source: src/SynTree/Expression.h@ 79b5869

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 79b5869 was fbcde64, checked in by Peter A. Buhr <pabuhr@…>, 8 years ago

remove duplication in compound literal, support aggregate-type compound literals

  • Property mode set to 100644
File size: 31.1 KB
RevLine 
[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//
[3be261a]7// Expression.h --
[0dd3a2f]8//
9// Author : Richard C. Bilson
10// Created On : Mon May 18 07:44:20 2015
[e04ef3a]11// Last Modified By : Peter A. Buhr
[fbcde64]12// Last Modified On : Thu Mar 30 16:44:00 2017
13// Update Count : 41
[0dd3a2f]14//
[51b73452]15
16#ifndef EXPRESSION_H
17#define EXPRESSION_H
18
19#include <map>
[8688ce1]20#include <memory>
[294647b]21
22#include "BaseSyntaxNode.h"
23#include "Constant.h"
24#include "Mutator.h"
[51b73452]25#include "SynTree.h"
26#include "Visitor.h"
[db4ecc5]27#include "Common/UniqueName.h"
[51b73452]28
[47534159]29/// Expression is the root type for all expressions
[294647b]30class Expression : public BaseSyntaxNode{
[0dd3a2f]31 public:
[5ded739]32 Expression( Expression * _aname = nullptr );
33 Expression( const Expression & other );
[0dd3a2f]34 virtual ~Expression();
35
[906e24d]36 Type *& get_result() { return result; }
[fbcde64]37 const Type * get_result() const { return result; }
[5ded739]38 void set_result( Type * newValue ) { result = newValue; }
[906e24d]39 bool has_result() const { return result != nullptr; }
[0dd3a2f]40
[5ded739]41 TypeSubstitution * get_env() const { return env; }
42 void set_env( TypeSubstitution * newValue ) { env = newValue; }
43 Expression * get_argName() const { return argName; }
44 void set_argName( Expression * name ) { argName = name; }
[e04ef3a]45 bool get_extension() const { return extension; }
[8e9cbb2]46 Expression * set_extension( bool exten ) { extension = exten; return this; }
[0dd3a2f]47
[5ded739]48 virtual Expression * clone() const = 0;
49 virtual void accept( Visitor & v ) = 0;
50 virtual Expression * acceptMutator( Mutator & m ) = 0;
51 virtual void print( std::ostream & os, int indent = 0 ) const;
[0dd3a2f]52 protected:
[906e24d]53 Type * result;
[5ded739]54 TypeSubstitution * env;
55 Expression * argName; // if expression is used as an argument, it can be "designated" by this name
[e04ef3a]56 bool extension = false;
[51b73452]57};
58
[6c3a988f]59struct ParamEntry;
60typedef std::map< UniqueId, ParamEntry > InferredParams;
61
[47534159]62/// ParamEntry contains the i.d. of a declaration and a type that is derived from that declaration,
63/// but subject to decay-to-pointer and type parameter renaming
[0dd3a2f]64struct ParamEntry {
[6c3a988f]65 ParamEntry(): decl( 0 ), actualType( 0 ), formalType( 0 ), expr( 0 ), inferParams( new InferredParams ) {}
[5ded739]66 ParamEntry( UniqueId decl, Type * actualType, Type * formalType, Expression* expr ): decl( decl ), actualType( actualType ), formalType( formalType ), expr( expr ), inferParams( new InferredParams ) {}
67 ParamEntry( const ParamEntry & other );
[0dd3a2f]68 ~ParamEntry();
[5ded739]69 ParamEntry & operator=( const ParamEntry & other );
[0dd3a2f]70
71 UniqueId decl;
[5ded739]72 Type * actualType;
73 Type * formalType;
[0dd3a2f]74 Expression* expr;
[6c3a988f]75 std::unique_ptr< InferredParams > inferParams;
[51b73452]76};
77
[9706554]78/// ApplicationExpr represents the application of a function to a set of parameters. This is the result of running an
79/// UntypedExpr through the expression analyzer.
[0dd3a2f]80class ApplicationExpr : public Expression {
81 public:
[5ded739]82 ApplicationExpr( Expression * function );
83 ApplicationExpr( const ApplicationExpr & other );
[0dd3a2f]84 virtual ~ApplicationExpr();
85
[5ded739]86 Expression * get_function() const { return function; }
87 void set_function( Expression * newValue ) { function = newValue; }
[0dd3a2f]88 std::list<Expression *>& get_args() { return args; }
[5ded739]89 InferredParams & get_inferParams() { return inferParams; }
[0dd3a2f]90
[5ded739]91 virtual ApplicationExpr * clone() const { return new ApplicationExpr( * this ); }
92 virtual void accept( Visitor & v ) { v.visit( this ); }
93 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
94 virtual void print( std::ostream & os, int indent = 0 ) const;
[0dd3a2f]95 private:
[5ded739]96 Expression * function;
[0dd3a2f]97 std::list<Expression *> args;
98 InferredParams inferParams;
[51b73452]99};
100
[9706554]101/// UntypedExpr represents the application of a function to a set of parameters, but where the particular overload for
102/// the function name has not yet been determined. Most operators are converted into functional form automatically, to
103/// permit operator overloading.
[0dd3a2f]104class UntypedExpr : public Expression {
105 public:
[5ded739]106 UntypedExpr( Expression * function, const std::list<Expression *> & args = std::list< Expression * >(), Expression *_aname = nullptr );
107 UntypedExpr( const UntypedExpr & other );
[0dd3a2f]108 virtual ~UntypedExpr();
109
[5ded739]110 Expression * get_function() const { return function; }
111 void set_function( Expression * newValue ) { function = newValue; }
[0dd3a2f]112
[5ded739]113 void set_args( std::list<Expression *> & listArgs ) { args = listArgs; }
[0dd3a2f]114 std::list<Expression*>::iterator begin_args() { return args.begin(); }
115 std::list<Expression*>::iterator end_args() { return args.end(); }
116 std::list<Expression*>& get_args() { return args; }
117
[b3b2077]118 static UntypedExpr * createDeref( Expression * arg );
119 static UntypedExpr * createAssign( Expression * arg1, Expression * arg2 );
120
[5ded739]121 virtual UntypedExpr * clone() const { return new UntypedExpr( * this ); }
122 virtual void accept( Visitor & v ) { v.visit( this ); }
123 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
124 virtual void print( std::ostream & os, int indent = 0 ) const;
125 virtual void printArgs(std::ostream & os, int indent = 0) const;
[0dd3a2f]126 private:
[5ded739]127 Expression * function;
[0dd3a2f]128 std::list<Expression*> args;
[51b73452]129};
130
[47534159]131/// NameExpr contains a name whose meaning is still not determined
[0dd3a2f]132class NameExpr : public Expression {
133 public:
[7bf7fb9]134 NameExpr( std::string name, Expression *_aname = nullptr );
[5ded739]135 NameExpr( const NameExpr & other );
[0dd3a2f]136 virtual ~NameExpr();
137
[5ded739]138 const std::string & get_name() const { return name; }
[0dd3a2f]139 void set_name( std::string newValue ) { name = newValue; }
140
[5ded739]141 virtual NameExpr * clone() const { return new NameExpr( * this ); }
142 virtual void accept( Visitor & v ) { v.visit( this ); }
143 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
144 virtual void print( std::ostream & os, int indent = 0 ) const;
[0dd3a2f]145 private:
146 std::string name;
[51b73452]147};
148
149// The following classes are used to represent expression types that cannot be converted into
150// function-call format.
151
[5ded739]152/// AddressExpr represents a address-of expression, e.g. & e
[0dd3a2f]153class AddressExpr : public Expression {
154 public:
[5ded739]155 AddressExpr( Expression * arg, Expression *_aname = nullptr );
156 AddressExpr( const AddressExpr & other );
[0dd3a2f]157 virtual ~AddressExpr();
158
[5ded739]159 Expression * get_arg() const { return arg; }
160 void set_arg(Expression * newValue ) { arg = newValue; }
[0dd3a2f]161
[5ded739]162 virtual AddressExpr * clone() const { return new AddressExpr( * this ); }
163 virtual void accept( Visitor & v ) { v.visit( this ); }
164 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
165 virtual void print( std::ostream & os, int indent = 0 ) const;
[0dd3a2f]166 private:
[5ded739]167 Expression * arg;
[51b73452]168};
169
[3be261a]170// xxx - this doesn't appear to actually be hooked in anywhere. We should use this instead of the "&&"" UntypedExpr hack
[0dd3a2f]171class LabelAddressExpr : public Expression {
172 public:
[5ded739]173 LabelAddressExpr( Expression * arg );
174 LabelAddressExpr( const LabelAddressExpr & other );
[0dd3a2f]175 virtual ~LabelAddressExpr();
176
[5ded739]177 Expression * get_arg() const { return arg; }
178 void set_arg(Expression * newValue ) { arg = newValue; }
[0dd3a2f]179
[5ded739]180 virtual LabelAddressExpr * clone() const { return new LabelAddressExpr( * this ); }
181 virtual void accept( Visitor & v ) { v.visit( this ); }
182 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
183 virtual void print( std::ostream & os, int indent = 0 ) const;
[0dd3a2f]184 private:
[5ded739]185 Expression * arg;
[51b73452]186};
187
[47534159]188/// CastExpr represents a type cast expression, e.g. (int)e
[0dd3a2f]189class CastExpr : public Expression {
190 public:
[5ded739]191 CastExpr( Expression * arg, Expression *_aname = nullptr );
192 CastExpr( Expression * arg, Type * toType, Expression *_aname = nullptr );
193 CastExpr( const CastExpr & other );
[0dd3a2f]194 virtual ~CastExpr();
195
[5ded739]196 Expression * get_arg() const { return arg; }
197 void set_arg(Expression * newValue ) { arg = newValue; }
[0dd3a2f]198
[5ded739]199 virtual CastExpr * clone() const { return new CastExpr( * this ); }
200 virtual void accept( Visitor & v ) { v.visit( this ); }
201 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
202 virtual void print( std::ostream & os, int indent = 0 ) const;
[0dd3a2f]203 private:
[5ded739]204 Expression * arg;
[51b73452]205};
206
[47534159]207/// UntypedMemberExpr represents a member selection operation, e.g. q.p before processing by the expression analyzer
[0dd3a2f]208class UntypedMemberExpr : public Expression {
209 public:
[5ded739]210 UntypedMemberExpr( Expression * member, Expression * aggregate, Expression *_aname = nullptr );
211 UntypedMemberExpr( const UntypedMemberExpr & other );
[0dd3a2f]212 virtual ~UntypedMemberExpr();
213
[3b58d91]214 Expression * get_member() const { return member; }
215 void set_member( Expression * newValue ) { member = newValue; }
[5ded739]216 Expression * get_aggregate() const { return aggregate; }
217 void set_aggregate( Expression * newValue ) { aggregate = newValue; }
[0dd3a2f]218
[5ded739]219 virtual UntypedMemberExpr * clone() const { return new UntypedMemberExpr( * this ); }
220 virtual void accept( Visitor & v ) { v.visit( this ); }
221 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
222 virtual void print( std::ostream & os, int indent = 0 ) const;
[0dd3a2f]223 private:
[5ded739]224 Expression * member;
225 Expression * aggregate;
[51b73452]226};
227
[47534159]228/// MemberExpr represents a member selection operation, e.g. q.p after processing by the expression analyzer
[0dd3a2f]229class MemberExpr : public Expression {
230 public:
[5ded739]231 MemberExpr( DeclarationWithType * member, Expression * aggregate, Expression *_aname = nullptr );
232 MemberExpr( const MemberExpr & other );
[0dd3a2f]233 virtual ~MemberExpr();
234
[5ded739]235 DeclarationWithType * get_member() const { return member; }
236 void set_member( DeclarationWithType * newValue ) { member = newValue; }
237 Expression * get_aggregate() const { return aggregate; }
238 void set_aggregate( Expression * newValue ) { aggregate = newValue; }
[0dd3a2f]239
[5ded739]240 virtual MemberExpr * clone() const { return new MemberExpr( * this ); }
241 virtual void accept( Visitor & v ) { v.visit( this ); }
242 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
243 virtual void print( std::ostream & os, int indent = 0 ) const;
[0dd3a2f]244 private:
[5ded739]245 DeclarationWithType * member;
246 Expression * aggregate;
[51b73452]247};
248
[47534159]249/// VariableExpr represents an expression that simply refers to the value of a named variable
[0dd3a2f]250class VariableExpr : public Expression {
251 public:
[5ded739]252 VariableExpr( DeclarationWithType * var, Expression *_aname = nullptr );
253 VariableExpr( const VariableExpr & other );
[0dd3a2f]254 virtual ~VariableExpr();
255
[5ded739]256 DeclarationWithType * get_var() const { return var; }
257 void set_var( DeclarationWithType * newValue ) { var = newValue; }
[0dd3a2f]258
[5ded739]259 virtual VariableExpr * clone() const { return new VariableExpr( * this ); }
260 virtual void accept( Visitor & v ) { v.visit( this ); }
261 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
262 virtual void print( std::ostream & os, int indent = 0 ) const;
[0dd3a2f]263 private:
[5ded739]264 DeclarationWithType * var;
[51b73452]265};
266
[3be261a]267/// ConstantExpr represents an expression that simply refers to the value of a constant
[0dd3a2f]268class ConstantExpr : public Expression {
269 public:
[7bf7fb9]270 ConstantExpr( Constant constant, Expression *_aname = nullptr );
[5ded739]271 ConstantExpr( const ConstantExpr & other );
[0dd3a2f]272 virtual ~ConstantExpr();
273
[5ded739]274 Constant * get_constant() { return & constant; }
275 void set_constant( const Constant & newValue ) { constant = newValue; }
[0dd3a2f]276
[5ded739]277 virtual ConstantExpr * clone() const { return new ConstantExpr( * this ); }
278 virtual void accept( Visitor & v ) { v.visit( this ); }
279 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
280 virtual void print( std::ostream & os, int indent = 0 ) const;
[0dd3a2f]281 private:
282 Constant constant;
[51b73452]283};
284
[47534159]285/// SizeofExpr represents a sizeof expression (could be sizeof(int) or sizeof 3+4)
[0dd3a2f]286class SizeofExpr : public Expression {
287 public:
[5ded739]288 SizeofExpr( Expression * expr, Expression *_aname = nullptr );
289 SizeofExpr( const SizeofExpr & other );
290 SizeofExpr( Type * type, Expression *_aname = nullptr );
[0dd3a2f]291 virtual ~SizeofExpr();
292
[5ded739]293 Expression * get_expr() const { return expr; }
294 void set_expr( Expression * newValue ) { expr = newValue; }
295 Type * get_type() const { return type; }
296 void set_type( Type * newValue ) { type = newValue; }
[0dd3a2f]297 bool get_isType() const { return isType; }
298 void set_isType( bool newValue ) { isType = newValue; }
299
[5ded739]300 virtual SizeofExpr * clone() const { return new SizeofExpr( * this ); }
301 virtual void accept( Visitor & v ) { v.visit( this ); }
302 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
303 virtual void print( std::ostream & os, int indent = 0 ) const;
[0dd3a2f]304 private:
[5ded739]305 Expression * expr;
306 Type * type;
[0dd3a2f]307 bool isType;
[51b73452]308};
309
[47534159]310/// AlignofExpr represents an alignof expression
311class AlignofExpr : public Expression {
312 public:
[5ded739]313 AlignofExpr( Expression * expr, Expression *_aname = nullptr );
314 AlignofExpr( const AlignofExpr & other );
315 AlignofExpr( Type * type, Expression *_aname = nullptr );
[47534159]316 virtual ~AlignofExpr();
317
[5ded739]318 Expression * get_expr() const { return expr; }
319 void set_expr( Expression * newValue ) { expr = newValue; }
320 Type * get_type() const { return type; }
321 void set_type( Type * newValue ) { type = newValue; }
[47534159]322 bool get_isType() const { return isType; }
323 void set_isType( bool newValue ) { isType = newValue; }
324
[5ded739]325 virtual AlignofExpr * clone() const { return new AlignofExpr( * this ); }
326 virtual void accept( Visitor & v ) { v.visit( this ); }
327 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
328 virtual void print( std::ostream & os, int indent = 0 ) const;
[47534159]329 private:
[5ded739]330 Expression * expr;
331 Type * type;
[47534159]332 bool isType;
333};
334
[2a4b088]335/// UntypedOffsetofExpr represents an offsetof expression before resolution
336class UntypedOffsetofExpr : public Expression {
337 public:
[5ded739]338 UntypedOffsetofExpr( Type * type, const std::string & member, Expression *_aname = nullptr );
339 UntypedOffsetofExpr( const UntypedOffsetofExpr & other );
[2a4b088]340 virtual ~UntypedOffsetofExpr();
341
342 std::string get_member() const { return member; }
[5ded739]343 void set_member( const std::string & newValue ) { member = newValue; }
344 Type * get_type() const { return type; }
345 void set_type( Type * newValue ) { type = newValue; }
346
347 virtual UntypedOffsetofExpr * clone() const { return new UntypedOffsetofExpr( * this ); }
348 virtual void accept( Visitor & v ) { v.visit( this ); }
349 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
350 virtual void print( std::ostream & os, int indent = 0 ) const;
[2a4b088]351 private:
[5ded739]352 Type * type;
[2a4b088]353 std::string member;
354};
355
[25a054f]356/// OffsetofExpr represents an offsetof expression
357class OffsetofExpr : public Expression {
358 public:
[5ded739]359 OffsetofExpr( Type * type, DeclarationWithType * member, Expression *_aname = nullptr );
360 OffsetofExpr( const OffsetofExpr & other );
[25a054f]361 virtual ~OffsetofExpr();
362
[5ded739]363 Type * get_type() const { return type; }
364 void set_type( Type * newValue ) { type = newValue; }
365 DeclarationWithType * get_member() const { return member; }
366 void set_member( DeclarationWithType * newValue ) { member = newValue; }
367
368 virtual OffsetofExpr * clone() const { return new OffsetofExpr( * this ); }
369 virtual void accept( Visitor & v ) { v.visit( this ); }
370 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
371 virtual void print( std::ostream & os, int indent = 0 ) const;
[25a054f]372 private:
[5ded739]373 Type * type;
374 DeclarationWithType * member;
[25a054f]375};
376
[afc1045]377/// Expression representing a pack of field-offsets for a generic type
378class OffsetPackExpr : public Expression {
379public:
[5ded739]380 OffsetPackExpr( StructInstType * type_, Expression * aname_ = 0 );
381 OffsetPackExpr( const OffsetPackExpr & other );
[afc1045]382 virtual ~OffsetPackExpr();
383
[5ded739]384 StructInstType * get_type() const { return type; }
385 void set_type( StructInstType * newValue ) { type = newValue; }
[afc1045]386
[5ded739]387 virtual OffsetPackExpr * clone() const { return new OffsetPackExpr( * this ); }
388 virtual void accept( Visitor & v ) { v.visit( this ); }
389 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
[afc1045]390
[5ded739]391 virtual void print( std::ostream & os, int indent = 0 ) const;
[afc1045]392
393private:
[5ded739]394 StructInstType * type;
[afc1045]395};
396
[47534159]397/// AttrExpr represents an @attribute expression (like sizeof, but user-defined)
[0dd3a2f]398class AttrExpr : public Expression {
399 public:
[5ded739]400 AttrExpr(Expression * attr, Expression * expr, Expression *_aname = nullptr );
401 AttrExpr( const AttrExpr & other );
402 AttrExpr( Expression * attr, Type * type, Expression *_aname = nullptr );
[0dd3a2f]403 virtual ~AttrExpr();
404
[5ded739]405 Expression * get_attr() const { return attr; }
406 void set_attr( Expression * newValue ) { attr = newValue; }
407 Expression * get_expr() const { return expr; }
408 void set_expr( Expression * newValue ) { expr = newValue; }
409 Type * get_type() const { return type; }
410 void set_type( Type * newValue ) { type = newValue; }
[0dd3a2f]411 bool get_isType() const { return isType; }
412 void set_isType( bool newValue ) { isType = newValue; }
413
[5ded739]414 virtual AttrExpr * clone() const { return new AttrExpr( * this ); }
415 virtual void accept( Visitor & v ) { v.visit( this ); }
416 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
417 virtual void print( std::ostream & os, int indent = 0 ) const;
[0dd3a2f]418 private:
[5ded739]419 Expression * attr;
420 Expression * expr;
421 Type * type;
[0dd3a2f]422 bool isType;
[51b73452]423};
424
[47534159]425/// LogicalExpr represents a short-circuit boolean expression (&& or ||)
[0dd3a2f]426class LogicalExpr : public Expression {
427 public:
[5ded739]428 LogicalExpr( Expression * arg1, Expression * arg2, bool andp = true, Expression *_aname = nullptr );
429 LogicalExpr( const LogicalExpr & other );
[0dd3a2f]430 virtual ~LogicalExpr();
431
432 bool get_isAnd() const { return isAnd; }
[5ded739]433 Expression * get_arg1() { return arg1; }
434 void set_arg1( Expression * newValue ) { arg1 = newValue; }
435 Expression * get_arg2() const { return arg2; }
436 void set_arg2( Expression * newValue ) { arg2 = newValue; }
437
438 virtual LogicalExpr * clone() const { return new LogicalExpr( * this ); }
439 virtual void accept( Visitor & v ) { v.visit( this ); }
440 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
441 virtual void print( std::ostream & os, int indent = 0 ) const;
[0dd3a2f]442 private:
[5ded739]443 Expression * arg1;
444 Expression * arg2;
[0dd3a2f]445 bool isAnd;
[51b73452]446};
447
[47534159]448/// ConditionalExpr represents the three-argument conditional ( p ? a : b )
[0dd3a2f]449class ConditionalExpr : public Expression {
450 public:
[5ded739]451 ConditionalExpr( Expression * arg1, Expression * arg2, Expression * arg3, Expression *_aname = nullptr );
452 ConditionalExpr( const ConditionalExpr & other );
[0dd3a2f]453 virtual ~ConditionalExpr();
454
[5ded739]455 Expression * get_arg1() const { return arg1; }
456 void set_arg1( Expression * newValue ) { arg1 = newValue; }
457 Expression * get_arg2() const { return arg2; }
458 void set_arg2( Expression * newValue ) { arg2 = newValue; }
459 Expression * get_arg3() const { return arg3; }
460 void set_arg3( Expression * newValue ) { arg3 = newValue; }
461
462 virtual ConditionalExpr * clone() const { return new ConditionalExpr( * this ); }
463 virtual void accept( Visitor & v ) { v.visit( this ); }
464 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
465 virtual void print( std::ostream & os, int indent = 0 ) const;
[0dd3a2f]466 private:
[5ded739]467 Expression * arg1;
468 Expression * arg2;
469 Expression * arg3;
[51b73452]470};
471
[47534159]472/// CommaExpr represents the sequence operator ( a, b )
[0dd3a2f]473class CommaExpr : public Expression {
474 public:
[5ded739]475 CommaExpr( Expression * arg1, Expression * arg2, Expression *_aname = nullptr );
476 CommaExpr( const CommaExpr & other );
[0dd3a2f]477 virtual ~CommaExpr();
478
[5ded739]479 Expression * get_arg1() const { return arg1; }
480 void set_arg1( Expression * newValue ) { arg1 = newValue; }
481 Expression * get_arg2() const { return arg2; }
482 void set_arg2( Expression * newValue ) { arg2 = newValue; }
[0dd3a2f]483
[5ded739]484 virtual CommaExpr * clone() const { return new CommaExpr( * this ); }
485 virtual void accept( Visitor & v ) { v.visit( this ); }
486 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
487 virtual void print( std::ostream & os, int indent = 0 ) const;
[0dd3a2f]488 private:
[5ded739]489 Expression * arg1;
490 Expression * arg2;
[51b73452]491};
492
[47534159]493/// TypeExpr represents a type used in an expression (e.g. as a type generator parameter)
[0dd3a2f]494class TypeExpr : public Expression {
495 public:
[5ded739]496 TypeExpr( Type * type );
497 TypeExpr( const TypeExpr & other );
[0dd3a2f]498 virtual ~TypeExpr();
499
[5ded739]500 Type * get_type() const { return type; }
501 void set_type( Type * newValue ) { type = newValue; }
[0dd3a2f]502
[5ded739]503 virtual TypeExpr * clone() const { return new TypeExpr( * this ); }
504 virtual void accept( Visitor & v ) { v.visit( this ); }
505 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
506 virtual void print( std::ostream & os, int indent = 0 ) const;
[0dd3a2f]507 private:
[5ded739]508 Type * type;
[51b73452]509};
510
[47534159]511/// AsmExpr represents a GCC 'asm constraint operand' used in an asm statement: [output] "=f" (result)
[7f5566b]512class AsmExpr : public Expression {
513 public:
[5ded739]514 AsmExpr( Expression * inout, ConstantExpr * constraint, Expression * operand ) : inout( inout ), constraint( constraint ), operand( operand ) {}
[3be261a]515 AsmExpr( const AsmExpr & other );
[7f5566b]516 virtual ~AsmExpr() { delete inout; delete constraint; delete operand; };
517
[5ded739]518 Expression * get_inout() const { return inout; }
519 void set_inout( Expression * newValue ) { inout = newValue; }
[7f5566b]520
[5ded739]521 ConstantExpr * get_constraint() const { return constraint; }
522 void set_constraint( ConstantExpr * newValue ) { constraint = newValue; }
[7f5566b]523
[5ded739]524 Expression * get_operand() const { return operand; }
525 void set_operand( Expression * newValue ) { operand = newValue; }
[7f5566b]526
[5ded739]527 virtual AsmExpr * clone() const { return new AsmExpr( * this ); }
528 virtual void accept( Visitor & v ) { v.visit( this ); }
529 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
530 virtual void print( std::ostream & os, int indent = 0 ) const;
[7f5566b]531 private:
532 // https://gcc.gnu.org/onlinedocs/gcc-4.7.1/gcc/Machine-Constraints.html#Machine-Constraints
[5ded739]533 Expression * inout;
534 ConstantExpr * constraint;
535 Expression * operand;
[7f5566b]536};
537
[db4ecc5]538/// ImplicitCopyCtorExpr represents the application of a function to a set of parameters,
539/// along with a set of copy constructor calls, one for each argument.
540class ImplicitCopyCtorExpr : public Expression {
541public:
542 ImplicitCopyCtorExpr( ApplicationExpr * callExpr );
543 ImplicitCopyCtorExpr( const ImplicitCopyCtorExpr & other );
544 virtual ~ImplicitCopyCtorExpr();
545
[5ded739]546 ApplicationExpr * get_callExpr() const { return callExpr; }
547 void set_callExpr( ApplicationExpr * newValue ) { callExpr = newValue; }
[db4ecc5]548
549 std::list< ObjectDecl * > & get_tempDecls() { return tempDecls; }
550 std::list< ObjectDecl * > & get_returnDecls() { return returnDecls; }
551 std::list< Expression * > & get_dtors() { return dtors; }
552
[5ded739]553 virtual ImplicitCopyCtorExpr * clone() const { return new ImplicitCopyCtorExpr( * this ); }
554 virtual void accept( Visitor & v ) { v.visit( this ); }
555 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
556 virtual void print( std::ostream & os, int indent = 0 ) const;
[db4ecc5]557 private:
558 ApplicationExpr * callExpr;
559 std::list< ObjectDecl * > tempDecls;
560 std::list< ObjectDecl * > returnDecls;
561 std::list< Expression * > dtors;
562};
563
[b6fe7e6]564/// ConstructorExpr represents the use of a constructor in an expression context, e.g. int * x = malloc() { 5 };
565class ConstructorExpr : public Expression {
566public:
567 ConstructorExpr( Expression * callExpr );
568 ConstructorExpr( const ConstructorExpr & other );
569 ~ConstructorExpr();
[0dd3a2f]570
[5ded739]571 Expression * get_callExpr() const { return callExpr; }
572 void set_callExpr( Expression * newValue ) { callExpr = newValue; }
[0dd3a2f]573
[5ded739]574 virtual ConstructorExpr * clone() const { return new ConstructorExpr( * this ); }
575 virtual void accept( Visitor & v ) { v.visit( this ); }
576 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
577 virtual void print( std::ostream & os, int indent = 0 ) const;
[b6fe7e6]578private:
579 Expression * callExpr;
[51b73452]580};
581
[630a82a]582/// CompoundLiteralExpr represents a C99 'compound literal'
583class CompoundLiteralExpr : public Expression {
584 public:
585 CompoundLiteralExpr( Type * type, Initializer * initializer );
[5ded739]586 CompoundLiteralExpr( const CompoundLiteralExpr & other );
[3b58d91]587 virtual ~CompoundLiteralExpr();
[630a82a]588
589 Initializer * get_initializer() const { return initializer; }
590 void set_initializer( Initializer * i ) { initializer = i; }
591
[5ded739]592 virtual CompoundLiteralExpr * clone() const { return new CompoundLiteralExpr( * this ); }
593 virtual void accept( Visitor & v ) { v.visit( this ); }
594 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
595 virtual void print( std::ostream & os, int indent = 0 ) const;
[630a82a]596 private:
597 Initializer * initializer;
598};
599
[b6fe7e6]600/// ValofExpr represents a GCC 'lambda expression'
601class UntypedValofExpr : public Expression {
602 public:
603 UntypedValofExpr( Statement *_body, Expression *_aname = nullptr ) : Expression( _aname ), body ( _body ) {}
604 UntypedValofExpr( const UntypedValofExpr & other );
605 virtual ~UntypedValofExpr();
606
[5ded739]607 Expression * get_value();
608 Statement * get_body() const { return body; }
[b6fe7e6]609
[5ded739]610 virtual UntypedValofExpr * clone() const { return new UntypedValofExpr( * this ); }
611 virtual void accept( Visitor & v ) { v.visit( this ); }
612 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
613 virtual void print( std::ostream & os, int indent = 0 ) const;
[b6fe7e6]614 private:
[5ded739]615 Statement * body;
[b6fe7e6]616};
617
618/// RangeExpr represents a range e.g. '3 ... 5' or '1~10'
[8688ce1]619class RangeExpr : public Expression {
620 public:
[5ded739]621 RangeExpr( Expression * low, Expression * high );
622 RangeExpr( const RangeExpr & other );
[8688ce1]623
[d9e2280]624 Expression * get_low() const { return low; }
625 Expression * get_high() const { return high; }
[5ded739]626 RangeExpr * set_low( Expression * low ) { RangeExpr::low = low; return this; }
627 RangeExpr * set_high( Expression * high ) { RangeExpr::high = high; return this; }
[8688ce1]628
[5ded739]629 virtual RangeExpr * clone() const { return new RangeExpr( * this ); }
630 virtual void accept( Visitor & v ) { v.visit( this ); }
631 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
632 virtual void print( std::ostream & os, int indent = 0 ) const;
[8688ce1]633 private:
[5ded739]634 Expression * low, * high;
[8688ce1]635};
636
[907eccb]637/// UntypedTupleExpr represents a tuple expression ( [a, b, c] ) before resolution
638class UntypedTupleExpr : public Expression {
639 public:
640 UntypedTupleExpr( const std::list< Expression * > & exprs, Expression *_aname = nullptr );
[5ded739]641 UntypedTupleExpr( const UntypedTupleExpr & other );
[907eccb]642 virtual ~UntypedTupleExpr();
643
644 std::list<Expression*>& get_exprs() { return exprs; }
645
[5ded739]646 virtual UntypedTupleExpr * clone() const { return new UntypedTupleExpr( * this ); }
647 virtual void accept( Visitor & v ) { v.visit( this ); }
648 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
649 virtual void print( std::ostream & os, int indent = 0 ) const;
[907eccb]650 private:
651 std::list<Expression*> exprs;
652};
653
[6eb8948]654/// TupleExpr represents a tuple expression ( [a, b, c] )
655class TupleExpr : public Expression {
656 public:
[907eccb]657 TupleExpr( const std::list< Expression * > & exprs, Expression *_aname = nullptr );
[5ded739]658 TupleExpr( const TupleExpr & other );
[6eb8948]659 virtual ~TupleExpr();
660
661 std::list<Expression*>& get_exprs() { return exprs; }
662
[5ded739]663 virtual TupleExpr * clone() const { return new TupleExpr( * this ); }
664 virtual void accept( Visitor & v ) { v.visit( this ); }
665 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
666 virtual void print( std::ostream & os, int indent = 0 ) const;
[6eb8948]667 private:
668 std::list<Expression*> exprs;
669};
670
[3b58d91]671/// TupleIndexExpr represents an element selection operation on a tuple value, e.g. t.3 after processing by the expression analyzer
672class TupleIndexExpr : public Expression {
673 public:
674 TupleIndexExpr( Expression * tuple, unsigned int index );
[5ded739]675 TupleIndexExpr( const TupleIndexExpr & other );
[3b58d91]676 virtual ~TupleIndexExpr();
677
678 Expression * get_tuple() const { return tuple; }
679 int get_index() const { return index; }
[5ded739]680 TupleIndexExpr * set_tuple( Expression * newValue ) { tuple = newValue; return this; }
[3b58d91]681 TupleIndexExpr * set_index( unsigned int newValue ) { index = newValue; return this; }
682
[5ded739]683 virtual TupleIndexExpr * clone() const { return new TupleIndexExpr( * this ); }
684 virtual void accept( Visitor & v ) { v.visit( this ); }
685 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
686 virtual void print( std::ostream & os, int indent = 0 ) const;
[3b58d91]687 private:
688 Expression * tuple;
689 unsigned int index;
690};
691
692/// MemberTupleExpr represents a tuple member selection operation on a struct type, e.g. s.[a, b, c] after processing by the expression analyzer
693class MemberTupleExpr : public Expression {
694 public:
695 MemberTupleExpr( Expression * member, Expression * aggregate, Expression * _aname = nullptr );
[5ded739]696 MemberTupleExpr( const MemberTupleExpr & other );
[3b58d91]697 virtual ~MemberTupleExpr();
698
699 Expression * get_member() const { return member; }
700 Expression * get_aggregate() const { return aggregate; }
[5ded739]701 MemberTupleExpr * set_member( Expression * newValue ) { member = newValue; return this; }
702 MemberTupleExpr * set_aggregate( Expression * newValue ) { aggregate = newValue; return this; }
[3b58d91]703
[5ded739]704 virtual MemberTupleExpr * clone() const { return new MemberTupleExpr( * this ); }
705 virtual void accept( Visitor & v ) { v.visit( this ); }
706 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
707 virtual void print( std::ostream & os, int indent = 0 ) const;
[3b58d91]708 private:
709 Expression * member;
710 Expression * aggregate;
711};
712
[65660bd]713/// TupleAssignExpr represents a multiple assignment operation, where both sides of the assignment have tuple type, e.g. [a, b, c] = [d, e, f];, a mass assignment operation, where the left hand side has tuple type and the right hand side does not, e.g. [a, b, c] = 5.0;, or a tuple ctor/dtor expression
[6eb8948]714class TupleAssignExpr : public Expression {
[3b58d91]715 public:
[6eb8948]716 TupleAssignExpr( const std::list< Expression * > & assigns, const std::list< ObjectDecl * > & tempDecls, Expression * _aname = nullptr );
[5ded739]717 TupleAssignExpr( const TupleAssignExpr & other );
[6eb8948]718 virtual ~TupleAssignExpr();
[3b58d91]719
[d5556a3]720 TupleAssignExpr * set_stmtExpr( StmtExpr * newValue ) { stmtExpr = newValue; return this; }
721 StmtExpr * get_stmtExpr() const { return stmtExpr; }
[3b58d91]722
[5ded739]723 virtual TupleAssignExpr * clone() const { return new TupleAssignExpr( * this ); }
724 virtual void accept( Visitor & v ) { v.visit( this ); }
725 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
726 virtual void print( std::ostream & os, int indent = 0 ) const;
[3b58d91]727 private:
[d5556a3]728 StmtExpr * stmtExpr = nullptr;
[3b58d91]729};
730
[6eb8948]731/// StmtExpr represents a GCC 'statement expression', e.g. ({ int x = 5; x; })
732class StmtExpr : public Expression {
733public:
[5ded739]734 StmtExpr( CompoundStmt * statements );
[6eb8948]735 StmtExpr( const StmtExpr & other );
736 virtual ~StmtExpr();
[3b58d91]737
[6eb8948]738 CompoundStmt * get_statements() const { return statements; }
739 StmtExpr * set_statements( CompoundStmt * newValue ) { statements = newValue; return this; }
[3b58d91]740
[d5556a3]741 std::list< ObjectDecl * > & get_returnDecls() { return returnDecls; }
742 std::list< Expression * > & get_dtors() { return dtors; }
743
[5ded739]744 virtual StmtExpr * clone() const { return new StmtExpr( * this ); }
745 virtual void accept( Visitor & v ) { v.visit( this ); }
746 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
747 virtual void print( std::ostream & os, int indent = 0 ) const;
[6eb8948]748private:
749 CompoundStmt * statements;
[d5556a3]750 std::list< ObjectDecl * > returnDecls; // return variable(s) for stmt expression
751 std::list< Expression * > dtors; // destructor(s) for return variable(s)
[3b58d91]752};
753
[3c13c03]754class UniqueExpr : public Expression {
755public:
[bf32bb8]756 UniqueExpr( Expression * expr, long long idVal = -1 );
[3c13c03]757 UniqueExpr( const UniqueExpr & other );
758 ~UniqueExpr();
759
[141b786]760 Expression * get_expr() const { return expr; }
761 UniqueExpr * set_expr( Expression * newValue ) { expr = newValue; return this; }
[3c13c03]762
[141b786]763 ObjectDecl * get_object() const { return object; }
764 UniqueExpr * set_object( ObjectDecl * newValue ) { object = newValue; return this; }
765
766 VariableExpr * get_var() const { return var; }
767 UniqueExpr * set_var( VariableExpr * newValue ) { var = newValue; return this; }
[77971f6]768
[bf32bb8]769 int get_id() const { return id; }
770
[5ded739]771 virtual UniqueExpr * clone() const { return new UniqueExpr( * this ); }
772 virtual void accept( Visitor & v ) { v.visit( this ); }
773 virtual Expression * acceptMutator( Mutator & m ) { return m.mutate( this ); }
774 virtual void print( std::ostream & os, int indent = 0 ) const;
[3c13c03]775private:
[141b786]776 Expression * expr;
777 ObjectDecl * object;
778 VariableExpr * var;
[bf32bb8]779 int id;
780 static long long count;
[3c13c03]781};
782
[3906301]783std::ostream & operator<<( std::ostream & out, const Expression * expr );
[baf7fee]784
[0dd3a2f]785#endif // EXPRESSION_H
[51b73452]786
[0dd3a2f]787// Local Variables: //
788// tab-width: 4 //
789// mode: c++ //
790// compile-command: "make install" //
791// End: //
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