Coverage Report

Created: 2025-06-10 06:49

/src/ghostpdl/base/gscspace.c
Line
Count
Source (jump to first uncovered line)
1
/* Copyright (C) 2001-2024 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
/* Color space operators and support */
18
#include "memory_.h"
19
#include "gx.h"
20
#include "gserrors.h"
21
#include "gsstruct.h"
22
#include "gsccolor.h"
23
#include "gsutil.h"   /* for gs_next_ids */
24
#include "gxcmap.h"
25
#include "gxcspace.h"
26
#include "gxgstate.h"
27
#include "gsovrc.h"
28
#include "gsstate.h"
29
#include "gsdevice.h"
30
#include "gxdevcli.h"
31
#include "gzstate.h"
32
#include "stream.h"
33
#include "gsnamecl.h"  /* Custom color call back define */
34
#include "gsicc.h"
35
#include "gsicc_manage.h"
36
#include "string_.h"
37
#include "strmio.h"         /* needed for sfclose */
38
#include "gsicc_cache.h"    /* Needed for gsicc_get_icc_buff_hash */
39
#include "gxdevsop.h"
40
41
static cs_proc_install_cspace(gx_install_DeviceGray);
42
static cs_proc_install_cspace(gx_install_DeviceRGB);
43
static cs_proc_install_cspace(gx_install_DeviceCMYK);
44
/*
45
 * Define the standard color space types.  We include DeviceCMYK in the base
46
 * build because it's too awkward to omit it, but we don't provide any of
47
 * the PostScript operator procedures (setcmykcolor, etc.) for dealing with
48
 * it.
49
 */
50
static const gs_color_space_type gs_color_space_type_DeviceGray = {
51
    gs_color_space_index_DeviceGray, true, true,
52
    &st_base_color_space, gx_num_components_1,
53
    gx_init_paint_1, gx_restrict01_paint_1,
54
    gx_same_concrete_space,
55
    gx_concretize_DeviceGray, gx_remap_concrete_DGray,
56
    gx_remap_DeviceGray, gx_install_DeviceGray,
57
    gx_spot_colors_set_overprint,
58
    NULL, gx_no_adjust_color_count,
59
    gx_serialize_cspace_type,
60
    gx_cspace_is_linear_default, gx_polarity_additive
61
};
62
static const gs_color_space_type gs_color_space_type_DeviceRGB = {
63
    gs_color_space_index_DeviceRGB, true, true,
64
    &st_base_color_space, gx_num_components_3,
65
    gx_init_paint_3, gx_restrict01_paint_3,
66
    gx_same_concrete_space,
67
    gx_concretize_DeviceRGB, gx_remap_concrete_DRGB,
68
    gx_remap_DeviceRGB, gx_install_DeviceRGB,
69
    gx_spot_colors_set_overprint,
70
    NULL, gx_no_adjust_color_count,
71
    gx_serialize_cspace_type,
72
    gx_cspace_is_linear_default, gx_polarity_additive
73
};
74
75
static cs_proc_set_overprint(gx_set_overprint_DeviceCMYK);
76
77
static const gs_color_space_type gs_color_space_type_DeviceCMYK = {
78
    gs_color_space_index_DeviceCMYK, true, true,
79
    &st_base_color_space, gx_num_components_4,
80
    gx_init_paint_4, gx_restrict01_paint_4,
81
    gx_same_concrete_space,
82
    gx_concretize_DeviceCMYK, gx_remap_concrete_DCMYK,
83
    gx_remap_DeviceCMYK, gx_install_DeviceCMYK,
84
    gx_set_overprint_DeviceCMYK,
85
    NULL, gx_no_adjust_color_count,
86
    gx_serialize_cspace_type,
87
    gx_cspace_is_linear_default, gx_polarity_subtractive
88
};
89
90
/* Structure descriptors */
91
public_st_color_space();
92
public_st_base_color_space();
93
94
/* ------ Create/copy/destroy ------ */
95
96
/* Ghostscript object finalizers can be called many times and hence
97
 * must be idempotent. */
98
static void
99
gs_cspace_final(const gs_memory_t *cmem, void *vptr)
100
808k
{
101
808k
    gs_color_space *pcs = (gs_color_space *)vptr;
102
808k
    (void)cmem; /* unused */
103
104
808k
    if (pcs->interpreter_free_cspace_proc != NULL) {
105
1.72k
        (*pcs->interpreter_free_cspace_proc) ((gs_memory_t *)cmem, pcs);
106
1.72k
        pcs->interpreter_free_cspace_proc = NULL;
107
1.72k
    }
108
808k
    if (pcs->type->final)
109
504k
        pcs->type->final(pcs);
110
808k
    if_debug2m('c', cmem, "[c]cspace final "PRI_INTPTR" %d\n", (intptr_t)pcs, (int)pcs->id);
111
808k
    rc_decrement_only_cs(pcs->base_space, "gs_cspace_final");
112
808k
    pcs->base_space = NULL;
113
808k
    if (gs_color_space_get_index(pcs) == gs_color_space_index_DeviceN) {
114
0
        if (pcs->params.device_n.devn_process_space != NULL) {
115
0
            rc_decrement_only_cs(pcs->params.device_n.devn_process_space, "gs_cspace_final");
116
0
            pcs->params.device_n.devn_process_space = NULL;
117
0
        }
118
0
    }
119
    /* No need to decrement the ICC profile data.  It is handled
120
       by the finalize of the ICC space which is called above using
121
       pcs->type->final(pcs);  */
122
808k
}
123
124
static gs_color_space *
125
gs_cspace_alloc_with_id(gs_memory_t *mem, ulong id,
126
                   const gs_color_space_type *pcstype)
127
808k
{
128
808k
    gs_color_space *pcs;
129
130
808k
    rc_alloc_struct_1(pcs, gs_color_space, &st_color_space, mem, return NULL,
131
808k
                      "gs_cspace_alloc_with_id");
132
808k
    if_debug3m('c', mem, "[c]cspace alloc "PRI_INTPTR" %s %d\n",
133
808k
               (intptr_t)pcs, pcstype->stype->sname, pcstype->index);
134
808k
    pcs->type = pcstype;
135
808k
    pcs->id = id;
136
808k
    pcs->base_space = NULL;
137
808k
    pcs->pclient_color_space_data = NULL;
138
808k
    pcs->interpreter_data = NULL;
139
808k
    pcs->interpreter_free_cspace_proc = NULL;
140
808k
    pcs->cmm_icc_profile_data = NULL;
141
808k
    pcs->ICC_Alternate_space = gs_ICC_Alternate_None;
142
808k
    pcs->icc_equivalent = NULL;
143
808k
    pcs->params.device_n.devn_process_space = NULL;
144
808k
    pcs->params.device_n.all_none = false;
145
808k
    return pcs;
146
808k
}
147
148
static cs_proc_install_cspace(gx_install_DeviceGray);
149
static cs_proc_install_cspace(gx_install_DeviceRGB);
150
static cs_proc_install_cspace(gx_install_DeviceCMYK);
151
152
/*
153
 * Generic allocation function for colorspace implementations. Return
154
 * NULL on allocation failure.
155
 */
156
gs_color_space *
157
gs_cspace_alloc(gs_memory_t *mem, const gs_color_space_type *pcstype)
158
248k
{
159
248k
    return gs_cspace_alloc_with_id(mem, gs_next_ids(mem, 1), pcstype);
160
248k
}
161
162
/* Constructors for simple device color spaces. */
163
164
gs_color_space *
165
gs_cspace_new_DeviceGray(gs_memory_t *mem)
166
330k
{
167
330k
    return gs_cspace_alloc_with_id(mem, cs_DeviceGray_id,
168
330k
                                   &gs_color_space_type_DeviceGray);
169
330k
}
170
171
gs_color_space *
172
gs_cspace_new_DeviceRGB(gs_memory_t *mem)
173
114k
{
174
114k
    return gs_cspace_alloc_with_id(mem, cs_DeviceRGB_id,
175
114k
                                   &gs_color_space_type_DeviceRGB);
176
114k
}
177
gs_color_space *
178
gs_cspace_new_DeviceCMYK(gs_memory_t *mem)
179
113k
{
180
113k
    return gs_cspace_alloc_with_id(mem, cs_DeviceCMYK_id,
181
113k
                                   &gs_color_space_type_DeviceCMYK);
182
113k
}
183
184
/* For use in initializing ICC color spaces for XPS */
185
gs_color_space *
186
gs_cspace_new_scrgb(gs_memory_t *pmem, gs_gstate * pgs)
187
0
{
188
0
    gs_color_space *pcspace = gs_cspace_alloc(pmem, &gs_color_space_type_ICC);
189
0
    cmm_profile_t *profile;
190
0
    stream *str;
191
0
    int code;
192
193
0
    if (pcspace == NULL)
194
0
        return pcspace;
195
196
0
    code = gsicc_open_search(SCRGB, strlen(SCRGB), pmem, pmem->gs_lib_ctx->profiledir,
197
0
        pmem->gs_lib_ctx->profiledir_len, &str);
198
199
0
    if (code < 0 || str == NULL) {
200
0
        rc_decrement(pcspace, "gs_cspace_new_scrgb");
201
0
        return NULL;
202
0
    }
203
204
0
    pcspace->cmm_icc_profile_data = gsicc_profile_new(str, pmem, SCRGB, strlen(SCRGB));
205
0
    code = sfclose(str);
206
0
    if (pcspace->cmm_icc_profile_data == NULL) {
207
0
        rc_decrement(pcspace, "gs_cspace_new_scrgb");
208
0
        return NULL;
209
0
    }
210
211
    /* Get the profile handle */
212
0
    pcspace->cmm_icc_profile_data->profile_handle =
213
0
        gsicc_get_profile_handle_buffer(pcspace->cmm_icc_profile_data->buffer,
214
0
            pcspace->cmm_icc_profile_data->buffer_size, pmem);
215
0
    if (!pcspace->cmm_icc_profile_data->profile_handle) {
216
0
        rc_decrement(pcspace, "gs_cspace_new_scrgb");
217
0
        return NULL;
218
0
    }
219
0
    profile = pcspace->cmm_icc_profile_data;
220
221
    /* Compute the hash code of the profile. Everything in the
222
    ICC manager will have it's hash code precomputed */
223
0
    gsicc_get_icc_buff_hash(profile->buffer, &(profile->hashcode),
224
0
        profile->buffer_size);
225
0
    profile->hash_is_valid = true;
226
0
    profile->num_comps =
227
0
        gscms_get_input_channel_count(profile->profile_handle, profile->memory);
228
0
    profile->num_comps_out =
229
0
        gscms_get_output_channel_count(profile->profile_handle, profile->memory);
230
0
    profile->data_cs =
231
0
        gscms_get_profile_data_space(profile->profile_handle, profile->memory);
232
0
    gsicc_set_icc_range(&profile);
233
0
    return pcspace;
234
0
}
235
236
gs_color_space *
237
gs_cspace_new_ICC(gs_memory_t *pmem, gs_gstate * pgs, int components)
238
244k
{
239
244k
    gsicc_manager_t *icc_manage = pgs->icc_manager;
240
244k
    int code = 0;
241
244k
    gs_color_space *pcspace = gs_cspace_alloc(pmem, &gs_color_space_type_ICC);
242
243
244k
    if (pcspace == NULL)
244
0
        return pcspace;
245
246
244k
    switch (components) {
247
0
        case -1: /* alpha case */
248
0
            if (icc_manage->smask_profiles == NULL) {
249
0
                code = gsicc_initialize_iccsmask(icc_manage);
250
0
            }
251
0
            if (code == 0) {
252
0
                pcspace->cmm_icc_profile_data =
253
0
                    icc_manage->smask_profiles->smask_gray;
254
0
            } else {
255
0
                pcspace->cmm_icc_profile_data = icc_manage->default_gray;
256
0
            }
257
0
            break;
258
0
        case -3: /* alpha case.  needs linear RGB */
259
0
            if (icc_manage->smask_profiles == NULL) {
260
0
                code = gsicc_initialize_iccsmask(icc_manage);
261
0
            }
262
0
            if (code == 0) {
263
0
                pcspace->cmm_icc_profile_data =
264
0
                    icc_manage->smask_profiles->smask_rgb;
265
0
            } else {
266
0
                pcspace->cmm_icc_profile_data = icc_manage->default_rgb;
267
0
            }
268
0
            break;
269
244k
        case 1: pcspace->cmm_icc_profile_data = icc_manage->default_gray; break;
270
0
        case 3: pcspace->cmm_icc_profile_data = icc_manage->default_rgb; break;
271
0
        case 4: pcspace->cmm_icc_profile_data = icc_manage->default_cmyk; break;
272
0
        default: rc_decrement(pcspace,"gs_cspace_new_ICC"); return NULL;
273
244k
    }
274
244k
    gsicc_adjust_profile_rc(pcspace->cmm_icc_profile_data, 1, "gs_cspace_new_ICC");
275
244k
    return pcspace;
276
244k
}
277
278
/* ------ Accessors ------ */
279
280
/* Get the index of a color space. */
281
gs_color_space_index
282
gs_color_space_get_index(const gs_color_space * pcs)
283
1.16M
{
284
1.16M
    return pcs->type->index;
285
1.16M
}
286
287
/* See if the space is CIE based */
288
bool gs_color_space_is_CIE(const gs_color_space * pcs)
289
118k
{
290
118k
    switch(gs_color_space_get_index(pcs)){
291
0
        case gs_color_space_index_CIEDEFG:
292
0
        case gs_color_space_index_CIEDEF:
293
0
        case gs_color_space_index_CIEABC:
294
0
        case gs_color_space_index_CIEA:
295
118k
        case gs_color_space_index_ICC:
296
118k
            return true;
297
0
        break;
298
0
        default:
299
0
            return false;
300
118k
    }
301
118k
}
302
303
/* See if the space is Postscript CIE based */
304
bool gs_color_space_is_PSCIE(const gs_color_space * pcs)
305
12.3k
{
306
12.3k
    switch(gs_color_space_get_index(pcs)){
307
0
        case gs_color_space_index_CIEDEFG:
308
0
        case gs_color_space_index_CIEDEF:
309
0
        case gs_color_space_index_CIEABC:
310
0
        case gs_color_space_index_CIEA:
311
0
            return true;
312
0
        break;
313
12.3k
        default:
314
12.3k
            return false;
315
12.3k
}
316
12.3k
}
317
318
/* See if the space is ICC based */
319
bool gs_color_space_is_ICC(const gs_color_space * pcs)
320
14.1k
{
321
14.1k
    return(gs_color_space_get_index(pcs) == gs_color_space_index_ICC);
322
14.1k
}
323
324
/* Get the number of components in a color space. */
325
int
326
gs_color_space_num_components(const gs_color_space * pcs)
327
5.62k
{
328
5.62k
    return cs_num_components(pcs);
329
5.62k
}
330
331
/* Restrict a color to its legal range. */
332
void
333
gs_color_space_restrict_color(gs_client_color *pcc, const gs_color_space *pcs)
334
0
{
335
0
    cs_restrict_color(pcc, pcs);
336
0
}
337
338
/* Install a DeviceGray color space. */
339
static int
340
gx_install_DeviceGray(gs_color_space * pcs, gs_gstate * pgs)
341
246k
{
342
    /* If we already have profile data installed, nothing to do here. */
343
246k
    if (pcs->cmm_icc_profile_data != NULL)
344
0
        return 0;
345
346
    /* If we haven't initialised the iccmanager, do it now. */
347
246k
    if (pgs->icc_manager->default_gray == NULL) {
348
101k
        int code = gsicc_init_iccmanager(pgs);
349
101k
        if (code < 0)
350
0
            return code;
351
101k
    }
352
353
    /* pcs takes a reference to the default_gray profile data */
354
246k
    pcs->cmm_icc_profile_data = pgs->icc_manager->default_gray;
355
246k
    gsicc_adjust_profile_rc(pgs->icc_manager->default_gray, 1, "gx_install_DeviceGray");
356
246k
    pcs->type = &gs_color_space_type_ICC;
357
246k
    return 0;
358
246k
}
359
360
int
361
gx_num_components_1(const gs_color_space * pcs)
362
22.1k
{
363
22.1k
    return 1;
364
22.1k
}
365
int
366
gx_num_components_3(const gs_color_space * pcs)
367
0
{
368
0
    return 3;
369
0
}
370
int
371
gx_num_components_4(const gs_color_space * pcs)
372
0
{
373
0
    return 4;
374
0
}
375
376
gx_color_polarity_t
377
gx_polarity_subtractive(const gs_color_space * pcs)
378
0
{
379
0
    return GX_CINFO_POLARITY_SUBTRACTIVE;
380
0
}
381
382
gx_color_polarity_t
383
gx_polarity_additive(const gs_color_space * pcs)
384
0
{
385
0
    return GX_CINFO_POLARITY_ADDITIVE;
386
0
}
387
388
gx_color_polarity_t
389
gx_polarity_unknown(const gs_color_space * pcs)
390
0
{
391
0
    return GX_CINFO_POLARITY_UNKNOWN;
392
0
}
393
394
/*
395
 * For color spaces that have a base or alternative color space, return that
396
 * color space. Otherwise return null.
397
 */
398
const gs_color_space *
399
gs_cspace_base_space(const gs_color_space * pcspace)
400
8.92k
{
401
8.92k
    return pcspace->base_space;
402
8.92k
}
403
404
const gs_color_space *
405
gs_cspace_devn_process_space(const gs_color_space * pcspace)
406
0
{
407
0
    return pcspace->params.device_n.devn_process_space;
408
0
}
409
410
/* Abstract the reference counting for color spaces
411
   so that we can also increment the ICC profile
412
   if there is one associated with the color space */
413
414
void rc_increment_cs(gs_color_space *pcs)
415
487k
{
416
487k
    rc_increment(pcs);
417
487k
}
418
419
242k
void rc_decrement_cs(gs_color_space *pcs, const char *cname) {
420
421
242k
    if (pcs) {
422
242k
        rc_decrement(pcs, cname);
423
242k
    }
424
242k
}
425
426
void rc_decrement_only_cs(gs_color_space *pcs, const char *cname)
427
1.40M
{
428
1.40M
    if (pcs) {
429
593k
        rc_decrement_only(pcs, cname);
430
593k
    }
431
1.40M
}
432
433
void cs_adjust_counts_icc(gs_gstate *pgs, int delta)
434
663k
{
435
663k
    gs_color_space *pcs = gs_currentcolorspace_inline(pgs);
436
437
663k
    if (pcs) {
438
450k
        cs_adjust_color_count(pgs, delta);
439
450k
        rc_adjust_const(pcs, delta, "cs_adjust_counts_icc");
440
450k
    }
441
663k
}
442
443
void cs_adjust_swappedcounts_icc(gs_gstate *pgs, int delta)
444
663k
{
445
663k
    gs_color_space *pcs = gs_swappedcolorspace_inline(pgs);
446
447
663k
    if (pcs) {
448
450k
        cs_adjust_swappedcolor_count(pgs, delta);
449
450k
        rc_adjust_const(pcs, delta, "cs_adjust_swappedcounts_icc");
450
450k
    }
451
663k
}
452
453
/* ------ Other implementation procedures ------ */
454
455
/* Null color space installation procedure. */
456
int
457
gx_no_install_cspace(gs_color_space * pcs, gs_gstate * pgs)
458
0
{
459
0
    return 0;
460
0
}
461
462
/* Install a DeviceRGB color space. */
463
static int
464
gx_install_DeviceRGB(gs_color_space * pcs, gs_gstate * pgs)
465
707
{
466
    /* If we already have profile_data, nothing to do here. */
467
707
    if (pcs->cmm_icc_profile_data != NULL)
468
0
        return 0;
469
470
    /* If the icc manager hasn't been set up yet, then set it up. */
471
707
    if (pgs->icc_manager->default_rgb == NULL)
472
0
        gsicc_init_iccmanager(pgs);
473
474
    /* pcs takes a reference to default_rgb */
475
707
    pcs->cmm_icc_profile_data = pgs->icc_manager->default_rgb;
476
707
    gsicc_adjust_profile_rc(pcs->cmm_icc_profile_data, 1, "gx_install_DeviceRGB");
477
707
    pcs->type = &gs_color_space_type_ICC;
478
707
    return 0;
479
707
}
480
481
/* Install a DeviceCMYK color space. */
482
static int
483
gx_install_DeviceCMYK(gs_color_space * pcs, gs_gstate * pgs)
484
27
{
485
    /* If we already have profile data, nothing to do here. */
486
27
    if (pcs->cmm_icc_profile_data != NULL)
487
0
        return 0;
488
489
    /* If the icc manager hasn't been set up yet, then set it up. */
490
27
    if (pgs->icc_manager->default_cmyk == NULL)
491
0
        gsicc_init_iccmanager(pgs);
492
493
    /* pcs takes a reference to default_cmyk */
494
27
    pcs->cmm_icc_profile_data = pgs->icc_manager->default_cmyk;
495
27
    gsicc_adjust_profile_rc(pcs->cmm_icc_profile_data, 1, "gx_install_DeviceCMYK");
496
27
    pcs->type = &gs_color_space_type_ICC;
497
27
    return 0;
498
27
}
499
500
/*
501
 * Communicate to the overprint compositor that this particular
502
 * state overprint is not enabled.  This could be due to a
503
 * mismatched color space, or that overprint is false or the
504
 * device does not support it.
505
 */
506
int
507
gx_set_no_overprint(gs_gstate* pgs)
508
0
{
509
0
    gs_overprint_params_t   params = { 0 };
510
511
0
    params.retain_any_comps = false;
512
0
    params.op_state = OP_STATE_NONE;
513
0
    params.is_fill_color = pgs->is_fill_color;
514
0
    params.effective_opm = pgs->color[0].effective_opm = 0;
515
516
0
    return gs_gstate_update_overprint(pgs, &params);
517
0
}
518
519
/* Retain all the spot colorants and not the process
520
   colorants.  This occurs if we have a process color
521
   mismatch between the source and the destination but
522
   the output device supports spot colors */
523
int
524
gx_set_spot_only_overprint(gs_gstate* pgs)
525
0
{
526
0
    gs_overprint_params_t   params = { 0 };
527
0
    gx_device* dev = pgs->device;
528
0
    gx_color_index drawn_comps = dev == NULL ? 0 : gx_get_process_comps(dev);
529
530
0
    params.retain_any_comps = true;
531
0
    params.op_state = OP_STATE_NONE;
532
0
    params.is_fill_color = pgs->is_fill_color;
533
0
    params.effective_opm = pgs->color[0].effective_opm = 0;
534
0
    params.drawn_comps = drawn_comps;
535
536
0
    return gs_gstate_update_overprint(pgs, &params);
537
0
}
538
539
/*
540
 * Push an overprint compositor onto the current device indicating that,
541
 * at most, the spot color parameters are to be preserved.
542
 *
543
 * This routine should be used for all Device, CIEBased, and ICCBased
544
 * color spaces, except for DeviceCMKY.
545
 */
546
int
547
gx_spot_colors_set_overprint(const gs_color_space * pcs, gs_gstate * pgs)
548
0
{
549
0
    gs_overprint_params_t   params = {0};
550
0
    bool op = pgs->is_fill_color ? pgs->overprint : pgs->stroke_overprint;
551
552
0
    if (!op)
553
0
        params.retain_any_comps = false;
554
0
    else
555
0
        params.retain_any_comps = true;
556
557
0
    params.is_fill_color = pgs->is_fill_color;
558
0
    params.op_state = OP_STATE_NONE;
559
560
    /* Only DeviceCMYK case can have overprint mode set to true */
561
0
    params.effective_opm = pgs->color[0].effective_opm = 0;
562
0
    return gs_gstate_update_overprint(pgs, &params);
563
0
}
564
565
static bool
566
check_single_comp(int comp, frac targ_val, int ncomps, const frac * pval)
567
0
{
568
0
    int     i;
569
570
0
    for (i = 0; i < ncomps; i++) {
571
0
        if ( (i != comp && pval[i] != frac_0)  ||
572
0
             (i == comp && pval[i] != targ_val)  )
573
0
            return false;
574
0
    }
575
0
    return true;
576
0
}
577
578
/*
579
 * Determine if the current color model is a "DeviceCMYK" color model, and
580
 * if so what are its process color components. This information is required
581
 * when PLRM defines special rules for CMYK devices. This includes:
582
 * 1. DeviceGray to CMYK color conversion
583
 * 2. when overprint is true and overprint mode is set to 1.
584
 *
585
 * A color model is considered a "DeviceCMYK" color model if it supports the
586
 * cyan, magenta, yellow, and black color components, and maps the DeviceCMYK
587
 * color model components directly to these color components. Note that this
588
 * does not require any particular component order, allows for additional
589
 * spot color components, and does admit DeviceN color spaces if they have
590
 * the requisite behavior.
591
 *
592
 * If the color model is a "DeviceCMYK" color model, return the set of
593
 * process color components; otherwise return 0.
594
 */
595
gx_color_index
596
check_cmyk_color_model_comps(gx_device * dev)
597
703
{
598
703
    gx_device_color_info *          pcinfo = &dev->color_info;
599
703
    uchar                           ncomps = pcinfo->num_components;
600
703
    int                             cyan_c, magenta_c, yellow_c, black_c;
601
703
    frac                            frac_14 = frac_1 / 4;
602
703
    frac                            out[GX_DEVICE_COLOR_MAX_COMPONENTS];
603
703
    gx_color_index                  process_comps;
604
703
    const gx_cm_color_map_procs    *cmprocs;
605
703
    const gx_device                *cmdev;
606
607
608
703
    if (pcinfo->num_components < 4                     ||
609
703
        pcinfo->polarity == GX_CINFO_POLARITY_ADDITIVE ||
610
703
        pcinfo->gray_index == GX_CINFO_COMP_NO_INDEX) {
611
703
        pcinfo->opmsupported = GX_CINFO_OPMSUPPORTED_NOT;
612
703
        return 0;
613
703
    }
614
615
    /* check for the appropriate components */
616
0
    if ( ncomps < 4                                       ||
617
0
         (cyan_c = dev_proc(dev, get_color_comp_index)(
618
0
                       dev,
619
0
                       "Cyan",
620
0
                       sizeof("Cyan") - 1,
621
0
                       NO_COMP_NAME_TYPE_OP)) < 0           ||
622
0
         cyan_c == GX_DEVICE_COLOR_MAX_COMPONENTS         ||
623
0
         (magenta_c = dev_proc(dev, get_color_comp_index)(
624
0
                          dev,
625
0
                          "Magenta",
626
0
                          sizeof("Magenta") - 1,
627
0
                          NO_COMP_NAME_TYPE_OP)) < 0        ||
628
0
         magenta_c == GX_DEVICE_COLOR_MAX_COMPONENTS      ||
629
0
         (yellow_c = dev_proc(dev, get_color_comp_index)(
630
0
                        dev,
631
0
                        "Yellow",
632
0
                        sizeof("Yellow") - 1,
633
0
                        NO_COMP_NAME_TYPE_OP)) < 0               ||
634
0
         yellow_c == GX_DEVICE_COLOR_MAX_COMPONENTS       ||
635
0
         (black_c = dev_proc(dev, get_color_comp_index)(
636
0
                        dev,
637
0
                        "Black",
638
0
                        sizeof("Black") - 1,
639
0
                        NO_COMP_NAME_TYPE_OP)) < 0                         ||
640
0
         black_c == GX_DEVICE_COLOR_MAX_COMPONENTS          )
641
0
        return 0;
642
643
    /* check the mapping */
644
0
    cmprocs = dev_proc(dev, get_color_mapping_procs)(dev, &cmdev);
645
646
0
    ncomps -= device_encodes_tags(dev);
647
0
    cmprocs->map_cmyk(cmdev, frac_14, frac_0, frac_0, frac_0, out);
648
0
    if (!check_single_comp(cyan_c, frac_14, ncomps, out)) {
649
0
        pcinfo->opmsupported = GX_CINFO_OPMSUPPORTED_NOT;
650
0
        return 0;
651
0
    }
652
0
    cmprocs->map_cmyk(cmdev, frac_0, frac_14, frac_0, frac_0, out);
653
0
    if (!check_single_comp(magenta_c, frac_14, ncomps, out)) {
654
0
        pcinfo->opmsupported = GX_CINFO_OPMSUPPORTED_NOT;
655
0
        return 0;
656
0
    }
657
0
    cmprocs->map_cmyk(cmdev, frac_0, frac_0, frac_14, frac_0, out);
658
0
    if (!check_single_comp(yellow_c, frac_14, ncomps, out)) {
659
0
        pcinfo->opmsupported = GX_CINFO_OPMSUPPORTED_NOT;
660
0
        return 0;
661
0
    }
662
0
    cmprocs->map_cmyk(cmdev, frac_0, frac_0, frac_0, frac_14, out);
663
0
    if (!check_single_comp(black_c, frac_14, ncomps, out)) {
664
0
        pcinfo->opmsupported = GX_CINFO_OPMSUPPORTED_NOT;
665
0
        return 0;
666
0
    }
667
668
0
    process_comps =  ((gx_color_index)1 << cyan_c)
669
0
                   | ((gx_color_index)1 << magenta_c)
670
0
                   | ((gx_color_index)1 << yellow_c)
671
0
                   | ((gx_color_index)1 << black_c);
672
0
    pcinfo->opmsupported = GX_CINFO_OPMSUPPORTED;
673
0
    pcinfo->process_comps = process_comps;
674
0
    pcinfo->black_component = black_c;
675
0
    return process_comps;
676
0
}
677
678
static void
679
check_rgb_color_model_comps(gx_device * dev)
680
0
{
681
0
    gx_device_color_info *          pcinfo = &dev->color_info;
682
0
    uchar                           ncomps = pcinfo->num_components;
683
0
    int                             red_c, green_c, blue_c;
684
0
    frac                            frac_14 = frac_1 / 4;
685
0
    frac                            out[GX_DEVICE_COLOR_MAX_COMPONENTS];
686
0
    gx_color_index                  process_comps;
687
0
    const gx_cm_color_map_procs    *cmprocs;
688
0
    const gx_device                *cmdev;
689
690
691
0
    if (pcinfo->num_components < 3                     ||
692
0
        pcinfo->polarity != GX_CINFO_POLARITY_ADDITIVE ||
693
0
        pcinfo->gray_index == GX_CINFO_COMP_NO_INDEX   ||
694
0
        dev_proc(dev, dev_spec_op)(dev, gxdso_is_sep_supporting_additive_device, NULL, 0) <= 0
695
0
        ) {
696
0
        pcinfo->opmsupported = GX_CINFO_OPMSUPPORTED_NOT;
697
0
        return;
698
0
    }
699
700
    /* check for the appropriate components */
701
0
    if ( ncomps < 3                                      ||
702
0
         (red_c = dev_proc(dev, get_color_comp_index)(
703
0
                       dev,
704
0
                       "Red",
705
0
                       sizeof("Red") - 1,
706
0
                       NO_COMP_NAME_TYPE_OP)) < 0        ||
707
0
         red_c == GX_DEVICE_COLOR_MAX_COMPONENTS         ||
708
0
         (green_c = dev_proc(dev, get_color_comp_index)(
709
0
                          dev,
710
0
                          "Green",
711
0
                          sizeof("Green") - 1,
712
0
                          NO_COMP_NAME_TYPE_OP)) < 0     ||
713
0
         green_c == GX_DEVICE_COLOR_MAX_COMPONENTS       ||
714
0
         (blue_c = dev_proc(dev, get_color_comp_index)(
715
0
                        dev,
716
0
                        "Blue",
717
0
                        sizeof("Blue") - 1,
718
0
                        NO_COMP_NAME_TYPE_OP)) < 0       ||
719
0
         blue_c == GX_DEVICE_COLOR_MAX_COMPONENTS)
720
0
    {
721
0
        pcinfo->opmsupported = GX_CINFO_OPMSUPPORTED_NOT;
722
0
        return;
723
0
    }
724
725
    /* check the mapping */
726
0
    cmprocs = dev_proc(dev, get_color_mapping_procs)(dev, &cmdev);
727
728
0
    ncomps -= device_encodes_tags(dev);
729
0
    cmprocs->map_rgb(cmdev, NULL, frac_14, frac_0, frac_0, out);
730
0
    if (!check_single_comp(red_c, frac_14, ncomps, out)) {
731
0
        pcinfo->opmsupported = GX_CINFO_OPMSUPPORTED_NOT;
732
0
        return;
733
0
    }
734
0
    cmprocs->map_rgb(cmdev, NULL, frac_0, frac_14, frac_0, out);
735
0
    if (!check_single_comp(green_c, frac_14, ncomps, out)) {
736
0
        pcinfo->opmsupported = GX_CINFO_OPMSUPPORTED_NOT;
737
0
        return;
738
0
    }
739
0
    cmprocs->map_rgb(cmdev, NULL, frac_0, frac_0, frac_14, out);
740
0
    if (!check_single_comp(blue_c, frac_14, ncomps, out)) {
741
0
        pcinfo->opmsupported = GX_CINFO_OPMSUPPORTED_NOT;
742
0
        return;
743
0
    }
744
745
0
    process_comps =  ((gx_color_index)1 << red_c)
746
0
                   | ((gx_color_index)1 << green_c)
747
0
                   | ((gx_color_index)1 << blue_c);
748
0
    pcinfo->opmsupported = GX_CINFO_OPMSUPPORTED;
749
0
    pcinfo->process_comps = process_comps;
750
0
    pcinfo->black_component = 0; /* ? */
751
0
}
752
753
void check_opmsupported(gx_device * dev)
754
703
{
755
703
    if (dev->color_info.polarity == GX_CINFO_POLARITY_ADDITIVE)
756
0
        check_rgb_color_model_comps(dev);
757
703
    else
758
703
        (void)check_cmyk_color_model_comps(dev);
759
703
}
760
761
/*
762
 * This set_overprint method is unique. If overprint is true, overprint
763
 * mode is set to 1, the process color model has DeviceCMYK behavior (see
764
 * the comment ahead of gx_is_cmyk_color_model above), and the device
765
 * color is set, the device color needs to be considered in setting up
766
 * the set of drawn components.
767
 */
768
static int
769
gx_set_overprint_DeviceCMYK(const gs_color_space * pcs, gs_gstate * pgs)
770
0
{
771
0
    gx_device *             dev = pgs->device;
772
0
    gx_device_color_info *  pcinfo = (dev == 0 ? 0 : &dev->color_info);
773
774
    /* check if we require special handling */
775
0
    if ( !pgs->overprint                      ||
776
0
         pgs->overprint_mode != 1             ||
777
0
         pcinfo == 0                          ||
778
0
         pcinfo->opmsupported == GX_CINFO_OPMSUPPORTED_NOT)
779
0
        return gx_spot_colors_set_overprint(pcs, pgs);
780
    /* Share code with CMYK ICC case */
781
0
    return gx_set_overprint_cmyk(pcs, pgs);
782
0
}
783
784
/* A few comments about ICC profiles and overprint simulation.  In order
785
   to do proper overprint simulation, the source ICC profile and the
786
   destination ICC profile must be the same.  If they are not, then
787
   we end up mapping the source CMYK data to a different CMYK value.  In
788
   this case, the non-zero components, which with overprint mode = 1 specify
789
   which are to be overprinted will not be correct to produce the proper
790
   overprint simulation.  This is seen with AR when doing output preview,
791
   overprint simulation enabled of the file overprint_icc.pdf (see our
792
   test files) which has SWOP ICC based CMYK fills.  In AR, if we use a
793
   simulation ICC profile that is different than the source profile,
794
   overprinting is no longer previewed. We follow the same logic here.
795
   If the source and destination ICC profiles do not match, then there is
796
   effectively no overprinting enabled.  This is bug 692433.  However,
797
   even with the mismatch, if the device supports spot colorants, those
798
   colors should be maintained. This is bug 702725. */
799
int gx_set_overprint_cmyk(const gs_color_space * pcs, gs_gstate * pgs)
800
0
{
801
0
    gx_device *             dev = pgs->device;
802
0
    gx_color_index          drawn_comps = 0;
803
0
    gs_overprint_params_t   params = { 0 };
804
0
    gx_device_color        *pdc;
805
0
    cmm_dev_profile_t      *dev_profile;
806
0
    cmm_profile_t          *output_profile = 0;
807
0
    int                     code;
808
0
    bool                    profile_ok = false;
809
0
    gsicc_rendering_param_t        render_cond;
810
0
    bool                    eop;
811
812
0
    if_debug0m(gs_debug_flag_overprint, pgs->memory,
813
0
        "[overprint] gx_set_overprint_cmyk\n");
814
815
0
    if (dev) {
816
0
        code = dev_proc(dev, get_profile)(dev, &dev_profile);
817
0
        if (code < 0)
818
0
            return code;
819
820
0
        gsicc_extract_profile(dev->graphics_type_tag, dev_profile, &(output_profile),
821
0
                              &render_cond);
822
823
0
        drawn_comps = gx_get_process_comps(dev);
824
0
    }
825
826
0
    if_debug1m(gs_debug_flag_overprint, pgs->memory,
827
0
        "[overprint] gx_set_overprint_cmyk. drawn_comps = 0x%x\n", (uint)drawn_comps);
828
829
0
    if (drawn_comps == 0)
830
0
        return gx_spot_colors_set_overprint(pcs, pgs);
831
832
    /* correct for any zero'ed color components.  But only if profiles
833
       match AND pgs->overprint_mode is true */
834
0
    if (pcs->cmm_icc_profile_data != NULL && output_profile != NULL) {
835
0
        if (gsicc_profiles_equal(output_profile, pcs->cmm_icc_profile_data)) {
836
0
            profile_ok = true;
837
0
        }
838
0
    }
839
840
0
    eop = gs_currentcolor_eopm(pgs);
841
842
0
    if_debug3m(gs_debug_flag_overprint, pgs->memory,
843
0
        "[overprint] gx_set_overprint_cmyk. is_fill_color = %d, pgs->color[0].effective_opm = %d pgs->color[1].effective_opm = %d\n",
844
0
        pgs->is_fill_color, pgs->color[0].effective_opm, pgs->color[1].effective_opm);
845
846
0
    if (profile_ok && eop) {
847
0
        gx_color_index  nz_comps, one, temp;
848
0
        int             code;
849
0
        int             num_colorant[4], k;
850
0
        bool            colorant_ok;
851
0
        dev_color_proc_get_nonzero_comps((*procp));
852
853
0
        if_debug0m(gs_debug_flag_overprint, pgs->memory,
854
0
            "[overprint] gx_set_overprint_cmyk. color_is_set, profile_ok and eop\n");
855
856
0
        code = gx_set_dev_color(pgs);
857
0
        if (code < 0)
858
0
            return code;
859
0
        pdc = gs_currentdevicecolor_inline(pgs);
860
0
        procp = pdc->type->get_nonzero_comps;
861
0
        if (pdc->ccolor_valid) {
862
            /* If we have the source colors, then use those in making the
863
               decision as to which ones are non-zero.  Then we avoid
864
               accidently looking at small values that get quantized to zero
865
               Note that to get here in the code, the source color data color
866
               space has to be CMYK. Trick is that we do need to worry about
867
               the colorant order on the target device */
868
0
            num_colorant[0] = (dev_proc(dev, get_color_comp_index))\
869
0
                             (dev, "Cyan", strlen("Cyan"), NO_COMP_NAME_TYPE_OP);
870
0
            num_colorant[1] = (dev_proc(dev, get_color_comp_index))\
871
0
                             (dev, "Magenta", strlen("Magenta"), NO_COMP_NAME_TYPE_OP);
872
0
            num_colorant[2] = (dev_proc(dev, get_color_comp_index))\
873
0
                             (dev, "Yellow", strlen("Yellow"), NO_COMP_NAME_TYPE_OP);
874
0
            num_colorant[3] = (dev_proc(dev, get_color_comp_index))\
875
0
                             (dev, "Black", strlen("Black"), NO_COMP_NAME_TYPE_OP);
876
0
            nz_comps = 0;
877
0
            one = 1;
878
0
            colorant_ok = true;
879
0
            for (k = 0; k < 4; k++) {
880
                /* Note: AR assumes the value is zero if it
881
                   is less than 0.5 out of 255 */
882
0
                if (pdc->ccolor.paint.values[k] > (0.5 / 255.0)) {
883
0
                    if (num_colorant[k] == -1) {
884
0
                        colorant_ok = false;
885
0
                    } else {
886
0
                        temp = one << num_colorant[k];
887
0
                        nz_comps = nz_comps | temp;
888
0
                    }
889
0
                }
890
0
            }
891
            /* For some reason we don't have one of the standard colorants */
892
0
            if (!colorant_ok) {
893
0
                if ((code = procp(pdc, dev, &nz_comps)) < 0)
894
0
                    return code;
895
0
            }
896
0
        } else {
897
0
            if ((code = procp(pdc, dev, &nz_comps)) < 0)
898
0
                return code;
899
0
        }
900
0
        drawn_comps &= nz_comps;
901
0
    }
902
0
    params.is_fill_color = pgs->is_fill_color;
903
0
    params.retain_any_comps = true;
904
0
    params.drawn_comps = drawn_comps;
905
0
    params.op_state = OP_STATE_NONE;
906
907
0
    if_debug2m(gs_debug_flag_overprint, pgs->memory,
908
0
        "[overprint] gx_set_overprint_cmyk. retain_any_comps = %d, drawn_comps = 0x%x\n",
909
0
        params.retain_any_comps, (uint)(params.drawn_comps));
910
911
    /* We are in CMYK, the profiles match and overprint is true.  Set effective
912
       overprint mode to overprint mode but only if effective has not already
913
       been set to 0 */
914
0
    params.effective_opm = pgs->color[0].effective_opm =
915
0
        pgs->overprint_mode && gs_currentcolor_eopm(pgs);
916
0
    return gs_gstate_update_overprint(pgs, &params);
917
0
}
918
919
int gx_set_overprint_rgb(const gs_color_space * pcs, gs_gstate * pgs)
920
0
{
921
0
    gx_device *             dev = pgs->device;
922
0
    gx_color_index          drawn_comps = 0;
923
0
    gs_overprint_params_t   params = { 0 };
924
0
    gx_device_color        *pdc;
925
0
    cmm_dev_profile_t      *dev_profile;
926
0
    cmm_profile_t          *output_profile = 0;
927
0
    int                     code;
928
0
    bool                    profile_ok = false;
929
0
    gsicc_rendering_param_t        render_cond;
930
0
    bool                    eop;
931
932
0
    if_debug0m(gs_debug_flag_overprint, pgs->memory,
933
0
        "[overprint] gx_set_overprint_rgb\n");
934
935
0
    if (dev) {
936
0
        code = dev_proc(dev, get_profile)(dev, &dev_profile);
937
0
        if (code < 0)
938
0
            return code;
939
940
0
        gsicc_extract_profile(dev->graphics_type_tag, dev_profile, &(output_profile),
941
0
                              &render_cond);
942
943
0
        drawn_comps = gx_get_process_comps(dev);
944
0
    }
945
946
0
    if_debug1m(gs_debug_flag_overprint, pgs->memory,
947
0
        "[overprint] gx_set_overprint_rgb. drawn_comps = 0x%x\n", (uint)drawn_comps);
948
949
0
    if (drawn_comps == 0)
950
0
        return gx_spot_colors_set_overprint(pcs, pgs);
951
952
    /* correct for any zero'ed color components.  But only if profiles
953
       match AND pgs->overprint_mode is true */
954
0
    if (pcs->cmm_icc_profile_data != NULL && output_profile != NULL) {
955
0
        if (gsicc_profiles_equal(output_profile, pcs->cmm_icc_profile_data)) {
956
0
            profile_ok = true;
957
0
        }
958
0
    }
959
960
0
    eop = gs_currentcolor_eopm(pgs);
961
962
0
    if_debug3m(gs_debug_flag_overprint, pgs->memory,
963
0
        "[overprint] gx_set_overprint_rgb. is_fill_color = %d, pgs->color[0].effective_opm = %d pgs->color[1].effective_opm = %d\n",
964
0
        pgs->is_fill_color, pgs->color[0].effective_opm, pgs->color[1].effective_opm);
965
966
0
    if (profile_ok && eop) {
967
0
        gx_color_index  nz_comps, one, temp;
968
0
        int             code;
969
0
        int             num_colorant[3], k;
970
0
        bool            colorant_ok;
971
0
        dev_color_proc_get_nonzero_comps((*procp));
972
973
0
        if_debug0m(gs_debug_flag_overprint, pgs->memory,
974
0
            "[overprint] gx_set_overprint_cmyk. color_is_set, profile_ok and eop\n");
975
976
0
        code = gx_set_dev_color(pgs);
977
0
        if (code < 0)
978
0
            return code;
979
0
        pdc = gs_currentdevicecolor_inline(pgs);
980
0
        procp = pdc->type->get_nonzero_comps;
981
0
        if (pdc->ccolor_valid) {
982
            /* If we have the source colors, then use those in making the
983
               decision as to which ones are non-zero.  Then we avoid
984
               accidently looking at small values that get quantized to zero
985
               Note that to get here in the code, the source color data color
986
               space has to be CMYK. Trick is that we do need to worry about
987
               the colorant order on the target device */
988
0
            num_colorant[0] = (dev_proc(dev, get_color_comp_index))\
989
0
                             (dev, "Red", strlen("Red"), NO_COMP_NAME_TYPE_OP);
990
0
            num_colorant[1] = (dev_proc(dev, get_color_comp_index))\
991
0
                             (dev, "Green", strlen("Green"), NO_COMP_NAME_TYPE_OP);
992
0
            num_colorant[2] = (dev_proc(dev, get_color_comp_index))\
993
0
                             (dev, "Blue", strlen("Blue"), NO_COMP_NAME_TYPE_OP);
994
0
            nz_comps = 0;
995
0
            one = 1;
996
0
            colorant_ok = true;
997
0
            for (k = 0; k < 3; k++) {
998
                /* Note: AR assumes the value is zero if it
999
                   is less than 0.5 out of 255 */
1000
0
                if (pdc->ccolor.paint.values[k] > (0.5 / 255.0)) {
1001
0
                    if (num_colorant[k] == -1) {
1002
0
                        colorant_ok = false;
1003
0
                    } else {
1004
0
                        temp = one << num_colorant[k];
1005
0
                        nz_comps = nz_comps | temp;
1006
0
                    }
1007
0
                }
1008
0
            }
1009
            /* For some reason we don't have one of the standard colorants */
1010
0
            if (!colorant_ok) {
1011
0
                if ((code = procp(pdc, dev, &nz_comps)) < 0)
1012
0
                    return code;
1013
0
            }
1014
0
        } else {
1015
0
            if ((code = procp(pdc, dev, &nz_comps)) < 0)
1016
0
                return code;
1017
0
        }
1018
0
        drawn_comps &= nz_comps;
1019
0
    }
1020
0
    params.is_fill_color = pgs->is_fill_color;
1021
0
    params.retain_any_comps = true;
1022
0
    params.drawn_comps = drawn_comps;
1023
0
    params.op_state = OP_STATE_NONE;
1024
1025
0
    if_debug2m(gs_debug_flag_overprint, pgs->memory,
1026
0
        "[overprint] gx_set_overprint_rgb. retain_any_comps = %d, drawn_comps = 0x%x\n",
1027
0
        params.retain_any_comps, (uint)(params.drawn_comps));
1028
1029
    /* We are in RGB, the profiles match and overprint is true.  Set effective
1030
       overprint mode to overprint mode but only if effective has not already
1031
       been set to 0 */
1032
0
    params.effective_opm = pgs->color[0].effective_opm =
1033
0
        pgs->overprint_mode && gs_currentcolor_eopm(pgs);
1034
0
    return gs_gstate_update_overprint(pgs, &params);
1035
0
}
1036
/* A stub for a color mapping linearity check, when it is inapplicable. */
1037
int
1038
gx_cspace_no_linear(const gs_color_space *cs, const gs_gstate * pgs,
1039
                gx_device * dev,
1040
                const gs_client_color *c0, const gs_client_color *c1,
1041
                const gs_client_color *c2, const gs_client_color *c3,
1042
                float smoothness, gsicc_link_t *icclink)
1043
0
{
1044
0
    return_error(gs_error_rangecheck);
1045
0
}
1046
1047
static inline int
1048
cc2dc(const gs_color_space *cs, const gs_gstate * pgs, gx_device *dev,
1049
            gx_device_color *dc, const gs_client_color *cc)
1050
0
{
1051
0
    return cs->type->remap_color(cc, cs, dc, pgs, dev, gs_color_select_texture);
1052
0
}
1053
1054
static inline void
1055
interpolate_cc(gs_client_color *c,
1056
        const gs_client_color *c0, const gs_client_color *c1, double t, int n)
1057
0
{
1058
0
    int i;
1059
1060
0
    for (i = 0; i < n; i++)
1061
0
        c->paint.values[i] = c0->paint.values[i] * t + c1->paint.values[i] * (1 - t);
1062
0
}
1063
1064
static inline bool
1065
is_dc_nearly_linear(const gx_device *dev, const gx_device_color *c,
1066
        const gx_device_color *c0, const gx_device_color *c1,
1067
        double t, uchar n, float smoothness)
1068
0
{
1069
0
    uchar i;
1070
1071
0
    if (c0->type == &gx_dc_type_data_pure) {
1072
0
        gx_color_index pure0 = c0->colors.pure;
1073
0
        gx_color_index pure1 = c1->colors.pure;
1074
0
        gx_color_index pure = c->colors.pure;
1075
1076
0
        for (i = 0; i < n; i++) {
1077
0
            int shift = dev->color_info.comp_shift[i];
1078
0
            int mask = (1 << dev->color_info.comp_bits[i]) - 1;
1079
0
            int max_color = (i == dev->color_info.gray_index ? dev->color_info.max_gray
1080
0
                                                             : dev->color_info.max_color);
1081
0
            float max_diff = max(1, max_color * smoothness);
1082
0
            int b0 = (pure0 >> shift) & mask, b1 = (pure1 >> shift) & mask;
1083
0
            int b = (pure >> shift) & mask;
1084
0
            double bb = b0 * t + b1 * (1 - t);
1085
1086
0
            if (any_abs(b - bb) > max_diff)
1087
0
                return false;
1088
0
        }
1089
0
        return true;
1090
0
    } else if (c0->type == &gx_dc_type_data_devn) {
1091
0
        for (i = 0; i < n; i++) {
1092
0
            int max_color = (i == dev->color_info.gray_index ? dev->color_info.max_gray
1093
0
                : dev->color_info.max_color);
1094
0
            double max_diff = max(1, max_color * smoothness);
1095
            /* Color values are 16 bit.  We are basing the smoothness on the
1096
               device bit depth.  So make sure to adjust the above max diff
1097
               based upon our device bit depth */
1098
0
            double ratio = (double)max_color / (double)gx_max_color_value;
1099
0
            double b0 = (c0->colors.devn.values[i]) * ratio;
1100
0
            double b1 = (c1->colors.devn.values[i]) * ratio;
1101
0
            double b = (c->colors.devn.values[i]) * ratio;
1102
0
            double bb = b0 * t + b1 * (1 - t);
1103
0
            if (any_abs(b - bb) > max_diff)
1104
0
                return false;
1105
0
        }
1106
0
        return true;
1107
0
    } else {
1108
        /* Halftones must not paint with fill_linear_color_*. */
1109
0
        return false;
1110
0
    }
1111
0
}
1112
1113
/* Default color mapping linearity check, a 2-points case. */
1114
static int
1115
gx_cspace_is_linear_in_line(const gs_color_space *cs, const gs_gstate * pgs,
1116
                gx_device *dev,
1117
                const gs_client_color *c0, const gs_client_color *c1,
1118
                float smoothness)
1119
0
{
1120
0
    gs_client_color c01a, c01b;
1121
0
    gx_device_color d[2], d01a, d01b;
1122
0
    int n = cs->type->num_components(cs);
1123
0
    uchar ndev = dev->color_info.num_components;
1124
0
    int code;
1125
1126
0
    code = cc2dc(cs, pgs, dev, &d[0], c0);
1127
0
    if (code < 0)
1128
0
        return code;
1129
0
    code = cc2dc(cs, pgs, dev, &d[1], c1);
1130
0
    if (code < 0)
1131
0
        return code;
1132
0
    interpolate_cc(&c01a, c0, c1, 0.3, n);
1133
0
    code = cc2dc(cs, pgs, dev, &d01a, &c01a);
1134
0
    if (code < 0)
1135
0
        return code;
1136
0
    if (!is_dc_nearly_linear(dev, &d01a, &d[0], &d[1], 0.3, ndev, smoothness))
1137
0
        return 0;
1138
0
    interpolate_cc(&c01b, c0, c1, 0.7, n);
1139
0
    code = cc2dc(cs, pgs, dev, &d01b, &c01b);
1140
0
    if (code < 0)
1141
0
        return code;
1142
0
    if (!is_dc_nearly_linear(dev, &d01b, &d[0], &d[1], 0.7, ndev, smoothness))
1143
0
        return 0;
1144
0
    return 1;
1145
0
}
1146
1147
/* Default color mapping linearity check, a triangle case. */
1148
static int
1149
gx_cspace_is_linear_in_triangle(const gs_color_space *cs, const gs_gstate * pgs,
1150
                gx_device *dev,
1151
                const gs_client_color *c0, const gs_client_color *c1,
1152
                const gs_client_color *c2, float smoothness)
1153
0
{
1154
    /* We check 4 points - the median center, and middle points of 3 sides.
1155
       Hopely this is enough for reasonable color spaces and color renderings.
1156
       Note it gives 7 points for a quadrangle. */
1157
0
    gs_client_color c01, c12, c20, c012;
1158
0
    gx_device_color d[3], d01, d12, d20, d012;
1159
1160
    /* Note that the device and the client color space
1161
       can have a different number of components */
1162
1163
0
    int n = cs->type->num_components(cs);
1164
0
    uchar ndev = dev->color_info.num_components;
1165
1166
0
    int code;
1167
1168
0
    code = cc2dc(cs, pgs, dev, &d[0], c0);
1169
0
    if (code < 0)
1170
0
        return code;
1171
0
    code = cc2dc(cs, pgs, dev, &d[1], c1);
1172
0
    if (code < 0)
1173
0
        return code;
1174
0
    code = cc2dc(cs, pgs, dev, &d[2], c2);
1175
0
    if (code < 0)
1176
0
        return code;
1177
1178
0
    interpolate_cc(&c01, c0, c1, 0.5, n);
1179
0
    code = cc2dc(cs, pgs, dev, &d01, &c01);
1180
0
    if (code < 0)
1181
0
        return code;
1182
0
    if (!is_dc_nearly_linear(dev, &d01, &d[0], &d[1], 0.5, ndev, smoothness))
1183
0
        return 0;
1184
1185
0
    interpolate_cc(&c012, c2, &c01, 2.0 / 3, n);
1186
0
    code = cc2dc(cs, pgs, dev, &d012, &c012);
1187
0
    if (code < 0)
1188
0
        return code;
1189
0
    if (!is_dc_nearly_linear(dev, &d012, &d[2], &d01, 2.0 / 3, ndev, smoothness))
1190
0
        return 0;
1191
1192
0
    interpolate_cc(&c12, c1, c2, 0.5, n);
1193
0
    code = cc2dc(cs, pgs, dev, &d12, &c12);
1194
0
    if (code < 0)
1195
0
        return code;
1196
0
    if (!is_dc_nearly_linear(dev, &d12, &d[1], &d[2], 0.5, ndev, smoothness))
1197
0
        return 0;
1198
1199
0
    interpolate_cc(&c20, c2, c0, 0.5, n);
1200
0
    code = cc2dc(cs, pgs, dev, &d20, &c20);
1201
0
    if (code < 0)
1202
0
        return code;
1203
0
    if (!is_dc_nearly_linear(dev, &d20, &d[2], &d[0], 0.5, ndev, smoothness))
1204
0
        return 0;
1205
0
    return 1;
1206
0
}
1207
1208
/* Default color mapping linearity check. */
1209
int
1210
gx_cspace_is_linear_default(const gs_color_space *cs, const gs_gstate * pgs,
1211
                gx_device *dev,
1212
                const gs_client_color *c0, const gs_client_color *c1,
1213
                const gs_client_color *c2, const gs_client_color *c3,
1214
                float smoothness, gsicc_link_t *icclink)
1215
0
{
1216
    /* Assuming 2 <= nc <= 4. We don't need other cases. */
1217
    /* With nc == 4 assuming a convex plain quadrangle in the client color space. */
1218
0
    int code;
1219
1220
0
    if (!colors_are_separable_and_linear(&dev->color_info))
1221
0
        return_error(gs_error_rangecheck);
1222
0
    if (c2 == NULL)
1223
0
        return gx_cspace_is_linear_in_line(cs, pgs, dev, c0, c1, smoothness);
1224
0
    code = gx_cspace_is_linear_in_triangle(cs, pgs, dev, c0, c1, c2, smoothness);
1225
0
    if (code <= 0)
1226
0
        return code;
1227
0
    if (c3 == NULL)
1228
0
        return 1;
1229
0
    return gx_cspace_is_linear_in_triangle(cs, pgs, dev, c1, c2, c3, smoothness);
1230
0
}
1231
1232
/* Serialization. */
1233
int
1234
gx_serialize_cspace_type(const gs_color_space * pcs, stream * s)
1235
0
{
1236
0
    const gs_color_space_type * type = pcs->type;
1237
0
    uint n;
1238
0
    return sputs(s, (const byte *)&type->index, sizeof(type->index), &n);
1239
0
}
1240
1241
/* GC procedures */
1242
1243
static
1244
ENUM_PTRS_BEGIN_PROC(color_space_enum_ptrs)
1245
499k
{
1246
499k
    EV_CONST gs_color_space *pcs = vptr;
1247
1248
499k
    if (index == 0)
1249
99.9k
        return ENUM_OBJ(pcs->base_space);
1250
399k
    if (index == 1)
1251
99.9k
        return ENUM_OBJ(pcs->pclient_color_space_data);
1252
299k
    if (index == 2)
1253
99.9k
        return ENUM_OBJ(pcs->icc_equivalent);
1254
199k
    if (index == 3) {
1255
99.9k
        if (gs_color_space_get_index(pcs) == gs_color_space_index_DeviceN)
1256
0
            return ENUM_OBJ(pcs->params.device_n.devn_process_space);
1257
99.9k
        else
1258
99.9k
            return ENUM_OBJ(NULL);
1259
99.9k
    }
1260
1261
99.9k
    return ENUM_USING(*pcs->type->stype, vptr, size, index - 4);
1262
199k
    ENUM_PTRS_END_PROC
1263
199k
}
1264
static
1265
99.9k
RELOC_PTRS_WITH(color_space_reloc_ptrs, gs_color_space *pcs)
1266
99.9k
{
1267
99.9k
    RELOC_VAR(pcs->base_space);
1268
99.9k
    RELOC_VAR(pcs->pclient_color_space_data);
1269
99.9k
    RELOC_VAR(pcs->icc_equivalent);
1270
99.9k
    if (gs_color_space_get_index(pcs) == gs_color_space_index_DeviceN)
1271
99.9k
        RELOC_VAR(pcs->params.device_n.devn_process_space);
1272
99.9k
    RELOC_USING(*pcs->type->stype, vptr, size);
1273
99.9k
}
1274
99.9k
RELOC_PTRS_END