| 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 | // SpecializeNew.cpp -- Generate thunks to specialize polymorphic functions. | 
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| 8 | // | 
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| 9 | // Author           : Andrew Beach | 
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| 10 | // Created On       : Tue Jun  7 13:37:00 2022 | 
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| 11 | // Last Modified By : Andrew Beach | 
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| 12 | // Last Modified On : Tue Jun  7 13:37:00 2022 | 
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| 13 | // Update Count     : 0 | 
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| 14 | // | 
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| 15 |  | 
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| 16 | #include "Specialize.h" | 
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| 17 |  | 
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| 18 | #include "AST/Inspect.hpp"               // for isIntrinsicCallExpr | 
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| 19 | #include "AST/Pass.hpp"                  // for Pass | 
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| 20 | #include "AST/TypeEnvironment.hpp"       // for OpenVarSet, AssertionSet | 
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| 21 | #include "Common/UniqueName.h"           // for UniqueName | 
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| 22 | #include "GenPoly/GenPoly.h"             // for getFunctionType | 
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| 23 | #include "ResolvExpr/FindOpenVars.h"     // for findOpenVars | 
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| 24 | #include "ResolvExpr/TypeEnvironment.h"  // for FirstOpen, FirstClosed | 
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| 25 |  | 
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| 26 | namespace GenPoly { | 
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| 27 |  | 
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| 28 | namespace { | 
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| 29 |  | 
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| 30 | struct SpecializeCore final : | 
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| 31 | public ast::WithConstTypeSubstitution, | 
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| 32 | public ast::WithDeclsToAdd<>, | 
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| 33 | public ast::WithVisitorRef<SpecializeCore> { | 
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| 34 | std::string paramPrefix = "_p"; | 
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| 35 |  | 
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| 36 | ast::ApplicationExpr * handleExplicitParams( | 
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| 37 | const ast::ApplicationExpr * expr ); | 
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| 38 | const ast::Expr * createThunkFunction( | 
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| 39 | const CodeLocation & location, | 
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| 40 | const ast::FunctionType * funType, | 
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| 41 | const ast::Expr * actual, | 
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| 42 | const ast::InferredParams * inferParams ); | 
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| 43 | const ast::Expr * doSpecialization( | 
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| 44 | const CodeLocation & location, | 
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| 45 | const ast::Type * formalType, | 
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| 46 | const ast::Expr * actual, | 
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| 47 | const ast::InferredParams * inferParams ); | 
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| 48 |  | 
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| 49 | const ast::Expr * postvisit( const ast::ApplicationExpr * expr ); | 
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| 50 | const ast::Expr * postvisit( const ast::CastExpr * expr ); | 
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| 51 | }; | 
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| 52 |  | 
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| 53 | const ast::InferredParams * getInferredParams( const ast::Expr * expr ) { | 
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| 54 | const ast::Expr::InferUnion & inferred = expr->inferred; | 
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| 55 | if ( inferred.hasParams() ) { | 
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| 56 | return &inferred.inferParams(); | 
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| 57 | } else { | 
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| 58 | return nullptr; | 
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| 59 | } | 
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| 60 | } | 
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| 61 |  | 
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| 62 | // Check if both types have the same structure. The leaf (non-tuple) types | 
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| 63 | // don't have to match but the tuples must match. | 
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| 64 | bool isTupleStructureMatching( const ast::Type * t0, const ast::Type * t1 ) { | 
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| 65 | const ast::TupleType * tt0 = dynamic_cast<const ast::TupleType *>( t0 ); | 
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| 66 | const ast::TupleType * tt1 = dynamic_cast<const ast::TupleType *>( t1 ); | 
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| 67 | if ( tt0 && tt1 ) { | 
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| 68 | if ( tt0->size() != tt1->size() ) { | 
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| 69 | return false; | 
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| 70 | } | 
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| 71 | for ( auto types : group_iterate( tt0->types, tt1->types ) ) { | 
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| 72 | if ( !isTupleStructureMatching( | 
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| 73 | std::get<0>( types ), std::get<1>( types ) ) ) { | 
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| 74 | return false; | 
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| 75 | } | 
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| 76 | } | 
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| 77 | return true; | 
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| 78 | } | 
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| 79 | return (!tt0 && !tt1); | 
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| 80 | } | 
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| 81 |  | 
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| 82 | // The number of elements in a type if it is a flattened tuple. | 
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| 83 | size_t flatTupleSize( const ast::Type * type ) { | 
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| 84 | if ( auto tuple = dynamic_cast<const ast::TupleType *>( type ) ) { | 
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| 85 | size_t sum = 0; | 
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| 86 | for ( auto t : *tuple ) { | 
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| 87 | sum += flatTupleSize( t ); | 
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| 88 | } | 
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| 89 | return sum; | 
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| 90 | } else { | 
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| 91 | return 1; | 
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| 92 | } | 
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| 93 | } | 
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| 94 |  | 
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| 95 | // Find the total number of components in a parameter list. | 
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| 96 | size_t functionParameterSize( const ast::FunctionType * type ) { | 
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| 97 | size_t sum = 0; | 
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| 98 | for ( auto param : type->params ) { | 
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| 99 | sum += flatTupleSize( param ); | 
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| 100 | } | 
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| 101 | return sum; | 
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| 102 | } | 
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| 103 |  | 
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| 104 | bool needsPolySpecialization( | 
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| 105 | const ast::Type * formalType, | 
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| 106 | const ast::Type * actualType, | 
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| 107 | const ast::TypeSubstitution * subs ) { | 
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| 108 | if ( !subs ) { | 
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| 109 | return false; | 
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| 110 | } | 
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| 111 |  | 
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| 112 | using namespace ResolvExpr; | 
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| 113 | ast::OpenVarSet openVars, closedVars; | 
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| 114 | ast::AssertionSet need, have; | 
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| 115 | findOpenVars( formalType, openVars, closedVars, need, have, FirstClosed ); | 
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| 116 | findOpenVars( actualType, openVars, closedVars, need, have, FirstOpen ); | 
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| 117 | for ( const ast::OpenVarSet::value_type & openVar : openVars ) { | 
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| 118 | const ast::Type * boundType = subs->lookup( openVar.first ); | 
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| 119 | // If the variable is not bound, move onto the next variable. | 
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| 120 | if ( !boundType ) continue; | 
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| 121 |  | 
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| 122 | // Is the variable cound to another type variable? | 
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| 123 | if ( auto inst = dynamic_cast<const ast::TypeInstType *>( boundType ) ) { | 
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| 124 | if ( closedVars.find( *inst ) == closedVars.end() ) { | 
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| 125 | return true; | 
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| 126 | } | 
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| 127 | // Otherwise, the variable is bound to a concrete type. | 
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| 128 | } else { | 
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| 129 | return true; | 
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| 130 | } | 
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| 131 | } | 
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| 132 | // None of the type variables are bound. | 
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| 133 | return false; | 
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| 134 | } | 
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| 135 |  | 
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| 136 | bool needsTupleSpecialization( | 
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| 137 | const ast::Type * formalType, const ast::Type * actualType ) { | 
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| 138 | // Needs tuple specialization if the structure of the formal type and | 
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| 139 | // actual type do not match. | 
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| 140 |  | 
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| 141 | // This is the case if the formal type has ttype polymorphism, or if the structure  of tuple types | 
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| 142 | // between the function do not match exactly. | 
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| 143 | if ( const ast::FunctionType * ftype = getFunctionType( formalType ) ) { | 
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| 144 | // A pack in the parameter or return type requires specialization. | 
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| 145 | if ( ftype->isTtype() ) { | 
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| 146 | return true; | 
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| 147 | } | 
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| 148 | // Conversion of 0 to a function type does not require specialization. | 
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| 149 | if ( dynamic_cast<const ast::ZeroType *>( actualType ) ) { | 
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| 150 | return false; | 
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| 151 | } | 
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| 152 | const ast::FunctionType * atype = | 
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| 153 | getFunctionType( actualType->stripReferences() ); | 
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| 154 | assertf( atype, | 
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| 155 | "formal type is a function type, but actual type is not: %s", | 
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| 156 | toString( actualType ).c_str() ); | 
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| 157 | // Can't tuple specialize if parameter sizes deeply-differ. | 
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| 158 | if ( functionParameterSize( ftype ) != functionParameterSize( atype ) ) { | 
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| 159 | return false; | 
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| 160 | } | 
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| 161 | // If tuple parameter size matches but actual parameter sizes differ | 
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| 162 | // then there needs to be specialization. | 
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| 163 | if ( ftype->params.size() != atype->params.size() ) { | 
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| 164 | return true; | 
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| 165 | } | 
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| 166 | // Total parameter size can be the same, while individual parameters | 
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| 167 | // can have different structure. | 
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| 168 | for ( auto pairs : group_iterate( ftype->params, atype->params ) ) { | 
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| 169 | if ( !isTupleStructureMatching( | 
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| 170 | std::get<0>( pairs ), std::get<1>( pairs ) ) ) { | 
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| 171 | return true; | 
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| 172 | } | 
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| 173 | } | 
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| 174 | } | 
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| 175 | return false; | 
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| 176 | } | 
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| 177 |  | 
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| 178 | bool needsSpecialization( | 
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| 179 | const ast::Type * formalType, const ast::Type * actualType, | 
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| 180 | const ast::TypeSubstitution * subs ) { | 
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| 181 | return needsPolySpecialization( formalType, actualType, subs ) | 
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| 182 | || needsTupleSpecialization( formalType, actualType ); | 
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| 183 | } | 
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| 184 |  | 
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| 185 | ast::ApplicationExpr * SpecializeCore::handleExplicitParams( | 
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| 186 | const ast::ApplicationExpr * expr ) { | 
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| 187 | assert( expr->func->result ); | 
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| 188 | const ast::FunctionType * func = getFunctionType( expr->func->result ); | 
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| 189 | assert( func ); | 
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| 190 |  | 
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| 191 | ast::ApplicationExpr * mut = ast::mutate( expr ); | 
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| 192 |  | 
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| 193 | std::vector<ast::ptr<ast::Type>>::const_iterator formal; | 
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| 194 | std::vector<ast::ptr<ast::Expr>>::iterator actual; | 
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| 195 | for ( formal = func->params.begin(), actual = mut->args.begin() ; | 
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| 196 | formal != func->params.end() && actual != mut->args.end() ; | 
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| 197 | ++formal, ++actual ) { | 
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| 198 | *actual = doSpecialization( (*actual)->location, | 
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| 199 | *formal, *actual, getInferredParams( expr ) ); | 
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| 200 | } | 
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| 201 | return mut; | 
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| 202 | } | 
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| 203 |  | 
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| 204 | // Explode assuming simple cases: either type is pure tuple (but not tuple | 
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| 205 | // expr) or type is non-tuple. | 
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| 206 | template<typename OutputIterator> | 
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| 207 | void explodeSimple( const CodeLocation & location, | 
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| 208 | const ast::Expr * expr, OutputIterator out ) { | 
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| 209 | // Recurse on tuple types using index expressions on each component. | 
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| 210 | if ( auto tuple = expr->result.as<ast::TupleType>() ) { | 
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| 211 | ast::ptr<ast::Expr> cleanup = expr; | 
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| 212 | for ( unsigned int i = 0 ; i < tuple->size() ; ++i ) { | 
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| 213 | explodeSimple( location, | 
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| 214 | new ast::TupleIndexExpr( location, expr, i ), out ); | 
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| 215 | } | 
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| 216 | // For a non-tuple type, output a clone of the expression. | 
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| 217 | } else { | 
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| 218 | *out++ = expr; | 
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| 219 | } | 
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| 220 | } | 
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| 221 |  | 
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| 222 | // Restructures arguments to match the structure of the formal parameters | 
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| 223 | // of the actual function. Returns the next structured argument. | 
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| 224 | template<typename Iterator> | 
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| 225 | const ast::Expr * structureArg( | 
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| 226 | const CodeLocation& location, const ast::ptr<ast::Type> & type, | 
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| 227 | Iterator & begin, const Iterator & end ) { | 
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| 228 | if ( auto tuple = type.as<ast::TupleType>() ) { | 
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| 229 | std::vector<ast::ptr<ast::Expr>> exprs; | 
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| 230 | for ( const ast::ptr<ast::Type> & t : *tuple ) { | 
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| 231 | exprs.push_back( structureArg( location, t, begin, end ) ); | 
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| 232 | } | 
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| 233 | return new ast::TupleExpr( location, std::move( exprs ) ); | 
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| 234 | } else { | 
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| 235 | assertf( begin != end, "reached the end of the arguments while structuring" ); | 
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| 236 | return *begin++; | 
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| 237 | } | 
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| 238 | } | 
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| 239 |  | 
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| 240 | struct TypeInstFixer final : public ast::WithShortCircuiting { | 
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| 241 | std::map<const ast::TypeDecl *, std::pair<int, int>> typeMap; | 
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| 242 |  | 
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| 243 | void previsit(const ast::TypeDecl *) { visit_children = false; } | 
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| 244 | const ast::TypeInstType * postvisit(const ast::TypeInstType * typeInst) { | 
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| 245 | if (typeMap.count(typeInst->base)) { | 
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| 246 | ast::TypeInstType * newInst = mutate(typeInst); | 
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| 247 | auto const & pair = typeMap[typeInst->base]; | 
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| 248 | newInst->expr_id = pair.first; | 
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| 249 | newInst->formal_usage = pair.second; | 
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| 250 | return newInst; | 
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| 251 | } | 
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| 252 | return typeInst; | 
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| 253 | } | 
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| 254 | }; | 
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| 255 |  | 
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| 256 | const ast::Expr * SpecializeCore::createThunkFunction( | 
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| 257 | const CodeLocation & location, | 
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| 258 | const ast::FunctionType * funType, | 
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| 259 | const ast::Expr * actual, | 
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| 260 | const ast::InferredParams * inferParams ) { | 
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| 261 | // One set of unique names per program. | 
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| 262 | static UniqueName thunkNamer("_thunk"); | 
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| 263 |  | 
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| 264 | const ast::FunctionType * newType = ast::deepCopy( funType ); | 
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| 265 | if ( typeSubs ) { | 
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| 266 | // Must replace only occurrences of type variables | 
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| 267 | // that occure free in the thunk's type. | 
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| 268 | auto result = typeSubs->applyFree( newType ); | 
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| 269 | newType = result.node.release(); | 
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| 270 | } | 
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| 271 |  | 
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| 272 | using DWTVector = std::vector<ast::ptr<ast::DeclWithType>>; | 
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| 273 | using DeclVector = std::vector<ast::ptr<ast::TypeDecl>>; | 
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| 274 |  | 
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| 275 | UniqueName paramNamer( paramPrefix ); | 
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| 276 |  | 
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| 277 | // Create new thunk with same signature as formal type. | 
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| 278 | ast::Pass<TypeInstFixer> fixer; | 
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| 279 | for (const auto & kv : newType->forall) { | 
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| 280 | if (fixer.core.typeMap.count(kv->base)) { | 
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| 281 | std::cerr << location << ' ' << kv->base->name | 
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| 282 | << ' ' << kv->expr_id << '_' << kv->formal_usage | 
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| 283 | << ',' << fixer.core.typeMap[kv->base].first | 
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| 284 | << '_' << fixer.core.typeMap[kv->base].second << std::endl; | 
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| 285 | assertf(false, "multiple formals in specialize"); | 
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| 286 | } | 
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| 287 | else { | 
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| 288 | fixer.core.typeMap[kv->base] = std::make_pair(kv->expr_id, kv->formal_usage); | 
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| 289 | } | 
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| 290 | } | 
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| 291 |  | 
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| 292 | ast::CompoundStmt * thunkBody = new ast::CompoundStmt( location ); | 
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| 293 | ast::FunctionDecl * thunkFunc = new ast::FunctionDecl( | 
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| 294 | location, | 
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| 295 | thunkNamer.newName(), | 
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| 296 | map_range<DeclVector>( newType->forall, []( const ast::TypeInstType * inst ) { | 
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| 297 | return ast::deepCopy( inst->base ); | 
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| 298 | } ), | 
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| 299 | map_range<DWTVector>( newType->assertions, []( const ast::VariableExpr * expr ) { | 
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| 300 | return ast::deepCopy( expr->var ); | 
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| 301 | } ), | 
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| 302 | map_range<DWTVector>( newType->params, [&location, ¶mNamer]( const ast::Type * type ) { | 
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| 303 | return new ast::ObjectDecl( location, paramNamer.newName(), ast::deepCopy( type ) ); | 
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| 304 | } ), | 
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| 305 | map_range<DWTVector>( newType->returns, [&location, ¶mNamer]( const ast::Type * type ) { | 
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| 306 | return new ast::ObjectDecl( location, paramNamer.newName(), ast::deepCopy( type ) ); | 
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| 307 | } ), | 
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| 308 | thunkBody, | 
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| 309 | ast::Storage::Classes(), | 
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| 310 | ast::Linkage::C | 
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| 311 | ); | 
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| 312 |  | 
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| 313 | thunkFunc->fixUniqueId(); | 
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| 314 |  | 
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| 315 | // Thunks may be generated and not used, avoid them. | 
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| 316 | thunkFunc->attributes.push_back( new ast::Attribute( "unused" ) ); | 
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| 317 |  | 
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| 318 | // Global thunks must be static to avoid collitions. | 
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| 319 | // Nested thunks must not be unique and hence, not static. | 
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| 320 | thunkFunc->storage.is_static = !isInFunction(); | 
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| 321 |  | 
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| 322 | // Weave thunk parameters into call to actual function, | 
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| 323 | // naming thunk parameters as we go. | 
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| 324 | ast::ApplicationExpr * app = new ast::ApplicationExpr( location, actual ); | 
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| 325 |  | 
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| 326 | const ast::FunctionType * actualType = ast::deepCopy( getFunctionType( actual->result ) ); | 
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| 327 | if ( typeSubs ) { | 
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| 328 | // Need to apply the environment to the actual function's type, | 
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| 329 | // since it may itself be polymorphic. | 
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| 330 | auto result = typeSubs->apply( actualType ); | 
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| 331 | actualType = result.node.release(); | 
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| 332 | } | 
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| 333 |  | 
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| 334 | ast::ptr<ast::FunctionType> actualTypeManager = actualType; | 
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| 335 |  | 
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| 336 | std::vector<ast::ptr<ast::Expr>> args; | 
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| 337 | for ( ast::ptr<ast::DeclWithType> & param : thunkFunc->params ) { | 
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| 338 | // Name each thunk parameter and explode it. | 
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| 339 | // These are then threaded back into the actual function call. | 
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| 340 | ast::DeclWithType * mutParam = ast::mutate( param.get() ); | 
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| 341 | explodeSimple( location, new ast::VariableExpr( location, mutParam ), | 
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| 342 | std::back_inserter( args ) ); | 
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| 343 | } | 
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| 344 |  | 
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| 345 | // Walk parameters to the actual function alongside the exploded thunk | 
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| 346 | // parameters and restructure the arguments to match the actual parameters. | 
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| 347 | std::vector<ast::ptr<ast::Expr>>::iterator | 
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| 348 | argBegin = args.begin(), argEnd = args.end(); | 
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| 349 | for ( const auto & actualArg : actualType->params ) { | 
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| 350 | app->args.push_back( | 
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| 351 | structureArg( location, actualArg.get(), argBegin, argEnd ) ); | 
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| 352 | } | 
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| 353 | assertf( argBegin == argEnd, "Did not structure all arguments." ); | 
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| 354 |  | 
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| 355 | app->accept(fixer); // this should modify in place | 
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| 356 |  | 
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| 357 | app->env = ast::TypeSubstitution::newFromExpr( app, typeSubs ); | 
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| 358 | if ( inferParams ) { | 
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| 359 | app->inferred.inferParams() = *inferParams; | 
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| 360 | } | 
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| 361 |  | 
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| 362 | // Handle any specializations that may still be present. | 
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| 363 | { | 
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| 364 | std::string oldParamPrefix = paramPrefix; | 
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| 365 | paramPrefix += "p"; | 
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| 366 | std::list<ast::ptr<ast::Decl>> oldDecls; | 
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| 367 | oldDecls.splice( oldDecls.end(), declsToAddBefore ); | 
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| 368 |  | 
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| 369 | app->accept( *visitor ); | 
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| 370 | // Write recursive specializations into the thunk body. | 
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| 371 | for ( const ast::ptr<ast::Decl> & decl : declsToAddBefore ) { | 
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| 372 | thunkBody->push_back( new ast::DeclStmt( decl->location, decl ) ); | 
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| 373 | } | 
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| 374 |  | 
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| 375 | declsToAddBefore = std::move( oldDecls ); | 
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| 376 | paramPrefix = std::move( oldParamPrefix ); | 
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| 377 | } | 
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| 378 |  | 
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| 379 | // Add return (or valueless expression) to the thunk. | 
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| 380 | ast::Stmt * appStmt; | 
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| 381 | if ( funType->returns.empty() ) { | 
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| 382 | appStmt = new ast::ExprStmt( app->location, app ); | 
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| 383 | } else { | 
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| 384 | appStmt = new ast::ReturnStmt( app->location, app ); | 
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| 385 | } | 
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| 386 | thunkBody->push_back( appStmt ); | 
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| 387 |  | 
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| 388 | // Add the thunk definition: | 
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| 389 | declsToAddBefore.push_back( thunkFunc ); | 
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| 390 |  | 
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| 391 | // Return address of thunk function as replacement expression. | 
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| 392 | return new ast::AddressExpr( location, | 
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| 393 | new ast::VariableExpr( location, thunkFunc ) ); | 
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| 394 | } | 
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| 395 |  | 
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| 396 | const ast::Expr * SpecializeCore::doSpecialization( | 
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| 397 | const CodeLocation & location, | 
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| 398 | const ast::Type * formalType, | 
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| 399 | const ast::Expr * actual, | 
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| 400 | const ast::InferredParams * inferParams ) { | 
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| 401 | assertf( actual->result, "attempting to specialize an untyped expression" ); | 
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| 402 | if ( needsSpecialization( formalType, actual->result, typeSubs ) ) { | 
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| 403 | if ( const ast::FunctionType * type = getFunctionType( formalType ) ) { | 
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| 404 | if ( const ast::ApplicationExpr * expr = | 
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| 405 | dynamic_cast<const ast::ApplicationExpr *>( actual ) ) { | 
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| 406 | return createThunkFunction( location, type, expr->func, inferParams ); | 
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| 407 | } else if ( auto expr = | 
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| 408 | dynamic_cast<const ast::VariableExpr *>( actual ) ) { | 
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| 409 | return createThunkFunction( location, type, expr, inferParams ); | 
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| 410 | } else { | 
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| 411 | // (I don't even know what that comment means.) | 
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| 412 | // This likely won't work, as anything that could build an ApplicationExpr probably hit one of the previous two branches | 
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| 413 | return createThunkFunction( location, type, actual, inferParams ); | 
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| 414 | } | 
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| 415 | } else { | 
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| 416 | return actual; | 
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| 417 | } | 
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| 418 | } else { | 
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| 419 | return actual; | 
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| 420 | } | 
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| 421 | } | 
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| 422 |  | 
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| 423 | const ast::Expr * SpecializeCore::postvisit( | 
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| 424 | const ast::ApplicationExpr * expr ) { | 
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| 425 | if ( ast::isIntrinsicCallExpr( expr ) ) { | 
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| 426 | return expr; | 
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| 427 | } | 
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| 428 |  | 
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| 429 | // Create thunks for the inferred parameters. | 
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| 430 | // This is not needed for intrinsic calls, because they aren't | 
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| 431 | // actually passed to the function. It needs to handle explicit params | 
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| 432 | // before inferred params so that explicit params do not recieve a | 
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| 433 | // changed set of inferParams (and change them again). | 
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| 434 | // Alternatively, if order starts to matter then copy expr's inferParams | 
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| 435 | // and pass them to handleExplicitParams. | 
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| 436 | ast::ApplicationExpr * mut = handleExplicitParams( expr ); | 
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| 437 | if ( !mut->inferred.hasParams() ) { | 
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| 438 | return mut; | 
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| 439 | } | 
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| 440 | ast::InferredParams & inferParams = mut->inferred.inferParams(); | 
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| 441 | for ( ast::InferredParams::value_type & inferParam : inferParams ) { | 
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| 442 | inferParam.second.expr = doSpecialization( | 
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| 443 | inferParam.second.expr->location, | 
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| 444 | inferParam.second.formalType, | 
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| 445 | inferParam.second.expr, | 
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| 446 | getInferredParams( inferParam.second.expr ) | 
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| 447 | ); | 
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| 448 | } | 
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| 449 | return mut; | 
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| 450 | } | 
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| 451 |  | 
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| 452 | const ast::Expr * SpecializeCore::postvisit( const ast::CastExpr * expr ) { | 
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| 453 | if ( expr->result->isVoid() ) { | 
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| 454 | // No specialization if there is no return value. | 
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| 455 | return expr; | 
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| 456 | } | 
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| 457 | const ast::Expr * specialized = doSpecialization( | 
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| 458 | expr->location, expr->result, expr->arg, getInferredParams( expr ) ); | 
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| 459 | if ( specialized != expr->arg ) { | 
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| 460 | // Assume that the specialization incorporates the cast. | 
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| 461 | return specialized; | 
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| 462 | } else { | 
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| 463 | return expr; | 
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| 464 | } | 
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| 465 | } | 
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| 466 |  | 
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| 467 | } // namespace | 
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| 468 |  | 
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| 469 | void convertSpecializations( ast::TranslationUnit & translationUnit ) { | 
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| 470 | ast::Pass<SpecializeCore>::run( translationUnit ); | 
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| 471 | } | 
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| 472 |  | 
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| 473 | } // namespace GenPoly | 
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| 474 |  | 
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| 475 | // Local Variables: // | 
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| 476 | // tab-width: 4 // | 
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| 477 | // mode: c++ // | 
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| 478 | // compile-command: "make install" // | 
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| 479 | // End: // | 
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