Mercurial > hg > truffle
annotate src/share/vm/gc_implementation/parallelScavenge/psParallelCompact.hpp @ 375:81cd571500b0
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Reviewed-by: iveresov, tonyp
author | jcoomes |
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date | Tue, 30 Sep 2008 12:20:22 -0700 |
parents | 850fdf70db2b |
children | 0166ac265d53 |
rev | line source |
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0 | 1 /* |
196 | 2 * Copyright 2005-2008 Sun Microsystems, Inc. All Rights Reserved. |
0 | 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 * | |
19 * Please contact Sun Microsystems, Inc., 4150 Network Circle, Santa Clara, | |
20 * CA 95054 USA or visit www.sun.com if you need additional information or | |
21 * have any questions. | |
22 * | |
23 */ | |
24 | |
25 class ParallelScavengeHeap; | |
26 class PSAdaptiveSizePolicy; | |
27 class PSYoungGen; | |
28 class PSOldGen; | |
29 class PSPermGen; | |
30 class ParCompactionManager; | |
31 class ParallelTaskTerminator; | |
32 class PSParallelCompact; | |
33 class GCTaskManager; | |
34 class GCTaskQueue; | |
35 class PreGCValues; | |
36 class MoveAndUpdateClosure; | |
37 class RefProcTaskExecutor; | |
38 | |
39 class SpaceInfo | |
40 { | |
41 public: | |
42 MutableSpace* space() const { return _space; } | |
43 | |
44 // Where the free space will start after the collection. Valid only after the | |
45 // summary phase completes. | |
46 HeapWord* new_top() const { return _new_top; } | |
47 | |
48 // Allows new_top to be set. | |
49 HeapWord** new_top_addr() { return &_new_top; } | |
50 | |
51 // Where the smallest allowable dense prefix ends (used only for perm gen). | |
52 HeapWord* min_dense_prefix() const { return _min_dense_prefix; } | |
53 | |
54 // Where the dense prefix ends, or the compacted region begins. | |
55 HeapWord* dense_prefix() const { return _dense_prefix; } | |
56 | |
57 // The start array for the (generation containing the) space, or NULL if there | |
58 // is no start array. | |
59 ObjectStartArray* start_array() const { return _start_array; } | |
60 | |
61 void set_space(MutableSpace* s) { _space = s; } | |
62 void set_new_top(HeapWord* addr) { _new_top = addr; } | |
63 void set_min_dense_prefix(HeapWord* addr) { _min_dense_prefix = addr; } | |
64 void set_dense_prefix(HeapWord* addr) { _dense_prefix = addr; } | |
65 void set_start_array(ObjectStartArray* s) { _start_array = s; } | |
66 | |
67 private: | |
68 MutableSpace* _space; | |
69 HeapWord* _new_top; | |
70 HeapWord* _min_dense_prefix; | |
71 HeapWord* _dense_prefix; | |
72 ObjectStartArray* _start_array; | |
73 }; | |
74 | |
75 class ParallelCompactData | |
76 { | |
77 public: | |
78 // Sizes are in HeapWords, unless indicated otherwise. | |
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79 static const size_t Log2RegionSize; |
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80 static const size_t RegionSize; |
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81 static const size_t RegionSizeBytes; |
0 | 82 |
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83 // Mask for the bits in a size_t to get an offset within a region. |
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84 static const size_t RegionSizeOffsetMask; |
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85 // Mask for the bits in a pointer to get an offset within a region. |
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86 static const size_t RegionAddrOffsetMask; |
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87 // Mask for the bits in a pointer to get the address of the start of a region. |
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88 static const size_t RegionAddrMask; |
0 | 89 |
90 static const size_t Log2BlockSize; | |
91 static const size_t BlockSize; | |
92 static const size_t BlockOffsetMask; | |
93 static const size_t BlockMask; | |
94 | |
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95 static const size_t BlocksPerRegion; |
0 | 96 |
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97 class RegionData |
0 | 98 { |
99 public: | |
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100 // Destination address of the region. |
0 | 101 HeapWord* destination() const { return _destination; } |
102 | |
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103 // The first region containing data destined for this region. |
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104 size_t source_region() const { return _source_region; } |
0 | 105 |
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106 // The object (if any) starting in this region and ending in a different |
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107 // region that could not be updated during the main (parallel) compaction |
0 | 108 // phase. This is different from _partial_obj_addr, which is an object that |
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109 // extends onto a source region. However, the two uses do not overlap in |
0 | 110 // time, so the same field is used to save space. |
111 HeapWord* deferred_obj_addr() const { return _partial_obj_addr; } | |
112 | |
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113 // The starting address of the partial object extending onto the region. |
0 | 114 HeapWord* partial_obj_addr() const { return _partial_obj_addr; } |
115 | |
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116 // Size of the partial object extending onto the region (words). |
0 | 117 size_t partial_obj_size() const { return _partial_obj_size; } |
118 | |
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119 // Size of live data that lies within this region due to objects that start |
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120 // in this region (words). This does not include the partial object |
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121 // extending onto the region (if any), or the part of an object that extends |
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122 // onto the next region (if any). |
0 | 123 size_t live_obj_size() const { return _dc_and_los & los_mask; } |
124 | |
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125 // Total live data that lies within the region (words). |
0 | 126 size_t data_size() const { return partial_obj_size() + live_obj_size(); } |
127 | |
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128 // The destination_count is the number of other regions to which data from |
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129 // this region will be copied. At the end of the summary phase, the valid |
0 | 130 // values of destination_count are |
131 // | |
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132 // 0 - data from the region will be compacted completely into itself, or the |
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133 // region is empty. The region can be claimed and then filled. |
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134 // 1 - data from the region will be compacted into 1 other region; some |
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135 // data from the region may also be compacted into the region itself. |
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136 // 2 - data from the region will be copied to 2 other regions. |
0 | 137 // |
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138 // During compaction as regions are emptied, the destination_count is |
0 | 139 // decremented (atomically) and when it reaches 0, it can be claimed and |
140 // then filled. | |
141 // | |
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142 // A region is claimed for processing by atomically changing the |
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143 // destination_count to the claimed value (dc_claimed). After a region has |
0 | 144 // been filled, the destination_count should be set to the completed value |
145 // (dc_completed). | |
146 inline uint destination_count() const; | |
147 inline uint destination_count_raw() const; | |
148 | |
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149 // The location of the java heap data that corresponds to this region. |
0 | 150 inline HeapWord* data_location() const; |
151 | |
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152 // The highest address referenced by objects in this region. |
0 | 153 inline HeapWord* highest_ref() const; |
154 | |
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155 // Whether this region is available to be claimed, has been claimed, or has |
0 | 156 // been completed. |
157 // | |
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158 // Minor subtlety: claimed() returns true if the region is marked |
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159 // completed(), which is desirable since a region must be claimed before it |
0 | 160 // can be completed. |
161 bool available() const { return _dc_and_los < dc_one; } | |
162 bool claimed() const { return _dc_and_los >= dc_claimed; } | |
163 bool completed() const { return _dc_and_los >= dc_completed; } | |
164 | |
165 // These are not atomic. | |
166 void set_destination(HeapWord* addr) { _destination = addr; } | |
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167 void set_source_region(size_t region) { _source_region = region; } |
0 | 168 void set_deferred_obj_addr(HeapWord* addr) { _partial_obj_addr = addr; } |
169 void set_partial_obj_addr(HeapWord* addr) { _partial_obj_addr = addr; } | |
170 void set_partial_obj_size(size_t words) { | |
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171 _partial_obj_size = (region_sz_t) words; |
0 | 172 } |
173 | |
174 inline void set_destination_count(uint count); | |
175 inline void set_live_obj_size(size_t words); | |
176 inline void set_data_location(HeapWord* addr); | |
177 inline void set_completed(); | |
178 inline bool claim_unsafe(); | |
179 | |
180 // These are atomic. | |
181 inline void add_live_obj(size_t words); | |
182 inline void set_highest_ref(HeapWord* addr); | |
183 inline void decrement_destination_count(); | |
184 inline bool claim(); | |
185 | |
186 private: | |
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187 // The type used to represent object sizes within a region. |
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188 typedef uint region_sz_t; |
0 | 189 |
190 // Constants for manipulating the _dc_and_los field, which holds both the | |
191 // destination count and live obj size. The live obj size lives at the | |
192 // least significant end so no masking is necessary when adding. | |
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193 static const region_sz_t dc_shift; // Shift amount. |
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194 static const region_sz_t dc_mask; // Mask for destination count. |
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195 static const region_sz_t dc_one; // 1, shifted appropriately. |
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196 static const region_sz_t dc_claimed; // Region has been claimed. |
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197 static const region_sz_t dc_completed; // Region has been completed. |
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198 static const region_sz_t los_mask; // Mask for live obj size. |
0 | 199 |
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200 HeapWord* _destination; |
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201 size_t _source_region; |
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202 HeapWord* _partial_obj_addr; |
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203 region_sz_t _partial_obj_size; |
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204 region_sz_t volatile _dc_and_los; |
0 | 205 #ifdef ASSERT |
206 // These enable optimizations that are only partially implemented. Use | |
207 // debug builds to prevent the code fragments from breaking. | |
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208 HeapWord* _data_location; |
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209 HeapWord* _highest_ref; |
0 | 210 #endif // #ifdef ASSERT |
211 | |
212 #ifdef ASSERT | |
213 public: | |
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214 uint _pushed; // 0 until region is pushed onto a worker's stack |
0 | 215 private: |
216 #endif | |
217 }; | |
218 | |
219 // 'Blocks' allow shorter sections of the bitmap to be searched. Each Block | |
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220 // holds an offset, which is the amount of live data in the Region to the left |
0 | 221 // of the first live object in the Block. This amount of live data will |
222 // include any object extending into the block. The first block in | |
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223 // a region does not include any partial object extending into the |
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224 // the region. |
0 | 225 // |
226 // The offset also encodes the | |
227 // 'parity' of the first 1 bit in the Block: a positive offset means the | |
228 // first 1 bit marks the start of an object, a negative offset means the first | |
229 // 1 bit marks the end of an object. | |
230 class BlockData | |
231 { | |
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232 public: |
0 | 233 typedef short int blk_ofs_t; |
234 | |
235 blk_ofs_t offset() const { return _offset >= 0 ? _offset : -_offset; } | |
236 blk_ofs_t raw_offset() const { return _offset; } | |
237 void set_first_is_start_bit(bool v) { _first_is_start_bit = v; } | |
238 | |
239 #if 0 | |
240 // The need for this method was anticipated but it is | |
241 // never actually used. Do not include it for now. If | |
242 // it is needed, consider the problem of what is passed | |
243 // as "v". To avoid warning errors the method set_start_bit_offset() | |
244 // was changed to take a size_t as the parameter and to do the | |
245 // check for the possible overflow. Doing the cast in these | |
246 // methods better limits the potential problems because of | |
247 // the size of the field to this class. | |
248 void set_raw_offset(blk_ofs_t v) { _offset = v; } | |
249 #endif | |
250 void set_start_bit_offset(size_t val) { | |
251 assert(val >= 0, "sanity"); | |
252 _offset = (blk_ofs_t) val; | |
253 assert(val == (size_t) _offset, "Value is too large"); | |
254 _first_is_start_bit = true; | |
255 } | |
256 void set_end_bit_offset(size_t val) { | |
257 assert(val >= 0, "sanity"); | |
258 _offset = (blk_ofs_t) val; | |
259 assert(val == (size_t) _offset, "Value is too large"); | |
260 _offset = - _offset; | |
261 _first_is_start_bit = false; | |
262 } | |
263 bool first_is_start_bit() { | |
264 assert(_set_phase > 0, "Not initialized"); | |
265 return _first_is_start_bit; | |
266 } | |
267 bool first_is_end_bit() { | |
268 assert(_set_phase > 0, "Not initialized"); | |
269 return !_first_is_start_bit; | |
270 } | |
271 | |
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272 private: |
0 | 273 blk_ofs_t _offset; |
274 // This is temporary until the mark_bitmap is separated into | |
275 // a start bit array and an end bit array. | |
276 bool _first_is_start_bit; | |
277 #ifdef ASSERT | |
278 short _set_phase; | |
279 static short _cur_phase; | |
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280 public: |
0 | 281 static void set_cur_phase(short v) { _cur_phase = v; } |
282 #endif | |
283 }; | |
284 | |
285 public: | |
286 ParallelCompactData(); | |
287 bool initialize(MemRegion covered_region); | |
288 | |
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289 size_t region_count() const { return _region_count; } |
0 | 290 |
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291 // Convert region indices to/from RegionData pointers. |
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292 inline RegionData* region(size_t region_idx) const; |
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293 inline size_t region(const RegionData* const region_ptr) const; |
0 | 294 |
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295 // Returns true if the given address is contained within the region |
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296 bool region_contains(size_t region_index, HeapWord* addr); |
0 | 297 |
298 size_t block_count() const { return _block_count; } | |
299 inline BlockData* block(size_t n) const; | |
300 | |
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301 // Returns true if the given block is in the given region. |
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302 static bool region_contains_block(size_t region_index, size_t block_index); |
0 | 303 |
304 void add_obj(HeapWord* addr, size_t len); | |
305 void add_obj(oop p, size_t len) { add_obj((HeapWord*)p, len); } | |
306 | |
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307 // Fill in the regions covering [beg, end) so that no data moves; i.e., the |
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308 // destination of region n is simply the start of region n. The argument beg |
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309 // must be region-aligned; end need not be. |
0 | 310 void summarize_dense_prefix(HeapWord* beg, HeapWord* end); |
311 | |
312 bool summarize(HeapWord* target_beg, HeapWord* target_end, | |
313 HeapWord* source_beg, HeapWord* source_end, | |
314 HeapWord** target_next, HeapWord** source_next = 0); | |
315 | |
316 void clear(); | |
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317 void clear_range(size_t beg_region, size_t end_region); |
0 | 318 void clear_range(HeapWord* beg, HeapWord* end) { |
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319 clear_range(addr_to_region_idx(beg), addr_to_region_idx(end)); |
0 | 320 } |
321 | |
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322 // Return the number of words between addr and the start of the region |
0 | 323 // containing addr. |
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324 inline size_t region_offset(const HeapWord* addr) const; |
0 | 325 |
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326 // Convert addresses to/from a region index or region pointer. |
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327 inline size_t addr_to_region_idx(const HeapWord* addr) const; |
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328 inline RegionData* addr_to_region_ptr(const HeapWord* addr) const; |
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329 inline HeapWord* region_to_addr(size_t region) const; |
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330 inline HeapWord* region_to_addr(size_t region, size_t offset) const; |
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331 inline HeapWord* region_to_addr(const RegionData* region) const; |
0 | 332 |
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333 inline HeapWord* region_align_down(HeapWord* addr) const; |
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334 inline HeapWord* region_align_up(HeapWord* addr) const; |
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335 inline bool is_region_aligned(HeapWord* addr) const; |
0 | 336 |
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337 // Analogous to region_offset() for blocks. |
0 | 338 size_t block_offset(const HeapWord* addr) const; |
339 size_t addr_to_block_idx(const HeapWord* addr) const; | |
340 size_t addr_to_block_idx(const oop obj) const { | |
341 return addr_to_block_idx((HeapWord*) obj); | |
342 } | |
343 inline BlockData* addr_to_block_ptr(const HeapWord* addr) const; | |
344 inline HeapWord* block_to_addr(size_t block) const; | |
345 | |
346 // Return the address one past the end of the partial object. | |
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347 HeapWord* partial_obj_end(size_t region_idx) const; |
0 | 348 |
349 // Return the new location of the object p after the | |
350 // the compaction. | |
351 HeapWord* calc_new_pointer(HeapWord* addr); | |
352 | |
353 // Same as calc_new_pointer() using blocks. | |
354 HeapWord* block_calc_new_pointer(HeapWord* addr); | |
355 | |
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356 // Same as calc_new_pointer() using regions. |
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357 HeapWord* region_calc_new_pointer(HeapWord* addr); |
0 | 358 |
359 HeapWord* calc_new_pointer(oop p) { | |
360 return calc_new_pointer((HeapWord*) p); | |
361 } | |
362 | |
363 // Return the updated address for the given klass | |
364 klassOop calc_new_klass(klassOop); | |
365 | |
366 // Given a block returns true if the partial object for the | |
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367 // corresponding region ends in the block. Returns false, otherwise |
0 | 368 // If there is no partial object, returns false. |
369 bool partial_obj_ends_in_block(size_t block_index); | |
370 | |
371 // Returns the block index for the block | |
372 static size_t block_idx(BlockData* block); | |
373 | |
374 #ifdef ASSERT | |
375 void verify_clear(const PSVirtualSpace* vspace); | |
376 void verify_clear(); | |
377 #endif // #ifdef ASSERT | |
378 | |
379 private: | |
380 bool initialize_block_data(size_t region_size); | |
375
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381 bool initialize_region_data(size_t region_size); |
0 | 382 PSVirtualSpace* create_vspace(size_t count, size_t element_size); |
383 | |
384 private: | |
385 HeapWord* _region_start; | |
386 #ifdef ASSERT | |
387 HeapWord* _region_end; | |
388 #endif // #ifdef ASSERT | |
389 | |
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390 PSVirtualSpace* _region_vspace; |
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391 RegionData* _region_data; |
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392 size_t _region_count; |
0 | 393 |
394 PSVirtualSpace* _block_vspace; | |
395 BlockData* _block_data; | |
396 size_t _block_count; | |
397 }; | |
398 | |
399 inline uint | |
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400 ParallelCompactData::RegionData::destination_count_raw() const |
0 | 401 { |
402 return _dc_and_los & dc_mask; | |
403 } | |
404 | |
405 inline uint | |
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406 ParallelCompactData::RegionData::destination_count() const |
0 | 407 { |
408 return destination_count_raw() >> dc_shift; | |
409 } | |
410 | |
411 inline void | |
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412 ParallelCompactData::RegionData::set_destination_count(uint count) |
0 | 413 { |
414 assert(count <= (dc_completed >> dc_shift), "count too large"); | |
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415 const region_sz_t live_sz = (region_sz_t) live_obj_size(); |
0 | 416 _dc_and_los = (count << dc_shift) | live_sz; |
417 } | |
418 | |
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419 inline void ParallelCompactData::RegionData::set_live_obj_size(size_t words) |
0 | 420 { |
421 assert(words <= los_mask, "would overflow"); | |
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422 _dc_and_los = destination_count_raw() | (region_sz_t)words; |
0 | 423 } |
424 | |
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425 inline void ParallelCompactData::RegionData::decrement_destination_count() |
0 | 426 { |
427 assert(_dc_and_los < dc_claimed, "already claimed"); | |
428 assert(_dc_and_los >= dc_one, "count would go negative"); | |
429 Atomic::add((int)dc_mask, (volatile int*)&_dc_and_los); | |
430 } | |
431 | |
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432 inline HeapWord* ParallelCompactData::RegionData::data_location() const |
0 | 433 { |
434 DEBUG_ONLY(return _data_location;) | |
435 NOT_DEBUG(return NULL;) | |
436 } | |
437 | |
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438 inline HeapWord* ParallelCompactData::RegionData::highest_ref() const |
0 | 439 { |
440 DEBUG_ONLY(return _highest_ref;) | |
441 NOT_DEBUG(return NULL;) | |
442 } | |
443 | |
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444 inline void ParallelCompactData::RegionData::set_data_location(HeapWord* addr) |
0 | 445 { |
446 DEBUG_ONLY(_data_location = addr;) | |
447 } | |
448 | |
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449 inline void ParallelCompactData::RegionData::set_completed() |
0 | 450 { |
451 assert(claimed(), "must be claimed first"); | |
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452 _dc_and_los = dc_completed | (region_sz_t) live_obj_size(); |
0 | 453 } |
454 | |
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455 // MT-unsafe claiming of a region. Should only be used during single threaded |
0 | 456 // execution. |
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457 inline bool ParallelCompactData::RegionData::claim_unsafe() |
0 | 458 { |
459 if (available()) { | |
460 _dc_and_los |= dc_claimed; | |
461 return true; | |
462 } | |
463 return false; | |
464 } | |
465 | |
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466 inline void ParallelCompactData::RegionData::add_live_obj(size_t words) |
0 | 467 { |
468 assert(words <= (size_t)los_mask - live_obj_size(), "overflow"); | |
469 Atomic::add((int) words, (volatile int*) &_dc_and_los); | |
470 } | |
471 | |
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472 inline void ParallelCompactData::RegionData::set_highest_ref(HeapWord* addr) |
0 | 473 { |
474 #ifdef ASSERT | |
475 HeapWord* tmp = _highest_ref; | |
476 while (addr > tmp) { | |
477 tmp = (HeapWord*)Atomic::cmpxchg_ptr(addr, &_highest_ref, tmp); | |
478 } | |
479 #endif // #ifdef ASSERT | |
480 } | |
481 | |
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482 inline bool ParallelCompactData::RegionData::claim() |
0 | 483 { |
484 const int los = (int) live_obj_size(); | |
485 const int old = Atomic::cmpxchg(dc_claimed | los, | |
486 (volatile int*) &_dc_and_los, los); | |
487 return old == los; | |
488 } | |
489 | |
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490 inline ParallelCompactData::RegionData* |
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491 ParallelCompactData::region(size_t region_idx) const |
0 | 492 { |
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493 assert(region_idx <= region_count(), "bad arg"); |
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494 return _region_data + region_idx; |
0 | 495 } |
496 | |
497 inline size_t | |
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498 ParallelCompactData::region(const RegionData* const region_ptr) const |
0 | 499 { |
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500 assert(region_ptr >= _region_data, "bad arg"); |
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501 assert(region_ptr <= _region_data + region_count(), "bad arg"); |
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502 return pointer_delta(region_ptr, _region_data, sizeof(RegionData)); |
0 | 503 } |
504 | |
505 inline ParallelCompactData::BlockData* | |
506 ParallelCompactData::block(size_t n) const { | |
507 assert(n < block_count(), "bad arg"); | |
508 return _block_data + n; | |
509 } | |
510 | |
511 inline size_t | |
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512 ParallelCompactData::region_offset(const HeapWord* addr) const |
0 | 513 { |
514 assert(addr >= _region_start, "bad addr"); | |
515 assert(addr <= _region_end, "bad addr"); | |
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516 return (size_t(addr) & RegionAddrOffsetMask) >> LogHeapWordSize; |
0 | 517 } |
518 | |
519 inline size_t | |
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520 ParallelCompactData::addr_to_region_idx(const HeapWord* addr) const |
0 | 521 { |
522 assert(addr >= _region_start, "bad addr"); | |
523 assert(addr <= _region_end, "bad addr"); | |
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524 return pointer_delta(addr, _region_start) >> Log2RegionSize; |
0 | 525 } |
526 | |
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527 inline ParallelCompactData::RegionData* |
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528 ParallelCompactData::addr_to_region_ptr(const HeapWord* addr) const |
0 | 529 { |
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530 return region(addr_to_region_idx(addr)); |
0 | 531 } |
532 | |
533 inline HeapWord* | |
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534 ParallelCompactData::region_to_addr(size_t region) const |
0 | 535 { |
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536 assert(region <= _region_count, "region out of range"); |
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537 return _region_start + (region << Log2RegionSize); |
0 | 538 } |
539 | |
540 inline HeapWord* | |
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541 ParallelCompactData::region_to_addr(const RegionData* region) const |
0 | 542 { |
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543 return region_to_addr(pointer_delta(region, _region_data, |
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544 sizeof(RegionData))); |
0 | 545 } |
546 | |
547 inline HeapWord* | |
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548 ParallelCompactData::region_to_addr(size_t region, size_t offset) const |
0 | 549 { |
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550 assert(region <= _region_count, "region out of range"); |
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551 assert(offset < RegionSize, "offset too big"); // This may be too strict. |
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552 return region_to_addr(region) + offset; |
0 | 553 } |
554 | |
555 inline HeapWord* | |
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556 ParallelCompactData::region_align_down(HeapWord* addr) const |
0 | 557 { |
558 assert(addr >= _region_start, "bad addr"); | |
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559 assert(addr < _region_end + RegionSize, "bad addr"); |
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560 return (HeapWord*)(size_t(addr) & RegionAddrMask); |
0 | 561 } |
562 | |
563 inline HeapWord* | |
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564 ParallelCompactData::region_align_up(HeapWord* addr) const |
0 | 565 { |
566 assert(addr >= _region_start, "bad addr"); | |
567 assert(addr <= _region_end, "bad addr"); | |
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568 return region_align_down(addr + RegionSizeOffsetMask); |
0 | 569 } |
570 | |
571 inline bool | |
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572 ParallelCompactData::is_region_aligned(HeapWord* addr) const |
0 | 573 { |
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574 return region_offset(addr) == 0; |
0 | 575 } |
576 | |
577 inline size_t | |
578 ParallelCompactData::block_offset(const HeapWord* addr) const | |
579 { | |
580 assert(addr >= _region_start, "bad addr"); | |
581 assert(addr <= _region_end, "bad addr"); | |
582 return pointer_delta(addr, _region_start) & BlockOffsetMask; | |
583 } | |
584 | |
585 inline size_t | |
586 ParallelCompactData::addr_to_block_idx(const HeapWord* addr) const | |
587 { | |
588 assert(addr >= _region_start, "bad addr"); | |
589 assert(addr <= _region_end, "bad addr"); | |
590 return pointer_delta(addr, _region_start) >> Log2BlockSize; | |
591 } | |
592 | |
593 inline ParallelCompactData::BlockData* | |
594 ParallelCompactData::addr_to_block_ptr(const HeapWord* addr) const | |
595 { | |
596 return block(addr_to_block_idx(addr)); | |
597 } | |
598 | |
599 inline HeapWord* | |
600 ParallelCompactData::block_to_addr(size_t block) const | |
601 { | |
602 assert(block < _block_count, "block out of range"); | |
603 return _region_start + (block << Log2BlockSize); | |
604 } | |
605 | |
606 // Abstract closure for use with ParMarkBitMap::iterate(), which will invoke the | |
607 // do_addr() method. | |
608 // | |
609 // The closure is initialized with the number of heap words to process | |
610 // (words_remaining()), and becomes 'full' when it reaches 0. The do_addr() | |
611 // methods in subclasses should update the total as words are processed. Since | |
612 // only one subclass actually uses this mechanism to terminate iteration, the | |
613 // default initial value is > 0. The implementation is here and not in the | |
614 // single subclass that uses it to avoid making is_full() virtual, and thus | |
615 // adding a virtual call per live object. | |
616 | |
617 class ParMarkBitMapClosure: public StackObj { | |
618 public: | |
619 typedef ParMarkBitMap::idx_t idx_t; | |
620 typedef ParMarkBitMap::IterationStatus IterationStatus; | |
621 | |
622 public: | |
623 inline ParMarkBitMapClosure(ParMarkBitMap* mbm, ParCompactionManager* cm, | |
624 size_t words = max_uintx); | |
625 | |
626 inline ParCompactionManager* compaction_manager() const; | |
627 inline ParMarkBitMap* bitmap() const; | |
628 inline size_t words_remaining() const; | |
629 inline bool is_full() const; | |
630 inline HeapWord* source() const; | |
631 | |
632 inline void set_source(HeapWord* addr); | |
633 | |
634 virtual IterationStatus do_addr(HeapWord* addr, size_t words) = 0; | |
635 | |
636 protected: | |
637 inline void decrement_words_remaining(size_t words); | |
638 | |
639 private: | |
640 ParMarkBitMap* const _bitmap; | |
641 ParCompactionManager* const _compaction_manager; | |
642 DEBUG_ONLY(const size_t _initial_words_remaining;) // Useful in debugger. | |
643 size_t _words_remaining; // Words left to copy. | |
644 | |
645 protected: | |
646 HeapWord* _source; // Next addr that would be read. | |
647 }; | |
648 | |
649 inline | |
650 ParMarkBitMapClosure::ParMarkBitMapClosure(ParMarkBitMap* bitmap, | |
651 ParCompactionManager* cm, | |
652 size_t words): | |
653 _bitmap(bitmap), _compaction_manager(cm) | |
654 #ifdef ASSERT | |
655 , _initial_words_remaining(words) | |
656 #endif | |
657 { | |
658 _words_remaining = words; | |
659 _source = NULL; | |
660 } | |
661 | |
662 inline ParCompactionManager* ParMarkBitMapClosure::compaction_manager() const { | |
663 return _compaction_manager; | |
664 } | |
665 | |
666 inline ParMarkBitMap* ParMarkBitMapClosure::bitmap() const { | |
667 return _bitmap; | |
668 } | |
669 | |
670 inline size_t ParMarkBitMapClosure::words_remaining() const { | |
671 return _words_remaining; | |
672 } | |
673 | |
674 inline bool ParMarkBitMapClosure::is_full() const { | |
675 return words_remaining() == 0; | |
676 } | |
677 | |
678 inline HeapWord* ParMarkBitMapClosure::source() const { | |
679 return _source; | |
680 } | |
681 | |
682 inline void ParMarkBitMapClosure::set_source(HeapWord* addr) { | |
683 _source = addr; | |
684 } | |
685 | |
686 inline void ParMarkBitMapClosure::decrement_words_remaining(size_t words) { | |
687 assert(_words_remaining >= words, "processed too many words"); | |
688 _words_remaining -= words; | |
689 } | |
690 | |
691 // Closure for updating the block data during the summary phase. | |
692 class BitBlockUpdateClosure: public ParMarkBitMapClosure { | |
693 // ParallelCompactData::BlockData::blk_ofs_t _live_data_left; | |
694 size_t _live_data_left; | |
695 size_t _cur_block; | |
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696 HeapWord* _region_start; |
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697 HeapWord* _region_end; |
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698 size_t _region_index; |
0 | 699 |
700 public: | |
701 BitBlockUpdateClosure(ParMarkBitMap* mbm, | |
702 ParCompactionManager* cm, | |
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703 size_t region_index); |
0 | 704 |
705 size_t cur_block() { return _cur_block; } | |
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706 size_t region_index() { return _region_index; } |
0 | 707 size_t live_data_left() { return _live_data_left; } |
708 // Returns true the first bit in the current block (cur_block) is | |
709 // a start bit. | |
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710 // Returns true if the current block is within the region for the closure; |
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711 bool region_contains_cur_block(); |
0 | 712 |
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713 // Set the region index and related region values for |
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714 // a new region. |
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715 void reset_region(size_t region_index); |
0 | 716 |
717 virtual IterationStatus do_addr(HeapWord* addr, size_t words); | |
718 }; | |
719 | |
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720 // The UseParallelOldGC collector is a stop-the-world garbage collector that |
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721 // does parts of the collection using parallel threads. The collection includes |
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722 // the tenured generation and the young generation. The permanent generation is |
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723 // collected at the same time as the other two generations but the permanent |
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724 // generation is collect by a single GC thread. The permanent generation is |
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725 // collected serially because of the requirement that during the processing of a |
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726 // klass AAA, any objects reference by AAA must already have been processed. |
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727 // This requirement is enforced by a left (lower address) to right (higher |
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728 // address) sliding compaction. |
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729 // |
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730 // There are four phases of the collection. |
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731 // |
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732 // - marking phase |
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733 // - summary phase |
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734 // - compacting phase |
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735 // - clean up phase |
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736 // |
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737 // Roughly speaking these phases correspond, respectively, to |
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738 // - mark all the live objects |
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739 // - calculate the destination of each object at the end of the collection |
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740 // - move the objects to their destination |
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741 // - update some references and reinitialize some variables |
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742 // |
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743 // These three phases are invoked in PSParallelCompact::invoke_no_policy(). The |
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744 // marking phase is implemented in PSParallelCompact::marking_phase() and does a |
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745 // complete marking of the heap. The summary phase is implemented in |
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746 // PSParallelCompact::summary_phase(). The move and update phase is implemented |
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747 // in PSParallelCompact::compact(). |
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748 // |
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749 // A space that is being collected is divided into regions and with each region |
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750 // is associated an object of type ParallelCompactData. Each region is of a |
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751 // fixed size and typically will contain more than 1 object and may have parts |
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752 // of objects at the front and back of the region. |
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753 // |
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754 // region -----+---------------------+---------- |
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755 // objects covered [ AAA )[ BBB )[ CCC )[ DDD ) |
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756 // |
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757 // The marking phase does a complete marking of all live objects in the heap. |
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758 // The marking also compiles the size of the data for all live objects covered |
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759 // by the region. This size includes the part of any live object spanning onto |
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760 // the region (part of AAA if it is live) from the front, all live objects |
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761 // contained in the region (BBB and/or CCC if they are live), and the part of |
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762 // any live objects covered by the region that extends off the region (part of |
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763 // DDD if it is live). The marking phase uses multiple GC threads and marking |
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764 // is done in a bit array of type ParMarkBitMap. The marking of the bit map is |
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765 // done atomically as is the accumulation of the size of the live objects |
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766 // covered by a region. |
263
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767 // |
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768 // The summary phase calculates the total live data to the left of each region |
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769 // XXX. Based on that total and the bottom of the space, it can calculate the |
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770 // starting location of the live data in XXX. The summary phase calculates for |
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771 // each region XXX quantites such as |
263
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772 // |
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773 // - the amount of live data at the beginning of a region from an object |
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774 // entering the region. |
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775 // - the location of the first live data on the region |
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776 // - a count of the number of regions receiving live data from XXX. |
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777 // |
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778 // See ParallelCompactData for precise details. The summary phase also |
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779 // calculates the dense prefix for the compaction. The dense prefix is a |
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780 // portion at the beginning of the space that is not moved. The objects in the |
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781 // dense prefix do need to have their object references updated. See method |
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782 // summarize_dense_prefix(). |
263
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783 // |
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784 // The summary phase is done using 1 GC thread. |
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785 // |
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786 // The compaction phase moves objects to their new location and updates all |
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787 // references in the object. |
263
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788 // |
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789 // A current exception is that objects that cross a region boundary are moved |
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790 // but do not have their references updated. References are not updated because |
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791 // it cannot easily be determined if the klass pointer KKK for the object AAA |
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792 // has been updated. KKK likely resides in a region to the left of the region |
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793 // containing AAA. These AAA's have there references updated at the end in a |
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794 // clean up phase. See the method PSParallelCompact::update_deferred_objects(). |
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795 // An alternate strategy is being investigated for this deferral of updating. |
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796 // |
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797 // Compaction is done on a region basis. A region that is ready to be filled is |
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798 // put on a ready list and GC threads take region off the list and fill them. A |
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799 // region is ready to be filled if it empty of live objects. Such a region may |
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800 // have been initially empty (only contained dead objects) or may have had all |
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801 // its live objects copied out already. A region that compacts into itself is |
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802 // also ready for filling. The ready list is initially filled with empty |
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803 // regions and regions compacting into themselves. There is always at least 1 |
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804 // region that can be put on the ready list. The regions are atomically added |
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805 // and removed from the ready list. |
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806 |
0 | 807 class PSParallelCompact : AllStatic { |
808 public: | |
809 // Convenient access to type names. | |
810 typedef ParMarkBitMap::idx_t idx_t; | |
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811 typedef ParallelCompactData::RegionData RegionData; |
0 | 812 typedef ParallelCompactData::BlockData BlockData; |
813 | |
814 typedef enum { | |
815 perm_space_id, old_space_id, eden_space_id, | |
816 from_space_id, to_space_id, last_space_id | |
817 } SpaceId; | |
818 | |
819 public: | |
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820 // Inline closure decls |
0 | 821 // |
822 class IsAliveClosure: public BoolObjectClosure { | |
823 public: | |
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824 virtual void do_object(oop p); |
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825 virtual bool do_object_b(oop p); |
0 | 826 }; |
827 | |
828 class KeepAliveClosure: public OopClosure { | |
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829 private: |
0 | 830 ParCompactionManager* _compaction_manager; |
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831 protected: |
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832 template <class T> inline void do_oop_work(T* p); |
0 | 833 public: |
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834 KeepAliveClosure(ParCompactionManager* cm) : _compaction_manager(cm) { } |
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835 virtual void do_oop(oop* p); |
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836 virtual void do_oop(narrowOop* p); |
0 | 837 }; |
838 | |
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839 // Current unused |
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840 class FollowRootClosure: public OopsInGenClosure { |
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841 private: |
0 | 842 ParCompactionManager* _compaction_manager; |
843 public: | |
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844 FollowRootClosure(ParCompactionManager* cm) : _compaction_manager(cm) { } |
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845 virtual void do_oop(oop* p); |
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846 virtual void do_oop(narrowOop* p); |
0 | 847 virtual const bool do_nmethods() const { return true; } |
848 }; | |
849 | |
850 class FollowStackClosure: public VoidClosure { | |
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851 private: |
0 | 852 ParCompactionManager* _compaction_manager; |
853 public: | |
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854 FollowStackClosure(ParCompactionManager* cm) : _compaction_manager(cm) { } |
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855 virtual void do_void(); |
0 | 856 }; |
857 | |
858 class AdjustPointerClosure: public OopsInGenClosure { | |
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859 private: |
0 | 860 bool _is_root; |
861 public: | |
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862 AdjustPointerClosure(bool is_root) : _is_root(is_root) { } |
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863 virtual void do_oop(oop* p); |
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864 virtual void do_oop(narrowOop* p); |
0 | 865 }; |
866 | |
867 // Closure for verifying update of pointers. Does not | |
868 // have any side effects. | |
869 class VerifyUpdateClosure: public ParMarkBitMapClosure { | |
870 const MutableSpace* _space; // Is this ever used? | |
871 | |
872 public: | |
873 VerifyUpdateClosure(ParCompactionManager* cm, const MutableSpace* sp) : | |
874 ParMarkBitMapClosure(PSParallelCompact::mark_bitmap(), cm), _space(sp) | |
875 { } | |
876 | |
877 virtual IterationStatus do_addr(HeapWord* addr, size_t words); | |
878 | |
879 const MutableSpace* space() { return _space; } | |
880 }; | |
881 | |
882 // Closure for updating objects altered for debug checking | |
883 class ResetObjectsClosure: public ParMarkBitMapClosure { | |
884 public: | |
885 ResetObjectsClosure(ParCompactionManager* cm): | |
886 ParMarkBitMapClosure(PSParallelCompact::mark_bitmap(), cm) | |
887 { } | |
888 | |
889 virtual IterationStatus do_addr(HeapWord* addr, size_t words); | |
890 }; | |
891 | |
892 friend class KeepAliveClosure; | |
893 friend class FollowStackClosure; | |
894 friend class AdjustPointerClosure; | |
895 friend class FollowRootClosure; | |
896 friend class instanceKlassKlass; | |
897 friend class RefProcTaskProxy; | |
898 | |
899 private: | |
900 static elapsedTimer _accumulated_time; | |
901 static unsigned int _total_invocations; | |
902 static unsigned int _maximum_compaction_gc_num; | |
903 static jlong _time_of_last_gc; // ms | |
904 static CollectorCounters* _counters; | |
905 static ParMarkBitMap _mark_bitmap; | |
906 static ParallelCompactData _summary_data; | |
907 static IsAliveClosure _is_alive_closure; | |
908 static SpaceInfo _space_info[last_space_id]; | |
909 static bool _print_phases; | |
910 static AdjustPointerClosure _adjust_root_pointer_closure; | |
911 static AdjustPointerClosure _adjust_pointer_closure; | |
912 | |
913 // Reference processing (used in ...follow_contents) | |
914 static ReferenceProcessor* _ref_processor; | |
915 | |
916 // Updated location of intArrayKlassObj. | |
917 static klassOop _updated_int_array_klass_obj; | |
918 | |
919 // Values computed at initialization and used by dead_wood_limiter(). | |
920 static double _dwl_mean; | |
921 static double _dwl_std_dev; | |
922 static double _dwl_first_term; | |
923 static double _dwl_adjustment; | |
924 #ifdef ASSERT | |
925 static bool _dwl_initialized; | |
926 #endif // #ifdef ASSERT | |
927 | |
928 private: | |
929 // Closure accessors | |
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930 static OopClosure* adjust_pointer_closure() { return (OopClosure*)&_adjust_pointer_closure; } |
0 | 931 static OopClosure* adjust_root_pointer_closure() { return (OopClosure*)&_adjust_root_pointer_closure; } |
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932 static BoolObjectClosure* is_alive_closure() { return (BoolObjectClosure*)&_is_alive_closure; } |
0 | 933 |
934 static void initialize_space_info(); | |
935 | |
936 // Return true if details about individual phases should be printed. | |
937 static inline bool print_phases(); | |
938 | |
939 // Clear the marking bitmap and summary data that cover the specified space. | |
940 static void clear_data_covering_space(SpaceId id); | |
941 | |
942 static void pre_compact(PreGCValues* pre_gc_values); | |
943 static void post_compact(); | |
944 | |
945 // Mark live objects | |
946 static void marking_phase(ParCompactionManager* cm, | |
947 bool maximum_heap_compaction); | |
948 static void follow_stack(ParCompactionManager* cm); | |
949 static void follow_weak_klass_links(ParCompactionManager* cm); | |
950 | |
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951 template <class T> static inline void adjust_pointer(T* p, bool is_root); |
0 | 952 static void adjust_root_pointer(oop* p) { adjust_pointer(p, true); } |
953 | |
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954 template <class T> |
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955 static inline void follow_root(ParCompactionManager* cm, T* p); |
0 | 956 |
957 // Compute the dense prefix for the designated space. This is an experimental | |
958 // implementation currently not used in production. | |
959 static HeapWord* compute_dense_prefix_via_density(const SpaceId id, | |
960 bool maximum_compaction); | |
961 | |
962 // Methods used to compute the dense prefix. | |
963 | |
964 // Compute the value of the normal distribution at x = density. The mean and | |
965 // standard deviation are values saved by initialize_dead_wood_limiter(). | |
966 static inline double normal_distribution(double density); | |
967 | |
968 // Initialize the static vars used by dead_wood_limiter(). | |
969 static void initialize_dead_wood_limiter(); | |
970 | |
971 // Return the percentage of space that can be treated as "dead wood" (i.e., | |
972 // not reclaimed). | |
973 static double dead_wood_limiter(double density, size_t min_percent); | |
974 | |
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975 // Find the first (left-most) region in the range [beg, end) that has at least |
0 | 976 // dead_words of dead space to the left. The argument beg must be the first |
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977 // region in the space that is not completely live. |
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978 static RegionData* dead_wood_limit_region(const RegionData* beg, |
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979 const RegionData* end, |
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980 size_t dead_words); |
0 | 981 |
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982 // Return a pointer to the first region in the range [beg, end) that is not |
0 | 983 // completely full. |
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984 static RegionData* first_dead_space_region(const RegionData* beg, |
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985 const RegionData* end); |
0 | 986 |
987 // Return a value indicating the benefit or 'yield' if the compacted region | |
988 // were to start (or equivalently if the dense prefix were to end) at the | |
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989 // candidate region. Higher values are better. |
0 | 990 // |
991 // The value is based on the amount of space reclaimed vs. the costs of (a) | |
992 // updating references in the dense prefix plus (b) copying objects and | |
993 // updating references in the compacted region. | |
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994 static inline double reclaimed_ratio(const RegionData* const candidate, |
0 | 995 HeapWord* const bottom, |
996 HeapWord* const top, | |
997 HeapWord* const new_top); | |
998 | |
999 // Compute the dense prefix for the designated space. | |
1000 static HeapWord* compute_dense_prefix(const SpaceId id, | |
1001 bool maximum_compaction); | |
1002 | |
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1003 // Return true if dead space crosses onto the specified Region; bit must be |
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1004 // the bit index corresponding to the first word of the Region. |
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1005 static inline bool dead_space_crosses_boundary(const RegionData* region, |
0 | 1006 idx_t bit); |
1007 | |
1008 // Summary phase utility routine to fill dead space (if any) at the dense | |
1009 // prefix boundary. Should only be called if the the dense prefix is | |
1010 // non-empty. | |
1011 static void fill_dense_prefix_end(SpaceId id); | |
1012 | |
1013 static void summarize_spaces_quick(); | |
1014 static void summarize_space(SpaceId id, bool maximum_compaction); | |
1015 static void summary_phase(ParCompactionManager* cm, bool maximum_compaction); | |
1016 | |
1017 static bool block_first_offset(size_t block_index, idx_t* block_offset_ptr); | |
1018 | |
1019 // Fill in the BlockData | |
1020 static void summarize_blocks(ParCompactionManager* cm, | |
1021 SpaceId first_compaction_space_id); | |
1022 | |
1023 // The space that is compacted after space_id. | |
1024 static SpaceId next_compaction_space_id(SpaceId space_id); | |
1025 | |
1026 // Adjust addresses in roots. Does not adjust addresses in heap. | |
1027 static void adjust_roots(); | |
1028 | |
1029 // Serial code executed in preparation for the compaction phase. | |
1030 static void compact_prologue(); | |
1031 | |
1032 // Move objects to new locations. | |
1033 static void compact_perm(ParCompactionManager* cm); | |
1034 static void compact(); | |
1035 | |
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1036 // Add available regions to the stack and draining tasks to the task queue. |
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1037 static void enqueue_region_draining_tasks(GCTaskQueue* q, |
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1038 uint parallel_gc_threads); |
0 | 1039 |
1040 // Add dense prefix update tasks to the task queue. | |
1041 static void enqueue_dense_prefix_tasks(GCTaskQueue* q, | |
1042 uint parallel_gc_threads); | |
1043 | |
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1044 // Add region stealing tasks to the task queue. |
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1045 static void enqueue_region_stealing_tasks( |
0 | 1046 GCTaskQueue* q, |
1047 ParallelTaskTerminator* terminator_ptr, | |
1048 uint parallel_gc_threads); | |
1049 | |
1050 // For debugging only - compacts the old gen serially | |
1051 static void compact_serial(ParCompactionManager* cm); | |
1052 | |
1053 // If objects are left in eden after a collection, try to move the boundary | |
1054 // and absorb them into the old gen. Returns true if eden was emptied. | |
1055 static bool absorb_live_data_from_eden(PSAdaptiveSizePolicy* size_policy, | |
1056 PSYoungGen* young_gen, | |
1057 PSOldGen* old_gen); | |
1058 | |
1059 // Reset time since last full gc | |
1060 static void reset_millis_since_last_gc(); | |
1061 | |
1062 protected: | |
1063 #ifdef VALIDATE_MARK_SWEEP | |
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1064 static GrowableArray<void*>* _root_refs_stack; |
0 | 1065 static GrowableArray<oop> * _live_oops; |
1066 static GrowableArray<oop> * _live_oops_moved_to; | |
1067 static GrowableArray<size_t>* _live_oops_size; | |
1068 static size_t _live_oops_index; | |
1069 static size_t _live_oops_index_at_perm; | |
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1070 static GrowableArray<void*>* _other_refs_stack; |
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1071 static GrowableArray<void*>* _adjusted_pointers; |
0 | 1072 static bool _pointer_tracking; |
1073 static bool _root_tracking; | |
1074 | |
1075 // The following arrays are saved since the time of the last GC and | |
1076 // assist in tracking down problems where someone has done an errant | |
1077 // store into the heap, usually to an oop that wasn't properly | |
1078 // handleized across a GC. If we crash or otherwise fail before the | |
1079 // next GC, we can query these arrays to find out the object we had | |
1080 // intended to do the store to (assuming it is still alive) and the | |
1081 // offset within that object. Covered under RecordMarkSweepCompaction. | |
1082 static GrowableArray<HeapWord*> * _cur_gc_live_oops; | |
1083 static GrowableArray<HeapWord*> * _cur_gc_live_oops_moved_to; | |
1084 static GrowableArray<size_t>* _cur_gc_live_oops_size; | |
1085 static GrowableArray<HeapWord*> * _last_gc_live_oops; | |
1086 static GrowableArray<HeapWord*> * _last_gc_live_oops_moved_to; | |
1087 static GrowableArray<size_t>* _last_gc_live_oops_size; | |
1088 #endif | |
1089 | |
1090 public: | |
1091 class MarkAndPushClosure: public OopClosure { | |
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1092 private: |
0 | 1093 ParCompactionManager* _compaction_manager; |
1094 public: | |
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1095 MarkAndPushClosure(ParCompactionManager* cm) : _compaction_manager(cm) { } |
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1096 virtual void do_oop(oop* p); |
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1097 virtual void do_oop(narrowOop* p); |
0 | 1098 virtual const bool do_nmethods() const { return true; } |
1099 }; | |
1100 | |
1101 PSParallelCompact(); | |
1102 | |
1103 // Convenient accessor for Universe::heap(). | |
1104 static ParallelScavengeHeap* gc_heap() { | |
1105 return (ParallelScavengeHeap*)Universe::heap(); | |
1106 } | |
1107 | |
1108 static void invoke(bool maximum_heap_compaction); | |
1109 static void invoke_no_policy(bool maximum_heap_compaction); | |
1110 | |
1111 static void post_initialize(); | |
1112 // Perform initialization for PSParallelCompact that requires | |
1113 // allocations. This should be called during the VM initialization | |
1114 // at a pointer where it would be appropriate to return a JNI_ENOMEM | |
1115 // in the event of a failure. | |
1116 static bool initialize(); | |
1117 | |
1118 // Public accessors | |
1119 static elapsedTimer* accumulated_time() { return &_accumulated_time; } | |
1120 static unsigned int total_invocations() { return _total_invocations; } | |
1121 static CollectorCounters* counters() { return _counters; } | |
1122 | |
1123 // Used to add tasks | |
1124 static GCTaskManager* const gc_task_manager(); | |
1125 static klassOop updated_int_array_klass_obj() { | |
1126 return _updated_int_array_klass_obj; | |
1127 } | |
1128 | |
1129 // Marking support | |
1130 static inline bool mark_obj(oop obj); | |
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1131 // Check mark and maybe push on marking stack |
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1132 template <class T> static inline void mark_and_push(ParCompactionManager* cm, |
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1133 T* p); |
0 | 1134 |
1135 // Compaction support. | |
1136 // Return true if p is in the range [beg_addr, end_addr). | |
1137 static inline bool is_in(HeapWord* p, HeapWord* beg_addr, HeapWord* end_addr); | |
1138 static inline bool is_in(oop* p, HeapWord* beg_addr, HeapWord* end_addr); | |
1139 | |
1140 // Convenience wrappers for per-space data kept in _space_info. | |
1141 static inline MutableSpace* space(SpaceId space_id); | |
1142 static inline HeapWord* new_top(SpaceId space_id); | |
1143 static inline HeapWord* dense_prefix(SpaceId space_id); | |
1144 static inline ObjectStartArray* start_array(SpaceId space_id); | |
1145 | |
1146 // Return true if the klass should be updated. | |
1147 static inline bool should_update_klass(klassOop k); | |
1148 | |
1149 // Move and update the live objects in the specified space. | |
1150 static void move_and_update(ParCompactionManager* cm, SpaceId space_id); | |
1151 | |
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1152 // Process the end of the given region range in the dense prefix. |
0 | 1153 // This includes saving any object not updated. |
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1154 static void dense_prefix_regions_epilogue(ParCompactionManager* cm, |
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1155 size_t region_start_index, |
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1156 size_t region_end_index, |
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1157 idx_t exiting_object_offset, |
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1158 idx_t region_offset_start, |
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1159 idx_t region_offset_end); |
0 | 1160 |
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1161 // Update a region in the dense prefix. For each live object |
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1162 // in the region, update it's interior references. For each |
0 | 1163 // dead object, fill it with deadwood. Dead space at the end |
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1164 // of a region range will be filled to the start of the next |
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1165 // live object regardless of the region_index_end. None of the |
0 | 1166 // objects in the dense prefix move and dead space is dead |
1167 // (holds only dead objects that don't need any processing), so | |
1168 // dead space can be filled in any order. | |
1169 static void update_and_deadwood_in_dense_prefix(ParCompactionManager* cm, | |
1170 SpaceId space_id, | |
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1171 size_t region_index_start, |
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1172 size_t region_index_end); |
0 | 1173 |
1174 // Return the address of the count + 1st live word in the range [beg, end). | |
1175 static HeapWord* skip_live_words(HeapWord* beg, HeapWord* end, size_t count); | |
1176 | |
1177 // Return the address of the word to be copied to dest_addr, which must be | |
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1178 // aligned to a region boundary. |
0 | 1179 static HeapWord* first_src_addr(HeapWord* const dest_addr, |
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1180 size_t src_region_idx); |
0 | 1181 |
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1182 // Determine the next source region, set closure.source() to the start of the |
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1183 // new region return the region index. Parameter end_addr is the address one |
0 | 1184 // beyond the end of source range just processed. If necessary, switch to a |
1185 // new source space and set src_space_id (in-out parameter) and src_space_top | |
1186 // (out parameter) accordingly. | |
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1187 static size_t next_src_region(MoveAndUpdateClosure& closure, |
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1188 SpaceId& src_space_id, |
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1189 HeapWord*& src_space_top, |
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1190 HeapWord* end_addr); |
0 | 1191 |
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1192 // Decrement the destination count for each non-empty source region in the |
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1193 // range [beg_region, region(region_align_up(end_addr))). |
0 | 1194 static void decrement_destination_counts(ParCompactionManager* cm, |
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1195 size_t beg_region, |
0 | 1196 HeapWord* end_addr); |
1197 | |
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1198 // Fill a region, copying objects from one or more source regions. |
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1199 static void fill_region(ParCompactionManager* cm, size_t region_idx); |
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1200 static void fill_and_update_region(ParCompactionManager* cm, size_t region) { |
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1201 fill_region(cm, region); |
0 | 1202 } |
1203 | |
1204 // Update the deferred objects in the space. | |
1205 static void update_deferred_objects(ParCompactionManager* cm, SpaceId id); | |
1206 | |
1207 // Mark pointer and follow contents. | |
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1208 template <class T> |
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1209 static inline void mark_and_follow(ParCompactionManager* cm, T* p); |
0 | 1210 |
1211 static ParMarkBitMap* mark_bitmap() { return &_mark_bitmap; } | |
1212 static ParallelCompactData& summary_data() { return _summary_data; } | |
1213 | |
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1214 static inline void adjust_pointer(oop* p) { adjust_pointer(p, false); } |
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1215 static inline void adjust_pointer(narrowOop* p) { adjust_pointer(p, false); } |
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1216 |
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1217 template <class T> |
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1218 static inline void adjust_pointer(T* p, |
0 | 1219 HeapWord* beg_addr, |
1220 HeapWord* end_addr); | |
1221 | |
1222 // Reference Processing | |
1223 static ReferenceProcessor* const ref_processor() { return _ref_processor; } | |
1224 | |
1225 // Return the SpaceId for the given address. | |
1226 static SpaceId space_id(HeapWord* addr); | |
1227 | |
1228 // Time since last full gc (in milliseconds). | |
1229 static jlong millis_since_last_gc(); | |
1230 | |
1231 #ifdef VALIDATE_MARK_SWEEP | |
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1232 static void track_adjusted_pointer(void* p, bool isroot); |
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1233 static void check_adjust_pointer(void* p); |
0 | 1234 static void track_interior_pointers(oop obj); |
1235 static void check_interior_pointers(); | |
1236 | |
1237 static void reset_live_oop_tracking(bool at_perm); | |
1238 static void register_live_oop(oop p, size_t size); | |
1239 static void validate_live_oop(oop p, size_t size); | |
1240 static void live_oop_moved_to(HeapWord* q, size_t size, HeapWord* compaction_top); | |
1241 static void compaction_complete(); | |
1242 | |
1243 // Querying operation of RecordMarkSweepCompaction results. | |
1244 // Finds and prints the current base oop and offset for a word | |
1245 // within an oop that was live during the last GC. Helpful for | |
1246 // tracking down heap stomps. | |
1247 static void print_new_location_of_heap_address(HeapWord* q); | |
1248 #endif // #ifdef VALIDATE_MARK_SWEEP | |
1249 | |
1250 // Call backs for class unloading | |
1251 // Update subklass/sibling/implementor links at end of marking. | |
1252 static void revisit_weak_klass_link(ParCompactionManager* cm, Klass* k); | |
1253 | |
1254 #ifndef PRODUCT | |
1255 // Debugging support. | |
1256 static const char* space_names[last_space_id]; | |
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1257 static void print_region_ranges(); |
0 | 1258 static void print_dense_prefix_stats(const char* const algorithm, |
1259 const SpaceId id, | |
1260 const bool maximum_compaction, | |
1261 HeapWord* const addr); | |
1262 #endif // #ifndef PRODUCT | |
1263 | |
1264 #ifdef ASSERT | |
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1265 // Verify that all the regions have been emptied. |
0 | 1266 static void verify_complete(SpaceId space_id); |
1267 #endif // #ifdef ASSERT | |
1268 }; | |
1269 | |
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1270 inline bool PSParallelCompact::mark_obj(oop obj) { |
0 | 1271 const int obj_size = obj->size(); |
1272 if (mark_bitmap()->mark_obj(obj, obj_size)) { | |
1273 _summary_data.add_obj(obj, obj_size); | |
1274 return true; | |
1275 } else { | |
1276 return false; | |
1277 } | |
1278 } | |
1279 | |
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1280 template <class T> |
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1281 inline void PSParallelCompact::follow_root(ParCompactionManager* cm, T* p) { |
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1282 assert(!Universe::heap()->is_in_reserved(p), |
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1283 "roots shouldn't be things within the heap"); |
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1284 #ifdef VALIDATE_MARK_SWEEP |
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1285 if (ValidateMarkSweep) { |
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1286 guarantee(!_root_refs_stack->contains(p), "should only be in here once"); |
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1287 _root_refs_stack->push(p); |
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1288 } |
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1289 #endif |
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1290 T heap_oop = oopDesc::load_heap_oop(p); |
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1291 if (!oopDesc::is_null(heap_oop)) { |
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1292 oop obj = oopDesc::decode_heap_oop_not_null(heap_oop); |
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1293 if (mark_bitmap()->is_unmarked(obj)) { |
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1294 if (mark_obj(obj)) { |
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1295 obj->follow_contents(cm); |
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1296 } |
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1297 } |
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1298 } |
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1299 follow_stack(cm); |
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1300 } |
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1301 |
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1302 template <class T> |
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1303 inline void PSParallelCompact::mark_and_follow(ParCompactionManager* cm, |
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1304 T* p) { |
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1305 T heap_oop = oopDesc::load_heap_oop(p); |
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1306 if (!oopDesc::is_null(heap_oop)) { |
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1307 oop obj = oopDesc::decode_heap_oop_not_null(heap_oop); |
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1308 if (mark_bitmap()->is_unmarked(obj)) { |
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1309 if (mark_obj(obj)) { |
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1310 obj->follow_contents(cm); |
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1311 } |
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1312 } |
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1313 } |
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1314 } |
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1315 |
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1316 template <class T> |
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1317 inline void PSParallelCompact::mark_and_push(ParCompactionManager* cm, T* p) { |
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1318 T heap_oop = oopDesc::load_heap_oop(p); |
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1319 if (!oopDesc::is_null(heap_oop)) { |
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1320 oop obj = oopDesc::decode_heap_oop_not_null(heap_oop); |
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1321 if (mark_bitmap()->is_unmarked(obj)) { |
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1322 if (mark_obj(obj)) { |
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1323 // This thread marked the object and owns the subsequent processing of it. |
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1324 cm->save_for_scanning(obj); |
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1325 } |
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1326 } |
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1327 } |
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1328 } |
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1329 |
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1330 template <class T> |
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1331 inline void PSParallelCompact::adjust_pointer(T* p, bool isroot) { |
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1332 T heap_oop = oopDesc::load_heap_oop(p); |
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1333 if (!oopDesc::is_null(heap_oop)) { |
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1334 oop obj = oopDesc::decode_heap_oop_not_null(heap_oop); |
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1335 oop new_obj = (oop)summary_data().calc_new_pointer(obj); |
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1336 assert(new_obj != NULL || // is forwarding ptr? |
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1337 obj->is_shared(), // never forwarded? |
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1338 "should be forwarded"); |
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1339 // Just always do the update unconditionally? |
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1340 if (new_obj != NULL) { |
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1341 assert(Universe::heap()->is_in_reserved(new_obj), |
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1342 "should be in object space"); |
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1343 oopDesc::encode_store_heap_oop_not_null(p, new_obj); |
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1344 } |
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1345 } |
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1346 VALIDATE_MARK_SWEEP_ONLY(track_adjusted_pointer(p, isroot)); |
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1347 } |
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1348 |
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1349 template <class T> |
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1350 inline void PSParallelCompact::KeepAliveClosure::do_oop_work(T* p) { |
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1351 #ifdef VALIDATE_MARK_SWEEP |
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1352 if (ValidateMarkSweep) { |
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1353 if (!Universe::heap()->is_in_reserved(p)) { |
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1354 _root_refs_stack->push(p); |
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1355 } else { |
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1356 _other_refs_stack->push(p); |
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1357 } |
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1358 } |
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1359 #endif |
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1360 mark_and_push(_compaction_manager, p); |
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1361 } |
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1362 |
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1363 inline bool PSParallelCompact::print_phases() { |
0 | 1364 return _print_phases; |
1365 } | |
1366 | |
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1367 inline double PSParallelCompact::normal_distribution(double density) { |
0 | 1368 assert(_dwl_initialized, "uninitialized"); |
1369 const double squared_term = (density - _dwl_mean) / _dwl_std_dev; | |
1370 return _dwl_first_term * exp(-0.5 * squared_term * squared_term); | |
1371 } | |
1372 | |
1373 inline bool | |
375
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1374 PSParallelCompact::dead_space_crosses_boundary(const RegionData* region, |
0 | 1375 idx_t bit) |
1376 { | |
375
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1377 assert(bit > 0, "cannot call this for the first bit/region"); |
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1378 assert(_summary_data.region_to_addr(region) == _mark_bitmap.bit_to_addr(bit), |
0 | 1379 "sanity check"); |
1380 | |
1381 // Dead space crosses the boundary if (1) a partial object does not extend | |
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1382 // onto the region, (2) an object does not start at the beginning of the |
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1383 // region, and (3) an object does not end at the end of the prior region. |
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1384 return region->partial_obj_size() == 0 && |
0 | 1385 !_mark_bitmap.is_obj_beg(bit) && |
1386 !_mark_bitmap.is_obj_end(bit - 1); | |
1387 } | |
1388 | |
1389 inline bool | |
1390 PSParallelCompact::is_in(HeapWord* p, HeapWord* beg_addr, HeapWord* end_addr) { | |
1391 return p >= beg_addr && p < end_addr; | |
1392 } | |
1393 | |
1394 inline bool | |
1395 PSParallelCompact::is_in(oop* p, HeapWord* beg_addr, HeapWord* end_addr) { | |
1396 return is_in((HeapWord*)p, beg_addr, end_addr); | |
1397 } | |
1398 | |
1399 inline MutableSpace* PSParallelCompact::space(SpaceId id) { | |
1400 assert(id < last_space_id, "id out of range"); | |
1401 return _space_info[id].space(); | |
1402 } | |
1403 | |
1404 inline HeapWord* PSParallelCompact::new_top(SpaceId id) { | |
1405 assert(id < last_space_id, "id out of range"); | |
1406 return _space_info[id].new_top(); | |
1407 } | |
1408 | |
1409 inline HeapWord* PSParallelCompact::dense_prefix(SpaceId id) { | |
1410 assert(id < last_space_id, "id out of range"); | |
1411 return _space_info[id].dense_prefix(); | |
1412 } | |
1413 | |
1414 inline ObjectStartArray* PSParallelCompact::start_array(SpaceId id) { | |
1415 assert(id < last_space_id, "id out of range"); | |
1416 return _space_info[id].start_array(); | |
1417 } | |
1418 | |
1419 inline bool PSParallelCompact::should_update_klass(klassOop k) { | |
1420 return ((HeapWord*) k) >= dense_prefix(perm_space_id); | |
1421 } | |
1422 | |
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1423 template <class T> |
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1424 inline void PSParallelCompact::adjust_pointer(T* p, |
0 | 1425 HeapWord* beg_addr, |
1426 HeapWord* end_addr) { | |
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1427 if (is_in((HeapWord*)p, beg_addr, end_addr)) { |
0 | 1428 adjust_pointer(p); |
1429 } | |
1430 } | |
1431 | |
1432 class MoveAndUpdateClosure: public ParMarkBitMapClosure { | |
1433 public: | |
1434 inline MoveAndUpdateClosure(ParMarkBitMap* bitmap, ParCompactionManager* cm, | |
1435 ObjectStartArray* start_array, | |
1436 HeapWord* destination, size_t words); | |
1437 | |
1438 // Accessors. | |
1439 HeapWord* destination() const { return _destination; } | |
1440 | |
1441 // If the object will fit (size <= words_remaining()), copy it to the current | |
1442 // destination, update the interior oops and the start array and return either | |
1443 // full (if the closure is full) or incomplete. If the object will not fit, | |
1444 // return would_overflow. | |
1445 virtual IterationStatus do_addr(HeapWord* addr, size_t size); | |
1446 | |
1447 // Copy enough words to fill this closure, starting at source(). Interior | |
1448 // oops and the start array are not updated. Return full. | |
1449 IterationStatus copy_until_full(); | |
1450 | |
1451 // Copy enough words to fill this closure or to the end of an object, | |
1452 // whichever is smaller, starting at source(). Interior oops and the start | |
1453 // array are not updated. | |
1454 void copy_partial_obj(); | |
1455 | |
1456 protected: | |
1457 // Update variables to indicate that word_count words were processed. | |
1458 inline void update_state(size_t word_count); | |
1459 | |
1460 protected: | |
1461 ObjectStartArray* const _start_array; | |
1462 HeapWord* _destination; // Next addr to be written. | |
1463 }; | |
1464 | |
1465 inline | |
1466 MoveAndUpdateClosure::MoveAndUpdateClosure(ParMarkBitMap* bitmap, | |
1467 ParCompactionManager* cm, | |
1468 ObjectStartArray* start_array, | |
1469 HeapWord* destination, | |
1470 size_t words) : | |
1471 ParMarkBitMapClosure(bitmap, cm, words), _start_array(start_array) | |
1472 { | |
1473 _destination = destination; | |
1474 } | |
1475 | |
1476 inline void MoveAndUpdateClosure::update_state(size_t words) | |
1477 { | |
1478 decrement_words_remaining(words); | |
1479 _source += words; | |
1480 _destination += words; | |
1481 } | |
1482 | |
1483 class UpdateOnlyClosure: public ParMarkBitMapClosure { | |
1484 private: | |
1485 const PSParallelCompact::SpaceId _space_id; | |
1486 ObjectStartArray* const _start_array; | |
1487 | |
1488 public: | |
1489 UpdateOnlyClosure(ParMarkBitMap* mbm, | |
1490 ParCompactionManager* cm, | |
1491 PSParallelCompact::SpaceId space_id); | |
1492 | |
1493 // Update the object. | |
1494 virtual IterationStatus do_addr(HeapWord* addr, size_t words); | |
1495 | |
1496 inline void do_addr(HeapWord* addr); | |
1497 }; | |
1498 | |
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1499 inline void UpdateOnlyClosure::do_addr(HeapWord* addr) |
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1500 { |
0 | 1501 _start_array->allocate_block(addr); |
1502 oop(addr)->update_contents(compaction_manager()); | |
1503 } | |
1504 | |
1505 class FillClosure: public ParMarkBitMapClosure { | |
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1506 public: |
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1507 FillClosure(ParCompactionManager* cm, PSParallelCompact::SpaceId space_id) : |
0 | 1508 ParMarkBitMapClosure(PSParallelCompact::mark_bitmap(), cm), |
1509 _space_id(space_id), | |
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1510 _start_array(PSParallelCompact::start_array(space_id)) { |
0 | 1511 assert(_space_id == PSParallelCompact::perm_space_id || |
1512 _space_id == PSParallelCompact::old_space_id, | |
1513 "cannot use FillClosure in the young gen"); | |
1514 assert(bitmap() != NULL, "need a bitmap"); | |
1515 assert(_start_array != NULL, "need a start array"); | |
1516 } | |
1517 | |
1518 void fill_region(HeapWord* addr, size_t size) { | |
1519 MemRegion region(addr, size); | |
1520 SharedHeap::fill_region_with_object(region); | |
1521 _start_array->allocate_block(addr); | |
1522 } | |
1523 | |
1524 virtual IterationStatus do_addr(HeapWord* addr, size_t size) { | |
1525 fill_region(addr, size); | |
1526 return ParMarkBitMap::incomplete; | |
1527 } | |
1528 | |
1529 private: | |
1530 const PSParallelCompact::SpaceId _space_id; | |
1531 ObjectStartArray* const _start_array; | |
1532 }; |