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* interfaces, impls, and constrained generics (basics) * separate type checking into declare vs. type check, removing redundancy * external impls * added impl scopes to handle generics calling generics * cleanup * more cleanup * Update executable_semantics/testdata/interface/external_impl_point_vector.carbon Co-authored-by: josh11b <josh11b@users.noreply.github.com> * Update executable_semantics/testdata/interface/generic_call_generic.carbon Co-authored-by: josh11b <josh11b@users.noreply.github.com> * Update executable_semantics/testdata/interface/tuple_vector_add_scale.carbon Co-authored-by: josh11b <josh11b@users.noreply.github.com> * Update executable_semantics/testdata/interface/vector_point_add_scale.carbon Co-authored-by: josh11b <josh11b@users.noreply.github.com> * change ImplementationDeclaration to ImplDeclaration * remove impl_type_value * split NamedEntity into two * changed GetName to be a free function * adding comments * more edits to respond to review * introduce ImplBinding, remove punning on GenericBinding * new test case and some minor edits * refactor GetMember and GetField to move impl logic to interpreter * remove commennt * change EntityView to ImplBinding in FieldAccess... * move ImplBinding * review response * added example to impl_scope.h * minor edits * Update executable_semantics/interpreter/field_path.h Co-authored-by: Geoff Romer <gromer@google.com> * Update executable_semantics/interpreter/value.cpp Co-authored-by: Geoff Romer <gromer@google.com> * Update executable_semantics/interpreter/interpreter.cpp Co-authored-by: Geoff Romer <gromer@google.com> * Update executable_semantics/ast/expression.h Co-authored-by: Geoff Romer <gromer@google.com> * Update executable_semantics/ast/expression.h Co-authored-by: Geoff Romer <gromer@google.com> * Update executable_semantics/ast/generic_binding.h Co-authored-by: Geoff Romer <gromer@google.com> * more edits from review * review response * Update executable_semantics/ast/static_scope.h Co-authored-by: Geoff Romer <gromer@google.com> * remove ImplType, renamed node_view to value_node Co-authored-by: josh11b <josh11b@users.noreply.github.com> Co-authored-by: Geoff Romer <gromer@google.com>
255 lines
8.3 KiB
C++
255 lines
8.3 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_INTERPRETER_ACTION_H_
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#define EXECUTABLE_SEMANTICS_INTERPRETER_ACTION_H_
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#include <map>
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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/statement.h"
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#include "executable_semantics/interpreter/dictionary.h"
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#include "executable_semantics/interpreter/heap_allocation_interface.h"
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#include "executable_semantics/interpreter/stack.h"
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#include "executable_semantics/interpreter/value.h"
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#include "llvm/Support/Compiler.h"
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namespace Carbon {
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// A RuntimeScope manages and provides access to the storage for names that are
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// not compile-time constants.
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class RuntimeScope {
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public:
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// Returns a RuntimeScope whose Get() operation for a given name returns the
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// storage owned by the first entry in `scopes` that defines that name. This
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// behavior is closely analogous to a `[&]` capture in C++, hence the name.
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// `scopes` must contain at least one entry, and all entries must be backed
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// by the same Heap.
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static auto Capture(const std::vector<Nonnull<const RuntimeScope*>>& scopes)
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-> RuntimeScope;
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// Constructs a RuntimeScope that allocates storage in `heap`.
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explicit RuntimeScope(Nonnull<HeapAllocationInterface*> heap) : heap_(heap) {}
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// Moving a RuntimeScope transfers ownership of its allocations.
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RuntimeScope(RuntimeScope&&) noexcept;
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auto operator=(RuntimeScope&&) noexcept -> RuntimeScope&;
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// Deallocates any allocations in this scope from `heap`.
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~RuntimeScope();
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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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// Allocates storage for `value_node` in `heap`, and initializes it with
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// `value`.
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void Initialize(ValueNodeView value_node, Nonnull<const Value*> value);
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// Transfers the names and allocations from `other` into *this. The two
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// scopes must not define the same name, and must be backed by the same Heap.
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void Merge(RuntimeScope other);
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// Returns the local storage for value_node, if it has storage local to
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// this scope.
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auto Get(ValueNodeView value_node) const
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-> std::optional<Nonnull<const LValue*>>;
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private:
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std::map<ValueNodeView, Nonnull<const LValue*>> locals_;
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std::vector<AllocationId> allocations_;
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Nonnull<HeapAllocationInterface*> heap_;
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};
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// An Action represents the current state of a self-contained computation,
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// usually associated with some AST node, such as evaluation of an expression or
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// execution of a statement. Execution of an action is divided into a series of
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// steps, and the `pos` field typically counts the number of steps executed.
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//
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// They should be destroyed as soon as they are done executing, in order to
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// clean up the associated Carbon scope, and consequently they should not be
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// allocated on an Arena. Actions are typically owned by the ActionStack.
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//
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// The actual behavior of an Action step is defined by Interpreter::Step, not by
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// Action or its subclasses.
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// TODO: consider moving this logic to a virtual method `Step`.
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class Action {
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public:
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enum class Kind {
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LValAction,
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ExpressionAction,
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PatternAction,
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StatementAction,
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DeclarationAction,
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ScopeAction,
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};
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Action(const Value&) = delete;
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auto operator=(const Value&) -> Action& = delete;
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virtual ~Action() = default;
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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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// Resets this Action to its initial state.
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void Clear() {
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CHECK(!scope_.has_value());
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pos_ = 0;
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results_.clear();
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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 -> Kind { return kind_; }
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// The position or state of the action. Starts at 0 and is typically
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// incremented after each step.
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auto pos() const -> int { return pos_; }
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void set_pos(int pos) { this->pos_ = pos; }
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// The results of any Actions spawned by this Action.
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auto results() const -> const std::vector<Nonnull<const Value*>>& {
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return results_;
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}
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// Appends `result` to `results`.
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void AddResult(Nonnull<const Value*> result) { results_.push_back(result); }
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// Returns the scope associated with this Action, if any.
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auto scope() -> std::optional<RuntimeScope>& { return scope_; }
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// Associates this action with a new scope, with initial state `scope`.
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// Values that are local to this scope will be deallocated when this
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// Action is completed or unwound. Can only be called once on a given
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// Action.
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void StartScope(RuntimeScope scope) {
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CHECK(!scope_.has_value());
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scope_ = std::move(scope);
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}
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protected:
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// Constructs an Action. `kind` must be the enumerator corresponding to the
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// most-derived type being constructed.
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explicit Action(Kind kind) : kind_(kind) {}
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private:
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int pos_ = 0;
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std::vector<Nonnull<const Value*>> results_;
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std::optional<RuntimeScope> scope_;
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const Kind kind_;
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};
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// An Action which implements evaluation of an Expression to produce an
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// LValue.
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class LValAction : public Action {
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public:
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explicit LValAction(Nonnull<const Expression*> expression)
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: Action(Kind::LValAction), expression_(expression) {}
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static auto classof(const Action* action) -> bool {
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return action->kind() == Kind::LValAction;
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}
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// The Expression this Action evaluates.
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auto expression() const -> const Expression& { return *expression_; }
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private:
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Nonnull<const Expression*> expression_;
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};
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// An Action which implements evaluation of an Expression to produce an
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// rvalue. The result is expressed as a Value.
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class ExpressionAction : public Action {
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public:
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explicit ExpressionAction(Nonnull<const Expression*> expression)
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: Action(Kind::ExpressionAction), expression_(expression) {}
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static auto classof(const Action* action) -> bool {
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return action->kind() == Kind::ExpressionAction;
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}
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// The Expression this Action evaluates.
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auto expression() const -> const Expression& { return *expression_; }
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private:
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Nonnull<const Expression*> expression_;
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};
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// An Action which implements evaluation of a Pattern. The result is expressed
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// as a Value.
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class PatternAction : public Action {
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public:
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explicit PatternAction(Nonnull<const Pattern*> pattern)
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: Action(Kind::PatternAction), pattern_(pattern) {}
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static auto classof(const Action* action) -> bool {
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return action->kind() == Kind::PatternAction;
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}
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// The Pattern this Action evaluates.
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auto pattern() const -> const Pattern& { return *pattern_; }
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private:
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Nonnull<const Pattern*> pattern_;
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};
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// An Action which implements execution of a Statement. Does not produce a
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// result.
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class StatementAction : public Action {
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public:
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explicit StatementAction(Nonnull<const Statement*> statement)
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: Action(Kind::StatementAction), statement_(statement) {}
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static auto classof(const Action* action) -> bool {
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return action->kind() == Kind::StatementAction;
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}
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// The Statement this Action executes.
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auto statement() const -> const Statement& { return *statement_; }
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private:
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Nonnull<const Statement*> statement_;
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};
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// Action which implements the run-time effects of executing a Declaration.
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// Does not produce a result.
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class DeclarationAction : public Action {
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public:
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explicit DeclarationAction(Nonnull<const Declaration*> declaration)
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: Action(Kind::DeclarationAction), declaration_(declaration) {}
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static auto classof(const Action* action) -> bool {
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return action->kind() == Kind::DeclarationAction;
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}
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// The Declaration this Action executes.
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auto declaration() const -> const Declaration& { return *declaration_; }
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private:
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Nonnull<const Declaration*> declaration_;
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};
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// Action which does nothing except introduce a new scope into the action
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// stack. This is useful when a distinct scope doesn't otherwise have an
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// Action it can naturally be associated with. ScopeActions are not associated
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// with AST nodes.
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class ScopeAction : public Action {
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public:
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explicit ScopeAction(RuntimeScope scope) : Action(Kind::ScopeAction) {
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StartScope(std::move(scope));
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}
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static auto classof(const Action* action) -> bool {
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return action->kind() == Kind::ScopeAction;
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}
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};
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} // namespace Carbon
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#endif // EXECUTABLE_SEMANTICS_INTERPRETER_ACTION_H_
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