mirror of
https://github.com/carbon-language/carbon-lang.git
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This starts detecting naming collisions as a consequence of being able to determine when the name is declared twice in a given scope. Co-authored-by: Geoff Romer <gromer@google.com>
404 lines
12 KiB
C++
404 lines
12 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 EXECUTABLE_SEMANTICS_AST_STATEMENT_H_
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#define EXECUTABLE_SEMANTICS_AST_STATEMENT_H_
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#include <vector>
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#include "common/ostream.h"
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#include "executable_semantics/ast/expression.h"
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#include "executable_semantics/ast/pattern.h"
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#include "executable_semantics/ast/source_location.h"
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#include "executable_semantics/ast/static_scope.h"
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#include "executable_semantics/common/arena.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 FunctionDeclaration;
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class StaticScope;
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class Statement {
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public:
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enum class Kind {
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ExpressionStatement,
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Assign,
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VariableDefinition,
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If,
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Return,
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Block,
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While,
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Break,
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Continue,
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Match,
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Continuation, // Create a first-class continuation.
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Run, // Run a continuation to the next await or until it finishes.
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Await, // Pause execution of the continuation.
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};
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void Print(llvm::raw_ostream& out) const { PrintDepth(-1, out); }
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void PrintDepth(int depth, llvm::raw_ostream& out) const;
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LLVM_DUMP_METHOD void Dump() const { Print(llvm::errs()); }
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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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auto source_loc() const -> SourceLocation { return source_loc_; }
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protected:
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// Constructs an Statement 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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Statement(Kind kind, SourceLocation source_loc)
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: kind_(kind), source_loc_(source_loc) {}
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private:
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const Kind kind_;
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SourceLocation source_loc_;
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};
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class Block : public Statement {
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public:
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Block(SourceLocation source_loc, std::vector<Nonnull<Statement*>> statements)
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: Statement(Kind::Block, source_loc), statements_(statements) {}
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static auto classof(const Statement* stmt) -> bool {
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return stmt->kind() == Kind::Block;
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}
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auto statements() const -> llvm::ArrayRef<Nonnull<const Statement*>> {
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return statements_;
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}
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auto statements() -> llvm::MutableArrayRef<Nonnull<Statement*>> {
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return statements_;
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}
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auto static_scope() const -> const StaticScope& { return static_scope_; }
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auto static_scope() -> StaticScope& { return static_scope_; }
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private:
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std::vector<Nonnull<Statement*>> statements_;
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StaticScope static_scope_;
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};
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class ExpressionStatement : public Statement {
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public:
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ExpressionStatement(SourceLocation source_loc,
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Nonnull<Expression*> expression)
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: Statement(Kind::ExpressionStatement, source_loc),
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expression_(expression) {}
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static auto classof(const Statement* stmt) -> bool {
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return stmt->kind() == Kind::ExpressionStatement;
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}
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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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Nonnull<Expression*> expression_;
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};
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class Assign : public Statement {
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public:
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Assign(SourceLocation source_loc, Nonnull<Expression*> lhs,
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Nonnull<Expression*> rhs)
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: Statement(Kind::Assign, source_loc), lhs_(lhs), rhs_(rhs) {}
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static auto classof(const Statement* stmt) -> bool {
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return stmt->kind() == Kind::Assign;
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}
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auto lhs() const -> const Expression& { return *lhs_; }
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auto lhs() -> Expression& { return *lhs_; }
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auto rhs() const -> const Expression& { return *rhs_; }
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auto rhs() -> Expression& { return *rhs_; }
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private:
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Nonnull<Expression*> lhs_;
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Nonnull<Expression*> rhs_;
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};
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class VariableDefinition : public Statement {
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public:
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VariableDefinition(SourceLocation source_loc, Nonnull<Pattern*> pattern,
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Nonnull<Expression*> init)
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: Statement(Kind::VariableDefinition, source_loc),
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pattern_(pattern),
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init_(init) {}
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static auto classof(const Statement* stmt) -> bool {
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return stmt->kind() == Kind::VariableDefinition;
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}
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auto pattern() const -> const Pattern& { return *pattern_; }
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auto pattern() -> Pattern& { return *pattern_; }
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auto init() const -> const Expression& { return *init_; }
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auto init() -> Expression& { return *init_; }
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private:
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Nonnull<Pattern*> pattern_;
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Nonnull<Expression*> init_;
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};
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class If : public Statement {
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public:
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If(SourceLocation source_loc, Nonnull<Expression*> condition,
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Nonnull<Block*> then_block, std::optional<Nonnull<Block*>> else_block)
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: Statement(Kind::If, source_loc),
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condition_(condition),
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then_block_(then_block),
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else_block_(else_block) {}
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static auto classof(const Statement* stmt) -> bool {
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return stmt->kind() == Kind::If;
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}
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auto condition() const -> const Expression& { return *condition_; }
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auto condition() -> Expression& { return *condition_; }
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auto then_block() const -> const Block& { return *then_block_; }
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auto then_block() -> Block& { return *then_block_; }
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auto else_block() const -> std::optional<Nonnull<const Block*>> {
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return else_block_;
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}
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auto else_block() -> std::optional<Nonnull<Block*>> { return else_block_; }
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private:
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Nonnull<Expression*> condition_;
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Nonnull<Block*> then_block_;
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std::optional<Nonnull<Block*>> else_block_;
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};
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class Return : public Statement {
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public:
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Return(Nonnull<Arena*> arena, SourceLocation source_loc)
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: Return(source_loc, arena->New<TupleLiteral>(source_loc), true) {}
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Return(SourceLocation source_loc, Nonnull<Expression*> expression,
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bool is_omitted_expression)
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: Statement(Kind::Return, source_loc),
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expression_(expression),
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is_omitted_expression_(is_omitted_expression) {}
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static auto classof(const Statement* stmt) -> bool {
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return stmt->kind() == Kind::Return;
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}
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auto expression() const -> const Expression& { return *expression_; }
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auto expression() -> Expression& { return *expression_; }
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auto is_omitted_expression() const -> bool { return is_omitted_expression_; }
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// The AST node representing the function body this statement returns from.
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// Can only be called after ResolveControlFlow has visited this node.
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//
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// Note that this function does not represent an edge in the tree
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// structure of the AST: the return value is not a child of this node,
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// but an ancestor.
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auto function() const -> const FunctionDeclaration& { return **function_; }
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// Can only be called once, by ResolveControlFlow.
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void set_function(Nonnull<const FunctionDeclaration*> function) {
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CHECK(!function_.has_value());
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function_ = function;
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}
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private:
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Nonnull<Expression*> expression_;
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bool is_omitted_expression_;
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std::optional<Nonnull<const FunctionDeclaration*>> function_;
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};
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class While : public Statement {
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public:
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While(SourceLocation source_loc, Nonnull<Expression*> condition,
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Nonnull<Block*> body)
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: Statement(Kind::While, source_loc),
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condition_(condition),
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body_(body) {}
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static auto classof(const Statement* stmt) -> bool {
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return stmt->kind() == Kind::While;
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}
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auto condition() const -> const Expression& { return *condition_; }
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auto condition() -> Expression& { return *condition_; }
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auto body() const -> const Block& { return *body_; }
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auto body() -> Block& { return *body_; }
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private:
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Nonnull<Expression*> condition_;
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Nonnull<Block*> body_;
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};
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class Break : public Statement {
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public:
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explicit Break(SourceLocation source_loc)
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: Statement(Kind::Break, source_loc) {}
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static auto classof(const Statement* stmt) -> bool {
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return stmt->kind() == Kind::Break;
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}
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// The AST node representing the loop this statement breaks out of.
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// Can only be called after ResolveControlFlow has visited this node.
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//
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// Note that this function does not represent an edge in the tree
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// structure of the AST: the return value is not a child of this node,
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// but an ancestor.
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auto loop() const -> const Statement& { return **loop_; }
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// Can only be called once, by ResolveControlFlow.
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void set_loop(Nonnull<const Statement*> loop) {
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CHECK(!loop_.has_value());
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loop_ = loop;
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}
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private:
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std::optional<Nonnull<const Statement*>> loop_;
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};
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class Continue : public Statement {
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public:
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explicit Continue(SourceLocation source_loc)
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: Statement(Kind::Continue, source_loc) {}
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static auto classof(const Statement* stmt) -> bool {
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return stmt->kind() == Kind::Continue;
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}
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// The AST node representing the loop this statement continues.
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// Can only be called after ResolveControlFlow has visited this node.
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//
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// Note that this function does not represent an edge in the tree
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// structure of the AST: the return value is not a child of this node,
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// but an ancestor.
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auto loop() const -> const Statement& { return **loop_; }
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// Can only be called once, by ResolveControlFlow.
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void set_loop(Nonnull<const Statement*> loop) {
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CHECK(!loop_.has_value());
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loop_ = loop;
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}
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private:
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std::optional<Nonnull<const Statement*>> loop_;
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};
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class Match : public Statement {
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public:
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class Clause {
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public:
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Clause(Nonnull<Pattern*> pattern, Nonnull<Statement*> statement)
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: pattern_(pattern), statement_(statement) {}
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auto pattern() const -> const Pattern& { return *pattern_; }
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auto pattern() -> Pattern& { return *pattern_; }
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auto statement() const -> const Statement& { return *statement_; }
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auto statement() -> Statement& { return *statement_; }
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// Contains names for the pattern and statement. Note that when the
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// statement is a block, it gains its own scope.
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auto static_scope() const -> const StaticScope& { return static_scope_; }
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auto static_scope() -> StaticScope& { return static_scope_; }
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private:
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Nonnull<Pattern*> pattern_;
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Nonnull<Statement*> statement_;
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StaticScope static_scope_;
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};
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Match(SourceLocation source_loc, Nonnull<Expression*> expression,
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std::vector<Clause> clauses)
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: Statement(Kind::Match, source_loc),
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expression_(expression),
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clauses_(std::move(clauses)) {}
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static auto classof(const Statement* stmt) -> bool {
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return stmt->kind() == Kind::Match;
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}
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auto expression() const -> const Expression& { return *expression_; }
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auto expression() -> Expression& { return *expression_; }
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auto clauses() const -> llvm::ArrayRef<Clause> { return clauses_; }
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auto clauses() -> llvm::MutableArrayRef<Clause> { return clauses_; }
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private:
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Nonnull<Expression*> expression_;
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std::vector<Clause> clauses_;
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};
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// A continuation statement.
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//
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// __continuation <continuation_variable> {
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// <body>
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// }
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class Continuation : public Statement, public NamedEntityInterface {
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public:
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Continuation(SourceLocation source_loc, std::string continuation_variable,
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Nonnull<Block*> body)
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: Statement(Kind::Continuation, source_loc),
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continuation_variable_(std::move(continuation_variable)),
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body_(body) {}
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auto named_entity_kind() const -> NamedEntityKind override {
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return NamedEntityKind::Continuation;
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}
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auto source_loc() const -> SourceLocation override {
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return Statement::source_loc();
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}
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static auto classof(const Statement* stmt) -> bool {
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return stmt->kind() == Kind::Continuation;
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}
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auto continuation_variable() const -> const std::string& {
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return continuation_variable_;
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}
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auto body() const -> const Block& { return *body_; }
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auto body() -> Block& { return *body_; }
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private:
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std::string continuation_variable_;
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Nonnull<Block*> body_;
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};
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// A run statement.
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//
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// __run <argument>;
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class Run : public Statement {
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public:
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Run(SourceLocation source_loc, Nonnull<Expression*> argument)
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: Statement(Kind::Run, source_loc), argument_(argument) {}
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static auto classof(const Statement* stmt) -> bool {
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return stmt->kind() == Kind::Run;
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}
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auto argument() const -> const Expression& { return *argument_; }
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auto argument() -> Expression& { return *argument_; }
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private:
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Nonnull<Expression*> argument_;
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};
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// An await statement.
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//
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// __await;
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class Await : public Statement {
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public:
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explicit Await(SourceLocation source_loc)
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: Statement(Kind::Await, source_loc) {}
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static auto classof(const Statement* stmt) -> bool {
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return stmt->kind() == Kind::Await;
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}
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};
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} // namespace Carbon
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#endif // EXECUTABLE_SEMANTICS_AST_STATEMENT_H_
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