Merge commit mesa-public/master into vulkan
[mesa.git] / src / compiler / glsl / ir_validate.cpp
1 /*
2 * Copyright © 2010 Intel Corporation
3 *
4 * Permission is hereby granted, free of charge, to any person obtaining a
5 * copy of this software and associated documentation files (the "Software"),
6 * to deal in the Software without restriction, including without limitation
7 * the rights to use, copy, modify, merge, publish, distribute, sublicense,
8 * and/or sell copies of the Software, and to permit persons to whom the
9 * Software is furnished to do so, subject to the following conditions:
10 *
11 * The above copyright notice and this permission notice (including the next
12 * paragraph) shall be included in all copies or substantial portions of the
13 * Software.
14 *
15 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
16 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
17 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
18 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
19 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
20 * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER
21 * DEALINGS IN THE SOFTWARE.
22 */
23
24 /**
25 * \file ir_validate.cpp
26 *
27 * Attempts to verify that various invariants of the IR tree are true.
28 *
29 * In particular, at the moment it makes sure that no single
30 * ir_instruction node except for ir_variable appears multiple times
31 * in the ir tree. ir_variable does appear multiple times: Once as a
32 * declaration in an exec_list, and multiple times as the endpoint of
33 * a dereference chain.
34 */
35
36 #include "ir.h"
37 #include "ir_hierarchical_visitor.h"
38 #include "util/hash_table.h"
39 #include "util/set.h"
40 #include "compiler/glsl_types.h"
41
42 namespace {
43
44 class ir_validate : public ir_hierarchical_visitor {
45 public:
46 ir_validate()
47 {
48 this->ir_set = _mesa_set_create(NULL, _mesa_hash_pointer,
49 _mesa_key_pointer_equal);
50
51 this->current_function = NULL;
52
53 this->callback_enter = ir_validate::validate_ir;
54 this->data_enter = ir_set;
55 }
56
57 ~ir_validate()
58 {
59 _mesa_set_destroy(this->ir_set, NULL);
60 }
61
62 virtual ir_visitor_status visit(ir_variable *v);
63 virtual ir_visitor_status visit(ir_dereference_variable *ir);
64
65 virtual ir_visitor_status visit_enter(ir_discard *ir);
66 virtual ir_visitor_status visit_enter(ir_if *ir);
67
68 virtual ir_visitor_status visit_enter(ir_function *ir);
69 virtual ir_visitor_status visit_leave(ir_function *ir);
70 virtual ir_visitor_status visit_enter(ir_function_signature *ir);
71
72 virtual ir_visitor_status visit_leave(ir_expression *ir);
73 virtual ir_visitor_status visit_leave(ir_swizzle *ir);
74
75 virtual ir_visitor_status visit_enter(class ir_dereference_array *);
76
77 virtual ir_visitor_status visit_enter(ir_assignment *ir);
78 virtual ir_visitor_status visit_enter(ir_call *ir);
79
80 static void validate_ir(ir_instruction *ir, void *data);
81
82 ir_function *current_function;
83
84 struct set *ir_set;
85 };
86
87 } /* anonymous namespace */
88
89 ir_visitor_status
90 ir_validate::visit(ir_dereference_variable *ir)
91 {
92 if ((ir->var == NULL) || (ir->var->as_variable() == NULL)) {
93 printf("ir_dereference_variable @ %p does not specify a variable %p\n",
94 (void *) ir, (void *) ir->var);
95 abort();
96 }
97
98 if (_mesa_set_search(ir_set, ir->var) == NULL) {
99 printf("ir_dereference_variable @ %p specifies undeclared variable "
100 "`%s' @ %p\n",
101 (void *) ir, ir->var->name, (void *) ir->var);
102 abort();
103 }
104
105 this->validate_ir(ir, this->data_enter);
106
107 return visit_continue;
108 }
109
110 ir_visitor_status
111 ir_validate::visit_enter(class ir_dereference_array *ir)
112 {
113 if (!ir->array->type->is_array() && !ir->array->type->is_matrix() &&
114 !ir->array->type->is_vector()) {
115 printf("ir_dereference_array @ %p does not specify an array, a vector "
116 "or a matrix\n",
117 (void *) ir);
118 ir->print();
119 printf("\n");
120 abort();
121 }
122
123 if (!ir->array_index->type->is_scalar()) {
124 printf("ir_dereference_array @ %p does not have scalar index: %s\n",
125 (void *) ir, ir->array_index->type->name);
126 abort();
127 }
128
129 if (!ir->array_index->type->is_integer()) {
130 printf("ir_dereference_array @ %p does not have integer index: %s\n",
131 (void *) ir, ir->array_index->type->name);
132 abort();
133 }
134
135 return visit_continue;
136 }
137
138 ir_visitor_status
139 ir_validate::visit_enter(ir_discard *ir)
140 {
141 if (ir->condition && ir->condition->type != glsl_type::bool_type) {
142 printf("ir_discard condition %s type instead of bool.\n",
143 ir->condition->type->name);
144 ir->print();
145 printf("\n");
146 abort();
147 }
148
149 return visit_continue;
150 }
151
152 ir_visitor_status
153 ir_validate::visit_enter(ir_if *ir)
154 {
155 if (ir->condition->type != glsl_type::bool_type) {
156 printf("ir_if condition %s type instead of bool.\n",
157 ir->condition->type->name);
158 ir->print();
159 printf("\n");
160 abort();
161 }
162
163 return visit_continue;
164 }
165
166
167 ir_visitor_status
168 ir_validate::visit_enter(ir_function *ir)
169 {
170 /* Function definitions cannot be nested.
171 */
172 if (this->current_function != NULL) {
173 printf("Function definition nested inside another function "
174 "definition:\n");
175 printf("%s %p inside %s %p\n",
176 ir->name, (void *) ir,
177 this->current_function->name, (void *) this->current_function);
178 abort();
179 }
180
181 /* Store the current function hierarchy being traversed. This is used
182 * by the function signature visitor to ensure that the signatures are
183 * linked with the correct functions.
184 */
185 this->current_function = ir;
186
187 this->validate_ir(ir, this->data_enter);
188
189 /* Verify that all of the things stored in the list of signatures are,
190 * in fact, function signatures.
191 */
192 foreach_in_list(ir_instruction, sig, &ir->signatures) {
193 if (sig->ir_type != ir_type_function_signature) {
194 printf("Non-signature in signature list of function `%s'\n",
195 ir->name);
196 abort();
197 }
198 }
199
200 return visit_continue;
201 }
202
203 ir_visitor_status
204 ir_validate::visit_leave(ir_function *ir)
205 {
206 assert(ralloc_parent(ir->name) == ir);
207
208 this->current_function = NULL;
209 return visit_continue;
210 }
211
212 ir_visitor_status
213 ir_validate::visit_enter(ir_function_signature *ir)
214 {
215 if (this->current_function != ir->function()) {
216 printf("Function signature nested inside wrong function "
217 "definition:\n");
218 printf("%p inside %s %p instead of %s %p\n",
219 (void *) ir,
220 this->current_function->name, (void *) this->current_function,
221 ir->function_name(), (void *) ir->function());
222 abort();
223 }
224
225 if (ir->return_type == NULL) {
226 printf("Function signature %p for function %s has NULL return type.\n",
227 (void *) ir, ir->function_name());
228 abort();
229 }
230
231 this->validate_ir(ir, this->data_enter);
232
233 return visit_continue;
234 }
235
236 ir_visitor_status
237 ir_validate::visit_leave(ir_expression *ir)
238 {
239 switch (ir->operation) {
240 case ir_unop_bit_not:
241 assert(ir->operands[0]->type == ir->type);
242 break;
243 case ir_unop_logic_not:
244 assert(ir->type->base_type == GLSL_TYPE_BOOL);
245 assert(ir->operands[0]->type->base_type == GLSL_TYPE_BOOL);
246 break;
247
248 case ir_unop_neg:
249 case ir_unop_abs:
250 case ir_unop_sign:
251 case ir_unop_rcp:
252 case ir_unop_rsq:
253 case ir_unop_sqrt:
254 assert(ir->type == ir->operands[0]->type);
255 break;
256
257 case ir_unop_exp:
258 case ir_unop_log:
259 case ir_unop_exp2:
260 case ir_unop_log2:
261 case ir_unop_saturate:
262 assert(ir->operands[0]->type->base_type == GLSL_TYPE_FLOAT);
263 assert(ir->type == ir->operands[0]->type);
264 break;
265
266 case ir_unop_f2i:
267 assert(ir->operands[0]->type->base_type == GLSL_TYPE_FLOAT);
268 assert(ir->type->base_type == GLSL_TYPE_INT);
269 break;
270 case ir_unop_f2u:
271 assert(ir->operands[0]->type->base_type == GLSL_TYPE_FLOAT);
272 assert(ir->type->base_type == GLSL_TYPE_UINT);
273 break;
274 case ir_unop_i2f:
275 assert(ir->operands[0]->type->base_type == GLSL_TYPE_INT);
276 assert(ir->type->base_type == GLSL_TYPE_FLOAT);
277 break;
278 case ir_unop_f2b:
279 assert(ir->operands[0]->type->base_type == GLSL_TYPE_FLOAT);
280 assert(ir->type->base_type == GLSL_TYPE_BOOL);
281 break;
282 case ir_unop_b2f:
283 assert(ir->operands[0]->type->base_type == GLSL_TYPE_BOOL);
284 assert(ir->type->base_type == GLSL_TYPE_FLOAT);
285 break;
286 case ir_unop_i2b:
287 assert(ir->operands[0]->type->base_type == GLSL_TYPE_INT);
288 assert(ir->type->base_type == GLSL_TYPE_BOOL);
289 break;
290 case ir_unop_b2i:
291 assert(ir->operands[0]->type->base_type == GLSL_TYPE_BOOL);
292 assert(ir->type->base_type == GLSL_TYPE_INT);
293 break;
294 case ir_unop_u2f:
295 assert(ir->operands[0]->type->base_type == GLSL_TYPE_UINT);
296 assert(ir->type->base_type == GLSL_TYPE_FLOAT);
297 break;
298 case ir_unop_i2u:
299 assert(ir->operands[0]->type->base_type == GLSL_TYPE_INT);
300 assert(ir->type->base_type == GLSL_TYPE_UINT);
301 break;
302 case ir_unop_u2i:
303 assert(ir->operands[0]->type->base_type == GLSL_TYPE_UINT);
304 assert(ir->type->base_type == GLSL_TYPE_INT);
305 break;
306 case ir_unop_bitcast_i2f:
307 assert(ir->operands[0]->type->base_type == GLSL_TYPE_INT);
308 assert(ir->type->base_type == GLSL_TYPE_FLOAT);
309 break;
310 case ir_unop_bitcast_f2i:
311 assert(ir->operands[0]->type->base_type == GLSL_TYPE_FLOAT);
312 assert(ir->type->base_type == GLSL_TYPE_INT);
313 break;
314 case ir_unop_bitcast_u2f:
315 assert(ir->operands[0]->type->base_type == GLSL_TYPE_UINT);
316 assert(ir->type->base_type == GLSL_TYPE_FLOAT);
317 break;
318 case ir_unop_bitcast_f2u:
319 assert(ir->operands[0]->type->base_type == GLSL_TYPE_FLOAT);
320 assert(ir->type->base_type == GLSL_TYPE_UINT);
321 break;
322
323 case ir_unop_trunc:
324 case ir_unop_round_even:
325 case ir_unop_ceil:
326 case ir_unop_floor:
327 case ir_unop_fract:
328 assert(ir->operands[0]->type->base_type == GLSL_TYPE_FLOAT ||
329 ir->operands[0]->type->base_type == GLSL_TYPE_DOUBLE);
330 assert(ir->operands[0]->type == ir->type);
331 break;
332 case ir_unop_sin:
333 case ir_unop_cos:
334 case ir_unop_dFdx:
335 case ir_unop_dFdx_coarse:
336 case ir_unop_dFdx_fine:
337 case ir_unop_dFdy:
338 case ir_unop_dFdy_coarse:
339 case ir_unop_dFdy_fine:
340 assert(ir->operands[0]->type->base_type == GLSL_TYPE_FLOAT);
341 assert(ir->operands[0]->type == ir->type);
342 break;
343
344 case ir_unop_pack_snorm_2x16:
345 case ir_unop_pack_unorm_2x16:
346 case ir_unop_pack_half_2x16:
347 assert(ir->type == glsl_type::uint_type);
348 assert(ir->operands[0]->type == glsl_type::vec2_type);
349 break;
350
351 case ir_unop_pack_snorm_4x8:
352 case ir_unop_pack_unorm_4x8:
353 assert(ir->type == glsl_type::uint_type);
354 assert(ir->operands[0]->type == glsl_type::vec4_type);
355 break;
356
357 case ir_unop_pack_double_2x32:
358 assert(ir->type == glsl_type::double_type);
359 assert(ir->operands[0]->type == glsl_type::uvec2_type);
360 break;
361
362 case ir_unop_unpack_snorm_2x16:
363 case ir_unop_unpack_unorm_2x16:
364 case ir_unop_unpack_half_2x16:
365 assert(ir->type == glsl_type::vec2_type);
366 assert(ir->operands[0]->type == glsl_type::uint_type);
367 break;
368
369 case ir_unop_unpack_snorm_4x8:
370 case ir_unop_unpack_unorm_4x8:
371 assert(ir->type == glsl_type::vec4_type);
372 assert(ir->operands[0]->type == glsl_type::uint_type);
373 break;
374
375 case ir_unop_unpack_double_2x32:
376 assert(ir->type == glsl_type::uvec2_type);
377 assert(ir->operands[0]->type == glsl_type::double_type);
378 break;
379
380 case ir_unop_bitfield_reverse:
381 assert(ir->operands[0]->type == ir->type);
382 assert(ir->type->is_integer());
383 break;
384
385 case ir_unop_bit_count:
386 case ir_unop_find_msb:
387 case ir_unop_find_lsb:
388 assert(ir->operands[0]->type->vector_elements == ir->type->vector_elements);
389 assert(ir->operands[0]->type->is_integer());
390 assert(ir->type->base_type == GLSL_TYPE_INT);
391 break;
392
393 case ir_unop_noise:
394 /* XXX what can we assert here? */
395 break;
396
397 case ir_unop_interpolate_at_centroid:
398 assert(ir->operands[0]->type == ir->type);
399 assert(ir->operands[0]->type->is_float());
400 break;
401
402 case ir_unop_get_buffer_size:
403 assert(ir->type == glsl_type::int_type);
404 assert(ir->operands[0]->type == glsl_type::uint_type);
405 break;
406
407 case ir_unop_ssbo_unsized_array_length:
408 assert(ir->type == glsl_type::int_type);
409 assert(ir->operands[0]->type->is_array());
410 assert(ir->operands[0]->type->is_unsized_array());
411 break;
412
413 case ir_unop_d2f:
414 assert(ir->operands[0]->type->base_type == GLSL_TYPE_DOUBLE);
415 assert(ir->type->base_type == GLSL_TYPE_FLOAT);
416 break;
417 case ir_unop_f2d:
418 assert(ir->operands[0]->type->base_type == GLSL_TYPE_FLOAT);
419 assert(ir->type->base_type == GLSL_TYPE_DOUBLE);
420 break;
421 case ir_unop_d2i:
422 assert(ir->operands[0]->type->base_type == GLSL_TYPE_DOUBLE);
423 assert(ir->type->base_type == GLSL_TYPE_INT);
424 break;
425 case ir_unop_i2d:
426 assert(ir->operands[0]->type->base_type == GLSL_TYPE_INT);
427 assert(ir->type->base_type == GLSL_TYPE_DOUBLE);
428 break;
429 case ir_unop_d2u:
430 assert(ir->operands[0]->type->base_type == GLSL_TYPE_DOUBLE);
431 assert(ir->type->base_type == GLSL_TYPE_UINT);
432 break;
433 case ir_unop_u2d:
434 assert(ir->operands[0]->type->base_type == GLSL_TYPE_UINT);
435 assert(ir->type->base_type == GLSL_TYPE_DOUBLE);
436 break;
437 case ir_unop_d2b:
438 assert(ir->operands[0]->type->base_type == GLSL_TYPE_DOUBLE);
439 assert(ir->type->base_type == GLSL_TYPE_BOOL);
440 break;
441
442 case ir_unop_frexp_sig:
443 assert(ir->operands[0]->type->base_type == GLSL_TYPE_FLOAT ||
444 ir->operands[0]->type->base_type == GLSL_TYPE_DOUBLE);
445 assert(ir->type->base_type == GLSL_TYPE_DOUBLE);
446 break;
447 case ir_unop_frexp_exp:
448 assert(ir->operands[0]->type->base_type == GLSL_TYPE_FLOAT ||
449 ir->operands[0]->type->base_type == GLSL_TYPE_DOUBLE);
450 assert(ir->type->base_type == GLSL_TYPE_INT);
451 break;
452 case ir_unop_subroutine_to_int:
453 assert(ir->operands[0]->type->base_type == GLSL_TYPE_SUBROUTINE);
454 assert(ir->type->base_type == GLSL_TYPE_INT);
455 break;
456 case ir_binop_add:
457 case ir_binop_sub:
458 case ir_binop_mul:
459 case ir_binop_div:
460 case ir_binop_mod:
461 case ir_binop_min:
462 case ir_binop_max:
463 case ir_binop_pow:
464 assert(ir->operands[0]->type->base_type ==
465 ir->operands[1]->type->base_type);
466
467 if (ir->operands[0]->type->is_scalar())
468 assert(ir->operands[1]->type == ir->type);
469 else if (ir->operands[1]->type->is_scalar())
470 assert(ir->operands[0]->type == ir->type);
471 else if (ir->operands[0]->type->is_vector() &&
472 ir->operands[1]->type->is_vector()) {
473 assert(ir->operands[0]->type == ir->operands[1]->type);
474 assert(ir->operands[0]->type == ir->type);
475 }
476 break;
477
478 case ir_binop_imul_high:
479 assert(ir->type == ir->operands[0]->type);
480 assert(ir->type == ir->operands[1]->type);
481 assert(ir->type->is_integer());
482 break;
483
484 case ir_binop_carry:
485 case ir_binop_borrow:
486 assert(ir->type == ir->operands[0]->type);
487 assert(ir->type == ir->operands[1]->type);
488 assert(ir->type->base_type == GLSL_TYPE_UINT);
489 break;
490
491 case ir_binop_less:
492 case ir_binop_greater:
493 case ir_binop_lequal:
494 case ir_binop_gequal:
495 case ir_binop_equal:
496 case ir_binop_nequal:
497 /* The semantics of the IR operators differ from the GLSL <, >, <=, >=,
498 * ==, and != operators. The IR operators perform a component-wise
499 * comparison on scalar or vector types and return a boolean scalar or
500 * vector type of the same size.
501 */
502 assert(ir->type->base_type == GLSL_TYPE_BOOL);
503 assert(ir->operands[0]->type == ir->operands[1]->type);
504 assert(ir->operands[0]->type->is_vector()
505 || ir->operands[0]->type->is_scalar());
506 assert(ir->operands[0]->type->vector_elements
507 == ir->type->vector_elements);
508 break;
509
510 case ir_binop_all_equal:
511 case ir_binop_any_nequal:
512 /* GLSL == and != operate on scalars, vectors, matrices and arrays, and
513 * return a scalar boolean. The IR matches that.
514 */
515 assert(ir->type == glsl_type::bool_type);
516 assert(ir->operands[0]->type == ir->operands[1]->type);
517 break;
518
519 case ir_binop_lshift:
520 case ir_binop_rshift:
521 assert(ir->operands[0]->type->is_integer() &&
522 ir->operands[1]->type->is_integer());
523 if (ir->operands[0]->type->is_scalar()) {
524 assert(ir->operands[1]->type->is_scalar());
525 }
526 if (ir->operands[0]->type->is_vector() &&
527 ir->operands[1]->type->is_vector()) {
528 assert(ir->operands[0]->type->components() ==
529 ir->operands[1]->type->components());
530 }
531 assert(ir->type == ir->operands[0]->type);
532 break;
533
534 case ir_binop_bit_and:
535 case ir_binop_bit_xor:
536 case ir_binop_bit_or:
537 assert(ir->operands[0]->type->base_type ==
538 ir->operands[1]->type->base_type);
539 assert(ir->type->is_integer());
540 if (ir->operands[0]->type->is_vector() &&
541 ir->operands[1]->type->is_vector()) {
542 assert(ir->operands[0]->type->vector_elements ==
543 ir->operands[1]->type->vector_elements);
544 }
545 break;
546
547 case ir_binop_logic_and:
548 case ir_binop_logic_xor:
549 case ir_binop_logic_or:
550 assert(ir->type->base_type == GLSL_TYPE_BOOL);
551 assert(ir->operands[0]->type->base_type == GLSL_TYPE_BOOL);
552 assert(ir->operands[1]->type->base_type == GLSL_TYPE_BOOL);
553 break;
554
555 case ir_binop_dot:
556 assert(ir->type == glsl_type::float_type ||
557 ir->type == glsl_type::double_type);
558 assert(ir->operands[0]->type->base_type == GLSL_TYPE_FLOAT ||
559 ir->operands[0]->type->base_type == GLSL_TYPE_DOUBLE);
560 assert(ir->operands[0]->type->is_vector());
561 assert(ir->operands[0]->type == ir->operands[1]->type);
562 break;
563
564 case ir_binop_ubo_load:
565 assert(ir->operands[0]->type == glsl_type::uint_type);
566
567 assert(ir->operands[1]->type == glsl_type::uint_type);
568 break;
569
570 case ir_binop_ldexp:
571 assert(ir->operands[0]->type == ir->type);
572 assert(ir->operands[0]->type->is_float() ||
573 ir->operands[0]->type->is_double());
574 assert(ir->operands[1]->type->base_type == GLSL_TYPE_INT);
575 assert(ir->operands[0]->type->components() ==
576 ir->operands[1]->type->components());
577 break;
578
579 case ir_binop_vector_extract:
580 assert(ir->operands[0]->type->is_vector());
581 assert(ir->operands[1]->type->is_scalar()
582 && ir->operands[1]->type->is_integer());
583 break;
584
585 case ir_binop_interpolate_at_offset:
586 assert(ir->operands[0]->type == ir->type);
587 assert(ir->operands[0]->type->is_float());
588 assert(ir->operands[1]->type->components() == 2);
589 assert(ir->operands[1]->type->is_float());
590 break;
591
592 case ir_binop_interpolate_at_sample:
593 assert(ir->operands[0]->type == ir->type);
594 assert(ir->operands[0]->type->is_float());
595 assert(ir->operands[1]->type == glsl_type::int_type);
596 break;
597
598 case ir_triop_fma:
599 assert(ir->type->base_type == GLSL_TYPE_FLOAT ||
600 ir->type->base_type == GLSL_TYPE_DOUBLE);
601 assert(ir->type == ir->operands[0]->type);
602 assert(ir->type == ir->operands[1]->type);
603 assert(ir->type == ir->operands[2]->type);
604 break;
605
606 case ir_triop_lrp:
607 assert(ir->operands[0]->type->base_type == GLSL_TYPE_FLOAT ||
608 ir->operands[0]->type->base_type == GLSL_TYPE_DOUBLE);
609 assert(ir->operands[0]->type == ir->operands[1]->type);
610 assert(ir->operands[2]->type == ir->operands[0]->type ||
611 ir->operands[2]->type == glsl_type::float_type ||
612 ir->operands[2]->type == glsl_type::double_type);
613 break;
614
615 case ir_triop_csel:
616 assert(ir->operands[0]->type->base_type == GLSL_TYPE_BOOL);
617 assert(ir->type->vector_elements == ir->operands[0]->type->vector_elements);
618 assert(ir->type == ir->operands[1]->type);
619 assert(ir->type == ir->operands[2]->type);
620 break;
621
622 case ir_triop_bitfield_extract:
623 assert(ir->type->is_integer());
624 assert(ir->operands[0]->type == ir->type);
625 assert(ir->operands[1]->type == ir->type);
626 assert(ir->operands[2]->type == ir->type);
627 break;
628
629 case ir_triop_vector_insert:
630 assert(ir->operands[0]->type->is_vector());
631 assert(ir->operands[1]->type->is_scalar());
632 assert(ir->operands[0]->type->base_type == ir->operands[1]->type->base_type);
633 assert(ir->operands[2]->type->is_scalar()
634 && ir->operands[2]->type->is_integer());
635 assert(ir->type == ir->operands[0]->type);
636 break;
637
638 case ir_quadop_bitfield_insert:
639 assert(ir->type->is_integer());
640 assert(ir->operands[0]->type == ir->type);
641 assert(ir->operands[1]->type == ir->type);
642 assert(ir->operands[2]->type == ir->type);
643 assert(ir->operands[3]->type == ir->type);
644 break;
645
646 case ir_quadop_vector:
647 /* The vector operator collects some number of scalars and generates a
648 * vector from them.
649 *
650 * - All of the operands must be scalar.
651 * - Number of operands must matche the size of the resulting vector.
652 * - Base type of the operands must match the base type of the result.
653 */
654 assert(ir->type->is_vector());
655 switch (ir->type->vector_elements) {
656 case 2:
657 assert(ir->operands[0]->type->is_scalar());
658 assert(ir->operands[0]->type->base_type == ir->type->base_type);
659 assert(ir->operands[1]->type->is_scalar());
660 assert(ir->operands[1]->type->base_type == ir->type->base_type);
661 assert(ir->operands[2] == NULL);
662 assert(ir->operands[3] == NULL);
663 break;
664 case 3:
665 assert(ir->operands[0]->type->is_scalar());
666 assert(ir->operands[0]->type->base_type == ir->type->base_type);
667 assert(ir->operands[1]->type->is_scalar());
668 assert(ir->operands[1]->type->base_type == ir->type->base_type);
669 assert(ir->operands[2]->type->is_scalar());
670 assert(ir->operands[2]->type->base_type == ir->type->base_type);
671 assert(ir->operands[3] == NULL);
672 break;
673 case 4:
674 assert(ir->operands[0]->type->is_scalar());
675 assert(ir->operands[0]->type->base_type == ir->type->base_type);
676 assert(ir->operands[1]->type->is_scalar());
677 assert(ir->operands[1]->type->base_type == ir->type->base_type);
678 assert(ir->operands[2]->type->is_scalar());
679 assert(ir->operands[2]->type->base_type == ir->type->base_type);
680 assert(ir->operands[3]->type->is_scalar());
681 assert(ir->operands[3]->type->base_type == ir->type->base_type);
682 break;
683 default:
684 /* The is_vector assertion above should prevent execution from ever
685 * getting here.
686 */
687 assert(!"Should not get here.");
688 break;
689 }
690 }
691
692 return visit_continue;
693 }
694
695 ir_visitor_status
696 ir_validate::visit_leave(ir_swizzle *ir)
697 {
698 unsigned int chans[4] = {ir->mask.x, ir->mask.y, ir->mask.z, ir->mask.w};
699
700 for (unsigned int i = 0; i < ir->type->vector_elements; i++) {
701 if (chans[i] >= ir->val->type->vector_elements) {
702 printf("ir_swizzle @ %p specifies a channel not present "
703 "in the value.\n", (void *) ir);
704 ir->print();
705 abort();
706 }
707 }
708
709 return visit_continue;
710 }
711
712 ir_visitor_status
713 ir_validate::visit(ir_variable *ir)
714 {
715 /* An ir_variable is the one thing that can (and will) appear multiple times
716 * in an IR tree. It is added to the hashtable so that it can be used
717 * in the ir_dereference_variable handler to ensure that a variable is
718 * declared before it is dereferenced.
719 */
720 if (ir->name && ir->is_name_ralloced())
721 assert(ralloc_parent(ir->name) == ir);
722
723 _mesa_set_add(ir_set, ir);
724
725 /* If a variable is an array, verify that the maximum array index is in
726 * bounds. There was once an error in AST-to-HIR conversion that set this
727 * to be out of bounds.
728 */
729 if (ir->type->array_size() > 0) {
730 if (ir->data.max_array_access >= ir->type->length) {
731 printf("ir_variable has maximum access out of bounds (%d vs %d)\n",
732 ir->data.max_array_access, ir->type->length - 1);
733 ir->print();
734 abort();
735 }
736 }
737
738 /* If a variable is an interface block (or an array of interface blocks),
739 * verify that the maximum array index for each interface member is in
740 * bounds.
741 */
742 if (ir->is_interface_instance()) {
743 const glsl_struct_field *fields =
744 ir->get_interface_type()->fields.structure;
745 for (unsigned i = 0; i < ir->get_interface_type()->length; i++) {
746 if (fields[i].type->array_size() > 0) {
747 const unsigned *const max_ifc_array_access =
748 ir->get_max_ifc_array_access();
749
750 assert(max_ifc_array_access != NULL);
751
752 if (max_ifc_array_access[i] >= fields[i].type->length) {
753 printf("ir_variable has maximum access out of bounds for "
754 "field %s (%d vs %d)\n", fields[i].name,
755 max_ifc_array_access[i], fields[i].type->length);
756 ir->print();
757 abort();
758 }
759 }
760 }
761 }
762
763 if (ir->constant_initializer != NULL && !ir->data.has_initializer) {
764 printf("ir_variable didn't have an initializer, but has a constant "
765 "initializer value.\n");
766 ir->print();
767 abort();
768 }
769
770 if (ir->data.mode == ir_var_uniform
771 && is_gl_identifier(ir->name)
772 && ir->get_state_slots() == NULL) {
773 printf("built-in uniform has no state\n");
774 ir->print();
775 abort();
776 }
777
778 return visit_continue;
779 }
780
781 ir_visitor_status
782 ir_validate::visit_enter(ir_assignment *ir)
783 {
784 const ir_dereference *const lhs = ir->lhs;
785 if (lhs->type->is_scalar() || lhs->type->is_vector()) {
786 if (ir->write_mask == 0) {
787 printf("Assignment LHS is %s, but write mask is 0:\n",
788 lhs->type->is_scalar() ? "scalar" : "vector");
789 ir->print();
790 abort();
791 }
792
793 int lhs_components = 0;
794 for (int i = 0; i < 4; i++) {
795 if (ir->write_mask & (1 << i))
796 lhs_components++;
797 }
798
799 if (lhs_components != ir->rhs->type->vector_elements) {
800 printf("Assignment count of LHS write mask channels enabled not\n"
801 "matching RHS vector size (%d LHS, %d RHS).\n",
802 lhs_components, ir->rhs->type->vector_elements);
803 ir->print();
804 abort();
805 }
806 }
807
808 this->validate_ir(ir, this->data_enter);
809
810 return visit_continue;
811 }
812
813 ir_visitor_status
814 ir_validate::visit_enter(ir_call *ir)
815 {
816 ir_function_signature *const callee = ir->callee;
817
818 if (callee->ir_type != ir_type_function_signature) {
819 printf("IR called by ir_call is not ir_function_signature!\n");
820 abort();
821 }
822
823 if (ir->return_deref) {
824 if (ir->return_deref->type != callee->return_type) {
825 printf("callee type %s does not match return storage type %s\n",
826 callee->return_type->name, ir->return_deref->type->name);
827 abort();
828 }
829 } else if (callee->return_type != glsl_type::void_type) {
830 printf("ir_call has non-void callee but no return storage\n");
831 abort();
832 }
833
834 const exec_node *formal_param_node = callee->parameters.head;
835 const exec_node *actual_param_node = ir->actual_parameters.head;
836 while (true) {
837 if (formal_param_node->is_tail_sentinel()
838 != actual_param_node->is_tail_sentinel()) {
839 printf("ir_call has the wrong number of parameters:\n");
840 goto dump_ir;
841 }
842 if (formal_param_node->is_tail_sentinel()) {
843 break;
844 }
845 const ir_variable *formal_param
846 = (const ir_variable *) formal_param_node;
847 const ir_rvalue *actual_param
848 = (const ir_rvalue *) actual_param_node;
849 if (formal_param->type != actual_param->type) {
850 printf("ir_call parameter type mismatch:\n");
851 goto dump_ir;
852 }
853 if (formal_param->data.mode == ir_var_function_out
854 || formal_param->data.mode == ir_var_function_inout) {
855 if (!actual_param->is_lvalue()) {
856 printf("ir_call out/inout parameters must be lvalues:\n");
857 goto dump_ir;
858 }
859 }
860 formal_param_node = formal_param_node->next;
861 actual_param_node = actual_param_node->next;
862 }
863
864 return visit_continue;
865
866 dump_ir:
867 ir->print();
868 printf("callee:\n");
869 callee->print();
870 abort();
871 return visit_stop;
872 }
873
874 void
875 ir_validate::validate_ir(ir_instruction *ir, void *data)
876 {
877 struct set *ir_set = (struct set *) data;
878
879 if (_mesa_set_search(ir_set, ir)) {
880 printf("Instruction node present twice in ir tree:\n");
881 ir->print();
882 printf("\n");
883 abort();
884 }
885 _mesa_set_add(ir_set, ir);
886 }
887
888 void
889 check_node_type(ir_instruction *ir, void *data)
890 {
891 (void) data;
892
893 if (ir->ir_type >= ir_type_max) {
894 printf("Instruction node with unset type\n");
895 ir->print(); printf("\n");
896 }
897 ir_rvalue *value = ir->as_rvalue();
898 if (value != NULL)
899 assert(value->type != glsl_type::error_type);
900 }
901
902 void
903 validate_ir_tree(exec_list *instructions)
904 {
905 /* We shouldn't have any reason to validate IR in a release build,
906 * and it's half composed of assert()s anyway which wouldn't do
907 * anything.
908 */
909 #ifdef DEBUG
910 ir_validate v;
911
912 v.run(instructions);
913
914 foreach_in_list(ir_instruction, ir, instructions) {
915 visit_tree(ir, check_node_type, NULL);
916 }
917 #endif
918 }