Coverage Report

Created: 2025-10-12 07:05

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, 2022-2024, 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
27
28
/* Forward declarations */
29
METHODDEF(int) decompress_onepass(j_decompress_ptr cinfo,
30
                                  _JSAMPIMAGE output_buf);
31
#ifdef D_MULTISCAN_FILES_SUPPORTED
32
METHODDEF(int) decompress_data(j_decompress_ptr cinfo, _JSAMPIMAGE output_buf);
33
#endif
34
#ifdef BLOCK_SMOOTHING_SUPPORTED
35
LOCAL(boolean) smoothing_ok(j_decompress_ptr cinfo);
36
METHODDEF(int) decompress_smooth_data(j_decompress_ptr cinfo,
37
                                      _JSAMPIMAGE output_buf);
38
#endif
39
40
41
/*
42
 * Initialize for an input processing pass.
43
 */
44
45
METHODDEF(void)
46
start_input_pass(j_decompress_ptr cinfo)
47
6.77k
{
48
6.77k
  cinfo->input_iMCU_row = 0;
49
6.77k
  start_iMCU_row(cinfo);
50
6.77k
}
jdcoefct-8.c:start_input_pass
Line
Count
Source
47
5.66k
{
48
5.66k
  cinfo->input_iMCU_row = 0;
49
5.66k
  start_iMCU_row(cinfo);
50
5.66k
}
jdcoefct-12.c:start_input_pass
Line
Count
Source
47
1.11k
{
48
1.11k
  cinfo->input_iMCU_row = 0;
49
1.11k
  start_iMCU_row(cinfo);
50
1.11k
}
51
52
53
/*
54
 * Initialize for an output processing pass.
55
 */
56
57
METHODDEF(void)
58
start_output_pass(j_decompress_ptr cinfo)
59
1.69k
{
60
1.69k
#ifdef BLOCK_SMOOTHING_SUPPORTED
61
1.69k
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
62
63
  /* If multipass, check to see whether to use block smoothing on this pass */
64
1.69k
  if (coef->pub.coef_arrays != NULL) {
65
804
    if (cinfo->do_block_smoothing && smoothing_ok(cinfo))
66
470
      coef->pub._decompress_data = decompress_smooth_data;
67
334
    else
68
334
      coef->pub._decompress_data = decompress_data;
69
804
  }
70
1.69k
#endif
71
1.69k
  cinfo->output_iMCU_row = 0;
72
1.69k
}
jdcoefct-8.c:start_output_pass
Line
Count
Source
59
1.58k
{
60
1.58k
#ifdef BLOCK_SMOOTHING_SUPPORTED
61
1.58k
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
62
63
  /* If multipass, check to see whether to use block smoothing on this pass */
64
1.58k
  if (coef->pub.coef_arrays != NULL) {
65
704
    if (cinfo->do_block_smoothing && smoothing_ok(cinfo))
66
433
      coef->pub._decompress_data = decompress_smooth_data;
67
271
    else
68
271
      coef->pub._decompress_data = decompress_data;
69
704
  }
70
1.58k
#endif
71
1.58k
  cinfo->output_iMCU_row = 0;
72
1.58k
}
jdcoefct-12.c:start_output_pass
Line
Count
Source
59
102
{
60
102
#ifdef BLOCK_SMOOTHING_SUPPORTED
61
102
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
62
63
  /* If multipass, check to see whether to use block smoothing on this pass */
64
102
  if (coef->pub.coef_arrays != NULL) {
65
100
    if (cinfo->do_block_smoothing && smoothing_ok(cinfo))
66
37
      coef->pub._decompress_data = decompress_smooth_data;
67
63
    else
68
63
      coef->pub._decompress_data = decompress_data;
69
100
  }
70
102
#endif
71
102
  cinfo->output_iMCU_row = 0;
72
102
}
73
74
75
/*
76
 * Decompress and return some data in the single-pass case.
77
 * Always attempts to emit one fully interleaved MCU row ("iMCU" row).
78
 * Input and output must run in lockstep since we have only a one-MCU buffer.
79
 * Return value is JPEG_ROW_COMPLETED, JPEG_SCAN_COMPLETED, or JPEG_SUSPENDED.
80
 *
81
 * NB: output_buf contains a plane for each component in image,
82
 * which we index according to the component's SOF position.
83
 */
84
85
METHODDEF(int)
86
decompress_onepass(j_decompress_ptr cinfo, _JSAMPIMAGE output_buf)
87
157k
{
88
157k
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
89
157k
  JDIMENSION MCU_col_num;       /* index of current MCU within row */
90
157k
  JDIMENSION last_MCU_col = cinfo->MCUs_per_row - 1;
91
157k
  JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
92
157k
  int blkn, ci, xindex, yindex, yoffset, useful_width;
93
157k
  _JSAMPARRAY output_ptr;
94
157k
  JDIMENSION start_col, output_col;
95
157k
  jpeg_component_info *compptr;
96
157k
  _inverse_DCT_method_ptr inverse_DCT;
97
98
  /* Loop to process as much as one whole iMCU row */
99
504k
  for (yoffset = coef->MCU_vert_offset; yoffset < coef->MCU_rows_per_iMCU_row;
100
347k
       yoffset++) {
101
5.49M
    for (MCU_col_num = coef->MCU_ctr; MCU_col_num <= last_MCU_col;
102
5.14M
         MCU_col_num++) {
103
      /* Try to fetch an MCU.  Entropy decoder expects buffer to be zeroed. */
104
5.14M
      jzero_far((void *)coef->MCU_buffer[0],
105
5.14M
                (size_t)(cinfo->blocks_in_MCU * sizeof(JBLOCK)));
106
5.14M
      if (!cinfo->entropy->insufficient_data)
107
5.14M
        cinfo->master->last_good_iMCU_row = cinfo->input_iMCU_row;
108
5.14M
      if (!(*cinfo->entropy->decode_mcu) (cinfo, coef->MCU_buffer)) {
109
        /* Suspension forced; update state counters and exit */
110
0
        coef->MCU_vert_offset = yoffset;
111
0
        coef->MCU_ctr = MCU_col_num;
112
0
        return JPEG_SUSPENDED;
113
0
      }
114
115
      /* Only perform the IDCT on blocks that are contained within the desired
116
       * cropping region.
117
       */
118
5.14M
      if (MCU_col_num >= cinfo->master->first_iMCU_col &&
119
5.14M
          MCU_col_num <= cinfo->master->last_iMCU_col) {
120
        /* Determine where data should go in output_buf and do the IDCT thing.
121
         * We skip dummy blocks at the right and bottom edges (but blkn gets
122
         * incremented past them!).  Note the inner loop relies on having
123
         * allocated the MCU_buffer[] blocks sequentially.
124
         */
125
5.14M
        blkn = 0;               /* index of current DCT block within MCU */
126
10.3M
        for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
127
5.22M
          compptr = cinfo->cur_comp_info[ci];
128
          /* Don't bother to IDCT an uninteresting component. */
129
5.22M
          if (!compptr->component_needed) {
130
0
            blkn += compptr->MCU_blocks;
131
0
            continue;
132
0
          }
133
5.22M
          inverse_DCT = cinfo->idct->_inverse_DCT[compptr->component_index];
134
5.22M
          useful_width = (MCU_col_num < last_MCU_col) ?
135
4.86M
                         compptr->MCU_width : compptr->last_col_width;
136
5.22M
          output_ptr = output_buf[compptr->component_index] +
137
5.22M
                       yoffset * compptr->_DCT_scaled_size;
138
5.22M
          start_col = (MCU_col_num - cinfo->master->first_iMCU_col) *
139
5.22M
                      compptr->MCU_sample_width;
140
10.5M
          for (yindex = 0; yindex < compptr->MCU_height; yindex++) {
141
5.29M
            if (cinfo->input_iMCU_row < last_iMCU_row ||
142
5.29M
                yoffset + yindex < compptr->last_row_height) {
143
5.29M
              output_col = start_col;
144
10.6M
              for (xindex = 0; xindex < useful_width; xindex++) {
145
5.36M
                (*inverse_DCT) (cinfo, compptr,
146
5.36M
                                (JCOEFPTR)coef->MCU_buffer[blkn + xindex],
147
5.36M
                                output_ptr, output_col);
148
5.36M
                output_col += compptr->_DCT_scaled_size;
149
5.36M
              }
150
5.29M
            }
151
5.29M
            blkn += compptr->MCU_width;
152
5.29M
            output_ptr += compptr->_DCT_scaled_size;
153
5.29M
          }
154
5.22M
        }
155
5.14M
      }
156
5.14M
    }
157
    /* Completed an MCU row, but perhaps not an iMCU row */
158
347k
    coef->MCU_ctr = 0;
159
347k
  }
160
  /* Completed the iMCU row, advance counters for next one */
161
157k
  cinfo->output_iMCU_row++;
162
157k
  if (++(cinfo->input_iMCU_row) < cinfo->total_iMCU_rows) {
163
156k
    start_iMCU_row(cinfo);
164
156k
    return JPEG_ROW_COMPLETED;
165
156k
  }
166
  /* Completed the scan */
167
884
  (*cinfo->inputctl->finish_input_pass) (cinfo);
168
884
  return JPEG_SCAN_COMPLETED;
169
157k
}
jdcoefct-8.c:decompress_onepass
Line
Count
Source
87
157k
{
88
157k
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
89
157k
  JDIMENSION MCU_col_num;       /* index of current MCU within row */
90
157k
  JDIMENSION last_MCU_col = cinfo->MCUs_per_row - 1;
91
157k
  JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
92
157k
  int blkn, ci, xindex, yindex, yoffset, useful_width;
93
157k
  _JSAMPARRAY output_ptr;
94
157k
  JDIMENSION start_col, output_col;
95
157k
  jpeg_component_info *compptr;
96
157k
  _inverse_DCT_method_ptr inverse_DCT;
97
98
  /* Loop to process as much as one whole iMCU row */
99
504k
  for (yoffset = coef->MCU_vert_offset; yoffset < coef->MCU_rows_per_iMCU_row;
100
347k
       yoffset++) {
101
5.49M
    for (MCU_col_num = coef->MCU_ctr; MCU_col_num <= last_MCU_col;
102
5.14M
         MCU_col_num++) {
103
      /* Try to fetch an MCU.  Entropy decoder expects buffer to be zeroed. */
104
5.14M
      jzero_far((void *)coef->MCU_buffer[0],
105
5.14M
                (size_t)(cinfo->blocks_in_MCU * sizeof(JBLOCK)));
106
5.14M
      if (!cinfo->entropy->insufficient_data)
107
5.14M
        cinfo->master->last_good_iMCU_row = cinfo->input_iMCU_row;
108
5.14M
      if (!(*cinfo->entropy->decode_mcu) (cinfo, coef->MCU_buffer)) {
109
        /* Suspension forced; update state counters and exit */
110
0
        coef->MCU_vert_offset = yoffset;
111
0
        coef->MCU_ctr = MCU_col_num;
112
0
        return JPEG_SUSPENDED;
113
0
      }
114
115
      /* Only perform the IDCT on blocks that are contained within the desired
116
       * cropping region.
117
       */
118
5.14M
      if (MCU_col_num >= cinfo->master->first_iMCU_col &&
119
5.14M
          MCU_col_num <= cinfo->master->last_iMCU_col) {
120
        /* Determine where data should go in output_buf and do the IDCT thing.
121
         * We skip dummy blocks at the right and bottom edges (but blkn gets
122
         * incremented past them!).  Note the inner loop relies on having
123
         * allocated the MCU_buffer[] blocks sequentially.
124
         */
125
5.14M
        blkn = 0;               /* index of current DCT block within MCU */
126
10.3M
        for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
127
5.22M
          compptr = cinfo->cur_comp_info[ci];
128
          /* Don't bother to IDCT an uninteresting component. */
129
5.22M
          if (!compptr->component_needed) {
130
0
            blkn += compptr->MCU_blocks;
131
0
            continue;
132
0
          }
133
5.22M
          inverse_DCT = cinfo->idct->_inverse_DCT[compptr->component_index];
134
5.22M
          useful_width = (MCU_col_num < last_MCU_col) ?
135
4.86M
                         compptr->MCU_width : compptr->last_col_width;
136
5.22M
          output_ptr = output_buf[compptr->component_index] +
137
5.22M
                       yoffset * compptr->_DCT_scaled_size;
138
5.22M
          start_col = (MCU_col_num - cinfo->master->first_iMCU_col) *
139
5.22M
                      compptr->MCU_sample_width;
140
10.5M
          for (yindex = 0; yindex < compptr->MCU_height; yindex++) {
141
5.29M
            if (cinfo->input_iMCU_row < last_iMCU_row ||
142
5.29M
                yoffset + yindex < compptr->last_row_height) {
143
5.29M
              output_col = start_col;
144
10.6M
              for (xindex = 0; xindex < useful_width; xindex++) {
145
5.36M
                (*inverse_DCT) (cinfo, compptr,
146
5.36M
                                (JCOEFPTR)coef->MCU_buffer[blkn + xindex],
147
5.36M
                                output_ptr, output_col);
148
5.36M
                output_col += compptr->_DCT_scaled_size;
149
5.36M
              }
150
5.29M
            }
151
5.29M
            blkn += compptr->MCU_width;
152
5.29M
            output_ptr += compptr->_DCT_scaled_size;
153
5.29M
          }
154
5.22M
        }
155
5.14M
      }
156
5.14M
    }
157
    /* Completed an MCU row, but perhaps not an iMCU row */
158
347k
    coef->MCU_ctr = 0;
159
347k
  }
160
  /* Completed the iMCU row, advance counters for next one */
161
157k
  cinfo->output_iMCU_row++;
162
157k
  if (++(cinfo->input_iMCU_row) < cinfo->total_iMCU_rows) {
163
156k
    start_iMCU_row(cinfo);
164
156k
    return JPEG_ROW_COMPLETED;
165
156k
  }
166
  /* Completed the scan */
167
884
  (*cinfo->inputctl->finish_input_pass) (cinfo);
168
884
  return JPEG_SCAN_COMPLETED;
169
157k
}
Unexecuted instantiation: jdcoefct-12.c:decompress_onepass
170
171
172
/*
173
 * Dummy consume-input routine for single-pass operation.
174
 */
175
176
METHODDEF(int)
177
dummy_consume_data(j_decompress_ptr cinfo)
178
0
{
179
0
  return JPEG_SUSPENDED;        /* Always indicate nothing was done */
180
0
}
Unexecuted instantiation: jdcoefct-8.c:dummy_consume_data
Unexecuted instantiation: jdcoefct-12.c:dummy_consume_data
181
182
183
#ifdef D_MULTISCAN_FILES_SUPPORTED
184
185
/*
186
 * Consume input data and store it in the full-image coefficient buffer.
187
 * We read as much as one fully interleaved MCU row ("iMCU" row) per call,
188
 * ie, v_samp_factor block rows for each component in the scan.
189
 * Return value is JPEG_ROW_COMPLETED, JPEG_SCAN_COMPLETED, or JPEG_SUSPENDED.
190
 */
191
192
METHODDEF(int)
193
consume_data(j_decompress_ptr cinfo)
194
1.29M
{
195
1.29M
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
196
1.29M
  JDIMENSION MCU_col_num;       /* index of current MCU within row */
197
1.29M
  int blkn, ci, xindex, yindex, yoffset;
198
1.29M
  JDIMENSION start_col;
199
1.29M
  JBLOCKARRAY buffer[MAX_COMPS_IN_SCAN];
200
1.29M
  JBLOCKROW buffer_ptr;
201
1.29M
  jpeg_component_info *compptr;
202
203
  /* Align the virtual buffers for the components used in this scan. */
204
2.68M
  for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
205
1.38M
    compptr = cinfo->cur_comp_info[ci];
206
1.38M
    buffer[ci] = (*cinfo->mem->access_virt_barray)
207
1.38M
      ((j_common_ptr)cinfo, coef->whole_image[compptr->component_index],
208
1.38M
       cinfo->input_iMCU_row * compptr->v_samp_factor,
209
1.38M
       (JDIMENSION)compptr->v_samp_factor, TRUE);
210
    /* Note: entropy decoder expects buffer to be zeroed,
211
     * but this is handled automatically by the memory manager
212
     * because we requested a pre-zeroed array.
213
     */
214
1.38M
  }
215
216
  /* Loop to process one whole iMCU row */
217
3.19M
  for (yoffset = coef->MCU_vert_offset; yoffset < coef->MCU_rows_per_iMCU_row;
218
1.89M
       yoffset++) {
219
67.7M
    for (MCU_col_num = coef->MCU_ctr; MCU_col_num < cinfo->MCUs_per_row;
220
65.8M
         MCU_col_num++) {
221
      /* Construct list of pointers to DCT blocks belonging to this MCU */
222
65.8M
      blkn = 0;                 /* index of current DCT block within MCU */
223
133M
      for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
224
67.7M
        compptr = cinfo->cur_comp_info[ci];
225
67.7M
        start_col = MCU_col_num * compptr->MCU_width;
226
136M
        for (yindex = 0; yindex < compptr->MCU_height; yindex++) {
227
68.7M
          buffer_ptr = buffer[ci][yindex + yoffset] + start_col;
228
140M
          for (xindex = 0; xindex < compptr->MCU_width; xindex++) {
229
72.2M
            coef->MCU_buffer[blkn++] = buffer_ptr++;
230
72.2M
          }
231
68.7M
        }
232
67.7M
      }
233
65.8M
      if (!cinfo->entropy->insufficient_data)
234
65.8M
        cinfo->master->last_good_iMCU_row = cinfo->input_iMCU_row;
235
      /* Try to fetch the MCU. */
236
65.8M
      if (!(*cinfo->entropy->decode_mcu) (cinfo, coef->MCU_buffer)) {
237
        /* Suspension forced; update state counters and exit */
238
0
        coef->MCU_vert_offset = yoffset;
239
0
        coef->MCU_ctr = MCU_col_num;
240
0
        return JPEG_SUSPENDED;
241
0
      }
242
65.8M
    }
243
    /* Completed an MCU row, but perhaps not an iMCU row */
244
1.89M
    coef->MCU_ctr = 0;
245
1.89M
  }
246
  /* Completed the iMCU row, advance counters for next one */
247
1.29M
  if (++(cinfo->input_iMCU_row) < cinfo->total_iMCU_rows) {
248
1.28M
    start_iMCU_row(cinfo);
249
1.28M
    return JPEG_ROW_COMPLETED;
250
1.28M
  }
251
  /* Completed the scan */
252
5.89k
  (*cinfo->inputctl->finish_input_pass) (cinfo);
253
5.89k
  return JPEG_SCAN_COMPLETED;
254
1.29M
}
jdcoefct-8.c:consume_data
Line
Count
Source
194
1.11M
{
195
1.11M
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
196
1.11M
  JDIMENSION MCU_col_num;       /* index of current MCU within row */
197
1.11M
  int blkn, ci, xindex, yindex, yoffset;
198
1.11M
  JDIMENSION start_col;
199
1.11M
  JBLOCKARRAY buffer[MAX_COMPS_IN_SCAN];
200
1.11M
  JBLOCKROW buffer_ptr;
201
1.11M
  jpeg_component_info *compptr;
202
203
  /* Align the virtual buffers for the components used in this scan. */
204
2.28M
  for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
205
1.17M
    compptr = cinfo->cur_comp_info[ci];
206
1.17M
    buffer[ci] = (*cinfo->mem->access_virt_barray)
207
1.17M
      ((j_common_ptr)cinfo, coef->whole_image[compptr->component_index],
208
1.17M
       cinfo->input_iMCU_row * compptr->v_samp_factor,
209
1.17M
       (JDIMENSION)compptr->v_samp_factor, TRUE);
210
    /* Note: entropy decoder expects buffer to be zeroed,
211
     * but this is handled automatically by the memory manager
212
     * because we requested a pre-zeroed array.
213
     */
214
1.17M
  }
215
216
  /* Loop to process one whole iMCU row */
217
2.72M
  for (yoffset = coef->MCU_vert_offset; yoffset < coef->MCU_rows_per_iMCU_row;
218
1.61M
       yoffset++) {
219
58.5M
    for (MCU_col_num = coef->MCU_ctr; MCU_col_num < cinfo->MCUs_per_row;
220
56.8M
         MCU_col_num++) {
221
      /* Construct list of pointers to DCT blocks belonging to this MCU */
222
56.8M
      blkn = 0;                 /* index of current DCT block within MCU */
223
115M
      for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
224
58.5M
        compptr = cinfo->cur_comp_info[ci];
225
58.5M
        start_col = MCU_col_num * compptr->MCU_width;
226
117M
        for (yindex = 0; yindex < compptr->MCU_height; yindex++) {
227
59.3M
          buffer_ptr = buffer[ci][yindex + yoffset] + start_col;
228
121M
          for (xindex = 0; xindex < compptr->MCU_width; xindex++) {
229
61.9M
            coef->MCU_buffer[blkn++] = buffer_ptr++;
230
61.9M
          }
231
59.3M
        }
232
58.5M
      }
233
56.8M
      if (!cinfo->entropy->insufficient_data)
234
56.8M
        cinfo->master->last_good_iMCU_row = cinfo->input_iMCU_row;
235
      /* Try to fetch the MCU. */
236
56.8M
      if (!(*cinfo->entropy->decode_mcu) (cinfo, coef->MCU_buffer)) {
237
        /* Suspension forced; update state counters and exit */
238
0
        coef->MCU_vert_offset = yoffset;
239
0
        coef->MCU_ctr = MCU_col_num;
240
0
        return JPEG_SUSPENDED;
241
0
      }
242
56.8M
    }
243
    /* Completed an MCU row, but perhaps not an iMCU row */
244
1.61M
    coef->MCU_ctr = 0;
245
1.61M
  }
246
  /* Completed the iMCU row, advance counters for next one */
247
1.11M
  if (++(cinfo->input_iMCU_row) < cinfo->total_iMCU_rows) {
248
1.10M
    start_iMCU_row(cinfo);
249
1.10M
    return JPEG_ROW_COMPLETED;
250
1.10M
  }
251
  /* Completed the scan */
252
4.77k
  (*cinfo->inputctl->finish_input_pass) (cinfo);
253
4.77k
  return JPEG_SCAN_COMPLETED;
254
1.11M
}
jdcoefct-12.c:consume_data
Line
Count
Source
194
182k
{
195
182k
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
196
182k
  JDIMENSION MCU_col_num;       /* index of current MCU within row */
197
182k
  int blkn, ci, xindex, yindex, yoffset;
198
182k
  JDIMENSION start_col;
199
182k
  JBLOCKARRAY buffer[MAX_COMPS_IN_SCAN];
200
182k
  JBLOCKROW buffer_ptr;
201
182k
  jpeg_component_info *compptr;
202
203
  /* Align the virtual buffers for the components used in this scan. */
204
397k
  for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
205
214k
    compptr = cinfo->cur_comp_info[ci];
206
214k
    buffer[ci] = (*cinfo->mem->access_virt_barray)
207
214k
      ((j_common_ptr)cinfo, coef->whole_image[compptr->component_index],
208
214k
       cinfo->input_iMCU_row * compptr->v_samp_factor,
209
214k
       (JDIMENSION)compptr->v_samp_factor, TRUE);
210
    /* Note: entropy decoder expects buffer to be zeroed,
211
     * but this is handled automatically by the memory manager
212
     * because we requested a pre-zeroed array.
213
     */
214
214k
  }
215
216
  /* Loop to process one whole iMCU row */
217
465k
  for (yoffset = coef->MCU_vert_offset; yoffset < coef->MCU_rows_per_iMCU_row;
218
282k
       yoffset++) {
219
9.19M
    for (MCU_col_num = coef->MCU_ctr; MCU_col_num < cinfo->MCUs_per_row;
220
8.91M
         MCU_col_num++) {
221
      /* Construct list of pointers to DCT blocks belonging to this MCU */
222
8.91M
      blkn = 0;                 /* index of current DCT block within MCU */
223
18.1M
      for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
224
9.18M
        compptr = cinfo->cur_comp_info[ci];
225
9.18M
        start_col = MCU_col_num * compptr->MCU_width;
226
18.6M
        for (yindex = 0; yindex < compptr->MCU_height; yindex++) {
227
9.41M
          buffer_ptr = buffer[ci][yindex + yoffset] + start_col;
228
19.6M
          for (xindex = 0; xindex < compptr->MCU_width; xindex++) {
229
10.2M
            coef->MCU_buffer[blkn++] = buffer_ptr++;
230
10.2M
          }
231
9.41M
        }
232
9.18M
      }
233
8.91M
      if (!cinfo->entropy->insufficient_data)
234
8.91M
        cinfo->master->last_good_iMCU_row = cinfo->input_iMCU_row;
235
      /* Try to fetch the MCU. */
236
8.91M
      if (!(*cinfo->entropy->decode_mcu) (cinfo, coef->MCU_buffer)) {
237
        /* Suspension forced; update state counters and exit */
238
0
        coef->MCU_vert_offset = yoffset;
239
0
        coef->MCU_ctr = MCU_col_num;
240
0
        return JPEG_SUSPENDED;
241
0
      }
242
8.91M
    }
243
    /* Completed an MCU row, but perhaps not an iMCU row */
244
282k
    coef->MCU_ctr = 0;
245
282k
  }
246
  /* Completed the iMCU row, advance counters for next one */
247
182k
  if (++(cinfo->input_iMCU_row) < cinfo->total_iMCU_rows) {
248
181k
    start_iMCU_row(cinfo);
249
181k
    return JPEG_ROW_COMPLETED;
250
181k
  }
251
  /* Completed the scan */
252
1.11k
  (*cinfo->inputctl->finish_input_pass) (cinfo);
253
1.11k
  return JPEG_SCAN_COMPLETED;
254
182k
}
255
256
257
/*
258
 * Decompress and return some data in the multi-pass case.
259
 * Always attempts to emit one fully interleaved MCU row ("iMCU" row).
260
 * Return value is JPEG_ROW_COMPLETED, JPEG_SCAN_COMPLETED, or JPEG_SUSPENDED.
261
 *
262
 * NB: output_buf contains a plane for each component in image.
263
 */
264
265
METHODDEF(int)
266
decompress_data(j_decompress_ptr cinfo, _JSAMPIMAGE output_buf)
267
114k
{
268
114k
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
269
114k
  JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
270
114k
  JDIMENSION block_num;
271
114k
  int ci, block_row, block_rows;
272
114k
  JBLOCKARRAY buffer;
273
114k
  JBLOCKROW buffer_ptr;
274
114k
  _JSAMPARRAY output_ptr;
275
114k
  JDIMENSION output_col;
276
114k
  jpeg_component_info *compptr;
277
114k
  _inverse_DCT_method_ptr inverse_DCT;
278
279
  /* Force some input to be done if we are getting ahead of the input. */
280
114k
  while (cinfo->input_scan_number < cinfo->output_scan_number ||
281
114k
         (cinfo->input_scan_number == cinfo->output_scan_number &&
282
114k
          cinfo->input_iMCU_row <= cinfo->output_iMCU_row)) {
283
0
    if ((*cinfo->inputctl->consume_input) (cinfo) == JPEG_SUSPENDED)
284
0
      return JPEG_SUSPENDED;
285
0
  }
286
287
  /* OK, output from the virtual arrays. */
288
316k
  for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
289
202k
       ci++, compptr++) {
290
    /* Don't bother to IDCT an uninteresting component. */
291
202k
    if (!compptr->component_needed)
292
0
      continue;
293
    /* Align the virtual buffer for this component. */
294
202k
    buffer = (*cinfo->mem->access_virt_barray)
295
202k
      ((j_common_ptr)cinfo, coef->whole_image[ci],
296
202k
       cinfo->output_iMCU_row * compptr->v_samp_factor,
297
202k
       (JDIMENSION)compptr->v_samp_factor, FALSE);
298
    /* Count non-dummy DCT block rows in this iMCU row. */
299
202k
    if (cinfo->output_iMCU_row < last_iMCU_row)
300
201k
      block_rows = compptr->v_samp_factor;
301
578
    else {
302
      /* NB: can't use last_row_height here; it is input-side-dependent! */
303
578
      block_rows = (int)(compptr->height_in_blocks % compptr->v_samp_factor);
304
578
      if (block_rows == 0) block_rows = compptr->v_samp_factor;
305
578
    }
306
202k
    inverse_DCT = cinfo->idct->_inverse_DCT[ci];
307
202k
    output_ptr = output_buf[ci];
308
    /* Loop over all DCT blocks to be processed. */
309
595k
    for (block_row = 0; block_row < block_rows; block_row++) {
310
393k
      buffer_ptr = buffer[block_row] + cinfo->master->first_MCU_col[ci];
311
393k
      output_col = 0;
312
393k
      for (block_num = cinfo->master->first_MCU_col[ci];
313
5.79M
           block_num <= cinfo->master->last_MCU_col[ci]; block_num++) {
314
5.39M
        (*inverse_DCT) (cinfo, compptr, (JCOEFPTR)buffer_ptr, output_ptr,
315
5.39M
                        output_col);
316
5.39M
        buffer_ptr++;
317
5.39M
        output_col += compptr->_DCT_scaled_size;
318
5.39M
      }
319
393k
      output_ptr += compptr->_DCT_scaled_size;
320
393k
    }
321
202k
  }
322
323
114k
  if (++(cinfo->output_iMCU_row) < cinfo->total_iMCU_rows)
324
114k
    return JPEG_ROW_COMPLETED;
325
271
  return JPEG_SCAN_COMPLETED;
326
114k
}
jdcoefct-8.c:decompress_data
Line
Count
Source
267
114k
{
268
114k
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
269
114k
  JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
270
114k
  JDIMENSION block_num;
271
114k
  int ci, block_row, block_rows;
272
114k
  JBLOCKARRAY buffer;
273
114k
  JBLOCKROW buffer_ptr;
274
114k
  _JSAMPARRAY output_ptr;
275
114k
  JDIMENSION output_col;
276
114k
  jpeg_component_info *compptr;
277
114k
  _inverse_DCT_method_ptr inverse_DCT;
278
279
  /* Force some input to be done if we are getting ahead of the input. */
280
114k
  while (cinfo->input_scan_number < cinfo->output_scan_number ||
281
114k
         (cinfo->input_scan_number == cinfo->output_scan_number &&
282
114k
          cinfo->input_iMCU_row <= cinfo->output_iMCU_row)) {
283
0
    if ((*cinfo->inputctl->consume_input) (cinfo) == JPEG_SUSPENDED)
284
0
      return JPEG_SUSPENDED;
285
0
  }
286
287
  /* OK, output from the virtual arrays. */
288
316k
  for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
289
202k
       ci++, compptr++) {
290
    /* Don't bother to IDCT an uninteresting component. */
291
202k
    if (!compptr->component_needed)
292
0
      continue;
293
    /* Align the virtual buffer for this component. */
294
202k
    buffer = (*cinfo->mem->access_virt_barray)
295
202k
      ((j_common_ptr)cinfo, coef->whole_image[ci],
296
202k
       cinfo->output_iMCU_row * compptr->v_samp_factor,
297
202k
       (JDIMENSION)compptr->v_samp_factor, FALSE);
298
    /* Count non-dummy DCT block rows in this iMCU row. */
299
202k
    if (cinfo->output_iMCU_row < last_iMCU_row)
300
201k
      block_rows = compptr->v_samp_factor;
301
578
    else {
302
      /* NB: can't use last_row_height here; it is input-side-dependent! */
303
578
      block_rows = (int)(compptr->height_in_blocks % compptr->v_samp_factor);
304
578
      if (block_rows == 0) block_rows = compptr->v_samp_factor;
305
578
    }
306
202k
    inverse_DCT = cinfo->idct->_inverse_DCT[ci];
307
202k
    output_ptr = output_buf[ci];
308
    /* Loop over all DCT blocks to be processed. */
309
595k
    for (block_row = 0; block_row < block_rows; block_row++) {
310
393k
      buffer_ptr = buffer[block_row] + cinfo->master->first_MCU_col[ci];
311
393k
      output_col = 0;
312
393k
      for (block_num = cinfo->master->first_MCU_col[ci];
313
5.79M
           block_num <= cinfo->master->last_MCU_col[ci]; block_num++) {
314
5.39M
        (*inverse_DCT) (cinfo, compptr, (JCOEFPTR)buffer_ptr, output_ptr,
315
5.39M
                        output_col);
316
5.39M
        buffer_ptr++;
317
5.39M
        output_col += compptr->_DCT_scaled_size;
318
5.39M
      }
319
393k
      output_ptr += compptr->_DCT_scaled_size;
320
393k
    }
321
202k
  }
322
323
114k
  if (++(cinfo->output_iMCU_row) < cinfo->total_iMCU_rows)
324
114k
    return JPEG_ROW_COMPLETED;
325
271
  return JPEG_SCAN_COMPLETED;
326
114k
}
Unexecuted instantiation: jdcoefct-12.c:decompress_data
327
328
#endif /* D_MULTISCAN_FILES_SUPPORTED */
329
330
331
#ifdef BLOCK_SMOOTHING_SUPPORTED
332
333
/*
334
 * This code applies interblock smoothing; the first 9 AC coefficients are
335
 * estimated from the DC values of a DCT block and its 24 neighboring blocks.
336
 * We apply smoothing only for progressive JPEG decoding, and only if
337
 * the coefficients it can estimate are not yet known to full precision.
338
 */
339
340
/* Natural-order array positions of the first 9 zigzag-order coefficients */
341
250k
#define Q01_POS  1
342
250k
#define Q10_POS  8
343
250k
#define Q20_POS  16
344
250k
#define Q11_POS  9
345
250k
#define Q02_POS  2
346
141k
#define Q03_POS  3
347
141k
#define Q12_POS  10
348
141k
#define Q21_POS  17
349
141k
#define Q30_POS  24
350
351
/*
352
 * Determine whether block smoothing is applicable and safe.
353
 * We also latch the current states of the coef_bits[] entries for the
354
 * AC coefficients; otherwise, if the input side of the decompressor
355
 * advances into a new scan, we might think the coefficients are known
356
 * more accurately than they really are.
357
 */
358
359
LOCAL(boolean)
360
smoothing_ok(j_decompress_ptr cinfo)
361
804
{
362
804
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
363
804
  boolean smoothing_useful = FALSE;
364
804
  int ci, coefi;
365
804
  jpeg_component_info *compptr;
366
804
  JQUANT_TBL *qtable;
367
804
  int *coef_bits, *prev_coef_bits;
368
804
  int *coef_bits_latch, *prev_coef_bits_latch;
369
370
804
  if (!cinfo->progressive_mode || cinfo->coef_bits == NULL)
371
13
    return FALSE;
372
373
  /* Allocate latch area if not already done */
374
791
  if (coef->coef_bits_latch == NULL)
375
791
    coef->coef_bits_latch = (int *)
376
791
      (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
377
791
                                  cinfo->num_components * 2 *
378
791
                                  (SAVED_COEFS * sizeof(int)));
379
791
  coef_bits_latch = coef->coef_bits_latch;
380
791
  prev_coef_bits_latch =
381
791
    &coef->coef_bits_latch[cinfo->num_components * SAVED_COEFS];
382
383
1.37k
  for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
384
903
       ci++, compptr++) {
385
    /* All components' quantization values must already be latched. */
386
903
    if ((qtable = compptr->quant_table) == NULL)
387
51
      return FALSE;
388
    /* Verify DC & first 9 AC quantizers are nonzero to avoid zero-divide. */
389
852
    if (qtable->quantval[0] == 0 ||
390
808
        qtable->quantval[Q01_POS] == 0 ||
391
770
        qtable->quantval[Q10_POS] == 0 ||
392
748
        qtable->quantval[Q20_POS] == 0 ||
393
724
        qtable->quantval[Q11_POS] == 0 ||
394
699
        qtable->quantval[Q02_POS] == 0 ||
395
679
        qtable->quantval[Q03_POS] == 0 ||
396
655
        qtable->quantval[Q12_POS] == 0 ||
397
630
        qtable->quantval[Q21_POS] == 0 ||
398
608
        qtable->quantval[Q30_POS] == 0)
399
266
      return FALSE;
400
    /* DC values must be at least partly known for all components. */
401
586
    coef_bits = cinfo->coef_bits[ci];
402
586
    prev_coef_bits = cinfo->coef_bits[ci + cinfo->num_components];
403
586
    if (coef_bits[0] < 0)
404
0
      return FALSE;
405
586
    coef_bits_latch[0] = coef_bits[0];
406
    /* Block smoothing is helpful if some AC coefficients remain inaccurate. */
407
5.86k
    for (coefi = 1; coefi < SAVED_COEFS; coefi++) {
408
5.27k
      if (cinfo->input_scan_number > 1)
409
3.01k
        prev_coef_bits_latch[coefi] = prev_coef_bits[coefi];
410
2.25k
      else
411
2.25k
        prev_coef_bits_latch[coefi] = -1;
412
5.27k
      coef_bits_latch[coefi] = coef_bits[coefi];
413
5.27k
      if (coef_bits[coefi] != 0)
414
5.04k
        smoothing_useful = TRUE;
415
5.27k
    }
416
586
    coef_bits_latch += SAVED_COEFS;
417
586
    prev_coef_bits_latch += SAVED_COEFS;
418
586
  }
419
420
474
  return smoothing_useful;
421
791
}
jdcoefct-8.c:smoothing_ok
Line
Count
Source
361
704
{
362
704
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
363
704
  boolean smoothing_useful = FALSE;
364
704
  int ci, coefi;
365
704
  jpeg_component_info *compptr;
366
704
  JQUANT_TBL *qtable;
367
704
  int *coef_bits, *prev_coef_bits;
368
704
  int *coef_bits_latch, *prev_coef_bits_latch;
369
370
704
  if (!cinfo->progressive_mode || cinfo->coef_bits == NULL)
371
11
    return FALSE;
372
373
  /* Allocate latch area if not already done */
374
693
  if (coef->coef_bits_latch == NULL)
375
693
    coef->coef_bits_latch = (int *)
376
693
      (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
377
693
                                  cinfo->num_components * 2 *
378
693
                                  (SAVED_COEFS * sizeof(int)));
379
693
  coef_bits_latch = coef->coef_bits_latch;
380
693
  prev_coef_bits_latch =
381
693
    &coef->coef_bits_latch[cinfo->num_components * SAVED_COEFS];
382
383
1.21k
  for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
384
783
       ci++, compptr++) {
385
    /* All components' quantization values must already be latched. */
386
783
    if ((qtable = compptr->quant_table) == NULL)
387
47
      return FALSE;
388
    /* Verify DC & first 9 AC quantizers are nonzero to avoid zero-divide. */
389
736
    if (qtable->quantval[0] == 0 ||
390
700
        qtable->quantval[Q01_POS] == 0 ||
391
668
        qtable->quantval[Q10_POS] == 0 ||
392
652
        qtable->quantval[Q20_POS] == 0 ||
393
635
        qtable->quantval[Q11_POS] == 0 ||
394
615
        qtable->quantval[Q02_POS] == 0 ||
395
600
        qtable->quantval[Q03_POS] == 0 ||
396
579
        qtable->quantval[Q12_POS] == 0 ||
397
555
        qtable->quantval[Q21_POS] == 0 ||
398
541
        qtable->quantval[Q30_POS] == 0)
399
211
      return FALSE;
400
    /* DC values must be at least partly known for all components. */
401
525
    coef_bits = cinfo->coef_bits[ci];
402
525
    prev_coef_bits = cinfo->coef_bits[ci + cinfo->num_components];
403
525
    if (coef_bits[0] < 0)
404
0
      return FALSE;
405
525
    coef_bits_latch[0] = coef_bits[0];
406
    /* Block smoothing is helpful if some AC coefficients remain inaccurate. */
407
5.25k
    for (coefi = 1; coefi < SAVED_COEFS; coefi++) {
408
4.72k
      if (cinfo->input_scan_number > 1)
409
2.77k
        prev_coef_bits_latch[coefi] = prev_coef_bits[coefi];
410
1.95k
      else
411
1.95k
        prev_coef_bits_latch[coefi] = -1;
412
4.72k
      coef_bits_latch[coefi] = coef_bits[coefi];
413
4.72k
      if (coef_bits[coefi] != 0)
414
4.54k
        smoothing_useful = TRUE;
415
4.72k
    }
416
525
    coef_bits_latch += SAVED_COEFS;
417
525
    prev_coef_bits_latch += SAVED_COEFS;
418
525
  }
419
420
435
  return smoothing_useful;
421
693
}
jdcoefct-12.c:smoothing_ok
Line
Count
Source
361
100
{
362
100
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
363
100
  boolean smoothing_useful = FALSE;
364
100
  int ci, coefi;
365
100
  jpeg_component_info *compptr;
366
100
  JQUANT_TBL *qtable;
367
100
  int *coef_bits, *prev_coef_bits;
368
100
  int *coef_bits_latch, *prev_coef_bits_latch;
369
370
100
  if (!cinfo->progressive_mode || cinfo->coef_bits == NULL)
371
2
    return FALSE;
372
373
  /* Allocate latch area if not already done */
374
98
  if (coef->coef_bits_latch == NULL)
375
98
    coef->coef_bits_latch = (int *)
376
98
      (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
377
98
                                  cinfo->num_components * 2 *
378
98
                                  (SAVED_COEFS * sizeof(int)));
379
98
  coef_bits_latch = coef->coef_bits_latch;
380
98
  prev_coef_bits_latch =
381
98
    &coef->coef_bits_latch[cinfo->num_components * SAVED_COEFS];
382
383
159
  for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
384
120
       ci++, compptr++) {
385
    /* All components' quantization values must already be latched. */
386
120
    if ((qtable = compptr->quant_table) == NULL)
387
4
      return FALSE;
388
    /* Verify DC & first 9 AC quantizers are nonzero to avoid zero-divide. */
389
116
    if (qtable->quantval[0] == 0 ||
390
108
        qtable->quantval[Q01_POS] == 0 ||
391
102
        qtable->quantval[Q10_POS] == 0 ||
392
96
        qtable->quantval[Q20_POS] == 0 ||
393
89
        qtable->quantval[Q11_POS] == 0 ||
394
84
        qtable->quantval[Q02_POS] == 0 ||
395
79
        qtable->quantval[Q03_POS] == 0 ||
396
76
        qtable->quantval[Q12_POS] == 0 ||
397
75
        qtable->quantval[Q21_POS] == 0 ||
398
67
        qtable->quantval[Q30_POS] == 0)
399
55
      return FALSE;
400
    /* DC values must be at least partly known for all components. */
401
61
    coef_bits = cinfo->coef_bits[ci];
402
61
    prev_coef_bits = cinfo->coef_bits[ci + cinfo->num_components];
403
61
    if (coef_bits[0] < 0)
404
0
      return FALSE;
405
61
    coef_bits_latch[0] = coef_bits[0];
406
    /* Block smoothing is helpful if some AC coefficients remain inaccurate. */
407
610
    for (coefi = 1; coefi < SAVED_COEFS; coefi++) {
408
549
      if (cinfo->input_scan_number > 1)
409
243
        prev_coef_bits_latch[coefi] = prev_coef_bits[coefi];
410
306
      else
411
306
        prev_coef_bits_latch[coefi] = -1;
412
549
      coef_bits_latch[coefi] = coef_bits[coefi];
413
549
      if (coef_bits[coefi] != 0)
414
497
        smoothing_useful = TRUE;
415
549
    }
416
61
    coef_bits_latch += SAVED_COEFS;
417
61
    prev_coef_bits_latch += SAVED_COEFS;
418
61
  }
419
420
39
  return smoothing_useful;
421
98
}
422
423
424
/*
425
 * Variant of decompress_data for use when doing block smoothing.
426
 */
427
428
METHODDEF(int)
429
decompress_smooth_data(j_decompress_ptr cinfo, _JSAMPIMAGE output_buf)
430
220k
{
431
220k
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
432
220k
  JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
433
220k
  JDIMENSION block_num, last_block_column;
434
220k
  int ci, block_row, block_rows, access_rows, image_block_row,
435
220k
    image_block_rows;
436
220k
  JBLOCKARRAY buffer;
437
220k
  JBLOCKROW buffer_ptr, prev_prev_block_row, prev_block_row;
438
220k
  JBLOCKROW next_block_row, next_next_block_row;
439
220k
  _JSAMPARRAY output_ptr;
440
220k
  JDIMENSION output_col;
441
220k
  jpeg_component_info *compptr;
442
220k
  _inverse_DCT_method_ptr inverse_DCT;
443
220k
  boolean change_dc;
444
220k
  JCOEF *workspace;
445
220k
  int *coef_bits;
446
220k
  JQUANT_TBL *quanttbl;
447
220k
  JLONG Q00, Q01, Q02, Q03 = 0, Q10, Q11, Q12 = 0, Q20, Q21 = 0, Q30 = 0, num;
448
220k
  int DC01, DC02, DC03, DC04, DC05, DC06, DC07, DC08, DC09, DC10, DC11, DC12,
449
220k
      DC13, DC14, DC15, DC16, DC17, DC18, DC19, DC20, DC21, DC22, DC23, DC24,
450
220k
      DC25;
451
220k
  int Al, pred;
452
453
  /* Keep a local variable to avoid looking it up more than once */
454
220k
  workspace = coef->workspace;
455
456
  /* Force some input to be done if we are getting ahead of the input. */
457
220k
  while (cinfo->input_scan_number <= cinfo->output_scan_number &&
458
220k
         !cinfo->inputctl->eoi_reached) {
459
0
    if (cinfo->input_scan_number == cinfo->output_scan_number) {
460
      /* If input is working on current scan, we ordinarily want it to
461
       * have completed the current row.  But if input scan is DC,
462
       * we want it to keep two rows ahead so that next two block rows' DC
463
       * values are up to date.
464
       */
465
0
      JDIMENSION delta = (cinfo->Ss == 0) ? 2 : 0;
466
0
      if (cinfo->input_iMCU_row > cinfo->output_iMCU_row + delta)
467
0
        break;
468
0
    }
469
0
    if ((*cinfo->inputctl->consume_input) (cinfo) == JPEG_SUSPENDED)
470
0
      return JPEG_SUSPENDED;
471
0
  }
472
473
  /* OK, output from the virtual arrays. */
474
470k
  for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
475
249k
       ci++, compptr++) {
476
    /* Don't bother to IDCT an uninteresting component. */
477
249k
    if (!compptr->component_needed)
478
0
      continue;
479
    /* Count non-dummy DCT block rows in this iMCU row. */
480
249k
    if (cinfo->output_iMCU_row + 1 < last_iMCU_row) {
481
248k
      block_rows = compptr->v_samp_factor;
482
248k
      access_rows = block_rows * 3; /* this and next two iMCU rows */
483
248k
    } else if (cinfo->output_iMCU_row < last_iMCU_row) {
484
455
      block_rows = compptr->v_samp_factor;
485
455
      access_rows = block_rows * 2; /* this and next iMCU row */
486
503
    } else {
487
      /* NB: can't use last_row_height here; it is input-side-dependent! */
488
503
      block_rows = (int)(compptr->height_in_blocks % compptr->v_samp_factor);
489
503
      if (block_rows == 0) block_rows = compptr->v_samp_factor;
490
503
      access_rows = block_rows; /* this iMCU row only */
491
503
    }
492
    /* Align the virtual buffer for this component. */
493
249k
    if (cinfo->output_iMCU_row > 1) {
494
248k
      access_rows += 2 * compptr->v_samp_factor; /* prior two iMCU rows too */
495
248k
      buffer = (*cinfo->mem->access_virt_barray)
496
248k
        ((j_common_ptr)cinfo, coef->whole_image[ci],
497
248k
         (cinfo->output_iMCU_row - 2) * compptr->v_samp_factor,
498
248k
         (JDIMENSION)access_rows, FALSE);
499
248k
      buffer += 2 * compptr->v_samp_factor; /* point to current iMCU row */
500
248k
    } else if (cinfo->output_iMCU_row > 0) {
501
455
      access_rows += compptr->v_samp_factor; /* prior iMCU row too */
502
455
      buffer = (*cinfo->mem->access_virt_barray)
503
455
        ((j_common_ptr)cinfo, coef->whole_image[ci],
504
455
         (cinfo->output_iMCU_row - 1) * compptr->v_samp_factor,
505
455
         (JDIMENSION)access_rows, FALSE);
506
455
      buffer += compptr->v_samp_factor; /* point to current iMCU row */
507
503
    } else {
508
503
      buffer = (*cinfo->mem->access_virt_barray)
509
503
        ((j_common_ptr)cinfo, coef->whole_image[ci],
510
503
         (JDIMENSION)0, (JDIMENSION)access_rows, FALSE);
511
503
    }
512
    /* Fetch component-dependent info.
513
     * If the current scan is incomplete, then we use the component-dependent
514
     * info from the previous scan.
515
     */
516
249k
    if (cinfo->output_iMCU_row > cinfo->master->last_good_iMCU_row)
517
0
      coef_bits =
518
0
        coef->coef_bits_latch + ((ci + cinfo->num_components) * SAVED_COEFS);
519
249k
    else
520
249k
      coef_bits = coef->coef_bits_latch + (ci * SAVED_COEFS);
521
522
    /* We only do DC interpolation if no AC coefficient data is available. */
523
249k
    change_dc =
524
249k
      coef_bits[1] == -1 && coef_bits[2] == -1 && coef_bits[3] == -1 &&
525
172k
      coef_bits[4] == -1 && coef_bits[5] == -1 && coef_bits[6] == -1 &&
526
149k
      coef_bits[7] == -1 && coef_bits[8] == -1 && coef_bits[9] == -1;
527
528
249k
    quanttbl = compptr->quant_table;
529
249k
    Q00 = quanttbl->quantval[0];
530
249k
    Q01 = quanttbl->quantval[Q01_POS];
531
249k
    Q10 = quanttbl->quantval[Q10_POS];
532
249k
    Q20 = quanttbl->quantval[Q20_POS];
533
249k
    Q11 = quanttbl->quantval[Q11_POS];
534
249k
    Q02 = quanttbl->quantval[Q02_POS];
535
249k
    if (change_dc) {
536
140k
      Q03 = quanttbl->quantval[Q03_POS];
537
140k
      Q12 = quanttbl->quantval[Q12_POS];
538
140k
      Q21 = quanttbl->quantval[Q21_POS];
539
140k
      Q30 = quanttbl->quantval[Q30_POS];
540
140k
    }
541
249k
    inverse_DCT = cinfo->idct->_inverse_DCT[ci];
542
249k
    output_ptr = output_buf[ci];
543
    /* Loop over all DCT blocks to be processed. */
544
249k
    image_block_rows = block_rows * cinfo->total_iMCU_rows;
545
693k
    for (block_row = 0; block_row < block_rows; block_row++) {
546
444k
      image_block_row = cinfo->output_iMCU_row * block_rows + block_row;
547
444k
      buffer_ptr = buffer[block_row] + cinfo->master->first_MCU_col[ci];
548
549
444k
      if (image_block_row > 0)
550
443k
        prev_block_row =
551
443k
          buffer[block_row - 1] + cinfo->master->first_MCU_col[ci];
552
503
      else
553
503
        prev_block_row = buffer_ptr;
554
555
444k
      if (image_block_row > 1)
556
443k
        prev_prev_block_row =
557
443k
          buffer[block_row - 2] + cinfo->master->first_MCU_col[ci];
558
1.01k
      else
559
1.01k
        prev_prev_block_row = prev_block_row;
560
561
444k
      if (image_block_row < image_block_rows - 1)
562
443k
        next_block_row =
563
443k
          buffer[block_row + 1] + cinfo->master->first_MCU_col[ci];
564
503
      else
565
503
        next_block_row = buffer_ptr;
566
567
444k
      if (image_block_row < image_block_rows - 2)
568
443k
        next_next_block_row =
569
443k
          buffer[block_row + 2] + cinfo->master->first_MCU_col[ci];
570
839
      else
571
839
        next_next_block_row = next_block_row;
572
573
      /* We fetch the surrounding DC values using a sliding-register approach.
574
       * Initialize all 25 here so as to do the right thing on narrow pics.
575
       */
576
444k
      DC01 = DC02 = DC03 = DC04 = DC05 = (int)prev_prev_block_row[0][0];
577
444k
      DC06 = DC07 = DC08 = DC09 = DC10 = (int)prev_block_row[0][0];
578
444k
      DC11 = DC12 = DC13 = DC14 = DC15 = (int)buffer_ptr[0][0];
579
444k
      DC16 = DC17 = DC18 = DC19 = DC20 = (int)next_block_row[0][0];
580
444k
      DC21 = DC22 = DC23 = DC24 = DC25 = (int)next_next_block_row[0][0];
581
444k
      output_col = 0;
582
444k
      last_block_column = compptr->width_in_blocks - 1;
583
444k
      for (block_num = cinfo->master->first_MCU_col[ci];
584
15.4M
           block_num <= cinfo->master->last_MCU_col[ci]; block_num++) {
585
        /* Fetch current DCT block into workspace so we can modify it. */
586
15.0M
        jcopy_block_row(buffer_ptr, (JBLOCKROW)workspace, (JDIMENSION)1);
587
        /* Update DC values */
588
15.0M
        if (block_num == cinfo->master->first_MCU_col[ci] &&
589
444k
            block_num < last_block_column) {
590
396k
          DC04 = DC05 = (int)prev_prev_block_row[1][0];
591
396k
          DC09 = DC10 = (int)prev_block_row[1][0];
592
396k
          DC14 = DC15 = (int)buffer_ptr[1][0];
593
396k
          DC19 = DC20 = (int)next_block_row[1][0];
594
396k
          DC24 = DC25 = (int)next_next_block_row[1][0];
595
396k
        }
596
15.0M
        if (block_num + 1 < last_block_column) {
597
14.2M
          DC05 = (int)prev_prev_block_row[2][0];
598
14.2M
          DC10 = (int)prev_block_row[2][0];
599
14.2M
          DC15 = (int)buffer_ptr[2][0];
600
14.2M
          DC20 = (int)next_block_row[2][0];
601
14.2M
          DC25 = (int)next_next_block_row[2][0];
602
14.2M
        }
603
        /* If DC interpolation is enabled, compute coefficient estimates using
604
         * a Gaussian-like kernel, keeping the averages of the DC values.
605
         *
606
         * If DC interpolation is disabled, compute coefficient estimates using
607
         * an algorithm similar to the one described in Section K.8 of the JPEG
608
         * standard, except applied to a 5x5 window rather than a 3x3 window.
609
         *
610
         * An estimate is applied only if the coefficient is still zero and is
611
         * not known to be fully accurate.
612
         */
613
        /* AC01 */
614
15.0M
        if ((Al = coef_bits[1]) != 0 && workspace[1] == 0) {
615
14.8M
          num = Q00 * (change_dc ?
616
7.85M
                (-DC01 - DC02 + DC04 + DC05 - 3 * DC06 + 13 * DC07 -
617
7.85M
                 13 * DC09 + 3 * DC10 - 3 * DC11 + 38 * DC12 - 38 * DC14 +
618
7.85M
                 3 * DC15 - 3 * DC16 + 13 * DC17 - 13 * DC19 + 3 * DC20 -
619
7.85M
                 DC21 - DC22 + DC24 + DC25) :
620
14.8M
                (-7 * DC11 + 50 * DC12 - 50 * DC14 + 7 * DC15));
621
14.8M
          if (num >= 0) {
622
10.9M
            pred = (int)(((Q01 << 7) + num) / (Q01 << 8));
623
10.9M
            if (Al > 0 && pred >= (1 << Al))
624
649k
              pred = (1 << Al) - 1;
625
10.9M
          } else {
626
3.84M
            pred = (int)(((Q01 << 7) - num) / (Q01 << 8));
627
3.84M
            if (Al > 0 && pred >= (1 << Al))
628
333k
              pred = (1 << Al) - 1;
629
3.84M
            pred = -pred;
630
3.84M
          }
631
14.8M
          workspace[1] = (JCOEF)pred;
632
14.8M
        }
633
        /* AC10 */
634
15.0M
        if ((Al = coef_bits[2]) != 0 && workspace[8] == 0) {
635
14.5M
          num = Q00 * (change_dc ?
636
7.85M
                (-DC01 - 3 * DC02 - 3 * DC03 - 3 * DC04 - DC05 - DC06 +
637
7.85M
                 13 * DC07 + 38 * DC08 + 13 * DC09 - DC10 + DC16 -
638
7.85M
                 13 * DC17 - 38 * DC18 - 13 * DC19 + DC20 + DC21 +
639
7.85M
                 3 * DC22 + 3 * DC23 + 3 * DC24 + DC25) :
640
14.5M
                (-7 * DC03 + 50 * DC08 - 50 * DC18 + 7 * DC23));
641
14.5M
          if (num >= 0) {
642
9.22M
            pred = (int)(((Q10 << 7) + num) / (Q10 << 8));
643
9.22M
            if (Al > 0 && pred >= (1 << Al))
644
2.63M
              pred = (1 << Al) - 1;
645
9.22M
          } else {
646
5.35M
            pred = (int)(((Q10 << 7) - num) / (Q10 << 8));
647
5.35M
            if (Al > 0 && pred >= (1 << Al))
648
1.42M
              pred = (1 << Al) - 1;
649
5.35M
            pred = -pred;
650
5.35M
          }
651
14.5M
          workspace[8] = (JCOEF)pred;
652
14.5M
        }
653
        /* AC20 */
654
15.0M
        if ((Al = coef_bits[3]) != 0 && workspace[16] == 0) {
655
14.4M
          num = Q00 * (change_dc ?
656
7.85M
                (DC03 + 2 * DC07 + 7 * DC08 + 2 * DC09 - 5 * DC12 - 14 * DC13 -
657
7.85M
                 5 * DC14 + 2 * DC17 + 7 * DC18 + 2 * DC19 + DC23) :
658
14.4M
                (-DC03 + 13 * DC08 - 24 * DC13 + 13 * DC18 - DC23));
659
14.4M
          if (num >= 0) {
660
8.39M
            pred = (int)(((Q20 << 7) + num) / (Q20 << 8));
661
8.39M
            if (Al > 0 && pred >= (1 << Al))
662
1.41M
              pred = (1 << Al) - 1;
663
8.39M
          } else {
664
6.06M
            pred = (int)(((Q20 << 7) - num) / (Q20 << 8));
665
6.06M
            if (Al > 0 && pred >= (1 << Al))
666
1.51M
              pred = (1 << Al) - 1;
667
6.06M
            pred = -pred;
668
6.06M
          }
669
14.4M
          workspace[16] = (JCOEF)pred;
670
14.4M
        }
671
        /* AC11 */
672
15.0M
        if ((Al = coef_bits[4]) != 0 && workspace[9] == 0) {
673
14.4M
          num = Q00 * (change_dc ?
674
7.85M
                (-DC01 + DC05 + 9 * DC07 - 9 * DC09 - 9 * DC17 +
675
7.85M
                 9 * DC19 + DC21 - DC25) :
676
14.4M
                (DC10 + DC16 - 10 * DC17 + 10 * DC19 - DC02 - DC20 + DC22 -
677
6.61M
                 DC24 + DC04 - DC06 + 10 * DC07 - 10 * DC09));
678
14.4M
          if (num >= 0) {
679
11.2M
            pred = (int)(((Q11 << 7) + num) / (Q11 << 8));
680
11.2M
            if (Al > 0 && pred >= (1 << Al))
681
427k
              pred = (1 << Al) - 1;
682
11.2M
          } else {
683
3.21M
            pred = (int)(((Q11 << 7) - num) / (Q11 << 8));
684
3.21M
            if (Al > 0 && pred >= (1 << Al))
685
441k
              pred = (1 << Al) - 1;
686
3.21M
            pred = -pred;
687
3.21M
          }
688
14.4M
          workspace[9] = (JCOEF)pred;
689
14.4M
        }
690
        /* AC02 */
691
15.0M
        if ((Al = coef_bits[5]) != 0 && workspace[2] == 0) {
692
14.6M
          num = Q00 * (change_dc ?
693
7.85M
                (2 * DC07 - 5 * DC08 + 2 * DC09 + DC11 + 7 * DC12 - 14 * DC13 +
694
7.85M
                 7 * DC14 + DC15 + 2 * DC17 - 5 * DC18 + 2 * DC19) :
695
14.6M
                (-DC11 + 13 * DC12 - 24 * DC13 + 13 * DC14 - DC15));
696
14.6M
          if (num >= 0) {
697
7.64M
            pred = (int)(((Q02 << 7) + num) / (Q02 << 8));
698
7.64M
            if (Al > 0 && pred >= (1 << Al))
699
881k
              pred = (1 << Al) - 1;
700
7.64M
          } else {
701
6.97M
            pred = (int)(((Q02 << 7) - num) / (Q02 << 8));
702
6.97M
            if (Al > 0 && pred >= (1 << Al))
703
879k
              pred = (1 << Al) - 1;
704
6.97M
            pred = -pred;
705
6.97M
          }
706
14.6M
          workspace[2] = (JCOEF)pred;
707
14.6M
        }
708
15.0M
        if (change_dc) {
709
          /* AC03 */
710
7.85M
          if ((Al = coef_bits[6]) != 0 && workspace[3] == 0) {
711
7.85M
            num = Q00 * (DC07 - DC09 + 2 * DC12 - 2 * DC14 + DC17 - DC19);
712
7.85M
            if (num >= 0) {
713
5.43M
              pred = (int)(((Q03 << 7) + num) / (Q03 << 8));
714
5.43M
              if (Al > 0 && pred >= (1 << Al))
715
0
                pred = (1 << Al) - 1;
716
5.43M
            } else {
717
2.42M
              pred = (int)(((Q03 << 7) - num) / (Q03 << 8));
718
2.42M
              if (Al > 0 && pred >= (1 << Al))
719
0
                pred = (1 << Al) - 1;
720
2.42M
              pred = -pred;
721
2.42M
            }
722
7.85M
            workspace[3] = (JCOEF)pred;
723
7.85M
          }
724
          /* AC12 */
725
7.85M
          if ((Al = coef_bits[7]) != 0 && workspace[10] == 0) {
726
7.85M
            num = Q00 * (DC07 - 3 * DC08 + DC09 - DC17 + 3 * DC18 - DC19);
727
7.85M
            if (num >= 0) {
728
4.05M
              pred = (int)(((Q12 << 7) + num) / (Q12 << 8));
729
4.05M
              if (Al > 0 && pred >= (1 << Al))
730
0
                pred = (1 << Al) - 1;
731
4.05M
            } else {
732
3.80M
              pred = (int)(((Q12 << 7) - num) / (Q12 << 8));
733
3.80M
              if (Al > 0 && pred >= (1 << Al))
734
0
                pred = (1 << Al) - 1;
735
3.80M
              pred = -pred;
736
3.80M
            }
737
7.85M
            workspace[10] = (JCOEF)pred;
738
7.85M
          }
739
          /* AC21 */
740
7.85M
          if ((Al = coef_bits[8]) != 0 && workspace[17] == 0) {
741
7.85M
            num = Q00 * (DC07 - DC09 - 3 * DC12 + 3 * DC14 + DC17 - DC19);
742
7.85M
            if (num >= 0) {
743
3.32M
              pred = (int)(((Q21 << 7) + num) / (Q21 << 8));
744
3.32M
              if (Al > 0 && pred >= (1 << Al))
745
0
                pred = (1 << Al) - 1;
746
4.53M
            } else {
747
4.53M
              pred = (int)(((Q21 << 7) - num) / (Q21 << 8));
748
4.53M
              if (Al > 0 && pred >= (1 << Al))
749
0
                pred = (1 << Al) - 1;
750
4.53M
              pred = -pred;
751
4.53M
            }
752
7.85M
            workspace[17] = (JCOEF)pred;
753
7.85M
          }
754
          /* AC30 */
755
7.85M
          if ((Al = coef_bits[9]) != 0 && workspace[24] == 0) {
756
7.85M
            num = Q00 * (DC07 + 2 * DC08 + DC09 - DC17 - 2 * DC18 - DC19);
757
7.85M
            if (num >= 0) {
758
4.45M
              pred = (int)(((Q30 << 7) + num) / (Q30 << 8));
759
4.45M
              if (Al > 0 && pred >= (1 << Al))
760
0
                pred = (1 << Al) - 1;
761
4.45M
            } else {
762
3.39M
              pred = (int)(((Q30 << 7) - num) / (Q30 << 8));
763
3.39M
              if (Al > 0 && pred >= (1 << Al))
764
0
                pred = (1 << Al) - 1;
765
3.39M
              pred = -pred;
766
3.39M
            }
767
7.85M
            workspace[24] = (JCOEF)pred;
768
7.85M
          }
769
          /* coef_bits[0] is non-negative.  Otherwise this function would not
770
           * be called.
771
           */
772
7.85M
          num = Q00 *
773
7.85M
                (-2 * DC01 - 6 * DC02 - 8 * DC03 - 6 * DC04 - 2 * DC05 -
774
7.85M
                 6 * DC06 + 6 * DC07 + 42 * DC08 + 6 * DC09 - 6 * DC10 -
775
7.85M
                 8 * DC11 + 42 * DC12 + 152 * DC13 + 42 * DC14 - 8 * DC15 -
776
7.85M
                 6 * DC16 + 6 * DC17 + 42 * DC18 + 6 * DC19 - 6 * DC20 -
777
7.85M
                 2 * DC21 - 6 * DC22 - 8 * DC23 - 6 * DC24 - 2 * DC25);
778
7.85M
          if (num >= 0) {
779
3.63M
            pred = (int)(((Q00 << 7) + num) / (Q00 << 8));
780
4.22M
          } else {
781
4.22M
            pred = (int)(((Q00 << 7) - num) / (Q00 << 8));
782
4.22M
            pred = -pred;
783
4.22M
          }
784
7.85M
          workspace[0] = (JCOEF)pred;
785
7.85M
        }  /* change_dc */
786
787
        /* OK, do the IDCT */
788
15.0M
        (*inverse_DCT) (cinfo, compptr, (JCOEFPTR)workspace, output_ptr,
789
15.0M
                        output_col);
790
        /* Advance for next column */
791
15.0M
        DC01 = DC02;  DC02 = DC03;  DC03 = DC04;  DC04 = DC05;
792
15.0M
        DC06 = DC07;  DC07 = DC08;  DC08 = DC09;  DC09 = DC10;
793
15.0M
        DC11 = DC12;  DC12 = DC13;  DC13 = DC14;  DC14 = DC15;
794
15.0M
        DC16 = DC17;  DC17 = DC18;  DC18 = DC19;  DC19 = DC20;
795
15.0M
        DC21 = DC22;  DC22 = DC23;  DC23 = DC24;  DC24 = DC25;
796
15.0M
        buffer_ptr++, prev_block_row++, next_block_row++,
797
15.0M
          prev_prev_block_row++, next_next_block_row++;
798
15.0M
        output_col += compptr->_DCT_scaled_size;
799
15.0M
      }
800
444k
      output_ptr += compptr->_DCT_scaled_size;
801
444k
    }
802
249k
  }
803
804
220k
  if (++(cinfo->output_iMCU_row) < cinfo->total_iMCU_rows)
805
220k
    return JPEG_ROW_COMPLETED;
806
433
  return JPEG_SCAN_COMPLETED;
807
220k
}
jdcoefct-8.c:decompress_smooth_data
Line
Count
Source
430
220k
{
431
220k
  my_coef_ptr coef = (my_coef_ptr)cinfo->coef;
432
220k
  JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
433
220k
  JDIMENSION block_num, last_block_column;
434
220k
  int ci, block_row, block_rows, access_rows, image_block_row,
435
220k
    image_block_rows;
436
220k
  JBLOCKARRAY buffer;
437
220k
  JBLOCKROW buffer_ptr, prev_prev_block_row, prev_block_row;
438
220k
  JBLOCKROW next_block_row, next_next_block_row;
439
220k
  _JSAMPARRAY output_ptr;
440
220k
  JDIMENSION output_col;
441
220k
  jpeg_component_info *compptr;
442
220k
  _inverse_DCT_method_ptr inverse_DCT;
443
220k
  boolean change_dc;
444
220k
  JCOEF *workspace;
445
220k
  int *coef_bits;
446
220k
  JQUANT_TBL *quanttbl;
447
220k
  JLONG Q00, Q01, Q02, Q03 = 0, Q10, Q11, Q12 = 0, Q20, Q21 = 0, Q30 = 0, num;
448
220k
  int DC01, DC02, DC03, DC04, DC05, DC06, DC07, DC08, DC09, DC10, DC11, DC12,
449
220k
      DC13, DC14, DC15, DC16, DC17, DC18, DC19, DC20, DC21, DC22, DC23, DC24,
450
220k
      DC25;
451
220k
  int Al, pred;
452
453
  /* Keep a local variable to avoid looking it up more than once */
454
220k
  workspace = coef->workspace;
455
456
  /* Force some input to be done if we are getting ahead of the input. */
457
220k
  while (cinfo->input_scan_number <= cinfo->output_scan_number &&
458
220k
         !cinfo->inputctl->eoi_reached) {
459
0
    if (cinfo->input_scan_number == cinfo->output_scan_number) {
460
      /* If input is working on current scan, we ordinarily want it to
461
       * have completed the current row.  But if input scan is DC,
462
       * we want it to keep two rows ahead so that next two block rows' DC
463
       * values are up to date.
464
       */
465
0
      JDIMENSION delta = (cinfo->Ss == 0) ? 2 : 0;
466
0
      if (cinfo->input_iMCU_row > cinfo->output_iMCU_row + delta)
467
0
        break;
468
0
    }
469
0
    if ((*cinfo->inputctl->consume_input) (cinfo) == JPEG_SUSPENDED)
470
0
      return JPEG_SUSPENDED;
471
0
  }
472
473
  /* OK, output from the virtual arrays. */
474
470k
  for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
475
249k
       ci++, compptr++) {
476
    /* Don't bother to IDCT an uninteresting component. */
477
249k
    if (!compptr->component_needed)
478
0
      continue;
479
    /* Count non-dummy DCT block rows in this iMCU row. */
480
249k
    if (cinfo->output_iMCU_row + 1 < last_iMCU_row) {
481
248k
      block_rows = compptr->v_samp_factor;
482
248k
      access_rows = block_rows * 3; /* this and next two iMCU rows */
483
248k
    } else if (cinfo->output_iMCU_row < last_iMCU_row) {
484
455
      block_rows = compptr->v_samp_factor;
485
455
      access_rows = block_rows * 2; /* this and next iMCU row */
486
503
    } else {
487
      /* NB: can't use last_row_height here; it is input-side-dependent! */
488
503
      block_rows = (int)(compptr->height_in_blocks % compptr->v_samp_factor);
489
503
      if (block_rows == 0) block_rows = compptr->v_samp_factor;
490
503
      access_rows = block_rows; /* this iMCU row only */
491
503
    }
492
    /* Align the virtual buffer for this component. */
493
249k
    if (cinfo->output_iMCU_row > 1) {
494
248k
      access_rows += 2 * compptr->v_samp_factor; /* prior two iMCU rows too */
495
248k
      buffer = (*cinfo->mem->access_virt_barray)
496
248k
        ((j_common_ptr)cinfo, coef->whole_image[ci],
497
248k
         (cinfo->output_iMCU_row - 2) * compptr->v_samp_factor,
498
248k
         (JDIMENSION)access_rows, FALSE);
499
248k
      buffer += 2 * compptr->v_samp_factor; /* point to current iMCU row */
500
248k
    } else if (cinfo->output_iMCU_row > 0) {
501
455
      access_rows += compptr->v_samp_factor; /* prior iMCU row too */
502
455
      buffer = (*cinfo->mem->access_virt_barray)
503
455
        ((j_common_ptr)cinfo, coef->whole_image[ci],
504
455
         (cinfo->output_iMCU_row - 1) * compptr->v_samp_factor,
505
455
         (JDIMENSION)access_rows, FALSE);
506
455
      buffer += compptr->v_samp_factor; /* point to current iMCU row */
507
503
    } else {
508
503
      buffer = (*cinfo->mem->access_virt_barray)
509
503
        ((j_common_ptr)cinfo, coef->whole_image[ci],
510
503
         (JDIMENSION)0, (JDIMENSION)access_rows, FALSE);
511
503
    }
512
    /* Fetch component-dependent info.
513
     * If the current scan is incomplete, then we use the component-dependent
514
     * info from the previous scan.
515
     */
516
249k
    if (cinfo->output_iMCU_row > cinfo->master->last_good_iMCU_row)
517
0
      coef_bits =
518
0
        coef->coef_bits_latch + ((ci + cinfo->num_components) * SAVED_COEFS);
519
249k
    else
520
249k
      coef_bits = coef->coef_bits_latch + (ci * SAVED_COEFS);
521
522
    /* We only do DC interpolation if no AC coefficient data is available. */
523
249k
    change_dc =
524
249k
      coef_bits[1] == -1 && coef_bits[2] == -1 && coef_bits[3] == -1 &&
525
172k
      coef_bits[4] == -1 && coef_bits[5] == -1 && coef_bits[6] == -1 &&
526
149k
      coef_bits[7] == -1 && coef_bits[8] == -1 && coef_bits[9] == -1;
527
528
249k
    quanttbl = compptr->quant_table;
529
249k
    Q00 = quanttbl->quantval[0];
530
249k
    Q01 = quanttbl->quantval[Q01_POS];
531
249k
    Q10 = quanttbl->quantval[Q10_POS];
532
249k
    Q20 = quanttbl->quantval[Q20_POS];
533
249k
    Q11 = quanttbl->quantval[Q11_POS];
534
249k
    Q02 = quanttbl->quantval[Q02_POS];
535
249k
    if (change_dc) {
536
140k
      Q03 = quanttbl->quantval[Q03_POS];
537
140k
      Q12 = quanttbl->quantval[Q12_POS];
538
140k
      Q21 = quanttbl->quantval[Q21_POS];
539
140k
      Q30 = quanttbl->quantval[Q30_POS];
540
140k
    }
541
249k
    inverse_DCT = cinfo->idct->_inverse_DCT[ci];
542
249k
    output_ptr = output_buf[ci];
543
    /* Loop over all DCT blocks to be processed. */
544
249k
    image_block_rows = block_rows * cinfo->total_iMCU_rows;
545
693k
    for (block_row = 0; block_row < block_rows; block_row++) {
546
444k
      image_block_row = cinfo->output_iMCU_row * block_rows + block_row;
547
444k
      buffer_ptr = buffer[block_row] + cinfo->master->first_MCU_col[ci];
548
549
444k
      if (image_block_row > 0)
550
443k
        prev_block_row =
551
443k
          buffer[block_row - 1] + cinfo->master->first_MCU_col[ci];
552
503
      else
553
503
        prev_block_row = buffer_ptr;
554
555
444k
      if (image_block_row > 1)
556
443k
        prev_prev_block_row =
557
443k
          buffer[block_row - 2] + cinfo->master->first_MCU_col[ci];
558
1.01k
      else
559
1.01k
        prev_prev_block_row = prev_block_row;
560
561
444k
      if (image_block_row < image_block_rows - 1)
562
443k
        next_block_row =
563
443k
          buffer[block_row + 1] + cinfo->master->first_MCU_col[ci];
564
503
      else
565
503
        next_block_row = buffer_ptr;
566
567
444k
      if (image_block_row < image_block_rows - 2)
568
443k
        next_next_block_row =
569
443k
          buffer[block_row + 2] + cinfo->master->first_MCU_col[ci];
570
839
      else
571
839
        next_next_block_row = next_block_row;
572
573
      /* We fetch the surrounding DC values using a sliding-register approach.
574
       * Initialize all 25 here so as to do the right thing on narrow pics.
575
       */
576
444k
      DC01 = DC02 = DC03 = DC04 = DC05 = (int)prev_prev_block_row[0][0];
577
444k
      DC06 = DC07 = DC08 = DC09 = DC10 = (int)prev_block_row[0][0];
578
444k
      DC11 = DC12 = DC13 = DC14 = DC15 = (int)buffer_ptr[0][0];
579
444k
      DC16 = DC17 = DC18 = DC19 = DC20 = (int)next_block_row[0][0];
580
444k
      DC21 = DC22 = DC23 = DC24 = DC25 = (int)next_next_block_row[0][0];
581
444k
      output_col = 0;
582
444k
      last_block_column = compptr->width_in_blocks - 1;
583
444k
      for (block_num = cinfo->master->first_MCU_col[ci];
584
15.4M
           block_num <= cinfo->master->last_MCU_col[ci]; block_num++) {
585
        /* Fetch current DCT block into workspace so we can modify it. */
586
15.0M
        jcopy_block_row(buffer_ptr, (JBLOCKROW)workspace, (JDIMENSION)1);
587
        /* Update DC values */
588
15.0M
        if (block_num == cinfo->master->first_MCU_col[ci] &&
589
444k
            block_num < last_block_column) {
590
396k
          DC04 = DC05 = (int)prev_prev_block_row[1][0];
591
396k
          DC09 = DC10 = (int)prev_block_row[1][0];
592
396k
          DC14 = DC15 = (int)buffer_ptr[1][0];
593
396k
          DC19 = DC20 = (int)next_block_row[1][0];
594
396k
          DC24 = DC25 = (int)next_next_block_row[1][0];
595
396k
        }
596
15.0M
        if (block_num + 1 < last_block_column) {
597
14.2M
          DC05 = (int)prev_prev_block_row[2][0];
598
14.2M
          DC10 = (int)prev_block_row[2][0];
599
14.2M
          DC15 = (int)buffer_ptr[2][0];
600
14.2M
          DC20 = (int)next_block_row[2][0];
601
14.2M
          DC25 = (int)next_next_block_row[2][0];
602
14.2M
        }
603
        /* If DC interpolation is enabled, compute coefficient estimates using
604
         * a Gaussian-like kernel, keeping the averages of the DC values.
605
         *
606
         * If DC interpolation is disabled, compute coefficient estimates using
607
         * an algorithm similar to the one described in Section K.8 of the JPEG
608
         * standard, except applied to a 5x5 window rather than a 3x3 window.
609
         *
610
         * An estimate is applied only if the coefficient is still zero and is
611
         * not known to be fully accurate.
612
         */
613
        /* AC01 */
614
15.0M
        if ((Al = coef_bits[1]) != 0 && workspace[1] == 0) {
615
14.8M
          num = Q00 * (change_dc ?
616
7.85M
                (-DC01 - DC02 + DC04 + DC05 - 3 * DC06 + 13 * DC07 -
617
7.85M
                 13 * DC09 + 3 * DC10 - 3 * DC11 + 38 * DC12 - 38 * DC14 +
618
7.85M
                 3 * DC15 - 3 * DC16 + 13 * DC17 - 13 * DC19 + 3 * DC20 -
619
7.85M
                 DC21 - DC22 + DC24 + DC25) :
620
14.8M
                (-7 * DC11 + 50 * DC12 - 50 * DC14 + 7 * DC15));
621
14.8M
          if (num >= 0) {
622
10.9M
            pred = (int)(((Q01 << 7) + num) / (Q01 << 8));
623
10.9M
            if (Al > 0 && pred >= (1 << Al))
624
649k
              pred = (1 << Al) - 1;
625
10.9M
          } else {
626
3.84M
            pred = (int)(((Q01 << 7) - num) / (Q01 << 8));
627
3.84M
            if (Al > 0 && pred >= (1 << Al))
628
333k
              pred = (1 << Al) - 1;
629
3.84M
            pred = -pred;
630
3.84M
          }
631
14.8M
          workspace[1] = (JCOEF)pred;
632
14.8M
        }
633
        /* AC10 */
634
15.0M
        if ((Al = coef_bits[2]) != 0 && workspace[8] == 0) {
635
14.5M
          num = Q00 * (change_dc ?
636
7.85M
                (-DC01 - 3 * DC02 - 3 * DC03 - 3 * DC04 - DC05 - DC06 +
637
7.85M
                 13 * DC07 + 38 * DC08 + 13 * DC09 - DC10 + DC16 -
638
7.85M
                 13 * DC17 - 38 * DC18 - 13 * DC19 + DC20 + DC21 +
639
7.85M
                 3 * DC22 + 3 * DC23 + 3 * DC24 + DC25) :
640
14.5M
                (-7 * DC03 + 50 * DC08 - 50 * DC18 + 7 * DC23));
641
14.5M
          if (num >= 0) {
642
9.22M
            pred = (int)(((Q10 << 7) + num) / (Q10 << 8));
643
9.22M
            if (Al > 0 && pred >= (1 << Al))
644
2.63M
              pred = (1 << Al) - 1;
645
9.22M
          } else {
646
5.35M
            pred = (int)(((Q10 << 7) - num) / (Q10 << 8));
647
5.35M
            if (Al > 0 && pred >= (1 << Al))
648
1.42M
              pred = (1 << Al) - 1;
649
5.35M
            pred = -pred;
650
5.35M
          }
651
14.5M
          workspace[8] = (JCOEF)pred;
652
14.5M
        }
653
        /* AC20 */
654
15.0M
        if ((Al = coef_bits[3]) != 0 && workspace[16] == 0) {
655
14.4M
          num = Q00 * (change_dc ?
656
7.85M
                (DC03 + 2 * DC07 + 7 * DC08 + 2 * DC09 - 5 * DC12 - 14 * DC13 -
657
7.85M
                 5 * DC14 + 2 * DC17 + 7 * DC18 + 2 * DC19 + DC23) :
658
14.4M
                (-DC03 + 13 * DC08 - 24 * DC13 + 13 * DC18 - DC23));
659
14.4M
          if (num >= 0) {
660
8.39M
            pred = (int)(((Q20 << 7) + num) / (Q20 << 8));
661
8.39M
            if (Al > 0 && pred >= (1 << Al))
662
1.41M
              pred = (1 << Al) - 1;
663
8.39M
          } else {
664
6.06M
            pred = (int)(((Q20 << 7) - num) / (Q20 << 8));
665
6.06M
            if (Al > 0 && pred >= (1 << Al))
666
1.51M
              pred = (1 << Al) - 1;
667
6.06M
            pred = -pred;
668
6.06M
          }
669
14.4M
          workspace[16] = (JCOEF)pred;
670
14.4M
        }
671
        /* AC11 */
672
15.0M
        if ((Al = coef_bits[4]) != 0 && workspace[9] == 0) {
673
14.4M
          num = Q00 * (change_dc ?
674
7.85M
                (-DC01 + DC05 + 9 * DC07 - 9 * DC09 - 9 * DC17 +
675
7.85M
                 9 * DC19 + DC21 - DC25) :
676
14.4M
                (DC10 + DC16 - 10 * DC17 + 10 * DC19 - DC02 - DC20 + DC22 -
677
6.61M
                 DC24 + DC04 - DC06 + 10 * DC07 - 10 * DC09));
678
14.4M
          if (num >= 0) {
679
11.2M
            pred = (int)(((Q11 << 7) + num) / (Q11 << 8));
680
11.2M
            if (Al > 0 && pred >= (1 << Al))
681
427k
              pred = (1 << Al) - 1;
682
11.2M
          } else {
683
3.21M
            pred = (int)(((Q11 << 7) - num) / (Q11 << 8));
684
3.21M
            if (Al > 0 && pred >= (1 << Al))
685
441k
              pred = (1 << Al) - 1;
686
3.21M
            pred = -pred;
687
3.21M
          }
688
14.4M
          workspace[9] = (JCOEF)pred;
689
14.4M
        }
690
        /* AC02 */
691
15.0M
        if ((Al = coef_bits[5]) != 0 && workspace[2] == 0) {
692
14.6M
          num = Q00 * (change_dc ?
693
7.85M
                (2 * DC07 - 5 * DC08 + 2 * DC09 + DC11 + 7 * DC12 - 14 * DC13 +
694
7.85M
                 7 * DC14 + DC15 + 2 * DC17 - 5 * DC18 + 2 * DC19) :
695
14.6M
                (-DC11 + 13 * DC12 - 24 * DC13 + 13 * DC14 - DC15));
696
14.6M
          if (num >= 0) {
697
7.64M
            pred = (int)(((Q02 << 7) + num) / (Q02 << 8));
698
7.64M
            if (Al > 0 && pred >= (1 << Al))
699
881k
              pred = (1 << Al) - 1;
700
7.64M
          } else {
701
6.97M
            pred = (int)(((Q02 << 7) - num) / (Q02 << 8));
702
6.97M
            if (Al > 0 && pred >= (1 << Al))
703
879k
              pred = (1 << Al) - 1;
704
6.97M
            pred = -pred;
705
6.97M
          }
706
14.6M
          workspace[2] = (JCOEF)pred;
707
14.6M
        }
708
15.0M
        if (change_dc) {
709
          /* AC03 */
710
7.85M
          if ((Al = coef_bits[6]) != 0 && workspace[3] == 0) {
711
7.85M
            num = Q00 * (DC07 - DC09 + 2 * DC12 - 2 * DC14 + DC17 - DC19);
712
7.85M
            if (num >= 0) {
713
5.43M
              pred = (int)(((Q03 << 7) + num) / (Q03 << 8));
714
5.43M
              if (Al > 0 && pred >= (1 << Al))
715
0
                pred = (1 << Al) - 1;
716
5.43M
            } else {
717
2.42M
              pred = (int)(((Q03 << 7) - num) / (Q03 << 8));
718
2.42M
              if (Al > 0 && pred >= (1 << Al))
719
0
                pred = (1 << Al) - 1;
720
2.42M
              pred = -pred;
721
2.42M
            }
722
7.85M
            workspace[3] = (JCOEF)pred;
723
7.85M
          }
724
          /* AC12 */
725
7.85M
          if ((Al = coef_bits[7]) != 0 && workspace[10] == 0) {
726
7.85M
            num = Q00 * (DC07 - 3 * DC08 + DC09 - DC17 + 3 * DC18 - DC19);
727
7.85M
            if (num >= 0) {
728
4.05M
              pred = (int)(((Q12 << 7) + num) / (Q12 << 8));
729
4.05M
              if (Al > 0 && pred >= (1 << Al))
730
0
                pred = (1 << Al) - 1;
731
4.05M
            } else {
732
3.80M
              pred = (int)(((Q12 << 7) - num) / (Q12 << 8));
733
3.80M
              if (Al > 0 && pred >= (1 << Al))
734
0
                pred = (1 << Al) - 1;
735
3.80M
              pred = -pred;
736
3.80M
            }
737
7.85M
            workspace[10] = (JCOEF)pred;
738
7.85M
          }
739
          /* AC21 */
740
7.85M
          if ((Al = coef_bits[8]) != 0 && workspace[17] == 0) {
741
7.85M
            num = Q00 * (DC07 - DC09 - 3 * DC12 + 3 * DC14 + DC17 - DC19);
742
7.85M
            if (num >= 0) {
743
3.32M
              pred = (int)(((Q21 << 7) + num) / (Q21 << 8));
744
3.32M
              if (Al > 0 && pred >= (1 << Al))
745
0
                pred = (1 << Al) - 1;
746
4.53M
            } else {
747
4.53M
              pred = (int)(((Q21 << 7) - num) / (Q21 << 8));
748
4.53M
              if (Al > 0 && pred >= (1 << Al))
749
0
                pred = (1 << Al) - 1;
750
4.53M
              pred = -pred;
751
4.53M
            }
752
7.85M
            workspace[17] = (JCOEF)pred;
753
7.85M
          }
754
          /* AC30 */
755
7.85M
          if ((Al = coef_bits[9]) != 0 && workspace[24] == 0) {
756
7.85M
            num = Q00 * (DC07 + 2 * DC08 + DC09 - DC17 - 2 * DC18 - DC19);
757
7.85M
            if (num >= 0) {
758
4.45M
              pred = (int)(((Q30 << 7) + num) / (Q30 << 8));
759
4.45M
              if (Al > 0 && pred >= (1 << Al))
760
0
                pred = (1 << Al) - 1;
761
4.45M
            } else {
762
3.39M
              pred = (int)(((Q30 << 7) - num) / (Q30 << 8));
763
3.39M
              if (Al > 0 && pred >= (1 << Al))
764
0
                pred = (1 << Al) - 1;
765
3.39M
              pred = -pred;
766
3.39M
            }
767
7.85M
            workspace[24] = (JCOEF)pred;
768
7.85M
          }
769
          /* coef_bits[0] is non-negative.  Otherwise this function would not
770
           * be called.
771
           */
772
7.85M
          num = Q00 *
773
7.85M
                (-2 * DC01 - 6 * DC02 - 8 * DC03 - 6 * DC04 - 2 * DC05 -
774
7.85M
                 6 * DC06 + 6 * DC07 + 42 * DC08 + 6 * DC09 - 6 * DC10 -
775
7.85M
                 8 * DC11 + 42 * DC12 + 152 * DC13 + 42 * DC14 - 8 * DC15 -
776
7.85M
                 6 * DC16 + 6 * DC17 + 42 * DC18 + 6 * DC19 - 6 * DC20 -
777
7.85M
                 2 * DC21 - 6 * DC22 - 8 * DC23 - 6 * DC24 - 2 * DC25);
778
7.85M
          if (num >= 0) {
779
3.63M
            pred = (int)(((Q00 << 7) + num) / (Q00 << 8));
780
4.22M
          } else {
781
4.22M
            pred = (int)(((Q00 << 7) - num) / (Q00 << 8));
782
4.22M
            pred = -pred;
783
4.22M
          }
784
7.85M
          workspace[0] = (JCOEF)pred;
785
7.85M
        }  /* change_dc */
786
787
        /* OK, do the IDCT */
788
15.0M
        (*inverse_DCT) (cinfo, compptr, (JCOEFPTR)workspace, output_ptr,
789
15.0M
                        output_col);
790
        /* Advance for next column */
791
15.0M
        DC01 = DC02;  DC02 = DC03;  DC03 = DC04;  DC04 = DC05;
792
15.0M
        DC06 = DC07;  DC07 = DC08;  DC08 = DC09;  DC09 = DC10;
793
15.0M
        DC11 = DC12;  DC12 = DC13;  DC13 = DC14;  DC14 = DC15;
794
15.0M
        DC16 = DC17;  DC17 = DC18;  DC18 = DC19;  DC19 = DC20;
795
15.0M
        DC21 = DC22;  DC22 = DC23;  DC23 = DC24;  DC24 = DC25;
796
15.0M
        buffer_ptr++, prev_block_row++, next_block_row++,
797
15.0M
          prev_prev_block_row++, next_next_block_row++;
798
15.0M
        output_col += compptr->_DCT_scaled_size;
799
15.0M
      }
800
444k
      output_ptr += compptr->_DCT_scaled_size;
801
444k
    }
802
249k
  }
803
804
220k
  if (++(cinfo->output_iMCU_row) < cinfo->total_iMCU_rows)
805
220k
    return JPEG_ROW_COMPLETED;
806
433
  return JPEG_SCAN_COMPLETED;
807
220k
}
Unexecuted instantiation: jdcoefct-12.c:decompress_smooth_data
808
809
#endif /* BLOCK_SMOOTHING_SUPPORTED */
810
811
812
/*
813
 * Initialize coefficient buffer controller.
814
 */
815
816
GLOBAL(void)
817
_jinit_d_coef_controller(j_decompress_ptr cinfo, boolean need_full_buffer)
818
3.06k
{
819
3.06k
  my_coef_ptr coef;
820
821
3.06k
  if (cinfo->data_precision != BITS_IN_JSAMPLE)
822
0
    ERREXIT1(cinfo, JERR_BAD_PRECISION, cinfo->data_precision);
823
824
3.06k
  coef = (my_coef_ptr)
825
3.06k
    (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
826
3.06k
                                sizeof(my_coef_controller));
827
3.06k
  memset(coef, 0, sizeof(my_coef_controller));
828
3.06k
  cinfo->coef = (struct jpeg_d_coef_controller *)coef;
829
3.06k
  coef->pub.start_input_pass = start_input_pass;
830
3.06k
  coef->pub.start_output_pass = start_output_pass;
831
3.06k
#ifdef BLOCK_SMOOTHING_SUPPORTED
832
3.06k
  coef->coef_bits_latch = NULL;
833
3.06k
#endif
834
835
  /* Create the coefficient buffer. */
836
3.06k
  if (need_full_buffer) {
837
2.12k
#ifdef D_MULTISCAN_FILES_SUPPORTED
838
    /* Allocate a full-image virtual array for each component, */
839
    /* padded to a multiple of samp_factor DCT blocks in each direction. */
840
    /* Note we ask for a pre-zeroed array. */
841
2.12k
    int ci, access_rows;
842
2.12k
    jpeg_component_info *compptr;
843
844
5.99k
    for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
845
3.87k
         ci++, compptr++) {
846
3.87k
      access_rows = compptr->v_samp_factor;
847
3.87k
#ifdef BLOCK_SMOOTHING_SUPPORTED
848
      /* If block smoothing could be used, need a bigger window */
849
3.87k
      if (cinfo->progressive_mode)
850
3.13k
        access_rows *= 5;
851
3.87k
#endif
852
3.87k
      coef->whole_image[ci] = (*cinfo->mem->request_virt_barray)
853
3.87k
        ((j_common_ptr)cinfo, JPOOL_IMAGE, TRUE,
854
3.87k
         (JDIMENSION)jround_up((long)compptr->width_in_blocks,
855
3.87k
                               (long)compptr->h_samp_factor),
856
3.87k
         (JDIMENSION)jround_up((long)compptr->height_in_blocks,
857
3.87k
                               (long)compptr->v_samp_factor),
858
3.87k
         (JDIMENSION)access_rows);
859
3.87k
    }
860
2.12k
    coef->pub.consume_data = consume_data;
861
2.12k
    coef->pub._decompress_data = decompress_data;
862
2.12k
    coef->pub.coef_arrays = coef->whole_image; /* link to virtual arrays */
863
#else
864
    ERREXIT(cinfo, JERR_NOT_COMPILED);
865
#endif
866
2.12k
  } else {
867
    /* We only need a single-MCU buffer. */
868
939
    JBLOCKROW buffer;
869
939
    int i;
870
871
939
    buffer = (JBLOCKROW)
872
939
      (*cinfo->mem->alloc_large) ((j_common_ptr)cinfo, JPOOL_IMAGE,
873
939
                                  D_MAX_BLOCKS_IN_MCU * sizeof(JBLOCK));
874
10.3k
    for (i = 0; i < D_MAX_BLOCKS_IN_MCU; i++) {
875
9.39k
      coef->MCU_buffer[i] = buffer + i;
876
9.39k
    }
877
939
    coef->pub.consume_data = dummy_consume_data;
878
939
    coef->pub._decompress_data = decompress_onepass;
879
939
    coef->pub.coef_arrays = NULL; /* flag for no virtual arrays */
880
939
  }
881
882
  /* Allocate the workspace buffer */
883
3.06k
  coef->workspace = (JCOEF *)
884
3.06k
    (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
885
3.06k
                                sizeof(JCOEF) * DCTSIZE2);
886
3.06k
}
jinit_d_coef_controller
Line
Count
Source
818
2.65k
{
819
2.65k
  my_coef_ptr coef;
820
821
2.65k
  if (cinfo->data_precision != BITS_IN_JSAMPLE)
822
0
    ERREXIT1(cinfo, JERR_BAD_PRECISION, cinfo->data_precision);
823
824
2.65k
  coef = (my_coef_ptr)
825
2.65k
    (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
826
2.65k
                                sizeof(my_coef_controller));
827
2.65k
  memset(coef, 0, sizeof(my_coef_controller));
828
2.65k
  cinfo->coef = (struct jpeg_d_coef_controller *)coef;
829
2.65k
  coef->pub.start_input_pass = start_input_pass;
830
2.65k
  coef->pub.start_output_pass = start_output_pass;
831
2.65k
#ifdef BLOCK_SMOOTHING_SUPPORTED
832
2.65k
  coef->coef_bits_latch = NULL;
833
2.65k
#endif
834
835
  /* Create the coefficient buffer. */
836
2.65k
  if (need_full_buffer) {
837
1.72k
#ifdef D_MULTISCAN_FILES_SUPPORTED
838
    /* Allocate a full-image virtual array for each component, */
839
    /* padded to a multiple of samp_factor DCT blocks in each direction. */
840
    /* Note we ask for a pre-zeroed array. */
841
1.72k
    int ci, access_rows;
842
1.72k
    jpeg_component_info *compptr;
843
844
4.82k
    for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
845
3.09k
         ci++, compptr++) {
846
3.09k
      access_rows = compptr->v_samp_factor;
847
3.09k
#ifdef BLOCK_SMOOTHING_SUPPORTED
848
      /* If block smoothing could be used, need a bigger window */
849
3.09k
      if (cinfo->progressive_mode)
850
2.48k
        access_rows *= 5;
851
3.09k
#endif
852
3.09k
      coef->whole_image[ci] = (*cinfo->mem->request_virt_barray)
853
3.09k
        ((j_common_ptr)cinfo, JPOOL_IMAGE, TRUE,
854
3.09k
         (JDIMENSION)jround_up((long)compptr->width_in_blocks,
855
3.09k
                               (long)compptr->h_samp_factor),
856
3.09k
         (JDIMENSION)jround_up((long)compptr->height_in_blocks,
857
3.09k
                               (long)compptr->v_samp_factor),
858
3.09k
         (JDIMENSION)access_rows);
859
3.09k
    }
860
1.72k
    coef->pub.consume_data = consume_data;
861
1.72k
    coef->pub._decompress_data = decompress_data;
862
1.72k
    coef->pub.coef_arrays = coef->whole_image; /* link to virtual arrays */
863
#else
864
    ERREXIT(cinfo, JERR_NOT_COMPILED);
865
#endif
866
1.72k
  } else {
867
    /* We only need a single-MCU buffer. */
868
932
    JBLOCKROW buffer;
869
932
    int i;
870
871
932
    buffer = (JBLOCKROW)
872
932
      (*cinfo->mem->alloc_large) ((j_common_ptr)cinfo, JPOOL_IMAGE,
873
932
                                  D_MAX_BLOCKS_IN_MCU * sizeof(JBLOCK));
874
10.2k
    for (i = 0; i < D_MAX_BLOCKS_IN_MCU; i++) {
875
9.32k
      coef->MCU_buffer[i] = buffer + i;
876
9.32k
    }
877
932
    coef->pub.consume_data = dummy_consume_data;
878
932
    coef->pub._decompress_data = decompress_onepass;
879
932
    coef->pub.coef_arrays = NULL; /* flag for no virtual arrays */
880
932
  }
881
882
  /* Allocate the workspace buffer */
883
2.65k
  coef->workspace = (JCOEF *)
884
2.65k
    (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
885
2.65k
                                sizeof(JCOEF) * DCTSIZE2);
886
2.65k
}
j12init_d_coef_controller
Line
Count
Source
818
403
{
819
403
  my_coef_ptr coef;
820
821
403
  if (cinfo->data_precision != BITS_IN_JSAMPLE)
822
0
    ERREXIT1(cinfo, JERR_BAD_PRECISION, cinfo->data_precision);
823
824
403
  coef = (my_coef_ptr)
825
403
    (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
826
403
                                sizeof(my_coef_controller));
827
403
  memset(coef, 0, sizeof(my_coef_controller));
828
403
  cinfo->coef = (struct jpeg_d_coef_controller *)coef;
829
403
  coef->pub.start_input_pass = start_input_pass;
830
403
  coef->pub.start_output_pass = start_output_pass;
831
403
#ifdef BLOCK_SMOOTHING_SUPPORTED
832
403
  coef->coef_bits_latch = NULL;
833
403
#endif
834
835
  /* Create the coefficient buffer. */
836
403
  if (need_full_buffer) {
837
396
#ifdef D_MULTISCAN_FILES_SUPPORTED
838
    /* Allocate a full-image virtual array for each component, */
839
    /* padded to a multiple of samp_factor DCT blocks in each direction. */
840
    /* Note we ask for a pre-zeroed array. */
841
396
    int ci, access_rows;
842
396
    jpeg_component_info *compptr;
843
844
1.17k
    for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
845
775
         ci++, compptr++) {
846
775
      access_rows = compptr->v_samp_factor;
847
775
#ifdef BLOCK_SMOOTHING_SUPPORTED
848
      /* If block smoothing could be used, need a bigger window */
849
775
      if (cinfo->progressive_mode)
850
643
        access_rows *= 5;
851
775
#endif
852
775
      coef->whole_image[ci] = (*cinfo->mem->request_virt_barray)
853
775
        ((j_common_ptr)cinfo, JPOOL_IMAGE, TRUE,
854
775
         (JDIMENSION)jround_up((long)compptr->width_in_blocks,
855
775
                               (long)compptr->h_samp_factor),
856
775
         (JDIMENSION)jround_up((long)compptr->height_in_blocks,
857
775
                               (long)compptr->v_samp_factor),
858
775
         (JDIMENSION)access_rows);
859
775
    }
860
396
    coef->pub.consume_data = consume_data;
861
396
    coef->pub._decompress_data = decompress_data;
862
396
    coef->pub.coef_arrays = coef->whole_image; /* link to virtual arrays */
863
#else
864
    ERREXIT(cinfo, JERR_NOT_COMPILED);
865
#endif
866
396
  } else {
867
    /* We only need a single-MCU buffer. */
868
7
    JBLOCKROW buffer;
869
7
    int i;
870
871
7
    buffer = (JBLOCKROW)
872
7
      (*cinfo->mem->alloc_large) ((j_common_ptr)cinfo, JPOOL_IMAGE,
873
7
                                  D_MAX_BLOCKS_IN_MCU * sizeof(JBLOCK));
874
77
    for (i = 0; i < D_MAX_BLOCKS_IN_MCU; i++) {
875
70
      coef->MCU_buffer[i] = buffer + i;
876
70
    }
877
7
    coef->pub.consume_data = dummy_consume_data;
878
7
    coef->pub._decompress_data = decompress_onepass;
879
7
    coef->pub.coef_arrays = NULL; /* flag for no virtual arrays */
880
7
  }
881
882
  /* Allocate the workspace buffer */
883
403
  coef->workspace = (JCOEF *)
884
403
    (*cinfo->mem->alloc_small) ((j_common_ptr)cinfo, JPOOL_IMAGE,
885
403
                                sizeof(JCOEF) * DCTSIZE2);
886
403
}