source: src/AST/Expr.cpp@ 9d6e7fa9

ADT arm-eh ast-experimental cleanup-dtors enum forall-pointer-decay jacob/cs343-translation jenkins-sandbox new-ast new-ast-unique-expr pthread-emulation qualifiedEnum
Last change on this file since 9d6e7fa9 was 335f2d8, checked in by Thierry Delisle <tdelisle@…>, 6 years ago

Fixed some warnings and implemented memberExpr ctor and extractResultType

  • Property mode set to 100644
File size: 12.6 KB
Line 
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// Expr.cpp --
8//
9// Author : Aaron B. Moss
10// Created On : Wed May 15 17:00:00 2019
11// Last Modified By : Aaron B. Moss
12// Created On : Wed May 15 17:00:00 2019
13// Update Count : 1
14//
15
16#include "Expr.hpp"
17
18#include <cassert> // for strict_dynamic_cast
19#include <string> // for to_string
20#include <vector>
21
22#include "GenericSubstitution.hpp"
23#include "Stmt.hpp"
24#include "Type.hpp"
25#include "TypeSubstitution.hpp"
26#include "Common/utility.h"
27#include "Common/SemanticError.h"
28#include "GenPoly/Lvalue.h" // for referencesPermissable
29#include "InitTweak/InitTweak.h" // for getPointerBase
30#include "ResolvExpr/typeops.h" // for extractResultType
31#include "Tuples/Tuples.h" // for makeTupleType
32
33namespace ast {
34
35// --- ApplicationExpr
36
37ApplicationExpr::ApplicationExpr( const CodeLocation & loc, const Expr * f,
38 std::vector<ptr<Expr>> && as )
39: Expr( loc ), func( f ), args( std::move(as) ) {
40 // ensure that `ApplicationExpr` result type is `FuncExpr`
41 const PointerType * pt = strict_dynamic_cast< const PointerType * >( f->result.get() );
42 const FunctionType * fn = strict_dynamic_cast< const FunctionType * >( pt->base.get() );
43
44 result = ResolvExpr::extractResultType( fn );
45 assert( result );
46}
47
48// --- UntypedExpr
49
50UntypedExpr * UntypedExpr::createDeref( const CodeLocation & loc, Expr * arg ) {
51 assert( arg );
52
53 UntypedExpr * ret = new UntypedExpr{
54 loc, new NameExpr{loc, "*?"}, std::vector<ptr<Expr>>{ ptr<Expr>{ arg } }
55 };
56 if ( const Type * ty = arg->result ) {
57 const Type * base = InitTweak::getPointerBase( ty );
58 assertf( base, "expected pointer type in dereference (type was %s)", toString( ty ).c_str() );
59
60 if ( GenPoly::referencesPermissable() ) {
61 // if references are still allowed in the AST, dereference returns a reference
62 ret->result = new ReferenceType{ base };
63 } else {
64 // references have been removed, in which case dereference returns an lvalue of the
65 // base type
66 ret->result.set_and_mutate( base )->set_lvalue( true );
67 }
68 }
69 return ret;
70}
71
72UntypedExpr * UntypedExpr::createAssign( const CodeLocation & loc, Expr * lhs, Expr * rhs ) {
73 assert( lhs && rhs );
74
75 UntypedExpr * ret = new UntypedExpr{
76 loc, new NameExpr{loc, "?=?"}, std::vector<ptr<Expr>>{ ptr<Expr>{ lhs }, ptr<Expr>{ rhs } }
77 };
78 if ( lhs->result && rhs->result ) {
79 // if both expressions are typed, assumes that this assignment is a C bitwise assignment,
80 // so the result is the type of the RHS
81 ret->result = rhs->result;
82 }
83 return ret;
84}
85
86// --- AddressExpr
87
88// Address expressions are typed based on the following inference rules:
89// E : lvalue T &..& (n references)
90// &E : T *&..& (n references)
91//
92// E : T &..& (m references)
93// &E : T *&..& (m-1 references)
94
95namespace {
96 /// The type of the address of a type.
97 /// Caller is responsible for managing returned memory
98 Type * addrType( const Type * type ) {
99 if ( const ReferenceType * refType = dynamic_cast< const ReferenceType * >( type ) ) {
100 return new ReferenceType{ addrType( refType->base ), refType->qualifiers };
101 } else {
102 return new PointerType{ type };
103 }
104 }
105}
106
107AddressExpr::AddressExpr( const CodeLocation & loc, const Expr * a ) : Expr( loc ), arg( a ) {
108 if ( arg->result ) {
109 if ( arg->result->is_lvalue() ) {
110 // lvalue, retains all levels of reference, and gains a pointer inside the references
111 Type * res = addrType( arg->result );
112 res->set_lvalue( false ); // result of & is never an lvalue
113 result = res;
114 } else {
115 // taking address of non-lvalue, must be a reference, loses one layer of reference
116 if ( const ReferenceType * refType =
117 dynamic_cast< const ReferenceType * >( arg->result.get() ) ) {
118 Type * res = addrType( refType->base );
119 res->set_lvalue( false ); // result of & is never an lvalue
120 result = res;
121 } else {
122 SemanticError( loc, arg->result.get(),
123 "Attempt to take address of non-lvalue expression: " );
124 }
125 }
126 }
127}
128
129// --- LabelAddressExpr
130
131// label address always has type `void*`
132LabelAddressExpr::LabelAddressExpr( const CodeLocation & loc, Label && a )
133: Expr( loc, new PointerType{ new VoidType{} } ), arg( a ) {}
134
135// --- CastExpr
136
137CastExpr::CastExpr( const CodeLocation & loc, const Expr * a, GeneratedFlag g )
138: Expr( loc, new VoidType{} ), arg( a ), isGenerated( g ) {}
139
140// --- KeywordCastExpr
141
142const std::string & KeywordCastExpr::targetString() const {
143 static const std::string targetStrs[] = {
144 "coroutine", "thread", "monitor"
145 };
146 static_assert(
147 (sizeof(targetStrs) / sizeof(targetStrs[0])) == ((unsigned long)NUMBER_OF_TARGETS),
148 "Each KeywordCastExpr::Target should have a corresponding string representation"
149 );
150 return targetStrs[(unsigned long)target];
151}
152
153// --- MemberExpr
154
155MemberExpr::MemberExpr( const CodeLocation & loc, const DeclWithType * mem, const Expr * agg )
156: Expr( loc ), member( mem ), aggregate( agg ) {
157 assert( member );
158 assert( aggregate );
159 assert( aggregate->result );
160
161 // take ownership of member type
162 result = mem->get_type();
163 // substitute aggregate generic parameters into member type
164 genericSubsitution( aggregate->result ).apply( result );
165 // ensure lvalue and appropriate restrictions from aggregate type
166 result.get_and_mutate()->qualifiers |= aggregate->result->qualifiers | CV::Lvalue;
167}
168
169// --- VariableExpr
170
171VariableExpr::VariableExpr( const CodeLocation & loc, const DeclWithType * v )
172: Expr( loc ), var( v ) {
173 assert( var );
174 assert( var->get_type() );
175 result.set_and_mutate( var->get_type() )->set_lvalue( true );
176}
177
178VariableExpr * VariableExpr::functionPointer(
179 const CodeLocation & loc, const FunctionDecl * decl ) {
180 // wrap usually-determined result type in a pointer
181 VariableExpr * funcExpr = new VariableExpr{ loc, decl };
182 funcExpr->result = new PointerType{ funcExpr->result };
183 return funcExpr;
184}
185
186// --- ConstantExpr
187
188long long int ConstantExpr::intValue() const {
189 if ( const BasicType * bty = result.as< BasicType >() ) {
190 if ( bty->isInteger() ) {
191 return val.ival;
192 }
193 } else if ( result.as< ZeroType >() ) {
194 return 0;
195 } else if ( result.as< OneType >() ) {
196 return 1;
197 }
198 SemanticError( this, "Constant expression of non-integral type " );
199}
200
201double ConstantExpr::floatValue() const {
202 if ( const BasicType * bty = result.as< BasicType >() ) {
203 if ( ! bty->isInteger() ) {
204 return val.dval;
205 }
206 }
207 SemanticError( this, "Constant expression of non-floating-point type " );
208}
209
210ConstantExpr * ConstantExpr::from_bool( const CodeLocation & loc, bool b ) {
211 return new ConstantExpr{
212 loc, new BasicType{ BasicType::Bool }, b ? "1" : "0", (unsigned long long)b };
213}
214
215ConstantExpr * ConstantExpr::from_char( const CodeLocation & loc, char c ) {
216 return new ConstantExpr{
217 loc, new BasicType{ BasicType::Char }, std::to_string( c ), (unsigned long long)c };
218}
219
220ConstantExpr * ConstantExpr::from_int( const CodeLocation & loc, int i ) {
221 return new ConstantExpr{
222 loc, new BasicType{ BasicType::SignedInt }, std::to_string( i ), (unsigned long long)i };
223}
224
225ConstantExpr * ConstantExpr::from_ulong( const CodeLocation & loc, unsigned long i ) {
226 return new ConstantExpr{
227 loc, new BasicType{ BasicType::LongUnsignedInt }, std::to_string( i ),
228 (unsigned long long)i };
229}
230
231ConstantExpr * ConstantExpr::from_double( const CodeLocation & loc, double d ) {
232 return new ConstantExpr{ loc, new BasicType{ BasicType::Double }, std::to_string( d ), d };
233}
234
235ConstantExpr * ConstantExpr::from_string( const CodeLocation & loc, const std::string & s ) {
236 return new ConstantExpr{
237 loc,
238 new ArrayType{
239 new BasicType{ BasicType::Char, CV::Const },
240 ConstantExpr::from_int( loc, s.size() + 1 /* null terminator */ ),
241 FixedLen, DynamicDim },
242 std::string{"\""} + s + "\"",
243 (unsigned long long)0 };
244}
245
246ConstantExpr * ConstantExpr::null( const CodeLocation & loc, const Type * ptrType ) {
247 return new ConstantExpr{
248 loc, ptrType ? ptrType : new PointerType{ new VoidType{} }, "0", (unsigned long long)0 };
249}
250
251// --- SizeofExpr
252
253SizeofExpr::SizeofExpr( const CodeLocation & loc, const Expr * e )
254: Expr( loc, new BasicType{ BasicType::LongUnsignedInt } ), expr( e ), type( nullptr ) {}
255
256SizeofExpr::SizeofExpr( const CodeLocation & loc, const Type * t )
257: Expr( loc, new BasicType{ BasicType::LongUnsignedInt } ), expr( nullptr ), type( t ) {}
258
259// --- AlignofExpr
260
261AlignofExpr::AlignofExpr( const CodeLocation & loc, const Expr * e )
262: Expr( loc, new BasicType{ BasicType::LongUnsignedInt } ), expr( e ), type( nullptr ) {}
263
264AlignofExpr::AlignofExpr( const CodeLocation & loc, const Type * t )
265: Expr( loc, new BasicType{ BasicType::LongUnsignedInt } ), expr( nullptr ), type( t ) {}
266
267// --- OffsetofExpr
268
269OffsetofExpr::OffsetofExpr( const CodeLocation & loc, const Type * ty, const DeclWithType * mem )
270: Expr( loc, new BasicType{ BasicType::LongUnsignedInt } ), type( ty ), member( mem ) {
271 assert( type );
272 assert( member );
273}
274
275// --- OffsetPackExpr
276
277OffsetPackExpr::OffsetPackExpr( const CodeLocation & loc, const StructInstType * ty )
278: Expr( loc, new ArrayType{
279 new BasicType{ BasicType::LongUnsignedInt }, nullptr, FixedLen, DynamicDim }
280), type( ty ) {
281 assert( type );
282}
283
284// --- LogicalExpr
285
286LogicalExpr::LogicalExpr(
287 const CodeLocation & loc, const Expr * a1, const Expr * a2, LogicalFlag ia )
288: Expr( loc, new BasicType{ BasicType::SignedInt } ), arg1( a1 ), arg2( a2 ), isAnd( ia ) {}
289
290// --- ConstructorExpr
291
292ConstructorExpr::ConstructorExpr( const CodeLocation & loc, const Expr * call )
293: Expr( loc ), callExpr( call ) {
294 // allow resolver to type a constructor used as an expression if it has the same type as its
295 // first argument
296 assert( callExpr );
297 const Expr * arg = InitTweak::getCallArg( callExpr, 0 );
298 assert( arg );
299 result = arg->result;
300}
301
302// --- CompoundLiteralExpr
303
304CompoundLiteralExpr::CompoundLiteralExpr( const CodeLocation & loc, const Type * t, const Init * i )
305: Expr( loc ), init( i ) {
306 assert( t && i );
307 result.set_and_mutate( t )->set_lvalue( true );
308}
309
310// --- TupleExpr
311
312TupleExpr::TupleExpr( const CodeLocation & loc, std::vector<ptr<Expr>> && xs )
313: Expr( loc, Tuples::makeTupleType( xs ) ), exprs( xs ) {}
314
315// --- TupleIndexExpr
316
317TupleIndexExpr::TupleIndexExpr( const CodeLocation & loc, const Expr * t, unsigned i )
318: Expr( loc ), tuple( t ), index( i ) {
319 const TupleType * type = strict_dynamic_cast< const TupleType * >( tuple->result.get() );
320 assertf( type->size() > index, "TupleIndexExpr index out of bounds: tuple size %d, requested "
321 "index %d in expr %s", type->size(), index, toString( tuple ).c_str() );
322 // like MemberExpr, TupleIndexExpr is always an lvalue
323 result.set_and_mutate( type->types[ index ] )->set_lvalue( true );
324}
325
326// --- TupleAssignExpr
327
328TupleAssignExpr::TupleAssignExpr(
329 const CodeLocation & loc, std::vector<ptr<Expr>> && assigns,
330 std::vector<ptr<ObjectDecl>> && tempDecls )
331: Expr( loc, Tuples::makeTupleType( assigns ) ), stmtExpr() {
332 // convert internally into a StmtExpr which contains the declarations and produces the tuple of
333 // the assignments
334 std::list<ptr<Stmt>> stmts;
335 for ( const ObjectDecl * obj : tempDecls ) {
336 stmts.emplace_back( new DeclStmt{ loc, obj } );
337 }
338 TupleExpr * tupleExpr = new TupleExpr{ loc, std::move(assigns) };
339 assert( tupleExpr->result );
340 stmts.emplace_back( new ExprStmt{ loc, tupleExpr } );
341 stmtExpr = new StmtExpr{ loc, new CompoundStmt{ loc, std::move(stmts) } };
342}
343
344TupleAssignExpr::TupleAssignExpr(
345 const CodeLocation & loc, const Type * result, const StmtExpr * s )
346: Expr( loc, result ), stmtExpr() {
347 stmtExpr = s;
348}
349
350// --- StmtExpr
351
352StmtExpr::StmtExpr( const CodeLocation & loc, const CompoundStmt * ss )
353: Expr( loc ), stmts( ss ), returnDecls(), dtors() { computeResult(); }
354
355void StmtExpr::computeResult() {
356 assert( stmts );
357 const std::list<ptr<Stmt>> & body = stmts->kids;
358 if ( ! returnDecls.empty() ) {
359 // prioritize return decl for result type, since if a return decl exists, then the StmtExpr
360 // is currently in an intermediate state where the body will always give a void result type
361 result = returnDecls.front()->get_type();
362 } else if ( ! body.empty() ) {
363 if ( const ExprStmt * exprStmt = body.back().as< ExprStmt >() ) {
364 result = exprStmt->expr->result;
365 }
366 }
367 // ensure a result type exists
368 if ( ! result ) { result = new VoidType{}; }
369}
370
371// --- UniqueExpr
372
373unsigned long long UniqueExpr::nextId = 0;
374
375UniqueExpr::UniqueExpr( const CodeLocation & loc, const Expr * e, unsigned long long i )
376: Expr( loc, e->result ), id( i ) {
377 assert( expr );
378 if ( id == -1ull ) {
379 assert( nextId != -1ull );
380 id = nextId++;
381 }
382}
383
384}
385
386// Local Variables: //
387// tab-width: 4 //
388// mode: c++ //
389// compile-command: "make install" //
390// End: //
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