Coverage Report

Created: 2026-02-14 07:09

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/ghostpdl/base/gsimage.c
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Count
Source
1
/* Copyright (C) 2001-2025 Artifex Software, Inc.
2
   All Rights Reserved.
3
4
   This software is provided AS-IS with no warranty, either express or
5
   implied.
6
7
   This software is distributed under license and may not be copied,
8
   modified or distributed except as expressly authorized under the terms
9
   of the license contained in the file LICENSE in this distribution.
10
11
   Refer to licensing information at http://www.artifex.com or contact
12
   Artifex Software, Inc.,  39 Mesa Street, Suite 108A, San Francisco,
13
   CA 94129, USA, for further information.
14
*/
15
16
17
/* Image setup procedures for Ghostscript library */
18
#include "memory_.h"
19
#include "math_.h"
20
#include "gx.h"
21
#include "gserrors.h"
22
#include "gsstruct.h"
23
#include "gscspace.h"
24
#include "gsmatrix.h"   /* for gsiparam.h */
25
#include "gsimage.h"
26
#include "gxarith.h"    /* for igcd */
27
#include "gxdevice.h"
28
#include "gxiparam.h"
29
#include "gxpath.h"   /* for gx_effective_clip_path */
30
#include "gximask.h"
31
#include "gzstate.h"
32
#include "gsutil.h"
33
#include "gxdevsop.h"
34
#include "gximage.h"
35
36
/*
37
  The main internal invariant for the gs_image machinery is
38
  straightforward.  The state consists primarily of N plane buffers
39
  (planes[]).
40
*/
41
typedef struct image_enum_plane_s {
42
/*
43
  The state of each plane consists of:
44
45
  - A row buffer, aligned and (logically) large enough to hold one scan line
46
    for that plane.  (It may have to be reallocated if the plane width or
47
    depth changes.)  A row buffer is "full" if it holds exactly a full scan
48
    line.
49
*/
50
    gs_string row;
51
/*
52
  - A position within the row buffer, indicating how many initial bytes are
53
    occupied.
54
*/
55
    uint pos;
56
/*
57
  - A (retained) source string, which may be empty (size = 0).
58
*/
59
    gs_const_string source;
60
    /* The gs_string 'orig' is only set if the 'txfer_control' flag was set when
61
     * the 'source' string data was initally passed in. In this case we now control the lifetime
62
     * of the string. So when we empty the source string, free it. We need to know the actual
63
     * address of the string, and that gets modified in the peunum->planes->source and size
64
     * members, so we use 'orig' as both a marker for the control and the original size and location.
65
     */
66
    gs_const_string orig;
67
} image_enum_plane_t;
68
/*
69
  The possible states for each plane do not depend on the state of any other
70
  plane.  Either:
71
72
  - pos = 0, source.size = 0.
73
74
  - If the underlying image processor says the plane is currently wanted,
75
    either:
76
77
    - pos = 0, source.size >= one full row of data for this plane.  This
78
      case allows us to avoid copying the data from the source string to the
79
      row buffer if the client is providing data in blocks of at least one
80
      scan line.
81
82
    - pos = full, source.size may have any value.
83
84
    - pos > 0, pos < full, source.size = 0;
85
86
  - If the underlying image processor says the plane is not currently
87
    wanted:
88
89
    - pos = 0, source.size may have any value.
90
91
  This invariant holds at the beginning and end of each call on
92
  gs_image_next_planes.  Note that for each plane, the "plane wanted" status
93
  and size of a full row may change after each call of plane_data.  As
94
  documented in gxiparam.h, we assume that a call of plane_data can only
95
  change a plane's status from "wanted" to "not wanted", or change the width
96
  or depth of a wanted plane, if data for that plane was actually supplied
97
  (and used).
98
*/
99
100
/* Define the enumeration state for this interface layer. */
101
/*typedef struct gs_image_enum_s gs_image_enum; *//* in gsimage.h */
102
struct gs_image_enum_s {
103
    /* The following are set at initialization time. */
104
    gs_memory_t *memory;
105
    gx_device *dev;   /* if 0, just skip over the data */
106
    gx_image_enum_common_t *info; /* driver bookkeeping structure */
107
    int num_planes;
108
    int height;
109
    bool wanted_varies;
110
    /* The following are updated dynamically. */
111
    int plane_index;    /* index of next plane of data, */
112
                                /* only needed for gs_image_next */
113
    int y;
114
    bool error;
115
    byte wanted[GS_IMAGE_MAX_COMPONENTS]; /* cache gx_image_planes_wanted */
116
    byte client_wanted[GS_IMAGE_MAX_COMPONENTS]; /* see gsimage.h */
117
    image_enum_plane_t planes[GS_IMAGE_MAX_COMPONENTS]; /* see above */
118
    /*
119
     * To reduce setup for transferring complete rows, we maintain a
120
     * partially initialized parameter array for gx_image_plane_data_rows.
121
     * The data member is always set just before calling
122
     * gx_image_plane_data_rows; the data_x and raster members are reset
123
     * when needed.
124
     */
125
    gx_image_plane_t image_planes[GS_IMAGE_MAX_COMPONENTS];
126
};
127
128
gs_private_st_composite(st_gs_image_enum, gs_image_enum, "gs_image_enum",
129
                        gs_image_enum_enum_ptrs, gs_image_enum_reloc_ptrs);
130
117
#define gs_image_enum_num_ptrs 2
131
132
/* GC procedures */
133
static
134
195
ENUM_PTRS_WITH(gs_image_enum_enum_ptrs, gs_image_enum *eptr)
135
117
{
136
    /* Enumerate the data planes. */
137
117
    index -= gs_image_enum_num_ptrs;
138
117
    if (index < eptr->num_planes)
139
39
        ENUM_RETURN_STRING_PTR(gs_image_enum, planes[index].source);
140
78
    index -= eptr->num_planes;
141
78
    if (index < eptr->num_planes)
142
39
        ENUM_RETURN_STRING_PTR(gs_image_enum, planes[index].row);
143
39
    return 0;
144
78
}
145
78
ENUM_PTR(0, gs_image_enum, dev);
146
195
ENUM_PTR(1, gs_image_enum, info);
147
195
ENUM_PTRS_END
148
39
static RELOC_PTRS_WITH(gs_image_enum_reloc_ptrs, gs_image_enum *eptr)
149
39
{
150
39
    int i;
151
152
39
    RELOC_PTR(gs_image_enum, dev);
153
39
    RELOC_PTR(gs_image_enum, info);
154
78
    for (i = 0; i < eptr->num_planes; i++)
155
39
        RELOC_CONST_STRING_PTR(gs_image_enum, planes[i].source);
156
78
    for (i = 0; i < eptr->num_planes; i++)
157
39
        RELOC_STRING_PTR(gs_image_enum, planes[i].row);
158
39
}
159
39
RELOC_PTRS_END
160
161
static int
162
is_image_visible(const gs_image_common_t * pic, gs_gstate * pgs, gx_clip_path *pcpath)
163
1.02M
{
164
1.02M
    gs_rect image_rect = {{0, 0}, {0, 0}};
165
1.02M
    gs_rect device_rect;
166
1.02M
    gs_int_rect device_int_rect;
167
1.02M
    gs_matrix mat;
168
1.02M
    int code;
169
170
1.02M
    image_rect.q.x = pic->Width;
171
1.02M
    image_rect.q.y = pic->Height;
172
1.02M
    if (pic->ImageMatrix.xx == ctm_only(pgs).xx &&
173
131k
        pic->ImageMatrix.xy == ctm_only(pgs).xy &&
174
131k
        pic->ImageMatrix.yx == ctm_only(pgs).yx &&
175
131k
        pic->ImageMatrix.yy == ctm_only(pgs).yy) {
176
        /* Handle common special case separately to accept singular matrix */
177
131k
        mat.xx = mat.yy = 1.;
178
131k
        mat.yx = mat.xy = 0.;
179
131k
        mat.tx = ctm_only(pgs).tx - pic->ImageMatrix.tx;
180
131k
        mat.ty = ctm_only(pgs).ty - pic->ImageMatrix.ty;
181
895k
    } else {
182
895k
        code = gs_matrix_invert(&pic->ImageMatrix, &mat);
183
895k
        if (code < 0)
184
0
            return code;
185
895k
        code = gs_matrix_multiply(&mat, &ctm_only(pgs), &mat);
186
895k
        if (code < 0)
187
0
            return code;
188
895k
    }
189
1.02M
    code = gs_bbox_transform(&image_rect, &mat, &device_rect);
190
1.02M
    if (code < 0)
191
0
        return code;
192
1.02M
    device_int_rect.p.x = (int)floor(device_rect.p.x);
193
1.02M
    device_int_rect.p.y = (int)floor(device_rect.p.y);
194
1.02M
    device_int_rect.q.x = (int)ceil(device_rect.q.x);
195
1.02M
    device_int_rect.q.y = (int)ceil(device_rect.q.y);
196
1.02M
    if (!gx_cpath_rect_visible(pcpath, &device_int_rect))
197
619k
        return 0;
198
407k
    return 1;
199
1.02M
}
200
201
/* Create an image enumerator given image parameters and a graphics state. */
202
int
203
gs_image_begin_typed(const gs_image_common_t * pic, gs_gstate * pgs,
204
                     bool uses_color, bool image_is_text, gx_image_enum_common_t ** ppie)
205
1.02M
{
206
1.02M
    gx_device *dev = gs_currentdevice(pgs);
207
1.02M
    gx_clip_path *pcpath;
208
1.02M
    int code = gx_effective_clip_path(pgs, &pcpath);
209
1.02M
    gx_device *dev2 = dev;
210
1.02M
    gx_device_color dc_temp, *pdevc = gs_currentdevicecolor_inline(pgs);
211
212
1.02M
    if (code < 0)
213
0
        return code;
214
    /* Processing an image object operation, but this may be for a text object */
215
1.02M
    ensure_tag_is_set(pgs, pgs->device, image_is_text ? GS_TEXT_TAG : GS_IMAGE_TAG);  /* NB: may unset_dev_color */
216
217
1.02M
    if (uses_color) {
218
932k
        code = gx_set_dev_color(pgs);
219
932k
        if (code != 0)
220
14
            return code;
221
932k
        code = gs_gstate_color_load(pgs);
222
932k
        if (code < 0)
223
0
            return code;
224
932k
    }
225
226
1.02M
    if (pgs->overprint || (!pgs->overprint && (dev_proc(pgs->device, dev_spec_op)(pgs->device,
227
1.02M
        gxdso_overprint_active, NULL, 0)) > 0)) {
228
258
        gs_overprint_params_t op_params = { 0 };
229
230
258
        if_debug0m(gs_debug_flag_overprint, pgs->memory,
231
258
            "[overprint] Image Overprint\n");
232
258
        code = gs_do_set_overprint(pgs);
233
258
        if (code < 0)
234
0
            return code;
235
236
258
        op_params.op_state = OP_STATE_FILL;
237
258
        gs_gstate_update_overprint(pgs, &op_params);
238
239
258
        dev = gs_currentdevice(pgs);
240
258
        dev2 = dev;
241
258
    }
242
243
    /* Imagemask with shading color needs a special optimization
244
       with converting the image into a clipping.
245
       Check for such case after gs_gstate_color_load is done,
246
       because it can cause interpreter callout.
247
     */
248
1.02M
    if (pic->type->begin_typed_image == &gx_begin_image1) {
249
1.02M
        gs_image_t *image = (gs_image_t *)pic;
250
251
1.02M
        if(image->ImageMask) {
252
932k
            bool transpose = false;
253
932k
            gs_matrix_double mat;
254
255
932k
            if((code = gx_image_compute_mat(pgs, NULL, &(image->ImageMatrix), &mat)) < 0)
256
35
                return code;
257
932k
            if ((any_abs(mat.xy) > any_abs(mat.xx)) && (any_abs(mat.yx) > any_abs(mat.yy)))
258
189k
                transpose = true;   /* pure landscape */
259
932k
            code = gx_image_fill_masked_start(dev, gs_currentdevicecolor_inline(pgs), transpose,
260
932k
                                              pcpath, pgs->memory, pgs->log_op, &dev2);
261
932k
            if (code < 0)
262
0
                return code;
263
932k
        }
264
1.02M
        if (dev->interpolate_control < 0) {   /* Force interpolation before begin_typed_image */
265
3.93k
            ((gs_data_image_t *)pic)->Interpolate = true;
266
3.93k
        }
267
1.01M
        else if (dev->interpolate_control == 0) {
268
1.01M
            ((gs_data_image_t *)pic)->Interpolate = false; /* Suppress interpolation */
269
1.01M
        }
270
1.02M
        if (dev2 != dev) {
271
684
            set_nonclient_dev_color(&dc_temp, 1);
272
684
            pdevc = &dc_temp;
273
684
        }
274
1.02M
    }
275
1.02M
    code = gx_device_begin_typed_image(dev2, (const gs_gstate *)pgs,
276
1.02M
                NULL, pic, NULL, pdevc, pcpath, pgs->memory, ppie);
277
1.02M
    if (code < 0)
278
219
        return code;
279
1.02M
    code = is_image_visible(pic, pgs, pcpath);
280
1.02M
    if (code < 0)
281
0
        return code;
282
1.02M
    if (!code)
283
619k
        (*ppie)->skipping = true;
284
1.02M
    return 0;
285
1.02M
}
286
287
/* Allocate an image enumerator. */
288
static void
289
image_enum_init(gs_image_enum * penum)
290
2.04M
{
291
    /* Clean pointers for GC. */
292
2.04M
    penum->info = 0;
293
2.04M
    penum->dev = 0;
294
2.04M
    penum->plane_index = 0;
295
2.04M
    penum->num_planes = 0;
296
2.04M
}
297
gs_image_enum *
298
gs_image_enum_alloc(gs_memory_t * mem, client_name_t cname)
299
1.02M
{
300
1.02M
    gs_image_enum *penum =
301
1.02M
        gs_alloc_struct(mem, gs_image_enum, &st_gs_image_enum, cname);
302
303
1.02M
    if (penum != 0) {
304
1.02M
        penum->memory = mem;
305
1.02M
        image_enum_init(penum);
306
1.02M
    }
307
1.02M
    return penum;
308
1.02M
}
309
310
/* Start processing an ImageType 1 image. */
311
int
312
gs_image_init(gs_image_enum * penum, const gs_image_t * pim, bool multi,
313
              bool image_is_text, gs_gstate * pgs)
314
131k
{
315
131k
    gs_image_t image;
316
131k
    gx_image_enum_common_t *pie;
317
131k
    int code;
318
319
131k
    image = *pim;
320
131k
    if (image.ImageMask) {
321
131k
        image.ColorSpace = NULL;
322
131k
        if (pgs->in_cachedevice <= 1)
323
131k
            image.adjust = false;
324
131k
    } else {
325
0
        if (pgs->in_cachedevice)
326
0
            return_error(gs_error_undefined);
327
0
        if (image.ColorSpace == NULL) {
328
            /*
329
             * Use of a non-current color space is potentially
330
             * incorrect, but it appears this case doesn't arise.
331
             */
332
0
            image.ColorSpace = gs_cspace_new_DeviceGray(pgs->memory);
333
0
            if (image.ColorSpace == NULL)
334
0
                return_error(gs_error_VMerror);
335
0
        }
336
0
    }
337
131k
    code = gs_image_begin_typed((const gs_image_common_t *)&image, pgs,
338
131k
                                image.ImageMask | image.CombineWithColor,
339
131k
                                image_is_text, &pie);
340
131k
    if (code < 0)
341
0
        return code;
342
131k
    return gs_image_enum_init(penum, pie, (const gs_data_image_t *)&image,
343
131k
                              pgs);
344
131k
}
345
346
/*
347
 * Return the number of bytes of data per row for a given plane.
348
 */
349
inline uint
350
gs_image_bytes_per_plane_row(const gs_image_enum * penum, int plane)
351
1.59M
{
352
1.59M
    const gx_image_enum_common_t *pie = penum->info;
353
354
1.59M
    return (pie->plane_widths[plane] * pie->plane_depths[plane] + 7) >> 3;
355
1.59M
}
356
357
/* Cache information when initializing, or after transferring plane data. */
358
static void
359
cache_planes(gs_image_enum *penum)
360
40.3M
{
361
40.3M
    int i;
362
363
40.3M
    if (penum->wanted_varies) {
364
1.31M
        penum->wanted_varies =
365
1.31M
            !gx_image_planes_wanted(penum->info, penum->wanted);
366
2.92M
        for (i = 0; i < penum->num_planes; ++i)
367
1.60M
            if (penum->wanted[i])
368
1.59M
                penum->image_planes[i].raster =
369
1.59M
                    gs_image_bytes_per_plane_row(penum, i);
370
10.2k
            else
371
10.2k
                penum->image_planes[i].data = 0;
372
1.31M
    }
373
40.3M
}
374
/* Advance to the next wanted plane. */
375
static void
376
next_plane(gs_image_enum *penum)
377
20.3M
{
378
20.3M
    int px = penum->plane_index;
379
380
20.3M
    do {
381
20.3M
        if (++px == penum->num_planes)
382
19.3M
            px = 0;
383
20.3M
    } while (!penum->wanted[px]);
384
20.3M
    penum->plane_index = px;
385
20.3M
}
386
/*
387
 * Initialize plane_index and (if appropriate) wanted and
388
 * wanted_varies at the beginning of a group of planes.
389
 */
390
static void
391
begin_planes(gs_image_enum *penum)
392
1.02M
{
393
1.02M
    cache_planes(penum);
394
1.02M
    penum->plane_index = -1;
395
1.02M
    next_plane(penum);
396
1.02M
}
397
398
int
399
gs_image_common_init(gs_image_enum * penum, gx_image_enum_common_t * pie,
400
            const gs_data_image_t * pim, gx_device * dev)
401
1.02M
{
402
    /*
403
     * HACK : For a compatibility with gs_image_cleanup_and_free_enum,
404
     * penum->memory must be initialized in advance
405
     * with the memory heap that owns *penum.
406
     */
407
1.02M
    int i;
408
409
1.02M
    if (pim->Width == 0 || pim->Height == 0) {
410
5.49k
        gx_device *cdev = pie->dev;
411
412
5.49k
        gx_image_end(pie, false);
413
5.49k
        if (dev_proc(cdev, dev_spec_op)(cdev,
414
5.49k
                    gxdso_pattern_is_cpath_accum, NULL, 0) > 0)
415
47
            gx_device_retain((gx_device *)cdev, false);
416
5.49k
        return 1;
417
5.49k
    }
418
1.02M
    image_enum_init(penum);
419
1.02M
    penum->dev = dev;
420
1.02M
    penum->info = pie;
421
1.02M
    penum->num_planes = pie->num_planes;
422
    /*
423
     * Note that for ImageType 3 InterleaveType 2, penum->height (the
424
     * expected number of data rows) differs from pim->Height (the height
425
     * of the source image in scan lines).  This doesn't normally cause
426
     * any problems, because penum->height is not used to determine when
427
     * all the data has been processed: that is up to the plane_data
428
     * procedure for the specific image type.
429
     */
430
1.02M
    penum->height = pim->Height;
431
2.04M
    for (i = 0; i < pie->num_planes; ++i) {
432
1.02M
        penum->planes[i].pos = 0;
433
1.02M
        penum->planes[i].source.size = 0; /* for gs_image_next_planes */
434
1.02M
        penum->planes[i].source.data = 0; /* for GC */
435
1.02M
        penum->planes[i].row.data = 0; /* for GC */
436
1.02M
        penum->planes[i].row.size = 0; /* ditto */
437
1.02M
        penum->image_planes[i].data_x = 0; /* just init once, never changes */
438
1.02M
    }
439
    /* Initialize the dynamic part of the state. */
440
1.02M
    penum->y = 0;
441
1.02M
    penum->error = false;
442
1.02M
    penum->wanted_varies = true;
443
1.02M
    begin_planes(penum);
444
1.02M
    return 0;
445
1.02M
}
446
447
/* Initialize an enumerator for a general image.
448
   penum->memory must be initialized in advance.
449
*/
450
int
451
gs_image_enum_init(gs_image_enum * penum, gx_image_enum_common_t * pie,
452
                   const gs_data_image_t * pim, gs_gstate *pgs)
453
1.02M
{
454
1.02M
    pgs->device->sgr.stroke_stored = false;
455
1.02M
    return gs_image_common_init(penum, pie, pim,
456
1.02M
                                (pgs->in_charpath ? NULL :
457
1.02M
                                 gs_currentdevice_inline(pgs)));
458
1.02M
}
459
460
/* Return the set of planes wanted. */
461
const byte *
462
gs_image_planes_wanted(gs_image_enum *penum)
463
21.5M
{
464
21.5M
    int i;
465
466
    /*
467
     * A plane is wanted at this interface if it is wanted by the
468
     * underlying machinery and has no buffered or retained data.
469
     */
470
43.1M
    for (i = 0; i < penum->num_planes; ++i)
471
21.5M
        penum->client_wanted[i] =
472
21.5M
            (penum->wanted[i] &&
473
21.5M
             penum->planes[i].pos + penum->planes[i].source.size <
474
21.5M
               penum->image_planes[i].raster);
475
21.5M
    return penum->client_wanted;
476
21.5M
}
477
478
/*
479
 * Return the enumerator memory used for allocating the row buffers.
480
 * Because some PostScript files use save/restore within an image data
481
 * reading procedure, this must be a stable allocator.
482
 */
483
static gs_memory_t *
484
gs_image_row_memory(const gs_image_enum *penum)
485
31.9M
{
486
31.9M
    return gs_memory_stable(penum->memory);
487
31.9M
}
488
489
/* Free the row buffers when cleaning up. */
490
static void
491
free_row_buffers(gs_image_enum *penum, int num_planes, client_name_t cname)
492
1.02M
{
493
1.02M
    int i;
494
495
2.05M
    for (i = num_planes - 1; i >= 0; --i) {
496
1.02M
        if_debug3m('b', penum->memory, "[b]free plane %d row ("PRI_INTPTR",%u)\n",
497
1.02M
                   i, (intptr_t)penum->planes[i].row.data,
498
1.02M
                   penum->planes[i].row.size);
499
1.02M
        gs_free_string(gs_image_row_memory(penum), penum->planes[i].row.data,
500
1.02M
                       penum->planes[i].row.size, cname);
501
1.02M
        penum->planes[i].row.data = 0;
502
1.02M
        penum->planes[i].row.size = 0;
503
1.02M
    }
504
1.02M
}
505
506
/* Process the next piece of an image. */
507
int
508
gs_image_next(gs_image_enum * penum, const byte * dbytes, uint dsize,
509
              uint * pused)
510
19.3M
{
511
19.3M
    int px = penum->plane_index;
512
19.3M
    int num_planes = penum->num_planes;
513
19.3M
    int i, code;
514
19.3M
    uint used[GS_IMAGE_MAX_COMPONENTS];
515
19.3M
    gs_const_string plane_data[GS_IMAGE_MAX_COMPONENTS];
516
517
19.3M
    if (penum->planes[px].source.size != 0)
518
0
        return_error(gs_error_rangecheck);
519
38.6M
    for (i = 0; i < num_planes; i++)
520
19.3M
        plane_data[i].size = 0;
521
19.3M
    plane_data[px].data = dbytes;
522
19.3M
    plane_data[px].size = dsize;
523
19.3M
    penum->error = false;
524
19.3M
    code = gs_image_next_planes(penum, plane_data, used, false);
525
19.3M
    *pused = used[px];
526
19.3M
    if (code >= 0)
527
19.3M
        next_plane(penum);
528
19.3M
    return code;
529
19.3M
}
530
531
int
532
gs_image_next_planes(gs_image_enum * penum,
533
                     gs_const_string *plane_data /*[num_planes]*/,
534
                     uint *used /*[num_planes]*/, bool txfer_control)
535
38.3M
{
536
38.3M
    const int num_planes = penum->num_planes;
537
38.3M
    int i;
538
38.3M
    int code = 0;
539
540
#ifdef DEBUG
541
    if (gs_debug_c('b')) {
542
        int pi;
543
544
        for (pi = 0; pi < num_planes; ++pi)
545
            dmprintf6(penum->memory, "[b]plane %d source="PRI_INTPTR",%u pos=%u data="PRI_INTPTR",%u\n",
546
                     pi, (intptr_t)penum->planes[pi].source.data,
547
                     penum->planes[pi].source.size, penum->planes[pi].pos,
548
                     (intptr_t)plane_data[pi].data, plane_data[pi].size);
549
    }
550
#endif
551
76.7M
    for (i = 0; i < num_planes; ++i) {
552
38.4M
        used[i] = 0;
553
38.4M
        if (penum->wanted[i] && plane_data[i].size != 0) {
554
38.4M
            penum->planes[i].source.size = plane_data[i].size;
555
38.4M
            penum->planes[i].source.data = plane_data[i].data;
556
            /* The gs_string 'orig' in penum->planes is set here if the 'txfer_control' flag is set.
557
             * In this case we now control the lifetime of the string. We need to know the actual
558
             * address of the string, and that gets modified in the peunum->planes->source and size
559
             * members, so we use 'orig' as both a marker for the control and the originalsize and location.
560
             */
561
38.4M
            if (txfer_control) {
562
11.0M
                penum->planes[i].orig.data = plane_data[i].data;
563
11.0M
                penum->planes[i].orig.size = plane_data[i].size;
564
27.3M
            } else {
565
27.3M
                penum->planes[i].orig.data = NULL;
566
27.3M
                penum->planes[i].orig.size = 0;
567
27.3M
            }
568
38.4M
        }
569
38.4M
    }
570
76.6M
    for (;;) {
571
        /* If wanted can vary, only transfer 1 row at a time. */
572
76.6M
        int h = (penum->wanted_varies ? 1 : max_int);
573
574
        /* Move partial rows from source[] to row[]. */
575
153M
        for (i = 0; i < num_planes; ++i) {
576
77.0M
            int pos, size;
577
77.0M
            uint raster;
578
579
77.0M
            if (!penum->wanted[i])
580
10.3k
                continue;  /* skip unwanted planes */
581
77.0M
            pos = penum->planes[i].pos;
582
77.0M
            size = penum->planes[i].source.size;
583
77.0M
            raster = penum->image_planes[i].raster;
584
77.0M
            if (size > 0) {
585
52.0M
                if (pos < raster && (pos != 0 || size < raster)) {
586
                    /* Buffer a partial row. */
587
20.9M
                    int copy = min(size, raster - pos);
588
20.9M
                    uint old_size = penum->planes[i].row.size;
589
20.9M
                    gs_memory_t *mem = gs_image_row_memory(penum);
590
591
                    /* Make sure the row buffer is fully allocated. */
592
20.9M
                    if (raster > old_size) {
593
410k
                        byte *old_data = penum->planes[i].row.data;
594
410k
                        byte *row =
595
410k
                            (old_data == 0 ?
596
410k
                             gs_alloc_string(mem, raster,
597
410k
                                             "gs_image_next(row)") :
598
410k
                             gs_resize_string(mem, old_data, old_size, raster,
599
410k
                                              "gs_image_next(row)"));
600
601
410k
                        if_debug5m('b', mem, "[b]plane %d row ("PRI_INTPTR",%u) => ("PRI_INTPTR",%u)\n",
602
410k
                                   i, (intptr_t)old_data, old_size,
603
410k
                                   (intptr_t)row, raster);
604
410k
                        if (row == 0) {
605
1
                            code = gs_note_error(gs_error_VMerror);
606
1
                            free_row_buffers(penum, i, "gs_image_next(row)");
607
1
                            break;
608
1
                        }
609
410k
                        penum->planes[i].row.data = row;
610
410k
                        penum->planes[i].row.size = raster;
611
410k
                    }
612
20.9M
                    memcpy(penum->planes[i].row.data + pos,
613
20.9M
                           penum->planes[i].source.data, copy);
614
20.9M
                    penum->planes[i].source.data += copy;
615
20.9M
                    penum->planes[i].source.size = size -= copy;
616
                    /* The gs_string 'orig' is only set if the 'txfer_control' flag was set when
617
                     * the 'source' string data was initally passed in. In this case we now control the lifetime
618
                     * of the string. So when we empty the source string, free it. We need to know the actual
619
                     * address of the string, and that gets modified in the peunum->planes->source and size
620
                     * members, so we use 'orig' as both a marker for the control and the originalsize and location.
621
                     */
622
20.9M
                    if (penum->planes[i].source.size == 0 && penum->planes[i].orig.size != 0) {
623
6.11M
                        gs_free_string(mem, (byte *)penum->planes[i].orig.data, penum->planes[i].orig.size, "gs_image_next_planes");
624
6.11M
                        penum->planes[i].orig.size = 0;
625
6.11M
                        penum->planes[i].orig.data = NULL;
626
6.11M
                    }
627
20.9M
                    penum->planes[i].pos = pos += copy;
628
20.9M
                    used[i] += copy;
629
20.9M
                }
630
52.0M
            }
631
77.0M
            if (h == 0)
632
9.21k
                continue;  /* can't transfer any data this cycle */
633
77.0M
            if (pos == raster) {
634
                /*
635
                 * This plane will be transferred from the row buffer,
636
                 * so we can only transfer one row.
637
                 */
638
8.56M
                h = min(h, 1);
639
8.56M
                penum->image_planes[i].data = penum->planes[i].row.data;
640
68.4M
            } else if (pos == 0 && size >= raster) {
641
                /* We can transfer 1 or more planes from the source. */
642
31.1M
                if (raster) {
643
31.1M
                    h = min(h, size / raster);
644
31.1M
                    penum->image_planes[i].data = penum->planes[i].source.data;
645
31.1M
                }
646
0
                else
647
0
                    h = 0;
648
31.1M
            } else
649
37.3M
                h = 0;   /* not enough data in this plane */
650
77.0M
        }
651
76.6M
        if (h == 0 || code != 0)
652
37.3M
            break;
653
        /* Pass rows to the device. */
654
39.2M
        if (penum->dev == 0) {
655
            /*
656
             * ****** NOTE: THE FOLLOWING IS NOT CORRECT FOR ImageType 3
657
             * ****** InterleaveType 2, SINCE MASK HEIGHT AND IMAGE HEIGHT
658
             * ****** MAY DIFFER (BY AN INTEGER FACTOR).  ALSO, plane_depths[0]
659
             * ****** AND plane_widths[0] ARE NOT UPDATED.
660
         */
661
0
            if (penum->y + h < penum->height)
662
0
                code = 0;
663
0
            else
664
0
                h = penum->height - penum->y, code = 1;
665
39.2M
        } else {
666
39.2M
            code = gx_image_plane_data_rows(penum->info, penum->image_planes,
667
39.2M
                                            h, &h);
668
39.2M
            if_debug2m('b', penum->memory, "[b]used %d, code=%d\n", h, code);
669
39.2M
            penum->error = code < 0;
670
39.2M
        }
671
39.2M
        penum->y += h;
672
        /* Update positions and sizes. */
673
39.2M
        if (h == 0)
674
1
            break;
675
78.8M
        for (i = 0; i < num_planes; ++i) {
676
39.5M
            int count;
677
678
39.5M
            if (!penum->wanted[i])
679
10.1k
                continue;
680
39.5M
            count = penum->image_planes[i].raster * h;
681
39.5M
            if (penum->planes[i].pos) {
682
                /* We transferred the row from the row buffer. */
683
8.56M
                penum->planes[i].pos = 0;
684
31.0M
            } else {
685
                /* We transferred the row(s) from the source. */
686
31.0M
                penum->planes[i].source.data += count;
687
31.0M
                penum->planes[i].source.size -= count;
688
                /* The gs_string 'orig' is only set if the 'txfer_control' flag was set when
689
                 * the 'source' string data was initally passed in. In this case we now control the lifetime
690
                 * of the string. So when we empty the source string, free it. We need to know the actual
691
                 * address of the string, and that gets modified in the peunum->planes->source and size
692
                 * members, so we use 'orig' as both a marker for the control and the originalsize and location.
693
                 */
694
31.0M
                if (penum->planes[i].source.size == 0 && penum->planes[i].orig.size != 0) {
695
4.50M
                    gs_free_string(gs_image_row_memory(penum), (byte *)penum->planes[i].orig.data, penum->planes[i].orig.size, "gs_image_next_planes");
696
4.50M
                    penum->planes[i].orig.size = 0;
697
4.50M
                    penum->planes[i].orig.data = NULL;
698
4.50M
                }
699
31.0M
                used[i] += count;
700
31.0M
            }
701
39.5M
        }
702
39.2M
        cache_planes(penum);
703
39.2M
        if (code != 0)
704
988k
            break;
705
39.2M
    }
706
    /* Return the retained data pointers. */
707
76.7M
    for (i = 0; i < num_planes; ++i)
708
38.4M
        plane_data[i] = penum->planes[i].source;
709
38.3M
    return code;
710
38.3M
}
711
712
/* Clean up after processing an image. */
713
/* Public for ghostpcl. */
714
int
715
gs_image_cleanup(gs_image_enum * penum, gs_gstate *pgs)
716
1.02M
{
717
1.02M
    int code = 0, code1;
718
719
1.02M
    free_row_buffers(penum, penum->num_planes, "gs_image_cleanup(row)");
720
1.02M
    if (penum->info != 0) {
721
1.02M
        if (dev_proc(penum->info->dev, dev_spec_op)(penum->info->dev,
722
1.02M
                    gxdso_pattern_is_cpath_accum, NULL, 0) > 0) {
723
            /* Performing a conversion of imagemask into a clipping path. */
724
637
            gx_device *cdev = penum->info->dev;
725
726
637
            code = gx_image_end(penum->info, !penum->error); /* Releases penum->info . */
727
637
            code1 = gx_image_fill_masked_end(cdev, penum->dev, gs_currentdevicecolor_inline(pgs));
728
637
            if (code == 0)
729
637
                code = code1;
730
637
        } else
731
1.02M
            code = gx_image_end(penum->info, !penum->error);
732
1.02M
    }
733
    /* Don't free the local enumerator -- the client does that. */
734
735
1.02M
    return code;
736
1.02M
}
737
738
/* Clean up after processing an image and free the enumerator. */
739
int
740
gs_image_cleanup_and_free_enum(gs_image_enum * penum, gs_gstate *pgs)
741
1.02M
{
742
1.02M
    int code;
743
744
1.02M
    if (penum == NULL)
745
0
            return 0;
746
1.02M
    code = gs_image_cleanup(penum, pgs);
747
748
    gs_free_object(penum->memory, penum, "gs_image_cleanup_and_free_enum");
749
1.02M
    return code;
750
1.02M
}