source: src/SymTab/Validate.cc@ 77acda06

ADT aaron-thesis arm-eh ast-experimental cleanup-dtors ctor deferred_resn demangler enum forall-pointer-decay gc_noraii jacob/cs343-translation jenkins-sandbox memory new-ast new-ast-unique-expr new-env no_list persistent-indexer pthread-emulation qualifiedEnum resolv-new stuck-waitfor-destruct with_gc
Last change on this file since 77acda06 was 083cf31, checked in by Rob Schluntz <rschlunt@…>, 10 years ago

merge with master

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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
[f066321]11// Last Modified By : Rob Schluntz
[083cf31]12// Last Modified On : Thu Jan 07 11:27:49 2016
13// Update Count : 269
[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//
25// - The type "void" never occurs in lists of function parameter or return types; neither do tuple types. A function
26// taking no arguments has no argument types, and tuples are flattened.
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
40#include <list>
41#include <iterator>
42#include "Validate.h"
43#include "SynTree/Visitor.h"
44#include "SynTree/Mutator.h"
45#include "SynTree/Type.h"
46#include "SynTree/Statement.h"
47#include "SynTree/TypeSubstitution.h"
[68cd1ce]48#include "Indexer.h"
[51b73452]49#include "FixFunction.h"
[cc79d97]50// #include "ImplementationType.h"
[51b73452]51#include "utility.h"
52#include "UniqueName.h"
53#include "AddVisit.h"
[f6d7e0f]54#include "MakeLibCfa.h"
[cc79d97]55#include "TypeEquality.h"
[1cbca6e]56#include "ResolvExpr/typeops.h"
[51b73452]57
[c8ffe20b]58#define debugPrint( x ) if ( doDebug ) { std::cout << x; }
[51b73452]59
60namespace SymTab {
[a08ba92]61 class HoistStruct : public Visitor {
62 public:
[82dd287]63 /// Flattens nested struct types
[0dd3a2f]64 static void hoistStruct( std::list< Declaration * > &translationUnit );
[9cb8e88d]65
[0dd3a2f]66 std::list< Declaration * > &get_declsToAdd() { return declsToAdd; }
[9cb8e88d]67
[0dd3a2f]68 virtual void visit( StructDecl *aggregateDecl );
69 virtual void visit( UnionDecl *aggregateDecl );
[c8ffe20b]70
[0dd3a2f]71 virtual void visit( CompoundStmt *compoundStmt );
72 virtual void visit( IfStmt *ifStmt );
73 virtual void visit( WhileStmt *whileStmt );
74 virtual void visit( ForStmt *forStmt );
75 virtual void visit( SwitchStmt *switchStmt );
76 virtual void visit( ChooseStmt *chooseStmt );
77 virtual void visit( CaseStmt *caseStmt );
78 virtual void visit( CatchStmt *catchStmt );
[a08ba92]79 private:
[0dd3a2f]80 HoistStruct();
[c8ffe20b]81
[0dd3a2f]82 template< typename AggDecl > void handleAggregate( AggDecl *aggregateDecl );
[c8ffe20b]83
[0dd3a2f]84 std::list< Declaration * > declsToAdd;
85 bool inStruct;
[a08ba92]86 };
[c8ffe20b]87
[de91427b]88 /// Replaces enum types by int, and function or array types in function parameter and return lists by appropriate pointers.
[a08ba92]89 class Pass1 : public Visitor {
[0dd3a2f]90 typedef Visitor Parent;
91 virtual void visit( EnumDecl *aggregateDecl );
92 virtual void visit( FunctionType *func );
[a08ba92]93 };
[82dd287]94
95 /// Associates forward declarations of aggregates with their definitions
[a08ba92]96 class Pass2 : public Indexer {
[0dd3a2f]97 typedef Indexer Parent;
[a08ba92]98 public:
[0dd3a2f]99 Pass2( bool doDebug, const Indexer *indexer );
[a08ba92]100 private:
[0dd3a2f]101 virtual void visit( StructInstType *structInst );
102 virtual void visit( UnionInstType *unionInst );
103 virtual void visit( ContextInstType *contextInst );
104 virtual void visit( StructDecl *structDecl );
105 virtual void visit( UnionDecl *unionDecl );
106 virtual void visit( TypeInstType *typeInst );
107
108 const Indexer *indexer;
[9cb8e88d]109
[0dd3a2f]110 typedef std::map< std::string, std::list< StructInstType * > > ForwardStructsType;
111 typedef std::map< std::string, std::list< UnionInstType * > > ForwardUnionsType;
112 ForwardStructsType forwardStructs;
113 ForwardUnionsType forwardUnions;
[a08ba92]114 };
[c8ffe20b]115
[82dd287]116 /// Replaces array and function types in forall lists by appropriate pointer type
[a08ba92]117 class Pass3 : public Indexer {
[0dd3a2f]118 typedef Indexer Parent;
[a08ba92]119 public:
[0dd3a2f]120 Pass3( const Indexer *indexer );
[a08ba92]121 private:
[0dd3a2f]122 virtual void visit( ObjectDecl *object );
123 virtual void visit( FunctionDecl *func );
[c8ffe20b]124
[0dd3a2f]125 const Indexer *indexer;
[a08ba92]126 };
[c8ffe20b]127
[f066321]128 class AutogenerateRoutines : public Visitor {
[a08ba92]129 public:
[82dd287]130 /// Generates assignment operators for aggregate types as required
[f066321]131 static void autogenerateRoutines( std::list< Declaration * > &translationUnit );
[c8ffe20b]132
[0dd3a2f]133 std::list< Declaration * > &get_declsToAdd() { return declsToAdd; }
[9cb8e88d]134
[28a8cf9]135 virtual void visit( EnumDecl *enumDecl );
[0dd3a2f]136 virtual void visit( StructDecl *structDecl );
137 virtual void visit( UnionDecl *structDecl );
138 virtual void visit( TypeDecl *typeDecl );
139 virtual void visit( ContextDecl *ctxDecl );
140 virtual void visit( FunctionDecl *functionDecl );
[c8ffe20b]141
[0dd3a2f]142 virtual void visit( FunctionType *ftype );
143 virtual void visit( PointerType *ftype );
[9cb8e88d]144
[0dd3a2f]145 virtual void visit( CompoundStmt *compoundStmt );
146 virtual void visit( IfStmt *ifStmt );
147 virtual void visit( WhileStmt *whileStmt );
148 virtual void visit( ForStmt *forStmt );
149 virtual void visit( SwitchStmt *switchStmt );
150 virtual void visit( ChooseStmt *chooseStmt );
151 virtual void visit( CaseStmt *caseStmt );
152 virtual void visit( CatchStmt *catchStmt );
[3c70d38]153
[f066321]154 AutogenerateRoutines() : functionNesting( 0 ) {}
[a08ba92]155 private:
[0dd3a2f]156 template< typename StmtClass > void visitStatement( StmtClass *stmt );
[9cb8e88d]157
[0dd3a2f]158 std::list< Declaration * > declsToAdd;
159 std::set< std::string > structsDone;
160 unsigned int functionNesting; // current level of nested functions
[a08ba92]161 };
[c8ffe20b]162
[de91427b]163 class ReturnChecker : public Visitor {
164 public:
165 /// Checks that return statements return nothing if their return type is void
166 /// and return something if the return type is non-void.
167 static void checkFunctionReturns( std::list< Declaration * > & translationUnit );
168
169 private:
170 virtual void visit( FunctionDecl * functionDecl );
171
172 virtual void visit( ReturnStmt * returnStmt );
173
174 std::list< DeclarationWithType * > returnVals;
175 };
176
[a08ba92]177 class EliminateTypedef : public Mutator {
178 public:
[de91427b]179 EliminateTypedef() : scopeLevel( 0 ) {}
180 /// Replaces typedefs by forward declarations
[0dd3a2f]181 static void eliminateTypedef( std::list< Declaration * > &translationUnit );
[a08ba92]182 private:
[0dd3a2f]183 virtual Declaration *mutate( TypedefDecl *typeDecl );
184 virtual TypeDecl *mutate( TypeDecl *typeDecl );
185 virtual DeclarationWithType *mutate( FunctionDecl *funcDecl );
[1db21619]186 virtual DeclarationWithType *mutate( ObjectDecl *objDecl );
[0dd3a2f]187 virtual CompoundStmt *mutate( CompoundStmt *compoundStmt );
188 virtual Type *mutate( TypeInstType *aggregateUseType );
189 virtual Expression *mutate( CastExpr *castExpr );
[cc79d97]190
[85c4ef0]191 virtual Declaration *mutate( StructDecl * structDecl );
192 virtual Declaration *mutate( UnionDecl * unionDecl );
193 virtual Declaration *mutate( EnumDecl * enumDecl );
194 virtual Declaration *mutate( ContextDecl * contextDecl );
195
196 template<typename AggDecl>
197 AggDecl *handleAggregate( AggDecl * aggDecl );
198
[cc79d97]199 typedef std::map< std::string, std::pair< TypedefDecl *, int > > TypedefMap;
200 TypedefMap typedefNames;
201 int scopeLevel;
[a08ba92]202 };
[c8ffe20b]203
[9cb8e88d]204 class VerifyCtorDtor : public Visitor {
205 public:
206 /// ensure that constructors and destructors have at least one
207 /// parameter, the first of which must be a pointer, and no
208 /// return values.
209 static void verify( std::list< Declaration * > &translationUnit );
210
211 // VerifyCtorDtor() {}
212
213 virtual void visit( FunctionDecl *funcDecl );
214 private:
215 };
216
[a08ba92]217 void validate( std::list< Declaration * > &translationUnit, bool doDebug ) {
[0dd3a2f]218 Pass1 pass1;
219 Pass2 pass2( doDebug, 0 );
220 Pass3 pass3( 0 );
221 EliminateTypedef::eliminateTypedef( translationUnit );
222 HoistStruct::hoistStruct( translationUnit );
223 acceptAll( translationUnit, pass1 );
224 acceptAll( translationUnit, pass2 );
[de91427b]225 ReturnChecker::checkFunctionReturns( translationUnit );
[f066321]226 AutogenerateRoutines::autogenerateRoutines( translationUnit );
[0dd3a2f]227 acceptAll( translationUnit, pass3 );
[9cb8e88d]228 VerifyCtorDtor::verify( translationUnit );
[a08ba92]229 }
[9cb8e88d]230
[a08ba92]231 void validateType( Type *type, const Indexer *indexer ) {
[0dd3a2f]232 Pass1 pass1;
233 Pass2 pass2( false, indexer );
234 Pass3 pass3( indexer );
235 type->accept( pass1 );
236 type->accept( pass2 );
237 type->accept( pass3 );
[a08ba92]238 }
[c8ffe20b]239
[a08ba92]240 template< typename Visitor >
241 void acceptAndAdd( std::list< Declaration * > &translationUnit, Visitor &visitor, bool addBefore ) {
[0dd3a2f]242 std::list< Declaration * >::iterator i = translationUnit.begin();
243 while ( i != translationUnit.end() ) {
244 (*i)->accept( visitor );
245 std::list< Declaration * >::iterator next = i;
246 next++;
247 if ( ! visitor.get_declsToAdd().empty() ) {
248 translationUnit.splice( addBefore ? i : next, visitor.get_declsToAdd() );
249 } // if
250 i = next;
251 } // while
[a08ba92]252 }
[c8ffe20b]253
[a08ba92]254 void HoistStruct::hoistStruct( std::list< Declaration * > &translationUnit ) {
[0dd3a2f]255 HoistStruct hoister;
256 acceptAndAdd( translationUnit, hoister, true );
[a08ba92]257 }
[c8ffe20b]258
[a08ba92]259 HoistStruct::HoistStruct() : inStruct( false ) {
260 }
[c8ffe20b]261
[a08ba92]262 void filter( std::list< Declaration * > &declList, bool (*pred)( Declaration * ), bool doDelete ) {
[0dd3a2f]263 std::list< Declaration * >::iterator i = declList.begin();
264 while ( i != declList.end() ) {
265 std::list< Declaration * >::iterator next = i;
266 ++next;
267 if ( pred( *i ) ) {
268 if ( doDelete ) {
269 delete *i;
270 } // if
271 declList.erase( i );
272 } // if
273 i = next;
274 } // while
[a08ba92]275 }
[c8ffe20b]276
[a08ba92]277 bool isStructOrUnion( Declaration *decl ) {
[0dd3a2f]278 return dynamic_cast< StructDecl * >( decl ) || dynamic_cast< UnionDecl * >( decl );
[a08ba92]279 }
[51b73452]280
[a08ba92]281 template< typename AggDecl >
282 void HoistStruct::handleAggregate( AggDecl *aggregateDecl ) {
[0dd3a2f]283 if ( inStruct ) {
284 // Add elements in stack order corresponding to nesting structure.
285 declsToAdd.push_front( aggregateDecl );
286 Visitor::visit( aggregateDecl );
287 } else {
288 inStruct = true;
289 Visitor::visit( aggregateDecl );
290 inStruct = false;
291 } // if
292 // Always remove the hoisted aggregate from the inner structure.
293 filter( aggregateDecl->get_members(), isStructOrUnion, false );
[a08ba92]294 }
[c8ffe20b]295
[a08ba92]296 void HoistStruct::visit( StructDecl *aggregateDecl ) {
[0dd3a2f]297 handleAggregate( aggregateDecl );
[a08ba92]298 }
[c8ffe20b]299
[a08ba92]300 void HoistStruct::visit( UnionDecl *aggregateDecl ) {
[0dd3a2f]301 handleAggregate( aggregateDecl );
[a08ba92]302 }
[c8ffe20b]303
[a08ba92]304 void HoistStruct::visit( CompoundStmt *compoundStmt ) {
[0dd3a2f]305 addVisit( compoundStmt, *this );
[a08ba92]306 }
[c8ffe20b]307
[a08ba92]308 void HoistStruct::visit( IfStmt *ifStmt ) {
[0dd3a2f]309 addVisit( ifStmt, *this );
[a08ba92]310 }
[c8ffe20b]311
[a08ba92]312 void HoistStruct::visit( WhileStmt *whileStmt ) {
[0dd3a2f]313 addVisit( whileStmt, *this );
[a08ba92]314 }
[c8ffe20b]315
[a08ba92]316 void HoistStruct::visit( ForStmt *forStmt ) {
[0dd3a2f]317 addVisit( forStmt, *this );
[a08ba92]318 }
[c8ffe20b]319
[a08ba92]320 void HoistStruct::visit( SwitchStmt *switchStmt ) {
[0dd3a2f]321 addVisit( switchStmt, *this );
[a08ba92]322 }
[c8ffe20b]323
[a08ba92]324 void HoistStruct::visit( ChooseStmt *switchStmt ) {
[0dd3a2f]325 addVisit( switchStmt, *this );
[a08ba92]326 }
[c8ffe20b]327
[a08ba92]328 void HoistStruct::visit( CaseStmt *caseStmt ) {
[0dd3a2f]329 addVisit( caseStmt, *this );
[a08ba92]330 }
[c8ffe20b]331
[a08ba92]332 void HoistStruct::visit( CatchStmt *cathStmt ) {
[0dd3a2f]333 addVisit( cathStmt, *this );
[a08ba92]334 }
[c8ffe20b]335
[a08ba92]336 void Pass1::visit( EnumDecl *enumDecl ) {
[0dd3a2f]337 // Set the type of each member of the enumeration to be EnumConstant
[9cb8e88d]338
[0dd3a2f]339 for ( std::list< Declaration * >::iterator i = enumDecl->get_members().begin(); i != enumDecl->get_members().end(); ++i ) {
[f6d7e0f]340 ObjectDecl * obj = dynamic_cast< ObjectDecl * >( *i );
[0dd3a2f]341 assert( obj );
[f6d7e0f]342 // obj->set_type( new EnumInstType( Type::Qualifiers( true, false, false, false, false, false ), enumDecl->get_name() ) );
343 BasicType * enumType = new BasicType( Type::Qualifiers(), BasicType::SignedInt );
344 obj->set_type( enumType ) ;
[0dd3a2f]345 } // for
346 Parent::visit( enumDecl );
[a08ba92]347 }
[51b73452]348
[a08ba92]349 namespace {
[0dd3a2f]350 template< typename DWTIterator >
351 void fixFunctionList( DWTIterator begin, DWTIterator end, FunctionType *func ) {
352 // the only case in which "void" is valid is where it is the only one in the list; then it should be removed
353 // entirely other fix ups are handled by the FixFunction class
354 if ( begin == end ) return;
355 FixFunction fixer;
356 DWTIterator i = begin;
357 *i = (*i )->acceptMutator( fixer );
358 if ( fixer.get_isVoid() ) {
359 DWTIterator j = i;
360 ++i;
361 func->get_parameters().erase( j );
[9cb8e88d]362 if ( i != end ) {
[0dd3a2f]363 throw SemanticError( "invalid type void in function type ", func );
364 } // if
365 } else {
366 ++i;
367 for ( ; i != end; ++i ) {
368 FixFunction fixer;
369 *i = (*i )->acceptMutator( fixer );
370 if ( fixer.get_isVoid() ) {
371 throw SemanticError( "invalid type void in function type ", func );
372 } // if
373 } // for
374 } // if
375 }
[a08ba92]376 }
[c8ffe20b]377
[a08ba92]378 void Pass1::visit( FunctionType *func ) {
[0dd3a2f]379 // Fix up parameters and return types
380 fixFunctionList( func->get_parameters().begin(), func->get_parameters().end(), func );
381 fixFunctionList( func->get_returnVals().begin(), func->get_returnVals().end(), func );
382 Visitor::visit( func );
[a08ba92]383 }
[c8ffe20b]384
[a08ba92]385 Pass2::Pass2( bool doDebug, const Indexer *other_indexer ) : Indexer( doDebug ) {
[0dd3a2f]386 if ( other_indexer ) {
387 indexer = other_indexer;
388 } else {
389 indexer = this;
390 } // if
[a08ba92]391 }
[c8ffe20b]392
[a08ba92]393 void Pass2::visit( StructInstType *structInst ) {
[0dd3a2f]394 Parent::visit( structInst );
395 StructDecl *st = indexer->lookupStruct( structInst->get_name() );
396 // it's not a semantic error if the struct is not found, just an implicit forward declaration
397 if ( st ) {
398 assert( ! structInst->get_baseStruct() || structInst->get_baseStruct()->get_members().empty() || ! st->get_members().empty() );
399 structInst->set_baseStruct( st );
400 } // if
401 if ( ! st || st->get_members().empty() ) {
402 // use of forward declaration
403 forwardStructs[ structInst->get_name() ].push_back( structInst );
404 } // if
[a08ba92]405 }
[c8ffe20b]406
[a08ba92]407 void Pass2::visit( UnionInstType *unionInst ) {
[0dd3a2f]408 Parent::visit( unionInst );
409 UnionDecl *un = indexer->lookupUnion( unionInst->get_name() );
410 // it's not a semantic error if the union is not found, just an implicit forward declaration
411 if ( un ) {
412 unionInst->set_baseUnion( un );
413 } // if
414 if ( ! un || un->get_members().empty() ) {
415 // use of forward declaration
416 forwardUnions[ unionInst->get_name() ].push_back( unionInst );
417 } // if
[a08ba92]418 }
[c8ffe20b]419
[a08ba92]420 void Pass2::visit( ContextInstType *contextInst ) {
[0dd3a2f]421 Parent::visit( contextInst );
422 ContextDecl *ctx = indexer->lookupContext( contextInst->get_name() );
423 if ( ! ctx ) {
424 throw SemanticError( "use of undeclared context " + contextInst->get_name() );
[17cd4eb]425 } // if
[0dd3a2f]426 for ( std::list< TypeDecl * >::const_iterator i = ctx->get_parameters().begin(); i != ctx->get_parameters().end(); ++i ) {
427 for ( std::list< DeclarationWithType * >::const_iterator assert = (*i )->get_assertions().begin(); assert != (*i )->get_assertions().end(); ++assert ) {
428 if ( ContextInstType *otherCtx = dynamic_cast< ContextInstType * >(*assert ) ) {
429 cloneAll( otherCtx->get_members(), contextInst->get_members() );
430 } else {
431 contextInst->get_members().push_back( (*assert )->clone() );
432 } // if
433 } // for
434 } // for
[51b986f]435
436 if ( ctx->get_parameters().size() != contextInst->get_parameters().size() ) {
437 throw SemanticError( "incorrect number of context parameters: ", contextInst );
438 } // if
439
[0dd3a2f]440 applySubstitution( ctx->get_parameters().begin(), ctx->get_parameters().end(), contextInst->get_parameters().begin(), ctx->get_members().begin(), ctx->get_members().end(), back_inserter( contextInst->get_members() ) );
[a08ba92]441 }
[c8ffe20b]442
[a08ba92]443 void Pass2::visit( StructDecl *structDecl ) {
[0dd3a2f]444 if ( ! structDecl->get_members().empty() ) {
445 ForwardStructsType::iterator fwds = forwardStructs.find( structDecl->get_name() );
446 if ( fwds != forwardStructs.end() ) {
447 for ( std::list< StructInstType * >::iterator inst = fwds->second.begin(); inst != fwds->second.end(); ++inst ) {
448 (*inst )->set_baseStruct( structDecl );
449 } // for
450 forwardStructs.erase( fwds );
451 } // if
452 } // if
453 Indexer::visit( structDecl );
[a08ba92]454 }
[c8ffe20b]455
[a08ba92]456 void Pass2::visit( UnionDecl *unionDecl ) {
[0dd3a2f]457 if ( ! unionDecl->get_members().empty() ) {
458 ForwardUnionsType::iterator fwds = forwardUnions.find( unionDecl->get_name() );
459 if ( fwds != forwardUnions.end() ) {
460 for ( std::list< UnionInstType * >::iterator inst = fwds->second.begin(); inst != fwds->second.end(); ++inst ) {
461 (*inst )->set_baseUnion( unionDecl );
462 } // for
463 forwardUnions.erase( fwds );
464 } // if
465 } // if
466 Indexer::visit( unionDecl );
[a08ba92]467 }
[c8ffe20b]468
[a08ba92]469 void Pass2::visit( TypeInstType *typeInst ) {
[0dd3a2f]470 if ( NamedTypeDecl *namedTypeDecl = lookupType( typeInst->get_name() ) ) {
471 if ( TypeDecl *typeDecl = dynamic_cast< TypeDecl * >( namedTypeDecl ) ) {
472 typeInst->set_isFtype( typeDecl->get_kind() == TypeDecl::Ftype );
473 } // if
474 } // if
[a08ba92]475 }
[c8ffe20b]476
[a08ba92]477 Pass3::Pass3( const Indexer *other_indexer ) : Indexer( false ) {
[0dd3a2f]478 if ( other_indexer ) {
479 indexer = other_indexer;
480 } else {
481 indexer = this;
482 } // if
[a08ba92]483 }
[c8ffe20b]484
[82dd287]485 /// Fix up assertions
[a08ba92]486 void forallFixer( Type *func ) {
[0dd3a2f]487 for ( std::list< TypeDecl * >::iterator type = func->get_forall().begin(); type != func->get_forall().end(); ++type ) {
488 std::list< DeclarationWithType * > toBeDone, nextRound;
489 toBeDone.splice( toBeDone.end(), (*type )->get_assertions() );
490 while ( ! toBeDone.empty() ) {
491 for ( std::list< DeclarationWithType * >::iterator assertion = toBeDone.begin(); assertion != toBeDone.end(); ++assertion ) {
492 if ( ContextInstType *ctx = dynamic_cast< ContextInstType * >( (*assertion )->get_type() ) ) {
493 for ( std::list< Declaration * >::const_iterator i = ctx->get_members().begin(); i != ctx->get_members().end(); ++i ) {
494 DeclarationWithType *dwt = dynamic_cast< DeclarationWithType * >( *i );
495 assert( dwt );
496 nextRound.push_back( dwt->clone() );
497 }
498 delete ctx;
499 } else {
500 FixFunction fixer;
501 *assertion = (*assertion )->acceptMutator( fixer );
502 if ( fixer.get_isVoid() ) {
503 throw SemanticError( "invalid type void in assertion of function ", func );
504 }
505 (*type )->get_assertions().push_back( *assertion );
506 } // if
507 } // for
508 toBeDone.clear();
509 toBeDone.splice( toBeDone.end(), nextRound );
510 } // while
511 } // for
[a08ba92]512 }
[c8ffe20b]513
[a08ba92]514 void Pass3::visit( ObjectDecl *object ) {
[0dd3a2f]515 forallFixer( object->get_type() );
516 if ( PointerType *pointer = dynamic_cast< PointerType * >( object->get_type() ) ) {
517 forallFixer( pointer->get_base() );
518 } // if
519 Parent::visit( object );
520 object->fixUniqueId();
[a08ba92]521 }
[c8ffe20b]522
[a08ba92]523 void Pass3::visit( FunctionDecl *func ) {
[0dd3a2f]524 forallFixer( func->get_type() );
525 Parent::visit( func );
526 func->fixUniqueId();
[a08ba92]527 }
[c8ffe20b]528
[a08ba92]529 static const std::list< std::string > noLabels;
[c8ffe20b]530
[f066321]531 void AutogenerateRoutines::autogenerateRoutines( std::list< Declaration * > &translationUnit ) {
532 AutogenerateRoutines visitor;
[0dd3a2f]533 acceptAndAdd( translationUnit, visitor, false );
[a08ba92]534 }
[c8ffe20b]535
[a08ba92]536 template< typename OutputIterator >
537 void makeScalarAssignment( ObjectDecl *srcParam, ObjectDecl *dstParam, DeclarationWithType *member, OutputIterator out ) {
[0dd3a2f]538 ObjectDecl *obj = dynamic_cast<ObjectDecl *>( member );
539 // unnamed bit fields are not copied as they cannot be accessed
540 if ( obj != NULL && obj->get_name() == "" && obj->get_bitfieldWidth() != NULL ) return;
[c8ffe20b]541
[0dd3a2f]542 UntypedExpr *assignExpr = new UntypedExpr( new NameExpr( "?=?" ) );
[9cb8e88d]543
[0dd3a2f]544 UntypedExpr *derefExpr = new UntypedExpr( new NameExpr( "*?" ) );
545 derefExpr->get_args().push_back( new VariableExpr( dstParam ) );
[9cb8e88d]546
[0dd3a2f]547 // do something special for unnamed members
548 Expression *dstselect = new AddressExpr( new MemberExpr( member, derefExpr ) );
549 assignExpr->get_args().push_back( dstselect );
[9cb8e88d]550
[0dd3a2f]551 Expression *srcselect = new MemberExpr( member, new VariableExpr( srcParam ) );
552 assignExpr->get_args().push_back( srcselect );
[9cb8e88d]553
[0dd3a2f]554 *out++ = new ExprStmt( noLabels, assignExpr );
[a08ba92]555 }
[c8ffe20b]556
[a08ba92]557 template< typename OutputIterator >
558 void makeArrayAssignment( ObjectDecl *srcParam, ObjectDecl *dstParam, DeclarationWithType *member, ArrayType *array, OutputIterator out ) {
[0dd3a2f]559 static UniqueName indexName( "_index" );
[9cb8e88d]560
[0dd3a2f]561 // for a flexible array member nothing is done -- user must define own assignment
562 if ( ! array->get_dimension() ) return;
[9cb8e88d]563
[68cd1ce]564 ObjectDecl *index = new ObjectDecl( indexName.newName(), DeclarationNode::NoStorageClass, LinkageSpec::C, 0, new BasicType( Type::Qualifiers(), BasicType::SignedInt ), 0 );
[0dd3a2f]565 *out++ = new DeclStmt( noLabels, index );
[9cb8e88d]566
[0dd3a2f]567 UntypedExpr *init = new UntypedExpr( new NameExpr( "?=?" ) );
568 init->get_args().push_back( new AddressExpr( new VariableExpr( index ) ) );
569 init->get_args().push_back( new NameExpr( "0" ) );
570 Statement *initStmt = new ExprStmt( noLabels, init );
[145f1fc]571 std::list<Statement *> initList;
572 initList.push_back( initStmt );
[9cb8e88d]573
[0dd3a2f]574 UntypedExpr *cond = new UntypedExpr( new NameExpr( "?<?" ) );
575 cond->get_args().push_back( new VariableExpr( index ) );
576 cond->get_args().push_back( array->get_dimension()->clone() );
[9cb8e88d]577
[0dd3a2f]578 UntypedExpr *inc = new UntypedExpr( new NameExpr( "++?" ) );
579 inc->get_args().push_back( new AddressExpr( new VariableExpr( index ) ) );
[9cb8e88d]580
[0dd3a2f]581 UntypedExpr *assignExpr = new UntypedExpr( new NameExpr( "?=?" ) );
[9cb8e88d]582
[0dd3a2f]583 UntypedExpr *derefExpr = new UntypedExpr( new NameExpr( "*?" ) );
584 derefExpr->get_args().push_back( new VariableExpr( dstParam ) );
[9cb8e88d]585
[0dd3a2f]586 Expression *dstselect = new MemberExpr( member, derefExpr );
587 UntypedExpr *dstIndex = new UntypedExpr( new NameExpr( "?+?" ) );
588 dstIndex->get_args().push_back( dstselect );
589 dstIndex->get_args().push_back( new VariableExpr( index ) );
590 assignExpr->get_args().push_back( dstIndex );
[9cb8e88d]591
[0dd3a2f]592 Expression *srcselect = new MemberExpr( member, new VariableExpr( srcParam ) );
593 UntypedExpr *srcIndex = new UntypedExpr( new NameExpr( "?[?]" ) );
594 srcIndex->get_args().push_back( srcselect );
595 srcIndex->get_args().push_back( new VariableExpr( index ) );
596 assignExpr->get_args().push_back( srcIndex );
[9cb8e88d]597
[145f1fc]598 *out++ = new ForStmt( noLabels, initList, cond, inc, new ExprStmt( noLabels, assignExpr ) );
[a08ba92]599 }
[c8ffe20b]600
[9cb8e88d]601 //E ?=?(E volatile*, int),
[f6d7e0f]602 // ?=?(E _Atomic volatile*, int);
603 void makeEnumAssignment( EnumDecl *enumDecl, EnumInstType *refType, unsigned int functionNesting, std::list< Declaration * > &declsToAdd ) {
604 FunctionType *assignType = new FunctionType( Type::Qualifiers(), false );
[9cb8e88d]605
[f6d7e0f]606 ObjectDecl *returnVal = new ObjectDecl( "", DeclarationNode::NoStorageClass, LinkageSpec::Cforall, 0, refType->clone(), 0 );
607 assignType->get_returnVals().push_back( returnVal );
608
609 // need two assignment operators with different types
610 FunctionType * assignType2 = assignType->clone();
611
612 // E ?=?(E volatile *, E)
613 Type *etype = refType->clone();
[8686f31]614 // etype->get_qualifiers() += Type::Qualifiers(false, true, false, false, false, false);
[f6d7e0f]615
616 ObjectDecl *dstParam = new ObjectDecl( "_dst", DeclarationNode::NoStorageClass, LinkageSpec::Cforall, 0, new PointerType( Type::Qualifiers(), etype ), 0 );
617 assignType->get_parameters().push_back( dstParam );
618
619 ObjectDecl *srcParam = new ObjectDecl( "_src", DeclarationNode::NoStorageClass, LinkageSpec::Cforall, 0, etype->clone(), 0 );
620 assignType->get_parameters().push_back( srcParam );
621
622 // E ?=?(E volatile *, int)
623 assignType2->get_parameters().push_back( dstParam->clone() );
[9cb8e88d]624 BasicType * paramType = new BasicType(Type::Qualifiers(), BasicType::SignedInt);
[f6d7e0f]625 ObjectDecl *srcParam2 = new ObjectDecl( "_src", DeclarationNode::NoStorageClass, LinkageSpec::Cforall, 0, paramType, 0 );
626 assignType2->get_parameters().push_back( srcParam2 );
627
628 // Routines at global scope marked "static" to prevent multiple definitions is separate translation units
629 // because each unit generates copies of the default routines for each aggregate.
630
631 // since there is no definition, these should not be inline
632 // make these intrinsic so that the code generator does not make use of them
633 FunctionDecl *assignDecl = new FunctionDecl( "?=?", functionNesting > 0 ? DeclarationNode::NoStorageClass : DeclarationNode::Static, LinkageSpec::Intrinsic, assignType, 0, false, false );
634 assignDecl->fixUniqueId();
635 FunctionDecl *assignDecl2 = new FunctionDecl( "?=?", functionNesting > 0 ? DeclarationNode::NoStorageClass : DeclarationNode::Static, LinkageSpec::Intrinsic, assignType2, 0, false, false );
636 assignDecl2->fixUniqueId();
637
[cc79d97]638 // these should be built in the same way that the prelude
639 // functions are, so build a list containing the prototypes
640 // and allow MakeLibCfa to autogenerate the bodies.
[f6d7e0f]641 std::list< Declaration * > assigns;
642 assigns.push_back( assignDecl );
643 assigns.push_back( assignDecl2 );
644
645 LibCfa::makeLibCfa( assigns );
646
[cc79d97]647 // need to remove the prototypes, since this may be nested in a routine
[8686f31]648 for (int start = 0, end = assigns.size()/2; start < end; start++) {
649 delete assigns.front();
650 assigns.pop_front();
[1db21619]651 } // for
[8686f31]652
[f6d7e0f]653 declsToAdd.insert( declsToAdd.begin(), assigns.begin(), assigns.end() );
654 }
655
[32d281d]656 /// Clones a reference type, replacing any parameters it may have with a clone of the provided list
657 template< typename GenericInstType >
658 GenericInstType *cloneWithParams( GenericInstType *refType, const std::list< Expression* >& params ) {
659 GenericInstType *clone = refType->clone();
660 clone->get_parameters().clear();
661 cloneAll( params, clone->get_parameters() );
662 return clone;
663 }
[f6d7e0f]664
[a08ba92]665 Declaration *makeStructAssignment( StructDecl *aggregateDecl, StructInstType *refType, unsigned int functionNesting ) {
[0dd3a2f]666 FunctionType *assignType = new FunctionType( Type::Qualifiers(), false );
[37a3b8f9]667
668 // Make function polymorphic in same parameters as generic struct, if applicable
669 std::list< TypeDecl* >& genericParams = aggregateDecl->get_parameters();
[32d281d]670 std::list< Expression* > structParams; // List of matching parameters to put on types
[37a3b8f9]671 for ( std::list< TypeDecl* >::const_iterator param = genericParams.begin(); param != genericParams.end(); ++param ) {
[32d281d]672 TypeDecl *typeParam = (*param)->clone();
673 assignType->get_forall().push_back( typeParam );
674 structParams.push_back( new TypeExpr( new TypeInstType( Type::Qualifiers(), typeParam->get_name(), typeParam ) ) );
[37a3b8f9]675 }
[9cb8e88d]676
[32d281d]677 ObjectDecl *returnVal = new ObjectDecl( "", DeclarationNode::NoStorageClass, LinkageSpec::Cforall, 0, cloneWithParams( refType, structParams ), 0 );
[0dd3a2f]678 assignType->get_returnVals().push_back( returnVal );
[9cb8e88d]679
[32d281d]680 ObjectDecl *dstParam = new ObjectDecl( "_dst", DeclarationNode::NoStorageClass, LinkageSpec::Cforall, 0, new PointerType( Type::Qualifiers(), cloneWithParams( refType, structParams ) ), 0 );
[0dd3a2f]681 assignType->get_parameters().push_back( dstParam );
[9cb8e88d]682
[32d281d]683 ObjectDecl *srcParam = new ObjectDecl( "_src", DeclarationNode::NoStorageClass, LinkageSpec::Cforall, 0, cloneWithParams( refType, structParams ), 0 );
[0dd3a2f]684 assignType->get_parameters().push_back( srcParam );
685
686 // Routines at global scope marked "static" to prevent multiple definitions is separate translation units
687 // because each unit generates copies of the default routines for each aggregate.
[de62360d]688 FunctionDecl *assignDecl = new FunctionDecl( "?=?", functionNesting > 0 ? DeclarationNode::NoStorageClass : DeclarationNode::Static, LinkageSpec::AutoGen, assignType, new CompoundStmt( noLabels ), true, false );
[0dd3a2f]689 assignDecl->fixUniqueId();
[9cb8e88d]690
[0dd3a2f]691 for ( std::list< Declaration * >::const_iterator member = aggregateDecl->get_members().begin(); member != aggregateDecl->get_members().end(); ++member ) {
692 if ( DeclarationWithType *dwt = dynamic_cast< DeclarationWithType * >( *member ) ) {
[9cb8e88d]693 // query the type qualifiers of this field and skip assigning it if it is marked const.
[367e082]694 // If it is an array type, we need to strip off the array layers to find its qualifiers.
695 Type * type = dwt->get_type();
696 while ( ArrayType * at = dynamic_cast< ArrayType * >( type ) ) {
697 type = at->get_base();
698 }
699
700 if ( type->get_qualifiers().isConst ) {
[53a2e97]701 // don't assign const members
702 continue;
703 }
704
[0dd3a2f]705 if ( ArrayType *array = dynamic_cast< ArrayType * >( dwt->get_type() ) ) {
706 makeArrayAssignment( srcParam, dstParam, dwt, array, back_inserter( assignDecl->get_statements()->get_kids() ) );
707 } else {
708 makeScalarAssignment( srcParam, dstParam, dwt, back_inserter( assignDecl->get_statements()->get_kids() ) );
709 } // if
710 } // if
711 } // for
712 assignDecl->get_statements()->get_kids().push_back( new ReturnStmt( noLabels, new VariableExpr( srcParam ) ) );
[9cb8e88d]713
[0dd3a2f]714 return assignDecl;
[a08ba92]715 }
[c8ffe20b]716
[a08ba92]717 Declaration *makeUnionAssignment( UnionDecl *aggregateDecl, UnionInstType *refType, unsigned int functionNesting ) {
[0dd3a2f]718 FunctionType *assignType = new FunctionType( Type::Qualifiers(), false );
[32d281d]719
720 // Make function polymorphic in same parameters as generic union, if applicable
721 std::list< TypeDecl* >& genericParams = aggregateDecl->get_parameters();
722 std::list< Expression* > unionParams; // List of matching parameters to put on types
723 for ( std::list< TypeDecl* >::const_iterator param = genericParams.begin(); param != genericParams.end(); ++param ) {
724 TypeDecl *typeParam = (*param)->clone();
725 assignType->get_forall().push_back( typeParam );
726 unionParams.push_back( new TypeExpr( new TypeInstType( Type::Qualifiers(), typeParam->get_name(), typeParam ) ) );
727 }
[9cb8e88d]728
[32d281d]729 ObjectDecl *returnVal = new ObjectDecl( "", DeclarationNode::NoStorageClass, LinkageSpec::Cforall, 0, cloneWithParams( refType, unionParams ), 0 );
[0dd3a2f]730 assignType->get_returnVals().push_back( returnVal );
[9cb8e88d]731
[32d281d]732 ObjectDecl *dstParam = new ObjectDecl( "_dst", DeclarationNode::NoStorageClass, LinkageSpec::Cforall, 0, new PointerType( Type::Qualifiers(), cloneWithParams( refType, unionParams ) ), 0 );
[0dd3a2f]733 assignType->get_parameters().push_back( dstParam );
[9cb8e88d]734
[32d281d]735 ObjectDecl *srcParam = new ObjectDecl( "_src", DeclarationNode::NoStorageClass, LinkageSpec::Cforall, 0, cloneWithParams( refType, unionParams ), 0 );
[0dd3a2f]736 assignType->get_parameters().push_back( srcParam );
[9cb8e88d]737
[0dd3a2f]738 // Routines at global scope marked "static" to prevent multiple definitions is separate translation units
739 // because each unit generates copies of the default routines for each aggregate.
[de62360d]740 FunctionDecl *assignDecl = new FunctionDecl( "?=?", functionNesting > 0 ? DeclarationNode::NoStorageClass : DeclarationNode::Static, LinkageSpec::AutoGen, assignType, new CompoundStmt( noLabels ), true, false );
[0dd3a2f]741 assignDecl->fixUniqueId();
[9cb8e88d]742
[0dd3a2f]743 UntypedExpr *copy = new UntypedExpr( new NameExpr( "__builtin_memcpy" ) );
744 copy->get_args().push_back( new VariableExpr( dstParam ) );
745 copy->get_args().push_back( new AddressExpr( new VariableExpr( srcParam ) ) );
[32d281d]746 copy->get_args().push_back( new SizeofExpr( cloneWithParams( refType, unionParams ) ) );
[c8ffe20b]747
[0dd3a2f]748 assignDecl->get_statements()->get_kids().push_back( new ExprStmt( noLabels, copy ) );
749 assignDecl->get_statements()->get_kids().push_back( new ReturnStmt( noLabels, new VariableExpr( srcParam ) ) );
[9cb8e88d]750
[0dd3a2f]751 return assignDecl;
[a08ba92]752 }
[c8ffe20b]753
[f066321]754 void AutogenerateRoutines::visit( EnumDecl *enumDecl ) {
[f6d7e0f]755 if ( ! enumDecl->get_members().empty() ) {
756 EnumInstType *enumInst = new EnumInstType( Type::Qualifiers(), enumDecl->get_name() );
757 // enumInst->set_baseEnum( enumDecl );
[9cb8e88d]758 // declsToAdd.push_back(
[f6d7e0f]759 makeEnumAssignment( enumDecl, enumInst, functionNesting, declsToAdd );
760 }
761 }
762
[f066321]763 void AutogenerateRoutines::visit( StructDecl *structDecl ) {
[0dd3a2f]764 if ( ! structDecl->get_members().empty() && structsDone.find( structDecl->get_name() ) == structsDone.end() ) {
[32d281d]765 StructInstType structInst( Type::Qualifiers(), structDecl->get_name() );
766 structInst.set_baseStruct( structDecl );
767 declsToAdd.push_back( makeStructAssignment( structDecl, &structInst, functionNesting ) );
[0dd3a2f]768 structsDone.insert( structDecl->get_name() );
769 } // if
[a08ba92]770 }
[c8ffe20b]771
[f066321]772 void AutogenerateRoutines::visit( UnionDecl *unionDecl ) {
[0dd3a2f]773 if ( ! unionDecl->get_members().empty() ) {
[32d281d]774 UnionInstType unionInst( Type::Qualifiers(), unionDecl->get_name() );
775 unionInst.set_baseUnion( unionDecl );
776 declsToAdd.push_back( makeUnionAssignment( unionDecl, &unionInst, functionNesting ) );
[0dd3a2f]777 } // if
[a08ba92]778 }
[c8ffe20b]779
[f066321]780 void AutogenerateRoutines::visit( TypeDecl *typeDecl ) {
[0dd3a2f]781 CompoundStmt *stmts = 0;
782 TypeInstType *typeInst = new TypeInstType( Type::Qualifiers(), typeDecl->get_name(), false );
783 typeInst->set_baseType( typeDecl );
[68cd1ce]784 ObjectDecl *src = new ObjectDecl( "_src", DeclarationNode::NoStorageClass, LinkageSpec::Cforall, 0, typeInst->clone(), 0 );
785 ObjectDecl *dst = new ObjectDecl( "_dst", DeclarationNode::NoStorageClass, LinkageSpec::Cforall, 0, new PointerType( Type::Qualifiers(), typeInst->clone() ), 0 );
[0dd3a2f]786 if ( typeDecl->get_base() ) {
787 stmts = new CompoundStmt( std::list< Label >() );
788 UntypedExpr *assign = new UntypedExpr( new NameExpr( "?=?" ) );
789 assign->get_args().push_back( new CastExpr( new VariableExpr( dst ), new PointerType( Type::Qualifiers(), typeDecl->get_base()->clone() ) ) );
790 assign->get_args().push_back( new CastExpr( new VariableExpr( src ), typeDecl->get_base()->clone() ) );
791 stmts->get_kids().push_back( new ReturnStmt( std::list< Label >(), assign ) );
792 } // if
793 FunctionType *type = new FunctionType( Type::Qualifiers(), false );
[68cd1ce]794 type->get_returnVals().push_back( new ObjectDecl( "", DeclarationNode::NoStorageClass, LinkageSpec::Cforall, 0, typeInst, 0 ) );
[0dd3a2f]795 type->get_parameters().push_back( dst );
796 type->get_parameters().push_back( src );
[de62360d]797 FunctionDecl *func = new FunctionDecl( "?=?", DeclarationNode::NoStorageClass, LinkageSpec::AutoGen, type, stmts, false, false );
[0dd3a2f]798 declsToAdd.push_back( func );
[a08ba92]799 }
[c8ffe20b]800
[a08ba92]801 void addDecls( std::list< Declaration * > &declsToAdd, std::list< Statement * > &statements, std::list< Statement * >::iterator i ) {
[5f2f2d7]802 for ( std::list< Declaration * >::iterator decl = declsToAdd.begin(); decl != declsToAdd.end(); ++decl ) {
803 statements.insert( i, new DeclStmt( noLabels, *decl ) );
804 } // for
805 declsToAdd.clear();
[a08ba92]806 }
[c8ffe20b]807
[f066321]808 void AutogenerateRoutines::visit( FunctionType *) {
[0dd3a2f]809 // ensure that we don't add assignment ops for types defined as part of the function
[a08ba92]810 }
[c8ffe20b]811
[f066321]812 void AutogenerateRoutines::visit( PointerType *) {
[0dd3a2f]813 // ensure that we don't add assignment ops for types defined as part of the pointer
[a08ba92]814 }
[c8ffe20b]815
[f066321]816 void AutogenerateRoutines::visit( ContextDecl *) {
[0dd3a2f]817 // ensure that we don't add assignment ops for types defined as part of the context
[a08ba92]818 }
[c8ffe20b]819
[a08ba92]820 template< typename StmtClass >
[f066321]821 inline void AutogenerateRoutines::visitStatement( StmtClass *stmt ) {
[0dd3a2f]822 std::set< std::string > oldStructs = structsDone;
823 addVisit( stmt, *this );
824 structsDone = oldStructs;
[a08ba92]825 }
[c8ffe20b]826
[f066321]827 void AutogenerateRoutines::visit( FunctionDecl *functionDecl ) {
[0dd3a2f]828 maybeAccept( functionDecl->get_functionType(), *this );
829 acceptAll( functionDecl->get_oldDecls(), *this );
830 functionNesting += 1;
831 maybeAccept( functionDecl->get_statements(), *this );
832 functionNesting -= 1;
[a08ba92]833 }
[3c70d38]834
[f066321]835 void AutogenerateRoutines::visit( CompoundStmt *compoundStmt ) {
[0dd3a2f]836 visitStatement( compoundStmt );
[a08ba92]837 }
[c8ffe20b]838
[f066321]839 void AutogenerateRoutines::visit( IfStmt *ifStmt ) {
[0dd3a2f]840 visitStatement( ifStmt );
[a08ba92]841 }
[c8ffe20b]842
[f066321]843 void AutogenerateRoutines::visit( WhileStmt *whileStmt ) {
[0dd3a2f]844 visitStatement( whileStmt );
[a08ba92]845 }
[c8ffe20b]846
[f066321]847 void AutogenerateRoutines::visit( ForStmt *forStmt ) {
[0dd3a2f]848 visitStatement( forStmt );
[a08ba92]849 }
[c8ffe20b]850
[f066321]851 void AutogenerateRoutines::visit( SwitchStmt *switchStmt ) {
[0dd3a2f]852 visitStatement( switchStmt );
[a08ba92]853 }
[c8ffe20b]854
[f066321]855 void AutogenerateRoutines::visit( ChooseStmt *switchStmt ) {
[0dd3a2f]856 visitStatement( switchStmt );
[a08ba92]857 }
[c8ffe20b]858
[f066321]859 void AutogenerateRoutines::visit( CaseStmt *caseStmt ) {
[0dd3a2f]860 visitStatement( caseStmt );
[a08ba92]861 }
[c8ffe20b]862
[f066321]863 void AutogenerateRoutines::visit( CatchStmt *cathStmt ) {
[0dd3a2f]864 visitStatement( cathStmt );
[a08ba92]865 }
[c8ffe20b]866
[de91427b]867 void ReturnChecker::checkFunctionReturns( std::list< Declaration * > & translationUnit ) {
868 ReturnChecker checker;
869 acceptAll( translationUnit, checker );
870 }
871
872 void ReturnChecker::visit( FunctionDecl * functionDecl ) {
873 std::list< DeclarationWithType * > oldReturnVals = returnVals;
874 returnVals = functionDecl->get_functionType()->get_returnVals();
875 Visitor::visit( functionDecl );
876 returnVals = oldReturnVals;
877 }
878
879 void ReturnChecker::visit( ReturnStmt * returnStmt ) {
880 if ( returnStmt->get_expr() == NULL && returnVals.size() != 0 ) {
881 throw SemanticError( "Non-void function returns no values: " , returnStmt );
882 } else if ( returnStmt->get_expr() != NULL && returnVals.size() == 0 ) {
883 throw SemanticError( "void function returns values: " , returnStmt );
884 }
885 }
886
887
[a08ba92]888 bool isTypedef( Declaration *decl ) {
[0dd3a2f]889 return dynamic_cast< TypedefDecl * >( decl );
[a08ba92]890 }
[c8ffe20b]891
[a08ba92]892 void EliminateTypedef::eliminateTypedef( std::list< Declaration * > &translationUnit ) {
[0dd3a2f]893 EliminateTypedef eliminator;
894 mutateAll( translationUnit, eliminator );
895 filter( translationUnit, isTypedef, true );
[a08ba92]896 }
[c8ffe20b]897
[85c4ef0]898 Type *EliminateTypedef::mutate( TypeInstType * typeInst ) {
[9cb8e88d]899 // instances of typedef types will come here. If it is an instance
[cc79d97]900 // of a typdef type, link the instance to its actual type.
901 TypedefMap::const_iterator def = typedefNames.find( typeInst->get_name() );
[0dd3a2f]902 if ( def != typedefNames.end() ) {
[cc79d97]903 Type *ret = def->second.first->get_base()->clone();
[0dd3a2f]904 ret->get_qualifiers() += typeInst->get_qualifiers();
[0215a76f]905 // place instance parameters on the typedef'd type
906 if ( ! typeInst->get_parameters().empty() ) {
907 ReferenceToType *rtt = dynamic_cast<ReferenceToType*>(ret);
908 if ( ! rtt ) {
909 throw SemanticError("cannot apply type parameters to base type of " + typeInst->get_name());
910 }
911 rtt->get_parameters().clear();
912 cloneAll(typeInst->get_parameters(), rtt->get_parameters());
[1db21619]913 } // if
[0dd3a2f]914 delete typeInst;
915 return ret;
916 } // if
917 return typeInst;
[a08ba92]918 }
[c8ffe20b]919
[85c4ef0]920 Declaration *EliminateTypedef::mutate( TypedefDecl * tyDecl ) {
[0dd3a2f]921 Declaration *ret = Mutator::mutate( tyDecl );
[cc79d97]922 if ( typedefNames.count( tyDecl->get_name() ) == 1 && typedefNames[ tyDecl->get_name() ].second == scopeLevel ) {
[9cb8e88d]923 // typedef to the same name from the same scope
[cc79d97]924 // must be from the same type
925
926 Type * t1 = tyDecl->get_base();
927 Type * t2 = typedefNames[ tyDecl->get_name() ].first->get_base();
[1cbca6e]928 if ( ! ResolvExpr::typesCompatible( t1, t2, Indexer() ) ) {
[cc79d97]929 throw SemanticError( "cannot redefine typedef: " + tyDecl->get_name() );
[85c4ef0]930 }
[cc79d97]931 } else {
932 typedefNames[ tyDecl->get_name() ] = std::make_pair( tyDecl, scopeLevel );
933 } // if
934
[0dd3a2f]935 // When a typedef is a forward declaration:
936 // typedef struct screen SCREEN;
937 // the declaration portion must be retained:
938 // struct screen;
939 // because the expansion of the typedef is:
940 // void rtn( SCREEN *p ) => void rtn( struct screen *p )
941 // hence the type-name "screen" must be defined.
942 // Note, qualifiers on the typedef are superfluous for the forward declaration.
943 if ( StructInstType *aggDecl = dynamic_cast< StructInstType * >( tyDecl->get_base() ) ) {
944 return new StructDecl( aggDecl->get_name() );
945 } else if ( UnionInstType *aggDecl = dynamic_cast< UnionInstType * >( tyDecl->get_base() ) ) {
946 return new UnionDecl( aggDecl->get_name() );
947 } else {
948 return ret;
949 } // if
[a08ba92]950 }
[c8ffe20b]951
[85c4ef0]952 TypeDecl *EliminateTypedef::mutate( TypeDecl * typeDecl ) {
[cc79d97]953 TypedefMap::iterator i = typedefNames.find( typeDecl->get_name() );
[0dd3a2f]954 if ( i != typedefNames.end() ) {
955 typedefNames.erase( i ) ;
956 } // if
957 return typeDecl;
[a08ba92]958 }
[c8ffe20b]959
[85c4ef0]960 DeclarationWithType *EliminateTypedef::mutate( FunctionDecl * funcDecl ) {
[cc79d97]961 TypedefMap oldNames = typedefNames;
[0dd3a2f]962 DeclarationWithType *ret = Mutator::mutate( funcDecl );
963 typedefNames = oldNames;
964 return ret;
[a08ba92]965 }
[c8ffe20b]966
[1db21619]967 DeclarationWithType *EliminateTypedef::mutate( ObjectDecl * objDecl ) {
[cc79d97]968 TypedefMap oldNames = typedefNames;
[1db21619]969 DeclarationWithType *ret = Mutator::mutate( objDecl );
[ae4c85a]970 typedefNames = oldNames;
[02e5ab6]971 // is the type a function?
[1db21619]972 if ( FunctionType *funtype = dynamic_cast<FunctionType *>( ret->get_type() ) ) {
[02e5ab6]973 // replace the current object declaration with a function declaration
[1db21619]974 return new FunctionDecl( ret->get_name(), ret->get_storageClass(), ret->get_linkage(), funtype, 0, ret->get_isInline(), ret->get_isNoreturn() );
975 } else if ( objDecl->get_isInline() || objDecl->get_isNoreturn() ) {
976 throw SemanticError( "invalid inline or _Noreturn specification in declaration of ", objDecl );
977 } // if
[0dd3a2f]978 return ret;
[a08ba92]979 }
[c8ffe20b]980
[85c4ef0]981 Expression *EliminateTypedef::mutate( CastExpr * castExpr ) {
[cc79d97]982 TypedefMap oldNames = typedefNames;
[0dd3a2f]983 Expression *ret = Mutator::mutate( castExpr );
984 typedefNames = oldNames;
985 return ret;
[a08ba92]986 }
[c8ffe20b]987
[85c4ef0]988 CompoundStmt *EliminateTypedef::mutate( CompoundStmt * compoundStmt ) {
[cc79d97]989 TypedefMap oldNames = typedefNames;
990 scopeLevel += 1;
[0dd3a2f]991 CompoundStmt *ret = Mutator::mutate( compoundStmt );
[cc79d97]992 scopeLevel -= 1;
[0dd3a2f]993 std::list< Statement * >::iterator i = compoundStmt->get_kids().begin();
994 while ( i != compoundStmt->get_kids().end() ) {
[85c4ef0]995 std::list< Statement * >::iterator next = i+1;
[0dd3a2f]996 if ( DeclStmt *declStmt = dynamic_cast< DeclStmt * >( *i ) ) {
997 if ( dynamic_cast< TypedefDecl * >( declStmt->get_decl() ) ) {
998 delete *i;
999 compoundStmt->get_kids().erase( i );
1000 } // if
1001 } // if
1002 i = next;
1003 } // while
1004 typedefNames = oldNames;
1005 return ret;
[a08ba92]1006 }
[85c4ef0]1007
1008 // there may be typedefs nested within aggregates
1009 // in order for everything to work properly, these
1010 // should be removed as well
1011 template<typename AggDecl>
1012 AggDecl *EliminateTypedef::handleAggregate( AggDecl * aggDecl ) {
1013 std::list<Declaration *>::iterator it = aggDecl->get_members().begin();
1014 for ( ; it != aggDecl->get_members().end(); ) {
1015 std::list< Declaration * >::iterator next = it+1;
1016 if ( dynamic_cast< TypedefDecl * >( *it ) ) {
1017 delete *it;
1018 aggDecl->get_members().erase( it );
1019 } // if
1020 it = next;
1021 }
1022 return aggDecl;
1023 }
1024
1025 Declaration *EliminateTypedef::mutate( StructDecl * structDecl ) {
1026 Mutator::mutate( structDecl );
1027 return handleAggregate( structDecl );
1028 }
1029
1030 Declaration *EliminateTypedef::mutate( UnionDecl * unionDecl ) {
1031 Mutator::mutate( unionDecl );
1032 return handleAggregate( unionDecl );
1033 }
1034
1035 Declaration *EliminateTypedef::mutate( EnumDecl * enumDecl ) {
1036 Mutator::mutate( enumDecl );
1037 return handleAggregate( enumDecl );
1038 }
1039
1040 Declaration *EliminateTypedef::mutate( ContextDecl * contextDecl ) {
1041 Mutator::mutate( contextDecl );
1042 return handleAggregate( contextDecl );
1043 }
1044
[9cb8e88d]1045 void VerifyCtorDtor::verify( std::list< Declaration * > & translationUnit ) {
1046 VerifyCtorDtor verifier;
1047 acceptAll( translationUnit, verifier );
1048 }
1049
1050 void VerifyCtorDtor::visit( FunctionDecl * funcDecl ) {
1051 FunctionType * funcType = funcDecl->get_functionType();
1052 std::list< DeclarationWithType * > &returnVals = funcType->get_returnVals();
1053 std::list< DeclarationWithType * > &params = funcType->get_parameters();
1054
1055 if ( funcDecl->get_name() == "?{}" || funcDecl->get_name() == "^?{}" ) {
1056 if ( params.size() == 0 ) {
1057 throw SemanticError( "Constructors and destructors require at least one parameter ", funcDecl );
1058 }
1059 if ( ! dynamic_cast< PointerType * >( params.front()->get_type() ) ) {
1060 throw SemanticError( "First parameter of a constructor or destructor must be a pointer ", funcDecl );
1061 }
1062 if ( returnVals.size() != 0 ) {
1063 throw SemanticError( "Constructors and destructors cannot have explicit return values ", funcDecl );
1064 }
1065 }
1066
1067 Visitor::visit( funcDecl );
1068 // original idea: modify signature of ctor/dtors and insert appropriate return statements
1069 // to cause desired behaviour
1070 // new idea: add comma exprs to every ctor call to produce first parameter.
1071 // this requires some memoization of the first parameter, because it can be a
1072 // complicated expression with side effects (see: malloc). idea: add temporary variable
1073 // that is assigned address of constructed object in ctor argument position and
1074 // return the temporary. It should also be done after all implicit ctors are
1075 // added, so not in this pass!
1076 }
[51b73452]1077} // namespace SymTab
[0dd3a2f]1078
1079// Local Variables: //
1080// tab-width: 4 //
1081// mode: c++ //
1082// compile-command: "make install" //
1083// End: //
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