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This change adds a `BindSymbolicName` instruction for generic bindings, paralleling the existing `BindName`. A mechanism is also added to allow both kinds of binding to be accessed uniformly, for convenience in the case where the two different kinds of binding are treated the same. Generic bindings of type `type` are allowed to be used as types, although no operations are provided for such types. For now lowering treats these types as empty structs, which seems like a reasonable lowering for non-monomorphized unconstrained types.
194 lines
8.3 KiB
C++
194 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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#include "toolchain/check/context.h"
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#include "toolchain/check/convert.h"
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#include "toolchain/check/return.h"
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#include "toolchain/sem_ir/inst.h"
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namespace Carbon::Check {
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auto HandleAddress(Context& context, Parse::AddressId parse_node) -> bool {
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auto self_param_id = context.node_stack().PopPattern();
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if (auto self_param =
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context.insts().TryGetAs<SemIR::AnyBindName>(self_param_id);
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self_param &&
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context.bind_names().Get(self_param->bind_name_id).name_id ==
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SemIR::NameId::SelfValue) {
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// TODO: The type of an `addr_pattern` should probably be the non-pointer
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// type, because that's the type that the pattern matches.
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context.AddInstAndPush(
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parse_node,
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SemIR::AddrPattern{parse_node, self_param->type_id, self_param_id});
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} else {
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CARBON_DIAGNOSTIC(AddrOnNonSelfParam, Error,
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"`addr` can only be applied to a `self` parameter.");
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context.emitter().Emit(TokenOnly(parse_node), AddrOnNonSelfParam);
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context.node_stack().Push(parse_node, self_param_id);
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}
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return true;
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}
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auto HandleAnyBindingPattern(Context& context, Parse::NodeId parse_node,
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bool is_generic) -> bool {
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auto [type_node, parsed_type_id] =
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context.node_stack().PopExprWithParseNode();
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auto type_node_copy = type_node;
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auto cast_type_id = ExprAsType(context, type_node, parsed_type_id);
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// TODO: Handle `_` bindings.
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// Every other kind of pattern binding has a name.
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auto [name_node, name_id] = context.node_stack().PopNameWithParseNode();
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// Create the appropriate kind of binding for this pattern.
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auto make_bind_name = [&, name_node = name_node, name_id = name_id](
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SemIR::TypeId type_id,
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SemIR::InstId value_id) -> SemIR::Inst {
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// TODO: Set the correct enclosing_scope_id.
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auto bind_name_id = context.bind_names().Add(
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{.name_id = name_id,
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.enclosing_scope_id = SemIR::NameScopeId::Invalid});
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if (is_generic) {
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// TODO: Create a `BindTemplateName` instead inside a `template` pattern.
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return SemIR::BindSymbolicName{name_node, type_id, bind_name_id,
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value_id};
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} else {
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return SemIR::BindName{name_node, type_id, bind_name_id, value_id};
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}
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};
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// A `self` binding can only appear in an implicit parameter list.
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if (name_id == SemIR::NameId::SelfValue &&
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!context.node_stack().PeekIs<Parse::NodeKind::ImplicitParamListStart>()) {
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CARBON_DIAGNOSTIC(
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SelfOutsideImplicitParamList, Error,
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"`self` can only be declared in an implicit parameter list.");
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context.emitter().Emit(parse_node, SelfOutsideImplicitParamList);
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}
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// Allocate an instruction of the appropriate kind, linked to the name for
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// error locations.
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// TODO: The node stack is a fragile way of getting context information.
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// Get this information from somewhere else.
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switch (auto context_parse_node_kind =
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context.node_stack().PeekParseNodeKind()) {
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case Parse::NodeKind::ReturnedModifier:
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case Parse::NodeKind::VariableIntroducer: {
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if (is_generic) {
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CARBON_DIAGNOSTIC(
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CompileTimeBindingInVarDecl, Error,
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"`var` declaration cannot declare a compile-time binding.");
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context.emitter().Emit(type_node, CompileTimeBindingInVarDecl);
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}
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auto binding_id =
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is_generic
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? Parse::NodeId::Invalid
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: context.parse_tree().As<Parse::BindingPatternId>(parse_node);
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// A `var` declaration at class scope introduces a field.
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auto enclosing_class_decl = context.GetCurrentScopeAs<SemIR::ClassDecl>();
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cast_type_id = context.AsCompleteType(cast_type_id, [&] {
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CARBON_DIAGNOSTIC(IncompleteTypeInVarDecl, Error,
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"{0} has incomplete type `{1}`.", llvm::StringLiteral,
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std::string);
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return context.emitter().Build(
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type_node_copy, IncompleteTypeInVarDecl,
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enclosing_class_decl ? llvm::StringLiteral("Field")
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: llvm::StringLiteral("Variable"),
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context.sem_ir().StringifyType(cast_type_id));
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});
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SemIR::InstId value_id = SemIR::InstId::Invalid;
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SemIR::TypeId value_type_id = cast_type_id;
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if (context_parse_node_kind == Parse::NodeKind::ReturnedModifier) {
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// TODO: Should we check this for the `var` as a whole, rather than for
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// the name binding?
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CARBON_CHECK(!enclosing_class_decl) << "`returned var` at class scope";
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value_id =
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CheckReturnedVar(context, context.node_stack().PeekParseNode(),
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name_node, name_id, type_node, cast_type_id);
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} else if (enclosing_class_decl) {
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auto& class_info =
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context.classes().Get(enclosing_class_decl->class_id);
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auto field_type_inst_id = context.AddInst(SemIR::UnboundElementType{
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binding_id, context.GetBuiltinType(SemIR::BuiltinKind::TypeType),
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class_info.self_type_id, cast_type_id});
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value_type_id = context.CanonicalizeType(field_type_inst_id);
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value_id = context.AddInst(
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SemIR::FieldDecl{binding_id, value_type_id, name_id,
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SemIR::ElementIndex(context.args_type_info_stack()
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.PeekCurrentBlockContents()
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.size())});
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// Add a corresponding field to the object representation of the class.
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context.args_type_info_stack().AddInst(
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SemIR::StructTypeField{binding_id, name_id, cast_type_id});
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} else {
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value_id = context.AddInst(
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SemIR::VarStorage{name_node, value_type_id, name_id});
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}
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auto bind_id = context.AddInst(make_bind_name(value_type_id, value_id));
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context.node_stack().Push(parse_node, bind_id);
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if (context_parse_node_kind == Parse::NodeKind::ReturnedModifier) {
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RegisterReturnedVar(context, bind_id);
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}
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break;
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}
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case Parse::NodeKind::ImplicitParamListStart:
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case Parse::NodeKind::TuplePatternStart: {
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// Parameters can have incomplete types in a function declaration, but not
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// in a function definition. We don't know which kind we have here.
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// TODO: A tuple pattern can appear in other places than function
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// parameters.
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auto param_id =
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context.AddInst(SemIR::Param{name_node, cast_type_id, name_id});
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context.AddInstAndPush(parse_node,
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make_bind_name(cast_type_id, param_id));
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break;
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}
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case Parse::NodeKind::LetIntroducer:
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cast_type_id = context.AsCompleteType(cast_type_id, [&] {
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CARBON_DIAGNOSTIC(IncompleteTypeInLetDecl, Error,
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"`let` binding has incomplete type `{0}`.",
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std::string);
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return context.emitter().Build(
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type_node_copy, IncompleteTypeInLetDecl,
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context.sem_ir().StringifyType(cast_type_id));
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});
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// Create the instruction, but don't add it to a block until after we've
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// formed its initializer.
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// TODO: For general pattern parsing, we'll need to create a block to hold
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// the `let` pattern before we see the initializer.
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context.node_stack().Push(parse_node,
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context.insts().AddInNoBlock(make_bind_name(
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cast_type_id, SemIR::InstId::Invalid)));
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break;
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default:
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CARBON_FATAL() << "Found a pattern binding in unexpected context "
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<< context_parse_node_kind;
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}
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return true;
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}
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auto HandleBindingPattern(Context& context, Parse::BindingPatternId parse_node)
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-> bool {
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return HandleAnyBindingPattern(context, parse_node, /*is_generic=*/false);
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}
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auto HandleGenericBindingPattern(Context& context,
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Parse::GenericBindingPatternId parse_node)
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-> bool {
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return HandleAnyBindingPattern(context, parse_node, /*is_generic=*/true);
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}
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auto HandleTemplate(Context& context, Parse::TemplateId parse_node) -> bool {
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return context.TODO(parse_node, "HandleTemplate");
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}
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} // namespace Carbon::Check
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