Coverage Report

Created: 2025-11-11 07:01

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/zstd/lib/legacy/zstd_v02.c
Line
Count
Source
1
/*
2
 * Copyright (c) Yann Collet, Meta Platforms, Inc. and affiliates.
3
 * All rights reserved.
4
 *
5
 * This source code is licensed under both the BSD-style license (found in the
6
 * LICENSE file in the root directory of this source tree) and the GPLv2 (found
7
 * in the COPYING file in the root directory of this source tree).
8
 * You may select, at your option, one of the above-listed licenses.
9
 */
10
11
12
#include <stddef.h>    /* size_t, ptrdiff_t */
13
#include "zstd_v02.h"
14
#include "../common/compiler.h"
15
#include "../common/error_private.h"
16
17
18
/******************************************
19
*  Compiler-specific
20
******************************************/
21
#if defined(_MSC_VER)   /* Visual Studio */
22
#   include <stdlib.h>  /* _byteswap_ulong */
23
#   include <intrin.h>  /* _byteswap_* */
24
#endif
25
26
27
/* ******************************************************************
28
   mem.h
29
   low-level memory access routines
30
   Copyright (C) 2013-2015, Yann Collet.
31
32
   BSD 2-Clause License (https://opensource.org/licenses/bsd-license.php)
33
34
   Redistribution and use in source and binary forms, with or without
35
   modification, are permitted provided that the following conditions are
36
   met:
37
38
       * Redistributions of source code must retain the above copyright
39
   notice, this list of conditions and the following disclaimer.
40
       * Redistributions in binary form must reproduce the above
41
   copyright notice, this list of conditions and the following disclaimer
42
   in the documentation and/or other materials provided with the
43
   distribution.
44
45
   THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
46
   "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
47
   LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
48
   A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
49
   OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
50
   SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
51
   LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
52
   DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
53
   THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
54
   (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
55
   OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
56
57
    You can contact the author at :
58
    - FSE source repository : https://github.com/Cyan4973/FiniteStateEntropy
59
    - Public forum : https://groups.google.com/forum/#!forum/lz4c
60
****************************************************************** */
61
#ifndef MEM_H_MODULE
62
#define MEM_H_MODULE
63
64
#if defined (__cplusplus)
65
extern "C" {
66
#endif
67
68
/******************************************
69
*  Includes
70
******************************************/
71
#include <stddef.h>    /* size_t, ptrdiff_t */
72
#include <string.h>    /* memcpy */
73
74
75
/****************************************************************
76
*  Basic Types
77
*****************************************************************/
78
#if defined (__cplusplus) || (defined (__STDC_VERSION__) && (__STDC_VERSION__ >= 199901L) /* C99 */)
79
# if defined(_AIX)
80
#  include <inttypes.h>
81
# else
82
#  include <stdint.h> /* intptr_t */
83
# endif
84
  typedef  uint8_t BYTE;
85
  typedef uint16_t U16;
86
  typedef  int16_t S16;
87
  typedef uint32_t U32;
88
  typedef  int32_t S32;
89
  typedef uint64_t U64;
90
  typedef  int64_t S64;
91
#else
92
  typedef unsigned char       BYTE;
93
  typedef unsigned short      U16;
94
  typedef   signed short      S16;
95
  typedef unsigned int        U32;
96
  typedef   signed int        S32;
97
  typedef unsigned long long  U64;
98
  typedef   signed long long  S64;
99
#endif
100
101
102
/****************************************************************
103
*  Memory I/O
104
*****************************************************************/
105
106
1.18M
MEM_STATIC unsigned MEM_32bits(void) { return sizeof(void*)==4; }
107
803k
MEM_STATIC unsigned MEM_64bits(void) { return sizeof(void*)==8; }
108
109
MEM_STATIC unsigned MEM_isLittleEndian(void)
110
596k
{
111
596k
    const union { U32 u; BYTE c[4]; } one = { 1 };   /* don't use static : performance detrimental  */
112
596k
    return one.c[0];
113
596k
}
114
115
MEM_STATIC U16 MEM_read16(const void* memPtr)
116
9.32k
{
117
9.32k
    U16 val; memcpy(&val, memPtr, sizeof(val)); return val;
118
9.32k
}
119
120
MEM_STATIC U32 MEM_read32(const void* memPtr)
121
37.0k
{
122
37.0k
    U32 val; memcpy(&val, memPtr, sizeof(val)); return val;
123
37.0k
}
124
125
MEM_STATIC U64 MEM_read64(const void* memPtr)
126
513k
{
127
513k
    U64 val; memcpy(&val, memPtr, sizeof(val)); return val;
128
513k
}
129
130
MEM_STATIC void MEM_write16(void* memPtr, U16 value)
131
36.5k
{
132
36.5k
    memcpy(memPtr, &value, sizeof(value));
133
36.5k
}
134
135
MEM_STATIC U16 MEM_readLE16(const void* memPtr)
136
9.32k
{
137
9.32k
    if (MEM_isLittleEndian())
138
9.32k
        return MEM_read16(memPtr);
139
0
    else
140
0
    {
141
0
        const BYTE* p = (const BYTE*)memPtr;
142
0
        return (U16)(p[0] + (p[1]<<8));
143
0
    }
144
9.32k
}
145
146
MEM_STATIC void MEM_writeLE16(void* memPtr, U16 val)
147
36.5k
{
148
36.5k
    if (MEM_isLittleEndian())
149
36.5k
    {
150
36.5k
        MEM_write16(memPtr, val);
151
36.5k
    }
152
0
    else
153
0
    {
154
0
        BYTE* p = (BYTE*)memPtr;
155
0
        p[0] = (BYTE)val;
156
0
        p[1] = (BYTE)(val>>8);
157
0
    }
158
36.5k
}
159
160
MEM_STATIC U32 MEM_readLE24(const void* memPtr)
161
182
{
162
182
    return MEM_readLE16(memPtr) + (((const BYTE*)memPtr)[2] << 16);
163
182
}
164
165
MEM_STATIC U32 MEM_readLE32(const void* memPtr)
166
37.0k
{
167
37.0k
    if (MEM_isLittleEndian())
168
37.0k
        return MEM_read32(memPtr);
169
0
    else
170
0
    {
171
0
        const BYTE* p = (const BYTE*)memPtr;
172
0
        return (U32)((U32)p[0] + ((U32)p[1]<<8) + ((U32)p[2]<<16) + ((U32)p[3]<<24));
173
0
    }
174
37.0k
}
175
176
177
MEM_STATIC U64 MEM_readLE64(const void* memPtr)
178
513k
{
179
513k
    if (MEM_isLittleEndian())
180
513k
        return MEM_read64(memPtr);
181
0
    else
182
0
    {
183
0
        const BYTE* p = (const BYTE*)memPtr;
184
0
        return (U64)((U64)p[0] + ((U64)p[1]<<8) + ((U64)p[2]<<16) + ((U64)p[3]<<24)
185
0
                     + ((U64)p[4]<<32) + ((U64)p[5]<<40) + ((U64)p[6]<<48) + ((U64)p[7]<<56));
186
0
    }
187
513k
}
188
189
190
MEM_STATIC size_t MEM_readLEST(const void* memPtr)
191
513k
{
192
513k
    if (MEM_32bits())
193
0
        return (size_t)MEM_readLE32(memPtr);
194
513k
    else
195
513k
        return (size_t)MEM_readLE64(memPtr);
196
513k
}
197
198
#if defined (__cplusplus)
199
}
200
#endif
201
202
#endif /* MEM_H_MODULE */
203
204
205
/* ******************************************************************
206
   bitstream
207
   Part of NewGen Entropy library
208
   header file (to include)
209
   Copyright (C) 2013-2015, Yann Collet.
210
211
   BSD 2-Clause License (https://opensource.org/licenses/bsd-license.php)
212
213
   Redistribution and use in source and binary forms, with or without
214
   modification, are permitted provided that the following conditions are
215
   met:
216
217
       * Redistributions of source code must retain the above copyright
218
   notice, this list of conditions and the following disclaimer.
219
       * Redistributions in binary form must reproduce the above
220
   copyright notice, this list of conditions and the following disclaimer
221
   in the documentation and/or other materials provided with the
222
   distribution.
223
224
   THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
225
   "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
226
   LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
227
   A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
228
   OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
229
   SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
230
   LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
231
   DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
232
   THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
233
   (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
234
   OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
235
236
   You can contact the author at :
237
   - Source repository : https://github.com/Cyan4973/FiniteStateEntropy
238
   - Public forum : https://groups.google.com/forum/#!forum/lz4c
239
****************************************************************** */
240
#ifndef BITSTREAM_H_MODULE
241
#define BITSTREAM_H_MODULE
242
243
#if defined (__cplusplus)
244
extern "C" {
245
#endif
246
247
248
/*
249
*  This API consists of small unitary functions, which highly benefit from being inlined.
250
*  Since link-time-optimization is not available for all compilers,
251
*  these functions are defined into a .h to be included.
252
*/
253
254
255
/**********************************************
256
*  bitStream decompression API (read backward)
257
**********************************************/
258
typedef struct
259
{
260
    size_t   bitContainer;
261
    unsigned bitsConsumed;
262
    const char* ptr;
263
    const char* start;
264
} BIT_DStream_t;
265
266
typedef enum { BIT_DStream_unfinished = 0,
267
               BIT_DStream_endOfBuffer = 1,
268
               BIT_DStream_completed = 2,
269
               BIT_DStream_overflow = 3 } BIT_DStream_status;  /* result of BIT_reloadDStream() */
270
               /* 1,2,4,8 would be better for bitmap combinations, but slows down performance a bit ... :( */
271
272
MEM_STATIC size_t   BIT_initDStream(BIT_DStream_t* bitD, const void* srcBuffer, size_t srcSize);
273
MEM_STATIC size_t   BIT_readBits(BIT_DStream_t* bitD, unsigned nbBits);
274
MEM_STATIC BIT_DStream_status BIT_reloadDStream(BIT_DStream_t* bitD);
275
MEM_STATIC unsigned BIT_endOfDStream(const BIT_DStream_t* bitD);
276
277
278
/******************************************
279
*  unsafe API
280
******************************************/
281
MEM_STATIC size_t BIT_readBitsFast(BIT_DStream_t* bitD, unsigned nbBits);
282
/* faster, but works only if nbBits >= 1 */
283
284
285
286
/****************************************************************
287
*  Helper functions
288
****************************************************************/
289
MEM_STATIC unsigned BIT_highbit32 (U32 val)
290
812k
{
291
#   if defined(_MSC_VER)   /* Visual */
292
    unsigned long r;
293
    return _BitScanReverse(&r, val) ? (unsigned)r : 0;
294
#   elif defined(__GNUC__) && (__GNUC__ >= 3)   /* Use GCC Intrinsic */
295
    return __builtin_clz (val) ^ 31;
296
#   else   /* Software version */
297
    static const unsigned DeBruijnClz[32] = { 0, 9, 1, 10, 13, 21, 2, 29, 11, 14, 16, 18, 22, 25, 3, 30, 8, 12, 20, 28, 15, 17, 24, 7, 19, 27, 23, 6, 26, 5, 4, 31 };
298
    U32 v = val;
299
    unsigned r;
300
    v |= v >> 1;
301
    v |= v >> 2;
302
    v |= v >> 4;
303
    v |= v >> 8;
304
    v |= v >> 16;
305
    r = DeBruijnClz[ (U32) (v * 0x07C4ACDDU) >> 27];
306
    return r;
307
#   endif
308
812k
}
309
310
311
312
/**********************************************************
313
* bitStream decoding
314
**********************************************************/
315
316
/*!BIT_initDStream
317
*  Initialize a BIT_DStream_t.
318
*  @bitD : a pointer to an already allocated BIT_DStream_t structure
319
*  @srcBuffer must point at the beginning of a bitStream
320
*  @srcSize must be the exact size of the bitStream
321
*  @result : size of stream (== srcSize) or an errorCode if a problem is detected
322
*/
323
MEM_STATIC size_t BIT_initDStream(BIT_DStream_t* bitD, const void* srcBuffer, size_t srcSize)
324
10.2k
{
325
10.2k
    if (srcSize < 1) { memset(bitD, 0, sizeof(*bitD)); return ERROR(srcSize_wrong); }
326
327
10.2k
    if (srcSize >=  sizeof(size_t))   /* normal case */
328
1.72k
    {
329
1.72k
        U32 contain32;
330
1.72k
        bitD->start = (const char*)srcBuffer;
331
1.72k
        bitD->ptr   = (const char*)srcBuffer + srcSize - sizeof(size_t);
332
1.72k
        bitD->bitContainer = MEM_readLEST(bitD->ptr);
333
1.72k
        contain32 = ((const BYTE*)srcBuffer)[srcSize-1];
334
1.72k
        if (contain32 == 0) return ERROR(GENERIC);   /* endMark not present */
335
1.69k
        bitD->bitsConsumed = 8 - BIT_highbit32(contain32);
336
1.69k
    }
337
8.47k
    else
338
8.47k
    {
339
8.47k
        U32 contain32;
340
8.47k
        bitD->start = (const char*)srcBuffer;
341
8.47k
        bitD->ptr   = bitD->start;
342
8.47k
        bitD->bitContainer = *(const BYTE*)(bitD->start);
343
8.47k
        switch(srcSize)
344
8.47k
        {
345
30
            case 7: bitD->bitContainer += (size_t)(((const BYTE*)(bitD->start))[6]) << (sizeof(size_t)*8 - 16);
346
                    /* fallthrough */
347
157
            case 6: bitD->bitContainer += (size_t)(((const BYTE*)(bitD->start))[5]) << (sizeof(size_t)*8 - 24);
348
                    /* fallthrough */
349
221
            case 5: bitD->bitContainer += (size_t)(((const BYTE*)(bitD->start))[4]) << (sizeof(size_t)*8 - 32);
350
                    /* fallthrough */
351
749
            case 4: bitD->bitContainer += (size_t)(((const BYTE*)(bitD->start))[3]) << 24;
352
                    /* fallthrough */
353
3.00k
            case 3: bitD->bitContainer += (size_t)(((const BYTE*)(bitD->start))[2]) << 16;
354
                    /* fallthrough */
355
3.65k
            case 2: bitD->bitContainer += (size_t)(((const BYTE*)(bitD->start))[1]) <<  8;
356
                    /* fallthrough */
357
8.47k
            default:;
358
8.47k
        }
359
8.47k
        contain32 = ((const BYTE*)srcBuffer)[srcSize-1];
360
8.47k
        if (contain32 == 0) return ERROR(GENERIC);   /* endMark not present */
361
8.43k
        bitD->bitsConsumed = 8 - BIT_highbit32(contain32);
362
8.43k
        bitD->bitsConsumed += (U32)(sizeof(size_t) - srcSize)*8;
363
8.43k
    }
364
365
10.1k
    return srcSize;
366
10.2k
}
367
368
MEM_STATIC size_t BIT_lookBits(BIT_DStream_t* bitD, U32 nbBits)
369
1.37M
{
370
1.37M
    const U32 bitMask = sizeof(bitD->bitContainer)*8 - 1;
371
1.37M
    return ((bitD->bitContainer << (bitD->bitsConsumed & bitMask)) >> 1) >> ((bitMask-nbBits) & bitMask);
372
1.37M
}
373
374
/*! BIT_lookBitsFast :
375
*   unsafe version; only works if nbBits >= 1 */
376
MEM_STATIC size_t BIT_lookBitsFast(BIT_DStream_t* bitD, U32 nbBits)
377
4.91M
{
378
4.91M
    const U32 bitMask = sizeof(bitD->bitContainer)*8 - 1;
379
4.91M
    return (bitD->bitContainer << (bitD->bitsConsumed & bitMask)) >> (((bitMask+1)-nbBits) & bitMask);
380
4.91M
}
381
382
MEM_STATIC void BIT_skipBits(BIT_DStream_t* bitD, U32 nbBits)
383
6.29M
{
384
6.29M
    bitD->bitsConsumed += nbBits;
385
6.29M
}
386
387
MEM_STATIC size_t BIT_readBits(BIT_DStream_t* bitD, U32 nbBits)
388
1.37M
{
389
1.37M
    size_t value = BIT_lookBits(bitD, nbBits);
390
1.37M
    BIT_skipBits(bitD, nbBits);
391
1.37M
    return value;
392
1.37M
}
393
394
/*!BIT_readBitsFast :
395
*  unsafe version; only works if nbBits >= 1 */
396
MEM_STATIC size_t BIT_readBitsFast(BIT_DStream_t* bitD, U32 nbBits)
397
3.27k
{
398
3.27k
    size_t value = BIT_lookBitsFast(bitD, nbBits);
399
3.27k
    BIT_skipBits(bitD, nbBits);
400
3.27k
    return value;
401
3.27k
}
402
403
MEM_STATIC BIT_DStream_status BIT_reloadDStream(BIT_DStream_t* bitD)
404
650k
{
405
650k
    if (bitD->bitsConsumed > (sizeof(bitD->bitContainer)*8))  /* should never happen */
406
212
        return BIT_DStream_overflow;
407
408
650k
    if (bitD->ptr >= bitD->start + sizeof(bitD->bitContainer))
409
502k
    {
410
502k
        bitD->ptr -= bitD->bitsConsumed >> 3;
411
502k
        bitD->bitsConsumed &= 7;
412
502k
        bitD->bitContainer = MEM_readLEST(bitD->ptr);
413
502k
        return BIT_DStream_unfinished;
414
502k
    }
415
148k
    if (bitD->ptr == bitD->start)
416
139k
    {
417
139k
        if (bitD->bitsConsumed < sizeof(bitD->bitContainer)*8) return BIT_DStream_endOfBuffer;
418
10.4k
        return BIT_DStream_completed;
419
139k
    }
420
9.26k
    {
421
9.26k
        U32 nbBytes = bitD->bitsConsumed >> 3;
422
9.26k
        BIT_DStream_status result = BIT_DStream_unfinished;
423
9.26k
        if (bitD->ptr - nbBytes < bitD->start)
424
866
        {
425
866
            nbBytes = (U32)(bitD->ptr - bitD->start);  /* ptr > start */
426
866
            result = BIT_DStream_endOfBuffer;
427
866
        }
428
9.26k
        bitD->ptr -= nbBytes;
429
9.26k
        bitD->bitsConsumed -= nbBytes*8;
430
9.26k
        bitD->bitContainer = MEM_readLEST(bitD->ptr);   /* reminder : srcSize > sizeof(bitD) */
431
9.26k
        return result;
432
148k
    }
433
148k
}
434
435
/*! BIT_endOfDStream
436
*   @return Tells if DStream has reached its exact end
437
*/
438
MEM_STATIC unsigned BIT_endOfDStream(const BIT_DStream_t* DStream)
439
17.4k
{
440
17.4k
    return ((DStream->ptr == DStream->start) && (DStream->bitsConsumed == sizeof(DStream->bitContainer)*8));
441
17.4k
}
442
443
#if defined (__cplusplus)
444
}
445
#endif
446
447
#endif /* BITSTREAM_H_MODULE */
448
/* ******************************************************************
449
   Error codes and messages
450
   Copyright (C) 2013-2015, Yann Collet
451
452
   BSD 2-Clause License (https://opensource.org/licenses/bsd-license.php)
453
454
   Redistribution and use in source and binary forms, with or without
455
   modification, are permitted provided that the following conditions are
456
   met:
457
458
       * Redistributions of source code must retain the above copyright
459
   notice, this list of conditions and the following disclaimer.
460
       * Redistributions in binary form must reproduce the above
461
   copyright notice, this list of conditions and the following disclaimer
462
   in the documentation and/or other materials provided with the
463
   distribution.
464
465
   THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
466
   "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
467
   LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
468
   A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
469
   OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
470
   SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
471
   LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
472
   DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
473
   THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
474
   (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
475
   OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
476
477
   You can contact the author at :
478
   - Source repository : https://github.com/Cyan4973/FiniteStateEntropy
479
   - Public forum : https://groups.google.com/forum/#!forum/lz4c
480
****************************************************************** */
481
#ifndef ERROR_H_MODULE
482
#define ERROR_H_MODULE
483
484
#if defined (__cplusplus)
485
extern "C" {
486
#endif
487
488
489
/******************************************
490
*  Compiler-specific
491
******************************************/
492
#if defined (__cplusplus) || (defined (__STDC_VERSION__) && (__STDC_VERSION__ >= 199901L) /* C99 */)
493
#  define ERR_STATIC static inline
494
#elif defined(_MSC_VER)
495
#  define ERR_STATIC static __inline
496
#elif defined(__GNUC__)
497
#  define ERR_STATIC static __attribute__((unused))
498
#else
499
#  define ERR_STATIC static  /* this version may generate warnings for unused static functions; disable the relevant warning */
500
#endif
501
502
503
/******************************************
504
*  Error Management
505
******************************************/
506
#define PREFIX(name) ZSTD_error_##name
507
508
#define ERROR(name) (size_t)-PREFIX(name)
509
510
#define ERROR_LIST(ITEM) \
511
        ITEM(PREFIX(No_Error)) ITEM(PREFIX(GENERIC)) \
512
        ITEM(PREFIX(dstSize_tooSmall)) ITEM(PREFIX(srcSize_wrong)) \
513
        ITEM(PREFIX(prefix_unknown)) ITEM(PREFIX(corruption_detected)) \
514
        ITEM(PREFIX(tableLog_tooLarge)) ITEM(PREFIX(maxSymbolValue_tooLarge)) ITEM(PREFIX(maxSymbolValue_tooSmall)) \
515
        ITEM(PREFIX(maxCode))
516
517
#define ERROR_GENERATE_ENUM(ENUM) ENUM,
518
typedef enum { ERROR_LIST(ERROR_GENERATE_ENUM) } ERR_codes;  /* enum is exposed, to detect & handle specific errors; compare function result to -enum value */
519
520
#define ERROR_CONVERTTOSTRING(STRING) #STRING,
521
#define ERROR_GENERATE_STRING(EXPR) ERROR_CONVERTTOSTRING(EXPR)
522
static const char* ERR_strings[] = { ERROR_LIST(ERROR_GENERATE_STRING) };
523
524
ERR_STATIC unsigned ERR_isError(size_t code) { return (code > ERROR(maxCode)); }
525
526
ERR_STATIC const char* ERR_getErrorName(size_t code)
527
{
528
    static const char* codeError = "Unspecified error code";
529
    if (ERR_isError(code)) return ERR_strings[-(int)(code)];
530
    return codeError;
531
}
532
533
534
#if defined (__cplusplus)
535
}
536
#endif
537
538
#endif /* ERROR_H_MODULE */
539
/*
540
Constructor and Destructor of type FSE_CTable
541
    Note that its size depends on 'tableLog' and 'maxSymbolValue' */
542
typedef unsigned FSE_CTable;   /* don't allocate that. It's just a way to be more restrictive than void* */
543
typedef unsigned FSE_DTable;   /* don't allocate that. It's just a way to be more restrictive than void* */
544
545
546
/* ******************************************************************
547
   FSE : Finite State Entropy coder
548
   header file for static linking (only)
549
   Copyright (C) 2013-2015, Yann Collet
550
551
   BSD 2-Clause License (https://opensource.org/licenses/bsd-license.php)
552
553
   Redistribution and use in source and binary forms, with or without
554
   modification, are permitted provided that the following conditions are
555
   met:
556
557
       * Redistributions of source code must retain the above copyright
558
   notice, this list of conditions and the following disclaimer.
559
       * Redistributions in binary form must reproduce the above
560
   copyright notice, this list of conditions and the following disclaimer
561
   in the documentation and/or other materials provided with the
562
   distribution.
563
564
   THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
565
   "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
566
   LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
567
   A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
568
   OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
569
   SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
570
   LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
571
   DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
572
   THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
573
   (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
574
   OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
575
576
   You can contact the author at :
577
   - Source repository : https://github.com/Cyan4973/FiniteStateEntropy
578
   - Public forum : https://groups.google.com/forum/#!forum/lz4c
579
****************************************************************** */
580
#if defined (__cplusplus)
581
extern "C" {
582
#endif
583
584
585
/******************************************
586
*  Static allocation
587
******************************************/
588
/* FSE buffer bounds */
589
#define FSE_NCOUNTBOUND 512
590
#define FSE_BLOCKBOUND(size) (size + (size>>7))
591
#define FSE_COMPRESSBOUND(size) (FSE_NCOUNTBOUND + FSE_BLOCKBOUND(size))   /* Macro version, useful for static allocation */
592
593
/* You can statically allocate FSE CTable/DTable as a table of unsigned using below macro */
594
#define FSE_CTABLE_SIZE_U32(maxTableLog, maxSymbolValue)   (1 + (1<<(maxTableLog-1)) + ((maxSymbolValue+1)*2))
595
#define FSE_DTABLE_SIZE_U32(maxTableLog)                   (1 + (1<<maxTableLog))
596
597
598
/******************************************
599
*  FSE advanced API
600
******************************************/
601
static size_t FSE_buildDTable_raw (FSE_DTable* dt, unsigned nbBits);
602
/* build a fake FSE_DTable, designed to read an uncompressed bitstream where each symbol uses nbBits */
603
604
static size_t FSE_buildDTable_rle (FSE_DTable* dt, unsigned char symbolValue);
605
/* build a fake FSE_DTable, designed to always generate the same symbolValue */
606
607
608
/******************************************
609
*  FSE symbol decompression API
610
******************************************/
611
typedef struct
612
{
613
    size_t      state;
614
    const void* table;   /* precise table may vary, depending on U16 */
615
} FSE_DState_t;
616
617
618
static void     FSE_initDState(FSE_DState_t* DStatePtr, BIT_DStream_t* bitD, const FSE_DTable* dt);
619
620
static unsigned char FSE_decodeSymbol(FSE_DState_t* DStatePtr, BIT_DStream_t* bitD);
621
622
static unsigned FSE_endOfDState(const FSE_DState_t* DStatePtr);
623
624
625
/******************************************
626
*  FSE unsafe API
627
******************************************/
628
static unsigned char FSE_decodeSymbolFast(FSE_DState_t* DStatePtr, BIT_DStream_t* bitD);
629
/* faster, but works only if nbBits is always >= 1 (otherwise, result will be corrupted) */
630
631
632
/******************************************
633
*  Implementation of inline functions
634
******************************************/
635
636
/* decompression */
637
638
typedef struct {
639
    U16 tableLog;
640
    U16 fastMode;
641
} FSE_DTableHeader;   /* sizeof U32 */
642
643
typedef struct
644
{
645
    unsigned short newState;
646
    unsigned char  symbol;
647
    unsigned char  nbBits;
648
} FSE_decode_t;   /* size == U32 */
649
650
MEM_STATIC void FSE_initDState(FSE_DState_t* DStatePtr, BIT_DStream_t* bitD, const FSE_DTable* dt)
651
16.3k
{
652
16.3k
    FSE_DTableHeader DTableH;
653
16.3k
    memcpy(&DTableH, dt, sizeof(DTableH));
654
16.3k
    DStatePtr->state = BIT_readBits(bitD, DTableH.tableLog);
655
16.3k
    BIT_reloadDStream(bitD);
656
16.3k
    DStatePtr->table = dt + 1;
657
16.3k
}
658
659
MEM_STATIC BYTE FSE_decodeSymbol(FSE_DState_t* DStatePtr, BIT_DStream_t* bitD)
660
1.02M
{
661
1.02M
    const FSE_decode_t DInfo = ((const FSE_decode_t*)(DStatePtr->table))[DStatePtr->state];
662
1.02M
    const U32  nbBits = DInfo.nbBits;
663
1.02M
    BYTE symbol = DInfo.symbol;
664
1.02M
    size_t lowBits = BIT_readBits(bitD, nbBits);
665
666
1.02M
    DStatePtr->state = DInfo.newState + lowBits;
667
1.02M
    return symbol;
668
1.02M
}
669
670
MEM_STATIC BYTE FSE_decodeSymbolFast(FSE_DState_t* DStatePtr, BIT_DStream_t* bitD)
671
3.27k
{
672
3.27k
    const FSE_decode_t DInfo = ((const FSE_decode_t*)(DStatePtr->table))[DStatePtr->state];
673
3.27k
    const U32 nbBits = DInfo.nbBits;
674
3.27k
    BYTE symbol = DInfo.symbol;
675
3.27k
    size_t lowBits = BIT_readBitsFast(bitD, nbBits);
676
677
3.27k
    DStatePtr->state = DInfo.newState + lowBits;
678
3.27k
    return symbol;
679
3.27k
}
680
681
MEM_STATIC unsigned FSE_endOfDState(const FSE_DState_t* DStatePtr)
682
875
{
683
875
    return DStatePtr->state == 0;
684
875
}
685
686
687
#if defined (__cplusplus)
688
}
689
#endif
690
/* ******************************************************************
691
   Huff0 : Huffman coder, part of New Generation Entropy library
692
   header file for static linking (only)
693
   Copyright (C) 2013-2015, Yann Collet
694
695
   BSD 2-Clause License (https://opensource.org/licenses/bsd-license.php)
696
697
   Redistribution and use in source and binary forms, with or without
698
   modification, are permitted provided that the following conditions are
699
   met:
700
701
       * Redistributions of source code must retain the above copyright
702
   notice, this list of conditions and the following disclaimer.
703
       * Redistributions in binary form must reproduce the above
704
   copyright notice, this list of conditions and the following disclaimer
705
   in the documentation and/or other materials provided with the
706
   distribution.
707
708
   THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
709
   "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
710
   LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
711
   A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
712
   OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
713
   SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
714
   LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
715
   DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
716
   THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
717
   (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
718
   OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
719
720
   You can contact the author at :
721
   - Source repository : https://github.com/Cyan4973/FiniteStateEntropy
722
   - Public forum : https://groups.google.com/forum/#!forum/lz4c
723
****************************************************************** */
724
725
#if defined (__cplusplus)
726
extern "C" {
727
#endif
728
729
/******************************************
730
*  Static allocation macros
731
******************************************/
732
/* Huff0 buffer bounds */
733
#define HUF_CTABLEBOUND 129
734
#define HUF_BLOCKBOUND(size) (size + (size>>8) + 8)   /* only true if incompressible pre-filtered with fast heuristic */
735
#define HUF_COMPRESSBOUND(size) (HUF_CTABLEBOUND + HUF_BLOCKBOUND(size))   /* Macro version, useful for static allocation */
736
737
/* static allocation of Huff0's DTable */
738
#define HUF_DTABLE_SIZE(maxTableLog)   (1 + (1<<maxTableLog))  /* nb Cells; use unsigned short for X2, unsigned int for X4 */
739
#define HUF_CREATE_STATIC_DTABLEX2(DTable, maxTableLog) \
740
1.21k
        unsigned short DTable[HUF_DTABLE_SIZE(maxTableLog)] = { maxTableLog }
741
#define HUF_CREATE_STATIC_DTABLEX4(DTable, maxTableLog) \
742
110
        unsigned int DTable[HUF_DTABLE_SIZE(maxTableLog)] = { maxTableLog }
743
#define HUF_CREATE_STATIC_DTABLEX6(DTable, maxTableLog) \
744
87
        unsigned int DTable[HUF_DTABLE_SIZE(maxTableLog) * 3 / 2] = { maxTableLog }
745
746
747
/******************************************
748
*  Advanced functions
749
******************************************/
750
static size_t HUF_decompress4X2 (void* dst, size_t dstSize, const void* cSrc, size_t cSrcSize);   /* single-symbol decoder */
751
static size_t HUF_decompress4X4 (void* dst, size_t dstSize, const void* cSrc, size_t cSrcSize);   /* double-symbols decoder */
752
static size_t HUF_decompress4X6 (void* dst, size_t dstSize, const void* cSrc, size_t cSrcSize);   /* quad-symbols decoder */
753
754
755
#if defined (__cplusplus)
756
}
757
#endif
758
759
/*
760
    zstd - standard compression library
761
    Header File
762
    Copyright (C) 2014-2015, Yann Collet.
763
764
    BSD 2-Clause License (https://opensource.org/licenses/bsd-license.php)
765
766
    Redistribution and use in source and binary forms, with or without
767
    modification, are permitted provided that the following conditions are
768
    met:
769
    * Redistributions of source code must retain the above copyright
770
    notice, this list of conditions and the following disclaimer.
771
    * Redistributions in binary form must reproduce the above
772
    copyright notice, this list of conditions and the following disclaimer
773
    in the documentation and/or other materials provided with the
774
    distribution.
775
    THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
776
    "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
777
    LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
778
    A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
779
    OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
780
    SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
781
    LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
782
    DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
783
    THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
784
    (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
785
    OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
786
787
    You can contact the author at :
788
    - zstd source repository : https://github.com/Cyan4973/zstd
789
    - ztsd public forum : https://groups.google.com/forum/#!forum/lz4c
790
*/
791
792
#if defined (__cplusplus)
793
extern "C" {
794
#endif
795
796
/* *************************************
797
*  Includes
798
***************************************/
799
#include <stddef.h>   /* size_t */
800
801
802
/* *************************************
803
*  Version
804
***************************************/
805
#define ZSTD_VERSION_MAJOR    0    /* for breaking interface changes  */
806
#define ZSTD_VERSION_MINOR    2    /* for new (non-breaking) interface capabilities */
807
#define ZSTD_VERSION_RELEASE  2    /* for tweaks, bug-fixes, or development */
808
#define ZSTD_VERSION_NUMBER  (ZSTD_VERSION_MAJOR *100*100 + ZSTD_VERSION_MINOR *100 + ZSTD_VERSION_RELEASE)
809
810
811
/* *************************************
812
*  Advanced functions
813
***************************************/
814
typedef struct ZSTD_CCtx_s ZSTD_CCtx;   /* incomplete type */
815
816
#if defined (__cplusplus)
817
}
818
#endif
819
/*
820
    zstd - standard compression library
821
    Header File for static linking only
822
    Copyright (C) 2014-2015, Yann Collet.
823
824
    BSD 2-Clause License (https://opensource.org/licenses/bsd-license.php)
825
826
    Redistribution and use in source and binary forms, with or without
827
    modification, are permitted provided that the following conditions are
828
    met:
829
    * Redistributions of source code must retain the above copyright
830
    notice, this list of conditions and the following disclaimer.
831
    * Redistributions in binary form must reproduce the above
832
    copyright notice, this list of conditions and the following disclaimer
833
    in the documentation and/or other materials provided with the
834
    distribution.
835
    THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
836
    "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
837
    LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
838
    A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
839
    OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
840
    SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
841
    LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
842
    DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
843
    THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
844
    (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
845
    OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
846
847
    You can contact the author at :
848
    - zstd source repository : https://github.com/Cyan4973/zstd
849
    - ztsd public forum : https://groups.google.com/forum/#!forum/lz4c
850
*/
851
852
/* The objects defined into this file should be considered experimental.
853
 * They are not labelled stable, as their prototype may change in the future.
854
 * You can use them for tests, provide feedback, or if you can endure risk of future changes.
855
 */
856
857
#if defined (__cplusplus)
858
extern "C" {
859
#endif
860
861
/* *************************************
862
*  Streaming functions
863
***************************************/
864
865
typedef struct ZSTDv02_Dctx_s ZSTD_DCtx;
866
867
/*
868
  Use above functions alternatively.
869
  ZSTD_nextSrcSizeToDecompress() tells how much bytes to provide as 'srcSize' to ZSTD_decompressContinue().
870
  ZSTD_decompressContinue() will use previous data blocks to improve compression if they are located prior to current block.
871
  Result is the number of bytes regenerated within 'dst'.
872
  It can be zero, which is not an error; it just means ZSTD_decompressContinue() has decoded some header.
873
*/
874
875
/* *************************************
876
*  Prefix - version detection
877
***************************************/
878
3.37k
#define ZSTD_magicNumber 0xFD2FB522   /* v0.2 (current)*/
879
880
881
#if defined (__cplusplus)
882
}
883
#endif
884
/* ******************************************************************
885
   FSE : Finite State Entropy coder
886
   Copyright (C) 2013-2015, Yann Collet.
887
888
   BSD 2-Clause License (https://opensource.org/licenses/bsd-license.php)
889
890
   Redistribution and use in source and binary forms, with or without
891
   modification, are permitted provided that the following conditions are
892
   met:
893
894
       * Redistributions of source code must retain the above copyright
895
   notice, this list of conditions and the following disclaimer.
896
       * Redistributions in binary form must reproduce the above
897
   copyright notice, this list of conditions and the following disclaimer
898
   in the documentation and/or other materials provided with the
899
   distribution.
900
901
   THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
902
   "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
903
   LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
904
   A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
905
   OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
906
   SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
907
   LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
908
   DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
909
   THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
910
   (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
911
   OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
912
913
    You can contact the author at :
914
    - FSE source repository : https://github.com/Cyan4973/FiniteStateEntropy
915
    - Public forum : https://groups.google.com/forum/#!forum/lz4c
916
****************************************************************** */
917
918
#ifndef FSE_COMMONDEFS_ONLY
919
920
/****************************************************************
921
*  Tuning parameters
922
****************************************************************/
923
/* MEMORY_USAGE :
924
*  Memory usage formula : N->2^N Bytes (examples : 10 -> 1KB; 12 -> 4KB ; 16 -> 64KB; 20 -> 1MB; etc.)
925
*  Increasing memory usage improves compression ratio
926
*  Reduced memory usage can improve speed, due to cache effect
927
*  Recommended max value is 14, for 16KB, which nicely fits into Intel x86 L1 cache */
928
11.7k
#define FSE_MAX_MEMORY_USAGE 14
929
#define FSE_DEFAULT_MEMORY_USAGE 13
930
931
/* FSE_MAX_SYMBOL_VALUE :
932
*  Maximum symbol value authorized.
933
*  Required for proper stack allocation */
934
3.14k
#define FSE_MAX_SYMBOL_VALUE 255
935
936
937
/****************************************************************
938
*  template functions type & suffix
939
****************************************************************/
940
798k
#define FSE_FUNCTION_TYPE BYTE
941
#define FSE_FUNCTION_EXTENSION
942
943
944
/****************************************************************
945
*  Byte symbol type
946
****************************************************************/
947
#endif   /* !FSE_COMMONDEFS_ONLY */
948
949
950
/****************************************************************
951
*  Compiler specifics
952
****************************************************************/
953
#ifdef _MSC_VER    /* Visual Studio */
954
#  define FORCE_INLINE static __forceinline
955
#  include <intrin.h>                    /* For Visual 2005 */
956
#  pragma warning(disable : 4127)        /* disable: C4127: conditional expression is constant */
957
#  pragma warning(disable : 4214)        /* disable: C4214: non-int bitfields */
958
#else
959
#  if defined (__cplusplus) || defined (__STDC_VERSION__) && __STDC_VERSION__ >= 199901L   /* C99 */
960
#    ifdef __GNUC__
961
#      define FORCE_INLINE static inline __attribute__((always_inline))
962
#    else
963
#      define FORCE_INLINE static inline
964
#    endif
965
#  else
966
#    define FORCE_INLINE static
967
#  endif /* __STDC_VERSION__ */
968
#endif
969
970
971
/****************************************************************
972
*  Includes
973
****************************************************************/
974
#include <stdlib.h>     /* malloc, free, qsort */
975
#include <string.h>     /* memcpy, memset */
976
#include <stdio.h>      /* printf (debug) */
977
978
/****************************************************************
979
*  Constants
980
*****************************************************************/
981
11.7k
#define FSE_MAX_TABLELOG  (FSE_MAX_MEMORY_USAGE-2)
982
#define FSE_MAX_TABLESIZE (1U<<FSE_MAX_TABLELOG)
983
#define FSE_MAXTABLESIZE_MASK (FSE_MAX_TABLESIZE-1)
984
#define FSE_DEFAULT_TABLELOG (FSE_DEFAULT_MEMORY_USAGE-2)
985
3.01k
#define FSE_MIN_TABLELOG 5
986
987
3.01k
#define FSE_TABLELOG_ABSOLUTE_MAX 15
988
#if FSE_MAX_TABLELOG > FSE_TABLELOG_ABSOLUTE_MAX
989
#error "FSE_MAX_TABLELOG > FSE_TABLELOG_ABSOLUTE_MAX is not supported"
990
#endif
991
992
993
/****************************************************************
994
*  Error Management
995
****************************************************************/
996
#define FSE_STATIC_ASSERT(c) { enum { FSE_static_assert = 1/(int)(!!(c)) }; }   /* use only *after* variable declarations */
997
998
999
/****************************************************************
1000
*  Complex types
1001
****************************************************************/
1002
typedef U32 DTable_max_t[FSE_DTABLE_SIZE_U32(FSE_MAX_TABLELOG)];
1003
1004
1005
/****************************************************************
1006
*  Templates
1007
****************************************************************/
1008
/*
1009
  designed to be included
1010
  for type-specific functions (template emulation in C)
1011
  Objective is to write these functions only once, for improved maintenance
1012
*/
1013
1014
/* safety checks */
1015
#ifndef FSE_FUNCTION_EXTENSION
1016
#  error "FSE_FUNCTION_EXTENSION must be defined"
1017
#endif
1018
#ifndef FSE_FUNCTION_TYPE
1019
#  error "FSE_FUNCTION_TYPE must be defined"
1020
#endif
1021
1022
/* Function names */
1023
#define FSE_CAT(X,Y) X##Y
1024
#define FSE_FUNCTION_NAME(X,Y) FSE_CAT(X,Y)
1025
#define FSE_TYPE_NAME(X,Y) FSE_CAT(X,Y)
1026
1027
1028
/* Function templates */
1029
1030
2.94k
#define FSE_DECODE_TYPE FSE_decode_t
1031
1032
2.94k
static U32 FSE_tableStep(U32 tableSize) { return (tableSize>>1) + (tableSize>>3) + 3; }
1033
1034
static size_t FSE_buildDTable
1035
(FSE_DTable* dt, const short* normalizedCounter, unsigned maxSymbolValue, unsigned tableLog)
1036
2.94k
{
1037
2.94k
    void* ptr = dt+1;
1038
2.94k
    FSE_DECODE_TYPE* const tableDecode = (FSE_DECODE_TYPE*)ptr;
1039
2.94k
    FSE_DTableHeader DTableH;
1040
2.94k
    const U32 tableSize = 1 << tableLog;
1041
2.94k
    const U32 tableMask = tableSize-1;
1042
2.94k
    const U32 step = FSE_tableStep(tableSize);
1043
2.94k
    U16 symbolNext[FSE_MAX_SYMBOL_VALUE+1];
1044
2.94k
    U32 position = 0;
1045
2.94k
    U32 highThreshold = tableSize-1;
1046
2.94k
    const S16 largeLimit= (S16)(1 << (tableLog-1));
1047
2.94k
    U32 noLarge = 1;
1048
2.94k
    U32 s;
1049
1050
    /* Sanity Checks */
1051
2.94k
    if (maxSymbolValue > FSE_MAX_SYMBOL_VALUE) return ERROR(maxSymbolValue_tooLarge);
1052
2.94k
    if (tableLog > FSE_MAX_TABLELOG) return ERROR(tableLog_tooLarge);
1053
1054
    /* Init, lay down lowprob symbols */
1055
2.94k
    DTableH.tableLog = (U16)tableLog;
1056
25.3k
    for (s=0; s<=maxSymbolValue; s++)
1057
22.3k
    {
1058
22.3k
        if (normalizedCounter[s]==-1)
1059
9.55k
        {
1060
9.55k
            tableDecode[highThreshold--].symbol = (FSE_FUNCTION_TYPE)s;
1061
9.55k
            symbolNext[s] = 1;
1062
9.55k
        }
1063
12.8k
        else
1064
12.8k
        {
1065
12.8k
            if (normalizedCounter[s] >= largeLimit) noLarge=0;
1066
12.8k
            symbolNext[s] = normalizedCounter[s];
1067
12.8k
        }
1068
22.3k
    }
1069
1070
    /* Spread symbols */
1071
25.3k
    for (s=0; s<=maxSymbolValue; s++)
1072
22.3k
    {
1073
22.3k
        int i;
1074
810k
        for (i=0; i<normalizedCounter[s]; i++)
1075
788k
        {
1076
788k
            tableDecode[position].symbol = (FSE_FUNCTION_TYPE)s;
1077
788k
            position = (position + step) & tableMask;
1078
797k
            while (position > highThreshold) position = (position + step) & tableMask;   /* lowprob area */
1079
788k
        }
1080
22.3k
    }
1081
1082
2.94k
    if (position!=0) return ERROR(GENERIC);   /* position must reach all cells once, otherwise normalizedCounter is incorrect */
1083
1084
    /* Build Decoding table */
1085
2.94k
    {
1086
2.94k
        U32 i;
1087
801k
        for (i=0; i<tableSize; i++)
1088
798k
        {
1089
798k
            FSE_FUNCTION_TYPE symbol = (FSE_FUNCTION_TYPE)(tableDecode[i].symbol);
1090
798k
            U16 nextState = symbolNext[symbol]++;
1091
798k
            tableDecode[i].nbBits = (BYTE) (tableLog - BIT_highbit32 ((U32)nextState) );
1092
798k
            tableDecode[i].newState = (U16) ( (nextState << tableDecode[i].nbBits) - tableSize);
1093
798k
        }
1094
2.94k
    }
1095
1096
2.94k
    DTableH.fastMode = (U16)noLarge;
1097
2.94k
    memcpy(dt, &DTableH, sizeof(DTableH));   /* memcpy(), to avoid strict aliasing warnings */
1098
2.94k
    return 0;
1099
2.94k
}
1100
1101
1102
#ifndef FSE_COMMONDEFS_ONLY
1103
/******************************************
1104
*  FSE helper functions
1105
******************************************/
1106
3.57k
static unsigned FSE_isError(size_t code) { return ERR_isError(code); }
1107
1108
1109
/****************************************************************
1110
*  FSE NCount encoding-decoding
1111
****************************************************************/
1112
static short FSE_abs(short a)
1113
21.7k
{
1114
21.7k
    return (short)(a<0 ? -a : a);
1115
21.7k
}
1116
1117
static size_t FSE_readNCount (short* normalizedCounter, unsigned* maxSVPtr, unsigned* tableLogPtr,
1118
                 const void* headerBuffer, size_t hbSize)
1119
3.02k
{
1120
3.02k
    const BYTE* const istart = (const BYTE*) headerBuffer;
1121
3.02k
    const BYTE* const iend = istart + hbSize;
1122
3.02k
    const BYTE* ip = istart;
1123
3.02k
    int nbBits;
1124
3.02k
    int remaining;
1125
3.02k
    int threshold;
1126
3.02k
    U32 bitStream;
1127
3.02k
    int bitCount;
1128
3.02k
    unsigned charnum = 0;
1129
3.02k
    int previous0 = 0;
1130
1131
3.02k
    if (hbSize < 4) return ERROR(srcSize_wrong);
1132
3.01k
    bitStream = MEM_readLE32(ip);
1133
3.01k
    nbBits = (bitStream & 0xF) + FSE_MIN_TABLELOG;   /* extract tableLog */
1134
3.01k
    if (nbBits > FSE_TABLELOG_ABSOLUTE_MAX) return ERROR(tableLog_tooLarge);
1135
3.00k
    bitStream >>= 4;
1136
3.00k
    bitCount = 4;
1137
3.00k
    *tableLogPtr = nbBits;
1138
3.00k
    remaining = (1<<nbBits)+1;
1139
3.00k
    threshold = 1<<nbBits;
1140
3.00k
    nbBits++;
1141
1142
24.7k
    while ((remaining>1) && (charnum<=*maxSVPtr))
1143
21.7k
    {
1144
21.7k
        if (previous0)
1145
1.88k
        {
1146
1.88k
            unsigned n0 = charnum;
1147
2.30k
            while ((bitStream & 0xFFFF) == 0xFFFF)
1148
421
            {
1149
421
                n0+=24;
1150
421
                if (ip < iend-5)
1151
380
                {
1152
380
                    ip+=2;
1153
380
                    bitStream = MEM_readLE32(ip) >> bitCount;
1154
380
                }
1155
41
                else
1156
41
                {
1157
41
                    bitStream >>= 16;
1158
41
                    bitCount+=16;
1159
41
                }
1160
421
            }
1161
2.22k
            while ((bitStream & 3) == 3)
1162
338
            {
1163
338
                n0+=3;
1164
338
                bitStream>>=2;
1165
338
                bitCount+=2;
1166
338
            }
1167
1.88k
            n0 += bitStream & 3;
1168
1.88k
            bitCount += 2;
1169
1.88k
            if (n0 > *maxSVPtr) return ERROR(maxSymbolValue_tooSmall);
1170
7.13k
            while (charnum < n0) normalizedCounter[charnum++] = 0;
1171
1.87k
            if ((ip <= iend-7) || (ip + (bitCount>>3) <= iend-4))
1172
999
            {
1173
999
                ip += bitCount>>3;
1174
999
                bitCount &= 7;
1175
999
                bitStream = MEM_readLE32(ip) >> bitCount;
1176
999
            }
1177
877
            else
1178
877
                bitStream >>= 2;
1179
1.87k
        }
1180
21.7k
        {
1181
21.7k
            const short max = (short)((2*threshold-1)-remaining);
1182
21.7k
            short count;
1183
1184
21.7k
            if ((bitStream & (threshold-1)) < (U32)max)
1185
14.7k
            {
1186
14.7k
                count = (short)(bitStream & (threshold-1));
1187
14.7k
                bitCount   += nbBits-1;
1188
14.7k
            }
1189
7.03k
            else
1190
7.03k
            {
1191
7.03k
                count = (short)(bitStream & (2*threshold-1));
1192
7.03k
                if (count >= threshold) count -= max;
1193
7.03k
                bitCount   += nbBits;
1194
7.03k
            }
1195
1196
21.7k
            count--;   /* extra accuracy */
1197
21.7k
            remaining -= FSE_abs(count);
1198
21.7k
            normalizedCounter[charnum++] = count;
1199
21.7k
            previous0 = !count;
1200
41.2k
            while (remaining < threshold)
1201
19.4k
            {
1202
19.4k
                nbBits--;
1203
19.4k
                threshold >>= 1;
1204
19.4k
            }
1205
1206
21.7k
            {
1207
21.7k
                if ((ip <= iend-7) || (ip + (bitCount>>3) <= iend-4))
1208
18.7k
                {
1209
18.7k
                    ip += bitCount>>3;
1210
18.7k
                    bitCount &= 7;
1211
18.7k
                }
1212
3.00k
                else
1213
3.00k
                {
1214
3.00k
                    bitCount -= (int)(8 * (iend - 4 - ip));
1215
3.00k
                    ip = iend - 4;
1216
3.00k
                }
1217
21.7k
                bitStream = MEM_readLE32(ip) >> (bitCount & 31);
1218
21.7k
            }
1219
21.7k
        }
1220
21.7k
    }
1221
2.99k
    if (remaining != 1) return ERROR(GENERIC);
1222
2.98k
    *maxSVPtr = charnum-1;
1223
1224
2.98k
    ip += (bitCount+7)>>3;
1225
2.98k
    if ((size_t)(ip-istart) > hbSize) return ERROR(srcSize_wrong);
1226
2.96k
    return ip-istart;
1227
2.98k
}
1228
1229
1230
/*********************************************************
1231
*  Decompression (Byte symbols)
1232
*********************************************************/
1233
static size_t FSE_buildDTable_rle (FSE_DTable* dt, BYTE symbolValue)
1234
3.95k
{
1235
3.95k
    void* ptr = dt;
1236
3.95k
    FSE_DTableHeader* const DTableH = (FSE_DTableHeader*)ptr;
1237
3.95k
    FSE_decode_t* const cell = (FSE_decode_t*)(ptr) + 1;   /* because dt is unsigned */
1238
1239
3.95k
    DTableH->tableLog = 0;
1240
3.95k
    DTableH->fastMode = 0;
1241
1242
3.95k
    cell->newState = 0;
1243
3.95k
    cell->symbol = symbolValue;
1244
3.95k
    cell->nbBits = 0;
1245
1246
3.95k
    return 0;
1247
3.95k
}
1248
1249
1250
static size_t FSE_buildDTable_raw (FSE_DTable* dt, unsigned nbBits)
1251
9.44k
{
1252
9.44k
    void* ptr = dt;
1253
9.44k
    FSE_DTableHeader* const DTableH = (FSE_DTableHeader*)ptr;
1254
9.44k
    FSE_decode_t* const dinfo = (FSE_decode_t*)(ptr) + 1;   /* because dt is unsigned */
1255
9.44k
    const unsigned tableSize = 1 << nbBits;
1256
9.44k
    const unsigned tableMask = tableSize - 1;
1257
9.44k
    const unsigned maxSymbolValue = tableMask;
1258
9.44k
    unsigned s;
1259
1260
    /* Sanity checks */
1261
9.44k
    if (nbBits < 1) return ERROR(GENERIC);         /* min size */
1262
1263
    /* Build Decoding Table */
1264
9.44k
    DTableH->tableLog = (U16)nbBits;
1265
9.44k
    DTableH->fastMode = 1;
1266
759k
    for (s=0; s<=maxSymbolValue; s++)
1267
750k
    {
1268
750k
        dinfo[s].newState = 0;
1269
750k
        dinfo[s].symbol = (BYTE)s;
1270
750k
        dinfo[s].nbBits = (BYTE)nbBits;
1271
750k
    }
1272
1273
9.44k
    return 0;
1274
9.44k
}
1275
1276
FORCE_INLINE size_t FSE_decompress_usingDTable_generic(
1277
          void* dst, size_t maxDstSize,
1278
    const void* cSrc, size_t cSrcSize,
1279
    const FSE_DTable* dt, const unsigned fast)
1280
170
{
1281
170
    BYTE* const ostart = (BYTE*) dst;
1282
170
    BYTE* op = ostart;
1283
170
    BYTE* const omax = op + maxDstSize;
1284
170
    BYTE* const olimit = omax-3;
1285
1286
170
    BIT_DStream_t bitD;
1287
170
    FSE_DState_t state1;
1288
170
    FSE_DState_t state2;
1289
170
    size_t errorCode;
1290
1291
    /* Init */
1292
170
    errorCode = BIT_initDStream(&bitD, cSrc, cSrcSize);   /* replaced last arg by maxCompressed Size */
1293
170
    if (FSE_isError(errorCode)) return errorCode;
1294
1295
162
    FSE_initDState(&state1, &bitD, dt);
1296
162
    FSE_initDState(&state2, &bitD, dt);
1297
1298
19.2k
#define FSE_GETSYMBOL(statePtr) fast ? FSE_decodeSymbolFast(statePtr, &bitD) : FSE_decodeSymbol(statePtr, &bitD)
1299
1300
    /* 4 symbols per loop */
1301
3.08k
    for ( ; (BIT_reloadDStream(&bitD)==BIT_DStream_unfinished) && (op<olimit) ; op+=4)
1302
2.92k
    {
1303
2.92k
        op[0] = FSE_GETSYMBOL(&state1);
1304
1305
2.92k
        if (FSE_MAX_TABLELOG*2+7 > sizeof(bitD.bitContainer)*8)    /* This test must be static */
1306
0
            BIT_reloadDStream(&bitD);
1307
1308
2.92k
        op[1] = FSE_GETSYMBOL(&state2);
1309
1310
2.92k
        if (FSE_MAX_TABLELOG*4+7 > sizeof(bitD.bitContainer)*8)    /* This test must be static */
1311
0
            { if (BIT_reloadDStream(&bitD) > BIT_DStream_unfinished) { op+=2; break; } }
1312
1313
2.92k
        op[2] = FSE_GETSYMBOL(&state1);
1314
1315
2.92k
        if (FSE_MAX_TABLELOG*2+7 > sizeof(bitD.bitContainer)*8)    /* This test must be static */
1316
0
            BIT_reloadDStream(&bitD);
1317
1318
2.92k
        op[3] = FSE_GETSYMBOL(&state2);
1319
2.92k
    }
1320
1321
    /* tail */
1322
    /* note : BIT_reloadDStream(&bitD) >= FSE_DStream_partiallyFilled; Ends at exactly BIT_DStream_completed */
1323
3.89k
    while (1)
1324
3.89k
    {
1325
3.89k
        if ( (BIT_reloadDStream(&bitD)>BIT_DStream_completed) || (op==omax) || (BIT_endOfDStream(&bitD) && (fast || FSE_endOfDState(&state1))) )
1326
75
            break;
1327
1328
3.82k
        *op++ = FSE_GETSYMBOL(&state1);
1329
1330
3.82k
        if ( (BIT_reloadDStream(&bitD)>BIT_DStream_completed) || (op==omax) || (BIT_endOfDStream(&bitD) && (fast || FSE_endOfDState(&state2))) )
1331
87
            break;
1332
1333
3.73k
        *op++ = FSE_GETSYMBOL(&state2);
1334
3.73k
    }
1335
1336
    /* end ? */
1337
162
    if (BIT_endOfDStream(&bitD) && FSE_endOfDState(&state1) && FSE_endOfDState(&state2))
1338
69
        return op-ostart;
1339
1340
93
    if (op==omax) return ERROR(dstSize_tooSmall);   /* dst buffer is full, but cSrc unfinished */
1341
1342
64
    return ERROR(corruption_detected);
1343
93
}
1344
1345
1346
static size_t FSE_decompress_usingDTable(void* dst, size_t originalSize,
1347
                            const void* cSrc, size_t cSrcSize,
1348
                            const FSE_DTable* dt)
1349
170
{
1350
170
    FSE_DTableHeader DTableH;
1351
170
    memcpy(&DTableH, dt, sizeof(DTableH));
1352
1353
    /* select fast mode (static) */
1354
170
    if (DTableH.fastMode) return FSE_decompress_usingDTable_generic(dst, originalSize, cSrc, cSrcSize, dt, 1);
1355
117
    return FSE_decompress_usingDTable_generic(dst, originalSize, cSrc, cSrcSize, dt, 0);
1356
170
}
1357
1358
1359
static size_t FSE_decompress(void* dst, size_t maxDstSize, const void* cSrc, size_t cSrcSize)
1360
202
{
1361
202
    const BYTE* const istart = (const BYTE*)cSrc;
1362
202
    const BYTE* ip = istart;
1363
202
    short counting[FSE_MAX_SYMBOL_VALUE+1];
1364
202
    DTable_max_t dt;   /* Static analyzer seems unable to understand this table will be properly initialized later */
1365
202
    unsigned tableLog;
1366
202
    unsigned maxSymbolValue = FSE_MAX_SYMBOL_VALUE;
1367
202
    size_t errorCode;
1368
1369
202
    if (cSrcSize<2) return ERROR(srcSize_wrong);   /* too small input size */
1370
1371
    /* normal FSE decoding mode */
1372
197
    errorCode = FSE_readNCount (counting, &maxSymbolValue, &tableLog, istart, cSrcSize);
1373
197
    if (FSE_isError(errorCode)) return errorCode;
1374
173
    if (errorCode >= cSrcSize) return ERROR(srcSize_wrong);   /* too small input size */
1375
171
    ip += errorCode;
1376
171
    cSrcSize -= errorCode;
1377
1378
171
    errorCode = FSE_buildDTable (dt, counting, maxSymbolValue, tableLog);
1379
171
    if (FSE_isError(errorCode)) return errorCode;
1380
1381
    /* always return, even if it is an error code */
1382
170
    return FSE_decompress_usingDTable (dst, maxDstSize, ip, cSrcSize, dt);
1383
171
}
1384
1385
1386
1387
#endif   /* FSE_COMMONDEFS_ONLY */
1388
/* ******************************************************************
1389
   Huff0 : Huffman coder, part of New Generation Entropy library
1390
   Copyright (C) 2013-2015, Yann Collet.
1391
1392
   BSD 2-Clause License (https://opensource.org/licenses/bsd-license.php)
1393
1394
   Redistribution and use in source and binary forms, with or without
1395
   modification, are permitted provided that the following conditions are
1396
   met:
1397
1398
       * Redistributions of source code must retain the above copyright
1399
   notice, this list of conditions and the following disclaimer.
1400
       * Redistributions in binary form must reproduce the above
1401
   copyright notice, this list of conditions and the following disclaimer
1402
   in the documentation and/or other materials provided with the
1403
   distribution.
1404
1405
   THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
1406
   "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
1407
   LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
1408
   A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
1409
   OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
1410
   SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
1411
   LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
1412
   DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
1413
   THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
1414
   (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
1415
   OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
1416
1417
    You can contact the author at :
1418
    - FSE+Huff0 source repository : https://github.com/Cyan4973/FiniteStateEntropy
1419
    - Public forum : https://groups.google.com/forum/#!forum/lz4c
1420
****************************************************************** */
1421
1422
/****************************************************************
1423
*  Compiler specifics
1424
****************************************************************/
1425
#if defined (__cplusplus) || (defined (__STDC_VERSION__) && (__STDC_VERSION__ >= 199901L) /* C99 */)
1426
/* inline is defined */
1427
#elif defined(_MSC_VER)
1428
#  define inline __inline
1429
#else
1430
#  define inline /* disable inline */
1431
#endif
1432
1433
1434
#ifdef _MSC_VER    /* Visual Studio */
1435
#  pragma warning(disable : 4127)        /* disable: C4127: conditional expression is constant */
1436
#endif
1437
1438
1439
/****************************************************************
1440
*  Includes
1441
****************************************************************/
1442
#include <stdlib.h>     /* malloc, free, qsort */
1443
#include <string.h>     /* memcpy, memset */
1444
#include <stdio.h>      /* printf (debug) */
1445
1446
/****************************************************************
1447
*  Error Management
1448
****************************************************************/
1449
1.32k
#define HUF_STATIC_ASSERT(c) { enum { HUF_static_assert = 1/(int)(!!(c)) }; }   /* use only *after* variable declarations */
1450
1451
1452
/******************************************
1453
*  Helper functions
1454
******************************************/
1455
8.99k
static unsigned HUF_isError(size_t code) { return ERR_isError(code); }
1456
1457
144k
#define HUF_ABSOLUTEMAX_TABLELOG  16   /* absolute limit of HUF_MAX_TABLELOG. Beyond that value, code does not work */
1458
0
#define HUF_MAX_TABLELOG  12           /* max configured tableLog (for static allocation); can be modified up to HUF_ABSOLUTEMAX_TABLELOG */
1459
#define HUF_DEFAULT_TABLELOG  HUF_MAX_TABLELOG   /* tableLog by default, when not specified */
1460
1.41k
#define HUF_MAX_SYMBOL_VALUE 255
1461
#if (HUF_MAX_TABLELOG > HUF_ABSOLUTEMAX_TABLELOG)
1462
#  error "HUF_MAX_TABLELOG is too large !"
1463
#endif
1464
1465
1466
1467
/*********************************************************
1468
*  Huff0 : Huffman block decompression
1469
*********************************************************/
1470
typedef struct { BYTE byte; BYTE nbBits; } HUF_DEltX2;   /* single-symbol decoding */
1471
1472
typedef struct { U16 sequence; BYTE nbBits; BYTE length; } HUF_DEltX4;  /* double-symbols decoding */
1473
1474
typedef struct { BYTE symbol; BYTE weight; } sortedSymbol_t;
1475
1476
/*! HUF_readStats
1477
    Read compact Huffman tree, saved by HUF_writeCTable
1478
    @huffWeight : destination buffer
1479
    @return : size read from `src`
1480
*/
1481
static size_t HUF_readStats(BYTE* huffWeight, size_t hwSize, U32* rankStats,
1482
                            U32* nbSymbolsPtr, U32* tableLogPtr,
1483
                            const void* src, size_t srcSize)
1484
1.41k
{
1485
1.41k
    U32 weightTotal;
1486
1.41k
    U32 tableLog;
1487
1.41k
    const BYTE* ip = (const BYTE*) src;
1488
1.41k
    size_t iSize;
1489
1.41k
    size_t oSize;
1490
1.41k
    U32 n;
1491
1492
1.41k
    if (!srcSize) return ERROR(srcSize_wrong);
1493
1.40k
    iSize = ip[0];
1494
    //memset(huffWeight, 0, hwSize);   /* is not necessary, even though some analyzer complain ... */
1495
1496
1.40k
    if (iSize >= 128)  /* special header */
1497
1.20k
    {
1498
1.20k
        if (iSize >= (242))   /* RLE */
1499
1.09k
        {
1500
1.09k
            static int l[14] = { 1, 2, 3, 4, 7, 8, 15, 16, 31, 32, 63, 64, 127, 128 };
1501
1.09k
            oSize = l[iSize-242];
1502
1.09k
            memset(huffWeight, 1, hwSize);
1503
1.09k
            iSize = 0;
1504
1.09k
        }
1505
105
        else   /* Incompressible */
1506
105
        {
1507
105
            oSize = iSize - 127;
1508
105
            iSize = ((oSize+1)/2);
1509
105
            if (iSize+1 > srcSize) return ERROR(srcSize_wrong);
1510
104
            if (oSize >= hwSize) return ERROR(corruption_detected);
1511
104
            ip += 1;
1512
2.60k
            for (n=0; n<oSize; n+=2)
1513
2.50k
            {
1514
2.50k
                huffWeight[n]   = ip[n/2] >> 4;
1515
2.50k
                huffWeight[n+1] = ip[n/2] & 15;
1516
2.50k
            }
1517
104
        }
1518
1.20k
    }
1519
204
    else  /* header compressed with FSE (normal case) */
1520
204
    {
1521
204
        if (iSize+1 > srcSize) return ERROR(srcSize_wrong);
1522
202
        oSize = FSE_decompress(huffWeight, hwSize-1, ip+1, iSize);   /* max (hwSize-1) values decoded, as last one is implied */
1523
202
        if (FSE_isError(oSize)) return oSize;
1524
202
    }
1525
1526
    /* collect weight stats */
1527
1.27k
    memset(rankStats, 0, (HUF_ABSOLUTEMAX_TABLELOG + 1) * sizeof(U32));
1528
1.27k
    weightTotal = 0;
1529
143k
    for (n=0; n<oSize; n++)
1530
141k
    {
1531
141k
        if (huffWeight[n] >= HUF_ABSOLUTEMAX_TABLELOG) return ERROR(corruption_detected);
1532
141k
        rankStats[huffWeight[n]]++;
1533
141k
        weightTotal += (1 << huffWeight[n]) >> 1;
1534
141k
    }
1535
1.26k
    if (weightTotal == 0) return ERROR(corruption_detected);
1536
1537
    /* get last non-null symbol weight (implied, total must be 2^n) */
1538
1.26k
    tableLog = BIT_highbit32(weightTotal) + 1;
1539
1.26k
    if (tableLog > HUF_ABSOLUTEMAX_TABLELOG) return ERROR(corruption_detected);
1540
1.25k
    {
1541
1.25k
        U32 total = 1 << tableLog;
1542
1.25k
        U32 rest = total - weightTotal;
1543
1.25k
        U32 verif = 1 << BIT_highbit32(rest);
1544
1.25k
        U32 lastWeight = BIT_highbit32(rest) + 1;
1545
1.25k
        if (verif != rest) return ERROR(corruption_detected);    /* last value must be a clean power of 2 */
1546
1.25k
        huffWeight[oSize] = (BYTE)lastWeight;
1547
1.25k
        rankStats[lastWeight]++;
1548
1.25k
    }
1549
1550
    /* check tree construction validity */
1551
1.25k
    if ((rankStats[1] < 2) || (rankStats[1] & 1)) return ERROR(corruption_detected);   /* by construction : at least 2 elts of rank 1, must be even */
1552
1553
    /* results */
1554
1.25k
    *nbSymbolsPtr = (U32)(oSize+1);
1555
1.25k
    *tableLogPtr = tableLog;
1556
1.25k
    return iSize+1;
1557
1.25k
}
1558
1559
1560
/**************************/
1561
/* single-symbol decoding */
1562
/**************************/
1563
1564
static size_t HUF_readDTableX2 (U16* DTable, const void* src, size_t srcSize)
1565
1.21k
{
1566
1.21k
    BYTE huffWeight[HUF_MAX_SYMBOL_VALUE + 1];
1567
1.21k
    U32 rankVal[HUF_ABSOLUTEMAX_TABLELOG + 1];   /* large enough for values from 0 to 16 */
1568
1.21k
    U32 tableLog = 0;
1569
1.21k
    const BYTE* ip = (const BYTE*) src;
1570
1.21k
    size_t iSize = ip[0];
1571
1.21k
    U32 nbSymbols = 0;
1572
1.21k
    U32 n;
1573
1.21k
    U32 nextRankStart;
1574
1.21k
    void* ptr = DTable+1;
1575
1.21k
    HUF_DEltX2* const dt = (HUF_DEltX2*)ptr;
1576
1577
1.21k
    HUF_STATIC_ASSERT(sizeof(HUF_DEltX2) == sizeof(U16));   /* if compilation fails here, assertion is false */
1578
    //memset(huffWeight, 0, sizeof(huffWeight));   /* is not necessary, even though some analyzer complain ... */
1579
1580
1.21k
    iSize = HUF_readStats(huffWeight, HUF_MAX_SYMBOL_VALUE + 1, rankVal, &nbSymbols, &tableLog, src, srcSize);
1581
1.21k
    if (HUF_isError(iSize)) return iSize;
1582
1583
    /* check result */
1584
1.05k
    if (tableLog > DTable[0]) return ERROR(tableLog_tooLarge);   /* DTable is too small */
1585
1.05k
    DTable[0] = (U16)tableLog;   /* maybe should separate sizeof DTable, as allocated, from used size of DTable, in case of DTable re-use */
1586
1587
    /* Prepare ranks */
1588
1.05k
    nextRankStart = 0;
1589
9.19k
    for (n=1; n<=tableLog; n++)
1590
8.14k
    {
1591
8.14k
        U32 current = nextRankStart;
1592
8.14k
        nextRankStart += (rankVal[n] << (n-1));
1593
8.14k
        rankVal[n] = current;
1594
8.14k
    }
1595
1596
    /* fill DTable */
1597
127k
    for (n=0; n<nbSymbols; n++)
1598
126k
    {
1599
126k
        const U32 w = huffWeight[n];
1600
126k
        const U32 length = (1 << w) >> 1;
1601
126k
        U32 i;
1602
126k
        HUF_DEltX2 D;
1603
126k
        D.byte = (BYTE)n; D.nbBits = (BYTE)(tableLog + 1 - w);
1604
411k
        for (i = rankVal[w]; i < rankVal[w] + length; i++)
1605
285k
            dt[i] = D;
1606
126k
        rankVal[w] += length;
1607
126k
    }
1608
1609
1.05k
    return iSize;
1610
1.05k
}
1611
1612
static BYTE HUF_decodeSymbolX2(BIT_DStream_t* Dstream, const HUF_DEltX2* dt, const U32 dtLog)
1613
3.79M
{
1614
3.79M
        const size_t val = BIT_lookBitsFast(Dstream, dtLog); /* note : dtLog >= 1 */
1615
3.79M
        const BYTE c = dt[val].byte;
1616
3.79M
        BIT_skipBits(Dstream, dt[val].nbBits);
1617
3.79M
        return c;
1618
3.79M
}
1619
1620
#define HUF_DECODE_SYMBOLX2_0(ptr, DStreamPtr) \
1621
3.79M
    *ptr++ = HUF_decodeSymbolX2(DStreamPtr, dt, dtLog)
1622
1623
#define HUF_DECODE_SYMBOLX2_1(ptr, DStreamPtr) \
1624
117k
    if (MEM_64bits() || (HUF_MAX_TABLELOG<=12)) \
1625
117k
        HUF_DECODE_SYMBOLX2_0(ptr, DStreamPtr)
1626
1627
#define HUF_DECODE_SYMBOLX2_2(ptr, DStreamPtr) \
1628
234k
    if (MEM_64bits()) \
1629
234k
        HUF_DECODE_SYMBOLX2_0(ptr, DStreamPtr)
1630
1631
static inline size_t HUF_decodeStreamX2(BYTE* p, BIT_DStream_t* const bitDPtr, BYTE* const pEnd, const HUF_DEltX2* const dt, const U32 dtLog)
1632
4.00k
{
1633
4.00k
    BYTE* const pStart = p;
1634
1635
    /* up to 4 symbols at a time */
1636
104k
    while ((BIT_reloadDStream(bitDPtr) == BIT_DStream_unfinished) && (p <= pEnd-4))
1637
100k
    {
1638
100k
        HUF_DECODE_SYMBOLX2_2(p, bitDPtr);
1639
100k
        HUF_DECODE_SYMBOLX2_1(p, bitDPtr);
1640
100k
        HUF_DECODE_SYMBOLX2_2(p, bitDPtr);
1641
100k
        HUF_DECODE_SYMBOLX2_0(p, bitDPtr);
1642
100k
    }
1643
1644
    /* closer to the end */
1645
4.13k
    while ((BIT_reloadDStream(bitDPtr) == BIT_DStream_unfinished) && (p < pEnd))
1646
127
        HUF_DECODE_SYMBOLX2_0(p, bitDPtr);
1647
1648
    /* no more data to retrieve from bitstream, hence no need to reload */
1649
3.33M
    while (p < pEnd)
1650
3.32M
        HUF_DECODE_SYMBOLX2_0(p, bitDPtr);
1651
1652
4.00k
    return pEnd-pStart;
1653
4.00k
}
1654
1655
1656
static size_t HUF_decompress4X2_usingDTable(
1657
          void* dst,  size_t dstSize,
1658
    const void* cSrc, size_t cSrcSize,
1659
    const U16* DTable)
1660
1.05k
{
1661
1.05k
    if (cSrcSize < 10) return ERROR(corruption_detected);   /* strict minimum : jump table + 1 byte per stream */
1662
1663
1.03k
    {
1664
1.03k
        const BYTE* const istart = (const BYTE*) cSrc;
1665
1.03k
        BYTE* const ostart = (BYTE*) dst;
1666
1.03k
        BYTE* const oend = ostart + dstSize;
1667
1668
1.03k
        const void* ptr = DTable;
1669
1.03k
        const HUF_DEltX2* const dt = ((const HUF_DEltX2*)ptr) +1;
1670
1.03k
        const U32 dtLog = DTable[0];
1671
1.03k
        size_t errorCode;
1672
1673
        /* Init */
1674
1.03k
        BIT_DStream_t bitD1;
1675
1.03k
        BIT_DStream_t bitD2;
1676
1.03k
        BIT_DStream_t bitD3;
1677
1.03k
        BIT_DStream_t bitD4;
1678
1.03k
        const size_t length1 = MEM_readLE16(istart);
1679
1.03k
        const size_t length2 = MEM_readLE16(istart+2);
1680
1.03k
        const size_t length3 = MEM_readLE16(istart+4);
1681
1.03k
        size_t length4;
1682
1.03k
        const BYTE* const istart1 = istart + 6;  /* jumpTable */
1683
1.03k
        const BYTE* const istart2 = istart1 + length1;
1684
1.03k
        const BYTE* const istart3 = istart2 + length2;
1685
1.03k
        const BYTE* const istart4 = istart3 + length3;
1686
1.03k
        const size_t segmentSize = (dstSize+3) / 4;
1687
1.03k
        BYTE* const opStart2 = ostart + segmentSize;
1688
1.03k
        BYTE* const opStart3 = opStart2 + segmentSize;
1689
1.03k
        BYTE* const opStart4 = opStart3 + segmentSize;
1690
1.03k
        BYTE* op1 = ostart;
1691
1.03k
        BYTE* op2 = opStart2;
1692
1.03k
        BYTE* op3 = opStart3;
1693
1.03k
        BYTE* op4 = opStart4;
1694
1.03k
        U32 endSignal;
1695
1696
1.03k
        length4 = cSrcSize - (length1 + length2 + length3 + 6);
1697
1.03k
        if (length4 > cSrcSize) return ERROR(corruption_detected);   /* overflow */
1698
1.03k
        errorCode = BIT_initDStream(&bitD1, istart1, length1);
1699
1.03k
        if (HUF_isError(errorCode)) return errorCode;
1700
1.02k
        errorCode = BIT_initDStream(&bitD2, istart2, length2);
1701
1.02k
        if (HUF_isError(errorCode)) return errorCode;
1702
1.01k
        errorCode = BIT_initDStream(&bitD3, istart3, length3);
1703
1.01k
        if (HUF_isError(errorCode)) return errorCode;
1704
1.01k
        errorCode = BIT_initDStream(&bitD4, istart4, length4);
1705
1.01k
        if (HUF_isError(errorCode)) return errorCode;
1706
1707
        /* 16-32 symbols per loop (4-8 symbols per stream) */
1708
1.00k
        endSignal = BIT_reloadDStream(&bitD1) | BIT_reloadDStream(&bitD2) | BIT_reloadDStream(&bitD3) | BIT_reloadDStream(&bitD4);
1709
5.13k
        for ( ; (endSignal==BIT_DStream_unfinished) && (op4<(oend-7)) ; )
1710
4.13k
        {
1711
4.13k
            HUF_DECODE_SYMBOLX2_2(op1, &bitD1);
1712
4.13k
            HUF_DECODE_SYMBOLX2_2(op2, &bitD2);
1713
4.13k
            HUF_DECODE_SYMBOLX2_2(op3, &bitD3);
1714
4.13k
            HUF_DECODE_SYMBOLX2_2(op4, &bitD4);
1715
4.13k
            HUF_DECODE_SYMBOLX2_1(op1, &bitD1);
1716
4.13k
            HUF_DECODE_SYMBOLX2_1(op2, &bitD2);
1717
4.13k
            HUF_DECODE_SYMBOLX2_1(op3, &bitD3);
1718
4.13k
            HUF_DECODE_SYMBOLX2_1(op4, &bitD4);
1719
4.13k
            HUF_DECODE_SYMBOLX2_2(op1, &bitD1);
1720
4.13k
            HUF_DECODE_SYMBOLX2_2(op2, &bitD2);
1721
4.13k
            HUF_DECODE_SYMBOLX2_2(op3, &bitD3);
1722
4.13k
            HUF_DECODE_SYMBOLX2_2(op4, &bitD4);
1723
4.13k
            HUF_DECODE_SYMBOLX2_0(op1, &bitD1);
1724
4.13k
            HUF_DECODE_SYMBOLX2_0(op2, &bitD2);
1725
4.13k
            HUF_DECODE_SYMBOLX2_0(op3, &bitD3);
1726
4.13k
            HUF_DECODE_SYMBOLX2_0(op4, &bitD4);
1727
1728
4.13k
            endSignal = BIT_reloadDStream(&bitD1) | BIT_reloadDStream(&bitD2) | BIT_reloadDStream(&bitD3) | BIT_reloadDStream(&bitD4);
1729
4.13k
        }
1730
1731
        /* check corruption */
1732
1.00k
        if (op1 > opStart2) return ERROR(corruption_detected);
1733
1.00k
        if (op2 > opStart3) return ERROR(corruption_detected);
1734
1.00k
        if (op3 > opStart4) return ERROR(corruption_detected);
1735
        /* note : op4 supposed already verified within main loop */
1736
1737
        /* finish bitStreams one by one */
1738
1.00k
        HUF_decodeStreamX2(op1, &bitD1, opStart2, dt, dtLog);
1739
1.00k
        HUF_decodeStreamX2(op2, &bitD2, opStart3, dt, dtLog);
1740
1.00k
        HUF_decodeStreamX2(op3, &bitD3, opStart4, dt, dtLog);
1741
1.00k
        HUF_decodeStreamX2(op4, &bitD4, oend,     dt, dtLog);
1742
1743
        /* check */
1744
1.00k
        endSignal = BIT_endOfDStream(&bitD1) & BIT_endOfDStream(&bitD2) & BIT_endOfDStream(&bitD3) & BIT_endOfDStream(&bitD4);
1745
1.00k
        if (!endSignal) return ERROR(corruption_detected);
1746
1747
        /* decoded size */
1748
887
        return dstSize;
1749
1.00k
    }
1750
1.00k
}
1751
1752
1753
static size_t HUF_decompress4X2 (void* dst, size_t dstSize, const void* cSrc, size_t cSrcSize)
1754
1.21k
{
1755
1.21k
    HUF_CREATE_STATIC_DTABLEX2(DTable, HUF_MAX_TABLELOG);
1756
1.21k
    const BYTE* ip = (const BYTE*) cSrc;
1757
1.21k
    size_t errorCode;
1758
1759
1.21k
    errorCode = HUF_readDTableX2 (DTable, cSrc, cSrcSize);
1760
1.21k
    if (HUF_isError(errorCode)) return errorCode;
1761
1.05k
    if (errorCode >= cSrcSize) return ERROR(srcSize_wrong);
1762
1.05k
    ip += errorCode;
1763
1.05k
    cSrcSize -= errorCode;
1764
1765
1.05k
    return HUF_decompress4X2_usingDTable (dst, dstSize, ip, cSrcSize, DTable);
1766
1.05k
}
1767
1768
1769
/***************************/
1770
/* double-symbols decoding */
1771
/***************************/
1772
1773
static void HUF_fillDTableX4Level2(HUF_DEltX4* DTable, U32 sizeLog, const U32 consumed,
1774
                           const U32* rankValOrigin, const int minWeight,
1775
                           const sortedSymbol_t* sortedSymbols, const U32 sortedListSize,
1776
                           U32 nbBitsBaseline, U16 baseSeq)
1777
4.45k
{
1778
4.45k
    HUF_DEltX4 DElt;
1779
4.45k
    U32 rankVal[HUF_ABSOLUTEMAX_TABLELOG + 1];
1780
4.45k
    U32 s;
1781
1782
    /* get pre-calculated rankVal */
1783
4.45k
    memcpy(rankVal, rankValOrigin, sizeof(rankVal));
1784
1785
    /* fill skipped values */
1786
4.45k
    if (minWeight>1)
1787
3.98k
    {
1788
3.98k
        U32 i, skipSize = rankVal[minWeight];
1789
3.98k
        MEM_writeLE16(&(DElt.sequence), baseSeq);
1790
3.98k
        DElt.nbBits   = (BYTE)(consumed);
1791
3.98k
        DElt.length   = 1;
1792
34.6k
        for (i = 0; i < skipSize; i++)
1793
30.7k
            DTable[i] = DElt;
1794
3.98k
    }
1795
1796
    /* fill DTable */
1797
34.9k
    for (s=0; s<sortedListSize; s++)   /* note : sortedSymbols already skipped */
1798
30.5k
    {
1799
30.5k
        const U32 symbol = sortedSymbols[s].symbol;
1800
30.5k
        const U32 weight = sortedSymbols[s].weight;
1801
30.5k
        const U32 nbBits = nbBitsBaseline - weight;
1802
30.5k
        const U32 length = 1 << (sizeLog-nbBits);
1803
30.5k
        const U32 start = rankVal[weight];
1804
30.5k
        U32 i = start;
1805
30.5k
        const U32 end = start + length;
1806
1807
30.5k
        MEM_writeLE16(&(DElt.sequence), (U16)(baseSeq + (symbol << 8)));
1808
30.5k
        DElt.nbBits = (BYTE)(nbBits + consumed);
1809
30.5k
        DElt.length = 2;
1810
370k
        do { DTable[i++] = DElt; } while (i<end);   /* since length >= 1 */
1811
1812
30.5k
        rankVal[weight] += length;
1813
30.5k
    }
1814
4.45k
}
1815
1816
typedef U32 rankVal_t[HUF_ABSOLUTEMAX_TABLELOG][HUF_ABSOLUTEMAX_TABLELOG + 1];
1817
1818
static void HUF_fillDTableX4(HUF_DEltX4* DTable, const U32 targetLog,
1819
                           const sortedSymbol_t* sortedList, const U32 sortedListSize,
1820
                           const U32* rankStart, rankVal_t rankValOrigin, const U32 maxWeight,
1821
                           const U32 nbBitsBaseline)
1822
106
{
1823
106
    U32 rankVal[HUF_ABSOLUTEMAX_TABLELOG + 1];
1824
106
    const int scaleLog = nbBitsBaseline - targetLog;   /* note : targetLog >= srcLog, hence scaleLog <= 1 */
1825
106
    const U32 minBits  = nbBitsBaseline - maxWeight;
1826
106
    U32 s;
1827
1828
106
    memcpy(rankVal, rankValOrigin, sizeof(rankVal));
1829
1830
    /* fill DTable */
1831
6.58k
    for (s=0; s<sortedListSize; s++)
1832
6.47k
    {
1833
6.47k
        const U16 symbol = sortedList[s].symbol;
1834
6.47k
        const U32 weight = sortedList[s].weight;
1835
6.47k
        const U32 nbBits = nbBitsBaseline - weight;
1836
6.47k
        const U32 start = rankVal[weight];
1837
6.47k
        const U32 length = 1 << (targetLog-nbBits);
1838
1839
6.47k
        if (targetLog-nbBits >= minBits)   /* enough room for a second symbol */
1840
4.45k
        {
1841
4.45k
            U32 sortedRank;
1842
4.45k
            int minWeight = nbBits + scaleLog;
1843
4.45k
            if (minWeight < 1) minWeight = 1;
1844
4.45k
            sortedRank = rankStart[minWeight];
1845
4.45k
            HUF_fillDTableX4Level2(DTable+start, targetLog-nbBits, nbBits,
1846
4.45k
                           rankValOrigin[nbBits], minWeight,
1847
4.45k
                           sortedList+sortedRank, sortedListSize-sortedRank,
1848
4.45k
                           nbBitsBaseline, symbol);
1849
4.45k
        }
1850
2.02k
        else
1851
2.02k
        {
1852
2.02k
            U32 i;
1853
2.02k
            const U32 end = start + length;
1854
2.02k
            HUF_DEltX4 DElt;
1855
1856
2.02k
            MEM_writeLE16(&(DElt.sequence), symbol);
1857
2.02k
            DElt.nbBits   = (BYTE)(nbBits);
1858
2.02k
            DElt.length   = 1;
1859
35.0k
            for (i = start; i < end; i++)
1860
33.0k
                DTable[i] = DElt;
1861
2.02k
        }
1862
6.47k
        rankVal[weight] += length;
1863
6.47k
    }
1864
106
}
1865
1866
static size_t HUF_readDTableX4 (U32* DTable, const void* src, size_t srcSize)
1867
110
{
1868
110
    BYTE weightList[HUF_MAX_SYMBOL_VALUE + 1];
1869
110
    sortedSymbol_t sortedSymbol[HUF_MAX_SYMBOL_VALUE + 1];
1870
110
    U32 rankStats[HUF_ABSOLUTEMAX_TABLELOG + 1] = { 0 };
1871
110
    U32 rankStart0[HUF_ABSOLUTEMAX_TABLELOG + 2] = { 0 };
1872
110
    U32* const rankStart = rankStart0+1;
1873
110
    rankVal_t rankVal;
1874
110
    U32 tableLog, maxW, sizeOfSort, nbSymbols;
1875
110
    const U32 memLog = DTable[0];
1876
110
    const BYTE* ip = (const BYTE*) src;
1877
110
    size_t iSize = ip[0];
1878
110
    void* ptr = DTable;
1879
110
    HUF_DEltX4* const dt = ((HUF_DEltX4*)ptr) + 1;
1880
1881
110
    HUF_STATIC_ASSERT(sizeof(HUF_DEltX4) == sizeof(U32));   /* if compilation fails here, assertion is false */
1882
110
    if (memLog > HUF_ABSOLUTEMAX_TABLELOG) return ERROR(tableLog_tooLarge);
1883
    //memset(weightList, 0, sizeof(weightList));   /* is not necessary, even though some analyzer complain ... */
1884
1885
110
    iSize = HUF_readStats(weightList, HUF_MAX_SYMBOL_VALUE + 1, rankStats, &nbSymbols, &tableLog, src, srcSize);
1886
110
    if (HUF_isError(iSize)) return iSize;
1887
1888
    /* check result */
1889
107
    if (tableLog > memLog) return ERROR(tableLog_tooLarge);   /* DTable can't fit code depth */
1890
1891
    /* find maxWeight */
1892
201
    for (maxW = tableLog; rankStats[maxW]==0; maxW--)
1893
95
        {if (!maxW) return ERROR(GENERIC); }  /* necessarily finds a solution before maxW==0 */
1894
1895
    /* Get start index of each weight */
1896
106
    {
1897
106
        U32 w, nextRankStart = 0;
1898
858
        for (w=1; w<=maxW; w++)
1899
752
        {
1900
752
            U32 current = nextRankStart;
1901
752
            nextRankStart += rankStats[w];
1902
752
            rankStart[w] = current;
1903
752
        }
1904
106
        rankStart[0] = nextRankStart;   /* put all 0w symbols at the end of sorted list*/
1905
106
        sizeOfSort = nextRankStart;
1906
106
    }
1907
1908
    /* sort symbols by weight */
1909
106
    {
1910
106
        U32 s;
1911
8.45k
        for (s=0; s<nbSymbols; s++)
1912
8.35k
        {
1913
8.35k
            U32 w = weightList[s];
1914
8.35k
            U32 r = rankStart[w]++;
1915
8.35k
            sortedSymbol[r].symbol = (BYTE)s;
1916
8.35k
            sortedSymbol[r].weight = (BYTE)w;
1917
8.35k
        }
1918
106
        rankStart[0] = 0;   /* forget 0w symbols; this is beginning of weight(1) */
1919
106
    }
1920
1921
    /* Build rankVal */
1922
106
    {
1923
106
        const U32 minBits = tableLog+1 - maxW;
1924
106
        U32 nextRankVal = 0;
1925
106
        U32 w, consumed;
1926
106
        const int rescale = (memLog-tableLog) - 1;   /* tableLog <= memLog */
1927
106
        U32* rankVal0 = rankVal[0];
1928
858
        for (w=1; w<=maxW; w++)
1929
752
        {
1930
752
            U32 current = nextRankVal;
1931
752
            nextRankVal += rankStats[w] << (w+rescale);
1932
752
            rankVal0[w] = current;
1933
752
        }
1934
1.08k
        for (consumed = minBits; consumed <= memLog - minBits; consumed++)
1935
979
        {
1936
979
            U32* rankValPtr = rankVal[consumed];
1937
8.52k
            for (w = 1; w <= maxW; w++)
1938
7.54k
            {
1939
7.54k
                rankValPtr[w] = rankVal0[w] >> consumed;
1940
7.54k
            }
1941
979
        }
1942
106
    }
1943
1944
106
    HUF_fillDTableX4(dt, memLog,
1945
106
                   sortedSymbol, sizeOfSort,
1946
106
                   rankStart0, rankVal, maxW,
1947
106
                   tableLog+1);
1948
1949
106
    return iSize;
1950
106
}
1951
1952
1953
static U32 HUF_decodeSymbolX4(void* op, BIT_DStream_t* DStream, const HUF_DEltX4* dt, const U32 dtLog)
1954
885k
{
1955
885k
    const size_t val = BIT_lookBitsFast(DStream, dtLog);   /* note : dtLog >= 1 */
1956
885k
    memcpy(op, dt+val, 2);
1957
885k
    BIT_skipBits(DStream, dt[val].nbBits);
1958
885k
    return dt[val].length;
1959
885k
}
1960
1961
static U32 HUF_decodeLastSymbolX4(void* op, BIT_DStream_t* DStream, const HUF_DEltX4* dt, const U32 dtLog)
1962
160
{
1963
160
    const size_t val = BIT_lookBitsFast(DStream, dtLog);   /* note : dtLog >= 1 */
1964
160
    memcpy(op, dt+val, 1);
1965
160
    if (dt[val].length==1) BIT_skipBits(DStream, dt[val].nbBits);
1966
113
    else
1967
113
    {
1968
113
        if (DStream->bitsConsumed < (sizeof(DStream->bitContainer)*8))
1969
42
        {
1970
42
            BIT_skipBits(DStream, dt[val].nbBits);
1971
42
            if (DStream->bitsConsumed > (sizeof(DStream->bitContainer)*8))
1972
10
                DStream->bitsConsumed = (sizeof(DStream->bitContainer)*8);   /* ugly hack; works only because it's the last symbol. Note : can't easily extract nbBits from just this symbol */
1973
42
        }
1974
113
    }
1975
160
    return 1;
1976
160
}
1977
1978
1979
#define HUF_DECODE_SYMBOLX4_0(ptr, DStreamPtr) \
1980
504k
    ptr += HUF_decodeSymbolX4(ptr, DStreamPtr, dt, dtLog)
1981
1982
#define HUF_DECODE_SYMBOLX4_1(ptr, DStreamPtr) \
1983
126k
    if (MEM_64bits() || (HUF_MAX_TABLELOG<=12)) \
1984
126k
        ptr += HUF_decodeSymbolX4(ptr, DStreamPtr, dt, dtLog)
1985
1986
#define HUF_DECODE_SYMBOLX4_2(ptr, DStreamPtr) \
1987
253k
    if (MEM_64bits()) \
1988
253k
        ptr += HUF_decodeSymbolX4(ptr, DStreamPtr, dt, dtLog)
1989
1990
static inline size_t HUF_decodeStreamX4(BYTE* p, BIT_DStream_t* bitDPtr, BYTE* const pEnd, const HUF_DEltX4* const dt, const U32 dtLog)
1991
276
{
1992
276
    BYTE* const pStart = p;
1993
1994
    /* up to 8 symbols at a time */
1995
103k
    while ((BIT_reloadDStream(bitDPtr) == BIT_DStream_unfinished) && (p < pEnd-7))
1996
102k
    {
1997
102k
        HUF_DECODE_SYMBOLX4_2(p, bitDPtr);
1998
102k
        HUF_DECODE_SYMBOLX4_1(p, bitDPtr);
1999
102k
        HUF_DECODE_SYMBOLX4_2(p, bitDPtr);
2000
102k
        HUF_DECODE_SYMBOLX4_0(p, bitDPtr);
2001
102k
    }
2002
2003
    /* closer to the end */
2004
398
    while ((BIT_reloadDStream(bitDPtr) == BIT_DStream_unfinished) && (p <= pEnd-2))
2005
122
        HUF_DECODE_SYMBOLX4_0(p, bitDPtr);
2006
2007
377k
    while (p <= pEnd-2)
2008
377k
        HUF_DECODE_SYMBOLX4_0(p, bitDPtr);   /* no need to reload : reached the end of DStream */
2009
2010
276
    if (p < pEnd)
2011
160
        p += HUF_decodeLastSymbolX4(p, bitDPtr, dt, dtLog);
2012
2013
276
    return p-pStart;
2014
276
}
2015
2016
2017
2018
static size_t HUF_decompress4X4_usingDTable(
2019
          void* dst,  size_t dstSize,
2020
    const void* cSrc, size_t cSrcSize,
2021
    const U32* DTable)
2022
106
{
2023
106
    if (cSrcSize < 10) return ERROR(corruption_detected);   /* strict minimum : jump table + 1 byte per stream */
2024
2025
106
    {
2026
106
        const BYTE* const istart = (const BYTE*) cSrc;
2027
106
        BYTE* const ostart = (BYTE*) dst;
2028
106
        BYTE* const oend = ostart + dstSize;
2029
2030
106
        const void* ptr = DTable;
2031
106
        const HUF_DEltX4* const dt = ((const HUF_DEltX4*)ptr) +1;
2032
106
        const U32 dtLog = DTable[0];
2033
106
        size_t errorCode;
2034
2035
        /* Init */
2036
106
        BIT_DStream_t bitD1;
2037
106
        BIT_DStream_t bitD2;
2038
106
        BIT_DStream_t bitD3;
2039
106
        BIT_DStream_t bitD4;
2040
106
        const size_t length1 = MEM_readLE16(istart);
2041
106
        const size_t length2 = MEM_readLE16(istart+2);
2042
106
        const size_t length3 = MEM_readLE16(istart+4);
2043
106
        size_t length4;
2044
106
        const BYTE* const istart1 = istart + 6;  /* jumpTable */
2045
106
        const BYTE* const istart2 = istart1 + length1;
2046
106
        const BYTE* const istart3 = istart2 + length2;
2047
106
        const BYTE* const istart4 = istart3 + length3;
2048
106
        const size_t segmentSize = (dstSize+3) / 4;
2049
106
        BYTE* const opStart2 = ostart + segmentSize;
2050
106
        BYTE* const opStart3 = opStart2 + segmentSize;
2051
106
        BYTE* const opStart4 = opStart3 + segmentSize;
2052
106
        BYTE* op1 = ostart;
2053
106
        BYTE* op2 = opStart2;
2054
106
        BYTE* op3 = opStart3;
2055
106
        BYTE* op4 = opStart4;
2056
106
        U32 endSignal;
2057
2058
106
        length4 = cSrcSize - (length1 + length2 + length3 + 6);
2059
106
        if (length4 > cSrcSize) return ERROR(corruption_detected);   /* overflow */
2060
90
        errorCode = BIT_initDStream(&bitD1, istart1, length1);
2061
90
        if (HUF_isError(errorCode)) return errorCode;
2062
86
        errorCode = BIT_initDStream(&bitD2, istart2, length2);
2063
86
        if (HUF_isError(errorCode)) return errorCode;
2064
80
        errorCode = BIT_initDStream(&bitD3, istart3, length3);
2065
80
        if (HUF_isError(errorCode)) return errorCode;
2066
75
        errorCode = BIT_initDStream(&bitD4, istart4, length4);
2067
75
        if (HUF_isError(errorCode)) return errorCode;
2068
2069
        /* 16-32 symbols per loop (4-8 symbols per stream) */
2070
72
        endSignal = BIT_reloadDStream(&bitD1) | BIT_reloadDStream(&bitD2) | BIT_reloadDStream(&bitD3) | BIT_reloadDStream(&bitD4);
2071
6.11k
        for ( ; (endSignal==BIT_DStream_unfinished) && (op4<(oend-7)) ; )
2072
6.04k
        {
2073
6.04k
            HUF_DECODE_SYMBOLX4_2(op1, &bitD1);
2074
6.04k
            HUF_DECODE_SYMBOLX4_2(op2, &bitD2);
2075
6.04k
            HUF_DECODE_SYMBOLX4_2(op3, &bitD3);
2076
6.04k
            HUF_DECODE_SYMBOLX4_2(op4, &bitD4);
2077
6.04k
            HUF_DECODE_SYMBOLX4_1(op1, &bitD1);
2078
6.04k
            HUF_DECODE_SYMBOLX4_1(op2, &bitD2);
2079
6.04k
            HUF_DECODE_SYMBOLX4_1(op3, &bitD3);
2080
6.04k
            HUF_DECODE_SYMBOLX4_1(op4, &bitD4);
2081
6.04k
            HUF_DECODE_SYMBOLX4_2(op1, &bitD1);
2082
6.04k
            HUF_DECODE_SYMBOLX4_2(op2, &bitD2);
2083
6.04k
            HUF_DECODE_SYMBOLX4_2(op3, &bitD3);
2084
6.04k
            HUF_DECODE_SYMBOLX4_2(op4, &bitD4);
2085
6.04k
            HUF_DECODE_SYMBOLX4_0(op1, &bitD1);
2086
6.04k
            HUF_DECODE_SYMBOLX4_0(op2, &bitD2);
2087
6.04k
            HUF_DECODE_SYMBOLX4_0(op3, &bitD3);
2088
6.04k
            HUF_DECODE_SYMBOLX4_0(op4, &bitD4);
2089
2090
6.04k
            endSignal = BIT_reloadDStream(&bitD1) | BIT_reloadDStream(&bitD2) | BIT_reloadDStream(&bitD3) | BIT_reloadDStream(&bitD4);
2091
6.04k
        }
2092
2093
        /* check corruption */
2094
72
        if (op1 > opStart2) return ERROR(corruption_detected);
2095
71
        if (op2 > opStart3) return ERROR(corruption_detected);
2096
70
        if (op3 > opStart4) return ERROR(corruption_detected);
2097
        /* note : op4 supposed already verified within main loop */
2098
2099
        /* finish bitStreams one by one */
2100
69
        HUF_decodeStreamX4(op1, &bitD1, opStart2, dt, dtLog);
2101
69
        HUF_decodeStreamX4(op2, &bitD2, opStart3, dt, dtLog);
2102
69
        HUF_decodeStreamX4(op3, &bitD3, opStart4, dt, dtLog);
2103
69
        HUF_decodeStreamX4(op4, &bitD4, oend,     dt, dtLog);
2104
2105
        /* check */
2106
69
        endSignal = BIT_endOfDStream(&bitD1) & BIT_endOfDStream(&bitD2) & BIT_endOfDStream(&bitD3) & BIT_endOfDStream(&bitD4);
2107
69
        if (!endSignal) return ERROR(corruption_detected);
2108
2109
        /* decoded size */
2110
1
        return dstSize;
2111
69
    }
2112
69
}
2113
2114
2115
static size_t HUF_decompress4X4 (void* dst, size_t dstSize, const void* cSrc, size_t cSrcSize)
2116
110
{
2117
110
    HUF_CREATE_STATIC_DTABLEX4(DTable, HUF_MAX_TABLELOG);
2118
110
    const BYTE* ip = (const BYTE*) cSrc;
2119
2120
110
    size_t hSize = HUF_readDTableX4 (DTable, cSrc, cSrcSize);
2121
110
    if (HUF_isError(hSize)) return hSize;
2122
106
    if (hSize >= cSrcSize) return ERROR(srcSize_wrong);
2123
106
    ip += hSize;
2124
106
    cSrcSize -= hSize;
2125
2126
106
    return HUF_decompress4X4_usingDTable (dst, dstSize, ip, cSrcSize, DTable);
2127
106
}
2128
2129
2130
/**********************************/
2131
/* quad-symbol decoding           */
2132
/**********************************/
2133
typedef struct { BYTE nbBits; BYTE nbBytes; } HUF_DDescX6;
2134
typedef union { BYTE byte[4]; U32 sequence; } HUF_DSeqX6;
2135
2136
/* recursive, up to level 3; may benefit from <template>-like strategy to nest each level inline */
2137
static void HUF_fillDTableX6LevelN(HUF_DDescX6* DDescription, HUF_DSeqX6* DSequence, int sizeLog,
2138
                           const rankVal_t rankValOrigin, const U32 consumed, const int minWeight, const U32 maxWeight,
2139
                           const sortedSymbol_t* sortedSymbols, const U32 sortedListSize, const U32* rankStart,
2140
                           const U32 nbBitsBaseline, HUF_DSeqX6 baseSeq, HUF_DDescX6 DDesc)
2141
8.64k
{
2142
8.64k
    const int scaleLog = nbBitsBaseline - sizeLog;   /* note : targetLog >= (nbBitsBaseline-1), hence scaleLog <= 1 */
2143
8.64k
    const int minBits  = nbBitsBaseline - maxWeight;
2144
8.64k
    const U32 level = DDesc.nbBytes;
2145
8.64k
    U32 rankVal[HUF_ABSOLUTEMAX_TABLELOG + 1];
2146
8.64k
    U32 symbolStartPos, s;
2147
2148
    /* local rankVal, will be modified */
2149
8.64k
    memcpy(rankVal, rankValOrigin[consumed], sizeof(rankVal));
2150
2151
    /* fill skipped values */
2152
8.64k
    if (minWeight>1)
2153
7.04k
    {
2154
7.04k
        U32 i;
2155
7.04k
        const U32 skipSize = rankVal[minWeight];
2156
87.0k
        for (i = 0; i < skipSize; i++)
2157
80.0k
        {
2158
80.0k
            DSequence[i] = baseSeq;
2159
80.0k
            DDescription[i] = DDesc;
2160
80.0k
        }
2161
7.04k
    }
2162
2163
    /* fill DTable */
2164
8.64k
    DDesc.nbBytes++;
2165
8.64k
    symbolStartPos = rankStart[minWeight];
2166
54.2k
    for (s=symbolStartPos; s<sortedListSize; s++)
2167
45.5k
    {
2168
45.5k
        const BYTE symbol = sortedSymbols[s].symbol;
2169
45.5k
        const U32  weight = sortedSymbols[s].weight;   /* >= 1 (sorted) */
2170
45.5k
        const int  nbBits = nbBitsBaseline - weight;   /* >= 1 (by construction) */
2171
45.5k
        const int  totalBits = consumed+nbBits;
2172
45.5k
        const U32  start  = rankVal[weight];
2173
45.5k
        const U32  length = 1 << (sizeLog-nbBits);
2174
45.5k
        baseSeq.byte[level] = symbol;
2175
45.5k
        DDesc.nbBits = (BYTE)totalBits;
2176
2177
45.5k
        if ((level<3) && (sizeLog-totalBits >= minBits))   /* enough room for another symbol */
2178
8.55k
        {
2179
8.55k
            int nextMinWeight = totalBits + scaleLog;
2180
8.55k
            if (nextMinWeight < 1) nextMinWeight = 1;
2181
8.55k
            HUF_fillDTableX6LevelN(DDescription+start, DSequence+start, sizeLog-nbBits,
2182
8.55k
                           rankValOrigin, totalBits, nextMinWeight, maxWeight,
2183
8.55k
                           sortedSymbols, sortedListSize, rankStart,
2184
8.55k
                           nbBitsBaseline, baseSeq, DDesc);   /* recursive (max : level 3) */
2185
8.55k
        }
2186
37.0k
        else
2187
37.0k
        {
2188
37.0k
            U32 i;
2189
37.0k
            const U32 end = start + length;
2190
301k
            for (i = start; i < end; i++)
2191
264k
            {
2192
264k
                DDescription[i] = DDesc;
2193
264k
                DSequence[i] = baseSeq;
2194
264k
            }
2195
37.0k
        }
2196
45.5k
        rankVal[weight] += length;
2197
45.5k
    }
2198
8.64k
}
2199
2200
2201
/* note : same preparation as X4 */
2202
static size_t HUF_readDTableX6 (U32* DTable, const void* src, size_t srcSize)
2203
87
{
2204
87
    BYTE weightList[HUF_MAX_SYMBOL_VALUE + 1];
2205
87
    sortedSymbol_t sortedSymbol[HUF_MAX_SYMBOL_VALUE + 1];
2206
87
    U32 rankStats[HUF_ABSOLUTEMAX_TABLELOG + 1] = { 0 };
2207
87
    U32 rankStart0[HUF_ABSOLUTEMAX_TABLELOG + 2] = { 0 };
2208
87
    U32* const rankStart = rankStart0+1;
2209
87
    U32 tableLog, maxW, sizeOfSort, nbSymbols;
2210
87
    rankVal_t rankVal;
2211
87
    const U32 memLog = DTable[0];
2212
87
    const BYTE* ip = (const BYTE*) src;
2213
87
    size_t iSize = ip[0];
2214
2215
87
    if (memLog > HUF_ABSOLUTEMAX_TABLELOG) return ERROR(tableLog_tooLarge);
2216
    //memset(weightList, 0, sizeof(weightList));   /* is not necessary, even though some analyzer complain ... */
2217
2218
87
    iSize = HUF_readStats(weightList, HUF_MAX_SYMBOL_VALUE + 1, rankStats, &nbSymbols, &tableLog, src, srcSize);
2219
87
    if (HUF_isError(iSize)) return iSize;
2220
2221
    /* check result */
2222
85
    if (tableLog > memLog) return ERROR(tableLog_tooLarge);   /* DTable is too small */
2223
2224
    /* find maxWeight */
2225
136
    for (maxW = tableLog; rankStats[maxW]==0; maxW--)
2226
52
        { if (!maxW) return ERROR(GENERIC); }  /* necessarily finds a solution before maxW==0 */
2227
2228
2229
    /* Get start index of each weight */
2230
84
    {
2231
84
        U32 w, nextRankStart = 0;
2232
574
        for (w=1; w<=maxW; w++)
2233
490
        {
2234
490
            U32 current = nextRankStart;
2235
490
            nextRankStart += rankStats[w];
2236
490
            rankStart[w] = current;
2237
490
        }
2238
84
        rankStart[0] = nextRankStart;   /* put all 0w symbols at the end of sorted list*/
2239
84
        sizeOfSort = nextRankStart;
2240
84
    }
2241
2242
    /* sort symbols by weight */
2243
84
    {
2244
84
        U32 s;
2245
7.06k
        for (s=0; s<nbSymbols; s++)
2246
6.98k
        {
2247
6.98k
            U32 w = weightList[s];
2248
6.98k
            U32 r = rankStart[w]++;
2249
6.98k
            sortedSymbol[r].symbol = (BYTE)s;
2250
6.98k
            sortedSymbol[r].weight = (BYTE)w;
2251
6.98k
        }
2252
84
        rankStart[0] = 0;   /* forget 0w symbols; this is beginning of weight(1) */
2253
84
    }
2254
2255
    /* Build rankVal */
2256
84
    {
2257
84
        const U32 minBits = tableLog+1 - maxW;
2258
84
        U32 nextRankVal = 0;
2259
84
        U32 w, consumed;
2260
84
        const int rescale = (memLog-tableLog) - 1;   /* tableLog <= memLog */
2261
84
        U32* rankVal0 = rankVal[0];
2262
574
        for (w=1; w<=maxW; w++)
2263
490
        {
2264
490
            U32 current = nextRankVal;
2265
490
            nextRankVal += rankStats[w] << (w+rescale);
2266
490
            rankVal0[w] = current;
2267
490
        }
2268
905
        for (consumed = minBits; consumed <= memLog - minBits; consumed++)
2269
821
        {
2270
821
            U32* rankValPtr = rankVal[consumed];
2271
5.96k
            for (w = 1; w <= maxW; w++)
2272
5.13k
            {
2273
5.13k
                rankValPtr[w] = rankVal0[w] >> consumed;
2274
5.13k
            }
2275
821
        }
2276
84
    }
2277
2278
2279
    /* fill tables */
2280
84
    {
2281
84
        void* ptr = DTable+1;
2282
84
        HUF_DDescX6* DDescription = (HUF_DDescX6*)(ptr);
2283
84
        void* dSeqStart = DTable + 1 + ((size_t)1<<(memLog-1));
2284
84
        HUF_DSeqX6* DSequence = (HUF_DSeqX6*)(dSeqStart);
2285
84
        HUF_DSeqX6 DSeq;
2286
84
        HUF_DDescX6 DDesc;
2287
84
        DSeq.sequence = 0;
2288
84
        DDesc.nbBits = 0;
2289
84
        DDesc.nbBytes = 0;
2290
84
        HUF_fillDTableX6LevelN(DDescription, DSequence, memLog,
2291
84
                       (const U32 (*)[HUF_ABSOLUTEMAX_TABLELOG + 1])rankVal, 0, 1, maxW,
2292
84
                       sortedSymbol, sizeOfSort, rankStart0,
2293
84
                       tableLog+1, DSeq, DDesc);
2294
84
    }
2295
2296
84
    return iSize;
2297
84
}
2298
2299
2300
static U32 HUF_decodeSymbolX6(void* op, BIT_DStream_t* DStream, const HUF_DDescX6* dd, const HUF_DSeqX6* ds, const U32 dtLog)
2301
226k
{
2302
226k
    const size_t val = BIT_lookBitsFast(DStream, dtLog);   /* note : dtLog >= 1 */
2303
226k
    memcpy(op, ds+val, sizeof(HUF_DSeqX6));
2304
226k
    BIT_skipBits(DStream, dd[val].nbBits);
2305
226k
    return dd[val].nbBytes;
2306
226k
}
2307
2308
static U32 HUF_decodeLastSymbolsX6(void* op, const U32 maxL, BIT_DStream_t* DStream,
2309
                                  const HUF_DDescX6* dd, const HUF_DSeqX6* ds, const U32 dtLog)
2310
288
{
2311
288
    const size_t val = BIT_lookBitsFast(DStream, dtLog);   /* note : dtLog >= 1 */
2312
288
    U32 length = dd[val].nbBytes;
2313
288
    if (length <= maxL)
2314
147
    {
2315
147
        memcpy(op, ds+val, length);
2316
147
        BIT_skipBits(DStream, dd[val].nbBits);
2317
147
        return length;
2318
147
    }
2319
141
    memcpy(op, ds+val, maxL);
2320
141
    if (DStream->bitsConsumed < (sizeof(DStream->bitContainer)*8))
2321
54
    {
2322
54
        BIT_skipBits(DStream, dd[val].nbBits);
2323
54
        if (DStream->bitsConsumed > (sizeof(DStream->bitContainer)*8))
2324
10
            DStream->bitsConsumed = (sizeof(DStream->bitContainer)*8);   /* ugly hack; works only because it's the last symbol. Note : can't easily extract nbBits from just this symbol */
2325
54
    }
2326
141
    return maxL;
2327
288
}
2328
2329
2330
#define HUF_DECODE_SYMBOLX6_0(ptr, DStreamPtr) \
2331
297k
    ptr += HUF_decodeSymbolX6(ptr, DStreamPtr, dd, ds, dtLog)
2332
2333
#define HUF_DECODE_SYMBOLX6_1(ptr, DStreamPtr) \
2334
23.7k
    if (MEM_64bits() || (HUF_MAX_TABLELOG<=12)) \
2335
23.7k
        HUF_DECODE_SYMBOLX6_0(ptr, DStreamPtr)
2336
2337
#define HUF_DECODE_SYMBOLX6_2(ptr, DStreamPtr) \
2338
47.4k
    if (MEM_64bits()) \
2339
47.4k
        HUF_DECODE_SYMBOLX6_0(ptr, DStreamPtr)
2340
2341
static inline size_t HUF_decodeStreamX6(BYTE* p, BIT_DStream_t* bitDPtr, BYTE* const pEnd, const U32* DTable, const U32 dtLog)
2342
228
{
2343
228
    const void* ddPtr = DTable+1;
2344
228
    const HUF_DDescX6* dd = (const HUF_DDescX6*)(ddPtr);
2345
228
    const void* dsPtr = DTable + 1 + ((size_t)1<<(dtLog-1));
2346
228
    const HUF_DSeqX6* ds = (const HUF_DSeqX6*)(dsPtr);
2347
228
    BYTE* const pStart = p;
2348
2349
    /* up to 16 symbols at a time */
2350
15.5k
    while ((BIT_reloadDStream(bitDPtr) == BIT_DStream_unfinished) && (p <= pEnd-16))
2351
15.3k
    {
2352
15.3k
        HUF_DECODE_SYMBOLX6_2(p, bitDPtr);
2353
15.3k
        HUF_DECODE_SYMBOLX6_1(p, bitDPtr);
2354
15.3k
        HUF_DECODE_SYMBOLX6_2(p, bitDPtr);
2355
15.3k
        HUF_DECODE_SYMBOLX6_0(p, bitDPtr);
2356
15.3k
    }
2357
2358
    /* closer to the end, up to 4 symbols at a time */
2359
363
    while ((BIT_reloadDStream(bitDPtr) == BIT_DStream_unfinished) && (p <= pEnd-4))
2360
135
        HUF_DECODE_SYMBOLX6_0(p, bitDPtr);
2361
2362
131k
    while (p <= pEnd-4)
2363
131k
        HUF_DECODE_SYMBOLX6_0(p, bitDPtr);   /* no need to reload : reached the end of DStream */
2364
2365
516
    while (p < pEnd)
2366
288
        p += HUF_decodeLastSymbolsX6(p, (U32)(pEnd-p), bitDPtr, dd, ds, dtLog);
2367
2368
228
    return p-pStart;
2369
228
}
2370
2371
2372
2373
static size_t HUF_decompress4X6_usingDTable(
2374
          void* dst,  size_t dstSize,
2375
    const void* cSrc, size_t cSrcSize,
2376
    const U32* DTable)
2377
84
{
2378
84
    if (cSrcSize < 10) return ERROR(corruption_detected);   /* strict minimum : jump table + 1 byte per stream */
2379
2380
84
    {
2381
84
        const BYTE* const istart = (const BYTE*) cSrc;
2382
84
        BYTE* const ostart = (BYTE*) dst;
2383
84
        BYTE* const oend = ostart + dstSize;
2384
2385
84
        const U32 dtLog = DTable[0];
2386
84
        const void* ddPtr = DTable+1;
2387
84
        const HUF_DDescX6* dd = (const HUF_DDescX6*)(ddPtr);
2388
84
        const void* dsPtr = DTable + 1 + ((size_t)1<<(dtLog-1));
2389
84
        const HUF_DSeqX6* ds = (const HUF_DSeqX6*)(dsPtr);
2390
84
        size_t errorCode;
2391
2392
        /* Init */
2393
84
        BIT_DStream_t bitD1;
2394
84
        BIT_DStream_t bitD2;
2395
84
        BIT_DStream_t bitD3;
2396
84
        BIT_DStream_t bitD4;
2397
84
        const size_t length1 = MEM_readLE16(istart);
2398
84
        const size_t length2 = MEM_readLE16(istart+2);
2399
84
        const size_t length3 = MEM_readLE16(istart+4);
2400
84
        size_t length4;
2401
84
        const BYTE* const istart1 = istart + 6;  /* jumpTable */
2402
84
        const BYTE* const istart2 = istart1 + length1;
2403
84
        const BYTE* const istart3 = istart2 + length2;
2404
84
        const BYTE* const istart4 = istart3 + length3;
2405
84
        const size_t segmentSize = (dstSize+3) / 4;
2406
84
        BYTE* const opStart2 = ostart + segmentSize;
2407
84
        BYTE* const opStart3 = opStart2 + segmentSize;
2408
84
        BYTE* const opStart4 = opStart3 + segmentSize;
2409
84
        BYTE* op1 = ostart;
2410
84
        BYTE* op2 = opStart2;
2411
84
        BYTE* op3 = opStart3;
2412
84
        BYTE* op4 = opStart4;
2413
84
        U32 endSignal;
2414
2415
84
        length4 = cSrcSize - (length1 + length2 + length3 + 6);
2416
84
        if (length4 > cSrcSize) return ERROR(corruption_detected);   /* overflow */
2417
76
        errorCode = BIT_initDStream(&bitD1, istart1, length1);
2418
76
        if (HUF_isError(errorCode)) return errorCode;
2419
72
        errorCode = BIT_initDStream(&bitD2, istart2, length2);
2420
72
        if (HUF_isError(errorCode)) return errorCode;
2421
68
        errorCode = BIT_initDStream(&bitD3, istart3, length3);
2422
68
        if (HUF_isError(errorCode)) return errorCode;
2423
61
        errorCode = BIT_initDStream(&bitD4, istart4, length4);
2424
61
        if (HUF_isError(errorCode)) return errorCode;
2425
2426
        /* 16-64 symbols per loop (4-16 symbols per stream) */
2427
60
        endSignal = BIT_reloadDStream(&bitD1) | BIT_reloadDStream(&bitD2) | BIT_reloadDStream(&bitD3) | BIT_reloadDStream(&bitD4);
2428
2.15k
        for ( ; (op3 <= opStart4) && (endSignal==BIT_DStream_unfinished) && (op4<=(oend-16)) ; )
2429
2.09k
        {
2430
2.09k
            HUF_DECODE_SYMBOLX6_2(op1, &bitD1);
2431
2.09k
            HUF_DECODE_SYMBOLX6_2(op2, &bitD2);
2432
2.09k
            HUF_DECODE_SYMBOLX6_2(op3, &bitD3);
2433
2.09k
            HUF_DECODE_SYMBOLX6_2(op4, &bitD4);
2434
2.09k
            HUF_DECODE_SYMBOLX6_1(op1, &bitD1);
2435
2.09k
            HUF_DECODE_SYMBOLX6_1(op2, &bitD2);
2436
2.09k
            HUF_DECODE_SYMBOLX6_1(op3, &bitD3);
2437
2.09k
            HUF_DECODE_SYMBOLX6_1(op4, &bitD4);
2438
2.09k
            HUF_DECODE_SYMBOLX6_2(op1, &bitD1);
2439
2.09k
            HUF_DECODE_SYMBOLX6_2(op2, &bitD2);
2440
2.09k
            HUF_DECODE_SYMBOLX6_2(op3, &bitD3);
2441
2.09k
            HUF_DECODE_SYMBOLX6_2(op4, &bitD4);
2442
2.09k
            HUF_DECODE_SYMBOLX6_0(op1, &bitD1);
2443
2.09k
            HUF_DECODE_SYMBOLX6_0(op2, &bitD2);
2444
2.09k
            HUF_DECODE_SYMBOLX6_0(op3, &bitD3);
2445
2.09k
            HUF_DECODE_SYMBOLX6_0(op4, &bitD4);
2446
2447
2.09k
            endSignal = BIT_reloadDStream(&bitD1) | BIT_reloadDStream(&bitD2) | BIT_reloadDStream(&bitD3) | BIT_reloadDStream(&bitD4);
2448
2.09k
        }
2449
2450
        /* check corruption */
2451
60
        if (op1 > opStart2) return ERROR(corruption_detected);
2452
59
        if (op2 > opStart3) return ERROR(corruption_detected);
2453
58
        if (op3 > opStart4) return ERROR(corruption_detected);
2454
        /* note : op4 supposed already verified within main loop */
2455
2456
        /* finish bitStreams one by one */
2457
57
        HUF_decodeStreamX6(op1, &bitD1, opStart2, DTable, dtLog);
2458
57
        HUF_decodeStreamX6(op2, &bitD2, opStart3, DTable, dtLog);
2459
57
        HUF_decodeStreamX6(op3, &bitD3, opStart4, DTable, dtLog);
2460
57
        HUF_decodeStreamX6(op4, &bitD4, oend,     DTable, dtLog);
2461
2462
        /* check */
2463
57
        endSignal = BIT_endOfDStream(&bitD1) & BIT_endOfDStream(&bitD2) & BIT_endOfDStream(&bitD3) & BIT_endOfDStream(&bitD4);
2464
57
        if (!endSignal) return ERROR(corruption_detected);
2465
2466
        /* decoded size */
2467
1
        return dstSize;
2468
57
    }
2469
57
}
2470
2471
2472
static size_t HUF_decompress4X6 (void* dst, size_t dstSize, const void* cSrc, size_t cSrcSize)
2473
87
{
2474
87
    HUF_CREATE_STATIC_DTABLEX6(DTable, HUF_MAX_TABLELOG);
2475
87
    const BYTE* ip = (const BYTE*) cSrc;
2476
2477
87
    size_t hSize = HUF_readDTableX6 (DTable, cSrc, cSrcSize);
2478
87
    if (HUF_isError(hSize)) return hSize;
2479
84
    if (hSize >= cSrcSize) return ERROR(srcSize_wrong);
2480
84
    ip += hSize;
2481
84
    cSrcSize -= hSize;
2482
2483
84
    return HUF_decompress4X6_usingDTable (dst, dstSize, ip, cSrcSize, DTable);
2484
84
}
2485
2486
2487
/**********************************/
2488
/* Generic decompression selector */
2489
/**********************************/
2490
2491
typedef struct { U32 tableTime; U32 decode256Time; } algo_time_t;
2492
static const algo_time_t algoTime[16 /* Quantization */][3 /* single, double, quad */] =
2493
{
2494
    /* single, double, quad */
2495
    {{0,0}, {1,1}, {2,2}},  /* Q==0 : impossible */
2496
    {{0,0}, {1,1}, {2,2}},  /* Q==1 : impossible */
2497
    {{  38,130}, {1313, 74}, {2151, 38}},   /* Q == 2 : 12-18% */
2498
    {{ 448,128}, {1353, 74}, {2238, 41}},   /* Q == 3 : 18-25% */
2499
    {{ 556,128}, {1353, 74}, {2238, 47}},   /* Q == 4 : 25-32% */
2500
    {{ 714,128}, {1418, 74}, {2436, 53}},   /* Q == 5 : 32-38% */
2501
    {{ 883,128}, {1437, 74}, {2464, 61}},   /* Q == 6 : 38-44% */
2502
    {{ 897,128}, {1515, 75}, {2622, 68}},   /* Q == 7 : 44-50% */
2503
    {{ 926,128}, {1613, 75}, {2730, 75}},   /* Q == 8 : 50-56% */
2504
    {{ 947,128}, {1729, 77}, {3359, 77}},   /* Q == 9 : 56-62% */
2505
    {{1107,128}, {2083, 81}, {4006, 84}},   /* Q ==10 : 62-69% */
2506
    {{1177,128}, {2379, 87}, {4785, 88}},   /* Q ==11 : 69-75% */
2507
    {{1242,128}, {2415, 93}, {5155, 84}},   /* Q ==12 : 75-81% */
2508
    {{1349,128}, {2644,106}, {5260,106}},   /* Q ==13 : 81-87% */
2509
    {{1455,128}, {2422,124}, {4174,124}},   /* Q ==14 : 87-93% */
2510
    {{ 722,128}, {1891,145}, {1936,146}},   /* Q ==15 : 93-99% */
2511
};
2512
2513
typedef size_t (*decompressionAlgo)(void* dst, size_t dstSize, const void* cSrc, size_t cSrcSize);
2514
2515
static size_t HUF_decompress (void* dst, size_t dstSize, const void* cSrc, size_t cSrcSize)
2516
1.48k
{
2517
1.48k
    static const decompressionAlgo decompress[3] = { HUF_decompress4X2, HUF_decompress4X4, HUF_decompress4X6 };
2518
    /* estimate decompression time */
2519
1.48k
    U32 Q;
2520
1.48k
    const U32 D256 = (U32)(dstSize >> 8);
2521
1.48k
    U32 Dtime[3];
2522
1.48k
    U32 algoNb = 0;
2523
1.48k
    int n;
2524
2525
    /* validation checks */
2526
1.48k
    if (dstSize == 0) return ERROR(dstSize_tooSmall);
2527
1.48k
    if (cSrcSize > dstSize) return ERROR(corruption_detected);   /* invalid */
2528
1.46k
    if (cSrcSize == dstSize) { memcpy(dst, cSrc, dstSize); return dstSize; }   /* not compressed */
2529
1.45k
    if (cSrcSize == 1) { memset(dst, *(const BYTE*)cSrc, dstSize); return dstSize; }   /* RLE */
2530
2531
    /* decoder timing evaluation */
2532
1.41k
    Q = (U32)(cSrcSize * 16 / dstSize);   /* Q < 16 since dstSize > cSrcSize */
2533
5.64k
    for (n=0; n<3; n++)
2534
4.23k
        Dtime[n] = algoTime[Q][n].tableTime + (algoTime[Q][n].decode256Time * D256);
2535
2536
1.41k
    Dtime[1] += Dtime[1] >> 4; Dtime[2] += Dtime[2] >> 3; /* advantage to algorithms using less memory, for cache eviction */
2537
2538
1.41k
    if (Dtime[1] < Dtime[0]) algoNb = 1;
2539
1.41k
    if (Dtime[2] < Dtime[algoNb]) algoNb = 2;
2540
2541
1.41k
    return decompress[algoNb](dst, dstSize, cSrc, cSrcSize);
2542
2543
    //return HUF_decompress4X2(dst, dstSize, cSrc, cSrcSize);   /* multi-streams single-symbol decoding */
2544
    //return HUF_decompress4X4(dst, dstSize, cSrc, cSrcSize);   /* multi-streams double-symbols decoding */
2545
    //return HUF_decompress4X6(dst, dstSize, cSrc, cSrcSize);   /* multi-streams quad-symbols decoding */
2546
1.45k
}
2547
/*
2548
    zstd - standard compression library
2549
    Copyright (C) 2014-2015, Yann Collet.
2550
2551
    BSD 2-Clause License (https://opensource.org/licenses/bsd-license.php)
2552
2553
    Redistribution and use in source and binary forms, with or without
2554
    modification, are permitted provided that the following conditions are
2555
    met:
2556
    * Redistributions of source code must retain the above copyright
2557
    notice, this list of conditions and the following disclaimer.
2558
    * Redistributions in binary form must reproduce the above
2559
    copyright notice, this list of conditions and the following disclaimer
2560
    in the documentation and/or other materials provided with the
2561
    distribution.
2562
    THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
2563
    "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
2564
    LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
2565
    A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
2566
    OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
2567
    SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
2568
    LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
2569
    DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
2570
    THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
2571
    (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
2572
    OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
2573
2574
    You can contact the author at :
2575
    - zstd source repository : https://github.com/Cyan4973/zstd
2576
    - ztsd public forum : https://groups.google.com/forum/#!forum/lz4c
2577
*/
2578
2579
/* ***************************************************************
2580
*  Tuning parameters
2581
*****************************************************************/
2582
/*!
2583
*  MEMORY_USAGE :
2584
*  Memory usage formula : N->2^N Bytes (examples : 10 -> 1KB; 12 -> 4KB ; 16 -> 64KB; 20 -> 1MB; etc.)
2585
*  Increasing memory usage improves compression ratio
2586
*  Reduced memory usage can improve speed, due to cache effect
2587
*/
2588
#define ZSTD_MEMORY_USAGE 17
2589
2590
/*!
2591
 * HEAPMODE :
2592
 * Select how default compression functions will allocate memory for their hash table,
2593
 * in memory stack (0, fastest), or in memory heap (1, requires malloc())
2594
 * Note that compression context is fairly large, as a consequence heap memory is recommended.
2595
 */
2596
#ifndef ZSTD_HEAPMODE
2597
#  define ZSTD_HEAPMODE 1
2598
#endif /* ZSTD_HEAPMODE */
2599
2600
/*!
2601
*  LEGACY_SUPPORT :
2602
*  decompressor can decode older formats (starting from Zstd 0.1+)
2603
*/
2604
#ifndef ZSTD_LEGACY_SUPPORT
2605
#  define ZSTD_LEGACY_SUPPORT 1
2606
#endif
2607
2608
2609
/* *******************************************************
2610
*  Includes
2611
*********************************************************/
2612
#include <stdlib.h>      /* calloc */
2613
#include <string.h>      /* memcpy, memmove */
2614
#include <stdio.h>       /* debug : printf */
2615
2616
2617
/* *******************************************************
2618
*  Compiler specifics
2619
*********************************************************/
2620
#ifdef __AVX2__
2621
#  include <immintrin.h>   /* AVX2 intrinsics */
2622
#endif
2623
2624
#ifdef _MSC_VER    /* Visual Studio */
2625
#  include <intrin.h>                    /* For Visual 2005 */
2626
#  pragma warning(disable : 4127)        /* disable: C4127: conditional expression is constant */
2627
#  pragma warning(disable : 4324)        /* disable: C4324: padded structure */
2628
#endif
2629
2630
2631
/* *******************************************************
2632
*  Constants
2633
*********************************************************/
2634
#define HASH_LOG (ZSTD_MEMORY_USAGE - 2)
2635
#define HASH_TABLESIZE (1 << HASH_LOG)
2636
#define HASH_MASK (HASH_TABLESIZE - 1)
2637
2638
#define KNUTH 2654435761
2639
2640
#define BIT7 128
2641
#define BIT6  64
2642
#define BIT5  32
2643
#define BIT4  16
2644
2.11k
#define BIT1   2
2645
2.42k
#define BIT0   1
2646
2647
5.88k
#define KB *(1 <<10)
2648
#define MB *(1 <<20)
2649
#define GB *(1U<<30)
2650
2651
5.88k
#define BLOCKSIZE (128 KB)                 /* define, for static allocation */
2652
6.09k
#define MIN_SEQUENCES_SIZE (2 /*seqNb*/ + 2 /*dumps*/ + 3 /*seqTables*/ + 1 /*bitStream*/)
2653
6.09k
#define MIN_CBLOCK_SIZE (3 /*litCSize*/ + MIN_SEQUENCES_SIZE)
2654
2.42k
#define IS_RAW BIT0
2655
2.11k
#define IS_RLE BIT1
2656
2657
#define WORKPLACESIZE (BLOCKSIZE*3)
2658
673k
#define MINMATCH 4
2659
344k
#define MLbits   7
2660
344k
#define LLbits   6
2661
4.70k
#define Offbits  5
2662
337k
#define MaxML  ((1<<MLbits )-1)
2663
337k
#define MaxLL  ((1<<LLbits )-1)
2664
3.06k
#define MaxOff   31
2665
#define LitFSELog  11
2666
1.03k
#define MLFSELog   10
2667
678
#define LLFSELog   10
2668
1.07k
#define OffFSELog   9
2669
#define MAX(a,b) ((a)<(b)?(b):(a))
2670
#define MaxSeq MAX(MaxLL, MaxML)
2671
2672
#define LITERAL_NOENTROPY 63
2673
#define COMMAND_NOENTROPY 7   /* to remove */
2674
2675
63
#define ZSTD_CONTENTSIZE_ERROR   (0ULL - 2)
2676
2677
static const size_t ZSTD_blockHeaderSize = 3;
2678
static const size_t ZSTD_frameHeaderSize = 4;
2679
2680
2681
/* *******************************************************
2682
*  Memory operations
2683
**********************************************************/
2684
285k
static void   ZSTD_copy4(void* dst, const void* src) { memcpy(dst, src, 4); }
2685
2686
4.33M
static void   ZSTD_copy8(void* dst, const void* src) { memcpy(dst, src, 8); }
2687
2688
4.28M
#define COPY8(d,s) { ZSTD_copy8(d,s); d+=8; s+=8; }
2689
2690
/*! ZSTD_wildcopy : custom version of memcpy(), can copy up to 7-8 bytes too many */
2691
static void ZSTD_wildcopy(void* dst, const void* src, ptrdiff_t length)
2692
673k
{
2693
673k
    const BYTE* ip = (const BYTE*)src;
2694
673k
    BYTE* op = (BYTE*)dst;
2695
673k
    BYTE* const oend = op + length;
2696
4.28M
    do COPY8(op, ip) while (op < oend);
2697
673k
}
2698
2699
2700
/* **************************************
2701
*  Local structures
2702
****************************************/
2703
typedef enum { bt_compressed, bt_raw, bt_rle, bt_end } blockType_t;
2704
2705
typedef struct
2706
{
2707
    blockType_t blockType;
2708
    U32 origSize;
2709
} blockProperties_t;
2710
2711
typedef struct {
2712
    void* buffer;
2713
    U32*  offsetStart;
2714
    U32*  offset;
2715
    BYTE* offCodeStart;
2716
    BYTE* offCode;
2717
    BYTE* litStart;
2718
    BYTE* lit;
2719
    BYTE* litLengthStart;
2720
    BYTE* litLength;
2721
    BYTE* matchLengthStart;
2722
    BYTE* matchLength;
2723
    BYTE* dumpsStart;
2724
    BYTE* dumps;
2725
} SeqStore_t;
2726
2727
2728
/* *************************************
2729
*  Error Management
2730
***************************************/
2731
/*! ZSTD_isError
2732
*   tells if a return value is an error code */
2733
379k
static unsigned ZSTD_isError(size_t code) { return ERR_isError(code); }
2734
2735
2736
2737
/* *************************************************************
2738
*   Decompression section
2739
***************************************************************/
2740
struct ZSTDv02_Dctx_s
2741
{
2742
    U32 LLTable[FSE_DTABLE_SIZE_U32(LLFSELog)];
2743
    U32 OffTable[FSE_DTABLE_SIZE_U32(OffFSELog)];
2744
    U32 MLTable[FSE_DTABLE_SIZE_U32(MLFSELog)];
2745
    void* previousDstEnd;
2746
    void* base;
2747
    size_t expected;
2748
    blockType_t bType;
2749
    U32 phase;
2750
    const BYTE* litPtr;
2751
    size_t litSize;
2752
    BYTE litBuffer[BLOCKSIZE + 8 /* margin for wildcopy */];
2753
};   /* typedef'd to ZSTD_Dctx within "zstd_static.h" */
2754
2755
2756
static size_t ZSTD_getcBlockSize(const void* src, size_t srcSize, blockProperties_t* bpPtr)
2757
25.3k
{
2758
25.3k
    const BYTE* const in = (const BYTE* const)src;
2759
25.3k
    BYTE headerFlags;
2760
25.3k
    U32 cSize;
2761
2762
25.3k
    if (srcSize < 3) return ERROR(srcSize_wrong);
2763
2764
25.3k
    headerFlags = *in;
2765
25.3k
    cSize = in[2] + (in[1]<<8) + ((in[0] & 7)<<16);
2766
2767
25.3k
    bpPtr->blockType = (blockType_t)(headerFlags >> 6);
2768
25.3k
    bpPtr->origSize = (bpPtr->blockType == bt_rle) ? cSize : 0;
2769
2770
25.3k
    if (bpPtr->blockType == bt_end) return 0;
2771
23.5k
    if (bpPtr->blockType == bt_rle) return 1;
2772
20.0k
    return cSize;
2773
23.5k
}
2774
2775
static size_t ZSTD_copyUncompressedBlock(void* dst, size_t maxDstSize, const void* src, size_t srcSize)
2776
372
{
2777
372
    if (srcSize > maxDstSize) return ERROR(dstSize_tooSmall);
2778
371
    if (srcSize > 0) {
2779
353
        memcpy(dst, src, srcSize);
2780
353
    }
2781
371
    return srcSize;
2782
372
}
2783
2784
2785
/** ZSTD_decompressLiterals
2786
    @return : nb of bytes read from src, or an error code*/
2787
static size_t ZSTD_decompressLiterals(void* dst, size_t* maxDstSizePtr,
2788
                                const void* src, size_t srcSize)
2789
1.50k
{
2790
1.50k
    const BYTE* ip = (const BYTE*)src;
2791
2792
1.50k
    const size_t litSize = (MEM_readLE32(src) & 0x1FFFFF) >> 2;   /* no buffer issue : srcSize >= MIN_CBLOCK_SIZE */
2793
1.50k
    const size_t litCSize = (MEM_readLE32(ip+2) & 0xFFFFFF) >> 5;   /* no buffer issue : srcSize >= MIN_CBLOCK_SIZE */
2794
2795
1.50k
    if (litSize > *maxDstSizePtr) return ERROR(corruption_detected);
2796
1.49k
    if (litCSize + 5 > srcSize) return ERROR(corruption_detected);
2797
2798
1.48k
    if (HUF_isError(HUF_decompress(dst, litSize, ip+5, litCSize))) return ERROR(corruption_detected);
2799
2800
948
    *maxDstSizePtr = litSize;
2801
948
    return litCSize + 5;
2802
1.48k
}
2803
2804
2805
/** ZSTD_decodeLiteralsBlock
2806
    @return : nb of bytes read from src (< srcSize )*/
2807
static size_t ZSTD_decodeLiteralsBlock(void* ctx,
2808
                          const void* src, size_t srcSize)
2809
6.09k
{
2810
6.09k
    ZSTD_DCtx* dctx = (ZSTD_DCtx*)ctx;
2811
6.09k
    const BYTE* const istart = (const BYTE* const)src;
2812
2813
    /* any compressed block with literals segment must be at least this size */
2814
6.09k
    if (srcSize < MIN_CBLOCK_SIZE) return ERROR(corruption_detected);
2815
2816
6.04k
    switch(*istart & 3)
2817
6.04k
    {
2818
236
    default:
2819
1.50k
    case 0:
2820
1.50k
        {
2821
1.50k
            size_t litSize = BLOCKSIZE;
2822
1.50k
            const size_t readSize = ZSTD_decompressLiterals(dctx->litBuffer, &litSize, src, srcSize);
2823
1.50k
            dctx->litPtr = dctx->litBuffer;
2824
1.50k
            dctx->litSize = litSize;
2825
1.50k
            memset(dctx->litBuffer + dctx->litSize, 0, 8);
2826
1.50k
            return readSize;   /* works if it's an error too */
2827
236
        }
2828
2.42k
    case IS_RAW:
2829
2.42k
        {
2830
2.42k
            const size_t litSize = (MEM_readLE32(istart) & 0xFFFFFF) >> 2;   /* no buffer issue : srcSize >= MIN_CBLOCK_SIZE */
2831
2.42k
            if (litSize > srcSize-11)   /* risk of reading too far with wildcopy */
2832
61
            {
2833
61
                if (litSize > BLOCKSIZE) return ERROR(corruption_detected);
2834
57
                if (litSize > srcSize-3) return ERROR(corruption_detected);
2835
46
                memcpy(dctx->litBuffer, istart, litSize);
2836
46
                dctx->litPtr = dctx->litBuffer;
2837
46
                dctx->litSize = litSize;
2838
46
                memset(dctx->litBuffer + dctx->litSize, 0, 8);
2839
46
                return litSize+3;
2840
57
            }
2841
            /* direct reference into compressed stream */
2842
2.36k
            dctx->litPtr = istart+3;
2843
2.36k
            dctx->litSize = litSize;
2844
2.36k
            return litSize+3;
2845
2.42k
        }
2846
2.11k
    case IS_RLE:
2847
2.11k
        {
2848
2.11k
            const size_t litSize = (MEM_readLE32(istart) & 0xFFFFFF) >> 2;   /* no buffer issue : srcSize >= MIN_CBLOCK_SIZE */
2849
2.11k
            if (litSize > BLOCKSIZE) return ERROR(corruption_detected);
2850
2.10k
            memset(dctx->litBuffer, istart[3], litSize + 8);
2851
2.10k
            dctx->litPtr = dctx->litBuffer;
2852
2.10k
            dctx->litSize = litSize;
2853
2.10k
            return 4;
2854
2.11k
        }
2855
6.04k
    }
2856
6.04k
}
2857
2858
2859
static size_t ZSTD_decodeSeqHeaders(int* nbSeq, const BYTE** dumpsPtr, size_t* dumpsLengthPtr,
2860
                         FSE_DTable* DTableLL, FSE_DTable* DTableML, FSE_DTable* DTableOffb,
2861
                         const void* src, size_t srcSize)
2862
5.45k
{
2863
5.45k
    const BYTE* const istart = (const BYTE* const)src;
2864
5.45k
    const BYTE* ip = istart;
2865
5.45k
    const BYTE* const iend = istart + srcSize;
2866
5.45k
    U32 LLtype, Offtype, MLtype;
2867
5.45k
    U32 LLlog, Offlog, MLlog;
2868
5.45k
    size_t dumpsLength;
2869
2870
    /* check */
2871
5.45k
    if (srcSize < 5) return ERROR(srcSize_wrong);
2872
2873
    /* SeqHead */
2874
5.45k
    *nbSeq = MEM_readLE16(ip); ip+=2;
2875
5.45k
    LLtype  = *ip >> 6;
2876
5.45k
    Offtype = (*ip >> 4) & 3;
2877
5.45k
    MLtype  = (*ip >> 2) & 3;
2878
5.45k
    if (*ip & 2)
2879
2.86k
    {
2880
2.86k
        dumpsLength  = ip[2];
2881
2.86k
        dumpsLength += ip[1] << 8;
2882
2.86k
        ip += 3;
2883
2.86k
    }
2884
2.59k
    else
2885
2.59k
    {
2886
2.59k
        dumpsLength  = ip[1];
2887
2.59k
        dumpsLength += (ip[0] & 1) << 8;
2888
2.59k
        ip += 2;
2889
2.59k
    }
2890
5.45k
    *dumpsPtr = ip;
2891
5.45k
    ip += dumpsLength;
2892
5.45k
    *dumpsLengthPtr = dumpsLength;
2893
2894
    /* check */
2895
5.45k
    if (ip > iend-3) return ERROR(srcSize_wrong); /* min : all 3 are "raw", hence no header, but at least xxLog bits per type */
2896
2897
    /* sequences */
2898
5.43k
    {
2899
5.43k
        S16 norm[MaxML+1];    /* assumption : MaxML >= MaxLL and MaxOff */
2900
5.43k
        size_t headerSize;
2901
2902
        /* Build DTables */
2903
5.43k
        switch(LLtype)
2904
5.43k
        {
2905
1.10k
        case bt_rle :
2906
1.10k
            LLlog = 0;
2907
1.10k
            FSE_buildDTable_rle(DTableLL, *ip++); break;
2908
3.63k
        case bt_raw :
2909
3.63k
            LLlog = LLbits;
2910
3.63k
            FSE_buildDTable_raw(DTableLL, LLbits); break;
2911
693
        default :
2912
693
            {   U32 max = MaxLL;
2913
693
                headerSize = FSE_readNCount(norm, &max, &LLlog, ip, iend-ip);
2914
693
                if (FSE_isError(headerSize)) return ERROR(GENERIC);
2915
678
                if (LLlog > LLFSELog) return ERROR(corruption_detected);
2916
671
                ip += headerSize;
2917
671
                FSE_buildDTable(DTableLL, norm, max, LLlog);
2918
671
        }   }
2919
2920
5.41k
        switch(Offtype)
2921
5.41k
        {
2922
1.97k
        case bt_rle :
2923
1.97k
            Offlog = 0;
2924
1.97k
            if (ip > iend-2) return ERROR(srcSize_wrong);   /* min : "raw", hence no header, but at least xxLog bits */
2925
1.97k
            FSE_buildDTable_rle(DTableOffb, *ip++ & MaxOff); /* if *ip > MaxOff, data is corrupted */
2926
1.97k
            break;
2927
2.35k
        case bt_raw :
2928
2.35k
            Offlog = Offbits;
2929
2.35k
            FSE_buildDTable_raw(DTableOffb, Offbits); break;
2930
1.08k
        default :
2931
1.08k
            {   U32 max = MaxOff;
2932
1.08k
                headerSize = FSE_readNCount(norm, &max, &Offlog, ip, iend-ip);
2933
1.08k
                if (FSE_isError(headerSize)) return ERROR(GENERIC);
2934
1.07k
                if (Offlog > OffFSELog) return ERROR(corruption_detected);
2935
1.06k
                ip += headerSize;
2936
1.06k
                FSE_buildDTable(DTableOffb, norm, max, Offlog);
2937
1.06k
        }   }
2938
2939
5.39k
        switch(MLtype)
2940
5.39k
        {
2941
884
        case bt_rle :
2942
884
            MLlog = 0;
2943
884
            if (ip > iend-2) return ERROR(srcSize_wrong); /* min : "raw", hence no header, but at least xxLog bits */
2944
880
            FSE_buildDTable_rle(DTableML, *ip++); break;
2945
3.45k
        case bt_raw :
2946
3.45k
            MLlog = MLbits;
2947
3.45k
            FSE_buildDTable_raw(DTableML, MLbits); break;
2948
1.05k
        default :
2949
1.05k
            {   U32 max = MaxML;
2950
1.05k
                headerSize = FSE_readNCount(norm, &max, &MLlog, ip, iend-ip);
2951
1.05k
                if (FSE_isError(headerSize)) return ERROR(GENERIC);
2952
1.03k
                if (MLlog > MLFSELog) return ERROR(corruption_detected);
2953
1.03k
                ip += headerSize;
2954
1.03k
                FSE_buildDTable(DTableML, norm, max, MLlog);
2955
1.03k
    }   }   }
2956
2957
5.36k
    return ip-istart;
2958
5.39k
}
2959
2960
2961
typedef struct {
2962
    size_t litLength;
2963
    size_t offset;
2964
    size_t matchLength;
2965
} seq_t;
2966
2967
typedef struct {
2968
    BIT_DStream_t DStream;
2969
    FSE_DState_t stateLL;
2970
    FSE_DState_t stateOffb;
2971
    FSE_DState_t stateML;
2972
    size_t prevOffset;
2973
    const BYTE* dumps;
2974
    const BYTE* dumpsEnd;
2975
} seqState_t;
2976
2977
2978
static void ZSTD_decodeSequence(seq_t* seq, seqState_t* seqState)
2979
336k
{
2980
336k
    size_t litLength;
2981
336k
    size_t prevOffset;
2982
336k
    size_t offset;
2983
336k
    size_t matchLength;
2984
336k
    const BYTE* dumps = seqState->dumps;
2985
336k
    const BYTE* const de = seqState->dumpsEnd;
2986
2987
    /* Literal length */
2988
336k
    litLength = FSE_decodeSymbol(&(seqState->stateLL), &(seqState->DStream));
2989
336k
    prevOffset = litLength ? seq->offset : seqState->prevOffset;
2990
336k
    seqState->prevOffset = seq->offset;
2991
336k
    if (litLength == MaxLL)
2992
6.13k
    {
2993
6.13k
        const U32 add = dumps<de ? *dumps++ : 0;
2994
6.13k
        if (add < 255) litLength += add;
2995
924
        else if (dumps + 3 <= de)
2996
90
        {
2997
90
            litLength = MEM_readLE24(dumps);
2998
90
            dumps += 3;
2999
90
        }
3000
6.13k
        if (dumps >= de) dumps = de-1;   /* late correction, to avoid read overflow (data is now corrupted anyway) */
3001
6.13k
    }
3002
3003
    /* Offset */
3004
336k
    {
3005
336k
        static const size_t offsetPrefix[MaxOff+1] = {  /* note : size_t faster than U32 */
3006
336k
                1 /*fake*/, 1, 2, 4, 8, 16, 32, 64, 128, 256,
3007
336k
                512, 1024, 2048, 4096, 8192, 16384, 32768, 65536, 131072, 262144,
3008
336k
                524288, 1048576, 2097152, 4194304, 8388608, 16777216, 33554432, /*fake*/ 1, 1, 1, 1, 1 };
3009
336k
        U32 offsetCode, nbBits;
3010
336k
        offsetCode = FSE_decodeSymbol(&(seqState->stateOffb), &(seqState->DStream));   /* <= maxOff, by table construction */
3011
336k
        if (MEM_32bits()) BIT_reloadDStream(&(seqState->DStream));
3012
336k
        nbBits = offsetCode - 1;
3013
336k
        if (offsetCode==0) nbBits = 0;   /* cmove */
3014
336k
        offset = offsetPrefix[offsetCode] + BIT_readBits(&(seqState->DStream), nbBits);
3015
336k
        if (MEM_32bits()) BIT_reloadDStream(&(seqState->DStream));
3016
336k
        if (offsetCode==0) offset = prevOffset;   /* cmove */
3017
336k
    }
3018
3019
    /* MatchLength */
3020
336k
    matchLength = FSE_decodeSymbol(&(seqState->stateML), &(seqState->DStream));
3021
336k
    if (matchLength == MaxML)
3022
13.6k
    {
3023
13.6k
        const U32 add = dumps<de ? *dumps++ : 0;
3024
13.6k
        if (add < 255) matchLength += add;
3025
428
        else if (dumps + 3 <= de)
3026
92
        {
3027
92
            matchLength = MEM_readLE24(dumps);
3028
92
            dumps += 3;
3029
92
        }
3030
13.6k
        if (dumps >= de) dumps = de-1;   /* late correction, to avoid read overflow (data is now corrupted anyway) */
3031
13.6k
    }
3032
336k
    matchLength += MINMATCH;
3033
3034
    /* save result */
3035
336k
    seq->litLength = litLength;
3036
336k
    seq->offset = offset;
3037
336k
    seq->matchLength = matchLength;
3038
336k
    seqState->dumps = dumps;
3039
336k
}
3040
3041
3042
static size_t ZSTD_execSequence(BYTE* op,
3043
                                seq_t sequence,
3044
                                const BYTE** litPtr, const BYTE* const litLimit,
3045
                                BYTE* const base, BYTE* const oend)
3046
336k
{
3047
336k
    static const int dec32table[] = {0, 1, 2, 1, 4, 4, 4, 4};   /* added */
3048
336k
    static const int dec64table[] = {8, 8, 8, 7, 8, 9,10,11};   /* subtracted */
3049
336k
    const BYTE* const ostart = op;
3050
336k
    BYTE* const oLitEnd = op + sequence.litLength;
3051
336k
    BYTE* const oMatchEnd = op + sequence.litLength + sequence.matchLength;   /* risk : address space overflow (32-bits) */
3052
336k
    BYTE* const oend_8 = oend-8;
3053
336k
    const BYTE* const litEnd = *litPtr + sequence.litLength;
3054
3055
    /* checks */
3056
336k
    size_t const seqLength = sequence.litLength + sequence.matchLength;
3057
3058
336k
    if (seqLength > (size_t)(oend - op)) return ERROR(dstSize_tooSmall);
3059
336k
    if (sequence.litLength > (size_t)(litLimit - *litPtr)) return ERROR(corruption_detected);
3060
    /* Now we know there are no overflow in literal nor match lengths, can use the pointer check */
3061
336k
    if (oLitEnd > oend_8) return ERROR(dstSize_tooSmall);
3062
336k
    if (sequence.offset > (U32)(oLitEnd - base)) return ERROR(corruption_detected);
3063
3064
336k
    if (oMatchEnd > oend) return ERROR(dstSize_tooSmall);   /* overwrite beyond dst buffer */
3065
336k
    if (litEnd > litLimit) return ERROR(corruption_detected);   /* overRead beyond lit buffer */
3066
3067
    /* copy Literals */
3068
336k
    ZSTD_wildcopy(op, *litPtr, (ptrdiff_t)sequence.litLength);   /* note : oLitEnd <= oend-8 : no risk of overwrite beyond oend */
3069
336k
    op = oLitEnd;
3070
336k
    *litPtr = litEnd;   /* update for next sequence */
3071
3072
    /* copy Match */
3073
336k
    {
3074
336k
        const BYTE* match = op - sequence.offset;
3075
3076
        /* check */
3077
336k
        if (sequence.offset > (size_t)op) return ERROR(corruption_detected);   /* address space overflow test (this test seems kept by clang optimizer) */
3078
        //if (match > op) return ERROR(corruption_detected);   /* address space overflow test (is clang optimizer removing this test ?) */
3079
336k
        if (match < base) return ERROR(corruption_detected);
3080
3081
        /* close range match, overlap */
3082
336k
        if (sequence.offset < 8)
3083
285k
        {
3084
285k
            const int dec64 = dec64table[sequence.offset];
3085
285k
            op[0] = match[0];
3086
285k
            op[1] = match[1];
3087
285k
            op[2] = match[2];
3088
285k
            op[3] = match[3];
3089
285k
            match += dec32table[sequence.offset];
3090
285k
            ZSTD_copy4(op+4, match);
3091
285k
            match -= dec64;
3092
285k
        }
3093
50.8k
        else
3094
50.8k
        {
3095
50.8k
            ZSTD_copy8(op, match);
3096
50.8k
        }
3097
336k
        op += 8; match += 8;
3098
3099
336k
        if (oMatchEnd > oend-(16-MINMATCH))
3100
20
        {
3101
20
            if (op < oend_8)
3102
15
            {
3103
15
                ZSTD_wildcopy(op, match, oend_8 - op);
3104
15
                match += oend_8 - op;
3105
15
                op = oend_8;
3106
15
            }
3107
66
            while (op < oMatchEnd) *op++ = *match++;
3108
20
        }
3109
336k
        else
3110
336k
        {
3111
336k
            ZSTD_wildcopy(op, match, (ptrdiff_t)sequence.matchLength-8);   /* works even if matchLength < 8 */
3112
336k
        }
3113
336k
    }
3114
3115
0
    return oMatchEnd - ostart;
3116
336k
}
3117
3118
static size_t ZSTD_decompressSequences(
3119
                               void* ctx,
3120
                               void* dst, size_t maxDstSize,
3121
                         const void* seqStart, size_t seqSize)
3122
5.45k
{
3123
5.45k
    ZSTD_DCtx* dctx = (ZSTD_DCtx*)ctx;
3124
5.45k
    const BYTE* ip = (const BYTE*)seqStart;
3125
5.45k
    const BYTE* const iend = ip + seqSize;
3126
5.45k
    BYTE* const ostart = (BYTE* const)dst;
3127
5.45k
    BYTE* op = ostart;
3128
5.45k
    BYTE* const oend = ostart + maxDstSize;
3129
5.45k
    size_t errorCode, dumpsLength;
3130
5.45k
    const BYTE* litPtr = dctx->litPtr;
3131
5.45k
    const BYTE* const litEnd = litPtr + dctx->litSize;
3132
5.45k
    int nbSeq;
3133
5.45k
    const BYTE* dumps;
3134
5.45k
    U32* DTableLL = dctx->LLTable;
3135
5.45k
    U32* DTableML = dctx->MLTable;
3136
5.45k
    U32* DTableOffb = dctx->OffTable;
3137
5.45k
    BYTE* const base = (BYTE*) (dctx->base);
3138
3139
    /* Build Decoding Tables */
3140
5.45k
    errorCode = ZSTD_decodeSeqHeaders(&nbSeq, &dumps, &dumpsLength,
3141
5.45k
                                      DTableLL, DTableML, DTableOffb,
3142
5.45k
                                      ip, iend-ip);
3143
5.45k
    if (ZSTD_isError(errorCode)) return errorCode;
3144
5.36k
    ip += errorCode;
3145
3146
    /* Regen sequences */
3147
5.36k
    {
3148
5.36k
        seq_t sequence;
3149
5.36k
        seqState_t seqState;
3150
3151
5.36k
        memset(&sequence, 0, sizeof(sequence));
3152
5.36k
        seqState.dumps = dumps;
3153
5.36k
        seqState.dumpsEnd = dumps + dumpsLength;
3154
5.36k
        seqState.prevOffset = 1;
3155
5.36k
        errorCode = BIT_initDStream(&(seqState.DStream), ip, iend-ip);
3156
5.36k
        if (ERR_isError(errorCode)) return ERROR(corruption_detected);
3157
5.34k
        FSE_initDState(&(seqState.stateLL), &(seqState.DStream), DTableLL);
3158
5.34k
        FSE_initDState(&(seqState.stateOffb), &(seqState.DStream), DTableOffb);
3159
5.34k
        FSE_initDState(&(seqState.stateML), &(seqState.DStream), DTableML);
3160
3161
341k
        for ( ; (BIT_reloadDStream(&(seqState.DStream)) <= BIT_DStream_completed) && (nbSeq>0) ; )
3162
336k
        {
3163
336k
            size_t oneSeqSize;
3164
336k
            nbSeq--;
3165
336k
            ZSTD_decodeSequence(&sequence, &seqState);
3166
336k
            oneSeqSize = ZSTD_execSequence(op, sequence, &litPtr, litEnd, base, oend);
3167
336k
            if (ZSTD_isError(oneSeqSize)) return oneSeqSize;
3168
336k
            op += oneSeqSize;
3169
336k
        }
3170
3171
        /* check if reached exact end */
3172
5.18k
        if ( !BIT_endOfDStream(&(seqState.DStream)) ) return ERROR(corruption_detected);   /* requested too much : data is corrupted */
3173
5.05k
        if (nbSeq<0) return ERROR(corruption_detected);   /* requested too many sequences : data is corrupted */
3174
3175
        /* last literal segment */
3176
5.05k
        {
3177
5.05k
            size_t lastLLSize = litEnd - litPtr;
3178
5.05k
            if (litPtr > litEnd) return ERROR(corruption_detected);
3179
5.05k
            if (op+lastLLSize > oend) return ERROR(dstSize_tooSmall);
3180
5.05k
            if (lastLLSize > 0) {
3181
2.78k
                if (op != litPtr) memmove(op, litPtr, lastLLSize);
3182
2.78k
                op += lastLLSize;
3183
2.78k
            }
3184
5.05k
        }
3185
5.05k
    }
3186
3187
0
    return op-ostart;
3188
5.05k
}
3189
3190
3191
static size_t ZSTD_decompressBlock(
3192
                            void* ctx,
3193
                            void* dst, size_t maxDstSize,
3194
                      const void* src, size_t srcSize)
3195
6.09k
{
3196
    /* blockType == blockCompressed */
3197
6.09k
    const BYTE* ip = (const BYTE*)src;
3198
3199
    /* Decode literals sub-block */
3200
6.09k
    size_t litCSize = ZSTD_decodeLiteralsBlock(ctx, src, srcSize);
3201
6.09k
    if (ZSTD_isError(litCSize)) return litCSize;
3202
5.45k
    ip += litCSize;
3203
5.45k
    srcSize -= litCSize;
3204
3205
5.45k
    return ZSTD_decompressSequences(ctx, dst, maxDstSize, ip, srcSize);
3206
6.09k
}
3207
3208
3209
static size_t ZSTD_decompressDCtx(void* ctx, void* dst, size_t maxDstSize, const void* src, size_t srcSize)
3210
1.10k
{
3211
1.10k
    const BYTE* ip = (const BYTE*)src;
3212
1.10k
    const BYTE* iend = ip + srcSize;
3213
1.10k
    BYTE* const ostart = (BYTE* const)dst;
3214
1.10k
    BYTE* op = ostart;
3215
1.10k
    BYTE* const oend = ostart + maxDstSize;
3216
1.10k
    size_t remainingSize = srcSize;
3217
1.10k
    U32 magicNumber;
3218
1.10k
    blockProperties_t blockProperties;
3219
3220
    /* Frame Header */
3221
1.10k
    if (srcSize < ZSTD_frameHeaderSize+ZSTD_blockHeaderSize) return ERROR(srcSize_wrong);
3222
1.10k
    magicNumber = MEM_readLE32(src);
3223
1.10k
    if (magicNumber != ZSTD_magicNumber) return ERROR(prefix_unknown);
3224
1.10k
    ip += ZSTD_frameHeaderSize; remainingSize -= ZSTD_frameHeaderSize;
3225
3226
    /* Loop on each block */
3227
6.50k
    while (1)
3228
6.50k
    {
3229
6.50k
        size_t decodedSize=0;
3230
6.50k
        size_t cBlockSize = ZSTD_getcBlockSize(ip, iend-ip, &blockProperties);
3231
6.50k
        if (ZSTD_isError(cBlockSize)) return cBlockSize;
3232
3233
6.50k
        ip += ZSTD_blockHeaderSize;
3234
6.50k
        remainingSize -= ZSTD_blockHeaderSize;
3235
6.50k
        if (cBlockSize > remainingSize) return ERROR(srcSize_wrong);
3236
3237
6.50k
        switch(blockProperties.blockType)
3238
6.50k
        {
3239
6.09k
        case bt_compressed:
3240
6.09k
            decodedSize = ZSTD_decompressBlock(ctx, op, oend-op, ip, cBlockSize);
3241
6.09k
            break;
3242
372
        case bt_raw :
3243
372
            decodedSize = ZSTD_copyUncompressedBlock(op, oend-op, ip, cBlockSize);
3244
372
            break;
3245
7
        case bt_rle :
3246
7
            return ERROR(GENERIC);   /* not yet supported */
3247
0
            break;
3248
35
        case bt_end :
3249
            /* end of frame */
3250
35
            if (remainingSize) return ERROR(srcSize_wrong);
3251
35
            break;
3252
35
        default:
3253
0
            return ERROR(GENERIC);   /* impossible */
3254
6.50k
        }
3255
6.50k
        if (cBlockSize == 0) break;   /* bt_end */
3256
3257
6.39k
        if (ZSTD_isError(decodedSize)) return decodedSize;
3258
5.40k
        op += decodedSize;
3259
5.40k
        ip += cBlockSize;
3260
5.40k
        remainingSize -= cBlockSize;
3261
5.40k
    }
3262
3263
104
    return op-ostart;
3264
1.10k
}
3265
3266
static size_t ZSTD_decompress(void* dst, size_t maxDstSize, const void* src, size_t srcSize)
3267
1.10k
{
3268
1.10k
    ZSTD_DCtx ctx;
3269
1.10k
    ctx.base = dst;
3270
1.10k
    return ZSTD_decompressDCtx(&ctx, dst, maxDstSize, src, srcSize);
3271
1.10k
}
3272
3273
/* ZSTD_errorFrameSizeInfoLegacy() :
3274
   assumes `cSize` and `dBound` are _not_ NULL */
3275
static void ZSTD_errorFrameSizeInfoLegacy(size_t* cSize, unsigned long long* dBound, size_t ret)
3276
63
{
3277
63
    *cSize = ret;
3278
63
    *dBound = ZSTD_CONTENTSIZE_ERROR;
3279
63
}
3280
3281
void ZSTDv02_findFrameSizeInfoLegacy(const void *src, size_t srcSize, size_t* cSize, unsigned long long* dBound)
3282
2.27k
{
3283
2.27k
    const BYTE* ip = (const BYTE*)src;
3284
2.27k
    size_t remainingSize = srcSize;
3285
2.27k
    size_t nbBlocks = 0;
3286
2.27k
    U32 magicNumber;
3287
2.27k
    blockProperties_t blockProperties;
3288
3289
    /* Frame Header */
3290
2.27k
    if (srcSize < ZSTD_frameHeaderSize+ZSTD_blockHeaderSize) {
3291
4
        ZSTD_errorFrameSizeInfoLegacy(cSize, dBound, ERROR(srcSize_wrong));
3292
4
        return;
3293
4
    }
3294
2.26k
    magicNumber = MEM_readLE32(src);
3295
2.26k
    if (magicNumber != ZSTD_magicNumber) {
3296
0
        ZSTD_errorFrameSizeInfoLegacy(cSize, dBound, ERROR(prefix_unknown));
3297
0
        return;
3298
0
    }
3299
2.26k
    ip += ZSTD_frameHeaderSize; remainingSize -= ZSTD_frameHeaderSize;
3300
3301
    /* Loop on each block */
3302
18.8k
    while (1)
3303
18.8k
    {
3304
18.8k
        size_t cBlockSize = ZSTD_getcBlockSize(ip, remainingSize, &blockProperties);
3305
18.8k
        if (ZSTD_isError(cBlockSize)) {
3306
7
            ZSTD_errorFrameSizeInfoLegacy(cSize, dBound, cBlockSize);
3307
7
            return;
3308
7
        }
3309
3310
18.8k
        ip += ZSTD_blockHeaderSize;
3311
18.8k
        remainingSize -= ZSTD_blockHeaderSize;
3312
18.8k
        if (cBlockSize > remainingSize) {
3313
52
            ZSTD_errorFrameSizeInfoLegacy(cSize, dBound, ERROR(srcSize_wrong));
3314
52
            return;
3315
52
        }
3316
3317
18.7k
        if (cBlockSize == 0) break;   /* bt_end */
3318
3319
16.5k
        ip += cBlockSize;
3320
16.5k
        remainingSize -= cBlockSize;
3321
16.5k
        nbBlocks++;
3322
16.5k
    }
3323
3324
2.20k
    *cSize = ip - (const BYTE*)src;
3325
2.20k
    *dBound = nbBlocks * BLOCKSIZE;
3326
2.20k
}
3327
3328
/*******************************
3329
*  Streaming Decompression API
3330
*******************************/
3331
3332
static size_t ZSTD_resetDCtx(ZSTD_DCtx* dctx)
3333
0
{
3334
0
    dctx->expected = ZSTD_frameHeaderSize;
3335
0
    dctx->phase = 0;
3336
0
    dctx->previousDstEnd = NULL;
3337
0
    dctx->base = NULL;
3338
0
    return 0;
3339
0
}
3340
3341
static ZSTD_DCtx* ZSTD_createDCtx(void)
3342
0
{
3343
0
    ZSTD_DCtx* dctx = (ZSTD_DCtx*)malloc(sizeof(ZSTD_DCtx));
3344
0
    if (dctx==NULL) return NULL;
3345
0
    ZSTD_resetDCtx(dctx);
3346
0
    return dctx;
3347
0
}
3348
3349
static size_t ZSTD_freeDCtx(ZSTD_DCtx* dctx)
3350
0
{
3351
0
    free(dctx);
3352
0
    return 0;
3353
0
}
3354
3355
static size_t ZSTD_nextSrcSizeToDecompress(ZSTD_DCtx* dctx)
3356
0
{
3357
0
    return dctx->expected;
3358
0
}
3359
3360
static size_t ZSTD_decompressContinue(ZSTD_DCtx* ctx, void* dst, size_t maxDstSize, const void* src, size_t srcSize)
3361
0
{
3362
    /* Sanity check */
3363
0
    if (srcSize != ctx->expected) return ERROR(srcSize_wrong);
3364
0
    if (dst != ctx->previousDstEnd)  /* not contiguous */
3365
0
        ctx->base = dst;
3366
3367
    /* Decompress : frame header */
3368
0
    if (ctx->phase == 0)
3369
0
    {
3370
        /* Check frame magic header */
3371
0
        U32 magicNumber = MEM_readLE32(src);
3372
0
        if (magicNumber != ZSTD_magicNumber) return ERROR(prefix_unknown);
3373
0
        ctx->phase = 1;
3374
0
        ctx->expected = ZSTD_blockHeaderSize;
3375
0
        return 0;
3376
0
    }
3377
3378
    /* Decompress : block header */
3379
0
    if (ctx->phase == 1)
3380
0
    {
3381
0
        blockProperties_t bp;
3382
0
        size_t blockSize = ZSTD_getcBlockSize(src, ZSTD_blockHeaderSize, &bp);
3383
0
        if (ZSTD_isError(blockSize)) return blockSize;
3384
0
        if (bp.blockType == bt_end)
3385
0
        {
3386
0
            ctx->expected = 0;
3387
0
            ctx->phase = 0;
3388
0
        }
3389
0
        else
3390
0
        {
3391
0
            ctx->expected = blockSize;
3392
0
            ctx->bType = bp.blockType;
3393
0
            ctx->phase = 2;
3394
0
        }
3395
3396
0
        return 0;
3397
0
    }
3398
3399
    /* Decompress : block content */
3400
0
    {
3401
0
        size_t rSize;
3402
0
        switch(ctx->bType)
3403
0
        {
3404
0
        case bt_compressed:
3405
0
            rSize = ZSTD_decompressBlock(ctx, dst, maxDstSize, src, srcSize);
3406
0
            break;
3407
0
        case bt_raw :
3408
0
            rSize = ZSTD_copyUncompressedBlock(dst, maxDstSize, src, srcSize);
3409
0
            break;
3410
0
        case bt_rle :
3411
0
            return ERROR(GENERIC);   /* not yet handled */
3412
0
            break;
3413
0
        case bt_end :   /* should never happen (filtered at phase 1) */
3414
0
            rSize = 0;
3415
0
            break;
3416
0
        default:
3417
0
            return ERROR(GENERIC);
3418
0
        }
3419
0
        ctx->phase = 1;
3420
0
        ctx->expected = ZSTD_blockHeaderSize;
3421
0
        if (ZSTD_isError(rSize)) return rSize;
3422
0
        ctx->previousDstEnd = (void*)( ((char*)dst) + rSize);
3423
0
        return rSize;
3424
0
    }
3425
3426
0
}
3427
3428
3429
/* wrapper layer */
3430
3431
unsigned ZSTDv02_isError(size_t code)
3432
0
{
3433
0
    return ZSTD_isError(code);
3434
0
}
3435
3436
size_t ZSTDv02_decompress( void* dst, size_t maxOriginalSize,
3437
                     const void* src, size_t compressedSize)
3438
1.10k
{
3439
1.10k
    return ZSTD_decompress(dst, maxOriginalSize, src, compressedSize);
3440
1.10k
}
3441
3442
ZSTDv02_Dctx* ZSTDv02_createDCtx(void)
3443
0
{
3444
0
    return (ZSTDv02_Dctx*)ZSTD_createDCtx();
3445
0
}
3446
3447
size_t ZSTDv02_freeDCtx(ZSTDv02_Dctx* dctx)
3448
0
{
3449
0
    return ZSTD_freeDCtx((ZSTD_DCtx*)dctx);
3450
0
}
3451
3452
size_t ZSTDv02_resetDCtx(ZSTDv02_Dctx* dctx)
3453
0
{
3454
0
    return ZSTD_resetDCtx((ZSTD_DCtx*)dctx);
3455
0
}
3456
3457
size_t ZSTDv02_nextSrcSizeToDecompress(ZSTDv02_Dctx* dctx)
3458
0
{
3459
0
    return ZSTD_nextSrcSizeToDecompress((ZSTD_DCtx*)dctx);
3460
0
}
3461
3462
size_t ZSTDv02_decompressContinue(ZSTDv02_Dctx* dctx, void* dst, size_t maxDstSize, const void* src, size_t srcSize)
3463
0
{
3464
0
    return ZSTD_decompressContinue((ZSTD_DCtx*)dctx, dst, maxDstSize, src, srcSize);
3465
0
}