g1CollectedHeap.cpp 201.0 KB
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/*
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 * Copyright (c) 2001, 2011, 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 "code/icBuffer.hpp"
#include "gc_implementation/g1/bufferingOopClosure.hpp"
#include "gc_implementation/g1/concurrentG1Refine.hpp"
#include "gc_implementation/g1/concurrentG1RefineThread.hpp"
#include "gc_implementation/g1/concurrentMarkThread.inline.hpp"
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#include "gc_implementation/g1/g1AllocRegion.inline.hpp"
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#include "gc_implementation/g1/g1CollectedHeap.inline.hpp"
#include "gc_implementation/g1/g1CollectorPolicy.hpp"
#include "gc_implementation/g1/g1MarkSweep.hpp"
#include "gc_implementation/g1/g1OopClosures.inline.hpp"
#include "gc_implementation/g1/g1RemSet.inline.hpp"
#include "gc_implementation/g1/heapRegionRemSet.hpp"
#include "gc_implementation/g1/heapRegionSeq.inline.hpp"
#include "gc_implementation/g1/vm_operations_g1.hpp"
#include "gc_implementation/shared/isGCActiveMark.hpp"
#include "memory/gcLocker.inline.hpp"
#include "memory/genOopClosures.inline.hpp"
#include "memory/generationSpec.hpp"
#include "oops/oop.inline.hpp"
#include "oops/oop.pcgc.inline.hpp"
#include "runtime/aprofiler.hpp"
#include "runtime/vmThread.hpp"
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size_t G1CollectedHeap::_humongous_object_threshold_in_words = 0;

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// turn it on so that the contents of the young list (scan-only /
// to-be-collected) are printed at "strategic" points before / during
// / after the collection --- this is useful for debugging
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#define YOUNG_LIST_VERBOSE 0
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// CURRENT STATUS
// This file is under construction.  Search for "FIXME".

// INVARIANTS/NOTES
//
// All allocation activity covered by the G1CollectedHeap interface is
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// serialized by acquiring the HeapLock.  This happens in mem_allocate
// and allocate_new_tlab, which are the "entry" points to the
// allocation code from the rest of the JVM.  (Note that this does not
// apply to TLAB allocation, which is not part of this interface: it
// is done by clients of this interface.)
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// Local to this file.

class RefineCardTableEntryClosure: public CardTableEntryClosure {
  SuspendibleThreadSet* _sts;
  G1RemSet* _g1rs;
  ConcurrentG1Refine* _cg1r;
  bool _concurrent;
public:
  RefineCardTableEntryClosure(SuspendibleThreadSet* sts,
                              G1RemSet* g1rs,
                              ConcurrentG1Refine* cg1r) :
    _sts(sts), _g1rs(g1rs), _cg1r(cg1r), _concurrent(true)
  {}
  bool do_card_ptr(jbyte* card_ptr, int worker_i) {
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    bool oops_into_cset = _g1rs->concurrentRefineOneCard(card_ptr, worker_i, false);
    // This path is executed by the concurrent refine or mutator threads,
    // concurrently, and so we do not care if card_ptr contains references
    // that point into the collection set.
    assert(!oops_into_cset, "should be");

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    if (_concurrent && _sts->should_yield()) {
      // Caller will actually yield.
      return false;
    }
    // Otherwise, we finished successfully; return true.
    return true;
  }
  void set_concurrent(bool b) { _concurrent = b; }
};


class ClearLoggedCardTableEntryClosure: public CardTableEntryClosure {
  int _calls;
  G1CollectedHeap* _g1h;
  CardTableModRefBS* _ctbs;
  int _histo[256];
public:
  ClearLoggedCardTableEntryClosure() :
    _calls(0)
  {
    _g1h = G1CollectedHeap::heap();
    _ctbs = (CardTableModRefBS*)_g1h->barrier_set();
    for (int i = 0; i < 256; i++) _histo[i] = 0;
  }
  bool do_card_ptr(jbyte* card_ptr, int worker_i) {
    if (_g1h->is_in_reserved(_ctbs->addr_for(card_ptr))) {
      _calls++;
      unsigned char* ujb = (unsigned char*)card_ptr;
      int ind = (int)(*ujb);
      _histo[ind]++;
      *card_ptr = -1;
    }
    return true;
  }
  int calls() { return _calls; }
  void print_histo() {
    gclog_or_tty->print_cr("Card table value histogram:");
    for (int i = 0; i < 256; i++) {
      if (_histo[i] != 0) {
        gclog_or_tty->print_cr("  %d: %d", i, _histo[i]);
      }
    }
  }
};

class RedirtyLoggedCardTableEntryClosure: public CardTableEntryClosure {
  int _calls;
  G1CollectedHeap* _g1h;
  CardTableModRefBS* _ctbs;
public:
  RedirtyLoggedCardTableEntryClosure() :
    _calls(0)
  {
    _g1h = G1CollectedHeap::heap();
    _ctbs = (CardTableModRefBS*)_g1h->barrier_set();
  }
  bool do_card_ptr(jbyte* card_ptr, int worker_i) {
    if (_g1h->is_in_reserved(_ctbs->addr_for(card_ptr))) {
      _calls++;
      *card_ptr = 0;
    }
    return true;
  }
  int calls() { return _calls; }
};

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class RedirtyLoggedCardTableEntryFastClosure : public CardTableEntryClosure {
public:
  bool do_card_ptr(jbyte* card_ptr, int worker_i) {
    *card_ptr = CardTableModRefBS::dirty_card_val();
    return true;
  }
};

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YoungList::YoungList(G1CollectedHeap* g1h)
  : _g1h(g1h), _head(NULL),
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    _length(0),
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    _last_sampled_rs_lengths(0),
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    _survivor_head(NULL), _survivor_tail(NULL), _survivor_length(0)
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{
  guarantee( check_list_empty(false), "just making sure..." );
}

void YoungList::push_region(HeapRegion *hr) {
  assert(!hr->is_young(), "should not already be young");
  assert(hr->get_next_young_region() == NULL, "cause it should!");

  hr->set_next_young_region(_head);
  _head = hr;

  hr->set_young();
  double yg_surv_rate = _g1h->g1_policy()->predict_yg_surv_rate((int)_length);
  ++_length;
}

void YoungList::add_survivor_region(HeapRegion* hr) {
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  assert(hr->is_survivor(), "should be flagged as survivor region");
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  assert(hr->get_next_young_region() == NULL, "cause it should!");

  hr->set_next_young_region(_survivor_head);
  if (_survivor_head == NULL) {
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    _survivor_tail = hr;
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  }
  _survivor_head = hr;

  ++_survivor_length;
}

void YoungList::empty_list(HeapRegion* list) {
  while (list != NULL) {
    HeapRegion* next = list->get_next_young_region();
    list->set_next_young_region(NULL);
    list->uninstall_surv_rate_group();
    list->set_not_young();
    list = next;
  }
}

void YoungList::empty_list() {
  assert(check_list_well_formed(), "young list should be well formed");

  empty_list(_head);
  _head = NULL;
  _length = 0;

  empty_list(_survivor_head);
  _survivor_head = NULL;
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  _survivor_tail = NULL;
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  _survivor_length = 0;

  _last_sampled_rs_lengths = 0;

  assert(check_list_empty(false), "just making sure...");
}

bool YoungList::check_list_well_formed() {
  bool ret = true;

  size_t length = 0;
  HeapRegion* curr = _head;
  HeapRegion* last = NULL;
  while (curr != NULL) {
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    if (!curr->is_young()) {
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      gclog_or_tty->print_cr("### YOUNG REGION "PTR_FORMAT"-"PTR_FORMAT" "
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                             "incorrectly tagged (y: %d, surv: %d)",
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                             curr->bottom(), curr->end(),
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                             curr->is_young(), curr->is_survivor());
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      ret = false;
    }
    ++length;
    last = curr;
    curr = curr->get_next_young_region();
  }
  ret = ret && (length == _length);

  if (!ret) {
    gclog_or_tty->print_cr("### YOUNG LIST seems not well formed!");
    gclog_or_tty->print_cr("###   list has %d entries, _length is %d",
                           length, _length);
  }

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  return ret;
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}

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bool YoungList::check_list_empty(bool check_sample) {
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  bool ret = true;

  if (_length != 0) {
    gclog_or_tty->print_cr("### YOUNG LIST should have 0 length, not %d",
                  _length);
    ret = false;
  }
  if (check_sample && _last_sampled_rs_lengths != 0) {
    gclog_or_tty->print_cr("### YOUNG LIST has non-zero last sampled RS lengths");
    ret = false;
  }
  if (_head != NULL) {
    gclog_or_tty->print_cr("### YOUNG LIST does not have a NULL head");
    ret = false;
  }
  if (!ret) {
    gclog_or_tty->print_cr("### YOUNG LIST does not seem empty");
  }

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  return ret;
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}

void
YoungList::rs_length_sampling_init() {
  _sampled_rs_lengths = 0;
  _curr               = _head;
}

bool
YoungList::rs_length_sampling_more() {
  return _curr != NULL;
}

void
YoungList::rs_length_sampling_next() {
  assert( _curr != NULL, "invariant" );
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  size_t rs_length = _curr->rem_set()->occupied();

  _sampled_rs_lengths += rs_length;

  // The current region may not yet have been added to the
  // incremental collection set (it gets added when it is
  // retired as the current allocation region).
  if (_curr->in_collection_set()) {
    // Update the collection set policy information for this region
    _g1h->g1_policy()->update_incremental_cset_info(_curr, rs_length);
  }

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  _curr = _curr->get_next_young_region();
  if (_curr == NULL) {
    _last_sampled_rs_lengths = _sampled_rs_lengths;
    // gclog_or_tty->print_cr("last sampled RS lengths = %d", _last_sampled_rs_lengths);
  }
}

void
YoungList::reset_auxilary_lists() {
  guarantee( is_empty(), "young list should be empty" );
  assert(check_list_well_formed(), "young list should be well formed");

  // Add survivor regions to SurvRateGroup.
  _g1h->g1_policy()->note_start_adding_survivor_regions();
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  _g1h->g1_policy()->finished_recalculating_age_indexes(true /* is_survivors */);
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  for (HeapRegion* curr = _survivor_head;
       curr != NULL;
       curr = curr->get_next_young_region()) {
    _g1h->g1_policy()->set_region_survivors(curr);
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    // The region is a non-empty survivor so let's add it to
    // the incremental collection set for the next evacuation
    // pause.
    _g1h->g1_policy()->add_region_to_incremental_cset_rhs(curr);
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  }
  _g1h->g1_policy()->note_stop_adding_survivor_regions();

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  _head   = _survivor_head;
  _length = _survivor_length;
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  if (_survivor_head != NULL) {
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    assert(_survivor_tail != NULL, "cause it shouldn't be");
    assert(_survivor_length > 0, "invariant");
    _survivor_tail->set_next_young_region(NULL);
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  }

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  // Don't clear the survivor list handles until the start of
  // the next evacuation pause - we need it in order to re-tag
  // the survivor regions from this evacuation pause as 'young'
  // at the start of the next.
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  _g1h->g1_policy()->finished_recalculating_age_indexes(false /* is_survivors */);
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  assert(check_list_well_formed(), "young list should be well formed");
}

void YoungList::print() {
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  HeapRegion* lists[] = {_head,   _survivor_head};
  const char* names[] = {"YOUNG", "SURVIVOR"};
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  for (unsigned int list = 0; list < ARRAY_SIZE(lists); ++list) {
    gclog_or_tty->print_cr("%s LIST CONTENTS", names[list]);
    HeapRegion *curr = lists[list];
    if (curr == NULL)
      gclog_or_tty->print_cr("  empty");
    while (curr != NULL) {
      gclog_or_tty->print_cr("  [%08x-%08x], t: %08x, P: %08x, N: %08x, C: %08x, "
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                             "age: %4d, y: %d, surv: %d",
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                             curr->bottom(), curr->end(),
                             curr->top(),
                             curr->prev_top_at_mark_start(),
                             curr->next_top_at_mark_start(),
                             curr->top_at_conc_mark_count(),
                             curr->age_in_surv_rate_group_cond(),
                             curr->is_young(),
                             curr->is_survivor());
      curr = curr->get_next_young_region();
    }
  }

  gclog_or_tty->print_cr("");
}

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void G1CollectedHeap::push_dirty_cards_region(HeapRegion* hr)
{
  // Claim the right to put the region on the dirty cards region list
  // by installing a self pointer.
  HeapRegion* next = hr->get_next_dirty_cards_region();
  if (next == NULL) {
    HeapRegion* res = (HeapRegion*)
      Atomic::cmpxchg_ptr(hr, hr->next_dirty_cards_region_addr(),
                          NULL);
    if (res == NULL) {
      HeapRegion* head;
      do {
        // Put the region to the dirty cards region list.
        head = _dirty_cards_region_list;
        next = (HeapRegion*)
          Atomic::cmpxchg_ptr(hr, &_dirty_cards_region_list, head);
        if (next == head) {
          assert(hr->get_next_dirty_cards_region() == hr,
                 "hr->get_next_dirty_cards_region() != hr");
          if (next == NULL) {
            // The last region in the list points to itself.
            hr->set_next_dirty_cards_region(hr);
          } else {
            hr->set_next_dirty_cards_region(next);
          }
        }
      } while (next != head);
    }
  }
}

HeapRegion* G1CollectedHeap::pop_dirty_cards_region()
{
  HeapRegion* head;
  HeapRegion* hr;
  do {
    head = _dirty_cards_region_list;
    if (head == NULL) {
      return NULL;
    }
    HeapRegion* new_head = head->get_next_dirty_cards_region();
    if (head == new_head) {
      // The last region.
      new_head = NULL;
    }
    hr = (HeapRegion*)Atomic::cmpxchg_ptr(new_head, &_dirty_cards_region_list,
                                          head);
  } while (hr != head);
  assert(hr != NULL, "invariant");
  hr->set_next_dirty_cards_region(NULL);
  return hr;
}

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void G1CollectedHeap::stop_conc_gc_threads() {
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  _cg1r->stop();
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  _cmThread->stop();
}

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#ifdef ASSERT
// A region is added to the collection set as it is retired
// so an address p can point to a region which will be in the
// collection set but has not yet been retired.  This method
// therefore is only accurate during a GC pause after all
// regions have been retired.  It is used for debugging
// to check if an nmethod has references to objects that can
// be move during a partial collection.  Though it can be
// inaccurate, it is sufficient for G1 because the conservative
// implementation of is_scavengable() for G1 will indicate that
// all nmethods must be scanned during a partial collection.
bool G1CollectedHeap::is_in_partial_collection(const void* p) {
  HeapRegion* hr = heap_region_containing(p);
  return hr != NULL && hr->in_collection_set();
}
#endif

// Returns true if the reference points to an object that
// can move in an incremental collecction.
bool G1CollectedHeap::is_scavengable(const void* p) {
  G1CollectedHeap* g1h = G1CollectedHeap::heap();
  G1CollectorPolicy* g1p = g1h->g1_policy();
  HeapRegion* hr = heap_region_containing(p);
  if (hr == NULL) {
     // perm gen (or null)
     return false;
  } else {
    return !hr->isHumongous();
  }
}

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void G1CollectedHeap::check_ct_logs_at_safepoint() {
  DirtyCardQueueSet& dcqs = JavaThread::dirty_card_queue_set();
  CardTableModRefBS* ct_bs = (CardTableModRefBS*)barrier_set();

  // Count the dirty cards at the start.
  CountNonCleanMemRegionClosure count1(this);
  ct_bs->mod_card_iterate(&count1);
  int orig_count = count1.n();

  // First clear the logged cards.
  ClearLoggedCardTableEntryClosure clear;
  dcqs.set_closure(&clear);
  dcqs.apply_closure_to_all_completed_buffers();
  dcqs.iterate_closure_all_threads(false);
  clear.print_histo();

  // Now ensure that there's no dirty cards.
  CountNonCleanMemRegionClosure count2(this);
  ct_bs->mod_card_iterate(&count2);
  if (count2.n() != 0) {
    gclog_or_tty->print_cr("Card table has %d entries; %d originally",
                           count2.n(), orig_count);
  }
  guarantee(count2.n() == 0, "Card table should be clean.");

  RedirtyLoggedCardTableEntryClosure redirty;
  JavaThread::dirty_card_queue_set().set_closure(&redirty);
  dcqs.apply_closure_to_all_completed_buffers();
  dcqs.iterate_closure_all_threads(false);
  gclog_or_tty->print_cr("Log entries = %d, dirty cards = %d.",
                         clear.calls(), orig_count);
  guarantee(redirty.calls() == clear.calls(),
            "Or else mechanism is broken.");

  CountNonCleanMemRegionClosure count3(this);
  ct_bs->mod_card_iterate(&count3);
  if (count3.n() != orig_count) {
    gclog_or_tty->print_cr("Should have restored them all: orig = %d, final = %d.",
                           orig_count, count3.n());
    guarantee(count3.n() >= orig_count, "Should have restored them all.");
  }

  JavaThread::dirty_card_queue_set().set_closure(_refine_cte_cl);
}

// Private class members.

G1CollectedHeap* G1CollectedHeap::_g1h;

// Private methods.

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HeapRegion*
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G1CollectedHeap::new_region_try_secondary_free_list() {
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  MutexLockerEx x(SecondaryFreeList_lock, Mutex::_no_safepoint_check_flag);
  while (!_secondary_free_list.is_empty() || free_regions_coming()) {
    if (!_secondary_free_list.is_empty()) {
      if (G1ConcRegionFreeingVerbose) {
        gclog_or_tty->print_cr("G1ConcRegionFreeing [region alloc] : "
                               "secondary_free_list has "SIZE_FORMAT" entries",
                               _secondary_free_list.length());
      }
      // It looks as if there are free regions available on the
      // secondary_free_list. Let's move them to the free_list and try
      // again to allocate from it.
      append_secondary_free_list();

      assert(!_free_list.is_empty(), "if the secondary_free_list was not "
             "empty we should have moved at least one entry to the free_list");
      HeapRegion* res = _free_list.remove_head();
      if (G1ConcRegionFreeingVerbose) {
        gclog_or_tty->print_cr("G1ConcRegionFreeing [region alloc] : "
                               "allocated "HR_FORMAT" from secondary_free_list",
                               HR_FORMAT_PARAMS(res));
      }
      return res;
    }

    // Wait here until we get notifed either when (a) there are no
    // more free regions coming or (b) some regions have been moved on
    // the secondary_free_list.
    SecondaryFreeList_lock->wait(Mutex::_no_safepoint_check_flag);
  }

  if (G1ConcRegionFreeingVerbose) {
    gclog_or_tty->print_cr("G1ConcRegionFreeing [region alloc] : "
                           "could not allocate from secondary_free_list");
  }
  return NULL;
}
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HeapRegion* G1CollectedHeap::new_region(size_t word_size, bool do_expand) {
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  assert(!isHumongous(word_size) ||
                                  word_size <= (size_t) HeapRegion::GrainWords,
         "the only time we use this to allocate a humongous region is "
         "when we are allocating a single humongous region");
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  HeapRegion* res;
  if (G1StressConcRegionFreeing) {
    if (!_secondary_free_list.is_empty()) {
      if (G1ConcRegionFreeingVerbose) {
        gclog_or_tty->print_cr("G1ConcRegionFreeing [region alloc] : "
                               "forced to look at the secondary_free_list");
      }
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      res = new_region_try_secondary_free_list();
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      if (res != NULL) {
        return res;
      }
    }
  }
  res = _free_list.remove_head_or_null();
  if (res == NULL) {
    if (G1ConcRegionFreeingVerbose) {
      gclog_or_tty->print_cr("G1ConcRegionFreeing [region alloc] : "
                             "res == NULL, trying the secondary_free_list");
    }
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    res = new_region_try_secondary_free_list();
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  }
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  if (res == NULL && do_expand) {
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    if (expand(word_size * HeapWordSize)) {
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      // Even though the heap was expanded, it might not have reached
      // the desired size. So, we cannot assume that the allocation
      // will succeed.
      res = _free_list.remove_head_or_null();
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    }
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  }
  return res;
}

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HeapRegion* G1CollectedHeap::new_gc_alloc_region(int purpose,
                                                 size_t word_size) {
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  HeapRegion* alloc_region = NULL;
  if (_gc_alloc_region_counts[purpose] < g1_policy()->max_regions(purpose)) {
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    alloc_region = new_region(word_size, true /* do_expand */);
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    if (alloc_region != NULL) {
      if (purpose == GCAllocForSurvived) {
        _hr_printer.alloc(alloc_region, G1HRPrinter::Survivor);
        alloc_region->set_survivor();
      } else {
        _hr_printer.alloc(alloc_region, G1HRPrinter::Old);
      }
      ++_gc_alloc_region_counts[purpose];
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    }
  } else {
    g1_policy()->note_alloc_region_limit_reached(purpose);
  }
  return alloc_region;
}

610 611
size_t G1CollectedHeap::humongous_obj_allocate_find_first(size_t num_regions,
                                                          size_t word_size) {
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  assert(isHumongous(word_size), "word_size should be humongous");
  assert(num_regions * HeapRegion::GrainWords >= word_size, "pre-condition");

615
  size_t first = G1_NULL_HRS_INDEX;
616 617 618 619
  if (num_regions == 1) {
    // Only one region to allocate, no need to go through the slower
    // path. The caller will attempt the expasion if this fails, so
    // let's not try to expand here too.
620
    HeapRegion* hr = new_region(word_size, false /* do_expand */);
621 622 623
    if (hr != NULL) {
      first = hr->hrs_index();
    } else {
624
      first = G1_NULL_HRS_INDEX;
625 626 627 628 629 630 631 632 633 634 635
    }
  } else {
    // We can't allocate humongous regions while cleanupComplete() is
    // running, since some of the regions we find to be empty might not
    // yet be added to the free list and it is not straightforward to
    // know which list they are on so that we can remove them. Note
    // that we only need to do this if we need to allocate more than
    // one region to satisfy the current humongous allocation
    // request. If we are only allocating one region we use the common
    // region allocation code (see above).
    wait_while_free_regions_coming();
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    append_secondary_free_list_if_not_empty_with_lock();
637 638

    if (free_regions() >= num_regions) {
639 640 641 642
      first = _hrs.find_contiguous(num_regions);
      if (first != G1_NULL_HRS_INDEX) {
        for (size_t i = first; i < first + num_regions; ++i) {
          HeapRegion* hr = region_at(i);
643
          assert(hr->is_empty(), "sanity");
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          assert(is_on_master_free_list(hr), "sanity");
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          hr->set_pending_removal(true);
        }
        _free_list.remove_all_pending(num_regions);
      }
    }
  }
  return first;
}

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HeapWord*
655
G1CollectedHeap::humongous_obj_allocate_initialize_regions(size_t first,
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                                                           size_t num_regions,
                                                           size_t word_size) {
658
  assert(first != G1_NULL_HRS_INDEX, "pre-condition");
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  assert(isHumongous(word_size), "word_size should be humongous");
  assert(num_regions * HeapRegion::GrainWords >= word_size, "pre-condition");

  // Index of last region in the series + 1.
663
  size_t last = first + num_regions;
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  // We need to initialize the region(s) we just discovered. This is
  // a bit tricky given that it can happen concurrently with
  // refinement threads refining cards on these regions and
  // potentially wanting to refine the BOT as they are scanning
  // those cards (this can happen shortly after a cleanup; see CR
  // 6991377). So we have to set up the region(s) carefully and in
  // a specific order.

  // The word size sum of all the regions we will allocate.
  size_t word_size_sum = num_regions * HeapRegion::GrainWords;
  assert(word_size <= word_size_sum, "sanity");

  // This will be the "starts humongous" region.
678
  HeapRegion* first_hr = region_at(first);
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  // The header of the new object will be placed at the bottom of
  // the first region.
  HeapWord* new_obj = first_hr->bottom();
  // This will be the new end of the first region in the series that
  // should also match the end of the last region in the seriers.
  HeapWord* new_end = new_obj + word_size_sum;
  // This will be the new top of the first region that will reflect
  // this allocation.
  HeapWord* new_top = new_obj + word_size;

  // First, we need to zero the header of the space that we will be
  // allocating. When we update top further down, some refinement
  // threads might try to scan the region. By zeroing the header we
  // ensure that any thread that will try to scan the region will
  // come across the zero klass word and bail out.
  //
  // NOTE: It would not have been correct to have used
  // CollectedHeap::fill_with_object() and make the space look like
  // an int array. The thread that is doing the allocation will
  // later update the object header to a potentially different array
  // type and, for a very short period of time, the klass and length
  // fields will be inconsistent. This could cause a refinement
  // thread to calculate the object size incorrectly.
  Copy::fill_to_words(new_obj, oopDesc::header_size(), 0);

  // We will set up the first region as "starts humongous". This
  // will also update the BOT covering all the regions to reflect
  // that there is a single object that starts at the bottom of the
  // first region.
  first_hr->set_startsHumongous(new_top, new_end);

  // Then, if there are any, we will set up the "continues
  // humongous" regions.
  HeapRegion* hr = NULL;
713 714
  for (size_t i = first + 1; i < last; ++i) {
    hr = region_at(i);
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    hr->set_continuesHumongous(first_hr);
  }
  // If we have "continues humongous" regions (hr != NULL), then the
  // end of the last one should match new_end.
  assert(hr == NULL || hr->end() == new_end, "sanity");

  // Up to this point no concurrent thread would have been able to
  // do any scanning on any region in this series. All the top
  // fields still point to bottom, so the intersection between
  // [bottom,top] and [card_start,card_end] will be empty. Before we
  // update the top fields, we'll do a storestore to make sure that
  // no thread sees the update to top before the zeroing of the
  // object header and the BOT initialization.
  OrderAccess::storestore();

  // Now that the BOT and the object header have been initialized,
  // we can update top of the "starts humongous" region.
  assert(first_hr->bottom() < new_top && new_top <= first_hr->end(),
         "new_top should be in this region");
  first_hr->set_top(new_top);
735 736 737 738 739 740 741 742 743 744 745
  if (_hr_printer.is_active()) {
    HeapWord* bottom = first_hr->bottom();
    HeapWord* end = first_hr->orig_end();
    if ((first + 1) == last) {
      // the series has a single humongous region
      _hr_printer.alloc(G1HRPrinter::SingleHumongous, first_hr, new_top);
    } else {
      // the series has more than one humongous regions
      _hr_printer.alloc(G1HRPrinter::StartsHumongous, first_hr, end);
    }
  }
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  // Now, we will update the top fields of the "continues humongous"
  // regions. The reason we need to do this is that, otherwise,
  // these regions would look empty and this will confuse parts of
  // G1. For example, the code that looks for a consecutive number
  // of empty regions will consider them empty and try to
  // re-allocate them. We can extend is_empty() to also include
  // !continuesHumongous(), but it is easier to just update the top
  // fields here. The way we set top for all regions (i.e., top ==
  // end for all regions but the last one, top == new_top for the
  // last one) is actually used when we will free up the humongous
  // region in free_humongous_region().
  hr = NULL;
759 760
  for (size_t i = first + 1; i < last; ++i) {
    hr = region_at(i);
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    if ((i + 1) == last) {
      // last continues humongous region
      assert(hr->bottom() < new_top && new_top <= hr->end(),
             "new_top should fall on this region");
      hr->set_top(new_top);
766
      _hr_printer.alloc(G1HRPrinter::ContinuesHumongous, hr, new_top);
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    } else {
      // not last one
      assert(new_top > hr->end(), "new_top should be above this region");
      hr->set_top(hr->end());
771
      _hr_printer.alloc(G1HRPrinter::ContinuesHumongous, hr, hr->end());
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    }
  }
  // If we have continues humongous regions (hr != NULL), then the
  // end of the last one should match new_end and its top should
  // match new_top.
  assert(hr == NULL ||
         (hr->end() == new_end && hr->top() == new_top), "sanity");

  assert(first_hr->used() == word_size * HeapWordSize, "invariant");
  _summary_bytes_used += first_hr->used();
  _humongous_set.add(first_hr);

  return new_obj;
}

787 788 789
// If could fit into free regions w/o expansion, try.
// Otherwise, if can expand, do so.
// Otherwise, if using ex regions might help, try with ex given back.
790
HeapWord* G1CollectedHeap::humongous_obj_allocate(size_t word_size) {
791
  assert_heap_locked_or_at_safepoint(true /* should_be_vm_thread */);
792

793
  verify_region_sets_optional();
794 795

  size_t num_regions =
796
         round_to(word_size, HeapRegion::GrainWords) / HeapRegion::GrainWords;
797
  size_t x_size = expansion_regions();
798 799 800
  size_t fs = _hrs.free_suffix();
  size_t first = humongous_obj_allocate_find_first(num_regions, word_size);
  if (first == G1_NULL_HRS_INDEX) {
801
    // The only thing we can do now is attempt expansion.
802
    if (fs + x_size >= num_regions) {
803 804 805 806 807 808 809 810 811 812 813
      // If the number of regions we're trying to allocate for this
      // object is at most the number of regions in the free suffix,
      // then the call to humongous_obj_allocate_find_first() above
      // should have succeeded and we wouldn't be here.
      //
      // We should only be trying to expand when the free suffix is
      // not sufficient for the object _and_ we have some expansion
      // room available.
      assert(num_regions > fs, "earlier allocation should have succeeded");

      if (expand((num_regions - fs) * HeapRegion::GrainBytes)) {
814 815 816
        // Even though the heap was expanded, it might not have
        // reached the desired size. So, we cannot assume that the
        // allocation will succeed.
817 818
        first = humongous_obj_allocate_find_first(num_regions, word_size);
      }
819 820
    }
  }
821

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  HeapWord* result = NULL;
823
  if (first != G1_NULL_HRS_INDEX) {
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    result =
      humongous_obj_allocate_initialize_regions(first, num_regions, word_size);
    assert(result != NULL, "it should always return a valid result");
827
  }
828 829

  verify_region_sets_optional();
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  return result;
832 833
}

834 835 836
HeapWord* G1CollectedHeap::allocate_new_tlab(size_t word_size) {
  assert_heap_not_locked_and_not_at_safepoint();
  assert(!isHumongous(word_size), "we do not allow humongous TLABs");
837

838 839
  unsigned int dummy_gc_count_before;
  return attempt_allocation(word_size, &dummy_gc_count_before);
840 841 842
}

HeapWord*
843 844 845
G1CollectedHeap::mem_allocate(size_t word_size,
                              bool*  gc_overhead_limit_was_exceeded) {
  assert_heap_not_locked_and_not_at_safepoint();
846

847 848 849
  // Loop until the allocation is satisified, or unsatisfied after GC.
  for (int try_count = 1; /* we'll return */; try_count += 1) {
    unsigned int gc_count_before;
850

851 852 853
    HeapWord* result = NULL;
    if (!isHumongous(word_size)) {
      result = attempt_allocation(word_size, &gc_count_before);
854
    } else {
855 856 857 858 859
      result = attempt_allocation_humongous(word_size, &gc_count_before);
    }
    if (result != NULL) {
      return result;
    }
860

861 862 863 864
    // Create the garbage collection operation...
    VM_G1CollectForAllocation op(gc_count_before, word_size);
    // ...and get the VM thread to execute it.
    VMThread::execute(&op);
865

866 867 868 869 870 871
    if (op.prologue_succeeded() && op.pause_succeeded()) {
      // If the operation was successful we'll return the result even
      // if it is NULL. If the allocation attempt failed immediately
      // after a Full GC, it's unlikely we'll be able to allocate now.
      HeapWord* result = op.result();
      if (result != NULL && !isHumongous(word_size)) {
872
        // Allocations that take place on VM operations do not do any
873 874
        // card dirtying and we have to do it here. We only have to do
        // this for non-humongous allocations, though.
875 876 877
        dirty_young_block(result, word_size);
      }
      return result;
878 879 880
    } else {
      assert(op.result() == NULL,
             "the result should be NULL if the VM op did not succeed");
881 882 883 884 885
    }

    // Give a warning if we seem to be looping forever.
    if ((QueuedAllocationWarningCount > 0) &&
        (try_count % QueuedAllocationWarningCount == 0)) {
886
      warning("G1CollectedHeap::mem_allocate retries %d times", try_count);
887 888 889
    }
  }

890
  ShouldNotReachHere();
891 892 893
  return NULL;
}

894 895 896 897 898 899 900
HeapWord* G1CollectedHeap::attempt_allocation_slow(size_t word_size,
                                           unsigned int *gc_count_before_ret) {
  // Make sure you read the note in attempt_allocation_humongous().

  assert_heap_not_locked_and_not_at_safepoint();
  assert(!isHumongous(word_size), "attempt_allocation_slow() should not "
         "be called for humongous allocation requests");
901

902 903 904 905 906 907 908
  // We should only get here after the first-level allocation attempt
  // (attempt_allocation()) failed to allocate.

  // We will loop until a) we manage to successfully perform the
  // allocation or b) we successfully schedule a collection which
  // fails to perform the allocation. b) is the only case when we'll
  // return NULL.
909
  HeapWord* result = NULL;
910 911 912
  for (int try_count = 1; /* we'll return */; try_count += 1) {
    bool should_try_gc;
    unsigned int gc_count_before;
913

914 915 916 917 918 919 920
    {
      MutexLockerEx x(Heap_lock);

      result = _mutator_alloc_region.attempt_allocation_locked(word_size,
                                                      false /* bot_updates */);
      if (result != NULL) {
        return result;
921
      }
922

923 924 925
      // If we reach here, attempt_allocation_locked() above failed to
      // allocate a new region. So the mutator alloc region should be NULL.
      assert(_mutator_alloc_region.get() == NULL, "only way to get here");
926

927 928 929 930 931 932 933 934 935 936 937 938 939 940 941
      if (GC_locker::is_active_and_needs_gc()) {
        if (g1_policy()->can_expand_young_list()) {
          result = _mutator_alloc_region.attempt_allocation_force(word_size,
                                                      false /* bot_updates */);
          if (result != NULL) {
            return result;
          }
        }
        should_try_gc = false;
      } else {
        // Read the GC count while still holding the Heap_lock.
        gc_count_before = SharedHeap::heap()->total_collections();
        should_try_gc = true;
      }
    }
942

943 944
    if (should_try_gc) {
      bool succeeded;
945 946
      result = do_collection_pause(word_size, gc_count_before, &succeeded);
      if (result != NULL) {
947
        assert(succeeded, "only way to get back a non-NULL result");
948 949 950
        return result;
      }

951 952 953 954 955 956 957 958 959 960
      if (succeeded) {
        // If we get here we successfully scheduled a collection which
        // failed to allocate. No point in trying to allocate
        // further. We'll just return NULL.
        MutexLockerEx x(Heap_lock);
        *gc_count_before_ret = SharedHeap::heap()->total_collections();
        return NULL;
      }
    } else {
      GC_locker::stall_until_clear();
961 962
    }

963 964 965 966 967 968 969 970 971 972 973 974
    // We can reach here if we were unsuccessul in scheduling a
    // collection (because another thread beat us to it) or if we were
    // stalled due to the GC locker. In either can we should retry the
    // allocation attempt in case another thread successfully
    // performed a collection and reclaimed enough space. We do the
    // first attempt (without holding the Heap_lock) here and the
    // follow-on attempt will be at the start of the next loop
    // iteration (after taking the Heap_lock).
    result = _mutator_alloc_region.attempt_allocation(word_size,
                                                      false /* bot_updates */);
    if (result != NULL ){
      return result;
975 976
    }

977 978 979
    // Give a warning if we seem to be looping forever.
    if ((QueuedAllocationWarningCount > 0) &&
        (try_count % QueuedAllocationWarningCount == 0)) {
980
      warning("G1CollectedHeap::attempt_allocation_slow() "
981
              "retries %d times", try_count);
982 983 984
    }
  }

985 986
  ShouldNotReachHere();
  return NULL;
987 988
}

989 990 991 992 993 994 995 996 997 998 999 1000 1001
HeapWord* G1CollectedHeap::attempt_allocation_humongous(size_t word_size,
                                          unsigned int * gc_count_before_ret) {
  // The structure of this method has a lot of similarities to
  // attempt_allocation_slow(). The reason these two were not merged
  // into a single one is that such a method would require several "if
  // allocation is not humongous do this, otherwise do that"
  // conditional paths which would obscure its flow. In fact, an early
  // version of this code did use a unified method which was harder to
  // follow and, as a result, it had subtle bugs that were hard to
  // track down. So keeping these two methods separate allows each to
  // be more readable. It will be good to keep these two in sync as
  // much as possible.

1002
  assert_heap_not_locked_and_not_at_safepoint();
1003 1004
  assert(isHumongous(word_size), "attempt_allocation_humongous() "
         "should only be called for humongous allocations");
1005

1006 1007 1008 1009 1010
  // We will loop until a) we manage to successfully perform the
  // allocation or b) we successfully schedule a collection which
  // fails to perform the allocation. b) is the only case when we'll
  // return NULL.
  HeapWord* result = NULL;
1011
  for (int try_count = 1; /* we'll return */; try_count += 1) {
1012
    bool should_try_gc;
1013
    unsigned int gc_count_before;
1014

1015
    {
1016
      MutexLockerEx x(Heap_lock);
1017

1018 1019 1020 1021 1022 1023 1024
      // Given that humongous objects are not allocated in young
      // regions, we'll first try to do the allocation without doing a
      // collection hoping that there's enough space in the heap.
      result = humongous_obj_allocate(word_size);
      if (result != NULL) {
        return result;
      }
1025

1026 1027
      if (GC_locker::is_active_and_needs_gc()) {
        should_try_gc = false;
1028
      } else {
1029 1030 1031
        // Read the GC count while still holding the Heap_lock.
        gc_count_before = SharedHeap::heap()->total_collections();
        should_try_gc = true;
1032 1033 1034
      }
    }

1035 1036 1037 1038
    if (should_try_gc) {
      // If we failed to allocate the humongous object, we should try to
      // do a collection pause (if we're allowed) in case it reclaims
      // enough space for the allocation to succeed after the pause.
1039

1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053
      bool succeeded;
      result = do_collection_pause(word_size, gc_count_before, &succeeded);
      if (result != NULL) {
        assert(succeeded, "only way to get back a non-NULL result");
        return result;
      }

      if (succeeded) {
        // If we get here we successfully scheduled a collection which
        // failed to allocate. No point in trying to allocate
        // further. We'll just return NULL.
        MutexLockerEx x(Heap_lock);
        *gc_count_before_ret = SharedHeap::heap()->total_collections();
        return NULL;
1054 1055
      }
    } else {
1056
      GC_locker::stall_until_clear();
1057 1058
    }

1059 1060 1061 1062 1063 1064 1065
    // We can reach here if we were unsuccessul in scheduling a
    // collection (because another thread beat us to it) or if we were
    // stalled due to the GC locker. In either can we should retry the
    // allocation attempt in case another thread successfully
    // performed a collection and reclaimed enough space.  Give a
    // warning if we seem to be looping forever.

1066 1067
    if ((QueuedAllocationWarningCount > 0) &&
        (try_count % QueuedAllocationWarningCount == 0)) {
1068 1069
      warning("G1CollectedHeap::attempt_allocation_humongous() "
              "retries %d times", try_count);
1070 1071
    }
  }
1072 1073

  ShouldNotReachHere();
1074
  return NULL;
1075 1076
}

1077 1078
HeapWord* G1CollectedHeap::attempt_allocation_at_safepoint(size_t word_size,
                                       bool expect_null_mutator_alloc_region) {
1079
  assert_at_safepoint(true /* should_be_vm_thread */);
1080 1081 1082
  assert(_mutator_alloc_region.get() == NULL ||
                                             !expect_null_mutator_alloc_region,
         "the current alloc region was unexpectedly found to be non-NULL");
1083

1084 1085 1086 1087 1088
  if (!isHumongous(word_size)) {
    return _mutator_alloc_region.attempt_allocation_locked(word_size,
                                                      false /* bot_updates */);
  } else {
    return humongous_obj_allocate(word_size);
1089
  }
1090 1091

  ShouldNotReachHere();
1092 1093
}

1094 1095 1096 1097 1098 1099
void G1CollectedHeap::abandon_gc_alloc_regions() {
  // first, make sure that the GC alloc region list is empty (it should!)
  assert(_gc_alloc_region_list == NULL, "invariant");
  release_gc_alloc_regions(true /* totally */);
}

1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133
class PostMCRemSetClearClosure: public HeapRegionClosure {
  ModRefBarrierSet* _mr_bs;
public:
  PostMCRemSetClearClosure(ModRefBarrierSet* mr_bs) : _mr_bs(mr_bs) {}
  bool doHeapRegion(HeapRegion* r) {
    r->reset_gc_time_stamp();
    if (r->continuesHumongous())
      return false;
    HeapRegionRemSet* hrrs = r->rem_set();
    if (hrrs != NULL) hrrs->clear();
    // You might think here that we could clear just the cards
    // corresponding to the used region.  But no: if we leave a dirty card
    // in a region we might allocate into, then it would prevent that card
    // from being enqueued, and cause it to be missed.
    // Re: the performance cost: we shouldn't be doing full GC anyway!
    _mr_bs->clear(MemRegion(r->bottom(), r->end()));
    return false;
  }
};


class PostMCRemSetInvalidateClosure: public HeapRegionClosure {
  ModRefBarrierSet* _mr_bs;
public:
  PostMCRemSetInvalidateClosure(ModRefBarrierSet* mr_bs) : _mr_bs(mr_bs) {}
  bool doHeapRegion(HeapRegion* r) {
    if (r->continuesHumongous()) return false;
    if (r->used_region().word_size() != 0) {
      _mr_bs->invalidate(r->used_region(), true /*whole heap*/);
    }
    return false;
  }
};

1134 1135 1136 1137 1138 1139
class RebuildRSOutOfRegionClosure: public HeapRegionClosure {
  G1CollectedHeap*   _g1h;
  UpdateRSOopClosure _cl;
  int                _worker_i;
public:
  RebuildRSOutOfRegionClosure(G1CollectedHeap* g1, int worker_i = 0) :
1140
    _cl(g1->g1_rem_set(), worker_i),
1141 1142 1143
    _worker_i(worker_i),
    _g1h(g1)
  { }
1144

1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168
  bool doHeapRegion(HeapRegion* r) {
    if (!r->continuesHumongous()) {
      _cl.set_from(r);
      r->oop_iterate(&_cl);
    }
    return false;
  }
};

class ParRebuildRSTask: public AbstractGangTask {
  G1CollectedHeap* _g1;
public:
  ParRebuildRSTask(G1CollectedHeap* g1)
    : AbstractGangTask("ParRebuildRSTask"),
      _g1(g1)
  { }

  void work(int i) {
    RebuildRSOutOfRegionClosure rebuild_rs(_g1, i);
    _g1->heap_region_par_iterate_chunked(&rebuild_rs, i,
                                         HeapRegion::RebuildRSClaimValue);
  }
};

1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197
class PostCompactionPrinterClosure: public HeapRegionClosure {
private:
  G1HRPrinter* _hr_printer;
public:
  bool doHeapRegion(HeapRegion* hr) {
    assert(!hr->is_young(), "not expecting to find young regions");
    // We only generate output for non-empty regions.
    if (!hr->is_empty()) {
      if (!hr->isHumongous()) {
        _hr_printer->post_compaction(hr, G1HRPrinter::Old);
      } else if (hr->startsHumongous()) {
        if (hr->capacity() == (size_t) HeapRegion::GrainBytes) {
          // single humongous region
          _hr_printer->post_compaction(hr, G1HRPrinter::SingleHumongous);
        } else {
          _hr_printer->post_compaction(hr, G1HRPrinter::StartsHumongous);
        }
      } else {
        assert(hr->continuesHumongous(), "only way to get here");
        _hr_printer->post_compaction(hr, G1HRPrinter::ContinuesHumongous);
      }
    }
    return false;
  }

  PostCompactionPrinterClosure(G1HRPrinter* hr_printer)
    : _hr_printer(hr_printer) { }
};

1198
bool G1CollectedHeap::do_collection(bool explicit_gc,
1199
                                    bool clear_all_soft_refs,
1200
                                    size_t word_size) {
1201 1202
  assert_at_safepoint(true /* should_be_vm_thread */);

1203
  if (GC_locker::check_active_before_gc()) {
1204
    return false;
1205 1206
  }

1207
  SvcGCMarker sgcm(SvcGCMarker::FULL);
1208 1209
  ResourceMark rm;

1210 1211 1212 1213
  if (PrintHeapAtGC) {
    Universe::print_heap_before_gc();
  }

1214
  verify_region_sets_optional();
1215

1216 1217 1218 1219 1220
  const bool do_clear_all_soft_refs = clear_all_soft_refs ||
                           collector_policy()->should_clear_all_soft_refs();

  ClearedAllSoftRefs casr(do_clear_all_soft_refs, collector_policy());

1221 1222 1223 1224
  {
    IsGCActiveMark x;

    // Timing
1225 1226
    bool system_gc = (gc_cause() == GCCause::_java_lang_system_gc);
    assert(!system_gc || explicit_gc, "invariant");
1227 1228
    gclog_or_tty->date_stamp(PrintGC && PrintGCDateStamps);
    TraceCPUTime tcpu(PrintGCDetails, true, gclog_or_tty);
1229
    TraceTime t(system_gc ? "Full GC (System.gc())" : "Full GC",
1230
                PrintGC, true, gclog_or_tty);
1231

1232
    TraceCollectorStats tcs(g1mm()->full_collection_counters());
1233
    TraceMemoryManagerStats tms(true /* fullGC */, gc_cause());
1234

1235 1236 1237
    double start = os::elapsedTime();
    g1_policy()->record_full_collection_start();

1238
    wait_while_free_regions_coming();
T
tonyp 已提交
1239
    append_secondary_free_list_if_not_empty_with_lock();
1240

1241
    gc_prologue(true);
1242
    increment_total_collections(true /* full gc */);
1243 1244 1245 1246 1247 1248 1249

    size_t g1h_prev_used = used();
    assert(used() == recalculate_used(), "Should be equal");

    if (VerifyBeforeGC && total_collections() >= VerifyGCStartAt) {
      HandleMark hm;  // Discard invalid handles created during verification
      gclog_or_tty->print(" VerifyBeforeGC:");
1250
      prepare_for_verify();
1251 1252 1253 1254
      Universe::verify(/* allow dirty */ true,
                       /* silent      */ false,
                       /* option      */ VerifyOption_G1UsePrevMarking);

1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273
    }

    COMPILER2_PRESENT(DerivedPointerTable::clear());

    // We want to discover references, but not process them yet.
    // This mode is disabled in
    // instanceRefKlass::process_discovered_references if the
    // generation does some collection work, or
    // instanceRefKlass::enqueue_discovered_references if the
    // generation returns without doing any work.
    ref_processor()->disable_discovery();
    ref_processor()->abandon_partial_discovery();
    ref_processor()->verify_no_references_recorded();

    // Abandon current iterations of concurrent marking and concurrent
    // refinement, if any are in progress.
    concurrent_mark()->abort();

    // Make sure we'll choose a new allocation region afterwards.
1274
    release_mutator_alloc_region();
1275
    abandon_gc_alloc_regions();
1276
    g1_rem_set()->cleanupHRRS();
1277
    tear_down_region_lists();
1278

1279 1280 1281 1282 1283
    // We should call this after we retire any currently active alloc
    // regions so that all the ALLOC / RETIRE events are generated
    // before the start GC event.
    _hr_printer.start_gc(true /* full */, (size_t) total_collections());

1284 1285 1286 1287 1288 1289 1290 1291
    // We may have added regions to the current incremental collection
    // set between the last GC or pause and now. We need to clear the
    // incremental collection set and then start rebuilding it afresh
    // after this full GC.
    abandon_collection_set(g1_policy()->inc_cset_head());
    g1_policy()->clear_incremental_cset();
    g1_policy()->stop_incremental_cset_building();

1292 1293 1294 1295 1296
    if (g1_policy()->in_young_gc_mode()) {
      empty_young_list();
      g1_policy()->set_full_young_gcs(true);
    }

1297 1298 1299
    // See the comment in G1CollectedHeap::ref_processing_init() about
    // how reference processing currently works in G1.

1300
    // Temporarily make reference _discovery_ single threaded (non-MT).
1301
    ReferenceProcessorMTDiscoveryMutator rp_disc_ser(ref_processor(), false);
1302 1303 1304 1305 1306 1307 1308 1309

    // Temporarily make refs discovery atomic
    ReferenceProcessorAtomicMutator rp_disc_atomic(ref_processor(), true);

    // Temporarily clear _is_alive_non_header
    ReferenceProcessorIsAliveMutator rp_is_alive_null(ref_processor(), NULL);

    ref_processor()->enable_discovery();
1310
    ref_processor()->setup_policy(do_clear_all_soft_refs);
1311 1312 1313
    // Do collection work
    {
      HandleMark hm;  // Discard invalid handles created during gc
1314
      G1MarkSweep::invoke_at_safepoint(ref_processor(), do_clear_all_soft_refs);
1315
    }
1316
    assert(free_regions() == 0, "we should not have added any free regions");
1317 1318 1319 1320 1321 1322 1323 1324
    rebuild_region_lists();

    _summary_bytes_used = recalculate_used();

    ref_processor()->enqueue_discovered_references();

    COMPILER2_PRESENT(DerivedPointerTable::update_pointers());

1325 1326
    MemoryService::track_memory_usage();

1327 1328 1329
    if (VerifyAfterGC && total_collections() >= VerifyGCStartAt) {
      HandleMark hm;  // Discard invalid handles created during verification
      gclog_or_tty->print(" VerifyAfterGC:");
1330
      prepare_for_verify();
1331 1332 1333 1334
      Universe::verify(/* allow dirty */ false,
                       /* silent      */ false,
                       /* option      */ VerifyOption_G1UsePrevMarking);

1335 1336 1337 1338 1339
    }
    NOT_PRODUCT(ref_processor()->verify_no_references_recorded());

    reset_gc_time_stamp();
    // Since everything potentially moved, we will clear all remembered
1340 1341
    // sets, and clear all cards.  Later we will rebuild remebered
    // sets. We will also reset the GC time stamps of the regions.
1342 1343 1344 1345
    PostMCRemSetClearClosure rs_clear(mr_bs());
    heap_region_iterate(&rs_clear);

    // Resize the heap if necessary.
1346
    resize_if_necessary_after_full_collection(explicit_gc ? 0 : word_size);
1347

1348 1349 1350 1351 1352 1353 1354 1355 1356 1357 1358
    if (_hr_printer.is_active()) {
      // We should do this after we potentially resize the heap so
      // that all the COMMIT / UNCOMMIT events are generated before
      // the end GC event.

      PostCompactionPrinterClosure cl(hr_printer());
      heap_region_iterate(&cl);

      _hr_printer.end_gc(true /* full */, (size_t) total_collections());
    }

1359 1360 1361 1362 1363
    if (_cg1r->use_cache()) {
      _cg1r->clear_and_record_card_counts();
      _cg1r->clear_hot_cache();
    }

1364
    // Rebuild remembered sets of all regions.
1365 1366

    if (G1CollectedHeap::use_parallel_gc_threads()) {
1367 1368 1369 1370 1371 1372 1373 1374 1375 1376 1377 1378 1379 1380
      ParRebuildRSTask rebuild_rs_task(this);
      assert(check_heap_region_claim_values(
             HeapRegion::InitialClaimValue), "sanity check");
      set_par_threads(workers()->total_workers());
      workers()->run_task(&rebuild_rs_task);
      set_par_threads(0);
      assert(check_heap_region_claim_values(
             HeapRegion::RebuildRSClaimValue), "sanity check");
      reset_heap_region_claim_values();
    } else {
      RebuildRSOutOfRegionClosure rebuild_rs(this);
      heap_region_iterate(&rebuild_rs);
    }

1381 1382 1383 1384 1385 1386 1387 1388 1389
    if (PrintGC) {
      print_size_transition(gclog_or_tty, g1h_prev_used, used(), capacity());
    }

    if (true) { // FIXME
      // Ask the permanent generation to adjust size for full collections
      perm()->compute_new_size();
    }

1390 1391 1392 1393 1394 1395 1396 1397 1398
    // Start a new incremental collection set for the next pause
    assert(g1_policy()->collection_set() == NULL, "must be");
    g1_policy()->start_incremental_cset_building();

    // Clear the _cset_fast_test bitmap in anticipation of adding
    // regions to the incremental collection set for the next
    // evacuation pause.
    clear_cset_fast_test();

1399 1400
    init_mutator_alloc_region();

1401 1402 1403
    double end = os::elapsedTime();
    g1_policy()->record_full_collection_end();

1404 1405 1406 1407
#ifdef TRACESPINNING
    ParallelTaskTerminator::print_termination_counts();
#endif

1408 1409
    gc_epilogue(true);

1410 1411
    // Discard all rset updates
    JavaThread::dirty_card_queue_set().abandon_logs();
1412 1413
    assert(!G1DeferredRSUpdate
           || (G1DeferredRSUpdate && (dirty_card_queue_set().completed_buffers_num() == 0)), "Should not be any");
1414 1415 1416 1417
  }

  if (g1_policy()->in_young_gc_mode()) {
    _young_list->reset_sampled_info();
1418 1419 1420
    // At this point there should be no regions in the
    // entire heap tagged as young.
    assert( check_young_list_empty(true /* check_heap */),
1421 1422
            "young list should be empty at this point");
  }
1423

1424
  // Update the number of full collections that have been completed.
1425
  increment_full_collections_completed(false /* concurrent */);
1426

1427
  _hrs.verify_optional();
1428 1429
  verify_region_sets_optional();

1430 1431 1432
  if (PrintHeapAtGC) {
    Universe::print_heap_after_gc();
  }
1433
  g1mm()->update_counters();
1434 1435

  return true;
1436 1437 1438
}

void G1CollectedHeap::do_full_collection(bool clear_all_soft_refs) {
1439 1440 1441 1442 1443 1444 1445 1446
  // do_collection() will return whether it succeeded in performing
  // the GC. Currently, there is no facility on the
  // do_full_collection() API to notify the caller than the collection
  // did not succeed (e.g., because it was locked out by the GC
  // locker). So, right now, we'll ignore the return value.
  bool dummy = do_collection(true,                /* explicit_gc */
                             clear_all_soft_refs,
                             0                    /* word_size */);
1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460
}

// This code is mostly copied from TenuredGeneration.
void
G1CollectedHeap::
resize_if_necessary_after_full_collection(size_t word_size) {
  assert(MinHeapFreeRatio <= MaxHeapFreeRatio, "sanity check");

  // Include the current allocation, if any, and bytes that will be
  // pre-allocated to support collections, as "used".
  const size_t used_after_gc = used();
  const size_t capacity_after_gc = capacity();
  const size_t free_after_gc = capacity_after_gc - used_after_gc;

1461 1462 1463 1464
  // This is enforced in arguments.cpp.
  assert(MinHeapFreeRatio <= MaxHeapFreeRatio,
         "otherwise the code below doesn't make sense");

1465
  // We don't have floating point command-line arguments
1466
  const double minimum_free_percentage = (double) MinHeapFreeRatio / 100.0;
1467
  const double maximum_used_percentage = 1.0 - minimum_free_percentage;
1468
  const double maximum_free_percentage = (double) MaxHeapFreeRatio / 100.0;
1469 1470
  const double minimum_used_percentage = 1.0 - maximum_free_percentage;

1471 1472 1473 1474 1475 1476 1477 1478 1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501 1502 1503 1504 1505 1506
  const size_t min_heap_size = collector_policy()->min_heap_byte_size();
  const size_t max_heap_size = collector_policy()->max_heap_byte_size();

  // We have to be careful here as these two calculations can overflow
  // 32-bit size_t's.
  double used_after_gc_d = (double) used_after_gc;
  double minimum_desired_capacity_d = used_after_gc_d / maximum_used_percentage;
  double maximum_desired_capacity_d = used_after_gc_d / minimum_used_percentage;

  // Let's make sure that they are both under the max heap size, which
  // by default will make them fit into a size_t.
  double desired_capacity_upper_bound = (double) max_heap_size;
  minimum_desired_capacity_d = MIN2(minimum_desired_capacity_d,
                                    desired_capacity_upper_bound);
  maximum_desired_capacity_d = MIN2(maximum_desired_capacity_d,
                                    desired_capacity_upper_bound);

  // We can now safely turn them into size_t's.
  size_t minimum_desired_capacity = (size_t) minimum_desired_capacity_d;
  size_t maximum_desired_capacity = (size_t) maximum_desired_capacity_d;

  // This assert only makes sense here, before we adjust them
  // with respect to the min and max heap size.
  assert(minimum_desired_capacity <= maximum_desired_capacity,
         err_msg("minimum_desired_capacity = "SIZE_FORMAT", "
                 "maximum_desired_capacity = "SIZE_FORMAT,
                 minimum_desired_capacity, maximum_desired_capacity));

  // Should not be greater than the heap max size. No need to adjust
  // it with respect to the heap min size as it's a lower bound (i.e.,
  // we'll try to make the capacity larger than it, not smaller).
  minimum_desired_capacity = MIN2(minimum_desired_capacity, max_heap_size);
  // Should not be less than the heap min size. No need to adjust it
  // with respect to the heap max size as it's an upper bound (i.e.,
  // we'll try to make the capacity smaller than it, not greater).
  maximum_desired_capacity =  MAX2(maximum_desired_capacity, min_heap_size);
1507 1508

  if (PrintGC && Verbose) {
1509 1510
    const double free_percentage =
      (double) free_after_gc / (double) capacity_after_gc;
1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521
    gclog_or_tty->print_cr("Computing new size after full GC ");
    gclog_or_tty->print_cr("  "
                           "  minimum_free_percentage: %6.2f",
                           minimum_free_percentage);
    gclog_or_tty->print_cr("  "
                           "  maximum_free_percentage: %6.2f",
                           maximum_free_percentage);
    gclog_or_tty->print_cr("  "
                           "  capacity: %6.1fK"
                           "  minimum_desired_capacity: %6.1fK"
                           "  maximum_desired_capacity: %6.1fK",
1522 1523 1524
                           (double) capacity_after_gc / (double) K,
                           (double) minimum_desired_capacity / (double) K,
                           (double) maximum_desired_capacity / (double) K);
1525
    gclog_or_tty->print_cr("  "
1526 1527 1528 1529
                           "  free_after_gc: %6.1fK"
                           "  used_after_gc: %6.1fK",
                           (double) free_after_gc / (double) K,
                           (double) used_after_gc / (double) K);
1530 1531 1532 1533
    gclog_or_tty->print_cr("  "
                           "   free_percentage: %6.2f",
                           free_percentage);
  }
1534
  if (capacity_after_gc < minimum_desired_capacity) {
1535 1536
    // Don't expand unless it's significant
    size_t expand_bytes = minimum_desired_capacity - capacity_after_gc;
1537 1538 1539 1540 1541 1542 1543 1544 1545 1546 1547
    if (expand(expand_bytes)) {
      if (PrintGC && Verbose) {
        gclog_or_tty->print_cr("  "
                               "  expanding:"
                               "  max_heap_size: %6.1fK"
                               "  minimum_desired_capacity: %6.1fK"
                               "  expand_bytes: %6.1fK",
                               (double) max_heap_size / (double) K,
                               (double) minimum_desired_capacity / (double) K,
                               (double) expand_bytes / (double) K);
      }
1548 1549 1550
    }

    // No expansion, now see if we want to shrink
1551
  } else if (capacity_after_gc > maximum_desired_capacity) {
1552 1553 1554 1555 1556 1557
    // Capacity too large, compute shrinking size
    size_t shrink_bytes = capacity_after_gc - maximum_desired_capacity;
    shrink(shrink_bytes);
    if (PrintGC && Verbose) {
      gclog_or_tty->print_cr("  "
                             "  shrinking:"
1558 1559 1560 1561 1562 1563
                             "  min_heap_size: %6.1fK"
                             "  maximum_desired_capacity: %6.1fK"
                             "  shrink_bytes: %6.1fK",
                             (double) min_heap_size / (double) K,
                             (double) maximum_desired_capacity / (double) K,
                             (double) shrink_bytes / (double) K);
1564 1565 1566 1567 1568 1569
    }
  }
}


HeapWord*
1570 1571
G1CollectedHeap::satisfy_failed_allocation(size_t word_size,
                                           bool* succeeded) {
1572
  assert_at_safepoint(true /* should_be_vm_thread */);
1573 1574 1575

  *succeeded = true;
  // Let's attempt the allocation first.
1576 1577 1578
  HeapWord* result =
    attempt_allocation_at_safepoint(word_size,
                                 false /* expect_null_mutator_alloc_region */);
1579 1580 1581 1582
  if (result != NULL) {
    assert(*succeeded, "sanity");
    return result;
  }
1583 1584 1585 1586 1587 1588 1589

  // In a G1 heap, we're supposed to keep allocation from failing by
  // incremental pauses.  Therefore, at least for now, we'll favor
  // expansion over collection.  (This might change in the future if we can
  // do something smarter than full collection to satisfy a failed alloc.)
  result = expand_and_allocate(word_size);
  if (result != NULL) {
1590
    assert(*succeeded, "sanity");
1591 1592 1593
    return result;
  }

1594 1595 1596 1597 1598 1599 1600 1601
  // Expansion didn't work, we'll try to do a Full GC.
  bool gc_succeeded = do_collection(false, /* explicit_gc */
                                    false, /* clear_all_soft_refs */
                                    word_size);
  if (!gc_succeeded) {
    *succeeded = false;
    return NULL;
  }
1602

1603 1604
  // Retry the allocation
  result = attempt_allocation_at_safepoint(word_size,
1605
                                  true /* expect_null_mutator_alloc_region */);
1606
  if (result != NULL) {
1607
    assert(*succeeded, "sanity");
1608 1609 1610
    return result;
  }

1611 1612 1613 1614 1615 1616 1617 1618 1619 1620 1621
  // Then, try a Full GC that will collect all soft references.
  gc_succeeded = do_collection(false, /* explicit_gc */
                               true,  /* clear_all_soft_refs */
                               word_size);
  if (!gc_succeeded) {
    *succeeded = false;
    return NULL;
  }

  // Retry the allocation once more
  result = attempt_allocation_at_safepoint(word_size,
1622
                                  true /* expect_null_mutator_alloc_region */);
1623
  if (result != NULL) {
1624
    assert(*succeeded, "sanity");
1625 1626 1627
    return result;
  }

1628
  assert(!collector_policy()->should_clear_all_soft_refs(),
1629
         "Flag should have been handled and cleared prior to this point");
1630

1631 1632 1633 1634
  // What else?  We might try synchronous finalization later.  If the total
  // space available is large enough for the allocation, then a more
  // complete compaction phase than we've tried so far might be
  // appropriate.
1635
  assert(*succeeded, "sanity");
1636 1637 1638 1639 1640 1641 1642 1643 1644
  return NULL;
}

// Attempting to expand the heap sufficiently
// to support an allocation of the given "word_size".  If
// successful, perform the allocation and return the address of the
// allocated block, or else "NULL".

HeapWord* G1CollectedHeap::expand_and_allocate(size_t word_size) {
1645 1646 1647
  assert_at_safepoint(true /* should_be_vm_thread */);

  verify_region_sets_optional();
1648

1649 1650
  size_t expand_bytes = MAX2(word_size * HeapWordSize, MinHeapDeltaBytes);
  if (expand(expand_bytes)) {
1651
    _hrs.verify_optional();
1652 1653
    verify_region_sets_optional();
    return attempt_allocation_at_safepoint(word_size,
1654
                                 false /* expect_null_mutator_alloc_region */);
1655
  }
1656
  return NULL;
1657 1658
}

1659 1660 1661 1662 1663 1664 1665 1666 1667 1668 1669 1670 1671
void G1CollectedHeap::update_committed_space(HeapWord* old_end,
                                             HeapWord* new_end) {
  assert(old_end != new_end, "don't call this otherwise");
  assert((HeapWord*) _g1_storage.high() == new_end, "invariant");

  // Update the committed mem region.
  _g1_committed.set_end(new_end);
  // Tell the card table about the update.
  Universe::heap()->barrier_set()->resize_covered_region(_g1_committed);
  // Tell the BOT about the update.
  _bot_shared->resize(_g1_committed.word_size());
}

1672
bool G1CollectedHeap::expand(size_t expand_bytes) {
1673
  size_t old_mem_size = _g1_storage.committed_size();
1674
  size_t aligned_expand_bytes = ReservedSpace::page_align_size_up(expand_bytes);
1675 1676
  aligned_expand_bytes = align_size_up(aligned_expand_bytes,
                                       HeapRegion::GrainBytes);
1677 1678 1679 1680 1681 1682

  if (Verbose && PrintGC) {
    gclog_or_tty->print("Expanding garbage-first heap from %ldK by %ldK",
                           old_mem_size/K, aligned_expand_bytes/K);
  }

1683 1684
  // First commit the memory.
  HeapWord* old_end = (HeapWord*) _g1_storage.high();
1685 1686
  bool successful = _g1_storage.expand_by(aligned_expand_bytes);
  if (successful) {
1687 1688 1689 1690 1691 1692 1693 1694 1695 1696 1697 1698 1699 1700 1701 1702 1703 1704 1705 1706 1707 1708 1709 1710 1711
    // Then propagate this update to the necessary data structures.
    HeapWord* new_end = (HeapWord*) _g1_storage.high();
    update_committed_space(old_end, new_end);

    FreeRegionList expansion_list("Local Expansion List");
    MemRegion mr = _hrs.expand_by(old_end, new_end, &expansion_list);
    assert(mr.start() == old_end, "post-condition");
    // mr might be a smaller region than what was requested if
    // expand_by() was unable to allocate the HeapRegion instances
    assert(mr.end() <= new_end, "post-condition");

    size_t actual_expand_bytes = mr.byte_size();
    assert(actual_expand_bytes <= aligned_expand_bytes, "post-condition");
    assert(actual_expand_bytes == expansion_list.total_capacity_bytes(),
           "post-condition");
    if (actual_expand_bytes < aligned_expand_bytes) {
      // We could not expand _hrs to the desired size. In this case we
      // need to shrink the committed space accordingly.
      assert(mr.end() < new_end, "invariant");

      size_t diff_bytes = aligned_expand_bytes - actual_expand_bytes;
      // First uncommit the memory.
      _g1_storage.shrink_by(diff_bytes);
      // Then propagate this update to the necessary data structures.
      update_committed_space(new_end, mr.end());
1712
    }
1713
    _free_list.add_as_tail(&expansion_list);
1714 1715 1716 1717 1718 1719 1720 1721 1722 1723

    if (_hr_printer.is_active()) {
      HeapWord* curr = mr.start();
      while (curr < mr.end()) {
        HeapWord* curr_end = curr + HeapRegion::GrainWords;
        _hr_printer.commit(curr, curr_end);
        curr = curr_end;
      }
      assert(curr == mr.end(), "post-condition");
    }
1724 1725 1726 1727 1728 1729 1730
  } else {
    // The expansion of the virtual storage space was unsuccessful.
    // Let's see if it was because we ran out of swap.
    if (G1ExitOnExpansionFailure &&
        _g1_storage.uncommitted_size() >= aligned_expand_bytes) {
      // We had head room...
      vm_exit_out_of_memory(aligned_expand_bytes, "G1 heap expansion");
1731 1732
    }
  }
1733

1734 1735
  if (Verbose && PrintGC) {
    size_t new_mem_size = _g1_storage.committed_size();
1736 1737
    gclog_or_tty->print_cr("...%s, expanded to %ldK",
                           (successful ? "Successful" : "Failed"),
1738 1739
                           new_mem_size/K);
  }
1740
  return successful;
1741 1742
}

1743
void G1CollectedHeap::shrink_helper(size_t shrink_bytes) {
1744 1745 1746 1747 1748 1749
  size_t old_mem_size = _g1_storage.committed_size();
  size_t aligned_shrink_bytes =
    ReservedSpace::page_align_size_down(shrink_bytes);
  aligned_shrink_bytes = align_size_down(aligned_shrink_bytes,
                                         HeapRegion::GrainBytes);
  size_t num_regions_deleted = 0;
1750 1751 1752 1753
  MemRegion mr = _hrs.shrink_by(aligned_shrink_bytes, &num_regions_deleted);
  HeapWord* old_end = (HeapWord*) _g1_storage.high();
  assert(mr.end() == old_end, "post-condition");
  if (mr.byte_size() > 0) {
1754 1755 1756 1757 1758 1759 1760 1761 1762 1763
    if (_hr_printer.is_active()) {
      HeapWord* curr = mr.end();
      while (curr > mr.start()) {
        HeapWord* curr_end = curr;
        curr -= HeapRegion::GrainWords;
        _hr_printer.uncommit(curr, curr_end);
      }
      assert(curr == mr.start(), "post-condition");
    }

1764
    _g1_storage.shrink_by(mr.byte_size());
1765 1766 1767 1768 1769 1770 1771 1772 1773 1774 1775 1776 1777
    HeapWord* new_end = (HeapWord*) _g1_storage.high();
    assert(mr.start() == new_end, "post-condition");

    _expansion_regions += num_regions_deleted;
    update_committed_space(old_end, new_end);
    HeapRegionRemSet::shrink_heap(n_regions());

    if (Verbose && PrintGC) {
      size_t new_mem_size = _g1_storage.committed_size();
      gclog_or_tty->print_cr("Shrinking garbage-first heap from %ldK by %ldK to %ldK",
                             old_mem_size/K, aligned_shrink_bytes/K,
                             new_mem_size/K);
    }
1778 1779 1780 1781
  }
}

void G1CollectedHeap::shrink(size_t shrink_bytes) {
1782 1783
  verify_region_sets_optional();

1784
  release_gc_alloc_regions(true /* totally */);
1785 1786 1787
  // Instead of tearing down / rebuilding the free lists here, we
  // could instead use the remove_all_pending() method on free_list to
  // remove only the ones that we need to remove.
1788 1789 1790
  tear_down_region_lists();  // We will rebuild them in a moment.
  shrink_helper(shrink_bytes);
  rebuild_region_lists();
1791

1792
  _hrs.verify_optional();
1793
  verify_region_sets_optional();
1794 1795 1796 1797 1798 1799 1800 1801 1802 1803 1804 1805
}

// Public methods.

#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


G1CollectedHeap::G1CollectedHeap(G1CollectorPolicy* policy_) :
  SharedHeap(policy_),
  _g1_policy(policy_),
1806
  _dirty_card_queue_set(false),
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1807
  _into_cset_dirty_card_queue_set(false),
1808
  _is_alive_closure(this),
1809 1810 1811 1812 1813 1814
  _ref_processor(NULL),
  _process_strong_tasks(new SubTasksDone(G1H_PS_NumElements)),
  _bot_shared(NULL),
  _objs_with_preserved_marks(NULL), _preserved_marks_of_objs(NULL),
  _evac_failure_scan_stack(NULL) ,
  _mark_in_progress(false),
1815
  _cg1r(NULL), _summary_bytes_used(0),
1816 1817
  _refine_cte_cl(NULL),
  _full_collection(false),
1818 1819 1820 1821
  _free_list("Master Free List"),
  _secondary_free_list("Secondary Free List"),
  _humongous_set("Master Humongous Set"),
  _free_regions_coming(false),
1822 1823
  _young_list(new YoungList(this)),
  _gc_time_stamp(0),
1824
  _surviving_young_words(NULL),
1825
  _full_collections_completed(0),
1826
  _in_cset_fast_test(NULL),
1827 1828
  _in_cset_fast_test_base(NULL),
  _dirty_cards_region_list(NULL) {
1829 1830 1831 1832
  _g1h = this; // To catch bugs.
  if (_process_strong_tasks == NULL || !_process_strong_tasks->valid()) {
    vm_exit_during_initialization("Failed necessary allocation.");
  }
1833 1834 1835

  _humongous_object_threshold_in_words = HeapRegion::GrainWords / 2;

1836 1837 1838 1839 1840 1841 1842 1843 1844 1845 1846 1847 1848 1849 1850 1851 1852 1853 1854 1855
  int n_queues = MAX2((int)ParallelGCThreads, 1);
  _task_queues = new RefToScanQueueSet(n_queues);

  int n_rem_sets = HeapRegionRemSet::num_par_rem_sets();
  assert(n_rem_sets > 0, "Invariant.");

  HeapRegionRemSetIterator** iter_arr =
    NEW_C_HEAP_ARRAY(HeapRegionRemSetIterator*, n_queues);
  for (int i = 0; i < n_queues; i++) {
    iter_arr[i] = new HeapRegionRemSetIterator();
  }
  _rem_set_iterator = iter_arr;

  for (int i = 0; i < n_queues; i++) {
    RefToScanQueue* q = new RefToScanQueue();
    q->initialize();
    _task_queues->register_queue(i, q);
  }

  for (int ap = 0; ap < GCAllocPurposeCount; ++ap) {
1856 1857 1858 1859 1860 1861
    _gc_alloc_regions[ap]          = NULL;
    _gc_alloc_region_counts[ap]    = 0;
    _retained_gc_alloc_regions[ap] = NULL;
    // by default, we do not retain a GC alloc region for each ap;
    // we'll override this, when appropriate, below
    _retain_gc_alloc_region[ap]    = false;
1862
  }
1863 1864 1865 1866 1867 1868

  // We will try to remember the last half-full tenured region we
  // allocated to at the end of a collection so that we can re-use it
  // during the next collection.
  _retain_gc_alloc_region[GCAllocForTenured]  = true;

1869 1870 1871 1872
  guarantee(_task_queues != NULL, "task_queues allocation failure.");
}

jint G1CollectedHeap::initialize() {
1873
  CollectedHeap::pre_initialize();
1874 1875 1876 1877 1878 1879
  os::enable_vtime();

  // Necessary to satisfy locking discipline assertions.

  MutexLocker x(Heap_lock);

1880 1881 1882 1883
  // We have to initialize the printer before committing the heap, as
  // it will be used then.
  _hr_printer.set_active(G1PrintHeapRegions);

1884 1885 1886 1887 1888 1889 1890 1891 1892 1893 1894 1895 1896 1897 1898 1899 1900 1901 1902
  // While there are no constraints in the GC code that HeapWordSize
  // be any particular value, there are multiple other areas in the
  // system which believe this to be true (e.g. oop->object_size in some
  // cases incorrectly returns the size in wordSize units rather than
  // HeapWordSize).
  guarantee(HeapWordSize == wordSize, "HeapWordSize must equal wordSize");

  size_t init_byte_size = collector_policy()->initial_heap_byte_size();
  size_t max_byte_size = collector_policy()->max_heap_byte_size();

  // Ensure that the sizes are properly aligned.
  Universe::check_alignment(init_byte_size, HeapRegion::GrainBytes, "g1 heap");
  Universe::check_alignment(max_byte_size, HeapRegion::GrainBytes, "g1 heap");

  _cg1r = new ConcurrentG1Refine();

  // Reserve the maximum.
  PermanentGenerationSpec* pgs = collector_policy()->permanent_generation();
  // Includes the perm-gen.
1903 1904 1905 1906

  const size_t total_reserved = max_byte_size + pgs->max_size();
  char* addr = Universe::preferred_heap_base(total_reserved, Universe::UnscaledNarrowOop);

1907 1908
  ReservedSpace heap_rs(max_byte_size + pgs->max_size(),
                        HeapRegion::GrainBytes,
1909
                        UseLargePages, addr);
1910 1911 1912 1913 1914 1915 1916 1917

  if (UseCompressedOops) {
    if (addr != NULL && !heap_rs.is_reserved()) {
      // Failed to reserve at specified address - the requested memory
      // region is taken already, for example, by 'java' launcher.
      // Try again to reserver heap higher.
      addr = Universe::preferred_heap_base(total_reserved, Universe::ZeroBasedNarrowOop);
      ReservedSpace heap_rs0(total_reserved, HeapRegion::GrainBytes,
1918
                             UseLargePages, addr);
1919 1920 1921 1922 1923
      if (addr != NULL && !heap_rs0.is_reserved()) {
        // Failed to reserve at specified address again - give up.
        addr = Universe::preferred_heap_base(total_reserved, Universe::HeapBasedNarrowOop);
        assert(addr == NULL, "");
        ReservedSpace heap_rs1(total_reserved, HeapRegion::GrainBytes,
1924
                               UseLargePages, addr);
1925 1926 1927 1928 1929 1930
        heap_rs = heap_rs1;
      } else {
        heap_rs = heap_rs0;
      }
    }
  }
1931 1932 1933 1934 1935 1936 1937 1938 1939 1940 1941 1942 1943 1944 1945 1946 1947 1948 1949 1950 1951 1952 1953 1954 1955 1956

  if (!heap_rs.is_reserved()) {
    vm_exit_during_initialization("Could not reserve enough space for object heap");
    return JNI_ENOMEM;
  }

  // It is important to do this in a way such that concurrent readers can't
  // temporarily think somethings in the heap.  (I've actually seen this
  // happen in asserts: DLD.)
  _reserved.set_word_size(0);
  _reserved.set_start((HeapWord*)heap_rs.base());
  _reserved.set_end((HeapWord*)(heap_rs.base() + heap_rs.size()));

  _expansion_regions = max_byte_size/HeapRegion::GrainBytes;

  // Create the gen rem set (and barrier set) for the entire reserved region.
  _rem_set = collector_policy()->create_rem_set(_reserved, 2);
  set_barrier_set(rem_set()->bs());
  if (barrier_set()->is_a(BarrierSet::ModRef)) {
    _mr_bs = (ModRefBarrierSet*)_barrier_set;
  } else {
    vm_exit_during_initialization("G1 requires a mod ref bs.");
    return JNI_ENOMEM;
  }

  // Also create a G1 rem set.
1957 1958
  if (mr_bs()->is_a(BarrierSet::CardTableModRef)) {
    _g1_rem_set = new G1RemSet(this, (CardTableModRefBS*)mr_bs());
1959
  } else {
1960 1961
    vm_exit_during_initialization("G1 requires a cardtable mod ref bs.");
    return JNI_ENOMEM;
1962 1963 1964 1965 1966 1967 1968 1969 1970 1971 1972 1973 1974
  }

  // Carve out the G1 part of the heap.

  ReservedSpace g1_rs   = heap_rs.first_part(max_byte_size);
  _g1_reserved = MemRegion((HeapWord*)g1_rs.base(),
                           g1_rs.size()/HeapWordSize);
  ReservedSpace perm_gen_rs = heap_rs.last_part(max_byte_size);

  _perm_gen = pgs->init(perm_gen_rs, pgs->init_size(), rem_set());

  _g1_storage.initialize(g1_rs, 0);
  _g1_committed = MemRegion((HeapWord*)_g1_storage.low(), (size_t) 0);
1975 1976 1977
  _hrs.initialize((HeapWord*) _g1_reserved.start(),
                  (HeapWord*) _g1_reserved.end(),
                  _expansion_regions);
1978

1979 1980 1981 1982 1983 1984
  // 6843694 - ensure that the maximum region index can fit
  // in the remembered set structures.
  const size_t max_region_idx = ((size_t)1 << (sizeof(RegionIdx_t)*BitsPerByte-1)) - 1;
  guarantee((max_regions() - 1) <= max_region_idx, "too many regions");

  size_t max_cards_per_region = ((size_t)1 << (sizeof(CardIdx_t)*BitsPerByte-1)) - 1;
1985 1986 1987
  guarantee(HeapRegion::CardsPerRegion > 0, "make sure it's initialized");
  guarantee((size_t) HeapRegion::CardsPerRegion < max_cards_per_region,
            "too many cards per region");
1988

1989 1990
  HeapRegionSet::set_unrealistically_long_length(max_regions() + 1);

1991 1992 1993 1994 1995
  _bot_shared = new G1BlockOffsetSharedArray(_reserved,
                                             heap_word_size(init_byte_size));

  _g1h = this;

1996 1997 1998 1999 2000 2001 2002 2003 2004 2005 2006 2007 2008 2009
   _in_cset_fast_test_length = max_regions();
   _in_cset_fast_test_base = NEW_C_HEAP_ARRAY(bool, _in_cset_fast_test_length);

   // We're biasing _in_cset_fast_test to avoid subtracting the
   // beginning of the heap every time we want to index; basically
   // it's the same with what we do with the card table.
   _in_cset_fast_test = _in_cset_fast_test_base -
                ((size_t) _g1_reserved.start() >> HeapRegion::LogOfHRGrainBytes);

   // Clear the _cset_fast_test bitmap in anticipation of adding
   // regions to the incremental collection set for the first
   // evacuation pause.
   clear_cset_fast_test();

2010 2011 2012 2013 2014 2015 2016 2017
  // Create the ConcurrentMark data structure and thread.
  // (Must do this late, so that "max_regions" is defined.)
  _cm       = new ConcurrentMark(heap_rs, (int) max_regions());
  _cmThread = _cm->cmThread();

  // Initialize the from_card cache structure of HeapRegionRemSet.
  HeapRegionRemSet::init_heap(max_regions());

2018
  // Now expand into the initial heap size.
2019 2020 2021 2022
  if (!expand(init_byte_size)) {
    vm_exit_during_initialization("Failed to allocate initial heap.");
    return JNI_ENOMEM;
  }
2023 2024 2025 2026 2027 2028 2029 2030 2031 2032 2033 2034 2035 2036

  // Perform any initialization actions delegated to the policy.
  g1_policy()->init();

  g1_policy()->note_start_of_mark_thread();

  _refine_cte_cl =
    new RefineCardTableEntryClosure(ConcurrentG1RefineThread::sts(),
                                    g1_rem_set(),
                                    concurrent_g1_refine());
  JavaThread::dirty_card_queue_set().set_closure(_refine_cte_cl);

  JavaThread::satb_mark_queue_set().initialize(SATB_Q_CBL_mon,
                                               SATB_Q_FL_lock,
2037
                                               G1SATBProcessCompletedThreshold,
2038
                                               Shared_SATB_Q_lock);
2039 2040 2041

  JavaThread::dirty_card_queue_set().initialize(DirtyCardQ_CBL_mon,
                                                DirtyCardQ_FL_lock,
2042 2043
                                                concurrent_g1_refine()->yellow_zone(),
                                                concurrent_g1_refine()->red_zone(),
2044 2045
                                                Shared_DirtyCardQ_lock);

2046 2047 2048
  if (G1DeferredRSUpdate) {
    dirty_card_queue_set().initialize(DirtyCardQ_CBL_mon,
                                      DirtyCardQ_FL_lock,
2049 2050
                                      -1, // never trigger processing
                                      -1, // no limit on length
2051 2052 2053
                                      Shared_DirtyCardQ_lock,
                                      &JavaThread::dirty_card_queue_set());
  }
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2054 2055 2056 2057 2058 2059 2060 2061 2062 2063

  // Initialize the card queue set used to hold cards containing
  // references into the collection set.
  _into_cset_dirty_card_queue_set.initialize(DirtyCardQ_CBL_mon,
                                             DirtyCardQ_FL_lock,
                                             -1, // never trigger processing
                                             -1, // no limit on length
                                             Shared_DirtyCardQ_lock,
                                             &JavaThread::dirty_card_queue_set());

2064 2065 2066 2067 2068 2069 2070 2071 2072
  // In case we're keeping closure specialization stats, initialize those
  // counts and that mechanism.
  SpecializationStats::clear();

  _gc_alloc_region_list = NULL;

  // Do later initialization work for concurrent refinement.
  _cg1r->init();

2073 2074 2075
  // Here we allocate the dummy full region that is required by the
  // G1AllocRegion class. If we don't pass an address in the reserved
  // space here, lots of asserts fire.
2076 2077 2078

  HeapRegion* dummy_region = new_heap_region(0 /* index of bottom region */,
                                             _g1_reserved.start());
2079 2080 2081 2082 2083 2084 2085 2086 2087 2088 2089
  // We'll re-use the same region whether the alloc region will
  // require BOT updates or not and, if it doesn't, then a non-young
  // region will complain that it cannot support allocations without
  // BOT updates. So we'll tag the dummy region as young to avoid that.
  dummy_region->set_young();
  // Make sure it's full.
  dummy_region->set_top(dummy_region->end());
  G1AllocRegion::setup(this, dummy_region);

  init_mutator_alloc_region();

2090 2091 2092 2093
  // Do create of the monitoring and management support so that
  // values in the heap have been properly initialized.
  _g1mm = new G1MonitoringSupport(this, &_g1_storage);

2094 2095 2096 2097
  return JNI_OK;
}

void G1CollectedHeap::ref_processing_init() {
2098 2099 2100 2101 2102 2103 2104 2105 2106 2107 2108 2109 2110 2111 2112 2113 2114 2115
  // Reference processing in G1 currently works as follows:
  //
  // * There is only one reference processor instance that
  //   'spans' the entire heap. It is created by the code
  //   below.
  // * Reference discovery is not enabled during an incremental
  //   pause (see 6484982).
  // * Discoverered refs are not enqueued nor are they processed
  //   during an incremental pause (see 6484982).
  // * Reference discovery is enabled at initial marking.
  // * Reference discovery is disabled and the discovered
  //   references processed etc during remarking.
  // * Reference discovery is MT (see below).
  // * Reference discovery requires a barrier (see below).
  // * Reference processing is currently not MT (see 6608385).
  // * A full GC enables (non-MT) reference discovery and
  //   processes any discovered references.

2116 2117
  SharedHeap::ref_processing_init();
  MemRegion mr = reserved_region();
2118 2119 2120 2121 2122 2123 2124 2125 2126 2127
  _ref_processor =
    new ReferenceProcessor(mr,    // span
                           ParallelRefProcEnabled && (ParallelGCThreads > 1),    // mt processing
                           (int) ParallelGCThreads,   // degree of mt processing
                           ParallelGCThreads > 1 || ConcGCThreads > 1,  // mt discovery
                           (int) MAX2(ParallelGCThreads, ConcGCThreads), // degree of mt discovery
                           false,                     // Reference discovery is not atomic
                           &_is_alive_closure,        // is alive closure for efficiency
                           true);                     // Setting next fields of discovered
                                                      // lists requires a barrier.
2128 2129 2130 2131 2132 2133
}

size_t G1CollectedHeap::capacity() const {
  return _g1_committed.byte_size();
}

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2134 2135 2136
void G1CollectedHeap::iterate_dirty_card_closure(CardTableEntryClosure* cl,
                                                 DirtyCardQueue* into_cset_dcq,
                                                 bool concurrent,
2137
                                                 int worker_i) {
2138
  // Clean cards in the hot card cache
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2139
  concurrent_g1_refine()->clean_up_cache(worker_i, g1_rem_set(), into_cset_dcq);
2140

2141 2142
  DirtyCardQueueSet& dcqs = JavaThread::dirty_card_queue_set();
  int n_completed_buffers = 0;
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2143
  while (dcqs.apply_closure_to_completed_buffer(cl, worker_i, 0, true)) {
2144 2145 2146 2147 2148 2149 2150 2151 2152 2153 2154 2155
    n_completed_buffers++;
  }
  g1_policy()->record_update_rs_processed_buffers(worker_i,
                                                  (double) n_completed_buffers);
  dcqs.clear_n_completed_buffers();
  assert(!dcqs.completed_buffers_exist_dirty(), "Completed buffers exist!");
}


// Computes the sum of the storage used by the various regions.

size_t G1CollectedHeap::used() const {
2156 2157
  assert(Heap_lock->owner() != NULL,
         "Should be owned on this thread's behalf.");
2158
  size_t result = _summary_bytes_used;
2159
  // Read only once in case it is set to NULL concurrently
2160
  HeapRegion* hr = _mutator_alloc_region.get();
2161 2162
  if (hr != NULL)
    result += hr->used();
2163 2164 2165
  return result;
}

2166 2167 2168 2169 2170
size_t G1CollectedHeap::used_unlocked() const {
  size_t result = _summary_bytes_used;
  return result;
}

2171 2172 2173 2174 2175 2176 2177 2178 2179 2180 2181 2182 2183 2184 2185
class SumUsedClosure: public HeapRegionClosure {
  size_t _used;
public:
  SumUsedClosure() : _used(0) {}
  bool doHeapRegion(HeapRegion* r) {
    if (!r->continuesHumongous()) {
      _used += r->used();
    }
    return false;
  }
  size_t result() { return _used; }
};

size_t G1CollectedHeap::recalculate_used() const {
  SumUsedClosure blk;
2186
  heap_region_iterate(&blk);
2187 2188 2189 2190 2191 2192 2193
  return blk.result();
}

#ifndef PRODUCT
class SumUsedRegionsClosure: public HeapRegionClosure {
  size_t _num;
public:
2194
  SumUsedRegionsClosure() : _num(0) {}
2195 2196 2197 2198 2199 2200 2201 2202 2203 2204 2205
  bool doHeapRegion(HeapRegion* r) {
    if (r->continuesHumongous() || r->used() > 0 || r->is_gc_alloc_region()) {
      _num += 1;
    }
    return false;
  }
  size_t result() { return _num; }
};

size_t G1CollectedHeap::recalculate_used_regions() const {
  SumUsedRegionsClosure blk;
2206
  heap_region_iterate(&blk);
2207 2208 2209 2210 2211
  return blk.result();
}
#endif // PRODUCT

size_t G1CollectedHeap::unsafe_max_alloc() {
2212
  if (free_regions() > 0) return HeapRegion::GrainBytes;
2213 2214 2215 2216 2217 2218 2219 2220 2221 2222
  // otherwise, is there space in the current allocation region?

  // We need to store the current allocation region in a local variable
  // here. The problem is that this method doesn't take any locks and
  // there may be other threads which overwrite the current allocation
  // region field. attempt_allocation(), for example, sets it to NULL
  // and this can happen *after* the NULL check here but before the call
  // to free(), resulting in a SIGSEGV. Note that this doesn't appear
  // to be a problem in the optimized build, since the two loads of the
  // current allocation region field are optimized away.
2223 2224
  HeapRegion* hr = _mutator_alloc_region.get();
  if (hr == NULL) {
2225 2226
    return 0;
  }
2227
  return hr->free();
2228 2229
}

2230 2231 2232 2233 2234 2235
bool G1CollectedHeap::should_do_concurrent_full_gc(GCCause::Cause cause) {
  return
    ((cause == GCCause::_gc_locker           && GCLockerInvokesConcurrent) ||
     (cause == GCCause::_java_lang_system_gc && ExplicitGCInvokesConcurrent));
}

2236 2237 2238 2239 2240 2241 2242 2243 2244 2245 2246 2247 2248 2249 2250 2251 2252 2253 2254 2255 2256 2257
#ifndef PRODUCT
void G1CollectedHeap::allocate_dummy_regions() {
  // Let's fill up most of the region
  size_t word_size = HeapRegion::GrainWords - 1024;
  // And as a result the region we'll allocate will be humongous.
  guarantee(isHumongous(word_size), "sanity");

  for (uintx i = 0; i < G1DummyRegionsPerGC; ++i) {
    // Let's use the existing mechanism for the allocation
    HeapWord* dummy_obj = humongous_obj_allocate(word_size);
    if (dummy_obj != NULL) {
      MemRegion mr(dummy_obj, word_size);
      CollectedHeap::fill_with_object(mr);
    } else {
      // If we can't allocate once, we probably cannot allocate
      // again. Let's get out of the loop.
      break;
    }
  }
}
#endif // !PRODUCT

2258
void G1CollectedHeap::increment_full_collections_completed(bool concurrent) {
2259 2260
  MonitorLockerEx x(FullGCCount_lock, Mutex::_no_safepoint_check_flag);

2261 2262 2263 2264 2265
  // We assume that if concurrent == true, then the caller is a
  // concurrent thread that was joined the Suspendible Thread
  // Set. If there's ever a cheap way to check this, we should add an
  // assert here.

2266 2267 2268 2269 2270 2271 2272 2273 2274 2275 2276 2277 2278
  // We have already incremented _total_full_collections at the start
  // of the GC, so total_full_collections() represents how many full
  // collections have been started.
  unsigned int full_collections_started = total_full_collections();

  // Given that this method is called at the end of a Full GC or of a
  // concurrent cycle, and those can be nested (i.e., a Full GC can
  // interrupt a concurrent cycle), the number of full collections
  // completed should be either one (in the case where there was no
  // nesting) or two (when a Full GC interrupted a concurrent cycle)
  // behind the number of full collections started.

  // This is the case for the inner caller, i.e. a Full GC.
2279
  assert(concurrent ||
2280 2281
         (full_collections_started == _full_collections_completed + 1) ||
         (full_collections_started == _full_collections_completed + 2),
2282
         err_msg("for inner caller (Full GC): full_collections_started = %u "
2283 2284 2285 2286
                 "is inconsistent with _full_collections_completed = %u",
                 full_collections_started, _full_collections_completed));

  // This is the case for the outer caller, i.e. the concurrent cycle.
2287
  assert(!concurrent ||
2288
         (full_collections_started == _full_collections_completed + 1),
2289 2290
         err_msg("for outer caller (concurrent cycle): "
                 "full_collections_started = %u "
2291 2292 2293 2294 2295
                 "is inconsistent with _full_collections_completed = %u",
                 full_collections_started, _full_collections_completed));

  _full_collections_completed += 1;

2296 2297 2298 2299
  // We need to clear the "in_progress" flag in the CM thread before
  // we wake up any waiters (especially when ExplicitInvokesConcurrent
  // is set) so that if a waiter requests another System.gc() it doesn't
  // incorrectly see that a marking cyle is still in progress.
2300
  if (concurrent) {
2301 2302 2303
    _cmThread->clear_in_progress();
  }

2304 2305 2306 2307 2308 2309 2310
  // This notify_all() will ensure that a thread that called
  // System.gc() with (with ExplicitGCInvokesConcurrent set or not)
  // and it's waiting for a full GC to finish will be woken up. It is
  // waiting in VM_G1IncCollectionPause::doit_epilogue().
  FullGCCount_lock->notify_all();
}

2311
void G1CollectedHeap::collect_as_vm_thread(GCCause::Cause cause) {
2312
  assert_at_safepoint(true /* should_be_vm_thread */);
2313 2314 2315 2316 2317 2318 2319 2320 2321 2322 2323 2324 2325
  GCCauseSetter gcs(this, cause);
  switch (cause) {
    case GCCause::_heap_inspection:
    case GCCause::_heap_dump: {
      HandleMark hm;
      do_full_collection(false);         // don't clear all soft refs
      break;
    }
    default: // XXX FIX ME
      ShouldNotReachHere(); // Unexpected use of this function
  }
}

2326 2327 2328
void G1CollectedHeap::collect(GCCause::Cause cause) {
  // The caller doesn't have the Heap_lock
  assert(!Heap_lock->owned_by_self(), "this thread should not own the Heap_lock");
2329

2330 2331
  unsigned int gc_count_before;
  unsigned int full_gc_count_before;
2332
  {
2333 2334
    MutexLocker ml(Heap_lock);

2335 2336 2337
    // Read the GC count while holding the Heap_lock
    gc_count_before = SharedHeap::heap()->total_collections();
    full_gc_count_before = SharedHeap::heap()->total_full_collections();
2338 2339 2340 2341
  }

  if (should_do_concurrent_full_gc(cause)) {
    // Schedule an initial-mark evacuation pause that will start a
2342 2343
    // concurrent cycle. We're setting word_size to 0 which means that
    // we are not requesting a post-GC allocation.
2344
    VM_G1IncCollectionPause op(gc_count_before,
2345 2346
                               0,     /* word_size */
                               true,  /* should_initiate_conc_mark */
2347 2348 2349 2350 2351 2352 2353
                               g1_policy()->max_pause_time_ms(),
                               cause);
    VMThread::execute(&op);
  } else {
    if (cause == GCCause::_gc_locker
        DEBUG_ONLY(|| cause == GCCause::_scavenge_alot)) {

2354 2355
      // Schedule a standard evacuation pause. We're setting word_size
      // to 0 which means that we are not requesting a post-GC allocation.
2356
      VM_G1IncCollectionPause op(gc_count_before,
2357
                                 0,     /* word_size */
2358 2359 2360
                                 false, /* should_initiate_conc_mark */
                                 g1_policy()->max_pause_time_ms(),
                                 cause);
2361
      VMThread::execute(&op);
2362 2363 2364
    } else {
      // Schedule a Full GC.
      VM_G1CollectFull op(gc_count_before, full_gc_count_before, cause);
2365 2366
      VMThread::execute(&op);
    }
2367 2368 2369 2370
  }
}

bool G1CollectedHeap::is_in(const void* p) const {
2371 2372
  HeapRegion* hr = _hrs.addr_to_region((HeapWord*) p);
  if (hr != NULL) {
2373 2374 2375 2376 2377 2378 2379 2380 2381 2382 2383 2384 2385 2386 2387 2388 2389 2390 2391 2392 2393 2394 2395 2396 2397
    return hr->is_in(p);
  } else {
    return _perm_gen->as_gen()->is_in(p);
  }
}

// Iteration functions.

// Iterates an OopClosure over all ref-containing fields of objects
// within a HeapRegion.

class IterateOopClosureRegionClosure: public HeapRegionClosure {
  MemRegion _mr;
  OopClosure* _cl;
public:
  IterateOopClosureRegionClosure(MemRegion mr, OopClosure* cl)
    : _mr(mr), _cl(cl) {}
  bool doHeapRegion(HeapRegion* r) {
    if (! r->continuesHumongous()) {
      r->oop_iterate(_cl);
    }
    return false;
  }
};

2398
void G1CollectedHeap::oop_iterate(OopClosure* cl, bool do_perm) {
2399
  IterateOopClosureRegionClosure blk(_g1_committed, cl);
2400
  heap_region_iterate(&blk);
2401 2402 2403
  if (do_perm) {
    perm_gen()->oop_iterate(cl);
  }
2404 2405
}

2406
void G1CollectedHeap::oop_iterate(MemRegion mr, OopClosure* cl, bool do_perm) {
2407
  IterateOopClosureRegionClosure blk(mr, cl);
2408
  heap_region_iterate(&blk);
2409 2410 2411
  if (do_perm) {
    perm_gen()->oop_iterate(cl);
  }
2412 2413 2414 2415 2416 2417 2418 2419 2420 2421 2422 2423 2424 2425 2426 2427
}

// Iterates an ObjectClosure over all objects within a HeapRegion.

class IterateObjectClosureRegionClosure: public HeapRegionClosure {
  ObjectClosure* _cl;
public:
  IterateObjectClosureRegionClosure(ObjectClosure* cl) : _cl(cl) {}
  bool doHeapRegion(HeapRegion* r) {
    if (! r->continuesHumongous()) {
      r->object_iterate(_cl);
    }
    return false;
  }
};

2428
void G1CollectedHeap::object_iterate(ObjectClosure* cl, bool do_perm) {
2429
  IterateObjectClosureRegionClosure blk(cl);
2430
  heap_region_iterate(&blk);
2431 2432 2433
  if (do_perm) {
    perm_gen()->object_iterate(cl);
  }
2434 2435 2436 2437 2438 2439 2440 2441 2442 2443 2444 2445 2446 2447 2448 2449 2450 2451 2452 2453 2454
}

void G1CollectedHeap::object_iterate_since_last_GC(ObjectClosure* cl) {
  // FIXME: is this right?
  guarantee(false, "object_iterate_since_last_GC not supported by G1 heap");
}

// Calls a SpaceClosure on a HeapRegion.

class SpaceClosureRegionClosure: public HeapRegionClosure {
  SpaceClosure* _cl;
public:
  SpaceClosureRegionClosure(SpaceClosure* cl) : _cl(cl) {}
  bool doHeapRegion(HeapRegion* r) {
    _cl->do_space(r);
    return false;
  }
};

void G1CollectedHeap::space_iterate(SpaceClosure* cl) {
  SpaceClosureRegionClosure blk(cl);
2455
  heap_region_iterate(&blk);
2456 2457
}

2458 2459
void G1CollectedHeap::heap_region_iterate(HeapRegionClosure* cl) const {
  _hrs.iterate(cl);
2460 2461 2462
}

void G1CollectedHeap::heap_region_iterate_from(HeapRegion* r,
2463 2464
                                               HeapRegionClosure* cl) const {
  _hrs.iterate_from(r, cl);
2465 2466 2467 2468 2469 2470
}

void
G1CollectedHeap::heap_region_par_iterate_chunked(HeapRegionClosure* cl,
                                                 int worker,
                                                 jint claim_value) {
2471
  const size_t regions = n_regions();
2472
  const size_t worker_num = (G1CollectedHeap::use_parallel_gc_threads() ? ParallelGCThreads : 1);
2473 2474 2475 2476 2477 2478 2479 2480 2481 2482 2483 2484 2485 2486 2487
  // try to spread out the starting points of the workers
  const size_t start_index = regions / worker_num * (size_t) worker;

  // each worker will actually look at all regions
  for (size_t count = 0; count < regions; ++count) {
    const size_t index = (start_index + count) % regions;
    assert(0 <= index && index < regions, "sanity");
    HeapRegion* r = region_at(index);
    // we'll ignore "continues humongous" regions (we'll process them
    // when we come across their corresponding "start humongous"
    // region) and regions already claimed
    if (r->claim_value() == claim_value || r->continuesHumongous()) {
      continue;
    }
    // OK, try to claim it
2488
    if (r->claimHeapRegion(claim_value)) {
2489 2490 2491 2492 2493 2494 2495 2496 2497 2498 2499 2500 2501 2502 2503 2504 2505 2506 2507 2508 2509 2510 2511 2512 2513 2514 2515 2516 2517 2518 2519 2520 2521 2522 2523 2524 2525 2526 2527 2528 2529 2530 2531
      // success!
      assert(!r->continuesHumongous(), "sanity");
      if (r->startsHumongous()) {
        // If the region is "starts humongous" we'll iterate over its
        // "continues humongous" first; in fact we'll do them
        // first. The order is important. In on case, calling the
        // closure on the "starts humongous" region might de-allocate
        // and clear all its "continues humongous" regions and, as a
        // result, we might end up processing them twice. So, we'll do
        // them first (notice: most closures will ignore them anyway) and
        // then we'll do the "starts humongous" region.
        for (size_t ch_index = index + 1; ch_index < regions; ++ch_index) {
          HeapRegion* chr = region_at(ch_index);

          // if the region has already been claimed or it's not
          // "continues humongous" we're done
          if (chr->claim_value() == claim_value ||
              !chr->continuesHumongous()) {
            break;
          }

          // Noone should have claimed it directly. We can given
          // that we claimed its "starts humongous" region.
          assert(chr->claim_value() != claim_value, "sanity");
          assert(chr->humongous_start_region() == r, "sanity");

          if (chr->claimHeapRegion(claim_value)) {
            // we should always be able to claim it; noone else should
            // be trying to claim this region

            bool res2 = cl->doHeapRegion(chr);
            assert(!res2, "Should not abort");

            // Right now, this holds (i.e., no closure that actually
            // does something with "continues humongous" regions
            // clears them). We might have to weaken it in the future,
            // but let's leave these two asserts here for extra safety.
            assert(chr->continuesHumongous(), "should still be the case");
            assert(chr->humongous_start_region() == r, "sanity");
          } else {
            guarantee(false, "we should not reach here");
          }
        }
2532
      }
2533 2534 2535 2536

      assert(!r->continuesHumongous(), "sanity");
      bool res = cl->doHeapRegion(r);
      assert(!res, "Should not abort");
2537 2538 2539 2540
    }
  }
}

2541 2542 2543 2544 2545 2546 2547 2548 2549 2550 2551 2552 2553 2554
class ResetClaimValuesClosure: public HeapRegionClosure {
public:
  bool doHeapRegion(HeapRegion* r) {
    r->set_claim_value(HeapRegion::InitialClaimValue);
    return false;
  }
};

void
G1CollectedHeap::reset_heap_region_claim_values() {
  ResetClaimValuesClosure blk;
  heap_region_iterate(&blk);
}

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 2599 2600 2601 2602 2603 2604
#ifdef ASSERT
// This checks whether all regions in the heap have the correct claim
// value. I also piggy-backed on this a check to ensure that the
// humongous_start_region() information on "continues humongous"
// regions is correct.

class CheckClaimValuesClosure : public HeapRegionClosure {
private:
  jint _claim_value;
  size_t _failures;
  HeapRegion* _sh_region;
public:
  CheckClaimValuesClosure(jint claim_value) :
    _claim_value(claim_value), _failures(0), _sh_region(NULL) { }
  bool doHeapRegion(HeapRegion* r) {
    if (r->claim_value() != _claim_value) {
      gclog_or_tty->print_cr("Region ["PTR_FORMAT","PTR_FORMAT"), "
                             "claim value = %d, should be %d",
                             r->bottom(), r->end(), r->claim_value(),
                             _claim_value);
      ++_failures;
    }
    if (!r->isHumongous()) {
      _sh_region = NULL;
    } else if (r->startsHumongous()) {
      _sh_region = r;
    } else if (r->continuesHumongous()) {
      if (r->humongous_start_region() != _sh_region) {
        gclog_or_tty->print_cr("Region ["PTR_FORMAT","PTR_FORMAT"), "
                               "HS = "PTR_FORMAT", should be "PTR_FORMAT,
                               r->bottom(), r->end(),
                               r->humongous_start_region(),
                               _sh_region);
        ++_failures;
      }
    }
    return false;
  }
  size_t failures() {
    return _failures;
  }
};

bool G1CollectedHeap::check_heap_region_claim_values(jint claim_value) {
  CheckClaimValuesClosure cl(claim_value);
  heap_region_iterate(&cl);
  return cl.failures() == 0;
}
#endif // ASSERT

2605 2606 2607 2608 2609 2610 2611 2612 2613 2614 2615 2616 2617 2618
void G1CollectedHeap::collection_set_iterate(HeapRegionClosure* cl) {
  HeapRegion* r = g1_policy()->collection_set();
  while (r != NULL) {
    HeapRegion* next = r->next_in_collection_set();
    if (cl->doHeapRegion(r)) {
      cl->incomplete();
      return;
    }
    r = next;
  }
}

void G1CollectedHeap::collection_set_iterate_from(HeapRegion* r,
                                                  HeapRegionClosure *cl) {
2619 2620 2621 2622 2623
  if (r == NULL) {
    // The CSet is empty so there's nothing to do.
    return;
  }

2624 2625 2626 2627 2628 2629 2630 2631 2632 2633 2634 2635 2636 2637 2638 2639 2640 2641 2642 2643 2644 2645 2646
  assert(r->in_collection_set(),
         "Start region must be a member of the collection set.");
  HeapRegion* cur = r;
  while (cur != NULL) {
    HeapRegion* next = cur->next_in_collection_set();
    if (cl->doHeapRegion(cur) && false) {
      cl->incomplete();
      return;
    }
    cur = next;
  }
  cur = g1_policy()->collection_set();
  while (cur != r) {
    HeapRegion* next = cur->next_in_collection_set();
    if (cl->doHeapRegion(cur) && false) {
      cl->incomplete();
      return;
    }
    cur = next;
  }
}

CompactibleSpace* G1CollectedHeap::first_compactible_space() {
2647
  return n_regions() > 0 ? region_at(0) : NULL;
2648 2649 2650 2651 2652 2653 2654 2655 2656 2657 2658 2659 2660 2661 2662 2663 2664 2665 2666 2667 2668 2669 2670 2671 2672 2673 2674 2675 2676 2677 2678 2679 2680 2681 2682 2683 2684 2685 2686 2687 2688
}


Space* G1CollectedHeap::space_containing(const void* addr) const {
  Space* res = heap_region_containing(addr);
  if (res == NULL)
    res = perm_gen()->space_containing(addr);
  return res;
}

HeapWord* G1CollectedHeap::block_start(const void* addr) const {
  Space* sp = space_containing(addr);
  if (sp != NULL) {
    return sp->block_start(addr);
  }
  return NULL;
}

size_t G1CollectedHeap::block_size(const HeapWord* addr) const {
  Space* sp = space_containing(addr);
  assert(sp != NULL, "block_size of address outside of heap");
  return sp->block_size(addr);
}

bool G1CollectedHeap::block_is_obj(const HeapWord* addr) const {
  Space* sp = space_containing(addr);
  return sp->block_is_obj(addr);
}

bool G1CollectedHeap::supports_tlab_allocation() const {
  return true;
}

size_t G1CollectedHeap::tlab_capacity(Thread* ignored) const {
  return HeapRegion::GrainBytes;
}

size_t G1CollectedHeap::unsafe_max_tlab_alloc(Thread* ignored) const {
  // Return the remaining space in the cur alloc region, but not less than
  // the min TLAB size.

2689 2690 2691 2692
  // Also, this value can be at most the humongous object threshold,
  // since we can't allow tlabs to grow big enough to accomodate
  // humongous objects.

2693
  HeapRegion* hr = _mutator_alloc_region.get();
2694
  size_t max_tlab_size = _humongous_object_threshold_in_words * wordSize;
2695
  if (hr == NULL) {
2696
    return max_tlab_size;
2697
  } else {
2698
    return MIN2(MAX2(hr->free(), (size_t) MinTLABSize), max_tlab_size);
2699 2700 2701 2702
  }
}

size_t G1CollectedHeap::max_capacity() const {
2703
  return _g1_reserved.byte_size();
2704 2705 2706 2707 2708 2709 2710 2711 2712 2713 2714 2715 2716 2717 2718
}

jlong G1CollectedHeap::millis_since_last_gc() {
  // assert(false, "NYI");
  return 0;
}

void G1CollectedHeap::prepare_for_verify() {
  if (SafepointSynchronize::is_at_safepoint() || ! UseTLAB) {
    ensure_parsability(false);
  }
  g1_rem_set()->prepare_for_verify();
}

class VerifyLivenessOopClosure: public OopClosure {
2719 2720
  G1CollectedHeap* _g1h;
  VerifyOption _vo;
2721
public:
2722 2723 2724
  VerifyLivenessOopClosure(G1CollectedHeap* g1h, VerifyOption vo):
    _g1h(g1h), _vo(vo)
  { }
2725 2726 2727 2728 2729
  void do_oop(narrowOop *p) { do_oop_work(p); }
  void do_oop(      oop *p) { do_oop_work(p); }

  template <class T> void do_oop_work(T *p) {
    oop obj = oopDesc::load_decode_heap_oop(p);
2730
    guarantee(obj == NULL || !_g1h->is_obj_dead_cond(obj, _vo),
2731
              "Dead object referenced by a not dead object");
2732 2733 2734 2735
  }
};

class VerifyObjsInRegionClosure: public ObjectClosure {
2736
private:
2737 2738 2739
  G1CollectedHeap* _g1h;
  size_t _live_bytes;
  HeapRegion *_hr;
2740
  VerifyOption _vo;
2741
public:
2742 2743 2744 2745 2746
  // _vo == UsePrevMarking -> use "prev" marking information,
  // _vo == UseNextMarking -> use "next" marking information,
  // _vo == UseMarkWord    -> use mark word from object header.
  VerifyObjsInRegionClosure(HeapRegion *hr, VerifyOption vo)
    : _live_bytes(0), _hr(hr), _vo(vo) {
2747 2748 2749
    _g1h = G1CollectedHeap::heap();
  }
  void do_object(oop o) {
2750
    VerifyLivenessOopClosure isLive(_g1h, _vo);
2751
    assert(o != NULL, "Huh?");
2752 2753 2754 2755 2756 2757 2758 2759 2760 2761 2762 2763
    if (!_g1h->is_obj_dead_cond(o, _vo)) {
      // If the object is alive according to the mark word,
      // then verify that the marking information agrees.
      // Note we can't verify the contra-positive of the
      // above: if the object is dead (according to the mark
      // word), it may not be marked, or may have been marked
      // but has since became dead, or may have been allocated
      // since the last marking.
      if (_vo == VerifyOption_G1UseMarkWord) {
        guarantee(!_g1h->is_obj_dead(o), "mark word and concurrent mark mismatch");
      }

2764
      o->oop_iterate(&isLive);
2765 2766 2767 2768
      if (!_hr->obj_allocated_since_prev_marking(o)) {
        size_t obj_size = o->size();    // Make sure we don't overflow
        _live_bytes += (obj_size * HeapWordSize);
      }
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 2800 2801 2802 2803
    }
  }
  size_t live_bytes() { return _live_bytes; }
};

class PrintObjsInRegionClosure : public ObjectClosure {
  HeapRegion *_hr;
  G1CollectedHeap *_g1;
public:
  PrintObjsInRegionClosure(HeapRegion *hr) : _hr(hr) {
    _g1 = G1CollectedHeap::heap();
  };

  void do_object(oop o) {
    if (o != NULL) {
      HeapWord *start = (HeapWord *) o;
      size_t word_sz = o->size();
      gclog_or_tty->print("\nPrinting obj "PTR_FORMAT" of size " SIZE_FORMAT
                          " isMarkedPrev %d isMarkedNext %d isAllocSince %d\n",
                          (void*) o, word_sz,
                          _g1->isMarkedPrev(o),
                          _g1->isMarkedNext(o),
                          _hr->obj_allocated_since_prev_marking(o));
      HeapWord *end = start + word_sz;
      HeapWord *cur;
      int *val;
      for (cur = start; cur < end; cur++) {
        val = (int *) cur;
        gclog_or_tty->print("\t "PTR_FORMAT":"PTR_FORMAT"\n", val, *val);
      }
    }
  }
};

class VerifyRegionClosure: public HeapRegionClosure {
2804
private:
2805 2806 2807 2808
  bool         _allow_dirty;
  bool         _par;
  VerifyOption _vo;
  bool         _failures;
2809
public:
2810 2811 2812 2813
  // _vo == UsePrevMarking -> use "prev" marking information,
  // _vo == UseNextMarking -> use "next" marking information,
  // _vo == UseMarkWord    -> use mark word from object header.
  VerifyRegionClosure(bool allow_dirty, bool par, VerifyOption vo)
2814 2815
    : _allow_dirty(allow_dirty),
      _par(par),
2816
      _vo(vo),
2817 2818 2819 2820 2821
      _failures(false) {}

  bool failures() {
    return _failures;
  }
2822

2823
  bool doHeapRegion(HeapRegion* r) {
2824 2825
    guarantee(_par || r->claim_value() == HeapRegion::InitialClaimValue,
              "Should be unclaimed at verify points.");
2826
    if (!r->continuesHumongous()) {
2827
      bool failures = false;
2828
      r->verify(_allow_dirty, _vo, &failures);
2829 2830 2831
      if (failures) {
        _failures = true;
      } else {
2832
        VerifyObjsInRegionClosure not_dead_yet_cl(r, _vo);
2833 2834 2835 2836 2837 2838 2839 2840 2841 2842 2843
        r->object_iterate(&not_dead_yet_cl);
        if (r->max_live_bytes() < not_dead_yet_cl.live_bytes()) {
          gclog_or_tty->print_cr("["PTR_FORMAT","PTR_FORMAT"] "
                                 "max_live_bytes "SIZE_FORMAT" "
                                 "< calculated "SIZE_FORMAT,
                                 r->bottom(), r->end(),
                                 r->max_live_bytes(),
                                 not_dead_yet_cl.live_bytes());
          _failures = true;
        }
      }
2844
    }
2845
    return false; // stop the region iteration if we hit a failure
2846 2847 2848 2849 2850 2851
  }
};

class VerifyRootsClosure: public OopsInGenClosure {
private:
  G1CollectedHeap* _g1h;
2852
  VerifyOption     _vo;
2853
  bool             _failures;
2854
public:
2855 2856 2857 2858
  // _vo == UsePrevMarking -> use "prev" marking information,
  // _vo == UseNextMarking -> use "next" marking information,
  // _vo == UseMarkWord    -> use mark word from object header.
  VerifyRootsClosure(VerifyOption vo) :
2859
    _g1h(G1CollectedHeap::heap()),
2860
    _vo(vo),
2861
    _failures(false) { }
2862 2863 2864

  bool failures() { return _failures; }

2865 2866 2867 2868
  template <class T> void do_oop_nv(T* p) {
    T heap_oop = oopDesc::load_heap_oop(p);
    if (!oopDesc::is_null(heap_oop)) {
      oop obj = oopDesc::decode_heap_oop_not_null(heap_oop);
2869
      if (_g1h->is_obj_dead_cond(obj, _vo)) {
2870
        gclog_or_tty->print_cr("Root location "PTR_FORMAT" "
2871
                              "points to dead obj "PTR_FORMAT, p, (void*) obj);
2872 2873 2874
        if (_vo == VerifyOption_G1UseMarkWord) {
          gclog_or_tty->print_cr("  Mark word: "PTR_FORMAT, (void*)(obj->mark()));
        }
2875 2876 2877 2878 2879
        obj->print_on(gclog_or_tty);
        _failures = true;
      }
    }
  }
2880 2881 2882

  void do_oop(oop* p)       { do_oop_nv(p); }
  void do_oop(narrowOop* p) { do_oop_nv(p); }
2883 2884
};

2885 2886 2887 2888 2889
// This is the task used for parallel heap verification.

class G1ParVerifyTask: public AbstractGangTask {
private:
  G1CollectedHeap* _g1h;
2890 2891 2892
  bool             _allow_dirty;
  VerifyOption     _vo;
  bool             _failures;
2893 2894

public:
2895 2896 2897 2898
  // _vo == UsePrevMarking -> use "prev" marking information,
  // _vo == UseNextMarking -> use "next" marking information,
  // _vo == UseMarkWord    -> use mark word from object header.
  G1ParVerifyTask(G1CollectedHeap* g1h, bool allow_dirty, VerifyOption vo) :
2899
    AbstractGangTask("Parallel verify task"),
2900 2901
    _g1h(g1h),
    _allow_dirty(allow_dirty),
2902
    _vo(vo),
2903 2904 2905 2906 2907
    _failures(false) { }

  bool failures() {
    return _failures;
  }
2908 2909

  void work(int worker_i) {
2910
    HandleMark hm;
2911
    VerifyRegionClosure blk(_allow_dirty, true, _vo);
2912 2913
    _g1h->heap_region_par_iterate_chunked(&blk, worker_i,
                                          HeapRegion::ParVerifyClaimValue);
2914 2915 2916
    if (blk.failures()) {
      _failures = true;
    }
2917 2918 2919
  }
};

2920
void G1CollectedHeap::verify(bool allow_dirty, bool silent) {
2921
  verify(allow_dirty, silent, VerifyOption_G1UsePrevMarking);
2922 2923 2924 2925
}

void G1CollectedHeap::verify(bool allow_dirty,
                             bool silent,
2926
                             VerifyOption vo) {
2927
  if (SafepointSynchronize::is_at_safepoint() || ! UseTLAB) {
2928
    if (!silent) { gclog_or_tty->print("Roots (excluding permgen) "); }
2929
    VerifyRootsClosure rootsCl(vo);
2930
    CodeBlobToOopClosure blobsCl(&rootsCl, /*do_marking=*/ false);
2931

2932 2933 2934
    // We apply the relevant closures to all the oops in the
    // system dictionary, the string table and the code cache.
    const int so = SharedHeap::SO_AllClasses | SharedHeap::SO_Strings | SharedHeap::SO_CodeCache;
2935

2936 2937 2938 2939
    process_strong_roots(true,      // activate StrongRootsScope
                         true,      // we set "collecting perm gen" to true,
                                    // so we don't reset the dirty cards in the perm gen.
                         SharedHeap::ScanningOption(so),  // roots scanning options
2940
                         &rootsCl,
2941
                         &blobsCl,
2942
                         &rootsCl);
2943 2944 2945 2946 2947 2948 2949 2950 2951 2952 2953 2954 2955 2956

    // If we're verifying after the marking phase of a Full GC then we can't
    // treat the perm gen as roots into the G1 heap. Some of the objects in
    // the perm gen may be dead and hence not marked. If one of these dead
    // objects is considered to be a root then we may end up with a false
    // "Root location <x> points to dead ob <y>" failure.
    if (vo != VerifyOption_G1UseMarkWord) {
      // Since we used "collecting_perm_gen" == true above, we will not have
      // checked the refs from perm into the G1-collected heap. We check those
      // references explicitly below. Whether the relevant cards are dirty
      // is checked further below in the rem set verification.
      if (!silent) { gclog_or_tty->print("Permgen roots "); }
      perm_gen()->oop_iterate(&rootsCl);
    }
2957
    bool failures = rootsCl.failures();
2958 2959 2960 2961 2962 2963 2964 2965 2966 2967

    if (vo != VerifyOption_G1UseMarkWord) {
      // If we're verifying during a full GC then the region sets
      // will have been torn down at the start of the GC. Therefore
      // verifying the region sets will fail. So we only verify
      // the region sets when not in a full GC.
      if (!silent) { gclog_or_tty->print("HeapRegionSets "); }
      verify_region_sets();
    }

2968
    if (!silent) { gclog_or_tty->print("HeapRegions "); }
2969 2970 2971 2972
    if (GCParallelVerificationEnabled && ParallelGCThreads > 1) {
      assert(check_heap_region_claim_values(HeapRegion::InitialClaimValue),
             "sanity check");

2973
      G1ParVerifyTask task(this, allow_dirty, vo);
2974 2975 2976 2977
      int n_workers = workers()->total_workers();
      set_par_threads(n_workers);
      workers()->run_task(&task);
      set_par_threads(0);
2978 2979 2980
      if (task.failures()) {
        failures = true;
      }
2981 2982 2983 2984 2985 2986 2987 2988 2989

      assert(check_heap_region_claim_values(HeapRegion::ParVerifyClaimValue),
             "sanity check");

      reset_heap_region_claim_values();

      assert(check_heap_region_claim_values(HeapRegion::InitialClaimValue),
             "sanity check");
    } else {
2990
      VerifyRegionClosure blk(allow_dirty, false, vo);
2991
      heap_region_iterate(&blk);
2992 2993 2994
      if (blk.failures()) {
        failures = true;
      }
2995
    }
2996
    if (!silent) gclog_or_tty->print("RemSet ");
2997
    rem_set()->verify();
2998 2999 3000 3001 3002

    if (failures) {
      gclog_or_tty->print_cr("Heap:");
      print_on(gclog_or_tty, true /* extended */);
      gclog_or_tty->print_cr("");
3003
#ifndef PRODUCT
3004
      if (VerifyDuringGC && G1VerifyDuringGCPrintReachable) {
3005
        concurrent_mark()->print_reachable("at-verification-failure",
3006
                                           vo, false /* all */);
3007
      }
3008
#endif
3009 3010 3011
      gclog_or_tty->flush();
    }
    guarantee(!failures, "there should not have been any failures");
3012 3013 3014 3015 3016 3017 3018 3019 3020 3021 3022 3023 3024 3025 3026
  } else {
    if (!silent) gclog_or_tty->print("(SKIPPING roots, heapRegions, remset) ");
  }
}

class PrintRegionClosure: public HeapRegionClosure {
  outputStream* _st;
public:
  PrintRegionClosure(outputStream* st) : _st(st) {}
  bool doHeapRegion(HeapRegion* r) {
    r->print_on(_st);
    return false;
  }
};

3027
void G1CollectedHeap::print() const { print_on(tty); }
3028 3029

void G1CollectedHeap::print_on(outputStream* st) const {
3030 3031 3032 3033 3034 3035
  print_on(st, PrintHeapAtGCExtended);
}

void G1CollectedHeap::print_on(outputStream* st, bool extended) const {
  st->print(" %-20s", "garbage-first heap");
  st->print(" total " SIZE_FORMAT "K, used " SIZE_FORMAT "K",
3036
            capacity()/K, used_unlocked()/K);
3037 3038 3039 3040 3041 3042 3043 3044 3045 3046 3047 3048 3049 3050 3051 3052
  st->print(" [" INTPTR_FORMAT ", " INTPTR_FORMAT ", " INTPTR_FORMAT ")",
            _g1_storage.low_boundary(),
            _g1_storage.high(),
            _g1_storage.high_boundary());
  st->cr();
  st->print("  region size " SIZE_FORMAT "K, ",
            HeapRegion::GrainBytes/K);
  size_t young_regions = _young_list->length();
  st->print(SIZE_FORMAT " young (" SIZE_FORMAT "K), ",
            young_regions, young_regions * HeapRegion::GrainBytes / K);
  size_t survivor_regions = g1_policy()->recorded_survivor_regions();
  st->print(SIZE_FORMAT " survivors (" SIZE_FORMAT "K)",
            survivor_regions, survivor_regions * HeapRegion::GrainBytes / K);
  st->cr();
  perm()->as_gen()->print_on(st);
  if (extended) {
3053
    st->cr();
3054 3055 3056 3057 3058
    print_on_extended(st);
  }
}

void G1CollectedHeap::print_on_extended(outputStream* st) const {
3059
  PrintRegionClosure blk(st);
3060
  heap_region_iterate(&blk);
3061 3062 3063
}

void G1CollectedHeap::print_gc_threads_on(outputStream* st) const {
3064
  if (G1CollectedHeap::use_parallel_gc_threads()) {
T
tonyp 已提交
3065
    workers()->print_worker_threads_on(st);
3066
  }
T
tonyp 已提交
3067
  _cmThread->print_on(st);
3068
  st->cr();
T
tonyp 已提交
3069 3070
  _cm->print_worker_threads_on(st);
  _cg1r->print_worker_threads_on(st);
3071 3072 3073 3074
  st->cr();
}

void G1CollectedHeap::gc_threads_do(ThreadClosure* tc) const {
3075
  if (G1CollectedHeap::use_parallel_gc_threads()) {
3076 3077 3078
    workers()->threads_do(tc);
  }
  tc->do_thread(_cmThread);
3079
  _cg1r->threads_do(tc);
3080 3081 3082 3083 3084 3085 3086 3087 3088
}

void G1CollectedHeap::print_tracing_info() const {
  // We'll overload this to mean "trace GC pause statistics."
  if (TraceGen0Time || TraceGen1Time) {
    // The "G1CollectorPolicy" is keeping track of these stats, so delegate
    // to that.
    g1_policy()->print_tracing_info();
  }
J
johnc 已提交
3089
  if (G1SummarizeRSetStats) {
3090 3091
    g1_rem_set()->print_summary_info();
  }
3092
  if (G1SummarizeConcMark) {
3093 3094 3095 3096 3097 3098
    concurrent_mark()->print_summary_info();
  }
  g1_policy()->print_yg_surv_rate_info();
  SpecializationStats::print();
}

3099 3100 3101 3102 3103 3104 3105 3106 3107 3108 3109 3110 3111 3112 3113 3114 3115 3116 3117 3118 3119 3120 3121 3122 3123 3124 3125 3126 3127 3128 3129 3130 3131 3132 3133 3134 3135 3136 3137 3138 3139 3140 3141 3142 3143 3144 3145 3146 3147 3148
#ifndef PRODUCT
// Helpful for debugging RSet issues.

class PrintRSetsClosure : public HeapRegionClosure {
private:
  const char* _msg;
  size_t _occupied_sum;

public:
  bool doHeapRegion(HeapRegion* r) {
    HeapRegionRemSet* hrrs = r->rem_set();
    size_t occupied = hrrs->occupied();
    _occupied_sum += occupied;

    gclog_or_tty->print_cr("Printing RSet for region "HR_FORMAT,
                           HR_FORMAT_PARAMS(r));
    if (occupied == 0) {
      gclog_or_tty->print_cr("  RSet is empty");
    } else {
      hrrs->print();
    }
    gclog_or_tty->print_cr("----------");
    return false;
  }

  PrintRSetsClosure(const char* msg) : _msg(msg), _occupied_sum(0) {
    gclog_or_tty->cr();
    gclog_or_tty->print_cr("========================================");
    gclog_or_tty->print_cr(msg);
    gclog_or_tty->cr();
  }

  ~PrintRSetsClosure() {
    gclog_or_tty->print_cr("Occupied Sum: "SIZE_FORMAT, _occupied_sum);
    gclog_or_tty->print_cr("========================================");
    gclog_or_tty->cr();
  }
};

void G1CollectedHeap::print_cset_rsets() {
  PrintRSetsClosure cl("Printing CSet RSets");
  collection_set_iterate(&cl);
}

void G1CollectedHeap::print_all_rsets() {
  PrintRSetsClosure cl("Printing All RSets");;
  heap_region_iterate(&cl);
}
#endif // PRODUCT

3149 3150 3151 3152 3153 3154 3155
G1CollectedHeap* G1CollectedHeap::heap() {
  assert(_sh->kind() == CollectedHeap::G1CollectedHeap,
         "not a garbage-first heap");
  return _g1h;
}

void G1CollectedHeap::gc_prologue(bool full /* Ignored */) {
3156
  // always_do_update_barrier = false;
3157 3158 3159 3160 3161 3162 3163 3164 3165 3166 3167 3168 3169
  assert(InlineCacheBuffer::is_empty(), "should have cleaned up ICBuffer");
  // Call allocation profiler
  AllocationProfiler::iterate_since_last_gc();
  // Fill TLAB's and such
  ensure_parsability(true);
}

void G1CollectedHeap::gc_epilogue(bool full /* Ignored */) {
  // FIXME: what is this about?
  // I'm ignoring the "fill_newgen()" call if "alloc_event_enabled"
  // is set.
  COMPILER2_PRESENT(assert(DerivedPointerTable::is_empty(),
                        "derived pointer present"));
3170
  // always_do_update_barrier = true;
3171 3172
}

3173 3174 3175 3176
HeapWord* G1CollectedHeap::do_collection_pause(size_t word_size,
                                               unsigned int gc_count_before,
                                               bool* succeeded) {
  assert_heap_not_locked_and_not_at_safepoint();
3177
  g1_policy()->record_stop_world_start();
3178 3179 3180 3181 3182 3183 3184 3185 3186 3187 3188 3189 3190 3191 3192
  VM_G1IncCollectionPause op(gc_count_before,
                             word_size,
                             false, /* should_initiate_conc_mark */
                             g1_policy()->max_pause_time_ms(),
                             GCCause::_g1_inc_collection_pause);
  VMThread::execute(&op);

  HeapWord* result = op.result();
  bool ret_succeeded = op.prologue_succeeded() && op.pause_succeeded();
  assert(result == NULL || ret_succeeded,
         "the result should be NULL if the VM did not succeed");
  *succeeded = ret_succeeded;

  assert_heap_not_locked();
  return result;
3193 3194 3195 3196
}

void
G1CollectedHeap::doConcurrentMark() {
3197 3198 3199 3200
  MutexLockerEx x(CGC_lock, Mutex::_no_safepoint_check_flag);
  if (!_cmThread->in_progress()) {
    _cmThread->set_started();
    CGC_lock->notify();
3201 3202 3203 3204 3205 3206 3207 3208 3209 3210 3211 3212 3213 3214 3215 3216 3217 3218 3219 3220 3221 3222 3223 3224 3225 3226 3227 3228 3229 3230 3231 3232 3233 3234 3235 3236 3237 3238 3239 3240 3241 3242 3243 3244
  }
}

void G1CollectedHeap::do_sync_mark() {
  _cm->checkpointRootsInitial();
  _cm->markFromRoots();
  _cm->checkpointRootsFinal(false);
}

// <NEW PREDICTION>

double G1CollectedHeap::predict_region_elapsed_time_ms(HeapRegion *hr,
                                                       bool young) {
  return _g1_policy->predict_region_elapsed_time_ms(hr, young);
}

void G1CollectedHeap::check_if_region_is_too_expensive(double
                                                           predicted_time_ms) {
  _g1_policy->check_if_region_is_too_expensive(predicted_time_ms);
}

size_t G1CollectedHeap::pending_card_num() {
  size_t extra_cards = 0;
  JavaThread *curr = Threads::first();
  while (curr != NULL) {
    DirtyCardQueue& dcq = curr->dirty_card_queue();
    extra_cards += dcq.size();
    curr = curr->next();
  }
  DirtyCardQueueSet& dcqs = JavaThread::dirty_card_queue_set();
  size_t buffer_size = dcqs.buffer_size();
  size_t buffer_num = dcqs.completed_buffers_num();
  return buffer_size * buffer_num + extra_cards;
}

size_t G1CollectedHeap::max_pending_card_num() {
  DirtyCardQueueSet& dcqs = JavaThread::dirty_card_queue_set();
  size_t buffer_size = dcqs.buffer_size();
  size_t buffer_num  = dcqs.completed_buffers_num();
  int thread_num  = Threads::number_of_threads();
  return (buffer_num + thread_num) * buffer_size;
}

size_t G1CollectedHeap::cards_scanned() {
3245
  return g1_rem_set()->cardsScanned();
3246 3247 3248 3249 3250 3251 3252 3253 3254 3255 3256 3257
}

void
G1CollectedHeap::setup_surviving_young_words() {
  guarantee( _surviving_young_words == NULL, "pre-condition" );
  size_t array_length = g1_policy()->young_cset_length();
  _surviving_young_words = NEW_C_HEAP_ARRAY(size_t, array_length);
  if (_surviving_young_words == NULL) {
    vm_exit_out_of_memory(sizeof(size_t) * array_length,
                          "Not enough space for young surv words summary.");
  }
  memset(_surviving_young_words, 0, array_length * sizeof(size_t));
3258
#ifdef ASSERT
3259
  for (size_t i = 0;  i < array_length; ++i) {
3260
    assert( _surviving_young_words[i] == 0, "memset above" );
3261
  }
3262
#endif // !ASSERT
3263 3264 3265 3266 3267 3268 3269 3270 3271 3272 3273 3274 3275 3276 3277 3278 3279 3280 3281
}

void
G1CollectedHeap::update_surviving_young_words(size_t* surv_young_words) {
  MutexLockerEx x(ParGCRareEvent_lock, Mutex::_no_safepoint_check_flag);
  size_t array_length = g1_policy()->young_cset_length();
  for (size_t i = 0; i < array_length; ++i)
    _surviving_young_words[i] += surv_young_words[i];
}

void
G1CollectedHeap::cleanup_surviving_young_words() {
  guarantee( _surviving_young_words != NULL, "pre-condition" );
  FREE_C_HEAP_ARRAY(size_t, _surviving_young_words);
  _surviving_young_words = NULL;
}

// </NEW PREDICTION>

3282 3283 3284 3285 3286 3287 3288 3289 3290 3291 3292 3293 3294 3295 3296 3297 3298
#ifdef ASSERT
class VerifyCSetClosure: public HeapRegionClosure {
public:
  bool doHeapRegion(HeapRegion* hr) {
    // Here we check that the CSet region's RSet is ready for parallel
    // iteration. The fields that we'll verify are only manipulated
    // when the region is part of a CSet and is collected. Afterwards,
    // we reset these fields when we clear the region's RSet (when the
    // region is freed) so they are ready when the region is
    // re-allocated. The only exception to this is if there's an
    // evacuation failure and instead of freeing the region we leave
    // it in the heap. In that case, we reset these fields during
    // evacuation failure handling.
    guarantee(hr->rem_set()->verify_ready_for_par_iteration(), "verification");

    // Here's a good place to add any other checks we'd like to
    // perform on CSet regions.
3299 3300 3301
    return false;
  }
};
3302
#endif // ASSERT
3303

3304 3305 3306 3307 3308 3309 3310 3311 3312 3313 3314
#if TASKQUEUE_STATS
void G1CollectedHeap::print_taskqueue_stats_hdr(outputStream* const st) {
  st->print_raw_cr("GC Task Stats");
  st->print_raw("thr "); TaskQueueStats::print_header(1, st); st->cr();
  st->print_raw("--- "); TaskQueueStats::print_header(2, st); st->cr();
}

void G1CollectedHeap::print_taskqueue_stats(outputStream* const st) const {
  print_taskqueue_stats_hdr(st);

  TaskQueueStats totals;
3315
  const int n = workers() != NULL ? workers()->total_workers() : 1;
3316 3317 3318 3319 3320 3321 3322 3323 3324 3325
  for (int i = 0; i < n; ++i) {
    st->print("%3d ", i); task_queue(i)->stats.print(st); st->cr();
    totals += task_queue(i)->stats;
  }
  st->print_raw("tot "); totals.print(st); st->cr();

  DEBUG_ONLY(totals.verify());
}

void G1CollectedHeap::reset_taskqueue_stats() {
3326
  const int n = workers() != NULL ? workers()->total_workers() : 1;
3327 3328 3329 3330 3331 3332
  for (int i = 0; i < n; ++i) {
    task_queue(i)->stats.reset();
  }
}
#endif // TASKQUEUE_STATS

3333
bool
3334
G1CollectedHeap::do_collection_pause_at_safepoint(double target_pause_time_ms) {
3335 3336 3337
  assert_at_safepoint(true /* should_be_vm_thread */);
  guarantee(!is_gc_active(), "collection is not reentrant");

3338
  if (GC_locker::check_active_before_gc()) {
3339
    return false;
3340 3341
  }

3342
  SvcGCMarker sgcm(SvcGCMarker::MINOR);
3343 3344
  ResourceMark rm;

3345 3346
  if (PrintHeapAtGC) {
    Universe::print_heap_before_gc();
3347 3348
  }

3349
  verify_region_sets_optional();
3350
  verify_dirty_young_regions();
3351

3352
  {
3353 3354 3355 3356 3357
    // This call will decide whether this pause is an initial-mark
    // pause. If it is, during_initial_mark_pause() will return true
    // for the duration of this pause.
    g1_policy()->decide_on_conc_mark_initiation();

3358 3359 3360 3361 3362 3363 3364 3365
    char verbose_str[128];
    sprintf(verbose_str, "GC pause ");
    if (g1_policy()->in_young_gc_mode()) {
      if (g1_policy()->full_young_gcs())
        strcat(verbose_str, "(young)");
      else
        strcat(verbose_str, "(partial)");
    }
3366
    if (g1_policy()->during_initial_mark_pause()) {
3367
      strcat(verbose_str, " (initial-mark)");
3368 3369 3370 3371
      // We are about to start a marking cycle, so we increment the
      // full collection counter.
      increment_total_full_collections();
    }
3372

3373 3374 3375 3376 3377 3378
    // if PrintGCDetails is on, we'll print long statistics information
    // in the collector policy code, so let's not print this as the output
    // is messy if we do.
    gclog_or_tty->date_stamp(PrintGC && PrintGCDateStamps);
    TraceCPUTime tcpu(PrintGCDetails, true, gclog_or_tty);
    TraceTime t(verbose_str, PrintGC && !PrintGCDetails, true, gclog_or_tty);
3379

3380
    TraceCollectorStats tcs(g1mm()->incremental_collection_counters());
3381
    TraceMemoryManagerStats tms(false /* fullGC */, gc_cause());
3382

T
tonyp 已提交
3383 3384 3385 3386 3387 3388
    // If the secondary_free_list is not empty, append it to the
    // free_list. No need to wait for the cleanup operation to finish;
    // the region allocation code will check the secondary_free_list
    // and wait if necessary. If the G1StressConcRegionFreeing flag is
    // set, skip this step so that the region allocation code has to
    // get entries from the secondary_free_list.
3389
    if (!G1StressConcRegionFreeing) {
T
tonyp 已提交
3390
      append_secondary_free_list_if_not_empty_with_lock();
3391
    }
3392

3393
    increment_gc_time_stamp();
3394

3395 3396 3397 3398
    if (g1_policy()->in_young_gc_mode()) {
      assert(check_young_list_well_formed(),
             "young list should be well formed");
    }
3399

3400 3401 3402 3403 3404
    { // Call to jvmpi::post_class_unload_events must occur outside of active GC
      IsGCActiveMark x;

      gc_prologue(false);
      increment_total_collections(false /* full gc */);
3405

3406 3407 3408
      if (VerifyBeforeGC && total_collections() >= VerifyGCStartAt) {
        HandleMark hm;  // Discard invalid handles created during verification
        gclog_or_tty->print(" VerifyBeforeGC:");
3409
        prepare_for_verify();
3410 3411 3412 3413
        Universe::verify(/* allow dirty */ false,
                         /* silent      */ false,
                         /* option      */ VerifyOption_G1UsePrevMarking);

3414
      }
3415

3416
      COMPILER2_PRESENT(DerivedPointerTable::clear());
3417

3418 3419 3420
      // Please see comment in G1CollectedHeap::ref_processing_init()
      // to see how reference processing currently works in G1.
      //
3421
      // We want to turn off ref discovery, if necessary, and turn it back on
3422
      // on again later if we do. XXX Dubious: why is discovery disabled?
3423 3424
      bool was_enabled = ref_processor()->discovery_enabled();
      if (was_enabled) ref_processor()->disable_discovery();
3425

3426 3427
      // Forget the current alloc region (we might even choose it to be part
      // of the collection set!).
3428
      release_mutator_alloc_region();
3429

3430 3431 3432 3433 3434
      // We should call this after we retire the mutator alloc
      // region(s) so that all the ALLOC / RETIRE events are generated
      // before the start GC event.
      _hr_printer.start_gc(false /* full */, (size_t) total_collections());

3435 3436 3437 3438
      // The elapsed time induced by the start time below deliberately elides
      // the possible verification above.
      double start_time_sec = os::elapsedTime();
      size_t start_used_bytes = used();
3439

3440 3441 3442 3443 3444 3445
#if YOUNG_LIST_VERBOSE
      gclog_or_tty->print_cr("\nBefore recording pause start.\nYoung_list:");
      _young_list->print();
      g1_policy()->print_collection_set(g1_policy()->inc_cset_head(), gclog_or_tty);
#endif // YOUNG_LIST_VERBOSE

3446 3447
      g1_policy()->record_collection_pause_start(start_time_sec,
                                                 start_used_bytes);
3448

3449 3450
#if YOUNG_LIST_VERBOSE
      gclog_or_tty->print_cr("\nAfter recording pause start.\nYoung_list:");
3451
      _young_list->print();
3452
#endif // YOUNG_LIST_VERBOSE
3453

3454
      if (g1_policy()->during_initial_mark_pause()) {
3455 3456 3457
        concurrent_mark()->checkpointRootsInitialPre();
      }
      save_marks();
3458

3459 3460 3461 3462
      // We must do this before any possible evacuation that should propagate
      // marks.
      if (mark_in_progress()) {
        double start_time_sec = os::elapsedTime();
3463

3464 3465 3466 3467 3468 3469 3470 3471 3472
        _cm->drainAllSATBBuffers();
        double finish_mark_ms = (os::elapsedTime() - start_time_sec) * 1000.0;
        g1_policy()->record_satb_drain_time(finish_mark_ms);
      }
      // Record the number of elements currently on the mark stack, so we
      // only iterate over these.  (Since evacuation may add to the mark
      // stack, doing more exposes race conditions.)  If no mark is in
      // progress, this will be zero.
      _cm->set_oops_do_bound();
3473

3474
      if (mark_in_progress()) {
3475
        concurrent_mark()->newCSet();
3476
      }
3477

3478 3479 3480 3481 3482
#if YOUNG_LIST_VERBOSE
      gclog_or_tty->print_cr("\nBefore choosing collection set.\nYoung_list:");
      _young_list->print();
      g1_policy()->print_collection_set(g1_policy()->inc_cset_head(), gclog_or_tty);
#endif // YOUNG_LIST_VERBOSE
3483

3484
      g1_policy()->choose_collection_set(target_pause_time_ms);
3485

3486 3487 3488 3489 3490 3491 3492 3493 3494 3495 3496 3497 3498 3499 3500 3501
      if (_hr_printer.is_active()) {
        HeapRegion* hr = g1_policy()->collection_set();
        while (hr != NULL) {
          G1HRPrinter::RegionType type;
          if (!hr->is_young()) {
            type = G1HRPrinter::Old;
          } else if (hr->is_survivor()) {
            type = G1HRPrinter::Survivor;
          } else {
            type = G1HRPrinter::Eden;
          }
          _hr_printer.cset(hr);
          hr = hr->next_in_collection_set();
        }
      }

3502 3503 3504 3505 3506 3507 3508 3509 3510 3511
      // We have chosen the complete collection set. If marking is
      // active then, we clear the region fields of any of the
      // concurrent marking tasks whose region fields point into
      // the collection set as these values will become stale. This
      // will cause the owning marking threads to claim a new region
      // when marking restarts.
      if (mark_in_progress()) {
        concurrent_mark()->reset_active_task_region_fields_in_cset();
      }

3512 3513 3514 3515
#ifdef ASSERT
      VerifyCSetClosure cl;
      collection_set_iterate(&cl);
#endif // ASSERT
3516

3517
      setup_surviving_young_words();
3518

3519 3520
      // Set up the gc allocation regions.
      get_gc_alloc_regions();
3521

3522 3523
      // Actually do the work...
      evacuate_collection_set();
3524

3525 3526
      free_collection_set(g1_policy()->collection_set());
      g1_policy()->clear_collection_set();
3527

3528
      cleanup_surviving_young_words();
3529

3530 3531
      // Start a new incremental collection set for the next pause.
      g1_policy()->start_incremental_cset_building();
3532

3533 3534 3535 3536
      // Clear the _cset_fast_test bitmap in anticipation of adding
      // regions to the incremental collection set for the next
      // evacuation pause.
      clear_cset_fast_test();
3537

3538 3539
      if (g1_policy()->in_young_gc_mode()) {
        _young_list->reset_sampled_info();
3540

3541 3542 3543 3544 3545 3546
        // Don't check the whole heap at this point as the
        // GC alloc regions from this pause have been tagged
        // as survivors and moved on to the survivor list.
        // Survivor regions will fail the !is_young() check.
        assert(check_young_list_empty(false /* check_heap */),
               "young list should be empty");
3547 3548

#if YOUNG_LIST_VERBOSE
3549 3550
        gclog_or_tty->print_cr("Before recording survivors.\nYoung List:");
        _young_list->print();
3551
#endif // YOUNG_LIST_VERBOSE
3552

3553
        g1_policy()->record_survivor_regions(_young_list->survivor_length(),
3554 3555
                                          _young_list->first_survivor_region(),
                                          _young_list->last_survivor_region());
3556

3557
        _young_list->reset_auxilary_lists();
3558 3559
      }

3560 3561 3562 3563 3564 3565 3566
      if (evacuation_failed()) {
        _summary_bytes_used = recalculate_used();
      } else {
        // The "used" of the the collection set have already been subtracted
        // when they were freed.  Add in the bytes evacuated.
        _summary_bytes_used += g1_policy()->bytes_in_to_space();
      }
3567

3568
      if (g1_policy()->in_young_gc_mode() &&
3569
          g1_policy()->during_initial_mark_pause()) {
3570 3571
        concurrent_mark()->checkpointRootsInitialPost();
        set_marking_started();
3572 3573 3574 3575 3576 3577 3578
        // CAUTION: after the doConcurrentMark() call below,
        // the concurrent marking thread(s) could be running
        // concurrently with us. Make sure that anything after
        // this point does not assume that we are the only GC thread
        // running. Note: of course, the actual marking work will
        // not start until the safepoint itself is released in
        // ConcurrentGCThread::safepoint_desynchronize().
3579 3580
        doConcurrentMark();
      }
3581

3582 3583
      allocate_dummy_regions();

3584 3585
#if YOUNG_LIST_VERBOSE
      gclog_or_tty->print_cr("\nEnd of the pause.\nYoung_list:");
3586
      _young_list->print();
3587 3588
      g1_policy()->print_collection_set(g1_policy()->inc_cset_head(), gclog_or_tty);
#endif // YOUNG_LIST_VERBOSE
3589

3590 3591
      init_mutator_alloc_region();

3592 3593 3594
      double end_time_sec = os::elapsedTime();
      double pause_time_ms = (end_time_sec - start_time_sec) * MILLIUNITS;
      g1_policy()->record_pause_time_ms(pause_time_ms);
3595
      g1_policy()->record_collection_pause_end();
3596

3597 3598
      MemoryService::track_memory_usage();

3599 3600 3601 3602
      if (VerifyAfterGC && total_collections() >= VerifyGCStartAt) {
        HandleMark hm;  // Discard invalid handles created during verification
        gclog_or_tty->print(" VerifyAfterGC:");
        prepare_for_verify();
3603 3604 3605
        Universe::verify(/* allow dirty */ true,
                         /* silent      */ false,
                         /* option      */ VerifyOption_G1UsePrevMarking);
3606
      }
3607

3608
      if (was_enabled) ref_processor()->enable_discovery();
3609

3610 3611 3612 3613
      {
        size_t expand_bytes = g1_policy()->expansion_amount();
        if (expand_bytes > 0) {
          size_t bytes_before = capacity();
3614 3615 3616 3617 3618 3619
          if (!expand(expand_bytes)) {
            // We failed to expand the heap so let's verify that
            // committed/uncommitted amount match the backing store
            assert(capacity() == _g1_storage.committed_size(), "committed size mismatch");
            assert(max_capacity() == _g1_storage.reserved_size(), "reserved size mismatch");
          }
3620
        }
3621
      }
3622 3623 3624 3625 3626 3627 3628

      // We should do this after we potentially expand the heap so
      // that all the COMMIT events are generated before the end GC
      // event, and after we retire the GC alloc regions so that all
      // RETIRE events are generated before the end GC event.
      _hr_printer.end_gc(false /* full */, (size_t) total_collections());

3629 3630
      // We have to do this after we decide whether to expand the heap or not.
      g1_policy()->print_heap_transition();
3631

3632 3633 3634
      if (mark_in_progress()) {
        concurrent_mark()->update_g1_committed();
      }
3635 3636

#ifdef TRACESPINNING
3637
      ParallelTaskTerminator::print_termination_counts();
3638
#endif
3639

3640 3641 3642 3643 3644 3645 3646 3647 3648
      gc_epilogue(false);
    }

    if (ExitAfterGCNum > 0 && total_collections() == ExitAfterGCNum) {
      gclog_or_tty->print_cr("Stopping after GC #%d", ExitAfterGCNum);
      print_tracing_info();
      vm_exit(-1);
    }
  }
3649

3650
  _hrs.verify_optional();
3651 3652
  verify_region_sets_optional();

3653 3654 3655
  TASKQUEUE_STATS_ONLY(if (ParallelGCVerbose) print_taskqueue_stats());
  TASKQUEUE_STATS_ONLY(reset_taskqueue_stats());

3656 3657
  if (PrintHeapAtGC) {
    Universe::print_heap_after_gc();
3658
  }
3659 3660
  g1mm()->update_counters();

3661 3662 3663 3664 3665
  if (G1SummarizeRSetStats &&
      (G1SummarizeRSetStatsPeriod > 0) &&
      (total_collections() % G1SummarizeRSetStatsPeriod == 0)) {
    g1_rem_set()->print_summary_info();
  }
3666 3667

  return true;
3668 3669
}

3670 3671 3672 3673 3674 3675 3676 3677 3678 3679 3680 3681 3682 3683 3684 3685 3686 3687
size_t G1CollectedHeap::desired_plab_sz(GCAllocPurpose purpose)
{
  size_t gclab_word_size;
  switch (purpose) {
    case GCAllocForSurvived:
      gclab_word_size = YoungPLABSize;
      break;
    case GCAllocForTenured:
      gclab_word_size = OldPLABSize;
      break;
    default:
      assert(false, "unknown GCAllocPurpose");
      gclab_word_size = OldPLABSize;
      break;
  }
  return gclab_word_size;
}

3688 3689 3690 3691 3692 3693 3694 3695 3696
void G1CollectedHeap::init_mutator_alloc_region() {
  assert(_mutator_alloc_region.get() == NULL, "pre-condition");
  _mutator_alloc_region.init();
}

void G1CollectedHeap::release_mutator_alloc_region() {
  _mutator_alloc_region.release();
  assert(_mutator_alloc_region.get() == NULL, "post-condition");
}
3697

3698 3699
void G1CollectedHeap::set_gc_alloc_region(int purpose, HeapRegion* r) {
  assert(purpose >= 0 && purpose < GCAllocPurposeCount, "invalid purpose");
3700 3701 3702 3703
  // make sure we don't call set_gc_alloc_region() multiple times on
  // the same region
  assert(r == NULL || !r->is_gc_alloc_region(),
         "shouldn't already be a GC alloc region");
3704 3705 3706
  assert(r == NULL || !r->isHumongous(),
         "humongous regions shouldn't be used as GC alloc regions");

3707 3708 3709 3710 3711 3712 3713 3714 3715 3716 3717
  HeapWord* original_top = NULL;
  if (r != NULL)
    original_top = r->top();

  // We will want to record the used space in r as being there before gc.
  // One we install it as a GC alloc region it's eligible for allocation.
  // So record it now and use it later.
  size_t r_used = 0;
  if (r != NULL) {
    r_used = r->used();

3718
    if (G1CollectedHeap::use_parallel_gc_threads()) {
3719 3720 3721 3722 3723 3724 3725 3726 3727 3728 3729 3730 3731 3732 3733 3734 3735 3736 3737 3738 3739 3740 3741 3742 3743 3744 3745 3746 3747 3748 3749 3750 3751 3752 3753 3754 3755 3756 3757 3758 3759 3760 3761 3762 3763 3764 3765 3766 3767 3768 3769
      // need to take the lock to guard against two threads calling
      // get_gc_alloc_region concurrently (very unlikely but...)
      MutexLockerEx x(ParGCRareEvent_lock, Mutex::_no_safepoint_check_flag);
      r->save_marks();
    }
  }
  HeapRegion* old_alloc_region = _gc_alloc_regions[purpose];
  _gc_alloc_regions[purpose] = r;
  if (old_alloc_region != NULL) {
    // Replace aliases too.
    for (int ap = 0; ap < GCAllocPurposeCount; ++ap) {
      if (_gc_alloc_regions[ap] == old_alloc_region) {
        _gc_alloc_regions[ap] = r;
      }
    }
  }
  if (r != NULL) {
    push_gc_alloc_region(r);
    if (mark_in_progress() && original_top != r->next_top_at_mark_start()) {
      // We are using a region as a GC alloc region after it has been used
      // as a mutator allocation region during the current marking cycle.
      // The mutator-allocated objects are currently implicitly marked, but
      // when we move hr->next_top_at_mark_start() forward at the the end
      // of the GC pause, they won't be.  We therefore mark all objects in
      // the "gap".  We do this object-by-object, since marking densely
      // does not currently work right with marking bitmap iteration.  This
      // means we rely on TLAB filling at the start of pauses, and no
      // "resuscitation" of filled TLAB's.  If we want to do this, we need
      // to fix the marking bitmap iteration.
      HeapWord* curhw = r->next_top_at_mark_start();
      HeapWord* t = original_top;

      while (curhw < t) {
        oop cur = (oop)curhw;
        // We'll assume parallel for generality.  This is rare code.
        concurrent_mark()->markAndGrayObjectIfNecessary(cur); // can't we just mark them?
        curhw = curhw + cur->size();
      }
      assert(curhw == t, "Should have parsed correctly.");
    }
    if (G1PolicyVerbose > 1) {
      gclog_or_tty->print("New alloc region ["PTR_FORMAT", "PTR_FORMAT", " PTR_FORMAT") "
                          "for survivors:", r->bottom(), original_top, r->end());
      r->print();
    }
    g1_policy()->record_before_bytes(r_used);
  }
}

void G1CollectedHeap::push_gc_alloc_region(HeapRegion* hr) {
  assert(Thread::current()->is_VM_thread() ||
3770
         FreeList_lock->owned_by_self(), "Precondition");
3771 3772 3773 3774 3775 3776 3777 3778 3779 3780 3781 3782
  assert(!hr->is_gc_alloc_region() && !hr->in_collection_set(),
         "Precondition.");
  hr->set_is_gc_alloc_region(true);
  hr->set_next_gc_alloc_region(_gc_alloc_region_list);
  _gc_alloc_region_list = hr;
}

#ifdef G1_DEBUG
class FindGCAllocRegion: public HeapRegionClosure {
public:
  bool doHeapRegion(HeapRegion* r) {
    if (r->is_gc_alloc_region()) {
3783 3784
      gclog_or_tty->print_cr("Region "HR_FORMAT" is still a GC alloc region",
                             HR_FORMAT_PARAMS(r));
3785 3786 3787 3788 3789 3790 3791
    }
    return false;
  }
};
#endif // G1_DEBUG

void G1CollectedHeap::forget_alloc_region_list() {
3792
  assert_at_safepoint(true /* should_be_vm_thread */);
3793 3794 3795
  while (_gc_alloc_region_list != NULL) {
    HeapRegion* r = _gc_alloc_region_list;
    assert(r->is_gc_alloc_region(), "Invariant.");
3796 3797 3798 3799 3800 3801
    // We need HeapRegion::oops_on_card_seq_iterate_careful() to work on
    // newly allocated data in order to be able to apply deferred updates
    // before the GC is done for verification purposes (i.e to allow
    // G1HRRSFlushLogBuffersOnVerify). It's safe thing to do after the
    // collection.
    r->ContiguousSpace::set_saved_mark();
3802 3803 3804
    _gc_alloc_region_list = r->next_gc_alloc_region();
    r->set_next_gc_alloc_region(NULL);
    r->set_is_gc_alloc_region(false);
3805 3806 3807 3808 3809 3810 3811
    if (r->is_survivor()) {
      if (r->is_empty()) {
        r->set_not_young();
      } else {
        _young_list->add_survivor_region(r);
      }
    }
3812 3813 3814 3815 3816 3817 3818 3819 3820 3821 3822 3823 3824 3825
  }
#ifdef G1_DEBUG
  FindGCAllocRegion fa;
  heap_region_iterate(&fa);
#endif // G1_DEBUG
}


bool G1CollectedHeap::check_gc_alloc_regions() {
  // TODO: allocation regions check
  return true;
}

void G1CollectedHeap::get_gc_alloc_regions() {
3826 3827 3828
  // First, let's check that the GC alloc region list is empty (it should)
  assert(_gc_alloc_region_list == NULL, "invariant");

3829
  for (int ap = 0; ap < GCAllocPurposeCount; ++ap) {
3830
    assert(_gc_alloc_regions[ap] == NULL, "invariant");
3831
    assert(_gc_alloc_region_counts[ap] == 0, "invariant");
3832

3833
    // Create new GC alloc regions.
3834 3835 3836 3837 3838 3839 3840 3841 3842 3843 3844 3845
    HeapRegion* alloc_region = _retained_gc_alloc_regions[ap];
    _retained_gc_alloc_regions[ap] = NULL;

    if (alloc_region != NULL) {
      assert(_retain_gc_alloc_region[ap], "only way to retain a GC region");

      // let's make sure that the GC alloc region is not tagged as such
      // outside a GC operation
      assert(!alloc_region->is_gc_alloc_region(), "sanity");

      if (alloc_region->in_collection_set() ||
          alloc_region->top() == alloc_region->end() ||
3846 3847 3848 3849 3850 3851 3852 3853 3854 3855 3856
          alloc_region->top() == alloc_region->bottom() ||
          alloc_region->isHumongous()) {
        // we will discard the current GC alloc region if
        // * it's in the collection set (it can happen!),
        // * it's already full (no point in using it),
        // * it's empty (this means that it was emptied during
        // a cleanup and it should be on the free list now), or
        // * it's humongous (this means that it was emptied
        // during a cleanup and was added to the free list, but
        // has been subseqently used to allocate a humongous
        // object that may be less than the region size).
3857 3858 3859 3860 3861 3862 3863

        alloc_region = NULL;
      }
    }

    if (alloc_region == NULL) {
      // we will get a new GC alloc region
3864
      alloc_region = new_gc_alloc_region(ap, HeapRegion::GrainWords);
3865 3866 3867
    } else {
      // the region was retained from the last collection
      ++_gc_alloc_region_counts[ap];
3868 3869

      _hr_printer.reuse(alloc_region);
3870
    }
3871

3872
    if (alloc_region != NULL) {
3873
      assert(_gc_alloc_regions[ap] == NULL, "pre-condition");
3874 3875
      set_gc_alloc_region(ap, alloc_region);
    }
3876 3877 3878 3879 3880 3881 3882

    assert(_gc_alloc_regions[ap] == NULL ||
           _gc_alloc_regions[ap]->is_gc_alloc_region(),
           "the GC alloc region should be tagged as such");
    assert(_gc_alloc_regions[ap] == NULL ||
           _gc_alloc_regions[ap] == _gc_alloc_region_list,
           "the GC alloc region should be the same as the GC alloc list head");
3883 3884
  }
  // Set alternative regions for allocation purposes that have reached
3885
  // their limit.
3886 3887 3888 3889 3890 3891 3892 3893 3894
  for (int ap = 0; ap < GCAllocPurposeCount; ++ap) {
    GCAllocPurpose alt_purpose = g1_policy()->alternative_purpose(ap);
    if (_gc_alloc_regions[ap] == NULL && alt_purpose != ap) {
      _gc_alloc_regions[ap] = _gc_alloc_regions[alt_purpose];
    }
  }
  assert(check_gc_alloc_regions(), "alloc regions messed up");
}

3895
void G1CollectedHeap::release_gc_alloc_regions(bool totally) {
3896
  // We keep a separate list of all regions that have been alloc regions in
3897 3898 3899 3900
  // the current collection pause. Forget that now. This method will
  // untag the GC alloc regions and tear down the GC alloc region
  // list. It's desirable that no regions are tagged as GC alloc
  // outside GCs.
3901

3902 3903 3904 3905 3906 3907
  forget_alloc_region_list();

  // The current alloc regions contain objs that have survived
  // collection. Make them no longer GC alloc regions.
  for (int ap = 0; ap < GCAllocPurposeCount; ++ap) {
    HeapRegion* r = _gc_alloc_regions[ap];
3908
    _retained_gc_alloc_regions[ap] = NULL;
3909
    _gc_alloc_region_counts[ap] = 0;
3910 3911 3912 3913 3914 3915

    if (r != NULL) {
      // we retain nothing on _gc_alloc_regions between GCs
      set_gc_alloc_region(ap, NULL);

      if (r->is_empty()) {
3916 3917
        // We didn't actually allocate anything in it; let's just put
        // it back on the free list.
3918
        _free_list.add_as_head(r);
3919 3920 3921
      } else if (_retain_gc_alloc_region[ap] && !totally) {
        // retain it so that we can use it at the beginning of the next GC
        _retained_gc_alloc_regions[ap] = r;
3922 3923 3924 3925 3926
      }
    }
  }
}

3927 3928 3929 3930 3931 3932 3933 3934 3935 3936 3937 3938 3939 3940 3941 3942 3943
#ifndef PRODUCT
// Useful for debugging

void G1CollectedHeap::print_gc_alloc_regions() {
  gclog_or_tty->print_cr("GC alloc regions");
  for (int ap = 0; ap < GCAllocPurposeCount; ++ap) {
    HeapRegion* r = _gc_alloc_regions[ap];
    if (r == NULL) {
      gclog_or_tty->print_cr("  %2d : "PTR_FORMAT, ap, NULL);
    } else {
      gclog_or_tty->print_cr("  %2d : "PTR_FORMAT" "SIZE_FORMAT,
                             ap, r->bottom(), r->used());
    }
  }
}
#endif // PRODUCT

3944 3945 3946 3947 3948 3949 3950 3951 3952 3953 3954
void G1CollectedHeap::init_for_evac_failure(OopsInHeapRegionClosure* cl) {
  _drain_in_progress = false;
  set_evac_failure_closure(cl);
  _evac_failure_scan_stack = new (ResourceObj::C_HEAP) GrowableArray<oop>(40, true);
}

void G1CollectedHeap::finalize_for_evac_failure() {
  assert(_evac_failure_scan_stack != NULL &&
         _evac_failure_scan_stack->length() == 0,
         "Postcondition");
  assert(!_drain_in_progress, "Postcondition");
A
apetrusenko 已提交
3955
  delete _evac_failure_scan_stack;
3956 3957 3958 3959 3960 3961 3962 3963 3964 3965 3966 3967 3968 3969 3970 3971 3972 3973 3974 3975 3976 3977 3978 3979 3980 3981 3982 3983 3984 3985
  _evac_failure_scan_stack = NULL;
}



// *** Sequential G1 Evacuation

class G1IsAliveClosure: public BoolObjectClosure {
  G1CollectedHeap* _g1;
public:
  G1IsAliveClosure(G1CollectedHeap* g1) : _g1(g1) {}
  void do_object(oop p) { assert(false, "Do not call."); }
  bool do_object_b(oop p) {
    // It is reachable if it is outside the collection set, or is inside
    // and forwarded.

#ifdef G1_DEBUG
    gclog_or_tty->print_cr("is alive "PTR_FORMAT" in CS %d forwarded %d overall %d",
                           (void*) p, _g1->obj_in_cs(p), p->is_forwarded(),
                           !_g1->obj_in_cs(p) || p->is_forwarded());
#endif // G1_DEBUG

    return !_g1->obj_in_cs(p) || p->is_forwarded();
  }
};

class G1KeepAliveClosure: public OopClosure {
  G1CollectedHeap* _g1;
public:
  G1KeepAliveClosure(G1CollectedHeap* g1) : _g1(g1) {}
3986 3987
  void do_oop(narrowOop* p) { guarantee(false, "Not needed"); }
  void do_oop(      oop* p) {
3988 3989 3990 3991 3992 3993 3994 3995 3996 3997 3998 3999 4000 4001 4002 4003 4004 4005 4006
    oop obj = *p;
#ifdef G1_DEBUG
    if (PrintGC && Verbose) {
      gclog_or_tty->print_cr("keep alive *"PTR_FORMAT" = "PTR_FORMAT" "PTR_FORMAT,
                             p, (void*) obj, (void*) *p);
    }
#endif // G1_DEBUG

    if (_g1->obj_in_cs(obj)) {
      assert( obj->is_forwarded(), "invariant" );
      *p = obj->forwardee();
#ifdef G1_DEBUG
      gclog_or_tty->print_cr("     in CSet: moved "PTR_FORMAT" -> "PTR_FORMAT,
                             (void*) obj, (void*) *p);
#endif // G1_DEBUG
    }
  }
};

4007 4008 4009 4010 4011 4012 4013 4014 4015
class UpdateRSetDeferred : public OopsInHeapRegionClosure {
private:
  G1CollectedHeap* _g1;
  DirtyCardQueue *_dcq;
  CardTableModRefBS* _ct_bs;

public:
  UpdateRSetDeferred(G1CollectedHeap* g1, DirtyCardQueue* dcq) :
    _g1(g1), _ct_bs((CardTableModRefBS*)_g1->barrier_set()), _dcq(dcq) {}
4016

4017 4018 4019
  virtual void do_oop(narrowOop* p) { do_oop_work(p); }
  virtual void do_oop(      oop* p) { do_oop_work(p); }
  template <class T> void do_oop_work(T* p) {
4020
    assert(_from->is_in_reserved(p), "paranoia");
4021 4022
    if (!_from->is_in_reserved(oopDesc::load_decode_heap_oop(p)) &&
        !_from->is_survivor()) {
4023 4024 4025 4026
      size_t card_index = _ct_bs->index_for(p);
      if (_ct_bs->mark_card_deferred(card_index)) {
        _dcq->enqueue((jbyte*)_ct_bs->byte_for_index(card_index));
      }
4027 4028 4029 4030 4031 4032 4033 4034 4035 4036 4037
    }
  }
};

class RemoveSelfPointerClosure: public ObjectClosure {
private:
  G1CollectedHeap* _g1;
  ConcurrentMark* _cm;
  HeapRegion* _hr;
  size_t _prev_marked_bytes;
  size_t _next_marked_bytes;
4038
  OopsInHeapRegionClosure *_cl;
4039
public:
4040 4041 4042
  RemoveSelfPointerClosure(G1CollectedHeap* g1, HeapRegion* hr,
                           OopsInHeapRegionClosure* cl) :
    _g1(g1), _hr(hr), _cm(_g1->concurrent_mark()),  _prev_marked_bytes(0),
4043
    _next_marked_bytes(0), _cl(cl) {}
4044 4045 4046 4047

  size_t prev_marked_bytes() { return _prev_marked_bytes; }
  size_t next_marked_bytes() { return _next_marked_bytes; }

4048
  // <original comment>
4049 4050 4051 4052 4053 4054 4055 4056 4057
  // The original idea here was to coalesce evacuated and dead objects.
  // However that caused complications with the block offset table (BOT).
  // In particular if there were two TLABs, one of them partially refined.
  // |----- TLAB_1--------|----TLAB_2-~~~(partially refined part)~~~|
  // The BOT entries of the unrefined part of TLAB_2 point to the start
  // of TLAB_2. If the last object of the TLAB_1 and the first object
  // of TLAB_2 are coalesced, then the cards of the unrefined part
  // would point into middle of the filler object.
  // The current approach is to not coalesce and leave the BOT contents intact.
4058 4059 4060 4061 4062 4063
  // </original comment>
  //
  // We now reset the BOT when we start the object iteration over the
  // region and refine its entries for every object we come across. So
  // the above comment is not really relevant and we should be able
  // to coalesce dead objects if we want to.
4064
  void do_object(oop obj) {
4065 4066 4067 4068
    HeapWord* obj_addr = (HeapWord*) obj;
    assert(_hr->is_in(obj_addr), "sanity");
    size_t obj_size = obj->size();
    _hr->update_bot_for_object(obj_addr, obj_size);
4069 4070 4071 4072 4073
    if (obj->is_forwarded() && obj->forwardee() == obj) {
      // The object failed to move.
      assert(!_g1->is_obj_dead(obj), "We should not be preserving dead objs.");
      _cm->markPrev(obj);
      assert(_cm->isPrevMarked(obj), "Should be marked!");
4074
      _prev_marked_bytes += (obj_size * HeapWordSize);
4075 4076
      if (_g1->mark_in_progress() && !_g1->is_obj_ill(obj)) {
        _cm->markAndGrayObjectIfNecessary(obj);
4077
      }
4078 4079 4080 4081 4082 4083 4084 4085 4086 4087 4088 4089 4090
      obj->set_mark(markOopDesc::prototype());
      // While we were processing RSet buffers during the
      // collection, we actually didn't scan any cards on the
      // collection set, since we didn't want to update remebered
      // sets with entries that point into the collection set, given
      // that live objects fromthe collection set are about to move
      // and such entries will be stale very soon. This change also
      // dealt with a reliability issue which involved scanning a
      // card in the collection set and coming across an array that
      // was being chunked and looking malformed. The problem is
      // that, if evacuation fails, we might have remembered set
      // entries missing given that we skipped cards on the
      // collection set. So, we'll recreate such entries now.
4091
      obj->oop_iterate(_cl);
4092 4093 4094 4095
      assert(_cm->isPrevMarked(obj), "Should be marked!");
    } else {
      // The object has been either evacuated or is dead. Fill it with a
      // dummy object.
4096
      MemRegion mr((HeapWord*)obj, obj_size);
4097
      CollectedHeap::fill_with_object(mr);
4098
      _cm->clearRangeBothMaps(mr);
4099 4100 4101 4102 4103
    }
  }
};

void G1CollectedHeap::remove_self_forwarding_pointers() {
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johnc 已提交
4104
  UpdateRSetImmediate immediate_update(_g1h->g1_rem_set());
4105 4106 4107 4108 4109 4110 4111 4112
  DirtyCardQueue dcq(&_g1h->dirty_card_queue_set());
  UpdateRSetDeferred deferred_update(_g1h, &dcq);
  OopsInHeapRegionClosure *cl;
  if (G1DeferredRSUpdate) {
    cl = &deferred_update;
  } else {
    cl = &immediate_update;
  }
4113 4114 4115
  HeapRegion* cur = g1_policy()->collection_set();
  while (cur != NULL) {
    assert(g1_policy()->assertMarkedBytesDataOK(), "Should be!");
4116
    assert(!cur->isHumongous(), "sanity");
4117 4118 4119

    if (cur->evacuation_failed()) {
      assert(cur->in_collection_set(), "bad CS");
4120 4121
      RemoveSelfPointerClosure rspc(_g1h, cur, cl);

4122 4123 4124 4125 4126 4127 4128 4129
      // In the common case we make sure that this is done when the
      // region is freed so that it is "ready-to-go" when it's
      // re-allocated. However, when evacuation failure happens, a
      // region will remain in the heap and might ultimately be added
      // to a CSet in the future. So we have to be careful here and
      // make sure the region's RSet is ready for parallel iteration
      // whenever this might be required in the future.
      cur->rem_set()->reset_for_par_iteration();
4130
      cur->reset_bot();
4131
      cl->set_region(cur);
4132 4133 4134 4135 4136 4137 4138 4139 4140 4141 4142 4143 4144 4145 4146 4147 4148 4149 4150 4151 4152 4153 4154 4155 4156 4157 4158 4159 4160 4161 4162 4163 4164 4165 4166 4167 4168 4169 4170 4171 4172 4173 4174 4175 4176 4177 4178 4179 4180 4181 4182 4183 4184 4185 4186 4187 4188 4189 4190 4191 4192 4193 4194 4195 4196 4197
      cur->object_iterate(&rspc);

      // A number of manipulations to make the TAMS be the current top,
      // and the marked bytes be the ones observed in the iteration.
      if (_g1h->concurrent_mark()->at_least_one_mark_complete()) {
        // The comments below are the postconditions achieved by the
        // calls.  Note especially the last such condition, which says that
        // the count of marked bytes has been properly restored.
        cur->note_start_of_marking(false);
        // _next_top_at_mark_start == top, _next_marked_bytes == 0
        cur->add_to_marked_bytes(rspc.prev_marked_bytes());
        // _next_marked_bytes == prev_marked_bytes.
        cur->note_end_of_marking();
        // _prev_top_at_mark_start == top(),
        // _prev_marked_bytes == prev_marked_bytes
      }
      // If there is no mark in progress, we modified the _next variables
      // above needlessly, but harmlessly.
      if (_g1h->mark_in_progress()) {
        cur->note_start_of_marking(false);
        // _next_top_at_mark_start == top, _next_marked_bytes == 0
        // _next_marked_bytes == next_marked_bytes.
      }

      // Now make sure the region has the right index in the sorted array.
      g1_policy()->note_change_in_marked_bytes(cur);
    }
    cur = cur->next_in_collection_set();
  }
  assert(g1_policy()->assertMarkedBytesDataOK(), "Should be!");

  // Now restore saved marks, if any.
  if (_objs_with_preserved_marks != NULL) {
    assert(_preserved_marks_of_objs != NULL, "Both or none.");
    guarantee(_objs_with_preserved_marks->length() ==
              _preserved_marks_of_objs->length(), "Both or none.");
    for (int i = 0; i < _objs_with_preserved_marks->length(); i++) {
      oop obj   = _objs_with_preserved_marks->at(i);
      markOop m = _preserved_marks_of_objs->at(i);
      obj->set_mark(m);
    }
    // Delete the preserved marks growable arrays (allocated on the C heap).
    delete _objs_with_preserved_marks;
    delete _preserved_marks_of_objs;
    _objs_with_preserved_marks = NULL;
    _preserved_marks_of_objs = NULL;
  }
}

void G1CollectedHeap::push_on_evac_failure_scan_stack(oop obj) {
  _evac_failure_scan_stack->push(obj);
}

void G1CollectedHeap::drain_evac_failure_scan_stack() {
  assert(_evac_failure_scan_stack != NULL, "precondition");

  while (_evac_failure_scan_stack->length() > 0) {
     oop obj = _evac_failure_scan_stack->pop();
     _evac_failure_closure->set_region(heap_region_containing(obj));
     obj->oop_iterate_backwards(_evac_failure_closure);
  }
}

oop
G1CollectedHeap::handle_evacuation_failure_par(OopsInHeapRegionClosure* cl,
                                               oop old) {
4198 4199 4200
  assert(obj_in_cs(old),
         err_msg("obj: "PTR_FORMAT" should still be in the CSet",
                 (HeapWord*) old));
4201 4202 4203 4204 4205 4206 4207 4208 4209 4210 4211 4212 4213 4214 4215 4216 4217 4218 4219 4220 4221 4222
  markOop m = old->mark();
  oop forward_ptr = old->forward_to_atomic(old);
  if (forward_ptr == NULL) {
    // Forward-to-self succeeded.
    if (_evac_failure_closure != cl) {
      MutexLockerEx x(EvacFailureStack_lock, Mutex::_no_safepoint_check_flag);
      assert(!_drain_in_progress,
             "Should only be true while someone holds the lock.");
      // Set the global evac-failure closure to the current thread's.
      assert(_evac_failure_closure == NULL, "Or locking has failed.");
      set_evac_failure_closure(cl);
      // Now do the common part.
      handle_evacuation_failure_common(old, m);
      // Reset to NULL.
      set_evac_failure_closure(NULL);
    } else {
      // The lock is already held, and this is recursive.
      assert(_drain_in_progress, "This should only be the recursive case.");
      handle_evacuation_failure_common(old, m);
    }
    return old;
  } else {
4223 4224 4225 4226 4227 4228 4229
    // Forward-to-self failed. Either someone else managed to allocate
    // space for this object (old != forward_ptr) or they beat us in
    // self-forwarding it (old == forward_ptr).
    assert(old == forward_ptr || !obj_in_cs(forward_ptr),
           err_msg("obj: "PTR_FORMAT" forwarded to: "PTR_FORMAT" "
                   "should not be in the CSet",
                   (HeapWord*) old, (HeapWord*) forward_ptr));
4230 4231 4232 4233 4234 4235 4236 4237 4238 4239 4240 4241
    return forward_ptr;
  }
}

void G1CollectedHeap::handle_evacuation_failure_common(oop old, markOop m) {
  set_evacuation_failed(true);

  preserve_mark_if_necessary(old, m);

  HeapRegion* r = heap_region_containing(old);
  if (!r->evacuation_failed()) {
    r->set_evacuation_failed(true);
4242
    _hr_printer.evac_failure(r);
4243 4244 4245 4246 4247 4248 4249 4250 4251 4252 4253 4254 4255
  }

  push_on_evac_failure_scan_stack(old);

  if (!_drain_in_progress) {
    // prevent recursion in copy_to_survivor_space()
    _drain_in_progress = true;
    drain_evac_failure_scan_stack();
    _drain_in_progress = false;
  }
}

void G1CollectedHeap::preserve_mark_if_necessary(oop obj, markOop m) {
4256 4257 4258 4259
  assert(evacuation_failed(), "Oversaving!");
  // We want to call the "for_promotion_failure" version only in the
  // case of a promotion failure.
  if (m->must_be_preserved_for_promotion_failure(obj)) {
4260 4261 4262 4263 4264 4265 4266 4267 4268 4269 4270 4271 4272 4273 4274 4275
    if (_objs_with_preserved_marks == NULL) {
      assert(_preserved_marks_of_objs == NULL, "Both or none.");
      _objs_with_preserved_marks =
        new (ResourceObj::C_HEAP) GrowableArray<oop>(40, true);
      _preserved_marks_of_objs =
        new (ResourceObj::C_HEAP) GrowableArray<markOop>(40, true);
    }
    _objs_with_preserved_marks->push(obj);
    _preserved_marks_of_objs->push(m);
  }
}

// *** Parallel G1 Evacuation

HeapWord* G1CollectedHeap::par_allocate_during_gc(GCAllocPurpose purpose,
                                                  size_t word_size) {
4276 4277 4278 4279
  assert(!isHumongous(word_size),
         err_msg("we should not be seeing humongous allocation requests "
                 "during GC, word_size = "SIZE_FORMAT, word_size));

4280 4281 4282 4283 4284 4285 4286 4287 4288 4289 4290
  HeapRegion* alloc_region = _gc_alloc_regions[purpose];
  // let the caller handle alloc failure
  if (alloc_region == NULL) return NULL;

  HeapWord* block = alloc_region->par_allocate(word_size);
  if (block == NULL) {
    block = allocate_during_gc_slow(purpose, alloc_region, true, word_size);
  }
  return block;
}

4291 4292 4293 4294 4295 4296 4297 4298 4299 4300 4301 4302
void G1CollectedHeap::retire_alloc_region(HeapRegion* alloc_region,
                                            bool par) {
  // Another thread might have obtained alloc_region for the given
  // purpose, and might be attempting to allocate in it, and might
  // succeed.  Therefore, we can't do the "finalization" stuff on the
  // region below until we're sure the last allocation has happened.
  // We ensure this by allocating the remaining space with a garbage
  // object.
  if (par) par_allocate_remaining_space(alloc_region);
  // Now we can do the post-GC stuff on the region.
  alloc_region->note_end_of_copying();
  g1_policy()->record_after_bytes(alloc_region->used());
4303
  _hr_printer.retire(alloc_region);
4304 4305
}

4306 4307 4308 4309 4310
HeapWord*
G1CollectedHeap::allocate_during_gc_slow(GCAllocPurpose purpose,
                                         HeapRegion*    alloc_region,
                                         bool           par,
                                         size_t         word_size) {
4311 4312 4313 4314
  assert(!isHumongous(word_size),
         err_msg("we should not be seeing humongous allocation requests "
                 "during GC, word_size = "SIZE_FORMAT, word_size));

4315 4316 4317 4318 4319 4320
  // We need to make sure we serialize calls to this method. Given
  // that the FreeList_lock guards accesses to the free_list anyway,
  // and we need to potentially remove a region from it, we'll use it
  // to protect the whole call.
  MutexLockerEx x(FreeList_lock, Mutex::_no_safepoint_check_flag);

4321 4322 4323 4324 4325 4326 4327 4328 4329 4330 4331 4332
  HeapWord* block = NULL;
  // In the parallel case, a previous thread to obtain the lock may have
  // already assigned a new gc_alloc_region.
  if (alloc_region != _gc_alloc_regions[purpose]) {
    assert(par, "But should only happen in parallel case.");
    alloc_region = _gc_alloc_regions[purpose];
    if (alloc_region == NULL) return NULL;
    block = alloc_region->par_allocate(word_size);
    if (block != NULL) return block;
    // Otherwise, continue; this new region is empty, too.
  }
  assert(alloc_region != NULL, "We better have an allocation region");
4333
  retire_alloc_region(alloc_region, par);
4334 4335 4336 4337 4338 4339 4340 4341

  if (_gc_alloc_region_counts[purpose] >= g1_policy()->max_regions(purpose)) {
    // Cannot allocate more regions for the given purpose.
    GCAllocPurpose alt_purpose = g1_policy()->alternative_purpose(purpose);
    // Is there an alternative?
    if (purpose != alt_purpose) {
      HeapRegion* alt_region = _gc_alloc_regions[alt_purpose];
      // Has not the alternative region been aliased?
4342
      if (alloc_region != alt_region && alt_region != NULL) {
4343 4344 4345 4346 4347 4348 4349 4350
        // Try to allocate in the alternative region.
        if (par) {
          block = alt_region->par_allocate(word_size);
        } else {
          block = alt_region->allocate(word_size);
        }
        // Make an alias.
        _gc_alloc_regions[purpose] = _gc_alloc_regions[alt_purpose];
4351 4352 4353 4354
        if (block != NULL) {
          return block;
        }
        retire_alloc_region(alt_region, par);
4355 4356 4357 4358 4359 4360 4361 4362 4363 4364 4365
      }
      // Both the allocation region and the alternative one are full
      // and aliased, replace them with a new allocation region.
      purpose = alt_purpose;
    } else {
      set_gc_alloc_region(purpose, NULL);
      return NULL;
    }
  }

  // Now allocate a new region for allocation.
4366
  alloc_region = new_gc_alloc_region(purpose, word_size);
4367 4368 4369 4370 4371 4372 4373 4374 4375 4376 4377 4378 4379 4380 4381 4382 4383 4384 4385 4386 4387 4388 4389 4390 4391 4392 4393 4394 4395 4396

  // let the caller handle alloc failure
  if (alloc_region != NULL) {

    assert(check_gc_alloc_regions(), "alloc regions messed up");
    assert(alloc_region->saved_mark_at_top(),
           "Mark should have been saved already.");
    // This must be done last: once it's installed, other regions may
    // allocate in it (without holding the lock.)
    set_gc_alloc_region(purpose, alloc_region);

    if (par) {
      block = alloc_region->par_allocate(word_size);
    } else {
      block = alloc_region->allocate(word_size);
    }
    // Caller handles alloc failure.
  } else {
    // This sets other apis using the same old alloc region to NULL, also.
    set_gc_alloc_region(purpose, NULL);
  }
  return block;  // May be NULL.
}

void G1CollectedHeap::par_allocate_remaining_space(HeapRegion* r) {
  HeapWord* block = NULL;
  size_t free_words;
  do {
    free_words = r->free()/HeapWordSize;
    // If there's too little space, no one can allocate, so we're done.
4397
    if (free_words < CollectedHeap::min_fill_size()) return;
4398 4399 4400
    // Otherwise, try to claim it.
    block = r->par_allocate(free_words);
  } while (block == NULL);
4401
  fill_with_object(block, free_words);
4402 4403 4404 4405 4406 4407 4408 4409 4410 4411
}

#ifndef PRODUCT
bool GCLabBitMapClosure::do_bit(size_t offset) {
  HeapWord* addr = _bitmap->offsetToHeapWord(offset);
  guarantee(_cm->isMarked(oop(addr)), "it should be!");
  return true;
}
#endif // PRODUCT

4412 4413 4414 4415 4416 4417 4418 4419
G1ParScanThreadState::G1ParScanThreadState(G1CollectedHeap* g1h, int queue_num)
  : _g1h(g1h),
    _refs(g1h->task_queue(queue_num)),
    _dcq(&g1h->dirty_card_queue_set()),
    _ct_bs((CardTableModRefBS*)_g1h->barrier_set()),
    _g1_rem(g1h->g1_rem_set()),
    _hash_seed(17), _queue_num(queue_num),
    _term_attempts(0),
4420 4421
    _surviving_alloc_buffer(g1h->desired_plab_sz(GCAllocForSurvived)),
    _tenured_alloc_buffer(g1h->desired_plab_sz(GCAllocForTenured)),
4422 4423 4424 4425 4426 4427 4428 4429 4430 4431 4432 4433 4434 4435 4436 4437 4438 4439 4440 4441
    _age_table(false),
    _strong_roots_time(0), _term_time(0),
    _alloc_buffer_waste(0), _undo_waste(0)
{
  // we allocate G1YoungSurvRateNumRegions plus one entries, since
  // we "sacrifice" entry 0 to keep track of surviving bytes for
  // non-young regions (where the age is -1)
  // We also add a few elements at the beginning and at the end in
  // an attempt to eliminate cache contention
  size_t real_length = 1 + _g1h->g1_policy()->young_cset_length();
  size_t array_length = PADDING_ELEM_NUM +
                        real_length +
                        PADDING_ELEM_NUM;
  _surviving_young_words_base = NEW_C_HEAP_ARRAY(size_t, array_length);
  if (_surviving_young_words_base == NULL)
    vm_exit_out_of_memory(array_length * sizeof(size_t),
                          "Not enough space for young surv histo.");
  _surviving_young_words = _surviving_young_words_base + PADDING_ELEM_NUM;
  memset(_surviving_young_words, 0, real_length * sizeof(size_t));

4442 4443 4444
  _alloc_buffers[GCAllocForSurvived] = &_surviving_alloc_buffer;
  _alloc_buffers[GCAllocForTenured]  = &_tenured_alloc_buffer;

4445 4446
  _start = os::elapsedTime();
}
4447

4448 4449 4450 4451 4452 4453 4454 4455 4456 4457 4458 4459 4460 4461 4462 4463 4464 4465 4466 4467 4468 4469 4470 4471 4472 4473 4474 4475 4476
void
G1ParScanThreadState::print_termination_stats_hdr(outputStream* const st)
{
  st->print_raw_cr("GC Termination Stats");
  st->print_raw_cr("     elapsed  --strong roots-- -------termination-------"
                   " ------waste (KiB)------");
  st->print_raw_cr("thr     ms        ms      %        ms      %    attempts"
                   "  total   alloc    undo");
  st->print_raw_cr("--- --------- --------- ------ --------- ------ --------"
                   " ------- ------- -------");
}

void
G1ParScanThreadState::print_termination_stats(int i,
                                              outputStream* const st) const
{
  const double elapsed_ms = elapsed_time() * 1000.0;
  const double s_roots_ms = strong_roots_time() * 1000.0;
  const double term_ms    = term_time() * 1000.0;
  st->print_cr("%3d %9.2f %9.2f %6.2f "
               "%9.2f %6.2f " SIZE_FORMAT_W(8) " "
               SIZE_FORMAT_W(7) " " SIZE_FORMAT_W(7) " " SIZE_FORMAT_W(7),
               i, elapsed_ms, s_roots_ms, s_roots_ms * 100 / elapsed_ms,
               term_ms, term_ms * 100 / elapsed_ms, term_attempts(),
               (alloc_buffer_waste() + undo_waste()) * HeapWordSize / K,
               alloc_buffer_waste() * HeapWordSize / K,
               undo_waste() * HeapWordSize / K);
}

4477 4478 4479 4480 4481 4482 4483 4484 4485 4486 4487 4488 4489 4490 4491 4492 4493 4494 4495 4496 4497 4498 4499 4500 4501 4502 4503 4504 4505 4506 4507 4508 4509 4510 4511 4512 4513 4514 4515 4516 4517 4518 4519 4520 4521 4522 4523 4524
#ifdef ASSERT
bool G1ParScanThreadState::verify_ref(narrowOop* ref) const {
  assert(ref != NULL, "invariant");
  assert(UseCompressedOops, "sanity");
  assert(!has_partial_array_mask(ref), err_msg("ref=" PTR_FORMAT, ref));
  oop p = oopDesc::load_decode_heap_oop(ref);
  assert(_g1h->is_in_g1_reserved(p),
         err_msg("ref=" PTR_FORMAT " p=" PTR_FORMAT, ref, intptr_t(p)));
  return true;
}

bool G1ParScanThreadState::verify_ref(oop* ref) const {
  assert(ref != NULL, "invariant");
  if (has_partial_array_mask(ref)) {
    // Must be in the collection set--it's already been copied.
    oop p = clear_partial_array_mask(ref);
    assert(_g1h->obj_in_cs(p),
           err_msg("ref=" PTR_FORMAT " p=" PTR_FORMAT, ref, intptr_t(p)));
  } else {
    oop p = oopDesc::load_decode_heap_oop(ref);
    assert(_g1h->is_in_g1_reserved(p),
           err_msg("ref=" PTR_FORMAT " p=" PTR_FORMAT, ref, intptr_t(p)));
  }
  return true;
}

bool G1ParScanThreadState::verify_task(StarTask ref) const {
  if (ref.is_narrow()) {
    return verify_ref((narrowOop*) ref);
  } else {
    return verify_ref((oop*) ref);
  }
}
#endif // ASSERT

void G1ParScanThreadState::trim_queue() {
  StarTask ref;
  do {
    // Drain the overflow stack first, so other threads can steal.
    while (refs()->pop_overflow(ref)) {
      deal_with_reference(ref);
    }
    while (refs()->pop_local(ref)) {
      deal_with_reference(ref);
    }
  } while (!refs()->is_empty());
}

4525 4526 4527 4528
G1ParClosureSuper::G1ParClosureSuper(G1CollectedHeap* g1, G1ParScanThreadState* par_scan_state) :
  _g1(g1), _g1_rem(_g1->g1_rem_set()), _cm(_g1->concurrent_mark()),
  _par_scan_state(par_scan_state) { }

4529
template <class T> void G1ParCopyHelper::mark_forwardee(T* p) {
4530 4531 4532 4533
  // This is called _after_ do_oop_work has been called, hence after
  // the object has been relocated to its new location and *p points
  // to its new location.

4534 4535 4536 4537
  T heap_oop = oopDesc::load_heap_oop(p);
  if (!oopDesc::is_null(heap_oop)) {
    oop obj = oopDesc::decode_heap_oop(heap_oop);
    HeapWord* addr = (HeapWord*)obj;
4538
    if (_g1->is_in_g1_reserved(addr)) {
4539
      _cm->grayRoot(oop(addr));
4540
    }
4541 4542 4543 4544 4545 4546 4547 4548 4549 4550 4551 4552
  }
}

oop G1ParCopyHelper::copy_to_survivor_space(oop old) {
  size_t    word_sz = old->size();
  HeapRegion* from_region = _g1->heap_region_containing_raw(old);
  // +1 to make the -1 indexes valid...
  int       young_index = from_region->young_index_in_cset()+1;
  assert( (from_region->is_young() && young_index > 0) ||
          (!from_region->is_young() && young_index == 0), "invariant" );
  G1CollectorPolicy* g1p = _g1->g1_policy();
  markOop m = old->mark();
4553 4554 4555
  int age = m->has_displaced_mark_helper() ? m->displaced_mark_helper()->age()
                                           : m->age();
  GCAllocPurpose alloc_purpose = g1p->evacuation_destination(from_region, age,
4556 4557 4558 4559 4560 4561 4562 4563 4564 4565 4566
                                                             word_sz);
  HeapWord* obj_ptr = _par_scan_state->allocate(alloc_purpose, word_sz);
  oop       obj     = oop(obj_ptr);

  if (obj_ptr == NULL) {
    // This will either forward-to-self, or detect that someone else has
    // installed a forwarding pointer.
    OopsInHeapRegionClosure* cl = _par_scan_state->evac_failure_closure();
    return _g1->handle_evacuation_failure_par(cl, old);
  }

4567 4568 4569
  // We're going to allocate linearly, so might as well prefetch ahead.
  Prefetch::write(obj_ptr, PrefetchCopyIntervalInBytes);

4570 4571 4572 4573
  oop forward_ptr = old->forward_to_atomic(obj);
  if (forward_ptr == NULL) {
    Copy::aligned_disjoint_words((HeapWord*) old, obj_ptr, word_sz);
    if (g1p->track_object_age(alloc_purpose)) {
4574 4575 4576 4577 4578 4579 4580 4581 4582 4583 4584 4585 4586 4587 4588 4589 4590 4591 4592
      // We could simply do obj->incr_age(). However, this causes a
      // performance issue. obj->incr_age() will first check whether
      // the object has a displaced mark by checking its mark word;
      // getting the mark word from the new location of the object
      // stalls. So, given that we already have the mark word and we
      // are about to install it anyway, it's better to increase the
      // age on the mark word, when the object does not have a
      // displaced mark word. We're not expecting many objects to have
      // a displaced marked word, so that case is not optimized
      // further (it could be...) and we simply call obj->incr_age().

      if (m->has_displaced_mark_helper()) {
        // in this case, we have to install the mark word first,
        // otherwise obj looks to be forwarded (the old mark word,
        // which contains the forward pointer, was copied)
        obj->set_mark(m);
        obj->incr_age();
      } else {
        m = m->incr_age();
4593
        obj->set_mark(m);
4594
      }
4595 4596 4597
      _par_scan_state->age_table()->add(obj, word_sz);
    } else {
      obj->set_mark(m);
4598
    }
4599

4600 4601 4602 4603 4604 4605 4606 4607 4608 4609 4610 4611 4612 4613 4614 4615 4616 4617 4618 4619 4620
    // preserve "next" mark bit
    if (_g1->mark_in_progress() && !_g1->is_obj_ill(old)) {
      if (!use_local_bitmaps ||
          !_par_scan_state->alloc_buffer(alloc_purpose)->mark(obj_ptr)) {
        // if we couldn't mark it on the local bitmap (this happens when
        // the object was not allocated in the GCLab), we have to bite
        // the bullet and do the standard parallel mark
        _cm->markAndGrayObjectIfNecessary(obj);
      }
#if 1
      if (_g1->isMarkedNext(old)) {
        _cm->nextMarkBitMap()->parClear((HeapWord*)old);
      }
#endif
    }

    size_t* surv_young_words = _par_scan_state->surviving_young_words();
    surv_young_words[young_index] += word_sz;

    if (obj->is_objArray() && arrayOop(obj)->length() >= ParGCArrayScanChunk) {
      arrayOop(old)->set_length(0);
4621 4622
      oop* old_p = set_partial_array_mask(old);
      _par_scan_state->push_on_queue(old_p);
4623
    } else {
4624 4625 4626
      // No point in using the slower heap_region_containing() method,
      // given that we know obj is in the heap.
      _scanner->set_region(_g1->heap_region_containing_raw(obj));
4627 4628 4629 4630 4631 4632 4633 4634 4635
      obj->oop_iterate_backwards(_scanner);
    }
  } else {
    _par_scan_state->undo_allocation(alloc_purpose, obj_ptr, word_sz);
    obj = forward_ptr;
  }
  return obj;
}

4636
template <bool do_gen_barrier, G1Barrier barrier, bool do_mark_forwardee>
4637
template <class T>
4638
void G1ParCopyClosure <do_gen_barrier, barrier, do_mark_forwardee>
4639 4640
::do_oop_work(T* p) {
  oop obj = oopDesc::load_decode_heap_oop(p);
4641 4642 4643
  assert(barrier != G1BarrierRS || obj != NULL,
         "Precondition: G1BarrierRS implies obj is nonNull");

4644
  // here the null check is implicit in the cset_fast_test() test
4645
  if (_g1->in_cset_fast_test(obj)) {
4646
    if (obj->is_forwarded()) {
4647
      oopDesc::encode_store_heap_oop(p, obj->forwardee());
4648
    } else {
4649 4650
      oop copy_oop = copy_to_survivor_space(obj);
      oopDesc::encode_store_heap_oop(p, copy_oop);
4651
    }
4652 4653
    // When scanning the RS, we only care about objs in CS.
    if (barrier == G1BarrierRS) {
4654
      _par_scan_state->update_rs(_from, p, _par_scan_state->queue_num());
4655
    }
4656
  }
4657

4658
  if (barrier == G1BarrierEvac && obj != NULL) {
4659
    _par_scan_state->update_rs(_from, p, _par_scan_state->queue_num());
4660 4661 4662 4663
  }

  if (do_gen_barrier && obj != NULL) {
    par_do_barrier(p);
4664 4665 4666
  }
}

4667 4668
template void G1ParCopyClosure<false, G1BarrierEvac, false>::do_oop_work(oop* p);
template void G1ParCopyClosure<false, G1BarrierEvac, false>::do_oop_work(narrowOop* p);
4669

4670
template <class T> void G1ParScanPartialArrayClosure::do_oop_nv(T* p) {
4671 4672
  assert(has_partial_array_mask(p), "invariant");
  oop old = clear_partial_array_mask(p);
4673 4674 4675 4676 4677 4678 4679 4680 4681 4682 4683 4684 4685 4686 4687 4688 4689
  assert(old->is_objArray(), "must be obj array");
  assert(old->is_forwarded(), "must be forwarded");
  assert(Universe::heap()->is_in_reserved(old), "must be in heap.");

  objArrayOop obj = objArrayOop(old->forwardee());
  assert((void*)old != (void*)old->forwardee(), "self forwarding here?");
  // Process ParGCArrayScanChunk elements now
  // and push the remainder back onto queue
  int start     = arrayOop(old)->length();
  int end       = obj->length();
  int remainder = end - start;
  assert(start <= end, "just checking");
  if (remainder > 2 * ParGCArrayScanChunk) {
    // Test above combines last partial chunk with a full chunk
    end = start + ParGCArrayScanChunk;
    arrayOop(old)->set_length(end);
    // Push remainder.
4690 4691 4692
    oop* old_p = set_partial_array_mask(old);
    assert(arrayOop(old)->length() < obj->length(), "Empty push?");
    _par_scan_state->push_on_queue(old_p);
4693 4694 4695 4696 4697
  } else {
    // Restore length so that the heap remains parsable in
    // case of evacuation failure.
    arrayOop(old)->set_length(end);
  }
4698
  _scanner.set_region(_g1->heap_region_containing_raw(obj));
4699
  // process our set of indices (include header in first chunk)
4700
  obj->oop_iterate_range(&_scanner, start, end);
4701 4702 4703 4704 4705 4706 4707 4708 4709 4710 4711 4712 4713 4714 4715 4716 4717 4718 4719 4720 4721
}

class G1ParEvacuateFollowersClosure : public VoidClosure {
protected:
  G1CollectedHeap*              _g1h;
  G1ParScanThreadState*         _par_scan_state;
  RefToScanQueueSet*            _queues;
  ParallelTaskTerminator*       _terminator;

  G1ParScanThreadState*   par_scan_state() { return _par_scan_state; }
  RefToScanQueueSet*      queues()         { return _queues; }
  ParallelTaskTerminator* terminator()     { return _terminator; }

public:
  G1ParEvacuateFollowersClosure(G1CollectedHeap* g1h,
                                G1ParScanThreadState* par_scan_state,
                                RefToScanQueueSet* queues,
                                ParallelTaskTerminator* terminator)
    : _g1h(g1h), _par_scan_state(par_scan_state),
      _queues(queues), _terminator(terminator) {}

4722
  void do_void();
4723

4724 4725 4726 4727 4728 4729 4730 4731 4732 4733 4734 4735 4736 4737 4738 4739 4740 4741 4742 4743 4744
private:
  inline bool offer_termination();
};

bool G1ParEvacuateFollowersClosure::offer_termination() {
  G1ParScanThreadState* const pss = par_scan_state();
  pss->start_term_time();
  const bool res = terminator()->offer_termination();
  pss->end_term_time();
  return res;
}

void G1ParEvacuateFollowersClosure::do_void() {
  StarTask stolen_task;
  G1ParScanThreadState* const pss = par_scan_state();
  pss->trim_queue();

  do {
    while (queues()->steal(pss->queue_num(), pss->hash_seed(), stolen_task)) {
      assert(pss->verify_task(stolen_task), "sanity");
      if (stolen_task.is_narrow()) {
4745
        pss->deal_with_reference((narrowOop*) stolen_task);
4746
      } else {
4747
        pss->deal_with_reference((oop*) stolen_task);
4748
      }
4749 4750 4751 4752

      // We've just processed a reference and we might have made
      // available new entries on the queues. So we have to make sure
      // we drain the queues as necessary.
4753
      pss->trim_queue();
4754
    }
4755 4756 4757 4758
  } while (!offer_termination());

  pss->retire_alloc_buffers();
}
4759 4760 4761 4762 4763 4764

class G1ParTask : public AbstractGangTask {
protected:
  G1CollectedHeap*       _g1h;
  RefToScanQueueSet      *_queues;
  ParallelTaskTerminator _terminator;
4765
  int _n_workers;
4766 4767 4768 4769 4770 4771 4772 4773 4774 4775 4776 4777 4778 4779 4780

  Mutex _stats_lock;
  Mutex* stats_lock() { return &_stats_lock; }

  size_t getNCards() {
    return (_g1h->capacity() + G1BlockOffsetSharedArray::N_bytes - 1)
      / G1BlockOffsetSharedArray::N_bytes;
  }

public:
  G1ParTask(G1CollectedHeap* g1h, int workers, RefToScanQueueSet *task_queues)
    : AbstractGangTask("G1 collection"),
      _g1h(g1h),
      _queues(task_queues),
      _terminator(workers, _queues),
4781 4782
      _stats_lock(Mutex::leaf, "parallel G1 stats lock", true),
      _n_workers(workers)
4783 4784 4785 4786 4787 4788 4789 4790 4791
  {}

  RefToScanQueueSet* queues() { return _queues; }

  RefToScanQueue *work_queue(int i) {
    return queues()->queue(i);
  }

  void work(int i) {
4792
    if (i >= _n_workers) return;  // no work needed this round
4793 4794 4795 4796

    double start_time_ms = os::elapsedTime() * 1000.0;
    _g1h->g1_policy()->record_gc_worker_start_time(i, start_time_ms);

4797 4798 4799
    ResourceMark rm;
    HandleMark   hm;

4800 4801 4802 4803
    G1ParScanThreadState            pss(_g1h, i);
    G1ParScanHeapEvacClosure        scan_evac_cl(_g1h, &pss);
    G1ParScanHeapEvacFailureClosure evac_failure_cl(_g1h, &pss);
    G1ParScanPartialArrayClosure    partial_scan_cl(_g1h, &pss);
4804 4805 4806 4807 4808 4809 4810 4811

    pss.set_evac_closure(&scan_evac_cl);
    pss.set_evac_failure_closure(&evac_failure_cl);
    pss.set_partial_scan_closure(&partial_scan_cl);

    G1ParScanExtRootClosure         only_scan_root_cl(_g1h, &pss);
    G1ParScanPermClosure            only_scan_perm_cl(_g1h, &pss);
    G1ParScanHeapRSClosure          only_scan_heap_rs_cl(_g1h, &pss);
4812
    G1ParPushHeapRSClosure          push_heap_rs_cl(_g1h, &pss);
4813

4814 4815 4816 4817 4818 4819 4820
    G1ParScanAndMarkExtRootClosure  scan_mark_root_cl(_g1h, &pss);
    G1ParScanAndMarkPermClosure     scan_mark_perm_cl(_g1h, &pss);
    G1ParScanAndMarkHeapRSClosure   scan_mark_heap_rs_cl(_g1h, &pss);

    OopsInHeapRegionClosure        *scan_root_cl;
    OopsInHeapRegionClosure        *scan_perm_cl;

4821
    if (_g1h->g1_policy()->during_initial_mark_pause()) {
4822 4823 4824 4825 4826 4827 4828 4829 4830 4831 4832
      scan_root_cl = &scan_mark_root_cl;
      scan_perm_cl = &scan_mark_perm_cl;
    } else {
      scan_root_cl = &only_scan_root_cl;
      scan_perm_cl = &only_scan_perm_cl;
    }

    pss.start_strong_roots();
    _g1h->g1_process_strong_roots(/* not collecting perm */ false,
                                  SharedHeap::SO_AllClasses,
                                  scan_root_cl,
4833
                                  &push_heap_rs_cl,
4834 4835 4836 4837 4838 4839 4840 4841 4842 4843
                                  scan_perm_cl,
                                  i);
    pss.end_strong_roots();
    {
      double start = os::elapsedTime();
      G1ParEvacuateFollowersClosure evac(_g1h, &pss, _queues, &_terminator);
      evac.do_void();
      double elapsed_ms = (os::elapsedTime()-start)*1000.0;
      double term_ms = pss.term_time()*1000.0;
      _g1h->g1_policy()->record_obj_copy_time(i, elapsed_ms-term_ms);
4844
      _g1h->g1_policy()->record_termination(i, term_ms, pss.term_attempts());
4845
    }
4846
    _g1h->g1_policy()->record_thread_age_table(pss.age_table());
4847 4848 4849 4850 4851 4852
    _g1h->update_surviving_young_words(pss.surviving_young_words()+1);

    // Clean up any par-expanded rem sets.
    HeapRegionRemSet::par_cleanup();

    if (ParallelGCVerbose) {
4853 4854
      MutexLocker x(stats_lock());
      pss.print_termination_stats(i);
4855 4856
    }

4857
    assert(pss.refs()->is_empty(), "should be empty");
4858 4859
    double end_time_ms = os::elapsedTime() * 1000.0;
    _g1h->g1_policy()->record_gc_worker_end_time(i, end_time_ms);
4860 4861 4862 4863 4864
  }
};

// *** Common G1 Evacuation Stuff

4865 4866
// This method is run in a GC worker.

4867 4868 4869 4870 4871 4872 4873 4874 4875 4876 4877 4878 4879 4880 4881 4882
void
G1CollectedHeap::
g1_process_strong_roots(bool collecting_perm_gen,
                        SharedHeap::ScanningOption so,
                        OopClosure* scan_non_heap_roots,
                        OopsInHeapRegionClosure* scan_rs,
                        OopsInGenClosure* scan_perm,
                        int worker_i) {
  // First scan the strong roots, including the perm gen.
  double ext_roots_start = os::elapsedTime();
  double closure_app_time_sec = 0.0;

  BufferingOopClosure buf_scan_non_heap_roots(scan_non_heap_roots);
  BufferingOopsInGenClosure buf_scan_perm(scan_perm);
  buf_scan_perm.set_generation(perm_gen());

4883 4884 4885 4886 4887 4888
  // Walk the code cache w/o buffering, because StarTask cannot handle
  // unaligned oop locations.
  CodeBlobToOopClosure eager_scan_code_roots(scan_non_heap_roots, /*do_marking=*/ true);

  process_strong_roots(false, // no scoping; this is parallel code
                       collecting_perm_gen, so,
4889
                       &buf_scan_non_heap_roots,
4890
                       &eager_scan_code_roots,
4891
                       &buf_scan_perm);
4892

4893 4894 4895 4896 4897 4898 4899 4900 4901 4902 4903 4904 4905 4906 4907 4908 4909 4910 4911 4912 4913 4914 4915 4916 4917 4918 4919 4920
  // Finish up any enqueued closure apps.
  buf_scan_non_heap_roots.done();
  buf_scan_perm.done();
  double ext_roots_end = os::elapsedTime();
  g1_policy()->reset_obj_copy_time(worker_i);
  double obj_copy_time_sec =
    buf_scan_non_heap_roots.closure_app_seconds() +
    buf_scan_perm.closure_app_seconds();
  g1_policy()->record_obj_copy_time(worker_i, obj_copy_time_sec * 1000.0);
  double ext_root_time_ms =
    ((ext_roots_end - ext_roots_start) - obj_copy_time_sec) * 1000.0;
  g1_policy()->record_ext_root_scan_time(worker_i, ext_root_time_ms);

  // Scan strong roots in mark stack.
  if (!_process_strong_tasks->is_task_claimed(G1H_PS_mark_stack_oops_do)) {
    concurrent_mark()->oops_do(scan_non_heap_roots);
  }
  double mark_stack_scan_ms = (os::elapsedTime() - ext_roots_end) * 1000.0;
  g1_policy()->record_mark_stack_scan_time(worker_i, mark_stack_scan_ms);

  // XXX What should this be doing in the parallel case?
  g1_policy()->record_collection_pause_end_CH_strong_roots();
  // Now scan the complement of the collection set.
  if (scan_rs != NULL) {
    g1_rem_set()->oops_into_collection_set_do(scan_rs, worker_i);
  }
  // Finish with the ref_processor roots.
  if (!_process_strong_tasks->is_task_claimed(G1H_PS_refProcessor_oops_do)) {
4921 4922 4923 4924
    // We need to treat the discovered reference lists as roots and
    // keep entries (which are added by the marking threads) on them
    // live until they can be processed at the end of marking.
    ref_processor()->weak_oops_do(scan_non_heap_roots);
4925 4926 4927 4928 4929 4930 4931 4932 4933
    ref_processor()->oops_do(scan_non_heap_roots);
  }
  g1_policy()->record_collection_pause_end_G1_strong_roots();
  _process_strong_tasks->all_tasks_completed();
}

void
G1CollectedHeap::g1_process_weak_roots(OopClosure* root_closure,
                                       OopClosure* non_root_closure) {
4934 4935
  CodeBlobToOopClosure roots_in_blobs(root_closure, /*do_marking=*/ false);
  SharedHeap::process_weak_roots(root_closure, &roots_in_blobs, non_root_closure);
4936 4937 4938 4939 4940 4941 4942 4943 4944 4945 4946 4947
}


class SaveMarksClosure: public HeapRegionClosure {
public:
  bool doHeapRegion(HeapRegion* r) {
    r->save_marks();
    return false;
  }
};

void G1CollectedHeap::save_marks() {
4948
  if (!CollectedHeap::use_parallel_gc_threads()) {
4949 4950 4951 4952 4953 4954 4955 4956 4957 4958 4959 4960
    SaveMarksClosure sm;
    heap_region_iterate(&sm);
  }
  // We do this even in the parallel case
  perm_gen()->save_marks();
}

void G1CollectedHeap::evacuate_collection_set() {
  set_evacuation_failed(false);

  g1_rem_set()->prepare_for_oops_into_collection_set_do();
  concurrent_g1_refine()->set_use_cache(false);
4961 4962
  concurrent_g1_refine()->clear_hot_cache_claimed_index();

4963 4964 4965 4966 4967 4968 4969 4970
  int n_workers = (ParallelGCThreads > 0 ? workers()->total_workers() : 1);
  set_par_threads(n_workers);
  G1ParTask g1_par_task(this, n_workers, _task_queues);

  init_for_evac_failure(NULL);

  rem_set()->prepare_for_younger_refs_iterate(true);

4971 4972
  assert(dirty_card_queue_set().completed_buffers_num() == 0, "Should be empty");
  double start_par = os::elapsedTime();
4973
  if (G1CollectedHeap::use_parallel_gc_threads()) {
4974
    // The individual threads will set their evac-failure closures.
4975
    StrongRootsScope srs(this);
4976
    if (ParallelGCVerbose) G1ParScanThreadState::print_termination_stats_hdr();
4977 4978
    workers()->run_task(&g1_par_task);
  } else {
4979
    StrongRootsScope srs(this);
4980 4981 4982 4983 4984 4985 4986 4987 4988
    g1_par_task.work(0);
  }

  double par_time = (os::elapsedTime() - start_par) * 1000.0;
  g1_policy()->record_par_time(par_time);
  set_par_threads(0);
  // Is this the right thing to do here?  We don't save marks
  // on individual heap regions when we allocate from
  // them in parallel, so this seems like the correct place for this.
4989
  retire_all_alloc_regions();
4990 4991 4992 4993 4994

  // Weak root processing.
  // Note: when JSR 292 is enabled and code blobs can contain
  // non-perm oops then we will need to process the code blobs
  // here too.
4995 4996 4997 4998 4999
  {
    G1IsAliveClosure is_alive(this);
    G1KeepAliveClosure keep_alive(this);
    JNIHandles::weak_oops_do(&is_alive, &keep_alive);
  }
5000
  release_gc_alloc_regions(false /* totally */);
5001
  g1_rem_set()->cleanup_after_oops_into_collection_set_do();
5002

5003
  concurrent_g1_refine()->clear_hot_cache();
5004 5005 5006 5007 5008 5009 5010 5011 5012 5013 5014
  concurrent_g1_refine()->set_use_cache(true);

  finalize_for_evac_failure();

  // Must do this before removing self-forwarding pointers, which clears
  // the per-region evac-failure flags.
  concurrent_mark()->complete_marking_in_collection_set();

  if (evacuation_failed()) {
    remove_self_forwarding_pointers();
    if (PrintGCDetails) {
5015
      gclog_or_tty->print(" (to-space overflow)");
5016 5017 5018 5019 5020
    } else if (PrintGC) {
      gclog_or_tty->print("--");
    }
  }

5021 5022 5023 5024
  if (G1DeferredRSUpdate) {
    RedirtyLoggedCardTableEntryFastClosure redirty;
    dirty_card_queue_set().set_closure(&redirty);
    dirty_card_queue_set().apply_closure_to_all_completed_buffers();
5025 5026 5027

    DirtyCardQueueSet& dcq = JavaThread::dirty_card_queue_set();
    dcq.merge_bufferlists(&dirty_card_queue_set());
5028 5029
    assert(dirty_card_queue_set().completed_buffers_num() == 0, "All should be consumed");
  }
5030 5031 5032
  COMPILER2_PRESENT(DerivedPointerTable::update_pointers());
}

T
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5033
void G1CollectedHeap::free_region_if_empty(HeapRegion* hr,
5034 5035 5036
                                     size_t* pre_used,
                                     FreeRegionList* free_list,
                                     HumongousRegionSet* humongous_proxy_set,
T
tonyp 已提交
5037
                                     HRRSCleanupTask* hrrs_cleanup_task,
5038 5039 5040 5041 5042 5043 5044 5045
                                     bool par) {
  if (hr->used() > 0 && hr->max_live_bytes() == 0 && !hr->is_young()) {
    if (hr->isHumongous()) {
      assert(hr->startsHumongous(), "we should only see starts humongous");
      free_humongous_region(hr, pre_used, free_list, humongous_proxy_set, par);
    } else {
      free_region(hr, pre_used, free_list, par);
    }
T
tonyp 已提交
5046 5047
  } else {
    hr->rem_set()->do_cleanup_work(hrrs_cleanup_task);
5048 5049 5050
  }
}

5051 5052 5053
void G1CollectedHeap::free_region(HeapRegion* hr,
                                  size_t* pre_used,
                                  FreeRegionList* free_list,
5054
                                  bool par) {
5055 5056 5057 5058 5059 5060
  assert(!hr->isHumongous(), "this is only for non-humongous regions");
  assert(!hr->is_empty(), "the region should not be empty");
  assert(free_list != NULL, "pre-condition");

  *pre_used += hr->used();
  hr->hr_clear(par, true /* clear_space */);
5061
  free_list->add_as_head(hr);
5062 5063 5064 5065 5066 5067 5068 5069 5070 5071 5072 5073 5074 5075 5076 5077 5078 5079
}

void G1CollectedHeap::free_humongous_region(HeapRegion* hr,
                                     size_t* pre_used,
                                     FreeRegionList* free_list,
                                     HumongousRegionSet* humongous_proxy_set,
                                     bool par) {
  assert(hr->startsHumongous(), "this is only for starts humongous regions");
  assert(free_list != NULL, "pre-condition");
  assert(humongous_proxy_set != NULL, "pre-condition");

  size_t hr_used = hr->used();
  size_t hr_capacity = hr->capacity();
  size_t hr_pre_used = 0;
  _humongous_set.remove_with_proxy(hr, humongous_proxy_set);
  hr->set_notHumongous();
  free_region(hr, &hr_pre_used, free_list, par);

5080
  size_t i = hr->hrs_index() + 1;
5081
  size_t num = 1;
5082 5083
  while (i < n_regions()) {
    HeapRegion* curr_hr = region_at(i);
5084 5085
    if (!curr_hr->continuesHumongous()) {
      break;
5086
    }
5087 5088 5089 5090 5091 5092 5093 5094 5095 5096 5097 5098 5099 5100 5101 5102 5103
    curr_hr->set_notHumongous();
    free_region(curr_hr, &hr_pre_used, free_list, par);
    num += 1;
    i += 1;
  }
  assert(hr_pre_used == hr_used,
         err_msg("hr_pre_used: "SIZE_FORMAT" and hr_used: "SIZE_FORMAT" "
                 "should be the same", hr_pre_used, hr_used));
  *pre_used += hr_pre_used;
}

void G1CollectedHeap::update_sets_after_freeing_regions(size_t pre_used,
                                       FreeRegionList* free_list,
                                       HumongousRegionSet* humongous_proxy_set,
                                       bool par) {
  if (pre_used > 0) {
    Mutex* lock = (par) ? ParGCRareEvent_lock : NULL;
5104
    MutexLockerEx x(lock, Mutex::_no_safepoint_check_flag);
5105 5106 5107 5108
    assert(_summary_bytes_used >= pre_used,
           err_msg("invariant: _summary_bytes_used: "SIZE_FORMAT" "
                   "should be >= pre_used: "SIZE_FORMAT,
                   _summary_bytes_used, pre_used));
5109
    _summary_bytes_used -= pre_used;
5110 5111 5112
  }
  if (free_list != NULL && !free_list->is_empty()) {
    MutexLockerEx x(FreeList_lock, Mutex::_no_safepoint_check_flag);
5113
    _free_list.add_as_head(free_list);
5114 5115 5116 5117
  }
  if (humongous_proxy_set != NULL && !humongous_proxy_set->is_empty()) {
    MutexLockerEx x(OldSets_lock, Mutex::_no_safepoint_check_flag);
    _humongous_set.update_from_proxy(humongous_proxy_set);
5118 5119 5120 5121 5122 5123 5124 5125 5126 5127 5128 5129 5130 5131 5132 5133
  }
}

void G1CollectedHeap::dirtyCardsForYoungRegions(CardTableModRefBS* ct_bs, HeapRegion* list) {
  while (list != NULL) {
    guarantee( list->is_young(), "invariant" );

    HeapWord* bottom = list->bottom();
    HeapWord* end = list->end();
    MemRegion mr(bottom, end);
    ct_bs->dirty(mr);

    list = list->get_next_young_region();
  }
}

5134 5135 5136 5137

class G1ParCleanupCTTask : public AbstractGangTask {
  CardTableModRefBS* _ct_bs;
  G1CollectedHeap* _g1h;
5138
  HeapRegion* volatile _su_head;
5139 5140
public:
  G1ParCleanupCTTask(CardTableModRefBS* ct_bs,
5141 5142
                     G1CollectedHeap* g1h,
                     HeapRegion* survivor_list) :
5143 5144
    AbstractGangTask("G1 Par Cleanup CT Task"),
    _ct_bs(ct_bs),
5145 5146
    _g1h(g1h),
    _su_head(survivor_list)
5147 5148 5149 5150 5151 5152 5153
  { }

  void work(int i) {
    HeapRegion* r;
    while (r = _g1h->pop_dirty_cards_region()) {
      clear_cards(r);
    }
5154
    // Redirty the cards of the survivor regions.
5155
    dirty_list(&this->_su_head);
5156
  }
5157

5158
  void clear_cards(HeapRegion* r) {
5159 5160
    // Cards for Survivor regions will be dirtied later.
    if (!r->is_survivor()) {
5161 5162 5163
      _ct_bs->clear(MemRegion(r->bottom(), r->end()));
    }
  }
5164 5165 5166 5167 5168 5169 5170 5171 5172 5173 5174 5175 5176 5177 5178 5179

  void dirty_list(HeapRegion* volatile * head_ptr) {
    HeapRegion* head;
    do {
      // Pop region off the list.
      head = *head_ptr;
      if (head != NULL) {
        HeapRegion* r = (HeapRegion*)
          Atomic::cmpxchg_ptr(head->get_next_young_region(), head_ptr, head);
        if (r == head) {
          assert(!r->isHumongous(), "Humongous regions shouldn't be on survivor list");
          _ct_bs->dirty(MemRegion(r->bottom(), r->end()));
        }
      }
    } while (*head_ptr != NULL);
  }
5180 5181 5182
};


5183 5184
#ifndef PRODUCT
class G1VerifyCardTableCleanup: public HeapRegionClosure {
5185
  G1CollectedHeap* _g1h;
5186 5187
  CardTableModRefBS* _ct_bs;
public:
5188 5189
  G1VerifyCardTableCleanup(G1CollectedHeap* g1h, CardTableModRefBS* ct_bs)
    : _g1h(g1h), _ct_bs(ct_bs) { }
5190
  virtual bool doHeapRegion(HeapRegion* r) {
5191
    if (r->is_survivor()) {
5192
      _g1h->verify_dirty_region(r);
5193
    } else {
5194
      _g1h->verify_not_dirty_region(r);
5195 5196 5197 5198
    }
    return false;
  }
};
5199

5200 5201 5202 5203 5204 5205 5206 5207 5208 5209 5210 5211 5212 5213 5214 5215 5216 5217 5218 5219
void G1CollectedHeap::verify_not_dirty_region(HeapRegion* hr) {
  // All of the region should be clean.
  CardTableModRefBS* ct_bs = (CardTableModRefBS*)barrier_set();
  MemRegion mr(hr->bottom(), hr->end());
  ct_bs->verify_not_dirty_region(mr);
}

void G1CollectedHeap::verify_dirty_region(HeapRegion* hr) {
  // We cannot guarantee that [bottom(),end()] is dirty.  Threads
  // dirty allocated blocks as they allocate them. The thread that
  // retires each region and replaces it with a new one will do a
  // maximal allocation to fill in [pre_dummy_top(),end()] but will
  // not dirty that area (one less thing to have to do while holding
  // a lock). So we can only verify that [bottom(),pre_dummy_top()]
  // is dirty.
  CardTableModRefBS* ct_bs = (CardTableModRefBS*) barrier_set();
  MemRegion mr(hr->bottom(), hr->pre_dummy_top());
  ct_bs->verify_dirty_region(mr);
}

5220
void G1CollectedHeap::verify_dirty_young_list(HeapRegion* head) {
5221
  CardTableModRefBS* ct_bs = (CardTableModRefBS*) barrier_set();
5222
  for (HeapRegion* hr = head; hr != NULL; hr = hr->get_next_young_region()) {
5223
    verify_dirty_region(hr);
5224 5225 5226 5227 5228 5229 5230
  }
}

void G1CollectedHeap::verify_dirty_young_regions() {
  verify_dirty_young_list(_young_list->first_region());
  verify_dirty_young_list(_young_list->first_survivor_region());
}
5231 5232
#endif

5233 5234 5235 5236
void G1CollectedHeap::cleanUpCardTable() {
  CardTableModRefBS* ct_bs = (CardTableModRefBS*) (barrier_set());
  double start = os::elapsedTime();

5237
  // Iterate over the dirty cards region list.
5238 5239
  G1ParCleanupCTTask cleanup_task(ct_bs, this,
                                  _young_list->first_survivor_region());
5240

5241 5242 5243 5244 5245 5246 5247 5248 5249 5250 5251 5252 5253 5254 5255
  if (ParallelGCThreads > 0) {
    set_par_threads(workers()->total_workers());
    workers()->run_task(&cleanup_task);
    set_par_threads(0);
  } else {
    while (_dirty_cards_region_list) {
      HeapRegion* r = _dirty_cards_region_list;
      cleanup_task.clear_cards(r);
      _dirty_cards_region_list = r->get_next_dirty_cards_region();
      if (_dirty_cards_region_list == r) {
        // The last region.
        _dirty_cards_region_list = NULL;
      }
      r->set_next_dirty_cards_region(NULL);
    }
5256
    // now, redirty the cards of the survivor regions
5257 5258 5259
    // (it seemed faster to do it this way, instead of iterating over
    // all regions and then clearing / dirtying as appropriate)
    dirtyCardsForYoungRegions(ct_bs, _young_list->first_survivor_region());
5260
  }
5261

5262 5263
  double elapsed = os::elapsedTime() - start;
  g1_policy()->record_clear_ct_time( elapsed * 1000.0);
5264 5265
#ifndef PRODUCT
  if (G1VerifyCTCleanup || VerifyAfterGC) {
5266
    G1VerifyCardTableCleanup cleanup_verifier(this, ct_bs);
5267 5268 5269
    heap_region_iterate(&cleanup_verifier);
  }
#endif
5270 5271 5272
}

void G1CollectedHeap::free_collection_set(HeapRegion* cs_head) {
5273 5274 5275
  size_t pre_used = 0;
  FreeRegionList local_free_list("Local List for CSet Freeing");

5276 5277 5278
  double young_time_ms     = 0.0;
  double non_young_time_ms = 0.0;

5279 5280 5281 5282 5283
  // Since the collection set is a superset of the the young list,
  // all we need to do to clear the young list is clear its
  // head and length, and unlink any young regions in the code below
  _young_list->clear();

5284 5285 5286 5287 5288 5289 5290 5291 5292 5293
  G1CollectorPolicy* policy = g1_policy();

  double start_sec = os::elapsedTime();
  bool non_young = true;

  HeapRegion* cur = cs_head;
  int age_bound = -1;
  size_t rs_lengths = 0;

  while (cur != NULL) {
T
tonyp 已提交
5294
    assert(!is_on_master_free_list(cur), "sanity");
5295

5296 5297 5298 5299 5300 5301 5302 5303 5304 5305
    if (non_young) {
      if (cur->is_young()) {
        double end_sec = os::elapsedTime();
        double elapsed_ms = (end_sec - start_sec) * 1000.0;
        non_young_time_ms += elapsed_ms;

        start_sec = os::elapsedTime();
        non_young = false;
      }
    } else {
5306 5307 5308
      double end_sec = os::elapsedTime();
      double elapsed_ms = (end_sec - start_sec) * 1000.0;
      young_time_ms += elapsed_ms;
5309

5310 5311
      start_sec = os::elapsedTime();
      non_young = true;
5312 5313 5314 5315 5316 5317 5318 5319 5320 5321 5322 5323 5324 5325 5326
    }

    rs_lengths += cur->rem_set()->occupied();

    HeapRegion* next = cur->next_in_collection_set();
    assert(cur->in_collection_set(), "bad CS");
    cur->set_next_in_collection_set(NULL);
    cur->set_in_collection_set(false);

    if (cur->is_young()) {
      int index = cur->young_index_in_cset();
      guarantee( index != -1, "invariant" );
      guarantee( (size_t)index < policy->young_cset_length(), "invariant" );
      size_t words_survived = _surviving_young_words[index];
      cur->record_surv_words_in_group(words_survived);
5327 5328 5329 5330 5331 5332

      // At this point the we have 'popped' cur from the collection set
      // (linked via next_in_collection_set()) but it is still in the
      // young list (linked via next_young_region()). Clear the
      // _next_young_region field.
      cur->set_next_young_region(NULL);
5333 5334 5335 5336 5337 5338 5339 5340 5341 5342 5343
    } else {
      int index = cur->young_index_in_cset();
      guarantee( index == -1, "invariant" );
    }

    assert( (cur->is_young() && cur->young_index_in_cset() > -1) ||
            (!cur->is_young() && cur->young_index_in_cset() == -1),
            "invariant" );

    if (!cur->evacuation_failed()) {
      // And the region is empty.
5344 5345
      assert(!cur->is_empty(), "Should not have empty regions in a CS.");
      free_region(cur, &pre_used, &local_free_list, false /* par */);
5346 5347 5348 5349 5350 5351 5352 5353 5354 5355 5356 5357 5358 5359 5360 5361 5362 5363 5364 5365
    } else {
      cur->uninstall_surv_rate_group();
      if (cur->is_young())
        cur->set_young_index_in_cset(-1);
      cur->set_not_young();
      cur->set_evacuation_failed(false);
    }
    cur = next;
  }

  policy->record_max_rs_lengths(rs_lengths);
  policy->cset_regions_freed();

  double end_sec = os::elapsedTime();
  double elapsed_ms = (end_sec - start_sec) * 1000.0;
  if (non_young)
    non_young_time_ms += elapsed_ms;
  else
    young_time_ms += elapsed_ms;

5366 5367 5368
  update_sets_after_freeing_regions(pre_used, &local_free_list,
                                    NULL /* humongous_proxy_set */,
                                    false /* par */);
5369 5370 5371 5372
  policy->record_young_free_cset_time_ms(young_time_ms);
  policy->record_non_young_free_cset_time_ms(non_young_time_ms);
}

5373 5374 5375 5376 5377 5378 5379 5380 5381 5382 5383 5384 5385 5386 5387 5388 5389 5390 5391 5392 5393
// This routine is similar to the above but does not record
// any policy statistics or update free lists; we are abandoning
// the current incremental collection set in preparation of a
// full collection. After the full GC we will start to build up
// the incremental collection set again.
// This is only called when we're doing a full collection
// and is immediately followed by the tearing down of the young list.

void G1CollectedHeap::abandon_collection_set(HeapRegion* cs_head) {
  HeapRegion* cur = cs_head;

  while (cur != NULL) {
    HeapRegion* next = cur->next_in_collection_set();
    assert(cur->in_collection_set(), "bad CS");
    cur->set_next_in_collection_set(NULL);
    cur->set_in_collection_set(false);
    cur->set_young_index_in_cset(-1);
    cur = next;
  }
}

5394 5395 5396 5397
void G1CollectedHeap::set_free_regions_coming() {
  if (G1ConcRegionFreeingVerbose) {
    gclog_or_tty->print_cr("G1ConcRegionFreeing [cm thread] : "
                           "setting free regions coming");
5398 5399
  }

5400 5401
  assert(!free_regions_coming(), "pre-condition");
  _free_regions_coming = true;
5402 5403
}

5404 5405 5406 5407 5408 5409
void G1CollectedHeap::reset_free_regions_coming() {
  {
    assert(free_regions_coming(), "pre-condition");
    MutexLockerEx x(SecondaryFreeList_lock, Mutex::_no_safepoint_check_flag);
    _free_regions_coming = false;
    SecondaryFreeList_lock->notify_all();
5410 5411
  }

5412 5413 5414
  if (G1ConcRegionFreeingVerbose) {
    gclog_or_tty->print_cr("G1ConcRegionFreeing [cm thread] : "
                           "reset free regions coming");
5415 5416 5417
  }
}

5418 5419 5420 5421 5422
void G1CollectedHeap::wait_while_free_regions_coming() {
  // Most of the time we won't have to wait, so let's do a quick test
  // first before we take the lock.
  if (!free_regions_coming()) {
    return;
5423 5424
  }

5425 5426 5427
  if (G1ConcRegionFreeingVerbose) {
    gclog_or_tty->print_cr("G1ConcRegionFreeing [other] : "
                           "waiting for free regions");
5428 5429 5430
  }

  {
5431 5432 5433
    MutexLockerEx x(SecondaryFreeList_lock, Mutex::_no_safepoint_check_flag);
    while (free_regions_coming()) {
      SecondaryFreeList_lock->wait(Mutex::_no_safepoint_check_flag);
5434 5435 5436
    }
  }

5437 5438 5439
  if (G1ConcRegionFreeingVerbose) {
    gclog_or_tty->print_cr("G1ConcRegionFreeing [other] : "
                           "done waiting for free regions");
5440 5441 5442 5443 5444 5445 5446 5447 5448 5449 5450 5451 5452 5453 5454 5455 5456 5457 5458 5459 5460 5461 5462 5463 5464 5465
  }
}

void G1CollectedHeap::set_region_short_lived_locked(HeapRegion* hr) {
  assert(heap_lock_held_for_gc(),
              "the heap lock should already be held by or for this thread");
  _young_list->push_region(hr);
  g1_policy()->set_region_short_lived(hr);
}

class NoYoungRegionsClosure: public HeapRegionClosure {
private:
  bool _success;
public:
  NoYoungRegionsClosure() : _success(true) { }
  bool doHeapRegion(HeapRegion* r) {
    if (r->is_young()) {
      gclog_or_tty->print_cr("Region ["PTR_FORMAT", "PTR_FORMAT") tagged as young",
                             r->bottom(), r->end());
      _success = false;
    }
    return false;
  }
  bool success() { return _success; }
};

5466 5467
bool G1CollectedHeap::check_young_list_empty(bool check_heap, bool check_sample) {
  bool ret = _young_list->check_list_empty(check_sample);
5468

5469
  if (check_heap) {
5470 5471 5472 5473 5474 5475 5476 5477 5478 5479 5480 5481 5482 5483 5484 5485 5486 5487 5488 5489 5490 5491 5492 5493 5494
    NoYoungRegionsClosure closure;
    heap_region_iterate(&closure);
    ret = ret && closure.success();
  }

  return ret;
}

void G1CollectedHeap::empty_young_list() {
  assert(heap_lock_held_for_gc(),
              "the heap lock should already be held by or for this thread");
  assert(g1_policy()->in_young_gc_mode(), "should be in young GC mode");

  _young_list->empty_list();
}

bool G1CollectedHeap::all_alloc_regions_no_allocs_since_save_marks() {
  bool no_allocs = true;
  for (int ap = 0; ap < GCAllocPurposeCount && no_allocs; ++ap) {
    HeapRegion* r = _gc_alloc_regions[ap];
    no_allocs = r == NULL || r->saved_mark_at_top();
  }
  return no_allocs;
}

5495
void G1CollectedHeap::retire_all_alloc_regions() {
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  for (int ap = 0; ap < GCAllocPurposeCount; ++ap) {
    HeapRegion* r = _gc_alloc_regions[ap];
    if (r != NULL) {
      // Check for aliases.
      bool has_processed_alias = false;
      for (int i = 0; i < ap; ++i) {
        if (_gc_alloc_regions[i] == r) {
          has_processed_alias = true;
          break;
        }
      }
      if (!has_processed_alias) {
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        retire_alloc_region(r, false /* par */);
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      }
    }
  }
}

// Done at the start of full GC.
void G1CollectedHeap::tear_down_region_lists() {
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  _free_list.remove_all();
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}

class RegionResetter: public HeapRegionClosure {
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  G1CollectedHeap* _g1h;
  FreeRegionList _local_free_list;

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public:
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  RegionResetter() : _g1h(G1CollectedHeap::heap()),
                     _local_free_list("Local Free List for RegionResetter") { }

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  bool doHeapRegion(HeapRegion* r) {
    if (r->continuesHumongous()) return false;
    if (r->top() > r->bottom()) {
      if (r->top() < r->end()) {
        Copy::fill_to_words(r->top(),
                          pointer_delta(r->end(), r->top()));
      }
    } else {
      assert(r->is_empty(), "tautology");
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      _local_free_list.add_as_tail(r);
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    }
    return false;
  }

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  void update_free_lists() {
    _g1h->update_sets_after_freeing_regions(0, &_local_free_list, NULL,
                                            false /* par */);
  }
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};

// Done at the end of full GC.
void G1CollectedHeap::rebuild_region_lists() {
  // This needs to go at the end of the full GC.
  RegionResetter rs;
  heap_region_iterate(&rs);
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  rs.update_free_lists();
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}

void G1CollectedHeap::set_refine_cte_cl_concurrency(bool concurrent) {
  _refine_cte_cl->set_concurrent(concurrent);
}

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bool G1CollectedHeap::is_in_closed_subset(const void* p) const {
  HeapRegion* hr = heap_region_containing(p);
  if (hr == NULL) {
    return is_in_permanent(p);
  } else {
    return hr->is_in(p);
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  }
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}

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HeapRegion* G1CollectedHeap::new_mutator_alloc_region(size_t word_size,
                                                      bool force) {
  assert_heap_locked_or_at_safepoint(true /* should_be_vm_thread */);
  assert(!force || g1_policy()->can_expand_young_list(),
         "if force is true we should be able to expand the young list");
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  bool young_list_full = g1_policy()->is_young_list_full();
  if (force || !young_list_full) {
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    HeapRegion* new_alloc_region = new_region(word_size,
                                              false /* do_expand */);
    if (new_alloc_region != NULL) {
      g1_policy()->update_region_num(true /* next_is_young */);
      set_region_short_lived_locked(new_alloc_region);
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      _hr_printer.alloc(new_alloc_region, G1HRPrinter::Eden, young_list_full);
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      g1mm()->update_eden_counters();
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      return new_alloc_region;
    }
  }
  return NULL;
}

void G1CollectedHeap::retire_mutator_alloc_region(HeapRegion* alloc_region,
                                                  size_t allocated_bytes) {
  assert_heap_locked_or_at_safepoint(true /* should_be_vm_thread */);
  assert(alloc_region->is_young(), "all mutator alloc regions should be young");

  g1_policy()->add_region_to_incremental_cset_lhs(alloc_region);
  _summary_bytes_used += allocated_bytes;
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  _hr_printer.retire(alloc_region);
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}

HeapRegion* MutatorAllocRegion::allocate_new_region(size_t word_size,
                                                    bool force) {
  return _g1h->new_mutator_alloc_region(word_size, force);
}

void MutatorAllocRegion::retire_region(HeapRegion* alloc_region,
                                       size_t allocated_bytes) {
  _g1h->retire_mutator_alloc_region(alloc_region, allocated_bytes);
}

// Heap region set verification

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class VerifyRegionListsClosure : public HeapRegionClosure {
private:
  HumongousRegionSet* _humongous_set;
  FreeRegionList*     _free_list;
  size_t              _region_count;
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public:
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  VerifyRegionListsClosure(HumongousRegionSet* humongous_set,
                           FreeRegionList* free_list) :
    _humongous_set(humongous_set), _free_list(free_list),
    _region_count(0) { }

  size_t region_count()      { return _region_count;      }

  bool doHeapRegion(HeapRegion* hr) {
    _region_count += 1;

    if (hr->continuesHumongous()) {
      return false;
    }

    if (hr->is_young()) {
      // TODO
    } else if (hr->startsHumongous()) {
      _humongous_set->verify_next_region(hr);
    } else if (hr->is_empty()) {
      _free_list->verify_next_region(hr);
    }
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    return false;
  }
};

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HeapRegion* G1CollectedHeap::new_heap_region(size_t hrs_index,
                                             HeapWord* bottom) {
  HeapWord* end = bottom + HeapRegion::GrainWords;
  MemRegion mr(bottom, end);
  assert(_g1_reserved.contains(mr), "invariant");
  // This might return NULL if the allocation fails
  return new HeapRegion(hrs_index, _bot_shared, mr, true /* is_zeroed */);
}

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void G1CollectedHeap::verify_region_sets() {
  assert_heap_locked_or_at_safepoint(true /* should_be_vm_thread */);
5653

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  // First, check the explicit lists.
  _free_list.verify();
  {
    // Given that a concurrent operation might be adding regions to
    // the secondary free list we have to take the lock before
    // verifying it.
    MutexLockerEx x(SecondaryFreeList_lock, Mutex::_no_safepoint_check_flag);
    _secondary_free_list.verify();
  }
  _humongous_set.verify();

  // If a concurrent region freeing operation is in progress it will
  // be difficult to correctly attributed any free regions we come
  // across to the correct free list given that they might belong to
  // one of several (free_list, secondary_free_list, any local lists,
  // etc.). So, if that's the case we will skip the rest of the
  // verification operation. Alternatively, waiting for the concurrent
  // operation to complete will have a non-trivial effect on the GC's
  // operation (no concurrent operation will last longer than the
  // interval between two calls to verification) and it might hide
  // any issues that we would like to catch during testing.
  if (free_regions_coming()) {
    return;
  }
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T
tonyp 已提交
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  // Make sure we append the secondary_free_list on the free_list so
  // that all free regions we will come across can be safely
  // attributed to the free_list.
  append_secondary_free_list_if_not_empty_with_lock();
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  // Finally, make sure that the region accounting in the lists is
  // consistent with what we see in the heap.
  _humongous_set.verify_start();
  _free_list.verify_start();
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  VerifyRegionListsClosure cl(&_humongous_set, &_free_list);
  heap_region_iterate(&cl);
5691

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  _humongous_set.verify_end();
  _free_list.verify_end();
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}