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Nicolas Capens0bac2852016-05-07 06:09:58 -04001// Copyright 2016 The SwiftShader Authors. All Rights Reserved.
2//
3// Licensed under the Apache License, Version 2.0 (the "License");
4// you may not use this file except in compliance with the License.
5// You may obtain a copy of the License at
6//
7// http://www.apache.org/licenses/LICENSE-2.0
8//
9// Unless required by applicable law or agreed to in writing, software
10// distributed under the License is distributed on an "AS IS" BASIS,
11// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
12// See the License for the specific language governing permissions and
13// limitations under the License.
14
15#include "OutputASM.h"
16#include "Common/Math.hpp"
17
18#include "common/debug.h"
19#include "InfoSink.h"
20
21#include "libGLESv2/Shader.h"
22
23#include <GLES2/gl2.h>
24#include <GLES2/gl2ext.h>
25#include <GLES3/gl3.h>
Nicolas Capense92a88e2018-03-21 14:25:19 -040026#include <GL/glcorearb.h>
27#include <GL/glext.h>
Nicolas Capens0bac2852016-05-07 06:09:58 -040028
Nicolas Capens930b7002017-01-06 17:22:13 -050029#include <stdlib.h>
30
Alexis Hetu924513c2018-01-05 15:48:12 -050031namespace
32{
33 GLenum glVariableType(const TType &type)
34 {
35 switch(type.getBasicType())
36 {
37 case EbtFloat:
38 if(type.isScalar())
39 {
40 return GL_FLOAT;
41 }
42 else if(type.isVector())
43 {
44 switch(type.getNominalSize())
45 {
46 case 2: return GL_FLOAT_VEC2;
47 case 3: return GL_FLOAT_VEC3;
48 case 4: return GL_FLOAT_VEC4;
49 default: UNREACHABLE(type.getNominalSize());
50 }
51 }
52 else if(type.isMatrix())
53 {
54 switch(type.getNominalSize())
55 {
56 case 2:
57 switch(type.getSecondarySize())
58 {
59 case 2: return GL_FLOAT_MAT2;
60 case 3: return GL_FLOAT_MAT2x3;
61 case 4: return GL_FLOAT_MAT2x4;
62 default: UNREACHABLE(type.getSecondarySize());
63 }
64 case 3:
65 switch(type.getSecondarySize())
66 {
67 case 2: return GL_FLOAT_MAT3x2;
68 case 3: return GL_FLOAT_MAT3;
69 case 4: return GL_FLOAT_MAT3x4;
70 default: UNREACHABLE(type.getSecondarySize());
71 }
72 case 4:
73 switch(type.getSecondarySize())
74 {
75 case 2: return GL_FLOAT_MAT4x2;
76 case 3: return GL_FLOAT_MAT4x3;
77 case 4: return GL_FLOAT_MAT4;
78 default: UNREACHABLE(type.getSecondarySize());
79 }
80 default: UNREACHABLE(type.getNominalSize());
81 }
82 }
83 else UNREACHABLE(0);
84 break;
85 case EbtInt:
86 if(type.isScalar())
87 {
88 return GL_INT;
89 }
90 else if(type.isVector())
91 {
92 switch(type.getNominalSize())
93 {
94 case 2: return GL_INT_VEC2;
95 case 3: return GL_INT_VEC3;
96 case 4: return GL_INT_VEC4;
97 default: UNREACHABLE(type.getNominalSize());
98 }
99 }
100 else UNREACHABLE(0);
101 break;
102 case EbtUInt:
103 if(type.isScalar())
104 {
105 return GL_UNSIGNED_INT;
106 }
107 else if(type.isVector())
108 {
109 switch(type.getNominalSize())
110 {
111 case 2: return GL_UNSIGNED_INT_VEC2;
112 case 3: return GL_UNSIGNED_INT_VEC3;
113 case 4: return GL_UNSIGNED_INT_VEC4;
114 default: UNREACHABLE(type.getNominalSize());
115 }
116 }
117 else UNREACHABLE(0);
118 break;
119 case EbtBool:
120 if(type.isScalar())
121 {
122 return GL_BOOL;
123 }
124 else if(type.isVector())
125 {
126 switch(type.getNominalSize())
127 {
128 case 2: return GL_BOOL_VEC2;
129 case 3: return GL_BOOL_VEC3;
130 case 4: return GL_BOOL_VEC4;
131 default: UNREACHABLE(type.getNominalSize());
132 }
133 }
134 else UNREACHABLE(0);
135 break;
136 case EbtSampler2D:
137 return GL_SAMPLER_2D;
138 case EbtISampler2D:
139 return GL_INT_SAMPLER_2D;
140 case EbtUSampler2D:
141 return GL_UNSIGNED_INT_SAMPLER_2D;
142 case EbtSamplerCube:
143 return GL_SAMPLER_CUBE;
Alexis Hetu46768622018-01-16 22:09:28 -0500144 case EbtSampler2DRect:
145 return GL_SAMPLER_2D_RECT_ARB;
Alexis Hetu924513c2018-01-05 15:48:12 -0500146 case EbtISamplerCube:
147 return GL_INT_SAMPLER_CUBE;
148 case EbtUSamplerCube:
149 return GL_UNSIGNED_INT_SAMPLER_CUBE;
150 case EbtSamplerExternalOES:
151 return GL_SAMPLER_EXTERNAL_OES;
152 case EbtSampler3D:
153 return GL_SAMPLER_3D_OES;
154 case EbtISampler3D:
155 return GL_INT_SAMPLER_3D;
156 case EbtUSampler3D:
157 return GL_UNSIGNED_INT_SAMPLER_3D;
158 case EbtSampler2DArray:
159 return GL_SAMPLER_2D_ARRAY;
160 case EbtISampler2DArray:
161 return GL_INT_SAMPLER_2D_ARRAY;
162 case EbtUSampler2DArray:
163 return GL_UNSIGNED_INT_SAMPLER_2D_ARRAY;
164 case EbtSampler2DShadow:
165 return GL_SAMPLER_2D_SHADOW;
166 case EbtSamplerCubeShadow:
167 return GL_SAMPLER_CUBE_SHADOW;
168 case EbtSampler2DArrayShadow:
169 return GL_SAMPLER_2D_ARRAY_SHADOW;
170 default:
171 UNREACHABLE(type.getBasicType());
172 break;
173 }
174
175 return GL_NONE;
176 }
177
178 GLenum glVariablePrecision(const TType &type)
179 {
180 if(type.getBasicType() == EbtFloat)
181 {
182 switch(type.getPrecision())
183 {
184 case EbpHigh: return GL_HIGH_FLOAT;
185 case EbpMedium: return GL_MEDIUM_FLOAT;
186 case EbpLow: return GL_LOW_FLOAT;
187 case EbpUndefined:
188 // Should be defined as the default precision by the parser
189 default: UNREACHABLE(type.getPrecision());
190 }
191 }
192 else if(type.getBasicType() == EbtInt)
193 {
194 switch(type.getPrecision())
195 {
196 case EbpHigh: return GL_HIGH_INT;
197 case EbpMedium: return GL_MEDIUM_INT;
198 case EbpLow: return GL_LOW_INT;
199 case EbpUndefined:
200 // Should be defined as the default precision by the parser
201 default: UNREACHABLE(type.getPrecision());
202 }
203 }
204
205 // Other types (boolean, sampler) don't have a precision
206 return GL_NONE;
207 }
208}
209
Nicolas Capens0bac2852016-05-07 06:09:58 -0400210namespace glsl
211{
212 // Integer to TString conversion
213 TString str(int i)
214 {
215 char buffer[20];
216 sprintf(buffer, "%d", i);
217 return buffer;
218 }
219
220 class Temporary : public TIntermSymbol
221 {
222 public:
223 Temporary(OutputASM *assembler) : TIntermSymbol(TSymbolTableLevel::nextUniqueId(), "tmp", TType(EbtFloat, EbpHigh, EvqTemporary, 4, 1, false)), assembler(assembler)
224 {
225 }
226
227 ~Temporary()
228 {
229 assembler->freeTemporary(this);
230 }
231
232 private:
233 OutputASM *const assembler;
234 };
235
236 class Constant : public TIntermConstantUnion
237 {
238 public:
239 Constant(float x, float y, float z, float w) : TIntermConstantUnion(constants, TType(EbtFloat, EbpHigh, EvqConstExpr, 4, 1, false))
240 {
241 constants[0].setFConst(x);
242 constants[1].setFConst(y);
243 constants[2].setFConst(z);
244 constants[3].setFConst(w);
245 }
246
247 Constant(bool b) : TIntermConstantUnion(constants, TType(EbtBool, EbpHigh, EvqConstExpr, 1, 1, false))
248 {
249 constants[0].setBConst(b);
250 }
251
252 Constant(int i) : TIntermConstantUnion(constants, TType(EbtInt, EbpHigh, EvqConstExpr, 1, 1, false))
253 {
254 constants[0].setIConst(i);
255 }
256
257 ~Constant()
258 {
259 }
260
261 private:
262 ConstantUnion constants[4];
263 };
264
Alexis Hetu924513c2018-01-05 15:48:12 -0500265 ShaderVariable::ShaderVariable(const TType& type, const std::string& name, int registerIndex) :
266 type(type.isStruct() ? GL_NONE : glVariableType(type)), precision(glVariablePrecision(type)),
267 name(name), arraySize(type.getArraySize()), registerIndex(registerIndex)
268 {
269 if(type.isStruct())
270 {
271 for(const auto& field : type.getStruct()->fields())
272 {
273 fields.push_back(ShaderVariable(*(field->type()), field->name().c_str(), -1));
274 }
275 }
276 }
277
278 Uniform::Uniform(const TType& type, const std::string &name, int registerIndex, int blockId, const BlockMemberInfo& blockMemberInfo) :
279 ShaderVariable(type, name, registerIndex), blockId(blockId), blockInfo(blockMemberInfo)
Nicolas Capens0bac2852016-05-07 06:09:58 -0400280 {
281 }
282
283 UniformBlock::UniformBlock(const std::string& name, unsigned int dataSize, unsigned int arraySize,
284 TLayoutBlockStorage layout, bool isRowMajorLayout, int registerIndex, int blockId) :
285 name(name), dataSize(dataSize), arraySize(arraySize), layout(layout),
286 isRowMajorLayout(isRowMajorLayout), registerIndex(registerIndex), blockId(blockId)
287 {
288 }
289
Alexis Hetud2742532018-01-23 16:53:41 -0500290 BlockLayoutEncoder::BlockLayoutEncoder()
291 : mCurrentOffset(0)
Nicolas Capens0bac2852016-05-07 06:09:58 -0400292 {
293 }
294
295 BlockMemberInfo BlockLayoutEncoder::encodeType(const TType &type)
296 {
297 int arrayStride;
298 int matrixStride;
299
Alexis Hetud2742532018-01-23 16:53:41 -0500300 bool isRowMajor = type.getLayoutQualifier().matrixPacking == EmpRowMajor;
301 getBlockLayoutInfo(type, type.getArraySize(), isRowMajor, &arrayStride, &matrixStride);
Nicolas Capens0bac2852016-05-07 06:09:58 -0400302
303 const BlockMemberInfo memberInfo(static_cast<int>(mCurrentOffset * BytesPerComponent),
304 static_cast<int>(arrayStride * BytesPerComponent),
305 static_cast<int>(matrixStride * BytesPerComponent),
Alexis Hetud2742532018-01-23 16:53:41 -0500306 (matrixStride > 0) && isRowMajor);
Nicolas Capens0bac2852016-05-07 06:09:58 -0400307
Alexis Hetud2742532018-01-23 16:53:41 -0500308 advanceOffset(type, type.getArraySize(), isRowMajor, arrayStride, matrixStride);
Nicolas Capens0bac2852016-05-07 06:09:58 -0400309
310 return memberInfo;
311 }
312
313 // static
314 size_t BlockLayoutEncoder::getBlockRegister(const BlockMemberInfo &info)
315 {
316 return (info.offset / BytesPerComponent) / ComponentsPerRegister;
317 }
318
319 // static
320 size_t BlockLayoutEncoder::getBlockRegisterElement(const BlockMemberInfo &info)
321 {
322 return (info.offset / BytesPerComponent) % ComponentsPerRegister;
323 }
324
325 void BlockLayoutEncoder::nextRegister()
326 {
327 mCurrentOffset = sw::align(mCurrentOffset, ComponentsPerRegister);
328 }
329
Alexis Hetud2742532018-01-23 16:53:41 -0500330 Std140BlockEncoder::Std140BlockEncoder() : BlockLayoutEncoder()
Nicolas Capens0bac2852016-05-07 06:09:58 -0400331 {
332 }
333
334 void Std140BlockEncoder::enterAggregateType()
335 {
336 nextRegister();
337 }
338
339 void Std140BlockEncoder::exitAggregateType()
340 {
341 nextRegister();
342 }
343
344 void Std140BlockEncoder::getBlockLayoutInfo(const TType &type, unsigned int arraySize, bool isRowMajorMatrix, int *arrayStrideOut, int *matrixStrideOut)
345 {
346 size_t baseAlignment = 0;
347 int matrixStride = 0;
348 int arrayStride = 0;
349
350 if(type.isMatrix())
351 {
352 baseAlignment = ComponentsPerRegister;
353 matrixStride = ComponentsPerRegister;
354
355 if(arraySize > 0)
356 {
357 const int numRegisters = isRowMajorMatrix ? type.getSecondarySize() : type.getNominalSize();
358 arrayStride = ComponentsPerRegister * numRegisters;
359 }
360 }
361 else if(arraySize > 0)
362 {
363 baseAlignment = ComponentsPerRegister;
364 arrayStride = ComponentsPerRegister;
365 }
366 else
367 {
368 const size_t numComponents = type.getElementSize();
369 baseAlignment = (numComponents == 3 ? 4u : numComponents);
370 }
371
372 mCurrentOffset = sw::align(mCurrentOffset, baseAlignment);
373
374 *matrixStrideOut = matrixStride;
375 *arrayStrideOut = arrayStride;
376 }
377
378 void Std140BlockEncoder::advanceOffset(const TType &type, unsigned int arraySize, bool isRowMajorMatrix, int arrayStride, int matrixStride)
379 {
380 if(arraySize > 0)
381 {
382 mCurrentOffset += arrayStride * arraySize;
383 }
384 else if(type.isMatrix())
385 {
386 ASSERT(matrixStride == ComponentsPerRegister);
387 const int numRegisters = isRowMajorMatrix ? type.getSecondarySize() : type.getNominalSize();
388 mCurrentOffset += ComponentsPerRegister * numRegisters;
389 }
390 else
391 {
392 mCurrentOffset += type.getElementSize();
393 }
394 }
395
396 Attribute::Attribute()
397 {
398 type = GL_NONE;
399 arraySize = 0;
400 registerIndex = 0;
401 }
402
Nicolas Capens378c4342018-08-07 23:57:21 -0400403 Attribute::Attribute(GLenum type, const std::string &name, int arraySize, int layoutLocation, int registerIndex)
Nicolas Capens0bac2852016-05-07 06:09:58 -0400404 {
405 this->type = type;
406 this->name = name;
407 this->arraySize = arraySize;
Nicolas Capens378c4342018-08-07 23:57:21 -0400408 this->layoutLocation = layoutLocation;
Nicolas Capens0bac2852016-05-07 06:09:58 -0400409 this->registerIndex = registerIndex;
410 }
411
412 sw::PixelShader *Shader::getPixelShader() const
413 {
Nicolas Capens7cbb1de2017-12-22 08:54:18 -0500414 return nullptr;
Nicolas Capens0bac2852016-05-07 06:09:58 -0400415 }
416
417 sw::VertexShader *Shader::getVertexShader() const
418 {
Nicolas Capens7cbb1de2017-12-22 08:54:18 -0500419 return nullptr;
Nicolas Capens0bac2852016-05-07 06:09:58 -0400420 }
421
422 OutputASM::TextureFunction::TextureFunction(const TString& nodeName) : method(IMPLICIT), proj(false), offset(false)
423 {
424 TString name = TFunction::unmangleName(nodeName);
425
Alexis Hetuc0632c92018-03-02 15:10:16 -0500426 if(name == "texture2D" || name == "textureCube" || name == "texture" || name == "texture3D" || name == "texture2DRect")
Nicolas Capens0bac2852016-05-07 06:09:58 -0400427 {
428 method = IMPLICIT;
429 }
Alexis Hetuc0632c92018-03-02 15:10:16 -0500430 else if(name == "texture2DProj" || name == "textureProj" || name == "texture2DRectProj")
Nicolas Capens0bac2852016-05-07 06:09:58 -0400431 {
432 method = IMPLICIT;
433 proj = true;
434 }
435 else if(name == "texture2DLod" || name == "textureCubeLod" || name == "textureLod")
436 {
437 method = LOD;
438 }
439 else if(name == "texture2DProjLod" || name == "textureProjLod")
440 {
441 method = LOD;
442 proj = true;
443 }
444 else if(name == "textureSize")
445 {
446 method = SIZE;
447 }
448 else if(name == "textureOffset")
449 {
450 method = IMPLICIT;
451 offset = true;
452 }
453 else if(name == "textureProjOffset")
454 {
455 method = IMPLICIT;
456 offset = true;
457 proj = true;
458 }
459 else if(name == "textureLodOffset")
460 {
461 method = LOD;
462 offset = true;
463 }
464 else if(name == "textureProjLodOffset")
465 {
466 method = LOD;
467 proj = true;
468 offset = true;
469 }
470 else if(name == "texelFetch")
471 {
472 method = FETCH;
473 }
474 else if(name == "texelFetchOffset")
475 {
476 method = FETCH;
477 offset = true;
478 }
479 else if(name == "textureGrad")
480 {
481 method = GRAD;
482 }
483 else if(name == "textureGradOffset")
484 {
485 method = GRAD;
486 offset = true;
487 }
488 else if(name == "textureProjGrad")
489 {
490 method = GRAD;
491 proj = true;
492 }
493 else if(name == "textureProjGradOffset")
494 {
495 method = GRAD;
496 proj = true;
497 offset = true;
498 }
499 else UNREACHABLE(0);
500 }
501
502 OutputASM::OutputASM(TParseContext &context, Shader *shaderObject) : TIntermTraverser(true, true, true), shaderObject(shaderObject), mContext(context)
503 {
Nicolas Capens7cbb1de2017-12-22 08:54:18 -0500504 shader = nullptr;
505 pixelShader = nullptr;
506 vertexShader = nullptr;
Nicolas Capens0bac2852016-05-07 06:09:58 -0400507
508 if(shaderObject)
509 {
510 shader = shaderObject->getShader();
511 pixelShader = shaderObject->getPixelShader();
512 vertexShader = shaderObject->getVertexShader();
513 }
514
Nicolas Capens7cbb1de2017-12-22 08:54:18 -0500515 functionArray.push_back(Function(0, "main(", nullptr, nullptr));
Nicolas Capens0bac2852016-05-07 06:09:58 -0400516 currentFunction = 0;
Nicolas Capens7cbb1de2017-12-22 08:54:18 -0500517 outputQualifier = EvqOutput; // Initialize outputQualifier to any value other than EvqFragColor or EvqFragData
Nicolas Capens0bac2852016-05-07 06:09:58 -0400518 }
519
520 OutputASM::~OutputASM()
521 {
522 }
523
524 void OutputASM::output()
525 {
526 if(shader)
527 {
528 emitShader(GLOBAL);
529
530 if(functionArray.size() > 1) // Only call main() when there are other functions
531 {
532 Instruction *callMain = emit(sw::Shader::OPCODE_CALL);
533 callMain->dst.type = sw::Shader::PARAMETER_LABEL;
534 callMain->dst.index = 0; // main()
535
536 emit(sw::Shader::OPCODE_RET);
537 }
538
539 emitShader(FUNCTION);
540 }
541 }
542
543 void OutputASM::emitShader(Scope scope)
544 {
545 emitScope = scope;
546 currentScope = GLOBAL;
547 mContext.getTreeRoot()->traverse(this);
548 }
549
550 void OutputASM::freeTemporary(Temporary *temporary)
551 {
552 free(temporaries, temporary);
553 }
554
555 sw::Shader::Opcode OutputASM::getOpcode(sw::Shader::Opcode op, TIntermTyped *in) const
556 {
557 TBasicType baseType = in->getType().getBasicType();
558
559 switch(op)
560 {
561 case sw::Shader::OPCODE_NEG:
562 switch(baseType)
563 {
564 case EbtInt:
565 case EbtUInt:
566 return sw::Shader::OPCODE_INEG;
567 case EbtFloat:
568 default:
569 return op;
570 }
571 case sw::Shader::OPCODE_ABS:
572 switch(baseType)
573 {
574 case EbtInt:
575 return sw::Shader::OPCODE_IABS;
576 case EbtFloat:
577 default:
578 return op;
579 }
580 case sw::Shader::OPCODE_SGN:
581 switch(baseType)
582 {
583 case EbtInt:
584 return sw::Shader::OPCODE_ISGN;
585 case EbtFloat:
586 default:
587 return op;
588 }
589 case sw::Shader::OPCODE_ADD:
590 switch(baseType)
591 {
592 case EbtInt:
593 case EbtUInt:
594 return sw::Shader::OPCODE_IADD;
595 case EbtFloat:
596 default:
597 return op;
598 }
599 case sw::Shader::OPCODE_SUB:
600 switch(baseType)
601 {
602 case EbtInt:
603 case EbtUInt:
604 return sw::Shader::OPCODE_ISUB;
605 case EbtFloat:
606 default:
607 return op;
608 }
609 case sw::Shader::OPCODE_MUL:
610 switch(baseType)
611 {
612 case EbtInt:
613 case EbtUInt:
614 return sw::Shader::OPCODE_IMUL;
615 case EbtFloat:
616 default:
617 return op;
618 }
619 case sw::Shader::OPCODE_DIV:
620 switch(baseType)
621 {
622 case EbtInt:
623 return sw::Shader::OPCODE_IDIV;
624 case EbtUInt:
625 return sw::Shader::OPCODE_UDIV;
626 case EbtFloat:
627 default:
628 return op;
629 }
630 case sw::Shader::OPCODE_IMOD:
631 return baseType == EbtUInt ? sw::Shader::OPCODE_UMOD : op;
632 case sw::Shader::OPCODE_ISHR:
633 return baseType == EbtUInt ? sw::Shader::OPCODE_USHR : op;
634 case sw::Shader::OPCODE_MIN:
635 switch(baseType)
636 {
637 case EbtInt:
638 return sw::Shader::OPCODE_IMIN;
639 case EbtUInt:
640 return sw::Shader::OPCODE_UMIN;
641 case EbtFloat:
642 default:
643 return op;
644 }
645 case sw::Shader::OPCODE_MAX:
646 switch(baseType)
647 {
648 case EbtInt:
649 return sw::Shader::OPCODE_IMAX;
650 case EbtUInt:
651 return sw::Shader::OPCODE_UMAX;
652 case EbtFloat:
653 default:
654 return op;
655 }
656 default:
657 return op;
658 }
659 }
660
661 void OutputASM::visitSymbol(TIntermSymbol *symbol)
662 {
Nicolas Capens6896e352018-01-10 12:46:52 -0500663 // The type of vertex outputs and fragment inputs with the same name must match (validated at link time),
664 // so declare them but don't assign a register index yet (one will be assigned when referenced in reachable code).
665 switch(symbol->getQualifier())
Nicolas Capens0bac2852016-05-07 06:09:58 -0400666 {
Nicolas Capens6896e352018-01-10 12:46:52 -0500667 case EvqVaryingIn:
668 case EvqVaryingOut:
669 case EvqInvariantVaryingIn:
670 case EvqInvariantVaryingOut:
671 case EvqVertexOut:
672 case EvqFragmentIn:
Nicolas Capens0bac2852016-05-07 06:09:58 -0400673 if(symbol->getBasicType() != EbtInvariant) // Typeless declarations are not new varyings
674 {
675 declareVarying(symbol, -1);
676 }
Nicolas Capens6896e352018-01-10 12:46:52 -0500677 break;
Alexis Hetu930df972018-01-30 16:54:13 -0500678 case EvqFragmentOut:
679 declareFragmentOutput(symbol);
680 break;
Nicolas Capens6896e352018-01-10 12:46:52 -0500681 default:
682 break;
Nicolas Capens0bac2852016-05-07 06:09:58 -0400683 }
684
685 TInterfaceBlock* block = symbol->getType().getInterfaceBlock();
686 // OpenGL ES 3.0.4 spec, section 2.12.6 Uniform Variables:
687 // "All members of a named uniform block declared with a shared or std140 layout qualifier
688 // are considered active, even if they are not referenced in any shader in the program.
689 // The uniform block itself is also considered active, even if no member of the block is referenced."
690 if(block && ((block->blockStorage() == EbsShared) || (block->blockStorage() == EbsStd140)))
691 {
692 uniformRegister(symbol);
693 }
694 }
695
696 bool OutputASM::visitBinary(Visit visit, TIntermBinary *node)
697 {
698 if(currentScope != emitScope)
699 {
700 return false;
701 }
702
703 TIntermTyped *result = node;
704 TIntermTyped *left = node->getLeft();
705 TIntermTyped *right = node->getRight();
706 const TType &leftType = left->getType();
707 const TType &rightType = right->getType();
Nicolas Capens0bac2852016-05-07 06:09:58 -0400708
709 if(isSamplerRegister(result))
710 {
711 return false; // Don't traverse, the register index is determined statically
712 }
713
714 switch(node->getOp())
715 {
716 case EOpAssign:
Nicolas Capens84249fd2017-11-09 11:20:51 -0500717 assert(visit == PreVisit);
718 right->traverse(this);
719 assignLvalue(left, right);
720 copy(result, right);
721 return false;
Nicolas Capens0bac2852016-05-07 06:09:58 -0400722 case EOpInitialize:
Nicolas Capens84249fd2017-11-09 11:20:51 -0500723 assert(visit == PreVisit);
Nicolas Capens7cbb1de2017-12-22 08:54:18 -0500724 // Constant arrays go into the constant register file.
725 if(leftType.getQualifier() == EvqConstExpr && leftType.isArray() && leftType.getArraySize() > 1)
726 {
727 for(int i = 0; i < left->totalRegisterCount(); i++)
728 {
729 emit(sw::Shader::OPCODE_DEF, left, i, right, i);
730 }
731 }
732 else
733 {
734 right->traverse(this);
735 copy(left, right);
736 }
Nicolas Capens84249fd2017-11-09 11:20:51 -0500737 return false;
Nicolas Capens0bac2852016-05-07 06:09:58 -0400738 case EOpMatrixTimesScalarAssign:
Nicolas Capens84249fd2017-11-09 11:20:51 -0500739 assert(visit == PreVisit);
740 right->traverse(this);
741 for(int i = 0; i < leftType.getNominalSize(); i++)
Nicolas Capens0bac2852016-05-07 06:09:58 -0400742 {
Nicolas Capens84249fd2017-11-09 11:20:51 -0500743 emit(sw::Shader::OPCODE_MUL, result, i, left, i, right);
Nicolas Capens0bac2852016-05-07 06:09:58 -0400744 }
Nicolas Capens84249fd2017-11-09 11:20:51 -0500745
746 assignLvalue(left, result);
747 return false;
Nicolas Capens0bac2852016-05-07 06:09:58 -0400748 case EOpVectorTimesMatrixAssign:
Nicolas Capens84249fd2017-11-09 11:20:51 -0500749 assert(visit == PreVisit);
Nicolas Capens0bac2852016-05-07 06:09:58 -0400750 {
Chris Forbesc89f75b2018-09-19 17:07:39 -0700751 // The left operand may contain a swizzle serving double-duty as
752 // swizzle and writemask, so it's important that we traverse it
753 // first. Otherwise we may end up never setting up our left
754 // operand correctly.
755 left->traverse(this);
Nicolas Capens84249fd2017-11-09 11:20:51 -0500756 right->traverse(this);
Nicolas Capens0bac2852016-05-07 06:09:58 -0400757 int size = leftType.getNominalSize();
758
759 for(int i = 0; i < size; i++)
760 {
761 Instruction *dot = emit(sw::Shader::OPCODE_DP(size), result, 0, left, 0, right, i);
762 dot->dst.mask = 1 << i;
763 }
764
765 assignLvalue(left, result);
766 }
Nicolas Capens84249fd2017-11-09 11:20:51 -0500767 return false;
Nicolas Capens0bac2852016-05-07 06:09:58 -0400768 case EOpMatrixTimesMatrixAssign:
Nicolas Capens84249fd2017-11-09 11:20:51 -0500769 assert(visit == PreVisit);
Nicolas Capens0bac2852016-05-07 06:09:58 -0400770 {
Nicolas Capens84249fd2017-11-09 11:20:51 -0500771 right->traverse(this);
Nicolas Capens0bac2852016-05-07 06:09:58 -0400772 int dim = leftType.getNominalSize();
773
774 for(int i = 0; i < dim; i++)
775 {
776 Instruction *mul = emit(sw::Shader::OPCODE_MUL, result, i, left, 0, right, i);
777 mul->src[1].swizzle = 0x00;
778
779 for(int j = 1; j < dim; j++)
780 {
781 Instruction *mad = emit(sw::Shader::OPCODE_MAD, result, i, left, j, right, i, result, i);
782 mad->src[1].swizzle = j * 0x55;
783 }
784 }
785
786 assignLvalue(left, result);
787 }
Nicolas Capens84249fd2017-11-09 11:20:51 -0500788 return false;
Nicolas Capens0bac2852016-05-07 06:09:58 -0400789 case EOpIndexDirect:
Nicolas Capens0bac2852016-05-07 06:09:58 -0400790 case EOpIndexIndirect:
Nicolas Capens0bac2852016-05-07 06:09:58 -0400791 case EOpIndexDirectStruct:
792 case EOpIndexDirectInterfaceBlock:
Nicolas Capensd469de22017-11-16 10:42:20 -0500793 assert(visit == PreVisit);
794 evaluateRvalue(node);
795 return false;
Nicolas Capens0bac2852016-05-07 06:09:58 -0400796 case EOpVectorSwizzle:
797 if(visit == PostVisit)
798 {
799 int swizzle = 0;
800 TIntermAggregate *components = right->getAsAggregate();
801
802 if(components)
803 {
804 TIntermSequence &sequence = components->getSequence();
805 int component = 0;
806
807 for(TIntermSequence::iterator sit = sequence.begin(); sit != sequence.end(); sit++)
808 {
809 TIntermConstantUnion *element = (*sit)->getAsConstantUnion();
810
811 if(element)
812 {
813 int i = element->getUnionArrayPointer()[0].getIConst();
814 swizzle |= i << (component * 2);
815 component++;
816 }
817 else UNREACHABLE(0);
818 }
819 }
820 else UNREACHABLE(0);
821
822 Instruction *mov = emit(sw::Shader::OPCODE_MOV, result, left);
823 mov->src[0].swizzle = swizzle;
824 }
825 break;
826 case EOpAddAssign: if(visit == PostVisit) emitAssign(getOpcode(sw::Shader::OPCODE_ADD, result), result, left, left, right); break;
827 case EOpAdd: if(visit == PostVisit) emitBinary(getOpcode(sw::Shader::OPCODE_ADD, result), result, left, right); break;
828 case EOpSubAssign: if(visit == PostVisit) emitAssign(getOpcode(sw::Shader::OPCODE_SUB, result), result, left, left, right); break;
829 case EOpSub: if(visit == PostVisit) emitBinary(getOpcode(sw::Shader::OPCODE_SUB, result), result, left, right); break;
830 case EOpMulAssign: if(visit == PostVisit) emitAssign(getOpcode(sw::Shader::OPCODE_MUL, result), result, left, left, right); break;
831 case EOpMul: if(visit == PostVisit) emitBinary(getOpcode(sw::Shader::OPCODE_MUL, result), result, left, right); break;
832 case EOpDivAssign: if(visit == PostVisit) emitAssign(getOpcode(sw::Shader::OPCODE_DIV, result), result, left, left, right); break;
833 case EOpDiv: if(visit == PostVisit) emitBinary(getOpcode(sw::Shader::OPCODE_DIV, result), result, left, right); break;
834 case EOpIModAssign: if(visit == PostVisit) emitAssign(getOpcode(sw::Shader::OPCODE_IMOD, result), result, left, left, right); break;
835 case EOpIMod: if(visit == PostVisit) emitBinary(getOpcode(sw::Shader::OPCODE_IMOD, result), result, left, right); break;
836 case EOpBitShiftLeftAssign: if(visit == PostVisit) emitAssign(sw::Shader::OPCODE_SHL, result, left, left, right); break;
837 case EOpBitShiftLeft: if(visit == PostVisit) emitBinary(sw::Shader::OPCODE_SHL, result, left, right); break;
838 case EOpBitShiftRightAssign: if(visit == PostVisit) emitAssign(getOpcode(sw::Shader::OPCODE_ISHR, result), result, left, left, right); break;
839 case EOpBitShiftRight: if(visit == PostVisit) emitBinary(getOpcode(sw::Shader::OPCODE_ISHR, result), result, left, right); break;
840 case EOpBitwiseAndAssign: if(visit == PostVisit) emitAssign(sw::Shader::OPCODE_AND, result, left, left, right); break;
841 case EOpBitwiseAnd: if(visit == PostVisit) emitBinary(sw::Shader::OPCODE_AND, result, left, right); break;
842 case EOpBitwiseXorAssign: if(visit == PostVisit) emitAssign(sw::Shader::OPCODE_XOR, result, left, left, right); break;
843 case EOpBitwiseXor: if(visit == PostVisit) emitBinary(sw::Shader::OPCODE_XOR, result, left, right); break;
844 case EOpBitwiseOrAssign: if(visit == PostVisit) emitAssign(sw::Shader::OPCODE_OR, result, left, left, right); break;
845 case EOpBitwiseOr: if(visit == PostVisit) emitBinary(sw::Shader::OPCODE_OR, result, left, right); break;
846 case EOpEqual:
847 if(visit == PostVisit)
848 {
849 emitBinary(sw::Shader::OPCODE_EQ, result, left, right);
850
851 for(int index = 1; index < left->totalRegisterCount(); index++)
852 {
853 Temporary equal(this);
854 emit(sw::Shader::OPCODE_EQ, &equal, 0, left, index, right, index);
855 emit(sw::Shader::OPCODE_AND, result, result, &equal);
856 }
857 }
858 break;
859 case EOpNotEqual:
860 if(visit == PostVisit)
861 {
862 emitBinary(sw::Shader::OPCODE_NE, result, left, right);
863
864 for(int index = 1; index < left->totalRegisterCount(); index++)
865 {
866 Temporary notEqual(this);
867 emit(sw::Shader::OPCODE_NE, &notEqual, 0, left, index, right, index);
868 emit(sw::Shader::OPCODE_OR, result, result, &notEqual);
869 }
870 }
871 break;
872 case EOpLessThan: if(visit == PostVisit) emitCmp(sw::Shader::CONTROL_LT, result, left, right); break;
873 case EOpGreaterThan: if(visit == PostVisit) emitCmp(sw::Shader::CONTROL_GT, result, left, right); break;
874 case EOpLessThanEqual: if(visit == PostVisit) emitCmp(sw::Shader::CONTROL_LE, result, left, right); break;
875 case EOpGreaterThanEqual: if(visit == PostVisit) emitCmp(sw::Shader::CONTROL_GE, result, left, right); break;
876 case EOpVectorTimesScalarAssign: if(visit == PostVisit) emitAssign(getOpcode(sw::Shader::OPCODE_MUL, left), result, left, left, right); break;
877 case EOpVectorTimesScalar: if(visit == PostVisit) emit(getOpcode(sw::Shader::OPCODE_MUL, left), result, left, right); break;
878 case EOpMatrixTimesScalar:
879 if(visit == PostVisit)
880 {
881 if(left->isMatrix())
882 {
883 for(int i = 0; i < leftType.getNominalSize(); i++)
884 {
885 emit(sw::Shader::OPCODE_MUL, result, i, left, i, right, 0);
886 }
887 }
888 else if(right->isMatrix())
889 {
890 for(int i = 0; i < rightType.getNominalSize(); i++)
891 {
892 emit(sw::Shader::OPCODE_MUL, result, i, left, 0, right, i);
893 }
894 }
895 else UNREACHABLE(0);
896 }
897 break;
898 case EOpVectorTimesMatrix:
899 if(visit == PostVisit)
900 {
901 sw::Shader::Opcode dpOpcode = sw::Shader::OPCODE_DP(leftType.getNominalSize());
902
903 int size = rightType.getNominalSize();
904 for(int i = 0; i < size; i++)
905 {
906 Instruction *dot = emit(dpOpcode, result, 0, left, 0, right, i);
907 dot->dst.mask = 1 << i;
908 }
909 }
910 break;
911 case EOpMatrixTimesVector:
912 if(visit == PostVisit)
913 {
914 Instruction *mul = emit(sw::Shader::OPCODE_MUL, result, left, right);
915 mul->src[1].swizzle = 0x00;
916
917 int size = rightType.getNominalSize();
918 for(int i = 1; i < size; i++)
919 {
920 Instruction *mad = emit(sw::Shader::OPCODE_MAD, result, 0, left, i, right, 0, result);
921 mad->src[1].swizzle = i * 0x55;
922 }
923 }
924 break;
925 case EOpMatrixTimesMatrix:
926 if(visit == PostVisit)
927 {
928 int dim = leftType.getNominalSize();
929
930 int size = rightType.getNominalSize();
931 for(int i = 0; i < size; i++)
932 {
933 Instruction *mul = emit(sw::Shader::OPCODE_MUL, result, i, left, 0, right, i);
934 mul->src[1].swizzle = 0x00;
935
936 for(int j = 1; j < dim; j++)
937 {
938 Instruction *mad = emit(sw::Shader::OPCODE_MAD, result, i, left, j, right, i, result, i);
939 mad->src[1].swizzle = j * 0x55;
940 }
941 }
942 }
943 break;
944 case EOpLogicalOr:
945 if(trivial(right, 6))
946 {
947 if(visit == PostVisit)
948 {
949 emit(sw::Shader::OPCODE_OR, result, left, right);
950 }
951 }
952 else // Short-circuit evaluation
953 {
954 if(visit == InVisit)
955 {
956 emit(sw::Shader::OPCODE_MOV, result, left);
957 Instruction *ifnot = emit(sw::Shader::OPCODE_IF, 0, result);
958 ifnot->src[0].modifier = sw::Shader::MODIFIER_NOT;
959 }
960 else if(visit == PostVisit)
961 {
962 emit(sw::Shader::OPCODE_MOV, result, right);
963 emit(sw::Shader::OPCODE_ENDIF);
964 }
965 }
966 break;
967 case EOpLogicalXor: if(visit == PostVisit) emit(sw::Shader::OPCODE_XOR, result, left, right); break;
968 case EOpLogicalAnd:
969 if(trivial(right, 6))
970 {
971 if(visit == PostVisit)
972 {
973 emit(sw::Shader::OPCODE_AND, result, left, right);
974 }
975 }
976 else // Short-circuit evaluation
977 {
978 if(visit == InVisit)
979 {
980 emit(sw::Shader::OPCODE_MOV, result, left);
981 emit(sw::Shader::OPCODE_IF, 0, result);
982 }
983 else if(visit == PostVisit)
984 {
985 emit(sw::Shader::OPCODE_MOV, result, right);
986 emit(sw::Shader::OPCODE_ENDIF);
987 }
988 }
989 break;
990 default: UNREACHABLE(node->getOp());
991 }
992
993 return true;
994 }
995
996 void OutputASM::emitDeterminant(TIntermTyped *result, TIntermTyped *arg, int size, int col, int row, int outCol, int outRow)
997 {
998 switch(size)
999 {
1000 case 1: // Used for cofactor computation only
1001 {
1002 // For a 2x2 matrix, the cofactor is simply a transposed move or negate
1003 bool isMov = (row == col);
1004 sw::Shader::Opcode op = isMov ? sw::Shader::OPCODE_MOV : sw::Shader::OPCODE_NEG;
1005 Instruction *mov = emit(op, result, outCol, arg, isMov ? 1 - row : row);
1006 mov->src[0].swizzle = 0x55 * (isMov ? 1 - col : col);
1007 mov->dst.mask = 1 << outRow;
1008 }
1009 break;
1010 case 2:
1011 {
1012 static const unsigned int swizzle[3] = { 0x99, 0x88, 0x44 }; // xy?? : yzyz, xzxz, xyxy
1013
1014 bool isCofactor = (col >= 0) && (row >= 0);
1015 int col0 = (isCofactor && (col <= 0)) ? 1 : 0;
1016 int col1 = (isCofactor && (col <= 1)) ? 2 : 1;
1017 bool negate = isCofactor && ((col & 0x01) ^ (row & 0x01));
1018
1019 Instruction *det = emit(sw::Shader::OPCODE_DET2, result, outCol, arg, negate ? col1 : col0, arg, negate ? col0 : col1);
1020 det->src[0].swizzle = det->src[1].swizzle = swizzle[isCofactor ? row : 2];
1021 det->dst.mask = 1 << outRow;
1022 }
1023 break;
1024 case 3:
1025 {
1026 static const unsigned int swizzle[4] = { 0xF9, 0xF8, 0xF4, 0xE4 }; // xyz? : yzww, xzww, xyww, xyzw
1027
1028 bool isCofactor = (col >= 0) && (row >= 0);
1029 int col0 = (isCofactor && (col <= 0)) ? 1 : 0;
1030 int col1 = (isCofactor && (col <= 1)) ? 2 : 1;
1031 int col2 = (isCofactor && (col <= 2)) ? 3 : 2;
1032 bool negate = isCofactor && ((col & 0x01) ^ (row & 0x01));
1033
1034 Instruction *det = emit(sw::Shader::OPCODE_DET3, result, outCol, arg, col0, arg, negate ? col2 : col1, arg, negate ? col1 : col2);
1035 det->src[0].swizzle = det->src[1].swizzle = det->src[2].swizzle = swizzle[isCofactor ? row : 3];
1036 det->dst.mask = 1 << outRow;
1037 }
1038 break;
1039 case 4:
1040 {
1041 Instruction *det = emit(sw::Shader::OPCODE_DET4, result, outCol, arg, 0, arg, 1, arg, 2, arg, 3);
1042 det->dst.mask = 1 << outRow;
1043 }
1044 break;
1045 default:
1046 UNREACHABLE(size);
1047 break;
1048 }
1049 }
1050
1051 bool OutputASM::visitUnary(Visit visit, TIntermUnary *node)
1052 {
1053 if(currentScope != emitScope)
1054 {
1055 return false;
1056 }
1057
1058 TIntermTyped *result = node;
1059 TIntermTyped *arg = node->getOperand();
1060 TBasicType basicType = arg->getType().getBasicType();
1061
1062 union
1063 {
1064 float f;
1065 int i;
1066 } one_value;
1067
1068 if(basicType == EbtInt || basicType == EbtUInt)
1069 {
1070 one_value.i = 1;
1071 }
1072 else
1073 {
1074 one_value.f = 1.0f;
1075 }
1076
1077 Constant one(one_value.f, one_value.f, one_value.f, one_value.f);
1078 Constant rad(1.74532925e-2f, 1.74532925e-2f, 1.74532925e-2f, 1.74532925e-2f);
1079 Constant deg(5.72957795e+1f, 5.72957795e+1f, 5.72957795e+1f, 5.72957795e+1f);
1080
1081 switch(node->getOp())
1082 {
1083 case EOpNegative:
1084 if(visit == PostVisit)
1085 {
1086 sw::Shader::Opcode negOpcode = getOpcode(sw::Shader::OPCODE_NEG, arg);
1087 for(int index = 0; index < arg->totalRegisterCount(); index++)
1088 {
1089 emit(negOpcode, result, index, arg, index);
1090 }
1091 }
1092 break;
1093 case EOpVectorLogicalNot: if(visit == PostVisit) emit(sw::Shader::OPCODE_NOT, result, arg); break;
1094 case EOpLogicalNot: if(visit == PostVisit) emit(sw::Shader::OPCODE_NOT, result, arg); break;
Alexis Hetu18e2a972017-07-28 13:43:25 -04001095 case EOpBitwiseNot: if(visit == PostVisit) emit(sw::Shader::OPCODE_NOT, result, arg); break;
Nicolas Capens0bac2852016-05-07 06:09:58 -04001096 case EOpPostIncrement:
1097 if(visit == PostVisit)
1098 {
1099 copy(result, arg);
1100
1101 sw::Shader::Opcode addOpcode = getOpcode(sw::Shader::OPCODE_ADD, arg);
1102 for(int index = 0; index < arg->totalRegisterCount(); index++)
1103 {
1104 emit(addOpcode, arg, index, arg, index, &one);
1105 }
1106
1107 assignLvalue(arg, arg);
1108 }
1109 break;
1110 case EOpPostDecrement:
1111 if(visit == PostVisit)
1112 {
1113 copy(result, arg);
1114
1115 sw::Shader::Opcode subOpcode = getOpcode(sw::Shader::OPCODE_SUB, arg);
1116 for(int index = 0; index < arg->totalRegisterCount(); index++)
1117 {
1118 emit(subOpcode, arg, index, arg, index, &one);
1119 }
1120
1121 assignLvalue(arg, arg);
1122 }
1123 break;
1124 case EOpPreIncrement:
1125 if(visit == PostVisit)
1126 {
1127 sw::Shader::Opcode addOpcode = getOpcode(sw::Shader::OPCODE_ADD, arg);
1128 for(int index = 0; index < arg->totalRegisterCount(); index++)
1129 {
1130 emit(addOpcode, result, index, arg, index, &one);
1131 }
1132
1133 assignLvalue(arg, result);
1134 }
1135 break;
1136 case EOpPreDecrement:
1137 if(visit == PostVisit)
1138 {
1139 sw::Shader::Opcode subOpcode = getOpcode(sw::Shader::OPCODE_SUB, arg);
1140 for(int index = 0; index < arg->totalRegisterCount(); index++)
1141 {
1142 emit(subOpcode, result, index, arg, index, &one);
1143 }
1144
1145 assignLvalue(arg, result);
1146 }
1147 break;
1148 case EOpRadians: if(visit == PostVisit) emit(sw::Shader::OPCODE_MUL, result, arg, &rad); break;
1149 case EOpDegrees: if(visit == PostVisit) emit(sw::Shader::OPCODE_MUL, result, arg, &deg); break;
1150 case EOpSin: if(visit == PostVisit) emit(sw::Shader::OPCODE_SIN, result, arg); break;
1151 case EOpCos: if(visit == PostVisit) emit(sw::Shader::OPCODE_COS, result, arg); break;
1152 case EOpTan: if(visit == PostVisit) emit(sw::Shader::OPCODE_TAN, result, arg); break;
1153 case EOpAsin: if(visit == PostVisit) emit(sw::Shader::OPCODE_ASIN, result, arg); break;
1154 case EOpAcos: if(visit == PostVisit) emit(sw::Shader::OPCODE_ACOS, result, arg); break;
1155 case EOpAtan: if(visit == PostVisit) emit(sw::Shader::OPCODE_ATAN, result, arg); break;
1156 case EOpSinh: if(visit == PostVisit) emit(sw::Shader::OPCODE_SINH, result, arg); break;
1157 case EOpCosh: if(visit == PostVisit) emit(sw::Shader::OPCODE_COSH, result, arg); break;
1158 case EOpTanh: if(visit == PostVisit) emit(sw::Shader::OPCODE_TANH, result, arg); break;
1159 case EOpAsinh: if(visit == PostVisit) emit(sw::Shader::OPCODE_ASINH, result, arg); break;
1160 case EOpAcosh: if(visit == PostVisit) emit(sw::Shader::OPCODE_ACOSH, result, arg); break;
1161 case EOpAtanh: if(visit == PostVisit) emit(sw::Shader::OPCODE_ATANH, result, arg); break;
1162 case EOpExp: if(visit == PostVisit) emit(sw::Shader::OPCODE_EXP, result, arg); break;
1163 case EOpLog: if(visit == PostVisit) emit(sw::Shader::OPCODE_LOG, result, arg); break;
1164 case EOpExp2: if(visit == PostVisit) emit(sw::Shader::OPCODE_EXP2, result, arg); break;
1165 case EOpLog2: if(visit == PostVisit) emit(sw::Shader::OPCODE_LOG2, result, arg); break;
1166 case EOpSqrt: if(visit == PostVisit) emit(sw::Shader::OPCODE_SQRT, result, arg); break;
1167 case EOpInverseSqrt: if(visit == PostVisit) emit(sw::Shader::OPCODE_RSQ, result, arg); break;
1168 case EOpAbs: if(visit == PostVisit) emit(getOpcode(sw::Shader::OPCODE_ABS, result), result, arg); break;
1169 case EOpSign: if(visit == PostVisit) emit(getOpcode(sw::Shader::OPCODE_SGN, result), result, arg); break;
1170 case EOpFloor: if(visit == PostVisit) emit(sw::Shader::OPCODE_FLOOR, result, arg); break;
1171 case EOpTrunc: if(visit == PostVisit) emit(sw::Shader::OPCODE_TRUNC, result, arg); break;
1172 case EOpRound: if(visit == PostVisit) emit(sw::Shader::OPCODE_ROUND, result, arg); break;
1173 case EOpRoundEven: if(visit == PostVisit) emit(sw::Shader::OPCODE_ROUNDEVEN, result, arg); break;
1174 case EOpCeil: if(visit == PostVisit) emit(sw::Shader::OPCODE_CEIL, result, arg, result); break;
1175 case EOpFract: if(visit == PostVisit) emit(sw::Shader::OPCODE_FRC, result, arg); break;
1176 case EOpIsNan: if(visit == PostVisit) emit(sw::Shader::OPCODE_ISNAN, result, arg); break;
1177 case EOpIsInf: if(visit == PostVisit) emit(sw::Shader::OPCODE_ISINF, result, arg); break;
1178 case EOpLength: if(visit == PostVisit) emit(sw::Shader::OPCODE_LEN(dim(arg)), result, arg); break;
1179 case EOpNormalize: if(visit == PostVisit) emit(sw::Shader::OPCODE_NRM(dim(arg)), result, arg); break;
1180 case EOpDFdx: if(visit == PostVisit) emit(sw::Shader::OPCODE_DFDX, result, arg); break;
1181 case EOpDFdy: if(visit == PostVisit) emit(sw::Shader::OPCODE_DFDY, result, arg); break;
1182 case EOpFwidth: if(visit == PostVisit) emit(sw::Shader::OPCODE_FWIDTH, result, arg); break;
1183 case EOpAny: if(visit == PostVisit) emit(sw::Shader::OPCODE_ANY, result, arg); break;
1184 case EOpAll: if(visit == PostVisit) emit(sw::Shader::OPCODE_ALL, result, arg); break;
1185 case EOpFloatBitsToInt: if(visit == PostVisit) emit(sw::Shader::OPCODE_FLOATBITSTOINT, result, arg); break;
1186 case EOpFloatBitsToUint: if(visit == PostVisit) emit(sw::Shader::OPCODE_FLOATBITSTOUINT, result, arg); break;
1187 case EOpIntBitsToFloat: if(visit == PostVisit) emit(sw::Shader::OPCODE_INTBITSTOFLOAT, result, arg); break;
1188 case EOpUintBitsToFloat: if(visit == PostVisit) emit(sw::Shader::OPCODE_UINTBITSTOFLOAT, result, arg); break;
1189 case EOpPackSnorm2x16: if(visit == PostVisit) emit(sw::Shader::OPCODE_PACKSNORM2x16, result, arg); break;
1190 case EOpPackUnorm2x16: if(visit == PostVisit) emit(sw::Shader::OPCODE_PACKUNORM2x16, result, arg); break;
1191 case EOpPackHalf2x16: if(visit == PostVisit) emit(sw::Shader::OPCODE_PACKHALF2x16, result, arg); break;
1192 case EOpUnpackSnorm2x16: if(visit == PostVisit) emit(sw::Shader::OPCODE_UNPACKSNORM2x16, result, arg); break;
1193 case EOpUnpackUnorm2x16: if(visit == PostVisit) emit(sw::Shader::OPCODE_UNPACKUNORM2x16, result, arg); break;
1194 case EOpUnpackHalf2x16: if(visit == PostVisit) emit(sw::Shader::OPCODE_UNPACKHALF2x16, result, arg); break;
1195 case EOpTranspose:
1196 if(visit == PostVisit)
1197 {
1198 int numCols = arg->getNominalSize();
1199 int numRows = arg->getSecondarySize();
1200 for(int i = 0; i < numCols; ++i)
1201 {
1202 for(int j = 0; j < numRows; ++j)
1203 {
1204 Instruction *mov = emit(sw::Shader::OPCODE_MOV, result, j, arg, i);
1205 mov->src[0].swizzle = 0x55 * j;
1206 mov->dst.mask = 1 << i;
1207 }
1208 }
1209 }
1210 break;
1211 case EOpDeterminant:
1212 if(visit == PostVisit)
1213 {
1214 int size = arg->getNominalSize();
1215 ASSERT(size == arg->getSecondarySize());
1216
1217 emitDeterminant(result, arg, size);
1218 }
1219 break;
1220 case EOpInverse:
1221 if(visit == PostVisit)
1222 {
1223 int size = arg->getNominalSize();
1224 ASSERT(size == arg->getSecondarySize());
1225
1226 // Compute transposed matrix of cofactors
1227 for(int i = 0; i < size; ++i)
1228 {
1229 for(int j = 0; j < size; ++j)
1230 {
1231 // For a 2x2 matrix, the cofactor is simply a transposed move or negate
1232 // For a 3x3 or 4x4 matrix, the cofactor is a transposed determinant
1233 emitDeterminant(result, arg, size - 1, j, i, i, j);
1234 }
1235 }
1236
1237 // Compute 1 / determinant
1238 Temporary invDet(this);
1239 emitDeterminant(&invDet, arg, size);
1240 Constant one(1.0f, 1.0f, 1.0f, 1.0f);
1241 Instruction *div = emit(sw::Shader::OPCODE_DIV, &invDet, &one, &invDet);
1242 div->src[1].swizzle = 0x00; // xxxx
1243
1244 // Divide transposed matrix of cofactors by determinant
1245 for(int i = 0; i < size; ++i)
1246 {
1247 emit(sw::Shader::OPCODE_MUL, result, i, result, i, &invDet);
1248 }
1249 }
1250 break;
1251 default: UNREACHABLE(node->getOp());
1252 }
1253
1254 return true;
1255 }
1256
1257 bool OutputASM::visitAggregate(Visit visit, TIntermAggregate *node)
1258 {
1259 if(currentScope != emitScope && node->getOp() != EOpFunction && node->getOp() != EOpSequence)
1260 {
1261 return false;
1262 }
1263
1264 Constant zero(0.0f, 0.0f, 0.0f, 0.0f);
1265
1266 TIntermTyped *result = node;
1267 const TType &resultType = node->getType();
1268 TIntermSequence &arg = node->getSequence();
1269 size_t argumentCount = arg.size();
1270
1271 switch(node->getOp())
1272 {
1273 case EOpSequence: break;
1274 case EOpDeclaration: break;
1275 case EOpInvariantDeclaration: break;
1276 case EOpPrototype: break;
1277 case EOpComma:
1278 if(visit == PostVisit)
1279 {
1280 copy(result, arg[1]);
1281 }
1282 break;
1283 case EOpFunction:
1284 if(visit == PreVisit)
1285 {
1286 const TString &name = node->getName();
1287
1288 if(emitScope == FUNCTION)
1289 {
1290 if(functionArray.size() > 1) // No need for a label when there's only main()
1291 {
1292 Instruction *label = emit(sw::Shader::OPCODE_LABEL);
1293 label->dst.type = sw::Shader::PARAMETER_LABEL;
1294
1295 const Function *function = findFunction(name);
1296 ASSERT(function); // Should have been added during global pass
1297 label->dst.index = function->label;
1298 currentFunction = function->label;
1299 }
1300 }
1301 else if(emitScope == GLOBAL)
1302 {
1303 if(name != "main(")
1304 {
1305 TIntermSequence &arguments = node->getSequence()[0]->getAsAggregate()->getSequence();
1306 functionArray.push_back(Function(functionArray.size(), name, &arguments, node));
1307 }
1308 }
1309 else UNREACHABLE(emitScope);
1310
1311 currentScope = FUNCTION;
1312 }
1313 else if(visit == PostVisit)
1314 {
1315 if(emitScope == FUNCTION)
1316 {
1317 if(functionArray.size() > 1) // No need to return when there's only main()
1318 {
1319 emit(sw::Shader::OPCODE_RET);
1320 }
1321 }
1322
1323 currentScope = GLOBAL;
1324 }
1325 break;
1326 case EOpFunctionCall:
1327 if(visit == PostVisit)
1328 {
1329 if(node->isUserDefined())
1330 {
1331 const TString &name = node->getName();
1332 const Function *function = findFunction(name);
1333
1334 if(!function)
1335 {
1336 mContext.error(node->getLine(), "function definition not found", name.c_str());
1337 return false;
1338 }
1339
1340 TIntermSequence &arguments = *function->arg;
1341
1342 for(size_t i = 0; i < argumentCount; i++)
1343 {
1344 TIntermTyped *in = arguments[i]->getAsTyped();
1345
1346 if(in->getQualifier() == EvqIn ||
1347 in->getQualifier() == EvqInOut ||
1348 in->getQualifier() == EvqConstReadOnly)
1349 {
1350 copy(in, arg[i]);
1351 }
1352 }
1353
1354 Instruction *call = emit(sw::Shader::OPCODE_CALL);
1355 call->dst.type = sw::Shader::PARAMETER_LABEL;
1356 call->dst.index = function->label;
1357
1358 if(function->ret && function->ret->getType().getBasicType() != EbtVoid)
1359 {
1360 copy(result, function->ret);
1361 }
1362
1363 for(size_t i = 0; i < argumentCount; i++)
1364 {
1365 TIntermTyped *argument = arguments[i]->getAsTyped();
1366 TIntermTyped *out = arg[i]->getAsTyped();
1367
1368 if(argument->getQualifier() == EvqOut ||
1369 argument->getQualifier() == EvqInOut)
1370 {
Nicolas Capens5da2d3f2016-06-11 00:41:49 -04001371 assignLvalue(out, argument);
Nicolas Capens0bac2852016-05-07 06:09:58 -04001372 }
1373 }
1374 }
1375 else
1376 {
1377 const TextureFunction textureFunction(node->getName());
Nicolas Capensa0b57832017-11-07 13:07:53 -05001378 TIntermTyped *s = arg[0]->getAsTyped();
Nicolas Capens0bac2852016-05-07 06:09:58 -04001379 TIntermTyped *t = arg[1]->getAsTyped();
1380
1381 Temporary coord(this);
1382
1383 if(textureFunction.proj)
1384 {
Nicolas Capens0484c792016-06-13 22:02:36 -04001385 Instruction *rcp = emit(sw::Shader::OPCODE_RCPX, &coord, arg[1]);
1386 rcp->src[0].swizzle = 0x55 * (t->getNominalSize() - 1);
1387 rcp->dst.mask = 0x7;
Nicolas Capens0bac2852016-05-07 06:09:58 -04001388
Nicolas Capens0484c792016-06-13 22:02:36 -04001389 Instruction *mul = emit(sw::Shader::OPCODE_MUL, &coord, arg[1], &coord);
1390 mul->dst.mask = 0x7;
Nicolas Capensa0b57832017-11-07 13:07:53 -05001391
1392 if(IsShadowSampler(s->getBasicType()))
1393 {
1394 ASSERT(s->getBasicType() == EbtSampler2DShadow);
1395 Instruction *mov = emit(sw::Shader::OPCODE_MOV, &coord, &coord);
1396 mov->src[0].swizzle = 0xA4;
1397 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04001398 }
1399 else
1400 {
Nicolas Capensa0b57832017-11-07 13:07:53 -05001401 Instruction *mov = emit(sw::Shader::OPCODE_MOV, &coord, arg[1]);
1402
1403 if(IsShadowSampler(s->getBasicType()) && t->getNominalSize() == 3)
1404 {
1405 ASSERT(s->getBasicType() == EbtSampler2DShadow);
1406 mov->src[0].swizzle = 0xA4;
1407 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04001408 }
1409
1410 switch(textureFunction.method)
1411 {
1412 case TextureFunction::IMPLICIT:
Nicolas Capensa0b57832017-11-07 13:07:53 -05001413 if(!textureFunction.offset)
Nicolas Capens0bac2852016-05-07 06:09:58 -04001414 {
Nicolas Capensa0b57832017-11-07 13:07:53 -05001415 if(argumentCount == 2)
Nicolas Capens0bac2852016-05-07 06:09:58 -04001416 {
Nicolas Capensa0b57832017-11-07 13:07:53 -05001417 emit(sw::Shader::OPCODE_TEX, result, &coord, s);
Nicolas Capens0bac2852016-05-07 06:09:58 -04001418 }
Nicolas Capensa0b57832017-11-07 13:07:53 -05001419 else if(argumentCount == 3) // Bias
Nicolas Capens0bac2852016-05-07 06:09:58 -04001420 {
Nicolas Capensa0b57832017-11-07 13:07:53 -05001421 emit(sw::Shader::OPCODE_TEXBIAS, result, &coord, s, arg[2]);
1422 }
1423 else UNREACHABLE(argumentCount);
1424 }
1425 else // Offset
1426 {
1427 if(argumentCount == 3)
1428 {
1429 emit(sw::Shader::OPCODE_TEXOFFSET, result, &coord, s, arg[2]);
1430 }
1431 else if(argumentCount == 4) // Bias
1432 {
1433 emit(sw::Shader::OPCODE_TEXOFFSETBIAS, result, &coord, s, arg[2], arg[3]);
Nicolas Capens0bac2852016-05-07 06:09:58 -04001434 }
1435 else UNREACHABLE(argumentCount);
1436 }
1437 break;
1438 case TextureFunction::LOD:
Nicolas Capensa0b57832017-11-07 13:07:53 -05001439 if(!textureFunction.offset && argumentCount == 3)
Nicolas Capens0bac2852016-05-07 06:09:58 -04001440 {
Nicolas Capensa0b57832017-11-07 13:07:53 -05001441 emit(sw::Shader::OPCODE_TEXLOD, result, &coord, s, arg[2]);
Nicolas Capens0bac2852016-05-07 06:09:58 -04001442 }
Nicolas Capensa0b57832017-11-07 13:07:53 -05001443 else if(argumentCount == 4) // Offset
1444 {
1445 emit(sw::Shader::OPCODE_TEXLODOFFSET, result, &coord, s, arg[3], arg[2]);
1446 }
1447 else UNREACHABLE(argumentCount);
Nicolas Capens0bac2852016-05-07 06:09:58 -04001448 break;
1449 case TextureFunction::FETCH:
Nicolas Capensa0b57832017-11-07 13:07:53 -05001450 if(!textureFunction.offset && argumentCount == 3)
Nicolas Capens0bac2852016-05-07 06:09:58 -04001451 {
Nicolas Capensa0b57832017-11-07 13:07:53 -05001452 emit(sw::Shader::OPCODE_TEXELFETCH, result, &coord, s, arg[2]);
Nicolas Capens0bac2852016-05-07 06:09:58 -04001453 }
Nicolas Capensa0b57832017-11-07 13:07:53 -05001454 else if(argumentCount == 4) // Offset
1455 {
1456 emit(sw::Shader::OPCODE_TEXELFETCHOFFSET, result, &coord, s, arg[3], arg[2]);
1457 }
1458 else UNREACHABLE(argumentCount);
Nicolas Capens0bac2852016-05-07 06:09:58 -04001459 break;
1460 case TextureFunction::GRAD:
Nicolas Capensa0b57832017-11-07 13:07:53 -05001461 if(!textureFunction.offset && argumentCount == 4)
Nicolas Capens0bac2852016-05-07 06:09:58 -04001462 {
Nicolas Capensa0b57832017-11-07 13:07:53 -05001463 emit(sw::Shader::OPCODE_TEXGRAD, result, &coord, s, arg[2], arg[3]);
Nicolas Capens0bac2852016-05-07 06:09:58 -04001464 }
Nicolas Capensa0b57832017-11-07 13:07:53 -05001465 else if(argumentCount == 5) // Offset
1466 {
1467 emit(sw::Shader::OPCODE_TEXGRADOFFSET, result, &coord, s, arg[2], arg[3], arg[4]);
1468 }
1469 else UNREACHABLE(argumentCount);
Nicolas Capens0bac2852016-05-07 06:09:58 -04001470 break;
1471 case TextureFunction::SIZE:
Nicolas Capensa0b57832017-11-07 13:07:53 -05001472 emit(sw::Shader::OPCODE_TEXSIZE, result, arg[1], s);
Nicolas Capens0bac2852016-05-07 06:09:58 -04001473 break;
1474 default:
1475 UNREACHABLE(textureFunction.method);
1476 }
1477 }
1478 }
1479 break;
1480 case EOpParameters:
1481 break;
1482 case EOpConstructFloat:
1483 case EOpConstructVec2:
1484 case EOpConstructVec3:
1485 case EOpConstructVec4:
1486 case EOpConstructBool:
1487 case EOpConstructBVec2:
1488 case EOpConstructBVec3:
1489 case EOpConstructBVec4:
1490 case EOpConstructInt:
1491 case EOpConstructIVec2:
1492 case EOpConstructIVec3:
1493 case EOpConstructIVec4:
1494 case EOpConstructUInt:
1495 case EOpConstructUVec2:
1496 case EOpConstructUVec3:
1497 case EOpConstructUVec4:
1498 if(visit == PostVisit)
1499 {
1500 int component = 0;
Alexis Hetu2a198552016-09-27 20:50:45 -04001501 int arrayMaxIndex = result->isArray() ? result->getArraySize() - 1 : 0;
1502 int arrayComponents = result->getType().getElementSize();
Nicolas Capens0bac2852016-05-07 06:09:58 -04001503 for(size_t i = 0; i < argumentCount; i++)
1504 {
1505 TIntermTyped *argi = arg[i]->getAsTyped();
1506 int size = argi->getNominalSize();
Alexis Hetu2a198552016-09-27 20:50:45 -04001507 int arrayIndex = std::min(component / arrayComponents, arrayMaxIndex);
1508 int swizzle = component - (arrayIndex * arrayComponents);
Nicolas Capens0bac2852016-05-07 06:09:58 -04001509
1510 if(!argi->isMatrix())
1511 {
Alexis Hetu2a198552016-09-27 20:50:45 -04001512 Instruction *mov = emitCast(result, arrayIndex, argi, 0);
1513 mov->dst.mask = (0xF << swizzle) & 0xF;
1514 mov->src[0].swizzle = readSwizzle(argi, size) << (swizzle * 2);
Nicolas Capens0bac2852016-05-07 06:09:58 -04001515
1516 component += size;
1517 }
Alexis Hetu38338612018-01-18 15:53:36 -05001518 else if(!result->isMatrix()) // Construct a non matrix from a matrix
1519 {
1520 Instruction *mov = emitCast(result, arrayIndex, argi, 0);
1521 mov->dst.mask = (0xF << swizzle) & 0xF;
1522 mov->src[0].swizzle = readSwizzle(argi, size) << (swizzle * 2);
1523
1524 // At most one more instruction when constructing a vec3 from a mat2 or a vec4 from a mat2/mat3
1525 if(result->getNominalSize() > size)
1526 {
1527 Instruction *mov = emitCast(result, arrayIndex, argi, 1);
1528 mov->dst.mask = (0xF << (swizzle + size)) & 0xF;
1529 // mat2: xxxy (0x40), mat3: xxxx (0x00)
1530 mov->src[0].swizzle = ((size == 2) ? 0x40 : 0x00) << (swizzle * 2);
1531 }
1532
1533 component += size;
1534 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04001535 else // Matrix
1536 {
1537 int column = 0;
1538
1539 while(component < resultType.getNominalSize())
1540 {
Alexis Hetu2a198552016-09-27 20:50:45 -04001541 Instruction *mov = emitCast(result, arrayIndex, argi, column);
1542 mov->dst.mask = (0xF << swizzle) & 0xF;
1543 mov->src[0].swizzle = readSwizzle(argi, size) << (swizzle * 2);
Nicolas Capens0bac2852016-05-07 06:09:58 -04001544
1545 column++;
1546 component += size;
1547 }
1548 }
1549 }
1550 }
1551 break;
1552 case EOpConstructMat2:
1553 case EOpConstructMat2x3:
1554 case EOpConstructMat2x4:
1555 case EOpConstructMat3x2:
1556 case EOpConstructMat3:
1557 case EOpConstructMat3x4:
1558 case EOpConstructMat4x2:
1559 case EOpConstructMat4x3:
1560 case EOpConstructMat4:
1561 if(visit == PostVisit)
1562 {
1563 TIntermTyped *arg0 = arg[0]->getAsTyped();
1564 const int outCols = result->getNominalSize();
1565 const int outRows = result->getSecondarySize();
1566
1567 if(arg0->isScalar() && arg.size() == 1) // Construct scale matrix
1568 {
1569 for(int i = 0; i < outCols; i++)
1570 {
Alexis Hetu7208e932016-06-02 11:19:24 -04001571 emit(sw::Shader::OPCODE_MOV, result, i, &zero);
Chris Forbes9f6c0b82018-09-21 11:57:51 -07001572 if (i < outRows)
1573 {
1574 // Insert the scalar value on the main diagonal.
1575 // For non-square matrices, Avoid emitting in
1576 // a column which doesn't /have/ a main diagonal
1577 // element, even though it would be fairly benign --
1578 // it's not necessarily trivial for downstream
1579 // passes to see that this is redundant and strip it
1580 // out.
1581 Instruction *mov = emitCast(result, i, arg0, 0);
1582 mov->dst.mask = 1 << i;
1583 ASSERT(mov->src[0].swizzle == 0x00);
1584 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04001585 }
1586 }
1587 else if(arg0->isMatrix())
1588 {
Alexis Hetu2a198552016-09-27 20:50:45 -04001589 int arraySize = result->isArray() ? result->getArraySize() : 1;
Nicolas Capens0bac2852016-05-07 06:09:58 -04001590
Alexis Hetu2a198552016-09-27 20:50:45 -04001591 for(int n = 0; n < arraySize; n++)
Nicolas Capens0bac2852016-05-07 06:09:58 -04001592 {
Alexis Hetu2a198552016-09-27 20:50:45 -04001593 TIntermTyped *argi = arg[n]->getAsTyped();
1594 const int inCols = argi->getNominalSize();
1595 const int inRows = argi->getSecondarySize();
Nicolas Capens0bac2852016-05-07 06:09:58 -04001596
Alexis Hetu2a198552016-09-27 20:50:45 -04001597 for(int i = 0; i < outCols; i++)
Nicolas Capens0bac2852016-05-07 06:09:58 -04001598 {
Alexis Hetu2a198552016-09-27 20:50:45 -04001599 if(i >= inCols || outRows > inRows)
1600 {
1601 // Initialize to identity matrix
1602 Constant col((i == 0 ? 1.0f : 0.0f), (i == 1 ? 1.0f : 0.0f), (i == 2 ? 1.0f : 0.0f), (i == 3 ? 1.0f : 0.0f));
1603 emitCast(result, i + n * outCols, &col, 0);
1604 }
1605
1606 if(i < inCols)
1607 {
1608 Instruction *mov = emitCast(result, i + n * outCols, argi, i);
1609 mov->dst.mask = 0xF >> (4 - inRows);
1610 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04001611 }
1612 }
1613 }
1614 else
1615 {
1616 int column = 0;
1617 int row = 0;
1618
1619 for(size_t i = 0; i < argumentCount; i++)
1620 {
1621 TIntermTyped *argi = arg[i]->getAsTyped();
1622 int size = argi->getNominalSize();
1623 int element = 0;
1624
1625 while(element < size)
1626 {
1627 Instruction *mov = emitCast(result, column, argi, 0);
1628 mov->dst.mask = (0xF << row) & 0xF;
1629 mov->src[0].swizzle = (readSwizzle(argi, size) << (row * 2)) + 0x55 * element;
1630
1631 int end = row + size - element;
1632 column = end >= outRows ? column + 1 : column;
1633 element = element + outRows - row;
1634 row = end >= outRows ? 0 : end;
1635 }
1636 }
1637 }
1638 }
1639 break;
1640 case EOpConstructStruct:
1641 if(visit == PostVisit)
1642 {
1643 int offset = 0;
1644 for(size_t i = 0; i < argumentCount; i++)
1645 {
1646 TIntermTyped *argi = arg[i]->getAsTyped();
1647 int size = argi->totalRegisterCount();
1648
1649 for(int index = 0; index < size; index++)
1650 {
1651 Instruction *mov = emit(sw::Shader::OPCODE_MOV, result, index + offset, argi, index);
1652 mov->dst.mask = writeMask(result, offset + index);
1653 }
1654
1655 offset += size;
1656 }
1657 }
1658 break;
1659 case EOpLessThan: if(visit == PostVisit) emitCmp(sw::Shader::CONTROL_LT, result, arg[0], arg[1]); break;
1660 case EOpGreaterThan: if(visit == PostVisit) emitCmp(sw::Shader::CONTROL_GT, result, arg[0], arg[1]); break;
1661 case EOpLessThanEqual: if(visit == PostVisit) emitCmp(sw::Shader::CONTROL_LE, result, arg[0], arg[1]); break;
1662 case EOpGreaterThanEqual: if(visit == PostVisit) emitCmp(sw::Shader::CONTROL_GE, result, arg[0], arg[1]); break;
1663 case EOpVectorEqual: if(visit == PostVisit) emitCmp(sw::Shader::CONTROL_EQ, result, arg[0], arg[1]); break;
1664 case EOpVectorNotEqual: if(visit == PostVisit) emitCmp(sw::Shader::CONTROL_NE, result, arg[0], arg[1]); break;
1665 case EOpMod: if(visit == PostVisit) emit(sw::Shader::OPCODE_MOD, result, arg[0], arg[1]); break;
1666 case EOpModf:
1667 if(visit == PostVisit)
1668 {
1669 TIntermTyped* arg1 = arg[1]->getAsTyped();
1670 emit(sw::Shader::OPCODE_TRUNC, arg1, arg[0]);
1671 assignLvalue(arg1, arg1);
1672 emitBinary(sw::Shader::OPCODE_SUB, result, arg[0], arg1);
1673 }
1674 break;
1675 case EOpPow: if(visit == PostVisit) emit(sw::Shader::OPCODE_POW, result, arg[0], arg[1]); break;
1676 case EOpAtan: if(visit == PostVisit) emit(sw::Shader::OPCODE_ATAN2, result, arg[0], arg[1]); break;
1677 case EOpMin: if(visit == PostVisit) emit(getOpcode(sw::Shader::OPCODE_MIN, result), result, arg[0], arg[1]); break;
1678 case EOpMax: if(visit == PostVisit) emit(getOpcode(sw::Shader::OPCODE_MAX, result), result, arg[0], arg[1]); break;
1679 case EOpClamp:
1680 if(visit == PostVisit)
1681 {
1682 emit(getOpcode(sw::Shader::OPCODE_MAX, result), result, arg[0], arg[1]);
1683 emit(getOpcode(sw::Shader::OPCODE_MIN, result), result, result, arg[2]);
1684 }
1685 break;
Alexis Hetuc4711fa2018-01-12 11:59:35 -05001686 case EOpMix:
1687 if(visit == PostVisit)
1688 {
1689 if(arg[2]->getAsTyped()->getBasicType() == EbtBool)
1690 {
1691 emit(sw::Shader::OPCODE_SELECT, result, arg[2], arg[1], arg[0]);
1692 }
1693 else
1694 {
1695 emit(sw::Shader::OPCODE_LRP, result, arg[2], arg[1], arg[0]);
1696 }
1697 }
1698 break;
Nicolas Capens0bac2852016-05-07 06:09:58 -04001699 case EOpStep: if(visit == PostVisit) emit(sw::Shader::OPCODE_STEP, result, arg[0], arg[1]); break;
1700 case EOpSmoothStep: if(visit == PostVisit) emit(sw::Shader::OPCODE_SMOOTH, result, arg[0], arg[1], arg[2]); break;
1701 case EOpDistance: if(visit == PostVisit) emit(sw::Shader::OPCODE_DIST(dim(arg[0])), result, arg[0], arg[1]); break;
1702 case EOpDot: if(visit == PostVisit) emit(sw::Shader::OPCODE_DP(dim(arg[0])), result, arg[0], arg[1]); break;
1703 case EOpCross: if(visit == PostVisit) emit(sw::Shader::OPCODE_CRS, result, arg[0], arg[1]); break;
1704 case EOpFaceForward: if(visit == PostVisit) emit(sw::Shader::OPCODE_FORWARD(dim(arg[0])), result, arg[0], arg[1], arg[2]); break;
1705 case EOpReflect: if(visit == PostVisit) emit(sw::Shader::OPCODE_REFLECT(dim(arg[0])), result, arg[0], arg[1]); break;
1706 case EOpRefract: if(visit == PostVisit) emit(sw::Shader::OPCODE_REFRACT(dim(arg[0])), result, arg[0], arg[1], arg[2]); break;
1707 case EOpMul:
1708 if(visit == PostVisit)
1709 {
1710 TIntermTyped *arg0 = arg[0]->getAsTyped();
Alexis Hetue97a31e2016-11-14 14:10:47 -05001711 ASSERT((arg0->getNominalSize() == arg[1]->getAsTyped()->getNominalSize()) &&
1712 (arg0->getSecondarySize() == arg[1]->getAsTyped()->getSecondarySize()));
Nicolas Capens0bac2852016-05-07 06:09:58 -04001713
1714 int size = arg0->getNominalSize();
1715 for(int i = 0; i < size; i++)
1716 {
1717 emit(sw::Shader::OPCODE_MUL, result, i, arg[0], i, arg[1], i);
1718 }
1719 }
1720 break;
1721 case EOpOuterProduct:
1722 if(visit == PostVisit)
1723 {
1724 for(int i = 0; i < dim(arg[1]); i++)
1725 {
1726 Instruction *mul = emit(sw::Shader::OPCODE_MUL, result, i, arg[0], 0, arg[1]);
1727 mul->src[1].swizzle = 0x55 * i;
1728 }
1729 }
1730 break;
1731 default: UNREACHABLE(node->getOp());
1732 }
1733
1734 return true;
1735 }
1736
1737 bool OutputASM::visitSelection(Visit visit, TIntermSelection *node)
1738 {
1739 if(currentScope != emitScope)
1740 {
1741 return false;
1742 }
1743
1744 TIntermTyped *condition = node->getCondition();
1745 TIntermNode *trueBlock = node->getTrueBlock();
1746 TIntermNode *falseBlock = node->getFalseBlock();
1747 TIntermConstantUnion *constantCondition = condition->getAsConstantUnion();
1748
1749 condition->traverse(this);
1750
1751 if(node->usesTernaryOperator())
1752 {
1753 if(constantCondition)
1754 {
1755 bool trueCondition = constantCondition->getUnionArrayPointer()->getBConst();
1756
1757 if(trueCondition)
1758 {
1759 trueBlock->traverse(this);
1760 copy(node, trueBlock);
1761 }
1762 else
1763 {
1764 falseBlock->traverse(this);
1765 copy(node, falseBlock);
1766 }
1767 }
1768 else if(trivial(node, 6)) // Fast to compute both potential results and no side effects
1769 {
1770 trueBlock->traverse(this);
1771 falseBlock->traverse(this);
1772 emit(sw::Shader::OPCODE_SELECT, node, condition, trueBlock, falseBlock);
1773 }
1774 else
1775 {
1776 emit(sw::Shader::OPCODE_IF, 0, condition);
1777
1778 if(trueBlock)
1779 {
1780 trueBlock->traverse(this);
1781 copy(node, trueBlock);
1782 }
1783
1784 if(falseBlock)
1785 {
1786 emit(sw::Shader::OPCODE_ELSE);
1787 falseBlock->traverse(this);
1788 copy(node, falseBlock);
1789 }
1790
1791 emit(sw::Shader::OPCODE_ENDIF);
1792 }
1793 }
1794 else // if/else statement
1795 {
1796 if(constantCondition)
1797 {
1798 bool trueCondition = constantCondition->getUnionArrayPointer()->getBConst();
1799
1800 if(trueCondition)
1801 {
1802 if(trueBlock)
1803 {
1804 trueBlock->traverse(this);
1805 }
1806 }
1807 else
1808 {
1809 if(falseBlock)
1810 {
1811 falseBlock->traverse(this);
1812 }
1813 }
1814 }
1815 else
1816 {
1817 emit(sw::Shader::OPCODE_IF, 0, condition);
1818
1819 if(trueBlock)
1820 {
1821 trueBlock->traverse(this);
1822 }
1823
1824 if(falseBlock)
1825 {
1826 emit(sw::Shader::OPCODE_ELSE);
1827 falseBlock->traverse(this);
1828 }
1829
1830 emit(sw::Shader::OPCODE_ENDIF);
1831 }
1832 }
1833
1834 return false;
1835 }
1836
1837 bool OutputASM::visitLoop(Visit visit, TIntermLoop *node)
1838 {
1839 if(currentScope != emitScope)
1840 {
1841 return false;
1842 }
1843
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04001844 LoopInfo loop(node);
Nicolas Capens0bac2852016-05-07 06:09:58 -04001845
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04001846 if(loop.iterations == 0)
Nicolas Capens0bac2852016-05-07 06:09:58 -04001847 {
1848 return false;
1849 }
1850
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04001851 bool unroll = (loop.iterations <= 4);
Nicolas Capens0bac2852016-05-07 06:09:58 -04001852
1853 TIntermNode *init = node->getInit();
1854 TIntermTyped *condition = node->getCondition();
1855 TIntermTyped *expression = node->getExpression();
1856 TIntermNode *body = node->getBody();
1857 Constant True(true);
1858
Nicolas Capens8a587712018-10-20 14:17:49 -04001859 if(loop.isDeterministic())
1860 {
1861 deterministicVariables.insert(loop.index->getId());
1862
1863 emit(sw::Shader::OPCODE_TEST);
1864 }
1865
Nicolas Capens0bac2852016-05-07 06:09:58 -04001866 if(node->getType() == ELoopDoWhile)
1867 {
1868 Temporary iterate(this);
1869 emit(sw::Shader::OPCODE_MOV, &iterate, &True);
1870
1871 emit(sw::Shader::OPCODE_WHILE, 0, &iterate); // FIXME: Implement real do-while
1872
1873 if(body)
1874 {
1875 body->traverse(this);
1876 }
1877
1878 emit(sw::Shader::OPCODE_TEST);
1879
1880 condition->traverse(this);
1881 emit(sw::Shader::OPCODE_MOV, &iterate, condition);
1882
1883 emit(sw::Shader::OPCODE_ENDWHILE);
1884 }
1885 else
1886 {
1887 if(init)
1888 {
1889 init->traverse(this);
1890 }
1891
1892 if(unroll)
1893 {
Nicolas Capens493fc542018-05-29 17:11:37 -04001894 mContext.info(node->getLine(), "loop unrolled", "for");
1895
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04001896 for(unsigned int i = 0; i < loop.iterations; i++)
Nicolas Capens0bac2852016-05-07 06:09:58 -04001897 {
1898 // condition->traverse(this); // Condition could contain statements, but not in an unrollable loop
1899
1900 if(body)
1901 {
1902 body->traverse(this);
1903 }
1904
1905 if(expression)
1906 {
1907 expression->traverse(this);
1908 }
1909 }
1910 }
1911 else
1912 {
1913 if(condition)
1914 {
1915 condition->traverse(this);
1916 }
1917 else
1918 {
1919 condition = &True;
1920 }
1921
1922 emit(sw::Shader::OPCODE_WHILE, 0, condition);
1923
1924 if(body)
1925 {
1926 body->traverse(this);
1927 }
1928
Nicolas Capens8a587712018-10-20 14:17:49 -04001929 if(loop.isDeterministic())
1930 {
1931 emit(sw::Shader::OPCODE_TEST);
1932 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04001933
1934 if(expression)
1935 {
1936 expression->traverse(this);
1937 }
1938
1939 if(condition)
1940 {
1941 condition->traverse(this);
1942 }
1943
1944 emit(sw::Shader::OPCODE_ENDWHILE);
1945 }
1946 }
1947
Nicolas Capens4b743732018-05-28 13:22:07 -04001948 if(loop.isDeterministic())
1949 {
1950 deterministicVariables.erase(loop.index->getId());
1951 }
1952
Nicolas Capens0bac2852016-05-07 06:09:58 -04001953 return false;
1954 }
1955
1956 bool OutputASM::visitBranch(Visit visit, TIntermBranch *node)
1957 {
1958 if(currentScope != emitScope)
1959 {
1960 return false;
1961 }
1962
1963 switch(node->getFlowOp())
1964 {
1965 case EOpKill: if(visit == PostVisit) emit(sw::Shader::OPCODE_DISCARD); break;
1966 case EOpBreak: if(visit == PostVisit) emit(sw::Shader::OPCODE_BREAK); break;
1967 case EOpContinue: if(visit == PostVisit) emit(sw::Shader::OPCODE_CONTINUE); break;
1968 case EOpReturn:
1969 if(visit == PostVisit)
1970 {
1971 TIntermTyped *value = node->getExpression();
1972
1973 if(value)
1974 {
1975 copy(functionArray[currentFunction].ret, value);
1976 }
1977
1978 emit(sw::Shader::OPCODE_LEAVE);
1979 }
1980 break;
1981 default: UNREACHABLE(node->getFlowOp());
1982 }
1983
1984 return true;
1985 }
1986
Alexis Hetu9aa83a92016-05-02 17:34:46 -04001987 bool OutputASM::visitSwitch(Visit visit, TIntermSwitch *node)
1988 {
1989 if(currentScope != emitScope)
1990 {
1991 return false;
1992 }
1993
1994 TIntermTyped* switchValue = node->getInit();
1995 TIntermAggregate* opList = node->getStatementList();
1996
1997 if(!switchValue || !opList)
1998 {
1999 return false;
2000 }
2001
2002 switchValue->traverse(this);
2003
2004 emit(sw::Shader::OPCODE_SWITCH);
2005
2006 TIntermSequence& sequence = opList->getSequence();
2007 TIntermSequence::iterator it = sequence.begin();
2008 TIntermSequence::iterator defaultIt = sequence.end();
2009 int nbCases = 0;
2010 for(; it != sequence.end(); ++it)
2011 {
2012 TIntermCase* currentCase = (*it)->getAsCaseNode();
2013 if(currentCase)
2014 {
2015 TIntermSequence::iterator caseIt = it;
2016
2017 TIntermTyped* condition = currentCase->getCondition();
2018 if(condition) // non default case
2019 {
2020 if(nbCases != 0)
2021 {
2022 emit(sw::Shader::OPCODE_ELSE);
2023 }
2024
2025 condition->traverse(this);
2026 Temporary result(this);
2027 emitBinary(sw::Shader::OPCODE_EQ, &result, switchValue, condition);
2028 emit(sw::Shader::OPCODE_IF, 0, &result);
2029 nbCases++;
2030
Nicolas Capens6d123312018-01-08 12:57:52 -05002031 // Emit the code for this case and all subsequent cases until we hit a break statement.
2032 // TODO: This can repeat a lot of code for switches with many fall-through cases.
Alexis Hetu9aa83a92016-05-02 17:34:46 -04002033 for(++caseIt; caseIt != sequence.end(); ++caseIt)
2034 {
2035 (*caseIt)->traverse(this);
Nicolas Capens6d123312018-01-08 12:57:52 -05002036
2037 // Stop if we encounter an unconditional branch (break, continue, return, or kill).
2038 // TODO: This doesn't work if the statement is at a deeper scope level (e.g. {break;}).
2039 // Note that this eliminates useless operations but shouldn't affect correctness.
2040 if((*caseIt)->getAsBranchNode())
Alexis Hetu9aa83a92016-05-02 17:34:46 -04002041 {
2042 break;
2043 }
2044 }
2045 }
2046 else
2047 {
2048 defaultIt = it; // The default case might not be the last case, keep it for last
2049 }
2050 }
2051 }
2052
2053 // If there's a default case, traverse it here
2054 if(defaultIt != sequence.end())
2055 {
2056 emit(sw::Shader::OPCODE_ELSE);
2057 for(++defaultIt; defaultIt != sequence.end(); ++defaultIt)
2058 {
2059 (*defaultIt)->traverse(this);
2060 if((*defaultIt)->getAsBranchNode()) // Kill, Break, Continue or Return
2061 {
2062 break;
2063 }
2064 }
2065 }
2066
2067 for(int i = 0; i < nbCases; ++i)
2068 {
2069 emit(sw::Shader::OPCODE_ENDIF);
2070 }
2071
2072 emit(sw::Shader::OPCODE_ENDSWITCH);
2073
2074 return false;
2075 }
2076
Nicolas Capens0bac2852016-05-07 06:09:58 -04002077 Instruction *OutputASM::emit(sw::Shader::Opcode op, TIntermTyped *dst, TIntermNode *src0, TIntermNode *src1, TIntermNode *src2, TIntermNode *src3, TIntermNode *src4)
2078 {
2079 return emit(op, dst, 0, src0, 0, src1, 0, src2, 0, src3, 0, src4, 0);
2080 }
2081
2082 Instruction *OutputASM::emit(sw::Shader::Opcode op, TIntermTyped *dst, int dstIndex, TIntermNode *src0, int index0, TIntermNode *src1, int index1,
2083 TIntermNode *src2, int index2, TIntermNode *src3, int index3, TIntermNode *src4, int index4)
2084 {
2085 Instruction *instruction = new Instruction(op);
2086
2087 if(dst)
2088 {
Nicolas Capens0530b452017-11-15 16:39:47 -05002089 destination(instruction->dst, dst, dstIndex);
Nicolas Capens0bac2852016-05-07 06:09:58 -04002090 }
2091
Alexis Hetu929c6b02017-11-07 16:04:25 -05002092 if(src0)
2093 {
2094 TIntermTyped* src = src0->getAsTyped();
2095 instruction->dst.partialPrecision = src && (src->getPrecision() <= EbpLow);
2096 }
2097
Nicolas Capens0530b452017-11-15 16:39:47 -05002098 source(instruction->src[0], src0, index0);
2099 source(instruction->src[1], src1, index1);
2100 source(instruction->src[2], src2, index2);
2101 source(instruction->src[3], src3, index3);
2102 source(instruction->src[4], src4, index4);
Nicolas Capens0bac2852016-05-07 06:09:58 -04002103
2104 shader->append(instruction);
2105
2106 return instruction;
2107 }
2108
2109 Instruction *OutputASM::emitCast(TIntermTyped *dst, TIntermTyped *src)
2110 {
2111 return emitCast(dst, 0, src, 0);
2112 }
2113
2114 Instruction *OutputASM::emitCast(TIntermTyped *dst, int dstIndex, TIntermTyped *src, int srcIndex)
2115 {
2116 switch(src->getBasicType())
2117 {
2118 case EbtBool:
2119 switch(dst->getBasicType())
2120 {
2121 case EbtInt: return emit(sw::Shader::OPCODE_B2I, dst, dstIndex, src, srcIndex);
2122 case EbtUInt: return emit(sw::Shader::OPCODE_B2I, dst, dstIndex, src, srcIndex);
2123 case EbtFloat: return emit(sw::Shader::OPCODE_B2F, dst, dstIndex, src, srcIndex);
2124 default: break;
2125 }
2126 break;
2127 case EbtInt:
2128 switch(dst->getBasicType())
2129 {
2130 case EbtBool: return emit(sw::Shader::OPCODE_I2B, dst, dstIndex, src, srcIndex);
2131 case EbtFloat: return emit(sw::Shader::OPCODE_I2F, dst, dstIndex, src, srcIndex);
2132 default: break;
2133 }
2134 break;
2135 case EbtUInt:
2136 switch(dst->getBasicType())
2137 {
2138 case EbtBool: return emit(sw::Shader::OPCODE_I2B, dst, dstIndex, src, srcIndex);
2139 case EbtFloat: return emit(sw::Shader::OPCODE_U2F, dst, dstIndex, src, srcIndex);
2140 default: break;
2141 }
2142 break;
2143 case EbtFloat:
2144 switch(dst->getBasicType())
2145 {
2146 case EbtBool: return emit(sw::Shader::OPCODE_F2B, dst, dstIndex, src, srcIndex);
2147 case EbtInt: return emit(sw::Shader::OPCODE_F2I, dst, dstIndex, src, srcIndex);
2148 case EbtUInt: return emit(sw::Shader::OPCODE_F2U, dst, dstIndex, src, srcIndex);
2149 default: break;
2150 }
2151 break;
2152 default:
2153 break;
2154 }
2155
2156 ASSERT((src->getBasicType() == dst->getBasicType()) ||
2157 ((src->getBasicType() == EbtInt) && (dst->getBasicType() == EbtUInt)) ||
2158 ((src->getBasicType() == EbtUInt) && (dst->getBasicType() == EbtInt)));
2159
2160 return emit(sw::Shader::OPCODE_MOV, dst, dstIndex, src, srcIndex);
2161 }
2162
2163 void OutputASM::emitBinary(sw::Shader::Opcode op, TIntermTyped *dst, TIntermNode *src0, TIntermNode *src1, TIntermNode *src2)
2164 {
2165 for(int index = 0; index < dst->elementRegisterCount(); index++)
2166 {
2167 emit(op, dst, index, src0, index, src1, index, src2, index);
2168 }
2169 }
2170
2171 void OutputASM::emitAssign(sw::Shader::Opcode op, TIntermTyped *result, TIntermTyped *lhs, TIntermTyped *src0, TIntermTyped *src1)
2172 {
2173 emitBinary(op, result, src0, src1);
2174 assignLvalue(lhs, result);
2175 }
2176
2177 void OutputASM::emitCmp(sw::Shader::Control cmpOp, TIntermTyped *dst, TIntermNode *left, TIntermNode *right, int index)
2178 {
2179 sw::Shader::Opcode opcode;
2180 switch(left->getAsTyped()->getBasicType())
2181 {
2182 case EbtBool:
2183 case EbtInt:
2184 opcode = sw::Shader::OPCODE_ICMP;
2185 break;
2186 case EbtUInt:
2187 opcode = sw::Shader::OPCODE_UCMP;
2188 break;
2189 default:
2190 opcode = sw::Shader::OPCODE_CMP;
2191 break;
2192 }
2193
2194 Instruction *cmp = emit(opcode, dst, 0, left, index, right, index);
2195 cmp->control = cmpOp;
2196 }
2197
2198 int componentCount(const TType &type, int registers)
2199 {
2200 if(registers == 0)
2201 {
2202 return 0;
2203 }
2204
2205 if(type.isArray() && registers >= type.elementRegisterCount())
2206 {
2207 int index = registers / type.elementRegisterCount();
2208 registers -= index * type.elementRegisterCount();
2209 return index * type.getElementSize() + componentCount(type, registers);
2210 }
2211
2212 if(type.isStruct() || type.isInterfaceBlock())
2213 {
2214 const TFieldList& fields = type.getStruct() ? type.getStruct()->fields() : type.getInterfaceBlock()->fields();
2215 int elements = 0;
2216
Alexis Hetuda163ed2018-01-03 16:36:14 -05002217 for(const auto &field : fields)
Nicolas Capens0bac2852016-05-07 06:09:58 -04002218 {
Alexis Hetuda163ed2018-01-03 16:36:14 -05002219 const TType &fieldType = *(field->type());
Nicolas Capens0bac2852016-05-07 06:09:58 -04002220
2221 if(fieldType.totalRegisterCount() <= registers)
2222 {
2223 registers -= fieldType.totalRegisterCount();
2224 elements += fieldType.getObjectSize();
2225 }
2226 else // Register within this field
2227 {
2228 return elements + componentCount(fieldType, registers);
2229 }
2230 }
2231 }
2232 else if(type.isMatrix())
2233 {
2234 return registers * type.registerSize();
2235 }
2236
2237 UNREACHABLE(0);
2238 return 0;
2239 }
2240
2241 int registerSize(const TType &type, int registers)
2242 {
2243 if(registers == 0)
2244 {
2245 if(type.isStruct())
2246 {
2247 return registerSize(*((*(type.getStruct()->fields().begin()))->type()), 0);
2248 }
2249 else if(type.isInterfaceBlock())
2250 {
2251 return registerSize(*((*(type.getInterfaceBlock()->fields().begin()))->type()), 0);
2252 }
2253
2254 return type.registerSize();
2255 }
2256
2257 if(type.isArray() && registers >= type.elementRegisterCount())
2258 {
2259 int index = registers / type.elementRegisterCount();
2260 registers -= index * type.elementRegisterCount();
2261 return registerSize(type, registers);
2262 }
2263
2264 if(type.isStruct() || type.isInterfaceBlock())
2265 {
2266 const TFieldList& fields = type.getStruct() ? type.getStruct()->fields() : type.getInterfaceBlock()->fields();
2267 int elements = 0;
2268
Alexis Hetuda163ed2018-01-03 16:36:14 -05002269 for(const auto &field : fields)
Nicolas Capens0bac2852016-05-07 06:09:58 -04002270 {
Alexis Hetuda163ed2018-01-03 16:36:14 -05002271 const TType &fieldType = *(field->type());
Nicolas Capens0bac2852016-05-07 06:09:58 -04002272
2273 if(fieldType.totalRegisterCount() <= registers)
2274 {
2275 registers -= fieldType.totalRegisterCount();
2276 elements += fieldType.getObjectSize();
2277 }
2278 else // Register within this field
2279 {
2280 return registerSize(fieldType, registers);
2281 }
2282 }
2283 }
2284 else if(type.isMatrix())
2285 {
2286 return registerSize(type, 0);
2287 }
2288
2289 UNREACHABLE(0);
2290 return 0;
2291 }
2292
2293 int OutputASM::getBlockId(TIntermTyped *arg)
2294 {
2295 if(arg)
2296 {
2297 const TType &type = arg->getType();
2298 TInterfaceBlock* block = type.getInterfaceBlock();
2299 if(block && (type.getQualifier() == EvqUniform))
2300 {
2301 // Make sure the uniform block is declared
2302 uniformRegister(arg);
2303
2304 const char* blockName = block->name().c_str();
2305
2306 // Fetch uniform block index from array of blocks
2307 for(ActiveUniformBlocks::const_iterator it = shaderObject->activeUniformBlocks.begin(); it != shaderObject->activeUniformBlocks.end(); ++it)
2308 {
2309 if(blockName == it->name)
2310 {
2311 return it->blockId;
2312 }
2313 }
2314
2315 ASSERT(false);
2316 }
2317 }
2318
2319 return -1;
2320 }
2321
2322 OutputASM::ArgumentInfo OutputASM::getArgumentInfo(TIntermTyped *arg, int index)
2323 {
2324 const TType &type = arg->getType();
2325 int blockId = getBlockId(arg);
2326 ArgumentInfo argumentInfo(BlockMemberInfo::getDefaultBlockInfo(), type, -1, -1);
2327 if(blockId != -1)
2328 {
2329 argumentInfo.bufferIndex = 0;
2330 for(int i = 0; i < blockId; ++i)
2331 {
2332 int blockArraySize = shaderObject->activeUniformBlocks[i].arraySize;
2333 argumentInfo.bufferIndex += blockArraySize > 0 ? blockArraySize : 1;
2334 }
2335
2336 const BlockDefinitionIndexMap& blockDefinition = blockDefinitions[blockId];
2337
2338 BlockDefinitionIndexMap::const_iterator itEnd = blockDefinition.end();
2339 BlockDefinitionIndexMap::const_iterator it = itEnd;
2340
2341 argumentInfo.clampedIndex = index;
2342 if(type.isInterfaceBlock())
2343 {
2344 // Offset index to the beginning of the selected instance
2345 int blockRegisters = type.elementRegisterCount();
2346 int bufferOffset = argumentInfo.clampedIndex / blockRegisters;
2347 argumentInfo.bufferIndex += bufferOffset;
2348 argumentInfo.clampedIndex -= bufferOffset * blockRegisters;
2349 }
2350
2351 int regIndex = registerIndex(arg);
2352 for(int i = regIndex + argumentInfo.clampedIndex; i >= regIndex; --i)
2353 {
2354 it = blockDefinition.find(i);
2355 if(it != itEnd)
2356 {
2357 argumentInfo.clampedIndex -= (i - regIndex);
2358 break;
2359 }
2360 }
2361 ASSERT(it != itEnd);
2362
2363 argumentInfo.typedMemberInfo = it->second;
2364
2365 int registerCount = argumentInfo.typedMemberInfo.type.totalRegisterCount();
2366 argumentInfo.clampedIndex = (argumentInfo.clampedIndex >= registerCount) ? registerCount - 1 : argumentInfo.clampedIndex;
2367 }
2368 else
2369 {
2370 argumentInfo.clampedIndex = (index >= arg->totalRegisterCount()) ? arg->totalRegisterCount() - 1 : index;
2371 }
2372
2373 return argumentInfo;
2374 }
2375
Nicolas Capens0530b452017-11-15 16:39:47 -05002376 void OutputASM::source(sw::Shader::SourceParameter &parameter, TIntermNode *argument, int index)
Nicolas Capens0bac2852016-05-07 06:09:58 -04002377 {
2378 if(argument)
2379 {
2380 TIntermTyped *arg = argument->getAsTyped();
2381 Temporary unpackedUniform(this);
2382
2383 const TType& srcType = arg->getType();
2384 TInterfaceBlock* srcBlock = srcType.getInterfaceBlock();
2385 if(srcBlock && (srcType.getQualifier() == EvqUniform))
2386 {
2387 const ArgumentInfo argumentInfo = getArgumentInfo(arg, index);
2388 const TType &memberType = argumentInfo.typedMemberInfo.type;
2389
2390 if(memberType.getBasicType() == EbtBool)
2391 {
Alexis Hetue97a31e2016-11-14 14:10:47 -05002392 ASSERT(argumentInfo.clampedIndex < (memberType.isArray() ? memberType.getArraySize() : 1)); // index < arraySize
Nicolas Capens0bac2852016-05-07 06:09:58 -04002393
2394 // Convert the packed bool, which is currently an int, to a true bool
2395 Instruction *instruction = new Instruction(sw::Shader::OPCODE_I2B);
2396 instruction->dst.type = sw::Shader::PARAMETER_TEMP;
2397 instruction->dst.index = registerIndex(&unpackedUniform);
2398 instruction->src[0].type = sw::Shader::PARAMETER_CONST;
2399 instruction->src[0].bufferIndex = argumentInfo.bufferIndex;
2400 instruction->src[0].index = argumentInfo.typedMemberInfo.offset + argumentInfo.clampedIndex * argumentInfo.typedMemberInfo.arrayStride;
2401
2402 shader->append(instruction);
2403
2404 arg = &unpackedUniform;
2405 index = 0;
2406 }
Alexis Hetud2742532018-01-23 16:53:41 -05002407 else if((memberType.getLayoutQualifier().matrixPacking == EmpRowMajor) && memberType.isMatrix())
Nicolas Capens0bac2852016-05-07 06:09:58 -04002408 {
2409 int numCols = memberType.getNominalSize();
2410 int numRows = memberType.getSecondarySize();
Nicolas Capens0bac2852016-05-07 06:09:58 -04002411
Alexis Hetue97a31e2016-11-14 14:10:47 -05002412 ASSERT(argumentInfo.clampedIndex < (numCols * (memberType.isArray() ? memberType.getArraySize() : 1))); // index < cols * arraySize
Nicolas Capens0bac2852016-05-07 06:09:58 -04002413
2414 unsigned int dstIndex = registerIndex(&unpackedUniform);
2415 unsigned int srcSwizzle = (argumentInfo.clampedIndex % numCols) * 0x55;
2416 int arrayIndex = argumentInfo.clampedIndex / numCols;
2417 int matrixStartOffset = argumentInfo.typedMemberInfo.offset + arrayIndex * argumentInfo.typedMemberInfo.arrayStride;
2418
2419 for(int j = 0; j < numRows; ++j)
2420 {
2421 // Transpose the row major matrix
2422 Instruction *instruction = new Instruction(sw::Shader::OPCODE_MOV);
2423 instruction->dst.type = sw::Shader::PARAMETER_TEMP;
2424 instruction->dst.index = dstIndex;
2425 instruction->dst.mask = 1 << j;
2426 instruction->src[0].type = sw::Shader::PARAMETER_CONST;
2427 instruction->src[0].bufferIndex = argumentInfo.bufferIndex;
2428 instruction->src[0].index = matrixStartOffset + j * argumentInfo.typedMemberInfo.matrixStride;
2429 instruction->src[0].swizzle = srcSwizzle;
2430
2431 shader->append(instruction);
2432 }
2433
2434 arg = &unpackedUniform;
2435 index = 0;
2436 }
2437 }
2438
2439 const ArgumentInfo argumentInfo = getArgumentInfo(arg, index);
2440 const TType &type = argumentInfo.typedMemberInfo.type;
2441
2442 int size = registerSize(type, argumentInfo.clampedIndex);
2443
2444 parameter.type = registerType(arg);
2445 parameter.bufferIndex = argumentInfo.bufferIndex;
2446
2447 if(arg->getAsConstantUnion() && arg->getAsConstantUnion()->getUnionArrayPointer())
2448 {
2449 int component = componentCount(type, argumentInfo.clampedIndex);
2450 ConstantUnion *constants = arg->getAsConstantUnion()->getUnionArrayPointer();
2451
2452 for(int i = 0; i < 4; i++)
2453 {
2454 if(size == 1) // Replicate
2455 {
2456 parameter.value[i] = constants[component + 0].getAsFloat();
2457 }
2458 else if(i < size)
2459 {
2460 parameter.value[i] = constants[component + i].getAsFloat();
2461 }
2462 else
2463 {
2464 parameter.value[i] = 0.0f;
2465 }
2466 }
2467 }
2468 else
2469 {
2470 parameter.index = registerIndex(arg) + argumentInfo.clampedIndex;
2471
2472 if(parameter.bufferIndex != -1)
2473 {
2474 int stride = (argumentInfo.typedMemberInfo.matrixStride > 0) ? argumentInfo.typedMemberInfo.matrixStride : argumentInfo.typedMemberInfo.arrayStride;
2475 parameter.index = argumentInfo.typedMemberInfo.offset + argumentInfo.clampedIndex * stride;
2476 }
2477 }
2478
2479 if(!IsSampler(arg->getBasicType()))
2480 {
2481 parameter.swizzle = readSwizzle(arg, size);
2482 }
2483 }
2484 }
2485
Nicolas Capens0530b452017-11-15 16:39:47 -05002486 void OutputASM::destination(sw::Shader::DestinationParameter &parameter, TIntermTyped *arg, int index)
2487 {
2488 parameter.type = registerType(arg);
2489 parameter.index = registerIndex(arg) + index;
Nicolas Capens3ae571e2017-11-16 15:28:14 -05002490 parameter.mask = writeMask(arg, index);
Nicolas Capens0530b452017-11-15 16:39:47 -05002491 }
2492
Nicolas Capens0bac2852016-05-07 06:09:58 -04002493 void OutputASM::copy(TIntermTyped *dst, TIntermNode *src, int offset)
2494 {
2495 for(int index = 0; index < dst->totalRegisterCount(); index++)
2496 {
2497 Instruction *mov = emit(sw::Shader::OPCODE_MOV, dst, index, src, offset + index);
Nicolas Capens0bac2852016-05-07 06:09:58 -04002498 }
2499 }
2500
2501 int swizzleElement(int swizzle, int index)
2502 {
2503 return (swizzle >> (index * 2)) & 0x03;
2504 }
2505
2506 int swizzleSwizzle(int leftSwizzle, int rightSwizzle)
2507 {
2508 return (swizzleElement(leftSwizzle, swizzleElement(rightSwizzle, 0)) << 0) |
2509 (swizzleElement(leftSwizzle, swizzleElement(rightSwizzle, 1)) << 2) |
2510 (swizzleElement(leftSwizzle, swizzleElement(rightSwizzle, 2)) << 4) |
2511 (swizzleElement(leftSwizzle, swizzleElement(rightSwizzle, 3)) << 6);
2512 }
2513
2514 void OutputASM::assignLvalue(TIntermTyped *dst, TIntermTyped *src)
2515 {
Nicolas Capens84249fd2017-11-09 11:20:51 -05002516 if((src->isVector() && (!dst->isVector() || (src->getNominalSize() != dst->getNominalSize()))) ||
2517 (src->isMatrix() && (!dst->isMatrix() || (src->getNominalSize() != dst->getNominalSize()) || (src->getSecondarySize() != dst->getSecondarySize()))))
Nicolas Capens0bac2852016-05-07 06:09:58 -04002518 {
2519 return mContext.error(src->getLine(), "Result type should match the l-value type in compound assignment", src->isVector() ? "vector" : "matrix");
2520 }
2521
2522 TIntermBinary *binary = dst->getAsBinaryNode();
2523
2524 if(binary && binary->getOp() == EOpIndexIndirect && binary->getLeft()->isVector() && dst->isScalar())
2525 {
2526 Instruction *insert = new Instruction(sw::Shader::OPCODE_INSERT);
2527
Nicolas Capens6986b282017-11-16 10:38:19 -05002528 lvalue(insert->dst, dst);
Nicolas Capens0bac2852016-05-07 06:09:58 -04002529
2530 insert->src[0].type = insert->dst.type;
2531 insert->src[0].index = insert->dst.index;
2532 insert->src[0].rel = insert->dst.rel;
Nicolas Capens0530b452017-11-15 16:39:47 -05002533 source(insert->src[1], src);
2534 source(insert->src[2], binary->getRight());
Nicolas Capens0bac2852016-05-07 06:09:58 -04002535
2536 shader->append(insert);
2537 }
2538 else
2539 {
Nicolas Capens84249fd2017-11-09 11:20:51 -05002540 Instruction *mov1 = new Instruction(sw::Shader::OPCODE_MOV);
2541
Nicolas Capens6986b282017-11-16 10:38:19 -05002542 int swizzle = lvalue(mov1->dst, dst);
Nicolas Capens84249fd2017-11-09 11:20:51 -05002543
Nicolas Capens0530b452017-11-15 16:39:47 -05002544 source(mov1->src[0], src);
Nicolas Capens84249fd2017-11-09 11:20:51 -05002545 mov1->src[0].swizzle = swizzleSwizzle(mov1->src[0].swizzle, swizzle);
2546
2547 shader->append(mov1);
2548
2549 for(int offset = 1; offset < dst->totalRegisterCount(); offset++)
Nicolas Capens0bac2852016-05-07 06:09:58 -04002550 {
2551 Instruction *mov = new Instruction(sw::Shader::OPCODE_MOV);
2552
Nicolas Capens84249fd2017-11-09 11:20:51 -05002553 mov->dst = mov1->dst;
Nicolas Capens0bac2852016-05-07 06:09:58 -04002554 mov->dst.index += offset;
Nicolas Capens84249fd2017-11-09 11:20:51 -05002555 mov->dst.mask = writeMask(dst, offset);
Nicolas Capens0bac2852016-05-07 06:09:58 -04002556
Nicolas Capens0530b452017-11-15 16:39:47 -05002557 source(mov->src[0], src, offset);
Nicolas Capens0bac2852016-05-07 06:09:58 -04002558
2559 shader->append(mov);
2560 }
2561 }
2562 }
2563
Nicolas Capensd469de22017-11-16 10:42:20 -05002564 void OutputASM::evaluateRvalue(TIntermTyped *node)
2565 {
2566 TIntermBinary *binary = node->getAsBinaryNode();
2567
2568 if(binary && binary->getOp() == EOpIndexIndirect && binary->getLeft()->isVector() && node->isScalar())
2569 {
2570 Instruction *insert = new Instruction(sw::Shader::OPCODE_EXTRACT);
2571
2572 destination(insert->dst, node);
2573
2574 Temporary address(this);
2575 unsigned char mask;
2576 TIntermTyped *root = nullptr;
2577 unsigned int offset = 0;
2578 int swizzle = lvalue(root, offset, insert->src[0].rel, mask, address, node);
2579
2580 source(insert->src[0], root, offset);
2581 insert->src[0].swizzle = swizzleSwizzle(insert->src[0].swizzle, swizzle);
2582
2583 source(insert->src[1], binary->getRight());
2584
2585 shader->append(insert);
2586 }
2587 else
2588 {
2589 Instruction *mov1 = new Instruction(sw::Shader::OPCODE_MOV);
2590
2591 destination(mov1->dst, node, 0);
2592
2593 Temporary address(this);
2594 unsigned char mask;
2595 TIntermTyped *root = nullptr;
2596 unsigned int offset = 0;
2597 int swizzle = lvalue(root, offset, mov1->src[0].rel, mask, address, node);
2598
2599 source(mov1->src[0], root, offset);
2600 mov1->src[0].swizzle = swizzleSwizzle(mov1->src[0].swizzle, swizzle);
2601
2602 shader->append(mov1);
2603
2604 for(int i = 1; i < node->totalRegisterCount(); i++)
2605 {
2606 Instruction *mov = emit(sw::Shader::OPCODE_MOV, node, i, root, offset + i);
2607 mov->src[0].rel = mov1->src[0].rel;
2608 }
2609 }
2610 }
2611
Nicolas Capens6986b282017-11-16 10:38:19 -05002612 int OutputASM::lvalue(sw::Shader::DestinationParameter &dst, TIntermTyped *node)
Nicolas Capens0bac2852016-05-07 06:09:58 -04002613 {
Nicolas Capens6986b282017-11-16 10:38:19 -05002614 Temporary address(this);
Nicolas Capens0530b452017-11-15 16:39:47 -05002615 TIntermTyped *root = nullptr;
2616 unsigned int offset = 0;
2617 unsigned char mask = 0xF;
2618 int swizzle = lvalue(root, offset, dst.rel, mask, address, node);
2619
2620 dst.type = registerType(root);
2621 dst.index = registerIndex(root) + offset;
2622 dst.mask = mask;
2623
2624 return swizzle;
2625 }
2626
2627 int OutputASM::lvalue(TIntermTyped *&root, unsigned int &offset, sw::Shader::Relative &rel, unsigned char &mask, Temporary &address, TIntermTyped *node)
2628 {
Nicolas Capens0bac2852016-05-07 06:09:58 -04002629 TIntermTyped *result = node;
2630 TIntermBinary *binary = node->getAsBinaryNode();
2631 TIntermSymbol *symbol = node->getAsSymbolNode();
2632
2633 if(binary)
2634 {
2635 TIntermTyped *left = binary->getLeft();
2636 TIntermTyped *right = binary->getRight();
2637
Nicolas Capens0530b452017-11-15 16:39:47 -05002638 int leftSwizzle = lvalue(root, offset, rel, mask, address, left); // Resolve the l-value of the left side
Nicolas Capens0bac2852016-05-07 06:09:58 -04002639
2640 switch(binary->getOp())
2641 {
2642 case EOpIndexDirect:
2643 {
2644 int rightIndex = right->getAsConstantUnion()->getIConst(0);
2645
2646 if(left->isRegister())
2647 {
Nicolas Capens0530b452017-11-15 16:39:47 -05002648 int leftMask = mask;
Nicolas Capens0bac2852016-05-07 06:09:58 -04002649
Nicolas Capens0530b452017-11-15 16:39:47 -05002650 mask = 1;
2651 while((leftMask & mask) == 0)
Nicolas Capens0bac2852016-05-07 06:09:58 -04002652 {
Nicolas Capens0530b452017-11-15 16:39:47 -05002653 mask = mask << 1;
Nicolas Capens0bac2852016-05-07 06:09:58 -04002654 }
2655
2656 int element = swizzleElement(leftSwizzle, rightIndex);
Nicolas Capens0530b452017-11-15 16:39:47 -05002657 mask = 1 << element;
Nicolas Capens0bac2852016-05-07 06:09:58 -04002658
2659 return element;
2660 }
2661 else if(left->isArray() || left->isMatrix())
2662 {
Nicolas Capens0530b452017-11-15 16:39:47 -05002663 offset += rightIndex * result->totalRegisterCount();
Nicolas Capens0bac2852016-05-07 06:09:58 -04002664 return 0xE4;
2665 }
2666 else UNREACHABLE(0);
2667 }
2668 break;
2669 case EOpIndexIndirect:
2670 {
Nicolas Capens84249fd2017-11-09 11:20:51 -05002671 right->traverse(this);
2672
Nicolas Capens0bac2852016-05-07 06:09:58 -04002673 if(left->isRegister())
2674 {
2675 // Requires INSERT instruction (handled by calling function)
2676 }
2677 else if(left->isArray() || left->isMatrix())
2678 {
2679 int scale = result->totalRegisterCount();
2680
Nicolas Capens0530b452017-11-15 16:39:47 -05002681 if(rel.type == sw::Shader::PARAMETER_VOID) // Use the index register as the relative address directly
Nicolas Capens0bac2852016-05-07 06:09:58 -04002682 {
2683 if(left->totalRegisterCount() > 1)
2684 {
2685 sw::Shader::SourceParameter relativeRegister;
Nicolas Capens0530b452017-11-15 16:39:47 -05002686 source(relativeRegister, right);
Nicolas Capens0bac2852016-05-07 06:09:58 -04002687
Nicolas Capens4b743732018-05-28 13:22:07 -04002688 int indexId = right->getAsSymbolNode() ? right->getAsSymbolNode()->getId() : 0;
2689
Nicolas Capens0530b452017-11-15 16:39:47 -05002690 rel.index = relativeRegister.index;
2691 rel.type = relativeRegister.type;
2692 rel.scale = scale;
Nicolas Capens4b743732018-05-28 13:22:07 -04002693 rel.dynamic = (right->getQualifier() != EvqUniform) && (deterministicVariables.count(indexId) == 0);
Nicolas Capens0bac2852016-05-07 06:09:58 -04002694 }
2695 }
Nicolas Capens0530b452017-11-15 16:39:47 -05002696 else if(rel.index != registerIndex(&address)) // Move the previous index register to the address register
Nicolas Capens0bac2852016-05-07 06:09:58 -04002697 {
2698 if(scale == 1)
2699 {
Nicolas Capens0530b452017-11-15 16:39:47 -05002700 Constant oldScale((int)rel.scale);
Nicolas Capens0bac2852016-05-07 06:09:58 -04002701 Instruction *mad = emit(sw::Shader::OPCODE_IMAD, &address, &address, &oldScale, right);
Nicolas Capens0530b452017-11-15 16:39:47 -05002702 mad->src[0].index = rel.index;
2703 mad->src[0].type = rel.type;
Nicolas Capens0bac2852016-05-07 06:09:58 -04002704 }
2705 else
2706 {
Nicolas Capens0530b452017-11-15 16:39:47 -05002707 Constant oldScale((int)rel.scale);
Nicolas Capens0bac2852016-05-07 06:09:58 -04002708 Instruction *mul = emit(sw::Shader::OPCODE_IMUL, &address, &address, &oldScale);
Nicolas Capens0530b452017-11-15 16:39:47 -05002709 mul->src[0].index = rel.index;
2710 mul->src[0].type = rel.type;
Nicolas Capens0bac2852016-05-07 06:09:58 -04002711
2712 Constant newScale(scale);
2713 emit(sw::Shader::OPCODE_IMAD, &address, right, &newScale, &address);
2714 }
2715
Nicolas Capens0530b452017-11-15 16:39:47 -05002716 rel.type = sw::Shader::PARAMETER_TEMP;
2717 rel.index = registerIndex(&address);
2718 rel.scale = 1;
Nicolas Capens0bac2852016-05-07 06:09:58 -04002719 }
2720 else // Just add the new index to the address register
2721 {
2722 if(scale == 1)
2723 {
2724 emit(sw::Shader::OPCODE_IADD, &address, &address, right);
2725 }
2726 else
2727 {
2728 Constant newScale(scale);
2729 emit(sw::Shader::OPCODE_IMAD, &address, right, &newScale, &address);
2730 }
2731 }
2732 }
2733 else UNREACHABLE(0);
2734 }
2735 break;
2736 case EOpIndexDirectStruct:
2737 case EOpIndexDirectInterfaceBlock:
2738 {
2739 const TFieldList& fields = (binary->getOp() == EOpIndexDirectStruct) ?
2740 left->getType().getStruct()->fields() :
2741 left->getType().getInterfaceBlock()->fields();
2742 int index = right->getAsConstantUnion()->getIConst(0);
2743 int fieldOffset = 0;
2744
2745 for(int i = 0; i < index; i++)
2746 {
2747 fieldOffset += fields[i]->type()->totalRegisterCount();
2748 }
2749
Nicolas Capens0530b452017-11-15 16:39:47 -05002750 offset += fieldOffset;
2751 mask = writeMask(result);
Nicolas Capens0bac2852016-05-07 06:09:58 -04002752
2753 return 0xE4;
2754 }
2755 break;
2756 case EOpVectorSwizzle:
2757 {
2758 ASSERT(left->isRegister());
2759
Nicolas Capens0530b452017-11-15 16:39:47 -05002760 int leftMask = mask;
Nicolas Capens0bac2852016-05-07 06:09:58 -04002761
2762 int swizzle = 0;
2763 int rightMask = 0;
2764
2765 TIntermSequence &sequence = right->getAsAggregate()->getSequence();
2766
2767 for(unsigned int i = 0; i < sequence.size(); i++)
2768 {
2769 int index = sequence[i]->getAsConstantUnion()->getIConst(0);
2770
2771 int element = swizzleElement(leftSwizzle, index);
2772 rightMask = rightMask | (1 << element);
2773 swizzle = swizzle | swizzleElement(leftSwizzle, i) << (element * 2);
2774 }
2775
Nicolas Capens0530b452017-11-15 16:39:47 -05002776 mask = leftMask & rightMask;
Nicolas Capens0bac2852016-05-07 06:09:58 -04002777
2778 return swizzle;
2779 }
2780 break;
2781 default:
2782 UNREACHABLE(binary->getOp()); // Not an l-value operator
2783 break;
2784 }
2785 }
2786 else if(symbol)
2787 {
Nicolas Capens0530b452017-11-15 16:39:47 -05002788 root = symbol;
2789 offset = 0;
2790 mask = writeMask(symbol);
2791
2792 return 0xE4;
2793 }
2794 else
2795 {
2796 node->traverse(this);
2797
2798 root = node;
2799 offset = 0;
2800 mask = writeMask(node);
2801
Nicolas Capens0bac2852016-05-07 06:09:58 -04002802 return 0xE4;
2803 }
2804
2805 return 0xE4;
2806 }
2807
2808 sw::Shader::ParameterType OutputASM::registerType(TIntermTyped *operand)
2809 {
2810 if(isSamplerRegister(operand))
2811 {
2812 return sw::Shader::PARAMETER_SAMPLER;
2813 }
2814
2815 const TQualifier qualifier = operand->getQualifier();
Nicolas Capens0530b452017-11-15 16:39:47 -05002816 if((qualifier == EvqFragColor) || (qualifier == EvqFragData))
Nicolas Capens0bac2852016-05-07 06:09:58 -04002817 {
Nicolas Capens0530b452017-11-15 16:39:47 -05002818 if(((qualifier == EvqFragData) && (outputQualifier == EvqFragColor)) ||
2819 ((qualifier == EvqFragColor) && (outputQualifier == EvqFragData)))
Nicolas Capens0bac2852016-05-07 06:09:58 -04002820 {
2821 mContext.error(operand->getLine(), "static assignment to both gl_FragData and gl_FragColor", "");
2822 }
2823 outputQualifier = qualifier;
2824 }
2825
2826 if(qualifier == EvqConstExpr && (!operand->getAsConstantUnion() || !operand->getAsConstantUnion()->getUnionArrayPointer()))
2827 {
Nicolas Capens7cbb1de2017-12-22 08:54:18 -05002828 // Constant arrays are in the constant register file.
2829 if(operand->isArray() && operand->getArraySize() > 1)
2830 {
2831 return sw::Shader::PARAMETER_CONST;
2832 }
2833 else
2834 {
2835 return sw::Shader::PARAMETER_TEMP;
2836 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04002837 }
2838
2839 switch(qualifier)
2840 {
2841 case EvqTemporary: return sw::Shader::PARAMETER_TEMP;
2842 case EvqGlobal: return sw::Shader::PARAMETER_TEMP;
2843 case EvqConstExpr: return sw::Shader::PARAMETER_FLOAT4LITERAL; // All converted to float
2844 case EvqAttribute: return sw::Shader::PARAMETER_INPUT;
2845 case EvqVaryingIn: return sw::Shader::PARAMETER_INPUT;
2846 case EvqVaryingOut: return sw::Shader::PARAMETER_OUTPUT;
2847 case EvqVertexIn: return sw::Shader::PARAMETER_INPUT;
2848 case EvqFragmentOut: return sw::Shader::PARAMETER_COLOROUT;
2849 case EvqVertexOut: return sw::Shader::PARAMETER_OUTPUT;
2850 case EvqFragmentIn: return sw::Shader::PARAMETER_INPUT;
2851 case EvqInvariantVaryingIn: return sw::Shader::PARAMETER_INPUT; // FIXME: Guarantee invariance at the backend
2852 case EvqInvariantVaryingOut: return sw::Shader::PARAMETER_OUTPUT; // FIXME: Guarantee invariance at the backend
2853 case EvqSmooth: return sw::Shader::PARAMETER_OUTPUT;
2854 case EvqFlat: return sw::Shader::PARAMETER_OUTPUT;
2855 case EvqCentroidOut: return sw::Shader::PARAMETER_OUTPUT;
2856 case EvqSmoothIn: return sw::Shader::PARAMETER_INPUT;
2857 case EvqFlatIn: return sw::Shader::PARAMETER_INPUT;
2858 case EvqCentroidIn: return sw::Shader::PARAMETER_INPUT;
2859 case EvqUniform: return sw::Shader::PARAMETER_CONST;
2860 case EvqIn: return sw::Shader::PARAMETER_TEMP;
2861 case EvqOut: return sw::Shader::PARAMETER_TEMP;
2862 case EvqInOut: return sw::Shader::PARAMETER_TEMP;
2863 case EvqConstReadOnly: return sw::Shader::PARAMETER_TEMP;
2864 case EvqPosition: return sw::Shader::PARAMETER_OUTPUT;
2865 case EvqPointSize: return sw::Shader::PARAMETER_OUTPUT;
2866 case EvqInstanceID: return sw::Shader::PARAMETER_MISCTYPE;
Alexis Hetu877ddfc2017-07-25 17:48:00 -04002867 case EvqVertexID: return sw::Shader::PARAMETER_MISCTYPE;
Nicolas Capens0bac2852016-05-07 06:09:58 -04002868 case EvqFragCoord: return sw::Shader::PARAMETER_MISCTYPE;
2869 case EvqFrontFacing: return sw::Shader::PARAMETER_MISCTYPE;
2870 case EvqPointCoord: return sw::Shader::PARAMETER_INPUT;
2871 case EvqFragColor: return sw::Shader::PARAMETER_COLOROUT;
2872 case EvqFragData: return sw::Shader::PARAMETER_COLOROUT;
2873 case EvqFragDepth: return sw::Shader::PARAMETER_DEPTHOUT;
2874 default: UNREACHABLE(qualifier);
2875 }
2876
2877 return sw::Shader::PARAMETER_VOID;
2878 }
2879
Alexis Hetu12b00502016-05-20 13:01:11 -04002880 bool OutputASM::hasFlatQualifier(TIntermTyped *operand)
2881 {
2882 const TQualifier qualifier = operand->getQualifier();
2883 return qualifier == EvqFlat || qualifier == EvqFlatOut || qualifier == EvqFlatIn;
2884 }
2885
Nicolas Capens0bac2852016-05-07 06:09:58 -04002886 unsigned int OutputASM::registerIndex(TIntermTyped *operand)
2887 {
2888 if(isSamplerRegister(operand))
2889 {
2890 return samplerRegister(operand);
2891 }
Alexis Hetud87b3a82018-04-24 11:13:33 -04002892 else if(operand->getType().totalSamplerRegisterCount() > 0) // Struct containing a sampler
2893 {
2894 samplerRegister(operand); // Make sure the sampler is declared
2895 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04002896
2897 switch(operand->getQualifier())
2898 {
2899 case EvqTemporary: return temporaryRegister(operand);
2900 case EvqGlobal: return temporaryRegister(operand);
2901 case EvqConstExpr: return temporaryRegister(operand); // Unevaluated constant expression
2902 case EvqAttribute: return attributeRegister(operand);
2903 case EvqVaryingIn: return varyingRegister(operand);
2904 case EvqVaryingOut: return varyingRegister(operand);
2905 case EvqVertexIn: return attributeRegister(operand);
2906 case EvqFragmentOut: return fragmentOutputRegister(operand);
2907 case EvqVertexOut: return varyingRegister(operand);
2908 case EvqFragmentIn: return varyingRegister(operand);
2909 case EvqInvariantVaryingIn: return varyingRegister(operand);
2910 case EvqInvariantVaryingOut: return varyingRegister(operand);
2911 case EvqSmooth: return varyingRegister(operand);
2912 case EvqFlat: return varyingRegister(operand);
2913 case EvqCentroidOut: return varyingRegister(operand);
2914 case EvqSmoothIn: return varyingRegister(operand);
2915 case EvqFlatIn: return varyingRegister(operand);
2916 case EvqCentroidIn: return varyingRegister(operand);
2917 case EvqUniform: return uniformRegister(operand);
2918 case EvqIn: return temporaryRegister(operand);
2919 case EvqOut: return temporaryRegister(operand);
2920 case EvqInOut: return temporaryRegister(operand);
2921 case EvqConstReadOnly: return temporaryRegister(operand);
2922 case EvqPosition: return varyingRegister(operand);
2923 case EvqPointSize: return varyingRegister(operand);
Alexis Hetu877ddfc2017-07-25 17:48:00 -04002924 case EvqInstanceID: vertexShader->declareInstanceId(); return sw::Shader::InstanceIDIndex;
2925 case EvqVertexID: vertexShader->declareVertexId(); return sw::Shader::VertexIDIndex;
2926 case EvqFragCoord: pixelShader->declareVPos(); return sw::Shader::VPosIndex;
2927 case EvqFrontFacing: pixelShader->declareVFace(); return sw::Shader::VFaceIndex;
Nicolas Capens0bac2852016-05-07 06:09:58 -04002928 case EvqPointCoord: return varyingRegister(operand);
2929 case EvqFragColor: return 0;
2930 case EvqFragData: return fragmentOutputRegister(operand);
2931 case EvqFragDepth: return 0;
2932 default: UNREACHABLE(operand->getQualifier());
2933 }
2934
2935 return 0;
2936 }
2937
2938 int OutputASM::writeMask(TIntermTyped *destination, int index)
2939 {
2940 if(destination->getQualifier() == EvqPointSize)
2941 {
2942 return 0x2; // Point size stored in the y component
2943 }
2944
2945 return 0xF >> (4 - registerSize(destination->getType(), index));
2946 }
2947
2948 int OutputASM::readSwizzle(TIntermTyped *argument, int size)
2949 {
2950 if(argument->getQualifier() == EvqPointSize)
2951 {
2952 return 0x55; // Point size stored in the y component
2953 }
2954
2955 static const unsigned char swizzleSize[5] = {0x00, 0x00, 0x54, 0xA4, 0xE4}; // (void), xxxx, xyyy, xyzz, xyzw
2956
2957 return swizzleSize[size];
2958 }
2959
2960 // Conservatively checks whether an expression is fast to compute and has no side effects
2961 bool OutputASM::trivial(TIntermTyped *expression, int budget)
2962 {
2963 if(!expression->isRegister())
2964 {
2965 return false;
2966 }
2967
2968 return cost(expression, budget) >= 0;
2969 }
2970
2971 // Returns the remaining computing budget (if < 0 the expression is too expensive or has side effects)
2972 int OutputASM::cost(TIntermNode *expression, int budget)
2973 {
2974 if(budget < 0)
2975 {
2976 return budget;
2977 }
2978
2979 if(expression->getAsSymbolNode())
2980 {
2981 return budget;
2982 }
2983 else if(expression->getAsConstantUnion())
2984 {
2985 return budget;
2986 }
2987 else if(expression->getAsBinaryNode())
2988 {
2989 TIntermBinary *binary = expression->getAsBinaryNode();
2990
2991 switch(binary->getOp())
2992 {
2993 case EOpVectorSwizzle:
2994 case EOpIndexDirect:
2995 case EOpIndexDirectStruct:
2996 case EOpIndexDirectInterfaceBlock:
2997 return cost(binary->getLeft(), budget - 0);
2998 case EOpAdd:
2999 case EOpSub:
3000 case EOpMul:
3001 return cost(binary->getLeft(), cost(binary->getRight(), budget - 1));
3002 default:
3003 return -1;
3004 }
3005 }
3006 else if(expression->getAsUnaryNode())
3007 {
3008 TIntermUnary *unary = expression->getAsUnaryNode();
3009
3010 switch(unary->getOp())
3011 {
3012 case EOpAbs:
3013 case EOpNegative:
3014 return cost(unary->getOperand(), budget - 1);
3015 default:
3016 return -1;
3017 }
3018 }
3019 else if(expression->getAsSelectionNode())
3020 {
3021 TIntermSelection *selection = expression->getAsSelectionNode();
3022
3023 if(selection->usesTernaryOperator())
3024 {
3025 TIntermTyped *condition = selection->getCondition();
3026 TIntermNode *trueBlock = selection->getTrueBlock();
3027 TIntermNode *falseBlock = selection->getFalseBlock();
3028 TIntermConstantUnion *constantCondition = condition->getAsConstantUnion();
3029
3030 if(constantCondition)
3031 {
3032 bool trueCondition = constantCondition->getUnionArrayPointer()->getBConst();
3033
3034 if(trueCondition)
3035 {
3036 return cost(trueBlock, budget - 0);
3037 }
3038 else
3039 {
3040 return cost(falseBlock, budget - 0);
3041 }
3042 }
3043 else
3044 {
3045 return cost(trueBlock, cost(falseBlock, budget - 2));
3046 }
3047 }
3048 }
3049
3050 return -1;
3051 }
3052
3053 const Function *OutputASM::findFunction(const TString &name)
3054 {
3055 for(unsigned int f = 0; f < functionArray.size(); f++)
3056 {
3057 if(functionArray[f].name == name)
3058 {
3059 return &functionArray[f];
3060 }
3061 }
3062
3063 return 0;
3064 }
3065
3066 int OutputASM::temporaryRegister(TIntermTyped *temporary)
3067 {
Alexis Hetu329747c2018-04-09 13:47:34 -04003068 int index = allocate(temporaries, temporary);
3069 if(index >= sw::NUM_TEMPORARY_REGISTERS)
3070 {
3071 mContext.error(temporary->getLine(),
3072 "Too many temporary registers required to compile shader",
3073 pixelShader ? "pixel shader" : "vertex shader");
3074 }
3075 return index;
Nicolas Capens0bac2852016-05-07 06:09:58 -04003076 }
3077
Alexis Hetu49351232017-11-02 16:00:32 -04003078 void OutputASM::setPixelShaderInputs(const TType& type, int var, bool flat)
3079 {
3080 if(type.isStruct())
3081 {
3082 const TFieldList &fields = type.getStruct()->fields();
3083 int fieldVar = var;
Alexis Hetuda163ed2018-01-03 16:36:14 -05003084 for(const auto &field : fields)
Alexis Hetu49351232017-11-02 16:00:32 -04003085 {
Alexis Hetuda163ed2018-01-03 16:36:14 -05003086 const TType& fieldType = *(field->type());
Alexis Hetu49351232017-11-02 16:00:32 -04003087 setPixelShaderInputs(fieldType, fieldVar, flat);
3088 fieldVar += fieldType.totalRegisterCount();
3089 }
3090 }
3091 else
3092 {
3093 for(int i = 0; i < type.totalRegisterCount(); i++)
3094 {
3095 pixelShader->setInput(var + i, type.registerSize(), sw::Shader::Semantic(sw::Shader::USAGE_COLOR, var + i, flat));
3096 }
3097 }
3098 }
3099
Nicolas Capens0bac2852016-05-07 06:09:58 -04003100 int OutputASM::varyingRegister(TIntermTyped *varying)
3101 {
3102 int var = lookup(varyings, varying);
3103
3104 if(var == -1)
3105 {
3106 var = allocate(varyings, varying);
Nicolas Capens0bac2852016-05-07 06:09:58 -04003107 int registerCount = varying->totalRegisterCount();
3108
3109 if(pixelShader)
3110 {
Nicolas Capens3b4c93f2016-05-18 12:51:37 -04003111 if((var + registerCount) > sw::MAX_FRAGMENT_INPUTS)
Nicolas Capens0bac2852016-05-07 06:09:58 -04003112 {
3113 mContext.error(varying->getLine(), "Varyings packing failed: Too many varyings", "fragment shader");
3114 return 0;
3115 }
3116
3117 if(varying->getQualifier() == EvqPointCoord)
3118 {
3119 ASSERT(varying->isRegister());
Alexis Hetu49351232017-11-02 16:00:32 -04003120 pixelShader->setInput(var, varying->registerSize(), sw::Shader::Semantic(sw::Shader::USAGE_TEXCOORD, var));
Nicolas Capens0bac2852016-05-07 06:09:58 -04003121 }
3122 else
3123 {
Alexis Hetu49351232017-11-02 16:00:32 -04003124 setPixelShaderInputs(varying->getType(), var, hasFlatQualifier(varying));
Nicolas Capens0bac2852016-05-07 06:09:58 -04003125 }
3126 }
3127 else if(vertexShader)
3128 {
Nicolas Capensec0936c2016-05-18 12:32:02 -04003129 if((var + registerCount) > sw::MAX_VERTEX_OUTPUTS)
Nicolas Capens0bac2852016-05-07 06:09:58 -04003130 {
3131 mContext.error(varying->getLine(), "Varyings packing failed: Too many varyings", "vertex shader");
3132 return 0;
3133 }
3134
3135 if(varying->getQualifier() == EvqPosition)
3136 {
3137 ASSERT(varying->isRegister());
Alexis Hetu02ad0aa2016-08-02 11:18:14 -04003138 vertexShader->setPositionRegister(var);
Nicolas Capens0bac2852016-05-07 06:09:58 -04003139 }
3140 else if(varying->getQualifier() == EvqPointSize)
3141 {
3142 ASSERT(varying->isRegister());
Alexis Hetu02ad0aa2016-08-02 11:18:14 -04003143 vertexShader->setPointSizeRegister(var);
Nicolas Capens0bac2852016-05-07 06:09:58 -04003144 }
3145 else
3146 {
3147 // Semantic indexes for user varyings will be assigned during program link to match the pixel shader
3148 }
3149 }
3150 else UNREACHABLE(0);
3151
3152 declareVarying(varying, var);
3153 }
3154
3155 return var;
3156 }
3157
3158 void OutputASM::declareVarying(TIntermTyped *varying, int reg)
3159 {
3160 if(varying->getQualifier() != EvqPointCoord) // gl_PointCoord does not need linking
3161 {
Alexis Hetu49351232017-11-02 16:00:32 -04003162 TIntermSymbol *symbol = varying->getAsSymbolNode();
3163 declareVarying(varying->getType(), symbol->getSymbol(), reg);
3164 }
3165 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04003166
Alexis Hetu49351232017-11-02 16:00:32 -04003167 void OutputASM::declareVarying(const TType &type, const TString &varyingName, int registerIndex)
3168 {
3169 const char *name = varyingName.c_str();
3170 VaryingList &activeVaryings = shaderObject->varyings;
3171
3172 TStructure* structure = type.getStruct();
3173 if(structure)
3174 {
3175 int fieldRegisterIndex = registerIndex;
3176
3177 const TFieldList &fields = type.getStruct()->fields();
Alexis Hetuda163ed2018-01-03 16:36:14 -05003178 for(const auto &field : fields)
Alexis Hetu49351232017-11-02 16:00:32 -04003179 {
Alexis Hetuda163ed2018-01-03 16:36:14 -05003180 const TType& fieldType = *(field->type());
3181 declareVarying(fieldType, varyingName + "." + field->name(), fieldRegisterIndex);
Alexis Hetu49351232017-11-02 16:00:32 -04003182 if(fieldRegisterIndex >= 0)
3183 {
3184 fieldRegisterIndex += fieldType.totalRegisterCount();
3185 }
3186 }
3187 }
3188 else
3189 {
Nicolas Capens0bac2852016-05-07 06:09:58 -04003190 // Check if this varying has been declared before without having a register assigned
3191 for(VaryingList::iterator v = activeVaryings.begin(); v != activeVaryings.end(); v++)
3192 {
3193 if(v->name == name)
3194 {
Alexis Hetu49351232017-11-02 16:00:32 -04003195 if(registerIndex >= 0)
Nicolas Capens0bac2852016-05-07 06:09:58 -04003196 {
Alexis Hetu924513c2018-01-05 15:48:12 -05003197 ASSERT(v->registerIndex < 0 || v->registerIndex == registerIndex);
3198 v->registerIndex = registerIndex;
Nicolas Capens0bac2852016-05-07 06:09:58 -04003199 }
3200
3201 return;
3202 }
3203 }
3204
Alexis Hetu924513c2018-01-05 15:48:12 -05003205 activeVaryings.push_back(glsl::Varying(type, name, registerIndex, 0));
Nicolas Capens0bac2852016-05-07 06:09:58 -04003206 }
3207 }
3208
Alexis Hetu930df972018-01-30 16:54:13 -05003209 void OutputASM::declareFragmentOutput(TIntermTyped *fragmentOutput)
3210 {
3211 int requestedLocation = fragmentOutput->getType().getLayoutQualifier().location;
Alexis Hetu17e2e2f2018-02-05 10:41:47 -05003212 int registerCount = fragmentOutput->totalRegisterCount();
3213 if(requestedLocation < 0)
Alexis Hetu930df972018-01-30 16:54:13 -05003214 {
Alexis Hetu3c1d6cf2018-02-06 10:54:49 -05003215 ASSERT(requestedLocation == -1); // All other negative values would have been prevented in TParseContext::parseLayoutQualifier
3216 return; // No requested location
Alexis Hetu930df972018-01-30 16:54:13 -05003217 }
Alexis Hetu17e2e2f2018-02-05 10:41:47 -05003218 else if((requestedLocation + registerCount) > sw::RENDERTARGETS)
Alexis Hetu930df972018-01-30 16:54:13 -05003219 {
3220 mContext.error(fragmentOutput->getLine(), "Fragment output location larger or equal to MAX_DRAW_BUFFERS", "fragment shader");
3221 }
Alexis Hetu17e2e2f2018-02-05 10:41:47 -05003222 else
3223 {
3224 int currentIndex = lookup(fragmentOutputs, fragmentOutput);
3225 if(requestedLocation != currentIndex)
3226 {
3227 if(currentIndex != -1)
3228 {
3229 mContext.error(fragmentOutput->getLine(), "Multiple locations for fragment output", "fragment shader");
3230 }
3231 else
3232 {
3233 if(fragmentOutputs.size() <= (size_t)requestedLocation)
3234 {
3235 while(fragmentOutputs.size() < (size_t)requestedLocation)
3236 {
3237 fragmentOutputs.push_back(nullptr);
3238 }
3239 for(int i = 0; i < registerCount; i++)
3240 {
3241 fragmentOutputs.push_back(fragmentOutput);
3242 }
3243 }
3244 else
3245 {
3246 for(int i = 0; i < registerCount; i++)
3247 {
3248 if(!fragmentOutputs[requestedLocation + i])
3249 {
3250 fragmentOutputs[requestedLocation + i] = fragmentOutput;
3251 }
3252 else
3253 {
3254 mContext.error(fragmentOutput->getLine(), "Fragment output location aliasing", "fragment shader");
3255 return;
3256 }
3257 }
3258 }
3259 }
3260 }
3261 }
Alexis Hetu930df972018-01-30 16:54:13 -05003262 }
3263
Nicolas Capens0bac2852016-05-07 06:09:58 -04003264 int OutputASM::uniformRegister(TIntermTyped *uniform)
3265 {
3266 const TType &type = uniform->getType();
3267 ASSERT(!IsSampler(type.getBasicType()));
3268 TInterfaceBlock *block = type.getAsInterfaceBlock();
3269 TIntermSymbol *symbol = uniform->getAsSymbolNode();
3270 ASSERT(symbol || block);
3271
3272 if(symbol || block)
3273 {
3274 TInterfaceBlock* parentBlock = type.getInterfaceBlock();
3275 bool isBlockMember = (!block && parentBlock);
3276 int index = isBlockMember ? lookup(uniforms, parentBlock) : lookup(uniforms, uniform);
3277
3278 if(index == -1 || isBlockMember)
3279 {
3280 if(index == -1)
3281 {
3282 index = allocate(uniforms, uniform);
3283 }
3284
3285 // Verify if the current uniform is a member of an already declared block
3286 const TString &name = symbol ? symbol->getSymbol() : block->name();
3287 int blockMemberIndex = blockMemberLookup(type, name, index);
3288 if(blockMemberIndex == -1)
3289 {
Alexis Hetuda163ed2018-01-03 16:36:14 -05003290 declareUniform(type, name, index, false);
Nicolas Capens0bac2852016-05-07 06:09:58 -04003291 }
3292 else
3293 {
3294 index = blockMemberIndex;
3295 }
3296 }
3297
3298 return index;
3299 }
3300
3301 return 0;
3302 }
3303
3304 int OutputASM::attributeRegister(TIntermTyped *attribute)
3305 {
3306 ASSERT(!attribute->isArray());
3307
3308 int index = lookup(attributes, attribute);
3309
3310 if(index == -1)
3311 {
3312 TIntermSymbol *symbol = attribute->getAsSymbolNode();
3313 ASSERT(symbol);
3314
3315 if(symbol)
3316 {
3317 index = allocate(attributes, attribute);
3318 const TType &type = attribute->getType();
3319 int registerCount = attribute->totalRegisterCount();
Alexis Hetub7508b82016-09-22 15:36:45 -04003320 sw::VertexShader::AttribType attribType = sw::VertexShader::ATTRIBTYPE_FLOAT;
3321 switch(type.getBasicType())
3322 {
3323 case EbtInt:
3324 attribType = sw::VertexShader::ATTRIBTYPE_INT;
3325 break;
3326 case EbtUInt:
3327 attribType = sw::VertexShader::ATTRIBTYPE_UINT;
3328 break;
3329 case EbtFloat:
3330 default:
3331 break;
3332 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04003333
Nicolas Capensf0aef1a2016-05-18 14:44:21 -04003334 if(vertexShader && (index + registerCount) <= sw::MAX_VERTEX_INPUTS)
Nicolas Capens0bac2852016-05-07 06:09:58 -04003335 {
3336 for(int i = 0; i < registerCount; i++)
3337 {
Alexis Hetub7508b82016-09-22 15:36:45 -04003338 vertexShader->setInput(index + i, sw::Shader::Semantic(sw::Shader::USAGE_TEXCOORD, index + i, false), attribType);
Nicolas Capens0bac2852016-05-07 06:09:58 -04003339 }
3340 }
3341
3342 ActiveAttributes &activeAttributes = shaderObject->activeAttributes;
3343
3344 const char *name = symbol->getSymbol().c_str();
3345 activeAttributes.push_back(Attribute(glVariableType(type), name, type.getArraySize(), type.getLayoutQualifier().location, index));
3346 }
3347 }
3348
3349 return index;
3350 }
3351
3352 int OutputASM::fragmentOutputRegister(TIntermTyped *fragmentOutput)
3353 {
3354 return allocate(fragmentOutputs, fragmentOutput);
3355 }
3356
3357 int OutputASM::samplerRegister(TIntermTyped *sampler)
3358 {
3359 const TType &type = sampler->getType();
3360 ASSERT(IsSampler(type.getBasicType()) || type.isStruct()); // Structures can contain samplers
3361
3362 TIntermSymbol *symbol = sampler->getAsSymbolNode();
3363 TIntermBinary *binary = sampler->getAsBinaryNode();
3364
Nicolas Capensfcb70fd2017-05-17 15:16:51 -04003365 if(symbol)
Nicolas Capens0bac2852016-05-07 06:09:58 -04003366 {
Nicolas Capensfcb70fd2017-05-17 15:16:51 -04003367 switch(type.getQualifier())
3368 {
3369 case EvqUniform:
3370 return samplerRegister(symbol);
3371 case EvqIn:
3372 case EvqConstReadOnly:
3373 // Function arguments are not (uniform) sampler registers
3374 return -1;
3375 default:
3376 UNREACHABLE(type.getQualifier());
3377 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04003378 }
3379 else if(binary)
3380 {
3381 TIntermTyped *left = binary->getLeft();
3382 TIntermTyped *right = binary->getRight();
3383 const TType &leftType = left->getType();
3384 int index = right->getAsConstantUnion() ? right->getAsConstantUnion()->getIConst(0) : 0;
3385 int offset = 0;
3386
3387 switch(binary->getOp())
3388 {
3389 case EOpIndexDirect:
3390 ASSERT(left->isArray());
Alexis Hetuda163ed2018-01-03 16:36:14 -05003391 offset = index * leftType.samplerRegisterCount();
Nicolas Capens0bac2852016-05-07 06:09:58 -04003392 break;
3393 case EOpIndexDirectStruct:
3394 ASSERT(leftType.isStruct());
3395 {
3396 const TFieldList &fields = leftType.getStruct()->fields();
3397
3398 for(int i = 0; i < index; i++)
3399 {
Alexis Hetuda163ed2018-01-03 16:36:14 -05003400 offset += fields[i]->type()->totalSamplerRegisterCount();
Nicolas Capens0bac2852016-05-07 06:09:58 -04003401 }
3402 }
3403 break;
3404 case EOpIndexIndirect: // Indirect indexing produces a temporary, not a sampler register
3405 return -1;
3406 case EOpIndexDirectInterfaceBlock: // Interface blocks can't contain samplers
3407 default:
3408 UNREACHABLE(binary->getOp());
3409 return -1;
3410 }
3411
3412 int base = samplerRegister(left);
3413
3414 if(base < 0)
3415 {
3416 return -1;
3417 }
3418
3419 return base + offset;
3420 }
3421
3422 UNREACHABLE(0);
Nicolas Capensfcb70fd2017-05-17 15:16:51 -04003423 return -1; // Not a (uniform) sampler register
Nicolas Capens0bac2852016-05-07 06:09:58 -04003424 }
3425
3426 int OutputASM::samplerRegister(TIntermSymbol *sampler)
3427 {
3428 const TType &type = sampler->getType();
3429 ASSERT(IsSampler(type.getBasicType()) || type.isStruct()); // Structures can contain samplers
3430
3431 int index = lookup(samplers, sampler);
3432
3433 if(index == -1)
3434 {
Alexis Hetuda163ed2018-01-03 16:36:14 -05003435 index = allocate(samplers, sampler, true);
Nicolas Capens0bac2852016-05-07 06:09:58 -04003436
3437 if(sampler->getQualifier() == EvqUniform)
3438 {
3439 const char *name = sampler->getSymbol().c_str();
Alexis Hetuda163ed2018-01-03 16:36:14 -05003440 declareUniform(type, name, index, true);
Nicolas Capens0bac2852016-05-07 06:09:58 -04003441 }
3442 }
3443
3444 return index;
3445 }
3446
3447 bool OutputASM::isSamplerRegister(TIntermTyped *operand)
3448 {
3449 return operand && IsSampler(operand->getBasicType()) && samplerRegister(operand) >= 0;
3450 }
3451
3452 int OutputASM::lookup(VariableArray &list, TIntermTyped *variable)
3453 {
3454 for(unsigned int i = 0; i < list.size(); i++)
3455 {
3456 if(list[i] == variable)
3457 {
3458 return i; // Pointer match
3459 }
3460 }
3461
3462 TIntermSymbol *varSymbol = variable->getAsSymbolNode();
3463 TInterfaceBlock *varBlock = variable->getType().getAsInterfaceBlock();
3464
3465 if(varBlock)
3466 {
3467 for(unsigned int i = 0; i < list.size(); i++)
3468 {
3469 if(list[i])
3470 {
3471 TInterfaceBlock *listBlock = list[i]->getType().getAsInterfaceBlock();
3472
3473 if(listBlock)
3474 {
3475 if(listBlock->name() == varBlock->name())
3476 {
3477 ASSERT(listBlock->arraySize() == varBlock->arraySize());
3478 ASSERT(listBlock->fields() == varBlock->fields());
3479 ASSERT(listBlock->blockStorage() == varBlock->blockStorage());
3480 ASSERT(listBlock->matrixPacking() == varBlock->matrixPacking());
3481
3482 return i;
3483 }
3484 }
3485 }
3486 }
3487 }
3488 else if(varSymbol)
3489 {
3490 for(unsigned int i = 0; i < list.size(); i++)
3491 {
3492 if(list[i])
3493 {
3494 TIntermSymbol *listSymbol = list[i]->getAsSymbolNode();
3495
3496 if(listSymbol)
3497 {
3498 if(listSymbol->getId() == varSymbol->getId())
3499 {
3500 ASSERT(listSymbol->getSymbol() == varSymbol->getSymbol());
3501 ASSERT(listSymbol->getType() == varSymbol->getType());
3502 ASSERT(listSymbol->getQualifier() == varSymbol->getQualifier());
3503
3504 return i;
3505 }
3506 }
3507 }
3508 }
3509 }
3510
3511 return -1;
3512 }
3513
3514 int OutputASM::lookup(VariableArray &list, TInterfaceBlock *block)
3515 {
3516 for(unsigned int i = 0; i < list.size(); i++)
3517 {
3518 if(list[i] && (list[i]->getType().getInterfaceBlock() == block))
3519 {
3520 return i; // Pointer match
3521 }
3522 }
3523 return -1;
3524 }
3525
Alexis Hetuda163ed2018-01-03 16:36:14 -05003526 int OutputASM::allocate(VariableArray &list, TIntermTyped *variable, bool samplersOnly)
Nicolas Capens0bac2852016-05-07 06:09:58 -04003527 {
3528 int index = lookup(list, variable);
3529
3530 if(index == -1)
3531 {
Alexis Hetuda163ed2018-01-03 16:36:14 -05003532 unsigned int registerCount = variable->blockRegisterCount(samplersOnly);
Nicolas Capens0bac2852016-05-07 06:09:58 -04003533
3534 for(unsigned int i = 0; i < list.size(); i++)
3535 {
3536 if(list[i] == 0)
3537 {
3538 unsigned int j = 1;
3539 for( ; j < registerCount && (i + j) < list.size(); j++)
3540 {
3541 if(list[i + j] != 0)
3542 {
3543 break;
3544 }
3545 }
3546
3547 if(j == registerCount) // Found free slots
3548 {
3549 for(unsigned int j = 0; j < registerCount; j++)
3550 {
3551 list[i + j] = variable;
3552 }
3553
3554 return i;
3555 }
3556 }
3557 }
3558
3559 index = list.size();
3560
3561 for(unsigned int i = 0; i < registerCount; i++)
3562 {
3563 list.push_back(variable);
3564 }
3565 }
3566
3567 return index;
3568 }
3569
3570 void OutputASM::free(VariableArray &list, TIntermTyped *variable)
3571 {
3572 int index = lookup(list, variable);
3573
3574 if(index >= 0)
3575 {
3576 list[index] = 0;
3577 }
3578 }
3579
3580 int OutputASM::blockMemberLookup(const TType &type, const TString &name, int registerIndex)
3581 {
3582 const TInterfaceBlock *block = type.getInterfaceBlock();
3583
3584 if(block)
3585 {
3586 ActiveUniformBlocks &activeUniformBlocks = shaderObject->activeUniformBlocks;
3587 const TFieldList& fields = block->fields();
3588 const TString &blockName = block->name();
3589 int fieldRegisterIndex = registerIndex;
3590
3591 if(!type.isInterfaceBlock())
3592 {
3593 // This is a uniform that's part of a block, let's see if the block is already defined
3594 for(size_t i = 0; i < activeUniformBlocks.size(); ++i)
3595 {
3596 if(activeUniformBlocks[i].name == blockName.c_str())
3597 {
3598 // The block is already defined, find the register for the current uniform and return it
3599 for(size_t j = 0; j < fields.size(); j++)
3600 {
3601 const TString &fieldName = fields[j]->name();
3602 if(fieldName == name)
3603 {
3604 return fieldRegisterIndex;
3605 }
3606
3607 fieldRegisterIndex += fields[j]->type()->totalRegisterCount();
3608 }
3609
3610 ASSERT(false);
3611 return fieldRegisterIndex;
3612 }
3613 }
3614 }
3615 }
3616
3617 return -1;
3618 }
3619
Alexis Hetuda163ed2018-01-03 16:36:14 -05003620 void OutputASM::declareUniform(const TType &type, const TString &name, int registerIndex, bool samplersOnly, int blockId, BlockLayoutEncoder* encoder)
Nicolas Capens0bac2852016-05-07 06:09:58 -04003621 {
3622 const TStructure *structure = type.getStruct();
3623 const TInterfaceBlock *block = (type.isInterfaceBlock() || (blockId == -1)) ? type.getInterfaceBlock() : nullptr;
3624
3625 if(!structure && !block)
3626 {
3627 ActiveUniforms &activeUniforms = shaderObject->activeUniforms;
3628 const BlockMemberInfo blockInfo = encoder ? encoder->encodeType(type) : BlockMemberInfo::getDefaultBlockInfo();
3629 if(blockId >= 0)
3630 {
Nicolas Capensbb2bcae2018-02-05 11:12:10 -05003631 blockDefinitions[blockId].insert(BlockDefinitionIndexMap::value_type(registerIndex, TypedMemberInfo(blockInfo, type)));
Nicolas Capens0bac2852016-05-07 06:09:58 -04003632 shaderObject->activeUniformBlocks[blockId].fields.push_back(activeUniforms.size());
3633 }
3634 int fieldRegisterIndex = encoder ? shaderObject->activeUniformBlocks[blockId].registerIndex + BlockLayoutEncoder::getBlockRegister(blockInfo) : registerIndex;
Alexis Hetuda163ed2018-01-03 16:36:14 -05003635 bool isSampler = IsSampler(type.getBasicType());
3636 if(isSampler && samplersOnly)
Nicolas Capens0bac2852016-05-07 06:09:58 -04003637 {
3638 for(int i = 0; i < type.totalRegisterCount(); i++)
3639 {
3640 shader->declareSampler(fieldRegisterIndex + i);
3641 }
3642 }
Alexis Hetu924513c2018-01-05 15:48:12 -05003643 if(isSampler == samplersOnly)
Alexis Hetuda163ed2018-01-03 16:36:14 -05003644 {
Alexis Hetu924513c2018-01-05 15:48:12 -05003645 activeUniforms.push_back(Uniform(type, name.c_str(), fieldRegisterIndex, blockId, blockInfo));
Alexis Hetuda163ed2018-01-03 16:36:14 -05003646 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04003647 }
3648 else if(block)
3649 {
3650 ActiveUniformBlocks &activeUniformBlocks = shaderObject->activeUniformBlocks;
3651 const TFieldList& fields = block->fields();
3652 const TString &blockName = block->name();
3653 int fieldRegisterIndex = registerIndex;
3654 bool isUniformBlockMember = !type.isInterfaceBlock() && (blockId == -1);
3655
3656 blockId = activeUniformBlocks.size();
3657 bool isRowMajor = block->matrixPacking() == EmpRowMajor;
3658 activeUniformBlocks.push_back(UniformBlock(blockName.c_str(), 0, block->arraySize(),
3659 block->blockStorage(), isRowMajor, registerIndex, blockId));
3660 blockDefinitions.push_back(BlockDefinitionIndexMap());
3661
Alexis Hetud2742532018-01-23 16:53:41 -05003662 Std140BlockEncoder currentBlockEncoder;
Nicolas Capens0bac2852016-05-07 06:09:58 -04003663 currentBlockEncoder.enterAggregateType();
Alexis Hetuda163ed2018-01-03 16:36:14 -05003664 for(const auto &field : fields)
Nicolas Capens0bac2852016-05-07 06:09:58 -04003665 {
Alexis Hetuda163ed2018-01-03 16:36:14 -05003666 const TType &fieldType = *(field->type());
3667 const TString &fieldName = field->name();
Nicolas Capens0bac2852016-05-07 06:09:58 -04003668 if(isUniformBlockMember && (fieldName == name))
3669 {
3670 registerIndex = fieldRegisterIndex;
3671 }
3672
3673 const TString uniformName = block->hasInstanceName() ? blockName + "." + fieldName : fieldName;
3674
Alexis Hetuda163ed2018-01-03 16:36:14 -05003675 declareUniform(fieldType, uniformName, fieldRegisterIndex, samplersOnly, blockId, &currentBlockEncoder);
Nicolas Capens0bac2852016-05-07 06:09:58 -04003676 fieldRegisterIndex += fieldType.totalRegisterCount();
3677 }
3678 currentBlockEncoder.exitAggregateType();
3679 activeUniformBlocks[blockId].dataSize = currentBlockEncoder.getBlockSize();
3680 }
3681 else
3682 {
Alexis Hetu924513c2018-01-05 15:48:12 -05003683 // Store struct for program link time validation
3684 shaderObject->activeUniformStructs.push_back(Uniform(type, name.c_str(), registerIndex, -1, BlockMemberInfo::getDefaultBlockInfo()));
3685
Nicolas Capens0bac2852016-05-07 06:09:58 -04003686 int fieldRegisterIndex = registerIndex;
3687
3688 const TFieldList& fields = structure->fields();
3689 if(type.isArray() && (structure || type.isInterfaceBlock()))
3690 {
3691 for(int i = 0; i < type.getArraySize(); i++)
3692 {
3693 if(encoder)
3694 {
3695 encoder->enterAggregateType();
3696 }
Alexis Hetuda163ed2018-01-03 16:36:14 -05003697 for(const auto &field : fields)
Nicolas Capens0bac2852016-05-07 06:09:58 -04003698 {
Alexis Hetuda163ed2018-01-03 16:36:14 -05003699 const TType &fieldType = *(field->type());
3700 const TString &fieldName = field->name();
Nicolas Capens0bac2852016-05-07 06:09:58 -04003701 const TString uniformName = name + "[" + str(i) + "]." + fieldName;
3702
Alexis Hetuda163ed2018-01-03 16:36:14 -05003703 declareUniform(fieldType, uniformName, fieldRegisterIndex, samplersOnly, blockId, encoder);
3704 fieldRegisterIndex += samplersOnly ? fieldType.totalSamplerRegisterCount() : fieldType.totalRegisterCount();
Nicolas Capens0bac2852016-05-07 06:09:58 -04003705 }
3706 if(encoder)
3707 {
3708 encoder->exitAggregateType();
3709 }
3710 }
3711 }
3712 else
3713 {
3714 if(encoder)
3715 {
3716 encoder->enterAggregateType();
3717 }
Alexis Hetuda163ed2018-01-03 16:36:14 -05003718 for(const auto &field : fields)
Nicolas Capens0bac2852016-05-07 06:09:58 -04003719 {
Alexis Hetuda163ed2018-01-03 16:36:14 -05003720 const TType &fieldType = *(field->type());
3721 const TString &fieldName = field->name();
Nicolas Capens0bac2852016-05-07 06:09:58 -04003722 const TString uniformName = name + "." + fieldName;
3723
Alexis Hetuda163ed2018-01-03 16:36:14 -05003724 declareUniform(fieldType, uniformName, fieldRegisterIndex, samplersOnly, blockId, encoder);
3725 fieldRegisterIndex += samplersOnly ? fieldType.totalSamplerRegisterCount() : fieldType.totalRegisterCount();
Nicolas Capens0bac2852016-05-07 06:09:58 -04003726 }
3727 if(encoder)
3728 {
3729 encoder->exitAggregateType();
3730 }
3731 }
3732 }
3733 }
3734
Nicolas Capens0bac2852016-05-07 06:09:58 -04003735 int OutputASM::dim(TIntermNode *v)
3736 {
3737 TIntermTyped *vector = v->getAsTyped();
3738 ASSERT(vector && vector->isRegister());
3739 return vector->getNominalSize();
3740 }
3741
3742 int OutputASM::dim2(TIntermNode *m)
3743 {
3744 TIntermTyped *matrix = m->getAsTyped();
3745 ASSERT(matrix && matrix->isMatrix() && !matrix->isArray());
3746 return matrix->getSecondarySize();
3747 }
3748
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003749 // Sets iterations to ~0u if no loop count could be statically determined.
3750 OutputASM::LoopInfo::LoopInfo(TIntermLoop *node)
Nicolas Capens0bac2852016-05-07 06:09:58 -04003751 {
3752 // Parse loops of the form:
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003753 // for(int index = initial; index [comparator] limit; index [op] increment)
Nicolas Capens0bac2852016-05-07 06:09:58 -04003754
3755 // Parse index name and intial value
3756 if(node->getInit())
3757 {
3758 TIntermAggregate *init = node->getInit()->getAsAggregate();
3759
3760 if(init)
3761 {
3762 TIntermSequence &sequence = init->getSequence();
3763 TIntermTyped *variable = sequence[0]->getAsTyped();
3764
Nicolas Capense3f05552017-05-24 10:45:56 -04003765 if(variable && variable->getQualifier() == EvqTemporary && variable->getBasicType() == EbtInt)
Nicolas Capens0bac2852016-05-07 06:09:58 -04003766 {
3767 TIntermBinary *assign = variable->getAsBinaryNode();
3768
Nicolas Capensd0bfd912017-05-24 10:20:24 -04003769 if(assign && assign->getOp() == EOpInitialize)
Nicolas Capens0bac2852016-05-07 06:09:58 -04003770 {
3771 TIntermSymbol *symbol = assign->getLeft()->getAsSymbolNode();
3772 TIntermConstantUnion *constant = assign->getRight()->getAsConstantUnion();
3773
3774 if(symbol && constant)
3775 {
3776 if(constant->getBasicType() == EbtInt && constant->getNominalSize() == 1)
3777 {
3778 index = symbol;
3779 initial = constant->getUnionArrayPointer()[0].getIConst();
3780 }
3781 }
3782 }
3783 }
3784 }
3785 }
3786
3787 // Parse comparator and limit value
3788 if(index && node->getCondition())
3789 {
3790 TIntermBinary *test = node->getCondition()->getAsBinaryNode();
Alexis Hetu7be70cf2016-05-11 10:56:43 -04003791 TIntermSymbol *left = test ? test->getLeft()->getAsSymbolNode() : nullptr;
Nicolas Capens0bac2852016-05-07 06:09:58 -04003792
Alexis Hetu7be70cf2016-05-11 10:56:43 -04003793 if(left && (left->getId() == index->getId()))
Nicolas Capens0bac2852016-05-07 06:09:58 -04003794 {
3795 TIntermConstantUnion *constant = test->getRight()->getAsConstantUnion();
3796
3797 if(constant)
3798 {
3799 if(constant->getBasicType() == EbtInt && constant->getNominalSize() == 1)
3800 {
3801 comparator = test->getOp();
3802 limit = constant->getUnionArrayPointer()[0].getIConst();
3803 }
3804 }
3805 }
3806 }
3807
3808 // Parse increment
3809 if(index && comparator != EOpNull && node->getExpression())
3810 {
3811 TIntermBinary *binaryTerminal = node->getExpression()->getAsBinaryNode();
3812 TIntermUnary *unaryTerminal = node->getExpression()->getAsUnaryNode();
3813
3814 if(binaryTerminal)
3815 {
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003816 TIntermSymbol *operand = binaryTerminal->getLeft()->getAsSymbolNode();
Nicolas Capens0bac2852016-05-07 06:09:58 -04003817
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003818 if(operand && operand->getId() == index->getId())
Nicolas Capens0bac2852016-05-07 06:09:58 -04003819 {
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003820 TOperator op = binaryTerminal->getOp();
3821 TIntermConstantUnion *constant = binaryTerminal->getRight()->getAsConstantUnion();
Nicolas Capens0bac2852016-05-07 06:09:58 -04003822
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003823 if(constant)
3824 {
3825 if(constant->getBasicType() == EbtInt && constant->getNominalSize() == 1)
Nicolas Capens0bac2852016-05-07 06:09:58 -04003826 {
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003827 int value = constant->getUnionArrayPointer()[0].getIConst();
3828
3829 switch(op)
3830 {
3831 case EOpAddAssign: increment = value; break;
3832 case EOpSubAssign: increment = -value; break;
3833 default: increment = 0; break; // Rare cases left unhandled. Treated as non-deterministic.
3834 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04003835 }
3836 }
3837 }
3838 }
3839 else if(unaryTerminal)
3840 {
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003841 TIntermSymbol *operand = unaryTerminal->getOperand()->getAsSymbolNode();
Nicolas Capens0bac2852016-05-07 06:09:58 -04003842
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003843 if(operand && operand->getId() == index->getId())
Nicolas Capens0bac2852016-05-07 06:09:58 -04003844 {
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003845 TOperator op = unaryTerminal->getOp();
3846
3847 switch(op)
3848 {
3849 case EOpPostIncrement: increment = 1; break;
3850 case EOpPostDecrement: increment = -1; break;
3851 case EOpPreIncrement: increment = 1; break;
3852 case EOpPreDecrement: increment = -1; break;
3853 default: increment = 0; break; // Rare cases left unhandled. Treated as non-deterministic.
3854 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04003855 }
3856 }
3857 }
3858
3859 if(index && comparator != EOpNull && increment != 0)
3860 {
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003861 // Check the loop body for return statements or changes to the index variable that make it non-deterministic.
3862 LoopUnrollable loopUnrollable;
3863 bool unrollable = loopUnrollable.traverse(node, index->getId());
3864
3865 if(!unrollable)
3866 {
3867 iterations = ~0u;
3868 return;
3869 }
3870
Nicolas Capens0bac2852016-05-07 06:09:58 -04003871 if(comparator == EOpLessThanEqual)
3872 {
3873 comparator = EOpLessThan;
3874 limit += 1;
3875 }
Nicolas Capense3f05552017-05-24 10:45:56 -04003876 else if(comparator == EOpGreaterThanEqual)
3877 {
3878 comparator = EOpLessThan;
3879 limit -= 1;
3880 std::swap(initial, limit);
3881 increment = -increment;
3882 }
3883 else if(comparator == EOpGreaterThan)
3884 {
3885 comparator = EOpLessThan;
3886 std::swap(initial, limit);
3887 increment = -increment;
3888 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04003889
3890 if(comparator == EOpLessThan)
3891 {
Nicolas Capens930b7002017-01-06 17:22:13 -05003892 if(!(initial < limit)) // Never loops
Nicolas Capens0bac2852016-05-07 06:09:58 -04003893 {
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003894 iterations = 0;
Nicolas Capens930b7002017-01-06 17:22:13 -05003895 }
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003896 else if(increment < 0)
Nicolas Capens930b7002017-01-06 17:22:13 -05003897 {
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003898 iterations = ~0u;
Nicolas Capens0bac2852016-05-07 06:09:58 -04003899 }
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003900 else
3901 {
3902 iterations = (limit - initial + abs(increment) - 1) / increment; // Ceiling division
3903 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04003904 }
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003905 else
3906 {
3907 // Rare cases left unhandled. Treated as non-deterministic.
3908 iterations = ~0u;
3909 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04003910 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04003911 }
3912
Nicolas Capens493fc542018-05-29 17:11:37 -04003913 bool LoopUnrollable::traverse(TIntermLoop *loop, int indexId)
Nicolas Capens0bac2852016-05-07 06:09:58 -04003914 {
Nicolas Capens0bac2852016-05-07 06:09:58 -04003915 loopUnrollable = true;
3916
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003917 loopIndexId = indexId;
Nicolas Capens493fc542018-05-29 17:11:37 -04003918 TIntermNode *body = loop->getBody();
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003919
Nicolas Capens493fc542018-05-29 17:11:37 -04003920 if(body)
3921 {
3922 body->traverse(this);
3923 }
Nicolas Capens0bac2852016-05-07 06:09:58 -04003924
3925 return loopUnrollable;
3926 }
3927
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003928 void LoopUnrollable::visitSymbol(TIntermSymbol *node)
3929 {
3930 // Check that the loop index is not used as the argument to a function out or inout parameter.
3931 if(node->getId() == loopIndexId)
3932 {
3933 if(node->getQualifier() == EvqOut || node->getQualifier() == EvqInOut)
3934 {
3935 loopUnrollable = false;
3936 }
3937 }
3938 }
3939
3940 bool LoopUnrollable::visitBinary(Visit visit, TIntermBinary *node)
3941 {
3942 if(!loopUnrollable)
3943 {
3944 return false;
3945 }
3946
3947 // Check that the loop index is not statically assigned to.
3948 TIntermSymbol *symbol = node->getLeft()->getAsSymbolNode();
Nicolas Capens493fc542018-05-29 17:11:37 -04003949 loopUnrollable = !(node->modifiesState() && symbol && (symbol->getId() == loopIndexId));
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003950
3951 return loopUnrollable;
3952 }
3953
3954 bool LoopUnrollable::visitUnary(Visit visit, TIntermUnary *node)
3955 {
3956 if(!loopUnrollable)
3957 {
3958 return false;
3959 }
3960
3961 // Check that the loop index is not statically assigned to.
3962 TIntermSymbol *symbol = node->getOperand()->getAsSymbolNode();
Nicolas Capens493fc542018-05-29 17:11:37 -04003963 loopUnrollable = !(node->modifiesState() && symbol && (symbol->getId() == loopIndexId));
Nicolas Capensac3f2fa2018-05-28 12:25:57 -04003964
3965 return loopUnrollable;
3966 }
3967
Nicolas Capens0bac2852016-05-07 06:09:58 -04003968 bool LoopUnrollable::visitBranch(Visit visit, TIntermBranch *node)
3969 {
3970 if(!loopUnrollable)
3971 {
3972 return false;
3973 }
3974
Nicolas Capens0bac2852016-05-07 06:09:58 -04003975 switch(node->getFlowOp())
3976 {
3977 case EOpKill:
3978 case EOpReturn:
Nicolas Capens0bac2852016-05-07 06:09:58 -04003979 case EOpBreak:
3980 case EOpContinue:
3981 loopUnrollable = false;
3982 break;
3983 default: UNREACHABLE(node->getFlowOp());
3984 }
3985
3986 return loopUnrollable;
3987 }
3988
3989 bool LoopUnrollable::visitAggregate(Visit visit, TIntermAggregate *node)
3990 {
3991 return loopUnrollable;
3992 }
3993}