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John Stiles44e96be2020-08-31 13:16:04 -04001/*
2 * Copyright 2020 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
8#include "src/sksl/SkSLInliner.h"
9
John Stiles2d7973a2020-10-02 15:01:03 -040010#include <limits.h>
John Stiles44e96be2020-08-31 13:16:04 -040011#include <memory>
12#include <unordered_set>
13
14#include "src/sksl/SkSLAnalysis.h"
15#include "src/sksl/ir/SkSLBinaryExpression.h"
16#include "src/sksl/ir/SkSLBoolLiteral.h"
17#include "src/sksl/ir/SkSLBreakStatement.h"
18#include "src/sksl/ir/SkSLConstructor.h"
19#include "src/sksl/ir/SkSLContinueStatement.h"
20#include "src/sksl/ir/SkSLDiscardStatement.h"
21#include "src/sksl/ir/SkSLDoStatement.h"
22#include "src/sksl/ir/SkSLEnum.h"
23#include "src/sksl/ir/SkSLExpressionStatement.h"
24#include "src/sksl/ir/SkSLExternalFunctionCall.h"
25#include "src/sksl/ir/SkSLExternalValueReference.h"
26#include "src/sksl/ir/SkSLField.h"
27#include "src/sksl/ir/SkSLFieldAccess.h"
28#include "src/sksl/ir/SkSLFloatLiteral.h"
29#include "src/sksl/ir/SkSLForStatement.h"
30#include "src/sksl/ir/SkSLFunctionCall.h"
31#include "src/sksl/ir/SkSLFunctionDeclaration.h"
32#include "src/sksl/ir/SkSLFunctionDefinition.h"
33#include "src/sksl/ir/SkSLFunctionReference.h"
34#include "src/sksl/ir/SkSLIfStatement.h"
35#include "src/sksl/ir/SkSLIndexExpression.h"
John Stiles98c1f822020-09-09 14:18:53 -040036#include "src/sksl/ir/SkSLInlineMarker.h"
John Stiles44e96be2020-08-31 13:16:04 -040037#include "src/sksl/ir/SkSLIntLiteral.h"
38#include "src/sksl/ir/SkSLInterfaceBlock.h"
39#include "src/sksl/ir/SkSLLayout.h"
40#include "src/sksl/ir/SkSLNop.h"
41#include "src/sksl/ir/SkSLNullLiteral.h"
42#include "src/sksl/ir/SkSLPostfixExpression.h"
43#include "src/sksl/ir/SkSLPrefixExpression.h"
44#include "src/sksl/ir/SkSLReturnStatement.h"
45#include "src/sksl/ir/SkSLSetting.h"
46#include "src/sksl/ir/SkSLSwitchCase.h"
47#include "src/sksl/ir/SkSLSwitchStatement.h"
48#include "src/sksl/ir/SkSLSwizzle.h"
49#include "src/sksl/ir/SkSLTernaryExpression.h"
50#include "src/sksl/ir/SkSLUnresolvedFunction.h"
51#include "src/sksl/ir/SkSLVarDeclarations.h"
John Stiles44e96be2020-08-31 13:16:04 -040052#include "src/sksl/ir/SkSLVariable.h"
53#include "src/sksl/ir/SkSLVariableReference.h"
54#include "src/sksl/ir/SkSLWhileStatement.h"
55
56namespace SkSL {
57namespace {
58
John Stiles44dff4f2020-09-21 12:28:01 -040059static bool contains_returns_above_limit(const FunctionDefinition& funcDef, int limit) {
60 class CountReturnsWithLimit : public ProgramVisitor {
John Stiles44e96be2020-08-31 13:16:04 -040061 public:
John Stiles44dff4f2020-09-21 12:28:01 -040062 CountReturnsWithLimit(const FunctionDefinition& funcDef, int limit) : fLimit(limit) {
John Stiles44e96be2020-08-31 13:16:04 -040063 this->visitProgramElement(funcDef);
64 }
65
66 bool visitStatement(const Statement& stmt) override {
Ethan Nicholase6592142020-09-08 10:22:09 -040067 switch (stmt.kind()) {
68 case Statement::Kind::kReturn:
John Stiles44e96be2020-08-31 13:16:04 -040069 ++fNumReturns;
John Stiles44dff4f2020-09-21 12:28:01 -040070 return (fNumReturns > fLimit) || INHERITED::visitStatement(stmt);
John Stiles44e96be2020-08-31 13:16:04 -040071
72 default:
John Stiles93442622020-09-11 12:11:27 -040073 return INHERITED::visitStatement(stmt);
John Stiles44e96be2020-08-31 13:16:04 -040074 }
75 }
76
77 int fNumReturns = 0;
John Stiles44dff4f2020-09-21 12:28:01 -040078 int fLimit = 0;
John Stiles44e96be2020-08-31 13:16:04 -040079 using INHERITED = ProgramVisitor;
80 };
81
John Stiles44dff4f2020-09-21 12:28:01 -040082 return CountReturnsWithLimit{funcDef, limit}.fNumReturns > limit;
John Stiles44e96be2020-08-31 13:16:04 -040083}
84
85static int count_returns_at_end_of_control_flow(const FunctionDefinition& funcDef) {
86 class CountReturnsAtEndOfControlFlow : public ProgramVisitor {
87 public:
88 CountReturnsAtEndOfControlFlow(const FunctionDefinition& funcDef) {
89 this->visitProgramElement(funcDef);
90 }
91
92 bool visitStatement(const Statement& stmt) override {
Ethan Nicholase6592142020-09-08 10:22:09 -040093 switch (stmt.kind()) {
94 case Statement::Kind::kBlock: {
John Stiles44e96be2020-08-31 13:16:04 -040095 // Check only the last statement of a block.
Ethan Nicholas7bd60432020-09-25 14:31:59 -040096 const auto& block = stmt.as<Block>();
97 return block.children().size() &&
98 this->visitStatement(*block.children().back());
John Stiles44e96be2020-08-31 13:16:04 -040099 }
Ethan Nicholase6592142020-09-08 10:22:09 -0400100 case Statement::Kind::kSwitch:
101 case Statement::Kind::kWhile:
102 case Statement::Kind::kDo:
103 case Statement::Kind::kFor:
John Stiles44e96be2020-08-31 13:16:04 -0400104 // Don't introspect switches or loop structures at all.
105 return false;
106
Ethan Nicholase6592142020-09-08 10:22:09 -0400107 case Statement::Kind::kReturn:
John Stiles44e96be2020-08-31 13:16:04 -0400108 ++fNumReturns;
109 [[fallthrough]];
110
111 default:
John Stiles93442622020-09-11 12:11:27 -0400112 return INHERITED::visitStatement(stmt);
John Stiles44e96be2020-08-31 13:16:04 -0400113 }
114 }
115
116 int fNumReturns = 0;
117 using INHERITED = ProgramVisitor;
118 };
119
120 return CountReturnsAtEndOfControlFlow{funcDef}.fNumReturns;
121}
122
123static int count_returns_in_breakable_constructs(const FunctionDefinition& funcDef) {
124 class CountReturnsInBreakableConstructs : public ProgramVisitor {
125 public:
126 CountReturnsInBreakableConstructs(const FunctionDefinition& funcDef) {
127 this->visitProgramElement(funcDef);
128 }
129
130 bool visitStatement(const Statement& stmt) override {
Ethan Nicholase6592142020-09-08 10:22:09 -0400131 switch (stmt.kind()) {
132 case Statement::Kind::kSwitch:
133 case Statement::Kind::kWhile:
134 case Statement::Kind::kDo:
135 case Statement::Kind::kFor: {
John Stiles44e96be2020-08-31 13:16:04 -0400136 ++fInsideBreakableConstruct;
John Stiles93442622020-09-11 12:11:27 -0400137 bool result = INHERITED::visitStatement(stmt);
John Stiles44e96be2020-08-31 13:16:04 -0400138 --fInsideBreakableConstruct;
139 return result;
140 }
141
Ethan Nicholase6592142020-09-08 10:22:09 -0400142 case Statement::Kind::kReturn:
John Stiles44e96be2020-08-31 13:16:04 -0400143 fNumReturns += (fInsideBreakableConstruct > 0) ? 1 : 0;
144 [[fallthrough]];
145
146 default:
John Stiles93442622020-09-11 12:11:27 -0400147 return INHERITED::visitStatement(stmt);
John Stiles44e96be2020-08-31 13:16:04 -0400148 }
149 }
150
151 int fNumReturns = 0;
152 int fInsideBreakableConstruct = 0;
153 using INHERITED = ProgramVisitor;
154 };
155
156 return CountReturnsInBreakableConstructs{funcDef}.fNumReturns;
157}
158
159static bool has_early_return(const FunctionDefinition& funcDef) {
John Stiles44e96be2020-08-31 13:16:04 -0400160 int returnsAtEndOfControlFlow = count_returns_at_end_of_control_flow(funcDef);
John Stiles44dff4f2020-09-21 12:28:01 -0400161 return contains_returns_above_limit(funcDef, returnsAtEndOfControlFlow);
John Stiles44e96be2020-08-31 13:16:04 -0400162}
163
John Stiles991b09d2020-09-10 13:33:40 -0400164static bool contains_recursive_call(const FunctionDeclaration& funcDecl) {
165 class ContainsRecursiveCall : public ProgramVisitor {
166 public:
167 bool visit(const FunctionDeclaration& funcDecl) {
168 fFuncDecl = &funcDecl;
Ethan Nicholased84b732020-10-08 11:45:44 -0400169 return funcDecl.definition() ? this->visitProgramElement(*funcDecl.definition())
170 : false;
John Stiles991b09d2020-09-10 13:33:40 -0400171 }
172
173 bool visitExpression(const Expression& expr) override {
Ethan Nicholas0dec9922020-10-05 15:51:52 -0400174 if (expr.is<FunctionCall>() && expr.as<FunctionCall>().function().matches(*fFuncDecl)) {
John Stiles991b09d2020-09-10 13:33:40 -0400175 return true;
176 }
177 return INHERITED::visitExpression(expr);
178 }
179
180 bool visitStatement(const Statement& stmt) override {
Ethan Nicholasceb62142020-10-09 16:51:18 -0400181 if (stmt.is<InlineMarker>() &&
182 stmt.as<InlineMarker>().function().matches(*fFuncDecl)) {
John Stiles991b09d2020-09-10 13:33:40 -0400183 return true;
184 }
185 return INHERITED::visitStatement(stmt);
186 }
187
188 const FunctionDeclaration* fFuncDecl;
189 using INHERITED = ProgramVisitor;
190 };
191
192 return ContainsRecursiveCall{}.visit(funcDecl);
193}
194
John Stiles44e96be2020-08-31 13:16:04 -0400195static const Type* copy_if_needed(const Type* src, SymbolTable& symbolTable) {
Ethan Nicholase6592142020-09-08 10:22:09 -0400196 if (src->typeKind() == Type::TypeKind::kArray) {
Ethan Nicholase2c49992020-10-05 11:49:11 -0400197 return symbolTable.takeOwnershipOfSymbol(std::make_unique<Type>(src->name(),
198 src->typeKind(),
199 src->componentType(),
200 src->columns()));
John Stiles44e96be2020-08-31 13:16:04 -0400201 }
202 return src;
203}
204
John Stiles6d696082020-10-01 10:18:54 -0400205static std::unique_ptr<Statement>* find_parent_statement(
206 const std::vector<std::unique_ptr<Statement>*>& stmtStack) {
John Stiles915a38c2020-09-14 09:38:13 -0400207 SkASSERT(!stmtStack.empty());
208
209 // Walk the statement stack from back to front, ignoring the last element (which is the
210 // enclosing statement).
211 auto iter = stmtStack.rbegin();
212 ++iter;
213
214 // Anything counts as a parent statement other than a scopeless Block.
215 for (; iter != stmtStack.rend(); ++iter) {
John Stiles6d696082020-10-01 10:18:54 -0400216 std::unique_ptr<Statement>* stmt = *iter;
217 if (!(*stmt)->is<Block>() || (*stmt)->as<Block>().isScope()) {
John Stiles915a38c2020-09-14 09:38:13 -0400218 return stmt;
219 }
220 }
221
222 // There wasn't any parent statement to be found.
223 return nullptr;
224}
225
John Stilese41b4ee2020-09-28 12:28:16 -0400226std::unique_ptr<Expression> clone_with_ref_kind(const Expression& expr,
227 VariableReference::RefKind refKind) {
228 std::unique_ptr<Expression> clone = expr.clone();
John Stiles70b82422020-09-30 10:55:12 -0400229 class SetRefKindInExpression : public ProgramWriter {
John Stilese41b4ee2020-09-28 12:28:16 -0400230 public:
231 SetRefKindInExpression(VariableReference::RefKind refKind) : fRefKind(refKind) {}
John Stiles70b82422020-09-30 10:55:12 -0400232 bool visitExpression(Expression& expr) override {
John Stilese41b4ee2020-09-28 12:28:16 -0400233 if (expr.is<VariableReference>()) {
John Stiles70b82422020-09-30 10:55:12 -0400234 expr.as<VariableReference>().setRefKind(fRefKind);
John Stilese41b4ee2020-09-28 12:28:16 -0400235 }
236 return INHERITED::visitExpression(expr);
237 }
238
239 private:
240 VariableReference::RefKind fRefKind;
241
John Stiles70b82422020-09-30 10:55:12 -0400242 using INHERITED = ProgramWriter;
John Stilese41b4ee2020-09-28 12:28:16 -0400243 };
244
245 SetRefKindInExpression{refKind}.visitExpression(*clone);
246 return clone;
247}
248
John Stiles44733aa2020-09-29 17:42:23 -0400249bool is_trivial_argument(const Expression& argument) {
250 return argument.is<VariableReference>() ||
Ethan Nicholas6b4d5812020-10-12 16:11:51 -0400251 (argument.is<Swizzle>() && is_trivial_argument(*argument.as<Swizzle>().base())) ||
Ethan Nicholas7a95b202020-10-09 11:55:40 -0400252 (argument.is<FieldAccess>() &&
253 is_trivial_argument(*argument.as<FieldAccess>().base())) ||
John Stiles80ccdbd2020-09-30 11:58:16 -0400254 (argument.is<Constructor>() &&
255 argument.as<Constructor>().arguments().size() == 1 &&
256 is_trivial_argument(*argument.as<Constructor>().arguments().front())) ||
John Stiles44733aa2020-09-29 17:42:23 -0400257 (argument.is<IndexExpression>() &&
Ethan Nicholas2a4952d2020-10-08 15:35:56 -0400258 argument.as<IndexExpression>().index()->is<IntLiteral>() &&
259 is_trivial_argument(*argument.as<IndexExpression>().base()));
John Stiles44733aa2020-09-29 17:42:23 -0400260}
261
John Stiles44e96be2020-08-31 13:16:04 -0400262} // namespace
263
John Stilesb61ee902020-09-21 12:26:59 -0400264void Inliner::ensureScopedBlocks(Statement* inlinedBody, Statement* parentStmt) {
265 // No changes necessary if this statement isn't actually a block.
266 if (!inlinedBody || !inlinedBody->is<Block>()) {
267 return;
268 }
269
270 // No changes necessary if the parent statement doesn't require a scope.
271 if (!parentStmt || !(parentStmt->is<IfStatement>() || parentStmt->is<ForStatement>() ||
272 parentStmt->is<DoStatement>() || parentStmt->is<WhileStatement>())) {
273 return;
274 }
275
276 Block& block = inlinedBody->as<Block>();
277
278 // The inliner will create inlined function bodies as a Block containing multiple statements,
279 // but no scope. Normally, this is fine, but if this block is used as the statement for a
280 // do/for/if/while, this isn't actually possible to represent textually; a scope must be added
281 // for the generated code to match the intent. In the case of Blocks nested inside other Blocks,
282 // we add the scope to the outermost block if needed. Zero-statement blocks have similar
283 // issues--if we don't represent the Block textually somehow, we run the risk of accidentally
284 // absorbing the following statement into our loop--so we also add a scope to these.
285 for (Block* nestedBlock = &block;; ) {
Ethan Nicholas7bd60432020-09-25 14:31:59 -0400286 if (nestedBlock->isScope()) {
John Stilesb61ee902020-09-21 12:26:59 -0400287 // We found an explicit scope; all is well.
288 return;
289 }
Ethan Nicholas7bd60432020-09-25 14:31:59 -0400290 if (nestedBlock->children().size() != 1) {
John Stilesb61ee902020-09-21 12:26:59 -0400291 // We found a block with multiple (or zero) statements, but no scope? Let's add a scope
292 // to the outermost block.
Ethan Nicholas7bd60432020-09-25 14:31:59 -0400293 block.setIsScope(true);
John Stilesb61ee902020-09-21 12:26:59 -0400294 return;
295 }
Ethan Nicholas7bd60432020-09-25 14:31:59 -0400296 if (!nestedBlock->children()[0]->is<Block>()) {
John Stilesb61ee902020-09-21 12:26:59 -0400297 // This block has exactly one thing inside, and it's not another block. No need to scope
298 // it.
299 return;
300 }
301 // We have to go deeper.
Ethan Nicholas7bd60432020-09-25 14:31:59 -0400302 nestedBlock = &nestedBlock->children()[0]->as<Block>();
John Stilesb61ee902020-09-21 12:26:59 -0400303 }
304}
305
Ethan Nicholas041fd0a2020-10-07 16:42:04 -0400306void Inliner::reset(const Context* context, ModifiersPool* modifiers,
307 const Program::Settings* settings) {
308 fContext = context;
309 fModifiers = modifiers;
310 fSettings = settings;
John Stiles44e96be2020-08-31 13:16:04 -0400311 fInlineVarCounter = 0;
312}
313
John Stilesc75abb82020-09-14 18:24:12 -0400314String Inliner::uniqueNameForInlineVar(const String& baseName, SymbolTable* symbolTable) {
315 // If the base name starts with an underscore, like "_coords", we can't append another
316 // underscore, because OpenGL disallows two consecutive underscores anywhere in the string. But
317 // in the general case, using the underscore as a splitter reads nicely enough that it's worth
318 // putting in this special case.
319 const char* splitter = baseName.startsWith("_") ? "" : "_";
320
321 // Append a unique numeric prefix to avoid name overlap. Check the symbol table to make sure
322 // we're not reusing an existing name. (Note that within a single compilation pass, this check
323 // isn't fully comprehensive, as code isn't always generated in top-to-bottom order.)
324 String uniqueName;
325 for (;;) {
326 uniqueName = String::printf("_%d%s%s", fInlineVarCounter++, splitter, baseName.c_str());
327 StringFragment frag{uniqueName.data(), uniqueName.length()};
328 if ((*symbolTable)[frag] == nullptr) {
329 break;
330 }
331 }
332
333 return uniqueName;
334}
335
John Stiles44e96be2020-08-31 13:16:04 -0400336std::unique_ptr<Expression> Inliner::inlineExpression(int offset,
337 VariableRewriteMap* varMap,
338 const Expression& expression) {
339 auto expr = [&](const std::unique_ptr<Expression>& e) -> std::unique_ptr<Expression> {
340 if (e) {
341 return this->inlineExpression(offset, varMap, *e);
342 }
343 return nullptr;
344 };
John Stiles8e3b6be2020-10-13 11:14:08 -0400345 auto argList = [&](const ExpressionArray& originalArgs) -> ExpressionArray {
346 ExpressionArray args;
John Stilesf4bda742020-10-14 16:57:41 -0400347 args.reserve_back(originalArgs.size());
John Stiles44e96be2020-08-31 13:16:04 -0400348 for (const std::unique_ptr<Expression>& arg : originalArgs) {
349 args.push_back(expr(arg));
350 }
351 return args;
352 };
353
Ethan Nicholase6592142020-09-08 10:22:09 -0400354 switch (expression.kind()) {
355 case Expression::Kind::kBinary: {
John Stiles44e96be2020-08-31 13:16:04 -0400356 const BinaryExpression& b = expression.as<BinaryExpression>();
357 return std::make_unique<BinaryExpression>(offset,
Ethan Nicholasc8d9c8e2020-09-22 15:05:37 -0400358 expr(b.leftPointer()),
359 b.getOperator(),
360 expr(b.rightPointer()),
Ethan Nicholas30d30222020-09-11 12:27:26 -0400361 &b.type());
John Stiles44e96be2020-08-31 13:16:04 -0400362 }
Ethan Nicholase6592142020-09-08 10:22:09 -0400363 case Expression::Kind::kBoolLiteral:
364 case Expression::Kind::kIntLiteral:
365 case Expression::Kind::kFloatLiteral:
366 case Expression::Kind::kNullLiteral:
John Stiles44e96be2020-08-31 13:16:04 -0400367 return expression.clone();
Ethan Nicholase6592142020-09-08 10:22:09 -0400368 case Expression::Kind::kConstructor: {
John Stiles44e96be2020-08-31 13:16:04 -0400369 const Constructor& constructor = expression.as<Constructor>();
Ethan Nicholas30d30222020-09-11 12:27:26 -0400370 return std::make_unique<Constructor>(offset, &constructor.type(),
Ethan Nicholasf70f0442020-09-29 12:41:35 -0400371 argList(constructor.arguments()));
John Stiles44e96be2020-08-31 13:16:04 -0400372 }
Ethan Nicholase6592142020-09-08 10:22:09 -0400373 case Expression::Kind::kExternalFunctionCall: {
John Stiles44e96be2020-08-31 13:16:04 -0400374 const ExternalFunctionCall& externalCall = expression.as<ExternalFunctionCall>();
Ethan Nicholas444ccc62020-10-09 10:16:22 -0400375 return std::make_unique<ExternalFunctionCall>(offset, &externalCall.function(),
Ethan Nicholas6e86ec92020-09-30 14:29:56 -0400376 argList(externalCall.arguments()));
John Stiles44e96be2020-08-31 13:16:04 -0400377 }
Ethan Nicholase6592142020-09-08 10:22:09 -0400378 case Expression::Kind::kExternalValue:
John Stiles44e96be2020-08-31 13:16:04 -0400379 return expression.clone();
Ethan Nicholase6592142020-09-08 10:22:09 -0400380 case Expression::Kind::kFieldAccess: {
John Stiles44e96be2020-08-31 13:16:04 -0400381 const FieldAccess& f = expression.as<FieldAccess>();
Ethan Nicholas7a95b202020-10-09 11:55:40 -0400382 return std::make_unique<FieldAccess>(expr(f.base()), f.fieldIndex(), f.ownerKind());
John Stiles44e96be2020-08-31 13:16:04 -0400383 }
Ethan Nicholase6592142020-09-08 10:22:09 -0400384 case Expression::Kind::kFunctionCall: {
John Stiles44e96be2020-08-31 13:16:04 -0400385 const FunctionCall& funcCall = expression.as<FunctionCall>();
Ethan Nicholas0dec9922020-10-05 15:51:52 -0400386 return std::make_unique<FunctionCall>(offset, &funcCall.type(), &funcCall.function(),
387 argList(funcCall.arguments()));
John Stiles44e96be2020-08-31 13:16:04 -0400388 }
Ethan Nicholase6592142020-09-08 10:22:09 -0400389 case Expression::Kind::kFunctionReference:
Brian Osman2b3b35f2020-09-08 09:17:36 -0400390 return expression.clone();
Ethan Nicholase6592142020-09-08 10:22:09 -0400391 case Expression::Kind::kIndex: {
John Stiles44e96be2020-08-31 13:16:04 -0400392 const IndexExpression& idx = expression.as<IndexExpression>();
Ethan Nicholas2a4952d2020-10-08 15:35:56 -0400393 return std::make_unique<IndexExpression>(*fContext, expr(idx.base()),
394 expr(idx.index()));
John Stiles44e96be2020-08-31 13:16:04 -0400395 }
Ethan Nicholase6592142020-09-08 10:22:09 -0400396 case Expression::Kind::kPrefix: {
John Stiles44e96be2020-08-31 13:16:04 -0400397 const PrefixExpression& p = expression.as<PrefixExpression>();
Ethan Nicholas444ccc62020-10-09 10:16:22 -0400398 return std::make_unique<PrefixExpression>(p.getOperator(), expr(p.operand()));
John Stiles44e96be2020-08-31 13:16:04 -0400399 }
Ethan Nicholase6592142020-09-08 10:22:09 -0400400 case Expression::Kind::kPostfix: {
John Stiles44e96be2020-08-31 13:16:04 -0400401 const PostfixExpression& p = expression.as<PostfixExpression>();
Ethan Nicholas444ccc62020-10-09 10:16:22 -0400402 return std::make_unique<PostfixExpression>(expr(p.operand()), p.getOperator());
John Stiles44e96be2020-08-31 13:16:04 -0400403 }
Ethan Nicholase6592142020-09-08 10:22:09 -0400404 case Expression::Kind::kSetting:
John Stiles44e96be2020-08-31 13:16:04 -0400405 return expression.clone();
Ethan Nicholase6592142020-09-08 10:22:09 -0400406 case Expression::Kind::kSwizzle: {
John Stiles44e96be2020-08-31 13:16:04 -0400407 const Swizzle& s = expression.as<Swizzle>();
Ethan Nicholas6b4d5812020-10-12 16:11:51 -0400408 return std::make_unique<Swizzle>(*fContext, expr(s.base()), s.components());
John Stiles44e96be2020-08-31 13:16:04 -0400409 }
Ethan Nicholase6592142020-09-08 10:22:09 -0400410 case Expression::Kind::kTernary: {
John Stiles44e96be2020-08-31 13:16:04 -0400411 const TernaryExpression& t = expression.as<TernaryExpression>();
Ethan Nicholasdd218162020-10-08 05:48:01 -0400412 return std::make_unique<TernaryExpression>(offset, expr(t.test()),
413 expr(t.ifTrue()), expr(t.ifFalse()));
John Stiles44e96be2020-08-31 13:16:04 -0400414 }
Brian Osman83ba9302020-09-11 13:33:46 -0400415 case Expression::Kind::kTypeReference:
416 return expression.clone();
Ethan Nicholase6592142020-09-08 10:22:09 -0400417 case Expression::Kind::kVariableReference: {
John Stiles44e96be2020-08-31 13:16:04 -0400418 const VariableReference& v = expression.as<VariableReference>();
Ethan Nicholas78686922020-10-08 06:46:27 -0400419 auto varMapIter = varMap->find(v.variable());
John Stilese41b4ee2020-09-28 12:28:16 -0400420 if (varMapIter != varMap->end()) {
Ethan Nicholas78686922020-10-08 06:46:27 -0400421 return clone_with_ref_kind(*varMapIter->second, v.refKind());
John Stiles44e96be2020-08-31 13:16:04 -0400422 }
423 return v.clone();
424 }
425 default:
426 SkASSERT(false);
427 return nullptr;
428 }
429}
430
431std::unique_ptr<Statement> Inliner::inlineStatement(int offset,
432 VariableRewriteMap* varMap,
433 SymbolTable* symbolTableForStatement,
John Stilese41b4ee2020-09-28 12:28:16 -0400434 const Expression* resultExpr,
John Stiles44e96be2020-08-31 13:16:04 -0400435 bool haveEarlyReturns,
Brian Osman3887a012020-09-30 13:22:27 -0400436 const Statement& statement,
437 bool isBuiltinCode) {
John Stiles44e96be2020-08-31 13:16:04 -0400438 auto stmt = [&](const std::unique_ptr<Statement>& s) -> std::unique_ptr<Statement> {
439 if (s) {
John Stilesa5f3c312020-09-22 12:05:16 -0400440 return this->inlineStatement(offset, varMap, symbolTableForStatement, resultExpr,
Brian Osman3887a012020-09-30 13:22:27 -0400441 haveEarlyReturns, *s, isBuiltinCode);
John Stiles44e96be2020-08-31 13:16:04 -0400442 }
443 return nullptr;
444 };
Ethan Nicholas7bd60432020-09-25 14:31:59 -0400445 auto blockStmts = [&](const Block& block) {
John Stiles8f2a0cf2020-10-13 12:48:21 -0400446 StatementArray result;
John Stilesf4bda742020-10-14 16:57:41 -0400447 result.reserve_back(block.children().size());
Ethan Nicholas7bd60432020-09-25 14:31:59 -0400448 for (const std::unique_ptr<Statement>& child : block.children()) {
449 result.push_back(stmt(child));
450 }
451 return result;
452 };
John Stiles8f2a0cf2020-10-13 12:48:21 -0400453 auto stmts = [&](const StatementArray& ss) {
454 StatementArray result;
John Stilesf4bda742020-10-14 16:57:41 -0400455 result.reserve_back(ss.size());
John Stiles44e96be2020-08-31 13:16:04 -0400456 for (const auto& s : ss) {
457 result.push_back(stmt(s));
458 }
459 return result;
460 };
461 auto expr = [&](const std::unique_ptr<Expression>& e) -> std::unique_ptr<Expression> {
462 if (e) {
463 return this->inlineExpression(offset, varMap, *e);
464 }
465 return nullptr;
466 };
Ethan Nicholase6592142020-09-08 10:22:09 -0400467 switch (statement.kind()) {
468 case Statement::Kind::kBlock: {
John Stiles44e96be2020-08-31 13:16:04 -0400469 const Block& b = statement.as<Block>();
Ethan Nicholas7bd60432020-09-25 14:31:59 -0400470 return std::make_unique<Block>(offset, blockStmts(b), b.symbolTable(), b.isScope());
John Stiles44e96be2020-08-31 13:16:04 -0400471 }
472
Ethan Nicholase6592142020-09-08 10:22:09 -0400473 case Statement::Kind::kBreak:
474 case Statement::Kind::kContinue:
475 case Statement::Kind::kDiscard:
John Stiles44e96be2020-08-31 13:16:04 -0400476 return statement.clone();
477
Ethan Nicholase6592142020-09-08 10:22:09 -0400478 case Statement::Kind::kDo: {
John Stiles44e96be2020-08-31 13:16:04 -0400479 const DoStatement& d = statement.as<DoStatement>();
Ethan Nicholas1fd61162020-09-28 13:14:19 -0400480 return std::make_unique<DoStatement>(offset, stmt(d.statement()), expr(d.test()));
John Stiles44e96be2020-08-31 13:16:04 -0400481 }
Ethan Nicholase6592142020-09-08 10:22:09 -0400482 case Statement::Kind::kExpression: {
John Stiles44e96be2020-08-31 13:16:04 -0400483 const ExpressionStatement& e = statement.as<ExpressionStatement>();
Ethan Nicholasd503a5a2020-09-30 09:29:55 -0400484 return std::make_unique<ExpressionStatement>(expr(e.expression()));
John Stiles44e96be2020-08-31 13:16:04 -0400485 }
Ethan Nicholase6592142020-09-08 10:22:09 -0400486 case Statement::Kind::kFor: {
John Stiles44e96be2020-08-31 13:16:04 -0400487 const ForStatement& f = statement.as<ForStatement>();
488 // need to ensure initializer is evaluated first so that we've already remapped its
489 // declarations by the time we evaluate test & next
Ethan Nicholas0d31ed52020-10-05 14:47:09 -0400490 std::unique_ptr<Statement> initializer = stmt(f.initializer());
491 return std::make_unique<ForStatement>(offset, std::move(initializer), expr(f.test()),
492 expr(f.next()), stmt(f.statement()), f.symbols());
John Stiles44e96be2020-08-31 13:16:04 -0400493 }
Ethan Nicholase6592142020-09-08 10:22:09 -0400494 case Statement::Kind::kIf: {
John Stiles44e96be2020-08-31 13:16:04 -0400495 const IfStatement& i = statement.as<IfStatement>();
Ethan Nicholas8c44eca2020-10-07 16:47:09 -0400496 return std::make_unique<IfStatement>(offset, i.isStatic(), expr(i.test()),
497 stmt(i.ifTrue()), stmt(i.ifFalse()));
John Stiles44e96be2020-08-31 13:16:04 -0400498 }
John Stiles98c1f822020-09-09 14:18:53 -0400499 case Statement::Kind::kInlineMarker:
Ethan Nicholase6592142020-09-08 10:22:09 -0400500 case Statement::Kind::kNop:
John Stiles44e96be2020-08-31 13:16:04 -0400501 return statement.clone();
Ethan Nicholase6592142020-09-08 10:22:09 -0400502 case Statement::Kind::kReturn: {
John Stiles44e96be2020-08-31 13:16:04 -0400503 const ReturnStatement& r = statement.as<ReturnStatement>();
Ethan Nicholas2a4952d2020-10-08 15:35:56 -0400504 if (r.expression()) {
John Stilese41b4ee2020-09-28 12:28:16 -0400505 SkASSERT(resultExpr);
John Stilesa5f3c312020-09-22 12:05:16 -0400506 auto assignment =
507 std::make_unique<ExpressionStatement>(std::make_unique<BinaryExpression>(
508 offset,
Ethan Nicholas453f67f2020-10-09 10:43:45 -0400509 clone_with_ref_kind(*resultExpr,
510 VariableReference::RefKind::kWrite),
John Stilesa5f3c312020-09-22 12:05:16 -0400511 Token::Kind::TK_EQ,
Ethan Nicholas2a4952d2020-10-08 15:35:56 -0400512 expr(r.expression()),
John Stilese41b4ee2020-09-28 12:28:16 -0400513 &resultExpr->type()));
John Stiles44e96be2020-08-31 13:16:04 -0400514 if (haveEarlyReturns) {
John Stiles8f2a0cf2020-10-13 12:48:21 -0400515 StatementArray block;
John Stilesf4bda742020-10-14 16:57:41 -0400516 block.reserve_back(2);
John Stiles44e96be2020-08-31 13:16:04 -0400517 block.push_back(std::move(assignment));
John Stiles8f2a0cf2020-10-13 12:48:21 -0400518 block.push_back(std::make_unique<BreakStatement>(offset));
John Stiles44e96be2020-08-31 13:16:04 -0400519 return std::make_unique<Block>(offset, std::move(block), /*symbols=*/nullptr,
520 /*isScope=*/true);
521 } else {
522 return std::move(assignment);
523 }
524 } else {
525 if (haveEarlyReturns) {
526 return std::make_unique<BreakStatement>(offset);
527 } else {
528 return std::make_unique<Nop>();
529 }
530 }
531 }
Ethan Nicholase6592142020-09-08 10:22:09 -0400532 case Statement::Kind::kSwitch: {
John Stiles44e96be2020-08-31 13:16:04 -0400533 const SwitchStatement& ss = statement.as<SwitchStatement>();
534 std::vector<std::unique_ptr<SwitchCase>> cases;
John Stiles8f2a0cf2020-10-13 12:48:21 -0400535 cases.reserve(ss.fCases.size());
John Stiles44e96be2020-08-31 13:16:04 -0400536 for (const auto& sc : ss.fCases) {
John Stiles8f2a0cf2020-10-13 12:48:21 -0400537 cases.push_back(std::make_unique<SwitchCase>(offset, expr(sc->fValue),
538 stmts(sc->fStatements)));
John Stiles44e96be2020-08-31 13:16:04 -0400539 }
540 return std::make_unique<SwitchStatement>(offset, ss.fIsStatic, expr(ss.fValue),
541 std::move(cases), ss.fSymbols);
542 }
Ethan Nicholase6592142020-09-08 10:22:09 -0400543 case Statement::Kind::kVarDeclaration: {
John Stiles44e96be2020-08-31 13:16:04 -0400544 const VarDeclaration& decl = statement.as<VarDeclaration>();
John Stiles87ae34e2020-10-13 12:50:11 -0400545 ExpressionArray sizes;
John Stilesf4bda742020-10-14 16:57:41 -0400546 sizes.reserve_back(decl.sizeCount());
Ethan Nicholasc51f33e2020-10-13 13:49:44 -0400547 for (int i = 0; i < decl.sizeCount(); ++i) {
548 sizes.push_back(expr(decl.size(i)));
John Stiles44e96be2020-08-31 13:16:04 -0400549 }
Ethan Nicholasc51f33e2020-10-13 13:49:44 -0400550 std::unique_ptr<Expression> initialValue = expr(decl.value());
551 const Variable& old = decl.var();
John Stilesc75abb82020-09-14 18:24:12 -0400552 // We assign unique names to inlined variables--scopes hide most of the problems in this
553 // regard, but see `InlinerAvoidsVariableNameOverlap` for a counterexample where unique
554 // names are important.
555 auto name = std::make_unique<String>(
Ethan Nicholasc51f33e2020-10-13 13:49:44 -0400556 this->uniqueNameForInlineVar(String(old.name()), symbolTableForStatement));
John Stiles44e96be2020-08-31 13:16:04 -0400557 const String* namePtr = symbolTableForStatement->takeOwnershipOfString(std::move(name));
Ethan Nicholasc51f33e2020-10-13 13:49:44 -0400558 const Type* baseTypePtr = copy_if_needed(&decl.baseType(), *symbolTableForStatement);
559 const Type* typePtr = copy_if_needed(&old.type(), *symbolTableForStatement);
John Stiles44e96be2020-08-31 13:16:04 -0400560 const Variable* clone = symbolTableForStatement->takeOwnershipOfSymbol(
561 std::make_unique<Variable>(offset,
Ethan Nicholasc51f33e2020-10-13 13:49:44 -0400562 old.modifiersHandle(),
John Stiles44e96be2020-08-31 13:16:04 -0400563 namePtr->c_str(),
Ethan Nicholas30d30222020-09-11 12:27:26 -0400564 typePtr,
Brian Osman3887a012020-09-30 13:22:27 -0400565 isBuiltinCode,
Ethan Nicholasc51f33e2020-10-13 13:49:44 -0400566 old.storage(),
John Stiles44e96be2020-08-31 13:16:04 -0400567 initialValue.get()));
Ethan Nicholasc51f33e2020-10-13 13:49:44 -0400568 (*varMap)[&old] = std::make_unique<VariableReference>(offset, clone);
Brian Osmanc0213602020-10-06 14:43:32 -0400569 return std::make_unique<VarDeclaration>(clone, baseTypePtr, std::move(sizes),
John Stiles44e96be2020-08-31 13:16:04 -0400570 std::move(initialValue));
571 }
Ethan Nicholase6592142020-09-08 10:22:09 -0400572 case Statement::Kind::kWhile: {
John Stiles44e96be2020-08-31 13:16:04 -0400573 const WhileStatement& w = statement.as<WhileStatement>();
Ethan Nicholas2a4952d2020-10-08 15:35:56 -0400574 return std::make_unique<WhileStatement>(offset, expr(w.test()), stmt(w.statement()));
John Stiles44e96be2020-08-31 13:16:04 -0400575 }
576 default:
577 SkASSERT(false);
578 return nullptr;
579 }
580}
581
John Stiles6eadf132020-09-08 10:16:10 -0400582Inliner::InlinedCall Inliner::inlineCall(FunctionCall* call,
Brian Osman3887a012020-09-30 13:22:27 -0400583 SymbolTable* symbolTableForCall,
584 const FunctionDeclaration* caller) {
John Stiles44e96be2020-08-31 13:16:04 -0400585 // Inlining is more complicated here than in a typical compiler, because we have to have a
586 // high-level IR and can't just drop statements into the middle of an expression or even use
587 // gotos.
588 //
589 // Since we can't insert statements into an expression, we run the inline function as extra
590 // statements before the statement we're currently processing, relying on a lack of execution
591 // order guarantees. Since we can't use gotos (which are normally used to replace return
592 // statements), we wrap the whole function in a loop and use break statements to jump to the
593 // end.
594 SkASSERT(fSettings);
595 SkASSERT(fContext);
596 SkASSERT(call);
Ethan Nicholased84b732020-10-08 11:45:44 -0400597 SkASSERT(this->isSafeToInline(call->function().definition()));
John Stiles44e96be2020-08-31 13:16:04 -0400598
John Stiles8e3b6be2020-10-13 11:14:08 -0400599 ExpressionArray& arguments = call->arguments();
John Stiles6eadf132020-09-08 10:16:10 -0400600 const int offset = call->fOffset;
Ethan Nicholased84b732020-10-08 11:45:44 -0400601 const FunctionDefinition& function = *call->function().definition();
John Stiles6eadf132020-09-08 10:16:10 -0400602 const bool hasEarlyReturn = has_early_return(function);
603
John Stiles44e96be2020-08-31 13:16:04 -0400604 InlinedCall inlinedCall;
John Stiles8f2a0cf2020-10-13 12:48:21 -0400605 inlinedCall.fInlinedBody = std::make_unique<Block>(offset, StatementArray{},
John Stiles6eadf132020-09-08 10:16:10 -0400606 /*symbols=*/nullptr,
607 /*isScope=*/false);
John Stiles98c1f822020-09-09 14:18:53 -0400608
Ethan Nicholas7bd60432020-09-25 14:31:59 -0400609 Block& inlinedBody = *inlinedCall.fInlinedBody;
John Stiles82f373c2020-10-20 13:58:05 -0400610 inlinedBody.children().reserve_back(
611 1 + // Inline marker
612 1 + // Result variable
613 arguments.size() + // Function arguments (passing in)
614 arguments.size() + // Function arguments (copy out-params back)
615 1); // Inlined code (Block or do-while loop)
John Stiles98c1f822020-09-09 14:18:53 -0400616
Ethan Nicholasceb62142020-10-09 16:51:18 -0400617 inlinedBody.children().push_back(std::make_unique<InlineMarker>(&call->function()));
John Stiles44e96be2020-08-31 13:16:04 -0400618
John Stilese41b4ee2020-09-28 12:28:16 -0400619 auto makeInlineVar =
620 [&](const String& baseName, const Type* type, Modifiers modifiers,
621 std::unique_ptr<Expression>* initialValue) -> std::unique_ptr<Expression> {
John Stilesa003e812020-09-11 09:43:49 -0400622 // $floatLiteral or $intLiteral aren't real types that we can use for scratch variables, so
623 // replace them if they ever appear here. If this happens, we likely forgot to coerce a type
624 // somewhere during compilation.
625 if (type == fContext->fFloatLiteral_Type.get()) {
John Stilesd2be5c52020-09-11 14:58:06 -0400626 SkDEBUGFAIL("found a $floatLiteral type while inlining");
John Stilesa003e812020-09-11 09:43:49 -0400627 type = fContext->fFloat_Type.get();
628 } else if (type == fContext->fIntLiteral_Type.get()) {
John Stilesd2be5c52020-09-11 14:58:06 -0400629 SkDEBUGFAIL("found an $intLiteral type while inlining");
John Stilesa003e812020-09-11 09:43:49 -0400630 type = fContext->fInt_Type.get();
631 }
632
John Stilesc75abb82020-09-14 18:24:12 -0400633 // Provide our new variable with a unique name, and add it to our symbol table.
634 String uniqueName = this->uniqueNameForInlineVar(baseName, symbolTableForCall);
John Stilescf936f92020-08-31 17:18:45 -0400635 const String* namePtr = symbolTableForCall->takeOwnershipOfString(
636 std::make_unique<String>(std::move(uniqueName)));
John Stiles44e96be2020-08-31 13:16:04 -0400637 StringFragment nameFrag{namePtr->c_str(), namePtr->length()};
638
639 // Add our new variable to the symbol table.
John Stilesb8cc6652020-10-08 09:12:07 -0400640 const Variable* variableSymbol = symbolTableForCall->add(std::make_unique<Variable>(
641 /*offset=*/-1, fModifiers->handle(Modifiers()),
Ethan Nicholased84b732020-10-08 11:45:44 -0400642 nameFrag, type, caller->isBuiltin(),
Ethan Nicholas453f67f2020-10-09 10:43:45 -0400643 Variable::Storage::kLocal, initialValue->get()));
John Stiles44e96be2020-08-31 13:16:04 -0400644
645 // Prepare the variable declaration (taking extra care with `out` params to not clobber any
646 // initial value).
Brian Osmanc0213602020-10-06 14:43:32 -0400647 std::unique_ptr<Statement> variable;
John Stiles44e96be2020-08-31 13:16:04 -0400648 if (initialValue && (modifiers.fFlags & Modifiers::kOut_Flag)) {
Brian Osmanc0213602020-10-06 14:43:32 -0400649 variable = std::make_unique<VarDeclaration>(
John Stiles87ae34e2020-10-13 12:50:11 -0400650 variableSymbol, type, /*sizes=*/ExpressionArray{}, (*initialValue)->clone());
John Stiles44e96be2020-08-31 13:16:04 -0400651 } else {
Brian Osmanc0213602020-10-06 14:43:32 -0400652 variable = std::make_unique<VarDeclaration>(
John Stiles87ae34e2020-10-13 12:50:11 -0400653 variableSymbol, type, /*sizes=*/ExpressionArray{}, std::move(*initialValue));
John Stiles44e96be2020-08-31 13:16:04 -0400654 }
655
656 // Add the new variable-declaration statement to our block of extra statements.
Brian Osmanc0213602020-10-06 14:43:32 -0400657 inlinedBody.children().push_back(std::move(variable));
John Stiles44e96be2020-08-31 13:16:04 -0400658
John Stilese41b4ee2020-09-28 12:28:16 -0400659 return std::make_unique<VariableReference>(offset, variableSymbol);
John Stiles44e96be2020-08-31 13:16:04 -0400660 };
661
662 // Create a variable to hold the result in the extra statements (excepting void).
John Stilese41b4ee2020-09-28 12:28:16 -0400663 std::unique_ptr<Expression> resultExpr;
Ethan Nicholas0a5d0962020-10-14 13:33:18 -0400664 if (function.declaration().returnType() != *fContext->fVoid_Type) {
John Stiles44e96be2020-08-31 13:16:04 -0400665 std::unique_ptr<Expression> noInitialValue;
Ethan Nicholas0a5d0962020-10-14 13:33:18 -0400666 resultExpr = makeInlineVar(String(function.declaration().name()),
667 &function.declaration().returnType(),
John Stilese41b4ee2020-09-28 12:28:16 -0400668 Modifiers{}, &noInitialValue);
669 }
John Stiles44e96be2020-08-31 13:16:04 -0400670
671 // Create variables in the extra statements to hold the arguments, and assign the arguments to
672 // them.
673 VariableRewriteMap varMap;
John Stilese41b4ee2020-09-28 12:28:16 -0400674 std::vector<int> argsToCopyBack;
John Stiles44e96be2020-08-31 13:16:04 -0400675 for (int i = 0; i < (int) arguments.size(); ++i) {
Ethan Nicholas0a5d0962020-10-14 13:33:18 -0400676 const Variable* param = function.declaration().parameters()[i];
Ethan Nicholas041fd0a2020-10-07 16:42:04 -0400677 bool isOutParam = param->modifiers().fFlags & Modifiers::kOut_Flag;
John Stiles44e96be2020-08-31 13:16:04 -0400678
John Stiles44733aa2020-09-29 17:42:23 -0400679 // If this argument can be inlined trivially (e.g. a swizzle, or a constant array index)...
680 if (is_trivial_argument(*arguments[i])) {
John Stilese41b4ee2020-09-28 12:28:16 -0400681 // ... and it's an `out` param, or it isn't written to within the inline function...
Ethan Nicholas0a5d0962020-10-14 13:33:18 -0400682 if (isOutParam || !Analysis::StatementWritesToVariable(*function.body(), *param)) {
John Stilesf201af82020-09-29 16:57:55 -0400683 // ... we don't need to copy it at all! We can just use the existing expression.
684 varMap[param] = arguments[i]->clone();
John Stiles44e96be2020-08-31 13:16:04 -0400685 continue;
686 }
687 }
688
John Stilese41b4ee2020-09-28 12:28:16 -0400689 if (isOutParam) {
690 argsToCopyBack.push_back(i);
691 }
692
Ethan Nicholase2c49992020-10-05 11:49:11 -0400693 varMap[param] = makeInlineVar(String(param->name()), &arguments[i]->type(),
Ethan Nicholas041fd0a2020-10-07 16:42:04 -0400694 param->modifiers(), &arguments[i]);
John Stiles44e96be2020-08-31 13:16:04 -0400695 }
696
Ethan Nicholas0a5d0962020-10-14 13:33:18 -0400697 const Block& body = function.body()->as<Block>();
John Stiles8f2a0cf2020-10-13 12:48:21 -0400698 auto inlineBlock = std::make_unique<Block>(offset, StatementArray{});
John Stilesf4bda742020-10-14 16:57:41 -0400699 inlineBlock->children().reserve_back(body.children().size());
Ethan Nicholas7bd60432020-09-25 14:31:59 -0400700 for (const std::unique_ptr<Statement>& stmt : body.children()) {
Brian Osman3887a012020-09-30 13:22:27 -0400701 inlineBlock->children().push_back(this->inlineStatement(offset, &varMap, symbolTableForCall,
702 resultExpr.get(), hasEarlyReturn,
Ethan Nicholased84b732020-10-08 11:45:44 -0400703 *stmt, caller->isBuiltin()));
John Stiles44e96be2020-08-31 13:16:04 -0400704 }
705 if (hasEarlyReturn) {
706 // Since we output to backends that don't have a goto statement (which would normally be
707 // used to perform an early return), we fake it by wrapping the function in a
708 // do { } while (false); and then use break statements to jump to the end in order to
709 // emulate a goto.
Ethan Nicholas7bd60432020-09-25 14:31:59 -0400710 inlinedBody.children().push_back(std::make_unique<DoStatement>(
John Stiles44e96be2020-08-31 13:16:04 -0400711 /*offset=*/-1,
712 std::move(inlineBlock),
713 std::make_unique<BoolLiteral>(*fContext, offset, /*value=*/false)));
714 } else {
John Stiles6eadf132020-09-08 10:16:10 -0400715 // No early returns, so we can just dump the code in. We still need to keep the block so we
716 // don't get name conflicts with locals.
Ethan Nicholas7bd60432020-09-25 14:31:59 -0400717 inlinedBody.children().push_back(std::move(inlineBlock));
John Stiles44e96be2020-08-31 13:16:04 -0400718 }
719
John Stilese41b4ee2020-09-28 12:28:16 -0400720 // Copy back the values of `out` parameters into their real destinations.
721 for (int i : argsToCopyBack) {
Ethan Nicholas0a5d0962020-10-14 13:33:18 -0400722 const Variable* p = function.declaration().parameters()[i];
John Stilese41b4ee2020-09-28 12:28:16 -0400723 SkASSERT(varMap.find(p) != varMap.end());
724 inlinedBody.children().push_back(
725 std::make_unique<ExpressionStatement>(std::make_unique<BinaryExpression>(
726 offset,
Ethan Nicholas453f67f2020-10-09 10:43:45 -0400727 clone_with_ref_kind(*arguments[i], VariableReference::RefKind::kWrite),
John Stilese41b4ee2020-09-28 12:28:16 -0400728 Token::Kind::TK_EQ,
729 std::move(varMap[p]),
730 &arguments[i]->type())));
John Stiles44e96be2020-08-31 13:16:04 -0400731 }
732
John Stilese41b4ee2020-09-28 12:28:16 -0400733 if (resultExpr != nullptr) {
734 // Return our result variable as our replacement expression.
Ethan Nicholas453f67f2020-10-09 10:43:45 -0400735 SkASSERT(resultExpr->as<VariableReference>().refKind() ==
736 VariableReference::RefKind::kRead);
John Stilese41b4ee2020-09-28 12:28:16 -0400737 inlinedCall.fReplacementExpr = std::move(resultExpr);
John Stiles44e96be2020-08-31 13:16:04 -0400738 } else {
739 // It's a void function, so it doesn't actually result in anything, but we have to return
740 // something non-null as a standin.
Ethan Nicholas041fd0a2020-10-07 16:42:04 -0400741 inlinedCall.fReplacementExpr = std::make_unique<BoolLiteral>(*fContext,
742 offset,
John Stiles44e96be2020-08-31 13:16:04 -0400743 /*value=*/false);
744 }
745
John Stiles44e96be2020-08-31 13:16:04 -0400746 return inlinedCall;
747}
748
John Stiles2d7973a2020-10-02 15:01:03 -0400749bool Inliner::isSafeToInline(const FunctionDefinition* functionDef) {
John Stiles44e96be2020-08-31 13:16:04 -0400750 SkASSERT(fSettings);
751
John Stiles1c03d332020-10-13 10:30:23 -0400752 // A threshold of zero indicates that the inliner is completely disabled, so we can just return.
753 if (fSettings->fInlineThreshold <= 0) {
754 return false;
755 }
756
John Stiles2d7973a2020-10-02 15:01:03 -0400757 if (functionDef == nullptr) {
John Stiles44e96be2020-08-31 13:16:04 -0400758 // Can't inline something if we don't actually have its definition.
759 return false;
760 }
John Stiles2d7973a2020-10-02 15:01:03 -0400761
John Stiles44e96be2020-08-31 13:16:04 -0400762 if (!fSettings->fCaps || !fSettings->fCaps->canUseDoLoops()) {
763 // We don't have do-while loops. We use do-while loops to simulate early returns, so we
764 // can't inline functions that have an early return.
John Stiles2d7973a2020-10-02 15:01:03 -0400765 bool hasEarlyReturn = has_early_return(*functionDef);
John Stiles44e96be2020-08-31 13:16:04 -0400766
767 // If we didn't detect an early return, there shouldn't be any returns in breakable
768 // constructs either.
John Stiles2d7973a2020-10-02 15:01:03 -0400769 SkASSERT(hasEarlyReturn || count_returns_in_breakable_constructs(*functionDef) == 0);
John Stiles44e96be2020-08-31 13:16:04 -0400770 return !hasEarlyReturn;
771 }
772 // We have do-while loops, but we don't have any mechanism to simulate early returns within a
773 // breakable construct (switch/for/do/while), so we can't inline if there's a return inside one.
John Stiles2d7973a2020-10-02 15:01:03 -0400774 bool hasReturnInBreakableConstruct = (count_returns_in_breakable_constructs(*functionDef) > 0);
John Stiles44e96be2020-08-31 13:16:04 -0400775
776 // If we detected returns in breakable constructs, we should also detect an early return.
John Stiles2d7973a2020-10-02 15:01:03 -0400777 SkASSERT(!hasReturnInBreakableConstruct || has_early_return(*functionDef));
John Stiles44e96be2020-08-31 13:16:04 -0400778 return !hasReturnInBreakableConstruct;
779}
780
John Stiles2d7973a2020-10-02 15:01:03 -0400781// A candidate function for inlining, containing everything that `inlineCall` needs.
782struct InlineCandidate {
783 SymbolTable* fSymbols; // the SymbolTable of the candidate
784 std::unique_ptr<Statement>* fParentStmt; // the parent Statement of the enclosing stmt
785 std::unique_ptr<Statement>* fEnclosingStmt; // the Statement containing the candidate
786 std::unique_ptr<Expression>* fCandidateExpr; // the candidate FunctionCall to be inlined
787 FunctionDefinition* fEnclosingFunction; // the Function containing the candidate
788 bool fIsLargeFunction; // does candidate exceed the inline threshold?
789};
John Stiles93442622020-09-11 12:11:27 -0400790
John Stiles2d7973a2020-10-02 15:01:03 -0400791struct InlineCandidateList {
792 std::vector<InlineCandidate> fCandidates;
793};
794
795class InlineCandidateAnalyzer {
John Stiles70957c82020-10-02 16:42:10 -0400796public:
797 // A list of all the inlining candidates we found during analysis.
798 InlineCandidateList* fCandidateList;
John Stiles2d7973a2020-10-02 15:01:03 -0400799
John Stiles70957c82020-10-02 16:42:10 -0400800 // A stack of the symbol tables; since most nodes don't have one, expected to be shallower than
801 // the enclosing-statement stack.
802 std::vector<SymbolTable*> fSymbolTableStack;
803 // A stack of "enclosing" statements--these would be suitable for the inliner to use for adding
804 // new instructions. Not all statements are suitable (e.g. a for-loop's initializer). The
805 // inliner might replace a statement with a block containing the statement.
806 std::vector<std::unique_ptr<Statement>*> fEnclosingStmtStack;
807 // The function that we're currently processing (i.e. inlining into).
808 FunctionDefinition* fEnclosingFunction = nullptr;
John Stiles93442622020-09-11 12:11:27 -0400809
John Stiles70957c82020-10-02 16:42:10 -0400810 void visit(Program& program, InlineCandidateList* candidateList) {
811 fCandidateList = candidateList;
812 fSymbolTableStack.push_back(program.fSymbols.get());
John Stiles93442622020-09-11 12:11:27 -0400813
Brian Osman1179fcf2020-10-08 16:04:40 -0400814 for (const auto& pe : program.elements()) {
815 this->visitProgramElement(pe.get());
John Stiles93442622020-09-11 12:11:27 -0400816 }
817
John Stiles70957c82020-10-02 16:42:10 -0400818 fSymbolTableStack.pop_back();
819 fCandidateList = nullptr;
820 }
821
822 void visitProgramElement(ProgramElement* pe) {
823 switch (pe->kind()) {
824 case ProgramElement::Kind::kFunction: {
825 FunctionDefinition& funcDef = pe->as<FunctionDefinition>();
John Stiles607d36b2020-10-19 15:00:01 -0400826 if (!funcDef.isBuiltin()) {
827 fEnclosingFunction = &funcDef;
828 this->visitStatement(&funcDef.body());
829 }
John Stiles70957c82020-10-02 16:42:10 -0400830 break;
John Stiles93442622020-09-11 12:11:27 -0400831 }
John Stiles70957c82020-10-02 16:42:10 -0400832 default:
833 // The inliner can't operate outside of a function's scope.
834 break;
835 }
836 }
837
838 void visitStatement(std::unique_ptr<Statement>* stmt,
839 bool isViableAsEnclosingStatement = true) {
840 if (!*stmt) {
841 return;
John Stiles93442622020-09-11 12:11:27 -0400842 }
843
John Stiles70957c82020-10-02 16:42:10 -0400844 size_t oldEnclosingStmtStackSize = fEnclosingStmtStack.size();
845 size_t oldSymbolStackSize = fSymbolTableStack.size();
John Stiles93442622020-09-11 12:11:27 -0400846
John Stiles70957c82020-10-02 16:42:10 -0400847 if (isViableAsEnclosingStatement) {
848 fEnclosingStmtStack.push_back(stmt);
John Stiles93442622020-09-11 12:11:27 -0400849 }
850
John Stiles70957c82020-10-02 16:42:10 -0400851 switch ((*stmt)->kind()) {
852 case Statement::Kind::kBreak:
853 case Statement::Kind::kContinue:
854 case Statement::Kind::kDiscard:
855 case Statement::Kind::kInlineMarker:
856 case Statement::Kind::kNop:
857 break;
858
859 case Statement::Kind::kBlock: {
860 Block& block = (*stmt)->as<Block>();
861 if (block.symbolTable()) {
862 fSymbolTableStack.push_back(block.symbolTable().get());
863 }
864
865 for (std::unique_ptr<Statement>& stmt : block.children()) {
866 this->visitStatement(&stmt);
867 }
868 break;
John Stiles93442622020-09-11 12:11:27 -0400869 }
John Stiles70957c82020-10-02 16:42:10 -0400870 case Statement::Kind::kDo: {
871 DoStatement& doStmt = (*stmt)->as<DoStatement>();
872 // The loop body is a candidate for inlining.
873 this->visitStatement(&doStmt.statement());
874 // The inliner isn't smart enough to inline the test-expression for a do-while
875 // loop at this time. There are two limitations:
876 // - We would need to insert the inlined-body block at the very end of the do-
877 // statement's inner fStatement. We don't support that today, but it's doable.
878 // - We cannot inline the test expression if the loop uses `continue` anywhere; that
879 // would skip over the inlined block that evaluates the test expression. There
880 // isn't a good fix for this--any workaround would be more complex than the cost
881 // of a function call. However, loops that don't use `continue` would still be
882 // viable candidates for inlining.
883 break;
John Stiles93442622020-09-11 12:11:27 -0400884 }
John Stiles70957c82020-10-02 16:42:10 -0400885 case Statement::Kind::kExpression: {
886 ExpressionStatement& expr = (*stmt)->as<ExpressionStatement>();
887 this->visitExpression(&expr.expression());
888 break;
889 }
890 case Statement::Kind::kFor: {
891 ForStatement& forStmt = (*stmt)->as<ForStatement>();
Ethan Nicholas0d31ed52020-10-05 14:47:09 -0400892 if (forStmt.symbols()) {
893 fSymbolTableStack.push_back(forStmt.symbols().get());
John Stiles70957c82020-10-02 16:42:10 -0400894 }
895
896 // The initializer and loop body are candidates for inlining.
Ethan Nicholas0d31ed52020-10-05 14:47:09 -0400897 this->visitStatement(&forStmt.initializer(),
John Stiles70957c82020-10-02 16:42:10 -0400898 /*isViableAsEnclosingStatement=*/false);
Ethan Nicholas0d31ed52020-10-05 14:47:09 -0400899 this->visitStatement(&forStmt.statement());
John Stiles70957c82020-10-02 16:42:10 -0400900
901 // The inliner isn't smart enough to inline the test- or increment-expressions
902 // of a for loop loop at this time. There are a handful of limitations:
903 // - We would need to insert the test-expression block at the very beginning of the
904 // for-loop's inner fStatement, and the increment-expression block at the very
905 // end. We don't support that today, but it's doable.
906 // - The for-loop's built-in test-expression would need to be dropped entirely,
907 // and the loop would be halted via a break statement at the end of the inlined
908 // test-expression. This is again something we don't support today, but it could
909 // be implemented.
910 // - We cannot inline the increment-expression if the loop uses `continue` anywhere;
911 // that would skip over the inlined block that evaluates the increment expression.
912 // There isn't a good fix for this--any workaround would be more complex than the
913 // cost of a function call. However, loops that don't use `continue` would still
914 // be viable candidates for increment-expression inlining.
915 break;
916 }
917 case Statement::Kind::kIf: {
918 IfStatement& ifStmt = (*stmt)->as<IfStatement>();
Ethan Nicholas8c44eca2020-10-07 16:47:09 -0400919 this->visitExpression(&ifStmt.test());
920 this->visitStatement(&ifStmt.ifTrue());
921 this->visitStatement(&ifStmt.ifFalse());
John Stiles70957c82020-10-02 16:42:10 -0400922 break;
923 }
924 case Statement::Kind::kReturn: {
925 ReturnStatement& returnStmt = (*stmt)->as<ReturnStatement>();
Ethan Nicholas2a4952d2020-10-08 15:35:56 -0400926 this->visitExpression(&returnStmt.expression());
John Stiles70957c82020-10-02 16:42:10 -0400927 break;
928 }
929 case Statement::Kind::kSwitch: {
930 SwitchStatement& switchStmt = (*stmt)->as<SwitchStatement>();
931 if (switchStmt.fSymbols) {
932 fSymbolTableStack.push_back(switchStmt.fSymbols.get());
933 }
934
935 this->visitExpression(&switchStmt.fValue);
936 for (std::unique_ptr<SwitchCase>& switchCase : switchStmt.fCases) {
937 // The switch-case's fValue cannot be a FunctionCall; skip it.
938 for (std::unique_ptr<Statement>& caseBlock : switchCase->fStatements) {
939 this->visitStatement(&caseBlock);
940 }
941 }
942 break;
943 }
944 case Statement::Kind::kVarDeclaration: {
945 VarDeclaration& varDeclStmt = (*stmt)->as<VarDeclaration>();
946 // Don't need to scan the declaration's sizes; those are always IntLiterals.
Ethan Nicholasc51f33e2020-10-13 13:49:44 -0400947 this->visitExpression(&varDeclStmt.value());
John Stiles70957c82020-10-02 16:42:10 -0400948 break;
949 }
John Stiles70957c82020-10-02 16:42:10 -0400950 case Statement::Kind::kWhile: {
951 WhileStatement& whileStmt = (*stmt)->as<WhileStatement>();
952 // The loop body is a candidate for inlining.
Ethan Nicholas2a4952d2020-10-08 15:35:56 -0400953 this->visitStatement(&whileStmt.statement());
John Stiles70957c82020-10-02 16:42:10 -0400954 // The inliner isn't smart enough to inline the test-expression for a while loop at
955 // this time. There are two limitations:
956 // - We would need to insert the inlined-body block at the very beginning of the
957 // while loop's inner fStatement. We don't support that today, but it's doable.
958 // - The while-loop's built-in test-expression would need to be replaced with a
959 // `true` BoolLiteral, and the loop would be halted via a break statement at the
960 // end of the inlined test-expression. This is again something we don't support
961 // today, but it could be implemented.
962 break;
963 }
964 default:
965 SkUNREACHABLE;
John Stiles93442622020-09-11 12:11:27 -0400966 }
967
John Stiles70957c82020-10-02 16:42:10 -0400968 // Pop our symbol and enclosing-statement stacks.
969 fSymbolTableStack.resize(oldSymbolStackSize);
970 fEnclosingStmtStack.resize(oldEnclosingStmtStackSize);
971 }
972
973 void visitExpression(std::unique_ptr<Expression>* expr) {
974 if (!*expr) {
975 return;
John Stiles93442622020-09-11 12:11:27 -0400976 }
John Stiles70957c82020-10-02 16:42:10 -0400977
978 switch ((*expr)->kind()) {
979 case Expression::Kind::kBoolLiteral:
980 case Expression::Kind::kDefined:
981 case Expression::Kind::kExternalValue:
982 case Expression::Kind::kFieldAccess:
983 case Expression::Kind::kFloatLiteral:
984 case Expression::Kind::kFunctionReference:
985 case Expression::Kind::kIntLiteral:
986 case Expression::Kind::kNullLiteral:
987 case Expression::Kind::kSetting:
988 case Expression::Kind::kTypeReference:
989 case Expression::Kind::kVariableReference:
990 // Nothing to scan here.
991 break;
992
993 case Expression::Kind::kBinary: {
994 BinaryExpression& binaryExpr = (*expr)->as<BinaryExpression>();
995 this->visitExpression(&binaryExpr.leftPointer());
996
997 // Logical-and and logical-or binary expressions do not inline the right side,
998 // because that would invalidate short-circuiting. That is, when evaluating
999 // expressions like these:
1000 // (false && x()) // always false
1001 // (true || y()) // always true
1002 // It is illegal for side-effects from x() or y() to occur. The simplest way to
1003 // enforce that rule is to avoid inlining the right side entirely. However, it is
1004 // safe for other types of binary expression to inline both sides.
1005 Token::Kind op = binaryExpr.getOperator();
1006 bool shortCircuitable = (op == Token::Kind::TK_LOGICALAND ||
1007 op == Token::Kind::TK_LOGICALOR);
1008 if (!shortCircuitable) {
1009 this->visitExpression(&binaryExpr.rightPointer());
1010 }
1011 break;
1012 }
1013 case Expression::Kind::kConstructor: {
1014 Constructor& constructorExpr = (*expr)->as<Constructor>();
1015 for (std::unique_ptr<Expression>& arg : constructorExpr.arguments()) {
1016 this->visitExpression(&arg);
1017 }
1018 break;
1019 }
1020 case Expression::Kind::kExternalFunctionCall: {
1021 ExternalFunctionCall& funcCallExpr = (*expr)->as<ExternalFunctionCall>();
1022 for (std::unique_ptr<Expression>& arg : funcCallExpr.arguments()) {
1023 this->visitExpression(&arg);
1024 }
1025 break;
1026 }
1027 case Expression::Kind::kFunctionCall: {
1028 FunctionCall& funcCallExpr = (*expr)->as<FunctionCall>();
Ethan Nicholas0dec9922020-10-05 15:51:52 -04001029 for (std::unique_ptr<Expression>& arg : funcCallExpr.arguments()) {
John Stiles70957c82020-10-02 16:42:10 -04001030 this->visitExpression(&arg);
1031 }
1032 this->addInlineCandidate(expr);
1033 break;
1034 }
1035 case Expression::Kind::kIndex:{
1036 IndexExpression& indexExpr = (*expr)->as<IndexExpression>();
Ethan Nicholas2a4952d2020-10-08 15:35:56 -04001037 this->visitExpression(&indexExpr.base());
1038 this->visitExpression(&indexExpr.index());
John Stiles70957c82020-10-02 16:42:10 -04001039 break;
1040 }
1041 case Expression::Kind::kPostfix: {
1042 PostfixExpression& postfixExpr = (*expr)->as<PostfixExpression>();
Ethan Nicholas444ccc62020-10-09 10:16:22 -04001043 this->visitExpression(&postfixExpr.operand());
John Stiles70957c82020-10-02 16:42:10 -04001044 break;
1045 }
1046 case Expression::Kind::kPrefix: {
1047 PrefixExpression& prefixExpr = (*expr)->as<PrefixExpression>();
Ethan Nicholas444ccc62020-10-09 10:16:22 -04001048 this->visitExpression(&prefixExpr.operand());
John Stiles70957c82020-10-02 16:42:10 -04001049 break;
1050 }
1051 case Expression::Kind::kSwizzle: {
1052 Swizzle& swizzleExpr = (*expr)->as<Swizzle>();
Ethan Nicholas6b4d5812020-10-12 16:11:51 -04001053 this->visitExpression(&swizzleExpr.base());
John Stiles70957c82020-10-02 16:42:10 -04001054 break;
1055 }
1056 case Expression::Kind::kTernary: {
1057 TernaryExpression& ternaryExpr = (*expr)->as<TernaryExpression>();
1058 // The test expression is a candidate for inlining.
Ethan Nicholasdd218162020-10-08 05:48:01 -04001059 this->visitExpression(&ternaryExpr.test());
John Stiles70957c82020-10-02 16:42:10 -04001060 // The true- and false-expressions cannot be inlined, because we are only allowed to
1061 // evaluate one side.
1062 break;
1063 }
1064 default:
1065 SkUNREACHABLE;
1066 }
1067 }
1068
1069 void addInlineCandidate(std::unique_ptr<Expression>* candidate) {
1070 fCandidateList->fCandidates.push_back(
1071 InlineCandidate{fSymbolTableStack.back(),
1072 find_parent_statement(fEnclosingStmtStack),
1073 fEnclosingStmtStack.back(),
1074 candidate,
1075 fEnclosingFunction,
1076 /*isLargeFunction=*/false});
1077 }
John Stiles2d7973a2020-10-02 15:01:03 -04001078};
John Stiles93442622020-09-11 12:11:27 -04001079
John Stiles2d7973a2020-10-02 15:01:03 -04001080bool Inliner::candidateCanBeInlined(const InlineCandidate& candidate, InlinabilityCache* cache) {
John Stiles1c03d332020-10-13 10:30:23 -04001081 const FunctionDeclaration& funcDecl =
1082 (*candidate.fCandidateExpr)->as<FunctionCall>().function();
John Stiles915a38c2020-09-14 09:38:13 -04001083
John Stiles1c03d332020-10-13 10:30:23 -04001084 auto [iter, wasInserted] = cache->insert({&funcDecl, false});
John Stiles2d7973a2020-10-02 15:01:03 -04001085 if (wasInserted) {
1086 // Recursion is forbidden here to avoid an infinite death spiral of inlining.
John Stiles1c03d332020-10-13 10:30:23 -04001087 iter->second = this->isSafeToInline(funcDecl.definition()) &&
1088 !contains_recursive_call(funcDecl);
John Stiles93442622020-09-11 12:11:27 -04001089 }
1090
John Stiles2d7973a2020-10-02 15:01:03 -04001091 return iter->second;
1092}
1093
John Stiles1c03d332020-10-13 10:30:23 -04001094bool Inliner::isLargeFunction(const FunctionDefinition* functionDef) {
1095 return Analysis::NodeCountExceeds(*functionDef, fSettings->fInlineThreshold);
1096}
John Stiles2d7973a2020-10-02 15:01:03 -04001097
John Stiles1c03d332020-10-13 10:30:23 -04001098bool Inliner::isLargeFunction(const InlineCandidate& candidate, LargeFunctionCache* cache) {
1099 const FunctionDeclaration& funcDecl =
1100 (*candidate.fCandidateExpr)->as<FunctionCall>().function();
1101
1102 auto [iter, wasInserted] = cache->insert({&funcDecl, false});
John Stiles2d7973a2020-10-02 15:01:03 -04001103 if (wasInserted) {
John Stiles1c03d332020-10-13 10:30:23 -04001104 iter->second = this->isLargeFunction(funcDecl.definition());
John Stiles2d7973a2020-10-02 15:01:03 -04001105 }
1106
1107 return iter->second;
1108}
1109
1110void Inliner::buildCandidateList(Program& program, InlineCandidateList* candidateList) {
1111 // This is structured much like a ProgramVisitor, but does not actually use ProgramVisitor.
1112 // The analyzer needs to keep track of the `unique_ptr<T>*` of statements and expressions so
1113 // that they can later be replaced, and ProgramVisitor does not provide this; it only provides a
1114 // `const T&`.
1115 InlineCandidateAnalyzer analyzer;
1116 analyzer.visit(program, candidateList);
1117
1118 // Remove candidates that are not safe to inline.
1119 std::vector<InlineCandidate>& candidates = candidateList->fCandidates;
1120 InlinabilityCache cache;
1121 candidates.erase(std::remove_if(candidates.begin(),
1122 candidates.end(),
1123 [&](const InlineCandidate& candidate) {
1124 return !this->candidateCanBeInlined(candidate, &cache);
1125 }),
1126 candidates.end());
1127
1128 // Determine whether each candidate function exceeds our inlining size threshold or not. These
1129 // can still be valid candidates if they are only called one time, so we don't remove them from
1130 // the candidate list, but they will not be inlined if they're called more than once.
1131 LargeFunctionCache largeFunctionCache;
1132 for (InlineCandidate& candidate : candidates) {
1133 candidate.fIsLargeFunction = this->isLargeFunction(candidate, &largeFunctionCache);
1134 }
1135}
1136
Brian Osman2e25ff42020-10-15 10:32:04 -04001137static bool multiple_calls_to(const Program& program, const FunctionDeclaration* fn) {
John Stiles5630abf2020-10-20 12:48:55 -04001138 class MultipleCallVisitor : public ProgramVisitor {
Brian Osman2e25ff42020-10-15 10:32:04 -04001139 public:
John Stiles5630abf2020-10-20 12:48:55 -04001140 MultipleCallVisitor(const FunctionDeclaration* function) : fFunction(function) {}
Brian Osman2e25ff42020-10-15 10:32:04 -04001141
1142 bool visitExpression(const Expression& e) override {
1143 if (e.is<FunctionCall>() && &e.as<FunctionCall>().function() == fFunction) {
1144 if (fCalled) {
1145 return true;
1146 }
1147 fCalled = true;
1148 }
1149 return INHERITED::visitExpression(e);
1150 }
1151
1152 const FunctionDeclaration* fFunction;
1153 bool fCalled = false;
1154 using INHERITED = ProgramVisitor;
1155 };
1156
John Stiles5630abf2020-10-20 12:48:55 -04001157 MultipleCallVisitor visitor(fn);
Brian Osman2e25ff42020-10-15 10:32:04 -04001158 return visitor.visit(program);
1159}
1160
John Stiles2d7973a2020-10-02 15:01:03 -04001161bool Inliner::analyze(Program& program) {
John Stilesd34d56e2020-10-12 12:04:47 -04001162 // A threshold of zero indicates that the inliner is completely disabled, so we can just return.
1163 if (fSettings->fInlineThreshold <= 0) {
1164 return false;
1165 }
1166
John Stiles2d7973a2020-10-02 15:01:03 -04001167 InlineCandidateList candidateList;
1168 this->buildCandidateList(program, &candidateList);
1169
John Stiles915a38c2020-09-14 09:38:13 -04001170 // Inline the candidates where we've determined that it's safe to do so.
1171 std::unordered_set<const std::unique_ptr<Statement>*> enclosingStmtSet;
1172 bool madeChanges = false;
John Stiles2d7973a2020-10-02 15:01:03 -04001173 for (const InlineCandidate& candidate : candidateList.fCandidates) {
John Stiles915a38c2020-09-14 09:38:13 -04001174 FunctionCall& funcCall = (*candidate.fCandidateExpr)->as<FunctionCall>();
Ethan Nicholas0dec9922020-10-05 15:51:52 -04001175 const FunctionDeclaration* funcDecl = &funcCall.function();
John Stiles915a38c2020-09-14 09:38:13 -04001176
John Stiles2d7973a2020-10-02 15:01:03 -04001177 // If the function is large, not marked `inline`, and is called more than once, it's a bad
1178 // idea to inline it.
1179 if (candidate.fIsLargeFunction &&
Ethan Nicholased84b732020-10-08 11:45:44 -04001180 !(funcDecl->modifiers().fFlags & Modifiers::kInline_Flag) &&
Brian Osman2e25ff42020-10-15 10:32:04 -04001181 multiple_calls_to(program, funcDecl)) {
John Stiles915a38c2020-09-14 09:38:13 -04001182 continue;
1183 }
1184
1185 // Inlining two expressions using the same enclosing statement in the same inlining pass
1186 // does not work properly. If this happens, skip it; we'll get it in the next pass.
1187 auto [unusedIter, inserted] = enclosingStmtSet.insert(candidate.fEnclosingStmt);
1188 if (!inserted) {
1189 continue;
1190 }
1191
1192 // Convert the function call to its inlined equivalent.
Brian Osman3887a012020-09-30 13:22:27 -04001193 InlinedCall inlinedCall = this->inlineCall(&funcCall, candidate.fSymbols,
Ethan Nicholas0a5d0962020-10-14 13:33:18 -04001194 &candidate.fEnclosingFunction->declaration());
John Stiles915a38c2020-09-14 09:38:13 -04001195 if (inlinedCall.fInlinedBody) {
1196 // Ensure that the inlined body has a scope if it needs one.
John Stiles6d696082020-10-01 10:18:54 -04001197 this->ensureScopedBlocks(inlinedCall.fInlinedBody.get(), candidate.fParentStmt->get());
John Stiles915a38c2020-09-14 09:38:13 -04001198
1199 // Move the enclosing statement to the end of the unscoped Block containing the inlined
1200 // function, then replace the enclosing statement with that Block.
1201 // Before:
1202 // fInlinedBody = Block{ stmt1, stmt2, stmt3 }
1203 // fEnclosingStmt = stmt4
1204 // After:
1205 // fInlinedBody = null
1206 // fEnclosingStmt = Block{ stmt1, stmt2, stmt3, stmt4 }
Ethan Nicholas7bd60432020-09-25 14:31:59 -04001207 inlinedCall.fInlinedBody->children().push_back(std::move(*candidate.fEnclosingStmt));
John Stiles915a38c2020-09-14 09:38:13 -04001208 *candidate.fEnclosingStmt = std::move(inlinedCall.fInlinedBody);
1209 }
1210
1211 // Replace the candidate function call with our replacement expression.
1212 *candidate.fCandidateExpr = std::move(inlinedCall.fReplacementExpr);
1213 madeChanges = true;
1214
1215 // Note that nothing was destroyed except for the FunctionCall. All other nodes should
1216 // remain valid.
1217 }
1218
1219 return madeChanges;
John Stiles93442622020-09-11 12:11:27 -04001220}
1221
John Stiles44e96be2020-08-31 13:16:04 -04001222} // namespace SkSL