Coverage Report

Created: 2026-02-26 06:36

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/libjpeg-turbo/src/jcdctmgr.c
Line
Count
Source
1
/*
2
 * jcdctmgr.c
3
 *
4
 * This file was part of the Independent JPEG Group's software:
5
 * Copyright (C) 1994-1996, Thomas G. Lane.
6
 * libjpeg-turbo Modifications:
7
 * Copyright (C) 1999-2006, MIYASAKA Masaru.
8
 * Copyright 2009 Pierre Ossman <ossman@cendio.se> for Cendio AB
9
 * Copyright (C) 2011, 2014-2015, 2022, 2024, 2026, D. R. Commander.
10
 * For conditions of distribution and use, see the accompanying README.ijg
11
 * file.
12
 *
13
 * This file contains the forward-DCT management logic.
14
 * This code selects a particular DCT implementation to be used,
15
 * and it performs related housekeeping chores including coefficient
16
 * quantization.
17
 */
18
19
#define JPEG_INTERNALS
20
#include "jinclude.h"
21
#include "jpeglib.h"
22
#include "jdct.h"               /* Private declarations for DCT subsystem */
23
#include "jsimddct.h"
24
25
26
/* Private subobject for this module */
27
28
typedef void (*forward_DCT_method_ptr) (DCTELEM *data);
29
typedef void (*float_DCT_method_ptr) (FAST_FLOAT *data);
30
31
typedef void (*convsamp_method_ptr) (_JSAMPARRAY sample_data,
32
                                     JDIMENSION start_col,
33
                                     DCTELEM *workspace);
34
typedef void (*float_convsamp_method_ptr) (_JSAMPARRAY sample_data,
35
                                           JDIMENSION start_col,
36
                                           FAST_FLOAT *workspace);
37
38
typedef void (*quantize_method_ptr) (JCOEFPTR coef_block, DCTELEM *divisors,
39
                                     DCTELEM *workspace);
40
typedef void (*float_quantize_method_ptr) (JCOEFPTR coef_block,
41
                                           FAST_FLOAT *divisors,
42
                                           FAST_FLOAT *workspace);
43
44
METHODDEF(void) quantize(JCOEFPTR, DCTELEM *, DCTELEM *);
45
46
typedef struct {
47
  struct jpeg_forward_dct pub;  /* public fields */
48
49
  /* Pointer to the DCT routine actually in use */
50
  forward_DCT_method_ptr dct;
51
  convsamp_method_ptr convsamp;
52
  quantize_method_ptr quantize;
53
54
  /* The actual post-DCT divisors --- not identical to the quant table
55
   * entries, because of scaling (especially for an unnormalized DCT).
56
   * Each table is given in normal array order.
57
   */
58
  DCTELEM *divisors[NUM_QUANT_TBLS];
59
60
  /* work area for FDCT subroutine */
61
  DCTELEM *workspace;
62
63
#ifdef DCT_FLOAT_SUPPORTED
64
  /* Same as above for the floating-point case. */
65
  float_DCT_method_ptr float_dct;
66
  float_convsamp_method_ptr float_convsamp;
67
  float_quantize_method_ptr float_quantize;
68
  FAST_FLOAT *float_divisors[NUM_QUANT_TBLS];
69
  FAST_FLOAT *float_workspace;
70
#endif
71
} my_fdct_controller;
72
73
typedef my_fdct_controller *my_fdct_ptr;
74
75
76
#if BITS_IN_JSAMPLE == 8
77
78
/*
79
 * Find the highest bit in an integer through binary search.
80
 */
81
82
LOCAL(int)
83
flss(UINT16 val)
84
0
{
85
0
  int bit;
86
87
0
  bit = 16;
88
89
0
  if (!val)
90
0
    return 0;
91
92
0
  if (!(val & 0xff00)) {
93
0
    bit -= 8;
94
0
    val <<= 8;
95
0
  }
96
0
  if (!(val & 0xf000)) {
97
0
    bit -= 4;
98
0
    val <<= 4;
99
0
  }
100
0
  if (!(val & 0xc000)) {
101
0
    bit -= 2;
102
0
    val <<= 2;
103
0
  }
104
0
  if (!(val & 0x8000)) {
105
0
    bit -= 1;
106
0
    val <<= 1;
107
0
  }
108
109
0
  return bit;
110
0
}
111
112
113
/*
114
 * Compute values to do a division using reciprocal.
115
 *
116
 * This implementation is based on an algorithm described in
117
 *   "Optimizing subroutines in assembly language:
118
 *   An optimization guide for x86 platforms" (https://agner.org/optimize).
119
 * More information about the basic algorithm can be found in
120
 * the paper "Integer Division Using Reciprocals" by Robert Alverson.
121
 *
122
 * The basic idea is to replace x/d by x * d^-1. In order to store
123
 * d^-1 with enough precision we shift it left a few places. It turns
124
 * out that this algoright gives just enough precision, and also fits
125
 * into DCTELEM:
126
 *
127
 *   b = (the number of significant bits in divisor) - 1
128
 *   r = (word size) + b
129
 *   f = 2^r / divisor
130
 *
131
 * f will not be an integer for most cases, so we need to compensate
132
 * for the rounding error introduced:
133
 *
134
 *   no fractional part:
135
 *
136
 *       result = input >> r
137
 *
138
 *   fractional part of f < 0.5:
139
 *
140
 *       round f down to nearest integer
141
 *       result = ((input + 1) * f) >> r
142
 *
143
 *   fractional part of f > 0.5:
144
 *
145
 *       round f up to nearest integer
146
 *       result = (input * f) >> r
147
 *
148
 * This is the original algorithm that gives truncated results. But we
149
 * want properly rounded results, so we replace "input" with
150
 * "input + divisor/2".
151
 *
152
 * In order to allow SIMD implementations we also tweak the values to
153
 * allow the same calculation to be made at all times:
154
 *
155
 *   dctbl[0] = f rounded to nearest integer
156
 *   dctbl[1] = divisor / 2 (+ 1 if fractional part of f < 0.5)
157
 *   dctbl[2] = 1 << ((word size) * 2 - r)
158
 *   dctbl[3] = r - (word size)
159
 *
160
 * dctbl[2] is for stupid instruction sets where the shift operation
161
 * isn't member wise (e.g. MMX).
162
 *
163
 * The reason dctbl[2] and dctbl[3] reduce the shift with (word size)
164
 * is that most SIMD implementations have a "multiply and store top
165
 * half" operation.
166
 *
167
 * Lastly, we store each of the values in their own table instead
168
 * of in a consecutive manner, yet again in order to allow SIMD
169
 * routines.
170
 */
171
172
LOCAL(int)
173
compute_reciprocal(UINT16 divisor, DCTELEM *dtbl)
174
0
{
175
0
  UDCTELEM2 fq, fr;
176
0
  UDCTELEM c;
177
0
  int b, r;
178
179
0
  if (divisor <= 1) {
180
    /* divisor == 1 means unquantized, so these reciprocal/correction/shift
181
     * values will cause the C quantization algorithm to act like the
182
     * identity function.  Since only the C quantization algorithm is used in
183
     * these cases, the scale value is irrelevant.
184
     *
185
     * divisor == 0 can never happen in a normal program, because
186
     * jpeg_add_quant_table() clamps values < 1.  However, a program could
187
     * abuse the API by manually modifying the exposed quantization table just
188
     * before calling jpeg_start_compress().  Thus, we effectively clamp
189
     * values < 1 here as well, to avoid dividing by 0.
190
     */
191
0
    dtbl[DCTSIZE2 * 0] = (DCTELEM)1;                        /* reciprocal */
192
0
    dtbl[DCTSIZE2 * 1] = (DCTELEM)0;                        /* correction */
193
0
    dtbl[DCTSIZE2 * 2] = (DCTELEM)1;                        /* scale */
194
0
    dtbl[DCTSIZE2 * 3] = -(DCTELEM)(sizeof(DCTELEM) * 8);   /* shift */
195
0
    return 0;
196
0
  }
197
198
0
  b = flss(divisor) - 1;
199
0
  r  = sizeof(DCTELEM) * 8 + b;
200
201
0
  fq = ((UDCTELEM2)1 << r) / divisor;
202
0
  fr = ((UDCTELEM2)1 << r) % divisor;
203
204
0
  c = divisor / 2;                      /* for rounding */
205
206
0
  if (fr == 0) {                        /* divisor is power of two */
207
    /* fq will be one bit too large to fit in DCTELEM, so adjust */
208
0
    fq >>= 1;
209
0
    r--;
210
0
  } else if (fr <= (divisor / 2U)) {    /* fractional part is < 0.5 */
211
0
    c++;
212
0
  } else {                              /* fractional part is > 0.5 */
213
0
    fq++;
214
0
  }
215
216
0
  dtbl[DCTSIZE2 * 0] = (DCTELEM)fq;     /* reciprocal */
217
0
  dtbl[DCTSIZE2 * 1] = (DCTELEM)c;      /* correction + roundfactor */
218
0
#ifdef WITH_SIMD
219
0
  dtbl[DCTSIZE2 * 2] = (DCTELEM)(1 << (sizeof(DCTELEM) * 8 * 2 - r)); /* scale */
220
#else
221
  dtbl[DCTSIZE2 * 2] = 1;
222
#endif
223
0
  dtbl[DCTSIZE2 * 3] = (DCTELEM)r - sizeof(DCTELEM) * 8; /* shift */
224
225
0
  if (r <= 16) return 0;
226
0
  else return 1;
227
0
}
228
229
#endif
230
231
232
/*
233
 * Initialize for a processing pass.
234
 * Verify that all referenced Q-tables are present, and set up
235
 * the divisor table for each one.
236
 * In the current implementation, DCT of all components is done during
237
 * the first pass, even if only some components will be output in the
238
 * first scan.  Hence all components should be examined here.
239
 */
240
241
METHODDEF(void)
242
start_pass_fdctmgr(j_compress_ptr cinfo)
243
0
{
244
0
  my_fdct_ptr fdct = (my_fdct_ptr)cinfo->fdct;
245
0
  int ci, qtblno, i;
246
0
  jpeg_component_info *compptr;
247
0
  JQUANT_TBL *qtbl;
248
0
  DCTELEM *dtbl;
249
250
0
  for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
251
0
       ci++, compptr++) {
252
0
    qtblno = compptr->quant_tbl_no;
253
    /* Make sure specified quantization table is present */
254
0
    if (qtblno < 0 || qtblno >= NUM_QUANT_TBLS ||
255
0
        cinfo->quant_tbl_ptrs[qtblno] == NULL)
256
0
      ERREXIT1(cinfo, JERR_NO_QUANT_TABLE, qtblno);
257
0
    qtbl = cinfo->quant_tbl_ptrs[qtblno];
258
    /* Compute divisors for this quant table */
259
    /* We may do this more than once for same table, but it's not a big deal */
260
0
    switch (cinfo->dct_method) {
261
0
#ifdef DCT_ISLOW_SUPPORTED
262
0
    case JDCT_ISLOW:
263
      /* For LL&M IDCT method, divisors are equal to raw quantization
264
       * coefficients multiplied by 8 (to counteract scaling).
265
       */
266
0
      if (fdct->divisors[qtblno] == NULL) {
267
0
        fdct->divisors[qtblno] = (DCTELEM *)
268
0
          (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
269
0
                                      (DCTSIZE2 * 4) * sizeof(DCTELEM));
270
0
      }
271
0
      dtbl = fdct->divisors[qtblno];
272
0
      for (i = 0; i < DCTSIZE2; i++) {
273
#if BITS_IN_JSAMPLE == 8
274
#ifdef WITH_SIMD
275
0
        if (!compute_reciprocal(qtbl->quantval[i] << 3, &dtbl[i]) &&
276
0
            fdct->quantize == jsimd_quantize)
277
0
          fdct->quantize = quantize;
278
#else
279
        compute_reciprocal(qtbl->quantval[i] << 3, &dtbl[i]);
280
#endif
281
#else
282
        dtbl[i] = ((DCTELEM)qtbl->quantval[i]) << 3;
283
#endif
284
0
      }
285
0
      break;
286
0
#endif
287
0
#ifdef DCT_IFAST_SUPPORTED
288
0
    case JDCT_IFAST:
289
0
      {
290
        /* For AA&N IDCT method, divisors are equal to quantization
291
         * coefficients scaled by scalefactor[row]*scalefactor[col], where
292
         *   scalefactor[0] = 1
293
         *   scalefactor[k] = cos(k*PI/16) * sqrt(2)    for k=1..7
294
         * We apply a further scale factor of 8.
295
         */
296
0
#define CONST_BITS  14
297
0
        static const INT16 aanscales[DCTSIZE2] = {
298
          /* precomputed values scaled up by 14 bits */
299
0
          16384, 22725, 21407, 19266, 16384, 12873,  8867,  4520,
300
0
          22725, 31521, 29692, 26722, 22725, 17855, 12299,  6270,
301
0
          21407, 29692, 27969, 25172, 21407, 16819, 11585,  5906,
302
0
          19266, 26722, 25172, 22654, 19266, 15137, 10426,  5315,
303
0
          16384, 22725, 21407, 19266, 16384, 12873,  8867,  4520,
304
0
          12873, 17855, 16819, 15137, 12873, 10114,  6967,  3552,
305
0
           8867, 12299, 11585, 10426,  8867,  6967,  4799,  2446,
306
0
           4520,  6270,  5906,  5315,  4520,  3552,  2446,  1247
307
0
        };
308
0
        SHIFT_TEMPS
309
310
0
        if (fdct->divisors[qtblno] == NULL) {
311
0
          fdct->divisors[qtblno] = (DCTELEM *)
312
0
            (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
313
0
                                        (DCTSIZE2 * 4) * sizeof(DCTELEM));
314
0
        }
315
0
        dtbl = fdct->divisors[qtblno];
316
0
        for (i = 0; i < DCTSIZE2; i++) {
317
#if BITS_IN_JSAMPLE == 8
318
#ifdef WITH_SIMD
319
0
          if (!compute_reciprocal(
320
0
                DESCALE(MULTIPLY16V16((JLONG)qtbl->quantval[i],
321
0
                                      (JLONG)aanscales[i]),
322
0
                        CONST_BITS - 3), &dtbl[i]) &&
323
0
              fdct->quantize == jsimd_quantize)
324
0
            fdct->quantize = quantize;
325
#else
326
          compute_reciprocal(
327
            DESCALE(MULTIPLY16V16((JLONG)qtbl->quantval[i],
328
                                  (JLONG)aanscales[i]),
329
                    CONST_BITS-3), &dtbl[i]);
330
#endif
331
#else
332
          dtbl[i] = (DCTELEM)
333
0
            DESCALE(MULTIPLY16V16((JLONG)qtbl->quantval[i],
334
                                  (JLONG)aanscales[i]),
335
                    CONST_BITS - 3);
336
#endif
337
0
        }
338
0
      }
339
0
      break;
340
0
#endif
341
0
#ifdef DCT_FLOAT_SUPPORTED
342
0
    case JDCT_FLOAT:
343
0
      {
344
        /* For float AA&N IDCT method, divisors are equal to quantization
345
         * coefficients scaled by scalefactor[row]*scalefactor[col], where
346
         *   scalefactor[0] = 1
347
         *   scalefactor[k] = cos(k*PI/16) * sqrt(2)    for k=1..7
348
         * We apply a further scale factor of 8.
349
         * What's actually stored is 1/divisor so that the inner loop can
350
         * use a multiplication rather than a division.
351
         */
352
0
        FAST_FLOAT *fdtbl;
353
0
        int row, col;
354
0
        static const double aanscalefactor[DCTSIZE] = {
355
0
          1.0, 1.387039845, 1.306562965, 1.175875602,
356
0
          1.0, 0.785694958, 0.541196100, 0.275899379
357
0
        };
358
359
0
        if (fdct->float_divisors[qtblno] == NULL) {
360
0
          fdct->float_divisors[qtblno] = (FAST_FLOAT *)
361
0
            (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
362
0
                                        DCTSIZE2 * sizeof(FAST_FLOAT));
363
0
        }
364
0
        fdtbl = fdct->float_divisors[qtblno];
365
0
        i = 0;
366
0
        for (row = 0; row < DCTSIZE; row++) {
367
0
          for (col = 0; col < DCTSIZE; col++) {
368
0
            fdtbl[i] = (FAST_FLOAT)
369
0
              (1.0 / (((double)qtbl->quantval[i] *
370
0
                       aanscalefactor[row] * aanscalefactor[col] * 8.0)));
371
0
            i++;
372
0
          }
373
0
        }
374
0
      }
375
0
      break;
376
0
#endif
377
0
    default:
378
0
      ERREXIT(cinfo, JERR_NOT_COMPILED);
379
0
      break;
380
0
    }
381
0
  }
382
0
}
Unexecuted instantiation: jcdctmgr-8.c:start_pass_fdctmgr
Unexecuted instantiation: jcdctmgr-12.c:start_pass_fdctmgr
383
384
385
/*
386
 * Load data into workspace, applying unsigned->signed conversion.
387
 */
388
389
METHODDEF(void)
390
convsamp(_JSAMPARRAY sample_data, JDIMENSION start_col, DCTELEM *workspace)
391
0
{
392
0
  register DCTELEM *workspaceptr;
393
0
  register _JSAMPROW elemptr;
394
0
  register int elemr;
395
396
0
  workspaceptr = workspace;
397
0
  for (elemr = 0; elemr < DCTSIZE; elemr++) {
398
0
    elemptr = sample_data[elemr] + start_col;
399
400
0
#if DCTSIZE == 8                /* unroll the inner loop */
401
0
    *workspaceptr++ = (*elemptr++) - _CENTERJSAMPLE;
402
0
    *workspaceptr++ = (*elemptr++) - _CENTERJSAMPLE;
403
0
    *workspaceptr++ = (*elemptr++) - _CENTERJSAMPLE;
404
0
    *workspaceptr++ = (*elemptr++) - _CENTERJSAMPLE;
405
0
    *workspaceptr++ = (*elemptr++) - _CENTERJSAMPLE;
406
0
    *workspaceptr++ = (*elemptr++) - _CENTERJSAMPLE;
407
0
    *workspaceptr++ = (*elemptr++) - _CENTERJSAMPLE;
408
0
    *workspaceptr++ = (*elemptr++) - _CENTERJSAMPLE;
409
#else
410
    {
411
      register int elemc;
412
      for (elemc = DCTSIZE; elemc > 0; elemc--)
413
        *workspaceptr++ = (*elemptr++) - _CENTERJSAMPLE;
414
    }
415
#endif
416
0
  }
417
0
}
Unexecuted instantiation: jcdctmgr-8.c:convsamp
Unexecuted instantiation: jcdctmgr-12.c:convsamp
418
419
420
/*
421
 * Quantize/descale the coefficients, and store into coef_blocks[].
422
 */
423
424
METHODDEF(void)
425
quantize(JCOEFPTR coef_block, DCTELEM *divisors, DCTELEM *workspace)
426
0
{
427
0
  int i;
428
0
  DCTELEM temp;
429
0
  JCOEFPTR output_ptr = coef_block;
430
431
#if BITS_IN_JSAMPLE == 8
432
433
  UDCTELEM recip, corr;
434
  int shift;
435
  UDCTELEM2 product;
436
437
0
  for (i = 0; i < DCTSIZE2; i++) {
438
0
    temp = workspace[i];
439
0
    recip = divisors[i + DCTSIZE2 * 0];
440
0
    corr =  divisors[i + DCTSIZE2 * 1];
441
0
    shift = divisors[i + DCTSIZE2 * 3];
442
443
0
    if (temp < 0) {
444
0
      temp = -temp;
445
0
      product = (UDCTELEM2)(temp + corr) * recip;
446
0
      product >>= shift + sizeof(DCTELEM) * 8;
447
0
      temp = (DCTELEM)product;
448
0
      temp = -temp;
449
0
    } else {
450
0
      product = (UDCTELEM2)(temp + corr) * recip;
451
0
      product >>= shift + sizeof(DCTELEM) * 8;
452
0
      temp = (DCTELEM)product;
453
0
    }
454
0
    output_ptr[i] = (JCOEF)temp;
455
0
  }
456
457
#else
458
459
  register DCTELEM qval;
460
461
0
  for (i = 0; i < DCTSIZE2; i++) {
462
0
    qval = divisors[i];
463
0
    temp = workspace[i];
464
    /* Divide the coefficient value by qval, ensuring proper rounding.
465
     * Since C does not specify the direction of rounding for negative
466
     * quotients, we have to force the dividend positive for portability.
467
     *
468
     * In most files, at least half of the output values will be zero
469
     * (at default quantization settings, more like three-quarters...)
470
     * so we should ensure that this case is fast.  On many machines,
471
     * a comparison is enough cheaper than a divide to make a special test
472
     * a win.  Since both inputs will be nonnegative, we need only test
473
     * for a < b to discover whether a/b is 0.
474
     * If your machine's division is fast enough, define FAST_DIVIDE.
475
     */
476
#ifdef FAST_DIVIDE
477
#define DIVIDE_BY(a, b)  a /= b
478
#else
479
0
#define DIVIDE_BY(a, b)  if (a >= b) a /= b;  else a = 0
480
0
#endif
481
0
    if (temp < 0) {
482
0
      temp = -temp;
483
0
      temp += qval >> 1;        /* for rounding */
484
0
      DIVIDE_BY(temp, qval);
485
0
      temp = -temp;
486
0
    } else {
487
0
      temp += qval >> 1;        /* for rounding */
488
0
      DIVIDE_BY(temp, qval);
489
0
    }
490
0
    output_ptr[i] = (JCOEF)temp;
491
0
  }
492
493
#endif
494
495
0
}
Unexecuted instantiation: jcdctmgr-8.c:quantize
Unexecuted instantiation: jcdctmgr-12.c:quantize
496
497
498
/*
499
 * Perform forward DCT on one or more blocks of a component.
500
 *
501
 * The input samples are taken from the sample_data[] array starting at
502
 * position start_row/start_col, and moving to the right for any additional
503
 * blocks. The quantized coefficients are returned in coef_blocks[].
504
 */
505
506
METHODDEF(void)
507
forward_DCT(j_compress_ptr cinfo, jpeg_component_info *compptr,
508
            _JSAMPARRAY sample_data, JBLOCKROW coef_blocks,
509
            JDIMENSION start_row, JDIMENSION start_col, JDIMENSION num_blocks)
510
/* This version is used for integer DCT implementations. */
511
0
{
512
  /* This routine is heavily used, so it's worth coding it tightly. */
513
0
  my_fdct_ptr fdct = (my_fdct_ptr)cinfo->fdct;
514
0
  DCTELEM *divisors = fdct->divisors[compptr->quant_tbl_no];
515
0
  DCTELEM *workspace;
516
0
  JDIMENSION bi;
517
518
  /* Make sure the compiler doesn't look up these every pass */
519
0
  forward_DCT_method_ptr do_dct = fdct->dct;
520
0
  convsamp_method_ptr do_convsamp = fdct->convsamp;
521
0
  quantize_method_ptr do_quantize = fdct->quantize;
522
0
  workspace = fdct->workspace;
523
524
0
  sample_data += start_row;     /* fold in the vertical offset once */
525
526
0
  for (bi = 0; bi < num_blocks; bi++, start_col += DCTSIZE) {
527
    /* Load data into workspace, applying unsigned->signed conversion */
528
0
    (*do_convsamp) (sample_data, start_col, workspace);
529
530
    /* Perform the DCT */
531
0
    (*do_dct) (workspace);
532
533
    /* Quantize/descale the coefficients, and store into coef_blocks[] */
534
0
    (*do_quantize) (coef_blocks[bi], divisors, workspace);
535
0
  }
536
0
}
Unexecuted instantiation: jcdctmgr-8.c:forward_DCT
Unexecuted instantiation: jcdctmgr-12.c:forward_DCT
537
538
539
#ifdef DCT_FLOAT_SUPPORTED
540
541
METHODDEF(void)
542
convsamp_float(_JSAMPARRAY sample_data, JDIMENSION start_col,
543
               FAST_FLOAT *workspace)
544
0
{
545
0
  register FAST_FLOAT *workspaceptr;
546
0
  register _JSAMPROW elemptr;
547
0
  register int elemr;
548
549
0
  workspaceptr = workspace;
550
0
  for (elemr = 0; elemr < DCTSIZE; elemr++) {
551
0
    elemptr = sample_data[elemr] + start_col;
552
0
#if DCTSIZE == 8                /* unroll the inner loop */
553
0
    *workspaceptr++ = (FAST_FLOAT)((*elemptr++) - _CENTERJSAMPLE);
554
0
    *workspaceptr++ = (FAST_FLOAT)((*elemptr++) - _CENTERJSAMPLE);
555
0
    *workspaceptr++ = (FAST_FLOAT)((*elemptr++) - _CENTERJSAMPLE);
556
0
    *workspaceptr++ = (FAST_FLOAT)((*elemptr++) - _CENTERJSAMPLE);
557
0
    *workspaceptr++ = (FAST_FLOAT)((*elemptr++) - _CENTERJSAMPLE);
558
0
    *workspaceptr++ = (FAST_FLOAT)((*elemptr++) - _CENTERJSAMPLE);
559
0
    *workspaceptr++ = (FAST_FLOAT)((*elemptr++) - _CENTERJSAMPLE);
560
0
    *workspaceptr++ = (FAST_FLOAT)((*elemptr++) - _CENTERJSAMPLE);
561
#else
562
    {
563
      register int elemc;
564
      for (elemc = DCTSIZE; elemc > 0; elemc--)
565
        *workspaceptr++ = (FAST_FLOAT)((*elemptr++) - _CENTERJSAMPLE);
566
    }
567
#endif
568
0
  }
569
0
}
Unexecuted instantiation: jcdctmgr-8.c:convsamp_float
Unexecuted instantiation: jcdctmgr-12.c:convsamp_float
570
571
572
METHODDEF(void)
573
quantize_float(JCOEFPTR coef_block, FAST_FLOAT *divisors,
574
               FAST_FLOAT *workspace)
575
0
{
576
0
  register FAST_FLOAT temp;
577
0
  register int i;
578
0
  register JCOEFPTR output_ptr = coef_block;
579
580
0
  for (i = 0; i < DCTSIZE2; i++) {
581
    /* Apply the quantization and scaling factor */
582
0
    temp = workspace[i] * divisors[i];
583
584
    /* Round to nearest integer.
585
     * Since C does not specify the direction of rounding for negative
586
     * quotients, we have to force the dividend positive for portability.
587
     * The maximum coefficient size is +-16K (for 12-bit data), so this
588
     * code should work for either 16-bit or 32-bit ints.
589
     */
590
0
    output_ptr[i] = (JCOEF)((int)(temp + (FAST_FLOAT)16384.5) - 16384);
591
0
  }
592
0
}
Unexecuted instantiation: jcdctmgr-8.c:quantize_float
Unexecuted instantiation: jcdctmgr-12.c:quantize_float
593
594
595
METHODDEF(void)
596
forward_DCT_float(j_compress_ptr cinfo, jpeg_component_info *compptr,
597
                  _JSAMPARRAY sample_data, JBLOCKROW coef_blocks,
598
                  JDIMENSION start_row, JDIMENSION start_col,
599
                  JDIMENSION num_blocks)
600
/* This version is used for floating-point DCT implementations. */
601
0
{
602
  /* This routine is heavily used, so it's worth coding it tightly. */
603
0
  my_fdct_ptr fdct = (my_fdct_ptr)cinfo->fdct;
604
0
  FAST_FLOAT *divisors = fdct->float_divisors[compptr->quant_tbl_no];
605
0
  FAST_FLOAT *workspace;
606
0
  JDIMENSION bi;
607
608
609
  /* Make sure the compiler doesn't look up these every pass */
610
0
  float_DCT_method_ptr do_dct = fdct->float_dct;
611
0
  float_convsamp_method_ptr do_convsamp = fdct->float_convsamp;
612
0
  float_quantize_method_ptr do_quantize = fdct->float_quantize;
613
0
  workspace = fdct->float_workspace;
614
615
0
  sample_data += start_row;     /* fold in the vertical offset once */
616
617
0
  for (bi = 0; bi < num_blocks; bi++, start_col += DCTSIZE) {
618
    /* Load data into workspace, applying unsigned->signed conversion */
619
0
    (*do_convsamp) (sample_data, start_col, workspace);
620
621
    /* Perform the DCT */
622
0
    (*do_dct) (workspace);
623
624
    /* Quantize/descale the coefficients, and store into coef_blocks[] */
625
0
    (*do_quantize) (coef_blocks[bi], divisors, workspace);
626
0
  }
627
0
}
Unexecuted instantiation: jcdctmgr-8.c:forward_DCT_float
Unexecuted instantiation: jcdctmgr-12.c:forward_DCT_float
628
629
#endif /* DCT_FLOAT_SUPPORTED */
630
631
632
/*
633
 * Initialize FDCT manager.
634
 */
635
636
GLOBAL(void)
637
_jinit_forward_dct(j_compress_ptr cinfo)
638
0
{
639
0
  my_fdct_ptr fdct;
640
0
  int i;
641
642
0
  if (cinfo->data_precision != BITS_IN_JSAMPLE)
643
0
    ERREXIT1(cinfo, JERR_BAD_PRECISION, cinfo->data_precision);
644
645
0
  fdct = (my_fdct_ptr)
646
0
    (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
647
0
                                sizeof(my_fdct_controller));
648
0
  cinfo->fdct = (struct jpeg_forward_dct *)fdct;
649
0
  fdct->pub.start_pass = start_pass_fdctmgr;
650
651
  /* First determine the DCT... */
652
0
  switch (cinfo->dct_method) {
653
0
#ifdef DCT_ISLOW_SUPPORTED
654
0
  case JDCT_ISLOW:
655
0
    fdct->pub._forward_DCT = forward_DCT;
656
#ifdef WITH_SIMD
657
0
    if (jsimd_can_fdct_islow())
658
0
      fdct->dct = jsimd_fdct_islow;
659
0
    else
660
0
#endif
661
0
      fdct->dct = _jpeg_fdct_islow;
662
0
    break;
663
0
#endif
664
0
#ifdef DCT_IFAST_SUPPORTED
665
0
  case JDCT_IFAST:
666
0
    fdct->pub._forward_DCT = forward_DCT;
667
#ifdef WITH_SIMD
668
0
    if (jsimd_can_fdct_ifast())
669
0
      fdct->dct = jsimd_fdct_ifast;
670
0
    else
671
0
#endif
672
0
      fdct->dct = _jpeg_fdct_ifast;
673
0
    break;
674
0
#endif
675
0
#ifdef DCT_FLOAT_SUPPORTED
676
0
  case JDCT_FLOAT:
677
0
    fdct->pub._forward_DCT = forward_DCT_float;
678
#ifdef WITH_SIMD
679
0
    if (jsimd_can_fdct_float())
680
0
      fdct->float_dct = jsimd_fdct_float;
681
0
    else
682
0
#endif
683
0
      fdct->float_dct = jpeg_fdct_float;
684
0
    break;
685
0
#endif
686
0
  default:
687
0
    ERREXIT(cinfo, JERR_NOT_COMPILED);
688
0
    break;
689
0
  }
690
691
  /* ...then the supporting stages. */
692
0
  switch (cinfo->dct_method) {
693
0
#ifdef DCT_ISLOW_SUPPORTED
694
0
  case JDCT_ISLOW:
695
0
#endif
696
0
#ifdef DCT_IFAST_SUPPORTED
697
0
  case JDCT_IFAST:
698
0
#endif
699
0
#if defined(DCT_ISLOW_SUPPORTED) || defined(DCT_IFAST_SUPPORTED)
700
#ifdef WITH_SIMD
701
0
    if (jsimd_can_convsamp())
702
0
      fdct->convsamp = jsimd_convsamp;
703
0
    else
704
0
#endif
705
0
      fdct->convsamp = convsamp;
706
#ifdef WITH_SIMD
707
0
    if (jsimd_can_quantize())
708
0
      fdct->quantize = jsimd_quantize;
709
0
    else
710
0
#endif
711
0
      fdct->quantize = quantize;
712
0
    break;
713
0
#endif
714
0
#ifdef DCT_FLOAT_SUPPORTED
715
0
  case JDCT_FLOAT:
716
#ifdef WITH_SIMD
717
0
    if (jsimd_can_convsamp_float())
718
0
      fdct->float_convsamp = jsimd_convsamp_float;
719
0
    else
720
0
#endif
721
0
      fdct->float_convsamp = convsamp_float;
722
#ifdef WITH_SIMD
723
0
    if (jsimd_can_quantize_float())
724
0
      fdct->float_quantize = jsimd_quantize_float;
725
0
    else
726
0
#endif
727
0
      fdct->float_quantize = quantize_float;
728
0
    break;
729
0
#endif
730
0
  default:
731
0
    ERREXIT(cinfo, JERR_NOT_COMPILED);
732
0
    break;
733
0
  }
734
735
  /* Allocate workspace memory */
736
0
#ifdef DCT_FLOAT_SUPPORTED
737
0
  if (cinfo->dct_method == JDCT_FLOAT)
738
0
    fdct->float_workspace = (FAST_FLOAT *)
739
0
      (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
740
0
                                  sizeof(FAST_FLOAT) * DCTSIZE2);
741
0
  else
742
0
#endif
743
0
    fdct->workspace = (DCTELEM *)
744
0
      (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
745
0
                                  sizeof(DCTELEM) * DCTSIZE2);
746
747
  /* Mark divisor tables unallocated */
748
0
  for (i = 0; i < NUM_QUANT_TBLS; i++) {
749
0
    fdct->divisors[i] = NULL;
750
0
#ifdef DCT_FLOAT_SUPPORTED
751
    fdct->float_divisors[i] = NULL;
752
0
#endif
753
0
  }
754
0
}
Unexecuted instantiation: jinit_forward_dct
Unexecuted instantiation: j12init_forward_dct