ef3b0ec567
Reviewed-by: kbarrett, coleenp
375 lines
12 KiB
C++
375 lines
12 KiB
C++
/*
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* Copyright (c) 1997, 2019, Oracle and/or its affiliates. All rights reserved.
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* DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
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*
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* This code is free software; you can redistribute it and/or modify it
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* under the terms of the GNU General Public License version 2 only, as
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* published by the Free Software Foundation.
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*
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* This code is distributed in the hope that it will be useful, but WITHOUT
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* ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
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* FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
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* version 2 for more details (a copy is included in the LICENSE file that
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* accompanied this code).
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*
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* You should have received a copy of the GNU General Public License version
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* 2 along with this work; if not, write to the Free Software Foundation,
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* Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
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*
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* Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
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* or visit www.oracle.com if you need additional information or have any
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* questions.
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*
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*/
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#ifndef SHARE_MEMORY_ITERATOR_HPP
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#define SHARE_MEMORY_ITERATOR_HPP
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#include "memory/allocation.hpp"
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#include "memory/memRegion.hpp"
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#include "oops/oopsHierarchy.hpp"
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class CodeBlob;
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class nmethod;
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class ReferenceDiscoverer;
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class DataLayout;
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class KlassClosure;
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class ClassLoaderData;
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class Symbol;
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class Metadata;
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class Thread;
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// The following classes are C++ `closures` for iterating over objects, roots and spaces
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class Closure : public StackObj { };
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// Thread iterator
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class ThreadClosure: public Closure {
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public:
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virtual void do_thread(Thread* thread) = 0;
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};
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// OopClosure is used for iterating through references to Java objects.
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class OopClosure : public Closure {
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public:
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virtual void do_oop(oop* o) = 0;
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virtual void do_oop(narrowOop* o) = 0;
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};
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class DoNothingClosure : public OopClosure {
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public:
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virtual void do_oop(oop* p) {}
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virtual void do_oop(narrowOop* p) {}
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};
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extern DoNothingClosure do_nothing_cl;
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// OopIterateClosure adds extra code to be run during oop iterations.
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// This is needed by the GC and is extracted to a separate type to not
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// pollute the OopClosure interface.
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class OopIterateClosure : public OopClosure {
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private:
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ReferenceDiscoverer* _ref_discoverer;
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protected:
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OopIterateClosure(ReferenceDiscoverer* rd) : _ref_discoverer(rd) { }
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OopIterateClosure() : _ref_discoverer(NULL) { }
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~OopIterateClosure() { }
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void set_ref_discoverer_internal(ReferenceDiscoverer* rd) { _ref_discoverer = rd; }
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public:
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ReferenceDiscoverer* ref_discoverer() const { return _ref_discoverer; }
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// Iteration of InstanceRefKlasses differ depending on the closure,
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// the below enum describes the different alternatives.
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enum ReferenceIterationMode {
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DO_DISCOVERY, // Apply closure and discover references
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DO_DISCOVERED_AND_DISCOVERY, // Apply closure to discovered field and do discovery
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DO_FIELDS, // Apply closure to all fields
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DO_FIELDS_EXCEPT_REFERENT // Apply closure to all fields except the referent field
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};
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// The default iteration mode is to do discovery.
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virtual ReferenceIterationMode reference_iteration_mode() { return DO_DISCOVERY; }
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// If the do_metadata functions return "true",
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// we invoke the following when running oop_iterate():
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//
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// 1) do_klass on the header klass pointer.
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// 2) do_klass on the klass pointer in the mirrors.
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// 3) do_cld on the class loader data in class loaders.
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virtual bool do_metadata() = 0;
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virtual void do_klass(Klass* k) = 0;
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virtual void do_cld(ClassLoaderData* cld) = 0;
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#ifdef ASSERT
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// Default verification of each visited oop field.
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template <typename T> void verify(T* p);
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// Can be used by subclasses to turn off the default verification of oop fields.
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virtual bool should_verify_oops() { return true; }
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#endif
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};
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// An OopIterateClosure that can be used when there's no need to visit the Metadata.
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class BasicOopIterateClosure : public OopIterateClosure {
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public:
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BasicOopIterateClosure(ReferenceDiscoverer* rd = NULL) : OopIterateClosure(rd) {}
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virtual bool do_metadata() { return false; }
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virtual void do_klass(Klass* k) { ShouldNotReachHere(); }
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virtual void do_cld(ClassLoaderData* cld) { ShouldNotReachHere(); }
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};
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class KlassClosure : public Closure {
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public:
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virtual void do_klass(Klass* k) = 0;
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};
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class CLDClosure : public Closure {
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public:
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virtual void do_cld(ClassLoaderData* cld) = 0;
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};
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class MetadataClosure : public Closure {
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public:
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virtual void do_metadata(Metadata* md) = 0;
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};
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class CLDToOopClosure : public CLDClosure {
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OopClosure* _oop_closure;
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int _cld_claim;
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public:
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CLDToOopClosure(OopClosure* oop_closure,
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int cld_claim) :
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_oop_closure(oop_closure),
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_cld_claim(cld_claim) {}
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void do_cld(ClassLoaderData* cld);
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};
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class ClaimMetadataVisitingOopIterateClosure : public OopIterateClosure {
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protected:
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const int _claim;
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public:
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ClaimMetadataVisitingOopIterateClosure(int claim, ReferenceDiscoverer* rd = NULL) :
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OopIterateClosure(rd),
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_claim(claim) { }
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virtual bool do_metadata() { return true; }
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virtual void do_klass(Klass* k);
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virtual void do_cld(ClassLoaderData* cld);
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};
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// The base class for all concurrent marking closures,
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// that participates in class unloading.
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// It's used to proxy through the metadata to the oops defined in them.
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class MetadataVisitingOopIterateClosure: public ClaimMetadataVisitingOopIterateClosure {
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public:
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MetadataVisitingOopIterateClosure(ReferenceDiscoverer* rd = NULL);
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};
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// ObjectClosure is used for iterating through an object space
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class ObjectClosure : public Closure {
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public:
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// Called for each object.
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virtual void do_object(oop obj) = 0;
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};
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class BoolObjectClosure : public Closure {
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public:
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virtual bool do_object_b(oop obj) = 0;
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};
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class AlwaysTrueClosure: public BoolObjectClosure {
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public:
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bool do_object_b(oop p) { return true; }
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};
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class AlwaysFalseClosure : public BoolObjectClosure {
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public:
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bool do_object_b(oop p) { return false; }
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};
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// Applies an oop closure to all ref fields in objects iterated over in an
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// object iteration.
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class ObjectToOopClosure: public ObjectClosure {
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OopIterateClosure* _cl;
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public:
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void do_object(oop obj);
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ObjectToOopClosure(OopIterateClosure* cl) : _cl(cl) {}
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};
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// SpaceClosure is used for iterating over spaces
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class Space;
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class CompactibleSpace;
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class SpaceClosure : public StackObj {
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public:
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// Called for each space
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virtual void do_space(Space* s) = 0;
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};
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class CompactibleSpaceClosure : public StackObj {
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public:
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// Called for each compactible space
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virtual void do_space(CompactibleSpace* s) = 0;
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};
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// CodeBlobClosure is used for iterating through code blobs
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// in the code cache or on thread stacks
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class CodeBlobClosure : public Closure {
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public:
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// Called for each code blob.
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virtual void do_code_blob(CodeBlob* cb) = 0;
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};
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// Applies an oop closure to all ref fields in code blobs
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// iterated over in an object iteration.
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class CodeBlobToOopClosure : public CodeBlobClosure {
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OopClosure* _cl;
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bool _fix_relocations;
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protected:
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void do_nmethod(nmethod* nm);
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public:
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// If fix_relocations(), then cl must copy objects to their new location immediately to avoid
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// patching nmethods with the old locations.
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CodeBlobToOopClosure(OopClosure* cl, bool fix_relocations) : _cl(cl), _fix_relocations(fix_relocations) {}
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virtual void do_code_blob(CodeBlob* cb);
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bool fix_relocations() const { return _fix_relocations; }
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const static bool FixRelocations = true;
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};
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class MarkingCodeBlobClosure : public CodeBlobToOopClosure {
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public:
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MarkingCodeBlobClosure(OopClosure* cl, bool fix_relocations) : CodeBlobToOopClosure(cl, fix_relocations) {}
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// Called for each code blob, but at most once per unique blob.
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virtual void do_code_blob(CodeBlob* cb);
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};
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class NMethodClosure : public Closure {
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public:
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virtual void do_nmethod(nmethod* n) = 0;
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};
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// MonitorClosure is used for iterating over monitors in the monitors cache
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class ObjectMonitor;
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class MonitorClosure : public StackObj {
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public:
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// called for each monitor in cache
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virtual void do_monitor(ObjectMonitor* m) = 0;
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};
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// A closure that is applied without any arguments.
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class VoidClosure : public StackObj {
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public:
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// I would have liked to declare this a pure virtual, but that breaks
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// in mysterious ways, for unknown reasons.
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virtual void do_void();
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};
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// YieldClosure is intended for use by iteration loops
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// to incrementalize their work, allowing interleaving
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// of an interruptable task so as to allow other
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// threads to run (which may not otherwise be able to access
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// exclusive resources, for instance). Additionally, the
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// closure also allows for aborting an ongoing iteration
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// by means of checking the return value from the polling
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// call.
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class YieldClosure : public StackObj {
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public:
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virtual bool should_return() = 0;
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// Yield on a fine-grain level. The check in case of not yielding should be very fast.
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virtual bool should_return_fine_grain() { return false; }
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};
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// Abstract closure for serializing data (read or write).
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class SerializeClosure : public Closure {
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public:
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// Return bool indicating whether closure implements read or write.
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virtual bool reading() const = 0;
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// Read/write the void pointer pointed to by p.
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virtual void do_ptr(void** p) = 0;
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// Read/write the 32-bit unsigned integer pointed to by p.
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virtual void do_u4(u4* p) = 0;
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// Read/write the bool pointed to by p.
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virtual void do_bool(bool* p) = 0;
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// Read/write the region specified.
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virtual void do_region(u_char* start, size_t size) = 0;
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// Check/write the tag. If reading, then compare the tag against
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// the passed in value and fail is they don't match. This allows
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// for verification that sections of the serialized data are of the
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// correct length.
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virtual void do_tag(int tag) = 0;
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// Read/write the oop
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virtual void do_oop(oop* o) = 0;
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bool writing() {
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return !reading();
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}
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};
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class SymbolClosure : public StackObj {
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public:
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virtual void do_symbol(Symbol**) = 0;
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// Clear LSB in symbol address; it can be set by CPSlot.
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static Symbol* load_symbol(Symbol** p) {
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return (Symbol*)(intptr_t(*p) & ~1);
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}
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// Store symbol, adjusting new pointer if the original pointer was adjusted
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// (symbol references in constant pool slots have their LSB set to 1).
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static void store_symbol(Symbol** p, Symbol* sym) {
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*p = (Symbol*)(intptr_t(sym) | (intptr_t(*p) & 1));
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}
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};
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template <typename E>
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class CompareClosure : public Closure {
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public:
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virtual int do_compare(const E&, const E&) = 0;
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};
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// Dispatches to the non-virtual functions if OopClosureType has
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// a concrete implementation, otherwise a virtual call is taken.
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class Devirtualizer {
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public:
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template <typename OopClosureType, typename T> static void do_oop_no_verify(OopClosureType* closure, T* p);
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template <typename OopClosureType, typename T> static void do_oop(OopClosureType* closure, T* p);
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template <typename OopClosureType> static void do_klass(OopClosureType* closure, Klass* k);
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template <typename OopClosureType> static void do_cld(OopClosureType* closure, ClassLoaderData* cld);
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template <typename OopClosureType> static bool do_metadata(OopClosureType* closure);
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};
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class OopIteratorClosureDispatch {
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public:
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template <typename OopClosureType> static void oop_oop_iterate(OopClosureType* cl, oop obj, Klass* klass);
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template <typename OopClosureType> static void oop_oop_iterate(OopClosureType* cl, oop obj, Klass* klass, MemRegion mr);
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template <typename OopClosureType> static void oop_oop_iterate_backwards(OopClosureType* cl, oop obj, Klass* klass);
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};
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#endif // SHARE_MEMORY_ITERATOR_HPP
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