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161 lines
5.6 KiB
C++
161 lines
5.6 KiB
C++
//===--- PropertyRelations.cpp - Relations between property rules ---------===//
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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) 2021 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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// Utility functions used during property map construction to record rewrite
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// loops that describe certain special identities between rewrite rules that
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// are discovered by the property map.
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//
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// For example, a superclass requirement implies an AnyObject layout
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// requirement in the Swift language; if both are specified in some set of
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// user-written requirements, the latter requirement is redundant and should
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// be dropped from the minimal generic signature.
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//
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// This is described by recording a rewrite loop connecting the superclass rule
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// and the AnyObject layout rule via a special rewrite step known as a
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// "relation".
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//
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//===----------------------------------------------------------------------===//
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#include "swift/AST/Type.h"
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#include "swift/Basic/Assertions.h"
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#include "llvm/Support/raw_ostream.h"
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#include <algorithm>
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#include "RewriteSystem.h"
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using namespace swift;
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using namespace rewriting;
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RewriteSystem::Relation
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RewriteSystem::getRelation(unsigned index) const {
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return Relations[index];
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}
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/// Record a relation that transforms the left hand side when it appears
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/// at the end of a term to the right hand side. Returns the relation ID,
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/// which can be passed to RewriteStep::forRelation().
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unsigned RewriteSystem::recordRelation(Term lhs, Term rhs) {
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auto key = std::make_pair(lhs, rhs);
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auto found = RelationMap.find(key);
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if (found != RelationMap.end())
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return found->second;
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unsigned index = Relations.size();
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Relations.push_back(key);
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auto inserted = RelationMap.insert(std::make_pair(key, index));
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DEBUG_ASSERT(inserted.second);
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return index;
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}
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/// Given a left-hand side symbol [p1] and a right-hand side symbol
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/// [p2], record a relation ([p1].[p2] => [p1]), which denotes that
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/// the property p1 implies the property p2.
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///
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/// An example is a superclass requirement that implies a layout
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/// requirement.
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unsigned RewriteSystem::recordRelation(Symbol lhsProperty,
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Symbol rhsProperty) {
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DEBUG_ASSERT(lhsProperty.isProperty());
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DEBUG_ASSERT(rhsProperty.isProperty());
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MutableTerm lhsTerm;
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lhsTerm.add(lhsProperty);
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lhsTerm.add(rhsProperty);
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MutableTerm rhsTerm;
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rhsTerm.add(lhsProperty);
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// Record a relation ([p1].[p2] => [p1]).
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return recordRelation(
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Term::get(lhsTerm, Context),
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Term::get(rhsTerm, Context));
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}
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/// Record a relation ([concrete: C].[P] => [concrete: C].[concrete: C : P])
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/// or ([superclass: C].[P] => [superclass: C].[concrete: C : P]) which combines
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/// a concrete type symbol (or a superclass symbol) with a protocol
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/// symbol to form a single a concrete conformance symbol.
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unsigned RewriteSystem::recordConcreteConformanceRelation(
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Symbol concreteSymbol, Symbol protocolSymbol,
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Symbol concreteConformanceSymbol) {
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ASSERT(protocolSymbol.getKind() == Symbol::Kind::Protocol);
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ASSERT(protocolSymbol.getProtocol() ==
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concreteConformanceSymbol.getProtocol());
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ASSERT(concreteSymbol.getKind() == Symbol::Kind::Superclass ||
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concreteSymbol.getKind() == Symbol::Kind::ConcreteType);
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MutableTerm lhsTerm;
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lhsTerm.add(concreteSymbol);
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lhsTerm.add(protocolSymbol);
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MutableTerm rhsTerm;
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rhsTerm.add(concreteSymbol);
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rhsTerm.add(concreteConformanceSymbol);
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return recordRelation(
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Term::get(lhsTerm, Context),
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Term::get(rhsTerm, Context));
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}
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/// Record a relation ([concrete: C : P].[P:X].[concrete: C.X] =>
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/// [concrete: C : P].[P:X]) which "concretizes" a nested type C.X of a
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/// type parameter conforming to P known to equal the concrete type C.
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unsigned RewriteSystem::recordConcreteTypeWitnessRelation(
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Symbol concreteConformanceSymbol,
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Symbol associatedTypeSymbol,
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Symbol typeWitnessSymbol) {
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ASSERT(concreteConformanceSymbol.getKind() ==
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Symbol::Kind::ConcreteConformance);
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ASSERT(associatedTypeSymbol.getKind() ==
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Symbol::Kind::AssociatedType);
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ASSERT(concreteConformanceSymbol.getProtocol() ==
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associatedTypeSymbol.getProtocol());
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ASSERT(typeWitnessSymbol.getKind() == Symbol::Kind::ConcreteType);
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MutableTerm rhsTerm;
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rhsTerm.add(concreteConformanceSymbol);
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rhsTerm.add(associatedTypeSymbol);
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MutableTerm lhsTerm(rhsTerm);
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lhsTerm.add(typeWitnessSymbol);
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return recordRelation(
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Term::get(lhsTerm, Context),
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Term::get(rhsTerm, Context));
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}
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/// Record a relation ([concrete: C : P].[P:X].[concrete: C] =>
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/// [concrete: C : P].[P:X]) which "ties off" a nested type C.X that is
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/// equivalent to C.
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unsigned RewriteSystem::recordSameTypeWitnessRelation(
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Symbol concreteConformanceSymbol,
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Symbol associatedTypeSymbol) {
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ASSERT(concreteConformanceSymbol.getKind() ==
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Symbol::Kind::ConcreteConformance);
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ASSERT(associatedTypeSymbol.getKind() ==
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Symbol::Kind::AssociatedType);
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MutableTerm rhsTerm;
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rhsTerm.add(concreteConformanceSymbol);
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auto concreteSymbol = Symbol::forConcreteType(
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concreteConformanceSymbol.getConcreteType(),
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concreteConformanceSymbol.getSubstitutions(),
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Context);
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MutableTerm lhsTerm(rhsTerm);
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lhsTerm.add(associatedTypeSymbol);
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lhsTerm.add(concreteSymbol);
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return recordRelation(
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Term::get(lhsTerm, Context),
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Term::get(rhsTerm, Context));
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}
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