8a0c73cf4c
BUG= R=karlklose@google.com Review URL: https://codereview.chromium.org//1172693003.
955 lines
34 KiB
Dart
955 lines
34 KiB
Dart
// Copyright (c) 2012, the Dart project authors. Please see the AUTHORS file
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// for details. All rights reserved. Use of this source code is governed by a
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// BSD-style license that can be found in the LICENSE file.
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part of dart2js;
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typedef ItemCompilationContext ItemCompilationContextCreator();
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class EnqueueTask extends CompilerTask {
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final ResolutionEnqueuer resolution;
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final CodegenEnqueuer codegen;
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String get name => 'Enqueue';
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EnqueueTask(Compiler compiler)
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: resolution = new ResolutionEnqueuer(
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compiler, compiler.backend.createItemCompilationContext),
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codegen = new CodegenEnqueuer(
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compiler, compiler.backend.createItemCompilationContext),
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super(compiler) {
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codegen.task = this;
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resolution.task = this;
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codegen.nativeEnqueuer = compiler.backend.nativeCodegenEnqueuer(codegen);
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resolution.nativeEnqueuer =
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compiler.backend.nativeResolutionEnqueuer(resolution);
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}
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void forgetElement(Element element) {
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resolution.forgetElement(element);
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codegen.forgetElement(element);
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}
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}
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class WorldImpact {
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const WorldImpact();
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Iterable<Selector> get dynamicInvocations => const <Selector>[];
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Iterable<Selector> get dynamicGetters => const <Selector>[];
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Iterable<Selector> get dynamicSetters => const <Selector>[];
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// TODO(johnniwinther): Split this into more precise subsets.
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Iterable<Element> get staticUses => const <Element>[];
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// TODO(johnniwinther): Replace this by called constructors with type
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// arguments.
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Iterable<InterfaceType> get instantiatedTypes => const <InterfaceType>[];
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// TODO(johnniwinther): Collect checked types for checked mode separately to
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// support serialization.
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Iterable<DartType> get checkedTypes => const <DartType>[];
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Iterable<MethodElement> get closurizedFunctions => const <MethodElement>[];
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}
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abstract class Enqueuer {
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final String name;
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final Compiler compiler; // TODO(ahe): Remove this dependency.
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final ItemCompilationContextCreator itemCompilationContextCreator;
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final Map<String, Set<Element>> instanceMembersByName
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= new Map<String, Set<Element>>();
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final Map<String, Set<Element>> instanceFunctionsByName
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= new Map<String, Set<Element>>();
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final Set<ClassElement> _processedClasses = new Set<ClassElement>();
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Set<ClassElement> recentClasses = new Setlet<ClassElement>();
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final Universe universe = new Universe();
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static final TRACE_MIRROR_ENQUEUING =
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const bool.fromEnvironment("TRACE_MIRROR_ENQUEUING");
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bool queueIsClosed = false;
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EnqueueTask task;
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native.NativeEnqueuer nativeEnqueuer; // Set by EnqueueTask
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bool hasEnqueuedReflectiveElements = false;
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bool hasEnqueuedReflectiveStaticFields = false;
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Enqueuer(this.name, this.compiler, this.itemCompilationContextCreator);
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Queue<WorkItem> get queue;
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bool get queueIsEmpty => queue.isEmpty;
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/// Returns [:true:] if this enqueuer is the resolution enqueuer.
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bool get isResolutionQueue => false;
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QueueFilter get filter => compiler.enqueuerFilter;
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/// Returns [:true:] if [member] has been processed by this enqueuer.
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bool isProcessed(Element member);
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/**
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* Documentation wanted -- johnniwinther
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*
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* Invariant: [element] must be a declaration element.
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*/
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void addToWorkList(Element element) {
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assert(invariant(element, element.isDeclaration));
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internalAddToWorkList(element);
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}
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/**
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* Adds [element] to the work list if it has not already been processed.
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*
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* Returns [true] if the element was actually added to the queue.
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*/
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bool internalAddToWorkList(Element element);
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/// Apply the [worldImpact] of processing [element] to this enqueuer.
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void applyImpact(Element element, WorldImpact worldImpact) {
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// TODO(johnniwinther): Optimize the application of the world impact.
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worldImpact.dynamicInvocations.forEach(registerDynamicInvocation);
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worldImpact.dynamicGetters.forEach(registerDynamicGetter);
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worldImpact.dynamicSetters.forEach(registerDynamicSetter);
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worldImpact.staticUses.forEach(registerStaticUse);
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// TODO(johnniwinther): Register [worldImpact.instantiatedTypes] when it
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// doesn't require a [Registry].
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worldImpact.checkedTypes.forEach(registerIsCheck);
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worldImpact.closurizedFunctions.forEach(registerGetOfStaticFunction);
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}
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// TODO(johnniwinther): Remove the need for passing the [registry].
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void registerInstantiatedType(InterfaceType type, Registry registry,
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{bool mirrorUsage: false}) {
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task.measure(() {
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ClassElement cls = type.element;
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registry.registerDependency(cls);
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cls.ensureResolved(compiler);
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universe.registerTypeInstantiation(type, byMirrors: mirrorUsage);
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processInstantiatedClass(cls);
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compiler.backend.registerInstantiatedType(type, registry);
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});
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}
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bool checkNoEnqueuedInvokedInstanceMethods() {
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return filter.checkNoEnqueuedInvokedInstanceMethods(this);
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}
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void processInstantiatedClassMembers(ClassElement cls) {
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cls.implementation.forEachMember(processInstantiatedClassMember);
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}
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void processInstantiatedClassMember(ClassElement cls, Element member) {
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assert(invariant(member, member.isDeclaration));
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if (isProcessed(member)) return;
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if (!member.isInstanceMember) return;
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String memberName = member.name;
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if (member.kind == ElementKind.FIELD) {
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// The obvious thing to test here would be "member.isNative",
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// however, that only works after metadata has been parsed/analyzed,
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// and that may not have happened yet.
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// So instead we use the enclosing class, which we know have had
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// its metadata parsed and analyzed.
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// Note: this assumes that there are no non-native fields on native
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// classes, which may not be the case when a native class is subclassed.
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if (cls.isNative) {
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compiler.world.registerUsedElement(member);
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nativeEnqueuer.handleFieldAnnotations(member);
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if (universe.hasInvokedGetter(member, compiler.world) ||
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universe.hasInvocation(member, compiler.world)) {
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nativeEnqueuer.registerFieldLoad(member);
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// In handleUnseenSelector we can't tell if the field is loaded or
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// stored. We need the basic algorithm to be Church-Rosser, since the
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// resolution 'reduction' order is different to the codegen order. So
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// register that the field is also stored. In other words: if we
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// don't register the store here during resolution, the store could be
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// registered during codegen on the handleUnseenSelector path, and
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// cause the set of codegen elements to include unresolved elements.
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nativeEnqueuer.registerFieldStore(member);
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addToWorkList(member);
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return;
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}
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if (universe.hasInvokedSetter(member, compiler.world)) {
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nativeEnqueuer.registerFieldStore(member);
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// See comment after registerFieldLoad above.
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nativeEnqueuer.registerFieldLoad(member);
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addToWorkList(member);
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return;
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}
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// Native fields need to go into instanceMembersByName as they
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// are virtual instantiation points and escape points.
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} else {
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// All field initializers must be resolved as they could
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// have an observable side-effect (and cannot be tree-shaken
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// away).
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addToWorkList(member);
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return;
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}
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} else if (member.kind == ElementKind.FUNCTION) {
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FunctionElement function = member;
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function.computeType(compiler);
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if (function.name == Compiler.NO_SUCH_METHOD) {
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registerNoSuchMethod(function);
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}
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if (function.name == Compiler.CALL_OPERATOR_NAME &&
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!cls.typeVariables.isEmpty) {
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registerCallMethodWithFreeTypeVariables(
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function, compiler.globalDependencies);
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}
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// If there is a property access with the same name as a method we
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// need to emit the method.
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if (universe.hasInvokedGetter(function, compiler.world)) {
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registerClosurizedMember(function, compiler.globalDependencies);
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addToWorkList(function);
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return;
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}
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// Store the member in [instanceFunctionsByName] to catch
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// getters on the function.
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instanceFunctionsByName.putIfAbsent(memberName, () => new Set<Element>())
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.add(member);
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if (universe.hasInvocation(function, compiler.world)) {
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addToWorkList(function);
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return;
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}
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} else if (member.kind == ElementKind.GETTER) {
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FunctionElement getter = member;
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getter.computeType(compiler);
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if (universe.hasInvokedGetter(getter, compiler.world)) {
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addToWorkList(getter);
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return;
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}
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// We don't know what selectors the returned closure accepts. If
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// the set contains any selector we have to assume that it matches.
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if (universe.hasInvocation(getter, compiler.world)) {
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addToWorkList(getter);
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return;
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}
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} else if (member.kind == ElementKind.SETTER) {
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FunctionElement setter = member;
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setter.computeType(compiler);
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if (universe.hasInvokedSetter(setter, compiler.world)) {
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addToWorkList(setter);
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return;
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}
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}
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// The element is not yet used. Add it to the list of instance
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// members to still be processed.
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instanceMembersByName.putIfAbsent(memberName, () => new Set<Element>())
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.add(member);
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}
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void registerNoSuchMethod(Element noSuchMethod);
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void enableIsolateSupport() {}
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void processInstantiatedClass(ClassElement cls) {
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task.measure(() {
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if (_processedClasses.contains(cls)) return;
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// The class must be resolved to compute the set of all
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// supertypes.
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cls.ensureResolved(compiler);
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void processClass(ClassElement cls) {
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if (_processedClasses.contains(cls)) return;
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_processedClasses.add(cls);
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recentClasses.add(cls);
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cls.ensureResolved(compiler);
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cls.implementation.forEachMember(processInstantiatedClassMember);
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if (isResolutionQueue) {
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compiler.resolver.checkClass(cls);
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}
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// We only tell the backend once that [cls] was instantiated, so
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// any additional dependencies must be treated as global
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// dependencies.
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compiler.backend.registerInstantiatedClass(
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cls, this, compiler.globalDependencies);
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}
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processClass(cls);
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for (Link<DartType> supertypes = cls.allSupertypes;
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!supertypes.isEmpty; supertypes = supertypes.tail) {
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processClass(supertypes.head.element);
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}
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});
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}
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void registerNewSelector(Selector selector,
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Map<String, Set<Selector>> selectorsMap) {
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String name = selector.name;
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Set<Selector> selectors =
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selectorsMap.putIfAbsent(name, () => new Setlet<Selector>());
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if (!selectors.contains(selector)) {
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selectors.add(selector);
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handleUnseenSelector(name, selector);
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}
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}
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void registerInvocation(Selector selector) {
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task.measure(() {
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registerNewSelector(selector, universe.invokedNames);
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});
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}
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void registerInvokedGetter(Selector selector) {
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task.measure(() {
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registerNewSelector(selector, universe.invokedGetters);
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});
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}
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void registerInvokedSetter(Selector selector) {
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task.measure(() {
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registerNewSelector(selector, universe.invokedSetters);
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});
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}
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/**
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* Decides whether an element should be included to satisfy requirements
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* of the mirror system. [includedEnclosing] provides a hint whether the
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* enclosing element was included.
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*
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* The actual implementation depends on the current compiler phase.
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*/
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bool shouldIncludeElementDueToMirrors(Element element,
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{bool includedEnclosing});
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void logEnqueueReflectiveAction(action, [msg = ""]) {
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if (TRACE_MIRROR_ENQUEUING) {
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print("MIRROR_ENQUEUE (${isResolutionQueue ? "R" : "C"}): $action $msg");
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}
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}
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/// Enqeue the constructor [ctor] if it is required for reflection.
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///
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/// [enclosingWasIncluded] provides a hint whether the enclosing element was
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/// needed for reflection.
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void enqueueReflectiveConstructor(ConstructorElement ctor,
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bool enclosingWasIncluded) {
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if (shouldIncludeElementDueToMirrors(ctor,
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includedEnclosing: enclosingWasIncluded)) {
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logEnqueueReflectiveAction(ctor);
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ClassElement cls = ctor.declaration.enclosingClass;
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registerInstantiatedType(cls.rawType, compiler.mirrorDependencies,
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mirrorUsage: true);
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registerStaticUse(ctor.declaration);
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}
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}
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/// Enqeue the member [element] if it is required for reflection.
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///
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/// [enclosingWasIncluded] provides a hint whether the enclosing element was
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/// needed for reflection.
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void enqueueReflectiveMember(Element element, bool enclosingWasIncluded) {
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if (shouldIncludeElementDueToMirrors(element,
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includedEnclosing: enclosingWasIncluded)) {
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logEnqueueReflectiveAction(element);
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if (element.isTypedef) {
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TypedefElement typedef = element;
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typedef.ensureResolved(compiler);
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compiler.world.allTypedefs.add(element);
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} else if (Elements.isStaticOrTopLevel(element)) {
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registerStaticUse(element.declaration);
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} else if (element.isInstanceMember) {
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// We need to enqueue all members matching this one in subclasses, as
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// well.
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// TODO(herhut): Use TypedSelector.subtype for enqueueing
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Selector selector = new Selector.fromElement(element);
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registerSelectorUse(selector);
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if (element.isField) {
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Selector selector =
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new Selector.setter(element.name, element.library);
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registerInvokedSetter(selector);
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}
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}
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}
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}
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/// Enqeue the member [element] if it is required for reflection.
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///
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/// [enclosingWasIncluded] provides a hint whether the enclosing element was
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/// needed for reflection.
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void enqueueReflectiveElementsInClass(ClassElement cls,
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Iterable<ClassElement> recents,
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bool enclosingWasIncluded) {
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if (cls.library.isInternalLibrary || cls.isInjected) return;
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bool includeClass = shouldIncludeElementDueToMirrors(cls,
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includedEnclosing: enclosingWasIncluded);
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if (includeClass) {
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logEnqueueReflectiveAction(cls, "register");
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ClassElement decl = cls.declaration;
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decl.ensureResolved(compiler);
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registerInstantiatedType(decl.rawType, compiler.mirrorDependencies,
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mirrorUsage: true);
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}
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// If the class is never instantiated, we know nothing of it can possibly
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// be reflected upon.
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// TODO(herhut): Add a warning if a mirrors annotation cannot hit.
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if (recents.contains(cls.declaration)) {
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logEnqueueReflectiveAction(cls, "members");
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cls.constructors.forEach((Element element) {
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enqueueReflectiveConstructor(element, includeClass);
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});
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cls.forEachClassMember((Member member) {
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enqueueReflectiveMember(member.element, includeClass);
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});
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}
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}
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/// Enqeue special classes that might not be visible by normal means or that
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/// would not normally be enqueued:
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///
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/// [Closure] is treated specially as it is the superclass of all closures.
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/// Although it is in an internal library, we mark it as reflectable. Note
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/// that none of its methods are reflectable, unless reflectable by
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/// inheritance.
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void enqueueReflectiveSpecialClasses() {
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Iterable<ClassElement> classes =
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compiler.backend.classesRequiredForReflection;
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for (ClassElement cls in classes) {
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if (compiler.backend.referencedFromMirrorSystem(cls)) {
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logEnqueueReflectiveAction(cls);
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cls.ensureResolved(compiler);
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registerInstantiatedType(cls.rawType, compiler.mirrorDependencies,
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mirrorUsage: true);
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}
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}
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}
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/// Enqeue all local members of the library [lib] if they are required for
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/// reflection.
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void enqueueReflectiveElementsInLibrary(LibraryElement lib,
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Iterable<ClassElement> recents) {
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bool includeLibrary = shouldIncludeElementDueToMirrors(lib,
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includedEnclosing: false);
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lib.forEachLocalMember((Element member) {
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if (member.isClass) {
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enqueueReflectiveElementsInClass(member, recents, includeLibrary);
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} else {
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enqueueReflectiveMember(member, includeLibrary);
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}
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});
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}
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/// Enqueue all elements that are matched by the mirrors used
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/// annotation or, in lack thereof, all elements.
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void enqueueReflectiveElements(Iterable<ClassElement> recents) {
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if (!hasEnqueuedReflectiveElements) {
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logEnqueueReflectiveAction("!START enqueueAll");
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// First round of enqueuing, visit everything that is visible to
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// also pick up static top levels, etc.
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// Also, during the first round, consider all classes that have been seen
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// as recently seen, as we do not know how many rounds of resolution might
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// have run before tree shaking is disabled and thus everything is
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// enqueued.
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recents = _processedClasses.toSet();
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compiler.log('Enqueuing everything');
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for (LibraryElement lib in compiler.libraryLoader.libraries) {
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enqueueReflectiveElementsInLibrary(lib, recents);
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}
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enqueueReflectiveSpecialClasses();
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hasEnqueuedReflectiveElements = true;
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hasEnqueuedReflectiveStaticFields = true;
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logEnqueueReflectiveAction("!DONE enqueueAll");
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} else if (recents.isNotEmpty) {
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// Keep looking at new classes until fixpoint is reached.
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logEnqueueReflectiveAction("!START enqueueRecents");
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recents.forEach((ClassElement cls) {
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enqueueReflectiveElementsInClass(cls, recents,
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shouldIncludeElementDueToMirrors(cls.library,
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includedEnclosing: false));
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});
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logEnqueueReflectiveAction("!DONE enqueueRecents");
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}
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}
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/// Enqueue the static fields that have been marked as used by reflective
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/// usage through `MirrorsUsed`.
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void enqueueReflectiveStaticFields(Iterable<Element> elements) {
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if (hasEnqueuedReflectiveStaticFields) return;
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hasEnqueuedReflectiveStaticFields = true;
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for (Element element in elements) {
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enqueueReflectiveMember(element, true);
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}
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}
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void processSet(
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Map<String, Set<Element>> map,
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String memberName,
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bool f(Element e)) {
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Set<Element> members = map[memberName];
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if (members == null) return;
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// [f] might add elements to [: map[memberName] :] during the loop below
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// so we create a new list for [: map[memberName] :] and prepend the
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// [remaining] members after the loop.
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map[memberName] = new Set<Element>();
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Set<Element> remaining = new Set<Element>();
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for (Element member in members) {
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if (!f(member)) remaining.add(member);
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}
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map[memberName].addAll(remaining);
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}
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processInstanceMembers(String n, bool f(Element e)) {
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processSet(instanceMembersByName, n, f);
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}
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|
|
processInstanceFunctions(String n, bool f(Element e)) {
|
|
processSet(instanceFunctionsByName, n, f);
|
|
}
|
|
|
|
void handleUnseenSelector(String methodName, Selector selector) {
|
|
processInstanceMembers(methodName, (Element member) {
|
|
if (selector.appliesUnnamed(member, compiler.world)) {
|
|
if (member.isFunction && selector.isGetter) {
|
|
registerClosurizedMember(member, compiler.globalDependencies);
|
|
}
|
|
if (member.isField && member.enclosingClass.isNative) {
|
|
if (selector.isGetter || selector.isCall) {
|
|
nativeEnqueuer.registerFieldLoad(member);
|
|
// We have to also handle storing to the field because we only get
|
|
// one look at each member and there might be a store we have not
|
|
// seen yet.
|
|
// TODO(sra): Process fields for storing separately.
|
|
nativeEnqueuer.registerFieldStore(member);
|
|
} else {
|
|
assert(selector.isSetter);
|
|
nativeEnqueuer.registerFieldStore(member);
|
|
// We have to also handle loading from the field because we only get
|
|
// one look at each member and there might be a load we have not
|
|
// seen yet.
|
|
// TODO(sra): Process fields for storing separately.
|
|
nativeEnqueuer.registerFieldLoad(member);
|
|
}
|
|
}
|
|
addToWorkList(member);
|
|
return true;
|
|
}
|
|
return false;
|
|
});
|
|
if (selector.isGetter) {
|
|
processInstanceFunctions(methodName, (Element member) {
|
|
if (selector.appliesUnnamed(member, compiler.world)) {
|
|
registerClosurizedMember(member, compiler.globalDependencies);
|
|
return true;
|
|
}
|
|
return false;
|
|
});
|
|
}
|
|
}
|
|
|
|
/**
|
|
* Documentation wanted -- johnniwinther
|
|
*
|
|
* Invariant: [element] must be a declaration element.
|
|
*/
|
|
void registerStaticUse(Element element) {
|
|
if (element == null) return;
|
|
assert(invariant(element, element.isDeclaration,
|
|
message: "Element ${element} is not the declaration."));
|
|
if (Elements.isStaticOrTopLevel(element) && element.isField) {
|
|
universe.registerStaticFieldUse(element);
|
|
}
|
|
addToWorkList(element);
|
|
compiler.backend.registerStaticUse(element, this);
|
|
}
|
|
|
|
void registerGetOfStaticFunction(FunctionElement element) {
|
|
registerStaticUse(element);
|
|
compiler.backend.registerGetOfStaticFunction(this);
|
|
universe.staticFunctionsNeedingGetter.add(element);
|
|
}
|
|
|
|
void registerDynamicInvocation(Selector selector) {
|
|
assert(selector != null);
|
|
registerInvocation(selector);
|
|
}
|
|
|
|
void registerSelectorUse(Selector selector) {
|
|
if (selector.isGetter) {
|
|
registerInvokedGetter(selector);
|
|
} else if (selector.isSetter) {
|
|
registerInvokedSetter(selector);
|
|
} else {
|
|
registerInvocation(selector);
|
|
}
|
|
}
|
|
|
|
void registerDynamicGetter(Selector selector) {
|
|
registerInvokedGetter(selector);
|
|
}
|
|
|
|
void registerDynamicSetter(Selector selector) {
|
|
registerInvokedSetter(selector);
|
|
}
|
|
|
|
void registerGetterForSuperMethod(Element element) {
|
|
universe.methodsNeedingSuperGetter.add(element);
|
|
}
|
|
|
|
void registerFieldGetter(Element element) {
|
|
universe.fieldGetters.add(element);
|
|
}
|
|
|
|
void registerFieldSetter(Element element) {
|
|
universe.fieldSetters.add(element);
|
|
}
|
|
|
|
void registerIsCheck(DartType type) {
|
|
type = universe.registerIsCheck(type, compiler);
|
|
// Even in checked mode, type annotations for return type and argument
|
|
// types do not imply type checks, so there should never be a check
|
|
// against the type variable of a typedef.
|
|
assert(type.kind != TypeKind.TYPE_VARIABLE ||
|
|
!type.element.enclosingElement.isTypedef);
|
|
}
|
|
|
|
void registerCallMethodWithFreeTypeVariables(
|
|
Element element,
|
|
Registry registry) {
|
|
compiler.backend.registerCallMethodWithFreeTypeVariables(
|
|
element, this, registry);
|
|
universe.callMethodsWithFreeTypeVariables.add(element);
|
|
}
|
|
|
|
void registerClosurizedMember(TypedElement element, Registry registry) {
|
|
assert(element.isInstanceMember);
|
|
registerClosureIfFreeTypeVariables(element, registry);
|
|
compiler.backend.registerBoundClosure(this);
|
|
universe.closurizedMembers.add(element);
|
|
}
|
|
|
|
void registerClosureIfFreeTypeVariables(TypedElement element,
|
|
Registry registry) {
|
|
if (element.computeType(compiler).containsTypeVariables) {
|
|
compiler.backend.registerClosureWithFreeTypeVariables(
|
|
element, this, registry);
|
|
universe.closuresWithFreeTypeVariables.add(element);
|
|
}
|
|
}
|
|
|
|
void registerClosure(LocalFunctionElement element, Registry registry) {
|
|
universe.allClosures.add(element);
|
|
registerClosureIfFreeTypeVariables(element, registry);
|
|
}
|
|
|
|
void forEach(void f(WorkItem work)) {
|
|
do {
|
|
while (queue.isNotEmpty) {
|
|
// TODO(johnniwinther): Find an optimal process order.
|
|
filter.processWorkItem(f, queue.removeLast());
|
|
}
|
|
List recents = recentClasses.toList(growable: false);
|
|
recentClasses.clear();
|
|
if (!onQueueEmpty(recents)) recentClasses.addAll(recents);
|
|
} while (queue.isNotEmpty || recentClasses.isNotEmpty);
|
|
}
|
|
|
|
/// [onQueueEmpty] is called whenever the queue is drained. [recentClasses]
|
|
/// contains the set of all classes seen for the first time since
|
|
/// [onQueueEmpty] was called last. A return value of [true] indicates that
|
|
/// the [recentClasses] have been processed and may be cleared. If [false] is
|
|
/// returned, [onQueueEmpty] will be called once the queue is empty again (or
|
|
/// still empty) and [recentClasses] will be a superset of the current value.
|
|
bool onQueueEmpty(Iterable<ClassElement> recentClasses) {
|
|
return compiler.backend.onQueueEmpty(this, recentClasses);
|
|
}
|
|
|
|
void logSummary(log(message)) {
|
|
_logSpecificSummary(log);
|
|
nativeEnqueuer.logSummary(log);
|
|
}
|
|
|
|
/// Log summary specific to the concrete enqueuer.
|
|
void _logSpecificSummary(log(message));
|
|
|
|
String toString() => 'Enqueuer($name)';
|
|
|
|
void forgetElement(Element element) {
|
|
universe.forgetElement(element, compiler);
|
|
_processedClasses.remove(element);
|
|
}
|
|
}
|
|
|
|
/// [Enqueuer] which is specific to resolution.
|
|
class ResolutionEnqueuer extends Enqueuer {
|
|
/**
|
|
* Map from declaration elements to the [TreeElements] object holding the
|
|
* resolution mapping for the element implementation.
|
|
*
|
|
* Invariant: Key elements are declaration elements.
|
|
*/
|
|
final Set<AstElement> resolvedElements;
|
|
|
|
final Queue<ResolutionWorkItem> queue;
|
|
|
|
/**
|
|
* A deferred task queue for the resolution phase which is processed
|
|
* when the resolution queue has been emptied.
|
|
*/
|
|
final Queue<DeferredTask> deferredTaskQueue;
|
|
|
|
ResolutionEnqueuer(Compiler compiler,
|
|
ItemCompilationContext itemCompilationContextCreator())
|
|
: super('resolution enqueuer', compiler, itemCompilationContextCreator),
|
|
resolvedElements = new Set<AstElement>(),
|
|
queue = new Queue<ResolutionWorkItem>(),
|
|
deferredTaskQueue = new Queue<DeferredTask>();
|
|
|
|
bool get isResolutionQueue => true;
|
|
|
|
bool isProcessed(Element member) => resolvedElements.contains(member);
|
|
|
|
/// Returns `true` if [element] has been processed by the resolution enqueuer.
|
|
bool hasBeenResolved(Element element) {
|
|
return resolvedElements.contains(element.analyzableElement.declaration);
|
|
}
|
|
|
|
/// Registers [element] as resolved for the resolution enqueuer.
|
|
void registerResolvedElement(AstElement element) {
|
|
resolvedElements.add(element);
|
|
}
|
|
|
|
/**
|
|
* Decides whether an element should be included to satisfy requirements
|
|
* of the mirror system.
|
|
*
|
|
* During resolution, we have to resort to matching elements against the
|
|
* [MirrorsUsed] pattern, as we do not have a complete picture of the world,
|
|
* yet.
|
|
*/
|
|
bool shouldIncludeElementDueToMirrors(Element element,
|
|
{bool includedEnclosing}) {
|
|
return includedEnclosing || compiler.backend.requiredByMirrorSystem(element);
|
|
}
|
|
|
|
bool internalAddToWorkList(Element element) {
|
|
if (element.isErroneous) return false;
|
|
assert(invariant(element, element is AnalyzableElement,
|
|
message: 'Element $element is not analyzable.'));
|
|
if (hasBeenResolved(element)) return false;
|
|
if (queueIsClosed) {
|
|
throw new SpannableAssertionFailure(element,
|
|
"Resolution work list is closed. Trying to add $element.");
|
|
}
|
|
|
|
compiler.world.registerUsedElement(element);
|
|
|
|
queue.add(new ResolutionWorkItem(element, itemCompilationContextCreator()));
|
|
|
|
// Enable isolate support if we start using something from the isolate
|
|
// library, or timers for the async library. We exclude constant fields,
|
|
// which are ending here because their initializing expression is compiled.
|
|
LibraryElement library = element.library;
|
|
if (!compiler.hasIsolateSupport &&
|
|
(!element.isField || !element.isConst)) {
|
|
String uri = library.canonicalUri.toString();
|
|
if (uri == 'dart:isolate') {
|
|
enableIsolateSupport();
|
|
} else if (uri == 'dart:async') {
|
|
if (element.name == '_createTimer' ||
|
|
element.name == '_createPeriodicTimer') {
|
|
// The [:Timer:] class uses the event queue of the isolate
|
|
// library, so we make sure that event queue is generated.
|
|
enableIsolateSupport();
|
|
}
|
|
}
|
|
}
|
|
|
|
if (element.isGetter && element.name == Compiler.RUNTIME_TYPE) {
|
|
// Enable runtime type support if we discover a getter called runtimeType.
|
|
// We have to enable runtime type before hitting the codegen, so
|
|
// that constructors know whether they need to generate code for
|
|
// runtime type.
|
|
compiler.enabledRuntimeType = true;
|
|
// TODO(ahe): Record precise dependency here.
|
|
compiler.backend.registerRuntimeType(this, compiler.globalDependencies);
|
|
} else if (element == compiler.functionApplyMethod) {
|
|
compiler.enabledFunctionApply = true;
|
|
}
|
|
|
|
nativeEnqueuer.registerElement(element);
|
|
return true;
|
|
}
|
|
|
|
void registerNoSuchMethod(Element element) {
|
|
compiler.backend.registerNoSuchMethod(element);
|
|
}
|
|
|
|
void enableIsolateSupport() {
|
|
compiler.hasIsolateSupport = true;
|
|
compiler.backend.enableIsolateSupport(this);
|
|
}
|
|
|
|
/**
|
|
* Adds an action to the deferred task queue.
|
|
*
|
|
* The action is performed the next time the resolution queue has been
|
|
* emptied.
|
|
*
|
|
* The queue is processed in FIFO order.
|
|
*/
|
|
void addDeferredAction(Element element, DeferredAction action) {
|
|
if (queueIsClosed) {
|
|
throw new SpannableAssertionFailure(element,
|
|
"Resolution work list is closed. "
|
|
"Trying to add deferred action for $element");
|
|
}
|
|
deferredTaskQueue.add(new DeferredTask(element, action));
|
|
}
|
|
|
|
bool onQueueEmpty(Iterable<ClassElement> recentClasses) {
|
|
emptyDeferredTaskQueue();
|
|
return super.onQueueEmpty(recentClasses);
|
|
}
|
|
|
|
void emptyDeferredTaskQueue() {
|
|
while (!deferredTaskQueue.isEmpty) {
|
|
DeferredTask task = deferredTaskQueue.removeFirst();
|
|
compiler.withCurrentElement(task.element, task.action);
|
|
}
|
|
}
|
|
|
|
void registerJsCall(Send node, ResolverVisitor resolver) {
|
|
nativeEnqueuer.registerJsCall(node, resolver);
|
|
}
|
|
|
|
void registerJsEmbeddedGlobalCall(Send node, ResolverVisitor resolver) {
|
|
nativeEnqueuer.registerJsEmbeddedGlobalCall(node, resolver);
|
|
}
|
|
|
|
void registerJsBuiltinCall(Send node, ResolverVisitor resolver) {
|
|
nativeEnqueuer.registerJsBuiltinCall(node, resolver);
|
|
}
|
|
|
|
void _logSpecificSummary(log(message)) {
|
|
log('Resolved ${resolvedElements.length} elements.');
|
|
}
|
|
|
|
void forgetElement(Element element) {
|
|
super.forgetElement(element);
|
|
resolvedElements.remove(element);
|
|
}
|
|
}
|
|
|
|
/// [Enqueuer] which is specific to code generation.
|
|
class CodegenEnqueuer extends Enqueuer {
|
|
final Queue<CodegenWorkItem> queue;
|
|
final Map<Element, js.Expression> generatedCode =
|
|
new Map<Element, js.Expression>();
|
|
|
|
final Set<Element> newlyEnqueuedElements;
|
|
|
|
final Set<Selector> newlySeenSelectors;
|
|
|
|
bool enabledNoSuchMethod = false;
|
|
|
|
CodegenEnqueuer(Compiler compiler,
|
|
ItemCompilationContext itemCompilationContextCreator())
|
|
: queue = new Queue<CodegenWorkItem>(),
|
|
newlyEnqueuedElements = compiler.cacheStrategy.newSet(),
|
|
newlySeenSelectors = compiler.cacheStrategy.newSet(),
|
|
super('codegen enqueuer', compiler, itemCompilationContextCreator);
|
|
|
|
bool isProcessed(Element member) =>
|
|
member.isAbstract || generatedCode.containsKey(member);
|
|
|
|
/**
|
|
* Decides whether an element should be included to satisfy requirements
|
|
* of the mirror system.
|
|
*
|
|
* For code generation, we rely on the precomputed set of elements that takes
|
|
* subtyping constraints into account.
|
|
*/
|
|
bool shouldIncludeElementDueToMirrors(Element element,
|
|
{bool includedEnclosing}) {
|
|
return compiler.backend.isAccessibleByReflection(element);
|
|
}
|
|
|
|
bool internalAddToWorkList(Element element) {
|
|
// Don't generate code for foreign elements.
|
|
if (compiler.backend.isForeign(element)) return false;
|
|
|
|
// Codegen inlines field initializers. It only needs to generate
|
|
// code for checked setters.
|
|
if (element.isField && element.isInstanceMember) {
|
|
if (!compiler.enableTypeAssertions
|
|
|| element.enclosingElement.isClosure) {
|
|
return false;
|
|
}
|
|
}
|
|
|
|
if (compiler.hasIncrementalSupport && !isProcessed(element)) {
|
|
newlyEnqueuedElements.add(element);
|
|
}
|
|
|
|
if (queueIsClosed) {
|
|
throw new SpannableAssertionFailure(element,
|
|
"Codegen work list is closed. Trying to add $element");
|
|
}
|
|
CodegenWorkItem workItem = new CodegenWorkItem(
|
|
compiler, element, itemCompilationContextCreator());
|
|
queue.add(workItem);
|
|
return true;
|
|
}
|
|
|
|
void registerNoSuchMethod(Element element) {
|
|
if (!enabledNoSuchMethod && compiler.backend.enabledNoSuchMethod) {
|
|
compiler.backend.enableNoSuchMethod(this);
|
|
enabledNoSuchMethod = true;
|
|
}
|
|
}
|
|
|
|
void _logSpecificSummary(log(message)) {
|
|
log('Compiled ${generatedCode.length} methods.');
|
|
}
|
|
|
|
void forgetElement(Element element) {
|
|
super.forgetElement(element);
|
|
generatedCode.remove(element);
|
|
if (element is MemberElement) {
|
|
for (Element closure in element.nestedClosures) {
|
|
generatedCode.remove(closure);
|
|
removeFromSet(instanceMembersByName, closure);
|
|
removeFromSet(instanceFunctionsByName, closure);
|
|
}
|
|
}
|
|
}
|
|
|
|
void handleUnseenSelector(String methodName, Selector selector) {
|
|
if (compiler.hasIncrementalSupport) {
|
|
newlySeenSelectors.add(selector);
|
|
}
|
|
super.handleUnseenSelector(methodName, selector);
|
|
}
|
|
}
|
|
|
|
/// Parameterizes filtering of which work items are enqueued.
|
|
class QueueFilter {
|
|
bool checkNoEnqueuedInvokedInstanceMethods(Enqueuer enqueuer) {
|
|
enqueuer.task.measure(() {
|
|
// Run through the classes and see if we need to compile methods.
|
|
for (ClassElement classElement in
|
|
enqueuer.universe.directlyInstantiatedClasses) {
|
|
for (ClassElement currentClass = classElement;
|
|
currentClass != null;
|
|
currentClass = currentClass.superclass) {
|
|
enqueuer.processInstantiatedClassMembers(currentClass);
|
|
}
|
|
}
|
|
});
|
|
return true;
|
|
}
|
|
|
|
void processWorkItem(void f(WorkItem work), WorkItem work) {
|
|
f(work);
|
|
}
|
|
}
|
|
|
|
void removeFromSet(Map<String, Set<Element>> map, Element element) {
|
|
Set<Element> set = map[element.name];
|
|
if (set == null) return;
|
|
set.remove(element);
|
|
}
|