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228 lines
7.8 KiB
C++
228 lines
7.8 KiB
C++
/*
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* Copyright (c) 2017, 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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#include "precompiled.hpp"
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#include "gc/z/zArray.inline.hpp"
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#include "gc/z/zPage.inline.hpp"
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#include "gc/z/zRelocationSet.hpp"
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#include "gc/z/zRelocationSetSelector.hpp"
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#include "logging/log.hpp"
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#include "runtime/globals.hpp"
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#include "utilities/debug.hpp"
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ZRelocationSetSelectorGroup::ZRelocationSetSelectorGroup(const char* name,
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size_t page_size,
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size_t object_size_limit) :
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_name(name),
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_page_size(page_size),
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_object_size_limit(object_size_limit),
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_fragmentation_limit(page_size * (ZFragmentationLimit / 100)),
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_registered_pages(),
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_sorted_pages(NULL),
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_nselected(0),
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_relocating(0),
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_fragmentation(0) {}
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ZRelocationSetSelectorGroup::~ZRelocationSetSelectorGroup() {
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FREE_C_HEAP_ARRAY(ZPage*, _sorted_pages);
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}
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void ZRelocationSetSelectorGroup::register_live_page(ZPage* page, size_t garbage) {
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if (garbage > _fragmentation_limit) {
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_registered_pages.add(page);
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} else {
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_fragmentation += garbage;
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}
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}
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void ZRelocationSetSelectorGroup::semi_sort() {
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// Semi-sort registered pages by live bytes in ascending order
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const size_t npartitions_shift = 11;
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const size_t npartitions = (size_t)1 << npartitions_shift;
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const size_t partition_size = _page_size >> npartitions_shift;
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const size_t partition_size_shift = exact_log2(partition_size);
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const size_t npages = _registered_pages.size();
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// Partition slots/fingers
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size_t partitions[npartitions];
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// Allocate destination array
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_sorted_pages = REALLOC_C_HEAP_ARRAY(ZPage*, _sorted_pages, npages, mtGC);
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debug_only(memset(_sorted_pages, 0, npages * sizeof(ZPage*)));
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// Calculate partition slots
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memset(partitions, 0, sizeof(partitions));
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ZArrayIterator<ZPage*> iter1(&_registered_pages);
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for (ZPage* page; iter1.next(&page);) {
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const size_t index = page->live_bytes() >> partition_size_shift;
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partitions[index]++;
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}
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// Calculate partition fingers
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size_t finger = 0;
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for (size_t i = 0; i < npartitions; i++) {
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const size_t slots = partitions[i];
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partitions[i] = finger;
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finger += slots;
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}
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// Sort pages into partitions
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ZArrayIterator<ZPage*> iter2(&_registered_pages);
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for (ZPage* page; iter2.next(&page);) {
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const size_t index = page->live_bytes() >> partition_size_shift;
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const size_t finger = partitions[index]++;
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assert(_sorted_pages[finger] == NULL, "Invalid finger");
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_sorted_pages[finger] = page;
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}
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}
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void ZRelocationSetSelectorGroup::select() {
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// Calculate the number of pages to relocate by successively including pages in
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// a candidate relocation set and calculate the maximum space requirement for
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// their live objects.
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const size_t npages = _registered_pages.size();
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size_t selected_from = 0;
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size_t selected_to = 0;
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size_t selected_from_size = 0;
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size_t from_size = 0;
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semi_sort();
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for (size_t from = 1; from <= npages; from++) {
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// Add page to the candidate relocation set
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from_size += _sorted_pages[from - 1]->live_bytes();
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// Calculate the maximum number of pages needed by the candidate relocation set.
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// By subtracting the object size limit from the pages size we get the maximum
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// number of pages that the relocation set is guaranteed to fit in, regardless
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// of in which order the objects are relocated.
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const size_t to = ceil((double)(from_size) / (double)(_page_size - _object_size_limit));
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// Calculate the relative difference in reclaimable space compared to our
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// currently selected final relocation set. If this number is larger than the
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// acceptable fragmentation limit, then the current candidate relocation set
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// becomes our new final relocation set.
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const size_t diff_from = from - selected_from;
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const size_t diff_to = to - selected_to;
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const double diff_reclaimable = 100 - percent_of(diff_to, diff_from);
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if (diff_reclaimable > ZFragmentationLimit) {
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selected_from = from;
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selected_to = to;
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selected_from_size = from_size;
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}
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log_trace(gc, reloc)("Candidate Relocation Set (%s Pages): "
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SIZE_FORMAT "->" SIZE_FORMAT ", %.1f%% relative defragmentation, %s",
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_name, from, to, diff_reclaimable, (selected_from == from) ? "Selected" : "Rejected");
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}
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// Finalize selection
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_nselected = selected_from;
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// Update statistics
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_relocating = selected_from_size;
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for (size_t i = _nselected; i < npages; i++) {
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ZPage* const page = _sorted_pages[i];
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_fragmentation += page->size() - page->live_bytes();
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}
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log_debug(gc, reloc)("Relocation Set (%s Pages): " SIZE_FORMAT "->" SIZE_FORMAT ", " SIZE_FORMAT " skipped",
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_name, selected_from, selected_to, npages - _nselected);
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}
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ZPage* const* ZRelocationSetSelectorGroup::selected() const {
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return _sorted_pages;
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}
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size_t ZRelocationSetSelectorGroup::nselected() const {
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return _nselected;
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}
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size_t ZRelocationSetSelectorGroup::relocating() const {
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return _relocating;
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}
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size_t ZRelocationSetSelectorGroup::fragmentation() const {
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return _fragmentation;
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}
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ZRelocationSetSelector::ZRelocationSetSelector() :
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_small("Small", ZPageSizeSmall, ZObjectSizeLimitSmall),
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_medium("Medium", ZPageSizeMedium, ZObjectSizeLimitMedium),
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_live(0),
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_garbage(0),
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_fragmentation(0) {}
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void ZRelocationSetSelector::register_live_page(ZPage* page) {
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const uint8_t type = page->type();
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const size_t live = page->live_bytes();
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const size_t garbage = page->size() - live;
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if (type == ZPageTypeSmall) {
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_small.register_live_page(page, garbage);
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} else if (type == ZPageTypeMedium) {
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_medium.register_live_page(page, garbage);
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} else {
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_fragmentation += garbage;
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}
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_live += live;
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_garbage += garbage;
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}
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void ZRelocationSetSelector::register_garbage_page(ZPage* page) {
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_garbage += page->size();
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}
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void ZRelocationSetSelector::select(ZRelocationSet* relocation_set) {
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// Select pages to relocate. The resulting relocation set will be
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// sorted such that medium pages comes first, followed by small
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// pages. Pages within each page group will be semi-sorted by live
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// bytes in ascending order. Relocating pages in this order allows
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// us to start reclaiming memory more quickly.
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// Select pages from each group
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_medium.select();
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_small.select();
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// Populate relocation set
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relocation_set->populate(_medium.selected(), _medium.nselected(),
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_small.selected(), _small.nselected());
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}
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size_t ZRelocationSetSelector::live() const {
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return _live;
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}
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size_t ZRelocationSetSelector::garbage() const {
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return _garbage;
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}
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size_t ZRelocationSetSelector::relocating() const {
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return _small.relocating() + _medium.relocating();
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}
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size_t ZRelocationSetSelector::fragmentation() const {
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return _fragmentation + _small.fragmentation() + _medium.fragmentation();
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}
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