Mercurial > hg > truffle
annotate src/share/vm/memory/cardTableModRefBS.hpp @ 3456:782e2bb60c41
7052494: Eclipse test fails on JDK 7 b142
Summary: Keep 'ne' test in Counted loop when we can't guarantee during compilation that init < limit.
Reviewed-by: never
author | kvn |
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date | Mon, 20 Jun 2011 16:45:35 -0700 |
parents | 7d64aa23eb96 |
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rev | line source |
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0 | 1 /* |
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2 * Copyright (c) 2000, 2011, Oracle and/or its affiliates. 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 * | |
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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. |
0 | 22 * |
23 */ | |
24 | |
1972 | 25 #ifndef SHARE_VM_MEMORY_CARDTABLEMODREFBS_HPP |
26 #define SHARE_VM_MEMORY_CARDTABLEMODREFBS_HPP | |
27 | |
28 #include "memory/modRefBarrierSet.hpp" | |
29 #include "oops/oop.hpp" | |
30 #include "oops/oop.inline2.hpp" | |
31 | |
0 | 32 // This kind of "BarrierSet" allows a "CollectedHeap" to detect and |
33 // enumerate ref fields that have been modified (since the last | |
34 // enumeration.) | |
35 | |
36 // As it currently stands, this barrier is *imprecise*: when a ref field in | |
37 // an object "o" is modified, the card table entry for the card containing | |
38 // the head of "o" is dirtied, not necessarily the card containing the | |
39 // modified field itself. For object arrays, however, the barrier *is* | |
40 // precise; only the card containing the modified element is dirtied. | |
41 // Any MemRegionClosures used to scan dirty cards should take these | |
42 // considerations into account. | |
43 | |
44 class Generation; | |
45 class OopsInGenClosure; | |
46 class DirtyCardToOopClosure; | |
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47 class ClearNoncleanCardWrapper; |
0 | 48 |
49 class CardTableModRefBS: public ModRefBarrierSet { | |
50 // Some classes get to look at some private stuff. | |
51 friend class BytecodeInterpreter; | |
52 friend class VMStructs; | |
53 friend class CardTableRS; | |
54 friend class CheckForUnmarkedOops; // Needs access to raw card bytes. | |
1692 | 55 friend class SharkBuilder; |
0 | 56 #ifndef PRODUCT |
57 // For debugging. | |
58 friend class GuaranteeNotModClosure; | |
59 #endif | |
60 protected: | |
61 | |
62 enum CardValues { | |
63 clean_card = -1, | |
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64 // The mask contains zeros in places for all other values. |
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65 clean_card_mask = clean_card - 31, |
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66 |
0 | 67 dirty_card = 0, |
68 precleaned_card = 1, | |
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69 claimed_card = 2, |
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70 deferred_card = 4, |
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71 last_card = 8, |
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72 CT_MR_BS_last_reserved = 16 |
0 | 73 }; |
74 | |
75 // dirty and precleaned are equivalent wrt younger_refs_iter. | |
76 static bool card_is_dirty_wrt_gen_iter(jbyte cv) { | |
77 return cv == dirty_card || cv == precleaned_card; | |
78 } | |
79 | |
80 // Returns "true" iff the value "cv" will cause the card containing it | |
81 // to be scanned in the current traversal. May be overridden by | |
82 // subtypes. | |
83 virtual bool card_will_be_scanned(jbyte cv) { | |
84 return CardTableModRefBS::card_is_dirty_wrt_gen_iter(cv); | |
85 } | |
86 | |
87 // Returns "true" iff the value "cv" may have represented a dirty card at | |
88 // some point. | |
89 virtual bool card_may_have_been_dirty(jbyte cv) { | |
90 return card_is_dirty_wrt_gen_iter(cv); | |
91 } | |
92 | |
93 // The declaration order of these const fields is important; see the | |
94 // constructor before changing. | |
95 const MemRegion _whole_heap; // the region covered by the card table | |
96 const size_t _guard_index; // index of very last element in the card | |
97 // table; it is set to a guard value | |
98 // (last_card) and should never be modified | |
99 const size_t _last_valid_index; // index of the last valid element | |
100 const size_t _page_size; // page size used when mapping _byte_map | |
101 const size_t _byte_map_size; // in bytes | |
102 jbyte* _byte_map; // the card marking array | |
103 | |
104 int _cur_covered_regions; | |
105 // The covered regions should be in address order. | |
106 MemRegion* _covered; | |
107 // The committed regions correspond one-to-one to the covered regions. | |
108 // They represent the card-table memory that has been committed to service | |
109 // the corresponding covered region. It may be that committed region for | |
110 // one covered region corresponds to a larger region because of page-size | |
111 // roundings. Thus, a committed region for one covered region may | |
112 // actually extend onto the card-table space for the next covered region. | |
113 MemRegion* _committed; | |
114 | |
115 // The last card is a guard card, and we commit the page for it so | |
116 // we can use the card for verification purposes. We make sure we never | |
117 // uncommit the MemRegion for that page. | |
118 MemRegion _guard_region; | |
119 | |
120 protected: | |
121 // Initialization utilities; covered_words is the size of the covered region | |
122 // in, um, words. | |
123 inline size_t cards_required(size_t covered_words); | |
124 inline size_t compute_byte_map_size(); | |
125 | |
126 // Finds and return the index of the region, if any, to which the given | |
127 // region would be contiguous. If none exists, assign a new region and | |
128 // returns its index. Requires that no more than the maximum number of | |
129 // covered regions defined in the constructor are ever in use. | |
130 int find_covering_region_by_base(HeapWord* base); | |
131 | |
132 // Same as above, but finds the region containing the given address | |
133 // instead of starting at a given base address. | |
134 int find_covering_region_containing(HeapWord* addr); | |
135 | |
136 // Resize one of the regions covered by the remembered set. | |
137 void resize_covered_region(MemRegion new_region); | |
138 | |
139 // Returns the leftmost end of a committed region corresponding to a | |
140 // covered region before covered region "ind", or else "NULL" if "ind" is | |
141 // the first covered region. | |
142 HeapWord* largest_prev_committed_end(int ind) const; | |
143 | |
144 // Returns the part of the region mr that doesn't intersect with | |
145 // any committed region other than self. Used to prevent uncommitting | |
146 // regions that are also committed by other regions. Also protects | |
147 // against uncommitting the guard region. | |
148 MemRegion committed_unique_to_self(int self, MemRegion mr) const; | |
149 | |
150 // Mapping from address to card marking array entry | |
151 jbyte* byte_for(const void* p) const { | |
152 assert(_whole_heap.contains(p), | |
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153 err_msg("Attempt to access p = "PTR_FORMAT" out of bounds of " |
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154 " card marking array's _whole_heap = ["PTR_FORMAT","PTR_FORMAT")", |
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155 p, _whole_heap.start(), _whole_heap.end())); |
0 | 156 jbyte* result = &byte_map_base[uintptr_t(p) >> card_shift]; |
157 assert(result >= _byte_map && result < _byte_map + _byte_map_size, | |
158 "out of bounds accessor for card marking array"); | |
159 return result; | |
160 } | |
161 | |
162 // The card table byte one after the card marking array | |
163 // entry for argument address. Typically used for higher bounds | |
164 // for loops iterating through the card table. | |
165 jbyte* byte_after(const void* p) const { | |
166 return byte_for(p) + 1; | |
167 } | |
168 | |
169 // Iterate over the portion of the card-table which covers the given | |
170 // region mr in the given space and apply cl to any dirty sub-regions | |
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171 // of mr. Dirty cards are _not_ cleared by the iterator method itself, |
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172 // but closures may arrange to do so on their own should they so wish. |
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173 void non_clean_card_iterate_serial(MemRegion mr, MemRegionClosure* cl); |
0 | 174 |
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175 // A variant of the above that will operate in a parallel mode if |
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176 // worker threads are available, and clear the dirty cards as it |
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177 // processes them. |
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178 // XXX ??? MemRegionClosure above vs OopsInGenClosure below XXX |
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179 // XXX some new_dcto_cl's take OopClosure's, plus as above there are |
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180 // some MemRegionClosures. Clean this up everywhere. XXX |
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181 void non_clean_card_iterate_possibly_parallel(Space* sp, MemRegion mr, |
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182 OopsInGenClosure* cl, CardTableRS* ct); |
0 | 183 |
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184 private: |
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185 // Work method used to implement non_clean_card_iterate_possibly_parallel() |
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186 // above in the parallel case. |
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187 void non_clean_card_iterate_parallel_work(Space* sp, MemRegion mr, |
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188 OopsInGenClosure* cl, CardTableRS* ct, |
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189 int n_threads); |
0 | 190 |
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191 protected: |
0 | 192 // Dirty the bytes corresponding to "mr" (not all of which must be |
193 // covered.) | |
194 void dirty_MemRegion(MemRegion mr); | |
195 | |
196 // Clear (to clean_card) the bytes entirely contained within "mr" (not | |
197 // all of which must be covered.) | |
198 void clear_MemRegion(MemRegion mr); | |
199 | |
200 // *** Support for parallel card scanning. | |
201 | |
202 // This is an array, one element per covered region of the card table. | |
203 // Each entry is itself an array, with one element per chunk in the | |
204 // covered region. Each entry of these arrays is the lowest non-clean | |
205 // card of the corresponding chunk containing part of an object from the | |
206 // previous chunk, or else NULL. | |
207 typedef jbyte* CardPtr; | |
208 typedef CardPtr* CardArr; | |
209 CardArr* _lowest_non_clean; | |
210 size_t* _lowest_non_clean_chunk_size; | |
211 uintptr_t* _lowest_non_clean_base_chunk_index; | |
212 int* _last_LNC_resizing_collection; | |
213 | |
214 // Initializes "lowest_non_clean" to point to the array for the region | |
215 // covering "sp", and "lowest_non_clean_base_chunk_index" to the chunk | |
216 // index of the corresponding to the first element of that array. | |
217 // Ensures that these arrays are of sufficient size, allocating if necessary. | |
218 // May be called by several threads concurrently. | |
219 void get_LNC_array_for_space(Space* sp, | |
220 jbyte**& lowest_non_clean, | |
221 uintptr_t& lowest_non_clean_base_chunk_index, | |
222 size_t& lowest_non_clean_chunk_size); | |
223 | |
224 // Returns the number of chunks necessary to cover "mr". | |
225 size_t chunks_to_cover(MemRegion mr) { | |
226 return (size_t)(addr_to_chunk_index(mr.last()) - | |
227 addr_to_chunk_index(mr.start()) + 1); | |
228 } | |
229 | |
230 // Returns the index of the chunk in a stride which | |
231 // covers the given address. | |
232 uintptr_t addr_to_chunk_index(const void* addr) { | |
233 uintptr_t card = (uintptr_t) byte_for(addr); | |
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234 return card / ParGCCardsPerStrideChunk; |
0 | 235 } |
236 | |
237 // Apply cl, which must either itself apply dcto_cl or be dcto_cl, | |
238 // to the cards in the stride (of n_strides) within the given space. | |
239 void process_stride(Space* sp, | |
240 MemRegion used, | |
241 jint stride, int n_strides, | |
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242 OopsInGenClosure* cl, |
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243 CardTableRS* ct, |
0 | 244 jbyte** lowest_non_clean, |
245 uintptr_t lowest_non_clean_base_chunk_index, | |
246 size_t lowest_non_clean_chunk_size); | |
247 | |
248 // Makes sure that chunk boundaries are handled appropriately, by | |
249 // adjusting the min_done of dcto_cl, and by using a special card-table | |
250 // value to indicate how min_done should be set. | |
251 void process_chunk_boundaries(Space* sp, | |
252 DirtyCardToOopClosure* dcto_cl, | |
253 MemRegion chunk_mr, | |
254 MemRegion used, | |
255 jbyte** lowest_non_clean, | |
256 uintptr_t lowest_non_clean_base_chunk_index, | |
257 size_t lowest_non_clean_chunk_size); | |
258 | |
259 public: | |
260 // Constants | |
261 enum SomePublicConstants { | |
262 card_shift = 9, | |
263 card_size = 1 << card_shift, | |
264 card_size_in_words = card_size / sizeof(HeapWord) | |
265 }; | |
266 | |
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267 static int clean_card_val() { return clean_card; } |
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268 static int clean_card_mask_val() { return clean_card_mask; } |
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269 static int dirty_card_val() { return dirty_card; } |
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270 static int claimed_card_val() { return claimed_card; } |
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271 static int precleaned_card_val() { return precleaned_card; } |
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272 static int deferred_card_val() { return deferred_card; } |
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273 |
0 | 274 // For RTTI simulation. |
275 bool is_a(BarrierSet::Name bsn) { | |
342
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276 return bsn == BarrierSet::CardTableModRef || ModRefBarrierSet::is_a(bsn); |
0 | 277 } |
278 | |
279 CardTableModRefBS(MemRegion whole_heap, int max_covered_regions); | |
280 | |
281 // *** Barrier set functions. | |
282 | |
342
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283 bool has_write_ref_pre_barrier() { return false; } |
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284 |
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285 inline bool write_ref_needs_barrier(void* field, oop new_val) { |
0 | 286 // Note that this assumes the perm gen is the highest generation |
287 // in the address space | |
288 return new_val != NULL && !new_val->is_perm(); | |
289 } | |
290 | |
291 // Record a reference update. Note that these versions are precise! | |
292 // The scanning code has to handle the fact that the write barrier may be | |
293 // either precise or imprecise. We make non-virtual inline variants of | |
294 // these functions here for performance. | |
295 protected: | |
296 void write_ref_field_work(oop obj, size_t offset, oop newVal); | |
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297 virtual void write_ref_field_work(void* field, oop newVal); |
0 | 298 public: |
299 | |
300 bool has_write_ref_array_opt() { return true; } | |
301 bool has_write_region_opt() { return true; } | |
302 | |
303 inline void inline_write_region(MemRegion mr) { | |
304 dirty_MemRegion(mr); | |
305 } | |
306 protected: | |
307 void write_region_work(MemRegion mr) { | |
308 inline_write_region(mr); | |
309 } | |
310 public: | |
311 | |
312 inline void inline_write_ref_array(MemRegion mr) { | |
313 dirty_MemRegion(mr); | |
314 } | |
315 protected: | |
316 void write_ref_array_work(MemRegion mr) { | |
317 inline_write_ref_array(mr); | |
318 } | |
319 public: | |
320 | |
321 bool is_aligned(HeapWord* addr) { | |
322 return is_card_aligned(addr); | |
323 } | |
324 | |
325 // *** Card-table-barrier-specific things. | |
326 | |
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327 template <class T> inline void inline_write_ref_field_pre(T* field, oop newVal) {} |
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328 |
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329 template <class T> inline void inline_write_ref_field(T* field, oop newVal) { |
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330 jbyte* byte = byte_for((void*)field); |
0 | 331 *byte = dirty_card; |
332 } | |
333 | |
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334 // These are used by G1, when it uses the card table as a temporary data |
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335 // structure for card claiming. |
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336 bool is_card_dirty(size_t card_index) { |
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337 return _byte_map[card_index] == dirty_card_val(); |
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338 } |
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339 |
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340 void mark_card_dirty(size_t card_index) { |
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341 _byte_map[card_index] = dirty_card_val(); |
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342 } |
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343 |
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344 bool is_card_claimed(size_t card_index) { |
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345 jbyte val = _byte_map[card_index]; |
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346 return (val & (clean_card_mask_val() | claimed_card_val())) == claimed_card_val(); |
342
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347 } |
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348 |
1261 | 349 void set_card_claimed(size_t card_index) { |
350 jbyte val = _byte_map[card_index]; | |
351 if (val == clean_card_val()) { | |
352 val = (jbyte)claimed_card_val(); | |
353 } else { | |
354 val |= (jbyte)claimed_card_val(); | |
355 } | |
356 _byte_map[card_index] = val; | |
357 } | |
358 | |
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359 bool claim_card(size_t card_index); |
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360 |
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361 bool is_card_clean(size_t card_index) { |
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362 return _byte_map[card_index] == clean_card_val(); |
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363 } |
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364 |
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365 bool is_card_deferred(size_t card_index) { |
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366 jbyte val = _byte_map[card_index]; |
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367 return (val & (clean_card_mask_val() | deferred_card_val())) == deferred_card_val(); |
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368 } |
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369 |
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370 bool mark_card_deferred(size_t card_index); |
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371 |
0 | 372 // Card marking array base (adjusted for heap low boundary) |
373 // This would be the 0th element of _byte_map, if the heap started at 0x0. | |
374 // But since the heap starts at some higher address, this points to somewhere | |
375 // before the beginning of the actual _byte_map. | |
376 jbyte* byte_map_base; | |
377 | |
378 // Return true if "p" is at the start of a card. | |
379 bool is_card_aligned(HeapWord* p) { | |
380 jbyte* pcard = byte_for(p); | |
381 return (addr_for(pcard) == p); | |
382 } | |
383 | |
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384 HeapWord* align_to_card_boundary(HeapWord* p) { |
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385 jbyte* pcard = byte_for(p + card_size_in_words - 1); |
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386 return addr_for(pcard); |
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387 } |
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388 |
0 | 389 // The kinds of precision a CardTableModRefBS may offer. |
390 enum PrecisionStyle { | |
391 Precise, | |
392 ObjHeadPreciseArray | |
393 }; | |
394 | |
395 // Tells what style of precision this card table offers. | |
396 PrecisionStyle precision() { | |
397 return ObjHeadPreciseArray; // Only one supported for now. | |
398 } | |
399 | |
400 // ModRefBS functions. | |
342
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401 virtual void invalidate(MemRegion mr, bool whole_heap = false); |
0 | 402 void clear(MemRegion mr); |
342
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403 void dirty(MemRegion mr); |
0 | 404 |
405 // *** Card-table-RemSet-specific things. | |
406 | |
407 // Invoke "cl.do_MemRegion" on a set of MemRegions that collectively | |
408 // includes all the modified cards (expressing each card as a | |
409 // MemRegion). Thus, several modified cards may be lumped into one | |
410 // region. The regions are non-overlapping, and are visited in | |
411 // *decreasing* address order. (This order aids with imprecise card | |
412 // marking, where a dirty card may cause scanning, and summarization | |
413 // marking, of objects that extend onto subsequent cards.) | |
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414 void mod_card_iterate(MemRegionClosure* cl) { |
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415 non_clean_card_iterate_serial(_whole_heap, cl); |
0 | 416 } |
417 | |
418 // Like the "mod_cards_iterate" above, except only invokes the closure | |
419 // for cards within the MemRegion "mr" (which is required to be | |
420 // card-aligned and sized.) | |
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421 void mod_card_iterate(MemRegion mr, MemRegionClosure* cl) { |
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422 non_clean_card_iterate_serial(mr, cl); |
0 | 423 } |
424 | |
425 static uintx ct_max_alignment_constraint(); | |
426 | |
342
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427 // Apply closure "cl" to the dirty cards containing some part of |
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428 // MemRegion "mr". |
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429 void dirty_card_iterate(MemRegion mr, MemRegionClosure* cl); |
0 | 430 |
431 // Return the MemRegion corresponding to the first maximal run | |
342
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432 // of dirty cards lying completely within MemRegion mr. |
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433 // If reset is "true", then sets those card table entries to the given |
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434 // value. |
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435 MemRegion dirty_card_range_after_reset(MemRegion mr, bool reset, |
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436 int reset_val); |
0 | 437 |
438 // Set all the dirty cards in the given region to precleaned state. | |
439 void preclean_dirty_cards(MemRegion mr); | |
440 | |
342
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441 // Provide read-only access to the card table array. |
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442 const jbyte* byte_for_const(const void* p) const { |
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443 return byte_for(p); |
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444 } |
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445 const jbyte* byte_after_const(const void* p) const { |
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446 return byte_after(p); |
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447 } |
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448 |
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449 // Mapping from card marking array entry to address of first word |
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450 HeapWord* addr_for(const jbyte* p) const { |
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451 assert(p >= _byte_map && p < _byte_map + _byte_map_size, |
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452 "out of bounds access to card marking array"); |
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453 size_t delta = pointer_delta(p, byte_map_base, sizeof(jbyte)); |
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454 HeapWord* result = (HeapWord*) (delta << card_shift); |
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455 assert(_whole_heap.contains(result), |
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456 err_msg("Returning result = "PTR_FORMAT" out of bounds of " |
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457 " card marking array's _whole_heap = ["PTR_FORMAT","PTR_FORMAT")", |
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458 result, _whole_heap.start(), _whole_heap.end())); |
342
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459 return result; |
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460 } |
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461 |
0 | 462 // Mapping from address to card marking array index. |
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463 size_t index_for(void* p) { |
0 | 464 assert(_whole_heap.contains(p), |
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465 err_msg("Attempt to access p = "PTR_FORMAT" out of bounds of " |
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466 " card marking array's _whole_heap = ["PTR_FORMAT","PTR_FORMAT")", |
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467 p, _whole_heap.start(), _whole_heap.end())); |
0 | 468 return byte_for(p) - _byte_map; |
469 } | |
470 | |
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471 const jbyte* byte_for_index(const size_t card_index) const { |
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472 return _byte_map + card_index; |
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473 } |
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474 |
0 | 475 void verify(); |
476 void verify_guard(); | |
477 | |
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478 // val_equals -> it will check that all cards covered by mr equal val |
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479 // !val_equals -> it will check that all cards covered by mr do not equal val |
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480 void verify_region(MemRegion mr, jbyte val, bool val_equals) PRODUCT_RETURN; |
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481 void verify_not_dirty_region(MemRegion mr) PRODUCT_RETURN; |
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482 void verify_dirty_region(MemRegion mr) PRODUCT_RETURN; |
0 | 483 |
484 static size_t par_chunk_heapword_alignment() { | |
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485 return ParGCCardsPerStrideChunk * card_size_in_words; |
0 | 486 } |
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487 |
0 | 488 }; |
489 | |
490 class CardTableRS; | |
491 | |
492 // A specialization for the CardTableRS gen rem set. | |
493 class CardTableModRefBSForCTRS: public CardTableModRefBS { | |
494 CardTableRS* _rs; | |
495 protected: | |
496 bool card_will_be_scanned(jbyte cv); | |
497 bool card_may_have_been_dirty(jbyte cv); | |
498 public: | |
499 CardTableModRefBSForCTRS(MemRegion whole_heap, | |
500 int max_covered_regions) : | |
501 CardTableModRefBS(whole_heap, max_covered_regions) {} | |
502 | |
503 void set_CTRS(CardTableRS* rs) { _rs = rs; } | |
504 }; | |
1972 | 505 |
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506 |
1972 | 507 #endif // SHARE_VM_MEMORY_CARDTABLEMODREFBS_HPP |