2007-12-01 00:00:00 +00:00
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/*
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2010-05-27 19:08:38 -07:00
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* Copyright (c) 1997, 2009, Oracle and/or its affiliates. All rights reserved.
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2007-12-01 00:00:00 +00:00
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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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2010-05-27 19:08:38 -07:00
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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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2007-12-01 00:00:00 +00:00
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*
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*/
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// The following classes are used for operations
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// initiated by a Java thread but that must
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// take place in the VMThread.
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#define VM_OP_ENUM(type) VMOp_##type,
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// Note: When new VM_XXX comes up, add 'XXX' to the template table.
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#define VM_OPS_DO(template) \
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template(Dummy) \
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template(ThreadStop) \
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template(ThreadDump) \
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template(PrintThreads) \
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template(FindDeadlocks) \
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template(ForceSafepoint) \
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template(ForceAsyncSafepoint) \
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template(Deoptimize) \
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template(DeoptimizeFrame) \
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template(DeoptimizeAll) \
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template(ZombieAll) \
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2010-01-29 09:27:22 -08:00
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template(HandleFullCodeCache) \
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2007-12-01 00:00:00 +00:00
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template(Verify) \
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template(PrintJNI) \
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template(HeapDumper) \
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template(DeoptimizeTheWorld) \
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template(GC_HeapInspection) \
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template(GenCollectFull) \
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template(GenCollectFullConcurrent) \
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template(GenCollectForAllocation) \
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2008-04-01 15:13:47 +04:00
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template(GenCollectForPermanentAllocation) \
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2007-12-01 00:00:00 +00:00
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template(ParallelGCFailedAllocation) \
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template(ParallelGCFailedPermanentAllocation) \
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template(ParallelGCSystemGC) \
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2008-06-05 15:57:56 -07:00
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template(CGC_Operation) \
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2007-12-01 00:00:00 +00:00
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template(CMS_Initial_Mark) \
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template(CMS_Final_Remark) \
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2008-06-05 15:57:56 -07:00
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template(G1CollectFull) \
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template(G1CollectForAllocation) \
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template(G1IncCollectionPause) \
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2007-12-01 00:00:00 +00:00
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template(EnableBiasedLocking) \
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template(RevokeBias) \
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template(BulkRevokeBias) \
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template(PopulateDumpSharedSpace) \
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template(JNIFunctionTableCopier) \
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template(RedefineClasses) \
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template(GetOwnedMonitorInfo) \
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template(GetObjectMonitorUsage) \
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template(GetCurrentContendedMonitor) \
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template(GetStackTrace) \
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template(GetMultipleStackTraces) \
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template(GetAllStackTraces) \
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template(GetThreadListStackTraces) \
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template(GetFrameCount) \
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template(GetFrameLocation) \
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template(ChangeBreakpoints) \
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template(GetOrSetLocal) \
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template(GetCurrentLocation) \
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template(EnterInterpOnlyMode) \
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template(ChangeSingleStep) \
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template(HeapWalkOperation) \
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template(HeapIterateOperation) \
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template(ReportJavaOutOfMemory) \
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template(Exit) \
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class VM_Operation: public CHeapObj {
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public:
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enum Mode {
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_safepoint, // blocking, safepoint, vm_op C-heap allocated
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_no_safepoint, // blocking, no safepoint, vm_op C-Heap allocated
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_concurrent, // non-blocking, no safepoint, vm_op C-Heap allocated
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_async_safepoint // non-blocking, safepoint, vm_op C-Heap allocated
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};
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enum VMOp_Type {
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VM_OPS_DO(VM_OP_ENUM)
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VMOp_Terminating
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};
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private:
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Thread* _calling_thread;
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ThreadPriority _priority;
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long _timestamp;
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VM_Operation* _next;
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VM_Operation* _prev;
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// The VM operation name array
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static const char* _names[];
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public:
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VM_Operation() { _calling_thread = NULL; _next = NULL; _prev = NULL; }
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virtual ~VM_Operation() {}
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// VM operation support (used by VM thread)
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Thread* calling_thread() const { return _calling_thread; }
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ThreadPriority priority() { return _priority; }
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void set_calling_thread(Thread* thread, ThreadPriority priority);
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long timestamp() const { return _timestamp; }
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void set_timestamp(long timestamp) { _timestamp = timestamp; }
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// Called by VM thread - does in turn invoke doit(). Do not override this
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void evaluate();
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// evaluate() is called by the VMThread and in turn calls doit().
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// If the thread invoking VMThread::execute((VM_Operation*) is a JavaThread,
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// doit_prologue() is called in that thread before transferring control to
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// the VMThread.
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// If doit_prologue() returns true the VM operation will proceed, and
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// doit_epilogue() will be called by the JavaThread once the VM operation
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// completes. If doit_prologue() returns false the VM operation is cancelled.
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virtual void doit() = 0;
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virtual bool doit_prologue() { return true; };
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virtual void doit_epilogue() {}; // Note: Not called if mode is: _concurrent
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// Type test
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virtual bool is_methodCompiler() const { return false; }
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// Linking
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VM_Operation *next() const { return _next; }
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VM_Operation *prev() const { return _prev; }
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void set_next(VM_Operation *next) { _next = next; }
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void set_prev(VM_Operation *prev) { _prev = prev; }
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// Configuration. Override these appropriatly in subclasses.
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virtual VMOp_Type type() const = 0;
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virtual Mode evaluation_mode() const { return _safepoint; }
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virtual bool allow_nested_vm_operations() const { return false; }
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virtual bool is_cheap_allocated() const { return false; }
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virtual void oops_do(OopClosure* f) { /* do nothing */ };
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// CAUTION: <don't hang yourself with following rope>
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// If you override these methods, make sure that the evaluation
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// of these methods is race-free and non-blocking, since these
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// methods may be evaluated either by the mutators or by the
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// vm thread, either concurrently with mutators or with the mutators
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// stopped. In other words, taking locks is verboten, and if there
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// are any races in evaluating the conditions, they'd better be benign.
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virtual bool evaluate_at_safepoint() const {
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return evaluation_mode() == _safepoint ||
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evaluation_mode() == _async_safepoint;
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}
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virtual bool evaluate_concurrently() const {
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return evaluation_mode() == _concurrent ||
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evaluation_mode() == _async_safepoint;
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}
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// Debugging
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void print_on_error(outputStream* st) const;
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const char* name() const { return _names[type()]; }
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static const char* name(int type) {
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assert(type >= 0 && type < VMOp_Terminating, "invalid VM operation type");
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return _names[type];
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}
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#ifndef PRODUCT
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void print_on(outputStream* st) const { print_on_error(st); }
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#endif
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};
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class VM_ThreadStop: public VM_Operation {
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private:
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oop _thread; // The Thread that the Throwable is thrown against
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oop _throwable; // The Throwable thrown at the target Thread
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public:
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// All oops are passed as JNI handles, since there is no guarantee that a GC might happen before the
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// VM operation is executed.
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VM_ThreadStop(oop thread, oop throwable) {
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_thread = thread;
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_throwable = throwable;
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}
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VMOp_Type type() const { return VMOp_ThreadStop; }
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oop target_thread() const { return _thread; }
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oop throwable() const { return _throwable;}
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void doit();
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// We deoptimize if top-most frame is compiled - this might require a C2I adapter to be generated
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bool allow_nested_vm_operations() const { return true; }
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Mode evaluation_mode() const { return _async_safepoint; }
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bool is_cheap_allocated() const { return true; }
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// GC support
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void oops_do(OopClosure* f) {
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f->do_oop(&_thread); f->do_oop(&_throwable);
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}
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};
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// dummy vm op, evaluated just to force a safepoint
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class VM_ForceSafepoint: public VM_Operation {
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public:
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VM_ForceSafepoint() {}
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void doit() {}
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VMOp_Type type() const { return VMOp_ForceSafepoint; }
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};
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// dummy vm op, evaluated just to force a safepoint
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class VM_ForceAsyncSafepoint: public VM_Operation {
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public:
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VM_ForceAsyncSafepoint() {}
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void doit() {}
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VMOp_Type type() const { return VMOp_ForceAsyncSafepoint; }
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Mode evaluation_mode() const { return _async_safepoint; }
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bool is_cheap_allocated() const { return true; }
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};
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class VM_Deoptimize: public VM_Operation {
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public:
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VM_Deoptimize() {}
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VMOp_Type type() const { return VMOp_Deoptimize; }
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void doit();
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bool allow_nested_vm_operations() const { return true; }
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};
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class VM_DeoptimizeFrame: public VM_Operation {
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private:
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JavaThread* _thread;
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intptr_t* _id;
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public:
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VM_DeoptimizeFrame(JavaThread* thread, intptr_t* id);
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VMOp_Type type() const { return VMOp_DeoptimizeFrame; }
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void doit();
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bool allow_nested_vm_operations() const { return true; }
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};
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2010-01-29 09:27:22 -08:00
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class VM_HandleFullCodeCache: public VM_Operation {
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private:
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bool _is_full;
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public:
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VM_HandleFullCodeCache(bool is_full) { _is_full = is_full; }
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VMOp_Type type() const { return VMOp_HandleFullCodeCache; }
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void doit();
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bool allow_nested_vm_operations() const { return true; }
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};
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2007-12-01 00:00:00 +00:00
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#ifndef PRODUCT
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class VM_DeoptimizeAll: public VM_Operation {
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private:
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KlassHandle _dependee;
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public:
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VM_DeoptimizeAll() {}
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VMOp_Type type() const { return VMOp_DeoptimizeAll; }
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void doit();
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bool allow_nested_vm_operations() const { return true; }
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};
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class VM_ZombieAll: public VM_Operation {
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public:
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VM_ZombieAll() {}
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VMOp_Type type() const { return VMOp_ZombieAll; }
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void doit();
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bool allow_nested_vm_operations() const { return true; }
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};
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#endif // PRODUCT
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class VM_Verify: public VM_Operation {
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private:
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KlassHandle _dependee;
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public:
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VM_Verify() {}
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VMOp_Type type() const { return VMOp_Verify; }
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void doit();
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};
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class VM_PrintThreads: public VM_Operation {
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private:
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outputStream* _out;
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bool _print_concurrent_locks;
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public:
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VM_PrintThreads() { _out = tty; _print_concurrent_locks = PrintConcurrentLocks; }
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VM_PrintThreads(outputStream* out, bool print_concurrent_locks) { _out = out; _print_concurrent_locks = print_concurrent_locks; }
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VMOp_Type type() const { return VMOp_PrintThreads; }
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void doit();
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bool doit_prologue();
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void doit_epilogue();
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};
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class VM_PrintJNI: public VM_Operation {
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private:
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outputStream* _out;
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public:
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VM_PrintJNI() { _out = tty; }
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VM_PrintJNI(outputStream* out) { _out = out; }
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VMOp_Type type() const { return VMOp_PrintJNI; }
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void doit();
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};
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class DeadlockCycle;
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class VM_FindDeadlocks: public VM_Operation {
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private:
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bool _concurrent_locks;
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DeadlockCycle* _deadlocks;
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outputStream* _out;
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public:
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VM_FindDeadlocks(bool concurrent_locks) : _concurrent_locks(concurrent_locks), _out(NULL), _deadlocks(NULL) {};
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VM_FindDeadlocks(outputStream* st) : _concurrent_locks(true), _out(st), _deadlocks(NULL) {};
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~VM_FindDeadlocks();
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DeadlockCycle* result() { return _deadlocks; };
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VMOp_Type type() const { return VMOp_FindDeadlocks; }
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void doit();
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bool doit_prologue();
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};
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class ThreadDumpResult;
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class ThreadSnapshot;
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class ThreadConcurrentLocks;
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class VM_ThreadDump : public VM_Operation {
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private:
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ThreadDumpResult* _result;
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int _num_threads;
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GrowableArray<instanceHandle>* _threads;
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int _max_depth;
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bool _with_locked_monitors;
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bool _with_locked_synchronizers;
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ThreadSnapshot* snapshot_thread(JavaThread* java_thread, ThreadConcurrentLocks* tcl);
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public:
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VM_ThreadDump(ThreadDumpResult* result,
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int max_depth, // -1 indicates entire stack
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bool with_locked_monitors,
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bool with_locked_synchronizers);
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VM_ThreadDump(ThreadDumpResult* result,
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GrowableArray<instanceHandle>* threads,
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int num_threads, // -1 indicates entire stack
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int max_depth,
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bool with_locked_monitors,
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bool with_locked_synchronizers);
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VMOp_Type type() const { return VMOp_ThreadDump; }
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void doit();
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bool doit_prologue();
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void doit_epilogue();
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};
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class VM_Exit: public VM_Operation {
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private:
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int _exit_code;
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static volatile bool _vm_exited;
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static Thread * _shutdown_thread;
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static void wait_if_vm_exited();
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public:
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VM_Exit(int exit_code) {
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_exit_code = exit_code;
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}
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static int wait_for_threads_in_native_to_block();
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static int set_vm_exited();
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static bool vm_exited() { return _vm_exited; }
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static void block_if_vm_exited() {
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if (_vm_exited) {
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wait_if_vm_exited();
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}
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}
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VMOp_Type type() const { return VMOp_Exit; }
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void doit();
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};
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