author | mhorie |
Mon, 25 Jun 2018 10:41:03 +0200 | |
changeset 50748 | d46700d64e9c |
parent 49911 | 358be4680d12 |
child 51292 | 0538a5cdb474 |
permissions | -rw-r--r-- |
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/* |
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* Copyright (c) 2014, 2018, Oracle and/or its affiliates. All rights reserved. |
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* DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER. |
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* |
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* This code is free software; you can redistribute it and/or modify it |
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* under the terms of the GNU General Public License version 2 only, as |
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* published by the Free Software Foundation. |
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* |
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* This code is distributed in the hope that it will be useful, but WITHOUT |
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* ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or |
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* FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License |
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* version 2 for more details (a copy is included in the LICENSE file that |
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* accompanied this code). |
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* |
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* You should have received a copy of the GNU General Public License version |
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* 2 along with this work; if not, write to the Free Software Foundation, |
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* Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA. |
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* |
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* Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA |
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* or visit www.oracle.com if you need additional information or have any |
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* questions. |
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* |
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*/ |
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#include "precompiled.hpp" |
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#include "gc/g1/g1Allocator.inline.hpp" |
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#include "gc/g1/g1CollectedHeap.inline.hpp" |
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#include "gc/g1/g1CollectionSet.hpp" |
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#include "gc/g1/g1OopClosures.inline.hpp" |
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#include "gc/g1/g1ParScanThreadState.inline.hpp" |
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#include "gc/g1/g1RootClosures.hpp" |
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#include "gc/g1/g1StringDedup.hpp" |
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#include "gc/shared/gcTrace.hpp" |
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#include "gc/shared/taskqueue.inline.hpp" |
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#include "memory/allocation.inline.hpp" |
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#include "oops/access.inline.hpp" |
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#include "oops/oop.inline.hpp" |
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#include "runtime/prefetch.inline.hpp" |
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G1ParScanThreadState::G1ParScanThreadState(G1CollectedHeap* g1h, uint worker_id, size_t young_cset_length) |
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: _g1h(g1h), |
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_refs(g1h->task_queue(worker_id)), |
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_dcq(&g1h->dirty_card_queue_set()), |
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_ct(g1h->card_table()), |
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_closures(NULL), |
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_plab_allocator(NULL), |
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_age_table(false), |
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_tenuring_threshold(g1h->g1_policy()->tenuring_threshold()), |
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_scanner(g1h, this), |
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_hash_seed(17), |
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_worker_id(worker_id), |
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_stack_trim_upper_threshold(GCDrainStackTargetSize * 2 + 1), |
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_stack_trim_lower_threshold(GCDrainStackTargetSize), |
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_trim_ticks(), |
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_old_gen_is_full(false) |
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{ |
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// we allocate G1YoungSurvRateNumRegions plus one entries, since |
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// we "sacrifice" entry 0 to keep track of surviving bytes for |
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// non-young regions (where the age is -1) |
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// We also add a few elements at the beginning and at the end in |
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// an attempt to eliminate cache contention |
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size_t real_length = 1 + young_cset_length; |
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size_t array_length = PADDING_ELEM_NUM + |
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real_length + |
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PADDING_ELEM_NUM; |
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_surviving_young_words_base = NEW_C_HEAP_ARRAY(size_t, array_length, mtGC); |
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if (_surviving_young_words_base == NULL) |
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vm_exit_out_of_memory(array_length * sizeof(size_t), OOM_MALLOC_ERROR, |
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"Not enough space for young surv histo."); |
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_surviving_young_words = _surviving_young_words_base + PADDING_ELEM_NUM; |
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memset(_surviving_young_words, 0, real_length * sizeof(size_t)); |
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_plab_allocator = new G1PLABAllocator(_g1h->allocator()); |
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_dest[InCSetState::NotInCSet] = InCSetState::NotInCSet; |
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// The dest for Young is used when the objects are aged enough to |
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// need to be moved to the next space. |
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_dest[InCSetState::Young] = InCSetState::Old; |
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_dest[InCSetState::Old] = InCSetState::Old; |
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_closures = G1EvacuationRootClosures::create_root_closures(this, _g1h); |
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} |
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// Pass locally gathered statistics to global state. |
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void G1ParScanThreadState::flush(size_t* surviving_young_words) { |
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_dcq.flush(); |
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// Update allocation statistics. |
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_plab_allocator->flush_and_retire_stats(); |
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_g1h->g1_policy()->record_age_table(&_age_table); |
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uint length = _g1h->collection_set()->young_region_length(); |
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for (uint region_index = 0; region_index < length; region_index++) { |
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surviving_young_words[region_index] += _surviving_young_words[region_index]; |
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} |
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} |
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G1ParScanThreadState::~G1ParScanThreadState() { |
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delete _plab_allocator; |
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delete _closures; |
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FREE_C_HEAP_ARRAY(size_t, _surviving_young_words_base); |
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} |
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void G1ParScanThreadState::waste(size_t& wasted, size_t& undo_wasted) { |
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_plab_allocator->waste(wasted, undo_wasted); |
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} |
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#ifdef ASSERT |
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bool G1ParScanThreadState::verify_ref(narrowOop* ref) const { |
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assert(ref != NULL, "invariant"); |
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assert(UseCompressedOops, "sanity"); |
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assert(!has_partial_array_mask(ref), "ref=" PTR_FORMAT, p2i(ref)); |
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oop p = RawAccess<>::oop_load(ref); |
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assert(_g1h->is_in_g1_reserved(p), |
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"ref=" PTR_FORMAT " p=" PTR_FORMAT, p2i(ref), p2i(p)); |
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return true; |
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} |
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bool G1ParScanThreadState::verify_ref(oop* ref) const { |
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assert(ref != NULL, "invariant"); |
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if (has_partial_array_mask(ref)) { |
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// Must be in the collection set--it's already been copied. |
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oop p = clear_partial_array_mask(ref); |
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assert(_g1h->is_in_cset(p), |
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"ref=" PTR_FORMAT " p=" PTR_FORMAT, p2i(ref), p2i(p)); |
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} else { |
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oop p = RawAccess<>::oop_load(ref); |
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assert(_g1h->is_in_g1_reserved(p), |
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"ref=" PTR_FORMAT " p=" PTR_FORMAT, p2i(ref), p2i(p)); |
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} |
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return true; |
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} |
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bool G1ParScanThreadState::verify_task(StarTask ref) const { |
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if (ref.is_narrow()) { |
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return verify_ref((narrowOop*) ref); |
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} else { |
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return verify_ref((oop*) ref); |
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} |
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} |
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#endif // ASSERT |
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void G1ParScanThreadState::trim_queue() { |
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StarTask ref; |
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do { |
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// Fully drain the queue. |
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trim_queue_to_threshold(0); |
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} while (!_refs->is_empty()); |
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} |
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HeapWord* G1ParScanThreadState::allocate_in_next_plab(InCSetState const state, |
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InCSetState* dest, |
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size_t word_sz, |
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bool previous_plab_refill_failed) { |
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assert(state.is_in_cset_or_humongous(), "Unexpected state: " CSETSTATE_FORMAT, state.value()); |
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assert(dest->is_in_cset_or_humongous(), "Unexpected dest: " CSETSTATE_FORMAT, dest->value()); |
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// Right now we only have two types of regions (young / old) so |
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// let's keep the logic here simple. We can generalize it when necessary. |
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if (dest->is_young()) { |
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bool plab_refill_in_old_failed = false; |
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HeapWord* const obj_ptr = _plab_allocator->allocate(InCSetState::Old, |
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word_sz, |
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&plab_refill_in_old_failed); |
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// Make sure that we won't attempt to copy any other objects out |
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// of a survivor region (given that apparently we cannot allocate |
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// any new ones) to avoid coming into this slow path again and again. |
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// Only consider failed PLAB refill here: failed inline allocations are |
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// typically large, so not indicative of remaining space. |
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if (previous_plab_refill_failed) { |
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_tenuring_threshold = 0; |
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} |
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172 |
|
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if (obj_ptr != NULL) { |
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dest->set_old(); |
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175 |
} else { |
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// We just failed to allocate in old gen. The same idea as explained above |
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// for making survivor gen unavailable for allocation applies for old gen. |
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_old_gen_is_full = plab_refill_in_old_failed; |
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179 |
} |
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return obj_ptr; |
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181 |
} else { |
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_old_gen_is_full = previous_plab_refill_failed; |
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183 |
assert(dest->is_old(), "Unexpected dest: " CSETSTATE_FORMAT, dest->value()); |
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// no other space to try. |
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185 |
return NULL; |
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186 |
} |
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187 |
} |
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188 |
|
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189 |
InCSetState G1ParScanThreadState::next_state(InCSetState const state, markOop const m, uint& age) { |
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if (state.is_young()) { |
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age = !m->has_displaced_mark_helper() ? m->age() |
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: m->displaced_mark_helper()->age(); |
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193 |
if (age < _tenuring_threshold) { |
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194 |
return state; |
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195 |
} |
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196 |
} |
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197 |
return dest(state); |
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198 |
} |
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199 |
|
32608 | 200 |
void G1ParScanThreadState::report_promotion_event(InCSetState const dest_state, |
201 |
oop const old, size_t word_sz, uint age, |
|
49323 | 202 |
HeapWord * const obj_ptr) const { |
203 |
PLAB* alloc_buf = _plab_allocator->alloc_buffer(dest_state); |
|
32608 | 204 |
if (alloc_buf->contains(obj_ptr)) { |
205 |
_g1h->_gc_tracer_stw->report_promotion_in_new_plab_event(old->klass(), word_sz, age, |
|
206 |
dest_state.value() == InCSetState::Old, |
|
207 |
alloc_buf->word_sz()); |
|
208 |
} else { |
|
209 |
_g1h->_gc_tracer_stw->report_promotion_outside_plab_event(old->klass(), word_sz, age, |
|
210 |
dest_state.value() == InCSetState::Old); |
|
211 |
} |
|
212 |
} |
|
213 |
||
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oop G1ParScanThreadState::copy_to_survivor_space(InCSetState const state, |
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215 |
oop const old, |
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markOop const old_mark) { |
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const size_t word_sz = old->size(); |
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HeapRegion* const from_region = _g1h->heap_region_containing(old); |
25482 | 219 |
// +1 to make the -1 indexes valid... |
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220 |
const int young_index = from_region->young_index_in_cset()+1; |
25482 | 221 |
assert( (from_region->is_young() && young_index > 0) || |
222 |
(!from_region->is_young() && young_index == 0), "invariant" ); |
|
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223 |
|
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224 |
uint age = 0; |
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225 |
InCSetState dest_state = next_state(state, old_mark, age); |
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// The second clause is to prevent premature evacuation failure in case there |
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227 |
// is still space in survivor, but old gen is full. |
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228 |
if (_old_gen_is_full && dest_state.is_old()) { |
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229 |
return handle_evacuation_failure_par(old, old_mark); |
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230 |
} |
49323 | 231 |
HeapWord* obj_ptr = _plab_allocator->plab_allocate(dest_state, word_sz); |
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232 |
|
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233 |
// PLAB allocations should succeed most of the time, so we'll |
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234 |
// normally check against NULL once and that's it. |
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235 |
if (obj_ptr == NULL) { |
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236 |
bool plab_refill_failed = false; |
49323 | 237 |
obj_ptr = _plab_allocator->allocate_direct_or_new_plab(dest_state, word_sz, &plab_refill_failed); |
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238 |
if (obj_ptr == NULL) { |
49323 | 239 |
obj_ptr = allocate_in_next_plab(state, &dest_state, word_sz, plab_refill_failed); |
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240 |
if (obj_ptr == NULL) { |
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241 |
// This will either forward-to-self, or detect that someone else has |
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242 |
// installed a forwarding pointer. |
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243 |
return handle_evacuation_failure_par(old, old_mark); |
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244 |
} |
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245 |
} |
32608 | 246 |
if (_g1h->_gc_tracer_stw->should_report_promotion_events()) { |
247 |
// The events are checked individually as part of the actual commit |
|
49323 | 248 |
report_promotion_event(dest_state, old, word_sz, age, obj_ptr); |
32608 | 249 |
} |
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250 |
} |
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|
251 |
|
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|
252 |
assert(obj_ptr != NULL, "when we get here, allocation should have succeeded"); |
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|
253 |
assert(_g1h->is_in_reserved(obj_ptr), "Allocated memory should be in the heap"); |
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|
254 |
|
25482 | 255 |
#ifndef PRODUCT |
256 |
// Should this evacuation fail? |
|
257 |
if (_g1h->evacuation_should_fail()) { |
|
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258 |
// Doing this after all the allocation attempts also tests the |
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259 |
// undo_allocation() method too. |
49323 | 260 |
_plab_allocator->undo_allocation(dest_state, obj_ptr, word_sz); |
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|
261 |
return handle_evacuation_failure_par(old, old_mark); |
25482 | 262 |
} |
263 |
#endif // !PRODUCT |
|
264 |
||
265 |
// We're going to allocate linearly, so might as well prefetch ahead. |
|
266 |
Prefetch::write(obj_ptr, PrefetchCopyIntervalInBytes); |
|
267 |
||
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268 |
const oop obj = oop(obj_ptr); |
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|
269 |
const oop forward_ptr = old->forward_to_atomic(obj, memory_order_relaxed); |
25482 | 270 |
if (forward_ptr == NULL) { |
271 |
Copy::aligned_disjoint_words((HeapWord*) old, obj_ptr, word_sz); |
|
272 |
||
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273 |
if (dest_state.is_young()) { |
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274 |
if (age < markOopDesc::max_age) { |
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275 |
age++; |
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276 |
} |
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277 |
if (old_mark->has_displaced_mark_helper()) { |
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278 |
// In this case, we have to install the mark word first, |
25482 | 279 |
// otherwise obj looks to be forwarded (the old mark word, |
280 |
// which contains the forward pointer, was copied) |
|
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281 |
obj->set_mark_raw(old_mark); |
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282 |
markOop new_mark = old_mark->displaced_mark_helper()->set_age(age); |
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283 |
old_mark->set_displaced_mark_helper(new_mark); |
25482 | 284 |
} else { |
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|
285 |
obj->set_mark_raw(old_mark->set_age(age)); |
25482 | 286 |
} |
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|
287 |
_age_table.add(age, word_sz); |
25482 | 288 |
} else { |
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|
289 |
obj->set_mark_raw(old_mark); |
25482 | 290 |
} |
291 |
||
292 |
if (G1StringDedup::is_enabled()) { |
|
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293 |
const bool is_from_young = state.is_young(); |
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294 |
const bool is_to_young = dest_state.is_young(); |
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295 |
assert(is_from_young == _g1h->heap_region_containing(old)->is_young(), |
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296 |
"sanity"); |
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|
297 |
assert(is_to_young == _g1h->heap_region_containing(obj)->is_young(), |
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298 |
"sanity"); |
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299 |
G1StringDedup::enqueue_from_evacuation(is_from_young, |
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300 |
is_to_young, |
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|
301 |
_worker_id, |
25482 | 302 |
obj); |
303 |
} |
|
304 |
||
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|
305 |
_surviving_young_words[young_index] += word_sz; |
25482 | 306 |
|
307 |
if (obj->is_objArray() && arrayOop(obj)->length() >= ParGCArrayScanChunk) { |
|
308 |
// We keep track of the next start index in the length field of |
|
309 |
// the to-space object. The actual length can be found in the |
|
310 |
// length field of the from-space object. |
|
311 |
arrayOop(obj)->set_length(0); |
|
312 |
oop* old_p = set_partial_array_mask(old); |
|
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|
313 |
do_oop_partial_array(old_p); |
25482 | 314 |
} else { |
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315 |
HeapRegion* const to_region = _g1h->heap_region_containing(obj_ptr); |
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|
316 |
_scanner.set_region(to_region); |
25482 | 317 |
obj->oop_iterate_backwards(&_scanner); |
318 |
} |
|
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319 |
return obj; |
25482 | 320 |
} else { |
49323 | 321 |
_plab_allocator->undo_allocation(dest_state, obj_ptr, word_sz); |
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322 |
return forward_ptr; |
25482 | 323 |
} |
324 |
} |
|
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325 |
|
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326 |
G1ParScanThreadState* G1ParScanThreadStateSet::state_for_worker(uint worker_id) { |
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327 |
assert(worker_id < _n_workers, "out of bounds access"); |
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328 |
if (_states[worker_id] == NULL) { |
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329 |
_states[worker_id] = new G1ParScanThreadState(_g1h, worker_id, _young_cset_length); |
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330 |
} |
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return _states[worker_id]; |
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332 |
} |
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333 |
|
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|
334 |
const size_t* G1ParScanThreadStateSet::surviving_young_words() const { |
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335 |
assert(_flushed, "thread local state from the per thread states should have been flushed"); |
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336 |
return _surviving_young_words_total; |
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337 |
} |
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|
338 |
|
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339 |
void G1ParScanThreadStateSet::flush() { |
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assert(!_flushed, "thread local state from the per thread states should be flushed once"); |
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341 |
|
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342 |
for (uint worker_index = 0; worker_index < _n_workers; ++worker_index) { |
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G1ParScanThreadState* pss = _states[worker_index]; |
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344 |
|
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if (pss == NULL) { |
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346 |
continue; |
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347 |
} |
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348 |
|
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349 |
pss->flush(_surviving_young_words_total); |
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350 |
delete pss; |
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|
351 |
_states[worker_index] = NULL; |
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352 |
} |
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|
353 |
_flushed = true; |
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354 |
} |
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355 |
|
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|
356 |
oop G1ParScanThreadState::handle_evacuation_failure_par(oop old, markOop m) { |
46282 | 357 |
assert(_g1h->is_in_cset(old), "Object " PTR_FORMAT " should be in the CSet", p2i(old)); |
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358 |
|
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|
359 |
oop forward_ptr = old->forward_to_atomic(old, memory_order_relaxed); |
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|
360 |
if (forward_ptr == NULL) { |
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|
361 |
// Forward-to-self succeeded. We are the "owner" of the object. |
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362 |
HeapRegion* r = _g1h->heap_region_containing(old); |
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|
363 |
|
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|
364 |
if (!r->evacuation_failed()) { |
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|
365 |
r->set_evacuation_failed(true); |
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|
366 |
_g1h->hr_printer()->evac_failure(r); |
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|
367 |
} |
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|
368 |
|
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|
369 |
_g1h->preserve_mark_during_evac_failure(_worker_id, old, m); |
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|
370 |
|
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|
371 |
_scanner.set_region(r); |
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|
372 |
old->oop_iterate_backwards(&_scanner); |
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|
373 |
|
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|
374 |
return old; |
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|
375 |
} else { |
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|
376 |
// Forward-to-self failed. Either someone else managed to allocate |
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|
377 |
// space for this object (old != forward_ptr) or they beat us in |
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|
378 |
// self-forwarding it (old == forward_ptr). |
46282 | 379 |
assert(old == forward_ptr || !_g1h->is_in_cset(forward_ptr), |
33105
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|
380 |
"Object " PTR_FORMAT " forwarded to: " PTR_FORMAT " " |
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|
381 |
"should not be in the CSet", |
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|
382 |
p2i(old), p2i(forward_ptr)); |
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|
383 |
return forward_ptr; |
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|
384 |
} |
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|
385 |
} |
48157 | 386 |
G1ParScanThreadStateSet::G1ParScanThreadStateSet(G1CollectedHeap* g1h, uint n_workers, size_t young_cset_length) : |
387 |
_g1h(g1h), |
|
388 |
_states(NEW_C_HEAP_ARRAY(G1ParScanThreadState*, n_workers, mtGC)), |
|
389 |
_surviving_young_words_total(NEW_C_HEAP_ARRAY(size_t, young_cset_length, mtGC)), |
|
390 |
_young_cset_length(young_cset_length), |
|
391 |
_n_workers(n_workers), |
|
392 |
_flushed(false) { |
|
393 |
for (uint i = 0; i < n_workers; ++i) { |
|
394 |
_states[i] = NULL; |
|
395 |
} |
|
396 |
memset(_surviving_young_words_total, 0, young_cset_length * sizeof(size_t)); |
|
397 |
} |
|
398 |
||
399 |
G1ParScanThreadStateSet::~G1ParScanThreadStateSet() { |
|
400 |
assert(_flushed, "thread local state from the per thread states should have been flushed"); |
|
401 |
FREE_C_HEAP_ARRAY(G1ParScanThreadState*, _states); |
|
402 |
FREE_C_HEAP_ARRAY(size_t, _surviving_young_words_total); |
|
403 |
} |