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A `where` expression nested inside a `T impls X` constraint makes `.Self` ambiguous on the right-hand side of the `where` if `T` is anything other than `.Self`. After the `where`, the value of a `.Self` could be `T` or could be the value of `.Self` before the `impls` constraint: the so-called top-level value of `.Self`. Implicit use of `.Self` in designators is always allowed, and they are bound (and replaced by a reference) to the inner-most possible value of `.Self`. On the right-hand side of the nested `where` above, they have the value `T as X`. `.Self impls ...` is also always allowed, since it acts more as a keyword here, and it always refers to the inner-most possible value of `.Self`. Any other explicit use of `.Self` is diagnosed when ambiguous, in any kind of constraint. This is done in the handling of `WhereExpr` since it has enough context to allow `.Self impls` (which is an explicit use) while disallowing other explicit uses. And because it has non-canonical instructions to work with, so it is able to diagnose errors with precise locations. Since `.Self` is no longer going to be marked with depth modifiers, the eval of `WhereExpr` does not need an input facet value instruction representing `.Self` to compare with, as they are now going to all be equivalent. So revert it back to just looking for the `PeriodSelf` name id, through a shared helper being introduced as `IsPeriodSelf`. And drop the period self InstId from the `WhereExpr` instruction. This causes most of the formatted SemIR changes. Move helpers for working with and replacing `.Self` to their own file, out of the `facet_type.h` header/cpp files. These are working with `.Self` facet values more than facet types, though `.Self` is a name that only exists inside the scope of a facet type.
468 lines
20 KiB
C++
468 lines
20 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/base/kind_switch.h"
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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/generic.h"
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#include "toolchain/check/handle.h"
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#include "toolchain/check/inst.h"
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#include "toolchain/check/modifiers.h"
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#include "toolchain/check/name_lookup.h"
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#include "toolchain/check/period_self.h"
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#include "toolchain/check/subst.h"
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#include "toolchain/check/type.h"
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#include "toolchain/check/type_completion.h"
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#include "toolchain/diagnostics/diagnostic.h"
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#include "toolchain/parse/node_ids.h"
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#include "toolchain/sem_ir/ids.h"
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#include "toolchain/sem_ir/named_constraint.h"
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#include "toolchain/sem_ir/specific_named_constraint.h"
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#include "toolchain/sem_ir/type_iterator.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::RequireIntroducerId node_id)
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-> bool {
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// Require decls are always generic, since everything in an `interface` or
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// `constraint` is generic over `Self`.
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StartGenericDecl(context);
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// Create an instruction block to hold the instructions created for the type
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// and constraint.
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context.inst_block_stack().Push();
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// Optional modifiers follow.
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context.decl_introducer_state_stack().Push<Lex::TokenKind::Require>();
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auto scope_id = context.scope_stack().PeekNameScopeId();
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auto scope_inst_id = context.name_scopes().Get(scope_id).inst_id();
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auto scope_inst = context.insts().Get(scope_inst_id);
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if (!scope_inst.Is<SemIR::InterfaceWithSelfDecl>() &&
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!scope_inst.Is<SemIR::NamedConstraintWithSelfDecl>()) {
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CARBON_DIAGNOSTIC(
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RequireInWrongScope, Error,
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"`require` can only be used in an `interface` or `constraint`");
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context.emitter().Emit(node_id, RequireInWrongScope);
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scope_inst_id = SemIR::ErrorInst::InstId;
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}
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context.node_stack().Push(node_id, scope_inst_id);
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return true;
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}
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auto HandleParseNode(Context& context, Parse::RequireDefaultSelfImplsId node_id)
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-> bool {
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auto scope_inst_id =
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context.node_stack().Peek<Parse::NodeKind::RequireIntroducer>();
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if (scope_inst_id == SemIR::ErrorInst::InstId) {
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context.node_stack().Push(node_id, SemIR::ErrorInst::TypeInstId);
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return true;
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}
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auto lookup_result =
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LookupUnqualifiedName(context, node_id, SemIR::NameId::SelfType,
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/*required=*/true);
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auto self_inst_id = lookup_result.scope_result.target_inst_id();
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auto self_type_id = context.insts().Get(self_inst_id).type_id();
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if (self_type_id == SemIR::ErrorInst::TypeId) {
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context.node_stack().Push(node_id, SemIR::ErrorInst::TypeInstId);
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return true;
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}
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CARBON_CHECK(context.types().Is<SemIR::FacetType>(self_type_id));
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// TODO: We could simplify with a call to ExprAsType, like below?
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auto self_facet_as_type = AddTypeInst<SemIR::FacetAccessType>(
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context, node_id,
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{.type_id = SemIR::TypeType::TypeId,
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.facet_value_inst_id = self_inst_id});
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context.node_stack().Push(node_id, self_facet_as_type);
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return true;
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}
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auto HandleParseNode(Context& context, Parse::RequireTypeImplsId node_id)
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-> bool {
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auto [self_node_id, self_inst_id] = context.node_stack().PopExprWithNodeId();
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auto self_type = ExprAsType(context, self_node_id, self_inst_id);
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const auto& introducer = context.decl_introducer_state_stack().innermost();
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if (introducer.modifier_set.HasAnyOf(KeywordModifierSet::Extend)) {
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if (self_type.type_id != SemIR::ErrorInst::TypeId) {
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CARBON_DIAGNOSTIC(RequireImplsExtendWithExplicitSelf, Error,
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"`extend require impls` with explicit type");
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// TODO: If the explicit self-type matches a lookup of NameId::SelfType,
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// add a note to the diagnostic: "remove the explicit `Self` type here",
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// and continue without an ErrorInst. See ExtendImplSelfAsDefault.
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context.emitter().Emit(self_node_id, RequireImplsExtendWithExplicitSelf);
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}
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self_type.inst_id = SemIR::ErrorInst::TypeInstId;
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}
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context.node_stack().Push(node_id, self_type.inst_id);
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return true;
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}
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static auto TypeStructureReferencesSelf(
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Context& context, SemIR::LocId loc_id, SemIR::ConstantId const_id,
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const SemIR::IdentifiedFacetType& identified_facet_type) -> bool {
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auto find_self = [&](SemIR::TypeIterator& type_iter) -> bool {
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while (true) {
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auto step = type_iter.Next();
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if (step.Is<SemIR::TypeIterator::Step::Done>()) {
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break;
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}
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CARBON_KIND_SWITCH(step.any) {
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case CARBON_KIND(SemIR::TypeIterator::Step::Error _): {
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// Don't generate more diagnostics.
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return true;
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}
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case CARBON_KIND(SemIR::TypeIterator::Step::SymbolicType symbolic): {
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if (context.entity_names().Get(symbolic.entity_name_id).name_id ==
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SemIR::NameId::SelfType) {
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return true;
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}
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break;
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}
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default:
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break;
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}
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}
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return false;
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};
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{
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SemIR::TypeIterator type_iter(&context.sem_ir());
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type_iter.Add(context.constant_values().GetInstId(const_id));
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if (find_self(type_iter)) {
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return true;
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}
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}
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if (identified_facet_type.required_impls().empty()) {
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CARBON_DIAGNOSTIC(
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RequireImplsMissingSelfEmptyFacetType, Error,
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"no `Self` reference found in `require` declaration; `Self` must "
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"appear in the self-type or as a generic argument for each required "
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"interface, but no interfaces were found");
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context.emitter().Emit(loc_id, RequireImplsMissingSelfEmptyFacetType);
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return false;
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}
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bool interfaces_all_reference_self = true;
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for (auto [_, specific_interface] : identified_facet_type.required_impls()) {
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SemIR::TypeIterator type_iter(&context.sem_ir());
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type_iter.Add(specific_interface);
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if (!find_self(type_iter)) {
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// TODO: The IdentifiedFacetType loses the location (since it's
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// canonical), but it would be nice to somehow point this diagnostic at
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// the particular interface in the facet type that is missing `Self`.
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CARBON_DIAGNOSTIC(
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RequireImplsMissingSelf, Error,
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"no `Self` reference found in `require` declaration; `Self` must "
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"appear in the self-type or as a generic argument for each required "
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"interface, but found interface `{0}` without a `Self` argument",
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SemIR::SpecificInterface);
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context.emitter().Emit(loc_id, RequireImplsMissingSelf,
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specific_interface);
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interfaces_all_reference_self = false;
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}
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}
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return interfaces_all_reference_self;
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}
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struct ValidateRequireResult {
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const SemIR::IdentifiedFacetType* identified_facet_type;
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};
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// Returns nullopt if a diagnostic has been emitted and the `require` decl is
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// not valid.
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static auto ValidateRequire(Context& context, SemIR::LocId full_require_loc_id,
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SemIR::LocId constraint_loc_id,
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SemIR::InstId self_inst_id,
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SemIR::InstId constraint_inst_id,
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SemIR::InstId scope_inst_id)
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-> std::optional<ValidateRequireResult> {
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auto self_type_id = context.types().GetTypeIdForTypeInstId(self_inst_id);
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auto constraint_type_id =
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context.types().TryGetTypeIdForTypeInstId(constraint_inst_id);
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if (self_type_id == SemIR::ErrorInst::TypeId ||
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constraint_type_id == SemIR::ErrorInst::TypeId ||
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scope_inst_id == SemIR::ErrorInst::InstId) {
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// An error was already diagnosed, don't diagnose another. We can't build a
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// useful `require` with an error, it couldn't do anything.
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return std::nullopt;
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}
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auto constraint_facet_type =
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context.types().TryGetAsIfValid<SemIR::FacetType>(constraint_type_id);
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if (!constraint_facet_type) {
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CARBON_DIAGNOSTIC(
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RequireImplsMissingFacetType, Error,
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"`require` declaration constrained by a non-facet type; "
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"expected an `interface` or `constraint` name after `impls`");
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context.emitter().Emit(constraint_loc_id, RequireImplsMissingFacetType);
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// Can't continue without a constraint to use.
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return std::nullopt;
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}
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if (auto named_constraint =
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context.insts().TryGetAs<SemIR::NamedConstraintWithSelfDecl>(
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scope_inst_id)) {
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const auto& constraint_facet_type_info =
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context.facet_types().Get(constraint_facet_type->facet_type_id);
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// TODO: Handle other impls named constraints for the
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// RequireImplsReferenceCycle diagnostic.
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if (constraint_facet_type_info.other_requirements) {
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context.TODO(constraint_loc_id,
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"facet type has constraints that we don't handle yet");
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return std::nullopt;
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}
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auto named_constraints_from_type_impls = llvm::map_range(
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constraint_facet_type_info.type_impls_named_constraints,
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[](auto impls) { return impls.specific_named_constraint; });
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auto named_constraints = llvm::concat<const SemIR::SpecificNamedConstraint>(
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constraint_facet_type_info.extend_named_constraints,
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constraint_facet_type_info.self_impls_named_constraints,
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named_constraints_from_type_impls);
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for (auto c : named_constraints) {
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if (c.named_constraint_id == named_constraint->named_constraint_id) {
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const auto& named_constraint =
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context.named_constraints().Get(c.named_constraint_id);
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CARBON_DIAGNOSTIC(RequireImplsReferenceCycle, Error,
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"facet type in `require` declaration refers to the "
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"named constraint `{0}` from within its definition",
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SemIR::NameId);
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context.emitter().Emit(constraint_loc_id, RequireImplsReferenceCycle,
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named_constraint.name_id);
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return std::nullopt;
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}
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}
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}
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auto identified_facet_type_id = RequireIdentifiedFacetType(
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context, constraint_loc_id, self_type_id.AsConstantId(),
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*constraint_facet_type, [&](auto& builder) {
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CARBON_DIAGNOSTIC(
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RequireImplsUnidentifiedFacetType, Context,
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"facet type {0} cannot be identified in `require` declaration",
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SemIR::TypeId);
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builder.Context(constraint_loc_id, RequireImplsUnidentifiedFacetType,
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constraint_type_id);
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});
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if (!identified_facet_type_id.has_value()) {
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// The constraint can't be used. A diagnostic was emitted by
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// RequireIdentifiedFacetType().
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return std::nullopt;
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}
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const auto& identified =
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context.identified_facet_types().Get(identified_facet_type_id);
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if (!TypeStructureReferencesSelf(context, full_require_loc_id,
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self_type_id.AsConstantId(), identified)) {
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return std::nullopt;
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}
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return ValidateRequireResult{.identified_facet_type = &identified};
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}
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// Replace all `.Self` references with the self-type.
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static auto SubstPeriodSelfInConstraint(Context& context, SemIR::LocId loc_id,
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SemIR::TypeInstId self_type_inst_id,
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SemIR::TypeInstId constraint_inst_id)
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-> SemIR::TypeInstId {
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auto orig_facet_type = context.insts().GetAs<SemIR::FacetType>(
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context.constant_values().GetConstantInstId(constraint_inst_id));
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const auto& orig_info =
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context.facet_types().Get(orig_facet_type.facet_type_id);
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SubstPeriodSelfCallbacks callbacks(
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&context, loc_id, context.constant_values().Get(self_type_inst_id));
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auto replace_interface = [&](SemIR::SpecificInterface si) {
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return SubstPeriodSelf(context, callbacks, si);
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};
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auto replace_constraint = [&](SemIR::SpecificNamedConstraint sc) {
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return SubstPeriodSelf(context, callbacks, sc);
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};
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auto replace_type_impls_interface =
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[&](SemIR::FacetTypeInfo::TypeImplsInterface impls)
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-> SemIR::FacetTypeInfo::TypeImplsInterface {
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auto self = SubstPeriodSelf(context, callbacks,
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context.constant_values().Get(impls.self_type));
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auto interface =
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SubstPeriodSelf(context, callbacks, impls.specific_interface);
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return {context.constant_values().GetInstId(self), interface};
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};
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auto replace_type_impls_constraint =
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[&](SemIR::FacetTypeInfo::TypeImplsNamedConstraint impls)
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-> SemIR::FacetTypeInfo::TypeImplsNamedConstraint {
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auto self = SubstPeriodSelf(context, callbacks,
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context.constant_values().Get(impls.self_type));
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auto constraint =
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SubstPeriodSelf(context, callbacks, impls.specific_named_constraint);
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return {context.constant_values().GetInstId(self), constraint};
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};
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SemIR::FacetTypeInfo info;
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llvm::append_range(
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info.extend_constraints,
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llvm::map_range(orig_info.extend_constraints, replace_interface));
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llvm::append_range(
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info.extend_named_constraints,
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llvm::map_range(orig_info.extend_named_constraints, replace_constraint));
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llvm::append_range(
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info.self_impls_constraints,
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llvm::map_range(orig_info.self_impls_constraints, replace_interface));
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llvm::append_range(info.self_impls_named_constraints,
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llvm::map_range(orig_info.self_impls_named_constraints,
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replace_constraint));
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llvm::append_range(info.type_impls_interfaces,
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llvm::map_range(orig_info.type_impls_interfaces,
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replace_type_impls_interface));
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llvm::append_range(info.type_impls_named_constraints,
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llvm::map_range(orig_info.type_impls_named_constraints,
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replace_type_impls_constraint));
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// TODO: Replace .Self in rewrites too. We need to actually validate rewrite
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// constraints from named constraints in impl lookup (see
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// todo_fail_require_with_mismatching_rewrite_constraint.carbon).
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llvm::append_range(info.rewrite_constraints, orig_info.rewrite_constraints);
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info.Canonicalize();
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if (info == orig_info) {
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// Nothing was substituted, keep the original instruction.
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//
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// It is noteworthy that we keep the non-canonical instruction here, since
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// it may have a symbolic value (which is attached to a generic, and can be
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// updated by specifics). Returning the canonical constraint instruction
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// would lose the attachment to the generic which would be incorrect.
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return constraint_inst_id;
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}
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return AddTypeInst<SemIR::FacetType>(
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context, loc_id,
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{.type_id = SemIR::TypeType::TypeId,
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.facet_type_id = context.facet_types().Add(info)});
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}
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auto HandleParseNode(Context& context, Parse::RequireDeclId node_id) -> bool {
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auto [constraint_node_id, constraint_inst_id] =
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context.node_stack().PopExprWithNodeId();
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auto [self_node_id, self_inst_id] =
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context.node_stack().PopWithNodeId<Parse::NodeCategory::RequireImpls>();
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// Process modifiers.
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auto introducer =
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context.decl_introducer_state_stack().Pop<Lex::TokenKind::Require>();
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LimitModifiersOnDecl(context, introducer, KeywordModifierSet::Extend);
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bool extend = introducer.modifier_set.HasAnyOf(KeywordModifierSet::Extend);
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auto scope_inst_id =
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context.node_stack().Pop<Parse::NodeKind::RequireIntroducer>();
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auto validated =
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ValidateRequire(context, node_id, constraint_node_id, self_inst_id,
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constraint_inst_id, scope_inst_id);
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if (!validated) {
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// In an `extend` decl, errors get propagated into the parent scope just as
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// names do.
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if (extend) {
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auto scope_id = context.scope_stack().PeekNameScopeId();
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context.name_scopes().Get(scope_id).set_has_error();
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}
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context.inst_block_stack().Pop();
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DiscardGenericDecl(context);
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return true;
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}
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auto [identified_facet_type] = *validated;
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if (identified_facet_type->required_impls().empty()) {
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// A `require T impls type` adds no actual constraints, so nothing to do.
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// This is not an error though.
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context.inst_block_stack().Pop();
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DiscardGenericDecl(context);
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return true;
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}
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// The identified facet type also replaced `.Self` references, but we want to
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// store the full facet type not just the identified one. So we have to
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// replace `.Self` references explicitly here in the canonical constraint. We
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// do this after `ValidateRequire()` which has ensured the constraint is in
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// fact a FacetType.
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auto constraint_type_inst_id = SubstPeriodSelfInConstraint(
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context, constraint_node_id, self_inst_id,
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context.types().GetAsTypeInstId(constraint_inst_id));
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// The replacement of `.Self` can create a new FacetType instruction which we
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// want to be part of the require decl's inst block, so we defer the Pop until
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// after the subst.
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auto decl_block_id = context.inst_block_stack().Pop();
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auto require_impls_decl =
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SemIR::RequireImplsDecl{// To be filled in after.
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.require_impls_id = SemIR::RequireImplsId::None,
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.decl_block_id = decl_block_id};
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auto decl_id = AddPlaceholderInst(context, node_id, require_impls_decl);
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// TODO: We don't need to store the `self_inst_id` anymore, since we've
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// encoded it into the constraints of the facet type which was converted to
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// the form `<Self> where .Self impls <Constraint>`.
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auto require_impls_id = context.require_impls().Add(
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{.self_id = self_inst_id,
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.facet_type_inst_id = constraint_type_inst_id,
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.extend_self = extend,
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.decl_id = decl_id,
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.parent_scope_id = context.scope_stack().PeekNameScopeId(),
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.generic_id = BuildGenericDecl(context, decl_id)});
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|
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require_impls_decl.require_impls_id = require_impls_id;
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ReplaceInstBeforeConstantUse(context, decl_id, require_impls_decl);
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|
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// We look for a complete type after BuildGenericDecl, so that the resulting
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// RequireCompleteType instruction is part of the enclosing interface or named
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// constraint generic definition. Then requiring enclosing entity to be
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// complete will resolve that definition (via ResolveSpecificDefinition()) and
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// also construct a specific for the `constraint_inst_id`, finding any
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|
// monomorphization errors that result.
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if (extend) {
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if (!RequireCompleteType(
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|
context,
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context.types().GetTypeIdForTypeInstId(constraint_type_inst_id),
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constraint_node_id, [&](auto& builder) {
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CARBON_DIAGNOSTIC(RequireImplsIncompleteFacetType, Context,
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"`extend require` of incomplete facet type {0}",
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|
InstIdAsType);
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builder.Context(constraint_node_id,
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|
RequireImplsIncompleteFacetType,
|
|
constraint_type_inst_id);
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|
})) {
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|
return true;
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|
}
|
|
|
|
// The extended scope instruction must be part of the enclosing scope (and
|
|
// generic). A specific for the enclosing scope will be applied to it when
|
|
// using the instruction later. To do so, we wrap the constraint facet type
|
|
// it in a SpecificConstant, which preserves the require declaration's
|
|
// specific along with the facet type.
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|
//
|
|
// TODO: Remove the separate generic for each require decl, then we don't
|
|
// need a SpecificConstant anymore, as the constraint_inst_id will already
|
|
// be in the generic of the interface-with-self.
|
|
auto self_specific_id = context.generics().GetSelfSpecific(
|
|
context.require_impls().Get(require_impls_id).generic_id);
|
|
auto constraint_id_in_self_specific = AddTypeInst<SemIR::SpecificConstant>(
|
|
context, node_id,
|
|
{.type_id = SemIR::TypeType::TypeId,
|
|
.inst_id = constraint_inst_id,
|
|
.specific_id = self_specific_id});
|
|
auto enclosing_scope_id = context.scope_stack().PeekNameScopeId();
|
|
auto& enclosing_scope = context.name_scopes().Get(enclosing_scope_id);
|
|
enclosing_scope.AddExtendedScope(constraint_id_in_self_specific);
|
|
}
|
|
|
|
context.require_impls_stack().AppendToTop(require_impls_id);
|
|
return true;
|
|
}
|
|
|
|
} // namespace Carbon::Check
|