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837 lines
28 KiB
C++
837 lines
28 KiB
C++
//===--- SubstitutionMap.cpp - Type substitution map ----------------------===//
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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 - 2017 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 defines the SubstitutionMap class. A SubstitutionMap packages
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// together a set of replacement types and protocol conformances for
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// specializing generic types.
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//
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// SubstitutionMaps either have type parameters or archetypes as keys,
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// based on whether they were built from a GenericSignature or a
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// GenericEnvironment.
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//
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// To specialize a type, call Type::subst() with the right SubstitutionMap.
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//
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//===----------------------------------------------------------------------===//
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#include "swift/AST/SubstitutionMap.h"
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#include "SubstitutionMapStorage.h"
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#include "swift/AST/ASTContext.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/GenericParamList.h"
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#include "swift/AST/InFlightSubstitution.h"
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#include "swift/AST/LazyResolver.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/Defer.h"
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#include "llvm/Support/Debug.h"
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using namespace swift;
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SubstitutionMap::Storage::Storage(
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GenericSignature genericSig,
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ArrayRef<Type> replacementTypes,
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ArrayRef<ProtocolConformanceRef> conformances)
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: genericSig(genericSig),
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numConformanceRequirements(genericSig->getNumConformanceRequirements())
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{
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assert(replacementTypes.size() == getNumReplacementTypes());
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assert(conformances.size() == numConformanceRequirements);
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std::copy(replacementTypes.begin(), replacementTypes.end(),
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getReplacementTypes().data());
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std::copy(conformances.begin(), conformances.end(),
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getConformances().data());
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populatedAllReplacements = false;
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}
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SubstitutionMap::SubstitutionMap(
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GenericSignature genericSig,
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ArrayRef<Type> replacementTypes,
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ArrayRef<ProtocolConformanceRef> conformances)
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: storage(Storage::get(genericSig, replacementTypes, conformances)) {
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#ifndef NDEBUG
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if (genericSig->getASTContext().LangOpts.VerifyAllSubstitutionMaps)
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verify();
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#endif
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}
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ArrayRef<Type> SubstitutionMap::getReplacementTypesBuffer() const {
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return storage ? storage->getReplacementTypes() : ArrayRef<Type>();
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}
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MutableArrayRef<Type> SubstitutionMap::getReplacementTypesBuffer() {
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return storage ? storage->getReplacementTypes() : MutableArrayRef<Type>();
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}
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MutableArrayRef<ProtocolConformanceRef>
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SubstitutionMap::getConformancesBuffer() {
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return storage ? storage->getConformances()
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: MutableArrayRef<ProtocolConformanceRef>();
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}
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ArrayRef<ProtocolConformanceRef> SubstitutionMap::getConformances() const {
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return storage ? storage->getConformances()
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: ArrayRef<ProtocolConformanceRef>();
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}
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ArrayRef<Type> SubstitutionMap::getReplacementTypes() const {
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if (empty()) return { };
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// Make sure we've filled in all of the replacement types.
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if (!storage->populatedAllReplacements) {
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for (auto gp : getGenericSignature().getGenericParams()) {
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(void)lookupSubstitution(cast<SubstitutableType>(gp->getCanonicalType()));
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}
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storage->populatedAllReplacements = true;
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}
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return getReplacementTypesBuffer();
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}
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ArrayRef<Type> SubstitutionMap::getInnermostReplacementTypes() const {
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if (empty()) return { };
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return getReplacementTypes().take_back(
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getGenericSignature().getInnermostGenericParams().size());
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}
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GenericSignature SubstitutionMap::getGenericSignature() const {
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return storage ? storage->getGenericSignature() : nullptr;
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}
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bool SubstitutionMap::empty() const {
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return getGenericSignature().isNull();
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}
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bool SubstitutionMap::hasAnySubstitutableParams() const {
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auto genericSig = getGenericSignature();
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if (!genericSig) return false;
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return !genericSig->areAllParamsConcrete();
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}
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bool SubstitutionMap::hasArchetypes() const {
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for (Type replacementTy : getReplacementTypesBuffer()) {
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if (replacementTy && replacementTy->hasArchetype())
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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 SubstitutionMap::hasOpenedExistential() const {
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for (Type replacementTy : getReplacementTypesBuffer()) {
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if (replacementTy && replacementTy->hasOpenedExistential())
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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 SubstitutionMap::hasDynamicSelf() const {
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for (Type replacementTy : getReplacementTypesBuffer()) {
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if (replacementTy && replacementTy->hasDynamicSelfType())
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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 SubstitutionMap::isCanonical() const {
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if (empty()) return true;
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if (!getGenericSignature()->isCanonical()) return false;
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for (Type replacementTy : getReplacementTypesBuffer()) {
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if (replacementTy && !replacementTy->isCanonical())
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return false;
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}
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for (auto conf : getConformances()) {
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if (!conf.isCanonical())
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return false;
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}
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return true;
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}
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SubstitutionMap SubstitutionMap::getCanonical(bool canonicalizeSignature) const {
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if (empty()) return *this;
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auto sig = getGenericSignature();
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if (canonicalizeSignature) sig = sig.getCanonicalSignature();
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SmallVector<Type, 4> replacementTypes;
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for (Type replacementType : getReplacementTypesBuffer()) {
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if (replacementType)
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replacementTypes.push_back(replacementType->getCanonicalType());
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else
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replacementTypes.push_back(nullptr);
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}
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SmallVector<ProtocolConformanceRef, 4> conformances;
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for (auto conf : getConformances()) {
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conformances.push_back(conf.getCanonicalConformanceRef());
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}
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return SubstitutionMap::get(sig,
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ArrayRef<Type>(replacementTypes),
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ArrayRef<ProtocolConformanceRef>(conformances));
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}
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SubstitutionMap SubstitutionMap::get(GenericSignature genericSig,
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SubstitutionMap substitutions) {
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if (!genericSig) {
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assert(!substitutions.hasAnySubstitutableParams() &&
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"Shouldn't have substitutions here");
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return SubstitutionMap();
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}
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return SubstitutionMap::get(genericSig,
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[&](SubstitutableType *type) -> Type {
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return substitutions.lookupSubstitution(
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CanSubstitutableType(type));
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},
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LookUpConformanceInSubstitutionMap(substitutions));
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}
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/// Build an interface type substitution map for the given generic signature
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/// from a type substitution function and conformance lookup function.
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SubstitutionMap SubstitutionMap::get(GenericSignature genericSig,
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TypeSubstitutionFn subs,
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LookupConformanceFn lookupConformance) {
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InFlightSubstitution IFS(subs, lookupConformance, None);
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return get(genericSig, IFS);
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}
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SubstitutionMap SubstitutionMap::get(GenericSignature genericSig,
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InFlightSubstitution &IFS) {
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if (!genericSig) {
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return SubstitutionMap();
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}
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// Form the replacement types.
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SmallVector<Type, 4> replacementTypes;
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replacementTypes.reserve(genericSig.getGenericParams().size());
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genericSig->forEachParam([&](GenericTypeParamType *gp, bool canonical) {
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// Don't eagerly form replacements for non-canonical generic parameters.
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if (!canonical) {
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replacementTypes.push_back(Type());
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return;
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}
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// Record the replacement.
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Type replacement = Type(gp).subst(IFS);
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assert((!replacement || replacement->hasError() ||
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gp->isParameterPack() == replacement->is<PackType>()) &&
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"replacement for pack parameter must be a pack type");
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replacementTypes.push_back(replacement);
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});
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// Form the stored conformances.
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SmallVector<ProtocolConformanceRef, 4> conformances;
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for (const auto &req : genericSig.getRequirements()) {
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if (req.getKind() != RequirementKind::Conformance) continue;
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CanType depTy = req.getFirstType()->getCanonicalType();
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auto replacement = depTy.subst(IFS);
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auto *proto = req.getProtocolDecl();
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auto conformance = IFS.lookupConformance(depTy, replacement, proto);
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conformances.push_back(conformance);
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}
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return SubstitutionMap(genericSig, replacementTypes, conformances);
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}
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Type SubstitutionMap::lookupSubstitution(CanSubstitutableType type) const {
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if (empty())
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return Type();
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// If we have an archetype, map out of the context so we can compute a
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// conformance access path.
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if (auto archetype = dyn_cast<ArchetypeType>(type)) {
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// Only consider root archetypes.
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if (!archetype->isRoot())
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return Type();
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if (!isa<PrimaryArchetypeType>(archetype) &&
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!isa<PackArchetypeType>(archetype))
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return Type();
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type = cast<GenericTypeParamType>(
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archetype->getInterfaceType()->getCanonicalType());
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}
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// Find the index of the replacement type based on the generic parameter we
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// have.
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auto genericParam = cast<GenericTypeParamType>(type);
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auto mutableThis = const_cast<SubstitutionMap *>(this);
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auto replacementTypes = mutableThis->getReplacementTypesBuffer();
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auto genericSig = getGenericSignature();
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assert(genericSig);
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auto genericParams = genericSig.getGenericParams();
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auto replacementIndex =
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GenericParamKey(genericParam).findIndexIn(genericParams);
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// If this generic parameter isn't represented, we don't have a replacement
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// type for it.
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if (replacementIndex == genericParams.size())
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return Type();
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// If we already have a replacement type, return it.
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Type &replacementType = replacementTypes[replacementIndex];
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if (replacementType)
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return replacementType;
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// The generic parameter may have been made concrete by the generic signature,
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// substitute into the concrete type.
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if (auto concreteType = genericSig->getConcreteType(genericParam)) {
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// Set the replacement type to an error, to block infinite recursion.
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replacementType = ErrorType::get(concreteType);
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// Substitute into the replacement type.
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replacementType = concreteType.subst(*this);
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// If the generic signature is canonical, canonicalize the replacement type.
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if (getGenericSignature()->isCanonical())
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replacementType = replacementType->getCanonicalType();
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return replacementType;
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}
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// The generic parameter may not be reduced. Retrieve the reduced
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// type, which will be dependent.
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CanType canonicalType = genericSig.getReducedType(genericParam);
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// If nothing changed, we don't have a replacement.
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if (canonicalType == type) return Type();
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// If we're left with a substitutable type, substitute into that.
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// First, set the replacement type to an error, to block infinite recursion.
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replacementType = ErrorType::get(type);
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replacementType = lookupSubstitution(cast<SubstitutableType>(canonicalType));
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// If the generic signature is canonical, canonicalize the replacement type.
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if (getGenericSignature()->isCanonical())
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replacementType = replacementType->getCanonicalType();
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return replacementType;
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}
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ProtocolConformanceRef
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SubstitutionMap::lookupConformance(CanType type, ProtocolDecl *proto) const {
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if (empty())
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return ProtocolConformanceRef::forInvalid();
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// If we have an archetype, map out of the context so we can compute a
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// conformance access path.
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if (auto archetype = dyn_cast<ArchetypeType>(type)) {
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if (!isa<OpaqueTypeArchetypeType>(archetype)) {
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type = archetype->getInterfaceType()->getCanonicalType();
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}
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}
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// Error path: if we don't have a type parameter, there is no conformance.
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// FIXME: Query concrete conformances in the generic signature?
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if (!type->isTypeParameter())
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return ProtocolConformanceRef::forInvalid();
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auto genericSig = getGenericSignature();
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auto getSignatureConformance =
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[&](Type type, ProtocolDecl *proto) -> Optional<ProtocolConformanceRef> {
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unsigned index = 0;
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for (auto reqt : genericSig.getRequirements()) {
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if (reqt.getKind() == RequirementKind::Conformance) {
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if (reqt.getFirstType()->isEqual(type) &&
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reqt.getProtocolDecl() == proto)
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return getConformances()[index];
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++index;
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}
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}
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return None;
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};
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// Fast path -- check if the generic signature directly states the
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// conformance.
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if (auto directConformance = getSignatureConformance(type, proto))
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return *directConformance;
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// If the type doesn't conform to this protocol, the result isn't formed
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// from these requirements.
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if (!genericSig->requiresProtocol(type, proto)) {
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Type substType = type.subst(*this);
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return ProtocolConformanceRef::forMissingOrInvalid(substType, proto);
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}
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auto path = genericSig->getConformancePath(type, proto);
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ProtocolConformanceRef conformance;
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for (const auto &step : path) {
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// For the first step, grab the initial conformance.
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if (conformance.isInvalid()) {
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if (auto initialConformance = getSignatureConformance(
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step.first, step.second)) {
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conformance = *initialConformance;
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continue;
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}
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// We couldn't find the initial conformance, fail.
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return ProtocolConformanceRef::forInvalid();
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}
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// If we've hit an abstract conformance, everything from here on out is
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// abstract.
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// FIXME: This may not always be true, but it holds for now.
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if (conformance.isAbstract()) {
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// FIXME: Rip this out once we can get a concrete conformance from
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// an archetype.
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auto substType = type.subst(*this);
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if (substType->hasError())
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return ProtocolConformanceRef(proto);
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if ((!substType->is<ArchetypeType>() ||
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substType->castTo<ArchetypeType>()->getSuperclass()) &&
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!substType->isTypeParameter() &&
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!substType->isExistentialType()) {
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auto *M = proto->getParentModule();
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return M->lookupConformance(substType, proto);
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}
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return ProtocolConformanceRef(proto);
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}
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// For the second step, we're looking into the requirement signature for
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// this protocol.
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auto concrete = conformance.getConcrete();
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auto normal = concrete->getRootNormalConformance();
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// If we haven't set the signature conformances yet, force the issue now.
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if (normal->getSignatureConformances().empty()) {
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// If we're in the process of checking the type witnesses, fail
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// gracefully.
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// FIXME: Seems like we should be able to get at the intermediate state
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// to use that.
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if (normal->getState() == ProtocolConformanceState::CheckingTypeWitnesses)
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return ProtocolConformanceRef::forInvalid();
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}
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// Get the associated conformance.
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conformance = concrete->getAssociatedConformance(step.first, step.second);
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if (conformance.isInvalid())
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return conformance;
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}
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return conformance;
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}
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SubstitutionMap SubstitutionMap::mapReplacementTypesOutOfContext() const {
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return subst(MapTypeOutOfContext(), MakeAbstractConformanceForGenericType());
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}
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SubstitutionMap SubstitutionMap::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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SubstitutionMap SubstitutionMap::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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SubstitutionMap SubstitutionMap::subst(InFlightSubstitution &IFS) const {
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if (empty()) return SubstitutionMap();
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SmallVector<Type, 4> newSubs;
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for (Type type : getReplacementTypesBuffer()) {
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if (!type) {
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// Non-canonical parameter.
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newSubs.push_back(Type());
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continue;
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}
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newSubs.push_back(type.subst(IFS));
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assert(type->is<PackType>() == newSubs.back()->is<PackType>() &&
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"substitution changed the pack-ness of a replacement type");
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}
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SmallVector<ProtocolConformanceRef, 4> newConformances;
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auto oldConformances = getConformances();
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auto genericSig = getGenericSignature();
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for (const auto &req : genericSig.getRequirements()) {
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if (req.getKind() != RequirementKind::Conformance) continue;
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auto conformance = oldConformances[0];
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// Fast path for concrete case -- we don't need to compute substType
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// at all.
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if (conformance.isConcrete() &&
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!IFS.shouldSubstituteOpaqueArchetypes()) {
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newConformances.push_back(
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ProtocolConformanceRef(conformance.getConcrete()->subst(IFS)));
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} else {
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auto origType = req.getFirstType();
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auto substType = origType.subst(*this, IFS.getOptions());
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newConformances.push_back(conformance.subst(substType, IFS));
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}
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oldConformances = oldConformances.slice(1);
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}
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assert(oldConformances.empty());
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return SubstitutionMap(genericSig, newSubs, newConformances);
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}
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SubstitutionMap
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SubstitutionMap::getProtocolSubstitutions(ProtocolDecl *protocol,
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Type selfType,
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ProtocolConformanceRef conformance) {
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return get(protocol->getGenericSignature(),
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llvm::makeArrayRef<Type>(selfType),
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llvm::makeArrayRef<ProtocolConformanceRef>(conformance));
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}
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SubstitutionMap
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SubstitutionMap::getOverrideSubstitutions(
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const ValueDecl *baseDecl,
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const ValueDecl *derivedDecl) {
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// For overrides within a protocol hierarchy, substitute the Self type.
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if (auto baseProto = baseDecl->getDeclContext()->getSelfProtocolDecl()) {
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auto baseSig = baseDecl->getInnermostDeclContext()
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->getGenericSignatureOfContext();
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return baseSig->getIdentitySubstitutionMap();
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}
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auto *baseClass = baseDecl->getDeclContext()->getSelfClassDecl();
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auto *derivedClass = derivedDecl->getDeclContext()->getSelfClassDecl();
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auto baseSig = baseDecl->getInnermostDeclContext()
|
|
->getGenericSignatureOfContext();
|
|
|
|
// If more kinds of overridable decls with generic parameter lists appear,
|
|
// add them here.
|
|
GenericParamList *derivedParams = nullptr;
|
|
if (auto *funcDecl = dyn_cast<AbstractFunctionDecl>(derivedDecl))
|
|
derivedParams = funcDecl->getGenericParams();
|
|
else if (auto *subscriptDecl = dyn_cast<SubscriptDecl>(derivedDecl))
|
|
derivedParams = subscriptDecl->getGenericParams();
|
|
|
|
return getOverrideSubstitutions(baseClass, derivedClass, baseSig, derivedParams);
|
|
}
|
|
|
|
OverrideSubsInfo::OverrideSubsInfo(const NominalTypeDecl *baseNominal,
|
|
const NominalTypeDecl *derivedNominal,
|
|
GenericSignature baseSig,
|
|
const GenericParamList *derivedParams)
|
|
: Ctx(baseSig->getASTContext()),
|
|
BaseDepth(0),
|
|
OrigDepth(0),
|
|
DerivedParams(derivedParams) {
|
|
|
|
if (auto baseNominalSig = baseNominal->getGenericSignature()) {
|
|
BaseDepth = baseNominalSig.getGenericParams().back()->getDepth() + 1;
|
|
|
|
auto *genericEnv = derivedNominal->getGenericEnvironment();
|
|
auto derivedNominalTy = derivedNominal->getDeclaredInterfaceType();
|
|
|
|
// FIXME: Map in and out of context to get more accurate
|
|
// conformance information. If the base generic signature
|
|
// is <T: P> and the derived generic signature is <T: C>
|
|
// where C is a class that conforms to P, then we want the
|
|
// substitution map to store the concrete conformance C: P
|
|
// and not the abstract conformance T: P.
|
|
if (genericEnv) {
|
|
derivedNominalTy = genericEnv->mapTypeIntoContext(
|
|
derivedNominalTy);
|
|
}
|
|
|
|
BaseSubMap = derivedNominalTy->getContextSubstitutionMap(
|
|
baseNominal->getParentModule(), baseNominal,
|
|
genericEnv);
|
|
|
|
BaseSubMap = BaseSubMap.mapReplacementTypesOutOfContext();
|
|
}
|
|
|
|
if (auto derivedNominalSig = derivedNominal->getGenericSignature())
|
|
OrigDepth = derivedNominalSig.getGenericParams().back()->getDepth() + 1;
|
|
}
|
|
|
|
Type QueryOverrideSubs::operator()(SubstitutableType *type) const {
|
|
if (auto gp = type->getAs<GenericTypeParamType>()) {
|
|
if (gp->getDepth() >= info.BaseDepth) {
|
|
assert(gp->getDepth() == info.BaseDepth);
|
|
if (info.DerivedParams != nullptr) {
|
|
return info.DerivedParams->getParams()[gp->getIndex()]
|
|
->getDeclaredInterfaceType();
|
|
}
|
|
|
|
return GenericTypeParamType::get(
|
|
gp->isParameterPack(),
|
|
gp->getDepth() + info.OrigDepth - info.BaseDepth,
|
|
gp->getIndex(), info.Ctx);
|
|
}
|
|
}
|
|
|
|
return Type(type).subst(info.BaseSubMap);
|
|
}
|
|
|
|
ProtocolConformanceRef
|
|
LookUpConformanceInOverrideSubs::operator()(CanType type,
|
|
Type substType,
|
|
ProtocolDecl *proto) const {
|
|
if (type->getRootGenericParam()->getDepth() >= info.BaseDepth)
|
|
return ProtocolConformanceRef(proto);
|
|
|
|
if (auto conformance = info.BaseSubMap.lookupConformance(type, proto))
|
|
return conformance;
|
|
|
|
if (substType->isTypeParameter())
|
|
return ProtocolConformanceRef(proto);
|
|
|
|
return proto->getParentModule()->lookupConformance(substType, proto);
|
|
}
|
|
|
|
SubstitutionMap
|
|
SubstitutionMap::getOverrideSubstitutions(const NominalTypeDecl *baseNominal,
|
|
const NominalTypeDecl *derivedNominal,
|
|
GenericSignature baseSig,
|
|
const GenericParamList *derivedParams) {
|
|
if (baseSig.isNull())
|
|
return SubstitutionMap();
|
|
|
|
OverrideSubsInfo info(baseNominal, derivedNominal, baseSig, derivedParams);
|
|
|
|
return get(baseSig,
|
|
QueryOverrideSubs(info),
|
|
LookUpConformanceInOverrideSubs(info));
|
|
}
|
|
|
|
SubstitutionMap
|
|
SubstitutionMap::combineSubstitutionMaps(SubstitutionMap firstSubMap,
|
|
SubstitutionMap secondSubMap,
|
|
CombineSubstitutionMaps how,
|
|
unsigned firstDepthOrIndex,
|
|
unsigned secondDepthOrIndex,
|
|
GenericSignature genericSig) {
|
|
auto &ctx = genericSig->getASTContext();
|
|
|
|
auto replaceGenericParameter = [&](Type type) -> Type {
|
|
if (auto gp = type->getAs<GenericTypeParamType>()) {
|
|
if (how == CombineSubstitutionMaps::AtDepth) {
|
|
if (gp->getDepth() < firstDepthOrIndex)
|
|
return Type();
|
|
return GenericTypeParamType::get(gp->isParameterPack(),
|
|
gp->getDepth() + secondDepthOrIndex -
|
|
firstDepthOrIndex,
|
|
gp->getIndex(), ctx);
|
|
}
|
|
|
|
assert(how == CombineSubstitutionMaps::AtIndex);
|
|
if (gp->getIndex() < firstDepthOrIndex)
|
|
return Type();
|
|
return GenericTypeParamType::get(
|
|
gp->isParameterPack(), gp->getDepth(),
|
|
gp->getIndex() + secondDepthOrIndex - firstDepthOrIndex, ctx);
|
|
}
|
|
|
|
return type;
|
|
};
|
|
|
|
return get(
|
|
genericSig,
|
|
[&](SubstitutableType *type) {
|
|
if (auto replacement = replaceGenericParameter(type))
|
|
return Type(replacement).subst(secondSubMap);
|
|
return Type(type).subst(firstSubMap);
|
|
},
|
|
[&](CanType type, Type substType, ProtocolDecl *proto) {
|
|
if (auto replacement = type.transform(replaceGenericParameter))
|
|
return secondSubMap.lookupConformance(replacement->getCanonicalType(),
|
|
proto);
|
|
if (auto conformance = firstSubMap.lookupConformance(type, proto))
|
|
return conformance;
|
|
|
|
// We might not have enough information in the substitution maps alone.
|
|
//
|
|
// Eg,
|
|
//
|
|
// class Base<T1> {
|
|
// func foo<U1>(_: U1) where T1 : P {}
|
|
// }
|
|
//
|
|
// class Derived<T2> : Base<Foo<T2>> {
|
|
// override func foo<U2>(_: U2) where T2 : Q {}
|
|
// }
|
|
//
|
|
// Suppose we're devirtualizing a call to Base.foo() on a value whose
|
|
// type is known to be Derived<Bar>. We start with substitutions written
|
|
// in terms of Base.foo()'s generic signature:
|
|
//
|
|
// <T1, U1 where T1 : P>
|
|
// T1 := Foo<Bar>
|
|
// T1 : P := Foo<Bar> : P
|
|
//
|
|
// We want to build substitutions in terms of Derived.foo()'s
|
|
// generic signature:
|
|
//
|
|
// <T2, U2 where T2 : Q>
|
|
// T2 := Bar
|
|
// T2 : Q := Bar : Q
|
|
//
|
|
// The conformance Bar : Q is difficult to recover in the general case.
|
|
//
|
|
// Some combination of storing substitution maps in BoundGenericTypes
|
|
// as well as for method overrides would solve this, but for now, just
|
|
// punt to module lookup.
|
|
if (substType->isTypeParameter())
|
|
return ProtocolConformanceRef(proto);
|
|
|
|
return proto->getParentModule()->lookupConformance(substType, proto);
|
|
});
|
|
}
|
|
|
|
void SubstitutionMap::verify() const {
|
|
#ifndef NDEBUG
|
|
if (empty())
|
|
return;
|
|
|
|
unsigned conformanceIndex = 0;
|
|
|
|
for (const auto &req : getGenericSignature().getRequirements()) {
|
|
if (req.getKind() != RequirementKind::Conformance)
|
|
continue;
|
|
|
|
SWIFT_DEFER { ++conformanceIndex; };
|
|
auto substType = req.getFirstType().subst(*this);
|
|
if (substType->isTypeParameter() ||
|
|
substType->is<ArchetypeType>() ||
|
|
substType->isTypeVariableOrMember() ||
|
|
substType->is<UnresolvedType>() ||
|
|
substType->hasError())
|
|
continue;
|
|
|
|
auto conformance = getConformances()[conformanceIndex];
|
|
|
|
if (conformance.isInvalid())
|
|
continue;
|
|
|
|
// All of the conformances should be concrete.
|
|
if (!conformance.isConcrete()) {
|
|
llvm::dbgs() << "Concrete type cannot have abstract conformance:\n";
|
|
substType->dump(llvm::dbgs());
|
|
llvm::dbgs() << "SubstitutionMap:\n";
|
|
dump(llvm::dbgs());
|
|
llvm::dbgs() << "\n";
|
|
llvm::dbgs() << "Requirement:\n";
|
|
req.dump(llvm::dbgs());
|
|
llvm::dbgs() << "\n";
|
|
}
|
|
assert(conformance.isConcrete() && "Conformance should be concrete");
|
|
|
|
if (substType->is<UnboundGenericType>())
|
|
continue;
|
|
|
|
auto conformanceTy = conformance.getConcrete()->getType();
|
|
if (conformanceTy->hasTypeParameter()
|
|
&& !substType->hasTypeParameter()) {
|
|
conformanceTy = conformance.getConcrete()->getDeclContext()
|
|
->mapTypeIntoContext(conformanceTy);
|
|
}
|
|
|
|
if (!substType->isEqual(conformanceTy)) {
|
|
llvm::dbgs() << "Conformance must match concrete replacement type:\n";
|
|
substType->dump(llvm::dbgs());
|
|
llvm::dbgs() << "Conformance type:\n";
|
|
conformance.getConcrete()->getType()->dump(llvm::dbgs());
|
|
llvm::dbgs() << "Conformance:\n";
|
|
conformance.dump(llvm::dbgs());
|
|
llvm::dbgs() << "\n";
|
|
llvm::dbgs() << "SubstitutionMap:\n";
|
|
dump(llvm::dbgs());
|
|
llvm::dbgs() << "\n";
|
|
llvm::dbgs() << "Requirement:\n";
|
|
req.dump(llvm::dbgs());
|
|
llvm::dbgs() << "\n";
|
|
}
|
|
assert(substType->isEqual(conformanceTy)
|
|
&& "conformance should match corresponding type");
|
|
|
|
if (substType->isExistentialType()) {
|
|
assert(isa<SelfProtocolConformance>(conformance.getConcrete()) &&
|
|
"Existential type cannot have normal conformance");
|
|
}
|
|
}
|
|
#endif
|
|
}
|
|
|
|
void SubstitutionMap::profile(llvm::FoldingSetNodeID &id) const {
|
|
id.AddPointer(storage);
|
|
}
|
|
|
|
bool SubstitutionMap::isIdentity() const {
|
|
if (empty())
|
|
return true;
|
|
|
|
for (auto conf : getConformances()) {
|
|
if (conf.isAbstract())
|
|
continue;
|
|
|
|
if (conf.isPack()) {
|
|
auto patternConfs = conf.getPack()->getPatternConformances();
|
|
if (patternConfs.size() == 1 && patternConfs[0].isAbstract())
|
|
continue;
|
|
}
|
|
|
|
return false;
|
|
}
|
|
|
|
GenericSignature sig = getGenericSignature();
|
|
bool hasNonIdentityReplacement = false;
|
|
auto replacements = getReplacementTypesBuffer();
|
|
|
|
sig->forEachParam([&](GenericTypeParamType *paramTy, bool isCanonical) {
|
|
if (isCanonical) {
|
|
Type wrappedParamTy = paramTy;
|
|
if (paramTy->isParameterPack())
|
|
wrappedParamTy = PackType::getSingletonPackExpansion(paramTy);
|
|
if (!wrappedParamTy->isEqual(replacements[0]))
|
|
hasNonIdentityReplacement = true;
|
|
}
|
|
|
|
replacements = replacements.slice(1);
|
|
});
|
|
|
|
assert(replacements.empty());
|
|
|
|
return !hasNonIdentityReplacement;
|
|
}
|
|
|
|
SubstitutionMap SubstitutionMap::mapIntoTypeExpansionContext(
|
|
TypeExpansionContext context) const {
|
|
ReplaceOpaqueTypesWithUnderlyingTypes replacer(
|
|
context.getContext(), context.getResilienceExpansion(),
|
|
context.isWholeModuleContext());
|
|
return this->subst(replacer, replacer, SubstFlags::SubstituteOpaqueArchetypes);
|
|
}
|