mirror of
https://github.com/carbon-language/carbon-lang.git
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1073 lines
35 KiB
C++
1073 lines
35 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_AST_EXPRESSION_H_
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#define CARBON_EXPLORER_AST_EXPRESSION_H_
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#include <map>
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#include <optional>
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#include <string>
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#include <utility>
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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/ast_node.h"
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#include "explorer/ast/bindings.h"
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#include "explorer/ast/member.h"
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#include "explorer/ast/paren_contents.h"
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#include "explorer/ast/static_scope.h"
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#include "explorer/ast/value_category.h"
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#include "explorer/common/arena.h"
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#include "explorer/common/source_location.h"
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#include "llvm/ADT/ArrayRef.h"
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#include "llvm/Support/Compiler.h"
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namespace Carbon {
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class Value;
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class Witness;
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class MemberName;
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class VariableType;
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class InterfaceType;
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class ImplBinding;
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class GenericBinding;
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class Expression : public AstNode {
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public:
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~Expression() override = 0;
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void Print(llvm::raw_ostream& out) const override;
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void PrintID(llvm::raw_ostream& out) const override;
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static auto classof(const AstNode* node) {
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return InheritsFromExpression(node->kind());
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}
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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 -> ExpressionKind {
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return static_cast<ExpressionKind>(root_kind());
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}
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// The static type of this expression. Cannot be called before typechecking.
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auto static_type() const -> const Value& {
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CARBON_CHECK(static_type_.has_value());
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return **static_type_;
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}
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// Sets the static type of this expression. Can only be called once, during
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// typechecking.
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void set_static_type(Nonnull<const Value*> type) {
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CARBON_CHECK(!static_type_.has_value());
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static_type_ = type;
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}
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// The value category of this expression. Cannot be called before
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// typechecking.
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auto value_category() const -> ValueCategory { return *value_category_; }
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// Sets the value category of this expression. Can be called multiple times,
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// but the argument must have the same value each time.
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void set_value_category(ValueCategory value_category) {
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CARBON_CHECK(!value_category_.has_value() ||
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value_category == *value_category_);
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value_category_ = value_category;
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}
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// Determines whether the expression has already been type-checked. Should
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// only be used by type-checking.
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auto is_type_checked() -> bool {
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return static_type_.has_value() && value_category_.has_value();
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}
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protected:
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// Constructs an Expression representing syntax at the given line number.
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// `kind` must be the enumerator corresponding to the most-derived type being
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// constructed.
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Expression(AstNodeKind kind, SourceLocation source_loc)
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: AstNode(kind, source_loc) {}
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private:
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std::optional<Nonnull<const Value*>> static_type_;
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std::optional<ValueCategory> value_category_;
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};
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// A mixin for expressions that can be rewritten to a different expression by
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// type-checking.
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template <typename Base>
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class RewritableMixin : public Base {
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public:
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using Base::Base;
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// Set the rewritten form of this expression. Can only be called during type
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// checking.
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auto set_rewritten_form(const Expression* rewritten_form) -> void {
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CARBON_CHECK(!rewritten_form_.has_value()) << "rewritten form set twice";
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rewritten_form_ = rewritten_form;
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this->set_static_type(&rewritten_form->static_type());
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this->set_value_category(rewritten_form->value_category());
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}
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// Get the rewritten form of this expression. A rewritten form is used when
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// the expression is rewritten as a function call on an interface. A
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// rewritten form is not used when providing built-in operator semantics.
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auto rewritten_form() const -> std::optional<Nonnull<const Expression*>> {
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return rewritten_form_;
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}
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private:
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std::optional<Nonnull<const Expression*>> rewritten_form_;
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};
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// A FieldInitializer represents the initialization of a single struct field.
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class FieldInitializer {
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public:
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FieldInitializer(std::string name, Nonnull<Expression*> expression)
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: name_(std::move(name)), expression_(expression) {}
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auto name() const -> const std::string& { return name_; }
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auto expression() const -> const Expression& { return *expression_; }
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auto expression() -> Expression& { return *expression_; }
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private:
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// The field name. Cannot be empty.
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std::string name_;
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// The expression that initializes the field.
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Nonnull<Expression*> expression_;
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};
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enum class Operator {
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Add,
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AddressOf,
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And,
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As,
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BitwiseAnd,
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BitwiseOr,
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BitwiseXor,
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BitShiftLeft,
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BitShiftRight,
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Complement,
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Deref,
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Div,
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Eq,
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Less,
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LessEq,
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Greater,
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GreaterEq,
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Mul,
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Mod,
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Neg,
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Not,
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NotEq,
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Or,
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Sub,
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Ptr,
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};
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// Returns the lexical representation of `op`, such as "+" for `Add`.
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auto ToString(Operator op) -> std::string_view;
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class IdentifierExpression : public Expression {
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public:
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explicit IdentifierExpression(SourceLocation source_loc, std::string name)
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: Expression(AstNodeKind::IdentifierExpression, source_loc),
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name_(std::move(name)) {}
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static auto classof(const AstNode* node) -> bool {
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return InheritsFromIdentifierExpression(node->kind());
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}
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auto name() const -> const std::string& { return name_; }
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// Returns the ValueNodeView this identifier refers to. Cannot be called
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// before name resolution.
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auto value_node() const -> const ValueNodeView& { return *value_node_; }
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// Sets the value returned by value_node. Can be called only during name
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// resolution.
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void set_value_node(ValueNodeView value_node) {
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CARBON_CHECK(!value_node_.has_value() || value_node_ == value_node);
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value_node_ = std::move(value_node);
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}
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private:
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std::string name_;
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std::optional<ValueNodeView> value_node_;
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};
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// A `.Self` expression within either a `:!` binding or a standalone `where`
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// expression.
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//
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// In a `:!` binding, the type of `.Self` is always `Type`. For example, in
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// `A:! AddableWith(.Self)`, the expression `.Self` refers to the same type as
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// `A`, but with type `Type`.
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//
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// In a `where` binding, the type of `.Self` is the constraint preceding the
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// `where` keyword. For example, in `Foo where .Result is Bar(.Self)`, the type
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// of `.Self` is `Foo`.
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class DotSelfExpression : public Expression {
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public:
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explicit DotSelfExpression(SourceLocation source_loc)
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: Expression(AstNodeKind::DotSelfExpression, source_loc) {}
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static auto classof(const AstNode* node) -> bool {
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return InheritsFromDotSelfExpression(node->kind());
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}
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// The self binding. Cannot be called before name resolution.
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auto self_binding() const -> const GenericBinding& { return **self_binding_; }
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auto self_binding() -> GenericBinding& { return **self_binding_; }
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// Sets the self binding. Called only during name resolution.
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void set_self_binding(Nonnull<GenericBinding*> self_binding) {
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CARBON_CHECK(!self_binding_.has_value() || self_binding_ == self_binding);
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self_binding_ = self_binding;
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}
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private:
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std::string name_;
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std::optional<Nonnull<GenericBinding*>> self_binding_;
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};
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class MemberAccessExpression : public Expression {
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public:
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explicit MemberAccessExpression(AstNodeKind kind, SourceLocation source_loc,
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Nonnull<Expression*> object)
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: Expression(kind, source_loc), object_(object) {}
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static auto classof(const AstNode* node) -> bool {
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return InheritsFromMemberAccessExpression(node->kind());
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}
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auto object() const -> const Expression& { return *object_; }
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auto object() -> Expression& { return *object_; }
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// Can only be called by type-checking, if a conversion was required.
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void set_object(Nonnull<Expression*> object) { object_ = object; }
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// Returns true if this is an access of a member of the type of the object,
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// rather than an access of a member of the object itself. In this case, the
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// value of the object expression is ignored, and the type is accessed
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// instead.
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//
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// For example, given `x: Class`, `x.StaticFunction` is a type access
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// equivalent to `T.StaticFunction`, and given `T:! Interface` and `y: T`,
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// `y.AssociatedConstant` is a type access equivalent to
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// `T.AssociatedConstant`.
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auto is_type_access() const -> bool { return is_type_access_; }
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// Can only be called once, during typechecking.
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void set_is_type_access(bool type_access) { is_type_access_ = type_access; }
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// Returns true if the member is a method that has a "self" declaration in an
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// AddrPattern.
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auto is_addr_me_method() const -> bool { return is_addr_me_method_; }
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// Can only be called once, during typechecking.
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void set_is_addr_me_method() { is_addr_me_method_ = true; }
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// If `object` has a generic type, returns the witness value, which might be
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// either concrete or symbolic. Otherwise, returns `std::nullopt`. Should not
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// be called before typechecking.
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auto impl() const -> std::optional<Nonnull<const Witness*>> { return impl_; }
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// Can only be called once, during typechecking.
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void set_impl(Nonnull<const Witness*> impl) {
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CARBON_CHECK(!impl_.has_value());
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impl_ = impl;
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}
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// Returns the constant value of this expression, if one has been set. This
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// value will be used instead of accessing a member. Even if this is present,
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// the operand of the member access expression must still be evaluated, in
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// case it has side effects.
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auto constant_value() const -> std::optional<Nonnull<const Value*>> {
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return constant_value_;
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}
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// Sets the value returned by constant_value(). Can only be called once,
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// during typechecking.
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void set_constant_value(Nonnull<const Value*> value) {
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CARBON_CHECK(!constant_value_.has_value());
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constant_value_ = value;
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}
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private:
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Nonnull<Expression*> object_;
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bool is_type_access_ = false;
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bool is_addr_me_method_ = false;
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std::optional<Nonnull<const Witness*>> impl_;
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std::optional<Nonnull<const Value*>> constant_value_;
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};
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class SimpleMemberAccessExpression : public MemberAccessExpression {
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public:
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explicit SimpleMemberAccessExpression(SourceLocation source_loc,
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Nonnull<Expression*> object,
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std::string member_name)
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: MemberAccessExpression(AstNodeKind::SimpleMemberAccessExpression,
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source_loc, object),
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member_name_(std::move(member_name)) {}
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static auto classof(const AstNode* node) -> bool {
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return InheritsFromSimpleMemberAccessExpression(node->kind());
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}
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auto member_name() const -> const std::string& { return member_name_; }
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// Returns the `Member` that the member name resolved to.
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// Should not be called before typechecking.
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auto member() const -> const Member& {
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CARBON_CHECK(member_.has_value());
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return *member_;
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}
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// Can only be called once, during typechecking.
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void set_member(Member member) {
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CARBON_CHECK(!member_.has_value());
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member_ = member;
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}
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// If `object` is a constrained type parameter and `member` was found in an
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// interface, returns that interface. Should not be called before
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// typechecking.
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auto found_in_interface() const
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-> std::optional<Nonnull<const InterfaceType*>> {
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return found_in_interface_;
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}
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// Can only be called once, during typechecking.
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void set_found_in_interface(Nonnull<const InterfaceType*> interface) {
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CARBON_CHECK(!found_in_interface_.has_value());
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found_in_interface_ = interface;
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}
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private:
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std::string member_name_;
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std::optional<Member> member_;
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std::optional<Nonnull<const InterfaceType*>> found_in_interface_;
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};
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// A compound member access expression of the form `object.(path)`.
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//
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// `path` is required to have `TypeOfMemberName` type, and describes the member
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// being accessed, which is one of:
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//
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// - An instance member of a type: `object.(Type.member)`.
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// - A non-instance member of an interface: `Type.(Interface.member)` or
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// `object.(Interface.member)`.
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// - An instance member of an interface: `object.(Interface.member)` or
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// `object.(Type.(Interface.member))`.
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//
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// Note that the `path` is evaluated during type-checking, not at runtime, so
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// the corresponding `member` is determined statically.
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class CompoundMemberAccessExpression : public MemberAccessExpression {
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public:
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explicit CompoundMemberAccessExpression(SourceLocation source_loc,
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Nonnull<Expression*> object,
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Nonnull<Expression*> path)
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: MemberAccessExpression(AstNodeKind::CompoundMemberAccessExpression,
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source_loc, object),
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path_(path) {}
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static auto classof(const AstNode* node) -> bool {
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return InheritsFromCompoundMemberAccessExpression(node->kind());
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}
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auto path() const -> const Expression& { return *path_; }
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auto path() -> Expression& { return *path_; }
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// Returns the `MemberName` value that evaluation of the path produced.
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// Should not be called before typechecking.
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auto member() const -> const MemberName& {
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CARBON_CHECK(member_.has_value());
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return **member_;
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}
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// Can only be called once, during typechecking.
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void set_member(Nonnull<const MemberName*> member) {
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CARBON_CHECK(!member_.has_value());
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member_ = member;
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}
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private:
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Nonnull<Expression*> path_;
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std::optional<Nonnull<const MemberName*>> member_;
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};
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class IndexExpression : public Expression {
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public:
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explicit IndexExpression(SourceLocation source_loc,
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Nonnull<Expression*> object,
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Nonnull<Expression*> offset)
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: Expression(AstNodeKind::IndexExpression, source_loc),
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object_(object),
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offset_(offset) {}
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static auto classof(const AstNode* node) -> bool {
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return InheritsFromIndexExpression(node->kind());
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}
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auto object() const -> const Expression& { return *object_; }
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auto object() -> Expression& { return *object_; }
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auto offset() const -> const Expression& { return *offset_; }
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auto offset() -> Expression& { return *offset_; }
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private:
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Nonnull<Expression*> object_;
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Nonnull<Expression*> offset_;
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};
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class IntLiteral : public Expression {
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public:
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explicit IntLiteral(SourceLocation source_loc, int value)
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: Expression(AstNodeKind::IntLiteral, source_loc), value_(value) {}
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static auto classof(const AstNode* node) -> bool {
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return InheritsFromIntLiteral(node->kind());
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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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class BoolLiteral : public Expression {
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public:
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explicit BoolLiteral(SourceLocation source_loc, bool value)
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: Expression(AstNodeKind::BoolLiteral, source_loc), value_(value) {}
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static auto classof(const AstNode* node) -> bool {
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return InheritsFromBoolLiteral(node->kind());
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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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class StringLiteral : public Expression {
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public:
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explicit StringLiteral(SourceLocation source_loc, std::string value)
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: Expression(AstNodeKind::StringLiteral, source_loc),
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value_(std::move(value)) {}
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static auto classof(const AstNode* node) -> bool {
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return InheritsFromStringLiteral(node->kind());
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}
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auto value() const -> const std::string& { return value_; }
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private:
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std::string value_;
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};
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class StringTypeLiteral : public Expression {
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public:
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explicit StringTypeLiteral(SourceLocation source_loc)
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: Expression(AstNodeKind::StringTypeLiteral, source_loc) {}
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static auto classof(const AstNode* node) -> bool {
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return InheritsFromStringTypeLiteral(node->kind());
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}
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};
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class TupleLiteral : public Expression {
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public:
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explicit TupleLiteral(SourceLocation source_loc)
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: TupleLiteral(source_loc, {}) {}
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explicit TupleLiteral(SourceLocation source_loc,
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std::vector<Nonnull<Expression*>> fields)
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: Expression(AstNodeKind::TupleLiteral, source_loc),
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fields_(std::move(fields)) {}
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static auto classof(const AstNode* node) -> bool {
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return InheritsFromTupleLiteral(node->kind());
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}
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auto fields() const -> llvm::ArrayRef<Nonnull<const Expression*>> {
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return fields_;
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}
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auto fields() -> llvm::ArrayRef<Nonnull<Expression*>> { return fields_; }
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private:
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std::vector<Nonnull<Expression*>> fields_;
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};
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// A literal value of a struct type.
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class StructLiteral : public Expression {
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public:
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explicit StructLiteral(SourceLocation loc) : StructLiteral(loc, {}) {}
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explicit StructLiteral(SourceLocation loc,
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std::vector<FieldInitializer> fields)
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: Expression(AstNodeKind::StructLiteral, loc),
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fields_(std::move(fields)) {}
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static auto classof(const AstNode* node) -> bool {
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return InheritsFromStructLiteral(node->kind());
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}
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auto fields() const -> llvm::ArrayRef<FieldInitializer> { return fields_; }
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auto fields() -> llvm::MutableArrayRef<FieldInitializer> { return fields_; }
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private:
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std::vector<FieldInitializer> fields_;
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};
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// A base class for literals with a constant value determined by type-checking.
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class ConstantValueLiteral : public Expression {
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public:
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explicit ConstantValueLiteral(
|
|
AstNodeKind kind, SourceLocation source_loc,
|
|
std::optional<Nonnull<const Value*>> constant_value = std::nullopt)
|
|
: Expression(kind, source_loc), constant_value_(constant_value) {}
|
|
|
|
static auto classof(const AstNode* node) -> bool {
|
|
return InheritsFromConstantValueLiteral(node->kind());
|
|
}
|
|
|
|
// Returns the constant value of this expression.
|
|
auto constant_value() const -> const Value& {
|
|
CARBON_CHECK(constant_value_);
|
|
return **constant_value_;
|
|
}
|
|
|
|
// Sets the value returned by constant_value(). Can only be called once,
|
|
// during typechecking.
|
|
void set_constant_value(Nonnull<const Value*> value) {
|
|
CARBON_CHECK(!constant_value_.has_value());
|
|
constant_value_ = value;
|
|
}
|
|
|
|
private:
|
|
std::optional<Nonnull<const Value*>> constant_value_;
|
|
};
|
|
|
|
// A literal representing a struct type.
|
|
//
|
|
// Note that a struct type literal can't be empty because `{}` is a struct
|
|
// value. However, that value implicitly converts to a type.
|
|
class StructTypeLiteral : public ConstantValueLiteral {
|
|
public:
|
|
explicit StructTypeLiteral(SourceLocation loc,
|
|
std::vector<FieldInitializer> fields)
|
|
: ConstantValueLiteral(AstNodeKind::StructTypeLiteral, loc),
|
|
fields_(std::move(fields)) {
|
|
CARBON_CHECK(!fields_.empty())
|
|
<< "`{}` is represented as a StructLiteral, not a StructTypeLiteral.";
|
|
}
|
|
|
|
static auto classof(const AstNode* node) -> bool {
|
|
return InheritsFromStructTypeLiteral(node->kind());
|
|
}
|
|
|
|
auto fields() const -> llvm::ArrayRef<FieldInitializer> { return fields_; }
|
|
auto fields() -> llvm::MutableArrayRef<FieldInitializer> { return fields_; }
|
|
|
|
private:
|
|
std::vector<FieldInitializer> fields_;
|
|
};
|
|
|
|
class OperatorExpression : public RewritableMixin<Expression> {
|
|
public:
|
|
explicit OperatorExpression(SourceLocation source_loc, Operator op,
|
|
std::vector<Nonnull<Expression*>> arguments)
|
|
: RewritableMixin(AstNodeKind::OperatorExpression, source_loc),
|
|
op_(op),
|
|
arguments_(std::move(arguments)) {}
|
|
|
|
static auto classof(const AstNode* node) -> bool {
|
|
return InheritsFromOperatorExpression(node->kind());
|
|
}
|
|
|
|
auto op() const -> Operator { return op_; }
|
|
auto arguments() const -> llvm::ArrayRef<Nonnull<Expression*>> {
|
|
return arguments_;
|
|
}
|
|
auto arguments() -> llvm::MutableArrayRef<Nonnull<Expression*>> {
|
|
return arguments_;
|
|
}
|
|
|
|
private:
|
|
Operator op_;
|
|
std::vector<Nonnull<Expression*>> arguments_;
|
|
};
|
|
|
|
class CallExpression : public Expression {
|
|
public:
|
|
explicit CallExpression(SourceLocation source_loc,
|
|
Nonnull<Expression*> function,
|
|
Nonnull<Expression*> argument)
|
|
: Expression(AstNodeKind::CallExpression, source_loc),
|
|
function_(function),
|
|
argument_(argument),
|
|
bindings_({}, {}) {}
|
|
|
|
static auto classof(const AstNode* node) -> bool {
|
|
return InheritsFromCallExpression(node->kind());
|
|
}
|
|
|
|
auto function() const -> const Expression& { return *function_; }
|
|
auto function() -> Expression& { return *function_; }
|
|
auto argument() const -> const Expression& { return *argument_; }
|
|
auto argument() -> Expression& { return *argument_; }
|
|
|
|
auto bindings() -> const Bindings& { return bindings_; }
|
|
|
|
// Can only be called once, during typechecking.
|
|
void set_bindings(Bindings bindings) {
|
|
CARBON_CHECK(bindings_.args().empty() && bindings_.witnesses().empty());
|
|
bindings_ = std::move(bindings);
|
|
}
|
|
|
|
auto deduced_args() const -> const BindingMap& { return bindings_.args(); }
|
|
|
|
// Maps each of `function`'s impl bindings to a witness.
|
|
// Should not be called before typechecking, or if `function` is not
|
|
// a generic function.
|
|
auto impls() const -> const ImplWitnessMap& { return bindings_.witnesses(); }
|
|
|
|
// Can only be called by type-checking, if a conversion was required.
|
|
void set_argument(Nonnull<Expression*> argument) { argument_ = argument; }
|
|
|
|
private:
|
|
Nonnull<Expression*> function_;
|
|
Nonnull<Expression*> argument_;
|
|
Bindings bindings_;
|
|
};
|
|
|
|
class FunctionTypeLiteral : public ConstantValueLiteral {
|
|
public:
|
|
explicit FunctionTypeLiteral(SourceLocation source_loc,
|
|
Nonnull<TupleLiteral*> parameter,
|
|
Nonnull<Expression*> return_type)
|
|
: ConstantValueLiteral(AstNodeKind::FunctionTypeLiteral, source_loc),
|
|
parameter_(parameter),
|
|
return_type_(return_type) {}
|
|
|
|
static auto classof(const AstNode* node) -> bool {
|
|
return InheritsFromFunctionTypeLiteral(node->kind());
|
|
}
|
|
|
|
auto parameter() const -> const TupleLiteral& { return *parameter_; }
|
|
auto parameter() -> TupleLiteral& { return *parameter_; }
|
|
auto return_type() const -> const Expression& { return *return_type_; }
|
|
auto return_type() -> Expression& { return *return_type_; }
|
|
|
|
private:
|
|
Nonnull<TupleLiteral*> parameter_;
|
|
Nonnull<Expression*> return_type_;
|
|
};
|
|
|
|
class BoolTypeLiteral : public Expression {
|
|
public:
|
|
explicit BoolTypeLiteral(SourceLocation source_loc)
|
|
: Expression(AstNodeKind::BoolTypeLiteral, source_loc) {}
|
|
|
|
static auto classof(const AstNode* node) -> bool {
|
|
return InheritsFromBoolTypeLiteral(node->kind());
|
|
}
|
|
};
|
|
|
|
class IntTypeLiteral : public Expression {
|
|
public:
|
|
explicit IntTypeLiteral(SourceLocation source_loc)
|
|
: Expression(AstNodeKind::IntTypeLiteral, source_loc) {}
|
|
|
|
static auto classof(const AstNode* node) -> bool {
|
|
return InheritsFromIntTypeLiteral(node->kind());
|
|
}
|
|
};
|
|
|
|
class ContinuationTypeLiteral : public Expression {
|
|
public:
|
|
explicit ContinuationTypeLiteral(SourceLocation source_loc)
|
|
: Expression(AstNodeKind::ContinuationTypeLiteral, source_loc) {}
|
|
|
|
static auto classof(const AstNode* node) -> bool {
|
|
return InheritsFromContinuationTypeLiteral(node->kind());
|
|
}
|
|
};
|
|
|
|
class TypeTypeLiteral : public Expression {
|
|
public:
|
|
explicit TypeTypeLiteral(SourceLocation source_loc)
|
|
: Expression(AstNodeKind::TypeTypeLiteral, source_loc) {}
|
|
|
|
static auto classof(const AstNode* node) -> bool {
|
|
return InheritsFromTypeTypeLiteral(node->kind());
|
|
}
|
|
};
|
|
|
|
// A literal value. This is used in desugaring, and can't be expressed in
|
|
// source syntax.
|
|
class ValueLiteral : public ConstantValueLiteral {
|
|
public:
|
|
// Value literals are created by type-checking, and so are created with their
|
|
// type and value category already known.
|
|
ValueLiteral(SourceLocation source_loc, Nonnull<const Value*> value,
|
|
Nonnull<const Value*> type, ValueCategory value_category)
|
|
: ConstantValueLiteral(AstNodeKind::ValueLiteral, source_loc, value) {
|
|
set_static_type(type);
|
|
set_value_category(value_category);
|
|
}
|
|
|
|
static auto classof(const AstNode* node) -> bool {
|
|
return InheritsFromValueLiteral(node->kind());
|
|
}
|
|
};
|
|
|
|
class IntrinsicExpression : public Expression {
|
|
public:
|
|
enum class Intrinsic {
|
|
Print,
|
|
Alloc,
|
|
Dealloc,
|
|
Rand,
|
|
IntEq,
|
|
StrEq,
|
|
StrCompare,
|
|
IntCompare,
|
|
IntBitAnd,
|
|
IntBitOr,
|
|
IntBitXor,
|
|
IntBitComplement,
|
|
IntLeftShift,
|
|
IntRightShift,
|
|
Assert,
|
|
};
|
|
|
|
// Returns the enumerator corresponding to the intrinsic named `name`,
|
|
// or raises a fatal compile error if there is no such enumerator.
|
|
static auto FindIntrinsic(std::string_view name, SourceLocation source_loc)
|
|
-> ErrorOr<Intrinsic>;
|
|
|
|
explicit IntrinsicExpression(Intrinsic intrinsic, Nonnull<TupleLiteral*> args,
|
|
SourceLocation source_loc)
|
|
: Expression(AstNodeKind::IntrinsicExpression, source_loc),
|
|
intrinsic_(intrinsic),
|
|
args_(args) {}
|
|
|
|
static auto classof(const AstNode* node) -> bool {
|
|
return InheritsFromIntrinsicExpression(node->kind());
|
|
}
|
|
|
|
auto intrinsic() const -> Intrinsic { return intrinsic_; }
|
|
auto name() const -> std::string_view;
|
|
auto args() const -> const TupleLiteral& { return *args_; }
|
|
auto args() -> TupleLiteral& { return *args_; }
|
|
|
|
private:
|
|
Intrinsic intrinsic_;
|
|
Nonnull<TupleLiteral*> args_;
|
|
};
|
|
|
|
class IfExpression : public Expression {
|
|
public:
|
|
explicit IfExpression(SourceLocation source_loc,
|
|
Nonnull<Expression*> condition,
|
|
Nonnull<Expression*> then_expression,
|
|
Nonnull<Expression*> else_expression)
|
|
: Expression(AstNodeKind::IfExpression, source_loc),
|
|
condition_(condition),
|
|
then_expression_(then_expression),
|
|
else_expression_(else_expression) {}
|
|
|
|
static auto classof(const AstNode* node) -> bool {
|
|
return InheritsFromIfExpression(node->kind());
|
|
}
|
|
|
|
auto condition() const -> const Expression& { return *condition_; }
|
|
auto condition() -> Expression& { return *condition_; }
|
|
|
|
auto then_expression() const -> const Expression& {
|
|
return *then_expression_;
|
|
}
|
|
auto then_expression() -> Expression& { return *then_expression_; }
|
|
|
|
auto else_expression() const -> const Expression& {
|
|
return *else_expression_;
|
|
}
|
|
auto else_expression() -> Expression& { return *else_expression_; }
|
|
|
|
// Can only be called by type-checking, if a conversion was required.
|
|
void set_condition(Nonnull<Expression*> condition) { condition_ = condition; }
|
|
|
|
private:
|
|
Nonnull<Expression*> condition_;
|
|
Nonnull<Expression*> then_expression_;
|
|
Nonnull<Expression*> else_expression_;
|
|
};
|
|
|
|
// A clause appearing on the right-hand side of a `where` operator that forms a
|
|
// more precise constraint from a more general one.
|
|
class WhereClause : public AstNode {
|
|
public:
|
|
~WhereClause() override = 0;
|
|
|
|
void Print(llvm::raw_ostream& out) const override;
|
|
void PrintID(llvm::raw_ostream& out) const override;
|
|
|
|
static auto classof(const AstNode* node) {
|
|
return InheritsFromWhereClause(node->kind());
|
|
}
|
|
|
|
auto kind() const -> WhereClauseKind {
|
|
return static_cast<WhereClauseKind>(root_kind());
|
|
}
|
|
|
|
protected:
|
|
WhereClause(WhereClauseKind kind, SourceLocation source_loc)
|
|
: AstNode(static_cast<AstNodeKind>(kind), source_loc) {}
|
|
};
|
|
|
|
// An `is` where clause.
|
|
//
|
|
// For example, `ConstraintA where .Type is ConstraintB` requires that the
|
|
// associated type `.Type` implements the constraint `ConstraintB`.
|
|
class IsWhereClause : public WhereClause {
|
|
public:
|
|
explicit IsWhereClause(SourceLocation source_loc, Nonnull<Expression*> type,
|
|
Nonnull<Expression*> constraint)
|
|
: WhereClause(WhereClauseKind::IsWhereClause, source_loc),
|
|
type_(type),
|
|
constraint_(constraint) {}
|
|
|
|
static auto classof(const AstNode* node) {
|
|
return InheritsFromIsWhereClause(node->kind());
|
|
}
|
|
|
|
auto type() const -> const Expression& { return *type_; }
|
|
auto type() -> Expression& { return *type_; }
|
|
|
|
auto constraint() const -> const Expression& { return *constraint_; }
|
|
auto constraint() -> Expression& { return *constraint_; }
|
|
|
|
private:
|
|
Nonnull<Expression*> type_;
|
|
Nonnull<Expression*> constraint_;
|
|
};
|
|
|
|
// An `==` where clause.
|
|
//
|
|
// For example, `Constraint where .Type == i32` requires that the associated
|
|
// type `.Type` is `i32`.
|
|
class EqualsWhereClause : public WhereClause {
|
|
public:
|
|
explicit EqualsWhereClause(SourceLocation source_loc,
|
|
Nonnull<Expression*> lhs, Nonnull<Expression*> rhs)
|
|
: WhereClause(WhereClauseKind::EqualsWhereClause, source_loc),
|
|
lhs_(lhs),
|
|
rhs_(rhs) {}
|
|
|
|
static auto classof(const AstNode* node) {
|
|
return InheritsFromEqualsWhereClause(node->kind());
|
|
}
|
|
|
|
auto lhs() const -> const Expression& { return *lhs_; }
|
|
auto lhs() -> Expression& { return *lhs_; }
|
|
|
|
auto rhs() const -> const Expression& { return *rhs_; }
|
|
auto rhs() -> Expression& { return *rhs_; }
|
|
|
|
private:
|
|
Nonnull<Expression*> lhs_;
|
|
Nonnull<Expression*> rhs_;
|
|
};
|
|
|
|
// An `=` where clause.
|
|
//
|
|
// For example, `Constraint where .Type = i32` specifies that the associated
|
|
// type `.Type` is rewritten to `i32` whenever used.
|
|
class RewriteWhereClause : public WhereClause {
|
|
public:
|
|
explicit RewriteWhereClause(SourceLocation source_loc,
|
|
std::string member_name,
|
|
Nonnull<Expression*> replacement)
|
|
: WhereClause(WhereClauseKind::RewriteWhereClause, source_loc),
|
|
member_name_(std::move(member_name)),
|
|
replacement_(replacement) {}
|
|
|
|
static auto classof(const AstNode* node) {
|
|
return InheritsFromRewriteWhereClause(node->kind());
|
|
}
|
|
|
|
auto member_name() const -> std::string_view { return member_name_; }
|
|
|
|
auto replacement() const -> const Expression& { return *replacement_; }
|
|
auto replacement() -> Expression& { return *replacement_; }
|
|
|
|
private:
|
|
std::string member_name_;
|
|
Nonnull<Expression*> replacement_;
|
|
};
|
|
|
|
// A `where` expression: `AddableWith(i32) where .Result == i32`.
|
|
//
|
|
// The first operand is rewritten to a generic binding, for example
|
|
// `.Self:! AddableWith(i32)`, which may be used in the clauses.
|
|
class WhereExpression : public RewritableMixin<Expression> {
|
|
public:
|
|
explicit WhereExpression(SourceLocation source_loc,
|
|
Nonnull<GenericBinding*> self_binding,
|
|
std::vector<Nonnull<WhereClause*>> clauses)
|
|
: RewritableMixin(AstNodeKind::WhereExpression, source_loc),
|
|
self_binding_(self_binding),
|
|
clauses_(std::move(clauses)) {}
|
|
|
|
static auto classof(const AstNode* node) -> bool {
|
|
return InheritsFromWhereExpression(node->kind());
|
|
}
|
|
|
|
auto self_binding() const -> const GenericBinding& { return *self_binding_; }
|
|
auto self_binding() -> GenericBinding& { return *self_binding_; }
|
|
|
|
auto enclosing_dot_self() const
|
|
-> std::optional<Nonnull<const GenericBinding*>> {
|
|
return enclosing_dot_self_;
|
|
}
|
|
// Sets the enclosing value of `.Self`. Can only be called during name
|
|
// resolution.
|
|
void set_enclosing_dot_self(Nonnull<const GenericBinding*> dot_self) {
|
|
CARBON_CHECK(!enclosing_dot_self_ || enclosing_dot_self_ == dot_self);
|
|
enclosing_dot_self_ = dot_self;
|
|
}
|
|
|
|
auto clauses() const -> llvm::ArrayRef<Nonnull<const WhereClause*>> {
|
|
return clauses_;
|
|
}
|
|
auto clauses() -> llvm::ArrayRef<Nonnull<WhereClause*>> { return clauses_; }
|
|
|
|
private:
|
|
Nonnull<GenericBinding*> self_binding_;
|
|
std::vector<Nonnull<WhereClause*>> clauses_;
|
|
std::optional<Nonnull<const GenericBinding*>> enclosing_dot_self_;
|
|
};
|
|
|
|
// A builtin conversion to a type determined by type-checking. These are
|
|
// created by type-checking when a type conversion is found to be necessary but
|
|
// that conversion is implemented directly rather than by an `ImplicitAs`
|
|
// implementation.
|
|
class BuiltinConvertExpression : public Expression {
|
|
public:
|
|
BuiltinConvertExpression(Nonnull<Expression*> source_expression,
|
|
Nonnull<const Value*> destination_type)
|
|
: Expression(AstNodeKind::BuiltinConvertExpression,
|
|
source_expression->source_loc()),
|
|
source_expression_(source_expression) {
|
|
set_static_type(destination_type);
|
|
set_value_category(ValueCategory::Let);
|
|
}
|
|
|
|
static auto classof(const AstNode* node) -> bool {
|
|
return InheritsFromBuiltinConvertExpression(node->kind());
|
|
}
|
|
|
|
auto source_expression() -> Nonnull<Expression*> {
|
|
return source_expression_;
|
|
}
|
|
auto source_expression() const -> Nonnull<const Expression*> {
|
|
return source_expression_;
|
|
}
|
|
|
|
private:
|
|
Nonnull<Expression*> source_expression_;
|
|
};
|
|
|
|
// An expression whose semantics have not been implemented. This can be used
|
|
// as a placeholder during development, in order to implement and test parsing
|
|
// of a new expression syntax without having to implement its semantics.
|
|
class UnimplementedExpression : public Expression {
|
|
public:
|
|
// Constructs an UnimplementedExpression with the given label and the given
|
|
// children, which must all be convertible to Nonnull<AstNode*>. The label
|
|
// should correspond roughly to the name of the class that will eventually
|
|
// replace this usage of UnimplementedExpression.
|
|
template <typename... Children>
|
|
UnimplementedExpression(SourceLocation source_loc, std::string label,
|
|
Children... children)
|
|
: Expression(AstNodeKind::UnimplementedExpression, source_loc),
|
|
label_(std::move(label)) {
|
|
AddChildren(children...);
|
|
}
|
|
|
|
static auto classof(const AstNode* node) -> bool {
|
|
return InheritsFromUnimplementedExpression(node->kind());
|
|
}
|
|
|
|
auto label() const -> std::string_view { return label_; }
|
|
auto children() const -> llvm::ArrayRef<Nonnull<const AstNode*>> {
|
|
return children_;
|
|
}
|
|
|
|
private:
|
|
void AddChildren() {}
|
|
|
|
template <typename... Children>
|
|
void AddChildren(Nonnull<AstNode*> child, Children... children) {
|
|
children_.push_back(child);
|
|
AddChildren(children...);
|
|
}
|
|
|
|
std::string label_;
|
|
std::vector<Nonnull<AstNode*>> children_;
|
|
};
|
|
|
|
// A literal representing a statically-sized array type.
|
|
class ArrayTypeLiteral : public ConstantValueLiteral {
|
|
public:
|
|
// Constructs an array type literal which uses the given expressions to
|
|
// represent the element type and size.
|
|
ArrayTypeLiteral(SourceLocation source_loc,
|
|
Nonnull<Expression*> element_type_expression,
|
|
Nonnull<Expression*> size_expression)
|
|
: ConstantValueLiteral(AstNodeKind::ArrayTypeLiteral, source_loc),
|
|
element_type_expression_(element_type_expression),
|
|
size_expression_(size_expression) {}
|
|
|
|
static auto classof(const AstNode* node) -> bool {
|
|
return InheritsFromArrayTypeLiteral(node->kind());
|
|
}
|
|
|
|
auto element_type_expression() const -> const Expression& {
|
|
return *element_type_expression_;
|
|
}
|
|
auto element_type_expression() -> Expression& {
|
|
return *element_type_expression_;
|
|
}
|
|
|
|
auto size_expression() const -> const Expression& {
|
|
return *size_expression_;
|
|
}
|
|
auto size_expression() -> Expression& { return *size_expression_; }
|
|
|
|
private:
|
|
Nonnull<Expression*> element_type_expression_;
|
|
Nonnull<Expression*> size_expression_;
|
|
};
|
|
|
|
// Converts paren_contents to an Expression, interpreting the parentheses as
|
|
// grouping if their contents permit that interpretation, or as forming a
|
|
// tuple otherwise.
|
|
auto ExpressionFromParenContents(
|
|
Nonnull<Arena*> arena, SourceLocation source_loc,
|
|
const ParenContents<Expression>& paren_contents) -> Nonnull<Expression*>;
|
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// Converts paren_contents to an Expression, interpreting the parentheses as
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// forming a tuple.
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auto TupleExpressionFromParenContents(
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Nonnull<Arena*> arena, SourceLocation source_loc,
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const ParenContents<Expression>& paren_contents) -> Nonnull<TupleLiteral*>;
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} // namespace Carbon
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#endif // CARBON_EXPLORER_AST_EXPRESSION_H_
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