source: src/SymTab/Validate.cc@ 28e58fd

ADT aaron-thesis arm-eh ast-experimental cleanup-dtors deferred_resn demangler enum forall-pointer-decay jacob/cs343-translation jenkins-sandbox new-ast new-ast-unique-expr new-env no_list persistent-indexer pthread-emulation qualifiedEnum resolv-new with_gc
Last change on this file since 28e58fd was 8135d4c, checked in by Rob Schluntz <rschlunt@…>, 8 years ago

Merge branch 'master' into references

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File size: 38.2 KB
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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//
7// Validate.cc --
8//
9// Author : Richard C. Bilson
10// Created On : Sun May 17 21:50:04 2015
11// Last Modified By : Andrew Beach
12// Last Modified On : Tus Aug 8 13:27:00 2017
13// Update Count : 358
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//
25// - The type "void" never occurs in lists of function parameter or return types. A function
26// taking no arguments has no argument types.
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.
39
40#include "Validate.h"
41
42#include <cassert> // for assertf, assert
43#include <cstddef> // for size_t
44#include <list> // for list
45#include <string> // for string
46#include <utility> // for pair
47
48#include "CodeGen/CodeGenerator.h" // for genName
49#include "CodeGen/OperatorTable.h" // for isCtorDtor, isCtorDtorAssign
50#include "Common/PassVisitor.h" // for PassVisitor, WithDeclsToAdd
51#include "Common/ScopedMap.h" // for ScopedMap
52#include "Common/SemanticError.h" // for SemanticError
53#include "Common/UniqueName.h" // for UniqueName
54#include "Common/utility.h" // for operator+, cloneAll, deleteAll
55#include "Concurrency/Keywords.h" // for applyKeywords
56#include "FixFunction.h" // for FixFunction
57#include "Indexer.h" // for Indexer
58#include "InitTweak/InitTweak.h" // for isCtorDtorAssign
59#include "Parser/LinkageSpec.h" // for C
60#include "ResolvExpr/typeops.h" // for typesCompatible
61#include "SymTab/AddVisit.h" // for addVisit
62#include "SymTab/Autogen.h" // for SizeType
63#include "SynTree/Attribute.h" // for noAttributes, Attribute
64#include "SynTree/Constant.h" // for Constant
65#include "SynTree/Declaration.h" // for ObjectDecl, DeclarationWithType
66#include "SynTree/Expression.h" // for CompoundLiteralExpr, Expressio...
67#include "SynTree/Initializer.h" // for ListInit, Initializer
68#include "SynTree/Label.h" // for operator==, Label
69#include "SynTree/Mutator.h" // for Mutator
70#include "SynTree/Type.h" // for Type, TypeInstType, EnumInstType
71#include "SynTree/TypeSubstitution.h" // for TypeSubstitution
72#include "SynTree/Visitor.h" // for Visitor
73
74class CompoundStmt;
75class ReturnStmt;
76class SwitchStmt;
77
78
79#define debugPrint( x ) if ( doDebug ) { std::cout << x; }
80
81namespace SymTab {
82 class HoistStruct final : public Visitor {
83 template< typename Visitor >
84 friend void acceptAndAdd( std::list< Declaration * > &translationUnit, Visitor &visitor );
85 template< typename Visitor >
86 friend void addVisitStatementList( std::list< Statement* > &stmts, Visitor &visitor );
87 public:
88 /// Flattens nested struct types
89 static void hoistStruct( std::list< Declaration * > &translationUnit );
90
91 std::list< Declaration * > &get_declsToAdd() { return declsToAdd; }
92
93 virtual void visit( EnumInstType *enumInstType );
94 virtual void visit( StructInstType *structInstType );
95 virtual void visit( UnionInstType *unionInstType );
96 virtual void visit( StructDecl *aggregateDecl );
97 virtual void visit( UnionDecl *aggregateDecl );
98
99 virtual void visit( CompoundStmt *compoundStmt );
100 virtual void visit( SwitchStmt *switchStmt );
101 private:
102 HoistStruct();
103
104 template< typename AggDecl > void handleAggregate( AggDecl *aggregateDecl );
105
106 std::list< Declaration * > declsToAdd, declsToAddAfter;
107 bool inStruct;
108 };
109
110 /// Fix return types so that every function returns exactly one value
111 struct ReturnTypeFixer {
112 static void fix( std::list< Declaration * > &translationUnit );
113
114 void postvisit( FunctionDecl * functionDecl );
115 void postvisit( FunctionType * ftype );
116 };
117
118 /// Replaces enum types by int, and function or array types in function parameter and return lists by appropriate pointers.
119 struct EnumAndPointerDecay {
120 void previsit( EnumDecl *aggregateDecl );
121 void previsit( FunctionType *func );
122 };
123
124 /// Associates forward declarations of aggregates with their definitions
125 class LinkReferenceToTypes final : public Indexer {
126 typedef Indexer Parent;
127 public:
128 LinkReferenceToTypes( bool doDebug, const Indexer *indexer );
129 using Parent::visit;
130 void visit( EnumInstType *enumInst ) final;
131 void visit( StructInstType *structInst ) final;
132 void visit( UnionInstType *unionInst ) final;
133 void visit( TraitInstType *contextInst ) final;
134 void visit( EnumDecl *enumDecl ) final;
135 void visit( StructDecl *structDecl ) final;
136 void visit( UnionDecl *unionDecl ) final;
137 void visit( TypeInstType *typeInst ) final;
138 private:
139 const Indexer *indexer;
140
141 typedef std::map< std::string, std::list< EnumInstType * > > ForwardEnumsType;
142 typedef std::map< std::string, std::list< StructInstType * > > ForwardStructsType;
143 typedef std::map< std::string, std::list< UnionInstType * > > ForwardUnionsType;
144 ForwardEnumsType forwardEnums;
145 ForwardStructsType forwardStructs;
146 ForwardUnionsType forwardUnions;
147 };
148
149 /// Replaces array and function types in forall lists by appropriate pointer type and assigns each Object and Function declaration a unique ID.
150 class ForallPointerDecay final : public Indexer {
151 typedef Indexer Parent;
152 public:
153 using Parent::visit;
154 ForallPointerDecay( const Indexer *indexer );
155
156 virtual void visit( ObjectDecl *object ) override;
157 virtual void visit( FunctionDecl *func ) override;
158
159 const Indexer *indexer;
160 };
161
162 struct ReturnChecker : public WithGuards {
163 /// Checks that return statements return nothing if their return type is void
164 /// and return something if the return type is non-void.
165 static void checkFunctionReturns( std::list< Declaration * > & translationUnit );
166
167 void previsit( FunctionDecl * functionDecl );
168 void previsit( ReturnStmt * returnStmt );
169
170 typedef std::list< DeclarationWithType * > ReturnVals;
171 ReturnVals returnVals;
172 };
173
174 class EliminateTypedef : public Mutator {
175 public:
176 EliminateTypedef() : scopeLevel( 0 ) {}
177 /// Replaces typedefs by forward declarations
178 static void eliminateTypedef( std::list< Declaration * > &translationUnit );
179 private:
180 virtual Declaration *mutate( TypedefDecl *typeDecl );
181 virtual TypeDecl *mutate( TypeDecl *typeDecl );
182 virtual DeclarationWithType *mutate( FunctionDecl *funcDecl );
183 virtual DeclarationWithType *mutate( ObjectDecl *objDecl );
184 virtual CompoundStmt *mutate( CompoundStmt *compoundStmt );
185 virtual Type *mutate( TypeInstType *aggregateUseType );
186 virtual Expression *mutate( CastExpr *castExpr );
187
188 virtual Declaration *mutate( StructDecl * structDecl );
189 virtual Declaration *mutate( UnionDecl * unionDecl );
190 virtual Declaration *mutate( EnumDecl * enumDecl );
191 virtual Declaration *mutate( TraitDecl * contextDecl );
192
193 template<typename AggDecl>
194 AggDecl *handleAggregate( AggDecl * aggDecl );
195
196 template<typename AggDecl>
197 void addImplicitTypedef( AggDecl * aggDecl );
198
199 typedef std::unique_ptr<TypedefDecl> TypedefDeclPtr;
200 typedef ScopedMap< std::string, std::pair< TypedefDeclPtr, int > > TypedefMap;
201 typedef std::map< std::string, TypeDecl * > TypeDeclMap;
202 TypedefMap typedefNames;
203 TypeDeclMap typedeclNames;
204 int scopeLevel;
205 };
206
207 struct VerifyCtorDtorAssign {
208 /// ensure that constructors, destructors, and assignment have at least one
209 /// parameter, the first of which must be a pointer, and that ctor/dtors have no
210 /// return values.
211 static void verify( std::list< Declaration * > &translationUnit );
212
213 void previsit( FunctionDecl *funcDecl );
214 };
215
216 /// ensure that generic types have the correct number of type arguments
217 struct ValidateGenericParameters {
218 void previsit( StructInstType * inst );
219 void previsit( UnionInstType * inst );
220 };
221
222 struct ArrayLength {
223 /// for array types without an explicit length, compute the length and store it so that it
224 /// is known to the rest of the phases. For example,
225 /// int x[] = { 1, 2, 3 };
226 /// int y[][2] = { { 1, 2, 3 }, { 1, 2, 3 } };
227 /// here x and y are known at compile-time to have length 3, so change this into
228 /// int x[3] = { 1, 2, 3 };
229 /// int y[3][2] = { { 1, 2, 3 }, { 1, 2, 3 } };
230 static void computeLength( std::list< Declaration * > & translationUnit );
231
232 void previsit( ObjectDecl * objDecl );
233 };
234
235 struct CompoundLiteral final : public WithDeclsToAdd, public WithVisitorRef<CompoundLiteral> {
236 Type::StorageClasses storageClasses;
237
238 void premutate( ObjectDecl *objectDecl );
239 Expression * postmutate( CompoundLiteralExpr *compLitExpr );
240 };
241
242
243 FunctionDecl * dereferenceOperator = nullptr;
244 struct FindSpecialDeclarations final {
245 void previsit( FunctionDecl * funcDecl );
246 };
247
248 void validate( std::list< Declaration * > &translationUnit, bool doDebug ) {
249 PassVisitor<EnumAndPointerDecay> epc;
250 LinkReferenceToTypes lrt( doDebug, 0 );
251 ForallPointerDecay fpd( 0 );
252 PassVisitor<CompoundLiteral> compoundliteral;
253 PassVisitor<ValidateGenericParameters> genericParams;
254 PassVisitor<FindSpecialDeclarations> finder;
255
256 EliminateTypedef::eliminateTypedef( translationUnit );
257 HoistStruct::hoistStruct( translationUnit ); // must happen after EliminateTypedef, so that aggregate typedefs occur in the correct order
258 ReturnTypeFixer::fix( translationUnit ); // must happen before autogen
259 acceptAll( translationUnit, lrt ); // must happen before autogen, because sized flag needs to propagate to generated functions
260 acceptAll( translationUnit, genericParams ); // check as early as possible - can't happen before LinkReferenceToTypes
261 acceptAll( translationUnit, epc ); // must happen before VerifyCtorDtorAssign, because void return objects should not exist
262 VerifyCtorDtorAssign::verify( translationUnit ); // must happen before autogen, because autogen examines existing ctor/dtors
263 Concurrency::applyKeywords( translationUnit );
264 autogenerateRoutines( translationUnit ); // moved up, used to be below compoundLiteral - currently needs EnumAndPointerDecay
265 Concurrency::implementMutexFuncs( translationUnit );
266 Concurrency::implementThreadStarter( translationUnit );
267 ReturnChecker::checkFunctionReturns( translationUnit );
268 mutateAll( translationUnit, compoundliteral );
269 acceptAll( translationUnit, fpd );
270 ArrayLength::computeLength( translationUnit );
271 acceptAll( translationUnit, finder );
272 }
273
274 void validateType( Type *type, const Indexer *indexer ) {
275 PassVisitor<EnumAndPointerDecay> epc;
276 LinkReferenceToTypes lrt( false, indexer );
277 ForallPointerDecay fpd( indexer );
278 type->accept( epc );
279 type->accept( lrt );
280 type->accept( fpd );
281 }
282
283 void HoistStruct::hoistStruct( std::list< Declaration * > &translationUnit ) {
284 HoistStruct hoister;
285 acceptAndAdd( translationUnit, hoister );
286 }
287
288 HoistStruct::HoistStruct() : inStruct( false ) {
289 }
290
291 void filter( std::list< Declaration * > &declList, bool (*pred)( Declaration * ), bool doDelete ) {
292 std::list< Declaration * >::iterator i = declList.begin();
293 while ( i != declList.end() ) {
294 std::list< Declaration * >::iterator next = i;
295 ++next;
296 if ( pred( *i ) ) {
297 if ( doDelete ) {
298 delete *i;
299 } // if
300 declList.erase( i );
301 } // if
302 i = next;
303 } // while
304 }
305
306 bool isStructOrUnion( Declaration *decl ) {
307 return dynamic_cast< StructDecl * >( decl ) || dynamic_cast< UnionDecl * >( decl );
308 }
309
310 template< typename AggDecl >
311 void HoistStruct::handleAggregate( AggDecl *aggregateDecl ) {
312 if ( inStruct ) {
313 // Add elements in stack order corresponding to nesting structure.
314 declsToAdd.push_front( aggregateDecl );
315 Visitor::visit( aggregateDecl );
316 } else {
317 inStruct = true;
318 Visitor::visit( aggregateDecl );
319 inStruct = false;
320 } // if
321 // Always remove the hoisted aggregate from the inner structure.
322 filter( aggregateDecl->get_members(), isStructOrUnion, false );
323 }
324
325 void HoistStruct::visit( EnumInstType *structInstType ) {
326 if ( structInstType->get_baseEnum() ) {
327 declsToAdd.push_front( structInstType->get_baseEnum() );
328 }
329 }
330
331 void HoistStruct::visit( StructInstType *structInstType ) {
332 if ( structInstType->get_baseStruct() ) {
333 declsToAdd.push_front( structInstType->get_baseStruct() );
334 }
335 }
336
337 void HoistStruct::visit( UnionInstType *structInstType ) {
338 if ( structInstType->get_baseUnion() ) {
339 declsToAdd.push_front( structInstType->get_baseUnion() );
340 }
341 }
342
343 void HoistStruct::visit( StructDecl *aggregateDecl ) {
344 handleAggregate( aggregateDecl );
345 }
346
347 void HoistStruct::visit( UnionDecl *aggregateDecl ) {
348 handleAggregate( aggregateDecl );
349 }
350
351 void HoistStruct::visit( CompoundStmt *compoundStmt ) {
352 addVisit( compoundStmt, *this );
353 }
354
355 void HoistStruct::visit( SwitchStmt *switchStmt ) {
356 addVisit( switchStmt, *this );
357 }
358
359 void EnumAndPointerDecay::previsit( EnumDecl *enumDecl ) {
360 // Set the type of each member of the enumeration to be EnumConstant
361 for ( std::list< Declaration * >::iterator i = enumDecl->get_members().begin(); i != enumDecl->get_members().end(); ++i ) {
362 ObjectDecl * obj = dynamic_cast< ObjectDecl * >( *i );
363 assert( obj );
364 obj->set_type( new EnumInstType( Type::Qualifiers( Type::Const ), enumDecl->get_name() ) );
365 } // for
366 }
367
368 namespace {
369 template< typename DWTList >
370 void fixFunctionList( DWTList & dwts, FunctionType * func ) {
371 // the only case in which "void" is valid is where it is the only one in the list; then it should be removed
372 // entirely. other fix ups are handled by the FixFunction class
373 typedef typename DWTList::iterator DWTIterator;
374 DWTIterator begin( dwts.begin() ), end( dwts.end() );
375 if ( begin == end ) return;
376 FixFunction fixer;
377 DWTIterator i = begin;
378 *i = (*i)->acceptMutator( fixer );
379 if ( fixer.get_isVoid() ) {
380 DWTIterator j = i;
381 ++i;
382 delete *j;
383 dwts.erase( j );
384 if ( i != end ) {
385 throw SemanticError( "invalid type void in function type ", func );
386 } // if
387 } else {
388 ++i;
389 for ( ; i != end; ++i ) {
390 FixFunction fixer;
391 *i = (*i)->acceptMutator( fixer );
392 if ( fixer.get_isVoid() ) {
393 throw SemanticError( "invalid type void in function type ", func );
394 } // if
395 } // for
396 } // if
397 }
398 }
399
400 void EnumAndPointerDecay::previsit( FunctionType *func ) {
401 // Fix up parameters and return types
402 fixFunctionList( func->get_parameters(), func );
403 fixFunctionList( func->get_returnVals(), func );
404 }
405
406 LinkReferenceToTypes::LinkReferenceToTypes( bool doDebug, const Indexer *other_indexer ) : Indexer( doDebug ) {
407 if ( other_indexer ) {
408 indexer = other_indexer;
409 } else {
410 indexer = this;
411 } // if
412 }
413
414 void LinkReferenceToTypes::visit( EnumInstType *enumInst ) {
415 Parent::visit( enumInst );
416 EnumDecl *st = indexer->lookupEnum( enumInst->get_name() );
417 // it's not a semantic error if the enum is not found, just an implicit forward declaration
418 if ( st ) {
419 //assert( ! enumInst->get_baseEnum() || enumInst->get_baseEnum()->get_members().empty() || ! st->get_members().empty() );
420 enumInst->set_baseEnum( st );
421 } // if
422 if ( ! st || st->get_members().empty() ) {
423 // use of forward declaration
424 forwardEnums[ enumInst->get_name() ].push_back( enumInst );
425 } // if
426 }
427
428 void LinkReferenceToTypes::visit( StructInstType *structInst ) {
429 Parent::visit( structInst );
430 StructDecl *st = indexer->lookupStruct( structInst->get_name() );
431 // it's not a semantic error if the struct is not found, just an implicit forward declaration
432 if ( st ) {
433 //assert( ! structInst->get_baseStruct() || structInst->get_baseStruct()->get_members().empty() || ! st->get_members().empty() );
434 structInst->set_baseStruct( st );
435 } // if
436 if ( ! st || st->get_members().empty() ) {
437 // use of forward declaration
438 forwardStructs[ structInst->get_name() ].push_back( structInst );
439 } // if
440 }
441
442 void LinkReferenceToTypes::visit( UnionInstType *unionInst ) {
443 Parent::visit( unionInst );
444 UnionDecl *un = indexer->lookupUnion( unionInst->get_name() );
445 // it's not a semantic error if the union is not found, just an implicit forward declaration
446 if ( un ) {
447 unionInst->set_baseUnion( un );
448 } // if
449 if ( ! un || un->get_members().empty() ) {
450 // use of forward declaration
451 forwardUnions[ unionInst->get_name() ].push_back( unionInst );
452 } // if
453 }
454
455 void LinkReferenceToTypes::visit( TraitInstType *traitInst ) {
456 Parent::visit( traitInst );
457 if ( traitInst->get_name() == "sized" ) {
458 // "sized" is a special trait with no members - just flick the sized status on for the type variable
459 if ( traitInst->get_parameters().size() != 1 ) {
460 throw SemanticError( "incorrect number of trait parameters: ", traitInst );
461 }
462 TypeExpr * param = safe_dynamic_cast< TypeExpr * > ( traitInst->get_parameters().front() );
463 TypeInstType * inst = safe_dynamic_cast< TypeInstType * > ( param->get_type() );
464 TypeDecl * decl = inst->get_baseType();
465 decl->set_sized( true );
466 // since "sized" is special, the next few steps don't apply
467 return;
468 }
469 TraitDecl *traitDecl = indexer->lookupTrait( traitInst->get_name() );
470 if ( ! traitDecl ) {
471 throw SemanticError( "use of undeclared trait " + traitInst->get_name() );
472 } // if
473 if ( traitDecl->get_parameters().size() != traitInst->get_parameters().size() ) {
474 throw SemanticError( "incorrect number of trait parameters: ", traitInst );
475 } // if
476
477 for ( TypeDecl * td : traitDecl->get_parameters() ) {
478 for ( DeclarationWithType * assert : td->get_assertions() ) {
479 traitInst->get_members().push_back( assert->clone() );
480 } // for
481 } // for
482
483 // need to clone members of the trait for ownership purposes
484 std::list< Declaration * > members;
485 std::transform( traitDecl->get_members().begin(), traitDecl->get_members().end(), back_inserter( members ), [](Declaration * dwt) { return dwt->clone(); } );
486
487 applySubstitution( traitDecl->get_parameters().begin(), traitDecl->get_parameters().end(), traitInst->get_parameters().begin(), members.begin(), members.end(), back_inserter( traitInst->get_members() ) );
488
489 // need to carry over the 'sized' status of each decl in the instance
490 for ( auto p : group_iterate( traitDecl->get_parameters(), traitInst->get_parameters() ) ) {
491 TypeExpr * expr = safe_dynamic_cast< TypeExpr * >( std::get<1>(p) );
492 if ( TypeInstType * inst = dynamic_cast< TypeInstType * >( expr->get_type() ) ) {
493 TypeDecl * formalDecl = std::get<0>(p);
494 TypeDecl * instDecl = inst->get_baseType();
495 if ( formalDecl->get_sized() ) instDecl->set_sized( true );
496 }
497 }
498 }
499
500 void LinkReferenceToTypes::visit( EnumDecl *enumDecl ) {
501 // visit enum members first so that the types of self-referencing members are updated properly
502 Parent::visit( enumDecl );
503 if ( ! enumDecl->get_members().empty() ) {
504 ForwardEnumsType::iterator fwds = forwardEnums.find( enumDecl->get_name() );
505 if ( fwds != forwardEnums.end() ) {
506 for ( std::list< EnumInstType * >::iterator inst = fwds->second.begin(); inst != fwds->second.end(); ++inst ) {
507 (*inst )->set_baseEnum( enumDecl );
508 } // for
509 forwardEnums.erase( fwds );
510 } // if
511 } // if
512 }
513
514 void LinkReferenceToTypes::visit( StructDecl *structDecl ) {
515 // visit struct members first so that the types of self-referencing members are updated properly
516 // xxx - need to ensure that type parameters match up between forward declarations and definition (most importantly, number of type parameters and and their defaults)
517 Parent::visit( structDecl );
518 if ( ! structDecl->get_members().empty() ) {
519 ForwardStructsType::iterator fwds = forwardStructs.find( structDecl->get_name() );
520 if ( fwds != forwardStructs.end() ) {
521 for ( std::list< StructInstType * >::iterator inst = fwds->second.begin(); inst != fwds->second.end(); ++inst ) {
522 (*inst )->set_baseStruct( structDecl );
523 } // for
524 forwardStructs.erase( fwds );
525 } // if
526 } // if
527 }
528
529 void LinkReferenceToTypes::visit( UnionDecl *unionDecl ) {
530 Parent::visit( unionDecl );
531 if ( ! unionDecl->get_members().empty() ) {
532 ForwardUnionsType::iterator fwds = forwardUnions.find( unionDecl->get_name() );
533 if ( fwds != forwardUnions.end() ) {
534 for ( std::list< UnionInstType * >::iterator inst = fwds->second.begin(); inst != fwds->second.end(); ++inst ) {
535 (*inst )->set_baseUnion( unionDecl );
536 } // for
537 forwardUnions.erase( fwds );
538 } // if
539 } // if
540 }
541
542 void LinkReferenceToTypes::visit( TypeInstType *typeInst ) {
543 if ( NamedTypeDecl *namedTypeDecl = lookupType( typeInst->get_name() ) ) {
544 if ( TypeDecl *typeDecl = dynamic_cast< TypeDecl * >( namedTypeDecl ) ) {
545 typeInst->set_isFtype( typeDecl->get_kind() == TypeDecl::Ftype );
546 } // if
547 } // if
548 }
549
550 ForallPointerDecay::ForallPointerDecay( const Indexer *other_indexer ) : Indexer( false ) {
551 if ( other_indexer ) {
552 indexer = other_indexer;
553 } else {
554 indexer = this;
555 } // if
556 }
557
558 /// Fix up assertions - flattens assertion lists, removing all trait instances
559 void forallFixer( Type * func ) {
560 for ( TypeDecl * type : func->get_forall() ) {
561 std::list< DeclarationWithType * > toBeDone, nextRound;
562 toBeDone.splice( toBeDone.end(), type->get_assertions() );
563 while ( ! toBeDone.empty() ) {
564 for ( DeclarationWithType * assertion : toBeDone ) {
565 if ( TraitInstType *traitInst = dynamic_cast< TraitInstType * >( assertion->get_type() ) ) {
566 // expand trait instance into all of its members
567 for ( Declaration * member : traitInst->get_members() ) {
568 DeclarationWithType *dwt = safe_dynamic_cast< DeclarationWithType * >( member );
569 nextRound.push_back( dwt->clone() );
570 }
571 delete traitInst;
572 } else {
573 // pass assertion through
574 FixFunction fixer;
575 assertion = assertion->acceptMutator( fixer );
576 if ( fixer.get_isVoid() ) {
577 throw SemanticError( "invalid type void in assertion of function ", func );
578 }
579 type->get_assertions().push_back( assertion );
580 } // if
581 } // for
582 toBeDone.clear();
583 toBeDone.splice( toBeDone.end(), nextRound );
584 } // while
585 } // for
586 }
587
588 void ForallPointerDecay::visit( ObjectDecl *object ) {
589 forallFixer( object->get_type() );
590 if ( PointerType *pointer = dynamic_cast< PointerType * >( object->get_type() ) ) {
591 forallFixer( pointer->get_base() );
592 } // if
593 Parent::visit( object );
594 object->fixUniqueId();
595 }
596
597 void ForallPointerDecay::visit( FunctionDecl *func ) {
598 forallFixer( func->get_type() );
599 Parent::visit( func );
600 func->fixUniqueId();
601 }
602
603 void ReturnChecker::checkFunctionReturns( std::list< Declaration * > & translationUnit ) {
604 PassVisitor<ReturnChecker> checker;
605 acceptAll( translationUnit, checker );
606 }
607
608 void ReturnChecker::previsit( FunctionDecl * functionDecl ) {
609 GuardValue( returnVals );
610 returnVals = functionDecl->get_functionType()->get_returnVals();
611 }
612
613 void ReturnChecker::previsit( ReturnStmt * returnStmt ) {
614 // Previously this also checked for the existence of an expr paired with no return values on
615 // the function return type. This is incorrect, since you can have an expression attached to
616 // a return statement in a void-returning function in C. The expression is treated as if it
617 // were cast to void.
618 if ( ! returnStmt->get_expr() && returnVals.size() != 0 ) {
619 throw SemanticError( "Non-void function returns no values: " , returnStmt );
620 }
621 }
622
623
624 bool isTypedef( Declaration *decl ) {
625 return dynamic_cast< TypedefDecl * >( decl );
626 }
627
628 void EliminateTypedef::eliminateTypedef( std::list< Declaration * > &translationUnit ) {
629 EliminateTypedef eliminator;
630 mutateAll( translationUnit, eliminator );
631 if ( eliminator.typedefNames.count( "size_t" ) ) {
632 // grab and remember declaration of size_t
633 SizeType = eliminator.typedefNames["size_t"].first->get_base()->clone();
634 } else {
635 // xxx - missing global typedef for size_t - default to long unsigned int, even though that may be wrong
636 // eventually should have a warning for this case.
637 SizeType = new BasicType( Type::Qualifiers(), BasicType::LongUnsignedInt );
638 }
639 filter( translationUnit, isTypedef, true );
640
641 }
642
643 Type *EliminateTypedef::mutate( TypeInstType * typeInst ) {
644 // instances of typedef types will come here. If it is an instance
645 // of a typdef type, link the instance to its actual type.
646 TypedefMap::const_iterator def = typedefNames.find( typeInst->get_name() );
647 if ( def != typedefNames.end() ) {
648 Type *ret = def->second.first->get_base()->clone();
649 ret->get_qualifiers() |= typeInst->get_qualifiers();
650 // place instance parameters on the typedef'd type
651 if ( ! typeInst->get_parameters().empty() ) {
652 ReferenceToType *rtt = dynamic_cast<ReferenceToType*>(ret);
653 if ( ! rtt ) {
654 throw SemanticError("cannot apply type parameters to base type of " + typeInst->get_name());
655 }
656 rtt->get_parameters().clear();
657 cloneAll( typeInst->get_parameters(), rtt->get_parameters() );
658 mutateAll( rtt->get_parameters(), *this ); // recursively fix typedefs on parameters
659 } // if
660 delete typeInst;
661 return ret;
662 } else {
663 TypeDeclMap::const_iterator base = typedeclNames.find( typeInst->get_name() );
664 assertf( base != typedeclNames.end(), "Can't find typedecl name %s", typeInst->get_name().c_str() );
665 typeInst->set_baseType( base->second );
666 } // if
667 return typeInst;
668 }
669
670 Declaration *EliminateTypedef::mutate( TypedefDecl * tyDecl ) {
671 Declaration *ret = Mutator::mutate( tyDecl );
672
673 if ( typedefNames.count( tyDecl->get_name() ) == 1 && typedefNames[ tyDecl->get_name() ].second == scopeLevel ) {
674 // typedef to the same name from the same scope
675 // must be from the same type
676
677 Type * t1 = tyDecl->get_base();
678 Type * t2 = typedefNames[ tyDecl->get_name() ].first->get_base();
679 if ( ! ResolvExpr::typesCompatible( t1, t2, Indexer() ) ) {
680 throw SemanticError( "cannot redefine typedef: " + tyDecl->get_name() );
681 }
682 } else {
683 typedefNames[ tyDecl->get_name() ] = std::make_pair( TypedefDeclPtr( tyDecl ), scopeLevel );
684 } // if
685
686 // When a typedef is a forward declaration:
687 // typedef struct screen SCREEN;
688 // the declaration portion must be retained:
689 // struct screen;
690 // because the expansion of the typedef is:
691 // void rtn( SCREEN *p ) => void rtn( struct screen *p )
692 // hence the type-name "screen" must be defined.
693 // Note, qualifiers on the typedef are superfluous for the forward declaration.
694
695 Type *designatorType = tyDecl->get_base()->stripDeclarator();
696 if ( StructInstType *aggDecl = dynamic_cast< StructInstType * >( designatorType ) ) {
697 return new StructDecl( aggDecl->get_name(), DeclarationNode::Struct, noAttributes, tyDecl->get_linkage() );
698 } else if ( UnionInstType *aggDecl = dynamic_cast< UnionInstType * >( designatorType ) ) {
699 return new UnionDecl( aggDecl->get_name(), noAttributes, tyDecl->get_linkage() );
700 } else if ( EnumInstType *enumDecl = dynamic_cast< EnumInstType * >( designatorType ) ) {
701 return new EnumDecl( enumDecl->get_name(), noAttributes, tyDecl->get_linkage() );
702 } else {
703 return ret->clone();
704 } // if
705 }
706
707 TypeDecl *EliminateTypedef::mutate( TypeDecl * typeDecl ) {
708 TypedefMap::iterator i = typedefNames.find( typeDecl->get_name() );
709 if ( i != typedefNames.end() ) {
710 typedefNames.erase( i ) ;
711 } // if
712
713 typedeclNames[ typeDecl->get_name() ] = typeDecl;
714 return Mutator::mutate( typeDecl );
715 }
716
717 DeclarationWithType *EliminateTypedef::mutate( FunctionDecl * funcDecl ) {
718 typedefNames.beginScope();
719 DeclarationWithType *ret = Mutator::mutate( funcDecl );
720 typedefNames.endScope();
721 return ret;
722 }
723
724 DeclarationWithType *EliminateTypedef::mutate( ObjectDecl * objDecl ) {
725 typedefNames.beginScope();
726 DeclarationWithType *ret = Mutator::mutate( objDecl );
727 typedefNames.endScope();
728
729 if ( FunctionType *funtype = dynamic_cast<FunctionType *>( ret->get_type() ) ) { // function type?
730 // replace the current object declaration with a function declaration
731 FunctionDecl * newDecl = new FunctionDecl( ret->get_name(), ret->get_storageClasses(), ret->get_linkage(), funtype, 0, objDecl->get_attributes(), ret->get_funcSpec() );
732 objDecl->get_attributes().clear();
733 objDecl->set_type( nullptr );
734 delete objDecl;
735 return newDecl;
736 } // if
737 return ret;
738 }
739
740 Expression *EliminateTypedef::mutate( CastExpr * castExpr ) {
741 typedefNames.beginScope();
742 Expression *ret = Mutator::mutate( castExpr );
743 typedefNames.endScope();
744 return ret;
745 }
746
747 CompoundStmt *EliminateTypedef::mutate( CompoundStmt * compoundStmt ) {
748 typedefNames.beginScope();
749 scopeLevel += 1;
750 CompoundStmt *ret = Mutator::mutate( compoundStmt );
751 scopeLevel -= 1;
752 std::list< Statement * >::iterator i = compoundStmt->get_kids().begin();
753 while ( i != compoundStmt->get_kids().end() ) {
754 std::list< Statement * >::iterator next = i+1;
755 if ( DeclStmt *declStmt = dynamic_cast< DeclStmt * >( *i ) ) {
756 if ( dynamic_cast< TypedefDecl * >( declStmt->get_decl() ) ) {
757 delete *i;
758 compoundStmt->get_kids().erase( i );
759 } // if
760 } // if
761 i = next;
762 } // while
763 typedefNames.endScope();
764 return ret;
765 }
766
767 // there may be typedefs nested within aggregates. in order for everything to work properly, these should be removed
768 // as well
769 template<typename AggDecl>
770 AggDecl *EliminateTypedef::handleAggregate( AggDecl * aggDecl ) {
771 std::list<Declaration *>::iterator it = aggDecl->get_members().begin();
772 for ( ; it != aggDecl->get_members().end(); ) {
773 std::list< Declaration * >::iterator next = it+1;
774 if ( dynamic_cast< TypedefDecl * >( *it ) ) {
775 delete *it;
776 aggDecl->get_members().erase( it );
777 } // if
778 it = next;
779 }
780 return aggDecl;
781 }
782
783 template<typename AggDecl>
784 void EliminateTypedef::addImplicitTypedef( AggDecl * aggDecl ) {
785 if ( typedefNames.count( aggDecl->get_name() ) == 0 ) {
786 Type *type = nullptr;
787 if ( StructDecl * newDeclStructDecl = dynamic_cast< StructDecl * >( aggDecl ) ) {
788 type = new StructInstType( Type::Qualifiers(), newDeclStructDecl->get_name() );
789 } else if ( UnionDecl * newDeclUnionDecl = dynamic_cast< UnionDecl * >( aggDecl ) ) {
790 type = new UnionInstType( Type::Qualifiers(), newDeclUnionDecl->get_name() );
791 } else if ( EnumDecl * newDeclEnumDecl = dynamic_cast< EnumDecl * >( aggDecl ) ) {
792 type = new EnumInstType( Type::Qualifiers(), newDeclEnumDecl->get_name() );
793 } // if
794 TypedefDeclPtr tyDecl( new TypedefDecl( aggDecl->get_name(), Type::StorageClasses(), type, aggDecl->get_linkage() ) );
795 typedefNames[ aggDecl->get_name() ] = std::make_pair( std::move( tyDecl ), scopeLevel );
796 } // if
797 }
798
799 Declaration *EliminateTypedef::mutate( StructDecl * structDecl ) {
800 addImplicitTypedef( structDecl );
801 Mutator::mutate( structDecl );
802 return handleAggregate( structDecl );
803 }
804
805 Declaration *EliminateTypedef::mutate( UnionDecl * unionDecl ) {
806 addImplicitTypedef( unionDecl );
807 Mutator::mutate( unionDecl );
808 return handleAggregate( unionDecl );
809 }
810
811 Declaration *EliminateTypedef::mutate( EnumDecl * enumDecl ) {
812 addImplicitTypedef( enumDecl );
813 Mutator::mutate( enumDecl );
814 return handleAggregate( enumDecl );
815 }
816
817 Declaration *EliminateTypedef::mutate( TraitDecl * contextDecl ) {
818 Mutator::mutate( contextDecl );
819 return handleAggregate( contextDecl );
820 }
821
822 void VerifyCtorDtorAssign::verify( std::list< Declaration * > & translationUnit ) {
823 PassVisitor<VerifyCtorDtorAssign> verifier;
824 acceptAll( translationUnit, verifier );
825 }
826
827 void VerifyCtorDtorAssign::previsit( FunctionDecl * funcDecl ) {
828 FunctionType * funcType = funcDecl->get_functionType();
829 std::list< DeclarationWithType * > &returnVals = funcType->get_returnVals();
830 std::list< DeclarationWithType * > &params = funcType->get_parameters();
831
832 if ( CodeGen::isCtorDtorAssign( funcDecl->get_name() ) ) { // TODO: also check /=, etc.
833 if ( params.size() == 0 ) {
834 throw SemanticError( "Constructors, destructors, and assignment functions require at least one parameter ", funcDecl );
835 }
836 ReferenceType * refType = dynamic_cast< ReferenceType * >( params.front()->get_type() );
837 if ( ! refType ) {
838 throw SemanticError( "First parameter of a constructor, destructor, or assignment function must be a reference ", funcDecl );
839 }
840 if ( CodeGen::isCtorDtor( funcDecl->get_name() ) && returnVals.size() != 0 ) {
841 throw SemanticError( "Constructors and destructors cannot have explicit return values ", funcDecl );
842 }
843 }
844 }
845
846 template< typename Aggr >
847 void validateGeneric( Aggr * inst ) {
848 std::list< TypeDecl * > * params = inst->get_baseParameters();
849 if ( params ) {
850 std::list< Expression * > & args = inst->get_parameters();
851
852 // insert defaults arguments when a type argument is missing (currently only supports missing arguments at the end of the list).
853 // A substitution is used to ensure that defaults are replaced correctly, e.g.,
854 // forall(otype T, otype alloc = heap_allocator(T)) struct vector;
855 // vector(int) v;
856 // after insertion of default values becomes
857 // vector(int, heap_allocator(T))
858 // and the substitution is built with T=int so that after substitution, the result is
859 // vector(int, heap_allocator(int))
860 TypeSubstitution sub;
861 auto paramIter = params->begin();
862 for ( size_t i = 0; paramIter != params->end(); ++paramIter, ++i ) {
863 if ( i < args.size() ) {
864 TypeExpr * expr = safe_dynamic_cast< TypeExpr * >( *std::next( args.begin(), i ) );
865 sub.add( (*paramIter)->get_name(), expr->get_type()->clone() );
866 } else if ( i == args.size() ) {
867 Type * defaultType = (*paramIter)->get_init();
868 if ( defaultType ) {
869 args.push_back( new TypeExpr( defaultType->clone() ) );
870 sub.add( (*paramIter)->get_name(), defaultType->clone() );
871 }
872 }
873 }
874
875 sub.apply( inst );
876 if ( args.size() < params->size() ) throw SemanticError( "Too few type arguments in generic type ", inst );
877 if ( args.size() > params->size() ) throw SemanticError( "Too many type arguments in generic type ", inst );
878 }
879 }
880
881 void ValidateGenericParameters::previsit( StructInstType * inst ) {
882 validateGeneric( inst );
883 }
884
885 void ValidateGenericParameters::previsit( UnionInstType * inst ) {
886 validateGeneric( inst );
887 }
888
889 void CompoundLiteral::premutate( ObjectDecl *objectDecl ) {
890 storageClasses = objectDecl->get_storageClasses();
891 }
892
893 Expression *CompoundLiteral::postmutate( CompoundLiteralExpr *compLitExpr ) {
894 // transform [storage_class] ... (struct S){ 3, ... };
895 // into [storage_class] struct S temp = { 3, ... };
896 static UniqueName indexName( "_compLit" );
897
898 ObjectDecl *tempvar = new ObjectDecl( indexName.newName(), storageClasses, LinkageSpec::C, nullptr, compLitExpr->get_result(), compLitExpr->get_initializer() );
899 compLitExpr->set_result( nullptr );
900 compLitExpr->set_initializer( nullptr );
901 delete compLitExpr;
902 declsToAddBefore.push_back( tempvar ); // add modified temporary to current block
903 return new VariableExpr( tempvar );
904 }
905
906 void ReturnTypeFixer::fix( std::list< Declaration * > &translationUnit ) {
907 PassVisitor<ReturnTypeFixer> fixer;
908 acceptAll( translationUnit, fixer );
909 }
910
911 void ReturnTypeFixer::postvisit( FunctionDecl * functionDecl ) {
912 FunctionType * ftype = functionDecl->get_functionType();
913 std::list< DeclarationWithType * > & retVals = ftype->get_returnVals();
914 assertf( retVals.size() == 0 || retVals.size() == 1, "Function %s has too many return values: %zu", functionDecl->get_name().c_str(), retVals.size() );
915 if ( retVals.size() == 1 ) {
916 // 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).
917 // ensure other return values have a name.
918 DeclarationWithType * ret = retVals.front();
919 if ( ret->get_name() == "" ) {
920 ret->set_name( toString( "_retval_", CodeGen::genName( functionDecl ) ) );
921 }
922 ret->get_attributes().push_back( new Attribute( "unused" ) );
923 }
924 }
925
926 void ReturnTypeFixer::postvisit( FunctionType * ftype ) {
927 // xxx - need to handle named return values - this information needs to be saved somehow
928 // so that resolution has access to the names.
929 // Note that this pass needs to happen early so that other passes which look for tuple types
930 // find them in all of the right places, including function return types.
931 std::list< DeclarationWithType * > & retVals = ftype->get_returnVals();
932 if ( retVals.size() > 1 ) {
933 // generate a single return parameter which is the tuple of all of the return values
934 TupleType * tupleType = safe_dynamic_cast< TupleType * >( ResolvExpr::extractResultType( ftype ) );
935 // ensure return value is not destructed by explicitly creating an empty ListInit node wherein maybeConstruct is false.
936 ObjectDecl * newRet = new ObjectDecl( "", Type::StorageClasses(), LinkageSpec::Cforall, 0, tupleType, new ListInit( std::list<Initializer*>(), noDesignators, false ) );
937 deleteAll( retVals );
938 retVals.clear();
939 retVals.push_back( newRet );
940 }
941 }
942
943 void ArrayLength::computeLength( std::list< Declaration * > & translationUnit ) {
944 PassVisitor<ArrayLength> len;
945 acceptAll( translationUnit, len );
946 }
947
948 void ArrayLength::previsit( ObjectDecl * objDecl ) {
949 if ( ArrayType * at = dynamic_cast< ArrayType * >( objDecl->get_type() ) ) {
950 if ( at->get_dimension() ) return;
951 if ( ListInit * init = dynamic_cast< ListInit * >( objDecl->get_init() ) ) {
952 at->set_dimension( new ConstantExpr( Constant::from_ulong( init->get_initializers().size() ) ) );
953 }
954 }
955 }
956
957 void FindSpecialDeclarations::previsit( FunctionDecl * funcDecl ) {
958 if ( ! dereferenceOperator ) {
959 if ( funcDecl->get_name() == "*?" && funcDecl->get_linkage() == LinkageSpec::Intrinsic ) {
960 FunctionType * ftype = funcDecl->get_functionType();
961 if ( ftype->get_parameters().size() == 1 && ftype->get_parameters().front()->get_type()->get_qualifiers() == Type::Qualifiers() ) {
962 dereferenceOperator = funcDecl;
963 }
964 }
965 }
966 }
967} // namespace SymTab
968
969// Local Variables: //
970// tab-width: 4 //
971// mode: c++ //
972// compile-command: "make install" //
973// End: //
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