concurrentMark.cpp 162.8 KB
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/*
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 * Copyright (c) 2001, 2013, 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 "classfile/symbolTable.hpp"
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#include "gc_implementation/g1/concurrentMark.inline.hpp"
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#include "gc_implementation/g1/concurrentMarkThread.inline.hpp"
#include "gc_implementation/g1/g1CollectedHeap.inline.hpp"
#include "gc_implementation/g1/g1CollectorPolicy.hpp"
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#include "gc_implementation/g1/g1ErgoVerbose.hpp"
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#include "gc_implementation/g1/g1Log.hpp"
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#include "gc_implementation/g1/g1OopClosures.inline.hpp"
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#include "gc_implementation/g1/g1RemSet.hpp"
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#include "gc_implementation/g1/heapRegion.inline.hpp"
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#include "gc_implementation/g1/heapRegionRemSet.hpp"
#include "gc_implementation/g1/heapRegionSeq.inline.hpp"
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#include "gc_implementation/shared/vmGCOperations.hpp"
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#include "memory/genOopClosures.inline.hpp"
#include "memory/referencePolicy.hpp"
#include "memory/resourceArea.hpp"
#include "oops/oop.inline.hpp"
#include "runtime/handles.inline.hpp"
#include "runtime/java.hpp"
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#include "services/memTracker.hpp"
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// Concurrent marking bit map wrapper
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CMBitMapRO::CMBitMapRO(int shifter) :
  _bm(),
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  _shifter(shifter) {
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  _bmStartWord = 0;
  _bmWordSize = 0;
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}

HeapWord* CMBitMapRO::getNextMarkedWordAddress(HeapWord* addr,
                                               HeapWord* limit) const {
  // First we must round addr *up* to a possible object boundary.
  addr = (HeapWord*)align_size_up((intptr_t)addr,
                                  HeapWordSize << _shifter);
  size_t addrOffset = heapWordToOffset(addr);
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  if (limit == NULL) {
    limit = _bmStartWord + _bmWordSize;
  }
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  size_t limitOffset = heapWordToOffset(limit);
  size_t nextOffset = _bm.get_next_one_offset(addrOffset, limitOffset);
  HeapWord* nextAddr = offsetToHeapWord(nextOffset);
  assert(nextAddr >= addr, "get_next_one postcondition");
  assert(nextAddr == limit || isMarked(nextAddr),
         "get_next_one postcondition");
  return nextAddr;
}

HeapWord* CMBitMapRO::getNextUnmarkedWordAddress(HeapWord* addr,
                                                 HeapWord* limit) const {
  size_t addrOffset = heapWordToOffset(addr);
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  if (limit == NULL) {
    limit = _bmStartWord + _bmWordSize;
  }
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  size_t limitOffset = heapWordToOffset(limit);
  size_t nextOffset = _bm.get_next_zero_offset(addrOffset, limitOffset);
  HeapWord* nextAddr = offsetToHeapWord(nextOffset);
  assert(nextAddr >= addr, "get_next_one postcondition");
  assert(nextAddr == limit || !isMarked(nextAddr),
         "get_next_one postcondition");
  return nextAddr;
}

int CMBitMapRO::heapWordDiffToOffsetDiff(size_t diff) const {
  assert((diff & ((1 << _shifter) - 1)) == 0, "argument check");
  return (int) (diff >> _shifter);
}

#ifndef PRODUCT
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bool CMBitMapRO::covers(ReservedSpace heap_rs) const {
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  // assert(_bm.map() == _virtual_space.low(), "map inconsistency");
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  assert(((size_t)_bm.size() * ((size_t)1 << _shifter)) == _bmWordSize,
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         "size inconsistency");
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  return _bmStartWord == (HeapWord*)(heap_rs.base()) &&
         _bmWordSize  == heap_rs.size()>>LogHeapWordSize;
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}
#endif

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bool CMBitMap::allocate(ReservedSpace heap_rs) {
  _bmStartWord = (HeapWord*)(heap_rs.base());
  _bmWordSize  = heap_rs.size()/HeapWordSize;    // heap_rs.size() is in bytes
  ReservedSpace brs(ReservedSpace::allocation_align_size_up(
                     (_bmWordSize >> (_shifter + LogBitsPerByte)) + 1));
  if (!brs.is_reserved()) {
    warning("ConcurrentMark marking bit map allocation failure");
    return false;
  }
  MemTracker::record_virtual_memory_type((address)brs.base(), mtGC);
  // For now we'll just commit all of the bit map up front.
  // Later on we'll try to be more parsimonious with swap.
  if (!_virtual_space.initialize(brs, brs.size())) {
    warning("ConcurrentMark marking bit map backing store failure");
    return false;
  }
  assert(_virtual_space.committed_size() == brs.size(),
         "didn't reserve backing store for all of concurrent marking bit map?");
  _bm.set_map((uintptr_t*)_virtual_space.low());
  assert(_virtual_space.committed_size() << (_shifter + LogBitsPerByte) >=
         _bmWordSize, "inconsistency in bit map sizing");
  _bm.set_size(_bmWordSize >> _shifter);
  return true;
}

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void CMBitMap::clearAll() {
  _bm.clear();
  return;
}

void CMBitMap::markRange(MemRegion mr) {
  mr.intersection(MemRegion(_bmStartWord, _bmWordSize));
  assert(!mr.is_empty(), "unexpected empty region");
  assert((offsetToHeapWord(heapWordToOffset(mr.end())) ==
          ((HeapWord *) mr.end())),
         "markRange memory region end is not card aligned");
  // convert address range into offset range
  _bm.at_put_range(heapWordToOffset(mr.start()),
                   heapWordToOffset(mr.end()), true);
}

void CMBitMap::clearRange(MemRegion mr) {
  mr.intersection(MemRegion(_bmStartWord, _bmWordSize));
  assert(!mr.is_empty(), "unexpected empty region");
  // convert address range into offset range
  _bm.at_put_range(heapWordToOffset(mr.start()),
                   heapWordToOffset(mr.end()), false);
}

MemRegion CMBitMap::getAndClearMarkedRegion(HeapWord* addr,
                                            HeapWord* end_addr) {
  HeapWord* start = getNextMarkedWordAddress(addr);
  start = MIN2(start, end_addr);
  HeapWord* end   = getNextUnmarkedWordAddress(start);
  end = MIN2(end, end_addr);
  assert(start <= end, "Consistency check");
  MemRegion mr(start, end);
  if (!mr.is_empty()) {
    clearRange(mr);
  }
  return mr;
}

CMMarkStack::CMMarkStack(ConcurrentMark* cm) :
  _base(NULL), _cm(cm)
#ifdef ASSERT
  , _drain_in_progress(false)
  , _drain_in_progress_yields(false)
#endif
{}

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bool CMMarkStack::allocate(size_t capacity) {
  // allocate a stack of the requisite depth
  ReservedSpace rs(ReservedSpace::allocation_align_size_up(capacity * sizeof(oop)));
  if (!rs.is_reserved()) {
    warning("ConcurrentMark MarkStack allocation failure");
    return false;
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  }
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  MemTracker::record_virtual_memory_type((address)rs.base(), mtGC);
  if (!_virtual_space.initialize(rs, rs.size())) {
    warning("ConcurrentMark MarkStack backing store failure");
    // Release the virtual memory reserved for the marking stack
    rs.release();
    return false;
  }
  assert(_virtual_space.committed_size() == rs.size(),
         "Didn't reserve backing store for all of ConcurrentMark stack?");
  _base = (oop*) _virtual_space.low();
  setEmpty();
  _capacity = (jint) capacity;
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  _saved_index = -1;
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  _should_expand = false;
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  NOT_PRODUCT(_max_depth = 0);
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  return true;
}

void CMMarkStack::expand() {
  // Called, during remark, if we've overflown the marking stack during marking.
  assert(isEmpty(), "stack should been emptied while handling overflow");
  assert(_capacity <= (jint) MarkStackSizeMax, "stack bigger than permitted");
  // Clear expansion flag
  _should_expand = false;
  if (_capacity == (jint) MarkStackSizeMax) {
    if (PrintGCDetails && Verbose) {
      gclog_or_tty->print_cr(" (benign) Can't expand marking stack capacity, at max size limit");
    }
    return;
  }
  // Double capacity if possible
  jint new_capacity = MIN2(_capacity*2, (jint) MarkStackSizeMax);
  // Do not give up existing stack until we have managed to
  // get the double capacity that we desired.
  ReservedSpace rs(ReservedSpace::allocation_align_size_up(new_capacity *
                                                           sizeof(oop)));
  if (rs.is_reserved()) {
    // Release the backing store associated with old stack
    _virtual_space.release();
    // Reinitialize virtual space for new stack
    if (!_virtual_space.initialize(rs, rs.size())) {
      fatal("Not enough swap for expanded marking stack capacity");
    }
    _base = (oop*)(_virtual_space.low());
    _index = 0;
    _capacity = new_capacity;
  } else {
    if (PrintGCDetails && Verbose) {
      // Failed to double capacity, continue;
      gclog_or_tty->print(" (benign) Failed to expand marking stack capacity from "
                          SIZE_FORMAT"K to " SIZE_FORMAT"K",
                          _capacity / K, new_capacity / K);
    }
  }
}

void CMMarkStack::set_should_expand() {
  // If we're resetting the marking state because of an
  // marking stack overflow, record that we should, if
  // possible, expand the stack.
  _should_expand = _cm->has_overflown();
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}

CMMarkStack::~CMMarkStack() {
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  if (_base != NULL) {
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    _base = NULL;
    _virtual_space.release();
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  }
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}

void CMMarkStack::par_push(oop ptr) {
  while (true) {
    if (isFull()) {
      _overflow = true;
      return;
    }
    // Otherwise...
    jint index = _index;
    jint next_index = index+1;
    jint res = Atomic::cmpxchg(next_index, &_index, index);
    if (res == index) {
      _base[index] = ptr;
      // Note that we don't maintain this atomically.  We could, but it
      // doesn't seem necessary.
      NOT_PRODUCT(_max_depth = MAX2(_max_depth, next_index));
      return;
    }
    // Otherwise, we need to try again.
  }
}

void CMMarkStack::par_adjoin_arr(oop* ptr_arr, int n) {
  while (true) {
    if (isFull()) {
      _overflow = true;
      return;
    }
    // Otherwise...
    jint index = _index;
    jint next_index = index + n;
    if (next_index > _capacity) {
      _overflow = true;
      return;
    }
    jint res = Atomic::cmpxchg(next_index, &_index, index);
    if (res == index) {
      for (int i = 0; i < n; i++) {
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        int  ind = index + i;
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        assert(ind < _capacity, "By overflow test above.");
        _base[ind] = ptr_arr[i];
      }
      NOT_PRODUCT(_max_depth = MAX2(_max_depth, next_index));
      return;
    }
    // Otherwise, we need to try again.
  }
}

void CMMarkStack::par_push_arr(oop* ptr_arr, int n) {
  MutexLockerEx x(ParGCRareEvent_lock, Mutex::_no_safepoint_check_flag);
  jint start = _index;
  jint next_index = start + n;
  if (next_index > _capacity) {
    _overflow = true;
    return;
  }
  // Otherwise.
  _index = next_index;
  for (int i = 0; i < n; i++) {
    int ind = start + i;
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    assert(ind < _capacity, "By overflow test above.");
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    _base[ind] = ptr_arr[i];
  }
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  NOT_PRODUCT(_max_depth = MAX2(_max_depth, next_index));
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}

bool CMMarkStack::par_pop_arr(oop* ptr_arr, int max, int* n) {
  MutexLockerEx x(ParGCRareEvent_lock, Mutex::_no_safepoint_check_flag);
  jint index = _index;
  if (index == 0) {
    *n = 0;
    return false;
  } else {
    int k = MIN2(max, index);
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    jint  new_ind = index - k;
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    for (int j = 0; j < k; j++) {
      ptr_arr[j] = _base[new_ind + j];
    }
    _index = new_ind;
    *n = k;
    return true;
  }
}

template<class OopClosureClass>
bool CMMarkStack::drain(OopClosureClass* cl, CMBitMap* bm, bool yield_after) {
  assert(!_drain_in_progress || !_drain_in_progress_yields || yield_after
         || SafepointSynchronize::is_at_safepoint(),
         "Drain recursion must be yield-safe.");
  bool res = true;
  debug_only(_drain_in_progress = true);
  debug_only(_drain_in_progress_yields = yield_after);
  while (!isEmpty()) {
    oop newOop = pop();
    assert(G1CollectedHeap::heap()->is_in_reserved(newOop), "Bad pop");
    assert(newOop->is_oop(), "Expected an oop");
    assert(bm == NULL || bm->isMarked((HeapWord*)newOop),
           "only grey objects on this stack");
    newOop->oop_iterate(cl);
    if (yield_after && _cm->do_yield_check()) {
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      res = false;
      break;
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    }
  }
  debug_only(_drain_in_progress = false);
  return res;
}

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void CMMarkStack::note_start_of_gc() {
  assert(_saved_index == -1,
         "note_start_of_gc()/end_of_gc() bracketed incorrectly");
  _saved_index = _index;
}

void CMMarkStack::note_end_of_gc() {
  // This is intentionally a guarantee, instead of an assert. If we
  // accidentally add something to the mark stack during GC, it
  // will be a correctness issue so it's better if we crash. we'll
  // only check this once per GC anyway, so it won't be a performance
  // issue in any way.
  guarantee(_saved_index == _index,
            err_msg("saved index: %d index: %d", _saved_index, _index));
  _saved_index = -1;
}

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void CMMarkStack::oops_do(OopClosure* f) {
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  assert(_saved_index == _index,
         err_msg("saved index: %d index: %d", _saved_index, _index));
  for (int i = 0; i < _index; i += 1) {
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    f->do_oop(&_base[i]);
  }
}

bool ConcurrentMark::not_yet_marked(oop obj) const {
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  return _g1h->is_obj_ill(obj);
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}

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CMRootRegions::CMRootRegions() :
  _young_list(NULL), _cm(NULL), _scan_in_progress(false),
  _should_abort(false),  _next_survivor(NULL) { }

void CMRootRegions::init(G1CollectedHeap* g1h, ConcurrentMark* cm) {
  _young_list = g1h->young_list();
  _cm = cm;
}

void CMRootRegions::prepare_for_scan() {
  assert(!scan_in_progress(), "pre-condition");

  // Currently, only survivors can be root regions.
  assert(_next_survivor == NULL, "pre-condition");
  _next_survivor = _young_list->first_survivor_region();
  _scan_in_progress = (_next_survivor != NULL);
  _should_abort = false;
}

HeapRegion* CMRootRegions::claim_next() {
  if (_should_abort) {
    // If someone has set the should_abort flag, we return NULL to
    // force the caller to bail out of their loop.
    return NULL;
  }

  // Currently, only survivors can be root regions.
  HeapRegion* res = _next_survivor;
  if (res != NULL) {
    MutexLockerEx x(RootRegionScan_lock, Mutex::_no_safepoint_check_flag);
    // Read it again in case it changed while we were waiting for the lock.
    res = _next_survivor;
    if (res != NULL) {
      if (res == _young_list->last_survivor_region()) {
        // We just claimed the last survivor so store NULL to indicate
        // that we're done.
        _next_survivor = NULL;
      } else {
        _next_survivor = res->get_next_young_region();
      }
    } else {
      // Someone else claimed the last survivor while we were trying
      // to take the lock so nothing else to do.
    }
  }
  assert(res == NULL || res->is_survivor(), "post-condition");

  return res;
}

void CMRootRegions::scan_finished() {
  assert(scan_in_progress(), "pre-condition");

  // Currently, only survivors can be root regions.
  if (!_should_abort) {
    assert(_next_survivor == NULL, "we should have claimed all survivors");
  }
  _next_survivor = NULL;

  {
    MutexLockerEx x(RootRegionScan_lock, Mutex::_no_safepoint_check_flag);
    _scan_in_progress = false;
    RootRegionScan_lock->notify_all();
  }
}

bool CMRootRegions::wait_until_scan_finished() {
  if (!scan_in_progress()) return false;

  {
    MutexLockerEx x(RootRegionScan_lock, Mutex::_no_safepoint_check_flag);
    while (scan_in_progress()) {
      RootRegionScan_lock->wait(Mutex::_no_safepoint_check_flag);
    }
  }
  return true;
}

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#ifdef _MSC_VER // the use of 'this' below gets a warning, make it go away
#pragma warning( disable:4355 ) // 'this' : used in base member initializer list
#endif // _MSC_VER

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uint ConcurrentMark::scale_parallel_threads(uint n_par_threads) {
  return MAX2((n_par_threads + 2) / 4, 1U);
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}

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ConcurrentMark::ConcurrentMark(G1CollectedHeap* g1h, ReservedSpace heap_rs) :
  _g1h(g1h),
  _markBitMap1(MinObjAlignment - 1),
  _markBitMap2(MinObjAlignment - 1),
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  _parallel_marking_threads(0),
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  _max_parallel_marking_threads(0),
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  _sleep_factor(0.0),
  _marking_task_overhead(1.0),
  _cleanup_sleep_factor(0.0),
  _cleanup_task_overhead(1.0),
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  _cleanup_list("Cleanup List"),
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  _region_bm((BitMap::idx_t)(g1h->max_regions()), false /* in_resource_area*/),
  _card_bm((heap_rs.size() + CardTableModRefBS::card_size - 1) >>
            CardTableModRefBS::card_shift,
            false /* in_resource_area*/),
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  _prevMarkBitMap(&_markBitMap1),
  _nextMarkBitMap(&_markBitMap2),

  _markStack(this),
  // _finger set in set_non_marking_state

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  _max_worker_id(MAX2((uint)ParallelGCThreads, 1U)),
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  // _active_tasks set in set_non_marking_state
  // _tasks set inside the constructor
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  _task_queues(new CMTaskQueueSet((int) _max_worker_id)),
  _terminator(ParallelTaskTerminator((int) _max_worker_id, _task_queues)),
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  _has_overflown(false),
  _concurrent(false),
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  _has_aborted(false),
  _restart_for_overflow(false),
  _concurrent_marking_in_progress(false),
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  // _verbose_level set below

  _init_times(),
  _remark_times(), _remark_mark_times(), _remark_weak_ref_times(),
  _cleanup_times(),
  _total_counting_time(0.0),
  _total_rs_scrub_time(0.0),
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  _parallel_workers(NULL),

  _count_card_bitmaps(NULL),
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  _count_marked_bytes(NULL),
  _completed_initialization(false) {
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  CMVerboseLevel verbose_level = (CMVerboseLevel) G1MarkingVerboseLevel;
  if (verbose_level < no_verbose) {
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    verbose_level = no_verbose;
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  }
  if (verbose_level > high_verbose) {
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    verbose_level = high_verbose;
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  }
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  _verbose_level = verbose_level;

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  if (verbose_low()) {
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    gclog_or_tty->print_cr("[global] init, heap start = "PTR_FORMAT", "
                           "heap end = "PTR_FORMAT, _heap_start, _heap_end);
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  }
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  if (!_markBitMap1.allocate(heap_rs)) {
    warning("Failed to allocate first CM bit map");
    return;
  }
  if (!_markBitMap2.allocate(heap_rs)) {
    warning("Failed to allocate second CM bit map");
    return;
  }
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  // Create & start a ConcurrentMark thread.
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  _cmThread = new ConcurrentMarkThread(this);
  assert(cmThread() != NULL, "CM Thread should have been created");
  assert(cmThread()->cm() != NULL, "CM Thread should refer to this cm");

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  assert(CGC_lock != NULL, "Where's the CGC_lock?");
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  assert(_markBitMap1.covers(heap_rs), "_markBitMap1 inconsistency");
  assert(_markBitMap2.covers(heap_rs), "_markBitMap2 inconsistency");
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  SATBMarkQueueSet& satb_qs = JavaThread::satb_mark_queue_set();
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  satb_qs.set_buffer_size(G1SATBBufferSize);
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  _root_regions.init(_g1h, this);

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  if (ConcGCThreads > ParallelGCThreads) {
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    warning("Can't have more ConcGCThreads (" UINT32_FORMAT ") "
            "than ParallelGCThreads (" UINT32_FORMAT ").",
            ConcGCThreads, ParallelGCThreads);
    return;
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  }
  if (ParallelGCThreads == 0) {
    // if we are not running with any parallel GC threads we will not
    // spawn any marking threads either
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    _parallel_marking_threads =       0;
    _max_parallel_marking_threads =   0;
    _sleep_factor             =     0.0;
    _marking_task_overhead    =     1.0;
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  } else {
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    if (!FLAG_IS_DEFAULT(ConcGCThreads) && ConcGCThreads > 0) {
      // Note: ConcGCThreads has precedence over G1MarkingOverheadPercent
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      // if both are set
      _sleep_factor             = 0.0;
      _marking_task_overhead    = 1.0;
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    } else if (G1MarkingOverheadPercent > 0) {
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      // We will calculate the number of parallel marking threads based
      // on a target overhead with respect to the soft real-time goal
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      double marking_overhead = (double) G1MarkingOverheadPercent / 100.0;
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      double overall_cm_overhead =
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        (double) MaxGCPauseMillis * marking_overhead /
        (double) GCPauseIntervalMillis;
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      double cpu_ratio = 1.0 / (double) os::processor_count();
      double marking_thread_num = ceil(overall_cm_overhead / cpu_ratio);
      double marking_task_overhead =
        overall_cm_overhead / marking_thread_num *
                                                (double) os::processor_count();
      double sleep_factor =
                         (1.0 - marking_task_overhead) / marking_task_overhead;

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      FLAG_SET_ERGO(uintx, ConcGCThreads, (uint) marking_thread_num);
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      _sleep_factor             = sleep_factor;
      _marking_task_overhead    = marking_task_overhead;
    } else {
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      // Calculate the number of parallel marking threads by scaling
      // the number of parallel GC threads.
      uint marking_thread_num = scale_parallel_threads((uint) ParallelGCThreads);
      FLAG_SET_ERGO(uintx, ConcGCThreads, marking_thread_num);
602 603 604 605
      _sleep_factor             = 0.0;
      _marking_task_overhead    = 1.0;
    }

606 607 608 609
    assert(ConcGCThreads > 0, "Should have been set");
    _parallel_marking_threads = (uint) ConcGCThreads;
    _max_parallel_marking_threads = _parallel_marking_threads;

610
    if (parallel_marking_threads() > 1) {
611
      _cleanup_task_overhead = 1.0;
612
    } else {
613
      _cleanup_task_overhead = marking_task_overhead();
614
    }
615 616 617 618 619 620 621 622 623 624 625
    _cleanup_sleep_factor =
                     (1.0 - cleanup_task_overhead()) / cleanup_task_overhead();

#if 0
    gclog_or_tty->print_cr("Marking Threads          %d", parallel_marking_threads());
    gclog_or_tty->print_cr("CM Marking Task Overhead %1.4lf", marking_task_overhead());
    gclog_or_tty->print_cr("CM Sleep Factor          %1.4lf", sleep_factor());
    gclog_or_tty->print_cr("CL Marking Task Overhead %1.4lf", cleanup_task_overhead());
    gclog_or_tty->print_cr("CL Sleep Factor          %1.4lf", cleanup_sleep_factor());
#endif

626
    guarantee(parallel_marking_threads() > 0, "peace of mind");
627
    _parallel_workers = new FlexibleWorkGang("G1 Parallel Marking Threads",
628
         _max_parallel_marking_threads, false, true);
629
    if (_parallel_workers == NULL) {
630
      vm_exit_during_initialization("Failed necessary allocation.");
631 632 633
    } else {
      _parallel_workers->initialize_workers();
    }
634 635
  }

636 637 638 639 640 641 642 643 644 645 646 647 648 649 650 651 652 653 654 655 656 657 658 659 660 661 662 663 664 665 666 667 668 669 670 671 672 673 674 675 676 677 678 679 680 681 682 683 684 685 686 687 688 689 690 691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711
  if (FLAG_IS_DEFAULT(MarkStackSize)) {
    uintx mark_stack_size =
      MIN2(MarkStackSizeMax,
          MAX2(MarkStackSize, (uintx) (parallel_marking_threads() * TASKQUEUE_SIZE)));
    // Verify that the calculated value for MarkStackSize is in range.
    // It would be nice to use the private utility routine from Arguments.
    if (!(mark_stack_size >= 1 && mark_stack_size <= MarkStackSizeMax)) {
      warning("Invalid value calculated for MarkStackSize (" UINTX_FORMAT "): "
              "must be between " UINTX_FORMAT " and " UINTX_FORMAT,
              mark_stack_size, 1, MarkStackSizeMax);
      return;
    }
    FLAG_SET_ERGO(uintx, MarkStackSize, mark_stack_size);
  } else {
    // Verify MarkStackSize is in range.
    if (FLAG_IS_CMDLINE(MarkStackSize)) {
      if (FLAG_IS_DEFAULT(MarkStackSizeMax)) {
        if (!(MarkStackSize >= 1 && MarkStackSize <= MarkStackSizeMax)) {
          warning("Invalid value specified for MarkStackSize (" UINTX_FORMAT "): "
                  "must be between " UINTX_FORMAT " and " UINTX_FORMAT,
                  MarkStackSize, 1, MarkStackSizeMax);
          return;
        }
      } else if (FLAG_IS_CMDLINE(MarkStackSizeMax)) {
        if (!(MarkStackSize >= 1 && MarkStackSize <= MarkStackSizeMax)) {
          warning("Invalid value specified for MarkStackSize (" UINTX_FORMAT ")"
                  " or for MarkStackSizeMax (" UINTX_FORMAT ")",
                  MarkStackSize, MarkStackSizeMax);
          return;
        }
      }
    }
  }

  if (!_markStack.allocate(MarkStackSize)) {
    warning("Failed to allocate CM marking stack");
    return;
  }

  _tasks = NEW_C_HEAP_ARRAY(CMTask*, _max_worker_id, mtGC);
  _accum_task_vtime = NEW_C_HEAP_ARRAY(double, _max_worker_id, mtGC);

  _count_card_bitmaps = NEW_C_HEAP_ARRAY(BitMap,  _max_worker_id, mtGC);
  _count_marked_bytes = NEW_C_HEAP_ARRAY(size_t*, _max_worker_id, mtGC);

  BitMap::idx_t card_bm_size = _card_bm.size();

  // so that the assertion in MarkingTaskQueue::task_queue doesn't fail
  _active_tasks = _max_worker_id;

  size_t max_regions = (size_t) _g1h->max_regions();
  for (uint i = 0; i < _max_worker_id; ++i) {
    CMTaskQueue* task_queue = new CMTaskQueue();
    task_queue->initialize();
    _task_queues->register_queue(i, task_queue);

    _count_card_bitmaps[i] = BitMap(card_bm_size, false);
    _count_marked_bytes[i] = NEW_C_HEAP_ARRAY(size_t, max_regions, mtGC);

    _tasks[i] = new CMTask(i, this,
                           _count_marked_bytes[i],
                           &_count_card_bitmaps[i],
                           task_queue, _task_queues);

    _accum_task_vtime[i] = 0.0;
  }

  // Calculate the card number for the bottom of the heap. Used
  // in biasing indexes into the accounting card bitmaps.
  _heap_bottom_card_num =
    intptr_t(uintptr_t(_g1h->reserved_region().start()) >>
                                CardTableModRefBS::card_shift);

  // Clear all the liveness counting data
  clear_all_count_data();

712
  // so that the call below can read a sensible value
713
  _heap_start = (HeapWord*) heap_rs.base();
714
  set_non_marking_state();
715
  _completed_initialization = true;
716 717 718 719
}

void ConcurrentMark::update_g1_committed(bool force) {
  // If concurrent marking is not in progress, then we do not need to
720
  // update _heap_end.
721
  if (!concurrent_marking_in_progress() && !force) return;
722 723

  MemRegion committed = _g1h->g1_committed();
724
  assert(committed.start() == _heap_start, "start shouldn't change");
725 726 727 728 729 730 731 732 733 734 735 736 737 738 739 740 741 742 743 744 745
  HeapWord* new_end = committed.end();
  if (new_end > _heap_end) {
    // The heap has been expanded.

    _heap_end = new_end;
  }
  // Notice that the heap can also shrink. However, this only happens
  // during a Full GC (at least currently) and the entire marking
  // phase will bail out and the task will not be restarted. So, let's
  // do nothing.
}

void ConcurrentMark::reset() {
  // Starting values for these two. This should be called in a STW
  // phase. CM will be notified of any future g1_committed expansions
  // will be at the end of evacuation pauses, when tasks are
  // inactive.
  MemRegion committed = _g1h->g1_committed();
  _heap_start = committed.start();
  _heap_end   = committed.end();

746 747 748 749
  // Separated the asserts so that we know which one fires.
  assert(_heap_start != NULL, "heap bounds should look ok");
  assert(_heap_end != NULL, "heap bounds should look ok");
  assert(_heap_start < _heap_end, "heap bounds should look ok");
750

751 752
  // Reset all the marking data structures and any necessary flags
  reset_marking_state();
753

754
  if (verbose_low()) {
755
    gclog_or_tty->print_cr("[global] resetting");
756
  }
757 758 759 760

  // We do reset all of them, since different phases will use
  // different number of active threads. So, it's easiest to have all
  // of them ready.
761
  for (uint i = 0; i < _max_worker_id; ++i) {
762
    _tasks[i]->reset(_nextMarkBitMap);
763
  }
764 765 766 767 768 769

  // we need this to make sure that the flag is on during the evac
  // pause with initial mark piggy-backed
  set_concurrent_marking_in_progress();
}

770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786

void ConcurrentMark::reset_marking_state(bool clear_overflow) {
  _markStack.set_should_expand();
  _markStack.setEmpty();        // Also clears the _markStack overflow flag
  if (clear_overflow) {
    clear_has_overflown();
  } else {
    assert(has_overflown(), "pre-condition");
  }
  _finger = _heap_start;

  for (uint i = 0; i < _max_worker_id; ++i) {
    CMTaskQueue* queue = _task_queues->queue(i);
    queue->set_empty();
  }
}

787
void ConcurrentMark::set_phase(uint active_tasks, bool concurrent) {
788
  assert(active_tasks <= _max_worker_id, "we should not have more");
789 790 791 792 793 794 795 796 797 798

  _active_tasks = active_tasks;
  // Need to update the three data structures below according to the
  // number of active threads for this phase.
  _terminator   = ParallelTaskTerminator((int) active_tasks, _task_queues);
  _first_overflow_barrier_sync.set_n_workers((int) active_tasks);
  _second_overflow_barrier_sync.set_n_workers((int) active_tasks);

  _concurrent = concurrent;
  // We propagate this to all tasks, not just the active ones.
799
  for (uint i = 0; i < _max_worker_id; ++i)
800 801 802 803 804 805 806 807
    _tasks[i]->set_concurrent(concurrent);

  if (concurrent) {
    set_concurrent_marking_in_progress();
  } else {
    // We currently assume that the concurrent flag has been set to
    // false before we start remark. At this point we should also be
    // in a STW phase.
808 809
    assert(!concurrent_marking_in_progress(), "invariant");
    assert(_finger == _heap_end, "only way to get here");
810 811 812 813 814 815 816
    update_g1_committed(true);
  }
}

void ConcurrentMark::set_non_marking_state() {
  // We set the global marking state to some default values when we're
  // not doing marking.
817
  reset_marking_state();
818 819 820 821 822
  _active_tasks = 0;
  clear_concurrent_marking_in_progress();
}

ConcurrentMark::~ConcurrentMark() {
823 824
  // The ConcurrentMark instance is never freed.
  ShouldNotReachHere();
825 826 827
}

void ConcurrentMark::clearNextBitmap() {
828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848 849
  G1CollectedHeap* g1h = G1CollectedHeap::heap();
  G1CollectorPolicy* g1p = g1h->g1_policy();

  // Make sure that the concurrent mark thread looks to still be in
  // the current cycle.
  guarantee(cmThread()->during_cycle(), "invariant");

  // We are finishing up the current cycle by clearing the next
  // marking bitmap and getting it ready for the next cycle. During
  // this time no other cycle can start. So, let's make sure that this
  // is the case.
  guarantee(!g1h->mark_in_progress(), "invariant");

  // clear the mark bitmap (no grey objects to start with).
  // We need to do this in chunks and offer to yield in between
  // each chunk.
  HeapWord* start  = _nextMarkBitMap->startWord();
  HeapWord* end    = _nextMarkBitMap->endWord();
  HeapWord* cur    = start;
  size_t chunkSize = M;
  while (cur < end) {
    HeapWord* next = cur + chunkSize;
850
    if (next > end) {
851
      next = end;
852
    }
853 854 855 856 857 858 859 860 861 862 863 864 865
    MemRegion mr(cur,next);
    _nextMarkBitMap->clearRange(mr);
    cur = next;
    do_yield_check();

    // Repeat the asserts from above. We'll do them as asserts here to
    // minimize their overhead on the product. However, we'll have
    // them as guarantees at the beginning / end of the bitmap
    // clearing to get some checking in the product.
    assert(cmThread()->during_cycle(), "invariant");
    assert(!g1h->mark_in_progress(), "invariant");
  }

866 867 868
  // Clear the liveness counting data
  clear_all_count_data();

869 870 871
  // Repeat the asserts from above.
  guarantee(cmThread()->during_cycle(), "invariant");
  guarantee(!g1h->mark_in_progress(), "invariant");
872 873 874 875 876 877
}

class NoteStartOfMarkHRClosure: public HeapRegionClosure {
public:
  bool doHeapRegion(HeapRegion* r) {
    if (!r->continuesHumongous()) {
878
      r->note_start_of_marking();
879 880 881 882 883 884 885 886 887 888 889
    }
    return false;
  }
};

void ConcurrentMark::checkpointRootsInitialPre() {
  G1CollectedHeap*   g1h = G1CollectedHeap::heap();
  G1CollectorPolicy* g1p = g1h->g1_policy();

  _has_aborted = false;

890
#ifndef PRODUCT
891
  if (G1PrintReachableAtInitialMark) {
892
    print_reachable("at-cycle-start",
893
                    VerifyOption_G1UsePrevMarking, true /* all */);
894
  }
895
#endif
896 897 898

  // Initialise marking structures. This has to be done in a STW phase.
  reset();
899 900 901 902

  // For each region note start of marking.
  NoteStartOfMarkHRClosure startcl;
  g1h->heap_region_iterate(&startcl);
903 904 905 906 907 908
}


void ConcurrentMark::checkpointRootsInitialPost() {
  G1CollectedHeap*   g1h = G1CollectedHeap::heap();

909 910 911 912 913 914 915 916
  // If we force an overflow during remark, the remark operation will
  // actually abort and we'll restart concurrent marking. If we always
  // force an oveflow during remark we'll never actually complete the
  // marking phase. So, we initilize this here, at the start of the
  // cycle, so that at the remaining overflow number will decrease at
  // every remark and we'll eventually not need to cause one.
  force_overflow_stw()->init();

917 918 919 920
  // Start Concurrent Marking weak-reference discovery.
  ReferenceProcessor* rp = g1h->ref_processor_cm();
  // enable ("weak") refs discovery
  rp->enable_discovery(true /*verify_disabled*/, true /*verify_no_refs*/);
921
  rp->setup_policy(false); // snapshot the soft ref policy to be used in this cycle
922 923

  SATBMarkQueueSet& satb_mq_set = JavaThread::satb_mark_queue_set();
924 925 926 927
  // This is the start of  the marking cycle, we're expected all
  // threads to have SATB queues with active set to false.
  satb_mq_set.set_active_all_threads(true, /* new active value */
                                     false /* expected_active */);
928

929 930
  _root_regions.prepare_for_scan();

931 932 933 934 935 936 937
  // update_g1_committed() will be called at the end of an evac pause
  // when marking is on. So, it's also called at the end of the
  // initial-mark pause to update the heap end, if the heap expands
  // during it. No need to call it here.
}

/*
938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956
 * Notice that in the next two methods, we actually leave the STS
 * during the barrier sync and join it immediately afterwards. If we
 * do not do this, the following deadlock can occur: one thread could
 * be in the barrier sync code, waiting for the other thread to also
 * sync up, whereas another one could be trying to yield, while also
 * waiting for the other threads to sync up too.
 *
 * Note, however, that this code is also used during remark and in
 * this case we should not attempt to leave / enter the STS, otherwise
 * we'll either hit an asseert (debug / fastdebug) or deadlock
 * (product). So we should only leave / enter the STS if we are
 * operating concurrently.
 *
 * Because the thread that does the sync barrier has left the STS, it
 * is possible to be suspended for a Full GC or an evacuation pause
 * could occur. This is actually safe, since the entering the sync
 * barrier is one of the last things do_marking_step() does, and it
 * doesn't manipulate any data structures afterwards.
 */
957

958
void ConcurrentMark::enter_first_sync_barrier(uint worker_id) {
959
  if (verbose_low()) {
960
    gclog_or_tty->print_cr("[%u] entering first barrier", worker_id);
961
  }
962

963 964 965
  if (concurrent()) {
    ConcurrentGCThread::stsLeave();
  }
966
  _first_overflow_barrier_sync.enter();
967 968 969
  if (concurrent()) {
    ConcurrentGCThread::stsJoin();
  }
970 971 972
  // at this point everyone should have synced up and not be doing any
  // more work

973
  if (verbose_low()) {
974
    gclog_or_tty->print_cr("[%u] leaving first barrier", worker_id);
975
  }
976

977 978
  // let the task associated with with worker 0 do this
  if (worker_id == 0) {
979
    // task 0 is responsible for clearing the global data structures
980 981 982 983
    // We should be here because of an overflow. During STW we should
    // not clear the overflow flag since we rely on it being true when
    // we exit this method to abort the pause and restart concurent
    // marking.
984
    reset_marking_state(concurrent() /* clear_overflow */);
985
    force_overflow()->update();
986

987
    if (G1Log::fine()) {
988 989 990 991 992 993 994 995 996 997
      gclog_or_tty->date_stamp(PrintGCDateStamps);
      gclog_or_tty->stamp(PrintGCTimeStamps);
      gclog_or_tty->print_cr("[GC concurrent-mark-reset-for-overflow]");
    }
  }

  // after this, each task should reset its own data structures then
  // then go into the second barrier
}

998
void ConcurrentMark::enter_second_sync_barrier(uint worker_id) {
999
  if (verbose_low()) {
1000
    gclog_or_tty->print_cr("[%u] entering second barrier", worker_id);
1001
  }
1002

1003 1004 1005
  if (concurrent()) {
    ConcurrentGCThread::stsLeave();
  }
1006
  _second_overflow_barrier_sync.enter();
1007 1008 1009
  if (concurrent()) {
    ConcurrentGCThread::stsJoin();
  }
1010 1011
  // at this point everything should be re-initialised and ready to go

1012
  if (verbose_low()) {
1013
    gclog_or_tty->print_cr("[%u] leaving second barrier", worker_id);
1014
  }
1015 1016
}

1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042
#ifndef PRODUCT
void ForceOverflowSettings::init() {
  _num_remaining = G1ConcMarkForceOverflow;
  _force = false;
  update();
}

void ForceOverflowSettings::update() {
  if (_num_remaining > 0) {
    _num_remaining -= 1;
    _force = true;
  } else {
    _force = false;
  }
}

bool ForceOverflowSettings::should_force() {
  if (_force) {
    _force = false;
    return true;
  } else {
    return false;
  }
}
#endif // !PRODUCT

1043 1044 1045 1046 1047 1048
class CMConcurrentMarkingTask: public AbstractGangTask {
private:
  ConcurrentMark*       _cm;
  ConcurrentMarkThread* _cmt;

public:
1049
  void work(uint worker_id) {
1050 1051
    assert(Thread::current()->is_ConcurrentGC_thread(),
           "this should only be done by a conc GC thread");
1052
    ResourceMark rm;
1053 1054 1055 1056 1057

    double start_vtime = os::elapsedVTime();

    ConcurrentGCThread::stsJoin();

1058 1059
    assert(worker_id < _cm->active_tasks(), "invariant");
    CMTask* the_task = _cm->task(worker_id);
1060 1061 1062 1063 1064
    the_task->record_start_time();
    if (!_cm->has_aborted()) {
      do {
        double start_vtime_sec = os::elapsedVTime();
        double start_time_sec = os::elapsedTime();
1065 1066 1067 1068 1069 1070
        double mark_step_duration_ms = G1ConcMarkStepDurationMillis;

        the_task->do_marking_step(mark_step_duration_ms,
                                  true /* do_stealing    */,
                                  true /* do_termination */);

1071 1072 1073 1074 1075 1076
        double end_time_sec = os::elapsedTime();
        double end_vtime_sec = os::elapsedVTime();
        double elapsed_vtime_sec = end_vtime_sec - start_vtime_sec;
        double elapsed_time_sec = end_time_sec - start_time_sec;
        _cm->clear_has_overflown();

1077
        bool ret = _cm->do_yield_check(worker_id);
1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100

        jlong sleep_time_ms;
        if (!_cm->has_aborted() && the_task->has_aborted()) {
          sleep_time_ms =
            (jlong) (elapsed_vtime_sec * _cm->sleep_factor() * 1000.0);
          ConcurrentGCThread::stsLeave();
          os::sleep(Thread::current(), sleep_time_ms, false);
          ConcurrentGCThread::stsJoin();
        }
        double end_time2_sec = os::elapsedTime();
        double elapsed_time2_sec = end_time2_sec - start_time_sec;

#if 0
          gclog_or_tty->print_cr("CM: elapsed %1.4lf ms, sleep %1.4lf ms, "
                                 "overhead %1.4lf",
                                 elapsed_vtime_sec * 1000.0, (double) sleep_time_ms,
                                 the_task->conc_overhead(os::elapsedTime()) * 8.0);
          gclog_or_tty->print_cr("elapsed time %1.4lf ms, time 2: %1.4lf ms",
                                 elapsed_time_sec * 1000.0, elapsed_time2_sec * 1000.0);
#endif
      } while (!_cm->has_aborted() && the_task->has_aborted());
    }
    the_task->record_end_time();
1101
    guarantee(!the_task->has_aborted() || _cm->has_aborted(), "invariant");
1102 1103 1104 1105

    ConcurrentGCThread::stsLeave();

    double end_vtime = os::elapsedVTime();
1106
    _cm->update_accum_task_vtime(worker_id, end_vtime - start_vtime);
1107 1108 1109 1110 1111 1112 1113 1114 1115
  }

  CMConcurrentMarkingTask(ConcurrentMark* cm,
                          ConcurrentMarkThread* cmt) :
      AbstractGangTask("Concurrent Mark"), _cm(cm), _cmt(cmt) { }

  ~CMConcurrentMarkingTask() { }
};

1116 1117
// Calculates the number of active workers for a concurrent
// phase.
1118
uint ConcurrentMark::calc_parallel_marking_threads() {
1119
  if (G1CollectedHeap::use_parallel_gc_threads()) {
1120
    uint n_conc_workers = 0;
1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134
    if (!UseDynamicNumberOfGCThreads ||
        (!FLAG_IS_DEFAULT(ConcGCThreads) &&
         !ForceDynamicNumberOfGCThreads)) {
      n_conc_workers = max_parallel_marking_threads();
    } else {
      n_conc_workers =
        AdaptiveSizePolicy::calc_default_active_workers(
                                     max_parallel_marking_threads(),
                                     1, /* Minimum workers */
                                     parallel_marking_threads(),
                                     Threads::number_of_non_daemon_threads());
      // Don't scale down "n_conc_workers" by scale_parallel_threads() because
      // that scaling has already gone into "_max_parallel_marking_threads".
    }
1135 1136
    assert(n_conc_workers > 0, "Always need at least 1");
    return n_conc_workers;
1137
  }
1138 1139 1140 1141
  // If we are not running with any parallel GC threads we will not
  // have spawned any marking threads either. Hence the number of
  // concurrent workers should be 0.
  return 0;
1142 1143
}

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 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192
void ConcurrentMark::scanRootRegion(HeapRegion* hr, uint worker_id) {
  // Currently, only survivors can be root regions.
  assert(hr->next_top_at_mark_start() == hr->bottom(), "invariant");
  G1RootRegionScanClosure cl(_g1h, this, worker_id);

  const uintx interval = PrefetchScanIntervalInBytes;
  HeapWord* curr = hr->bottom();
  const HeapWord* end = hr->top();
  while (curr < end) {
    Prefetch::read(curr, interval);
    oop obj = oop(curr);
    int size = obj->oop_iterate(&cl);
    assert(size == obj->size(), "sanity");
    curr += size;
  }
}

class CMRootRegionScanTask : public AbstractGangTask {
private:
  ConcurrentMark* _cm;

public:
  CMRootRegionScanTask(ConcurrentMark* cm) :
    AbstractGangTask("Root Region Scan"), _cm(cm) { }

  void work(uint worker_id) {
    assert(Thread::current()->is_ConcurrentGC_thread(),
           "this should only be done by a conc GC thread");

    CMRootRegions* root_regions = _cm->root_regions();
    HeapRegion* hr = root_regions->claim_next();
    while (hr != NULL) {
      _cm->scanRootRegion(hr, worker_id);
      hr = root_regions->claim_next();
    }
  }
};

void ConcurrentMark::scanRootRegions() {
  // scan_in_progress() will have been set to true only if there was
  // at least one root region to scan. So, if it's false, we
  // should not attempt to do any further work.
  if (root_regions()->scan_in_progress()) {
    _parallel_marking_threads = calc_parallel_marking_threads();
    assert(parallel_marking_threads() <= max_parallel_marking_threads(),
           "Maximum number of marking threads exceeded");
    uint active_workers = MAX2(1U, parallel_marking_threads());

    CMRootRegionScanTask task(this);
1193
    if (use_parallel_marking_threads()) {
1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206
      _parallel_workers->set_active_workers((int) active_workers);
      _parallel_workers->run_task(&task);
    } else {
      task.work(0);
    }

    // It's possible that has_aborted() is true here without actually
    // aborting the survivor scan earlier. This is OK as it's
    // mainly used for sanity checking.
    root_regions()->scan_finished();
  }
}

1207 1208 1209 1210 1211 1212 1213 1214 1215
void ConcurrentMark::markFromRoots() {
  // we might be tempted to assert that:
  // assert(asynch == !SafepointSynchronize::is_at_safepoint(),
  //        "inconsistent argument?");
  // However that wouldn't be right, because it's possible that
  // a safepoint is indeed in progress as a younger generation
  // stop-the-world GC happens even as we mark in this generation.

  _restart_for_overflow = false;
1216
  force_overflow_conc()->init();
1217 1218 1219 1220 1221 1222

  // _g1h has _n_par_threads
  _parallel_marking_threads = calc_parallel_marking_threads();
  assert(parallel_marking_threads() <= max_parallel_marking_threads(),
    "Maximum number of marking threads exceeded");

1223
  uint active_workers = MAX2(1U, parallel_marking_threads());
1224 1225 1226

  // Parallel task terminator is set in "set_phase()"
  set_phase(active_workers, true /* concurrent */);
1227 1228

  CMConcurrentMarkingTask markingTask(this, cmThread());
1229
  if (use_parallel_marking_threads()) {
1230 1231 1232 1233
    _parallel_workers->set_active_workers((int)active_workers);
    // Don't set _n_par_threads because it affects MT in proceess_strong_roots()
    // and the decisions on that MT processing is made elsewhere.
    assert(_parallel_workers->active_workers() > 0, "Should have been set");
1234
    _parallel_workers->run_task(&markingTask);
1235
  } else {
1236
    markingTask.work(0);
1237
  }
1238 1239 1240 1241 1242 1243 1244
  print_stats();
}

void ConcurrentMark::checkpointRootsFinal(bool clear_all_soft_refs) {
  // world is stopped at this checkpoint
  assert(SafepointSynchronize::is_at_safepoint(),
         "world should be stopped");
1245

1246 1247 1248 1249 1250 1251 1252 1253
  G1CollectedHeap* g1h = G1CollectedHeap::heap();

  // If a full collection has happened, we shouldn't do this.
  if (has_aborted()) {
    g1h->set_marking_complete(); // So bitmap clearing isn't confused
    return;
  }

1254 1255
  SvcGCMarker sgcm(SvcGCMarker::OTHER);

1256 1257 1258 1259
  if (VerifyDuringGC) {
    HandleMark hm;  // handle scope
    gclog_or_tty->print(" VerifyDuringGC:(before)");
    Universe::heap()->prepare_for_verify();
1260 1261
    Universe::verify(/* silent */ false,
                     /* option */ VerifyOption_G1UsePrevMarking);
1262 1263
  }

1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277
  G1CollectorPolicy* g1p = g1h->g1_policy();
  g1p->record_concurrent_mark_remark_start();

  double start = os::elapsedTime();

  checkpointRootsFinalWork();

  double mark_work_end = os::elapsedTime();

  weakRefsWork(clear_all_soft_refs);

  if (has_overflown()) {
    // Oops.  We overflowed.  Restart concurrent marking.
    _restart_for_overflow = true;
1278 1279 1280
    // Clear the marking state because we will be restarting
    // marking due to overflowing the global mark stack.
    reset_marking_state();
1281
    if (G1TraceMarkStackOverflow) {
1282
      gclog_or_tty->print_cr("\nRemark led to restart for overflow.");
1283
    }
1284
  } else {
1285 1286 1287 1288
    // Aggregate the per-task counting data that we have accumulated
    // while marking.
    aggregate_count_data();

1289
    SATBMarkQueueSet& satb_mq_set = JavaThread::satb_mark_queue_set();
1290
    // We're done with marking.
1291 1292
    // This is the end of  the marking cycle, we're expected all
    // threads to have SATB queues with active set to true.
1293 1294
    satb_mq_set.set_active_all_threads(false, /* new active value */
                                       true /* expected_active */);
1295 1296

    if (VerifyDuringGC) {
1297 1298 1299
      HandleMark hm;  // handle scope
      gclog_or_tty->print(" VerifyDuringGC:(after)");
      Universe::heap()->prepare_for_verify();
1300 1301
      Universe::verify(/* silent */ false,
                       /* option */ VerifyOption_G1UseNextMarking);
1302
    }
1303
    assert(!restart_for_overflow(), "sanity");
1304 1305
    // Completely reset the marking state since marking completed
    set_non_marking_state();
1306 1307
  }

1308 1309 1310 1311 1312
  // Expand the marking stack, if we have to and if we can.
  if (_markStack.should_expand()) {
    _markStack.expand();
  }

1313 1314 1315 1316 1317 1318 1319 1320 1321 1322 1323 1324 1325 1326
#if VERIFY_OBJS_PROCESSED
  _scan_obj_cl.objs_processed = 0;
  ThreadLocalObjQueue::objs_enqueued = 0;
#endif

  // Statistics
  double now = os::elapsedTime();
  _remark_mark_times.add((mark_work_end - start) * 1000.0);
  _remark_weak_ref_times.add((now - mark_work_end) * 1000.0);
  _remark_times.add((now - start) * 1000.0);

  g1p->record_concurrent_mark_remark_end();
}

1327 1328 1329 1330
// Base class of the closures that finalize and verify the
// liveness counting data.
class CMCountDataClosureBase: public HeapRegionClosure {
protected:
1331
  G1CollectedHeap* _g1h;
1332
  ConcurrentMark* _cm;
1333 1334
  CardTableModRefBS* _ct_bs;

1335 1336 1337
  BitMap* _region_bm;
  BitMap* _card_bm;

1338
  // Takes a region that's not empty (i.e., it has at least one
1339 1340 1341 1342 1343 1344 1345
  // live object in it and sets its corresponding bit on the region
  // bitmap to 1. If the region is "starts humongous" it will also set
  // to 1 the bits on the region bitmap that correspond to its
  // associated "continues humongous" regions.
  void set_bit_for_region(HeapRegion* hr) {
    assert(!hr->continuesHumongous(), "should have filtered those out");

1346
    BitMap::idx_t index = (BitMap::idx_t) hr->hrs_index();
1347 1348
    if (!hr->startsHumongous()) {
      // Normal (non-humongous) case: just set the bit.
1349
      _region_bm->par_at_put(index, true);
1350 1351
    } else {
      // Starts humongous case: calculate how many regions are part of
1352
      // this humongous region and then set the bit range.
1353
      BitMap::idx_t end_index = (BitMap::idx_t) hr->last_hc_index();
1354
      _region_bm->par_at_put_range(index, end_index, true);
1355 1356 1357
    }
  }

1358
public:
1359
  CMCountDataClosureBase(G1CollectedHeap* g1h,
1360
                         BitMap* region_bm, BitMap* card_bm):
1361 1362 1363
    _g1h(g1h), _cm(g1h->concurrent_mark()),
    _ct_bs((CardTableModRefBS*) (g1h->barrier_set())),
    _region_bm(region_bm), _card_bm(card_bm) { }
1364 1365 1366 1367 1368 1369 1370 1371 1372
};

// Closure that calculates the # live objects per region. Used
// for verification purposes during the cleanup pause.
class CalcLiveObjectsClosure: public CMCountDataClosureBase {
  CMBitMapRO* _bm;
  size_t _region_marked_bytes;

public:
1373
  CalcLiveObjectsClosure(CMBitMapRO *bm, G1CollectedHeap* g1h,
1374
                         BitMap* region_bm, BitMap* card_bm) :
1375
    CMCountDataClosureBase(g1h, region_bm, card_bm),
1376 1377
    _bm(bm), _region_marked_bytes(0) { }

1378 1379
  bool doHeapRegion(HeapRegion* hr) {

I
iveresov 已提交
1380
    if (hr->continuesHumongous()) {
1381 1382 1383 1384 1385 1386 1387
      // We will ignore these here and process them when their
      // associated "starts humongous" region is processed (see
      // set_bit_for_heap_region()). Note that we cannot rely on their
      // associated "starts humongous" region to have their bit set to
      // 1 since, due to the region chunking in the parallel region
      // iteration, a "continues humongous" region might be visited
      // before its associated "starts humongous".
I
iveresov 已提交
1388 1389
      return false;
    }
1390

1391 1392
    HeapWord* ntams = hr->next_top_at_mark_start();
    HeapWord* start = hr->bottom();
1393

1394
    assert(start <= hr->end() && start <= ntams && ntams <= hr->end(),
1395
           err_msg("Preconditions not met - "
1396 1397
                   "start: "PTR_FORMAT", ntams: "PTR_FORMAT", end: "PTR_FORMAT,
                   start, ntams, hr->end()));
1398

1399
    // Find the first marked object at or after "start".
1400
    start = _bm->getNextMarkedWordAddress(start, ntams);
1401

1402 1403
    size_t marked_bytes = 0;

1404
    while (start < ntams) {
1405 1406
      oop obj = oop(start);
      int obj_sz = obj->size();
1407
      HeapWord* obj_end = start + obj_sz;
1408

1409
      BitMap::idx_t start_idx = _cm->card_bitmap_index_for(start);
1410 1411 1412 1413 1414 1415 1416 1417 1418 1419 1420
      BitMap::idx_t end_idx = _cm->card_bitmap_index_for(obj_end);

      // Note: if we're looking at the last region in heap - obj_end
      // could be actually just beyond the end of the heap; end_idx
      // will then correspond to a (non-existent) card that is also
      // just beyond the heap.
      if (_g1h->is_in_g1_reserved(obj_end) && !_ct_bs->is_card_aligned(obj_end)) {
        // end of object is not card aligned - increment to cover
        // all the cards spanned by the object
        end_idx += 1;
      }
1421

1422 1423
      // Set the bits in the card BM for the cards spanned by this object.
      _cm->set_card_bitmap_range(_card_bm, start_idx, end_idx, true /* is_par */);
1424 1425

      // Add the size of this object to the number of marked bytes.
1426
      marked_bytes += (size_t)obj_sz * HeapWordSize;
1427

1428
      // Find the next marked object after this one.
1429
      start = _bm->getNextMarkedWordAddress(obj_end, ntams);
1430
    }
1431 1432 1433

    // Mark the allocated-since-marking portion...
    HeapWord* top = hr->top();
1434 1435 1436 1437 1438 1439 1440 1441 1442 1443 1444 1445 1446 1447
    if (ntams < top) {
      BitMap::idx_t start_idx = _cm->card_bitmap_index_for(ntams);
      BitMap::idx_t end_idx = _cm->card_bitmap_index_for(top);

      // Note: if we're looking at the last region in heap - top
      // could be actually just beyond the end of the heap; end_idx
      // will then correspond to a (non-existent) card that is also
      // just beyond the heap.
      if (_g1h->is_in_g1_reserved(top) && !_ct_bs->is_card_aligned(top)) {
        // end of object is not card aligned - increment to cover
        // all the cards spanned by the object
        end_idx += 1;
      }
      _cm->set_card_bitmap_range(_card_bm, start_idx, end_idx, true /* is_par */);
1448 1449 1450

      // This definitely means the region has live objects.
      set_bit_for_region(hr);
1451 1452 1453 1454
    }

    // Update the live region bitmap.
    if (marked_bytes > 0) {
1455
      set_bit_for_region(hr);
1456
    }
1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473

    // Set the marked bytes for the current region so that
    // it can be queried by a calling verificiation routine
    _region_marked_bytes = marked_bytes;

    return false;
  }

  size_t region_marked_bytes() const { return _region_marked_bytes; }
};

// Heap region closure used for verifying the counting data
// that was accumulated concurrently and aggregated during
// the remark pause. This closure is applied to the heap
// regions during the STW cleanup pause.

class VerifyLiveObjectDataHRClosure: public HeapRegionClosure {
1474
  G1CollectedHeap* _g1h;
1475 1476 1477 1478 1479 1480 1481 1482 1483 1484 1485 1486
  ConcurrentMark* _cm;
  CalcLiveObjectsClosure _calc_cl;
  BitMap* _region_bm;   // Region BM to be verified
  BitMap* _card_bm;     // Card BM to be verified
  bool _verbose;        // verbose output?

  BitMap* _exp_region_bm; // Expected Region BM values
  BitMap* _exp_card_bm;   // Expected card BM values

  int _failures;

public:
1487
  VerifyLiveObjectDataHRClosure(G1CollectedHeap* g1h,
1488 1489 1490 1491 1492
                                BitMap* region_bm,
                                BitMap* card_bm,
                                BitMap* exp_region_bm,
                                BitMap* exp_card_bm,
                                bool verbose) :
1493 1494
    _g1h(g1h), _cm(g1h->concurrent_mark()),
    _calc_cl(_cm->nextMarkBitMap(), g1h, exp_region_bm, exp_card_bm),
1495 1496 1497 1498 1499 1500 1501 1502 1503 1504 1505 1506 1507 1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528 1529 1530 1531
    _region_bm(region_bm), _card_bm(card_bm), _verbose(verbose),
    _exp_region_bm(exp_region_bm), _exp_card_bm(exp_card_bm),
    _failures(0) { }

  int failures() const { return _failures; }

  bool doHeapRegion(HeapRegion* hr) {
    if (hr->continuesHumongous()) {
      // We will ignore these here and process them when their
      // associated "starts humongous" region is processed (see
      // set_bit_for_heap_region()). Note that we cannot rely on their
      // associated "starts humongous" region to have their bit set to
      // 1 since, due to the region chunking in the parallel region
      // iteration, a "continues humongous" region might be visited
      // before its associated "starts humongous".
      return false;
    }

    int failures = 0;

    // Call the CalcLiveObjectsClosure to walk the marking bitmap for
    // this region and set the corresponding bits in the expected region
    // and card bitmaps.
    bool res = _calc_cl.doHeapRegion(hr);
    assert(res == false, "should be continuing");

    MutexLockerEx x((_verbose ? ParGCRareEvent_lock : NULL),
                    Mutex::_no_safepoint_check_flag);

    // Verify the marked bytes for this region.
    size_t exp_marked_bytes = _calc_cl.region_marked_bytes();
    size_t act_marked_bytes = hr->next_marked_bytes();

    // We're not OK if expected marked bytes > actual marked bytes. It means
    // we have missed accounting some objects during the actual marking.
    if (exp_marked_bytes > act_marked_bytes) {
      if (_verbose) {
1532
        gclog_or_tty->print_cr("Region %u: marked bytes mismatch: "
1533 1534 1535 1536 1537 1538 1539 1540 1541 1542
                               "expected: " SIZE_FORMAT ", actual: " SIZE_FORMAT,
                               hr->hrs_index(), exp_marked_bytes, act_marked_bytes);
      }
      failures += 1;
    }

    // Verify the bit, for this region, in the actual and expected
    // (which was just calculated) region bit maps.
    // We're not OK if the bit in the calculated expected region
    // bitmap is set and the bit in the actual region bitmap is not.
1543
    BitMap::idx_t index = (BitMap::idx_t) hr->hrs_index();
1544 1545 1546 1547 1548

    bool expected = _exp_region_bm->at(index);
    bool actual = _region_bm->at(index);
    if (expected && !actual) {
      if (_verbose) {
1549 1550 1551 1552
        gclog_or_tty->print_cr("Region %u: region bitmap mismatch: "
                               "expected: %s, actual: %s",
                               hr->hrs_index(),
                               BOOL_TO_STR(expected), BOOL_TO_STR(actual));
1553 1554 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564 1565 1566 1567 1568 1569
      }
      failures += 1;
    }

    // Verify that the card bit maps for the cards spanned by the current
    // region match. We have an error if we have a set bit in the expected
    // bit map and the corresponding bit in the actual bitmap is not set.

    BitMap::idx_t start_idx = _cm->card_bitmap_index_for(hr->bottom());
    BitMap::idx_t end_idx = _cm->card_bitmap_index_for(hr->top());

    for (BitMap::idx_t i = start_idx; i < end_idx; i+=1) {
      expected = _exp_card_bm->at(i);
      actual = _card_bm->at(i);

      if (expected && !actual) {
        if (_verbose) {
1570 1571 1572 1573
          gclog_or_tty->print_cr("Region %u: card bitmap mismatch at " SIZE_FORMAT ": "
                                 "expected: %s, actual: %s",
                                 hr->hrs_index(), i,
                                 BOOL_TO_STR(expected), BOOL_TO_STR(actual));
1574
        }
1575
        failures += 1;
1576 1577 1578
      }
    }

1579 1580 1581 1582 1583 1584 1585 1586 1587 1588
    if (failures > 0 && _verbose)  {
      gclog_or_tty->print_cr("Region " HR_FORMAT ", ntams: " PTR_FORMAT ", "
                             "marked_bytes: calc/actual " SIZE_FORMAT "/" SIZE_FORMAT,
                             HR_FORMAT_PARAMS(hr), hr->next_top_at_mark_start(),
                             _calc_cl.region_marked_bytes(), hr->next_marked_bytes());
    }

    _failures += failures;

    // We could stop iteration over the heap when we
1589
    // find the first violating region by returning true.
1590 1591
    return false;
  }
1592 1593 1594 1595 1596 1597 1598 1599 1600 1601 1602 1603 1604 1605 1606 1607 1608 1609 1610 1611 1612 1613 1614 1615 1616 1617 1618 1619 1620 1621 1622 1623 1624 1625 1626 1627 1628 1629 1630 1631 1632 1633 1634 1635 1636 1637 1638 1639 1640
};


class G1ParVerifyFinalCountTask: public AbstractGangTask {
protected:
  G1CollectedHeap* _g1h;
  ConcurrentMark* _cm;
  BitMap* _actual_region_bm;
  BitMap* _actual_card_bm;

  uint    _n_workers;

  BitMap* _expected_region_bm;
  BitMap* _expected_card_bm;

  int  _failures;
  bool _verbose;

public:
  G1ParVerifyFinalCountTask(G1CollectedHeap* g1h,
                            BitMap* region_bm, BitMap* card_bm,
                            BitMap* expected_region_bm, BitMap* expected_card_bm)
    : AbstractGangTask("G1 verify final counting"),
      _g1h(g1h), _cm(_g1h->concurrent_mark()),
      _actual_region_bm(region_bm), _actual_card_bm(card_bm),
      _expected_region_bm(expected_region_bm), _expected_card_bm(expected_card_bm),
      _failures(0), _verbose(false),
      _n_workers(0) {
    assert(VerifyDuringGC, "don't call this otherwise");

    // Use the value already set as the number of active threads
    // in the call to run_task().
    if (G1CollectedHeap::use_parallel_gc_threads()) {
      assert( _g1h->workers()->active_workers() > 0,
        "Should have been previously set");
      _n_workers = _g1h->workers()->active_workers();
    } else {
      _n_workers = 1;
    }

    assert(_expected_card_bm->size() == _actual_card_bm->size(), "sanity");
    assert(_expected_region_bm->size() == _actual_region_bm->size(), "sanity");

    _verbose = _cm->verbose_medium();
  }

  void work(uint worker_id) {
    assert(worker_id < _n_workers, "invariant");

1641
    VerifyLiveObjectDataHRClosure verify_cl(_g1h,
1642 1643 1644 1645 1646 1647 1648 1649 1650 1651 1652 1653 1654 1655 1656 1657
                                            _actual_region_bm, _actual_card_bm,
                                            _expected_region_bm,
                                            _expected_card_bm,
                                            _verbose);

    if (G1CollectedHeap::use_parallel_gc_threads()) {
      _g1h->heap_region_par_iterate_chunked(&verify_cl,
                                            worker_id,
                                            _n_workers,
                                            HeapRegion::VerifyCountClaimValue);
    } else {
      _g1h->heap_region_iterate(&verify_cl);
    }

    Atomic::add(verify_cl.failures(), &_failures);
  }
1658

1659
  int failures() const { return _failures; }
1660 1661
};

1662 1663 1664 1665 1666 1667
// Closure that finalizes the liveness counting data.
// Used during the cleanup pause.
// Sets the bits corresponding to the interval [NTAMS, top]
// (which contains the implicitly live objects) in the
// card liveness bitmap. Also sets the bit for each region,
// containing live data, in the region liveness bitmap.
1668

1669
class FinalCountDataUpdateClosure: public CMCountDataClosureBase {
1670
 public:
1671
  FinalCountDataUpdateClosure(G1CollectedHeap* g1h,
1672 1673
                              BitMap* region_bm,
                              BitMap* card_bm) :
1674
    CMCountDataClosureBase(g1h, region_bm, card_bm) { }
1675 1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687 1688 1689 1690 1691

  bool doHeapRegion(HeapRegion* hr) {

    if (hr->continuesHumongous()) {
      // We will ignore these here and process them when their
      // associated "starts humongous" region is processed (see
      // set_bit_for_heap_region()). Note that we cannot rely on their
      // associated "starts humongous" region to have their bit set to
      // 1 since, due to the region chunking in the parallel region
      // iteration, a "continues humongous" region might be visited
      // before its associated "starts humongous".
      return false;
    }

    HeapWord* ntams = hr->next_top_at_mark_start();
    HeapWord* top   = hr->top();

1692
    assert(hr->bottom() <= ntams && ntams <= hr->end(), "Preconditions.");
1693 1694 1695 1696 1697 1698

    // Mark the allocated-since-marking portion...
    if (ntams < top) {
      // This definitely means the region has live objects.
      set_bit_for_region(hr);

1699 1700 1701 1702 1703 1704 1705 1706 1707 1708 1709 1710 1711 1712 1713 1714 1715 1716 1717 1718 1719 1720
      // Now set the bits in the card bitmap for [ntams, top)
      BitMap::idx_t start_idx = _cm->card_bitmap_index_for(ntams);
      BitMap::idx_t end_idx = _cm->card_bitmap_index_for(top);

      // Note: if we're looking at the last region in heap - top
      // could be actually just beyond the end of the heap; end_idx
      // will then correspond to a (non-existent) card that is also
      // just beyond the heap.
      if (_g1h->is_in_g1_reserved(top) && !_ct_bs->is_card_aligned(top)) {
        // end of object is not card aligned - increment to cover
        // all the cards spanned by the object
        end_idx += 1;
      }

      assert(end_idx <= _card_bm->size(),
             err_msg("oob: end_idx=  "SIZE_FORMAT", bitmap size= "SIZE_FORMAT,
                     end_idx, _card_bm->size()));
      assert(start_idx < _card_bm->size(),
             err_msg("oob: start_idx=  "SIZE_FORMAT", bitmap size= "SIZE_FORMAT,
                     start_idx, _card_bm->size()));

      _cm->set_card_bitmap_range(_card_bm, start_idx, end_idx, true /* is_par */);
1721
    }
1722 1723 1724 1725 1726 1727 1728 1729 1730

    // Set the bit for the region if it contains live data
    if (hr->next_marked_bytes() > 0) {
      set_bit_for_region(hr);
    }

    return false;
  }
};
1731 1732 1733 1734

class G1ParFinalCountTask: public AbstractGangTask {
protected:
  G1CollectedHeap* _g1h;
1735 1736 1737 1738
  ConcurrentMark* _cm;
  BitMap* _actual_region_bm;
  BitMap* _actual_card_bm;

1739
  uint    _n_workers;
1740

1741
public:
1742 1743 1744 1745 1746
  G1ParFinalCountTask(G1CollectedHeap* g1h, BitMap* region_bm, BitMap* card_bm)
    : AbstractGangTask("G1 final counting"),
      _g1h(g1h), _cm(_g1h->concurrent_mark()),
      _actual_region_bm(region_bm), _actual_card_bm(card_bm),
      _n_workers(0) {
1747
    // Use the value already set as the number of active threads
1748
    // in the call to run_task().
1749 1750 1751 1752
    if (G1CollectedHeap::use_parallel_gc_threads()) {
      assert( _g1h->workers()->active_workers() > 0,
        "Should have been previously set");
      _n_workers = _g1h->workers()->active_workers();
1753
    } else {
1754
      _n_workers = 1;
1755
    }
1756 1757
  }

1758
  void work(uint worker_id) {
1759 1760
    assert(worker_id < _n_workers, "invariant");

1761
    FinalCountDataUpdateClosure final_update_cl(_g1h,
1762 1763 1764
                                                _actual_region_bm,
                                                _actual_card_bm);

1765
    if (G1CollectedHeap::use_parallel_gc_threads()) {
1766 1767 1768
      _g1h->heap_region_par_iterate_chunked(&final_update_cl,
                                            worker_id,
                                            _n_workers,
1769
                                            HeapRegion::FinalCountClaimValue);
1770
    } else {
1771
      _g1h->heap_region_iterate(&final_update_cl);
1772 1773 1774 1775 1776 1777 1778 1779 1780 1781
    }
  }
};

class G1ParNoteEndTask;

class G1NoteEndOfConcMarkClosure : public HeapRegionClosure {
  G1CollectedHeap* _g1;
  int _worker_num;
  size_t _max_live_bytes;
1782
  uint _regions_claimed;
1783
  size_t _freed_bytes;
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1784
  FreeRegionList* _local_cleanup_list;
T
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1785
  OldRegionSet* _old_proxy_set;
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1786 1787
  HumongousRegionSet* _humongous_proxy_set;
  HRRSCleanupTask* _hrrs_cleanup_task;
1788 1789 1790 1791 1792
  double _claimed_region_time;
  double _max_region_time;

public:
  G1NoteEndOfConcMarkClosure(G1CollectedHeap* g1,
T
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1793 1794
                             int worker_num,
                             FreeRegionList* local_cleanup_list,
T
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1795
                             OldRegionSet* old_proxy_set,
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1796
                             HumongousRegionSet* humongous_proxy_set,
1797 1798 1799 1800 1801 1802 1803 1804 1805 1806
                             HRRSCleanupTask* hrrs_cleanup_task) :
    _g1(g1), _worker_num(worker_num),
    _max_live_bytes(0), _regions_claimed(0),
    _freed_bytes(0),
    _claimed_region_time(0.0), _max_region_time(0.0),
    _local_cleanup_list(local_cleanup_list),
    _old_proxy_set(old_proxy_set),
    _humongous_proxy_set(humongous_proxy_set),
    _hrrs_cleanup_task(hrrs_cleanup_task) { }

1807 1808
  size_t freed_bytes() { return _freed_bytes; }

1809
  bool doHeapRegion(HeapRegion *hr) {
1810 1811 1812
    if (hr->continuesHumongous()) {
      return false;
    }
1813 1814
    // We use a claim value of zero here because all regions
    // were claimed with value 1 in the FinalCount task.
1815 1816 1817 1818 1819 1820 1821 1822 1823 1824 1825 1826 1827 1828 1829 1830
    _g1->reset_gc_time_stamps(hr);
    double start = os::elapsedTime();
    _regions_claimed++;
    hr->note_end_of_marking();
    _max_live_bytes += hr->max_live_bytes();
    _g1->free_region_if_empty(hr,
                              &_freed_bytes,
                              _local_cleanup_list,
                              _old_proxy_set,
                              _humongous_proxy_set,
                              _hrrs_cleanup_task,
                              true /* par */);
    double region_time = (os::elapsedTime() - start);
    _claimed_region_time += region_time;
    if (region_time > _max_region_time) {
      _max_region_time = region_time;
1831 1832 1833
    }
    return false;
  }
1834 1835

  size_t max_live_bytes() { return _max_live_bytes; }
1836
  uint regions_claimed() { return _regions_claimed; }
1837 1838 1839 1840 1841 1842
  double claimed_region_time_sec() { return _claimed_region_time; }
  double max_region_time_sec() { return _max_region_time; }
};

class G1ParNoteEndTask: public AbstractGangTask {
  friend class G1NoteEndOfConcMarkClosure;
1843

1844 1845 1846 1847
protected:
  G1CollectedHeap* _g1h;
  size_t _max_live_bytes;
  size_t _freed_bytes;
1848 1849
  FreeRegionList* _cleanup_list;

1850 1851
public:
  G1ParNoteEndTask(G1CollectedHeap* g1h,
1852
                   FreeRegionList* cleanup_list) :
1853
    AbstractGangTask("G1 note end"), _g1h(g1h),
1854
    _max_live_bytes(0), _freed_bytes(0), _cleanup_list(cleanup_list) { }
1855

1856
  void work(uint worker_id) {
1857
    double start = os::elapsedTime();
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1858
    FreeRegionList local_cleanup_list("Local Cleanup List");
T
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1859
    OldRegionSet old_proxy_set("Local Cleanup Old Proxy Set");
T
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1860 1861
    HumongousRegionSet humongous_proxy_set("Local Cleanup Humongous Proxy Set");
    HRRSCleanupTask hrrs_cleanup_task;
1862
    G1NoteEndOfConcMarkClosure g1_note_end(_g1h, worker_id, &local_cleanup_list,
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1863
                                           &old_proxy_set,
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1864 1865
                                           &humongous_proxy_set,
                                           &hrrs_cleanup_task);
1866
    if (G1CollectedHeap::use_parallel_gc_threads()) {
1867
      _g1h->heap_region_par_iterate_chunked(&g1_note_end, worker_id,
1868
                                            _g1h->workers()->active_workers(),
1869
                                            HeapRegion::NoteEndClaimValue);
1870 1871 1872 1873 1874
    } else {
      _g1h->heap_region_iterate(&g1_note_end);
    }
    assert(g1_note_end.complete(), "Shouldn't have yielded!");

1875 1876 1877
    // Now update the lists
    _g1h->update_sets_after_freeing_regions(g1_note_end.freed_bytes(),
                                            NULL /* free_list */,
T
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1878
                                            &old_proxy_set,
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1879
                                            &humongous_proxy_set,
1880
                                            true /* par */);
1881 1882 1883 1884
    {
      MutexLockerEx x(ParGCRareEvent_lock, Mutex::_no_safepoint_check_flag);
      _max_live_bytes += g1_note_end.max_live_bytes();
      _freed_bytes += g1_note_end.freed_bytes();
1885

1886 1887 1888 1889 1890 1891 1892 1893 1894 1895 1896 1897 1898 1899 1900 1901 1902
      // If we iterate over the global cleanup list at the end of
      // cleanup to do this printing we will not guarantee to only
      // generate output for the newly-reclaimed regions (the list
      // might not be empty at the beginning of cleanup; we might
      // still be working on its previous contents). So we do the
      // printing here, before we append the new regions to the global
      // cleanup list.

      G1HRPrinter* hr_printer = _g1h->hr_printer();
      if (hr_printer->is_active()) {
        HeapRegionLinkedListIterator iter(&local_cleanup_list);
        while (iter.more_available()) {
          HeapRegion* hr = iter.get_next();
          hr_printer->cleanup(hr);
        }
      }

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1903 1904 1905 1906
      _cleanup_list->add_as_tail(&local_cleanup_list);
      assert(local_cleanup_list.is_empty(), "post-condition");

      HeapRegionRemSet::finish_cleanup_task(&hrrs_cleanup_task);
1907 1908 1909 1910 1911 1912 1913 1914 1915 1916 1917 1918 1919 1920 1921
    }
  }
  size_t max_live_bytes() { return _max_live_bytes; }
  size_t freed_bytes() { return _freed_bytes; }
};

class G1ParScrubRemSetTask: public AbstractGangTask {
protected:
  G1RemSet* _g1rs;
  BitMap* _region_bm;
  BitMap* _card_bm;
public:
  G1ParScrubRemSetTask(G1CollectedHeap* g1h,
                       BitMap* region_bm, BitMap* card_bm) :
    AbstractGangTask("G1 ScrubRS"), _g1rs(g1h->g1_rem_set()),
1922
    _region_bm(region_bm), _card_bm(card_bm) { }
1923

1924
  void work(uint worker_id) {
1925
    if (G1CollectedHeap::use_parallel_gc_threads()) {
1926
      _g1rs->scrub_par(_region_bm, _card_bm, worker_id,
1927
                       HeapRegion::ScrubRemSetClaimValue);
1928 1929 1930 1931 1932 1933 1934 1935 1936 1937 1938 1939 1940 1941 1942 1943 1944 1945 1946
    } else {
      _g1rs->scrub(_region_bm, _card_bm);
    }
  }

};

void ConcurrentMark::cleanup() {
  // world is stopped at this checkpoint
  assert(SafepointSynchronize::is_at_safepoint(),
         "world should be stopped");
  G1CollectedHeap* g1h = G1CollectedHeap::heap();

  // If a full collection has happened, we shouldn't do this.
  if (has_aborted()) {
    g1h->set_marking_complete(); // So bitmap clearing isn't confused
    return;
  }

T
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  HRSPhaseSetter x(HRSPhaseCleanup);
1948 1949
  g1h->verify_region_sets_optional();

1950 1951 1952 1953
  if (VerifyDuringGC) {
    HandleMark hm;  // handle scope
    gclog_or_tty->print(" VerifyDuringGC:(before)");
    Universe::heap()->prepare_for_verify();
1954 1955
    Universe::verify(/* silent */ false,
                     /* option */ VerifyOption_G1UsePrevMarking);
1956 1957
  }

1958 1959 1960 1961 1962
  G1CollectorPolicy* g1p = G1CollectedHeap::heap()->g1_policy();
  g1p->record_concurrent_mark_cleanup_start();

  double start = os::elapsedTime();

T
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1963 1964
  HeapRegionRemSet::reset_for_cleanup_tasks();

1965
  uint n_workers;
1966

1967
  // Do counting once more with the world stopped for good measure.
1968 1969
  G1ParFinalCountTask g1_par_count_task(g1h, &_region_bm, &_card_bm);

1970
  if (G1CollectedHeap::use_parallel_gc_threads()) {
1971
   assert(g1h->check_heap_region_claim_values(HeapRegion::InitialClaimValue),
1972 1973
           "sanity check");

1974 1975
    g1h->set_par_threads();
    n_workers = g1h->n_par_threads();
1976
    assert(g1h->n_par_threads() == n_workers,
1977
           "Should not have been reset");
1978
    g1h->workers()->run_task(&g1_par_count_task);
1979
    // Done with the parallel phase so reset to 0.
1980
    g1h->set_par_threads(0);
1981

1982
    assert(g1h->check_heap_region_claim_values(HeapRegion::FinalCountClaimValue),
1983
           "sanity check");
1984
  } else {
1985
    n_workers = 1;
1986 1987 1988
    g1_par_count_task.work(0);
  }

1989 1990 1991 1992 1993 1994 1995 1996 1997 1998 1999 2000 2001 2002 2003 2004 2005 2006 2007 2008 2009 2010 2011 2012 2013 2014 2015 2016 2017
  if (VerifyDuringGC) {
    // Verify that the counting data accumulated during marking matches
    // that calculated by walking the marking bitmap.

    // Bitmaps to hold expected values
    BitMap expected_region_bm(_region_bm.size(), false);
    BitMap expected_card_bm(_card_bm.size(), false);

    G1ParVerifyFinalCountTask g1_par_verify_task(g1h,
                                                 &_region_bm,
                                                 &_card_bm,
                                                 &expected_region_bm,
                                                 &expected_card_bm);

    if (G1CollectedHeap::use_parallel_gc_threads()) {
      g1h->set_par_threads((int)n_workers);
      g1h->workers()->run_task(&g1_par_verify_task);
      // Done with the parallel phase so reset to 0.
      g1h->set_par_threads(0);

      assert(g1h->check_heap_region_claim_values(HeapRegion::VerifyCountClaimValue),
             "sanity check");
    } else {
      g1_par_verify_task.work(0);
    }

    guarantee(g1_par_verify_task.failures() == 0, "Unexpected accounting failures");
  }

2018 2019 2020 2021 2022 2023 2024
  size_t start_used_bytes = g1h->used();
  g1h->set_marking_complete();

  double count_end = os::elapsedTime();
  double this_final_counting_time = (count_end - start);
  _total_counting_time += this_final_counting_time;

2025 2026 2027 2028 2029
  if (G1PrintRegionLivenessInfo) {
    G1PrintRegionLivenessInfoClosure cl(gclog_or_tty, "Post-Marking");
    _g1h->heap_region_iterate(&cl);
  }

2030 2031 2032 2033 2034 2035
  // Install newly created mark bitMap as "prev".
  swapMarkBitMaps();

  g1h->reset_gc_time_stamp();

  // Note end of marking in all heap regions.
2036
  G1ParNoteEndTask g1_par_note_end_task(g1h, &_cleanup_list);
2037
  if (G1CollectedHeap::use_parallel_gc_threads()) {
2038
    g1h->set_par_threads((int)n_workers);
2039 2040
    g1h->workers()->run_task(&g1_par_note_end_task);
    g1h->set_par_threads(0);
2041 2042 2043

    assert(g1h->check_heap_region_claim_values(HeapRegion::NoteEndClaimValue),
           "sanity check");
2044 2045 2046
  } else {
    g1_par_note_end_task.work(0);
  }
2047
  g1h->check_gc_time_stamps();
2048 2049 2050 2051 2052 2053 2054

  if (!cleanup_list_is_empty()) {
    // The cleanup list is not empty, so we'll have to process it
    // concurrently. Notify anyone else that might be wanting free
    // regions that there will be more free regions coming soon.
    g1h->set_free_regions_coming();
  }
2055 2056 2057 2058 2059 2060

  // call below, since it affects the metric by which we sort the heap
  // regions.
  if (G1ScrubRemSets) {
    double rs_scrub_start = os::elapsedTime();
    G1ParScrubRemSetTask g1_par_scrub_rs_task(g1h, &_region_bm, &_card_bm);
2061
    if (G1CollectedHeap::use_parallel_gc_threads()) {
2062
      g1h->set_par_threads((int)n_workers);
2063 2064
      g1h->workers()->run_task(&g1_par_scrub_rs_task);
      g1h->set_par_threads(0);
2065 2066 2067 2068

      assert(g1h->check_heap_region_claim_values(
                                            HeapRegion::ScrubRemSetClaimValue),
             "sanity check");
2069 2070 2071 2072 2073 2074 2075 2076 2077 2078 2079
    } else {
      g1_par_scrub_rs_task.work(0);
    }

    double rs_scrub_end = os::elapsedTime();
    double this_rs_scrub_time = (rs_scrub_end - rs_scrub_start);
    _total_rs_scrub_time += this_rs_scrub_time;
  }

  // this will also free any regions totally full of garbage objects,
  // and sort the regions.
2080
  g1h->g1_policy()->record_concurrent_mark_cleanup_end((int)n_workers);
2081 2082 2083 2084 2085

  // Statistics.
  double end = os::elapsedTime();
  _cleanup_times.add((end - start) * 1000.0);

2086
  if (G1Log::fine()) {
2087 2088 2089 2090 2091 2092
    g1h->print_size_transition(gclog_or_tty,
                               start_used_bytes,
                               g1h->used(),
                               g1h->capacity());
  }

2093 2094 2095 2096
  // Clean up will have freed any regions completely full of garbage.
  // Update the soft reference policy with the new heap occupancy.
  Universe::update_heap_info_at_gc();

2097 2098 2099 2100
  // We need to make this be a "collection" so any collection pause that
  // races with it goes around and waits for completeCleanup to finish.
  g1h->increment_total_collections();

2101 2102 2103 2104
  // We reclaimed old regions so we should calculate the sizes to make
  // sure we update the old gen/space data.
  g1h->g1mm()->update_sizes();

J
johnc 已提交
2105
  if (VerifyDuringGC) {
2106 2107 2108
    HandleMark hm;  // handle scope
    gclog_or_tty->print(" VerifyDuringGC:(after)");
    Universe::heap()->prepare_for_verify();
2109 2110
    Universe::verify(/* silent */ false,
                     /* option */ VerifyOption_G1UsePrevMarking);
2111
  }
2112 2113

  g1h->verify_region_sets_optional();
2114 2115 2116 2117 2118
}

void ConcurrentMark::completeCleanup() {
  if (has_aborted()) return;

2119 2120 2121
  G1CollectedHeap* g1h = G1CollectedHeap::heap();

  _cleanup_list.verify_optional();
T
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2122
  FreeRegionList tmp_free_list("Tmp Free List");
2123 2124 2125

  if (G1ConcRegionFreeingVerbose) {
    gclog_or_tty->print_cr("G1ConcRegionFreeing [complete cleanup] : "
2126
                           "cleanup list has %u entries",
2127 2128 2129 2130 2131 2132 2133 2134
                           _cleanup_list.length());
  }

  // Noone else should be accessing the _cleanup_list at this point,
  // so it's not necessary to take any locks
  while (!_cleanup_list.is_empty()) {
    HeapRegion* hr = _cleanup_list.remove_head();
    assert(hr != NULL, "the list was not empty");
2135
    hr->par_clear();
T
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2136
    tmp_free_list.add_as_tail(hr);
2137 2138 2139 2140 2141 2142 2143

    // Instead of adding one region at a time to the secondary_free_list,
    // we accumulate them in the local list and move them a few at a
    // time. This also cuts down on the number of notify_all() calls
    // we do during this process. We'll also append the local list when
    // _cleanup_list is empty (which means we just removed the last
    // region from the _cleanup_list).
T
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2144
    if ((tmp_free_list.length() % G1SecondaryFreeListAppendLength == 0) ||
2145 2146 2147
        _cleanup_list.is_empty()) {
      if (G1ConcRegionFreeingVerbose) {
        gclog_or_tty->print_cr("G1ConcRegionFreeing [complete cleanup] : "
2148 2149
                               "appending %u entries to the secondary_free_list, "
                               "cleanup list still has %u entries",
T
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2150
                               tmp_free_list.length(),
2151 2152 2153 2154 2155
                               _cleanup_list.length());
      }

      {
        MutexLockerEx x(SecondaryFreeList_lock, Mutex::_no_safepoint_check_flag);
T
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2156
        g1h->secondary_free_list_add_as_tail(&tmp_free_list);
2157 2158 2159 2160 2161 2162 2163
        SecondaryFreeList_lock->notify_all();
      }

      if (G1StressConcRegionFreeing) {
        for (uintx i = 0; i < G1StressConcRegionFreeingDelayMillis; ++i) {
          os::sleep(Thread::current(), (jlong) 1, false);
        }
2164 2165 2166
      }
    }
  }
T
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2167
  assert(tmp_free_list.is_empty(), "post-condition");
2168 2169
}

2170 2171
// Supporting Object and Oop closures for reference discovery
// and processing in during marking
2172

2173 2174 2175 2176 2177
bool G1CMIsAliveClosure::do_object_b(oop obj) {
  HeapWord* addr = (HeapWord*)obj;
  return addr != NULL &&
         (!_g1->is_in_g1_reserved(addr) || !_g1->is_obj_ill(obj));
}
2178

2179 2180 2181 2182 2183 2184 2185 2186 2187 2188 2189 2190 2191
// 'Keep Alive' oop closure used by both serial parallel reference processing.
// Uses the CMTask associated with a worker thread (for serial reference
// processing the CMTask for worker 0 is used) to preserve (mark) and
// trace referent objects.
//
// Using the CMTask and embedded local queues avoids having the worker
// threads operating on the global mark stack. This reduces the risk
// of overflowing the stack - which we would rather avoid at this late
// state. Also using the tasks' local queues removes the potential
// of the workers interfering with each other that could occur if
// operating on the global stack.

class G1CMKeepAliveAndDrainClosure: public OopClosure {
2192 2193 2194 2195 2196
  ConcurrentMark*  _cm;
  CMTask*          _task;
  int              _ref_counter_limit;
  int              _ref_counter;
 public:
2197 2198
  G1CMKeepAliveAndDrainClosure(ConcurrentMark* cm, CMTask* task) :
    _cm(cm), _task(task), _ref_counter_limit(G1RefProcDrainInterval) {
2199 2200 2201 2202 2203 2204 2205 2206 2207 2208
    assert(_ref_counter_limit > 0, "sanity");
    _ref_counter = _ref_counter_limit;
  }

  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) {
    if (!_cm->has_overflown()) {
      oop obj = oopDesc::load_decode_heap_oop(p);
2209
      if (_cm->verbose_high()) {
2210
        gclog_or_tty->print_cr("\t[%u] we're looking at location "
2211
                               "*"PTR_FORMAT" = "PTR_FORMAT,
2212
                               _task->worker_id(), p, (void*) obj);
2213
      }
2214 2215 2216 2217 2218

      _task->deal_with_reference(obj);
      _ref_counter--;

      if (_ref_counter == 0) {
2219 2220 2221 2222 2223 2224 2225 2226 2227 2228 2229 2230 2231 2232 2233 2234
        // We have dealt with _ref_counter_limit references, pushing them
        // and objects reachable from them on to the local stack (and
        // possibly the global stack). Call CMTask::do_marking_step() to
        // process these entries.
        //
        // We call CMTask::do_marking_step() in a loop, which we'll exit if
        // there's nothing more to do (i.e. we're done with the entries that
        // were pushed as a result of the CMTask::deal_with_reference() calls
        // above) or we overflow.
        //
        // Note: CMTask::do_marking_step() can set the CMTask::has_aborted()
        // flag while there may still be some work to do. (See the comment at
        // the beginning of CMTask::do_marking_step() for those conditions -
        // one of which is reaching the specified time target.) It is only
        // when CMTask::do_marking_step() returns without setting the
        // has_aborted() flag that the marking step has completed.
2235 2236 2237 2238 2239 2240 2241 2242 2243
        do {
          double mark_step_duration_ms = G1ConcMarkStepDurationMillis;
          _task->do_marking_step(mark_step_duration_ms,
                                 false /* do_stealing    */,
                                 false /* do_termination */);
        } while (_task->has_aborted() && !_cm->has_overflown());
        _ref_counter = _ref_counter_limit;
      }
    } else {
2244
      if (_cm->verbose_high()) {
2245
         gclog_or_tty->print_cr("\t[%u] CM Overflow", _task->worker_id());
2246
      }
2247 2248 2249 2250
    }
  }
};

2251 2252 2253 2254 2255 2256 2257 2258
// 'Drain' oop closure used by both serial and parallel reference processing.
// Uses the CMTask associated with a given worker thread (for serial
// reference processing the CMtask for worker 0 is used). Calls the
// do_marking_step routine, with an unbelievably large timeout value,
// to drain the marking data structures of the remaining entries
// added by the 'keep alive' oop closure above.

class G1CMDrainMarkingStackClosure: public VoidClosure {
2259
  ConcurrentMark* _cm;
2260 2261 2262
  CMTask*         _task;
  bool            _do_stealing;
  bool            _do_termination;
2263
 public:
2264 2265 2266 2267 2268 2269 2270 2271 2272
  G1CMDrainMarkingStackClosure(ConcurrentMark* cm, CMTask* task, bool is_par) :
    _cm(cm), _task(task) {
    assert(is_par || _task->worker_id() == 0,
           "Only task for worker 0 should be used if ref processing is single threaded");
    // We only allow stealing and only enter the termination protocol
    // in CMTask::do_marking_step() if this closure is being instantiated
    // for parallel reference processing.
    _do_stealing = _do_termination = is_par;
  }
2273 2274 2275

  void do_void() {
    do {
2276
      if (_cm->verbose_high()) {
2277 2278 2279 2280 2281
        gclog_or_tty->print_cr("\t[%u] Drain: Calling do_marking_step - "
                               "stealing: %s, termination: %s",
                               _task->worker_id(),
                               BOOL_TO_STR(_do_stealing),
                               BOOL_TO_STR(_do_termination));
2282
      }
2283

2284 2285 2286 2287 2288 2289 2290 2291 2292 2293 2294 2295 2296 2297 2298 2299
      // We call CMTask::do_marking_step() to completely drain the local
      // and global marking stacks of entries pushed by the 'keep alive'
      // oop closure (an instance of G1CMKeepAliveAndDrainClosure above).
      //
      // CMTask::do_marking_step() is called in a loop, which we'll exit
      // if there's nothing more to do (i.e. we'completely drained the
      // entries that were pushed as a a result of applying the 'keep alive'
      // closure to the entries on the discovered ref lists) or we overflow
      // the global marking stack.
      //
      // Note: CMTask::do_marking_step() can set the CMTask::has_aborted()
      // flag while there may still be some work to do. (See the comment at
      // the beginning of CMTask::do_marking_step() for those conditions -
      // one of which is reaching the specified time target.) It is only
      // when CMTask::do_marking_step() returns without setting the
      // has_aborted() flag that the marking step has completed.
2300 2301

      _task->do_marking_step(1000000000.0 /* something very large */,
2302 2303
                             _do_stealing,
                             _do_termination);
2304 2305 2306 2307
    } while (_task->has_aborted() && !_cm->has_overflown());
  }
};

2308 2309 2310 2311
// Implementation of AbstractRefProcTaskExecutor for parallel
// reference processing at the end of G1 concurrent marking

class G1CMRefProcTaskExecutor: public AbstractRefProcTaskExecutor {
2312 2313 2314 2315 2316 2317 2318
private:
  G1CollectedHeap* _g1h;
  ConcurrentMark*  _cm;
  WorkGang*        _workers;
  int              _active_workers;

public:
2319
  G1CMRefProcTaskExecutor(G1CollectedHeap* g1h,
2320 2321 2322
                        ConcurrentMark* cm,
                        WorkGang* workers,
                        int n_workers) :
2323 2324
    _g1h(g1h), _cm(cm),
    _workers(workers), _active_workers(n_workers) { }
2325 2326 2327 2328 2329 2330

  // Executes the given task using concurrent marking worker threads.
  virtual void execute(ProcessTask& task);
  virtual void execute(EnqueueTask& task);
};

2331
class G1CMRefProcTaskProxy: public AbstractGangTask {
2332 2333 2334 2335
  typedef AbstractRefProcTaskExecutor::ProcessTask ProcessTask;
  ProcessTask&     _proc_task;
  G1CollectedHeap* _g1h;
  ConcurrentMark*  _cm;
2336
  bool             _processing_is_mt;
2337 2338

public:
2339
  G1CMRefProcTaskProxy(ProcessTask& proc_task,
2340
                     G1CollectedHeap* g1h,
2341
                     ConcurrentMark* cm) :
2342
    AbstractGangTask("Process reference objects in parallel"),
2343 2344 2345 2346
    _proc_task(proc_task), _g1h(g1h), _cm(cm) {
      ReferenceProcessor* rp = _g1h->ref_processor_cm();
      _processing_is_mt = rp->processing_is_mt();
    }
2347

2348 2349
  virtual void work(uint worker_id) {
    CMTask* marking_task = _cm->task(worker_id);
2350
    G1CMIsAliveClosure g1_is_alive(_g1h);
2351 2352
    G1CMKeepAliveAndDrainClosure g1_par_keep_alive(_cm, marking_task);
    G1CMDrainMarkingStackClosure g1_par_drain(_cm, marking_task, _processing_is_mt);
2353

2354
    _proc_task.work(worker_id, g1_is_alive, g1_par_keep_alive, g1_par_drain);
2355 2356 2357
  }
};

2358
void G1CMRefProcTaskExecutor::execute(ProcessTask& proc_task) {
2359
  assert(_workers != NULL, "Need parallel worker threads.");
2360
  assert(_g1h->ref_processor_cm()->processing_is_mt(), "processing is not MT");
2361

2362
  G1CMRefProcTaskProxy proc_task_proxy(proc_task, _g1h, _cm);
2363 2364 2365 2366 2367 2368 2369 2370 2371

  // We need to reset the phase for each task execution so that
  // the termination protocol of CMTask::do_marking_step works.
  _cm->set_phase(_active_workers, false /* concurrent */);
  _g1h->set_par_threads(_active_workers);
  _workers->run_task(&proc_task_proxy);
  _g1h->set_par_threads(0);
}

2372
class G1CMRefEnqueueTaskProxy: public AbstractGangTask {
2373 2374 2375 2376
  typedef AbstractRefProcTaskExecutor::EnqueueTask EnqueueTask;
  EnqueueTask& _enq_task;

public:
2377
  G1CMRefEnqueueTaskProxy(EnqueueTask& enq_task) :
2378
    AbstractGangTask("Enqueue reference objects in parallel"),
2379
    _enq_task(enq_task) { }
2380

2381 2382
  virtual void work(uint worker_id) {
    _enq_task.work(worker_id);
2383 2384 2385
  }
};

2386
void G1CMRefProcTaskExecutor::execute(EnqueueTask& enq_task) {
2387
  assert(_workers != NULL, "Need parallel worker threads.");
2388
  assert(_g1h->ref_processor_cm()->processing_is_mt(), "processing is not MT");
2389

2390
  G1CMRefEnqueueTaskProxy enq_task_proxy(enq_task);
2391 2392 2393 2394 2395 2396

  _g1h->set_par_threads(_active_workers);
  _workers->run_task(&enq_task_proxy);
  _g1h->set_par_threads(0);
}

2397 2398 2399 2400
void ConcurrentMark::weakRefsWork(bool clear_all_soft_refs) {
  ResourceMark rm;
  HandleMark   hm;

2401 2402 2403 2404 2405 2406 2407 2408
  G1CollectedHeap* g1h = G1CollectedHeap::heap();

  // Is alive closure.
  G1CMIsAliveClosure g1_is_alive(g1h);

  // Inner scope to exclude the cleaning of the string and symbol
  // tables from the displayed time.
  {
2409
    if (G1Log::finer()) {
2410 2411
      gclog_or_tty->put(' ');
    }
2412
    TraceTime t("GC ref-proc", G1Log::finer(), false, gclog_or_tty);
2413

2414
    ReferenceProcessor* rp = g1h->ref_processor_cm();
2415

2416 2417
    // See the comment in G1CollectedHeap::ref_processing_init()
    // about how reference processing currently works in G1.
2418

2419
    // Set the soft reference policy
2420 2421
    rp->setup_policy(clear_all_soft_refs);
    assert(_markStack.isEmpty(), "mark stack should be empty");
2422

2423 2424 2425 2426 2427 2428 2429 2430 2431 2432 2433
    // Non-MT instances 'Keep Alive' and 'Complete GC' oop closures.
    G1CMKeepAliveAndDrainClosure g1_keep_alive(this, task(0));
    G1CMDrainMarkingStackClosure g1_drain_mark_stack(this, task(0), false);

    // We need at least one active thread. If reference processing is
    // not multi-threaded we use the current (ConcurrentMarkThread) thread,
    // otherwise we use the work gang from the G1CollectedHeap and we
    // utilize all the worker threads we can.
    uint active_workers = (rp->processing_is_mt() && g1h->workers() != NULL
                                ? g1h->workers()->active_workers()
                                : 1U);
2434

2435
    active_workers = MAX2(MIN2(active_workers, _max_worker_id), 1U);
2436

2437
    G1CMRefProcTaskExecutor par_task_executor(g1h, this,
2438
                                              g1h->workers(), active_workers);
2439

2440 2441 2442
    AbstractRefProcTaskExecutor* executor = (rp->processing_is_mt()
                                                ? &par_task_executor
                                                : NULL);
2443

2444 2445 2446 2447 2448 2449 2450 2451
    // Set the degree of MT processing here.  If the discovery was done MT,
    // the number of threads involved during discovery could differ from
    // the number of active workers.  This is OK as long as the discovered
    // Reference lists are balanced (see balance_all_queues() and balance_queues()).
    rp->set_active_mt_degree(active_workers);

    // Process the weak references.
    rp->process_discovered_references(&g1_is_alive,
2452 2453
                                      &g1_keep_alive,
                                      &g1_drain_mark_stack,
2454
                                      executor);
2455

2456 2457 2458
    // The do_oop work routines of the keep_alive and drain_marking_stack
    // oop closures will set the has_overflown flag if we overflow the
    // global marking stack.
2459

2460 2461 2462
    assert(_markStack.overflow() || _markStack.isEmpty(),
            "mark stack should be empty (unless it overflowed)");
    if (_markStack.overflow()) {
2463
      // This should have been done already when we tried to push an
2464 2465 2466
      // entry on to the global mark stack. But let's do it again.
      set_has_overflown();
    }
2467

2468 2469 2470
    assert(rp->num_q() == active_workers, "why not");

    rp->enqueue_discovered_references(executor);
2471

2472
    rp->verify_no_references_recorded();
2473
    assert(!rp->discovery_enabled(), "Post condition");
2474 2475
  }

2476
  // Now clean up stale oops in StringTable
2477
  StringTable::unlink(&g1_is_alive);
2478 2479
  // Clean up unreferenced symbols in symbol table.
  SymbolTable::unlink();
2480 2481 2482 2483 2484 2485 2486 2487 2488 2489 2490 2491 2492
}

void ConcurrentMark::swapMarkBitMaps() {
  CMBitMapRO* temp = _prevMarkBitMap;
  _prevMarkBitMap  = (CMBitMapRO*)_nextMarkBitMap;
  _nextMarkBitMap  = (CMBitMap*)  temp;
}

class CMRemarkTask: public AbstractGangTask {
private:
  ConcurrentMark *_cm;

public:
2493
  void work(uint worker_id) {
2494 2495
    // Since all available tasks are actually started, we should
    // only proceed if we're supposed to be actived.
2496 2497
    if (worker_id < _cm->active_tasks()) {
      CMTask* task = _cm->task(worker_id);
2498 2499
      task->record_start_time();
      do {
2500 2501 2502
        task->do_marking_step(1000000000.0 /* something very large */,
                              true /* do_stealing    */,
                              true /* do_termination */);
2503 2504 2505 2506 2507 2508 2509
      } while (task->has_aborted() && !_cm->has_overflown());
      // If we overflow, then we do not want to restart. We instead
      // want to abort remark and do concurrent marking again.
      task->record_end_time();
    }
  }

2510
  CMRemarkTask(ConcurrentMark* cm, int active_workers) :
2511
    AbstractGangTask("Par Remark"), _cm(cm) {
2512
    _cm->terminator()->reset_for_reuse(active_workers);
2513
  }
2514 2515 2516 2517 2518 2519 2520 2521 2522
};

void ConcurrentMark::checkpointRootsFinalWork() {
  ResourceMark rm;
  HandleMark   hm;
  G1CollectedHeap* g1h = G1CollectedHeap::heap();

  g1h->ensure_parsability(false);

2523
  if (G1CollectedHeap::use_parallel_gc_threads()) {
2524
    G1CollectedHeap::StrongRootsScope srs(g1h);
2525
    // this is remark, so we'll use up all active threads
2526
    uint active_workers = g1h->workers()->active_workers();
2527 2528
    if (active_workers == 0) {
      assert(active_workers > 0, "Should have been set earlier");
2529
      active_workers = (uint) ParallelGCThreads;
2530 2531
      g1h->workers()->set_active_workers(active_workers);
    }
2532
    set_phase(active_workers, false /* concurrent */);
2533 2534 2535 2536
    // Leave _parallel_marking_threads at it's
    // value originally calculated in the ConcurrentMark
    // constructor and pass values of the active workers
    // through the gang in the task.
2537

2538
    CMRemarkTask remarkTask(this, active_workers);
2539
    g1h->set_par_threads(active_workers);
2540 2541 2542
    g1h->workers()->run_task(&remarkTask);
    g1h->set_par_threads(0);
  } else {
2543
    G1CollectedHeap::StrongRootsScope srs(g1h);
2544
    // this is remark, so we'll use up all available threads
2545
    uint active_workers = 1;
2546
    set_phase(active_workers, false /* concurrent */);
2547

2548
    CMRemarkTask remarkTask(this, active_workers);
2549 2550 2551 2552 2553
    // We will start all available threads, even if we decide that the
    // active_workers will be fewer. The extra ones will just bail out
    // immediately.
    remarkTask.work(0);
  }
2554 2555
  SATBMarkQueueSet& satb_mq_set = JavaThread::satb_mark_queue_set();
  guarantee(satb_mq_set.completed_buffers_num() == 0, "invariant");
2556 2557 2558 2559 2560 2561 2562 2563 2564 2565 2566 2567 2568 2569 2570

  print_stats();

#if VERIFY_OBJS_PROCESSED
  if (_scan_obj_cl.objs_processed != ThreadLocalObjQueue::objs_enqueued) {
    gclog_or_tty->print_cr("Processed = %d, enqueued = %d.",
                           _scan_obj_cl.objs_processed,
                           ThreadLocalObjQueue::objs_enqueued);
    guarantee(_scan_obj_cl.objs_processed ==
              ThreadLocalObjQueue::objs_enqueued,
              "Different number of objs processed and enqueued.");
  }
#endif
}

2571 2572
#ifndef PRODUCT

2573
class PrintReachableOopClosure: public OopClosure {
2574 2575 2576
private:
  G1CollectedHeap* _g1h;
  outputStream*    _out;
2577
  VerifyOption     _vo;
2578
  bool             _all;
2579 2580

public:
2581 2582
  PrintReachableOopClosure(outputStream* out,
                           VerifyOption  vo,
2583
                           bool          all) :
2584
    _g1h(G1CollectedHeap::heap()),
2585
    _out(out), _vo(vo), _all(all) { }
2586

2587 2588
  void do_oop(narrowOop* p) { do_oop_work(p); }
  void do_oop(      oop* p) { do_oop_work(p); }
2589

2590 2591
  template <class T> void do_oop_work(T* p) {
    oop         obj = oopDesc::load_decode_heap_oop(p);
2592 2593 2594
    const char* str = NULL;
    const char* str2 = "";

2595 2596 2597 2598 2599
    if (obj == NULL) {
      str = "";
    } else if (!_g1h->is_in_g1_reserved(obj)) {
      str = " O";
    } else {
2600
      HeapRegion* hr  = _g1h->heap_region_containing(obj);
2601
      guarantee(hr != NULL, "invariant");
2602 2603
      bool over_tams = _g1h->allocated_since_marking(obj, hr, _vo);
      bool marked = _g1h->is_marked(obj, _vo);
2604 2605

      if (over_tams) {
2606 2607
        str = " >";
        if (marked) {
2608
          str2 = " AND MARKED";
2609
        }
2610 2611
      } else if (marked) {
        str = " M";
2612
      } else {
2613
        str = " NOT";
2614
      }
2615 2616
    }

2617
    _out->print_cr("  "PTR_FORMAT": "PTR_FORMAT"%s%s",
2618 2619 2620 2621
                   p, (void*) obj, str, str2);
  }
};

2622
class PrintReachableObjectClosure : public ObjectClosure {
2623
private:
2624 2625 2626 2627 2628
  G1CollectedHeap* _g1h;
  outputStream*    _out;
  VerifyOption     _vo;
  bool             _all;
  HeapRegion*      _hr;
2629 2630

public:
2631 2632
  PrintReachableObjectClosure(outputStream* out,
                              VerifyOption  vo,
2633 2634
                              bool          all,
                              HeapRegion*   hr) :
2635 2636
    _g1h(G1CollectedHeap::heap()),
    _out(out), _vo(vo), _all(all), _hr(hr) { }
2637

2638
  void do_object(oop o) {
2639 2640
    bool over_tams = _g1h->allocated_since_marking(o, _hr, _vo);
    bool marked = _g1h->is_marked(o, _vo);
2641 2642 2643 2644 2645
    bool print_it = _all || over_tams || marked;

    if (print_it) {
      _out->print_cr(" "PTR_FORMAT"%s",
                     o, (over_tams) ? " >" : (marked) ? " M" : "");
2646
      PrintReachableOopClosure oopCl(_out, _vo, _all);
2647
      o->oop_iterate_no_header(&oopCl);
2648
    }
2649 2650 2651
  }
};

2652
class PrintReachableRegionClosure : public HeapRegionClosure {
2653
private:
2654 2655 2656 2657
  G1CollectedHeap* _g1h;
  outputStream*    _out;
  VerifyOption     _vo;
  bool             _all;
2658 2659 2660 2661 2662 2663

public:
  bool doHeapRegion(HeapRegion* hr) {
    HeapWord* b = hr->bottom();
    HeapWord* e = hr->end();
    HeapWord* t = hr->top();
2664
    HeapWord* p = _g1h->top_at_mark_start(hr, _vo);
2665
    _out->print_cr("** ["PTR_FORMAT", "PTR_FORMAT"] top: "PTR_FORMAT" "
2666
                   "TAMS: "PTR_FORMAT, b, e, t, p);
2667 2668 2669 2670 2671 2672 2673 2674
    _out->cr();

    HeapWord* from = b;
    HeapWord* to   = t;

    if (to > from) {
      _out->print_cr("Objects in ["PTR_FORMAT", "PTR_FORMAT"]", from, to);
      _out->cr();
2675
      PrintReachableObjectClosure ocl(_out, _vo, _all, hr);
2676 2677 2678
      hr->object_iterate_mem_careful(MemRegion(from, to), &ocl);
      _out->cr();
    }
2679 2680 2681 2682

    return false;
  }

2683 2684
  PrintReachableRegionClosure(outputStream* out,
                              VerifyOption  vo,
2685
                              bool          all) :
2686
    _g1h(G1CollectedHeap::heap()), _out(out), _vo(vo), _all(all) { }
2687 2688
};

2689
void ConcurrentMark::print_reachable(const char* str,
2690
                                     VerifyOption vo,
2691 2692 2693
                                     bool all) {
  gclog_or_tty->cr();
  gclog_or_tty->print_cr("== Doing heap dump... ");
2694 2695 2696 2697 2698 2699 2700 2701 2702 2703 2704 2705 2706 2707 2708 2709 2710 2711 2712 2713 2714 2715 2716

  if (G1PrintReachableBaseFile == NULL) {
    gclog_or_tty->print_cr("  #### error: no base file defined");
    return;
  }

  if (strlen(G1PrintReachableBaseFile) + 1 + strlen(str) >
      (JVM_MAXPATHLEN - 1)) {
    gclog_or_tty->print_cr("  #### error: file name too long");
    return;
  }

  char file_name[JVM_MAXPATHLEN];
  sprintf(file_name, "%s.%s", G1PrintReachableBaseFile, str);
  gclog_or_tty->print_cr("  dumping to file %s", file_name);

  fileStream fout(file_name);
  if (!fout.is_open()) {
    gclog_or_tty->print_cr("  #### error: could not open file");
    return;
  }

  outputStream* out = &fout;
2717
  out->print_cr("-- USING %s", _g1h->top_at_mark_start_str(vo));
2718 2719
  out->cr();

2720
  out->print_cr("--- ITERATING OVER REGIONS");
2721
  out->cr();
2722
  PrintReachableRegionClosure rcl(out, vo, all);
2723
  _g1h->heap_region_iterate(&rcl);
2724
  out->cr();
2725

2726
  gclog_or_tty->print_cr("  done");
2727
  gclog_or_tty->flush();
2728 2729
}

2730 2731
#endif // PRODUCT

2732
void ConcurrentMark::clearRangePrevBitmap(MemRegion mr) {
2733 2734 2735
  // Note we are overriding the read-only view of the prev map here, via
  // the cast.
  ((CMBitMap*)_prevMarkBitMap)->clearRange(mr);
2736 2737 2738
}

void ConcurrentMark::clearRangeNextBitmap(MemRegion mr) {
2739 2740 2741
  _nextMarkBitMap->clearRange(mr);
}

2742 2743 2744 2745 2746
void ConcurrentMark::clearRangeBothBitmaps(MemRegion mr) {
  clearRangePrevBitmap(mr);
  clearRangeNextBitmap(mr);
}

2747
HeapRegion*
2748
ConcurrentMark::claim_region(uint worker_id) {
2749 2750 2751 2752 2753 2754
  // "checkpoint" the finger
  HeapWord* finger = _finger;

  // _heap_end will not change underneath our feet; it only changes at
  // yield points.
  while (finger < _heap_end) {
2755
    assert(_g1h->is_in_g1_reserved(finger), "invariant");
2756

2757 2758 2759 2760 2761 2762 2763 2764 2765 2766 2767 2768 2769 2770 2771 2772 2773 2774 2775 2776 2777 2778 2779 2780
    // Note on how this code handles humongous regions. In the
    // normal case the finger will reach the start of a "starts
    // humongous" (SH) region. Its end will either be the end of the
    // last "continues humongous" (CH) region in the sequence, or the
    // standard end of the SH region (if the SH is the only region in
    // the sequence). That way claim_region() will skip over the CH
    // regions. However, there is a subtle race between a CM thread
    // executing this method and a mutator thread doing a humongous
    // object allocation. The two are not mutually exclusive as the CM
    // thread does not need to hold the Heap_lock when it gets
    // here. So there is a chance that claim_region() will come across
    // a free region that's in the progress of becoming a SH or a CH
    // region. In the former case, it will either
    //   a) Miss the update to the region's end, in which case it will
    //      visit every subsequent CH region, will find their bitmaps
    //      empty, and do nothing, or
    //   b) Will observe the update of the region's end (in which case
    //      it will skip the subsequent CH regions).
    // If it comes across a region that suddenly becomes CH, the
    // scenario will be similar to b). So, the race between
    // claim_region() and a humongous object allocation might force us
    // to do a bit of unnecessary work (due to some unnecessary bitmap
    // iterations) but it should not introduce and correctness issues.
    HeapRegion* curr_region   = _g1h->heap_region_containing_raw(finger);
2781 2782 2783 2784
    HeapWord*   bottom        = curr_region->bottom();
    HeapWord*   end           = curr_region->end();
    HeapWord*   limit         = curr_region->next_top_at_mark_start();

2785
    if (verbose_low()) {
2786
      gclog_or_tty->print_cr("[%u] curr_region = "PTR_FORMAT" "
2787 2788
                             "["PTR_FORMAT", "PTR_FORMAT"), "
                             "limit = "PTR_FORMAT,
2789
                             worker_id, curr_region, bottom, end, limit);
2790
    }
2791

2792 2793
    // Is the gap between reading the finger and doing the CAS too long?
    HeapWord* res = (HeapWord*) Atomic::cmpxchg_ptr(end, &_finger, finger);
2794 2795 2796 2797 2798
    if (res == finger) {
      // we succeeded

      // notice that _finger == end cannot be guaranteed here since,
      // someone else might have moved the finger even further
2799
      assert(_finger >= end, "the finger should have moved forward");
2800

2801
      if (verbose_low()) {
2802 2803
        gclog_or_tty->print_cr("[%u] we were successful with region = "
                               PTR_FORMAT, worker_id, curr_region);
2804
      }
2805 2806

      if (limit > bottom) {
2807
        if (verbose_low()) {
2808 2809
          gclog_or_tty->print_cr("[%u] region "PTR_FORMAT" is not empty, "
                                 "returning it ", worker_id, curr_region);
2810
        }
2811 2812
        return curr_region;
      } else {
2813 2814
        assert(limit == bottom,
               "the region limit should be at bottom");
2815
        if (verbose_low()) {
2816 2817
          gclog_or_tty->print_cr("[%u] region "PTR_FORMAT" is empty, "
                                 "returning NULL", worker_id, curr_region);
2818
        }
2819 2820 2821 2822 2823
        // we return NULL and the caller should try calling
        // claim_region() again.
        return NULL;
      }
    } else {
2824
      assert(_finger > finger, "the finger should have moved forward");
2825
      if (verbose_low()) {
2826
        gclog_or_tty->print_cr("[%u] somebody else moved the finger, "
2827 2828
                               "global finger = "PTR_FORMAT", "
                               "our finger = "PTR_FORMAT,
2829
                               worker_id, _finger, finger);
2830
      }
2831 2832 2833 2834 2835 2836 2837 2838 2839

      // read it again
      finger = _finger;
    }
  }

  return NULL;
}

2840 2841 2842 2843 2844 2845 2846 2847 2848 2849 2850 2851 2852 2853 2854 2855 2856 2857 2858 2859 2860 2861 2862 2863 2864 2865 2866 2867 2868 2869 2870 2871 2872 2873 2874 2875 2876 2877 2878 2879 2880 2881 2882 2883 2884 2885 2886 2887 2888
#ifndef PRODUCT
enum VerifyNoCSetOopsPhase {
  VerifyNoCSetOopsStack,
  VerifyNoCSetOopsQueues,
  VerifyNoCSetOopsSATBCompleted,
  VerifyNoCSetOopsSATBThread
};

class VerifyNoCSetOopsClosure : public OopClosure, public ObjectClosure  {
private:
  G1CollectedHeap* _g1h;
  VerifyNoCSetOopsPhase _phase;
  int _info;

  const char* phase_str() {
    switch (_phase) {
    case VerifyNoCSetOopsStack:         return "Stack";
    case VerifyNoCSetOopsQueues:        return "Queue";
    case VerifyNoCSetOopsSATBCompleted: return "Completed SATB Buffers";
    case VerifyNoCSetOopsSATBThread:    return "Thread SATB Buffers";
    default:                            ShouldNotReachHere();
    }
    return NULL;
  }

  void do_object_work(oop obj) {
    guarantee(!_g1h->obj_in_cs(obj),
              err_msg("obj: "PTR_FORMAT" in CSet, phase: %s, info: %d",
                      (void*) obj, phase_str(), _info));
  }

public:
  VerifyNoCSetOopsClosure() : _g1h(G1CollectedHeap::heap()) { }

  void set_phase(VerifyNoCSetOopsPhase phase, int info = -1) {
    _phase = phase;
    _info = info;
  }

  virtual void do_oop(oop* p) {
    oop obj = oopDesc::load_decode_heap_oop(p);
    do_object_work(obj);
  }

  virtual void do_oop(narrowOop* p) {
    // We should not come across narrow oops while scanning marking
    // stacks and SATB buffers.
    ShouldNotReachHere();
  }
2889

2890 2891
  virtual void do_object(oop obj) {
    do_object_work(obj);
2892
  }
2893 2894 2895 2896 2897 2898 2899 2900 2901 2902 2903 2904
};

void ConcurrentMark::verify_no_cset_oops(bool verify_stacks,
                                         bool verify_enqueued_buffers,
                                         bool verify_thread_buffers,
                                         bool verify_fingers) {
  assert(SafepointSynchronize::is_at_safepoint(), "should be at a safepoint");
  if (!G1CollectedHeap::heap()->mark_in_progress()) {
    return;
  }

  VerifyNoCSetOopsClosure cl;
2905

2906 2907 2908 2909 2910 2911
  if (verify_stacks) {
    // Verify entries on the global mark stack
    cl.set_phase(VerifyNoCSetOopsStack);
    _markStack.oops_do(&cl);

    // Verify entries on the task queues
2912
    for (uint i = 0; i < _max_worker_id; i += 1) {
2913
      cl.set_phase(VerifyNoCSetOopsQueues, i);
2914
      CMTaskQueue* queue = _task_queues->queue(i);
2915 2916
      queue->oops_do(&cl);
    }
2917 2918
  }

2919 2920 2921 2922 2923 2924 2925 2926 2927 2928 2929 2930 2931 2932 2933 2934 2935 2936 2937 2938 2939 2940 2941 2942 2943 2944 2945 2946 2947 2948 2949 2950
  SATBMarkQueueSet& satb_qs = JavaThread::satb_mark_queue_set();

  // Verify entries on the enqueued SATB buffers
  if (verify_enqueued_buffers) {
    cl.set_phase(VerifyNoCSetOopsSATBCompleted);
    satb_qs.iterate_completed_buffers_read_only(&cl);
  }

  // Verify entries on the per-thread SATB buffers
  if (verify_thread_buffers) {
    cl.set_phase(VerifyNoCSetOopsSATBThread);
    satb_qs.iterate_thread_buffers_read_only(&cl);
  }

  if (verify_fingers) {
    // Verify the global finger
    HeapWord* global_finger = finger();
    if (global_finger != NULL && global_finger < _heap_end) {
      // The global finger always points to a heap region boundary. We
      // use heap_region_containing_raw() to get the containing region
      // given that the global finger could be pointing to a free region
      // which subsequently becomes continues humongous. If that
      // happens, heap_region_containing() will return the bottom of the
      // corresponding starts humongous region and the check below will
      // not hold any more.
      HeapRegion* global_hr = _g1h->heap_region_containing_raw(global_finger);
      guarantee(global_finger == global_hr->bottom(),
                err_msg("global finger: "PTR_FORMAT" region: "HR_FORMAT,
                        global_finger, HR_FORMAT_PARAMS(global_hr)));
    }

    // Verify the task fingers
2951
    assert(parallel_marking_threads() <= _max_worker_id, "sanity");
2952 2953 2954 2955 2956 2957 2958 2959 2960 2961 2962 2963 2964
    for (int i = 0; i < (int) parallel_marking_threads(); i += 1) {
      CMTask* task = _tasks[i];
      HeapWord* task_finger = task->finger();
      if (task_finger != NULL && task_finger < _heap_end) {
        // See above note on the global finger verification.
        HeapRegion* task_hr = _g1h->heap_region_containing_raw(task_finger);
        guarantee(task_finger == task_hr->bottom() ||
                  !task_hr->in_collection_set(),
                  err_msg("task finger: "PTR_FORMAT" region: "HR_FORMAT,
                          task_finger, HR_FORMAT_PARAMS(task_hr)));
      }
    }
  }
2965
}
2966
#endif // PRODUCT
2967

2968 2969 2970
// Aggregate the counting data that was constructed concurrently
// with marking.
class AggregateCountDataHRClosure: public HeapRegionClosure {
2971
  G1CollectedHeap* _g1h;
2972
  ConcurrentMark* _cm;
2973
  CardTableModRefBS* _ct_bs;
2974
  BitMap* _cm_card_bm;
2975
  uint _max_worker_id;
2976 2977

 public:
2978
  AggregateCountDataHRClosure(G1CollectedHeap* g1h,
2979
                              BitMap* cm_card_bm,
2980
                              uint max_worker_id) :
2981 2982
    _g1h(g1h), _cm(g1h->concurrent_mark()),
    _ct_bs((CardTableModRefBS*) (g1h->barrier_set())),
2983
    _cm_card_bm(cm_card_bm), _max_worker_id(max_worker_id) { }
2984 2985 2986 2987 2988 2989 2990 2991 2992 2993 2994 2995 2996 2997 2998 2999 3000 3001 3002 3003 3004 3005 3006 3007 3008 3009 3010 3011 3012 3013

  bool doHeapRegion(HeapRegion* hr) {
    if (hr->continuesHumongous()) {
      // We will ignore these here and process them when their
      // associated "starts humongous" region is processed.
      // Note that we cannot rely on their associated
      // "starts humongous" region to have their bit set to 1
      // since, due to the region chunking in the parallel region
      // iteration, a "continues humongous" region might be visited
      // before its associated "starts humongous".
      return false;
    }

    HeapWord* start = hr->bottom();
    HeapWord* limit = hr->next_top_at_mark_start();
    HeapWord* end = hr->end();

    assert(start <= limit && limit <= hr->top() && hr->top() <= hr->end(),
           err_msg("Preconditions not met - "
                   "start: "PTR_FORMAT", limit: "PTR_FORMAT", "
                   "top: "PTR_FORMAT", end: "PTR_FORMAT,
                   start, limit, hr->top(), hr->end()));

    assert(hr->next_marked_bytes() == 0, "Precondition");

    if (start == limit) {
      // NTAMS of this region has not been set so nothing to do.
      return false;
    }

3014 3015 3016 3017
    // 'start' should be in the heap.
    assert(_g1h->is_in_g1_reserved(start) && _ct_bs->is_card_aligned(start), "sanity");
    // 'end' *may* be just beyone the end of the heap (if hr is the last region)
    assert(!_g1h->is_in_g1_reserved(end) || _ct_bs->is_card_aligned(end), "sanity");
3018 3019 3020 3021 3022

    BitMap::idx_t start_idx = _cm->card_bitmap_index_for(start);
    BitMap::idx_t limit_idx = _cm->card_bitmap_index_for(limit);
    BitMap::idx_t end_idx = _cm->card_bitmap_index_for(end);

3023 3024 3025 3026 3027 3028 3029 3030
    // If ntams is not card aligned then we bump card bitmap index
    // for limit so that we get the all the cards spanned by
    // the object ending at ntams.
    // Note: if this is the last region in the heap then ntams
    // could be actually just beyond the end of the the heap;
    // limit_idx will then  correspond to a (non-existent) card
    // that is also outside the heap.
    if (_g1h->is_in_g1_reserved(limit) && !_ct_bs->is_card_aligned(limit)) {
3031 3032 3033 3034 3035 3036
      limit_idx += 1;
    }

    assert(limit_idx <= end_idx, "or else use atomics");

    // Aggregate the "stripe" in the count data associated with hr.
3037
    uint hrs_index = hr->hrs_index();
3038 3039
    size_t marked_bytes = 0;

3040
    for (uint i = 0; i < _max_worker_id; i += 1) {
3041 3042 3043 3044 3045 3046 3047
      size_t* marked_bytes_array = _cm->count_marked_bytes_array_for(i);
      BitMap* task_card_bm = _cm->count_card_bitmap_for(i);

      // Fetch the marked_bytes in this region for task i and
      // add it to the running total for this region.
      marked_bytes += marked_bytes_array[hrs_index];

3048
      // Now union the bitmaps[0,max_worker_id)[start_idx..limit_idx)
3049 3050 3051 3052 3053 3054 3055 3056 3057 3058
      // into the global card bitmap.
      BitMap::idx_t scan_idx = task_card_bm->get_next_one_offset(start_idx, limit_idx);

      while (scan_idx < limit_idx) {
        assert(task_card_bm->at(scan_idx) == true, "should be");
        _cm_card_bm->set_bit(scan_idx);
        assert(_cm_card_bm->at(scan_idx) == true, "should be");

        // BitMap::get_next_one_offset() can handle the case when
        // its left_offset parameter is greater than its right_offset
3059
        // parameter. It does, however, have an early exit if
3060 3061 3062 3063 3064 3065 3066 3067 3068 3069 3070 3071 3072 3073 3074 3075 3076 3077 3078 3079
        // left_offset == right_offset. So let's limit the value
        // passed in for left offset here.
        BitMap::idx_t next_idx = MIN2(scan_idx + 1, limit_idx);
        scan_idx = task_card_bm->get_next_one_offset(next_idx, limit_idx);
      }
    }

    // Update the marked bytes for this region.
    hr->add_to_marked_bytes(marked_bytes);

    // Next heap region
    return false;
  }
};

class G1AggregateCountDataTask: public AbstractGangTask {
protected:
  G1CollectedHeap* _g1h;
  ConcurrentMark* _cm;
  BitMap* _cm_card_bm;
3080
  uint _max_worker_id;
3081 3082 3083 3084 3085 3086
  int _active_workers;

public:
  G1AggregateCountDataTask(G1CollectedHeap* g1h,
                           ConcurrentMark* cm,
                           BitMap* cm_card_bm,
3087
                           uint max_worker_id,
3088 3089 3090
                           int n_workers) :
    AbstractGangTask("Count Aggregation"),
    _g1h(g1h), _cm(cm), _cm_card_bm(cm_card_bm),
3091
    _max_worker_id(max_worker_id),
3092 3093 3094
    _active_workers(n_workers) { }

  void work(uint worker_id) {
3095
    AggregateCountDataHRClosure cl(_g1h, _cm_card_bm, _max_worker_id);
3096 3097 3098 3099 3100 3101 3102 3103 3104 3105 3106 3107 3108 3109 3110 3111 3112 3113

    if (G1CollectedHeap::use_parallel_gc_threads()) {
      _g1h->heap_region_par_iterate_chunked(&cl, worker_id,
                                            _active_workers,
                                            HeapRegion::AggregateCountClaimValue);
    } else {
      _g1h->heap_region_iterate(&cl);
    }
  }
};


void ConcurrentMark::aggregate_count_data() {
  int n_workers = (G1CollectedHeap::use_parallel_gc_threads() ?
                        _g1h->workers()->active_workers() :
                        1);

  G1AggregateCountDataTask g1_par_agg_task(_g1h, this, &_card_bm,
3114
                                           _max_worker_id, n_workers);
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

  if (G1CollectedHeap::use_parallel_gc_threads()) {
    assert(_g1h->check_heap_region_claim_values(HeapRegion::InitialClaimValue),
           "sanity check");
    _g1h->set_par_threads(n_workers);
    _g1h->workers()->run_task(&g1_par_agg_task);
    _g1h->set_par_threads(0);

    assert(_g1h->check_heap_region_claim_values(HeapRegion::AggregateCountClaimValue),
           "sanity check");
    _g1h->reset_heap_region_claim_values();
  } else {
    g1_par_agg_task.work(0);
  }
}

// Clear the per-worker arrays used to store the per-region counting data
void ConcurrentMark::clear_all_count_data() {
  // Clear the global card bitmap - it will be filled during
  // liveness count aggregation (during remark) and the
  // final counting task.
  _card_bm.clear();

  // Clear the global region bitmap - it will be filled as part
  // of the final counting task.
  _region_bm.clear();

3142
  uint max_regions = _g1h->max_regions();
3143
  assert(_max_worker_id > 0, "uninitialized");
3144

3145
  for (uint i = 0; i < _max_worker_id; i += 1) {
3146 3147 3148 3149 3150 3151
    BitMap* task_card_bm = count_card_bitmap_for(i);
    size_t* marked_bytes_array = count_marked_bytes_array_for(i);

    assert(task_card_bm->size() == _card_bm.size(), "size mismatch");
    assert(marked_bytes_array != NULL, "uninitialized");

3152
    memset(marked_bytes_array, 0, (size_t) max_regions * sizeof(size_t));
3153 3154 3155 3156
    task_card_bm->clear();
  }
}

3157 3158 3159 3160 3161 3162 3163 3164 3165 3166 3167 3168 3169 3170
void ConcurrentMark::print_stats() {
  if (verbose_stats()) {
    gclog_or_tty->print_cr("---------------------------------------------------------------------");
    for (size_t i = 0; i < _active_tasks; ++i) {
      _tasks[i]->print_stats();
      gclog_or_tty->print_cr("---------------------------------------------------------------------");
    }
  }
}

// abandon current marking iteration due to a Full GC
void ConcurrentMark::abort() {
  // Clear all marks to force marking thread to do nothing
  _nextMarkBitMap->clearAll();
3171 3172
  // Clear the liveness counting data
  clear_all_count_data();
3173
  // Empty mark stack
3174
  reset_marking_state();
3175
  for (uint i = 0; i < _max_worker_id; ++i) {
3176
    _tasks[i]->clear_region_fields();
3177
  }
3178 3179 3180 3181
  _has_aborted = true;

  SATBMarkQueueSet& satb_mq_set = JavaThread::satb_mark_queue_set();
  satb_mq_set.abandon_partial_marking();
3182 3183 3184 3185 3186
  // This can be called either during or outside marking, we'll read
  // the expected_active value from the SATB queue set.
  satb_mq_set.set_active_all_threads(
                                 false, /* new active value */
                                 satb_mq_set.is_active() /* expected_active */);
3187 3188 3189 3190 3191 3192 3193 3194 3195 3196 3197 3198 3199 3200 3201 3202 3203 3204 3205 3206 3207 3208 3209 3210 3211 3212 3213 3214 3215 3216 3217 3218 3219 3220 3221 3222 3223 3224
}

static void print_ms_time_info(const char* prefix, const char* name,
                               NumberSeq& ns) {
  gclog_or_tty->print_cr("%s%5d %12s: total time = %8.2f s (avg = %8.2f ms).",
                         prefix, ns.num(), name, ns.sum()/1000.0, ns.avg());
  if (ns.num() > 0) {
    gclog_or_tty->print_cr("%s         [std. dev = %8.2f ms, max = %8.2f ms]",
                           prefix, ns.sd(), ns.maximum());
  }
}

void ConcurrentMark::print_summary_info() {
  gclog_or_tty->print_cr(" Concurrent marking:");
  print_ms_time_info("  ", "init marks", _init_times);
  print_ms_time_info("  ", "remarks", _remark_times);
  {
    print_ms_time_info("     ", "final marks", _remark_mark_times);
    print_ms_time_info("     ", "weak refs", _remark_weak_ref_times);

  }
  print_ms_time_info("  ", "cleanups", _cleanup_times);
  gclog_or_tty->print_cr("    Final counting total time = %8.2f s (avg = %8.2f ms).",
                         _total_counting_time,
                         (_cleanup_times.num() > 0 ? _total_counting_time * 1000.0 /
                          (double)_cleanup_times.num()
                         : 0.0));
  if (G1ScrubRemSets) {
    gclog_or_tty->print_cr("    RS scrub total time = %8.2f s (avg = %8.2f ms).",
                           _total_rs_scrub_time,
                           (_cleanup_times.num() > 0 ? _total_rs_scrub_time * 1000.0 /
                            (double)_cleanup_times.num()
                           : 0.0));
  }
  gclog_or_tty->print_cr("  Total stop_world time = %8.2f s.",
                         (_init_times.sum() + _remark_times.sum() +
                          _cleanup_times.sum())/1000.0);
  gclog_or_tty->print_cr("  Total concurrent time = %8.2f s "
3225
                "(%8.2f s marking).",
3226
                cmThread()->vtime_accum(),
3227
                cmThread()->vtime_mark_accum());
3228 3229
}

T
tonyp 已提交
3230
void ConcurrentMark::print_worker_threads_on(outputStream* st) const {
3231 3232 3233
  if (use_parallel_marking_threads()) {
    _parallel_workers->print_worker_threads_on(st);
  }
T
tonyp 已提交
3234 3235
}

3236
// We take a break if someone is trying to stop the world.
3237
bool ConcurrentMark::do_yield_check(uint worker_id) {
3238
  if (should_yield()) {
3239
    if (worker_id == 0) {
3240
      _g1h->g1_policy()->record_concurrent_pause();
3241
    }
3242 3243 3244 3245 3246 3247 3248 3249 3250 3251 3252 3253 3254 3255 3256 3257 3258 3259
    cmThread()->yield();
    return true;
  } else {
    return false;
  }
}

bool ConcurrentMark::should_yield() {
  return cmThread()->should_yield();
}

bool ConcurrentMark::containing_card_is_marked(void* p) {
  size_t offset = pointer_delta(p, _g1h->reserved_region().start(), 1);
  return _card_bm.at(offset >> CardTableModRefBS::card_shift);
}

bool ConcurrentMark::containing_cards_are_marked(void* start,
                                                 void* last) {
3260 3261
  return containing_card_is_marked(start) &&
         containing_card_is_marked(last);
3262 3263 3264 3265 3266 3267 3268
}

#ifndef PRODUCT
// for debugging purposes
void ConcurrentMark::print_finger() {
  gclog_or_tty->print_cr("heap ["PTR_FORMAT", "PTR_FORMAT"), global finger = "PTR_FORMAT,
                         _heap_start, _heap_end, _finger);
3269 3270
  for (uint i = 0; i < _max_worker_id; ++i) {
    gclog_or_tty->print("   %u: "PTR_FORMAT, i, _tasks[i]->finger());
3271 3272 3273 3274 3275
  }
  gclog_or_tty->print_cr("");
}
#endif

3276 3277 3278 3279
void CMTask::scan_object(oop obj) {
  assert(_nextMarkBitMap->isMarked((HeapWord*) obj), "invariant");

  if (_cm->verbose_high()) {
3280 3281
    gclog_or_tty->print_cr("[%u] we're scanning object "PTR_FORMAT,
                           _worker_id, (void*) obj);
3282 3283 3284 3285 3286 3287 3288 3289 3290 3291
  }

  size_t obj_size = obj->size();
  _words_scanned += obj_size;

  obj->oop_iterate(_cm_oop_closure);
  statsOnly( ++_objs_scanned );
  check_limits();
}

3292 3293 3294 3295 3296 3297 3298 3299 3300
// Closure for iteration over bitmaps
class CMBitMapClosure : public BitMapClosure {
private:
  // the bitmap that is being iterated over
  CMBitMap*                   _nextMarkBitMap;
  ConcurrentMark*             _cm;
  CMTask*                     _task;

public:
3301 3302
  CMBitMapClosure(CMTask *task, ConcurrentMark* cm, CMBitMap* nextMarkBitMap) :
    _task(task), _cm(cm), _nextMarkBitMap(nextMarkBitMap) { }
3303 3304 3305

  bool do_bit(size_t offset) {
    HeapWord* addr = _nextMarkBitMap->offsetToHeapWord(offset);
3306 3307
    assert(_nextMarkBitMap->isMarked(addr), "invariant");
    assert( addr < _cm->finger(), "invariant");
3308

3309 3310 3311 3312 3313
    statsOnly( _task->increase_objs_found_on_bitmap() );
    assert(addr >= _task->finger(), "invariant");

    // We move that task's local finger along.
    _task->move_finger_to(addr);
3314 3315 3316 3317 3318 3319 3320 3321 3322 3323 3324 3325 3326 3327 3328 3329 3330 3331 3332 3333 3334 3335 3336 3337 3338 3339

    _task->scan_object(oop(addr));
    // we only partially drain the local queue and global stack
    _task->drain_local_queue(true);
    _task->drain_global_stack(true);

    // if the has_aborted flag has been raised, we need to bail out of
    // the iteration
    return !_task->has_aborted();
  }
};

// Closure for iterating over objects, currently only used for
// processing SATB buffers.
class CMObjectClosure : public ObjectClosure {
private:
  CMTask* _task;

public:
  void do_object(oop obj) {
    _task->deal_with_reference(obj);
  }

  CMObjectClosure(CMTask* task) : _task(task) { }
};

3340 3341 3342 3343 3344
G1CMOopClosure::G1CMOopClosure(G1CollectedHeap* g1h,
                               ConcurrentMark* cm,
                               CMTask* task)
  : _g1h(g1h), _cm(cm), _task(task) {
  assert(_ref_processor == NULL, "should be initialized to NULL");
3345

3346
  if (G1UseConcMarkReferenceProcessing) {
3347
    _ref_processor = g1h->ref_processor_cm();
3348
    assert(_ref_processor != NULL, "should not be NULL");
3349
  }
3350
}
3351 3352

void CMTask::setup_for_region(HeapRegion* hr) {
3353 3354 3355 3356 3357
  // Separated the asserts so that we know which one fires.
  assert(hr != NULL,
        "claim_region() should have filtered out continues humongous regions");
  assert(!hr->continuesHumongous(),
        "claim_region() should have filtered out continues humongous regions");
3358

3359
  if (_cm->verbose_low()) {
3360 3361
    gclog_or_tty->print_cr("[%u] setting up for region "PTR_FORMAT,
                           _worker_id, hr);
3362
  }
3363 3364 3365 3366 3367 3368 3369 3370 3371 3372 3373 3374

  _curr_region  = hr;
  _finger       = hr->bottom();
  update_region_limit();
}

void CMTask::update_region_limit() {
  HeapRegion* hr            = _curr_region;
  HeapWord* bottom          = hr->bottom();
  HeapWord* limit           = hr->next_top_at_mark_start();

  if (limit == bottom) {
3375
    if (_cm->verbose_low()) {
3376
      gclog_or_tty->print_cr("[%u] found an empty region "
3377
                             "["PTR_FORMAT", "PTR_FORMAT")",
3378
                             _worker_id, bottom, limit);
3379
    }
3380 3381 3382 3383 3384 3385 3386
    // The region was collected underneath our feet.
    // We set the finger to bottom to ensure that the bitmap
    // iteration that will follow this will not do anything.
    // (this is not a condition that holds when we set the region up,
    // as the region is not supposed to be empty in the first place)
    _finger = bottom;
  } else if (limit >= _region_limit) {
3387
    assert(limit >= _finger, "peace of mind");
3388
  } else {
3389
    assert(limit < _region_limit, "only way to get here");
3390 3391 3392 3393 3394 3395 3396 3397 3398 3399 3400 3401 3402 3403 3404 3405 3406
    // This can happen under some pretty unusual circumstances.  An
    // evacuation pause empties the region underneath our feet (NTAMS
    // at bottom). We then do some allocation in the region (NTAMS
    // stays at bottom), followed by the region being used as a GC
    // alloc region (NTAMS will move to top() and the objects
    // originally below it will be grayed). All objects now marked in
    // the region are explicitly grayed, if below the global finger,
    // and we do not need in fact to scan anything else. So, we simply
    // set _finger to be limit to ensure that the bitmap iteration
    // doesn't do anything.
    _finger = limit;
  }

  _region_limit = limit;
}

void CMTask::giveup_current_region() {
3407
  assert(_curr_region != NULL, "invariant");
3408
  if (_cm->verbose_low()) {
3409 3410
    gclog_or_tty->print_cr("[%u] giving up region "PTR_FORMAT,
                           _worker_id, _curr_region);
3411
  }
3412 3413 3414 3415 3416 3417 3418 3419 3420 3421 3422
  clear_region_fields();
}

void CMTask::clear_region_fields() {
  // Values for these three fields that indicate that we're not
  // holding on to a region.
  _curr_region   = NULL;
  _finger        = NULL;
  _region_limit  = NULL;
}

3423 3424 3425 3426 3427 3428 3429 3430 3431
void CMTask::set_cm_oop_closure(G1CMOopClosure* cm_oop_closure) {
  if (cm_oop_closure == NULL) {
    assert(_cm_oop_closure != NULL, "invariant");
  } else {
    assert(_cm_oop_closure == NULL, "invariant");
  }
  _cm_oop_closure = cm_oop_closure;
}

3432
void CMTask::reset(CMBitMap* nextMarkBitMap) {
3433
  guarantee(nextMarkBitMap != NULL, "invariant");
3434

3435
  if (_cm->verbose_low()) {
3436
    gclog_or_tty->print_cr("[%u] resetting", _worker_id);
3437
  }
3438 3439 3440 3441 3442 3443 3444 3445 3446 3447 3448 3449 3450 3451 3452 3453 3454 3455 3456 3457 3458 3459 3460 3461 3462 3463 3464 3465 3466 3467 3468 3469 3470 3471 3472 3473 3474 3475 3476 3477 3478 3479 3480

  _nextMarkBitMap                = nextMarkBitMap;
  clear_region_fields();

  _calls                         = 0;
  _elapsed_time_ms               = 0.0;
  _termination_time_ms           = 0.0;
  _termination_start_time_ms     = 0.0;

#if _MARKING_STATS_
  _local_pushes                  = 0;
  _local_pops                    = 0;
  _local_max_size                = 0;
  _objs_scanned                  = 0;
  _global_pushes                 = 0;
  _global_pops                   = 0;
  _global_max_size               = 0;
  _global_transfers_to           = 0;
  _global_transfers_from         = 0;
  _regions_claimed               = 0;
  _objs_found_on_bitmap          = 0;
  _satb_buffers_processed        = 0;
  _steal_attempts                = 0;
  _steals                        = 0;
  _aborted                       = 0;
  _aborted_overflow              = 0;
  _aborted_cm_aborted            = 0;
  _aborted_yield                 = 0;
  _aborted_timed_out             = 0;
  _aborted_satb                  = 0;
  _aborted_termination           = 0;
#endif // _MARKING_STATS_
}

bool CMTask::should_exit_termination() {
  regular_clock_call();
  // This is called when we are in the termination protocol. We should
  // quit if, for some reason, this task wants to abort or the global
  // stack is not empty (this means that we can get work from it).
  return !_cm->mark_stack_empty() || has_aborted();
}

void CMTask::reached_limit() {
3481 3482 3483
  assert(_words_scanned >= _words_scanned_limit ||
         _refs_reached >= _refs_reached_limit ,
         "shouldn't have been called otherwise");
3484 3485 3486 3487
  regular_clock_call();
}

void CMTask::regular_clock_call() {
3488
  if (has_aborted()) return;
3489 3490 3491 3492 3493 3494 3495 3496 3497 3498 3499 3500 3501 3502 3503 3504

  // First, we need to recalculate the words scanned and refs reached
  // limits for the next clock call.
  recalculate_limits();

  // During the regular clock call we do the following

  // (1) If an overflow has been flagged, then we abort.
  if (_cm->has_overflown()) {
    set_has_aborted();
    return;
  }

  // If we are not concurrent (i.e. we're doing remark) we don't need
  // to check anything else. The other steps are only needed during
  // the concurrent marking phase.
3505
  if (!concurrent()) return;
3506 3507 3508 3509 3510 3511 3512 3513 3514 3515 3516 3517

  // (2) If marking has been aborted for Full GC, then we also abort.
  if (_cm->has_aborted()) {
    set_has_aborted();
    statsOnly( ++_aborted_cm_aborted );
    return;
  }

  double curr_time_ms = os::elapsedVTime() * 1000.0;

  // (3) If marking stats are enabled, then we update the step history.
#if _MARKING_STATS_
3518
  if (_words_scanned >= _words_scanned_limit) {
3519
    ++_clock_due_to_scanning;
3520 3521
  }
  if (_refs_reached >= _refs_reached_limit) {
3522
    ++_clock_due_to_marking;
3523
  }
3524 3525 3526 3527 3528 3529

  double last_interval_ms = curr_time_ms - _interval_start_time_ms;
  _interval_start_time_ms = curr_time_ms;
  _all_clock_intervals_ms.add(last_interval_ms);

  if (_cm->verbose_medium()) {
3530
      gclog_or_tty->print_cr("[%u] regular clock, interval = %1.2lfms, "
3531
                        "scanned = %d%s, refs reached = %d%s",
3532
                        _worker_id, last_interval_ms,
3533 3534 3535 3536
                        _words_scanned,
                        (_words_scanned >= _words_scanned_limit) ? " (*)" : "",
                        _refs_reached,
                        (_refs_reached >= _refs_reached_limit) ? " (*)" : "");
3537 3538 3539 3540 3541 3542 3543 3544 3545 3546 3547 3548 3549 3550 3551 3552 3553
  }
#endif // _MARKING_STATS_

  // (4) We check whether we should yield. If we have to, then we abort.
  if (_cm->should_yield()) {
    // We should yield. To do this we abort the task. The caller is
    // responsible for yielding.
    set_has_aborted();
    statsOnly( ++_aborted_yield );
    return;
  }

  // (5) We check whether we've reached our time quota. If we have,
  // then we abort.
  double elapsed_time_ms = curr_time_ms - _start_time_ms;
  if (elapsed_time_ms > _time_target_ms) {
    set_has_aborted();
3554
    _has_timed_out = true;
3555 3556 3557 3558 3559 3560 3561 3562
    statsOnly( ++_aborted_timed_out );
    return;
  }

  // (6) Finally, we check whether there are enough completed STAB
  // buffers available for processing. If there are, we abort.
  SATBMarkQueueSet& satb_mq_set = JavaThread::satb_mark_queue_set();
  if (!_draining_satb_buffers && satb_mq_set.process_completed_buffers()) {
3563
    if (_cm->verbose_low()) {
3564 3565
      gclog_or_tty->print_cr("[%u] aborting to deal with pending SATB buffers",
                             _worker_id);
3566
    }
3567 3568 3569 3570 3571 3572 3573 3574 3575 3576 3577 3578 3579 3580 3581 3582 3583 3584 3585 3586 3587 3588
    // we do need to process SATB buffers, we'll abort and restart
    // the marking task to do so
    set_has_aborted();
    statsOnly( ++_aborted_satb );
    return;
  }
}

void CMTask::recalculate_limits() {
  _real_words_scanned_limit = _words_scanned + words_scanned_period;
  _words_scanned_limit      = _real_words_scanned_limit;

  _real_refs_reached_limit  = _refs_reached  + refs_reached_period;
  _refs_reached_limit       = _real_refs_reached_limit;
}

void CMTask::decrease_limits() {
  // This is called when we believe that we're going to do an infrequent
  // operation which will increase the per byte scanned cost (i.e. move
  // entries to/from the global stack). It basically tries to decrease the
  // scanning limit so that the clock is called earlier.

3589
  if (_cm->verbose_medium()) {
3590
    gclog_or_tty->print_cr("[%u] decreasing limits", _worker_id);
3591
  }
3592 3593 3594 3595 3596 3597 3598 3599 3600 3601 3602 3603 3604 3605 3606 3607 3608 3609 3610 3611 3612 3613 3614 3615 3616

  _words_scanned_limit = _real_words_scanned_limit -
    3 * words_scanned_period / 4;
  _refs_reached_limit  = _real_refs_reached_limit -
    3 * refs_reached_period / 4;
}

void CMTask::move_entries_to_global_stack() {
  // local array where we'll store the entries that will be popped
  // from the local queue
  oop buffer[global_stack_transfer_size];

  int n = 0;
  oop obj;
  while (n < global_stack_transfer_size && _task_queue->pop_local(obj)) {
    buffer[n] = obj;
    ++n;
  }

  if (n > 0) {
    // we popped at least one entry from the local queue

    statsOnly( ++_global_transfers_to; _local_pops += n );

    if (!_cm->mark_stack_push(buffer, n)) {
3617
      if (_cm->verbose_low()) {
3618 3619
        gclog_or_tty->print_cr("[%u] aborting due to global stack overflow",
                               _worker_id);
3620
      }
3621 3622 3623 3624
      set_has_aborted();
    } else {
      // the transfer was successful

3625
      if (_cm->verbose_medium()) {
3626 3627
        gclog_or_tty->print_cr("[%u] pushed %d entries to the global stack",
                               _worker_id, n);
3628
      }
3629
      statsOnly( int tmp_size = _cm->mark_stack_size();
3630
                 if (tmp_size > _global_max_size) {
3631
                   _global_max_size = tmp_size;
3632
                 }
3633 3634 3635 3636 3637 3638 3639 3640 3641 3642 3643 3644 3645 3646
                 _global_pushes += n );
    }
  }

  // this operation was quite expensive, so decrease the limits
  decrease_limits();
}

void CMTask::get_entries_from_global_stack() {
  // local array where we'll store the entries that will be popped
  // from the global stack.
  oop buffer[global_stack_transfer_size];
  int n;
  _cm->mark_stack_pop(buffer, global_stack_transfer_size, &n);
3647 3648
  assert(n <= global_stack_transfer_size,
         "we should not pop more than the given limit");
3649 3650 3651 3652
  if (n > 0) {
    // yes, we did actually pop at least one entry

    statsOnly( ++_global_transfers_from; _global_pops += n );
3653
    if (_cm->verbose_medium()) {
3654 3655
      gclog_or_tty->print_cr("[%u] popped %d entries from the global stack",
                             _worker_id, n);
3656
    }
3657 3658 3659 3660
    for (int i = 0; i < n; ++i) {
      bool success = _task_queue->push(buffer[i]);
      // We only call this when the local queue is empty or under a
      // given target limit. So, we do not expect this push to fail.
3661
      assert(success, "invariant");
3662 3663 3664
    }

    statsOnly( int tmp_size = _task_queue->size();
3665
               if (tmp_size > _local_max_size) {
3666
                 _local_max_size = tmp_size;
3667
               }
3668 3669 3670 3671 3672 3673 3674 3675
               _local_pushes += n );
  }

  // this operation was quite expensive, so decrease the limits
  decrease_limits();
}

void CMTask::drain_local_queue(bool partially) {
3676
  if (has_aborted()) return;
3677 3678 3679 3680 3681

  // Decide what the target size is, depending whether we're going to
  // drain it partially (so that other tasks can steal if they run out
  // of things to do) or totally (at the very end).
  size_t target_size;
3682
  if (partially) {
3683
    target_size = MIN2((size_t)_task_queue->max_elems()/3, GCDrainStackTargetSize);
3684
  } else {
3685
    target_size = 0;
3686
  }
3687 3688

  if (_task_queue->size() > target_size) {
3689
    if (_cm->verbose_high()) {
3690 3691
      gclog_or_tty->print_cr("[%u] draining local queue, target size = %d",
                             _worker_id, target_size);
3692
    }
3693 3694 3695 3696 3697 3698

    oop obj;
    bool ret = _task_queue->pop_local(obj);
    while (ret) {
      statsOnly( ++_local_pops );

3699
      if (_cm->verbose_high()) {
3700
        gclog_or_tty->print_cr("[%u] popped "PTR_FORMAT, _worker_id,
3701
                               (void*) obj);
3702
      }
3703

3704
      assert(_g1h->is_in_g1_reserved((HeapWord*) obj), "invariant" );
T
tonyp 已提交
3705
      assert(!_g1h->is_on_master_free_list(
3706
                  _g1h->heap_region_containing((HeapWord*) obj)), "invariant");
3707 3708 3709

      scan_object(obj);

3710
      if (_task_queue->size() <= target_size || has_aborted()) {
3711
        ret = false;
3712
      } else {
3713
        ret = _task_queue->pop_local(obj);
3714
      }
3715 3716
    }

3717
    if (_cm->verbose_high()) {
3718 3719
      gclog_or_tty->print_cr("[%u] drained local queue, size = %d",
                             _worker_id, _task_queue->size());
3720
    }
3721 3722 3723 3724
  }
}

void CMTask::drain_global_stack(bool partially) {
3725
  if (has_aborted()) return;
3726 3727 3728

  // We have a policy to drain the local queue before we attempt to
  // drain the global stack.
3729
  assert(partially || _task_queue->size() == 0, "invariant");
3730 3731 3732 3733 3734 3735 3736 3737

  // Decide what the target size is, depending whether we're going to
  // drain it partially (so that other tasks can steal if they run out
  // of things to do) or totally (at the very end).  Notice that,
  // because we move entries from the global stack in chunks or
  // because another task might be doing the same, we might in fact
  // drop below the target. But, this is not a problem.
  size_t target_size;
3738
  if (partially) {
3739
    target_size = _cm->partial_mark_stack_size_target();
3740
  } else {
3741
    target_size = 0;
3742
  }
3743 3744

  if (_cm->mark_stack_size() > target_size) {
3745
    if (_cm->verbose_low()) {
3746 3747
      gclog_or_tty->print_cr("[%u] draining global_stack, target size %d",
                             _worker_id, target_size);
3748
    }
3749 3750 3751 3752 3753 3754

    while (!has_aborted() && _cm->mark_stack_size() > target_size) {
      get_entries_from_global_stack();
      drain_local_queue(partially);
    }

3755
    if (_cm->verbose_low()) {
3756 3757
      gclog_or_tty->print_cr("[%u] drained global stack, size = %d",
                             _worker_id, _cm->mark_stack_size());
3758
    }
3759 3760 3761 3762 3763 3764 3765 3766
  }
}

// SATB Queue has several assumptions on whether to call the par or
// non-par versions of the methods. this is why some of the code is
// replicated. We should really get rid of the single-threaded version
// of the code to simplify things.
void CMTask::drain_satb_buffers() {
3767
  if (has_aborted()) return;
3768 3769 3770 3771 3772 3773 3774 3775 3776

  // We set this so that the regular clock knows that we're in the
  // middle of draining buffers and doesn't set the abort flag when it
  // notices that SATB buffers are available for draining. It'd be
  // very counter productive if it did that. :-)
  _draining_satb_buffers = true;

  CMObjectClosure oc(this);
  SATBMarkQueueSet& satb_mq_set = JavaThread::satb_mark_queue_set();
3777
  if (G1CollectedHeap::use_parallel_gc_threads()) {
3778
    satb_mq_set.set_par_closure(_worker_id, &oc);
3779
  } else {
3780
    satb_mq_set.set_closure(&oc);
3781
  }
3782 3783 3784

  // This keeps claiming and applying the closure to completed buffers
  // until we run out of buffers or we need to abort.
3785
  if (G1CollectedHeap::use_parallel_gc_threads()) {
3786
    while (!has_aborted() &&
3787
           satb_mq_set.par_apply_closure_to_completed_buffer(_worker_id)) {
3788
      if (_cm->verbose_medium()) {
3789
        gclog_or_tty->print_cr("[%u] processed an SATB buffer", _worker_id);
3790
      }
3791 3792 3793 3794 3795 3796
      statsOnly( ++_satb_buffers_processed );
      regular_clock_call();
    }
  } else {
    while (!has_aborted() &&
           satb_mq_set.apply_closure_to_completed_buffer()) {
3797
      if (_cm->verbose_medium()) {
3798
        gclog_or_tty->print_cr("[%u] processed an SATB buffer", _worker_id);
3799
      }
3800 3801 3802 3803 3804 3805 3806
      statsOnly( ++_satb_buffers_processed );
      regular_clock_call();
    }
  }

  if (!concurrent() && !has_aborted()) {
    // We should only do this during remark.
3807
    if (G1CollectedHeap::use_parallel_gc_threads()) {
3808
      satb_mq_set.par_iterate_closure_all_threads(_worker_id);
3809
    } else {
3810
      satb_mq_set.iterate_closure_all_threads();
3811
    }
3812 3813 3814 3815
  }

  _draining_satb_buffers = false;

3816 3817 3818
  assert(has_aborted() ||
         concurrent() ||
         satb_mq_set.completed_buffers_num() == 0, "invariant");
3819

3820
  if (G1CollectedHeap::use_parallel_gc_threads()) {
3821
    satb_mq_set.set_par_closure(_worker_id, NULL);
3822
  } else {
3823
    satb_mq_set.set_closure(NULL);
3824
  }
3825 3826 3827 3828 3829 3830 3831

  // again, this was a potentially expensive operation, decrease the
  // limits to get the regular clock call early
  decrease_limits();
}

void CMTask::print_stats() {
3832 3833
  gclog_or_tty->print_cr("Marking Stats, task = %u, calls = %d",
                         _worker_id, _calls);
3834 3835 3836 3837 3838 3839 3840 3841 3842 3843 3844 3845 3846 3847 3848 3849 3850 3851 3852 3853 3854 3855 3856 3857 3858
  gclog_or_tty->print_cr("  Elapsed time = %1.2lfms, Termination time = %1.2lfms",
                         _elapsed_time_ms, _termination_time_ms);
  gclog_or_tty->print_cr("  Step Times (cum): num = %d, avg = %1.2lfms, sd = %1.2lfms",
                         _step_times_ms.num(), _step_times_ms.avg(),
                         _step_times_ms.sd());
  gclog_or_tty->print_cr("                    max = %1.2lfms, total = %1.2lfms",
                         _step_times_ms.maximum(), _step_times_ms.sum());

#if _MARKING_STATS_
  gclog_or_tty->print_cr("  Clock Intervals (cum): num = %d, avg = %1.2lfms, sd = %1.2lfms",
                         _all_clock_intervals_ms.num(), _all_clock_intervals_ms.avg(),
                         _all_clock_intervals_ms.sd());
  gclog_or_tty->print_cr("                         max = %1.2lfms, total = %1.2lfms",
                         _all_clock_intervals_ms.maximum(),
                         _all_clock_intervals_ms.sum());
  gclog_or_tty->print_cr("  Clock Causes (cum): scanning = %d, marking = %d",
                         _clock_due_to_scanning, _clock_due_to_marking);
  gclog_or_tty->print_cr("  Objects: scanned = %d, found on the bitmap = %d",
                         _objs_scanned, _objs_found_on_bitmap);
  gclog_or_tty->print_cr("  Local Queue:  pushes = %d, pops = %d, max size = %d",
                         _local_pushes, _local_pops, _local_max_size);
  gclog_or_tty->print_cr("  Global Stack: pushes = %d, pops = %d, max size = %d",
                         _global_pushes, _global_pops, _global_max_size);
  gclog_or_tty->print_cr("                transfers to = %d, transfers from = %d",
                         _global_transfers_to,_global_transfers_from);
3859
  gclog_or_tty->print_cr("  Regions: claimed = %d", _regions_claimed);
3860 3861 3862 3863 3864 3865 3866 3867 3868 3869 3870 3871 3872 3873 3874 3875 3876 3877 3878 3879 3880 3881 3882 3883 3884 3885 3886 3887 3888 3889 3890 3891 3892 3893 3894 3895 3896 3897 3898 3899 3900 3901 3902 3903 3904 3905 3906 3907 3908 3909 3910 3911 3912 3913 3914 3915 3916 3917
  gclog_or_tty->print_cr("  SATB buffers: processed = %d", _satb_buffers_processed);
  gclog_or_tty->print_cr("  Steals: attempts = %d, successes = %d",
                         _steal_attempts, _steals);
  gclog_or_tty->print_cr("  Aborted: %d, due to", _aborted);
  gclog_or_tty->print_cr("    overflow: %d, global abort: %d, yield: %d",
                         _aborted_overflow, _aborted_cm_aborted, _aborted_yield);
  gclog_or_tty->print_cr("    time out: %d, SATB: %d, termination: %d",
                         _aborted_timed_out, _aborted_satb, _aborted_termination);
#endif // _MARKING_STATS_
}

/*****************************************************************************

    The do_marking_step(time_target_ms) method is the building block
    of the parallel marking framework. It can be called in parallel
    with other invocations of do_marking_step() on different tasks
    (but only one per task, obviously) and concurrently with the
    mutator threads, or during remark, hence it eliminates the need
    for two versions of the code. When called during remark, it will
    pick up from where the task left off during the concurrent marking
    phase. Interestingly, tasks are also claimable during evacuation
    pauses too, since do_marking_step() ensures that it aborts before
    it needs to yield.

    The data structures that is uses to do marking work are the
    following:

      (1) Marking Bitmap. If there are gray objects that appear only
      on the bitmap (this happens either when dealing with an overflow
      or when the initial marking phase has simply marked the roots
      and didn't push them on the stack), then tasks claim heap
      regions whose bitmap they then scan to find gray objects. A
      global finger indicates where the end of the last claimed region
      is. A local finger indicates how far into the region a task has
      scanned. The two fingers are used to determine how to gray an
      object (i.e. whether simply marking it is OK, as it will be
      visited by a task in the future, or whether it needs to be also
      pushed on a stack).

      (2) Local Queue. The local queue of the task which is accessed
      reasonably efficiently by the task. Other tasks can steal from
      it when they run out of work. Throughout the marking phase, a
      task attempts to keep its local queue short but not totally
      empty, so that entries are available for stealing by other
      tasks. Only when there is no more work, a task will totally
      drain its local queue.

      (3) Global Mark Stack. This handles local queue overflow. During
      marking only sets of entries are moved between it and the local
      queues, as access to it requires a mutex and more fine-grain
      interaction with it which might cause contention. If it
      overflows, then the marking phase should restart and iterate
      over the bitmap to identify gray objects. Throughout the marking
      phase, tasks attempt to keep the global mark stack at a small
      length but not totally empty, so that entries are available for
      popping by other tasks. Only when there is no more work, tasks
      will totally drain the global mark stack.

3918
      (4) SATB Buffer Queue. This is where completed SATB buffers are
3919 3920 3921 3922 3923 3924 3925 3926 3927 3928 3929
      made available. Buffers are regularly removed from this queue
      and scanned for roots, so that the queue doesn't get too
      long. During remark, all completed buffers are processed, as
      well as the filled in parts of any uncompleted buffers.

    The do_marking_step() method tries to abort when the time target
    has been reached. There are a few other cases when the
    do_marking_step() method also aborts:

      (1) When the marking phase has been aborted (after a Full GC).

3930 3931 3932 3933 3934 3935
      (2) When a global overflow (on the global stack) has been
      triggered. Before the task aborts, it will actually sync up with
      the other tasks to ensure that all the marking data structures
      (local queues, stacks, fingers etc.)  are re-initialised so that
      when do_marking_step() completes, the marking phase can
      immediately restart.
3936 3937 3938 3939 3940 3941 3942 3943 3944 3945 3946 3947 3948 3949 3950 3951 3952 3953 3954 3955 3956 3957 3958 3959 3960 3961 3962 3963 3964 3965 3966 3967 3968 3969 3970 3971

      (3) When enough completed SATB buffers are available. The
      do_marking_step() method only tries to drain SATB buffers right
      at the beginning. So, if enough buffers are available, the
      marking step aborts and the SATB buffers are processed at
      the beginning of the next invocation.

      (4) To yield. when we have to yield then we abort and yield
      right at the end of do_marking_step(). This saves us from a lot
      of hassle as, by yielding we might allow a Full GC. If this
      happens then objects will be compacted underneath our feet, the
      heap might shrink, etc. We save checking for this by just
      aborting and doing the yield right at the end.

    From the above it follows that the do_marking_step() method should
    be called in a loop (or, otherwise, regularly) until it completes.

    If a marking step completes without its has_aborted() flag being
    true, it means it has completed the current marking phase (and
    also all other marking tasks have done so and have all synced up).

    A method called regular_clock_call() is invoked "regularly" (in
    sub ms intervals) throughout marking. It is this clock method that
    checks all the abort conditions which were mentioned above and
    decides when the task should abort. A work-based scheme is used to
    trigger this clock method: when the number of object words the
    marking phase has scanned or the number of references the marking
    phase has visited reach a given limit. Additional invocations to
    the method clock have been planted in a few other strategic places
    too. The initial reason for the clock method was to avoid calling
    vtime too regularly, as it is quite expensive. So, once it was in
    place, it was natural to piggy-back all the other conditions on it
    too and not constantly check them throughout the code.

 *****************************************************************************/

3972 3973 3974
void CMTask::do_marking_step(double time_target_ms,
                             bool do_stealing,
                             bool do_termination) {
3975 3976
  assert(time_target_ms >= 1.0, "minimum granularity is 1ms");
  assert(concurrent() == _cm->concurrent(), "they should be the same");
3977 3978

  G1CollectorPolicy* g1_policy = _g1h->g1_policy();
3979 3980
  assert(_task_queues != NULL, "invariant");
  assert(_task_queue != NULL, "invariant");
3981
  assert(_task_queues->queue(_worker_id) == _task_queue, "invariant");
3982

3983 3984
  assert(!_claimed,
         "only one thread should claim this task at any one time");
3985 3986 3987 3988 3989 3990 3991 3992 3993 3994 3995 3996 3997 3998 3999 4000 4001 4002 4003 4004 4005 4006

  // OK, this doesn't safeguard again all possible scenarios, as it is
  // possible for two threads to set the _claimed flag at the same
  // time. But it is only for debugging purposes anyway and it will
  // catch most problems.
  _claimed = true;

  _start_time_ms = os::elapsedVTime() * 1000.0;
  statsOnly( _interval_start_time_ms = _start_time_ms );

  double diff_prediction_ms =
    g1_policy->get_new_prediction(&_marking_step_diffs_ms);
  _time_target_ms = time_target_ms - diff_prediction_ms;

  // set up the variables that are used in the work-based scheme to
  // call the regular clock method
  _words_scanned = 0;
  _refs_reached  = 0;
  recalculate_limits();

  // clear all flags
  clear_has_aborted();
4007
  _has_timed_out = false;
4008 4009 4010 4011
  _draining_satb_buffers = false;

  ++_calls;

4012
  if (_cm->verbose_low()) {
4013
    gclog_or_tty->print_cr("[%u] >>>>>>>>>> START, call = %d, "
4014
                           "target = %1.2lfms >>>>>>>>>>",
4015
                           _worker_id, _calls, _time_target_ms);
4016
  }
4017 4018 4019 4020 4021

  // Set up the bitmap and oop closures. Anything that uses them is
  // eventually called from this method, so it is OK to allocate these
  // statically.
  CMBitMapClosure bitmap_closure(this, _cm, _nextMarkBitMap);
4022 4023
  G1CMOopClosure  cm_oop_closure(_g1h, _cm, this);
  set_cm_oop_closure(&cm_oop_closure);
4024 4025

  if (_cm->has_overflown()) {
4026 4027 4028 4029
    // This can happen if the mark stack overflows during a GC pause
    // and this task, after a yield point, restarts. We have to abort
    // as we need to get into the overflow protocol which happens
    // right at the end of this task.
4030 4031 4032 4033 4034 4035 4036 4037 4038 4039 4040 4041 4042 4043 4044
    set_has_aborted();
  }

  // First drain any available SATB buffers. After this, we will not
  // look at SATB buffers before the next invocation of this method.
  // If enough completed SATB buffers are queued up, the regular clock
  // will abort this task so that it restarts.
  drain_satb_buffers();
  // ...then partially drain the local queue and the global stack
  drain_local_queue(true);
  drain_global_stack(true);

  do {
    if (!has_aborted() && _curr_region != NULL) {
      // This means that we're already holding on to a region.
4045 4046
      assert(_finger != NULL, "if region is not NULL, then the finger "
             "should not be NULL either");
4047 4048 4049 4050 4051 4052 4053 4054 4055 4056 4057 4058 4059 4060 4061

      // We might have restarted this task after an evacuation pause
      // which might have evacuated the region we're holding on to
      // underneath our feet. Let's read its limit again to make sure
      // that we do not iterate over a region of the heap that
      // contains garbage (update_region_limit() will also move
      // _finger to the start of the region if it is found empty).
      update_region_limit();
      // We will start from _finger not from the start of the region,
      // as we might be restarting this task after aborting half-way
      // through scanning this region. In this case, _finger points to
      // the address where we last found a marked object. If this is a
      // fresh region, _finger points to start().
      MemRegion mr = MemRegion(_finger, _region_limit);

4062
      if (_cm->verbose_low()) {
4063
        gclog_or_tty->print_cr("[%u] we're scanning part "
4064 4065
                               "["PTR_FORMAT", "PTR_FORMAT") "
                               "of region "PTR_FORMAT,
4066
                               _worker_id, _finger, _region_limit, _curr_region);
4067
      }
4068 4069 4070

      // Let's iterate over the bitmap of the part of the
      // region that is left.
4071
      if (mr.is_empty() || _nextMarkBitMap->iterate(&bitmap_closure, mr)) {
4072 4073 4074 4075 4076
        // We successfully completed iterating over the region. Now,
        // let's give up the region.
        giveup_current_region();
        regular_clock_call();
      } else {
4077
        assert(has_aborted(), "currently the only way to do so");
4078 4079 4080 4081 4082
        // The only way to abort the bitmap iteration is to return
        // false from the do_bit() method. However, inside the
        // do_bit() method we move the _finger to point to the
        // object currently being looked at. So, if we bail out, we
        // have definitely set _finger to something non-null.
4083
        assert(_finger != NULL, "invariant");
4084 4085 4086 4087 4088 4089 4090 4091

        // Region iteration was actually aborted. So now _finger
        // points to the address of the object we last scanned. If we
        // leave it there, when we restart this task, we will rescan
        // the object. It is easy to avoid this. We move the finger by
        // enough to point to the next possible object header (the
        // bitmap knows by how much we need to move it as it knows its
        // granularity).
4092 4093 4094 4095
        assert(_finger < _region_limit, "invariant");
        HeapWord* new_finger = _nextMarkBitMap->nextWord(_finger);
        // Check if bitmap iteration was aborted while scanning the last object
        if (new_finger >= _region_limit) {
4096
          giveup_current_region();
4097
        } else {
4098
          move_finger_to(new_finger);
4099
        }
4100 4101 4102 4103 4104 4105 4106 4107 4108 4109 4110 4111 4112 4113 4114 4115 4116
      }
    }
    // At this point we have either completed iterating over the
    // region we were holding on to, or we have aborted.

    // We then partially drain the local queue and the global stack.
    // (Do we really need this?)
    drain_local_queue(true);
    drain_global_stack(true);

    // Read the note on the claim_region() method on why it might
    // return NULL with potentially more regions available for
    // claiming and why we have to check out_of_regions() to determine
    // whether we're done or not.
    while (!has_aborted() && _curr_region == NULL && !_cm->out_of_regions()) {
      // We are going to try to claim a new region. We should have
      // given up on the previous one.
4117 4118 4119 4120
      // Separated the asserts so that we know which one fires.
      assert(_curr_region  == NULL, "invariant");
      assert(_finger       == NULL, "invariant");
      assert(_region_limit == NULL, "invariant");
4121
      if (_cm->verbose_low()) {
4122
        gclog_or_tty->print_cr("[%u] trying to claim a new region", _worker_id);
4123
      }
4124
      HeapRegion* claimed_region = _cm->claim_region(_worker_id);
4125 4126 4127 4128
      if (claimed_region != NULL) {
        // Yes, we managed to claim one
        statsOnly( ++_regions_claimed );

4129
        if (_cm->verbose_low()) {
4130
          gclog_or_tty->print_cr("[%u] we successfully claimed "
4131
                                 "region "PTR_FORMAT,
4132
                                 _worker_id, claimed_region);
4133
        }
4134 4135

        setup_for_region(claimed_region);
4136
        assert(_curr_region == claimed_region, "invariant");
4137 4138 4139 4140 4141 4142 4143 4144 4145 4146
      }
      // It is important to call the regular clock here. It might take
      // a while to claim a region if, for example, we hit a large
      // block of empty regions. So we need to call the regular clock
      // method once round the loop to make sure it's called
      // frequently enough.
      regular_clock_call();
    }

    if (!has_aborted() && _curr_region == NULL) {
4147 4148
      assert(_cm->out_of_regions(),
             "at this point we should be out of regions");
4149 4150 4151 4152 4153
    }
  } while ( _curr_region != NULL && !has_aborted());

  if (!has_aborted()) {
    // We cannot check whether the global stack is empty, since other
4154
    // tasks might be pushing objects to it concurrently.
4155 4156
    assert(_cm->out_of_regions(),
           "at this point we should be out of regions");
4157

4158
    if (_cm->verbose_low()) {
4159
      gclog_or_tty->print_cr("[%u] all regions claimed", _worker_id);
4160
    }
4161 4162 4163 4164 4165 4166 4167 4168 4169 4170 4171 4172

    // Try to reduce the number of available SATB buffers so that
    // remark has less work to do.
    drain_satb_buffers();
  }

  // Since we've done everything else, we can now totally drain the
  // local queue and global stack.
  drain_local_queue(false);
  drain_global_stack(false);

  // Attempt at work stealing from other task's queues.
4173
  if (do_stealing && !has_aborted()) {
4174 4175 4176 4177
    // We have not aborted. This means that we have finished all that
    // we could. Let's try to do some stealing...

    // We cannot check whether the global stack is empty, since other
4178
    // tasks might be pushing objects to it concurrently.
4179 4180
    assert(_cm->out_of_regions() && _task_queue->size() == 0,
           "only way to reach here");
4181

4182
    if (_cm->verbose_low()) {
4183
      gclog_or_tty->print_cr("[%u] starting to steal", _worker_id);
4184
    }
4185 4186 4187 4188 4189

    while (!has_aborted()) {
      oop obj;
      statsOnly( ++_steal_attempts );

4190
      if (_cm->try_stealing(_worker_id, &_hash_seed, obj)) {
4191
        if (_cm->verbose_medium()) {
4192 4193
          gclog_or_tty->print_cr("[%u] stolen "PTR_FORMAT" successfully",
                                 _worker_id, (void*) obj);
4194
        }
4195 4196 4197

        statsOnly( ++_steals );

4198 4199
        assert(_nextMarkBitMap->isMarked((HeapWord*) obj),
               "any stolen object should be marked");
4200 4201 4202 4203 4204 4205 4206 4207 4208 4209 4210 4211
        scan_object(obj);

        // And since we're towards the end, let's totally drain the
        // local queue and global stack.
        drain_local_queue(false);
        drain_global_stack(false);
      } else {
        break;
      }
    }
  }

4212 4213 4214 4215 4216 4217 4218 4219 4220
  // If we are about to wrap up and go into termination, check if we
  // should raise the overflow flag.
  if (do_termination && !has_aborted()) {
    if (_cm->force_overflow()->should_force()) {
      _cm->set_has_overflown();
      regular_clock_call();
    }
  }

4221 4222
  // We still haven't aborted. Now, let's try to get into the
  // termination protocol.
4223
  if (do_termination && !has_aborted()) {
4224
    // We cannot check whether the global stack is empty, since other
4225
    // tasks might be concurrently pushing objects on it.
4226 4227 4228
    // Separated the asserts so that we know which one fires.
    assert(_cm->out_of_regions(), "only way to reach here");
    assert(_task_queue->size() == 0, "only way to reach here");
4229

4230
    if (_cm->verbose_low()) {
4231
      gclog_or_tty->print_cr("[%u] starting termination protocol", _worker_id);
4232
    }
4233 4234 4235 4236 4237 4238 4239 4240 4241 4242 4243 4244 4245

    _termination_start_time_ms = os::elapsedVTime() * 1000.0;
    // The CMTask class also extends the TerminatorTerminator class,
    // hence its should_exit_termination() method will also decide
    // whether to exit the termination protocol or not.
    bool finished = _cm->terminator()->offer_termination(this);
    double termination_end_time_ms = os::elapsedVTime() * 1000.0;
    _termination_time_ms +=
      termination_end_time_ms - _termination_start_time_ms;

    if (finished) {
      // We're all done.

4246
      if (_worker_id == 0) {
4247 4248
        // let's allow task 0 to do this
        if (concurrent()) {
4249
          assert(_cm->concurrent_marking_in_progress(), "invariant");
4250 4251 4252 4253 4254 4255 4256 4257
          // we need to set this to false before the next
          // safepoint. This way we ensure that the marking phase
          // doesn't observe any more heap expansions.
          _cm->clear_concurrent_marking_in_progress();
        }
      }

      // We can now guarantee that the global stack is empty, since
4258 4259 4260 4261 4262 4263 4264 4265
      // all other tasks have finished. We separated the guarantees so
      // that, if a condition is false, we can immediately find out
      // which one.
      guarantee(_cm->out_of_regions(), "only way to reach here");
      guarantee(_cm->mark_stack_empty(), "only way to reach here");
      guarantee(_task_queue->size() == 0, "only way to reach here");
      guarantee(!_cm->has_overflown(), "only way to reach here");
      guarantee(!_cm->mark_stack_overflow(), "only way to reach here");
4266

4267
      if (_cm->verbose_low()) {
4268
        gclog_or_tty->print_cr("[%u] all tasks terminated", _worker_id);
4269
      }
4270 4271 4272 4273
    } else {
      // Apparently there's more work to do. Let's abort this task. It
      // will restart it and we can hopefully find more things to do.

4274
      if (_cm->verbose_low()) {
4275 4276
        gclog_or_tty->print_cr("[%u] apparently there is more work to do",
                               _worker_id);
4277
      }
4278 4279 4280 4281 4282 4283 4284 4285 4286

      set_has_aborted();
      statsOnly( ++_aborted_termination );
    }
  }

  // Mainly for debugging purposes to make sure that a pointer to the
  // closure which was statically allocated in this frame doesn't
  // escape it by accident.
4287
  set_cm_oop_closure(NULL);
4288 4289 4290 4291 4292 4293 4294 4295 4296 4297
  double end_time_ms = os::elapsedVTime() * 1000.0;
  double elapsed_time_ms = end_time_ms - _start_time_ms;
  // Update the step history.
  _step_times_ms.add(elapsed_time_ms);

  if (has_aborted()) {
    // The task was aborted for some reason.

    statsOnly( ++_aborted );

4298
    if (_has_timed_out) {
4299 4300 4301 4302 4303 4304 4305 4306 4307 4308 4309 4310 4311 4312 4313
      double diff_ms = elapsed_time_ms - _time_target_ms;
      // Keep statistics of how well we did with respect to hitting
      // our target only if we actually timed out (if we aborted for
      // other reasons, then the results might get skewed).
      _marking_step_diffs_ms.add(diff_ms);
    }

    if (_cm->has_overflown()) {
      // This is the interesting one. We aborted because a global
      // overflow was raised. This means we have to restart the
      // marking phase and start iterating over regions. However, in
      // order to do this we have to make sure that all tasks stop
      // what they are doing and re-initialise in a safe manner. We
      // will achieve this with the use of two barrier sync points.

4314
      if (_cm->verbose_low()) {
4315
        gclog_or_tty->print_cr("[%u] detected overflow", _worker_id);
4316
      }
4317

4318
      _cm->enter_first_sync_barrier(_worker_id);
4319 4320 4321 4322 4323 4324 4325 4326 4327 4328 4329
      // When we exit this sync barrier we know that all tasks have
      // stopped doing marking work. So, it's now safe to
      // re-initialise our data structures. At the end of this method,
      // task 0 will clear the global data structures.

      statsOnly( ++_aborted_overflow );

      // We clear the local state of this task...
      clear_region_fields();

      // ...and enter the second barrier.
4330
      _cm->enter_second_sync_barrier(_worker_id);
4331 4332 4333 4334 4335
      // At this point everything has bee re-initialised and we're
      // ready to restart.
    }

    if (_cm->verbose_low()) {
4336
      gclog_or_tty->print_cr("[%u] <<<<<<<<<< ABORTING, target = %1.2lfms, "
4337
                             "elapsed = %1.2lfms <<<<<<<<<<",
4338
                             _worker_id, _time_target_ms, elapsed_time_ms);
4339
      if (_cm->has_aborted()) {
4340 4341
        gclog_or_tty->print_cr("[%u] ========== MARKING ABORTED ==========",
                               _worker_id);
4342
      }
4343 4344
    }
  } else {
4345
    if (_cm->verbose_low()) {
4346
      gclog_or_tty->print_cr("[%u] <<<<<<<<<< FINISHED, target = %1.2lfms, "
4347
                             "elapsed = %1.2lfms <<<<<<<<<<",
4348
                             _worker_id, _time_target_ms, elapsed_time_ms);
4349
    }
4350 4351 4352 4353 4354
  }

  _claimed = false;
}

4355
CMTask::CMTask(uint worker_id,
4356
               ConcurrentMark* cm,
4357 4358
               size_t* marked_bytes,
               BitMap* card_bm,
4359 4360 4361
               CMTaskQueue* task_queue,
               CMTaskQueueSet* task_queues)
  : _g1h(G1CollectedHeap::heap()),
4362
    _worker_id(worker_id), _cm(cm),
4363 4364 4365 4366
    _claimed(false),
    _nextMarkBitMap(NULL), _hash_seed(17),
    _task_queue(task_queue),
    _task_queues(task_queues),
4367
    _cm_oop_closure(NULL),
4368 4369
    _marked_bytes_array(marked_bytes),
    _card_bm(card_bm) {
4370 4371
  guarantee(task_queue != NULL, "invariant");
  guarantee(task_queues != NULL, "invariant");
4372 4373 4374 4375 4376 4377

  statsOnly( _clock_due_to_scanning = 0;
             _clock_due_to_marking  = 0 );

  _marking_step_diffs_ms.add(0.5);
}
4378 4379 4380 4381 4382 4383 4384 4385 4386 4387 4388 4389 4390 4391 4392 4393 4394 4395 4396 4397 4398 4399 4400 4401 4402 4403 4404 4405 4406 4407 4408 4409 4410 4411 4412 4413 4414 4415 4416 4417 4418 4419 4420 4421 4422 4423 4424 4425 4426 4427 4428 4429 4430 4431

// These are formatting macros that are used below to ensure
// consistent formatting. The *_H_* versions are used to format the
// header for a particular value and they should be kept consistent
// with the corresponding macro. Also note that most of the macros add
// the necessary white space (as a prefix) which makes them a bit
// easier to compose.

// All the output lines are prefixed with this string to be able to
// identify them easily in a large log file.
#define G1PPRL_LINE_PREFIX            "###"

#define G1PPRL_ADDR_BASE_FORMAT    " "PTR_FORMAT"-"PTR_FORMAT
#ifdef _LP64
#define G1PPRL_ADDR_BASE_H_FORMAT  " %37s"
#else // _LP64
#define G1PPRL_ADDR_BASE_H_FORMAT  " %21s"
#endif // _LP64

// For per-region info
#define G1PPRL_TYPE_FORMAT            "   %-4s"
#define G1PPRL_TYPE_H_FORMAT          "   %4s"
#define G1PPRL_BYTE_FORMAT            "  "SIZE_FORMAT_W(9)
#define G1PPRL_BYTE_H_FORMAT          "  %9s"
#define G1PPRL_DOUBLE_FORMAT          "  %14.1f"
#define G1PPRL_DOUBLE_H_FORMAT        "  %14s"

// For summary info
#define G1PPRL_SUM_ADDR_FORMAT(tag)    "  "tag":"G1PPRL_ADDR_BASE_FORMAT
#define G1PPRL_SUM_BYTE_FORMAT(tag)    "  "tag": "SIZE_FORMAT
#define G1PPRL_SUM_MB_FORMAT(tag)      "  "tag": %1.2f MB"
#define G1PPRL_SUM_MB_PERC_FORMAT(tag) G1PPRL_SUM_MB_FORMAT(tag)" / %1.2f %%"

G1PrintRegionLivenessInfoClosure::
G1PrintRegionLivenessInfoClosure(outputStream* out, const char* phase_name)
  : _out(out),
    _total_used_bytes(0), _total_capacity_bytes(0),
    _total_prev_live_bytes(0), _total_next_live_bytes(0),
    _hum_used_bytes(0), _hum_capacity_bytes(0),
    _hum_prev_live_bytes(0), _hum_next_live_bytes(0) {
  G1CollectedHeap* g1h = G1CollectedHeap::heap();
  MemRegion g1_committed = g1h->g1_committed();
  MemRegion g1_reserved = g1h->g1_reserved();
  double now = os::elapsedTime();

  // Print the header of the output.
  _out->cr();
  _out->print_cr(G1PPRL_LINE_PREFIX" PHASE %s @ %1.3f", phase_name, now);
  _out->print_cr(G1PPRL_LINE_PREFIX" HEAP"
                 G1PPRL_SUM_ADDR_FORMAT("committed")
                 G1PPRL_SUM_ADDR_FORMAT("reserved")
                 G1PPRL_SUM_BYTE_FORMAT("region-size"),
                 g1_committed.start(), g1_committed.end(),
                 g1_reserved.start(), g1_reserved.end(),
4432
                 HeapRegion::GrainBytes);
4433 4434 4435 4436 4437 4438 4439 4440 4441 4442
  _out->print_cr(G1PPRL_LINE_PREFIX);
  _out->print_cr(G1PPRL_LINE_PREFIX
                 G1PPRL_TYPE_H_FORMAT
                 G1PPRL_ADDR_BASE_H_FORMAT
                 G1PPRL_BYTE_H_FORMAT
                 G1PPRL_BYTE_H_FORMAT
                 G1PPRL_BYTE_H_FORMAT
                 G1PPRL_DOUBLE_H_FORMAT,
                 "type", "address-range",
                 "used", "prev-live", "next-live", "gc-eff");
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  _out->print_cr(G1PPRL_LINE_PREFIX
                 G1PPRL_TYPE_H_FORMAT
                 G1PPRL_ADDR_BASE_H_FORMAT
                 G1PPRL_BYTE_H_FORMAT
                 G1PPRL_BYTE_H_FORMAT
                 G1PPRL_BYTE_H_FORMAT
                 G1PPRL_DOUBLE_H_FORMAT,
                 "", "",
                 "(bytes)", "(bytes)", "(bytes)", "(bytes/ms)");
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}

// It takes as a parameter a reference to one of the _hum_* fields, it
// deduces the corresponding value for a region in a humongous region
// series (either the region size, or what's left if the _hum_* field
// is < the region size), and updates the _hum_* field accordingly.
size_t G1PrintRegionLivenessInfoClosure::get_hum_bytes(size_t* hum_bytes) {
  size_t bytes = 0;
  // The > 0 check is to deal with the prev and next live bytes which
  // could be 0.
  if (*hum_bytes > 0) {
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    bytes = MIN2(HeapRegion::GrainBytes, *hum_bytes);
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    *hum_bytes -= bytes;
  }
  return bytes;
}

// It deduces the values for a region in a humongous region series
// from the _hum_* fields and updates those accordingly. It assumes
// that that _hum_* fields have already been set up from the "starts
// humongous" region and we visit the regions in address order.
void G1PrintRegionLivenessInfoClosure::get_hum_bytes(size_t* used_bytes,
                                                     size_t* capacity_bytes,
                                                     size_t* prev_live_bytes,
                                                     size_t* next_live_bytes) {
  assert(_hum_used_bytes > 0 && _hum_capacity_bytes > 0, "pre-condition");
  *used_bytes      = get_hum_bytes(&_hum_used_bytes);
  *capacity_bytes  = get_hum_bytes(&_hum_capacity_bytes);
  *prev_live_bytes = get_hum_bytes(&_hum_prev_live_bytes);
  *next_live_bytes = get_hum_bytes(&_hum_next_live_bytes);
}

bool G1PrintRegionLivenessInfoClosure::doHeapRegion(HeapRegion* r) {
  const char* type = "";
  HeapWord* bottom       = r->bottom();
  HeapWord* end          = r->end();
  size_t capacity_bytes  = r->capacity();
  size_t used_bytes      = r->used();
  size_t prev_live_bytes = r->live_bytes();
  size_t next_live_bytes = r->next_live_bytes();
  double gc_eff          = r->gc_efficiency();
  if (r->used() == 0) {
    type = "FREE";
  } else if (r->is_survivor()) {
    type = "SURV";
  } else if (r->is_young()) {
    type = "EDEN";
  } else if (r->startsHumongous()) {
    type = "HUMS";

    assert(_hum_used_bytes == 0 && _hum_capacity_bytes == 0 &&
           _hum_prev_live_bytes == 0 && _hum_next_live_bytes == 0,
           "they should have been zeroed after the last time we used them");
    // Set up the _hum_* fields.
    _hum_capacity_bytes  = capacity_bytes;
    _hum_used_bytes      = used_bytes;
    _hum_prev_live_bytes = prev_live_bytes;
    _hum_next_live_bytes = next_live_bytes;
    get_hum_bytes(&used_bytes, &capacity_bytes,
                  &prev_live_bytes, &next_live_bytes);
    end = bottom + HeapRegion::GrainWords;
  } else if (r->continuesHumongous()) {
    type = "HUMC";
    get_hum_bytes(&used_bytes, &capacity_bytes,
                  &prev_live_bytes, &next_live_bytes);
    assert(end == bottom + HeapRegion::GrainWords, "invariant");
  } else {
    type = "OLD";
  }

  _total_used_bytes      += used_bytes;
  _total_capacity_bytes  += capacity_bytes;
  _total_prev_live_bytes += prev_live_bytes;
  _total_next_live_bytes += next_live_bytes;

  // Print a line for this particular region.
  _out->print_cr(G1PPRL_LINE_PREFIX
                 G1PPRL_TYPE_FORMAT
                 G1PPRL_ADDR_BASE_FORMAT
                 G1PPRL_BYTE_FORMAT
                 G1PPRL_BYTE_FORMAT
                 G1PPRL_BYTE_FORMAT
                 G1PPRL_DOUBLE_FORMAT,
                 type, bottom, end,
                 used_bytes, prev_live_bytes, next_live_bytes, gc_eff);

  return false;
}

G1PrintRegionLivenessInfoClosure::~G1PrintRegionLivenessInfoClosure() {
  // Print the footer of the output.
  _out->print_cr(G1PPRL_LINE_PREFIX);
  _out->print_cr(G1PPRL_LINE_PREFIX
                 " SUMMARY"
                 G1PPRL_SUM_MB_FORMAT("capacity")
                 G1PPRL_SUM_MB_PERC_FORMAT("used")
                 G1PPRL_SUM_MB_PERC_FORMAT("prev-live")
                 G1PPRL_SUM_MB_PERC_FORMAT("next-live"),
                 bytes_to_mb(_total_capacity_bytes),
                 bytes_to_mb(_total_used_bytes),
                 perc(_total_used_bytes, _total_capacity_bytes),
                 bytes_to_mb(_total_prev_live_bytes),
                 perc(_total_prev_live_bytes, _total_capacity_bytes),
                 bytes_to_mb(_total_next_live_bytes),
                 perc(_total_next_live_bytes, _total_capacity_bytes));
  _out->cr();
}