source: src/Parser/DeclarationNode.cc@ c041d29

Last change on this file since c041d29 was 2583407, checked in by Andrew Beach <ajbeach@…>, 19 months ago

Handle typedef wrapped declarations before buildList in addTypedef. The extractAggregate code is still used in other cases. There is a small change in behaviour, a typedef wrapping a enum declaration will have the qualifiers on its local copy cleared. This may be the intended behaviour, it is how all other aggregates are handled.

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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// DeclarationNode.cc --
8//
9// Author : Rodolfo G. Esteves
10// Created On : Sat May 16 12:34:05 2015
11// Last Modified By : Peter A. Buhr
12// Last Modified On : Fri Feb 23 18:25:57 2024
13// Update Count : 1533
14//
15
16#include "DeclarationNode.h"
17
18#include <cassert> // for assert, assertf, strict_dynamic_cast
19#include <iterator> // for back_insert_iterator
20#include <list> // for list
21#include <memory> // for unique_ptr
22#include <ostream> // for operator<<, ostream, basic_ostream
23#include <string> // for string, operator+, allocator, char...
24
25#include "AST/Attribute.hpp" // for Attribute
26#include "AST/Copy.hpp" // for shallowCopy
27#include "AST/Decl.hpp" // for Decl
28#include "AST/Expr.hpp" // for Expr
29#include "AST/Print.hpp" // for print
30#include "AST/Stmt.hpp" // for AsmStmt, DirectiveStmt
31#include "AST/StorageClasses.hpp" // for Storage::Class
32#include "AST/Type.hpp" // for Type
33#include "Common/CodeLocation.h" // for CodeLocation
34#include "Common/Iterate.hpp" // for reverseIterate
35#include "Common/SemanticError.h" // for SemanticError
36#include "Common/UniqueName.h" // for UniqueName
37#include "Common/utility.h" // for copy, spliceBegin
38#include "Parser/ExpressionNode.h" // for ExpressionNode
39#include "Parser/InitializerNode.h"// for InitializerNode
40#include "Parser/StatementNode.h" // for StatementNode
41#include "TypeData.h" // for TypeData, TypeData::Aggregate_t
42#include "TypedefTable.h" // for TypedefTable
43
44extern TypedefTable typedefTable;
45
46using namespace std;
47
48UniqueName DeclarationNode::anonymous( "__anonymous" );
49
50extern ast::Linkage::Spec linkage; // defined in parser.yy
51
52DeclarationNode::DeclarationNode() :
53 linkage( ::linkage ) {
54
55// variable.name = nullptr;
56 variable.tyClass = ast::TypeDecl::NUMBER_OF_KINDS;
57 variable.assertions = nullptr;
58 variable.initializer = nullptr;
59
60 assert.condition = nullptr;
61 assert.message = nullptr;
62}
63
64DeclarationNode::~DeclarationNode() {
65 delete name;
66
67// delete variable.name;
68 delete variable.assertions;
69 delete variable.initializer;
70
71// delete type;
72 delete bitfieldWidth;
73
74 delete asmStmt;
75 // asmName, no delete, passed to next stage
76 delete initializer;
77
78 delete assert.condition;
79 delete assert.message;
80}
81
82DeclarationNode * DeclarationNode::clone() const {
83 DeclarationNode * newnode = new DeclarationNode;
84 newnode->next = maybeCopy( next );
85 newnode->name = name ? new string( *name ) : nullptr;
86
87 newnode->type = maybeCopy( type );
88 newnode->inLine = inLine;
89 newnode->storageClasses = storageClasses;
90 newnode->funcSpecs = funcSpecs;
91 newnode->bitfieldWidth = maybeCopy( bitfieldWidth );
92 newnode->enumeratorValue.reset( maybeCopy( enumeratorValue.get() ) );
93 newnode->hasEllipsis = hasEllipsis;
94 newnode->linkage = linkage;
95 newnode->asmName = maybeCopy( asmName );
96 newnode->attributes = attributes;
97 newnode->initializer = maybeCopy( initializer );
98 newnode->extension = extension;
99 newnode->asmStmt = maybeCopy( asmStmt );
100 newnode->error = error;
101
102// newnode->variable.name = variable.name ? new string( *variable.name ) : nullptr;
103 newnode->variable.tyClass = variable.tyClass;
104 newnode->variable.assertions = maybeCopy( variable.assertions );
105 newnode->variable.initializer = maybeCopy( variable.initializer );
106
107 newnode->assert.condition = maybeCopy( assert.condition );
108 newnode->assert.message = maybeCopy( assert.message );
109 return newnode;
110} // DeclarationNode::clone
111
112void DeclarationNode::print( std::ostream & os, int indent ) const {
113 os << string( indent, ' ' );
114 if ( name ) {
115 os << *name << ": ";
116 } // if
117
118 if ( linkage != ast::Linkage::Cforall ) {
119 os << ast::Linkage::name( linkage ) << " ";
120 } // if
121
122 ast::print( os, storageClasses );
123 ast::print( os, funcSpecs );
124
125 if ( type ) {
126 type->print( os, indent );
127 } else {
128 os << "untyped entity ";
129 } // if
130
131 if ( bitfieldWidth ) {
132 os << endl << string( indent + 2, ' ' ) << "with bitfield width ";
133 bitfieldWidth->printOneLine( os );
134 } // if
135
136 if ( initializer ) {
137 os << endl << string( indent + 2, ' ' ) << "with initializer ";
138 initializer->printOneLine( os );
139 os << " maybe constructed? " << initializer->get_maybeConstructed();
140 } // if
141
142 if ( ! attributes.empty() ) {
143 os << string( indent + 2, ' ' ) << "with attributes" << endl;
144 for ( ast::ptr<ast::Attribute> const & attr : reverseIterate( attributes ) ) {
145 os << string( indent + 4, ' ' );
146 ast::print( os, attr, indent + 2 );
147 } // for
148 } // if
149
150 os << endl;
151}
152
153void DeclarationNode::printList( std::ostream & os, int indent ) const {
154 ParseList::printList( os, indent );
155 if ( hasEllipsis ) {
156 os << string( indent, ' ' ) << "and a variable number of other arguments" << endl;
157 } // if
158}
159
160DeclarationNode * DeclarationNode::newFromTypeData( TypeData * type ) {
161 DeclarationNode * newnode = new DeclarationNode;
162 newnode->type = type;
163 return newnode;
164} // DeclarationNode::newFromTypeData
165
166DeclarationNode * DeclarationNode::newStorageClass( ast::Storage::Classes sc ) {
167 DeclarationNode * newnode = new DeclarationNode;
168 newnode->storageClasses = sc;
169 return newnode;
170} // DeclarationNode::newStorageClass
171
172DeclarationNode * DeclarationNode::newFuncSpecifier( ast::Function::Specs fs ) {
173 DeclarationNode * newnode = new DeclarationNode;
174 newnode->funcSpecs = fs;
175 return newnode;
176} // DeclarationNode::newFuncSpecifier
177
178DeclarationNode * DeclarationNode::newAggregate( ast::AggregateDecl::Aggregate kind, const string * name, ExpressionNode * actuals, DeclarationNode * fields, bool body ) {
179 DeclarationNode * newnode = new DeclarationNode;
180 newnode->type = new TypeData( TypeData::Aggregate );
181 newnode->type->aggregate.kind = kind;
182 newnode->type->aggregate.anon = name == nullptr;
183 newnode->type->aggregate.name = newnode->type->aggregate.anon ? new string( DeclarationNode::anonymous.newName() ) : name;
184 newnode->type->aggregate.actuals = actuals;
185 newnode->type->aggregate.fields = fields;
186 newnode->type->aggregate.body = body;
187 newnode->type->aggregate.tagged = false;
188 newnode->type->aggregate.parent = nullptr;
189 return newnode;
190} // DeclarationNode::newAggregate
191
192DeclarationNode * DeclarationNode::newEnum( const string * name, DeclarationNode * constants, bool body, bool typed, DeclarationNode * base, EnumHiding hiding ) {
193 DeclarationNode * newnode = new DeclarationNode;
194 newnode->type = new TypeData( TypeData::Enum );
195 newnode->type->enumeration.anon = name == nullptr;
196 newnode->type->enumeration.name = newnode->type->enumeration.anon ? new string( DeclarationNode::anonymous.newName() ) : name;
197 newnode->type->enumeration.constants = constants;
198 newnode->type->enumeration.body = body;
199 newnode->type->enumeration.typed = typed;
200 newnode->type->enumeration.hiding = hiding;
201 if ( base && base->type ) {
202 newnode->type->base = base->type;
203 } // if
204
205 return newnode;
206} // DeclarationNode::newEnum
207
208DeclarationNode * DeclarationNode::newName( const string * name ) {
209 DeclarationNode * newnode = new DeclarationNode;
210 assert( ! newnode->name );
211 newnode->name = name;
212 return newnode;
213} // DeclarationNode::newName
214
215DeclarationNode * DeclarationNode::newEnumConstant( const string * name, ExpressionNode * constant ) {
216 DeclarationNode * newnode = newName( name );
217 newnode->enumeratorValue.reset( constant );
218 return newnode;
219} // DeclarationNode::newEnumConstant
220
221DeclarationNode * DeclarationNode::newEnumValueGeneric( const string * name, InitializerNode * init ) {
222 if ( init ) {
223 if ( init->get_expression() ) {
224 return newEnumConstant( name, init->get_expression() );
225 } else {
226 DeclarationNode * newnode = newName( name );
227 newnode->initializer = init;
228 return newnode;
229 } // if
230 } else {
231 return newName( name );
232 } // if
233} // DeclarationNode::newEnumValueGeneric
234
235DeclarationNode * DeclarationNode::newEnumInLine( const string name ) {
236 DeclarationNode * newnode = newName( new std::string(name) );
237 newnode->enumInLine = true;
238 return newnode;
239}
240
241DeclarationNode * DeclarationNode::newTypeParam( ast::TypeDecl::Kind tc, const string * name ) {
242 DeclarationNode * newnode = newName( name );
243 newnode->type = nullptr;
244 newnode->variable.tyClass = tc;
245 newnode->variable.assertions = nullptr;
246 return newnode;
247} // DeclarationNode::newTypeParam
248
249DeclarationNode * DeclarationNode::newTrait( const string * name, DeclarationNode * params, DeclarationNode * asserts ) {
250 DeclarationNode * newnode = new DeclarationNode;
251 newnode->type = new TypeData( TypeData::Aggregate );
252 newnode->type->aggregate.name = name;
253 newnode->type->aggregate.kind = ast::AggregateDecl::Trait;
254 newnode->type->aggregate.params = params;
255 newnode->type->aggregate.fields = asserts;
256 return newnode;
257} // DeclarationNode::newTrait
258
259DeclarationNode * DeclarationNode::newTraitUse( const string * name, ExpressionNode * params ) {
260 DeclarationNode * newnode = new DeclarationNode;
261 newnode->type = new TypeData( TypeData::AggregateInst );
262 newnode->type->aggInst.aggregate = new TypeData( TypeData::Aggregate );
263 newnode->type->aggInst.aggregate->aggregate.kind = ast::AggregateDecl::Trait;
264 newnode->type->aggInst.aggregate->aggregate.name = name;
265 newnode->type->aggInst.params = params;
266 return newnode;
267} // DeclarationNode::newTraitUse
268
269DeclarationNode * DeclarationNode::newTypeDecl( const string * name, DeclarationNode * typeParams ) {
270 DeclarationNode * newnode = newName( name );
271 newnode->type = new TypeData( TypeData::Symbolic );
272 newnode->type->symbolic.isTypedef = false;
273 newnode->type->symbolic.params = typeParams;
274 return newnode;
275} // DeclarationNode::newTypeDecl
276
277DeclarationNode * DeclarationNode::newPointer( DeclarationNode * qualifiers, OperKinds kind ) {
278 DeclarationNode * newnode = new DeclarationNode;
279 newnode->type = new TypeData( kind == OperKinds::PointTo ? TypeData::Pointer : TypeData::Reference );
280 if ( kind == OperKinds::And ) {
281 // T && is parsed as 'And' operator rather than two references => add a second reference type
282 TypeData * td = new TypeData( TypeData::Reference );
283 td->base = newnode->type;
284 newnode->type = td;
285 }
286 if ( qualifiers ) {
287 return newnode->addQualifiers( qualifiers );
288 } else {
289 return newnode;
290 } // if
291} // DeclarationNode::newPointer
292
293DeclarationNode * DeclarationNode::newArray( ExpressionNode * size, DeclarationNode * qualifiers, bool isStatic ) {
294 DeclarationNode * newnode = new DeclarationNode;
295 newnode->type = new TypeData( TypeData::Array );
296 newnode->type->array.dimension = size;
297 newnode->type->array.isStatic = isStatic;
298 newnode->type->array.isVarLen = size && !size->isExpressionType<ast::ConstantExpr *>();
299 return newnode->addQualifiers( qualifiers );
300} // DeclarationNode::newArray
301
302DeclarationNode * DeclarationNode::newVarArray( DeclarationNode * qualifiers ) {
303 DeclarationNode * newnode = new DeclarationNode;
304 newnode->type = new TypeData( TypeData::Array );
305 newnode->type->array.dimension = nullptr;
306 newnode->type->array.isStatic = false;
307 newnode->type->array.isVarLen = true;
308 return newnode->addQualifiers( qualifiers );
309}
310
311DeclarationNode * DeclarationNode::newBitfield( ExpressionNode * size ) {
312 DeclarationNode * newnode = new DeclarationNode;
313 newnode->bitfieldWidth = size;
314 return newnode;
315}
316
317DeclarationNode * DeclarationNode::newTuple( DeclarationNode * members ) {
318 DeclarationNode * newnode = new DeclarationNode;
319 newnode->type = new TypeData( TypeData::Tuple );
320 newnode->type->tuple = members;
321 return newnode;
322}
323
324DeclarationNode * DeclarationNode::newTypeof( ExpressionNode * expr, bool basetypeof ) {
325 DeclarationNode * newnode = new DeclarationNode;
326 newnode->type = new TypeData( basetypeof ? TypeData::Basetypeof : TypeData::Typeof );
327 newnode->type->typeexpr = expr;
328 return newnode;
329}
330
331DeclarationNode * DeclarationNode::newFunction( const string * name, DeclarationNode * ret, DeclarationNode * param, StatementNode * body ) {
332 DeclarationNode * newnode = newName( name );
333 newnode->type = new TypeData( TypeData::Function );
334 newnode->type->function.params = param;
335 newnode->type->function.body = body;
336
337 if ( ret ) {
338 newnode->type->base = ret->type;
339 ret->type = nullptr;
340 delete ret;
341 } // if
342
343 return newnode;
344} // DeclarationNode::newFunction
345
346DeclarationNode * DeclarationNode::newAttribute( const string * name, ExpressionNode * expr ) {
347 DeclarationNode * newnode = new DeclarationNode;
348 newnode->type = nullptr;
349 std::vector<ast::ptr<ast::Expr>> exprs;
350 buildList( expr, exprs );
351 newnode->attributes.push_back( new ast::Attribute( *name, std::move( exprs ) ) );
352 delete name;
353 return newnode;
354}
355
356DeclarationNode * DeclarationNode::newDirectiveStmt( StatementNode * stmt ) {
357 DeclarationNode * newnode = new DeclarationNode;
358 newnode->directiveStmt = stmt;
359 return newnode;
360}
361
362DeclarationNode * DeclarationNode::newAsmStmt( StatementNode * stmt ) {
363 DeclarationNode * newnode = new DeclarationNode;
364 newnode->asmStmt = stmt;
365 return newnode;
366}
367
368DeclarationNode * DeclarationNode::newStaticAssert( ExpressionNode * condition, ast::Expr * message ) {
369 DeclarationNode * newnode = new DeclarationNode;
370 newnode->assert.condition = condition;
371 newnode->assert.message = message;
372 return newnode;
373}
374
375static void appendError( string & dst, const string & src ) {
376 if ( src.empty() ) return;
377 if ( dst.empty() ) { dst = src; return; }
378 dst += ", " + src;
379} // appendError
380
381void DeclarationNode::checkQualifiers( const TypeData * src, const TypeData * dst ) {
382 const ast::CV::Qualifiers qsrc = src->qualifiers, qdst = dst->qualifiers; // optimization
383 const ast::CV::Qualifiers duplicates = qsrc & qdst;
384
385 if ( duplicates.any() ) {
386 std::stringstream str;
387 str << "duplicate ";
388 ast::print( str, duplicates );
389 str << "qualifier(s)";
390 appendError( error, str.str() );
391 } // for
392} // DeclarationNode::checkQualifiers
393
394void DeclarationNode::checkSpecifiers( DeclarationNode * src ) {
395 ast::Function::Specs fsDups = funcSpecs & src->funcSpecs;
396 if ( fsDups.any() ) {
397 std::stringstream str;
398 str << "duplicate ";
399 ast::print( str, fsDups );
400 str << "function specifier(s)";
401 appendError( error, str.str() );
402 } // if
403
404 // Skip if everything is unset.
405 if ( storageClasses.any() && src->storageClasses.any() ) {
406 ast::Storage::Classes dups = storageClasses & src->storageClasses;
407 // Check for duplicates.
408 if ( dups.any() ) {
409 std::stringstream str;
410 str << "duplicate ";
411 ast::print( str, dups );
412 str << "storage class(es)";
413 appendError( error, str.str() );
414 // Check for conflicts.
415 } else if ( !src->storageClasses.is_threadlocal_any() ) {
416 std::stringstream str;
417 str << "conflicting ";
418 ast::print( str, ast::Storage::Classes( 1 << storageClasses.ffs() ) );
419 str << "& ";
420 ast::print( str, ast::Storage::Classes( 1 << src->storageClasses.ffs() ) );
421 str << "storage classes";
422 appendError( error, str.str() );
423 // FIX to preserve invariant of one basic storage specifier
424 src->storageClasses.reset();
425 }
426 } // if
427
428 appendError( error, src->error );
429} // DeclarationNode::checkSpecifiers
430
431DeclarationNode * DeclarationNode::copySpecifiers( DeclarationNode * q, bool copyattr ) {
432 funcSpecs |= q->funcSpecs;
433 storageClasses |= q->storageClasses;
434
435 if ( copyattr ) {
436 std::vector<ast::ptr<ast::Attribute>> tmp;
437 tmp.reserve( q->attributes.size() );
438 for ( auto const & attr : q->attributes ) {
439 tmp.emplace_back( ast::shallowCopy( attr.get() ) );
440 } // for
441 spliceBegin( attributes, tmp );
442 } // if
443
444 return this;
445} // DeclarationNode::copySpecifiers
446
447DeclarationNode * DeclarationNode::addQualifiers( DeclarationNode * q ) {
448 if ( ! q ) { return this; } // empty qualifier
449
450 checkSpecifiers( q );
451 copySpecifiers( q );
452
453 if ( ! q->type ) { delete q; return this; }
454
455 if ( ! type ) {
456 type = q->type; // reuse structure
457 q->type = nullptr;
458 delete q;
459 return this;
460 } // if
461
462 checkQualifiers( type, q->type );
463 TypeData::BuiltinType const builtin = type->builtintype;
464 if ( (builtin == TypeData::Zero || builtin == TypeData::One) && q->type->qualifiers.any() && error.length() == 0 ) {
465 SemanticWarning( yylloc, Warning::BadQualifiersZeroOne, TypeData::builtinTypeNames[builtin] );
466 } // if
467 type = ::addQualifiers( q->type, type );
468 q->type = nullptr;
469
470 delete q;
471 return this;
472} // addQualifiers
473
474DeclarationNode * DeclarationNode::addType( DeclarationNode * o, bool copyattr ) {
475 if ( !o ) return this;
476
477 checkSpecifiers( o );
478 copySpecifiers( o, copyattr );
479 if ( o->type ) {
480 type = ::addType( o->type, type, o->attributes );
481 o->type = nullptr;
482 } // if
483 if ( o->bitfieldWidth ) {
484 bitfieldWidth = o->bitfieldWidth;
485 } // if
486
487 // there may be typedefs chained onto the type
488 if ( o->next ) {
489 set_last( o->next->clone() );
490 } // if
491
492 delete o;
493 return this;
494}
495
496DeclarationNode * DeclarationNode::addEnumBase( DeclarationNode * o ) {
497 if ( o && o->type ) {
498 type->base = o->type;
499 } // if
500 delete o;
501 return this;
502}
503
504// This code handles a special issue with the attribute transparent_union.
505//
506// typedef union U { int i; } typedef_name __attribute__(( aligned(16) )) __attribute__(( transparent_union ))
507//
508// Here the attribute aligned goes with the typedef_name, so variables declared of this type are
509// aligned. However, the attribute transparent_union must be moved from the typedef_name to
510// alias union U. Currently, this is the only know attribute that must be moved from typedef to
511// alias.
512static void moveUnionAttribute( DeclarationNode * decl, DeclarationNode * unionDecl ) {
513 assert( decl->type->kind == TypeData::Symbolic );
514 assert( decl->type->symbolic.isTypedef );
515 assert( unionDecl->type->kind == TypeData::Aggregate );
516
517 if ( unionDecl->type->aggregate.kind != ast::AggregateDecl::Union ) return;
518
519 // Ignore the Aggregate_t::attributes. Why did we add that before the rework?
520 for ( auto attr = decl->attributes.begin() ; attr != decl->attributes.end() ; ) {
521 if ( (*attr)->name == "transparent_union" || (*attr)->name == "__transparent_union__" ) {
522 unionDecl->attributes.emplace_back( attr->release() );
523 attr = decl->attributes.erase( attr );
524 } else {
525 ++attr;
526 }
527 }
528}
529
530// Helper for addTypedef, handles the case where the typedef wraps an
531// aggregate declaration (not a type), returns a chain of nodes.
532static DeclarationNode * addTypedefAggr(
533 DeclarationNode * olddecl, TypeData * newtype ) {
534 TypeData *& oldaggr = olddecl->type->aggInst.aggregate;
535
536 // Handle anonymous aggregates: typedef struct { int i; } foo
537 // Give the typedefed type a consistent name across translation units.
538 if ( oldaggr->aggregate.anon ) {
539 delete oldaggr->aggregate.name;
540 oldaggr->aggregate.name = new string( "__anonymous_" + *olddecl->name );
541 oldaggr->aggregate.anon = false;
542 oldaggr->qualifiers.reset();
543 }
544
545 // Replace the wrapped TypeData with a forward declaration.
546 TypeData * newaggr = new TypeData( TypeData::Aggregate );
547 newaggr->aggregate.kind = oldaggr->aggregate.kind;
548 newaggr->aggregate.name = oldaggr->aggregate.name ? new string( *oldaggr->aggregate.name ) : nullptr;
549 newaggr->aggregate.body = false;
550 newaggr->aggregate.anon = oldaggr->aggregate.anon;
551 newaggr->aggregate.tagged = oldaggr->aggregate.tagged;
552 swap( newaggr, oldaggr );
553
554 newtype->base = olddecl->type;
555 olddecl->type = newtype;
556 DeclarationNode * newdecl = new DeclarationNode;
557 newdecl->type = newaggr;
558 newdecl->next = olddecl;
559
560 moveUnionAttribute( olddecl, newdecl );
561
562 return newdecl;
563}
564
565// Helper for addTypedef, handles the case where the typedef wraps an
566// enumeration declaration (not a type), returns a chain of nodes.
567static DeclarationNode * addTypedefEnum(
568 DeclarationNode * olddecl, TypeData * newtype ) {
569 TypeData *& oldenum = olddecl->type->aggInst.aggregate;
570
571 // Handle anonymous enumeration: typedef enum { A, B, C } foo
572 // Give the typedefed type a consistent name across translation units.
573 if ( oldenum->enumeration.anon ) {
574 delete oldenum->enumeration.name;
575 oldenum->enumeration.name = new string( "__anonymous_" + *olddecl->name );
576 oldenum->enumeration.anon = false;
577 oldenum->qualifiers.reset();
578 }
579
580 // Replace the wrapped TypeData with a forward declaration.
581 TypeData * newenum = new TypeData( TypeData::Enum );
582 newenum->enumeration.name = oldenum->enumeration.name ? new string( *oldenum->enumeration.name ) : nullptr;
583 newenum->enumeration.body = false;
584 newenum->enumeration.anon = oldenum->enumeration.anon;
585 newenum->enumeration.typed = oldenum->enumeration.typed;
586 newenum->enumeration.hiding = oldenum->enumeration.hiding;
587 swap( newenum, oldenum );
588
589 newtype->base = olddecl->type;
590 olddecl->type = newtype;
591 DeclarationNode * newdecl = new DeclarationNode;
592 newdecl->type = newenum;
593 newdecl->next = olddecl;
594
595 return newdecl;
596}
597
598DeclarationNode * DeclarationNode::addTypedef() {
599 TypeData * newtype = new TypeData( TypeData::Symbolic );
600 newtype->symbolic.params = nullptr;
601 newtype->symbolic.isTypedef = true;
602 newtype->symbolic.name = name ? new string( *name ) : nullptr;
603 // If this typedef is wrapping an aggregate, separate them out.
604 if ( TypeData::AggregateInst == type->kind
605 && TypeData::Aggregate == type->aggInst.aggregate->kind
606 && type->aggInst.aggregate->aggregate.body ) {
607 return addTypedefAggr( this, newtype );
608 // If this typedef is wrapping an enumeration, separate them out.
609 } else if ( TypeData::AggregateInst == type->kind
610 && TypeData::Enum == type->aggInst.aggregate->kind
611 && type->aggInst.aggregate->enumeration.body ) {
612 return addTypedefEnum( this, newtype );
613 // There is no internal declaration, just a type.
614 } else {
615 newtype->base = type;
616 type = newtype;
617 return this;
618 }
619}
620
621DeclarationNode * DeclarationNode::addAssertions( DeclarationNode * assertions ) {
622 if ( variable.tyClass != ast::TypeDecl::NUMBER_OF_KINDS ) {
623 if ( variable.assertions ) {
624 variable.assertions->set_last( assertions );
625 } else {
626 variable.assertions = assertions;
627 } // if
628 return this;
629 } // if
630
631 assert( type );
632 switch ( type->kind ) {
633 case TypeData::Symbolic:
634 if ( type->symbolic.assertions ) {
635 type->symbolic.assertions->set_last( assertions );
636 } else {
637 type->symbolic.assertions = assertions;
638 } // if
639 break;
640 default:
641 assert( false );
642 } // switch
643
644 return this;
645}
646
647DeclarationNode * DeclarationNode::addName( string * newname ) {
648 assert( ! name );
649 name = newname;
650 return this;
651}
652
653DeclarationNode * DeclarationNode::addAsmName( DeclarationNode * newname ) {
654 assert( ! asmName );
655 asmName = newname ? newname->asmName : nullptr;
656 return this->addQualifiers( newname );
657}
658
659DeclarationNode * DeclarationNode::addBitfield( ExpressionNode * size ) {
660 bitfieldWidth = size;
661 return this;
662}
663
664DeclarationNode * DeclarationNode::addVarArgs() {
665 assert( type );
666 hasEllipsis = true;
667 return this;
668}
669
670DeclarationNode * DeclarationNode::addFunctionBody( StatementNode * body, ExpressionNode * withExprs ) {
671 assert( type );
672 assert( type->kind == TypeData::Function );
673 assert( ! type->function.body );
674 type->function.body = body;
675 type->function.withExprs = withExprs;
676 return this;
677}
678
679DeclarationNode * DeclarationNode::addOldDeclList( DeclarationNode * list ) {
680 assert( type );
681 assert( type->kind == TypeData::Function );
682 assert( ! type->function.oldDeclList );
683 type->function.oldDeclList = list;
684 return this;
685}
686
687DeclarationNode * DeclarationNode::setBase( TypeData * newType ) {
688 if ( type ) {
689 type->setLastBase( newType );
690 } else {
691 type = newType;
692 } // if
693 return this;
694}
695
696DeclarationNode * DeclarationNode::copyAttribute( DeclarationNode * a ) {
697 if ( a ) {
698 spliceBegin( attributes, a->attributes );
699 a->attributes.clear();
700 } // if
701 return this;
702} // copyAttribute
703
704DeclarationNode * DeclarationNode::addPointer( DeclarationNode * p ) {
705 if ( p ) {
706 assert( p->type->kind == TypeData::Pointer || p->type->kind == TypeData::Reference );
707 setBase( p->type );
708 p->type = nullptr;
709 copyAttribute( p );
710 delete p;
711 } // if
712 return this;
713}
714
715DeclarationNode * DeclarationNode::addArray( DeclarationNode * a ) {
716 if ( a ) {
717 assert( a->type->kind == TypeData::Array );
718 setBase( a->type );
719 a->type = nullptr;
720 copyAttribute( a );
721 delete a;
722 } // if
723 return this;
724}
725
726DeclarationNode * DeclarationNode::addNewPointer( DeclarationNode * p ) {
727 if ( p ) {
728 assert( p->type->kind == TypeData::Pointer || p->type->kind == TypeData::Reference );
729 if ( type ) {
730 p->type->base = makeNewBase( type );
731 type = nullptr;
732 } // if
733 delete this;
734 return p;
735 } else {
736 return this;
737 } // if
738}
739
740DeclarationNode * DeclarationNode::addNewArray( DeclarationNode * a ) {
741 if ( ! a ) return this;
742 assert( a->type->kind == TypeData::Array );
743 if ( type ) {
744 a->type->setLastBase( makeNewBase( type ) );
745 type = nullptr;
746 } // if
747 delete this;
748 return a;
749}
750
751DeclarationNode * DeclarationNode::addParamList( DeclarationNode * params ) {
752 TypeData * ftype = new TypeData( TypeData::Function );
753 ftype->function.params = params;
754 setBase( ftype );
755 return this;
756}
757
758static TypeData * addIdListToType( TypeData * type, DeclarationNode * ids ) {
759 if ( type ) {
760 if ( type->kind != TypeData::Function ) {
761 type->base = addIdListToType( type->base, ids );
762 } else {
763 type->function.idList = ids;
764 } // if
765 return type;
766 } else {
767 TypeData * newtype = new TypeData( TypeData::Function );
768 newtype->function.idList = ids;
769 return newtype;
770 } // if
771} // addIdListToType
772
773DeclarationNode * DeclarationNode::addIdList( DeclarationNode * ids ) {
774 type = addIdListToType( type, ids );
775 return this;
776}
777
778DeclarationNode * DeclarationNode::addInitializer( InitializerNode * init ) {
779 initializer = init;
780 return this;
781}
782
783DeclarationNode * DeclarationNode::addTypeInitializer( DeclarationNode * init ) {
784 assertf( variable.tyClass != ast::TypeDecl::NUMBER_OF_KINDS, "Called addTypeInitializer on something that isn't a type variable." );
785 variable.initializer = init;
786 return this;
787}
788
789DeclarationNode * DeclarationNode::cloneType( string * name ) {
790 DeclarationNode * newnode = newName( name );
791 newnode->type = maybeCopy( type );
792 newnode->copySpecifiers( this );
793 return newnode;
794}
795
796DeclarationNode * DeclarationNode::cloneBaseType( DeclarationNode * o, bool copyattr ) {
797 if ( ! o ) return nullptr;
798 o->copySpecifiers( this, copyattr );
799 if ( type ) {
800 o->type = ::cloneBaseType( type, o->type );
801 } // if
802 return o;
803}
804
805DeclarationNode * DeclarationNode::extractAggregate() const {
806 if ( type ) {
807 TypeData * ret = typeextractAggregate( type );
808 if ( ret ) {
809 DeclarationNode * newnode = new DeclarationNode;
810 newnode->type = ret;
811 if ( ret->kind == TypeData::Aggregate ) {
812 newnode->attributes.swap( ret->aggregate.attributes );
813 } // if
814 return newnode;
815 } // if
816 } // if
817 return nullptr;
818}
819
820// Get the non-anonymous name of the instance type of the declaration,
821// if one exists.
822static const std::string * getInstTypeOfName( ast::Decl * decl ) {
823 if ( auto dwt = dynamic_cast<ast::DeclWithType *>( decl ) ) {
824 if ( auto aggr = dynamic_cast<ast::BaseInstType const *>( dwt->get_type() ) ) {
825 if ( aggr->name.find("anonymous") == std::string::npos ) {
826 return &aggr->name;
827 }
828 }
829 }
830 return nullptr;
831}
832
833void buildList( DeclarationNode * firstNode, std::vector<ast::ptr<ast::Decl>> & outputList ) {
834 SemanticErrorException errors;
835 std::back_insert_iterator<std::vector<ast::ptr<ast::Decl>>> out( outputList );
836
837 for ( const DeclarationNode * cur = firstNode ; cur ; cur = cur->next ) {
838 try {
839 bool extracted_named = false;
840
841 if ( DeclarationNode * extr = cur->extractAggregate() ) {
842 assert( cur->type );
843
844 if ( ast::Decl * decl = extr->build() ) {
845 *out++ = decl;
846
847 // need to remember the cases where a declaration contains an anonymous aggregate definition
848 assert( extr->type );
849 if ( extr->type->kind == TypeData::Aggregate ) {
850 // typedef struct { int A } B is the only case?
851 extracted_named = ! extr->type->aggregate.anon;
852 } else if ( extr->type->kind == TypeData::Enum ) {
853 // typedef enum { A } B is the only case?
854 extracted_named = ! extr->type->enumeration.anon;
855 } else {
856 extracted_named = true;
857 }
858 } // if
859 delete extr;
860 } // if
861
862 if ( ast::Decl * decl = cur->build() ) {
863 if ( "" == decl->name && !cur->get_inLine() ) {
864 // Don't include anonymous declaration for named aggregates,
865 // but do include them for anonymous aggregates, e.g.:
866 // struct S {
867 // struct T { int x; }; // no anonymous member
868 // struct { int y; }; // anonymous member
869 // struct T; // anonymous member
870 // };
871 if ( extracted_named ) {
872 continue;
873 }
874
875 if ( auto name = getInstTypeOfName( decl ) ) {
876 // Temporary: warn about anonymous member declarations of named types, since
877 // this conflicts with the syntax for the forward declaration of an anonymous type.
878 SemanticWarning( cur->location, Warning::AggrForwardDecl, name->c_str() );
879 }
880 } // if
881 *out++ = decl;
882 } // if
883 } catch ( SemanticErrorException & e ) {
884 errors.append( e );
885 } // try
886 } // for
887
888 if ( ! errors.isEmpty() ) {
889 throw errors;
890 } // if
891} // buildList
892
893// currently only builds assertions, function parameters, and return values
894void buildList( DeclarationNode * firstNode, std::vector<ast::ptr<ast::DeclWithType>> & outputList ) {
895 SemanticErrorException errors;
896 std::back_insert_iterator<std::vector<ast::ptr<ast::DeclWithType>>> out( outputList );
897
898 for ( const DeclarationNode * cur = firstNode; cur; cur = cur->next ) {
899 try {
900 ast::Decl * decl = cur->build();
901 assertf( decl, "buildList: build for ast::DeclWithType." );
902 if ( ast::DeclWithType * dwt = dynamic_cast<ast::DeclWithType *>( decl ) ) {
903 dwt->location = cur->location;
904 *out++ = dwt;
905 } else if ( ast::StructDecl * agg = dynamic_cast<ast::StructDecl *>( decl ) ) {
906 // e.g., int foo(struct S) {}
907 auto inst = new ast::StructInstType( agg->name );
908 auto obj = new ast::ObjectDecl( cur->location, "", inst );
909 obj->linkage = linkage;
910 *out++ = obj;
911 delete agg;
912 } else if ( ast::UnionDecl * agg = dynamic_cast<ast::UnionDecl *>( decl ) ) {
913 // e.g., int foo(union U) {}
914 auto inst = new ast::UnionInstType( agg->name );
915 auto obj = new ast::ObjectDecl( cur->location,
916 "", inst, nullptr, ast::Storage::Classes(),
917 linkage );
918 *out++ = obj;
919 } else if ( ast::EnumDecl * agg = dynamic_cast<ast::EnumDecl *>( decl ) ) {
920 // e.g., int foo(enum E) {}
921 auto inst = new ast::EnumInstType( agg->name );
922 auto obj = new ast::ObjectDecl( cur->location,
923 "",
924 inst,
925 nullptr,
926 ast::Storage::Classes(),
927 linkage
928 );
929 *out++ = obj;
930 } else {
931 assertf( false, "buildList: Could not convert to ast::DeclWithType." );
932 } // if
933 } catch ( SemanticErrorException & e ) {
934 errors.append( e );
935 } // try
936 } // for
937
938 if ( ! errors.isEmpty() ) {
939 throw errors;
940 } // if
941} // buildList
942
943void buildTypeList( const DeclarationNode * firstNode,
944 std::vector<ast::ptr<ast::Type>> & outputList ) {
945 SemanticErrorException errors;
946 std::back_insert_iterator<std::vector<ast::ptr<ast::Type>>> out( outputList );
947
948 for ( const DeclarationNode * cur = firstNode ; cur ; cur = cur->next ) {
949 try {
950 * out++ = cur->buildType();
951 } catch ( SemanticErrorException & e ) {
952 errors.append( e );
953 } // try
954 } // for
955
956 if ( ! errors.isEmpty() ) {
957 throw errors;
958 } // if
959} // buildTypeList
960
961ast::Decl * DeclarationNode::build() const {
962 if ( ! error.empty() ) SemanticError( this, error + " in declaration of " );
963
964 if ( asmStmt ) {
965 auto stmt = strict_dynamic_cast<ast::AsmStmt *>( asmStmt->build() );
966 return new ast::AsmDecl( stmt->location, stmt );
967 } // if
968 if ( directiveStmt ) {
969 auto stmt = strict_dynamic_cast<ast::DirectiveStmt *>( directiveStmt->build() );
970 return new ast::DirectiveDecl( stmt->location, stmt );
971 } // if
972
973 if ( variable.tyClass != ast::TypeDecl::NUMBER_OF_KINDS ) {
974 // otype is internally converted to dtype + otype parameters
975 static const ast::TypeDecl::Kind kindMap[] = { ast::TypeDecl::Dtype, ast::TypeDecl::Dtype, ast::TypeDecl::Dtype, ast::TypeDecl::Ftype, ast::TypeDecl::Ttype, ast::TypeDecl::Dimension };
976 static_assert( sizeof(kindMap) / sizeof(kindMap[0]) == ast::TypeDecl::NUMBER_OF_KINDS, "DeclarationNode::build: kindMap is out of sync." );
977 assertf( variable.tyClass < sizeof(kindMap)/sizeof(kindMap[0]), "Variable's tyClass is out of bounds." );
978 ast::TypeDecl * ret = new ast::TypeDecl( location,
979 *name,
980 ast::Storage::Classes(),
981 (ast::Type *)nullptr,
982 kindMap[ variable.tyClass ],
983 variable.tyClass == ast::TypeDecl::Otype || variable.tyClass == ast::TypeDecl::DStype,
984 variable.initializer ? variable.initializer->buildType() : nullptr
985 );
986 buildList( variable.assertions, ret->assertions );
987 return ret;
988 } // if
989
990 if ( type ) {
991 // Function specifiers can only appear on a function definition/declaration.
992 //
993 // inline _Noreturn int f(); // allowed
994 // inline _Noreturn int g( int i ); // allowed
995 // inline _Noreturn int i; // disallowed
996 if ( type->kind != TypeData::Function && funcSpecs.any() ) {
997 SemanticError( this, "invalid function specifier for " );
998 } // if
999 // Forall qualifier can only appear on a function/aggregate definition/declaration.
1000 //
1001 // forall int f(); // allowed
1002 // forall int g( int i ); // allowed
1003 // forall int i; // disallowed
1004 if ( type->kind != TypeData::Function && type->forall ) {
1005 SemanticError( this, "invalid type qualifier for " );
1006 } // if
1007 bool isDelete = initializer && initializer->get_isDelete();
1008 ast::Decl * decl = buildDecl(
1009 type,
1010 name ? *name : string( "" ),
1011 storageClasses,
1012 maybeBuild( bitfieldWidth ),
1013 funcSpecs,
1014 linkage,
1015 asmName,
1016 isDelete ? nullptr : maybeBuild( initializer ),
1017 copy( attributes )
1018 )->set_extension( extension );
1019 if ( isDelete ) {
1020 auto dwt = strict_dynamic_cast<ast::DeclWithType *>( decl );
1021 dwt->isDeleted = true;
1022 }
1023 return decl;
1024 } // if
1025
1026 if ( assert.condition ) {
1027 auto cond = maybeBuild( assert.condition );
1028 auto msg = strict_dynamic_cast<ast::ConstantExpr *>( maybeCopy( assert.message ) );
1029 return new ast::StaticAssertDecl( location, cond, msg );
1030 }
1031
1032 // SUE's cannot have function specifiers, either
1033 //
1034 // inline _Noreturn struct S { ... }; // disallowed
1035 // inline _Noreturn enum E { ... }; // disallowed
1036 if ( funcSpecs.any() ) {
1037 SemanticError( this, "invalid function specifier for " );
1038 } // if
1039 if ( enumInLine ) {
1040 return new ast::InlineMemberDecl( location,
1041 *name, (ast::Type*)nullptr, storageClasses, linkage );
1042 } // if
1043 assertf( name, "ObjectDecl must a have name\n" );
1044 auto ret = new ast::ObjectDecl( location,
1045 *name,
1046 (ast::Type*)nullptr,
1047 maybeBuild( initializer ),
1048 storageClasses,
1049 linkage,
1050 maybeBuild( bitfieldWidth )
1051 );
1052 ret->asmName = asmName;
1053 ret->extension = extension;
1054 return ret;
1055}
1056
1057ast::Type * DeclarationNode::buildType() const {
1058 assert( type );
1059
1060 switch ( type->kind ) {
1061 case TypeData::Enum:
1062 case TypeData::Aggregate: {
1063 ast::BaseInstType * ret =
1064 buildComAggInst( type, copy( attributes ), linkage );
1065 buildList( type->aggregate.actuals, ret->params );
1066 return ret;
1067 }
1068 case TypeData::Symbolic: {
1069 ast::TypeInstType * ret = new ast::TypeInstType(
1070 *type->symbolic.name,
1071 // This is just a default, the true value is not known yet.
1072 ast::TypeDecl::Dtype,
1073 buildQualifiers( type ),
1074 copy( attributes ) );
1075 buildList( type->symbolic.actuals, ret->params );
1076 return ret;
1077 }
1078 default:
1079 ast::Type * simpletypes = typebuild( type );
1080 // copy because member is const
1081 simpletypes->attributes = attributes;
1082 return simpletypes;
1083 } // switch
1084}
1085
1086// Local Variables: //
1087// tab-width: 4 //
1088// mode: c++ //
1089// compile-command: "make install" //
1090// End: //
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