Mercurial > hg > truffle
annotate src/share/vm/gc_implementation/g1/concurrentMark.cpp @ 3978:f0ecbe78fc7b
7092238: G1: Uninitialized field gc_efficiency in G1PrintRegionLivenessInfo output
Reviewed-by: jcoomes, johnc
author | tonyp |
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date | Thu, 22 Sep 2011 07:18:51 -0400 |
parents | 5cc33133bc6d |
children | 4dfb2df418f2 |
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342 | 1 /* |
2149 | 2 * Copyright (c) 2001, 2011, Oracle and/or its affiliates. All rights reserved. |
342 | 3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER. |
4 * | |
5 * This code is free software; you can redistribute it and/or modify it | |
6 * under the terms of the GNU General Public License version 2 only, as | |
7 * published by the Free Software Foundation. | |
8 * | |
9 * This code is distributed in the hope that it will be useful, but WITHOUT | |
10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or | |
11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License | |
12 * version 2 for more details (a copy is included in the LICENSE file that | |
13 * accompanied this code). | |
14 * | |
15 * You should have received a copy of the GNU General Public License version | |
16 * 2 along with this work; if not, write to the Free Software Foundation, | |
17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA. | |
18 * | |
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19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA |
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20 * or visit www.oracle.com if you need additional information or have any |
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21 * questions. |
342 | 22 * |
23 */ | |
24 | |
1972 | 25 #include "precompiled.hpp" |
26 #include "classfile/symbolTable.hpp" | |
3771 | 27 #include "gc_implementation/g1/concurrentMark.inline.hpp" |
1972 | 28 #include "gc_implementation/g1/concurrentMarkThread.inline.hpp" |
29 #include "gc_implementation/g1/g1CollectedHeap.inline.hpp" | |
30 #include "gc_implementation/g1/g1CollectorPolicy.hpp" | |
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31 #include "gc_implementation/g1/g1ErgoVerbose.hpp" |
3771 | 32 #include "gc_implementation/g1/g1OopClosures.inline.hpp" |
1972 | 33 #include "gc_implementation/g1/g1RemSet.hpp" |
34 #include "gc_implementation/g1/heapRegionRemSet.hpp" | |
35 #include "gc_implementation/g1/heapRegionSeq.inline.hpp" | |
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36 #include "gc_implementation/shared/vmGCOperations.hpp" |
1972 | 37 #include "memory/genOopClosures.inline.hpp" |
38 #include "memory/referencePolicy.hpp" | |
39 #include "memory/resourceArea.hpp" | |
40 #include "oops/oop.inline.hpp" | |
41 #include "runtime/handles.inline.hpp" | |
42 #include "runtime/java.hpp" | |
342 | 43 |
44 // | |
45 // CMS Bit Map Wrapper | |
46 | |
47 CMBitMapRO::CMBitMapRO(ReservedSpace rs, int shifter): | |
48 _bm((uintptr_t*)NULL,0), | |
49 _shifter(shifter) { | |
50 _bmStartWord = (HeapWord*)(rs.base()); | |
51 _bmWordSize = rs.size()/HeapWordSize; // rs.size() is in bytes | |
52 ReservedSpace brs(ReservedSpace::allocation_align_size_up( | |
53 (_bmWordSize >> (_shifter + LogBitsPerByte)) + 1)); | |
54 | |
55 guarantee(brs.is_reserved(), "couldn't allocate CMS bit map"); | |
56 // For now we'll just commit all of the bit map up fromt. | |
57 // Later on we'll try to be more parsimonious with swap. | |
58 guarantee(_virtual_space.initialize(brs, brs.size()), | |
59 "couldn't reseve backing store for CMS bit map"); | |
60 assert(_virtual_space.committed_size() == brs.size(), | |
61 "didn't reserve backing store for all of CMS bit map?"); | |
62 _bm.set_map((uintptr_t*)_virtual_space.low()); | |
63 assert(_virtual_space.committed_size() << (_shifter + LogBitsPerByte) >= | |
64 _bmWordSize, "inconsistency in bit map sizing"); | |
65 _bm.set_size(_bmWordSize >> _shifter); | |
66 } | |
67 | |
68 HeapWord* CMBitMapRO::getNextMarkedWordAddress(HeapWord* addr, | |
69 HeapWord* limit) const { | |
70 // First we must round addr *up* to a possible object boundary. | |
71 addr = (HeapWord*)align_size_up((intptr_t)addr, | |
72 HeapWordSize << _shifter); | |
73 size_t addrOffset = heapWordToOffset(addr); | |
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74 if (limit == NULL) { |
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75 limit = _bmStartWord + _bmWordSize; |
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76 } |
342 | 77 size_t limitOffset = heapWordToOffset(limit); |
78 size_t nextOffset = _bm.get_next_one_offset(addrOffset, limitOffset); | |
79 HeapWord* nextAddr = offsetToHeapWord(nextOffset); | |
80 assert(nextAddr >= addr, "get_next_one postcondition"); | |
81 assert(nextAddr == limit || isMarked(nextAddr), | |
82 "get_next_one postcondition"); | |
83 return nextAddr; | |
84 } | |
85 | |
86 HeapWord* CMBitMapRO::getNextUnmarkedWordAddress(HeapWord* addr, | |
87 HeapWord* limit) const { | |
88 size_t addrOffset = heapWordToOffset(addr); | |
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89 if (limit == NULL) { |
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90 limit = _bmStartWord + _bmWordSize; |
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91 } |
342 | 92 size_t limitOffset = heapWordToOffset(limit); |
93 size_t nextOffset = _bm.get_next_zero_offset(addrOffset, limitOffset); | |
94 HeapWord* nextAddr = offsetToHeapWord(nextOffset); | |
95 assert(nextAddr >= addr, "get_next_one postcondition"); | |
96 assert(nextAddr == limit || !isMarked(nextAddr), | |
97 "get_next_one postcondition"); | |
98 return nextAddr; | |
99 } | |
100 | |
101 int CMBitMapRO::heapWordDiffToOffsetDiff(size_t diff) const { | |
102 assert((diff & ((1 << _shifter) - 1)) == 0, "argument check"); | |
103 return (int) (diff >> _shifter); | |
104 } | |
105 | |
106 bool CMBitMapRO::iterate(BitMapClosure* cl, MemRegion mr) { | |
107 HeapWord* left = MAX2(_bmStartWord, mr.start()); | |
108 HeapWord* right = MIN2(_bmStartWord + _bmWordSize, mr.end()); | |
109 if (right > left) { | |
110 // Right-open interval [leftOffset, rightOffset). | |
111 return _bm.iterate(cl, heapWordToOffset(left), heapWordToOffset(right)); | |
112 } else { | |
113 return true; | |
114 } | |
115 } | |
116 | |
117 void CMBitMapRO::mostly_disjoint_range_union(BitMap* from_bitmap, | |
118 size_t from_start_index, | |
119 HeapWord* to_start_word, | |
120 size_t word_num) { | |
121 _bm.mostly_disjoint_range_union(from_bitmap, | |
122 from_start_index, | |
123 heapWordToOffset(to_start_word), | |
124 word_num); | |
125 } | |
126 | |
127 #ifndef PRODUCT | |
128 bool CMBitMapRO::covers(ReservedSpace rs) const { | |
129 // assert(_bm.map() == _virtual_space.low(), "map inconsistency"); | |
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130 assert(((size_t)_bm.size() * (size_t)(1 << _shifter)) == _bmWordSize, |
342 | 131 "size inconsistency"); |
132 return _bmStartWord == (HeapWord*)(rs.base()) && | |
133 _bmWordSize == rs.size()>>LogHeapWordSize; | |
134 } | |
135 #endif | |
136 | |
137 void CMBitMap::clearAll() { | |
138 _bm.clear(); | |
139 return; | |
140 } | |
141 | |
142 void CMBitMap::markRange(MemRegion mr) { | |
143 mr.intersection(MemRegion(_bmStartWord, _bmWordSize)); | |
144 assert(!mr.is_empty(), "unexpected empty region"); | |
145 assert((offsetToHeapWord(heapWordToOffset(mr.end())) == | |
146 ((HeapWord *) mr.end())), | |
147 "markRange memory region end is not card aligned"); | |
148 // convert address range into offset range | |
149 _bm.at_put_range(heapWordToOffset(mr.start()), | |
150 heapWordToOffset(mr.end()), true); | |
151 } | |
152 | |
153 void CMBitMap::clearRange(MemRegion mr) { | |
154 mr.intersection(MemRegion(_bmStartWord, _bmWordSize)); | |
155 assert(!mr.is_empty(), "unexpected empty region"); | |
156 // convert address range into offset range | |
157 _bm.at_put_range(heapWordToOffset(mr.start()), | |
158 heapWordToOffset(mr.end()), false); | |
159 } | |
160 | |
161 MemRegion CMBitMap::getAndClearMarkedRegion(HeapWord* addr, | |
162 HeapWord* end_addr) { | |
163 HeapWord* start = getNextMarkedWordAddress(addr); | |
164 start = MIN2(start, end_addr); | |
165 HeapWord* end = getNextUnmarkedWordAddress(start); | |
166 end = MIN2(end, end_addr); | |
167 assert(start <= end, "Consistency check"); | |
168 MemRegion mr(start, end); | |
169 if (!mr.is_empty()) { | |
170 clearRange(mr); | |
171 } | |
172 return mr; | |
173 } | |
174 | |
175 CMMarkStack::CMMarkStack(ConcurrentMark* cm) : | |
176 _base(NULL), _cm(cm) | |
177 #ifdef ASSERT | |
178 , _drain_in_progress(false) | |
179 , _drain_in_progress_yields(false) | |
180 #endif | |
181 {} | |
182 | |
183 void CMMarkStack::allocate(size_t size) { | |
184 _base = NEW_C_HEAP_ARRAY(oop, size); | |
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185 if (_base == NULL) { |
342 | 186 vm_exit_during_initialization("Failed to allocate " |
187 "CM region mark stack"); | |
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188 } |
342 | 189 _index = 0; |
190 _capacity = (jint) size; | |
191 _oops_do_bound = -1; | |
192 NOT_PRODUCT(_max_depth = 0); | |
193 } | |
194 | |
195 CMMarkStack::~CMMarkStack() { | |
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196 if (_base != NULL) { |
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197 FREE_C_HEAP_ARRAY(oop, _base); |
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198 } |
342 | 199 } |
200 | |
201 void CMMarkStack::par_push(oop ptr) { | |
202 while (true) { | |
203 if (isFull()) { | |
204 _overflow = true; | |
205 return; | |
206 } | |
207 // Otherwise... | |
208 jint index = _index; | |
209 jint next_index = index+1; | |
210 jint res = Atomic::cmpxchg(next_index, &_index, index); | |
211 if (res == index) { | |
212 _base[index] = ptr; | |
213 // Note that we don't maintain this atomically. We could, but it | |
214 // doesn't seem necessary. | |
215 NOT_PRODUCT(_max_depth = MAX2(_max_depth, next_index)); | |
216 return; | |
217 } | |
218 // Otherwise, we need to try again. | |
219 } | |
220 } | |
221 | |
222 void CMMarkStack::par_adjoin_arr(oop* ptr_arr, int n) { | |
223 while (true) { | |
224 if (isFull()) { | |
225 _overflow = true; | |
226 return; | |
227 } | |
228 // Otherwise... | |
229 jint index = _index; | |
230 jint next_index = index + n; | |
231 if (next_index > _capacity) { | |
232 _overflow = true; | |
233 return; | |
234 } | |
235 jint res = Atomic::cmpxchg(next_index, &_index, index); | |
236 if (res == index) { | |
237 for (int i = 0; i < n; i++) { | |
238 int ind = index + i; | |
239 assert(ind < _capacity, "By overflow test above."); | |
240 _base[ind] = ptr_arr[i]; | |
241 } | |
242 NOT_PRODUCT(_max_depth = MAX2(_max_depth, next_index)); | |
243 return; | |
244 } | |
245 // Otherwise, we need to try again. | |
246 } | |
247 } | |
248 | |
249 | |
250 void CMMarkStack::par_push_arr(oop* ptr_arr, int n) { | |
251 MutexLockerEx x(ParGCRareEvent_lock, Mutex::_no_safepoint_check_flag); | |
252 jint start = _index; | |
253 jint next_index = start + n; | |
254 if (next_index > _capacity) { | |
255 _overflow = true; | |
256 return; | |
257 } | |
258 // Otherwise. | |
259 _index = next_index; | |
260 for (int i = 0; i < n; i++) { | |
261 int ind = start + i; | |
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262 assert(ind < _capacity, "By overflow test above."); |
342 | 263 _base[ind] = ptr_arr[i]; |
264 } | |
265 } | |
266 | |
267 | |
268 bool CMMarkStack::par_pop_arr(oop* ptr_arr, int max, int* n) { | |
269 MutexLockerEx x(ParGCRareEvent_lock, Mutex::_no_safepoint_check_flag); | |
270 jint index = _index; | |
271 if (index == 0) { | |
272 *n = 0; | |
273 return false; | |
274 } else { | |
275 int k = MIN2(max, index); | |
276 jint new_ind = index - k; | |
277 for (int j = 0; j < k; j++) { | |
278 ptr_arr[j] = _base[new_ind + j]; | |
279 } | |
280 _index = new_ind; | |
281 *n = k; | |
282 return true; | |
283 } | |
284 } | |
285 | |
286 | |
287 CMRegionStack::CMRegionStack() : _base(NULL) {} | |
288 | |
289 void CMRegionStack::allocate(size_t size) { | |
290 _base = NEW_C_HEAP_ARRAY(MemRegion, size); | |
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291 if (_base == NULL) { |
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292 vm_exit_during_initialization("Failed to allocate CM region mark stack"); |
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293 } |
342 | 294 _index = 0; |
295 _capacity = (jint) size; | |
296 } | |
297 | |
298 CMRegionStack::~CMRegionStack() { | |
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299 if (_base != NULL) { |
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300 FREE_C_HEAP_ARRAY(oop, _base); |
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301 } |
342 | 302 } |
303 | |
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304 void CMRegionStack::push_lock_free(MemRegion mr) { |
342 | 305 assert(mr.word_size() > 0, "Precondition"); |
306 while (true) { | |
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307 jint index = _index; |
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308 |
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309 if (index >= _capacity) { |
342 | 310 _overflow = true; |
311 return; | |
312 } | |
313 // Otherwise... | |
314 jint next_index = index+1; | |
315 jint res = Atomic::cmpxchg(next_index, &_index, index); | |
316 if (res == index) { | |
317 _base[index] = mr; | |
318 return; | |
319 } | |
320 // Otherwise, we need to try again. | |
321 } | |
322 } | |
323 | |
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324 // Lock-free pop of the region stack. Called during the concurrent |
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325 // marking / remark phases. Should only be called in tandem with |
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326 // other lock-free pops. |
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327 MemRegion CMRegionStack::pop_lock_free() { |
342 | 328 while (true) { |
329 jint index = _index; | |
330 | |
331 if (index == 0) { | |
332 return MemRegion(); | |
333 } | |
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334 // Otherwise... |
342 | 335 jint next_index = index-1; |
336 jint res = Atomic::cmpxchg(next_index, &_index, index); | |
337 if (res == index) { | |
338 MemRegion mr = _base[next_index]; | |
339 if (mr.start() != NULL) { | |
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340 assert(mr.end() != NULL, "invariant"); |
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341 assert(mr.word_size() > 0, "invariant"); |
342 | 342 return mr; |
343 } else { | |
344 // that entry was invalidated... let's skip it | |
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345 assert(mr.end() == NULL, "invariant"); |
342 | 346 } |
347 } | |
348 // Otherwise, we need to try again. | |
349 } | |
350 } | |
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351 |
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352 #if 0 |
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353 // The routines that manipulate the region stack with a lock are |
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354 // not currently used. They should be retained, however, as a |
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355 // diagnostic aid. |
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356 |
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357 void CMRegionStack::push_with_lock(MemRegion mr) { |
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358 assert(mr.word_size() > 0, "Precondition"); |
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359 MutexLockerEx x(CMRegionStack_lock, Mutex::_no_safepoint_check_flag); |
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360 |
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361 if (isFull()) { |
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362 _overflow = true; |
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363 return; |
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364 } |
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365 |
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366 _base[_index] = mr; |
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367 _index += 1; |
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368 } |
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369 |
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370 MemRegion CMRegionStack::pop_with_lock() { |
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371 MutexLockerEx x(CMRegionStack_lock, Mutex::_no_safepoint_check_flag); |
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372 |
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373 while (true) { |
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374 if (_index == 0) { |
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375 return MemRegion(); |
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376 } |
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377 _index -= 1; |
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378 |
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379 MemRegion mr = _base[_index]; |
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380 if (mr.start() != NULL) { |
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381 assert(mr.end() != NULL, "invariant"); |
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382 assert(mr.word_size() > 0, "invariant"); |
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383 return mr; |
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384 } else { |
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385 // that entry was invalidated... let's skip it |
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386 assert(mr.end() == NULL, "invariant"); |
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387 } |
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388 } |
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389 } |
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390 #endif |
342 | 391 |
392 bool CMRegionStack::invalidate_entries_into_cset() { | |
393 bool result = false; | |
394 G1CollectedHeap* g1h = G1CollectedHeap::heap(); | |
395 for (int i = 0; i < _oops_do_bound; ++i) { | |
396 MemRegion mr = _base[i]; | |
397 if (mr.start() != NULL) { | |
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398 assert(mr.end() != NULL, "invariant"); |
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399 assert(mr.word_size() > 0, "invariant"); |
342 | 400 HeapRegion* hr = g1h->heap_region_containing(mr.start()); |
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401 assert(hr != NULL, "invariant"); |
342 | 402 if (hr->in_collection_set()) { |
403 // The region points into the collection set | |
404 _base[i] = MemRegion(); | |
405 result = true; | |
406 } | |
407 } else { | |
408 // that entry was invalidated... let's skip it | |
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409 assert(mr.end() == NULL, "invariant"); |
342 | 410 } |
411 } | |
412 return result; | |
413 } | |
414 | |
415 template<class OopClosureClass> | |
416 bool CMMarkStack::drain(OopClosureClass* cl, CMBitMap* bm, bool yield_after) { | |
417 assert(!_drain_in_progress || !_drain_in_progress_yields || yield_after | |
418 || SafepointSynchronize::is_at_safepoint(), | |
419 "Drain recursion must be yield-safe."); | |
420 bool res = true; | |
421 debug_only(_drain_in_progress = true); | |
422 debug_only(_drain_in_progress_yields = yield_after); | |
423 while (!isEmpty()) { | |
424 oop newOop = pop(); | |
425 assert(G1CollectedHeap::heap()->is_in_reserved(newOop), "Bad pop"); | |
426 assert(newOop->is_oop(), "Expected an oop"); | |
427 assert(bm == NULL || bm->isMarked((HeapWord*)newOop), | |
428 "only grey objects on this stack"); | |
429 // iterate over the oops in this oop, marking and pushing | |
430 // the ones in CMS generation. | |
431 newOop->oop_iterate(cl); | |
432 if (yield_after && _cm->do_yield_check()) { | |
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433 res = false; |
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434 break; |
342 | 435 } |
436 } | |
437 debug_only(_drain_in_progress = false); | |
438 return res; | |
439 } | |
440 | |
441 void CMMarkStack::oops_do(OopClosure* f) { | |
442 if (_index == 0) return; | |
443 assert(_oops_do_bound != -1 && _oops_do_bound <= _index, | |
444 "Bound must be set."); | |
445 for (int i = 0; i < _oops_do_bound; i++) { | |
446 f->do_oop(&_base[i]); | |
447 } | |
448 _oops_do_bound = -1; | |
449 } | |
450 | |
451 bool ConcurrentMark::not_yet_marked(oop obj) const { | |
452 return (_g1h->is_obj_ill(obj) | |
453 || (_g1h->is_in_permanent(obj) | |
454 && !nextMarkBitMap()->isMarked((HeapWord*)obj))); | |
455 } | |
456 | |
457 #ifdef _MSC_VER // the use of 'this' below gets a warning, make it go away | |
458 #pragma warning( disable:4355 ) // 'this' : used in base member initializer list | |
459 #endif // _MSC_VER | |
460 | |
461 ConcurrentMark::ConcurrentMark(ReservedSpace rs, | |
462 int max_regions) : | |
463 _markBitMap1(rs, MinObjAlignment - 1), | |
464 _markBitMap2(rs, MinObjAlignment - 1), | |
465 | |
466 _parallel_marking_threads(0), | |
467 _sleep_factor(0.0), | |
468 _marking_task_overhead(1.0), | |
469 _cleanup_sleep_factor(0.0), | |
470 _cleanup_task_overhead(1.0), | |
2152 | 471 _cleanup_list("Cleanup List"), |
342 | 472 _region_bm(max_regions, false /* in_resource_area*/), |
473 _card_bm((rs.size() + CardTableModRefBS::card_size - 1) >> | |
474 CardTableModRefBS::card_shift, | |
475 false /* in_resource_area*/), | |
476 _prevMarkBitMap(&_markBitMap1), | |
477 _nextMarkBitMap(&_markBitMap2), | |
478 _at_least_one_mark_complete(false), | |
479 | |
480 _markStack(this), | |
481 _regionStack(), | |
482 // _finger set in set_non_marking_state | |
483 | |
484 _max_task_num(MAX2(ParallelGCThreads, (size_t)1)), | |
485 // _active_tasks set in set_non_marking_state | |
486 // _tasks set inside the constructor | |
487 _task_queues(new CMTaskQueueSet((int) _max_task_num)), | |
488 _terminator(ParallelTaskTerminator((int) _max_task_num, _task_queues)), | |
489 | |
490 _has_overflown(false), | |
491 _concurrent(false), | |
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492 _has_aborted(false), |
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493 _restart_for_overflow(false), |
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494 _concurrent_marking_in_progress(false), |
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495 _should_gray_objects(false), |
342 | 496 |
497 // _verbose_level set below | |
498 | |
499 _init_times(), | |
500 _remark_times(), _remark_mark_times(), _remark_weak_ref_times(), | |
501 _cleanup_times(), | |
502 _total_counting_time(0.0), | |
503 _total_rs_scrub_time(0.0), | |
504 | |
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505 _parallel_workers(NULL) { |
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506 CMVerboseLevel verbose_level = (CMVerboseLevel) G1MarkingVerboseLevel; |
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507 if (verbose_level < no_verbose) { |
342 | 508 verbose_level = no_verbose; |
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509 } |
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510 if (verbose_level > high_verbose) { |
342 | 511 verbose_level = high_verbose; |
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512 } |
342 | 513 _verbose_level = verbose_level; |
514 | |
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515 if (verbose_low()) { |
342 | 516 gclog_or_tty->print_cr("[global] init, heap start = "PTR_FORMAT", " |
517 "heap end = "PTR_FORMAT, _heap_start, _heap_end); | |
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518 } |
342 | 519 |
1284 | 520 _markStack.allocate(MarkStackSize); |
751 | 521 _regionStack.allocate(G1MarkRegionStackSize); |
342 | 522 |
523 // Create & start a ConcurrentMark thread. | |
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524 _cmThread = new ConcurrentMarkThread(this); |
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525 assert(cmThread() != NULL, "CM Thread should have been created"); |
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526 assert(cmThread()->cm() != NULL, "CM Thread should refer to this cm"); |
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527 |
342 | 528 _g1h = G1CollectedHeap::heap(); |
529 assert(CGC_lock != NULL, "Where's the CGC_lock?"); | |
530 assert(_markBitMap1.covers(rs), "_markBitMap1 inconsistency"); | |
531 assert(_markBitMap2.covers(rs), "_markBitMap2 inconsistency"); | |
532 | |
533 SATBMarkQueueSet& satb_qs = JavaThread::satb_mark_queue_set(); | |
1282 | 534 satb_qs.set_buffer_size(G1SATBBufferSize); |
342 | 535 |
536 _tasks = NEW_C_HEAP_ARRAY(CMTask*, _max_task_num); | |
537 _accum_task_vtime = NEW_C_HEAP_ARRAY(double, _max_task_num); | |
538 | |
539 // so that the assertion in MarkingTaskQueue::task_queue doesn't fail | |
540 _active_tasks = _max_task_num; | |
541 for (int i = 0; i < (int) _max_task_num; ++i) { | |
542 CMTaskQueue* task_queue = new CMTaskQueue(); | |
543 task_queue->initialize(); | |
544 _task_queues->register_queue(i, task_queue); | |
545 | |
546 _tasks[i] = new CMTask(i, this, task_queue, _task_queues); | |
547 _accum_task_vtime[i] = 0.0; | |
548 } | |
549 | |
1284 | 550 if (ConcGCThreads > ParallelGCThreads) { |
551 vm_exit_during_initialization("Can't have more ConcGCThreads " | |
342 | 552 "than ParallelGCThreads."); |
553 } | |
554 if (ParallelGCThreads == 0) { | |
555 // if we are not running with any parallel GC threads we will not | |
556 // spawn any marking threads either | |
557 _parallel_marking_threads = 0; | |
558 _sleep_factor = 0.0; | |
559 _marking_task_overhead = 1.0; | |
560 } else { | |
1284 | 561 if (ConcGCThreads > 0) { |
562 // notice that ConcGCThreads overwrites G1MarkingOverheadPercent | |
342 | 563 // if both are set |
564 | |
1284 | 565 _parallel_marking_threads = ConcGCThreads; |
342 | 566 _sleep_factor = 0.0; |
567 _marking_task_overhead = 1.0; | |
751 | 568 } else if (G1MarkingOverheadPercent > 0) { |
342 | 569 // we will calculate the number of parallel marking threads |
570 // based on a target overhead with respect to the soft real-time | |
571 // goal | |
572 | |
751 | 573 double marking_overhead = (double) G1MarkingOverheadPercent / 100.0; |
342 | 574 double overall_cm_overhead = |
751 | 575 (double) MaxGCPauseMillis * marking_overhead / |
576 (double) GCPauseIntervalMillis; | |
342 | 577 double cpu_ratio = 1.0 / (double) os::processor_count(); |
578 double marking_thread_num = ceil(overall_cm_overhead / cpu_ratio); | |
579 double marking_task_overhead = | |
580 overall_cm_overhead / marking_thread_num * | |
581 (double) os::processor_count(); | |
582 double sleep_factor = | |
583 (1.0 - marking_task_overhead) / marking_task_overhead; | |
584 | |
585 _parallel_marking_threads = (size_t) marking_thread_num; | |
586 _sleep_factor = sleep_factor; | |
587 _marking_task_overhead = marking_task_overhead; | |
588 } else { | |
589 _parallel_marking_threads = MAX2((ParallelGCThreads + 2) / 4, (size_t)1); | |
590 _sleep_factor = 0.0; | |
591 _marking_task_overhead = 1.0; | |
592 } | |
593 | |
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594 if (parallel_marking_threads() > 1) { |
342 | 595 _cleanup_task_overhead = 1.0; |
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596 } else { |
342 | 597 _cleanup_task_overhead = marking_task_overhead(); |
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598 } |
342 | 599 _cleanup_sleep_factor = |
600 (1.0 - cleanup_task_overhead()) / cleanup_task_overhead(); | |
601 | |
602 #if 0 | |
603 gclog_or_tty->print_cr("Marking Threads %d", parallel_marking_threads()); | |
604 gclog_or_tty->print_cr("CM Marking Task Overhead %1.4lf", marking_task_overhead()); | |
605 gclog_or_tty->print_cr("CM Sleep Factor %1.4lf", sleep_factor()); | |
606 gclog_or_tty->print_cr("CL Marking Task Overhead %1.4lf", cleanup_task_overhead()); | |
607 gclog_or_tty->print_cr("CL Sleep Factor %1.4lf", cleanup_sleep_factor()); | |
608 #endif | |
609 | |
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610 guarantee(parallel_marking_threads() > 0, "peace of mind"); |
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611 _parallel_workers = new FlexibleWorkGang("G1 Parallel Marking Threads", |
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612 (int) _parallel_marking_threads, false, true); |
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613 if (_parallel_workers == NULL) { |
342 | 614 vm_exit_during_initialization("Failed necessary allocation."); |
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615 } else { |
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616 _parallel_workers->initialize_workers(); |
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617 } |
342 | 618 } |
619 | |
620 // so that the call below can read a sensible value | |
621 _heap_start = (HeapWord*) rs.base(); | |
622 set_non_marking_state(); | |
623 } | |
624 | |
625 void ConcurrentMark::update_g1_committed(bool force) { | |
626 // If concurrent marking is not in progress, then we do not need to | |
627 // update _heap_end. This has a subtle and important | |
628 // side-effect. Imagine that two evacuation pauses happen between | |
629 // marking completion and remark. The first one can grow the | |
630 // heap (hence now the finger is below the heap end). Then, the | |
631 // second one could unnecessarily push regions on the region | |
632 // stack. This causes the invariant that the region stack is empty | |
633 // at the beginning of remark to be false. By ensuring that we do | |
634 // not observe heap expansions after marking is complete, then we do | |
635 // not have this problem. | |
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636 if (!concurrent_marking_in_progress() && !force) return; |
342 | 637 |
638 MemRegion committed = _g1h->g1_committed(); | |
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639 assert(committed.start() == _heap_start, "start shouldn't change"); |
342 | 640 HeapWord* new_end = committed.end(); |
641 if (new_end > _heap_end) { | |
642 // The heap has been expanded. | |
643 | |
644 _heap_end = new_end; | |
645 } | |
646 // Notice that the heap can also shrink. However, this only happens | |
647 // during a Full GC (at least currently) and the entire marking | |
648 // phase will bail out and the task will not be restarted. So, let's | |
649 // do nothing. | |
650 } | |
651 | |
652 void ConcurrentMark::reset() { | |
653 // Starting values for these two. This should be called in a STW | |
654 // phase. CM will be notified of any future g1_committed expansions | |
655 // will be at the end of evacuation pauses, when tasks are | |
656 // inactive. | |
657 MemRegion committed = _g1h->g1_committed(); | |
658 _heap_start = committed.start(); | |
659 _heap_end = committed.end(); | |
660 | |
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661 // Separated the asserts so that we know which one fires. |
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662 assert(_heap_start != NULL, "heap bounds should look ok"); |
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663 assert(_heap_end != NULL, "heap bounds should look ok"); |
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664 assert(_heap_start < _heap_end, "heap bounds should look ok"); |
342 | 665 |
666 // reset all the marking data structures and any necessary flags | |
667 clear_marking_state(); | |
668 | |
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669 if (verbose_low()) { |
342 | 670 gclog_or_tty->print_cr("[global] resetting"); |
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671 } |
342 | 672 |
673 // We do reset all of them, since different phases will use | |
674 // different number of active threads. So, it's easiest to have all | |
675 // of them ready. | |
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676 for (int i = 0; i < (int) _max_task_num; ++i) { |
342 | 677 _tasks[i]->reset(_nextMarkBitMap); |
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678 } |
342 | 679 |
680 // we need this to make sure that the flag is on during the evac | |
681 // pause with initial mark piggy-backed | |
682 set_concurrent_marking_in_progress(); | |
683 } | |
684 | |
685 void ConcurrentMark::set_phase(size_t active_tasks, bool concurrent) { | |
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686 assert(active_tasks <= _max_task_num, "we should not have more"); |
342 | 687 |
688 _active_tasks = active_tasks; | |
689 // Need to update the three data structures below according to the | |
690 // number of active threads for this phase. | |
691 _terminator = ParallelTaskTerminator((int) active_tasks, _task_queues); | |
692 _first_overflow_barrier_sync.set_n_workers((int) active_tasks); | |
693 _second_overflow_barrier_sync.set_n_workers((int) active_tasks); | |
694 | |
695 _concurrent = concurrent; | |
696 // We propagate this to all tasks, not just the active ones. | |
697 for (int i = 0; i < (int) _max_task_num; ++i) | |
698 _tasks[i]->set_concurrent(concurrent); | |
699 | |
700 if (concurrent) { | |
701 set_concurrent_marking_in_progress(); | |
702 } else { | |
703 // We currently assume that the concurrent flag has been set to | |
704 // false before we start remark. At this point we should also be | |
705 // in a STW phase. | |
1023
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706 assert(!concurrent_marking_in_progress(), "invariant"); |
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707 assert(_finger == _heap_end, "only way to get here"); |
342 | 708 update_g1_committed(true); |
709 } | |
710 } | |
711 | |
712 void ConcurrentMark::set_non_marking_state() { | |
713 // We set the global marking state to some default values when we're | |
714 // not doing marking. | |
715 clear_marking_state(); | |
716 _active_tasks = 0; | |
717 clear_concurrent_marking_in_progress(); | |
718 } | |
719 | |
720 ConcurrentMark::~ConcurrentMark() { | |
721 for (int i = 0; i < (int) _max_task_num; ++i) { | |
722 delete _task_queues->queue(i); | |
723 delete _tasks[i]; | |
724 } | |
725 delete _task_queues; | |
726 FREE_C_HEAP_ARRAY(CMTask*, _max_task_num); | |
727 } | |
728 | |
729 // This closure is used to mark refs into the g1 generation | |
730 // from external roots in the CMS bit map. | |
731 // Called at the first checkpoint. | |
732 // | |
733 | |
734 void ConcurrentMark::clearNextBitmap() { | |
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735 G1CollectedHeap* g1h = G1CollectedHeap::heap(); |
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736 G1CollectorPolicy* g1p = g1h->g1_policy(); |
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737 |
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738 // Make sure that the concurrent mark thread looks to still be in |
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739 // the current cycle. |
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740 guarantee(cmThread()->during_cycle(), "invariant"); |
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741 |
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742 // We are finishing up the current cycle by clearing the next |
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743 // marking bitmap and getting it ready for the next cycle. During |
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744 // this time no other cycle can start. So, let's make sure that this |
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745 // is the case. |
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746 guarantee(!g1h->mark_in_progress(), "invariant"); |
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747 |
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748 // clear the mark bitmap (no grey objects to start with). |
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749 // We need to do this in chunks and offer to yield in between |
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750 // each chunk. |
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751 HeapWord* start = _nextMarkBitMap->startWord(); |
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752 HeapWord* end = _nextMarkBitMap->endWord(); |
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753 HeapWord* cur = start; |
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754 size_t chunkSize = M; |
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755 while (cur < end) { |
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756 HeapWord* next = cur + chunkSize; |
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757 if (next > end) { |
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758 next = end; |
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759 } |
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760 MemRegion mr(cur,next); |
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761 _nextMarkBitMap->clearRange(mr); |
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762 cur = next; |
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763 do_yield_check(); |
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764 |
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765 // Repeat the asserts from above. We'll do them as asserts here to |
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766 // minimize their overhead on the product. However, we'll have |
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767 // them as guarantees at the beginning / end of the bitmap |
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768 // clearing to get some checking in the product. |
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769 assert(cmThread()->during_cycle(), "invariant"); |
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770 assert(!g1h->mark_in_progress(), "invariant"); |
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771 } |
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772 |
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773 // Repeat the asserts from above. |
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774 guarantee(cmThread()->during_cycle(), "invariant"); |
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775 guarantee(!g1h->mark_in_progress(), "invariant"); |
342 | 776 } |
777 | |
778 class NoteStartOfMarkHRClosure: public HeapRegionClosure { | |
779 public: | |
780 bool doHeapRegion(HeapRegion* r) { | |
781 if (!r->continuesHumongous()) { | |
782 r->note_start_of_marking(true); | |
783 } | |
784 return false; | |
785 } | |
786 }; | |
787 | |
788 void ConcurrentMark::checkpointRootsInitialPre() { | |
789 G1CollectedHeap* g1h = G1CollectedHeap::heap(); | |
790 G1CollectorPolicy* g1p = g1h->g1_policy(); | |
791 | |
792 _has_aborted = false; | |
793 | |
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794 #ifndef PRODUCT |
1044 | 795 if (G1PrintReachableAtInitialMark) { |
1388 | 796 print_reachable("at-cycle-start", |
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797 VerifyOption_G1UsePrevMarking, true /* all */); |
1044 | 798 } |
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799 #endif |
342 | 800 |
801 // Initialise marking structures. This has to be done in a STW phase. | |
802 reset(); | |
803 } | |
804 | |
805 | |
806 void ConcurrentMark::checkpointRootsInitialPost() { | |
807 G1CollectedHeap* g1h = G1CollectedHeap::heap(); | |
808 | |
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809 // If we force an overflow during remark, the remark operation will |
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810 // actually abort and we'll restart concurrent marking. If we always |
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811 // force an oveflow during remark we'll never actually complete the |
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812 // marking phase. So, we initilize this here, at the start of the |
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813 // cycle, so that at the remaining overflow number will decrease at |
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814 // every remark and we'll eventually not need to cause one. |
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815 force_overflow_stw()->init(); |
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816 |
342 | 817 // For each region note start of marking. |
818 NoteStartOfMarkHRClosure startcl; | |
819 g1h->heap_region_iterate(&startcl); | |
820 | |
821 // Start weak-reference discovery. | |
822 ReferenceProcessor* rp = g1h->ref_processor(); | |
823 rp->verify_no_references_recorded(); | |
824 rp->enable_discovery(); // enable ("weak") refs discovery | |
457
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825 rp->setup_policy(false); // snapshot the soft ref policy to be used in this cycle |
342 | 826 |
827 SATBMarkQueueSet& satb_mq_set = JavaThread::satb_mark_queue_set(); | |
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828 // This is the start of the marking cycle, we're expected all |
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829 // threads to have SATB queues with active set to false. |
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830 satb_mq_set.set_active_all_threads(true, /* new active value */ |
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831 false /* expected_active */); |
342 | 832 |
833 // update_g1_committed() will be called at the end of an evac pause | |
834 // when marking is on. So, it's also called at the end of the | |
835 // initial-mark pause to update the heap end, if the heap expands | |
836 // during it. No need to call it here. | |
837 } | |
838 | |
839 /* | |
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840 * Notice that in the next two methods, we actually leave the STS |
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841 * during the barrier sync and join it immediately afterwards. If we |
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842 * do not do this, the following deadlock can occur: one thread could |
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843 * be in the barrier sync code, waiting for the other thread to also |
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844 * sync up, whereas another one could be trying to yield, while also |
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845 * waiting for the other threads to sync up too. |
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846 * |
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847 * Note, however, that this code is also used during remark and in |
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848 * this case we should not attempt to leave / enter the STS, otherwise |
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849 * we'll either hit an asseert (debug / fastdebug) or deadlock |
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850 * (product). So we should only leave / enter the STS if we are |
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851 * operating concurrently. |
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852 * |
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853 * Because the thread that does the sync barrier has left the STS, it |
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854 * is possible to be suspended for a Full GC or an evacuation pause |
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855 * could occur. This is actually safe, since the entering the sync |
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856 * barrier is one of the last things do_marking_step() does, and it |
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857 * doesn't manipulate any data structures afterwards. |
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858 */ |
342 | 859 |
860 void ConcurrentMark::enter_first_sync_barrier(int task_num) { | |
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861 if (verbose_low()) { |
342 | 862 gclog_or_tty->print_cr("[%d] entering first barrier", task_num); |
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863 } |
342 | 864 |
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865 if (concurrent()) { |
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866 ConcurrentGCThread::stsLeave(); |
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867 } |
342 | 868 _first_overflow_barrier_sync.enter(); |
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869 if (concurrent()) { |
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870 ConcurrentGCThread::stsJoin(); |
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871 } |
342 | 872 // at this point everyone should have synced up and not be doing any |
873 // more work | |
874 | |
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875 if (verbose_low()) { |
342 | 876 gclog_or_tty->print_cr("[%d] leaving first barrier", task_num); |
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877 } |
342 | 878 |
879 // let task 0 do this | |
880 if (task_num == 0) { | |
881 // task 0 is responsible for clearing the global data structures | |
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882 // We should be here because of an overflow. During STW we should |
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883 // not clear the overflow flag since we rely on it being true when |
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884 // we exit this method to abort the pause and restart concurent |
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885 // marking. |
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886 clear_marking_state(concurrent() /* clear_overflow */); |
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887 force_overflow()->update(); |
342 | 888 |
889 if (PrintGC) { | |
890 gclog_or_tty->date_stamp(PrintGCDateStamps); | |
891 gclog_or_tty->stamp(PrintGCTimeStamps); | |
892 gclog_or_tty->print_cr("[GC concurrent-mark-reset-for-overflow]"); | |
893 } | |
894 } | |
895 | |
896 // after this, each task should reset its own data structures then | |
897 // then go into the second barrier | |
898 } | |
899 | |
900 void ConcurrentMark::enter_second_sync_barrier(int task_num) { | |
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901 if (verbose_low()) { |
342 | 902 gclog_or_tty->print_cr("[%d] entering second barrier", task_num); |
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903 } |
342 | 904 |
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905 if (concurrent()) { |
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906 ConcurrentGCThread::stsLeave(); |
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907 } |
342 | 908 _second_overflow_barrier_sync.enter(); |
3316
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909 if (concurrent()) { |
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910 ConcurrentGCThread::stsJoin(); |
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911 } |
342 | 912 // at this point everything should be re-initialised and ready to go |
913 | |
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914 if (verbose_low()) { |
342 | 915 gclog_or_tty->print_cr("[%d] leaving second barrier", task_num); |
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916 } |
342 | 917 } |
918 | |
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919 #ifndef PRODUCT |
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920 void ForceOverflowSettings::init() { |
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921 _num_remaining = G1ConcMarkForceOverflow; |
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922 _force = false; |
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923 update(); |
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924 } |
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925 |
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926 void ForceOverflowSettings::update() { |
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927 if (_num_remaining > 0) { |
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928 _num_remaining -= 1; |
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929 _force = true; |
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930 } else { |
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931 _force = false; |
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932 } |
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933 } |
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934 |
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935 bool ForceOverflowSettings::should_force() { |
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936 if (_force) { |
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937 _force = false; |
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938 return true; |
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939 } else { |
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940 return false; |
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941 } |
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942 } |
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943 #endif // !PRODUCT |
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944 |
342 | 945 void ConcurrentMark::grayRoot(oop p) { |
946 HeapWord* addr = (HeapWord*) p; | |
947 // We can't really check against _heap_start and _heap_end, since it | |
948 // is possible during an evacuation pause with piggy-backed | |
949 // initial-mark that the committed space is expanded during the | |
950 // pause without CM observing this change. So the assertions below | |
951 // is a bit conservative; but better than nothing. | |
1023
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952 assert(_g1h->g1_committed().contains(addr), |
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953 "address should be within the heap bounds"); |
342 | 954 |
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955 if (!_nextMarkBitMap->isMarked(addr)) { |
342 | 956 _nextMarkBitMap->parMark(addr); |
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957 } |
342 | 958 } |
959 | |
960 void ConcurrentMark::grayRegionIfNecessary(MemRegion mr) { | |
961 // The objects on the region have already been marked "in bulk" by | |
962 // the caller. We only need to decide whether to push the region on | |
963 // the region stack or not. | |
964 | |
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965 if (!concurrent_marking_in_progress() || !_should_gray_objects) { |
342 | 966 // We're done with marking and waiting for remark. We do not need to |
967 // push anything else on the region stack. | |
968 return; | |
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969 } |
342 | 970 |
971 HeapWord* finger = _finger; | |
972 | |
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973 if (verbose_low()) { |
342 | 974 gclog_or_tty->print_cr("[global] attempting to push " |
975 "region ["PTR_FORMAT", "PTR_FORMAT"), finger is at " | |
976 PTR_FORMAT, mr.start(), mr.end(), finger); | |
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977 } |
342 | 978 |
979 if (mr.start() < finger) { | |
980 // The finger is always heap region aligned and it is not possible | |
981 // for mr to span heap regions. | |
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982 assert(mr.end() <= finger, "invariant"); |
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983 |
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984 // Separated the asserts so that we know which one fires. |
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985 assert(mr.start() <= mr.end(), |
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986 "region boundaries should fall within the committed space"); |
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987 assert(_heap_start <= mr.start(), |
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988 "region boundaries should fall within the committed space"); |
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989 assert(mr.end() <= _heap_end, |
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990 "region boundaries should fall within the committed space"); |
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991 if (verbose_low()) { |
342 | 992 gclog_or_tty->print_cr("[global] region ["PTR_FORMAT", "PTR_FORMAT") " |
993 "below the finger, pushing it", | |
994 mr.start(), mr.end()); | |
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995 } |
342 | 996 |
1835
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997 if (!region_stack_push_lock_free(mr)) { |
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998 if (verbose_low()) { |
342 | 999 gclog_or_tty->print_cr("[global] region stack has overflown."); |
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1000 } |
342 | 1001 } |
1002 } | |
1003 } | |
1004 | |
1005 void ConcurrentMark::markAndGrayObjectIfNecessary(oop p) { | |
1006 // The object is not marked by the caller. We need to at least mark | |
1007 // it and maybe push in on the stack. | |
1008 | |
1009 HeapWord* addr = (HeapWord*)p; | |
1010 if (!_nextMarkBitMap->isMarked(addr)) { | |
1011 // We definitely need to mark it, irrespective whether we bail out | |
1012 // because we're done with marking. | |
1013 if (_nextMarkBitMap->parMark(addr)) { | |
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1014 if (!concurrent_marking_in_progress() || !_should_gray_objects) { |
342 | 1015 // If we're done with concurrent marking and we're waiting for |
1016 // remark, then we're not pushing anything on the stack. | |
1017 return; | |
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1018 } |
342 | 1019 |
1020 // No OrderAccess:store_load() is needed. It is implicit in the | |
1021 // CAS done in parMark(addr) above | |
1022 HeapWord* finger = _finger; | |
1023 | |
1024 if (addr < finger) { | |
1025 if (!mark_stack_push(oop(addr))) { | |
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1026 if (verbose_low()) { |
342 | 1027 gclog_or_tty->print_cr("[global] global stack overflow " |
1028 "during parMark"); | |
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1029 } |
342 | 1030 } |
1031 } | |
1032 } | |
1033 } | |
1034 } | |
1035 | |
1036 class CMConcurrentMarkingTask: public AbstractGangTask { | |
1037 private: | |
1038 ConcurrentMark* _cm; | |
1039 ConcurrentMarkThread* _cmt; | |
1040 | |
1041 public: | |
1042 void work(int worker_i) { | |
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1043 assert(Thread::current()->is_ConcurrentGC_thread(), |
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1044 "this should only be done by a conc GC thread"); |
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1045 ResourceMark rm; |
342 | 1046 |
1047 double start_vtime = os::elapsedVTime(); | |
1048 | |
1049 ConcurrentGCThread::stsJoin(); | |
1050 | |
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1051 assert((size_t) worker_i < _cm->active_tasks(), "invariant"); |
342 | 1052 CMTask* the_task = _cm->task(worker_i); |
1053 the_task->record_start_time(); | |
1054 if (!_cm->has_aborted()) { | |
1055 do { | |
1056 double start_vtime_sec = os::elapsedVTime(); | |
1057 double start_time_sec = os::elapsedTime(); | |
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1058 double mark_step_duration_ms = G1ConcMarkStepDurationMillis; |
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1059 |
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1060 the_task->do_marking_step(mark_step_duration_ms, |
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1061 true /* do_stealing */, |
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1062 true /* do_termination */); |
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1063 |
342 | 1064 double end_time_sec = os::elapsedTime(); |
1065 double end_vtime_sec = os::elapsedVTime(); | |
1066 double elapsed_vtime_sec = end_vtime_sec - start_vtime_sec; | |
1067 double elapsed_time_sec = end_time_sec - start_time_sec; | |
1068 _cm->clear_has_overflown(); | |
1069 | |
1070 bool ret = _cm->do_yield_check(worker_i); | |
1071 | |
1072 jlong sleep_time_ms; | |
1073 if (!_cm->has_aborted() && the_task->has_aborted()) { | |
1074 sleep_time_ms = | |
1075 (jlong) (elapsed_vtime_sec * _cm->sleep_factor() * 1000.0); | |
1076 ConcurrentGCThread::stsLeave(); | |
1077 os::sleep(Thread::current(), sleep_time_ms, false); | |
1078 ConcurrentGCThread::stsJoin(); | |
1079 } | |
1080 double end_time2_sec = os::elapsedTime(); | |
1081 double elapsed_time2_sec = end_time2_sec - start_time_sec; | |
1082 | |
1083 #if 0 | |
1084 gclog_or_tty->print_cr("CM: elapsed %1.4lf ms, sleep %1.4lf ms, " | |
1085 "overhead %1.4lf", | |
1086 elapsed_vtime_sec * 1000.0, (double) sleep_time_ms, | |
1087 the_task->conc_overhead(os::elapsedTime()) * 8.0); | |
1088 gclog_or_tty->print_cr("elapsed time %1.4lf ms, time 2: %1.4lf ms", | |
1089 elapsed_time_sec * 1000.0, elapsed_time2_sec * 1000.0); | |
1090 #endif | |
1091 } while (!_cm->has_aborted() && the_task->has_aborted()); | |
1092 } | |
1093 the_task->record_end_time(); | |
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1094 guarantee(!the_task->has_aborted() || _cm->has_aborted(), "invariant"); |
342 | 1095 |
1096 ConcurrentGCThread::stsLeave(); | |
1097 | |
1098 double end_vtime = os::elapsedVTime(); | |
1099 _cm->update_accum_task_vtime(worker_i, end_vtime - start_vtime); | |
1100 } | |
1101 | |
1102 CMConcurrentMarkingTask(ConcurrentMark* cm, | |
1103 ConcurrentMarkThread* cmt) : | |
1104 AbstractGangTask("Concurrent Mark"), _cm(cm), _cmt(cmt) { } | |
1105 | |
1106 ~CMConcurrentMarkingTask() { } | |
1107 }; | |
1108 | |
1109 void ConcurrentMark::markFromRoots() { | |
1110 // we might be tempted to assert that: | |
1111 // assert(asynch == !SafepointSynchronize::is_at_safepoint(), | |
1112 // "inconsistent argument?"); | |
1113 // However that wouldn't be right, because it's possible that | |
1114 // a safepoint is indeed in progress as a younger generation | |
1115 // stop-the-world GC happens even as we mark in this generation. | |
1116 | |
1117 _restart_for_overflow = false; | |
1118 | |
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1119 size_t active_workers = MAX2((size_t) 1, parallel_marking_threads()); |
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1120 force_overflow_conc()->init(); |
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1121 set_phase(active_workers, true /* concurrent */); |
342 | 1122 |
1123 CMConcurrentMarkingTask markingTask(this, cmThread()); | |
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1124 if (parallel_marking_threads() > 0) { |
342 | 1125 _parallel_workers->run_task(&markingTask); |
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1126 } else { |
342 | 1127 markingTask.work(0); |
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1128 } |
342 | 1129 print_stats(); |
1130 } | |
1131 | |
1132 void ConcurrentMark::checkpointRootsFinal(bool clear_all_soft_refs) { | |
1133 // world is stopped at this checkpoint | |
1134 assert(SafepointSynchronize::is_at_safepoint(), | |
1135 "world should be stopped"); | |
1136 G1CollectedHeap* g1h = G1CollectedHeap::heap(); | |
1137 | |
1138 // If a full collection has happened, we shouldn't do this. | |
1139 if (has_aborted()) { | |
1140 g1h->set_marking_complete(); // So bitmap clearing isn't confused | |
1141 return; | |
1142 } | |
1143 | |
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1144 SvcGCMarker sgcm(SvcGCMarker::OTHER); |
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1145 |
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1146 if (VerifyDuringGC) { |
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1147 HandleMark hm; // handle scope |
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1148 gclog_or_tty->print(" VerifyDuringGC:(before)"); |
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1149 Universe::heap()->prepare_for_verify(); |
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1150 Universe::verify(/* allow dirty */ true, |
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1151 /* silent */ false, |
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1152 /* option */ VerifyOption_G1UsePrevMarking); |
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1153 } |
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1154 |
342 | 1155 G1CollectorPolicy* g1p = g1h->g1_policy(); |
1156 g1p->record_concurrent_mark_remark_start(); | |
1157 | |
1158 double start = os::elapsedTime(); | |
1159 | |
1160 checkpointRootsFinalWork(); | |
1161 | |
1162 double mark_work_end = os::elapsedTime(); | |
1163 | |
1164 weakRefsWork(clear_all_soft_refs); | |
1165 | |
1166 if (has_overflown()) { | |
1167 // Oops. We overflowed. Restart concurrent marking. | |
1168 _restart_for_overflow = true; | |
1169 // Clear the flag. We do not need it any more. | |
1170 clear_has_overflown(); | |
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1171 if (G1TraceMarkStackOverflow) { |
342 | 1172 gclog_or_tty->print_cr("\nRemark led to restart for overflow."); |
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1173 } |
342 | 1174 } else { |
2149 | 1175 SATBMarkQueueSet& satb_mq_set = JavaThread::satb_mark_queue_set(); |
342 | 1176 // We're done with marking. |
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1177 // This is the end of the marking cycle, we're expected all |
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1178 // threads to have SATB queues with active set to true. |
2149 | 1179 satb_mq_set.set_active_all_threads(false, /* new active value */ |
1180 true /* expected_active */); | |
811 | 1181 |
1182 if (VerifyDuringGC) { | |
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1183 HandleMark hm; // handle scope |
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1184 gclog_or_tty->print(" VerifyDuringGC:(after)"); |
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1185 Universe::heap()->prepare_for_verify(); |
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1186 Universe::verify(/* allow dirty */ true, |
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1187 /* silent */ false, |
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1188 /* option */ VerifyOption_G1UseNextMarking); |
811 | 1189 } |
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1190 assert(!restart_for_overflow(), "sanity"); |
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1191 } |
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1192 |
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1193 // Reset the marking state if marking completed |
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1194 if (!restart_for_overflow()) { |
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1195 set_non_marking_state(); |
342 | 1196 } |
1197 | |
1198 #if VERIFY_OBJS_PROCESSED | |
1199 _scan_obj_cl.objs_processed = 0; | |
1200 ThreadLocalObjQueue::objs_enqueued = 0; | |
1201 #endif | |
1202 | |
1203 // Statistics | |
1204 double now = os::elapsedTime(); | |
1205 _remark_mark_times.add((mark_work_end - start) * 1000.0); | |
1206 _remark_weak_ref_times.add((now - mark_work_end) * 1000.0); | |
1207 _remark_times.add((now - start) * 1000.0); | |
1208 | |
1209 g1p->record_concurrent_mark_remark_end(); | |
1210 } | |
1211 | |
1212 #define CARD_BM_TEST_MODE 0 | |
1213 | |
1214 class CalcLiveObjectsClosure: public HeapRegionClosure { | |
1215 | |
1216 CMBitMapRO* _bm; | |
1217 ConcurrentMark* _cm; | |
1218 bool _changed; | |
1219 bool _yield; | |
1220 size_t _words_done; | |
1221 size_t _tot_live; | |
1222 size_t _tot_used; | |
1223 size_t _regions_done; | |
1224 double _start_vtime_sec; | |
1225 | |
1226 BitMap* _region_bm; | |
1227 BitMap* _card_bm; | |
1228 intptr_t _bottom_card_num; | |
1229 bool _final; | |
1230 | |
1231 void mark_card_num_range(intptr_t start_card_num, intptr_t last_card_num) { | |
1232 for (intptr_t i = start_card_num; i <= last_card_num; i++) { | |
1233 #if CARD_BM_TEST_MODE | |
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1234 guarantee(_card_bm->at(i - _bottom_card_num), "Should already be set."); |
342 | 1235 #else |
1236 _card_bm->par_at_put(i - _bottom_card_num, 1); | |
1237 #endif | |
1238 } | |
1239 } | |
1240 | |
1241 public: | |
1242 CalcLiveObjectsClosure(bool final, | |
1243 CMBitMapRO *bm, ConcurrentMark *cm, | |
936 | 1244 BitMap* region_bm, BitMap* card_bm) : |
342 | 1245 _bm(bm), _cm(cm), _changed(false), _yield(true), |
1246 _words_done(0), _tot_live(0), _tot_used(0), | |
936 | 1247 _region_bm(region_bm), _card_bm(card_bm),_final(final), |
342 | 1248 _regions_done(0), _start_vtime_sec(0.0) |
1249 { | |
1250 _bottom_card_num = | |
1251 intptr_t(uintptr_t(G1CollectedHeap::heap()->reserved_region().start()) >> | |
1252 CardTableModRefBS::card_shift); | |
1253 } | |
1254 | |
829 | 1255 // It takes a region that's not empty (i.e., it has at least one |
1256 // live object in it and sets its corresponding bit on the region | |
1257 // bitmap to 1. If the region is "starts humongous" it will also set | |
1258 // to 1 the bits on the region bitmap that correspond to its | |
1259 // associated "continues humongous" regions. | |
1260 void set_bit_for_region(HeapRegion* hr) { | |
1261 assert(!hr->continuesHumongous(), "should have filtered those out"); | |
1262 | |
1263 size_t index = hr->hrs_index(); | |
1264 if (!hr->startsHumongous()) { | |
1265 // Normal (non-humongous) case: just set the bit. | |
1266 _region_bm->par_at_put((BitMap::idx_t) index, true); | |
1267 } else { | |
1268 // Starts humongous case: calculate how many regions are part of | |
1269 // this humongous region and then set the bit range. It might | |
1270 // have been a bit more efficient to look at the object that | |
1271 // spans these humongous regions to calculate their number from | |
1272 // the object's size. However, it's a good idea to calculate | |
1273 // this based on the metadata itself, and not the region | |
1274 // contents, so that this code is not aware of what goes into | |
1275 // the humongous regions (in case this changes in the future). | |
1276 G1CollectedHeap* g1h = G1CollectedHeap::heap(); | |
1277 size_t end_index = index + 1; | |
831 | 1278 while (end_index < g1h->n_regions()) { |
1279 HeapRegion* chr = g1h->region_at(end_index); | |
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1280 if (!chr->continuesHumongous()) break; |
829 | 1281 end_index += 1; |
1282 } | |
1283 _region_bm->par_at_put_range((BitMap::idx_t) index, | |
1284 (BitMap::idx_t) end_index, true); | |
1285 } | |
1286 } | |
1287 | |
342 | 1288 bool doHeapRegion(HeapRegion* hr) { |
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1289 if (!_final && _regions_done == 0) { |
342 | 1290 _start_vtime_sec = os::elapsedVTime(); |
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1291 } |
342 | 1292 |
639 | 1293 if (hr->continuesHumongous()) { |
829 | 1294 // We will ignore these here and process them when their |
1295 // associated "starts humongous" region is processed (see | |
1296 // set_bit_for_heap_region()). Note that we cannot rely on their | |
1297 // associated "starts humongous" region to have their bit set to | |
1298 // 1 since, due to the region chunking in the parallel region | |
1299 // iteration, a "continues humongous" region might be visited | |
1300 // before its associated "starts humongous". | |
639 | 1301 return false; |
1302 } | |
342 | 1303 |
1304 HeapWord* nextTop = hr->next_top_at_mark_start(); | |
1305 HeapWord* start = hr->top_at_conc_mark_count(); | |
1306 assert(hr->bottom() <= start && start <= hr->end() && | |
1307 hr->bottom() <= nextTop && nextTop <= hr->end() && | |
1308 start <= nextTop, | |
1309 "Preconditions."); | |
1310 // Otherwise, record the number of word's we'll examine. | |
1311 size_t words_done = (nextTop - start); | |
1312 // Find the first marked object at or after "start". | |
1313 start = _bm->getNextMarkedWordAddress(start, nextTop); | |
1314 size_t marked_bytes = 0; | |
1315 | |
1316 // Below, the term "card num" means the result of shifting an address | |
1317 // by the card shift -- address 0 corresponds to card number 0. One | |
1318 // must subtract the card num of the bottom of the heap to obtain a | |
1319 // card table index. | |
1320 // The first card num of the sequence of live cards currently being | |
1321 // constructed. -1 ==> no sequence. | |
1322 intptr_t start_card_num = -1; | |
1323 // The last card num of the sequence of live cards currently being | |
1324 // constructed. -1 ==> no sequence. | |
1325 intptr_t last_card_num = -1; | |
1326 | |
1327 while (start < nextTop) { | |
1328 if (_yield && _cm->do_yield_check()) { | |
1329 // We yielded. It might be for a full collection, in which case | |
1330 // all bets are off; terminate the traversal. | |
1331 if (_cm->has_aborted()) { | |
1332 _changed = false; | |
1333 return true; | |
1334 } else { | |
1335 // Otherwise, it might be a collection pause, and the region | |
1336 // we're looking at might be in the collection set. We'll | |
1337 // abandon this region. | |
1338 return false; | |
1339 } | |
1340 } | |
1341 oop obj = oop(start); | |
1342 int obj_sz = obj->size(); | |
1343 // The card num of the start of the current object. | |
1344 intptr_t obj_card_num = | |
1345 intptr_t(uintptr_t(start) >> CardTableModRefBS::card_shift); | |
1346 | |
1347 HeapWord* obj_last = start + obj_sz - 1; | |
1348 intptr_t obj_last_card_num = | |
1349 intptr_t(uintptr_t(obj_last) >> CardTableModRefBS::card_shift); | |
1350 | |
1351 if (obj_card_num != last_card_num) { | |
1352 if (start_card_num == -1) { | |
1353 assert(last_card_num == -1, "Both or neither."); | |
1354 start_card_num = obj_card_num; | |
1355 } else { | |
1356 assert(last_card_num != -1, "Both or neither."); | |
1357 assert(obj_card_num >= last_card_num, "Inv"); | |
1358 if ((obj_card_num - last_card_num) > 1) { | |
1359 // Mark the last run, and start a new one. | |
1360 mark_card_num_range(start_card_num, last_card_num); | |
1361 start_card_num = obj_card_num; | |
1362 } | |
1363 } | |
1364 #if CARD_BM_TEST_MODE | |
1365 /* | |
1366 gclog_or_tty->print_cr("Setting bits from %d/%d.", | |
1367 obj_card_num - _bottom_card_num, | |
1368 obj_last_card_num - _bottom_card_num); | |
1369 */ | |
1370 for (intptr_t j = obj_card_num; j <= obj_last_card_num; j++) { | |
1371 _card_bm->par_at_put(j - _bottom_card_num, 1); | |
1372 } | |
1373 #endif | |
1374 } | |
1375 // In any case, we set the last card num. | |
1376 last_card_num = obj_last_card_num; | |
1377 | |
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1378 marked_bytes += (size_t)obj_sz * HeapWordSize; |
342 | 1379 // Find the next marked object after this one. |
1380 start = _bm->getNextMarkedWordAddress(start + 1, nextTop); | |
1381 _changed = true; | |
1382 } | |
1383 // Handle the last range, if any. | |
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1384 if (start_card_num != -1) { |
342 | 1385 mark_card_num_range(start_card_num, last_card_num); |
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1386 } |
342 | 1387 if (_final) { |
1388 // Mark the allocated-since-marking portion... | |
1389 HeapWord* tp = hr->top(); | |
1390 if (nextTop < tp) { | |
1391 start_card_num = | |
1392 intptr_t(uintptr_t(nextTop) >> CardTableModRefBS::card_shift); | |
1393 last_card_num = | |
1394 intptr_t(uintptr_t(tp) >> CardTableModRefBS::card_shift); | |
1395 mark_card_num_range(start_card_num, last_card_num); | |
1396 // This definitely means the region has live objects. | |
829 | 1397 set_bit_for_region(hr); |
342 | 1398 } |
1399 } | |
1400 | |
1401 hr->add_to_marked_bytes(marked_bytes); | |
1402 // Update the live region bitmap. | |
1403 if (marked_bytes > 0) { | |
829 | 1404 set_bit_for_region(hr); |
342 | 1405 } |
1406 hr->set_top_at_conc_mark_count(nextTop); | |
1407 _tot_live += hr->next_live_bytes(); | |
1408 _tot_used += hr->used(); | |
1409 _words_done = words_done; | |
1410 | |
1411 if (!_final) { | |
1412 ++_regions_done; | |
1413 if (_regions_done % 10 == 0) { | |
1414 double end_vtime_sec = os::elapsedVTime(); | |
1415 double elapsed_vtime_sec = end_vtime_sec - _start_vtime_sec; | |
1416 if (elapsed_vtime_sec > (10.0 / 1000.0)) { | |
1417 jlong sleep_time_ms = | |
1418 (jlong) (elapsed_vtime_sec * _cm->cleanup_sleep_factor() * 1000.0); | |
1419 os::sleep(Thread::current(), sleep_time_ms, false); | |
1420 _start_vtime_sec = end_vtime_sec; | |
1421 } | |
1422 } | |
1423 } | |
1424 | |
1425 return false; | |
1426 } | |
1427 | |
1428 bool changed() { return _changed; } | |
1429 void reset() { _changed = false; _words_done = 0; } | |
1430 void no_yield() { _yield = false; } | |
1431 size_t words_done() { return _words_done; } | |
1432 size_t tot_live() { return _tot_live; } | |
1433 size_t tot_used() { return _tot_used; } | |
1434 }; | |
1435 | |
1436 | |
1437 void ConcurrentMark::calcDesiredRegions() { | |
1438 _region_bm.clear(); | |
1439 _card_bm.clear(); | |
1440 CalcLiveObjectsClosure calccl(false /*final*/, | |
1441 nextMarkBitMap(), this, | |
936 | 1442 &_region_bm, &_card_bm); |
342 | 1443 G1CollectedHeap *g1h = G1CollectedHeap::heap(); |
1444 g1h->heap_region_iterate(&calccl); | |
1445 | |
1446 do { | |
1447 calccl.reset(); | |
1448 g1h->heap_region_iterate(&calccl); | |
1449 } while (calccl.changed()); | |
1450 } | |
1451 | |
1452 class G1ParFinalCountTask: public AbstractGangTask { | |
1453 protected: | |
1454 G1CollectedHeap* _g1h; | |
1455 CMBitMap* _bm; | |
1456 size_t _n_workers; | |
1457 size_t *_live_bytes; | |
1458 size_t *_used_bytes; | |
1459 BitMap* _region_bm; | |
1460 BitMap* _card_bm; | |
1461 public: | |
1462 G1ParFinalCountTask(G1CollectedHeap* g1h, CMBitMap* bm, | |
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1463 BitMap* region_bm, BitMap* card_bm) |
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1464 : AbstractGangTask("G1 final counting"), _g1h(g1h), |
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1465 _bm(bm), _region_bm(region_bm), _card_bm(card_bm) { |
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1466 if (ParallelGCThreads > 0) { |
342 | 1467 _n_workers = _g1h->workers()->total_workers(); |
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1468 } else { |
342 | 1469 _n_workers = 1; |
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1470 } |
342 | 1471 _live_bytes = NEW_C_HEAP_ARRAY(size_t, _n_workers); |
1472 _used_bytes = NEW_C_HEAP_ARRAY(size_t, _n_workers); | |
1473 } | |
1474 | |
1475 ~G1ParFinalCountTask() { | |
1476 FREE_C_HEAP_ARRAY(size_t, _live_bytes); | |
1477 FREE_C_HEAP_ARRAY(size_t, _used_bytes); | |
1478 } | |
1479 | |
1480 void work(int i) { | |
1481 CalcLiveObjectsClosure calccl(true /*final*/, | |
1482 _bm, _g1h->concurrent_mark(), | |
936 | 1483 _region_bm, _card_bm); |
342 | 1484 calccl.no_yield(); |
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1485 if (G1CollectedHeap::use_parallel_gc_threads()) { |
355 | 1486 _g1h->heap_region_par_iterate_chunked(&calccl, i, |
1487 HeapRegion::FinalCountClaimValue); | |
342 | 1488 } else { |
1489 _g1h->heap_region_iterate(&calccl); | |
1490 } | |
1491 assert(calccl.complete(), "Shouldn't have yielded!"); | |
1492 | |
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1493 assert((size_t) i < _n_workers, "invariant"); |
342 | 1494 _live_bytes[i] = calccl.tot_live(); |
1495 _used_bytes[i] = calccl.tot_used(); | |
1496 } | |
1497 size_t live_bytes() { | |
1498 size_t live_bytes = 0; | |
1499 for (size_t i = 0; i < _n_workers; ++i) | |
1500 live_bytes += _live_bytes[i]; | |
1501 return live_bytes; | |
1502 } | |
1503 size_t used_bytes() { | |
1504 size_t used_bytes = 0; | |
1505 for (size_t i = 0; i < _n_workers; ++i) | |
1506 used_bytes += _used_bytes[i]; | |
1507 return used_bytes; | |
1508 } | |
1509 }; | |
1510 | |
1511 class G1ParNoteEndTask; | |
1512 | |
1513 class G1NoteEndOfConcMarkClosure : public HeapRegionClosure { | |
1514 G1CollectedHeap* _g1; | |
1515 int _worker_num; | |
1516 size_t _max_live_bytes; | |
1517 size_t _regions_claimed; | |
1518 size_t _freed_bytes; | |
2173 | 1519 FreeRegionList* _local_cleanup_list; |
1520 HumongousRegionSet* _humongous_proxy_set; | |
1521 HRRSCleanupTask* _hrrs_cleanup_task; | |
342 | 1522 double _claimed_region_time; |
1523 double _max_region_time; | |
1524 | |
1525 public: | |
1526 G1NoteEndOfConcMarkClosure(G1CollectedHeap* g1, | |
2173 | 1527 int worker_num, |
1528 FreeRegionList* local_cleanup_list, | |
1529 HumongousRegionSet* humongous_proxy_set, | |
1530 HRRSCleanupTask* hrrs_cleanup_task); | |
342 | 1531 size_t freed_bytes() { return _freed_bytes; } |
1532 | |
1533 bool doHeapRegion(HeapRegion *r); | |
1534 | |
1535 size_t max_live_bytes() { return _max_live_bytes; } | |
1536 size_t regions_claimed() { return _regions_claimed; } | |
1537 double claimed_region_time_sec() { return _claimed_region_time; } | |
1538 double max_region_time_sec() { return _max_region_time; } | |
1539 }; | |
1540 | |
1541 class G1ParNoteEndTask: public AbstractGangTask { | |
1542 friend class G1NoteEndOfConcMarkClosure; | |
2152 | 1543 |
342 | 1544 protected: |
1545 G1CollectedHeap* _g1h; | |
1546 size_t _max_live_bytes; | |
1547 size_t _freed_bytes; | |
2152 | 1548 FreeRegionList* _cleanup_list; |
1549 | |
342 | 1550 public: |
1551 G1ParNoteEndTask(G1CollectedHeap* g1h, | |
2152 | 1552 FreeRegionList* cleanup_list) : |
342 | 1553 AbstractGangTask("G1 note end"), _g1h(g1h), |
2152 | 1554 _max_live_bytes(0), _freed_bytes(0), _cleanup_list(cleanup_list) { } |
342 | 1555 |
1556 void work(int i) { | |
1557 double start = os::elapsedTime(); | |
2173 | 1558 FreeRegionList local_cleanup_list("Local Cleanup List"); |
1559 HumongousRegionSet humongous_proxy_set("Local Cleanup Humongous Proxy Set"); | |
1560 HRRSCleanupTask hrrs_cleanup_task; | |
1561 G1NoteEndOfConcMarkClosure g1_note_end(_g1h, i, &local_cleanup_list, | |
1562 &humongous_proxy_set, | |
1563 &hrrs_cleanup_task); | |
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1564 if (G1CollectedHeap::use_parallel_gc_threads()) { |
355 | 1565 _g1h->heap_region_par_iterate_chunked(&g1_note_end, i, |
1566 HeapRegion::NoteEndClaimValue); | |
342 | 1567 } else { |
1568 _g1h->heap_region_iterate(&g1_note_end); | |
1569 } | |
1570 assert(g1_note_end.complete(), "Shouldn't have yielded!"); | |
1571 | |
2152 | 1572 // Now update the lists |
1573 _g1h->update_sets_after_freeing_regions(g1_note_end.freed_bytes(), | |
1574 NULL /* free_list */, | |
2173 | 1575 &humongous_proxy_set, |
2152 | 1576 true /* par */); |
342 | 1577 { |
1578 MutexLockerEx x(ParGCRareEvent_lock, Mutex::_no_safepoint_check_flag); | |
1579 _max_live_bytes += g1_note_end.max_live_bytes(); | |
1580 _freed_bytes += g1_note_end.freed_bytes(); | |
2152 | 1581 |
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1582 // If we iterate over the global cleanup list at the end of |
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1583 // cleanup to do this printing we will not guarantee to only |
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1584 // generate output for the newly-reclaimed regions (the list |
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1585 // might not be empty at the beginning of cleanup; we might |
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1586 // still be working on its previous contents). So we do the |
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1587 // printing here, before we append the new regions to the global |
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1588 // cleanup list. |
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1589 |
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1590 G1HRPrinter* hr_printer = _g1h->hr_printer(); |
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1591 if (hr_printer->is_active()) { |
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1592 HeapRegionLinkedListIterator iter(&local_cleanup_list); |
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1593 while (iter.more_available()) { |
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1594 HeapRegion* hr = iter.get_next(); |
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1595 hr_printer->cleanup(hr); |
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1596 } |
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1597 } |
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1598 |
2173 | 1599 _cleanup_list->add_as_tail(&local_cleanup_list); |
1600 assert(local_cleanup_list.is_empty(), "post-condition"); | |
1601 | |
1602 HeapRegionRemSet::finish_cleanup_task(&hrrs_cleanup_task); | |
342 | 1603 } |
1604 double end = os::elapsedTime(); | |
1605 if (G1PrintParCleanupStats) { | |
1606 gclog_or_tty->print(" Worker thread %d [%8.3f..%8.3f = %8.3f ms] " | |
1607 "claimed %d regions (tot = %8.3f ms, max = %8.3f ms).\n", | |
1608 i, start, end, (end-start)*1000.0, | |
1609 g1_note_end.regions_claimed(), | |
1610 g1_note_end.claimed_region_time_sec()*1000.0, | |
1611 g1_note_end.max_region_time_sec()*1000.0); | |
1612 } | |
1613 } | |
1614 size_t max_live_bytes() { return _max_live_bytes; } | |
1615 size_t freed_bytes() { return _freed_bytes; } | |
1616 }; | |
1617 | |
1618 class G1ParScrubRemSetTask: public AbstractGangTask { | |
1619 protected: | |
1620 G1RemSet* _g1rs; | |
1621 BitMap* _region_bm; | |
1622 BitMap* _card_bm; | |
1623 public: | |
1624 G1ParScrubRemSetTask(G1CollectedHeap* g1h, | |
1625 BitMap* region_bm, BitMap* card_bm) : | |
1626 AbstractGangTask("G1 ScrubRS"), _g1rs(g1h->g1_rem_set()), | |
1627 _region_bm(region_bm), _card_bm(card_bm) | |
1628 {} | |
1629 | |
1630 void work(int i) { | |
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1631 if (G1CollectedHeap::use_parallel_gc_threads()) { |
355 | 1632 _g1rs->scrub_par(_region_bm, _card_bm, i, |
1633 HeapRegion::ScrubRemSetClaimValue); | |
342 | 1634 } else { |
1635 _g1rs->scrub(_region_bm, _card_bm); | |
1636 } | |
1637 } | |
1638 | |
1639 }; | |
1640 | |
1641 G1NoteEndOfConcMarkClosure:: | |
1642 G1NoteEndOfConcMarkClosure(G1CollectedHeap* g1, | |
2173 | 1643 int worker_num, |
1644 FreeRegionList* local_cleanup_list, | |
1645 HumongousRegionSet* humongous_proxy_set, | |
1646 HRRSCleanupTask* hrrs_cleanup_task) | |
342 | 1647 : _g1(g1), _worker_num(worker_num), |
1648 _max_live_bytes(0), _regions_claimed(0), | |
2152 | 1649 _freed_bytes(0), |
342 | 1650 _claimed_region_time(0.0), _max_region_time(0.0), |
2173 | 1651 _local_cleanup_list(local_cleanup_list), |
1652 _humongous_proxy_set(humongous_proxy_set), | |
1653 _hrrs_cleanup_task(hrrs_cleanup_task) { } | |
2152 | 1654 |
1655 bool G1NoteEndOfConcMarkClosure::doHeapRegion(HeapRegion *hr) { | |
342 | 1656 // We use a claim value of zero here because all regions |
1657 // were claimed with value 1 in the FinalCount task. | |
2152 | 1658 hr->reset_gc_time_stamp(); |
1659 if (!hr->continuesHumongous()) { | |
342 | 1660 double start = os::elapsedTime(); |
1661 _regions_claimed++; | |
2152 | 1662 hr->note_end_of_marking(); |
1663 _max_live_bytes += hr->max_live_bytes(); | |
2173 | 1664 _g1->free_region_if_empty(hr, |
1665 &_freed_bytes, | |
1666 _local_cleanup_list, | |
1667 _humongous_proxy_set, | |
1668 _hrrs_cleanup_task, | |
1669 true /* par */); | |
342 | 1670 double region_time = (os::elapsedTime() - start); |
1671 _claimed_region_time += region_time; | |
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1672 if (region_time > _max_region_time) { |
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1673 _max_region_time = region_time; |
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1674 } |
342 | 1675 } |
1676 return false; | |
1677 } | |
1678 | |
1679 void ConcurrentMark::cleanup() { | |
1680 // world is stopped at this checkpoint | |
1681 assert(SafepointSynchronize::is_at_safepoint(), | |
1682 "world should be stopped"); | |
1683 G1CollectedHeap* g1h = G1CollectedHeap::heap(); | |
1684 | |
1685 // If a full collection has happened, we shouldn't do this. | |
1686 if (has_aborted()) { | |
1687 g1h->set_marking_complete(); // So bitmap clearing isn't confused | |
1688 return; | |
1689 } | |
1690 | |
2152 | 1691 g1h->verify_region_sets_optional(); |
1692 | |
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1693 if (VerifyDuringGC) { |
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1694 HandleMark hm; // handle scope |
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1695 gclog_or_tty->print(" VerifyDuringGC:(before)"); |
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1696 Universe::heap()->prepare_for_verify(); |
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1697 Universe::verify(/* allow dirty */ true, |
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1698 /* silent */ false, |
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1699 /* option */ VerifyOption_G1UsePrevMarking); |
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1700 } |
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1701 |
342 | 1702 G1CollectorPolicy* g1p = G1CollectedHeap::heap()->g1_policy(); |
1703 g1p->record_concurrent_mark_cleanup_start(); | |
1704 | |
1705 double start = os::elapsedTime(); | |
1706 | |
2173 | 1707 HeapRegionRemSet::reset_for_cleanup_tasks(); |
1708 | |
342 | 1709 // Do counting once more with the world stopped for good measure. |
1710 G1ParFinalCountTask g1_par_count_task(g1h, nextMarkBitMap(), | |
1711 &_region_bm, &_card_bm); | |
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1712 if (G1CollectedHeap::use_parallel_gc_threads()) { |
355 | 1713 assert(g1h->check_heap_region_claim_values( |
1714 HeapRegion::InitialClaimValue), | |
1715 "sanity check"); | |
1716 | |
342 | 1717 int n_workers = g1h->workers()->total_workers(); |
1718 g1h->set_par_threads(n_workers); | |
1719 g1h->workers()->run_task(&g1_par_count_task); | |
1720 g1h->set_par_threads(0); | |
355 | 1721 |
1722 assert(g1h->check_heap_region_claim_values( | |
1723 HeapRegion::FinalCountClaimValue), | |
1724 "sanity check"); | |
342 | 1725 } else { |
1726 g1_par_count_task.work(0); | |
1727 } | |
1728 | |
1729 size_t known_garbage_bytes = | |
1730 g1_par_count_task.used_bytes() - g1_par_count_task.live_bytes(); | |
1731 g1p->set_known_garbage_bytes(known_garbage_bytes); | |
1732 | |
1733 size_t start_used_bytes = g1h->used(); | |
1734 _at_least_one_mark_complete = true; | |
1735 g1h->set_marking_complete(); | |
1736 | |
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1737 ergo_verbose4(ErgoConcCycles, |
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1738 "finish cleanup", |
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1739 ergo_format_byte("occupancy") |
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1740 ergo_format_byte("capacity") |
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1741 ergo_format_byte_perc("known garbage"), |
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1742 start_used_bytes, g1h->capacity(), |
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1743 known_garbage_bytes, |
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1744 ((double) known_garbage_bytes / (double) g1h->capacity()) * 100.0); |
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1745 |
342 | 1746 double count_end = os::elapsedTime(); |
1747 double this_final_counting_time = (count_end - start); | |
1748 if (G1PrintParCleanupStats) { | |
1749 gclog_or_tty->print_cr("Cleanup:"); | |
1750 gclog_or_tty->print_cr(" Finalize counting: %8.3f ms", | |
1751 this_final_counting_time*1000.0); | |
1752 } | |
1753 _total_counting_time += this_final_counting_time; | |
1754 | |
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1755 if (G1PrintRegionLivenessInfo) { |
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1756 G1PrintRegionLivenessInfoClosure cl(gclog_or_tty, "Post-Marking"); |
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1757 _g1h->heap_region_iterate(&cl); |
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1758 } |
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1759 |
342 | 1760 // Install newly created mark bitMap as "prev". |
1761 swapMarkBitMaps(); | |
1762 | |
1763 g1h->reset_gc_time_stamp(); | |
1764 | |
1765 // Note end of marking in all heap regions. | |
1766 double note_end_start = os::elapsedTime(); | |
2152 | 1767 G1ParNoteEndTask g1_par_note_end_task(g1h, &_cleanup_list); |
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1768 if (G1CollectedHeap::use_parallel_gc_threads()) { |
342 | 1769 int n_workers = g1h->workers()->total_workers(); |
1770 g1h->set_par_threads(n_workers); | |
1771 g1h->workers()->run_task(&g1_par_note_end_task); | |
1772 g1h->set_par_threads(0); | |
355 | 1773 |
1774 assert(g1h->check_heap_region_claim_values(HeapRegion::NoteEndClaimValue), | |
1775 "sanity check"); | |
342 | 1776 } else { |
1777 g1_par_note_end_task.work(0); | |
1778 } | |
2152 | 1779 |
1780 if (!cleanup_list_is_empty()) { | |
1781 // The cleanup list is not empty, so we'll have to process it | |
1782 // concurrently. Notify anyone else that might be wanting free | |
1783 // regions that there will be more free regions coming soon. | |
1784 g1h->set_free_regions_coming(); | |
1785 } | |
342 | 1786 double note_end_end = os::elapsedTime(); |
1787 if (G1PrintParCleanupStats) { | |
1788 gclog_or_tty->print_cr(" note end of marking: %8.3f ms.", | |
1789 (note_end_end - note_end_start)*1000.0); | |
1790 } | |
1791 | |
355 | 1792 |
342 | 1793 // call below, since it affects the metric by which we sort the heap |
1794 // regions. | |
1795 if (G1ScrubRemSets) { | |
1796 double rs_scrub_start = os::elapsedTime(); | |
1797 G1ParScrubRemSetTask g1_par_scrub_rs_task(g1h, &_region_bm, &_card_bm); | |
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1798 if (G1CollectedHeap::use_parallel_gc_threads()) { |
342 | 1799 int n_workers = g1h->workers()->total_workers(); |
1800 g1h->set_par_threads(n_workers); | |
1801 g1h->workers()->run_task(&g1_par_scrub_rs_task); | |
1802 g1h->set_par_threads(0); | |
355 | 1803 |
1804 assert(g1h->check_heap_region_claim_values( | |
1805 HeapRegion::ScrubRemSetClaimValue), | |
1806 "sanity check"); | |
342 | 1807 } else { |
1808 g1_par_scrub_rs_task.work(0); | |
1809 } | |
1810 | |
1811 double rs_scrub_end = os::elapsedTime(); | |
1812 double this_rs_scrub_time = (rs_scrub_end - rs_scrub_start); | |
1813 _total_rs_scrub_time += this_rs_scrub_time; | |
1814 } | |
1815 | |
1816 // this will also free any regions totally full of garbage objects, | |
1817 // and sort the regions. | |
1818 g1h->g1_policy()->record_concurrent_mark_cleanup_end( | |
1819 g1_par_note_end_task.freed_bytes(), | |
1820 g1_par_note_end_task.max_live_bytes()); | |
1821 | |
1822 // Statistics. | |
1823 double end = os::elapsedTime(); | |
1824 _cleanup_times.add((end - start) * 1000.0); | |
1825 | |
1826 // G1CollectedHeap::heap()->print(); | |
1827 // gclog_or_tty->print_cr("HEAP GC TIME STAMP : %d", | |
1828 // G1CollectedHeap::heap()->get_gc_time_stamp()); | |
1829 | |
1830 if (PrintGC || PrintGCDetails) { | |
1831 g1h->print_size_transition(gclog_or_tty, | |
1832 start_used_bytes, | |
1833 g1h->used(), | |
1834 g1h->capacity()); | |
1835 } | |
1836 | |
1837 size_t cleaned_up_bytes = start_used_bytes - g1h->used(); | |
1838 g1p->decrease_known_garbage_bytes(cleaned_up_bytes); | |
1839 | |
1840 // We need to make this be a "collection" so any collection pause that | |
1841 // races with it goes around and waits for completeCleanup to finish. | |
1842 g1h->increment_total_collections(); | |
1843 | |
751 | 1844 if (VerifyDuringGC) { |
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1845 HandleMark hm; // handle scope |
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1846 gclog_or_tty->print(" VerifyDuringGC:(after)"); |
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1847 Universe::heap()->prepare_for_verify(); |
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1848 Universe::verify(/* allow dirty */ true, |
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1849 /* silent */ false, |
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1850 /* option */ VerifyOption_G1UsePrevMarking); |
342 | 1851 } |
2152 | 1852 |
1853 g1h->verify_region_sets_optional(); | |
342 | 1854 } |
1855 | |
1856 void ConcurrentMark::completeCleanup() { | |
1857 if (has_aborted()) return; | |
1858 | |
2152 | 1859 G1CollectedHeap* g1h = G1CollectedHeap::heap(); |
1860 | |
1861 _cleanup_list.verify_optional(); | |
2361 | 1862 FreeRegionList tmp_free_list("Tmp Free List"); |
2152 | 1863 |
1864 if (G1ConcRegionFreeingVerbose) { | |
1865 gclog_or_tty->print_cr("G1ConcRegionFreeing [complete cleanup] : " | |
1866 "cleanup list has "SIZE_FORMAT" entries", | |
1867 _cleanup_list.length()); | |
1868 } | |
1869 | |
1870 // Noone else should be accessing the _cleanup_list at this point, | |
1871 // so it's not necessary to take any locks | |
1872 while (!_cleanup_list.is_empty()) { | |
1873 HeapRegion* hr = _cleanup_list.remove_head(); | |
1874 assert(hr != NULL, "the list was not empty"); | |
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1875 hr->par_clear(); |
2361 | 1876 tmp_free_list.add_as_tail(hr); |
2152 | 1877 |
1878 // Instead of adding one region at a time to the secondary_free_list, | |
1879 // we accumulate them in the local list and move them a few at a | |
1880 // time. This also cuts down on the number of notify_all() calls | |
1881 // we do during this process. We'll also append the local list when | |
1882 // _cleanup_list is empty (which means we just removed the last | |
1883 // region from the _cleanup_list). | |
2361 | 1884 if ((tmp_free_list.length() % G1SecondaryFreeListAppendLength == 0) || |
2152 | 1885 _cleanup_list.is_empty()) { |
1886 if (G1ConcRegionFreeingVerbose) { | |
1887 gclog_or_tty->print_cr("G1ConcRegionFreeing [complete cleanup] : " | |
1888 "appending "SIZE_FORMAT" entries to the " | |
1889 "secondary_free_list, clean list still has " | |
1890 SIZE_FORMAT" entries", | |
2361 | 1891 tmp_free_list.length(), |
2152 | 1892 _cleanup_list.length()); |
342 | 1893 } |
2152 | 1894 |
1895 { | |
1896 MutexLockerEx x(SecondaryFreeList_lock, Mutex::_no_safepoint_check_flag); | |
2361 | 1897 g1h->secondary_free_list_add_as_tail(&tmp_free_list); |
2152 | 1898 SecondaryFreeList_lock->notify_all(); |
1899 } | |
1900 | |
1901 if (G1StressConcRegionFreeing) { | |
1902 for (uintx i = 0; i < G1StressConcRegionFreeingDelayMillis; ++i) { | |
1903 os::sleep(Thread::current(), (jlong) 1, false); | |
1904 } | |
1905 } | |
342 | 1906 } |
1907 } | |
2361 | 1908 assert(tmp_free_list.is_empty(), "post-condition"); |
342 | 1909 } |
1910 | |
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1911 // Support closures for reference procssing in G1 |
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1912 |
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1913 bool G1CMIsAliveClosure::do_object_b(oop obj) { |
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1914 HeapWord* addr = (HeapWord*)obj; |
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1915 return addr != NULL && |
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1916 (!_g1->is_in_g1_reserved(addr) || !_g1->is_obj_ill(obj)); |
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1917 } |
342 | 1918 |
1919 class G1CMKeepAliveClosure: public OopClosure { | |
1920 G1CollectedHeap* _g1; | |
1921 ConcurrentMark* _cm; | |
1922 CMBitMap* _bitMap; | |
1923 public: | |
1924 G1CMKeepAliveClosure(G1CollectedHeap* g1, ConcurrentMark* cm, | |
1925 CMBitMap* bitMap) : | |
1926 _g1(g1), _cm(cm), | |
1927 _bitMap(bitMap) {} | |
1928 | |
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1929 virtual void do_oop(narrowOop* p) { do_oop_work(p); } |
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1930 virtual void do_oop( oop* p) { do_oop_work(p); } |
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1931 |
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1932 template <class T> void do_oop_work(T* p) { |
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1933 oop obj = oopDesc::load_decode_heap_oop(p); |
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1934 HeapWord* addr = (HeapWord*)obj; |
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1935 |
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1936 if (_cm->verbose_high()) { |
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1937 gclog_or_tty->print_cr("\t[0] we're looking at location " |
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1938 "*"PTR_FORMAT" = "PTR_FORMAT, |
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1939 p, (void*) obj); |
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1940 } |
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1941 |
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1942 if (_g1->is_in_g1_reserved(addr) && _g1->is_obj_ill(obj)) { |
342 | 1943 _bitMap->mark(addr); |
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1944 _cm->mark_stack_push(obj); |
342 | 1945 } |
1946 } | |
1947 }; | |
1948 | |
1949 class G1CMDrainMarkingStackClosure: public VoidClosure { | |
1950 CMMarkStack* _markStack; | |
1951 CMBitMap* _bitMap; | |
1952 G1CMKeepAliveClosure* _oopClosure; | |
1953 public: | |
1954 G1CMDrainMarkingStackClosure(CMBitMap* bitMap, CMMarkStack* markStack, | |
1955 G1CMKeepAliveClosure* oopClosure) : | |
1956 _bitMap(bitMap), | |
1957 _markStack(markStack), | |
1958 _oopClosure(oopClosure) | |
1959 {} | |
1960 | |
1961 void do_void() { | |
1962 _markStack->drain((OopClosure*)_oopClosure, _bitMap, false); | |
1963 } | |
1964 }; | |
1965 | |
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1966 // 'Keep Alive' closure used by parallel reference processing. |
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1967 // An instance of this closure is used in the parallel reference processing |
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1968 // code rather than an instance of G1CMKeepAliveClosure. We could have used |
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1969 // the G1CMKeepAliveClosure as it is MT-safe. Also reference objects are |
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1970 // placed on to discovered ref lists once so we can mark and push with no |
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1971 // need to check whether the object has already been marked. Using the |
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1972 // G1CMKeepAliveClosure would mean, however, having all the worker threads |
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1973 // operating on the global mark stack. This means that an individual |
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1974 // worker would be doing lock-free pushes while it processes its own |
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1975 // discovered ref list followed by drain call. If the discovered ref lists |
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1976 // are unbalanced then this could cause interference with the other |
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1977 // workers. Using a CMTask (and its embedded local data structures) |
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1978 // avoids that potential interference. |
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1979 class G1CMParKeepAliveAndDrainClosure: public OopClosure { |
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1980 ConcurrentMark* _cm; |
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1981 CMTask* _task; |
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1982 CMBitMap* _bitMap; |
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1983 int _ref_counter_limit; |
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1984 int _ref_counter; |
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1985 public: |
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1986 G1CMParKeepAliveAndDrainClosure(ConcurrentMark* cm, |
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1987 CMTask* task, |
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1988 CMBitMap* bitMap) : |
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1989 _cm(cm), _task(task), _bitMap(bitMap), |
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1990 _ref_counter_limit(G1RefProcDrainInterval) |
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1991 { |
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1992 assert(_ref_counter_limit > 0, "sanity"); |
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1993 _ref_counter = _ref_counter_limit; |
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1994 } |
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1995 |
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1996 virtual void do_oop(narrowOop* p) { do_oop_work(p); } |
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1997 virtual void do_oop( oop* p) { do_oop_work(p); } |
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1998 |
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1999 template <class T> void do_oop_work(T* p) { |
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2000 if (!_cm->has_overflown()) { |
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2001 oop obj = oopDesc::load_decode_heap_oop(p); |
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2002 if (_cm->verbose_high()) { |
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2003 gclog_or_tty->print_cr("\t[%d] we're looking at location " |
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2004 "*"PTR_FORMAT" = "PTR_FORMAT, |
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2005 _task->task_id(), p, (void*) obj); |
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2006 } |
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2007 |
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2008 _task->deal_with_reference(obj); |
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2009 _ref_counter--; |
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2010 |
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2011 if (_ref_counter == 0) { |
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2012 // We have dealt with _ref_counter_limit references, pushing them and objects |
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2013 // reachable from them on to the local stack (and possibly the global stack). |
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2014 // Call do_marking_step() to process these entries. We call the routine in a |
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2015 // loop, which we'll exit if there's nothing more to do (i.e. we're done |
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2016 // with the entries that we've pushed as a result of the deal_with_reference |
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2017 // calls above) or we overflow. |
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2018 // Note: CMTask::do_marking_step() can set the CMTask::has_aborted() flag |
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2019 // while there may still be some work to do. (See the comment at the |
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2020 // beginning of CMTask::do_marking_step() for those conditions - one of which |
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2021 // is reaching the specified time target.) It is only when |
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2022 // CMTask::do_marking_step() returns without setting the has_aborted() flag |
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2023 // that the marking has completed. |
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2024 do { |
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2025 double mark_step_duration_ms = G1ConcMarkStepDurationMillis; |
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2026 _task->do_marking_step(mark_step_duration_ms, |
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2027 false /* do_stealing */, |
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2028 false /* do_termination */); |
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2029 } while (_task->has_aborted() && !_cm->has_overflown()); |
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2030 _ref_counter = _ref_counter_limit; |
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2031 } |
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2032 } else { |
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2033 if (_cm->verbose_high()) { |
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2034 gclog_or_tty->print_cr("\t[%d] CM Overflow", _task->task_id()); |
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2035 } |
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2036 } |
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2037 } |
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2038 }; |
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2039 |
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2040 class G1CMParDrainMarkingStackClosure: public VoidClosure { |
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2041 ConcurrentMark* _cm; |
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2042 CMTask* _task; |
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2043 public: |
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2044 G1CMParDrainMarkingStackClosure(ConcurrentMark* cm, CMTask* task) : |
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2045 _cm(cm), _task(task) |
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2046 {} |
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2047 |
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2048 void do_void() { |
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2049 do { |
3776
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2050 if (_cm->verbose_high()) { |
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2051 gclog_or_tty->print_cr("\t[%d] Drain: Calling do marking_step", |
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2052 _task->task_id()); |
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2053 } |
2174
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2054 |
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2055 // We call CMTask::do_marking_step() to completely drain the local and |
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2056 // global marking stacks. The routine is called in a loop, which we'll |
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2057 // exit if there's nothing more to do (i.e. we'completely drained the |
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2058 // entries that were pushed as a result of applying the |
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2059 // G1CMParKeepAliveAndDrainClosure to the entries on the discovered ref |
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2060 // lists above) or we overflow the global marking stack. |
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2061 // Note: CMTask::do_marking_step() can set the CMTask::has_aborted() flag |
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2062 // while there may still be some work to do. (See the comment at the |
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2063 // beginning of CMTask::do_marking_step() for those conditions - one of which |
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2064 // is reaching the specified time target.) It is only when |
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2065 // CMTask::do_marking_step() returns without setting the has_aborted() flag |
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2066 // that the marking has completed. |
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2067 |
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2068 _task->do_marking_step(1000000000.0 /* something very large */, |
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2069 true /* do_stealing */, |
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2070 true /* do_termination */); |
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2071 } while (_task->has_aborted() && !_cm->has_overflown()); |
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2072 } |
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2073 }; |
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2074 |
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2075 // Implementation of AbstractRefProcTaskExecutor for G1 |
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2076 class G1RefProcTaskExecutor: public AbstractRefProcTaskExecutor { |
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2077 private: |
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2078 G1CollectedHeap* _g1h; |
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2079 ConcurrentMark* _cm; |
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2080 CMBitMap* _bitmap; |
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2081 WorkGang* _workers; |
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2082 int _active_workers; |
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2083 |
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2084 public: |
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2085 G1RefProcTaskExecutor(G1CollectedHeap* g1h, |
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2086 ConcurrentMark* cm, |
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2087 CMBitMap* bitmap, |
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2088 WorkGang* workers, |
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2089 int n_workers) : |
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2090 _g1h(g1h), _cm(cm), _bitmap(bitmap), |
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2091 _workers(workers), _active_workers(n_workers) |
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2092 { } |
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2093 |
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2094 // Executes the given task using concurrent marking worker threads. |
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2095 virtual void execute(ProcessTask& task); |
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2096 virtual void execute(EnqueueTask& task); |
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2097 }; |
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2098 |
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2099 class G1RefProcTaskProxy: public AbstractGangTask { |
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2100 typedef AbstractRefProcTaskExecutor::ProcessTask ProcessTask; |
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2101 ProcessTask& _proc_task; |
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2102 G1CollectedHeap* _g1h; |
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2103 ConcurrentMark* _cm; |
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2104 CMBitMap* _bitmap; |
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|
2105 |
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|
2106 public: |
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2107 G1RefProcTaskProxy(ProcessTask& proc_task, |
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2108 G1CollectedHeap* g1h, |
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2109 ConcurrentMark* cm, |
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2110 CMBitMap* bitmap) : |
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|
2111 AbstractGangTask("Process reference objects in parallel"), |
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2112 _proc_task(proc_task), _g1h(g1h), _cm(cm), _bitmap(bitmap) |
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2113 {} |
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|
2114 |
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2115 virtual void work(int i) { |
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2116 CMTask* marking_task = _cm->task(i); |
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2117 G1CMIsAliveClosure g1_is_alive(_g1h); |
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2118 G1CMParKeepAliveAndDrainClosure g1_par_keep_alive(_cm, marking_task, _bitmap); |
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2119 G1CMParDrainMarkingStackClosure g1_par_drain(_cm, marking_task); |
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|
2120 |
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|
2121 _proc_task.work(i, g1_is_alive, g1_par_keep_alive, g1_par_drain); |
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2122 } |
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|
2123 }; |
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|
2124 |
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|
2125 void G1RefProcTaskExecutor::execute(ProcessTask& proc_task) { |
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|
2126 assert(_workers != NULL, "Need parallel worker threads."); |
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|
2127 |
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|
2128 G1RefProcTaskProxy proc_task_proxy(proc_task, _g1h, _cm, _bitmap); |
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|
2129 |
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|
2130 // We need to reset the phase for each task execution so that |
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|
2131 // the termination protocol of CMTask::do_marking_step works. |
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|
2132 _cm->set_phase(_active_workers, false /* concurrent */); |
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|
2133 _g1h->set_par_threads(_active_workers); |
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|
2134 _workers->run_task(&proc_task_proxy); |
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|
2135 _g1h->set_par_threads(0); |
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|
2136 } |
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|
2137 |
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|
2138 class G1RefEnqueueTaskProxy: public AbstractGangTask { |
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|
2139 typedef AbstractRefProcTaskExecutor::EnqueueTask EnqueueTask; |
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|
2140 EnqueueTask& _enq_task; |
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|
2141 |
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|
2142 public: |
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|
2143 G1RefEnqueueTaskProxy(EnqueueTask& enq_task) : |
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|
2144 AbstractGangTask("Enqueue reference objects in parallel"), |
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|
2145 _enq_task(enq_task) |
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|
2146 { } |
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|
2147 |
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|
2148 virtual void work(int i) { |
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|
2149 _enq_task.work(i); |
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|
2150 } |
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|
2151 }; |
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|
2152 |
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|
2153 void G1RefProcTaskExecutor::execute(EnqueueTask& enq_task) { |
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|
2154 assert(_workers != NULL, "Need parallel worker threads."); |
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|
2155 |
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|
2156 G1RefEnqueueTaskProxy enq_task_proxy(enq_task); |
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|
2157 |
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|
2158 _g1h->set_par_threads(_active_workers); |
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|
2159 _workers->run_task(&enq_task_proxy); |
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|
2160 _g1h->set_par_threads(0); |
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|
2161 } |
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|
2162 |
342 | 2163 void ConcurrentMark::weakRefsWork(bool clear_all_soft_refs) { |
2164 ResourceMark rm; | |
2165 HandleMark hm; | |
3975
1847b501ae74
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|
2166 |
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|
2167 G1CollectedHeap* g1h = G1CollectedHeap::heap(); |
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|
2168 |
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|
2169 // Is alive closure. |
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|
2170 G1CMIsAliveClosure g1_is_alive(g1h); |
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|
2171 |
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|
2172 // Inner scope to exclude the cleaning of the string and symbol |
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|
2173 // tables from the displayed time. |
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|
2174 { |
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|
2175 bool verbose = PrintGC && PrintGCDetails; |
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|
2176 if (verbose) { |
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2177 gclog_or_tty->put(' '); |
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|
2178 } |
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|
2179 TraceTime t("GC ref-proc", verbose, false, gclog_or_tty); |
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|
2180 |
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|
2181 ReferenceProcessor* rp = g1h->ref_processor(); |
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|
2182 |
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2183 // See the comment in G1CollectedHeap::ref_processing_init() |
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2184 // about how reference processing currently works in G1. |
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|
2185 |
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|
2186 // Process weak references. |
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2187 rp->setup_policy(clear_all_soft_refs); |
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|
2188 assert(_markStack.isEmpty(), "mark stack should be empty"); |
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|
2189 |
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|
2190 G1CMKeepAliveClosure g1_keep_alive(g1h, this, nextMarkBitMap()); |
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2191 G1CMDrainMarkingStackClosure |
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2192 g1_drain_mark_stack(nextMarkBitMap(), &_markStack, &g1_keep_alive); |
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|
2193 |
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2194 // We use the work gang from the G1CollectedHeap and we utilize all |
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2195 // the worker threads. |
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2196 int active_workers = g1h->workers() ? g1h->workers()->total_workers() : 1; |
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2197 active_workers = MAX2(MIN2(active_workers, (int)_max_task_num), 1); |
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2198 |
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2199 G1RefProcTaskExecutor par_task_executor(g1h, this, nextMarkBitMap(), |
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2200 g1h->workers(), active_workers); |
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|
2201 |
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2202 if (rp->processing_is_mt()) { |
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2203 // Set the degree of MT here. If the discovery is done MT, there |
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2204 // may have been a different number of threads doing the discovery |
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2205 // and a different number of discovered lists may have Ref objects. |
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2206 // That is OK as long as the Reference lists are balanced (see |
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2207 // balance_all_queues() and balance_queues()). |
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2208 rp->set_active_mt_degree(active_workers); |
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|
2209 |
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2210 rp->process_discovered_references(&g1_is_alive, |
2174
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2211 &g1_keep_alive, |
234761c55641
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2212 &g1_drain_mark_stack, |
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|
2213 &par_task_executor); |
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|
2214 |
3975
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2215 // The work routines of the parallel keep_alive and drain_marking_stack |
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2216 // will set the has_overflown flag if we overflow the global marking |
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|
2217 // stack. |
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2218 } else { |
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2219 rp->process_discovered_references(&g1_is_alive, |
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2220 &g1_keep_alive, |
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2221 &g1_drain_mark_stack, |
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|
2222 NULL); |
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|
2223 } |
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|
2224 |
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|
2225 assert(_markStack.overflow() || _markStack.isEmpty(), |
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|
2226 "mark stack should be empty (unless it overflowed)"); |
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|
2227 if (_markStack.overflow()) { |
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|
2228 // Should have been done already when we tried to push an |
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|
2229 // entry on to the global mark stack. But let's do it again. |
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|
2230 set_has_overflown(); |
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2231 } |
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|
2232 |
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|
2233 if (rp->processing_is_mt()) { |
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2234 assert(rp->num_q() == active_workers, "why not"); |
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2235 rp->enqueue_discovered_references(&par_task_executor); |
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|
2236 } else { |
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|
2237 rp->enqueue_discovered_references(); |
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|
2238 } |
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|
2239 |
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|
2240 rp->verify_no_references_recorded(); |
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2241 assert(!rp->discovery_enabled(), "should have been disabled"); |
2174
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|
2242 } |
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|
2243 |
2177
3582bf76420e
6990754: Use native memory and reference counting to implement SymbolTable
coleenp
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2175
diff
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|
2244 // Now clean up stale oops in StringTable |
2037
b03260081e9b
7006113: G1: Initialize ReferenceProcessor::_is_alive_non_header field
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|
2245 StringTable::unlink(&g1_is_alive); |
2177
3582bf76420e
6990754: Use native memory and reference counting to implement SymbolTable
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|
2246 // Clean up unreferenced symbols in symbol table. |
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6990754: Use native memory and reference counting to implement SymbolTable
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|
2247 SymbolTable::unlink(); |
342 | 2248 } |
2249 | |
2250 void ConcurrentMark::swapMarkBitMaps() { | |
2251 CMBitMapRO* temp = _prevMarkBitMap; | |
2252 _prevMarkBitMap = (CMBitMapRO*)_nextMarkBitMap; | |
2253 _nextMarkBitMap = (CMBitMap*) temp; | |
2254 } | |
2255 | |
2256 class CMRemarkTask: public AbstractGangTask { | |
2257 private: | |
2258 ConcurrentMark *_cm; | |
2259 | |
2260 public: | |
2261 void work(int worker_i) { | |
2262 // Since all available tasks are actually started, we should | |
2263 // only proceed if we're supposed to be actived. | |
2264 if ((size_t)worker_i < _cm->active_tasks()) { | |
2265 CMTask* task = _cm->task(worker_i); | |
2266 task->record_start_time(); | |
2267 do { | |
2174
234761c55641
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|
2268 task->do_marking_step(1000000000.0 /* something very large */, |
234761c55641
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|
2269 true /* do_stealing */, |
234761c55641
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|
2270 true /* do_termination */); |
342 | 2271 } while (task->has_aborted() && !_cm->has_overflown()); |
2272 // If we overflow, then we do not want to restart. We instead | |
2273 // want to abort remark and do concurrent marking again. | |
2274 task->record_end_time(); | |
2275 } | |
2276 } | |
2277 | |
2278 CMRemarkTask(ConcurrentMark* cm) : | |
2279 AbstractGangTask("Par Remark"), _cm(cm) { } | |
2280 }; | |
2281 | |
2282 void ConcurrentMark::checkpointRootsFinalWork() { | |
2283 ResourceMark rm; | |
2284 HandleMark hm; | |
2285 G1CollectedHeap* g1h = G1CollectedHeap::heap(); | |
2286 | |
2287 g1h->ensure_parsability(false); | |
2288 | |
1833
8b10f48633dc
6984287: Regularize how GC parallel workers are specified.
jmasa
parents:
1719
diff
changeset
|
2289 if (G1CollectedHeap::use_parallel_gc_threads()) { |
989
148e5441d916
6863023: need non-perm oops in code cache for JSR 292
jrose
parents:
912
diff
changeset
|
2290 G1CollectedHeap::StrongRootsScope srs(g1h); |
342 | 2291 // this is remark, so we'll use up all available threads |
2292 int active_workers = ParallelGCThreads; | |
2174
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|
2293 set_phase(active_workers, false /* concurrent */); |
342 | 2294 |
2295 CMRemarkTask remarkTask(this); | |
2296 // We will start all available threads, even if we decide that the | |
2297 // active_workers will be fewer. The extra ones will just bail out | |
2298 // immediately. | |
2299 int n_workers = g1h->workers()->total_workers(); | |
2300 g1h->set_par_threads(n_workers); | |
2301 g1h->workers()->run_task(&remarkTask); | |
2302 g1h->set_par_threads(0); | |
2303 } else { | |
989
148e5441d916
6863023: need non-perm oops in code cache for JSR 292
jrose
parents:
912
diff
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|
2304 G1CollectedHeap::StrongRootsScope srs(g1h); |
342 | 2305 // this is remark, so we'll use up all available threads |
2306 int active_workers = 1; | |
2174
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|
2307 set_phase(active_workers, false /* concurrent */); |
342 | 2308 |
2309 CMRemarkTask remarkTask(this); | |
2310 // We will start all available threads, even if we decide that the | |
2311 // active_workers will be fewer. The extra ones will just bail out | |
2312 // immediately. | |
2313 remarkTask.work(0); | |
2314 } | |
1023
11d4857fe5e1
6888619: G1: too many guarantees in concurrent marking
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1022
diff
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|
2315 SATBMarkQueueSet& satb_mq_set = JavaThread::satb_mark_queue_set(); |
11d4857fe5e1
6888619: G1: too many guarantees in concurrent marking
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1022
diff
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|
2316 guarantee(satb_mq_set.completed_buffers_num() == 0, "invariant"); |
342 | 2317 |
2318 print_stats(); | |
2319 | |
2320 #if VERIFY_OBJS_PROCESSED | |
2321 if (_scan_obj_cl.objs_processed != ThreadLocalObjQueue::objs_enqueued) { | |
2322 gclog_or_tty->print_cr("Processed = %d, enqueued = %d.", | |
2323 _scan_obj_cl.objs_processed, | |
2324 ThreadLocalObjQueue::objs_enqueued); | |
2325 guarantee(_scan_obj_cl.objs_processed == | |
2326 ThreadLocalObjQueue::objs_enqueued, | |
2327 "Different number of objs processed and enqueued."); | |
2328 } | |
2329 #endif | |
2330 } | |
2331 | |
1044 | 2332 #ifndef PRODUCT |
2333 | |
1388 | 2334 class PrintReachableOopClosure: public OopClosure { |
342 | 2335 private: |
2336 G1CollectedHeap* _g1h; | |
2337 outputStream* _out; | |
3772
6747fd0512e0
7004681: G1: Extend marking verification to Full GCs
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3771
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|
2338 VerifyOption _vo; |
1388 | 2339 bool _all; |
342 | 2340 |
2341 public: | |
3772
6747fd0512e0
7004681: G1: Extend marking verification to Full GCs
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3771
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|
2342 PrintReachableOopClosure(outputStream* out, |
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7004681: G1: Extend marking verification to Full GCs
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|
2343 VerifyOption vo, |
1388 | 2344 bool all) : |
1044 | 2345 _g1h(G1CollectedHeap::heap()), |
3772
6747fd0512e0
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3771
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|
2346 _out(out), _vo(vo), _all(all) { } |
342 | 2347 |
845
df6caf649ff7
6700789: G1: Enable use of compressed oops with G1 heaps
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831
diff
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|
2348 void do_oop(narrowOop* p) { do_oop_work(p); } |
df6caf649ff7
6700789: G1: Enable use of compressed oops with G1 heaps
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|
2349 void do_oop( oop* p) { do_oop_work(p); } |
df6caf649ff7
6700789: G1: Enable use of compressed oops with G1 heaps
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831
diff
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|
2350 |
df6caf649ff7
6700789: G1: Enable use of compressed oops with G1 heaps
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831
diff
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|
2351 template <class T> void do_oop_work(T* p) { |
df6caf649ff7
6700789: G1: Enable use of compressed oops with G1 heaps
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831
diff
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|
2352 oop obj = oopDesc::load_decode_heap_oop(p); |
342 | 2353 const char* str = NULL; |
2354 const char* str2 = ""; | |
2355 | |
1388 | 2356 if (obj == NULL) { |
2357 str = ""; | |
2358 } else if (!_g1h->is_in_g1_reserved(obj)) { | |
2359 str = " O"; | |
2360 } else { | |
342 | 2361 HeapRegion* hr = _g1h->heap_region_containing(obj); |
1023
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1022
diff
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|
2362 guarantee(hr != NULL, "invariant"); |
1044 | 2363 bool over_tams = false; |
3772
6747fd0512e0
7004681: G1: Extend marking verification to Full GCs
johnc
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3771
diff
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|
2364 bool marked = false; |
6747fd0512e0
7004681: G1: Extend marking verification to Full GCs
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3771
diff
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|
2365 |
6747fd0512e0
7004681: G1: Extend marking verification to Full GCs
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3771
diff
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|
2366 switch (_vo) { |
6747fd0512e0
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3771
diff
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|
2367 case VerifyOption_G1UsePrevMarking: |
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|
2368 over_tams = hr->obj_allocated_since_prev_marking(obj); |
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3771
diff
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|
2369 marked = _g1h->isMarkedPrev(obj); |
6747fd0512e0
7004681: G1: Extend marking verification to Full GCs
johnc
parents:
3771
diff
changeset
|
2370 break; |
6747fd0512e0
7004681: G1: Extend marking verification to Full GCs
johnc
parents:
3771
diff
changeset
|
2371 case VerifyOption_G1UseNextMarking: |
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7004681: G1: Extend marking verification to Full GCs
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diff
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|
2372 over_tams = hr->obj_allocated_since_next_marking(obj); |
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diff
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|
2373 marked = _g1h->isMarkedNext(obj); |
6747fd0512e0
7004681: G1: Extend marking verification to Full GCs
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3771
diff
changeset
|
2374 break; |
6747fd0512e0
7004681: G1: Extend marking verification to Full GCs
johnc
parents:
3771
diff
changeset
|
2375 case VerifyOption_G1UseMarkWord: |
6747fd0512e0
7004681: G1: Extend marking verification to Full GCs
johnc
parents:
3771
diff
changeset
|
2376 marked = obj->is_gc_marked(); |
6747fd0512e0
7004681: G1: Extend marking verification to Full GCs
johnc
parents:
3771
diff
changeset
|
2377 break; |
6747fd0512e0
7004681: G1: Extend marking verification to Full GCs
johnc
parents:
3771
diff
changeset
|
2378 default: |
6747fd0512e0
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3771
diff
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|
2379 ShouldNotReachHere(); |
1044 | 2380 } |
2381 | |
2382 if (over_tams) { | |
1388 | 2383 str = " >"; |
2384 if (marked) { | |
342 | 2385 str2 = " AND MARKED"; |
1044 | 2386 } |
1388 | 2387 } else if (marked) { |
2388 str = " M"; | |
1044 | 2389 } else { |
1388 | 2390 str = " NOT"; |
1044 | 2391 } |
342 | 2392 } |
2393 | |
1388 | 2394 _out->print_cr(" "PTR_FORMAT": "PTR_FORMAT"%s%s", |
342 | 2395 p, (void*) obj, str, str2); |
2396 } | |
2397 }; | |
2398 | |
1388 | 2399 class PrintReachableObjectClosure : public ObjectClosure { |
342 | 2400 private: |
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2401 G1CollectedHeap* _g1h; |
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|
2402 outputStream* _out; |
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2403 VerifyOption _vo; |
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|
2404 bool _all; |
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|
2405 HeapRegion* _hr; |
342 | 2406 |
2407 public: | |
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2408 PrintReachableObjectClosure(outputStream* out, |
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2409 VerifyOption vo, |
1388 | 2410 bool all, |
2411 HeapRegion* hr) : | |
3772
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2412 _g1h(G1CollectedHeap::heap()), |
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2413 _out(out), _vo(vo), _all(all), _hr(hr) { } |
1388 | 2414 |
2415 void do_object(oop o) { | |
3772
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2416 bool over_tams = false; |
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2417 bool marked = false; |
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|
2418 |
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2419 switch (_vo) { |
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2420 case VerifyOption_G1UsePrevMarking: |
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2421 over_tams = _hr->obj_allocated_since_prev_marking(o); |
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2422 marked = _g1h->isMarkedPrev(o); |
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2423 break; |
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2424 case VerifyOption_G1UseNextMarking: |
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2425 over_tams = _hr->obj_allocated_since_next_marking(o); |
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2426 marked = _g1h->isMarkedNext(o); |
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2427 break; |
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2428 case VerifyOption_G1UseMarkWord: |
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2429 marked = o->is_gc_marked(); |
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|
2430 break; |
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|
2431 default: |
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2432 ShouldNotReachHere(); |
1388 | 2433 } |
2434 bool print_it = _all || over_tams || marked; | |
2435 | |
2436 if (print_it) { | |
2437 _out->print_cr(" "PTR_FORMAT"%s", | |
2438 o, (over_tams) ? " >" : (marked) ? " M" : ""); | |
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2439 PrintReachableOopClosure oopCl(_out, _vo, _all); |
1388 | 2440 o->oop_iterate(&oopCl); |
2441 } | |
342 | 2442 } |
2443 }; | |
2444 | |
1388 | 2445 class PrintReachableRegionClosure : public HeapRegionClosure { |
342 | 2446 private: |
2447 outputStream* _out; | |
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2448 VerifyOption _vo; |
1388 | 2449 bool _all; |
342 | 2450 |
2451 public: | |
2452 bool doHeapRegion(HeapRegion* hr) { | |
2453 HeapWord* b = hr->bottom(); | |
2454 HeapWord* e = hr->end(); | |
2455 HeapWord* t = hr->top(); | |
1044 | 2456 HeapWord* p = NULL; |
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|
2457 |
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|
2458 switch (_vo) { |
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|
2459 case VerifyOption_G1UsePrevMarking: |
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2460 p = hr->prev_top_at_mark_start(); |
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|
2461 break; |
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|
2462 case VerifyOption_G1UseNextMarking: |
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2463 p = hr->next_top_at_mark_start(); |
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|
2464 break; |
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|
2465 case VerifyOption_G1UseMarkWord: |
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|
2466 // When we are verifying marking using the mark word |
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|
2467 // TAMS has no relevance. |
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|
2468 assert(p == NULL, "post-condition"); |
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changeset
|
2469 break; |
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|
2470 default: |
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|
2471 ShouldNotReachHere(); |
1044 | 2472 } |
342 | 2473 _out->print_cr("** ["PTR_FORMAT", "PTR_FORMAT"] top: "PTR_FORMAT" " |
1044 | 2474 "TAMS: "PTR_FORMAT, b, e, t, p); |
1388 | 2475 _out->cr(); |
2476 | |
2477 HeapWord* from = b; | |
2478 HeapWord* to = t; | |
2479 | |
2480 if (to > from) { | |
2481 _out->print_cr("Objects in ["PTR_FORMAT", "PTR_FORMAT"]", from, to); | |
2482 _out->cr(); | |
3772
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|
2483 PrintReachableObjectClosure ocl(_out, _vo, _all, hr); |
1388 | 2484 hr->object_iterate_mem_careful(MemRegion(from, to), &ocl); |
2485 _out->cr(); | |
2486 } | |
342 | 2487 |
2488 return false; | |
2489 } | |
2490 | |
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2491 PrintReachableRegionClosure(outputStream* out, |
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changeset
|
2492 VerifyOption vo, |
1388 | 2493 bool all) : |
3772
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|
2494 _out(out), _vo(vo), _all(all) { } |
342 | 2495 }; |
2496 | |
3772
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|
2497 static const char* verify_option_to_tams(VerifyOption vo) { |
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|
2498 switch (vo) { |
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|
2499 case VerifyOption_G1UsePrevMarking: |
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|
2500 return "PTAMS"; |
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|
2501 case VerifyOption_G1UseNextMarking: |
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diff
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|
2502 return "NTAMS"; |
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diff
changeset
|
2503 default: |
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diff
changeset
|
2504 return "NONE"; |
6747fd0512e0
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diff
changeset
|
2505 } |
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diff
changeset
|
2506 } |
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|
2507 |
1388 | 2508 void ConcurrentMark::print_reachable(const char* str, |
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|
2509 VerifyOption vo, |
1388 | 2510 bool all) { |
2511 gclog_or_tty->cr(); | |
2512 gclog_or_tty->print_cr("== Doing heap dump... "); | |
1044 | 2513 |
2514 if (G1PrintReachableBaseFile == NULL) { | |
2515 gclog_or_tty->print_cr(" #### error: no base file defined"); | |
2516 return; | |
2517 } | |
2518 | |
2519 if (strlen(G1PrintReachableBaseFile) + 1 + strlen(str) > | |
2520 (JVM_MAXPATHLEN - 1)) { | |
2521 gclog_or_tty->print_cr(" #### error: file name too long"); | |
2522 return; | |
2523 } | |
2524 | |
2525 char file_name[JVM_MAXPATHLEN]; | |
2526 sprintf(file_name, "%s.%s", G1PrintReachableBaseFile, str); | |
2527 gclog_or_tty->print_cr(" dumping to file %s", file_name); | |
2528 | |
2529 fileStream fout(file_name); | |
2530 if (!fout.is_open()) { | |
2531 gclog_or_tty->print_cr(" #### error: could not open file"); | |
2532 return; | |
2533 } | |
2534 | |
2535 outputStream* out = &fout; | |
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|
2536 out->print_cr("-- USING %s", verify_option_to_tams(vo)); |
1044 | 2537 out->cr(); |
2538 | |
1388 | 2539 out->print_cr("--- ITERATING OVER REGIONS"); |
1044 | 2540 out->cr(); |
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|
2541 PrintReachableRegionClosure rcl(out, vo, all); |
1388 | 2542 _g1h->heap_region_iterate(&rcl); |
1044 | 2543 out->cr(); |
2544 | |
2545 gclog_or_tty->print_cr(" done"); | |
1388 | 2546 gclog_or_tty->flush(); |
342 | 2547 } |
2548 | |
1044 | 2549 #endif // PRODUCT |
2550 | |
342 | 2551 // This note is for drainAllSATBBuffers and the code in between. |
2552 // In the future we could reuse a task to do this work during an | |
2553 // evacuation pause (since now tasks are not active and can be claimed | |
2554 // during an evacuation pause). This was a late change to the code and | |
2555 // is currently not being taken advantage of. | |
2556 | |
2557 class CMGlobalObjectClosure : public ObjectClosure { | |
2558 private: | |
2559 ConcurrentMark* _cm; | |
2560 | |
2561 public: | |
2562 void do_object(oop obj) { | |
2563 _cm->deal_with_reference(obj); | |
2564 } | |
2565 | |
2566 CMGlobalObjectClosure(ConcurrentMark* cm) : _cm(cm) { } | |
2567 }; | |
2568 | |
2569 void ConcurrentMark::deal_with_reference(oop obj) { | |
3771 | 2570 if (verbose_high()) { |
342 | 2571 gclog_or_tty->print_cr("[global] we're dealing with reference "PTR_FORMAT, |
2572 (void*) obj); | |
3771 | 2573 } |
342 | 2574 |
2575 HeapWord* objAddr = (HeapWord*) obj; | |
845
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2576 assert(obj->is_oop_or_null(true /* ignore mark word */), "Error"); |
342 | 2577 if (_g1h->is_in_g1_reserved(objAddr)) { |
3771 | 2578 assert(obj != NULL, "null check is implicit"); |
2579 if (!_nextMarkBitMap->isMarked(objAddr)) { | |
2580 // Only get the containing region if the object is not marked on the | |
2581 // bitmap (otherwise, it's a waste of time since we won't do | |
2582 // anything with it). | |
2583 HeapRegion* hr = _g1h->heap_region_containing_raw(obj); | |
2584 if (!hr->obj_allocated_since_next_marking(obj)) { | |
2585 if (verbose_high()) { | |
2586 gclog_or_tty->print_cr("[global] "PTR_FORMAT" is not considered " | |
2587 "marked", (void*) obj); | |
2588 } | |
2589 | |
2590 // we need to mark it first | |
2591 if (_nextMarkBitMap->parMark(objAddr)) { | |
2592 // No OrderAccess:store_load() is needed. It is implicit in the | |
2593 // CAS done in parMark(objAddr) above | |
2594 HeapWord* finger = _finger; | |
2595 if (objAddr < finger) { | |
2596 if (verbose_high()) { | |
2597 gclog_or_tty->print_cr("[global] below the global finger " | |
2598 "("PTR_FORMAT"), pushing it", finger); | |
2599 } | |
2600 if (!mark_stack_push(obj)) { | |
2601 if (verbose_low()) { | |
2602 gclog_or_tty->print_cr("[global] global stack overflow during " | |
2603 "deal_with_reference"); | |
2604 } | |
2605 } | |
342 | 2606 } |
2607 } | |
2608 } | |
2609 } | |
2610 } | |
2611 } | |
2612 | |
2613 void ConcurrentMark::drainAllSATBBuffers() { | |
2614 CMGlobalObjectClosure oc(this); | |
2615 SATBMarkQueueSet& satb_mq_set = JavaThread::satb_mark_queue_set(); | |
2616 satb_mq_set.set_closure(&oc); | |
2617 | |
2618 while (satb_mq_set.apply_closure_to_completed_buffer()) { | |
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2619 if (verbose_medium()) { |
342 | 2620 gclog_or_tty->print_cr("[global] processed an SATB buffer"); |
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|
2621 } |
342 | 2622 } |
2623 | |
2624 // no need to check whether we should do this, as this is only | |
2625 // called during an evacuation pause | |
2626 satb_mq_set.iterate_closure_all_threads(); | |
2627 | |
2628 satb_mq_set.set_closure(NULL); | |
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2629 assert(satb_mq_set.completed_buffers_num() == 0, "invariant"); |
342 | 2630 } |
2631 | |
2632 void ConcurrentMark::markPrev(oop p) { | |
2633 // Note we are overriding the read-only view of the prev map here, via | |
2634 // the cast. | |
2635 ((CMBitMap*)_prevMarkBitMap)->mark((HeapWord*)p); | |
2636 } | |
2637 | |
2638 void ConcurrentMark::clear(oop p) { | |
2639 assert(p != NULL && p->is_oop(), "expected an oop"); | |
2640 HeapWord* addr = (HeapWord*)p; | |
2641 assert(addr >= _nextMarkBitMap->startWord() || | |
2642 addr < _nextMarkBitMap->endWord(), "in a region"); | |
2643 | |
2644 _nextMarkBitMap->clear(addr); | |
2645 } | |
2646 | |
2647 void ConcurrentMark::clearRangeBothMaps(MemRegion mr) { | |
2648 // Note we are overriding the read-only view of the prev map here, via | |
2649 // the cast. | |
2650 ((CMBitMap*)_prevMarkBitMap)->clearRange(mr); | |
2651 _nextMarkBitMap->clearRange(mr); | |
2652 } | |
2653 | |
2654 HeapRegion* | |
2655 ConcurrentMark::claim_region(int task_num) { | |
2656 // "checkpoint" the finger | |
2657 HeapWord* finger = _finger; | |
2658 | |
2659 // _heap_end will not change underneath our feet; it only changes at | |
2660 // yield points. | |
2661 while (finger < _heap_end) { | |
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2662 assert(_g1h->is_in_g1_reserved(finger), "invariant"); |
342 | 2663 |
3771 | 2664 // Note on how this code handles humongous regions. In the |
2665 // normal case the finger will reach the start of a "starts | |
2666 // humongous" (SH) region. Its end will either be the end of the | |
2667 // last "continues humongous" (CH) region in the sequence, or the | |
2668 // standard end of the SH region (if the SH is the only region in | |
2669 // the sequence). That way claim_region() will skip over the CH | |
2670 // regions. However, there is a subtle race between a CM thread | |
2671 // executing this method and a mutator thread doing a humongous | |
2672 // object allocation. The two are not mutually exclusive as the CM | |
2673 // thread does not need to hold the Heap_lock when it gets | |
2674 // here. So there is a chance that claim_region() will come across | |
2675 // a free region that's in the progress of becoming a SH or a CH | |
2676 // region. In the former case, it will either | |
2677 // a) Miss the update to the region's end, in which case it will | |
2678 // visit every subsequent CH region, will find their bitmaps | |
2679 // empty, and do nothing, or | |
2680 // b) Will observe the update of the region's end (in which case | |
2681 // it will skip the subsequent CH regions). | |
2682 // If it comes across a region that suddenly becomes CH, the | |
2683 // scenario will be similar to b). So, the race between | |
2684 // claim_region() and a humongous object allocation might force us | |
2685 // to do a bit of unnecessary work (due to some unnecessary bitmap | |
2686 // iterations) but it should not introduce and correctness issues. | |
2687 HeapRegion* curr_region = _g1h->heap_region_containing_raw(finger); | |
342 | 2688 HeapWord* bottom = curr_region->bottom(); |
2689 HeapWord* end = curr_region->end(); | |
2690 HeapWord* limit = curr_region->next_top_at_mark_start(); | |
2691 | |
3771 | 2692 if (verbose_low()) { |
342 | 2693 gclog_or_tty->print_cr("[%d] curr_region = "PTR_FORMAT" " |
2694 "["PTR_FORMAT", "PTR_FORMAT"), " | |
2695 "limit = "PTR_FORMAT, | |
2696 task_num, curr_region, bottom, end, limit); | |
3771 | 2697 } |
2698 | |
2699 // Is the gap between reading the finger and doing the CAS too long? | |
2700 HeapWord* res = (HeapWord*) Atomic::cmpxchg_ptr(end, &_finger, finger); | |
342 | 2701 if (res == finger) { |
2702 // we succeeded | |
2703 | |
2704 // notice that _finger == end cannot be guaranteed here since, | |
2705 // someone else might have moved the finger even further | |
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2706 assert(_finger >= end, "the finger should have moved forward"); |
342 | 2707 |
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2708 if (verbose_low()) { |
342 | 2709 gclog_or_tty->print_cr("[%d] we were successful with region = " |
2710 PTR_FORMAT, task_num, curr_region); | |
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2711 } |
342 | 2712 |
2713 if (limit > bottom) { | |
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2714 if (verbose_low()) { |
342 | 2715 gclog_or_tty->print_cr("[%d] region "PTR_FORMAT" is not empty, " |
2716 "returning it ", task_num, curr_region); | |
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|
2717 } |
342 | 2718 return curr_region; |
2719 } else { | |
1023
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2720 assert(limit == bottom, |
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|
2721 "the region limit should be at bottom"); |
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|
2722 if (verbose_low()) { |
342 | 2723 gclog_or_tty->print_cr("[%d] region "PTR_FORMAT" is empty, " |
2724 "returning NULL", task_num, curr_region); | |
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|
2725 } |
342 | 2726 // we return NULL and the caller should try calling |
2727 // claim_region() again. | |
2728 return NULL; | |
2729 } | |
2730 } else { | |
1023
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2731 assert(_finger > finger, "the finger should have moved forward"); |
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|
2732 if (verbose_low()) { |
342 | 2733 gclog_or_tty->print_cr("[%d] somebody else moved the finger, " |
2734 "global finger = "PTR_FORMAT", " | |
2735 "our finger = "PTR_FORMAT, | |
2736 task_num, _finger, finger); | |
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2737 } |
342 | 2738 |
2739 // read it again | |
2740 finger = _finger; | |
2741 } | |
2742 } | |
2743 | |
2744 return NULL; | |
2745 } | |
2746 | |
1835
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2747 bool ConcurrentMark::invalidate_aborted_regions_in_cset() { |
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2748 bool result = false; |
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2749 for (int i = 0; i < (int)_max_task_num; ++i) { |
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2750 CMTask* the_task = _tasks[i]; |
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2751 MemRegion mr = the_task->aborted_region(); |
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2752 if (mr.start() != NULL) { |
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2753 assert(mr.end() != NULL, "invariant"); |
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2754 assert(mr.word_size() > 0, "invariant"); |
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2755 HeapRegion* hr = _g1h->heap_region_containing(mr.start()); |
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2756 assert(hr != NULL, "invariant"); |
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2757 if (hr->in_collection_set()) { |
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2758 // The region points into the collection set |
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2759 the_task->set_aborted_region(MemRegion()); |
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2760 result = true; |
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|
2761 } |
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|
2762 } |
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|
2763 } |
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|
2764 return result; |
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|
2765 } |
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|
2766 |
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2767 bool ConcurrentMark::has_aborted_regions() { |
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2768 for (int i = 0; i < (int)_max_task_num; ++i) { |
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2769 CMTask* the_task = _tasks[i]; |
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2770 MemRegion mr = the_task->aborted_region(); |
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2771 if (mr.start() != NULL) { |
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2772 assert(mr.end() != NULL, "invariant"); |
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2773 assert(mr.word_size() > 0, "invariant"); |
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2774 return true; |
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|
2775 } |
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|
2776 } |
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|
2777 return false; |
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|
2778 } |
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|
2779 |
342 | 2780 void ConcurrentMark::oops_do(OopClosure* cl) { |
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2781 if (_markStack.size() > 0 && verbose_low()) { |
342 | 2782 gclog_or_tty->print_cr("[global] scanning the global marking stack, " |
2783 "size = %d", _markStack.size()); | |
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2784 } |
342 | 2785 // we first iterate over the contents of the mark stack... |
2786 _markStack.oops_do(cl); | |
2787 | |
2788 for (int i = 0; i < (int)_max_task_num; ++i) { | |
2789 OopTaskQueue* queue = _task_queues->queue((int)i); | |
2790 | |
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2791 if (queue->size() > 0 && verbose_low()) { |
342 | 2792 gclog_or_tty->print_cr("[global] scanning task queue of task %d, " |
2793 "size = %d", i, queue->size()); | |
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2794 } |
342 | 2795 |
2796 // ...then over the contents of the all the task queues. | |
2797 queue->oops_do(cl); | |
2798 } | |
2799 | |
1835
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2800 // Invalidate any entries, that are in the region stack, that |
342 | 2801 // point into the collection set |
2802 if (_regionStack.invalidate_entries_into_cset()) { | |
2803 // otherwise, any gray objects copied during the evacuation pause | |
2804 // might not be visited. | |
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2805 assert(_should_gray_objects, "invariant"); |
342 | 2806 } |
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2807 |
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|
2808 // Invalidate any aborted regions, recorded in the individual CM |
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2809 // tasks, that point into the collection set. |
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|
2810 if (invalidate_aborted_regions_in_cset()) { |
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2811 // otherwise, any gray objects copied during the evacuation pause |
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2812 // might not be visited. |
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|
2813 assert(_should_gray_objects, "invariant"); |
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|
2814 } |
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|
2815 |
342 | 2816 } |
2817 | |
3316
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|
2818 void ConcurrentMark::clear_marking_state(bool clear_overflow) { |
342 | 2819 _markStack.setEmpty(); |
2820 _markStack.clear_overflow(); | |
2821 _regionStack.setEmpty(); | |
2822 _regionStack.clear_overflow(); | |
3316
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|
2823 if (clear_overflow) { |
cd8e33b2a8ad
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|
2824 clear_has_overflown(); |
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|
2825 } else { |
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|
2826 assert(has_overflown(), "pre-condition"); |
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|
2827 } |
342 | 2828 _finger = _heap_start; |
2829 | |
2830 for (int i = 0; i < (int)_max_task_num; ++i) { | |
2831 OopTaskQueue* queue = _task_queues->queue(i); | |
2832 queue->set_empty(); | |
1885
a5c514e74487
6988458: G1: assert(mr.end() <= _cm->finger()) failed: otherwise the region shouldn't be on the stack
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changeset
|
2833 // Clear any partial regions from the CMTasks |
a5c514e74487
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|
2834 _tasks[i]->clear_aborted_region(); |
342 | 2835 } |
2836 } | |
2837 | |
2838 void ConcurrentMark::print_stats() { | |
2839 if (verbose_stats()) { | |
2840 gclog_or_tty->print_cr("---------------------------------------------------------------------"); | |
2841 for (size_t i = 0; i < _active_tasks; ++i) { | |
2842 _tasks[i]->print_stats(); | |
2843 gclog_or_tty->print_cr("---------------------------------------------------------------------"); | |
2844 } | |
2845 } | |
2846 } | |
2847 | |
2848 class CSMarkOopClosure: public OopClosure { | |
2849 friend class CSMarkBitMapClosure; | |
2850 | |
2851 G1CollectedHeap* _g1h; | |
2852 CMBitMap* _bm; | |
2853 ConcurrentMark* _cm; | |
2854 oop* _ms; | |
2855 jint* _array_ind_stack; | |
2856 int _ms_size; | |
2857 int _ms_ind; | |
2858 int _array_increment; | |
2859 | |
2860 bool push(oop obj, int arr_ind = 0) { | |
2861 if (_ms_ind == _ms_size) { | |
2862 gclog_or_tty->print_cr("Mark stack is full."); | |
2863 return false; | |
2864 } | |
2865 _ms[_ms_ind] = obj; | |
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|
2866 if (obj->is_objArray()) { |
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|
2867 _array_ind_stack[_ms_ind] = arr_ind; |
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|
2868 } |
342 | 2869 _ms_ind++; |
2870 return true; | |
2871 } | |
2872 | |
2873 oop pop() { | |
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|
2874 if (_ms_ind == 0) { |
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|
2875 return NULL; |
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|
2876 } else { |
342 | 2877 _ms_ind--; |
2878 return _ms[_ms_ind]; | |
2879 } | |
2880 } | |
2881 | |
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2882 template <class T> bool drain() { |
342 | 2883 while (_ms_ind > 0) { |
2884 oop obj = pop(); | |
2885 assert(obj != NULL, "Since index was non-zero."); | |
2886 if (obj->is_objArray()) { | |
2887 jint arr_ind = _array_ind_stack[_ms_ind]; | |
2888 objArrayOop aobj = objArrayOop(obj); | |
2889 jint len = aobj->length(); | |
2890 jint next_arr_ind = arr_ind + _array_increment; | |
2891 if (next_arr_ind < len) { | |
2892 push(obj, next_arr_ind); | |
2893 } | |
2894 // Now process this portion of this one. | |
2895 int lim = MIN2(next_arr_ind, len); | |
2896 for (int j = arr_ind; j < lim; j++) { | |
912
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|
2897 do_oop(aobj->objArrayOopDesc::obj_at_addr<T>(j)); |
342 | 2898 } |
2899 | |
2900 } else { | |
2901 obj->oop_iterate(this); | |
2902 } | |
2903 if (abort()) return false; | |
2904 } | |
2905 return true; | |
2906 } | |
2907 | |
2908 public: | |
2909 CSMarkOopClosure(ConcurrentMark* cm, int ms_size) : | |
2910 _g1h(G1CollectedHeap::heap()), | |
2911 _cm(cm), | |
2912 _bm(cm->nextMarkBitMap()), | |
2913 _ms_size(ms_size), _ms_ind(0), | |
2914 _ms(NEW_C_HEAP_ARRAY(oop, ms_size)), | |
2915 _array_ind_stack(NEW_C_HEAP_ARRAY(jint, ms_size)), | |
2916 _array_increment(MAX2(ms_size/8, 16)) | |
2917 {} | |
2918 | |
2919 ~CSMarkOopClosure() { | |
2920 FREE_C_HEAP_ARRAY(oop, _ms); | |
2921 FREE_C_HEAP_ARRAY(jint, _array_ind_stack); | |
2922 } | |
2923 | |
845
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2924 virtual void do_oop(narrowOop* p) { do_oop_work(p); } |
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2925 virtual void do_oop( oop* p) { do_oop_work(p); } |
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2926 |
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|
2927 template <class T> void do_oop_work(T* p) { |
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|
2928 T heap_oop = oopDesc::load_heap_oop(p); |
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|
2929 if (oopDesc::is_null(heap_oop)) return; |
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2930 oop obj = oopDesc::decode_heap_oop_not_null(heap_oop); |
342 | 2931 if (obj->is_forwarded()) { |
2932 // If the object has already been forwarded, we have to make sure | |
2933 // that it's marked. So follow the forwarding pointer. Note that | |
2934 // this does the right thing for self-forwarding pointers in the | |
2935 // evacuation failure case. | |
2936 obj = obj->forwardee(); | |
2937 } | |
2938 HeapRegion* hr = _g1h->heap_region_containing(obj); | |
2939 if (hr != NULL) { | |
2940 if (hr->in_collection_set()) { | |
2941 if (_g1h->is_obj_ill(obj)) { | |
2942 _bm->mark((HeapWord*)obj); | |
2943 if (!push(obj)) { | |
2944 gclog_or_tty->print_cr("Setting abort in CSMarkOopClosure because push failed."); | |
2945 set_abort(); | |
2946 } | |
2947 } | |
2948 } else { | |
2949 // Outside the collection set; we need to gray it | |
2950 _cm->deal_with_reference(obj); | |
2951 } | |
2952 } | |
2953 } | |
2954 }; | |
2955 | |
2956 class CSMarkBitMapClosure: public BitMapClosure { | |
2957 G1CollectedHeap* _g1h; | |
2958 CMBitMap* _bitMap; | |
2959 ConcurrentMark* _cm; | |
2960 CSMarkOopClosure _oop_cl; | |
2961 public: | |
2962 CSMarkBitMapClosure(ConcurrentMark* cm, int ms_size) : | |
2963 _g1h(G1CollectedHeap::heap()), | |
2964 _bitMap(cm->nextMarkBitMap()), | |
2965 _oop_cl(cm, ms_size) | |
2966 {} | |
2967 | |
2968 ~CSMarkBitMapClosure() {} | |
2969 | |
2970 bool do_bit(size_t offset) { | |
2971 // convert offset into a HeapWord* | |
2972 HeapWord* addr = _bitMap->offsetToHeapWord(offset); | |
2973 assert(_bitMap->endWord() && addr < _bitMap->endWord(), | |
2974 "address out of range"); | |
2975 assert(_bitMap->isMarked(addr), "tautology"); | |
2976 oop obj = oop(addr); | |
2977 if (!obj->is_forwarded()) { | |
2978 if (!_oop_cl.push(obj)) return false; | |
845
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2979 if (UseCompressedOops) { |
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2980 if (!_oop_cl.drain<narrowOop>()) return false; |
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2981 } else { |
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2982 if (!_oop_cl.drain<oop>()) return false; |
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2983 } |
342 | 2984 } |
2985 // Otherwise... | |
2986 return true; | |
2987 } | |
2988 }; | |
2989 | |
2990 | |
2991 class CompleteMarkingInCSHRClosure: public HeapRegionClosure { | |
2992 CMBitMap* _bm; | |
2993 CSMarkBitMapClosure _bit_cl; | |
2994 enum SomePrivateConstants { | |
2995 MSSize = 1000 | |
2996 }; | |
2997 bool _completed; | |
2998 public: | |
2999 CompleteMarkingInCSHRClosure(ConcurrentMark* cm) : | |
3000 _bm(cm->nextMarkBitMap()), | |
3001 _bit_cl(cm, MSSize), | |
3002 _completed(true) | |
3003 {} | |
3004 | |
3005 ~CompleteMarkingInCSHRClosure() {} | |
3006 | |
3007 bool doHeapRegion(HeapRegion* r) { | |
3008 if (!r->evacuation_failed()) { | |
3009 MemRegion mr = MemRegion(r->bottom(), r->next_top_at_mark_start()); | |
3010 if (!mr.is_empty()) { | |
3011 if (!_bm->iterate(&_bit_cl, mr)) { | |
3012 _completed = false; | |
3013 return true; | |
3014 } | |
3015 } | |
3016 } | |
3017 return false; | |
3018 } | |
3019 | |
3020 bool completed() { return _completed; } | |
3021 }; | |
3022 | |
3023 class ClearMarksInHRClosure: public HeapRegionClosure { | |
3024 CMBitMap* _bm; | |
3025 public: | |
3026 ClearMarksInHRClosure(CMBitMap* bm): _bm(bm) { } | |
3027 | |
3028 bool doHeapRegion(HeapRegion* r) { | |
3029 if (!r->used_region().is_empty() && !r->evacuation_failed()) { | |
3030 MemRegion usedMR = r->used_region(); | |
3031 _bm->clearRange(r->used_region()); | |
3032 } | |
3033 return false; | |
3034 } | |
3035 }; | |
3036 | |
3037 void ConcurrentMark::complete_marking_in_collection_set() { | |
3038 G1CollectedHeap* g1h = G1CollectedHeap::heap(); | |
3039 | |
3040 if (!g1h->mark_in_progress()) { | |
3041 g1h->g1_policy()->record_mark_closure_time(0.0); | |
3042 return; | |
3043 } | |
3044 | |
3045 int i = 1; | |
3046 double start = os::elapsedTime(); | |
3047 while (true) { | |
3048 i++; | |
3049 CompleteMarkingInCSHRClosure cmplt(this); | |
3050 g1h->collection_set_iterate(&cmplt); | |
3051 if (cmplt.completed()) break; | |
3052 } | |
3053 double end_time = os::elapsedTime(); | |
3054 double elapsed_time_ms = (end_time - start) * 1000.0; | |
3055 g1h->g1_policy()->record_mark_closure_time(elapsed_time_ms); | |
3056 | |
3057 ClearMarksInHRClosure clr(nextMarkBitMap()); | |
3058 g1h->collection_set_iterate(&clr); | |
3059 } | |
3060 | |
3061 // The next two methods deal with the following optimisation. Some | |
3062 // objects are gray by being marked and located above the finger. If | |
3063 // they are copied, during an evacuation pause, below the finger then | |
3064 // the need to be pushed on the stack. The observation is that, if | |
3065 // there are no regions in the collection set located above the | |
3066 // finger, then the above cannot happen, hence we do not need to | |
3067 // explicitly gray any objects when copying them to below the | |
3068 // finger. The global stack will be scanned to ensure that, if it | |
3069 // points to objects being copied, it will update their | |
3070 // location. There is a tricky situation with the gray objects in | |
3071 // region stack that are being coped, however. See the comment in | |
3072 // newCSet(). | |
3073 | |
3074 void ConcurrentMark::newCSet() { | |
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3075 if (!concurrent_marking_in_progress()) { |
342 | 3076 // nothing to do if marking is not in progress |
3077 return; | |
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3078 } |
342 | 3079 |
3080 // find what the lowest finger is among the global and local fingers | |
3081 _min_finger = _finger; | |
3082 for (int i = 0; i < (int)_max_task_num; ++i) { | |
3083 CMTask* task = _tasks[i]; | |
3084 HeapWord* task_finger = task->finger(); | |
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3085 if (task_finger != NULL && task_finger < _min_finger) { |
342 | 3086 _min_finger = task_finger; |
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3087 } |
342 | 3088 } |
3089 | |
3090 _should_gray_objects = false; | |
3091 | |
3092 // This fixes a very subtle and fustrating bug. It might be the case | |
3093 // that, during en evacuation pause, heap regions that contain | |
3094 // objects that are gray (by being in regions contained in the | |
3095 // region stack) are included in the collection set. Since such gray | |
3096 // objects will be moved, and because it's not easy to redirect | |
3097 // region stack entries to point to a new location (because objects | |
3098 // in one region might be scattered to multiple regions after they | |
3099 // are copied), one option is to ensure that all marked objects | |
3100 // copied during a pause are pushed on the stack. Notice, however, | |
3101 // that this problem can only happen when the region stack is not | |
3102 // empty during an evacuation pause. So, we make the fix a bit less | |
3103 // conservative and ensure that regions are pushed on the stack, | |
3104 // irrespective whether all collection set regions are below the | |
3105 // finger, if the region stack is not empty. This is expected to be | |
3106 // a rare case, so I don't think it's necessary to be smarted about it. | |
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3107 if (!region_stack_empty() || has_aborted_regions()) { |
342 | 3108 _should_gray_objects = true; |
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3109 } |
342 | 3110 } |
3111 | |
3112 void ConcurrentMark::registerCSetRegion(HeapRegion* hr) { | |
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3113 if (!concurrent_marking_in_progress()) return; |
342 | 3114 |
3115 HeapWord* region_end = hr->end(); | |
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3116 if (region_end > _min_finger) { |
342 | 3117 _should_gray_objects = true; |
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3118 } |
342 | 3119 } |
3120 | |
3378
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3121 // Resets the region fields of active CMTasks whose values point |
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3122 // into the collection set. |
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3123 void ConcurrentMark::reset_active_task_region_fields_in_cset() { |
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3124 assert(SafepointSynchronize::is_at_safepoint(), "should be in STW"); |
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3125 assert(parallel_marking_threads() <= _max_task_num, "sanity"); |
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3126 |
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3127 for (int i = 0; i < (int)parallel_marking_threads(); i += 1) { |
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3128 CMTask* task = _tasks[i]; |
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3129 HeapWord* task_finger = task->finger(); |
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3130 if (task_finger != NULL) { |
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3131 assert(_g1h->is_in_g1_reserved(task_finger), "not in heap"); |
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3132 HeapRegion* finger_region = _g1h->heap_region_containing(task_finger); |
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3133 if (finger_region->in_collection_set()) { |
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3134 // The task's current region is in the collection set. |
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3135 // This region will be evacuated in the current GC and |
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3136 // the region fields in the task will be stale. |
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3137 task->giveup_current_region(); |
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3138 } |
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3139 } |
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3140 } |
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3141 } |
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3142 |
342 | 3143 // abandon current marking iteration due to a Full GC |
3144 void ConcurrentMark::abort() { | |
3145 // Clear all marks to force marking thread to do nothing | |
3146 _nextMarkBitMap->clearAll(); | |
3147 // Empty mark stack | |
3148 clear_marking_state(); | |
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3149 for (int i = 0; i < (int)_max_task_num; ++i) { |
342 | 3150 _tasks[i]->clear_region_fields(); |
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3151 } |
342 | 3152 _has_aborted = true; |
3153 | |
3154 SATBMarkQueueSet& satb_mq_set = JavaThread::satb_mark_queue_set(); | |
3155 satb_mq_set.abandon_partial_marking(); | |
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3156 // This can be called either during or outside marking, we'll read |
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3157 // the expected_active value from the SATB queue set. |
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3158 satb_mq_set.set_active_all_threads( |
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3159 false, /* new active value */ |
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3160 satb_mq_set.is_active() /* expected_active */); |
342 | 3161 } |
3162 | |
3163 static void print_ms_time_info(const char* prefix, const char* name, | |
3164 NumberSeq& ns) { | |
3165 gclog_or_tty->print_cr("%s%5d %12s: total time = %8.2f s (avg = %8.2f ms).", | |
3166 prefix, ns.num(), name, ns.sum()/1000.0, ns.avg()); | |
3167 if (ns.num() > 0) { | |
3168 gclog_or_tty->print_cr("%s [std. dev = %8.2f ms, max = %8.2f ms]", | |
3169 prefix, ns.sd(), ns.maximum()); | |
3170 } | |
3171 } | |
3172 | |
3173 void ConcurrentMark::print_summary_info() { | |
3174 gclog_or_tty->print_cr(" Concurrent marking:"); | |
3175 print_ms_time_info(" ", "init marks", _init_times); | |
3176 print_ms_time_info(" ", "remarks", _remark_times); | |
3177 { | |
3178 print_ms_time_info(" ", "final marks", _remark_mark_times); | |
3179 print_ms_time_info(" ", "weak refs", _remark_weak_ref_times); | |
3180 | |
3181 } | |
3182 print_ms_time_info(" ", "cleanups", _cleanup_times); | |
3183 gclog_or_tty->print_cr(" Final counting total time = %8.2f s (avg = %8.2f ms).", | |
3184 _total_counting_time, | |
3185 (_cleanup_times.num() > 0 ? _total_counting_time * 1000.0 / | |
3186 (double)_cleanup_times.num() | |
3187 : 0.0)); | |
3188 if (G1ScrubRemSets) { | |
3189 gclog_or_tty->print_cr(" RS scrub total time = %8.2f s (avg = %8.2f ms).", | |
3190 _total_rs_scrub_time, | |
3191 (_cleanup_times.num() > 0 ? _total_rs_scrub_time * 1000.0 / | |
3192 (double)_cleanup_times.num() | |
3193 : 0.0)); | |
3194 } | |
3195 gclog_or_tty->print_cr(" Total stop_world time = %8.2f s.", | |
3196 (_init_times.sum() + _remark_times.sum() + | |
3197 _cleanup_times.sum())/1000.0); | |
3198 gclog_or_tty->print_cr(" Total concurrent time = %8.2f s " | |
3199 "(%8.2f s marking, %8.2f s counting).", | |
3200 cmThread()->vtime_accum(), | |
3201 cmThread()->vtime_mark_accum(), | |
3202 cmThread()->vtime_count_accum()); | |
3203 } | |
3204 | |
1019 | 3205 void ConcurrentMark::print_worker_threads_on(outputStream* st) const { |
3206 _parallel_workers->print_worker_threads_on(st); | |
3207 } | |
3208 | |
342 | 3209 // Closures |
3210 // XXX: there seems to be a lot of code duplication here; | |
3211 // should refactor and consolidate the shared code. | |
3212 | |
3213 // This closure is used to mark refs into the CMS generation in | |
3214 // the CMS bit map. Called at the first checkpoint. | |
3215 | |
3216 // We take a break if someone is trying to stop the world. | |
3217 bool ConcurrentMark::do_yield_check(int worker_i) { | |
3218 if (should_yield()) { | |
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3219 if (worker_i == 0) { |
342 | 3220 _g1h->g1_policy()->record_concurrent_pause(); |
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3221 } |
342 | 3222 cmThread()->yield(); |
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3223 if (worker_i == 0) { |
342 | 3224 _g1h->g1_policy()->record_concurrent_pause_end(); |
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3225 } |
342 | 3226 return true; |
3227 } else { | |
3228 return false; | |
3229 } | |
3230 } | |
3231 | |
3232 bool ConcurrentMark::should_yield() { | |
3233 return cmThread()->should_yield(); | |
3234 } | |
3235 | |
3236 bool ConcurrentMark::containing_card_is_marked(void* p) { | |
3237 size_t offset = pointer_delta(p, _g1h->reserved_region().start(), 1); | |
3238 return _card_bm.at(offset >> CardTableModRefBS::card_shift); | |
3239 } | |
3240 | |
3241 bool ConcurrentMark::containing_cards_are_marked(void* start, | |
3242 void* last) { | |
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3243 return containing_card_is_marked(start) && |
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3244 containing_card_is_marked(last); |
342 | 3245 } |
3246 | |
3247 #ifndef PRODUCT | |
3248 // for debugging purposes | |
3249 void ConcurrentMark::print_finger() { | |
3250 gclog_or_tty->print_cr("heap ["PTR_FORMAT", "PTR_FORMAT"), global finger = "PTR_FORMAT, | |
3251 _heap_start, _heap_end, _finger); | |
3252 for (int i = 0; i < (int) _max_task_num; ++i) { | |
3253 gclog_or_tty->print(" %d: "PTR_FORMAT, i, _tasks[i]->finger()); | |
3254 } | |
3255 gclog_or_tty->print_cr(""); | |
3256 } | |
3257 #endif | |
3258 | |
3771 | 3259 void CMTask::scan_object(oop obj) { |
3260 assert(_nextMarkBitMap->isMarked((HeapWord*) obj), "invariant"); | |
3261 | |
3262 if (_cm->verbose_high()) { | |
3263 gclog_or_tty->print_cr("[%d] we're scanning object "PTR_FORMAT, | |
3264 _task_id, (void*) obj); | |
3265 } | |
3266 | |
3267 size_t obj_size = obj->size(); | |
3268 _words_scanned += obj_size; | |
3269 | |
3270 obj->oop_iterate(_cm_oop_closure); | |
3271 statsOnly( ++_objs_scanned ); | |
3272 check_limits(); | |
3273 } | |
3274 | |
342 | 3275 // Closure for iteration over bitmaps |
3276 class CMBitMapClosure : public BitMapClosure { | |
3277 private: | |
3278 // the bitmap that is being iterated over | |
3279 CMBitMap* _nextMarkBitMap; | |
3280 ConcurrentMark* _cm; | |
3281 CMTask* _task; | |
3282 // true if we're scanning a heap region claimed by the task (so that | |
3283 // we move the finger along), false if we're not, i.e. currently when | |
3284 // scanning a heap region popped from the region stack (so that we | |
3285 // do not move the task finger along; it'd be a mistake if we did so). | |
3286 bool _scanning_heap_region; | |
3287 | |
3288 public: | |
3289 CMBitMapClosure(CMTask *task, | |
3290 ConcurrentMark* cm, | |
3291 CMBitMap* nextMarkBitMap) | |
3292 : _task(task), _cm(cm), _nextMarkBitMap(nextMarkBitMap) { } | |
3293 | |
3294 void set_scanning_heap_region(bool scanning_heap_region) { | |
3295 _scanning_heap_region = scanning_heap_region; | |
3296 } | |
3297 | |
3298 bool do_bit(size_t offset) { | |
3299 HeapWord* addr = _nextMarkBitMap->offsetToHeapWord(offset); | |
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3300 assert(_nextMarkBitMap->isMarked(addr), "invariant"); |
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3301 assert( addr < _cm->finger(), "invariant"); |
342 | 3302 |
3303 if (_scanning_heap_region) { | |
3304 statsOnly( _task->increase_objs_found_on_bitmap() ); | |
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3305 assert(addr >= _task->finger(), "invariant"); |
342 | 3306 // We move that task's local finger along. |
3307 _task->move_finger_to(addr); | |
3308 } else { | |
3309 // We move the task's region finger along. | |
3310 _task->move_region_finger_to(addr); | |
3311 } | |
3312 | |
3313 _task->scan_object(oop(addr)); | |
3314 // we only partially drain the local queue and global stack | |
3315 _task->drain_local_queue(true); | |
3316 _task->drain_global_stack(true); | |
3317 | |
3318 // if the has_aborted flag has been raised, we need to bail out of | |
3319 // the iteration | |
3320 return !_task->has_aborted(); | |
3321 } | |
3322 }; | |
3323 | |
3324 // Closure for iterating over objects, currently only used for | |
3325 // processing SATB buffers. | |
3326 class CMObjectClosure : public ObjectClosure { | |
3327 private: | |
3328 CMTask* _task; | |
3329 | |
3330 public: | |
3331 void do_object(oop obj) { | |
3332 _task->deal_with_reference(obj); | |
3333 } | |
3334 | |
3335 CMObjectClosure(CMTask* task) : _task(task) { } | |
3336 }; | |
3337 | |
3771 | 3338 G1CMOopClosure::G1CMOopClosure(G1CollectedHeap* g1h, |
3339 ConcurrentMark* cm, | |
3340 CMTask* task) | |
3341 : _g1h(g1h), _cm(cm), _task(task) { | |
3342 assert(_ref_processor == NULL, "should be initialized to NULL"); | |
3343 | |
3344 if (G1UseConcMarkReferenceProcessing) { | |
3345 _ref_processor = g1h->ref_processor(); | |
3346 assert(_ref_processor != NULL, "should not be NULL"); | |
342 | 3347 } |
3771 | 3348 } |
342 | 3349 |
3350 void CMTask::setup_for_region(HeapRegion* hr) { | |
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3351 // Separated the asserts so that we know which one fires. |
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3352 assert(hr != NULL, |
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3353 "claim_region() should have filtered out continues humongous regions"); |
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3354 assert(!hr->continuesHumongous(), |
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3355 "claim_region() should have filtered out continues humongous regions"); |
342 | 3356 |
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3357 if (_cm->verbose_low()) { |
342 | 3358 gclog_or_tty->print_cr("[%d] setting up for region "PTR_FORMAT, |
3359 _task_id, hr); | |
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3360 } |
342 | 3361 |
3362 _curr_region = hr; | |
3363 _finger = hr->bottom(); | |
3364 update_region_limit(); | |
3365 } | |
3366 | |
3367 void CMTask::update_region_limit() { | |
3368 HeapRegion* hr = _curr_region; | |
3369 HeapWord* bottom = hr->bottom(); | |
3370 HeapWord* limit = hr->next_top_at_mark_start(); | |
3371 | |
3372 if (limit == bottom) { | |
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3373 if (_cm->verbose_low()) { |
342 | 3374 gclog_or_tty->print_cr("[%d] found an empty region " |
3375 "["PTR_FORMAT", "PTR_FORMAT")", | |
3376 _task_id, bottom, limit); | |
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3377 } |
342 | 3378 // The region was collected underneath our feet. |
3379 // We set the finger to bottom to ensure that the bitmap | |
3380 // iteration that will follow this will not do anything. | |
3381 // (this is not a condition that holds when we set the region up, | |
3382 // as the region is not supposed to be empty in the first place) | |
3383 _finger = bottom; | |
3384 } else if (limit >= _region_limit) { | |
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3385 assert(limit >= _finger, "peace of mind"); |
342 | 3386 } else { |
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3387 assert(limit < _region_limit, "only way to get here"); |
342 | 3388 // This can happen under some pretty unusual circumstances. An |
3389 // evacuation pause empties the region underneath our feet (NTAMS | |
3390 // at bottom). We then do some allocation in the region (NTAMS | |
3391 // stays at bottom), followed by the region being used as a GC | |
3392 // alloc region (NTAMS will move to top() and the objects | |
3393 // originally below it will be grayed). All objects now marked in | |
3394 // the region are explicitly grayed, if below the global finger, | |
3395 // and we do not need in fact to scan anything else. So, we simply | |
3396 // set _finger to be limit to ensure that the bitmap iteration | |
3397 // doesn't do anything. | |
3398 _finger = limit; | |
3399 } | |
3400 | |
3401 _region_limit = limit; | |
3402 } | |
3403 | |
3404 void CMTask::giveup_current_region() { | |
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3405 assert(_curr_region != NULL, "invariant"); |
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3406 if (_cm->verbose_low()) { |
342 | 3407 gclog_or_tty->print_cr("[%d] giving up region "PTR_FORMAT, |
3408 _task_id, _curr_region); | |
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3409 } |
342 | 3410 clear_region_fields(); |
3411 } | |
3412 | |
3413 void CMTask::clear_region_fields() { | |
3414 // Values for these three fields that indicate that we're not | |
3415 // holding on to a region. | |
3416 _curr_region = NULL; | |
3417 _finger = NULL; | |
3418 _region_limit = NULL; | |
3419 | |
3420 _region_finger = NULL; | |
3421 } | |
3422 | |
3771 | 3423 void CMTask::set_cm_oop_closure(G1CMOopClosure* cm_oop_closure) { |
3424 if (cm_oop_closure == NULL) { | |
3425 assert(_cm_oop_closure != NULL, "invariant"); | |
3426 } else { | |
3427 assert(_cm_oop_closure == NULL, "invariant"); | |
3428 } | |
3429 _cm_oop_closure = cm_oop_closure; | |
3430 } | |
3431 | |
342 | 3432 void CMTask::reset(CMBitMap* nextMarkBitMap) { |
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3433 guarantee(nextMarkBitMap != NULL, "invariant"); |
342 | 3434 |
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3435 if (_cm->verbose_low()) { |
342 | 3436 gclog_or_tty->print_cr("[%d] resetting", _task_id); |
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3437 } |
342 | 3438 |
3439 _nextMarkBitMap = nextMarkBitMap; | |
3440 clear_region_fields(); | |
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3441 assert(_aborted_region.is_empty(), "should have been cleared"); |
342 | 3442 |
3443 _calls = 0; | |
3444 _elapsed_time_ms = 0.0; | |
3445 _termination_time_ms = 0.0; | |
3446 _termination_start_time_ms = 0.0; | |
3447 | |
3448 #if _MARKING_STATS_ | |
3449 _local_pushes = 0; | |
3450 _local_pops = 0; | |
3451 _local_max_size = 0; | |
3452 _objs_scanned = 0; | |
3453 _global_pushes = 0; | |
3454 _global_pops = 0; | |
3455 _global_max_size = 0; | |
3456 _global_transfers_to = 0; | |
3457 _global_transfers_from = 0; | |
3458 _region_stack_pops = 0; | |
3459 _regions_claimed = 0; | |
3460 _objs_found_on_bitmap = 0; | |
3461 _satb_buffers_processed = 0; | |
3462 _steal_attempts = 0; | |
3463 _steals = 0; | |
3464 _aborted = 0; | |
3465 _aborted_overflow = 0; | |
3466 _aborted_cm_aborted = 0; | |
3467 _aborted_yield = 0; | |
3468 _aborted_timed_out = 0; | |
3469 _aborted_satb = 0; | |
3470 _aborted_termination = 0; | |
3471 #endif // _MARKING_STATS_ | |
3472 } | |
3473 | |
3474 bool CMTask::should_exit_termination() { | |
3475 regular_clock_call(); | |
3476 // This is called when we are in the termination protocol. We should | |
3477 // quit if, for some reason, this task wants to abort or the global | |
3478 // stack is not empty (this means that we can get work from it). | |
3479 return !_cm->mark_stack_empty() || has_aborted(); | |
3480 } | |
3481 | |
3482 void CMTask::reached_limit() { | |
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3483 assert(_words_scanned >= _words_scanned_limit || |
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3484 _refs_reached >= _refs_reached_limit , |
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3485 "shouldn't have been called otherwise"); |
342 | 3486 regular_clock_call(); |
3487 } | |
3488 | |
3489 void CMTask::regular_clock_call() { | |
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3490 if (has_aborted()) return; |
342 | 3491 |
3492 // First, we need to recalculate the words scanned and refs reached | |
3493 // limits for the next clock call. | |
3494 recalculate_limits(); | |
3495 | |
3496 // During the regular clock call we do the following | |
3497 | |
3498 // (1) If an overflow has been flagged, then we abort. | |
3499 if (_cm->has_overflown()) { | |
3500 set_has_aborted(); | |
3501 return; | |
3502 } | |
3503 | |
3504 // If we are not concurrent (i.e. we're doing remark) we don't need | |
3505 // to check anything else. The other steps are only needed during | |
3506 // the concurrent marking phase. | |
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3507 if (!concurrent()) return; |
342 | 3508 |
3509 // (2) If marking has been aborted for Full GC, then we also abort. | |
3510 if (_cm->has_aborted()) { | |
3511 set_has_aborted(); | |
3512 statsOnly( ++_aborted_cm_aborted ); | |
3513 return; | |
3514 } | |
3515 | |
3516 double curr_time_ms = os::elapsedVTime() * 1000.0; | |
3517 | |
3518 // (3) If marking stats are enabled, then we update the step history. | |
3519 #if _MARKING_STATS_ | |
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3520 if (_words_scanned >= _words_scanned_limit) { |
342 | 3521 ++_clock_due_to_scanning; |
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3522 } |
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3523 if (_refs_reached >= _refs_reached_limit) { |
342 | 3524 ++_clock_due_to_marking; |
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3525 } |
342 | 3526 |
3527 double last_interval_ms = curr_time_ms - _interval_start_time_ms; | |
3528 _interval_start_time_ms = curr_time_ms; | |
3529 _all_clock_intervals_ms.add(last_interval_ms); | |
3530 | |
3531 if (_cm->verbose_medium()) { | |
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3532 gclog_or_tty->print_cr("[%d] regular clock, interval = %1.2lfms, " |
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3533 "scanned = %d%s, refs reached = %d%s", |
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3534 _task_id, last_interval_ms, |
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3535 _words_scanned, |
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3536 (_words_scanned >= _words_scanned_limit) ? " (*)" : "", |
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3537 _refs_reached, |
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3538 (_refs_reached >= _refs_reached_limit) ? " (*)" : ""); |
342 | 3539 } |
3540 #endif // _MARKING_STATS_ | |
3541 | |
3542 // (4) We check whether we should yield. If we have to, then we abort. | |
3543 if (_cm->should_yield()) { | |
3544 // We should yield. To do this we abort the task. The caller is | |
3545 // responsible for yielding. | |
3546 set_has_aborted(); | |
3547 statsOnly( ++_aborted_yield ); | |
3548 return; | |
3549 } | |
3550 | |
3551 // (5) We check whether we've reached our time quota. If we have, | |
3552 // then we abort. | |
3553 double elapsed_time_ms = curr_time_ms - _start_time_ms; | |
3554 if (elapsed_time_ms > _time_target_ms) { | |
3555 set_has_aborted(); | |
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3556 _has_timed_out = true; |
342 | 3557 statsOnly( ++_aborted_timed_out ); |
3558 return; | |
3559 } | |
3560 | |
3561 // (6) Finally, we check whether there are enough completed STAB | |
3562 // buffers available for processing. If there are, we abort. | |
3563 SATBMarkQueueSet& satb_mq_set = JavaThread::satb_mark_queue_set(); | |
3564 if (!_draining_satb_buffers && satb_mq_set.process_completed_buffers()) { | |
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3565 if (_cm->verbose_low()) { |
342 | 3566 gclog_or_tty->print_cr("[%d] aborting to deal with pending SATB buffers", |
3567 _task_id); | |
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3568 } |
342 | 3569 // we do need to process SATB buffers, we'll abort and restart |
3570 // the marking task to do so | |
3571 set_has_aborted(); | |
3572 statsOnly( ++_aborted_satb ); | |
3573 return; | |
3574 } | |
3575 } | |
3576 | |
3577 void CMTask::recalculate_limits() { | |
3578 _real_words_scanned_limit = _words_scanned + words_scanned_period; | |
3579 _words_scanned_limit = _real_words_scanned_limit; | |
3580 | |
3581 _real_refs_reached_limit = _refs_reached + refs_reached_period; | |
3582 _refs_reached_limit = _real_refs_reached_limit; | |
3583 } | |
3584 | |
3585 void CMTask::decrease_limits() { | |
3586 // This is called when we believe that we're going to do an infrequent | |
3587 // operation which will increase the per byte scanned cost (i.e. move | |
3588 // entries to/from the global stack). It basically tries to decrease the | |
3589 // scanning limit so that the clock is called earlier. | |
3590 | |
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3591 if (_cm->verbose_medium()) { |
342 | 3592 gclog_or_tty->print_cr("[%d] decreasing limits", _task_id); |
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3593 } |
342 | 3594 |
3595 _words_scanned_limit = _real_words_scanned_limit - | |
3596 3 * words_scanned_period / 4; | |
3597 _refs_reached_limit = _real_refs_reached_limit - | |
3598 3 * refs_reached_period / 4; | |
3599 } | |
3600 | |
3601 void CMTask::move_entries_to_global_stack() { | |
3602 // local array where we'll store the entries that will be popped | |
3603 // from the local queue | |
3604 oop buffer[global_stack_transfer_size]; | |
3605 | |
3606 int n = 0; | |
3607 oop obj; | |
3608 while (n < global_stack_transfer_size && _task_queue->pop_local(obj)) { | |
3609 buffer[n] = obj; | |
3610 ++n; | |
3611 } | |
3612 | |
3613 if (n > 0) { | |
3614 // we popped at least one entry from the local queue | |
3615 | |
3616 statsOnly( ++_global_transfers_to; _local_pops += n ); | |
3617 | |
3618 if (!_cm->mark_stack_push(buffer, n)) { | |
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3619 if (_cm->verbose_low()) { |
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3620 gclog_or_tty->print_cr("[%d] aborting due to global stack overflow", |
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3621 _task_id); |
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3622 } |
342 | 3623 set_has_aborted(); |
3624 } else { | |
3625 // the transfer was successful | |
3626 | |
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3627 if (_cm->verbose_medium()) { |
342 | 3628 gclog_or_tty->print_cr("[%d] pushed %d entries to the global stack", |
3629 _task_id, n); | |
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3630 } |
342 | 3631 statsOnly( int tmp_size = _cm->mark_stack_size(); |
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3632 if (tmp_size > _global_max_size) { |
342 | 3633 _global_max_size = tmp_size; |
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3634 } |
342 | 3635 _global_pushes += n ); |
3636 } | |
3637 } | |
3638 | |
3639 // this operation was quite expensive, so decrease the limits | |
3640 decrease_limits(); | |
3641 } | |
3642 | |
3643 void CMTask::get_entries_from_global_stack() { | |
3644 // local array where we'll store the entries that will be popped | |
3645 // from the global stack. | |
3646 oop buffer[global_stack_transfer_size]; | |
3647 int n; | |
3648 _cm->mark_stack_pop(buffer, global_stack_transfer_size, &n); | |
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3649 assert(n <= global_stack_transfer_size, |
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3650 "we should not pop more than the given limit"); |
342 | 3651 if (n > 0) { |
3652 // yes, we did actually pop at least one entry | |
3653 | |
3654 statsOnly( ++_global_transfers_from; _global_pops += n ); | |
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3655 if (_cm->verbose_medium()) { |
342 | 3656 gclog_or_tty->print_cr("[%d] popped %d entries from the global stack", |
3657 _task_id, n); | |
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3658 } |
342 | 3659 for (int i = 0; i < n; ++i) { |
3660 bool success = _task_queue->push(buffer[i]); | |
3661 // We only call this when the local queue is empty or under a | |
3662 // given target limit. So, we do not expect this push to fail. | |
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3663 assert(success, "invariant"); |
342 | 3664 } |
3665 | |
3666 statsOnly( int tmp_size = _task_queue->size(); | |
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3667 if (tmp_size > _local_max_size) { |
342 | 3668 _local_max_size = tmp_size; |
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3669 } |
342 | 3670 _local_pushes += n ); |
3671 } | |
3672 | |
3673 // this operation was quite expensive, so decrease the limits | |
3674 decrease_limits(); | |
3675 } | |
3676 | |
3677 void CMTask::drain_local_queue(bool partially) { | |
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3678 if (has_aborted()) return; |
342 | 3679 |
3680 // Decide what the target size is, depending whether we're going to | |
3681 // drain it partially (so that other tasks can steal if they run out | |
3682 // of things to do) or totally (at the very end). | |
3683 size_t target_size; | |
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3684 if (partially) { |
342 | 3685 target_size = MIN2((size_t)_task_queue->max_elems()/3, GCDrainStackTargetSize); |
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3686 } else { |
342 | 3687 target_size = 0; |
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3688 } |
342 | 3689 |
3690 if (_task_queue->size() > target_size) { | |
3776
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3691 if (_cm->verbose_high()) { |
342 | 3692 gclog_or_tty->print_cr("[%d] draining local queue, target size = %d", |
3693 _task_id, target_size); | |
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3694 } |
342 | 3695 |
3696 oop obj; | |
3697 bool ret = _task_queue->pop_local(obj); | |
3698 while (ret) { | |
3699 statsOnly( ++_local_pops ); | |
3700 | |
3776
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3701 if (_cm->verbose_high()) { |
342 | 3702 gclog_or_tty->print_cr("[%d] popped "PTR_FORMAT, _task_id, |
3703 (void*) obj); | |
3776
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3704 } |
342 | 3705 |
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3706 assert(_g1h->is_in_g1_reserved((HeapWord*) obj), "invariant" ); |
2361 | 3707 assert(!_g1h->is_on_master_free_list( |
2152 | 3708 _g1h->heap_region_containing((HeapWord*) obj)), "invariant"); |
342 | 3709 |
3710 scan_object(obj); | |
3711 | |
3776
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3712 if (_task_queue->size() <= target_size || has_aborted()) { |
342 | 3713 ret = false; |
3776
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3714 } else { |
342 | 3715 ret = _task_queue->pop_local(obj); |
3776
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3716 } |
342 | 3717 } |
3718 | |
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3719 if (_cm->verbose_high()) { |
342 | 3720 gclog_or_tty->print_cr("[%d] drained local queue, size = %d", |
3721 _task_id, _task_queue->size()); | |
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3722 } |
342 | 3723 } |
3724 } | |
3725 | |
3726 void CMTask::drain_global_stack(bool partially) { | |
3776
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3727 if (has_aborted()) return; |
342 | 3728 |
3729 // We have a policy to drain the local queue before we attempt to | |
3730 // drain the global stack. | |
1023
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3731 assert(partially || _task_queue->size() == 0, "invariant"); |
342 | 3732 |
3733 // Decide what the target size is, depending whether we're going to | |
3734 // drain it partially (so that other tasks can steal if they run out | |
3735 // of things to do) or totally (at the very end). Notice that, | |
3736 // because we move entries from the global stack in chunks or | |
3737 // because another task might be doing the same, we might in fact | |
3738 // drop below the target. But, this is not a problem. | |
3739 size_t target_size; | |
3776
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3740 if (partially) { |
342 | 3741 target_size = _cm->partial_mark_stack_size_target(); |
3776
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3742 } else { |
342 | 3743 target_size = 0; |
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3744 } |
342 | 3745 |
3746 if (_cm->mark_stack_size() > target_size) { | |
3776
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3747 if (_cm->verbose_low()) { |
342 | 3748 gclog_or_tty->print_cr("[%d] draining global_stack, target size %d", |
3749 _task_id, target_size); | |
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3750 } |
342 | 3751 |
3752 while (!has_aborted() && _cm->mark_stack_size() > target_size) { | |
3753 get_entries_from_global_stack(); | |
3754 drain_local_queue(partially); | |
3755 } | |
3756 | |
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3757 if (_cm->verbose_low()) { |
342 | 3758 gclog_or_tty->print_cr("[%d] drained global stack, size = %d", |
3759 _task_id, _cm->mark_stack_size()); | |
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3760 } |
342 | 3761 } |
3762 } | |
3763 | |
3764 // SATB Queue has several assumptions on whether to call the par or | |
3765 // non-par versions of the methods. this is why some of the code is | |
3766 // replicated. We should really get rid of the single-threaded version | |
3767 // of the code to simplify things. | |
3768 void CMTask::drain_satb_buffers() { | |
3776
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3769 if (has_aborted()) return; |
342 | 3770 |
3771 // We set this so that the regular clock knows that we're in the | |
3772 // middle of draining buffers and doesn't set the abort flag when it | |
3773 // notices that SATB buffers are available for draining. It'd be | |
3774 // very counter productive if it did that. :-) | |
3775 _draining_satb_buffers = true; | |
3776 | |
3777 CMObjectClosure oc(this); | |
3778 SATBMarkQueueSet& satb_mq_set = JavaThread::satb_mark_queue_set(); | |
3776
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3779 if (G1CollectedHeap::use_parallel_gc_threads()) { |
342 | 3780 satb_mq_set.set_par_closure(_task_id, &oc); |
3776
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3781 } else { |
342 | 3782 satb_mq_set.set_closure(&oc); |
3776
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3783 } |
342 | 3784 |
3785 // This keeps claiming and applying the closure to completed buffers | |
3786 // until we run out of buffers or we need to abort. | |
1833
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3787 if (G1CollectedHeap::use_parallel_gc_threads()) { |
342 | 3788 while (!has_aborted() && |
3789 satb_mq_set.par_apply_closure_to_completed_buffer(_task_id)) { | |
3776
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3790 if (_cm->verbose_medium()) { |
342 | 3791 gclog_or_tty->print_cr("[%d] processed an SATB buffer", _task_id); |
3776
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3792 } |
342 | 3793 statsOnly( ++_satb_buffers_processed ); |
3794 regular_clock_call(); | |
3795 } | |
3796 } else { | |
3797 while (!has_aborted() && | |
3798 satb_mq_set.apply_closure_to_completed_buffer()) { | |
3776
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3799 if (_cm->verbose_medium()) { |
342 | 3800 gclog_or_tty->print_cr("[%d] processed an SATB buffer", _task_id); |
3776
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3801 } |
342 | 3802 statsOnly( ++_satb_buffers_processed ); |
3803 regular_clock_call(); | |
3804 } | |
3805 } | |
3806 | |
3807 if (!concurrent() && !has_aborted()) { | |
3808 // We should only do this during remark. | |
3776
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3809 if (G1CollectedHeap::use_parallel_gc_threads()) { |
342 | 3810 satb_mq_set.par_iterate_closure_all_threads(_task_id); |
3776
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3811 } else { |
342 | 3812 satb_mq_set.iterate_closure_all_threads(); |
3776
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|
3813 } |
342 | 3814 } |
3815 | |
3816 _draining_satb_buffers = false; | |
3817 | |
1023
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|
3818 assert(has_aborted() || |
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|
3819 concurrent() || |
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3820 satb_mq_set.completed_buffers_num() == 0, "invariant"); |
342 | 3821 |
3776
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|
3822 if (G1CollectedHeap::use_parallel_gc_threads()) { |
342 | 3823 satb_mq_set.set_par_closure(_task_id, NULL); |
3776
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3824 } else { |
342 | 3825 satb_mq_set.set_closure(NULL); |
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3826 } |
342 | 3827 |
3828 // again, this was a potentially expensive operation, decrease the | |
3829 // limits to get the regular clock call early | |
3830 decrease_limits(); | |
3831 } | |
3832 | |
3833 void CMTask::drain_region_stack(BitMapClosure* bc) { | |
3776
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|
3834 if (has_aborted()) return; |
342 | 3835 |
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|
3836 assert(_region_finger == NULL, |
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|
3837 "it should be NULL when we're not scanning a region"); |
342 | 3838 |
1835
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|
3839 if (!_cm->region_stack_empty() || !_aborted_region.is_empty()) { |
3776
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|
3840 if (_cm->verbose_low()) { |
342 | 3841 gclog_or_tty->print_cr("[%d] draining region stack, size = %d", |
3842 _task_id, _cm->region_stack_size()); | |
3776
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3843 } |
342 | 3844 |
1835
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|
3845 MemRegion mr; |
4805b9f4779e
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|
3846 |
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|
3847 if (!_aborted_region.is_empty()) { |
4805b9f4779e
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|
3848 mr = _aborted_region; |
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3849 _aborted_region = MemRegion(); |
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|
3850 |
3776
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changeset
|
3851 if (_cm->verbose_low()) { |
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|
3852 gclog_or_tty->print_cr("[%d] scanning aborted region " |
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|
3853 "[ " PTR_FORMAT ", " PTR_FORMAT " )", |
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|
3854 _task_id, mr.start(), mr.end()); |
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|
3855 } |
1835
4805b9f4779e
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|
3856 } else { |
4805b9f4779e
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changeset
|
3857 mr = _cm->region_stack_pop_lock_free(); |
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|
3858 // it returns MemRegion() if the pop fails |
4805b9f4779e
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|
3859 statsOnly(if (mr.start() != NULL) ++_region_stack_pops ); |
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|
3860 } |
342 | 3861 |
3862 while (mr.start() != NULL) { | |
3776
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|
3863 if (_cm->verbose_medium()) { |
342 | 3864 gclog_or_tty->print_cr("[%d] we are scanning region " |
3865 "["PTR_FORMAT", "PTR_FORMAT")", | |
3866 _task_id, mr.start(), mr.end()); | |
3776
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|
3867 } |
1835
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|
3868 |
1023
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|
3869 assert(mr.end() <= _cm->finger(), |
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changeset
|
3870 "otherwise the region shouldn't be on the stack"); |
342 | 3871 assert(!mr.is_empty(), "Only non-empty regions live on the region stack"); |
3872 if (_nextMarkBitMap->iterate(bc, mr)) { | |
1023
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|
3873 assert(!has_aborted(), |
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|
3874 "cannot abort the task without aborting the bitmap iteration"); |
342 | 3875 |
3876 // We finished iterating over the region without aborting. | |
3877 regular_clock_call(); | |
3776
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|
3878 if (has_aborted()) { |
342 | 3879 mr = MemRegion(); |
3776
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|
3880 } else { |
1835
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|
3881 mr = _cm->region_stack_pop_lock_free(); |
342 | 3882 // it returns MemRegion() if the pop fails |
3883 statsOnly(if (mr.start() != NULL) ++_region_stack_pops ); | |
3884 } | |
3885 } else { | |
1023
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|
3886 assert(has_aborted(), "currently the only way to do so"); |
342 | 3887 |
3888 // The only way to abort the bitmap iteration is to return | |
3889 // false from the do_bit() method. However, inside the | |
3890 // do_bit() method we move the _region_finger to point to the | |
3891 // object currently being looked at. So, if we bail out, we | |
3892 // have definitely set _region_finger to something non-null. | |
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|
3893 assert(_region_finger != NULL, "invariant"); |
342 | 3894 |
1835
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|
3895 // Make sure that any previously aborted region has been |
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|
3896 // cleared. |
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diff
changeset
|
3897 assert(_aborted_region.is_empty(), "aborted region not cleared"); |
4805b9f4779e
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|
3898 |
342 | 3899 // The iteration was actually aborted. So now _region_finger |
3900 // points to the address of the object we last scanned. If we | |
3901 // leave it there, when we restart this task, we will rescan | |
3902 // the object. It is easy to avoid this. We move the finger by | |
3903 // enough to point to the next possible object header (the | |
3904 // bitmap knows by how much we need to move it as it knows its | |
3905 // granularity). | |
3906 MemRegion newRegion = | |
3907 MemRegion(_nextMarkBitMap->nextWord(_region_finger), mr.end()); | |
3908 | |
3909 if (!newRegion.is_empty()) { | |
3910 if (_cm->verbose_low()) { | |
1835
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|
3911 gclog_or_tty->print_cr("[%d] recording unscanned region" |
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|
3912 "[" PTR_FORMAT "," PTR_FORMAT ") in CMTask", |
342 | 3913 _task_id, |
3914 newRegion.start(), newRegion.end()); | |
3915 } | |
1835
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johnc
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|
3916 // Now record the part of the region we didn't scan to |
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|
3917 // make sure this task scans it later. |
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|
3918 _aborted_region = newRegion; |
342 | 3919 } |
3920 // break from while | |
3921 mr = MemRegion(); | |
3922 } | |
3923 _region_finger = NULL; | |
3924 } | |
3925 | |
3776
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|
3926 if (_cm->verbose_low()) { |
342 | 3927 gclog_or_tty->print_cr("[%d] drained region stack, size = %d", |
3928 _task_id, _cm->region_stack_size()); | |
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|
3929 } |
342 | 3930 } |
3931 } | |
3932 | |
3933 void CMTask::print_stats() { | |
3934 gclog_or_tty->print_cr("Marking Stats, task = %d, calls = %d", | |
3935 _task_id, _calls); | |
3936 gclog_or_tty->print_cr(" Elapsed time = %1.2lfms, Termination time = %1.2lfms", | |
3937 _elapsed_time_ms, _termination_time_ms); | |
3938 gclog_or_tty->print_cr(" Step Times (cum): num = %d, avg = %1.2lfms, sd = %1.2lfms", | |
3939 _step_times_ms.num(), _step_times_ms.avg(), | |
3940 _step_times_ms.sd()); | |
3941 gclog_or_tty->print_cr(" max = %1.2lfms, total = %1.2lfms", | |
3942 _step_times_ms.maximum(), _step_times_ms.sum()); | |
3943 | |
3944 #if _MARKING_STATS_ | |
3945 gclog_or_tty->print_cr(" Clock Intervals (cum): num = %d, avg = %1.2lfms, sd = %1.2lfms", | |
3946 _all_clock_intervals_ms.num(), _all_clock_intervals_ms.avg(), | |
3947 _all_clock_intervals_ms.sd()); | |
3948 gclog_or_tty->print_cr(" max = %1.2lfms, total = %1.2lfms", | |
3949 _all_clock_intervals_ms.maximum(), | |
3950 _all_clock_intervals_ms.sum()); | |
3951 gclog_or_tty->print_cr(" Clock Causes (cum): scanning = %d, marking = %d", | |
3952 _clock_due_to_scanning, _clock_due_to_marking); | |
3953 gclog_or_tty->print_cr(" Objects: scanned = %d, found on the bitmap = %d", | |
3954 _objs_scanned, _objs_found_on_bitmap); | |
3955 gclog_or_tty->print_cr(" Local Queue: pushes = %d, pops = %d, max size = %d", | |
3956 _local_pushes, _local_pops, _local_max_size); | |
3957 gclog_or_tty->print_cr(" Global Stack: pushes = %d, pops = %d, max size = %d", | |
3958 _global_pushes, _global_pops, _global_max_size); | |
3959 gclog_or_tty->print_cr(" transfers to = %d, transfers from = %d", | |
3960 _global_transfers_to,_global_transfers_from); | |
3961 gclog_or_tty->print_cr(" Regions: claimed = %d, Region Stack: pops = %d", | |
3962 _regions_claimed, _region_stack_pops); | |
3963 gclog_or_tty->print_cr(" SATB buffers: processed = %d", _satb_buffers_processed); | |
3964 gclog_or_tty->print_cr(" Steals: attempts = %d, successes = %d", | |
3965 _steal_attempts, _steals); | |
3966 gclog_or_tty->print_cr(" Aborted: %d, due to", _aborted); | |
3967 gclog_or_tty->print_cr(" overflow: %d, global abort: %d, yield: %d", | |
3968 _aborted_overflow, _aborted_cm_aborted, _aborted_yield); | |
3969 gclog_or_tty->print_cr(" time out: %d, SATB: %d, termination: %d", | |
3970 _aborted_timed_out, _aborted_satb, _aborted_termination); | |
3971 #endif // _MARKING_STATS_ | |
3972 } | |
3973 | |
3974 /***************************************************************************** | |
3975 | |
3976 The do_marking_step(time_target_ms) method is the building block | |
3977 of the parallel marking framework. It can be called in parallel | |
3978 with other invocations of do_marking_step() on different tasks | |
3979 (but only one per task, obviously) and concurrently with the | |
3980 mutator threads, or during remark, hence it eliminates the need | |
3981 for two versions of the code. When called during remark, it will | |
3982 pick up from where the task left off during the concurrent marking | |
3983 phase. Interestingly, tasks are also claimable during evacuation | |
3984 pauses too, since do_marking_step() ensures that it aborts before | |
3985 it needs to yield. | |
3986 | |
3987 The data structures that is uses to do marking work are the | |
3988 following: | |
3989 | |
3990 (1) Marking Bitmap. If there are gray objects that appear only | |
3991 on the bitmap (this happens either when dealing with an overflow | |
3992 or when the initial marking phase has simply marked the roots | |
3993 and didn't push them on the stack), then tasks claim heap | |
3994 regions whose bitmap they then scan to find gray objects. A | |
3995 global finger indicates where the end of the last claimed region | |
3996 is. A local finger indicates how far into the region a task has | |
3997 scanned. The two fingers are used to determine how to gray an | |
3998 object (i.e. whether simply marking it is OK, as it will be | |
3999 visited by a task in the future, or whether it needs to be also | |
4000 pushed on a stack). | |
4001 | |
4002 (2) Local Queue. The local queue of the task which is accessed | |
4003 reasonably efficiently by the task. Other tasks can steal from | |
4004 it when they run out of work. Throughout the marking phase, a | |
4005 task attempts to keep its local queue short but not totally | |
4006 empty, so that entries are available for stealing by other | |
4007 tasks. Only when there is no more work, a task will totally | |
4008 drain its local queue. | |
4009 | |
4010 (3) Global Mark Stack. This handles local queue overflow. During | |
4011 marking only sets of entries are moved between it and the local | |
4012 queues, as access to it requires a mutex and more fine-grain | |
4013 interaction with it which might cause contention. If it | |
4014 overflows, then the marking phase should restart and iterate | |
4015 over the bitmap to identify gray objects. Throughout the marking | |
4016 phase, tasks attempt to keep the global mark stack at a small | |
4017 length but not totally empty, so that entries are available for | |
4018 popping by other tasks. Only when there is no more work, tasks | |
4019 will totally drain the global mark stack. | |
4020 | |
4021 (4) Global Region Stack. Entries on it correspond to areas of | |
4022 the bitmap that need to be scanned since they contain gray | |
4023 objects. Pushes on the region stack only happen during | |
4024 evacuation pauses and typically correspond to areas covered by | |
4025 GC LABS. If it overflows, then the marking phase should restart | |
4026 and iterate over the bitmap to identify gray objects. Tasks will | |
4027 try to totally drain the region stack as soon as possible. | |
4028 | |
4029 (5) SATB Buffer Queue. This is where completed SATB buffers are | |
4030 made available. Buffers are regularly removed from this queue | |
4031 and scanned for roots, so that the queue doesn't get too | |
4032 long. During remark, all completed buffers are processed, as | |
4033 well as the filled in parts of any uncompleted buffers. | |
4034 | |
4035 The do_marking_step() method tries to abort when the time target | |
4036 has been reached. There are a few other cases when the | |
4037 do_marking_step() method also aborts: | |
4038 | |
4039 (1) When the marking phase has been aborted (after a Full GC). | |
4040 | |
4041 (2) When a global overflow (either on the global stack or the | |
4042 region stack) has been triggered. Before the task aborts, it | |
4043 will actually sync up with the other tasks to ensure that all | |
4044 the marking data structures (local queues, stacks, fingers etc.) | |
4045 are re-initialised so that when do_marking_step() completes, | |
4046 the marking phase can immediately restart. | |
4047 | |
4048 (3) When enough completed SATB buffers are available. The | |
4049 do_marking_step() method only tries to drain SATB buffers right | |
4050 at the beginning. So, if enough buffers are available, the | |
4051 marking step aborts and the SATB buffers are processed at | |
4052 the beginning of the next invocation. | |
4053 | |
4054 (4) To yield. when we have to yield then we abort and yield | |
4055 right at the end of do_marking_step(). This saves us from a lot | |
4056 of hassle as, by yielding we might allow a Full GC. If this | |
4057 happens then objects will be compacted underneath our feet, the | |
4058 heap might shrink, etc. We save checking for this by just | |
4059 aborting and doing the yield right at the end. | |
4060 | |
4061 From the above it follows that the do_marking_step() method should | |
4062 be called in a loop (or, otherwise, regularly) until it completes. | |
4063 | |
4064 If a marking step completes without its has_aborted() flag being | |
4065 true, it means it has completed the current marking phase (and | |
4066 also all other marking tasks have done so and have all synced up). | |
4067 | |
4068 A method called regular_clock_call() is invoked "regularly" (in | |
4069 sub ms intervals) throughout marking. It is this clock method that | |
4070 checks all the abort conditions which were mentioned above and | |
4071 decides when the task should abort. A work-based scheme is used to | |
4072 trigger this clock method: when the number of object words the | |
4073 marking phase has scanned or the number of references the marking | |
4074 phase has visited reach a given limit. Additional invocations to | |
4075 the method clock have been planted in a few other strategic places | |
4076 too. The initial reason for the clock method was to avoid calling | |
4077 vtime too regularly, as it is quite expensive. So, once it was in | |
4078 place, it was natural to piggy-back all the other conditions on it | |
4079 too and not constantly check them throughout the code. | |
4080 | |
4081 *****************************************************************************/ | |
4082 | |
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4083 void CMTask::do_marking_step(double time_target_ms, |
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4084 bool do_stealing, |
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4085 bool do_termination) { |
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4086 assert(time_target_ms >= 1.0, "minimum granularity is 1ms"); |
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4087 assert(concurrent() == _cm->concurrent(), "they should be the same"); |
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4088 |
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4089 assert(concurrent() || _cm->region_stack_empty(), |
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4090 "the region stack should have been cleared before remark"); |
1835
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4091 assert(concurrent() || !_cm->has_aborted_regions(), |
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4092 "aborted regions should have been cleared before remark"); |
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4093 assert(_region_finger == NULL, |
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4094 "this should be non-null only when a region is being scanned"); |
342 | 4095 |
4096 G1CollectorPolicy* g1_policy = _g1h->g1_policy(); | |
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4097 assert(_task_queues != NULL, "invariant"); |
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4098 assert(_task_queue != NULL, "invariant"); |
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4099 assert(_task_queues->queue(_task_id) == _task_queue, "invariant"); |
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4100 |
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4101 assert(!_claimed, |
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4102 "only one thread should claim this task at any one time"); |
342 | 4103 |
4104 // OK, this doesn't safeguard again all possible scenarios, as it is | |
4105 // possible for two threads to set the _claimed flag at the same | |
4106 // time. But it is only for debugging purposes anyway and it will | |
4107 // catch most problems. | |
4108 _claimed = true; | |
4109 | |
4110 _start_time_ms = os::elapsedVTime() * 1000.0; | |
4111 statsOnly( _interval_start_time_ms = _start_time_ms ); | |
4112 | |
4113 double diff_prediction_ms = | |
4114 g1_policy->get_new_prediction(&_marking_step_diffs_ms); | |
4115 _time_target_ms = time_target_ms - diff_prediction_ms; | |
4116 | |
4117 // set up the variables that are used in the work-based scheme to | |
4118 // call the regular clock method | |
4119 _words_scanned = 0; | |
4120 _refs_reached = 0; | |
4121 recalculate_limits(); | |
4122 | |
4123 // clear all flags | |
4124 clear_has_aborted(); | |
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4125 _has_timed_out = false; |
342 | 4126 _draining_satb_buffers = false; |
4127 | |
4128 ++_calls; | |
4129 | |
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4130 if (_cm->verbose_low()) { |
342 | 4131 gclog_or_tty->print_cr("[%d] >>>>>>>>>> START, call = %d, " |
4132 "target = %1.2lfms >>>>>>>>>>", | |
4133 _task_id, _calls, _time_target_ms); | |
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4134 } |
342 | 4135 |
4136 // Set up the bitmap and oop closures. Anything that uses them is | |
4137 // eventually called from this method, so it is OK to allocate these | |
4138 // statically. | |
4139 CMBitMapClosure bitmap_closure(this, _cm, _nextMarkBitMap); | |
3771 | 4140 G1CMOopClosure cm_oop_closure(_g1h, _cm, this); |
4141 set_cm_oop_closure(&cm_oop_closure); | |
342 | 4142 |
4143 if (_cm->has_overflown()) { | |
4144 // This can happen if the region stack or the mark stack overflows | |
4145 // during a GC pause and this task, after a yield point, | |
4146 // restarts. We have to abort as we need to get into the overflow | |
4147 // protocol which happens right at the end of this task. | |
4148 set_has_aborted(); | |
4149 } | |
4150 | |
4151 // First drain any available SATB buffers. After this, we will not | |
4152 // look at SATB buffers before the next invocation of this method. | |
4153 // If enough completed SATB buffers are queued up, the regular clock | |
4154 // will abort this task so that it restarts. | |
4155 drain_satb_buffers(); | |
4156 // ...then partially drain the local queue and the global stack | |
4157 drain_local_queue(true); | |
4158 drain_global_stack(true); | |
4159 | |
4160 // Then totally drain the region stack. We will not look at | |
4161 // it again before the next invocation of this method. Entries on | |
4162 // the region stack are only added during evacuation pauses, for | |
4163 // which we have to yield. When we do, we abort the task anyway so | |
4164 // it will look at the region stack again when it restarts. | |
4165 bitmap_closure.set_scanning_heap_region(false); | |
4166 drain_region_stack(&bitmap_closure); | |
4167 // ...then partially drain the local queue and the global stack | |
4168 drain_local_queue(true); | |
4169 drain_global_stack(true); | |
4170 | |
4171 do { | |
4172 if (!has_aborted() && _curr_region != NULL) { | |
4173 // This means that we're already holding on to a region. | |
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4174 assert(_finger != NULL, "if region is not NULL, then the finger " |
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4175 "should not be NULL either"); |
342 | 4176 |
4177 // We might have restarted this task after an evacuation pause | |
4178 // which might have evacuated the region we're holding on to | |
4179 // underneath our feet. Let's read its limit again to make sure | |
4180 // that we do not iterate over a region of the heap that | |
4181 // contains garbage (update_region_limit() will also move | |
4182 // _finger to the start of the region if it is found empty). | |
4183 update_region_limit(); | |
4184 // We will start from _finger not from the start of the region, | |
4185 // as we might be restarting this task after aborting half-way | |
4186 // through scanning this region. In this case, _finger points to | |
4187 // the address where we last found a marked object. If this is a | |
4188 // fresh region, _finger points to start(). | |
4189 MemRegion mr = MemRegion(_finger, _region_limit); | |
4190 | |
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4191 if (_cm->verbose_low()) { |
342 | 4192 gclog_or_tty->print_cr("[%d] we're scanning part " |
4193 "["PTR_FORMAT", "PTR_FORMAT") " | |
4194 "of region "PTR_FORMAT, | |
4195 _task_id, _finger, _region_limit, _curr_region); | |
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4196 } |
342 | 4197 |
4198 // Let's iterate over the bitmap of the part of the | |
4199 // region that is left. | |
4200 bitmap_closure.set_scanning_heap_region(true); | |
4201 if (mr.is_empty() || | |
4202 _nextMarkBitMap->iterate(&bitmap_closure, mr)) { | |
4203 // We successfully completed iterating over the region. Now, | |
4204 // let's give up the region. | |
4205 giveup_current_region(); | |
4206 regular_clock_call(); | |
4207 } else { | |
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4208 assert(has_aborted(), "currently the only way to do so"); |
342 | 4209 // The only way to abort the bitmap iteration is to return |
4210 // false from the do_bit() method. However, inside the | |
4211 // do_bit() method we move the _finger to point to the | |
4212 // object currently being looked at. So, if we bail out, we | |
4213 // have definitely set _finger to something non-null. | |
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4214 assert(_finger != NULL, "invariant"); |
342 | 4215 |
4216 // Region iteration was actually aborted. So now _finger | |
4217 // points to the address of the object we last scanned. If we | |
4218 // leave it there, when we restart this task, we will rescan | |
4219 // the object. It is easy to avoid this. We move the finger by | |
4220 // enough to point to the next possible object header (the | |
4221 // bitmap knows by how much we need to move it as it knows its | |
4222 // granularity). | |
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4223 assert(_finger < _region_limit, "invariant"); |
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4224 HeapWord* new_finger = _nextMarkBitMap->nextWord(_finger); |
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4225 // Check if bitmap iteration was aborted while scanning the last object |
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4226 if (new_finger >= _region_limit) { |
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4227 giveup_current_region(); |
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4228 } else { |
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4229 move_finger_to(new_finger); |
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4230 } |
342 | 4231 } |
4232 } | |
4233 // At this point we have either completed iterating over the | |
4234 // region we were holding on to, or we have aborted. | |
4235 | |
4236 // We then partially drain the local queue and the global stack. | |
4237 // (Do we really need this?) | |
4238 drain_local_queue(true); | |
4239 drain_global_stack(true); | |
4240 | |
4241 // Read the note on the claim_region() method on why it might | |
4242 // return NULL with potentially more regions available for | |
4243 // claiming and why we have to check out_of_regions() to determine | |
4244 // whether we're done or not. | |
4245 while (!has_aborted() && _curr_region == NULL && !_cm->out_of_regions()) { | |
4246 // We are going to try to claim a new region. We should have | |
4247 // given up on the previous one. | |
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4248 // Separated the asserts so that we know which one fires. |
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4249 assert(_curr_region == NULL, "invariant"); |
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4250 assert(_finger == NULL, "invariant"); |
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4251 assert(_region_limit == NULL, "invariant"); |
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4252 if (_cm->verbose_low()) { |
342 | 4253 gclog_or_tty->print_cr("[%d] trying to claim a new region", _task_id); |
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4254 } |
342 | 4255 HeapRegion* claimed_region = _cm->claim_region(_task_id); |
4256 if (claimed_region != NULL) { | |
4257 // Yes, we managed to claim one | |
4258 statsOnly( ++_regions_claimed ); | |
4259 | |
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4260 if (_cm->verbose_low()) { |
342 | 4261 gclog_or_tty->print_cr("[%d] we successfully claimed " |
4262 "region "PTR_FORMAT, | |
4263 _task_id, claimed_region); | |
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4264 } |
342 | 4265 |
4266 setup_for_region(claimed_region); | |
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4267 assert(_curr_region == claimed_region, "invariant"); |
342 | 4268 } |
4269 // It is important to call the regular clock here. It might take | |
4270 // a while to claim a region if, for example, we hit a large | |
4271 // block of empty regions. So we need to call the regular clock | |
4272 // method once round the loop to make sure it's called | |
4273 // frequently enough. | |
4274 regular_clock_call(); | |
4275 } | |
4276 | |
4277 if (!has_aborted() && _curr_region == NULL) { | |
1023
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1022
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|
4278 assert(_cm->out_of_regions(), |
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|
4279 "at this point we should be out of regions"); |
342 | 4280 } |
4281 } while ( _curr_region != NULL && !has_aborted()); | |
4282 | |
4283 if (!has_aborted()) { | |
4284 // We cannot check whether the global stack is empty, since other | |
343
afc1ce1efe66
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diff
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|
4285 // tasks might be pushing objects to it concurrently. We also cannot |
afc1ce1efe66
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diff
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|
4286 // check if the region stack is empty because if a thread is aborting |
afc1ce1efe66
6710665: G1: guarantee(_cm->out_of_regions() && _cm->region_stack_empty() && _task_queue->size() == 0, ...)
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diff
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|
4287 // it can push a partially done region back. |
1023
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|
4288 assert(_cm->out_of_regions(), |
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|
4289 "at this point we should be out of regions"); |
342 | 4290 |
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|
4291 if (_cm->verbose_low()) { |
342 | 4292 gclog_or_tty->print_cr("[%d] all regions claimed", _task_id); |
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|
4293 } |
342 | 4294 |
4295 // Try to reduce the number of available SATB buffers so that | |
4296 // remark has less work to do. | |
4297 drain_satb_buffers(); | |
4298 } | |
4299 | |
4300 // Since we've done everything else, we can now totally drain the | |
4301 // local queue and global stack. | |
4302 drain_local_queue(false); | |
4303 drain_global_stack(false); | |
4304 | |
4305 // Attempt at work stealing from other task's queues. | |
2174
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|
4306 if (do_stealing && !has_aborted()) { |
342 | 4307 // We have not aborted. This means that we have finished all that |
4308 // we could. Let's try to do some stealing... | |
4309 | |
4310 // We cannot check whether the global stack is empty, since other | |
343
afc1ce1efe66
6710665: G1: guarantee(_cm->out_of_regions() && _cm->region_stack_empty() && _task_queue->size() == 0, ...)
iveresov
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diff
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|
4311 // tasks might be pushing objects to it concurrently. We also cannot |
afc1ce1efe66
6710665: G1: guarantee(_cm->out_of_regions() && _cm->region_stack_empty() && _task_queue->size() == 0, ...)
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diff
changeset
|
4312 // check if the region stack is empty because if a thread is aborting |
afc1ce1efe66
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|
4313 // it can push a partially done region back. |
1023
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|
4314 assert(_cm->out_of_regions() && _task_queue->size() == 0, |
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|
4315 "only way to reach here"); |
342 | 4316 |
3776
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|
4317 if (_cm->verbose_low()) { |
342 | 4318 gclog_or_tty->print_cr("[%d] starting to steal", _task_id); |
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|
4319 } |
342 | 4320 |
4321 while (!has_aborted()) { | |
4322 oop obj; | |
4323 statsOnly( ++_steal_attempts ); | |
4324 | |
4325 if (_cm->try_stealing(_task_id, &_hash_seed, obj)) { | |
3776
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|
4326 if (_cm->verbose_medium()) { |
342 | 4327 gclog_or_tty->print_cr("[%d] stolen "PTR_FORMAT" successfully", |
4328 _task_id, (void*) obj); | |
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|
4329 } |
342 | 4330 |
4331 statsOnly( ++_steals ); | |
4332 | |
1023
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|
4333 assert(_nextMarkBitMap->isMarked((HeapWord*) obj), |
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|
4334 "any stolen object should be marked"); |
342 | 4335 scan_object(obj); |
4336 | |
4337 // And since we're towards the end, let's totally drain the | |
4338 // local queue and global stack. | |
4339 drain_local_queue(false); | |
4340 drain_global_stack(false); | |
4341 } else { | |
4342 break; | |
4343 } | |
4344 } | |
4345 } | |
4346 | |
3316
cd8e33b2a8ad
7034139: G1: assert(Thread::current()->is_ConcurrentGC_thread()) failed: only a conc GC thread can call this.
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|
4347 // If we are about to wrap up and go into termination, check if we |
cd8e33b2a8ad
7034139: G1: assert(Thread::current()->is_ConcurrentGC_thread()) failed: only a conc GC thread can call this.
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|
4348 // should raise the overflow flag. |
cd8e33b2a8ad
7034139: G1: assert(Thread::current()->is_ConcurrentGC_thread()) failed: only a conc GC thread can call this.
tonyp
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|
4349 if (do_termination && !has_aborted()) { |
cd8e33b2a8ad
7034139: G1: assert(Thread::current()->is_ConcurrentGC_thread()) failed: only a conc GC thread can call this.
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|
4350 if (_cm->force_overflow()->should_force()) { |
cd8e33b2a8ad
7034139: G1: assert(Thread::current()->is_ConcurrentGC_thread()) failed: only a conc GC thread can call this.
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|
4351 _cm->set_has_overflown(); |
cd8e33b2a8ad
7034139: G1: assert(Thread::current()->is_ConcurrentGC_thread()) failed: only a conc GC thread can call this.
tonyp
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|
4352 regular_clock_call(); |
cd8e33b2a8ad
7034139: G1: assert(Thread::current()->is_ConcurrentGC_thread()) failed: only a conc GC thread can call this.
tonyp
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|
4353 } |
cd8e33b2a8ad
7034139: G1: assert(Thread::current()->is_ConcurrentGC_thread()) failed: only a conc GC thread can call this.
tonyp
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|
4354 } |
cd8e33b2a8ad
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|
4355 |
342 | 4356 // We still haven't aborted. Now, let's try to get into the |
4357 // termination protocol. | |
2174
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|
4358 if (do_termination && !has_aborted()) { |
342 | 4359 // We cannot check whether the global stack is empty, since other |
343
afc1ce1efe66
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diff
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|
4360 // tasks might be concurrently pushing objects on it. We also cannot |
afc1ce1efe66
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diff
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|
4361 // check if the region stack is empty because if a thread is aborting |
afc1ce1efe66
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|
4362 // it can push a partially done region back. |
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|
4363 // Separated the asserts so that we know which one fires. |
11d4857fe5e1
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|
4364 assert(_cm->out_of_regions(), "only way to reach here"); |
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|
4365 assert(_task_queue->size() == 0, "only way to reach here"); |
342 | 4366 |
3776
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|
4367 if (_cm->verbose_low()) { |
342 | 4368 gclog_or_tty->print_cr("[%d] starting termination protocol", _task_id); |
3776
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|
4369 } |
342 | 4370 |
4371 _termination_start_time_ms = os::elapsedVTime() * 1000.0; | |
4372 // The CMTask class also extends the TerminatorTerminator class, | |
4373 // hence its should_exit_termination() method will also decide | |
4374 // whether to exit the termination protocol or not. | |
4375 bool finished = _cm->terminator()->offer_termination(this); | |
4376 double termination_end_time_ms = os::elapsedVTime() * 1000.0; | |
4377 _termination_time_ms += | |
4378 termination_end_time_ms - _termination_start_time_ms; | |
4379 | |
4380 if (finished) { | |
4381 // We're all done. | |
4382 | |
4383 if (_task_id == 0) { | |
4384 // let's allow task 0 to do this | |
4385 if (concurrent()) { | |
1023
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|
4386 assert(_cm->concurrent_marking_in_progress(), "invariant"); |
342 | 4387 // we need to set this to false before the next |
4388 // safepoint. This way we ensure that the marking phase | |
4389 // doesn't observe any more heap expansions. | |
4390 _cm->clear_concurrent_marking_in_progress(); | |
4391 } | |
4392 } | |
4393 | |
4394 // We can now guarantee that the global stack is empty, since | |
1023
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|
4395 // all other tasks have finished. We separated the guarantees so |
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|
4396 // that, if a condition is false, we can immediately find out |
11d4857fe5e1
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|
4397 // which one. |
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|
4398 guarantee(_cm->out_of_regions(), "only way to reach here"); |
1835
4805b9f4779e
6941395: G1: Use only lock-free versions of region stack push() and pop()
johnc
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diff
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|
4399 guarantee(_aborted_region.is_empty(), "only way to reach here"); |
1023
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|
4400 guarantee(_cm->region_stack_empty(), "only way to reach here"); |
11d4857fe5e1
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|
4401 guarantee(_cm->mark_stack_empty(), "only way to reach here"); |
11d4857fe5e1
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|
4402 guarantee(_task_queue->size() == 0, "only way to reach here"); |
11d4857fe5e1
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|
4403 guarantee(!_cm->has_overflown(), "only way to reach here"); |
11d4857fe5e1
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|
4404 guarantee(!_cm->mark_stack_overflow(), "only way to reach here"); |
11d4857fe5e1
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|
4405 guarantee(!_cm->region_stack_overflow(), "only way to reach here"); |
342 | 4406 |
3776
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|
4407 if (_cm->verbose_low()) { |
342 | 4408 gclog_or_tty->print_cr("[%d] all tasks terminated", _task_id); |
3776
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|
4409 } |
342 | 4410 } else { |
4411 // Apparently there's more work to do. Let's abort this task. It | |
4412 // will restart it and we can hopefully find more things to do. | |
4413 | |
3776
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|
4414 if (_cm->verbose_low()) { |
23d434c6290d
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|
4415 gclog_or_tty->print_cr("[%d] apparently there is more work to do", |
23d434c6290d
7055073: G1: code cleanup in the concurrentMark.* files
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|
4416 _task_id); |
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|
4417 } |
342 | 4418 |
4419 set_has_aborted(); | |
4420 statsOnly( ++_aborted_termination ); | |
4421 } | |
4422 } | |
4423 | |
4424 // Mainly for debugging purposes to make sure that a pointer to the | |
4425 // closure which was statically allocated in this frame doesn't | |
4426 // escape it by accident. | |
3771 | 4427 set_cm_oop_closure(NULL); |
342 | 4428 double end_time_ms = os::elapsedVTime() * 1000.0; |
4429 double elapsed_time_ms = end_time_ms - _start_time_ms; | |
4430 // Update the step history. | |
4431 _step_times_ms.add(elapsed_time_ms); | |
4432 | |
4433 if (has_aborted()) { | |
4434 // The task was aborted for some reason. | |
4435 | |
4436 statsOnly( ++_aborted ); | |
4437 | |
2174
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|
4438 if (_has_timed_out) { |
342 | 4439 double diff_ms = elapsed_time_ms - _time_target_ms; |
4440 // Keep statistics of how well we did with respect to hitting | |
4441 // our target only if we actually timed out (if we aborted for | |
4442 // other reasons, then the results might get skewed). | |
4443 _marking_step_diffs_ms.add(diff_ms); | |
4444 } | |
4445 | |
4446 if (_cm->has_overflown()) { | |
4447 // This is the interesting one. We aborted because a global | |
4448 // overflow was raised. This means we have to restart the | |
4449 // marking phase and start iterating over regions. However, in | |
4450 // order to do this we have to make sure that all tasks stop | |
4451 // what they are doing and re-initialise in a safe manner. We | |
4452 // will achieve this with the use of two barrier sync points. | |
4453 | |
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|
4454 if (_cm->verbose_low()) { |
342 | 4455 gclog_or_tty->print_cr("[%d] detected overflow", _task_id); |
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|
4456 } |
342 | 4457 |
4458 _cm->enter_first_sync_barrier(_task_id); | |
4459 // When we exit this sync barrier we know that all tasks have | |
4460 // stopped doing marking work. So, it's now safe to | |
4461 // re-initialise our data structures. At the end of this method, | |
4462 // task 0 will clear the global data structures. | |
4463 | |
4464 statsOnly( ++_aborted_overflow ); | |
4465 | |
4466 // We clear the local state of this task... | |
4467 clear_region_fields(); | |
4468 | |
4469 // ...and enter the second barrier. | |
4470 _cm->enter_second_sync_barrier(_task_id); | |
4471 // At this point everything has bee re-initialised and we're | |
4472 // ready to restart. | |
4473 } | |
4474 | |
4475 if (_cm->verbose_low()) { | |
4476 gclog_or_tty->print_cr("[%d] <<<<<<<<<< ABORTING, target = %1.2lfms, " | |
4477 "elapsed = %1.2lfms <<<<<<<<<<", | |
4478 _task_id, _time_target_ms, elapsed_time_ms); | |
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|
4479 if (_cm->has_aborted()) { |
342 | 4480 gclog_or_tty->print_cr("[%d] ========== MARKING ABORTED ==========", |
4481 _task_id); | |
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|
4482 } |
342 | 4483 } |
4484 } else { | |
3776
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|
4485 if (_cm->verbose_low()) { |
342 | 4486 gclog_or_tty->print_cr("[%d] <<<<<<<<<< FINISHED, target = %1.2lfms, " |
4487 "elapsed = %1.2lfms <<<<<<<<<<", | |
4488 _task_id, _time_target_ms, elapsed_time_ms); | |
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|
4489 } |
342 | 4490 } |
4491 | |
4492 _claimed = false; | |
4493 } | |
4494 | |
4495 CMTask::CMTask(int task_id, | |
4496 ConcurrentMark* cm, | |
4497 CMTaskQueue* task_queue, | |
4498 CMTaskQueueSet* task_queues) | |
4499 : _g1h(G1CollectedHeap::heap()), | |
4500 _task_id(task_id), _cm(cm), | |
4501 _claimed(false), | |
4502 _nextMarkBitMap(NULL), _hash_seed(17), | |
4503 _task_queue(task_queue), | |
4504 _task_queues(task_queues), | |
3771 | 4505 _cm_oop_closure(NULL), |
1835
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|
4506 _aborted_region(MemRegion()) { |
1023
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|
4507 guarantee(task_queue != NULL, "invariant"); |
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|
4508 guarantee(task_queues != NULL, "invariant"); |
342 | 4509 |
4510 statsOnly( _clock_due_to_scanning = 0; | |
4511 _clock_due_to_marking = 0 ); | |
4512 | |
4513 _marking_step_diffs_ms.add(0.5); | |
4514 } | |
2435
371bbc844bf1
7027766: G1: introduce flag to dump the liveness information per region at the end of marking
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|
4515 |
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|
4516 // These are formatting macros that are used below to ensure |
371bbc844bf1
7027766: G1: introduce flag to dump the liveness information per region at the end of marking
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diff
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|
4517 // consistent formatting. The *_H_* versions are used to format the |
371bbc844bf1
7027766: G1: introduce flag to dump the liveness information per region at the end of marking
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|
4518 // header for a particular value and they should be kept consistent |
371bbc844bf1
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|
4519 // with the corresponding macro. Also note that most of the macros add |
371bbc844bf1
7027766: G1: introduce flag to dump the liveness information per region at the end of marking
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|
4520 // the necessary white space (as a prefix) which makes them a bit |
371bbc844bf1
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|
4521 // easier to compose. |
371bbc844bf1
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|
4522 |
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|
4523 // All the output lines are prefixed with this string to be able to |
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|
4524 // identify them easily in a large log file. |
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|
4525 #define G1PPRL_LINE_PREFIX "###" |
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changeset
|
4526 |
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|
4527 #define G1PPRL_ADDR_BASE_FORMAT " "PTR_FORMAT"-"PTR_FORMAT |
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|
4528 #ifdef _LP64 |
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|
4529 #define G1PPRL_ADDR_BASE_H_FORMAT " %37s" |
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|
4530 #else // _LP64 |
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|
4531 #define G1PPRL_ADDR_BASE_H_FORMAT " %21s" |
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|
4532 #endif // _LP64 |
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changeset
|
4533 |
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changeset
|
4534 // For per-region info |
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7027766: G1: introduce flag to dump the liveness information per region at the end of marking
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|
4535 #define G1PPRL_TYPE_FORMAT " %-4s" |
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|
4536 #define G1PPRL_TYPE_H_FORMAT " %4s" |
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|
4537 #define G1PPRL_BYTE_FORMAT " "SIZE_FORMAT_W(9) |
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|
4538 #define G1PPRL_BYTE_H_FORMAT " %9s" |
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|
4539 #define G1PPRL_DOUBLE_FORMAT " %14.1f" |
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|
4540 #define G1PPRL_DOUBLE_H_FORMAT " %14s" |
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|
4541 |
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changeset
|
4542 // For summary info |
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|
4543 #define G1PPRL_SUM_ADDR_FORMAT(tag) " "tag":"G1PPRL_ADDR_BASE_FORMAT |
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4544 #define G1PPRL_SUM_BYTE_FORMAT(tag) " "tag": "SIZE_FORMAT |
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4545 #define G1PPRL_SUM_MB_FORMAT(tag) " "tag": %1.2f MB" |
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|
4546 #define G1PPRL_SUM_MB_PERC_FORMAT(tag) G1PPRL_SUM_MB_FORMAT(tag)" / %1.2f %%" |
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|
4547 |
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|
4548 G1PrintRegionLivenessInfoClosure:: |
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|
4549 G1PrintRegionLivenessInfoClosure(outputStream* out, const char* phase_name) |
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|
4550 : _out(out), |
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|
4551 _total_used_bytes(0), _total_capacity_bytes(0), |
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|
4552 _total_prev_live_bytes(0), _total_next_live_bytes(0), |
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|
4553 _hum_used_bytes(0), _hum_capacity_bytes(0), |
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|
4554 _hum_prev_live_bytes(0), _hum_next_live_bytes(0) { |
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|
4555 G1CollectedHeap* g1h = G1CollectedHeap::heap(); |
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|
4556 MemRegion g1_committed = g1h->g1_committed(); |
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|
4557 MemRegion g1_reserved = g1h->g1_reserved(); |
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|
4558 double now = os::elapsedTime(); |
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|
4559 |
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|
4560 // Print the header of the output. |
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|
4561 _out->cr(); |
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|
4562 _out->print_cr(G1PPRL_LINE_PREFIX" PHASE %s @ %1.3f", phase_name, now); |
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|
4563 _out->print_cr(G1PPRL_LINE_PREFIX" HEAP" |
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|
4564 G1PPRL_SUM_ADDR_FORMAT("committed") |
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|
4565 G1PPRL_SUM_ADDR_FORMAT("reserved") |
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|
4566 G1PPRL_SUM_BYTE_FORMAT("region-size"), |
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|
4567 g1_committed.start(), g1_committed.end(), |
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|
4568 g1_reserved.start(), g1_reserved.end(), |
3977
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|
4569 (size_t)HeapRegion::GrainBytes); |
2435
371bbc844bf1
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|
4570 _out->print_cr(G1PPRL_LINE_PREFIX); |
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|
4571 _out->print_cr(G1PPRL_LINE_PREFIX |
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|
4572 G1PPRL_TYPE_H_FORMAT |
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|
4573 G1PPRL_ADDR_BASE_H_FORMAT |
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|
4574 G1PPRL_BYTE_H_FORMAT |
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|
4575 G1PPRL_BYTE_H_FORMAT |
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|
4576 G1PPRL_BYTE_H_FORMAT |
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|
4577 G1PPRL_DOUBLE_H_FORMAT, |
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|
4578 "type", "address-range", |
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|
4579 "used", "prev-live", "next-live", "gc-eff"); |
3977
5cc33133bc6d
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|
4580 _out->print_cr(G1PPRL_LINE_PREFIX |
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|
4581 G1PPRL_TYPE_H_FORMAT |
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|
4582 G1PPRL_ADDR_BASE_H_FORMAT |
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|
4583 G1PPRL_BYTE_H_FORMAT |
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|
4584 G1PPRL_BYTE_H_FORMAT |
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|
4585 G1PPRL_BYTE_H_FORMAT |
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|
4586 G1PPRL_DOUBLE_H_FORMAT, |
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parents:
3975
diff
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|
4587 "", "", |
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3975
diff
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|
4588 "(bytes)", "(bytes)", "(bytes)", "(bytes/ms)"); |
2435
371bbc844bf1
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|
4589 } |
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changeset
|
4590 |
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|
4591 // It takes as a parameter a reference to one of the _hum_* fields, it |
371bbc844bf1
7027766: G1: introduce flag to dump the liveness information per region at the end of marking
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|
4592 // deduces the corresponding value for a region in a humongous region |
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|
4593 // series (either the region size, or what's left if the _hum_* field |
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|
4594 // is < the region size), and updates the _hum_* field accordingly. |
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|
4595 size_t G1PrintRegionLivenessInfoClosure::get_hum_bytes(size_t* hum_bytes) { |
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|
4596 size_t bytes = 0; |
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diff
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|
4597 // The > 0 check is to deal with the prev and next live bytes which |
371bbc844bf1
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|
4598 // could be 0. |
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|
4599 if (*hum_bytes > 0) { |
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|
4600 bytes = MIN2((size_t) HeapRegion::GrainBytes, *hum_bytes); |
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|
4601 *hum_bytes -= bytes; |
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diff
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|
4602 } |
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diff
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|
4603 return bytes; |
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diff
changeset
|
4604 } |
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diff
changeset
|
4605 |
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diff
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|
4606 // It deduces the values for a region in a humongous region series |
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|
4607 // from the _hum_* fields and updates those accordingly. It assumes |
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|
4608 // that that _hum_* fields have already been set up from the "starts |
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|
4609 // humongous" region and we visit the regions in address order. |
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|
4610 void G1PrintRegionLivenessInfoClosure::get_hum_bytes(size_t* used_bytes, |
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|
4611 size_t* capacity_bytes, |
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|
4612 size_t* prev_live_bytes, |
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|
4613 size_t* next_live_bytes) { |
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|
4614 assert(_hum_used_bytes > 0 && _hum_capacity_bytes > 0, "pre-condition"); |
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|
4615 *used_bytes = get_hum_bytes(&_hum_used_bytes); |
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|
4616 *capacity_bytes = get_hum_bytes(&_hum_capacity_bytes); |
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|
4617 *prev_live_bytes = get_hum_bytes(&_hum_prev_live_bytes); |
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|
4618 *next_live_bytes = get_hum_bytes(&_hum_next_live_bytes); |
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|
4619 } |
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diff
changeset
|
4620 |
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|
4621 bool G1PrintRegionLivenessInfoClosure::doHeapRegion(HeapRegion* r) { |
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|
4622 const char* type = ""; |
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|
4623 HeapWord* bottom = r->bottom(); |
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|
4624 HeapWord* end = r->end(); |
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|
4625 size_t capacity_bytes = r->capacity(); |
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|
4626 size_t used_bytes = r->used(); |
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|
4627 size_t prev_live_bytes = r->live_bytes(); |
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|
4628 size_t next_live_bytes = r->next_live_bytes(); |
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|
4629 double gc_eff = r->gc_efficiency(); |
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|
4630 if (r->used() == 0) { |
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|
4631 type = "FREE"; |
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|
4632 } else if (r->is_survivor()) { |
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diff
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|
4633 type = "SURV"; |
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diff
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|
4634 } else if (r->is_young()) { |
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|
4635 type = "EDEN"; |
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|
4636 } else if (r->startsHumongous()) { |
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4637 type = "HUMS"; |
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|
4638 |
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4639 assert(_hum_used_bytes == 0 && _hum_capacity_bytes == 0 && |
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4640 _hum_prev_live_bytes == 0 && _hum_next_live_bytes == 0, |
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4641 "they should have been zeroed after the last time we used them"); |
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4642 // Set up the _hum_* fields. |
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4643 _hum_capacity_bytes = capacity_bytes; |
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4644 _hum_used_bytes = used_bytes; |
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4645 _hum_prev_live_bytes = prev_live_bytes; |
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4646 _hum_next_live_bytes = next_live_bytes; |
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4647 get_hum_bytes(&used_bytes, &capacity_bytes, |
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4648 &prev_live_bytes, &next_live_bytes); |
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4649 end = bottom + HeapRegion::GrainWords; |
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4650 } else if (r->continuesHumongous()) { |
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4651 type = "HUMC"; |
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4652 get_hum_bytes(&used_bytes, &capacity_bytes, |
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4653 &prev_live_bytes, &next_live_bytes); |
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4654 assert(end == bottom + HeapRegion::GrainWords, "invariant"); |
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4655 } else { |
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4656 type = "OLD"; |
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|
4657 } |
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diff
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|
4658 |
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|
4659 _total_used_bytes += used_bytes; |
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4660 _total_capacity_bytes += capacity_bytes; |
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4661 _total_prev_live_bytes += prev_live_bytes; |
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4662 _total_next_live_bytes += next_live_bytes; |
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|
4663 |
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|
4664 // Print a line for this particular region. |
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4665 _out->print_cr(G1PPRL_LINE_PREFIX |
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|
4666 G1PPRL_TYPE_FORMAT |
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|
4667 G1PPRL_ADDR_BASE_FORMAT |
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|
4668 G1PPRL_BYTE_FORMAT |
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|
4669 G1PPRL_BYTE_FORMAT |
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|
4670 G1PPRL_BYTE_FORMAT |
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|
4671 G1PPRL_DOUBLE_FORMAT, |
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4672 type, bottom, end, |
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4673 used_bytes, prev_live_bytes, next_live_bytes, gc_eff); |
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|
4674 |
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|
4675 return false; |
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diff
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|
4676 } |
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diff
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|
4677 |
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|
4678 G1PrintRegionLivenessInfoClosure::~G1PrintRegionLivenessInfoClosure() { |
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4679 // Print the footer of the output. |
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|
4680 _out->print_cr(G1PPRL_LINE_PREFIX); |
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|
4681 _out->print_cr(G1PPRL_LINE_PREFIX |
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|
4682 " SUMMARY" |
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|
4683 G1PPRL_SUM_MB_FORMAT("capacity") |
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|
4684 G1PPRL_SUM_MB_PERC_FORMAT("used") |
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|
4685 G1PPRL_SUM_MB_PERC_FORMAT("prev-live") |
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|
4686 G1PPRL_SUM_MB_PERC_FORMAT("next-live"), |
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|
4687 bytes_to_mb(_total_capacity_bytes), |
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|
4688 bytes_to_mb(_total_used_bytes), |
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|
4689 perc(_total_used_bytes, _total_capacity_bytes), |
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|
4690 bytes_to_mb(_total_prev_live_bytes), |
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diff
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|
4691 perc(_total_prev_live_bytes, _total_capacity_bytes), |
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changeset
|
4692 bytes_to_mb(_total_next_live_bytes), |
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diff
changeset
|
4693 perc(_total_next_live_bytes, _total_capacity_bytes)); |
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diff
changeset
|
4694 _out->cr(); |
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changeset
|
4695 } |