llvmpipe: remove lp_swizzled_cbuf
[mesa.git] / src / gallium / drivers / llvmpipe / lp_test_blend.c
1 /**************************************************************************
2 *
3 * Copyright 2009 VMware, Inc.
4 * All Rights Reserved.
5 *
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11 * permit persons to whom the Software is furnished to do so, subject to
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13 *
14 * The above copyright notice and this permission notice (including the
15 * next paragraph) shall be included in all copies or substantial portions
16 * of the Software.
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19 * OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
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27
28
29 /**
30 * @file
31 * Unit tests for blend LLVM IR generation
32 *
33 * @author Jose Fonseca <jfonseca@vmware.com>
34 *
35 * Blend computation code derived from code written by
36 * @author Brian Paul <brian@vmware.com>
37 */
38
39 #include "util/u_memory.h"
40
41 #include "gallivm/lp_bld_init.h"
42 #include "gallivm/lp_bld_type.h"
43 #include "gallivm/lp_bld_debug.h"
44 #include "lp_bld_blend.h"
45 #include "lp_test.h"
46
47
48 typedef void (*blend_test_ptr_t)(const void *src, const void *src1,
49 const void *dst, const void *con, void *res);
50
51
52 void
53 write_tsv_header(FILE *fp)
54 {
55 fprintf(fp,
56 "result\t"
57 "cycles_per_channel\t"
58 "type\t"
59 "sep_func\t"
60 "sep_src_factor\t"
61 "sep_dst_factor\t"
62 "rgb_func\t"
63 "rgb_src_factor\t"
64 "rgb_dst_factor\t"
65 "alpha_func\t"
66 "alpha_src_factor\t"
67 "alpha_dst_factor\n");
68
69 fflush(fp);
70 }
71
72
73 static void
74 write_tsv_row(FILE *fp,
75 const struct pipe_blend_state *blend,
76 struct lp_type type,
77 double cycles,
78 boolean success)
79 {
80 fprintf(fp, "%s\t", success ? "pass" : "fail");
81
82 fprintf(fp, "%.1f\t", cycles / type.length);
83
84 fprintf(fp, "%s%u%sx%u\t",
85 type.floating ? "f" : (type.fixed ? "h" : (type.sign ? "s" : "u")),
86 type.width,
87 type.norm ? "n" : "",
88 type.length);
89
90 fprintf(fp,
91 "%s\t%s\t%s\t",
92 blend->rt[0].rgb_func != blend->rt[0].alpha_func ? "true" : "false",
93 blend->rt[0].rgb_src_factor != blend->rt[0].alpha_src_factor ? "true" : "false",
94 blend->rt[0].rgb_dst_factor != blend->rt[0].alpha_dst_factor ? "true" : "false");
95
96 fprintf(fp,
97 "%s\t%s\t%s\t%s\t%s\t%s\n",
98 util_dump_blend_func(blend->rt[0].rgb_func, TRUE),
99 util_dump_blend_factor(blend->rt[0].rgb_src_factor, TRUE),
100 util_dump_blend_factor(blend->rt[0].rgb_dst_factor, TRUE),
101 util_dump_blend_func(blend->rt[0].alpha_func, TRUE),
102 util_dump_blend_factor(blend->rt[0].alpha_src_factor, TRUE),
103 util_dump_blend_factor(blend->rt[0].alpha_dst_factor, TRUE));
104
105 fflush(fp);
106 }
107
108
109 static void
110 dump_blend_type(FILE *fp,
111 const struct pipe_blend_state *blend,
112 struct lp_type type)
113 {
114 fprintf(fp, " type=%s%u%sx%u",
115 type.floating ? "f" : (type.fixed ? "h" : (type.sign ? "s" : "u")),
116 type.width,
117 type.norm ? "n" : "",
118 type.length);
119
120 fprintf(fp,
121 " %s=%s %s=%s %s=%s %s=%s %s=%s %s=%s",
122 "rgb_func", util_dump_blend_func(blend->rt[0].rgb_func, TRUE),
123 "rgb_src_factor", util_dump_blend_factor(blend->rt[0].rgb_src_factor, TRUE),
124 "rgb_dst_factor", util_dump_blend_factor(blend->rt[0].rgb_dst_factor, TRUE),
125 "alpha_func", util_dump_blend_func(blend->rt[0].alpha_func, TRUE),
126 "alpha_src_factor", util_dump_blend_factor(blend->rt[0].alpha_src_factor, TRUE),
127 "alpha_dst_factor", util_dump_blend_factor(blend->rt[0].alpha_dst_factor, TRUE));
128
129 fprintf(fp, " ...\n");
130 fflush(fp);
131 }
132
133
134 static LLVMValueRef
135 add_blend_test(struct gallivm_state *gallivm,
136 const struct pipe_blend_state *blend,
137 struct lp_type type)
138 {
139 LLVMModuleRef module = gallivm->module;
140 LLVMContextRef context = gallivm->context;
141 LLVMTypeRef vec_type;
142 LLVMTypeRef args[5];
143 LLVMValueRef func;
144 LLVMValueRef src_ptr;
145 LLVMValueRef src1_ptr;
146 LLVMValueRef dst_ptr;
147 LLVMValueRef const_ptr;
148 LLVMValueRef res_ptr;
149 LLVMBasicBlockRef block;
150 LLVMBuilderRef builder;
151 const enum pipe_format format = PIPE_FORMAT_R8G8B8A8_UNORM;
152 const unsigned rt = 0;
153 const unsigned char swizzle[4] = { 0, 1, 2, 3 };
154 LLVMValueRef src;
155 LLVMValueRef src1;
156 LLVMValueRef dst;
157 LLVMValueRef con;
158 LLVMValueRef res;
159
160 vec_type = lp_build_vec_type(gallivm, type);
161
162 args[4] = args[3] = args[2] = args[1] = args[0] = LLVMPointerType(vec_type, 0);
163 func = LLVMAddFunction(module, "test", LLVMFunctionType(LLVMVoidTypeInContext(context), args, 5, 0));
164 LLVMSetFunctionCallConv(func, LLVMCCallConv);
165 src_ptr = LLVMGetParam(func, 0);
166 src1_ptr = LLVMGetParam(func, 1);
167 dst_ptr = LLVMGetParam(func, 2);
168 const_ptr = LLVMGetParam(func, 3);
169 res_ptr = LLVMGetParam(func, 4);
170
171 block = LLVMAppendBasicBlockInContext(context, func, "entry");
172 builder = gallivm->builder;
173 LLVMPositionBuilderAtEnd(builder, block);
174
175 src = LLVMBuildLoad(builder, src_ptr, "src");
176 src1 = LLVMBuildLoad(builder, src1_ptr, "src1");
177 dst = LLVMBuildLoad(builder, dst_ptr, "dst");
178 con = LLVMBuildLoad(builder, const_ptr, "const");
179
180 res = lp_build_blend_aos(gallivm, blend, format, type, rt, src, NULL, src1, dst, NULL, con, NULL, swizzle, 4);
181
182 lp_build_name(res, "res");
183
184 LLVMBuildStore(builder, res, res_ptr);
185
186 LLVMBuildRetVoid(builder);;
187
188 return func;
189 }
190
191
192 static void
193 compute_blend_ref_term(unsigned rgb_factor,
194 unsigned alpha_factor,
195 const double *factor,
196 const double *src,
197 const double *src1,
198 const double *dst,
199 const double *con,
200 double *term)
201 {
202 double temp;
203
204 switch (rgb_factor) {
205 case PIPE_BLENDFACTOR_ONE:
206 term[0] = factor[0]; /* R */
207 term[1] = factor[1]; /* G */
208 term[2] = factor[2]; /* B */
209 break;
210 case PIPE_BLENDFACTOR_SRC_COLOR:
211 term[0] = factor[0] * src[0]; /* R */
212 term[1] = factor[1] * src[1]; /* G */
213 term[2] = factor[2] * src[2]; /* B */
214 break;
215 case PIPE_BLENDFACTOR_SRC_ALPHA:
216 term[0] = factor[0] * src[3]; /* R */
217 term[1] = factor[1] * src[3]; /* G */
218 term[2] = factor[2] * src[3]; /* B */
219 break;
220 case PIPE_BLENDFACTOR_DST_COLOR:
221 term[0] = factor[0] * dst[0]; /* R */
222 term[1] = factor[1] * dst[1]; /* G */
223 term[2] = factor[2] * dst[2]; /* B */
224 break;
225 case PIPE_BLENDFACTOR_DST_ALPHA:
226 term[0] = factor[0] * dst[3]; /* R */
227 term[1] = factor[1] * dst[3]; /* G */
228 term[2] = factor[2] * dst[3]; /* B */
229 break;
230 case PIPE_BLENDFACTOR_SRC_ALPHA_SATURATE:
231 temp = MIN2(src[3], 1.0f - dst[3]);
232 term[0] = factor[0] * temp; /* R */
233 term[1] = factor[1] * temp; /* G */
234 term[2] = factor[2] * temp; /* B */
235 break;
236 case PIPE_BLENDFACTOR_CONST_COLOR:
237 term[0] = factor[0] * con[0]; /* R */
238 term[1] = factor[1] * con[1]; /* G */
239 term[2] = factor[2] * con[2]; /* B */
240 break;
241 case PIPE_BLENDFACTOR_CONST_ALPHA:
242 term[0] = factor[0] * con[3]; /* R */
243 term[1] = factor[1] * con[3]; /* G */
244 term[2] = factor[2] * con[3]; /* B */
245 break;
246 case PIPE_BLENDFACTOR_SRC1_COLOR:
247 term[0] = factor[0] * src1[0]; /* R */
248 term[1] = factor[1] * src1[1]; /* G */
249 term[2] = factor[2] * src1[2]; /* B */
250 break;
251 case PIPE_BLENDFACTOR_SRC1_ALPHA:
252 term[0] = factor[0] * src1[3]; /* R */
253 term[1] = factor[1] * src1[3]; /* G */
254 term[2] = factor[2] * src1[3]; /* B */
255 break;
256 case PIPE_BLENDFACTOR_ZERO:
257 term[0] = 0.0f; /* R */
258 term[1] = 0.0f; /* G */
259 term[2] = 0.0f; /* B */
260 break;
261 case PIPE_BLENDFACTOR_INV_SRC_COLOR:
262 term[0] = factor[0] * (1.0f - src[0]); /* R */
263 term[1] = factor[1] * (1.0f - src[1]); /* G */
264 term[2] = factor[2] * (1.0f - src[2]); /* B */
265 break;
266 case PIPE_BLENDFACTOR_INV_SRC_ALPHA:
267 term[0] = factor[0] * (1.0f - src[3]); /* R */
268 term[1] = factor[1] * (1.0f - src[3]); /* G */
269 term[2] = factor[2] * (1.0f - src[3]); /* B */
270 break;
271 case PIPE_BLENDFACTOR_INV_DST_ALPHA:
272 term[0] = factor[0] * (1.0f - dst[3]); /* R */
273 term[1] = factor[1] * (1.0f - dst[3]); /* G */
274 term[2] = factor[2] * (1.0f - dst[3]); /* B */
275 break;
276 case PIPE_BLENDFACTOR_INV_DST_COLOR:
277 term[0] = factor[0] * (1.0f - dst[0]); /* R */
278 term[1] = factor[1] * (1.0f - dst[1]); /* G */
279 term[2] = factor[2] * (1.0f - dst[2]); /* B */
280 break;
281 case PIPE_BLENDFACTOR_INV_CONST_COLOR:
282 term[0] = factor[0] * (1.0f - con[0]); /* R */
283 term[1] = factor[1] * (1.0f - con[1]); /* G */
284 term[2] = factor[2] * (1.0f - con[2]); /* B */
285 break;
286 case PIPE_BLENDFACTOR_INV_CONST_ALPHA:
287 term[0] = factor[0] * (1.0f - con[3]); /* R */
288 term[1] = factor[1] * (1.0f - con[3]); /* G */
289 term[2] = factor[2] * (1.0f - con[3]); /* B */
290 break;
291 case PIPE_BLENDFACTOR_INV_SRC1_COLOR:
292 term[0] = factor[0] * (1.0f - src1[0]); /* R */
293 term[1] = factor[1] * (1.0f - src1[1]); /* G */
294 term[2] = factor[2] * (1.0f - src1[2]); /* B */
295 break;
296 case PIPE_BLENDFACTOR_INV_SRC1_ALPHA:
297 term[0] = factor[0] * (1.0f - src1[3]); /* R */
298 term[1] = factor[1] * (1.0f - src1[3]); /* G */
299 term[2] = factor[2] * (1.0f - src1[3]); /* B */
300 break;
301 default:
302 assert(0);
303 }
304
305 /*
306 * Compute src/first term A
307 */
308 switch (alpha_factor) {
309 case PIPE_BLENDFACTOR_ONE:
310 term[3] = factor[3]; /* A */
311 break;
312 case PIPE_BLENDFACTOR_SRC_COLOR:
313 case PIPE_BLENDFACTOR_SRC_ALPHA:
314 term[3] = factor[3] * src[3]; /* A */
315 break;
316 case PIPE_BLENDFACTOR_DST_COLOR:
317 case PIPE_BLENDFACTOR_DST_ALPHA:
318 term[3] = factor[3] * dst[3]; /* A */
319 break;
320 case PIPE_BLENDFACTOR_SRC_ALPHA_SATURATE:
321 term[3] = src[3]; /* A */
322 break;
323 case PIPE_BLENDFACTOR_CONST_COLOR:
324 case PIPE_BLENDFACTOR_CONST_ALPHA:
325 term[3] = factor[3] * con[3]; /* A */
326 break;
327 case PIPE_BLENDFACTOR_SRC1_COLOR:
328 case PIPE_BLENDFACTOR_SRC1_ALPHA:
329 term[3] = factor[3] * src1[3]; /* A */
330 break;
331 case PIPE_BLENDFACTOR_ZERO:
332 term[3] = 0.0f; /* A */
333 break;
334 case PIPE_BLENDFACTOR_INV_SRC_COLOR:
335 case PIPE_BLENDFACTOR_INV_SRC_ALPHA:
336 term[3] = factor[3] * (1.0f - src[3]); /* A */
337 break;
338 case PIPE_BLENDFACTOR_INV_DST_COLOR:
339 case PIPE_BLENDFACTOR_INV_DST_ALPHA:
340 term[3] = factor[3] * (1.0f - dst[3]); /* A */
341 break;
342 case PIPE_BLENDFACTOR_INV_CONST_COLOR:
343 case PIPE_BLENDFACTOR_INV_CONST_ALPHA:
344 term[3] = factor[3] * (1.0f - con[3]);
345 break;
346 case PIPE_BLENDFACTOR_INV_SRC1_COLOR:
347 case PIPE_BLENDFACTOR_INV_SRC1_ALPHA:
348 term[3] = factor[3] * (1.0f - src1[3]); /* A */
349 break;
350 default:
351 assert(0);
352 }
353 }
354
355
356 static void
357 compute_blend_ref(const struct pipe_blend_state *blend,
358 const double *src,
359 const double *src1,
360 const double *dst,
361 const double *con,
362 double *res)
363 {
364 double src_term[4];
365 double dst_term[4];
366
367 compute_blend_ref_term(blend->rt[0].rgb_src_factor, blend->rt[0].alpha_src_factor,
368 src, src, src1, dst, con, src_term);
369 compute_blend_ref_term(blend->rt[0].rgb_dst_factor, blend->rt[0].alpha_dst_factor,
370 dst, src, src1, dst, con, dst_term);
371
372 /*
373 * Combine RGB terms
374 */
375 switch (blend->rt[0].rgb_func) {
376 case PIPE_BLEND_ADD:
377 res[0] = src_term[0] + dst_term[0]; /* R */
378 res[1] = src_term[1] + dst_term[1]; /* G */
379 res[2] = src_term[2] + dst_term[2]; /* B */
380 break;
381 case PIPE_BLEND_SUBTRACT:
382 res[0] = src_term[0] - dst_term[0]; /* R */
383 res[1] = src_term[1] - dst_term[1]; /* G */
384 res[2] = src_term[2] - dst_term[2]; /* B */
385 break;
386 case PIPE_BLEND_REVERSE_SUBTRACT:
387 res[0] = dst_term[0] - src_term[0]; /* R */
388 res[1] = dst_term[1] - src_term[1]; /* G */
389 res[2] = dst_term[2] - src_term[2]; /* B */
390 break;
391 case PIPE_BLEND_MIN:
392 res[0] = MIN2(src_term[0], dst_term[0]); /* R */
393 res[1] = MIN2(src_term[1], dst_term[1]); /* G */
394 res[2] = MIN2(src_term[2], dst_term[2]); /* B */
395 break;
396 case PIPE_BLEND_MAX:
397 res[0] = MAX2(src_term[0], dst_term[0]); /* R */
398 res[1] = MAX2(src_term[1], dst_term[1]); /* G */
399 res[2] = MAX2(src_term[2], dst_term[2]); /* B */
400 break;
401 default:
402 assert(0);
403 }
404
405 /*
406 * Combine A terms
407 */
408 switch (blend->rt[0].alpha_func) {
409 case PIPE_BLEND_ADD:
410 res[3] = src_term[3] + dst_term[3]; /* A */
411 break;
412 case PIPE_BLEND_SUBTRACT:
413 res[3] = src_term[3] - dst_term[3]; /* A */
414 break;
415 case PIPE_BLEND_REVERSE_SUBTRACT:
416 res[3] = dst_term[3] - src_term[3]; /* A */
417 break;
418 case PIPE_BLEND_MIN:
419 res[3] = MIN2(src_term[3], dst_term[3]); /* A */
420 break;
421 case PIPE_BLEND_MAX:
422 res[3] = MAX2(src_term[3], dst_term[3]); /* A */
423 break;
424 default:
425 assert(0);
426 }
427 }
428
429
430 PIPE_ALIGN_STACK
431 static boolean
432 test_one(unsigned verbose,
433 FILE *fp,
434 const struct pipe_blend_state *blend,
435 struct lp_type type)
436 {
437 struct gallivm_state *gallivm;
438 LLVMValueRef func = NULL;
439 blend_test_ptr_t blend_test_ptr;
440 boolean success;
441 const unsigned n = LP_TEST_NUM_SAMPLES;
442 int64_t cycles[LP_TEST_NUM_SAMPLES];
443 double cycles_avg = 0.0;
444 unsigned i, j;
445 const unsigned stride = lp_type_width(type)/8;
446
447 if(verbose >= 1)
448 dump_blend_type(stdout, blend, type);
449
450 gallivm = gallivm_create();
451
452 func = add_blend_test(gallivm, blend, type);
453
454 gallivm_compile_module(gallivm);
455
456 blend_test_ptr = (blend_test_ptr_t)gallivm_jit_function(gallivm, func);
457
458 success = TRUE;
459
460 {
461 uint8_t *src, *src1, *dst, *con, *res, *ref;
462 src = align_malloc(stride, stride);
463 src1 = align_malloc(stride, stride);
464 dst = align_malloc(stride, stride);
465 con = align_malloc(stride, stride);
466 res = align_malloc(stride, stride);
467 ref = align_malloc(stride, stride);
468
469 for(i = 0; i < n && success; ++i) {
470 int64_t start_counter = 0;
471 int64_t end_counter = 0;
472
473 random_vec(type, src);
474 random_vec(type, src1);
475 random_vec(type, dst);
476 random_vec(type, con);
477
478 {
479 double fsrc[LP_MAX_VECTOR_LENGTH];
480 double fsrc1[LP_MAX_VECTOR_LENGTH];
481 double fdst[LP_MAX_VECTOR_LENGTH];
482 double fcon[LP_MAX_VECTOR_LENGTH];
483 double fref[LP_MAX_VECTOR_LENGTH];
484
485 read_vec(type, src, fsrc);
486 read_vec(type, src1, fsrc1);
487 read_vec(type, dst, fdst);
488 read_vec(type, con, fcon);
489
490 for(j = 0; j < type.length; j += 4)
491 compute_blend_ref(blend, fsrc + j, fsrc1 + j, fdst + j, fcon + j, fref + j);
492
493 write_vec(type, ref, fref);
494 }
495
496 start_counter = rdtsc();
497 blend_test_ptr(src, src1, dst, con, res);
498 end_counter = rdtsc();
499
500 cycles[i] = end_counter - start_counter;
501
502 if(!compare_vec(type, res, ref)) {
503 success = FALSE;
504
505 if(verbose < 1)
506 dump_blend_type(stderr, blend, type);
507 fprintf(stderr, "MISMATCH\n");
508
509 fprintf(stderr, " Src: ");
510 dump_vec(stderr, type, src);
511 fprintf(stderr, "\n");
512
513 fprintf(stderr, " Src1: ");
514 dump_vec(stderr, type, src1);
515 fprintf(stderr, "\n");
516
517 fprintf(stderr, " Dst: ");
518 dump_vec(stderr, type, dst);
519 fprintf(stderr, "\n");
520
521 fprintf(stderr, " Con: ");
522 dump_vec(stderr, type, con);
523 fprintf(stderr, "\n");
524
525 fprintf(stderr, " Res: ");
526 dump_vec(stderr, type, res);
527 fprintf(stderr, "\n");
528
529 fprintf(stderr, " Ref: ");
530 dump_vec(stderr, type, ref);
531 fprintf(stderr, "\n");
532 }
533 }
534 align_free(src);
535 align_free(src1);
536 align_free(dst);
537 align_free(con);
538 align_free(res);
539 align_free(ref);
540 }
541
542 /*
543 * Unfortunately the output of cycle counter is not very reliable as it comes
544 * -- sometimes we get outliers (due IRQs perhaps?) which are
545 * better removed to avoid random or biased data.
546 */
547 {
548 double sum = 0.0, sum2 = 0.0;
549 double avg, std;
550 unsigned m;
551
552 for(i = 0; i < n; ++i) {
553 sum += cycles[i];
554 sum2 += cycles[i]*cycles[i];
555 }
556
557 avg = sum/n;
558 std = sqrtf((sum2 - n*avg*avg)/n);
559
560 m = 0;
561 sum = 0.0;
562 for(i = 0; i < n; ++i) {
563 if(fabs(cycles[i] - avg) <= 4.0*std) {
564 sum += cycles[i];
565 ++m;
566 }
567 }
568
569 cycles_avg = sum/m;
570
571 }
572
573 if(fp)
574 write_tsv_row(fp, blend, type, cycles_avg, success);
575
576 gallivm_free_function(gallivm, func, blend_test_ptr);
577
578 gallivm_destroy(gallivm);
579
580 return success;
581 }
582
583
584 const unsigned
585 blend_factors[] = {
586 PIPE_BLENDFACTOR_ZERO,
587 PIPE_BLENDFACTOR_ONE,
588 PIPE_BLENDFACTOR_SRC_COLOR,
589 PIPE_BLENDFACTOR_SRC_ALPHA,
590 PIPE_BLENDFACTOR_DST_COLOR,
591 PIPE_BLENDFACTOR_DST_ALPHA,
592 PIPE_BLENDFACTOR_CONST_COLOR,
593 PIPE_BLENDFACTOR_CONST_ALPHA,
594 PIPE_BLENDFACTOR_SRC1_COLOR,
595 PIPE_BLENDFACTOR_SRC1_ALPHA,
596 PIPE_BLENDFACTOR_SRC_ALPHA_SATURATE,
597 PIPE_BLENDFACTOR_INV_SRC_COLOR,
598 PIPE_BLENDFACTOR_INV_SRC_ALPHA,
599 PIPE_BLENDFACTOR_INV_DST_COLOR,
600 PIPE_BLENDFACTOR_INV_DST_ALPHA,
601 PIPE_BLENDFACTOR_INV_CONST_COLOR,
602 PIPE_BLENDFACTOR_INV_CONST_ALPHA,
603 PIPE_BLENDFACTOR_INV_SRC1_COLOR,
604 PIPE_BLENDFACTOR_INV_SRC1_ALPHA,
605 };
606
607
608 const unsigned
609 blend_funcs[] = {
610 PIPE_BLEND_ADD,
611 PIPE_BLEND_SUBTRACT,
612 PIPE_BLEND_REVERSE_SUBTRACT,
613 PIPE_BLEND_MIN,
614 PIPE_BLEND_MAX
615 };
616
617
618 const struct lp_type blend_types[] = {
619 /* float, fixed, sign, norm, width, len */
620 { TRUE, FALSE, TRUE, FALSE, 32, 4 }, /* f32 x 4 */
621 { FALSE, FALSE, FALSE, TRUE, 8, 16 }, /* u8n x 16 */
622 };
623
624
625 const unsigned num_funcs = sizeof(blend_funcs)/sizeof(blend_funcs[0]);
626 const unsigned num_factors = sizeof(blend_factors)/sizeof(blend_factors[0]);
627 const unsigned num_types = sizeof(blend_types)/sizeof(blend_types[0]);
628
629
630 boolean
631 test_all(unsigned verbose, FILE *fp)
632 {
633 const unsigned *rgb_func;
634 const unsigned *rgb_src_factor;
635 const unsigned *rgb_dst_factor;
636 const unsigned *alpha_func;
637 const unsigned *alpha_src_factor;
638 const unsigned *alpha_dst_factor;
639 struct pipe_blend_state blend;
640 const struct lp_type *type;
641 boolean success = TRUE;
642
643 for(rgb_func = blend_funcs; rgb_func < &blend_funcs[num_funcs]; ++rgb_func) {
644 for(alpha_func = blend_funcs; alpha_func < &blend_funcs[num_funcs]; ++alpha_func) {
645 for(rgb_src_factor = blend_factors; rgb_src_factor < &blend_factors[num_factors]; ++rgb_src_factor) {
646 for(rgb_dst_factor = blend_factors; rgb_dst_factor <= rgb_src_factor; ++rgb_dst_factor) {
647 for(alpha_src_factor = blend_factors; alpha_src_factor < &blend_factors[num_factors]; ++alpha_src_factor) {
648 for(alpha_dst_factor = blend_factors; alpha_dst_factor <= alpha_src_factor; ++alpha_dst_factor) {
649 for(type = blend_types; type < &blend_types[num_types]; ++type) {
650
651 if(*rgb_dst_factor == PIPE_BLENDFACTOR_SRC_ALPHA_SATURATE ||
652 *alpha_dst_factor == PIPE_BLENDFACTOR_SRC_ALPHA_SATURATE)
653 continue;
654
655 memset(&blend, 0, sizeof blend);
656 blend.rt[0].blend_enable = 1;
657 blend.rt[0].rgb_func = *rgb_func;
658 blend.rt[0].rgb_src_factor = *rgb_src_factor;
659 blend.rt[0].rgb_dst_factor = *rgb_dst_factor;
660 blend.rt[0].alpha_func = *alpha_func;
661 blend.rt[0].alpha_src_factor = *alpha_src_factor;
662 blend.rt[0].alpha_dst_factor = *alpha_dst_factor;
663 blend.rt[0].colormask = PIPE_MASK_RGBA;
664
665 if(!test_one(verbose, fp, &blend, *type))
666 success = FALSE;
667
668 }
669 }
670 }
671 }
672 }
673 }
674 }
675
676 return success;
677 }
678
679
680 boolean
681 test_some(unsigned verbose, FILE *fp,
682 unsigned long n)
683 {
684 const unsigned *rgb_func;
685 const unsigned *rgb_src_factor;
686 const unsigned *rgb_dst_factor;
687 const unsigned *alpha_func;
688 const unsigned *alpha_src_factor;
689 const unsigned *alpha_dst_factor;
690 struct pipe_blend_state blend;
691 const struct lp_type *type;
692 unsigned long i;
693 boolean success = TRUE;
694
695 for(i = 0; i < n; ++i) {
696 rgb_func = &blend_funcs[rand() % num_funcs];
697 alpha_func = &blend_funcs[rand() % num_funcs];
698 rgb_src_factor = &blend_factors[rand() % num_factors];
699 alpha_src_factor = &blend_factors[rand() % num_factors];
700
701 do {
702 rgb_dst_factor = &blend_factors[rand() % num_factors];
703 } while(*rgb_dst_factor == PIPE_BLENDFACTOR_SRC_ALPHA_SATURATE);
704
705 do {
706 alpha_dst_factor = &blend_factors[rand() % num_factors];
707 } while(*alpha_dst_factor == PIPE_BLENDFACTOR_SRC_ALPHA_SATURATE);
708
709 type = &blend_types[rand() % num_types];
710
711 memset(&blend, 0, sizeof blend);
712 blend.rt[0].blend_enable = 1;
713 blend.rt[0].rgb_func = *rgb_func;
714 blend.rt[0].rgb_src_factor = *rgb_src_factor;
715 blend.rt[0].rgb_dst_factor = *rgb_dst_factor;
716 blend.rt[0].alpha_func = *alpha_func;
717 blend.rt[0].alpha_src_factor = *alpha_src_factor;
718 blend.rt[0].alpha_dst_factor = *alpha_dst_factor;
719 blend.rt[0].colormask = PIPE_MASK_RGBA;
720
721 if(!test_one(verbose, fp, &blend, *type))
722 success = FALSE;
723 }
724
725 return success;
726 }
727
728
729 boolean
730 test_single(unsigned verbose, FILE *fp)
731 {
732 printf("no test_single()");
733 return TRUE;
734 }