[54e41b3] | 1 | //
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| 2 | // Cforall Version 1.0.0 Copyright (C) 2015 University of Waterloo
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| 3 | //
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| 4 | // The contents of this file are covered under the licence agreement in the
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| 5 | // file "LICENCE" distributed with Cforall.
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| 6 | //
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| 7 | // Expr.cpp --
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| 8 | //
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| 9 | // Author : Aaron B. Moss
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| 10 | // Created On : Wed May 15 17:00:00 2019
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[312029a] | 11 | // Last Modified By : Peter A. Buhr
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[d76f32c] | 12 | // Created On : Thr Jun 13 13:38:00 2019
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[312029a] | 13 | // Update Count : 6
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[54e41b3] | 14 | //
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| 15 |
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| 16 | #include "Expr.hpp"
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| 17 |
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| 18 | #include <cassert> // for strict_dynamic_cast
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| 19 | #include <string> // for to_string
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| 20 | #include <vector>
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| 21 |
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[2890212] | 22 | #include "Copy.hpp" // for shallowCopy
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[417117e] | 23 | #include "Eval.hpp" // for call
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[d8938622] | 24 | #include "GenericSubstitution.hpp"
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[cf32116] | 25 | #include "LinkageSpec.hpp"
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[9b4f329] | 26 | #include "Stmt.hpp"
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[54e41b3] | 27 | #include "Type.hpp"
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[d8938622] | 28 | #include "TypeSubstitution.hpp"
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[733074e] | 29 | #include "Common/utility.h"
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[54e41b3] | 30 | #include "Common/SemanticError.h"
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| 31 | #include "GenPoly/Lvalue.h" // for referencesPermissable
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[cf32116] | 32 | #include "InitTweak/InitTweak.h" // for getFunction, getPointerBase
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[54e41b3] | 33 | #include "ResolvExpr/typeops.h" // for extractResultType
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[9b4f329] | 34 | #include "Tuples/Tuples.h" // for makeTupleType
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[54e41b3] | 35 |
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| 36 | namespace ast {
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| 37 |
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[cf32116] | 38 | namespace {
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| 39 | std::set<std::string> const lvalueFunctionNames = {"*?", "?[?]"};
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| 40 | }
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| 41 |
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| 42 | // --- Expr
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| 43 | bool Expr::get_lvalue() const {
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| 44 | return false;
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| 45 | }
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| 46 |
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[54e41b3] | 47 | // --- ApplicationExpr
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| 48 |
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[87701b6] | 49 | ApplicationExpr::ApplicationExpr( const CodeLocation & loc, const Expr * f,
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| 50 | std::vector<ptr<Expr>> && as )
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| 51 | : Expr( loc ), func( f ), args( std::move(as) ) {
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[54e41b3] | 52 | // ensure that `ApplicationExpr` result type is `FuncExpr`
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| 53 | const PointerType * pt = strict_dynamic_cast< const PointerType * >( f->result.get() );
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| 54 | const FunctionType * fn = strict_dynamic_cast< const FunctionType * >( pt->base.get() );
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| 55 |
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| 56 | result = ResolvExpr::extractResultType( fn );
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| 57 | assert( result );
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| 58 | }
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| 59 |
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[cf32116] | 60 | bool ApplicationExpr::get_lvalue() const {
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| 61 | if ( const DeclWithType * func = InitTweak::getFunction( this ) ) {
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| 62 | return func->linkage == Linkage::Intrinsic && lvalueFunctionNames.count( func->name );
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| 63 | }
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| 64 | return false;
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| 65 | }
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| 66 |
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[54e41b3] | 67 | // --- UntypedExpr
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| 68 |
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| 69 | UntypedExpr * UntypedExpr::createDeref( const CodeLocation & loc, Expr * arg ) {
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| 70 | assert( arg );
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| 71 |
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[417117e] | 72 | UntypedExpr * ret = call( loc, "*?", arg );
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[54e41b3] | 73 | if ( const Type * ty = arg->result ) {
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| 74 | const Type * base = InitTweak::getPointerBase( ty );
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| 75 | assertf( base, "expected pointer type in dereference (type was %s)", toString( ty ).c_str() );
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| 76 |
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| 77 | if ( GenPoly::referencesPermissable() ) {
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| 78 | // if references are still allowed in the AST, dereference returns a reference
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| 79 | ret->result = new ReferenceType{ base };
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| 80 | } else {
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[87701b6] | 81 | // references have been removed, in which case dereference returns an lvalue of the
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[54e41b3] | 82 | // base type
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[d76c588] | 83 | ret->result = base;
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[54e41b3] | 84 | }
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| 85 | }
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| 86 | return ret;
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| 87 | }
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| 88 |
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[cf32116] | 89 | bool UntypedExpr::get_lvalue() const {
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| 90 | std::string fname = InitTweak::getFunctionName( this );
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| 91 | return lvalueFunctionNames.count( fname );
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| 92 | }
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| 93 |
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[54e41b3] | 94 | UntypedExpr * UntypedExpr::createAssign( const CodeLocation & loc, Expr * lhs, Expr * rhs ) {
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| 95 | assert( lhs && rhs );
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| 96 |
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[417117e] | 97 | UntypedExpr * ret = call( loc, "?=?", lhs, rhs );
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[54e41b3] | 98 | if ( lhs->result && rhs->result ) {
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| 99 | // if both expressions are typed, assumes that this assignment is a C bitwise assignment,
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| 100 | // so the result is the type of the RHS
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| 101 | ret->result = rhs->result;
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| 102 | }
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| 103 | return ret;
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| 104 | }
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| 105 |
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| 106 | // --- AddressExpr
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| 107 |
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| 108 | // Address expressions are typed based on the following inference rules:
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| 109 | // E : lvalue T &..& (n references)
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| 110 | // &E : T *&..& (n references)
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| 111 | //
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| 112 | // E : T &..& (m references)
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| 113 | // &E : T *&..& (m-1 references)
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| 114 |
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| 115 | namespace {
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| 116 | /// The type of the address of a type.
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| 117 | /// Caller is responsible for managing returned memory
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| 118 | Type * addrType( const Type * type ) {
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| 119 | if ( const ReferenceType * refType = dynamic_cast< const ReferenceType * >( type ) ) {
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| 120 | return new ReferenceType{ addrType( refType->base ), refType->qualifiers };
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| 121 | } else {
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| 122 | return new PointerType{ type };
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| 123 | }
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| 124 | }
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| 125 | }
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| 126 |
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| 127 | AddressExpr::AddressExpr( const CodeLocation & loc, const Expr * a ) : Expr( loc ), arg( a ) {
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| 128 | if ( arg->result ) {
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[cf32116] | 129 | if ( arg->get_lvalue() ) {
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[54e41b3] | 130 | // lvalue, retains all levels of reference, and gains a pointer inside the references
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| 131 | Type * res = addrType( arg->result );
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| 132 | result = res;
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| 133 | } else {
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| 134 | // taking address of non-lvalue, must be a reference, loses one layer of reference
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[87701b6] | 135 | if ( const ReferenceType * refType =
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[54e41b3] | 136 | dynamic_cast< const ReferenceType * >( arg->result.get() ) ) {
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| 137 | Type * res = addrType( refType->base );
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| 138 | result = res;
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| 139 | } else {
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[10a1225] | 140 | SemanticError( loc, arg->result.get(),
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[54e41b3] | 141 | "Attempt to take address of non-lvalue expression: " );
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| 142 | }
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| 143 | }
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| 144 | }
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| 145 | }
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| 146 |
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| 147 | // --- LabelAddressExpr
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| 148 |
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| 149 | // label address always has type `void*`
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[87701b6] | 150 | LabelAddressExpr::LabelAddressExpr( const CodeLocation & loc, Label && a )
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[54e41b3] | 151 | : Expr( loc, new PointerType{ new VoidType{} } ), arg( a ) {}
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| 152 |
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| 153 | // --- CastExpr
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| 154 |
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[87701b6] | 155 | CastExpr::CastExpr( const CodeLocation & loc, const Expr * a, GeneratedFlag g )
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[54e41b3] | 156 | : Expr( loc, new VoidType{} ), arg( a ), isGenerated( g ) {}
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| 157 |
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[cf32116] | 158 | bool CastExpr::get_lvalue() const {
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| 159 | // This is actually wrong by C, but it works with our current set-up.
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| 160 | return arg->get_lvalue();
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| 161 | }
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| 162 |
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[54e41b3] | 163 | // --- KeywordCastExpr
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| 164 |
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[312029a] | 165 | const char * KeywordCastExpr::targetString() const {
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| 166 | return AggregateDecl::aggrString( target );
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[54e41b3] | 167 | }
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| 168 |
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[cf32116] | 169 | // --- UntypedMemberExpr
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| 170 |
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| 171 | bool UntypedMemberExpr::get_lvalue() const {
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| 172 | return aggregate->get_lvalue();
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| 173 | }
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| 174 |
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[54e41b3] | 175 | // --- MemberExpr
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| 176 |
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| 177 | MemberExpr::MemberExpr( const CodeLocation & loc, const DeclWithType * mem, const Expr * agg )
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| 178 | : Expr( loc ), member( mem ), aggregate( agg ) {
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| 179 | assert( member );
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| 180 | assert( aggregate );
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| 181 | assert( aggregate->result );
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| 182 |
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[ae265b55] | 183 | // Deep copy on result type avoids mutation on transitively multiply referenced object.
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| 184 | //
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| 185 | // Example, adapted from parts of builtins and bootloader:
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| 186 | //
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| 187 | // forall(dtype T)
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| 188 | // struct __Destructor {
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| 189 | // T * object;
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| 190 | // void (*dtor)(T *);
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| 191 | // };
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| 192 | //
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| 193 | // forall(dtype S)
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| 194 | // void foo(__Destructor(S) &d) {
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| 195 | // if (d.dtor) { // here
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| 196 | // }
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| 197 | // }
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| 198 | //
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| 199 | // Let e be the "d.dtor" guard espression, which is MemberExpr after resolve. Let d be the
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| 200 | // declaration of member __Destructor.dtor (an ObjectDecl), as accessed via the top-level
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| 201 | // declaration of __Destructor. Consider the types e.result and d.type. In the old AST, one
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| 202 | // is a clone of the other. Ordinary new-AST use would set them up as a multiply-referenced
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| 203 | // object.
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| 204 | //
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| 205 | // e.result: PointerType
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| 206 | // .base: FunctionType
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| 207 | // .params.front(): ObjectDecl, the anonymous parameter of type T*
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| 208 | // .type: PointerType
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| 209 | // .base: TypeInstType
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| 210 | // let x = that
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| 211 | // let y = similar, except start from d.type
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| 212 | //
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| 213 | // Consider two code lines down, genericSubstitution(...).apply(result).
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| 214 | //
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| 215 | // Applying this chosen-candidate's type substitution means modifying x, substituting
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| 216 | // S for T. This mutation should affect x and not y.
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| 217 |
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| 218 | result = deepCopy(mem->get_type());
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| 219 |
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[335f2d8] | 220 | // substitute aggregate generic parameters into member type
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[60aaa51d] | 221 | genericSubstitution( aggregate->result ).apply( result );
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[3f3bfe5a] | 222 | // ensure appropriate restrictions from aggregate type
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| 223 | add_qualifiers( result, aggregate->result->qualifiers );
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[54e41b3] | 224 | }
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| 225 |
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[ae265b55] | 226 | MemberExpr::MemberExpr( const CodeLocation & loc, const DeclWithType * mem, const Expr * agg,
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| 227 | MemberExpr::NoOpConstruction overloadSelector )
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| 228 | : Expr( loc ), member( mem ), aggregate( agg ) {
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| 229 | assert( member );
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| 230 | assert( aggregate );
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| 231 | assert( aggregate->result );
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| 232 | (void) overloadSelector;
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| 233 | }
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| 234 |
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[cf32116] | 235 | bool MemberExpr::get_lvalue() const {
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| 236 | // This is actually wrong by C, but it works with our current set-up.
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| 237 | return true;
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| 238 | }
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| 239 |
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[54e41b3] | 240 | // --- VariableExpr
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| 241 |
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[546e712] | 242 | VariableExpr::VariableExpr( const CodeLocation & loc )
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| 243 | : Expr( loc ), var( nullptr ) {}
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| 244 |
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[54e41b3] | 245 | VariableExpr::VariableExpr( const CodeLocation & loc, const DeclWithType * v )
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| 246 | : Expr( loc ), var( v ) {
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| 247 | assert( var );
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| 248 | assert( var->get_type() );
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[3f3bfe5a] | 249 | result = shallowCopy( var->get_type() );
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[54e41b3] | 250 | }
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| 251 |
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[cf32116] | 252 | bool VariableExpr::get_lvalue() const {
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| 253 | // It isn't always an lvalue, but it is never an rvalue.
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| 254 | return true;
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| 255 | }
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| 256 |
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[87701b6] | 257 | VariableExpr * VariableExpr::functionPointer(
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[54e41b3] | 258 | const CodeLocation & loc, const FunctionDecl * decl ) {
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| 259 | // wrap usually-determined result type in a pointer
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| 260 | VariableExpr * funcExpr = new VariableExpr{ loc, decl };
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| 261 | funcExpr->result = new PointerType{ funcExpr->result };
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| 262 | return funcExpr;
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| 263 | }
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| 264 |
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| 265 | // --- ConstantExpr
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| 266 |
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| 267 | long long int ConstantExpr::intValue() const {
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| 268 | if ( const BasicType * bty = result.as< BasicType >() ) {
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| 269 | if ( bty->isInteger() ) {
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[c36298d] | 270 | assert(ival);
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| 271 | return ival.value();
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[54e41b3] | 272 | }
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| 273 | } else if ( result.as< ZeroType >() ) {
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| 274 | return 0;
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| 275 | } else if ( result.as< OneType >() ) {
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| 276 | return 1;
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| 277 | }
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| 278 | SemanticError( this, "Constant expression of non-integral type " );
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| 279 | }
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| 280 |
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| 281 | ConstantExpr * ConstantExpr::from_bool( const CodeLocation & loc, bool b ) {
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[87701b6] | 282 | return new ConstantExpr{
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[54e41b3] | 283 | loc, new BasicType{ BasicType::Bool }, b ? "1" : "0", (unsigned long long)b };
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| 284 | }
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| 285 |
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| 286 | ConstantExpr * ConstantExpr::from_int( const CodeLocation & loc, int i ) {
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[87701b6] | 287 | return new ConstantExpr{
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[54e41b3] | 288 | loc, new BasicType{ BasicType::SignedInt }, std::to_string( i ), (unsigned long long)i };
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| 289 | }
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| 290 |
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| 291 | ConstantExpr * ConstantExpr::from_ulong( const CodeLocation & loc, unsigned long i ) {
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[87701b6] | 292 | return new ConstantExpr{
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| 293 | loc, new BasicType{ BasicType::LongUnsignedInt }, std::to_string( i ),
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[54e41b3] | 294 | (unsigned long long)i };
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| 295 | }
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| 296 |
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| 297 | ConstantExpr * ConstantExpr::null( const CodeLocation & loc, const Type * ptrType ) {
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| 298 | return new ConstantExpr{
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| 299 | loc, ptrType ? ptrType : new PointerType{ new VoidType{} }, "0", (unsigned long long)0 };
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| 300 | }
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| 301 |
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| 302 | // --- SizeofExpr
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| 303 |
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| 304 | SizeofExpr::SizeofExpr( const CodeLocation & loc, const Expr * e )
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| 305 | : Expr( loc, new BasicType{ BasicType::LongUnsignedInt } ), expr( e ), type( nullptr ) {}
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| 306 |
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| 307 | SizeofExpr::SizeofExpr( const CodeLocation & loc, const Type * t )
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| 308 | : Expr( loc, new BasicType{ BasicType::LongUnsignedInt } ), expr( nullptr ), type( t ) {}
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| 309 |
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| 310 | // --- AlignofExpr
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| 311 |
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| 312 | AlignofExpr::AlignofExpr( const CodeLocation & loc, const Expr * e )
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| 313 | : Expr( loc, new BasicType{ BasicType::LongUnsignedInt } ), expr( e ), type( nullptr ) {}
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| 314 |
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| 315 | AlignofExpr::AlignofExpr( const CodeLocation & loc, const Type * t )
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| 316 | : Expr( loc, new BasicType{ BasicType::LongUnsignedInt } ), expr( nullptr ), type( t ) {}
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| 317 |
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| 318 | // --- OffsetofExpr
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| 319 |
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| 320 | OffsetofExpr::OffsetofExpr( const CodeLocation & loc, const Type * ty, const DeclWithType * mem )
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| 321 | : Expr( loc, new BasicType{ BasicType::LongUnsignedInt } ), type( ty ), member( mem ) {
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| 322 | assert( type );
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| 323 | assert( member );
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| 324 | }
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| 325 |
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| 326 | // --- OffsetPackExpr
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| 327 |
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| 328 | OffsetPackExpr::OffsetPackExpr( const CodeLocation & loc, const StructInstType * ty )
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[87701b6] | 329 | : Expr( loc, new ArrayType{
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| 330 | new BasicType{ BasicType::LongUnsignedInt }, nullptr, FixedLen, DynamicDim }
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[54e41b3] | 331 | ), type( ty ) {
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| 332 | assert( type );
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| 333 | }
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| 334 |
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| 335 | // --- LogicalExpr
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| 336 |
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[87701b6] | 337 | LogicalExpr::LogicalExpr(
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[54e41b3] | 338 | const CodeLocation & loc, const Expr * a1, const Expr * a2, LogicalFlag ia )
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| 339 | : Expr( loc, new BasicType{ BasicType::SignedInt } ), arg1( a1 ), arg2( a2 ), isAnd( ia ) {}
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| 340 |
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[cf32116] | 341 | // --- CommaExpr
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| 342 | bool CommaExpr::get_lvalue() const {
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| 343 | // This is wrong by C, but the current implementation uses it.
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| 344 | // (ex: Specialize, Lvalue and Box)
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| 345 | return arg2->get_lvalue();
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| 346 | }
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| 347 |
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[9b4f329] | 348 | // --- ConstructorExpr
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| 349 |
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[10a1225] | 350 | ConstructorExpr::ConstructorExpr( const CodeLocation & loc, const Expr * call )
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[9b4f329] | 351 | : Expr( loc ), callExpr( call ) {
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[10a1225] | 352 | // allow resolver to type a constructor used as an expression if it has the same type as its
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[9b4f329] | 353 | // first argument
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| 354 | assert( callExpr );
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| 355 | const Expr * arg = InitTweak::getCallArg( callExpr, 0 );
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| 356 | assert( arg );
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| 357 | result = arg->result;
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| 358 | }
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| 359 |
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| 360 | // --- CompoundLiteralExpr
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| 361 |
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| 362 | CompoundLiteralExpr::CompoundLiteralExpr( const CodeLocation & loc, const Type * t, const Init * i )
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| 363 | : Expr( loc ), init( i ) {
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| 364 | assert( t && i );
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[d76c588] | 365 | result = t;
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[9b4f329] | 366 | }
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| 367 |
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[cf32116] | 368 | bool CompoundLiteralExpr::get_lvalue() const {
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| 369 | return true;
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| 370 | }
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| 371 |
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[9b4f329] | 372 | // --- TupleExpr
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| 373 |
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| 374 | TupleExpr::TupleExpr( const CodeLocation & loc, std::vector<ptr<Expr>> && xs )
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| 375 | : Expr( loc, Tuples::makeTupleType( xs ) ), exprs( xs ) {}
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| 376 |
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| 377 | // --- TupleIndexExpr
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| 378 |
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| 379 | TupleIndexExpr::TupleIndexExpr( const CodeLocation & loc, const Expr * t, unsigned i )
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| 380 | : Expr( loc ), tuple( t ), index( i ) {
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[10a1225] | 381 | const TupleType * type = strict_dynamic_cast< const TupleType * >( tuple->result.get() );
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[9b4f329] | 382 | assertf( type->size() > index, "TupleIndexExpr index out of bounds: tuple size %d, requested "
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| 383 | "index %d in expr %s", type->size(), index, toString( tuple ).c_str() );
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| 384 | // like MemberExpr, TupleIndexExpr is always an lvalue
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[d76c588] | 385 | result = type->types[ index ];
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[9b4f329] | 386 | }
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| 387 |
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[cf32116] | 388 | bool TupleIndexExpr::get_lvalue() const {
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| 389 | return tuple->get_lvalue();
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| 390 | }
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| 391 |
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[9b4f329] | 392 | // --- TupleAssignExpr
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| 393 |
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[10a1225] | 394 | TupleAssignExpr::TupleAssignExpr(
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| 395 | const CodeLocation & loc, std::vector<ptr<Expr>> && assigns,
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[9b4f329] | 396 | std::vector<ptr<ObjectDecl>> && tempDecls )
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| 397 | : Expr( loc, Tuples::makeTupleType( assigns ) ), stmtExpr() {
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[10a1225] | 398 | // convert internally into a StmtExpr which contains the declarations and produces the tuple of
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[9b4f329] | 399 | // the assignments
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| 400 | std::list<ptr<Stmt>> stmts;
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| 401 | for ( const ObjectDecl * obj : tempDecls ) {
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| 402 | stmts.emplace_back( new DeclStmt{ loc, obj } );
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| 403 | }
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| 404 | TupleExpr * tupleExpr = new TupleExpr{ loc, std::move(assigns) };
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| 405 | assert( tupleExpr->result );
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| 406 | stmts.emplace_back( new ExprStmt{ loc, tupleExpr } );
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| 407 | stmtExpr = new StmtExpr{ loc, new CompoundStmt{ loc, std::move(stmts) } };
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| 408 | }
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| 409 |
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[0b57626] | 410 | TupleAssignExpr::TupleAssignExpr(
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[20de6fb] | 411 | const CodeLocation & loc, const Type * result, const StmtExpr * s )
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| 412 | : Expr( loc, result ), stmtExpr() {
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| 413 | stmtExpr = s;
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| 414 | }
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| 415 |
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[9b4f329] | 416 | // --- StmtExpr
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| 417 |
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[10a1225] | 418 | StmtExpr::StmtExpr( const CodeLocation & loc, const CompoundStmt * ss )
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[9b4f329] | 419 | : Expr( loc ), stmts( ss ), returnDecls(), dtors() { computeResult(); }
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| 420 |
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| 421 | void StmtExpr::computeResult() {
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| 422 | assert( stmts );
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| 423 | const std::list<ptr<Stmt>> & body = stmts->kids;
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| 424 | if ( ! returnDecls.empty() ) {
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[10a1225] | 425 | // prioritize return decl for result type, since if a return decl exists, then the StmtExpr
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[9b4f329] | 426 | // is currently in an intermediate state where the body will always give a void result type
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| 427 | result = returnDecls.front()->get_type();
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| 428 | } else if ( ! body.empty() ) {
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| 429 | if ( const ExprStmt * exprStmt = body.back().as< ExprStmt >() ) {
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| 430 | result = exprStmt->expr->result;
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| 431 | }
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| 432 | }
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| 433 | // ensure a result type exists
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| 434 | if ( ! result ) { result = new VoidType{}; }
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| 435 | }
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| 436 |
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| 437 | // --- UniqueExpr
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| 438 |
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| 439 | unsigned long long UniqueExpr::nextId = 0;
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| 440 |
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[10a1225] | 441 | UniqueExpr::UniqueExpr( const CodeLocation & loc, const Expr * e, unsigned long long i )
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[d76f32c] | 442 | : Expr( loc, e->result ), expr( e ), id( i ) {
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[9b4f329] | 443 | assert( expr );
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[10a1225] | 444 | if ( id == -1ull ) {
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| 445 | assert( nextId != -1ull );
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[9b4f329] | 446 | id = nextId++;
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| 447 | }
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[54e41b3] | 448 | }
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| 449 |
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[10a1225] | 450 | }
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| 451 |
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[54e41b3] | 452 | // Local Variables: //
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| 453 | // tab-width: 4 //
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| 454 | // mode: c++ //
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| 455 | // compile-command: "make install" //
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[d76f32c] | 456 | // End: //
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