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In parse, form a list of methods that are defined inline, tracking where they start, where they end, and which other inline methods are nested within them. In check, when we reach an inline method body, skip it and add it to a worklist to be processed later. We also track when we reach the start and end of a context in which inline method bodies are deferred, so that we know when to replay the bodies. When suspending a function definition to be processed later, the `DeclNameStack` entry is moved to separate storage, including popping the corresponding scopes from the scope stack and removing the corresponding lexical names from lexical lookup. Later, when we return to the function and parse its definition, the `DeclNameStack` entry is restored. The same is done when we reach the end of a nested context that can have inline methods, so that we can reenter the nested scope before processing its members. --------- Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
188 lines
7.4 KiB
C++
188 lines
7.4 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/interface.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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auto HandleInterfaceIntroducer(Context& context,
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Parse::InterfaceIntroducerId node_id) -> bool {
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// Create an instruction block to hold the instructions created as part of the
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// interface 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::Interface);
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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 BuildInterfaceDecl(Context& context,
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Parse::AnyInterfaceDeclId node_id)
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-> std::tuple<SemIR::InterfaceId, SemIR::InstId> {
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if (context.node_stack().PopIf<Parse::NodeKind::TuplePattern>()) {
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context.TODO(node_id, "generic interface");
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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 interface");
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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::InterfaceIntroducer>();
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// Process modifiers.
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CheckAccessModifiersOnDecl(context, Lex::TokenKind::Interface,
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name_context.target_scope_id);
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LimitModifiersOnDecl(context, KeywordModifierSet::Access,
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Lex::TokenKind::Interface);
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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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context.decl_state_stack().Pop(DeclState::Interface);
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auto decl_block_id = context.inst_block_stack().Pop();
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// Add the interface declaration.
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auto interface_decl = SemIR::InterfaceDecl{
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SemIR::TypeId::TypeType, SemIR::InterfaceId::Invalid, decl_block_id};
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auto interface_decl_id =
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context.AddPlaceholderInst({node_id, interface_decl});
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// Check whether this is a redeclaration.
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auto existing_id = context.decl_name_stack().LookupOrAddName(
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name_context, interface_decl_id);
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if (existing_id.is_valid()) {
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if (auto existing_interface_decl =
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context.insts().Get(existing_id).TryAs<SemIR::InterfaceDecl>()) {
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// This is a redeclaration of an existing interface.
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interface_decl.interface_id = existing_interface_decl->interface_id;
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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 interface.
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context.DiagnoseDuplicateName(interface_decl_id, existing_id);
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}
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}
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// Create a new interface if this isn't a valid redeclaration.
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if (!interface_decl.interface_id.is_valid()) {
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// TODO: If this is an invalid redeclaration of a non-interface entity or
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// there was an error in the qualifier, we will have lost track of the
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// interface name here. We should keep track of it even if the name is
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// invalid.
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interface_decl.interface_id = context.interfaces().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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.decl_id = interface_decl_id});
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}
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// Write the interface ID into the InterfaceDecl.
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context.ReplaceInstBeforeConstantUse(interface_decl_id, interface_decl);
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return {interface_decl.interface_id, interface_decl_id};
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}
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auto HandleInterfaceDecl(Context& context, Parse::InterfaceDeclId node_id)
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-> bool {
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BuildInterfaceDecl(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 HandleInterfaceDefinitionStart(Context& context,
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Parse::InterfaceDefinitionStartId node_id)
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-> bool {
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auto [interface_id, interface_decl_id] = BuildInterfaceDecl(context, node_id);
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auto& interface_info = context.interfaces().Get(interface_id);
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// Track that this declaration is the definition.
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if (interface_info.is_defined()) {
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CARBON_DIAGNOSTIC(InterfaceRedefinition, Error,
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"Redefinition of interface {0}.", SemIR::NameId);
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CARBON_DIAGNOSTIC(InterfacePreviousDefinition, Note,
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"Previous definition was here.");
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context.emitter()
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.Build(node_id, InterfaceRedefinition, interface_info.name_id)
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.Note(interface_info.definition_id, InterfacePreviousDefinition)
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.Emit();
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} else {
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interface_info.definition_id = interface_decl_id;
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interface_info.scope_id =
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context.name_scopes().Add(interface_decl_id, SemIR::NameId::Invalid,
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interface_info.enclosing_scope_id);
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}
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// Enter the interface scope.
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context.scope_stack().Push(interface_decl_id, interface_info.scope_id);
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context.inst_block_stack().Push();
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context.node_stack().Push(node_id, interface_id);
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// We use the arg stack to build the witness table type.
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context.args_type_info_stack().Push();
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// Declare and introduce `Self`.
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if (!interface_info.is_defined()) {
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// TODO: Once we support parameterized interfaces, this won't be the right
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// type. For `interface X(T:! type)`, the type of `Self` is `X(T)`, whereas
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// this will be simply `X`.
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auto self_type_id = context.GetTypeIdForTypeInst(interface_decl_id);
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// We model `Self` as a symbolic binding whose type is the interface.
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// Because there is no equivalent non-symbolic value, we use `Invalid` as
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// the `value_id` on the `BindSymbolicName`.
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auto bind_name_id = context.bind_names().Add(
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{.name_id = SemIR::NameId::SelfType,
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.enclosing_scope_id = interface_info.scope_id});
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interface_info.self_param_id =
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context.AddInst({Parse::NodeId::Invalid,
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SemIR::BindSymbolicName{self_type_id, bind_name_id,
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SemIR::InstId::Invalid}});
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context.name_scopes()
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.Get(interface_info.scope_id)
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.names.insert({SemIR::NameId::SelfType, interface_info.self_param_id});
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}
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// TODO: Handle the case where there's control flow in the interface body. For
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// example:
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//
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// interface C {
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// let 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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interface_info.body_block_id = context.inst_block_stack().PeekOrAdd();
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return true;
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}
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auto HandleInterfaceDefinition(Context& context,
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Parse::InterfaceDefinitionId /*node_id*/)
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-> bool {
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auto interface_id =
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context.node_stack().Pop<Parse::NodeKind::InterfaceDefinitionStart>();
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context.inst_block_stack().Pop();
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auto associated_entities_id = context.args_type_info_stack().Pop();
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// The interface type is now fully defined.
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auto& interface_info = context.interfaces().Get(interface_id);
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if (!interface_info.associated_entities_id.is_valid()) {
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interface_info.associated_entities_id = associated_entities_id;
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}
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// The decl_name_stack and scopes are popped by `ProcessNodeIds`.
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return true;
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}
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} // namespace Carbon::Check
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