fbafef11c0
Make MutexLocker be MutexLockerEx implementation, remove MutexLockerEx calls. Reviewed-by: dcubed, dholmes, pliden, rehn
351 lines
14 KiB
C++
351 lines
14 KiB
C++
/*
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* Copyright (c) 2011, 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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#include "precompiled.hpp"
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#include "gc/g1/g1CollectedHeap.inline.hpp"
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#include "gc/g1/g1MonitoringSupport.hpp"
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#include "gc/g1/g1Policy.hpp"
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#include "gc/g1/g1MemoryPool.hpp"
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#include "gc/shared/hSpaceCounters.hpp"
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#include "memory/metaspaceCounters.hpp"
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#include "services/memoryPool.hpp"
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class G1GenerationCounters : public GenerationCounters {
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protected:
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G1MonitoringSupport* _g1mm;
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public:
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G1GenerationCounters(G1MonitoringSupport* g1mm,
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const char* name, int ordinal, int spaces,
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size_t min_capacity, size_t max_capacity,
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size_t curr_capacity)
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: GenerationCounters(name, ordinal, spaces, min_capacity,
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max_capacity, curr_capacity), _g1mm(g1mm) { }
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};
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class G1YoungGenerationCounters : public G1GenerationCounters {
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public:
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// We pad the capacity three times given that the young generation
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// contains three spaces (eden and two survivors).
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G1YoungGenerationCounters(G1MonitoringSupport* g1mm, const char* name, size_t max_size)
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: G1GenerationCounters(g1mm, name, 0 /* ordinal */, 3 /* spaces */,
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G1MonitoringSupport::pad_capacity(0, 3) /* min_capacity */,
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G1MonitoringSupport::pad_capacity(max_size, 3),
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G1MonitoringSupport::pad_capacity(0, 3) /* curr_capacity */) {
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if (UsePerfData) {
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update_all();
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}
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}
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virtual void update_all() {
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size_t committed =
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G1MonitoringSupport::pad_capacity(_g1mm->young_gen_committed(), 3);
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_current_size->set_value(committed);
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}
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};
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class G1OldGenerationCounters : public G1GenerationCounters {
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public:
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G1OldGenerationCounters(G1MonitoringSupport* g1mm, const char* name, size_t max_size)
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: G1GenerationCounters(g1mm, name, 1 /* ordinal */, 1 /* spaces */,
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G1MonitoringSupport::pad_capacity(0) /* min_capacity */,
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G1MonitoringSupport::pad_capacity(max_size),
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G1MonitoringSupport::pad_capacity(0) /* curr_capacity */) {
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if (UsePerfData) {
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update_all();
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}
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}
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virtual void update_all() {
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size_t committed =
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G1MonitoringSupport::pad_capacity(_g1mm->old_gen_committed());
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_current_size->set_value(committed);
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}
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};
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G1MonitoringSupport::G1MonitoringSupport(G1CollectedHeap* g1h) :
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_g1h(g1h),
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_incremental_memory_manager("G1 Young Generation", "end of minor GC"),
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_full_gc_memory_manager("G1 Old Generation", "end of major GC"),
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_eden_space_pool(NULL),
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_survivor_space_pool(NULL),
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_old_gen_pool(NULL),
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_incremental_collection_counters(NULL),
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_full_collection_counters(NULL),
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_conc_collection_counters(NULL),
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_young_gen_counters(NULL),
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_old_gen_counters(NULL),
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_old_space_counters(NULL),
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_eden_space_counters(NULL),
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_from_space_counters(NULL),
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_to_space_counters(NULL),
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_overall_committed(0),
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_overall_used(0),
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_young_gen_committed(0),
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_old_gen_committed(0),
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_eden_space_committed(0),
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_eden_space_used(0),
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_survivor_space_committed(0),
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_survivor_space_used(0),
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_old_gen_used(0) {
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recalculate_sizes();
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// Counters for garbage collections
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//
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// name "collector.0". In a generational collector this would be the
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// young generation collection.
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_incremental_collection_counters =
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new CollectorCounters("G1 young collection pauses", 0);
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// name "collector.1". In a generational collector this would be the
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// old generation collection.
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_full_collection_counters =
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new CollectorCounters("G1 full collection pauses", 1);
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// name "collector.2". In a generational collector this would be the
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// STW phases in concurrent collection.
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_conc_collection_counters =
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new CollectorCounters("G1 concurrent cycle pauses", 2);
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// "Generation" and "Space" counters.
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//
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// name "generation.1" This is logically the old generation in
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// generational GC terms. The "1, 1" parameters are for
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// the n-th generation (=1) with 1 space.
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// Counters are created from minCapacity, maxCapacity, and capacity
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_old_gen_counters = new G1OldGenerationCounters(this, "old", _g1h->max_capacity());
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// name "generation.1.space.0"
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// Counters are created from maxCapacity, capacity, initCapacity,
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// and used.
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_old_space_counters = new HSpaceCounters(_old_gen_counters->name_space(),
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"space", 0 /* ordinal */,
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pad_capacity(g1h->max_capacity()) /* max_capacity */,
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pad_capacity(_old_gen_committed) /* init_capacity */);
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// Young collection set
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// name "generation.0". This is logically the young generation.
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// The "0, 3" are parameters for the n-th generation (=0) with 3 spaces.
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// See _old_collection_counters for additional counters
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_young_gen_counters = new G1YoungGenerationCounters(this, "young", _g1h->max_capacity());
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const char* young_collection_name_space = _young_gen_counters->name_space();
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// name "generation.0.space.0"
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// See _old_space_counters for additional counters
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_eden_space_counters = new HSpaceCounters(young_collection_name_space,
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"eden", 0 /* ordinal */,
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pad_capacity(g1h->max_capacity()) /* max_capacity */,
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pad_capacity(_eden_space_committed) /* init_capacity */);
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// name "generation.0.space.1"
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// See _old_space_counters for additional counters
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// Set the arguments to indicate that this survivor space is not used.
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_from_space_counters = new HSpaceCounters(young_collection_name_space,
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"s0", 1 /* ordinal */,
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pad_capacity(0) /* max_capacity */,
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pad_capacity(0) /* init_capacity */);
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// Given that this survivor space is not used, we update it here
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// once to reflect that its used space is 0 so that we don't have to
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// worry about updating it again later.
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if (UsePerfData) {
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_from_space_counters->update_used(0);
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}
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// name "generation.0.space.2"
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// See _old_space_counters for additional counters
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_to_space_counters = new HSpaceCounters(young_collection_name_space,
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"s1", 2 /* ordinal */,
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pad_capacity(g1h->max_capacity()) /* max_capacity */,
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pad_capacity(_survivor_space_committed) /* init_capacity */);
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}
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G1MonitoringSupport::~G1MonitoringSupport() {
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delete _eden_space_pool;
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delete _survivor_space_pool;
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delete _old_gen_pool;
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}
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void G1MonitoringSupport::initialize_serviceability() {
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_eden_space_pool = new G1EdenPool(_g1h, _eden_space_committed);
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_survivor_space_pool = new G1SurvivorPool(_g1h, _survivor_space_committed);
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_old_gen_pool = new G1OldGenPool(_g1h, _old_gen_committed, _g1h->max_capacity());
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_full_gc_memory_manager.add_pool(_eden_space_pool);
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_full_gc_memory_manager.add_pool(_survivor_space_pool);
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_full_gc_memory_manager.add_pool(_old_gen_pool);
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_incremental_memory_manager.add_pool(_eden_space_pool);
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_incremental_memory_manager.add_pool(_survivor_space_pool);
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_incremental_memory_manager.add_pool(_old_gen_pool, false /* always_affected_by_gc */);
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}
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MemoryUsage G1MonitoringSupport::memory_usage() {
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MutexLocker x(MonitoringSupport_lock, Mutex::_no_safepoint_check_flag);
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return MemoryUsage(InitialHeapSize, _overall_used, _overall_committed, _g1h->max_capacity());
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}
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GrowableArray<GCMemoryManager*> G1MonitoringSupport::memory_managers() {
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GrowableArray<GCMemoryManager*> memory_managers(2);
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memory_managers.append(&_incremental_memory_manager);
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memory_managers.append(&_full_gc_memory_manager);
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return memory_managers;
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}
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GrowableArray<MemoryPool*> G1MonitoringSupport::memory_pools() {
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GrowableArray<MemoryPool*> memory_pools(3);
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memory_pools.append(_eden_space_pool);
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memory_pools.append(_survivor_space_pool);
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memory_pools.append(_old_gen_pool);
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return memory_pools;
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}
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void G1MonitoringSupport::recalculate_sizes() {
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assert_heap_locked_or_at_safepoint(true);
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MutexLocker x(MonitoringSupport_lock, Mutex::_no_safepoint_check_flag);
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// Recalculate all the sizes from scratch.
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// This never includes used bytes of current allocating heap region.
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_overall_used = _g1h->used_unlocked();
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_eden_space_used = _g1h->eden_regions_used_bytes();
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_survivor_space_used = _g1h->survivor_regions_used_bytes();
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// _overall_used and _eden_space_used are obtained concurrently so
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// may be inconsistent with each other. To prevent _old_gen_used going negative,
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// use smaller value to substract.
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_old_gen_used = _overall_used - MIN2(_overall_used, _eden_space_used + _survivor_space_used);
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uint survivor_list_length = _g1h->survivor_regions_count();
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// Max length includes any potential extensions to the young gen
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// we'll do when the GC locker is active.
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uint young_list_max_length = _g1h->policy()->young_list_max_length();
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assert(young_list_max_length >= survivor_list_length, "invariant");
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uint eden_list_max_length = young_list_max_length - survivor_list_length;
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// First calculate the committed sizes that can be calculated independently.
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_survivor_space_committed = survivor_list_length * HeapRegion::GrainBytes;
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_old_gen_committed = HeapRegion::align_up_to_region_byte_size(_old_gen_used);
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// Next, start with the overall committed size.
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_overall_committed = _g1h->capacity();
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size_t committed = _overall_committed;
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// Remove the committed size we have calculated so far (for the
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// survivor and old space).
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assert(committed >= (_survivor_space_committed + _old_gen_committed), "sanity");
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committed -= _survivor_space_committed + _old_gen_committed;
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// Next, calculate and remove the committed size for the eden.
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_eden_space_committed = (size_t) eden_list_max_length * HeapRegion::GrainBytes;
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// Somewhat defensive: be robust in case there are inaccuracies in
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// the calculations
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_eden_space_committed = MIN2(_eden_space_committed, committed);
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committed -= _eden_space_committed;
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// Finally, give the rest to the old space...
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_old_gen_committed += committed;
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// ..and calculate the young gen committed.
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_young_gen_committed = _eden_space_committed + _survivor_space_committed;
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assert(_overall_committed ==
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(_eden_space_committed + _survivor_space_committed + _old_gen_committed),
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"the committed sizes should add up");
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// Somewhat defensive: cap the eden used size to make sure it
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// never exceeds the committed size.
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_eden_space_used = MIN2(_eden_space_used, _eden_space_committed);
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// _survivor_space_used is calculated during a safepoint and _survivor_space_committed
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// is calculated from survivor region count * heap region size.
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assert(_survivor_space_used <= _survivor_space_committed, "Survivor used bytes(" SIZE_FORMAT
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") should be less than or equal to survivor committed(" SIZE_FORMAT ")",
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_survivor_space_used, _survivor_space_committed);
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// _old_gen_committed is calculated in terms of _old_gen_used value.
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assert(_old_gen_used <= _old_gen_committed, "Old gen used bytes(" SIZE_FORMAT
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") should be less than or equal to old gen committed(" SIZE_FORMAT ")",
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_old_gen_used, _old_gen_committed);
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}
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void G1MonitoringSupport::update_sizes() {
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recalculate_sizes();
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if (UsePerfData) {
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_eden_space_counters->update_capacity(pad_capacity(_eden_space_committed));
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_eden_space_counters->update_used(_eden_space_used);
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// only the "to" survivor space is active, so we don't need to
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// update the counters for the "from" survivor space
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_to_space_counters->update_capacity(pad_capacity(_survivor_space_committed));
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_to_space_counters->update_used(_survivor_space_used);
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_old_space_counters->update_capacity(pad_capacity(_old_gen_committed));
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_old_space_counters->update_used(_old_gen_used);
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_young_gen_counters->update_all();
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_old_gen_counters->update_all();
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MetaspaceCounters::update_performance_counters();
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CompressedClassSpaceCounters::update_performance_counters();
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}
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}
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void G1MonitoringSupport::update_eden_size() {
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// Recalculate everything - this should be fast enough and we are sure that we do not
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// miss anything.
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recalculate_sizes();
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if (UsePerfData) {
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_eden_space_counters->update_used(_eden_space_used);
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}
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}
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MemoryUsage G1MonitoringSupport::eden_space_memory_usage(size_t initial_size, size_t max_size) {
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MutexLocker x(MonitoringSupport_lock, Mutex::_no_safepoint_check_flag);
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return MemoryUsage(initial_size,
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_eden_space_used,
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_eden_space_committed,
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max_size);
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}
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MemoryUsage G1MonitoringSupport::survivor_space_memory_usage(size_t initial_size, size_t max_size) {
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MutexLocker x(MonitoringSupport_lock, Mutex::_no_safepoint_check_flag);
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return MemoryUsage(initial_size,
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_survivor_space_used,
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_survivor_space_committed,
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max_size);
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}
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MemoryUsage G1MonitoringSupport::old_gen_memory_usage(size_t initial_size, size_t max_size) {
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MutexLocker x(MonitoringSupport_lock, Mutex::_no_safepoint_check_flag);
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return MemoryUsage(initial_size,
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_old_gen_used,
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_old_gen_committed,
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max_size);
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}
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G1MonitoringScope::G1MonitoringScope(G1MonitoringSupport* g1mm, bool full_gc, bool all_memory_pools_affected) :
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_tcs(full_gc ? g1mm->_full_collection_counters : g1mm->_incremental_collection_counters),
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_tms(full_gc ? &g1mm->_full_gc_memory_manager : &g1mm->_incremental_memory_manager,
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G1CollectedHeap::heap()->gc_cause(), all_memory_pools_affected) {
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}
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