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Allow an explicit `as` conversion to convert between adapters and their adapted types. Also make the value representation of an adapter be the same as the value representation of the adapted type so that the conversion is always possible. --------- Co-authored-by: josh11b <15258583+josh11b@users.noreply.github.com>
486 lines
19 KiB
C++
486 lines
19 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/modifiers.h"
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#include "toolchain/sem_ir/typed_insts.h"
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namespace Carbon::Check {
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// If `type_id` is a class type, get its corresponding `SemIR::Class` object.
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// Otherwise returns `nullptr`.
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static auto TryGetAsClass(Context& context, SemIR::TypeId type_id)
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-> SemIR::Class* {
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auto class_type = context.types().TryGetAs<SemIR::ClassType>(type_id);
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if (!class_type) {
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return nullptr;
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}
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return &context.classes().Get(class_type->class_id);
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}
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auto HandleClassIntroducer(Context& context, Parse::ClassIntroducerId node_id)
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-> bool {
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// Create an instruction block to hold the instructions created as part of the
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// class signature, such as generic parameters.
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context.inst_block_stack().Push();
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// Push the bracketing node.
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context.node_stack().Push(node_id);
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// Optional modifiers and the name follow.
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context.decl_state_stack().Push(DeclState::Class);
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context.decl_name_stack().PushScopeAndStartName();
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return true;
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}
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static auto BuildClassDecl(Context& context, Parse::AnyClassDeclId node_id)
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-> std::tuple<SemIR::ClassId, SemIR::InstId> {
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if (context.node_stack().PopIf<Parse::NodeKind::TuplePattern>()) {
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context.TODO(node_id, "generic class");
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}
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if (context.node_stack().PopIf<Parse::NodeKind::ImplicitParamList>()) {
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context.TODO(node_id, "generic class");
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}
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auto name_context = context.decl_name_stack().FinishName();
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context.node_stack()
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.PopAndDiscardSoloNodeId<Parse::NodeKind::ClassIntroducer>();
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// Process modifiers.
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CheckAccessModifiersOnDecl(context, Lex::TokenKind::Class,
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name_context.target_scope_id);
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LimitModifiersOnDecl(context,
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KeywordModifierSet::Class | KeywordModifierSet::Access,
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Lex::TokenKind::Class);
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auto modifiers = context.decl_state_stack().innermost().modifier_set;
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if (!!(modifiers & KeywordModifierSet::Access)) {
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context.TODO(context.decl_state_stack().innermost().modifier_node_id(
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ModifierOrder::Access),
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"access modifier");
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}
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auto inheritance_kind =
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!!(modifiers & KeywordModifierSet::Abstract) ? SemIR::Class::Abstract
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: !!(modifiers & KeywordModifierSet::Base) ? SemIR::Class::Base
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: SemIR::Class::Final;
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context.decl_state_stack().Pop(DeclState::Class);
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auto decl_block_id = context.inst_block_stack().Pop();
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// Add the class declaration.
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auto class_decl = SemIR::ClassDecl{SemIR::TypeId::TypeType,
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SemIR::ClassId::Invalid, decl_block_id};
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auto class_decl_id = context.AddPlaceholderInst({node_id, class_decl});
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// Check whether this is a redeclaration.
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auto existing_id =
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context.decl_name_stack().LookupOrAddName(name_context, class_decl_id);
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if (existing_id.is_valid()) {
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if (auto existing_class_decl =
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context.insts().Get(existing_id).TryAs<SemIR::ClassDecl>()) {
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// This is a redeclaration of an existing class.
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class_decl.class_id = existing_class_decl->class_id;
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auto& class_info = context.classes().Get(class_decl.class_id);
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// The introducer kind must match the previous declaration.
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// TODO: The rule here is not yet decided. See #3384.
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if (class_info.inheritance_kind != inheritance_kind) {
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CARBON_DIAGNOSTIC(ClassRedeclarationDifferentIntroducer, Error,
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"Class redeclared with different inheritance kind.");
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CARBON_DIAGNOSTIC(ClassRedeclarationDifferentIntroducerPrevious, Note,
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"Previously declared here.");
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context.emitter()
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.Build(node_id, ClassRedeclarationDifferentIntroducer)
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.Note(existing_id, ClassRedeclarationDifferentIntroducerPrevious)
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.Emit();
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}
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// TODO: Check that the generic parameter list agrees with the prior
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// declaration.
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} else {
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// This is a redeclaration of something other than a class.
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context.DiagnoseDuplicateName(class_decl_id, existing_id);
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}
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}
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// Create a new class if this isn't a valid redeclaration.
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bool is_new_class = !class_decl.class_id.is_valid();
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if (is_new_class) {
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// TODO: If this is an invalid redeclaration of a non-class entity or there
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// was an error in the qualifier, we will have lost track of the class name
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// here. We should keep track of it even if the name is invalid.
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class_decl.class_id = context.classes().Add(
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{.name_id = name_context.name_id_for_new_inst(),
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.enclosing_scope_id = name_context.enclosing_scope_id_for_new_inst(),
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// `.self_type_id` depends on the ClassType, so is set below.
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.self_type_id = SemIR::TypeId::Invalid,
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.decl_id = class_decl_id,
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.inheritance_kind = inheritance_kind});
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}
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// Write the class ID into the ClassDecl.
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context.ReplaceInstBeforeConstantUse(class_decl_id, class_decl);
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if (is_new_class) {
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// Build the `Self` type using the resulting type constant.
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auto& class_info = context.classes().Get(class_decl.class_id);
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class_info.self_type_id = context.GetTypeIdForTypeInst(class_decl_id);
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}
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return {class_decl.class_id, class_decl_id};
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}
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auto HandleClassDecl(Context& context, Parse::ClassDeclId node_id) -> bool {
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BuildClassDecl(context, node_id);
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context.decl_name_stack().PopScope();
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return true;
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}
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auto HandleClassDefinitionStart(Context& context,
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Parse::ClassDefinitionStartId node_id) -> bool {
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auto [class_id, class_decl_id] = BuildClassDecl(context, node_id);
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auto& class_info = context.classes().Get(class_id);
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// Track that this declaration is the definition.
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if (class_info.is_defined()) {
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CARBON_DIAGNOSTIC(ClassRedefinition, Error, "Redefinition of class {0}.",
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SemIR::NameId);
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CARBON_DIAGNOSTIC(ClassPreviousDefinition, Note,
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"Previous definition was here.");
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context.emitter()
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.Build(node_id, ClassRedefinition, class_info.name_id)
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.Note(class_info.definition_id, ClassPreviousDefinition)
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.Emit();
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} else {
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class_info.definition_id = class_decl_id;
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class_info.scope_id = context.name_scopes().Add(
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class_decl_id, SemIR::NameId::Invalid, class_info.enclosing_scope_id);
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}
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// Enter the class scope.
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context.scope_stack().Push(class_decl_id, class_info.scope_id);
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// Introduce `Self`.
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context.name_scopes()
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.Get(class_info.scope_id)
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.names.insert({SemIR::NameId::SelfType,
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context.types().GetInstId(class_info.self_type_id)});
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context.inst_block_stack().Push();
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context.node_stack().Push(node_id, class_id);
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context.args_type_info_stack().Push();
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// TODO: Handle the case where there's control flow in the class body. For
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// example:
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//
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// class C {
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// var v: if true then i32 else f64;
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// }
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//
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// We may need to track a list of instruction blocks here, as we do for a
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// function.
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class_info.body_block_id = context.inst_block_stack().PeekOrAdd();
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return true;
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}
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// Diagnoses a class-specific declaration appearing outside a class.
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static auto DiagnoseClassSpecificDeclOutsideClass(Context& context,
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SemIRLoc loc,
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Lex::TokenKind tok) -> void {
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CARBON_DIAGNOSTIC(ClassSpecificDeclOutsideClass, Error,
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"`{0}` declaration can only be used in a class.",
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Lex::TokenKind);
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context.emitter().Emit(loc, ClassSpecificDeclOutsideClass, tok);
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}
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// Returns the declaration of the immediately-enclosing class scope, or
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// diagonses if there isn't one.
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static auto GetEnclosingClassOrDiagnose(Context& context, SemIRLoc loc,
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Lex::TokenKind tok)
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-> std::optional<SemIR::ClassDecl> {
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auto class_scope = context.GetCurrentScopeAs<SemIR::ClassDecl>();
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if (!class_scope) {
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DiagnoseClassSpecificDeclOutsideClass(context, loc, tok);
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}
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return class_scope;
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}
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// Diagnoses a class-specific declaration that is repeated within a class, but
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// is not permitted to be repeated.
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static auto DiagnoseClassSpecificDeclRepeated(Context& context,
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SemIRLoc new_loc,
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SemIRLoc prev_loc,
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Lex::TokenKind tok) -> void {
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CARBON_DIAGNOSTIC(ClassSpecificDeclRepeated, Error,
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"Multiple `{0}` declarations in class.{1}", Lex::TokenKind,
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std::string);
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const llvm::StringRef extra = tok == Lex::TokenKind::Base
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? " Multiple inheritance is not permitted."
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: "";
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CARBON_DIAGNOSTIC(ClassSpecificDeclPrevious, Note,
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"Previous `{0}` declaration is here.", Lex::TokenKind);
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context.emitter()
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.Build(new_loc, ClassSpecificDeclRepeated, tok, extra.str())
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.Note(prev_loc, ClassSpecificDeclPrevious, tok)
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.Emit();
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}
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auto HandleAdaptIntroducer(Context& context,
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Parse::AdaptIntroducerId /*node_id*/) -> bool {
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context.decl_state_stack().Push(DeclState::Adapt);
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return true;
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}
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auto HandleAdaptDecl(Context& context, Parse::AdaptDeclId node_id) -> bool {
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auto [adapted_type_node, adapted_type_expr_id] =
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context.node_stack().PopExprWithNodeId();
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// Process modifiers. `extend` is permitted, no others are allowed.
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LimitModifiersOnDecl(context, KeywordModifierSet::Extend,
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Lex::TokenKind::Adapt);
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auto modifiers = context.decl_state_stack().innermost().modifier_set;
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context.decl_state_stack().Pop(DeclState::Adapt);
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auto enclosing_class_decl =
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GetEnclosingClassOrDiagnose(context, node_id, Lex::TokenKind::Adapt);
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if (!enclosing_class_decl) {
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return true;
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}
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auto& class_info = context.classes().Get(enclosing_class_decl->class_id);
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if (class_info.adapt_id.is_valid()) {
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DiagnoseClassSpecificDeclRepeated(context, node_id, class_info.adapt_id,
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Lex::TokenKind::Adapt);
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return true;
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}
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auto adapted_type_id = ExprAsType(context, node_id, adapted_type_expr_id);
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adapted_type_id = context.AsCompleteType(adapted_type_id, [&] {
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CARBON_DIAGNOSTIC(IncompleteTypeInAdaptDecl, Error,
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"Adapted type `{0}` is an incomplete type.",
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SemIR::TypeId);
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return context.emitter().Build(node_id, IncompleteTypeInAdaptDecl,
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adapted_type_id);
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});
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// Build a SemIR representation for the declaration.
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class_info.adapt_id =
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context.AddInst({node_id, SemIR::AdaptDecl{adapted_type_id}});
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// Extend the class scope with the adapted type's scope if requested.
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if (!!(modifiers & KeywordModifierSet::Extend)) {
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auto extended_scope_id = SemIR::NameScopeId::Invalid;
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if (adapted_type_id == SemIR::TypeId::Error) {
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// Recover by not extending any scope. We instead set has_error to true
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// below.
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} else if (auto* adapted_class_info =
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TryGetAsClass(context, adapted_type_id)) {
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extended_scope_id = adapted_class_info->scope_id;
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CARBON_CHECK(adapted_class_info->scope_id.is_valid())
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<< "Complete class should have a scope";
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} else {
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// TODO: Accept any type that has a scope.
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context.TODO(node_id, "extending non-class type");
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}
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auto& class_scope = context.name_scopes().Get(class_info.scope_id);
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if (extended_scope_id.is_valid()) {
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class_scope.extended_scopes.push_back(extended_scope_id);
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} else {
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class_scope.has_error = true;
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}
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}
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return true;
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}
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auto HandleBaseIntroducer(Context& context, Parse::BaseIntroducerId /*node_id*/)
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-> bool {
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context.decl_state_stack().Push(DeclState::Base);
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return true;
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}
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auto HandleBaseColon(Context& /*context*/, Parse::BaseColonId /*node_id*/)
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-> bool {
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return true;
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}
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namespace {
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// Information gathered about a base type specified in a `base` declaration.
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struct BaseInfo {
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// A `BaseInfo` representing an erroneous base.
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static const BaseInfo Error;
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SemIR::TypeId type_id;
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SemIR::NameScopeId scope_id;
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};
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constexpr BaseInfo BaseInfo::Error = {.type_id = SemIR::TypeId::Error,
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.scope_id = SemIR::NameScopeId::Invalid};
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} // namespace
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// Diagnoses an attempt to derive from a final type.
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static auto DiagnoseBaseIsFinal(Context& context, Parse::NodeId node_id,
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SemIR::TypeId base_type_id) -> void {
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CARBON_DIAGNOSTIC(BaseIsFinal, Error,
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"Deriving from final type `{0}`. Base type must be an "
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"`abstract` or `base` class.",
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SemIR::TypeId);
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context.emitter().Emit(node_id, BaseIsFinal, base_type_id);
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}
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// Checks that the specified base type is valid.
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static auto CheckBaseType(Context& context, Parse::NodeId node_id,
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SemIR::InstId base_expr_id) -> BaseInfo {
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auto base_type_id = ExprAsType(context, node_id, base_expr_id);
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base_type_id = context.AsCompleteType(base_type_id, [&] {
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CARBON_DIAGNOSTIC(IncompleteTypeInBaseDecl, Error,
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"Base `{0}` is an incomplete type.", SemIR::TypeId);
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return context.emitter().Build(node_id, IncompleteTypeInBaseDecl,
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base_type_id);
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});
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if (base_type_id == SemIR::TypeId::Error) {
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return BaseInfo::Error;
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}
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auto* base_class_info = TryGetAsClass(context, base_type_id);
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// The base must not be a final class.
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if (!base_class_info) {
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// For now, we treat all types that aren't introduced by a `class`
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// declaration as being final classes.
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// TODO: Once we have a better idea of which types are considered to be
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// classes, produce a better diagnostic for deriving from a non-class type.
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DiagnoseBaseIsFinal(context, node_id, base_type_id);
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return BaseInfo::Error;
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}
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if (base_class_info->inheritance_kind == SemIR::Class::Final) {
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DiagnoseBaseIsFinal(context, node_id, base_type_id);
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}
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CARBON_CHECK(base_class_info->scope_id.is_valid())
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<< "Complete class should have a scope";
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return {.type_id = base_type_id, .scope_id = base_class_info->scope_id};
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}
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auto HandleBaseDecl(Context& context, Parse::BaseDeclId node_id) -> bool {
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auto [base_type_node_id, base_type_expr_id] =
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context.node_stack().PopExprWithNodeId();
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// Process modifiers. `extend` is required, no others are allowed.
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LimitModifiersOnDecl(context, KeywordModifierSet::Extend,
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Lex::TokenKind::Base);
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auto modifiers = context.decl_state_stack().innermost().modifier_set;
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if (!(modifiers & KeywordModifierSet::Extend)) {
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CARBON_DIAGNOSTIC(BaseMissingExtend, Error,
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"Missing `extend` before `base` declaration in class.");
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context.emitter().Emit(node_id, BaseMissingExtend);
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}
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context.decl_state_stack().Pop(DeclState::Base);
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auto enclosing_class_decl =
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GetEnclosingClassOrDiagnose(context, node_id, Lex::TokenKind::Base);
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if (!enclosing_class_decl) {
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return true;
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}
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auto& class_info = context.classes().Get(enclosing_class_decl->class_id);
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if (class_info.base_id.is_valid()) {
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DiagnoseClassSpecificDeclRepeated(context, node_id, class_info.base_id,
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Lex::TokenKind::Base);
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return true;
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}
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auto base_info = CheckBaseType(context, base_type_node_id, base_type_expr_id);
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// The `base` value in the class scope has an unbound element type. Instance
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// binding will be performed when it's found by name lookup into an instance.
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auto field_type_id =
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context.GetUnboundElementType(class_info.self_type_id, base_info.type_id);
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class_info.base_id = context.AddInst(
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{node_id,
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SemIR::BaseDecl{field_type_id, base_info.type_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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// TODO: Consider whether we want to use `partial T` here.
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// TODO: Should we diagnose if there are already any fields?
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context.args_type_info_stack().AddInstId(context.AddInstInNoBlock(
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{node_id,
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SemIR::StructTypeField{SemIR::NameId::Base, base_info.type_id}}));
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// Bind the name `base` in the class to the base field.
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context.decl_name_stack().AddNameToLookup(
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context.decl_name_stack().MakeUnqualifiedName(node_id,
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SemIR::NameId::Base),
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class_info.base_id);
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// Extend the class scope with the base class.
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if (!!(modifiers & KeywordModifierSet::Extend)) {
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auto& class_scope = context.name_scopes().Get(class_info.scope_id);
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if (base_info.scope_id.is_valid()) {
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class_scope.extended_scopes.push_back(base_info.scope_id);
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} else {
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class_scope.has_error = true;
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}
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}
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return true;
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}
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auto HandleClassDefinition(Context& context,
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Parse::ClassDefinitionId /*node_id*/) -> bool {
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auto fields_id = context.args_type_info_stack().Pop();
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auto class_id =
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context.node_stack().Pop<Parse::NodeKind::ClassDefinitionStart>();
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context.inst_block_stack().Pop();
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// The class type is now fully defined. Compute its object representation.
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auto& class_info = context.classes().Get(class_id);
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if (class_info.adapt_id.is_valid()) {
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class_info.object_repr_id = SemIR::TypeId::Error;
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if (class_info.base_id.is_valid()) {
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CARBON_DIAGNOSTIC(AdaptWithBase, Error,
|
|
"Adapter cannot have a base class.");
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|
CARBON_DIAGNOSTIC(AdaptBaseHere, Note, "`base` declaration is here.");
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|
context.emitter()
|
|
.Build(class_info.adapt_id, AdaptWithBase)
|
|
.Note(class_info.base_id, AdaptBaseHere)
|
|
.Emit();
|
|
} else if (!context.inst_blocks().Get(fields_id).empty()) {
|
|
auto first_field_id = context.inst_blocks().Get(fields_id).front();
|
|
CARBON_DIAGNOSTIC(AdaptWithFields, Error, "Adapter cannot have fields.");
|
|
CARBON_DIAGNOSTIC(AdaptFieldHere, Note,
|
|
"First field declaration is here.");
|
|
context.emitter()
|
|
.Build(class_info.adapt_id, AdaptWithFields)
|
|
.Note(first_field_id, AdaptFieldHere)
|
|
.Emit();
|
|
} else {
|
|
// The object representation of the adapter is the object representation
|
|
// of the adapted type.
|
|
auto adapted_type_id = context.insts()
|
|
.GetAs<SemIR::AdaptDecl>(class_info.adapt_id)
|
|
.adapted_type_id;
|
|
// If we adapt an adapter, directly track the non-adapter type we're
|
|
// adapting so that we have constant-time access to it.
|
|
if (auto adapted_class =
|
|
context.types().TryGetAs<SemIR::ClassType>(adapted_type_id)) {
|
|
auto& adapted_class_info =
|
|
context.classes().Get(adapted_class->class_id);
|
|
if (adapted_class_info.adapt_id.is_valid()) {
|
|
adapted_type_id = adapted_class_info.object_repr_id;
|
|
}
|
|
}
|
|
class_info.object_repr_id = adapted_type_id;
|
|
}
|
|
} else {
|
|
class_info.object_repr_id = context.GetStructType(fields_id);
|
|
}
|
|
|
|
// The decl_name_stack and scopes are popped by `ProcessNodeIds`.
|
|
return true;
|
|
}
|
|
|
|
} // namespace Carbon::Check
|