hotspot/src/share/vm/gc_implementation/g1/g1RemSetSummary.cpp
author jwilhelm
Mon, 04 May 2015 17:10:50 +0200
changeset 30579 5208524ce05c
parent 26846 7d4376f8560e
permissions -rw-r--r--
Merge
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/*
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 * Copyright (c) 2013, 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_implementation/g1/concurrentG1Refine.hpp"
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#include "gc_implementation/g1/concurrentG1RefineThread.hpp"
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#include "gc_implementation/g1/heapRegion.hpp"
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#include "gc_implementation/g1/g1CollectedHeap.inline.hpp"
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#include "gc_implementation/g1/g1RemSet.inline.hpp"
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#include "gc_implementation/g1/g1RemSetSummary.hpp"
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#include "gc_implementation/g1/heapRegionRemSet.hpp"
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#include "runtime/thread.inline.hpp"
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class GetRSThreadVTimeClosure : public ThreadClosure {
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private:
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  G1RemSetSummary* _summary;
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  uint _counter;
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public:
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  GetRSThreadVTimeClosure(G1RemSetSummary * summary) : ThreadClosure(), _summary(summary), _counter(0) {
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    assert(_summary != NULL, "just checking");
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  }
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  virtual void do_thread(Thread* t) {
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    ConcurrentG1RefineThread* crt = (ConcurrentG1RefineThread*) t;
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    _summary->set_rs_thread_vtime(_counter, crt->vtime_accum());
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    _counter++;
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  }
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};
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void G1RemSetSummary::update() {
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  _num_refined_cards = remset()->conc_refine_cards();
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  DirtyCardQueueSet& dcqs = JavaThread::dirty_card_queue_set();
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  _num_processed_buf_mutator = dcqs.processed_buffers_mut();
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  _num_processed_buf_rs_threads = dcqs.processed_buffers_rs_thread();
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  _num_coarsenings = HeapRegionRemSet::n_coarsenings();
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  ConcurrentG1Refine * cg1r = G1CollectedHeap::heap()->concurrent_g1_refine();
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  if (_rs_threads_vtimes != NULL) {
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    GetRSThreadVTimeClosure p(this);
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    cg1r->worker_threads_do(&p);
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  }
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  set_sampling_thread_vtime(cg1r->sampling_thread()->vtime_accum());
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}
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void G1RemSetSummary::set_rs_thread_vtime(uint thread, double value) {
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  assert(_rs_threads_vtimes != NULL, "just checking");
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  assert(thread < _num_vtimes, "just checking");
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  _rs_threads_vtimes[thread] = value;
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}
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double G1RemSetSummary::rs_thread_vtime(uint thread) const {
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  assert(_rs_threads_vtimes != NULL, "just checking");
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  assert(thread < _num_vtimes, "just checking");
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  return _rs_threads_vtimes[thread];
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}
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void G1RemSetSummary::initialize(G1RemSet* remset) {
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  assert(_rs_threads_vtimes == NULL, "just checking");
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  assert(remset != NULL, "just checking");
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  _remset = remset;
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  _num_vtimes = ConcurrentG1Refine::thread_num();
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  _rs_threads_vtimes = NEW_C_HEAP_ARRAY(double, _num_vtimes, mtGC);
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  memset(_rs_threads_vtimes, 0, sizeof(double) * _num_vtimes);
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  update();
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}
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void G1RemSetSummary::set(G1RemSetSummary* other) {
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  assert(other != NULL, "just checking");
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  assert(remset() == other->remset(), "just checking");
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  assert(_num_vtimes == other->_num_vtimes, "just checking");
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  _num_refined_cards = other->num_concurrent_refined_cards();
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  _num_processed_buf_mutator = other->num_processed_buf_mutator();
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  _num_processed_buf_rs_threads = other->num_processed_buf_rs_threads();
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  _num_coarsenings = other->_num_coarsenings;
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  memcpy(_rs_threads_vtimes, other->_rs_threads_vtimes, sizeof(double) * _num_vtimes);
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  set_sampling_thread_vtime(other->sampling_thread_vtime());
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}
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void G1RemSetSummary::subtract_from(G1RemSetSummary* other) {
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  assert(other != NULL, "just checking");
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  assert(remset() == other->remset(), "just checking");
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  assert(_num_vtimes == other->_num_vtimes, "just checking");
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  _num_refined_cards = other->num_concurrent_refined_cards() - _num_refined_cards;
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  _num_processed_buf_mutator = other->num_processed_buf_mutator() - _num_processed_buf_mutator;
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  _num_processed_buf_rs_threads = other->num_processed_buf_rs_threads() - _num_processed_buf_rs_threads;
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  _num_coarsenings = other->num_coarsenings() - _num_coarsenings;
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  for (uint i = 0; i < _num_vtimes; i++) {
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    set_rs_thread_vtime(i, other->rs_thread_vtime(i) - rs_thread_vtime(i));
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  }
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  _sampling_thread_vtime = other->sampling_thread_vtime() - _sampling_thread_vtime;
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}
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static double percent_of(size_t numerator, size_t denominator) {
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  if (denominator != 0) {
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    return (double)numerator / denominator * 100.0f;
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  } else {
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    return 0.0f;
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  }
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}
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static size_t round_to_K(size_t value) {
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  return value / K;
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}
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class RegionTypeCounter VALUE_OBJ_CLASS_SPEC {
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private:
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  const char* _name;
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  size_t _rs_mem_size;
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  size_t _cards_occupied;
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  size_t _amount;
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  size_t _code_root_mem_size;
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  size_t _code_root_elems;
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  double rs_mem_size_percent_of(size_t total) {
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    return percent_of(_rs_mem_size, total);
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  }
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  double cards_occupied_percent_of(size_t total) {
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    return percent_of(_cards_occupied, total);
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  }
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  double code_root_mem_size_percent_of(size_t total) {
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    return percent_of(_code_root_mem_size, total);
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  }
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  double code_root_elems_percent_of(size_t total) {
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    return percent_of(_code_root_elems, total);
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  }
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  size_t amount() const { return _amount; }
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public:
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  RegionTypeCounter(const char* name) : _name(name), _rs_mem_size(0), _cards_occupied(0),
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    _amount(0), _code_root_mem_size(0), _code_root_elems(0) { }
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  void add(size_t rs_mem_size, size_t cards_occupied, size_t code_root_mem_size,
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    size_t code_root_elems) {
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    _rs_mem_size += rs_mem_size;
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    _cards_occupied += cards_occupied;
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    _code_root_mem_size += code_root_mem_size;
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    _code_root_elems += code_root_elems;
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    _amount++;
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  }
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  size_t rs_mem_size() const { return _rs_mem_size; }
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  size_t cards_occupied() const { return _cards_occupied; }
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  size_t code_root_mem_size() const { return _code_root_mem_size; }
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  size_t code_root_elems() const { return _code_root_elems; }
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  void print_rs_mem_info_on(outputStream * out, size_t total) {
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    out->print_cr("    "SIZE_FORMAT_W(8)"K (%5.1f%%) by "SIZE_FORMAT" %s regions",
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        round_to_K(rs_mem_size()), rs_mem_size_percent_of(total), amount(), _name);
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  }
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  void print_cards_occupied_info_on(outputStream * out, size_t total) {
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    out->print_cr("     "SIZE_FORMAT_W(8)" (%5.1f%%) entries by "SIZE_FORMAT" %s regions",
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        cards_occupied(), cards_occupied_percent_of(total), amount(), _name);
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  }
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  void print_code_root_mem_info_on(outputStream * out, size_t total) {
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    out->print_cr("    "SIZE_FORMAT_W(8)"K (%5.1f%%) by "SIZE_FORMAT" %s regions",
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        round_to_K(code_root_mem_size()), code_root_mem_size_percent_of(total), amount(), _name);
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  }
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  void print_code_root_elems_info_on(outputStream * out, size_t total) {
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    out->print_cr("     "SIZE_FORMAT_W(8)" (%5.1f%%) elements by "SIZE_FORMAT" %s regions",
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        code_root_elems(), code_root_elems_percent_of(total), amount(), _name);
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  }
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};
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class HRRSStatsIter: public HeapRegionClosure {
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private:
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  RegionTypeCounter _young;
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  RegionTypeCounter _humonguous;
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  RegionTypeCounter _free;
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  RegionTypeCounter _old;
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  RegionTypeCounter _all;
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  size_t _max_rs_mem_sz;
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  HeapRegion* _max_rs_mem_sz_region;
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  size_t total_rs_mem_sz() const            { return _all.rs_mem_size(); }
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  size_t total_cards_occupied() const       { return _all.cards_occupied(); }
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  size_t max_rs_mem_sz() const              { return _max_rs_mem_sz; }
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  HeapRegion* max_rs_mem_sz_region() const  { return _max_rs_mem_sz_region; }
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  size_t _max_code_root_mem_sz;
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  HeapRegion* _max_code_root_mem_sz_region;
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  size_t total_code_root_mem_sz() const     { return _all.code_root_mem_size(); }
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  size_t total_code_root_elems() const      { return _all.code_root_elems(); }
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  size_t max_code_root_mem_sz() const       { return _max_code_root_mem_sz; }
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  HeapRegion* max_code_root_mem_sz_region() const { return _max_code_root_mem_sz_region; }
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public:
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  HRRSStatsIter() : _all("All"), _young("Young"), _humonguous("Humonguous"),
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    _free("Free"), _old("Old"), _max_code_root_mem_sz_region(NULL), _max_rs_mem_sz_region(NULL),
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    _max_rs_mem_sz(0), _max_code_root_mem_sz(0)
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  {}
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  bool doHeapRegion(HeapRegion* r) {
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    HeapRegionRemSet* hrrs = r->rem_set();
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    // HeapRegionRemSet::mem_size() includes the
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    // size of the strong code roots
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    size_t rs_mem_sz = hrrs->mem_size();
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    if (rs_mem_sz > _max_rs_mem_sz) {
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      _max_rs_mem_sz = rs_mem_sz;
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      _max_rs_mem_sz_region = r;
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    }
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    size_t occupied_cards = hrrs->occupied();
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    size_t code_root_mem_sz = hrrs->strong_code_roots_mem_size();
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    if (code_root_mem_sz > max_code_root_mem_sz()) {
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      _max_code_root_mem_sz = code_root_mem_sz;
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      _max_code_root_mem_sz_region = r;
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    }
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    size_t code_root_elems = hrrs->strong_code_roots_list_length();
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    RegionTypeCounter* current = NULL;
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    if (r->is_free()) {
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      current = &_free;
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    } else if (r->is_young()) {
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      current = &_young;
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    } else if (r->is_humongous()) {
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      current = &_humonguous;
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    } else if (r->is_old()) {
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      current = &_old;
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    } else {
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      ShouldNotReachHere();
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    }
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    current->add(rs_mem_sz, occupied_cards, code_root_mem_sz, code_root_elems);
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    _all.add(rs_mem_sz, occupied_cards, code_root_mem_sz, code_root_elems);
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    return false;
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  }
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  void print_summary_on(outputStream* out) {
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    RegionTypeCounter* counters[] = { &_young, &_humonguous, &_free, &_old, NULL };
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    out->print_cr("\n Current rem set statistics");
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    out->print_cr("  Total per region rem sets sizes = "SIZE_FORMAT"K."
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                  " Max = "SIZE_FORMAT"K.",
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                  round_to_K(total_rs_mem_sz()), round_to_K(max_rs_mem_sz()));
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    for (RegionTypeCounter** current = &counters[0]; *current != NULL; current++) {
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      (*current)->print_rs_mem_info_on(out, total_rs_mem_sz());
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    }
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    out->print_cr("   Static structures = "SIZE_FORMAT"K,"
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                  " free_lists = "SIZE_FORMAT"K.",
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                  round_to_K(HeapRegionRemSet::static_mem_size()),
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                  round_to_K(HeapRegionRemSet::fl_mem_size()));
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    out->print_cr("    "SIZE_FORMAT" occupied cards represented.",
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                  total_cards_occupied());
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    for (RegionTypeCounter** current = &counters[0]; *current != NULL; current++) {
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      (*current)->print_cards_occupied_info_on(out, total_cards_occupied());
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    }
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    // Largest sized rem set region statistics
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    HeapRegionRemSet* rem_set = max_rs_mem_sz_region()->rem_set();
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    out->print_cr("    Region with largest rem set = "HR_FORMAT", "
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                  "size = "SIZE_FORMAT "K, occupied = "SIZE_FORMAT"K.",
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                  HR_FORMAT_PARAMS(max_rs_mem_sz_region()),
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                  round_to_K(rem_set->mem_size()),
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                  round_to_K(rem_set->occupied()));
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    // Strong code root statistics
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    HeapRegionRemSet* max_code_root_rem_set = max_code_root_mem_sz_region()->rem_set();
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    out->print_cr("  Total heap region code root sets sizes = "SIZE_FORMAT"K."
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                  "  Max = "SIZE_FORMAT"K.",
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                  round_to_K(total_code_root_mem_sz()),
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                  round_to_K(max_code_root_rem_set->strong_code_roots_mem_size()));
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    for (RegionTypeCounter** current = &counters[0]; *current != NULL; current++) {
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      (*current)->print_code_root_mem_info_on(out, total_code_root_mem_sz());
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    }
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    out->print_cr("    "SIZE_FORMAT" code roots represented.",
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                  total_code_root_elems());
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    for (RegionTypeCounter** current = &counters[0]; *current != NULL; current++) {
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      (*current)->print_code_root_elems_info_on(out, total_code_root_elems());
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    }
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   324
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    out->print_cr("    Region with largest amount of code roots = "HR_FORMAT", "
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                  "size = "SIZE_FORMAT "K, num_elems = "SIZE_FORMAT".",
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                  HR_FORMAT_PARAMS(max_code_root_mem_sz_region()),
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                  round_to_K(max_code_root_rem_set->strong_code_roots_mem_size()),
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                  round_to_K(max_code_root_rem_set->strong_code_roots_list_length()));
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   330
  }
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};
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void G1RemSetSummary::print_on(outputStream* out) {
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  out->print_cr("\n Recent concurrent refinement statistics");
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  out->print_cr("  Processed "SIZE_FORMAT" cards",
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                num_concurrent_refined_cards());
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  out->print_cr("  Of "SIZE_FORMAT" completed buffers:", num_processed_buf_total());
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  out->print_cr("     "SIZE_FORMAT_W(8)" (%5.1f%%) by concurrent RS threads.",
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                num_processed_buf_total(),
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                percent_of(num_processed_buf_rs_threads(), num_processed_buf_total()));
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  out->print_cr("     "SIZE_FORMAT_W(8)" (%5.1f%%) by mutator threads.",
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                num_processed_buf_mutator(),
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                percent_of(num_processed_buf_mutator(), num_processed_buf_total()));
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  out->print_cr("  Did "SIZE_FORMAT" coarsenings.", num_coarsenings());
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  out->print_cr("  Concurrent RS threads times (s)");
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   346
  out->print("     ");
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   347
  for (uint i = 0; i < _num_vtimes; i++) {
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   348
    out->print("    %5.2f", rs_thread_vtime(i));
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   349
  }
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  out->cr();
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  out->print_cr("  Concurrent sampling threads times (s)");
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   352
  out->print_cr("         %5.2f", sampling_thread_vtime());
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   353
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  HRRSStatsIter blk;
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  G1CollectedHeap::heap()->heap_region_iterate(&blk);
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  blk.print_summary_on(out);
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}