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533 lines
21 KiB
C++
533 lines
21 KiB
C++
/*
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* Copyright (c) 2018, 2019, 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/g1CollectedHeap.inline.hpp"
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#include "gc/g1/g1ConcurrentRefine.hpp"
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#include "gc/g1/heapRegion.hpp"
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#include "gc/g1/heapRegionManager.inline.hpp"
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#include "gc/g1/heapRegionSet.inline.hpp"
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#include "gc/g1/heterogeneousHeapRegionManager.hpp"
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#include "memory/allocation.hpp"
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HeterogeneousHeapRegionManager* HeterogeneousHeapRegionManager::manager() {
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G1CollectedHeap* g1h = G1CollectedHeap::heap();
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assert(g1h != NULL, "Uninitialized access to HeterogeneousHeapRegionManager::manager()");
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HeapRegionManager* hrm = g1h->hrm();
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assert(hrm != NULL, "Uninitialized access to HeterogeneousHeapRegionManager::manager()");
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return (HeterogeneousHeapRegionManager*)hrm;
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}
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void HeterogeneousHeapRegionManager::initialize(G1RegionToSpaceMapper* heap_storage,
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G1RegionToSpaceMapper* prev_bitmap,
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G1RegionToSpaceMapper* next_bitmap,
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G1RegionToSpaceMapper* bot,
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G1RegionToSpaceMapper* cardtable,
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G1RegionToSpaceMapper* card_counts) {
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HeapRegionManager::initialize(heap_storage, prev_bitmap, next_bitmap, bot, cardtable, card_counts);
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// We commit bitmap for all regions during initialization and mark the bitmap space as special.
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// This allows regions to be un-committed while concurrent-marking threads are accessing the bitmap concurrently.
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_prev_bitmap_mapper->commit_and_set_special();
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_next_bitmap_mapper->commit_and_set_special();
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}
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// expand_by() is called to grow the heap. We grow into nvdimm now.
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// Dram regions are committed later as needed during mutator region allocation or
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// when young list target length is determined after gc cycle.
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uint HeterogeneousHeapRegionManager::expand_by(uint num_regions, WorkGang* pretouch_workers) {
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uint num_regions_possible = total_regions_committed() >= max_length() ? 0 : max_length() - total_regions_committed();
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uint num_expanded = expand_nvdimm(MIN2(num_regions, num_regions_possible), pretouch_workers);
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return num_expanded;
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}
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// Expands heap starting from 'start' index. The question is should we expand from one memory (e.g. nvdimm) to another (e.g. dram).
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// Looking at the code, expand_at() is called for humongous allocation where 'start' is in nv-dimm.
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// So we only allocate regions in the same kind of memory as 'start'.
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uint HeterogeneousHeapRegionManager::expand_at(uint start, uint num_regions, WorkGang* pretouch_workers) {
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if (num_regions == 0) {
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return 0;
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}
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uint target_num_regions = MIN2(num_regions, max_length() - total_regions_committed());
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uint end = is_in_nvdimm(start) ? end_index_of_nvdimm() : end_index_of_dram();
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uint num_expanded = expand_in_range(start, end, target_num_regions, pretouch_workers);
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assert(total_regions_committed() <= max_length(), "must be");
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return num_expanded;
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}
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// This function ensures that there are 'expected_num_regions' committed regions in dram.
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// If new regions are committed, it un-commits that many regions from nv-dimm.
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// If there are already more regions committed in dram, extra regions are un-committed.
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void HeterogeneousHeapRegionManager::adjust_dram_regions(uint expected_num_regions, WorkGang* pretouch_workers) {
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// Release back the extra regions allocated in evacuation failure scenario.
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if(_no_borrowed_regions > 0) {
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_no_borrowed_regions -= shrink_dram(_no_borrowed_regions);
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_no_borrowed_regions -= shrink_nvdimm(_no_borrowed_regions);
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}
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if(expected_num_regions > free_list_dram_length()) {
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// If we are going to expand DRAM, we expand a little more so that we can absorb small variations in Young gen sizing.
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uint targeted_dram_regions = expected_num_regions * (1 + (double)G1YoungExpansionBufferPercent / 100);
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uint to_be_made_available = targeted_dram_regions - free_list_dram_length();
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#ifdef ASSERT
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uint total_committed_before = total_regions_committed();
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#endif
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uint can_be_made_available = shrink_nvdimm(to_be_made_available);
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uint ret = expand_dram(can_be_made_available, pretouch_workers);
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#ifdef ASSERT
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assert(ret == can_be_made_available, "should be equal");
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assert(total_committed_before == total_regions_committed(), "invariant not met");
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#endif
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} else {
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uint to_be_released = free_list_dram_length() - expected_num_regions;
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// if number of extra DRAM regions is small, do not shrink.
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if (to_be_released < expected_num_regions * G1YoungExpansionBufferPercent / 100) {
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return;
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}
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#ifdef ASSERT
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uint total_committed_before = total_regions_committed();
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#endif
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uint ret = shrink_dram(to_be_released);
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assert(ret == to_be_released, "Should be able to shrink by given amount");
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ret = expand_nvdimm(to_be_released, pretouch_workers);
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#ifdef ASSERT
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assert(ret == to_be_released, "Should be able to expand by given amount");
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assert(total_committed_before == total_regions_committed(), "invariant not met");
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#endif
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}
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}
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uint HeterogeneousHeapRegionManager::total_regions_committed() const {
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return num_committed_dram() + num_committed_nvdimm();
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}
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uint HeterogeneousHeapRegionManager::num_committed_dram() const {
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// This class does not keep count of committed regions in dram and nv-dimm.
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// G1RegionToHeteroSpaceMapper keeps this information.
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return static_cast<G1RegionToHeteroSpaceMapper*>(_heap_mapper)->num_committed_dram();
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}
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uint HeterogeneousHeapRegionManager::num_committed_nvdimm() const {
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// See comment for num_committed_dram()
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return static_cast<G1RegionToHeteroSpaceMapper*>(_heap_mapper)->num_committed_nvdimm();
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}
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// Return maximum number of regions that heap can expand to.
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uint HeterogeneousHeapRegionManager::max_length() const {
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return _max_regions;
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}
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uint HeterogeneousHeapRegionManager::find_unavailable_in_range(uint start_idx, uint end_idx, uint* res_idx) const {
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guarantee(res_idx != NULL, "checking");
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guarantee(start_idx <= (reserved_length() + 1), "checking");
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uint num_regions = 0;
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uint cur = start_idx;
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while (cur <= end_idx && is_available(cur)) {
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cur++;
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}
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if (cur == end_idx + 1) {
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return num_regions;
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}
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*res_idx = cur;
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while (cur <= end_idx && !is_available(cur)) {
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cur++;
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}
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num_regions = cur - *res_idx;
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#ifdef ASSERT
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for (uint i = *res_idx; i < (*res_idx + num_regions); i++) {
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assert(!is_available(i), "just checking");
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}
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assert(cur == end_idx + 1 || num_regions == 0 || is_available(cur),
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"The region at the current position %u must be available or at the end", cur);
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#endif
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return num_regions;
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}
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uint HeterogeneousHeapRegionManager::expand_dram(uint num_regions, WorkGang* pretouch_workers) {
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return expand_in_range(start_index_of_dram(), end_index_of_dram(), num_regions, pretouch_workers);
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}
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uint HeterogeneousHeapRegionManager::expand_nvdimm(uint num_regions, WorkGang* pretouch_workers) {
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return expand_in_range(start_index_of_nvdimm(), end_index_of_nvdimm(), num_regions, pretouch_workers);
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}
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// Follows same logic as expand_at() form HeapRegionManager.
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uint HeterogeneousHeapRegionManager::expand_in_range(uint start, uint end, uint num_regions, WorkGang* pretouch_gang) {
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uint so_far = 0;
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uint chunk_start = 0;
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uint num_last_found = 0;
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while (so_far < num_regions &&
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(num_last_found = find_unavailable_in_range(start, end, &chunk_start)) > 0) {
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uint to_commit = MIN2(num_regions - so_far, num_last_found);
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make_regions_available(chunk_start, to_commit, pretouch_gang);
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so_far += to_commit;
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start = chunk_start + to_commit + 1;
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}
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return so_far;
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}
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// Shrink in the range of indexes which are reserved for dram.
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uint HeterogeneousHeapRegionManager::shrink_dram(uint num_regions, bool update_free_list) {
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return shrink_in_range(start_index_of_dram(), end_index_of_dram(), num_regions, update_free_list);
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}
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// Shrink in the range of indexes which are reserved for nv-dimm.
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uint HeterogeneousHeapRegionManager::shrink_nvdimm(uint num_regions, bool update_free_list) {
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return shrink_in_range(start_index_of_nvdimm(), end_index_of_nvdimm(), num_regions, update_free_list);
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}
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// Find empty regions in given range, un-commit them and return the count.
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uint HeterogeneousHeapRegionManager::shrink_in_range(uint start, uint end, uint num_regions, bool update_free_list) {
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if (num_regions == 0) {
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return 0;
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}
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uint so_far = 0;
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uint idx_last_found = 0;
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uint num_last_found;
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while (so_far < num_regions &&
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(num_last_found = find_empty_in_range_reverse(start, end, &idx_last_found)) > 0) {
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uint to_uncommit = MIN2(num_regions - so_far, num_last_found);
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if(update_free_list) {
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_free_list.remove_starting_at(at(idx_last_found + num_last_found - to_uncommit), to_uncommit);
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}
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uncommit_regions(idx_last_found + num_last_found - to_uncommit, to_uncommit);
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so_far += to_uncommit;
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end = idx_last_found;
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}
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return so_far;
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}
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uint HeterogeneousHeapRegionManager::find_empty_in_range_reverse(uint start_idx, uint end_idx, uint* res_idx) {
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guarantee(res_idx != NULL, "checking");
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guarantee(start_idx < reserved_length(), "checking");
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guarantee(end_idx < reserved_length(), "checking");
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if(start_idx > end_idx) {
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return 0;
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}
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uint num_regions_found = 0;
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jlong cur = end_idx;
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while (cur >= start_idx && !(is_available(cur) && at(cur)->is_empty())) {
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cur--;
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}
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if (cur == start_idx - 1) {
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return num_regions_found;
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}
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jlong old_cur = cur;
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// cur indexes the first empty region
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while (cur >= start_idx && is_available(cur) && at(cur)->is_empty()) {
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cur--;
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}
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*res_idx = cur + 1;
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num_regions_found = old_cur - cur;
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#ifdef ASSERT
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for (uint i = *res_idx; i < (*res_idx + num_regions_found); i++) {
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assert(at(i)->is_empty(), "just checking");
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}
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#endif
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return num_regions_found;
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}
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HeapRegion* HeterogeneousHeapRegionManager::allocate_free_region(HeapRegionType type, uint node_index) {
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// We want to prevent mutators from proceeding when we have borrowed regions from the last collection. This
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// will force a full collection to remedy the situation.
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// Free region requests from GC threads can proceed.
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if(type.is_eden() || type.is_humongous()) {
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if(has_borrowed_regions()) {
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return NULL;
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}
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}
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// old and humongous regions are allocated from nv-dimm; eden and survivor regions are allocated from dram
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// assumption: dram regions take higher indexes
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bool from_nvdimm = (type.is_old() || type.is_humongous()) ? true : false;
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bool from_head = from_nvdimm;
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HeapRegion* hr = _free_list.remove_region(from_head);
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if (hr != NULL && ( (from_nvdimm && !is_in_nvdimm(hr->hrm_index())) || (!from_nvdimm && !is_in_dram(hr->hrm_index())) ) ) {
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_free_list.add_ordered(hr);
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hr = NULL;
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}
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#ifdef ASSERT
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uint total_committed_before = total_regions_committed();
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#endif
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if (hr == NULL) {
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if (!from_nvdimm) {
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uint ret = shrink_nvdimm(1);
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if (ret == 1) {
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ret = expand_dram(1, NULL);
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assert(ret == 1, "We should be able to commit one region");
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hr = _free_list.remove_region(from_head);
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}
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}
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else { /*is_old*/
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uint ret = shrink_dram(1);
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if (ret == 1) {
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ret = expand_nvdimm(1, NULL);
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assert(ret == 1, "We should be able to commit one region");
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hr = _free_list.remove_region(from_head);
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}
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}
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}
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#ifdef ASSERT
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assert(total_committed_before == total_regions_committed(), "invariant not met");
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#endif
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// When an old region is requested (which happens during collection pause) and we can't find any empty region
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// in the set of available regions (which is an evacuation failure scenario), we borrow (or pre-allocate) an unavailable region
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// from nv-dimm. This region is used to evacuate surviving objects from eden, survivor or old.
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if(hr == NULL && type.is_old()) {
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hr = borrow_old_region_for_gc();
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}
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if (hr != NULL) {
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assert(hr->next() == NULL, "Single region should not have next");
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assert(is_available(hr->hrm_index()), "Must be committed");
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}
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return hr;
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}
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HeapRegion* HeterogeneousHeapRegionManager::allocate_humongous_from_free_list(uint num_regions) {
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if (has_borrowed_regions()) {
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return NULL;
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}
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uint candidate = find_contiguous(start_index_of_nvdimm(), end_index_of_nvdimm(), num_regions, true);
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if (candidate == G1_NO_HRM_INDEX) {
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return NULL;
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}
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return allocate_free_regions_starting_at(candidate, num_regions);
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}
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HeapRegion* HeterogeneousHeapRegionManager::allocate_humongous_allow_expand(uint num_regions) {
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if (has_borrowed_regions()) {
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return NULL;
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}
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uint candidate = find_contiguous(start_index_of_nvdimm(), end_index_of_nvdimm(), num_regions, false);
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if (candidate == G1_NO_HRM_INDEX) {
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return NULL;
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}
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expand_exact(candidate, num_regions, NULL);
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return allocate_free_regions_starting_at(candidate, num_regions);
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}
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uint HeterogeneousHeapRegionManager::find_contiguous(size_t start, size_t end, size_t num, bool empty_only) {
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uint found = 0;
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size_t length_found = 0;
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uint cur = (uint)start;
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uint length_unavailable = 0;
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while (length_found < num && cur <= end) {
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HeapRegion* hr = _regions.get_by_index(cur);
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if ((!empty_only && !is_available(cur)) || (is_available(cur) && hr != NULL && hr->is_empty())) {
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// This region is a potential candidate for allocation into.
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if (!is_available(cur)) {
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if(shrink_dram(1) == 1) {
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uint ret = expand_in_range(cur, cur, 1, NULL);
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assert(ret == 1, "We should be able to expand at this index");
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} else {
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length_unavailable++;
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}
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}
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length_found++;
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}
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else {
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// This region is not a candidate. The next region is the next possible one.
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found = cur + 1;
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length_found = 0;
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}
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cur++;
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}
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if (length_found == num) {
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for (uint i = found; i < (found + num); i++) {
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HeapRegion* hr = _regions.get_by_index(i);
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// sanity check
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guarantee((!empty_only && !is_available(i)) || (is_available(i) && hr != NULL && hr->is_empty()),
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"Found region sequence starting at " UINT32_FORMAT ", length " SIZE_FORMAT
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" that is not empty at " UINT32_FORMAT ". Hr is " PTR_FORMAT, found, num, i, p2i(hr));
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}
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if (!empty_only && length_unavailable > (max_length() - total_regions_committed())) {
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// if 'length_unavailable' number of regions will be made available, we will exceed max regions.
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return G1_NO_HRM_INDEX;
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}
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return found;
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}
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else {
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return G1_NO_HRM_INDEX;
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}
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}
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uint HeterogeneousHeapRegionManager::find_highest_free(bool* expanded) {
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// Loop downwards from the highest dram region index, looking for an
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// entry which is either free or not yet committed. If not yet
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// committed, expand_at that index.
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uint curr = end_index_of_dram();
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while (true) {
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HeapRegion *hr = _regions.get_by_index(curr);
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if (hr == NULL && !(total_regions_committed() < _max_regions)) {
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uint res = shrink_nvdimm(1);
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if (res == 1) {
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res = expand_in_range(curr, curr, 1, NULL);
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assert(res == 1, "We should be able to expand since shrink was successful");
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*expanded = true;
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return curr;
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}
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}
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else {
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if (hr->is_free()) {
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*expanded = false;
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return curr;
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}
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}
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if (curr == start_index_of_dram()) {
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return G1_NO_HRM_INDEX;
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}
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curr--;
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}
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}
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// We need to override this since region 0 which serves are dummy region in base class may not be available here.
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// This is a corner condition when either number of regions is small. When adaptive sizing is used, initial heap size
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// could be just one region. This region is commited in dram to be used for young generation, leaving region 0 (which is in nvdimm)
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// unavailable.
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HeapRegion* HeterogeneousHeapRegionManager::get_dummy_region() {
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uint curr = 0;
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while (curr < _regions.length()) {
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if (is_available(curr)) {
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return new_heap_region(curr);
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}
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curr++;
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}
|
|
assert(false, "We should always find a region available for dummy region");
|
|
return NULL;
|
|
}
|
|
|
|
// First shrink in dram, then in nv-dimm.
|
|
uint HeterogeneousHeapRegionManager::shrink_by(uint num_regions) {
|
|
// This call is made at end of full collection. Before making this call the region sets are tore down (tear_down_region_sets()).
|
|
// So shrink() calls below do not need to remove uncomitted regions from free list.
|
|
uint ret = shrink_dram(num_regions, false /* update_free_list */);
|
|
ret += shrink_nvdimm(num_regions - ret, false /* update_free_list */);
|
|
return ret;
|
|
}
|
|
|
|
void HeterogeneousHeapRegionManager::verify() {
|
|
HeapRegionManager::verify();
|
|
}
|
|
|
|
uint HeterogeneousHeapRegionManager::free_list_dram_length() const {
|
|
return _free_list.num_of_regions_in_range(start_index_of_dram(), end_index_of_dram());
|
|
}
|
|
|
|
uint HeterogeneousHeapRegionManager::free_list_nvdimm_length() const {
|
|
return _free_list.num_of_regions_in_range(start_index_of_nvdimm(), end_index_of_nvdimm());
|
|
}
|
|
|
|
bool HeterogeneousHeapRegionManager::is_in_nvdimm(uint index) const {
|
|
return index >= start_index_of_nvdimm() && index <= end_index_of_nvdimm();
|
|
}
|
|
|
|
bool HeterogeneousHeapRegionManager::is_in_dram(uint index) const {
|
|
return index >= start_index_of_dram() && index <= end_index_of_dram();
|
|
}
|
|
|
|
// We have to make sure full collection copies all surviving objects to NV-DIMM.
|
|
// We might not have enough regions in nvdimm_set, so we need to make more regions on NV-DIMM available for full collection.
|
|
// Note: by doing this we are breaking the in-variant that total number of committed regions is equal to current heap size.
|
|
// After full collection ends, we will re-establish this in-variant by freeing DRAM regions.
|
|
void HeterogeneousHeapRegionManager::prepare_for_full_collection_start() {
|
|
_total_commited_before_full_gc = total_regions_committed() - _no_borrowed_regions;
|
|
_no_borrowed_regions = 0;
|
|
expand_nvdimm(num_committed_dram(), NULL);
|
|
remove_all_free_regions();
|
|
}
|
|
|
|
// We need to bring back the total committed regions to before full collection start.
|
|
// Unless we are close to OOM, all regular (not pinned) regions in DRAM should be free.
|
|
// We shrink all free regions in DRAM and if needed from NV-DIMM (when there are pinned DRAM regions)
|
|
// If we can't bring back committed regions count to _total_commited_before_full_gc, we keep the extra count in _no_borrowed_regions.
|
|
// When this GC finishes, new regions won't be allocated since has_borrowed_regions() is true. VM will be forced to re-try GC
|
|
// with clear soft references followed by OOM error in worst case.
|
|
void HeterogeneousHeapRegionManager::prepare_for_full_collection_end() {
|
|
uint shrink_size = total_regions_committed() - _total_commited_before_full_gc;
|
|
uint so_far = 0;
|
|
uint idx_last_found = 0;
|
|
uint num_last_found;
|
|
uint end = (uint)_regions.length() - 1;
|
|
while (so_far < shrink_size &&
|
|
(num_last_found = find_empty_in_range_reverse(0, end, &idx_last_found)) > 0) {
|
|
uint to_uncommit = MIN2(shrink_size - so_far, num_last_found);
|
|
uncommit_regions(idx_last_found + num_last_found - to_uncommit, to_uncommit);
|
|
so_far += to_uncommit;
|
|
end = idx_last_found;
|
|
}
|
|
// See comment above the function.
|
|
_no_borrowed_regions = shrink_size - so_far;
|
|
}
|
|
|
|
uint HeterogeneousHeapRegionManager::start_index_of_dram() const { return _max_regions;}
|
|
|
|
uint HeterogeneousHeapRegionManager::end_index_of_dram() const { return 2*_max_regions - 1; }
|
|
|
|
uint HeterogeneousHeapRegionManager::start_index_of_nvdimm() const { return 0; }
|
|
|
|
uint HeterogeneousHeapRegionManager::end_index_of_nvdimm() const { return _max_regions - 1; }
|
|
|
|
// This function is called when there are no free nv-dimm regions.
|
|
// It borrows a region from the set of unavailable regions in nv-dimm for GC purpose.
|
|
HeapRegion* HeterogeneousHeapRegionManager::borrow_old_region_for_gc() {
|
|
assert(free_list_nvdimm_length() == 0, "this function should be called only when there are no nv-dimm regions in free list");
|
|
|
|
uint ret = expand_nvdimm(1, NULL);
|
|
if(ret != 1) {
|
|
return NULL;
|
|
}
|
|
HeapRegion* hr = _free_list.remove_region(true /*from_head*/);
|
|
assert(is_in_nvdimm(hr->hrm_index()), "allocated region should be in nv-dimm");
|
|
_no_borrowed_regions++;
|
|
return hr;
|
|
}
|
|
|
|
bool HeterogeneousHeapRegionManager::has_borrowed_regions() const {
|
|
return _no_borrowed_regions > 0;
|
|
}
|