? zcs->inBuffPos - zcs->inToCompress
6088 : MIN((size_t)(iend - ip), zcs->blockSizeMax);
6089 if (oSize >= ZSTD_compressBound(iSize) || zcs->appliedParams.outBufferMode == ZSTD_bm_stable)
6090 cDst = op; /* compress into output buffer, to skip flush stage */
6091 else
6092 cDst = zcs->outBuff, oSize = zcs->outBuffSize;
6093 if (inputBuffered) {
6094 unsigned const lastBlock = (flushMode == ZSTD_e_end) && (ip==iend);
6095 cSize = lastBlock ?
6096 ZSTD_compressEnd_public(zcs, cDst, oSize,
6097 zcs->inBuff + zcs->inToCompress, iSize) :
6098 ZSTD_compressContinue_public(zcs, cDst, oSize,
6099 zcs->inBuff + zcs->inToCompress, iSize);
6100 FORWARD_IF_ERROR(cSize, "%s", lastBlock ? "ZSTD_compressEnd failed" : "ZSTD_compressContinue failed");
6101 zcs->frameEnded = lastBlock;
6102 /* prepare next block */
6103 zcs->inBuffTarget = zcs->inBuffPos + zcs->blockSizeMax;
6104 if (zcs->inBuffTarget > zcs->inBuffSize)
6105 zcs->inBuffPos = 0, zcs->inBuffTarget = zcs->blockSizeMax;
6106 DEBUGLOG(5, "inBuffTarget:%u / inBuffSize:%u",
6107 (unsigned)zcs->inBuffTarget, (unsigned)zcs->inBuffSize);
6108 if (!lastBlock)
6109 assert(zcs->inBuffTarget <= zcs->inBuffSize);
6110 zcs->inToCompress = zcs->inBuffPos;
6111 } else { /* !inputBuffered, hence ZSTD_bm_stable */
6112 unsigned const lastBlock = (flushMode == ZSTD_e_end) && (ip + iSize == iend);
6113 cSize = lastBlock ?
6114 ZSTD_compressEnd_public(zcs, cDst, oSize, ip, iSize) :
6115 ZSTD_compressContinue_public(zcs, cDst, oSize, ip, iSize);
6116 /* Consume the input prior to error checking to mirror buffered mode. */
6117 if (ip) ip += iSize;
6118 FORWARD_IF_ERROR(cSize, "%s", lastBlock ? "ZSTD_compressEnd failed" : "ZSTD_compressContinue failed");
6119 zcs->frameEnded = lastBlock;
6120 if (lastBlock) assert(ip == iend);
6121 }
6122 if (cDst == op) { /* no need to flush */
6123 op += cSize;
6124 if (zcs->frameEnded) {
6125 DEBUGLOG(5, "Frame completed directly in outBuffer");
6126 someMoreWork = 0;
6127 ZSTD_CCtx_reset(zcs, ZSTD_reset_session_only);
6128 }
6129 break;
6130 }
6131 zcs->outBuffContentSize = cSize;
6132 zcs->outBuffFlushedSize = 0;
6133 zcs->streamStage = zcss_flush; /* pass-through to flush stage */
6134 }
6135 ZSTD_FALLTHROUGH;
6136 case zcss_flush:
6137 DEBUGLOG(5, "flush stage");
6138 assert(zcs->appliedParams.outBufferMode == ZSTD_bm_buffered);
6139 { size_t const toFlush = zcs->outBuffContentSize - zcs->outBuffFlushedSize;
6140 size_t const flushed = ZSTD_limitCopy(op, (size_t)(oend-op),
6141 zcs->outBuff + zcs->outBuffFlushedSize, toFlush);
6142 DEBUGLOG(5, "toFlush: %u into %u ==> flushed: %u",
6143 (unsigned)toFlush, (unsigned)(oend-op), (unsigned)flushed);
6144 if (flushed)
6145 op += flushed;
6146 zcs->outBuffFlushedSize += flushed;
6147 if (toFlush!=flushed) {
6148 /* flush not fully completed, presumably because dst is too small */
6149 assert(op==oend);
6150 someMoreWork = 0;
6151 break;
6152 }
6153 zcs->outBuffContentSize = zcs->outBuffFlushedSize = 0;
6154 if (zcs->frameEnded) {
6155 DEBUGLOG(5, "Frame completed on flush");
6156 someMoreWork = 0;
6157 ZSTD_CCtx_reset(zcs, ZSTD_reset_session_only);
6158 break;
6159 }
6160 zcs->streamStage = zcss_load;
6161 break;
6162 }
6163
6164 default: /* impossible */
6165 assert(0);
6166 }
6167 }
6168
6169 input->pos = (size_t)(ip - istart);
6170 output->pos = (size_t)(op - ostart);
6171 if (zcs->frameEnded) return 0;
6172 return ZSTD_nextInputSizeHint(zcs);
6173 }
6174
ZSTD_nextInputSizeHint_MTorST(const ZSTD_CCtx * cctx)6175 static size_t ZSTD_nextInputSizeHint_MTorST(const ZSTD_CCtx* cctx)
6176 {
6177 return ZSTD_nextInputSizeHint(cctx);
6178
6179 }
6180
ZSTD_compressStream(ZSTD_CStream * zcs,ZSTD_outBuffer * output,ZSTD_inBuffer * input)6181 size_t ZSTD_compressStream(ZSTD_CStream* zcs, ZSTD_outBuffer* output, ZSTD_inBuffer* input)
6182 {
6183 FORWARD_IF_ERROR( ZSTD_compressStream2(zcs, output, input, ZSTD_e_continue) , "");
6184 return ZSTD_nextInputSizeHint_MTorST(zcs);
6185 }
6186
6187 /* After a compression call set the expected input/output buffer.
6188 * This is validated at the start of the next compression call.
6189 */
6190 static void
ZSTD_setBufferExpectations(ZSTD_CCtx * cctx,const ZSTD_outBuffer * output,const ZSTD_inBuffer * input)6191 ZSTD_setBufferExpectations(ZSTD_CCtx* cctx, const ZSTD_outBuffer* output, const ZSTD_inBuffer* input)
6192 {
6193 DEBUGLOG(5, "ZSTD_setBufferExpectations (for advanced stable in/out modes)");
6194 if (cctx->appliedParams.inBufferMode == ZSTD_bm_stable) {
6195 cctx->expectedInBuffer = *input;
6196 }
6197 if (cctx->appliedParams.outBufferMode == ZSTD_bm_stable) {
6198 cctx->expectedOutBufferSize = output->size - output->pos;
6199 }
6200 }
6201
6202 /* Validate that the input/output buffers match the expectations set by
6203 * ZSTD_setBufferExpectations.
6204 */
ZSTD_checkBufferStability(ZSTD_CCtx const * cctx,ZSTD_outBuffer const * output,ZSTD_inBuffer const * input,ZSTD_EndDirective endOp)6205 static size_t ZSTD_checkBufferStability(ZSTD_CCtx const* cctx,
6206 ZSTD_outBuffer const* output,
6207 ZSTD_inBuffer const* input,
6208 ZSTD_EndDirective endOp)
6209 {
6210 if (cctx->appliedParams.inBufferMode == ZSTD_bm_stable) {
6211 ZSTD_inBuffer const expect = cctx->expectedInBuffer;
6212 if (expect.src != input->src || expect.pos != input->pos)
6213 RETURN_ERROR(stabilityCondition_notRespected, "ZSTD_c_stableInBuffer enabled but input differs!");
6214 }
6215 (void)endOp;
6216 if (cctx->appliedParams.outBufferMode == ZSTD_bm_stable) {
6217 size_t const outBufferSize = output->size - output->pos;
6218 if (cctx->expectedOutBufferSize != outBufferSize)
6219 RETURN_ERROR(stabilityCondition_notRespected, "ZSTD_c_stableOutBuffer enabled but output size differs!");
6220 }
6221 return 0;
6222 }
6223
6224 /*
6225 * If @endOp == ZSTD_e_end, @inSize becomes pledgedSrcSize.
6226 * Otherwise, it's ignored.
6227 * @return: 0 on success, or a ZSTD_error code otherwise.
6228 */
ZSTD_CCtx_init_compressStream2(ZSTD_CCtx * cctx,ZSTD_EndDirective endOp,size_t inSize)6229 static size_t ZSTD_CCtx_init_compressStream2(ZSTD_CCtx* cctx,
6230 ZSTD_EndDirective endOp,
6231 size_t inSize)
6232 {
6233 ZSTD_CCtx_params params = cctx->requestedParams;
6234 ZSTD_prefixDict const prefixDict = cctx->prefixDict;
6235 FORWARD_IF_ERROR( ZSTD_initLocalDict(cctx) , ""); /* Init the local dict if present. */
6236 ZSTD_memset(&cctx->prefixDict, 0, sizeof(cctx->prefixDict)); /* single usage */
6237 assert(prefixDict.dict==NULL || cctx->cdict==NULL); /* only one can be set */
6238 if (cctx->cdict && !cctx->localDict.cdict) {
6239 /* Let the cdict's compression level take priority over the requested params.
6240 * But do not take the cdict's compression level if the "cdict" is actually a localDict
6241 * generated from ZSTD_initLocalDict().
6242 */
6243 params.compressionLevel = cctx->cdict->compressionLevel;
6244 }
6245 DEBUGLOG(4, "ZSTD_CCtx_init_compressStream2 : transparent init stage");
6246 if (endOp == ZSTD_e_end) cctx->pledgedSrcSizePlusOne = inSize + 1; /* auto-determine pledgedSrcSize */
6247
6248 { size_t const dictSize = prefixDict.dict
6249 ? prefixDict.dictSize
6250 : (cctx->cdict ? cctx->cdict->dictContentSize : 0);
6251 ZSTD_CParamMode_e const mode = ZSTD_getCParamMode(cctx->cdict, ¶ms, cctx->pledgedSrcSizePlusOne - 1);
6252 params.cParams = ZSTD_getCParamsFromCCtxParams(
6253 ¶ms, cctx->pledgedSrcSizePlusOne-1,
6254 dictSize, mode);
6255 }
6256
6257 params.postBlockSplitter = ZSTD_resolveBlockSplitterMode(params.postBlockSplitter, ¶ms.cParams);
6258 params.ldmParams.enableLdm = ZSTD_resolveEnableLdm(params.ldmParams.enableLdm, ¶ms.cParams);
6259 params.useRowMatchFinder = ZSTD_resolveRowMatchFinderMode(params.useRowMatchFinder, ¶ms.cParams);
6260 params.validateSequences = ZSTD_resolveExternalSequenceValidation(params.validateSequences);
6261 params.maxBlockSize = ZSTD_resolveMaxBlockSize(params.maxBlockSize);
6262 params.searchForExternalRepcodes = ZSTD_resolveExternalRepcodeSearch(params.searchForExternalRepcodes, params.compressionLevel);
6263
6264 { U64 const pledgedSrcSize = cctx->pledgedSrcSizePlusOne - 1;
6265 assert(!ZSTD_isError(ZSTD_checkCParams(params.cParams)));
6266 FORWARD_IF_ERROR( ZSTD_compressBegin_internal(cctx,
6267 prefixDict.dict, prefixDict.dictSize, prefixDict.dictContentType, ZSTD_dtlm_fast,
6268 cctx->cdict,
6269 ¶ms, pledgedSrcSize,
6270 ZSTDb_buffered) , "");
6271 assert(cctx->appliedParams.nbWorkers == 0);
6272 cctx->inToCompress = 0;
6273 cctx->inBuffPos = 0;
6274 if (cctx->appliedParams.inBufferMode == ZSTD_bm_buffered) {
6275 /* for small input: avoid automatic flush on reaching end of block, since
6276 * it would require to add a 3-bytes null block to end frame
6277 */
6278 cctx->inBuffTarget = cctx->blockSizeMax + (cctx->blockSizeMax == pledgedSrcSize);
6279 } else {
6280 cctx->inBuffTarget = 0;
6281 }
6282 cctx->outBuffContentSize = cctx->outBuffFlushedSize = 0;
6283 cctx->streamStage = zcss_load;
6284 cctx->frameEnded = 0;
6285 }
6286 return 0;
6287 }
6288
6289 /* @return provides a minimum amount of data remaining to be flushed from internal buffers
6290 */
ZSTD_compressStream2(ZSTD_CCtx * cctx,ZSTD_outBuffer * output,ZSTD_inBuffer * input,ZSTD_EndDirective endOp)6291 size_t ZSTD_compressStream2( ZSTD_CCtx* cctx,
6292 ZSTD_outBuffer* output,
6293 ZSTD_inBuffer* input,
6294 ZSTD_EndDirective endOp)
6295 {
6296 DEBUGLOG(5, "ZSTD_compressStream2, endOp=%u ", (unsigned)endOp);
6297 /* check conditions */
6298 RETURN_ERROR_IF(output->pos > output->size, dstSize_tooSmall, "invalid output buffer");
6299 RETURN_ERROR_IF(input->pos > input->size, srcSize_wrong, "invalid input buffer");
6300 RETURN_ERROR_IF((U32)endOp > (U32)ZSTD_e_end, parameter_outOfBound, "invalid endDirective");
6301 assert(cctx != NULL);
6302
6303 /* transparent initialization stage */
6304 if (cctx->streamStage == zcss_init) {
6305 size_t const inputSize = input->size - input->pos; /* no obligation to start from pos==0 */
6306 size_t const totalInputSize = inputSize + cctx->stableIn_notConsumed;
6307 if ( (cctx->requestedParams.inBufferMode == ZSTD_bm_stable) /* input is presumed stable, across invocations */
6308 && (endOp == ZSTD_e_continue) /* no flush requested, more input to come */
6309 && (totalInputSize < ZSTD_BLOCKSIZE_MAX) ) { /* not even reached one block yet */
6310 if (cctx->stableIn_notConsumed) { /* not the first time */
6311 /* check stable source guarantees */
6312 RETURN_ERROR_IF(input->src != cctx->expectedInBuffer.src, stabilityCondition_notRespected, "stableInBuffer condition not respected: wrong src pointer");
6313 RETURN_ERROR_IF(input->pos != cctx->expectedInBuffer.size, stabilityCondition_notRespected, "stableInBuffer condition not respected: externally modified pos");
6314 }
6315 /* pretend input was consumed, to give a sense forward progress */
6316 input->pos = input->size;
6317 /* save stable inBuffer, for later control, and flush/end */
6318 cctx->expectedInBuffer = *input;
6319 /* but actually input wasn't consumed, so keep track of position from where compression shall resume */
6320 cctx->stableIn_notConsumed += inputSize;
6321 /* don't initialize yet, wait for the first block of flush() order, for better parameters adaptation */
6322 return ZSTD_FRAMEHEADERSIZE_MIN(cctx->requestedParams.format); /* at least some header to produce */
6323 }
6324 FORWARD_IF_ERROR(ZSTD_CCtx_init_compressStream2(cctx, endOp, totalInputSize), "compressStream2 initialization failed");
6325 ZSTD_setBufferExpectations(cctx, output, input); /* Set initial buffer expectations now that we've initialized */
6326 }
6327 /* end of transparent initialization stage */
6328
6329 FORWARD_IF_ERROR(ZSTD_checkBufferStability(cctx, output, input, endOp), "invalid buffers");
6330 /* compression stage */
6331 FORWARD_IF_ERROR( ZSTD_compressStream_generic(cctx, output, input, endOp) , "");
6332 DEBUGLOG(5, "completed ZSTD_compressStream2");
6333 ZSTD_setBufferExpectations(cctx, output, input);
6334 return cctx->outBuffContentSize - cctx->outBuffFlushedSize; /* remaining to flush */
6335 }
6336
ZSTD_compressStream2_simpleArgs(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,size_t * dstPos,const void * src,size_t srcSize,size_t * srcPos,ZSTD_EndDirective endOp)6337 size_t ZSTD_compressStream2_simpleArgs (
6338 ZSTD_CCtx* cctx,
6339 void* dst, size_t dstCapacity, size_t* dstPos,
6340 const void* src, size_t srcSize, size_t* srcPos,
6341 ZSTD_EndDirective endOp)
6342 {
6343 ZSTD_outBuffer output;
6344 ZSTD_inBuffer input;
6345 output.dst = dst;
6346 output.size = dstCapacity;
6347 output.pos = *dstPos;
6348 input.src = src;
6349 input.size = srcSize;
6350 input.pos = *srcPos;
6351 /* ZSTD_compressStream2() will check validity of dstPos and srcPos */
6352 { size_t const cErr = ZSTD_compressStream2(cctx, &output, &input, endOp);
6353 *dstPos = output.pos;
6354 *srcPos = input.pos;
6355 return cErr;
6356 }
6357 }
6358
ZSTD_compress2(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const void * src,size_t srcSize)6359 size_t ZSTD_compress2(ZSTD_CCtx* cctx,
6360 void* dst, size_t dstCapacity,
6361 const void* src, size_t srcSize)
6362 {
6363 ZSTD_bufferMode_e const originalInBufferMode = cctx->requestedParams.inBufferMode;
6364 ZSTD_bufferMode_e const originalOutBufferMode = cctx->requestedParams.outBufferMode;
6365 DEBUGLOG(4, "ZSTD_compress2 (srcSize=%u)", (unsigned)srcSize);
6366 ZSTD_CCtx_reset(cctx, ZSTD_reset_session_only);
6367 /* Enable stable input/output buffers. */
6368 cctx->requestedParams.inBufferMode = ZSTD_bm_stable;
6369 cctx->requestedParams.outBufferMode = ZSTD_bm_stable;
6370 { size_t oPos = 0;
6371 size_t iPos = 0;
6372 size_t const result = ZSTD_compressStream2_simpleArgs(cctx,
6373 dst, dstCapacity, &oPos,
6374 src, srcSize, &iPos,
6375 ZSTD_e_end);
6376 /* Reset to the original values. */
6377 cctx->requestedParams.inBufferMode = originalInBufferMode;
6378 cctx->requestedParams.outBufferMode = originalOutBufferMode;
6379
6380 FORWARD_IF_ERROR(result, "ZSTD_compressStream2_simpleArgs failed");
6381 if (result != 0) { /* compression not completed, due to lack of output space */
6382 assert(oPos == dstCapacity);
6383 RETURN_ERROR(dstSize_tooSmall, "");
6384 }
6385 assert(iPos == srcSize); /* all input is expected consumed */
6386 return oPos;
6387 }
6388 }
6389
6390 /* ZSTD_validateSequence() :
6391 * @offBase : must use the format required by ZSTD_storeSeq()
6392 * @returns a ZSTD error code if sequence is not valid
6393 */
6394 static size_t
ZSTD_validateSequence(U32 offBase,U32 matchLength,U32 minMatch,size_t posInSrc,U32 windowLog,size_t dictSize,int useSequenceProducer)6395 ZSTD_validateSequence(U32 offBase, U32 matchLength, U32 minMatch,
6396 size_t posInSrc, U32 windowLog, size_t dictSize, int useSequenceProducer)
6397 {
6398 U32 const windowSize = 1u << windowLog;
6399 /* posInSrc represents the amount of data the decoder would decode up to this point.
6400 * As long as the amount of data decoded is less than or equal to window size, offsets may be
6401 * larger than the total length of output decoded in order to reference the dict, even larger than
6402 * window size. After output surpasses windowSize, we're limited to windowSize offsets again.
6403 */
6404 size_t const offsetBound = posInSrc > windowSize ? (size_t)windowSize : posInSrc + (size_t)dictSize;
6405 size_t const matchLenLowerBound = (minMatch == 3 || useSequenceProducer) ? 3 : 4;
6406 RETURN_ERROR_IF(offBase > OFFSET_TO_OFFBASE(offsetBound), externalSequences_invalid, "Offset too large!");
6407 /* Validate maxNbSeq is large enough for the given matchLength and minMatch */
6408 RETURN_ERROR_IF(matchLength < matchLenLowerBound, externalSequences_invalid, "Matchlength too small for the minMatch");
6409 return 0;
6410 }
6411
6412 /* Returns an offset code, given a sequence's raw offset, the ongoing repcode array, and whether litLength == 0 */
ZSTD_finalizeOffBase(U32 rawOffset,const U32 rep[ZSTD_REP_NUM],U32 ll0)6413 static U32 ZSTD_finalizeOffBase(U32 rawOffset, const U32 rep[ZSTD_REP_NUM], U32 ll0)
6414 {
6415 U32 offBase = OFFSET_TO_OFFBASE(rawOffset);
6416
6417 if (!ll0 && rawOffset == rep[0]) {
6418 offBase = REPCODE1_TO_OFFBASE;
6419 } else if (rawOffset == rep[1]) {
6420 offBase = REPCODE_TO_OFFBASE(2 - ll0);
6421 } else if (rawOffset == rep[2]) {
6422 offBase = REPCODE_TO_OFFBASE(3 - ll0);
6423 } else if (ll0 && rawOffset == rep[0] - 1) {
6424 offBase = REPCODE3_TO_OFFBASE;
6425 }
6426 return offBase;
6427 }
6428
6429 /* This function scans through an array of ZSTD_Sequence,
6430 * storing the sequences it reads, until it reaches a block delimiter.
6431 * Note that the block delimiter includes the last literals of the block.
6432 * @blockSize must be == sum(sequence_lengths).
6433 * @returns @blockSize on success, and a ZSTD_error otherwise.
6434 */
6435 static size_t
ZSTD_transferSequences_wBlockDelim(ZSTD_CCtx * cctx,ZSTD_SequencePosition * seqPos,const ZSTD_Sequence * const inSeqs,size_t inSeqsSize,const void * src,size_t blockSize,ZSTD_ParamSwitch_e externalRepSearch)6436 ZSTD_transferSequences_wBlockDelim(ZSTD_CCtx* cctx,
6437 ZSTD_SequencePosition* seqPos,
6438 const ZSTD_Sequence* const inSeqs, size_t inSeqsSize,
6439 const void* src, size_t blockSize,
6440 ZSTD_ParamSwitch_e externalRepSearch)
6441 {
6442 U32 idx = seqPos->idx;
6443 U32 const startIdx = idx;
6444 BYTE const* ip = (BYTE const*)(src);
6445 const BYTE* const iend = ip + blockSize;
6446 Repcodes_t updatedRepcodes;
6447 U32 dictSize;
6448
6449 DEBUGLOG(5, "ZSTD_transferSequences_wBlockDelim (blockSize = %zu)", blockSize);
6450
6451 if (cctx->cdict) {
6452 dictSize = (U32)cctx->cdict->dictContentSize;
6453 } else if (cctx->prefixDict.dict) {
6454 dictSize = (U32)cctx->prefixDict.dictSize;
6455 } else {
6456 dictSize = 0;
6457 }
6458 ZSTD_memcpy(updatedRepcodes.rep, cctx->blockState.prevCBlock->rep, sizeof(Repcodes_t));
6459 for (; idx < inSeqsSize && (inSeqs[idx].matchLength != 0 || inSeqs[idx].offset != 0); ++idx) {
6460 U32 const litLength = inSeqs[idx].litLength;
6461 U32 const matchLength = inSeqs[idx].matchLength;
6462 U32 offBase;
6463
6464 if (externalRepSearch == ZSTD_ps_disable) {
6465 offBase = OFFSET_TO_OFFBASE(inSeqs[idx].offset);
6466 } else {
6467 U32 const ll0 = (litLength == 0);
6468 offBase = ZSTD_finalizeOffBase(inSeqs[idx].offset, updatedRepcodes.rep, ll0);
6469 ZSTD_updateRep(updatedRepcodes.rep, offBase, ll0);
6470 }
6471
6472 DEBUGLOG(6, "Storing sequence: (of: %u, ml: %u, ll: %u)", offBase, matchLength, litLength);
6473 if (cctx->appliedParams.validateSequences) {
6474 seqPos->posInSrc += litLength + matchLength;
6475 FORWARD_IF_ERROR(ZSTD_validateSequence(offBase, matchLength, cctx->appliedParams.cParams.minMatch,
6476 seqPos->posInSrc,
6477 cctx->appliedParams.cParams.windowLog, dictSize,
6478 ZSTD_hasExtSeqProd(&cctx->appliedParams)),
6479 "Sequence validation failed");
6480 }
6481 RETURN_ERROR_IF(idx - seqPos->idx >= cctx->seqStore.maxNbSeq, externalSequences_invalid,
6482 "Not enough memory allocated. Try adjusting ZSTD_c_minMatch.");
6483 ZSTD_storeSeq(&cctx->seqStore, litLength, ip, iend, offBase, matchLength);
6484 ip += matchLength + litLength;
6485 }
6486 RETURN_ERROR_IF(idx == inSeqsSize, externalSequences_invalid, "Block delimiter not found.");
6487
6488 /* If we skipped repcode search while parsing, we need to update repcodes now */
6489 assert(externalRepSearch != ZSTD_ps_auto);
6490 assert(idx >= startIdx);
6491 if (externalRepSearch == ZSTD_ps_disable && idx != startIdx) {
6492 U32* const rep = updatedRepcodes.rep;
6493 U32 lastSeqIdx = idx - 1; /* index of last non-block-delimiter sequence */
6494
6495 if (lastSeqIdx >= startIdx + 2) {
6496 rep[2] = inSeqs[lastSeqIdx - 2].offset;
6497 rep[1] = inSeqs[lastSeqIdx - 1].offset;
6498 rep[0] = inSeqs[lastSeqIdx].offset;
6499 } else if (lastSeqIdx == startIdx + 1) {
6500 rep[2] = rep[0];
6501 rep[1] = inSeqs[lastSeqIdx - 1].offset;
6502 rep[0] = inSeqs[lastSeqIdx].offset;
6503 } else {
6504 assert(lastSeqIdx == startIdx);
6505 rep[2] = rep[1];
6506 rep[1] = rep[0];
6507 rep[0] = inSeqs[lastSeqIdx].offset;
6508 }
6509 }
6510
6511 ZSTD_memcpy(cctx->blockState.nextCBlock->rep, updatedRepcodes.rep, sizeof(Repcodes_t));
6512
6513 if (inSeqs[idx].litLength) {
6514 DEBUGLOG(6, "Storing last literals of size: %u", inSeqs[idx].litLength);
6515 ZSTD_storeLastLiterals(&cctx->seqStore, ip, inSeqs[idx].litLength);
6516 ip += inSeqs[idx].litLength;
6517 seqPos->posInSrc += inSeqs[idx].litLength;
6518 }
6519 RETURN_ERROR_IF(ip != iend, externalSequences_invalid, "Blocksize doesn't agree with block delimiter!");
6520 seqPos->idx = idx+1;
6521 return blockSize;
6522 }
6523
6524 /*
6525 * This function attempts to scan through @blockSize bytes in @src
6526 * represented by the sequences in @inSeqs,
6527 * storing any (partial) sequences.
6528 *
6529 * Occasionally, we may want to reduce the actual number of bytes consumed from @src
6530 * to avoid splitting a match, notably if it would produce a match smaller than MINMATCH.
6531 *
6532 * @returns the number of bytes consumed from @src, necessarily <= @blockSize.
6533 * Otherwise, it may return a ZSTD error if something went wrong.
6534 */
6535 static size_t
ZSTD_transferSequences_noDelim(ZSTD_CCtx * cctx,ZSTD_SequencePosition * seqPos,const ZSTD_Sequence * const inSeqs,size_t inSeqsSize,const void * src,size_t blockSize,ZSTD_ParamSwitch_e externalRepSearch)6536 ZSTD_transferSequences_noDelim(ZSTD_CCtx* cctx,
6537 ZSTD_SequencePosition* seqPos,
6538 const ZSTD_Sequence* const inSeqs, size_t inSeqsSize,
6539 const void* src, size_t blockSize,
6540 ZSTD_ParamSwitch_e externalRepSearch)
6541 {
6542 U32 idx = seqPos->idx;
6543 U32 startPosInSequence = seqPos->posInSequence;
6544 U32 endPosInSequence = seqPos->posInSequence + (U32)blockSize;
6545 size_t dictSize;
6546 const BYTE* const istart = (const BYTE*)(src);
6547 const BYTE* ip = istart;
6548 const BYTE* iend = istart + blockSize; /* May be adjusted if we decide to process fewer than blockSize bytes */
6549 Repcodes_t updatedRepcodes;
6550 U32 bytesAdjustment = 0;
6551 U32 finalMatchSplit = 0;
6552
6553 /* TODO(embg) support fast parsing mode in noBlockDelim mode */
6554 (void)externalRepSearch;
6555
6556 if (cctx->cdict) {
6557 dictSize = cctx->cdict->dictContentSize;
6558 } else if (cctx->prefixDict.dict) {
6559 dictSize = cctx->prefixDict.dictSize;
6560 } else {
6561 dictSize = 0;
6562 }
6563 DEBUGLOG(5, "ZSTD_transferSequences_noDelim: idx: %u PIS: %u blockSize: %zu", idx, startPosInSequence, blockSize);
6564 DEBUGLOG(5, "Start seq: idx: %u (of: %u ml: %u ll: %u)", idx, inSeqs[idx].offset, inSeqs[idx].matchLength, inSeqs[idx].litLength);
6565 ZSTD_memcpy(updatedRepcodes.rep, cctx->blockState.prevCBlock->rep, sizeof(Repcodes_t));
6566 while (endPosInSequence && idx < inSeqsSize && !finalMatchSplit) {
6567 const ZSTD_Sequence currSeq = inSeqs[idx];
6568 U32 litLength = currSeq.litLength;
6569 U32 matchLength = currSeq.matchLength;
6570 U32 const rawOffset = currSeq.offset;
6571 U32 offBase;
6572
6573 /* Modify the sequence depending on where endPosInSequence lies */
6574 if (endPosInSequence >= currSeq.litLength + currSeq.matchLength) {
6575 if (startPosInSequence >= litLength) {
6576 startPosInSequence -= litLength;
6577 litLength = 0;
6578 matchLength -= startPosInSequence;
6579 } else {
6580 litLength -= startPosInSequence;
6581 }
6582 /* Move to the next sequence */
6583 endPosInSequence -= currSeq.litLength + currSeq.matchLength;
6584 startPosInSequence = 0;
6585 } else {
6586 /* This is the final (partial) sequence we're adding from inSeqs, and endPosInSequence
6587 does not reach the end of the match. So, we have to split the sequence */
6588 DEBUGLOG(6, "Require a split: diff: %u, idx: %u PIS: %u",
6589 currSeq.litLength + currSeq.matchLength - endPosInSequence, idx, endPosInSequence);
6590 if (endPosInSequence > litLength) {
6591 U32 firstHalfMatchLength;
6592 litLength = startPosInSequence >= litLength ? 0 : litLength - startPosInSequence;
6593 firstHalfMatchLength = endPosInSequence - startPosInSequence - litLength;
6594 if (matchLength > blockSize && firstHalfMatchLength >= cctx->appliedParams.cParams.minMatch) {
6595 /* Only ever split the match if it is larger than the block size */
6596 U32 secondHalfMatchLength = currSeq.matchLength + currSeq.litLength - endPosInSequence;
6597 if (secondHalfMatchLength < cctx->appliedParams.cParams.minMatch) {
6598 /* Move the endPosInSequence backward so that it creates match of minMatch length */
6599 endPosInSequence -= cctx->appliedParams.cParams.minMatch - secondHalfMatchLength;
6600 bytesAdjustment = cctx->appliedParams.cParams.minMatch - secondHalfMatchLength;
6601 firstHalfMatchLength -= bytesAdjustment;
6602 }
6603 matchLength = firstHalfMatchLength;
6604 /* Flag that we split the last match - after storing the sequence, exit the loop,
6605 but keep the value of endPosInSequence */
6606 finalMatchSplit = 1;
6607 } else {
6608 /* Move the position in sequence backwards so that we don't split match, and break to store
6609 * the last literals. We use the original currSeq.litLength as a marker for where endPosInSequence
6610 * should go. We prefer to do this whenever it is not necessary to split the match, or if doing so
6611 * would cause the first half of the match to be too small
6612 */
6613 bytesAdjustment = endPosInSequence - currSeq.litLength;
6614 endPosInSequence = currSeq.litLength;
6615 break;
6616 }
6617 } else {
6618 /* This sequence ends inside the literals, break to store the last literals */
6619 break;
6620 }
6621 }
6622 /* Check if this offset can be represented with a repcode */
6623 { U32 const ll0 = (litLength == 0);
6624 offBase = ZSTD_finalizeOffBase(rawOffset, updatedRepcodes.rep, ll0);
6625 ZSTD_updateRep(updatedRepcodes.rep, offBase, ll0);
6626 }
6627
6628 if (cctx->appliedParams.validateSequences) {
6629 seqPos->posInSrc += litLength + matchLength;
6630 FORWARD_IF_ERROR(ZSTD_validateSequence(offBase, matchLength, cctx->appliedParams.cParams.minMatch, seqPos->posInSrc,
6631 cctx->appliedParams.cParams.windowLog, dictSize, ZSTD_hasExtSeqProd(&cctx->appliedParams)),
6632 "Sequence validation failed");
6633 }
6634 DEBUGLOG(6, "Storing sequence: (of: %u, ml: %u, ll: %u)", offBase, matchLength, litLength);
6635 RETURN_ERROR_IF(idx - seqPos->idx >= cctx->seqStore.maxNbSeq, externalSequences_invalid,
6636 "Not enough memory allocated. Try adjusting ZSTD_c_minMatch.");
6637 ZSTD_storeSeq(&cctx->seqStore, litLength, ip, iend, offBase, matchLength);
6638 ip += matchLength + litLength;
6639 if (!finalMatchSplit)
6640 idx++; /* Next Sequence */
6641 }
6642 DEBUGLOG(5, "Ending seq: idx: %u (of: %u ml: %u ll: %u)", idx, inSeqs[idx].offset, inSeqs[idx].matchLength, inSeqs[idx].litLength);
6643 assert(idx == inSeqsSize || endPosInSequence <= inSeqs[idx].litLength + inSeqs[idx].matchLength);
6644 seqPos->idx = idx;
6645 seqPos->posInSequence = endPosInSequence;
6646 ZSTD_memcpy(cctx->blockState.nextCBlock->rep, updatedRepcodes.rep, sizeof(Repcodes_t));
6647
6648 iend -= bytesAdjustment;
6649 if (ip != iend) {
6650 /* Store any last literals */
6651 U32 const lastLLSize = (U32)(iend - ip);
6652 assert(ip <= iend);
6653 DEBUGLOG(6, "Storing last literals of size: %u", lastLLSize);
6654 ZSTD_storeLastLiterals(&cctx->seqStore, ip, lastLLSize);
6655 seqPos->posInSrc += lastLLSize;
6656 }
6657
6658 return (size_t)(iend-istart);
6659 }
6660
6661 /* @seqPos represents a position within @inSeqs,
6662 * it is read and updated by this function,
6663 * once the goal to produce a block of size @blockSize is reached.
6664 * @return: nb of bytes consumed from @src, necessarily <= @blockSize.
6665 */
6666 typedef size_t (*ZSTD_SequenceCopier_f)(ZSTD_CCtx* cctx,
6667 ZSTD_SequencePosition* seqPos,
6668 const ZSTD_Sequence* const inSeqs, size_t inSeqsSize,
6669 const void* src, size_t blockSize,
6670 ZSTD_ParamSwitch_e externalRepSearch);
6671
ZSTD_selectSequenceCopier(ZSTD_SequenceFormat_e mode)6672 static ZSTD_SequenceCopier_f ZSTD_selectSequenceCopier(ZSTD_SequenceFormat_e mode)
6673 {
6674 assert(ZSTD_cParam_withinBounds(ZSTD_c_blockDelimiters, (int)mode));
6675 if (mode == ZSTD_sf_explicitBlockDelimiters) {
6676 return ZSTD_transferSequences_wBlockDelim;
6677 }
6678 assert(mode == ZSTD_sf_noBlockDelimiters);
6679 return ZSTD_transferSequences_noDelim;
6680 }
6681
6682 /* Discover the size of next block by searching for the delimiter.
6683 * Note that a block delimiter **must** exist in this mode,
6684 * otherwise it's an input error.
6685 * The block size retrieved will be later compared to ensure it remains within bounds */
6686 static size_t
blockSize_explicitDelimiter(const ZSTD_Sequence * inSeqs,size_t inSeqsSize,ZSTD_SequencePosition seqPos)6687 blockSize_explicitDelimiter(const ZSTD_Sequence* inSeqs, size_t inSeqsSize, ZSTD_SequencePosition seqPos)
6688 {
6689 int end = 0;
6690 size_t blockSize = 0;
6691 size_t spos = seqPos.idx;
6692 DEBUGLOG(6, "blockSize_explicitDelimiter : seq %zu / %zu", spos, inSeqsSize);
6693 assert(spos <= inSeqsSize);
6694 while (spos < inSeqsSize) {
6695 end = (inSeqs[spos].offset == 0);
6696 blockSize += inSeqs[spos].litLength + inSeqs[spos].matchLength;
6697 if (end) {
6698 if (inSeqs[spos].matchLength != 0)
6699 RETURN_ERROR(externalSequences_invalid, "delimiter format error : both matchlength and offset must be == 0");
6700 break;
6701 }
6702 spos++;
6703 }
6704 if (!end)
6705 RETURN_ERROR(externalSequences_invalid, "Reached end of sequences without finding a block delimiter");
6706 return blockSize;
6707 }
6708
determine_blockSize(ZSTD_SequenceFormat_e mode,size_t blockSize,size_t remaining,const ZSTD_Sequence * inSeqs,size_t inSeqsSize,ZSTD_SequencePosition seqPos)6709 static size_t determine_blockSize(ZSTD_SequenceFormat_e mode,
6710 size_t blockSize, size_t remaining,
6711 const ZSTD_Sequence* inSeqs, size_t inSeqsSize,
6712 ZSTD_SequencePosition seqPos)
6713 {
6714 DEBUGLOG(6, "determine_blockSize : remainingSize = %zu", remaining);
6715 if (mode == ZSTD_sf_noBlockDelimiters) {
6716 /* Note: more a "target" block size */
6717 return MIN(remaining, blockSize);
6718 }
6719 assert(mode == ZSTD_sf_explicitBlockDelimiters);
6720 { size_t const explicitBlockSize = blockSize_explicitDelimiter(inSeqs, inSeqsSize, seqPos);
6721 FORWARD_IF_ERROR(explicitBlockSize, "Error while determining block size with explicit delimiters");
6722 if (explicitBlockSize > blockSize)
6723 RETURN_ERROR(externalSequences_invalid, "sequences incorrectly define a too large block");
6724 if (explicitBlockSize > remaining)
6725 RETURN_ERROR(externalSequences_invalid, "sequences define a frame longer than source");
6726 return explicitBlockSize;
6727 }
6728 }
6729
6730 /* Compress all provided sequences, block-by-block.
6731 *
6732 * Returns the cumulative size of all compressed blocks (including their headers),
6733 * otherwise a ZSTD error.
6734 */
6735 static size_t
ZSTD_compressSequences_internal(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const ZSTD_Sequence * inSeqs,size_t inSeqsSize,const void * src,size_t srcSize)6736 ZSTD_compressSequences_internal(ZSTD_CCtx* cctx,
6737 void* dst, size_t dstCapacity,
6738 const ZSTD_Sequence* inSeqs, size_t inSeqsSize,
6739 const void* src, size_t srcSize)
6740 {
6741 size_t cSize = 0;
6742 size_t remaining = srcSize;
6743 ZSTD_SequencePosition seqPos = {0, 0, 0};
6744
6745 const BYTE* ip = (BYTE const*)src;
6746 BYTE* op = (BYTE*)dst;
6747 ZSTD_SequenceCopier_f const sequenceCopier = ZSTD_selectSequenceCopier(cctx->appliedParams.blockDelimiters);
6748
6749 DEBUGLOG(4, "ZSTD_compressSequences_internal srcSize: %zu, inSeqsSize: %zu", srcSize, inSeqsSize);
6750 /* Special case: empty frame */
6751 if (remaining == 0) {
6752 U32 const cBlockHeader24 = 1 /* last block */ + (((U32)bt_raw)<<1);
6753 RETURN_ERROR_IF(dstCapacity<4, dstSize_tooSmall, "No room for empty frame block header");
6754 MEM_writeLE32(op, cBlockHeader24);
6755 op += ZSTD_blockHeaderSize;
6756 dstCapacity -= ZSTD_blockHeaderSize;
6757 cSize += ZSTD_blockHeaderSize;
6758 }
6759
6760 while (remaining) {
6761 size_t compressedSeqsSize;
6762 size_t cBlockSize;
6763 size_t blockSize = determine_blockSize(cctx->appliedParams.blockDelimiters,
6764 cctx->blockSizeMax, remaining,
6765 inSeqs, inSeqsSize, seqPos);
6766 U32 const lastBlock = (blockSize == remaining);
6767 FORWARD_IF_ERROR(blockSize, "Error while trying to determine block size");
6768 assert(blockSize <= remaining);
6769 ZSTD_resetSeqStore(&cctx->seqStore);
6770
6771 blockSize = sequenceCopier(cctx,
6772 &seqPos, inSeqs, inSeqsSize,
6773 ip, blockSize,
6774 cctx->appliedParams.searchForExternalRepcodes);
6775 FORWARD_IF_ERROR(blockSize, "Bad sequence copy");
6776
6777 /* If blocks are too small, emit as a nocompress block */
6778 /* TODO: See 3090. We reduced MIN_CBLOCK_SIZE from 3 to 2 so to compensate we are adding
6779 * additional 1. We need to revisit and change this logic to be more consistent */
6780 if (blockSize < MIN_CBLOCK_SIZE+ZSTD_blockHeaderSize+1+1) {
6781 cBlockSize = ZSTD_noCompressBlock(op, dstCapacity, ip, blockSize, lastBlock);
6782 FORWARD_IF_ERROR(cBlockSize, "Nocompress block failed");
6783 DEBUGLOG(5, "Block too small (%zu): data remains uncompressed: cSize=%zu", blockSize, cBlockSize);
6784 cSize += cBlockSize;
6785 ip += blockSize;
6786 op += cBlockSize;
6787 remaining -= blockSize;
6788 dstCapacity -= cBlockSize;
6789 continue;
6790 }
6791
6792 RETURN_ERROR_IF(dstCapacity < ZSTD_blockHeaderSize, dstSize_tooSmall, "not enough dstCapacity to write a new compressed block");
6793 compressedSeqsSize = ZSTD_entropyCompressSeqStore(&cctx->seqStore,
6794 &cctx->blockState.prevCBlock->entropy, &cctx->blockState.nextCBlock->entropy,
6795 &cctx->appliedParams,
6796 op + ZSTD_blockHeaderSize /* Leave space for block header */, dstCapacity - ZSTD_blockHeaderSize,
6797 blockSize,
6798 cctx->tmpWorkspace, cctx->tmpWkspSize /* statically allocated in resetCCtx */,
6799 cctx->bmi2);
6800 FORWARD_IF_ERROR(compressedSeqsSize, "Compressing sequences of block failed");
6801 DEBUGLOG(5, "Compressed sequences size: %zu", compressedSeqsSize);
6802
6803 if (!cctx->isFirstBlock &&
6804 ZSTD_maybeRLE(&cctx->seqStore) &&
6805 ZSTD_isRLE(ip, blockSize)) {
6806 /* Note: don't emit the first block as RLE even if it qualifies because
6807 * doing so will cause the decoder (cli <= v1.4.3 only) to throw an (invalid) error
6808 * "should consume all input error."
6809 */
6810 compressedSeqsSize = 1;
6811 }
6812
6813 if (compressedSeqsSize == 0) {
6814 /* ZSTD_noCompressBlock writes the block header as well */
6815 cBlockSize = ZSTD_noCompressBlock(op, dstCapacity, ip, blockSize, lastBlock);
6816 FORWARD_IF_ERROR(cBlockSize, "ZSTD_noCompressBlock failed");
6817 DEBUGLOG(5, "Writing out nocompress block, size: %zu", cBlockSize);
6818 } else if (compressedSeqsSize == 1) {
6819 cBlockSize = ZSTD_rleCompressBlock(op, dstCapacity, *ip, blockSize, lastBlock);
6820 FORWARD_IF_ERROR(cBlockSize, "ZSTD_rleCompressBlock failed");
6821 DEBUGLOG(5, "Writing out RLE block, size: %zu", cBlockSize);
6822 } else {
6823 U32 cBlockHeader;
6824 /* Error checking and repcodes update */
6825 ZSTD_blockState_confirmRepcodesAndEntropyTables(&cctx->blockState);
6826 if (cctx->blockState.prevCBlock->entropy.fse.offcode_repeatMode == FSE_repeat_valid)
6827 cctx->blockState.prevCBlock->entropy.fse.offcode_repeatMode = FSE_repeat_check;
6828
6829 /* Write block header into beginning of block*/
6830 cBlockHeader = lastBlock + (((U32)bt_compressed)<<1) + (U32)(compressedSeqsSize << 3);
6831 MEM_writeLE24(op, cBlockHeader);
6832 cBlockSize = ZSTD_blockHeaderSize + compressedSeqsSize;
6833 DEBUGLOG(5, "Writing out compressed block, size: %zu", cBlockSize);
6834 }
6835
6836 cSize += cBlockSize;
6837
6838 if (lastBlock) {
6839 break;
6840 } else {
6841 ip += blockSize;
6842 op += cBlockSize;
6843 remaining -= blockSize;
6844 dstCapacity -= cBlockSize;
6845 cctx->isFirstBlock = 0;
6846 }
6847 DEBUGLOG(5, "cSize running total: %zu (remaining dstCapacity=%zu)", cSize, dstCapacity);
6848 }
6849
6850 DEBUGLOG(4, "cSize final total: %zu", cSize);
6851 return cSize;
6852 }
6853
ZSTD_compressSequences(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const ZSTD_Sequence * inSeqs,size_t inSeqsSize,const void * src,size_t srcSize)6854 size_t ZSTD_compressSequences(ZSTD_CCtx* cctx,
6855 void* dst, size_t dstCapacity,
6856 const ZSTD_Sequence* inSeqs, size_t inSeqsSize,
6857 const void* src, size_t srcSize)
6858 {
6859 BYTE* op = (BYTE*)dst;
6860 size_t cSize = 0;
6861
6862 /* Transparent initialization stage, same as compressStream2() */
6863 DEBUGLOG(4, "ZSTD_compressSequences (nbSeqs=%zu,dstCapacity=%zu)", inSeqsSize, dstCapacity);
6864 assert(cctx != NULL);
6865 FORWARD_IF_ERROR(ZSTD_CCtx_init_compressStream2(cctx, ZSTD_e_end, srcSize), "CCtx initialization failed");
6866
6867 /* Begin writing output, starting with frame header */
6868 { size_t const frameHeaderSize = ZSTD_writeFrameHeader(op, dstCapacity,
6869 &cctx->appliedParams, srcSize, cctx->dictID);
6870 op += frameHeaderSize;
6871 assert(frameHeaderSize <= dstCapacity);
6872 dstCapacity -= frameHeaderSize;
6873 cSize += frameHeaderSize;
6874 }
6875 if (cctx->appliedParams.fParams.checksumFlag && srcSize) {
6876 xxh64_update(&cctx->xxhState, src, srcSize);
6877 }
6878
6879 /* Now generate compressed blocks */
6880 { size_t const cBlocksSize = ZSTD_compressSequences_internal(cctx,
6881 op, dstCapacity,
6882 inSeqs, inSeqsSize,
6883 src, srcSize);
6884 FORWARD_IF_ERROR(cBlocksSize, "Compressing blocks failed!");
6885 cSize += cBlocksSize;
6886 assert(cBlocksSize <= dstCapacity);
6887 dstCapacity -= cBlocksSize;
6888 }
6889
6890 /* Complete with frame checksum, if needed */
6891 if (cctx->appliedParams.fParams.checksumFlag) {
6892 U32 const checksum = (U32) xxh64_digest(&cctx->xxhState);
6893 RETURN_ERROR_IF(dstCapacity<4, dstSize_tooSmall, "no room for checksum");
6894 DEBUGLOG(4, "Write checksum : %08X", (unsigned)checksum);
6895 MEM_writeLE32((char*)dst + cSize, checksum);
6896 cSize += 4;
6897 }
6898
6899 DEBUGLOG(4, "Final compressed size: %zu", cSize);
6900 return cSize;
6901 }
6902
6903
6904 #if defined(__AVX2__)
6905
6906 #include <immintrin.h> /* AVX2 intrinsics */
6907
6908 /*
6909 * Convert 2 sequences per iteration, using AVX2 intrinsics:
6910 * - offset -> offBase = offset + 2
6911 * - litLength -> (U16) litLength
6912 * - matchLength -> (U16)(matchLength - 3)
6913 * - rep is ignored
6914 * Store only 8 bytes per SeqDef (offBase[4], litLength[2], mlBase[2]).
6915 *
6916 * At the end, instead of extracting two __m128i,
6917 * we use _mm256_permute4x64_epi64(..., 0xE8) to move lane2 into lane1,
6918 * then store the lower 16 bytes in one go.
6919 *
6920 * @returns 0 on succes, with no long length detected
6921 * @returns > 0 if there is one long length (> 65535),
6922 * indicating the position, and type.
6923 */
convertSequences_noRepcodes(SeqDef * dstSeqs,const ZSTD_Sequence * inSeqs,size_t nbSequences)6924 static size_t convertSequences_noRepcodes(
6925 SeqDef* dstSeqs,
6926 const ZSTD_Sequence* inSeqs,
6927 size_t nbSequences)
6928 {
6929 /*
6930 * addition:
6931 * For each 128-bit half: (offset+2, litLength+0, matchLength-3, rep+0)
6932 */
6933 const __m256i addition = _mm256_setr_epi32(
6934 ZSTD_REP_NUM, 0, -MINMATCH, 0, /* for sequence i */
6935 ZSTD_REP_NUM, 0, -MINMATCH, 0 /* for sequence i+1 */
6936 );
6937
6938 /* limit: check if there is a long length */
6939 const __m256i limit = _mm256_set1_epi32(65535);
6940
6941 /*
6942 * shuffle mask for byte-level rearrangement in each 128-bit half:
6943 *
6944 * Input layout (after addition) per 128-bit half:
6945 * [ offset+2 (4 bytes) | litLength (4 bytes) | matchLength (4 bytes) | rep (4 bytes) ]
6946 * We only need:
6947 * offBase (4 bytes) = offset+2
6948 * litLength (2 bytes) = low 2 bytes of litLength
6949 * mlBase (2 bytes) = low 2 bytes of (matchLength)
6950 * => Bytes [0..3, 4..5, 8..9], zero the rest.
6951 */
6952 const __m256i mask = _mm256_setr_epi8(
6953 /* For the lower 128 bits => sequence i */
6954 0, 1, 2, 3, /* offset+2 */
6955 4, 5, /* litLength (16 bits) */
6956 8, 9, /* matchLength (16 bits) */
6957 (BYTE)0x80, (BYTE)0x80, (BYTE)0x80, (BYTE)0x80,
6958 (BYTE)0x80, (BYTE)0x80, (BYTE)0x80, (BYTE)0x80,
6959
6960 /* For the upper 128 bits => sequence i+1 */
6961 16,17,18,19, /* offset+2 */
6962 20,21, /* litLength */
6963 24,25, /* matchLength */
6964 (BYTE)0x80, (BYTE)0x80, (BYTE)0x80, (BYTE)0x80,
6965 (BYTE)0x80, (BYTE)0x80, (BYTE)0x80, (BYTE)0x80
6966 );
6967
6968 /*
6969 * Next, we'll use _mm256_permute4x64_epi64(vshf, 0xE8).
6970 * Explanation of 0xE8 = 11101000b => [lane0, lane2, lane2, lane3].
6971 * So the lower 128 bits become [lane0, lane2] => combining seq0 and seq1.
6972 */
6973 #define PERM_LANE_0X_E8 0xE8 /* [0,2,2,3] in lane indices */
6974
6975 size_t longLen = 0, i = 0;
6976
6977 /* AVX permutation depends on the specific definition of target structures */
6978 ZSTD_STATIC_ASSERT(sizeof(ZSTD_Sequence) == 16);
6979 ZSTD_STATIC_ASSERT(offsetof(ZSTD_Sequence, offset) == 0);
6980 ZSTD_STATIC_ASSERT(offsetof(ZSTD_Sequence, litLength) == 4);
6981 ZSTD_STATIC_ASSERT(offsetof(ZSTD_Sequence, matchLength) == 8);
6982 ZSTD_STATIC_ASSERT(sizeof(SeqDef) == 8);
6983 ZSTD_STATIC_ASSERT(offsetof(SeqDef, offBase) == 0);
6984 ZSTD_STATIC_ASSERT(offsetof(SeqDef, litLength) == 4);
6985 ZSTD_STATIC_ASSERT(offsetof(SeqDef, mlBase) == 6);
6986
6987 /* Process 2 sequences per loop iteration */
6988 for (; i + 1 < nbSequences; i += 2) {
6989 /* Load 2 ZSTD_Sequence (32 bytes) */
6990 __m256i vin = _mm256_loadu_si256((const __m256i*)(const void*)&inSeqs[i]);
6991
6992 /* Add {2, 0, -3, 0} in each 128-bit half */
6993 __m256i vadd = _mm256_add_epi32(vin, addition);
6994
6995 /* Check for long length */
6996 __m256i ll_cmp = _mm256_cmpgt_epi32(vadd, limit); /* 0xFFFFFFFF for element > 65535 */
6997 int ll_res = _mm256_movemask_epi8(ll_cmp);
6998
6999 /* Shuffle bytes so each half gives us the 8 bytes we need */
7000 __m256i vshf = _mm256_shuffle_epi8(vadd, mask);
7001 /*
7002 * Now:
7003 * Lane0 = seq0's 8 bytes
7004 * Lane1 = 0
7005 * Lane2 = seq1's 8 bytes
7006 * Lane3 = 0
7007 */
7008
7009 /* Permute 64-bit lanes => move Lane2 down into Lane1. */
7010 __m256i vperm = _mm256_permute4x64_epi64(vshf, PERM_LANE_0X_E8);
7011 /*
7012 * Now the lower 16 bytes (Lane0+Lane1) = [seq0, seq1].
7013 * The upper 16 bytes are [Lane2, Lane3] = [seq1, 0], but we won't use them.
7014 */
7015
7016 /* Store only the lower 16 bytes => 2 SeqDef (8 bytes each) */
7017 _mm_storeu_si128((__m128i *)(void*)&dstSeqs[i], _mm256_castsi256_si128(vperm));
7018 /*
7019 * This writes out 16 bytes total:
7020 * - offset 0..7 => seq0 (offBase, litLength, mlBase)
7021 * - offset 8..15 => seq1 (offBase, litLength, mlBase)
7022 */
7023
7024 /* check (unlikely) long lengths > 65535
7025 * indices for lengths correspond to bits [4..7], [8..11], [20..23], [24..27]
7026 * => combined mask = 0x0FF00FF0
7027 */
7028 if (UNLIKELY((ll_res & 0x0FF00FF0) != 0)) {
7029 /* long length detected: let's figure out which one*/
7030 if (inSeqs[i].matchLength > 65535+MINMATCH) {
7031 assert(longLen == 0);
7032 longLen = i + 1;
7033 }
7034 if (inSeqs[i].litLength > 65535) {
7035 assert(longLen == 0);
7036 longLen = i + nbSequences + 1;
7037 }
7038 if (inSeqs[i+1].matchLength > 65535+MINMATCH) {
7039 assert(longLen == 0);
7040 longLen = i + 1 + 1;
7041 }
7042 if (inSeqs[i+1].litLength > 65535) {
7043 assert(longLen == 0);
7044 longLen = i + 1 + nbSequences + 1;
7045 }
7046 }
7047 }
7048
7049 /* Handle leftover if @nbSequences is odd */
7050 if (i < nbSequences) {
7051 /* process last sequence */
7052 assert(i == nbSequences - 1);
7053 dstSeqs[i].offBase = OFFSET_TO_OFFBASE(inSeqs[i].offset);
7054 dstSeqs[i].litLength = (U16)inSeqs[i].litLength;
7055 dstSeqs[i].mlBase = (U16)(inSeqs[i].matchLength - MINMATCH);
7056 /* check (unlikely) long lengths > 65535 */
7057 if (UNLIKELY(inSeqs[i].matchLength > 65535+MINMATCH)) {
7058 assert(longLen == 0);
7059 longLen = i + 1;
7060 }
7061 if (UNLIKELY(inSeqs[i].litLength > 65535)) {
7062 assert(longLen == 0);
7063 longLen = i + nbSequences + 1;
7064 }
7065 }
7066
7067 return longLen;
7068 }
7069
7070 /* the vector implementation could also be ported to SSSE3,
7071 * but since this implementation is targeting modern systems (>= Sapphire Rapid),
7072 * it's not useful to develop and maintain code for older pre-AVX2 platforms */
7073
7074 #else /* no AVX2 */
7075
convertSequences_noRepcodes(SeqDef * dstSeqs,const ZSTD_Sequence * inSeqs,size_t nbSequences)7076 static size_t convertSequences_noRepcodes(
7077 SeqDef* dstSeqs,
7078 const ZSTD_Sequence* inSeqs,
7079 size_t nbSequences)
7080 {
7081 size_t longLen = 0;
7082 size_t n;
7083 for (n=0; n<nbSequences; n++) {
7084 dstSeqs[n].offBase = OFFSET_TO_OFFBASE(inSeqs[n].offset);
7085 dstSeqs[n].litLength = (U16)inSeqs[n].litLength;
7086 dstSeqs[n].mlBase = (U16)(inSeqs[n].matchLength - MINMATCH);
7087 /* check for long length > 65535 */
7088 if (UNLIKELY(inSeqs[n].matchLength > 65535+MINMATCH)) {
7089 assert(longLen == 0);
7090 longLen = n + 1;
7091 }
7092 if (UNLIKELY(inSeqs[n].litLength > 65535)) {
7093 assert(longLen == 0);
7094 longLen = n + nbSequences + 1;
7095 }
7096 }
7097 return longLen;
7098 }
7099
7100 #endif
7101
7102 /*
7103 * Precondition: Sequences must end on an explicit Block Delimiter
7104 * @return: 0 on success, or an error code.
7105 * Note: Sequence validation functionality has been disabled (removed).
7106 * This is helpful to generate a lean main pipeline, improving performance.
7107 * It may be re-inserted later.
7108 */
ZSTD_convertBlockSequences(ZSTD_CCtx * cctx,const ZSTD_Sequence * const inSeqs,size_t nbSequences,int repcodeResolution)7109 size_t ZSTD_convertBlockSequences(ZSTD_CCtx* cctx,
7110 const ZSTD_Sequence* const inSeqs, size_t nbSequences,
7111 int repcodeResolution)
7112 {
7113 Repcodes_t updatedRepcodes;
7114 size_t seqNb = 0;
7115
7116 DEBUGLOG(5, "ZSTD_convertBlockSequences (nbSequences = %zu)", nbSequences);
7117
7118 RETURN_ERROR_IF(nbSequences >= cctx->seqStore.maxNbSeq, externalSequences_invalid,
7119 "Not enough memory allocated. Try adjusting ZSTD_c_minMatch.");
7120
7121 ZSTD_memcpy(updatedRepcodes.rep, cctx->blockState.prevCBlock->rep, sizeof(Repcodes_t));
7122
7123 /* check end condition */
7124 assert(nbSequences >= 1);
7125 assert(inSeqs[nbSequences-1].matchLength == 0);
7126 assert(inSeqs[nbSequences-1].offset == 0);
7127
7128 /* Convert Sequences from public format to internal format */
7129 if (!repcodeResolution) {
7130 size_t const longl = convertSequences_noRepcodes(cctx->seqStore.sequencesStart, inSeqs, nbSequences-1);
7131 cctx->seqStore.sequences = cctx->seqStore.sequencesStart + nbSequences-1;
7132 if (longl) {
7133 DEBUGLOG(5, "long length");
7134 assert(cctx->seqStore.longLengthType == ZSTD_llt_none);
7135 if (longl <= nbSequences-1) {
7136 DEBUGLOG(5, "long match length detected at pos %zu", longl-1);
7137 cctx->seqStore.longLengthType = ZSTD_llt_matchLength;
7138 cctx->seqStore.longLengthPos = (U32)(longl-1);
7139 } else {
7140 DEBUGLOG(5, "long literals length detected at pos %zu", longl-nbSequences);
7141 assert(longl <= 2* (nbSequences-1));
7142 cctx->seqStore.longLengthType = ZSTD_llt_literalLength;
7143 cctx->seqStore.longLengthPos = (U32)(longl-(nbSequences-1)-1);
7144 }
7145 }
7146 } else {
7147 for (seqNb = 0; seqNb < nbSequences - 1 ; seqNb++) {
7148 U32 const litLength = inSeqs[seqNb].litLength;
7149 U32 const matchLength = inSeqs[seqNb].matchLength;
7150 U32 const ll0 = (litLength == 0);
7151 U32 const offBase = ZSTD_finalizeOffBase(inSeqs[seqNb].offset, updatedRepcodes.rep, ll0);
7152
7153 DEBUGLOG(6, "Storing sequence: (of: %u, ml: %u, ll: %u)", offBase, matchLength, litLength);
7154 ZSTD_storeSeqOnly(&cctx->seqStore, litLength, offBase, matchLength);
7155 ZSTD_updateRep(updatedRepcodes.rep, offBase, ll0);
7156 }
7157 }
7158
7159 /* If we skipped repcode search while parsing, we need to update repcodes now */
7160 if (!repcodeResolution && nbSequences > 1) {
7161 U32* const rep = updatedRepcodes.rep;
7162
7163 if (nbSequences >= 4) {
7164 U32 lastSeqIdx = (U32)nbSequences - 2; /* index of last full sequence */
7165 rep[2] = inSeqs[lastSeqIdx - 2].offset;
7166 rep[1] = inSeqs[lastSeqIdx - 1].offset;
7167 rep[0] = inSeqs[lastSeqIdx].offset;
7168 } else if (nbSequences == 3) {
7169 rep[2] = rep[0];
7170 rep[1] = inSeqs[0].offset;
7171 rep[0] = inSeqs[1].offset;
7172 } else {
7173 assert(nbSequences == 2);
7174 rep[2] = rep[1];
7175 rep[1] = rep[0];
7176 rep[0] = inSeqs[0].offset;
7177 }
7178 }
7179
7180 ZSTD_memcpy(cctx->blockState.nextCBlock->rep, updatedRepcodes.rep, sizeof(Repcodes_t));
7181
7182 return 0;
7183 }
7184
7185 #if defined(ZSTD_ARCH_X86_AVX2)
7186
ZSTD_get1BlockSummary(const ZSTD_Sequence * seqs,size_t nbSeqs)7187 BlockSummary ZSTD_get1BlockSummary(const ZSTD_Sequence* seqs, size_t nbSeqs)
7188 {
7189 size_t i;
7190 __m256i const zeroVec = _mm256_setzero_si256();
7191 __m256i sumVec = zeroVec; /* accumulates match+lit in 32-bit lanes */
7192 ZSTD_ALIGNED(32) U32 tmp[8]; /* temporary buffer for reduction */
7193 size_t mSum = 0, lSum = 0;
7194 ZSTD_STATIC_ASSERT(sizeof(ZSTD_Sequence) == 16);
7195
7196 /* Process 2 structs (32 bytes) at a time */
7197 for (i = 0; i + 2 <= nbSeqs; i += 2) {
7198 /* Load two consecutive ZSTD_Sequence (8×4 = 32 bytes) */
7199 __m256i data = _mm256_loadu_si256((const __m256i*)(const void*)&seqs[i]);
7200 /* check end of block signal */
7201 __m256i cmp = _mm256_cmpeq_epi32(data, zeroVec);
7202 int cmp_res = _mm256_movemask_epi8(cmp);
7203 /* indices for match lengths correspond to bits [8..11], [24..27]
7204 * => combined mask = 0x0F000F00 */
7205 ZSTD_STATIC_ASSERT(offsetof(ZSTD_Sequence, matchLength) == 8);
7206 if (cmp_res & 0x0F000F00) break;
7207 /* Accumulate in sumVec */
7208 sumVec = _mm256_add_epi32(sumVec, data);
7209 }
7210
7211 /* Horizontal reduction */
7212 _mm256_store_si256((__m256i*)tmp, sumVec);
7213 lSum = tmp[1] + tmp[5];
7214 mSum = tmp[2] + tmp[6];
7215
7216 /* Handle the leftover */
7217 for (; i < nbSeqs; i++) {
7218 lSum += seqs[i].litLength;
7219 mSum += seqs[i].matchLength;
7220 if (seqs[i].matchLength == 0) break; /* end of block */
7221 }
7222
7223 if (i==nbSeqs) {
7224 /* reaching end of sequences: end of block signal was not present */
7225 BlockSummary bs;
7226 bs.nbSequences = ERROR(externalSequences_invalid);
7227 return bs;
7228 }
7229 { BlockSummary bs;
7230 bs.nbSequences = i+1;
7231 bs.blockSize = lSum + mSum;
7232 bs.litSize = lSum;
7233 return bs;
7234 }
7235 }
7236
7237 #else
7238
ZSTD_get1BlockSummary(const ZSTD_Sequence * seqs,size_t nbSeqs)7239 BlockSummary ZSTD_get1BlockSummary(const ZSTD_Sequence* seqs, size_t nbSeqs)
7240 {
7241 size_t totalMatchSize = 0;
7242 size_t litSize = 0;
7243 size_t n;
7244 assert(seqs);
7245 for (n=0; n<nbSeqs; n++) {
7246 totalMatchSize += seqs[n].matchLength;
7247 litSize += seqs[n].litLength;
7248 if (seqs[n].matchLength == 0) {
7249 assert(seqs[n].offset == 0);
7250 break;
7251 }
7252 }
7253 if (n==nbSeqs) {
7254 BlockSummary bs;
7255 bs.nbSequences = ERROR(externalSequences_invalid);
7256 return bs;
7257 }
7258 { BlockSummary bs;
7259 bs.nbSequences = n+1;
7260 bs.blockSize = litSize + totalMatchSize;
7261 bs.litSize = litSize;
7262 return bs;
7263 }
7264 }
7265 #endif
7266
7267
7268 static size_t
ZSTD_compressSequencesAndLiterals_internal(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const ZSTD_Sequence * inSeqs,size_t nbSequences,const void * literals,size_t litSize,size_t srcSize)7269 ZSTD_compressSequencesAndLiterals_internal(ZSTD_CCtx* cctx,
7270 void* dst, size_t dstCapacity,
7271 const ZSTD_Sequence* inSeqs, size_t nbSequences,
7272 const void* literals, size_t litSize, size_t srcSize)
7273 {
7274 size_t remaining = srcSize;
7275 size_t cSize = 0;
7276 BYTE* op = (BYTE*)dst;
7277 int const repcodeResolution = (cctx->appliedParams.searchForExternalRepcodes == ZSTD_ps_enable);
7278 assert(cctx->appliedParams.searchForExternalRepcodes != ZSTD_ps_auto);
7279
7280 DEBUGLOG(4, "ZSTD_compressSequencesAndLiterals_internal: nbSeqs=%zu, litSize=%zu", nbSequences, litSize);
7281 RETURN_ERROR_IF(nbSequences == 0, externalSequences_invalid, "Requires at least 1 end-of-block");
7282
7283 /* Special case: empty frame */
7284 if ((nbSequences == 1) && (inSeqs[0].litLength == 0)) {
7285 U32 const cBlockHeader24 = 1 /* last block */ + (((U32)bt_raw)<<1);
7286 RETURN_ERROR_IF(dstCapacity<3, dstSize_tooSmall, "No room for empty frame block header");
7287 MEM_writeLE24(op, cBlockHeader24);
7288 op += ZSTD_blockHeaderSize;
7289 dstCapacity -= ZSTD_blockHeaderSize;
7290 cSize += ZSTD_blockHeaderSize;
7291 }
7292
7293 while (nbSequences) {
7294 size_t compressedSeqsSize, cBlockSize, conversionStatus;
7295 BlockSummary const block = ZSTD_get1BlockSummary(inSeqs, nbSequences);
7296 U32 const lastBlock = (block.nbSequences == nbSequences);
7297 FORWARD_IF_ERROR(block.nbSequences, "Error while trying to determine nb of sequences for a block");
7298 assert(block.nbSequences <= nbSequences);
7299 RETURN_ERROR_IF(block.litSize > litSize, externalSequences_invalid, "discrepancy: Sequences require more literals than present in buffer");
7300 ZSTD_resetSeqStore(&cctx->seqStore);
7301
7302 conversionStatus = ZSTD_convertBlockSequences(cctx,
7303 inSeqs, block.nbSequences,
7304 repcodeResolution);
7305 FORWARD_IF_ERROR(conversionStatus, "Bad sequence conversion");
7306 inSeqs += block.nbSequences;
7307 nbSequences -= block.nbSequences;
7308 remaining -= block.blockSize;
7309
7310 /* Note: when blockSize is very small, other variant send it uncompressed.
7311 * Here, we still send the sequences, because we don't have the original source to send it uncompressed.
7312 * One could imagine in theory reproducing the source from the sequences,
7313 * but that's complex and costly memory intensive, and goes against the objectives of this variant. */
7314
7315 RETURN_ERROR_IF(dstCapacity < ZSTD_blockHeaderSize, dstSize_tooSmall, "not enough dstCapacity to write a new compressed block");
7316
7317 compressedSeqsSize = ZSTD_entropyCompressSeqStore_internal(
7318 op + ZSTD_blockHeaderSize /* Leave space for block header */, dstCapacity - ZSTD_blockHeaderSize,
7319 literals, block.litSize,
7320 &cctx->seqStore,
7321 &cctx->blockState.prevCBlock->entropy, &cctx->blockState.nextCBlock->entropy,
7322 &cctx->appliedParams,
7323 cctx->tmpWorkspace, cctx->tmpWkspSize /* statically allocated in resetCCtx */,
7324 cctx->bmi2);
7325 FORWARD_IF_ERROR(compressedSeqsSize, "Compressing sequences of block failed");
7326 /* note: the spec forbids for any compressed block to be larger than maximum block size */
7327 if (compressedSeqsSize > cctx->blockSizeMax) compressedSeqsSize = 0;
7328 DEBUGLOG(5, "Compressed sequences size: %zu", compressedSeqsSize);
7329 litSize -= block.litSize;
7330 literals = (const char*)literals + block.litSize;
7331
7332 /* Note: difficult to check source for RLE block when only Literals are provided,
7333 * but it could be considered from analyzing the sequence directly */
7334
7335 if (compressedSeqsSize == 0) {
7336 /* Sending uncompressed blocks is out of reach, because the source is not provided.
7337 * In theory, one could use the sequences to regenerate the source, like a decompressor,
7338 * but it's complex, and memory hungry, killing the purpose of this variant.
7339 * Current outcome: generate an error code.
7340 */
7341 RETURN_ERROR(cannotProduce_uncompressedBlock, "ZSTD_compressSequencesAndLiterals cannot generate an uncompressed block");
7342 } else {
7343 U32 cBlockHeader;
7344 assert(compressedSeqsSize > 1); /* no RLE */
7345 /* Error checking and repcodes update */
7346 ZSTD_blockState_confirmRepcodesAndEntropyTables(&cctx->blockState);
7347 if (cctx->blockState.prevCBlock->entropy.fse.offcode_repeatMode == FSE_repeat_valid)
7348 cctx->blockState.prevCBlock->entropy.fse.offcode_repeatMode = FSE_repeat_check;
7349
7350 /* Write block header into beginning of block*/
7351 cBlockHeader = lastBlock + (((U32)bt_compressed)<<1) + (U32)(compressedSeqsSize << 3);
7352 MEM_writeLE24(op, cBlockHeader);
7353 cBlockSize = ZSTD_blockHeaderSize + compressedSeqsSize;
7354 DEBUGLOG(5, "Writing out compressed block, size: %zu", cBlockSize);
7355 }
7356
7357 cSize += cBlockSize;
7358 op += cBlockSize;
7359 dstCapacity -= cBlockSize;
7360 cctx->isFirstBlock = 0;
7361 DEBUGLOG(5, "cSize running total: %zu (remaining dstCapacity=%zu)", cSize, dstCapacity);
7362
7363 if (lastBlock) {
7364 assert(nbSequences == 0);
7365 break;
7366 }
7367 }
7368
7369 RETURN_ERROR_IF(litSize != 0, externalSequences_invalid, "literals must be entirely and exactly consumed");
7370 RETURN_ERROR_IF(remaining != 0, externalSequences_invalid, "Sequences must represent a total of exactly srcSize=%zu", srcSize);
7371 DEBUGLOG(4, "cSize final total: %zu", cSize);
7372 return cSize;
7373 }
7374
7375 size_t
ZSTD_compressSequencesAndLiterals(ZSTD_CCtx * cctx,void * dst,size_t dstCapacity,const ZSTD_Sequence * inSeqs,size_t inSeqsSize,const void * literals,size_t litSize,size_t litCapacity,size_t decompressedSize)7376 ZSTD_compressSequencesAndLiterals(ZSTD_CCtx* cctx,
7377 void* dst, size_t dstCapacity,
7378 const ZSTD_Sequence* inSeqs, size_t inSeqsSize,
7379 const void* literals, size_t litSize, size_t litCapacity,
7380 size_t decompressedSize)
7381 {
7382 BYTE* op = (BYTE*)dst;
7383 size_t cSize = 0;
7384
7385 /* Transparent initialization stage, same as compressStream2() */
7386 DEBUGLOG(4, "ZSTD_compressSequencesAndLiterals (dstCapacity=%zu)", dstCapacity);
7387 assert(cctx != NULL);
7388 if (litCapacity < litSize) {
7389 RETURN_ERROR(workSpace_tooSmall, "literals buffer is not large enough: must be at least 8 bytes larger than litSize (risk of read out-of-bound)");
7390 }
7391 FORWARD_IF_ERROR(ZSTD_CCtx_init_compressStream2(cctx, ZSTD_e_end, decompressedSize), "CCtx initialization failed");
7392
7393 if (cctx->appliedParams.blockDelimiters == ZSTD_sf_noBlockDelimiters) {
7394 RETURN_ERROR(frameParameter_unsupported, "This mode is only compatible with explicit delimiters");
7395 }
7396 if (cctx->appliedParams.validateSequences) {
7397 RETURN_ERROR(parameter_unsupported, "This mode is not compatible with Sequence validation");
7398 }
7399 if (cctx->appliedParams.fParams.checksumFlag) {
7400 RETURN_ERROR(frameParameter_unsupported, "this mode is not compatible with frame checksum");
7401 }
7402
7403 /* Begin writing output, starting with frame header */
7404 { size_t const frameHeaderSize = ZSTD_writeFrameHeader(op, dstCapacity,
7405 &cctx->appliedParams, decompressedSize, cctx->dictID);
7406 op += frameHeaderSize;
7407 assert(frameHeaderSize <= dstCapacity);
7408 dstCapacity -= frameHeaderSize;
7409 cSize += frameHeaderSize;
7410 }
7411
7412 /* Now generate compressed blocks */
7413 { size_t const cBlocksSize = ZSTD_compressSequencesAndLiterals_internal(cctx,
7414 op, dstCapacity,
7415 inSeqs, inSeqsSize,
7416 literals, litSize, decompressedSize);
7417 FORWARD_IF_ERROR(cBlocksSize, "Compressing blocks failed!");
7418 cSize += cBlocksSize;
7419 assert(cBlocksSize <= dstCapacity);
7420 dstCapacity -= cBlocksSize;
7421 }
7422
7423 DEBUGLOG(4, "Final compressed size: %zu", cSize);
7424 return cSize;
7425 }
7426
7427 /*====== Finalize ======*/
7428
inBuffer_forEndFlush(const ZSTD_CStream * zcs)7429 static ZSTD_inBuffer inBuffer_forEndFlush(const ZSTD_CStream* zcs)
7430 {
7431 const ZSTD_inBuffer nullInput = { NULL, 0, 0 };
7432 const int stableInput = (zcs->appliedParams.inBufferMode == ZSTD_bm_stable);
7433 return stableInput ? zcs->expectedInBuffer : nullInput;
7434 }
7435
7436 /*! ZSTD_flushStream() :
7437 * @return : amount of data remaining to flush */
ZSTD_flushStream(ZSTD_CStream * zcs,ZSTD_outBuffer * output)7438 size_t ZSTD_flushStream(ZSTD_CStream* zcs, ZSTD_outBuffer* output)
7439 {
7440 ZSTD_inBuffer input = inBuffer_forEndFlush(zcs);
7441 input.size = input.pos; /* do not ingest more input during flush */
7442 return ZSTD_compressStream2(zcs, output, &input, ZSTD_e_flush);
7443 }
7444
ZSTD_endStream(ZSTD_CStream * zcs,ZSTD_outBuffer * output)7445 size_t ZSTD_endStream(ZSTD_CStream* zcs, ZSTD_outBuffer* output)
7446 {
7447 ZSTD_inBuffer input = inBuffer_forEndFlush(zcs);
7448 size_t const remainingToFlush = ZSTD_compressStream2(zcs, output, &input, ZSTD_e_end);
7449 FORWARD_IF_ERROR(remainingToFlush , "ZSTD_compressStream2(,,ZSTD_e_end) failed");
7450 if (zcs->appliedParams.nbWorkers > 0) return remainingToFlush; /* minimal estimation */
7451 /* single thread mode : attempt to calculate remaining to flush more precisely */
7452 { size_t const lastBlockSize = zcs->frameEnded ? 0 : ZSTD_BLOCKHEADERSIZE;
7453 size_t const checksumSize = (size_t)(zcs->frameEnded ? 0 : zcs->appliedParams.fParams.checksumFlag * 4);
7454 size_t const toFlush = remainingToFlush + lastBlockSize + checksumSize;
7455 DEBUGLOG(4, "ZSTD_endStream : remaining to flush : %u", (unsigned)toFlush);
7456 return toFlush;
7457 }
7458 }
7459
7460
7461 /*-===== Pre-defined compression levels =====-*/
7462 #include "clevels.h"
7463
ZSTD_maxCLevel(void)7464 int ZSTD_maxCLevel(void) { return ZSTD_MAX_CLEVEL; }
ZSTD_minCLevel(void)7465 int ZSTD_minCLevel(void) { return (int)-ZSTD_TARGETLENGTH_MAX; }
ZSTD_defaultCLevel(void)7466 int ZSTD_defaultCLevel(void) { return ZSTD_CLEVEL_DEFAULT; }
7467
ZSTD_dedicatedDictSearch_getCParams(int const compressionLevel,size_t const dictSize)7468 static ZSTD_compressionParameters ZSTD_dedicatedDictSearch_getCParams(int const compressionLevel, size_t const dictSize)
7469 {
7470 ZSTD_compressionParameters cParams = ZSTD_getCParams_internal(compressionLevel, 0, dictSize, ZSTD_cpm_createCDict);
7471 switch (cParams.strategy) {
7472 case ZSTD_fast:
7473 case ZSTD_dfast:
7474 break;
7475 case ZSTD_greedy:
7476 case ZSTD_lazy:
7477 case ZSTD_lazy2:
7478 cParams.hashLog += ZSTD_LAZY_DDSS_BUCKET_LOG;
7479 break;
7480 case ZSTD_btlazy2:
7481 case ZSTD_btopt:
7482 case ZSTD_btultra:
7483 case ZSTD_btultra2:
7484 break;
7485 }
7486 return cParams;
7487 }
7488
ZSTD_dedicatedDictSearch_isSupported(ZSTD_compressionParameters const * cParams)7489 static int ZSTD_dedicatedDictSearch_isSupported(
7490 ZSTD_compressionParameters const* cParams)
7491 {
7492 return (cParams->strategy >= ZSTD_greedy)
7493 && (cParams->strategy <= ZSTD_lazy2)
7494 && (cParams->hashLog > cParams->chainLog)
7495 && (cParams->chainLog <= 24);
7496 }
7497
7498 /*
7499 * Reverses the adjustment applied to cparams when enabling dedicated dict
7500 * search. This is used to recover the params set to be used in the working
7501 * context. (Otherwise, those tables would also grow.)
7502 */
ZSTD_dedicatedDictSearch_revertCParams(ZSTD_compressionParameters * cParams)7503 static void ZSTD_dedicatedDictSearch_revertCParams(
7504 ZSTD_compressionParameters* cParams) {
7505 switch (cParams->strategy) {
7506 case ZSTD_fast:
7507 case ZSTD_dfast:
7508 break;
7509 case ZSTD_greedy:
7510 case ZSTD_lazy:
7511 case ZSTD_lazy2:
7512 cParams->hashLog -= ZSTD_LAZY_DDSS_BUCKET_LOG;
7513 if (cParams->hashLog < ZSTD_HASHLOG_MIN) {
7514 cParams->hashLog = ZSTD_HASHLOG_MIN;
7515 }
7516 break;
7517 case ZSTD_btlazy2:
7518 case ZSTD_btopt:
7519 case ZSTD_btultra:
7520 case ZSTD_btultra2:
7521 break;
7522 }
7523 }
7524
ZSTD_getCParamRowSize(U64 srcSizeHint,size_t dictSize,ZSTD_CParamMode_e mode)7525 static U64 ZSTD_getCParamRowSize(U64 srcSizeHint, size_t dictSize, ZSTD_CParamMode_e mode)
7526 {
7527 switch (mode) {
7528 case ZSTD_cpm_unknown:
7529 case ZSTD_cpm_noAttachDict:
7530 case ZSTD_cpm_createCDict:
7531 break;
7532 case ZSTD_cpm_attachDict:
7533 dictSize = 0;
7534 break;
7535 default:
7536 assert(0);
7537 break;
7538 }
7539 { int const unknown = srcSizeHint == ZSTD_CONTENTSIZE_UNKNOWN;
7540 size_t const addedSize = unknown && dictSize > 0 ? 500 : 0;
7541 return unknown && dictSize == 0 ? ZSTD_CONTENTSIZE_UNKNOWN : srcSizeHint+dictSize+addedSize;
7542 }
7543 }
7544
7545 /*! ZSTD_getCParams_internal() :
7546 * @return ZSTD_compressionParameters structure for a selected compression level, srcSize and dictSize.
7547 * Note: srcSizeHint 0 means 0, use ZSTD_CONTENTSIZE_UNKNOWN for unknown.
7548 * Use dictSize == 0 for unknown or unused.
7549 * Note: `mode` controls how we treat the `dictSize`. See docs for `ZSTD_CParamMode_e`. */
ZSTD_getCParams_internal(int compressionLevel,unsigned long long srcSizeHint,size_t dictSize,ZSTD_CParamMode_e mode)7550 static ZSTD_compressionParameters ZSTD_getCParams_internal(int compressionLevel, unsigned long long srcSizeHint, size_t dictSize, ZSTD_CParamMode_e mode)
7551 {
7552 U64 const rSize = ZSTD_getCParamRowSize(srcSizeHint, dictSize, mode);
7553 U32 const tableID = (rSize <= 256 KB) + (rSize <= 128 KB) + (rSize <= 16 KB);
7554 int row;
7555 DEBUGLOG(5, "ZSTD_getCParams_internal (cLevel=%i)", compressionLevel);
7556
7557 /* row */
7558 if (compressionLevel == 0) row = ZSTD_CLEVEL_DEFAULT; /* 0 == default */
7559 else if (compressionLevel < 0) row = 0; /* entry 0 is baseline for fast mode */
7560 else if (compressionLevel > ZSTD_MAX_CLEVEL) row = ZSTD_MAX_CLEVEL;
7561 else row = compressionLevel;
7562
7563 { ZSTD_compressionParameters cp = ZSTD_defaultCParameters[tableID][row];
7564 DEBUGLOG(5, "ZSTD_getCParams_internal selected tableID: %u row: %u strat: %u", tableID, row, (U32)cp.strategy);
7565 /* acceleration factor */
7566 if (compressionLevel < 0) {
7567 int const clampedCompressionLevel = MAX(ZSTD_minCLevel(), compressionLevel);
7568 cp.targetLength = (unsigned)(-clampedCompressionLevel);
7569 }
7570 /* refine parameters based on srcSize & dictSize */
7571 return ZSTD_adjustCParams_internal(cp, srcSizeHint, dictSize, mode, ZSTD_ps_auto);
7572 }
7573 }
7574
7575 /*! ZSTD_getCParams() :
7576 * @return ZSTD_compressionParameters structure for a selected compression level, srcSize and dictSize.
7577 * Size values are optional, provide 0 if not known or unused */
ZSTD_getCParams(int compressionLevel,unsigned long long srcSizeHint,size_t dictSize)7578 ZSTD_compressionParameters ZSTD_getCParams(int compressionLevel, unsigned long long srcSizeHint, size_t dictSize)
7579 {
7580 if (srcSizeHint == 0) srcSizeHint = ZSTD_CONTENTSIZE_UNKNOWN;
7581 return ZSTD_getCParams_internal(compressionLevel, srcSizeHint, dictSize, ZSTD_cpm_unknown);
7582 }
7583
7584 /*! ZSTD_getParams() :
7585 * same idea as ZSTD_getCParams()
7586 * @return a `ZSTD_parameters` structure (instead of `ZSTD_compressionParameters`).
7587 * Fields of `ZSTD_frameParameters` are set to default values */
7588 static ZSTD_parameters
ZSTD_getParams_internal(int compressionLevel,unsigned long long srcSizeHint,size_t dictSize,ZSTD_CParamMode_e mode)7589 ZSTD_getParams_internal(int compressionLevel, unsigned long long srcSizeHint, size_t dictSize, ZSTD_CParamMode_e mode)
7590 {
7591 ZSTD_parameters params;
7592 ZSTD_compressionParameters const cParams = ZSTD_getCParams_internal(compressionLevel, srcSizeHint, dictSize, mode);
7593 DEBUGLOG(5, "ZSTD_getParams (cLevel=%i)", compressionLevel);
7594 ZSTD_memset(¶ms, 0, sizeof(params));
7595 params.cParams = cParams;
7596 params.fParams.contentSizeFlag = 1;
7597 return params;
7598 }
7599
7600 /*! ZSTD_getParams() :
7601 * same idea as ZSTD_getCParams()
7602 * @return a `ZSTD_parameters` structure (instead of `ZSTD_compressionParameters`).
7603 * Fields of `ZSTD_frameParameters` are set to default values */
ZSTD_getParams(int compressionLevel,unsigned long long srcSizeHint,size_t dictSize)7604 ZSTD_parameters ZSTD_getParams(int compressionLevel, unsigned long long srcSizeHint, size_t dictSize)
7605 {
7606 if (srcSizeHint == 0) srcSizeHint = ZSTD_CONTENTSIZE_UNKNOWN;
7607 return ZSTD_getParams_internal(compressionLevel, srcSizeHint, dictSize, ZSTD_cpm_unknown);
7608 }
7609
ZSTD_registerSequenceProducer(ZSTD_CCtx * zc,void * extSeqProdState,ZSTD_sequenceProducer_F extSeqProdFunc)7610 void ZSTD_registerSequenceProducer(
7611 ZSTD_CCtx* zc,
7612 void* extSeqProdState,
7613 ZSTD_sequenceProducer_F extSeqProdFunc)
7614 {
7615 assert(zc != NULL);
7616 ZSTD_CCtxParams_registerSequenceProducer(
7617 &zc->requestedParams, extSeqProdState, extSeqProdFunc
7618 );
7619 }
7620
ZSTD_CCtxParams_registerSequenceProducer(ZSTD_CCtx_params * params,void * extSeqProdState,ZSTD_sequenceProducer_F extSeqProdFunc)7621 void ZSTD_CCtxParams_registerSequenceProducer(
7622 ZSTD_CCtx_params* params,
7623 void* extSeqProdState,
7624 ZSTD_sequenceProducer_F extSeqProdFunc)
7625 {
7626 assert(params != NULL);
7627 if (extSeqProdFunc != NULL) {
7628 params->extSeqProdFunc = extSeqProdFunc;
7629 params->extSeqProdState = extSeqProdState;
7630 } else {
7631 params->extSeqProdFunc = NULL;
7632 params->extSeqProdState = NULL;
7633 }
7634 }
7635