Coverage Report

Created: 2025-06-10 06:49

/src/ghostpdl/psi/zdevice.c
Line
Count
Source (jump to first uncovered line)
1
/* Copyright (C) 2001-2024 Artifex Software, Inc.
2
   All Rights Reserved.
3
4
   This software is provided AS-IS with no warranty, either express or
5
   implied.
6
7
   This software is distributed under license and may not be copied,
8
   modified or distributed except as expressly authorized under the terms
9
   of the license contained in the file LICENSE in this distribution.
10
11
   Refer to licensing information at http://www.artifex.com or contact
12
   Artifex Software, Inc.,  39 Mesa Street, Suite 108A, San Francisco,
13
   CA 94129, USA, for further information.
14
*/
15
16
17
/* Device-related operators */
18
#include "string_.h"
19
#include "ghost.h"
20
#include "oper.h"
21
#include "ialloc.h"
22
#include "idict.h"
23
#include "igstate.h"
24
#include "imain.h"
25
#include "imemory.h"
26
#include "iname.h"
27
#include "interp.h"
28
#include "iparam.h"
29
#include "ivmspace.h"
30
#include "gsmatrix.h"
31
#include "gsstate.h"
32
#include "gxdevice.h"
33
#include "gxalloc.h"
34
#include "gxgetbit.h"
35
#include "store.h"
36
#include "gsicc_manage.h"
37
#include "gxdevsop.h"
38
39
struct_proc_finalize(psi_device_ref_finalize);
40
41
static
42
1.87M
ENUM_PTRS_WITH(psi_device_ref_enum_ptrs, psi_device_ref *devref)
43
763k
      {
44
763k
          return 0;
45
0
      }
46
1.11M
    case 0:
47
1.11M
      {
48
1.11M
          if (devref->device != NULL && devref->device->memory != NULL) {
49
763k
              ENUM_RETURN(gx_device_enum_ptr(devref->device));
50
763k
          }
51
349k
          return 0;
52
1.11M
      }
53
1.87M
ENUM_PTRS_END
54
55
static
56
1.11M
RELOC_PTRS_WITH(psi_device_ref_reloc_ptrs, psi_device_ref *devref)
57
1.11M
    if (devref->device != NULL && devref->device->memory != NULL) {
58
763k
        devref->device = gx_device_reloc_ptr(devref->device, gcst);
59
763k
    }
60
1.11M
RELOC_PTRS_END
61
62
gs_private_st_composite_use_final(st_psi_device_ref, psi_device_ref, "psi_device_ref_t",
63
                     psi_device_ref_enum_ptrs, psi_device_ref_reloc_ptrs, psi_device_ref_finalize);
64
65
void
66
psi_device_ref_finalize(const gs_memory_t *cmem, void *vptr)
67
1.06M
{
68
1.06M
    psi_device_ref *pdref = (psi_device_ref *)vptr;
69
1.06M
    (void)cmem;
70
71
    /* pdref->device->memory == NULL indicates either a device prototype
72
       or a device allocated on the stack rather than the heap
73
     */
74
1.06M
    if (pdref->device != NULL && pdref->device->memory != NULL)
75
1.06M
        rc_decrement(pdref->device, "psi_device_ref_finalize");
76
77
1.06M
    pdref->device = NULL;
78
1.06M
}
79
80
/* <device> <keep_open> .copydevice2 <newdevice> */
81
static int
82
zcopydevice2(i_ctx_t *i_ctx_p)
83
17.4k
{
84
17.4k
    os_ptr op = osp;
85
17.4k
    gx_device *new_dev;
86
17.4k
    int code;
87
17.4k
    psi_device_ref *psdev;
88
89
17.4k
    check_op(2);
90
17.4k
    check_read_type(op[-1], t_device);
91
17.4k
    check_type(*op, t_boolean);
92
17.4k
    if (op[-1].value.pdevice == NULL)
93
        /* This can happen if we invalidated devices on the stack by calling nulldevice after they were pushed */
94
0
        return_error(gs_error_undefined);
95
96
17.4k
    if (gs_is_path_control_active((const gs_memory_t *)i_ctx_p->memory.current)) {
97
0
        const gx_device *dev = (const gx_device *)op[-1].value.pdevice->device;
98
99
0
        if (gs_check_device_permission((gs_memory_t *)i_ctx_p->memory.current, dev->dname, strlen(dev->dname)) == 0)
100
0
            return_error(gs_error_invalidaccess);
101
0
    }
102
103
17.4k
    code = gs_copydevice2(&new_dev, op[-1].value.pdevice->device, op->value.boolval,
104
17.4k
                          imemory);
105
17.4k
    if (code < 0)
106
0
        return code;
107
17.4k
    new_dev->memory = imemory;
108
109
17.4k
    psdev = gs_alloc_struct(imemory, psi_device_ref, &st_psi_device_ref, "zcopydevice2");
110
17.4k
    if (!psdev) {
111
0
        rc_decrement(new_dev, "zcopydevice2");
112
0
        return_error(gs_error_VMerror);
113
0
    }
114
17.4k
    psdev->device = new_dev;
115
116
17.4k
    make_tav(op - 1, t_device, icurrent_space | a_all, pdevice, psdev);
117
17.4k
    pop(1);
118
17.4k
    return 0;
119
17.4k
}
120
121
/* - currentdevice <device> */
122
/* Returns the current device in the graphics state */
123
int
124
zcurrentdevice(i_ctx_t *i_ctx_p)
125
574k
{
126
574k
    os_ptr op = osp;
127
574k
    gx_device *dev = gs_currentdevice(igs);
128
574k
    gs_ref_memory_t *mem = (gs_ref_memory_t *) dev->memory;
129
574k
    psi_device_ref *psdev;
130
131
574k
    psdev = gs_alloc_struct(dev->memory, psi_device_ref, &st_psi_device_ref, "zcurrentdevice");
132
574k
    if (!psdev) {
133
0
        return_error(gs_error_VMerror);
134
0
    }
135
574k
    psdev->device = dev;
136
574k
    rc_increment(dev);
137
138
574k
    push(1);
139
574k
    make_tav(op, t_device, imemory_space(mem) | a_all, pdevice, psdev);
140
574k
    return 0;
141
574k
}
142
143
/* - .currentoutputdevice <device> */
144
/* Returns the *output* device - which will often
145
   be the same as above, but not always: if a compositor
146
   or other forwarding device, or subclassing device is
147
   in force, that will be referenced by the graphics state
148
   rather than the output device.
149
   This is equivalent of currentdevice device, but returns
150
   the *device* object, rather than the dictionary describing
151
   the device and device state.
152
 */
153
int
154
zcurrentoutputdevice(i_ctx_t *i_ctx_p)
155
107k
{
156
107k
    os_ptr op = osp;
157
107k
    gx_device *odev = NULL, *dev = gs_currentdevice(igs);
158
107k
    psi_device_ref *psdev;
159
107k
    gs_ref_memory_t *mem = (gs_ref_memory_t *) dev->memory;
160
107k
    int code = dev_proc(dev, dev_spec_op)(dev,
161
107k
                        gxdso_current_output_device, (void *)&odev, 0);
162
107k
    if (code < 0)
163
0
        return code;
164
165
107k
    psdev = gs_alloc_struct(dev->memory, psi_device_ref, &st_psi_device_ref, "zcurrentdevice");
166
107k
    if (!psdev) {
167
0
        return_error(gs_error_VMerror);
168
0
    }
169
107k
    psdev->device = odev;
170
107k
    rc_increment(odev);
171
172
107k
    push(1);
173
107k
    make_tav(op, t_device, imemory_space(mem) | a_all, pdevice, psdev);
174
107k
    return 0;
175
107k
}
176
177
/* <device> .devicename <string> */
178
static int
179
zdevicename(i_ctx_t *i_ctx_p)
180
473k
{
181
473k
    os_ptr op = osp;
182
473k
    const char *dname;
183
184
473k
    check_op(1);
185
473k
    check_read_type(*op, t_device);
186
473k
    if (op->value.pdevice == NULL)
187
        /* This can happen if we invalidated devices on the stack by calling nulldevice after they were pushed */
188
0
        return_error(gs_error_undefined);
189
190
473k
    dname = op->value.pdevice->device->dname;
191
473k
    make_const_string(op, avm_foreign | a_readonly, strlen(dname),
192
473k
                      (const byte *)dname);
193
473k
    return 0;
194
473k
}
195
196
/* - .doneshowpage - */
197
static int
198
zdoneshowpage(i_ctx_t *i_ctx_p)
199
4.27k
{
200
4.27k
    gx_device *dev = gs_currentdevice(igs);
201
4.27k
    gx_device *tdev = (*dev_proc(dev, get_page_device)) (dev);
202
203
4.27k
    if (tdev != 0)
204
4.26k
        tdev->ShowpageCount++;
205
4.27k
    return 0;
206
4.27k
}
207
208
/* - flushpage - */
209
int
210
zflushpage(i_ctx_t *i_ctx_p)
211
8.74k
{
212
8.74k
    return gs_flushpage(igs);
213
8.74k
}
214
215
/* <device> <x> <y> <width> <max_height> <alpha?> <std_depth|null> <string> */
216
/*   .getbitsrect <height> <substring> */
217
static int
218
zgetbitsrect(i_ctx_t *i_ctx_p)
219
0
{ /*
220
         * alpha? is 0 for no alpha, -1 for alpha first, 1 for alpha last.
221
         * std_depth is null for native pixels, depth/component for
222
         * standard color space.
223
         */
224
0
    os_ptr op = osp;
225
0
    gx_device *dev;
226
0
    gs_int_rect rect;
227
0
    gs_get_bits_params_t params;
228
0
    int w, h;
229
0
    gs_get_bits_options_t options =
230
0
        GB_ALIGN_ANY | GB_RETURN_COPY | GB_OFFSET_0 | GB_RASTER_STANDARD |
231
0
        GB_PACKING_CHUNKY;
232
0
    int depth;
233
0
    uint raster;
234
0
    int num_rows;
235
0
    int code;
236
237
0
    check_op(7);
238
0
    check_read_type(op[-7], t_device);
239
0
    if (op[-7].value.pdevice == NULL)
240
        /* This can happen if we invalidated devices on the stack by calling nulldevice after they were pushed */
241
0
        return_error(gs_error_undefined);
242
243
0
    dev = op[-7].value.pdevice->device;
244
245
0
    check_int_leu(op[-6], dev->width);
246
0
    rect.p.x = op[-6].value.intval;
247
0
    check_int_leu(op[-5], dev->height);
248
0
    rect.p.y = op[-5].value.intval;
249
0
    check_int_leu(op[-4], dev->width);
250
0
    w = op[-4].value.intval;
251
0
    check_int_leu(op[-3], dev->height);
252
0
    h = op[-3].value.intval;
253
0
    check_type(op[-2], t_integer);
254
    /*
255
     * We use if/else rather than switch because the value is long,
256
     * which is not supported as a switch value in pre-ANSI C.
257
     */
258
0
    if (op[-2].value.intval == -1)
259
0
        options |= GB_ALPHA_FIRST;
260
0
    else if (op[-2].value.intval == 0)
261
0
        options |= GB_ALPHA_NONE;
262
0
    else if (op[-2].value.intval == 1)
263
0
        options |= GB_ALPHA_LAST;
264
0
    else
265
0
        return_error(gs_error_rangecheck);
266
0
    if (r_has_type(op - 1, t_null)) {
267
0
        options |= GB_COLORS_NATIVE;
268
0
        depth = dev->color_info.depth;
269
0
    } else {
270
0
        static const gs_get_bits_options_t depths[17] = {
271
0
            0, GB_DEPTH_1, GB_DEPTH_2, 0, GB_DEPTH_4, 0, 0, 0, GB_DEPTH_8,
272
0
            0, 0, 0, GB_DEPTH_12, 0, 0, 0, GB_DEPTH_16
273
0
        };
274
0
        gs_get_bits_options_t depth_option;
275
0
        int std_depth;
276
277
0
        check_int_leu(op[-1], 16);
278
0
        std_depth = (int)op[-1].value.intval;
279
0
        depth_option = depths[std_depth];
280
0
        if (depth_option == 0)
281
0
            return_error(gs_error_rangecheck);
282
0
        options |= depth_option | GB_COLORS_NATIVE;
283
0
        depth = (dev->color_info.num_components +
284
0
                 (options & GB_ALPHA_NONE ? 0 : 1)) * std_depth;
285
0
    }
286
0
    if (w == 0)
287
0
        return_error(gs_error_rangecheck);
288
0
    raster = (w * depth + 7) >> 3;
289
0
    check_write_type(*op, t_string);
290
0
    num_rows = r_size(op) / raster;
291
0
    h = min(h, num_rows);
292
0
    if (h == 0)
293
0
        return_error(gs_error_rangecheck);
294
0
    rect.q.x = rect.p.x + w;
295
0
    rect.q.y = rect.p.y + h;
296
0
    params.options = options;
297
0
    params.data[0] = op->value.bytes;
298
0
    code = (*dev_proc(dev, get_bits_rectangle))(dev, &rect, &params);
299
0
    if (code < 0)
300
0
        return code;
301
0
    make_int(op - 7, h);
302
0
    op[-6] = *op;
303
0
    r_set_size(op - 6, h * raster);
304
0
    pop(6);
305
0
    return 0;
306
0
}
307
308
/* <int> .getdevice <device> */
309
static int
310
zgetdevice(i_ctx_t *i_ctx_p)
311
383k
{
312
383k
    os_ptr op = osp;
313
383k
    const gx_device *dev;
314
383k
    psi_device_ref *psdev;
315
316
383k
    check_op(1);
317
383k
    check_type(*op, t_integer);
318
383k
    if (op->value.intval != (int)(op->value.intval))
319
0
        return_error(gs_error_rangecheck);  /* won't fit in an int */
320
383k
    dev = gs_getdevice((int)(op->value.intval));
321
383k
    if (dev == 0)    /* index out of range */
322
17.4k
        return_error(gs_error_rangecheck);
323
324
366k
    psdev = gs_alloc_struct(imemory, psi_device_ref, &st_psi_device_ref, "zgetdevice");
325
366k
    if (!psdev) {
326
0
        return_error(gs_error_VMerror);
327
0
    }
328
    /* gs_getdevice() returns a device prototype, so no reference counting required */
329
366k
    psdev->device = (gx_device *)dev;
330
331
    /* Device prototypes are read-only; */
332
366k
    make_tav(op, t_device, imemory_space(iimemory) | a_readonly, pdevice, psdev);
333
366k
    return 0;
334
366k
}
335
336
/* - .getdefaultdevice <device> */
337
static int
338
zgetdefaultdevice(i_ctx_t *i_ctx_p)
339
0
{
340
0
    os_ptr op = osp;
341
0
    const gx_device *dev;
342
0
    psi_device_ref *psdev;
343
344
0
    dev = gs_getdefaultlibdevice(imemory);
345
0
    if (dev == 0) /* couldn't find a default device */
346
0
        return_error(gs_error_unknownerror);
347
348
0
    psdev = gs_alloc_struct(imemory, psi_device_ref, &st_psi_device_ref, "zgetdefaultdevice");
349
0
    if (!psdev) {
350
0
        return_error(gs_error_VMerror);
351
0
    }
352
    /* gs_getdefaultlibdevice() returns a device prototype, so no reference counting required */
353
0
    psdev->device = (gx_device *)dev;
354
355
0
    push(1);
356
0
    make_tav(op, t_device, imemory_space(iimemory) | a_readonly, pdevice, psdev);
357
0
    return 0;
358
0
}
359
360
/* Common functionality of zgethardwareparms & zgetdeviceparams */
361
static int
362
zget_device_params(i_ctx_t *i_ctx_p, bool is_hardware)
363
482k
{
364
482k
    os_ptr op = osp;
365
482k
    ref rkeys;
366
482k
    gx_device *dev;
367
482k
    stack_param_list list;
368
482k
    int code;
369
482k
    ref *pmark;
370
371
482k
    check_op(2);
372
482k
    check_read_type(op[-1], t_device);
373
374
482k
    if(!r_has_type(op, t_null)) {
375
455k
        check_type(*op, t_dictionary);
376
455k
    }
377
482k
    rkeys = *op;
378
482k
    if (op[-1].value.pdevice == NULL)
379
        /* This can happen if we invalidated devices on the stack by calling nulldevice after they were pushed */
380
0
        return_error(gs_error_undefined);
381
382
482k
    dev = op[-1].value.pdevice->device;
383
384
482k
    ref_stack_pop(&o_stack, 1);
385
482k
    stack_param_list_write(&list, &o_stack, &rkeys, iimemory);
386
482k
    code = gs_get_device_or_hardware_params(dev, (gs_param_list *) & list,
387
482k
                                            is_hardware);
388
482k
    if (code < 0) {
389
        /* We have to put back the top argument. */
390
0
        if (list.count > 0)
391
0
            ref_stack_pop(&o_stack, list.count * 2 - 1);
392
0
        else {
393
0
            code = ref_stack_push(&o_stack, 1);
394
0
            if (code < 0)
395
0
                return code;
396
0
        }
397
0
        *osp = rkeys;
398
0
        return code;
399
0
    }
400
482k
    pmark = ref_stack_index(&o_stack, list.count * 2);
401
482k
    if (pmark == NULL)
402
0
        return_error(gs_error_stackunderflow);
403
482k
    make_mark(pmark);
404
482k
    return 0;
405
482k
}
406
/* <device> <key_dict|null> .getdeviceparams <mark> <name> <value> ... */
407
static int
408
zgetdeviceparams(i_ctx_t *i_ctx_p)
409
482k
{
410
482k
    return zget_device_params(i_ctx_p, false);
411
482k
}
412
/* <device> <key_dict|null> .gethardwareparams <mark> <name> <value> ... */
413
static int
414
zgethardwareparams(i_ctx_t *i_ctx_p)
415
0
{
416
0
    return zget_device_params(i_ctx_p, true);
417
0
}
418
419
/* <matrix> <width> <height> <palette> <word?> makewordimagedevice <device> */
420
static int
421
zmakewordimagedevice(i_ctx_t *i_ctx_p)
422
0
{
423
0
    os_ptr op = osp;
424
0
    os_ptr op1 = op - 1;
425
0
    gs_matrix imat;
426
0
    gx_device *new_dev;
427
0
    const byte *colors;
428
0
    int colors_size;
429
0
    int code;
430
0
    psi_device_ref *psdev;
431
432
0
    check_op(5);
433
0
    check_int_leu(op[-3], max_uint >> 1); /* width */
434
0
    check_int_leu(op[-2], max_uint >> 1); /* height */
435
0
    check_type(*op, t_boolean);
436
0
    if (r_has_type(op1, t_null)) { /* true color */
437
0
        colors = 0;
438
0
        colors_size = -24;  /* 24-bit true color */
439
0
    } else if (r_has_type(op1, t_integer)) {
440
        /*
441
         * We use if/else rather than switch because the value is long,
442
         * which is not supported as a switch value in pre-ANSI C.
443
         */
444
0
        if (op1->value.intval != 16 && op1->value.intval != 24 &&
445
0
            op1->value.intval != 32
446
0
            )
447
0
            return_error(gs_error_rangecheck);
448
0
        colors = 0;
449
0
        colors_size = -op1->value.intval;
450
0
    } else {
451
0
        check_type(*op1, t_string); /* palette */
452
0
        if (r_size(op1) > 3 * 256)
453
0
            return_error(gs_error_rangecheck);
454
0
        colors = op1->value.bytes;
455
0
        colors_size = r_size(op1);
456
0
    }
457
0
    if ((code = read_matrix(imemory, op - 4, &imat)) < 0)
458
0
        return code;
459
    /* Everything OK, create device */
460
0
    code = gs_makewordimagedevice(&new_dev, &imat,
461
0
                                  (int)op[-3].value.intval,
462
0
                                  (int)op[-2].value.intval,
463
0
                                  colors, colors_size,
464
0
                                  op->value.boolval, true, imemory);
465
0
    if (code == 0) {
466
0
        new_dev->memory = imemory;
467
468
0
        psdev = gs_alloc_struct(imemory, psi_device_ref, &st_psi_device_ref, "zcurrentdevice");
469
0
        if (!psdev) {
470
0
            rc_decrement(new_dev, "zmakewordimagedevice");
471
0
            return_error(gs_error_VMerror);
472
0
        }
473
0
        psdev->device = new_dev;
474
0
        rc_increment(new_dev);
475
0
        make_tav(op - 4, t_device, imemory_space(iimemory) | a_all, pdevice, psdev);
476
0
        pop(4);
477
0
    }
478
0
    return code;
479
0
}
480
481
/* - nulldevice - */
482
/* Note that nulldevice clears the current pagedevice. */
483
static int
484
znulldevice(i_ctx_t *i_ctx_p)
485
11.5k
{
486
11.5k
    int code = gs_nulldevice(igs);
487
11.5k
    clear_pagedevice(istate);
488
11.5k
    return code;
489
11.5k
}
490
491
extern void print_resource_usage(const gs_main_instance *, gs_dual_memory_t *,
492
                     const char *);
493
494
/* <num_copies> <flush_bool> .outputpage - */
495
static int
496
zoutputpage(i_ctx_t *i_ctx_p)
497
4.27k
{
498
4.27k
    os_ptr op = osp;
499
4.27k
    int code;
500
501
4.27k
    check_op(2);
502
4.27k
    check_type(op[-1], t_integer);
503
4.27k
    check_type(*op, t_boolean);
504
4.27k
    if (gs_debug[':']) {
505
0
        gs_main_instance *minst = get_minst_from_memory((gs_memory_t *)i_ctx_p->memory.current->non_gc_memory);
506
507
0
        print_resource_usage(minst, &(i_ctx_p->memory), "Outputpage start");
508
0
    }
509
4.27k
    code = gs_output_page(igs, (int)op[-1].value.intval,
510
4.27k
                          op->value.boolval);
511
4.27k
    if (code < 0)
512
0
        return code;
513
4.27k
    pop(2);
514
4.27k
    if (gs_debug[':']) {
515
0
        gs_main_instance *minst = get_minst_from_memory((gs_memory_t *)i_ctx_p->memory.current->non_gc_memory);
516
517
0
        print_resource_usage(minst, &(i_ctx_p->memory), "Outputpage end");
518
0
    }
519
4.27k
    return 0;
520
4.27k
}
521
522
/* <device> <policy_dict|null> <require_all> <mark> <name> <value> ... */
523
/*      .putdeviceparams */
524
/*   (on success) <device> <eraseflag> */
525
/*   (on failure) <device> <policy_dict|null> <require_all> <mark> */
526
/*       <name1> <error1> ... */
527
/* For a key that simply was not recognized, if require_all is true, */
528
/* the result will be an /undefined error; if require_all is false, */
529
/* the key will be ignored. */
530
/* Note that .putdeviceparams clears the current pagedevice. */
531
static int
532
zputdeviceparams(i_ctx_t *i_ctx_p)
533
144k
{
534
144k
    uint count = ref_stack_counttomark(&o_stack);
535
144k
    ref *prequire_all;
536
144k
    ref *ppolicy;
537
144k
    ref *pdev;
538
144k
    gx_device *dev;
539
144k
    stack_param_list list;
540
144k
    int code;
541
144k
    int old_width, old_height;
542
144k
    int i, dest;
543
544
144k
    if (count == 0)
545
0
        return_error(gs_error_unmatchedmark);
546
144k
    prequire_all = ref_stack_index(&o_stack, count);
547
144k
    if (prequire_all == NULL)
548
0
        return_error(gs_error_stackunderflow);
549
144k
    ppolicy = ref_stack_index(&o_stack, count + 1);
550
144k
    if (ppolicy == NULL)
551
0
        return_error(gs_error_stackunderflow);
552
144k
    pdev = ref_stack_index(&o_stack, count + 2);
553
144k
    if (pdev == NULL)
554
0
        return_error(gs_error_stackunderflow);
555
144k
    check_type_only(*prequire_all, t_boolean);
556
144k
    check_write_type_only(*pdev, t_device);
557
144k
    dev = pdev->value.pdevice->device;
558
144k
    if (dev == NULL)
559
        /* This can happen if we invalidated devices on the stack by calling nulldevice after they were pushed */
560
0
        return_error(gs_error_undefined);
561
144k
    code = stack_param_list_read(&list, &o_stack, 0, ppolicy,
562
144k
                                 prequire_all->value.boolval, iimemory);
563
144k
    if (code < 0)
564
0
        return code;
565
144k
    old_width = dev->width;
566
144k
    old_height = dev->height;
567
144k
    code = gs_putdeviceparams(dev, (gs_param_list *) & list);
568
    /* Check for names that were undefined or caused errors. */
569
1.69M
    for (dest = count - 2, i = 0; i < count >> 1; i++) {
570
1.54M
        ref *o;
571
1.54M
        if (list.results[i] < 0) {
572
4
            o = ref_stack_index(&o_stack, dest);
573
4
            if (o == NULL)
574
0
                continue;
575
4
            *o = *ref_stack_index(&o_stack, count - (i << 1) - 2);
576
4
            o = ref_stack_index(&o_stack, dest - 1);
577
4
            if (o == NULL)
578
0
                continue;
579
4
            gs_errorname(i_ctx_p, list.results[i], o);
580
4
            dest -= 2;
581
4
        }
582
1.54M
    }
583
144k
    iparam_list_release(&list);
584
144k
    if (code < 0) {   /* There were errors reported. */
585
10
        ref_stack_pop(&o_stack, dest + 1);
586
10
        return (code == gs_error_Fatal) ? code : 0; /* cannot continue from Fatal */
587
10
    }
588
144k
    if (code > 0 || (code == 0 && (dev->width != old_width || dev->height != old_height))) {
589
        /*
590
         * The device was open and is now closed, or its dimensions have
591
         * changed.  If it was the current device, call setdevice to
592
         * reinstall it and erase the page.
593
         */
594
        /****** DOESN'T FIND ALL THE GSTATES THAT REFERENCE THE DEVICE. ******/
595
19.7k
        if (gs_currentdevice(igs) == dev) {
596
11.0k
            bool was_open = dev->is_open;
597
598
11.0k
            code = gs_setdevice_no_erase(igs, dev);
599
            /* If the device wasn't closed, setdevice won't erase the page. */
600
11.0k
            if (was_open && code >= 0)
601
11.0k
                code = 1;
602
11.0k
        }
603
19.7k
    }
604
144k
    if (code < 0)
605
0
        return code;
606
144k
    ref_stack_pop(&o_stack, count + 1);
607
144k
    make_bool(osp, code);
608
144k
    clear_pagedevice(istate);
609
144k
    return 0;
610
144k
}
611
612
int
613
zsetdevice_no_safer(i_ctx_t *i_ctx_p, gx_device *new_dev)
614
115k
{
615
115k
    int code;
616
617
115k
    if (new_dev == NULL)
618
0
        return gs_note_error(gs_error_undefined);
619
620
115k
    code = gs_setdevice_no_erase(igs, new_dev);
621
115k
    if (code < 0)
622
0
        return code;
623
624
115k
    clear_pagedevice(istate);
625
115k
    return code;
626
115k
}
627
628
/* <device> .setdevice <eraseflag> */
629
/* Note that .setdevice clears the current pagedevice. */
630
int
631
zsetdevice(i_ctx_t *i_ctx_p)
632
115k
{
633
115k
    gx_device *odev = NULL, *dev = gs_currentdevice(igs);
634
115k
    gx_device *ndev = NULL;
635
115k
    os_ptr op = osp;
636
115k
    int code = dev_proc(dev, dev_spec_op)(dev,
637
115k
                        gxdso_current_output_device, (void *)&odev, 0);
638
639
115k
    if (code < 0)
640
0
        return code;
641
115k
    check_op(1);
642
115k
    check_write_type(*op, t_device);
643
644
115k
    if (op->value.pdevice == 0)
645
0
        return gs_note_error(gs_error_undefined);
646
647
    /* slightly icky special case: the new device may not have had
648
     * it's procs initialised, at this point - but we need to check
649
     * whether we're being asked to change the device here
650
     */
651
115k
    if (dev_proc((op->value.pdevice->device), dev_spec_op) == NULL)
652
0
        ndev = op->value.pdevice->device;
653
115k
    else
654
115k
        code = dev_proc((op->value.pdevice->device), dev_spec_op)(op->value.pdevice->device,
655
115k
                        gxdso_current_output_device, (void *)&ndev, 0);
656
657
115k
    if (code < 0)
658
0
        return code;
659
660
115k
    if (odev->LockSafetyParams) {   /* do additional checking if locked  */
661
0
        if(ndev != odev)     /* don't allow a different device    */
662
0
            return_error(gs_error_invalidaccess);
663
0
    }
664
115k
    code = zsetdevice_no_safer(i_ctx_p, op->value.pdevice->device);
665
115k
    make_bool(op, code != 0);  /* erase page if 1 */
666
115k
    return code;
667
115k
}
668
669
/* Custom PostScript operator '.special_op' is used to implement
670
 * 'dev_spec_op' access from PostScript. Initially this is intended
671
 * to be used to recover individual device parameters from certain
672
 * devices (pdfwrite, ps2write etc). In the future we may choose to
673
 * increase the devices which can support this, and make more types
674
 * of 'spec_op' available from the PostScript world.
675
 */
676
677
/* We use this structure in a table below which allows us to add new
678
 * 'spec_op's with minimum fuss.
679
 */
680
typedef struct spec_op_s spec_op_t;
681
struct spec_op_s {
682
    char *name;         /* C string representing the name of the spec_op */
683
    int spec_op;                /* Integer used to switch on the name */
684
};
685
686
/* To add more spec_ops, put a key name (used to identify the specific
687
 * spec_op required) in this table, the integer is just used in the switch
688
 * in the main code to execute the required spec_op code.
689
 */
690
spec_op_t spec_op_defs[] = {
691
    {(char *)"GetDeviceParam", 0},
692
    {(char *)"EventInfo", 1},
693
    {(char *)"SupportsDevn", 2},
694
};
695
696
/* <any> <any> .... /spec_op name .special_op <any> <any> .....
697
 * The special_op operator takes at a minimum the name of the spec_op to execute
698
 * and as many additional parameters as are required for the spec_op. It may
699
 * return as many additional parameters as required.
700
 */
701
int
702
zspec_op(i_ctx_t *i_ctx_p)
703
425k
{
704
425k
    os_ptr  op = osp;
705
425k
    gx_device *dev = gs_currentdevice(igs);
706
425k
    int i, nprocs = sizeof(spec_op_defs) / sizeof(spec_op_t), code, proc = -1;
707
425k
    ref opname, nref, namestr;
708
425k
    char *data;
709
710
    /* At the very minimum we need a name object telling us which sepc_op to perform */
711
425k
    check_op(1);
712
425k
    if (!r_has_type(op, t_name))
713
1
        return_error(gs_error_typecheck);
714
715
425k
    ref_assign(&opname, op);
716
717
    /* Find the relevant spec_op name */
718
425k
    for (i=0;i<nprocs;i++) {
719
425k
        code = names_ref(imemory->gs_lib_ctx->gs_name_table, (const byte *)spec_op_defs[i].name, strlen(spec_op_defs[i].name), &nref, 0);
720
425k
        if (code < 0)
721
0
            return code;
722
425k
        if (name_eq(&opname, &nref)) {
723
425k
            proc = i;
724
425k
            break;
725
425k
        }
726
425k
    }
727
728
425k
    if (proc < 0)
729
0
        return_error(gs_error_undefined);
730
731
425k
    ref_stack_pop(&o_stack, 1);     /* We don't need the name of the spec_op any more */
732
425k
    op = osp;
733
734
425k
    switch(proc) {
735
425k
        case 0:
736
425k
            {
737
425k
                stack_param_list list;
738
425k
                dev_param_req_t request;
739
425k
                ref rkeys;
740
                /* Get a single device parameter, we should be supplied with
741
                 * the name of the paramter, as a name object.
742
                 */
743
425k
                check_op(1);
744
425k
                if (!r_has_type(op, t_name))
745
0
                    return_error(gs_error_typecheck);
746
747
425k
                ref_assign(&opname, op);
748
425k
                name_string_ref(imemory, &opname, &namestr);
749
750
425k
                data = (char *)gs_alloc_bytes(imemory, r_size(&namestr) + 1, "temporary special_op string");
751
425k
                if (data == 0)
752
0
                    return_error(gs_error_VMerror);
753
425k
                memset(data, 0x00, r_size(&namestr) + 1);
754
425k
                memcpy(data, namestr.value.bytes, r_size(&namestr));
755
756
                /* Discard the parameter name now, we're done with it */
757
425k
                pop (1);
758
                /* Make a null object so that the stack param list won't check for requests */
759
425k
                make_null(&rkeys);
760
425k
                stack_param_list_write(&list, &o_stack, &rkeys, iimemory);
761
                /* Stuff the data into a structure for passing to the spec_op */
762
425k
                request.Param = data;
763
425k
                request.list = &list;
764
765
425k
                code = dev_proc(dev, dev_spec_op)(dev, gxdso_get_dev_param, &request, sizeof(dev_param_req_t));
766
767
425k
                gs_free_object(imemory, data, "temporary special_op string");
768
769
425k
                if (code < 0) {
770
407k
                    if (code == gs_error_undefined) {
771
407k
                        op = osp;
772
407k
                        push(1);
773
407k
                        make_bool(op, 0);
774
407k
                    } else
775
0
                        return_error(code);
776
407k
                } else {
777
17.5k
                    op = osp;
778
17.5k
                    push(1);
779
17.5k
                    make_bool(op, 1);
780
17.5k
                }
781
425k
            }
782
425k
            break;
783
425k
        case 1:
784
0
            {
785
0
                stack_param_list list;
786
0
                dev_param_req_t request;
787
0
                ref rkeys;
788
                /* EventInfo we should be supplied with a name object which we
789
                 * pass as the event info to the dev_spec_op
790
                 */
791
0
                check_op(1);
792
0
                if (!r_has_type(op, t_name))
793
0
                    return_error(gs_error_typecheck);
794
795
0
                ref_assign(&opname, op);
796
0
                name_string_ref(imemory, &opname, &namestr);
797
798
0
                data = (char *)gs_alloc_bytes(imemory, r_size(&namestr) + 1, "temporary special_op string");
799
0
                if (data == 0)
800
0
                    return_error(gs_error_VMerror);
801
0
                memset(data, 0x00, r_size(&namestr) + 1);
802
0
                memcpy(data, namestr.value.bytes, r_size(&namestr));
803
804
                /* Discard the parameter name now, we're done with it */
805
0
                pop (1);
806
                /* Make a null object so that the stack param list won't check for requests */
807
0
                make_null(&rkeys);
808
0
                stack_param_list_write(&list, &o_stack, &rkeys, iimemory);
809
                /* Stuff the data into a structure for passing to the spec_op */
810
0
                request.Param = data;
811
0
                request.list = &list;
812
813
0
                code = dev_proc(dev, dev_spec_op)(dev, gxdso_event_info, &request, sizeof(dev_param_req_t));
814
815
0
                gs_free_object(imemory, data, "temporary special_op string");
816
817
0
                if (code < 0) {
818
0
                    if (code == gs_error_undefined) {
819
0
                        op = osp;
820
0
                        push(1);
821
0
                        make_bool(op, 0);
822
0
                    } else
823
0
                        return_error(code);
824
0
                }
825
0
            }
826
0
            break;
827
0
        case 2:
828
0
            {
829
                /* SupportsDevn. Return the boolean from the device */
830
831
0
                code = dev_proc(dev, dev_spec_op)(dev, gxdso_supports_devn, NULL, 0);
832
0
                if (code < 0 && code != gs_error_undefined)
833
0
                    return_error(code);   /* any other error leaves the stack unchanged */
834
835
0
                op = osp;
836
0
                push(1);
837
0
                make_bool(op, code > 0 ? 1 : 0); /* return true/false */
838
0
            }
839
0
            break;
840
0
        default:
841
            /* Belt and braces; it shold not be possible to get here, as the table
842
             * containing the names should mirror the entries in this switch. If we
843
             * found a name there should be a matching case here.
844
             */
845
0
            return_error(gs_error_undefined);
846
0
            break;
847
425k
    }
848
425k
    return 0;
849
425k
}
850
851
/* ------ Initialization procedure ------ */
852
853
const op_def zdevice_op_defs[] =
854
{
855
    {"2.copydevice2", zcopydevice2},
856
    {"0currentdevice", zcurrentdevice},
857
    {"0.currentoutputdevice", zcurrentoutputdevice},
858
    {"1.devicename", zdevicename},
859
    {"0.doneshowpage", zdoneshowpage},
860
    {"0flushpage", zflushpage},
861
    {"7.getbitsrect", zgetbitsrect},
862
    {"1.getdevice", zgetdevice},
863
    {"0.getdefaultdevice", zgetdefaultdevice},
864
    {"2.getdeviceparams", zgetdeviceparams},
865
    {"2.gethardwareparams", zgethardwareparams},
866
    {"5makewordimagedevice", zmakewordimagedevice},
867
    {"0nulldevice", znulldevice},
868
    {"2.outputpage", zoutputpage},
869
    {"3.putdeviceparams", zputdeviceparams},
870
    {"1.setdevice", zsetdevice},
871
    op_def_end(0)
872
};
873
874
/* We need to split the table because of the 16-element limit. */
875
const op_def zdevice_ext_op_defs[] =
876
{
877
    {"0.special_op", zspec_op},
878
    op_def_end(0)
879
};