Coverage Report

Created: 2025-12-03 07:28

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/bzip2/blocksort.c
Line
Count
Source
1
2
/*-------------------------------------------------------------*/
3
/*--- Block sorting machinery                               ---*/
4
/*---                                           blocksort.c ---*/
5
/*-------------------------------------------------------------*/
6
7
/* ------------------------------------------------------------------
8
   This file is part of bzip2/libbzip2, a program and library for
9
   lossless, block-sorting data compression.
10
11
   bzip2/libbzip2 version 1.0.6 of 6 September 2010
12
   Copyright (C) 1996-2010 Julian Seward <jseward@acm.org>
13
14
   Please read the WARNING, DISCLAIMER and PATENTS sections in the 
15
   README file.
16
17
   This program is released under the terms of the license contained
18
   in the file LICENSE.
19
   ------------------------------------------------------------------ */
20
21
22
#include "bzlib_private.h"
23
24
/*---------------------------------------------*/
25
/*--- Fallback O(N log(N)^2) sorting        ---*/
26
/*--- algorithm, for repetitive blocks      ---*/
27
/*---------------------------------------------*/
28
29
/*---------------------------------------------*/
30
static 
31
__inline__
32
void fallbackSimpleSort ( UInt32* fmap, 
33
                          UInt32* eclass, 
34
                          Int32   lo, 
35
                          Int32   hi )
36
98.8M
{
37
98.8M
   Int32 i, j, tmp;
38
98.8M
   UInt32 ec_tmp;
39
40
98.8M
   if (lo == hi) return;
41
42
96.2M
   if (hi - lo > 3) {
43
87.3M
      for ( i = hi-4; i >= lo; i-- ) {
44
66.5M
         tmp = fmap[i];
45
66.5M
         ec_tmp = eclass[tmp];
46
87.9M
         for ( j = i+4; j <= hi && ec_tmp > eclass[fmap[j]]; j += 4 )
47
21.3M
            fmap[j-4] = fmap[j];
48
66.5M
         fmap[j-4] = tmp;
49
66.5M
      }
50
20.7M
   }
51
52
322M
   for ( i = hi-1; i >= lo; i-- ) {
53
226M
      tmp = fmap[i];
54
226M
      ec_tmp = eclass[tmp];
55
329M
      for ( j = i+1; j <= hi && ec_tmp > eclass[fmap[j]]; j++ )
56
102M
         fmap[j-1] = fmap[j];
57
226M
      fmap[j-1] = tmp;
58
226M
   }
59
96.2M
}
60
61
62
/*---------------------------------------------*/
63
#define fswap(zz1, zz2) \
64
1.17G
   { Int32 zztmp = zz1; zz1 = zz2; zz2 = zztmp; }
65
66
40.7M
#define fvswap(zzp1, zzp2, zzn)       \
67
40.7M
{                                     \
68
40.7M
   Int32 yyp1 = (zzp1);               \
69
40.7M
   Int32 yyp2 = (zzp2);               \
70
40.7M
   Int32 yyn  = (zzn);                \
71
216M
   while (yyn > 0) {                  \
72
175M
      fswap(fmap[yyp1], fmap[yyp2]);  \
73
175M
      yyp1++; yyp2++; yyn--;          \
74
175M
   }                                  \
75
40.7M
}
76
77
78
40.7M
#define fmin(a,b) ((a) < (b)) ? (a) : (b)
79
80
120M
#define fpush(lz,hz) { stackLo[sp] = lz; \
81
120M
                       stackHi[sp] = hz; \
82
120M
                       sp++; }
83
84
120M
#define fpop(lz,hz) { sp--;              \
85
120M
                      lz = stackLo[sp];  \
86
120M
                      hz = stackHi[sp]; }
87
88
120M
#define FALLBACK_QSORT_SMALL_THRESH 10
89
#define FALLBACK_QSORT_STACK_SIZE   100
90
91
92
static
93
void fallbackQSort3 ( UInt32* fmap, 
94
                      UInt32* eclass,
95
                      Int32   loSt, 
96
                      Int32   hiSt )
97
80.0M
{
98
80.0M
   Int32 unLo, unHi, ltLo, gtHi, n, m;
99
80.0M
   Int32 sp, lo, hi;
100
80.0M
   UInt32 med, r, r3;
101
80.0M
   Int32 stackLo[FALLBACK_QSORT_STACK_SIZE];
102
80.0M
   Int32 stackHi[FALLBACK_QSORT_STACK_SIZE];
103
104
80.0M
   r = 0;
105
106
80.0M
   sp = 0;
107
80.0M
   fpush ( loSt, hiSt );
108
109
200M
   while (sp > 0) {
110
111
120M
      AssertH ( sp < FALLBACK_QSORT_STACK_SIZE - 1, 1004 );
112
113
120M
      fpop ( lo, hi );
114
120M
      if (hi - lo < FALLBACK_QSORT_SMALL_THRESH) {
115
98.8M
         fallbackSimpleSort ( fmap, eclass, lo, hi );
116
98.8M
         continue;
117
98.8M
      }
118
119
      /* Random partitioning.  Median of 3 sometimes fails to
120
         avoid bad cases.  Median of 9 seems to help but 
121
         looks rather expensive.  This too seems to work but
122
         is cheaper.  Guidance for the magic constants 
123
         7621 and 32768 is taken from Sedgewick's algorithms
124
         book, chapter 35.
125
      */
126
21.8M
      r = ((r * 7621) + 1) % 32768;
127
21.8M
      r3 = r % 3;
128
21.8M
      if (r3 == 0) med = eclass[fmap[lo]]; else
129
19.3M
      if (r3 == 1) med = eclass[fmap[(lo+hi)>>1]]; else
130
7.37M
                   med = eclass[fmap[hi]];
131
132
21.8M
      unLo = ltLo = lo;
133
21.8M
      unHi = gtHi = hi;
134
135
112M
      while (1) {
136
1.13G
         while (1) {
137
1.13G
            if (unLo > unHi) break;
138
1.11G
            n = (Int32)eclass[fmap[unLo]] - (Int32)med;
139
1.11G
            if (n == 0) { 
140
722M
               fswap(fmap[unLo], fmap[ltLo]); 
141
722M
               ltLo++; unLo++; 
142
722M
               continue; 
143
722M
            };
144
396M
            if (n > 0) break;
145
295M
            unLo++;
146
295M
         }
147
594M
         while (1) {
148
594M
            if (unLo > unHi) break;
149
572M
            n = (Int32)eclass[fmap[unHi]] - (Int32)med;
150
572M
            if (n == 0) { 
151
183M
               fswap(fmap[unHi], fmap[gtHi]); 
152
183M
               gtHi--; unHi--; 
153
183M
               continue; 
154
389M
            };
155
389M
            if (n < 0) break;
156
298M
            unHi--;
157
298M
         }
158
112M
         if (unLo > unHi) break;
159
90.7M
         fswap(fmap[unLo], fmap[unHi]); unLo++; unHi--;
160
90.7M
      }
161
162
21.8M
      AssertD ( unHi == unLo-1, "fallbackQSort3(2)" );
163
164
21.8M
      if (gtHi < ltLo) continue;
165
166
20.3M
      n = fmin(ltLo-lo, unLo-ltLo); fvswap(lo, unLo-n, n);
167
20.3M
      m = fmin(hi-gtHi, gtHi-unHi); fvswap(unLo, hi-m+1, m);
168
169
20.3M
      n = lo + unLo - ltLo - 1;
170
20.3M
      m = hi - (gtHi - unHi) + 1;
171
172
20.3M
      if (n - lo > hi - m) {
173
10.2M
         fpush ( lo, n );
174
10.2M
         fpush ( m, hi );
175
10.2M
      } else {
176
10.1M
         fpush ( m, hi );
177
10.1M
         fpush ( lo, n );
178
10.1M
      }
179
20.3M
   }
180
80.0M
}
181
182
#undef fmin
183
#undef fpush
184
#undef fpop
185
#undef fswap
186
#undef fvswap
187
#undef FALLBACK_QSORT_SMALL_THRESH
188
#undef FALLBACK_QSORT_STACK_SIZE
189
190
191
/*---------------------------------------------*/
192
/* Pre:
193
      nblock > 0
194
      eclass exists for [0 .. nblock-1]
195
      ((UChar*)eclass) [0 .. nblock-1] holds block
196
      ptr exists for [0 .. nblock-1]
197
198
   Post:
199
      ((UChar*)eclass) [0 .. nblock-1] holds block
200
      All other areas of eclass destroyed
201
      fmap [0 .. nblock-1] holds sorted order
202
      bhtab [ 0 .. 2+(nblock/32) ] destroyed
203
*/
204
205
240M
#define       SET_BH(zz)  bhtab[(zz) >> 5] |= ((UInt32)1 << ((zz) & 31))
206
2.64M
#define     CLEAR_BH(zz)  bhtab[(zz) >> 5] &= ~((UInt32)1 << ((zz) & 31))
207
3.17G
#define     ISSET_BH(zz)  (bhtab[(zz) >> 5] & ((UInt32)1 << ((zz) & 31)))
208
52.6M
#define      WORD_BH(zz)  bhtab[(zz) >> 5]
209
456M
#define UNALIGNED_BH(zz)  ((zz) & 0x01f)
210
211
static
212
void fallbackSort ( UInt32* fmap, 
213
                    UInt32* eclass, 
214
                    UInt32* bhtab,
215
                    Int32   nblock,
216
                    Int32   verb )
217
82.5k
{
218
82.5k
   Int32 ftab[257];
219
82.5k
   Int32 ftabCopy[256];
220
82.5k
   Int32 H, i, j, k, l, r, cc, cc1;
221
82.5k
   Int32 nNotDone;
222
82.5k
   Int32 nBhtab;
223
82.5k
   UChar* eclass8 = (UChar*)eclass;
224
225
   /*--
226
      Initial 1-char radix sort to generate
227
      initial fmap and initial BH bits.
228
   --*/
229
82.5k
   if (verb >= 4)
230
0
      VPrintf0 ( "        bucket sorting ...\n" );
231
21.3M
   for (i = 0; i < 257;    i++) ftab[i] = 0;
232
144M
   for (i = 0; i < nblock; i++) ftab[eclass8[i]]++;
233
21.2M
   for (i = 0; i < 256;    i++) ftabCopy[i] = ftab[i];
234
21.2M
   for (i = 1; i < 257;    i++) ftab[i] += ftab[i-1];
235
236
144M
   for (i = 0; i < nblock; i++) {
237
144M
      j = eclass8[i];
238
144M
      k = ftab[j] - 1;
239
144M
      ftab[j] = k;
240
144M
      fmap[k] = i;
241
144M
   }
242
243
82.5k
   nBhtab = 2 + (nblock / 32);
244
4.73M
   for (i = 0; i < nBhtab; i++) bhtab[i] = 0;
245
21.2M
   for (i = 0; i < 256; i++) SET_BH(ftab[i]);
246
247
   /*--
248
      Inductively refine the buckets.  Kind-of an
249
      "exponential radix sort" (!), inspired by the
250
      Manber-Myers suffix array construction algorithm.
251
   --*/
252
253
   /*-- set sentinel bits for block-end detection --*/
254
2.72M
   for (i = 0; i < 32; i++) { 
255
2.64M
      SET_BH(nblock + 2*i);
256
2.64M
      CLEAR_BH(nblock + 2*i + 1);
257
2.64M
   }
258
259
   /*-- the log(N) loop --*/
260
82.5k
   H = 1;
261
518k
   while (1) {
262
263
518k
      if (verb >= 4) 
264
0
         VPrintf1 ( "        depth %6d has ", H );
265
266
518k
      j = 0;
267
1.67G
      for (i = 0; i < nblock; i++) {
268
1.66G
         if (ISSET_BH(i)) j = i;
269
1.66G
         k = fmap[i] - H; if (k < 0) k += nblock;
270
1.66G
         eclass[k] = j;
271
1.66G
      }
272
273
518k
      nNotDone = 0;
274
518k
      r = -1;
275
80.5M
      while (1) {
276
277
   /*-- find the next non-singleton bucket --*/
278
80.5M
         k = r + 1;
279
296M
         while (ISSET_BH(k) && UNALIGNED_BH(k)) k++;
280
80.5M
         if (ISSET_BH(k)) {
281
16.8M
            while (WORD_BH(k) == 0xffffffff) k += 32;
282
64.9M
            while (ISSET_BH(k)) k++;
283
8.94M
         }
284
80.5M
         l = k - 1;
285
80.5M
         if (l >= nblock) break;
286
302M
         while (!ISSET_BH(k) && UNALIGNED_BH(k)) k++;
287
80.0M
         if (!ISSET_BH(k)) {
288
35.7M
            while (WORD_BH(k) == 0x00000000) k += 32;
289
81.2M
            while (!ISSET_BH(k)) k++;
290
9.17M
         }
291
80.0M
         r = k - 1;
292
80.0M
         if (r >= nblock) break;
293
294
         /*-- now [l, r] bracket current bucket --*/
295
80.0M
         if (r > l) {
296
80.0M
            nNotDone += (r - l + 1);
297
80.0M
            fallbackQSort3 ( fmap, eclass, l, r );
298
299
            /*-- scan bucket and generate header bits-- */
300
80.0M
            cc = -1;
301
1.30G
            for (i = l; i <= r; i++) {
302
1.22G
               cc1 = eclass[fmap[i]];
303
1.22G
               if (cc != cc1) { SET_BH(i); cc = cc1; };
304
1.22G
            }
305
80.0M
         }
306
80.0M
      }
307
308
518k
      if (verb >= 4) 
309
0
         VPrintf1 ( "%6d unresolved strings\n", nNotDone );
310
311
518k
      H *= 2;
312
518k
      if (H > nblock || nNotDone == 0) break;
313
518k
   }
314
315
   /*-- 
316
      Reconstruct the original block in
317
      eclass8 [0 .. nblock-1], since the
318
      previous phase destroyed it.
319
   --*/
320
82.5k
   if (verb >= 4)
321
0
      VPrintf0 ( "        reconstructing block ...\n" );
322
82.5k
   j = 0;
323
144M
   for (i = 0; i < nblock; i++) {
324
158M
      while (ftabCopy[j] == 0) j++;
325
144M
      ftabCopy[j]--;
326
144M
      eclass8[fmap[i]] = (UChar)j;
327
144M
   }
328
82.5k
   AssertH ( j < 256, 1005 );
329
82.5k
}
330
331
#undef       SET_BH
332
#undef     CLEAR_BH
333
#undef     ISSET_BH
334
#undef      WORD_BH
335
#undef UNALIGNED_BH
336
337
338
/*---------------------------------------------*/
339
/*--- The main, O(N^2 log(N)) sorting       ---*/
340
/*--- algorithm.  Faster for "normal"       ---*/
341
/*--- non-repetitive blocks.                ---*/
342
/*---------------------------------------------*/
343
344
/*---------------------------------------------*/
345
static
346
__inline__
347
Bool mainGtU ( UInt32  i1, 
348
               UInt32  i2,
349
               UChar*  block, 
350
               UInt16* quadrant,
351
               UInt32  nblock,
352
               Int32*  budget )
353
109M
{
354
109M
   Int32  k;
355
109M
   UChar  c1, c2;
356
109M
   UInt16 s1, s2;
357
358
109M
   AssertD ( i1 != i2, "mainGtU" );
359
   /* 1 */
360
109M
   c1 = block[i1]; c2 = block[i2];
361
109M
   if (c1 != c2) return (c1 > c2);
362
106M
   i1++; i2++;
363
   /* 2 */
364
106M
   c1 = block[i1]; c2 = block[i2];
365
106M
   if (c1 != c2) return (c1 > c2);
366
104M
   i1++; i2++;
367
   /* 3 */
368
104M
   c1 = block[i1]; c2 = block[i2];
369
104M
   if (c1 != c2) return (c1 > c2);
370
103M
   i1++; i2++;
371
   /* 4 */
372
103M
   c1 = block[i1]; c2 = block[i2];
373
103M
   if (c1 != c2) return (c1 > c2);
374
101M
   i1++; i2++;
375
   /* 5 */
376
101M
   c1 = block[i1]; c2 = block[i2];
377
101M
   if (c1 != c2) return (c1 > c2);
378
100M
   i1++; i2++;
379
   /* 6 */
380
100M
   c1 = block[i1]; c2 = block[i2];
381
100M
   if (c1 != c2) return (c1 > c2);
382
99.0M
   i1++; i2++;
383
   /* 7 */
384
99.0M
   c1 = block[i1]; c2 = block[i2];
385
99.0M
   if (c1 != c2) return (c1 > c2);
386
97.5M
   i1++; i2++;
387
   /* 8 */
388
97.5M
   c1 = block[i1]; c2 = block[i2];
389
97.5M
   if (c1 != c2) return (c1 > c2);
390
96.2M
   i1++; i2++;
391
   /* 9 */
392
96.2M
   c1 = block[i1]; c2 = block[i2];
393
96.2M
   if (c1 != c2) return (c1 > c2);
394
94.9M
   i1++; i2++;
395
   /* 10 */
396
94.9M
   c1 = block[i1]; c2 = block[i2];
397
94.9M
   if (c1 != c2) return (c1 > c2);
398
93.7M
   i1++; i2++;
399
   /* 11 */
400
93.7M
   c1 = block[i1]; c2 = block[i2];
401
93.7M
   if (c1 != c2) return (c1 > c2);
402
92.5M
   i1++; i2++;
403
   /* 12 */
404
92.5M
   c1 = block[i1]; c2 = block[i2];
405
92.5M
   if (c1 != c2) return (c1 > c2);
406
91.5M
   i1++; i2++;
407
408
91.5M
   k = nblock + 8;
409
410
743M
   do {
411
      /* 1 */
412
743M
      c1 = block[i1]; c2 = block[i2];
413
743M
      if (c1 != c2) return (c1 > c2);
414
739M
      s1 = quadrant[i1]; s2 = quadrant[i2];
415
739M
      if (s1 != s2) return (s1 > s2);
416
727M
      i1++; i2++;
417
      /* 2 */
418
727M
      c1 = block[i1]; c2 = block[i2];
419
727M
      if (c1 != c2) return (c1 > c2);
420
724M
      s1 = quadrant[i1]; s2 = quadrant[i2];
421
724M
      if (s1 != s2) return (s1 > s2);
422
709M
      i1++; i2++;
423
      /* 3 */
424
709M
      c1 = block[i1]; c2 = block[i2];
425
709M
      if (c1 != c2) return (c1 > c2);
426
705M
      s1 = quadrant[i1]; s2 = quadrant[i2];
427
705M
      if (s1 != s2) return (s1 > s2);
428
700M
      i1++; i2++;
429
      /* 4 */
430
700M
      c1 = block[i1]; c2 = block[i2];
431
700M
      if (c1 != c2) return (c1 > c2);
432
696M
      s1 = quadrant[i1]; s2 = quadrant[i2];
433
696M
      if (s1 != s2) return (s1 > s2);
434
689M
      i1++; i2++;
435
      /* 5 */
436
689M
      c1 = block[i1]; c2 = block[i2];
437
689M
      if (c1 != c2) return (c1 > c2);
438
686M
      s1 = quadrant[i1]; s2 = quadrant[i2];
439
686M
      if (s1 != s2) return (s1 > s2);
440
681M
      i1++; i2++;
441
      /* 6 */
442
681M
      c1 = block[i1]; c2 = block[i2];
443
681M
      if (c1 != c2) return (c1 > c2);
444
678M
      s1 = quadrant[i1]; s2 = quadrant[i2];
445
678M
      if (s1 != s2) return (s1 > s2);
446
670M
      i1++; i2++;
447
      /* 7 */
448
670M
      c1 = block[i1]; c2 = block[i2];
449
670M
      if (c1 != c2) return (c1 > c2);
450
666M
      s1 = quadrant[i1]; s2 = quadrant[i2];
451
666M
      if (s1 != s2) return (s1 > s2);
452
662M
      i1++; i2++;
453
      /* 8 */
454
662M
      c1 = block[i1]; c2 = block[i2];
455
662M
      if (c1 != c2) return (c1 > c2);
456
659M
      s1 = quadrant[i1]; s2 = quadrant[i2];
457
659M
      if (s1 != s2) return (s1 > s2);
458
651M
      i1++; i2++;
459
460
651M
      if (i1 >= nblock) i1 -= nblock;
461
651M
      if (i2 >= nblock) i2 -= nblock;
462
463
651M
      k -= 8;
464
651M
      (*budget)--;
465
651M
   }
466
651M
      while (k >= 0);
467
468
34.2k
   return False;
469
91.5M
}
470
471
472
/*---------------------------------------------*/
473
/*--
474
   Knuth's increments seem to work better
475
   than Incerpi-Sedgewick here.  Possibly
476
   because the number of elems to sort is
477
   usually small, typically <= 20.
478
--*/
479
static
480
Int32 incs[14] = { 1, 4, 13, 40, 121, 364, 1093, 3280,
481
                   9841, 29524, 88573, 265720,
482
                   797161, 2391484 };
483
484
static
485
void mainSimpleSort ( UInt32* ptr,
486
                      UChar*  block,
487
                      UInt16* quadrant,
488
                      Int32   nblock,
489
                      Int32   lo, 
490
                      Int32   hi, 
491
                      Int32   d,
492
                      Int32*  budget )
493
1.10M
{
494
1.10M
   Int32 i, j, h, bigN, hp;
495
1.10M
   UInt32 v;
496
497
1.10M
   bigN = hi - lo + 1;
498
1.10M
   if (bigN < 2) return;
499
500
840k
   hp = 0;
501
2.37M
   while (incs[hp] < bigN) hp++;
502
840k
   hp--;
503
504
2.34M
   for (; hp >= 0; hp--) {
505
1.51M
      h = incs[hp];
506
507
1.51M
      i = lo + h;
508
18.4M
      while (True) {
509
510
         /*-- copy 1 --*/
511
18.4M
         if (i > hi) break;
512
18.0M
         v = ptr[i];
513
18.0M
         j = i;
514
36.9M
         while ( mainGtU ( 
515
36.9M
                    ptr[j-h]+d, v+d, block, quadrant, nblock, budget 
516
36.9M
                 ) ) {
517
21.5M
            ptr[j] = ptr[j-h];
518
21.5M
            j = j - h;
519
21.5M
            if (j <= (lo + h - 1)) break;
520
21.5M
         }
521
18.0M
         ptr[j] = v;
522
18.0M
         i++;
523
524
         /*-- copy 2 --*/
525
18.0M
         if (i > hi) break;
526
17.4M
         v = ptr[i];
527
17.4M
         j = i;
528
36.6M
         while ( mainGtU ( 
529
36.6M
                    ptr[j-h]+d, v+d, block, quadrant, nblock, budget 
530
36.6M
                 ) ) {
531
21.5M
            ptr[j] = ptr[j-h];
532
21.5M
            j = j - h;
533
21.5M
            if (j <= (lo + h - 1)) break;
534
21.5M
         }
535
17.4M
         ptr[j] = v;
536
17.4M
         i++;
537
538
         /*-- copy 3 --*/
539
17.4M
         if (i > hi) break;
540
16.9M
         v = ptr[i];
541
16.9M
         j = i;
542
36.2M
         while ( mainGtU ( 
543
36.2M
                    ptr[j-h]+d, v+d, block, quadrant, nblock, budget 
544
36.2M
                 ) ) {
545
21.4M
            ptr[j] = ptr[j-h];
546
21.4M
            j = j - h;
547
21.4M
            if (j <= (lo + h - 1)) break;
548
21.4M
         }
549
16.9M
         ptr[j] = v;
550
16.9M
         i++;
551
552
16.9M
         if (*budget < 0) return;
553
16.9M
      }
554
1.51M
   }
555
840k
}
556
557
558
/*---------------------------------------------*/
559
/*--
560
   The following is an implementation of
561
   an elegant 3-way quicksort for strings,
562
   described in a paper "Fast Algorithms for
563
   Sorting and Searching Strings", by Robert
564
   Sedgewick and Jon L. Bentley.
565
--*/
566
567
#define mswap(zz1, zz2) \
568
227M
   { Int32 zztmp = zz1; zz1 = zz2; zz2 = zztmp; }
569
570
488k
#define mvswap(zzp1, zzp2, zzn)       \
571
488k
{                                     \
572
488k
   Int32 yyp1 = (zzp1);               \
573
488k
   Int32 yyp2 = (zzp2);               \
574
488k
   Int32 yyn  = (zzn);                \
575
9.83M
   while (yyn > 0) {                  \
576
9.35M
      mswap(ptr[yyp1], ptr[yyp2]);    \
577
9.35M
      yyp1++; yyp2++; yyn--;          \
578
9.35M
   }                                  \
579
488k
}
580
581
static 
582
__inline__
583
UChar mmed3 ( UChar a, UChar b, UChar c )
584
1.16M
{
585
1.16M
   UChar t;
586
1.16M
   if (a > b) { t = a; a = b; b = t; };
587
1.16M
   if (b > c) { 
588
49.5k
      b = c;
589
49.5k
      if (a > b) b = a;
590
49.5k
   }
591
1.16M
   return b;
592
1.16M
}
593
594
488k
#define mmin(a,b) ((a) < (b)) ? (a) : (b)
595
596
2.26M
#define mpush(lz,hz,dz) { stackLo[sp] = lz; \
597
2.26M
                          stackHi[sp] = hz; \
598
2.26M
                          stackD [sp] = dz; \
599
2.26M
                          sp++; }
600
601
2.26M
#define mpop(lz,hz,dz) { sp--;             \
602
2.26M
                         lz = stackLo[sp]; \
603
2.26M
                         hz = stackHi[sp]; \
604
2.26M
                         dz = stackD [sp]; }
605
606
607
1.46M
#define mnextsize(az) (nextHi[az]-nextLo[az])
608
609
#define mnextswap(az,bz)                                        \
610
515k
   { Int32 tz;                                                  \
611
515k
     tz = nextLo[az]; nextLo[az] = nextLo[bz]; nextLo[bz] = tz; \
612
515k
     tz = nextHi[az]; nextHi[az] = nextHi[bz]; nextHi[bz] = tz; \
613
515k
     tz = nextD [az]; nextD [az] = nextD [bz]; nextD [bz] = tz; }
614
615
616
4.53M
#define MAIN_QSORT_SMALL_THRESH 20
617
1.27M
#define MAIN_QSORT_DEPTH_THRESH (BZ_N_RADIX + BZ_N_QSORT)
618
#define MAIN_QSORT_STACK_SIZE 100
619
620
static
621
void mainQSort3 ( UInt32* ptr,
622
                  UChar*  block,
623
                  UInt16* quadrant,
624
                  Int32   nblock,
625
                  Int32   loSt, 
626
                  Int32   hiSt, 
627
                  Int32   dSt,
628
                  Int32*  budget )
629
614k
{
630
614k
   Int32 unLo, unHi, ltLo, gtHi, n, m, med;
631
614k
   Int32 sp, lo, hi, d;
632
633
614k
   Int32 stackLo[MAIN_QSORT_STACK_SIZE];
634
614k
   Int32 stackHi[MAIN_QSORT_STACK_SIZE];
635
614k
   Int32 stackD [MAIN_QSORT_STACK_SIZE];
636
637
614k
   Int32 nextLo[3];
638
614k
   Int32 nextHi[3];
639
614k
   Int32 nextD [3];
640
641
614k
   sp = 0;
642
614k
   mpush ( loSt, hiSt, dSt );
643
644
2.87M
   while (sp > 0) {
645
646
2.26M
      AssertH ( sp < MAIN_QSORT_STACK_SIZE - 2, 1001 );
647
648
2.26M
      mpop ( lo, hi, d );
649
2.26M
      if (hi - lo < MAIN_QSORT_SMALL_THRESH || 
650
1.27M
          d > MAIN_QSORT_DEPTH_THRESH) {
651
1.10M
         mainSimpleSort ( ptr, block, quadrant, nblock, lo, hi, d, budget );
652
1.10M
         if (*budget < 0) return;
653
1.09M
         continue;
654
1.10M
      }
655
656
1.16M
      med = (Int32) 
657
1.16M
            mmed3 ( block[ptr[ lo         ]+d],
658
1.16M
                    block[ptr[ hi         ]+d],
659
1.16M
                    block[ptr[ (lo+hi)>>1 ]+d] );
660
661
1.16M
      unLo = ltLo = lo;
662
1.16M
      unHi = gtHi = hi;
663
664
1.61M
      while (True) {
665
197M
         while (True) {
666
197M
            if (unLo > unHi) break;
667
195M
            n = ((Int32)block[ptr[unLo]+d]) - med;
668
195M
            if (n == 0) { 
669
189M
               mswap(ptr[unLo], ptr[ltLo]); 
670
189M
               ltLo++; unLo++; continue; 
671
189M
            };
672
6.44M
            if (n >  0) break;
673
5.90M
            unLo++;
674
5.90M
         }
675
35.0M
         while (True) {
676
35.0M
            if (unLo > unHi) break;
677
33.9M
            n = ((Int32)block[ptr[unHi]+d]) - med;
678
33.9M
            if (n == 0) { 
679
28.2M
               mswap(ptr[unHi], ptr[gtHi]); 
680
28.2M
               gtHi--; unHi--; continue; 
681
28.2M
            };
682
5.70M
            if (n <  0) break;
683
5.25M
            unHi--;
684
5.25M
         }
685
1.61M
         if (unLo > unHi) break;
686
450k
         mswap(ptr[unLo], ptr[unHi]); unLo++; unHi--;
687
450k
      }
688
689
1.16M
      AssertD ( unHi == unLo-1, "mainQSort3(2)" );
690
691
1.16M
      if (gtHi < ltLo) {
692
921k
         mpush(lo, hi, d+1 );
693
921k
         continue;
694
921k
      }
695
696
244k
      n = mmin(ltLo-lo, unLo-ltLo); mvswap(lo, unLo-n, n);
697
244k
      m = mmin(hi-gtHi, gtHi-unHi); mvswap(unLo, hi-m+1, m);
698
699
244k
      n = lo + unLo - ltLo - 1;
700
244k
      m = hi - (gtHi - unHi) + 1;
701
702
244k
      nextLo[0] = lo;  nextHi[0] = n;   nextD[0] = d;
703
244k
      nextLo[1] = m;   nextHi[1] = hi;  nextD[1] = d;
704
244k
      nextLo[2] = n+1; nextHi[2] = m-1; nextD[2] = d+1;
705
706
244k
      if (mnextsize(0) < mnextsize(1)) mnextswap(0,1);
707
244k
      if (mnextsize(1) < mnextsize(2)) mnextswap(1,2);
708
244k
      if (mnextsize(0) < mnextsize(1)) mnextswap(0,1);
709
710
244k
      AssertD (mnextsize(0) >= mnextsize(1), "mainQSort3(8)" );
711
244k
      AssertD (mnextsize(1) >= mnextsize(2), "mainQSort3(9)" );
712
713
244k
      mpush (nextLo[0], nextHi[0], nextD[0]);
714
244k
      mpush (nextLo[1], nextHi[1], nextD[1]);
715
244k
      mpush (nextLo[2], nextHi[2], nextD[2]);
716
244k
   }
717
614k
}
718
719
#undef mswap
720
#undef mvswap
721
#undef mpush
722
#undef mpop
723
#undef mmin
724
#undef mnextsize
725
#undef mnextswap
726
#undef MAIN_QSORT_SMALL_THRESH
727
#undef MAIN_QSORT_DEPTH_THRESH
728
#undef MAIN_QSORT_STACK_SIZE
729
730
731
/*---------------------------------------------*/
732
/* Pre:
733
      nblock > N_OVERSHOOT
734
      block32 exists for [0 .. nblock-1 +N_OVERSHOOT]
735
      ((UChar*)block32) [0 .. nblock-1] holds block
736
      ptr exists for [0 .. nblock-1]
737
738
   Post:
739
      ((UChar*)block32) [0 .. nblock-1] holds block
740
      All other areas of block32 destroyed
741
      ftab [0 .. 65536 ] destroyed
742
      ptr [0 .. nblock-1] holds sorted order
743
      if (*budget < 0), sorting was abandoned
744
*/
745
746
20.4M
#define BIGFREQ(b) (ftab[((b)+1) << 8] - ftab[(b) << 8])
747
3.02G
#define SETMASK (1 << 21)
748
1.51G
#define CLEARMASK (~(SETMASK))
749
750
static
751
void mainSort ( UInt32* ptr, 
752
                UChar*  block,
753
                UInt16* quadrant, 
754
                UInt32* ftab,
755
                Int32   nblock,
756
                Int32   verb,
757
                Int32*  budget )
758
7.76k
{
759
7.76k
   Int32  i, j, k, ss, sb;
760
7.76k
   Int32  runningOrder[256];
761
7.76k
   Bool   bigDone[256];
762
7.76k
   Int32  copyStart[256];
763
7.76k
   Int32  copyEnd  [256];
764
7.76k
   UChar  c1;
765
7.76k
   Int32  numQSorted;
766
7.76k
   UInt16 s;
767
7.76k
   if (verb >= 4) VPrintf0 ( "        main sort initialise ...\n" );
768
769
   /*-- set up the 2-byte frequency table --*/
770
508M
   for (i = 65536; i >= 0; i--) ftab[i] = 0;
771
772
7.76k
   j = block[0] << 8;
773
7.76k
   i = nblock-1;
774
22.2M
   for (; i >= 3; i -= 4) {
775
22.2M
      quadrant[i] = 0;
776
22.2M
      j = (j >> 8) | ( ((UInt16)block[i]) << 8);
777
22.2M
      ftab[j]++;
778
22.2M
      quadrant[i-1] = 0;
779
22.2M
      j = (j >> 8) | ( ((UInt16)block[i-1]) << 8);
780
22.2M
      ftab[j]++;
781
22.2M
      quadrant[i-2] = 0;
782
22.2M
      j = (j >> 8) | ( ((UInt16)block[i-2]) << 8);
783
22.2M
      ftab[j]++;
784
22.2M
      quadrant[i-3] = 0;
785
22.2M
      j = (j >> 8) | ( ((UInt16)block[i-3]) << 8);
786
22.2M
      ftab[j]++;
787
22.2M
   }
788
17.0k
   for (; i >= 0; i--) {
789
9.28k
      quadrant[i] = 0;
790
9.28k
      j = (j >> 8) | ( ((UInt16)block[i]) << 8);
791
9.28k
      ftab[j]++;
792
9.28k
   }
793
794
   /*-- (emphasises close relationship of block & quadrant) --*/
795
271k
   for (i = 0; i < BZ_N_OVERSHOOT; i++) {
796
263k
      block   [nblock+i] = block[i];
797
263k
      quadrant[nblock+i] = 0;
798
263k
   }
799
800
7.76k
   if (verb >= 4) VPrintf0 ( "        bucket sorting ...\n" );
801
802
   /*-- Complete the initial radix sort --*/
803
508M
   for (i = 1; i <= 65536; i++) ftab[i] += ftab[i-1];
804
805
7.76k
   s = block[0] << 8;
806
7.76k
   i = nblock-1;
807
22.2M
   for (; i >= 3; i -= 4) {
808
22.2M
      s = (s >> 8) | (block[i] << 8);
809
22.2M
      j = ftab[s] -1;
810
22.2M
      ftab[s] = j;
811
22.2M
      ptr[j] = i;
812
22.2M
      s = (s >> 8) | (block[i-1] << 8);
813
22.2M
      j = ftab[s] -1;
814
22.2M
      ftab[s] = j;
815
22.2M
      ptr[j] = i-1;
816
22.2M
      s = (s >> 8) | (block[i-2] << 8);
817
22.2M
      j = ftab[s] -1;
818
22.2M
      ftab[s] = j;
819
22.2M
      ptr[j] = i-2;
820
22.2M
      s = (s >> 8) | (block[i-3] << 8);
821
22.2M
      j = ftab[s] -1;
822
22.2M
      ftab[s] = j;
823
22.2M
      ptr[j] = i-3;
824
22.2M
   }
825
17.0k
   for (; i >= 0; i--) {
826
9.28k
      s = (s >> 8) | (block[i] << 8);
827
9.28k
      j = ftab[s] -1;
828
9.28k
      ftab[s] = j;
829
9.28k
      ptr[j] = i;
830
9.28k
   }
831
832
   /*--
833
      Now ftab contains the first loc of every small bucket.
834
      Calculate the running order, from smallest to largest
835
      big bucket.
836
   --*/
837
1.99M
   for (i = 0; i <= 255; i++) {
838
1.98M
      bigDone     [i] = False;
839
1.98M
      runningOrder[i] = i;
840
1.98M
   }
841
842
7.76k
   {
843
7.76k
      Int32 vv;
844
7.76k
      Int32 h = 1;
845
38.8k
      do h = 3 * h + 1; while (h <= 256);
846
38.8k
      do {
847
38.8k
         h = h / 3;
848
8.58M
         for (i = h; i <= 255; i++) {
849
8.54M
            vv = runningOrder[i];
850
8.54M
            j = i;
851
10.2M
            while ( BIGFREQ(runningOrder[j-h]) > BIGFREQ(vv) ) {
852
1.84M
               runningOrder[j] = runningOrder[j-h];
853
1.84M
               j = j - h;
854
1.84M
               if (j <= (h - 1)) goto zero;
855
1.84M
            }
856
8.54M
            zero:
857
8.54M
            runningOrder[j] = vv;
858
8.54M
         }
859
38.8k
      } while (h != 1);
860
7.76k
   }
861
862
   /*--
863
      The main sorting loop.
864
   --*/
865
866
7.76k
   numQSorted = 0;
867
868
1.96M
   for (i = 0; i <= 255; i++) {
869
870
      /*--
871
         Process big buckets, starting with the least full.
872
         Basically this is a 3-step process in which we call
873
         mainQSort3 to sort the small buckets [ss, j], but
874
         also make a big effort to avoid the calls if we can.
875
      --*/
876
1.96M
      ss = runningOrder[i];
877
878
      /*--
879
         Step 1:
880
         Complete the big bucket [ss] by quicksorting
881
         any unsorted small buckets [ss, j], for j != ss.  
882
         Hopefully previous pointer-scanning phases have already
883
         completed many of the small buckets [ss, j], so
884
         we don't have to sort them at all.
885
      --*/
886
504M
      for (j = 0; j <= 255; j++) {
887
502M
         if (j != ss) {
888
500M
            sb = (ss << 8) + j;
889
500M
            if ( ! (ftab[sb] & SETMASK) ) {
890
253M
               Int32 lo = ftab[sb]   & CLEARMASK;
891
253M
               Int32 hi = (ftab[sb+1] & CLEARMASK) - 1;
892
253M
               if (hi > lo) {
893
614k
                  if (verb >= 4)
894
0
                     VPrintf4 ( "        qsort [0x%x, 0x%x]   "
895
614k
                                "done %d   this %d\n",
896
614k
                                ss, j, numQSorted, hi - lo + 1 );
897
614k
                  mainQSort3 ( 
898
614k
                     ptr, block, quadrant, nblock, 
899
614k
                     lo, hi, BZ_N_RADIX, budget 
900
614k
                  );   
901
614k
                  numQSorted += (hi - lo + 1);
902
614k
                  if (*budget < 0) return;
903
614k
               }
904
253M
            }
905
500M
            ftab[sb] |= SETMASK;
906
500M
         }
907
502M
      }
908
909
1.96M
      AssertH ( !bigDone[ss], 1006 );
910
911
      /*--
912
         Step 2:
913
         Now scan this big bucket [ss] so as to synthesise the
914
         sorted order for small buckets [t, ss] for all t,
915
         including, magically, the bucket [ss,ss] too.
916
         This will avoid doing Real Work in subsequent Step 1's.
917
      --*/
918
1.96M
      {
919
503M
         for (j = 0; j <= 255; j++) {
920
501M
            copyStart[j] =  ftab[(j << 8) + ss]     & CLEARMASK;
921
501M
            copyEnd  [j] = (ftab[(j << 8) + ss + 1] & CLEARMASK) - 1;
922
501M
         }
923
17.5M
         for (j = ftab[ss << 8] & CLEARMASK; j < copyStart[ss]; j++) {
924
15.5M
            k = ptr[j]-1; if (k < 0) k += nblock;
925
15.5M
            c1 = block[k];
926
15.5M
            if (!bigDone[c1])
927
9.76M
               ptr[ copyStart[c1]++ ] = k;
928
15.5M
         }
929
20.6M
         for (j = (ftab[(ss+1) << 8] & CLEARMASK) - 1; j > copyEnd[ss]; j--) {
930
18.6M
            k = ptr[j]-1; if (k < 0) k += nblock;
931
18.6M
            c1 = block[k];
932
18.6M
            if (!bigDone[c1]) 
933
10.7M
               ptr[ copyEnd[c1]-- ] = k;
934
18.6M
         }
935
1.96M
      }
936
937
1.96M
      AssertH ( (copyStart[ss]-1 == copyEnd[ss])
938
1.96M
                || 
939
                /* Extremely rare case missing in bzip2-1.0.0 and 1.0.1.
940
                   Necessity for this case is demonstrated by compressing 
941
                   a sequence of approximately 48.5 million of character 
942
                   251; 1.0.0/1.0.1 will then die here. */
943
1.96M
                (copyStart[ss] == 0 && copyEnd[ss] == nblock-1),
944
1.96M
                1007 )
945
946
503M
      for (j = 0; j <= 255; j++) ftab[(j << 8) + ss] |= SETMASK;
947
948
      /*--
949
         Step 3:
950
         The [ss] big bucket is now done.  Record this fact,
951
         and update the quadrant descriptors.  Remember to
952
         update quadrants in the overshoot area too, if
953
         necessary.  The "if (i < 255)" test merely skips
954
         this updating for the last bucket processed, since
955
         updating for the last bucket is pointless.
956
957
         The quadrant array provides a way to incrementally
958
         cache sort orderings, as they appear, so as to 
959
         make subsequent comparisons in fullGtU() complete
960
         faster.  For repetitive blocks this makes a big
961
         difference (but not big enough to be able to avoid
962
         the fallback sorting mechanism, exponential radix sort).
963
964
         The precise meaning is: at all times:
965
966
            for 0 <= i < nblock and 0 <= j <= nblock
967
968
            if block[i] != block[j], 
969
970
               then the relative values of quadrant[i] and 
971
                    quadrant[j] are meaningless.
972
973
               else {
974
                  if quadrant[i] < quadrant[j]
975
                     then the string starting at i lexicographically
976
                     precedes the string starting at j
977
978
                  else if quadrant[i] > quadrant[j]
979
                     then the string starting at j lexicographically
980
                     precedes the string starting at i
981
982
                  else
983
                     the relative ordering of the strings starting
984
                     at i and j has not yet been determined.
985
               }
986
      --*/
987
1.96M
      bigDone[ss] = True;
988
989
1.96M
      if (i < 255) {
990
1.95M
         Int32 bbStart  = ftab[ss << 8] & CLEARMASK;
991
1.95M
         Int32 bbSize   = (ftab[(ss+1) << 8] & CLEARMASK) - bbStart;
992
1.95M
         Int32 shifts   = 0;
993
994
1.95M
         while ((bbSize >> shifts) > 65534) shifts++;
995
996
25.8M
         for (j = bbSize-1; j >= 0; j--) {
997
23.8M
            Int32 a2update     = ptr[bbStart + j];
998
23.8M
            UInt16 qVal        = (UInt16)(j >> shifts);
999
23.8M
            quadrant[a2update] = qVal;
1000
23.8M
            if (a2update < BZ_N_OVERSHOOT)
1001
73.7k
               quadrant[a2update + nblock] = qVal;
1002
23.8M
         }
1003
1.95M
         AssertH ( ((bbSize-1) >> shifts) <= 65535, 1002 );
1004
1.95M
      }
1005
1006
1.96M
   }
1007
1008
2.89k
   if (verb >= 4)
1009
0
      VPrintf3 ( "        %d pointers, %d sorted, %d scanned\n",
1010
2.89k
                 nblock, numQSorted, nblock - numQSorted );
1011
2.89k
}
1012
1013
#undef BIGFREQ
1014
#undef SETMASK
1015
#undef CLEARMASK
1016
1017
1018
/*---------------------------------------------*/
1019
/* Pre:
1020
      nblock > 0
1021
      arr2 exists for [0 .. nblock-1 +N_OVERSHOOT]
1022
      ((UChar*)arr2)  [0 .. nblock-1] holds block
1023
      arr1 exists for [0 .. nblock-1]
1024
1025
   Post:
1026
      ((UChar*)arr2) [0 .. nblock-1] holds block
1027
      All other areas of block destroyed
1028
      ftab [ 0 .. 65536 ] destroyed
1029
      arr1 [0 .. nblock-1] holds sorted order
1030
*/
1031
void BZ2_blockSort ( EState* s )
1032
85.4k
{
1033
85.4k
   UInt32* ptr    = s->ptr; 
1034
85.4k
   UChar*  block  = s->block;
1035
85.4k
   UInt32* ftab   = s->ftab;
1036
85.4k
   Int32   nblock = s->nblock;
1037
85.4k
   Int32   verb   = s->verbosity;
1038
85.4k
   Int32   wfact  = s->workFactor;
1039
85.4k
   UInt16* quadrant;
1040
85.4k
   Int32   budget;
1041
85.4k
   Int32   budgetInit;
1042
85.4k
   Int32   i;
1043
1044
85.4k
   if (nblock < 10000) {
1045
77.7k
      fallbackSort ( s->arr1, s->arr2, ftab, nblock, verb );
1046
77.7k
   } else {
1047
      /* Calculate the location for quadrant, remembering to get
1048
         the alignment right.  Assumes that &(block[0]) is at least
1049
         2-byte aligned -- this should be ok since block is really
1050
         the first section of arr2.
1051
      */
1052
7.76k
      i = nblock+BZ_N_OVERSHOOT;
1053
7.76k
      if (i & 1) i++;
1054
7.76k
      quadrant = (UInt16*)(&(block[i]));
1055
1056
      /* (wfact-1) / 3 puts the default-factor-30
1057
         transition point at very roughly the same place as 
1058
         with v0.1 and v0.9.0.  
1059
         Not that it particularly matters any more, since the
1060
         resulting compressed stream is now the same regardless
1061
         of whether or not we use the main sort or fallback sort.
1062
      */
1063
7.76k
      if (wfact < 1  ) wfact = 1;
1064
7.76k
      if (wfact > 100) wfact = 100;
1065
7.76k
      budgetInit = nblock * ((wfact-1) / 3);
1066
7.76k
      budget = budgetInit;
1067
1068
7.76k
      mainSort ( ptr, block, quadrant, ftab, nblock, verb, &budget );
1069
7.76k
      if (verb >= 3) 
1070
0
         VPrintf3 ( "      %d work, %d block, ratio %5.2f\n",
1071
7.76k
                    budgetInit - budget,
1072
7.76k
                    nblock, 
1073
7.76k
                    (float)(budgetInit - budget) /
1074
7.76k
                    (float)(nblock==0 ? 1 : nblock) ); 
1075
7.76k
      if (budget < 0) {
1076
4.86k
         if (verb >= 2) 
1077
0
            VPrintf0 ( "    too repetitive; using fallback"
1078
4.86k
                       " sorting algorithm\n" );
1079
4.86k
         fallbackSort ( s->arr1, s->arr2, ftab, nblock, verb );
1080
4.86k
      }
1081
7.76k
   }
1082
1083
85.4k
   s->origPtr = -1;
1084
78.8M
   for (i = 0; i < s->nblock; i++)
1085
78.8M
      if (ptr[i] == 0)
1086
85.4k
         { s->origPtr = i; break; };
1087
1088
85.4k
   AssertH( s->origPtr != -1, 1003 );
1089
85.4k
}
1090
1091
1092
/*-------------------------------------------------------------*/
1093
/*--- end                                       blocksort.c ---*/
1094
/*-------------------------------------------------------------*/