mirror of
https://github.com/apple/swift.git
synced 2025-12-14 20:36:38 +01:00
While the intent behind this functor was noble, it has grown in complexity considerably over the years, and it seems to be nothing but a source of crashes in practice. I don't want to deal with it anymore, so I've decided to just subsume all usages with LookUpConformanceInModule instead.
419 lines
13 KiB
C++
419 lines
13 KiB
C++
//===--- ProtocolConformanceRef.cpp - AST Protocol Conformance Reference --===//
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//
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// This source file is part of the Swift.org open source project
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//
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// Copyright (c) 2014 - 2022 Apple Inc. and the Swift project authors
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// Licensed under Apache License v2.0 with Runtime Library Exception
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//
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// See https://swift.org/LICENSE.txt for license information
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// See https://swift.org/CONTRIBUTORS.txt for the list of Swift project authors
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//
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//===----------------------------------------------------------------------===//
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//
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// This file implements the ProtocolConformanceRef structure, which wraps a
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// concrete or abstract conformance, or is invalid.
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//
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//===----------------------------------------------------------------------===//
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#include "swift/AST/ProtocolConformanceRef.h"
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#include "AbstractConformance.h"
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#include "swift/AST/ASTContext.h"
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#include "swift/AST/ConformanceLookup.h"
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#include "swift/AST/Decl.h"
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#include "swift/AST/GenericEnvironment.h"
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#include "swift/AST/InFlightSubstitution.h"
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#include "swift/AST/Module.h"
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#include "swift/AST/PackConformance.h"
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#include "swift/AST/ProtocolConformance.h"
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#include "swift/AST/TypeCheckRequests.h"
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#include "swift/AST/Types.h"
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#include "swift/Basic/Assertions.h"
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#define DEBUG_TYPE "AST"
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using namespace swift;
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bool ProtocolConformanceRef::isInvalid() const {
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if (!Union)
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return true;
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if (auto pack = Union.dyn_cast<PackConformance *>())
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return pack->isInvalid();
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return false;
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}
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Type ProtocolConformanceRef::getType() const {
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if (isInvalid())
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return Type();
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if (isConcrete())
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return getConcrete()->getType();
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if (isPack())
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return Type(getPack()->getType());
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return getAbstract()->getType();
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}
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ProtocolDecl *ProtocolConformanceRef::getProtocol() const {
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if (isConcrete()) {
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return getConcrete()->getProtocol();
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} else if (isPack()) {
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return getPack()->getProtocol();
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} else {
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return getAbstract()->getProtocol();
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}
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}
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ProtocolConformanceRef
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ProtocolConformanceRef::subst(SubstitutionMap subMap,
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SubstOptions options) const {
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InFlightSubstitutionViaSubMap IFS(subMap, options);
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return subst(IFS);
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}
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ProtocolConformanceRef
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ProtocolConformanceRef::subst(TypeSubstitutionFn subs,
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LookupConformanceFn conformances,
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SubstOptions options) const {
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InFlightSubstitution IFS(subs, conformances, options);
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return subst(IFS);
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}
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ProtocolConformanceRef
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ProtocolConformanceRef::subst(InFlightSubstitution &IFS) const {
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if (isInvalid())
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return *this;
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if (isConcrete())
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return getConcrete()->subst(IFS);
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if (isPack())
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return getPack()->subst(IFS);
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auto *abstract = getAbstract();
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auto origType = abstract->getType();
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auto *proto = abstract->getProtocol();
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// If the type is an opaque archetype, the conformance will remain abstract,
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// unless we're specifically substituting opaque types.
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if (origType->is<OpaqueTypeArchetypeType>() &&
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!IFS.shouldSubstituteOpaqueArchetypes()) {
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return forAbstract(origType.subst(IFS), proto);
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}
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// If the type is a local archetype, the conformance will remain abstract,
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// unless we're specifically substituting local types.
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if (origType->is<LocalArchetypeType>() &&
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!IFS.shouldSubstituteLocalArchetypes()) {
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return forAbstract(origType.subst(IFS), proto);
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}
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// Local conformance lookup into the substitution map.
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// FIXME: Pack element level?
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return IFS.lookupConformance(origType, proto, /*level=*/0);
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}
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ProtocolConformanceRef ProtocolConformanceRef::mapConformanceOutOfContext() const {
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if (isConcrete()) {
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return getConcrete()->subst(
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MapTypeOutOfContext(),
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LookUpConformanceInModule(),
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SubstFlags::PreservePackExpansionLevel |
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SubstFlags::SubstitutePrimaryArchetypes);
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} else if (isPack()) {
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return getPack()->subst(
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MapTypeOutOfContext(),
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LookUpConformanceInModule(),
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SubstFlags::PreservePackExpansionLevel |
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SubstFlags::SubstitutePrimaryArchetypes);
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} else if (isAbstract()) {
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auto *abstract = getAbstract();
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return forAbstract(abstract->getType()->mapTypeOutOfContext(),
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abstract->getProtocol());
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}
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return *this;
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}
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Type
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ProtocolConformanceRef::getTypeWitnessByName(Identifier name) const {
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assert(!isInvalid());
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// Find the named requirement.
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ProtocolDecl *proto = getProtocol();
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auto *assocType = proto->getAssociatedType(name);
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// FIXME: Shouldn't this be a hard error?
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if (!assocType)
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return ErrorType::get(proto->getASTContext());
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return getTypeWitness(assocType);
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}
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ConcreteDeclRef
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ProtocolConformanceRef::getWitnessByName(DeclName name) const {
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// Find the named requirement.
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auto *proto = getProtocol();
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auto *requirement = proto->getSingleRequirement(name);
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if (requirement == nullptr)
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return ConcreteDeclRef();
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// For a type with dependent conformance, just return the requirement from
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// the protocol. There are no protocol conformance tables.
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if (!isConcrete()) {
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auto subs = SubstitutionMap::getProtocolSubstitutions(*this);
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return ConcreteDeclRef(requirement, subs);
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}
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return getConcrete()->getWitnessDeclRef(requirement);
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}
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ArrayRef<Requirement>
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ProtocolConformanceRef::getConditionalRequirements() const {
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if (isConcrete())
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return getConcrete()->getConditionalRequirements();
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else
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// An abstract conformance is never conditional, as above.
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return {};
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}
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Type ProtocolConformanceRef::getTypeWitness(AssociatedTypeDecl *assocType,
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SubstOptions options) const {
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if (isInvalid())
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return ErrorType::get(assocType->getASTContext());
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if (isPack()) {
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auto *pack = getPack();
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return pack->getTypeWitness(assocType, options);
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}
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if (isConcrete()) {
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auto *concrete = getConcrete();
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ASSERT(concrete->getProtocol() == assocType->getProtocol());
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auto witnessType = concrete->getTypeWitness(assocType, options);
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if (!witnessType)
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return ErrorType::get(assocType->getASTContext());
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return witnessType;
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}
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auto *abstract = getAbstract();
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auto conformingType = abstract->getType();
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ASSERT(abstract->getProtocol() == assocType->getProtocol());
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if (auto *archetypeType = conformingType->getAs<ArchetypeType>())
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return archetypeType->getNestedType(assocType);
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return DependentMemberType::get(conformingType, assocType);
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}
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ProtocolConformanceRef
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ProtocolConformanceRef::getAssociatedConformance(Type assocType,
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ProtocolDecl *protocol) const {
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if (isInvalid())
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return *this;
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// If this is a pack conformance, project the associated conformances from
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// each pack element.
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if (isPack()) {
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auto *pack = getPack();
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return ProtocolConformanceRef(
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pack->getAssociatedConformance(assocType, protocol));
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}
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// If this is a concrete conformance, project the associated conformance.
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if (isConcrete()) {
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return getConcrete()->getAssociatedConformance(assocType, protocol);
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}
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auto conformingType = getType();
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auto computeSubjectType = [&](Type conformingType) -> Type {
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return assocType.transformRec(
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[&](TypeBase *t) -> std::optional<Type> {
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if (isa<GenericTypeParamType>(t))
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return conformingType;
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return std::nullopt;
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});
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};
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// An associated conformance of an archetype might be known to be
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// a concrete conformance, if the subject type is fixed to a concrete
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// type in the archetype's generic signature. We don't actually have
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// any way to recover the conformance in this case, except via global
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// conformance lookup.
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//
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// However, if we move to a first-class representation of abstract
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// conformances where they store their subject types, we can also
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// cache the lookups inside the abstract conformance instance too.
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if (auto archetypeType = conformingType->getAs<ArchetypeType>()) {
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auto *genericEnv = archetypeType->getGenericEnvironment();
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auto subjectType = computeSubjectType(archetypeType->getInterfaceType());
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return lookupConformance(
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genericEnv->mapTypeIntoContext(subjectType),
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protocol);
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}
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// Associated conformances of type parameters and type variables
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// are always abstract, because we don't know the output generic
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// signature of the substitution (or in the case of type variables,
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// we have no visibility into constraints). See the parallel hack
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// to handle this in SubstitutionMap::lookupConformance().
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auto subjectType = computeSubjectType(conformingType);
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return ProtocolConformanceRef::forAbstract(subjectType, protocol);
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}
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/// Check of all types used by the conformance are canonical.
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bool ProtocolConformanceRef::isCanonical() const {
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if (isInvalid())
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return true;
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if (isPack())
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return getPack()->isCanonical();
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if (isAbstract())
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return getType()->isCanonical();
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return getConcrete()->isCanonical();
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}
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ProtocolConformanceRef
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ProtocolConformanceRef::getCanonicalConformanceRef() const {
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if (isInvalid())
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return *this;
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if (isPack())
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return ProtocolConformanceRef(getPack()->getCanonicalConformance());
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if (isAbstract())
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return forAbstract(getType()->getCanonicalType(), getProtocol());
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return ProtocolConformanceRef(getConcrete()->getCanonicalConformance());
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}
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bool ProtocolConformanceRef::hasUnavailableConformance() const {
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if (isInvalid() || isAbstract())
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return false;
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if (isPack()) {
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for (auto conformance : getPack()->getPatternConformances()) {
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if (conformance.hasUnavailableConformance())
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return true;
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}
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return false;
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}
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// Check whether this conformance is on an unavailable extension.
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auto concrete = getConcrete();
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auto *dc = concrete->getRootConformance()->getDeclContext();
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auto ext = dyn_cast<ExtensionDecl>(dc);
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if (ext && ext->isUnavailable())
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return true;
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// Check the conformances in the substitution map.
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auto subMap = concrete->getSubstitutionMap();
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for (auto subConformance : subMap.getConformances()) {
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if (subConformance.hasUnavailableConformance())
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return true;
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}
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return false;
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}
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bool ProtocolConformanceRef::hasMissingConformance() const {
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return forEachMissingConformance(
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[](BuiltinProtocolConformance *builtin) {
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return true;
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});
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}
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bool ProtocolConformanceRef::forEachMissingConformance(
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llvm::function_ref<bool(BuiltinProtocolConformance *missing)> fn) const {
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if (isInvalid() || isAbstract())
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return false;
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if (isPack()) {
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for (auto conformance : getPack()->getPatternConformances()) {
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if (conformance.forEachMissingConformance(fn))
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return true;
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}
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return false;
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}
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// Is this a missing conformance?
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ProtocolConformance *concreteConf = getConcrete();
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RootProtocolConformance *rootConf = concreteConf->getRootConformance();
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if (auto builtinConformance = dyn_cast<BuiltinProtocolConformance>(rootConf)){
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if (builtinConformance->isMissing() && fn(builtinConformance))
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return true;
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}
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// Check conformances that are part of this conformance.
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auto subMap = concreteConf->getSubstitutionMap();
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for (auto conformance : subMap.getConformances()) {
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if (conformance.forEachMissingConformance(fn))
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return true;
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}
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return false;
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}
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bool ProtocolConformanceRef::forEachIsolatedConformance(
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llvm::function_ref<bool(ProtocolConformanceRef)> body
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) const {
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if (isInvalid() || isAbstract())
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return false;
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if (isPack()) {
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auto pack = getPack()->getPatternConformances();
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for (auto conformance : pack) {
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if (conformance.forEachIsolatedConformance(body))
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return true;
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}
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return false;
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}
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// Is this an isolated conformance?
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auto concrete = getConcrete();
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if (auto normal =
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dyn_cast<NormalProtocolConformance>(concrete->getRootConformance())) {
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if (normal->isIsolated()) {
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if (body(*this))
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return true;
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}
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}
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// Check conformances that are part of this conformance.
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auto subMap = concrete->getSubstitutionMap();
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for (auto conformance : subMap.getConformances()) {
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if (conformance.forEachIsolatedConformance(body))
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return true;
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}
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return false;
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}
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void swift::simple_display(llvm::raw_ostream &out, ProtocolConformanceRef conformanceRef) {
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if (conformanceRef.isAbstract()) {
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simple_display(out, conformanceRef.getProtocol());
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} else if (conformanceRef.isConcrete()) {
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simple_display(out, conformanceRef.getConcrete());
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} else if (conformanceRef.isPack()) {
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simple_display(out, conformanceRef.getPack());
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}
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}
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SourceLoc swift::extractNearestSourceLoc(const ProtocolConformanceRef conformanceRef) {
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if (conformanceRef.isAbstract()) {
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return extractNearestSourceLoc(conformanceRef.getProtocol());
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} else if (conformanceRef.isConcrete()) {
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return extractNearestSourceLoc(conformanceRef.getConcrete());
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}
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return SourceLoc();
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}
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