Coverage Report

Created: 2026-02-26 06:59

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/lzma-fuzz/sdk/C/LzmaDec.c
Line
Count
Source
1
/* LzmaDec.c -- LZMA Decoder
2
2018-07-04 : Igor Pavlov : Public domain */
3
4
#include "Precomp.h"
5
6
#include <string.h>
7
8
/* #include "CpuArch.h" */
9
#include "LzmaDec.h"
10
11
84.2M
#define kNumTopBits 24
12
84.2M
#define kTopValue ((UInt32)1 << kNumTopBits)
13
14
235M
#define kNumBitModelTotalBits 11
15
154M
#define kBitModelTotal (1 << kNumBitModelTotalBits)
16
69.1M
#define kNumMoveBits 5
17
18
128k
#define RC_INIT_SIZE 5
19
20
70.6M
#define NORMALIZE if (range < kTopValue) { range <<= 8; code = (code << 8) | (*buf++); }
21
22
69.1M
#define IF_BIT_0(p) ttt = *(p); NORMALIZE; bound = (range >> kNumBitModelTotalBits) * (UInt32)ttt; if (code < bound)
23
61.5M
#define UPDATE_0(p) range = bound; *(p) = (CLzmaProb)(ttt + ((kBitModelTotal - ttt) >> kNumMoveBits));
24
7.57M
#define UPDATE_1(p) range -= bound; code -= bound; *(p) = (CLzmaProb)(ttt - (ttt >> kNumMoveBits));
25
58.5M
#define GET_BIT2(p, i, A0, A1) IF_BIT_0(p) \
26
58.5M
  { UPDATE_0(p); i = (i + i); A0; } else \
27
58.5M
  { UPDATE_1(p); i = (i + i) + 1; A1; }
28
29
58.1M
#define TREE_GET_BIT(probs, i) { GET_BIT2(probs + i, i, ;, ;); }
30
31
162k
#define REV_BIT(p, i, A0, A1) IF_BIT_0(p + i) \
32
162k
  { UPDATE_0(p + i); A0; } else \
33
162k
  { UPDATE_1(p + i); A1; }
34
42.8k
#define REV_BIT_VAR(  p, i, m) REV_BIT(p, i, i += m; m += m, m += m; i += m; )
35
89.7k
#define REV_BIT_CONST(p, i, m) REV_BIT(p, i, i += m;       , i += m * 2; )
36
29.9k
#define REV_BIT_LAST( p, i, m) REV_BIT(p, i, i -= m        , ; )
37
38
#define TREE_DECODE(probs, limit, i) \
39
3.60M
  { i = 1; do { TREE_GET_BIT(probs, i); } while (i < limit); i -= limit; }
40
41
/* #define _LZMA_SIZE_OPT */
42
43
#ifdef _LZMA_SIZE_OPT
44
#define TREE_6_DECODE(probs, i) TREE_DECODE(probs, (1 << 6), i)
45
#else
46
#define TREE_6_DECODE(probs, i) \
47
60.9k
  { i = 1; \
48
60.9k
  TREE_GET_BIT(probs, i); \
49
60.9k
  TREE_GET_BIT(probs, i); \
50
60.9k
  TREE_GET_BIT(probs, i); \
51
60.9k
  TREE_GET_BIT(probs, i); \
52
60.9k
  TREE_GET_BIT(probs, i); \
53
60.9k
  TREE_GET_BIT(probs, i); \
54
60.9k
  i -= 0x40; }
55
#endif
56
57
53.9M
#define NORMAL_LITER_DEC TREE_GET_BIT(prob, symbol)
58
#define MATCHED_LITER_DEC \
59
374k
  matchByte += matchByte; \
60
374k
  bit = offs; \
61
374k
  offs &= matchByte; \
62
374k
  probLit = prob + (offs + bit + symbol); \
63
374k
  GET_BIT2(probLit, symbol, offs ^= bit; , ;)
64
65
66
67
13.5M
#define NORMALIZE_CHECK if (range < kTopValue) { if (buf >= bufLimit) return DUMMY_ERROR; range <<= 8; code = (code << 8) | (*buf++); }
68
69
12.2M
#define IF_BIT_0_CHECK(p) ttt = *(p); NORMALIZE_CHECK; bound = (range >> kNumBitModelTotalBits) * (UInt32)ttt; if (code < bound)
70
11.0M
#define UPDATE_0_CHECK range = bound;
71
1.13M
#define UPDATE_1_CHECK range -= bound; code -= bound;
72
10.4M
#define GET_BIT2_CHECK(p, i, A0, A1) IF_BIT_0_CHECK(p) \
73
10.4M
  { UPDATE_0_CHECK; i = (i + i); A0; } else \
74
10.4M
  { UPDATE_1_CHECK; i = (i + i) + 1; A1; }
75
10.2M
#define GET_BIT_CHECK(p, i) GET_BIT2_CHECK(p, i, ; , ;)
76
#define TREE_DECODE_CHECK(probs, limit, i) \
77
602k
  { i = 1; do { GET_BIT_CHECK(probs + i, i) } while (i < limit); i -= limit; }
78
79
80
16.1k
#define REV_BIT_CHECK(p, i, m) IF_BIT_0_CHECK(p + i) \
81
16.0k
  { UPDATE_0_CHECK; i += m; m += m; } else \
82
16.0k
  { UPDATE_1_CHECK; m += m; i += m; }
83
84
85
68.9M
#define kNumPosBitsMax 4
86
38.7M
#define kNumPosStatesMax (1 << kNumPosBitsMax)
87
88
41.6M
#define kLenNumLowBits 3
89
2.17M
#define kLenNumLowSymbols (1 << kLenNumLowBits)
90
40.0M
#define kLenNumHighBits 8
91
39.9M
#define kLenNumHighSymbols (1 << kLenNumHighBits)
92
93
40.0M
#define LenLow 0
94
38.7M
#define LenHigh (LenLow + 2 * (kNumPosStatesMax << kLenNumLowBits))
95
38.2M
#define kNumLenProbs (LenHigh + kLenNumHighSymbols)
96
97
622k
#define LenChoice LenLow
98
568k
#define LenChoice2 (LenLow + (1 << kLenNumLowBits))
99
100
36.3M
#define kNumStates 12
101
30.1M
#define kNumStates2 16
102
8.64M
#define kNumLitStates 7
103
104
69.4k
#define kStartPosModelIndex 4
105
19.8M
#define kEndPosModelIndex 14
106
19.7M
#define kNumFullDistances (1 << (kEndPosModelIndex >> 1))
107
108
8.10M
#define kNumPosSlotBits 6
109
8.17M
#define kNumLenToPosStates 4
110
111
10.4M
#define kNumAlignBits 4
112
10.3M
#define kAlignTableSize (1 << kNumAlignBits)
113
114
2.19M
#define kMatchMinLen 2
115
1.65M
#define kMatchSpecLenStart (kMatchMinLen + kLenNumLowSymbols * 2 + kLenNumHighSymbols)
116
117
/* External ASM code needs same CLzmaProb array layout. So don't change it. */
118
119
/* (probs_1664) is faster and better for code size at some platforms */
120
/*
121
#ifdef MY_CPU_X86_OR_AMD64
122
*/
123
19.8M
#define kStartOffset 1664
124
2.70M
#define GET_PROBS p->probs_1664
125
/*
126
#define GET_PROBS p->probs + kStartOffset
127
#else
128
#define kStartOffset 0
129
#define GET_PROBS p->probs
130
#endif
131
*/
132
133
19.8M
#define SpecPos (-kStartOffset)
134
19.7M
#define IsRep0Long (SpecPos + kNumFullDistances)
135
19.7M
#define RepLenCoder (IsRep0Long + (kNumStates2 << kNumPosBitsMax))
136
19.1M
#define LenCoder (RepLenCoder + kNumLenProbs)
137
19.1M
#define IsMatch (LenCoder + kNumLenProbs)
138
10.4M
#define Align (IsMatch + (kNumStates2 << kNumPosBitsMax))
139
10.3M
#define IsRep (Align + kAlignTableSize)
140
9.73M
#define IsRepG0 (IsRep + kNumStates)
141
9.15M
#define IsRepG1 (IsRepG0 + kNumStates)
142
8.61M
#define IsRepG2 (IsRepG1 + kNumStates)
143
8.10M
#define PosSlot (IsRepG2 + kNumStates)
144
8.03M
#define Literal (PosSlot + (kNumLenToPosStates << kNumPosSlotBits))
145
22.3k
#define NUM_BASE_PROBS (Literal + kStartOffset)
146
147
#if Align != 0 && kStartOffset != 0
148
  #error Stop_Compiling_Bad_LZMA_kAlign
149
#endif
150
151
#if NUM_BASE_PROBS != 1984
152
  #error Stop_Compiling_Bad_LZMA_PROBS
153
#endif
154
155
156
1.23M
#define LZMA_LIT_SIZE 0x300
157
158
22.3k
#define LzmaProps_GetNumProbs(p) (NUM_BASE_PROBS + ((UInt32)LZMA_LIT_SIZE << ((p)->lc + (p)->lp)))
159
160
161
8.67M
#define CALC_POS_STATE(processedPos, pbMask) (((processedPos) & (pbMask)) << 4)
162
8.73M
#define COMBINED_PS_STATE (posState + state)
163
108k
#define GET_LEN_STATE (posState)
164
165
5.10k
#define LZMA_DIC_MIN (1 << 12)
166
167
/*
168
p->remainLen : shows status of LZMA decoder:
169
    < kMatchSpecLenStart : normal remain
170
    = kMatchSpecLenStart : finished
171
    = kMatchSpecLenStart + 1 : need init range coder
172
    = kMatchSpecLenStart + 2 : need init range coder and state
173
*/
174
175
/* ---------- LZMA_DECODE_REAL ---------- */
176
/*
177
LzmaDec_DecodeReal_3() can be implemented in external ASM file.
178
3 - is the code compatibility version of that function for check at link time.
179
*/
180
181
#define LZMA_DECODE_REAL LzmaDec_DecodeReal_3
182
183
/*
184
LZMA_DECODE_REAL()
185
In:
186
  RangeCoder is normalized
187
  if (p->dicPos == limit)
188
  {
189
    LzmaDec_TryDummy() was called before to exclude LITERAL and MATCH-REP cases.
190
    So first symbol can be only MATCH-NON-REP. And if that MATCH-NON-REP symbol
191
    is not END_OF_PAYALOAD_MARKER, then function returns error code.
192
  }
193
194
Processing:
195
  first LZMA symbol will be decoded in any case
196
  All checks for limits are at the end of main loop,
197
  It will decode new LZMA-symbols while (p->buf < bufLimit && dicPos < limit),
198
  RangeCoder is still without last normalization when (p->buf < bufLimit) is being checked.
199
200
Out:
201
  RangeCoder is normalized
202
  Result:
203
    SZ_OK - OK
204
    SZ_ERROR_DATA - Error
205
  p->remainLen:
206
    < kMatchSpecLenStart : normal remain
207
    = kMatchSpecLenStart : finished
208
*/
209
210
211
#ifdef _LZMA_DEC_OPT
212
213
int MY_FAST_CALL LZMA_DECODE_REAL(CLzmaDec *p, SizeT limit, const Byte *bufLimit);
214
215
#else
216
217
static
218
int MY_FAST_CALL LZMA_DECODE_REAL(CLzmaDec *p, SizeT limit, const Byte *bufLimit)
219
1.39M
{
220
1.39M
  CLzmaProb *probs = GET_PROBS;
221
1.39M
  unsigned state = (unsigned)p->state;
222
1.39M
  UInt32 rep0 = p->reps[0], rep1 = p->reps[1], rep2 = p->reps[2], rep3 = p->reps[3];
223
1.39M
  unsigned pbMask = ((unsigned)1 << (p->prop.pb)) - 1;
224
1.39M
  unsigned lc = p->prop.lc;
225
1.39M
  unsigned lpMask = ((unsigned)0x100 << p->prop.lp) - ((unsigned)0x100 >> lc);
226
227
1.39M
  Byte *dic = p->dic;
228
1.39M
  SizeT dicBufSize = p->dicBufSize;
229
1.39M
  SizeT dicPos = p->dicPos;
230
  
231
1.39M
  UInt32 processedPos = p->processedPos;
232
1.39M
  UInt32 checkDicSize = p->checkDicSize;
233
1.39M
  unsigned len = 0;
234
235
1.39M
  const Byte *buf = p->buf;
236
1.39M
  UInt32 range = p->range;
237
1.39M
  UInt32 code = p->code;
238
239
1.39M
  do
240
7.35M
  {
241
7.35M
    CLzmaProb *prob;
242
7.35M
    UInt32 bound;
243
7.35M
    unsigned ttt;
244
7.35M
    unsigned posState = CALC_POS_STATE(processedPos, pbMask);
245
246
7.35M
    prob = probs + IsMatch + COMBINED_PS_STATE;
247
7.35M
    IF_BIT_0(prob)
248
6.78M
    {
249
6.78M
      unsigned symbol;
250
6.78M
      UPDATE_0(prob);
251
6.78M
      prob = probs + Literal;
252
6.78M
      if (processedPos != 0 || checkDicSize != 0)
253
6.77M
        prob += (UInt32)3 * ((((processedPos << 8) + dic[(dicPos == 0 ? dicBufSize : dicPos) - 1]) & lpMask) << lc);
254
6.78M
      processedPos++;
255
256
6.78M
      if (state < kNumLitStates)
257
6.73M
      {
258
6.73M
        state -= (state < 4) ? state : 3;
259
6.73M
        symbol = 1;
260
        #ifdef _LZMA_SIZE_OPT
261
        do { NORMAL_LITER_DEC } while (symbol < 0x100);
262
        #else
263
6.73M
        NORMAL_LITER_DEC
264
6.73M
        NORMAL_LITER_DEC
265
6.73M
        NORMAL_LITER_DEC
266
6.73M
        NORMAL_LITER_DEC
267
6.73M
        NORMAL_LITER_DEC
268
6.73M
        NORMAL_LITER_DEC
269
6.73M
        NORMAL_LITER_DEC
270
6.73M
        NORMAL_LITER_DEC
271
6.73M
        #endif
272
6.73M
      }
273
46.7k
      else
274
46.7k
      {
275
46.7k
        unsigned matchByte = dic[dicPos - rep0 + (dicPos < rep0 ? dicBufSize : 0)];
276
46.7k
        unsigned offs = 0x100;
277
46.7k
        state -= (state < 10) ? 3 : 6;
278
46.7k
        symbol = 1;
279
        #ifdef _LZMA_SIZE_OPT
280
        do
281
        {
282
          unsigned bit;
283
          CLzmaProb *probLit;
284
          MATCHED_LITER_DEC
285
        }
286
        while (symbol < 0x100);
287
        #else
288
46.7k
        {
289
46.7k
          unsigned bit;
290
46.7k
          CLzmaProb *probLit;
291
46.7k
          MATCHED_LITER_DEC
292
46.7k
          MATCHED_LITER_DEC
293
46.7k
          MATCHED_LITER_DEC
294
46.7k
          MATCHED_LITER_DEC
295
46.7k
          MATCHED_LITER_DEC
296
46.7k
          MATCHED_LITER_DEC
297
46.7k
          MATCHED_LITER_DEC
298
46.7k
          MATCHED_LITER_DEC
299
46.7k
        }
300
46.7k
        #endif
301
46.7k
      }
302
303
6.78M
      dic[dicPos++] = (Byte)symbol;
304
6.78M
      continue;
305
6.78M
    }
306
    
307
570k
    {
308
570k
      UPDATE_1(prob);
309
570k
      prob = probs + IsRep + state;
310
570k
      IF_BIT_0(prob)
311
60.9k
      {
312
60.9k
        UPDATE_0(prob);
313
60.9k
        state += kNumStates;
314
60.9k
        prob = probs + LenCoder;
315
60.9k
      }
316
509k
      else
317
509k
      {
318
509k
        UPDATE_1(prob);
319
        /*
320
        // that case was checked before with kBadRepCode
321
        if (checkDicSize == 0 && processedPos == 0)
322
          return SZ_ERROR_DATA;
323
        */
324
509k
        prob = probs + IsRepG0 + state;
325
509k
        IF_BIT_0(prob)
326
45.8k
        {
327
45.8k
          UPDATE_0(prob);
328
45.8k
          prob = probs + IsRep0Long + COMBINED_PS_STATE;
329
45.8k
          IF_BIT_0(prob)
330
28.7k
          {
331
28.7k
            UPDATE_0(prob);
332
28.7k
            dic[dicPos] = dic[dicPos - rep0 + (dicPos < rep0 ? dicBufSize : 0)];
333
28.7k
            dicPos++;
334
28.7k
            processedPos++;
335
28.7k
            state = state < kNumLitStates ? 9 : 11;
336
28.7k
            continue;
337
28.7k
          }
338
17.0k
          UPDATE_1(prob);
339
17.0k
        }
340
463k
        else
341
463k
        {
342
463k
          UInt32 distance;
343
463k
          UPDATE_1(prob);
344
463k
          prob = probs + IsRepG1 + state;
345
463k
          IF_BIT_0(prob)
346
14.8k
          {
347
14.8k
            UPDATE_0(prob);
348
14.8k
            distance = rep1;
349
14.8k
          }
350
448k
          else
351
448k
          {
352
448k
            UPDATE_1(prob);
353
448k
            prob = probs + IsRepG2 + state;
354
448k
            IF_BIT_0(prob)
355
11.2k
            {
356
11.2k
              UPDATE_0(prob);
357
11.2k
              distance = rep2;
358
11.2k
            }
359
437k
            else
360
437k
            {
361
437k
              UPDATE_1(prob);
362
437k
              distance = rep3;
363
437k
              rep3 = rep2;
364
437k
            }
365
448k
            rep2 = rep1;
366
448k
          }
367
463k
          rep1 = rep0;
368
463k
          rep0 = distance;
369
463k
        }
370
480k
        state = state < kNumLitStates ? 8 : 11;
371
480k
        prob = probs + RepLenCoder;
372
480k
      }
373
      
374
      #ifdef _LZMA_SIZE_OPT
375
      {
376
        unsigned lim, offset;
377
        CLzmaProb *probLen = prob + LenChoice;
378
        IF_BIT_0(probLen)
379
        {
380
          UPDATE_0(probLen);
381
          probLen = prob + LenLow + GET_LEN_STATE;
382
          offset = 0;
383
          lim = (1 << kLenNumLowBits);
384
        }
385
        else
386
        {
387
          UPDATE_1(probLen);
388
          probLen = prob + LenChoice2;
389
          IF_BIT_0(probLen)
390
          {
391
            UPDATE_0(probLen);
392
            probLen = prob + LenLow + GET_LEN_STATE + (1 << kLenNumLowBits);
393
            offset = kLenNumLowSymbols;
394
            lim = (1 << kLenNumLowBits);
395
          }
396
          else
397
          {
398
            UPDATE_1(probLen);
399
            probLen = prob + LenHigh;
400
            offset = kLenNumLowSymbols * 2;
401
            lim = (1 << kLenNumHighBits);
402
          }
403
        }
404
        TREE_DECODE(probLen, lim, len);
405
        len += offset;
406
      }
407
      #else
408
541k
      {
409
541k
        CLzmaProb *probLen = prob + LenChoice;
410
541k
        IF_BIT_0(probLen)
411
42.4k
        {
412
42.4k
          UPDATE_0(probLen);
413
42.4k
          probLen = prob + LenLow + GET_LEN_STATE;
414
42.4k
          len = 1;
415
42.4k
          TREE_GET_BIT(probLen, len);
416
42.4k
          TREE_GET_BIT(probLen, len);
417
42.4k
          TREE_GET_BIT(probLen, len);
418
42.4k
          len -= 8;
419
42.4k
        }
420
499k
        else
421
499k
        {
422
499k
          UPDATE_1(probLen);
423
499k
          probLen = prob + LenChoice2;
424
499k
          IF_BIT_0(probLen)
425
48.7k
          {
426
48.7k
            UPDATE_0(probLen);
427
48.7k
            probLen = prob + LenLow + GET_LEN_STATE + (1 << kLenNumLowBits);
428
48.7k
            len = 1;
429
48.7k
            TREE_GET_BIT(probLen, len);
430
48.7k
            TREE_GET_BIT(probLen, len);
431
48.7k
            TREE_GET_BIT(probLen, len);
432
48.7k
          }
433
450k
          else
434
450k
          {
435
450k
            UPDATE_1(probLen);
436
450k
            probLen = prob + LenHigh;
437
450k
            TREE_DECODE(probLen, (1 << kLenNumHighBits), len);
438
450k
            len += kLenNumLowSymbols * 2;
439
450k
          }
440
499k
        }
441
541k
      }
442
541k
      #endif
443
444
541k
      if (state >= kNumStates)
445
60.9k
      {
446
60.9k
        UInt32 distance;
447
60.9k
        prob = probs + PosSlot +
448
60.9k
            ((len < kNumLenToPosStates ? len : kNumLenToPosStates - 1) << kNumPosSlotBits);
449
60.9k
        TREE_6_DECODE(prob, distance);
450
60.9k
        if (distance >= kStartPosModelIndex)
451
44.5k
        {
452
44.5k
          unsigned posSlot = (unsigned)distance;
453
44.5k
          unsigned numDirectBits = (unsigned)(((distance >> 1) - 1));
454
44.5k
          distance = (2 | (distance & 1));
455
44.5k
          if (posSlot < kEndPosModelIndex)
456
14.6k
          {
457
14.6k
            distance <<= numDirectBits;
458
14.6k
            prob = probs + SpecPos;
459
14.6k
            {
460
14.6k
              UInt32 m = 1;
461
14.6k
              distance++;
462
14.6k
              do
463
42.8k
              {
464
42.8k
                REV_BIT_VAR(prob, distance, m);
465
42.8k
              }
466
42.8k
              while (--numDirectBits);
467
14.6k
              distance -= m;
468
14.6k
            }
469
14.6k
          }
470
29.9k
          else
471
29.9k
          {
472
29.9k
            numDirectBits -= kNumAlignBits;
473
29.9k
            do
474
148k
            {
475
148k
              NORMALIZE
476
148k
              range >>= 1;
477
              
478
148k
              {
479
148k
                UInt32 t;
480
148k
                code -= range;
481
148k
                t = (0 - ((UInt32)code >> 31)); /* (UInt32)((Int32)code >> 31) */
482
148k
                distance = (distance << 1) + (t + 1);
483
148k
                code += range & t;
484
148k
              }
485
              /*
486
              distance <<= 1;
487
              if (code >= range)
488
              {
489
                code -= range;
490
                distance |= 1;
491
              }
492
              */
493
148k
            }
494
148k
            while (--numDirectBits);
495
29.9k
            prob = probs + Align;
496
29.9k
            distance <<= kNumAlignBits;
497
29.9k
            {
498
29.9k
              unsigned i = 1;
499
29.9k
              REV_BIT_CONST(prob, i, 1);
500
29.9k
              REV_BIT_CONST(prob, i, 2);
501
29.9k
              REV_BIT_CONST(prob, i, 4);
502
29.9k
              REV_BIT_LAST (prob, i, 8);
503
29.9k
              distance |= i;
504
29.9k
            }
505
29.9k
            if (distance == (UInt32)0xFFFFFFFF)
506
21
            {
507
21
              len = kMatchSpecLenStart;
508
21
              state -= kNumStates;
509
21
              break;
510
21
            }
511
29.9k
          }
512
44.5k
        }
513
        
514
60.9k
        rep3 = rep2;
515
60.9k
        rep2 = rep1;
516
60.9k
        rep1 = rep0;
517
60.9k
        rep0 = distance + 1;
518
60.9k
        state = (state < kNumStates + kNumLitStates) ? kNumLitStates : kNumLitStates + 3;
519
60.9k
        if (distance >= (checkDicSize == 0 ? processedPos: checkDicSize))
520
773
        {
521
773
          p->dicPos = dicPos;
522
773
          return SZ_ERROR_DATA;
523
773
        }
524
60.9k
      }
525
526
540k
      len += kMatchMinLen;
527
528
540k
      {
529
540k
        SizeT rem;
530
540k
        unsigned curLen;
531
540k
        SizeT pos;
532
        
533
540k
        if ((rem = limit - dicPos) == 0)
534
7
        {
535
7
          p->dicPos = dicPos;
536
7
          return SZ_ERROR_DATA;
537
7
        }
538
        
539
540k
        curLen = ((rem < len) ? (unsigned)rem : len);
540
540k
        pos = dicPos - rep0 + (dicPos < rep0 ? dicBufSize : 0);
541
542
540k
        processedPos += (UInt32)curLen;
543
544
540k
        len -= curLen;
545
540k
        if (curLen <= dicBufSize - pos)
546
540k
        {
547
540k
          Byte *dest = dic + dicPos;
548
540k
          ptrdiff_t src = (ptrdiff_t)pos - (ptrdiff_t)dicPos;
549
540k
          const Byte *lim = dest + curLen;
550
540k
          dicPos += (SizeT)curLen;
551
540k
          do
552
118M
            *(dest) = (Byte)*(dest + src);
553
118M
          while (++dest != lim);
554
540k
        }
555
465
        else
556
465
        {
557
465
          do
558
114k
          {
559
114k
            dic[dicPos++] = dic[pos];
560
114k
            if (++pos == dicBufSize)
561
465
              pos = 0;
562
114k
          }
563
114k
          while (--curLen != 0);
564
465
        }
565
540k
      }
566
540k
    }
567
540k
  }
568
7.35M
  while (dicPos < limit && buf < bufLimit);
569
570
1.39M
  NORMALIZE;
571
  
572
1.39M
  p->buf = buf;
573
1.39M
  p->range = range;
574
1.39M
  p->code = code;
575
1.39M
  p->remainLen = (UInt32)len;
576
1.39M
  p->dicPos = dicPos;
577
1.39M
  p->processedPos = processedPos;
578
1.39M
  p->reps[0] = rep0;
579
1.39M
  p->reps[1] = rep1;
580
1.39M
  p->reps[2] = rep2;
581
1.39M
  p->reps[3] = rep3;
582
1.39M
  p->state = (UInt32)state;
583
584
1.39M
  return SZ_OK;
585
1.39M
}
586
#endif
587
588
static void MY_FAST_CALL LzmaDec_WriteRem(CLzmaDec *p, SizeT limit)
589
1.44M
{
590
1.44M
  if (p->remainLen != 0 && p->remainLen < kMatchSpecLenStart)
591
33.3k
  {
592
33.3k
    Byte *dic = p->dic;
593
33.3k
    SizeT dicPos = p->dicPos;
594
33.3k
    SizeT dicBufSize = p->dicBufSize;
595
33.3k
    unsigned len = (unsigned)p->remainLen;
596
33.3k
    SizeT rep0 = p->reps[0]; /* we use SizeT to avoid the BUG of VC14 for AMD64 */
597
33.3k
    SizeT rem = limit - dicPos;
598
33.3k
    if (rem < len)
599
16.3k
      len = (unsigned)(rem);
600
601
33.3k
    if (p->checkDicSize == 0 && p->prop.dicSize - p->processedPos <= len)
602
46
      p->checkDicSize = p->prop.dicSize;
603
604
33.3k
    p->processedPos += (UInt32)len;
605
33.3k
    p->remainLen -= (UInt32)len;
606
2.74M
    while (len != 0)
607
2.71M
    {
608
2.71M
      len--;
609
2.71M
      dic[dicPos] = dic[dicPos - rep0 + (dicPos < rep0 ? dicBufSize : 0)];
610
2.71M
      dicPos++;
611
2.71M
    }
612
33.3k
    p->dicPos = dicPos;
613
33.3k
  }
614
1.44M
}
615
616
617
39.5k
#define kRange0 0xFFFFFFFF
618
26.3k
#define kBound0 ((kRange0 >> kNumBitModelTotalBits) << (kNumBitModelTotalBits - 1))
619
13.1k
#define kBadRepCode (kBound0 + (((kRange0 - kBound0) >> kNumBitModelTotalBits) << (kNumBitModelTotalBits - 1)))
620
#if kBadRepCode != (0xC0000000 - 0x400)
621
  #error Stop_Compiling_Bad_LZMA_Check
622
#endif
623
624
static int MY_FAST_CALL LzmaDec_DecodeReal2(CLzmaDec *p, SizeT limit, const Byte *bufLimit)
625
1.39M
{
626
1.39M
  do
627
1.39M
  {
628
1.39M
    SizeT limit2 = limit;
629
1.39M
    if (p->checkDicSize == 0)
630
976k
    {
631
976k
      UInt32 rem = p->prop.dicSize - p->processedPos;
632
976k
      if (limit - p->dicPos > rem)
633
12.5k
        limit2 = p->dicPos + rem;
634
635
976k
      if (p->processedPos == 0)
636
13.1k
        if (p->code >= kBadRepCode)
637
72
          return SZ_ERROR_DATA;
638
976k
    }
639
640
1.39M
    RINOK(LZMA_DECODE_REAL(p, limit2, bufLimit));
641
    
642
1.39M
    if (p->checkDicSize == 0 && p->processedPos >= p->prop.dicSize)
643
1.17k
      p->checkDicSize = p->prop.dicSize;
644
    
645
1.39M
    LzmaDec_WriteRem(p, limit);
646
1.39M
  }
647
1.39M
  while (p->dicPos < limit && p->buf < bufLimit && p->remainLen < kMatchSpecLenStart);
648
649
1.39M
  return 0;
650
1.39M
}
651
652
typedef enum
653
{
654
  DUMMY_ERROR, /* unexpected end of input stream */
655
  DUMMY_LIT,
656
  DUMMY_MATCH,
657
  DUMMY_REP
658
} ELzmaDummy;
659
660
static ELzmaDummy LzmaDec_TryDummy(const CLzmaDec *p, const Byte *buf, SizeT inSize)
661
1.31M
{
662
1.31M
  UInt32 range = p->range;
663
1.31M
  UInt32 code = p->code;
664
1.31M
  const Byte *bufLimit = buf + inSize;
665
1.31M
  const CLzmaProb *probs = GET_PROBS;
666
1.31M
  unsigned state = (unsigned)p->state;
667
1.31M
  ELzmaDummy res;
668
669
1.31M
  {
670
1.31M
    const CLzmaProb *prob;
671
1.31M
    UInt32 bound;
672
1.31M
    unsigned ttt;
673
1.31M
    unsigned posState = CALC_POS_STATE(p->processedPos, (1 << p->prop.pb) - 1);
674
675
1.31M
    prob = probs + IsMatch + COMBINED_PS_STATE;
676
1.31M
    IF_BIT_0_CHECK(prob)
677
1.22M
    {
678
1.22M
      UPDATE_0_CHECK
679
680
      /* if (bufLimit - buf >= 7) return DUMMY_LIT; */
681
682
1.22M
      prob = probs + Literal;
683
1.22M
      if (p->checkDicSize != 0 || p->processedPos != 0)
684
1.21M
        prob += ((UInt32)LZMA_LIT_SIZE *
685
1.21M
            ((((p->processedPos) & ((1 << (p->prop.lp)) - 1)) << p->prop.lc) +
686
1.21M
            (p->dic[(p->dicPos == 0 ? p->dicBufSize : p->dicPos) - 1] >> (8 - p->prop.lc))));
687
688
1.22M
      if (state < kNumLitStates)
689
1.21M
      {
690
1.21M
        unsigned symbol = 1;
691
9.69M
        do { GET_BIT_CHECK(prob + symbol, symbol) } while (symbol < 0x100);
692
1.21M
      }
693
14.9k
      else
694
14.9k
      {
695
14.9k
        unsigned matchByte = p->dic[p->dicPos - p->reps[0] +
696
14.9k
            (p->dicPos < p->reps[0] ? p->dicBufSize : 0)];
697
14.9k
        unsigned offs = 0x100;
698
14.9k
        unsigned symbol = 1;
699
14.9k
        do
700
113k
        {
701
113k
          unsigned bit;
702
113k
          const CLzmaProb *probLit;
703
113k
          matchByte += matchByte;
704
113k
          bit = offs;
705
113k
          offs &= matchByte;
706
113k
          probLit = prob + (offs + bit + symbol);
707
113k
          GET_BIT2_CHECK(probLit, symbol, offs ^= bit; , ; )
708
112k
        }
709
112k
        while (symbol < 0x100);
710
14.9k
      }
711
1.22M
      res = DUMMY_LIT;
712
1.22M
    }
713
89.8k
    else
714
89.8k
    {
715
89.8k
      unsigned len;
716
89.8k
      UPDATE_1_CHECK;
717
718
89.8k
      prob = probs + IsRep + state;
719
89.8k
      IF_BIT_0_CHECK(prob)
720
9.47k
      {
721
9.47k
        UPDATE_0_CHECK;
722
9.47k
        state = 0;
723
9.47k
        prob = probs + LenCoder;
724
9.47k
        res = DUMMY_MATCH;
725
9.47k
      }
726
80.0k
      else
727
80.0k
      {
728
80.0k
        UPDATE_1_CHECK;
729
80.0k
        res = DUMMY_REP;
730
80.0k
        prob = probs + IsRepG0 + state;
731
80.0k
        IF_BIT_0_CHECK(prob)
732
11.9k
        {
733
11.9k
          UPDATE_0_CHECK;
734
11.9k
          prob = probs + IsRep0Long + COMBINED_PS_STATE;
735
11.9k
          IF_BIT_0_CHECK(prob)
736
8.31k
          {
737
8.31k
            UPDATE_0_CHECK;
738
8.31k
            NORMALIZE_CHECK;
739
8.23k
            return DUMMY_REP;
740
8.31k
          }
741
3.50k
          else
742
3.50k
          {
743
3.50k
            UPDATE_1_CHECK;
744
3.50k
          }
745
11.8k
        }
746
67.8k
        else
747
67.8k
        {
748
67.8k
          UPDATE_1_CHECK;
749
67.8k
          prob = probs + IsRepG1 + state;
750
67.8k
          IF_BIT_0_CHECK(prob)
751
3.66k
          {
752
3.66k
            UPDATE_0_CHECK;
753
3.66k
          }
754
64.0k
          else
755
64.0k
          {
756
64.0k
            UPDATE_1_CHECK;
757
64.0k
            prob = probs + IsRepG2 + state;
758
64.0k
            IF_BIT_0_CHECK(prob)
759
1.73k
            {
760
1.73k
              UPDATE_0_CHECK;
761
1.73k
            }
762
62.2k
            else
763
62.2k
            {
764
62.2k
              UPDATE_1_CHECK;
765
62.2k
            }
766
63.9k
          }
767
67.7k
        }
768
71.1k
        state = kNumStates;
769
71.1k
        prob = probs + RepLenCoder;
770
71.1k
      }
771
80.6k
      {
772
80.6k
        unsigned limit, offset;
773
80.6k
        const CLzmaProb *probLen = prob + LenChoice;
774
80.6k
        IF_BIT_0_CHECK(probLen)
775
10.9k
        {
776
10.9k
          UPDATE_0_CHECK;
777
10.9k
          probLen = prob + LenLow + GET_LEN_STATE;
778
10.9k
          offset = 0;
779
10.9k
          limit = 1 << kLenNumLowBits;
780
10.9k
        }
781
69.3k
        else
782
69.3k
        {
783
69.3k
          UPDATE_1_CHECK;
784
69.3k
          probLen = prob + LenChoice2;
785
69.3k
          IF_BIT_0_CHECK(probLen)
786
6.37k
          {
787
6.37k
            UPDATE_0_CHECK;
788
6.37k
            probLen = prob + LenLow + GET_LEN_STATE + (1 << kLenNumLowBits);
789
6.37k
            offset = kLenNumLowSymbols;
790
6.37k
            limit = 1 << kLenNumLowBits;
791
6.37k
          }
792
62.7k
          else
793
62.7k
          {
794
62.7k
            UPDATE_1_CHECK;
795
62.7k
            probLen = prob + LenHigh;
796
62.7k
            offset = kLenNumLowSymbols * 2;
797
62.7k
            limit = 1 << kLenNumHighBits;
798
62.7k
          }
799
69.1k
        }
800
158k
        TREE_DECODE_CHECK(probLen, limit, len);
801
158k
        len += offset;
802
158k
      }
803
804
78.8k
      if (state < 4)
805
8.75k
      {
806
8.75k
        unsigned posSlot;
807
8.75k
        prob = probs + PosSlot +
808
8.75k
            ((len < kNumLenToPosStates - 1 ? len : kNumLenToPosStates - 1) <<
809
8.75k
            kNumPosSlotBits);
810
8.75k
        TREE_DECODE_CHECK(prob, 1 << kNumPosSlotBits, posSlot);
811
8.44k
        if (posSlot >= kStartPosModelIndex)
812
4.74k
        {
813
4.74k
          unsigned numDirectBits = ((posSlot >> 1) - 1);
814
815
          /* if (bufLimit - buf >= 8) return DUMMY_MATCH; */
816
817
4.74k
          if (posSlot < kEndPosModelIndex)
818
2.08k
          {
819
2.08k
            prob = probs + SpecPos + ((2 | (posSlot & 1)) << numDirectBits);
820
2.08k
          }
821
2.66k
          else
822
2.66k
          {
823
2.66k
            numDirectBits -= kNumAlignBits;
824
2.66k
            do
825
12.1k
            {
826
12.1k
              NORMALIZE_CHECK
827
11.9k
              range >>= 1;
828
11.9k
              code -= range & (((code - range) >> 31) - 1);
829
              /* if (code >= range) code -= range; */
830
11.9k
            }
831
11.9k
            while (--numDirectBits);
832
2.51k
            prob = probs + Align;
833
2.51k
            numDirectBits = kNumAlignBits;
834
2.51k
          }
835
4.59k
          {
836
4.59k
            unsigned i = 1;
837
4.59k
            unsigned m = 1;
838
4.59k
            do
839
16.1k
            {
840
16.1k
              REV_BIT_CHECK(prob, i, m);
841
16.0k
            }
842
16.0k
            while (--numDirectBits);
843
4.59k
          }
844
4.59k
        }
845
8.44k
      }
846
158k
    }
847
1.31M
  }
848
1.30M
  NORMALIZE_CHECK;
849
1.30M
  return res;
850
1.30M
}
851
852
853
void LzmaDec_InitDicAndState(CLzmaDec *p, BoolInt initDic, BoolInt initState)
854
61.1k
{
855
61.1k
  p->remainLen = kMatchSpecLenStart + 1;
856
61.1k
  p->tempBufSize = 0;
857
858
61.1k
  if (initDic)
859
20.0k
  {
860
20.0k
    p->processedPos = 0;
861
20.0k
    p->checkDicSize = 0;
862
20.0k
    p->remainLen = kMatchSpecLenStart + 2;
863
20.0k
  }
864
61.1k
  if (initState)
865
22.4k
    p->remainLen = kMatchSpecLenStart + 2;
866
61.1k
}
867
868
void LzmaDec_Init(CLzmaDec *p)
869
5.10k
{
870
5.10k
  p->dicPos = 0;
871
5.10k
  LzmaDec_InitDicAndState(p, True, True);
872
5.10k
}
873
874
875
SRes LzmaDec_DecodeToDic(CLzmaDec *p, SizeT dicLimit, const Byte *src, SizeT *srcLen,
876
    ELzmaFinishMode finishMode, ELzmaStatus *status)
877
54.2k
{
878
54.2k
  SizeT inSize = *srcLen;
879
54.2k
  (*srcLen) = 0;
880
  
881
54.2k
  *status = LZMA_STATUS_NOT_SPECIFIED;
882
883
54.2k
  if (p->remainLen > kMatchSpecLenStart)
884
18.7k
  {
885
111k
    for (; inSize > 0 && p->tempBufSize < RC_INIT_SIZE; (*srcLen)++, inSize--)
886
92.9k
      p->tempBuf[p->tempBufSize++] = *src++;
887
18.7k
    if (p->tempBufSize != 0 && p->tempBuf[0] != 0)
888
19
      return SZ_ERROR_DATA;
889
18.7k
    if (p->tempBufSize < RC_INIT_SIZE)
890
147
    {
891
147
      *status = LZMA_STATUS_NEEDS_MORE_INPUT;
892
147
      return SZ_OK;
893
147
    }
894
18.5k
    p->code =
895
18.5k
        ((UInt32)p->tempBuf[1] << 24)
896
18.5k
      | ((UInt32)p->tempBuf[2] << 16)
897
18.5k
      | ((UInt32)p->tempBuf[3] << 8)
898
18.5k
      | ((UInt32)p->tempBuf[4]);
899
18.5k
    p->range = 0xFFFFFFFF;
900
18.5k
    p->tempBufSize = 0;
901
902
18.5k
    if (p->remainLen > kMatchSpecLenStart + 1)
903
17.2k
    {
904
17.2k
      SizeT numProbs = LzmaProps_GetNumProbs(&p->prop);
905
17.2k
      SizeT i;
906
17.2k
      CLzmaProb *probs = p->probs;
907
92.8M
      for (i = 0; i < numProbs; i++)
908
92.8M
        probs[i] = kBitModelTotal >> 1;
909
17.2k
      p->reps[0] = p->reps[1] = p->reps[2] = p->reps[3] = 1;
910
17.2k
      p->state = 0;
911
17.2k
    }
912
913
18.5k
    p->remainLen = 0;
914
18.5k
  }
915
916
54.1k
  LzmaDec_WriteRem(p, dicLimit);
917
918
1.44M
  while (p->remainLen != kMatchSpecLenStart)
919
1.44M
  {
920
1.44M
      int checkEndMarkNow = 0;
921
922
1.44M
      if (p->dicPos >= dicLimit)
923
46.5k
      {
924
46.5k
        if (p->remainLen == 0 && p->code == 0)
925
29.3k
        {
926
29.3k
          *status = LZMA_STATUS_MAYBE_FINISHED_WITHOUT_MARK;
927
29.3k
          return SZ_OK;
928
29.3k
        }
929
17.2k
        if (finishMode == LZMA_FINISH_ANY)
930
16.9k
        {
931
16.9k
          *status = LZMA_STATUS_NOT_FINISHED;
932
16.9k
          return SZ_OK;
933
16.9k
        }
934
275
        if (p->remainLen != 0)
935
83
        {
936
83
          *status = LZMA_STATUS_NOT_FINISHED;
937
83
          return SZ_ERROR_DATA;
938
83
        }
939
192
        checkEndMarkNow = 1;
940
192
      }
941
942
1.39M
      if (p->tempBufSize == 0)
943
1.39M
      {
944
1.39M
        SizeT processed;
945
1.39M
        const Byte *bufLimit;
946
1.39M
        if (inSize < LZMA_REQUIRED_INPUT_MAX || checkEndMarkNow)
947
1.31M
        {
948
1.31M
          int dummyRes = LzmaDec_TryDummy(p, src, inSize);
949
1.31M
          if (dummyRes == DUMMY_ERROR)
950
6.65k
          {
951
6.65k
            memcpy(p->tempBuf, src, inSize);
952
6.65k
            p->tempBufSize = (unsigned)inSize;
953
6.65k
            (*srcLen) += inSize;
954
6.65k
            *status = LZMA_STATUS_NEEDS_MORE_INPUT;
955
6.65k
            return SZ_OK;
956
6.65k
          }
957
1.31M
          if (checkEndMarkNow && dummyRes != DUMMY_MATCH)
958
7
          {
959
7
            *status = LZMA_STATUS_NOT_FINISHED;
960
7
            return SZ_ERROR_DATA;
961
7
          }
962
1.31M
          bufLimit = src;
963
1.31M
        }
964
81.0k
        else
965
81.0k
          bufLimit = src + inSize - LZMA_REQUIRED_INPUT_MAX;
966
1.39M
        p->buf = src;
967
1.39M
        if (LzmaDec_DecodeReal2(p, dicLimit, bufLimit) != 0)
968
852
          return SZ_ERROR_DATA;
969
1.39M
        processed = (SizeT)(p->buf - src);
970
1.39M
        (*srcLen) += processed;
971
1.39M
        src += processed;
972
1.39M
        inSize -= processed;
973
1.39M
      }
974
214
      else
975
214
      {
976
214
        unsigned rem = p->tempBufSize, lookAhead = 0;
977
214
        while (rem < LZMA_REQUIRED_INPUT_MAX && lookAhead < inSize)
978
0
          p->tempBuf[rem++] = src[lookAhead++];
979
214
        p->tempBufSize = rem;
980
214
        if (rem < LZMA_REQUIRED_INPUT_MAX || checkEndMarkNow)
981
214
        {
982
214
          int dummyRes = LzmaDec_TryDummy(p, p->tempBuf, (SizeT)rem);
983
214
          if (dummyRes == DUMMY_ERROR)
984
214
          {
985
214
            (*srcLen) += (SizeT)lookAhead;
986
214
            *status = LZMA_STATUS_NEEDS_MORE_INPUT;
987
214
            return SZ_OK;
988
214
          }
989
0
          if (checkEndMarkNow && dummyRes != DUMMY_MATCH)
990
0
          {
991
0
            *status = LZMA_STATUS_NOT_FINISHED;
992
0
            return SZ_ERROR_DATA;
993
0
          }
994
0
        }
995
0
        p->buf = p->tempBuf;
996
0
        if (LzmaDec_DecodeReal2(p, dicLimit, p->buf) != 0)
997
0
          return SZ_ERROR_DATA;
998
        
999
0
        {
1000
0
          unsigned kkk = (unsigned)(p->buf - p->tempBuf);
1001
0
          if (rem < kkk)
1002
0
            return SZ_ERROR_FAIL; /* some internal error */
1003
0
          rem -= kkk;
1004
0
          if (lookAhead < rem)
1005
0
            return SZ_ERROR_FAIL; /* some internal error */
1006
0
          lookAhead -= rem;
1007
0
        }
1008
0
        (*srcLen) += (SizeT)lookAhead;
1009
0
        src += lookAhead;
1010
0
        inSize -= (SizeT)lookAhead;
1011
0
        p->tempBufSize = 0;
1012
0
      }
1013
1.39M
  }
1014
  
1015
23
  if (p->code != 0)
1016
19
    return SZ_ERROR_DATA;
1017
4
  *status = LZMA_STATUS_FINISHED_WITH_MARK;
1018
4
  return SZ_OK;
1019
23
}
1020
1021
1022
SRes LzmaDec_DecodeToBuf(CLzmaDec *p, Byte *dest, SizeT *destLen, const Byte *src, SizeT *srcLen, ELzmaFinishMode finishMode, ELzmaStatus *status)
1023
0
{
1024
0
  SizeT outSize = *destLen;
1025
0
  SizeT inSize = *srcLen;
1026
0
  *srcLen = *destLen = 0;
1027
0
  for (;;)
1028
0
  {
1029
0
    SizeT inSizeCur = inSize, outSizeCur, dicPos;
1030
0
    ELzmaFinishMode curFinishMode;
1031
0
    SRes res;
1032
0
    if (p->dicPos == p->dicBufSize)
1033
0
      p->dicPos = 0;
1034
0
    dicPos = p->dicPos;
1035
0
    if (outSize > p->dicBufSize - dicPos)
1036
0
    {
1037
0
      outSizeCur = p->dicBufSize;
1038
0
      curFinishMode = LZMA_FINISH_ANY;
1039
0
    }
1040
0
    else
1041
0
    {
1042
0
      outSizeCur = dicPos + outSize;
1043
0
      curFinishMode = finishMode;
1044
0
    }
1045
1046
0
    res = LzmaDec_DecodeToDic(p, outSizeCur, src, &inSizeCur, curFinishMode, status);
1047
0
    src += inSizeCur;
1048
0
    inSize -= inSizeCur;
1049
0
    *srcLen += inSizeCur;
1050
0
    outSizeCur = p->dicPos - dicPos;
1051
0
    memcpy(dest, p->dic + dicPos, outSizeCur);
1052
0
    dest += outSizeCur;
1053
0
    outSize -= outSizeCur;
1054
0
    *destLen += outSizeCur;
1055
0
    if (res != 0)
1056
0
      return res;
1057
0
    if (outSizeCur == 0 || outSize == 0)
1058
0
      return SZ_OK;
1059
0
  }
1060
0
}
1061
1062
void LzmaDec_FreeProbs(CLzmaDec *p, ISzAllocPtr alloc)
1063
10.2k
{
1064
10.2k
  ISzAlloc_Free(alloc, p->probs);
1065
10.2k
  p->probs = NULL;
1066
10.2k
}
1067
1068
static void LzmaDec_FreeDict(CLzmaDec *p, ISzAllocPtr alloc)
1069
10.2k
{
1070
10.2k
  ISzAlloc_Free(alloc, p->dic);
1071
10.2k
  p->dic = NULL;
1072
10.2k
}
1073
1074
void LzmaDec_Free(CLzmaDec *p, ISzAllocPtr alloc)
1075
5.10k
{
1076
5.10k
  LzmaDec_FreeProbs(p, alloc);
1077
5.10k
  LzmaDec_FreeDict(p, alloc);
1078
5.10k
}
1079
1080
SRes LzmaProps_Decode(CLzmaProps *p, const Byte *data, unsigned size)
1081
5.10k
{
1082
5.10k
  UInt32 dicSize;
1083
5.10k
  Byte d;
1084
  
1085
5.10k
  if (size < LZMA_PROPS_SIZE)
1086
0
    return SZ_ERROR_UNSUPPORTED;
1087
5.10k
  else
1088
5.10k
    dicSize = data[1] | ((UInt32)data[2] << 8) | ((UInt32)data[3] << 16) | ((UInt32)data[4] << 24);
1089
 
1090
5.10k
  if (dicSize < LZMA_DIC_MIN)
1091
0
    dicSize = LZMA_DIC_MIN;
1092
5.10k
  p->dicSize = dicSize;
1093
1094
5.10k
  d = data[0];
1095
5.10k
  if (d >= (9 * 5 * 5))
1096
0
    return SZ_ERROR_UNSUPPORTED;
1097
1098
5.10k
  p->lc = (Byte)(d % 9);
1099
5.10k
  d /= 9;
1100
5.10k
  p->pb = (Byte)(d / 5);
1101
5.10k
  p->lp = (Byte)(d % 5);
1102
1103
5.10k
  return SZ_OK;
1104
5.10k
}
1105
1106
static SRes LzmaDec_AllocateProbs2(CLzmaDec *p, const CLzmaProps *propNew, ISzAllocPtr alloc)
1107
5.10k
{
1108
5.10k
  UInt32 numProbs = LzmaProps_GetNumProbs(propNew);
1109
5.10k
  if (!p->probs || numProbs != p->numProbs)
1110
5.10k
  {
1111
5.10k
    LzmaDec_FreeProbs(p, alloc);
1112
5.10k
    p->probs = (CLzmaProb *)ISzAlloc_Alloc(alloc, numProbs * sizeof(CLzmaProb));
1113
5.10k
    if (!p->probs)
1114
0
      return SZ_ERROR_MEM;
1115
5.10k
    p->probs_1664 = p->probs + 1664;
1116
5.10k
    p->numProbs = numProbs;
1117
5.10k
  }
1118
5.10k
  return SZ_OK;
1119
5.10k
}
1120
1121
SRes LzmaDec_AllocateProbs(CLzmaDec *p, const Byte *props, unsigned propsSize, ISzAllocPtr alloc)
1122
0
{
1123
0
  CLzmaProps propNew;
1124
0
  RINOK(LzmaProps_Decode(&propNew, props, propsSize));
1125
0
  RINOK(LzmaDec_AllocateProbs2(p, &propNew, alloc));
1126
0
  p->prop = propNew;
1127
0
  return SZ_OK;
1128
0
}
1129
1130
SRes LzmaDec_Allocate(CLzmaDec *p, const Byte *props, unsigned propsSize, ISzAllocPtr alloc)
1131
5.10k
{
1132
5.10k
  CLzmaProps propNew;
1133
5.10k
  SizeT dicBufSize;
1134
5.10k
  RINOK(LzmaProps_Decode(&propNew, props, propsSize));
1135
5.10k
  RINOK(LzmaDec_AllocateProbs2(p, &propNew, alloc));
1136
1137
5.10k
  {
1138
5.10k
    UInt32 dictSize = propNew.dicSize;
1139
5.10k
    SizeT mask = ((UInt32)1 << 12) - 1;
1140
5.10k
         if (dictSize >= ((UInt32)1 << 30)) mask = ((UInt32)1 << 22) - 1;
1141
5.10k
    else if (dictSize >= ((UInt32)1 << 22)) mask = ((UInt32)1 << 20) - 1;;
1142
5.10k
    dicBufSize = ((SizeT)dictSize + mask) & ~mask;
1143
5.10k
    if (dicBufSize < dictSize)
1144
0
      dicBufSize = dictSize;
1145
5.10k
  }
1146
1147
5.10k
  if (!p->dic || dicBufSize != p->dicBufSize)
1148
5.10k
  {
1149
5.10k
    LzmaDec_FreeDict(p, alloc);
1150
5.10k
    p->dic = (Byte *)ISzAlloc_Alloc(alloc, dicBufSize);
1151
5.10k
    if (!p->dic)
1152
0
    {
1153
0
      LzmaDec_FreeProbs(p, alloc);
1154
0
      return SZ_ERROR_MEM;
1155
0
    }
1156
5.10k
  }
1157
5.10k
  p->dicBufSize = dicBufSize;
1158
5.10k
  p->prop = propNew;
1159
5.10k
  return SZ_OK;
1160
5.10k
}
1161
1162
SRes LzmaDecode(Byte *dest, SizeT *destLen, const Byte *src, SizeT *srcLen,
1163
    const Byte *propData, unsigned propSize, ELzmaFinishMode finishMode,
1164
    ELzmaStatus *status, ISzAllocPtr alloc)
1165
0
{
1166
0
  CLzmaDec p;
1167
0
  SRes res;
1168
0
  SizeT outSize = *destLen, inSize = *srcLen;
1169
0
  *destLen = *srcLen = 0;
1170
0
  *status = LZMA_STATUS_NOT_SPECIFIED;
1171
0
  if (inSize < RC_INIT_SIZE)
1172
0
    return SZ_ERROR_INPUT_EOF;
1173
0
  LzmaDec_Construct(&p);
1174
0
  RINOK(LzmaDec_AllocateProbs(&p, propData, propSize, alloc));
1175
0
  p.dic = dest;
1176
0
  p.dicBufSize = outSize;
1177
0
  LzmaDec_Init(&p);
1178
0
  *srcLen = inSize;
1179
0
  res = LzmaDec_DecodeToDic(&p, outSize, src, srcLen, finishMode, status);
1180
0
  *destLen = p.dicPos;
1181
0
  if (res == SZ_OK && *status == LZMA_STATUS_NEEDS_MORE_INPUT)
1182
0
    res = SZ_ERROR_INPUT_EOF;
1183
0
  LzmaDec_FreeProbs(&p, alloc);
1184
0
  return res;
1185
0
}