Coverage Report

Created: 2025-11-16 07:40

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/ghostpdl/base/gsstate.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
/* Miscellaneous graphics state operators for Ghostscript library */
18
#include "gx.h"
19
#include "memory_.h"
20
#include "gserrors.h"
21
#include "gsstruct.h"
22
#include "gsutil.h"             /* for gs_next_ids */
23
#include "gzstate.h"
24
#include "gxcspace.h"           /* here for gscolor2.h */
25
#include "gscolor2.h"
26
#include "gscoord.h"            /* for gs_initmatrix */
27
#include "gscie.h"
28
#include "gxclipsr.h"
29
#include "gxcmap.h"
30
#include "gxdevice.h"
31
#include "gxpcache.h"
32
#include "gzht.h"
33
#include "gzline.h"
34
#include "gspath.h"
35
#include "gzpath.h"
36
#include "gzcpath.h"
37
#include "gsovrc.h"
38
#include "gxcolor2.h"
39
#include "gscolor3.h" /* for gs_smoothness() */
40
#include "gxpcolor.h"
41
#include "gsicc_manage.h"
42
#include "gxdevsop.h"
43
44
/* Forward references */
45
static gs_gstate *gstate_alloc(gs_memory_t *, client_name_t,
46
                               const gs_gstate *);
47
static gs_gstate *gstate_clone_for_gsave(gs_gstate *,
48
                                         client_name_t);
49
static gs_gstate *gstate_clone_for_gstate(const gs_gstate *, gs_memory_t *,
50
                                          client_name_t);
51
static void gstate_free_contents(gs_gstate *);
52
static int gstate_copy(gs_gstate *, const gs_gstate *,
53
                        gs_gstate_copy_reason_t, client_name_t);
54
static void clip_stack_rc_adjust(gx_clip_stack_t *cs, int delta, client_name_t cname);
55
56
/*
57
 * Graphics state storage management is complicated.  There are many
58
 * different classes of storage associated with a graphics state:
59
 *
60
 * (1) The gstate object itself.  This includes some objects physically
61
 *      embedded within the gstate object, but because of garbage collection
62
 *      requirements, there are no embedded objects that can be
63
 *      referenced by non-transient pointers.  We assume that the gstate
64
 *      stack "owns" its gstates and that we can free the top gstate when
65
 *      doing a restore.
66
 *
67
 * (2) Objects that are referenced directly by the gstate and whose lifetime
68
 *      is independent of the gstate.  These are garbage collected, not
69
 *      reference counted, so we don't need to do anything special with them
70
 *      when manipulating gstates.  Currently this includes:
71
 *              font
72
 *
73
 * (3) Objects that are referenced directly by the gstate, may be shared
74
 *      among gstates, and should disappear when no gstates reference them.
75
 *      These fall into two groups:
76
 *
77
 *   (3a) Objects that are logically connected to individual gstates.
78
 *      We use reference counting to manage these.  Currently these are:
79
 *              halftone, dev_ht(4), cie_render, black_generation,
80
 *              undercolor_removal, set_transfer.*, cie_joint_caches,
81
 *              clip_stack, {opacity,shape}.mask
82
 *      effective_transfer.* may point to some of the same objects as
83
 *      set_transfer.*, but don't contribute to the reference count.
84
 *      Similarly, dev_color may point to the dev_ht object.  For
85
 *      simplicity, we initialize all of these pointers to 0 and then
86
 *      allocate the object itself when needed.
87
 *
88
 *   (3b) Objects whose lifetimes are associated with something else.
89
 *      Currently these are:
90
 *              pattern_cache, which is associated with the entire
91
 *                stack, is allocated when first needed, and currently
92
 *                is never freed;
93
 *              view_clip, which is associated with the current
94
 *                save level (effectively, with the gstate sub-stack
95
 *                back to the save) and is managed specially;
96
 *
97
 * (4) Objects that are referenced directly by exactly one gstate and that
98
 *      are not referenced (except transiently) from any other object.
99
 *      These fall into two groups:
100
 *
101
 *   (4b) Objects allocated individually, for the given reason:
102
 *              line_params.dash.pattern (variable-length),
103
 *              color_space, path, clip_path, effective_clip.path,
104
 *              ccolor, dev_color
105
 *                  (may be referenced from image enumerators or elsewhere)
106
 *
107
 *   (4b) The "client data" for a gstate.  For the interpreter, this is
108
 *      the refs associated with the gstate, such as the screen procedures.
109
 *      Client-supplied procedures manage client data.
110
 *
111
 * (5) Objects referenced indirectly from gstate objects of category (4),
112
 *      including objects that may also be referenced directly by the gstate.
113
 *      The individual routines that manipulate these are responsible
114
 *      for doing the right kind of reference counting or whatever.
115
 *      Currently:
116
 *              devices, path, clip_path, and (if different from both clip_path
117
 *                and view_clip) effective_clip.path require
118
 *                gx_path_assign/free, which uses a reference count;
119
 *              color_space and ccolor require cs_adjust_color/cspace_count
120
 *                or cs_adjust_counts, which use a reference count;
121
 *              dev_color has no references to storage that it owns.
122
 *      We count on garbage collection or restore to deallocate
123
 *        sub-objects of halftone.
124
 *
125
 * Note that when after a gsave, the existing gstate references the related
126
 * objects that we allocate at the same time, and the newly allocated gstate
127
 * references the old related objects.  Similarly, during a grestore, we
128
 * free the related objects referenced by the current gstate, but after the
129
 * grestore, we free the saved gstate, not the current one.  However, when
130
 * we allocate gstates off-stack, the newly allocated gstate does reference
131
 * the newly allocated component objects.  Note also that setgstate /
132
 * currentgstate may produce gstates in which different allocators own
133
 * different sub-objects; this is OK, because restore guarantees that there
134
 * won't be any dangling pointers (as long as we don't allow pointers from
135
 * global gstates to local objects).
136
 */
137
138
/*
139
 * Define these elements of the graphics state that are allocated
140
 * individually for each state, except for line_params.dash.pattern.
141
 * Note that effective_clip_shared is not on the list.
142
 */
143
typedef struct gs_gstate_parts_s {
144
    gx_path *path;
145
    gx_clip_path *clip_path;
146
    gx_clip_path *effective_clip_path;
147
    struct {
148
        gs_client_color *ccolor;
149
        gx_device_color *dev_color;
150
    } color[2];
151
} gs_gstate_parts;
152
153
#define GSTATE_ASSIGN_PARTS(pto, pfrom)\
154
150M
  ((pto)->path = (pfrom)->path, (pto)->clip_path = (pfrom)->clip_path,\
155
150M
   (pto)->effective_clip_path = (pfrom)->effective_clip_path,\
156
150M
   (pto)->color[0].ccolor = (pfrom)->color[0].ccolor,\
157
150M
   (pto)->color[0].dev_color = (pfrom)->color[0].dev_color,\
158
150M
   (pto)->color[1].ccolor = (pfrom)->color[1].ccolor,\
159
150M
   (pto)->color[1].dev_color = (pfrom)->color[1].dev_color)
160
161
extern_st(st_gs_gstate); /* for gstate_alloc() */
162
163
/* Copy client data, using the copy_for procedure if available, */
164
/* the copy procedure otherwise. */
165
static int
166
gstate_copy_client_data(const gs_gstate * pgs, void *dto, void *dfrom,
167
                        gs_gstate_copy_reason_t reason)
168
148M
{
169
148M
    return (pgs->client_procs.copy_for != 0 ?
170
0
            (*pgs->client_procs.copy_for) (dto, dfrom, reason) :
171
148M
            (*pgs->client_procs.copy) (dto, dfrom));
172
148M
}
173
174
/* ------ Operations on the entire graphics state ------ */
175
176
/*
177
 * Allocate a path for the graphics state.  We use stable memory because
178
 * some PostScript files have Type 3 fonts whose BuildChar procedure
179
 * uses the sequence save ... setcachedevice ... restore, and the path
180
 * built between the setcachedevice and the restore must not be freed.
181
 * If it weren't for this, we don't think stable memory would be needed.
182
 */
183
static gs_memory_t *
184
gstate_path_memory(gs_memory_t *mem)
185
75.6M
{
186
75.6M
    return gs_memory_stable(mem);
187
75.6M
}
188
189
/* Allocate and initialize a graphics state. */
190
gs_gstate *
191
gs_gstate_alloc(gs_memory_t * mem)
192
307k
{
193
307k
    gs_gstate *pgs = gstate_alloc(mem, "gs_gstate_alloc", NULL);
194
307k
    gs_memory_t *path_mem = gstate_path_memory(mem);
195
307k
    int code;
196
197
307k
    if (pgs == 0)
198
0
        return 0;
199
307k
    GS_STATE_INIT_VALUES(pgs, 1.0);
200
    /* Need to set up at least enough to make gs_gstate_free happy */
201
307k
    pgs->saved = 0;
202
307k
    pgs->clip_stack = NULL;
203
307k
    pgs->view_clip = NULL;
204
307k
    pgs->font = NULL;
205
307k
    pgs->root_font = NULL;
206
307k
    pgs->show_gstate = NULL;
207
307k
    pgs->device = NULL;
208
209
    /*
210
     * Just enough of the state is initialized at this point
211
     * that it's OK to call gs_gstate_free if an allocation fails.
212
     */
213
214
307k
    code = gs_gstate_initialize(pgs, mem);
215
307k
    if (code < 0)
216
0
        goto fail;
217
218
    /* Finish initializing the color rendering state. */
219
220
307k
    rc_alloc_struct_1(pgs->halftone, gs_halftone, &st_halftone, mem,
221
307k
                      goto fail, "gs_gstate_alloc(halftone)");
222
307k
    pgs->halftone->type = ht_type_none;
223
224
    /* Initialize other things not covered by initgraphics */
225
226
307k
    pgs->clip_stack = 0;
227
307k
    pgs->view_clip = gx_cpath_alloc(path_mem, "gs_gstate_alloc(view_clip)");
228
307k
    if (pgs->view_clip == NULL)
229
0
        goto fail;
230
307k
    pgs->view_clip->rule = 0;   /* no clipping */
231
307k
    pgs->effective_clip_id = pgs->clip_path->id;
232
307k
    pgs->effective_view_clip_id = gs_no_id;
233
307k
    pgs->in_cachedevice = 0;
234
307k
    pgs->device = 0;            /* setting device adjusts refcts */
235
307k
    code = gs_nulldevice(pgs);
236
307k
    if (code < 0)
237
0
        goto fail;
238
307k
    gs_setfillconstantalpha(pgs, 1.0);
239
307k
    gs_setstrokeconstantalpha(pgs, 1.0);
240
307k
    gs_setalphaisshape(pgs, false);
241
307k
    gs_settransfer(pgs, gs_identity_transfer);
242
307k
    gs_setflat(pgs, 1.0);
243
307k
    gs_setfilladjust(pgs, 0.3, 0.3);
244
307k
    gs_setlimitclamp(pgs, false);
245
307k
    gs_setstrokeadjust(pgs, true);
246
307k
    pgs->font = 0;              /* Not right, but acceptable until the */
247
    /* PostScript code does the first setfont. */
248
307k
    pgs->root_font = 0;         /* ditto */
249
307k
    pgs->in_charpath = (gs_char_path_mode) 0;
250
307k
    pgs->show_gstate = 0;
251
307k
    pgs->level = 0;
252
307k
    if (gs_initgraphics(pgs) >= 0)
253
307k
        return pgs;
254
    /* Something went very wrong. */
255
0
fail:
256
0
    gs_gstate_free(pgs);
257
0
    return 0;
258
307k
}
259
260
/* Set the client data in a graphics state. */
261
/* This should only be done to a newly created state. */
262
void
263
gs_gstate_set_client(gs_gstate * pgs, void *pdata,
264
                    const gs_gstate_client_procs * pprocs, bool client_has_pattern_streams)
265
1.36M
{
266
1.36M
    pgs->client_data = pdata;
267
1.36M
    pgs->client_procs = *pprocs;
268
1.36M
    pgs->have_pattern_streams = client_has_pattern_streams;
269
1.36M
}
270
271
/* Get the client data from a graphics state. */
272
#undef gs_gstate_client_data     /* gzstate.h makes this a macro */
273
void *
274
gs_gstate_client_data(const gs_gstate * pgs)
275
78.7M
{
276
78.7M
    return pgs->client_data;
277
78.7M
}
278
279
/* Free the chain of gstates.*/
280
void
281
gs_gstate_free_chain(gs_gstate * pgs)
282
35.4k
{
283
35.4k
   gs_gstate *saved = pgs, *tmp;
284
285
70.9k
   while(saved != 0) {
286
35.4k
       tmp = saved->saved;
287
35.4k
       gs_gstate_free(saved);
288
35.4k
       saved = tmp;
289
35.4k
   }
290
35.4k
}
291
292
/* Free a graphics state. */
293
void
294
gs_gstate_free(gs_gstate * pgs)
295
1.88M
{
296
1.88M
    if (pgs == NULL)
297
10.3k
        return;
298
1.87M
    gstate_free_contents(pgs);
299
1.87M
    gs_free_object(pgs->memory, pgs, "gs_gstate_free");
300
1.87M
}
301
302
/* Save the graphics state. */
303
int
304
gs_gsave(gs_gstate * pgs)
305
73.3M
{
306
73.3M
    gs_gstate *pnew = gstate_clone_for_gsave(pgs, "gs_gsave");
307
308
73.3M
    if (pnew == NULL)
309
4
        return_error(gs_error_VMerror);
310
    /* As of PLRM3, the interaction between gsave and the clip stack is
311
     * now clear. gsave stores the clip stack into the saved graphics
312
     * state, but then clears it in the current graphics state.
313
     *
314
     * Ordinarily, reference count rules would indicate an rc_decrement()
315
     * on pgs->clip_stack, but gstate_clone() has an exception for
316
     * the clip_stack field.
317
     */
318
73.3M
    pgs->clip_stack = NULL;
319
73.3M
    pgs->saved = pnew;
320
73.3M
    if (pgs->show_gstate == pgs)
321
0
        pgs->show_gstate = pnew->show_gstate = pnew;
322
73.3M
    pgs->trans_flags.xstate_change = false;
323
73.3M
    pgs->level++;
324
73.3M
    if_debug2m('g', pgs->memory, "[g]gsave -> "PRI_INTPTR", level = %d\n",
325
73.3M
              (intptr_t)pnew, pgs->level);
326
73.3M
    return 0;
327
73.3M
}
328
329
/*
330
 * Save the graphics state for a 'save'.
331
 * We cut the stack below the new gstate, and return the old one.
332
 * In addition to an ordinary gsave, we create a new view clip path.
333
 */
334
int
335
gs_gsave_for_save(gs_gstate * pgs, gs_gstate ** psaved)
336
1.34M
{
337
1.34M
    int code;
338
1.34M
    gx_clip_path *old_cpath = pgs->view_clip;
339
1.34M
    gx_clip_path *new_cpath;
340
341
1.34M
    if (old_cpath) {
342
1.34M
        new_cpath =
343
1.34M
            gx_cpath_alloc_shared(old_cpath, pgs->memory,
344
1.34M
                                  "gs_gsave_for_save(view_clip)");
345
1.34M
        if (new_cpath == 0)
346
0
            return_error(gs_error_VMerror);
347
1.34M
    } else {
348
0
        new_cpath = 0;
349
0
    }
350
1.34M
    code = gs_gsave(pgs);
351
1.34M
    if (code < 0)
352
3
        goto fail;
353
1.34M
    if (pgs->effective_clip_path == pgs->view_clip)
354
0
        pgs->effective_clip_path = new_cpath;
355
1.34M
    pgs->view_clip = new_cpath;
356
    /* Cut the stack so we can't grestore past here. */
357
1.34M
    *psaved = pgs->saved;
358
1.34M
    pgs->saved = 0;
359
360
1.34M
    code = gs_gsave(pgs);
361
1.34M
    if (code < 0) {
362
0
        pgs->saved = *psaved;
363
0
        *psaved = NULL;
364
0
        gs_grestore(pgs);
365
0
        return code;
366
0
    }
367
1.34M
    return code;
368
3
fail:
369
3
    if (new_cpath)
370
3
        gx_cpath_free(new_cpath, "gs_gsave_for_save(view_clip)");
371
3
    return code;
372
1.34M
}
373
374
/* Restore the graphics state. Can fully empty graphics stack */
375
int     /* return 0 if ok, 1 if stack was empty */
376
gs_grestore_only(gs_gstate * pgs)
377
73.1M
{
378
73.1M
    gs_gstate *saved = pgs->saved;
379
73.1M
    gs_gstate tmp_gstate;
380
73.1M
    void *pdata = pgs->client_data;
381
73.1M
    void *sdata;
382
383
73.1M
    if_debug2m('g', pgs->memory, "[g]grestore "PRI_INTPTR", level was %d\n",
384
73.1M
               (intptr_t)saved, pgs->level);
385
73.1M
    if (!saved)
386
0
        return 1;
387
73.1M
    sdata = saved->client_data;
388
73.1M
    if (saved->pattern_cache == 0)
389
115k
        saved->pattern_cache = pgs->pattern_cache;
390
    /* Swap back the client data pointers. */
391
73.1M
    pgs->client_data = sdata;
392
73.1M
    saved->client_data = pdata;
393
73.1M
    if (pdata != 0 && sdata != 0)
394
73.1M
        gstate_copy_client_data(pgs, pdata, sdata, copy_for_grestore);
395
73.1M
    gstate_free_contents(pgs);
396
73.1M
    tmp_gstate = *pgs;              /* temp after contents freed (with pointers zeroed) */
397
73.1M
    *pgs = *saved;
398
73.1M
    if (pgs->show_gstate == saved)
399
0
        pgs->show_gstate = pgs;
400
73.1M
    *saved = tmp_gstate;            /* restore "freed" state (pointers zeroed after contents freed) */
401
73.1M
    gs_free_object(pgs->memory, saved, "gs_grestore");
402
403
73.1M
    return 0;
404
73.1M
}
405
406
/* Restore the graphics state per PostScript semantics */
407
int
408
gs_grestore(gs_gstate * pgs)
409
73.0M
{
410
73.0M
    int code;
411
73.0M
    if (!pgs->saved)
412
0
        return gs_gsave(pgs);   /* shouldn't ever happen */
413
73.0M
    code = gs_grestore_only(pgs);
414
73.0M
    if (code < 0)
415
0
        return code;
416
417
    /* Wraparound: make sure there are always >= 1 saves on stack */
418
73.0M
    if (pgs->saved)
419
59.8M
        return 0;
420
13.1M
    return gs_gsave(pgs);
421
73.0M
}
422
423
/* Restore the graphics state for a 'restore', splicing the old stack */
424
/* back on.  Note that we actually do a grestoreall + 2 grestores. */
425
int
426
gs_grestoreall_for_restore(gs_gstate * pgs, gs_gstate * saved)
427
1.34M
{
428
1.34M
    int code;
429
430
2.26M
    while (pgs->saved->saved) {
431
913k
        code = gs_grestore(pgs);
432
913k
        if (code < 0)
433
0
            return code;
434
913k
    }
435
    /* Make sure we don't leave dangling pointers in the caches. */
436
1.34M
    if (pgs->pattern_cache)
437
1.34M
        (*pgs->pattern_cache->free_all) (pgs->pattern_cache);
438
1.34M
    pgs->saved->saved = saved;
439
1.34M
    code = gs_grestore(pgs);
440
1.34M
    if (code < 0)
441
0
        return code;
442
1.34M
    if (pgs->view_clip) {
443
1.34M
        gx_cpath_free(pgs->view_clip, "gs_grestoreall_for_restore");
444
1.34M
        pgs->view_clip = 0;
445
1.34M
    }
446
1.34M
    return gs_grestore(pgs);
447
1.34M
}
448
449
/* Restore to the bottommost graphics state (at this save level). */
450
int
451
gs_grestoreall(gs_gstate * pgs)
452
109
{
453
109
    if (!pgs->saved)            /* shouldn't happen */
454
0
        return gs_gsave(pgs);
455
109
    while (pgs->saved->saved) {
456
0
        int code = gs_grestore(pgs);
457
458
0
        if (code < 0)
459
0
            return code;
460
0
    }
461
109
    return gs_grestore(pgs);
462
109
}
463
464
/* Allocate and return a new graphics state. */
465
gs_gstate *
466
gs_gstate_copy(const gs_gstate * pgs, gs_memory_t * mem)
467
1.75M
{
468
1.75M
    gs_gstate *pnew;
469
470
1.75M
    pnew = gstate_clone_for_gstate(pgs, mem, "gs_gstate");
471
1.75M
    if (pnew == NULL)
472
0
        return NULL;
473
1.75M
    clip_stack_rc_adjust(pnew->clip_stack, 1, "gs_gstate_copy");
474
1.75M
    pnew->saved = NULL;
475
    /*
476
     * Prevent dangling references from the show_gstate pointer.  If
477
     * this context is its own show_gstate, set the pointer in the clone
478
     * to point to the clone; otherwise, set the pointer in the clone to
479
     * NULL, and let gs_setgstate fix it up.
480
     */
481
1.75M
    pnew->show_gstate =
482
1.75M
        (pgs->show_gstate == pgs ? pnew : NULL);
483
1.75M
    return pnew;
484
1.75M
}
485
486
/* Copy one previously allocated graphics state to another. */
487
int
488
gs_copygstate(gs_gstate * pto, const gs_gstate * pfrom)
489
0
{
490
0
    return gstate_copy(pto, pfrom, copy_for_copygstate, "gs_copygstate");
491
0
}
492
493
/* Copy the current graphics state to a previously allocated one. */
494
int
495
gs_currentgstate(gs_gstate * pto, const gs_gstate * pgs)
496
3
{
497
3
    int code =
498
3
        gstate_copy(pto, pgs, copy_for_currentgstate, "gs_currentgstate");
499
500
3
    if (code >= 0)
501
3
        pto->view_clip = 0;
502
3
    return code;
503
3
}
504
505
/* Restore the current graphics state from a previously allocated one. */
506
int
507
gs_setgstate(gs_gstate * pgs, const gs_gstate * pfrom)
508
79.5k
{
509
    /*
510
     * The implementation is the same as currentgstate,
511
     * except we must preserve the saved pointer, the level,
512
     * the view clip, and possibly the show_gstate.
513
     */
514
79.5k
    gs_gstate *saved_show = pgs->show_gstate;
515
79.5k
    int level = pgs->level;
516
79.5k
    gx_clip_path *view_clip = pgs->view_clip;
517
79.5k
    int code;
518
519
79.5k
    pgs->view_clip = 0;         /* prevent refcount decrementing */
520
79.5k
    code = gstate_copy(pgs, pfrom, copy_for_setgstate, "gs_setgstate");
521
79.5k
    if (code < 0)
522
0
        return code;
523
79.5k
    pgs->level = level;
524
79.5k
    pgs->view_clip = view_clip;
525
79.5k
    pgs->show_gstate =
526
79.5k
        (pgs->show_gstate == pfrom ? pgs : saved_show);
527
79.5k
    return 0;
528
79.5k
}
529
530
/* Get the allocator pointer of a graphics state. */
531
/* This is provided only for the interpreter */
532
/* and for color space implementation. */
533
gs_memory_t *
534
gs_gstate_memory(const gs_gstate * pgs)
535
348k
{
536
348k
    return pgs->memory;
537
348k
}
538
539
/* Get the saved pointer of the graphics state. */
540
/* This is provided only for Level 2 grestore. */
541
gs_gstate *
542
gs_gstate_saved(const gs_gstate * pgs)
543
23.1M
{
544
23.1M
    return pgs->saved;
545
23.1M
}
546
547
/* Swap the saved pointer of the graphics state. */
548
/* This is provided only for save/restore. */
549
gs_gstate *
550
gs_gstate_swap_saved(gs_gstate * pgs, gs_gstate * new_saved)
551
0
{
552
0
    gs_gstate *saved = pgs->saved;
553
554
0
    pgs->saved = new_saved;
555
0
    return saved;
556
0
}
557
558
/* Swap the memory pointer of the graphics state. */
559
/* This is provided only for the interpreter. */
560
gs_memory_t *
561
gs_gstate_swap_memory(gs_gstate * pgs, gs_memory_t * mem)
562
6
{
563
6
    gs_memory_t *memory = pgs->memory;
564
565
6
    pgs->memory = mem;
566
6
    return memory;
567
6
}
568
569
/* ------ Operations on components ------ */
570
571
/*
572
 * Push an overprint compositor onto the current device. Note that if
573
 * the current device already is an overprint compositor, the
574
 * composite will update its parameters but not create a new
575
 * compositor device.
576
 */
577
int
578
gs_gstate_update_overprint(gs_gstate * pgs, const gs_overprint_params_t * pparams)
579
2.01M
{
580
2.01M
    gs_composite_t *    pct = 0;
581
2.01M
    int                 code;
582
2.01M
    gx_device *         dev = pgs->device;
583
2.01M
    gx_device *         ovptdev;
584
585
2.01M
    code = gs_create_overprint(&pct, pparams, pgs->memory);
586
2.01M
    if (code >= 0) {
587
2.01M
        code = dev_proc(dev, composite)( dev,
588
2.01M
                                                   &ovptdev,
589
2.01M
                                                   pct,
590
2.01M
                                                   pgs,
591
2.01M
                                                   pgs->memory,
592
2.01M
                                                   NULL);
593
2.01M
        if (code >= 0 || code == gs_error_handled){
594
2.01M
            if (code == 1) {
595
0
                gx_set_device_only(pgs, ovptdev);
596
                /* Get rid of extra reference */
597
0
                rc_decrement(ovptdev, "gs_gstate_update_overprint(ovptdev)");
598
0
            }
599
2.01M
            code = 0;
600
2.01M
        }
601
2.01M
    }
602
2.01M
    if (pct != 0)
603
2.01M
        gs_free_object(pgs->memory, pct, "gs_gstate_update_overprint");
604
605
    /* the following hack handles devices that don't support compositors */
606
2.01M
    if (code == gs_error_unknownerror && !pparams->retain_any_comps)
607
0
        code = 0;
608
2.01M
    return code;
609
2.01M
}
610
611
/*
612
 * Reset the overprint mode for the current color space and color. This
613
 * routine should be called  whenever the current device (i.e.: color
614
 * model), overprint, overprint mode, color space, or color are modified.
615
 *
616
 * The need reason this routine must be called for changes in the current
617
 * color and must consider the current color involves the Pattern color
618
 * space. In that space, the "color" (pattern) can determine if the base
619
 * color space is used (PatternType 1 with PaintType 2), or may provide
620
 * is own color space (PatternType 1 with PaintType 1, PatternType 2).
621
 *
622
 * The most general situation (PatternType 1 with PaintType 1) cannot be
623
 * handled properly due to limitations of the pattern cache mechanism,
624
 * so in this case overprint is effectively disable by making all color
625
 * components "drawn".
626
 */
627
int
628
gs_do_set_overprint(gs_gstate * pgs)
629
1.00M
{
630
1.00M
    const gs_color_space *  pcs = gs_currentcolorspace_inline(pgs);
631
1.00M
    const gs_client_color * pcc = gs_currentcolor_inline(pgs);
632
1.00M
    int                     code = 0;
633
634
1.00M
    if (cs_num_components(pcs) < 0 && pcc->pattern != 0)
635
0
        code = pcc->pattern->type->procs.set_color(pcc, pgs);
636
1.00M
    else {
637
1.00M
        gx_device* dev = pgs->device;
638
1.00M
        cmm_dev_profile_t* dev_profile;
639
1.00M
        gs_color_space_index pcs_index = gs_color_space_get_index(pcs);
640
641
1.00M
        dev_proc(dev, get_profile)(dev, &dev_profile);
642
1.00M
        if (dev_profile->overprint_control == gs_overprint_control_disable)
643
0
            return code;
644
645
        /* Transparency device that supports spots and where we have
646
           sep or devicen colors needs special consideration if the device
647
           is in a additive blend mode.  This could
648
           be written more compactly, but it would be unreadable. */
649
1.00M
        if (dev_proc(dev, dev_spec_op)(dev, gxdso_pdf14_sep_device, NULL, 0) &&
650
292k
            (dev->color_info.polarity != GX_CINFO_POLARITY_SUBTRACTIVE)) {
651
290k
            if (pcs_index == gs_color_space_index_Separation) {
652
13.8k
                if (!(pcs->params.separation.color_type == SEP_MIX ||
653
0
                      pcs->params.separation.color_type == SEP_ENUM)) {
654
                    /* Sep color is not a spot color.  We can't do OP and trans */
655
0
                    return code;
656
0
                }
657
277k
            } else if (pcs_index == gs_color_space_index_DeviceN) {
658
0
                if (pcs->params.device_n.color_type != SEP_PURE_SPOT) {
659
                    /* DeviceN has process colors  We can't do OP and trans. */
660
0
                    return code;
661
0
                }
662
0
            }
663
290k
        }
664
665
        /* If we have a CIE-based space, use the ICC equivalent space */
666
1.00M
        if (gs_color_space_is_PSCIE(pcs) && pcs->icc_equivalent != NULL)
667
0
            pcs = pcs->icc_equivalent;
668
669
        /* The spaces that do not allow opm (e.g. ones that are not ICC or DeviceCMYK)
670
           will blow away any true setting later. But we have to be prepared
671
           in case this is a CMYK ICC space for example. Hence we set effective mode
672
           to mode here (Bug 698721)*/
673
1.00M
        pgs->color[0].effective_opm = pgs->overprint_mode;
674
675
1.00M
        if_debug2m(gs_debug_flag_overprint, pgs->memory,
676
1.00M
            "[overprint] gs_do_set_overprint. Preset effective mode. pgs->color[0].effective_opm = %d pgs->color[1].effective_opm = %d\n",
677
1.00M
            pgs->color[0].effective_opm, pgs->color[1].effective_opm);
678
679
1.00M
        pcs->type->set_overprint(pcs, pgs);
680
1.00M
    }
681
1.00M
    return code;
682
1.00M
}
683
684
/* setoverprint (non-stroke case) interpreter code
685
   ensures that this is called when appropriate. This
686
   should only be coming when we are doing PS files.
687
   As they don't have separate stroke and fill overprint
688
   controls */
689
void
690
gs_setoverprint(gs_gstate * pgs, bool ovp)
691
2.66M
{
692
2.66M
    pgs->overprint = ovp;
693
2.66M
    pgs->stroke_overprint = ovp;
694
2.66M
}
695
696
/* currentoverprint */
697
bool
698
gs_currentoverprint(const gs_gstate * pgs)
699
1.33M
{
700
1.33M
    return pgs->overprint;
701
1.33M
}
702
703
/* setstrokeoverprint */
704
void
705
gs_setstrokeoverprint(gs_gstate * pgs, bool ovp)
706
538k
{
707
538k
    pgs->stroke_overprint = ovp;
708
538k
}
709
710
/* currentstrokeoverprint */
711
bool
712
gs_currentstrokeoverprint(const gs_gstate * pgs)
713
36.8k
{
714
36.8k
    return pgs->stroke_overprint;
715
36.8k
}
716
717
/* setstrokeoverprint */
718
void
719
gs_setfilloverprint(gs_gstate * pgs, bool ovp)
720
539k
{
721
539k
    pgs->overprint = ovp;
722
539k
}
723
724
/* currentstrokeoverprint */
725
bool
726
gs_currentfilloverprint(const gs_gstate * pgs)
727
48.7k
{
728
48.7k
    return pgs->overprint;
729
48.7k
}
730
731
/* setoverprintmode */
732
int
733
gs_setoverprintmode(gs_gstate * pgs, int mode)
734
508k
{
735
508k
    if (mode < 0 || mode > 1)
736
13
        return_error(gs_error_rangecheck);
737
508k
    pgs->overprint_mode = mode;
738
739
508k
    return 0;
740
508k
}
741
742
/* currentoverprintmode */
743
int
744
gs_currentoverprintmode(const gs_gstate * pgs)
745
2
{
746
2
    return pgs->overprint_mode;
747
2
}
748
749
void
750
gs_setcpsimode(gs_memory_t *mem, bool mode)
751
0
{
752
0
    gs_lib_ctx_t *libctx = gs_lib_ctx_get_interp_instance(mem);
753
754
0
    libctx->core->CPSI_mode = mode;
755
0
}
756
757
/* currentcpsimode */
758
bool
759
gs_currentcpsimode(const gs_memory_t * mem)
760
726M
{
761
726M
    gs_lib_ctx_t *libctx = gs_lib_ctx_get_interp_instance(mem);
762
763
726M
    return libctx->core->CPSI_mode;
764
726M
}
765
766
/* The edgebuffer based scanconverter can only cope with values of 0
767
 * or 0.5 (i.e. 'center of pixel' or 'any part of pixel'). These
768
 * are the only values required for correct behaviour according to
769
 * the PDF and PS specs. Therefore, if we are using the edgebuffer
770
 * based scan converter, force these values. */
771
static void
772
sanitize_fill_adjust(gs_gstate * pgs)
773
501k
{
774
501k
    int scanconverter = gs_getscanconverter(pgs->memory);
775
501k
    if (scanconverter >= GS_SCANCONVERTER_EDGEBUFFER || (GS_SCANCONVERTER_DEFAULT_IS_EDGEBUFFER && scanconverter == GS_SCANCONVERTER_DEFAULT)) {
776
501k
        fixed adjust = (pgs->fill_adjust.x >= float2fixed(0.25) || pgs->fill_adjust.y >= float2fixed(0.25) ? fixed_half : 0);
777
501k
        pgs->fill_adjust.x = adjust;
778
501k
        pgs->fill_adjust.y = adjust;
779
501k
    }
780
501k
}
781
782
void
783
gs_setscanconverter(gs_gstate * gs, int converter)
784
0
{
785
0
    gs_lib_ctx_t *libctx = gs_lib_ctx_get_interp_instance(gs->memory);
786
787
0
    libctx->core->scanconverter = converter;
788
789
0
    sanitize_fill_adjust(gs);
790
0
}
791
792
/* getscanconverter */
793
int
794
gs_getscanconverter(const gs_memory_t * mem)
795
26.7M
{
796
26.7M
    gs_lib_ctx_t *libctx = gs_lib_ctx_get_interp_instance(mem);
797
798
26.7M
    return libctx->core->scanconverter;
799
26.7M
}
800
801
/* setrenderingintent
802
 *
803
 *  Use ICC numbers from Table 18 (section 6.1.11) rather than the PDF order
804
 *  to reduce re-coding and confusion.
805
 *    Perceptual            0
806
 *    Relative Colorimetric 1
807
 *    Saturation            2
808
 *    AbsoluteColorimetric  3
809
 */
810
int
811
185k
gs_setrenderingintent(gs_gstate *pgs, int ri) {
812
185k
    if (ri < 0 || ri > 3)
813
0
        return_error(gs_error_rangecheck);
814
185k
    pgs->renderingintent = ri;
815
185k
    return 0;
816
185k
}
817
818
/* currentrenderingintent */
819
int
820
gs_currentrenderingintent(const gs_gstate * pgs)
821
0
{
822
0
    return pgs->renderingintent;
823
0
}
824
825
int
826
0
gs_setblackptcomp(gs_gstate *pgs, bool bkpt) {
827
0
    pgs->blackptcomp = bkpt;
828
0
    return 0;
829
0
}
830
831
/* currentrenderingintent */
832
bool
833
gs_currentblackptcomp(const gs_gstate * pgs)
834
0
{
835
0
    return pgs->blackptcomp;
836
0
}
837
838
/*
839
 * Reset most of the graphics state.
840
 */
841
int
842
gs_initgraphics(gs_gstate * pgs)
843
1.51M
{
844
1.51M
    int code;
845
1.51M
    const gs_gstate gstate_initial = {
846
1.51M
            gs_gstate_initial(1.0)
847
1.51M
        };
848
1.51M
    gs_matrix m;
849
1.51M
    gs_make_identity(&m);
850
851
1.51M
    gs_initmatrix(pgs);
852
1.51M
    if ((code = gs_newpath(pgs)) < 0 ||
853
1.51M
        (code = gs_initclip(pgs)) < 0 ||
854
1.51M
        (code = gs_setlinewidth(pgs, 1.0)) < 0 ||
855
1.51M
        (code = gs_setlinestartcap(pgs, gstate_initial.line_params.start_cap)) < 0 ||
856
1.51M
        (code = gs_setlineendcap(pgs, gstate_initial.line_params.end_cap)) < 0 ||
857
1.51M
        (code = gs_setlinedashcap(pgs, gstate_initial.line_params.dash_cap)) < 0 ||
858
1.51M
        (code = gs_setlinejoin(pgs, gstate_initial.line_params.join)) < 0 ||
859
1.51M
        (code = gs_setcurvejoin(pgs, gstate_initial.line_params.curve_join)) < 0 ||
860
1.51M
        (code = gs_setdash(pgs, (float *)0, 0, 0.0)) < 0 ||
861
1.51M
        (gs_setdashadapt(pgs, false),
862
1.51M
         (code = gs_setdotlength(pgs, 0.0, false))) < 0 ||
863
1.51M
        (code = gs_setdotorientation(pgs)) < 0 ||
864
1.51M
        (code = gs_setmiterlimit(pgs, gstate_initial.line_params.miter_limit)) < 0
865
1.51M
        )
866
0
        return code;
867
1.51M
    gs_init_rop(pgs);
868
    /* Initialize things so that gx_remap_color won't crash. */
869
1.51M
    if (pgs->icc_manager->default_gray == 0x00) {
870
192k
        gs_color_space  *pcs1, *pcs2;
871
872
192k
        pcs1 = gs_cspace_new_DeviceGray(pgs->memory);
873
192k
        if (pcs1 == NULL)
874
0
            return_error(gs_error_unknownerror);
875
876
192k
        if (pgs->color[0].color_space != NULL) {
877
0
            gs_setcolorspace(pgs, pcs1);
878
0
            rc_decrement_cs(pcs1, "gs_initgraphics");
879
192k
        } else {
880
192k
            pgs->color[0].color_space = pcs1;
881
192k
            gs_setcolorspace(pgs, pcs1);
882
192k
        }
883
192k
        code = gx_set_dev_color(pgs);
884
192k
        if (code < 0)
885
0
            return code;
886
887
192k
        gs_swapcolors_quick(pgs); /* To color 1 */
888
889
192k
        pcs2 = gs_cspace_new_DeviceGray(pgs->memory);
890
192k
        if (pcs2 == NULL)
891
0
            return_error(gs_error_unknownerror);
892
893
192k
        if (pgs->color[0].color_space != NULL) {
894
0
            gs_setcolorspace(pgs, pcs2);
895
0
            rc_decrement_cs(pcs2, "gs_initgraphics");
896
192k
        } else {
897
192k
            pgs->color[0].color_space = pcs2;
898
192k
            gs_setcolorspace(pgs, pcs2);
899
192k
        }
900
192k
        code = gx_set_dev_color(pgs);
901
902
192k
        gs_swapcolors_quick(pgs); /* To color 0 */
903
904
192k
        if (code < 0)
905
0
            return code;
906
907
1.32M
    } else {
908
1.32M
        gs_color_space  *pcs1, *pcs2;
909
910
1.32M
        pcs1 = gs_cspace_new_ICC(pgs->memory, pgs, 1);
911
1.32M
        if (pcs1 == NULL)
912
0
            return_error(gs_error_unknownerror);
913
914
1.32M
        if (pgs->color[0].color_space != NULL) {
915
1.20M
            gs_setcolorspace(pgs, pcs1);
916
1.20M
            rc_decrement_cs(pcs1, "gs_initgraphics");
917
1.20M
        } else {
918
115k
            pgs->color[0].color_space = pcs1;
919
115k
            gs_setcolorspace(pgs, pcs1);
920
115k
        }
921
1.32M
        code = gx_set_dev_color(pgs);
922
1.32M
        if (code < 0)
923
0
            return code;
924
925
1.32M
        gs_swapcolors_quick(pgs); /* To color 1 */
926
1.32M
        pcs2 = gs_cspace_new_ICC(pgs->memory, pgs, 1);
927
1.32M
        if (pcs2 == NULL)
928
0
            return_error(gs_error_unknownerror);
929
930
1.32M
        if (pgs->color[0].color_space != NULL) {
931
1.20M
            gs_setcolorspace(pgs, pcs2);
932
1.20M
            rc_decrement_cs(pcs2, "gs_initgraphics");
933
1.20M
        } else {
934
115k
            pgs->color[0].color_space = pcs2;
935
115k
            gs_setcolorspace(pgs, pcs2);
936
115k
        }
937
1.32M
        code = gx_set_dev_color(pgs);
938
939
1.32M
        gs_swapcolors_quick(pgs); /* To color 0 */
940
941
1.32M
        if (code < 0)
942
0
            return code;
943
1.32M
    }
944
1.51M
    pgs->in_cachedevice = 0;
945
946
1.51M
    code = gs_settextspacing(pgs, (double)0.0);
947
1.51M
    if (code < 0)
948
0
        goto exit;
949
1.51M
    code = gs_settextleading(pgs, (double)0.0);
950
1.51M
    if (code < 0)
951
0
        goto exit;
952
953
1.51M
    gs_settextrenderingmode(pgs, 0);
954
955
1.51M
    code = gs_setwordspacing(pgs, (double)0.0);
956
1.51M
    if (code < 0)
957
0
        goto exit;
958
1.51M
    code = gs_settexthscaling(pgs, (double)100.0);
959
1.51M
    if (code < 0)
960
0
        goto exit;
961
962
1.51M
    gs_setaccuratecurves(pgs, true);
963
964
1.51M
    code = gs_setstrokeconstantalpha(pgs, 1.0);
965
1.51M
    if (code < 0)
966
0
        goto exit;
967
1.51M
    code = gs_setfillconstantalpha(pgs, 1.0);
968
1.51M
    if (code < 0)
969
0
        goto exit;
970
1.51M
    code = gs_setalphaisshape(pgs, 0);
971
1.51M
    if (code < 0)
972
0
        goto exit;
973
1.51M
    code = gs_setblendmode(pgs, BLEND_MODE_Compatible);
974
1.51M
    if (code < 0)
975
0
        goto exit;
976
1.51M
    code = gs_settextknockout(pgs, true);
977
1.51M
    if (code < 0)
978
0
        goto exit;
979
1.51M
    code = gs_setsmoothness(pgs, 0.02); /* Match gs code */
980
1.51M
    if (code < 0)
981
0
        goto exit;
982
983
1.51M
    code = gs_settextmatrix(pgs, &m);
984
1.51M
    if (code < 0)
985
0
        goto exit;
986
987
1.51M
    code = gs_settextlinematrix(pgs, &m);
988
1.51M
    if (code < 0)
989
0
        goto exit;
990
1.51M
exit:
991
1.51M
    return code;
992
1.51M
}
993
994
/* setfilladjust */
995
int
996
gs_setfilladjust(gs_gstate * pgs, double adjust_x, double adjust_y)
997
501k
{
998
501k
#define CLAMP_TO_HALF(v)\
999
1.00M
    ((v) <= 0 ? fixed_0 : (v) >= 0.5 ? fixed_half : float2fixed(v));
1000
1001
501k
    pgs->fill_adjust.x = CLAMP_TO_HALF(adjust_x);
1002
501k
    pgs->fill_adjust.y = CLAMP_TO_HALF(adjust_y);
1003
1004
501k
    sanitize_fill_adjust(pgs);
1005
1006
501k
    return 0;
1007
501k
#undef CLAMP_TO_HALF
1008
501k
}
1009
1010
/* currentfilladjust */
1011
int
1012
gs_currentfilladjust(const gs_gstate * pgs, gs_point * adjust)
1013
517k
{
1014
517k
    adjust->x = fixed2float(pgs->fill_adjust.x);
1015
517k
    adjust->y = fixed2float(pgs->fill_adjust.y);
1016
517k
    return 0;
1017
517k
}
1018
1019
/* setlimitclamp */
1020
void
1021
gs_setlimitclamp(gs_gstate * pgs, bool clamp)
1022
615k
{
1023
615k
    pgs->clamp_coordinates = clamp;
1024
615k
}
1025
1026
/* currentlimitclamp */
1027
bool
1028
gs_currentlimitclamp(const gs_gstate * pgs)
1029
0
{
1030
0
    return pgs->clamp_coordinates;
1031
0
}
1032
1033
/* settextrenderingmode */
1034
void
1035
gs_settextrenderingmode(gs_gstate * pgs, uint trm)
1036
2.51M
{
1037
2.51M
    pgs->text_rendering_mode = trm;
1038
2.51M
}
1039
1040
/* currenttextrenderingmode */
1041
uint
1042
gs_currenttextrenderingmode(const gs_gstate * pgs)
1043
41.9M
{
1044
41.9M
    return pgs->text_rendering_mode;
1045
41.9M
}
1046
1047
double
1048
gs_currenttextspacing(const gs_gstate *pgs)
1049
26.8M
{
1050
26.8M
    return pgs->textspacing;
1051
26.8M
}
1052
1053
int
1054
gs_settextspacing(gs_gstate *pgs, double Tc)
1055
2.61M
{
1056
2.61M
    int code = 0;
1057
2.61M
    gs_fixed_point dxy;
1058
1059
2.61M
    code = gs_distance_transform2fixed(&pgs->ctm, Tc, 1, &dxy);
1060
2.61M
    if (code < 0)
1061
7.65k
        return code;
1062
1063
2.61M
    pgs->textspacing = (float)Tc;
1064
2.61M
    return 0;
1065
2.61M
}
1066
1067
double
1068
gs_currenttextleading(const gs_gstate *pgs)
1069
0
{
1070
0
    return pgs->textleading;
1071
0
}
1072
1073
int
1074
gs_settextleading(gs_gstate *pgs, double TL)
1075
2.09M
{
1076
2.09M
    pgs->textleading = (float)TL;
1077
2.09M
    return 0;
1078
2.09M
}
1079
1080
double
1081
gs_currenttextrise(const gs_gstate *pgs)
1082
0
{
1083
0
    return pgs->textrise;
1084
0
}
1085
1086
int
1087
gs_settextrise(gs_gstate *pgs, double Ts)
1088
5.91k
{
1089
5.91k
    pgs->textrise = (float)Ts;
1090
5.91k
    return 0;
1091
5.91k
}
1092
1093
double
1094
gs_currentwordspacing(const gs_gstate *pgs)
1095
26.8M
{
1096
26.8M
    return pgs->wordspacing;
1097
26.8M
}
1098
1099
int
1100
gs_setwordspacing(gs_gstate *pgs, double Tw)
1101
1.73M
{
1102
1.73M
    pgs->wordspacing = (float)Tw;
1103
1.73M
    return 0;
1104
1.73M
}
1105
1106
int
1107
gs_settexthscaling(gs_gstate *pgs, double Tz)
1108
1.80M
{
1109
1.80M
    pgs->texthscaling = (float)Tz;
1110
1.80M
    return 0;
1111
1.80M
}
1112
1113
double
1114
gs_currenttexthscaling(const gs_gstate *pgs)
1115
0
{
1116
0
    return pgs->texthscaling;
1117
0
}
1118
1119
int
1120
gs_setPDFfontsize(gs_gstate *pgs, double Tf)
1121
2.52M
{
1122
2.52M
    pgs->PDFfontsize = (float)Tf;
1123
2.52M
    return 0;
1124
2.52M
}
1125
1126
double
1127
gs_currentPDFfontsize(const gs_gstate *pgs)
1128
0
{
1129
0
    return pgs->PDFfontsize;
1130
0
}
1131
1132
int
1133
gs_settextlinematrix(gs_gstate *pgs, gs_matrix *m)
1134
11.7M
{
1135
11.7M
    pgs->textlinematrix.xx = m->xx;
1136
11.7M
    pgs->textlinematrix.xy = m->xy;
1137
11.7M
    pgs->textlinematrix.yx = m->yx;
1138
11.7M
    pgs->textlinematrix.yy = m->yy;
1139
11.7M
    pgs->textlinematrix.tx = m->tx;
1140
11.7M
    pgs->textlinematrix.ty = m->ty;
1141
11.7M
    return 0;
1142
11.7M
}
1143
int
1144
gs_gettextlinematrix(gs_gstate *pgs, gs_matrix *m)
1145
0
{
1146
0
    m->xx = pgs->textlinematrix.xx;
1147
0
    m->xy = pgs->textlinematrix.xy;
1148
0
    m->yx = pgs->textlinematrix.yx;
1149
0
    m->yy = pgs->textlinematrix.yy;
1150
0
    m->tx = pgs->textlinematrix.tx;
1151
0
    m->ty = pgs->textlinematrix.ty;
1152
0
    return 0;
1153
0
}
1154
1155
int
1156
gs_settextmatrix(gs_gstate *pgs, gs_matrix *m)
1157
11.7M
{
1158
11.7M
    pgs->textmatrix.xx = m->xx;
1159
11.7M
    pgs->textmatrix.xy = m->xy;
1160
11.7M
    pgs->textmatrix.yx = m->yx;
1161
11.7M
    pgs->textmatrix.yy = m->yy;
1162
11.7M
    pgs->textmatrix.tx = m->tx;
1163
11.7M
    pgs->textmatrix.ty = m->ty;
1164
11.7M
    return 0;
1165
11.7M
}
1166
int
1167
gs_gettextmatrix(gs_gstate *pgs, gs_matrix *m)
1168
0
{
1169
0
    m->xx = pgs->textmatrix.xx;
1170
0
    m->xy = pgs->textmatrix.xy;
1171
0
    m->yx = pgs->textmatrix.yx;
1172
0
    m->yy = pgs->textmatrix.yy;
1173
0
    m->tx = pgs->textmatrix.tx;
1174
0
    m->ty = pgs->textmatrix.ty;
1175
0
    return 0;
1176
0
}
1177
1178
1179
/* sethpglpathmode */
1180
void
1181
gs_sethpglpathmode(gs_gstate * pgs, bool path)
1182
0
{
1183
0
    pgs->hpgl_path_mode = path;
1184
0
}
1185
1186
/* currenthpglpathmode */
1187
bool
1188
gs_currenthpglpathmode(const gs_gstate * pgs)
1189
0
{
1190
0
    return pgs->hpgl_path_mode;
1191
0
}
1192
1193
/* ------ Internal routines ------ */
1194
1195
/* Free the privately allocated parts of a gstate. */
1196
static void
1197
gstate_free_parts(gs_gstate * parts, gs_memory_t * mem, client_name_t cname)
1198
150M
{
1199
150M
    gs_free_object(mem, parts->color[1].dev_color, cname);
1200
150M
    gs_free_object(mem, parts->color[1].ccolor, cname);
1201
150M
    gs_free_object(mem, parts->color[0].dev_color, cname);
1202
150M
    gs_free_object(mem, parts->color[0].ccolor, cname);
1203
150M
    parts->color[1].dev_color = 0;
1204
150M
    parts->color[1].ccolor = 0;
1205
150M
    parts->color[0].dev_color = 0;
1206
150M
    parts->color[0].ccolor = 0;
1207
150M
    if (!parts->effective_clip_shared && parts->effective_clip_path) {
1208
0
        gx_cpath_free(parts->effective_clip_path, cname);
1209
0
        parts->effective_clip_path = 0;
1210
0
    }
1211
150M
    gx_cpath_free(parts->clip_path, cname);
1212
150M
    parts->clip_path = 0;
1213
150M
    if (parts->path) {
1214
75.3M
        gx_path_free(parts->path, cname);
1215
75.3M
        parts->path = 0;
1216
75.3M
    }
1217
150M
}
1218
1219
static inline void
1220
gstate_parts_init_dev_color(gx_device_color *dc)
1221
150M
{
1222
150M
    gx_device_color_type dct = dc->type;
1223
150M
    gs_graphics_type_tag_t gtt = dc->tag;
1224
150M
    memset(dc, 0x00, sizeof(gx_device_color));
1225
150M
    dc->type = dct;
1226
150M
    dc->tag = gtt;
1227
150M
}
1228
1229
/* Allocate the privately allocated parts of a gstate. */
1230
static int
1231
gstate_alloc_parts(gs_gstate * parts, const gs_gstate * shared,
1232
                   gs_memory_t * mem, client_name_t cname)
1233
75.3M
{
1234
75.3M
    gs_memory_t *path_mem = gstate_path_memory(mem);
1235
1236
75.3M
    parts->path =
1237
75.3M
        (shared ?
1238
75.0M
         gx_path_alloc_shared(shared->path, path_mem,
1239
75.0M
                              "gstate_alloc_parts(path)") :
1240
75.3M
         gx_path_alloc(path_mem, "gstate_alloc_parts(path)"));
1241
75.3M
    parts->clip_path =
1242
75.3M
        (shared ?
1243
75.0M
         gx_cpath_alloc_shared(shared->clip_path, mem,
1244
75.0M
                               "gstate_alloc_parts(clip_path)") :
1245
75.3M
         gx_cpath_alloc(mem, "gstate_alloc_parts(clip_path)"));
1246
75.3M
    if (!shared || shared->effective_clip_shared) {
1247
75.3M
        parts->effective_clip_path = parts->clip_path;
1248
75.3M
        parts->effective_clip_shared = true;
1249
75.3M
    } else {
1250
0
        parts->effective_clip_path =
1251
0
            gx_cpath_alloc_shared(shared->effective_clip_path, mem,
1252
0
                                  "gstate_alloc_parts(effective_clip_path)");
1253
0
        parts->effective_clip_shared = false;
1254
0
    }
1255
75.3M
    parts->color[0].color_space = NULL;
1256
75.3M
    parts->color[1].color_space = NULL;
1257
75.3M
    parts->color[0].ccolor =
1258
75.3M
        gs_alloc_struct(mem, gs_client_color, &st_client_color, cname);
1259
75.3M
    parts->color[1].ccolor =
1260
75.3M
        gs_alloc_struct(mem, gs_client_color, &st_client_color, cname);
1261
75.3M
    parts->color[0].dev_color =
1262
75.3M
        gs_alloc_struct(mem, gx_device_color, &st_device_color, cname);
1263
75.3M
    parts->color[1].dev_color =
1264
75.3M
        gs_alloc_struct(mem, gx_device_color, &st_device_color, cname);
1265
75.3M
    if (parts->path == 0 || parts->clip_path == 0 ||
1266
75.3M
        parts->effective_clip_path == 0 ||
1267
75.3M
        parts->color[0].ccolor == 0 || parts->color[0].dev_color == 0 ||
1268
75.3M
        parts->color[1].ccolor == 0 || parts->color[1].dev_color == 0
1269
75.3M
        ) {
1270
3
        gstate_free_parts(parts, mem, cname);
1271
3
        return_error(gs_error_VMerror);
1272
3
    }
1273
75.3M
    gstate_parts_init_dev_color(parts->color[0].dev_color);
1274
75.3M
    gstate_parts_init_dev_color(parts->color[1].dev_color);
1275
75.3M
    return 0;
1276
75.3M
}
1277
1278
/*
1279
 * Allocate a gstate and its contents.
1280
 * If pfrom is not NULL, the path, clip_path, and (if distinct from both
1281
 * clip_path and view_clip) effective_clip_path share the segments of
1282
 * pfrom's corresponding path(s).
1283
 */
1284
static gs_gstate *
1285
gstate_alloc(gs_memory_t * mem, client_name_t cname, const gs_gstate * pfrom)
1286
75.3M
{
1287
75.3M
    gs_gstate *pgs =
1288
75.3M
        gs_alloc_struct(mem, gs_gstate, &st_gs_gstate, cname);
1289
1290
75.3M
    if (pgs == NULL)
1291
1
        return NULL;
1292
75.3M
    memset(pgs, 0x00, sizeof(gs_gstate));
1293
75.3M
    if (gstate_alloc_parts(pgs, pfrom, mem, cname) < 0) {
1294
3
        gs_free_object(mem, pgs, cname);
1295
3
        return NULL;
1296
3
    }
1297
75.3M
    pgs->memory = mem;
1298
75.3M
    return pgs;
1299
75.3M
}
1300
1301
/* Copy the dash pattern from one gstate to another. */
1302
static int
1303
gstate_copy_dash(gs_memory_t *mem, gx_dash_params *dash , const gs_gstate * pfrom)
1304
349k
{
1305
349k
    return gx_set_dash(dash, pfrom->line_params.dash.pattern,
1306
349k
                      pfrom->line_params.dash.pattern_size,
1307
349k
                      pfrom->line_params.dash.offset, mem);
1308
349k
}
1309
1310
typedef struct {
1311
    gs_gstate_parts  parts;
1312
    gx_dash_params   dash;
1313
} gs_gstate_clone_data;
1314
1315
static gs_gstate *
1316
gstate_clone_core(const gs_gstate               *pfrom,
1317
                        gs_memory_t             *mem,
1318
                        client_name_t            cname,
1319
                        gs_gstate_clone_data    *clone_data,
1320
                        gs_gstate_copy_reason_t  reason)
1321
75.0M
{
1322
75.0M
    gs_gstate *pgs = gstate_alloc(mem, cname, pfrom);
1323
75.0M
    void *pdata = NULL;
1324
1325
75.0M
    if (pgs == NULL)
1326
4
        return NULL;
1327
75.0M
    if (pfrom->client_data != NULL) {
1328
74.9M
        pdata = (*pfrom->client_procs.alloc) (mem);
1329
1330
74.9M
        if (pdata == NULL ||
1331
74.9M
            gstate_copy_client_data(pfrom, pdata, pfrom->client_data,
1332
74.9M
                                    reason) < 0)
1333
0
            goto failEarly;
1334
74.9M
    }
1335
    /* Copy the dash and dash pattern if necessary. */
1336
75.0M
    clone_data->dash = gs_currentlineparams_inline(pfrom)->dash;
1337
75.0M
    if (clone_data->dash.pattern) {
1338
348k
        int code;
1339
1340
348k
        clone_data->dash.pattern = NULL; /* Ensures a fresh allocation */
1341
348k
        code = gstate_copy_dash(mem, &clone_data->dash, pfrom);
1342
348k
        if (code < 0)
1343
0
            goto fail;
1344
348k
    }
1345
    /* Some records within pgs are allocated. We copy pfrom into pgs
1346
     * wholesale (to avoid problems with the structure being updated and
1347
     * us having to keep it in sync), so we copy those allocated regions
1348
     * out first. The caller of this routine will then put them back
1349
     * into either pgs or pfrom as appropriate. */
1350
75.0M
    GSTATE_ASSIGN_PARTS(&clone_data->parts, pgs);
1351
75.0M
    *pgs = *pfrom;
1352
75.0M
    pgs->client_data = pdata;
1353
1354
75.0M
    gs_gstate_copied(pgs);
1355
    /* Don't do anything to clip_stack. */
1356
1357
75.0M
    rc_increment(pgs->device);
1358
75.0M
    *clone_data->parts.color[0].ccolor    = *pgs->color[0].ccolor;
1359
75.0M
    *clone_data->parts.color[0].dev_color = *pgs->color[0].dev_color;
1360
75.0M
    *clone_data->parts.color[1].ccolor    = *pgs->color[1].ccolor;
1361
75.0M
    *clone_data->parts.color[1].dev_color = *pgs->color[1].dev_color;
1362
75.0M
    cs_adjust_counts_icc(pgs, 1);
1363
75.0M
    cs_adjust_swappedcounts_icc(pgs, 1);
1364
1365
75.0M
    return pgs;
1366
1367
0
  fail:
1368
0
    gs_free_object(mem, clone_data->dash.pattern, cname);
1369
0
    if (pdata != NULL)
1370
0
        (*pfrom->client_procs.free) (pdata, mem, pgs);
1371
0
  failEarly:
1372
0
    gstate_free_parts(pgs, mem, cname);
1373
0
    gs_free_object(mem, pgs, cname);
1374
1375
0
    return NULL;
1376
0
}
1377
1378
1379
/* Clone an existing graphics state for use in gsave. The clone refers
1380
 * to the old contents, and the old state refers to the new contents. */
1381
/* Return NULL if the allocation fails. */
1382
static gs_gstate *
1383
gstate_clone_for_gsave(gs_gstate     *pfrom,
1384
                       client_name_t  cname)
1385
73.3M
{
1386
73.3M
    gs_gstate_clone_data clone_data;
1387
73.3M
    gs_gstate *pgs = gstate_clone_core(pfrom, pfrom->memory, cname,
1388
73.3M
                                       &clone_data, copy_for_gsave);
1389
1390
73.3M
    if (pgs == NULL)
1391
4
        return NULL;
1392
1393
    /* Newly allocated parts go back into pfrom, not pgs! */
1394
73.3M
    GSTATE_ASSIGN_PARTS(pfrom, &clone_data.parts);
1395
73.3M
    gs_currentlineparams_inline(pfrom)->dash = clone_data.dash;
1396
1397
73.3M
    return pgs;
1398
73.3M
}
1399
1400
/* Clone an existing graphics state. The view_clip is not copied. */
1401
/* Return NULL if the allocation fails. */
1402
static gs_gstate *
1403
gstate_clone_for_gstate(const gs_gstate     *pfrom,
1404
                              gs_memory_t   *mem,
1405
                              client_name_t  cname)
1406
1.75M
{
1407
1.75M
    gs_gstate_clone_data clone_data;
1408
1.75M
    gs_gstate *pgs = gstate_clone_core(pfrom, mem, cname, &clone_data,
1409
1.75M
                                       copy_for_gstate);
1410
1411
1.75M
    if (pgs == NULL)
1412
0
        return NULL;
1413
1.75M
    GSTATE_ASSIGN_PARTS(pgs, &clone_data.parts);
1414
1.75M
    pgs->view_clip = NULL;
1415
1.75M
    gs_currentlineparams_inline(pgs)->dash = clone_data.dash;
1416
1.75M
    pgs->memory = mem;
1417
1418
1.75M
    return pgs;
1419
1.75M
}
1420
1421
/* Adjust reference counters for the whole clip stack */
1422
/* accessible from the given point */
1423
static void
1424
clip_stack_rc_adjust(gx_clip_stack_t *cs, int delta, client_name_t cname)
1425
152M
{
1426
152M
    gx_clip_stack_t *p = cs;
1427
1428
152M
    while(p) {
1429
2
        gx_clip_stack_t *q = p;
1430
2
        p = p->next;
1431
2
        rc_adjust(q, delta, cname);
1432
2
    }
1433
152M
}
1434
1435
/*
1436
 * Finalization for graphics states. This is where we handle RC for those
1437
 * elements.
1438
 */
1439
void
1440
gs_gstate_finalize(const gs_memory_t *cmem,void *vptr)
1441
75.3M
{
1442
75.3M
    gs_gstate *pgs = (gs_gstate *)vptr;
1443
75.3M
    (void)cmem; /* unused */
1444
1445
75.3M
    if (cmem == NULL)
1446
0
        return;     /* place for breakpoint */
1447
75.3M
    gstate_free_contents(pgs);
1448
75.3M
}
1449
1450
/* Release the composite parts of a graphics state, */
1451
/* but not the state itself. */
1452
static void
1453
gstate_free_contents(gs_gstate * pgs)
1454
150M
{
1455
150M
    gs_memory_t *mem = pgs->memory;
1456
150M
    const char *const cname = "gstate_free_contents";
1457
1458
150M
    rc_decrement(pgs->device, cname);
1459
150M
    pgs->device = 0;
1460
150M
    clip_stack_rc_adjust(pgs->clip_stack, -1, cname);
1461
150M
    pgs->clip_stack = 0;
1462
150M
    if (pgs->view_clip != NULL && pgs->level == 0) {
1463
307k
        gx_cpath_free(pgs->view_clip, cname);
1464
307k
        pgs->view_clip = NULL;
1465
307k
    }
1466
150M
    if (pgs->client_data != 0)
1467
75.2M
        (*pgs->client_procs.free) (pgs->client_data, mem, pgs);
1468
150M
    pgs->client_data = 0;
1469
150M
    cs_adjust_counts_icc(pgs, -1);
1470
150M
    cs_adjust_swappedcounts_icc(pgs, -1);
1471
150M
    pgs->color[0].color_space = 0;
1472
150M
    pgs->color[1].color_space = 0;
1473
150M
    gs_free_object(mem, pgs->line_params.dash.pattern, cname);
1474
150M
    pgs->line_params.dash.pattern = 0;
1475
150M
    gstate_free_parts(pgs, mem, cname);     /* this also clears pointers to freed elements */
1476
150M
    gs_gstate_release(pgs);
1477
150M
}
1478
1479
/* Copy one gstate to another. */
1480
static int
1481
gstate_copy(gs_gstate * pto, const gs_gstate * pfrom,
1482
            gs_gstate_copy_reason_t reason, client_name_t cname)
1483
79.5k
{
1484
79.5k
    gs_gstate_parts parts;
1485
1486
79.5k
    GSTATE_ASSIGN_PARTS(&parts, pto);
1487
    /* Copy the dash pattern if necessary. */
1488
79.5k
    if (pfrom->line_params.dash.pattern || pto->line_params.dash.pattern) {
1489
1.28k
        int code = gstate_copy_dash(pto->memory,
1490
1.28k
                             &(gs_currentlineparams_inline(pto)->dash), pfrom);
1491
1492
1.28k
        if (code < 0)
1493
0
            return code;
1494
1.28k
    }
1495
    /*
1496
     * It's OK to decrement the counts before incrementing them,
1497
     * because anything that is going to survive has a count of
1498
     * at least 2 (pto and somewhere else) initially.
1499
     * Handle references from contents.
1500
     */
1501
79.5k
    cs_adjust_counts_icc(pto, -1);
1502
79.5k
    cs_adjust_swappedcounts_icc(pto, -1);
1503
79.5k
    gx_path_assign_preserve(pto->path, pfrom->path);
1504
79.5k
    gx_cpath_assign_preserve(pto->clip_path, pfrom->clip_path);
1505
    /*
1506
     * effective_clip_shared will be copied, but we need to do the
1507
     * right thing with effective_clip_path.
1508
     */
1509
79.5k
    if (pfrom->effective_clip_shared) {
1510
        /*
1511
         * pfrom->effective_clip_path is either pfrom->view_clip or
1512
         * pfrom->clip_path.
1513
         */
1514
79.5k
        parts.effective_clip_path =
1515
79.5k
            (pfrom->effective_clip_path == pfrom->view_clip ?
1516
79.5k
             pto->view_clip : parts.clip_path);
1517
79.5k
    } else
1518
0
        gx_cpath_assign_preserve(pto->effective_clip_path,
1519
0
                                 pfrom->effective_clip_path);
1520
79.5k
    *parts.color[0].ccolor    = *pfrom->color[0].ccolor;
1521
79.5k
    *parts.color[0].dev_color = *pfrom->color[0].dev_color;
1522
79.5k
    *parts.color[1].ccolor    = *pfrom->color[1].ccolor;
1523
79.5k
    *parts.color[1].dev_color = *pfrom->color[1].dev_color;
1524
    /* Handle references from gstate object. */
1525
79.5k
    rc_pre_assign(pto->device, pfrom->device, cname);
1526
79.5k
    if (pto->clip_stack != pfrom->clip_stack) {
1527
0
        clip_stack_rc_adjust(pfrom->clip_stack, 1, cname);
1528
0
        clip_stack_rc_adjust(pto->clip_stack, -1, cname);
1529
0
    }
1530
79.5k
    {
1531
79.5k
        struct gx_pattern_cache_s *pcache = pto->pattern_cache;
1532
79.5k
        void *pdata = pto->client_data;
1533
79.5k
        gs_memory_t *mem = pto->memory;
1534
79.5k
        gs_gstate *saved = pto->saved;
1535
79.5k
        float *pattern = pto->line_params.dash.pattern;
1536
1537
79.5k
        gs_gstate_pre_assign(pto, (const gs_gstate *)pfrom);
1538
79.5k
        *pto = *pfrom;
1539
79.5k
        pto->client_data = pdata;
1540
79.5k
        pto->memory = mem;
1541
79.5k
        pto->saved = saved;
1542
79.5k
        pto->line_params.dash.pattern = pattern;
1543
79.5k
        if (pto->pattern_cache == 0)
1544
0
            pto->pattern_cache = pcache;
1545
79.5k
        if (pfrom->client_data != 0) {
1546
            /* We need to break 'const' here. */
1547
75.9k
            gstate_copy_client_data((gs_gstate *) pfrom, pdata,
1548
75.9k
                                    pfrom->client_data, reason);
1549
75.9k
        }
1550
79.5k
    }
1551
79.5k
    GSTATE_ASSIGN_PARTS(pto, &parts);
1552
79.5k
    cs_adjust_counts_icc(pto, 1);
1553
79.5k
    cs_adjust_swappedcounts_icc(pto, 1);
1554
79.5k
    pto->show_gstate =
1555
79.5k
        (pfrom->show_gstate == pfrom ? pto : 0);
1556
79.5k
    return 0;
1557
79.5k
}
1558
1559
/* Accessories. */
1560
gs_id gx_get_clip_path_id(gs_gstate *pgs)
1561
126k
{
1562
126k
    return pgs->clip_path->id;
1563
126k
}
1564
1565
void gs_swapcolors_quick(const gs_gstate *cpgs)
1566
41.1M
{
1567
41.1M
    union {
1568
41.1M
        const gs_gstate *cpgs;
1569
41.1M
        gs_gstate *pgs;
1570
41.1M
    } const_breaker;
1571
41.1M
    gs_gstate *pgs;
1572
41.1M
    struct gx_cie_joint_caches_s *tmp_cie;
1573
41.1M
    gs_devicen_color_map          tmp_ccm;
1574
41.1M
    gs_client_color              *tmp_cc;
1575
41.1M
    int                           tmp;
1576
41.1M
    gx_device_color              *tmp_dc;
1577
41.1M
    gs_color_space               *tmp_cs;
1578
1579
    /* Break const just once, neatly, here rather than
1580
     * hackily in every caller. */
1581
41.1M
    const_breaker.cpgs = cpgs;
1582
41.1M
    pgs = const_breaker.pgs;
1583
1584
41.1M
    tmp_cc               = pgs->color[0].ccolor;
1585
41.1M
    pgs->color[0].ccolor = pgs->color[1].ccolor;
1586
41.1M
    pgs->color[1].ccolor = tmp_cc;
1587
1588
41.1M
    tmp_dc                  = pgs->color[0].dev_color;
1589
41.1M
    pgs->color[0].dev_color = pgs->color[1].dev_color;
1590
41.1M
    pgs->color[1].dev_color = tmp_dc;
1591
1592
41.1M
    tmp_cs                    = pgs->color[0].color_space;
1593
41.1M
    pgs->color[0].color_space = pgs->color[1].color_space;
1594
41.1M
    pgs->color[1].color_space = tmp_cs;
1595
1596
    /* Overprint and effective_op vary with stroke/fill and cs */
1597
41.1M
    tmp                         = pgs->color[0].effective_opm;
1598
41.1M
    pgs->color[0].effective_opm = pgs->color[1].effective_opm;
1599
41.1M
    pgs->color[1].effective_opm = tmp;
1600
1601
    /* Swap the bits of the gs_gstate that depend on the current color */
1602
41.1M
    tmp_cie                   = pgs->cie_joint_caches;
1603
41.1M
    pgs->cie_joint_caches     = pgs->cie_joint_caches_alt;
1604
41.1M
    pgs->cie_joint_caches_alt = tmp_cie;
1605
1606
41.1M
    tmp_ccm                      = pgs->color_component_map;
1607
41.1M
    pgs->color_component_map     = pgs->color_component_map_alt;
1608
41.1M
    pgs->color_component_map_alt = tmp_ccm;
1609
1610
41.1M
    pgs->is_fill_color = !(pgs->is_fill_color); /* used by overprint for fill_stroke */
1611
41.1M
}
1612
1613
int
1614
gs_clip_bounds_in_user_space(gs_gstate *pgs, gs_rect *ubox)
1615
119k
{
1616
119k
    gx_clip_path *clip_path;
1617
119k
    gs_rect dbox;
1618
119k
    int code;
1619
1620
119k
    code = gx_effective_clip_path(pgs, &clip_path);
1621
119k
    if (code < 0)
1622
0
        return code;
1623
1624
119k
    dbox.p.x = fixed2float(clip_path->outer_box.p.x);
1625
119k
    dbox.p.y = fixed2float(clip_path->outer_box.p.y);
1626
119k
    dbox.q.x = fixed2float(clip_path->outer_box.q.x);
1627
119k
    dbox.q.y = fixed2float(clip_path->outer_box.q.y);
1628
119k
    return gs_bbox_transform_inverse(&dbox, &ctm_only(pgs), ubox);
1629
119k
}