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Test shadowed variable of same type Fully type check caller side macro expansion Skip macro default arg caller side expr at decl primary Test macro expand more complex expressions Set synthesized expression as implicit Add test case for with argument, not compiling currently Test with swiftinterface Always use the string representation of the default argument Now works across module boundary Check works for multiple files Make default argument expression work in single file Use expected-error Disallow expression macro as default argument Using as a sub expression in default argument still allowed as expression macros behave the same as built-in magic literals
984 lines
37 KiB
C++
984 lines
37 KiB
C++
//===--- CodeSynthesisDistributedActor.cpp --------------------------------===//
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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 - 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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#include "TypeCheckDistributed.h"
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#include "TypeChecker.h"
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#include "TypeCheckType.h"
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#include "swift/AST/ASTPrinter.h"
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#include "swift/AST/Availability.h"
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#include "swift/AST/Expr.h"
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#include "swift/AST/GenericEnvironment.h"
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#include "swift/AST/Initializer.h"
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#include "swift/AST/ParameterList.h"
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#include "swift/AST/TypeCheckRequests.h"
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#include "swift/AST/NameLookupRequests.h"
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#include "swift/AST/ASTMangler.h"
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#include "swift/AST/DistributedDecl.h"
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#include "swift/Basic/Defer.h"
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#include "swift/ClangImporter/ClangModule.h"
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#include "swift/Sema/ConstraintSystem.h"
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#include "llvm/ADT/SmallString.h"
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#include "llvm/ADT/StringExtras.h"
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#include "DerivedConformances.h"
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using namespace swift;
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/******************************************************************************/
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/************************ PROPERTY SYNTHESIS **********************************/
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/******************************************************************************/
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static VarDecl*
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lookupDistributedActorProperty(NominalTypeDecl *decl, DeclName name) {
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assert(decl && "decl was null");
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auto &C = decl->getASTContext();
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auto clazz = dyn_cast<ClassDecl>(decl);
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if (!clazz)
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return nullptr;
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auto refs = decl->lookupDirect(name);
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if (refs.size() != 1)
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return nullptr;
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auto var = dyn_cast<VarDecl>(refs.front());
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if (!var)
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return nullptr;
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Type expectedType = Type();
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if (name == C.Id_id) {
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expectedType = getDistributedActorIDType(decl);
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} else if (name == C.Id_actorSystem) {
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expectedType = getDistributedActorSystemType(decl);
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} else {
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llvm_unreachable("Unexpected distributed actor property lookup!");
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}
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if (!expectedType)
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return nullptr;
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if (!var->getInterfaceType()->isEqual(expectedType))
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return nullptr;
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return var;
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}
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// Note: This would be nice to implement in DerivedConformanceDistributedActor,
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// but we can't since those are lazily triggered and an implementation exists
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// for the 'id' property because 'Identifiable.id' has an extension that impls
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// it for ObjectIdentifier, and we have to instead emit this stored property.
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//
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// The "derived" mechanisms are not really geared towards emitting for
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// what already has a witness.
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static VarDecl *addImplicitDistributedActorIDProperty(
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ClassDecl *nominal) {
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if (!nominal)
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return nullptr;
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if (!nominal->isDistributedActor())
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return nullptr;
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auto &C = nominal->getASTContext();
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// ==== Synthesize and add 'id' property to the actor decl
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Type propertyType = getDistributedActorIDType(nominal);
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auto *propDecl = new (C)
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VarDecl(/*IsStatic*/false, VarDecl::Introducer::Let,
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SourceLoc(), C.Id_id, nominal);
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propDecl->setImplicit();
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propDecl->setSynthesized();
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propDecl->copyFormalAccessFrom(nominal, /*sourceIsParentContext*/ true);
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propDecl->setInterfaceType(propertyType);
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Pattern *propPat = NamedPattern::createImplicit(C, propDecl, propertyType);
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propPat = TypedPattern::createImplicit(C, propPat, propertyType);
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propPat->setType(propertyType);
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PatternBindingDecl *pbDecl = PatternBindingDecl::createImplicit(
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C, StaticSpellingKind::None, propPat, /*InitExpr*/ nullptr,
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nominal);
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// mark as nonisolated, allowing access to it from everywhere
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propDecl->getAttrs().add(
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new (C) NonisolatedAttr(/*unsafe=*/false, /*implicit=*/true));
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// mark as @_compilerInitialized, since we synthesize the initializing
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// assignment during SILGen.
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propDecl->getAttrs().add(
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new (C) CompilerInitializedAttr(/*IsImplicit=*/true));
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// IMPORTANT: The `id` MUST be the first field of any distributed actor,
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// because when we allocate remote proxy instances, we don't allocate memory
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// for anything except the first two fields: id and actorSystem, so they
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// MUST be those fields.
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//
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// Their specific order also matters, because it is enforced this way in IRGen
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// and how we emit them in AST MUST match what IRGen expects or cross-module
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// things could be using wrong offsets and manifest as reading trash memory on
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// id or system accesses.
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nominal->addMember(propDecl, /*hint=*/nullptr, /*insertAtHead=*/true);
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nominal->addMember(pbDecl, /*hint=*/nullptr, /*insertAtHead=*/true);
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return propDecl;
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}
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static VarDecl *addImplicitDistributedActorActorSystemProperty(
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ClassDecl *nominal) {
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if (!nominal)
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return nullptr;
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if (!nominal->isDistributedActor())
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return nullptr;
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auto &C = nominal->getASTContext();
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// ==== Synthesize and add 'actorSystem' property to the actor decl
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Type propertyType = getDistributedActorSystemType(nominal);
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auto *propDecl = new (C)
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VarDecl(/*IsStatic*/false, VarDecl::Introducer::Let,
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SourceLoc(), C.Id_actorSystem, nominal);
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propDecl->setImplicit();
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propDecl->setSynthesized();
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propDecl->copyFormalAccessFrom(nominal, /*sourceIsParentContext*/ true);
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propDecl->setInterfaceType(propertyType);
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Pattern *propPat = NamedPattern::createImplicit(C, propDecl, propertyType);
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propPat = TypedPattern::createImplicit(C, propPat, propertyType);
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propPat->setType(propertyType);
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PatternBindingDecl *pbDecl = PatternBindingDecl::createImplicit(
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C, StaticSpellingKind::None, propPat, /*InitExpr*/ nullptr,
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nominal);
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// mark as nonisolated, allowing access to it from everywhere
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propDecl->getAttrs().add(
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new (C) NonisolatedAttr(/*unsafe=*/false, /*implicit=*/true));
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auto idProperty = nominal->getDistributedActorIDProperty();
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// If the id was not yet synthesized, we need to ensure that eventually
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// the order of fields will be: id, actorSystem (because IRGen needs the
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// layouts to match with the AST we produce). We do this by inserting FIRST,
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// and then as the ID gets synthesized, it'll also force FIRST and therefore
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// the order will be okey -- ID and then system.
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auto insertAtHead = idProperty == nullptr;
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// IMPORTANT: The `id` MUST be the first field of any distributed actor.
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// So we find the property and add the system AFTER it using the hint.
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//
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// If the `id` was not synthesized yet, we'll end up inserting at head,
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// but the id synthesis will force itself to be FIRST anyway, so it works out.
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nominal->addMember(propDecl, /*hint=*/idProperty, /*insertAtHead=*/insertAtHead);
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nominal->addMember(pbDecl, /*hint=*/idProperty, /*insertAtHead=*/insertAtHead);
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return propDecl;
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}
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/******************************************************************************/
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/*********************** DISTRIBUTED THUNK SYNTHESIS **************************/
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/******************************************************************************/
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static void forwardParameters(AbstractFunctionDecl *afd,
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SmallVectorImpl<Expr*> &forwardingParams) {
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auto &C = afd->getASTContext();
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for (auto param : *afd->getParameters()) {
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forwardingParams.push_back(new (C) DeclRefExpr(
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ConcreteDeclRef(param), DeclNameLoc(), /*implicit=*/true,
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swift::AccessSemantics::Ordinary,
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afd->mapTypeIntoContext(param->getInterfaceType())));
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}
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}
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static std::pair<BraceStmt *, bool>
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deriveBodyDistributed_thunk(AbstractFunctionDecl *thunk, void *context) {
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auto implicit = true;
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ASTContext &C = thunk->getASTContext();
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auto module = thunk->getParentModule();
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// mock locations, we're a thunk and don't really need detailed locations
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const SourceLoc sloc = SourceLoc();
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const DeclNameLoc dloc = DeclNameLoc();
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auto func = static_cast<FuncDecl *>(context);
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auto funcDC = func->getDeclContext();
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NominalTypeDecl *nominal = funcDC->getSelfNominalTypeDecl();
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assert(nominal && nominal->isDistributedActor() &&
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"Distributed function must be part of distributed actor");
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auto selfDecl = thunk->getImplicitSelfDecl();
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selfDecl->getAttrs().add(new (C) KnownToBeLocalAttr(implicit));
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// === return type
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Type returnTy = func->getResultInterfaceType();
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auto isVoidReturn = returnTy->isVoid();
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// === self.actorSystem
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ProtocolDecl *DAS = C.getDistributedActorSystemDecl();
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Type systemTy = getConcreteReplacementForProtocolActorSystemType(thunk);
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assert(systemTy && "distributed thunk can only be synthesized with concrete "
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"actor system types");
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NominalTypeDecl *systemDecl = systemTy->getAnyNominal();
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assert(systemDecl);
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auto systemConfRef = module->lookupConformance(systemTy, DAS);
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assert(systemConfRef && "ActorSystem must conform to DistributedActorSystem");
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// === ActorSystem.InvocationEncoder
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Type invocationEncoderTy =
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getDistributedActorSystemInvocationEncoderType(systemDecl);
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NominalTypeDecl *invocationEncoderDecl = invocationEncoderTy->getAnyNominal();
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// === Type:
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StructDecl *RCT = C.getRemoteCallTargetDecl();
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Type remoteCallTargetTy = RCT->getDeclaredInterfaceType();
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// === __isRemoteActor(self)
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ArgumentList *isRemoteArgs = ArgumentList::forImplicitSingle(
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C, /*label=*/Identifier(), new (C) DeclRefExpr(selfDecl, dloc, implicit));
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FuncDecl *isRemoteFn = C.getIsRemoteDistributedActor();
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assert(isRemoteFn && "Could not find 'is remote' function, is the "
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"'_Distributed' module available?");
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auto isRemoteDeclRef =
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UnresolvedDeclRefExpr::createImplicit(C, isRemoteFn->getName());
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auto isRemote =
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CallExpr::createImplicit(C, isRemoteDeclRef, isRemoteArgs);
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// === local branch ----------------------------------------------------------
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BraceStmt *localBranchStmt;
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if (auto accessor = dyn_cast<AccessorDecl>(func)) {
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auto selfRefExpr = new (C) DeclRefExpr(selfDecl, dloc, implicit);
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auto var = accessor->getStorage();
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Expr *localPropertyAccess = new (C) MemberRefExpr(
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selfRefExpr, sloc, ConcreteDeclRef(var), dloc, implicit);
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localPropertyAccess =
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AwaitExpr::createImplicit(C, sloc, localPropertyAccess);
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if (accessor->hasThrows()) {
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localPropertyAccess =
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TryExpr::createImplicit(C, sloc, localPropertyAccess);
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}
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auto returnLocalPropertyAccess =
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ReturnStmt::createImplicit(C, sloc, localPropertyAccess);
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localBranchStmt =
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BraceStmt::create(C, sloc, {returnLocalPropertyAccess}, sloc, implicit);
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} else {
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// normal function
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auto selfRefExpr = new (C) DeclRefExpr(selfDecl, dloc, implicit);
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// -- forward arguments
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SmallVector<Expr*, 4> forwardingParams;
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forwardParameters(thunk, forwardingParams);
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auto funcRef = UnresolvedDeclRefExpr::createImplicit(C, func->getName());
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auto forwardingArgList = ArgumentList::forImplicitCallTo(funcRef->getName(), forwardingParams, C);
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auto funcDeclRef =
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UnresolvedDotExpr::createImplicit(C, selfRefExpr, func->getBaseName());
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Expr *localFuncCall = CallExpr::createImplicit(C, funcDeclRef, forwardingArgList);
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localFuncCall = AwaitExpr::createImplicit(C, sloc, localFuncCall);
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if (func->hasThrows()) {
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localFuncCall = TryExpr::createImplicit(C, sloc, localFuncCall);
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}
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auto returnLocalFuncCall =
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ReturnStmt::createImplicit(C, sloc, localFuncCall);
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localBranchStmt =
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BraceStmt::create(C, sloc, {returnLocalFuncCall}, sloc, implicit);
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}
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// === remote branch --------------------------------------------------------
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SmallVector<ASTNode, 8> remoteBranchStmts;
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// --- self.actorSystem
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auto systemProperty = nominal->getDistributedActorSystemProperty();
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assert(systemProperty && "Unable to find 'actorSystem' property");
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auto systemRefExpr =
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UnresolvedDotExpr::createImplicit(
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C, new (C) DeclRefExpr(selfDecl, dloc, implicit), // TODO: make createImplicit
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C.Id_actorSystem);
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auto *systemVar =
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new (C) VarDecl(/*isStatic=*/false, VarDecl::Introducer::Let, sloc,
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C.Id_system, thunk);
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systemVar->setInterfaceType(systemProperty->getInterfaceType());
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systemVar->setImplicit();
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systemVar->setSynthesized();
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Pattern *systemPattern = NamedPattern::createImplicit(C, systemVar);
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auto systemPB = PatternBindingDecl::createImplicit(
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C, StaticSpellingKind::None, systemPattern, systemRefExpr,
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thunk);
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remoteBranchStmts.push_back(systemPB);
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remoteBranchStmts.push_back(systemVar);
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// --- invocationEncoder = system.makeInvocationEncoder()
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auto *invocationVar =
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new (C) VarDecl(/*isStatic=*/false, VarDecl::Introducer::Var, sloc,
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C.Id_invocation, thunk);
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invocationVar->setInterfaceType(invocationEncoderTy);
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invocationVar->setImplicit();
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invocationVar->setSynthesized();
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{
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Pattern *invocationPattern = NamedPattern::createImplicit(C, invocationVar);
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FuncDecl *makeInvocationEncoderDecl =
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C.getMakeInvocationEncoderOnDistributedActorSystem(func);
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auto makeInvocationExpr = UnresolvedDotExpr::createImplicit(
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C, new (C) DeclRefExpr(ConcreteDeclRef(systemVar), dloc, implicit),
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makeInvocationEncoderDecl->getName());
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auto *makeInvocationArgs = ArgumentList::createImplicit(C, {});
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auto makeInvocationCallExpr =
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CallExpr::createImplicit(C, makeInvocationExpr, makeInvocationArgs);
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makeInvocationCallExpr->setThrows(nullptr);
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auto invocationEncoderPB = PatternBindingDecl::createImplicit(
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C, StaticSpellingKind::None, invocationPattern, makeInvocationCallExpr,
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thunk);
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remoteBranchStmts.push_back(invocationEncoderPB);
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remoteBranchStmts.push_back(invocationVar);
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}
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// --- Recording invocation details
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// -- recordGenericSubstitution(s)
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if (thunk->isGeneric() || nominal->isGeneric()) {
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auto recordGenericSubstitutionDecl =
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C.getRecordGenericSubstitutionOnDistributedInvocationEncoder(invocationEncoderDecl);
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assert(recordGenericSubstitutionDecl);
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auto recordGenericSubstitutionDeclRef =
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UnresolvedDeclRefExpr::createImplicit(
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C, recordGenericSubstitutionDecl->getName());
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auto signature = thunk->getGenericSignature();
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for (auto genParamType : signature.getGenericParams()) {
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auto tyExpr = TypeExpr::createImplicit(thunk->mapTypeIntoContext(genParamType), C);
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auto subTypeExpr = new (C) DotSelfExpr(
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tyExpr,
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sloc, sloc, tyExpr->getType());
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auto recordGenericSubArgsList =
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ArgumentList::forImplicitCallTo(
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recordGenericSubstitutionDeclRef->getName(),
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{subTypeExpr},
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C);
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Expr *recordGenericSub =
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CallExpr::createImplicit(C,
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UnresolvedDotExpr::createImplicit(C,
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new (C) DeclRefExpr(ConcreteDeclRef(invocationVar), dloc, implicit, AccessSemantics::Ordinary),
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recordGenericSubstitutionDecl->getName()),
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recordGenericSubArgsList);
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recordGenericSub = TryExpr::createImplicit(C, sloc, recordGenericSub);
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remoteBranchStmts.push_back(recordGenericSub);
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}
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}
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// -- recordArgument(s)
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{
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auto recordArgumentDecl =
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C.getRecordArgumentOnDistributedInvocationEncoder(invocationEncoderDecl);
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assert(recordArgumentDecl);
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for (auto param : *thunk->getParameters()) {
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auto recordArgumentDeclRef = UnresolvedDeclRefExpr::createImplicit(
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C, recordArgumentDecl->getName());
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auto argumentName = param->getArgumentName().str();
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LiteralExpr *argumentLabelArg;
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if (argumentName.empty()) {
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argumentLabelArg = new (C) NilLiteralExpr(sloc, implicit);
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} else {
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argumentLabelArg =
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new (C) StringLiteralExpr(argumentName, SourceRange(), implicit);
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}
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auto parameterName = param->getParameterName().str();
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// --- Prepare the RemoteCallArgument<Value> for the argument
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auto argumentVarName = C.getIdentifier("_" + parameterName.str());
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StructDecl *RCA = C.getRemoteCallArgumentDecl();
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VarDecl *callArgVar =
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new (C) VarDecl(/*isStatic=*/false, VarDecl::Introducer::Let, sloc,
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argumentVarName, thunk);
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callArgVar->setImplicit();
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callArgVar->setSynthesized();
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Pattern *callArgPattern = NamedPattern::createImplicit(C, callArgVar);
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auto remoteCallArgumentInitDecl =
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RCA->getDistributedRemoteCallArgumentInitFunction();
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auto boundRCAType = BoundGenericType::get(
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RCA, Type(), {thunk->mapTypeIntoContext(param->getInterfaceType())});
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auto remoteCallArgumentInitDeclRef =
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TypeExpr::createImplicit(boundRCAType, C);
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auto initCallArgArgs = ArgumentList::forImplicitCallTo(
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DeclNameRef(remoteCallArgumentInitDecl->getEffectiveFullName()),
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{
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// label:
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argumentLabelArg,
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// name:
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new (C) StringLiteralExpr(parameterName, SourceRange(), implicit),
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// _ argument:
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new (C) DeclRefExpr(
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ConcreteDeclRef(param), dloc, implicit,
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AccessSemantics::Ordinary,
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thunk->mapTypeIntoContext(param->getInterfaceType()))
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},
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C);
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auto initCallArgCallExpr =
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CallExpr::createImplicit(C, remoteCallArgumentInitDeclRef, initCallArgArgs);
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initCallArgCallExpr->setImplicit();
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auto callArgPB = PatternBindingDecl::createImplicit(
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C, StaticSpellingKind::None, callArgPattern, initCallArgCallExpr, thunk);
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remoteBranchStmts.push_back(callArgPB);
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remoteBranchStmts.push_back(callArgVar);
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/// --- Pass the argumentRepr to the recordArgument function
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auto recordArgArgsList = ArgumentList::forImplicitCallTo(
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recordArgumentDeclRef->getName(),
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{
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new (C) DeclRefExpr(
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ConcreteDeclRef(callArgVar), dloc, implicit,
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AccessSemantics::Ordinary)
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}, C);
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auto tryRecordArgExpr = TryExpr::createImplicit(C, sloc,
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CallExpr::createImplicit(C,
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UnresolvedDotExpr::createImplicit(C,
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new (C) DeclRefExpr(ConcreteDeclRef(invocationVar), dloc, implicit, AccessSemantics::Ordinary),
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recordArgumentDecl->getName()),
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recordArgArgsList));
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remoteBranchStmts.push_back(tryRecordArgExpr);
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}
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}
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// -- recordErrorType
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if (func->hasThrows()) {
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// Error.self
|
|
auto errorDecl = C.getErrorDecl();
|
|
auto *errorTypeExpr = new (C) DotSelfExpr(
|
|
UnresolvedDeclRefExpr::createImplicit(C, errorDecl->getName()), sloc,
|
|
sloc, errorDecl->getDeclaredInterfaceType());
|
|
|
|
auto recordErrorDecl = C.getRecordErrorTypeOnDistributedInvocationEncoder(
|
|
invocationEncoderDecl);
|
|
assert(recordErrorDecl);
|
|
auto recordErrorDeclRef =
|
|
UnresolvedDeclRefExpr::createImplicit(C, recordErrorDecl->getName());
|
|
|
|
auto recordArgsList = ArgumentList::forImplicitCallTo(
|
|
recordErrorDeclRef->getName(),
|
|
{errorTypeExpr},
|
|
C);
|
|
auto tryRecordErrorTyExpr = TryExpr::createImplicit(C, sloc,
|
|
CallExpr::createImplicit(C,
|
|
UnresolvedDotExpr::createImplicit(C,
|
|
new (C) DeclRefExpr(ConcreteDeclRef(invocationVar), dloc, implicit, AccessSemantics::Ordinary),
|
|
recordErrorDecl->getName()),
|
|
recordArgsList));
|
|
|
|
remoteBranchStmts.push_back(tryRecordErrorTyExpr);
|
|
}
|
|
|
|
// -- recordReturnType
|
|
if (!isVoidReturn) {
|
|
// Result.self
|
|
// Watch out and always map into thunk context
|
|
auto resultType = thunk->mapTypeIntoContext(func->getResultInterfaceType());
|
|
auto *metaTypeRef = TypeExpr::createImplicit(resultType, C);
|
|
auto *resultTypeExpr =
|
|
new (C) DotSelfExpr(metaTypeRef, sloc, sloc, resultType);
|
|
|
|
auto recordReturnTypeDecl =
|
|
C.getRecordReturnTypeOnDistributedInvocationEncoder(
|
|
invocationEncoderDecl);
|
|
auto recordReturnTypeDeclRef =
|
|
UnresolvedDeclRefExpr::createImplicit(C, recordReturnTypeDecl->getName());
|
|
|
|
auto recordArgsList = ArgumentList::forImplicitCallTo(
|
|
recordReturnTypeDeclRef->getName(),
|
|
{resultTypeExpr},
|
|
C);
|
|
auto tryRecordReturnTyExpr = TryExpr::createImplicit(C, sloc,
|
|
CallExpr::createImplicit(C,
|
|
UnresolvedDotExpr::createImplicit(C,
|
|
new (C) DeclRefExpr(ConcreteDeclRef(invocationVar), dloc, implicit,
|
|
AccessSemantics::Ordinary),
|
|
recordReturnTypeDecl->getName()),
|
|
recordArgsList));
|
|
|
|
remoteBranchStmts.push_back(tryRecordReturnTyExpr);
|
|
}
|
|
|
|
// -- doneRecording
|
|
{
|
|
auto doneRecordingDecl =
|
|
C.getDoneRecordingOnDistributedInvocationEncoder(invocationEncoderDecl);
|
|
assert(doneRecordingDecl && "Could not find 'doneRecording' ad-hoc requirement witness.");
|
|
auto doneRecordingDeclRef =
|
|
UnresolvedDeclRefExpr::createImplicit(C, doneRecordingDecl->getName());
|
|
|
|
auto argsList =
|
|
ArgumentList::forImplicitCallTo(doneRecordingDeclRef->getName(), {}, C);
|
|
auto tryDoneRecordingExpr = TryExpr::createImplicit(C, sloc,
|
|
CallExpr::createImplicit(C,
|
|
UnresolvedDotExpr::createImplicit(C,
|
|
new (C) DeclRefExpr(ConcreteDeclRef(invocationVar), dloc, implicit,
|
|
AccessSemantics::Ordinary,
|
|
invocationVar->getInterfaceType()),
|
|
doneRecordingDecl->getName()),
|
|
argsList));
|
|
|
|
remoteBranchStmts.push_back(tryDoneRecordingExpr);
|
|
}
|
|
|
|
// === Prepare the 'RemoteCallTarget'
|
|
auto *targetVar = new (C) VarDecl(
|
|
/*isStatic=*/false, VarDecl::Introducer::Let, sloc, C.Id_target, thunk);
|
|
|
|
{
|
|
// --- Mangle the thunk name
|
|
Mangle::ASTMangler mangler;
|
|
auto mangled =
|
|
C.AllocateCopy(mangler.mangleDistributedThunk(cast<FuncDecl>(thunk)));
|
|
auto mangledTargetStringLiteral =
|
|
new (C) StringLiteralExpr(mangled, SourceRange(), implicit);
|
|
|
|
// --- let target = RemoteCallTarget(<mangled name>)
|
|
targetVar->setInterfaceType(remoteCallTargetTy);
|
|
targetVar->setImplicit();
|
|
targetVar->setSynthesized();
|
|
|
|
Pattern *targetPattern = NamedPattern::createImplicit(C, targetVar);
|
|
|
|
auto remoteCallTargetInitDecl =
|
|
RCT->getDistributedRemoteCallTargetInitFunction();
|
|
auto remoteCallTargetInitDeclRef = UnresolvedDeclRefExpr::createImplicit(
|
|
C, remoteCallTargetInitDecl->getEffectiveFullName());
|
|
|
|
auto initTargetExpr = UnresolvedDeclRefExpr::createImplicit(
|
|
C, RCT->getName());
|
|
auto initTargetArgs = ArgumentList::forImplicitCallTo(
|
|
remoteCallTargetInitDeclRef->getName(),
|
|
{mangledTargetStringLiteral}, C);
|
|
|
|
auto initTargetCallExpr =
|
|
CallExpr::createImplicit(C, initTargetExpr, initTargetArgs);
|
|
|
|
auto targetPB = PatternBindingDecl::createImplicit(
|
|
C, StaticSpellingKind::None, targetPattern, initTargetCallExpr, thunk);
|
|
|
|
remoteBranchStmts.push_back(targetPB);
|
|
remoteBranchStmts.push_back(targetVar);
|
|
}
|
|
|
|
// === Make the 'remoteCall(Void)(...)'
|
|
{
|
|
auto remoteCallDecl =
|
|
C.getRemoteCallOnDistributedActorSystem(systemDecl, isVoidReturn);
|
|
auto systemRemoteCallRef =
|
|
UnresolvedDotExpr::createImplicit(
|
|
C, new (C) DeclRefExpr(ConcreteDeclRef(systemVar), dloc, implicit),
|
|
remoteCallDecl->getName());
|
|
|
|
SmallVector<Expr *, 5> args;
|
|
// -- on actor: Act
|
|
args.push_back(new (C) DeclRefExpr(selfDecl, dloc, implicit,
|
|
swift::AccessSemantics::Ordinary,
|
|
selfDecl->getInterfaceType()));
|
|
// -- target: RemoteCallTarget
|
|
args.push_back(new (C) DeclRefExpr(ConcreteDeclRef(targetVar), dloc, implicit,
|
|
AccessSemantics::Ordinary,
|
|
RCT->getDeclaredInterfaceType()));
|
|
// -- invocation: inout InvocationEncoder
|
|
args.push_back(new (C) InOutExpr(sloc,
|
|
new (C) DeclRefExpr(ConcreteDeclRef(invocationVar), dloc,
|
|
implicit, AccessSemantics::Ordinary, invocationEncoderTy), invocationEncoderTy, implicit));
|
|
|
|
// -- throwing: Err.Type
|
|
if (func->hasThrows()) {
|
|
// Error.self
|
|
auto errorDecl = C.getErrorDecl();
|
|
auto *errorTypeExpr = new (C) DotSelfExpr(
|
|
UnresolvedDeclRefExpr::createImplicit(C, errorDecl->getName()), sloc,
|
|
sloc, errorDecl->getDeclaredInterfaceType());
|
|
|
|
args.push_back(errorTypeExpr);
|
|
} else {
|
|
// Never.self
|
|
auto neverDecl = C.getNeverDecl();
|
|
auto *neverTypeExpr = new (C) DotSelfExpr(
|
|
UnresolvedDeclRefExpr::createImplicit(C, neverDecl->getName()), sloc,
|
|
sloc, neverDecl->getDeclaredInterfaceType());
|
|
args.push_back(neverTypeExpr);
|
|
}
|
|
|
|
// -- returning: Res.Type
|
|
if (!isVoidReturn) {
|
|
// Result.self
|
|
auto resultType =
|
|
func->mapTypeIntoContext(func->getResultInterfaceType());
|
|
auto *metaTypeRef = TypeExpr::createImplicit(resultType, C);
|
|
auto *resultTypeExpr =
|
|
new (C) DotSelfExpr(metaTypeRef, sloc, sloc, resultType);
|
|
|
|
args.push_back(resultTypeExpr);
|
|
}
|
|
|
|
assert(args.size() == remoteCallDecl->getParameters()->size());
|
|
auto remoteCallArgs = ArgumentList::forImplicitCallTo(
|
|
systemRemoteCallRef->getName(), args, C);
|
|
|
|
Expr *remoteCallExpr =
|
|
CallExpr::createImplicit(C, systemRemoteCallRef, remoteCallArgs);
|
|
remoteCallExpr = AwaitExpr::createImplicit(C, sloc, remoteCallExpr);
|
|
remoteCallExpr = TryExpr::createImplicit(C, sloc, remoteCallExpr);
|
|
auto returnRemoteCall = ReturnStmt::createImplicit(C, sloc, remoteCallExpr);
|
|
remoteBranchStmts.push_back(returnRemoteCall);
|
|
}
|
|
|
|
// ---------------------------------------------------------------------------
|
|
auto remoteBranchStmt =
|
|
BraceStmt::create(C, sloc, remoteBranchStmts, sloc, implicit);
|
|
|
|
// ---------------------------------------------------------------------------
|
|
// === if (isRemote(...) <remote branch> else <local branch>
|
|
auto ifStmt = new (C) IfStmt(sloc, /*condition=*/isRemote,
|
|
/*then=*/remoteBranchStmt, sloc,
|
|
/*else=*/localBranchStmt, implicit, C);
|
|
|
|
auto body = BraceStmt::create(C, sloc, {ifStmt}, sloc, implicit);
|
|
return {body, /*isTypeChecked=*/false};
|
|
}
|
|
|
|
static FuncDecl *createDistributedThunkFunction(FuncDecl *func) {
|
|
auto &C = func->getASTContext();
|
|
auto DC = func->getDeclContext();
|
|
|
|
// NOTE: So we don't need a thunk in the protocol, we should call the underlying
|
|
// thing instead, which MUST have a thunk, since it must be a distributed func as well...
|
|
if (isa<ProtocolDecl>(DC)) {
|
|
return nullptr;
|
|
}
|
|
|
|
assert(getConcreteReplacementForProtocolActorSystemType(func) &&
|
|
"Thunk synthesis must have concrete actor system type available");
|
|
|
|
DeclName thunkName;
|
|
|
|
// Since accessors don't have names, let's generate one based on
|
|
// the computed property.
|
|
if (auto *accessor = dyn_cast<AccessorDecl>(func)) {
|
|
auto *var = accessor->getStorage();
|
|
thunkName = DeclName(C, var->getBaseName(),
|
|
/*argumentNames=*/ArrayRef<Identifier>());
|
|
} else {
|
|
// Let's use the name of a 'distributed func'
|
|
thunkName = func->getName();
|
|
}
|
|
|
|
// --- Prepare generic parameters
|
|
GenericParamList *genericParamList = nullptr;
|
|
if (auto genericParams = func->getGenericParams()) {
|
|
genericParamList = genericParams->clone(DC);
|
|
}
|
|
|
|
GenericSignature baseSignature = func->getGenericSignature();
|
|
|
|
// --- Prepare parameters
|
|
auto funcParams = func->getParameters();
|
|
SmallVector<ParamDecl*, 2> paramDecls;
|
|
for (unsigned i : indices(*func->getParameters())) {
|
|
auto funcParam = funcParams->get(i);
|
|
|
|
auto paramName = funcParam->getParameterName();
|
|
// If internal name is empty it could only mean either
|
|
// `_:` or `x _: ...`, so let's auto-generate a name
|
|
// to be used in the body of a thunk.
|
|
if (paramName.empty()) {
|
|
paramName = C.getIdentifier("p" + llvm::utostr(i));
|
|
}
|
|
|
|
auto paramDecl = new (C)
|
|
ParamDecl(SourceLoc(),
|
|
/*argumentNameLoc=*/SourceLoc(), funcParam->getArgumentName(),
|
|
/*parameterNameLoc=*/SourceLoc(), paramName, DC);
|
|
|
|
paramDecl->setImplicit(true);
|
|
paramDecl->setSpecifier(funcParam->getSpecifier());
|
|
paramDecl->setInterfaceType(funcParam->getInterfaceType());
|
|
|
|
paramDecls.push_back(paramDecl);
|
|
}
|
|
ParameterList *params = ParameterList::create(C, paramDecls); // = funcParams->clone(C);
|
|
|
|
FuncDecl *thunk = FuncDecl::createImplicit(
|
|
C, swift::StaticSpellingKind::None, thunkName, SourceLoc(),
|
|
/*async=*/true, /*throws=*/true, /*thrownType=*/Type(),
|
|
genericParamList, params, func->getResultInterfaceType(), DC);
|
|
|
|
assert(thunk && "couldn't create a distributed thunk");
|
|
|
|
thunk->setSynthesized(true);
|
|
thunk->setDistributedThunk(true);
|
|
thunk->getAttrs().add(
|
|
new (C) NonisolatedAttr(/*unsafe=*/false, /*implicit=*/true));
|
|
|
|
if (isa<ClassDecl>(DC))
|
|
thunk->getAttrs().add(new (C) FinalAttr(/*isImplicit=*/true));
|
|
|
|
thunk->setGenericSignature(baseSignature);
|
|
thunk->copyFormalAccessFrom(func, /*sourceIsParentContext=*/false);
|
|
thunk->setBodySynthesizer(deriveBodyDistributed_thunk, func);
|
|
|
|
return thunk;
|
|
}
|
|
|
|
/******************************************************************************/
|
|
/*********************** CODABLE CONFORMANCE **********************************/
|
|
/******************************************************************************/
|
|
|
|
static NormalProtocolConformance*
|
|
addDistributedActorCodableConformance(
|
|
ClassDecl *actor, ProtocolDecl *proto) {
|
|
assert(proto->isSpecificProtocol(swift::KnownProtocolKind::Decodable) ||
|
|
proto->isSpecificProtocol(swift::KnownProtocolKind::Encodable));
|
|
auto &C = actor->getASTContext();
|
|
auto module = actor->getParentModule();
|
|
|
|
// === Only Distributed actors can gain this implicit conformance
|
|
if (!actor->isDistributedActor()) {
|
|
return nullptr;
|
|
}
|
|
|
|
// === Does the actor explicitly conform to the protocol already?
|
|
auto explicitConformance =
|
|
module->lookupConformance(actor->getInterfaceType(), proto);
|
|
if (!explicitConformance.isInvalid()) {
|
|
// ok, it was conformed explicitly -- let's not synthesize;
|
|
return nullptr;
|
|
}
|
|
|
|
// Check whether we can infer conformance at all.
|
|
if (auto *file = dyn_cast<FileUnit>(actor->getModuleScopeContext())) {
|
|
switch (file->getKind()) {
|
|
case FileUnitKind::Source:
|
|
// Check what kind of source file we have.
|
|
if (auto sourceFile = actor->getParentSourceFile()) {
|
|
switch (sourceFile->Kind) {
|
|
case SourceFileKind::Interface:
|
|
return nullptr;
|
|
|
|
case SourceFileKind::Library:
|
|
case SourceFileKind::Main:
|
|
case SourceFileKind::MacroExpansion:
|
|
case SourceFileKind::SIL:
|
|
case SourceFileKind::DefaultArgument:
|
|
break;
|
|
}
|
|
}
|
|
break;
|
|
|
|
case FileUnitKind::Builtin:
|
|
case FileUnitKind::SerializedAST:
|
|
case FileUnitKind::Synthesized:
|
|
// Explicitly-handled modules don't infer Sendable conformances.
|
|
return nullptr;
|
|
|
|
case FileUnitKind::ClangModule:
|
|
case FileUnitKind::DWARFModule:
|
|
// Infer conformances for imported modules.
|
|
break;
|
|
}
|
|
} else {
|
|
return nullptr;
|
|
}
|
|
|
|
auto conformance = C.getNormalConformance(
|
|
actor->getDeclaredInterfaceType(), proto,
|
|
actor->getLoc(), /*dc=*/actor,
|
|
ProtocolConformanceState::Incomplete,
|
|
/*isUnchecked=*/false,
|
|
/*isPreconcurrency=*/false);
|
|
conformance->setSourceKindAndImplyingConformance(
|
|
ConformanceEntryKind::Synthesized, nullptr);
|
|
actor->registerProtocolConformance(conformance, /*synthesized=*/true);
|
|
return conformance;
|
|
}
|
|
|
|
/******************************************************************************/
|
|
/*********************** SYNTHESIS ENTRY POINTS *******************************/
|
|
/******************************************************************************/
|
|
|
|
FuncDecl *GetDistributedThunkRequest::evaluate(Evaluator &evaluator,
|
|
Originator originator) const {
|
|
AbstractFunctionDecl *distributedTarget = nullptr;
|
|
if (auto *storage = originator.dyn_cast<AbstractStorageDecl *>()) {
|
|
if (!storage->isDistributed())
|
|
return nullptr;
|
|
|
|
if (auto *var = dyn_cast<VarDecl>(storage)) {
|
|
if (checkDistributedActorProperty(var, /*diagnose=*/false))
|
|
return nullptr;
|
|
|
|
distributedTarget = var->getAccessor(AccessorKind::Get);
|
|
} else {
|
|
llvm_unreachable("unsupported storage kind");
|
|
}
|
|
} else {
|
|
distributedTarget = originator.get<AbstractFunctionDecl *>();
|
|
if (!distributedTarget->isDistributed())
|
|
return nullptr;
|
|
}
|
|
assert(distributedTarget);
|
|
|
|
// This evaluation type-check by now was already computed and cached;
|
|
// We need to check in order to avoid emitting a THUNK for a distributed func
|
|
// which had errors; as the thunk then may also cause un-addressable issues and confusion.
|
|
if (swift::checkDistributedFunction(distributedTarget)) {
|
|
return nullptr;
|
|
}
|
|
|
|
auto &C = distributedTarget->getASTContext();
|
|
|
|
if (!getConcreteReplacementForProtocolActorSystemType(distributedTarget)) {
|
|
// Don't synthesize thunks, unless there is a *concrete* ActorSystem.
|
|
// TODO(distributed): we should be able to lift this eventually,
|
|
// and allow resolving distributed actor protocols.
|
|
return nullptr;
|
|
}
|
|
|
|
// If the target function signature has errors, or if it is illegal in other
|
|
// ways, such as e.g. parameters not conforming to SerializationRequirement,
|
|
// we must avoid synthesis of the thunk because it'd also have errors,
|
|
// giving an ugly user experience (errors in implicit code).
|
|
if (distributedTarget->getInterfaceType()->hasError() ||
|
|
(!isa<AccessorDecl>(distributedTarget) &&
|
|
checkDistributedFunction(distributedTarget))) {
|
|
return nullptr;
|
|
}
|
|
|
|
if (auto func = dyn_cast<FuncDecl>(distributedTarget)) {
|
|
// not via `ensureDistributedModuleLoaded` to avoid generating a warning,
|
|
// we won't be emitting the offending decl after all.
|
|
if (!C.getLoadedModule(C.Id_Distributed))
|
|
return nullptr;
|
|
|
|
// --- Prepare the "distributed thunk" which does the "maybe remote" dance:
|
|
return createDistributedThunkFunction(func);
|
|
}
|
|
|
|
llvm_unreachable("Unable to synthesize distributed thunk");
|
|
}
|
|
|
|
VarDecl *GetDistributedActorIDPropertyRequest::evaluate(
|
|
Evaluator &evaluator, NominalTypeDecl *actor) const {
|
|
if (!actor->isDistributedActor())
|
|
return nullptr;
|
|
|
|
auto &C = actor->getASTContext();
|
|
|
|
// not via `ensureDistributedModuleLoaded` to avoid generating a warning,
|
|
// we won't be emitting the offending decl after all.
|
|
if (!C.getLoadedModule(C.Id_Distributed))
|
|
return nullptr;
|
|
|
|
auto classDecl = dyn_cast<ClassDecl>(actor);
|
|
if (!classDecl)
|
|
return nullptr;
|
|
|
|
// We may enter this request multiple times, e.g. in multi-file projects,
|
|
// so in order to avoid synthesizing a property many times, first perform
|
|
// a lookup and return if it already exists.
|
|
if (auto existingProp = lookupDistributedActorProperty(classDecl, C.Id_id)) {
|
|
return existingProp;
|
|
}
|
|
|
|
return addImplicitDistributedActorIDProperty(classDecl);
|
|
}
|
|
|
|
VarDecl *GetDistributedActorSystemPropertyRequest::evaluate(
|
|
Evaluator &evaluator, NominalTypeDecl *nominal) const {
|
|
auto &C = nominal->getASTContext();
|
|
auto module = nominal->getParentModule();
|
|
|
|
auto DAS = C.getDistributedActorSystemDecl();
|
|
|
|
// not via `ensureDistributedModuleLoaded` to avoid generating a warning,
|
|
// we won't be emitting the offending decl after all.
|
|
if (!C.getLoadedModule(C.Id_Distributed))
|
|
return nullptr;
|
|
|
|
if (!nominal->isDistributedActor())
|
|
return nullptr;
|
|
|
|
if (auto proto = dyn_cast<ProtocolDecl>(nominal)) {
|
|
auto DistributedActorProto = C.getDistributedActorDecl();
|
|
for (auto system : DistributedActorProto->lookupDirect(C.Id_actorSystem)) {
|
|
if (auto var = dyn_cast<VarDecl>(system)) {
|
|
auto conformance = module->checkConformance(
|
|
proto->mapTypeIntoContext(var->getInterfaceType()),
|
|
DAS);
|
|
|
|
if (conformance.isInvalid())
|
|
continue;
|
|
|
|
return var;
|
|
}
|
|
}
|
|
|
|
return nullptr;
|
|
}
|
|
|
|
auto classDecl = dyn_cast<ClassDecl>(nominal);
|
|
if (!classDecl)
|
|
return nullptr;
|
|
|
|
// We may be triggered after synthesis was handled via `DerivedConformances`,
|
|
// in which case we should locate the existing property, rather than add
|
|
// another one. Generally derived conformances are triggered early and are right
|
|
// but for some reason sometimes we get a request before synthesis was triggered
|
|
// there... so this is to workaround that issue, and ensure we're always
|
|
// synthesising correctly, regardless of entry-point.
|
|
if (auto existingProp = lookupDistributedActorProperty(classDecl, C.Id_actorSystem)) {
|
|
return existingProp;
|
|
}
|
|
|
|
return addImplicitDistributedActorActorSystemProperty(classDecl);
|
|
}
|
|
|
|
NormalProtocolConformance *GetDistributedActorImplicitCodableRequest::evaluate(
|
|
Evaluator &evaluator, NominalTypeDecl *nominal,
|
|
KnownProtocolKind protoKind) const {
|
|
assert(nominal->isDistributedActor());
|
|
assert(protoKind == KnownProtocolKind::Encodable ||
|
|
protoKind == KnownProtocolKind::Decodable);
|
|
auto &C = nominal->getASTContext();
|
|
|
|
// not via `ensureDistributedModuleLoaded` to avoid generating a warning,
|
|
// we won't be emitting the offending decl after all.
|
|
if (!C.getLoadedModule(C.Id_Distributed))
|
|
return nullptr;
|
|
|
|
auto classDecl = dyn_cast<ClassDecl>(nominal);
|
|
if (!classDecl) {
|
|
// we only synthesize the conformance for concrete actors
|
|
return nullptr;
|
|
}
|
|
|
|
return addDistributedActorCodableConformance(classDecl,
|
|
C.getProtocol(protoKind));
|
|
}
|