source: src/SymTab/Validate.cc@ a6e8f64

ADT ast-experimental pthread-emulation qualifiedEnum
Last change on this file since a6e8f64 was 92538ab, checked in by JiadaL <j82liang@…>, 3 years ago

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[0dd3a2f]1//
2// Cforall Version 1.0.0 Copyright (C) 2015 University of Waterloo
3//
4// The contents of this file are covered under the licence agreement in the
5// file "LICENCE" distributed with Cforall.
6//
[9cb8e88d]7// Validate.cc --
[0dd3a2f]8//
9// Author : Richard C. Bilson
10// Created On : Sun May 17 21:50:04 2015
[5dcb881]11// Last Modified By : Andrew Beach
12// Last Modified On : Fri Nov 12 11:00:00 2021
13// Update Count : 364
[0dd3a2f]14//
15
16// The "validate" phase of translation is used to take a syntax tree and convert it into a standard form that aims to be
17// as regular in structure as possible. Some assumptions can be made regarding the state of the tree after this pass is
18// complete, including:
19//
20// - No nested structure or union definitions; any in the input are "hoisted" to the level of the containing struct or
21// union.
22//
23// - All enumeration constants have type EnumInstType.
24//
[3c13c03]25// - The type "void" never occurs in lists of function parameter or return types. A function
26// taking no arguments has no argument types.
[0dd3a2f]27//
28// - No context instances exist; they are all replaced by the set of declarations signified by the context, instantiated
29// by the particular set of type arguments.
30//
31// - Every declaration is assigned a unique id.
32//
33// - No typedef declarations or instances exist; the actual type is substituted for each instance.
34//
35// - Each type, struct, and union definition is followed by an appropriate assignment operator.
36//
37// - Each use of a struct or union is connected to a complete definition of that struct or union, even if that
38// definition occurs later in the input.
[51b73452]39
[0db6fc0]40#include "Validate.h"
41
[d180746]42#include <cassert> // for assertf, assert
[30f9072]43#include <cstddef> // for size_t
[d180746]44#include <list> // for list
45#include <string> // for string
[18e683b]46#include <unordered_map> // for unordered_map
[d180746]47#include <utility> // for pair
[30f9072]48
[18e683b]49#include "AST/Chain.hpp"
[c1ed2ee]50#include "AST/Decl.hpp"
51#include "AST/Node.hpp"
52#include "AST/Pass.hpp"
53#include "AST/SymbolTable.hpp"
54#include "AST/Type.hpp"
[c1398e4]55#include "AST/TypeSubstitution.hpp"
[30f9072]56#include "CodeGen/CodeGenerator.h" // for genName
[9236060]57#include "CodeGen/OperatorTable.h" // for isCtorDtor, isCtorDtorAssign
[25fcb84]58#include "ControlStruct/Mutate.h" // for ForExprMutator
[18e683b]59#include "Common/CodeLocation.h" // for CodeLocation
[7abee38]60#include "Common/Stats.h" // for Stats::Heap
[30f9072]61#include "Common/PassVisitor.h" // for PassVisitor, WithDeclsToAdd
[d180746]62#include "Common/ScopedMap.h" // for ScopedMap
[30f9072]63#include "Common/SemanticError.h" // for SemanticError
64#include "Common/UniqueName.h" // for UniqueName
65#include "Common/utility.h" // for operator+, cloneAll, deleteAll
[16ba4a6f]66#include "CompilationState.h" // skip some passes in new-ast build
[be9288a]67#include "Concurrency/Keywords.h" // for applyKeywords
[30f9072]68#include "FixFunction.h" // for FixFunction
69#include "Indexer.h" // for Indexer
[8b11840]70#include "InitTweak/GenInit.h" // for fixReturnStatements
[d180746]71#include "InitTweak/InitTweak.h" // for isCtorDtorAssign
72#include "ResolvExpr/typeops.h" // for typesCompatible
[4934ea3]73#include "ResolvExpr/Resolver.h" // for findSingleExpression
[2b79a70]74#include "ResolvExpr/ResolveTypeof.h" // for resolveTypeof
[be9288a]75#include "SymTab/Autogen.h" // for SizeType
[07de76b]76#include "SynTree/LinkageSpec.h" // for C
[be9288a]77#include "SynTree/Attribute.h" // for noAttributes, Attribute
[30f9072]78#include "SynTree/Constant.h" // for Constant
[d180746]79#include "SynTree/Declaration.h" // for ObjectDecl, DeclarationWithType
80#include "SynTree/Expression.h" // for CompoundLiteralExpr, Expressio...
81#include "SynTree/Initializer.h" // for ListInit, Initializer
82#include "SynTree/Label.h" // for operator==, Label
83#include "SynTree/Mutator.h" // for Mutator
84#include "SynTree/Type.h" // for Type, TypeInstType, EnumInstType
85#include "SynTree/TypeSubstitution.h" // for TypeSubstitution
86#include "SynTree/Visitor.h" // for Visitor
[fd2debf]87#include "Validate/HandleAttributes.h" // for handleAttributes
[2bfc6b2]88#include "Validate/FindSpecialDecls.h" // for FindSpecialDecls
[d180746]89
90class CompoundStmt;
91class ReturnStmt;
92class SwitchStmt;
[51b73452]93
[b16923d]94#define debugPrint( x ) if ( doDebug ) x
[51b73452]95
96namespace SymTab {
[15f5c5e]97 /// hoists declarations that are difficult to hoist while parsing
98 struct HoistTypeDecls final : public WithDeclsToAdd {
[29f9e20]99 void previsit( SizeofExpr * );
100 void previsit( AlignofExpr * );
101 void previsit( UntypedOffsetofExpr * );
[95d09bdb]102 void previsit( CompoundLiteralExpr * );
[29f9e20]103 void handleType( Type * );
104 };
105
[a12c81f3]106 struct FixQualifiedTypes final : public WithIndexer {
[6e50a6b]107 FixQualifiedTypes() : WithIndexer(false) {}
[a12c81f3]108 Type * postmutate( QualifiedType * );
109 };
110
[a09e45b]111 struct HoistStruct final : public WithDeclsToAdd, public WithGuards {
[82dd287]112 /// Flattens nested struct types
[0dd3a2f]113 static void hoistStruct( std::list< Declaration * > &translationUnit );
[9cb8e88d]114
[a09e45b]115 void previsit( StructDecl * aggregateDecl );
116 void previsit( UnionDecl * aggregateDecl );
[0f40912]117 void previsit( StaticAssertDecl * assertDecl );
[d419d8e]118 void previsit( StructInstType * type );
119 void previsit( UnionInstType * type );
120 void previsit( EnumInstType * type );
[9cb8e88d]121
[a08ba92]122 private:
[ef5b828]123 template< typename AggDecl > void handleAggregate( AggDecl * aggregateDecl );
[c8ffe20b]124
[bdad6eb7]125 AggregateDecl * parentAggr = nullptr;
[a08ba92]126 };
[c8ffe20b]127
[cce9429]128 /// Fix return types so that every function returns exactly one value
[d24d4e1]129 struct ReturnTypeFixer {
[cce9429]130 static void fix( std::list< Declaration * > &translationUnit );
131
[0db6fc0]132 void postvisit( FunctionDecl * functionDecl );
133 void postvisit( FunctionType * ftype );
[cce9429]134 };
135
[de91427b]136 /// Replaces enum types by int, and function or array types in function parameter and return lists by appropriate pointers.
[c1ed2ee]137 struct EnumAndPointerDecay_old {
[ef5b828]138 void previsit( EnumDecl * aggregateDecl );
139 void previsit( FunctionType * func );
[a08ba92]140 };
[82dd287]141
142 /// Associates forward declarations of aggregates with their definitions
[c1ed2ee]143 struct LinkReferenceToTypes_old final : public WithIndexer, public WithGuards, public WithVisitorRef<LinkReferenceToTypes_old>, public WithShortCircuiting {
[ef5b828]144 LinkReferenceToTypes_old( const Indexer * indexer );
145 void postvisit( TypeInstType * typeInst );
[be9036d]146
[ef5b828]147 void postvisit( EnumInstType * enumInst );
148 void postvisit( StructInstType * structInst );
149 void postvisit( UnionInstType * unionInst );
150 void postvisit( TraitInstType * traitInst );
[afcb0a3]151 void previsit( QualifiedType * qualType );
152 void postvisit( QualifiedType * qualType );
[be9036d]153
[ef5b828]154 void postvisit( EnumDecl * enumDecl );
155 void postvisit( StructDecl * structDecl );
156 void postvisit( UnionDecl * unionDecl );
[522363e]157 void postvisit( TraitDecl * traitDecl );
[be9036d]158
[ef5b828]159 void previsit( StructDecl * structDecl );
160 void previsit( UnionDecl * unionDecl );
[b95fe40]161
162 void renameGenericParams( std::list< TypeDecl * > & params );
163
[06edda0]164 private:
[ef5b828]165 const Indexer * local_indexer;
[9cb8e88d]166
[c0aa336]167 typedef std::map< std::string, std::list< EnumInstType * > > ForwardEnumsType;
[0dd3a2f]168 typedef std::map< std::string, std::list< StructInstType * > > ForwardStructsType;
169 typedef std::map< std::string, std::list< UnionInstType * > > ForwardUnionsType;
[c0aa336]170 ForwardEnumsType forwardEnums;
[0dd3a2f]171 ForwardStructsType forwardStructs;
172 ForwardUnionsType forwardUnions;
[b95fe40]173 /// true if currently in a generic type body, so that type parameter instances can be renamed appropriately
174 bool inGeneric = false;
[a08ba92]175 };
[c8ffe20b]176
[6e50a6b]177 /// Does early resolution on the expressions that give enumeration constants their values
178 struct ResolveEnumInitializers final : public WithIndexer, public WithGuards, public WithVisitorRef<ResolveEnumInitializers>, public WithShortCircuiting {
179 ResolveEnumInitializers( const Indexer * indexer );
180 void postvisit( EnumDecl * enumDecl );
181
182 private:
183 const Indexer * local_indexer;
184
185 };
186
[06edda0]187 /// Replaces array and function types in forall lists by appropriate pointer type and assigns each Object and Function declaration a unique ID.
[c1ed2ee]188 struct ForallPointerDecay_old final {
[8b11840]189 void previsit( ObjectDecl * object );
190 void previsit( FunctionDecl * func );
[bbf3fda]191 void previsit( FunctionType * ftype );
[bd7e609]192 void previsit( StructDecl * aggrDecl );
193 void previsit( UnionDecl * aggrDecl );
[a08ba92]194 };
[c8ffe20b]195
[9490621]196 // These structs are the sub-sub-passes of ForallPointerDecay_old.
197
198 struct TraitExpander_old final {
199 void previsit( FunctionType * );
200 void previsit( StructDecl * );
201 void previsit( UnionDecl * );
202 };
203
204 struct AssertionFixer_old final {
205 void previsit( FunctionType * );
206 void previsit( StructDecl * );
207 void previsit( UnionDecl * );
208 };
209
210 struct CheckOperatorTypes_old final {
211 void previsit( ObjectDecl * );
212 };
213
214 struct FixUniqueIds_old final {
215 void previsit( DeclarationWithType * );
216 };
217
[d24d4e1]218 struct ReturnChecker : public WithGuards {
[de91427b]219 /// Checks that return statements return nothing if their return type is void
220 /// and return something if the return type is non-void.
221 static void checkFunctionReturns( std::list< Declaration * > & translationUnit );
222
[0db6fc0]223 void previsit( FunctionDecl * functionDecl );
224 void previsit( ReturnStmt * returnStmt );
[de91427b]225
[0db6fc0]226 typedef std::list< DeclarationWithType * > ReturnVals;
227 ReturnVals returnVals;
[de91427b]228 };
229
[48ed81c]230 struct ReplaceTypedef final : public WithVisitorRef<ReplaceTypedef>, public WithGuards, public WithShortCircuiting, public WithDeclsToAdd {
231 ReplaceTypedef() : scopeLevel( 0 ) {}
[de91427b]232 /// Replaces typedefs by forward declarations
[48ed81c]233 static void replaceTypedef( std::list< Declaration * > &translationUnit );
[85c4ef0]234
[48ed81c]235 void premutate( QualifiedType * );
236 Type * postmutate( QualifiedType * qualType );
[a506df4]237 Type * postmutate( TypeInstType * aggregateUseType );
238 Declaration * postmutate( TypedefDecl * typeDecl );
239 void premutate( TypeDecl * typeDecl );
240 void premutate( FunctionDecl * funcDecl );
241 void premutate( ObjectDecl * objDecl );
242 DeclarationWithType * postmutate( ObjectDecl * objDecl );
243
244 void premutate( CastExpr * castExpr );
245
246 void premutate( CompoundStmt * compoundStmt );
247
248 void premutate( StructDecl * structDecl );
249 void premutate( UnionDecl * unionDecl );
250 void premutate( EnumDecl * enumDecl );
[0bcc2b7]251 void premutate( TraitDecl * );
[a506df4]252
[1f370451]253 void premutate( FunctionType * ftype );
254
[a506df4]255 private:
[45161b4d]256 template<typename AggDecl>
257 void addImplicitTypedef( AggDecl * aggDecl );
[48ed81c]258 template< typename AggDecl >
259 void handleAggregate( AggDecl * aggr );
[70a06f6]260
[46f6134]261 typedef std::unique_ptr<TypedefDecl> TypedefDeclPtr;
[e491159]262 typedef ScopedMap< std::string, std::pair< TypedefDeclPtr, int > > TypedefMap;
[0bcc2b7]263 typedef ScopedMap< std::string, TypeDecl * > TypeDeclMap;
[cc79d97]264 TypedefMap typedefNames;
[679864e1]265 TypeDeclMap typedeclNames;
[cc79d97]266 int scopeLevel;
[1f370451]267 bool inFunctionType = false;
[a08ba92]268 };
[c8ffe20b]269
[69918cea]270 struct EliminateTypedef {
271 /// removes TypedefDecls from the AST
272 static void eliminateTypedef( std::list< Declaration * > &translationUnit );
273
274 template<typename AggDecl>
[ef5b828]275 void handleAggregate( AggDecl * aggregateDecl );
[69918cea]276
277 void previsit( StructDecl * aggregateDecl );
278 void previsit( UnionDecl * aggregateDecl );
279 void previsit( CompoundStmt * compoundStmt );
280 };
281
[d24d4e1]282 struct VerifyCtorDtorAssign {
[d1969a6]283 /// ensure that constructors, destructors, and assignment have at least one
284 /// parameter, the first of which must be a pointer, and that ctor/dtors have no
[9cb8e88d]285 /// return values.
286 static void verify( std::list< Declaration * > &translationUnit );
287
[ef5b828]288 void previsit( FunctionDecl * funcDecl );
[5f98ce5]289 };
[70a06f6]290
[11ab8ea8]291 /// ensure that generic types have the correct number of type arguments
[d24d4e1]292 struct ValidateGenericParameters {
[0db6fc0]293 void previsit( StructInstType * inst );
294 void previsit( UnionInstType * inst );
[5f98ce5]295 };
[70a06f6]296
[6e50a6b]297 /// desugar declarations and uses of dimension paramaters like [N],
298 /// from type-system managed values, to tunnneling via ordinary types,
299 /// as char[-] in and sizeof(-) out
300 struct TranslateDimensionGenericParameters : public WithIndexer, public WithGuards {
301 static void translateDimensions( std::list< Declaration * > &translationUnit );
302 TranslateDimensionGenericParameters();
303
304 bool nextVisitedNodeIsChildOfSUIT = false; // SUIT = Struct or Union -Inst Type
305 bool visitingChildOfSUIT = false;
306 void changeState_ChildOfSUIT( bool newVal );
307 void premutate( StructInstType * sit );
308 void premutate( UnionInstType * uit );
309 void premutate( BaseSyntaxNode * node );
310
311 TypeDecl * postmutate( TypeDecl * td );
312 Expression * postmutate( DimensionExpr * de );
313 Expression * postmutate( Expression * e );
314 };
315
[2b79a70]316 struct FixObjectType : public WithIndexer {
317 /// resolves typeof type in object, function, and type declarations
318 static void fix( std::list< Declaration * > & translationUnit );
319
320 void previsit( ObjectDecl * );
321 void previsit( FunctionDecl * );
322 void previsit( TypeDecl * );
323 };
324
[09867ec]325 struct InitializerLength {
[fbd7ad6]326 /// for array types without an explicit length, compute the length and store it so that it
327 /// is known to the rest of the phases. For example,
328 /// int x[] = { 1, 2, 3 };
329 /// int y[][2] = { { 1, 2, 3 }, { 1, 2, 3 } };
330 /// here x and y are known at compile-time to have length 3, so change this into
331 /// int x[3] = { 1, 2, 3 };
332 /// int y[3][2] = { { 1, 2, 3 }, { 1, 2, 3 } };
333 static void computeLength( std::list< Declaration * > & translationUnit );
334
[0db6fc0]335 void previsit( ObjectDecl * objDecl );
[09867ec]336 };
337
338 struct ArrayLength : public WithIndexer {
339 static void computeLength( std::list< Declaration * > & translationUnit );
340
[3ff4c1e]341 void previsit( ArrayType * arrayType );
[fbd7ad6]342 };
343
[d24d4e1]344 struct CompoundLiteral final : public WithDeclsToAdd, public WithVisitorRef<CompoundLiteral> {
[68fe077a]345 Type::StorageClasses storageClasses;
[630a82a]346
[ef5b828]347 void premutate( ObjectDecl * objectDecl );
348 Expression * postmutate( CompoundLiteralExpr * compLitExpr );
[9cb8e88d]349 };
350
[5809461]351 struct LabelAddressFixer final : public WithGuards {
352 std::set< Label > labels;
353
354 void premutate( FunctionDecl * funcDecl );
355 Expression * postmutate( AddressExpr * addrExpr );
356 };
[4fbdfae0]357
[5dcb881]358 void validate_A( std::list< Declaration * > & translationUnit ) {
[c1ed2ee]359 PassVisitor<EnumAndPointerDecay_old> epc;
[15f5c5e]360 PassVisitor<HoistTypeDecls> hoistDecls;
[3c0d4cd]361 {
362 Stats::Heap::newPass("validate-A");
363 Stats::Time::BlockGuard guard("validate-A");
[98538288]364 VerifyCtorDtorAssign::verify( translationUnit ); // must happen before autogen, because autogen examines existing ctor/dtors
[3c0d4cd]365 acceptAll( translationUnit, hoistDecls );
366 ReplaceTypedef::replaceTypedef( translationUnit );
367 ReturnTypeFixer::fix( translationUnit ); // must happen before autogen
[c1ed2ee]368 acceptAll( translationUnit, epc ); // must happen before VerifyCtorDtorAssign, because void return objects should not exist; before LinkReferenceToTypes_old because it is an indexer and needs correct types for mangling
[3c0d4cd]369 }
[5dcb881]370 }
371
372 void validate_B( std::list< Declaration * > & translationUnit ) {
373 PassVisitor<LinkReferenceToTypes_old> lrt( nullptr );
374 PassVisitor<FixQualifiedTypes> fixQual;
[3c0d4cd]375 {
376 Stats::Heap::newPass("validate-B");
377 Stats::Time::BlockGuard guard("validate-B");
[6e50a6b]378 acceptAll( translationUnit, lrt ); // must happen before autogen, because sized flag needs to propagate to generated functions
379 mutateAll( translationUnit, fixQual ); // must happen after LinkReferenceToTypes_old, because aggregate members are accessed
380 HoistStruct::hoistStruct( translationUnit );
381 EliminateTypedef::eliminateTypedef( translationUnit );
[3c0d4cd]382 }
[5dcb881]383 }
384
385 void validate_C( std::list< Declaration * > & translationUnit ) {
386 PassVisitor<ValidateGenericParameters> genericParams;
387 PassVisitor<ResolveEnumInitializers> rei( nullptr );
[3c0d4cd]388 {
389 Stats::Heap::newPass("validate-C");
390 Stats::Time::BlockGuard guard("validate-C");
[6e50a6b]391 Stats::Time::TimeBlock("Validate Generic Parameters", [&]() {
392 acceptAll( translationUnit, genericParams ); // check as early as possible - can't happen before LinkReferenceToTypes_old; observed failing when attempted before eliminateTypedef
393 });
394 Stats::Time::TimeBlock("Translate Dimensions", [&]() {
395 TranslateDimensionGenericParameters::translateDimensions( translationUnit );
396 });
[7c919559]397 if (!useNewAST) {
[6e50a6b]398 Stats::Time::TimeBlock("Resolve Enum Initializers", [&]() {
399 acceptAll( translationUnit, rei ); // must happen after translateDimensions because rei needs identifier lookup, which needs name mangling
400 });
[7c919559]401 }
[6e50a6b]402 Stats::Time::TimeBlock("Check Function Returns", [&]() {
403 ReturnChecker::checkFunctionReturns( translationUnit );
404 });
405 Stats::Time::TimeBlock("Fix Return Statements", [&]() {
406 InitTweak::fixReturnStatements( translationUnit ); // must happen before autogen
407 });
[3c0d4cd]408 }
[5dcb881]409 }
410
[a76202d]411 static void decayForallPointers( std::list< Declaration * > & translationUnit ) {
412 PassVisitor<TraitExpander_old> te;
413 acceptAll( translationUnit, te );
414 PassVisitor<AssertionFixer_old> af;
415 acceptAll( translationUnit, af );
416 PassVisitor<CheckOperatorTypes_old> cot;
417 acceptAll( translationUnit, cot );
418 PassVisitor<FixUniqueIds_old> fui;
419 acceptAll( translationUnit, fui );
420 }
421
[5dcb881]422 void validate_D( std::list< Declaration * > & translationUnit ) {
[3c0d4cd]423 {
424 Stats::Heap::newPass("validate-D");
425 Stats::Time::BlockGuard guard("validate-D");
[c884f2d]426 Stats::Time::TimeBlock("Apply Concurrent Keywords", [&]() {
427 Concurrency::applyKeywords( translationUnit );
428 });
429 Stats::Time::TimeBlock("Forall Pointer Decay", [&]() {
[9490621]430 decayForallPointers( translationUnit ); // must happen before autogenerateRoutines, after Concurrency::applyKeywords because uniqueIds must be set on declaration before resolution
[c884f2d]431 });
432 Stats::Time::TimeBlock("Hoist Control Declarations", [&]() {
433 ControlStruct::hoistControlDecls( translationUnit ); // hoist initialization out of for statements; must happen before autogenerateRoutines
434 });
435 Stats::Time::TimeBlock("Generate Autogen routines", [&]() {
[c1ed2ee]436 autogenerateRoutines( translationUnit ); // moved up, used to be below compoundLiteral - currently needs EnumAndPointerDecay_old
[c884f2d]437 });
[3c0d4cd]438 }
[5dcb881]439 }
440
441 void validate_E( std::list< Declaration * > & translationUnit ) {
442 PassVisitor<CompoundLiteral> compoundliteral;
[3c0d4cd]443 {
444 Stats::Heap::newPass("validate-E");
445 Stats::Time::BlockGuard guard("validate-E");
[c884f2d]446 Stats::Time::TimeBlock("Implement Mutex Func", [&]() {
447 Concurrency::implementMutexFuncs( translationUnit );
448 });
449 Stats::Time::TimeBlock("Implement Thread Start", [&]() {
450 Concurrency::implementThreadStarter( translationUnit );
451 });
452 Stats::Time::TimeBlock("Compound Literal", [&]() {
453 mutateAll( translationUnit, compoundliteral );
454 });
[16ba4a6f]455 if (!useNewAST) {
456 Stats::Time::TimeBlock("Resolve With Expressions", [&]() {
457 ResolvExpr::resolveWithExprs( translationUnit ); // must happen before FixObjectType because user-code is resolved and may contain with variables
458 });
459 }
[3c0d4cd]460 }
[5dcb881]461 }
462
463 void validate_F( std::list< Declaration * > & translationUnit ) {
464 PassVisitor<LabelAddressFixer> labelAddrFixer;
[3c0d4cd]465 {
466 Stats::Heap::newPass("validate-F");
467 Stats::Time::BlockGuard guard("validate-F");
[16ba4a6f]468 if (!useNewAST) {
469 Stats::Time::TimeCall("Fix Object Type",
470 FixObjectType::fix, translationUnit);
471 }
[09867ec]472 Stats::Time::TimeCall("Initializer Length",
473 InitializerLength::computeLength, translationUnit);
474 if (!useNewAST) {
475 Stats::Time::TimeCall("Array Length",
476 ArrayLength::computeLength, translationUnit);
477 }
[095b99a]478 Stats::Time::TimeCall("Find Special Declarations",
479 Validate::findSpecialDecls, translationUnit);
480 Stats::Time::TimeCall("Fix Label Address",
481 mutateAll<LabelAddressFixer>, translationUnit, labelAddrFixer);
[16ba4a6f]482 if (!useNewAST) {
483 Stats::Time::TimeCall("Handle Attributes",
484 Validate::handleAttributes, translationUnit);
485 }
[3c0d4cd]486 }
[a08ba92]487 }
[9cb8e88d]488
[5dcb881]489 void validate( std::list< Declaration * > &translationUnit, __attribute__((unused)) bool doDebug ) {
490 validate_A( translationUnit );
491 validate_B( translationUnit );
492 validate_C( translationUnit );
493 validate_D( translationUnit );
494 validate_E( translationUnit );
495 validate_F( translationUnit );
496 }
497
[ef5b828]498 void validateType( Type * type, const Indexer * indexer ) {
[c1ed2ee]499 PassVisitor<EnumAndPointerDecay_old> epc;
500 PassVisitor<LinkReferenceToTypes_old> lrt( indexer );
[9490621]501 PassVisitor<TraitExpander_old> te;
502 PassVisitor<AssertionFixer_old> af;
503 PassVisitor<CheckOperatorTypes_old> cot;
504 PassVisitor<FixUniqueIds_old> fui;
[bda58ad]505 type->accept( epc );
[cce9429]506 type->accept( lrt );
[9490621]507 type->accept( te );
508 type->accept( af );
509 type->accept( cot );
510 type->accept( fui );
[a08ba92]511 }
[c8ffe20b]512
[15f5c5e]513 void HoistTypeDecls::handleType( Type * type ) {
[29f9e20]514 // some type declarations are buried in expressions and not easy to hoist during parsing; hoist them here
515 AggregateDecl * aggr = nullptr;
516 if ( StructInstType * inst = dynamic_cast< StructInstType * >( type ) ) {
517 aggr = inst->baseStruct;
518 } else if ( UnionInstType * inst = dynamic_cast< UnionInstType * >( type ) ) {
519 aggr = inst->baseUnion;
520 } else if ( EnumInstType * inst = dynamic_cast< EnumInstType * >( type ) ) {
521 aggr = inst->baseEnum;
522 }
523 if ( aggr && aggr->body ) {
524 declsToAddBefore.push_front( aggr );
525 }
526 }
527
[15f5c5e]528 void HoistTypeDecls::previsit( SizeofExpr * expr ) {
[29f9e20]529 handleType( expr->type );
530 }
531
[15f5c5e]532 void HoistTypeDecls::previsit( AlignofExpr * expr ) {
[29f9e20]533 handleType( expr->type );
534 }
535
[15f5c5e]536 void HoistTypeDecls::previsit( UntypedOffsetofExpr * expr ) {
[29f9e20]537 handleType( expr->type );
538 }
539
[95d09bdb]540 void HoistTypeDecls::previsit( CompoundLiteralExpr * expr ) {
541 handleType( expr->result );
542 }
543
[29f9e20]544
[a12c81f3]545 Type * FixQualifiedTypes::postmutate( QualifiedType * qualType ) {
546 Type * parent = qualType->parent;
547 Type * child = qualType->child;
548 if ( dynamic_cast< GlobalScopeType * >( qualType->parent ) ) {
549 // .T => lookup T at global scope
[062e8df]550 if ( TypeInstType * inst = dynamic_cast< TypeInstType * >( child ) ) {
[a12c81f3]551 auto td = indexer.globalLookupType( inst->name );
[062e8df]552 if ( ! td ) {
553 SemanticError( qualType->location, toString("Use of undefined global type ", inst->name) );
554 }
[a12c81f3]555 auto base = td->base;
[062e8df]556 assert( base );
[8a3ecb9]557 Type * ret = base->clone();
558 ret->get_qualifiers() = qualType->get_qualifiers();
559 return ret;
[a12c81f3]560 } else {
[062e8df]561 // .T => T is not a type name
562 assertf( false, "unhandled global qualified child type: %s", toCString(child) );
[a12c81f3]563 }
564 } else {
565 // S.T => S must be an aggregate type, find the declaration for T in S.
566 AggregateDecl * aggr = nullptr;
567 if ( StructInstType * inst = dynamic_cast< StructInstType * >( parent ) ) {
568 aggr = inst->baseStruct;
569 } else if ( UnionInstType * inst = dynamic_cast< UnionInstType * > ( parent ) ) {
570 aggr = inst->baseUnion;
571 } else {
[062e8df]572 SemanticError( qualType->location, toString("Qualified type requires an aggregate on the left, but has: ", parent) );
[a12c81f3]573 }
574 assert( aggr ); // TODO: need to handle forward declarations
575 for ( Declaration * member : aggr->members ) {
[7e08acf]576 if ( TypeInstType * inst = dynamic_cast< TypeInstType * >( child ) ) {
[8a3ecb9]577 // name on the right is a typedef
[a12c81f3]578 if ( NamedTypeDecl * aggr = dynamic_cast< NamedTypeDecl * > ( member ) ) {
579 if ( aggr->name == inst->name ) {
[062e8df]580 assert( aggr->base );
[8a3ecb9]581 Type * ret = aggr->base->clone();
582 ret->get_qualifiers() = qualType->get_qualifiers();
[7e08acf]583 TypeSubstitution sub = parent->genericSubstitution();
584 sub.apply(ret);
[8a3ecb9]585 return ret;
[a12c81f3]586 }
587 }
588 } else {
589 // S.T - S is not an aggregate => error
590 assertf( false, "unhandled qualified child type: %s", toCString(qualType) );
591 }
592 }
593 // failed to find a satisfying definition of type
[062e8df]594 SemanticError( qualType->location, toString("Undefined type in qualified type: ", qualType) );
[a12c81f3]595 }
596
597 // ... may want to link canonical SUE definition to each forward decl so that it becomes easier to lookup?
598 }
599
600
[a08ba92]601 void HoistStruct::hoistStruct( std::list< Declaration * > &translationUnit ) {
[a09e45b]602 PassVisitor<HoistStruct> hoister;
603 acceptAll( translationUnit, hoister );
[a08ba92]604 }
[c8ffe20b]605
[ef5b828]606 bool shouldHoist( Declaration * decl ) {
[0f40912]607 return dynamic_cast< StructDecl * >( decl ) || dynamic_cast< UnionDecl * >( decl ) || dynamic_cast< StaticAssertDecl * >( decl );
[a08ba92]608 }
[c0aa336]609
[d419d8e]610 namespace {
611 void qualifiedName( AggregateDecl * aggr, std::ostringstream & ss ) {
612 if ( aggr->parent ) qualifiedName( aggr->parent, ss );
613 ss << "__" << aggr->name;
614 }
615
616 // mangle nested type names using entire parent chain
617 std::string qualifiedName( AggregateDecl * aggr ) {
618 std::ostringstream ss;
619 qualifiedName( aggr, ss );
620 return ss.str();
621 }
622 }
623
[a08ba92]624 template< typename AggDecl >
[ef5b828]625 void HoistStruct::handleAggregate( AggDecl * aggregateDecl ) {
[bdad6eb7]626 if ( parentAggr ) {
[d419d8e]627 aggregateDecl->parent = parentAggr;
628 aggregateDecl->name = qualifiedName( aggregateDecl );
[0dd3a2f]629 // Add elements in stack order corresponding to nesting structure.
[a09e45b]630 declsToAddBefore.push_front( aggregateDecl );
[0dd3a2f]631 } else {
[bdad6eb7]632 GuardValue( parentAggr );
633 parentAggr = aggregateDecl;
[0dd3a2f]634 } // if
635 // Always remove the hoisted aggregate from the inner structure.
[0f40912]636 GuardAction( [aggregateDecl]() { filter( aggregateDecl->members, shouldHoist, false ); } );
[a08ba92]637 }
[c8ffe20b]638
[0f40912]639 void HoistStruct::previsit( StaticAssertDecl * assertDecl ) {
640 if ( parentAggr ) {
641 declsToAddBefore.push_back( assertDecl );
642 }
643 }
644
[a09e45b]645 void HoistStruct::previsit( StructDecl * aggregateDecl ) {
[0dd3a2f]646 handleAggregate( aggregateDecl );
[a08ba92]647 }
[c8ffe20b]648
[a09e45b]649 void HoistStruct::previsit( UnionDecl * aggregateDecl ) {
[0dd3a2f]650 handleAggregate( aggregateDecl );
[a08ba92]651 }
[c8ffe20b]652
[d419d8e]653 void HoistStruct::previsit( StructInstType * type ) {
654 // need to reset type name after expanding to qualified name
655 assert( type->baseStruct );
656 type->name = type->baseStruct->name;
657 }
658
659 void HoistStruct::previsit( UnionInstType * type ) {
660 assert( type->baseUnion );
661 type->name = type->baseUnion->name;
662 }
663
664 void HoistStruct::previsit( EnumInstType * type ) {
665 assert( type->baseEnum );
666 type->name = type->baseEnum->name;
667 }
668
669
[ef5b828]670 bool isTypedef( Declaration * decl ) {
[69918cea]671 return dynamic_cast< TypedefDecl * >( decl );
672 }
673
674 void EliminateTypedef::eliminateTypedef( std::list< Declaration * > &translationUnit ) {
675 PassVisitor<EliminateTypedef> eliminator;
676 acceptAll( translationUnit, eliminator );
677 filter( translationUnit, isTypedef, true );
678 }
679
680 template< typename AggDecl >
[ef5b828]681 void EliminateTypedef::handleAggregate( AggDecl * aggregateDecl ) {
[69918cea]682 filter( aggregateDecl->members, isTypedef, true );
683 }
684
685 void EliminateTypedef::previsit( StructDecl * aggregateDecl ) {
686 handleAggregate( aggregateDecl );
687 }
688
689 void EliminateTypedef::previsit( UnionDecl * aggregateDecl ) {
690 handleAggregate( aggregateDecl );
691 }
692
693 void EliminateTypedef::previsit( CompoundStmt * compoundStmt ) {
694 // remove and delete decl stmts
695 filter( compoundStmt->kids, [](Statement * stmt) {
[ef5b828]696 if ( DeclStmt * declStmt = dynamic_cast< DeclStmt * >( stmt ) ) {
[69918cea]697 if ( dynamic_cast< TypedefDecl * >( declStmt->decl ) ) {
698 return true;
699 } // if
700 } // if
701 return false;
702 }, true);
703 }
704
[ef5b828]705 void EnumAndPointerDecay_old::previsit( EnumDecl * enumDecl ) {
[0dd3a2f]706 // Set the type of each member of the enumeration to be EnumConstant
[0b3b2ae]707 for ( std::list< Declaration * >::iterator i = enumDecl->members.begin(); i != enumDecl->members.end(); ++i ) {
[ef5b828]708 ObjectDecl * obj = dynamic_cast< ObjectDecl * >( * i );
[0dd3a2f]709 assert( obj );
[0b3b2ae]710 obj->set_type( new EnumInstType( Type::Qualifiers( Type::Const ), enumDecl->name ) );
[0dd3a2f]711 } // for
[a08ba92]712 }
[51b73452]713
[a08ba92]714 namespace {
[83de11e]715 template< typename DWTList >
[4bda2cf]716 void fixFunctionList( DWTList & dwts, bool isVarArgs, FunctionType * func ) {
717 auto nvals = dwts.size();
718 bool containsVoid = false;
719 for ( auto & dwt : dwts ) {
720 // fix each DWT and record whether a void was found
721 containsVoid |= fixFunction( dwt );
722 }
723
724 // the only case in which "void" is valid is where it is the only one in the list
725 if ( containsVoid && ( nvals > 1 || isVarArgs ) ) {
[a16764a6]726 SemanticError( func, "invalid type void in function type " );
[4bda2cf]727 }
728
729 // one void is the only thing in the list; remove it.
730 if ( containsVoid ) {
731 delete dwts.front();
732 dwts.clear();
733 }
[0dd3a2f]734 }
[a08ba92]735 }
[c8ffe20b]736
[ef5b828]737 void EnumAndPointerDecay_old::previsit( FunctionType * func ) {
[0dd3a2f]738 // Fix up parameters and return types
[4bda2cf]739 fixFunctionList( func->parameters, func->isVarArgs, func );
740 fixFunctionList( func->returnVals, false, func );
[a08ba92]741 }
[c8ffe20b]742
[6e50a6b]743 LinkReferenceToTypes_old::LinkReferenceToTypes_old( const Indexer * other_indexer ) : WithIndexer( false ) {
[0dd3a2f]744 if ( other_indexer ) {
[522363e]745 local_indexer = other_indexer;
[0dd3a2f]746 } else {
[522363e]747 local_indexer = &indexer;
[0dd3a2f]748 } // if
[a08ba92]749 }
[c8ffe20b]750
[ef5b828]751 void LinkReferenceToTypes_old::postvisit( EnumInstType * enumInst ) {
[8fd52e90]752 const EnumDecl * st = local_indexer->lookupEnum( enumInst->name );
[c0aa336]753 // it's not a semantic error if the enum is not found, just an implicit forward declaration
754 if ( st ) {
[8fd52e90]755 enumInst->baseEnum = const_cast<EnumDecl *>(st); // Just linking in the node
[c0aa336]756 } // if
[29f9e20]757 if ( ! st || ! st->body ) {
[c0aa336]758 // use of forward declaration
[eaa6430]759 forwardEnums[ enumInst->name ].push_back( enumInst );
[c0aa336]760 } // if
761 }
762
[ef5b828]763 void LinkReferenceToTypes_old::postvisit( StructInstType * structInst ) {
[8fd52e90]764 const StructDecl * st = local_indexer->lookupStruct( structInst->name );
[0dd3a2f]765 // it's not a semantic error if the struct is not found, just an implicit forward declaration
766 if ( st ) {
[8fd52e90]767 structInst->baseStruct = const_cast<StructDecl *>(st); // Just linking in the node
[0dd3a2f]768 } // if
[29f9e20]769 if ( ! st || ! st->body ) {
[0dd3a2f]770 // use of forward declaration
[eaa6430]771 forwardStructs[ structInst->name ].push_back( structInst );
[0dd3a2f]772 } // if
[a08ba92]773 }
[c8ffe20b]774
[ef5b828]775 void LinkReferenceToTypes_old::postvisit( UnionInstType * unionInst ) {
[8fd52e90]776 const UnionDecl * un = local_indexer->lookupUnion( unionInst->name );
[0dd3a2f]777 // it's not a semantic error if the union is not found, just an implicit forward declaration
778 if ( un ) {
[8fd52e90]779 unionInst->baseUnion = const_cast<UnionDecl *>(un); // Just linking in the node
[0dd3a2f]780 } // if
[29f9e20]781 if ( ! un || ! un->body ) {
[0dd3a2f]782 // use of forward declaration
[eaa6430]783 forwardUnions[ unionInst->name ].push_back( unionInst );
[0dd3a2f]784 } // if
[a08ba92]785 }
[c8ffe20b]786
[c1ed2ee]787 void LinkReferenceToTypes_old::previsit( QualifiedType * ) {
[afcb0a3]788 visit_children = false;
789 }
790
[c1ed2ee]791 void LinkReferenceToTypes_old::postvisit( QualifiedType * qualType ) {
[afcb0a3]792 // linking only makes sense for the 'oldest ancestor' of the qualified type
[ef5b828]793 qualType->parent->accept( * visitor );
[afcb0a3]794 }
795
[be9036d]796 template< typename Decl >
797 void normalizeAssertions( std::list< Decl * > & assertions ) {
798 // ensure no duplicate trait members after the clone
799 auto pred = [](Decl * d1, Decl * d2) {
800 // only care if they're equal
801 DeclarationWithType * dwt1 = dynamic_cast<DeclarationWithType *>( d1 );
802 DeclarationWithType * dwt2 = dynamic_cast<DeclarationWithType *>( d2 );
803 if ( dwt1 && dwt2 ) {
[eaa6430]804 if ( dwt1->name == dwt2->name && ResolvExpr::typesCompatible( dwt1->get_type(), dwt2->get_type(), SymTab::Indexer() ) ) {
[be9036d]805 // std::cerr << "=========== equal:" << std::endl;
806 // std::cerr << "d1: " << d1 << std::endl;
807 // std::cerr << "d2: " << d2 << std::endl;
808 return false;
809 }
[2c57025]810 }
[be9036d]811 return d1 < d2;
812 };
813 std::set<Decl *, decltype(pred)> unique_members( assertions.begin(), assertions.end(), pred );
814 // if ( unique_members.size() != assertions.size() ) {
815 // std::cerr << "============different" << std::endl;
816 // std::cerr << unique_members.size() << " " << assertions.size() << std::endl;
817 // }
818
819 std::list< Decl * > order;
820 order.splice( order.end(), assertions );
821 std::copy_if( order.begin(), order.end(), back_inserter( assertions ), [&]( Decl * decl ) {
822 return unique_members.count( decl );
823 });
824 }
825
826 // expand assertions from trait instance, performing the appropriate type variable substitutions
827 template< typename Iterator >
828 void expandAssertions( TraitInstType * inst, Iterator out ) {
[eaa6430]829 assertf( inst->baseTrait, "Trait instance not linked to base trait: %s", toCString( inst ) );
[be9036d]830 std::list< DeclarationWithType * > asserts;
831 for ( Declaration * decl : inst->baseTrait->members ) {
[e3e16bc]832 asserts.push_back( strict_dynamic_cast<DeclarationWithType *>( decl->clone() ) );
[2c57025]833 }
[be9036d]834 // substitute trait decl parameters for instance parameters
835 applySubstitution( inst->baseTrait->parameters.begin(), inst->baseTrait->parameters.end(), inst->parameters.begin(), asserts.begin(), asserts.end(), out );
836 }
837
[c1ed2ee]838 void LinkReferenceToTypes_old::postvisit( TraitDecl * traitDecl ) {
[be9036d]839 if ( traitDecl->name == "sized" ) {
840 // "sized" is a special trait - flick the sized status on for the type variable
841 assertf( traitDecl->parameters.size() == 1, "Built-in trait 'sized' has incorrect number of parameters: %zd", traitDecl->parameters.size() );
842 TypeDecl * td = traitDecl->parameters.front();
843 td->set_sized( true );
844 }
845
846 // move assertions from type parameters into the body of the trait
847 for ( TypeDecl * td : traitDecl->parameters ) {
848 for ( DeclarationWithType * assert : td->assertions ) {
849 if ( TraitInstType * inst = dynamic_cast< TraitInstType * >( assert->get_type() ) ) {
850 expandAssertions( inst, back_inserter( traitDecl->members ) );
851 } else {
852 traitDecl->members.push_back( assert->clone() );
853 }
854 }
855 deleteAll( td->assertions );
856 td->assertions.clear();
857 } // for
858 }
[2ae171d8]859
[c1ed2ee]860 void LinkReferenceToTypes_old::postvisit( TraitInstType * traitInst ) {
[2ae171d8]861 // handle other traits
[8fd52e90]862 const TraitDecl * traitDecl = local_indexer->lookupTrait( traitInst->name );
[4a9ccc3]863 if ( ! traitDecl ) {
[a16764a6]864 SemanticError( traitInst->location, "use of undeclared trait " + traitInst->name );
[17cd4eb]865 } // if
[0b3b2ae]866 if ( traitDecl->parameters.size() != traitInst->parameters.size() ) {
[a16764a6]867 SemanticError( traitInst, "incorrect number of trait parameters: " );
[4a9ccc3]868 } // if
[8fd52e90]869 traitInst->baseTrait = const_cast<TraitDecl *>(traitDecl); // Just linking in the node
[79970ed]870
[4a9ccc3]871 // need to carry over the 'sized' status of each decl in the instance
[eaa6430]872 for ( auto p : group_iterate( traitDecl->parameters, traitInst->parameters ) ) {
[5c4d27f]873 TypeExpr * expr = dynamic_cast< TypeExpr * >( std::get<1>(p) );
874 if ( ! expr ) {
[a16764a6]875 SemanticError( std::get<1>(p), "Expression parameters for trait instances are currently unsupported: " );
[5c4d27f]876 }
[4a9ccc3]877 if ( TypeInstType * inst = dynamic_cast< TypeInstType * >( expr->get_type() ) ) {
878 TypeDecl * formalDecl = std::get<0>(p);
[eaa6430]879 TypeDecl * instDecl = inst->baseType;
[4a9ccc3]880 if ( formalDecl->get_sized() ) instDecl->set_sized( true );
881 }
882 }
[be9036d]883 // normalizeAssertions( traitInst->members );
[a08ba92]884 }
[c8ffe20b]885
[ef5b828]886 void LinkReferenceToTypes_old::postvisit( EnumDecl * enumDecl ) {
[c0aa336]887 // visit enum members first so that the types of self-referencing members are updated properly
[b16923d]888 if ( enumDecl->body ) {
[eaa6430]889 ForwardEnumsType::iterator fwds = forwardEnums.find( enumDecl->name );
[c0aa336]890 if ( fwds != forwardEnums.end() ) {
891 for ( std::list< EnumInstType * >::iterator inst = fwds->second.begin(); inst != fwds->second.end(); ++inst ) {
[ef5b828]892 (* inst)->baseEnum = enumDecl;
[c0aa336]893 } // for
894 forwardEnums.erase( fwds );
895 } // if
896 } // if
897 }
898
[c1ed2ee]899 void LinkReferenceToTypes_old::renameGenericParams( std::list< TypeDecl * > & params ) {
[b95fe40]900 // rename generic type parameters uniquely so that they do not conflict with user-defined function forall parameters, e.g.
901 // forall(otype T)
902 // struct Box {
903 // T x;
904 // };
905 // forall(otype T)
906 // void f(Box(T) b) {
907 // ...
908 // }
909 // The T in Box and the T in f are different, so internally the naming must reflect that.
910 GuardValue( inGeneric );
911 inGeneric = ! params.empty();
912 for ( TypeDecl * td : params ) {
913 td->name = "__" + td->name + "_generic_";
914 }
915 }
916
[c1ed2ee]917 void LinkReferenceToTypes_old::previsit( StructDecl * structDecl ) {
[b95fe40]918 renameGenericParams( structDecl->parameters );
919 }
920
[c1ed2ee]921 void LinkReferenceToTypes_old::previsit( UnionDecl * unionDecl ) {
[b95fe40]922 renameGenericParams( unionDecl->parameters );
923 }
924
[ef5b828]925 void LinkReferenceToTypes_old::postvisit( StructDecl * structDecl ) {
[677c1be]926 // visit struct members first so that the types of self-referencing members are updated properly
[522363e]927 // xxx - need to ensure that type parameters match up between forward declarations and definition (most importantly, number of type parameters and their defaults)
[b16923d]928 if ( structDecl->body ) {
[eaa6430]929 ForwardStructsType::iterator fwds = forwardStructs.find( structDecl->name );
[0dd3a2f]930 if ( fwds != forwardStructs.end() ) {
931 for ( std::list< StructInstType * >::iterator inst = fwds->second.begin(); inst != fwds->second.end(); ++inst ) {
[ef5b828]932 (* inst)->baseStruct = structDecl;
[0dd3a2f]933 } // for
934 forwardStructs.erase( fwds );
935 } // if
936 } // if
[a08ba92]937 }
[c8ffe20b]938
[ef5b828]939 void LinkReferenceToTypes_old::postvisit( UnionDecl * unionDecl ) {
[b16923d]940 if ( unionDecl->body ) {
[eaa6430]941 ForwardUnionsType::iterator fwds = forwardUnions.find( unionDecl->name );
[0dd3a2f]942 if ( fwds != forwardUnions.end() ) {
943 for ( std::list< UnionInstType * >::iterator inst = fwds->second.begin(); inst != fwds->second.end(); ++inst ) {
[ef5b828]944 (* inst)->baseUnion = unionDecl;
[0dd3a2f]945 } // for
946 forwardUnions.erase( fwds );
947 } // if
948 } // if
[a08ba92]949 }
[c8ffe20b]950
[ef5b828]951 void LinkReferenceToTypes_old::postvisit( TypeInstType * typeInst ) {
[b95fe40]952 // ensure generic parameter instances are renamed like the base type
953 if ( inGeneric && typeInst->baseType ) typeInst->name = typeInst->baseType->name;
[ef5b828]954 if ( const NamedTypeDecl * namedTypeDecl = local_indexer->lookupType( typeInst->name ) ) {
955 if ( const TypeDecl * typeDecl = dynamic_cast< const TypeDecl * >( namedTypeDecl ) ) {
956 typeInst->set_isFtype( typeDecl->kind == TypeDecl::Ftype );
[0dd3a2f]957 } // if
958 } // if
[a08ba92]959 }
[c8ffe20b]960
[6e50a6b]961 ResolveEnumInitializers::ResolveEnumInitializers( const Indexer * other_indexer ) : WithIndexer( true ) {
962 if ( other_indexer ) {
963 local_indexer = other_indexer;
964 } else {
965 local_indexer = &indexer;
966 } // if
967 }
968
969 void ResolveEnumInitializers::postvisit( EnumDecl * enumDecl ) {
970 if ( enumDecl->body ) {
971 for ( Declaration * member : enumDecl->members ) {
972 ObjectDecl * field = strict_dynamic_cast<ObjectDecl *>( member );
973 if ( field->init ) {
974 // need to resolve enumerator initializers early so that other passes that determine if an expression is constexpr have the appropriate information.
975 SingleInit * init = strict_dynamic_cast<SingleInit *>( field->init );
[4559b34]976 if ( !enumDecl->base || dynamic_cast<BasicType *>(enumDecl->base))
977 ResolvExpr::findSingleExpression( init->value, new BasicType( Type::Qualifiers(), BasicType::SignedInt ), indexer );
978 else {
979 if (dynamic_cast<PointerType *>(enumDecl->base)) {
980 auto typePtr = dynamic_cast<PointerType *>(enumDecl->base);
981 ResolvExpr::findSingleExpression( init->value,
982 new PointerType( Type::Qualifiers(), typePtr->base ), indexer );
983 } else {
984 ResolvExpr::findSingleExpression( init->value, new BasicType( Type::Qualifiers(), BasicType::SignedInt ), indexer );
985 }
986 }
987
[6e50a6b]988 }
989 }
[4559b34]990
[6e50a6b]991 } // if
992 }
993
[4a9ccc3]994 /// Fix up assertions - flattens assertion lists, removing all trait instances
[8b11840]995 void forallFixer( std::list< TypeDecl * > & forall, BaseSyntaxNode * node ) {
996 for ( TypeDecl * type : forall ) {
[be9036d]997 std::list< DeclarationWithType * > asserts;
998 asserts.splice( asserts.end(), type->assertions );
999 // expand trait instances into their members
1000 for ( DeclarationWithType * assertion : asserts ) {
[ef5b828]1001 if ( TraitInstType * traitInst = dynamic_cast< TraitInstType * >( assertion->get_type() ) ) {
[be9036d]1002 // expand trait instance into all of its members
1003 expandAssertions( traitInst, back_inserter( type->assertions ) );
1004 delete traitInst;
1005 } else {
1006 // pass other assertions through
1007 type->assertions.push_back( assertion );
1008 } // if
1009 } // for
1010 // apply FixFunction to every assertion to check for invalid void type
1011 for ( DeclarationWithType *& assertion : type->assertions ) {
[4bda2cf]1012 bool isVoid = fixFunction( assertion );
1013 if ( isVoid ) {
[a16764a6]1014 SemanticError( node, "invalid type void in assertion of function " );
[be9036d]1015 } // if
1016 } // for
1017 // normalizeAssertions( type->assertions );
[0dd3a2f]1018 } // for
[a08ba92]1019 }
[c8ffe20b]1020
[9490621]1021 /// Replace all traits in assertion lists with their assertions.
1022 void expandTraits( std::list< TypeDecl * > & forall ) {
1023 for ( TypeDecl * type : forall ) {
1024 std::list< DeclarationWithType * > asserts;
1025 asserts.splice( asserts.end(), type->assertions );
1026 // expand trait instances into their members
1027 for ( DeclarationWithType * assertion : asserts ) {
1028 if ( TraitInstType * traitInst = dynamic_cast< TraitInstType * >( assertion->get_type() ) ) {
1029 // expand trait instance into all of its members
1030 expandAssertions( traitInst, back_inserter( type->assertions ) );
1031 delete traitInst;
1032 } else {
1033 // pass other assertions through
1034 type->assertions.push_back( assertion );
1035 } // if
1036 } // for
1037 }
1038 }
1039
1040 /// Fix each function in the assertion list and check for invalid void type.
1041 void fixAssertions(
1042 std::list< TypeDecl * > & forall, BaseSyntaxNode * node ) {
1043 for ( TypeDecl * type : forall ) {
1044 for ( DeclarationWithType *& assertion : type->assertions ) {
1045 bool isVoid = fixFunction( assertion );
1046 if ( isVoid ) {
1047 SemanticError( node, "invalid type void in assertion of function " );
1048 } // if
1049 } // for
1050 }
1051 }
1052
[ef5b828]1053 void ForallPointerDecay_old::previsit( ObjectDecl * object ) {
[3d2b7bc]1054 // ensure that operator names only apply to functions or function pointers
1055 if ( CodeGen::isOperator( object->name ) && ! dynamic_cast< FunctionType * >( object->type->stripDeclarator() ) ) {
1056 SemanticError( object->location, toCString( "operator ", object->name.c_str(), " is not a function or function pointer." ) );
1057 }
[0dd3a2f]1058 object->fixUniqueId();
[a08ba92]1059 }
[c8ffe20b]1060
[ef5b828]1061 void ForallPointerDecay_old::previsit( FunctionDecl * func ) {
[0dd3a2f]1062 func->fixUniqueId();
[a08ba92]1063 }
[c8ffe20b]1064
[c1ed2ee]1065 void ForallPointerDecay_old::previsit( FunctionType * ftype ) {
[bbf3fda]1066 forallFixer( ftype->forall, ftype );
1067 }
1068
[c1ed2ee]1069 void ForallPointerDecay_old::previsit( StructDecl * aggrDecl ) {
[bd7e609]1070 forallFixer( aggrDecl->parameters, aggrDecl );
1071 }
1072
[c1ed2ee]1073 void ForallPointerDecay_old::previsit( UnionDecl * aggrDecl ) {
[bd7e609]1074 forallFixer( aggrDecl->parameters, aggrDecl );
1075 }
1076
[9490621]1077 void TraitExpander_old::previsit( FunctionType * ftype ) {
1078 expandTraits( ftype->forall );
1079 }
1080
1081 void TraitExpander_old::previsit( StructDecl * aggrDecl ) {
1082 expandTraits( aggrDecl->parameters );
1083 }
1084
1085 void TraitExpander_old::previsit( UnionDecl * aggrDecl ) {
1086 expandTraits( aggrDecl->parameters );
1087 }
1088
1089 void AssertionFixer_old::previsit( FunctionType * ftype ) {
1090 fixAssertions( ftype->forall, ftype );
1091 }
1092
1093 void AssertionFixer_old::previsit( StructDecl * aggrDecl ) {
1094 fixAssertions( aggrDecl->parameters, aggrDecl );
1095 }
1096
1097 void AssertionFixer_old::previsit( UnionDecl * aggrDecl ) {
1098 fixAssertions( aggrDecl->parameters, aggrDecl );
1099 }
1100
1101 void CheckOperatorTypes_old::previsit( ObjectDecl * object ) {
1102 // ensure that operator names only apply to functions or function pointers
1103 if ( CodeGen::isOperator( object->name ) && ! dynamic_cast< FunctionType * >( object->type->stripDeclarator() ) ) {
1104 SemanticError( object->location, toCString( "operator ", object->name.c_str(), " is not a function or function pointer." ) );
1105 }
1106 }
1107
1108 void FixUniqueIds_old::previsit( DeclarationWithType * decl ) {
1109 decl->fixUniqueId();
1110 }
1111
[de91427b]1112 void ReturnChecker::checkFunctionReturns( std::list< Declaration * > & translationUnit ) {
[0db6fc0]1113 PassVisitor<ReturnChecker> checker;
[de91427b]1114 acceptAll( translationUnit, checker );
1115 }
1116
[0db6fc0]1117 void ReturnChecker::previsit( FunctionDecl * functionDecl ) {
[0508ab3]1118 GuardValue( returnVals );
[de91427b]1119 returnVals = functionDecl->get_functionType()->get_returnVals();
1120 }
1121
[0db6fc0]1122 void ReturnChecker::previsit( ReturnStmt * returnStmt ) {
[74d1804]1123 // Previously this also checked for the existence of an expr paired with no return values on
1124 // the function return type. This is incorrect, since you can have an expression attached to
1125 // a return statement in a void-returning function in C. The expression is treated as if it
1126 // were cast to void.
[30f9072]1127 if ( ! returnStmt->get_expr() && returnVals.size() != 0 ) {
[a16764a6]1128 SemanticError( returnStmt, "Non-void function returns no values: " );
[de91427b]1129 }
1130 }
1131
1132
[48ed81c]1133 void ReplaceTypedef::replaceTypedef( std::list< Declaration * > &translationUnit ) {
1134 PassVisitor<ReplaceTypedef> eliminator;
[0dd3a2f]1135 mutateAll( translationUnit, eliminator );
[a506df4]1136 if ( eliminator.pass.typedefNames.count( "size_t" ) ) {
[5f98ce5]1137 // grab and remember declaration of size_t
[2bfc6b2]1138 Validate::SizeType = eliminator.pass.typedefNames["size_t"].first->base->clone();
[5f98ce5]1139 } else {
[40e636a]1140 // xxx - missing global typedef for size_t - default to long unsigned int, even though that may be wrong
1141 // eventually should have a warning for this case.
[2bfc6b2]1142 Validate::SizeType = new BasicType( Type::Qualifiers(), BasicType::LongUnsignedInt );
[5f98ce5]1143 }
[a08ba92]1144 }
[c8ffe20b]1145
[48ed81c]1146 void ReplaceTypedef::premutate( QualifiedType * ) {
1147 visit_children = false;
1148 }
1149
1150 Type * ReplaceTypedef::postmutate( QualifiedType * qualType ) {
1151 // replacing typedefs only makes sense for the 'oldest ancestor' of the qualified type
[ef5b828]1152 qualType->parent = qualType->parent->acceptMutator( * visitor );
[48ed81c]1153 return qualType;
1154 }
1155
[a7c31e0]1156 static bool isNonParameterAttribute( Attribute * attr ) {
1157 static const std::vector<std::string> bad_names = {
1158 "aligned", "__aligned__",
1159 };
1160 for ( auto name : bad_names ) {
1161 if ( name == attr->name ) {
1162 return true;
1163 }
1164 }
1165 return false;
1166 }
1167
[48ed81c]1168 Type * ReplaceTypedef::postmutate( TypeInstType * typeInst ) {
[9cb8e88d]1169 // instances of typedef types will come here. If it is an instance
[cc79d97]1170 // of a typdef type, link the instance to its actual type.
[0b3b2ae]1171 TypedefMap::const_iterator def = typedefNames.find( typeInst->name );
[0dd3a2f]1172 if ( def != typedefNames.end() ) {
[ef5b828]1173 Type * ret = def->second.first->base->clone();
[e82ef13]1174 ret->location = typeInst->location;
[6f95000]1175 ret->get_qualifiers() |= typeInst->get_qualifiers();
[a7c31e0]1176 // GCC ignores certain attributes if they arrive by typedef, this mimics that.
1177 if ( inFunctionType ) {
1178 ret->attributes.remove_if( isNonParameterAttribute );
[1f370451]1179 }
[a7c31e0]1180 ret->attributes.splice( ret->attributes.end(), typeInst->attributes );
[0215a76f]1181 // place instance parameters on the typedef'd type
[f53836b]1182 if ( ! typeInst->parameters.empty() ) {
[ef5b828]1183 ReferenceToType * rtt = dynamic_cast<ReferenceToType *>(ret);
[0215a76f]1184 if ( ! rtt ) {
[a16764a6]1185 SemanticError( typeInst->location, "Cannot apply type parameters to base type of " + typeInst->name );
[0215a76f]1186 }
[0b3b2ae]1187 rtt->parameters.clear();
[f53836b]1188 cloneAll( typeInst->parameters, rtt->parameters );
[ef5b828]1189 mutateAll( rtt->parameters, * visitor ); // recursively fix typedefs on parameters
[1db21619]1190 } // if
[0dd3a2f]1191 delete typeInst;
1192 return ret;
[679864e1]1193 } else {
[0b3b2ae]1194 TypeDeclMap::const_iterator base = typedeclNames.find( typeInst->name );
[062e8df]1195 if ( base == typedeclNames.end() ) {
1196 SemanticError( typeInst->location, toString("Use of undefined type ", typeInst->name) );
1197 }
[1e8b02f5]1198 typeInst->set_baseType( base->second );
[062e8df]1199 return typeInst;
[0dd3a2f]1200 } // if
[062e8df]1201 assert( false );
[a08ba92]1202 }
[c8ffe20b]1203
[f53836b]1204 struct VarLenChecker : WithShortCircuiting {
1205 void previsit( FunctionType * ) { visit_children = false; }
1206 void previsit( ArrayType * at ) {
1207 isVarLen |= at->isVarLen;
1208 }
1209 bool isVarLen = false;
1210 };
1211
1212 bool isVariableLength( Type * t ) {
1213 PassVisitor<VarLenChecker> varLenChecker;
1214 maybeAccept( t, varLenChecker );
1215 return varLenChecker.pass.isVarLen;
1216 }
1217
[48ed81c]1218 Declaration * ReplaceTypedef::postmutate( TypedefDecl * tyDecl ) {
[0b3b2ae]1219 if ( typedefNames.count( tyDecl->name ) == 1 && typedefNames[ tyDecl->name ].second == scopeLevel ) {
[9cb8e88d]1220 // typedef to the same name from the same scope
[cc79d97]1221 // must be from the same type
1222
[0b3b2ae]1223 Type * t1 = tyDecl->base;
1224 Type * t2 = typedefNames[ tyDecl->name ].first->base;
[1cbca6e]1225 if ( ! ResolvExpr::typesCompatible( t1, t2, Indexer() ) ) {
[a16764a6]1226 SemanticError( tyDecl->location, "Cannot redefine typedef: " + tyDecl->name );
[f53836b]1227 }
[4b97770]1228 // Cannot redefine VLA typedefs. Note: this is slightly incorrect, because our notion of VLAs
1229 // at this point in the translator is imprecise. In particular, this will disallow redefining typedefs
1230 // with arrays whose dimension is an enumerator or a cast of a constant/enumerator. The effort required
1231 // to fix this corner case likely outweighs the utility of allowing it.
[f53836b]1232 if ( isVariableLength( t1 ) || isVariableLength( t2 ) ) {
[a16764a6]1233 SemanticError( tyDecl->location, "Cannot redefine typedef: " + tyDecl->name );
[85c4ef0]1234 }
[cc79d97]1235 } else {
[0b3b2ae]1236 typedefNames[ tyDecl->name ] = std::make_pair( TypedefDeclPtr( tyDecl ), scopeLevel );
[cc79d97]1237 } // if
1238
[0dd3a2f]1239 // When a typedef is a forward declaration:
1240 // typedef struct screen SCREEN;
1241 // the declaration portion must be retained:
1242 // struct screen;
1243 // because the expansion of the typedef is:
[ef5b828]1244 // void rtn( SCREEN * p ) => void rtn( struct screen * p )
[0dd3a2f]1245 // hence the type-name "screen" must be defined.
1246 // Note, qualifiers on the typedef are superfluous for the forward declaration.
[6f95000]1247
[ef5b828]1248 Type * designatorType = tyDecl->base->stripDeclarator();
1249 if ( StructInstType * aggDecl = dynamic_cast< StructInstType * >( designatorType ) ) {
[312029a]1250 declsToAddBefore.push_back( new StructDecl( aggDecl->name, AggregateDecl::Struct, noAttributes, tyDecl->linkage ) );
[ef5b828]1251 } else if ( UnionInstType * aggDecl = dynamic_cast< UnionInstType * >( designatorType ) ) {
[48ed81c]1252 declsToAddBefore.push_back( new UnionDecl( aggDecl->name, noAttributes, tyDecl->linkage ) );
[ef5b828]1253 } else if ( EnumInstType * enumDecl = dynamic_cast< EnumInstType * >( designatorType ) ) {
[3e54399]1254 // declsToAddBefore.push_back( new EnumDecl( enumDecl->name, noAttributes, tyDecl->linkage, enumDecl->baseEnum->base ) );
1255 if (enumDecl->baseEnum) {
1256 declsToAddBefore.push_back( new EnumDecl( enumDecl->name, noAttributes, tyDecl->linkage, enumDecl->baseEnum->base ) );
1257 } else {
1258 declsToAddBefore.push_back( new EnumDecl( enumDecl->name, noAttributes, tyDecl->linkage ) );
1259 }
[0dd3a2f]1260 } // if
[48ed81c]1261 return tyDecl->clone();
[a08ba92]1262 }
[c8ffe20b]1263
[48ed81c]1264 void ReplaceTypedef::premutate( TypeDecl * typeDecl ) {
[0b3b2ae]1265 TypedefMap::iterator i = typedefNames.find( typeDecl->name );
[0dd3a2f]1266 if ( i != typedefNames.end() ) {
1267 typedefNames.erase( i ) ;
1268 } // if
[679864e1]1269
[0bcc2b7]1270 typedeclNames.insert( typeDecl->name, typeDecl );
[a08ba92]1271 }
[c8ffe20b]1272
[48ed81c]1273 void ReplaceTypedef::premutate( FunctionDecl * ) {
[a506df4]1274 GuardScope( typedefNames );
[0bcc2b7]1275 GuardScope( typedeclNames );
[a08ba92]1276 }
[c8ffe20b]1277
[48ed81c]1278 void ReplaceTypedef::premutate( ObjectDecl * ) {
[a506df4]1279 GuardScope( typedefNames );
[0bcc2b7]1280 GuardScope( typedeclNames );
[a506df4]1281 }
[dd020c0]1282
[48ed81c]1283 DeclarationWithType * ReplaceTypedef::postmutate( ObjectDecl * objDecl ) {
[ef5b828]1284 if ( FunctionType * funtype = dynamic_cast<FunctionType *>( objDecl->type ) ) { // function type?
[02e5ab6]1285 // replace the current object declaration with a function declaration
[0b3b2ae]1286 FunctionDecl * newDecl = new FunctionDecl( objDecl->name, objDecl->get_storageClasses(), objDecl->linkage, funtype, 0, objDecl->attributes, objDecl->get_funcSpec() );
1287 objDecl->attributes.clear();
[dbe8f244]1288 objDecl->set_type( nullptr );
[0a86a30]1289 delete objDecl;
1290 return newDecl;
[1db21619]1291 } // if
[a506df4]1292 return objDecl;
[a08ba92]1293 }
[c8ffe20b]1294
[48ed81c]1295 void ReplaceTypedef::premutate( CastExpr * ) {
[a506df4]1296 GuardScope( typedefNames );
[0bcc2b7]1297 GuardScope( typedeclNames );
[a08ba92]1298 }
[c8ffe20b]1299
[48ed81c]1300 void ReplaceTypedef::premutate( CompoundStmt * ) {
[a506df4]1301 GuardScope( typedefNames );
[0bcc2b7]1302 GuardScope( typedeclNames );
[cc79d97]1303 scopeLevel += 1;
[a506df4]1304 GuardAction( [this](){ scopeLevel -= 1; } );
1305 }
1306
[45161b4d]1307 template<typename AggDecl>
[48ed81c]1308 void ReplaceTypedef::addImplicitTypedef( AggDecl * aggDecl ) {
[45161b4d]1309 if ( typedefNames.count( aggDecl->get_name() ) == 0 ) {
[ef5b828]1310 Type * type = nullptr;
[45161b4d]1311 if ( StructDecl * newDeclStructDecl = dynamic_cast< StructDecl * >( aggDecl ) ) {
1312 type = new StructInstType( Type::Qualifiers(), newDeclStructDecl->get_name() );
1313 } else if ( UnionDecl * newDeclUnionDecl = dynamic_cast< UnionDecl * >( aggDecl ) ) {
1314 type = new UnionInstType( Type::Qualifiers(), newDeclUnionDecl->get_name() );
1315 } else if ( EnumDecl * newDeclEnumDecl = dynamic_cast< EnumDecl * >( aggDecl ) ) {
1316 type = new EnumInstType( Type::Qualifiers(), newDeclEnumDecl->get_name() );
1317 } // if
[0b0f1dd]1318 TypedefDeclPtr tyDecl( new TypedefDecl( aggDecl->get_name(), aggDecl->location, Type::StorageClasses(), type, aggDecl->get_linkage() ) );
[46f6134]1319 typedefNames[ aggDecl->get_name() ] = std::make_pair( std::move( tyDecl ), scopeLevel );
[48ed81c]1320 // add the implicit typedef to the AST
1321 declsToAddBefore.push_back( new TypedefDecl( aggDecl->get_name(), aggDecl->location, Type::StorageClasses(), type->clone(), aggDecl->get_linkage() ) );
[45161b4d]1322 } // if
1323 }
[4e06c1e]1324
[48ed81c]1325 template< typename AggDecl >
1326 void ReplaceTypedef::handleAggregate( AggDecl * aggr ) {
1327 SemanticErrorException errors;
[a506df4]1328
[48ed81c]1329 ValueGuard< std::list<Declaration * > > oldBeforeDecls( declsToAddBefore );
1330 ValueGuard< std::list<Declaration * > > oldAfterDecls ( declsToAddAfter );
1331 declsToAddBefore.clear();
1332 declsToAddAfter.clear();
[a506df4]1333
[48ed81c]1334 GuardScope( typedefNames );
[0bcc2b7]1335 GuardScope( typedeclNames );
[ef5b828]1336 mutateAll( aggr->parameters, * visitor );
[798a8b3]1337 mutateAll( aggr->attributes, * visitor );
[85c4ef0]1338
[48ed81c]1339 // unroll mutateAll for aggr->members so that implicit typedefs for nested types are added to the aggregate body.
1340 for ( std::list< Declaration * >::iterator i = aggr->members.begin(); i != aggr->members.end(); ++i ) {
1341 if ( !declsToAddAfter.empty() ) { aggr->members.splice( i, declsToAddAfter ); }
[a506df4]1342
[48ed81c]1343 try {
[ef5b828]1344 * i = maybeMutate( * i, * visitor );
[48ed81c]1345 } catch ( SemanticErrorException &e ) {
1346 errors.append( e );
1347 }
1348
1349 if ( !declsToAddBefore.empty() ) { aggr->members.splice( i, declsToAddBefore ); }
1350 }
1351
1352 if ( !declsToAddAfter.empty() ) { aggr->members.splice( aggr->members.end(), declsToAddAfter ); }
1353 if ( !errors.isEmpty() ) { throw errors; }
[85c4ef0]1354 }
1355
[48ed81c]1356 void ReplaceTypedef::premutate( StructDecl * structDecl ) {
1357 visit_children = false;
1358 addImplicitTypedef( structDecl );
1359 handleAggregate( structDecl );
[a506df4]1360 }
1361
[48ed81c]1362 void ReplaceTypedef::premutate( UnionDecl * unionDecl ) {
1363 visit_children = false;
1364 addImplicitTypedef( unionDecl );
1365 handleAggregate( unionDecl );
[85c4ef0]1366 }
1367
[48ed81c]1368 void ReplaceTypedef::premutate( EnumDecl * enumDecl ) {
1369 addImplicitTypedef( enumDecl );
[85c4ef0]1370 }
1371
[48ed81c]1372 void ReplaceTypedef::premutate( FunctionType * ) {
[1f370451]1373 GuardValue( inFunctionType );
1374 inFunctionType = true;
1375 }
1376
[0bcc2b7]1377 void ReplaceTypedef::premutate( TraitDecl * ) {
1378 GuardScope( typedefNames );
1379 GuardScope( typedeclNames);
1380 }
1381
[d1969a6]1382 void VerifyCtorDtorAssign::verify( std::list< Declaration * > & translationUnit ) {
[0db6fc0]1383 PassVisitor<VerifyCtorDtorAssign> verifier;
[9cb8e88d]1384 acceptAll( translationUnit, verifier );
1385 }
1386
[0db6fc0]1387 void VerifyCtorDtorAssign::previsit( FunctionDecl * funcDecl ) {
[9cb8e88d]1388 FunctionType * funcType = funcDecl->get_functionType();
1389 std::list< DeclarationWithType * > &returnVals = funcType->get_returnVals();
1390 std::list< DeclarationWithType * > &params = funcType->get_parameters();
1391
[bff227f]1392 if ( CodeGen::isCtorDtorAssign( funcDecl->get_name() ) ) { // TODO: also check /=, etc.
[9cb8e88d]1393 if ( params.size() == 0 ) {
[98538288]1394 SemanticError( funcDecl->location, "Constructors, destructors, and assignment functions require at least one parameter." );
[9cb8e88d]1395 }
[ce8c12f]1396 ReferenceType * refType = dynamic_cast< ReferenceType * >( params.front()->get_type() );
[084fecc]1397 if ( ! refType ) {
[98538288]1398 SemanticError( funcDecl->location, "First parameter of a constructor, destructor, or assignment function must be a reference." );
[9cb8e88d]1399 }
[bff227f]1400 if ( CodeGen::isCtorDtor( funcDecl->get_name() ) && returnVals.size() != 0 ) {
[98538288]1401 if(!returnVals.front()->get_type()->isVoid()) {
1402 SemanticError( funcDecl->location, "Constructors and destructors cannot have explicit return values." );
1403 }
[9cb8e88d]1404 }
1405 }
1406 }
[70a06f6]1407
[6e50a6b]1408 // Test for special name on a generic parameter. Special treatment for the
1409 // special name is a bootstrapping hack. In most cases, the worlds of T's
1410 // and of N's don't overlap (normal treamtemt). The foundations in
1411 // array.hfa use tagging for both types and dimensions. Tagging treats
1412 // its subject parameter even more opaquely than T&, which assumes it is
1413 // possible to have a pointer/reference to such an object. Tagging only
1414 // seeks to identify the type-system resident at compile time. Both N's
1415 // and T's can make tags. The tag definition uses the special name, which
1416 // is treated as "an N or a T." This feature is not inteded to be used
1417 // outside of the definition and immediate uses of a tag.
1418 static inline bool isReservedTysysIdOnlyName( const std::string & name ) {
1419 // name's prefix was __CFA_tysys_id_only, before it got wrapped in __..._generic
1420 int foundAt = name.find("__CFA_tysys_id_only");
1421 if (foundAt == 0) return true;
1422 if (foundAt == 2 && name[0] == '_' && name[1] == '_') return true;
1423 return false;
1424 }
1425
[11ab8ea8]1426 template< typename Aggr >
1427 void validateGeneric( Aggr * inst ) {
1428 std::list< TypeDecl * > * params = inst->get_baseParameters();
[30f9072]1429 if ( params ) {
[11ab8ea8]1430 std::list< Expression * > & args = inst->get_parameters();
[67cf18c]1431
1432 // insert defaults arguments when a type argument is missing (currently only supports missing arguments at the end of the list).
1433 // A substitution is used to ensure that defaults are replaced correctly, e.g.,
1434 // forall(otype T, otype alloc = heap_allocator(T)) struct vector;
1435 // vector(int) v;
1436 // after insertion of default values becomes
1437 // vector(int, heap_allocator(T))
1438 // and the substitution is built with T=int so that after substitution, the result is
1439 // vector(int, heap_allocator(int))
1440 TypeSubstitution sub;
1441 auto paramIter = params->begin();
[6e50a6b]1442 auto argIter = args.begin();
1443 for ( ; paramIter != params->end(); ++paramIter, ++argIter ) {
1444 if ( argIter != args.end() ) {
1445 TypeExpr * expr = dynamic_cast< TypeExpr * >( * argIter );
1446 if ( expr ) {
1447 sub.add( (* paramIter)->get_name(), expr->get_type()->clone() );
1448 }
1449 } else {
[ef5b828]1450 Type * defaultType = (* paramIter)->get_init();
[67cf18c]1451 if ( defaultType ) {
1452 args.push_back( new TypeExpr( defaultType->clone() ) );
[ef5b828]1453 sub.add( (* paramIter)->get_name(), defaultType->clone() );
[6e50a6b]1454 argIter = std::prev(args.end());
1455 } else {
1456 SemanticError( inst, "Too few type arguments in generic type " );
[67cf18c]1457 }
1458 }
[6e50a6b]1459 assert( argIter != args.end() );
1460 bool typeParamDeclared = (*paramIter)->kind != TypeDecl::Kind::Dimension;
1461 bool typeArgGiven;
1462 if ( isReservedTysysIdOnlyName( (*paramIter)->name ) ) {
1463 // coerce a match when declaration is reserved name, which means "either"
1464 typeArgGiven = typeParamDeclared;
1465 } else {
1466 typeArgGiven = dynamic_cast< TypeExpr * >( * argIter );
1467 }
1468 if ( ! typeParamDeclared && typeArgGiven ) SemanticError( inst, "Type argument given for value parameter: " );
1469 if ( typeParamDeclared && ! typeArgGiven ) SemanticError( inst, "Expression argument given for type parameter: " );
[67cf18c]1470 }
1471
1472 sub.apply( inst );
[a16764a6]1473 if ( args.size() > params->size() ) SemanticError( inst, "Too many type arguments in generic type " );
[11ab8ea8]1474 }
1475 }
1476
[0db6fc0]1477 void ValidateGenericParameters::previsit( StructInstType * inst ) {
[11ab8ea8]1478 validateGeneric( inst );
1479 }
[9cb8e88d]1480
[0db6fc0]1481 void ValidateGenericParameters::previsit( UnionInstType * inst ) {
[11ab8ea8]1482 validateGeneric( inst );
[9cb8e88d]1483 }
[70a06f6]1484
[6e50a6b]1485 void TranslateDimensionGenericParameters::translateDimensions( std::list< Declaration * > &translationUnit ) {
1486 PassVisitor<TranslateDimensionGenericParameters> translator;
1487 mutateAll( translationUnit, translator );
1488 }
1489
1490 TranslateDimensionGenericParameters::TranslateDimensionGenericParameters() : WithIndexer( false ) {}
1491
1492 // Declaration of type variable: forall( [N] ) -> forall( N & | sized( N ) )
1493 TypeDecl * TranslateDimensionGenericParameters::postmutate( TypeDecl * td ) {
1494 if ( td->kind == TypeDecl::Dimension ) {
1495 td->kind = TypeDecl::Dtype;
1496 if ( ! isReservedTysysIdOnlyName( td->name ) ) {
1497 td->sized = true;
1498 }
1499 }
1500 return td;
1501 }
1502
1503 // Situational awareness:
1504 // array( float, [[currentExpr]] ) has visitingChildOfSUIT == true
1505 // array( float, [[currentExpr]] - 1 ) has visitingChildOfSUIT == false
1506 // size_t x = [[currentExpr]] has visitingChildOfSUIT == false
1507 void TranslateDimensionGenericParameters::changeState_ChildOfSUIT( bool newVal ) {
1508 GuardValue( nextVisitedNodeIsChildOfSUIT );
1509 GuardValue( visitingChildOfSUIT );
1510 visitingChildOfSUIT = nextVisitedNodeIsChildOfSUIT;
1511 nextVisitedNodeIsChildOfSUIT = newVal;
1512 }
1513 void TranslateDimensionGenericParameters::premutate( StructInstType * sit ) {
1514 (void) sit;
1515 changeState_ChildOfSUIT(true);
1516 }
1517 void TranslateDimensionGenericParameters::premutate( UnionInstType * uit ) {
1518 (void) uit;
1519 changeState_ChildOfSUIT(true);
1520 }
1521 void TranslateDimensionGenericParameters::premutate( BaseSyntaxNode * node ) {
1522 (void) node;
1523 changeState_ChildOfSUIT(false);
1524 }
1525
1526 // Passing values as dimension arguments: array( float, 7 ) -> array( float, char[ 7 ] )
1527 // Consuming dimension parameters: size_t x = N - 1 ; -> size_t x = sizeof(N) - 1 ;
1528 // Intertwined reality: array( float, N ) -> array( float, N )
1529 // array( float, N - 1 ) -> array( float, char[ sizeof(N) - 1 ] )
1530 // Intertwined case 1 is not just an optimization.
1531 // Avoiding char[sizeof(-)] is necessary to enable the call of f to bind the value of N, in:
1532 // forall([N]) void f( array(float, N) & );
1533 // array(float, 7) a;
1534 // f(a);
1535
1536 Expression * TranslateDimensionGenericParameters::postmutate( DimensionExpr * de ) {
1537 // Expression de is an occurrence of N in LHS of above examples.
1538 // Look up the name that de references.
1539 // If we are in a struct body, then this reference can be to an entry of the stuct's forall list.
1540 // Whether or not we are in a struct body, this reference can be to an entry of a containing function's forall list.
1541 // If we are in a struct body, then the stuct's forall declarations are innermost (functions don't occur in structs).
1542 // Thus, a potential struct's declaration is highest priority.
1543 // A struct's forall declarations are already renamed with _generic_ suffix. Try that name variant first.
1544
1545 std::string useName = "__" + de->name + "_generic_";
1546 TypeDecl * namedParamDecl = const_cast<TypeDecl *>( strict_dynamic_cast<const TypeDecl *, nullptr >( indexer.lookupType( useName ) ) );
1547
1548 if ( ! namedParamDecl ) {
1549 useName = de->name;
1550 namedParamDecl = const_cast<TypeDecl *>( strict_dynamic_cast<const TypeDecl *, nullptr >( indexer.lookupType( useName ) ) );
1551 }
1552
1553 // Expect to find it always. A misspelled name would have been parsed as an identifier.
1554 assert( namedParamDecl && "Type-system-managed value name not found in symbol table" );
1555
1556 delete de;
1557
1558 TypeInstType * refToDecl = new TypeInstType( 0, useName, namedParamDecl );
1559
1560 if ( visitingChildOfSUIT ) {
1561 // As in postmutate( Expression * ), topmost expression needs a TypeExpr wrapper
1562 // But avoid ArrayType-Sizeof
1563 return new TypeExpr( refToDecl );
1564 } else {
1565 // the N occurrence is being used directly as a runtime value,
1566 // if we are in a type instantiation, then the N is within a bigger value computation
1567 return new SizeofExpr( refToDecl );
1568 }
1569 }
1570
1571 Expression * TranslateDimensionGenericParameters::postmutate( Expression * e ) {
1572 if ( visitingChildOfSUIT ) {
1573 // e is an expression used as an argument to instantiate a type
1574 if (! dynamic_cast< TypeExpr * >( e ) ) {
1575 // e is a value expression
1576 // but not a DimensionExpr, which has a distinct postmutate
1577 Type * typeExprContent = new ArrayType( 0, new BasicType( 0, BasicType::Char ), e, true, false );
1578 TypeExpr * result = new TypeExpr( typeExprContent );
1579 return result;
1580 }
1581 }
1582 return e;
1583 }
1584
[ef5b828]1585 void CompoundLiteral::premutate( ObjectDecl * objectDecl ) {
[a7c90d4]1586 storageClasses = objectDecl->get_storageClasses();
[630a82a]1587 }
1588
[ef5b828]1589 Expression * CompoundLiteral::postmutate( CompoundLiteralExpr * compLitExpr ) {
[630a82a]1590 // transform [storage_class] ... (struct S){ 3, ... };
1591 // into [storage_class] struct S temp = { 3, ... };
1592 static UniqueName indexName( "_compLit" );
1593
[ef5b828]1594 ObjectDecl * tempvar = new ObjectDecl( indexName.newName(), storageClasses, LinkageSpec::C, nullptr, compLitExpr->get_result(), compLitExpr->get_initializer() );
[d24d4e1]1595 compLitExpr->set_result( nullptr );
1596 compLitExpr->set_initializer( nullptr );
[630a82a]1597 delete compLitExpr;
[d24d4e1]1598 declsToAddBefore.push_back( tempvar ); // add modified temporary to current block
1599 return new VariableExpr( tempvar );
[630a82a]1600 }
[cce9429]1601
1602 void ReturnTypeFixer::fix( std::list< Declaration * > &translationUnit ) {
[0db6fc0]1603 PassVisitor<ReturnTypeFixer> fixer;
[cce9429]1604 acceptAll( translationUnit, fixer );
1605 }
1606
[0db6fc0]1607 void ReturnTypeFixer::postvisit( FunctionDecl * functionDecl ) {
[9facf3b]1608 FunctionType * ftype = functionDecl->get_functionType();
1609 std::list< DeclarationWithType * > & retVals = ftype->get_returnVals();
[56e49b0]1610 assertf( retVals.size() == 0 || retVals.size() == 1, "Function %s has too many return values: %zu", functionDecl->get_name().c_str(), retVals.size() );
[9facf3b]1611 if ( retVals.size() == 1 ) {
[861799c7]1612 // ensure all function return values have a name - use the name of the function to disambiguate (this also provides a nice bit of help for debugging).
1613 // ensure other return values have a name.
[9facf3b]1614 DeclarationWithType * ret = retVals.front();
1615 if ( ret->get_name() == "" ) {
1616 ret->set_name( toString( "_retval_", CodeGen::genName( functionDecl ) ) );
1617 }
[c6d2e93]1618 ret->get_attributes().push_back( new Attribute( "unused" ) );
[9facf3b]1619 }
1620 }
[cce9429]1621
[0db6fc0]1622 void ReturnTypeFixer::postvisit( FunctionType * ftype ) {
[cce9429]1623 // xxx - need to handle named return values - this information needs to be saved somehow
1624 // so that resolution has access to the names.
1625 // Note that this pass needs to happen early so that other passes which look for tuple types
1626 // find them in all of the right places, including function return types.
1627 std::list< DeclarationWithType * > & retVals = ftype->get_returnVals();
1628 if ( retVals.size() > 1 ) {
1629 // generate a single return parameter which is the tuple of all of the return values
[e3e16bc]1630 TupleType * tupleType = strict_dynamic_cast< TupleType * >( ResolvExpr::extractResultType( ftype ) );
[cce9429]1631 // ensure return value is not destructed by explicitly creating an empty ListInit node wherein maybeConstruct is false.
[ef5b828]1632 ObjectDecl * newRet = new ObjectDecl( "", Type::StorageClasses(), LinkageSpec::Cforall, 0, tupleType, new ListInit( std::list<Initializer *>(), noDesignators, false ) );
[cce9429]1633 deleteAll( retVals );
1634 retVals.clear();
1635 retVals.push_back( newRet );
1636 }
1637 }
[fbd7ad6]1638
[2b79a70]1639 void FixObjectType::fix( std::list< Declaration * > & translationUnit ) {
1640 PassVisitor<FixObjectType> fixer;
1641 acceptAll( translationUnit, fixer );
1642 }
1643
1644 void FixObjectType::previsit( ObjectDecl * objDecl ) {
[ef5b828]1645 Type * new_type = ResolvExpr::resolveTypeof( objDecl->get_type(), indexer );
[2b79a70]1646 objDecl->set_type( new_type );
1647 }
1648
1649 void FixObjectType::previsit( FunctionDecl * funcDecl ) {
[ef5b828]1650 Type * new_type = ResolvExpr::resolveTypeof( funcDecl->type, indexer );
[2b79a70]1651 funcDecl->set_type( new_type );
1652 }
1653
[ef5b828]1654 void FixObjectType::previsit( TypeDecl * typeDecl ) {
[2b79a70]1655 if ( typeDecl->get_base() ) {
[ef5b828]1656 Type * new_type = ResolvExpr::resolveTypeof( typeDecl->get_base(), indexer );
[2b79a70]1657 typeDecl->set_base( new_type );
1658 } // if
1659 }
1660
[09867ec]1661 void InitializerLength::computeLength( std::list< Declaration * > & translationUnit ) {
1662 PassVisitor<InitializerLength> len;
1663 acceptAll( translationUnit, len );
1664 }
1665
[fbd7ad6]1666 void ArrayLength::computeLength( std::list< Declaration * > & translationUnit ) {
[0db6fc0]1667 PassVisitor<ArrayLength> len;
[fbd7ad6]1668 acceptAll( translationUnit, len );
1669 }
1670
[09867ec]1671 void InitializerLength::previsit( ObjectDecl * objDecl ) {
[0b3b2ae]1672 if ( ArrayType * at = dynamic_cast< ArrayType * >( objDecl->type ) ) {
[f072892]1673 if ( at->dimension ) return;
[0b3b2ae]1674 if ( ListInit * init = dynamic_cast< ListInit * >( objDecl->init ) ) {
[f072892]1675 at->dimension = new ConstantExpr( Constant::from_ulong( init->initializers.size() ) );
[fbd7ad6]1676 }
1677 }
1678 }
[4fbdfae0]1679
[4934ea3]1680 void ArrayLength::previsit( ArrayType * type ) {
[09867ec]1681 if ( type->dimension ) {
1682 // need to resolve array dimensions early so that constructor code can correctly determine
1683 // if a type is a VLA (and hence whether its elements need to be constructed)
1684 ResolvExpr::findSingleExpression( type->dimension, Validate::SizeType->clone(), indexer );
1685
1686 // must re-evaluate whether a type is a VLA, now that more information is available
1687 // (e.g. the dimension may have been an enumerator, which was unknown prior to this step)
1688 type->isVarLen = ! InitTweak::isConstExpr( type->dimension );
[4934ea3]1689 }
1690 }
1691
[5809461]1692 struct LabelFinder {
1693 std::set< Label > & labels;
1694 LabelFinder( std::set< Label > & labels ) : labels( labels ) {}
1695 void previsit( Statement * stmt ) {
1696 for ( Label & l : stmt->labels ) {
1697 labels.insert( l );
1698 }
1699 }
1700 };
1701
1702 void LabelAddressFixer::premutate( FunctionDecl * funcDecl ) {
1703 GuardValue( labels );
1704 PassVisitor<LabelFinder> finder( labels );
1705 funcDecl->accept( finder );
1706 }
1707
1708 Expression * LabelAddressFixer::postmutate( AddressExpr * addrExpr ) {
1709 // convert &&label into label address
1710 if ( AddressExpr * inner = dynamic_cast< AddressExpr * >( addrExpr->arg ) ) {
1711 if ( NameExpr * nameExpr = dynamic_cast< NameExpr * >( inner->arg ) ) {
1712 if ( labels.count( nameExpr->name ) ) {
1713 Label name = nameExpr->name;
1714 delete addrExpr;
1715 return new LabelAddressExpr( name );
1716 }
1717 }
1718 }
1719 return addrExpr;
1720 }
[c8e4d2f8]1721
[c1ed2ee]1722namespace {
[ef5b828]1723 /// Replaces enum types by int, and function/array types in function parameter and return
[c1ed2ee]1724 /// lists by appropriate pointers
[954c954]1725 /*
[c1ed2ee]1726 struct EnumAndPointerDecay_new {
1727 const ast::EnumDecl * previsit( const ast::EnumDecl * enumDecl ) {
1728 // set the type of each member of the enumeration to be EnumConstant
1729 for ( unsigned i = 0; i < enumDecl->members.size(); ++i ) {
1730 // build new version of object with EnumConstant
[ef5b828]1731 ast::ptr< ast::ObjectDecl > obj =
[c1ed2ee]1732 enumDecl->members[i].strict_as< ast::ObjectDecl >();
[ef5b828]1733 obj.get_and_mutate()->type =
[c1ed2ee]1734 new ast::EnumInstType{ enumDecl->name, ast::CV::Const };
[ef5b828]1735
[c1ed2ee]1736 // set into decl
1737 ast::EnumDecl * mut = mutate( enumDecl );
1738 mut->members[i] = obj.get();
1739 enumDecl = mut;
1740 }
1741 return enumDecl;
1742 }
1743
1744 static const ast::FunctionType * fixFunctionList(
[ef5b828]1745 const ast::FunctionType * func,
[c1ed2ee]1746 std::vector< ast::ptr< ast::DeclWithType > > ast::FunctionType::* field,
1747 ast::ArgumentFlag isVarArgs = ast::FixedArgs
1748 ) {
[ef5b828]1749 const auto & dwts = func->* field;
[c1ed2ee]1750 unsigned nvals = dwts.size();
1751 bool hasVoid = false;
1752 for ( unsigned i = 0; i < nvals; ++i ) {
1753 func = ast::mutate_field_index( func, field, i, fixFunction( dwts[i], hasVoid ) );
1754 }
[ef5b828]1755
[c1ed2ee]1756 // the only case in which "void" is valid is where it is the only one in the list
1757 if ( hasVoid && ( nvals > 1 || isVarArgs ) ) {
[ef5b828]1758 SemanticError(
[c1ed2ee]1759 dwts.front()->location, func, "invalid type void in function type" );
1760 }
1761
1762 // one void is the only thing in the list, remove it
1763 if ( hasVoid ) {
[ef5b828]1764 func = ast::mutate_field(
[c1ed2ee]1765 func, field, std::vector< ast::ptr< ast::DeclWithType > >{} );
1766 }
1767
1768 return func;
1769 }
1770
1771 const ast::FunctionType * previsit( const ast::FunctionType * func ) {
1772 func = fixFunctionList( func, &ast::FunctionType::params, func->isVarArgs );
1773 return fixFunctionList( func, &ast::FunctionType::returns );
1774 }
1775 };
1776
[c1398e4]1777 /// expand assertions from a trait instance, performing appropriate type variable substitutions
[ef5b828]1778 void expandAssertions(
1779 const ast::TraitInstType * inst, std::vector< ast::ptr< ast::DeclWithType > > & out
[c1398e4]1780 ) {
1781 assertf( inst->base, "Trait instance not linked to base trait: %s", toCString( inst ) );
1782
1783 // build list of trait members, substituting trait decl parameters for instance parameters
[ef5b828]1784 ast::TypeSubstitution sub{
[c1398e4]1785 inst->base->params.begin(), inst->base->params.end(), inst->params.begin() };
1786 // deliberately take ast::ptr by-value to ensure this does not mutate inst->base
1787 for ( ast::ptr< ast::Decl > decl : inst->base->members ) {
1788 auto member = decl.strict_as< ast::DeclWithType >();
1789 sub.apply( member );
1790 out.emplace_back( member );
1791 }
1792 }
1793
[c1ed2ee]1794 /// Associates forward declarations of aggregates with their definitions
[ef5b828]1795 class LinkReferenceToTypes_new final
1796 : public ast::WithSymbolTable, public ast::WithGuards, public
[c1ed2ee]1797 ast::WithVisitorRef<LinkReferenceToTypes_new>, public ast::WithShortCircuiting {
[ef5b828]1798
1799 // these maps of uses of forward declarations of types need to have the actual type
1800 // declaration switched in * after * they have been traversed. To enable this in the
1801 // ast::Pass framework, any node that needs to be so mutated has mutate() called on it
1802 // before it is placed in the map, properly updating its parents in the usual traversal,
[18e683b]1803 // then can have the actual mutation applied later
1804 using ForwardEnumsType = std::unordered_multimap< std::string, ast::EnumInstType * >;
1805 using ForwardStructsType = std::unordered_multimap< std::string, ast::StructInstType * >;
1806 using ForwardUnionsType = std::unordered_multimap< std::string, ast::UnionInstType * >;
[ef5b828]1807
[18e683b]1808 const CodeLocation & location;
1809 const ast::SymbolTable * localSymtab;
[ef5b828]1810
[18e683b]1811 ForwardEnumsType forwardEnums;
1812 ForwardStructsType forwardStructs;
1813 ForwardUnionsType forwardUnions;
[c1ed2ee]1814
[ef5b828]1815 /// true if currently in a generic type body, so that type parameter instances can be
[18e683b]1816 /// renamed appropriately
1817 bool inGeneric = false;
[c1ed2ee]1818
[18e683b]1819 public:
1820 /// contstruct using running symbol table
[ef5b828]1821 LinkReferenceToTypes_new( const CodeLocation & loc )
[18e683b]1822 : location( loc ), localSymtab( &symtab ) {}
[ef5b828]1823
[18e683b]1824 /// construct using provided symbol table
[ef5b828]1825 LinkReferenceToTypes_new( const CodeLocation & loc, const ast::SymbolTable & syms )
[18e683b]1826 : location( loc ), localSymtab( &syms ) {}
1827
1828 const ast::Type * postvisit( const ast::TypeInstType * typeInst ) {
1829 // ensure generic parameter instances are renamed like the base type
1830 if ( inGeneric && typeInst->base ) {
[ef5b828]1831 typeInst = ast::mutate_field(
[18e683b]1832 typeInst, &ast::TypeInstType::name, typeInst->base->name );
1833 }
1834
[ef5b828]1835 if (
1836 auto typeDecl = dynamic_cast< const ast::TypeDecl * >(
1837 localSymtab->lookupType( typeInst->name ) )
[18e683b]1838 ) {
1839 typeInst = ast::mutate_field( typeInst, &ast::TypeInstType::kind, typeDecl->kind );
1840 }
1841
1842 return typeInst;
1843 }
1844
1845 const ast::Type * postvisit( const ast::EnumInstType * inst ) {
1846 const ast::EnumDecl * decl = localSymtab->lookupEnum( inst->name );
1847 // not a semantic error if the enum is not found, just an implicit forward declaration
1848 if ( decl ) {
1849 inst = ast::mutate_field( inst, &ast::EnumInstType::base, decl );
1850 }
1851 if ( ! decl || ! decl->body ) {
1852 // forward declaration
1853 auto mut = mutate( inst );
1854 forwardEnums.emplace( inst->name, mut );
1855 inst = mut;
1856 }
1857 return inst;
1858 }
1859
[98e8b3b]1860 void checkGenericParameters( const ast::BaseInstType * inst ) {
[18e683b]1861 for ( const ast::Expr * param : inst->params ) {
1862 if ( ! dynamic_cast< const ast::TypeExpr * >( param ) ) {
[ef5b828]1863 SemanticError(
[18e683b]1864 location, inst, "Expression parameters for generic types are currently "
1865 "unsupported: " );
1866 }
1867 }
1868 }
1869
1870 const ast::StructInstType * postvisit( const ast::StructInstType * inst ) {
1871 const ast::StructDecl * decl = localSymtab->lookupStruct( inst->name );
1872 // not a semantic error if the struct is not found, just an implicit forward declaration
1873 if ( decl ) {
1874 inst = ast::mutate_field( inst, &ast::StructInstType::base, decl );
1875 }
1876 if ( ! decl || ! decl->body ) {
1877 // forward declaration
1878 auto mut = mutate( inst );
1879 forwardStructs.emplace( inst->name, mut );
1880 inst = mut;
1881 }
1882 checkGenericParameters( inst );
1883 return inst;
1884 }
1885
1886 const ast::UnionInstType * postvisit( const ast::UnionInstType * inst ) {
1887 const ast::UnionDecl * decl = localSymtab->lookupUnion( inst->name );
1888 // not a semantic error if the struct is not found, just an implicit forward declaration
1889 if ( decl ) {
1890 inst = ast::mutate_field( inst, &ast::UnionInstType::base, decl );
1891 }
1892 if ( ! decl || ! decl->body ) {
1893 // forward declaration
1894 auto mut = mutate( inst );
1895 forwardUnions.emplace( inst->name, mut );
1896 inst = mut;
1897 }
1898 checkGenericParameters( inst );
1899 return inst;
1900 }
1901
1902 const ast::Type * postvisit( const ast::TraitInstType * traitInst ) {
1903 // handle other traits
1904 const ast::TraitDecl * traitDecl = localSymtab->lookupTrait( traitInst->name );
1905 if ( ! traitDecl ) {
1906 SemanticError( location, "use of undeclared trait " + traitInst->name );
1907 }
1908 if ( traitDecl->params.size() != traitInst->params.size() ) {
1909 SemanticError( location, traitInst, "incorrect number of trait parameters: " );
1910 }
1911 traitInst = ast::mutate_field( traitInst, &ast::TraitInstType::base, traitDecl );
1912
1913 // need to carry over the "sized" status of each decl in the instance
1914 for ( unsigned i = 0; i < traitDecl->params.size(); ++i ) {
1915 auto expr = traitInst->params[i].as< ast::TypeExpr >();
1916 if ( ! expr ) {
[ef5b828]1917 SemanticError(
[18e683b]1918 traitInst->params[i].get(), "Expression parameters for trait instances "
1919 "are currently unsupported: " );
1920 }
1921
1922 if ( auto inst = expr->type.as< ast::TypeInstType >() ) {
1923 if ( traitDecl->params[i]->sized && ! inst->base->sized ) {
1924 // traitInst = ast::mutate_field_index(
1925 // traitInst, &ast::TraitInstType::params, i,
1926 // ...
1927 // );
1928 ast::TraitInstType * mut = ast::mutate( traitInst );
1929 ast::chain_mutate( mut->params[i] )
1930 ( &ast::TypeExpr::type )
1931 ( &ast::TypeInstType::base )->sized = true;
1932 traitInst = mut;
1933 }
1934 }
1935 }
1936
1937 return traitInst;
1938 }
[ef5b828]1939
[18e683b]1940 void previsit( const ast::QualifiedType * ) { visit_children = false; }
[ef5b828]1941
[18e683b]1942 const ast::Type * postvisit( const ast::QualifiedType * qualType ) {
1943 // linking only makes sense for the "oldest ancestor" of the qualified type
[ef5b828]1944 return ast::mutate_field(
1945 qualType, &ast::QualifiedType::parent, qualType->parent->accept( * visitor ) );
[18e683b]1946 }
1947
1948 const ast::Decl * postvisit( const ast::EnumDecl * enumDecl ) {
[ef5b828]1949 // visit enum members first so that the types of self-referencing members are updated
[18e683b]1950 // properly
1951 if ( ! enumDecl->body ) return enumDecl;
1952
1953 // update forward declarations to point here
1954 auto fwds = forwardEnums.equal_range( enumDecl->name );
1955 if ( fwds.first != fwds.second ) {
1956 auto inst = fwds.first;
1957 do {
[ef5b828]1958 // forward decl is stored * mutably * in map, can thus be updated
[18e683b]1959 inst->second->base = enumDecl;
1960 } while ( ++inst != fwds.second );
1961 forwardEnums.erase( fwds.first, fwds.second );
1962 }
[ef5b828]1963
[18e683b]1964 // ensure that enumerator initializers are properly set
1965 for ( unsigned i = 0; i < enumDecl->members.size(); ++i ) {
1966 auto field = enumDecl->members[i].strict_as< ast::ObjectDecl >();
1967 if ( field->init ) {
[ef5b828]1968 // need to resolve enumerator initializers early so that other passes that
[18e683b]1969 // determine if an expression is constexpr have appropriate information
1970 auto init = field->init.strict_as< ast::SingleInit >();
[ef5b828]1971
1972 enumDecl = ast::mutate_field_index(
1973 enumDecl, &ast::EnumDecl::members, i,
1974 ast::mutate_field( field, &ast::ObjectDecl::init,
[18e683b]1975 ast::mutate_field( init, &ast::SingleInit::value,
[ef5b828]1976 ResolvExpr::findSingleExpression(
[18e683b]1977 init->value, new ast::BasicType{ ast::BasicType::SignedInt },
1978 symtab ) ) ) );
1979 }
1980 }
1981
1982 return enumDecl;
1983 }
1984
[ef5b828]1985 /// rename generic type parameters uniquely so that they do not conflict with user defined
[18e683b]1986 /// function forall parameters, e.g. the T in Box and the T in f, below
1987 /// forall(otype T)
1988 /// struct Box {
1989 /// T x;
1990 /// };
1991 /// forall(otype T)
1992 /// void f(Box(T) b) {
1993 /// ...
1994 /// }
1995 template< typename AggrDecl >
1996 const AggrDecl * renameGenericParams( const AggrDecl * aggr ) {
1997 GuardValue( inGeneric );
1998 inGeneric = ! aggr->params.empty();
1999
2000 for ( unsigned i = 0; i < aggr->params.size(); ++i ) {
2001 const ast::TypeDecl * td = aggr->params[i];
2002
[ef5b828]2003 aggr = ast::mutate_field_index(
2004 aggr, &AggrDecl::params, i,
[18e683b]2005 ast::mutate_field( td, &ast::TypeDecl::name, "__" + td->name + "_generic_" ) );
2006 }
2007 return aggr;
2008 }
2009
2010 const ast::StructDecl * previsit( const ast::StructDecl * structDecl ) {
2011 return renameGenericParams( structDecl );
2012 }
2013
2014 void postvisit( const ast::StructDecl * structDecl ) {
[ef5b828]2015 // visit struct members first so that the types of self-referencing members are
[18e683b]2016 // updated properly
2017 if ( ! structDecl->body ) return;
2018
2019 // update forward declarations to point here
2020 auto fwds = forwardStructs.equal_range( structDecl->name );
2021 if ( fwds.first != fwds.second ) {
2022 auto inst = fwds.first;
2023 do {
[ef5b828]2024 // forward decl is stored * mutably * in map, can thus be updated
[18e683b]2025 inst->second->base = structDecl;
2026 } while ( ++inst != fwds.second );
2027 forwardStructs.erase( fwds.first, fwds.second );
2028 }
2029 }
2030
2031 const ast::UnionDecl * previsit( const ast::UnionDecl * unionDecl ) {
2032 return renameGenericParams( unionDecl );
2033 }
2034
2035 void postvisit( const ast::UnionDecl * unionDecl ) {
[ef5b828]2036 // visit union members first so that the types of self-referencing members are updated
[18e683b]2037 // properly
2038 if ( ! unionDecl->body ) return;
2039
2040 // update forward declarations to point here
2041 auto fwds = forwardUnions.equal_range( unionDecl->name );
2042 if ( fwds.first != fwds.second ) {
2043 auto inst = fwds.first;
2044 do {
[ef5b828]2045 // forward decl is stored * mutably * in map, can thus be updated
[18e683b]2046 inst->second->base = unionDecl;
2047 } while ( ++inst != fwds.second );
2048 forwardUnions.erase( fwds.first, fwds.second );
2049 }
2050 }
2051
2052 const ast::Decl * postvisit( const ast::TraitDecl * traitDecl ) {
2053 // set the "sized" status for the special "sized" trait
[c1398e4]2054 if ( traitDecl->name == "sized" ) {
2055 assertf( traitDecl->params.size() == 1, "Built-in trait 'sized' has incorrect "
2056 "number of parameters: %zd", traitDecl->params.size() );
2057
[ef5b828]2058 traitDecl = ast::mutate_field_index(
2059 traitDecl, &ast::TraitDecl::params, 0,
2060 ast::mutate_field(
[c1398e4]2061 traitDecl->params.front().get(), &ast::TypeDecl::sized, true ) );
2062 }
[18e683b]2063
[c1398e4]2064 // move assertions from type parameters into the body of the trait
2065 std::vector< ast::ptr< ast::DeclWithType > > added;
2066 for ( const ast::TypeDecl * td : traitDecl->params ) {
2067 for ( const ast::DeclWithType * assn : td->assertions ) {
2068 auto inst = dynamic_cast< const ast::TraitInstType * >( assn->get_type() );
2069 if ( inst ) {
2070 expandAssertions( inst, added );
2071 } else {
2072 added.emplace_back( assn );
2073 }
2074 }
2075 }
2076 if ( ! added.empty() ) {
2077 auto mut = mutate( traitDecl );
2078 for ( const ast::DeclWithType * decl : added ) {
2079 mut->members.emplace_back( decl );
2080 }
2081 traitDecl = mut;
2082 }
[ef5b828]2083
[c1398e4]2084 return traitDecl;
[18e683b]2085 }
[c1ed2ee]2086 };
2087
[ef5b828]2088 /// Replaces array and function types in forall lists by appropriate pointer type and assigns
[c1ed2ee]2089 /// each object and function declaration a unique ID
[c1398e4]2090 class ForallPointerDecay_new {
2091 const CodeLocation & location;
2092 public:
2093 ForallPointerDecay_new( const CodeLocation & loc ) : location( loc ) {}
2094
2095 const ast::ObjectDecl * previsit( const ast::ObjectDecl * obj ) {
2096 // ensure that operator names only apply to functions or function pointers
[ef5b828]2097 if (
2098 CodeGen::isOperator( obj->name )
[c1398e4]2099 && ! dynamic_cast< const ast::FunctionType * >( obj->type->stripDeclarator() )
2100 ) {
2101 SemanticError( obj->location, toCString( "operator ", obj->name.c_str(), " is not "
2102 "a function or function pointer." ) );
2103 }
2104
2105 // ensure object has unique ID
2106 if ( obj->uniqueId ) return obj;
2107 auto mut = mutate( obj );
2108 mut->fixUniqueId();
2109 return mut;
2110 }
2111
2112 const ast::FunctionDecl * previsit( const ast::FunctionDecl * func ) {
2113 // ensure function has unique ID
2114 if ( func->uniqueId ) return func;
2115 auto mut = mutate( func );
2116 mut->fixUniqueId();
2117 return mut;
2118 }
2119
2120 /// Fix up assertions -- flattens assertion lists, removing all trait instances
2121 template< typename node_t, typename parent_t >
[ef5b828]2122 static const node_t * forallFixer(
2123 const CodeLocation & loc, const node_t * node,
[361bf01]2124 ast::FunctionType::ForallList parent_t::* forallField
[c1398e4]2125 ) {
[ef5b828]2126 for ( unsigned i = 0; i < (node->* forallField).size(); ++i ) {
2127 const ast::TypeDecl * type = (node->* forallField)[i];
[c1398e4]2128 if ( type->assertions.empty() ) continue;
2129
2130 std::vector< ast::ptr< ast::DeclWithType > > asserts;
2131 asserts.reserve( type->assertions.size() );
2132
2133 // expand trait instances into their members
2134 for ( const ast::DeclWithType * assn : type->assertions ) {
[ef5b828]2135 auto traitInst =
2136 dynamic_cast< const ast::TraitInstType * >( assn->get_type() );
[c1398e4]2137 if ( traitInst ) {
2138 // expand trait instance to all its members
2139 expandAssertions( traitInst, asserts );
2140 } else {
2141 // pass other assertions through
2142 asserts.emplace_back( assn );
2143 }
2144 }
2145
2146 // apply FixFunction to every assertion to check for invalid void type
2147 for ( ast::ptr< ast::DeclWithType > & assn : asserts ) {
2148 bool isVoid = false;
2149 assn = fixFunction( assn, isVoid );
2150 if ( isVoid ) {
2151 SemanticError( loc, node, "invalid type void in assertion of function " );
2152 }
2153 }
2154
2155 // place mutated assertion list in node
2156 auto mut = mutate( type );
2157 mut->assertions = move( asserts );
2158 node = ast::mutate_field_index( node, forallField, i, mut );
2159 }
2160 return node;
2161 }
2162
2163 const ast::FunctionType * previsit( const ast::FunctionType * ftype ) {
2164 return forallFixer( location, ftype, &ast::FunctionType::forall );
2165 }
2166
2167 const ast::StructDecl * previsit( const ast::StructDecl * aggrDecl ) {
2168 return forallFixer( aggrDecl->location, aggrDecl, &ast::StructDecl::params );
2169 }
2170
2171 const ast::UnionDecl * previsit( const ast::UnionDecl * aggrDecl ) {
2172 return forallFixer( aggrDecl->location, aggrDecl, &ast::UnionDecl::params );
2173 }
[c1ed2ee]2174 };
[3e5dd913]2175 */
[c1ed2ee]2176} // anonymous namespace
2177
[3e5dd913]2178/*
[ef5b828]2179const ast::Type * validateType(
[18e683b]2180 const CodeLocation & loc, const ast::Type * type, const ast::SymbolTable & symtab ) {
[954c954]2181 // ast::Pass< EnumAndPointerDecay_new > epc;
[18e683b]2182 ast::Pass< LinkReferenceToTypes_new > lrt{ loc, symtab };
[c1398e4]2183 ast::Pass< ForallPointerDecay_new > fpd{ loc };
[c1ed2ee]2184
[954c954]2185 return type->accept( lrt )->accept( fpd );
[c1ed2ee]2186}
[3e5dd913]2187*/
[c1ed2ee]2188
[51b73452]2189} // namespace SymTab
[0dd3a2f]2190
2191// Local Variables: //
2192// tab-width: 4 //
2193// mode: c++ //
2194// compile-command: "make install" //
2195// End: //
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