Mercurial > hg > truffle
annotate src/share/vm/gc_implementation/g1/heapRegion.hpp @ 20645:2f445c5048df
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author | coleenp |
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date | Mon, 17 Nov 2014 19:35:09 +0000 |
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342 | 1 /* |
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2 * Copyright (c) 2001, 2014, 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 #ifndef SHARE_VM_GC_IMPLEMENTATION_G1_HEAPREGION_HPP |
26 #define SHARE_VM_GC_IMPLEMENTATION_G1_HEAPREGION_HPP | |
27 | |
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28 #include "gc_implementation/g1/g1AllocationContext.hpp" |
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29 #include "gc_implementation/g1/g1BlockOffsetTable.hpp" |
1972 | 30 #include "gc_implementation/g1/g1_specialized_oop_closures.hpp" |
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31 #include "gc_implementation/g1/heapRegionType.hpp" |
1972 | 32 #include "gc_implementation/g1/survRateGroup.hpp" |
33 #include "gc_implementation/shared/ageTable.hpp" | |
34 #include "gc_implementation/shared/spaceDecorator.hpp" | |
35 #include "memory/space.inline.hpp" | |
36 #include "memory/watermark.hpp" | |
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37 #include "utilities/macros.hpp" |
1972 | 38 |
342 | 39 // A HeapRegion is the smallest piece of a G1CollectedHeap that |
40 // can be collected independently. | |
41 | |
42 // NOTE: Although a HeapRegion is a Space, its | |
43 // Space::initDirtyCardClosure method must not be called. | |
44 // The problem is that the existence of this method breaks | |
45 // the independence of barrier sets from remembered sets. | |
46 // The solution is to remove this method from the definition | |
47 // of a Space. | |
48 | |
49 class HeapRegionRemSet; | |
50 class HeapRegionRemSetIterator; | |
51 class HeapRegion; | |
2152 | 52 class HeapRegionSetBase; |
12080 | 53 class nmethod; |
2152 | 54 |
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55 #define HR_FORMAT "%u:(%s)["PTR_FORMAT","PTR_FORMAT","PTR_FORMAT"]" |
3766 | 56 #define HR_FORMAT_PARAMS(_hr_) \ |
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57 (_hr_)->hrm_index(), \ |
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58 (_hr_)->get_short_type_str(), \ |
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59 p2i((_hr_)->bottom()), p2i((_hr_)->top()), p2i((_hr_)->end()) |
342 | 60 |
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61 // sentinel value for hrm_index |
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62 #define G1_NO_HRM_INDEX ((uint) -1) |
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63 |
342 | 64 // A dirty card to oop closure for heap regions. It |
65 // knows how to get the G1 heap and how to use the bitmap | |
66 // in the concurrent marker used by G1 to filter remembered | |
67 // sets. | |
68 | |
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69 class HeapRegionDCTOC : public DirtyCardToOopClosure { |
342 | 70 public: |
71 // Specification of possible DirtyCardToOopClosure filtering. | |
72 enum FilterKind { | |
73 NoFilterKind, | |
74 IntoCSFilterKind, | |
75 OutOfRegionFilterKind | |
76 }; | |
77 | |
78 protected: | |
79 HeapRegion* _hr; | |
80 FilterKind _fk; | |
81 G1CollectedHeap* _g1; | |
82 | |
83 // Walk the given memory region from bottom to (actual) top | |
84 // looking for objects and applying the oop closure (_cl) to | |
85 // them. The base implementation of this treats the area as | |
86 // blocks, where a block may or may not be an object. Sub- | |
87 // classes should override this to provide more accurate | |
88 // or possibly more efficient walking. | |
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89 void walk_mem_region(MemRegion mr, HeapWord* bottom, HeapWord* top); |
342 | 90 |
91 public: | |
92 HeapRegionDCTOC(G1CollectedHeap* g1, | |
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93 HeapRegion* hr, ExtendedOopClosure* cl, |
342 | 94 CardTableModRefBS::PrecisionStyle precision, |
95 FilterKind fk); | |
96 }; | |
97 | |
98 // The complicating factor is that BlockOffsetTable diverged | |
99 // significantly, and we need functionality that is only in the G1 version. | |
100 // So I copied that code, which led to an alternate G1 version of | |
101 // OffsetTableContigSpace. If the two versions of BlockOffsetTable could | |
102 // be reconciled, then G1OffsetTableContigSpace could go away. | |
103 | |
104 // The idea behind time stamps is the following. Doing a save_marks on | |
105 // all regions at every GC pause is time consuming (if I remember | |
106 // well, 10ms or so). So, we would like to do that only for regions | |
107 // that are GC alloc regions. To achieve this, we use time | |
108 // stamps. For every evacuation pause, G1CollectedHeap generates a | |
109 // unique time stamp (essentially a counter that gets | |
110 // incremented). Every time we want to call save_marks on a region, | |
111 // we set the saved_mark_word to top and also copy the current GC | |
112 // time stamp to the time stamp field of the space. Reading the | |
113 // saved_mark_word involves checking the time stamp of the | |
114 // region. If it is the same as the current GC time stamp, then we | |
115 // can safely read the saved_mark_word field, as it is valid. If the | |
116 // time stamp of the region is not the same as the current GC time | |
117 // stamp, then we instead read top, as the saved_mark_word field is | |
118 // invalid. Time stamps (on the regions and also on the | |
119 // G1CollectedHeap) are reset at every cleanup (we iterate over | |
120 // the regions anyway) and at the end of a Full GC. The current scheme | |
121 // that uses sequential unsigned ints will fail only if we have 4b | |
122 // evacuation pauses between two cleanups, which is _highly_ unlikely. | |
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123 class G1OffsetTableContigSpace: public CompactibleSpace { |
342 | 124 friend class VMStructs; |
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125 HeapWord* _top; |
342 | 126 protected: |
127 G1BlockOffsetArrayContigSpace _offsets; | |
128 Mutex _par_alloc_lock; | |
129 volatile unsigned _gc_time_stamp; | |
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130 // When we need to retire an allocation region, while other threads |
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131 // are also concurrently trying to allocate into it, we typically |
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132 // allocate a dummy object at the end of the region to ensure that |
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133 // no more allocations can take place in it. However, sometimes we |
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134 // want to know where the end of the last "real" object we allocated |
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135 // into the region was and this is what this keeps track. |
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136 HeapWord* _pre_dummy_top; |
342 | 137 |
138 public: | |
139 G1OffsetTableContigSpace(G1BlockOffsetSharedArray* sharedOffsetArray, | |
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140 MemRegion mr); |
342 | 141 |
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142 void set_top(HeapWord* value) { _top = value; } |
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143 HeapWord* top() const { return _top; } |
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144 |
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145 protected: |
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146 // Reset the G1OffsetTableContigSpace. |
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147 virtual void initialize(MemRegion mr, bool clear_space, bool mangle_space); |
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148 |
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149 HeapWord** top_addr() { return &_top; } |
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150 // Allocation helpers (return NULL if full). |
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151 inline HeapWord* allocate_impl(size_t word_size, HeapWord* end_value); |
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152 inline HeapWord* par_allocate_impl(size_t word_size, HeapWord* end_value); |
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153 |
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154 public: |
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155 void reset_after_compaction() { set_top(compaction_top()); } |
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156 |
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157 size_t used() const { return byte_size(bottom(), top()); } |
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158 size_t free() const { return byte_size(top(), end()); } |
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159 bool is_free_block(const HeapWord* p) const { return p >= top(); } |
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160 |
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161 MemRegion used_region() const { return MemRegion(bottom(), top()); } |
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162 |
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163 void object_iterate(ObjectClosure* blk); |
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164 void safe_object_iterate(ObjectClosure* blk); |
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165 |
342 | 166 void set_bottom(HeapWord* value); |
167 void set_end(HeapWord* value); | |
168 | |
169 virtual HeapWord* saved_mark_word() const; | |
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170 void record_top_and_timestamp(); |
342 | 171 void reset_gc_time_stamp() { _gc_time_stamp = 0; } |
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172 unsigned get_gc_time_stamp() { return _gc_time_stamp; } |
342 | 173 |
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174 // See the comment above in the declaration of _pre_dummy_top for an |
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175 // explanation of what it is. |
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176 void set_pre_dummy_top(HeapWord* pre_dummy_top) { |
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177 assert(is_in(pre_dummy_top) && pre_dummy_top <= top(), "pre-condition"); |
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178 _pre_dummy_top = pre_dummy_top; |
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179 } |
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180 HeapWord* pre_dummy_top() { |
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181 return (_pre_dummy_top == NULL) ? top() : _pre_dummy_top; |
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182 } |
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183 void reset_pre_dummy_top() { _pre_dummy_top = NULL; } |
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184 |
356 | 185 virtual void clear(bool mangle_space); |
342 | 186 |
187 HeapWord* block_start(const void* p); | |
188 HeapWord* block_start_const(const void* p) const; | |
189 | |
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190 void prepare_for_compaction(CompactPoint* cp); |
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191 |
342 | 192 // Add offset table update. |
193 virtual HeapWord* allocate(size_t word_size); | |
194 HeapWord* par_allocate(size_t word_size); | |
195 | |
196 // MarkSweep support phase3 | |
197 virtual HeapWord* initialize_threshold(); | |
198 virtual HeapWord* cross_threshold(HeapWord* start, HeapWord* end); | |
199 | |
200 virtual void print() const; | |
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201 |
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202 void reset_bot() { |
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203 _offsets.reset_bot(); |
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204 } |
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205 |
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206 void print_bot_on(outputStream* out) { |
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207 _offsets.print_on(out); |
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208 } |
342 | 209 }; |
210 | |
211 class HeapRegion: public G1OffsetTableContigSpace { | |
212 friend class VMStructs; | |
213 private: | |
214 | |
215 // The remembered set for this region. | |
216 // (Might want to make this "inline" later, to avoid some alloc failure | |
217 // issues.) | |
218 HeapRegionRemSet* _rem_set; | |
219 | |
220 G1BlockOffsetArrayContigSpace* offsets() { return &_offsets; } | |
221 | |
222 protected: | |
3766 | 223 // The index of this region in the heap region sequence. |
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224 uint _hrm_index; |
342 | 225 |
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226 AllocationContext_t _allocation_context; |
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227 |
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228 HeapRegionType _type; |
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229 |
342 | 230 // For a humongous region, region in which it starts. |
231 HeapRegion* _humongous_start_region; | |
232 // For the start region of a humongous sequence, it's original end(). | |
233 HeapWord* _orig_end; | |
234 | |
235 // True iff the region is in current collection_set. | |
236 bool _in_collection_set; | |
237 | |
238 // True iff an attempt to evacuate an object in the region failed. | |
239 bool _evacuation_failed; | |
240 | |
241 // A heap region may be a member one of a number of special subsets, each | |
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242 // represented as linked lists through the field below. Currently, there |
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243 // is only one set: |
342 | 244 // The collection set. |
245 HeapRegion* _next_in_special_set; | |
246 | |
247 // next region in the young "generation" region set | |
248 HeapRegion* _next_young_region; | |
249 | |
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250 // Next region whose cards need cleaning |
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251 HeapRegion* _next_dirty_cards_region; |
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252 |
2152 | 253 // Fields used by the HeapRegionSetBase class and subclasses. |
254 HeapRegion* _next; | |
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255 HeapRegion* _prev; |
2152 | 256 #ifdef ASSERT |
257 HeapRegionSetBase* _containing_set; | |
258 #endif // ASSERT | |
259 | |
342 | 260 // For parallel heapRegion traversal. |
261 jint _claimed; | |
262 | |
263 // We use concurrent marking to determine the amount of live data | |
264 // in each heap region. | |
265 size_t _prev_marked_bytes; // Bytes known to be live via last completed marking. | |
266 size_t _next_marked_bytes; // Bytes known to be live via in-progress marking. | |
267 | |
6011 | 268 // The calculated GC efficiency of the region. |
342 | 269 double _gc_efficiency; |
270 | |
271 int _young_index_in_cset; | |
272 SurvRateGroup* _surv_rate_group; | |
273 int _age_index; | |
274 | |
275 // The start of the unmarked area. The unmarked area extends from this | |
276 // word until the top and/or end of the region, and is the part | |
277 // of the region for which no marking was done, i.e. objects may | |
278 // have been allocated in this part since the last mark phase. | |
279 // "prev" is the top at the start of the last completed marking. | |
280 // "next" is the top at the start of the in-progress marking (if any.) | |
281 HeapWord* _prev_top_at_mark_start; | |
282 HeapWord* _next_top_at_mark_start; | |
283 // If a collection pause is in progress, this is the top at the start | |
284 // of that pause. | |
285 | |
286 void init_top_at_mark_start() { | |
287 assert(_prev_marked_bytes == 0 && | |
288 _next_marked_bytes == 0, | |
289 "Must be called after zero_marked_bytes."); | |
290 HeapWord* bot = bottom(); | |
291 _prev_top_at_mark_start = bot; | |
292 _next_top_at_mark_start = bot; | |
293 } | |
294 | |
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295 // Cached attributes used in the collection set policy information |
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296 |
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297 // The RSet length that was added to the total value |
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298 // for the collection set. |
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299 size_t _recorded_rs_length; |
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300 |
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301 // The predicted elapsed time that was added to total value |
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302 // for the collection set. |
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303 double _predicted_elapsed_time_ms; |
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304 |
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305 // The predicted number of bytes to copy that was added to |
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306 // the total value for the collection set. |
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307 size_t _predicted_bytes_to_copy; |
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308 |
342 | 309 public: |
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310 HeapRegion(uint hrm_index, |
3766 | 311 G1BlockOffsetSharedArray* sharedOffsetArray, |
20417 | 312 MemRegion mr); |
342 | 313 |
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314 // Initializing the HeapRegion not only resets the data structure, but also |
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315 // resets the BOT for that heap region. |
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316 // The default values for clear_space means that we will do the clearing if |
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317 // there's clearing to be done ourselves. We also always mangle the space. |
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318 virtual void initialize(MemRegion mr, bool clear_space = false, bool mangle_space = SpaceDecorator::Mangle); |
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319 |
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320 static int LogOfHRGrainBytes; |
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321 static int LogOfHRGrainWords; |
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322 |
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323 static size_t GrainBytes; |
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324 static size_t GrainWords; |
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325 static size_t CardsPerRegion; |
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326 |
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327 static size_t align_up_to_region_byte_size(size_t sz) { |
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328 return (sz + (size_t) GrainBytes - 1) & |
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329 ~((1 << (size_t) LogOfHRGrainBytes) - 1); |
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330 } |
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331 |
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332 static size_t max_region_size(); |
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333 |
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334 // It sets up the heap region size (GrainBytes / GrainWords), as |
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335 // well as other related fields that are based on the heap region |
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336 // size (LogOfHRGrainBytes / LogOfHRGrainWords / |
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337 // CardsPerRegion). All those fields are considered constant |
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338 // throughout the JVM's execution, therefore they should only be set |
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339 // up once during initialization time. |
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340 static void setup_heap_region_size(size_t initial_heap_size, size_t max_heap_size); |
342 | 341 |
355 | 342 enum ClaimValues { |
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343 InitialClaimValue = 0, |
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344 FinalCountClaimValue = 1, |
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345 NoteEndClaimValue = 2, |
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346 ScrubRemSetClaimValue = 3, |
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347 ParVerifyClaimValue = 4, |
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348 RebuildRSClaimValue = 5, |
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349 ParEvacFailureClaimValue = 6, |
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350 AggregateCountClaimValue = 7, |
12080 | 351 VerifyCountClaimValue = 8, |
352 ParMarkRootClaimValue = 9 | |
355 | 353 }; |
354 | |
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355 // All allocated blocks are occupied by objects in a HeapRegion |
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356 bool block_is_obj(const HeapWord* p) const; |
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357 |
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358 // Returns the object size for all valid block starts |
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359 // and the amount of unallocated words if called on top() |
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360 size_t block_size(const HeapWord* p) const; |
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361 |
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362 inline HeapWord* par_allocate_no_bot_updates(size_t word_size); |
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363 inline HeapWord* allocate_no_bot_updates(size_t word_size); |
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364 |
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365 // If this region is a member of a HeapRegionManager, the index in that |
342 | 366 // sequence, otherwise -1. |
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367 uint hrm_index() const { return _hrm_index; } |
342 | 368 |
369 // The number of bytes marked live in the region in the last marking phase. | |
370 size_t marked_bytes() { return _prev_marked_bytes; } | |
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371 size_t live_bytes() { |
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372 return (top() - prev_top_at_mark_start()) * HeapWordSize + marked_bytes(); |
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373 } |
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374 |
342 | 375 // The number of bytes counted in the next marking. |
376 size_t next_marked_bytes() { return _next_marked_bytes; } | |
377 // The number of bytes live wrt the next marking. | |
378 size_t next_live_bytes() { | |
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379 return |
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380 (top() - next_top_at_mark_start()) * HeapWordSize + next_marked_bytes(); |
342 | 381 } |
382 | |
383 // A lower bound on the amount of garbage bytes in the region. | |
384 size_t garbage_bytes() { | |
385 size_t used_at_mark_start_bytes = | |
386 (prev_top_at_mark_start() - bottom()) * HeapWordSize; | |
387 assert(used_at_mark_start_bytes >= marked_bytes(), | |
388 "Can't mark more than we have."); | |
389 return used_at_mark_start_bytes - marked_bytes(); | |
390 } | |
391 | |
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392 // Return the amount of bytes we'll reclaim if we collect this |
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393 // region. This includes not only the known garbage bytes in the |
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394 // region but also any unallocated space in it, i.e., [top, end), |
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395 // since it will also be reclaimed if we collect the region. |
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396 size_t reclaimable_bytes() { |
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397 size_t known_live_bytes = live_bytes(); |
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398 assert(known_live_bytes <= capacity(), "sanity"); |
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399 return capacity() - known_live_bytes; |
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400 } |
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401 |
342 | 402 // An upper bound on the number of live bytes in the region. |
403 size_t max_live_bytes() { return used() - garbage_bytes(); } | |
404 | |
405 void add_to_marked_bytes(size_t incr_bytes) { | |
406 _next_marked_bytes = _next_marked_bytes + incr_bytes; | |
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407 assert(_next_marked_bytes <= used(), "invariant" ); |
342 | 408 } |
409 | |
410 void zero_marked_bytes() { | |
411 _prev_marked_bytes = _next_marked_bytes = 0; | |
412 } | |
413 | |
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414 const char* get_type_str() const { return _type.get_str(); } |
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415 const char* get_short_type_str() const { return _type.get_short_str(); } |
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416 |
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417 bool is_free() const { return _type.is_free(); } |
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418 |
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419 bool is_young() const { return _type.is_young(); } |
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420 bool is_eden() const { return _type.is_eden(); } |
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421 bool is_survivor() const { return _type.is_survivor(); } |
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422 |
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423 bool isHumongous() const { return _type.is_humongous(); } |
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424 bool startsHumongous() const { return _type.is_starts_humongous(); } |
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425 bool continuesHumongous() const { return _type.is_continues_humongous(); } |
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426 |
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427 bool is_old() const { return _type.is_old(); } |
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428 |
342 | 429 // For a humongous region, region in which it starts. |
430 HeapRegion* humongous_start_region() const { | |
431 return _humongous_start_region; | |
432 } | |
433 | |
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434 // Return the number of distinct regions that are covered by this region: |
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435 // 1 if the region is not humongous, >= 1 if the region is humongous. |
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436 uint region_num() const { |
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437 if (!isHumongous()) { |
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438 return 1U; |
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439 } else { |
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440 assert(startsHumongous(), "doesn't make sense on HC regions"); |
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441 assert(capacity() % HeapRegion::GrainBytes == 0, "sanity"); |
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442 return (uint) (capacity() >> HeapRegion::LogOfHRGrainBytes); |
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443 } |
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444 } |
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445 |
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446 // Return the index + 1 of the last HC regions that's associated |
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447 // with this HS region. |
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448 uint last_hc_index() const { |
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449 assert(startsHumongous(), "don't call this otherwise"); |
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450 return hrm_index() + region_num(); |
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451 } |
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452 |
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453 // Same as Space::is_in_reserved, but will use the original size of the region. |
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454 // The original size is different only for start humongous regions. They get |
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455 // their _end set up to be the end of the last continues region of the |
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456 // corresponding humongous object. |
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457 bool is_in_reserved_raw(const void* p) const { |
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458 return _bottom <= p && p < _orig_end; |
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459 } |
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460 |
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461 // Makes the current region be a "starts humongous" region, i.e., |
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462 // the first region in a series of one or more contiguous regions |
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463 // that will contain a single "humongous" object. The two parameters |
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464 // are as follows: |
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465 // |
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466 // new_top : The new value of the top field of this region which |
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467 // points to the end of the humongous object that's being |
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468 // allocated. If there is more than one region in the series, top |
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469 // will lie beyond this region's original end field and on the last |
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470 // region in the series. |
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471 // |
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472 // new_end : The new value of the end field of this region which |
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473 // points to the end of the last region in the series. If there is |
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474 // one region in the series (namely: this one) end will be the same |
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475 // as the original end of this region. |
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476 // |
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477 // Updating top and end as described above makes this region look as |
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478 // if it spans the entire space taken up by all the regions in the |
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479 // series and an single allocation moved its top to new_top. This |
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480 // ensures that the space (capacity / allocated) taken up by all |
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481 // humongous regions can be calculated by just looking at the |
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482 // "starts humongous" regions and by ignoring the "continues |
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483 // humongous" regions. |
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484 void set_startsHumongous(HeapWord* new_top, HeapWord* new_end); |
342 | 485 |
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486 // Makes the current region be a "continues humongous' |
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487 // region. first_hr is the "start humongous" region of the series |
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488 // which this region will be part of. |
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489 void set_continuesHumongous(HeapRegion* first_hr); |
342 | 490 |
2152 | 491 // Unsets the humongous-related fields on the region. |
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492 void clear_humongous(); |
2152 | 493 |
342 | 494 // If the region has a remembered set, return a pointer to it. |
495 HeapRegionRemSet* rem_set() const { | |
496 return _rem_set; | |
497 } | |
498 | |
499 // True iff the region is in current collection_set. | |
500 bool in_collection_set() const { | |
501 return _in_collection_set; | |
502 } | |
503 void set_in_collection_set(bool b) { | |
504 _in_collection_set = b; | |
505 } | |
506 HeapRegion* next_in_collection_set() { | |
507 assert(in_collection_set(), "should only invoke on member of CS."); | |
508 assert(_next_in_special_set == NULL || | |
509 _next_in_special_set->in_collection_set(), | |
510 "Malformed CS."); | |
511 return _next_in_special_set; | |
512 } | |
513 void set_next_in_collection_set(HeapRegion* r) { | |
514 assert(in_collection_set(), "should only invoke on member of CS."); | |
515 assert(r == NULL || r->in_collection_set(), "Malformed CS."); | |
516 _next_in_special_set = r; | |
517 } | |
518 | |
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519 void set_allocation_context(AllocationContext_t context) { |
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520 _allocation_context = context; |
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521 } |
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522 |
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523 AllocationContext_t allocation_context() const { |
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524 return _allocation_context; |
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525 } |
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526 |
2152 | 527 // Methods used by the HeapRegionSetBase class and subclasses. |
342 | 528 |
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529 // Getter and setter for the next and prev fields used to link regions into |
2152 | 530 // linked lists. |
531 HeapRegion* next() { return _next; } | |
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532 HeapRegion* prev() { return _prev; } |
2152 | 533 |
534 void set_next(HeapRegion* next) { _next = next; } | |
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535 void set_prev(HeapRegion* prev) { _prev = prev; } |
342 | 536 |
2152 | 537 // Every region added to a set is tagged with a reference to that |
538 // set. This is used for doing consistency checking to make sure that | |
539 // the contents of a set are as they should be and it's only | |
540 // available in non-product builds. | |
541 #ifdef ASSERT | |
542 void set_containing_set(HeapRegionSetBase* containing_set) { | |
543 assert((containing_set == NULL && _containing_set != NULL) || | |
544 (containing_set != NULL && _containing_set == NULL), | |
545 err_msg("containing_set: "PTR_FORMAT" " | |
546 "_containing_set: "PTR_FORMAT, | |
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547 p2i(containing_set), p2i(_containing_set))); |
2152 | 548 |
549 _containing_set = containing_set; | |
2361 | 550 } |
342 | 551 |
2152 | 552 HeapRegionSetBase* containing_set() { return _containing_set; } |
553 #else // ASSERT | |
554 void set_containing_set(HeapRegionSetBase* containing_set) { } | |
342 | 555 |
2361 | 556 // containing_set() is only used in asserts so there's no reason |
2152 | 557 // to provide a dummy version of it. |
558 #endif // ASSERT | |
342 | 559 |
560 HeapRegion* get_next_young_region() { return _next_young_region; } | |
561 void set_next_young_region(HeapRegion* hr) { | |
562 _next_young_region = hr; | |
563 } | |
564 | |
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565 HeapRegion* get_next_dirty_cards_region() const { return _next_dirty_cards_region; } |
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566 HeapRegion** next_dirty_cards_region_addr() { return &_next_dirty_cards_region; } |
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567 void set_next_dirty_cards_region(HeapRegion* hr) { _next_dirty_cards_region = hr; } |
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568 bool is_on_dirty_cards_region_list() const { return get_next_dirty_cards_region() != NULL; } |
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569 |
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570 HeapWord* orig_end() const { return _orig_end; } |
3766 | 571 |
342 | 572 // Reset HR stuff to default values. |
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573 void hr_clear(bool par, bool clear_space, bool locked = false); |
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574 void par_clear(); |
342 | 575 |
576 // Get the start of the unmarked area in this region. | |
577 HeapWord* prev_top_at_mark_start() const { return _prev_top_at_mark_start; } | |
578 HeapWord* next_top_at_mark_start() const { return _next_top_at_mark_start; } | |
579 | |
580 // Note the start or end of marking. This tells the heap region | |
581 // that the collector is about to start or has finished (concurrently) | |
582 // marking the heap. | |
583 | |
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584 // Notify the region that concurrent marking is starting. Initialize |
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585 // all fields related to the next marking info. |
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586 inline void note_start_of_marking(); |
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587 |
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588 // Notify the region that concurrent marking has finished. Copy the |
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589 // (now finalized) next marking info fields into the prev marking |
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590 // info fields. |
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591 inline void note_end_of_marking(); |
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592 |
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593 // Notify the region that it will be used as to-space during a GC |
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594 // and we are about to start copying objects into it. |
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595 inline void note_start_of_copying(bool during_initial_mark); |
342 | 596 |
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597 // Notify the region that it ceases being to-space during a GC and |
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598 // we will not copy objects into it any more. |
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599 inline void note_end_of_copying(bool during_initial_mark); |
342 | 600 |
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601 // Notify the region that we are about to start processing |
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602 // self-forwarded objects during evac failure handling. |
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603 void note_self_forwarding_removal_start(bool during_initial_mark, |
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604 bool during_conc_mark); |
342 | 605 |
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606 // Notify the region that we have finished processing self-forwarded |
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607 // objects during evac failure handling. |
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608 void note_self_forwarding_removal_end(bool during_initial_mark, |
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609 bool during_conc_mark, |
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610 size_t marked_bytes); |
342 | 611 |
612 // Returns "false" iff no object in the region was allocated when the | |
613 // last mark phase ended. | |
614 bool is_marked() { return _prev_top_at_mark_start != bottom(); } | |
615 | |
616 void reset_during_compaction() { | |
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617 assert(isHumongous() && startsHumongous(), |
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618 "should only be called for starts humongous regions"); |
342 | 619 |
620 zero_marked_bytes(); | |
621 init_top_at_mark_start(); | |
622 } | |
623 | |
624 void calc_gc_efficiency(void); | |
625 double gc_efficiency() { return _gc_efficiency;} | |
626 | |
627 int young_index_in_cset() const { return _young_index_in_cset; } | |
628 void set_young_index_in_cset(int index) { | |
629 assert( (index == -1) || is_young(), "pre-condition" ); | |
630 _young_index_in_cset = index; | |
631 } | |
632 | |
633 int age_in_surv_rate_group() { | |
634 assert( _surv_rate_group != NULL, "pre-condition" ); | |
635 assert( _age_index > -1, "pre-condition" ); | |
636 return _surv_rate_group->age_in_group(_age_index); | |
637 } | |
638 | |
639 void record_surv_words_in_group(size_t words_survived) { | |
640 assert( _surv_rate_group != NULL, "pre-condition" ); | |
641 assert( _age_index > -1, "pre-condition" ); | |
642 int age_in_group = age_in_surv_rate_group(); | |
643 _surv_rate_group->record_surviving_words(age_in_group, words_survived); | |
644 } | |
645 | |
646 int age_in_surv_rate_group_cond() { | |
647 if (_surv_rate_group != NULL) | |
648 return age_in_surv_rate_group(); | |
649 else | |
650 return -1; | |
651 } | |
652 | |
653 SurvRateGroup* surv_rate_group() { | |
654 return _surv_rate_group; | |
655 } | |
656 | |
657 void install_surv_rate_group(SurvRateGroup* surv_rate_group) { | |
658 assert( surv_rate_group != NULL, "pre-condition" ); | |
659 assert( _surv_rate_group == NULL, "pre-condition" ); | |
660 assert( is_young(), "pre-condition" ); | |
661 | |
662 _surv_rate_group = surv_rate_group; | |
663 _age_index = surv_rate_group->next_age_index(); | |
664 } | |
665 | |
666 void uninstall_surv_rate_group() { | |
667 if (_surv_rate_group != NULL) { | |
668 assert( _age_index > -1, "pre-condition" ); | |
669 assert( is_young(), "pre-condition" ); | |
670 | |
671 _surv_rate_group = NULL; | |
672 _age_index = -1; | |
673 } else { | |
674 assert( _age_index == -1, "pre-condition" ); | |
675 } | |
676 } | |
677 | |
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678 void set_free() { _type.set_free(); } |
342 | 679 |
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680 void set_eden() { _type.set_eden(); } |
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681 void set_eden_pre_gc() { _type.set_eden_pre_gc(); } |
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682 void set_survivor() { _type.set_survivor(); } |
342 | 683 |
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684 void set_old() { _type.set_old(); } |
342 | 685 |
686 // Determine if an object has been allocated since the last | |
687 // mark performed by the collector. This returns true iff the object | |
688 // is within the unmarked area of the region. | |
689 bool obj_allocated_since_prev_marking(oop obj) const { | |
690 return (HeapWord *) obj >= prev_top_at_mark_start(); | |
691 } | |
692 bool obj_allocated_since_next_marking(oop obj) const { | |
693 return (HeapWord *) obj >= next_top_at_mark_start(); | |
694 } | |
695 | |
696 // For parallel heapRegion traversal. | |
697 bool claimHeapRegion(int claimValue); | |
698 jint claim_value() { return _claimed; } | |
699 // Use this carefully: only when you're sure no one is claiming... | |
700 void set_claim_value(int claimValue) { _claimed = claimValue; } | |
701 | |
702 // Returns the "evacuation_failed" property of the region. | |
703 bool evacuation_failed() { return _evacuation_failed; } | |
704 | |
705 // Sets the "evacuation_failed" property of the region. | |
706 void set_evacuation_failed(bool b) { | |
707 _evacuation_failed = b; | |
708 | |
709 if (b) { | |
710 _next_marked_bytes = 0; | |
711 } | |
712 } | |
713 | |
714 // Requires that "mr" be entirely within the region. | |
715 // Apply "cl->do_object" to all objects that intersect with "mr". | |
716 // If the iteration encounters an unparseable portion of the region, | |
717 // or if "cl->abort()" is true after a closure application, | |
718 // terminate the iteration and return the address of the start of the | |
719 // subregion that isn't done. (The two can be distinguished by querying | |
720 // "cl->abort()".) Return of "NULL" indicates that the iteration | |
721 // completed. | |
722 HeapWord* | |
723 object_iterate_mem_careful(MemRegion mr, ObjectClosure* cl); | |
724 | |
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725 // filter_young: if true and the region is a young region then we |
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726 // skip the iteration. |
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727 // card_ptr: if not NULL, and we decide that the card is not young |
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728 // and we iterate over it, we'll clean the card before we start the |
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729 // iteration. |
342 | 730 HeapWord* |
731 oops_on_card_seq_iterate_careful(MemRegion mr, | |
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732 FilterOutOfRegionClosure* cl, |
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733 bool filter_young, |
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734 jbyte* card_ptr); |
342 | 735 |
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736 size_t recorded_rs_length() const { return _recorded_rs_length; } |
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737 double predicted_elapsed_time_ms() const { return _predicted_elapsed_time_ms; } |
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738 size_t predicted_bytes_to_copy() const { return _predicted_bytes_to_copy; } |
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739 |
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740 void set_recorded_rs_length(size_t rs_length) { |
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741 _recorded_rs_length = rs_length; |
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742 } |
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743 |
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744 void set_predicted_elapsed_time_ms(double ms) { |
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745 _predicted_elapsed_time_ms = ms; |
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746 } |
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747 |
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748 void set_predicted_bytes_to_copy(size_t bytes) { |
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749 _predicted_bytes_to_copy = bytes; |
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750 } |
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751 |
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752 virtual CompactibleSpace* next_compaction_space() const; |
342 | 753 |
754 virtual void reset_after_compaction(); | |
755 | |
12080 | 756 // Routines for managing a list of code roots (attached to the |
757 // this region's RSet) that point into this heap region. | |
758 void add_strong_code_root(nmethod* nm); | |
20494 | 759 void add_strong_code_root_locked(nmethod* nm); |
12080 | 760 void remove_strong_code_root(nmethod* nm); |
761 | |
762 // Applies blk->do_code_blob() to each of the entries in | |
763 // the strong code roots list for this region | |
764 void strong_code_roots_do(CodeBlobClosure* blk) const; | |
765 | |
766 // Verify that the entries on the strong code root list for this | |
767 // region are live and include at least one pointer into this region. | |
768 void verify_strong_code_roots(VerifyOption vo, bool* failures) const; | |
769 | |
342 | 770 void print() const; |
771 void print_on(outputStream* st) const; | |
772 | |
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773 // vo == UsePrevMarking -> use "prev" marking information, |
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774 // vo == UseNextMarking -> use "next" marking information |
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775 // vo == UseMarkWord -> use the mark word in the object header |
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776 // |
811 | 777 // NOTE: Only the "prev" marking information is guaranteed to be |
778 // consistent most of the time, so most calls to this should use | |
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779 // vo == UsePrevMarking. |
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780 // Currently, there is only one case where this is called with |
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781 // vo == UseNextMarking, which is to verify the "next" marking |
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782 // information at the end of remark. |
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783 // Currently there is only one place where this is called with |
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784 // vo == UseMarkWord, which is to verify the marking during a |
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785 // full GC. |
6008 | 786 void verify(VerifyOption vo, bool *failures) const; |
811 | 787 |
788 // Override; it uses the "prev" marking information | |
6008 | 789 virtual void verify() const; |
342 | 790 }; |
791 | |
792 // HeapRegionClosure is used for iterating over regions. | |
793 // Terminates the iteration when the "doHeapRegion" method returns "true". | |
794 class HeapRegionClosure : public StackObj { | |
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795 friend class HeapRegionManager; |
342 | 796 friend class G1CollectedHeap; |
797 | |
798 bool _complete; | |
799 void incomplete() { _complete = false; } | |
800 | |
801 public: | |
802 HeapRegionClosure(): _complete(true) {} | |
803 | |
804 // Typically called on each region until it returns true. | |
805 virtual bool doHeapRegion(HeapRegion* r) = 0; | |
806 | |
807 // True after iteration if the closure was applied to all heap regions | |
808 // and returned "false" in all cases. | |
809 bool complete() { return _complete; } | |
810 }; | |
811 | |
1972 | 812 #endif // SHARE_VM_GC_IMPLEMENTATION_G1_HEAPREGION_HPP |