Coverage Report

Created: 2026-04-01 07:17

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/ghostpdl/psi/zcontrol.c
Line
Count
Source
1
/* Copyright (C) 2001-2025 Artifex Software, Inc.
2
   All Rights Reserved.
3
4
   This software is provided AS-IS with no warranty, either express or
5
   implied.
6
7
   This software is distributed under license and may not be copied,
8
   modified or distributed except as expressly authorized under the terms
9
   of the license contained in the file LICENSE in this distribution.
10
11
   Refer to licensing information at http://www.artifex.com or contact
12
   Artifex Software, Inc.,  39 Mesa Street, Suite 108A, San Francisco,
13
   CA 94129, USA, for further information.
14
*/
15
16
17
/* Control operators */
18
#include "string_.h"
19
#include "ghost.h"
20
#include "stream.h"
21
#include "oper.h"
22
#include "estack.h"
23
#include "files.h"
24
#include "ipacked.h"
25
#include "iutil.h"
26
#include "store.h"
27
#include "interp.h"
28
29
/* Forward references */
30
static int check_for_exec(const_os_ptr);
31
static int no_cleanup(i_ctx_t *);
32
static uint count_exec_stack(i_ctx_t *, bool);
33
static uint count_to_stopped(i_ctx_t *, long);
34
static int unmatched_exit(os_ptr, op_proc_t);
35
36
/* See the comment in opdef.h for an invariant which allows */
37
/* more efficient implementation of for, loop, and repeat. */
38
39
/* <[test0 body0 ...]> .cond - */
40
static int cond_continue(i_ctx_t *);
41
static int
42
zcond(i_ctx_t *i_ctx_p)
43
0
{
44
0
    os_ptr op = osp;
45
0
    es_ptr ep = esp;
46
47
0
    check_op(1);
48
    /* Push the array on the e-stack and call the continuation. */
49
0
    if (!r_is_array(op))
50
0
        return_op_typecheck(op);
51
0
    check_execute(*op);
52
0
    if ((r_size(op) & 1) != 0)
53
0
        return_error(gs_error_rangecheck);
54
0
    if (r_size(op) == 0)
55
0
        return zpop(i_ctx_p);
56
0
    check_estack(3);
57
0
    esp = ep += 3;
58
0
    ref_assign(ep - 2, op); /* the cond body */
59
0
    make_op_estack(ep - 1, cond_continue);
60
0
    array_get(imemory, op, 0L, ep);
61
0
    esfile_check_cache();
62
0
    pop(1);
63
0
    return o_push_estack;
64
0
}
65
static int
66
cond_continue(i_ctx_t *i_ctx_p)
67
0
{
68
0
    os_ptr op = osp;
69
0
    es_ptr ep = esp;
70
0
    int code;
71
72
0
    check_op(1);
73
    /* The top element of the e-stack is the remaining tail of */
74
    /* the cond body.  The top element of the o-stack should be */
75
    /* the (boolean) result of the test that is the first element */
76
    /* of the tail. */
77
0
    check_type(*op, t_boolean);
78
0
    if (op->value.boolval) { /* true */
79
0
        array_get(imemory, ep, 1L, ep);
80
0
        esfile_check_cache();
81
0
        code = o_pop_estack;
82
0
    } else if (r_size(ep) > 2) { /* false */
83
0
        const ref_packed *elts = ep->value.packed;
84
85
0
        check_estack(2);
86
0
        ep = esp;
87
0
        r_dec_size(ep, 2);
88
0
        elts = packed_next(elts);
89
0
        elts = packed_next(elts);
90
0
        ep->value.packed = elts;
91
0
        array_get(imemory, ep, 0L, ep + 2);
92
0
        make_op_estack(ep + 1, cond_continue);
93
0
        esp = ep + 2;
94
0
        esfile_check_cache();
95
0
        code = o_push_estack;
96
0
    } else {     /* fall off end of cond */
97
0
        esp = ep - 1;
98
0
        code = o_pop_estack;
99
0
    }
100
0
    pop(1);      /* get rid of the boolean */
101
0
    return code;
102
0
}
103
104
/* <obj> exec - */
105
int
106
zexec(i_ctx_t *i_ctx_p)
107
2.29G
{
108
2.29G
    os_ptr op = osp;
109
2.29G
    int code;
110
111
2.29G
    check_op(1);
112
2.29G
    code = check_for_exec(op);
113
2.29G
    if (code < 0) {
114
0
        return code;
115
0
    }
116
2.29G
    if (!r_has_attr(op, a_executable)) {
117
10.7M
        return 0; /* shortcut, literal object just gets pushed back */
118
10.7M
    }
119
2.28G
    check_estack(1);
120
2.28G
    ++esp;
121
2.28G
    ref_assign(esp, op);
122
2.28G
    esfile_check_cache();
123
2.28G
    pop(1);
124
2.28G
    return o_push_estack;
125
2.28G
}
126
127
/* <obj1> ... <objn> <n> .execn - */
128
static int
129
zexecn(i_ctx_t *i_ctx_p)
130
5.09M
{
131
5.09M
    os_ptr op = osp;
132
5.09M
    uint n, i;
133
5.09M
    es_ptr esp_orig;
134
135
5.09M
    check_op(1);
136
5.09M
    check_int_leu(*op, max_uint - 1);
137
5.09M
    n = (uint) op->value.intval;
138
5.09M
    check_op(n + 1);
139
5.09M
    check_estack(n);
140
5.09M
    esp_orig = esp;
141
19.4M
    for (i = 0; i < n; ++i) {
142
14.3M
        const ref *rp = ref_stack_index(&o_stack, (long)(i + 1));
143
144
14.3M
        if (rp == NULL)
145
0
            continue;
146
147
        /* Make sure this object is legal to execute. */
148
14.3M
        if (ref_type_uses_access(r_type(rp))) {
149
6.56M
            if (!r_has_attr(rp, a_execute) &&
150
0
                r_has_attr(rp, a_executable)
151
6.56M
                ) {
152
0
                esp = esp_orig;
153
0
                return_error(gs_error_invalidaccess);
154
0
            }
155
6.56M
        }
156
        /* Executable nulls have a special meaning on the e-stack, */
157
        /* so since they are no-ops, don't push them. */
158
14.3M
        if (!r_has_type_attrs(rp, t_null, a_executable)) {
159
14.3M
            ++esp;
160
14.3M
            ref_assign(esp, rp);
161
14.3M
        }
162
14.3M
    }
163
5.09M
    esfile_check_cache();
164
5.09M
    pop(n + 1);
165
5.09M
    return o_push_estack;
166
5.09M
}
167
168
/* <array> <executable> .runandhide <obj>       */
169
/*  before executing  <executable>, <array> is been removed from  */
170
/*  the operand stack and placed on the execstack with attributes */
171
/*  changed to 'noaccess'.            */
172
/*  After execution, the array will be placed on  the top of the  */
173
/*  operand stack (on top of any elemetns pushed by <executable>  */
174
/*  for both the normal case and for the error case.    */
175
static int end_runandhide(i_ctx_t *);
176
static int err_end_runandhide(i_ctx_t *);
177
static int
178
zrunandhide(i_ctx_t *i_ctx_p)
179
0
{
180
0
    os_ptr op = osp;
181
0
    es_ptr ep;
182
183
0
    check_op(2);
184
0
    if (!r_is_array(op - 1))
185
0
        return_op_typecheck(op);
186
0
    if (!r_has_attr(op, a_executable))
187
0
        return 0;   /* literal object just gets pushed back */
188
0
    check_estack(5);
189
0
    ep = esp += 5;
190
0
    make_mark_estack(ep - 4, es_other, err_end_runandhide); /* error case */
191
0
    make_op_estack(ep - 1,  end_runandhide); /* normal case */
192
0
    ref_assign(ep, op);
193
    /* Store the object we are hiding  and it's current tas.type_attrs */
194
    /* on the exec stack then change to 'noaccess' */
195
0
    make_int(ep - 3, (int)op[-1].tas.type_attrs);
196
0
    ref_assign(ep - 2, op - 1);
197
0
    r_clear_attrs(ep - 2, a_all);
198
    /* replace the array with a special kind of mark that has a_read access */
199
0
    esfile_check_cache();
200
0
    pop(2);
201
0
    return o_push_estack;
202
0
}
203
static int
204
runandhide_restore_hidden(i_ctx_t *i_ctx_p, ref *obj, ref *attrs)
205
0
{
206
0
    os_ptr op = osp;
207
208
0
    push(1);
209
    /* restore the hidden_object and its type_attrs */
210
0
    ref_assign(op, obj);
211
0
    r_clear_attrs(op, a_all);
212
0
    r_set_attrs(op, attrs->value.intval);
213
0
    return 0;
214
0
}
215
216
/* - %end_runandhide hiddenobject */
217
static int
218
end_runandhide(i_ctx_t *i_ctx_p)
219
0
{
220
0
    int code;
221
222
0
    if ((code = runandhide_restore_hidden(i_ctx_p, esp, esp - 1)) < 0) {
223
0
        esp -= 2;
224
0
        return code;
225
0
    }
226
0
    esp -= 2;    /* pop the hidden value and its atributes */
227
0
    return o_pop_estack;
228
0
}
229
230
/* restore hidden object for error returns */
231
static int
232
err_end_runandhide(i_ctx_t *i_ctx_p)
233
0
{
234
0
    int code;
235
236
0
    if ((code = runandhide_restore_hidden(i_ctx_p, esp + 3, esp + 2)) < 0)
237
0
        return code;
238
0
    return 0;
239
0
}
240
241
/* <bool> <proc> if - */
242
int
243
zif(i_ctx_t *i_ctx_p)
244
0
{
245
0
    os_ptr op = osp;
246
247
0
    check_op(2);
248
0
    check_proc(*op);
249
0
    check_type(op[-1], t_boolean);
250
0
    if (op[-1].value.boolval) {
251
0
        check_estack(1);
252
0
        ++esp;
253
0
        ref_assign(esp, op);
254
0
        esfile_check_cache();
255
0
    }
256
0
    pop(2);
257
0
    return o_push_estack;
258
0
}
259
260
/* <bool> <proc_true> <proc_false> ifelse - */
261
int
262
zifelse(i_ctx_t *i_ctx_p)
263
0
{
264
0
    os_ptr op = osp;
265
266
0
    check_op(3);
267
0
    check_proc(*op);
268
0
    check_proc(op[-1]);
269
0
    check_type(op[-2], t_boolean);
270
0
    check_estack(1);
271
0
    ++esp;
272
0
    if (op[-2].value.boolval) {
273
0
        ref_assign(esp, op - 1);
274
0
    } else {
275
0
        ref_assign(esp, op);
276
0
    }
277
0
    esfile_check_cache();
278
0
    pop(3);
279
0
    return o_push_estack;
280
0
}
281
282
/* <init> <step> <limit> <proc> for - */
283
static int
284
    for_pos_int_continue(i_ctx_t *),
285
    for_neg_int_continue(i_ctx_t *),
286
    for_real_continue(i_ctx_t *);
287
int
288
zfor(i_ctx_t *i_ctx_p)
289
39.6M
{
290
39.6M
    os_ptr op = osp;
291
39.6M
    register es_ptr ep;
292
39.6M
    int code;
293
39.6M
    float params[3];
294
295
39.6M
    check_op(4);
296
        /* Mostly undocumented, and somewhat bizarre Adobe behavior discovered  */
297
        /* with the CET (28-05) and FTS (124-01) is that the proc is not run  */
298
        /* if BOTH the initial value and increment are zero.      */
299
39.6M
    if ((code = float_params(op - 1, 3, params)) < 0)
300
16
        return code;
301
39.6M
    if ( params[0] == 0.0 && params[1] == 0.0 ) {
302
120
        pop(4);    /* don't run the proc */
303
120
        return 0;
304
120
    }
305
39.6M
    check_estack(7);
306
39.6M
    ep = esp + 6;
307
39.6M
    check_proc(*op);
308
    /* Push a mark, the control variable set to the initial value, */
309
    /* the increment, the limit, and the procedure, */
310
    /* and invoke the continuation operator. */
311
39.6M
    if (r_has_type(op - 3, t_integer) &&
312
37.5M
        r_has_type(op - 2, t_integer)
313
39.6M
        ) {
314
31.4M
        make_int(ep - 4, op[-3].value.intval);
315
31.4M
        make_int(ep - 3, op[-2].value.intval);
316
31.4M
        switch (r_type(op - 1)) {
317
31.4M
            case t_integer:
318
31.4M
                make_int(ep - 2, op[-1].value.intval);
319
31.4M
                break;
320
24
            case t_real:
321
24
                make_int(ep - 2, (ps_int)op[-1].value.realval);
322
24
                break;
323
0
            default:
324
0
                return_op_typecheck(op - 1);
325
31.4M
        }
326
31.4M
        if (ep[-3].value.intval >= 0)
327
31.4M
            make_op_estack(ep, for_pos_int_continue);
328
24.4M
        else
329
31.4M
            make_op_estack(ep, for_neg_int_continue);
330
31.4M
    } else {
331
8.17M
        make_real(ep - 4, params[0]);
332
8.17M
        make_real(ep - 3, params[1]);
333
8.17M
        make_real(ep - 2, params[2]);
334
8.17M
        make_op_estack(ep, for_real_continue);
335
8.17M
    }
336
39.6M
    make_mark_estack(ep - 5, es_for, no_cleanup);
337
39.6M
    ref_assign(ep - 1, op);
338
39.6M
    esp = ep;
339
39.6M
    pop(4);
340
39.6M
    return o_push_estack;
341
39.6M
}
342
/* Continuation operators for for, separate for positive integer, */
343
/* negative integer, and real. */
344
/* Execution stack contains mark, control variable, increment, */
345
/* limit, and procedure (procedure is topmost.) */
346
/* Continuation operator for positive integers. */
347
static int
348
for_pos_int_continue(i_ctx_t *i_ctx_p)
349
371M
{
350
371M
    os_ptr op = osp;
351
371M
    register es_ptr ep = esp;
352
371M
    ps_int var = ep[-3].value.intval;
353
354
371M
    if (var > ep[-1].value.intval) {
355
7.02M
        esp -= 5;    /* pop everything */
356
7.02M
        return o_pop_estack;
357
7.02M
    }
358
371M
    push(1);
359
364M
    make_int(op, var);
360
364M
    ep[-3].value.intval = var + ep[-2].value.intval;
361
364M
    ref_assign_inline(ep + 2, ep); /* saved proc */
362
364M
    esp = ep + 2;
363
364M
    return o_push_estack;
364
364M
}
365
/* Continuation operator for negative integers. */
366
static int
367
for_neg_int_continue(i_ctx_t *i_ctx_p)
368
196M
{
369
196M
    os_ptr op = osp;
370
196M
    register es_ptr ep = esp;
371
196M
    ps_int var = ep[-3].value.intval;
372
373
196M
    if (var < ep[-1].value.intval) {
374
24.4M
        esp -= 5;    /* pop everything */
375
24.4M
        return o_pop_estack;
376
24.4M
    }
377
196M
    push(1);
378
172M
    make_int(op, var);
379
172M
    ep[-3].value.intval = var + ep[-2].value.intval;
380
172M
    ref_assign(ep + 2, ep); /* saved proc */
381
172M
    esp = ep + 2;
382
172M
    return o_push_estack;
383
172M
}
384
/* Continuation operator for reals. */
385
static int
386
for_real_continue(i_ctx_t *i_ctx_p)
387
14.9M
{
388
14.9M
    os_ptr op = osp;
389
14.9M
    es_ptr ep = esp;
390
14.9M
    float var = ep[-3].value.realval;
391
14.9M
    float incr = ep[-2].value.realval;
392
393
14.9M
    if (incr >= 0 ? (var > ep[-1].value.realval) :
394
14.9M
        (var < ep[-1].value.realval)
395
14.9M
        ) {
396
8.17M
        esp -= 5;    /* pop everything */
397
8.17M
        return o_pop_estack;
398
8.17M
    }
399
14.9M
    push(1);
400
6.81M
    ref_assign(op, ep - 3);
401
6.81M
    ep[-3].value.realval = var + incr;
402
6.81M
    esp = ep + 2;
403
6.81M
    ref_assign(ep + 2, ep); /* saved proc */
404
6.81M
    return o_push_estack;
405
6.82M
}
406
407
/*
408
 * Here we provide an internal variant of 'for' that enumerates the values
409
 * A, ((N-1)*A+1*B)/N, ((N-2)*A+2*B)/N, ..., B precisely.  The arguments are
410
 * A (real), N (integer), and B (real).  We need this for loading caches such
411
 * as the transfer function cache.
412
 *
413
 * NOTE: This computation must match the SAMPLE_LOOP_VALUE macro in gscie.h.
414
 */
415
static int for_samples_continue(i_ctx_t *);
416
/* <first> <count> <last> <proc> %for_samples - */
417
int
418
zfor_samples(i_ctx_t *i_ctx_p)
419
425k
{
420
425k
    os_ptr op = osp;
421
425k
    es_ptr ep;
422
423
425k
    check_op(4);
424
425k
    check_type(op[-3], t_real);
425
425k
    check_type(op[-2], t_integer);
426
425k
    check_type(op[-1], t_real);
427
425k
    check_proc(*op);
428
425k
    check_estack(8);
429
425k
    ep = esp + 7;
430
425k
    make_mark_estack(ep - 6, es_for, no_cleanup);
431
425k
    make_int(ep - 5, 0);
432
425k
    memcpy(ep - 4, op - 3, 3 * sizeof(ref));
433
425k
    ref_assign(ep - 1, op);
434
425k
    make_op_estack(ep, for_samples_continue);
435
425k
    esp = ep;
436
425k
    pop(4);
437
425k
    return o_push_estack;
438
425k
}
439
/* Continuation procedure */
440
static int
441
for_samples_continue(i_ctx_t *i_ctx_p)
442
109M
{
443
109M
    os_ptr op = osp;
444
109M
    es_ptr ep = esp;
445
109M
    int var = ep[-4].value.intval;
446
109M
    float a = ep[-3].value.realval;
447
109M
    int n = ep[-2].value.intval;
448
109M
    float b = ep[-1].value.realval;
449
450
109M
    if (var > n) {
451
425k
        esp -= 6;    /* pop everything */
452
425k
        return o_pop_estack;
453
425k
    }
454
109M
    push(1);
455
109M
    make_real(op, ((n - var) * a + var * b) / n);
456
109M
    ep[-4].value.intval = var + 1;
457
109M
    ref_assign_inline(ep + 2, ep); /* saved proc */
458
109M
    esp = ep + 2;
459
109M
    return o_push_estack;
460
109M
}
461
462
/* <int> <proc> repeat - */
463
static int repeat_continue(i_ctx_t *);
464
int
465
zrepeat(i_ctx_t *i_ctx_p)
466
10.0M
{
467
10.0M
    os_ptr op = osp;
468
469
10.0M
    check_op(2);
470
10.0M
    check_proc(*op);
471
10.0M
    check_type(op[-1], t_integer);
472
10.0M
    if (op[-1].value.intval < 0)
473
3
        return_error(gs_error_rangecheck);
474
10.0M
    check_estack(5);
475
    /* Push a mark, the count, and the procedure, and invoke */
476
    /* the continuation operator. */
477
10.0M
    push_mark_estack(es_for, no_cleanup);
478
10.0M
    *++esp = op[-1];
479
10.0M
    *++esp = *op;
480
10.0M
    make_op_estack(esp + 1, repeat_continue);
481
10.0M
    pop(2);
482
10.0M
    return repeat_continue(i_ctx_p);
483
10.0M
}
484
/* Continuation operator for repeat */
485
static int
486
repeat_continue(i_ctx_t *i_ctx_p)
487
313M
{
488
313M
    es_ptr ep = esp;   /* saved proc */
489
490
313M
    if (--(ep[-1].value.intval) >= 0) {   /* continue */
491
303M
        esp += 2;
492
303M
        ref_assign(esp, ep);
493
303M
        return o_push_estack;
494
303M
    } else {     /* done */
495
10.0M
        esp -= 3;    /* pop mark, count, proc */
496
10.0M
        return o_pop_estack;
497
10.0M
    }
498
313M
}
499
500
/* <proc> loop */
501
static int loop_continue(i_ctx_t *);
502
static int
503
zloop(i_ctx_t *i_ctx_p)
504
23.2M
{
505
23.2M
    os_ptr op = osp;
506
507
23.2M
    check_op(1);
508
23.2M
    check_proc(*op);
509
23.2M
    check_estack(4);
510
    /* Push a mark and the procedure, and invoke */
511
    /* the continuation operator. */
512
23.2M
    push_mark_estack(es_for, no_cleanup);
513
23.2M
    *++esp = *op;
514
23.2M
    make_op_estack(esp + 1, loop_continue);
515
23.2M
    pop(1);
516
23.2M
    return loop_continue(i_ctx_p);
517
23.2M
}
518
/* Continuation operator for loop */
519
static int
520
loop_continue(i_ctx_t *i_ctx_p)
521
298M
{
522
298M
    register es_ptr ep = esp; /* saved proc */
523
524
298M
    ref_assign(ep + 2, ep);
525
298M
    esp = ep + 2;
526
298M
    return o_push_estack;
527
298M
}
528
529
/* - exit - */
530
static int
531
zexit(i_ctx_t *i_ctx_p)
532
23.4M
{
533
23.4M
    os_ptr op = osp;
534
23.4M
    ref_stack_enum_t rsenum;
535
23.4M
    uint scanned = 0;
536
537
23.4M
    ref_stack_enum_begin(&rsenum, &e_stack);
538
23.4M
    do {
539
23.4M
        uint used = rsenum.size;
540
23.4M
        es_ptr ep = rsenum.ptr + used - 1;
541
23.4M
        uint count = used;
542
543
93.6M
        for (; count; count--, ep--)
544
93.6M
            if (r_is_estack_mark(ep))
545
23.4M
                switch (estack_mark_index(ep)) {
546
23.4M
                    case es_for:
547
23.4M
                        pop_estack(i_ctx_p, scanned + (used - count + 1));
548
23.4M
                        return o_pop_estack;
549
19
                    case es_stopped:
550
19
                        return_error(gs_error_invalidexit); /* not a loop */
551
23.4M
                }
552
0
        scanned += used;
553
0
    } while (ref_stack_enum_next(&rsenum));
554
    /* No mark, quit.  (per Adobe documentation) */
555
23.4M
    push(2);
556
0
    return unmatched_exit(op, zexit);
557
0
}
558
559
/*
560
 * .stopped pushes the following on the e-stack:
561
 *      - A mark with type = es_stopped and procedure = no_cleanup.
562
 *      - The result to be pushed on a normal return.
563
 *      - The signal mask for .stop.
564
 *      - The procedure %stopped_push, to handle the normal return case.
565
 */
566
567
/* In the normal (no-error) case, pop the mask from the e-stack, */
568
/* and move the result to the o-stack. */
569
static int
570
stopped_push(i_ctx_t *i_ctx_p)
571
21.7M
{
572
21.7M
    os_ptr op = osp;
573
574
21.7M
    push(1);
575
21.7M
    *op = esp[-1];
576
21.7M
    esp -= 3;
577
21.7M
    return o_pop_estack;
578
21.7M
}
579
580
/* - stop - */
581
/* Equivalent to true 1 .stop. */
582
/* This is implemented in C because if were a pseudo-operator, */
583
/* the stacks would get restored in case of an error. */
584
static int
585
zstop(i_ctx_t *i_ctx_p)
586
123M
{
587
123M
    os_ptr op = osp;
588
123M
    uint count = count_to_stopped(i_ctx_p, 1L);
589
590
123M
    if (count) {
591
        /*
592
         * If there are any t_oparrays on the e-stack, they will pop
593
         * any new items from the o-stack.  Wait to push the 'true'
594
         * until we have run all the unwind procedures.
595
         */
596
123M
        check_ostack(2);
597
123M
        pop_estack(i_ctx_p, count);
598
123M
        op = osp;
599
123M
        push(1);
600
123M
        make_true(op);
601
123M
        return o_pop_estack;
602
123M
    }
603
    /* No mark, quit.  (per Adobe documentation) */
604
123M
    push(2);
605
32.3k
    return unmatched_exit(op, zstop);
606
32.3k
}
607
608
/* <result> <mask> .stop - */
609
static int
610
zzstop(i_ctx_t *i_ctx_p)
611
12
{
612
12
    os_ptr op = osp;
613
12
    uint count;
614
615
12
    check_op(2);
616
12
    check_type(*op, t_integer);
617
12
    count = count_to_stopped(i_ctx_p, op->value.intval);
618
12
    if (count) {
619
        /*
620
         * If there are any t_oparrays on the e-stack, they will pop
621
         * any new items from the o-stack.  Wait to push the result
622
         * until we have run all the unwind procedures.
623
         */
624
12
        ref save_result;
625
626
12
        check_op(2);
627
12
        save_result = op[-1];
628
12
        pop(2);
629
12
        pop_estack(i_ctx_p, count);
630
12
        op = osp;
631
12
        push(1);
632
12
        *op = save_result;
633
12
        return o_pop_estack;
634
12
    }
635
    /* No mark, quit.  (per Adobe documentation) */
636
0
    return unmatched_exit(op, zzstop);
637
12
}
638
639
/* <obj> stopped <stopped> */
640
/* Equivalent to false 1 .stopped. */
641
/* This is implemented in C because if were a pseudo-operator, */
642
/* the stacks would get restored in case of an error. */
643
static int
644
zstopped(i_ctx_t *i_ctx_p)
645
9.36M
{
646
9.36M
    os_ptr op = osp;
647
648
9.36M
    check_op(1);
649
    /* Mark the execution stack, and push the default result */
650
    /* in case control returns normally. */
651
9.36M
    check_estack(5);
652
9.36M
    push_mark_estack(es_stopped, no_cleanup);
653
9.36M
    ++esp;
654
9.36M
    make_false(esp);    /* save the result */
655
9.36M
    ++esp;
656
9.36M
    make_int(esp, 1);   /* save the signal mask */
657
9.36M
    push_op_estack(stopped_push);
658
9.36M
    push_op_estack(zexec);  /* execute the operand */
659
9.36M
    return o_push_estack;
660
9.36M
}
661
662
/* <obj> <result> <mask> .stopped <result> */
663
static int
664
zzstopped(i_ctx_t *i_ctx_p)
665
136M
{
666
136M
    os_ptr op = osp;
667
136M
    check_type(*op, t_integer);
668
136M
    check_op(3);
669
    /* Mark the execution stack, and push the default result */
670
    /* in case control returns normally. */
671
136M
    check_estack(5);
672
136M
    push_mark_estack(es_stopped, no_cleanup);
673
136M
    *++esp = op[-1];    /* save the result */
674
136M
    *++esp = *op;   /* save the signal mask */
675
136M
    push_op_estack(stopped_push);
676
136M
    push_op_estack(zexec);  /* execute the operand */
677
136M
    pop(2);
678
136M
    return o_push_estack;
679
136M
}
680
681
/* <mask> .instopped false */
682
/* <mask> .instopped <result> true */
683
static int
684
zinstopped(i_ctx_t *i_ctx_p)
685
123M
{
686
123M
    os_ptr op = osp;
687
123M
    uint count;
688
689
123M
    check_type(*op, t_integer);
690
123M
    count = count_to_stopped(i_ctx_p, op->value.intval);
691
123M
    if (count) {
692
123M
        push(1);
693
123M
        op[-1] = *ref_stack_index(&e_stack, count - 2);   /* default result */
694
123M
        make_true(op);
695
123M
    } else
696
123M
        make_false(op);
697
123M
    return 0;
698
123M
}
699
700
/* <include_marks> .countexecstack <int> */
701
/* - countexecstack <int> */
702
/* countexecstack is an operator solely for the sake of the Genoa tests. */
703
static int
704
zcountexecstack(i_ctx_t *i_ctx_p)
705
296k
{
706
296k
    os_ptr op = osp;
707
708
296k
    push(1);
709
296k
    make_int(op, count_exec_stack(i_ctx_p, false));
710
296k
    return 0;
711
296k
}
712
static int
713
zcountexecstack1(i_ctx_t *i_ctx_p)
714
15.3k
{
715
15.3k
    os_ptr op = osp;
716
717
15.3k
    check_type(*op, t_boolean);
718
15.3k
    make_int(op, count_exec_stack(i_ctx_p, op->value.boolval));
719
15.3k
    return 0;
720
15.3k
}
721
722
/* <array> <include_marks> .execstack <subarray> */
723
/* <array> execstack <subarray> */
724
/* execstack is an operator solely for the sake of the Genoa tests. */
725
static int execstack_continue(i_ctx_t *);
726
static int execstack2_continue(i_ctx_t *);
727
static int
728
push_execstack(i_ctx_t *i_ctx_p, os_ptr op1, bool include_marks,
729
               op_proc_t cont)
730
312k
{
731
312k
    uint size;
732
    /*
733
     * We can't do this directly, because the interpreter
734
     * might have cached some state.  To force the interpreter
735
     * to update the stored state, we push a continuation on
736
     * the exec stack; the continuation is executed immediately,
737
     * and does the actual transfer.
738
     */
739
312k
    uint depth;
740
741
312k
    if (!r_is_array(op1))
742
312k
        return_op_typecheck(op1);
743
    /* Check the length before the write access per CET 28-03 */
744
312k
    size = r_size(op1);
745
312k
    depth = count_exec_stack(i_ctx_p, include_marks);
746
312k
    if (depth > size)
747
0
        return_error(gs_error_rangecheck);
748
312k
    check_write(*op1);
749
312k
    {
750
312k
        int code = ref_stack_store_check(&e_stack, op1, size, 0);
751
752
312k
        if (code < 0)
753
0
            return code;
754
312k
    }
755
312k
    check_estack(1);
756
312k
    r_set_size(op1, depth);
757
312k
    push_op_estack(cont);
758
312k
    return o_push_estack;
759
312k
}
760
static int
761
zexecstack(i_ctx_t *i_ctx_p)
762
297k
{
763
297k
    os_ptr op = osp;
764
765
297k
    return push_execstack(i_ctx_p, op, false, execstack_continue);
766
297k
}
767
static int
768
zexecstack2(i_ctx_t *i_ctx_p)
769
15.3k
{
770
15.3k
    os_ptr op = osp;
771
772
15.3k
    check_type(*op, t_boolean);
773
15.3k
    return push_execstack(i_ctx_p, op - 1, op->value.boolval, execstack2_continue);
774
15.3k
}
775
/* Continuation operator to do the actual transfer. */
776
/* r_size(op1) was set just above. */
777
static int
778
do_execstack(i_ctx_t *i_ctx_p, bool include_marks, bool include_oparrays, os_ptr op1)
779
312k
{
780
312k
    os_ptr op = osp;
781
312k
    ref *arefs = op1->value.refs;
782
312k
    uint asize = r_size(op1);
783
312k
    uint i;
784
312k
    ref *rq;
785
786
    /*
787
     * Copy elements from the stack to the array,
788
     * optionally skipping executable nulls.
789
     * Clear the executable bit in any internal operators, and
790
     * convert t_structs and t_astructs (which can only appear
791
     * in connection with stack marks, which means that they will
792
     * probably be freed when unwinding) to something harmless.
793
     */
794
27.2M
    for (i = 0, rq = arefs + asize; rq != arefs; ++i) {
795
26.9M
        const ref *rp = ref_stack_index(&e_stack, (long)i);
796
797
26.9M
        if (rp == NULL)
798
0
            continue;
799
26.9M
        if (r_has_type_attrs(rp, t_null, a_executable) && !include_marks)
800
4.51M
            continue;
801
22.4M
        --rq;
802
22.4M
        ref_assign_old(op1, rq, rp, "execstack");
803
22.4M
        switch (r_type(rq)) {
804
4.82M
            case t_operator: {
805
4.82M
                uint opidx = op_index(rq);
806
807
4.82M
                if (opidx == 0 || op_def_is_internal(op_index_def(opidx)))
808
4.82M
                    r_clear_attrs(rq, a_executable);
809
4.82M
                break;
810
0
            }
811
3.98k
            case t_struct:
812
3.98k
            case t_astruct: {
813
3.98k
                const char *tname = rq->value.pstruct ?
814
3.98k
                    gs_struct_type_name_string(
815
3.98k
                                gs_object_type(imemory, rq->value.pstruct))
816
3.98k
                    : "NULL";
817
818
3.98k
                make_const_string(rq, a_readonly | avm_foreign,
819
3.98k
                                  strlen(tname), (const byte *)tname);
820
3.98k
                break;
821
3.98k
            }
822
327k
            case t_array:
823
535k
            case t_shortarray:
824
5.64M
            case t_mixedarray:
825
5.64M
                if (!include_oparrays && errorexec_find(i_ctx_p, rq) < 0)
826
5.64M
                    make_null(rq);
827
5.64M
                break;
828
11.9M
            default:
829
11.9M
                ;
830
22.4M
        }
831
22.4M
    }
832
312k
    pop(op - op1);
833
312k
    return 0;
834
312k
}
835
static int
836
execstack_continue(i_ctx_t *i_ctx_p)
837
296k
{
838
296k
    os_ptr op = osp;
839
840
296k
    return do_execstack(i_ctx_p, false, false, op);
841
296k
}
842
static int
843
execstack2_continue(i_ctx_t *i_ctx_p)
844
15.3k
{
845
15.3k
    os_ptr op = osp;
846
847
15.3k
    return do_execstack(i_ctx_p, op->value.boolval, true, op - 1);
848
15.3k
}
849
850
/* - .needinput - */
851
static int
852
zneedinput(i_ctx_t *i_ctx_p)
853
1.99M
{
854
1.99M
    return gs_error_NeedInput;    /* interpreter will exit to caller */
855
1.99M
}
856
857
/* <obj> <int> .quit - */
858
static int
859
zquit(i_ctx_t *i_ctx_p)
860
746k
{
861
746k
    os_ptr op = osp;
862
863
746k
    check_op(2);
864
746k
    check_type(*op, t_integer);
865
746k
    return_error(gs_error_Quit);  /* Interpreter will do the exit */
866
746k
}
867
868
/* Get the current file from which the interpreter is reading. */
869
static ref *
870
zget_current_file(i_ctx_t *i_ctx_p)
871
503k
{
872
503k
    ref_stack_enum_t rsenum;
873
874
503k
    ref_stack_enum_begin(&rsenum, &e_stack);
875
503k
    do {
876
503k
        uint count = rsenum.size;
877
503k
        es_ptr ep = rsenum.ptr + count - 1;
878
879
23.7M
        for (; count; count--, ep--)
880
23.7M
            if (r_has_type_attrs(ep, t_file, a_executable))
881
503k
                return ep;
882
503k
    } while (ref_stack_enum_next(&rsenum));
883
0
    return 0;
884
503k
}
885
886
/* - currentfile <file> */
887
int
888
z_current_file(i_ctx_t *i_ctx_p, ref **s)
889
230M
{
890
230M
    ref *fp;
891
    /* Check the cache first */
892
230M
    if (esfile != 0) {
893
#ifdef DEBUG
894
        /* Check that esfile is valid. */
895
        ref *efp = zget_current_file(i_ctx_p);
896
897
        if (esfile != efp) {
898
            lprintf2("currentfile: esfile="PRI_INTPTR", efp="PRI_INTPTR"\n",
899
                     (intptr_t) esfile, (intptr_t) efp);
900
            *s = efp;
901
        } else
902
#endif
903
229M
            *s = esfile;
904
229M
    } else if ((fp = zget_current_file(i_ctx_p)) == 0) { /* Return an invalid file object. */
905
0
        *s = NULL;
906
503k
    } else {
907
503k
        *s = fp;
908
503k
        esfile_set_cache(fp);
909
503k
    }
910
230M
    return 0;
911
230M
}
912
static int
913
zcurrentfile(i_ctx_t *i_ctx_p)
914
230M
{
915
230M
    os_ptr op = osp;
916
230M
    ref *s;
917
230M
    int code;
918
919
230M
    push(1);
920
921
230M
    code = z_current_file(i_ctx_p, &s);
922
230M
    if (code < 0 || s == NULL) {
923
        /* This doesn't make a lot of sense to me, */
924
        /* but it's what the PostScript manual specifies. */
925
0
        make_invalid_file(i_ctx_p, op);
926
0
    }
927
230M
    else {
928
230M
        ref_assign(op, s);
929
230M
    }
930
    /* Make the returned value literal. */
931
230M
    r_clear_attrs(op, a_executable);
932
230M
    return code;
933
230M
}
934
/* ------ Initialization procedure ------ */
935
936
/* We need to split the table because of the 16-element limit. */
937
const op_def zcontrol1_op_defs[] = {
938
    {"1.cond", zcond},
939
    {"0countexecstack", zcountexecstack},
940
    {"1.countexecstack", zcountexecstack1},
941
    {"0currentfile", zcurrentfile},
942
    {"1exec", zexec},
943
    {"1.execn", zexecn},
944
    {"1execstack", zexecstack},
945
    {"2.execstack", zexecstack2},
946
    {"0exit", zexit},
947
    {"2if", zif},
948
    {"3ifelse", zifelse},
949
    {"0.instopped", zinstopped},
950
    {"0.needinput", zneedinput},
951
    op_def_end(0)
952
};
953
const op_def zcontrol2_op_defs[] = {
954
    {"4for", zfor},
955
    {"1loop", zloop},
956
    {"2.quit", zquit},
957
    {"2repeat", zrepeat},
958
    {"0stop", zstop},
959
    {"1.stop", zzstop},
960
    {"1stopped", zstopped},
961
    {"2.stopped", zzstopped},
962
    op_def_end(0)
963
};
964
const op_def zcontrol3_op_defs[] = {
965
                /* Internal operators */
966
    {"1%cond_continue", cond_continue},
967
    {"1%execstack_continue", execstack_continue},
968
    {"2%execstack2_continue", execstack2_continue},
969
    {"0%for_pos_int_continue", for_pos_int_continue},
970
    {"0%for_neg_int_continue", for_neg_int_continue},
971
    {"0%for_real_continue", for_real_continue},
972
    {"4%for_samples", zfor_samples},
973
    {"0%for_samples_continue", for_samples_continue},
974
    {"0%loop_continue", loop_continue},
975
    {"0%repeat_continue", repeat_continue},
976
    {"0%stopped_push", stopped_push},
977
    {"2.runandhide", zrunandhide},
978
    {"0%end_runandhide", end_runandhide},
979
    op_def_end(0)
980
};
981
982
/* ------ Internal routines ------ */
983
984
/*
985
 * Check the operand of exec or stopped.  Return 0 if OK to execute, or a
986
 * negative error code.  We emulate an apparent bug in Adobe interpreters,
987
 * which cause an invalidaccess error when 'exec'ing a noaccess literal
988
 * (other than dictionaries).  We also match the Adobe interpreters in that
989
 * we catch noaccess executable objects here, rather than waiting for the
990
 * interpreter to catch them, so that we can signal the error with the
991
 * object still on the operand stack.
992
 */
993
static int
994
check_for_exec(const_os_ptr op)
995
2.29G
{
996
2.29G
    if (!r_has_attr(op, a_execute) && /* only true if noaccess */
997
2.29G
        ref_type_uses_access(r_type(op)) &&
998
0
        (r_has_attr(op, a_executable) || !r_has_type(op, t_dictionary))
999
2.29G
        ) {
1000
0
        return_error(gs_error_invalidaccess);
1001
0
    }
1002
2.29G
    return 0;
1003
2.29G
}
1004
1005
/* Vacuous cleanup routine */
1006
static int
1007
no_cleanup(i_ctx_t *i_ctx_p)
1008
146M
{
1009
146M
    return 0;
1010
146M
}
1011
1012
/*
1013
 * Count the number of elements on the exec stack, with or without
1014
 * the normally invisible elements (*op is a Boolean that indicates this).
1015
 */
1016
static uint
1017
count_exec_stack(i_ctx_t *i_ctx_p, bool include_marks)
1018
624k
{
1019
624k
    uint count = ref_stack_count(&e_stack);
1020
1021
624k
    if (!include_marks) {
1022
624k
        uint i;
1023
1024
54.5M
        for (i = count; i--;) {
1025
53.9M
            ref *o;
1026
53.9M
            o = ref_stack_index(&e_stack, (long)i);
1027
53.9M
            if (o == NULL)
1028
0
                continue;
1029
53.9M
            if (r_has_type_attrs(o, t_null, a_executable))
1030
9.02M
                --count;
1031
53.9M
        }
1032
624k
    }
1033
624k
    return count;
1034
624k
}
1035
1036
/*
1037
 * Count the number of elements down to and including the first 'stopped'
1038
 * mark on the e-stack with a given mask.  Return 0 if there is no 'stopped'
1039
 * mark.
1040
 */
1041
static uint
1042
count_to_stopped(i_ctx_t *i_ctx_p, long mask)
1043
247M
{
1044
247M
    ref_stack_enum_t rsenum;
1045
247M
    uint scanned = 0;
1046
1047
247M
    ref_stack_enum_begin(&rsenum, &e_stack);
1048
247M
    do {
1049
247M
        uint used = rsenum.size;
1050
247M
        es_ptr ep = rsenum.ptr + used - 1;
1051
247M
        uint count = used;
1052
1053
2.60G
        for (; count; count--, ep--) {
1054
2.60G
            if (r_is_estack_mark(ep)) {
1055
483M
                if (estack_mark_index(ep) == es_stopped &&
1056
247M
                  (ep[2].value.intval & mask) != 0)
1057
247M
                    return scanned + (used - count + 1);
1058
483M
            }
1059
2.60G
        }
1060
32.4k
        scanned += used;
1061
32.4k
    } while (ref_stack_enum_next(&rsenum));
1062
32.4k
    return 0;
1063
247M
}
1064
1065
/*
1066
 * Pop the e-stack, executing cleanup procedures as needed.
1067
 * We could make this more efficient using ref_stack_enum_*,
1068
 * but it isn't used enough to make this worthwhile.
1069
 */
1070
void
1071
pop_estack(i_ctx_t *i_ctx_p, uint count)
1072
147M
{
1073
147M
    uint idx = 0;
1074
147M
    uint popped = 0;
1075
1076
147M
    esfile_clear_cache();
1077
1.54G
    for (; idx < count; idx++) {
1078
1.39G
        ref *ep = ref_stack_index(&e_stack, idx - popped);
1079
1080
1.39G
        if (ep == NULL)
1081
0
            continue;
1082
1083
1.39G
        if (r_is_estack_mark(ep)) {
1084
            /* This exec stack juggling is to cope with hitting
1085
               exactly the bottom of a stack block. It is possible
1086
               to end up with the book keeping at the bottom of
1087
               one block, and the opproc at the top of the previous
1088
               block. If we pop everything in one go, the book keeping
1089
               entries disappear, so we pop to the start of the book
1090
               keeping values, call the cleanup, then pop the final
1091
               entry.
1092
             */
1093
265M
            op_proc_t opproc = real_opproc(ep);
1094
265M
            ref_stack_pop(&e_stack, idx - popped);
1095
265M
            esp--;
1096
265M
            (*opproc) (i_ctx_p);
1097
265M
            esp++;
1098
265M
            ref_stack_pop(&e_stack, 1);
1099
265M
            popped = idx + 1;
1100
265M
        }
1101
1.39G
    }
1102
147M
    ref_stack_pop(&e_stack, count - popped);
1103
147M
}
1104
1105
/*
1106
 * Execute a quit in the case of an exit or stop with no appropriate
1107
 * enclosing control scope (loop or stopped).  The caller has already
1108
 * ensured two free slots on the top of the o-stack.
1109
 */
1110
static int
1111
unmatched_exit(os_ptr op, op_proc_t opproc)
1112
32.3k
{
1113
32.3k
    make_oper(op - 1, 0, opproc);
1114
32.3k
    make_int(op, gs_error_invalidexit);
1115
32.3k
    return_error(gs_error_Quit);
1116
32.3k
}