g1CollectorPolicy.cpp 107.1 KB
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/*
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 * Copyright (c) 2001, 2012, Oracle and/or its affiliates. All rights reserved.
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 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
 *
 * This code is free software; you can redistribute it and/or modify it
 * under the terms of the GNU General Public License version 2 only, as
 * published by the Free Software Foundation.
 *
 * This code is distributed in the hope that it will be useful, but WITHOUT
 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
 * FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License
 * version 2 for more details (a copy is included in the LICENSE file that
 * accompanied this code).
 *
 * You should have received a copy of the GNU General Public License version
 * 2 along with this work; if not, write to the Free Software Foundation,
 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
 *
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 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
 * or visit www.oracle.com if you need additional information or have any
 * questions.
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 *
 */

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#include "precompiled.hpp"
#include "gc_implementation/g1/concurrentG1Refine.hpp"
#include "gc_implementation/g1/concurrentMark.hpp"
#include "gc_implementation/g1/concurrentMarkThread.inline.hpp"
#include "gc_implementation/g1/g1CollectedHeap.inline.hpp"
#include "gc_implementation/g1/g1CollectorPolicy.hpp"
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#include "gc_implementation/g1/g1ErgoVerbose.hpp"
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#include "gc_implementation/g1/heapRegionRemSet.hpp"
#include "gc_implementation/shared/gcPolicyCounters.hpp"
#include "runtime/arguments.hpp"
#include "runtime/java.hpp"
#include "runtime/mutexLocker.hpp"
#include "utilities/debug.hpp"
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// Different defaults for different number of GC threads
// They were chosen by running GCOld and SPECjbb on debris with different
//   numbers of GC threads and choosing them based on the results

// all the same
static double rs_length_diff_defaults[] = {
  0.0, 0.0, 0.0, 0.0, 0.0, 0.0, 0.0, 0.0
};

static double cost_per_card_ms_defaults[] = {
  0.01, 0.005, 0.005, 0.003, 0.003, 0.002, 0.002, 0.0015
};

// all the same
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static double young_cards_per_entry_ratio_defaults[] = {
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  1.0, 1.0, 1.0, 1.0, 1.0, 1.0, 1.0, 1.0
};

static double cost_per_entry_ms_defaults[] = {
  0.015, 0.01, 0.01, 0.008, 0.008, 0.0055, 0.0055, 0.005
};

static double cost_per_byte_ms_defaults[] = {
  0.00006, 0.00003, 0.00003, 0.000015, 0.000015, 0.00001, 0.00001, 0.000009
};

// these should be pretty consistent
static double constant_other_time_ms_defaults[] = {
  5.0, 5.0, 5.0, 5.0, 5.0, 5.0, 5.0, 5.0
};


static double young_other_cost_per_region_ms_defaults[] = {
  0.3, 0.2, 0.2, 0.15, 0.15, 0.12, 0.12, 0.1
};

static double non_young_other_cost_per_region_ms_defaults[] = {
  1.0, 0.7, 0.7, 0.5, 0.5, 0.42, 0.42, 0.30
};

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// Help class for avoiding interleaved logging
class LineBuffer: public StackObj {

private:
  static const int BUFFER_LEN = 1024;
  static const int INDENT_CHARS = 3;
  char _buffer[BUFFER_LEN];
  int _indent_level;
  int _cur;

  void vappend(const char* format, va_list ap) {
    int res = vsnprintf(&_buffer[_cur], BUFFER_LEN - _cur, format, ap);
    if (res != -1) {
      _cur += res;
    } else {
      DEBUG_ONLY(warning("buffer too small in LineBuffer");)
      _buffer[BUFFER_LEN -1] = 0;
      _cur = BUFFER_LEN; // vsnprintf above should not add to _buffer if we are called again
    }
  }

public:
  explicit LineBuffer(int indent_level): _indent_level(indent_level), _cur(0) {
    for (; (_cur < BUFFER_LEN && _cur < (_indent_level * INDENT_CHARS)); _cur++) {
      _buffer[_cur] = ' ';
    }
  }

#ifndef PRODUCT
  ~LineBuffer() {
    assert(_cur == _indent_level * INDENT_CHARS, "pending data in buffer - append_and_print_cr() not called?");
  }
#endif

  void append(const char* format, ...) {
    va_list ap;
    va_start(ap, format);
    vappend(format, ap);
    va_end(ap);
  }

  void append_and_print_cr(const char* format, ...) {
    va_list ap;
    va_start(ap, format);
    vappend(format, ap);
    va_end(ap);
    gclog_or_tty->print_cr("%s", _buffer);
    _cur = _indent_level * INDENT_CHARS;
  }
};

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G1CollectorPolicy::G1CollectorPolicy() :
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  _parallel_gc_threads(G1CollectedHeap::use_parallel_gc_threads()
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                        ? ParallelGCThreads : 1),
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  _recent_gc_times_ms(new TruncatedSeq(NumPrevPausesForHeuristics)),
  _all_pause_times_ms(new NumberSeq()),
  _stop_world_start(0.0),
  _all_stop_world_times_ms(new NumberSeq()),
  _all_yield_times_ms(new NumberSeq()),

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  _summary(new Summary()),
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  _cur_clear_ct_time_ms(0.0),
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  _mark_closure_time_ms(0.0),
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  _root_region_scan_wait_time_ms(0.0),
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  _cur_ref_proc_time_ms(0.0),
  _cur_ref_enq_time_ms(0.0),

#ifndef PRODUCT
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  _min_clear_cc_time_ms(-1.0),
  _max_clear_cc_time_ms(-1.0),
  _cur_clear_cc_time_ms(0.0),
  _cum_clear_cc_time_ms(0.0),
  _num_cc_clears(0L),
#endif
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  _aux_num(10),
  _all_aux_times_ms(new NumberSeq[_aux_num]),
  _cur_aux_start_times_ms(new double[_aux_num]),
  _cur_aux_times_ms(new double[_aux_num]),
  _cur_aux_times_set(new bool[_aux_num]),

  _concurrent_mark_remark_times_ms(new TruncatedSeq(NumPrevPausesForHeuristics)),
  _concurrent_mark_cleanup_times_ms(new TruncatedSeq(NumPrevPausesForHeuristics)),

  _alloc_rate_ms_seq(new TruncatedSeq(TruncatedSeqLength)),
  _prev_collection_pause_end_ms(0.0),
  _pending_card_diff_seq(new TruncatedSeq(TruncatedSeqLength)),
  _rs_length_diff_seq(new TruncatedSeq(TruncatedSeqLength)),
  _cost_per_card_ms_seq(new TruncatedSeq(TruncatedSeqLength)),
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  _young_cards_per_entry_ratio_seq(new TruncatedSeq(TruncatedSeqLength)),
  _mixed_cards_per_entry_ratio_seq(new TruncatedSeq(TruncatedSeqLength)),
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  _cost_per_entry_ms_seq(new TruncatedSeq(TruncatedSeqLength)),
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  _mixed_cost_per_entry_ms_seq(new TruncatedSeq(TruncatedSeqLength)),
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  _cost_per_byte_ms_seq(new TruncatedSeq(TruncatedSeqLength)),
  _cost_per_byte_ms_during_cm_seq(new TruncatedSeq(TruncatedSeqLength)),
  _constant_other_time_ms_seq(new TruncatedSeq(TruncatedSeqLength)),
  _young_other_cost_per_region_ms_seq(new TruncatedSeq(TruncatedSeqLength)),
  _non_young_other_cost_per_region_ms_seq(
                                         new TruncatedSeq(TruncatedSeqLength)),

  _pending_cards_seq(new TruncatedSeq(TruncatedSeqLength)),
  _rs_lengths_seq(new TruncatedSeq(TruncatedSeqLength)),

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  _pause_time_target_ms((double) MaxGCPauseMillis),
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  _gcs_are_young(true),
  _young_pause_num(0),
  _mixed_pause_num(0),
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  _during_marking(false),
  _in_marking_window(false),
  _in_marking_window_im(false),

  _known_garbage_ratio(0.0),
  _known_garbage_bytes(0),

  _young_gc_eff_seq(new TruncatedSeq(TruncatedSeqLength)),

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  _recent_prev_end_times_for_all_gcs_sec(
                                new TruncatedSeq(NumPrevPausesForHeuristics)),
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  _recent_avg_pause_time_ratio(0.0),

  _all_full_gc_times_ms(new NumberSeq()),

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  _initiate_conc_mark_if_possible(false),
  _during_initial_mark_pause(false),
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  _last_young_gc(false),
  _last_gc_was_young(false),
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  _eden_bytes_before_gc(0),
  _survivor_bytes_before_gc(0),
  _capacity_before_gc(0),

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  _eden_cset_region_length(0),
  _survivor_cset_region_length(0),
  _old_cset_region_length(0),

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  _collection_set(NULL),
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  _collection_set_bytes_used_before(0),

  // Incremental CSet attributes
  _inc_cset_build_state(Inactive),
  _inc_cset_head(NULL),
  _inc_cset_tail(NULL),
  _inc_cset_bytes_used_before(0),
  _inc_cset_max_finger(NULL),
  _inc_cset_recorded_rs_lengths(0),
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  _inc_cset_recorded_rs_lengths_diffs(0),
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  _inc_cset_predicted_elapsed_time_ms(0.0),
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  _inc_cset_predicted_elapsed_time_ms_diffs(0.0),
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#ifdef _MSC_VER // the use of 'this' below gets a warning, make it go away
#pragma warning( disable:4355 ) // 'this' : used in base member initializer list
#endif // _MSC_VER

  _short_lived_surv_rate_group(new SurvRateGroup(this, "Short Lived",
                                                 G1YoungSurvRateNumRegionsSummary)),
  _survivor_surv_rate_group(new SurvRateGroup(this, "Survivor",
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                                              G1YoungSurvRateNumRegionsSummary)),
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  // add here any more surv rate groups
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  _recorded_survivor_regions(0),
  _recorded_survivor_head(NULL),
  _recorded_survivor_tail(NULL),
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  _survivors_age_table(true),

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  _gc_overhead_perc(0.0) {
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  // Set up the region size and associated fields. Given that the
  // policy is created before the heap, we have to set this up here,
  // so it's done as soon as possible.
  HeapRegion::setup_heap_region_size(Arguments::min_heap_size());
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  HeapRegionRemSet::setup_remset_size();
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  G1ErgoVerbose::initialize();
  if (PrintAdaptiveSizePolicy) {
    // Currently, we only use a single switch for all the heuristics.
    G1ErgoVerbose::set_enabled(true);
    // Given that we don't currently have a verboseness level
    // parameter, we'll hardcode this to high. This can be easily
    // changed in the future.
    G1ErgoVerbose::set_level(ErgoHigh);
  } else {
    G1ErgoVerbose::set_enabled(false);
  }

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  // Verify PLAB sizes
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  const size_t region_size = HeapRegion::GrainWords;
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  if (YoungPLABSize > region_size || OldPLABSize > region_size) {
    char buffer[128];
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    jio_snprintf(buffer, sizeof(buffer), "%sPLABSize should be at most "SIZE_FORMAT,
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                 OldPLABSize > region_size ? "Old" : "Young", region_size);
    vm_exit_during_initialization(buffer);
  }

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  _recent_prev_end_times_for_all_gcs_sec->add(os::elapsedTime());
  _prev_collection_pause_end_ms = os::elapsedTime() * 1000.0;

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  _par_last_gc_worker_start_times_ms = new double[_parallel_gc_threads];
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  _par_last_ext_root_scan_times_ms = new double[_parallel_gc_threads];
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  _par_last_satb_filtering_times_ms = new double[_parallel_gc_threads];
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  _par_last_update_rs_times_ms = new double[_parallel_gc_threads];
  _par_last_update_rs_processed_buffers = new double[_parallel_gc_threads];

  _par_last_scan_rs_times_ms = new double[_parallel_gc_threads];

  _par_last_obj_copy_times_ms = new double[_parallel_gc_threads];

  _par_last_termination_times_ms = new double[_parallel_gc_threads];
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  _par_last_termination_attempts = new double[_parallel_gc_threads];
  _par_last_gc_worker_end_times_ms = new double[_parallel_gc_threads];
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  _par_last_gc_worker_times_ms = new double[_parallel_gc_threads];
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  _par_last_gc_worker_other_times_ms = new double[_parallel_gc_threads];
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  int index;
  if (ParallelGCThreads == 0)
    index = 0;
  else if (ParallelGCThreads > 8)
    index = 7;
  else
    index = ParallelGCThreads - 1;

  _pending_card_diff_seq->add(0.0);
  _rs_length_diff_seq->add(rs_length_diff_defaults[index]);
  _cost_per_card_ms_seq->add(cost_per_card_ms_defaults[index]);
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  _young_cards_per_entry_ratio_seq->add(
                                  young_cards_per_entry_ratio_defaults[index]);
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  _cost_per_entry_ms_seq->add(cost_per_entry_ms_defaults[index]);
  _cost_per_byte_ms_seq->add(cost_per_byte_ms_defaults[index]);
  _constant_other_time_ms_seq->add(constant_other_time_ms_defaults[index]);
  _young_other_cost_per_region_ms_seq->add(
                               young_other_cost_per_region_ms_defaults[index]);
  _non_young_other_cost_per_region_ms_seq->add(
                           non_young_other_cost_per_region_ms_defaults[index]);

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  // Below, we might need to calculate the pause time target based on
  // the pause interval. When we do so we are going to give G1 maximum
  // flexibility and allow it to do pauses when it needs to. So, we'll
  // arrange that the pause interval to be pause time target + 1 to
  // ensure that a) the pause time target is maximized with respect to
  // the pause interval and b) we maintain the invariant that pause
  // time target < pause interval. If the user does not want this
  // maximum flexibility, they will have to set the pause interval
  // explicitly.

  // First make sure that, if either parameter is set, its value is
  // reasonable.
  if (!FLAG_IS_DEFAULT(MaxGCPauseMillis)) {
    if (MaxGCPauseMillis < 1) {
      vm_exit_during_initialization("MaxGCPauseMillis should be "
                                    "greater than 0");
    }
  }
  if (!FLAG_IS_DEFAULT(GCPauseIntervalMillis)) {
    if (GCPauseIntervalMillis < 1) {
      vm_exit_during_initialization("GCPauseIntervalMillis should be "
                                    "greater than 0");
    }
  }

  // Then, if the pause time target parameter was not set, set it to
  // the default value.
  if (FLAG_IS_DEFAULT(MaxGCPauseMillis)) {
    if (FLAG_IS_DEFAULT(GCPauseIntervalMillis)) {
      // The default pause time target in G1 is 200ms
      FLAG_SET_DEFAULT(MaxGCPauseMillis, 200);
    } else {
      // We do not allow the pause interval to be set without the
      // pause time target
      vm_exit_during_initialization("GCPauseIntervalMillis cannot be set "
                                    "without setting MaxGCPauseMillis");
    }
  }

  // Then, if the interval parameter was not set, set it according to
  // the pause time target (this will also deal with the case when the
  // pause time target is the default value).
  if (FLAG_IS_DEFAULT(GCPauseIntervalMillis)) {
    FLAG_SET_DEFAULT(GCPauseIntervalMillis, MaxGCPauseMillis + 1);
  }

  // Finally, make sure that the two parameters are consistent.
  if (MaxGCPauseMillis >= GCPauseIntervalMillis) {
    char buffer[256];
    jio_snprintf(buffer, 256,
                 "MaxGCPauseMillis (%u) should be less than "
                 "GCPauseIntervalMillis (%u)",
                 MaxGCPauseMillis, GCPauseIntervalMillis);
    vm_exit_during_initialization(buffer);
  }

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  double max_gc_time = (double) MaxGCPauseMillis / 1000.0;
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  double time_slice  = (double) GCPauseIntervalMillis / 1000.0;
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  _mmu_tracker = new G1MMUTrackerQueue(time_slice, max_gc_time);
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  _sigma = (double) G1ConfidencePercent / 100.0;
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  // start conservatively (around 50ms is about right)
  _concurrent_mark_remark_times_ms->add(0.05);
  _concurrent_mark_cleanup_times_ms->add(0.20);
  _tenuring_threshold = MaxTenuringThreshold;
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  // _max_survivor_regions will be calculated by
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  // update_young_list_target_length() during initialization.
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  _max_survivor_regions = 0;
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  assert(GCTimeRatio > 0,
         "we should have set it to a default value set_g1_gc_flags() "
         "if a user set it to 0");
  _gc_overhead_perc = 100.0 * (1.0 / (1.0 + GCTimeRatio));

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  uintx reserve_perc = G1ReservePercent;
  // Put an artificial ceiling on this so that it's not set to a silly value.
  if (reserve_perc > 50) {
    reserve_perc = 50;
    warning("G1ReservePercent is set to a value that is too large, "
            "it's been updated to %u", reserve_perc);
  }
  _reserve_factor = (double) reserve_perc / 100.0;
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  // This will be set when the heap is expanded
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  // for the first time during initialization.
  _reserve_regions = 0;

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  initialize_all();
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  _collectionSetChooser = new CollectionSetChooser();
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  _young_gen_sizer = new G1YoungGenSizer(); // Must be after call to initialize_flags
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}

void G1CollectorPolicy::initialize_flags() {
  set_min_alignment(HeapRegion::GrainBytes);
  set_max_alignment(GenRemSet::max_alignment_constraint(rem_set_name()));
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  if (SurvivorRatio < 1) {
    vm_exit_during_initialization("Invalid survivor ratio specified");
  }
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  CollectorPolicy::initialize_flags();
}

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G1YoungGenSizer::G1YoungGenSizer() : _sizer_kind(SizerDefaults), _adaptive_size(true) {
  assert(G1DefaultMinNewGenPercent <= G1DefaultMaxNewGenPercent, "Min larger than max");
  assert(G1DefaultMinNewGenPercent > 0 && G1DefaultMinNewGenPercent < 100, "Min out of bounds");
  assert(G1DefaultMaxNewGenPercent > 0 && G1DefaultMaxNewGenPercent < 100, "Max out of bounds");
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  if (FLAG_IS_CMDLINE(NewRatio)) {
    if (FLAG_IS_CMDLINE(NewSize) || FLAG_IS_CMDLINE(MaxNewSize)) {
      warning("-XX:NewSize and -XX:MaxNewSize override -XX:NewRatio");
    } else {
      _sizer_kind = SizerNewRatio;
      _adaptive_size = false;
      return;
    }
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  }
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  if (FLAG_IS_CMDLINE(NewSize)) {
     _min_desired_young_length = MAX2((size_t) 1, NewSize / HeapRegion::GrainBytes);
    if (FLAG_IS_CMDLINE(MaxNewSize)) {
      _max_desired_young_length = MAX2((size_t) 1, MaxNewSize / HeapRegion::GrainBytes);
      _sizer_kind = SizerMaxAndNewSize;
      _adaptive_size = _min_desired_young_length == _max_desired_young_length;
    } else {
      _sizer_kind = SizerNewSizeOnly;
    }
  } else if (FLAG_IS_CMDLINE(MaxNewSize)) {
    _max_desired_young_length = MAX2((size_t) 1, MaxNewSize / HeapRegion::GrainBytes);
    _sizer_kind = SizerMaxNewSizeOnly;
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  }
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}

size_t G1YoungGenSizer::calculate_default_min_length(size_t new_number_of_heap_regions) {
  size_t default_value = (new_number_of_heap_regions * G1DefaultMinNewGenPercent) / 100;
  return MAX2((size_t)1, default_value);
}

size_t G1YoungGenSizer::calculate_default_max_length(size_t new_number_of_heap_regions) {
  size_t default_value = (new_number_of_heap_regions * G1DefaultMaxNewGenPercent) / 100;
  return MAX2((size_t)1, default_value);
}

void G1YoungGenSizer::heap_size_changed(size_t new_number_of_heap_regions) {
  assert(new_number_of_heap_regions > 0, "Heap must be initialized");

  switch (_sizer_kind) {
    case SizerDefaults:
      _min_desired_young_length = calculate_default_min_length(new_number_of_heap_regions);
      _max_desired_young_length = calculate_default_max_length(new_number_of_heap_regions);
      break;
    case SizerNewSizeOnly:
      _max_desired_young_length = calculate_default_max_length(new_number_of_heap_regions);
      _max_desired_young_length = MAX2(_min_desired_young_length, _max_desired_young_length);
      break;
    case SizerMaxNewSizeOnly:
      _min_desired_young_length = calculate_default_min_length(new_number_of_heap_regions);
      _min_desired_young_length = MIN2(_min_desired_young_length, _max_desired_young_length);
      break;
    case SizerMaxAndNewSize:
      // Do nothing. Values set on the command line, don't update them at runtime.
      break;
    case SizerNewRatio:
      _min_desired_young_length = new_number_of_heap_regions / (NewRatio + 1);
      _max_desired_young_length = _min_desired_young_length;
      break;
    default:
      ShouldNotReachHere();
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  }

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  assert(_min_desired_young_length <= _max_desired_young_length, "Invalid min/max young gen size values");
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}

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void G1CollectorPolicy::init() {
  // Set aside an initial future to_space.
  _g1 = G1CollectedHeap::heap();

  assert(Heap_lock->owned_by_self(), "Locking discipline.");

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  initialize_gc_policy_counters();

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  if (adaptive_young_list_length()) {
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    _young_list_fixed_length = 0;
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  } else {
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    _young_list_fixed_length = _young_gen_sizer->min_desired_young_length();
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  }
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  _free_regions_at_end_of_collection = _g1->free_regions();
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  update_young_list_target_length();
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  _prev_eden_capacity = _young_list_target_length * HeapRegion::GrainBytes;
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  // We may immediately start allocating regions and placing them on the
  // collection set list. Initialize the per-collection set info
  start_incremental_cset_building();
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}

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// Create the jstat counters for the policy.
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void G1CollectorPolicy::initialize_gc_policy_counters() {
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  _gc_policy_counters = new GCPolicyCounters("GarbageFirst", 1, 3);
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}

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bool G1CollectorPolicy::predict_will_fit(size_t young_length,
                                         double base_time_ms,
                                         size_t base_free_regions,
                                         double target_pause_time_ms) {
  if (young_length >= base_free_regions) {
    // end condition 1: not enough space for the young regions
    return false;
  }
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  double accum_surv_rate = accum_yg_surv_rate_pred((int)(young_length - 1));
  size_t bytes_to_copy =
               (size_t) (accum_surv_rate * (double) HeapRegion::GrainBytes);
  double copy_time_ms = predict_object_copy_time_ms(bytes_to_copy);
  double young_other_time_ms = predict_young_other_time_ms(young_length);
  double pause_time_ms = base_time_ms + copy_time_ms + young_other_time_ms;
  if (pause_time_ms > target_pause_time_ms) {
    // end condition 2: prediction is over the target pause time
    return false;
  }
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  size_t free_bytes =
                  (base_free_regions - young_length) * HeapRegion::GrainBytes;
  if ((2.0 * sigma()) * (double) bytes_to_copy > (double) free_bytes) {
    // end condition 3: out-of-space (conservatively!)
    return false;
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  }
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  // success!
  return true;
}

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void G1CollectorPolicy::record_new_heap_size(size_t new_number_of_regions) {
  // re-calculate the necessary reserve
  double reserve_regions_d = (double) new_number_of_regions * _reserve_factor;
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  // We use ceiling so that if reserve_regions_d is > 0.0 (but
  // smaller than 1.0) we'll get 1.
  _reserve_regions = (size_t) ceil(reserve_regions_d);
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  _young_gen_sizer->heap_size_changed(new_number_of_regions);
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}

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size_t G1CollectorPolicy::calculate_young_list_desired_min_length(
                                                     size_t base_min_length) {
  size_t desired_min_length = 0;
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  if (adaptive_young_list_length()) {
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    if (_alloc_rate_ms_seq->num() > 3) {
      double now_sec = os::elapsedTime();
      double when_ms = _mmu_tracker->when_max_gc_sec(now_sec) * 1000.0;
      double alloc_rate_ms = predict_alloc_rate_ms();
      desired_min_length = (size_t) ceil(alloc_rate_ms * when_ms);
    } else {
      // otherwise we don't have enough info to make the prediction
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    }
  }
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  desired_min_length += base_min_length;
  // make sure we don't go below any user-defined minimum bound
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  return MAX2(_young_gen_sizer->min_desired_young_length(), desired_min_length);
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}

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size_t G1CollectorPolicy::calculate_young_list_desired_max_length() {
  // Here, we might want to also take into account any additional
  // constraints (i.e., user-defined minimum bound). Currently, we
  // effectively don't set this bound.
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  return _young_gen_sizer->max_desired_young_length();
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}
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void G1CollectorPolicy::update_young_list_target_length(size_t rs_lengths) {
  if (rs_lengths == (size_t) -1) {
    // if it's set to the default value (-1), we should predict it;
    // otherwise, use the given value.
    rs_lengths = (size_t) get_new_prediction(_rs_lengths_seq);
  }
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  // Calculate the absolute and desired min bounds.
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  // This is how many young regions we already have (currently: the survivors).
  size_t base_min_length = recorded_survivor_regions();
  // This is the absolute minimum young length, which ensures that we
  // can allocate one eden region in the worst-case.
  size_t absolute_min_length = base_min_length + 1;
  size_t desired_min_length =
                     calculate_young_list_desired_min_length(base_min_length);
  if (desired_min_length < absolute_min_length) {
    desired_min_length = absolute_min_length;
  }
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  // Calculate the absolute and desired max bounds.
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  // We will try our best not to "eat" into the reserve.
  size_t absolute_max_length = 0;
  if (_free_regions_at_end_of_collection > _reserve_regions) {
    absolute_max_length = _free_regions_at_end_of_collection - _reserve_regions;
  }
  size_t desired_max_length = calculate_young_list_desired_max_length();
  if (desired_max_length > absolute_max_length) {
    desired_max_length = absolute_max_length;
  }
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  size_t young_list_target_length = 0;
  if (adaptive_young_list_length()) {
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    if (gcs_are_young()) {
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      young_list_target_length =
                        calculate_young_list_target_length(rs_lengths,
                                                           base_min_length,
                                                           desired_min_length,
                                                           desired_max_length);
      _rs_lengths_prediction = rs_lengths;
    } else {
      // Don't calculate anything and let the code below bound it to
      // the desired_min_length, i.e., do the next GC as soon as
      // possible to maximize how many old regions we can add to it.
    }
  } else {
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    // The user asked for a fixed young gen so we'll fix the young gen
    // whether the next GC is young or mixed.
    young_list_target_length = _young_list_fixed_length;
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  }
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  // Make sure we don't go over the desired max length, nor under the
  // desired min length. In case they clash, desired_min_length wins
  // which is why that test is second.
  if (young_list_target_length > desired_max_length) {
    young_list_target_length = desired_max_length;
  }
  if (young_list_target_length < desired_min_length) {
    young_list_target_length = desired_min_length;
  }
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  assert(young_list_target_length > recorded_survivor_regions(),
         "we should be able to allocate at least one eden region");
  assert(young_list_target_length >= absolute_min_length, "post-condition");
  _young_list_target_length = young_list_target_length;
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  update_max_gc_locker_expansion();
}
650

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size_t
G1CollectorPolicy::calculate_young_list_target_length(size_t rs_lengths,
                                                   size_t base_min_length,
                                                   size_t desired_min_length,
                                                   size_t desired_max_length) {
  assert(adaptive_young_list_length(), "pre-condition");
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  assert(gcs_are_young(), "only call this for young GCs");
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  // In case some edge-condition makes the desired max length too small...
  if (desired_max_length <= desired_min_length) {
    return desired_min_length;
  }

  // We'll adjust min_young_length and max_young_length not to include
  // the already allocated young regions (i.e., so they reflect the
  // min and max eden regions we'll allocate). The base_min_length
  // will be reflected in the predictions by the
  // survivor_regions_evac_time prediction.
  assert(desired_min_length > base_min_length, "invariant");
  size_t min_young_length = desired_min_length - base_min_length;
  assert(desired_max_length > base_min_length, "invariant");
  size_t max_young_length = desired_max_length - base_min_length;

  double target_pause_time_ms = _mmu_tracker->max_gc_time() * 1000.0;
  double survivor_regions_evac_time = predict_survivor_regions_evac_time();
  size_t pending_cards = (size_t) get_new_prediction(_pending_cards_seq);
  size_t adj_rs_lengths = rs_lengths + predict_rs_length_diff();
  size_t scanned_cards = predict_young_card_num(adj_rs_lengths);
  double base_time_ms =
    predict_base_elapsed_time_ms(pending_cards, scanned_cards) +
    survivor_regions_evac_time;
  size_t available_free_regions = _free_regions_at_end_of_collection;
  size_t base_free_regions = 0;
  if (available_free_regions > _reserve_regions) {
    base_free_regions = available_free_regions - _reserve_regions;
  }

  // Here, we will make sure that the shortest young length that
  // makes sense fits within the target pause time.

  if (predict_will_fit(min_young_length, base_time_ms,
                       base_free_regions, target_pause_time_ms)) {
    // The shortest young length will fit into the target pause time;
    // we'll now check whether the absolute maximum number of young
    // regions will fit in the target pause time. If not, we'll do
    // a binary search between min_young_length and max_young_length.
    if (predict_will_fit(max_young_length, base_time_ms,
                         base_free_regions, target_pause_time_ms)) {
      // The maximum young length will fit into the target pause time.
      // We are done so set min young length to the maximum length (as
      // the result is assumed to be returned in min_young_length).
      min_young_length = max_young_length;
    } else {
      // The maximum possible number of young regions will not fit within
      // the target pause time so we'll search for the optimal
      // length. The loop invariants are:
      //
      // min_young_length < max_young_length
      // min_young_length is known to fit into the target pause time
      // max_young_length is known not to fit into the target pause time
      //
      // Going into the loop we know the above hold as we've just
      // checked them. Every time around the loop we check whether
      // the middle value between min_young_length and
      // max_young_length fits into the target pause time. If it
      // does, it becomes the new min. If it doesn't, it becomes
      // the new max. This way we maintain the loop invariants.

      assert(min_young_length < max_young_length, "invariant");
      size_t diff = (max_young_length - min_young_length) / 2;
      while (diff > 0) {
        size_t young_length = min_young_length + diff;
        if (predict_will_fit(young_length, base_time_ms,
                             base_free_regions, target_pause_time_ms)) {
          min_young_length = young_length;
        } else {
          max_young_length = young_length;
        }
        assert(min_young_length <  max_young_length, "invariant");
        diff = (max_young_length - min_young_length) / 2;
      }
      // The results is min_young_length which, according to the
      // loop invariants, should fit within the target pause time.

      // These are the post-conditions of the binary search above:
      assert(min_young_length < max_young_length,
             "otherwise we should have discovered that max_young_length "
             "fits into the pause target and not done the binary search");
      assert(predict_will_fit(min_young_length, base_time_ms,
                              base_free_regions, target_pause_time_ms),
             "min_young_length, the result of the binary search, should "
             "fit into the pause target");
      assert(!predict_will_fit(min_young_length + 1, base_time_ms,
                               base_free_regions, target_pause_time_ms),
             "min_young_length, the result of the binary search, should be "
             "optimal, so no larger length should fit into the pause target");
    }
  } else {
    // Even the minimum length doesn't fit into the pause time
    // target, return it as the result nevertheless.
  }
  return base_min_length + min_young_length;
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}

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double G1CollectorPolicy::predict_survivor_regions_evac_time() {
  double survivor_regions_evac_time = 0.0;
  for (HeapRegion * r = _recorded_survivor_head;
       r != NULL && r != _recorded_survivor_tail->get_next_young_region();
       r = r->get_next_young_region()) {
    survivor_regions_evac_time += predict_region_elapsed_time_ms(r, true);
  }
  return survivor_regions_evac_time;
}

765
void G1CollectorPolicy::revise_young_list_target_length_if_necessary() {
766 767
  guarantee( adaptive_young_list_length(), "should not call this otherwise" );

768
  size_t rs_lengths = _g1->young_list()->sampled_rs_lengths();
769 770 771
  if (rs_lengths > _rs_lengths_prediction) {
    // add 10% to avoid having to recalculate often
    size_t rs_lengths_prediction = rs_lengths * 1100 / 1000;
772
    update_young_list_target_length(rs_lengths_prediction);
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  }
}

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HeapWord* G1CollectorPolicy::mem_allocate_work(size_t size,
                                               bool is_tlab,
                                               bool* gc_overhead_limit_was_exceeded) {
  guarantee(false, "Not using this policy feature yet.");
  return NULL;
}

// This method controls how a collector handles one or more
// of its generations being fully allocated.
HeapWord* G1CollectorPolicy::satisfy_failed_allocation(size_t size,
                                                       bool is_tlab) {
  guarantee(false, "Not using this policy feature yet.");
  return NULL;
}


#ifndef PRODUCT
bool G1CollectorPolicy::verify_young_ages() {
796
  HeapRegion* head = _g1->young_list()->first_region();
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  return
    verify_young_ages(head, _short_lived_surv_rate_group);
  // also call verify_young_ages on any additional surv rate groups
}

bool
G1CollectorPolicy::verify_young_ages(HeapRegion* head,
                                     SurvRateGroup *surv_rate_group) {
  guarantee( surv_rate_group != NULL, "pre-condition" );

  const char* name = surv_rate_group->name();
  bool ret = true;
  int prev_age = -1;

  for (HeapRegion* curr = head;
       curr != NULL;
       curr = curr->get_next_young_region()) {
    SurvRateGroup* group = curr->surv_rate_group();
    if (group == NULL && !curr->is_survivor()) {
      gclog_or_tty->print_cr("## %s: encountered NULL surv_rate_group", name);
      ret = false;
    }

    if (surv_rate_group == group) {
      int age = curr->age_in_surv_rate_group();

      if (age < 0) {
        gclog_or_tty->print_cr("## %s: encountered negative age", name);
        ret = false;
      }

      if (age <= prev_age) {
        gclog_or_tty->print_cr("## %s: region ages are not strictly increasing "
                               "(%d, %d)", name, age, prev_age);
        ret = false;
      }
      prev_age = age;
    }
  }

  return ret;
}
#endif // PRODUCT

void G1CollectorPolicy::record_full_collection_start() {
  _cur_collection_start_sec = os::elapsedTime();
  // Release the future to-space so that it is available for compaction into.
  _g1->set_full_collection();
}

void G1CollectorPolicy::record_full_collection_end() {
  // Consider this like a collection pause for the purposes of allocation
  // since last pause.
  double end_sec = os::elapsedTime();
  double full_gc_time_sec = end_sec - _cur_collection_start_sec;
  double full_gc_time_ms = full_gc_time_sec * 1000.0;

  _all_full_gc_times_ms->add(full_gc_time_ms);

856
  update_recent_gc_times(end_sec, full_gc_time_ms);
857 858 859

  _g1->clear_full_collection();

860 861 862 863
  // "Nuke" the heuristics that control the young/mixed GC
  // transitions and make sure we start with young GCs after the Full GC.
  set_gcs_are_young(true);
  _last_young_gc = false;
864 865
  clear_initiate_conc_mark_if_possible();
  clear_during_initial_mark_pause();
866 867 868 869 870 871 872 873
  _known_garbage_bytes = 0;
  _known_garbage_ratio = 0.0;
  _in_marking_window = false;
  _in_marking_window_im = false;

  _short_lived_surv_rate_group->start_adding_regions();
  // also call this on any additional surv rate groups

874 875
  record_survivor_regions(0, NULL, NULL);

876
  _free_regions_at_end_of_collection = _g1->free_regions();
877 878
  // Reset survivors SurvRateGroup.
  _survivor_surv_rate_group->reset();
879
  update_young_list_target_length();
880
  _collectionSetChooser->clearMarkedHeapRegions();
881
}
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void G1CollectorPolicy::record_stop_world_start() {
  _stop_world_start = os::elapsedTime();
}

void G1CollectorPolicy::record_collection_pause_start(double start_time_sec,
                                                      size_t start_used) {
  if (PrintGCDetails) {
    gclog_or_tty->stamp(PrintGCTimeStamps);
    gclog_or_tty->print("[GC pause");
892
    gclog_or_tty->print(" (%s)", gcs_are_young() ? "young" : "mixed");
893 894
  }

895 896 897 898
  // We only need to do this here as the policy will only be applied
  // to the GC we're about to start. so, no point is calculating this
  // every time we calculate / recalculate the target young length.
  update_survivors_policy();
899

900 901 902
  assert(_g1->used() == _g1->recalculate_used(),
         err_msg("sanity, used: "SIZE_FORMAT" recalculate_used: "SIZE_FORMAT,
                 _g1->used(), _g1->recalculate_used()));
903 904 905 906 907 908 909 910 911 912 913 914

  double s_w_t_ms = (start_time_sec - _stop_world_start) * 1000.0;
  _all_stop_world_times_ms->add(s_w_t_ms);
  _stop_world_start = 0.0;

  _cur_collection_start_sec = start_time_sec;
  _cur_collection_pause_used_at_start_bytes = start_used;
  _cur_collection_pause_used_regions_at_start = _g1->used_regions();
  _pending_cards = _g1->pending_card_num();
  _max_pending_cards = _g1->max_pending_card_num();

  _bytes_in_collection_set_before_gc = 0;
915
  _bytes_copied_during_gc = 0;
916

917 918 919 920 921
  YoungList* young_list = _g1->young_list();
  _eden_bytes_before_gc = young_list->eden_used_bytes();
  _survivor_bytes_before_gc = young_list->survivor_used_bytes();
  _capacity_before_gc = _g1->capacity();

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#ifdef DEBUG
  // initialise these to something well known so that we can spot
  // if they are not set properly

  for (int i = 0; i < _parallel_gc_threads; ++i) {
927 928
    _par_last_gc_worker_start_times_ms[i] = -1234.0;
    _par_last_ext_root_scan_times_ms[i] = -1234.0;
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    _par_last_satb_filtering_times_ms[i] = -1234.0;
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    _par_last_update_rs_times_ms[i] = -1234.0;
    _par_last_update_rs_processed_buffers[i] = -1234.0;
    _par_last_scan_rs_times_ms[i] = -1234.0;
    _par_last_obj_copy_times_ms[i] = -1234.0;
    _par_last_termination_times_ms[i] = -1234.0;
    _par_last_termination_attempts[i] = -1234.0;
    _par_last_gc_worker_end_times_ms[i] = -1234.0;
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    _par_last_gc_worker_times_ms[i] = -1234.0;
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    _par_last_gc_worker_other_times_ms[i] = -1234.0;
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  }
#endif

  for (int i = 0; i < _aux_num; ++i) {
    _cur_aux_times_ms[i] = 0.0;
    _cur_aux_times_set[i] = false;
  }

947
  // This is initialized to zero here and is set during
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  // the evacuation pause if marking is in progress.
  _cur_satb_drain_time_ms = 0.0;
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  // This is initialized to zero here and is set during the evacuation
  // pause if we actually waited for the root region scanning to finish.
  _root_region_scan_wait_time_ms = 0.0;
953

954
  _last_gc_was_young = false;
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  // do that for any other surv rate groups
  _short_lived_surv_rate_group->stop_adding_regions();
958
  _survivors_age_table.clear();
959

960 961 962
  assert( verify_young_ages(), "region age verification" );
}

963
void G1CollectorPolicy::record_concurrent_mark_init_end(double
964 965
                                                   mark_init_elapsed_time_ms) {
  _during_marking = true;
966 967
  assert(!initiate_conc_mark_if_possible(), "we should have cleared it by now");
  clear_during_initial_mark_pause();
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  _cur_mark_stop_world_time_ms = mark_init_elapsed_time_ms;
}

void G1CollectorPolicy::record_concurrent_mark_remark_start() {
  _mark_remark_start_sec = os::elapsedTime();
  _during_marking = false;
}

void G1CollectorPolicy::record_concurrent_mark_remark_end() {
  double end_time_sec = os::elapsedTime();
  double elapsed_time_ms = (end_time_sec - _mark_remark_start_sec)*1000.0;
  _concurrent_mark_remark_times_ms->add(elapsed_time_ms);
  _cur_mark_stop_world_time_ms += elapsed_time_ms;
  _prev_collection_pause_end_ms += elapsed_time_ms;

  _mmu_tracker->add_pause(_mark_remark_start_sec, end_time_sec, true);
}

void G1CollectorPolicy::record_concurrent_mark_cleanup_start() {
  _mark_cleanup_start_sec = os::elapsedTime();
}

990
void G1CollectorPolicy::record_concurrent_mark_cleanup_completed() {
991
  _last_young_gc = true;
992
  _in_marking_window = false;
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}

void G1CollectorPolicy::record_concurrent_pause() {
  if (_stop_world_start > 0.0) {
    double yield_ms = (os::elapsedTime() - _stop_world_start) * 1000.0;
    _all_yield_times_ms->add(yield_ms);
  }
}

void G1CollectorPolicy::record_concurrent_pause_end() {
}

template<class T>
T sum_of(T* sum_arr, int start, int n, int N) {
  T sum = (T)0;
  for (int i = 0; i < n; i++) {
    int j = (start + i) % N;
    sum += sum_arr[j];
  }
  return sum;
}

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void G1CollectorPolicy::print_par_stats(int level,
                                        const char* str,
1017
                                        double* data) {
1018 1019
  double min = data[0], max = data[0];
  double total = 0.0;
1020 1021
  LineBuffer buf(level);
  buf.append("[%s (ms):", str);
1022
  for (uint i = 0; i < no_of_gc_threads(); ++i) {
1023 1024 1025 1026 1027 1028
    double val = data[i];
    if (val < min)
      min = val;
    if (val > max)
      max = val;
    total += val;
1029
    buf.append("  %3.1lf", val);
1030
  }
1031
  buf.append_and_print_cr("");
1032
  double avg = total / (double) no_of_gc_threads();
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  buf.append_and_print_cr(" Avg: %5.1lf, Min: %5.1lf, Max: %5.1lf, Diff: %5.1lf]",
    avg, min, max, max - min);
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}

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void G1CollectorPolicy::print_par_sizes(int level,
                                        const char* str,
1039
                                        double* data) {
1040 1041
  double min = data[0], max = data[0];
  double total = 0.0;
1042 1043
  LineBuffer buf(level);
  buf.append("[%s :", str);
1044
  for (uint i = 0; i < no_of_gc_threads(); ++i) {
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    double val = data[i];
    if (val < min)
      min = val;
    if (val > max)
      max = val;
    total += val;
1051
    buf.append(" %d", (int) val);
1052
  }
1053
  buf.append_and_print_cr("");
1054
  double avg = total / (double) no_of_gc_threads();
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  buf.append_and_print_cr(" Sum: %d, Avg: %d, Min: %d, Max: %d, Diff: %d]",
    (int)total, (int)avg, (int)min, (int)max, (int)max - (int)min);
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}

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void G1CollectorPolicy::print_stats(int level,
                                    const char* str,
                                    double value) {
1062
  LineBuffer(level).append_and_print_cr("[%s: %5.1lf ms]", str, value);
1063 1064
}

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void G1CollectorPolicy::print_stats(int level,
                                    const char* str,
                                    int value) {
1068
  LineBuffer(level).append_and_print_cr("[%s: %d]", str, value);
1069 1070
}

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double G1CollectorPolicy::avg_value(double* data) {
1072
  if (G1CollectedHeap::use_parallel_gc_threads()) {
1073
    double ret = 0.0;
1074
    for (uint i = 0; i < no_of_gc_threads(); ++i) {
1075
      ret += data[i];
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    }
1077
    return ret / (double) no_of_gc_threads();
1078 1079 1080 1081 1082
  } else {
    return data[0];
  }
}

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double G1CollectorPolicy::max_value(double* data) {
1084
  if (G1CollectedHeap::use_parallel_gc_threads()) {
1085
    double ret = data[0];
1086
    for (uint i = 1; i < no_of_gc_threads(); ++i) {
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      if (data[i] > ret) {
1088
        ret = data[i];
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      }
    }
1091 1092 1093 1094 1095 1096
    return ret;
  } else {
    return data[0];
  }
}

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double G1CollectorPolicy::sum_of_values(double* data) {
1098
  if (G1CollectedHeap::use_parallel_gc_threads()) {
1099
    double sum = 0.0;
1100
    for (uint i = 0; i < no_of_gc_threads(); i++) {
1101
      sum += data[i];
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    }
1103 1104 1105 1106 1107 1108
    return sum;
  } else {
    return data[0];
  }
}

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double G1CollectorPolicy::max_sum(double* data1, double* data2) {
1110 1111
  double ret = data1[0] + data2[0];

1112
  if (G1CollectedHeap::use_parallel_gc_threads()) {
1113
    for (uint i = 1; i < no_of_gc_threads(); ++i) {
1114
      double data = data1[i] + data2[i];
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      if (data > ret) {
1116
        ret = data;
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      }
1118 1119 1120 1121 1122
    }
  }
  return ret;
}

1123 1124
bool G1CollectorPolicy::need_to_start_conc_mark(const char* source, size_t alloc_word_size) {
  if (_g1->concurrent_mark()->cmThread()->during_cycle()) {
1125 1126 1127 1128 1129 1130
    return false;
  }

  size_t marking_initiating_used_threshold =
    (_g1->capacity() / 100) * InitiatingHeapOccupancyPercent;
  size_t cur_used_bytes = _g1->non_young_capacity_bytes();
1131
  size_t alloc_byte_size = alloc_word_size * HeapWordSize;
1132

1133
  if ((cur_used_bytes + alloc_byte_size) > marking_initiating_used_threshold) {
1134
    if (gcs_are_young()) {
1135
      ergo_verbose5(ErgoConcCycles,
1136 1137 1138
        "request concurrent cycle initiation",
        ergo_format_reason("occupancy higher than threshold")
        ergo_format_byte("occupancy")
1139
        ergo_format_byte("allocation request")
1140 1141 1142
        ergo_format_byte_perc("threshold")
        ergo_format_str("source"),
        cur_used_bytes,
1143
        alloc_byte_size,
1144 1145 1146 1147 1148
        marking_initiating_used_threshold,
        (double) InitiatingHeapOccupancyPercent,
        source);
      return true;
    } else {
1149
      ergo_verbose5(ErgoConcCycles,
1150 1151 1152
        "do not request concurrent cycle initiation",
        ergo_format_reason("still doing mixed collections")
        ergo_format_byte("occupancy")
1153
        ergo_format_byte("allocation request")
1154 1155 1156
        ergo_format_byte_perc("threshold")
        ergo_format_str("source"),
        cur_used_bytes,
1157
        alloc_byte_size,
1158 1159 1160 1161 1162 1163 1164 1165 1166
        marking_initiating_used_threshold,
        (double) InitiatingHeapOccupancyPercent,
        source);
    }
  }

  return false;
}

1167 1168 1169
// Anything below that is considered to be zero
#define MIN_TIMER_GRANULARITY 0.0000001

1170
void G1CollectorPolicy::record_collection_pause_end(int no_of_gc_threads) {
1171 1172
  double end_time_sec = os::elapsedTime();
  double elapsed_ms = _last_pause_time_ms;
1173
  bool parallel = G1CollectedHeap::use_parallel_gc_threads();
1174 1175
  assert(_cur_collection_pause_used_regions_at_start >= cset_region_length(),
         "otherwise, the subtraction below does not make sense");
1176
  size_t rs_size =
1177
            _cur_collection_pause_used_regions_at_start - cset_region_length();
1178 1179 1180
  size_t cur_used_bytes = _g1->used();
  assert(cur_used_bytes == _g1->recalculate_used(), "It should!");
  bool last_pause_included_initial_mark = false;
1181
  bool update_stats = !_g1->evacuation_failed();
1182
  set_no_of_gc_threads(no_of_gc_threads);
1183 1184 1185 1186 1187 1188 1189 1190 1191

#ifndef PRODUCT
  if (G1YoungSurvRateVerbose) {
    gclog_or_tty->print_cr("");
    _short_lived_surv_rate_group->print();
    // do that for any other surv rate groups too
  }
#endif // PRODUCT

1192
  last_pause_included_initial_mark = during_initial_mark_pause();
1193
  if (last_pause_included_initial_mark) {
1194
    record_concurrent_mark_init_end(0.0);
1195
  } else if (!_last_young_gc && need_to_start_conc_mark("end of GC")) {
1196 1197 1198 1199 1200
    // Note: this might have already been set, if during the last
    // pause we decided to start a cycle but at the beginning of
    // this pause we decided to postpone it. That's OK.
    set_initiate_conc_mark_if_possible();
  }
1201

1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222
  _mmu_tracker->add_pause(end_time_sec - elapsed_ms/1000.0,
                          end_time_sec, false);

  // This assert is exempted when we're doing parallel collection pauses,
  // because the fragmentation caused by the parallel GC allocation buffers
  // can lead to more memory being used during collection than was used
  // before. Best leave this out until the fragmentation problem is fixed.
  // Pauses in which evacuation failed can also lead to negative
  // collections, since no space is reclaimed from a region containing an
  // object whose evacuation failed.
  // Further, we're now always doing parallel collection.  But I'm still
  // leaving this here as a placeholder for a more precise assertion later.
  // (DLD, 10/05.)
  assert((true || parallel) // Always using GC LABs now.
         || _g1->evacuation_failed()
         || _cur_collection_pause_used_at_start_bytes >= cur_used_bytes,
         "Negative collection");

  size_t freed_bytes =
    _cur_collection_pause_used_at_start_bytes - cur_used_bytes;
  size_t surviving_bytes = _collection_set_bytes_used_before - freed_bytes;
1223

1224 1225 1226 1227
  double survival_fraction =
    (double)surviving_bytes/
    (double)_collection_set_bytes_used_before;

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  // These values are used to update the summary information that is
  // displayed when TraceGen0Time is enabled, and are output as part
  // of the PrintGCDetails output, in the non-parallel case.

1232
  double ext_root_scan_time = avg_value(_par_last_ext_root_scan_times_ms);
1233
  double satb_filtering_time = avg_value(_par_last_satb_filtering_times_ms);
1234 1235 1236 1237 1238 1239 1240
  double update_rs_time = avg_value(_par_last_update_rs_times_ms);
  double update_rs_processed_buffers =
    sum_of_values(_par_last_update_rs_processed_buffers);
  double scan_rs_time = avg_value(_par_last_scan_rs_times_ms);
  double obj_copy_time = avg_value(_par_last_obj_copy_times_ms);
  double termination_time = avg_value(_par_last_termination_times_ms);

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  double known_time = ext_root_scan_time +
1242
                      satb_filtering_time +
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                      update_rs_time +
                      scan_rs_time +
                      obj_copy_time;

  double other_time_ms = elapsed_ms;

  // Subtract the SATB drain time. It's initialized to zero at the
  // start of the pause and is updated during the pause if marking
  // is in progress.
  other_time_ms -= _cur_satb_drain_time_ms;

1254 1255 1256 1257
  // Subtract the root region scanning wait time. It's initialized to
  // zero at the start of the pause.
  other_time_ms -= _root_region_scan_wait_time_ms;

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  if (parallel) {
    other_time_ms -= _cur_collection_par_time_ms;
  } else {
    other_time_ms -= known_time;
  }
1263

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  // Subtract the time taken to clean the card table from the
  // current value of "other time"
  other_time_ms -= _cur_clear_ct_time_ms;
1267

1268 1269 1270 1271 1272
  // Subtract the time spent completing marking in the collection
  // set. Note if marking is not in progress during the pause
  // the value of _mark_closure_time_ms will be zero.
  other_time_ms -= _mark_closure_time_ms;

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  // TraceGen0Time and TraceGen1Time summary info updating.
  _all_pause_times_ms->add(elapsed_ms);
1275

1276
  if (update_stats) {
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    _summary->record_total_time_ms(elapsed_ms);
    _summary->record_other_time_ms(other_time_ms);

    MainBodySummary* body_summary = _summary->main_body_summary();
    assert(body_summary != NULL, "should not be null!");
1282

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    // This will be non-zero iff marking is currently in progress (i.e.
    // _g1->mark_in_progress() == true) and the currrent pause was not
    // an initial mark pause. Since the body_summary items are NumberSeqs,
    // however, they have to be consistent and updated in lock-step with
    // each other. Therefore we unconditionally record the SATB drain
    // time - even if it's zero.
    body_summary->record_satb_drain_time_ms(_cur_satb_drain_time_ms);
1290 1291
    body_summary->record_root_region_scan_wait_time_ms(
                                               _root_region_scan_wait_time_ms);
1292 1293

    body_summary->record_ext_root_scan_time_ms(ext_root_scan_time);
1294
    body_summary->record_satb_filtering_time_ms(satb_filtering_time);
1295 1296 1297
    body_summary->record_update_rs_time_ms(update_rs_time);
    body_summary->record_scan_rs_time_ms(scan_rs_time);
    body_summary->record_obj_copy_time_ms(obj_copy_time);
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1299 1300 1301
    if (parallel) {
      body_summary->record_parallel_time_ms(_cur_collection_par_time_ms);
      body_summary->record_termination_time_ms(termination_time);
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      double parallel_known_time = known_time + termination_time;
      double parallel_other_time = _cur_collection_par_time_ms - parallel_known_time;
1305 1306
      body_summary->record_parallel_other_time_ms(parallel_other_time);
    }
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1308
    body_summary->record_mark_closure_time_ms(_mark_closure_time_ms);
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    body_summary->record_clear_ct_time_ms(_cur_clear_ct_time_ms);
1310

1311 1312 1313 1314 1315 1316 1317 1318 1319 1320
    // We exempt parallel collection from this check because Alloc Buffer
    // fragmentation can produce negative collections.  Same with evac
    // failure.
    // Further, we're now always doing parallel collection.  But I'm still
    // leaving this here as a placeholder for a more precise assertion later.
    // (DLD, 10/05.
    assert((true || parallel)
           || _g1->evacuation_failed()
           || surviving_bytes <= _collection_set_bytes_used_before,
           "Or else negative collection!");
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1322 1323 1324 1325 1326 1327 1328 1329 1330
    // this is where we update the allocation rate of the application
    double app_time_ms =
      (_cur_collection_start_sec * 1000.0 - _prev_collection_pause_end_ms);
    if (app_time_ms < MIN_TIMER_GRANULARITY) {
      // This usually happens due to the timer not having the required
      // granularity. Some Linuxes are the usual culprits.
      // We'll just set it to something (arbitrarily) small.
      app_time_ms = 1.0;
    }
1331 1332 1333 1334 1335 1336 1337 1338 1339
    // We maintain the invariant that all objects allocated by mutator
    // threads will be allocated out of eden regions. So, we can use
    // the eden region number allocated since the previous GC to
    // calculate the application's allocate rate. The only exception
    // to that is humongous objects that are allocated separately. But
    // given that humongous object allocations do not really affect
    // either the pause's duration nor when the next pause will take
    // place we can safely ignore them here.
    size_t regions_allocated = eden_cset_region_length();
1340 1341 1342 1343 1344 1345 1346
    double alloc_rate_ms = (double) regions_allocated / app_time_ms;
    _alloc_rate_ms_seq->add(alloc_rate_ms);

    double interval_ms =
      (end_time_sec - _recent_prev_end_times_for_all_gcs_sec->oldest()) * 1000.0;
    update_recent_gc_times(end_time_sec, elapsed_ms);
    _recent_avg_pause_time_ratio = _recent_gc_times_ms->sum()/interval_ms;
1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357 1358
    if (recent_avg_pause_time_ratio() < 0.0 ||
        (recent_avg_pause_time_ratio() - 1.0 > 0.0)) {
#ifndef PRODUCT
      // Dump info to allow post-facto debugging
      gclog_or_tty->print_cr("recent_avg_pause_time_ratio() out of bounds");
      gclog_or_tty->print_cr("-------------------------------------------");
      gclog_or_tty->print_cr("Recent GC Times (ms):");
      _recent_gc_times_ms->dump();
      gclog_or_tty->print_cr("(End Time=%3.3f) Recent GC End Times (s):", end_time_sec);
      _recent_prev_end_times_for_all_gcs_sec->dump();
      gclog_or_tty->print_cr("GC = %3.3f, Interval = %3.3f, Ratio = %3.3f",
                             _recent_gc_times_ms->sum(), interval_ms, recent_avg_pause_time_ratio());
1359 1360 1361 1362 1363
      // In debug mode, terminate the JVM if the user wants to debug at this point.
      assert(!G1FailOnFPError, "Debugging data for CR 6898948 has been dumped above");
#endif  // !PRODUCT
      // Clip ratio between 0.0 and 1.0, and continue. This will be fixed in
      // CR 6902692 by redoing the manner in which the ratio is incrementally computed.
1364 1365 1366 1367 1368 1369 1370
      if (_recent_avg_pause_time_ratio < 0.0) {
        _recent_avg_pause_time_ratio = 0.0;
      } else {
        assert(_recent_avg_pause_time_ratio - 1.0 > 0.0, "Ctl-point invariant");
        _recent_avg_pause_time_ratio = 1.0;
      }
    }
1371 1372
  }

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  for (int i = 0; i < _aux_num; ++i) {
    if (_cur_aux_times_set[i]) {
      _all_aux_times_ms[i].add(_cur_aux_times_ms[i]);
    }
  }

  // PrintGCDetails output
1380
  if (PrintGCDetails) {
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    bool print_marking_info =
      _g1->mark_in_progress() && !last_pause_included_initial_mark;

1384
    gclog_or_tty->print_cr("%s, %1.8lf secs]",
1385 1386 1387
                           (last_pause_included_initial_mark) ? " (initial-mark)" : "",
                           elapsed_ms / 1000.0);

1388 1389 1390
    if (_root_region_scan_wait_time_ms > 0.0) {
      print_stats(1, "Root Region Scan Waiting", _root_region_scan_wait_time_ms);
    }
1391 1392
    if (parallel) {
      print_stats(1, "Parallel Time", _cur_collection_par_time_ms);
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      print_par_stats(2, "GC Worker Start", _par_last_gc_worker_start_times_ms);
      print_par_stats(2, "Ext Root Scanning", _par_last_ext_root_scan_times_ms);
      if (print_marking_info) {
1396
        print_par_stats(2, "SATB Filtering", _par_last_satb_filtering_times_ms);
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1397
      }
1398
      print_par_stats(2, "Update RS", _par_last_update_rs_times_ms);
1399
      print_par_sizes(3, "Processed Buffers", _par_last_update_rs_processed_buffers);
1400 1401 1402
      print_par_stats(2, "Scan RS", _par_last_scan_rs_times_ms);
      print_par_stats(2, "Object Copy", _par_last_obj_copy_times_ms);
      print_par_stats(2, "Termination", _par_last_termination_times_ms);
1403
      print_par_sizes(3, "Termination Attempts", _par_last_termination_attempts);
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      print_par_stats(2, "GC Worker End", _par_last_gc_worker_end_times_ms);
1405 1406 1407 1408

      for (int i = 0; i < _parallel_gc_threads; i++) {
        _par_last_gc_worker_times_ms[i] = _par_last_gc_worker_end_times_ms[i] - _par_last_gc_worker_start_times_ms[i];

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        double worker_known_time = _par_last_ext_root_scan_times_ms[i] +
1410
                                   _par_last_satb_filtering_times_ms[i] +
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                                   _par_last_update_rs_times_ms[i] +
                                   _par_last_scan_rs_times_ms[i] +
                                   _par_last_obj_copy_times_ms[i] +
                                   _par_last_termination_times_ms[i];

        _par_last_gc_worker_other_times_ms[i] = _cur_collection_par_time_ms - worker_known_time;
      }
      print_par_stats(2, "GC Worker", _par_last_gc_worker_times_ms);
      print_par_stats(2, "GC Worker Other", _par_last_gc_worker_other_times_ms);
1420 1421
    } else {
      print_stats(1, "Ext Root Scanning", ext_root_scan_time);
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      if (print_marking_info) {
1423
        print_stats(1, "SATB Filtering", satb_filtering_time);
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1424 1425 1426
      }
      print_stats(1, "Update RS", update_rs_time);
      print_stats(2, "Processed Buffers", (int)update_rs_processed_buffers);
1427 1428
      print_stats(1, "Scan RS", scan_rs_time);
      print_stats(1, "Object Copying", obj_copy_time);
1429
    }
1430 1431 1432
    if (print_marking_info) {
      print_stats(1, "Complete CSet Marking", _mark_closure_time_ms);
    }
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    print_stats(1, "Clear CT", _cur_clear_ct_time_ms);
1434 1435 1436 1437 1438 1439 1440 1441 1442
#ifndef PRODUCT
    print_stats(1, "Cur Clear CC", _cur_clear_cc_time_ms);
    print_stats(1, "Cum Clear CC", _cum_clear_cc_time_ms);
    print_stats(1, "Min Clear CC", _min_clear_cc_time_ms);
    print_stats(1, "Max Clear CC", _max_clear_cc_time_ms);
    if (_num_cc_clears > 0) {
      print_stats(1, "Avg Clear CC", _cum_clear_cc_time_ms / ((double)_num_cc_clears));
    }
#endif
1443
    print_stats(1, "Other", other_time_ms);
1444 1445 1446
    print_stats(2, "Choose CSet",
                   (_recorded_young_cset_choice_time_ms +
                    _recorded_non_young_cset_choice_time_ms));
1447 1448
    print_stats(2, "Ref Proc", _cur_ref_proc_time_ms);
    print_stats(2, "Ref Enq", _cur_ref_enq_time_ms);
1449 1450 1451
    print_stats(2, "Free CSet",
                   (_recorded_young_free_cset_time_ms +
                    _recorded_non_young_free_cset_time_ms));
1452

1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473
    for (int i = 0; i < _aux_num; ++i) {
      if (_cur_aux_times_set[i]) {
        char buffer[96];
        sprintf(buffer, "Aux%d", i);
        print_stats(1, buffer, _cur_aux_times_ms[i]);
      }
    }
  }

  // Update the efficiency-since-mark vars.
  double proc_ms = elapsed_ms * (double) _parallel_gc_threads;
  if (elapsed_ms < MIN_TIMER_GRANULARITY) {
    // This usually happens due to the timer not having the required
    // granularity. Some Linuxes are the usual culprits.
    // We'll just set it to something (arbitrarily) small.
    proc_ms = 1.0;
  }
  double cur_efficiency = (double) freed_bytes / proc_ms;

  bool new_in_marking_window = _in_marking_window;
  bool new_in_marking_window_im = false;
1474
  if (during_initial_mark_pause()) {
1475 1476 1477 1478
    new_in_marking_window = true;
    new_in_marking_window_im = true;
  }

1479
  if (_last_young_gc) {
1480 1481 1482
    // This is supposed to to be the "last young GC" before we start
    // doing mixed GCs. Here we decide whether to start mixed GCs or not.

1483
    if (!last_pause_included_initial_mark) {
1484 1485 1486 1487
      if (next_gc_should_be_mixed("start mixed GCs",
                                  "do not start mixed GCs")) {
        set_gcs_are_young(false);
      }
1488
    } else {
1489 1490
      ergo_verbose0(ErgoMixedGCs,
                    "do not start mixed GCs",
1491 1492
                    ergo_format_reason("concurrent cycle is about to start"));
    }
1493
    _last_young_gc = false;
1494
  }
1495

1496
  if (!_last_gc_was_young) {
1497 1498 1499 1500 1501
    // This is a mixed GC. Here we decide whether to continue doing
    // mixed GCs or not.

    if (!next_gc_should_be_mixed("continue mixed GCs",
                                 "do not continue mixed GCs")) {
1502
      set_gcs_are_young(true);
1503
    }
1504
  }
1505

1506
  if (_last_gc_was_young && !_during_marking) {
1507
    _young_gc_eff_seq->add(cur_efficiency);
1508 1509 1510 1511 1512
  }

  _short_lived_surv_rate_group->start_adding_regions();
  // do that for any other surv rate groupsx

1513
  if (update_stats) {
1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528 1529 1530 1531
    double pause_time_ms = elapsed_ms;

    size_t diff = 0;
    if (_max_pending_cards >= _pending_cards)
      diff = _max_pending_cards - _pending_cards;
    _pending_card_diff_seq->add((double) diff);

    double cost_per_card_ms = 0.0;
    if (_pending_cards > 0) {
      cost_per_card_ms = update_rs_time / (double) _pending_cards;
      _cost_per_card_ms_seq->add(cost_per_card_ms);
    }

    size_t cards_scanned = _g1->cards_scanned();

    double cost_per_entry_ms = 0.0;
    if (cards_scanned > 10) {
      cost_per_entry_ms = scan_rs_time / (double) cards_scanned;
1532
      if (_last_gc_was_young) {
1533
        _cost_per_entry_ms_seq->add(cost_per_entry_ms);
1534 1535 1536
      } else {
        _mixed_cost_per_entry_ms_seq->add(cost_per_entry_ms);
      }
1537 1538 1539 1540 1541
    }

    if (_max_rs_lengths > 0) {
      double cards_per_entry_ratio =
        (double) cards_scanned / (double) _max_rs_lengths;
1542 1543 1544 1545 1546
      if (_last_gc_was_young) {
        _young_cards_per_entry_ratio_seq->add(cards_per_entry_ratio);
      } else {
        _mixed_cards_per_entry_ratio_seq->add(cards_per_entry_ratio);
      }
1547 1548
    }

1549 1550 1551 1552 1553 1554 1555 1556 1557 1558 1559 1560 1561
    // This is defensive. For a while _max_rs_lengths could get
    // smaller than _recorded_rs_lengths which was causing
    // rs_length_diff to get very large and mess up the RSet length
    // predictions. The reason was unsafe concurrent updates to the
    // _inc_cset_recorded_rs_lengths field which the code below guards
    // against (see CR 7118202). This bug has now been fixed (see CR
    // 7119027). However, I'm still worried that
    // _inc_cset_recorded_rs_lengths might still end up somewhat
    // inaccurate. The concurrent refinement thread calculates an
    // RSet's length concurrently with other CR threads updating it
    // which might cause it to calculate the length incorrectly (if,
    // say, it's in mid-coarsening). So I'll leave in the defensive
    // conditional below just in case.
1562 1563 1564 1565 1566
    size_t rs_length_diff = 0;
    if (_max_rs_lengths > _recorded_rs_lengths) {
      rs_length_diff = _max_rs_lengths - _recorded_rs_lengths;
    }
    _rs_length_diff_seq->add((double) rs_length_diff);
1567 1568 1569 1570 1571

    size_t copied_bytes = surviving_bytes;
    double cost_per_byte_ms = 0.0;
    if (copied_bytes > 0) {
      cost_per_byte_ms = obj_copy_time / (double) copied_bytes;
1572
      if (_in_marking_window) {
1573
        _cost_per_byte_ms_during_cm_seq->add(cost_per_byte_ms);
1574
      } else {
1575
        _cost_per_byte_ms_seq->add(cost_per_byte_ms);
1576
      }
1577 1578 1579
    }

    double all_other_time_ms = pause_time_ms -
1580
      (update_rs_time + scan_rs_time + obj_copy_time +
1581 1582 1583
       _mark_closure_time_ms + termination_time);

    double young_other_time_ms = 0.0;
1584
    if (young_cset_region_length() > 0) {
1585 1586 1587 1588
      young_other_time_ms =
        _recorded_young_cset_choice_time_ms +
        _recorded_young_free_cset_time_ms;
      _young_other_cost_per_region_ms_seq->add(young_other_time_ms /
1589
                                          (double) young_cset_region_length());
1590 1591
    }
    double non_young_other_time_ms = 0.0;
1592
    if (old_cset_region_length() > 0) {
1593 1594 1595 1596 1597
      non_young_other_time_ms =
        _recorded_non_young_cset_choice_time_ms +
        _recorded_non_young_free_cset_time_ms;

      _non_young_other_cost_per_region_ms_seq->add(non_young_other_time_ms /
1598
                                            (double) old_cset_region_length());
1599 1600 1601 1602 1603 1604 1605 1606
    }

    double constant_other_time_ms = all_other_time_ms -
      (young_other_time_ms + non_young_other_time_ms);
    _constant_other_time_ms_seq->add(constant_other_time_ms);

    double survival_ratio = 0.0;
    if (_bytes_in_collection_set_before_gc > 0) {
1607 1608
      survival_ratio = (double) _bytes_copied_during_gc /
                                   (double) _bytes_in_collection_set_before_gc;
1609 1610 1611 1612 1613 1614 1615 1616 1617
    }

    _pending_cards_seq->add((double) _pending_cards);
    _rs_lengths_seq->add((double) _max_rs_lengths);
  }

  _in_marking_window = new_in_marking_window;
  _in_marking_window_im = new_in_marking_window_im;
  _free_regions_at_end_of_collection = _g1->free_regions();
1618
  update_young_list_target_length();
1619

1620
  // Note that _mmu_tracker->max_gc_time() returns the time in seconds.
1621
  double update_rs_time_goal_ms = _mmu_tracker->max_gc_time() * MILLIUNITS * G1RSetUpdatingPauseTimePercent / 100.0;
1622
  adjust_concurrent_refinement(update_rs_time, update_rs_processed_buffers, update_rs_time_goal_ms);
1623 1624

  assert(assertMarkedBytesDataOK(), "Marked regions not OK at pause end.");
1625 1626
}

1627 1628 1629 1630 1631 1632 1633 1634 1635 1636 1637 1638 1639
#define EXT_SIZE_FORMAT "%d%s"
#define EXT_SIZE_PARAMS(bytes)                                  \
  byte_size_in_proper_unit((bytes)),                            \
  proper_unit_for_byte_size((bytes))

void G1CollectorPolicy::print_heap_transition() {
  if (PrintGCDetails) {
    YoungList* young_list = _g1->young_list();
    size_t eden_bytes = young_list->eden_used_bytes();
    size_t survivor_bytes = young_list->survivor_used_bytes();
    size_t used_before_gc = _cur_collection_pause_used_at_start_bytes;
    size_t used = _g1->used();
    size_t capacity = _g1->capacity();
1640 1641
    size_t eden_capacity =
      (_young_list_target_length * HeapRegion::GrainBytes) - survivor_bytes;
1642 1643

    gclog_or_tty->print_cr(
1644 1645 1646 1647 1648 1649 1650 1651 1652 1653 1654 1655 1656 1657 1658 1659
      "   [Eden: "EXT_SIZE_FORMAT"("EXT_SIZE_FORMAT")->"EXT_SIZE_FORMAT"("EXT_SIZE_FORMAT") "
      "Survivors: "EXT_SIZE_FORMAT"->"EXT_SIZE_FORMAT" "
      "Heap: "EXT_SIZE_FORMAT"("EXT_SIZE_FORMAT")->"
      EXT_SIZE_FORMAT"("EXT_SIZE_FORMAT")]",
      EXT_SIZE_PARAMS(_eden_bytes_before_gc),
      EXT_SIZE_PARAMS(_prev_eden_capacity),
      EXT_SIZE_PARAMS(eden_bytes),
      EXT_SIZE_PARAMS(eden_capacity),
      EXT_SIZE_PARAMS(_survivor_bytes_before_gc),
      EXT_SIZE_PARAMS(survivor_bytes),
      EXT_SIZE_PARAMS(used_before_gc),
      EXT_SIZE_PARAMS(_capacity_before_gc),
      EXT_SIZE_PARAMS(used),
      EXT_SIZE_PARAMS(capacity));

    _prev_eden_capacity = eden_capacity;
1660 1661 1662 1663 1664 1665 1666
  } else if (PrintGC) {
    _g1->print_size_transition(gclog_or_tty,
                               _cur_collection_pause_used_at_start_bytes,
                               _g1->used(), _g1->capacity());
  }
}

1667 1668 1669 1670 1671 1672
void G1CollectorPolicy::adjust_concurrent_refinement(double update_rs_time,
                                                     double update_rs_processed_buffers,
                                                     double goal_ms) {
  DirtyCardQueueSet& dcqs = JavaThread::dirty_card_queue_set();
  ConcurrentG1Refine *cg1r = G1CollectedHeap::heap()->concurrent_g1_refine();

1673
  if (G1UseAdaptiveConcRefinement) {
1674 1675 1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687 1688 1689 1690 1691 1692 1693 1694 1695 1696 1697 1698 1699 1700 1701 1702 1703 1704 1705 1706 1707
    const int k_gy = 3, k_gr = 6;
    const double inc_k = 1.1, dec_k = 0.9;

    int g = cg1r->green_zone();
    if (update_rs_time > goal_ms) {
      g = (int)(g * dec_k);  // Can become 0, that's OK. That would mean a mutator-only processing.
    } else {
      if (update_rs_time < goal_ms && update_rs_processed_buffers > g) {
        g = (int)MAX2(g * inc_k, g + 1.0);
      }
    }
    // Change the refinement threads params
    cg1r->set_green_zone(g);
    cg1r->set_yellow_zone(g * k_gy);
    cg1r->set_red_zone(g * k_gr);
    cg1r->reinitialize_threads();

    int processing_threshold_delta = MAX2((int)(cg1r->green_zone() * sigma()), 1);
    int processing_threshold = MIN2(cg1r->green_zone() + processing_threshold_delta,
                                    cg1r->yellow_zone());
    // Change the barrier params
    dcqs.set_process_completed_threshold(processing_threshold);
    dcqs.set_max_completed_queue(cg1r->red_zone());
  }

  int curr_queue_size = dcqs.completed_buffers_num();
  if (curr_queue_size >= cg1r->yellow_zone()) {
    dcqs.set_completed_queue_padding(curr_queue_size);
  } else {
    dcqs.set_completed_queue_padding(0);
  }
  dcqs.notify_if_necessary();
}

1708 1709 1710 1711 1712 1713
double
G1CollectorPolicy::
predict_young_collection_elapsed_time_ms(size_t adjustment) {
  guarantee( adjustment == 0 || adjustment == 1, "invariant" );

  G1CollectedHeap* g1h = G1CollectedHeap::heap();
1714
  size_t young_num = g1h->young_list()->length();
1715 1716 1717 1718 1719
  if (young_num == 0)
    return 0.0;

  young_num += adjustment;
  size_t pending_cards = predict_pending_cards();
1720
  size_t rs_lengths = g1h->young_list()->sampled_rs_lengths() +
1721 1722
                      predict_rs_length_diff();
  size_t card_num;
1723
  if (gcs_are_young()) {
1724
    card_num = predict_young_card_num(rs_lengths);
1725
  } else {
1726
    card_num = predict_non_young_card_num(rs_lengths);
1727
  }
1728 1729 1730 1731 1732 1733 1734 1735 1736 1737 1738 1739 1740 1741 1742 1743 1744 1745 1746
  size_t young_byte_size = young_num * HeapRegion::GrainBytes;
  double accum_yg_surv_rate =
    _short_lived_surv_rate_group->accum_surv_rate(adjustment);

  size_t bytes_to_copy =
    (size_t) (accum_yg_surv_rate * (double) HeapRegion::GrainBytes);

  return
    predict_rs_update_time_ms(pending_cards) +
    predict_rs_scan_time_ms(card_num) +
    predict_object_copy_time_ms(bytes_to_copy) +
    predict_young_other_time_ms(young_num) +
    predict_constant_other_time_ms();
}

double
G1CollectorPolicy::predict_base_elapsed_time_ms(size_t pending_cards) {
  size_t rs_length = predict_rs_length_diff();
  size_t card_num;
1747
  if (gcs_are_young()) {
1748
    card_num = predict_young_card_num(rs_length);
1749
  } else {
1750
    card_num = predict_non_young_card_num(rs_length);
1751
  }
1752 1753 1754 1755 1756 1757 1758 1759 1760 1761 1762 1763 1764 1765 1766 1767 1768
  return predict_base_elapsed_time_ms(pending_cards, card_num);
}

double
G1CollectorPolicy::predict_base_elapsed_time_ms(size_t pending_cards,
                                                size_t scanned_cards) {
  return
    predict_rs_update_time_ms(pending_cards) +
    predict_rs_scan_time_ms(scanned_cards) +
    predict_constant_other_time_ms();
}

double
G1CollectorPolicy::predict_region_elapsed_time_ms(HeapRegion* hr,
                                                  bool young) {
  size_t rs_length = hr->rem_set()->occupied();
  size_t card_num;
1769
  if (gcs_are_young()) {
1770
    card_num = predict_young_card_num(rs_length);
1771
  } else {
1772
    card_num = predict_non_young_card_num(rs_length);
1773
  }
1774 1775 1776 1777 1778 1779 1780 1781 1782 1783 1784 1785 1786 1787 1788 1789 1790 1791 1792 1793
  size_t bytes_to_copy = predict_bytes_to_copy(hr);

  double region_elapsed_time_ms =
    predict_rs_scan_time_ms(card_num) +
    predict_object_copy_time_ms(bytes_to_copy);

  if (young)
    region_elapsed_time_ms += predict_young_other_time_ms(1);
  else
    region_elapsed_time_ms += predict_non_young_other_time_ms(1);

  return region_elapsed_time_ms;
}

size_t
G1CollectorPolicy::predict_bytes_to_copy(HeapRegion* hr) {
  size_t bytes_to_copy;
  if (hr->is_marked())
    bytes_to_copy = hr->max_live_bytes();
  else {
1794
    assert(hr->is_young() && hr->age_in_surv_rate_group() != -1, "invariant");
1795
    int age = hr->age_in_surv_rate_group();
1796
    double yg_surv_rate = predict_yg_surv_rate(age, hr->surv_rate_group());
1797 1798 1799 1800 1801 1802
    bytes_to_copy = (size_t) ((double) hr->used() * yg_surv_rate);
  }
  return bytes_to_copy;
}

void
1803 1804 1805 1806 1807
G1CollectorPolicy::init_cset_region_lengths(size_t eden_cset_region_length,
                                          size_t survivor_cset_region_length) {
  _eden_cset_region_length     = eden_cset_region_length;
  _survivor_cset_region_length = survivor_cset_region_length;
  _old_cset_region_length      = 0;
1808 1809 1810 1811 1812 1813
}

void G1CollectorPolicy::set_recorded_rs_lengths(size_t rs_lengths) {
  _recorded_rs_lengths = rs_lengths;
}

1814 1815 1816 1817 1818 1819 1820 1821
void G1CollectorPolicy::update_recent_gc_times(double end_time_sec,
                                               double elapsed_ms) {
  _recent_gc_times_ms->add(elapsed_ms);
  _recent_prev_end_times_for_all_gcs_sec->add(end_time_sec);
  _prev_collection_pause_end_ms = end_time_sec * 1000.0;
}

size_t G1CollectorPolicy::expansion_amount() {
1822 1823 1824
  double recent_gc_overhead = recent_avg_pause_time_ratio() * 100.0;
  double threshold = _gc_overhead_perc;
  if (recent_gc_overhead > threshold) {
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johnc 已提交
1825 1826 1827 1828
    // We will double the existing space, or take
    // G1ExpandByPercentOfAvailable % of the available expansion
    // space, whichever is smaller, bounded below by a minimum
    // expansion (unless that's all that's left.)
1829
    const size_t min_expand_bytes = 1*M;
1830
    size_t reserved_bytes = _g1->max_capacity();
1831 1832 1833 1834
    size_t committed_bytes = _g1->capacity();
    size_t uncommitted_bytes = reserved_bytes - committed_bytes;
    size_t expand_bytes;
    size_t expand_bytes_via_pct =
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johnc 已提交
1835
      uncommitted_bytes * G1ExpandByPercentOfAvailable / 100;
1836 1837 1838
    expand_bytes = MIN2(expand_bytes_via_pct, committed_bytes);
    expand_bytes = MAX2(expand_bytes, min_expand_bytes);
    expand_bytes = MIN2(expand_bytes, uncommitted_bytes);
1839 1840 1841 1842 1843 1844 1845 1846 1847 1848 1849 1850 1851

    ergo_verbose5(ErgoHeapSizing,
                  "attempt heap expansion",
                  ergo_format_reason("recent GC overhead higher than "
                                     "threshold after GC")
                  ergo_format_perc("recent GC overhead")
                  ergo_format_perc("threshold")
                  ergo_format_byte("uncommitted")
                  ergo_format_byte_perc("calculated expansion amount"),
                  recent_gc_overhead, threshold,
                  uncommitted_bytes,
                  expand_bytes_via_pct, (double) G1ExpandByPercentOfAvailable);

1852 1853 1854 1855 1856 1857 1858 1859 1860 1861 1862 1863 1864 1865 1866 1867 1868 1869 1870 1871 1872 1873
    return expand_bytes;
  } else {
    return 0;
  }
}

class CountCSClosure: public HeapRegionClosure {
  G1CollectorPolicy* _g1_policy;
public:
  CountCSClosure(G1CollectorPolicy* g1_policy) :
    _g1_policy(g1_policy) {}
  bool doHeapRegion(HeapRegion* r) {
    _g1_policy->_bytes_in_collection_set_before_gc += r->used();
    return false;
  }
};

void G1CollectorPolicy::count_CS_bytes_used() {
  CountCSClosure cs_closure(this);
  _g1->collection_set_iterate(&cs_closure);
}

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void G1CollectorPolicy::print_summary(int level,
                                      const char* str,
                                      NumberSeq* seq) const {
1877
  double sum = seq->sum();
1878
  LineBuffer(level + 1).append_and_print_cr("%-24s = %8.2lf s (avg = %8.2lf ms)",
1879 1880 1881
                str, sum / 1000.0, seq->avg());
}

J
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1882 1883 1884
void G1CollectorPolicy::print_summary_sd(int level,
                                         const char* str,
                                         NumberSeq* seq) const {
1885
  print_summary(level, str, seq);
1886
  LineBuffer(level + 6).append_and_print_cr("(num = %5d, std dev = %8.2lf ms, max = %8.2lf ms)",
1887 1888 1889 1890 1891 1892 1893
                seq->num(), seq->sd(), seq->maximum());
}

void G1CollectorPolicy::check_other_times(int level,
                                        NumberSeq* other_times_ms,
                                        NumberSeq* calc_other_times_ms) const {
  bool should_print = false;
1894
  LineBuffer buf(level + 2);
1895 1896 1897 1898 1899 1900 1901 1902

  double max_sum = MAX2(fabs(other_times_ms->sum()),
                        fabs(calc_other_times_ms->sum()));
  double min_sum = MIN2(fabs(other_times_ms->sum()),
                        fabs(calc_other_times_ms->sum()));
  double sum_ratio = max_sum / min_sum;
  if (sum_ratio > 1.1) {
    should_print = true;
1903
    buf.append_and_print_cr("## CALCULATED OTHER SUM DOESN'T MATCH RECORDED ###");
1904 1905 1906 1907 1908 1909 1910 1911 1912
  }

  double max_avg = MAX2(fabs(other_times_ms->avg()),
                        fabs(calc_other_times_ms->avg()));
  double min_avg = MIN2(fabs(other_times_ms->avg()),
                        fabs(calc_other_times_ms->avg()));
  double avg_ratio = max_avg / min_avg;
  if (avg_ratio > 1.1) {
    should_print = true;
1913
    buf.append_and_print_cr("## CALCULATED OTHER AVG DOESN'T MATCH RECORDED ###");
1914 1915 1916
  }

  if (other_times_ms->sum() < -0.01) {
1917
    buf.append_and_print_cr("## RECORDED OTHER SUM IS NEGATIVE ###");
1918 1919 1920
  }

  if (other_times_ms->avg() < -0.01) {
1921
    buf.append_and_print_cr("## RECORDED OTHER AVG IS NEGATIVE ###");
1922 1923 1924 1925
  }

  if (calc_other_times_ms->sum() < -0.01) {
    should_print = true;
1926
    buf.append_and_print_cr("## CALCULATED OTHER SUM IS NEGATIVE ###");
1927 1928 1929 1930
  }

  if (calc_other_times_ms->avg() < -0.01) {
    should_print = true;
1931
    buf.append_and_print_cr("## CALCULATED OTHER AVG IS NEGATIVE ###");
1932 1933 1934 1935 1936 1937 1938
  }

  if (should_print)
    print_summary(level, "Other(Calc)", calc_other_times_ms);
}

void G1CollectorPolicy::print_summary(PauseSummary* summary) const {
1939
  bool parallel = G1CollectedHeap::use_parallel_gc_threads();
1940 1941
  MainBodySummary*    body_summary = summary->main_body_summary();
  if (summary->get_total_seq()->num() > 0) {
1942
    print_summary_sd(0, "Evacuation Pauses", summary->get_total_seq());
1943
    if (body_summary != NULL) {
1944
      print_summary(1, "Root Region Scan Wait", body_summary->get_root_region_scan_wait_seq());
1945 1946
      if (parallel) {
        print_summary(1, "Parallel Time", body_summary->get_parallel_seq());
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        print_summary(2, "Ext Root Scanning", body_summary->get_ext_root_scan_seq());
1948
        print_summary(2, "SATB Filtering", body_summary->get_satb_filtering_seq());
1949 1950 1951 1952
        print_summary(2, "Update RS", body_summary->get_update_rs_seq());
        print_summary(2, "Scan RS", body_summary->get_scan_rs_seq());
        print_summary(2, "Object Copy", body_summary->get_obj_copy_seq());
        print_summary(2, "Termination", body_summary->get_termination_seq());
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        print_summary(2, "Parallel Other", body_summary->get_parallel_other_seq());
1954 1955 1956
        {
          NumberSeq* other_parts[] = {
            body_summary->get_ext_root_scan_seq(),
1957
            body_summary->get_satb_filtering_seq(),
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            body_summary->get_update_rs_seq(),
1959 1960 1961 1962 1963
            body_summary->get_scan_rs_seq(),
            body_summary->get_obj_copy_seq(),
            body_summary->get_termination_seq()
          };
          NumberSeq calc_other_times_ms(body_summary->get_parallel_seq(),
1964
                                        6, other_parts);
1965 1966 1967 1968
          check_other_times(2, body_summary->get_parallel_other_seq(),
                            &calc_other_times_ms);
        }
      } else {
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1969
        print_summary(1, "Ext Root Scanning", body_summary->get_ext_root_scan_seq());
1970
        print_summary(1, "SATB Filtering", body_summary->get_satb_filtering_seq());
1971 1972 1973 1974 1975
        print_summary(1, "Update RS", body_summary->get_update_rs_seq());
        print_summary(1, "Scan RS", body_summary->get_scan_rs_seq());
        print_summary(1, "Object Copy", body_summary->get_obj_copy_seq());
      }
    }
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    print_summary(1, "Mark Closure", body_summary->get_mark_closure_seq());
    print_summary(1, "Clear CT", body_summary->get_clear_ct_seq());
1978 1979
    print_summary(1, "Other", summary->get_other_seq());
    {
1980 1981 1982 1983 1984 1985
      if (body_summary != NULL) {
        NumberSeq calc_other_times_ms;
        if (parallel) {
          // parallel
          NumberSeq* other_parts[] = {
            body_summary->get_satb_drain_seq(),
1986
            body_summary->get_root_region_scan_wait_seq(),
1987 1988 1989 1990
            body_summary->get_parallel_seq(),
            body_summary->get_clear_ct_seq()
          };
          calc_other_times_ms = NumberSeq(summary->get_total_seq(),
1991
                                          4, other_parts);
1992 1993 1994 1995
        } else {
          // serial
          NumberSeq* other_parts[] = {
            body_summary->get_satb_drain_seq(),
1996
            body_summary->get_root_region_scan_wait_seq(),
1997 1998
            body_summary->get_update_rs_seq(),
            body_summary->get_ext_root_scan_seq(),
1999
            body_summary->get_satb_filtering_seq(),
2000 2001 2002 2003
            body_summary->get_scan_rs_seq(),
            body_summary->get_obj_copy_seq()
          };
          calc_other_times_ms = NumberSeq(summary->get_total_seq(),
2004
                                          7, other_parts);
2005 2006
        }
        check_other_times(1,  summary->get_other_seq(), &calc_other_times_ms);
2007 2008 2009
      }
    }
  } else {
2010
    LineBuffer(1).append_and_print_cr("none");
2011
  }
2012
  LineBuffer(0).append_and_print_cr("");
2013 2014 2015 2016 2017 2018 2019 2020
}

void G1CollectorPolicy::print_tracing_info() const {
  if (TraceGen0Time) {
    gclog_or_tty->print_cr("ALL PAUSES");
    print_summary_sd(0, "Total", _all_pause_times_ms);
    gclog_or_tty->print_cr("");
    gclog_or_tty->print_cr("");
2021 2022
    gclog_or_tty->print_cr("   Young GC Pauses: %8d", _young_pause_num);
    gclog_or_tty->print_cr("   Mixed GC Pauses: %8d", _mixed_pause_num);
2023 2024
    gclog_or_tty->print_cr("");

2025 2026
    gclog_or_tty->print_cr("EVACUATION PAUSES");
    print_summary(_summary);
2027 2028 2029 2030 2031 2032 2033 2034 2035 2036 2037 2038 2039 2040 2041 2042 2043 2044 2045 2046 2047 2048 2049 2050 2051 2052 2053 2054 2055 2056 2057 2058 2059 2060 2061 2062 2063 2064 2065 2066 2067 2068 2069 2070

    gclog_or_tty->print_cr("MISC");
    print_summary_sd(0, "Stop World", _all_stop_world_times_ms);
    print_summary_sd(0, "Yields", _all_yield_times_ms);
    for (int i = 0; i < _aux_num; ++i) {
      if (_all_aux_times_ms[i].num() > 0) {
        char buffer[96];
        sprintf(buffer, "Aux%d", i);
        print_summary_sd(0, buffer, &_all_aux_times_ms[i]);
      }
    }
  }
  if (TraceGen1Time) {
    if (_all_full_gc_times_ms->num() > 0) {
      gclog_or_tty->print("\n%4d full_gcs: total time = %8.2f s",
                 _all_full_gc_times_ms->num(),
                 _all_full_gc_times_ms->sum() / 1000.0);
      gclog_or_tty->print_cr(" (avg = %8.2fms).", _all_full_gc_times_ms->avg());
      gclog_or_tty->print_cr("                     [std. dev = %8.2f ms, max = %8.2f ms]",
                    _all_full_gc_times_ms->sd(),
                    _all_full_gc_times_ms->maximum());
    }
  }
}

void G1CollectorPolicy::print_yg_surv_rate_info() const {
#ifndef PRODUCT
  _short_lived_surv_rate_group->print_surv_rate_summary();
  // add this call for any other surv rate groups
#endif // PRODUCT
}

#ifndef PRODUCT
// for debugging, bit of a hack...
static char*
region_num_to_mbs(int length) {
  static char buffer[64];
  double bytes = (double) (length * HeapRegion::GrainBytes);
  double mbs = bytes / (double) (1024 * 1024);
  sprintf(buffer, "%7.2lfMB", mbs);
  return buffer;
}
#endif // PRODUCT

2071
size_t G1CollectorPolicy::max_regions(int purpose) {
2072 2073
  switch (purpose) {
    case GCAllocForSurvived:
2074
      return _max_survivor_regions;
2075
    case GCAllocForTenured:
2076
      return REGIONS_UNLIMITED;
2077
    default:
2078 2079
      ShouldNotReachHere();
      return REGIONS_UNLIMITED;
2080 2081 2082
  };
}

2083
void G1CollectorPolicy::update_max_gc_locker_expansion() {
2084 2085 2086 2087 2088 2089 2090 2091 2092 2093 2094 2095 2096 2097
  size_t expansion_region_num = 0;
  if (GCLockerEdenExpansionPercent > 0) {
    double perc = (double) GCLockerEdenExpansionPercent / 100.0;
    double expansion_region_num_d = perc * (double) _young_list_target_length;
    // We use ceiling so that if expansion_region_num_d is > 0.0 (but
    // less than 1.0) we'll get 1.
    expansion_region_num = (size_t) ceil(expansion_region_num_d);
  } else {
    assert(expansion_region_num == 0, "sanity");
  }
  _young_list_max_length = _young_list_target_length + expansion_region_num;
  assert(_young_list_target_length <= _young_list_max_length, "post-condition");
}

2098
// Calculates survivor space parameters.
2099 2100 2101 2102 2103 2104 2105
void G1CollectorPolicy::update_survivors_policy() {
  double max_survivor_regions_d =
                 (double) _young_list_target_length / (double) SurvivorRatio;
  // We use ceiling so that if max_survivor_regions_d is > 0.0 (but
  // smaller than 1.0) we'll get 1.
  _max_survivor_regions = (size_t) ceil(max_survivor_regions_d);

2106
  _tenuring_threshold = _survivors_age_table.compute_tenuring_threshold(
2107 2108 2109
        HeapRegion::GrainWords * _max_survivor_regions);
}

2110 2111 2112 2113 2114 2115 2116 2117 2118 2119 2120 2121 2122 2123 2124
#ifndef PRODUCT
class HRSortIndexIsOKClosure: public HeapRegionClosure {
  CollectionSetChooser* _chooser;
public:
  HRSortIndexIsOKClosure(CollectionSetChooser* chooser) :
    _chooser(chooser) {}

  bool doHeapRegion(HeapRegion* r) {
    if (!r->continuesHumongous()) {
      assert(_chooser->regionProperlyOrdered(r), "Ought to be.");
    }
    return false;
  }
};

2125
bool G1CollectorPolicy::assertMarkedBytesDataOK() {
2126 2127 2128 2129 2130 2131
  HRSortIndexIsOKClosure cl(_collectionSetChooser);
  _g1->heap_region_iterate(&cl);
  return true;
}
#endif

2132 2133
bool G1CollectorPolicy::force_initial_mark_if_outside_cycle(
                                                     GCCause::Cause gc_cause) {
2134 2135
  bool during_cycle = _g1->concurrent_mark()->cmThread()->during_cycle();
  if (!during_cycle) {
2136 2137 2138 2139 2140
    ergo_verbose1(ErgoConcCycles,
                  "request concurrent cycle initiation",
                  ergo_format_reason("requested by GC cause")
                  ergo_format_str("GC cause"),
                  GCCause::to_string(gc_cause));
2141 2142 2143
    set_initiate_conc_mark_if_possible();
    return true;
  } else {
2144 2145 2146 2147 2148
    ergo_verbose1(ErgoConcCycles,
                  "do not request concurrent cycle initiation",
                  ergo_format_reason("concurrent cycle already in progress")
                  ergo_format_str("GC cause"),
                  GCCause::to_string(gc_cause));
2149 2150 2151 2152
    return false;
  }
}

2153 2154 2155 2156 2157 2158 2159 2160 2161 2162 2163 2164 2165 2166 2167 2168 2169 2170 2171 2172 2173 2174 2175
void
G1CollectorPolicy::decide_on_conc_mark_initiation() {
  // We are about to decide on whether this pause will be an
  // initial-mark pause.

  // First, during_initial_mark_pause() should not be already set. We
  // will set it here if we have to. However, it should be cleared by
  // the end of the pause (it's only set for the duration of an
  // initial-mark pause).
  assert(!during_initial_mark_pause(), "pre-condition");

  if (initiate_conc_mark_if_possible()) {
    // We had noticed on a previous pause that the heap occupancy has
    // gone over the initiating threshold and we should start a
    // concurrent marking cycle. So we might initiate one.

    bool during_cycle = _g1->concurrent_mark()->cmThread()->during_cycle();
    if (!during_cycle) {
      // The concurrent marking thread is not "during a cycle", i.e.,
      // it has completed the last one. So we can go ahead and
      // initiate a new cycle.

      set_during_initial_mark_pause();
2176 2177 2178 2179 2180
      // We do not allow mixed GCs during marking.
      if (!gcs_are_young()) {
        set_gcs_are_young(true);
        ergo_verbose0(ErgoMixedGCs,
                      "end mixed GCs",
2181 2182
                      ergo_format_reason("concurrent cycle is about to start"));
      }
2183 2184 2185 2186

      // And we can now clear initiate_conc_mark_if_possible() as
      // we've already acted on it.
      clear_initiate_conc_mark_if_possible();
2187 2188 2189 2190

      ergo_verbose0(ErgoConcCycles,
                  "initiate concurrent cycle",
                  ergo_format_reason("concurrent cycle initiation requested"));
2191 2192 2193 2194 2195 2196 2197 2198 2199 2200 2201 2202 2203
    } else {
      // The concurrent marking thread is still finishing up the
      // previous cycle. If we start one right now the two cycles
      // overlap. In particular, the concurrent marking thread might
      // be in the process of clearing the next marking bitmap (which
      // we will use for the next cycle if we start one). Starting a
      // cycle now will be bad given that parts of the marking
      // information might get cleared by the marking thread. And we
      // cannot wait for the marking thread to finish the cycle as it
      // periodically yields while clearing the next marking bitmap
      // and, if it's in a yield point, it's waiting for us to
      // finish. So, at this point we will not start a cycle and we'll
      // let the concurrent marking thread complete the last one.
2204 2205 2206
      ergo_verbose0(ErgoConcCycles,
                    "do not initiate concurrent cycle",
                    ergo_format_reason("concurrent cycle already in progress"));
2207 2208 2209 2210
    }
  }
}

2211
class KnownGarbageClosure: public HeapRegionClosure {
2212
  G1CollectedHeap* _g1h;
2213 2214 2215 2216
  CollectionSetChooser* _hrSorted;

public:
  KnownGarbageClosure(CollectionSetChooser* hrSorted) :
2217
    _g1h(G1CollectedHeap::heap()), _hrSorted(hrSorted) { }
2218 2219 2220 2221 2222 2223 2224 2225

  bool doHeapRegion(HeapRegion* r) {
    // We only include humongous regions in collection
    // sets when concurrent mark shows that their contained object is
    // unreachable.

    // Do we have any marking information for this region?
    if (r->is_marked()) {
2226 2227 2228 2229
      // We will skip any region that's currently used as an old GC
      // alloc region (we should not consider those for collection
      // before we fill them up).
      if (_hrSorted->shouldAdd(r) && !_g1h->is_old_gc_alloc_region(r)) {
2230 2231 2232 2233 2234 2235 2236 2237
        _hrSorted->addMarkedHeapRegion(r);
      }
    }
    return false;
  }
};

class ParKnownGarbageHRClosure: public HeapRegionClosure {
2238
  G1CollectedHeap* _g1h;
2239 2240
  CollectionSetChooser* _hrSorted;
  jint _marked_regions_added;
2241
  size_t _reclaimable_bytes_added;
2242 2243 2244 2245 2246 2247 2248 2249 2250 2251 2252 2253 2254 2255 2256 2257 2258
  jint _chunk_size;
  jint _cur_chunk_idx;
  jint _cur_chunk_end; // Cur chunk [_cur_chunk_idx, _cur_chunk_end)
  int _worker;
  int _invokes;

  void get_new_chunk() {
    _cur_chunk_idx = _hrSorted->getParMarkedHeapRegionChunk(_chunk_size);
    _cur_chunk_end = _cur_chunk_idx + _chunk_size;
  }
  void add_region(HeapRegion* r) {
    if (_cur_chunk_idx == _cur_chunk_end) {
      get_new_chunk();
    }
    assert(_cur_chunk_idx < _cur_chunk_end, "postcondition");
    _hrSorted->setMarkedHeapRegion(_cur_chunk_idx, r);
    _marked_regions_added++;
2259
    _reclaimable_bytes_added += r->reclaimable_bytes();
2260 2261 2262 2263 2264 2265 2266
    _cur_chunk_idx++;
  }

public:
  ParKnownGarbageHRClosure(CollectionSetChooser* hrSorted,
                           jint chunk_size,
                           int worker) :
2267 2268 2269 2270
      _g1h(G1CollectedHeap::heap()),
      _hrSorted(hrSorted), _chunk_size(chunk_size), _worker(worker),
      _marked_regions_added(0), _reclaimable_bytes_added(0),
      _cur_chunk_idx(0), _cur_chunk_end(0), _invokes(0) { }
2271 2272 2273 2274 2275 2276 2277 2278 2279

  bool doHeapRegion(HeapRegion* r) {
    // We only include humongous regions in collection
    // sets when concurrent mark shows that their contained object is
    // unreachable.
    _invokes++;

    // Do we have any marking information for this region?
    if (r->is_marked()) {
2280 2281 2282 2283
      // We will skip any region that's currently used as an old GC
      // alloc region (we should not consider those for collection
      // before we fill them up).
      if (_hrSorted->shouldAdd(r) && !_g1h->is_old_gc_alloc_region(r)) {
2284 2285 2286 2287 2288 2289
        add_region(r);
      }
    }
    return false;
  }
  jint marked_regions_added() { return _marked_regions_added; }
2290
  size_t reclaimable_bytes_added() { return _reclaimable_bytes_added; }
2291 2292 2293 2294 2295 2296 2297 2298 2299 2300 2301
  int invokes() { return _invokes; }
};

class ParKnownGarbageTask: public AbstractGangTask {
  CollectionSetChooser* _hrSorted;
  jint _chunk_size;
  G1CollectedHeap* _g1;
public:
  ParKnownGarbageTask(CollectionSetChooser* hrSorted, jint chunk_size) :
    AbstractGangTask("ParKnownGarbageTask"),
    _hrSorted(hrSorted), _chunk_size(chunk_size),
2302
    _g1(G1CollectedHeap::heap()) { }
2303

2304 2305 2306 2307
  void work(uint worker_id) {
    ParKnownGarbageHRClosure parKnownGarbageCl(_hrSorted,
                                               _chunk_size,
                                               worker_id);
2308
    // Back to zero for the claim value.
2309
    _g1->heap_region_par_iterate_chunked(&parKnownGarbageCl, worker_id,
2310
                                         _g1->workers()->active_workers(),
2311
                                         HeapRegion::InitialClaimValue);
2312
    jint regions_added = parKnownGarbageCl.marked_regions_added();
2313 2314 2315
    size_t reclaimable_bytes_added =
                                   parKnownGarbageCl.reclaimable_bytes_added();
    _hrSorted->updateTotals(regions_added, reclaimable_bytes_added);
2316
    if (G1PrintParCleanupStats) {
2317
      gclog_or_tty->print_cr("     Thread %d called %d times, added %d regions to list.",
2318
                 worker_id, parKnownGarbageCl.invokes(), regions_added);
2319 2320 2321 2322 2323
    }
  }
};

void
2324
G1CollectorPolicy::record_concurrent_mark_cleanup_end(int no_of_gc_threads) {
2325 2326 2327 2328
  double start_sec;
  if (G1PrintParCleanupStats) {
    start_sec = os::elapsedTime();
  }
2329 2330

  _collectionSetChooser->clearMarkedHeapRegions();
2331
  double clear_marked_end_sec;
2332
  if (G1PrintParCleanupStats) {
2333 2334 2335
    clear_marked_end_sec = os::elapsedTime();
    gclog_or_tty->print_cr("  clear marked regions: %8.3f ms.",
                           (clear_marked_end_sec - start_sec) * 1000.0);
2336
  }
2337

2338
  if (G1CollectedHeap::use_parallel_gc_threads()) {
2339
    const size_t OverpartitionFactor = 4;
2340 2341 2342 2343 2344 2345 2346 2347 2348 2349 2350 2351 2352 2353 2354 2355 2356 2357 2358 2359 2360
    size_t WorkUnit;
    // The use of MinChunkSize = 8 in the original code
    // causes some assertion failures when the total number of
    // region is less than 8.  The code here tries to fix that.
    // Should the original code also be fixed?
    if (no_of_gc_threads > 0) {
      const size_t MinWorkUnit =
        MAX2(_g1->n_regions() / no_of_gc_threads, (size_t) 1U);
      WorkUnit =
        MAX2(_g1->n_regions() / (no_of_gc_threads * OverpartitionFactor),
             MinWorkUnit);
    } else {
      assert(no_of_gc_threads > 0,
        "The active gc workers should be greater than 0");
      // In a product build do something reasonable to avoid a crash.
      const size_t MinWorkUnit =
        MAX2(_g1->n_regions() / ParallelGCThreads, (size_t) 1U);
      WorkUnit =
        MAX2(_g1->n_regions() / (ParallelGCThreads * OverpartitionFactor),
             MinWorkUnit);
    }
2361
    _collectionSetChooser->prepareForAddMarkedHeapRegionsPar(_g1->n_regions(),
2362
                                                             WorkUnit);
2363
    ParKnownGarbageTask parKnownGarbageTask(_collectionSetChooser,
2364
                                            (int) WorkUnit);
2365
    _g1->workers()->run_task(&parKnownGarbageTask);
2366 2367 2368

    assert(_g1->check_heap_region_claim_values(HeapRegion::InitialClaimValue),
           "sanity check");
2369 2370 2371 2372
  } else {
    KnownGarbageClosure knownGarbagecl(_collectionSetChooser);
    _g1->heap_region_iterate(&knownGarbagecl);
  }
2373
  double known_garbage_end_sec;
2374
  if (G1PrintParCleanupStats) {
2375
    known_garbage_end_sec = os::elapsedTime();
2376
    gclog_or_tty->print_cr("  compute known garbage: %8.3f ms.",
2377
                      (known_garbage_end_sec - clear_marked_end_sec) * 1000.0);
2378
  }
2379

2380
  _collectionSetChooser->sortMarkedHeapRegions();
2381
  double end_sec = os::elapsedTime();
2382 2383
  if (G1PrintParCleanupStats) {
    gclog_or_tty->print_cr("  sorting: %8.3f ms.",
2384
                           (end_sec - known_garbage_end_sec) * 1000.0);
2385 2386
  }

2387 2388 2389 2390 2391
  double elapsed_time_ms = (end_sec - _mark_cleanup_start_sec) * 1000.0;
  _concurrent_mark_cleanup_times_ms->add(elapsed_time_ms);
  _cur_mark_stop_world_time_ms += elapsed_time_ms;
  _prev_collection_pause_end_ms += elapsed_time_ms;
  _mmu_tracker->add_pause(_mark_cleanup_start_sec, end_sec, true);
2392 2393
}

2394
// Add the heap region at the head of the non-incremental collection set
2395
void G1CollectorPolicy::add_old_region_to_cset(HeapRegion* hr) {
2396 2397 2398 2399
  assert(_inc_cset_build_state == Active, "Precondition");
  assert(!hr->is_young(), "non-incremental add of young region");

  assert(!hr->in_collection_set(), "should not already be in the CSet");
2400 2401 2402 2403
  hr->set_in_collection_set(true);
  hr->set_next_in_collection_set(_collection_set);
  _collection_set = hr;
  _collection_set_bytes_used_before += hr->used();
2404
  _g1->register_region_with_in_cset_fast_test(hr);
2405 2406 2407
  size_t rs_length = hr->rem_set()->occupied();
  _recorded_rs_lengths += rs_length;
  _old_cset_region_length += 1;
2408 2409
}

2410 2411 2412 2413 2414 2415 2416 2417 2418 2419
// Initialize the per-collection-set information
void G1CollectorPolicy::start_incremental_cset_building() {
  assert(_inc_cset_build_state == Inactive, "Precondition");

  _inc_cset_head = NULL;
  _inc_cset_tail = NULL;
  _inc_cset_bytes_used_before = 0;

  _inc_cset_max_finger = 0;
  _inc_cset_recorded_rs_lengths = 0;
2420 2421 2422
  _inc_cset_recorded_rs_lengths_diffs = 0;
  _inc_cset_predicted_elapsed_time_ms = 0.0;
  _inc_cset_predicted_elapsed_time_ms_diffs = 0.0;
2423 2424 2425
  _inc_cset_build_state = Active;
}

2426 2427 2428 2429 2430 2431 2432 2433 2434 2435 2436 2437 2438 2439 2440 2441 2442 2443 2444 2445 2446 2447 2448 2449 2450 2451 2452 2453 2454 2455 2456 2457 2458
void G1CollectorPolicy::finalize_incremental_cset_building() {
  assert(_inc_cset_build_state == Active, "Precondition");
  assert(SafepointSynchronize::is_at_safepoint(), "should be at a safepoint");

  // The two "main" fields, _inc_cset_recorded_rs_lengths and
  // _inc_cset_predicted_elapsed_time_ms, are updated by the thread
  // that adds a new region to the CSet. Further updates by the
  // concurrent refinement thread that samples the young RSet lengths
  // are accumulated in the *_diffs fields. Here we add the diffs to
  // the "main" fields.

  if (_inc_cset_recorded_rs_lengths_diffs >= 0) {
    _inc_cset_recorded_rs_lengths += _inc_cset_recorded_rs_lengths_diffs;
  } else {
    // This is defensive. The diff should in theory be always positive
    // as RSets can only grow between GCs. However, given that we
    // sample their size concurrently with other threads updating them
    // it's possible that we might get the wrong size back, which
    // could make the calculations somewhat inaccurate.
    size_t diffs = (size_t) (-_inc_cset_recorded_rs_lengths_diffs);
    if (_inc_cset_recorded_rs_lengths >= diffs) {
      _inc_cset_recorded_rs_lengths -= diffs;
    } else {
      _inc_cset_recorded_rs_lengths = 0;
    }
  }
  _inc_cset_predicted_elapsed_time_ms +=
                                     _inc_cset_predicted_elapsed_time_ms_diffs;

  _inc_cset_recorded_rs_lengths_diffs = 0;
  _inc_cset_predicted_elapsed_time_ms_diffs = 0.0;
}

2459 2460 2461 2462 2463 2464 2465 2466 2467 2468 2469 2470 2471 2472 2473 2474 2475 2476 2477 2478 2479 2480 2481 2482 2483 2484 2485
void G1CollectorPolicy::add_to_incremental_cset_info(HeapRegion* hr, size_t rs_length) {
  // This routine is used when:
  // * adding survivor regions to the incremental cset at the end of an
  //   evacuation pause,
  // * adding the current allocation region to the incremental cset
  //   when it is retired, and
  // * updating existing policy information for a region in the
  //   incremental cset via young list RSet sampling.
  // Therefore this routine may be called at a safepoint by the
  // VM thread, or in-between safepoints by mutator threads (when
  // retiring the current allocation region) or a concurrent
  // refine thread (RSet sampling).

  double region_elapsed_time_ms = predict_region_elapsed_time_ms(hr, true);
  size_t used_bytes = hr->used();
  _inc_cset_recorded_rs_lengths += rs_length;
  _inc_cset_predicted_elapsed_time_ms += region_elapsed_time_ms;
  _inc_cset_bytes_used_before += used_bytes;

  // Cache the values we have added to the aggregated informtion
  // in the heap region in case we have to remove this region from
  // the incremental collection set, or it is updated by the
  // rset sampling code
  hr->set_recorded_rs_length(rs_length);
  hr->set_predicted_elapsed_time_ms(region_elapsed_time_ms);
}

2486 2487 2488 2489 2490 2491 2492 2493 2494 2495 2496 2497 2498 2499 2500 2501 2502 2503 2504
void G1CollectorPolicy::update_incremental_cset_info(HeapRegion* hr,
                                                     size_t new_rs_length) {
  // Update the CSet information that is dependent on the new RS length
  assert(hr->is_young(), "Precondition");
  assert(!SafepointSynchronize::is_at_safepoint(),
                                               "should not be at a safepoint");

  // We could have updated _inc_cset_recorded_rs_lengths and
  // _inc_cset_predicted_elapsed_time_ms directly but we'd need to do
  // that atomically, as this code is executed by a concurrent
  // refinement thread, potentially concurrently with a mutator thread
  // allocating a new region and also updating the same fields. To
  // avoid the atomic operations we accumulate these updates on two
  // separate fields (*_diffs) and we'll just add them to the "main"
  // fields at the start of a GC.

  ssize_t old_rs_length = (ssize_t) hr->recorded_rs_length();
  ssize_t rs_lengths_diff = (ssize_t) new_rs_length - old_rs_length;
  _inc_cset_recorded_rs_lengths_diffs += rs_lengths_diff;
2505 2506

  double old_elapsed_time_ms = hr->predicted_elapsed_time_ms();
2507 2508 2509
  double new_region_elapsed_time_ms = predict_region_elapsed_time_ms(hr, true);
  double elapsed_ms_diff = new_region_elapsed_time_ms - old_elapsed_time_ms;
  _inc_cset_predicted_elapsed_time_ms_diffs += elapsed_ms_diff;
2510

2511 2512
  hr->set_recorded_rs_length(new_rs_length);
  hr->set_predicted_elapsed_time_ms(new_region_elapsed_time_ms);
2513 2514 2515
}

void G1CollectorPolicy::add_region_to_incremental_cset_common(HeapRegion* hr) {
2516 2517
  assert(hr->is_young(), "invariant");
  assert(hr->young_index_in_cset() > -1, "should have already been set");
2518 2519 2520 2521 2522 2523 2524 2525 2526 2527 2528 2529 2530 2531 2532 2533 2534 2535 2536 2537 2538 2539 2540 2541 2542 2543 2544 2545 2546 2547 2548 2549 2550 2551 2552 2553 2554 2555 2556 2557 2558 2559 2560 2561 2562 2563 2564 2565 2566 2567 2568 2569 2570 2571 2572 2573 2574 2575 2576 2577 2578 2579 2580 2581 2582 2583 2584 2585 2586 2587 2588 2589 2590 2591 2592 2593 2594 2595 2596 2597 2598
  assert(_inc_cset_build_state == Active, "Precondition");

  // We need to clear and set the cached recorded/cached collection set
  // information in the heap region here (before the region gets added
  // to the collection set). An individual heap region's cached values
  // are calculated, aggregated with the policy collection set info,
  // and cached in the heap region here (initially) and (subsequently)
  // by the Young List sampling code.

  size_t rs_length = hr->rem_set()->occupied();
  add_to_incremental_cset_info(hr, rs_length);

  HeapWord* hr_end = hr->end();
  _inc_cset_max_finger = MAX2(_inc_cset_max_finger, hr_end);

  assert(!hr->in_collection_set(), "invariant");
  hr->set_in_collection_set(true);
  assert( hr->next_in_collection_set() == NULL, "invariant");

  _g1->register_region_with_in_cset_fast_test(hr);
}

// Add the region at the RHS of the incremental cset
void G1CollectorPolicy::add_region_to_incremental_cset_rhs(HeapRegion* hr) {
  // We should only ever be appending survivors at the end of a pause
  assert( hr->is_survivor(), "Logic");

  // Do the 'common' stuff
  add_region_to_incremental_cset_common(hr);

  // Now add the region at the right hand side
  if (_inc_cset_tail == NULL) {
    assert(_inc_cset_head == NULL, "invariant");
    _inc_cset_head = hr;
  } else {
    _inc_cset_tail->set_next_in_collection_set(hr);
  }
  _inc_cset_tail = hr;
}

// Add the region to the LHS of the incremental cset
void G1CollectorPolicy::add_region_to_incremental_cset_lhs(HeapRegion* hr) {
  // Survivors should be added to the RHS at the end of a pause
  assert(!hr->is_survivor(), "Logic");

  // Do the 'common' stuff
  add_region_to_incremental_cset_common(hr);

  // Add the region at the left hand side
  hr->set_next_in_collection_set(_inc_cset_head);
  if (_inc_cset_head == NULL) {
    assert(_inc_cset_tail == NULL, "Invariant");
    _inc_cset_tail = hr;
  }
  _inc_cset_head = hr;
}

#ifndef PRODUCT
void G1CollectorPolicy::print_collection_set(HeapRegion* list_head, outputStream* st) {
  assert(list_head == inc_cset_head() || list_head == collection_set(), "must be");

  st->print_cr("\nCollection_set:");
  HeapRegion* csr = list_head;
  while (csr != NULL) {
    HeapRegion* next = csr->next_in_collection_set();
    assert(csr->in_collection_set(), "bad CS");
    st->print_cr("  [%08x-%08x], t: %08x, P: %08x, N: %08x, C: %08x, "
                 "age: %4d, y: %d, surv: %d",
                        csr->bottom(), csr->end(),
                        csr->top(),
                        csr->prev_top_at_mark_start(),
                        csr->next_top_at_mark_start(),
                        csr->top_at_conc_mark_count(),
                        csr->age_in_surv_rate_group_cond(),
                        csr->is_young(),
                        csr->is_survivor());
    csr = next;
  }
}
#endif // !PRODUCT

2599 2600 2601 2602 2603 2604 2605 2606 2607 2608 2609 2610
bool G1CollectorPolicy::next_gc_should_be_mixed(const char* true_action_str,
                                                const char* false_action_str) {
  CollectionSetChooser* cset_chooser = _collectionSetChooser;
  if (cset_chooser->isEmpty()) {
    ergo_verbose0(ErgoMixedGCs,
                  false_action_str,
                  ergo_format_reason("candidate old regions not available"));
    return false;
  }
  size_t reclaimable_bytes = cset_chooser->remainingReclaimableBytes();
  size_t capacity_bytes = _g1->capacity();
  double perc = (double) reclaimable_bytes * 100.0 / (double) capacity_bytes;
2611
  double threshold = (double) G1HeapWastePercent;
2612 2613 2614 2615 2616 2617 2618 2619 2620 2621 2622 2623 2624 2625 2626 2627 2628 2629 2630 2631 2632 2633 2634 2635
  if (perc < threshold) {
    ergo_verbose4(ErgoMixedGCs,
              false_action_str,
              ergo_format_reason("reclaimable percentage lower than threshold")
              ergo_format_region("candidate old regions")
              ergo_format_byte_perc("reclaimable")
              ergo_format_perc("threshold"),
              cset_chooser->remainingRegions(),
              reclaimable_bytes, perc, threshold);
    return false;
  }

  ergo_verbose4(ErgoMixedGCs,
                true_action_str,
                ergo_format_reason("candidate old regions available")
                ergo_format_region("candidate old regions")
                ergo_format_byte_perc("reclaimable")
                ergo_format_perc("threshold"),
                cset_chooser->remainingRegions(),
                reclaimable_bytes, perc, threshold);
  return true;
}

void G1CollectorPolicy::finalize_cset(double target_pause_time_ms) {
2636 2637 2638
  // Set this here - in case we're not doing young collections.
  double non_young_start_time_sec = os::elapsedTime();

2639
  YoungList* young_list = _g1->young_list();
2640
  finalize_incremental_cset_building();
2641

2642 2643 2644 2645
  guarantee(target_pause_time_ms > 0.0,
            err_msg("target_pause_time_ms = %1.6lf should be positive",
                    target_pause_time_ms));
  guarantee(_collection_set == NULL, "Precondition");
2646 2647 2648

  double base_time_ms = predict_base_elapsed_time_ms(_pending_cards);
  double predicted_pause_time_ms = base_time_ms;
2649
  double time_remaining_ms = target_pause_time_ms - base_time_ms;
2650

2651 2652 2653 2654 2655 2656 2657
  ergo_verbose3(ErgoCSetConstruction | ErgoHigh,
                "start choosing CSet",
                ergo_format_ms("predicted base time")
                ergo_format_ms("remaining time")
                ergo_format_ms("target pause time"),
                base_time_ms, time_remaining_ms, target_pause_time_ms);

2658
  HeapRegion* hr;
2659
  double young_start_time_sec = os::elapsedTime();
2660

2661
  _collection_set_bytes_used_before = 0;
2662
  _last_gc_was_young = gcs_are_young() ? true : false;
2663

2664 2665
  if (_last_gc_was_young) {
    ++_young_pause_num;
2666
  } else {
2667
    ++_mixed_pause_num;
2668
  }
2669

2670 2671 2672
  // The young list is laid with the survivor regions from the previous
  // pause are appended to the RHS of the young list, i.e.
  //   [Newly Young Regions ++ Survivors from last pause].
2673

2674 2675 2676
  size_t survivor_region_length = young_list->survivor_length();
  size_t eden_region_length = young_list->length() - survivor_region_length;
  init_cset_region_lengths(eden_region_length, survivor_region_length);
2677
  hr = young_list->first_survivor_region();
2678 2679 2680 2681 2682
  while (hr != NULL) {
    assert(hr->is_survivor(), "badly formed young list");
    hr->set_young();
    hr = hr->get_next_young_region();
  }
2683

2684 2685
  // Clear the fields that point to the survivor list - they are all young now.
  young_list->clear_survivors();
2686

2687 2688 2689 2690
  _collection_set = _inc_cset_head;
  _collection_set_bytes_used_before = _inc_cset_bytes_used_before;
  time_remaining_ms -= _inc_cset_predicted_elapsed_time_ms;
  predicted_pause_time_ms += _inc_cset_predicted_elapsed_time_ms;
2691

2692 2693 2694 2695 2696
  ergo_verbose3(ErgoCSetConstruction | ErgoHigh,
                "add young regions to CSet",
                ergo_format_region("eden")
                ergo_format_region("survivors")
                ergo_format_ms("predicted young region time"),
2697
                eden_region_length, survivor_region_length,
2698 2699
                _inc_cset_predicted_elapsed_time_ms);

2700 2701 2702
  // The number of recorded young regions is the incremental
  // collection set's current size
  set_recorded_rs_lengths(_inc_cset_recorded_rs_lengths);
2703

2704 2705 2706
  double young_end_time_sec = os::elapsedTime();
  _recorded_young_cset_choice_time_ms =
    (young_end_time_sec - young_start_time_sec) * 1000.0;
2707

2708 2709
  // We are doing young collections so reset this.
  non_young_start_time_sec = young_end_time_sec;
2710

2711
  if (!gcs_are_young()) {
2712 2713 2714 2715 2716 2717 2718 2719 2720 2721 2722 2723 2724 2725 2726 2727 2728 2729
    CollectionSetChooser* cset_chooser = _collectionSetChooser;
    assert(cset_chooser->verify(), "CSet Chooser verification - pre");
    const size_t min_old_cset_length = cset_chooser->calcMinOldCSetLength();
    const size_t max_old_cset_length = cset_chooser->calcMaxOldCSetLength();

    size_t expensive_region_num = 0;
    bool check_time_remaining = adaptive_young_list_length();
    HeapRegion* hr = cset_chooser->peek();
    while (hr != NULL) {
      if (old_cset_region_length() >= max_old_cset_length) {
        // Added maximum number of old regions to the CSet.
        ergo_verbose2(ErgoCSetConstruction,
                      "finish adding old regions to CSet",
                      ergo_format_reason("old CSet region num reached max")
                      ergo_format_region("old")
                      ergo_format_region("max"),
                      old_cset_region_length(), max_old_cset_length);
        break;
2730
      }
2731

2732 2733 2734 2735 2736 2737 2738 2739 2740 2741 2742 2743 2744 2745 2746 2747 2748 2749
      double predicted_time_ms = predict_region_elapsed_time_ms(hr, false);
      if (check_time_remaining) {
        if (predicted_time_ms > time_remaining_ms) {
          // Too expensive for the current CSet.

          if (old_cset_region_length() >= min_old_cset_length) {
            // We have added the minimum number of old regions to the CSet,
            // we are done with this CSet.
            ergo_verbose4(ErgoCSetConstruction,
                          "finish adding old regions to CSet",
                          ergo_format_reason("predicted time is too high")
                          ergo_format_ms("predicted time")
                          ergo_format_ms("remaining time")
                          ergo_format_region("old")
                          ergo_format_region("min"),
                          predicted_time_ms, time_remaining_ms,
                          old_cset_region_length(), min_old_cset_length);
            break;
2750
          }
2751 2752 2753 2754 2755 2756 2757 2758 2759 2760 2761 2762 2763 2764 2765 2766

          // We'll add it anyway given that we haven't reached the
          // minimum number of old regions.
          expensive_region_num += 1;
        }
      } else {
        if (old_cset_region_length() >= min_old_cset_length) {
          // In the non-auto-tuning case, we'll finish adding regions
          // to the CSet if we reach the minimum.
          ergo_verbose2(ErgoCSetConstruction,
                        "finish adding old regions to CSet",
                        ergo_format_reason("old CSet region num reached min")
                        ergo_format_region("old")
                        ergo_format_region("min"),
                        old_cset_region_length(), min_old_cset_length);
          break;
2767 2768
        }
      }
2769 2770 2771 2772 2773 2774 2775 2776 2777 2778 2779 2780 2781 2782 2783 2784 2785 2786 2787 2788 2789 2790 2791 2792 2793 2794 2795 2796 2797 2798 2799

      // We will add this region to the CSet.
      time_remaining_ms -= predicted_time_ms;
      predicted_pause_time_ms += predicted_time_ms;
      cset_chooser->remove_and_move_to_next(hr);
      _g1->old_set_remove(hr);
      add_old_region_to_cset(hr);

      hr = cset_chooser->peek();
    }
    if (hr == NULL) {
      ergo_verbose0(ErgoCSetConstruction,
                    "finish adding old regions to CSet",
                    ergo_format_reason("candidate old regions not available"));
    }

    if (expensive_region_num > 0) {
      // We print the information once here at the end, predicated on
      // whether we added any apparently expensive regions or not, to
      // avoid generating output per region.
      ergo_verbose4(ErgoCSetConstruction,
                    "added expensive regions to CSet",
                    ergo_format_reason("old CSet region num not reached min")
                    ergo_format_region("old")
                    ergo_format_region("expensive")
                    ergo_format_region("min")
                    ergo_format_ms("remaining time"),
                    old_cset_region_length(),
                    expensive_region_num,
                    min_old_cset_length,
                    time_remaining_ms);
2800 2801
    }

2802
    assert(cset_chooser->verify(), "CSet Chooser verification - post");
2803 2804
  }

2805 2806
  stop_incremental_cset_building();

2807 2808
  count_CS_bytes_used();

2809 2810 2811 2812 2813 2814 2815
  ergo_verbose5(ErgoCSetConstruction,
                "finish choosing CSet",
                ergo_format_region("eden")
                ergo_format_region("survivors")
                ergo_format_region("old")
                ergo_format_ms("predicted pause time")
                ergo_format_ms("target pause time"),
2816 2817
                eden_region_length, survivor_region_length,
                old_cset_region_length(),
2818 2819
                predicted_pause_time_ms, target_pause_time_ms);

2820 2821 2822 2823
  double non_young_end_time_sec = os::elapsedTime();
  _recorded_non_young_cset_choice_time_ms =
    (non_young_end_time_sec - non_young_start_time_sec) * 1000.0;
}