blob: 36a1338de8fa25ba6f369708efb1470ecafdec25 [file] [log] [blame]
Brian Osmanb380e712019-07-24 17:02:39 -04001/*
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04002 * Copyright 2019 Google LLC
3 *
4 * Use of this source code is governed by a BSD-style license that can be
5 * found in the LICENSE file.
6 */
7
Mike Kleinc0bd9f92019-04-23 12:05:21 -05008#include "src/sksl/SkSLByteCodeGenerator.h"
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04009
Ben Wagner470e0ac2020-01-22 16:59:21 -050010#include <algorithm>
11
Ethan Nicholas0e9401d2019-03-21 11:05:37 -040012namespace SkSL {
13
Ben Wagner470e0ac2020-01-22 16:59:21 -050014static TypeCategory type_category(const Type& type) {
15 switch (type.kind()) {
16 case Type::Kind::kVector_Kind:
17 case Type::Kind::kMatrix_Kind:
18 return type_category(type.componentType());
19 default:
20 if (type.fName == "bool") {
21 return TypeCategory::kBool;
22 } else if (type.fName == "int" ||
23 type.fName == "short" ||
24 type.fName == "$intLiteral") {
25 return TypeCategory::kSigned;
26 } else if (type.fName == "uint" ||
27 type.fName == "ushort") {
28 return TypeCategory::kUnsigned;
29 } else {
30 SkASSERT(type.fName == "float" ||
31 type.fName == "half" ||
32 type.fName == "$floatLiteral");
33 return TypeCategory::kFloat;
34 }
35 ABORT("unsupported type: %s\n", type.displayName().c_str());
36 }
37}
38
39
40ByteCodeGenerator::ByteCodeGenerator(const Context* context, const Program* program, ErrorReporter* errors,
41 ByteCode* output)
Ethan Nicholas82162ee2019-05-21 16:05:08 -040042 : INHERITED(program, errors, nullptr)
Ben Wagner470e0ac2020-01-22 16:59:21 -050043 , fContext(*context)
Ethan Nicholasae9633b2019-05-24 12:46:34 -040044 , fOutput(output)
45 , fIntrinsics {
Ben Wagner470e0ac2020-01-22 16:59:21 -050046 { "cos", ByteCodeInstruction::kCos },
Brian Osman886af0d2019-07-26 15:12:56 -040047 { "dot", SpecialIntrinsic::kDot },
Ben Wagner470e0ac2020-01-22 16:59:21 -050048 { "inverse", ByteCodeInstruction::kInverse2x2 },
49 { "sin", ByteCodeInstruction::kSin },
50 { "sqrt", ByteCodeInstruction::kSqrt },
51 { "tan", ByteCodeInstruction::kTan },
52 } {}
53
Ethan Nicholas82162ee2019-05-21 16:05:08 -040054
Brian Osman07c117b2019-05-23 12:51:06 -070055int ByteCodeGenerator::SlotCount(const Type& type) {
Brian Osmanfba386b2019-06-20 14:54:15 -040056 if (type.kind() == Type::kOther_Kind) {
57 return 0;
58 } else if (type.kind() == Type::kStruct_Kind) {
Brian Osman07c117b2019-05-23 12:51:06 -070059 int slots = 0;
60 for (const auto& f : type.fields()) {
61 slots += SlotCount(*f.fType);
62 }
63 SkASSERT(slots <= 255);
64 return slots;
65 } else if (type.kind() == Type::kArray_Kind) {
66 int columns = type.columns();
67 SkASSERT(columns >= 0);
68 int slots = columns * SlotCount(type.componentType());
69 SkASSERT(slots <= 255);
70 return slots;
71 } else {
72 return type.columns() * type.rows();
73 }
Ethan Nicholas0e9401d2019-03-21 11:05:37 -040074}
75
Brian Osman1c110a02019-10-01 14:53:32 -040076static inline bool is_uniform(const SkSL::Variable& var) {
77 return var.fModifiers.fFlags & Modifiers::kUniform_Flag;
78}
79
Brian Osmaneadfeb92020-01-09 12:43:03 -050080static inline bool is_in(const SkSL::Variable& var) {
81 return var.fModifiers.fFlags & Modifiers::kIn_Flag;
82}
Ben Wagner470e0ac2020-01-22 16:59:21 -050083
84void ByteCodeGenerator::gatherUniforms(const Type& type, const String& name) {
85 if (type.kind() == Type::kOther_Kind) {
86 return;
87 } else if (type.kind() == Type::kStruct_Kind) {
88 for (const auto& f : type.fields()) {
89 this->gatherUniforms(*f.fType, name + "." + f.fName);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -050090 }
Ben Wagner470e0ac2020-01-22 16:59:21 -050091 } else if (type.kind() == Type::kArray_Kind) {
92 for (int i = 0; i < type.columns(); ++i) {
93 this->gatherUniforms(type.componentType(), String::printf("%s[%d]", name.c_str(), i));
Ethan Nicholas7deb1c22020-01-22 10:31:55 -050094 }
Ben Wagner470e0ac2020-01-22 16:59:21 -050095 } else {
96 fOutput->fUniforms.push_back({ name, type_category(type), type.rows(), type.columns(),
97 fOutput->fUniformSlotCount });
98 fOutput->fUniformSlotCount += type.columns() * type.rows();
99 }
100}
101
102bool ByteCodeGenerator::generateCode() {
103 for (const auto& e : fProgram) {
104 switch (e.fKind) {
105 case ProgramElement::kFunction_Kind: {
106 std::unique_ptr<ByteCodeFunction> f = this->writeFunction((FunctionDefinition&) e);
107 if (!f) {
108 return false;
109 }
110 fOutput->fFunctions.push_back(std::move(f));
111 fFunctions.push_back(&(FunctionDefinition&)e);
112 break;
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500113 }
Ben Wagner470e0ac2020-01-22 16:59:21 -0500114 case ProgramElement::kVar_Kind: {
115 VarDeclarations& decl = (VarDeclarations&) e;
116 for (const auto& v : decl.fVars) {
117 const Variable* declVar = ((VarDeclaration&) *v).fVar;
118 if (declVar->fModifiers.fLayout.fBuiltin >= 0 || is_in(*declVar)) {
119 continue;
120 }
121 if (is_uniform(*declVar)) {
122 this->gatherUniforms(declVar->fType, declVar->fName);
123 } else {
124 fOutput->fGlobalSlotCount += SlotCount(declVar->fType);
Ethan Nicholas0e9401d2019-03-21 11:05:37 -0400125 }
126 }
Ben Wagner470e0ac2020-01-22 16:59:21 -0500127 break;
Ethan Nicholas0e9401d2019-03-21 11:05:37 -0400128 }
Ben Wagner470e0ac2020-01-22 16:59:21 -0500129 default:
130 ; // ignore
Ethan Nicholas0e9401d2019-03-21 11:05:37 -0400131 }
132 }
Ben Wagner470e0ac2020-01-22 16:59:21 -0500133 return 0 == fErrors.errorCount();
134}
135
136std::unique_ptr<ByteCodeFunction> ByteCodeGenerator::writeFunction(const FunctionDefinition& f) {
137 fFunction = &f;
138 std::unique_ptr<ByteCodeFunction> result(new ByteCodeFunction(&f.fDeclaration));
139 fParameterCount = result->fParameterCount;
140 fLoopCount = fMaxLoopCount = 0;
141 fConditionCount = fMaxConditionCount = 0;
142 fStackCount = fMaxStackCount = 0;
143 fCode = &result->fCode;
144
145 this->writeStatement(*f.fBody);
146 if (0 == fErrors.errorCount()) {
147 SkASSERT(fLoopCount == 0);
148 SkASSERT(fConditionCount == 0);
149 SkASSERT(fStackCount == 0);
150 }
151 this->write(ByteCodeInstruction::kReturn, 0);
152 this->write8(0);
153
154 result->fLocalCount = fLocals.size();
155 result->fConditionCount = fMaxConditionCount;
156 result->fLoopCount = fMaxLoopCount;
157 result->fStackCount = fMaxStackCount;
158
159 const Type& returnType = f.fDeclaration.fReturnType;
160 if (returnType != *fContext.fVoid_Type) {
161 result->fReturnCount = SlotCount(returnType);
162 }
163 fLocals.clear();
164 fFunction = nullptr;
165 return result;
Ethan Nicholas0e9401d2019-03-21 11:05:37 -0400166}
167
Brian Osman0785db02019-05-24 14:19:11 -0400168// A "simple" Swizzle is based on a variable (or a compound variable like a struct or array), and
169// that references consecutive values, such that it can be implemented using normal load/store ops
170// with an offset. Note that all single-component swizzles (of suitable base types) are simple.
171static bool swizzle_is_simple(const Swizzle& s) {
172 switch (s.fBase->fKind) {
173 case Expression::kFieldAccess_Kind:
174 case Expression::kIndex_Kind:
175 case Expression::kVariableReference_Kind:
176 break;
177 default:
178 return false;
179 }
180
181 for (size_t i = 1; i < s.fComponents.size(); ++i) {
182 if (s.fComponents[i] != s.fComponents[i - 1] + 1) {
183 return false;
184 }
185 }
186 return true;
187}
188
Ben Wagner470e0ac2020-01-22 16:59:21 -0500189int ByteCodeGenerator::StackUsage(ByteCodeInstruction inst, int count_) {
190 // Ensures that we use count iff we're passed a non-default value. Most instructions have an
191 // implicit count, so the caller shouldn't need to worry about it (or count makes no sense).
192 // The asserts avoids callers thinking they're supplying useful information in that scenario,
193 // or failing to supply necessary information for the ops that need a count.
194 struct CountValue {
195 operator int() {
196 SkASSERT(val != ByteCodeGenerator::kUnusedStackCount);
197 SkDEBUGCODE(used = true);
198 return val;
199 }
200 ~CountValue() {
201 SkASSERT(used || val == ByteCodeGenerator::kUnusedStackCount);
202 }
203 int val;
204 SkDEBUGCODE(bool used = false;)
205 } count = { count_ };
206
207 switch (inst) {
208 // Unary functions/operators that don't change stack depth at all:
209#define VECTOR_UNARY_OP(base) \
210 case ByteCodeInstruction::base: \
211 case ByteCodeInstruction::base ## 2: \
212 case ByteCodeInstruction::base ## 3: \
213 case ByteCodeInstruction::base ## 4: \
214 return 0;
215
216 VECTOR_UNARY_OP(kConvertFtoI)
217 VECTOR_UNARY_OP(kConvertStoF)
218 VECTOR_UNARY_OP(kConvertUtoF)
219
220 VECTOR_UNARY_OP(kCos)
221 VECTOR_UNARY_OP(kSin)
222 VECTOR_UNARY_OP(kSqrt)
223 VECTOR_UNARY_OP(kTan)
224
225 VECTOR_UNARY_OP(kNegateF)
226 VECTOR_UNARY_OP(kNegateI)
227
228 case ByteCodeInstruction::kInverse2x2:
229 case ByteCodeInstruction::kInverse3x3:
230 case ByteCodeInstruction::kInverse4x4: return 0;
231
232 case ByteCodeInstruction::kClampIndex: return 0;
233 case ByteCodeInstruction::kNotB: return 0;
234 case ByteCodeInstruction::kNegateFN: return 0;
235 case ByteCodeInstruction::kShiftLeft: return 0;
236 case ByteCodeInstruction::kShiftRightS: return 0;
237 case ByteCodeInstruction::kShiftRightU: return 0;
238
239#undef VECTOR_UNARY_OP
240
241 // Binary functions/operators that do a 2 -> 1 reduction (possibly N times)
242#define VECTOR_BINARY_OP(base) \
243 case ByteCodeInstruction::base: return -1; \
244 case ByteCodeInstruction::base ## 2: return -2; \
245 case ByteCodeInstruction::base ## 3: return -3; \
246 case ByteCodeInstruction::base ## 4: return -4;
247
248#define VECTOR_MATRIX_BINARY_OP(base) \
249 VECTOR_BINARY_OP(base) \
250 case ByteCodeInstruction::base ## N: return -count;
251
252 case ByteCodeInstruction::kAndB: return -1;
253 case ByteCodeInstruction::kOrB: return -1;
254 case ByteCodeInstruction::kXorB: return -1;
255
256 VECTOR_BINARY_OP(kAddI)
257 VECTOR_MATRIX_BINARY_OP(kAddF)
258
259 VECTOR_BINARY_OP(kCompareIEQ)
260 VECTOR_MATRIX_BINARY_OP(kCompareFEQ)
261 VECTOR_BINARY_OP(kCompareINEQ)
262 VECTOR_MATRIX_BINARY_OP(kCompareFNEQ)
263 VECTOR_BINARY_OP(kCompareSGT)
264 VECTOR_BINARY_OP(kCompareUGT)
265 VECTOR_BINARY_OP(kCompareFGT)
266 VECTOR_BINARY_OP(kCompareSGTEQ)
267 VECTOR_BINARY_OP(kCompareUGTEQ)
268 VECTOR_BINARY_OP(kCompareFGTEQ)
269 VECTOR_BINARY_OP(kCompareSLT)
270 VECTOR_BINARY_OP(kCompareULT)
271 VECTOR_BINARY_OP(kCompareFLT)
272 VECTOR_BINARY_OP(kCompareSLTEQ)
273 VECTOR_BINARY_OP(kCompareULTEQ)
274 VECTOR_BINARY_OP(kCompareFLTEQ)
275
276 VECTOR_BINARY_OP(kDivideS)
277 VECTOR_BINARY_OP(kDivideU)
278 VECTOR_MATRIX_BINARY_OP(kDivideF)
279 VECTOR_BINARY_OP(kMultiplyI)
280 VECTOR_MATRIX_BINARY_OP(kMultiplyF)
281 VECTOR_BINARY_OP(kRemainderF)
282 VECTOR_BINARY_OP(kRemainderS)
283 VECTOR_BINARY_OP(kRemainderU)
284 VECTOR_BINARY_OP(kSubtractI)
285 VECTOR_MATRIX_BINARY_OP(kSubtractF)
286
287#undef VECTOR_BINARY_OP
288#undef VECTOR_MATRIX_BINARY_OP
289
290 // Ops that push or load data to grow the stack:
291 case ByteCodeInstruction::kDup:
292 case ByteCodeInstruction::kLoad:
293 case ByteCodeInstruction::kLoadGlobal:
294 case ByteCodeInstruction::kLoadUniform:
295 case ByteCodeInstruction::kReadExternal:
296 case ByteCodeInstruction::kPushImmediate:
297 return 1;
298
299 case ByteCodeInstruction::kDup2:
300 case ByteCodeInstruction::kLoad2:
301 case ByteCodeInstruction::kLoadGlobal2:
302 case ByteCodeInstruction::kLoadUniform2:
303 case ByteCodeInstruction::kReadExternal2:
304 return 2;
305
306 case ByteCodeInstruction::kDup3:
307 case ByteCodeInstruction::kLoad3:
308 case ByteCodeInstruction::kLoadGlobal3:
309 case ByteCodeInstruction::kLoadUniform3:
310 case ByteCodeInstruction::kReadExternal3:
311 return 3;
312
313 case ByteCodeInstruction::kDup4:
314 case ByteCodeInstruction::kLoad4:
315 case ByteCodeInstruction::kLoadGlobal4:
316 case ByteCodeInstruction::kLoadUniform4:
317 case ByteCodeInstruction::kReadExternal4:
318 return 4;
319
320 case ByteCodeInstruction::kDupN:
321 case ByteCodeInstruction::kLoadSwizzle:
322 case ByteCodeInstruction::kLoadSwizzleGlobal:
323 case ByteCodeInstruction::kLoadSwizzleUniform:
324 return count;
325
326 // Pushes 'count' values, minus one for the 'address' that's consumed first
327 case ByteCodeInstruction::kLoadExtended:
328 case ByteCodeInstruction::kLoadExtendedGlobal:
329 case ByteCodeInstruction::kLoadExtendedUniform:
330 return count - 1;
331
332 // Ops that pop or store data to shrink the stack:
333 case ByteCodeInstruction::kPop:
334 case ByteCodeInstruction::kStore:
335 case ByteCodeInstruction::kStoreGlobal:
336 case ByteCodeInstruction::kWriteExternal:
337 return -1;
338
339 case ByteCodeInstruction::kPop2:
340 case ByteCodeInstruction::kStore2:
341 case ByteCodeInstruction::kStoreGlobal2:
342 case ByteCodeInstruction::kWriteExternal2:
343 return -2;
344
345 case ByteCodeInstruction::kPop3:
346 case ByteCodeInstruction::kStore3:
347 case ByteCodeInstruction::kStoreGlobal3:
348 case ByteCodeInstruction::kWriteExternal3:
349 return -3;
350
351 case ByteCodeInstruction::kPop4:
352 case ByteCodeInstruction::kStore4:
353 case ByteCodeInstruction::kStoreGlobal4:
354 case ByteCodeInstruction::kWriteExternal4:
355 return -4;
356
357 case ByteCodeInstruction::kPopN:
358 case ByteCodeInstruction::kStoreSwizzle:
359 case ByteCodeInstruction::kStoreSwizzleGlobal:
360 return -count;
361
362 // Consumes 'count' values, plus one for the 'address'
363 case ByteCodeInstruction::kStoreExtended:
364 case ByteCodeInstruction::kStoreExtendedGlobal:
365 case ByteCodeInstruction::kStoreSwizzleIndirect:
366 case ByteCodeInstruction::kStoreSwizzleIndirectGlobal:
367 return -count - 1;
368
369 // Strange ops where the caller computes the delta for us:
370 case ByteCodeInstruction::kCallExternal:
371 case ByteCodeInstruction::kMatrixToMatrix:
372 case ByteCodeInstruction::kMatrixMultiply:
373 case ByteCodeInstruction::kReserve:
374 case ByteCodeInstruction::kReturn:
375 case ByteCodeInstruction::kScalarToMatrix:
376 case ByteCodeInstruction::kSwizzle:
377 return count;
378
379 // Miscellaneous
380
381 // kCall is net-zero. Max stack depth is adjusted in writeFunctionCall.
382 case ByteCodeInstruction::kCall: return 0;
383 case ByteCodeInstruction::kBranch: return 0;
384 case ByteCodeInstruction::kBranchIfAllFalse: return 0;
385
386 case ByteCodeInstruction::kMaskPush: return -1;
387 case ByteCodeInstruction::kMaskPop: return 0;
388 case ByteCodeInstruction::kMaskNegate: return 0;
389 case ByteCodeInstruction::kMaskBlend: return -count;
390
391 case ByteCodeInstruction::kLoopBegin: return 0;
392 case ByteCodeInstruction::kLoopNext: return 0;
393 case ByteCodeInstruction::kLoopMask: return -1;
394 case ByteCodeInstruction::kLoopEnd: return 0;
395 case ByteCodeInstruction::kLoopBreak: return 0;
396 case ByteCodeInstruction::kLoopContinue: return 0;
397
398 default:
399 ABORT("unsupported instruction %d\n", (int)inst);
400 return 0;
401 }
402}
403
404ByteCodeGenerator::Location ByteCodeGenerator::getLocation(const Variable& var) {
405 // given that we seldom have more than a couple of variables, linear search is probably the most
406 // efficient way to handle lookups
407 switch (var.fStorage) {
408 case Variable::kLocal_Storage: {
409 for (int i = fLocals.size() - 1; i >= 0; --i) {
410 if (fLocals[i] == &var) {
411 SkASSERT(fParameterCount + i <= 255);
412 return { fParameterCount + i, Storage::kLocal };
413 }
414 }
415 int result = fParameterCount + fLocals.size();
416 fLocals.push_back(&var);
417 for (int i = 0; i < SlotCount(var.fType) - 1; ++i) {
418 fLocals.push_back(nullptr);
419 }
420 SkASSERT(result <= 255);
421 return { result, Storage::kLocal };
422 }
423 case Variable::kParameter_Storage: {
424 int offset = 0;
425 for (const auto& p : fFunction->fDeclaration.fParameters) {
426 if (p == &var) {
427 SkASSERT(offset <= 255);
428 return { offset, Storage::kLocal };
429 }
430 offset += SlotCount(p->fType);
431 }
432 SkASSERT(false);
433 return Location::MakeInvalid();
434 }
435 case Variable::kGlobal_Storage: {
436 if (is_in(var)) {
437 // If you trip this assert, it means the program is using raw 'in' variables. You
438 // should either specialize the program (Compiler::specialize) to bake in the final
439 // values of the 'in' variables, or not use 'in' variables (maybe you meant to use
440 // 'uniform' instead?).
441 SkASSERT(false);
442 return Location::MakeInvalid();
443 }
444 int offset = 0;
445 bool isUniform = is_uniform(var);
446 for (const auto& e : fProgram) {
447 if (e.fKind == ProgramElement::kVar_Kind) {
448 VarDeclarations& decl = (VarDeclarations&) e;
449 for (const auto& v : decl.fVars) {
450 const Variable* declVar = ((VarDeclaration&) *v).fVar;
451 if (declVar->fModifiers.fLayout.fBuiltin >= 0 || is_in(*declVar)) {
452 continue;
453 }
454 if (isUniform != is_uniform(*declVar)) {
455 continue;
456 }
457 if (declVar == &var) {
458 SkASSERT(offset <= 255);
459 return { offset, isUniform ? Storage::kUniform : Storage::kGlobal };
460 }
461 offset += SlotCount(declVar->fType);
462 }
463 }
464 }
465 SkASSERT(false);
466 return Location::MakeInvalid();
467 }
468 default:
469 SkASSERT(false);
470 return Location::MakeInvalid();
471 }
472}
473
Brian Osman1c110a02019-10-01 14:53:32 -0400474ByteCodeGenerator::Location ByteCodeGenerator::getLocation(const Expression& expr) {
Brian Osman07c117b2019-05-23 12:51:06 -0700475 switch (expr.fKind) {
476 case Expression::kFieldAccess_Kind: {
Ben Wagner470e0ac2020-01-22 16:59:21 -0500477 const FieldAccess& f = (const FieldAccess&)expr;
478 Location baseLoc = this->getLocation(*f.fBase);
Brian Osman07c117b2019-05-23 12:51:06 -0700479 int offset = 0;
480 for (int i = 0; i < f.fFieldIndex; ++i) {
481 offset += SlotCount(*f.fBase->fType.fields()[i].fType);
482 }
Ben Wagner470e0ac2020-01-22 16:59:21 -0500483 if (baseLoc.isOnStack()) {
484 if (offset != 0) {
485 this->write(ByteCodeInstruction::kPushImmediate);
486 this->write32(offset);
487 this->write(ByteCodeInstruction::kAddI);
488 this->write8(1);
Ethan Nicholas99c54f02020-01-21 16:06:47 +0000489 }
Ben Wagner470e0ac2020-01-22 16:59:21 -0500490 return baseLoc;
Ethan Nicholas99c54f02020-01-21 16:06:47 +0000491 } else {
Ben Wagner470e0ac2020-01-22 16:59:21 -0500492 return baseLoc + offset;
Ethan Nicholas99c54f02020-01-21 16:06:47 +0000493 }
Ethan Nicholas99c54f02020-01-21 16:06:47 +0000494 }
Ben Wagner470e0ac2020-01-22 16:59:21 -0500495 case Expression::kIndex_Kind: {
496 const IndexExpression& i = (const IndexExpression&)expr;
497 int stride = SlotCount(i.fType);
498 int length = i.fBase->fType.columns();
499 SkASSERT(length <= 255);
500 int offset = -1;
501 if (i.fIndex->isConstant()) {
502 int64_t index = i.fIndex->getConstantInt();
503 if (index < 0 || index >= length) {
504 fErrors.error(i.fIndex->fOffset, "Array index out of bounds.");
505 return Location::MakeInvalid();
506 }
507 offset = index * stride;
508 } else {
509 if (i.fIndex->hasSideEffects()) {
510 // Having a side-effect in an indexer is technically safe for an rvalue,
511 // but with lvalues we have to evaluate the indexer twice, so make it an error.
512 fErrors.error(i.fIndex->fOffset,
513 "Index expressions with side-effects not supported in byte code.");
514 return Location::MakeInvalid();
515 }
516 this->writeExpression(*i.fIndex);
517 this->write(ByteCodeInstruction::kClampIndex);
518 this->write8(length);
519 if (stride != 1) {
520 this->write(ByteCodeInstruction::kPushImmediate);
521 this->write32(stride);
522 this->write(ByteCodeInstruction::kMultiplyI);
523 this->write8(1);
524 }
525 }
526 Location baseLoc = this->getLocation(*i.fBase);
527
528 // Are both components known statically?
529 if (!baseLoc.isOnStack() && offset >= 0) {
530 return baseLoc + offset;
531 }
532
533 // At least one component is dynamic (and on the stack).
534
535 // If the other component is zero, we're done
536 if (baseLoc.fSlot == 0 || offset == 0) {
537 return baseLoc.makeOnStack();
538 }
539
540 // Push the non-dynamic component (if any) to the stack, then add the two
541 if (!baseLoc.isOnStack()) {
542 this->write(ByteCodeInstruction::kPushImmediate);
543 this->write32(baseLoc.fSlot);
544 }
545 if (offset >= 0) {
546 this->write(ByteCodeInstruction::kPushImmediate);
547 this->write32(offset);
548 }
549 this->write(ByteCodeInstruction::kAddI);
550 this->write8(1);
551 return baseLoc.makeOnStack();
552 }
Brian Osman0785db02019-05-24 14:19:11 -0400553 case Expression::kSwizzle_Kind: {
Ben Wagner470e0ac2020-01-22 16:59:21 -0500554 const Swizzle& s = (const Swizzle&)expr;
Brian Osman0785db02019-05-24 14:19:11 -0400555 SkASSERT(swizzle_is_simple(s));
Ben Wagner470e0ac2020-01-22 16:59:21 -0500556 Location baseLoc = this->getLocation(*s.fBase);
557 int offset = s.fComponents[0];
558 if (baseLoc.isOnStack()) {
559 if (offset != 0) {
560 this->write(ByteCodeInstruction::kPushImmediate);
561 this->write32(offset);
562 this->write(ByteCodeInstruction::kAddI);
563 this->write8(1);
564 }
565 return baseLoc;
566 } else {
567 return baseLoc + offset;
568 }
Brian Osman0785db02019-05-24 14:19:11 -0400569 }
Brian Osman07c117b2019-05-23 12:51:06 -0700570 case Expression::kVariableReference_Kind: {
Ben Wagner470e0ac2020-01-22 16:59:21 -0500571 const Variable& var = ((const VariableReference&)expr).fVariable;
Brian Osman07c117b2019-05-23 12:51:06 -0700572 return this->getLocation(var);
573 }
574 default:
575 SkASSERT(false);
Ben Wagner470e0ac2020-01-22 16:59:21 -0500576 return Location::MakeInvalid();
Brian Osman07c117b2019-05-23 12:51:06 -0700577 }
578}
579
Ben Wagner470e0ac2020-01-22 16:59:21 -0500580void ByteCodeGenerator::write8(uint8_t b) {
581 fCode->push_back(b);
Ethan Nicholas0e9401d2019-03-21 11:05:37 -0400582}
583
Ben Wagner470e0ac2020-01-22 16:59:21 -0500584void ByteCodeGenerator::write16(uint16_t i) {
585 size_t n = fCode->size();
586 fCode->resize(n+2);
587 memcpy(fCode->data() + n, &i, 2);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500588}
Ethan Nicholas99c54f02020-01-21 16:06:47 +0000589
Ben Wagner470e0ac2020-01-22 16:59:21 -0500590void ByteCodeGenerator::write32(uint32_t i) {
591 size_t n = fCode->size();
592 fCode->resize(n+4);
593 memcpy(fCode->data() + n, &i, 4);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500594}
595
Ben Wagner470e0ac2020-01-22 16:59:21 -0500596void ByteCodeGenerator::write(ByteCodeInstruction i, int count) {
597 switch (i) {
598 case ByteCodeInstruction::kLoopBegin: this->enterLoop(); break;
599 case ByteCodeInstruction::kLoopEnd: this->exitLoop(); break;
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500600
Ben Wagner470e0ac2020-01-22 16:59:21 -0500601 case ByteCodeInstruction::kMaskPush: this->enterCondition(); break;
602 case ByteCodeInstruction::kMaskPop:
603 case ByteCodeInstruction::kMaskBlend: this->exitCondition(); break;
604 default: /* Do nothing */ break;
Ethan Nicholas99c54f02020-01-21 16:06:47 +0000605 }
Ben Wagner470e0ac2020-01-22 16:59:21 -0500606 instruction val = (instruction) i;
607 size_t n = fCode->size();
608 fCode->resize(n + sizeof(val));
609 memcpy(fCode->data() + n, &val, sizeof(val));
610 fStackCount += StackUsage(i, count);
611 fMaxStackCount = std::max(fMaxStackCount, fStackCount);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500612}
613
Ben Wagner470e0ac2020-01-22 16:59:21 -0500614static ByteCodeInstruction vector_instruction(ByteCodeInstruction base, int count) {
615 SkASSERT(count >= 1 && count <= 4);
616 return ((ByteCodeInstruction) ((int) base + 1 - count));
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500617}
618
Ben Wagner470e0ac2020-01-22 16:59:21 -0500619void ByteCodeGenerator::writeTypedInstruction(const Type& type, ByteCodeInstruction s,
620 ByteCodeInstruction u, ByteCodeInstruction f,
621 int count, bool writeCount) {
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500622 switch (type_category(type)) {
623 case TypeCategory::kSigned:
Ben Wagner470e0ac2020-01-22 16:59:21 -0500624 this->write(vector_instruction(s, count));
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500625 break;
626 case TypeCategory::kUnsigned:
Ben Wagner470e0ac2020-01-22 16:59:21 -0500627 this->write(vector_instruction(u, count));
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500628 break;
629 case TypeCategory::kFloat: {
Ben Wagner470e0ac2020-01-22 16:59:21 -0500630 if (count > 4) {
631 this->write((ByteCodeInstruction)((int)f + 1), count);
632 } else {
633 this->write(vector_instruction(f, count));
634 }
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500635 break;
636 }
637 default:
638 SkASSERT(false);
639 }
Ben Wagner470e0ac2020-01-22 16:59:21 -0500640 if (writeCount) {
641 this->write8(count);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500642 }
643}
644
Ben Wagner470e0ac2020-01-22 16:59:21 -0500645bool ByteCodeGenerator::writeBinaryExpression(const BinaryExpression& b, bool discard) {
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500646 if (b.fOperator == Token::Kind::EQ) {
647 std::unique_ptr<LValue> lvalue = this->getLValue(*b.fLeft);
Ben Wagner470e0ac2020-01-22 16:59:21 -0500648 this->writeExpression(*b.fRight);
649 lvalue->store(discard);
650 discard = false;
651 return discard;
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500652 }
653 const Type& lType = b.fLeft->fType;
654 const Type& rType = b.fRight->fType;
655 bool lVecOrMtx = (lType.kind() == Type::kVector_Kind || lType.kind() == Type::kMatrix_Kind);
656 bool rVecOrMtx = (rType.kind() == Type::kVector_Kind || rType.kind() == Type::kMatrix_Kind);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500657 Token::Kind op;
658 std::unique_ptr<LValue> lvalue;
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500659 if (is_assignment(b.fOperator)) {
660 lvalue = this->getLValue(*b.fLeft);
Ben Wagner470e0ac2020-01-22 16:59:21 -0500661 lvalue->load();
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500662 op = remove_assignment(b.fOperator);
663 } else {
Ben Wagner470e0ac2020-01-22 16:59:21 -0500664 this->writeExpression(*b.fLeft);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500665 op = b.fOperator;
666 if (!lVecOrMtx && rVecOrMtx) {
Ben Wagner470e0ac2020-01-22 16:59:21 -0500667 for (int i = SlotCount(rType); i > 1; --i) {
668 this->write(ByteCodeInstruction::kDup);
669 this->write8(1);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500670 }
671 }
672 }
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500673 int count = std::max(SlotCount(lType), SlotCount(rType));
Ben Wagner470e0ac2020-01-22 16:59:21 -0500674 SkDEBUGCODE(TypeCategory tc = type_category(lType));
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500675 switch (op) {
676 case Token::Kind::LOGICALAND: {
Ben Wagner470e0ac2020-01-22 16:59:21 -0500677 SkASSERT(tc == SkSL::TypeCategory::kBool && count == 1);
678 this->write(ByteCodeInstruction::kDup);
679 this->write8(1);
680 this->write(ByteCodeInstruction::kMaskPush);
681 this->write(ByteCodeInstruction::kBranchIfAllFalse);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500682 DeferredLocation falseLocation(this);
Ben Wagner470e0ac2020-01-22 16:59:21 -0500683 this->writeExpression(*b.fRight);
684 this->write(ByteCodeInstruction::kAndB);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500685 falseLocation.set();
Ben Wagner470e0ac2020-01-22 16:59:21 -0500686 this->write(ByteCodeInstruction::kMaskPop);
687 return false;
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500688 }
689 case Token::Kind::LOGICALOR: {
Ben Wagner470e0ac2020-01-22 16:59:21 -0500690 SkASSERT(tc == SkSL::TypeCategory::kBool && count == 1);
691 this->write(ByteCodeInstruction::kDup);
692 this->write8(1);
693 this->write(ByteCodeInstruction::kNotB);
694 this->write(ByteCodeInstruction::kMaskPush);
695 this->write(ByteCodeInstruction::kBranchIfAllFalse);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500696 DeferredLocation falseLocation(this);
Ben Wagner470e0ac2020-01-22 16:59:21 -0500697 this->writeExpression(*b.fRight);
698 this->write(ByteCodeInstruction::kOrB);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500699 falseLocation.set();
Ben Wagner470e0ac2020-01-22 16:59:21 -0500700 this->write(ByteCodeInstruction::kMaskPop);
701 return false;
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500702 }
703 case Token::Kind::SHL:
704 case Token::Kind::SHR: {
705 SkASSERT(count == 1 && (tc == SkSL::TypeCategory::kSigned ||
706 tc == SkSL::TypeCategory::kUnsigned));
707 if (!b.fRight->isConstant()) {
708 fErrors.error(b.fRight->fOffset, "Shift amounts must be constant");
Ben Wagner470e0ac2020-01-22 16:59:21 -0500709 return false;
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500710 }
711 int64_t shift = b.fRight->getConstantInt();
712 if (shift < 0 || shift > 31) {
713 fErrors.error(b.fRight->fOffset, "Shift amount out of range");
Ben Wagner470e0ac2020-01-22 16:59:21 -0500714 return false;
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500715 }
716
717 if (op == Token::Kind::SHL) {
Ben Wagner470e0ac2020-01-22 16:59:21 -0500718 this->write(ByteCodeInstruction::kShiftLeft);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500719 } else {
720 this->write(type_category(lType) == TypeCategory::kSigned
Ben Wagner470e0ac2020-01-22 16:59:21 -0500721 ? ByteCodeInstruction::kShiftRightS
722 : ByteCodeInstruction::kShiftRightU);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500723 }
Ben Wagner470e0ac2020-01-22 16:59:21 -0500724 this->write8(shift);
725 return false;
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500726 }
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500727
728 default:
729 break;
730 }
Ben Wagner470e0ac2020-01-22 16:59:21 -0500731 this->writeExpression(*b.fRight);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500732 if (lVecOrMtx && !rVecOrMtx) {
Ben Wagner470e0ac2020-01-22 16:59:21 -0500733 for (int i = SlotCount(lType); i > 1; --i) {
734 this->write(ByteCodeInstruction::kDup);
735 this->write8(1);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500736 }
737 }
Ben Wagner470e0ac2020-01-22 16:59:21 -0500738 // Special case for M*V, V*M, M*M (but not V*V!)
739 if (op == Token::Kind::STAR && lVecOrMtx && rVecOrMtx &&
740 !(lType.kind() == Type::kVector_Kind && rType.kind() == Type::kVector_Kind)) {
741 this->write(ByteCodeInstruction::kMatrixMultiply,
742 SlotCount(b.fType) - (SlotCount(lType) + SlotCount(rType)));
743 int rCols = rType.columns(),
744 rRows = rType.rows(),
745 lCols = lType.columns(),
746 lRows = lType.rows();
747 // M*V treats the vector as a column
748 if (rType.kind() == Type::kVector_Kind) {
749 std::swap(rCols, rRows);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500750 }
Ben Wagner470e0ac2020-01-22 16:59:21 -0500751 SkASSERT(lCols == rRows);
752 SkASSERT(SlotCount(b.fType) == lRows * rCols);
753 this->write8(lCols);
754 this->write8(lRows);
755 this->write8(rCols);
756 } else {
757 switch (op) {
758 case Token::Kind::EQEQ:
759 this->writeTypedInstruction(lType, ByteCodeInstruction::kCompareIEQ,
760 ByteCodeInstruction::kCompareIEQ,
761 ByteCodeInstruction::kCompareFEQ,
762 count);
763 // Collapse to a single bool
764 for (int i = count; i > 1; --i) {
765 this->write(ByteCodeInstruction::kAndB);
766 }
767 break;
768 case Token::Kind::GT:
769 this->writeTypedInstruction(lType, ByteCodeInstruction::kCompareSGT,
770 ByteCodeInstruction::kCompareUGT,
771 ByteCodeInstruction::kCompareFGT,
772 count);
773 break;
774 case Token::Kind::GTEQ:
775 this->writeTypedInstruction(lType, ByteCodeInstruction::kCompareSGTEQ,
776 ByteCodeInstruction::kCompareUGTEQ,
777 ByteCodeInstruction::kCompareFGTEQ,
778 count);
779 break;
780 case Token::Kind::LT:
781 this->writeTypedInstruction(lType, ByteCodeInstruction::kCompareSLT,
782 ByteCodeInstruction::kCompareULT,
783 ByteCodeInstruction::kCompareFLT,
784 count);
785 break;
786 case Token::Kind::LTEQ:
787 this->writeTypedInstruction(lType, ByteCodeInstruction::kCompareSLTEQ,
788 ByteCodeInstruction::kCompareULTEQ,
789 ByteCodeInstruction::kCompareFLTEQ,
790 count);
791 break;
792 case Token::Kind::MINUS:
793 this->writeTypedInstruction(lType, ByteCodeInstruction::kSubtractI,
794 ByteCodeInstruction::kSubtractI,
795 ByteCodeInstruction::kSubtractF,
796 count);
797 break;
798 case Token::Kind::NEQ:
799 this->writeTypedInstruction(lType, ByteCodeInstruction::kCompareINEQ,
800 ByteCodeInstruction::kCompareINEQ,
801 ByteCodeInstruction::kCompareFNEQ,
802 count);
803 // Collapse to a single bool
804 for (int i = count; i > 1; --i) {
805 this->write(ByteCodeInstruction::kOrB);
806 }
807 break;
808 case Token::Kind::PERCENT:
809 this->writeTypedInstruction(lType, ByteCodeInstruction::kRemainderS,
810 ByteCodeInstruction::kRemainderU,
811 ByteCodeInstruction::kRemainderF,
812 count);
813 break;
814 case Token::Kind::PLUS:
815 this->writeTypedInstruction(lType, ByteCodeInstruction::kAddI,
816 ByteCodeInstruction::kAddI,
817 ByteCodeInstruction::kAddF,
818 count);
819 break;
820 case Token::Kind::SLASH:
821 this->writeTypedInstruction(lType, ByteCodeInstruction::kDivideS,
822 ByteCodeInstruction::kDivideU,
823 ByteCodeInstruction::kDivideF,
824 count);
825 break;
826 case Token::Kind::STAR:
827 this->writeTypedInstruction(lType, ByteCodeInstruction::kMultiplyI,
828 ByteCodeInstruction::kMultiplyI,
829 ByteCodeInstruction::kMultiplyF,
830 count);
831 break;
832
833 case Token::Kind::LOGICALXOR:
834 SkASSERT(tc == SkSL::TypeCategory::kBool && count == 1);
835 this->write(ByteCodeInstruction::kXorB);
836 break;
837
838 case Token::Kind::BITWISEAND:
839 SkASSERT(count == 1 && (tc == SkSL::TypeCategory::kSigned ||
840 tc == SkSL::TypeCategory::kUnsigned));
841 this->write(ByteCodeInstruction::kAndB);
842 break;
843 case Token::Kind::BITWISEOR:
844 SkASSERT(count == 1 && (tc == SkSL::TypeCategory::kSigned ||
845 tc == SkSL::TypeCategory::kUnsigned));
846 this->write(ByteCodeInstruction::kOrB);
847 break;
848 case Token::Kind::BITWISEXOR:
849 SkASSERT(count == 1 && (tc == SkSL::TypeCategory::kSigned ||
850 tc == SkSL::TypeCategory::kUnsigned));
851 this->write(ByteCodeInstruction::kXorB);
852 break;
853
854 default:
855 fErrors.error(b.fOffset, SkSL::String::printf("Unsupported binary operator '%s'",
856 Compiler::OperatorName(op)));
857 break;
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500858 }
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500859 }
860 if (lvalue) {
Ben Wagner470e0ac2020-01-22 16:59:21 -0500861 lvalue->store(discard);
862 discard = false;
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500863 }
Ben Wagner470e0ac2020-01-22 16:59:21 -0500864 return discard;
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500865}
866
Ben Wagner470e0ac2020-01-22 16:59:21 -0500867void ByteCodeGenerator::writeBoolLiteral(const BoolLiteral& b) {
868 this->write(ByteCodeInstruction::kPushImmediate);
869 this->write32(b.fValue ? ~0 : 0);
870}
871
872void ByteCodeGenerator::writeConstructor(const Constructor& c) {
873 for (const auto& arg : c.fArguments) {
874 this->writeExpression(*arg);
875 }
876 if (c.fArguments.size() == 1) {
877 const Type& inType = c.fArguments[0]->fType;
878 const Type& outType = c.fType;
879 TypeCategory inCategory = type_category(inType);
880 TypeCategory outCategory = type_category(outType);
881 int inCount = SlotCount(inType);
882 int outCount = SlotCount(outType);
883 if (inCategory != outCategory) {
884 SkASSERT(inCount == outCount);
885 if (inCategory == TypeCategory::kFloat) {
886 SkASSERT(outCategory == TypeCategory::kSigned ||
887 outCategory == TypeCategory::kUnsigned);
888 this->write(vector_instruction(ByteCodeInstruction::kConvertFtoI, outCount));
889 } else if (outCategory == TypeCategory::kFloat) {
890 if (inCategory == TypeCategory::kSigned) {
891 this->write(vector_instruction(ByteCodeInstruction::kConvertStoF, outCount));
892 } else {
893 SkASSERT(inCategory == TypeCategory::kUnsigned);
894 this->write(vector_instruction(ByteCodeInstruction::kConvertUtoF, outCount));
895 }
896 } else {
897 SkASSERT(false);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500898 }
899 }
Ben Wagner470e0ac2020-01-22 16:59:21 -0500900 if (inType.kind() == Type::kMatrix_Kind && outType.kind() == Type::kMatrix_Kind) {
901 this->write(ByteCodeInstruction::kMatrixToMatrix,
902 SlotCount(outType) - SlotCount(inType));
903 this->write8(inType.columns());
904 this->write8(inType.rows());
905 this->write8(outType.columns());
906 this->write8(outType.rows());
907 } else if (inCount != outCount) {
908 SkASSERT(inCount == 1);
909 if (outType.kind() == Type::kMatrix_Kind) {
910 this->write(ByteCodeInstruction::kScalarToMatrix, SlotCount(outType) - 1);
911 this->write8(outType.columns());
912 this->write8(outType.rows());
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500913 } else {
Ben Wagner470e0ac2020-01-22 16:59:21 -0500914 SkASSERT(outType.kind() == Type::kVector_Kind);
915 for (; inCount != outCount; ++inCount) {
916 this->write(ByteCodeInstruction::kDup);
917 this->write8(1);
918 }
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500919 }
920 }
921 }
922}
923
Ben Wagner470e0ac2020-01-22 16:59:21 -0500924void ByteCodeGenerator::writeExternalFunctionCall(const ExternalFunctionCall& f) {
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500925 int argumentCount = 0;
926 for (const auto& arg : f.fArguments) {
Ben Wagner470e0ac2020-01-22 16:59:21 -0500927 this->writeExpression(*arg);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500928 argumentCount += SlotCount(arg->fType);
929 }
Ben Wagner470e0ac2020-01-22 16:59:21 -0500930 this->write(ByteCodeInstruction::kCallExternal, SlotCount(f.fType) - argumentCount);
931 SkASSERT(argumentCount <= 255);
932 this->write8(argumentCount);
933 this->write8(SlotCount(f.fType));
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500934 int index = fOutput->fExternalValues.size();
935 fOutput->fExternalValues.push_back(f.fFunction);
936 SkASSERT(index <= 255);
Ben Wagner470e0ac2020-01-22 16:59:21 -0500937 this->write8(index);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500938}
939
Ben Wagner470e0ac2020-01-22 16:59:21 -0500940void ByteCodeGenerator::writeExternalValue(const ExternalValueReference& e) {
941 int count = SlotCount(e.fValue->type());
942 this->write(vector_instruction(ByteCodeInstruction::kReadExternal, count));
943 this->write8(count);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500944 int index = fOutput->fExternalValues.size();
945 fOutput->fExternalValues.push_back(e.fValue);
946 SkASSERT(index <= 255);
Ben Wagner470e0ac2020-01-22 16:59:21 -0500947 this->write8(index);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500948}
949
Ben Wagner470e0ac2020-01-22 16:59:21 -0500950void ByteCodeGenerator::writeVariableExpression(const Expression& expr) {
951 Location location = this->getLocation(expr);
952 int count = SlotCount(expr.fType);
953 if (location.isOnStack() || count > 4) {
954 if (!location.isOnStack()) {
955 this->write(ByteCodeInstruction::kPushImmediate);
956 this->write32(location.fSlot);
957 }
958 this->write(location.selectLoad(ByteCodeInstruction::kLoadExtended,
959 ByteCodeInstruction::kLoadExtendedGlobal,
960 ByteCodeInstruction::kLoadExtendedUniform),
961 count);
962 this->write8(count);
963 } else {
964 this->write(vector_instruction(location.selectLoad(ByteCodeInstruction::kLoad,
965 ByteCodeInstruction::kLoadGlobal,
966 ByteCodeInstruction::kLoadUniform),
967 count));
968 this->write8(count);
969 this->write8(location.fSlot);
970 }
971}
972
973static inline uint32_t float_to_bits(float x) {
974 uint32_t u;
975 memcpy(&u, &x, sizeof(uint32_t));
976 return u;
977}
978
979void ByteCodeGenerator::writeFloatLiteral(const FloatLiteral& f) {
980 this->write(ByteCodeInstruction::kPushImmediate);
981 this->write32(float_to_bits(f.fValue));
982}
983
984void ByteCodeGenerator::writeIntrinsicCall(const FunctionCall& c) {
985 auto found = fIntrinsics.find(c.fFunction.fName);
986 if (found == fIntrinsics.end()) {
987 fErrors.error(c.fOffset, String::printf("Unsupported intrinsic: '%s'",
988 String(c.fFunction.fName).c_str()));
989 return;
990 }
991 int count = SlotCount(c.fArguments[0]->fType);
992 if (found->second.fIsSpecial) {
993 SpecialIntrinsic special = found->second.fValue.fSpecial;
994 switch (special) {
Ethan Nicholas7deb1c22020-01-22 10:31:55 -0500995 case SpecialIntrinsic::kDot: {
996 SkASSERT(c.fArguments.size() == 2);
Ben Wagner470e0ac2020-01-22 16:59:21 -0500997 SkASSERT(count == SlotCount(c.fArguments[1]->fType));
998 this->write(vector_instruction(ByteCodeInstruction::kMultiplyF, count));
999 this->write8(count);
1000 for (int i = count; i > 1; --i) {
1001 this->write(ByteCodeInstruction::kAddF);
1002 this->write8(1);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001003 }
1004 break;
1005 }
Ben Wagner470e0ac2020-01-22 16:59:21 -05001006 default:
1007 SkASSERT(false);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001008 }
1009 } else {
Ben Wagner470e0ac2020-01-22 16:59:21 -05001010 switch (found->second.fValue.fInstruction) {
1011 case ByteCodeInstruction::kCos:
1012 case ByteCodeInstruction::kSin:
1013 case ByteCodeInstruction::kTan:
1014 SkASSERT(c.fArguments.size() > 0);
1015 this->write(vector_instruction(found->second.fValue.fInstruction, count));
1016 this->write8(count);
1017 break;
1018 case ByteCodeInstruction::kSqrt:
1019 SkASSERT(c.fArguments.size() > 0);
1020 this->write(vector_instruction(found->second.fValue.fInstruction, count));
1021 break;
1022 case ByteCodeInstruction::kInverse2x2: {
1023 SkASSERT(c.fArguments.size() > 0);
1024 auto op = ByteCodeInstruction::kInverse2x2;
1025 switch (count) {
1026 case 4: break; // float2x2
1027 case 9: op = ByteCodeInstruction::kInverse3x3; break;
1028 case 16: op = ByteCodeInstruction::kInverse4x4; break;
1029 default: SkASSERT(false);
1030 }
1031 this->write(op);
1032 break;
1033 }
1034 default:
1035 SkASSERT(false);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001036 }
1037 }
1038}
1039
Ben Wagner470e0ac2020-01-22 16:59:21 -05001040void ByteCodeGenerator::writeFunctionCall(const FunctionCall& f) {
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001041 // Find the index of the function we're calling. We explicitly do not allow calls to functions
1042 // before they're defined. This is an easy-to-understand rule that prevents recursion.
Ben Wagner470e0ac2020-01-22 16:59:21 -05001043 int idx = -1;
1044 for (size_t i = 0; i < fFunctions.size(); ++i) {
1045 if (f.fFunction.matches(fFunctions[i]->fDeclaration)) {
1046 idx = i;
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001047 break;
1048 }
1049 }
Ben Wagner470e0ac2020-01-22 16:59:21 -05001050 if (idx == -1) {
1051 for (const auto& arg : f.fArguments) {
1052 this->writeExpression(*arg);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001053 }
Ben Wagner470e0ac2020-01-22 16:59:21 -05001054 this->writeIntrinsicCall(f);
1055 return;
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001056 }
Ben Wagner470e0ac2020-01-22 16:59:21 -05001057
1058
1059 if (idx > 255) {
1060 fErrors.error(f.fOffset, "Function count limit exceeded");
1061 return;
1062 } else if (idx >= (int) fFunctions.size()) {
1063 fErrors.error(f.fOffset, "Call to undefined function");
1064 return;
1065 }
1066
1067 // We may need to deal with out parameters, so the sequence is tricky
1068 if (int returnCount = SlotCount(f.fType)) {
1069 this->write(ByteCodeInstruction::kReserve, returnCount);
1070 this->write8(returnCount);
1071 }
1072
1073 int argCount = f.fArguments.size();
1074 std::vector<std::unique_ptr<LValue>> lvalues;
1075 for (int i = 0; i < argCount; ++i) {
1076 const auto& param = f.fFunction.fParameters[i];
1077 const auto& arg = f.fArguments[i];
1078 if (param->fModifiers.fFlags & Modifiers::kOut_Flag) {
1079 lvalues.emplace_back(this->getLValue(*arg));
1080 lvalues.back()->load();
1081 } else {
1082 this->writeExpression(*arg);
1083 }
1084 }
1085
1086 // The space used by the call is based on the callee, but it also unwinds all of that before
1087 // we continue execution. We adjust our max stack depths below.
1088 this->write(ByteCodeInstruction::kCall);
1089 this->write8(idx);
1090
1091 const ByteCodeFunction* callee = fOutput->fFunctions[idx].get();
1092 fMaxLoopCount = std::max(fMaxLoopCount, fLoopCount + callee->fLoopCount);
1093 fMaxConditionCount = std::max(fMaxConditionCount, fConditionCount + callee->fConditionCount);
1094 fMaxStackCount = std::max(fMaxStackCount, fStackCount + callee->fLocalCount
1095 + callee->fStackCount);
1096
1097 // After the called function returns, the stack will still contain our arguments. We have to
1098 // pop them (storing any out parameters back to their lvalues as we go). We glob together slot
1099 // counts for all parameters that aren't out-params, so we can pop them in one big chunk.
1100 int popCount = 0;
1101 auto pop = [&]() {
1102 if (popCount > 4) {
1103 this->write(ByteCodeInstruction::kPopN, popCount);
1104 this->write8(popCount);
1105 } else if (popCount > 0) {
1106 this->write(vector_instruction(ByteCodeInstruction::kPop, popCount));
1107 }
1108 popCount = 0;
1109 };
1110
1111 for (int i = argCount - 1; i >= 0; --i) {
1112 const auto& param = f.fFunction.fParameters[i];
1113 const auto& arg = f.fArguments[i];
1114 if (param->fModifiers.fFlags & Modifiers::kOut_Flag) {
1115 pop();
1116 lvalues.back()->store(true);
1117 lvalues.pop_back();
1118 } else {
1119 popCount += SlotCount(arg->fType);
1120 }
1121 }
1122 pop();
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001123}
1124
Ben Wagner470e0ac2020-01-22 16:59:21 -05001125void ByteCodeGenerator::writeIntLiteral(const IntLiteral& i) {
1126 this->write(ByteCodeInstruction::kPushImmediate);
1127 this->write32(i.fValue);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001128}
1129
Ben Wagner470e0ac2020-01-22 16:59:21 -05001130void ByteCodeGenerator::writeNullLiteral(const NullLiteral& n) {
1131 // not yet implemented
1132 abort();
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001133}
1134
Ben Wagner470e0ac2020-01-22 16:59:21 -05001135bool ByteCodeGenerator::writePrefixExpression(const PrefixExpression& p, bool discard) {
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001136 switch (p.fOperator) {
Ben Wagner470e0ac2020-01-22 16:59:21 -05001137 case Token::Kind::PLUSPLUS: // fall through
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001138 case Token::Kind::MINUSMINUS: {
Ben Wagner470e0ac2020-01-22 16:59:21 -05001139 SkASSERT(SlotCount(p.fOperand->fType) == 1);
1140 std::unique_ptr<LValue> lvalue = this->getLValue(*p.fOperand);
1141 lvalue->load();
1142 this->write(ByteCodeInstruction::kPushImmediate);
1143 this->write32(type_category(p.fType) == TypeCategory::kFloat ? float_to_bits(1.0f) : 1);
1144 if (p.fOperator == Token::Kind::PLUSPLUS) {
1145 this->writeTypedInstruction(p.fType,
1146 ByteCodeInstruction::kAddI,
1147 ByteCodeInstruction::kAddI,
1148 ByteCodeInstruction::kAddF,
1149 1);
1150 } else {
1151 this->writeTypedInstruction(p.fType,
1152 ByteCodeInstruction::kSubtractI,
1153 ByteCodeInstruction::kSubtractI,
1154 ByteCodeInstruction::kSubtractF,
1155 1);
1156 }
1157 lvalue->store(discard);
1158 discard = false;
1159 break;
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001160 }
1161 case Token::Kind::MINUS: {
Ben Wagner470e0ac2020-01-22 16:59:21 -05001162 this->writeExpression(*p.fOperand);
1163 this->writeTypedInstruction(p.fType,
1164 ByteCodeInstruction::kNegateI,
1165 ByteCodeInstruction::kNegateI,
1166 ByteCodeInstruction::kNegateF,
1167 SlotCount(p.fOperand->fType),
1168 false);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001169 break;
1170 }
1171 case Token::Kind::LOGICALNOT:
1172 case Token::Kind::BITWISENOT: {
Ben Wagner470e0ac2020-01-22 16:59:21 -05001173 SkASSERT(SlotCount(p.fOperand->fType) == 1);
1174 SkDEBUGCODE(TypeCategory tc = type_category(p.fOperand->fType));
1175 SkASSERT((p.fOperator == Token::Kind::LOGICALNOT && tc == TypeCategory::kBool) ||
1176 (p.fOperator == Token::Kind::BITWISENOT && (tc == TypeCategory::kSigned ||
1177 tc == TypeCategory::kUnsigned)));
1178 this->writeExpression(*p.fOperand);
1179 this->write(ByteCodeInstruction::kNotB);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001180 break;
1181 }
1182 default:
1183 SkASSERT(false);
1184 }
Ben Wagner470e0ac2020-01-22 16:59:21 -05001185 return discard;
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001186}
1187
Ben Wagner470e0ac2020-01-22 16:59:21 -05001188bool ByteCodeGenerator::writePostfixExpression(const PostfixExpression& p, bool discard) {
1189 switch (p.fOperator) {
1190 case Token::Kind::PLUSPLUS: // fall through
1191 case Token::Kind::MINUSMINUS: {
1192 SkASSERT(SlotCount(p.fOperand->fType) == 1);
1193 std::unique_ptr<LValue> lvalue = this->getLValue(*p.fOperand);
1194 lvalue->load();
1195 // If we're not supposed to discard the result, then make a copy *before* the +/-
1196 if (!discard) {
1197 this->write(ByteCodeInstruction::kDup);
1198 this->write8(1);
1199 }
1200 this->write(ByteCodeInstruction::kPushImmediate);
1201 this->write32(type_category(p.fType) == TypeCategory::kFloat ? float_to_bits(1.0f) : 1);
1202 if (p.fOperator == Token::Kind::PLUSPLUS) {
1203 this->writeTypedInstruction(p.fType,
1204 ByteCodeInstruction::kAddI,
1205 ByteCodeInstruction::kAddI,
1206 ByteCodeInstruction::kAddF,
1207 1);
1208 } else {
1209 this->writeTypedInstruction(p.fType,
1210 ByteCodeInstruction::kSubtractI,
1211 ByteCodeInstruction::kSubtractI,
1212 ByteCodeInstruction::kSubtractF,
1213 1);
1214 }
1215 // Always consume the result as part of the store
1216 lvalue->store(true);
1217 discard = false;
1218 break;
1219 }
1220 default:
1221 SkASSERT(false);
1222 }
1223 return discard;
1224}
1225
1226void ByteCodeGenerator::writeSwizzle(const Swizzle& s) {
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001227 if (swizzle_is_simple(s)) {
Ben Wagner470e0ac2020-01-22 16:59:21 -05001228 this->writeVariableExpression(s);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001229 return;
1230 }
Ben Wagner470e0ac2020-01-22 16:59:21 -05001231
1232 switch (s.fBase->fKind) {
1233 case Expression::kVariableReference_Kind: {
1234 Location location = this->getLocation(*s.fBase);
1235 this->write(location.selectLoad(ByteCodeInstruction::kLoadSwizzle,
1236 ByteCodeInstruction::kLoadSwizzleGlobal,
1237 ByteCodeInstruction::kLoadSwizzleUniform),
1238 s.fComponents.size());
1239 this->write8(location.fSlot);
1240 this->write8(s.fComponents.size());
1241 for (int c : s.fComponents) {
1242 this->write8(c);
1243 }
1244 break;
1245 }
1246 default:
1247 this->writeExpression(*s.fBase);
1248 this->write(ByteCodeInstruction::kSwizzle,
1249 s.fComponents.size() - s.fBase->fType.columns());
1250 this->write8(s.fBase->fType.columns());
1251 this->write8(s.fComponents.size());
1252 for (int c : s.fComponents) {
1253 this->write8(c);
1254 }
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001255 }
1256}
1257
Ben Wagner470e0ac2020-01-22 16:59:21 -05001258void ByteCodeGenerator::writeTernaryExpression(const TernaryExpression& t) {
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001259 int count = SlotCount(t.fType);
1260 SkASSERT(count == SlotCount(t.fIfTrue->fType));
1261 SkASSERT(count == SlotCount(t.fIfFalse->fType));
1262
Ben Wagner470e0ac2020-01-22 16:59:21 -05001263 this->writeExpression(*t.fTest);
1264 this->write(ByteCodeInstruction::kMaskPush);
1265 this->writeExpression(*t.fIfTrue);
1266 this->write(ByteCodeInstruction::kMaskNegate);
1267 this->writeExpression(*t.fIfFalse);
1268 this->write(ByteCodeInstruction::kMaskBlend, count);
1269 this->write8(count);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001270}
1271
Ben Wagner470e0ac2020-01-22 16:59:21 -05001272void ByteCodeGenerator::writeExpression(const Expression& e, bool discard) {
1273 switch (e.fKind) {
1274 case Expression::kBinary_Kind:
1275 discard = this->writeBinaryExpression((BinaryExpression&) e, discard);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001276 break;
Ben Wagner470e0ac2020-01-22 16:59:21 -05001277 case Expression::kBoolLiteral_Kind:
1278 this->writeBoolLiteral((BoolLiteral&) e);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001279 break;
Ben Wagner470e0ac2020-01-22 16:59:21 -05001280 case Expression::kConstructor_Kind:
1281 this->writeConstructor((Constructor&) e);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001282 break;
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001283 case Expression::kExternalFunctionCall_Kind:
Ben Wagner470e0ac2020-01-22 16:59:21 -05001284 this->writeExternalFunctionCall((ExternalFunctionCall&) e);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001285 break;
1286 case Expression::kExternalValue_Kind:
Ben Wagner470e0ac2020-01-22 16:59:21 -05001287 this->writeExternalValue((ExternalValueReference&) e);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001288 break;
1289 case Expression::kFieldAccess_Kind:
1290 case Expression::kIndex_Kind:
1291 case Expression::kVariableReference_Kind:
Ben Wagner470e0ac2020-01-22 16:59:21 -05001292 this->writeVariableExpression(e);
1293 break;
1294 case Expression::kFloatLiteral_Kind:
1295 this->writeFloatLiteral((FloatLiteral&) e);
1296 break;
1297 case Expression::kFunctionCall_Kind:
1298 this->writeFunctionCall((FunctionCall&) e);
1299 break;
1300 case Expression::kIntLiteral_Kind:
1301 this->writeIntLiteral((IntLiteral&) e);
1302 break;
1303 case Expression::kNullLiteral_Kind:
1304 this->writeNullLiteral((NullLiteral&) e);
1305 break;
1306 case Expression::kPrefix_Kind:
1307 discard = this->writePrefixExpression((PrefixExpression&) e, discard);
1308 break;
1309 case Expression::kPostfix_Kind:
1310 discard = this->writePostfixExpression((PostfixExpression&) e, discard);
1311 break;
1312 case Expression::kSwizzle_Kind:
1313 this->writeSwizzle((Swizzle&) e);
1314 break;
1315 case Expression::kTernary_Kind:
1316 this->writeTernaryExpression((TernaryExpression&) e);
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001317 break;
Ethan Nicholas99c54f02020-01-21 16:06:47 +00001318 default:
1319#ifdef SK_DEBUG
Ben Wagner470e0ac2020-01-22 16:59:21 -05001320 printf("unsupported expression %s\n", e.description().c_str());
Ethan Nicholas99c54f02020-01-21 16:06:47 +00001321#endif
Ben Wagner470e0ac2020-01-22 16:59:21 -05001322 SkASSERT(false);
1323 }
1324 if (discard) {
1325 int count = SlotCount(e.fType);
1326 if (count > 4) {
1327 this->write(ByteCodeInstruction::kPopN, count);
1328 this->write8(count);
1329 } else if (count != 0) {
1330 this->write(vector_instruction(ByteCodeInstruction::kPop, count));
1331 }
1332 discard = false;
Ethan Nicholas99c54f02020-01-21 16:06:47 +00001333 }
Ethan Nicholas2cde3a12020-01-21 09:23:13 -05001334}
1335
Ben Wagner470e0ac2020-01-22 16:59:21 -05001336class ByteCodeExternalValueLValue : public ByteCodeGenerator::LValue {
1337public:
1338 ByteCodeExternalValueLValue(ByteCodeGenerator* generator, ExternalValue& value, int index)
1339 : INHERITED(*generator)
1340 , fCount(ByteCodeGenerator::SlotCount(value.type()))
1341 , fIndex(index) {}
1342
1343 void load() override {
1344 fGenerator.write(vector_instruction(ByteCodeInstruction::kReadExternal, fCount));
1345 fGenerator.write8(fCount);
1346 fGenerator.write8(fIndex);
1347 }
1348
1349 void store(bool discard) override {
1350 if (!discard) {
1351 fGenerator.write(vector_instruction(ByteCodeInstruction::kDup, fCount));
1352 fGenerator.write8(fCount);
1353 }
1354 fGenerator.write(vector_instruction(ByteCodeInstruction::kWriteExternal, fCount));
1355 fGenerator.write8(fCount);
1356 fGenerator.write8(fIndex);
1357 }
1358
1359private:
1360 typedef LValue INHERITED;
1361
1362 int fCount;
1363
1364 int fIndex;
1365};
1366
1367class ByteCodeSwizzleLValue : public ByteCodeGenerator::LValue {
1368public:
1369 ByteCodeSwizzleLValue(ByteCodeGenerator* generator, const Swizzle& swizzle)
1370 : INHERITED(*generator)
1371 , fSwizzle(swizzle) {}
1372
1373 void load() override {
1374 fGenerator.writeSwizzle(fSwizzle);
1375 }
1376
1377 void store(bool discard) override {
1378 int count = fSwizzle.fComponents.size();
1379 if (!discard) {
1380 fGenerator.write(vector_instruction(ByteCodeInstruction::kDup, count));
1381 fGenerator.write8(count);
1382 }
1383 ByteCodeGenerator::Location location = fGenerator.getLocation(*fSwizzle.fBase);
1384 if (location.isOnStack()) {
1385 fGenerator.write(location.selectStore(ByteCodeInstruction::kStoreSwizzleIndirect,
1386 ByteCodeInstruction::kStoreSwizzleIndirectGlobal),
1387 count);
1388 } else {
1389 fGenerator.write(location.selectStore(ByteCodeInstruction::kStoreSwizzle,
1390 ByteCodeInstruction::kStoreSwizzleGlobal),
1391 count);
1392 fGenerator.write8(location.fSlot);
1393 }
1394 fGenerator.write8(count);
1395 for (int c : fSwizzle.fComponents) {
1396 fGenerator.write8(c);
1397 }
1398 }
1399
1400private:
1401 const Swizzle& fSwizzle;
1402
1403 typedef LValue INHERITED;
1404};
1405
1406class ByteCodeExpressionLValue : public ByteCodeGenerator::LValue {
1407public:
1408 ByteCodeExpressionLValue(ByteCodeGenerator* generator, const Expression& expr)
1409 : INHERITED(*generator)
1410 , fExpression(expr) {}
1411
1412 void load() override {
1413 fGenerator.writeVariableExpression(fExpression);
1414 }
1415
1416 void store(bool discard) override {
1417 int count = ByteCodeGenerator::SlotCount(fExpression.fType);
1418 if (!discard) {
1419 if (count > 4) {
1420 fGenerator.write(ByteCodeInstruction::kDupN, count);
1421 fGenerator.write8(count);
1422 } else {
1423 fGenerator.write(vector_instruction(ByteCodeInstruction::kDup, count));
1424 fGenerator.write8(count);
1425 }
1426 }
1427 ByteCodeGenerator::Location location = fGenerator.getLocation(fExpression);
1428 if (location.isOnStack() || count > 4) {
1429 if (!location.isOnStack()) {
1430 fGenerator.write(ByteCodeInstruction::kPushImmediate);
1431 fGenerator.write32(location.fSlot);
1432 }
1433 fGenerator.write(location.selectStore(ByteCodeInstruction::kStoreExtended,
1434 ByteCodeInstruction::kStoreExtendedGlobal),
1435 count);
1436 fGenerator.write8(count);
1437 } else {
1438 fGenerator.write(
1439 vector_instruction(location.selectStore(ByteCodeInstruction::kStore,
1440 ByteCodeInstruction::kStoreGlobal),
1441 count));
1442 fGenerator.write8(location.fSlot);
1443 }
1444 }
1445
1446private:
1447 typedef LValue INHERITED;
1448
1449 const Expression& fExpression;
1450};
1451
1452std::unique_ptr<ByteCodeGenerator::LValue> ByteCodeGenerator::getLValue(const Expression& e) {
1453 switch (e.fKind) {
1454 case Expression::kExternalValue_Kind: {
1455 ExternalValue* value = ((ExternalValueReference&) e).fValue;
1456 int index = fOutput->fExternalValues.size();
1457 fOutput->fExternalValues.push_back(value);
1458 SkASSERT(index <= 255);
1459 return std::unique_ptr<LValue>(new ByteCodeExternalValueLValue(this, *value, index));
1460 }
1461 case Expression::kFieldAccess_Kind:
1462 case Expression::kIndex_Kind:
1463 case Expression::kVariableReference_Kind:
1464 return std::unique_ptr<LValue>(new ByteCodeExpressionLValue(this, e));
1465 case Expression::kSwizzle_Kind: {
1466 const Swizzle& s = (const Swizzle&) e;
1467 return swizzle_is_simple(s)
1468 ? std::unique_ptr<LValue>(new ByteCodeExpressionLValue(this, e))
1469 : std::unique_ptr<LValue>(new ByteCodeSwizzleLValue(this, s));
1470 }
1471 case Expression::kTernary_Kind:
1472 default:
1473#ifdef SK_DEBUG
1474 ABORT("unsupported lvalue %s\n", e.description().c_str());
1475#endif
1476 return nullptr;
1477 }
Ethan Nicholas7deb1c22020-01-22 10:31:55 -05001478}
1479
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001480void ByteCodeGenerator::writeBlock(const Block& b) {
1481 for (const auto& s : b.fStatements) {
1482 this->writeStatement(*s);
1483 }
1484}
1485
Ben Wagner470e0ac2020-01-22 16:59:21 -05001486void ByteCodeGenerator::setBreakTargets() {
1487 std::vector<DeferredLocation>& breaks = fBreakTargets.top();
1488 for (DeferredLocation& b : breaks) {
1489 b.set();
1490 }
1491 fBreakTargets.pop();
1492}
1493
1494void ByteCodeGenerator::setContinueTargets() {
1495 std::vector<DeferredLocation>& continues = fContinueTargets.top();
1496 for (DeferredLocation& c : continues) {
1497 c.set();
1498 }
1499 fContinueTargets.pop();
1500}
1501
1502void ByteCodeGenerator::writeBreakStatement(const BreakStatement& b) {
1503 // TODO: Include BranchIfAllFalse to top-most LoopNext
1504 this->write(ByteCodeInstruction::kLoopBreak);
1505}
1506
1507void ByteCodeGenerator::writeContinueStatement(const ContinueStatement& c) {
1508 // TODO: Include BranchIfAllFalse to top-most LoopNext
1509 this->write(ByteCodeInstruction::kLoopContinue);
1510}
1511
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001512void ByteCodeGenerator::writeDoStatement(const DoStatement& d) {
Ben Wagner470e0ac2020-01-22 16:59:21 -05001513 this->write(ByteCodeInstruction::kLoopBegin);
1514 size_t start = fCode->size();
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001515 this->writeStatement(*d.fStatement);
Ben Wagner470e0ac2020-01-22 16:59:21 -05001516 this->write(ByteCodeInstruction::kLoopNext);
1517 this->writeExpression(*d.fTest);
1518 this->write(ByteCodeInstruction::kLoopMask);
1519 // TODO: Could shorten this with kBranchIfAnyTrue
1520 this->write(ByteCodeInstruction::kBranchIfAllFalse);
Brian Osman569f12f2019-06-13 11:23:57 -04001521 DeferredLocation endLocation(this);
Ben Wagner470e0ac2020-01-22 16:59:21 -05001522 this->write(ByteCodeInstruction::kBranch);
1523 this->write16(start);
Brian Osman569f12f2019-06-13 11:23:57 -04001524 endLocation.set();
Ben Wagner470e0ac2020-01-22 16:59:21 -05001525 this->write(ByteCodeInstruction::kLoopEnd);
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001526}
1527
1528void ByteCodeGenerator::writeForStatement(const ForStatement& f) {
Ben Wagner470e0ac2020-01-22 16:59:21 -05001529 fContinueTargets.emplace();
1530 fBreakTargets.emplace();
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001531 if (f.fInitializer) {
1532 this->writeStatement(*f.fInitializer);
1533 }
Ben Wagner470e0ac2020-01-22 16:59:21 -05001534 this->write(ByteCodeInstruction::kLoopBegin);
1535 size_t start = fCode->size();
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001536 if (f.fTest) {
Ben Wagner470e0ac2020-01-22 16:59:21 -05001537 this->writeExpression(*f.fTest);
1538 this->write(ByteCodeInstruction::kLoopMask);
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001539 }
Ben Wagner470e0ac2020-01-22 16:59:21 -05001540 this->write(ByteCodeInstruction::kBranchIfAllFalse);
Brian Osman569f12f2019-06-13 11:23:57 -04001541 DeferredLocation endLocation(this);
1542 this->writeStatement(*f.fStatement);
Ben Wagner470e0ac2020-01-22 16:59:21 -05001543 this->write(ByteCodeInstruction::kLoopNext);
Brian Osman569f12f2019-06-13 11:23:57 -04001544 if (f.fNext) {
Ben Wagner470e0ac2020-01-22 16:59:21 -05001545 this->writeExpression(*f.fNext, true);
Brian Osman569f12f2019-06-13 11:23:57 -04001546 }
Ben Wagner470e0ac2020-01-22 16:59:21 -05001547 this->write(ByteCodeInstruction::kBranch);
1548 this->write16(start);
Brian Osman569f12f2019-06-13 11:23:57 -04001549 endLocation.set();
Ben Wagner470e0ac2020-01-22 16:59:21 -05001550 this->write(ByteCodeInstruction::kLoopEnd);
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001551}
1552
1553void ByteCodeGenerator::writeIfStatement(const IfStatement& i) {
Ben Wagner470e0ac2020-01-22 16:59:21 -05001554 this->writeExpression(*i.fTest);
1555 this->write(ByteCodeInstruction::kMaskPush);
1556 this->write(ByteCodeInstruction::kBranchIfAllFalse);
Brian Osman569f12f2019-06-13 11:23:57 -04001557 DeferredLocation falseLocation(this);
1558 this->writeStatement(*i.fIfTrue);
1559 falseLocation.set();
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001560 if (i.fIfFalse) {
Ben Wagner470e0ac2020-01-22 16:59:21 -05001561 this->write(ByteCodeInstruction::kMaskNegate);
1562 this->write(ByteCodeInstruction::kBranchIfAllFalse);
Brian Osman569f12f2019-06-13 11:23:57 -04001563 DeferredLocation endLocation(this);
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001564 this->writeStatement(*i.fIfFalse);
Mike Kleinb45ee832019-05-17 11:11:11 -05001565 endLocation.set();
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001566 }
Ben Wagner470e0ac2020-01-22 16:59:21 -05001567 this->write(ByteCodeInstruction::kMaskPop);
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001568}
1569
Ben Wagner470e0ac2020-01-22 16:59:21 -05001570void ByteCodeGenerator::writeReturnStatement(const ReturnStatement& r) {
1571 if (fLoopCount || fConditionCount) {
Brian Osman4a47da72019-07-12 11:30:32 -04001572 fErrors.error(r.fOffset, "return not allowed inside conditional or loop");
1573 return;
1574 }
Ben Wagner470e0ac2020-01-22 16:59:21 -05001575 int count = SlotCount(r.fExpression->fType);
1576 this->writeExpression(*r.fExpression);
1577
1578 // Technically, the kReturn also pops fOutput->fLocalCount values from the stack, too, but we
1579 // haven't counted pushing those (they're outside the scope of our stack tracking). Instead,
1580 // we account for those in writeFunction().
1581
1582 // This is all fine because we don't allow conditional returns, so we only return once anyway.
1583 this->write(ByteCodeInstruction::kReturn, -count);
1584 this->write8(count);
1585}
1586
1587void ByteCodeGenerator::writeSwitchStatement(const SwitchStatement& r) {
1588 // not yet implemented
1589 abort();
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001590}
1591
1592void ByteCodeGenerator::writeVarDeclarations(const VarDeclarations& v) {
1593 for (const auto& declStatement : v.fVars) {
1594 const VarDeclaration& decl = (VarDeclaration&) *declStatement;
Ben Wagner470e0ac2020-01-22 16:59:21 -05001595 // we need to grab the location even if we don't use it, to ensure it has been allocated
1596 Location location = this->getLocation(*decl.fVar);
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001597 if (decl.fValue) {
Ben Wagner470e0ac2020-01-22 16:59:21 -05001598 this->writeExpression(*decl.fValue);
1599 int count = SlotCount(decl.fValue->fType);
1600 if (count > 4) {
1601 this->write(ByteCodeInstruction::kPushImmediate);
1602 this->write32(location.fSlot);
1603 this->write(ByteCodeInstruction::kStoreExtended, count);
1604 this->write8(count);
1605 } else {
1606 this->write(vector_instruction(ByteCodeInstruction::kStore, count));
1607 this->write8(location.fSlot);
Brian Osman07c117b2019-05-23 12:51:06 -07001608 }
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001609 }
1610 }
1611}
1612
1613void ByteCodeGenerator::writeWhileStatement(const WhileStatement& w) {
Ben Wagner470e0ac2020-01-22 16:59:21 -05001614 this->write(ByteCodeInstruction::kLoopBegin);
1615 size_t cond = fCode->size();
1616 this->writeExpression(*w.fTest);
1617 this->write(ByteCodeInstruction::kLoopMask);
1618 this->write(ByteCodeInstruction::kBranchIfAllFalse);
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001619 DeferredLocation endLocation(this);
1620 this->writeStatement(*w.fStatement);
Ben Wagner470e0ac2020-01-22 16:59:21 -05001621 this->write(ByteCodeInstruction::kLoopNext);
1622 this->write(ByteCodeInstruction::kBranch);
1623 this->write16(cond);
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001624 endLocation.set();
Ben Wagner470e0ac2020-01-22 16:59:21 -05001625 this->write(ByteCodeInstruction::kLoopEnd);
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001626}
1627
1628void ByteCodeGenerator::writeStatement(const Statement& s) {
1629 switch (s.fKind) {
1630 case Statement::kBlock_Kind:
1631 this->writeBlock((Block&) s);
1632 break;
1633 case Statement::kBreak_Kind:
Ben Wagner470e0ac2020-01-22 16:59:21 -05001634 this->writeBreakStatement((BreakStatement&) s);
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001635 break;
1636 case Statement::kContinue_Kind:
Ben Wagner470e0ac2020-01-22 16:59:21 -05001637 this->writeContinueStatement((ContinueStatement&) s);
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001638 break;
Ben Wagner470e0ac2020-01-22 16:59:21 -05001639 case Statement::kDiscard_Kind:
1640 // not yet implemented
1641 abort();
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001642 case Statement::kDo_Kind:
1643 this->writeDoStatement((DoStatement&) s);
1644 break;
Brian Osman3e29f1d2019-05-28 09:35:05 -04001645 case Statement::kExpression_Kind:
Ben Wagner470e0ac2020-01-22 16:59:21 -05001646 this->writeExpression(*((ExpressionStatement&) s).fExpression, true);
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001647 break;
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001648 case Statement::kFor_Kind:
1649 this->writeForStatement((ForStatement&) s);
1650 break;
1651 case Statement::kIf_Kind:
1652 this->writeIfStatement((IfStatement&) s);
1653 break;
1654 case Statement::kNop_Kind:
1655 break;
1656 case Statement::kReturn_Kind:
Ben Wagner470e0ac2020-01-22 16:59:21 -05001657 this->writeReturnStatement((ReturnStatement&) s);
1658 break;
1659 case Statement::kSwitch_Kind:
1660 this->writeSwitchStatement((SwitchStatement&) s);
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001661 break;
1662 case Statement::kVarDeclarations_Kind:
1663 this->writeVarDeclarations(*((VarDeclarationsStatement&) s).fDeclaration);
1664 break;
1665 case Statement::kWhile_Kind:
1666 this->writeWhileStatement((WhileStatement&) s);
1667 break;
1668 default:
Ben Wagner470e0ac2020-01-22 16:59:21 -05001669 SkASSERT(false);
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001670 }
1671}
1672
Ben Wagner470e0ac2020-01-22 16:59:21 -05001673ByteCodeFunction::ByteCodeFunction(const FunctionDeclaration* declaration)
1674 : fName(declaration->fName) {
Brian Osman80164412019-06-07 13:00:23 -04001675 fParameterCount = 0;
Ben Wagner470e0ac2020-01-22 16:59:21 -05001676 for (const auto& p : declaration->fParameters) {
1677 int slots = ByteCodeGenerator::SlotCount(p->fType);
1678 fParameters.push_back({ slots, (bool)(p->fModifiers.fFlags & Modifiers::kOut_Flag) });
1679 fParameterCount += slots;
Brian Osman80164412019-06-07 13:00:23 -04001680 }
1681}
1682
Ethan Nicholas0e9401d2019-03-21 11:05:37 -04001683}