author | tschatzl |
Wed, 18 Apr 2018 11:36:48 +0200 | |
changeset 49806 | 2d62570a615c |
parent 49713 | 456e51e56ea2 |
child 49945 | 9425445633cf |
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/g1AllocRegion.inline.hpp" |
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#include "gc/g1/g1EvacStats.inline.hpp" |
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#include "gc/g1/g1CollectedHeap.inline.hpp" |
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#include "gc/g1/g1Policy.hpp" |
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#include "gc/g1/heapRegion.inline.hpp" |
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#include "gc/g1/heapRegionSet.inline.hpp" |
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#include "gc/g1/heapRegionType.hpp" |
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#include "utilities/align.hpp" |
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G1Allocator::G1Allocator(G1CollectedHeap* heap) : |
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_g1h(heap), |
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_survivor_is_full(false), |
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_old_is_full(false), |
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_retained_old_gc_alloc_region(NULL), |
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_survivor_gc_alloc_region(heap->alloc_buffer_stats(InCSetState::Young)), |
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_old_gc_alloc_region(heap->alloc_buffer_stats(InCSetState::Old)) { |
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} |
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void G1Allocator::init_mutator_alloc_region() { |
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assert(_mutator_alloc_region.get() == NULL, "pre-condition"); |
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_mutator_alloc_region.init(); |
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} |
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void G1Allocator::release_mutator_alloc_region() { |
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_mutator_alloc_region.release(); |
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assert(_mutator_alloc_region.get() == NULL, "post-condition"); |
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} |
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bool G1Allocator::is_retained_old_region(HeapRegion* hr) { |
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return _retained_old_gc_alloc_region == hr; |
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} |
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||
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void G1Allocator::reuse_retained_old_region(EvacuationInfo& evacuation_info, |
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OldGCAllocRegion* old, |
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HeapRegion** retained_old) { |
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HeapRegion* retained_region = *retained_old; |
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*retained_old = NULL; |
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assert(retained_region == NULL || !retained_region->is_archive(), |
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"Archive region should not be alloc region (index %u)", retained_region->hrm_index()); |
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// We will discard the current GC alloc region if: |
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// a) it's in the collection set (it can happen!), |
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// b) it's already full (no point in using it), |
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// c) it's empty (this means that it was emptied during |
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// a cleanup and it should be on the free list now), or |
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// d) it's humongous (this means that it was emptied |
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// during a cleanup and was added to the free list, but |
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// has been subsequently used to allocate a humongous |
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// object that may be less than the region size). |
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if (retained_region != NULL && |
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!retained_region->in_collection_set() && |
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!(retained_region->top() == retained_region->end()) && |
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!retained_region->is_empty() && |
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!retained_region->is_humongous()) { |
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// The retained region was added to the old region set when it was |
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// retired. We have to remove it now, since we don't allow regions |
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// we allocate to in the region sets. We'll re-add it later, when |
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// it's retired again. |
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_g1h->old_set_remove(retained_region); |
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bool during_im = _g1h->collector_state()->in_initial_mark_gc(); |
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retained_region->note_start_of_copying(during_im); |
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old->set(retained_region); |
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_g1h->hr_printer()->reuse(retained_region); |
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evacuation_info.set_alloc_regions_used_before(retained_region->used()); |
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} |
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} |
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void G1Allocator::init_gc_alloc_regions(EvacuationInfo& evacuation_info) { |
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assert_at_safepoint_on_vm_thread(); |
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|
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_survivor_is_full = false; |
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_old_is_full = false; |
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_survivor_gc_alloc_region.init(); |
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_old_gc_alloc_region.init(); |
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reuse_retained_old_region(evacuation_info, |
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&_old_gc_alloc_region, |
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&_retained_old_gc_alloc_region); |
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} |
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void G1Allocator::release_gc_alloc_regions(EvacuationInfo& evacuation_info) { |
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evacuation_info.set_allocation_regions(survivor_gc_alloc_region()->count() + |
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old_gc_alloc_region()->count()); |
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survivor_gc_alloc_region()->release(); |
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// If we have an old GC alloc region to release, we'll save it in |
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// _retained_old_gc_alloc_region. If we don't |
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// _retained_old_gc_alloc_region will become NULL. This is what we |
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// want either way so no reason to check explicitly for either |
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// condition. |
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_retained_old_gc_alloc_region = old_gc_alloc_region()->release(); |
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} |
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void G1Allocator::abandon_gc_alloc_regions() { |
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assert(survivor_gc_alloc_region()->get() == NULL, "pre-condition"); |
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assert(old_gc_alloc_region()->get() == NULL, "pre-condition"); |
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_retained_old_gc_alloc_region = NULL; |
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} |
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bool G1Allocator::survivor_is_full() const { |
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return _survivor_is_full; |
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} |
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bool G1Allocator::old_is_full() const { |
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return _old_is_full; |
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} |
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void G1Allocator::set_survivor_full() { |
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_survivor_is_full = true; |
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} |
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136 |
|
49713 | 137 |
void G1Allocator::set_old_full() { |
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_old_is_full = true; |
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} |
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140 |
|
49323 | 141 |
size_t G1Allocator::unsafe_max_tlab_alloc() { |
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// Return the remaining space in the cur alloc region, but not less than |
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// the min TLAB size. |
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144 |
|
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// Also, this value can be at most the humongous object threshold, |
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// since we can't allow tlabs to grow big enough to accommodate |
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// humongous objects. |
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148 |
|
49323 | 149 |
HeapRegion* hr = mutator_alloc_region()->get(); |
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size_t max_tlab = _g1h->max_tlab_size() * wordSize; |
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151 |
if (hr == NULL) { |
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152 |
return max_tlab; |
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153 |
} else { |
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154 |
return MIN2(MAX2(hr->free(), (size_t) MinTLABSize), max_tlab); |
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155 |
} |
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156 |
} |
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157 |
|
49713 | 158 |
size_t G1Allocator::used_in_alloc_regions() { |
159 |
assert(Heap_lock->owner() != NULL, "Should be owned on this thread's behalf."); |
|
160 |
size_t result = 0; |
|
161 |
||
162 |
// Read only once in case it is set to NULL concurrently |
|
163 |
HeapRegion* hr = mutator_alloc_region()->get(); |
|
164 |
if (hr != NULL) { |
|
165 |
result += hr->used(); |
|
166 |
} |
|
167 |
return result; |
|
168 |
} |
|
169 |
||
170 |
||
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HeapWord* G1Allocator::par_allocate_during_gc(InCSetState dest, |
49323 | 172 |
size_t word_size) { |
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size_t temp = 0; |
49323 | 174 |
HeapWord* result = par_allocate_during_gc(dest, word_size, word_size, &temp); |
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175 |
assert(result == NULL || temp == word_size, |
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"Requested " SIZE_FORMAT " words, but got " SIZE_FORMAT " at " PTR_FORMAT, |
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word_size, temp, p2i(result)); |
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178 |
return result; |
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179 |
} |
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180 |
|
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181 |
HeapWord* G1Allocator::par_allocate_during_gc(InCSetState dest, |
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182 |
size_t min_word_size, |
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size_t desired_word_size, |
49323 | 184 |
size_t* actual_word_size) { |
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185 |
switch (dest.value()) { |
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186 |
case InCSetState::Young: |
49323 | 187 |
return survivor_attempt_allocation(min_word_size, desired_word_size, actual_word_size); |
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188 |
case InCSetState::Old: |
49323 | 189 |
return old_attempt_allocation(min_word_size, desired_word_size, actual_word_size); |
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190 |
default: |
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191 |
ShouldNotReachHere(); |
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192 |
return NULL; // Keep some compilers happy |
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193 |
} |
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194 |
} |
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195 |
|
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196 |
HeapWord* G1Allocator::survivor_attempt_allocation(size_t min_word_size, |
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size_t desired_word_size, |
49323 | 198 |
size_t* actual_word_size) { |
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199 |
assert(!_g1h->is_humongous(desired_word_size), |
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200 |
"we should not be seeing humongous-size allocations in this path"); |
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201 |
|
49323 | 202 |
HeapWord* result = survivor_gc_alloc_region()->attempt_allocation(min_word_size, |
203 |
desired_word_size, |
|
204 |
actual_word_size); |
|
205 |
if (result == NULL && !survivor_is_full()) { |
|
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206 |
MutexLockerEx x(FreeList_lock, Mutex::_no_safepoint_check_flag); |
49323 | 207 |
result = survivor_gc_alloc_region()->attempt_allocation_locked(min_word_size, |
208 |
desired_word_size, |
|
209 |
actual_word_size); |
|
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210 |
if (result == NULL) { |
49323 | 211 |
set_survivor_full(); |
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212 |
} |
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213 |
} |
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214 |
if (result != NULL) { |
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215 |
_g1h->dirty_young_block(result, *actual_word_size); |
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216 |
} |
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217 |
return result; |
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218 |
} |
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219 |
|
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220 |
HeapWord* G1Allocator::old_attempt_allocation(size_t min_word_size, |
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221 |
size_t desired_word_size, |
49323 | 222 |
size_t* actual_word_size) { |
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223 |
assert(!_g1h->is_humongous(desired_word_size), |
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224 |
"we should not be seeing humongous-size allocations in this path"); |
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|
225 |
|
49323 | 226 |
HeapWord* result = old_gc_alloc_region()->attempt_allocation(min_word_size, |
227 |
desired_word_size, |
|
228 |
actual_word_size); |
|
229 |
if (result == NULL && !old_is_full()) { |
|
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|
230 |
MutexLockerEx x(FreeList_lock, Mutex::_no_safepoint_check_flag); |
49323 | 231 |
result = old_gc_alloc_region()->attempt_allocation_locked(min_word_size, |
232 |
desired_word_size, |
|
233 |
actual_word_size); |
|
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234 |
if (result == NULL) { |
49323 | 235 |
set_old_full(); |
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236 |
} |
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237 |
} |
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|
238 |
return result; |
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|
239 |
} |
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|
240 |
|
49713 | 241 |
uint G1PLABAllocator::calc_survivor_alignment_bytes() { |
242 |
assert(SurvivorAlignmentInBytes >= ObjectAlignmentInBytes, "sanity"); |
|
243 |
if (SurvivorAlignmentInBytes == ObjectAlignmentInBytes) { |
|
244 |
// No need to align objects in the survivors differently, return 0 |
|
245 |
// which means "survivor alignment is not used". |
|
246 |
return 0; |
|
247 |
} else { |
|
248 |
assert(SurvivorAlignmentInBytes > 0, "sanity"); |
|
249 |
return SurvivorAlignmentInBytes; |
|
250 |
} |
|
251 |
} |
|
252 |
||
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253 |
G1PLABAllocator::G1PLABAllocator(G1Allocator* allocator) : |
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254 |
_g1h(G1CollectedHeap::heap()), |
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|
255 |
_allocator(allocator), |
49713 | 256 |
_surviving_alloc_buffer(_g1h->desired_plab_sz(InCSetState::Young)), |
257 |
_tenured_alloc_buffer(_g1h->desired_plab_sz(InCSetState::Old)), |
|
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|
258 |
_survivor_alignment_bytes(calc_survivor_alignment_bytes()) { |
49713 | 259 |
for (uint state = 0; state < InCSetState::Num; state++) { |
260 |
_direct_allocated[state] = 0; |
|
261 |
_alloc_buffers[state] = NULL; |
|
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|
262 |
} |
49713 | 263 |
_alloc_buffers[InCSetState::Young] = &_surviving_alloc_buffer; |
264 |
_alloc_buffers[InCSetState::Old] = &_tenured_alloc_buffer; |
|
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265 |
} |
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|
266 |
|
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267 |
bool G1PLABAllocator::may_throw_away_buffer(size_t const allocation_word_sz, size_t const buffer_size) const { |
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268 |
return (allocation_word_sz * 100 < buffer_size * ParallelGCBufferWastePct); |
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269 |
} |
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270 |
|
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271 |
HeapWord* G1PLABAllocator::allocate_direct_or_new_plab(InCSetState dest, |
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272 |
size_t word_sz, |
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273 |
bool* plab_refill_failed) { |
49806 | 274 |
size_t plab_word_size = _g1h->desired_plab_sz(dest); |
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275 |
size_t required_in_plab = PLAB::size_required_for_allocation(word_sz); |
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276 |
|
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277 |
// Only get a new PLAB if the allocation fits and it would not waste more than |
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|
278 |
// ParallelGCBufferWastePct in the existing buffer. |
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|
279 |
if ((required_in_plab <= plab_word_size) && |
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280 |
may_throw_away_buffer(required_in_plab, plab_word_size)) { |
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|
281 |
|
49323 | 282 |
PLAB* alloc_buf = alloc_buffer(dest); |
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|
283 |
alloc_buf->retire(); |
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284 |
|
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285 |
size_t actual_plab_size = 0; |
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|
286 |
HeapWord* buf = _allocator->par_allocate_during_gc(dest, |
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287 |
required_in_plab, |
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|
288 |
plab_word_size, |
49323 | 289 |
&actual_plab_size); |
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|
290 |
|
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|
291 |
assert(buf == NULL || ((actual_plab_size >= required_in_plab) && (actual_plab_size <= plab_word_size)), |
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292 |
"Requested at minimum " SIZE_FORMAT ", desired " SIZE_FORMAT " words, but got " SIZE_FORMAT " at " PTR_FORMAT, |
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293 |
required_in_plab, plab_word_size, actual_plab_size, p2i(buf)); |
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|
294 |
|
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|
295 |
if (buf != NULL) { |
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|
296 |
alloc_buf->set_buf(buf, actual_plab_size); |
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|
297 |
|
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|
298 |
HeapWord* const obj = alloc_buf->allocate(word_sz); |
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|
299 |
assert(obj != NULL, "PLAB should have been big enough, tried to allocate " |
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300 |
SIZE_FORMAT " requiring " SIZE_FORMAT " PLAB size " SIZE_FORMAT, |
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|
301 |
word_sz, required_in_plab, plab_word_size); |
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|
302 |
return obj; |
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|
303 |
} |
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|
304 |
// Otherwise. |
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|
305 |
*plab_refill_failed = true; |
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|
306 |
} |
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|
307 |
// Try direct allocation. |
49323 | 308 |
HeapWord* result = _allocator->par_allocate_during_gc(dest, word_sz); |
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|
309 |
if (result != NULL) { |
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|
310 |
_direct_allocated[dest.value()] += word_sz; |
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|
311 |
} |
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|
312 |
return result; |
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|
313 |
} |
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|
314 |
|
49323 | 315 |
void G1PLABAllocator::undo_allocation(InCSetState dest, HeapWord* obj, size_t word_sz) { |
316 |
alloc_buffer(dest)->undo_allocation(obj, word_sz); |
|
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|
317 |
} |
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|
318 |
|
49713 | 319 |
void G1PLABAllocator::flush_and_retire_stats() { |
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|
320 |
for (uint state = 0; state < InCSetState::Num; state++) { |
48963 | 321 |
PLAB* const buf = _alloc_buffers[state]; |
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|
322 |
if (buf != NULL) { |
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|
323 |
G1EvacStats* stats = _g1h->alloc_buffer_stats(state); |
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|
324 |
buf->flush_and_retire_stats(stats); |
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|
325 |
stats->add_direct_allocated(_direct_allocated[state]); |
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|
326 |
_direct_allocated[state] = 0; |
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|
327 |
} |
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changeset
|
328 |
} |
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changeset
|
329 |
} |
30564
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changeset
|
330 |
|
49713 | 331 |
void G1PLABAllocator::waste(size_t& wasted, size_t& undo_wasted) { |
30564
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|
332 |
wasted = 0; |
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|
333 |
undo_wasted = 0; |
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|
334 |
for (uint state = 0; state < InCSetState::Num; state++) { |
48963 | 335 |
PLAB * const buf = _alloc_buffers[state]; |
30564
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|
336 |
if (buf != NULL) { |
a37d98a1eb54
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|
337 |
wasted += buf->waste(); |
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|
338 |
undo_wasted += buf->undo_waste(); |
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|
339 |
} |
a37d98a1eb54
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changeset
|
340 |
} |
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changeset
|
341 |
} |
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changeset
|
342 |
|
46285
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8171235: Move archive object code from G1MarkSweep into G1ArchiveAllocator
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|
343 |
bool G1ArchiveAllocator::_archive_check_enabled = false; |
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|
344 |
G1ArchiveRegionMap G1ArchiveAllocator::_closed_archive_region_map; |
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|
345 |
G1ArchiveRegionMap G1ArchiveAllocator::_open_archive_region_map; |
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|
346 |
|
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|
347 |
G1ArchiveAllocator* G1ArchiveAllocator::create_allocator(G1CollectedHeap* g1h, bool open) { |
31346
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|
348 |
// Create the archive allocator, and also enable archive object checking |
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|
349 |
// in mark-sweep, since we will be creating archive regions. |
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|
350 |
G1ArchiveAllocator* result = new G1ArchiveAllocator(g1h, open); |
46285
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changeset
|
351 |
enable_archive_object_check(); |
31346
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|
352 |
return result; |
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changeset
|
353 |
} |
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changeset
|
354 |
|
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changeset
|
355 |
bool G1ArchiveAllocator::alloc_new_region() { |
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|
356 |
// Allocate the highest free region in the reserved heap, |
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|
357 |
// and add it to our list of allocated regions. It is marked |
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|
358 |
// archive and added to the old set. |
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diff
changeset
|
359 |
HeapRegion* hr = _g1h->alloc_highest_free_region(); |
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diff
changeset
|
360 |
if (hr == NULL) { |
a70d45c06136
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diff
changeset
|
361 |
return false; |
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changeset
|
362 |
} |
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|
363 |
assert(hr->is_empty(), "expected empty region (index %u)", hr->hrm_index()); |
46810
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diff
changeset
|
364 |
if (_open) { |
7dad333205cd
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parents:
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diff
changeset
|
365 |
hr->set_open_archive(); |
7dad333205cd
8179302: Pre-resolve constant pool string entries and cache resolved_reference arrays in CDS archive.
jiangli
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diff
changeset
|
366 |
} else { |
7dad333205cd
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jiangli
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46625
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changeset
|
367 |
hr->set_closed_archive(); |
7dad333205cd
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diff
changeset
|
368 |
} |
49607
acffe6ff3ae7
8180415: Rebuild remembered sets during the concurrent cycle
tschatzl
parents:
49333
diff
changeset
|
369 |
_g1h->g1_policy()->remset_tracker()->update_at_allocate(hr); |
32193
862a68285b1e
8133042: Remove some direct accesses of G1Allocator to G1CollectedHeap members
tschatzl
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32185
diff
changeset
|
370 |
_g1h->old_set_add(hr); |
35079
edab77f91231
8145301: Improve and unify the printout format for the g1HRPrinter.
david
parents:
34230
diff
changeset
|
371 |
_g1h->hr_printer()->alloc(hr); |
31346
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|
372 |
_allocated_regions.append(hr); |
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changeset
|
373 |
_allocation_region = hr; |
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changeset
|
374 |
|
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changeset
|
375 |
// Set up _bottom and _max to begin allocating in the lowest |
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changeset
|
376 |
// min_region_size'd chunk of the allocated G1 region. |
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|
377 |
_bottom = hr->bottom(); |
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changeset
|
378 |
_max = _bottom + HeapRegion::min_region_size_in_words(); |
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changeset
|
379 |
|
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diff
changeset
|
380 |
// Tell mark-sweep that objects in this region are not to be marked. |
46810
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jiangli
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diff
changeset
|
381 |
set_range_archive(MemRegion(_bottom, HeapRegion::GrainWords), _open); |
31346
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changeset
|
382 |
|
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diff
changeset
|
383 |
// Since we've modified the old set, call update_sizes. |
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diff
changeset
|
384 |
_g1h->g1mm()->update_sizes(); |
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diff
changeset
|
385 |
return true; |
a70d45c06136
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parents:
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diff
changeset
|
386 |
} |
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diff
changeset
|
387 |
|
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diff
changeset
|
388 |
HeapWord* G1ArchiveAllocator::archive_mem_allocate(size_t word_size) { |
a70d45c06136
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diff
changeset
|
389 |
assert(word_size != 0, "size must not be zero"); |
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diff
changeset
|
390 |
if (_allocation_region == NULL) { |
a70d45c06136
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parents:
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diff
changeset
|
391 |
if (!alloc_new_region()) { |
a70d45c06136
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parents:
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diff
changeset
|
392 |
return NULL; |
a70d45c06136
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diff
changeset
|
393 |
} |
a70d45c06136
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diff
changeset
|
394 |
} |
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diff
changeset
|
395 |
HeapWord* old_top = _allocation_region->top(); |
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changeset
|
396 |
assert(_bottom >= _allocation_region->bottom(), |
33105
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changeset
|
397 |
"inconsistent allocation state: " PTR_FORMAT " < " PTR_FORMAT, |
294e48b4f704
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parents:
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diff
changeset
|
398 |
p2i(_bottom), p2i(_allocation_region->bottom())); |
31346
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diff
changeset
|
399 |
assert(_max <= _allocation_region->end(), |
33105
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parents:
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diff
changeset
|
400 |
"inconsistent allocation state: " PTR_FORMAT " > " PTR_FORMAT, |
294e48b4f704
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david
parents:
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diff
changeset
|
401 |
p2i(_max), p2i(_allocation_region->end())); |
31346
a70d45c06136
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diff
changeset
|
402 |
assert(_bottom <= old_top && old_top <= _max, |
33105
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david
parents:
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diff
changeset
|
403 |
"inconsistent allocation state: expected " |
294e48b4f704
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david
parents:
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diff
changeset
|
404 |
PTR_FORMAT " <= " PTR_FORMAT " <= " PTR_FORMAT, |
294e48b4f704
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parents:
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diff
changeset
|
405 |
p2i(_bottom), p2i(old_top), p2i(_max)); |
31346
a70d45c06136
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diff
changeset
|
406 |
|
a70d45c06136
8042668: GC Support for shared heap ranges in CDS
jiangli
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diff
changeset
|
407 |
// Allocate the next word_size words in the current allocation chunk. |
a70d45c06136
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jiangli
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diff
changeset
|
408 |
// If allocation would cross the _max boundary, insert a filler and begin |
a70d45c06136
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diff
changeset
|
409 |
// at the base of the next min_region_size'd chunk. Also advance to the next |
a70d45c06136
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diff
changeset
|
410 |
// chunk if we don't yet cross the boundary, but the remainder would be too |
a70d45c06136
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diff
changeset
|
411 |
// small to fill. |
a70d45c06136
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parents:
31331
diff
changeset
|
412 |
HeapWord* new_top = old_top + word_size; |
a70d45c06136
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diff
changeset
|
413 |
size_t remainder = pointer_delta(_max, new_top); |
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|
414 |
if ((new_top > _max) || |
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|
415 |
((new_top < _max) && (remainder < CollectedHeap::min_fill_size()))) { |
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|
416 |
if (old_top != _max) { |
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|
417 |
size_t fill_size = pointer_delta(_max, old_top); |
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|
418 |
CollectedHeap::fill_with_object(old_top, fill_size); |
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419 |
_summary_bytes_used += fill_size * HeapWordSize; |
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|
420 |
} |
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|
421 |
_allocation_region->set_top(_max); |
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|
422 |
old_top = _bottom = _max; |
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changeset
|
423 |
|
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|
424 |
// Check if we've just used up the last min_region_size'd chunk |
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|
425 |
// in the current region, and if so, allocate a new one. |
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|
426 |
if (_bottom != _allocation_region->end()) { |
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|
427 |
_max = _bottom + HeapRegion::min_region_size_in_words(); |
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|
428 |
} else { |
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changeset
|
429 |
if (!alloc_new_region()) { |
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changeset
|
430 |
return NULL; |
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changeset
|
431 |
} |
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|
432 |
old_top = _allocation_region->bottom(); |
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|
433 |
} |
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changeset
|
434 |
} |
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|
435 |
_allocation_region->set_top(old_top + word_size); |
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|
436 |
_summary_bytes_used += word_size * HeapWordSize; |
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changeset
|
437 |
|
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changeset
|
438 |
return old_top; |
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changeset
|
439 |
} |
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|
440 |
|
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|
441 |
void G1ArchiveAllocator::complete_archive(GrowableArray<MemRegion>* ranges, |
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|
442 |
size_t end_alignment_in_bytes) { |
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|
443 |
assert((end_alignment_in_bytes >> LogHeapWordSize) < HeapRegion::min_region_size_in_words(), |
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444 |
"alignment " SIZE_FORMAT " too large", end_alignment_in_bytes); |
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|
445 |
assert(is_aligned(end_alignment_in_bytes, HeapWordSize), |
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|
446 |
"alignment " SIZE_FORMAT " is not HeapWord (%u) aligned", end_alignment_in_bytes, HeapWordSize); |
31346
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|
447 |
|
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|
448 |
// If we've allocated nothing, simply return. |
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|
449 |
if (_allocation_region == NULL) { |
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changeset
|
450 |
return; |
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changeset
|
451 |
} |
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changeset
|
452 |
|
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|
453 |
// If an end alignment was requested, insert filler objects. |
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|
454 |
if (end_alignment_in_bytes != 0) { |
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|
455 |
HeapWord* currtop = _allocation_region->top(); |
46619
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|
456 |
HeapWord* newtop = align_up(currtop, end_alignment_in_bytes); |
31346
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|
457 |
size_t fill_size = pointer_delta(newtop, currtop); |
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|
458 |
if (fill_size != 0) { |
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changeset
|
459 |
if (fill_size < CollectedHeap::min_fill_size()) { |
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changeset
|
460 |
// If the required fill is smaller than we can represent, |
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|
461 |
// bump up to the next aligned address. We know we won't exceed the current |
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|
462 |
// region boundary because the max supported alignment is smaller than the min |
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|
463 |
// region size, and because the allocation code never leaves space smaller than |
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|
464 |
// the min_fill_size at the top of the current allocation region. |
46619
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|
465 |
newtop = align_up(currtop + CollectedHeap::min_fill_size(), |
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|
466 |
end_alignment_in_bytes); |
31346
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|
467 |
fill_size = pointer_delta(newtop, currtop); |
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changeset
|
468 |
} |
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changeset
|
469 |
HeapWord* fill = archive_mem_allocate(fill_size); |
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changeset
|
470 |
CollectedHeap::fill_with_objects(fill, fill_size); |
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changeset
|
471 |
} |
a70d45c06136
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changeset
|
472 |
} |
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changeset
|
473 |
|
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changeset
|
474 |
// Loop through the allocated regions, and create MemRegions summarizing |
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changeset
|
475 |
// the allocated address range, combining contiguous ranges. Add the |
a70d45c06136
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|
476 |
// MemRegions to the GrowableArray provided by the caller. |
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|
477 |
int index = _allocated_regions.length() - 1; |
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changeset
|
478 |
assert(_allocated_regions.at(index) == _allocation_region, |
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changeset
|
479 |
"expected region %u at end of array, found %u", |
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|
480 |
_allocation_region->hrm_index(), _allocated_regions.at(index)->hrm_index()); |
31346
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|
481 |
HeapWord* base_address = _allocation_region->bottom(); |
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changeset
|
482 |
HeapWord* top = base_address; |
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changeset
|
483 |
|
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changeset
|
484 |
while (index >= 0) { |
a70d45c06136
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changeset
|
485 |
HeapRegion* next = _allocated_regions.at(index); |
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|
486 |
HeapWord* new_base = next->bottom(); |
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changeset
|
487 |
HeapWord* new_top = next->top(); |
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changeset
|
488 |
if (new_base != top) { |
a70d45c06136
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changeset
|
489 |
ranges->append(MemRegion(base_address, pointer_delta(top, base_address))); |
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changeset
|
490 |
base_address = new_base; |
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changeset
|
491 |
} |
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changeset
|
492 |
top = new_top; |
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changeset
|
493 |
index = index - 1; |
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changeset
|
494 |
} |
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changeset
|
495 |
|
33105
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|
496 |
assert(top != base_address, "zero-sized range, address " PTR_FORMAT, p2i(base_address)); |
31346
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|
497 |
ranges->append(MemRegion(base_address, pointer_delta(top, base_address))); |
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changeset
|
498 |
_allocated_regions.clear(); |
a70d45c06136
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changeset
|
499 |
_allocation_region = NULL; |
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changeset
|
500 |
}; |