Coverage Report

Created: 2026-04-09 07:06

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/ghostpdl/base/gsovrc.c
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Source
1
/* Copyright (C) 2001-2026 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
/* overprint/overprint mode compositor implementation */
18
19
#include "assert_.h"
20
#include "memory_.h"
21
#include "gx.h"
22
#include "gserrors.h"
23
#include "gsutil.h"             /* for gs_next_ids */
24
#include "gxcomp.h"
25
#include "gxdevice.h"
26
#include "gsdevice.h"
27
#include "gxgetbit.h"
28
#include "gsovrc.h"
29
#include "gxdcolor.h"
30
#include "gxoprect.h"
31
#include "gsbitops.h"
32
#include "gxgstate.h"
33
#include "gxdevsop.h"
34
#include "gxcldev.h"
35
36
/* GC descriptor for gs_overprint_t */
37
private_st_gs_overprint_t();
38
39
/*
40
 * Utility routine for encoding or decoding a color index. We cannot use
41
 * the general integer encoding routins for these, as they may be 64 bits
42
 * in length (the general routines are only designed for 32 bits). We also
43
 * cannot use the color-specific routines, as we do not have the required
44
 * device color information available.
45
 *
46
 * The scheme employed is the potentially 64-bit analog of the 32-bit
47
 * routines: the low order seven bits of each bytes represents a base-128
48
 * digit, and the high order bit is set if there is another digit. The
49
 * encoding order is little-endian.
50
 *
51
 * The write routine returns 0 on success, with *psize set to the number
52
 * of bytes used. Alternatively, the return value will be gs_error_rangecheck,
53
 * with *psize set to the number of bytes required, if there was insufficient
54
 * space.
55
 *
56
 * The read routine returns the number of bytes read on success, or < 0 in
57
 * the event of an error.
58
 */
59
static int
60
write_color_index(gx_color_index cindex, byte * data, uint * psize)
61
20.3k
{
62
20.3k
    int             num_bytes = 0;
63
20.3k
    gx_color_index  ctmp = cindex;
64
65
20.3k
    for (num_bytes = 1; (ctmp >>= 7) != 0; ++num_bytes)
66
0
        ;
67
20.3k
    if (num_bytes > *psize) {
68
10.1k
        *psize = num_bytes;
69
10.1k
        return_error(gs_error_rangecheck);
70
10.1k
    }
71
10.1k
    ctmp = cindex;
72
10.1k
    *psize = num_bytes;
73
10.1k
    for (; num_bytes > 1; ctmp >>= 7, --num_bytes)
74
0
        *data++ = 0x80 | (ctmp & 0x7f);
75
10.1k
    *data = ctmp & 0x7f;
76
10.1k
    return 0;
77
20.3k
}
78
79
static int
80
read_color_index(gx_color_index * pcindex, const byte * data, uint size)
81
134k
{
82
134k
    gx_color_index  cindex = 0;
83
134k
    int             nbytes = 0, shift = 0;
84
85
134k
    for (;; shift += 7, data++) {
86
134k
        if (++nbytes > size)
87
0
            return_error(gs_error_rangecheck);
88
134k
        else {
89
134k
            unsigned char byte = *data;
90
134k
            gx_color_index c = byte;
91
92
134k
            cindex += (c & 0x7f) << shift;
93
134k
            if ((c & 0x80) == 0)
94
134k
                break;
95
134k
        }
96
134k
    }
97
134k
    *pcindex = cindex;
98
134k
    return nbytes;
99
134k
}
100
101
/*
102
 * Check for equality of two overprint compositor objects.
103
 *
104
 * This is fairly simple.
105
 */
106
static bool
107
c_overprint_equal(const gs_composite_t * pct0, const gs_composite_t * pct1)
108
0
{
109
0
    if (pct0->type == pct1->type) {
110
0
        const gs_overprint_params_t *    pparams0;
111
0
        const gs_overprint_params_t *    pparams1;
112
113
0
        pparams0 = &((const gs_overprint_t *)(pct0))->params;
114
0
        pparams1 = &((const gs_overprint_t *)(pct1))->params;
115
116
0
        if (pparams0->is_fill_color != pparams1->is_fill_color)
117
0
            return true;   /* this changed */
118
0
        if (!pparams0->retain_any_comps)
119
0
            return !pparams1->retain_any_comps;
120
0
        else
121
0
            return pparams0->drawn_comps == pparams1->drawn_comps;
122
0
    } else
123
0
        return false;
124
0
}
125
126
/*
127
 * Bits corresponding to boolean values in the first byte of the string
128
 * representation of an overprint compositor.
129
 */
130
120M
#define OVERPRINT_ANY_COMPS           1
131
120M
#define OVERPRINT_IS_FILL_COLOR       2
132
121M
#define OVERPRINT_SET_FILL_COLOR      0xc
133
120M
#define OVERPRINT_EOPM                0x10
134
135
/*
136
 * Convert an overprint compositor to string form for use by the command
137
 * list device.
138
 */
139
static int
140
c_overprint_write(const gs_composite_t * pct, byte * data, uint * psize, gx_device_clist_writer *cdev)
141
1.32M
{
142
1.32M
    const gs_overprint_params_t *   pparams = &((const gs_overprint_t *)pct)->params;
143
1.32M
    byte                            flags = 0;
144
1.32M
    int                             used = 1, avail = *psize;
145
146
    /* Clist writer needs to store active state of op device so that
147
       we know when to send compositor actions to disable it */
148
1.32M
    if (pparams->op_state == OP_STATE_NONE) {
149
662k
        if (pparams->is_fill_color) {
150
457k
            if (pparams->retain_any_comps)
151
19.6k
                cdev->op_fill_active = true;
152
438k
            else
153
438k
                cdev->op_fill_active = false;
154
457k
        } else {
155
204k
            if (pparams->retain_any_comps)
156
698
                cdev->op_stroke_active = true;
157
204k
            else
158
204k
                cdev->op_stroke_active = false;
159
204k
        }
160
662k
    }
161
162
    /* encoded the booleans in a single byte */
163
1.32M
    if (pparams->retain_any_comps || pparams->is_fill_color || pparams->op_state != OP_STATE_NONE) {
164
1.12M
        flags |= (pparams->retain_any_comps) ? OVERPRINT_ANY_COMPS : 0;
165
1.12M
        flags |= (pparams->is_fill_color) ? OVERPRINT_IS_FILL_COLOR : 0;
166
1.12M
        flags |= OVERPRINT_SET_FILL_COLOR & ((pparams->op_state) << 2);
167
1.12M
        flags |= (pparams->effective_opm) << 4;
168
169
        /* write out the component bits */
170
1.12M
        if (pparams->retain_any_comps) {
171
20.3k
            uint tmp_size = (avail > 0 ? avail - 1 : 0);
172
20.3k
            int code = write_color_index(pparams->drawn_comps, data + 1,
173
20.3k
                &tmp_size);
174
20.3k
            if (code < 0 && code != gs_error_rangecheck)
175
0
                return code;
176
20.3k
            used += tmp_size;
177
20.3k
            if_debug0m('v', ((const gx_device*)cdev)->memory, "[v] drawn_comps stored\n");
178
179
20.3k
        }
180
1.12M
    }
181
182
    /* check for overflow */
183
1.32M
    *psize = used;
184
1.32M
    if (used > avail) {
185
662k
        if (avail != 0)
186
0
            return_error(gs_error_rangecheck);
187
662k
        return gs_error_rangecheck;
188
662k
    }
189
662k
    data[0] = flags;
190
662k
    if_debug2m('v', ((const gx_device *)cdev)->memory, "[v]c_overprint_write(%d), drawn_comps=0x%"PRIx64"\n",
191
662k
               flags, (uint64_t)pparams->drawn_comps);
192
662k
    return 0;
193
1.32M
}
194
195
/*
196
 * Convert the string representation of the overprint parameter into the
197
 * full compositor.
198
 */
199
static int
200
c_overprint_read(
201
    gs_composite_t **       ppct,
202
    const byte *            data,
203
    uint                    size,
204
    gs_memory_t *           mem )
205
120M
{
206
120M
    gs_overprint_params_t   params;
207
120M
    byte                    flags = 0;
208
120M
    int                     code = 0, nbytes = 1;
209
210
120M
    if (size < 1)
211
0
        return_error(gs_error_rangecheck);
212
120M
    flags = *data;
213
120M
    if_debug1m('v', mem, "[v]c_overprint_read(%d)", flags);
214
120M
    params.retain_any_comps = (flags & OVERPRINT_ANY_COMPS) != 0;
215
120M
    params.is_fill_color = (flags & OVERPRINT_IS_FILL_COLOR) != 0;
216
120M
    params.op_state = (flags & OVERPRINT_SET_FILL_COLOR) >> 2;
217
120M
    params.effective_opm = (flags & OVERPRINT_EOPM) >> 4;
218
120M
    params.idle = 0;
219
120M
    params.drawn_comps = 0;
220
221
    /* check if the drawn_comps array is present */
222
120M
    if (params.retain_any_comps) {
223
134k
        code = read_color_index(&params.drawn_comps, data + 1, size - 1);
224
134k
        if (code < 0)
225
0
            return code;
226
134k
        nbytes += code;
227
134k
        if_debug0m('v', mem, ", drawn_comps read");
228
134k
    }
229
120M
    if_debug1m('v', mem, ", retain_any_comps=%d", params.retain_any_comps);
230
120M
    if_debug1m('v', mem, ", is_fill_color=%d", params.is_fill_color);
231
120M
    if_debug1m('v', mem, ", drawn_comps=0x%"PRIx64, (uint64_t)params.drawn_comps);
232
120M
    if_debug1m('v', mem, ", op_state=%d", params.op_state);
233
120M
    if_debug0m('v', mem, "\n");
234
120M
    code = gs_create_overprint(ppct, &params, mem);
235
120M
    return code < 0 ? code : nbytes;
236
120M
}
237
238
/*
239
 * Check for closing compositor.
240
 */
241
static gs_compositor_closing_state
242
c_overprint_is_closing(const gs_composite_t *this, gs_composite_t **ppcte, gx_device *dev)
243
120M
{
244
120M
    return COMP_ENQUEUE;  /* maybe extra work, but these actions are fast */
245
120M
}
246
247
static composite_create_default_compositor_proc(c_overprint_create_default_compositor);
248
static composite_equal_proc(c_overprint_equal);
249
static composite_write_proc(c_overprint_write);
250
static composite_is_closing_proc(c_overprint_is_closing);
251
static composite_read_proc(c_overprint_read);
252
253
/* methods for the overprint compositor */
254
const gs_composite_type_t   gs_composite_overprint_type = {
255
    GX_COMPOSITOR_OVERPRINT,
256
    {
257
        c_overprint_create_default_compositor,  /* procs.create_default_compositor */
258
        c_overprint_equal,                      /* procs.equal */
259
        c_overprint_write,                      /* procs.write */
260
        c_overprint_read,                       /* procs.read */
261
        gx_default_composite_adjust_ctm,
262
        c_overprint_is_closing,
263
        gx_default_composite_is_friendly,
264
        gx_default_composite_clist_write_update,/* procs.composite_clist_write_update */
265
        gx_default_composite_clist_read_update, /* procs.composite_clist_reade_update */
266
        gx_default_composite_get_cropping /* procs.composite_get_cropping */
267
    }                                           /* procs */
268
};
269
270
/*
271
 * Create an overprint compositor data structure.
272
 *
273
 * Currently this just a stub.
274
 */
275
int
276
gs_create_overprint(
277
    gs_composite_t **               ppct,
278
    const gs_overprint_params_t *   pparams,
279
    gs_memory_t *                   mem )
280
121M
{
281
121M
    gs_overprint_t *                pct;
282
283
121M
    pct = gs_alloc_struct(mem, gs_overprint_t, &st_overprint,
284
121M
                              "gs_create_overprint");
285
121M
    if (pct == NULL)
286
0
        return_error(gs_error_VMerror);
287
121M
    pct->type = &gs_composite_overprint_type;
288
121M
    pct->id = gs_next_ids(mem, 1);
289
121M
    pct->params = *pparams;
290
121M
    pct->idle = false;
291
121M
    *ppct = (gs_composite_t *)pct;
292
121M
    return 0;
293
121M
}
294
295
/*
296
 * Verify that a compositor data structure is for the overprint compositor.
297
 * This is used by the gs_pdf1.4_device (and eventually the PDFWrite
298
 * device), which implements overprint and overprint mode directly.
299
 */
300
bool
301
gs_is_overprint_compositor(const gs_composite_t * pct)
302
108M
{
303
108M
    return pct->type == &gs_composite_overprint_type;
304
108M
}
305
306
/*
307
 * The overprint device.
308
 *
309
 * In principle there are two versions of this device: one if the traget
310
 * device is separable and linear, the other if it is not. The two have
311
 * slightly different data structures, but differ primarily in terms of
312
 * the standard set of methods. Because methods are non-static in
313
 * GhostScript, we make use of the same data structure and handle the
314
 * distinction during initialization.
315
 *
316
 * The data fields reflect entries in the gs_overprint_params_t
317
 * structure. There is no explicit retain_any_comps field, as the current
318
 * setting of this field can be determined by checking the fill_rectangle
319
 * method.
320
 */
321
typedef struct overprint_device_s {
322
    gx_device_forward_common;
323
324
    /*
325
     * The set of components to be drawn. This field is used only if the
326
     * target color space is not separable and linear.  It is also used
327
     * for the devn color values since we may need more than 8 components
328
     */
329
    OP_FS_STATE op_state;         /* used to select drawn_comps, fill or stroke */
330
    gx_color_index  drawn_comps_fill;
331
    gx_color_index  drawn_comps_stroke;   /* pparams->is_fill_color determines which to set */
332
    bool retain_none_stroke;                /* These are used to know when we can set the procs to forward */
333
    bool retain_none_fill;
334
335
    /*
336
     * The mask of gx_color_index bits to be retained during a drawing
337
     * operation. A bit in this mask is 1 if the corresponding bit or
338
     * the color index is to be retained; otherwise it is 0.
339
     *
340
     * The "non-drawn" region of the drawing gx_color_index is assumed
341
     * to have the value zero, so for a separable and linear color
342
     * encoding, the per-pixel drawing operation is:
343
     *
344
     *  output = (output & retain_mask) | src
345
     *
346
     * (For the fully general case, replace src by (src & ~retain_mask).)
347
     * Because of byte-alignment, byte-order and performance consideration,
348
     * the actually implement operation may be more complex, but this does
349
     * not change the overall effect.
350
     *
351
     * The actual value of retain_mask will be byte swap if this is
352
     * required. It will be required if depth > 8 and the host processor
353
     * is little-endian.
354
     */
355
    gx_color_index  retain_mask_fill;
356
    gx_color_index  retain_mask_stroke;
357
358
    bool copy_alpha_hl;
359
360
    /* We hold 3 sets of device procedures here. These are initialised from
361
     * the equivalently named globals when the device is created, but are
362
     * then used from here as we fiddle with them. This ensures that the
363
     * globals are only ever read, and as such are safe in multithreaded
364
     * environments. */
365
    gx_device_procs generic_overprint_procs;
366
    gx_device_procs no_overprint_procs;
367
    gx_device_procs sep_overprint_procs;
368
369
    /* Due to the setting of stroke and fill overprint we can get in
370
       a situation where one makes the device idle.  We need to know
371
       if that is the case when doing a compositor push even when
372
       no parameters have changed */
373
    bool is_idle;
374
375
} overprint_device_t;
376
377
gs_private_st_suffix_add0_final( st_overprint_device_t,
378
                                 overprint_device_t,
379
                                 "overprint_device_t",
380
                                 overprint_device_t_enum_ptrs,
381
                                 overprint_device_t_reloc_ptrs,
382
                                 gx_device_finalize,
383
                                 st_device_forward);
384
385
/*
386
 * In the default (overprint false) case, the overprint device is almost
387
 * a pure forwarding device: only the open_device and composite
388
 * methods are not pure-forwarding methods. The
389
 * gx_device_foward_fill_in_procs procedure does not fill in all of the
390
 * necessary procedures, so some of them are provided explicitly below.
391
 * The put_params procedure also requires a small modification, so that
392
 * the open/close state of this device always reflects that of its
393
 * target.
394
 *
395
 * This and other method arrays are not declared const so that they may
396
 * be initialized once via gx_device_forward_fill_in_procs. They are
397
 * constant once this initialization is complete.
398
 */
399
static dev_proc_open_device(overprint_open_device);
400
static dev_proc_put_params(overprint_put_params);
401
static dev_proc_get_page_device(overprint_get_page_device);
402
static dev_proc_composite(overprint_composite);
403
static dev_proc_get_color_comp_index(overprint_get_color_comp_index);
404
static dev_proc_fill_stroke_path(overprint_fill_stroke_path);
405
static dev_proc_fill_path(overprint_fill_path);
406
static dev_proc_stroke_path(overprint_stroke_path);
407
static dev_proc_text_begin(overprint_text_begin);
408
static  dev_proc_dev_spec_op(overprint_dev_spec_op);
409
410
static void
411
nooverprint_initialize_device_procs(gx_device *dev)
412
392
{
413
392
    set_dev_proc(dev, open_device, overprint_open_device);
414
392
    set_dev_proc(dev, fill_rectangle, gx_forward_fill_rectangle);
415
392
    set_dev_proc(dev, copy_mono, gx_forward_copy_mono);
416
392
    set_dev_proc(dev, copy_color, gx_forward_copy_color);
417
392
    set_dev_proc(dev, put_params, overprint_put_params);
418
392
    set_dev_proc(dev, get_page_device, overprint_get_page_device);
419
392
    set_dev_proc(dev, strip_tile_rectangle, gx_forward_strip_tile_rectangle);
420
392
    set_dev_proc(dev, composite, overprint_composite);
421
392
    set_dev_proc(dev, get_color_comp_index, overprint_get_color_comp_index);
422
392
    set_dev_proc(dev, fillpage, gx_forward_fillpage);
423
392
    set_dev_proc(dev, dev_spec_op, overprint_dev_spec_op);
424
392
    set_dev_proc(dev, copy_planes, gx_forward_copy_planes);
425
392
    set_dev_proc(dev, copy_alpha_hl_color, gx_forward_copy_alpha_hl_color);
426
392
    set_dev_proc(dev, fill_stroke_path, gx_forward_fill_stroke_path);
427
392
    set_dev_proc(dev, lock_pattern, gx_forward_lock_pattern);
428
392
}
429
430
/*
431
 * If overprint is set, the high and mid-level rendering methods are
432
 * replaced by the default routines. The low-level color rendering methods
433
 * are replaced with one of two sets of functions, depending on whether or
434
 * not the target device has a separable and linear color encoding.
435
 *
436
 *  1. If the target device does not have a separable and linear
437
 *     encoding, an overprint-specific fill_rectangle method is used,
438
 *     and the default methods are used for all other low-level rendering
439
 *     methods. There is no way to achieve good rendering performance
440
 *     when overprint is true and the color encoding is not separable
441
 *     and linear, so there is little reason to use more elaborate
442
 *     methods int this case.
443
 *
444
 *  2. If the target device does have a separable and linear color
445
 *     model, at least the fill_rectangle method and potentially other
446
 *     methods will be replaced by overprint-specific methods. Those
447
 *     methods not replaced will have their default values. The number
448
 *     of methods replaced is dependent on the desired level of
449
 *     performance: the more methods, the better the performance.
450
 *
451
 *     Note that certain procedures, such as copy_alpha and copy_rop,
452
 *     are likely to always be given their default values, as the concepts
453
 *     of alpha-compositing and raster operations are not compatible in
454
 *     a strict sense.
455
 */
456
static dev_proc_fill_rectangle(overprint_generic_fill_rectangle);
457
static dev_proc_fill_rectangle(overprint_sep_fill_rectangle);
458
static dev_proc_fill_rectangle_hl_color(overprint_fill_rectangle_hl_color);
459
static dev_proc_copy_planes(overprint_copy_planes);
460
static dev_proc_copy_alpha_hl_color(overprint_copy_alpha_hl_color);
461
462
/* other low-level overprint_sep_* rendering methods prototypes go here */
463
464
static void
465
generic_overprint_initialize_device_procs(gx_device *dev)
466
392
{
467
    /* Note that we set lots of things to 'default' here. You can't
468
     * omit them, because the caller for this particular initialization
469
     * proc fills them in with 'forward' ones, rather than 'default'
470
     * ones, and that doesn't work. Maybe look into this in future. */
471
392
    set_dev_proc(dev, open_device, overprint_open_device);
472
392
    set_dev_proc(dev, fill_rectangle, overprint_generic_fill_rectangle);
473
392
    set_dev_proc(dev, copy_mono, gx_default_copy_mono);
474
392
    set_dev_proc(dev, copy_color, gx_default_copy_color);
475
392
    set_dev_proc(dev, put_params, overprint_put_params);
476
392
    set_dev_proc(dev, get_page_device, overprint_get_page_device);
477
392
    set_dev_proc(dev, copy_alpha, gx_default_copy_alpha);
478
392
    set_dev_proc(dev, fill_path, overprint_fill_path);
479
392
    set_dev_proc(dev, stroke_path, overprint_stroke_path);
480
392
    set_dev_proc(dev, fill_mask, gx_default_fill_mask);
481
392
    set_dev_proc(dev, fill_trapezoid, gx_default_fill_trapezoid);
482
392
    set_dev_proc(dev, fill_parallelogram, gx_default_fill_parallelogram);
483
392
    set_dev_proc(dev, fill_triangle, gx_default_fill_triangle);
484
392
    set_dev_proc(dev, draw_thin_line, gx_default_draw_thin_line);
485
392
    set_dev_proc(dev, strip_tile_rectangle, gx_default_strip_tile_rectangle);
486
392
    set_dev_proc(dev, strip_copy_rop2, gx_default_strip_copy_rop2);
487
392
    set_dev_proc(dev, begin_typed_image, gx_default_begin_typed_image);
488
392
    set_dev_proc(dev, composite, overprint_composite);
489
392
    set_dev_proc(dev, text_begin, overprint_text_begin);
490
392
    set_dev_proc(dev, get_color_comp_index, overprint_get_color_comp_index);
491
392
    set_dev_proc(dev, fill_rectangle_hl_color, overprint_fill_rectangle_hl_color);
492
392
    set_dev_proc(dev, dev_spec_op, overprint_dev_spec_op);
493
392
    set_dev_proc(dev, copy_planes, gx_forward_copy_planes);
494
392
    set_dev_proc(dev, copy_alpha_hl_color, dev->num_planar_planes ?
495
392
                                               overprint_copy_alpha_hl_color :
496
392
                                               gx_forward_copy_alpha_hl_color);
497
392
    set_dev_proc(dev, fill_stroke_path, overprint_fill_stroke_path);
498
392
}
499
500
static void
501
sep_overprint_initialize_device_procs(gx_device *dev)
502
392
{
503
    /* Note that we set lots of things to 'default' here. You can't
504
     * omit them, because the caller for this particular initialization
505
     * proc fills them in with 'forward' ones, rather than 'default'
506
     * ones, and that doesn't work. Maybe look into this in future. */
507
392
    set_dev_proc(dev, open_device, overprint_open_device);
508
392
    set_dev_proc(dev, fill_rectangle, overprint_sep_fill_rectangle);
509
392
    set_dev_proc(dev, copy_mono, gx_default_copy_mono);
510
392
    set_dev_proc(dev, copy_color, gx_default_copy_color);
511
392
    set_dev_proc(dev, put_params, overprint_put_params);
512
392
    set_dev_proc(dev, get_page_device, overprint_get_page_device);
513
392
    set_dev_proc(dev, copy_alpha, gx_default_copy_alpha);
514
392
    set_dev_proc(dev, fill_path, overprint_fill_path);
515
392
    set_dev_proc(dev, stroke_path, overprint_stroke_path);
516
392
    set_dev_proc(dev, fill_mask, gx_default_fill_mask);
517
392
    set_dev_proc(dev, fill_trapezoid, gx_default_fill_trapezoid);
518
392
    set_dev_proc(dev, fill_parallelogram, gx_default_fill_parallelogram);
519
392
    set_dev_proc(dev, fill_triangle, gx_default_fill_triangle);
520
392
    set_dev_proc(dev, draw_thin_line, gx_default_draw_thin_line);
521
392
    set_dev_proc(dev, strip_tile_rectangle, gx_default_strip_tile_rectangle);
522
392
    set_dev_proc(dev, strip_copy_rop2, gx_default_strip_copy_rop2);
523
392
    set_dev_proc(dev, begin_typed_image, gx_default_begin_typed_image);
524
392
    set_dev_proc(dev, composite, overprint_composite);
525
392
    set_dev_proc(dev, text_begin, overprint_text_begin);
526
392
    set_dev_proc(dev, get_color_comp_index, overprint_get_color_comp_index);
527
392
    set_dev_proc(dev, fill_rectangle_hl_color, overprint_fill_rectangle_hl_color);
528
392
    set_dev_proc(dev, dev_spec_op, overprint_dev_spec_op);
529
392
    set_dev_proc(dev, copy_planes, overprint_copy_planes);
530
392
    set_dev_proc(dev, copy_alpha_hl_color, overprint_copy_alpha_hl_color);
531
392
    set_dev_proc(dev, fill_stroke_path, overprint_fill_stroke_path);
532
392
}
533
534
/*
535
 * The prototype for the overprint device does not provide much
536
 * information; it exists primarily to facilitate use gx_init_device
537
 * and sundry other device utility routines.
538
 */
539
const overprint_device_t    gs_overprint_device = {
540
    std_device_std_body_open( overprint_device_t,   /* device type */
541
                              NULL,                 /* initialize */
542
                              "overprint_device",   /* dname */
543
                              0, 0,                 /* width, height */
544
                              1, 1 ),               /* HWResolution */
545
    { 0 }                                           /* procs */
546
};
547
548
/*
549
 * Utility to reorder bytes in a color or mask based on the endianness of
550
 * the current device. This is required on little-endian machines if the
551
 * depth is larger 8. The resulting value is also replicated to fill the
552
 * entire gx_color_index if the depth is a divisor of the color index
553
 * size. If this is not the case, the result will be in the low-order
554
 * bytes of the color index.
555
 *
556
 * Though this process can be handled in full generality, the code below
557
 * takes advantage of the fact that depths that are > 8 must be a multiple
558
 * of 8 and <= 64
559
 */
560
#if !ARCH_IS_BIG_ENDIAN
561
562
static gx_color_index
563
swap_color_index(int depth, gx_color_index color)
564
116
{
565
116
    int             shift = depth - 8;
566
116
    gx_color_index  mask = 0xff;
567
568
116
    color =  ((color >> shift) & mask)
569
116
           | ((color & mask) << shift)
570
116
           | (color & ~((mask << shift) | mask));
571
116
    if (depth > 24) {
572
116
        shift -= 16;
573
116
        mask <<= 8;
574
116
        color =  ((color >> shift) & mask)
575
116
               | ((color & mask) << shift)
576
116
               | (color & ~((mask << shift) | mask));
577
578
116
        if (depth > 40) {
579
0
            shift -= 16;
580
0
            mask <<= 8;
581
0
            color =  ((color >> shift) & mask)
582
0
                   | ((color & mask) << shift)
583
0
                   | (color & ~((mask << shift) | mask));
584
585
0
            if (depth > 56) {
586
0
                shift -= 16;
587
0
                mask <<= 8;
588
0
                color =  ((color >> shift) & mask)
589
0
                       | ((color & mask) << shift)
590
0
                       | (color & ~((mask << shift) | mask));
591
0
            }
592
0
        }
593
116
    }
594
595
116
    return color;
596
116
}
597
598
#endif  /* !ARCH_IS_BIG_ENDIAN */
599
600
/*
601
 * Update the retain_mask field to reflect the information in the
602
 * drawn_comps field. This is useful only if the device color model
603
 * is separable.
604
 */
605
static void
606
set_retain_mask(overprint_device_t * opdev, bool is_fill_color)
607
927
{
608
927
    uchar i, ncomps = opdev->color_info.num_components;
609
927
    gx_color_index  drawn_comps = is_fill_color ?
610
836
                                  opdev->drawn_comps_fill : opdev->drawn_comps_stroke;
611
927
    gx_color_index retain_mask = 0;
612
927
#if !ARCH_IS_BIG_ENDIAN
613
927
    int depth = opdev->color_info.depth;
614
927
#endif
615
616
4.75k
    for (i = 0; i < ncomps; i++, drawn_comps >>= 1) {
617
3.82k
        if ((drawn_comps & 0x1) == 0)
618
1.59k
            retain_mask |= opdev->color_info.comp_mask[i];
619
3.82k
    }
620
927
#if !ARCH_IS_BIG_ENDIAN
621
927
    if (depth > 8)
622
116
        retain_mask = swap_color_index(depth, retain_mask);
623
927
#endif
624
927
    if (is_fill_color)
625
836
        opdev->retain_mask_fill = retain_mask;
626
91
    else
627
91
        opdev->retain_mask_stroke = retain_mask;
628
927
}
629
630
/*
631
 * Update the overprint-specific device parameters.
632
 *
633
 * If spot colors are to be retain, the set of process (non-spot) colors is
634
 * determined by mapping through the standard color spaces and check which
635
 * components assume non-zero values.
636
 */
637
static int
638
update_overprint_params(
639
    overprint_device_t* opdev,
640
    const gs_overprint_params_t* pparams)
641
32.2k
{
642
    /* We can only turn off the overprint compositor if
643
       BOTH the stroke and fill op are false.  Otherwise
644
       we will turn it off when setting one and turn on
645
       when setting the other (or vice versa) */
646
647
    /* Note if pparams->op_state is not NONE, set the opdev fill/stroke state. */
648
32.2k
    if (pparams->op_state != OP_STATE_NONE) {
649
23.6k
        opdev->op_state = pparams->op_state;
650
23.6k
        return 0;
651
23.6k
    }
652
653
32.2k
    if_debug4m(gs_debug_flag_overprint, opdev->memory,
654
8.55k
        "[overprint] update_overprint_params enter. retain_any_comps = %d, idle = %d, drawn_comps = 0x%"PRIx64", is_fill_color = %d\n",
655
8.55k
               pparams->retain_any_comps, pparams->idle,
656
8.55k
               (uint64_t)pparams->drawn_comps, pparams->is_fill_color);
657
658
    /* check if overprint is to be turned off */
659
8.55k
    if (!pparams->retain_any_comps || pparams->idle) {
660
7.62k
        if (pparams->is_fill_color) {
661
5.62k
            opdev->retain_none_fill = true;
662
5.62k
            opdev->drawn_comps_fill =
663
5.62k
                ((gx_color_index)1 << (opdev->color_info.num_components)) - (gx_color_index)1;
664
5.62k
        } else {
665
2.00k
            opdev->retain_none_stroke = true;
666
2.00k
            opdev->drawn_comps_stroke =
667
2.00k
                ((gx_color_index)1 << (opdev->color_info.num_components)) - (gx_color_index)1;
668
2.00k
        }
669
670
        /* Set to forward only if both stroke and fill are not retaining any
671
           and if we have not already set it to forward */
672
7.62k
        if (dev_proc(opdev, fill_rectangle) != gx_forward_fill_rectangle &&
673
1.10k
            opdev->retain_none_fill && opdev->retain_none_stroke) {
674
824
            memcpy(&opdev->procs,
675
824
                &opdev->no_overprint_procs,
676
824
                sizeof(opdev->no_overprint_procs));
677
824
            opdev->is_idle = true;
678
824
            if_debug0m(gs_debug_flag_overprint, opdev->memory,
679
824
                "[overprint] overprint fill_rectangle set to forward\n");
680
824
        }
681
682
7.62k
        if_debug4m(gs_debug_flag_overprint, opdev->memory,
683
7.62k
            "[overprint] update_overprint_params exit. drawn_comps_fill = 0x%"PRIx64", drawn_comps_stroke = 0x%"PRIx64", retain_none_fill = %d, retain_none_stroke = %d \n",
684
7.62k
                   (uint64_t)opdev->drawn_comps_fill,
685
7.62k
                   (uint64_t)opdev->drawn_comps_stroke,
686
7.62k
                   opdev->retain_none_fill, opdev->retain_none_stroke);
687
7.62k
        return 0;
688
7.62k
    }
689
690
927
    opdev->is_idle = false;
691
    /* set the procedures according to the color model */
692
927
    if (colors_are_separable_and_linear(&opdev->color_info)) {
693
927
        memcpy(&opdev->procs, &opdev->sep_overprint_procs,
694
927
            sizeof(opdev->sep_overprint_procs));
695
927
        if_debug0m(gs_debug_flag_overprint, opdev->memory,
696
927
            "[overprint] overprint procs set to sep\n");
697
927
    } else {
698
0
        memcpy(&opdev->procs, &opdev->generic_overprint_procs,
699
0
            sizeof(opdev->generic_overprint_procs));
700
0
        if_debug0m(gs_debug_flag_overprint, opdev->memory,
701
0
            "[overprint] overprint procs set to generic\n");
702
0
    }
703
704
927
    if (pparams->is_fill_color) {
705
836
        opdev->retain_none_fill = false;
706
836
        opdev->drawn_comps_fill = pparams->drawn_comps;
707
836
    } else {
708
91
        opdev->retain_none_stroke = false;
709
91
        opdev->drawn_comps_stroke = pparams->drawn_comps;
710
91
    }
711
712
927
    if_debug4m(gs_debug_flag_overprint, opdev->memory,
713
927
        "[overprint] update_overprint_params exit. drawn_comps_fill = 0x%"PRIx64", drawn_comps_stroke = 0x%"PRIx64", retain_none_fill = %d, retain_none_stroke = %d \n",
714
927
               (uint64_t)opdev->drawn_comps_fill,
715
927
               (uint64_t)opdev->drawn_comps_stroke,
716
927
               opdev->retain_none_fill, opdev->retain_none_stroke);
717
718
    /* if appropriate, update the retain_mask field */
719
927
    if (colors_are_separable_and_linear(&opdev->color_info))
720
927
        set_retain_mask(opdev, pparams->is_fill_color);
721
722
927
    return 0;
723
8.55k
}
724
725
/*
726
 * The open_device method for the overprint device is about as close to
727
 * a pure "forwarding" open_device operation as is possible. Its only
728
 * significant function is to ensure that the is_open field of the
729
 * overprint device matches that of the target device.
730
 *
731
 * We assume this procedure is called only if the device is not already
732
 * open, and that gs_opendevice will take care of the is_open flag.
733
 */
734
static int
735
overprint_open_device(gx_device * dev)
736
0
{
737
0
    overprint_device_t *    opdev = (overprint_device_t *)dev;
738
0
    gx_device *             tdev = opdev->target;
739
0
    int                     code = 0;
740
741
    /* the overprint device must have a target */
742
0
    if (tdev == 0)
743
0
        return_error(gs_error_unknownerror);
744
0
    if ((code = gs_opendevice(tdev)) >= 0) {
745
0
        gx_device_copy_params(dev, tdev);
746
0
        opdev->copy_alpha_hl = false;
747
0
        opdev->is_idle = false;
748
0
    }
749
0
    return code;
750
0
}
751
752
/*
753
 * The put_params method for the overprint device will check if the
754
 * target device has closed and, if so, close itself.
755
 */
756
static int
757
overprint_put_params(gx_device * dev, gs_param_list * plist)
758
0
{
759
0
    overprint_device_t *    opdev = (overprint_device_t *)dev;
760
0
    gx_device *             tdev = opdev->target;
761
0
    int                     code = 0;
762
763
0
    if (tdev != 0 && (code = dev_proc(tdev, put_params)(tdev, plist)) >= 0) {
764
0
        gx_device_decache_colors(dev);
765
0
        if (!tdev->is_open)
766
0
            code = gs_closedevice(dev);
767
0
    }
768
0
    return code;
769
0
}
770
771
/*
772
 * If the target device 'auto detects' new spot colors, then it will
773
 * change its color_info data.  Make sure that we have a current copy.
774
 */
775
int
776
overprint_get_color_comp_index(gx_device * dev, const char * pname,
777
                                        int name_size, int component_type)
778
0
{
779
0
    overprint_device_t * opdev = (overprint_device_t *)dev;
780
0
    gx_device * tdev = opdev->target;
781
0
    int code;
782
783
0
    if (tdev == 0)
784
0
        code = gx_error_get_color_comp_index(dev, pname,
785
0
                                name_size, component_type);
786
0
    else {
787
0
        code = dev_proc(tdev, get_color_comp_index)(tdev, pname,
788
0
                                name_size, component_type);
789
0
        opdev->color_info = tdev->color_info;
790
0
    }
791
0
    return code;
792
0
}
793
794
/*
795
 * The overprint device must never be confused with a page device.
796
 * Thus, we always forward the request for the page device to the
797
 * target, as should all forwarding devices.
798
 */
799
static gx_device *
800
overprint_get_page_device(gx_device * dev)
801
0
{
802
0
    overprint_device_t *    opdev = (overprint_device_t *)dev;
803
0
    gx_device *             tdev = opdev->target;
804
805
0
    return tdev == 0 ? 0 : dev_proc(tdev, get_page_device)(tdev);
806
0
}
807
808
/*
809
 * Calling composite on the overprint device just updates the
810
 * overprint parameters; no new device is created.
811
 */
812
static int
813
overprint_composite(
814
    gx_device *             dev,
815
    gx_device **            pcdev,
816
    const gs_composite_t *  pct,
817
    gs_gstate *             pgs,
818
    gs_memory_t *           memory,
819
    gx_device *             cdev)
820
46.9k
{
821
46.9k
    if (pct->type != &gs_composite_overprint_type)
822
0
        return gx_default_composite(dev, pcdev, pct, pgs, memory, cdev);
823
46.9k
    else {
824
46.9k
        gs_overprint_params_t params = ((const gs_overprint_t *)pct)->params;
825
46.9k
        overprint_device_t *opdev = (overprint_device_t *)dev;
826
46.9k
        int     code = 0;
827
46.9k
        bool update;
828
829
46.9k
        if (params.is_fill_color)
830
20.4k
            update = (params.drawn_comps != opdev->drawn_comps_fill) ||
831
15.7k
            ((params.retain_any_comps == 0) != opdev->retain_none_fill);
832
26.5k
        else
833
26.5k
            update = (params.drawn_comps != opdev->drawn_comps_stroke) ||
834
19.1k
            ((params.retain_any_comps == 0) != opdev->retain_none_stroke);
835
836
46.9k
        params.idle = pct->idle;
837
        /* device must already exist, so just update the parameters if settings change */
838
46.9k
        if_debug6m(gs_debug_flag_overprint, opdev->memory,
839
46.9k
            "[overprint] overprint_composite test for change. params.idle = %d vs. opdev->is_idle = %d \n  params.is_fill_color = %d: params.drawn_comps = 0x%"PRIx64" vs. opdev->drawn_comps_fill =  0x%"PRIx64" OR opdev->drawn_comps_stroke = 0x%"PRIx64"\n",
840
46.9k
            params.idle, opdev->is_idle, params.is_fill_color,
841
46.9k
                   (uint64_t)params.drawn_comps,
842
46.9k
                   (uint64_t)opdev->drawn_comps_fill,
843
46.9k
                   (uint64_t)opdev->drawn_comps_stroke);
844
845
46.9k
        if (update || params.idle != opdev->is_idle || params.op_state != OP_STATE_NONE)
846
31.8k
            code = update_overprint_params(opdev, &params);
847
46.9k
        if (code >= 0)
848
46.9k
            *pcdev = dev;
849
46.9k
        return code;
850
46.9k
    }
851
46.9k
}
852
853
/*
854
 * The two rectangle-filling routines (which do the actual work) are just
855
 * stubbs for the time being. The actual routines would allocate a buffer,
856
 * use get_bits_rectangle to build a buffer of the existing data, modify
857
 * the appropriate components, then invoke the copy_color procedure on the
858
 * target device.
859
 */
860
static int
861
overprint_generic_fill_rectangle(
862
    gx_device *     dev,
863
    int             x,
864
    int             y,
865
    int             width,
866
    int             height,
867
    gx_color_index  color )
868
0
{
869
0
    overprint_device_t *    opdev = (overprint_device_t *)dev;
870
0
    gx_device *             tdev = opdev->target;
871
872
0
    if (tdev == 0)
873
0
        return 0;
874
0
    else {
875
876
0
        assert(opdev->op_state != OP_STATE_NONE);
877
878
        /* See if we even need to do any overprinting.  We have to maintain
879
           the compositor active for fill/stroke cases even if we are only
880
           doing a fill or a stroke */
881
0
        if ((opdev->op_state == OP_STATE_FILL && opdev->retain_none_fill) ||
882
0
            (opdev->op_state == OP_STATE_STROKE && opdev->retain_none_stroke))
883
0
            return (*dev_proc(tdev, fill_rectangle)) (tdev, x, y, width, height, color);
884
885
0
        return gx_overprint_generic_fill_rectangle(tdev,
886
0
            opdev->op_state == OP_STATE_FILL ?
887
0
            opdev->drawn_comps_fill : opdev->drawn_comps_stroke,
888
0
            x, y, width, height, color, dev->memory);
889
0
    }
890
0
}
891
892
static int
893
overprint_copy_alpha_hl_color(gx_device * dev, const byte * data, int data_x,
894
           int raster, gx_bitmap_id id, int x, int y, int width, int height,
895
                      const gx_drawing_color *pdcolor, int depth)
896
0
{
897
    /* copy_alpha_hl_color will end up calling copy_planes which for the
898
       copy alpha case we need to make sure we do in a proper overprint
899
       fashion.  Other calls of copy_alpha for example from the pattern
900
       tiling call are not done with overprint control.  So we set an
901
       appopriate flag so that we know to handle this properly when we
902
       get to copy_alpha */
903
904
0
    overprint_device_t *    opdev = (overprint_device_t *)dev;
905
0
    int code;
906
907
0
    if ((opdev->op_state == OP_STATE_FILL && !opdev->retain_none_fill) ||
908
0
        (opdev->op_state == OP_STATE_STROKE && !opdev->retain_none_stroke))
909
0
        opdev->copy_alpha_hl = true;
910
0
    code = gx_default_copy_alpha_hl_color(dev, data, data_x, raster, id, x, y,
911
0
                                          width, height, pdcolor, depth);
912
0
    opdev->copy_alpha_hl = false;
913
0
    return code;
914
0
}
915
916
/* Currently we really should only be here if the target device is planar
917
   AND it supports devn colors AND is 8 (or 16) bit.  This could use a
918
   rewrite to make if more efficient but I had to get something in place
919
   that would work */
920
static int
921
overprint_copy_planes(gx_device * dev, const byte * data, int data_x, int raster_in,
922
                  gx_bitmap_id id, int x, int y, int w, int h, int plane_height)
923
0
{
924
0
    overprint_device_t *    opdev = (overprint_device_t *)dev;
925
0
    gx_device *             tdev = opdev->target;
926
0
    byte *                  gb_buff = 0;
927
0
    gs_get_bits_params_t    gb_params;
928
0
    gs_int_rect             gb_rect;
929
0
    int                     code = 0;
930
0
    int64_t                raster;
931
0
    int                     byte_depth;
932
0
    int                     depth;
933
0
    uchar                   num_comps;
934
0
    uchar                   k,j;
935
0
    gs_memory_t *           mem = dev->memory;
936
0
    gx_color_index          comps_orig = opdev->op_state == OP_STATE_FILL ? opdev->drawn_comps_fill : opdev->drawn_comps_stroke;
937
0
    byte                    *curr_data = (byte *) data + data_x;
938
0
    int                     row, offset;
939
940
0
    if (tdev == 0)
941
0
        return 0;
942
943
0
    if (opdev->copy_alpha_hl) {
944
        /* We are coming here via copy_alpha_hl_color due to the use of AA.
945
           We will want to handle the overprinting here */
946
0
        int bytespercomp;
947
0
        int has_tags = device_encodes_tags(dev);
948
949
0
        depth = tdev->color_info.depth;
950
0
        num_comps = tdev->color_info.num_components;
951
0
        if (has_tags)
952
0
            comps_orig |= (gx_color_index)1<<(num_comps-1);
953
954
0
        fit_fill(tdev, x, y, w, h);
955
0
        byte_depth = depth / num_comps;
956
0
        bytespercomp = byte_depth>>3;
957
958
        /* allocate a buffer for the returned data */
959
0
        if (check_64bit_multiply(w, byte_depth, &raster) != 0)
960
0
            return gs_note_error(gs_error_undefinedresult);
961
962
0
        gb_buff = gs_alloc_bytes(mem, raster * num_comps , "overprint_copy_planes");
963
0
        if (gb_buff == 0)
964
0
            return gs_note_error(gs_error_VMerror);
965
966
        /* Initialize the get_bits parameters. Here we just get a plane at a  time. */
967
0
        gb_params.options =  GB_COLORS_NATIVE
968
0
                           | GB_ALPHA_NONE
969
0
                           | GB_DEPTH_ALL
970
0
                           | GB_PACKING_PLANAR
971
0
                           | GB_RETURN_COPY
972
0
                           | GB_ALIGN_STANDARD
973
0
                           | GB_OFFSET_0
974
0
                           | GB_RASTER_STANDARD
975
0
                           | GB_SELECT_PLANES;
976
977
0
        gb_params.x_offset = 0;
978
0
        gb_params.raster = raster;
979
0
        gb_rect.p.x = x;
980
0
        gb_rect.q.x = x + w;
981
982
        /* step through the height */
983
0
        row = 0;
984
0
        while (h-- > 0 && code >= 0) {
985
0
            gx_color_index comps = comps_orig;
986
0
            gb_rect.p.y = y++;
987
0
            gb_rect.q.y = y;
988
0
            offset = row * raster_in + data_x * bytespercomp;
989
0
            row++;
990
0
            curr_data = (byte *) data + offset; /* start us at the start of row */
991
            /* And now through each plane */
992
0
            for (k = 0; k < tdev->color_info.num_components; k++) {
993
                /* First set the params to zero for all planes except the one we want */
994
0
                for (j = 0; j < tdev->color_info.num_components; j++)
995
0
                    gb_params.data[j] = 0;
996
0
                gb_params.data[k] = gb_buff + k * raster;
997
0
                code = dev_proc(tdev, get_bits_rectangle) (tdev, &gb_rect,
998
0
                                                           &gb_params);
999
0
                if (code < 0) {
1000
0
                    gs_free_object(mem, gb_buff, "overprint_copy_planes" );
1001
0
                    return code;
1002
0
                }
1003
                /* Skip the plane if this component is not to be drawn.  If
1004
                   its the one that we want to draw, replace it with our
1005
                   buffer data */
1006
0
                if ((comps & 0x01) == 1) {
1007
0
                    memcpy(gb_params.data[k], curr_data, w * bytespercomp);
1008
0
                }
1009
                /* Next plane */
1010
0
                curr_data += plane_height * raster_in;
1011
0
                comps >>= 1;
1012
0
            }
1013
0
            code = dev_proc(tdev, copy_planes)(tdev, gb_buff, 0, raster,
1014
0
                                               gs_no_bitmap_id, x, y - 1, w, 1, 1);
1015
0
        }
1016
0
        gs_free_object(mem, gb_buff, "overprint_copy_planes" );
1017
0
        return code;
1018
0
    } else {
1019
        /* This is not a case where copy planes should be doing overprinting.
1020
           For example, if we came here via the pattern tiling code, so just
1021
           pass this along to the target */
1022
0
        return (*dev_proc(tdev, copy_planes)) (tdev, data, data_x, raster_in, id,
1023
0
                                               x, y, w, h, plane_height);
1024
0
    }
1025
0
}
1026
static void
1027
my_memset16_be(uint16_t *dst, uint16_t col, size_t w)
1028
0
{
1029
0
#if !ARCH_IS_BIG_ENDIAN
1030
0
    col = (col>>8) | (col<<8);
1031
0
#endif
1032
0
    while (w--) {
1033
0
        *dst++ = col;
1034
0
    }
1035
0
}
1036
1037
/* Currently we really should only be here if the target device is planar
1038
   AND it supports devn colors AND is 8 or 16 bit. */
1039
static int
1040
overprint_fill_rectangle_hl_color(gx_device *dev,
1041
    const gs_fixed_rect *rect, const gs_gstate *pgs,
1042
    const gx_drawing_color *pdcolor, const gx_clip_path *pcpath)
1043
223
{
1044
223
    overprint_device_t *    opdev = (overprint_device_t *)dev;
1045
223
    gx_device *             tdev = opdev->target;
1046
223
    byte *                  gb_buff = 0;
1047
223
    gs_get_bits_params_t    gb_params;
1048
223
    gs_int_rect             gb_rect;
1049
223
    int                     code = 0;
1050
223
    int64_t                raster;
1051
223
    int                     byte_depth;
1052
223
    int                     depth;
1053
223
    uchar                   num_comps;
1054
223
    int                     x, y, w, h;
1055
223
    uchar                   k, j;
1056
223
    gs_memory_t *           mem = dev->memory;
1057
223
    gx_color_index          comps, comps2;
1058
223
    gx_color_index          mask;
1059
223
    int                     shift;
1060
223
    int                     deep;
1061
223
    int                     tag_plane = -1;
1062
1063
223
    if (tdev == 0)
1064
0
        return 0;
1065
1066
223
    assert(opdev->op_state != OP_STATE_NONE);
1067
1068
    /* See if we even need to do any overprinting.  We have to maintain
1069
       the compositor active for fill/stroke cases even if we are only
1070
       doing a fill or a stroke */
1071
223
    if ((opdev->op_state == OP_STATE_FILL && opdev->retain_none_fill) ||
1072
223
        (opdev->op_state == OP_STATE_STROKE && opdev->retain_none_stroke))
1073
0
        return (*dev_proc(tdev, fill_rectangle_hl_color)) (tdev, rect, pgs, pdcolor, pcpath);
1074
1075
223
    depth = tdev->color_info.depth;
1076
223
    num_comps = tdev->color_info.num_components;
1077
223
    if (device_encodes_tags(dev))
1078
0
        tag_plane = tdev->num_planar_planes - 1;
1079
1080
223
    x = fixed2int(rect->p.x);
1081
223
    y = fixed2int(rect->p.y);
1082
223
    w = fixed2int(rect->q.x) - x;
1083
223
    h = fixed2int(rect->q.y) - y;
1084
1085
223
    fit_fill(tdev, x, y, w, h);
1086
223
    byte_depth = depth / num_comps;
1087
223
    mask = ((gx_color_index)1 << byte_depth) - 1;
1088
223
    shift = 16 - byte_depth;
1089
223
    deep = byte_depth == 16;
1090
1091
    /* allocate a buffer for the returned data */
1092
223
    if (check_64bit_multiply(w, byte_depth, &raster) != 0)
1093
0
        return gs_note_error(gs_error_undefinedresult);
1094
223
    gb_buff = gs_alloc_bytes(mem, raster * num_comps , "overprint_fill_rectangle_hl_color");
1095
223
    if (gb_buff == 0)
1096
0
        return gs_note_error(gs_error_VMerror);
1097
1098
    /* Initialize the get_bits parameters. Here we just get a plane at a  time. */
1099
223
    gb_params.options =  GB_COLORS_NATIVE
1100
223
                       | GB_ALPHA_NONE
1101
223
                       | GB_DEPTH_ALL
1102
223
                       | GB_PACKING_PLANAR
1103
223
                       | GB_RETURN_COPY
1104
223
                       | GB_ALIGN_STANDARD
1105
223
                       | GB_OFFSET_0
1106
223
                       | GB_RASTER_STANDARD
1107
223
                       | GB_SELECT_PLANES;
1108
1109
223
    gb_params.x_offset = 0;     /* for consistency */
1110
223
    gb_params.raster = raster;
1111
223
    gb_rect.p.x = x;
1112
223
    gb_rect.q.x = x + w;
1113
1114
    /* step through the height */
1115
223
    comps2 = opdev->op_state == OP_STATE_FILL ? opdev->drawn_comps_fill : opdev->drawn_comps_stroke;
1116
    /* If we are dealing with tags, and we are writing ANY components, then we want to write the
1117
     * tag plane too. */
1118
223
    if (comps2 != 0 && device_encodes_tags(dev)) {
1119
        /* Careful to allow for gx_color_index being larger than an int here! */
1120
0
        comps2 |= ((gx_color_index)1)<<(tdev->color_info.num_components-1);
1121
0
    }
1122
557
    while (h-- > 0 && code >= 0) {
1123
334
        gb_rect.p.y = y++;
1124
334
        gb_rect.q.y = y;
1125
334
        comps = comps2;
1126
        /* And now through each plane */
1127
1.68k
        for (k = 0; k < tdev->color_info.num_components; k++) {
1128
            /* First set the params to zero for all planes except the one we want */
1129
6.86k
            for (j = 0; j < tdev->color_info.num_components; j++)
1130
5.50k
                gb_params.data[j] = 0;
1131
1.35k
            gb_params.data[k] = gb_buff + k * raster;
1132
1.35k
            code = dev_proc(tdev, get_bits_rectangle) (tdev, &gb_rect,
1133
1.35k
                                                       &gb_params);
1134
1.35k
            if (code < 0) {
1135
0
                gs_free_object(mem, gb_buff,
1136
0
                               "overprint_fill_rectangle_hl_color" );
1137
0
                return code;
1138
0
            }
1139
            /* Skip the plane if this component is not to be drawn.  We have
1140
                to do a get bits for each plane due to the fact that we have
1141
                to do a copy_planes at the end.  If we had a copy_plane
1142
                operation we would just get the ones needed and set those. */
1143
1.35k
            if ((comps & 0x01) == 1) {
1144
                /* Not sure if a loop or a memset is better here */
1145
994
                if (deep)
1146
0
                    my_memset16_be((uint16_t *)(gb_params.data[k]),
1147
0
                                   pdcolor->colors.devn.values[k], w);
1148
994
                else {
1149
994
                    int v = pdcolor->colors.devn.values[k];
1150
994
                    if (k != tag_plane)
1151
994
                        v = (v>>shift) & mask;
1152
994
                    memset(gb_params.data[k], v, w);
1153
994
                }
1154
994
            }
1155
1.35k
            comps >>= 1;
1156
1.35k
        }
1157
334
        code = dev_proc(tdev, copy_planes)(tdev, gb_buff, 0, raster,
1158
334
                                           gs_no_bitmap_id, x, y - 1, w, 1, 1);
1159
334
    }
1160
223
    gs_free_object(mem, gb_buff,
1161
223
                    "overprint_fill_rectangle_hl_color" );
1162
223
    return code;
1163
223
}
1164
1165
static int
1166
overprint_sep_fill_rectangle(
1167
    gx_device *     dev,
1168
    int             x,
1169
    int             y,
1170
    int             width,
1171
    int             height,
1172
    gx_color_index  color )
1173
763k
{
1174
763k
    overprint_device_t *    opdev = (overprint_device_t *)dev;
1175
763k
    gx_device *             tdev = opdev->target;
1176
1177
763k
    if (tdev == 0)
1178
0
        return 0;
1179
763k
    else {
1180
763k
        int     depth = tdev->color_info.depth;
1181
1182
763k
        assert(opdev->op_state != OP_STATE_NONE);
1183
1184
        /* See if we even need to do any overprinting.  We have to maintain
1185
           the compositor active for fill/stroke cases even if we are only
1186
           doing a fill or a stroke */
1187
763k
        if ((opdev->op_state == OP_STATE_FILL && opdev->retain_none_fill) ||
1188
763k
            (opdev->op_state == OP_STATE_STROKE && opdev->retain_none_stroke))
1189
0
            return (*dev_proc(tdev, fill_rectangle)) (tdev, x, y, width, height, color);
1190
1191
        /*
1192
         * Swap the color index into the order required by a byte-oriented
1193
         * bitmap. This is required only for littl-endian processors, and
1194
         * then only if the depth > 8.
1195
         */
1196
763k
#if !ARCH_IS_BIG_ENDIAN
1197
763k
        if (depth > 8)
1198
0
            color = swap_color_index(depth, color);
1199
763k
#endif
1200
1201
        /*
1202
         * We can handle rectangle filling via bits_fill_rectangle_masked
1203
         * if the depth is a divisor of 8 * sizeof(mono_fill_chunk). The
1204
         * non-masked fill_rectangle code uses a byte-oriented routine
1205
         * if depth > 8, but there is not much advantage to doing so if
1206
         * masking is required.
1207
         *
1208
         * Directly testing (8 * sizeof(mono_fill_chunk)) % depth is
1209
         * potentially expensive, since many rectangles are small. We
1210
         * can avoid the modulus operation by noting that
1211
         * 8 * sizeof(mono_fill_chunk) will be a power of 2, and so
1212
         * we need only check that depth is a power of 2 and
1213
         * depth < 8 * sizeof(mono_fill_chunk).
1214
         */
1215
763k
        if ( depth <= 8 * sizeof(mono_fill_chunk) && (depth & (depth - 1)) == 0)
1216
763k
            return gx_overprint_sep_fill_rectangle_1(tdev, opdev->op_state == OP_STATE_FILL ?
1217
709k
                                                     opdev->retain_mask_fill : opdev->retain_mask_stroke,
1218
763k
                                                     x, y, width, height,
1219
763k
                                                     color, dev->memory);
1220
0
        else
1221
0
            return gx_overprint_sep_fill_rectangle_2(tdev, opdev->op_state == OP_STATE_FILL ?
1222
0
                                                     opdev->retain_mask_fill : opdev->retain_mask_stroke,
1223
0
                                                     x, y, width, height,
1224
0
                                                     color, dev->memory);
1225
763k
    }
1226
763k
}
1227
1228
/* We need this to ensure the device knows we are doing a fill */
1229
static int
1230
overprint_fill_path(gx_device* pdev, const gs_gstate* pgs,
1231
    gx_path* ppath, const gx_fill_params* params_fill,
1232
    const gx_device_color* pdcolor, const gx_clip_path* pcpath)
1233
134
{
1234
134
    overprint_device_t* opdev = (overprint_device_t*)pdev;
1235
134
    OP_FS_STATE save_op_state = opdev->op_state;
1236
134
    int code;
1237
1238
134
    opdev->op_state = OP_STATE_FILL;
1239
134
    code = gx_default_fill_path(pdev, pgs, ppath, params_fill, pdcolor, pcpath);
1240
134
    opdev->op_state = save_op_state;
1241
134
    return code;
1242
134
}
1243
1244
/* We need this to ensure the device knows we are doing a stroke */
1245
static int
1246
overprint_stroke_path(gx_device* pdev, const gs_gstate* pgs,
1247
    gx_path* ppath, const gx_stroke_params* params_stroke,
1248
    const gx_device_color* pdcolor, const gx_clip_path* pcpath)
1249
327
{
1250
327
    overprint_device_t* opdev = (overprint_device_t*)pdev;
1251
327
    OP_FS_STATE save_op_state = opdev->op_state;
1252
327
    int code;
1253
1254
327
    opdev->op_state = OP_STATE_STROKE;
1255
1256
    /* Stroke methods use fill path so set that to default to
1257
       avoid mix up of is_fill_color */
1258
327
    opdev->procs.fill_path = gx_default_fill_path;
1259
327
    code = gx_default_stroke_path(pdev, pgs, ppath, params_stroke, pdcolor, pcpath);
1260
327
    opdev->procs.fill_path = overprint_fill_path;
1261
327
    opdev->op_state = save_op_state;
1262
1263
327
    return code;
1264
327
}
1265
1266
/*
1267
 *  Cannot use default_fill_stroke_path because we need to set the is_fill_color
1268
 */
1269
static int
1270
overprint_fill_stroke_path(gx_device * pdev, const gs_gstate * pgs,
1271
                           gx_path * ppath,
1272
                           const gx_fill_params * params_fill,
1273
                           const gx_device_color * pdevc_fill,
1274
                           const gx_stroke_params * params_stroke,
1275
                           const gx_device_color * pdevc_stroke,
1276
                           const gx_clip_path * pcpath)
1277
0
{
1278
0
    int code;
1279
0
    overprint_device_t *opdev = (overprint_device_t *)pdev;
1280
0
    OP_FS_STATE save_op_state = opdev->op_state;
1281
1282
0
    opdev->op_state = OP_STATE_FILL;
1283
0
    code = dev_proc(pdev, fill_path)(pdev, pgs, ppath, params_fill, pdevc_fill, pcpath);
1284
0
    if (code < 0)
1285
0
        return code;
1286
1287
    /* Set up for stroke */
1288
0
    opdev->op_state = OP_STATE_STROKE;
1289
0
    code = dev_proc(pdev, stroke_path)(pdev, pgs, ppath, params_stroke, pdevc_stroke, pcpath);
1290
0
    opdev->op_state = save_op_state;
1291
0
    return code;
1292
0
}
1293
1294
/* We need to make sure we are set up properly based upon the text mode */
1295
static int
1296
overprint_text_begin(gx_device* dev, gs_gstate* pgs,
1297
    const gs_text_params_t* text, gs_font* font,
1298
    const gx_clip_path* pcpath,
1299
    gs_text_enum_t** ppte)
1300
0
{
1301
0
    overprint_device_t* opdev = (overprint_device_t*)dev;
1302
0
    OP_FS_STATE save_op_state = opdev->op_state;
1303
0
    int code = 0;
1304
1305
0
    if (pgs->text_rendering_mode == 0)
1306
0
        opdev->op_state = OP_STATE_FILL;
1307
0
    else if (pgs->text_rendering_mode == 1)
1308
0
        opdev->op_state = OP_STATE_STROKE;
1309
1310
0
    code = gx_default_text_begin(dev, pgs, text, font, pcpath, ppte);
1311
0
    opdev->op_state = save_op_state;
1312
0
    return code;
1313
0
}
1314
1315
static int
1316
overprint_dev_spec_op(gx_device* pdev, int dev_spec_op,
1317
    void* data, int size)
1318
146k
{
1319
146k
    overprint_device_t* opdev = (overprint_device_t*)pdev;
1320
146k
    gx_device* tdev = opdev->target;
1321
1322
146k
    if (tdev == 0)
1323
0
        return 0;
1324
1325
146k
    if (dev_spec_op == gxdso_overprint_active)
1326
0
        return !opdev->is_idle;
1327
1328
146k
    if (dev_spec_op == gxdso_abuf_optrans)
1329
0
    {
1330
0
        overprint_abuf_state_t *state = (overprint_abuf_state_t *)data;
1331
0
        switch (state->op_trans)
1332
0
        {
1333
0
        case OP_FS_TRANS_PREFILL:
1334
0
            state->storage[0] = opdev->op_state;
1335
0
            opdev->op_state = OP_STATE_FILL;
1336
0
            break;
1337
0
        case OP_FS_TRANS_PRESTROKE:
1338
0
            opdev->op_state = OP_STATE_STROKE;
1339
0
            break;
1340
0
        default:
1341
0
        case OP_FS_TRANS_POSTSTROKE:
1342
0
        case OP_FS_TRANS_CLEANUP:
1343
0
            opdev->op_state = (OP_FS_STATE)state->storage[0];
1344
0
            break;
1345
0
        }
1346
0
        return 0;
1347
0
    }
1348
1349
146k
    if (dev_spec_op == gxdso_device_child) {
1350
0
        gxdso_device_child_request *d = (gxdso_device_child_request *)data;
1351
0
        if (d->target == pdev) {
1352
0
            d->target = tdev;
1353
0
            return 1;
1354
0
        }
1355
0
    }
1356
146k
    if (dev_spec_op == gxdso_device_insert_child) {
1357
0
        opdev->target = (gx_device *)data;
1358
0
        rc_increment(opdev->target);
1359
0
        rc_decrement_only(tdev, "overprint_dev_spec_op");
1360
0
        return 0;
1361
0
    }
1362
146k
    return dev_proc(tdev, dev_spec_op)(tdev, dev_spec_op, data, size);
1363
146k
}
1364
1365
/* complete a procedure set */
1366
static int
1367
fill_in_procs(gx_device_procs * pprocs,
1368
              dev_proc_initialize_device_procs(initialize_device_procs),
1369
              int num_planar_planes)
1370
1.17k
{
1371
1.17k
    gx_device_forward tmpdev;
1372
1373
    /*
1374
     * gx_device_forward_fill_in_procs calls gx_device_fill_in_procs, which
1375
     * requires the color_info field of the device be set to "reasonable"
1376
     * values. Which values is irrelevant in this case, but they must not
1377
     * contain dangling pointers, excessive numbers of components, etc.
1378
     */
1379
1.17k
    memcpy( &tmpdev.color_info,
1380
1.17k
            &gs_overprint_device.color_info,
1381
1.17k
            sizeof(tmpdev.color_info) );
1382
1.17k
    tmpdev.num_planar_planes = num_planar_planes;
1383
1384
    /*
1385
     * Prevent the check_device_separable routine from executing while we
1386
     * fill in the procs.  Our tmpdev is not complete enough for it.
1387
     */
1388
1.17k
    tmpdev.color_info.separable_and_linear = GX_CINFO_SEP_LIN_NONE;
1389
1.17k
    memset(&tmpdev.procs, 0, sizeof(tmpdev.procs));
1390
1.17k
    tmpdev.initialize_device_procs = initialize_device_procs;
1391
1.17k
    initialize_device_procs((gx_device *)&tmpdev);
1392
1.17k
    gx_device_forward_fill_in_procs(&tmpdev);
1393
1.17k
    memcpy(pprocs, &tmpdev.procs, sizeof(tmpdev.procs));
1394
1395
1.17k
    return 0;
1396
1.17k
}
1397
1398
/*
1399
 * Create an overprint compositor.
1400
 *
1401
 * Note that this routine will be called only if the device is not already
1402
 * an overprint compositor. Hence, if pct->params.retain_any_comps is
1403
 * false, we can just return.
1404
 */
1405
static int
1406
c_overprint_create_default_compositor(
1407
    const gs_composite_t *  pct,
1408
    gx_device **            popdev,
1409
    gx_device *             tdev,
1410
    gs_gstate *             pgs,
1411
    gs_memory_t *           mem )
1412
11.8M
{
1413
11.8M
    const gs_overprint_t *  ovrpct = (const gs_overprint_t *)pct;
1414
11.8M
    overprint_device_t *    opdev = 0;
1415
11.8M
    gs_overprint_params_t params;
1416
11.8M
    int code;
1417
1418
    /* see if there is anything to do */
1419
11.8M
    if ( !ovrpct->params.retain_any_comps) {
1420
11.8M
        *popdev = tdev;
1421
11.8M
        return 0;
1422
11.8M
    }
1423
7.86k
    if (pct->idle) {
1424
7.47k
        *popdev = tdev;
1425
7.47k
        return 0;
1426
7.47k
    }
1427
1428
    /* build the overprint device */
1429
392
    opdev = gs_alloc_struct_immovable(mem,
1430
392
                                      overprint_device_t,
1431
392
                                      &st_overprint_device_t,
1432
392
                                      "create overprint compositor" );
1433
392
    *popdev = (gx_device *)opdev;
1434
392
    if (opdev == NULL)
1435
0
        return_error(gs_error_VMerror);
1436
392
    code = gx_device_init((gx_device *)opdev,
1437
392
                          (const gx_device *)&gs_overprint_device,
1438
392
                          mem,
1439
392
                          false);
1440
392
    if (code < 0)
1441
0
        return code;
1442
392
    code = fill_in_procs(&opdev->no_overprint_procs,
1443
392
                         nooverprint_initialize_device_procs,
1444
392
                         tdev->num_planar_planes);
1445
392
    if (code < 0)
1446
0
        return code;
1447
392
    code = fill_in_procs(&opdev->generic_overprint_procs,
1448
392
                         generic_overprint_initialize_device_procs,
1449
392
                         tdev->num_planar_planes);
1450
392
    if (code < 0)
1451
0
        return code;
1452
392
    code = fill_in_procs(&opdev->sep_overprint_procs,
1453
392
                         sep_overprint_initialize_device_procs,
1454
392
                         tdev->num_planar_planes);
1455
392
    if (code < 0)
1456
0
        return code;
1457
1458
392
    gx_device_copy_params((gx_device *)opdev, tdev);
1459
392
    gx_device_set_target((gx_device_forward *)opdev, tdev);
1460
392
    opdev->pad = tdev->pad;
1461
392
    opdev->log2_align_mod = tdev->log2_align_mod;
1462
392
    opdev->num_planar_planes = tdev->num_planar_planes;
1463
1464
392
    params = ovrpct->params;
1465
392
    params.idle = ovrpct->idle;
1466
1467
    /* Initialize the stroke and fill states */
1468
392
    opdev->retain_none_fill = true;
1469
392
    opdev->retain_none_stroke = true;
1470
1471
    /* set up the overprint parameters */
1472
392
    code = update_overprint_params(opdev, &params);
1473
392
    if (code < 0)
1474
0
        return code;
1475
392
    return 1;
1476
392
}