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Based on [the lastest thinking on #4672](https://github.com/carbon-language/carbon-lang/issues/4672#issuecomment-2606209281) , require a full syntactic match for impl redeclaration, instead of excluding the `where` restriction. This means no updates to the impl witness on redeclaration, and no diagnostics that those updates are consistent. Not included in this PR, but will need to be done in the future: * Support for assigning values to associated constants in the body of the impl definition. This will require moving the checking that non-function associated constants are set from the definition start to definition end. * Identify semantic redeclarations that are not syntactic matches to give a failed redeclaration diagnostic. This should be done once we are already identifying impl declarations with the same type structure in order to require they be identified in an impl_priority/match_first block. * Merging of the functions in `check/impl.cpp` that are now always called together. Also add some test coverage of `where` parsing I developed in PR I've now abandoned because of this new simplification of the impl redeclaration semantics. --------- Co-authored-by: Josh L <josh11b@users.noreply.github.com> Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
460 lines
18 KiB
C++
460 lines
18 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/decl_name_stack.h"
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#include "toolchain/check/generic.h"
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#include "toolchain/check/handle.h"
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#include "toolchain/check/impl.h"
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#include "toolchain/check/merge.h"
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#include "toolchain/check/modifiers.h"
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#include "toolchain/check/pattern_match.h"
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#include "toolchain/parse/typed_nodes.h"
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#include "toolchain/sem_ir/generic.h"
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#include "toolchain/sem_ir/ids.h"
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#include "toolchain/sem_ir/typed_insts.h"
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namespace Carbon::Check {
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auto HandleParseNode(Context& context, Parse::ImplIntroducerId node_id)
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-> bool {
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// Create an instruction block to hold the instructions created for the type
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// and interface.
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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 follow.
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context.decl_introducer_state_stack().Push<Lex::TokenKind::Impl>();
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// An impl doesn't have a name per se, but it makes the processing more
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// consistent to imagine that it does. This also gives us a scope for implicit
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// parameters.
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context.decl_name_stack().PushScopeAndStartName();
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// This might be a generic impl.
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StartGenericDecl(context);
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// Push a pattern block for the signature of the `forall` (if any).
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// TODO: Instead use a separate parse node kinds for `impl` and `impl forall`,
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// and only push a pattern block in `forall` case.
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context.pattern_block_stack().Push();
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context.full_pattern_stack().PushFullPattern(
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FullPatternStack::Kind::ImplicitParamList);
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return true;
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}
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auto HandleParseNode(Context& context, Parse::ImplForallId node_id) -> bool {
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auto params_id =
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context.node_stack().Pop<Parse::NodeKind::ImplicitParamList>();
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context.node_stack()
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.PopAndDiscardSoloNodeId<Parse::NodeKind::ImplicitParamListStart>();
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context.node_stack().Push(node_id, params_id);
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return true;
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}
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auto HandleParseNode(Context& context, Parse::TypeImplAsId node_id) -> bool {
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auto [self_node, self_id] = context.node_stack().PopExprWithNodeId();
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self_id = ExprAsType(context, self_node, self_id).inst_id;
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context.node_stack().Push(node_id, self_id);
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// Introduce `Self`. Note that we add this name lexically rather than adding
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// to the `NameScopeId` of the `impl`, because this happens before we enter
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// the `impl` scope or even identify which `impl` we're declaring.
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// TODO: Revisit this once #3714 is resolved.
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context.AddNameToLookup(SemIR::NameId::SelfType, self_id);
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return true;
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}
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// If the specified name scope corresponds to a class, returns the corresponding
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// class declaration.
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// TODO: Should this be somewhere more central?
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static auto TryAsClassScope(Context& context, SemIR::NameScopeId scope_id)
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-> std::optional<SemIR::ClassDecl> {
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if (!scope_id.has_value()) {
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return std::nullopt;
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}
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auto& scope = context.name_scopes().Get(scope_id);
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if (!scope.inst_id().has_value()) {
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return std::nullopt;
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}
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return context.insts().TryGetAs<SemIR::ClassDecl>(scope.inst_id());
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}
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static auto GetDefaultSelfType(Context& context) -> SemIR::TypeId {
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auto parent_scope_id = context.decl_name_stack().PeekParentScopeId();
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if (auto class_decl = TryAsClassScope(context, parent_scope_id)) {
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return context.classes().Get(class_decl->class_id).self_type_id;
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}
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// TODO: This is also valid in a mixin.
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return SemIR::TypeId::None;
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}
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auto HandleParseNode(Context& context, Parse::DefaultSelfImplAsId node_id)
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-> bool {
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auto self_type_id = GetDefaultSelfType(context);
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if (!self_type_id.has_value()) {
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CARBON_DIAGNOSTIC(ImplAsOutsideClass, Error,
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"`impl as` can only be used in a class");
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context.emitter().Emit(node_id, ImplAsOutsideClass);
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self_type_id = SemIR::ErrorInst::SingletonTypeId;
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return false;
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}
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// Build the implicit access to the enclosing `Self`.
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// TODO: Consider calling `HandleNameAsExpr` to build this implicit `Self`
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// expression. We've already done the work to check that the enclosing context
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// is a class and found its `Self`, so additionally performing an unqualified
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// name lookup would be redundant work, but would avoid duplicating the
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// handling of the `Self` expression.
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auto self_inst_id = context.AddInst(
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node_id,
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SemIR::NameRef{.type_id = SemIR::TypeType::SingletonTypeId,
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.name_id = SemIR::NameId::SelfType,
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.value_id = context.types().GetInstId(self_type_id)});
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// There's no need to push `Self` into scope here, because we can find it in
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// the parent class scope.
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context.node_stack().Push(node_id, self_inst_id);
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return true;
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}
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// Process an `extend impl` declaration by extending the impl scope with the
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// `impl`'s scope.
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static auto ExtendImpl(Context& context, Parse::NodeId extend_node,
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Parse::AnyImplDeclId node_id, SemIR::ImplId impl_id,
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Parse::NodeId self_type_node, SemIR::TypeId self_type_id,
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Parse::NodeId params_node,
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SemIR::InstId constraint_inst_id,
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SemIR::TypeId constraint_id) -> void {
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auto parent_scope_id = context.decl_name_stack().PeekParentScopeId();
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auto& parent_scope = context.name_scopes().Get(parent_scope_id);
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// TODO: This is also valid in a mixin.
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if (!TryAsClassScope(context, parent_scope_id)) {
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CARBON_DIAGNOSTIC(ExtendImplOutsideClass, Error,
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"`extend impl` can only be used in a class");
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context.emitter().Emit(node_id, ExtendImplOutsideClass);
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return;
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}
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if (params_node.has_value()) {
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CARBON_DIAGNOSTIC(ExtendImplForall, Error,
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"cannot `extend` a parameterized `impl`");
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context.emitter().Emit(extend_node, ExtendImplForall);
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parent_scope.set_has_error();
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return;
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}
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if (context.parse_tree().node_kind(self_type_node) ==
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Parse::NodeKind::TypeImplAs) {
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CARBON_DIAGNOSTIC(ExtendImplSelfAs, Error,
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"cannot `extend` an `impl` with an explicit self type");
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auto diag = context.emitter().Build(extend_node, ExtendImplSelfAs);
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// If the explicit self type is not the default, just bail out.
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if (self_type_id != GetDefaultSelfType(context)) {
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diag.Emit();
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parent_scope.set_has_error();
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return;
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}
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// The explicit self type is the same as the default self type, so suggest
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// removing it and recover as if it were not present.
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if (auto self_as =
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context.parse_tree_and_subtrees().ExtractAs<Parse::TypeImplAs>(
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self_type_node)) {
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CARBON_DIAGNOSTIC(ExtendImplSelfAsDefault, Note,
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"remove the explicit `Self` type here");
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diag.Note(self_as->type_expr, ExtendImplSelfAsDefault);
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}
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diag.Emit();
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}
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if (!context.types().Is<SemIR::FacetType>(constraint_id)) {
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context.TODO(node_id, "extending non-facet-type constraint");
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parent_scope.set_has_error();
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return;
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}
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const auto& impl = context.impls().Get(impl_id);
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if (impl.witness_id == SemIR::ErrorInst::SingletonInstId) {
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parent_scope.set_has_error();
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}
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parent_scope.AddExtendedScope(constraint_inst_id);
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}
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// Pops the parameters of an `impl`, forming a `NameComponent` with no
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// associated name that describes them.
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static auto PopImplIntroducerAndParamsAsNameComponent(
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Context& context, Parse::AnyImplDeclId end_of_decl_node_id)
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-> NameComponent {
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auto [implicit_params_loc_id, implicit_param_patterns_id] =
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context.node_stack().PopWithNodeIdIf<Parse::NodeKind::ImplForall>();
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if (implicit_param_patterns_id) {
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// Emit the `forall` match. This shouldn't produce any valid `Call` params,
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// because `impl`s are never actually called at runtime.
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auto call_params_id =
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CalleePatternMatch(context, *implicit_param_patterns_id,
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SemIR::InstBlockId::None, SemIR::InstId::None);
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CARBON_CHECK(call_params_id == SemIR::InstBlockId::Empty ||
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llvm::all_of(context.inst_blocks().Get(call_params_id),
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[](SemIR::InstId inst_id) {
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return inst_id ==
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SemIR::ErrorInst::SingletonInstId;
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}));
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}
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Parse::NodeId first_param_node_id =
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context.node_stack().PopForSoloNodeId<Parse::NodeKind::ImplIntroducer>();
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// Subtracting 1 since we don't want to include the final `{` or `;` of the
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// declaration when performing syntactic match.
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Parse::Tree::PostorderIterator last_param_iter(end_of_decl_node_id);
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--last_param_iter;
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return {
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.name_loc_id = Parse::NodeId::None,
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.name_id = SemIR::NameId::None,
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.first_param_node_id = first_param_node_id,
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.last_param_node_id = *last_param_iter,
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.implicit_params_loc_id = implicit_params_loc_id,
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.implicit_param_patterns_id =
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implicit_param_patterns_id.value_or(SemIR::InstBlockId::None),
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.params_loc_id = Parse::NodeId::None,
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.param_patterns_id = SemIR::InstBlockId::None,
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.call_params_id = SemIR::InstBlockId::None,
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.return_slot_pattern_id = SemIR::InstId::None,
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.pattern_block_id = context.pattern_block_stack().Pop(),
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};
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}
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static auto MergeImplRedecl(Context& context, SemIR::Impl& new_impl,
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SemIR::ImplId prev_impl_id) -> bool {
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auto& prev_impl = context.impls().Get(prev_impl_id);
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// If the parameters aren't the same, then this is not a redeclaration of this
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// `impl`. Keep looking for a prior declaration without issuing a diagnostic.
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if (!CheckRedeclParamsMatch(context, DeclParams(new_impl),
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DeclParams(prev_impl), SemIR::SpecificId::None,
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/*check_syntax=*/true, /*diagnose=*/false)) {
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// NOLINTNEXTLINE(readability-simplify-boolean-expr)
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return false;
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}
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return true;
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}
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static auto IsValidImplRedecl(Context& context, SemIR::Impl& new_impl,
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SemIR::ImplId prev_impl_id) -> bool {
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auto& prev_impl = context.impls().Get(prev_impl_id);
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// TODO: Following #3763, disallow redeclarations in different scopes.
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// Following #4672, disallowing defining non-extern declarations in another
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// file.
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if (auto import_ref =
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context.insts().TryGetAs<SemIR::AnyImportRef>(prev_impl.self_id)) {
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// TODO: Handle extern.
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CARBON_DIAGNOSTIC(RedeclImportedImpl, Error,
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"redeclaration of imported impl");
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// TODO: Note imported declaration
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context.emitter().Emit(new_impl.latest_decl_id(), RedeclImportedImpl);
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return false;
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}
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if (prev_impl.has_definition_started()) {
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// Impls aren't merged in order to avoid generic region lookup into a
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// mismatching table.
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CARBON_DIAGNOSTIC(ImplRedefinition, Error,
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"redefinition of `impl {0} as {1}`", InstIdAsRawType,
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InstIdAsRawType);
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CARBON_DIAGNOSTIC(ImplPreviousDefinition, Note,
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"previous definition was here");
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context.emitter()
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.Build(new_impl.latest_decl_id(), ImplRedefinition, new_impl.self_id,
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new_impl.constraint_id)
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.Note(prev_impl.definition_id, ImplPreviousDefinition)
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.Emit();
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return false;
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}
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// TODO: Only allow redeclaration in a match_first/impl_priority block.
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return true;
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}
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// Build an ImplDecl describing the signature of an impl. This handles the
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// common logic shared by impl forward declarations and impl definitions.
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static auto BuildImplDecl(Context& context, Parse::AnyImplDeclId node_id,
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bool is_definition)
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-> std::pair<SemIR::ImplId, SemIR::InstId> {
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auto [constraint_node, constraint_id] =
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context.node_stack().PopExprWithNodeId();
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auto [self_type_node, self_inst_id] =
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context.node_stack().PopWithNodeId<Parse::NodeCategory::ImplAs>();
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auto self_type_id = context.GetTypeIdForTypeInst(self_inst_id);
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// Pop the `impl` introducer and any `forall` parameters as a "name".
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auto name = PopImplIntroducerAndParamsAsNameComponent(context, node_id);
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auto decl_block_id = context.inst_block_stack().Pop();
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// Convert the constraint expression to a type.
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// TODO: Check that its constant value is a constraint.
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auto [constraint_inst_id, constraint_type_id] =
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ExprAsType(context, constraint_node, constraint_id);
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// TODO: Do facet type resolution here, and enforce that the constraint
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// extends a single interface.
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// TODO: Determine `interface_id` and `specific_id` once and save it in the
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// resolved facet type, instead of in multiple functions called below.
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// TODO: Skip work below if facet type resolution fails, so we don't have a
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// valid/non-error `interface_id` at all.
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// Process modifiers.
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// TODO: Should we somehow permit access specifiers on `impl`s?
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// TODO: Handle `final` modifier.
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auto introducer =
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context.decl_introducer_state_stack().Pop<Lex::TokenKind::Impl>();
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LimitModifiersOnDecl(context, introducer, KeywordModifierSet::ImplDecl);
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// Finish processing the name, which should be empty, but might have
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// parameters.
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auto name_context = context.decl_name_stack().FinishImplName();
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CARBON_CHECK(name_context.state == DeclNameStack::NameContext::State::Empty);
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// TODO: Check for an orphan `impl`.
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// Add the impl declaration.
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SemIR::ImplDecl impl_decl = {.impl_id = SemIR::ImplId::None,
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.decl_block_id = decl_block_id};
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auto impl_decl_id =
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context.AddPlaceholderInst(SemIR::LocIdAndInst(node_id, impl_decl));
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SemIR::Impl impl_info = {
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name_context.MakeEntityWithParamsBase(name, impl_decl_id,
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/*is_extern=*/false,
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SemIR::LibraryNameId::None),
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{.self_id = self_inst_id, .constraint_id = constraint_inst_id}};
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// Add the impl declaration.
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bool invalid_redeclaration = false;
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auto lookup_bucket_ref = context.impls().GetOrAddLookupBucket(impl_info);
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// TODO: Detect two impl declarations with the same self type and interface,
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// and issue an error if they don't match.
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for (auto prev_impl_id : lookup_bucket_ref) {
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if (MergeImplRedecl(context, impl_info, prev_impl_id)) {
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if (IsValidImplRedecl(context, impl_info, prev_impl_id)) {
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impl_decl.impl_id = prev_impl_id;
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} else {
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// IsValidImplRedecl() has issued a diagnostic, avoid generating more
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// diagnostics for this declaration.
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invalid_redeclaration = true;
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}
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break;
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}
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}
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// Create a new impl if this isn't a valid redeclaration.
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if (!impl_decl.impl_id.has_value()) {
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impl_info.generic_id = BuildGeneric(context, impl_decl_id);
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impl_info.witness_id = ImplWitnessForDeclaration(context, impl_info);
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AddConstantsToImplWitnessFromConstraint(context, impl_info,
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impl_info.witness_id);
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FinishGenericDecl(context, impl_decl_id, impl_info.generic_id);
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impl_decl.impl_id = context.impls().Add(impl_info);
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lookup_bucket_ref.push_back(impl_decl.impl_id);
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} else {
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const auto& first_impl = context.impls().Get(impl_decl.impl_id);
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FinishGenericRedecl(context, impl_decl_id, first_impl.generic_id);
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}
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// Write the impl ID into the ImplDecl.
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context.ReplaceInstBeforeConstantUse(impl_decl_id, impl_decl);
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// For an `extend impl` declaration, mark the impl as extending this `impl`.
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if (introducer.modifier_set.HasAnyOf(KeywordModifierSet::Extend)) {
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auto extend_node = introducer.modifier_node_id(ModifierOrder::Decl);
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if (impl_info.generic_id.has_value()) {
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SemIR::TypeId type_id = context.insts().Get(constraint_inst_id).type_id();
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constraint_inst_id = context.AddInst<SemIR::SpecificConstant>(
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context.insts().GetLocId(constraint_inst_id),
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{.type_id = type_id,
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.inst_id = constraint_inst_id,
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.specific_id =
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context.generics().GetSelfSpecific(impl_info.generic_id)});
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}
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ExtendImpl(context, extend_node, node_id, impl_decl.impl_id, self_type_node,
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self_type_id, name.implicit_params_loc_id, constraint_inst_id,
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constraint_type_id);
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}
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// Impl definitions are required in the same file as the declaration. We skip
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// this requirement if we've already issued an invalid redeclaration error.
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if (!is_definition && !invalid_redeclaration) {
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context.definitions_required().push_back(impl_decl_id);
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}
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return {impl_decl.impl_id, impl_decl_id};
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}
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auto HandleParseNode(Context& context, Parse::ImplDeclId node_id) -> bool {
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BuildImplDecl(context, node_id, /*is_definition=*/false);
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context.decl_name_stack().PopScope();
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return true;
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}
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auto HandleParseNode(Context& context, Parse::ImplDefinitionStartId node_id)
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-> bool {
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auto [impl_id, impl_decl_id] =
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BuildImplDecl(context, node_id, /*is_definition=*/true);
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auto& impl_info = context.impls().Get(impl_id);
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CARBON_CHECK(!impl_info.has_definition_started());
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impl_info.definition_id = impl_decl_id;
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impl_info.scope_id =
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context.name_scopes().Add(impl_decl_id, SemIR::NameId::None,
|
|
context.decl_name_stack().PeekParentScopeId());
|
|
|
|
context.scope_stack().Push(
|
|
impl_decl_id, impl_info.scope_id,
|
|
context.generics().GetSelfSpecific(impl_info.generic_id));
|
|
StartGenericDefinition(context);
|
|
ImplWitnessStartDefinition(context, impl_info);
|
|
context.inst_block_stack().Push();
|
|
context.node_stack().Push(node_id, impl_id);
|
|
|
|
// TODO: Handle the case where there's control flow in the impl body. For
|
|
// example:
|
|
//
|
|
// impl C as I {
|
|
// fn F() -> if true then i32 else f64;
|
|
// }
|
|
//
|
|
// We may need to track a list of instruction blocks here, as we do for a
|
|
// function.
|
|
impl_info.body_block_id = context.inst_block_stack().PeekOrAdd();
|
|
return true;
|
|
}
|
|
|
|
auto HandleParseNode(Context& context, Parse::ImplDefinitionId /*node_id*/)
|
|
-> bool {
|
|
auto impl_id =
|
|
context.node_stack().Pop<Parse::NodeKind::ImplDefinitionStart>();
|
|
|
|
auto& impl_info = context.impls().Get(impl_id);
|
|
CARBON_CHECK(!impl_info.is_defined());
|
|
FinishImplWitness(context, impl_info);
|
|
impl_info.defined = true;
|
|
FinishGenericDefinition(context, impl_info.generic_id);
|
|
|
|
context.inst_block_stack().Pop();
|
|
// The decl_name_stack and scopes are popped by `ProcessNodeIds`.
|
|
return true;
|
|
}
|
|
|
|
} // namespace Carbon::Check
|