Coverage Report

Created: 2026-04-12 06:58

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/libjpeg-turbo/src/jdcoefct.c
Line
Count
Source
1
/*
2
 * jdcoefct.c
3
 *
4
 * This file was part of the Independent JPEG Group's software:
5
 * Copyright (C) 1994-1997, Thomas G. Lane.
6
 * libjpeg-turbo Modifications:
7
 * Copyright 2009 Pierre Ossman <ossman@cendio.se> for Cendio AB
8
 * Copyright (C) 2010, 2015-2016, 2019-2020, 2022-2026, D. R. Commander.
9
 * Copyright (C) 2015, 2020, Google, Inc.
10
 * For conditions of distribution and use, see the accompanying README.ijg
11
 * file.
12
 *
13
 * This file contains the coefficient buffer controller for decompression.
14
 * This controller is the top level of the lossy JPEG decompressor proper.
15
 * The coefficient buffer lies between entropy decoding and inverse-DCT steps.
16
 *
17
 * In buffered-image mode, this controller is the interface between
18
 * input-oriented processing and output-oriented processing.
19
 * Also, the input side (only) is used when reading a file for transcoding.
20
 */
21
22
#include "jinclude.h"
23
#include "jdcoefct.h"
24
#include "jpegapicomp.h"
25
#include "jsamplecomp.h"
26
#ifdef WITH_PROFILE
27
#include "tjutil.h"
28
#endif
29
30
31
/* Forward declarations */
32
METHODDEF(int) decompress_onepass(j_decompress_ptr cinfo,
33
                                  _JSAMPIMAGE output_buf);
34
#ifdef D_MULTISCAN_FILES_SUPPORTED
35
METHODDEF(int) decompress_data(j_decompress_ptr cinfo, _JSAMPIMAGE output_buf);
36
#endif
37
#ifdef BLOCK_SMOOTHING_SUPPORTED
38
LOCAL(boolean) smoothing_ok(j_decompress_ptr cinfo);
39
METHODDEF(int) decompress_smooth_data(j_decompress_ptr cinfo,
40
                                      _JSAMPIMAGE output_buf);
41
#endif
42
43
44
/*
45
 * Initialize for an input processing pass.
46
 */
47
48
METHODDEF(void)
49
start_input_pass(j_decompress_ptr cinfo)
50
0
{
51
0
  cinfo->input_iMCU_row = 0;
52
0
  start_iMCU_row(cinfo);
53
0
}
Unexecuted instantiation: jdcoefct-8.c:start_input_pass
Unexecuted instantiation: jdcoefct-12.c:start_input_pass
54
55
56
/*
57
 * Initialize for an output processing pass.
58
 */
59
60
METHODDEF(void)
61
start_output_pass(j_decompress_ptr cinfo)
62
0
{
63
0
#ifdef BLOCK_SMOOTHING_SUPPORTED
64
0
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
65
66
  /* If multipass, check to see whether to use block smoothing on this pass */
67
0
  if (coef->pub.coef_arrays != NULL) {
68
0
    if (cinfo->do_block_smoothing && smoothing_ok(cinfo))
69
0
      coef->pub._decompress_data = decompress_smooth_data;
70
0
    else
71
0
      coef->pub._decompress_data = decompress_data;
72
0
  }
73
0
#endif
74
0
  cinfo->output_iMCU_row = 0;
75
0
}
Unexecuted instantiation: jdcoefct-8.c:start_output_pass
Unexecuted instantiation: jdcoefct-12.c:start_output_pass
76
77
78
/*
79
 * Decompress and return some data in the single-pass case.
80
 * Always attempts to emit one fully interleaved MCU row ("iMCU" row).
81
 * Input and output must run in lockstep since we have only a one-MCU buffer.
82
 * Return value is JPEG_ROW_COMPLETED, JPEG_SCAN_COMPLETED, or JPEG_SUSPENDED.
83
 *
84
 * NB: output_buf contains a plane for each component in image,
85
 * which we index according to the component's SOF position.
86
 */
87
88
METHODDEF(int)
89
decompress_onepass(j_decompress_ptr cinfo, _JSAMPIMAGE output_buf)
90
0
{
91
0
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
92
0
  JDIMENSION MCU_col_num;       /* index of current MCU within row */
93
0
  JDIMENSION last_MCU_col = cinfo->MCUs_per_row - 1;
94
0
  JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
95
0
  int blkn, ci, xindex, yindex, yoffset, useful_width;
96
0
  _JSAMPARRAY output_ptr;
97
0
  JDIMENSION start_col, output_col;
98
0
  jpeg_component_info *compptr;
99
0
  _inverse_DCT_method_ptr inverse_DCT;
100
101
  /* Loop to process as much as one whole iMCU row */
102
0
  for (yoffset = coef->MCU_vert_offset; yoffset < coef->MCU_rows_per_iMCU_row;
103
0
       yoffset++) {
104
0
    for (MCU_col_num = coef->MCU_ctr; MCU_col_num <= last_MCU_col;
105
0
         MCU_col_num++) {
106
      /* Try to fetch an MCU.  Entropy decoder expects buffer to be zeroed. */
107
0
      jzero_far((void *)coef->MCU_buffer[0],
108
0
                (size_t)(cinfo->blocks_in_MCU * sizeof(JBLOCK)));
109
0
      if (!cinfo->entropy->insufficient_data)
110
0
        cinfo->master->last_good_iMCU_row = cinfo->input_iMCU_row;
111
#ifdef WITH_PROFILE
112
      cinfo->master->start = getTime();
113
#endif
114
0
      if (!(*cinfo->entropy->decode_mcu) (cinfo, coef->MCU_buffer)) {
115
        /* Suspension forced; update state counters and exit */
116
0
        coef->MCU_vert_offset = yoffset;
117
0
        coef->MCU_ctr = MCU_col_num;
118
#ifdef WITH_PROFILE
119
        cinfo->master->entropy_elapsed += getTime() - cinfo->master->start;
120
        cinfo->master->entropy_mcoeffs +=
121
          (double)cinfo->blocks_in_MCU * DCTSIZE2 / 1000000.;
122
#endif
123
0
        return JPEG_SUSPENDED;
124
0
      }
125
#ifdef WITH_PROFILE
126
      cinfo->master->entropy_elapsed += getTime() - cinfo->master->start;
127
      cinfo->master->entropy_mcoeffs +=
128
        (double)cinfo->blocks_in_MCU * DCTSIZE2 / 1000000.;
129
#endif
130
131
      /* Only perform the IDCT on blocks that are contained within the desired
132
       * cropping region.
133
       */
134
0
      if (MCU_col_num >= cinfo->master->first_iMCU_col &&
135
0
          MCU_col_num <= cinfo->master->last_iMCU_col) {
136
        /* Determine where data should go in output_buf and do the IDCT thing.
137
         * We skip dummy blocks at the right and bottom edges (but blkn gets
138
         * incremented past them!).  Note the inner loop relies on having
139
         * allocated the MCU_buffer[] blocks sequentially.
140
         */
141
0
        blkn = 0;               /* index of current DCT block within MCU */
142
0
        for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
143
0
          compptr = cinfo->cur_comp_info[ci];
144
          /* Don't bother to IDCT an uninteresting component. */
145
0
          if (!compptr->component_needed) {
146
0
            blkn += compptr->MCU_blocks;
147
0
            continue;
148
0
          }
149
0
          inverse_DCT = cinfo->idct->_inverse_DCT[compptr->component_index];
150
0
          useful_width = (MCU_col_num < last_MCU_col) ?
151
0
                         compptr->MCU_width : compptr->last_col_width;
152
0
          output_ptr = output_buf[compptr->component_index] +
153
0
                       yoffset * compptr->_DCT_scaled_size;
154
0
          start_col = (MCU_col_num - cinfo->master->first_iMCU_col) *
155
0
                      compptr->MCU_sample_width;
156
0
          for (yindex = 0; yindex < compptr->MCU_height; yindex++) {
157
0
            if (cinfo->input_iMCU_row < last_iMCU_row ||
158
0
                yoffset + yindex < compptr->last_row_height) {
159
0
              output_col = start_col;
160
0
              for (xindex = 0; xindex < useful_width; xindex++) {
161
#ifdef WITH_PROFILE
162
                cinfo->master->start = getTime();
163
#endif
164
0
                (*inverse_DCT) (cinfo, compptr,
165
0
                                (JCOEFPTR)coef->MCU_buffer[blkn + xindex],
166
0
                                output_ptr, output_col);
167
#ifdef WITH_PROFILE
168
                cinfo->master->idct_elapsed +=
169
                  getTime() - cinfo->master->start;
170
                cinfo->master->idct_mcoeffs += (double)DCTSIZE2 / 1000000.;
171
#endif
172
0
                output_col += compptr->_DCT_scaled_size;
173
0
              }
174
0
            }
175
0
            blkn += compptr->MCU_width;
176
0
            output_ptr += compptr->_DCT_scaled_size;
177
0
          }
178
0
        }
179
0
      }
180
0
    }
181
    /* Completed an MCU row, but perhaps not an iMCU row */
182
0
    coef->MCU_ctr = 0;
183
0
  }
184
  /* Completed the iMCU row, advance counters for next one */
185
0
  cinfo->output_iMCU_row++;
186
0
  if (++(cinfo->input_iMCU_row) < cinfo->total_iMCU_rows) {
187
0
    start_iMCU_row(cinfo);
188
0
    return JPEG_ROW_COMPLETED;
189
0
  }
190
  /* Completed the scan */
191
0
  (*cinfo->inputctl->finish_input_pass) (cinfo);
192
0
  return JPEG_SCAN_COMPLETED;
193
0
}
Unexecuted instantiation: jdcoefct-8.c:decompress_onepass
Unexecuted instantiation: jdcoefct-12.c:decompress_onepass
194
195
196
/*
197
 * Dummy consume-input routine for single-pass operation.
198
 */
199
200
METHODDEF(int)
201
dummy_consume_data(j_decompress_ptr cinfo)
202
0
{
203
0
  return JPEG_SUSPENDED;        /* Always indicate nothing was done */
204
0
}
Unexecuted instantiation: jdcoefct-8.c:dummy_consume_data
Unexecuted instantiation: jdcoefct-12.c:dummy_consume_data
205
206
207
#ifdef D_MULTISCAN_FILES_SUPPORTED
208
209
/*
210
 * Consume input data and store it in the full-image coefficient buffer.
211
 * We read as much as one fully interleaved MCU row ("iMCU" row) per call,
212
 * ie, v_samp_factor block rows for each component in the scan.
213
 * Return value is JPEG_ROW_COMPLETED, JPEG_SCAN_COMPLETED, or JPEG_SUSPENDED.
214
 */
215
216
METHODDEF(int)
217
consume_data(j_decompress_ptr cinfo)
218
0
{
219
0
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
220
0
  JDIMENSION MCU_col_num;       /* index of current MCU within row */
221
0
  int blkn, ci, xindex, yindex, yoffset;
222
0
  JDIMENSION start_col;
223
0
  JBLOCKARRAY buffer[MAX_COMPS_IN_SCAN];
224
0
  JBLOCKROW buffer_ptr;
225
0
  jpeg_component_info *compptr;
226
227
  /* Align the virtual buffers for the components used in this scan. */
228
0
  for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
229
0
    compptr = cinfo->cur_comp_info[ci];
230
0
    buffer[ci] = (*cinfo->mem->access_virt_barray)
231
0
      ((j_common_ptr)cinfo, coef->whole_image[compptr->component_index],
232
0
       cinfo->input_iMCU_row * compptr->v_samp_factor,
233
0
       (JDIMENSION)compptr->v_samp_factor, TRUE);
234
    /* Note: entropy decoder expects buffer to be zeroed,
235
     * but this is handled automatically by the memory manager
236
     * because we requested a pre-zeroed array.
237
     */
238
0
  }
239
240
  /* Loop to process one whole iMCU row */
241
0
  for (yoffset = coef->MCU_vert_offset; yoffset < coef->MCU_rows_per_iMCU_row;
242
0
       yoffset++) {
243
0
    for (MCU_col_num = coef->MCU_ctr; MCU_col_num < cinfo->MCUs_per_row;
244
0
         MCU_col_num++) {
245
      /* Construct list of pointers to DCT blocks belonging to this MCU */
246
0
      blkn = 0;                 /* index of current DCT block within MCU */
247
0
      for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
248
0
        compptr = cinfo->cur_comp_info[ci];
249
0
        start_col = MCU_col_num * compptr->MCU_width;
250
0
        for (yindex = 0; yindex < compptr->MCU_height; yindex++) {
251
0
          buffer_ptr = buffer[ci][yindex + yoffset] + start_col;
252
0
          for (xindex = 0; xindex < compptr->MCU_width; xindex++) {
253
0
            coef->MCU_buffer[blkn++] = buffer_ptr++;
254
0
          }
255
0
        }
256
0
      }
257
0
      if (!cinfo->entropy->insufficient_data)
258
0
        cinfo->master->last_good_iMCU_row = cinfo->input_iMCU_row;
259
      /* Try to fetch the MCU. */
260
#ifdef WITH_PROFILE
261
      cinfo->master->start = getTime();
262
#endif
263
0
      if (!(*cinfo->entropy->decode_mcu) (cinfo, coef->MCU_buffer)) {
264
        /* Suspension forced; update state counters and exit */
265
0
        coef->MCU_vert_offset = yoffset;
266
0
        coef->MCU_ctr = MCU_col_num;
267
#ifdef WITH_PROFILE
268
        cinfo->master->entropy_elapsed += getTime() - cinfo->master->start;
269
        cinfo->master->entropy_mcoeffs +=
270
          (double)cinfo->blocks_in_MCU * DCTSIZE2 / 1000000.;
271
#endif
272
0
        return JPEG_SUSPENDED;
273
0
      }
274
#ifdef WITH_PROFILE
275
      cinfo->master->entropy_elapsed += getTime() - cinfo->master->start;
276
      cinfo->master->entropy_mcoeffs +=
277
        (double)cinfo->blocks_in_MCU * DCTSIZE2 / 1000000.;
278
#endif
279
0
    }
280
    /* Completed an MCU row, but perhaps not an iMCU row */
281
0
    coef->MCU_ctr = 0;
282
0
  }
283
  /* Completed the iMCU row, advance counters for next one */
284
0
  if (++(cinfo->input_iMCU_row) < cinfo->total_iMCU_rows) {
285
0
    start_iMCU_row(cinfo);
286
0
    return JPEG_ROW_COMPLETED;
287
0
  }
288
  /* Completed the scan */
289
0
  (*cinfo->inputctl->finish_input_pass) (cinfo);
290
0
  return JPEG_SCAN_COMPLETED;
291
0
}
Unexecuted instantiation: jdcoefct-8.c:consume_data
Unexecuted instantiation: jdcoefct-12.c:consume_data
292
293
294
/*
295
 * Decompress and return some data in the multi-pass case.
296
 * Always attempts to emit one fully interleaved MCU row ("iMCU" row).
297
 * Return value is JPEG_ROW_COMPLETED, JPEG_SCAN_COMPLETED, or JPEG_SUSPENDED.
298
 *
299
 * NB: output_buf contains a plane for each component in image.
300
 */
301
302
METHODDEF(int)
303
decompress_data(j_decompress_ptr cinfo, _JSAMPIMAGE output_buf)
304
0
{
305
0
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
306
0
  JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
307
0
  JDIMENSION block_num;
308
0
  int ci, block_row, block_rows;
309
0
  JBLOCKARRAY buffer;
310
0
  JBLOCKROW buffer_ptr;
311
0
  _JSAMPARRAY output_ptr;
312
0
  JDIMENSION output_col;
313
0
  jpeg_component_info *compptr;
314
0
  _inverse_DCT_method_ptr inverse_DCT;
315
316
  /* Force some input to be done if we are getting ahead of the input. */
317
0
  while (cinfo->input_scan_number < cinfo->output_scan_number ||
318
0
         (cinfo->input_scan_number == cinfo->output_scan_number &&
319
0
          cinfo->input_iMCU_row <= cinfo->output_iMCU_row)) {
320
0
    if ((*cinfo->inputctl->consume_input) (cinfo) == JPEG_SUSPENDED)
321
0
      return JPEG_SUSPENDED;
322
0
  }
323
324
  /* OK, output from the virtual arrays. */
325
0
  for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
326
0
       ci++, compptr++) {
327
    /* Don't bother to IDCT an uninteresting component. */
328
0
    if (!compptr->component_needed)
329
0
      continue;
330
    /* Align the virtual buffer for this component. */
331
0
    buffer = (*cinfo->mem->access_virt_barray)
332
0
      ((j_common_ptr)cinfo, coef->whole_image[ci],
333
0
       cinfo->output_iMCU_row * compptr->v_samp_factor,
334
0
       (JDIMENSION)compptr->v_samp_factor, FALSE);
335
    /* Count non-dummy DCT block rows in this iMCU row. */
336
0
    if (cinfo->output_iMCU_row < last_iMCU_row)
337
0
      block_rows = compptr->v_samp_factor;
338
0
    else {
339
      /* NB: can't use last_row_height here; it is input-side-dependent! */
340
0
      block_rows = (int)(compptr->height_in_blocks % compptr->v_samp_factor);
341
0
      if (block_rows == 0) block_rows = compptr->v_samp_factor;
342
0
    }
343
0
    inverse_DCT = cinfo->idct->_inverse_DCT[ci];
344
0
    output_ptr = output_buf[ci];
345
    /* Loop over all DCT blocks to be processed. */
346
0
    for (block_row = 0; block_row < block_rows; block_row++) {
347
0
      buffer_ptr = buffer[block_row] + cinfo->master->first_MCU_col[ci];
348
0
      output_col = 0;
349
0
      for (block_num = cinfo->master->first_MCU_col[ci];
350
0
           block_num <= cinfo->master->last_MCU_col[ci]; block_num++) {
351
#ifdef WITH_PROFILE
352
        cinfo->master->start = getTime();
353
#endif
354
0
        (*inverse_DCT) (cinfo, compptr, (JCOEFPTR)buffer_ptr, output_ptr,
355
0
                        output_col);
356
#ifdef WITH_PROFILE
357
        cinfo->master->idct_elapsed += getTime() - cinfo->master->start;
358
        cinfo->master->idct_mcoeffs += (double)DCTSIZE2 / 1000000.;
359
#endif
360
0
        buffer_ptr++;
361
0
        output_col += compptr->_DCT_scaled_size;
362
0
      }
363
0
      output_ptr += compptr->_DCT_scaled_size;
364
0
    }
365
0
  }
366
367
0
  if (++(cinfo->output_iMCU_row) < cinfo->total_iMCU_rows)
368
0
    return JPEG_ROW_COMPLETED;
369
0
  return JPEG_SCAN_COMPLETED;
370
0
}
Unexecuted instantiation: jdcoefct-8.c:decompress_data
Unexecuted instantiation: jdcoefct-12.c:decompress_data
371
372
#endif /* D_MULTISCAN_FILES_SUPPORTED */
373
374
375
#ifdef BLOCK_SMOOTHING_SUPPORTED
376
377
/*
378
 * This code applies interblock smoothing; the first 9 AC coefficients are
379
 * estimated from the DC values of a DCT block and its 24 neighboring blocks.
380
 * We apply smoothing only for progressive JPEG decoding, and only if
381
 * the coefficients it can estimate are not yet known to full precision.
382
 */
383
384
/* Natural-order array positions of the first 9 zigzag-order coefficients */
385
0
#define Q01_POS  1
386
0
#define Q10_POS  8
387
0
#define Q20_POS  16
388
0
#define Q11_POS  9
389
0
#define Q02_POS  2
390
0
#define Q03_POS  3
391
0
#define Q12_POS  10
392
0
#define Q21_POS  17
393
0
#define Q30_POS  24
394
395
/*
396
 * Determine whether block smoothing is applicable and safe.
397
 * We also latch the current states of the coef_bits[] entries for the
398
 * AC coefficients; otherwise, if the input side of the decompressor
399
 * advances into a new scan, we might think the coefficients are known
400
 * more accurately than they really are.
401
 */
402
403
LOCAL(boolean)
404
smoothing_ok(j_decompress_ptr cinfo)
405
0
{
406
0
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
407
0
  boolean smoothing_useful = FALSE;
408
0
  int ci, coefi;
409
0
  jpeg_component_info *compptr;
410
0
  JQUANT_TBL *qtable;
411
0
  int *coef_bits, *prev_coef_bits;
412
0
  int *coef_bits_latch, *prev_coef_bits_latch;
413
414
0
  if (!cinfo->progressive_mode || cinfo->coef_bits == NULL)
415
0
    return FALSE;
416
417
  /* Allocate latch area if not already done */
418
0
  if (coef->coef_bits_latch == NULL)
419
0
    coef->coef_bits_latch = (int *)
420
0
      (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
421
0
                                  cinfo->num_components * 2 *
422
0
                                  (SAVED_COEFS * sizeof(int)));
423
0
  coef_bits_latch = coef->coef_bits_latch;
424
0
  prev_coef_bits_latch =
425
0
    &coef->coef_bits_latch[cinfo->num_components * SAVED_COEFS];
426
427
0
  for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
428
0
       ci++, compptr++) {
429
    /* All components' quantization values must already be latched. */
430
0
    if ((qtable = compptr->quant_table) == NULL)
431
0
      return FALSE;
432
    /* Verify DC & first 9 AC quantizers are nonzero to avoid zero-divide. */
433
0
    if (qtable->quantval[0] == 0 ||
434
0
        qtable->quantval[Q01_POS] == 0 ||
435
0
        qtable->quantval[Q10_POS] == 0 ||
436
0
        qtable->quantval[Q20_POS] == 0 ||
437
0
        qtable->quantval[Q11_POS] == 0 ||
438
0
        qtable->quantval[Q02_POS] == 0 ||
439
0
        qtable->quantval[Q03_POS] == 0 ||
440
0
        qtable->quantval[Q12_POS] == 0 ||
441
0
        qtable->quantval[Q21_POS] == 0 ||
442
0
        qtable->quantval[Q30_POS] == 0)
443
0
      return FALSE;
444
    /* DC values must be at least partly known for all components. */
445
0
    coef_bits = cinfo->coef_bits[ci];
446
0
    prev_coef_bits = cinfo->coef_bits[ci + cinfo->num_components];
447
0
    if (coef_bits[0] < 0)
448
0
      return FALSE;
449
0
    coef_bits_latch[0] = coef_bits[0];
450
    /* Block smoothing is helpful if some AC coefficients remain inaccurate. */
451
0
    for (coefi = 1; coefi < SAVED_COEFS; coefi++) {
452
0
      if (cinfo->input_scan_number > 1)
453
0
        prev_coef_bits_latch[coefi] = prev_coef_bits[coefi];
454
0
      else
455
0
        prev_coef_bits_latch[coefi] = -1;
456
0
      coef_bits_latch[coefi] = coef_bits[coefi];
457
0
      if (coef_bits[coefi] != 0)
458
0
        smoothing_useful = TRUE;
459
0
    }
460
0
    coef_bits_latch += SAVED_COEFS;
461
0
    prev_coef_bits_latch += SAVED_COEFS;
462
0
  }
463
464
0
  return smoothing_useful;
465
0
}
Unexecuted instantiation: jdcoefct-8.c:smoothing_ok
Unexecuted instantiation: jdcoefct-12.c:smoothing_ok
466
467
468
/*
469
 * Variant of decompress_data for use when doing block smoothing.
470
 */
471
472
METHODDEF(int)
473
decompress_smooth_data(j_decompress_ptr cinfo, _JSAMPIMAGE output_buf)
474
0
{
475
0
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
476
0
  JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
477
0
  JDIMENSION block_num, last_block_column;
478
0
  int ci, block_row, block_rows, access_rows, image_block_row,
479
0
    image_block_rows;
480
0
  JBLOCKARRAY buffer;
481
0
  JBLOCKROW buffer_ptr, prev_prev_block_row, prev_block_row;
482
0
  JBLOCKROW next_block_row, next_next_block_row;
483
0
  _JSAMPARRAY output_ptr;
484
0
  JDIMENSION output_col;
485
0
  jpeg_component_info *compptr;
486
0
  _inverse_DCT_method_ptr inverse_DCT;
487
0
  boolean change_dc;
488
0
  JCOEF *workspace;
489
0
  int *coef_bits;
490
0
  JQUANT_TBL *quanttbl;
491
0
  JLONG Q00, Q01, Q02, Q03 = 0, Q10, Q11, Q12 = 0, Q20, Q21 = 0, Q30 = 0, num;
492
0
  int DC01, DC02, DC03, DC04, DC05, DC06, DC07, DC08, DC09, DC10, DC11, DC12,
493
0
      DC13, DC14, DC15, DC16, DC17, DC18, DC19, DC20, DC21, DC22, DC23, DC24,
494
0
      DC25;
495
0
  int Al, pred;
496
497
  /* Keep a local variable to avoid looking it up more than once */
498
0
  workspace = coef->workspace;
499
500
  /* Force some input to be done if we are getting ahead of the input. */
501
0
  while (cinfo->input_scan_number <= cinfo->output_scan_number &&
502
0
         !cinfo->inputctl->eoi_reached) {
503
0
    if (cinfo->input_scan_number == cinfo->output_scan_number) {
504
      /* If input is working on current scan, we ordinarily want it to
505
       * have completed the current row.  But if input scan is DC,
506
       * we want it to keep two rows ahead so that next two block rows' DC
507
       * values are up to date.
508
       */
509
0
      JDIMENSION delta = (cinfo->Ss == 0) ? 2 : 0;
510
0
      if (cinfo->input_iMCU_row > cinfo->output_iMCU_row + delta)
511
0
        break;
512
0
    }
513
0
    if ((*cinfo->inputctl->consume_input) (cinfo) == JPEG_SUSPENDED)
514
0
      return JPEG_SUSPENDED;
515
0
  }
516
517
  /* OK, output from the virtual arrays. */
518
0
  for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
519
0
       ci++, compptr++) {
520
    /* Don't bother to IDCT an uninteresting component. */
521
0
    if (!compptr->component_needed)
522
0
      continue;
523
    /* Count non-dummy DCT block rows in this iMCU row. */
524
0
    if (cinfo->output_iMCU_row + 1 < last_iMCU_row) {
525
0
      block_rows = compptr->v_samp_factor;
526
0
      access_rows = block_rows * 3; /* this and next two iMCU rows */
527
0
    } else if (cinfo->output_iMCU_row < last_iMCU_row) {
528
0
      block_rows = compptr->v_samp_factor;
529
0
      access_rows = block_rows * 2; /* this and next iMCU row */
530
0
    } else {
531
      /* NB: can't use last_row_height here; it is input-side-dependent! */
532
0
      block_rows = (int)(compptr->height_in_blocks % compptr->v_samp_factor);
533
0
      if (block_rows == 0) block_rows = compptr->v_samp_factor;
534
0
      access_rows = block_rows; /* this iMCU row only */
535
0
    }
536
    /* Align the virtual buffer for this component. */
537
0
    if (cinfo->output_iMCU_row > 1) {
538
0
      access_rows += 2 * compptr->v_samp_factor; /* prior two iMCU rows too */
539
0
      buffer = (*cinfo->mem->access_virt_barray)
540
0
        ((j_common_ptr)cinfo, coef->whole_image[ci],
541
0
         (cinfo->output_iMCU_row - 2) * compptr->v_samp_factor,
542
0
         (JDIMENSION)access_rows, FALSE);
543
0
      buffer += 2 * compptr->v_samp_factor; /* point to current iMCU row */
544
0
    } else if (cinfo->output_iMCU_row > 0) {
545
0
      access_rows += compptr->v_samp_factor; /* prior iMCU row too */
546
0
      buffer = (*cinfo->mem->access_virt_barray)
547
0
        ((j_common_ptr)cinfo, coef->whole_image[ci],
548
0
         (cinfo->output_iMCU_row - 1) * compptr->v_samp_factor,
549
0
         (JDIMENSION)access_rows, FALSE);
550
0
      buffer += compptr->v_samp_factor; /* point to current iMCU row */
551
0
    } else {
552
0
      buffer = (*cinfo->mem->access_virt_barray)
553
0
        ((j_common_ptr)cinfo, coef->whole_image[ci],
554
0
         (JDIMENSION)0, (JDIMENSION)access_rows, FALSE);
555
0
    }
556
    /* Fetch component-dependent info.
557
     * If the current scan is incomplete, then we use the component-dependent
558
     * info from the previous scan.
559
     */
560
0
    if (cinfo->output_iMCU_row > cinfo->master->last_good_iMCU_row)
561
0
      coef_bits =
562
0
        coef->coef_bits_latch + ((ci + cinfo->num_components) * SAVED_COEFS);
563
0
    else
564
0
      coef_bits = coef->coef_bits_latch + (ci * SAVED_COEFS);
565
566
    /* We only do DC interpolation if no AC coefficient data is available. */
567
0
    change_dc =
568
0
      coef_bits[1] == -1 && coef_bits[2] == -1 && coef_bits[3] == -1 &&
569
0
      coef_bits[4] == -1 && coef_bits[5] == -1 && coef_bits[6] == -1 &&
570
0
      coef_bits[7] == -1 && coef_bits[8] == -1 && coef_bits[9] == -1;
571
572
0
    quanttbl = compptr->quant_table;
573
0
    Q00 = quanttbl->quantval[0];
574
0
    Q01 = quanttbl->quantval[Q01_POS];
575
0
    Q10 = quanttbl->quantval[Q10_POS];
576
0
    Q20 = quanttbl->quantval[Q20_POS];
577
0
    Q11 = quanttbl->quantval[Q11_POS];
578
0
    Q02 = quanttbl->quantval[Q02_POS];
579
0
    if (change_dc) {
580
0
      Q03 = quanttbl->quantval[Q03_POS];
581
0
      Q12 = quanttbl->quantval[Q12_POS];
582
0
      Q21 = quanttbl->quantval[Q21_POS];
583
0
      Q30 = quanttbl->quantval[Q30_POS];
584
0
    }
585
0
    inverse_DCT = cinfo->idct->_inverse_DCT[ci];
586
0
    output_ptr = output_buf[ci];
587
    /* Loop over all DCT blocks to be processed. */
588
0
    image_block_rows = block_rows * cinfo->total_iMCU_rows;
589
0
    for (block_row = 0; block_row < block_rows; block_row++) {
590
0
      image_block_row = cinfo->output_iMCU_row * block_rows + block_row;
591
0
      buffer_ptr = buffer[block_row] + cinfo->master->first_MCU_col[ci];
592
593
0
      if (image_block_row > 0)
594
0
        prev_block_row =
595
0
          buffer[block_row - 1] + cinfo->master->first_MCU_col[ci];
596
0
      else
597
0
        prev_block_row = buffer_ptr;
598
599
0
      if (image_block_row > 1)
600
0
        prev_prev_block_row =
601
0
          buffer[block_row - 2] + cinfo->master->first_MCU_col[ci];
602
0
      else
603
0
        prev_prev_block_row = prev_block_row;
604
605
0
      if (image_block_row < image_block_rows - 1)
606
0
        next_block_row =
607
0
          buffer[block_row + 1] + cinfo->master->first_MCU_col[ci];
608
0
      else
609
0
        next_block_row = buffer_ptr;
610
611
0
      if (image_block_row < image_block_rows - 2)
612
0
        next_next_block_row =
613
0
          buffer[block_row + 2] + cinfo->master->first_MCU_col[ci];
614
0
      else
615
0
        next_next_block_row = next_block_row;
616
617
      /* We fetch the surrounding DC values using a sliding-register approach.
618
       * Initialize all 25 here so as to do the right thing on narrow pics.
619
       */
620
0
      DC01 = DC02 = DC03 = DC04 = DC05 = (int)prev_prev_block_row[0][0];
621
0
      DC06 = DC07 = DC08 = DC09 = DC10 = (int)prev_block_row[0][0];
622
0
      DC11 = DC12 = DC13 = DC14 = DC15 = (int)buffer_ptr[0][0];
623
0
      DC16 = DC17 = DC18 = DC19 = DC20 = (int)next_block_row[0][0];
624
0
      DC21 = DC22 = DC23 = DC24 = DC25 = (int)next_next_block_row[0][0];
625
0
      output_col = 0;
626
0
      last_block_column = compptr->width_in_blocks - 1;
627
0
      for (block_num = cinfo->master->first_MCU_col[ci];
628
0
           block_num <= cinfo->master->last_MCU_col[ci]; block_num++) {
629
        /* Fetch current DCT block into workspace so we can modify it. */
630
0
        jcopy_block_row(buffer_ptr, (JBLOCKROW)workspace, (JDIMENSION)1);
631
        /* Update DC values */
632
0
        if (block_num == cinfo->master->first_MCU_col[ci] &&
633
0
            block_num < last_block_column) {
634
0
          DC04 = DC05 = (int)prev_prev_block_row[1][0];
635
0
          DC09 = DC10 = (int)prev_block_row[1][0];
636
0
          DC14 = DC15 = (int)buffer_ptr[1][0];
637
0
          DC19 = DC20 = (int)next_block_row[1][0];
638
0
          DC24 = DC25 = (int)next_next_block_row[1][0];
639
0
        }
640
0
        if (block_num + 1 < last_block_column) {
641
0
          DC05 = (int)prev_prev_block_row[2][0];
642
0
          DC10 = (int)prev_block_row[2][0];
643
0
          DC15 = (int)buffer_ptr[2][0];
644
0
          DC20 = (int)next_block_row[2][0];
645
0
          DC25 = (int)next_next_block_row[2][0];
646
0
        }
647
        /* If DC interpolation is enabled, compute coefficient estimates using
648
         * a Gaussian-like kernel, keeping the averages of the DC values.
649
         *
650
         * If DC interpolation is disabled, compute coefficient estimates using
651
         * an algorithm similar to the one described in Section K.8 of the JPEG
652
         * standard, except applied to a 5x5 window rather than a 3x3 window.
653
         *
654
         * An estimate is applied only if the coefficient is still zero and is
655
         * not known to be fully accurate.
656
         */
657
        /* AC01 */
658
0
        if ((Al = coef_bits[1]) != 0 && workspace[1] == 0) {
659
0
          num = Q00 * (change_dc ?
660
0
                (-DC01 - DC02 + DC04 + DC05 - 3 * DC06 + 13 * DC07 -
661
0
                 13 * DC09 + 3 * DC10 - 3 * DC11 + 38 * DC12 - 38 * DC14 +
662
0
                 3 * DC15 - 3 * DC16 + 13 * DC17 - 13 * DC19 + 3 * DC20 -
663
0
                 DC21 - DC22 + DC24 + DC25) :
664
0
                (-7 * DC11 + 50 * DC12 - 50 * DC14 + 7 * DC15));
665
0
          if (num >= 0) {
666
0
            pred = (int)(((Q01 << 7) + num) / (Q01 << 8));
667
0
            if (Al > 0 && pred >= (1 << Al))
668
0
              pred = (1 << Al) - 1;
669
0
          } else {
670
0
            pred = (int)(((Q01 << 7) - num) / (Q01 << 8));
671
0
            if (Al > 0 && pred >= (1 << Al))
672
0
              pred = (1 << Al) - 1;
673
0
            pred = -pred;
674
0
          }
675
0
          workspace[1] = (JCOEF)pred;
676
0
        }
677
        /* AC10 */
678
0
        if ((Al = coef_bits[2]) != 0 && workspace[8] == 0) {
679
0
          num = Q00 * (change_dc ?
680
0
                (-DC01 - 3 * DC02 - 3 * DC03 - 3 * DC04 - DC05 - DC06 +
681
0
                 13 * DC07 + 38 * DC08 + 13 * DC09 - DC10 + DC16 -
682
0
                 13 * DC17 - 38 * DC18 - 13 * DC19 + DC20 + DC21 +
683
0
                 3 * DC22 + 3 * DC23 + 3 * DC24 + DC25) :
684
0
                (-7 * DC03 + 50 * DC08 - 50 * DC18 + 7 * DC23));
685
0
          if (num >= 0) {
686
0
            pred = (int)(((Q10 << 7) + num) / (Q10 << 8));
687
0
            if (Al > 0 && pred >= (1 << Al))
688
0
              pred = (1 << Al) - 1;
689
0
          } else {
690
0
            pred = (int)(((Q10 << 7) - num) / (Q10 << 8));
691
0
            if (Al > 0 && pred >= (1 << Al))
692
0
              pred = (1 << Al) - 1;
693
0
            pred = -pred;
694
0
          }
695
0
          workspace[8] = (JCOEF)pred;
696
0
        }
697
        /* AC20 */
698
0
        if ((Al = coef_bits[3]) != 0 && workspace[16] == 0) {
699
0
          num = Q00 * (change_dc ?
700
0
                (DC03 + 2 * DC07 + 7 * DC08 + 2 * DC09 - 5 * DC12 - 14 * DC13 -
701
0
                 5 * DC14 + 2 * DC17 + 7 * DC18 + 2 * DC19 + DC23) :
702
0
                (-DC03 + 13 * DC08 - 24 * DC13 + 13 * DC18 - DC23));
703
0
          if (num >= 0) {
704
0
            pred = (int)(((Q20 << 7) + num) / (Q20 << 8));
705
0
            if (Al > 0 && pred >= (1 << Al))
706
0
              pred = (1 << Al) - 1;
707
0
          } else {
708
0
            pred = (int)(((Q20 << 7) - num) / (Q20 << 8));
709
0
            if (Al > 0 && pred >= (1 << Al))
710
0
              pred = (1 << Al) - 1;
711
0
            pred = -pred;
712
0
          }
713
0
          workspace[16] = (JCOEF)pred;
714
0
        }
715
        /* AC11 */
716
0
        if ((Al = coef_bits[4]) != 0 && workspace[9] == 0) {
717
0
          num = Q00 * (change_dc ?
718
0
                (-DC01 + DC05 + 9 * DC07 - 9 * DC09 - 9 * DC17 +
719
0
                 9 * DC19 + DC21 - DC25) :
720
0
                (DC10 + DC16 - 10 * DC17 + 10 * DC19 - DC02 - DC20 + DC22 -
721
0
                 DC24 + DC04 - DC06 + 10 * DC07 - 10 * DC09));
722
0
          if (num >= 0) {
723
0
            pred = (int)(((Q11 << 7) + num) / (Q11 << 8));
724
0
            if (Al > 0 && pred >= (1 << Al))
725
0
              pred = (1 << Al) - 1;
726
0
          } else {
727
0
            pred = (int)(((Q11 << 7) - num) / (Q11 << 8));
728
0
            if (Al > 0 && pred >= (1 << Al))
729
0
              pred = (1 << Al) - 1;
730
0
            pred = -pred;
731
0
          }
732
0
          workspace[9] = (JCOEF)pred;
733
0
        }
734
        /* AC02 */
735
0
        if ((Al = coef_bits[5]) != 0 && workspace[2] == 0) {
736
0
          num = Q00 * (change_dc ?
737
0
                (2 * DC07 - 5 * DC08 + 2 * DC09 + DC11 + 7 * DC12 - 14 * DC13 +
738
0
                 7 * DC14 + DC15 + 2 * DC17 - 5 * DC18 + 2 * DC19) :
739
0
                (-DC11 + 13 * DC12 - 24 * DC13 + 13 * DC14 - DC15));
740
0
          if (num >= 0) {
741
0
            pred = (int)(((Q02 << 7) + num) / (Q02 << 8));
742
0
            if (Al > 0 && pred >= (1 << Al))
743
0
              pred = (1 << Al) - 1;
744
0
          } else {
745
0
            pred = (int)(((Q02 << 7) - num) / (Q02 << 8));
746
0
            if (Al > 0 && pred >= (1 << Al))
747
0
              pred = (1 << Al) - 1;
748
0
            pred = -pred;
749
0
          }
750
0
          workspace[2] = (JCOEF)pred;
751
0
        }
752
0
        if (change_dc) {
753
          /* AC03 */
754
0
          if ((Al = coef_bits[6]) != 0 && workspace[3] == 0) {
755
0
            num = Q00 * (DC07 - DC09 + 2 * DC12 - 2 * DC14 + DC17 - DC19);
756
0
            if (num >= 0) {
757
0
              pred = (int)(((Q03 << 7) + num) / (Q03 << 8));
758
0
              if (Al > 0 && pred >= (1 << Al))
759
0
                pred = (1 << Al) - 1;
760
0
            } else {
761
0
              pred = (int)(((Q03 << 7) - num) / (Q03 << 8));
762
0
              if (Al > 0 && pred >= (1 << Al))
763
0
                pred = (1 << Al) - 1;
764
0
              pred = -pred;
765
0
            }
766
0
            workspace[3] = (JCOEF)pred;
767
0
          }
768
          /* AC12 */
769
0
          if ((Al = coef_bits[7]) != 0 && workspace[10] == 0) {
770
0
            num = Q00 * (DC07 - 3 * DC08 + DC09 - DC17 + 3 * DC18 - DC19);
771
0
            if (num >= 0) {
772
0
              pred = (int)(((Q12 << 7) + num) / (Q12 << 8));
773
0
              if (Al > 0 && pred >= (1 << Al))
774
0
                pred = (1 << Al) - 1;
775
0
            } else {
776
0
              pred = (int)(((Q12 << 7) - num) / (Q12 << 8));
777
0
              if (Al > 0 && pred >= (1 << Al))
778
0
                pred = (1 << Al) - 1;
779
0
              pred = -pred;
780
0
            }
781
0
            workspace[10] = (JCOEF)pred;
782
0
          }
783
          /* AC21 */
784
0
          if ((Al = coef_bits[8]) != 0 && workspace[17] == 0) {
785
0
            num = Q00 * (DC07 - DC09 - 3 * DC12 + 3 * DC14 + DC17 - DC19);
786
0
            if (num >= 0) {
787
0
              pred = (int)(((Q21 << 7) + num) / (Q21 << 8));
788
0
              if (Al > 0 && pred >= (1 << Al))
789
0
                pred = (1 << Al) - 1;
790
0
            } else {
791
0
              pred = (int)(((Q21 << 7) - num) / (Q21 << 8));
792
0
              if (Al > 0 && pred >= (1 << Al))
793
0
                pred = (1 << Al) - 1;
794
0
              pred = -pred;
795
0
            }
796
0
            workspace[17] = (JCOEF)pred;
797
0
          }
798
          /* AC30 */
799
0
          if ((Al = coef_bits[9]) != 0 && workspace[24] == 0) {
800
0
            num = Q00 * (DC07 + 2 * DC08 + DC09 - DC17 - 2 * DC18 - DC19);
801
0
            if (num >= 0) {
802
0
              pred = (int)(((Q30 << 7) + num) / (Q30 << 8));
803
0
              if (Al > 0 && pred >= (1 << Al))
804
0
                pred = (1 << Al) - 1;
805
0
            } else {
806
0
              pred = (int)(((Q30 << 7) - num) / (Q30 << 8));
807
0
              if (Al > 0 && pred >= (1 << Al))
808
0
                pred = (1 << Al) - 1;
809
0
              pred = -pred;
810
0
            }
811
0
            workspace[24] = (JCOEF)pred;
812
0
          }
813
          /* coef_bits[0] is non-negative.  Otherwise this function would not
814
           * be called.
815
           */
816
0
          num = Q00 *
817
0
                (-2 * DC01 - 6 * DC02 - 8 * DC03 - 6 * DC04 - 2 * DC05 -
818
0
                 6 * DC06 + 6 * DC07 + 42 * DC08 + 6 * DC09 - 6 * DC10 -
819
0
                 8 * DC11 + 42 * DC12 + 152 * DC13 + 42 * DC14 - 8 * DC15 -
820
0
                 6 * DC16 + 6 * DC17 + 42 * DC18 + 6 * DC19 - 6 * DC20 -
821
0
                 2 * DC21 - 6 * DC22 - 8 * DC23 - 6 * DC24 - 2 * DC25);
822
0
          if (num >= 0) {
823
0
            pred = (int)(((Q00 << 7) + num) / (Q00 << 8));
824
0
          } else {
825
0
            pred = (int)(((Q00 << 7) - num) / (Q00 << 8));
826
0
            pred = -pred;
827
0
          }
828
0
          workspace[0] = (JCOEF)pred;
829
0
        }  /* change_dc */
830
831
        /* OK, do the IDCT */
832
#ifdef WITH_PROFILE
833
        cinfo->master->start = getTime();
834
#endif
835
0
        (*inverse_DCT) (cinfo, compptr, (JCOEFPTR)workspace, output_ptr,
836
0
                        output_col);
837
#ifdef WITH_PROFILE
838
        cinfo->master->idct_elapsed += getTime() - cinfo->master->start;
839
        cinfo->master->idct_mcoeffs += (double)DCTSIZE2 / 1000000.;
840
#endif
841
        /* Advance for next column */
842
0
        DC01 = DC02;  DC02 = DC03;  DC03 = DC04;  DC04 = DC05;
843
0
        DC06 = DC07;  DC07 = DC08;  DC08 = DC09;  DC09 = DC10;
844
0
        DC11 = DC12;  DC12 = DC13;  DC13 = DC14;  DC14 = DC15;
845
0
        DC16 = DC17;  DC17 = DC18;  DC18 = DC19;  DC19 = DC20;
846
0
        DC21 = DC22;  DC22 = DC23;  DC23 = DC24;  DC24 = DC25;
847
0
        buffer_ptr++, prev_block_row++, next_block_row++,
848
0
          prev_prev_block_row++, next_next_block_row++;
849
0
        output_col += compptr->_DCT_scaled_size;
850
0
      }
851
0
      output_ptr += compptr->_DCT_scaled_size;
852
0
    }
853
0
  }
854
855
0
  if (++(cinfo->output_iMCU_row) < cinfo->total_iMCU_rows)
856
0
    return JPEG_ROW_COMPLETED;
857
0
  return JPEG_SCAN_COMPLETED;
858
0
}
Unexecuted instantiation: jdcoefct-8.c:decompress_smooth_data
Unexecuted instantiation: jdcoefct-12.c:decompress_smooth_data
859
860
#endif /* BLOCK_SMOOTHING_SUPPORTED */
861
862
863
/*
864
 * Initialize coefficient buffer controller.
865
 */
866
867
GLOBAL(void)
868
_jinit_d_coef_controller(j_decompress_ptr cinfo, boolean need_full_buffer)
869
0
{
870
0
  my_coef_ptr coef;
871
872
0
  if (cinfo->data_precision != BITS_IN_JSAMPLE)
873
0
    ERREXIT1(cinfo, JERR_BAD_PRECISION, cinfo->data_precision);
874
875
0
  coef = (my_coef_ptr)
876
0
    (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
877
0
                                sizeof(my_coef_controller));
878
0
  memset(coef, 0, sizeof(my_coef_controller));
879
0
  cinfo->coef = (struct jpeg_d_coef_controller *)coef;
880
0
  coef->pub.start_input_pass = start_input_pass;
881
0
  coef->pub.start_output_pass = start_output_pass;
882
0
#ifdef BLOCK_SMOOTHING_SUPPORTED
883
0
  coef->coef_bits_latch = NULL;
884
0
#endif
885
886
  /* Create the coefficient buffer. */
887
0
  if (need_full_buffer) {
888
0
#ifdef D_MULTISCAN_FILES_SUPPORTED
889
    /* Allocate a full-image virtual array for each component, */
890
    /* padded to a multiple of samp_factor DCT blocks in each direction. */
891
    /* Note we ask for a pre-zeroed array. */
892
0
    int ci, access_rows;
893
0
    jpeg_component_info *compptr;
894
895
0
    for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
896
0
         ci++, compptr++) {
897
0
      access_rows = compptr->v_samp_factor;
898
0
#ifdef BLOCK_SMOOTHING_SUPPORTED
899
      /* If block smoothing could be used, need a bigger window */
900
0
      if (cinfo->progressive_mode)
901
0
        access_rows *= 5;
902
0
#endif
903
0
      coef->whole_image[ci] = (*cinfo->mem->request_virt_barray)
904
0
        ((j_common_ptr)cinfo, JPOOL_IMAGE, TRUE,
905
0
         (JDIMENSION)jround_up((long)compptr->width_in_blocks,
906
0
                               (long)compptr->h_samp_factor),
907
0
         (JDIMENSION)jround_up((long)compptr->height_in_blocks,
908
0
                               (long)compptr->v_samp_factor),
909
0
         (JDIMENSION)access_rows);
910
0
    }
911
0
    coef->pub.consume_data = consume_data;
912
0
    coef->pub._decompress_data = decompress_data;
913
0
    coef->pub.coef_arrays = coef->whole_image; /* link to virtual arrays */
914
#else
915
    ERREXIT(cinfo, JERR_NOT_COMPILED);
916
#endif
917
0
  } else {
918
    /* We only need a single-MCU buffer. */
919
0
    JBLOCKROW buffer;
920
0
    int i;
921
922
0
    buffer = (JBLOCKROW)
923
0
      (*cinfo->mem->alloc_large) ((j_common_ptr)cinfo, JPOOL_IMAGE,
924
0
                                  D_MAX_BLOCKS_IN_MCU * sizeof(JBLOCK));
925
0
    for (i = 0; i < D_MAX_BLOCKS_IN_MCU; i++) {
926
0
      coef->MCU_buffer[i] = buffer + i;
927
0
    }
928
0
    coef->pub.consume_data = dummy_consume_data;
929
0
    coef->pub._decompress_data = decompress_onepass;
930
0
    coef->pub.coef_arrays = NULL; /* flag for no virtual arrays */
931
0
  }
932
933
  /* Allocate the workspace buffer */
934
0
  coef->workspace = (JCOEF *)
935
0
    (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
936
0
                                sizeof(JCOEF) * DCTSIZE2);
937
0
}
Unexecuted instantiation: jinit_d_coef_controller
Unexecuted instantiation: j12init_d_coef_controller