Coverage Report

Created: 2023-03-26 07:01

/src/lzma-fuzz/sdk/C/LzmaEnc.c
Line
Count
Source (jump to first uncovered line)
1
/* LzmaEnc.c -- LZMA Encoder
2
2019-01-10: Igor Pavlov : Public domain */
3
4
#include "Precomp.h"
5
6
#include <string.h>
7
8
/* #define SHOW_STAT */
9
/* #define SHOW_STAT2 */
10
11
#if defined(SHOW_STAT) || defined(SHOW_STAT2)
12
#include <stdio.h>
13
#endif
14
15
#include "LzmaEnc.h"
16
17
#include "LzFind.h"
18
#ifndef _7ZIP_ST
19
#include "LzFindMt.h"
20
#endif
21
22
#ifdef SHOW_STAT
23
static unsigned g_STAT_OFFSET = 0;
24
#endif
25
26
14.9k
#define kLzmaMaxHistorySize ((UInt32)3 << 29)
27
/* #define kLzmaMaxHistorySize ((UInt32)7 << 29) */
28
29
2.46G
#define kNumTopBits 24
30
2.46G
#define kTopValue ((UInt32)1 << kNumTopBits)
31
32
6.52G
#define kNumBitModelTotalBits 11
33
4.10G
#define kBitModelTotal (1 << kNumBitModelTotalBits)
34
6.56G
#define kNumMoveBits 5
35
143M
#define kProbInitValue (kBitModelTotal >> 1)
36
37
1.98G
#define kNumMoveReducingBits 4
38
10.6M
#define kNumBitPriceShiftBits 4
39
#define kBitPrice (1 << kNumBitPriceShiftBits)
40
41
112k
#define REP_LEN_COUNT 64
42
43
void LzmaEncProps_Init(CLzmaEncProps *p)
44
29.9k
{
45
29.9k
  p->level = 5;
46
29.9k
  p->dictSize = p->mc = 0;
47
29.9k
  p->reduceSize = (UInt64)(Int64)-1;
48
29.9k
  p->lc = p->lp = p->pb = p->algo = p->fb = p->btMode = p->numHashBytes = p->numThreads = -1;
49
29.9k
  p->writeEndMark = 0;
50
29.9k
}
51
52
void LzmaEncProps_Normalize(CLzmaEncProps *p)
53
89.7k
{
54
89.7k
  int level = p->level;
55
89.7k
  if (level < 0) level = 5;
56
89.7k
  p->level = level;
57
  
58
89.7k
  if (p->dictSize == 0) p->dictSize = (level <= 5 ? (1 << (level * 2 + 14)) : (level <= 7 ? (1 << 25) : (1 << 26)));
59
89.7k
  if (p->dictSize > p->reduceSize)
60
0
  {
61
0
    unsigned i;
62
0
    UInt32 reduceSize = (UInt32)p->reduceSize;
63
0
    for (i = 11; i <= 30; i++)
64
0
    {
65
0
      if (reduceSize <= ((UInt32)2 << i)) { p->dictSize = ((UInt32)2 << i); break; }
66
0
      if (reduceSize <= ((UInt32)3 << i)) { p->dictSize = ((UInt32)3 << i); break; }
67
0
    }
68
0
  }
69
70
89.7k
  if (p->lc < 0) p->lc = 3;
71
89.7k
  if (p->lp < 0) p->lp = 0;
72
89.7k
  if (p->pb < 0) p->pb = 2;
73
74
89.7k
  if (p->algo < 0) p->algo = (level < 5 ? 0 : 1);
75
89.7k
  if (p->fb < 0) p->fb = (level < 7 ? 32 : 64);
76
89.7k
  if (p->btMode < 0) p->btMode = (p->algo == 0 ? 0 : 1);
77
89.7k
  if (p->numHashBytes < 0) p->numHashBytes = 4;
78
89.7k
  if (p->mc == 0) p->mc = (16 + (p->fb >> 1)) >> (p->btMode ? 0 : 1);
79
  
80
89.7k
  if (p->numThreads < 0)
81
74.7k
    p->numThreads =
82
      #ifndef _7ZIP_ST
83
      ((p->btMode && p->algo) ? 2 : 1);
84
      #else
85
74.7k
      1;
86
89.7k
      #endif
87
89.7k
}
88
89
UInt32 LzmaEncProps_GetDictSize(const CLzmaEncProps *props2)
90
7.47k
{
91
7.47k
  CLzmaEncProps props = *props2;
92
7.47k
  LzmaEncProps_Normalize(&props);
93
7.47k
  return props.dictSize;
94
7.47k
}
95
96
#if (_MSC_VER >= 1400)
97
/* BSR code is fast for some new CPUs */
98
/* #define LZMA_LOG_BSR */
99
#endif
100
101
#ifdef LZMA_LOG_BSR
102
103
#define kDicLogSizeMaxCompress 32
104
105
#define BSR2_RET(pos, res) { unsigned long zz; _BitScanReverse(&zz, (pos)); res = (zz + zz) + ((pos >> (zz - 1)) & 1); }
106
107
static unsigned GetPosSlot1(UInt32 pos)
108
{
109
  unsigned res;
110
  BSR2_RET(pos, res);
111
  return res;
112
}
113
#define GetPosSlot2(pos, res) { BSR2_RET(pos, res); }
114
#define GetPosSlot(pos, res) { if (pos < 2) res = pos; else BSR2_RET(pos, res); }
115
116
#else
117
118
129M
#define kNumLogBits (9 + sizeof(size_t) / 2)
119
/* #define kNumLogBits (11 + sizeof(size_t) / 8 * 3) */
120
121
14.9k
#define kDicLogSizeMaxCompress ((kNumLogBits - 1) * 2 + 7)
122
123
static void LzmaEnc_FastPosInit(Byte *g_FastPos)
124
7.47k
{
125
7.47k
  unsigned slot;
126
7.47k
  g_FastPos[0] = 0;
127
7.47k
  g_FastPos[1] = 1;
128
7.47k
  g_FastPos += 2;
129
  
130
186k
  for (slot = 2; slot < kNumLogBits * 2; slot++)
131
179k
  {
132
179k
    size_t k = ((size_t)1 << ((slot >> 1) - 1));
133
179k
    size_t j;
134
61.4M
    for (j = 0; j < k; j++)
135
61.2M
      g_FastPos[j] = (Byte)slot;
136
179k
    g_FastPos += k;
137
179k
  }
138
7.47k
}
139
140
/* we can use ((limit - pos) >> 31) only if (pos < ((UInt32)1 << 31)) */
141
/*
142
#define BSR2_RET(pos, res) { unsigned zz = 6 + ((kNumLogBits - 1) & \
143
  (0 - (((((UInt32)1 << (kNumLogBits + 6)) - 1) - pos) >> 31))); \
144
  res = p->g_FastPos[pos >> zz] + (zz * 2); }
145
*/
146
147
/*
148
#define BSR2_RET(pos, res) { unsigned zz = 6 + ((kNumLogBits - 1) & \
149
  (0 - (((((UInt32)1 << (kNumLogBits)) - 1) - (pos >> 6)) >> 31))); \
150
  res = p->g_FastPos[pos >> zz] + (zz * 2); }
151
*/
152
153
127M
#define BSR2_RET(pos, res) { unsigned zz = (pos < (1 << (kNumLogBits + 6))) ? 6 : 6 + kNumLogBits - 1; \
154
127M
  res = p->g_FastPos[pos >> zz] + (zz * 2); }
155
156
/*
157
#define BSR2_RET(pos, res) { res = (pos < (1 << (kNumLogBits + 6))) ? \
158
  p->g_FastPos[pos >> 6] + 12 : \
159
  p->g_FastPos[pos >> (6 + kNumLogBits - 1)] + (6 + (kNumLogBits - 1)) * 2; }
160
*/
161
162
41.6M
#define GetPosSlot1(pos) p->g_FastPos[pos]
163
121M
#define GetPosSlot2(pos, res) { BSR2_RET(pos, res); }
164
8.34M
#define GetPosSlot(pos, res) { if (pos < kNumFullDistances) res = p->g_FastPos[pos & (kNumFullDistances - 1)]; else BSR2_RET(pos, res); }
165
166
#endif
167
168
169
1.86G
#define LZMA_NUM_REPS 4
170
171
typedef UInt16 CState;
172
typedef UInt16 CExtra;
173
174
typedef struct
175
{
176
  UInt32 price;
177
  CState state;
178
  CExtra extra;
179
      // 0   : normal
180
      // 1   : LIT : MATCH
181
      // > 1 : MATCH (extra-1) : LIT : REP0 (len)
182
  UInt32 len;
183
  UInt32 dist;
184
  UInt32 reps[LZMA_NUM_REPS];
185
} COptimal;
186
187
188
// 18.06
189
666M
#define kNumOpts (1 << 11)
190
218M
#define kPackReserve (kNumOpts * 8)
191
// #define kNumOpts (1 << 12)
192
// #define kPackReserve (1 + kNumOpts * 2)
193
194
285M
#define kNumLenToPosStates 4
195
189M
#define kNumPosSlotBits 6
196
#define kDicLogSizeMin 0
197
134k
#define kDicLogSizeMax 32
198
#define kDistTableSizeMax (kDicLogSizeMax * 2)
199
200
171M
#define kNumAlignBits 4
201
170M
#define kAlignTableSize (1 << kNumAlignBits)
202
169M
#define kAlignMask (kAlignTableSize - 1)
203
204
8.48M
#define kStartPosModelIndex 4
205
314M
#define kEndPosModelIndex 14
206
321M
#define kNumFullDistances (1 << (kEndPosModelIndex >> 1))
207
208
typedef
209
#ifdef _LZMA_PROB32
210
  UInt32
211
#else
212
  UInt16
213
#endif
214
  CLzmaProb;
215
216
12.9M
#define LZMA_PB_MAX 4
217
29.9k
#define LZMA_LC_MAX 8
218
29.9k
#define LZMA_LP_MAX 4
219
220
12.9M
#define LZMA_NUM_PB_STATES_MAX (1 << LZMA_PB_MAX)
221
222
493M
#define kLenNumLowBits 3
223
466M
#define kLenNumLowSymbols (1 << kLenNumLowBits)
224
452M
#define kLenNumHighBits 8
225
448M
#define kLenNumHighSymbols (1 << kLenNumHighBits)
226
439M
#define kLenNumSymbolsTotal (kLenNumLowSymbols * 2 + kLenNumHighSymbols)
227
228
973M
#define LZMA_MATCH_LEN_MIN 2
229
439M
#define LZMA_MATCH_LEN_MAX (LZMA_MATCH_LEN_MIN + kLenNumSymbolsTotal - 1)
230
231
233k
#define kNumStates 12
232
233
234
typedef struct
235
{
236
  CLzmaProb low[LZMA_NUM_PB_STATES_MAX << (kLenNumLowBits + 1)];
237
  CLzmaProb high[kLenNumHighSymbols];
238
} CLenEnc;
239
240
241
typedef struct
242
{
243
  unsigned tableSize;
244
  UInt32 prices[LZMA_NUM_PB_STATES_MAX][kLenNumSymbolsTotal];
245
  // UInt32 prices1[LZMA_NUM_PB_STATES_MAX][kLenNumLowSymbols * 2];
246
  // UInt32 prices2[kLenNumSymbolsTotal];
247
} CLenPriceEnc;
248
249
#define GET_PRICE_LEN(p, posState, len) \
250
516M
    ((p)->prices[posState][(size_t)(len) - LZMA_MATCH_LEN_MIN])
251
252
/*
253
#define GET_PRICE_LEN(p, posState, len) \
254
    ((p)->prices2[(size_t)(len) - 2] + ((p)->prices1[posState][((len) - 2) & (kLenNumLowSymbols * 2 - 1)] & (((len) - 2 - kLenNumLowSymbols * 2) >> 9)))
255
*/
256
257
typedef struct
258
{
259
  UInt32 range;
260
  unsigned cache;
261
  UInt64 low;
262
  UInt64 cacheSize;
263
  Byte *buf;
264
  Byte *bufLim;
265
  Byte *bufBase;
266
  ISeqOutStream *outStream;
267
  UInt64 processed;
268
  SRes res;
269
} CRangeEnc;
270
271
272
typedef struct
273
{
274
  CLzmaProb *litProbs;
275
276
  unsigned state;
277
  UInt32 reps[LZMA_NUM_REPS];
278
279
  CLzmaProb posAlignEncoder[1 << kNumAlignBits];
280
  CLzmaProb isRep[kNumStates];
281
  CLzmaProb isRepG0[kNumStates];
282
  CLzmaProb isRepG1[kNumStates];
283
  CLzmaProb isRepG2[kNumStates];
284
  CLzmaProb isMatch[kNumStates][LZMA_NUM_PB_STATES_MAX];
285
  CLzmaProb isRep0Long[kNumStates][LZMA_NUM_PB_STATES_MAX];
286
287
  CLzmaProb posSlotEncoder[kNumLenToPosStates][1 << kNumPosSlotBits];
288
  CLzmaProb posEncoders[kNumFullDistances];
289
  
290
  CLenEnc lenProbs;
291
  CLenEnc repLenProbs;
292
293
} CSaveState;
294
295
296
typedef UInt32 CProbPrice;
297
298
299
typedef struct
300
{
301
  void *matchFinderObj;
302
  IMatchFinder matchFinder;
303
304
  unsigned optCur;
305
  unsigned optEnd;
306
307
  unsigned longestMatchLen;
308
  unsigned numPairs;
309
  UInt32 numAvail;
310
311
  unsigned state;
312
  unsigned numFastBytes;
313
  unsigned additionalOffset;
314
  UInt32 reps[LZMA_NUM_REPS];
315
  unsigned lpMask, pbMask;
316
  CLzmaProb *litProbs;
317
  CRangeEnc rc;
318
319
  UInt32 backRes;
320
321
  unsigned lc, lp, pb;
322
  unsigned lclp;
323
324
  BoolInt fastMode;
325
  BoolInt writeEndMark;
326
  BoolInt finished;
327
  BoolInt multiThread;
328
  BoolInt needInit;
329
  // BoolInt _maxMode;
330
331
  UInt64 nowPos64;
332
  
333
  unsigned matchPriceCount;
334
  // unsigned alignPriceCount;
335
  int repLenEncCounter;
336
337
  unsigned distTableSize;
338
339
  UInt32 dictSize;
340
  SRes result;
341
342
  #ifndef _7ZIP_ST
343
  BoolInt mtMode;
344
  // begin of CMatchFinderMt is used in LZ thread
345
  CMatchFinderMt matchFinderMt;
346
  // end of CMatchFinderMt is used in BT and HASH threads
347
  #endif
348
349
  CMatchFinder matchFinderBase;
350
351
  #ifndef _7ZIP_ST
352
  Byte pad[128];
353
  #endif
354
  
355
  // LZ thread
356
  CProbPrice ProbPrices[kBitModelTotal >> kNumMoveReducingBits];
357
358
  UInt32 matches[LZMA_MATCH_LEN_MAX * 2 + 2 + 1];
359
360
  UInt32 alignPrices[kAlignTableSize];
361
  UInt32 posSlotPrices[kNumLenToPosStates][kDistTableSizeMax];
362
  UInt32 distancesPrices[kNumLenToPosStates][kNumFullDistances];
363
364
  CLzmaProb posAlignEncoder[1 << kNumAlignBits];
365
  CLzmaProb isRep[kNumStates];
366
  CLzmaProb isRepG0[kNumStates];
367
  CLzmaProb isRepG1[kNumStates];
368
  CLzmaProb isRepG2[kNumStates];
369
  CLzmaProb isMatch[kNumStates][LZMA_NUM_PB_STATES_MAX];
370
  CLzmaProb isRep0Long[kNumStates][LZMA_NUM_PB_STATES_MAX];
371
  CLzmaProb posSlotEncoder[kNumLenToPosStates][1 << kNumPosSlotBits];
372
  CLzmaProb posEncoders[kNumFullDistances];
373
  
374
  CLenEnc lenProbs;
375
  CLenEnc repLenProbs;
376
377
  #ifndef LZMA_LOG_BSR
378
  Byte g_FastPos[1 << kNumLogBits];
379
  #endif
380
381
  CLenPriceEnc lenEnc;
382
  CLenPriceEnc repLenEnc;
383
384
  COptimal opt[kNumOpts];
385
386
  CSaveState saveState;
387
388
  #ifndef _7ZIP_ST
389
  Byte pad2[128];
390
  #endif
391
} CLzmaEnc;
392
393
394
395
239k
#define COPY_ARR(dest, src, arr) memcpy(dest->arr, src->arr, sizeof(src->arr));
396
397
void LzmaEnc_SaveState(CLzmaEncHandle pp)
398
19.7k
{
399
19.7k
  CLzmaEnc *p = (CLzmaEnc *)pp;
400
19.7k
  CSaveState *dest = &p->saveState;
401
  
402
19.7k
  dest->state = p->state;
403
  
404
19.7k
  dest->lenProbs = p->lenProbs;
405
19.7k
  dest->repLenProbs = p->repLenProbs;
406
407
19.7k
  COPY_ARR(dest, p, reps);
408
409
19.7k
  COPY_ARR(dest, p, posAlignEncoder);
410
19.7k
  COPY_ARR(dest, p, isRep);
411
19.7k
  COPY_ARR(dest, p, isRepG0);
412
19.7k
  COPY_ARR(dest, p, isRepG1);
413
19.7k
  COPY_ARR(dest, p, isRepG2);
414
19.7k
  COPY_ARR(dest, p, isMatch);
415
19.7k
  COPY_ARR(dest, p, isRep0Long);
416
19.7k
  COPY_ARR(dest, p, posSlotEncoder);
417
19.7k
  COPY_ARR(dest, p, posEncoders);
418
419
19.7k
  memcpy(dest->litProbs, p->litProbs, ((UInt32)0x300 << p->lclp) * sizeof(CLzmaProb));
420
19.7k
}
421
422
423
void LzmaEnc_RestoreState(CLzmaEncHandle pp)
424
4.23k
{
425
4.23k
  CLzmaEnc *dest = (CLzmaEnc *)pp;
426
4.23k
  const CSaveState *p = &dest->saveState;
427
428
4.23k
  dest->state = p->state;
429
430
4.23k
  dest->lenProbs = p->lenProbs;
431
4.23k
  dest->repLenProbs = p->repLenProbs;
432
  
433
4.23k
  COPY_ARR(dest, p, reps);
434
  
435
4.23k
  COPY_ARR(dest, p, posAlignEncoder);
436
4.23k
  COPY_ARR(dest, p, isRep);
437
4.23k
  COPY_ARR(dest, p, isRepG0);
438
4.23k
  COPY_ARR(dest, p, isRepG1);
439
4.23k
  COPY_ARR(dest, p, isRepG2);
440
4.23k
  COPY_ARR(dest, p, isMatch);
441
4.23k
  COPY_ARR(dest, p, isRep0Long);
442
4.23k
  COPY_ARR(dest, p, posSlotEncoder);
443
4.23k
  COPY_ARR(dest, p, posEncoders);
444
445
4.23k
  memcpy(dest->litProbs, p->litProbs, ((UInt32)0x300 << dest->lclp) * sizeof(CLzmaProb));
446
4.23k
}
447
448
449
450
SRes LzmaEnc_SetProps(CLzmaEncHandle pp, const CLzmaEncProps *props2)
451
14.9k
{
452
14.9k
  CLzmaEnc *p = (CLzmaEnc *)pp;
453
14.9k
  CLzmaEncProps props = *props2;
454
14.9k
  LzmaEncProps_Normalize(&props);
455
456
14.9k
  if (props.lc > LZMA_LC_MAX
457
14.9k
      || props.lp > LZMA_LP_MAX
458
14.9k
      || props.pb > LZMA_PB_MAX
459
14.9k
      || props.dictSize > ((UInt64)1 << kDicLogSizeMaxCompress)
460
14.9k
      || props.dictSize > kLzmaMaxHistorySize)
461
0
    return SZ_ERROR_PARAM;
462
463
14.9k
  p->dictSize = props.dictSize;
464
14.9k
  {
465
14.9k
    unsigned fb = props.fb;
466
14.9k
    if (fb < 5)
467
0
      fb = 5;
468
14.9k
    if (fb > LZMA_MATCH_LEN_MAX)
469
0
      fb = LZMA_MATCH_LEN_MAX;
470
14.9k
    p->numFastBytes = fb;
471
14.9k
  }
472
14.9k
  p->lc = props.lc;
473
14.9k
  p->lp = props.lp;
474
14.9k
  p->pb = props.pb;
475
14.9k
  p->fastMode = (props.algo == 0);
476
  // p->_maxMode = True;
477
14.9k
  p->matchFinderBase.btMode = (Byte)(props.btMode ? 1 : 0);
478
14.9k
  {
479
14.9k
    unsigned numHashBytes = 4;
480
14.9k
    if (props.btMode)
481
14.9k
    {
482
14.9k
      if (props.numHashBytes < 2)
483
0
        numHashBytes = 2;
484
14.9k
      else if (props.numHashBytes < 4)
485
0
        numHashBytes = props.numHashBytes;
486
14.9k
    }
487
14.9k
    p->matchFinderBase.numHashBytes = numHashBytes;
488
14.9k
  }
489
490
14.9k
  p->matchFinderBase.cutValue = props.mc;
491
492
14.9k
  p->writeEndMark = props.writeEndMark;
493
494
  #ifndef _7ZIP_ST
495
  /*
496
  if (newMultiThread != _multiThread)
497
  {
498
    ReleaseMatchFinder();
499
    _multiThread = newMultiThread;
500
  }
501
  */
502
  p->multiThread = (props.numThreads > 1);
503
  #endif
504
505
14.9k
  return SZ_OK;
506
14.9k
}
507
508
509
void LzmaEnc_SetDataSize(CLzmaEncHandle pp, UInt64 expectedDataSiize)
510
7.47k
{
511
7.47k
  CLzmaEnc *p = (CLzmaEnc *)pp;
512
7.47k
  p->matchFinderBase.expectedDataSize = expectedDataSiize;
513
7.47k
}
514
515
516
7.47k
#define kState_Start 0
517
18.0M
#define kState_LitAfterMatch 4
518
35.1M
#define kState_LitAfterRep   5
519
0
#define kState_MatchAfterLit 7
520
4.11M
#define kState_RepAfterLit   8
521
522
static const Byte kLiteralNextStates[kNumStates] = {0, 0, 0, 0, 1, 2, 3, 4,  5,  6,   4, 5};
523
static const Byte kMatchNextStates[kNumStates]   = {7, 7, 7, 7, 7, 7, 7, 10, 10, 10, 10, 10};
524
static const Byte kRepNextStates[kNumStates]     = {8, 8, 8, 8, 8, 8, 8, 11, 11, 11, 11, 11};
525
static const Byte kShortRepNextStates[kNumStates]= {9, 9, 9, 9, 9, 9, 9, 11, 11, 11, 11, 11};
526
527
404M
#define IsLitState(s) ((s) < 7)
528
187M
#define GetLenToPosState2(len) (((len) < kNumLenToPosStates - 1) ? (len) : kNumLenToPosStates - 1)
529
31.2M
#define GetLenToPosState(len) (((len) < kNumLenToPosStates + 1) ? (len) - 2 : kNumLenToPosStates - 1)
530
531
340M
#define kInfinityPrice (1 << 30)
532
533
static void RangeEnc_Construct(CRangeEnc *p)
534
7.47k
{
535
7.47k
  p->outStream = NULL;
536
7.47k
  p->bufBase = NULL;
537
7.47k
}
538
539
#define RangeEnc_GetProcessed(p)       ((p)->processed + ((p)->buf - (p)->bufBase) + (p)->cacheSize)
540
218M
#define RangeEnc_GetProcessed_sizet(p) ((size_t)(p)->processed + ((p)->buf - (p)->bufBase) + (size_t)(p)->cacheSize)
541
542
7.47k
#define RC_BUF_SIZE (1 << 16)
543
544
static int RangeEnc_Alloc(CRangeEnc *p, ISzAllocPtr alloc)
545
7.47k
{
546
7.47k
  if (!p->bufBase)
547
7.47k
  {
548
7.47k
    p->bufBase = (Byte *)ISzAlloc_Alloc(alloc, RC_BUF_SIZE);
549
7.47k
    if (!p->bufBase)
550
0
      return 0;
551
7.47k
    p->bufLim = p->bufBase + RC_BUF_SIZE;
552
7.47k
  }
553
7.47k
  return 1;
554
7.47k
}
555
556
static void RangeEnc_Free(CRangeEnc *p, ISzAllocPtr alloc)
557
7.47k
{
558
7.47k
  ISzAlloc_Free(alloc, p->bufBase);
559
7.47k
  p->bufBase = 0;
560
7.47k
}
561
562
static void RangeEnc_Init(CRangeEnc *p)
563
37.7k
{
564
  /* Stream.Init(); */
565
37.7k
  p->range = 0xFFFFFFFF;
566
37.7k
  p->cache = 0;
567
37.7k
  p->low = 0;
568
37.7k
  p->cacheSize = 0;
569
570
37.7k
  p->buf = p->bufBase;
571
572
37.7k
  p->processed = 0;
573
37.7k
  p->res = SZ_OK;
574
37.7k
}
575
576
MY_NO_INLINE static void RangeEnc_FlushStream(CRangeEnc *p)
577
19.7k
{
578
19.7k
  size_t num;
579
19.7k
  if (p->res != SZ_OK)
580
0
    return;
581
19.7k
  num = p->buf - p->bufBase;
582
19.7k
  if (num != ISeqOutStream_Write(p->outStream, p->bufBase, num))
583
0
    p->res = SZ_ERROR_WRITE;
584
19.7k
  p->processed += num;
585
19.7k
  p->buf = p->bufBase;
586
19.7k
}
587
588
MY_NO_INLINE static void MY_FAST_CALL RangeEnc_ShiftLow(CRangeEnc *p)
589
258M
{
590
258M
  UInt32 low = (UInt32)p->low;
591
258M
  unsigned high = (unsigned)(p->low >> 32);
592
258M
  p->low = (UInt32)(low << 8);
593
258M
  if (low < (UInt32)0xFF000000 || high != 0)
594
257M
  {
595
257M
    {
596
257M
      Byte *buf = p->buf;
597
257M
      *buf++ = (Byte)(p->cache + high);
598
257M
      p->cache = (unsigned)(low >> 24);
599
257M
      p->buf = buf;
600
257M
      if (buf == p->bufLim)
601
0
        RangeEnc_FlushStream(p);
602
257M
      if (p->cacheSize == 0)
603
256M
        return;
604
257M
    }
605
1.00M
    high += 0xFF;
606
1.00M
    for (;;)
607
1.00M
    {
608
1.00M
      Byte *buf = p->buf;
609
1.00M
      *buf++ = (Byte)(high);
610
1.00M
      p->buf = buf;
611
1.00M
      if (buf == p->bufLim)
612
0
        RangeEnc_FlushStream(p);
613
1.00M
      if (--p->cacheSize == 0)
614
1.00M
        return;
615
1.00M
    }
616
1.00M
  }
617
1.00M
  p->cacheSize++;
618
1.00M
}
619
620
static void RangeEnc_FlushData(CRangeEnc *p)
621
19.7k
{
622
19.7k
  int i;
623
118k
  for (i = 0; i < 5; i++)
624
98.5k
    RangeEnc_ShiftLow(p);
625
19.7k
}
626
627
2.46G
#define RC_NORM(p) if (range < kTopValue) { range <<= 8; RangeEnc_ShiftLow(p); }
628
629
#define RC_BIT_PRE(p, prob) \
630
2.41G
  ttt = *(prob); \
631
2.41G
  newBound = (range >> kNumBitModelTotalBits) * ttt;
632
633
// #define _LZMA_ENC_USE_BRANCH
634
635
#ifdef _LZMA_ENC_USE_BRANCH
636
637
#define RC_BIT(p, prob, bit) { \
638
  RC_BIT_PRE(p, prob) \
639
  if (bit == 0) { range = newBound; ttt += (kBitModelTotal - ttt) >> kNumMoveBits; } \
640
  else { (p)->low += newBound; range -= newBound; ttt -= ttt >> kNumMoveBits; } \
641
  *(prob) = (CLzmaProb)ttt; \
642
  RC_NORM(p) \
643
  }
644
645
#else
646
647
2.07G
#define RC_BIT(p, prob, bit) { \
648
2.07G
  UInt32 mask; \
649
2.07G
  RC_BIT_PRE(p, prob) \
650
2.07G
  mask = 0 - (UInt32)bit; \
651
2.07G
  range &= mask; \
652
2.07G
  mask &= newBound; \
653
2.07G
  range -= mask; \
654
2.07G
  (p)->low += mask; \
655
2.07G
  mask = (UInt32)bit - 1; \
656
2.07G
  range += newBound & mask; \
657
2.07G
  mask &= (kBitModelTotal - ((1 << kNumMoveBits) - 1)); \
658
2.07G
  mask += ((1 << kNumMoveBits) - 1); \
659
2.07G
  ttt += (Int32)(mask - ttt) >> kNumMoveBits; \
660
2.07G
  *(prob) = (CLzmaProb)ttt; \
661
2.07G
  RC_NORM(p) \
662
2.07G
  }
663
664
#endif
665
666
667
668
669
#define RC_BIT_0_BASE(p, prob) \
670
288M
  range = newBound; *(prob) = (CLzmaProb)(ttt + ((kBitModelTotal - ttt) >> kNumMoveBits));
671
672
#define RC_BIT_1_BASE(p, prob) \
673
52.7M
  range -= newBound; (p)->low += newBound; *(prob) = (CLzmaProb)(ttt - (ttt >> kNumMoveBits)); \
674
675
#define RC_BIT_0(p, prob) \
676
278M
  RC_BIT_0_BASE(p, prob) \
677
278M
  RC_NORM(p)
678
679
#define RC_BIT_1(p, prob) \
680
47.4M
  RC_BIT_1_BASE(p, prob) \
681
47.4M
  RC_NORM(p)
682
683
static void RangeEnc_EncodeBit_0(CRangeEnc *p, CLzmaProb *prob)
684
7.47k
{
685
7.47k
  UInt32 range, ttt, newBound;
686
7.47k
  range = p->range;
687
7.47k
  RC_BIT_PRE(p, prob)
688
7.47k
  RC_BIT_0(p, prob)
689
7.47k
  p->range = range;
690
7.47k
}
691
692
static void LitEnc_Encode(CRangeEnc *p, CLzmaProb *probs, UInt32 sym)
693
227M
{
694
227M
  UInt32 range = p->range;
695
227M
  sym |= 0x100;
696
227M
  do
697
1.81G
  {
698
1.81G
    UInt32 ttt, newBound;
699
    // RangeEnc_EncodeBit(p, probs + (sym >> 8), (sym >> 7) & 1);
700
1.81G
    CLzmaProb *prob = probs + (sym >> 8);
701
1.81G
    UInt32 bit = (sym >> 7) & 1;
702
1.81G
    sym <<= 1;
703
1.81G
    RC_BIT(p, prob, bit);
704
1.81G
  }
705
1.81G
  while (sym < 0x10000);
706
227M
  p->range = range;
707
227M
}
708
709
static void LitEnc_EncodeMatched(CRangeEnc *p, CLzmaProb *probs, UInt32 sym, UInt32 matchByte)
710
15.6M
{
711
15.6M
  UInt32 range = p->range;
712
15.6M
  UInt32 offs = 0x100;
713
15.6M
  sym |= 0x100;
714
15.6M
  do
715
125M
  {
716
125M
    UInt32 ttt, newBound;
717
125M
    CLzmaProb *prob;
718
125M
    UInt32 bit;
719
125M
    matchByte <<= 1;
720
    // RangeEnc_EncodeBit(p, probs + (offs + (matchByte & offs) + (sym >> 8)), (sym >> 7) & 1);
721
125M
    prob = probs + (offs + (matchByte & offs) + (sym >> 8));
722
125M
    bit = (sym >> 7) & 1;
723
125M
    sym <<= 1;
724
125M
    offs &= ~(matchByte ^ sym);
725
125M
    RC_BIT(p, prob, bit);
726
125M
  }
727
125M
  while (sym < 0x10000);
728
15.6M
  p->range = range;
729
15.6M
}
730
731
732
733
static void LzmaEnc_InitPriceTables(CProbPrice *ProbPrices)
734
7.47k
{
735
7.47k
  UInt32 i;
736
964k
  for (i = 0; i < (kBitModelTotal >> kNumMoveReducingBits); i++)
737
957k
  {
738
957k
    const unsigned kCyclesBits = kNumBitPriceShiftBits;
739
957k
    UInt32 w = (i << kNumMoveReducingBits) + (1 << (kNumMoveReducingBits - 1));
740
957k
    unsigned bitCount = 0;
741
957k
    unsigned j;
742
4.78M
    for (j = 0; j < kCyclesBits; j++)
743
3.82M
    {
744
3.82M
      w = w * w;
745
3.82M
      bitCount <<= 1;
746
51.5M
      while (w >= ((UInt32)1 << 16))
747
47.7M
      {
748
47.7M
        w >>= 1;
749
47.7M
        bitCount++;
750
47.7M
      }
751
3.82M
    }
752
957k
    ProbPrices[i] = (CProbPrice)((kNumBitModelTotalBits << kCyclesBits) - 15 - bitCount);
753
    // printf("\n%3d: %5d", i, ProbPrices[i]);
754
957k
  }
755
7.47k
}
756
757
758
#define GET_PRICE(prob, bit) \
759
20.4M
  p->ProbPrices[((prob) ^ (unsigned)(((-(int)(bit))) & (kBitModelTotal - 1))) >> kNumMoveReducingBits];
760
761
#define GET_PRICEa(prob, bit) \
762
1.07G
     ProbPrices[((prob) ^ (unsigned)((-((int)(bit))) & (kBitModelTotal - 1))) >> kNumMoveReducingBits];
763
764
354M
#define GET_PRICE_0(prob) p->ProbPrices[(prob) >> kNumMoveReducingBits]
765
461M
#define GET_PRICE_1(prob) p->ProbPrices[((prob) ^ (kBitModelTotal - 1)) >> kNumMoveReducingBits]
766
767
32.6M
#define GET_PRICEa_0(prob) ProbPrices[(prob) >> kNumMoveReducingBits]
768
32.6M
#define GET_PRICEa_1(prob) ProbPrices[((prob) ^ (kBitModelTotal - 1)) >> kNumMoveReducingBits]
769
770
771
static UInt32 LitEnc_GetPrice(const CLzmaProb *probs, UInt32 sym, const CProbPrice *ProbPrices)
772
41.3M
{
773
41.3M
  UInt32 price = 0;
774
41.3M
  sym |= 0x100;
775
41.3M
  do
776
330M
  {
777
330M
    unsigned bit = sym & 1;
778
330M
    sym >>= 1;
779
330M
    price += GET_PRICEa(probs[sym], bit);
780
330M
  }
781
330M
  while (sym >= 2);
782
41.3M
  return price;
783
41.3M
}
784
785
786
static UInt32 LitEnc_Matched_GetPrice(const CLzmaProb *probs, UInt32 sym, UInt32 matchByte, const CProbPrice *ProbPrices)
787
78.0M
{
788
78.0M
  UInt32 price = 0;
789
78.0M
  UInt32 offs = 0x100;
790
78.0M
  sym |= 0x100;
791
78.0M
  do
792
624M
  {
793
624M
    matchByte <<= 1;
794
624M
    price += GET_PRICEa(probs[offs + (matchByte & offs) + (sym >> 8)], (sym >> 7) & 1);
795
624M
    sym <<= 1;
796
624M
    offs &= ~(matchByte ^ sym);
797
624M
  }
798
624M
  while (sym < 0x10000);
799
78.0M
  return price;
800
78.0M
}
801
802
803
static void RcTree_ReverseEncode(CRangeEnc *rc, CLzmaProb *probs, unsigned numBits, unsigned sym)
804
1.77M
{
805
1.77M
  UInt32 range = rc->range;
806
1.77M
  unsigned m = 1;
807
1.77M
  do
808
5.27M
  {
809
5.27M
    UInt32 ttt, newBound;
810
5.27M
    unsigned bit = sym & 1;
811
    // RangeEnc_EncodeBit(rc, probs + m, bit);
812
5.27M
    sym >>= 1;
813
5.27M
    RC_BIT(rc, probs + m, bit);
814
5.27M
    m = (m << 1) | bit;
815
5.27M
  }
816
5.27M
  while (--numBits);
817
1.77M
  rc->range = range;
818
1.77M
}
819
820
821
822
static void LenEnc_Init(CLenEnc *p)
823
35.9k
{
824
35.9k
  unsigned i;
825
9.25M
  for (i = 0; i < (LZMA_NUM_PB_STATES_MAX << (kLenNumLowBits + 1)); i++)
826
9.21M
    p->low[i] = kProbInitValue;
827
9.25M
  for (i = 0; i < kLenNumHighSymbols; i++)
828
9.21M
    p->high[i] = kProbInitValue;
829
35.9k
}
830
831
static void LenEnc_Encode(CLenEnc *p, CRangeEnc *rc, unsigned sym, unsigned posState)
832
18.2M
{
833
18.2M
  UInt32 range, ttt, newBound;
834
18.2M
  CLzmaProb *probs = p->low;
835
18.2M
  range = rc->range;
836
18.2M
  RC_BIT_PRE(rc, probs);
837
18.2M
  if (sym >= kLenNumLowSymbols)
838
1.38M
  {
839
1.38M
    RC_BIT_1(rc, probs);
840
1.38M
    probs += kLenNumLowSymbols;
841
1.38M
    RC_BIT_PRE(rc, probs);
842
1.38M
    if (sym >= kLenNumLowSymbols * 2)
843
850k
    {
844
850k
      RC_BIT_1(rc, probs);
845
850k
      rc->range = range;
846
      // RcTree_Encode(rc, p->high, kLenNumHighBits, sym - kLenNumLowSymbols * 2);
847
850k
      LitEnc_Encode(rc, p->high, sym - kLenNumLowSymbols * 2);
848
850k
      return;
849
850k
    }
850
534k
    sym -= kLenNumLowSymbols;
851
534k
  }
852
853
  // RcTree_Encode(rc, probs + (posState << kLenNumLowBits), kLenNumLowBits, sym);
854
17.4M
  {
855
17.4M
    unsigned m;
856
17.4M
    unsigned bit;
857
17.4M
    RC_BIT_0(rc, probs);
858
17.4M
    probs += (posState << (1 + kLenNumLowBits));
859
17.4M
    bit = (sym >> 2)    ; RC_BIT(rc, probs + 1, bit); m = (1 << 1) + bit;
860
17.4M
    bit = (sym >> 1) & 1; RC_BIT(rc, probs + m, bit); m = (m << 1) + bit;
861
17.4M
    bit =  sym       & 1; RC_BIT(rc, probs + m, bit);
862
17.4M
    rc->range = range;
863
17.4M
  }
864
17.4M
}
865
866
static void SetPrices_3(const CLzmaProb *probs, UInt32 startPrice, UInt32 *prices, const CProbPrice *ProbPrices)
867
1.97M
{
868
1.97M
  unsigned i;
869
9.86M
  for (i = 0; i < 8; i += 2)
870
7.89M
  {
871
7.89M
    UInt32 price = startPrice;
872
7.89M
    UInt32 prob;
873
7.89M
    price += GET_PRICEa(probs[1           ], (i >> 2));
874
7.89M
    price += GET_PRICEa(probs[2 + (i >> 2)], (i >> 1) & 1);
875
7.89M
    prob = probs[4 + (i >> 1)];
876
7.89M
    prices[i    ] = price + GET_PRICEa_0(prob);
877
7.89M
    prices[i + 1] = price + GET_PRICEa_1(prob);
878
7.89M
  }
879
1.97M
}
880
881
882
MY_NO_INLINE static void MY_FAST_CALL LenPriceEnc_UpdateTables(
883
    CLenPriceEnc *p,
884
    unsigned numPosStates,
885
    const CLenEnc *enc,
886
    const CProbPrice *ProbPrices)
887
246k
{
888
246k
  UInt32 b;
889
 
890
246k
  {
891
246k
    unsigned prob = enc->low[0];
892
246k
    UInt32 a, c;
893
246k
    unsigned posState;
894
246k
    b = GET_PRICEa_1(prob);
895
246k
    a = GET_PRICEa_0(prob);
896
246k
    c = b + GET_PRICEa_0(enc->low[kLenNumLowSymbols]);
897
1.23M
    for (posState = 0; posState < numPosStates; posState++)
898
986k
    {
899
986k
      UInt32 *prices = p->prices[posState];
900
986k
      const CLzmaProb *probs = enc->low + (posState << (1 + kLenNumLowBits));
901
986k
      SetPrices_3(probs, a, prices, ProbPrices);
902
986k
      SetPrices_3(probs + kLenNumLowSymbols, c, prices + kLenNumLowSymbols, ProbPrices);
903
986k
    }
904
246k
  }
905
906
  /*
907
  {
908
    unsigned i;
909
    UInt32 b;
910
    a = GET_PRICEa_0(enc->low[0]);
911
    for (i = 0; i < kLenNumLowSymbols; i++)
912
      p->prices2[i] = a;
913
    a = GET_PRICEa_1(enc->low[0]);
914
    b = a + GET_PRICEa_0(enc->low[kLenNumLowSymbols]);
915
    for (i = kLenNumLowSymbols; i < kLenNumLowSymbols * 2; i++)
916
      p->prices2[i] = b;
917
    a += GET_PRICEa_1(enc->low[kLenNumLowSymbols]);
918
  }
919
  */
920
 
921
  // p->counter = numSymbols;
922
  // p->counter = 64;
923
924
246k
  {
925
246k
    unsigned i = p->tableSize;
926
    
927
246k
    if (i > kLenNumLowSymbols * 2)
928
246k
    {
929
246k
      const CLzmaProb *probs = enc->high;
930
246k
      UInt32 *prices = p->prices[0] + kLenNumLowSymbols * 2;
931
246k
      i -= kLenNumLowSymbols * 2 - 1;
932
246k
      i >>= 1;
933
246k
      b += GET_PRICEa_1(enc->low[kLenNumLowSymbols]);
934
246k
      do
935
1.97M
      {
936
        /*
937
        p->prices2[i] = a +
938
        // RcTree_GetPrice(enc->high, kLenNumHighBits, i - kLenNumLowSymbols * 2, ProbPrices);
939
        LitEnc_GetPrice(probs, i - kLenNumLowSymbols * 2, ProbPrices);
940
        */
941
        // UInt32 price = a + RcTree_GetPrice(probs, kLenNumHighBits - 1, sym, ProbPrices);
942
1.97M
        unsigned sym = --i + (1 << (kLenNumHighBits - 1));
943
1.97M
        UInt32 price = b;
944
1.97M
        do
945
13.8M
        {
946
13.8M
          unsigned bit = sym & 1;
947
13.8M
          sym >>= 1;
948
13.8M
          price += GET_PRICEa(probs[sym], bit);
949
13.8M
        }
950
13.8M
        while (sym >= 2);
951
952
1.97M
        {
953
1.97M
          unsigned prob = probs[(size_t)i + (1 << (kLenNumHighBits - 1))];
954
1.97M
          prices[(size_t)i * 2    ] = price + GET_PRICEa_0(prob);
955
1.97M
          prices[(size_t)i * 2 + 1] = price + GET_PRICEa_1(prob);
956
1.97M
        }
957
1.97M
      }
958
1.97M
      while (i);
959
960
246k
      {
961
246k
        unsigned posState;
962
246k
        size_t num = (p->tableSize - kLenNumLowSymbols * 2) * sizeof(p->prices[0][0]);
963
986k
        for (posState = 1; posState < numPosStates; posState++)
964
739k
          memcpy(p->prices[posState] + kLenNumLowSymbols * 2, p->prices[0] + kLenNumLowSymbols * 2, num);
965
246k
      }
966
246k
    }
967
246k
  }
968
246k
}
969
970
/*
971
  #ifdef SHOW_STAT
972
  g_STAT_OFFSET += num;
973
  printf("\n MovePos %u", num);
974
  #endif
975
*/
976
  
977
696k
#define MOVE_POS(p, num) { \
978
696k
    p->additionalOffset += (num); \
979
696k
    p->matchFinder.Skip(p->matchFinderObj, (UInt32)(num)); }
980
981
982
static unsigned ReadMatchDistances(CLzmaEnc *p, unsigned *numPairsRes)
983
314M
{
984
314M
  unsigned numPairs;
985
  
986
314M
  p->additionalOffset++;
987
314M
  p->numAvail = p->matchFinder.GetNumAvailableBytes(p->matchFinderObj);
988
314M
  numPairs = p->matchFinder.GetMatches(p->matchFinderObj, p->matches);
989
314M
  *numPairsRes = numPairs;
990
  
991
  #ifdef SHOW_STAT
992
  printf("\n i = %u numPairs = %u    ", g_STAT_OFFSET, numPairs / 2);
993
  g_STAT_OFFSET++;
994
  {
995
    unsigned i;
996
    for (i = 0; i < numPairs; i += 2)
997
      printf("%2u %6u   | ", p->matches[i], p->matches[i + 1]);
998
  }
999
  #endif
1000
  
1001
314M
  if (numPairs == 0)
1002
230M
    return 0;
1003
84.4M
  {
1004
84.4M
    unsigned len = p->matches[(size_t)numPairs - 2];
1005
84.4M
    if (len != p->numFastBytes)
1006
83.7M
      return len;
1007
681k
    {
1008
681k
      UInt32 numAvail = p->numAvail;
1009
681k
      if (numAvail > LZMA_MATCH_LEN_MAX)
1010
679k
        numAvail = LZMA_MATCH_LEN_MAX;
1011
681k
      {
1012
681k
        const Byte *p1 = p->matchFinder.GetPointerToCurrentPos(p->matchFinderObj) - 1;
1013
681k
        const Byte *p2 = p1 + len;
1014
681k
        ptrdiff_t dif = (ptrdiff_t)-1 - p->matches[(size_t)numPairs - 1];
1015
681k
        const Byte *lim = p1 + numAvail;
1016
67.8M
        for (; p2 != lim && *p2 == p2[dif]; p2++)
1017
67.2M
        {}
1018
681k
        return (unsigned)(p2 - p1);
1019
84.4M
      }
1020
84.4M
    }
1021
84.4M
  }
1022
84.4M
}
1023
1024
529M
#define MARK_LIT ((UInt32)(Int32)-1)
1025
1026
57.1M
#define MakeAs_Lit(p)       { (p)->dist = MARK_LIT; (p)->extra = 0; }
1027
11.6M
#define MakeAs_ShortRep(p)  { (p)->dist = 0; (p)->extra = 0; }
1028
54.4M
#define IsShortRep(p)       ((p)->dist == 0)
1029
1030
1031
#define GetPrice_ShortRep(p, state, posState) \
1032
12.6M
  ( GET_PRICE_0(p->isRepG0[state]) + GET_PRICE_0(p->isRep0Long[state][posState]))
1033
1034
54.0M
#define GetPrice_Rep_0(p, state, posState) ( \
1035
54.0M
    GET_PRICE_1(p->isMatch[state][posState]) \
1036
54.0M
  + GET_PRICE_1(p->isRep0Long[state][posState])) \
1037
54.0M
  + GET_PRICE_1(p->isRep[state]) \
1038
54.0M
  + GET_PRICE_0(p->isRepG0[state])
1039
  
1040
MY_FORCE_INLINE
1041
static UInt32 GetPrice_PureRep(const CLzmaEnc *p, unsigned repIndex, size_t state, size_t posState)
1042
59.7M
{
1043
59.7M
  UInt32 price;
1044
59.7M
  UInt32 prob = p->isRepG0[state];
1045
59.7M
  if (repIndex == 0)
1046
22.3M
  {
1047
22.3M
    price = GET_PRICE_0(prob);
1048
22.3M
    price += GET_PRICE_1(p->isRep0Long[state][posState]);
1049
22.3M
  }
1050
37.3M
  else
1051
37.3M
  {
1052
37.3M
    price = GET_PRICE_1(prob);
1053
37.3M
    prob = p->isRepG1[state];
1054
37.3M
    if (repIndex == 1)
1055
16.8M
      price += GET_PRICE_0(prob);
1056
20.4M
    else
1057
20.4M
    {
1058
20.4M
      price += GET_PRICE_1(prob);
1059
20.4M
      price += GET_PRICE(p->isRepG2[state], repIndex - 2);
1060
20.4M
    }
1061
37.3M
  }
1062
59.7M
  return price;
1063
59.7M
}
1064
1065
1066
static unsigned Backward(CLzmaEnc *p, unsigned cur)
1067
12.1M
{
1068
12.1M
  unsigned wr = cur + 1;
1069
12.1M
  p->optEnd = wr;
1070
1071
12.1M
  for (;;)
1072
55.0M
  {
1073
55.0M
    UInt32 dist = p->opt[cur].dist;
1074
55.0M
    unsigned len = (unsigned)p->opt[cur].len;
1075
55.0M
    unsigned extra = (unsigned)p->opt[cur].extra;
1076
55.0M
    cur -= len;
1077
1078
55.0M
    if (extra)
1079
2.09M
    {
1080
2.09M
      wr--;
1081
2.09M
      p->opt[wr].len = (UInt32)len;
1082
2.09M
      cur -= extra;
1083
2.09M
      len = extra;
1084
2.09M
      if (extra == 1)
1085
83.2k
      {
1086
83.2k
        p->opt[wr].dist = dist;
1087
83.2k
        dist = MARK_LIT;
1088
83.2k
      }
1089
2.01M
      else
1090
2.01M
      {
1091
2.01M
        p->opt[wr].dist = 0;
1092
2.01M
        len--;
1093
2.01M
        wr--;
1094
2.01M
        p->opt[wr].dist = MARK_LIT;
1095
2.01M
        p->opt[wr].len = 1;
1096
2.01M
      }
1097
2.09M
    }
1098
1099
55.0M
    if (cur == 0)
1100
12.1M
    {
1101
12.1M
      p->backRes = dist;
1102
12.1M
      p->optCur = wr;
1103
12.1M
      return len;
1104
12.1M
    }
1105
    
1106
42.8M
    wr--;
1107
42.8M
    p->opt[wr].dist = dist;
1108
42.8M
    p->opt[wr].len = (UInt32)len;
1109
42.8M
  }
1110
12.1M
}
1111
1112
1113
1114
#define LIT_PROBS(pos, prevByte) \
1115
361M
  (p->litProbs + (UInt32)3 * (((((pos) << 8) + (prevByte)) & p->lpMask) << p->lc))
1116
1117
1118
static unsigned GetOptimum(CLzmaEnc *p, UInt32 position)
1119
219M
{
1120
219M
  unsigned last, cur;
1121
219M
  UInt32 reps[LZMA_NUM_REPS];
1122
219M
  unsigned repLens[LZMA_NUM_REPS];
1123
219M
  UInt32 *matches;
1124
1125
219M
  {
1126
219M
    UInt32 numAvail;
1127
219M
    unsigned numPairs, mainLen, repMaxIndex, i, posState;
1128
219M
    UInt32 matchPrice, repMatchPrice;
1129
219M
    const Byte *data;
1130
219M
    Byte curByte, matchByte;
1131
    
1132
219M
    p->optCur = p->optEnd = 0;
1133
    
1134
219M
    if (p->additionalOffset == 0)
1135
218M
      mainLen = ReadMatchDistances(p, &numPairs);
1136
326k
    else
1137
326k
    {
1138
326k
      mainLen = p->longestMatchLen;
1139
326k
      numPairs = p->numPairs;
1140
326k
    }
1141
    
1142
219M
    numAvail = p->numAvail;
1143
219M
    if (numAvail < 2)
1144
4.21k
    {
1145
4.21k
      p->backRes = MARK_LIT;
1146
4.21k
      return 1;
1147
4.21k
    }
1148
219M
    if (numAvail > LZMA_MATCH_LEN_MAX)
1149
218M
      numAvail = LZMA_MATCH_LEN_MAX;
1150
    
1151
219M
    data = p->matchFinder.GetPointerToCurrentPos(p->matchFinderObj) - 1;
1152
219M
    repMaxIndex = 0;
1153
    
1154
1.09G
    for (i = 0; i < LZMA_NUM_REPS; i++)
1155
876M
    {
1156
876M
      unsigned len;
1157
876M
      const Byte *data2;
1158
876M
      reps[i] = p->reps[i];
1159
876M
      data2 = data - reps[i];
1160
876M
      if (data[0] != data2[0] || data[1] != data2[1])
1161
874M
      {
1162
874M
        repLens[i] = 0;
1163
874M
        continue;
1164
874M
      }
1165
174M
      for (len = 2; len < numAvail && data[len] == data2[len]; len++)
1166
172M
      {}
1167
2.12M
      repLens[i] = len;
1168
2.12M
      if (len > repLens[repMaxIndex])
1169
597k
        repMaxIndex = i;
1170
2.12M
    }
1171
    
1172
219M
    if (repLens[repMaxIndex] >= p->numFastBytes)
1173
617k
    {
1174
617k
      unsigned len;
1175
617k
      p->backRes = (UInt32)repMaxIndex;
1176
617k
      len = repLens[repMaxIndex];
1177
617k
      MOVE_POS(p, len - 1)
1178
617k
      return len;
1179
617k
    }
1180
    
1181
218M
    matches = p->matches;
1182
    
1183
218M
    if (mainLen >= p->numFastBytes)
1184
76.6k
    {
1185
76.6k
      p->backRes = matches[(size_t)numPairs - 1] + LZMA_NUM_REPS;
1186
76.6k
      MOVE_POS(p, mainLen - 1)
1187
76.6k
      return mainLen;
1188
76.6k
    }
1189
    
1190
218M
    curByte = *data;
1191
218M
    matchByte = *(data - reps[0]);
1192
1193
218M
    last = repLens[repMaxIndex];
1194
218M
    if (last <= mainLen)
1195
218M
      last = mainLen;
1196
    
1197
218M
    if (last < 2 && curByte != matchByte)
1198
204M
    {
1199
204M
      p->backRes = MARK_LIT;
1200
204M
      return 1;
1201
204M
    }
1202
    
1203
13.8M
    p->opt[0].state = (CState)p->state;
1204
    
1205
13.8M
    posState = (position & p->pbMask);
1206
    
1207
13.8M
    {
1208
13.8M
      const CLzmaProb *probs = LIT_PROBS(position, *(data - 1));
1209
13.8M
      p->opt[1].price = GET_PRICE_0(p->isMatch[p->state][posState]) +
1210
13.8M
        (!IsLitState(p->state) ?
1211
1.32M
          LitEnc_Matched_GetPrice(probs, curByte, matchByte, p->ProbPrices) :
1212
13.8M
          LitEnc_GetPrice(probs, curByte, p->ProbPrices));
1213
13.8M
    }
1214
1215
13.8M
    MakeAs_Lit(&p->opt[1]);
1216
    
1217
13.8M
    matchPrice = GET_PRICE_1(p->isMatch[p->state][posState]);
1218
13.8M
    repMatchPrice = matchPrice + GET_PRICE_1(p->isRep[p->state]);
1219
    
1220
    // 18.06
1221
13.8M
    if (matchByte == curByte && repLens[0] == 0)
1222
2.17M
    {
1223
2.17M
      UInt32 shortRepPrice = repMatchPrice + GetPrice_ShortRep(p, p->state, posState);
1224
2.17M
      if (shortRepPrice < p->opt[1].price)
1225
1.80M
      {
1226
1.80M
        p->opt[1].price = shortRepPrice;
1227
1.80M
        MakeAs_ShortRep(&p->opt[1]);
1228
1.80M
      }
1229
2.17M
      if (last < 2)
1230
1.67M
      {
1231
1.67M
        p->backRes = p->opt[1].dist;
1232
1.67M
        return 1;
1233
1.67M
      }
1234
2.17M
    }
1235
   
1236
12.1M
    p->opt[1].len = 1;
1237
    
1238
12.1M
    p->opt[0].reps[0] = reps[0];
1239
12.1M
    p->opt[0].reps[1] = reps[1];
1240
12.1M
    p->opt[0].reps[2] = reps[2];
1241
12.1M
    p->opt[0].reps[3] = reps[3];
1242
    
1243
    // ---------- REP ----------
1244
    
1245
60.9M
    for (i = 0; i < LZMA_NUM_REPS; i++)
1246
48.7M
    {
1247
48.7M
      unsigned repLen = repLens[i];
1248
48.7M
      UInt32 price;
1249
48.7M
      if (repLen < 2)
1250
47.9M
        continue;
1251
846k
      price = repMatchPrice + GetPrice_PureRep(p, i, p->state, posState);
1252
846k
      do
1253
1.99M
      {
1254
1.99M
        UInt32 price2 = price + GET_PRICE_LEN(&p->repLenEnc, posState, repLen);
1255
1.99M
        COptimal *opt = &p->opt[repLen];
1256
1.99M
        if (price2 < opt->price)
1257
1.65M
        {
1258
1.65M
          opt->price = price2;
1259
1.65M
          opt->len = (UInt32)repLen;
1260
1.65M
          opt->dist = (UInt32)i;
1261
1.65M
          opt->extra = 0;
1262
1.65M
        }
1263
1.99M
      }
1264
1.99M
      while (--repLen >= 2);
1265
846k
    }
1266
    
1267
    
1268
    // ---------- MATCH ----------
1269
12.1M
    {
1270
12.1M
      unsigned len = repLens[0] + 1;
1271
12.1M
      if (len <= mainLen)
1272
11.9M
      {
1273
11.9M
        unsigned offs = 0;
1274
11.9M
        UInt32 normalMatchPrice = matchPrice + GET_PRICE_0(p->isRep[p->state]);
1275
1276
11.9M
        if (len < 2)
1277
11.9M
          len = 2;
1278
56.9k
        else
1279
105k
          while (len > matches[offs])
1280
48.3k
            offs += 2;
1281
    
1282
11.9M
        for (; ; len++)
1283
22.8M
        {
1284
22.8M
          COptimal *opt;
1285
22.8M
          UInt32 dist = matches[(size_t)offs + 1];
1286
22.8M
          UInt32 price = normalMatchPrice + GET_PRICE_LEN(&p->lenEnc, posState, len);
1287
22.8M
          unsigned lenToPosState = GetLenToPosState(len);
1288
       
1289
22.8M
          if (dist < kNumFullDistances)
1290
3.59M
            price += p->distancesPrices[lenToPosState][dist & (kNumFullDistances - 1)];
1291
19.2M
          else
1292
19.2M
          {
1293
19.2M
            unsigned slot;
1294
19.2M
            GetPosSlot2(dist, slot);
1295
19.2M
            price += p->alignPrices[dist & kAlignMask];
1296
19.2M
            price += p->posSlotPrices[lenToPosState][slot];
1297
19.2M
          }
1298
          
1299
22.8M
          opt = &p->opt[len];
1300
          
1301
22.8M
          if (price < opt->price)
1302
21.9M
          {
1303
21.9M
            opt->price = price;
1304
21.9M
            opt->len = (UInt32)len;
1305
21.9M
            opt->dist = dist + LZMA_NUM_REPS;
1306
21.9M
            opt->extra = 0;
1307
21.9M
          }
1308
          
1309
22.8M
          if (len == matches[offs])
1310
13.6M
          {
1311
13.6M
            offs += 2;
1312
13.6M
            if (offs == numPairs)
1313
11.9M
              break;
1314
13.6M
          }
1315
22.8M
        }
1316
11.9M
      }
1317
12.1M
    }
1318
    
1319
1320
12.1M
    cur = 0;
1321
1322
    #ifdef SHOW_STAT2
1323
    /* if (position >= 0) */
1324
    {
1325
      unsigned i;
1326
      printf("\n pos = %4X", position);
1327
      for (i = cur; i <= last; i++)
1328
      printf("\nprice[%4X] = %u", position - cur + i, p->opt[i].price);
1329
    }
1330
    #endif
1331
12.1M
  }
1332
1333
1334
  
1335
  // ---------- Optimal Parsing ----------
1336
1337
0
  for (;;)
1338
108M
  {
1339
108M
    unsigned numAvail;
1340
108M
    UInt32 numAvailFull;
1341
108M
    unsigned newLen, numPairs, prev, state, posState, startLen;
1342
108M
    UInt32 litPrice, matchPrice, repMatchPrice;
1343
108M
    BoolInt nextIsLit;
1344
108M
    Byte curByte, matchByte;
1345
108M
    const Byte *data;
1346
108M
    COptimal *curOpt, *nextOpt;
1347
1348
108M
    if (++cur == last)
1349
11.8M
      break;
1350
    
1351
    // 18.06
1352
96.1M
    if (cur >= kNumOpts - 64)
1353
6.19k
    {
1354
6.19k
      unsigned j, best;
1355
6.19k
      UInt32 price = p->opt[cur].price;
1356
6.19k
      best = cur;
1357
65.8k
      for (j = cur + 1; j <= last; j++)
1358
59.6k
      {
1359
59.6k
        UInt32 price2 = p->opt[j].price;
1360
59.6k
        if (price >= price2)
1361
5.36k
        {
1362
5.36k
          price = price2;
1363
5.36k
          best = j;
1364
5.36k
        }
1365
59.6k
      }
1366
6.19k
      {
1367
6.19k
        unsigned delta = best - cur;
1368
6.19k
        if (delta != 0)
1369
1.69k
        {
1370
1.69k
          MOVE_POS(p, delta);
1371
1.69k
        }
1372
6.19k
      }
1373
6.19k
      cur = best;
1374
6.19k
      break;
1375
6.19k
    }
1376
1377
96.1M
    newLen = ReadMatchDistances(p, &numPairs);
1378
    
1379
96.1M
    if (newLen >= p->numFastBytes)
1380
326k
    {
1381
326k
      p->numPairs = numPairs;
1382
326k
      p->longestMatchLen = newLen;
1383
326k
      break;
1384
326k
    }
1385
    
1386
95.8M
    curOpt = &p->opt[cur];
1387
1388
95.8M
    position++;
1389
1390
    // we need that check here, if skip_items in p->opt are possible
1391
    /*
1392
    if (curOpt->price >= kInfinityPrice)
1393
      continue;
1394
    */
1395
1396
95.8M
    prev = cur - curOpt->len;
1397
1398
95.8M
    if (curOpt->len == 1)
1399
54.4M
    {
1400
54.4M
      state = (unsigned)p->opt[prev].state;
1401
54.4M
      if (IsShortRep(curOpt))
1402
9.64M
        state = kShortRepNextStates[state];
1403
44.7M
      else
1404
44.7M
        state = kLiteralNextStates[state];
1405
54.4M
    }
1406
41.3M
    else
1407
41.3M
    {
1408
41.3M
      const COptimal *prevOpt;
1409
41.3M
      UInt32 b0;
1410
41.3M
      UInt32 dist = curOpt->dist;
1411
1412
41.3M
      if (curOpt->extra)
1413
3.97M
      {
1414
3.97M
        prev -= (unsigned)curOpt->extra;
1415
3.97M
        state = kState_RepAfterLit;
1416
3.97M
        if (curOpt->extra == 1)
1417
136k
          state = (dist < LZMA_NUM_REPS ? kState_RepAfterLit : kState_MatchAfterLit);
1418
3.97M
      }
1419
37.4M
      else
1420
37.4M
      {
1421
37.4M
        state = (unsigned)p->opt[prev].state;
1422
37.4M
        if (dist < LZMA_NUM_REPS)
1423
21.1M
          state = kRepNextStates[state];
1424
16.2M
        else
1425
16.2M
          state = kMatchNextStates[state];
1426
37.4M
      }
1427
1428
41.3M
      prevOpt = &p->opt[prev];
1429
41.3M
      b0 = prevOpt->reps[0];
1430
1431
41.3M
      if (dist < LZMA_NUM_REPS)
1432
24.4M
      {
1433
24.4M
        if (dist == 0)
1434
12.9M
        {
1435
12.9M
          reps[0] = b0;
1436
12.9M
          reps[1] = prevOpt->reps[1];
1437
12.9M
          reps[2] = prevOpt->reps[2];
1438
12.9M
          reps[3] = prevOpt->reps[3];
1439
12.9M
        }
1440
11.4M
        else
1441
11.4M
        {
1442
11.4M
          reps[1] = b0;
1443
11.4M
          b0 = prevOpt->reps[1];
1444
11.4M
          if (dist == 1)
1445
8.74M
          {
1446
8.74M
            reps[0] = b0;
1447
8.74M
            reps[2] = prevOpt->reps[2];
1448
8.74M
            reps[3] = prevOpt->reps[3];
1449
8.74M
          }
1450
2.73M
          else
1451
2.73M
          {
1452
2.73M
            reps[2] = b0;
1453
2.73M
            reps[0] = prevOpt->reps[dist];
1454
2.73M
            reps[3] = prevOpt->reps[dist ^ 1];
1455
2.73M
          }
1456
11.4M
        }
1457
24.4M
      }
1458
16.9M
      else
1459
16.9M
      {
1460
16.9M
        reps[0] = (dist - LZMA_NUM_REPS + 1);
1461
16.9M
        reps[1] = b0;
1462
16.9M
        reps[2] = prevOpt->reps[1];
1463
16.9M
        reps[3] = prevOpt->reps[2];
1464
16.9M
      }
1465
41.3M
    }
1466
    
1467
95.8M
    curOpt->state = (CState)state;
1468
95.8M
    curOpt->reps[0] = reps[0];
1469
95.8M
    curOpt->reps[1] = reps[1];
1470
95.8M
    curOpt->reps[2] = reps[2];
1471
95.8M
    curOpt->reps[3] = reps[3];
1472
1473
95.8M
    data = p->matchFinder.GetPointerToCurrentPos(p->matchFinderObj) - 1;
1474
95.8M
    curByte = *data;
1475
95.8M
    matchByte = *(data - reps[0]);
1476
1477
95.8M
    posState = (position & p->pbMask);
1478
1479
    /*
1480
    The order of Price checks:
1481
       <  LIT
1482
       <= SHORT_REP
1483
       <  LIT : REP_0
1484
       <  REP    [ : LIT : REP_0 ]
1485
       <  MATCH  [ : LIT : REP_0 ]
1486
    */
1487
1488
95.8M
    {
1489
95.8M
      UInt32 curPrice = curOpt->price;
1490
95.8M
      unsigned prob = p->isMatch[state][posState];
1491
95.8M
      matchPrice = curPrice + GET_PRICE_1(prob);
1492
95.8M
      litPrice = curPrice + GET_PRICE_0(prob);
1493
95.8M
    }
1494
1495
95.8M
    nextOpt = &p->opt[(size_t)cur + 1];
1496
95.8M
    nextIsLit = False;
1497
1498
    // here we can allow skip_items in p->opt, if we don't check (nextOpt->price < kInfinityPrice)
1499
    // 18.new.06
1500
95.8M
    if ((nextOpt->price < kInfinityPrice
1501
        // && !IsLitState(state)
1502
95.8M
        && matchByte == curByte)
1503
95.8M
        || litPrice > nextOpt->price
1504
95.8M
        )
1505
43.5M
      litPrice = 0;
1506
52.2M
    else
1507
52.2M
    {
1508
52.2M
      const CLzmaProb *probs = LIT_PROBS(position, *(data - 1));
1509
52.2M
      litPrice += (!IsLitState(state) ?
1510
23.4M
          LitEnc_Matched_GetPrice(probs, curByte, matchByte, p->ProbPrices) :
1511
52.2M
          LitEnc_GetPrice(probs, curByte, p->ProbPrices));
1512
      
1513
52.2M
      if (litPrice < nextOpt->price)
1514
43.2M
      {
1515
43.2M
        nextOpt->price = litPrice;
1516
43.2M
        nextOpt->len = 1;
1517
43.2M
        MakeAs_Lit(nextOpt);
1518
43.2M
        nextIsLit = True;
1519
43.2M
      }
1520
52.2M
    }
1521
1522
95.8M
    repMatchPrice = matchPrice + GET_PRICE_1(p->isRep[state]);
1523
    
1524
95.8M
    numAvailFull = p->numAvail;
1525
95.8M
    {
1526
95.8M
      unsigned temp = kNumOpts - 1 - cur;
1527
95.8M
      if (numAvailFull > temp)
1528
94.4M
        numAvailFull = (UInt32)temp;
1529
95.8M
    }
1530
1531
    // 18.06
1532
    // ---------- SHORT_REP ----------
1533
95.8M
    if (IsLitState(state)) // 18.new
1534
44.7M
    if (matchByte == curByte)
1535
14.7M
    if (repMatchPrice < nextOpt->price) // 18.new
1536
    // if (numAvailFull < 2 || data[1] != *(data - reps[0] + 1))
1537
10.5M
    if (
1538
        // nextOpt->price >= kInfinityPrice ||
1539
10.5M
        nextOpt->len < 2   // we can check nextOpt->len, if skip items are not allowed in p->opt
1540
10.5M
        || (nextOpt->dist != 0
1541
            // && nextOpt->extra <= 1 // 17.old
1542
9.68M
            )
1543
10.5M
        )
1544
10.5M
    {
1545
10.5M
      UInt32 shortRepPrice = repMatchPrice + GetPrice_ShortRep(p, state, posState);
1546
      // if (shortRepPrice <= nextOpt->price) // 17.old
1547
10.5M
      if (shortRepPrice < nextOpt->price)  // 18.new
1548
9.84M
      {
1549
9.84M
        nextOpt->price = shortRepPrice;
1550
9.84M
        nextOpt->len = 1;
1551
9.84M
        MakeAs_ShortRep(nextOpt);
1552
9.84M
        nextIsLit = False;
1553
9.84M
      }
1554
10.5M
    }
1555
    
1556
95.8M
    if (numAvailFull < 2)
1557
3.01k
      continue;
1558
95.8M
    numAvail = (numAvailFull <= p->numFastBytes ? numAvailFull : p->numFastBytes);
1559
1560
    // numAvail <= p->numFastBytes
1561
1562
    // ---------- LIT : REP_0 ----------
1563
1564
95.8M
    if (!nextIsLit
1565
95.8M
        && litPrice != 0 // 18.new
1566
95.8M
        && matchByte != curByte
1567
95.8M
        && numAvailFull > 2)
1568
9.00M
    {
1569
9.00M
      const Byte *data2 = data - reps[0];
1570
9.00M
      if (data[1] == data2[1] && data[2] == data2[2])
1571
839k
      {
1572
839k
        unsigned len;
1573
839k
        unsigned limit = p->numFastBytes + 1;
1574
839k
        if (limit > numAvailFull)
1575
2.34k
          limit = numAvailFull;
1576
2.53M
        for (len = 3; len < limit && data[len] == data2[len]; len++)
1577
1.69M
        {}
1578
        
1579
839k
        {
1580
839k
          unsigned state2 = kLiteralNextStates[state];
1581
839k
          unsigned posState2 = (position + 1) & p->pbMask;
1582
839k
          UInt32 price = litPrice + GetPrice_Rep_0(p, state2, posState2);
1583
839k
          {
1584
839k
            unsigned offset = cur + len;
1585
1586
839k
            if (last < offset)
1587
52.6k
              last = offset;
1588
          
1589
            // do
1590
839k
            {
1591
839k
              UInt32 price2;
1592
839k
              COptimal *opt;
1593
839k
              len--;
1594
              // price2 = price + GetPrice_Len_Rep_0(p, len, state2, posState2);
1595
839k
              price2 = price + GET_PRICE_LEN(&p->repLenEnc, posState2, len);
1596
1597
839k
              opt = &p->opt[offset];
1598
              // offset--;
1599
839k
              if (price2 < opt->price)
1600
246k
              {
1601
246k
                opt->price = price2;
1602
246k
                opt->len = (UInt32)len;
1603
246k
                opt->dist = 0;
1604
246k
                opt->extra = 1;
1605
246k
              }
1606
839k
            }
1607
            // while (len >= 3);
1608
839k
          }
1609
839k
        }
1610
839k
      }
1611
9.00M
    }
1612
    
1613
95.8M
    startLen = 2; /* speed optimization */
1614
1615
95.8M
    {
1616
      // ---------- REP ----------
1617
95.8M
      unsigned repIndex = 0; // 17.old
1618
      // unsigned repIndex = IsLitState(state) ? 0 : 1; // 18.notused
1619
479M
      for (; repIndex < LZMA_NUM_REPS; repIndex++)
1620
383M
      {
1621
383M
        unsigned len;
1622
383M
        UInt32 price;
1623
383M
        const Byte *data2 = data - reps[repIndex];
1624
383M
        if (data[0] != data2[0] || data[1] != data2[1])
1625
324M
          continue;
1626
        
1627
215M
        for (len = 2; len < numAvail && data[len] == data2[len]; len++)
1628
156M
        {}
1629
        
1630
        // if (len < startLen) continue; // 18.new: speed optimization
1631
1632
58.8M
        {
1633
58.8M
          unsigned offset = cur + len;
1634
58.8M
          if (last < offset)
1635
602k
            last = offset;
1636
58.8M
        }
1637
58.8M
        {
1638
58.8M
          unsigned len2 = len;
1639
58.8M
          price = repMatchPrice + GetPrice_PureRep(p, repIndex, state, posState);
1640
58.8M
          do
1641
215M
          {
1642
215M
            UInt32 price2 = price + GET_PRICE_LEN(&p->repLenEnc, posState, len2);
1643
215M
            COptimal *opt = &p->opt[cur + len2];
1644
215M
            if (price2 < opt->price)
1645
28.9M
            {
1646
28.9M
              opt->price = price2;
1647
28.9M
              opt->len = (UInt32)len2;
1648
28.9M
              opt->dist = (UInt32)repIndex;
1649
28.9M
              opt->extra = 0;
1650
28.9M
            }
1651
215M
          }
1652
215M
          while (--len2 >= 2);
1653
58.8M
        }
1654
        
1655
58.8M
        if (repIndex == 0) startLen = len + 1;  // 17.old
1656
        // startLen = len + 1; // 18.new
1657
1658
        /* if (_maxMode) */
1659
58.8M
        {
1660
          // ---------- REP : LIT : REP_0 ----------
1661
          // numFastBytes + 1 + numFastBytes
1662
1663
58.8M
          unsigned len2 = len + 1;
1664
58.8M
          unsigned limit = len2 + p->numFastBytes;
1665
58.8M
          if (limit > numAvailFull)
1666
142k
            limit = numAvailFull;
1667
          
1668
58.8M
          len2 += 2;
1669
58.8M
          if (len2 <= limit)
1670
58.8M
          if (data[len2 - 2] == data2[len2 - 2])
1671
38.6M
          if (data[len2 - 1] == data2[len2 - 1])
1672
35.1M
          {
1673
35.1M
            unsigned state2 = kRepNextStates[state];
1674
35.1M
            unsigned posState2 = (position + len) & p->pbMask;
1675
35.1M
            price += GET_PRICE_LEN(&p->repLenEnc, posState, len)
1676
35.1M
                + GET_PRICE_0(p->isMatch[state2][posState2])
1677
35.1M
                + LitEnc_Matched_GetPrice(LIT_PROBS(position + len, data[(size_t)len - 1]),
1678
35.1M
                    data[len], data2[len], p->ProbPrices);
1679
            
1680
            // state2 = kLiteralNextStates[state2];
1681
35.1M
            state2 = kState_LitAfterRep;
1682
35.1M
            posState2 = (posState2 + 1) & p->pbMask;
1683
1684
1685
35.1M
            price += GetPrice_Rep_0(p, state2, posState2);
1686
1687
178M
          for (; len2 < limit && data[len2] == data2[len2]; len2++)
1688
143M
          {}
1689
          
1690
35.1M
          len2 -= len;
1691
          // if (len2 >= 3)
1692
35.1M
          {
1693
35.1M
            {
1694
35.1M
              unsigned offset = cur + len + len2;
1695
1696
35.1M
              if (last < offset)
1697
7.44M
                last = offset;
1698
              // do
1699
35.1M
              {
1700
35.1M
                UInt32 price2;
1701
35.1M
                COptimal *opt;
1702
35.1M
                len2--;
1703
                // price2 = price + GetPrice_Len_Rep_0(p, len2, state2, posState2);
1704
35.1M
                price2 = price + GET_PRICE_LEN(&p->repLenEnc, posState2, len2);
1705
1706
35.1M
                opt = &p->opt[offset];
1707
                // offset--;
1708
35.1M
                if (price2 < opt->price)
1709
10.2M
                {
1710
10.2M
                  opt->price = price2;
1711
10.2M
                  opt->len = (UInt32)len2;
1712
10.2M
                  opt->extra = (CExtra)(len + 1);
1713
10.2M
                  opt->dist = (UInt32)repIndex;
1714
10.2M
                }
1715
35.1M
              }
1716
              // while (len2 >= 3);
1717
35.1M
            }
1718
35.1M
          }
1719
35.1M
          }
1720
58.8M
        }
1721
58.8M
      }
1722
95.8M
    }
1723
1724
1725
    // ---------- MATCH ----------
1726
    /* for (unsigned len = 2; len <= newLen; len++) */
1727
95.8M
    if (newLen > numAvail)
1728
0
    {
1729
0
      newLen = numAvail;
1730
0
      for (numPairs = 0; newLen > matches[numPairs]; numPairs += 2);
1731
0
      matches[numPairs] = (UInt32)newLen;
1732
0
      numPairs += 2;
1733
0
    }
1734
    
1735
    // startLen = 2; /* speed optimization */
1736
1737
95.8M
    if (newLen >= startLen)
1738
60.9M
    {
1739
60.9M
      UInt32 normalMatchPrice = matchPrice + GET_PRICE_0(p->isRep[state]);
1740
60.9M
      UInt32 dist;
1741
60.9M
      unsigned offs, posSlot, len;
1742
      
1743
60.9M
      {
1744
60.9M
        unsigned offset = cur + newLen;
1745
60.9M
        if (last < offset)
1746
20.8M
          last = offset;
1747
60.9M
      }
1748
1749
60.9M
      offs = 0;
1750
72.9M
      while (startLen > matches[offs])
1751
12.0M
        offs += 2;
1752
60.9M
      dist = matches[(size_t)offs + 1];
1753
      
1754
      // if (dist >= kNumFullDistances)
1755
60.9M
      GetPosSlot2(dist, posSlot);
1756
      
1757
126M
      for (len = /*2*/ startLen; ; len++)
1758
187M
      {
1759
187M
        UInt32 price = normalMatchPrice + GET_PRICE_LEN(&p->lenEnc, posState, len);
1760
187M
        {
1761
187M
          COptimal *opt;
1762
187M
          unsigned lenNorm = len - 2;
1763
187M
          lenNorm = GetLenToPosState2(lenNorm);
1764
187M
          if (dist < kNumFullDistances)
1765
36.8M
            price += p->distancesPrices[lenNorm][dist & (kNumFullDistances - 1)];
1766
150M
          else
1767
150M
            price += p->posSlotPrices[lenNorm][posSlot] + p->alignPrices[dist & kAlignMask];
1768
          
1769
187M
          opt = &p->opt[cur + len];
1770
187M
          if (price < opt->price)
1771
70.4M
          {
1772
70.4M
            opt->price = price;
1773
70.4M
            opt->len = (UInt32)len;
1774
70.4M
            opt->dist = dist + LZMA_NUM_REPS;
1775
70.4M
            opt->extra = 0;
1776
70.4M
          }
1777
187M
        }
1778
1779
187M
        if (len == matches[offs])
1780
102M
        {
1781
          // if (p->_maxMode) {
1782
          // MATCH : LIT : REP_0
1783
1784
102M
          const Byte *data2 = data - dist - 1;
1785
102M
          unsigned len2 = len + 1;
1786
102M
          unsigned limit = len2 + p->numFastBytes;
1787
102M
          if (limit > numAvailFull)
1788
57.0k
            limit = numAvailFull;
1789
          
1790
102M
          len2 += 2;
1791
102M
          if (len2 <= limit)
1792
102M
          if (data[len2 - 2] == data2[len2 - 2])
1793
39.9M
          if (data[len2 - 1] == data2[len2 - 1])
1794
18.0M
          {
1795
74.5M
          for (; len2 < limit && data[len2] == data2[len2]; len2++)
1796
56.5M
          {}
1797
          
1798
18.0M
          len2 -= len;
1799
          
1800
          // if (len2 >= 3)
1801
18.0M
          {
1802
18.0M
            unsigned state2 = kMatchNextStates[state];
1803
18.0M
            unsigned posState2 = (position + len) & p->pbMask;
1804
18.0M
            unsigned offset;
1805
18.0M
            price += GET_PRICE_0(p->isMatch[state2][posState2]);
1806
18.0M
            price += LitEnc_Matched_GetPrice(LIT_PROBS(position + len, data[(size_t)len - 1]),
1807
18.0M
                    data[len], data2[len], p->ProbPrices);
1808
1809
            // state2 = kLiteralNextStates[state2];
1810
18.0M
            state2 = kState_LitAfterMatch;
1811
1812
18.0M
            posState2 = (posState2 + 1) & p->pbMask;
1813
18.0M
            price += GetPrice_Rep_0(p, state2, posState2);
1814
1815
18.0M
            offset = cur + len + len2;
1816
1817
18.0M
            if (last < offset)
1818
4.20M
              last = offset;
1819
            // do
1820
18.0M
            {
1821
18.0M
              UInt32 price2;
1822
18.0M
              COptimal *opt;
1823
18.0M
              len2--;
1824
              // price2 = price + GetPrice_Len_Rep_0(p, len2, state2, posState2);
1825
18.0M
              price2 = price + GET_PRICE_LEN(&p->repLenEnc, posState2, len2);
1826
18.0M
              opt = &p->opt[offset];
1827
              // offset--;
1828
18.0M
              if (price2 < opt->price)
1829
6.08M
              {
1830
6.08M
                opt->price = price2;
1831
6.08M
                opt->len = (UInt32)len2;
1832
6.08M
                opt->extra = (CExtra)(len + 1);
1833
6.08M
                opt->dist = dist + LZMA_NUM_REPS;
1834
6.08M
              }
1835
18.0M
            }
1836
            // while (len2 >= 3);
1837
18.0M
          }
1838
1839
18.0M
          }
1840
        
1841
102M
          offs += 2;
1842
102M
          if (offs == numPairs)
1843
60.9M
            break;
1844
41.2M
          dist = matches[(size_t)offs + 1];
1845
          // if (dist >= kNumFullDistances)
1846
41.2M
            GetPosSlot2(dist, posSlot);
1847
41.2M
        }
1848
187M
      }
1849
60.9M
    }
1850
95.8M
  }
1851
1852
12.1M
  do
1853
112M
    p->opt[last].price = kInfinityPrice;
1854
112M
  while (--last);
1855
1856
12.1M
  return Backward(p, cur);
1857
13.8M
}
1858
1859
1860
1861
0
#define ChangePair(smallDist, bigDist) (((bigDist) >> 7) > (smallDist))
1862
1863
1864
1865
static unsigned GetOptimumFast(CLzmaEnc *p)
1866
0
{
1867
0
  UInt32 numAvail, mainDist;
1868
0
  unsigned mainLen, numPairs, repIndex, repLen, i;
1869
0
  const Byte *data;
1870
1871
0
  if (p->additionalOffset == 0)
1872
0
    mainLen = ReadMatchDistances(p, &numPairs);
1873
0
  else
1874
0
  {
1875
0
    mainLen = p->longestMatchLen;
1876
0
    numPairs = p->numPairs;
1877
0
  }
1878
1879
0
  numAvail = p->numAvail;
1880
0
  p->backRes = MARK_LIT;
1881
0
  if (numAvail < 2)
1882
0
    return 1;
1883
  // if (mainLen < 2 && p->state == 0) return 1; // 18.06.notused
1884
0
  if (numAvail > LZMA_MATCH_LEN_MAX)
1885
0
    numAvail = LZMA_MATCH_LEN_MAX;
1886
0
  data = p->matchFinder.GetPointerToCurrentPos(p->matchFinderObj) - 1;
1887
0
  repLen = repIndex = 0;
1888
  
1889
0
  for (i = 0; i < LZMA_NUM_REPS; i++)
1890
0
  {
1891
0
    unsigned len;
1892
0
    const Byte *data2 = data - p->reps[i];
1893
0
    if (data[0] != data2[0] || data[1] != data2[1])
1894
0
      continue;
1895
0
    for (len = 2; len < numAvail && data[len] == data2[len]; len++)
1896
0
    {}
1897
0
    if (len >= p->numFastBytes)
1898
0
    {
1899
0
      p->backRes = (UInt32)i;
1900
0
      MOVE_POS(p, len - 1)
1901
0
      return len;
1902
0
    }
1903
0
    if (len > repLen)
1904
0
    {
1905
0
      repIndex = i;
1906
0
      repLen = len;
1907
0
    }
1908
0
  }
1909
1910
0
  if (mainLen >= p->numFastBytes)
1911
0
  {
1912
0
    p->backRes = p->matches[(size_t)numPairs - 1] + LZMA_NUM_REPS;
1913
0
    MOVE_POS(p, mainLen - 1)
1914
0
    return mainLen;
1915
0
  }
1916
1917
0
  mainDist = 0; /* for GCC */
1918
  
1919
0
  if (mainLen >= 2)
1920
0
  {
1921
0
    mainDist = p->matches[(size_t)numPairs - 1];
1922
0
    while (numPairs > 2)
1923
0
    {
1924
0
      UInt32 dist2;
1925
0
      if (mainLen != p->matches[(size_t)numPairs - 4] + 1)
1926
0
        break;
1927
0
      dist2 = p->matches[(size_t)numPairs - 3];
1928
0
      if (!ChangePair(dist2, mainDist))
1929
0
        break;
1930
0
      numPairs -= 2;
1931
0
      mainLen--;
1932
0
      mainDist = dist2;
1933
0
    }
1934
0
    if (mainLen == 2 && mainDist >= 0x80)
1935
0
      mainLen = 1;
1936
0
  }
1937
1938
0
  if (repLen >= 2)
1939
0
    if (    repLen + 1 >= mainLen
1940
0
        || (repLen + 2 >= mainLen && mainDist >= (1 << 9))
1941
0
        || (repLen + 3 >= mainLen && mainDist >= (1 << 15)))
1942
0
  {
1943
0
    p->backRes = (UInt32)repIndex;
1944
0
    MOVE_POS(p, repLen - 1)
1945
0
    return repLen;
1946
0
  }
1947
  
1948
0
  if (mainLen < 2 || numAvail <= 2)
1949
0
    return 1;
1950
1951
0
  {
1952
0
    unsigned len1 = ReadMatchDistances(p, &p->numPairs);
1953
0
    p->longestMatchLen = len1;
1954
  
1955
0
    if (len1 >= 2)
1956
0
    {
1957
0
      UInt32 newDist = p->matches[(size_t)p->numPairs - 1];
1958
0
      if (   (len1 >= mainLen && newDist < mainDist)
1959
0
          || (len1 == mainLen + 1 && !ChangePair(mainDist, newDist))
1960
0
          || (len1 >  mainLen + 1)
1961
0
          || (len1 + 1 >= mainLen && mainLen >= 3 && ChangePair(newDist, mainDist)))
1962
0
        return 1;
1963
0
    }
1964
0
  }
1965
  
1966
0
  data = p->matchFinder.GetPointerToCurrentPos(p->matchFinderObj) - 1;
1967
  
1968
0
  for (i = 0; i < LZMA_NUM_REPS; i++)
1969
0
  {
1970
0
    unsigned len, limit;
1971
0
    const Byte *data2 = data - p->reps[i];
1972
0
    if (data[0] != data2[0] || data[1] != data2[1])
1973
0
      continue;
1974
0
    limit = mainLen - 1;
1975
0
    for (len = 2;; len++)
1976
0
    {
1977
0
      if (len >= limit)
1978
0
        return 1;
1979
0
      if (data[len] != data2[len])
1980
0
        break;
1981
0
    }
1982
0
  }
1983
  
1984
0
  p->backRes = mainDist + LZMA_NUM_REPS;
1985
0
  if (mainLen != 2)
1986
0
  {
1987
0
    MOVE_POS(p, mainLen - 2)
1988
0
  }
1989
0
  return mainLen;
1990
0
}
1991
1992
1993
1994
1995
static void WriteEndMarker(CLzmaEnc *p, unsigned posState)
1996
0
{
1997
0
  UInt32 range;
1998
0
  range = p->rc.range;
1999
0
  {
2000
0
    UInt32 ttt, newBound;
2001
0
    CLzmaProb *prob = &p->isMatch[p->state][posState];
2002
0
    RC_BIT_PRE(&p->rc, prob)
2003
0
    RC_BIT_1(&p->rc, prob)
2004
0
    prob = &p->isRep[p->state];
2005
0
    RC_BIT_PRE(&p->rc, prob)
2006
0
    RC_BIT_0(&p->rc, prob)
2007
0
  }
2008
0
  p->state = kMatchNextStates[p->state];
2009
  
2010
0
  p->rc.range = range;
2011
0
  LenEnc_Encode(&p->lenProbs, &p->rc, 0, posState);
2012
0
  range = p->rc.range;
2013
2014
0
  {
2015
    // RcTree_Encode_PosSlot(&p->rc, p->posSlotEncoder[0], (1 << kNumPosSlotBits) - 1);
2016
0
    CLzmaProb *probs = p->posSlotEncoder[0];
2017
0
    unsigned m = 1;
2018
0
    do
2019
0
    {
2020
0
      UInt32 ttt, newBound;
2021
0
      RC_BIT_PRE(p, probs + m)
2022
0
      RC_BIT_1(&p->rc, probs + m);
2023
0
      m = (m << 1) + 1;
2024
0
    }
2025
0
    while (m < (1 << kNumPosSlotBits));
2026
0
  }
2027
0
  {
2028
    // RangeEnc_EncodeDirectBits(&p->rc, ((UInt32)1 << (30 - kNumAlignBits)) - 1, 30 - kNumAlignBits);    UInt32 range = p->range;
2029
0
    unsigned numBits = 30 - kNumAlignBits;
2030
0
    do
2031
0
    {
2032
0
      range >>= 1;
2033
0
      p->rc.low += range;
2034
0
      RC_NORM(&p->rc)
2035
0
    }
2036
0
    while (--numBits);
2037
0
  }
2038
   
2039
0
  {
2040
    // RcTree_ReverseEncode(&p->rc, p->posAlignEncoder, kNumAlignBits, kAlignMask);
2041
0
    CLzmaProb *probs = p->posAlignEncoder;
2042
0
    unsigned m = 1;
2043
0
    do
2044
0
    {
2045
0
      UInt32 ttt, newBound;
2046
0
      RC_BIT_PRE(p, probs + m)
2047
0
      RC_BIT_1(&p->rc, probs + m);
2048
0
      m = (m << 1) + 1;
2049
0
    }
2050
0
    while (m < kAlignTableSize);
2051
0
  }
2052
0
  p->rc.range = range;
2053
0
}
2054
2055
2056
static SRes CheckErrors(CLzmaEnc *p)
2057
39.4k
{
2058
39.4k
  if (p->result != SZ_OK)
2059
0
    return p->result;
2060
39.4k
  if (p->rc.res != SZ_OK)
2061
0
    p->result = SZ_ERROR_WRITE;
2062
39.4k
  if (p->matchFinderBase.result != SZ_OK)
2063
0
    p->result = SZ_ERROR_READ;
2064
39.4k
  if (p->result != SZ_OK)
2065
0
    p->finished = True;
2066
39.4k
  return p->result;
2067
39.4k
}
2068
2069
2070
MY_NO_INLINE static SRes Flush(CLzmaEnc *p, UInt32 nowPos)
2071
19.7k
{
2072
  /* ReleaseMFStream(); */
2073
19.7k
  p->finished = True;
2074
19.7k
  if (p->writeEndMark)
2075
0
    WriteEndMarker(p, nowPos & p->pbMask);
2076
19.7k
  RangeEnc_FlushData(&p->rc);
2077
19.7k
  RangeEnc_FlushStream(&p->rc);
2078
19.7k
  return CheckErrors(p);
2079
19.7k
}
2080
2081
2082
MY_NO_INLINE static void FillAlignPrices(CLzmaEnc *p)
2083
134k
{
2084
134k
  unsigned i;
2085
134k
  const CProbPrice *ProbPrices = p->ProbPrices;
2086
134k
  const CLzmaProb *probs = p->posAlignEncoder;
2087
  // p->alignPriceCount = 0;
2088
1.20M
  for (i = 0; i < kAlignTableSize / 2; i++)
2089
1.07M
  {
2090
1.07M
    UInt32 price = 0;
2091
1.07M
    unsigned sym = i;
2092
1.07M
    unsigned m = 1;
2093
1.07M
    unsigned bit;
2094
1.07M
    UInt32 prob;
2095
1.07M
    bit = sym & 1; sym >>= 1; price += GET_PRICEa(probs[m], bit); m = (m << 1) + bit;
2096
1.07M
    bit = sym & 1; sym >>= 1; price += GET_PRICEa(probs[m], bit); m = (m << 1) + bit;
2097
1.07M
    bit = sym & 1; sym >>= 1; price += GET_PRICEa(probs[m], bit); m = (m << 1) + bit;
2098
1.07M
    prob = probs[m];
2099
1.07M
    p->alignPrices[i    ] = price + GET_PRICEa_0(prob);
2100
1.07M
    p->alignPrices[i + 8] = price + GET_PRICEa_1(prob);
2101
    // p->alignPrices[i] = RcTree_ReverseGetPrice(p->posAlignEncoder, kNumAlignBits, i, p->ProbPrices);
2102
1.07M
  }
2103
134k
}
2104
2105
2106
MY_NO_INLINE static void FillDistancesPrices(CLzmaEnc *p)
2107
134k
{
2108
  // int y; for (y = 0; y < 100; y++) {
2109
2110
134k
  UInt32 tempPrices[kNumFullDistances];
2111
134k
  unsigned i, lps;
2112
2113
134k
  const CProbPrice *ProbPrices = p->ProbPrices;
2114
134k
  p->matchPriceCount = 0;
2115
2116
8.46M
  for (i = kStartPosModelIndex / 2; i < kNumFullDistances / 2; i++)
2117
8.33M
  {
2118
8.33M
    unsigned posSlot = GetPosSlot1(i);
2119
8.33M
    unsigned footerBits = (posSlot >> 1) - 1;
2120
8.33M
    unsigned base = ((2 | (posSlot & 1)) << footerBits);
2121
8.33M
    const CLzmaProb *probs = p->posEncoders + (size_t)base * 2;
2122
    // tempPrices[i] = RcTree_ReverseGetPrice(p->posEncoders + base, footerBits, i - base, p->ProbPrices);
2123
8.33M
    UInt32 price = 0;
2124
8.33M
    unsigned m = 1;
2125
8.33M
    unsigned sym = i;
2126
8.33M
    unsigned offset = (unsigned)1 << footerBits;
2127
8.33M
    base += i;
2128
    
2129
8.33M
    if (footerBits)
2130
8.06M
    do
2131
26.3M
    {
2132
26.3M
      unsigned bit = sym & 1;
2133
26.3M
      sym >>= 1;
2134
26.3M
      price += GET_PRICEa(probs[m], bit);
2135
26.3M
      m = (m << 1) + bit;
2136
26.3M
    }
2137
26.3M
    while (--footerBits);
2138
2139
8.33M
    {
2140
8.33M
      unsigned prob = probs[m];
2141
8.33M
      tempPrices[base         ] = price + GET_PRICEa_0(prob);
2142
8.33M
      tempPrices[base + offset] = price + GET_PRICEa_1(prob);
2143
8.33M
    }
2144
8.33M
  }
2145
2146
671k
  for (lps = 0; lps < kNumLenToPosStates; lps++)
2147
537k
  {
2148
537k
    unsigned slot;
2149
537k
    unsigned distTableSize2 = (p->distTableSize + 1) >> 1;
2150
537k
    UInt32 *posSlotPrices = p->posSlotPrices[lps];
2151
537k
    const CLzmaProb *probs = p->posSlotEncoder[lps];
2152
    
2153
13.4M
    for (slot = 0; slot < distTableSize2; slot++)
2154
12.9M
    {
2155
      // posSlotPrices[slot] = RcTree_GetPrice(encoder, kNumPosSlotBits, slot, p->ProbPrices);
2156
12.9M
      UInt32 price;
2157
12.9M
      unsigned bit;
2158
12.9M
      unsigned sym = slot + (1 << (kNumPosSlotBits - 1));
2159
12.9M
      unsigned prob;
2160
12.9M
      bit = sym & 1; sym >>= 1; price  = GET_PRICEa(probs[sym], bit);
2161
12.9M
      bit = sym & 1; sym >>= 1; price += GET_PRICEa(probs[sym], bit);
2162
12.9M
      bit = sym & 1; sym >>= 1; price += GET_PRICEa(probs[sym], bit);
2163
12.9M
      bit = sym & 1; sym >>= 1; price += GET_PRICEa(probs[sym], bit);
2164
12.9M
      bit = sym & 1; sym >>= 1; price += GET_PRICEa(probs[sym], bit);
2165
12.9M
      prob = probs[(size_t)slot + (1 << (kNumPosSlotBits - 1))];
2166
12.9M
      posSlotPrices[(size_t)slot * 2    ] = price + GET_PRICEa_0(prob);
2167
12.9M
      posSlotPrices[(size_t)slot * 2 + 1] = price + GET_PRICEa_1(prob);
2168
12.9M
    }
2169
    
2170
537k
    {
2171
537k
      UInt32 delta = ((UInt32)((kEndPosModelIndex / 2 - 1) - kNumAlignBits) << kNumBitPriceShiftBits);
2172
9.67M
      for (slot = kEndPosModelIndex / 2; slot < distTableSize2; slot++)
2173
9.13M
      {
2174
9.13M
        posSlotPrices[(size_t)slot * 2    ] += delta;
2175
9.13M
        posSlotPrices[(size_t)slot * 2 + 1] += delta;
2176
9.13M
        delta += ((UInt32)1 << kNumBitPriceShiftBits);
2177
9.13M
      }
2178
537k
    }
2179
2180
537k
    {
2181
537k
      UInt32 *dp = p->distancesPrices[lps];
2182
      
2183
537k
      dp[0] = posSlotPrices[0];
2184
537k
      dp[1] = posSlotPrices[1];
2185
537k
      dp[2] = posSlotPrices[2];
2186
537k
      dp[3] = posSlotPrices[3];
2187
2188
33.8M
      for (i = 4; i < kNumFullDistances; i += 2)
2189
33.3M
      {
2190
33.3M
        UInt32 slotPrice = posSlotPrices[GetPosSlot1(i)];
2191
33.3M
        dp[i    ] = slotPrice + tempPrices[i];
2192
33.3M
        dp[i + 1] = slotPrice + tempPrices[i + 1];
2193
33.3M
      }
2194
537k
    }
2195
537k
  }
2196
  // }
2197
134k
}
2198
2199
2200
2201
void LzmaEnc_Construct(CLzmaEnc *p)
2202
7.47k
{
2203
7.47k
  RangeEnc_Construct(&p->rc);
2204
7.47k
  MatchFinder_Construct(&p->matchFinderBase);
2205
  
2206
  #ifndef _7ZIP_ST
2207
  MatchFinderMt_Construct(&p->matchFinderMt);
2208
  p->matchFinderMt.MatchFinder = &p->matchFinderBase;
2209
  #endif
2210
2211
7.47k
  {
2212
7.47k
    CLzmaEncProps props;
2213
7.47k
    LzmaEncProps_Init(&props);
2214
7.47k
    LzmaEnc_SetProps(p, &props);
2215
7.47k
  }
2216
2217
7.47k
  #ifndef LZMA_LOG_BSR
2218
7.47k
  LzmaEnc_FastPosInit(p->g_FastPos);
2219
7.47k
  #endif
2220
2221
7.47k
  LzmaEnc_InitPriceTables(p->ProbPrices);
2222
7.47k
  p->litProbs = NULL;
2223
7.47k
  p->saveState.litProbs = NULL;
2224
2225
7.47k
}
2226
2227
CLzmaEncHandle LzmaEnc_Create(ISzAllocPtr alloc)
2228
7.47k
{
2229
7.47k
  void *p;
2230
7.47k
  p = ISzAlloc_Alloc(alloc, sizeof(CLzmaEnc));
2231
7.47k
  if (p)
2232
7.47k
    LzmaEnc_Construct((CLzmaEnc *)p);
2233
7.47k
  return p;
2234
7.47k
}
2235
2236
void LzmaEnc_FreeLits(CLzmaEnc *p, ISzAllocPtr alloc)
2237
14.9k
{
2238
14.9k
  ISzAlloc_Free(alloc, p->litProbs);
2239
14.9k
  ISzAlloc_Free(alloc, p->saveState.litProbs);
2240
14.9k
  p->litProbs = NULL;
2241
14.9k
  p->saveState.litProbs = NULL;
2242
14.9k
}
2243
2244
void LzmaEnc_Destruct(CLzmaEnc *p, ISzAllocPtr alloc, ISzAllocPtr allocBig)
2245
7.47k
{
2246
  #ifndef _7ZIP_ST
2247
  MatchFinderMt_Destruct(&p->matchFinderMt, allocBig);
2248
  #endif
2249
  
2250
7.47k
  MatchFinder_Free(&p->matchFinderBase, allocBig);
2251
7.47k
  LzmaEnc_FreeLits(p, alloc);
2252
7.47k
  RangeEnc_Free(&p->rc, alloc);
2253
7.47k
}
2254
2255
void LzmaEnc_Destroy(CLzmaEncHandle p, ISzAllocPtr alloc, ISzAllocPtr allocBig)
2256
7.47k
{
2257
7.47k
  LzmaEnc_Destruct((CLzmaEnc *)p, alloc, allocBig);
2258
7.47k
  ISzAlloc_Free(alloc, p);
2259
7.47k
}
2260
2261
2262
static SRes LzmaEnc_CodeOneBlock(CLzmaEnc *p, UInt32 maxPackSize, UInt32 maxUnpackSize)
2263
19.7k
{
2264
19.7k
  UInt32 nowPos32, startPos32;
2265
19.7k
  if (p->needInit)
2266
7.47k
  {
2267
7.47k
    p->matchFinder.Init(p->matchFinderObj);
2268
7.47k
    p->needInit = 0;
2269
7.47k
  }
2270
2271
19.7k
  if (p->finished)
2272
0
    return p->result;
2273
19.7k
  RINOK(CheckErrors(p));
2274
2275
19.7k
  nowPos32 = (UInt32)p->nowPos64;
2276
19.7k
  startPos32 = nowPos32;
2277
2278
19.7k
  if (p->nowPos64 == 0)
2279
7.47k
  {
2280
7.47k
    unsigned numPairs;
2281
7.47k
    Byte curByte;
2282
7.47k
    if (p->matchFinder.GetNumAvailableBytes(p->matchFinderObj) == 0)
2283
0
      return Flush(p, nowPos32);
2284
7.47k
    ReadMatchDistances(p, &numPairs);
2285
7.47k
    RangeEnc_EncodeBit_0(&p->rc, &p->isMatch[kState_Start][0]);
2286
    // p->state = kLiteralNextStates[p->state];
2287
7.47k
    curByte = *(p->matchFinder.GetPointerToCurrentPos(p->matchFinderObj) - p->additionalOffset);
2288
7.47k
    LitEnc_Encode(&p->rc, p->litProbs, curByte);
2289
7.47k
    p->additionalOffset--;
2290
7.47k
    nowPos32++;
2291
7.47k
  }
2292
2293
19.7k
  if (p->matchFinder.GetNumAvailableBytes(p->matchFinderObj) != 0)
2294
  
2295
12.2k
  for (;;)
2296
266M
  {
2297
266M
    UInt32 dist;
2298
266M
    unsigned len, posState;
2299
266M
    UInt32 range, ttt, newBound;
2300
266M
    CLzmaProb *probs;
2301
  
2302
266M
    if (p->fastMode)
2303
0
      len = GetOptimumFast(p);
2304
266M
    else
2305
266M
    {
2306
266M
      unsigned oci = p->optCur;
2307
266M
      if (p->optEnd == oci)
2308
219M
        len = GetOptimum(p, nowPos32);
2309
46.9M
      else
2310
46.9M
      {
2311
46.9M
        const COptimal *opt = &p->opt[oci];
2312
46.9M
        len = opt->len;
2313
46.9M
        p->backRes = opt->dist;
2314
46.9M
        p->optCur = oci + 1;
2315
46.9M
      }
2316
266M
    }
2317
2318
266M
    posState = (unsigned)nowPos32 & p->pbMask;
2319
266M
    range = p->rc.range;
2320
266M
    probs = &p->isMatch[p->state][posState];
2321
    
2322
266M
    RC_BIT_PRE(&p->rc, probs)
2323
    
2324
266M
    dist = p->backRes;
2325
2326
    #ifdef SHOW_STAT2
2327
    printf("\n pos = %6X, len = %3u  pos = %6u", nowPos32, len, dist);
2328
    #endif
2329
2330
266M
    if (dist == MARK_LIT)
2331
242M
    {
2332
242M
      Byte curByte;
2333
242M
      const Byte *data;
2334
242M
      unsigned state;
2335
2336
242M
      RC_BIT_0(&p->rc, probs);
2337
242M
      p->rc.range = range;
2338
242M
      data = p->matchFinder.GetPointerToCurrentPos(p->matchFinderObj) - p->additionalOffset;
2339
242M
      probs = LIT_PROBS(nowPos32, *(data - 1));
2340
242M
      curByte = *data;
2341
242M
      state = p->state;
2342
242M
      p->state = kLiteralNextStates[state];
2343
242M
      if (IsLitState(state))
2344
226M
        LitEnc_Encode(&p->rc, probs, curByte);
2345
15.6M
      else
2346
15.6M
        LitEnc_EncodeMatched(&p->rc, probs, curByte, *(data - p->reps[0]));
2347
242M
    }
2348
23.8M
    else
2349
23.8M
    {
2350
23.8M
      RC_BIT_1(&p->rc, probs);
2351
23.8M
      probs = &p->isRep[p->state];
2352
23.8M
      RC_BIT_PRE(&p->rc, probs)
2353
      
2354
23.8M
      if (dist < LZMA_NUM_REPS)
2355
15.4M
      {
2356
15.4M
        RC_BIT_1(&p->rc, probs);
2357
15.4M
        probs = &p->isRepG0[p->state];
2358
15.4M
        RC_BIT_PRE(&p->rc, probs)
2359
15.4M
        if (dist == 0)
2360
10.5M
        {
2361
10.5M
          RC_BIT_0(&p->rc, probs);
2362
10.5M
          probs = &p->isRep0Long[p->state][posState];
2363
10.5M
          RC_BIT_PRE(&p->rc, probs)
2364
10.5M
          if (len != 1)
2365
4.93M
          {
2366
4.93M
            RC_BIT_1_BASE(&p->rc, probs);
2367
4.93M
          }
2368
5.58M
          else
2369
5.58M
          {
2370
5.58M
            RC_BIT_0_BASE(&p->rc, probs);
2371
5.58M
            p->state = kShortRepNextStates[p->state];
2372
5.58M
          }
2373
10.5M
        }
2374
4.96M
        else
2375
4.96M
        {
2376
4.96M
          RC_BIT_1(&p->rc, probs);
2377
4.96M
          probs = &p->isRepG1[p->state];
2378
4.96M
          RC_BIT_PRE(&p->rc, probs)
2379
4.96M
          if (dist == 1)
2380
4.06M
          {
2381
4.06M
            RC_BIT_0_BASE(&p->rc, probs);
2382
4.06M
            dist = p->reps[1];
2383
4.06M
          }
2384
901k
          else
2385
901k
          {
2386
901k
            RC_BIT_1(&p->rc, probs);
2387
901k
            probs = &p->isRepG2[p->state];
2388
901k
            RC_BIT_PRE(&p->rc, probs)
2389
901k
            if (dist == 2)
2390
548k
            {
2391
548k
              RC_BIT_0_BASE(&p->rc, probs);
2392
548k
              dist = p->reps[2];
2393
548k
            }
2394
352k
            else
2395
352k
            {
2396
352k
              RC_BIT_1_BASE(&p->rc, probs);
2397
352k
              dist = p->reps[3];
2398
352k
              p->reps[3] = p->reps[2];
2399
352k
            }
2400
901k
            p->reps[2] = p->reps[1];
2401
901k
          }
2402
4.96M
          p->reps[1] = p->reps[0];
2403
4.96M
          p->reps[0] = dist;
2404
4.96M
        }
2405
2406
15.4M
        RC_NORM(&p->rc)
2407
2408
15.4M
        p->rc.range = range;
2409
2410
15.4M
        if (len != 1)
2411
9.90M
        {
2412
9.90M
          LenEnc_Encode(&p->repLenProbs, &p->rc, len - LZMA_MATCH_LEN_MIN, posState);
2413
9.90M
          --p->repLenEncCounter;
2414
9.90M
          p->state = kRepNextStates[p->state];
2415
9.90M
        }
2416
15.4M
      }
2417
8.34M
      else
2418
8.34M
      {
2419
8.34M
        unsigned posSlot;
2420
8.34M
        RC_BIT_0(&p->rc, probs);
2421
8.34M
        p->rc.range = range;
2422
8.34M
        p->state = kMatchNextStates[p->state];
2423
2424
8.34M
        LenEnc_Encode(&p->lenProbs, &p->rc, len - LZMA_MATCH_LEN_MIN, posState);
2425
        // --p->lenEnc.counter;
2426
2427
8.34M
        dist -= LZMA_NUM_REPS;
2428
8.34M
        p->reps[3] = p->reps[2];
2429
8.34M
        p->reps[2] = p->reps[1];
2430
8.34M
        p->reps[1] = p->reps[0];
2431
8.34M
        p->reps[0] = dist + 1;
2432
        
2433
8.34M
        p->matchPriceCount++;
2434
8.34M
        GetPosSlot(dist, posSlot);
2435
        // RcTree_Encode_PosSlot(&p->rc, p->posSlotEncoder[GetLenToPosState(len)], posSlot);
2436
8.34M
        {
2437
8.34M
          UInt32 sym = (UInt32)posSlot + (1 << kNumPosSlotBits);
2438
8.34M
          range = p->rc.range;
2439
8.34M
          probs = p->posSlotEncoder[GetLenToPosState(len)];
2440
8.34M
          do
2441
50.0M
          {
2442
50.0M
            CLzmaProb *prob = probs + (sym >> kNumPosSlotBits);
2443
50.0M
            UInt32 bit = (sym >> (kNumPosSlotBits - 1)) & 1;
2444
50.0M
            sym <<= 1;
2445
50.0M
            RC_BIT(&p->rc, prob, bit);
2446
50.0M
          }
2447
50.0M
          while (sym < (1 << kNumPosSlotBits * 2));
2448
8.34M
          p->rc.range = range;
2449
8.34M
        }
2450
        
2451
8.34M
        if (dist >= kStartPosModelIndex)
2452
7.73M
        {
2453
7.73M
          unsigned footerBits = ((posSlot >> 1) - 1);
2454
2455
7.73M
          if (dist < kNumFullDistances)
2456
1.77M
          {
2457
1.77M
            unsigned base = ((2 | (posSlot & 1)) << footerBits);
2458
1.77M
            RcTree_ReverseEncode(&p->rc, p->posEncoders + base, footerBits, (unsigned)(dist /* - base */));
2459
1.77M
          }
2460
5.95M
          else
2461
5.95M
          {
2462
5.95M
            UInt32 pos2 = (dist | 0xF) << (32 - footerBits);
2463
5.95M
            range = p->rc.range;
2464
            // RangeEnc_EncodeDirectBits(&p->rc, posReduced >> kNumAlignBits, footerBits - kNumAlignBits);
2465
            /*
2466
            do
2467
            {
2468
              range >>= 1;
2469
              p->rc.low += range & (0 - ((dist >> --footerBits) & 1));
2470
              RC_NORM(&p->rc)
2471
            }
2472
            while (footerBits > kNumAlignBits);
2473
            */
2474
5.95M
            do
2475
49.7M
            {
2476
49.7M
              range >>= 1;
2477
49.7M
              p->rc.low += range & (0 - (pos2 >> 31));
2478
49.7M
              pos2 += pos2;
2479
49.7M
              RC_NORM(&p->rc)
2480
49.7M
            }
2481
49.7M
            while (pos2 != 0xF0000000);
2482
2483
2484
            // RcTree_ReverseEncode(&p->rc, p->posAlignEncoder, kNumAlignBits, posReduced & kAlignMask);
2485
2486
5.95M
            {
2487
5.95M
              unsigned m = 1;
2488
5.95M
              unsigned bit;
2489
5.95M
              bit = dist & 1; dist >>= 1; RC_BIT(&p->rc, p->posAlignEncoder + m, bit); m = (m << 1) + bit;
2490
5.95M
              bit = dist & 1; dist >>= 1; RC_BIT(&p->rc, p->posAlignEncoder + m, bit); m = (m << 1) + bit;
2491
5.95M
              bit = dist & 1; dist >>= 1; RC_BIT(&p->rc, p->posAlignEncoder + m, bit); m = (m << 1) + bit;
2492
5.95M
              bit = dist & 1;             RC_BIT(&p->rc, p->posAlignEncoder + m, bit);
2493
5.95M
              p->rc.range = range;
2494
              // p->alignPriceCount++;
2495
5.95M
            }
2496
5.95M
          }
2497
7.73M
        }
2498
8.34M
      }
2499
23.8M
    }
2500
2501
266M
    nowPos32 += (UInt32)len;
2502
266M
    p->additionalOffset -= len;
2503
    
2504
266M
    if (p->additionalOffset == 0)
2505
218M
    {
2506
218M
      UInt32 processed;
2507
2508
218M
      if (!p->fastMode)
2509
218M
      {
2510
        /*
2511
        if (p->alignPriceCount >= 16) // kAlignTableSize
2512
          FillAlignPrices(p);
2513
        if (p->matchPriceCount >= 128)
2514
          FillDistancesPrices(p);
2515
        if (p->lenEnc.counter <= 0)
2516
          LenPriceEnc_UpdateTables(&p->lenEnc, 1 << p->pb, &p->lenProbs, p->ProbPrices);
2517
        */
2518
218M
        if (p->matchPriceCount >= 64)
2519
107k
        {
2520
107k
          FillAlignPrices(p);
2521
          // { int y; for (y = 0; y < 100; y++) {
2522
107k
          FillDistancesPrices(p);
2523
          // }}
2524
107k
          LenPriceEnc_UpdateTables(&p->lenEnc, 1 << p->pb, &p->lenProbs, p->ProbPrices);
2525
107k
        }
2526
218M
        if (p->repLenEncCounter <= 0)
2527
85.0k
        {
2528
85.0k
          p->repLenEncCounter = REP_LEN_COUNT;
2529
85.0k
          LenPriceEnc_UpdateTables(&p->repLenEnc, 1 << p->pb, &p->repLenProbs, p->ProbPrices);
2530
85.0k
        }
2531
218M
      }
2532
    
2533
218M
      if (p->matchFinder.GetNumAvailableBytes(p->matchFinderObj) == 0)
2534
7.47k
        break;
2535
218M
      processed = nowPos32 - startPos32;
2536
      
2537
218M
      if (maxPackSize)
2538
218M
      {
2539
218M
        if (processed + kNumOpts + 300 >= maxUnpackSize
2540
218M
            || RangeEnc_GetProcessed_sizet(&p->rc) + kPackReserve >= maxPackSize)
2541
4.76k
          break;
2542
218M
      }
2543
0
      else if (processed >= (1 << 17))
2544
0
      {
2545
0
        p->nowPos64 += nowPos32 - startPos32;
2546
0
        return CheckErrors(p);
2547
0
      }
2548
218M
    }
2549
266M
  }
2550
2551
19.7k
  p->nowPos64 += nowPos32 - startPos32;
2552
19.7k
  return Flush(p, nowPos32);
2553
19.7k
}
2554
2555
2556
2557
7.47k
#define kBigHashDicLimit ((UInt32)1 << 24)
2558
2559
static SRes LzmaEnc_Alloc(CLzmaEnc *p, UInt32 keepWindowSize, ISzAllocPtr alloc, ISzAllocPtr allocBig)
2560
7.47k
{
2561
7.47k
  UInt32 beforeSize = kNumOpts;
2562
7.47k
  if (!RangeEnc_Alloc(&p->rc, alloc))
2563
0
    return SZ_ERROR_MEM;
2564
2565
  #ifndef _7ZIP_ST
2566
  p->mtMode = (p->multiThread && !p->fastMode && (p->matchFinderBase.btMode != 0));
2567
  #endif
2568
2569
7.47k
  {
2570
7.47k
    unsigned lclp = p->lc + p->lp;
2571
7.47k
    if (!p->litProbs || !p->saveState.litProbs || p->lclp != lclp)
2572
7.47k
    {
2573
7.47k
      LzmaEnc_FreeLits(p, alloc);
2574
7.47k
      p->litProbs = (CLzmaProb *)ISzAlloc_Alloc(alloc, ((UInt32)0x300 << lclp) * sizeof(CLzmaProb));
2575
7.47k
      p->saveState.litProbs = (CLzmaProb *)ISzAlloc_Alloc(alloc, ((UInt32)0x300 << lclp) * sizeof(CLzmaProb));
2576
7.47k
      if (!p->litProbs || !p->saveState.litProbs)
2577
0
      {
2578
0
        LzmaEnc_FreeLits(p, alloc);
2579
0
        return SZ_ERROR_MEM;
2580
0
      }
2581
7.47k
      p->lclp = lclp;
2582
7.47k
    }
2583
7.47k
  }
2584
2585
7.47k
  p->matchFinderBase.bigHash = (Byte)(p->dictSize > kBigHashDicLimit ? 1 : 0);
2586
2587
7.47k
  if (beforeSize + p->dictSize < keepWindowSize)
2588
0
    beforeSize = keepWindowSize - p->dictSize;
2589
2590
  #ifndef _7ZIP_ST
2591
  if (p->mtMode)
2592
  {
2593
    RINOK(MatchFinderMt_Create(&p->matchFinderMt, p->dictSize, beforeSize, p->numFastBytes,
2594
        LZMA_MATCH_LEN_MAX
2595
        + 1  /* 18.04 */
2596
        , allocBig));
2597
    p->matchFinderObj = &p->matchFinderMt;
2598
    p->matchFinderBase.bigHash = (Byte)(
2599
        (p->dictSize > kBigHashDicLimit && p->matchFinderBase.hashMask >= 0xFFFFFF) ? 1 : 0);
2600
    MatchFinderMt_CreateVTable(&p->matchFinderMt, &p->matchFinder);
2601
  }
2602
  else
2603
  #endif
2604
7.47k
  {
2605
7.47k
    if (!MatchFinder_Create(&p->matchFinderBase, p->dictSize, beforeSize, p->numFastBytes, LZMA_MATCH_LEN_MAX, allocBig))
2606
0
      return SZ_ERROR_MEM;
2607
7.47k
    p->matchFinderObj = &p->matchFinderBase;
2608
7.47k
    MatchFinder_CreateVTable(&p->matchFinderBase, &p->matchFinder);
2609
7.47k
  }
2610
  
2611
7.47k
  return SZ_OK;
2612
7.47k
}
2613
2614
void LzmaEnc_Init(CLzmaEnc *p)
2615
17.9k
{
2616
17.9k
  unsigned i;
2617
17.9k
  p->state = 0;
2618
17.9k
  p->reps[0] =
2619
17.9k
  p->reps[1] =
2620
17.9k
  p->reps[2] =
2621
17.9k
  p->reps[3] = 1;
2622
2623
17.9k
  RangeEnc_Init(&p->rc);
2624
2625
305k
  for (i = 0; i < (1 << kNumAlignBits); i++)
2626
287k
    p->posAlignEncoder[i] = kProbInitValue;
2627
2628
233k
  for (i = 0; i < kNumStates; i++)
2629
215k
  {
2630
215k
    unsigned j;
2631
3.67M
    for (j = 0; j < LZMA_NUM_PB_STATES_MAX; j++)
2632
3.45M
    {
2633
3.45M
      p->isMatch[i][j] = kProbInitValue;
2634
3.45M
      p->isRep0Long[i][j] = kProbInitValue;
2635
3.45M
    }
2636
215k
    p->isRep[i] = kProbInitValue;
2637
215k
    p->isRepG0[i] = kProbInitValue;
2638
215k
    p->isRepG1[i] = kProbInitValue;
2639
215k
    p->isRepG2[i] = kProbInitValue;
2640
215k
  }
2641
2642
17.9k
  {
2643
89.9k
    for (i = 0; i < kNumLenToPosStates; i++)
2644
71.9k
    {
2645
71.9k
      CLzmaProb *probs = p->posSlotEncoder[i];
2646
71.9k
      unsigned j;
2647
4.67M
      for (j = 0; j < (1 << kNumPosSlotBits); j++)
2648
4.60M
        probs[j] = kProbInitValue;
2649
71.9k
    }
2650
17.9k
  }
2651
17.9k
  {
2652
2.32M
    for (i = 0; i < kNumFullDistances; i++)
2653
2.30M
      p->posEncoders[i] = kProbInitValue;
2654
17.9k
  }
2655
2656
17.9k
  {
2657
17.9k
    UInt32 num = (UInt32)0x300 << (p->lp + p->lc);
2658
17.9k
    UInt32 k;
2659
17.9k
    CLzmaProb *probs = p->litProbs;
2660
110M
    for (k = 0; k < num; k++)
2661
110M
      probs[k] = kProbInitValue;
2662
17.9k
  }
2663
2664
2665
17.9k
  LenEnc_Init(&p->lenProbs);
2666
17.9k
  LenEnc_Init(&p->repLenProbs);
2667
2668
17.9k
  p->optEnd = 0;
2669
17.9k
  p->optCur = 0;
2670
2671
17.9k
  {
2672
36.8M
    for (i = 0; i < kNumOpts; i++)
2673
36.8M
      p->opt[i].price = kInfinityPrice;
2674
17.9k
  }
2675
2676
17.9k
  p->additionalOffset = 0;
2677
2678
17.9k
  p->pbMask = (1 << p->pb) - 1;
2679
17.9k
  p->lpMask = ((UInt32)0x100 << p->lp) - ((unsigned)0x100 >> p->lc);
2680
17.9k
}
2681
2682
2683
void LzmaEnc_InitPrices(CLzmaEnc *p)
2684
27.1k
{
2685
27.1k
  if (!p->fastMode)
2686
27.1k
  {
2687
27.1k
    FillDistancesPrices(p);
2688
27.1k
    FillAlignPrices(p);
2689
27.1k
  }
2690
2691
27.1k
  p->lenEnc.tableSize =
2692
27.1k
  p->repLenEnc.tableSize =
2693
27.1k
      p->numFastBytes + 1 - LZMA_MATCH_LEN_MIN;
2694
2695
27.1k
  p->repLenEncCounter = REP_LEN_COUNT;
2696
2697
27.1k
  LenPriceEnc_UpdateTables(&p->lenEnc, 1 << p->pb, &p->lenProbs, p->ProbPrices);
2698
27.1k
  LenPriceEnc_UpdateTables(&p->repLenEnc, 1 << p->pb, &p->repLenProbs, p->ProbPrices);
2699
27.1k
}
2700
2701
static SRes LzmaEnc_AllocAndInit(CLzmaEnc *p, UInt32 keepWindowSize, ISzAllocPtr alloc, ISzAllocPtr allocBig)
2702
7.47k
{
2703
7.47k
  unsigned i;
2704
134k
  for (i = kEndPosModelIndex / 2; i < kDicLogSizeMax; i++)
2705
134k
    if (p->dictSize <= ((UInt32)1 << i))
2706
7.47k
      break;
2707
7.47k
  p->distTableSize = i * 2;
2708
2709
7.47k
  p->finished = False;
2710
7.47k
  p->result = SZ_OK;
2711
7.47k
  RINOK(LzmaEnc_Alloc(p, keepWindowSize, alloc, allocBig));
2712
7.47k
  LzmaEnc_Init(p);
2713
7.47k
  LzmaEnc_InitPrices(p);
2714
7.47k
  p->nowPos64 = 0;
2715
7.47k
  return SZ_OK;
2716
7.47k
}
2717
2718
static SRes LzmaEnc_Prepare(CLzmaEncHandle pp, ISeqOutStream *outStream, ISeqInStream *inStream,
2719
    ISzAllocPtr alloc, ISzAllocPtr allocBig)
2720
0
{
2721
0
  CLzmaEnc *p = (CLzmaEnc *)pp;
2722
0
  p->matchFinderBase.stream = inStream;
2723
0
  p->needInit = 1;
2724
0
  p->rc.outStream = outStream;
2725
0
  return LzmaEnc_AllocAndInit(p, 0, alloc, allocBig);
2726
0
}
2727
2728
SRes LzmaEnc_PrepareForLzma2(CLzmaEncHandle pp,
2729
    ISeqInStream *inStream, UInt32 keepWindowSize,
2730
    ISzAllocPtr alloc, ISzAllocPtr allocBig)
2731
7.47k
{
2732
7.47k
  CLzmaEnc *p = (CLzmaEnc *)pp;
2733
7.47k
  p->matchFinderBase.stream = inStream;
2734
7.47k
  p->needInit = 1;
2735
7.47k
  return LzmaEnc_AllocAndInit(p, keepWindowSize, alloc, allocBig);
2736
7.47k
}
2737
2738
static void LzmaEnc_SetInputBuf(CLzmaEnc *p, const Byte *src, SizeT srcLen)
2739
0
{
2740
0
  p->matchFinderBase.directInput = 1;
2741
0
  p->matchFinderBase.bufferBase = (Byte *)src;
2742
0
  p->matchFinderBase.directInputRem = srcLen;
2743
0
}
2744
2745
SRes LzmaEnc_MemPrepare(CLzmaEncHandle pp, const Byte *src, SizeT srcLen,
2746
    UInt32 keepWindowSize, ISzAllocPtr alloc, ISzAllocPtr allocBig)
2747
0
{
2748
0
  CLzmaEnc *p = (CLzmaEnc *)pp;
2749
0
  LzmaEnc_SetInputBuf(p, src, srcLen);
2750
0
  p->needInit = 1;
2751
2752
0
  LzmaEnc_SetDataSize(pp, srcLen);
2753
0
  return LzmaEnc_AllocAndInit(p, keepWindowSize, alloc, allocBig);
2754
0
}
2755
2756
void LzmaEnc_Finish(CLzmaEncHandle pp)
2757
7.47k
{
2758
  #ifndef _7ZIP_ST
2759
  CLzmaEnc *p = (CLzmaEnc *)pp;
2760
  if (p->mtMode)
2761
    MatchFinderMt_ReleaseStream(&p->matchFinderMt);
2762
  #else
2763
7.47k
  UNUSED_VAR(pp);
2764
7.47k
  #endif
2765
7.47k
}
2766
2767
2768
typedef struct
2769
{
2770
  ISeqOutStream vt;
2771
  Byte *data;
2772
  SizeT rem;
2773
  BoolInt overflow;
2774
} CLzmaEnc_SeqOutStreamBuf;
2775
2776
static size_t SeqOutStreamBuf_Write(const ISeqOutStream *pp, const void *data, size_t size)
2777
19.7k
{
2778
19.7k
  CLzmaEnc_SeqOutStreamBuf *p = CONTAINER_FROM_VTBL(pp, CLzmaEnc_SeqOutStreamBuf, vt);
2779
19.7k
  if (p->rem < size)
2780
0
  {
2781
0
    size = p->rem;
2782
0
    p->overflow = True;
2783
0
  }
2784
19.7k
  memcpy(p->data, data, size);
2785
19.7k
  p->rem -= size;
2786
19.7k
  p->data += size;
2787
19.7k
  return size;
2788
19.7k
}
2789
2790
2791
UInt32 LzmaEnc_GetNumAvailableBytes(CLzmaEncHandle pp)
2792
0
{
2793
0
  const CLzmaEnc *p = (CLzmaEnc *)pp;
2794
0
  return p->matchFinder.GetNumAvailableBytes(p->matchFinderObj);
2795
0
}
2796
2797
2798
const Byte *LzmaEnc_GetCurBuf(CLzmaEncHandle pp)
2799
4.23k
{
2800
4.23k
  const CLzmaEnc *p = (CLzmaEnc *)pp;
2801
4.23k
  return p->matchFinder.GetPointerToCurrentPos(p->matchFinderObj) - p->additionalOffset;
2802
4.23k
}
2803
2804
2805
SRes LzmaEnc_CodeOneMemBlock(CLzmaEncHandle pp, BoolInt reInit,
2806
    Byte *dest, size_t *destLen, UInt32 desiredPackSize, UInt32 *unpackSize)
2807
19.7k
{
2808
19.7k
  CLzmaEnc *p = (CLzmaEnc *)pp;
2809
19.7k
  UInt64 nowPos64;
2810
19.7k
  SRes res;
2811
19.7k
  CLzmaEnc_SeqOutStreamBuf outStream;
2812
2813
19.7k
  outStream.vt.Write = SeqOutStreamBuf_Write;
2814
19.7k
  outStream.data = dest;
2815
19.7k
  outStream.rem = *destLen;
2816
19.7k
  outStream.overflow = False;
2817
2818
19.7k
  p->writeEndMark = False;
2819
19.7k
  p->finished = False;
2820
19.7k
  p->result = SZ_OK;
2821
2822
19.7k
  if (reInit)
2823
10.5k
    LzmaEnc_Init(p);
2824
19.7k
  LzmaEnc_InitPrices(p);
2825
2826
19.7k
  nowPos64 = p->nowPos64;
2827
19.7k
  RangeEnc_Init(&p->rc);
2828
19.7k
  p->rc.outStream = &outStream.vt;
2829
2830
19.7k
  if (desiredPackSize == 0)
2831
0
    return SZ_ERROR_OUTPUT_EOF;
2832
2833
19.7k
  res = LzmaEnc_CodeOneBlock(p, desiredPackSize, *unpackSize);
2834
  
2835
19.7k
  *unpackSize = (UInt32)(p->nowPos64 - nowPos64);
2836
19.7k
  *destLen -= outStream.rem;
2837
19.7k
  if (outStream.overflow)
2838
0
    return SZ_ERROR_OUTPUT_EOF;
2839
2840
19.7k
  return res;
2841
19.7k
}
2842
2843
2844
static SRes LzmaEnc_Encode2(CLzmaEnc *p, ICompressProgress *progress)
2845
0
{
2846
0
  SRes res = SZ_OK;
2847
2848
  #ifndef _7ZIP_ST
2849
  Byte allocaDummy[0x300];
2850
  allocaDummy[0] = 0;
2851
  allocaDummy[1] = allocaDummy[0];
2852
  #endif
2853
2854
0
  for (;;)
2855
0
  {
2856
0
    res = LzmaEnc_CodeOneBlock(p, 0, 0);
2857
0
    if (res != SZ_OK || p->finished)
2858
0
      break;
2859
0
    if (progress)
2860
0
    {
2861
0
      res = ICompressProgress_Progress(progress, p->nowPos64, RangeEnc_GetProcessed(&p->rc));
2862
0
      if (res != SZ_OK)
2863
0
      {
2864
0
        res = SZ_ERROR_PROGRESS;
2865
0
        break;
2866
0
      }
2867
0
    }
2868
0
  }
2869
  
2870
0
  LzmaEnc_Finish(p);
2871
2872
  /*
2873
  if (res == SZ_OK && !Inline_MatchFinder_IsFinishedOK(&p->matchFinderBase))
2874
    res = SZ_ERROR_FAIL;
2875
  }
2876
  */
2877
2878
0
  return res;
2879
0
}
2880
2881
2882
SRes LzmaEnc_Encode(CLzmaEncHandle pp, ISeqOutStream *outStream, ISeqInStream *inStream, ICompressProgress *progress,
2883
    ISzAllocPtr alloc, ISzAllocPtr allocBig)
2884
0
{
2885
0
  RINOK(LzmaEnc_Prepare(pp, outStream, inStream, alloc, allocBig));
2886
0
  return LzmaEnc_Encode2((CLzmaEnc *)pp, progress);
2887
0
}
2888
2889
2890
SRes LzmaEnc_WriteProperties(CLzmaEncHandle pp, Byte *props, SizeT *size)
2891
7.47k
{
2892
7.47k
  CLzmaEnc *p = (CLzmaEnc *)pp;
2893
7.47k
  unsigned i;
2894
7.47k
  UInt32 dictSize = p->dictSize;
2895
7.47k
  if (*size < LZMA_PROPS_SIZE)
2896
0
    return SZ_ERROR_PARAM;
2897
7.47k
  *size = LZMA_PROPS_SIZE;
2898
7.47k
  props[0] = (Byte)((p->pb * 5 + p->lp) * 9 + p->lc);
2899
2900
7.47k
  if (dictSize >= ((UInt32)1 << 22))
2901
7.47k
  {
2902
7.47k
    UInt32 kDictMask = ((UInt32)1 << 20) - 1;
2903
7.47k
    if (dictSize < (UInt32)0xFFFFFFFF - kDictMask)
2904
7.47k
      dictSize = (dictSize + kDictMask) & ~kDictMask;
2905
7.47k
  }
2906
0
  else for (i = 11; i <= 30; i++)
2907
0
  {
2908
0
    if (dictSize <= ((UInt32)2 << i)) { dictSize = (2 << i); break; }
2909
0
    if (dictSize <= ((UInt32)3 << i)) { dictSize = (3 << i); break; }
2910
0
  }
2911
2912
37.3k
  for (i = 0; i < 4; i++)
2913
29.9k
    props[1 + i] = (Byte)(dictSize >> (8 * i));
2914
7.47k
  return SZ_OK;
2915
7.47k
}
2916
2917
2918
unsigned LzmaEnc_IsWriteEndMark(CLzmaEncHandle pp)
2919
0
{
2920
0
  return ((CLzmaEnc *)pp)->writeEndMark;
2921
0
}
2922
2923
2924
SRes LzmaEnc_MemEncode(CLzmaEncHandle pp, Byte *dest, SizeT *destLen, const Byte *src, SizeT srcLen,
2925
    int writeEndMark, ICompressProgress *progress, ISzAllocPtr alloc, ISzAllocPtr allocBig)
2926
0
{
2927
0
  SRes res;
2928
0
  CLzmaEnc *p = (CLzmaEnc *)pp;
2929
2930
0
  CLzmaEnc_SeqOutStreamBuf outStream;
2931
2932
0
  outStream.vt.Write = SeqOutStreamBuf_Write;
2933
0
  outStream.data = dest;
2934
0
  outStream.rem = *destLen;
2935
0
  outStream.overflow = False;
2936
2937
0
  p->writeEndMark = writeEndMark;
2938
0
  p->rc.outStream = &outStream.vt;
2939
2940
0
  res = LzmaEnc_MemPrepare(pp, src, srcLen, 0, alloc, allocBig);
2941
  
2942
0
  if (res == SZ_OK)
2943
0
  {
2944
0
    res = LzmaEnc_Encode2(p, progress);
2945
0
    if (res == SZ_OK && p->nowPos64 != srcLen)
2946
0
      res = SZ_ERROR_FAIL;
2947
0
  }
2948
2949
0
  *destLen -= outStream.rem;
2950
0
  if (outStream.overflow)
2951
0
    return SZ_ERROR_OUTPUT_EOF;
2952
0
  return res;
2953
0
}
2954
2955
2956
SRes LzmaEncode(Byte *dest, SizeT *destLen, const Byte *src, SizeT srcLen,
2957
    const CLzmaEncProps *props, Byte *propsEncoded, SizeT *propsSize, int writeEndMark,
2958
    ICompressProgress *progress, ISzAllocPtr alloc, ISzAllocPtr allocBig)
2959
0
{
2960
0
  CLzmaEnc *p = (CLzmaEnc *)LzmaEnc_Create(alloc);
2961
0
  SRes res;
2962
0
  if (!p)
2963
0
    return SZ_ERROR_MEM;
2964
2965
0
  res = LzmaEnc_SetProps(p, props);
2966
0
  if (res == SZ_OK)
2967
0
  {
2968
0
    res = LzmaEnc_WriteProperties(p, propsEncoded, propsSize);
2969
0
    if (res == SZ_OK)
2970
0
      res = LzmaEnc_MemEncode(p, dest, destLen, src, srcLen,
2971
0
          writeEndMark, progress, alloc, allocBig);
2972
0
  }
2973
2974
0
  LzmaEnc_Destroy(p, alloc, allocBig);
2975
0
  return res;
2976
0
}