mirror of
https://github.com/carbon-language/carbon-lang.git
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* parameterized impls, first step * bug fixes, comments, etc. * added another test case, fix a bug in impl lookup * simplify tests, removing tuple stuff * don't create impl bindings for -bound implicit parameters * remove a redundant 'private' * CamelCase * add missing backtick * add a comment
416 lines
16 KiB
C++
416 lines
16 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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#include "executable_semantics/interpreter/resolve_names.h"
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#include <set>
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#include "executable_semantics/ast/declaration.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/ast/static_scope.h"
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#include "llvm/Support/Casting.h"
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#include "llvm/Support/Error.h"
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using llvm::cast;
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namespace Carbon {
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// Adds the names exposed by the given AST node to enclosing_scope.
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static auto AddExposedNames(const Declaration& declaration,
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StaticScope& enclosing_scope) -> ErrorOr<Success>;
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static auto AddExposedNames(const Declaration& declaration,
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StaticScope& enclosing_scope) -> ErrorOr<Success> {
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switch (declaration.kind()) {
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case DeclarationKind::InterfaceDeclaration: {
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auto& iface_decl = cast<InterfaceDeclaration>(declaration);
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RETURN_IF_ERROR(enclosing_scope.Add(iface_decl.name(), &iface_decl));
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break;
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}
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case DeclarationKind::ImplDeclaration: {
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// Nothing to do here
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break;
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}
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case DeclarationKind::FunctionDeclaration: {
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auto& func = cast<FunctionDeclaration>(declaration);
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RETURN_IF_ERROR(enclosing_scope.Add(func.name(), &func));
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break;
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}
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case DeclarationKind::ClassDeclaration: {
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auto& class_decl = cast<ClassDeclaration>(declaration);
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RETURN_IF_ERROR(enclosing_scope.Add(class_decl.name(), &class_decl));
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break;
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}
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case DeclarationKind::ChoiceDeclaration: {
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auto& choice = cast<ChoiceDeclaration>(declaration);
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RETURN_IF_ERROR(enclosing_scope.Add(choice.name(), &choice));
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break;
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}
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case DeclarationKind::VariableDeclaration:
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auto& var = cast<VariableDeclaration>(declaration);
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if (var.binding().name() != AnonymousName) {
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RETURN_IF_ERROR(
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enclosing_scope.Add(var.binding().name(), &var.binding()));
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}
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break;
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}
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return Success();
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}
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// Traverses the sub-AST rooted at the given node, resolving all names within
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// it using enclosing_scope, and updating enclosing_scope to add names to
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// it as they become available. In scopes where names are only visible below
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// their point of declaration (such as block scopes in C++), this is implemented
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// as a single pass, recursively calling ResolveNames on the elements of the
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// scope in order. In scopes where names are also visible above their point of
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// declaration (such as class scopes in C++), this requires two passes: first
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// calling AddExposedNames on each element of the scope to populate a
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// StaticScope, and then calling ResolveNames on each element, passing it the
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// already-populated StaticScope.
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static auto ResolveNames(Expression& expression,
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const StaticScope& enclosing_scope)
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-> ErrorOr<Success>;
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static auto ResolveNames(Pattern& pattern, StaticScope& enclosing_scope)
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-> ErrorOr<Success>;
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static auto ResolveNames(Statement& statement, StaticScope& enclosing_scope)
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-> ErrorOr<Success>;
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static auto ResolveNames(Declaration& declaration, StaticScope& enclosing_scope)
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-> ErrorOr<Success>;
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static auto ResolveNames(Expression& expression,
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const StaticScope& enclosing_scope)
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-> ErrorOr<Success> {
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switch (expression.kind()) {
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case ExpressionKind::CallExpression: {
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auto& call = cast<CallExpression>(expression);
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RETURN_IF_ERROR(ResolveNames(call.function(), enclosing_scope));
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RETURN_IF_ERROR(ResolveNames(call.argument(), enclosing_scope));
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break;
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}
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case ExpressionKind::FunctionTypeLiteral: {
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auto& fun_type = cast<FunctionTypeLiteral>(expression);
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RETURN_IF_ERROR(ResolveNames(fun_type.parameter(), enclosing_scope));
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RETURN_IF_ERROR(ResolveNames(fun_type.return_type(), enclosing_scope));
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break;
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}
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case ExpressionKind::FieldAccessExpression:
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RETURN_IF_ERROR(
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ResolveNames(cast<FieldAccessExpression>(expression).aggregate(),
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enclosing_scope));
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break;
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case ExpressionKind::IndexExpression: {
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auto& index = cast<IndexExpression>(expression);
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RETURN_IF_ERROR(ResolveNames(index.aggregate(), enclosing_scope));
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RETURN_IF_ERROR(ResolveNames(index.offset(), enclosing_scope));
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break;
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}
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case ExpressionKind::PrimitiveOperatorExpression:
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for (Nonnull<Expression*> operand :
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cast<PrimitiveOperatorExpression>(expression).arguments()) {
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RETURN_IF_ERROR(ResolveNames(*operand, enclosing_scope));
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}
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break;
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case ExpressionKind::TupleLiteral:
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for (Nonnull<Expression*> field :
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cast<TupleLiteral>(expression).fields()) {
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RETURN_IF_ERROR(ResolveNames(*field, enclosing_scope));
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}
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break;
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case ExpressionKind::StructLiteral:
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for (FieldInitializer& init : cast<StructLiteral>(expression).fields()) {
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RETURN_IF_ERROR(ResolveNames(init.expression(), enclosing_scope));
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}
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break;
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case ExpressionKind::StructTypeLiteral:
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for (FieldInitializer& init :
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cast<StructTypeLiteral>(expression).fields()) {
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RETURN_IF_ERROR(ResolveNames(init.expression(), enclosing_scope));
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}
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break;
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case ExpressionKind::IdentifierExpression: {
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auto& identifier = cast<IdentifierExpression>(expression);
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ASSIGN_OR_RETURN(
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const auto value_node,
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enclosing_scope.Resolve(identifier.name(), identifier.source_loc()));
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identifier.set_value_node(value_node);
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break;
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}
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case ExpressionKind::IntrinsicExpression:
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RETURN_IF_ERROR(ResolveNames(cast<IntrinsicExpression>(expression).args(),
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enclosing_scope));
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break;
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case ExpressionKind::IfExpression: {
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auto& if_expr = cast<IfExpression>(expression);
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RETURN_IF_ERROR(ResolveNames(if_expr.condition(), enclosing_scope));
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RETURN_IF_ERROR(ResolveNames(if_expr.then_expression(), enclosing_scope));
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RETURN_IF_ERROR(ResolveNames(if_expr.else_expression(), enclosing_scope));
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break;
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}
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case ExpressionKind::ArrayTypeLiteral: {
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auto& array_literal = cast<ArrayTypeLiteral>(expression);
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RETURN_IF_ERROR(ResolveNames(array_literal.element_type_expression(),
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enclosing_scope));
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RETURN_IF_ERROR(
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ResolveNames(array_literal.size_expression(), enclosing_scope));
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break;
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}
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case ExpressionKind::BoolTypeLiteral:
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case ExpressionKind::BoolLiteral:
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case ExpressionKind::IntTypeLiteral:
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case ExpressionKind::ContinuationTypeLiteral:
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case ExpressionKind::IntLiteral:
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case ExpressionKind::StringLiteral:
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case ExpressionKind::StringTypeLiteral:
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case ExpressionKind::TypeTypeLiteral:
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break;
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case ExpressionKind::InstantiateImpl: // created after name resolution
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case ExpressionKind::UnimplementedExpression:
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return CompilationError(expression.source_loc()) << "Unimplemented";
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}
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return Success();
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}
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static auto ResolveNames(Pattern& pattern, StaticScope& enclosing_scope)
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-> ErrorOr<Success> {
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switch (pattern.kind()) {
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case PatternKind::BindingPattern: {
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auto& binding = cast<BindingPattern>(pattern);
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RETURN_IF_ERROR(ResolveNames(binding.type(), enclosing_scope));
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if (binding.name() != AnonymousName) {
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RETURN_IF_ERROR(enclosing_scope.Add(binding.name(), &binding));
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}
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break;
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}
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case PatternKind::GenericBinding: {
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auto& binding = cast<GenericBinding>(pattern);
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RETURN_IF_ERROR(ResolveNames(binding.type(), enclosing_scope));
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if (binding.name() != AnonymousName) {
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RETURN_IF_ERROR(enclosing_scope.Add(binding.name(), &binding));
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}
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break;
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}
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case PatternKind::TuplePattern:
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for (Nonnull<Pattern*> field : cast<TuplePattern>(pattern).fields()) {
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RETURN_IF_ERROR(ResolveNames(*field, enclosing_scope));
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}
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break;
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case PatternKind::AlternativePattern: {
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auto& alternative = cast<AlternativePattern>(pattern);
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RETURN_IF_ERROR(ResolveNames(alternative.choice_type(), enclosing_scope));
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RETURN_IF_ERROR(ResolveNames(alternative.arguments(), enclosing_scope));
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break;
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}
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case PatternKind::ExpressionPattern:
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RETURN_IF_ERROR(ResolveNames(
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cast<ExpressionPattern>(pattern).expression(), enclosing_scope));
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break;
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case PatternKind::AutoPattern:
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break;
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case PatternKind::VarPattern:
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RETURN_IF_ERROR(
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ResolveNames(cast<VarPattern>(pattern).pattern(), enclosing_scope));
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break;
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}
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return Success();
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}
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static auto ResolveNames(Statement& statement, StaticScope& enclosing_scope)
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-> ErrorOr<Success> {
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switch (statement.kind()) {
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case StatementKind::ExpressionStatement:
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RETURN_IF_ERROR(ResolveNames(
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cast<ExpressionStatement>(statement).expression(), enclosing_scope));
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break;
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case StatementKind::Assign: {
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auto& assign = cast<Assign>(statement);
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RETURN_IF_ERROR(ResolveNames(assign.lhs(), enclosing_scope));
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RETURN_IF_ERROR(ResolveNames(assign.rhs(), enclosing_scope));
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break;
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}
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case StatementKind::VariableDefinition: {
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auto& def = cast<VariableDefinition>(statement);
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RETURN_IF_ERROR(ResolveNames(def.init(), enclosing_scope));
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RETURN_IF_ERROR(ResolveNames(def.pattern(), enclosing_scope));
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break;
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}
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case StatementKind::If: {
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auto& if_stmt = cast<If>(statement);
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RETURN_IF_ERROR(ResolveNames(if_stmt.condition(), enclosing_scope));
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RETURN_IF_ERROR(ResolveNames(if_stmt.then_block(), enclosing_scope));
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if (if_stmt.else_block().has_value()) {
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RETURN_IF_ERROR(ResolveNames(**if_stmt.else_block(), enclosing_scope));
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}
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break;
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}
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case StatementKind::Return:
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RETURN_IF_ERROR(
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ResolveNames(cast<Return>(statement).expression(), enclosing_scope));
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break;
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case StatementKind::Block: {
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auto& block = cast<Block>(statement);
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StaticScope block_scope;
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block_scope.AddParent(&enclosing_scope);
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for (Nonnull<Statement*> sub_statement : block.statements()) {
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RETURN_IF_ERROR(ResolveNames(*sub_statement, block_scope));
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}
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break;
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}
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case StatementKind::While: {
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auto& while_stmt = cast<While>(statement);
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RETURN_IF_ERROR(ResolveNames(while_stmt.condition(), enclosing_scope));
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RETURN_IF_ERROR(ResolveNames(while_stmt.body(), enclosing_scope));
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break;
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}
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case StatementKind::Match: {
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auto& match = cast<Match>(statement);
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RETURN_IF_ERROR(ResolveNames(match.expression(), enclosing_scope));
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for (Match::Clause& clause : match.clauses()) {
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StaticScope clause_scope;
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clause_scope.AddParent(&enclosing_scope);
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RETURN_IF_ERROR(ResolveNames(clause.pattern(), clause_scope));
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RETURN_IF_ERROR(ResolveNames(clause.statement(), clause_scope));
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}
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break;
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}
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case StatementKind::Continuation: {
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auto& continuation = cast<Continuation>(statement);
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RETURN_IF_ERROR(enclosing_scope.Add(continuation.name(), &continuation));
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StaticScope continuation_scope;
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continuation_scope.AddParent(&enclosing_scope);
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RETURN_IF_ERROR(ResolveNames(cast<Continuation>(statement).body(),
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continuation_scope));
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break;
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}
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case StatementKind::Run:
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RETURN_IF_ERROR(
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ResolveNames(cast<Run>(statement).argument(), enclosing_scope));
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break;
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case StatementKind::Await:
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case StatementKind::Break:
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case StatementKind::Continue:
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break;
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}
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return Success();
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}
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static auto ResolveNames(Declaration& declaration, StaticScope& enclosing_scope)
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-> ErrorOr<Success> {
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switch (declaration.kind()) {
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case DeclarationKind::InterfaceDeclaration: {
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auto& iface = cast<InterfaceDeclaration>(declaration);
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StaticScope iface_scope;
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iface_scope.AddParent(&enclosing_scope);
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RETURN_IF_ERROR(iface_scope.Add("Self", iface.self()));
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for (Nonnull<Declaration*> member : iface.members()) {
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RETURN_IF_ERROR(AddExposedNames(*member, iface_scope));
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}
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for (Nonnull<Declaration*> member : iface.members()) {
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RETURN_IF_ERROR(ResolveNames(*member, iface_scope));
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}
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break;
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}
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case DeclarationKind::ImplDeclaration: {
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auto& impl = cast<ImplDeclaration>(declaration);
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StaticScope impl_scope;
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impl_scope.AddParent(&enclosing_scope);
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for (Nonnull<GenericBinding*> binding : impl.deduced_parameters()) {
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RETURN_IF_ERROR(ResolveNames(binding->type(), impl_scope));
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RETURN_IF_ERROR(impl_scope.Add(binding->name(), binding));
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}
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RETURN_IF_ERROR(ResolveNames(*impl.impl_type(), impl_scope));
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RETURN_IF_ERROR(ResolveNames(impl.interface(), enclosing_scope));
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for (Nonnull<Declaration*> member : impl.members()) {
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RETURN_IF_ERROR(AddExposedNames(*member, impl_scope));
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}
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for (Nonnull<Declaration*> member : impl.members()) {
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RETURN_IF_ERROR(ResolveNames(*member, impl_scope));
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}
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break;
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}
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case DeclarationKind::FunctionDeclaration: {
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auto& function = cast<FunctionDeclaration>(declaration);
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StaticScope function_scope;
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function_scope.AddParent(&enclosing_scope);
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for (Nonnull<GenericBinding*> binding : function.deduced_parameters()) {
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RETURN_IF_ERROR(ResolveNames(binding->type(), function_scope));
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RETURN_IF_ERROR(function_scope.Add(binding->name(), binding));
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}
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if (function.is_method()) {
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RETURN_IF_ERROR(ResolveNames(function.me_pattern(), function_scope));
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}
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RETURN_IF_ERROR(ResolveNames(function.param_pattern(), function_scope));
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if (function.return_term().type_expression().has_value()) {
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RETURN_IF_ERROR(ResolveNames(**function.return_term().type_expression(),
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function_scope));
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}
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if (function.body().has_value()) {
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RETURN_IF_ERROR(ResolveNames(**function.body(), function_scope));
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}
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break;
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}
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case DeclarationKind::ClassDeclaration: {
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auto& class_decl = cast<ClassDeclaration>(declaration);
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StaticScope class_scope;
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class_scope.AddParent(&enclosing_scope);
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RETURN_IF_ERROR(class_scope.Add(class_decl.name(), &class_decl));
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if (class_decl.type_params().has_value()) {
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RETURN_IF_ERROR(ResolveNames(**class_decl.type_params(), class_scope));
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}
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// TODO: Disable unqualified access of members by other members for now.
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// Put it back later, but in a way that turns unqualified accesses
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// into qualified ones, so that generic classes and impls
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// behave the in the right way. -Jeremy
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// for (Nonnull<Declaration*> member : class_decl.members()) {
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// AddExposedNames(*member, class_scope);
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// }
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for (Nonnull<Declaration*> member : class_decl.members()) {
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RETURN_IF_ERROR(ResolveNames(*member, class_scope));
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}
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break;
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}
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case DeclarationKind::ChoiceDeclaration: {
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auto& choice = cast<ChoiceDeclaration>(declaration);
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// Alternative names are never used unqualified, so we don't need to
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// add the alternatives to a scope, or introduce a new scope; we only
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// need to check for duplicates.
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std::set<std::string_view> alternative_names;
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for (Nonnull<AlternativeSignature*> alternative : choice.alternatives()) {
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RETURN_IF_ERROR(
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ResolveNames(alternative->signature(), enclosing_scope));
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if (!alternative_names.insert(alternative->name()).second) {
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return CompilationError(alternative->source_loc())
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<< "Duplicate name `" << alternative->name()
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<< "` in choice type";
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}
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}
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break;
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}
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case DeclarationKind::VariableDeclaration: {
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auto& var = cast<VariableDeclaration>(declaration);
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RETURN_IF_ERROR(ResolveNames(var.binding(), enclosing_scope));
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if (var.has_initializer()) {
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RETURN_IF_ERROR(ResolveNames(var.initializer(), enclosing_scope));
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}
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break;
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}
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}
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return Success();
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}
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auto ResolveNames(AST& ast) -> ErrorOr<Success> {
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StaticScope file_scope;
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for (auto declaration : ast.declarations) {
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RETURN_IF_ERROR(AddExposedNames(*declaration, file_scope));
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}
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for (auto declaration : ast.declarations) {
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RETURN_IF_ERROR(ResolveNames(*declaration, file_scope));
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}
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return ResolveNames(**ast.main_call, file_scope);
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}
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} // namespace Carbon
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