Coverage Report

Created: 2026-04-09 07:06

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/ghostpdl/base/gxpcmap.c
Line
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
/* Pattern color mapping for Ghostscript library */
18
#include "math_.h"
19
#include "memory_.h"
20
#include "gx.h"
21
#include "gp.h"
22
#include "gserrors.h"
23
#include "gsstruct.h"
24
#include "gsutil.h"             /* for gs_next_ids */
25
#include "gxfixed.h"
26
#include "gxmatrix.h"
27
#include "gspath2.h"
28
#include "gxcspace.h"           /* for gscolor2.h */
29
#include "gxcolor2.h"
30
#include "gxdcolor.h"
31
#include "gxdevice.h"
32
#include "gxdevmem.h"
33
#include "gxpcolor.h"
34
#include "gxp1impl.h"
35
#include "gxclist.h"
36
#include "gxcldev.h"
37
#include "gzstate.h"
38
#include "gxdevsop.h"
39
#include "gdevmpla.h"
40
#include "gdevp14.h"
41
#include "gxgetbit.h"
42
#include "gscoord.h"
43
#include "gsicc_blacktext.h"
44
#include "gscspace.h"
45
46
#if RAW_PATTERN_DUMP
47
unsigned int global_pat_index = 0;
48
#endif
49
50
/* Define the default size of the Pattern cache. */
51
211k
#define max_cached_patterns_LARGE 50
52
211k
#define max_pattern_bits_LARGE 100000
53
#define max_cached_patterns_SMALL 5
54
#define max_pattern_bits_SMALL 1000
55
uint
56
gx_pat_cache_default_tiles(void)
57
211k
{
58
#if ARCH_SMALL_MEMORY
59
    return max_cached_patterns_SMALL;
60
#else
61
#ifdef DEBUG
62
    return (gs_debug_c('.') ? max_cached_patterns_SMALL :
63
            max_cached_patterns_LARGE);
64
#else
65
211k
    return max_cached_patterns_LARGE;
66
211k
#endif
67
211k
#endif
68
211k
}
69
ulong
70
gx_pat_cache_default_bits(void)
71
211k
{
72
#if ARCH_SMALL_MEMORY
73
    return max_pattern_bits_SMALL;
74
#else
75
#ifdef DEBUG
76
    return (gs_debug_c('.') ? max_pattern_bits_SMALL :
77
            max_pattern_bits_LARGE);
78
#else
79
211k
    return max_pattern_bits_LARGE;
80
211k
#endif
81
211k
#endif
82
211k
}
83
84
/* Define the structures for Pattern rendering and caching. */
85
private_st_color_tile();
86
private_st_color_tile_element();
87
private_st_pattern_cache();
88
private_st_device_pattern_accum();
89
private_st_pattern_trans();
90
91
/* ------ Pattern rendering ------ */
92
93
/* Device procedures */
94
static dev_proc_open_device(pattern_accum_open);
95
static dev_proc_close_device(pattern_accum_close);
96
static dev_proc_fill_rectangle(pattern_accum_fill_rectangle);
97
static dev_proc_copy_mono(pattern_accum_copy_mono);
98
static dev_proc_copy_color(pattern_accum_copy_color);
99
static dev_proc_copy_planes(pattern_accum_copy_planes);
100
static dev_proc_get_bits_rectangle(pattern_accum_get_bits_rectangle);
101
static dev_proc_fill_rectangle_hl_color(pattern_accum_fill_rectangle_hl_color);
102
/* not static for use by clist_dev_spec_op with pattern-clist */
103
dev_proc_dev_spec_op(pattern_accum_dev_spec_op);
104
105
/* The device descriptor */
106
static void
107
pattern_accum_initialize_device_procs(gx_device *dev)
108
16.4k
{
109
16.4k
    set_dev_proc(dev, open_device, pattern_accum_open);
110
16.4k
    set_dev_proc(dev, close_device, pattern_accum_close);
111
16.4k
    set_dev_proc(dev, fill_rectangle, pattern_accum_fill_rectangle);
112
16.4k
    set_dev_proc(dev, copy_mono, pattern_accum_copy_mono);
113
16.4k
    set_dev_proc(dev, copy_color, pattern_accum_copy_color);
114
16.4k
    set_dev_proc(dev, get_clipping_box, gx_get_largest_clipping_box);
115
16.4k
    set_dev_proc(dev, get_bits_rectangle, pattern_accum_get_bits_rectangle);
116
16.4k
    set_dev_proc(dev, fill_rectangle_hl_color, pattern_accum_fill_rectangle_hl_color);
117
16.4k
    set_dev_proc(dev, dev_spec_op, pattern_accum_dev_spec_op);
118
16.4k
    set_dev_proc(dev, copy_planes, pattern_accum_copy_planes);
119
120
    /* It would be much nicer if gx_device_init set the following
121
     * defaults for us, but that doesn't work for some reason. */
122
16.4k
    set_dev_proc(dev, copy_alpha, gx_default_copy_alpha);
123
16.4k
    set_dev_proc(dev, fill_path, gx_default_fill_path);
124
16.4k
    set_dev_proc(dev, stroke_path, gx_default_stroke_path);
125
16.4k
    set_dev_proc(dev, fill_mask, gx_default_fill_mask);
126
16.4k
    set_dev_proc(dev, fill_trapezoid, gx_default_fill_trapezoid);
127
16.4k
    set_dev_proc(dev, fill_parallelogram, gx_default_fill_parallelogram);
128
16.4k
    set_dev_proc(dev, fill_triangle, gx_default_fill_triangle);
129
16.4k
    set_dev_proc(dev, draw_thin_line, gx_default_draw_thin_line);
130
16.4k
    set_dev_proc(dev, strip_tile_rectangle, gx_default_strip_tile_rectangle);
131
16.4k
    set_dev_proc(dev, begin_typed_image, gx_default_begin_typed_image);
132
16.4k
    set_dev_proc(dev, composite, gx_default_composite);
133
16.4k
    set_dev_proc(dev, text_begin, gx_default_text_begin);
134
16.4k
    set_dev_proc(dev, strip_copy_rop2, gx_default_strip_copy_rop2);
135
16.4k
    set_dev_proc(dev, strip_tile_rect_devn, gx_default_strip_tile_rect_devn);
136
16.4k
    set_dev_proc(dev, transform_pixel_region, gx_default_transform_pixel_region);
137
16.4k
    set_dev_proc(dev, fill_stroke_path, gx_default_fill_stroke_path);
138
16.4k
    set_dev_proc(dev, lock_pattern, gx_default_lock_pattern);
139
16.4k
    set_dev_proc(dev, copy_alpha_hl_color, gx_default_copy_alpha_hl_color);
140
16.4k
}
141
142
static const gx_device_pattern_accum gs_pattern_accum_device =
143
{std_device_std_body_type_open(gx_device_pattern_accum,
144
                               pattern_accum_initialize_device_procs,
145
                               "pattern accumulator",
146
                               &st_device_pattern_accum,
147
                               0, 0, 72, 72)
148
};
149
150
extern dev_proc_open_device(clist_open);
151
152
int
153
pattern_clist_open_device(gx_device *dev)
154
106k
{
155
    /* This function is defiled only for clist_init_bands. */
156
106k
    return clist_open(dev);
157
106k
}
158
159
static dev_proc_create_buf_device(dummy_create_buf_device)
160
212k
{
161
212k
    gx_device_memory *mdev = (gx_device_memory *)*pbdev;
162
163
212k
    gs_make_mem_device(mdev, gdev_mem_device_for_bits(target->color_info.depth),
164
212k
                mem, 0, target);
165
212k
    return 0;
166
212k
}
167
static dev_proc_size_buf_device(dummy_size_buf_device)
168
0
{
169
0
    return 0;
170
0
}
171
static dev_proc_setup_buf_device(dummy_setup_buf_device)
172
0
{
173
0
    return 0;
174
0
}
175
static dev_proc_destroy_buf_device(dummy_destroy_buf_device)
176
0
{
177
0
}
178
/* Attempt to determine the size of a pattern (the approximate amount that will */
179
/* be needed in the pattern cache). If we end up using the clist, this is only  */
180
/* a guess -- we use the tile size which will _probably_ be too large.          */
181
static size_t
182
gx_pattern_size_estimate(gs_pattern1_instance_t *pinst, bool has_tags)
183
143k
{
184
143k
    gx_device *tdev = pinst->saved->device;
185
143k
    int depth = (pinst->templat.PaintType == 2 ? 1 : tdev->color_info.depth);
186
143k
    size_t raster;
187
143k
    size_t size;
188
189
143k
    if (pinst->size.x == 0 || pinst->size.y == 0)
190
92
        return 0;
191
192
143k
    if (pinst->templat.uses_transparency) {
193
        /* if the device has tags, add in an extra tag byte for the pdf14 compositor */
194
12.4k
        raster = ((size_t)pinst->size.x * ((depth/8) + 1 + (has_tags ? 1 : 0)));
195
130k
    } else {
196
130k
        raster = ((size_t)pinst->size.x * depth + 7) / 8;
197
130k
    }
198
143k
    size = raster > max_size_t / pinst->size.y ? (max_size_t - 0xFFFF) : raster * pinst->size.y;
199
143k
    return size;
200
143k
}
201
202
static void gx_pattern_accum_finalize_cw(gx_device * dev)
203
106k
{
204
106k
    gx_device_clist_writer *cwdev = (gx_device_clist_writer *)dev;
205
106k
    rc_decrement_only(cwdev->target, "gx_pattern_accum_finalize_cw");
206
106k
}
207
208
bool gx_device_is_pattern_accum(gx_device *dev)
209
3.14M
{
210
3.14M
    return dev_proc(dev, open_device) == pattern_accum_open;
211
3.14M
}
212
213
bool gx_device_is_pattern_clist(gx_device *dev)
214
3.76M
{
215
3.76M
    return dev_proc(dev, open_device) == pattern_clist_open_device;
216
3.76M
}
217
218
/* Allocate a pattern accumulator, with an initial refct of 0. */
219
gx_device_forward *
220
gx_pattern_accum_alloc(gs_memory_t * mem, gs_memory_t * storage_memory,
221
                       gs_pattern1_instance_t *pinst, client_name_t cname)
222
122k
{
223
122k
    gx_device *tdev = pinst->saved->device;
224
122k
    bool has_tags = device_encodes_tags(tdev);
225
122k
    size_t size = gx_pattern_size_estimate(pinst, has_tags);
226
122k
    gx_device_forward *fdev;
227
122k
    int force_no_clist = 0;
228
122k
    size_t max_pattern_bitmap = tdev->MaxPatternBitmap == 0 ? MaxPatternBitmap_DEFAULT :
229
122k
                                tdev->MaxPatternBitmap;
230
231
122k
    pinst->num_planar_planes = tdev->num_planar_planes;
232
    /*
233
     * If the target device can accumulate a pattern stream and the language
234
     * client supports high level patterns (ps and pdf only) we don't need a
235
     * raster or clist representation for the pattern, but the code goes
236
     * through the motions of creating the device anyway.  Later when the
237
     * pattern paint procedure is called  an error is returned and whatever
238
     * has been set up here is destroyed.  We try to make sure the same path
239
     * is taken in the code even though the device is never used because
240
     * there are pathological problems (see Bug689851.pdf) where the pattern
241
     * is so large we can't even allocate the memory for the device and the
242
     * dummy clist path must be used.  None of this discussion is relevant if
243
     * the client language does not support high level patterns or the device
244
     * cannot accumulate the pattern stream.
245
     */
246
122k
    if (pinst->saved->have_pattern_streams == 0 && (*dev_proc(pinst->saved->device,
247
102k
        dev_spec_op))((gx_device *)pinst->saved->device,
248
102k
        gxdso_pattern_can_accum, pinst, 0) == 1)
249
0
        force_no_clist = 1; /* Set only for first time through */
250
    /* If the blend mode in use is not Normal, then we CANNOT use a tile. What
251
     * if the blend mode changes half way through the tile? We simply must use
252
     * a clist. */
253
122k
    if (force_no_clist ||
254
122k
        (((size < max_pattern_bitmap && !pinst->is_clist)
255
106k
           || pinst->templat.PaintType != 1) && !pinst->templat.BM_Not_Normal)) {
256
16.4k
        gx_device_pattern_accum *adev = gs_alloc_struct_immovable(mem, gx_device_pattern_accum,
257
16.4k
                        &st_device_pattern_accum, cname);
258
16.4k
        if (adev == 0)
259
0
            return 0;
260
#ifdef DEBUG
261
        if (pinst->is_clist)
262
            emprintf(mem, "not using clist even though clist is requested\n");
263
#endif
264
16.4k
        pinst->is_clist = false;
265
16.4k
        (void)gx_device_init((gx_device *)adev,
266
16.4k
                             (const gx_device *)&gs_pattern_accum_device,
267
16.4k
                             mem, true);
268
16.4k
        adev->instance = pinst;
269
16.4k
        adev->bitmap_memory = storage_memory;
270
16.4k
        fdev = (gx_device_forward *)adev;
271
106k
    } else {
272
106k
        gx_device_buf_procs_t buf_procs = {dummy_create_buf_device,
273
106k
        dummy_size_buf_device, dummy_setup_buf_device, dummy_destroy_buf_device};
274
106k
        gx_device_clist *cdev;
275
106k
        gx_device_clist_writer *cwdev;
276
106k
        const int data_size = 1024*128;
277
106k
        gx_band_params_t band_params = { 0 };
278
106k
        byte *data  = gs_alloc_bytes(mem->non_gc_memory, data_size, cname);
279
280
106k
        if (data == NULL)
281
0
            return 0;
282
106k
        pinst->is_clist = true;
283
        /* NB: band_params.page_uses_transparency is set in clist_make_accum_device */
284
106k
        band_params.BandWidth = pinst->size.x;
285
106k
        band_params.BandHeight = pinst->size.y;
286
106k
        band_params.BandBufferSpace = 0;
287
288
106k
        cdev = clist_make_accum_device(mem, tdev, "pattern-clist", data, data_size,
289
106k
                                       &buf_procs, &band_params, true, /* use_memory_clist */
290
106k
                                       pinst->templat.uses_transparency, pinst);
291
106k
        if (cdev == 0) {
292
0
            gs_free_object(tdev->memory->non_gc_memory, data, cname);
293
0
            return 0;
294
0
        }
295
106k
        cwdev = (gx_device_clist_writer *)cdev;
296
106k
        cwdev->finalize = gx_pattern_accum_finalize_cw;
297
106k
        set_dev_proc(cwdev, open_device, pattern_clist_open_device);
298
106k
        fdev = (gx_device_forward *)cdev;
299
106k
    }
300
122k
    fdev->log2_align_mod = tdev->log2_align_mod;
301
122k
    fdev->pad = tdev->pad;
302
122k
    fdev->num_planar_planes = tdev->num_planar_planes;
303
122k
    fdev->graphics_type_tag = tdev->graphics_type_tag;
304
122k
    fdev->interpolate_control = tdev->interpolate_control;
305
122k
    fdev->non_strict_bounds = tdev->non_strict_bounds;
306
122k
    gx_device_forward_fill_in_procs(fdev);
307
122k
    return fdev;
308
122k
}
309
310
gx_pattern_trans_t*
311
new_pattern_trans_buff(gs_memory_t *mem)
312
74.9k
{
313
74.9k
    gx_pattern_trans_t *result;
314
315
    /* Allocate structure that we will use for the trans pattern */
316
74.9k
    result = gs_alloc_struct(mem, gx_pattern_trans_t, &st_pattern_trans, "new_pattern_trans_buff");
317
318
74.9k
    if (result != NULL) {
319
74.9k
        result->transbytes = NULL;
320
74.9k
        result->pdev14 = NULL;
321
74.9k
        result->mem = NULL;
322
74.9k
        result->fill_trans_buffer = NULL;
323
74.9k
        result->buf = NULL;
324
74.9k
        result->n_chan = 0;
325
74.9k
        result->rect.p.x = result->rect.p.y = result->rect.q.x = result->rect.q.y = 0;
326
74.9k
    }
327
328
74.9k
    return(result);
329
74.9k
}
330
331
/*
332
 * Initialize a pattern accumulator.
333
 * Client must already have set instance and bitmap_memory.
334
 *
335
 * Note that mask and bits accumulators are only created if necessary.
336
 */
337
static int
338
pattern_accum_open(gx_device * dev)
339
16.4k
{
340
16.4k
    gx_device_pattern_accum *const padev = (gx_device_pattern_accum *) dev;
341
16.4k
    const gs_pattern1_instance_t *pinst = padev->instance;
342
16.4k
    gs_memory_t *mem = padev->bitmap_memory;
343
16.4k
    gx_device_memory *mask = 0;
344
16.4k
    gx_device_memory *bits = 0;
345
    /*
346
     * The client should preset the target, because the device for which the
347
     * pattern is being rendered may not (in general, will not) be the same
348
     * as the one that was current when the pattern was instantiated.
349
     */
350
16.4k
    gx_device *target =
351
16.4k
        (padev->target == 0 ? gs_currentdevice(pinst->saved) :
352
16.4k
         padev->target);
353
16.4k
    int width = pinst->size.x;
354
16.4k
    int height = pinst->size.y;
355
16.4k
    int code = 0;
356
16.4k
    bool mask_open = false;
357
358
    /*
359
     * C's bizarre coercion rules force us to copy HWResolution in pieces
360
     * rather than using a single assignment.
361
     */
362
16.4k
#define PDSET(dev)\
363
37.4k
  ((dev)->width = width, (dev)->height = height,\
364
   /*(dev)->HWResolution = target->HWResolution*/\
365
37.4k
   (dev)->HWResolution[0] = target->HWResolution[0],\
366
37.4k
   (dev)->HWResolution[1] = target->HWResolution[1])
367
368
16.4k
    PDSET(padev);
369
16.4k
    padev->color_info = target->color_info;
370
    /* Bug 689737: If PaintType == 2 (Uncolored tiling pattern), pattern is
371
     * 1bpp bitmap. No antialiasing in this case! */
372
16.4k
    if (pinst->templat.PaintType == 2) {
373
2.02k
        padev->color_info.anti_alias.text_bits = 1;
374
2.02k
        padev->color_info.anti_alias.graphics_bits = 1;
375
2.02k
    }
376
    /* If we have transparency, then fix the color info
377
       now so that the mem device allocates the proper
378
       buffer space for the pattern template.  We can
379
       do this since the transparency code all */
380
16.4k
    if (pinst->templat.uses_transparency) {
381
        /* Allocate structure that we will use for the trans pattern */
382
5.95k
        padev->transbuff = new_pattern_trans_buff(mem);
383
5.95k
        if (padev->transbuff == NULL)
384
0
            return_error(gs_error_VMerror);
385
10.4k
    } else {
386
10.4k
        padev->transbuff = NULL;
387
10.4k
    }
388
16.4k
    if (pinst->uses_mask) {
389
12.5k
        mask = gs_alloc_struct( mem,
390
12.5k
                                gx_device_memory,
391
12.5k
                                &st_device_memory,
392
12.5k
                                "pattern_accum_open(mask)"
393
12.5k
                                );
394
12.5k
        if (mask == 0)
395
0
            return_error(gs_error_VMerror);
396
12.5k
        gs_make_mem_mono_device(mask, mem, 0);
397
12.5k
        PDSET(mask);
398
12.5k
        mask->bitmap_memory = mem;
399
12.5k
        mask->base = 0;
400
12.5k
        code = (*dev_proc(mask, open_device)) ((gx_device *) mask);
401
12.5k
        if (code >= 0) {
402
12.5k
            mask_open = true;
403
12.5k
            memset(mask->base, 0, (size_t)mask->raster * mask->height);
404
12.5k
        }
405
12.5k
    }
406
407
16.4k
    if (code >= 0) {
408
16.4k
        if (pinst->templat.uses_transparency) {
409
            /* In this case, we will grab the buffer created
410
               by the graphic state's device (which is pdf14) and
411
               we will be tiling that into a transparency group buffer
412
               to blend with the pattern accumulator's target.  Since
413
               all the transparency stuff is planar format, it is
414
               best just to keep the data in that form */
415
5.95k
            gx_device_set_target((gx_device_forward *)padev, target);
416
10.4k
        } else {
417
10.4k
            switch (pinst->templat.PaintType) {
418
2.02k
            case 2:             /* uncolored */
419
2.02k
                gx_device_set_target((gx_device_forward *)padev, target);
420
2.02k
                break;
421
8.47k
            case 1:             /* colored */
422
8.47k
                bits = gs_alloc_struct(mem, gx_device_memory,
423
8.47k
                                       &st_device_memory,
424
8.47k
                                       "pattern_accum_open(bits)");
425
8.47k
                if (bits == 0)
426
0
                    code = gs_note_error(gs_error_VMerror);
427
8.47k
                else {
428
8.47k
                    gs_make_mem_device(bits,
429
8.47k
                            gdev_mem_device_for_bits(padev->color_info.depth),
430
8.47k
                                       mem, -1, target);
431
8.47k
                    PDSET(bits);
432
8.47k
#undef PDSET
433
8.47k
                    bits->color_info = padev->color_info;
434
8.47k
                    bits->bitmap_memory = mem;
435
436
8.47k
                    if (target->num_planar_planes > 0)
437
577
                    {
438
577
                        gx_render_plane_t planes[GX_DEVICE_COLOR_MAX_COMPONENTS];
439
577
                        uchar num_comp = padev->num_planar_planes;
440
577
                        uchar i;
441
577
                        int depth = target->color_info.depth / num_comp;
442
2.68k
                        for (i = 0; i < num_comp; i++)
443
2.10k
                        {
444
2.10k
                            planes[i].shift = depth * (num_comp - 1 - i);
445
2.10k
                            planes[i].depth = depth;
446
2.10k
                            planes[i].index = i;
447
2.10k
                        }
448
577
                        code = gdev_mem_set_planar(bits, num_comp, planes);
449
577
                    }
450
8.47k
                    if (code >= 0) {
451
8.47k
                        code = (*dev_proc(bits, open_device)) ((gx_device *) bits);
452
8.47k
                        gx_device_set_target((gx_device_forward *)padev,
453
8.47k
                                             (gx_device *)bits);
454
                        /* The update_spot_equivalent_color proc for the bits device
455
                           should forward to the real target device.  This will ensure
456
                           that the target device can get equivalent CMYK values for
457
                           spot colors if we are using a separation device and the spot
458
                           color occurs only in patterns on the page. */
459
8.47k
                        bits->procs.update_spot_equivalent_colors = gx_forward_update_spot_equivalent_colors;
460
8.47k
                    }
461
8.47k
                }
462
10.4k
            }
463
10.4k
        }
464
16.4k
    }
465
16.4k
    if (code < 0) {
466
0
        if (bits != 0)
467
0
            gs_free_object(mem, bits, "pattern_accum_open(bits)");
468
0
        if (mask != 0) {
469
0
            if (mask_open)
470
0
                (*dev_proc(mask, close_device)) ((gx_device *) mask);
471
0
            gs_free_object(mem, mask, "pattern_accum_open(mask)");
472
0
        }
473
0
        return code;
474
0
    }
475
16.4k
    padev->mask = mask;
476
16.4k
    padev->bits = bits;
477
    /* Retain the device, so it will survive anomalous grestores. */
478
16.4k
    gx_device_retain(dev, true);
479
16.4k
    return code;
480
16.4k
}
481
482
/* Close an accumulator and free the bits. */
483
static int
484
pattern_accum_close(gx_device * dev)
485
32.8k
{
486
32.8k
    gx_device_pattern_accum *const padev = (gx_device_pattern_accum *) dev;
487
32.8k
    gs_memory_t *mem = padev->bitmap_memory;
488
489
    /*
490
     * If bits != 0, it is the target of the device; reference counting
491
     * will close and free it.
492
     */
493
32.8k
    gx_device_set_target((gx_device_forward *)padev, NULL);
494
32.8k
    padev->bits = 0;
495
32.8k
    if (padev->mask != 0) {
496
12.5k
        (*dev_proc(padev->mask, close_device)) ((gx_device *) padev->mask);
497
12.5k
        gs_free_object(mem, padev->mask, "pattern_accum_close(mask)");
498
12.5k
        padev->mask = 0;
499
12.5k
    }
500
501
32.8k
    if (padev->transbuff != 0) {
502
5.06k
        gs_free_object(mem,padev->target,"pattern_accum_close(transbuff)");
503
5.06k
        padev->transbuff = NULL;
504
5.06k
    }
505
506
    /* Un-retain the device now, so reference counting will free it. */
507
32.8k
    gx_device_retain(dev, false);
508
32.8k
    return 0;
509
32.8k
}
510
511
/* _hl_color */
512
static int
513
pattern_accum_fill_rectangle_hl_color(gx_device *dev, const gs_fixed_rect *rect,
514
                                      const gs_gstate *pgs,
515
                                      const gx_drawing_color *pdcolor,
516
                                      const gx_clip_path *pcpath)
517
145k
{
518
145k
    gx_device_pattern_accum *const padev = (gx_device_pattern_accum *) dev;
519
145k
    int code;
520
521
145k
    if (padev->bits) {
522
145k
        code = (*dev_proc(padev->target, fill_rectangle_hl_color))
523
145k
            (padev->target, rect, pgs, pdcolor, pcpath);
524
145k
        if (code < 0)
525
0
            return code;
526
145k
    }
527
145k
    if (padev->mask) {
528
144k
        int x, y, w, h;
529
530
144k
        x = fixed2int(rect->p.x);
531
144k
        y = fixed2int(rect->p.y);
532
144k
        w = fixed2int(rect->q.x) - x;
533
144k
        h = fixed2int(rect->q.y) - y;
534
535
144k
        return (*dev_proc(padev->mask, fill_rectangle))
536
144k
            ((gx_device *) padev->mask, x, y, w, h, (gx_color_index) 1);
537
144k
    }
538
633
    return 0;
539
145k
}
540
541
/* Fill a rectangle */
542
static int
543
pattern_accum_fill_rectangle(gx_device * dev, int x, int y, int w, int h,
544
                             gx_color_index color)
545
345k
{
546
345k
    gx_device_pattern_accum *const padev = (gx_device_pattern_accum *) dev;
547
548
345k
    if (padev->bits)
549
343k
        (*dev_proc(padev->target, fill_rectangle))
550
343k
            (padev->target, x, y, w, h, color);
551
345k
    if (padev->mask)
552
296k
        return (*dev_proc(padev->mask, fill_rectangle))
553
296k
            ((gx_device *) padev->mask, x, y, w, h, (gx_color_index) 1);
554
49.0k
     else
555
49.0k
        return 0;
556
345k
}
557
558
/* Copy a monochrome bitmap. */
559
static int
560
pattern_accum_copy_mono(gx_device * dev, const byte * data, int data_x,
561
                    int raster, gx_bitmap_id id, int x, int y, int w, int h,
562
                        gx_color_index color0, gx_color_index color1)
563
162k
{
564
162k
    gx_device_pattern_accum *const padev = (gx_device_pattern_accum *) dev;
565
566
    /* opt out early if nothing to render (some may think this a bug) */
567
162k
    if (color0 == gx_no_color_index && color1 == gx_no_color_index)
568
0
        return 0;
569
162k
    if (padev->bits)
570
146k
        (*dev_proc(padev->target, copy_mono))
571
146k
            (padev->target, data, data_x, raster, id, x, y, w, h,
572
146k
             color0, color1);
573
162k
    if (padev->mask) {
574
156k
        if (color0 != gx_no_color_index)
575
140k
            color0 = 1;
576
156k
        if (color1 != gx_no_color_index)
577
156k
            color1 = 1;
578
156k
        if (color0 == 1 && color1 == 1)
579
140k
            return (*dev_proc(padev->mask, fill_rectangle))
580
140k
                ((gx_device *) padev->mask, x, y, w, h, (gx_color_index) 1);
581
15.8k
        else
582
15.8k
            return (*dev_proc(padev->mask, copy_mono))
583
15.8k
                ((gx_device *) padev->mask, data, data_x, raster, id, x, y, w, h,
584
15.8k
                 color0, color1);
585
156k
    } else
586
5.89k
        return 0;
587
162k
}
588
589
/* Copy a color bitmap. */
590
static int
591
pattern_accum_copy_color(gx_device * dev, const byte * data, int data_x,
592
                    int raster, gx_bitmap_id id, int x, int y, int w, int h)
593
225k
{
594
225k
    gx_device_pattern_accum *const padev = (gx_device_pattern_accum *) dev;
595
596
225k
    if (padev->bits)
597
225k
        (*dev_proc(padev->target, copy_color))
598
225k
            (padev->target, data, data_x, raster, id, x, y, w, h);
599
225k
    if (padev->mask)
600
225k
        return (*dev_proc(padev->mask, fill_rectangle))
601
225k
            ((gx_device *) padev->mask, x, y, w, h, (gx_color_index) 1);
602
0
    else
603
0
        return 0;
604
225k
}
605
606
/* Copy a color plane. */
607
static int
608
pattern_accum_copy_planes(gx_device * dev, const byte * data, int data_x,
609
                          int raster, gx_bitmap_id id,
610
                          int x, int y, int w, int h, int plane_height)
611
320
{
612
320
    gx_device_pattern_accum *const padev = (gx_device_pattern_accum *) dev;
613
614
320
    if (padev->bits)
615
320
        (*dev_proc(padev->target, copy_planes))
616
320
            (padev->target, data, data_x, raster, id, x, y, w, h, plane_height);
617
320
    if (padev->mask)
618
320
        return (*dev_proc(padev->mask, fill_rectangle))
619
320
            ((gx_device *) padev->mask, x, y, w, h, (gx_color_index) 1);
620
0
    else
621
0
        return 0;
622
320
}
623
624
static int
625
blank_unmasked_bits(gx_device * mask,
626
                    int polarity,
627
                    int num_comps,
628
                    int depth,
629
                    const gs_int_rect *prect,
630
                    gs_get_bits_params_t *p)
631
0
{
632
0
    static const int required_options = GB_COLORS_NATIVE
633
0
                       | GB_ALPHA_NONE
634
0
                       | GB_RETURN_COPY
635
0
                       | GB_ALIGN_STANDARD
636
0
                       | GB_OFFSET_0
637
0
                       | GB_RASTER_STANDARD;
638
0
    int raster = p->raster;
639
0
    byte *min;
640
0
    int x0 = prect->p.x;
641
0
    int y0 = prect->p.y;
642
0
    int x, y;
643
0
    int w = prect->q.x - x0;
644
0
    int h = prect->q.y - y0;
645
0
    int code = 0;
646
0
    byte *ptr;
647
0
    int blank = (polarity == GX_CINFO_POLARITY_ADDITIVE ? 255 : 0);
648
0
    gs_int_rect rect;
649
0
    gs_get_bits_params_t params;
650
651
0
    if ((p->options & required_options) != required_options)
652
0
        return_error(gs_error_rangecheck);
653
654
0
    min = gs_alloc_bytes(mask->memory, (w+7)>>3, "blank_unmasked_bits");
655
0
    if (min == NULL)
656
0
        return_error(gs_error_VMerror);
657
658
0
    rect.p.x = 0;
659
0
    rect.q.x = mask->width;
660
0
    params.x_offset = 0;
661
0
    params.raster = bitmap_raster(mask->width * mask->color_info.depth);
662
663
0
    if (p->options & GB_PACKING_CHUNKY)
664
0
    {
665
0
        if ((depth & 7) != 0 || depth > 64) {
666
0
            code = gs_note_error(gs_error_rangecheck);
667
0
            goto fail;
668
0
        }
669
0
        ptr = p->data[0];
670
0
        depth >>= 3;
671
0
        raster -= w*depth;
672
0
        for (y = 0; y < h; y++)
673
0
        {
674
0
            byte *mine;
675
676
0
            rect.p.y = y+y0;
677
0
            rect.q.y = y+y0+1;
678
0
            params.options = (GB_ALIGN_ANY |
679
0
                              (GB_RETURN_COPY | GB_RETURN_POINTER) |
680
0
                              GB_OFFSET_0 |
681
0
                              GB_RASTER_STANDARD | GB_PACKING_CHUNKY |
682
0
                              GB_COLORS_NATIVE | GB_ALPHA_NONE);
683
0
            params.data[0] = min;
684
0
            code = (*dev_proc(mask, get_bits_rectangle))(mask, &rect,
685
0
                                                         &params);
686
0
            if (code < 0)
687
0
                goto fail;
688
0
            mine = params.data[0];
689
0
            for (x = 0; x < w; x++)
690
0
            {
691
0
                int xx = x+x0;
692
0
                if (((mine[xx>>3]<<(x&7)) & 128) == 0) {
693
0
                    switch (depth)
694
0
                    {
695
0
                    case 8:
696
0
                        *ptr++ = blank;
697
0
                    case 7:
698
0
                        *ptr++ = blank;
699
0
                    case 6:
700
0
                        *ptr++ = blank;
701
0
                    case 5:
702
0
                        *ptr++ = blank;
703
0
                    case 4:
704
0
                        *ptr++ = blank;
705
0
                    case 3:
706
0
                        *ptr++ = blank;
707
0
                    case 2:
708
0
                        *ptr++ = blank;
709
0
                    case 1:
710
0
                        *ptr++ = blank;
711
0
                        break;
712
0
                    }
713
0
                } else {
714
0
                    ptr += depth;
715
0
                }
716
0
            }
717
0
            ptr += raster;
718
0
        }
719
0
    } else {
720
        /* Planar, only handle 8 or 16 bits */
721
0
        int bytes_per_component = (depth/num_comps) >> 3;
722
723
0
        if (depth/num_comps != 8 && depth/num_comps != 16) {
724
0
            code = gs_note_error(gs_error_rangecheck);
725
0
            goto fail;
726
0
        }
727
0
        for (y = 0; y < h; y++)
728
0
        {
729
0
            int c;
730
0
            byte *mine;
731
732
0
            rect.p.y = y+y0;
733
0
            rect.q.y = y+y0+1;
734
0
            params.options = (GB_ALIGN_ANY |
735
0
                              (GB_RETURN_COPY | GB_RETURN_POINTER) |
736
0
                              GB_OFFSET_0 |
737
0
                              GB_RASTER_STANDARD | GB_PACKING_CHUNKY |
738
0
                              GB_COLORS_NATIVE | GB_ALPHA_NONE);
739
0
            params.data[0] = min;
740
0
            code = (*dev_proc(mask, get_bits_rectangle))(mask, &rect,
741
0
                                                         &params);
742
0
            if (code < 0)
743
0
                goto fail;
744
0
            mine = params.data[0];
745
746
0
            for (c = 0; c < num_comps; c++)
747
0
            {
748
0
                if (p->data[c] == NULL)
749
0
                    continue;
750
0
                ptr = p->data[c] + raster * y;
751
0
                for (x = 0; x < w; x++)
752
0
                {
753
0
                    int xx = x+x0;
754
0
                    if (((mine[xx>>3]>>(x&7)) & 1) == 0) {
755
0
                        *ptr++ = blank;
756
0
                        if (bytes_per_component > 1)
757
0
                            *ptr++ = blank;
758
0
                    } else {
759
0
                        ptr += bytes_per_component;
760
0
                    }
761
0
                }
762
0
            }
763
0
        }
764
0
    }
765
766
0
fail:
767
0
    gs_free_object(mask->memory, min, "blank_unmasked_bits");
768
769
0
    return code;
770
0
}
771
772
/* Read back a rectangle of bits. */
773
/****** SHOULD USE MASK TO DEFINE UNREAD AREA *****/
774
static int
775
pattern_accum_get_bits_rectangle(gx_device * dev, const gs_int_rect * prect,
776
                       gs_get_bits_params_t * params)
777
0
{
778
0
    gx_device_pattern_accum *const padev = (gx_device_pattern_accum *) dev;
779
0
    int code;
780
0
    gs_get_bits_params_t params2 = *params;
781
782
0
    if (padev->bits) {
783
0
        if (padev->mask)
784
0
            params2.options &= ~GB_RETURN_POINTER;
785
0
        code = (*dev_proc(padev->target, get_bits_rectangle))
786
0
            (padev->target, prect, &params2);
787
        /* If we have a mask, then unmarked pixels of the bits
788
         * will be undefined. Strictly speaking it makes no
789
         * sense for us to return any value here, but the only
790
         * caller of this currently is the overprint code, which
791
         * uses the the values to parrot back to us. Let's
792
         * make sure they are set to the default 'empty' values.
793
         */
794
0
        if (code >= 0 && padev->mask)
795
0
            code = blank_unmasked_bits((gx_device *)padev->mask,
796
0
                                       padev->target->color_info.polarity,
797
0
                                       padev->target->color_info.num_components,
798
0
                                       padev->target->color_info.depth,
799
0
                                       prect, &params2);
800
0
        return code;
801
0
    }
802
803
0
    return_error(gs_error_Fatal); /* shouldn't happen */
804
0
}
805
806
/* ------ Color space implementation ------ */
807
808
/* Free all entries in a pattern cache. */
809
static bool
810
pattern_cache_choose_all(gx_color_tile * ctile, void *proc_data)
811
145k
{
812
145k
    return true;
813
145k
}
814
static void
815
pattern_cache_free_all(gx_pattern_cache * pcache)
816
1.05M
{
817
1.05M
    gx_pattern_cache_winnow(pcache, pattern_cache_choose_all, NULL);
818
1.05M
}
819
820
/* Allocate a Pattern cache. */
821
gx_pattern_cache *
822
gx_pattern_alloc_cache(gs_memory_t * mem, uint num_tiles, ulong max_bits)
823
211k
{
824
211k
    gx_pattern_cache *pcache =
825
211k
    gs_alloc_struct(mem, gx_pattern_cache, &st_pattern_cache,
826
211k
                    "gx_pattern_alloc_cache(struct)");
827
211k
    gx_color_tile *tiles =
828
211k
    gs_alloc_struct_array(mem, num_tiles, gx_color_tile,
829
211k
                          &st_color_tile_element,
830
211k
                          "gx_pattern_alloc_cache(tiles)");
831
211k
    uint i;
832
833
211k
    if (pcache == 0 || tiles == 0) {
834
0
        gs_free_object(mem, tiles, "gx_pattern_alloc_cache(tiles)");
835
0
        gs_free_object(mem, pcache, "gx_pattern_alloc_cache(struct)");
836
0
        return 0;
837
0
    }
838
211k
    pcache->memory = mem;
839
211k
    pcache->tiles = tiles;
840
211k
    pcache->num_tiles = num_tiles;
841
211k
    pcache->tiles_used = 0;
842
211k
    pcache->next = 0;
843
211k
    pcache->bits_used = 0;
844
211k
    pcache->max_bits = max_bits;
845
211k
    pcache->free_all = pattern_cache_free_all;
846
10.8M
    for (i = 0; i < num_tiles; tiles++, i++) {
847
10.5M
        tiles->id = gx_no_bitmap_id;
848
        /* Clear the pointers to pacify the GC. */
849
10.5M
        uid_set_invalid(&tiles->uid);
850
10.5M
        tiles->bits_used = 0;
851
10.5M
#ifdef PACIFY_VALGRIND
852
        /* The following memsets are required to avoid a valgrind warning
853
         * in:
854
         *   gs -I./gs/lib -sOutputFile=out.pgm -dMaxBitmap=10000
855
         *      -sDEVICE=pgmraw -r300 -Z: -sDEFAULTPAPERSIZE=letter
856
         *      -dNOPAUSE -dBATCH -K2000000 -dClusterJob -dJOBSERVER
857
         *      tests_private/ps/ps3cet/11-14.PS
858
         * Setting the individual elements of the structures directly is
859
         * not enough, which leads me to believe that we are writing the
860
         * entire structs out, padding and all.
861
         */
862
10.5M
        memset(&tiles->tbits, 0, sizeof(tiles->tbits));
863
10.5M
        memset(&tiles->tmask, 0, sizeof(tiles->tmask));
864
#else
865
        tiles->tbits.data = 0;
866
        tiles->tmask.data = 0;
867
        tiles->tmask.rep_width = 0;
868
        tiles->tmask.rep_height = 0;
869
        tiles->tmask.num_planes = 0;
870
#endif
871
10.5M
        tiles->index = i;
872
10.5M
        tiles->cdev = NULL;
873
10.5M
        tiles->ttrans = NULL;
874
10.5M
        tiles->num_planar_planes = 0;
875
10.5M
    }
876
211k
    return pcache;
877
211k
}
878
/* Ensure that an imager has a Pattern cache. */
879
static int
880
ensure_pattern_cache(gs_gstate * pgs)
881
434k
{
882
434k
    if (pgs->pattern_cache == 0) {
883
60.7k
        gx_pattern_cache *pcache =
884
60.7k
        gx_pattern_alloc_cache(pgs->memory,
885
60.7k
                               gx_pat_cache_default_tiles(),
886
60.7k
                               gx_pat_cache_default_bits());
887
888
60.7k
        if (pcache == 0)
889
0
            return_error(gs_error_VMerror);
890
60.7k
        pgs->pattern_cache = pcache;
891
60.7k
    }
892
434k
    return 0;
893
434k
}
894
895
/* Free pattern cache and its components. */
896
void
897
gx_pattern_cache_free(gx_pattern_cache *pcache)
898
172k
{
899
172k
    if (pcache == NULL)
900
112k
        return;
901
60.1k
    pattern_cache_free_all(pcache);
902
60.1k
    gs_free_object(pcache->memory, pcache->tiles, "gx_pattern_cache_free");
903
60.1k
    pcache->tiles = NULL;
904
60.1k
    gs_free_object(pcache->memory, pcache, "gx_pattern_cache_free");
905
60.1k
}
906
907
/* Get and set the Pattern cache in a gstate. */
908
gx_pattern_cache *
909
gstate_pattern_cache(gs_gstate * pgs)
910
147k
{
911
147k
    return pgs->pattern_cache;
912
147k
}
913
void
914
gstate_set_pattern_cache(gs_gstate * pgs, gx_pattern_cache * pcache)
915
153k
{
916
153k
    pgs->pattern_cache = pcache;
917
153k
}
918
919
/* Free a Pattern cache entry. */
920
/* This will not free a pattern if it is 'locked' which should only be for */
921
/* a stroke pattern during fill_stroke_path.                               */
922
static void
923
gx_pattern_cache_free_entry(gx_pattern_cache * pcache, gx_color_tile * ctile, bool free_dummy)
924
1.40M
{
925
1.40M
    gx_device *temp_device;
926
927
1.40M
    if ((ctile->id != gx_no_bitmap_id) && (!ctile->is_dummy || free_dummy) && !ctile->is_locked) {
928
215k
        gs_memory_t *mem = pcache->memory;
929
930
        /*
931
         * We must initialize the memory device properly, even though
932
         * we aren't using it for drawing.
933
         */
934
215k
        if (ctile->tmask.data != 0) {
935
52.1k
            gs_free_object(mem, ctile->tmask.data,
936
52.1k
                           "free_pattern_cache_entry(mask data)");
937
52.1k
            ctile->tmask.data = 0;      /* for GC */
938
52.1k
        }
939
215k
        if (ctile->tbits.data != 0) {
940
49.7k
            gs_free_object(mem, ctile->tbits.data,
941
49.7k
                           "free_pattern_cache_entry(bits data)");
942
49.7k
            ctile->tbits.data = 0;      /* for GC */
943
49.7k
        }
944
215k
        if (ctile->cdev != NULL) {
945
104k
            ctile->cdev->common.do_not_open_or_close_bandfiles = false;  /* make sure memfile gets freed/closed */
946
104k
            dev_proc(&ctile->cdev->common, close_device)((gx_device *)&ctile->cdev->common);
947
            /* Free up the icc based stuff in the clist device.  I am puzzled
948
               why the other objects are not released */
949
104k
            clist_free_icc_table(ctile->cdev->common.icc_table,
950
104k
                            ctile->cdev->common.memory);
951
104k
            ctile->cdev->common.icc_table = NULL;
952
104k
            rc_decrement(ctile->cdev->common.icc_cache_cl,
953
104k
                            "gx_pattern_cache_free_entry");
954
104k
            ctile->cdev->common.icc_cache_cl = NULL;
955
104k
            ctile->cdev->writer.pinst = NULL;
956
104k
            gs_free_object(ctile->cdev->common.memory->non_gc_memory, ctile->cdev->common.cache_chunk, "free tile cache for clist");
957
104k
            ctile->cdev->common.cache_chunk = 0;
958
104k
            temp_device = (gx_device *)ctile->cdev;
959
104k
            gx_device_retain(temp_device, false);
960
104k
            ctile->cdev = NULL;
961
104k
        }
962
963
215k
        if (ctile->ttrans != NULL) {
964
55.8k
            if_debug2m('v', mem,
965
55.8k
                       "[v*] Freeing trans pattern from cache, uid = %ld id = %ld\n",
966
55.8k
                       ctile->uid.id, ctile->id);
967
55.8k
            if ( ctile->ttrans->pdev14 == NULL) {
968
                /* This can happen if we came from the clist */
969
55.8k
                if (ctile->ttrans->mem != NULL)
970
55.8k
                    gs_free_object(ctile->ttrans->mem ,ctile->ttrans->transbytes,
971
55.8k
                                   "free_pattern_cache_entry(transbytes)");
972
55.8k
                gs_free_object(mem,ctile->ttrans->fill_trans_buffer,
973
55.8k
                                "free_pattern_cache_entry(fill_trans_buffer)");
974
55.8k
                ctile->ttrans->transbytes = NULL;
975
55.8k
                ctile->ttrans->fill_trans_buffer = NULL;
976
55.8k
            } else {
977
0
                dev_proc(ctile->ttrans->pdev14, close_device)((gx_device *)ctile->ttrans->pdev14);
978
0
                temp_device = (gx_device *)(ctile->ttrans->pdev14);
979
0
                gx_device_retain(temp_device, false);
980
0
                rc_decrement(temp_device,"gx_pattern_cache_free_entry");
981
0
                ctile->ttrans->pdev14 = NULL;
982
0
                ctile->ttrans->transbytes = NULL;  /* should be ok due to pdf14_close */
983
0
                ctile->ttrans->fill_trans_buffer = NULL; /* This is always freed */
984
0
            }
985
986
55.8k
            gs_free_object(mem, ctile->ttrans,
987
55.8k
                           "free_pattern_cache_entry(ttrans)");
988
55.8k
            ctile->ttrans = NULL;
989
990
55.8k
        }
991
992
215k
        pcache->tiles_used--;
993
215k
        pcache->bits_used -= ctile->bits_used;
994
215k
        ctile->id = gx_no_bitmap_id;
995
215k
    }
996
1.40M
}
997
998
/*
999
    Historically, the pattern cache has used a very simple hashing
1000
    scheme whereby pattern A goes into slot idx = (A.id % num_tiles).
1001
    Unfortunately, now we allow tiles to be 'locked' into the
1002
    pattern cache, we might run into the case where we want both
1003
    tiles A and B to be in the cache at once where:
1004
      (A.id % num_tiles) == (B.id % num_tiles).
1005
1006
    We have a maximum of 2 locked tiles, and one of those can be
1007
    placed while the other one is locked. So we only need to cope
1008
    with a single 'collision'.
1009
1010
    We therefore allow tiles to either go in at idx or at
1011
    (idx + 1) % num_tiles. This means we need to be prepared to
1012
    search a bit further for them, hence we now have 2 helper
1013
    functions to do this.
1014
*/
1015
1016
/* We can have at most 1 locked tile while looking for a place to
1017
 * put another tile. */
1018
gx_color_tile *
1019
gx_pattern_cache_find_tile_for_id(gx_pattern_cache *pcache, gs_id id)
1020
2.18M
{
1021
2.18M
    gx_color_tile *ctile  = &pcache->tiles[id % pcache->num_tiles];
1022
2.18M
    gx_color_tile *ctile2 = &pcache->tiles[(id+1) % pcache->num_tiles];
1023
2.18M
    if (ctile->id == id || ctile->id == gs_no_id)
1024
2.16M
        return ctile;
1025
14.4k
    if (ctile2->id == id || ctile2->id == gs_no_id)
1026
12.0k
        return ctile2;
1027
2.34k
    if (!ctile->is_locked)
1028
2.34k
        return ctile;
1029
0
    return ctile2;
1030
2.34k
}
1031
1032
1033
/* Given the size of a new pattern tile, free entries from the cache until  */
1034
/* enough space is available (or nothing left to free).                     */
1035
/* This will allow 1 oversized entry                                        */
1036
void
1037
gx_pattern_cache_ensure_space(gs_gstate * pgs, size_t needed)
1038
215k
{
1039
215k
    int code = ensure_pattern_cache(pgs);
1040
215k
    gx_pattern_cache *pcache;
1041
215k
    int start_free_id;
1042
1043
215k
    if (code < 0)
1044
0
        return;                 /* no cache -- just exit */
1045
1046
215k
    pcache = pgs->pattern_cache;
1047
215k
    start_free_id = pcache->next; /* for scan wrap check */
1048
    /* If too large then start freeing entries */
1049
    /* By starting just after 'next', we attempt to first free the oldest entries */
1050
1.25M
    while (pcache->bits_used + needed > pcache->max_bits &&
1051
1.12M
           pcache->bits_used != 0) {
1052
1.03M
        pcache->next = (pcache->next + 1) % pcache->num_tiles;
1053
1.03M
        gx_pattern_cache_free_entry(pcache, &pcache->tiles[pcache->next], false);
1054
        /* since a pattern may be temporarily locked (stroke pattern for fill_stroke_path) */
1055
        /* we may not have freed all entries even though we've scanned the entire cache.   */
1056
        /* The following check for wrapping prevents infinite loop if stroke pattern was   */
1057
        /* larger than pcache->max_bits,                                                   */
1058
1.03M
        if (pcache->next == start_free_id)
1059
1.04k
            break;   /* we wrapped -- cache may not be empty */
1060
1.03M
    }
1061
215k
}
1062
1063
/* Export updating the pattern_cache bits_used and tiles_used for clist reading */
1064
void
1065
gx_pattern_cache_update_used(gs_gstate *pgs, size_t used)
1066
212k
{
1067
212k
    gx_pattern_cache *pcache = pgs->pattern_cache;
1068
1069
212k
    pcache->bits_used += used;
1070
212k
    pcache->tiles_used++;
1071
212k
}
1072
1073
/*
1074
 * Add a Pattern cache entry.  This is exported for the interpreter.
1075
 * Note that this does not free any of the data in the accumulator
1076
 * device, but it may zero out the bitmap_memory pointers to prevent
1077
 * the accumulated bitmaps from being freed when the device is closed.
1078
 */
1079
static void make_bitmap(gx_strip_bitmap *, const gx_device_memory *, gx_bitmap_id, const gs_memory_t *);
1080
int
1081
gx_pattern_cache_add_entry(gs_gstate * pgs,
1082
                   gx_device_forward * fdev, gx_color_tile ** pctile)
1083
18.0k
{
1084
18.0k
    gx_pattern_cache *pcache;
1085
18.0k
    const gs_pattern1_instance_t *pinst;
1086
18.0k
    size_t used = 0, mask_used = 0, trans_used = 0;
1087
18.0k
    gx_bitmap_id id;
1088
18.0k
    gx_color_tile *ctile;
1089
18.0k
    int code = ensure_pattern_cache(pgs);
1090
18.0k
    gx_device_memory *mmask = NULL;
1091
18.0k
    gx_device_memory *mbits = NULL;
1092
18.0k
    gx_pattern_trans_t *trans = NULL;
1093
18.0k
    int size_b, size_c;
1094
1095
18.0k
    if (code < 0)
1096
0
        return code;
1097
18.0k
    pcache = pgs->pattern_cache;
1098
1099
18.0k
    if (dev_proc(fdev, open_device) != pattern_clist_open_device) {
1100
15.2k
        gx_device_pattern_accum *padev = (gx_device_pattern_accum *)fdev;
1101
1102
15.2k
        mbits = padev->bits;
1103
15.2k
        mmask = padev->mask;
1104
15.2k
        pinst = padev->instance;
1105
15.2k
        trans = padev->transbuff;
1106
1107
        /*
1108
         * Check whether the pattern completely fills its box.
1109
         * If so, we can avoid the expensive masking operations
1110
         * when using the pattern.
1111
         */
1112
        /* Bug 700624: In cases where the mask is completely full,
1113
         * but the pattern cells are separated from one another,
1114
         * we need to leave gaps between the cells when rendering
1115
         * them. Sadly, the graphics library can't cope with this
1116
         * in the no-mask case. Therefore, only do the optimisation
1117
         * of not sending the mask if the step matrix is suitable.
1118
         *
1119
         * To do this, we compare the step matrix to the size. My
1120
         * belief is that the mask will only ever be full if it's
1121
         * orthogonal, cos otherwise the edges will be clipped,
1122
         * hence we lose no generality by checking for .xy and .yx
1123
         * being 0.
1124
         */
1125
15.2k
        if (mmask != 0 &&
1126
11.3k
            fabsf(pinst->step_matrix.xx) <= pinst->size.x &&
1127
7.64k
            fabsf(pinst->step_matrix.yy) <= pinst->size.y &&
1128
7.61k
            pinst->step_matrix.xy == 0 &&
1129
7.52k
            pinst->step_matrix.yx == 0) {
1130
7.52k
            int y;
1131
7.52k
            int w_less_8 = mmask->width-8;
1132
1133
31.9k
            for (y = 0; y < mmask->height; y++) {
1134
31.8k
                const byte *row = scan_line_base(mmask, y);
1135
31.8k
                int w;
1136
1137
2.06M
                for (w = w_less_8; w > 0; w -= 8)
1138
2.04M
                    if (*row++ != 0xff)
1139
6.31k
                        goto keep;
1140
25.4k
                w += 8;
1141
25.4k
                if ((*row | (0xff >> w)) != 0xff)
1142
1.03k
                    goto keep;
1143
25.4k
            }
1144
            /* We don't need a mask. */
1145
175
            mmask = 0;
1146
7.52k
          keep:;
1147
7.52k
        }
1148
        /* Need to get size of buffers that are being added to the cache */
1149
15.2k
        if (mbits != 0)
1150
8.24k
            gdev_mem_bitmap_size(mbits, &used);
1151
15.2k
        if (mmask != 0) {
1152
11.1k
            gdev_mem_bitmap_size(mmask, &mask_used);
1153
11.1k
            used += mask_used;
1154
11.1k
        }
1155
15.2k
        if (trans != 0) {
1156
5.01k
            trans_used = (size_t)trans->planestride*trans->n_chan;
1157
5.01k
            used += trans_used;
1158
5.01k
        }
1159
15.2k
    } else {
1160
2.76k
        gx_device_clist *cdev = (gx_device_clist *)fdev;
1161
2.76k
        gx_device_clist_writer * cldev = (gx_device_clist_writer *)cdev;
1162
1163
2.76k
        code = clist_end_page(cldev);
1164
2.76k
        if (code < 0)
1165
0
            return code;
1166
2.76k
        pinst = cdev->writer.pinst;
1167
2.76k
        size_b = clist_data_size(cdev, 0);
1168
2.76k
        if (size_b < 0)
1169
0
            return_error(gs_error_unregistered);
1170
2.76k
        size_c = clist_data_size(cdev, 1);
1171
2.76k
        if (size_c < 0)
1172
0
            return_error(gs_error_unregistered);
1173
        /* The memfile size is the size, not the size determined by the depth*width*height */
1174
2.76k
        used = size_b + size_c;
1175
2.76k
    }
1176
18.0k
    id = pinst->id;
1177
18.0k
    ctile = gx_pattern_cache_find_tile_for_id(pcache, id);
1178
18.0k
    gx_pattern_cache_free_entry(pcache, ctile, false);         /* ensure that this cache slot is empty */
1179
18.0k
    ctile->id = id;
1180
18.0k
    ctile->num_planar_planes = pinst->num_planar_planes;
1181
18.0k
    ctile->depth = fdev->color_info.depth;
1182
18.0k
    ctile->uid = pinst->templat.uid;
1183
18.0k
    ctile->tiling_type = pinst->templat.TilingType;
1184
18.0k
    ctile->step_matrix = pinst->step_matrix;
1185
18.0k
    ctile->bbox = pinst->bbox;
1186
18.0k
    ctile->is_simple = pinst->is_simple;
1187
18.0k
    ctile->has_overlap = pinst->has_overlap;
1188
18.0k
    ctile->is_dummy = false;
1189
18.0k
    ctile->is_locked = false;
1190
18.0k
    ctile->blending_mode = 0;
1191
18.0k
    ctile->trans_group_popped = false;
1192
18.0k
    if (dev_proc(fdev, open_device) != pattern_clist_open_device) {
1193
15.2k
        if (mbits != 0) {
1194
8.24k
            make_bitmap(&ctile->tbits, mbits, gs_next_ids(pgs->memory, 1), pgs->memory);
1195
8.24k
            mbits->bitmap_memory = 0;   /* don't free the bits */
1196
8.24k
        } else
1197
7.00k
            ctile->tbits.data = 0;
1198
15.2k
        if (mmask != 0) {
1199
11.1k
            make_bitmap(&ctile->tmask, mmask, id, pgs->memory);
1200
11.1k
            mmask->bitmap_memory = 0;   /* don't free the bits */
1201
11.1k
        } else
1202
4.05k
            ctile->tmask.data = 0;
1203
15.2k
        if (trans != 0) {
1204
5.01k
            if_debug2m('v', pgs->memory,
1205
5.01k
                       "[v*] Adding trans pattern to cache, uid = %ld id = %ld\n",
1206
5.01k
                       ctile->uid.id, ctile->id);
1207
5.01k
            ctile->ttrans = trans;
1208
5.01k
        }
1209
1210
15.2k
        ctile->cdev = NULL;
1211
15.2k
    } else {
1212
2.76k
        gx_device_clist *cdev = (gx_device_clist *)fdev;
1213
2.76k
        gx_device_clist_writer *cwdev = (gx_device_clist_writer *)fdev;
1214
1215
2.76k
        ctile->tbits.data = 0;
1216
2.76k
        ctile->tbits.size.x = 0;
1217
2.76k
        ctile->tbits.size.y = 0;
1218
2.76k
        ctile->tmask.data = 0;
1219
2.76k
        ctile->tmask.size.x = 0;
1220
2.76k
        ctile->tmask.size.y = 0;
1221
2.76k
        ctile->cdev = cdev;
1222
        /* Prevent freeing files on pattern_paint_cleanup : */
1223
2.76k
        cwdev->do_not_open_or_close_bandfiles = true;
1224
2.76k
    }
1225
    /* In the clist case, used is accurate. In the non-clist case, it may
1226
     * not be. The important thing is that we account the same for tiles
1227
     * going in and coming out of the cache. Therefore we store the used
1228
     * figure in the tile so we always remove the same amount. */
1229
18.0k
    ctile->bits_used = used;
1230
18.0k
    gx_pattern_cache_update_used(pgs, used);
1231
1232
18.0k
    *pctile = ctile;
1233
18.0k
    return 0;
1234
18.0k
}
1235
1236
/* set or clear the 'is_locked' flag for a tile in the cache. Used by */
1237
/* fill_stroke_path to make sure a large stroke pattern stays in the  */
1238
/* cache even if the fill is also a pattern.        */
1239
int
1240
gx_pattern_cache_entry_set_lock(gs_gstate *pgs, gs_id id, bool new_lock_value)
1241
2.86k
{
1242
2.86k
    gx_color_tile *ctile;
1243
2.86k
    int code = ensure_pattern_cache(pgs);
1244
1245
2.86k
    if (code < 0)
1246
0
        return code;
1247
2.86k
    ctile = gx_pattern_cache_find_tile_for_id(pgs->pattern_cache, id);
1248
2.86k
    if (ctile == NULL)
1249
0
        return_error(gs_error_undefined);
1250
2.86k
    ctile->is_locked = new_lock_value;
1251
2.86k
    return 0;
1252
2.86k
}
1253
1254
/* Get entry for reading a pattern from clist. */
1255
int
1256
gx_pattern_cache_get_entry(gs_gstate * pgs, gs_id id, gx_color_tile ** pctile)
1257
194k
{
1258
194k
    gx_pattern_cache *pcache;
1259
194k
    gx_color_tile *ctile;
1260
194k
    int code = ensure_pattern_cache(pgs);
1261
1262
194k
    if (code < 0)
1263
0
        return code;
1264
194k
    pcache = pgs->pattern_cache;
1265
194k
    ctile = gx_pattern_cache_find_tile_for_id(pcache, id);
1266
194k
    gx_pattern_cache_free_entry(pgs->pattern_cache, ctile, false);
1267
194k
    ctile->id = id;
1268
194k
    *pctile = ctile;
1269
194k
    return 0;
1270
194k
}
1271
1272
bool
1273
gx_pattern_tile_is_clist(gx_color_tile *ptile)
1274
663k
{
1275
663k
    return ptile != NULL && ptile->cdev != NULL;
1276
663k
}
1277
1278
/* Add a dummy Pattern cache entry.  Stubs a pattern tile for interpreter when
1279
   device handles high level patterns. */
1280
int
1281
gx_pattern_cache_add_dummy_entry(gs_gstate *pgs,
1282
            gs_pattern1_instance_t *pinst, int depth)
1283
2.53k
{
1284
2.53k
    gx_color_tile *ctile;
1285
2.53k
    gx_pattern_cache *pcache;
1286
2.53k
    gx_bitmap_id id = pinst->id;
1287
2.53k
    int code = ensure_pattern_cache(pgs);
1288
1289
2.53k
    if (code < 0)
1290
0
        return code;
1291
2.53k
    pcache = pgs->pattern_cache;
1292
2.53k
    ctile = gx_pattern_cache_find_tile_for_id(pcache, id);
1293
2.53k
    gx_pattern_cache_free_entry(pcache, ctile, false);
1294
2.53k
    ctile->id = id;
1295
2.53k
    ctile->depth = depth;
1296
2.53k
    ctile->uid = pinst->templat.uid;
1297
2.53k
    ctile->tiling_type = pinst->templat.TilingType;
1298
2.53k
    ctile->step_matrix = pinst->step_matrix;
1299
2.53k
    ctile->bbox = pinst->bbox;
1300
2.53k
    ctile->is_simple = pinst->is_simple;
1301
2.53k
    ctile->has_overlap = pinst->has_overlap;
1302
2.53k
    ctile->is_dummy = true;
1303
2.53k
    ctile->is_locked = false;
1304
2.53k
    memset(&ctile->tbits, 0 , sizeof(ctile->tbits));
1305
2.53k
    ctile->tbits.size = pinst->size;
1306
2.53k
    ctile->tbits.id = gs_no_bitmap_id;
1307
2.53k
    memset(&ctile->tmask, 0 , sizeof(ctile->tmask));
1308
2.53k
    ctile->cdev = NULL;
1309
2.53k
    ctile->ttrans = NULL;
1310
2.53k
    ctile->bits_used = 0;
1311
2.53k
    pcache->tiles_used++;
1312
2.53k
    return 0;
1313
2.53k
}
1314
1315
#if RAW_PATTERN_DUMP
1316
/* Debug dump of pattern image data. Saved in
1317
   interleaved form with global indexing in
1318
   file name */
1319
static void
1320
dump_raw_pattern(int height, int width, int n_chan, int depth,
1321
                byte *Buffer, int raster, const gx_device_memory * mdev,
1322
                const gs_memory_t *memory)
1323
{
1324
    char full_file_name[50];
1325
    gp_file *fid;
1326
    int max_bands;
1327
    int j, k, m;
1328
    int byte_number, bit_position;
1329
    unsigned char current_byte;
1330
    unsigned char output_val;
1331
    bool is_planar;
1332
    byte *curr_ptr = Buffer;
1333
    int plane_offset;
1334
1335
    is_planar = mdev->num_planar_planes > 0;
1336
    max_bands = ( n_chan < 57 ? n_chan : 56);   /* Photoshop handles at most 56 bands */
1337
    if (is_planar) {
1338
        gs_snprintf(full_file_name, sizeof(full_file_name), "%d)PATTERN_PLANE_%dx%dx%d.raw", global_pat_index,
1339
                mdev->raster, height, max_bands);
1340
    } else {
1341
        gs_snprintf(full_file_name, sizeof(full_file_name), "%d)PATTERN_CHUNK_%dx%dx%d.raw", global_pat_index,
1342
                width, height, max_bands);
1343
    }
1344
    fid = gp_fopen(memory,full_file_name,"wb");
1345
    if (depth >= 8) {
1346
        /* Contone data. */
1347
        if (is_planar) {
1348
            for (m = 0; m < max_bands; m++) {
1349
                curr_ptr = mdev->line_ptrs[m*mdev->height];
1350
                gp_fwrite(curr_ptr, 1, mdev->height * mdev->raster, fid);
1351
            }
1352
        } else {
1353
            /* Just dump it like it is */
1354
            gp_fwrite(Buffer, 1, max_bands * height * width, fid);
1355
        }
1356
    } else {
1357
        /* Binary Data. Lets get to 8 bit for debugging.  We have to
1358
           worry about planar vs. chunky.  Note this assumes 1 bit data
1359
           only. */
1360
        if (is_planar) {
1361
            plane_offset = mdev->raster * mdev->height;
1362
            for (m = 0; m < max_bands; m++) {
1363
                curr_ptr = mdev->line_ptrs[m*mdev->height];
1364
                for (j = 0; j < height; j++) {
1365
                    for (k = 0; k < width; k++) {
1366
                        byte_number = (int) ceil((( (float) k + 1.0) / 8.0)) - 1;
1367
                        current_byte = curr_ptr[j*(mdev->raster) + byte_number];
1368
                        bit_position = 7 - (k -  byte_number*8);
1369
                        output_val = ((current_byte >> bit_position) & 0x1) * 255;
1370
                        gp_fwrite(&output_val,1,1,fid);
1371
                    }
1372
                }
1373
            }
1374
        } else {
1375
            for (j = 0; j < height; j++) {
1376
                for (k = 0; k < width; k++) {
1377
                    for (m = 0; m < max_bands; m++) {
1378
                        /* index current byte */
1379
                        byte_number =
1380
                            (int) ceil((( (float) k * (float) max_bands +
1381
                                          (float) m + 1.0) / 8.0)) - 1;
1382
                        /* get byte of interest */
1383
                        current_byte =
1384
                                curr_ptr[j*(mdev->raster) + byte_number];
1385
                        /* get bit position */
1386
                        bit_position =
1387
                                7 - (k * max_bands + m -  byte_number * 8);
1388
                        /* extract and create byte */
1389
                        output_val =
1390
                                ((current_byte >> bit_position) & 0x1) * 255;
1391
                        gp_fwrite(&output_val,1,1,fid);
1392
                    }
1393
                }
1394
            }
1395
        }
1396
    }
1397
    gp_fclose(fid);
1398
}
1399
#endif
1400
1401
static void
1402
make_bitmap(register gx_strip_bitmap * pbm, const gx_device_memory * mdev,
1403
            gx_bitmap_id id, const gs_memory_t *memory)
1404
19.4k
{
1405
19.4k
    pbm->data = mdev->base;
1406
19.4k
    pbm->raster = mdev->raster;
1407
19.4k
    pbm->rep_width = pbm->size.x = mdev->width;
1408
19.4k
    pbm->rep_height = pbm->size.y = mdev->height;
1409
19.4k
    pbm->id = id;
1410
19.4k
    pbm->rep_shift = pbm->shift = 0;
1411
19.4k
    pbm->num_planes = mdev->num_planar_planes ? mdev->num_planar_planes : 1;
1412
1413
        /* Lets dump this for debug purposes */
1414
1415
#if RAW_PATTERN_DUMP
1416
    dump_raw_pattern(pbm->rep_height, pbm->rep_width,
1417
                        mdev->color_info.num_components,
1418
                        mdev->color_info.depth,
1419
                        (unsigned char*) mdev->base,
1420
                        pbm->raster, mdev, memory);
1421
1422
        global_pat_index++;
1423
1424
#endif
1425
1426
19.4k
}
1427
1428
/* Purge selected entries from the pattern cache. */
1429
void
1430
gx_pattern_cache_winnow(gx_pattern_cache * pcache,
1431
  bool(*proc) (gx_color_tile * ctile, void *proc_data), void *proc_data)
1432
1.07M
{
1433
1.07M
    uint i;
1434
1435
1.07M
    if (pcache == 0)            /* no cache created yet */
1436
18.6k
        return;
1437
53.6M
    for (i = 0; i < pcache->num_tiles; ++i) {
1438
52.5M
        gx_color_tile *ctile = &pcache->tiles[i];
1439
1440
52.5M
        ctile->is_locked = false;   /* force freeing */
1441
52.5M
        if (ctile->id != gx_no_bitmap_id && (*proc) (ctile, proc_data))
1442
145k
            gx_pattern_cache_free_entry(pcache, ctile, false);
1443
52.5M
    }
1444
1.05M
}
1445
1446
void
1447
gx_pattern_cache_flush(gx_pattern_cache * pcache)
1448
94.9k
{
1449
94.9k
    uint i;
1450
1451
94.9k
    if (pcache == 0)            /* no cache created yet */
1452
0
        return;
1453
4.84M
    for (i = 0; i < pcache->num_tiles; ++i) {
1454
4.74M
        gx_color_tile *ctile = &pcache->tiles[i];
1455
1456
4.74M
        ctile->is_locked = false;   /* force freeing */
1457
4.74M
        if (ctile->id != gx_no_bitmap_id)
1458
8.93k
            gx_pattern_cache_free_entry(pcache, ctile, true);
1459
4.74M
    }
1460
94.9k
}
1461
1462
/* blank the pattern accumulator device assumed to be in the graphics
1463
   state */
1464
int
1465
gx_erase_colored_pattern(gs_gstate *pgs)
1466
8.24k
{
1467
8.24k
    int code;
1468
8.24k
    gx_device_pattern_accum *pdev = (gx_device_pattern_accum *)gs_currentdevice(pgs);
1469
1470
8.24k
    if ((code = gs_gsave(pgs)) < 0)
1471
0
        return code;
1472
8.24k
    if ((code = gs_setgray(pgs, 1.0)) >= 0) {
1473
8.24k
        gs_rect rect;
1474
8.24k
        gx_device_memory *mask;
1475
8.24k
        static const gs_matrix identity = { 1, 0, 0, 1, 0, 0 };
1476
1477
8.24k
        pgs->log_op = lop_default;
1478
8.24k
        rect.p.x = 0.0;
1479
8.24k
        rect.p.y = 0.0;
1480
8.24k
        rect.q.x = (double)pdev->width;
1481
8.24k
        rect.q.y = (double)pdev->height;
1482
1483
8.24k
        code = gs_setmatrix(pgs, &identity);
1484
8.24k
        if (code < 0) {
1485
0
            gs_grestore_only(pgs);
1486
0
            return code;
1487
0
        }
1488
        /* we don't want the fill rectangle device call to use the
1489
           mask */
1490
8.24k
        mask = pdev->mask;
1491
8.24k
        pdev->mask = NULL;
1492
8.24k
        code = gs_rectfill(pgs, &rect, 1);
1493
        /* restore the mask */
1494
8.24k
        pdev->mask = mask;
1495
8.24k
        if (code < 0) {
1496
0
            gs_grestore_only(pgs);
1497
0
            return code;
1498
0
        }
1499
8.24k
    }
1500
    /* we don't need wraparound here */
1501
8.24k
    gs_grestore_only(pgs);
1502
8.24k
    return code;
1503
8.24k
}
1504
1505
/* Reload a (non-null) Pattern color into the cache. */
1506
/* *pdc is already set, except for colors.pattern.p_tile and mask.m_tile. */
1507
int
1508
gx_pattern_load(gx_device_color * pdc, const gs_gstate * pgs,
1509
                gx_device * dev, gs_color_select_t select)
1510
83.3k
{
1511
83.3k
    gx_device_forward *adev = NULL;
1512
83.3k
    gs_pattern1_instance_t *pinst =
1513
83.3k
        (gs_pattern1_instance_t *)pdc->ccolor.pattern;
1514
83.3k
    gs_gstate *saved;
1515
83.3k
    gx_color_tile *ctile;
1516
83.3k
    gs_memory_t *mem = pgs->memory;
1517
83.3k
    bool has_tags = device_encodes_tags(dev);
1518
83.3k
    int code;
1519
1520
83.3k
    if (pgs->pattern_cache == NULL)
1521
1.20k
        if ((code = ensure_pattern_cache((gs_gstate *) pgs))< 0)      /* break const for call */
1522
0
            return code;
1523
1524
83.3k
    if (gx_pattern_cache_lookup(pdc, pgs, dev, select))
1525
62.7k
        return 0;
1526
1527
    /* Get enough space in the cache for this pattern (estimated if it is a clist) */
1528
20.5k
    gx_pattern_cache_ensure_space((gs_gstate *)pgs, gx_pattern_size_estimate(pinst, has_tags));
1529
    /*
1530
     * Note that adev is an internal device, so it will be freed when the
1531
     * last reference to it from a graphics state is deleted.
1532
     */
1533
20.5k
    adev = gx_pattern_accum_alloc(mem, pgs->pattern_cache->memory, pinst, "gx_pattern_load");
1534
20.5k
    if (adev == 0)
1535
0
        return_error(gs_error_VMerror);
1536
20.5k
    gx_device_set_target((gx_device_forward *)adev, dev);
1537
20.5k
    code = dev_proc(adev, open_device)((gx_device *)adev);
1538
20.5k
    if (code < 0) {
1539
0
        gs_free_object(mem, adev, "gx_pattern_load");
1540
0
        return code;
1541
0
    }
1542
20.5k
    saved = gs_gstate_copy(pinst->saved, pinst->saved->memory);
1543
20.5k
    if (saved == 0) {
1544
0
        code = gs_note_error(gs_error_VMerror);
1545
0
        goto fail;
1546
0
    }
1547
20.5k
    if (saved->pattern_cache == 0)
1548
1.20k
        saved->pattern_cache = pgs->pattern_cache;
1549
20.5k
    code = gs_setdevice_no_init(saved, (gx_device *)adev);
1550
20.5k
    if (code < 0)
1551
0
        goto fail;
1552
20.5k
    if (pinst->templat.uses_transparency) {
1553
6.25k
        if_debug1m('v', mem, "gx_pattern_load: pushing the pdf14 compositor device into this graphics state pat_id = %ld\n", pinst->id);
1554
6.25k
        if ((code = gs_push_pdf14trans_device(saved, true, false, 0, 0)) < 0)   /* spot_color_count taken from pdf14 target values */
1555
50
            goto fail;
1556
6.20k
        saved->device->is_open = true;
1557
14.3k
    } else {
1558
        /* For colored patterns we clear the pattern device's
1559
           background.  This is necessary for the anti aliasing code
1560
           and (unfortunately) it masks a difficult to fix UMR
1561
           affecting pcl patterns, see bug #690487.  Note we have to
1562
           make a similar change in zpcolor.c where much of this
1563
           pattern code is duplicated to support high level stream
1564
           patterns. */
1565
14.3k
        if (pinst->templat.PaintType == 1 && !(pinst->is_clist)
1566
8.47k
            && dev_proc(pinst->saved->device, dev_spec_op)(pinst->saved->device, gxdso_pattern_can_accum, NULL, 0) == 0)
1567
8.24k
            if ((code = gx_erase_colored_pattern(saved)) < 0)
1568
0
                goto fail;
1569
14.3k
    }
1570
1571
20.5k
    code = (*pinst->templat.PaintProc)(&pdc->ccolor, saved);
1572
20.5k
    if (code < 0) {
1573
2.53k
        if (dev_proc(adev, open_device) == pattern_accum_open) {
1574
            /* free pattern cache data that never got added to the dictionary */
1575
1.14k
            gx_device_pattern_accum *padev = (gx_device_pattern_accum *) adev;
1576
1.14k
            if ((padev->bits != NULL) && (padev->bits->base != NULL)) {
1577
231
                gs_free_object(padev->bits->memory, padev->bits->base, "mem_open");
1578
231
            }
1579
1.14k
        }
1580
        /* RJW: At this point, in the non transparency case,
1581
         * saved->device == adev. So unretain it, close it, and the
1582
         * gs_gstate_free(saved) will remove it. In the transparency case,
1583
         * saved->device = the pdf14 device. So we need to unretain it,
1584
         * close adev, and finally close saved->device.
1585
         */
1586
2.53k
        gx_device_retain(saved->device, false);         /* device no longer retained */
1587
2.53k
        if (pinst->templat.uses_transparency) {
1588
886
            if (pinst->is_clist == 0) {
1589
886
                gs_free_object(((gx_device_pattern_accum *)adev)->bitmap_memory,
1590
886
                               ((gx_device_pattern_accum *)adev)->transbuff,
1591
886
                               "gx_pattern_load");
1592
886
                ((gx_device_pattern_accum *)adev)->transbuff = NULL;
1593
886
            }
1594
886
            dev_proc(adev, close_device)((gx_device *)adev);
1595
            /* adev was the target of the pdf14 device, so also is no longer retained */
1596
886
            gx_device_retain((gx_device *)adev, false);         /* device no longer retained */
1597
886
        }
1598
2.53k
        dev_proc(saved->device, close_device)((gx_device *)saved->device);
1599
        /* Freeing the state should now free the device which may be the pdf14 compositor. */
1600
2.53k
        gs_gstate_free_chain(saved);
1601
2.53k
        if (code == gs_error_handled)
1602
2.53k
            code = 0;
1603
2.53k
        return code;
1604
2.53k
    }
1605
18.0k
    if (pinst->templat.uses_transparency) {
1606
        /* if_debug0m('v', saved->memory, "gx_pattern_load: popping the pdf14 compositor device from this graphics state\n");
1607
        if ((code = gs_pop_pdf14trans_device(saved, true)) < 0)
1608
            return code; */
1609
5.32k
            if (pinst->is_clist) {
1610
                /* Send the compositor command to close the PDF14 device */
1611
304
                code = gs_pop_pdf14trans_device(saved, true);
1612
304
                if (code < 0)
1613
0
                    goto fail;
1614
5.01k
            } else {
1615
                /* Not a clist, get PDF14 buffer information */
1616
5.01k
                code =
1617
5.01k
                    pdf14_get_buffer_information(saved->device,
1618
5.01k
                                                ((gx_device_pattern_accum*)adev)->transbuff,
1619
5.01k
                                                 saved->memory,
1620
5.01k
                                                 true);
1621
                /* PDF14 device (and buffer) is destroyed when pattern cache
1622
                   entry is removed */
1623
5.01k
                if (code < 0)
1624
0
                    goto fail;
1625
5.01k
            }
1626
5.32k
    }
1627
    /* We REALLY don't like the following cast.... */
1628
18.0k
    code = gx_pattern_cache_add_entry((gs_gstate *)pgs,
1629
18.0k
                adev, &ctile);
1630
18.0k
    if (code >= 0) {
1631
18.0k
        if (!gx_pattern_cache_lookup(pdc, pgs, dev, select)) {
1632
0
            mlprintf(mem, "Pattern cache lookup failed after insertion!\n");
1633
0
            code = gs_note_error(gs_error_Fatal);
1634
0
        }
1635
18.0k
    }
1636
#ifdef DEBUG
1637
    if (gs_debug_c('B') && dev_proc(adev, open_device) == pattern_accum_open) {
1638
        gx_device_pattern_accum *pdev = (gx_device_pattern_accum *)adev;
1639
1640
        if (pdev->mask)
1641
            debug_dump_bitmap(pdev->memory,
1642
                              pdev->mask->base, pdev->mask->raster,
1643
                              pdev->mask->height, "[B]Pattern mask");
1644
        if (pdev->bits)
1645
            debug_dump_bitmap(pdev->memory,
1646
                              ((gx_device_memory *) pdev->target)->base,
1647
                              ((gx_device_memory *) pdev->target)->raster,
1648
                              pdev->target->height, "[B]Pattern bits");
1649
    }
1650
#endif
1651
    /* Free the bookkeeping structures, except for the bits and mask */
1652
    /* data iff they are still needed. */
1653
18.0k
    dev_proc(adev, close_device)((gx_device *)adev);
1654
    /* Free the chain of gstates. Freeing the state will free the device. */
1655
18.0k
    gs_gstate_free_chain(saved);
1656
18.0k
    return code;
1657
1658
50
fail:
1659
50
    if (dev_proc(adev, open_device) == pattern_accum_open) {
1660
        /* free pattern cache data that never got added to the dictionary */
1661
50
        gx_device_pattern_accum *padev = (gx_device_pattern_accum *) adev;
1662
50
        if ((padev->bits != NULL) && (padev->bits->base != NULL)) {
1663
0
            gs_free_object(padev->bits->memory, padev->bits->base, "mem_open");
1664
0
        }
1665
50
    }
1666
50
    if (dev_proc(adev, open_device) == pattern_clist_open_device) {
1667
0
        gx_device_clist *cdev = (gx_device_clist *)adev;
1668
1669
0
        gs_free_object(cdev->writer.bandlist_memory, cdev->common.data, "gx_pattern_load");
1670
0
        cdev->common.data = 0;
1671
0
    }
1672
50
    dev_proc(adev, close_device)((gx_device *)adev);
1673
50
    gx_device_set_target(adev, NULL);
1674
50
    gx_device_retain((gx_device *)adev, false);
1675
50
    gs_gstate_free_chain(saved);
1676
50
    return code;
1677
18.0k
}
1678
1679
/* Remap a PatternType 1 color. */
1680
cs_proc_remap_color(gx_remap_Pattern);  /* check the prototype */
1681
int
1682
gs_pattern1_remap_color(const gs_client_color * pc, const gs_color_space * pcs,
1683
                        gx_device_color * pdc, const gs_gstate * pgs,
1684
                        gx_device * dev, gs_color_select_t select)
1685
83.5k
{
1686
83.5k
    gs_pattern1_instance_t *pinst = (gs_pattern1_instance_t *)pc->pattern;
1687
83.5k
    int code;
1688
1689
    /* Save original color space and color info into dev color */
1690
83.5k
    pdc->ccolor = *pc;
1691
83.5k
    pdc->ccolor_valid = true;
1692
83.5k
    if (pinst == 0) {
1693
        /* Null pattern */
1694
0
        color_set_null_pattern(pdc);
1695
0
        return 0;
1696
0
    }
1697
83.5k
    if (pinst->templat.PaintType == 2) {       /* uncolored */
1698
3.32k
        if (pcs->base_space) {
1699
3.12k
            if (dev->icc_struct != NULL && dev->icc_struct->blackvector) {
1700
0
                gs_client_color temppc;
1701
0
                gs_color_space *graycs = gs_cspace_new_DeviceGray(pgs->memory);
1702
1703
0
                if (graycs == NULL) {
1704
0
                    code = (pcs->base_space->type->remap_color)
1705
0
                        (pc, pcs->base_space, pdc, pgs, dev, select);
1706
0
                } else {
1707
0
                    if (gsicc_is_white_blacktextvec((gs_gstate*) pgs,
1708
0
                        dev, (gs_color_space*) pcs, (gs_client_color*) pc))
1709
0
                        temppc.paint.values[0] = 1.0;
1710
0
                    else
1711
0
                        temppc.paint.values[0] = 0.0;
1712
0
                    code = (graycs->type->remap_color)
1713
0
                        (&temppc, graycs, pdc, pgs, dev, select);
1714
0
                    rc_decrement_cs(graycs, "gs_pattern1_remap_color");
1715
0
                }
1716
3.12k
            } else {
1717
3.12k
                code = (pcs->base_space->type->remap_color)
1718
3.12k
                    (pc, pcs->base_space, pdc, pgs, dev, select);
1719
3.12k
            }
1720
3.12k
        } else
1721
199
            code = gs_note_error(gs_error_unregistered);
1722
3.32k
        if (code < 0)
1723
199
            return code;
1724
3.12k
        if (pdc->type == gx_dc_type_pure)
1725
3.09k
            pdc->type = &gx_dc_pure_masked;
1726
29
        else if (pdc->type == gx_dc_type_ht_binary)
1727
3
            pdc->type = &gx_dc_binary_masked;
1728
26
        else if (pdc->type == gx_dc_type_ht_colored)
1729
19
            pdc->type = &gx_dc_colored_masked;
1730
7
        else if (pdc->type == gx_dc_type_devn)
1731
7
            pdc->type = &gx_dc_devn_masked;
1732
0
        else
1733
0
            return_error(gs_error_unregistered);
1734
3.12k
    } else
1735
80.2k
        color_set_null_pattern(pdc);
1736
83.3k
    pdc->mask.id = pinst->id;
1737
83.3k
    pdc->mask.m_tile = 0;
1738
83.3k
    return gx_pattern_load(pdc, pgs, dev, select);
1739
83.5k
}
1740
1741
int
1742
pattern_accum_dev_spec_op(gx_device *dev, int dso, void *data, int size)
1743
1.20M
{
1744
1.20M
    gx_device_pattern_accum *const padev = (gx_device_pattern_accum *)dev;
1745
1.20M
    const gs_pattern1_instance_t *pinst = padev->instance;
1746
1.20M
    gx_device *target =
1747
1.20M
        (padev->target == 0 ? gs_currentdevice(pinst->saved) :
1748
1.20M
         padev->target);
1749
1750
1.20M
    if (dso == gxdso_in_pattern_accumulator)
1751
6.14k
        return (pinst->templat.PaintType == 2 ? 2 : 1);
1752
1.20M
    if (dso == gxdso_get_dev_param) {
1753
0
        dev_param_req_t *request = (dev_param_req_t *)data;
1754
0
        gs_param_list * plist = (gs_param_list *)request->list;
1755
0
        bool bool_true = 1;
1756
1757
0
        if (strcmp(request->Param, "NoInterpolateImagemasks") == 0) {
1758
0
            return param_write_bool(plist, "NoInterpolateImagemasks", &bool_true);
1759
0
        }
1760
0
    }
1761
    /* Bug 704670.  Pattern accumulator should not allow whatever targets
1762
       lie beneath it to do any bbox adjustments. If we are here, the
1763
       pattern accumulator is actually drawing into a buffer
1764
       and it is not accumulating into a clist device. In this case, if it
1765
       was a pattern clist, we would be going to the special op for the clist
1766
       device of the pattern, which will have the proper extent and adjust
1767
       the bbox.  Here we just need to clip to the buffer into which we are drawing */
1768
1.20M
    if (dso == gxdso_restrict_bbox) {
1769
0
        gs_int_rect* ibox = (gs_int_rect*)data;
1770
1771
0
        if (ibox->p.y < 0)
1772
0
            ibox->p.y = 0;
1773
0
        if (ibox->q.y > padev->height)
1774
0
            ibox->q.y = padev->height;
1775
0
        if (ibox->p.x < 0)
1776
0
            ibox->p.x = 0;
1777
0
        if (ibox->q.x > padev->width)
1778
0
            ibox->q.x = padev->width;
1779
0
        return 0;
1780
0
    }
1781
1782
1.20M
    return dev_proc(target, dev_spec_op)(target, dso, data, size);
1783
1.20M
}