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With the toolchain splitting namespaces, ostream.h's `operator<<` templates aren't reliably found with name lookup, likely due to the loss of associated namespaces (zygoloid commented on this at https://github.com/carbon-language/carbon-lang/pull/3161#discussion_r1307941999). This is especially a barrier to moving the lex files into `Carbon::Lex`; versus other parts of the toolchain, they contain more printable types which are used cross-namespace, including `Carbon::Testing`. As a consequence, I'm looking at migrating ostream.h to a more reliable approach that doesn't rely as much on everything being in the `Carbon` namespace.
446 lines
18 KiB
C++
446 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 "explorer/interpreter/impl_scope.h"
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#include "explorer/ast/value.h"
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#include "explorer/interpreter/type_checker.h"
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#include "llvm/ADT/StringExtras.h"
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#include "llvm/Support/Casting.h"
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using llvm::cast;
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using llvm::dyn_cast;
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namespace Carbon {
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void ImplScope::Add(Nonnull<const Value*> iface, Nonnull<const Value*> type,
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Nonnull<const Witness*> witness,
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const TypeChecker& type_checker) {
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Add(iface, {}, type, {}, witness, type_checker);
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}
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void ImplScope::Add(Nonnull<const Value*> iface,
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llvm::ArrayRef<Nonnull<const GenericBinding*>> deduced,
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Nonnull<const Value*> type,
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llvm::ArrayRef<Nonnull<const ImplBinding*>> impl_bindings,
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Nonnull<const Witness*> witness,
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const TypeChecker& type_checker,
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std::optional<TypeStructureSortKey> sort_key) {
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if (const auto* constraint = dyn_cast<ConstraintType>(iface)) {
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CARBON_CHECK(!sort_key)
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<< "should only be given a sort key for an impl of an interface";
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// The caller should have substituted `.Self` for `type` already.
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Add(constraint->impls_constraints(), deduced, impl_bindings, witness,
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type_checker);
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// A parameterized impl declaration doesn't contribute any equality
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// constraints to the scope. Instead, we'll resolve the equality
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// constraints by resolving a witness when needed.
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if (deduced.empty()) {
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for (const auto& equality_constraint :
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constraint->equality_constraints()) {
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equalities_.push_back(&equality_constraint);
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}
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}
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return;
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}
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ImplFact new_impl = {.interface = cast<InterfaceType>(iface),
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.deduced = deduced,
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.type = type,
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.impl_bindings = impl_bindings,
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.witness = witness,
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.sort_key = std::move(sort_key)};
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// Find the first impl that's more specific than this one, and place this
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// impl right before it. This keeps the impls with the same type structure
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// sorted in lexical order, which is important for `match_first` semantics.
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auto insert_pos =
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std::upper_bound(impl_facts_.begin(), impl_facts_.end(), new_impl,
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[](const ImplFact& a, const ImplFact& b) {
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return a.sort_key < b.sort_key;
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});
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impl_facts_.insert(insert_pos, std::move(new_impl));
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}
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void ImplScope::Add(llvm::ArrayRef<ImplsConstraint> impls_constraints,
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llvm::ArrayRef<Nonnull<const GenericBinding*>> deduced,
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llvm::ArrayRef<Nonnull<const ImplBinding*>> impl_bindings,
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Nonnull<const Witness*> witness,
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const TypeChecker& type_checker) {
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for (size_t i = 0; i != impls_constraints.size(); ++i) {
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ImplsConstraint impl = impls_constraints[i];
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Add(impl.interface, deduced, impl.type, impl_bindings,
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type_checker.MakeConstraintWitnessAccess(witness, i), type_checker);
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}
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}
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// Diagnose that `a_evaluated != b_evaluated` for the purpose of an equality
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// constraint.
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static auto DiagnoseUnequalValues(SourceLocation source_loc,
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Nonnull<const Value*> a_written,
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Nonnull<const Value*> a_evaluated,
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Nonnull<const Value*> b_written,
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Nonnull<const Value*> b_evaluated,
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Nonnull<const EqualityContext*> equality_ctx)
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-> Error {
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CARBON_CHECK(!ValueEqual(a_evaluated, b_evaluated, equality_ctx))
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<< "expected unequal values";
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auto error = ProgramError(source_loc);
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error << "constraint requires that " << *a_written;
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if (!ValueEqual(a_written, a_evaluated, std::nullopt)) {
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error << " (with value " << *a_evaluated << ")";
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}
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error << " == " << *b_written;
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if (!ValueEqual(b_written, b_evaluated, std::nullopt)) {
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error << " (with value " << *b_evaluated << ")";
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}
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error << ", which is not known to be true";
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return std::move(error);
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}
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auto ImplScope::Resolve(Nonnull<const Value*> constraint_type,
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Nonnull<const Value*> impl_type,
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SourceLocation source_loc,
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const TypeChecker& type_checker,
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const Bindings& bindings) const
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-> ErrorOr<Nonnull<const Witness*>> {
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CARBON_ASSIGN_OR_RETURN(
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std::optional<Nonnull<const Witness*>> witness,
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TryResolve(constraint_type, impl_type, source_loc, type_checker, bindings,
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/*diagnose_missing_impl=*/true));
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CARBON_CHECK(witness) << "should have diagnosed missing impl";
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return *witness;
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}
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auto ImplScope::TryResolve(Nonnull<const Value*> constraint_type,
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Nonnull<const Value*> impl_type,
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SourceLocation source_loc,
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const TypeChecker& type_checker,
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const Bindings& bindings,
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bool diagnose_missing_impl) const
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-> ErrorOr<std::optional<Nonnull<const Witness*>>> {
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if (const auto* iface_type = dyn_cast<InterfaceType>(constraint_type)) {
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CARBON_ASSIGN_OR_RETURN(
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iface_type,
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type_checker.SubstituteCast<InterfaceType>(bindings, iface_type));
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return TryResolveInterface(iface_type, impl_type, source_loc, type_checker,
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diagnose_missing_impl);
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}
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if (const auto* constraint = dyn_cast<ConstraintType>(constraint_type)) {
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std::vector<Nonnull<const Witness*>> witnesses;
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for (auto impl : constraint->impls_constraints()) {
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// Note that later impls constraints can refer to earlier impls
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// constraints via impl bindings. For example, in
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// `C where .Self.AssocType impls D`,
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// ... the `.Self.AssocType impls D` constraint refers to the
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// `.Self impls C` constraint when naming `AssocType`. So incrementally
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// build up a partial constraint witness as we go.
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std::optional<Nonnull<const Witness*>> witness;
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if (constraint->self_binding()->impl_binding()) {
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// Note, this is a partial impl binding covering only the impl
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// constraints that we've already seen. Earlier impls constraints should
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// not be able to refer to impl bindings for later impls constraints.
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witness = type_checker.MakeConstraintWitness(witnesses);
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}
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Bindings local_bindings = bindings;
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local_bindings.Add(constraint->self_binding(), impl_type, witness);
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CARBON_ASSIGN_OR_RETURN(const auto* subst_interface,
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type_checker.SubstituteCast<InterfaceType>(
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local_bindings, impl.interface));
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CARBON_ASSIGN_OR_RETURN(
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Nonnull<const Value*> subst_type,
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type_checker.Substitute(local_bindings, impl.type));
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CARBON_ASSIGN_OR_RETURN(
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std::optional<Nonnull<const Witness*>> result,
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TryResolveInterface(subst_interface, subst_type, source_loc,
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type_checker, diagnose_missing_impl));
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if (!result) {
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return {std::nullopt};
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}
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witnesses.push_back(*result);
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}
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// Check that all intrinsic, equality, and rewrite constraints
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// are satisfied in this scope.
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llvm::ArrayRef<IntrinsicConstraint> intrinsics =
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constraint->intrinsic_constraints();
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llvm::ArrayRef<EqualityConstraint> equals =
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constraint->equality_constraints();
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llvm::ArrayRef<RewriteConstraint> rewrites =
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constraint->rewrite_constraints();
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if (!intrinsics.empty() || !equals.empty() || !rewrites.empty()) {
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std::optional<Nonnull<const Witness*>> witness;
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if (constraint->self_binding()->impl_binding()) {
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witness = type_checker.MakeConstraintWitness(witnesses);
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}
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Bindings local_bindings = bindings;
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local_bindings.Add(constraint->self_binding(), impl_type, witness);
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SingleStepEqualityContext equality_ctx(this);
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for (const auto& intrinsic : intrinsics) {
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CARBON_ASSIGN_OR_RETURN(
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Nonnull<const Value*> type,
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type_checker.Substitute(local_bindings, intrinsic.type));
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IntrinsicConstraint converted(type, intrinsic.kind, {});
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converted.arguments.reserve(intrinsic.arguments.size());
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for (Nonnull<const Value*> argument : intrinsic.arguments) {
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CARBON_ASSIGN_OR_RETURN(
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Nonnull<const Value*> subst_arg,
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type_checker.Substitute(local_bindings, argument));
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converted.arguments.push_back(subst_arg);
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}
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CARBON_ASSIGN_OR_RETURN(bool intrinsic_satisfied,
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type_checker.IsIntrinsicConstraintSatisfied(
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source_loc, converted, *this));
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if (!intrinsic_satisfied) {
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if (!diagnose_missing_impl) {
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return {std::nullopt};
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}
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return ProgramError(source_loc)
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<< "constraint requires that " << converted;
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}
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}
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for (const auto& equal : equals) {
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auto it = equal.values.begin();
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CARBON_ASSIGN_OR_RETURN(Nonnull<const Value*> first,
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type_checker.Substitute(local_bindings, *it++));
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for (; it != equal.values.end(); ++it) {
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CARBON_ASSIGN_OR_RETURN(Nonnull<const Value*> current,
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type_checker.Substitute(local_bindings, *it));
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if (!ValueEqual(first, current, &equality_ctx)) {
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if (!diagnose_missing_impl) {
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return {std::nullopt};
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}
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return DiagnoseUnequalValues(source_loc, equal.values.front(),
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first, *it, current, &equality_ctx);
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}
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}
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}
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for (const auto& rewrite : rewrites) {
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CARBON_ASSIGN_OR_RETURN(
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Nonnull<const Value*> constant,
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type_checker.Substitute(local_bindings, rewrite.constant));
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CARBON_ASSIGN_OR_RETURN(
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Nonnull<const Value*> value,
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type_checker.Substitute(local_bindings,
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rewrite.converted_replacement));
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if (!ValueEqual(constant, value, &equality_ctx)) {
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if (!diagnose_missing_impl) {
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return {std::nullopt};
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}
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return DiagnoseUnequalValues(source_loc, rewrite.constant, constant,
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rewrite.converted_replacement, value,
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&equality_ctx);
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}
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}
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}
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return {type_checker.MakeConstraintWitness(std::move(witnesses))};
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}
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CARBON_FATAL() << "expected a constraint, not " << *constraint_type;
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}
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auto ImplScope::VisitEqualValues(
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Nonnull<const Value*> value,
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llvm::function_ref<bool(Nonnull<const Value*>)> visitor) const -> bool {
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for (Nonnull<const EqualityConstraint*> eq : equalities_) {
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if (!eq->VisitEqualValues(value, visitor)) {
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return false;
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}
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}
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return !parent_scope_ || (*parent_scope_)->VisitEqualValues(value, visitor);
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}
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auto ImplScope::TryResolveInterface(Nonnull<const InterfaceType*> iface_type,
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Nonnull<const Value*> type,
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SourceLocation source_loc,
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const TypeChecker& type_checker,
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bool diagnose_missing_impl) const
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-> ErrorOr<std::optional<Nonnull<const Witness*>>> {
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CARBON_ASSIGN_OR_RETURN(
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std::optional<ResolveResult> result,
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TryResolveInterfaceRecursively(iface_type, type, source_loc, *this,
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type_checker));
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if (!result.has_value() && diagnose_missing_impl) {
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return ProgramError(source_loc) << "could not find implementation of "
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<< *iface_type << " for " << *type;
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}
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return result ? std::optional(result->witness) : std::nullopt;
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}
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// Do these two witnesses refer to `impl` declarations in the same
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// `match_first` block?
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static auto InSameMatchFirst(Nonnull<const Witness*> a,
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Nonnull<const Witness*> b) -> bool {
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const auto* impl_a = dyn_cast<ImplWitness>(a);
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const auto* impl_b = dyn_cast<ImplWitness>(b);
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if (!impl_a || !impl_b) {
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return false;
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}
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// TODO: Once we support an impl being declared more than once, we will need
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// to check this more carefully.
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return impl_a->declaration().match_first() &&
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impl_a->declaration().match_first() ==
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impl_b->declaration().match_first();
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}
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// Determine whether this result is definitely right -- that there can be no
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// specialization that would give a better match.
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static auto IsEffectivelyFinal(ImplScope::ResolveResult result) -> bool {
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// TODO: Once we support 'final', check whether this is a final impl
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// declaration if it's parameterized.
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return result.impl->deduced.empty();
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}
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// Combines the results of two impl lookups. In the event of a tie, arbitrarily
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// prefer `a` over `b`.
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static auto CombineResults(Nonnull<const InterfaceType*> iface_type,
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Nonnull<const Value*> type,
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SourceLocation source_loc,
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std::optional<ImplScope::ResolveResult> a,
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std::optional<ImplScope::ResolveResult> b)
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-> ErrorOr<std::optional<ImplScope::ResolveResult>> {
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// If only one lookup succeeded, return that.
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if (!b) {
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return a;
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}
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if (!a) {
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return b;
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}
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// If exactly one of them is effectively final, prefer that result.
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bool a_is_final = IsEffectivelyFinal(*a);
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bool b_is_final = IsEffectivelyFinal(*b);
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if (a_is_final && !b_is_final) {
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return a;
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} else if (b_is_final && !a_is_final) {
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return b;
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}
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const auto* impl_a = dyn_cast<ImplWitness>(a->witness);
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const auto* impl_b = dyn_cast<ImplWitness>(b->witness);
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// If both are effectively final, prefer an impl declaration over a
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// symbolic ImplBinding, because we get more information from the impl
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// declaration. If they're both symbolic, arbitrarily pick a.
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if (a_is_final && b_is_final) {
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if (!impl_b) {
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return a;
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}
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if (!impl_a) {
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return b;
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}
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}
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CARBON_CHECK(impl_a && impl_b) << "non-final impl should not be symbolic";
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// At this point, we're comparing two `impl` declarations, and either they're
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// both final or neither of them is.
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// TODO: We should reject the case where both are final when checking their
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// declarations, but we don't do so yet, so for now we report it as an
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// ambiguity.
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//
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// If they refer to the same `impl` declaration, it doesn't matter which one
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// we pick, so we pick `a`.
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// TODO: Compare the identities of the `impl`s, not the declarations.
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if (&impl_a->declaration() == &impl_b->declaration()) {
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return a;
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}
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return ProgramError(source_loc)
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<< "ambiguous implementations of " << *iface_type << " for " << *type;
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}
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auto ImplScope::TryResolveInterfaceRecursively(
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Nonnull<const InterfaceType*> iface_type, Nonnull<const Value*> type,
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SourceLocation source_loc, const ImplScope& original_scope,
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const TypeChecker& type_checker) const
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-> ErrorOr<std::optional<ResolveResult>> {
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CARBON_ASSIGN_OR_RETURN(
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std::optional<ResolveResult> result,
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TryResolveInterfaceHere(iface_type, type, source_loc, original_scope,
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type_checker));
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if (parent_scope_) {
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CARBON_ASSIGN_OR_RETURN(
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std::optional<ResolveResult> parent_result,
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(*parent_scope_)
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->TryResolveInterfaceRecursively(iface_type, type, source_loc,
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original_scope, type_checker));
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CARBON_ASSIGN_OR_RETURN(result, CombineResults(iface_type, type, source_loc,
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result, parent_result));
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}
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return result;
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}
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auto ImplScope::TryResolveInterfaceHere(
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Nonnull<const InterfaceType*> iface_type, Nonnull<const Value*> impl_type,
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SourceLocation source_loc, const ImplScope& original_scope,
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const TypeChecker& type_checker) const
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-> ErrorOr<std::optional<ResolveResult>> {
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std::optional<ResolveResult> result = std::nullopt;
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for (const ImplFact& impl : impl_facts_) {
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// If we've passed the final impl with a sort key matching our best impl,
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// all further are worse and don't need to be checked.
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if (result && result->impl->sort_key < impl.sort_key) {
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break;
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}
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// If this impl appears later in the same match_first block as our best
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// result, we should not consider it.
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//
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// TODO: This should apply transitively: if we have
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// match_first { impl a; impl b; }
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// match_first { impl b; impl c; }
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// then we should not consider c once we match a. For now, because each
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// impl is only declared once, this is not a problem.
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if (result && InSameMatchFirst(result->impl->witness, impl.witness)) {
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continue;
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}
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// Try matching this impl against our query.
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CARBON_ASSIGN_OR_RETURN(std::optional<Nonnull<const Witness*>> witness,
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type_checker.MatchImpl(*iface_type, impl_type, impl,
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original_scope, source_loc));
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if (witness) {
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CARBON_ASSIGN_OR_RETURN(
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result,
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CombineResults(iface_type, impl_type, source_loc, result,
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ResolveResult{.impl = &impl, .witness = *witness}));
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}
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}
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return result;
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}
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// TODO: Add indentation when printing the parents.
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void ImplScope::Print(llvm::raw_ostream& out) const {
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llvm::ListSeparator sep(",\n ");
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out << " "
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<< "[";
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for (const ImplFact& impl : impl_facts_) {
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out << sep << "`" << *(impl.type) << "` as `" << *(impl.interface) << "`";
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if (impl.sort_key) {
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out << " " << *impl.sort_key;
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}
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}
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for (Nonnull<const EqualityConstraint*> eq : equalities_) {
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out << sep;
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llvm::ListSeparator equal(" == ");
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for (Nonnull<const Value*> value : eq->values) {
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out << equal << "`" << *value << "`";
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}
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}
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out << "]\n";
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if (parent_scope_) {
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out << **parent_scope_;
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}
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}
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auto SingleStepEqualityContext::VisitEqualValues(
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Nonnull<const Value*> value,
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llvm::function_ref<bool(Nonnull<const Value*>)> visitor) const -> bool {
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return impl_scope_->VisitEqualValues(value, visitor);
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}
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} // namespace Carbon
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