mirror of
https://github.com/carbon-language/carbon-lang.git
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1222 lines
38 KiB
C++
1222 lines
38 KiB
C++
// Part of the Carbon Language project, under the Apache License v2.0 with LLVM
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// Exceptions. See /LICENSE for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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#ifndef CARBON_EXPLORER_INTERPRETER_VALUE_H_
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#define CARBON_EXPLORER_INTERPRETER_VALUE_H_
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#include <optional>
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#include <string>
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#include <variant>
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#include <vector>
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#include "common/ostream.h"
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#include "explorer/ast/bindings.h"
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#include "explorer/ast/declaration.h"
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#include "explorer/ast/member.h"
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#include "explorer/ast/statement.h"
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#include "explorer/common/nonnull.h"
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#include "explorer/interpreter/address.h"
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#include "explorer/interpreter/field_path.h"
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#include "explorer/interpreter/stack.h"
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#include "llvm/Support/Compiler.h"
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namespace Carbon {
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class Action;
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class ImplScope;
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// Abstract base class of all AST nodes representing values.
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//
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// Value and its derived classes support LLVM-style RTTI, including
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// llvm::isa, llvm::cast, and llvm::dyn_cast. To support this, every
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// class derived from Value must provide a `classof` operation, and
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// every concrete derived class must have a corresponding enumerator
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// in `Kind`; see https://llvm.org/docs/HowToSetUpLLVMStyleRTTI.html for
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// details.
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class Value {
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public:
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enum class Kind {
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IntValue,
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FunctionValue,
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BoundMethodValue,
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PointerValue,
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LValue,
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BoolValue,
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StructValue,
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NominalClassValue,
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AlternativeValue,
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TupleValue,
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UninitializedValue,
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ImplWitness,
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SymbolicWitness,
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IntType,
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BoolType,
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TypeType,
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FunctionType,
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PointerType,
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AutoType,
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StructType,
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NominalClassType,
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InterfaceType,
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ConstraintType,
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ChoiceType,
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ContinuationType, // The type of a continuation.
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VariableType, // e.g., generic type parameters.
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AssociatedConstant,
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ParameterizedEntityName,
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MemberName,
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BindingPlaceholderValue,
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AddrValue,
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AlternativeConstructorValue,
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ContinuationValue, // A first-class continuation value.
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StringType,
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StringValue,
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TypeOfClassType,
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TypeOfInterfaceType,
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TypeOfConstraintType,
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TypeOfChoiceType,
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TypeOfParameterizedEntityName,
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TypeOfMemberName,
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StaticArrayType,
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};
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Value(const Value&) = delete;
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auto operator=(const Value&) -> Value& = delete;
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void Print(llvm::raw_ostream& out) const;
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LLVM_DUMP_METHOD void Dump() const { Print(llvm::errs()); }
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// Returns the sub-Value specified by `path`, which must be a valid field
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// path for *this. If the sub-Value is a method and its me_pattern is an
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// AddrPattern, then pass the LValue representing the receiver as `me_value`,
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// otherwise pass `*this`.
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auto GetMember(Nonnull<Arena*> arena, const FieldPath& path,
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SourceLocation source_loc,
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Nonnull<const Value*> me_value) const
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-> ErrorOr<Nonnull<const Value*>>;
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// Returns a copy of *this, but with the sub-Value specified by `path`
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// set to `field_value`. `path` must be a valid field path for *this.
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auto SetField(Nonnull<Arena*> arena, const FieldPath& path,
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Nonnull<const Value*> field_value,
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SourceLocation source_loc) const
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-> ErrorOr<Nonnull<const Value*>>;
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// Returns the enumerator corresponding to the most-derived type of this
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// object.
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auto kind() const -> Kind { return kind_; }
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protected:
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// Constructs a Value. `kind` must be the enumerator corresponding to the
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// most-derived type being constructed.
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explicit Value(Kind kind) : kind_(kind) {}
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private:
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const Kind kind_;
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};
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// Base class for types holding contextual information by which we can
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// determine whether values are equal.
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class EqualityContext {
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public:
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virtual auto VisitEqualValues(
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Nonnull<const Value*> value,
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llvm::function_ref<bool(Nonnull<const Value*>)> visitor) const
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-> bool = 0;
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protected:
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virtual ~EqualityContext() = default;
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};
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auto TypeEqual(Nonnull<const Value*> t1, Nonnull<const Value*> t2,
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std::optional<Nonnull<const EqualityContext*>> equality_ctx)
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-> bool;
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auto ValueEqual(Nonnull<const Value*> v1, Nonnull<const Value*> v2,
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std::optional<Nonnull<const EqualityContext*>> equality_ctx)
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-> bool;
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// An integer value.
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class IntValue : public Value {
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public:
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explicit IntValue(int value) : Value(Kind::IntValue), value_(value) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::IntValue;
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}
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auto value() const -> int { return value_; }
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private:
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int value_;
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};
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// A function value.
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class FunctionValue : public Value {
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public:
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explicit FunctionValue(Nonnull<const FunctionDeclaration*> declaration)
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: Value(Kind::FunctionValue), declaration_(declaration) {}
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explicit FunctionValue(Nonnull<const FunctionDeclaration*> declaration,
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Nonnull<const Bindings*> bindings)
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: Value(Kind::FunctionValue),
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declaration_(declaration),
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bindings_(bindings) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::FunctionValue;
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}
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auto declaration() const -> const FunctionDeclaration& {
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return *declaration_;
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}
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auto bindings() const -> const Bindings& { return *bindings_; }
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auto type_args() const -> const BindingMap& { return bindings_->args(); }
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auto witnesses() const -> const ImplWitnessMap& {
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return bindings_->witnesses();
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}
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private:
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Nonnull<const FunctionDeclaration*> declaration_;
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Nonnull<const Bindings*> bindings_ = Bindings::None();
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};
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// A bound method value. It includes the receiver object.
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class BoundMethodValue : public Value {
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public:
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explicit BoundMethodValue(Nonnull<const FunctionDeclaration*> declaration,
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Nonnull<const Value*> receiver)
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: Value(Kind::BoundMethodValue),
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declaration_(declaration),
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receiver_(receiver) {}
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explicit BoundMethodValue(Nonnull<const FunctionDeclaration*> declaration,
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Nonnull<const Value*> receiver,
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Nonnull<const Bindings*> bindings)
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: Value(Kind::BoundMethodValue),
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declaration_(declaration),
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receiver_(receiver),
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bindings_(bindings) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::BoundMethodValue;
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}
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auto declaration() const -> const FunctionDeclaration& {
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return *declaration_;
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}
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auto receiver() const -> Nonnull<const Value*> { return receiver_; }
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auto bindings() const -> const Bindings& { return *bindings_; }
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auto type_args() const -> const BindingMap& { return bindings_->args(); }
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auto witnesses() const -> const ImplWitnessMap& {
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return bindings_->witnesses();
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}
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private:
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Nonnull<const FunctionDeclaration*> declaration_;
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Nonnull<const Value*> receiver_;
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Nonnull<const Bindings*> bindings_ = Bindings::None();
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};
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// The value of a location in memory.
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class LValue : public Value {
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public:
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explicit LValue(Address value)
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: Value(Kind::LValue), value_(std::move(value)) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::LValue;
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}
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auto address() const -> const Address& { return value_; }
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private:
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Address value_;
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};
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// A pointer value
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class PointerValue : public Value {
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public:
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explicit PointerValue(Address value)
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: Value(Kind::PointerValue), value_(std::move(value)) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::PointerValue;
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}
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auto address() const -> const Address& { return value_; }
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private:
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Address value_;
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};
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// A bool value.
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class BoolValue : public Value {
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public:
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explicit BoolValue(bool value) : Value(Kind::BoolValue), value_(value) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::BoolValue;
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}
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auto value() const -> bool { return value_; }
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private:
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bool value_;
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};
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// A non-empty value of a struct type.
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//
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// It can't be empty because `{}` is a struct type as well as a value of that
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// type, so for consistency we always represent it as a StructType rather than
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// let it oscillate unpredictably between the two. However, this means code
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// that handles StructValue instances may also need to be able to handle
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// StructType instances.
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class StructValue : public Value {
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public:
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explicit StructValue(std::vector<NamedValue> elements)
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: Value(Kind::StructValue), elements_(std::move(elements)) {
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CARBON_CHECK(!elements_.empty())
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<< "`{}` is represented as a StructType, not a StructValue.";
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}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::StructValue;
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}
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auto elements() const -> llvm::ArrayRef<NamedValue> { return elements_; }
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// Returns the value of the field named `name` in this struct, or
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// nullopt if there is no such field.
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auto FindField(std::string_view name) const
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-> std::optional<Nonnull<const Value*>>;
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private:
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std::vector<NamedValue> elements_;
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};
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// A value of a nominal class type, i.e., an object.
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class NominalClassValue : public Value {
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public:
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NominalClassValue(Nonnull<const Value*> type, Nonnull<const Value*> inits)
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: Value(Kind::NominalClassValue), type_(type), inits_(inits) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::NominalClassValue;
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}
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auto type() const -> const Value& { return *type_; }
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auto inits() const -> const Value& { return *inits_; }
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private:
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Nonnull<const Value*> type_;
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Nonnull<const Value*> inits_; // The initializing StructValue.
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};
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// An alternative constructor value.
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class AlternativeConstructorValue : public Value {
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public:
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AlternativeConstructorValue(std::string_view alt_name,
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std::string_view choice_name)
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: Value(Kind::AlternativeConstructorValue),
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alt_name_(std::move(alt_name)),
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choice_name_(std::move(choice_name)) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::AlternativeConstructorValue;
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}
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auto alt_name() const -> const std::string& { return alt_name_; }
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auto choice_name() const -> const std::string& { return choice_name_; }
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private:
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std::string alt_name_;
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std::string choice_name_;
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};
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// An alternative value.
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class AlternativeValue : public Value {
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public:
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AlternativeValue(std::string_view alt_name, std::string_view choice_name,
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Nonnull<const Value*> argument)
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: Value(Kind::AlternativeValue),
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alt_name_(std::move(alt_name)),
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choice_name_(std::move(choice_name)),
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argument_(argument) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::AlternativeValue;
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}
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auto alt_name() const -> const std::string& { return alt_name_; }
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auto choice_name() const -> const std::string& { return choice_name_; }
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auto argument() const -> const Value& { return *argument_; }
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private:
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std::string alt_name_;
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std::string choice_name_;
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Nonnull<const Value*> argument_;
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};
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// A tuple value.
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class TupleValue : public Value {
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public:
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// An empty tuple, also known as the unit type.
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static auto Empty() -> Nonnull<const TupleValue*> {
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static const TupleValue empty =
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TupleValue(std::vector<Nonnull<const Value*>>());
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return Nonnull<const TupleValue*>(&empty);
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}
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explicit TupleValue(std::vector<Nonnull<const Value*>> elements)
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: Value(Kind::TupleValue), elements_(std::move(elements)) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::TupleValue;
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}
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auto elements() const -> llvm::ArrayRef<Nonnull<const Value*>> {
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return elements_;
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}
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private:
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std::vector<Nonnull<const Value*>> elements_;
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};
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// A binding placeholder value.
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class BindingPlaceholderValue : public Value {
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public:
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// Represents the `_` placeholder.
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explicit BindingPlaceholderValue() : Value(Kind::BindingPlaceholderValue) {}
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// Represents a named placeholder.
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explicit BindingPlaceholderValue(ValueNodeView value_node)
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: Value(Kind::BindingPlaceholderValue),
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value_node_(std::move(value_node)) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::BindingPlaceholderValue;
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}
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auto value_node() const -> const std::optional<ValueNodeView>& {
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return value_node_;
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}
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private:
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std::optional<ValueNodeView> value_node_;
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};
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// Value for addr pattern
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class AddrValue : public Value {
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public:
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explicit AddrValue(Nonnull<const Value*> pattern)
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: Value(Kind::AddrValue), pattern_(pattern) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::AddrValue;
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}
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auto pattern() const -> const Value& { return *pattern_; }
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private:
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Nonnull<const Value*> pattern_;
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};
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// Value for uninitialized local variables.
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class UninitializedValue : public Value {
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public:
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explicit UninitializedValue(Nonnull<const Value*> pattern)
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: Value(Kind::UninitializedValue), pattern_(pattern) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::UninitializedValue;
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}
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auto pattern() const -> const Value& { return *pattern_; }
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private:
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Nonnull<const Value*> pattern_;
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};
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// The int type.
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class IntType : public Value {
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public:
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IntType() : Value(Kind::IntType) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::IntType;
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}
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};
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// The bool type.
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class BoolType : public Value {
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public:
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BoolType() : Value(Kind::BoolType) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::BoolType;
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}
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};
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// A type type.
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class TypeType : public Value {
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public:
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TypeType() : Value(Kind::TypeType) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::TypeType;
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}
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};
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// A function type.
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class FunctionType : public Value {
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public:
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// An explicit function parameter that is a `:!` binding:
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//
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// fn MakeEmptyVector(T:! Type) -> Vector(T);
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struct GenericParameter {
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size_t index;
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Nonnull<const GenericBinding*> binding;
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};
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FunctionType(Nonnull<const Value*> parameters,
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llvm::ArrayRef<GenericParameter> generic_parameters,
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Nonnull<const Value*> return_type,
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llvm::ArrayRef<Nonnull<const GenericBinding*>> deduced_bindings,
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llvm::ArrayRef<Nonnull<const ImplBinding*>> impl_bindings)
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: Value(Kind::FunctionType),
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parameters_(parameters),
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generic_parameters_(generic_parameters),
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return_type_(return_type),
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deduced_bindings_(deduced_bindings),
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impl_bindings_(impl_bindings) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::FunctionType;
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}
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// The type of the function parameter tuple.
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auto parameters() const -> const Value& { return *parameters_; }
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// Parameters that use a generic `:!` binding at the top level.
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auto generic_parameters() const -> llvm::ArrayRef<GenericParameter> {
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return generic_parameters_;
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}
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// The function return type.
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auto return_type() const -> const Value& { return *return_type_; }
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// All generic bindings in this function's signature that should be deduced
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// in a call. This excludes any generic parameters.
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auto deduced_bindings() const
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-> llvm::ArrayRef<Nonnull<const GenericBinding*>> {
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return deduced_bindings_;
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}
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// The bindings for the witness tables (impls) required by the
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// bounds on the type parameters of the generic function.
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auto impl_bindings() const -> llvm::ArrayRef<Nonnull<const ImplBinding*>> {
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return impl_bindings_;
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}
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private:
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Nonnull<const Value*> parameters_;
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std::vector<GenericParameter> generic_parameters_;
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Nonnull<const Value*> return_type_;
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std::vector<Nonnull<const GenericBinding*>> deduced_bindings_;
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std::vector<Nonnull<const ImplBinding*>> impl_bindings_;
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};
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// A pointer type.
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class PointerType : public Value {
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public:
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explicit PointerType(Nonnull<const Value*> type)
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: Value(Kind::PointerType), type_(type) {}
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static auto classof(const Value* value) -> bool {
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return value->kind() == Kind::PointerType;
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}
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auto type() const -> const Value& { return *type_; }
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private:
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Nonnull<const Value*> type_;
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};
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// The `auto` type.
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class AutoType : public Value {
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public:
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AutoType() : Value(Kind::AutoType) {}
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static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::AutoType;
|
|
}
|
|
};
|
|
|
|
// A struct type.
|
|
//
|
|
// Code that handles this type may sometimes need to have special-case handling
|
|
// for `{}`, which is a struct value in addition to being a struct type.
|
|
class StructType : public Value {
|
|
public:
|
|
StructType() : StructType(std::vector<NamedValue>{}) {}
|
|
|
|
explicit StructType(std::vector<NamedValue> fields)
|
|
: Value(Kind::StructType), fields_(std::move(fields)) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::StructType;
|
|
}
|
|
|
|
auto fields() const -> llvm::ArrayRef<NamedValue> { return fields_; }
|
|
|
|
private:
|
|
std::vector<NamedValue> fields_;
|
|
};
|
|
|
|
// A class type.
|
|
// TODO: Consider splitting this class into several classes.
|
|
class NominalClassType : public Value {
|
|
public:
|
|
// Construct a non-generic class type.
|
|
explicit NominalClassType(Nonnull<const ClassDeclaration*> declaration)
|
|
: Value(Kind::NominalClassType), declaration_(declaration) {
|
|
CARBON_CHECK(!declaration->type_params().has_value())
|
|
<< "missing arguments for parameterized class type";
|
|
}
|
|
|
|
// Construct a fully instantiated generic class type to represent the
|
|
// run-time type of an object.
|
|
explicit NominalClassType(Nonnull<const ClassDeclaration*> declaration,
|
|
Nonnull<const Bindings*> bindings)
|
|
: Value(Kind::NominalClassType),
|
|
declaration_(declaration),
|
|
bindings_(bindings) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::NominalClassType;
|
|
}
|
|
|
|
auto declaration() const -> const ClassDeclaration& { return *declaration_; }
|
|
|
|
auto bindings() const -> const Bindings& { return *bindings_; }
|
|
|
|
auto type_args() const -> const BindingMap& { return bindings_->args(); }
|
|
|
|
// Witnesses for each of the class's impl bindings. These will not in general
|
|
// be set for class types that are only intended to be used within
|
|
// type-checking and not at runtime, such as in the static_type() of an
|
|
// expression or the type in a TypeOfClassType.
|
|
auto witnesses() const -> const ImplWitnessMap& {
|
|
return bindings_->witnesses();
|
|
}
|
|
|
|
// Returns whether this a parameterized class. That is, a class with
|
|
// parameters and no corresponding arguments.
|
|
auto IsParameterized() const -> bool {
|
|
return declaration_->type_params().has_value() && type_args().empty();
|
|
}
|
|
|
|
// Returns the value of the function named `name` in this class, or
|
|
// nullopt if there is no such function.
|
|
auto FindFunction(std::string_view name) const
|
|
-> std::optional<Nonnull<const FunctionValue*>>;
|
|
|
|
private:
|
|
Nonnull<const ClassDeclaration*> declaration_;
|
|
Nonnull<const Bindings*> bindings_ = Bindings::None();
|
|
};
|
|
|
|
// Return the declaration of the member with the given name.
|
|
auto FindMember(std::string_view name,
|
|
llvm::ArrayRef<Nonnull<Declaration*>> members)
|
|
-> std::optional<Nonnull<const Declaration*>>;
|
|
|
|
// An interface type.
|
|
class InterfaceType : public Value {
|
|
public:
|
|
explicit InterfaceType(Nonnull<const InterfaceDeclaration*> declaration)
|
|
: Value(Kind::InterfaceType), declaration_(declaration) {
|
|
CARBON_CHECK(!declaration->params().has_value())
|
|
<< "missing arguments for parameterized interface type";
|
|
}
|
|
explicit InterfaceType(Nonnull<const InterfaceDeclaration*> declaration,
|
|
Nonnull<const Bindings*> bindings)
|
|
: Value(Kind::InterfaceType),
|
|
declaration_(declaration),
|
|
bindings_(bindings) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::InterfaceType;
|
|
}
|
|
|
|
auto declaration() const -> const InterfaceDeclaration& {
|
|
return *declaration_;
|
|
}
|
|
|
|
auto bindings() const -> const Bindings& { return *bindings_; }
|
|
|
|
auto args() const -> const BindingMap& { return bindings_->args(); }
|
|
|
|
auto witnesses() const -> const ImplWitnessMap& {
|
|
return bindings_->witnesses();
|
|
}
|
|
|
|
private:
|
|
Nonnull<const InterfaceDeclaration*> declaration_;
|
|
Nonnull<const Bindings*> bindings_ = Bindings::None();
|
|
};
|
|
|
|
// A collection of values that are known to be the same.
|
|
struct EqualityConstraint {
|
|
// Visit the values in this equality constraint that are a single step away
|
|
// from the given value according to this equality constraint. That is: if
|
|
// `value` is identical to a value in `values`, then call the visitor on all
|
|
// values in `values` that are not identical to `value`. Otherwise, do not
|
|
// call the visitor.
|
|
//
|
|
// Stops and returns `false` if any call to the visitor returns `false`,
|
|
// otherwise returns `true`.
|
|
auto VisitEqualValues(
|
|
Nonnull<const Value*> value,
|
|
llvm::function_ref<bool(Nonnull<const Value*>)> visitor) const -> bool;
|
|
|
|
std::vector<Nonnull<const Value*>> values;
|
|
};
|
|
|
|
// A type-of-type for an unknown constrained type.
|
|
//
|
|
// These types are formed by the `&` operator that combines constraints and by
|
|
// `where` expressions.
|
|
//
|
|
// A constraint has three main properties:
|
|
//
|
|
// * A collection of (type, interface) pairs for interfaces that are known to
|
|
// be implemented by a type satisfying the constraint.
|
|
// * A collection of sets of values, typically associated constants, that are
|
|
// known to be the same.
|
|
// * A collection of contexts in which member name lookups will be performed
|
|
// for a type variable whose type is this constraint.
|
|
//
|
|
// Within these properties, the constrained type can be referred to with a
|
|
// `VariableType` naming the `self_binding`.
|
|
class ConstraintType : public Value {
|
|
public:
|
|
// A required implementation of an interface.
|
|
struct ImplConstraint {
|
|
Nonnull<const Value*> type;
|
|
Nonnull<const InterfaceType*> interface;
|
|
};
|
|
|
|
using EqualityConstraint = Carbon::EqualityConstraint;
|
|
|
|
// A context in which we might look up a name.
|
|
struct LookupContext {
|
|
Nonnull<const Value*> context;
|
|
};
|
|
|
|
public:
|
|
explicit ConstraintType(Nonnull<const GenericBinding*> self_binding,
|
|
std::vector<ImplConstraint> impl_constraints,
|
|
std::vector<EqualityConstraint> equality_constraints,
|
|
std::vector<LookupContext> lookup_contexts)
|
|
: Value(Kind::ConstraintType),
|
|
self_binding_(self_binding),
|
|
impl_constraints_(std::move(impl_constraints)),
|
|
equality_constraints_(std::move(equality_constraints)),
|
|
lookup_contexts_(std::move(lookup_contexts)) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::ConstraintType;
|
|
}
|
|
|
|
auto self_binding() const -> Nonnull<const GenericBinding*> {
|
|
return self_binding_;
|
|
}
|
|
|
|
auto impl_constraints() const -> llvm::ArrayRef<ImplConstraint> {
|
|
return impl_constraints_;
|
|
}
|
|
|
|
auto equality_constraints() const -> llvm::ArrayRef<EqualityConstraint> {
|
|
return equality_constraints_;
|
|
}
|
|
|
|
auto lookup_contexts() const -> llvm::ArrayRef<LookupContext> {
|
|
return lookup_contexts_;
|
|
}
|
|
|
|
// Visit the values in that are a single step away from the given value
|
|
// according to equality constraints in this constraint type, that is, the
|
|
// values `v` that are not identical to `value` but for which we have a
|
|
// `value == v` equality constraint in this constraint type.
|
|
//
|
|
// Stops and returns `false` if any call to the visitor returns `false`,
|
|
// otherwise returns `true`.
|
|
auto VisitEqualValues(
|
|
Nonnull<const Value*> value,
|
|
llvm::function_ref<bool(Nonnull<const Value*>)> visitor) const -> bool;
|
|
|
|
private:
|
|
Nonnull<const GenericBinding*> self_binding_;
|
|
std::vector<ImplConstraint> impl_constraints_;
|
|
std::vector<EqualityConstraint> equality_constraints_;
|
|
std::vector<LookupContext> lookup_contexts_;
|
|
};
|
|
|
|
// A witness table.
|
|
class Witness : public Value {
|
|
protected:
|
|
explicit Witness(Value::Kind kind) : Value(kind) {}
|
|
|
|
public:
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::ImplWitness ||
|
|
value->kind() == Kind::SymbolicWitness;
|
|
}
|
|
};
|
|
|
|
// The witness table for an impl.
|
|
class ImplWitness : public Witness {
|
|
public:
|
|
// Construct a witness for
|
|
// 1) a non-generic impl, or
|
|
// 2) a generic impl that has not yet been applied to type arguments.
|
|
explicit ImplWitness(Nonnull<const ImplDeclaration*> declaration)
|
|
: Witness(Kind::ImplWitness), declaration_(declaration) {}
|
|
|
|
// Construct an instantiated generic impl.
|
|
explicit ImplWitness(Nonnull<const ImplDeclaration*> declaration,
|
|
Nonnull<const Bindings*> bindings)
|
|
: Witness(Kind::ImplWitness),
|
|
declaration_(declaration),
|
|
bindings_(bindings) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::ImplWitness;
|
|
}
|
|
auto declaration() const -> const ImplDeclaration& { return *declaration_; }
|
|
|
|
auto bindings() const -> const Bindings& { return *bindings_; }
|
|
|
|
auto type_args() const -> const BindingMap& { return bindings_->args(); }
|
|
|
|
auto witnesses() const -> const ImplWitnessMap& {
|
|
return bindings_->witnesses();
|
|
}
|
|
|
|
private:
|
|
Nonnull<const ImplDeclaration*> declaration_;
|
|
Nonnull<const Bindings*> bindings_ = Bindings::None();
|
|
};
|
|
|
|
// A witness table whose concrete value cannot be determined yet.
|
|
//
|
|
// These are used to represent symbolic witness values which can be computed at
|
|
// runtime but whose values are not known statically.
|
|
class SymbolicWitness : public Witness {
|
|
public:
|
|
explicit SymbolicWitness(Nonnull<const Expression*> impl_expr)
|
|
: Witness(Kind::SymbolicWitness), impl_expr_(impl_expr) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::SymbolicWitness;
|
|
}
|
|
|
|
auto impl_expression() const -> const Expression& { return *impl_expr_; }
|
|
|
|
private:
|
|
Nonnull<const Expression*> impl_expr_;
|
|
};
|
|
|
|
// A choice type.
|
|
class ChoiceType : public Value {
|
|
public:
|
|
ChoiceType(Nonnull<const ChoiceDeclaration*> declaration,
|
|
Nonnull<const Bindings*> bindings)
|
|
: Value(Kind::ChoiceType),
|
|
declaration_(declaration),
|
|
bindings_(bindings) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::ChoiceType;
|
|
}
|
|
|
|
auto name() const -> const std::string& { return declaration_->name(); }
|
|
|
|
// Returns the parameter types of the alternative with the given name,
|
|
// or nullopt if no such alternative is present.
|
|
auto FindAlternative(std::string_view name) const
|
|
-> std::optional<Nonnull<const Value*>>;
|
|
|
|
auto bindings() const -> const Bindings& { return *bindings_; }
|
|
|
|
auto type_args() const -> const BindingMap& { return bindings_->args(); }
|
|
|
|
auto declaration() const -> const ChoiceDeclaration& { return *declaration_; }
|
|
|
|
auto IsParameterized() const -> bool {
|
|
return declaration_->type_params().has_value();
|
|
}
|
|
|
|
private:
|
|
Nonnull<const ChoiceDeclaration*> declaration_;
|
|
Nonnull<const Bindings*> bindings_;
|
|
};
|
|
|
|
// A continuation type.
|
|
class ContinuationType : public Value {
|
|
public:
|
|
ContinuationType() : Value(Kind::ContinuationType) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::ContinuationType;
|
|
}
|
|
};
|
|
|
|
// A variable type.
|
|
class VariableType : public Value {
|
|
public:
|
|
explicit VariableType(Nonnull<const GenericBinding*> binding)
|
|
: Value(Kind::VariableType), binding_(binding) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::VariableType;
|
|
}
|
|
|
|
auto binding() const -> const GenericBinding& { return *binding_; }
|
|
|
|
private:
|
|
Nonnull<const GenericBinding*> binding_;
|
|
};
|
|
|
|
// A name of an entity that has explicit parameters, such as a parameterized
|
|
// class or interface. When arguments for those parameters are provided in a
|
|
// call, the result will be a class type or interface type.
|
|
class ParameterizedEntityName : public Value {
|
|
public:
|
|
explicit ParameterizedEntityName(Nonnull<const Declaration*> declaration,
|
|
Nonnull<const TuplePattern*> params)
|
|
: Value(Kind::ParameterizedEntityName),
|
|
declaration_(declaration),
|
|
params_(params) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::ParameterizedEntityName;
|
|
}
|
|
|
|
auto declaration() const -> const Declaration& { return *declaration_; }
|
|
auto params() const -> const TuplePattern& { return *params_; }
|
|
|
|
private:
|
|
Nonnull<const Declaration*> declaration_;
|
|
Nonnull<const TuplePattern*> params_;
|
|
};
|
|
|
|
// The name of a member of a class or interface.
|
|
//
|
|
// These values are used to represent the second operand of a compound member
|
|
// access expression: `x.(A.B)`, and can also be the value of an alias
|
|
// declaration, but cannot be used in most other contexts.
|
|
class MemberName : public Value {
|
|
public:
|
|
MemberName(std::optional<Nonnull<const Value*>> base_type,
|
|
std::optional<Nonnull<const InterfaceType*>> interface,
|
|
Member member)
|
|
: Value(Kind::MemberName),
|
|
base_type_(base_type),
|
|
interface_(interface),
|
|
member_(member) {
|
|
CARBON_CHECK(base_type || interface)
|
|
<< "member name must be in a type, an interface, or both";
|
|
}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::MemberName;
|
|
}
|
|
|
|
// The type for which `name` is a member or a member of an `impl`.
|
|
auto base_type() const -> std::optional<Nonnull<const Value*>> {
|
|
return base_type_;
|
|
}
|
|
// The interface for which `name` is a member, if any.
|
|
auto interface() const -> std::optional<Nonnull<const InterfaceType*>> {
|
|
return interface_;
|
|
}
|
|
// The member.
|
|
auto member() const -> Member { return member_; }
|
|
// The name of the member.
|
|
auto name() const -> std::string_view { return member().name(); }
|
|
|
|
private:
|
|
std::optional<Nonnull<const Value*>> base_type_;
|
|
std::optional<Nonnull<const InterfaceType*>> interface_;
|
|
Member member_;
|
|
};
|
|
|
|
// A symbolic value representing an associated constant.
|
|
//
|
|
// This is a value of the form `A.B` or `A.B.C` or similar, where `A` is a
|
|
// `VariableType`.
|
|
class AssociatedConstant : public Value {
|
|
public:
|
|
explicit AssociatedConstant(
|
|
Nonnull<const Value*> base, Nonnull<const InterfaceType*> interface,
|
|
Nonnull<const AssociatedConstantDeclaration*> constant,
|
|
Nonnull<const Witness*> witness)
|
|
: Value(Kind::AssociatedConstant),
|
|
base_(base),
|
|
interface_(interface),
|
|
constant_(constant),
|
|
witness_(witness) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::AssociatedConstant;
|
|
}
|
|
|
|
// The type for which we denote an associated constant.
|
|
auto base() const -> const Value& { return *base_; }
|
|
|
|
// The interface within which the constant was declared.
|
|
auto interface() const -> const InterfaceType& { return *interface_; }
|
|
|
|
// The associated constant whose value is being denoted.
|
|
auto constant() const -> const AssociatedConstantDeclaration& {
|
|
return *constant_;
|
|
}
|
|
|
|
// Witness within which the constant's value can be found.
|
|
auto witness() const -> const Witness& { return *witness_; }
|
|
|
|
private:
|
|
Nonnull<const Value*> base_;
|
|
Nonnull<const InterfaceType*> interface_;
|
|
Nonnull<const AssociatedConstantDeclaration*> constant_;
|
|
Nonnull<const Witness*> witness_;
|
|
};
|
|
|
|
// A first-class continuation representation of a fragment of the stack.
|
|
// A continuation value behaves like a pointer to the underlying stack
|
|
// fragment, which is exposed by `Stack()`.
|
|
class ContinuationValue : public Value {
|
|
public:
|
|
class StackFragment {
|
|
public:
|
|
// Constructs an empty StackFragment.
|
|
StackFragment() = default;
|
|
|
|
// Requires *this to be empty, because by the time we're tearing down the
|
|
// Arena, it's no longer safe to invoke ~Action.
|
|
~StackFragment();
|
|
|
|
StackFragment(StackFragment&&) = delete;
|
|
auto operator=(StackFragment&&) -> StackFragment& = delete;
|
|
|
|
// Store the given partial todo stack in *this, which must currently be
|
|
// empty. The stack is represented with the top of the stack at the
|
|
// beginning of the vector, the reverse of the usual order.
|
|
void StoreReversed(std::vector<std::unique_ptr<Action>> reversed_todo);
|
|
|
|
// Restore the currently stored stack fragment to the top of `todo`,
|
|
// leaving *this empty.
|
|
void RestoreTo(Stack<std::unique_ptr<Action>>& todo);
|
|
|
|
// Destroy the currently stored stack fragment.
|
|
void Clear();
|
|
|
|
void Print(llvm::raw_ostream& out) const;
|
|
LLVM_DUMP_METHOD void Dump() const { Print(llvm::errs()); }
|
|
|
|
private:
|
|
// The todo stack of a suspended continuation, starting with the top
|
|
// Action.
|
|
std::vector<std::unique_ptr<Action>> reversed_todo_;
|
|
};
|
|
|
|
explicit ContinuationValue(Nonnull<StackFragment*> stack)
|
|
: Value(Kind::ContinuationValue), stack_(stack) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::ContinuationValue;
|
|
}
|
|
|
|
// The todo stack of the suspended continuation. Note that this provides
|
|
// mutable access, even when *this is const, because of the reference-like
|
|
// semantics of ContinuationValue.
|
|
auto stack() const -> StackFragment& { return *stack_; }
|
|
|
|
private:
|
|
Nonnull<StackFragment*> stack_;
|
|
};
|
|
|
|
// The String type.
|
|
class StringType : public Value {
|
|
public:
|
|
StringType() : Value(Kind::StringType) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::StringType;
|
|
}
|
|
};
|
|
|
|
// A string value.
|
|
class StringValue : public Value {
|
|
public:
|
|
explicit StringValue(std::string value)
|
|
: Value(Kind::StringValue), value_(std::move(value)) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::StringValue;
|
|
}
|
|
|
|
auto value() const -> const std::string& { return value_; }
|
|
|
|
private:
|
|
std::string value_;
|
|
};
|
|
|
|
// The type of an expression whose value is a class type. Currently there is no
|
|
// way to explicitly name such a type in Carbon code, but we are tentatively
|
|
// using `typeof(ClassName)` as the debug-printing format, in anticipation of
|
|
// something like that becoming valid Carbon syntax.
|
|
class TypeOfClassType : public Value {
|
|
public:
|
|
explicit TypeOfClassType(Nonnull<const NominalClassType*> class_type)
|
|
: Value(Kind::TypeOfClassType), class_type_(class_type) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::TypeOfClassType;
|
|
}
|
|
|
|
auto class_type() const -> const NominalClassType& { return *class_type_; }
|
|
|
|
private:
|
|
Nonnull<const NominalClassType*> class_type_;
|
|
};
|
|
|
|
class TypeOfInterfaceType : public Value {
|
|
public:
|
|
explicit TypeOfInterfaceType(Nonnull<const InterfaceType*> iface_type)
|
|
: Value(Kind::TypeOfInterfaceType), iface_type_(iface_type) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::TypeOfInterfaceType;
|
|
}
|
|
|
|
auto interface_type() const -> const InterfaceType& { return *iface_type_; }
|
|
|
|
private:
|
|
Nonnull<const InterfaceType*> iface_type_;
|
|
};
|
|
|
|
class TypeOfConstraintType : public Value {
|
|
public:
|
|
explicit TypeOfConstraintType(Nonnull<const ConstraintType*> constraint_type)
|
|
: Value(Kind::TypeOfConstraintType), constraint_type_(constraint_type) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::TypeOfConstraintType;
|
|
}
|
|
|
|
auto constraint_type() const -> const ConstraintType& {
|
|
return *constraint_type_;
|
|
}
|
|
|
|
private:
|
|
Nonnull<const ConstraintType*> constraint_type_;
|
|
};
|
|
|
|
// The type of an expression whose value is a choice type. Currently there is no
|
|
// way to explicitly name such a type in Carbon code, but we are tentatively
|
|
// using `typeof(ChoiceName)` as the debug-printing format, in anticipation of
|
|
// something like that becoming valid Carbon syntax.
|
|
class TypeOfChoiceType : public Value {
|
|
public:
|
|
explicit TypeOfChoiceType(Nonnull<const ChoiceType*> choice_type)
|
|
: Value(Kind::TypeOfChoiceType), choice_type_(choice_type) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::TypeOfChoiceType;
|
|
}
|
|
|
|
auto choice_type() const -> const ChoiceType& { return *choice_type_; }
|
|
|
|
private:
|
|
Nonnull<const ChoiceType*> choice_type_;
|
|
};
|
|
|
|
// The type of an expression whose value is the name of a parameterized entity.
|
|
// Such an expression can only be used as the operand of a call expression that
|
|
// provides arguments for the parameters.
|
|
class TypeOfParameterizedEntityName : public Value {
|
|
public:
|
|
explicit TypeOfParameterizedEntityName(
|
|
Nonnull<const ParameterizedEntityName*> name)
|
|
: Value(Kind::TypeOfParameterizedEntityName), name_(name) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::TypeOfParameterizedEntityName;
|
|
}
|
|
|
|
auto name() const -> const ParameterizedEntityName& { return *name_; }
|
|
|
|
private:
|
|
Nonnull<const ParameterizedEntityName*> name_;
|
|
};
|
|
|
|
// The type of a member name expression.
|
|
//
|
|
// This is used for member names that don't denote a specific object or value
|
|
// until used on the right-hand side of a `.`, such as an instance method or
|
|
// field name, or any member function in an interface.
|
|
//
|
|
// Such expressions can appear only as the target of an `alias` declaration or
|
|
// as the member name in a compound member access.
|
|
class TypeOfMemberName : public Value {
|
|
public:
|
|
explicit TypeOfMemberName(Member member)
|
|
: Value(Kind::TypeOfMemberName), member_(member) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::TypeOfMemberName;
|
|
}
|
|
|
|
// TODO: consider removing this or moving it elsewhere in the AST,
|
|
// since it's arguably part of the expression value rather than its type.
|
|
auto member() const -> Member { return member_; }
|
|
|
|
private:
|
|
Member member_;
|
|
};
|
|
|
|
// The type of a statically-sized array.
|
|
//
|
|
// Note that values of this type are represented as tuples.
|
|
class StaticArrayType : public Value {
|
|
public:
|
|
// Constructs a statically-sized array type with the given element type and
|
|
// size.
|
|
StaticArrayType(Nonnull<const Value*> element_type, size_t size)
|
|
: Value(Kind::StaticArrayType),
|
|
element_type_(element_type),
|
|
size_(size) {}
|
|
|
|
static auto classof(const Value* value) -> bool {
|
|
return value->kind() == Kind::StaticArrayType;
|
|
}
|
|
|
|
auto element_type() const -> const Value& { return *element_type_; }
|
|
auto size() const -> size_t { return size_; }
|
|
|
|
private:
|
|
Nonnull<const Value*> element_type_;
|
|
size_t size_;
|
|
};
|
|
|
|
} // namespace Carbon
|
|
|
|
#endif // CARBON_EXPLORER_INTERPRETER_VALUE_H_
|