Mercurial > hg > graal-jvmci-8
annotate src/share/vm/gc_implementation/g1/g1CollectorPolicy.hpp @ 4872:aa3d708d67c4
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342 | 1 /* |
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2 * Copyright (c) 2001, 2012, Oracle and/or its affiliates. All rights reserved. |
342 | 3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER. |
4 * | |
5 * This code is free software; you can redistribute it and/or modify it | |
6 * under the terms of the GNU General Public License version 2 only, as | |
7 * published by the Free Software Foundation. | |
8 * | |
9 * This code is distributed in the hope that it will be useful, but WITHOUT | |
10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or | |
11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License | |
12 * version 2 for more details (a copy is included in the LICENSE file that | |
13 * accompanied this code). | |
14 * | |
15 * You should have received a copy of the GNU General Public License version | |
16 * 2 along with this work; if not, write to the Free Software Foundation, | |
17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA. | |
18 * | |
1552
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19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA |
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20 * or visit www.oracle.com if you need additional information or have any |
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21 * questions. |
342 | 22 * |
23 */ | |
24 | |
1972 | 25 #ifndef SHARE_VM_GC_IMPLEMENTATION_G1_G1COLLECTORPOLICY_HPP |
26 #define SHARE_VM_GC_IMPLEMENTATION_G1_G1COLLECTORPOLICY_HPP | |
27 | |
28 #include "gc_implementation/g1/collectionSetChooser.hpp" | |
29 #include "gc_implementation/g1/g1MMUTracker.hpp" | |
30 #include "memory/collectorPolicy.hpp" | |
31 | |
342 | 32 // A G1CollectorPolicy makes policy decisions that determine the |
33 // characteristics of the collector. Examples include: | |
34 // * choice of collection set. | |
35 // * when to collect. | |
36 | |
37 class HeapRegion; | |
38 class CollectionSetChooser; | |
39 | |
40 // Yes, this is a bit unpleasant... but it saves replicating the same thing | |
41 // over and over again and introducing subtle problems through small typos and | |
42 // cutting and pasting mistakes. The macros below introduces a number | |
43 // sequnce into the following two classes and the methods that access it. | |
44 | |
45 #define define_num_seq(name) \ | |
46 private: \ | |
47 NumberSeq _all_##name##_times_ms; \ | |
48 public: \ | |
49 void record_##name##_time_ms(double ms) { \ | |
50 _all_##name##_times_ms.add(ms); \ | |
51 } \ | |
52 NumberSeq* get_##name##_seq() { \ | |
53 return &_all_##name##_times_ms; \ | |
54 } | |
55 | |
56 class MainBodySummary; | |
57 | |
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58 class PauseSummary: public CHeapObj { |
342 | 59 define_num_seq(total) |
60 define_num_seq(other) | |
61 | |
62 public: | |
63 virtual MainBodySummary* main_body_summary() { return NULL; } | |
64 }; | |
65 | |
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66 class MainBodySummary: public CHeapObj { |
342 | 67 define_num_seq(satb_drain) // optional |
68 define_num_seq(parallel) // parallel only | |
69 define_num_seq(ext_root_scan) | |
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70 define_num_seq(satb_filtering) |
342 | 71 define_num_seq(update_rs) |
72 define_num_seq(scan_rs) | |
73 define_num_seq(obj_copy) | |
74 define_num_seq(termination) // parallel only | |
75 define_num_seq(parallel_other) // parallel only | |
76 define_num_seq(mark_closure) | |
4023 | 77 define_num_seq(clear_ct) |
342 | 78 }; |
79 | |
677 | 80 class Summary: public PauseSummary, |
81 public MainBodySummary { | |
342 | 82 public: |
83 virtual MainBodySummary* main_body_summary() { return this; } | |
84 }; | |
85 | |
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86 // There are three command line options related to the young gen size: |
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87 // NewSize, MaxNewSize and NewRatio (There is also -Xmn, but that is |
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88 // just a short form for NewSize==MaxNewSize). G1 will use its internal |
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89 // heuristics to calculate the actual young gen size, so these options |
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90 // basically only limit the range within which G1 can pick a young gen |
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91 // size. Also, these are general options taking byte sizes. G1 will |
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92 // internally work with a number of regions instead. So, some rounding |
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93 // will occur. |
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94 // |
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95 // If nothing related to the the young gen size is set on the command |
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96 // line we should allow the young gen to be between |
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97 // G1DefaultMinNewGenPercent and G1DefaultMaxNewGenPercent of the |
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98 // heap size. This means that every time the heap size changes the |
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99 // limits for the young gen size will be updated. |
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100 // |
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101 // If only -XX:NewSize is set we should use the specified value as the |
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102 // minimum size for young gen. Still using G1DefaultMaxNewGenPercent |
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103 // of the heap as maximum. |
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104 // |
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105 // If only -XX:MaxNewSize is set we should use the specified value as the |
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106 // maximum size for young gen. Still using G1DefaultMinNewGenPercent |
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107 // of the heap as minimum. |
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108 // |
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109 // If -XX:NewSize and -XX:MaxNewSize are both specified we use these values. |
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110 // No updates when the heap size changes. There is a special case when |
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111 // NewSize==MaxNewSize. This is interpreted as "fixed" and will use a |
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112 // different heuristic for calculating the collection set when we do mixed |
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113 // collection. |
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114 // |
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115 // If only -XX:NewRatio is set we should use the specified ratio of the heap |
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116 // as both min and max. This will be interpreted as "fixed" just like the |
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117 // NewSize==MaxNewSize case above. But we will update the min and max |
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118 // everytime the heap size changes. |
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119 // |
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120 // NewSize and MaxNewSize override NewRatio. So, NewRatio is ignored if it is |
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121 // combined with either NewSize or MaxNewSize. (A warning message is printed.) |
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122 class G1YoungGenSizer : public CHeapObj { |
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123 private: |
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124 enum SizerKind { |
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125 SizerDefaults, |
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126 SizerNewSizeOnly, |
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127 SizerMaxNewSizeOnly, |
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128 SizerMaxAndNewSize, |
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129 SizerNewRatio |
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130 }; |
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131 SizerKind _sizer_kind; |
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132 size_t _min_desired_young_length; |
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133 size_t _max_desired_young_length; |
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134 bool _adaptive_size; |
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135 size_t calculate_default_min_length(size_t new_number_of_heap_regions); |
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136 size_t calculate_default_max_length(size_t new_number_of_heap_regions); |
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137 |
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138 public: |
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139 G1YoungGenSizer(); |
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140 void heap_size_changed(size_t new_number_of_heap_regions); |
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141 size_t min_desired_young_length() { |
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142 return _min_desired_young_length; |
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143 } |
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144 size_t max_desired_young_length() { |
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145 return _max_desired_young_length; |
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146 } |
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147 bool adaptive_young_list_length() { |
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148 return _adaptive_size; |
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149 } |
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150 }; |
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151 |
342 | 152 class G1CollectorPolicy: public CollectorPolicy { |
4013 | 153 private: |
342 | 154 // either equal to the number of parallel threads, if ParallelGCThreads |
155 // has been set, or 1 otherwise | |
156 int _parallel_gc_threads; | |
157 | |
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158 // The number of GC threads currently active. |
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159 uintx _no_of_gc_threads; |
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160 |
342 | 161 enum SomePrivateConstants { |
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162 NumPrevPausesForHeuristics = 10 |
342 | 163 }; |
164 | |
165 G1MMUTracker* _mmu_tracker; | |
166 | |
167 void initialize_flags(); | |
168 | |
169 void initialize_all() { | |
170 initialize_flags(); | |
171 initialize_size_info(); | |
172 initialize_perm_generation(PermGen::MarkSweepCompact); | |
173 } | |
174 | |
4013 | 175 CollectionSetChooser* _collectionSetChooser; |
342 | 176 |
177 double _cur_collection_start_sec; | |
178 size_t _cur_collection_pause_used_at_start_bytes; | |
179 size_t _cur_collection_pause_used_regions_at_start; | |
180 size_t _prev_collection_pause_used_at_end_bytes; | |
181 double _cur_collection_par_time_ms; | |
182 double _cur_satb_drain_time_ms; | |
183 double _cur_clear_ct_time_ms; | |
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184 double _cur_ref_proc_time_ms; |
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185 double _cur_ref_enq_time_ms; |
342 | 186 |
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187 #ifndef PRODUCT |
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188 // Card Table Count Cache stats |
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189 double _min_clear_cc_time_ms; // min |
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190 double _max_clear_cc_time_ms; // max |
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191 double _cur_clear_cc_time_ms; // clearing time during current pause |
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192 double _cum_clear_cc_time_ms; // cummulative clearing time |
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193 jlong _num_cc_clears; // number of times the card count cache has been cleared |
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194 #endif |
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195 |
342 | 196 // These exclude marking times. |
197 TruncatedSeq* _recent_gc_times_ms; | |
198 | |
199 TruncatedSeq* _concurrent_mark_remark_times_ms; | |
200 TruncatedSeq* _concurrent_mark_cleanup_times_ms; | |
201 | |
677 | 202 Summary* _summary; |
342 | 203 |
204 NumberSeq* _all_pause_times_ms; | |
205 NumberSeq* _all_full_gc_times_ms; | |
206 double _stop_world_start; | |
207 NumberSeq* _all_stop_world_times_ms; | |
208 NumberSeq* _all_yield_times_ms; | |
209 | |
210 int _aux_num; | |
211 NumberSeq* _all_aux_times_ms; | |
212 double* _cur_aux_start_times_ms; | |
213 double* _cur_aux_times_ms; | |
214 bool* _cur_aux_times_set; | |
215 | |
1611 | 216 double* _par_last_gc_worker_start_times_ms; |
342 | 217 double* _par_last_ext_root_scan_times_ms; |
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218 double* _par_last_satb_filtering_times_ms; |
342 | 219 double* _par_last_update_rs_times_ms; |
220 double* _par_last_update_rs_processed_buffers; | |
221 double* _par_last_scan_rs_times_ms; | |
222 double* _par_last_obj_copy_times_ms; | |
223 double* _par_last_termination_times_ms; | |
1611 | 224 double* _par_last_termination_attempts; |
225 double* _par_last_gc_worker_end_times_ms; | |
2430 | 226 double* _par_last_gc_worker_times_ms; |
342 | 227 |
4023 | 228 // Each workers 'other' time i.e. the elapsed time of the parallel |
229 // phase of the pause minus the sum of the individual sub-phase | |
230 // times for a given worker thread. | |
231 double* _par_last_gc_worker_other_times_ms; | |
232 | |
4710 | 233 // indicates whether we are in young or mixed GC mode |
234 bool _gcs_are_young; | |
342 | 235 |
236 size_t _young_list_target_length; | |
237 size_t _young_list_fixed_length; | |
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238 size_t _prev_eden_capacity; // used for logging |
342 | 239 |
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240 // The max number of regions we can extend the eden by while the GC |
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241 // locker is active. This should be >= _young_list_target_length; |
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242 size_t _young_list_max_length; |
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243 |
4710 | 244 bool _last_gc_was_young; |
342 | 245 |
4710 | 246 unsigned _young_pause_num; |
247 unsigned _mixed_pause_num; | |
342 | 248 |
249 bool _during_marking; | |
250 bool _in_marking_window; | |
251 bool _in_marking_window_im; | |
252 | |
253 SurvRateGroup* _short_lived_surv_rate_group; | |
254 SurvRateGroup* _survivor_surv_rate_group; | |
255 // add here any more surv rate groups | |
256 | |
1356 | 257 double _gc_overhead_perc; |
258 | |
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259 double _reserve_factor; |
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260 size_t _reserve_regions; |
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261 |
342 | 262 bool during_marking() { |
263 return _during_marking; | |
264 } | |
265 | |
266 private: | |
267 enum PredictionConstants { | |
268 TruncatedSeqLength = 10 | |
269 }; | |
270 | |
271 TruncatedSeq* _alloc_rate_ms_seq; | |
272 double _prev_collection_pause_end_ms; | |
273 | |
274 TruncatedSeq* _pending_card_diff_seq; | |
275 TruncatedSeq* _rs_length_diff_seq; | |
276 TruncatedSeq* _cost_per_card_ms_seq; | |
4710 | 277 TruncatedSeq* _young_cards_per_entry_ratio_seq; |
278 TruncatedSeq* _mixed_cards_per_entry_ratio_seq; | |
342 | 279 TruncatedSeq* _cost_per_entry_ms_seq; |
4710 | 280 TruncatedSeq* _mixed_cost_per_entry_ms_seq; |
342 | 281 TruncatedSeq* _cost_per_byte_ms_seq; |
282 TruncatedSeq* _constant_other_time_ms_seq; | |
283 TruncatedSeq* _young_other_cost_per_region_ms_seq; | |
284 TruncatedSeq* _non_young_other_cost_per_region_ms_seq; | |
285 | |
286 TruncatedSeq* _pending_cards_seq; | |
287 TruncatedSeq* _rs_lengths_seq; | |
288 | |
289 TruncatedSeq* _cost_per_byte_ms_during_cm_seq; | |
290 | |
291 TruncatedSeq* _young_gc_eff_seq; | |
292 | |
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293 G1YoungGenSizer* _young_gen_sizer; |
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294 |
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295 size_t _eden_cset_region_length; |
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296 size_t _survivor_cset_region_length; |
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297 size_t _old_cset_region_length; |
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298 |
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299 void init_cset_region_lengths(size_t eden_cset_region_length, |
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300 size_t survivor_cset_region_length); |
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301 |
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302 size_t eden_cset_region_length() { return _eden_cset_region_length; } |
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303 size_t survivor_cset_region_length() { return _survivor_cset_region_length; } |
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304 size_t old_cset_region_length() { return _old_cset_region_length; } |
342 | 305 |
306 size_t _free_regions_at_end_of_collection; | |
307 | |
308 size_t _recorded_rs_lengths; | |
309 size_t _max_rs_lengths; | |
310 | |
311 double _recorded_young_free_cset_time_ms; | |
312 double _recorded_non_young_free_cset_time_ms; | |
313 | |
314 double _sigma; | |
315 double _expensive_region_limit_ms; | |
316 | |
317 size_t _rs_lengths_prediction; | |
318 | |
319 size_t _known_garbage_bytes; | |
320 double _known_garbage_ratio; | |
321 | |
322 double sigma() { | |
323 return _sigma; | |
324 } | |
325 | |
326 // A function that prevents us putting too much stock in small sample | |
327 // sets. Returns a number between 2.0 and 1.0, depending on the number | |
328 // of samples. 5 or more samples yields one; fewer scales linearly from | |
329 // 2.0 at 1 sample to 1.0 at 5. | |
330 double confidence_factor(int samples) { | |
331 if (samples > 4) return 1.0; | |
332 else return 1.0 + sigma() * ((double)(5 - samples))/2.0; | |
333 } | |
334 | |
335 double get_new_neg_prediction(TruncatedSeq* seq) { | |
336 return seq->davg() - sigma() * seq->dsd(); | |
337 } | |
338 | |
339 #ifndef PRODUCT | |
340 bool verify_young_ages(HeapRegion* head, SurvRateGroup *surv_rate_group); | |
341 #endif // PRODUCT | |
342 | |
1111 | 343 void adjust_concurrent_refinement(double update_rs_time, |
344 double update_rs_processed_buffers, | |
345 double goal_ms); | |
346 | |
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347 uintx no_of_gc_threads() { return _no_of_gc_threads; } |
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348 void set_no_of_gc_threads(uintx v) { _no_of_gc_threads = v; } |
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349 |
342 | 350 double _pause_time_target_ms; |
351 double _recorded_young_cset_choice_time_ms; | |
352 double _recorded_non_young_cset_choice_time_ms; | |
353 size_t _pending_cards; | |
354 size_t _max_pending_cards; | |
355 | |
356 public: | |
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357 // Accessors |
342 | 358 |
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359 void set_region_eden(HeapRegion* hr, int young_index_in_cset) { |
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360 hr->set_young(); |
342 | 361 hr->install_surv_rate_group(_short_lived_surv_rate_group); |
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362 hr->set_young_index_in_cset(young_index_in_cset); |
342 | 363 } |
364 | |
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365 void set_region_survivor(HeapRegion* hr, int young_index_in_cset) { |
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366 assert(hr->is_young() && hr->is_survivor(), "pre-condition"); |
342 | 367 hr->install_surv_rate_group(_survivor_surv_rate_group); |
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368 hr->set_young_index_in_cset(young_index_in_cset); |
342 | 369 } |
370 | |
371 #ifndef PRODUCT | |
372 bool verify_young_ages(); | |
373 #endif // PRODUCT | |
374 | |
375 double get_new_prediction(TruncatedSeq* seq) { | |
376 return MAX2(seq->davg() + sigma() * seq->dsd(), | |
377 seq->davg() * confidence_factor(seq->num())); | |
378 } | |
379 | |
380 void record_max_rs_lengths(size_t rs_lengths) { | |
381 _max_rs_lengths = rs_lengths; | |
382 } | |
383 | |
384 size_t predict_pending_card_diff() { | |
385 double prediction = get_new_neg_prediction(_pending_card_diff_seq); | |
4710 | 386 if (prediction < 0.00001) { |
342 | 387 return 0; |
4710 | 388 } else { |
342 | 389 return (size_t) prediction; |
4710 | 390 } |
342 | 391 } |
392 | |
393 size_t predict_pending_cards() { | |
394 size_t max_pending_card_num = _g1->max_pending_card_num(); | |
395 size_t diff = predict_pending_card_diff(); | |
396 size_t prediction; | |
4710 | 397 if (diff > max_pending_card_num) { |
342 | 398 prediction = max_pending_card_num; |
4710 | 399 } else { |
342 | 400 prediction = max_pending_card_num - diff; |
4710 | 401 } |
342 | 402 |
403 return prediction; | |
404 } | |
405 | |
406 size_t predict_rs_length_diff() { | |
407 return (size_t) get_new_prediction(_rs_length_diff_seq); | |
408 } | |
409 | |
410 double predict_alloc_rate_ms() { | |
411 return get_new_prediction(_alloc_rate_ms_seq); | |
412 } | |
413 | |
414 double predict_cost_per_card_ms() { | |
415 return get_new_prediction(_cost_per_card_ms_seq); | |
416 } | |
417 | |
418 double predict_rs_update_time_ms(size_t pending_cards) { | |
419 return (double) pending_cards * predict_cost_per_card_ms(); | |
420 } | |
421 | |
4710 | 422 double predict_young_cards_per_entry_ratio() { |
423 return get_new_prediction(_young_cards_per_entry_ratio_seq); | |
342 | 424 } |
425 | |
4710 | 426 double predict_mixed_cards_per_entry_ratio() { |
427 if (_mixed_cards_per_entry_ratio_seq->num() < 2) { | |
428 return predict_young_cards_per_entry_ratio(); | |
429 } else { | |
430 return get_new_prediction(_mixed_cards_per_entry_ratio_seq); | |
431 } | |
342 | 432 } |
433 | |
434 size_t predict_young_card_num(size_t rs_length) { | |
435 return (size_t) ((double) rs_length * | |
4710 | 436 predict_young_cards_per_entry_ratio()); |
342 | 437 } |
438 | |
439 size_t predict_non_young_card_num(size_t rs_length) { | |
440 return (size_t) ((double) rs_length * | |
4710 | 441 predict_mixed_cards_per_entry_ratio()); |
342 | 442 } |
443 | |
444 double predict_rs_scan_time_ms(size_t card_num) { | |
4710 | 445 if (gcs_are_young()) { |
342 | 446 return (double) card_num * get_new_prediction(_cost_per_entry_ms_seq); |
4710 | 447 } else { |
448 return predict_mixed_rs_scan_time_ms(card_num); | |
449 } | |
342 | 450 } |
451 | |
4710 | 452 double predict_mixed_rs_scan_time_ms(size_t card_num) { |
453 if (_mixed_cost_per_entry_ms_seq->num() < 3) { | |
342 | 454 return (double) card_num * get_new_prediction(_cost_per_entry_ms_seq); |
4710 | 455 } else { |
456 return (double) (card_num * | |
457 get_new_prediction(_mixed_cost_per_entry_ms_seq)); | |
458 } | |
342 | 459 } |
460 | |
461 double predict_object_copy_time_ms_during_cm(size_t bytes_to_copy) { | |
4710 | 462 if (_cost_per_byte_ms_during_cm_seq->num() < 3) { |
463 return (1.1 * (double) bytes_to_copy) * | |
464 get_new_prediction(_cost_per_byte_ms_seq); | |
465 } else { | |
342 | 466 return (double) bytes_to_copy * |
4710 | 467 get_new_prediction(_cost_per_byte_ms_during_cm_seq); |
468 } | |
342 | 469 } |
470 | |
471 double predict_object_copy_time_ms(size_t bytes_to_copy) { | |
4710 | 472 if (_in_marking_window && !_in_marking_window_im) { |
342 | 473 return predict_object_copy_time_ms_during_cm(bytes_to_copy); |
4710 | 474 } else { |
342 | 475 return (double) bytes_to_copy * |
4710 | 476 get_new_prediction(_cost_per_byte_ms_seq); |
477 } | |
342 | 478 } |
479 | |
480 double predict_constant_other_time_ms() { | |
481 return get_new_prediction(_constant_other_time_ms_seq); | |
482 } | |
483 | |
484 double predict_young_other_time_ms(size_t young_num) { | |
4710 | 485 return (double) young_num * |
486 get_new_prediction(_young_other_cost_per_region_ms_seq); | |
342 | 487 } |
488 | |
489 double predict_non_young_other_time_ms(size_t non_young_num) { | |
4710 | 490 return (double) non_young_num * |
491 get_new_prediction(_non_young_other_cost_per_region_ms_seq); | |
342 | 492 } |
493 | |
494 void check_if_region_is_too_expensive(double predicted_time_ms); | |
495 | |
496 double predict_young_collection_elapsed_time_ms(size_t adjustment); | |
497 double predict_base_elapsed_time_ms(size_t pending_cards); | |
498 double predict_base_elapsed_time_ms(size_t pending_cards, | |
499 size_t scanned_cards); | |
500 size_t predict_bytes_to_copy(HeapRegion* hr); | |
501 double predict_region_elapsed_time_ms(HeapRegion* hr, bool young); | |
502 | |
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503 void set_recorded_rs_lengths(size_t rs_lengths); |
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504 |
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505 size_t cset_region_length() { return young_cset_region_length() + |
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506 old_cset_region_length(); } |
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507 size_t young_cset_region_length() { return eden_cset_region_length() + |
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508 survivor_cset_region_length(); } |
342 | 509 |
510 void record_young_free_cset_time_ms(double time_ms) { | |
511 _recorded_young_free_cset_time_ms = time_ms; | |
512 } | |
513 | |
514 void record_non_young_free_cset_time_ms(double time_ms) { | |
515 _recorded_non_young_free_cset_time_ms = time_ms; | |
516 } | |
517 | |
518 double predict_young_gc_eff() { | |
519 return get_new_neg_prediction(_young_gc_eff_seq); | |
520 } | |
521 | |
545 | 522 double predict_survivor_regions_evac_time(); |
523 | |
342 | 524 void cset_regions_freed() { |
4710 | 525 bool propagate = _last_gc_was_young && !_in_marking_window; |
342 | 526 _short_lived_surv_rate_group->all_surviving_words_recorded(propagate); |
527 _survivor_surv_rate_group->all_surviving_words_recorded(propagate); | |
528 // also call it on any more surv rate groups | |
529 } | |
530 | |
531 void set_known_garbage_bytes(size_t known_garbage_bytes) { | |
532 _known_garbage_bytes = known_garbage_bytes; | |
533 size_t heap_bytes = _g1->capacity(); | |
534 _known_garbage_ratio = (double) _known_garbage_bytes / (double) heap_bytes; | |
535 } | |
536 | |
537 void decrease_known_garbage_bytes(size_t known_garbage_bytes) { | |
538 guarantee( _known_garbage_bytes >= known_garbage_bytes, "invariant" ); | |
539 | |
540 _known_garbage_bytes -= known_garbage_bytes; | |
541 size_t heap_bytes = _g1->capacity(); | |
542 _known_garbage_ratio = (double) _known_garbage_bytes / (double) heap_bytes; | |
543 } | |
544 | |
545 G1MMUTracker* mmu_tracker() { | |
546 return _mmu_tracker; | |
547 } | |
548 | |
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549 double max_pause_time_ms() { |
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550 return _mmu_tracker->max_gc_time() * 1000.0; |
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551 } |
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552 |
342 | 553 double predict_remark_time_ms() { |
554 return get_new_prediction(_concurrent_mark_remark_times_ms); | |
555 } | |
556 | |
557 double predict_cleanup_time_ms() { | |
558 return get_new_prediction(_concurrent_mark_cleanup_times_ms); | |
559 } | |
560 | |
561 // Returns an estimate of the survival rate of the region at yg-age | |
562 // "yg_age". | |
545 | 563 double predict_yg_surv_rate(int age, SurvRateGroup* surv_rate_group) { |
564 TruncatedSeq* seq = surv_rate_group->get_seq(age); | |
342 | 565 if (seq->num() == 0) |
566 gclog_or_tty->print("BARF! age is %d", age); | |
567 guarantee( seq->num() > 0, "invariant" ); | |
568 double pred = get_new_prediction(seq); | |
569 if (pred > 1.0) | |
570 pred = 1.0; | |
571 return pred; | |
572 } | |
573 | |
545 | 574 double predict_yg_surv_rate(int age) { |
575 return predict_yg_surv_rate(age, _short_lived_surv_rate_group); | |
576 } | |
577 | |
342 | 578 double accum_yg_surv_rate_pred(int age) { |
579 return _short_lived_surv_rate_group->accum_surv_rate_pred(age); | |
580 } | |
581 | |
4013 | 582 private: |
1611 | 583 void print_stats(int level, const char* str, double value); |
584 void print_stats(int level, const char* str, int value); | |
585 | |
2430 | 586 void print_par_stats(int level, const char* str, double* data); |
587 void print_par_sizes(int level, const char* str, double* data); | |
342 | 588 |
589 void check_other_times(int level, | |
590 NumberSeq* other_times_ms, | |
591 NumberSeq* calc_other_times_ms) const; | |
592 | |
593 void print_summary (PauseSummary* stats) const; | |
594 | |
595 void print_summary (int level, const char* str, NumberSeq* seq) const; | |
596 void print_summary_sd (int level, const char* str, NumberSeq* seq) const; | |
597 | |
598 double avg_value (double* data); | |
599 double max_value (double* data); | |
600 double sum_of_values (double* data); | |
601 double max_sum (double* data1, double* data2); | |
602 | |
603 double _last_pause_time_ms; | |
604 | |
605 size_t _bytes_in_collection_set_before_gc; | |
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606 size_t _bytes_copied_during_gc; |
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607 |
342 | 608 // Used to count used bytes in CS. |
609 friend class CountCSClosure; | |
610 | |
611 // Statistics kept per GC stoppage, pause or full. | |
612 TruncatedSeq* _recent_prev_end_times_for_all_gcs_sec; | |
613 | |
614 // Add a new GC of the given duration and end time to the record. | |
615 void update_recent_gc_times(double end_time_sec, double elapsed_ms); | |
616 | |
617 // The head of the list (via "next_in_collection_set()") representing the | |
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618 // current collection set. Set from the incrementally built collection |
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619 // set at the start of the pause. |
342 | 620 HeapRegion* _collection_set; |
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621 |
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622 // The number of bytes in the collection set before the pause. Set from |
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623 // the incrementally built collection set at the start of an evacuation |
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624 // pause. |
342 | 625 size_t _collection_set_bytes_used_before; |
626 | |
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627 // The associated information that is maintained while the incremental |
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628 // collection set is being built with young regions. Used to populate |
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629 // the recorded info for the evacuation pause. |
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630 |
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631 enum CSetBuildType { |
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632 Active, // We are actively building the collection set |
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633 Inactive // We are not actively building the collection set |
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634 }; |
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635 |
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636 CSetBuildType _inc_cset_build_state; |
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637 |
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638 // The head of the incrementally built collection set. |
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639 HeapRegion* _inc_cset_head; |
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640 |
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641 // The tail of the incrementally built collection set. |
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642 HeapRegion* _inc_cset_tail; |
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643 |
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644 // The number of bytes in the incrementally built collection set. |
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645 // Used to set _collection_set_bytes_used_before at the start of |
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646 // an evacuation pause. |
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647 size_t _inc_cset_bytes_used_before; |
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648 |
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649 // Used to record the highest end of heap region in collection set |
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650 HeapWord* _inc_cset_max_finger; |
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651 |
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652 // The RSet lengths recorded for regions in the CSet. It is updated |
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653 // by the thread that adds a new region to the CSet. We assume that |
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654 // only one thread can be allocating a new CSet region (currently, |
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655 // it does so after taking the Heap_lock) hence no need to |
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656 // synchronize updates to this field. |
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657 size_t _inc_cset_recorded_rs_lengths; |
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658 |
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659 // A concurrent refinement thread periodcially samples the young |
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660 // region RSets and needs to update _inc_cset_recorded_rs_lengths as |
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661 // the RSets grow. Instead of having to syncronize updates to that |
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662 // field we accumulate them in this field and add it to |
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663 // _inc_cset_recorded_rs_lengths_diffs at the start of a GC. |
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664 ssize_t _inc_cset_recorded_rs_lengths_diffs; |
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665 |
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666 // The predicted elapsed time it will take to collect the regions in |
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667 // the CSet. This is updated by the thread that adds a new region to |
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668 // the CSet. See the comment for _inc_cset_recorded_rs_lengths about |
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669 // MT-safety assumptions. |
1394
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670 double _inc_cset_predicted_elapsed_time_ms; |
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671 |
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672 // See the comment for _inc_cset_recorded_rs_lengths_diffs. |
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673 double _inc_cset_predicted_elapsed_time_ms_diffs; |
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674 |
342 | 675 // Stash a pointer to the g1 heap. |
676 G1CollectedHeap* _g1; | |
677 | |
678 // The ratio of gc time to elapsed time, computed over recent pauses. | |
679 double _recent_avg_pause_time_ratio; | |
680 | |
681 double recent_avg_pause_time_ratio() { | |
682 return _recent_avg_pause_time_ratio; | |
683 } | |
684 | |
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685 // At the end of a pause we check the heap occupancy and we decide |
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686 // whether we will start a marking cycle during the next pause. If |
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687 // we decide that we want to do that, we will set this parameter to |
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688 // true. So, this parameter will stay true between the end of a |
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689 // pause and the beginning of a subsequent pause (not necessarily |
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690 // the next one, see the comments on the next field) when we decide |
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691 // that we will indeed start a marking cycle and do the initial-mark |
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692 // work. |
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|
693 volatile bool _initiate_conc_mark_if_possible; |
342 | 694 |
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695 // If initiate_conc_mark_if_possible() is set at the beginning of a |
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|
696 // pause, it is a suggestion that the pause should start a marking |
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697 // cycle by doing the initial-mark work. However, it is possible |
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698 // that the concurrent marking thread is still finishing up the |
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|
699 // previous marking cycle (e.g., clearing the next marking |
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700 // bitmap). If that is the case we cannot start a new cycle and |
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701 // we'll have to wait for the concurrent marking thread to finish |
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|
702 // what it is doing. In this case we will postpone the marking cycle |
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|
703 // initiation decision for the next pause. When we eventually decide |
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704 // to start a cycle, we will set _during_initial_mark_pause which |
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|
705 // will stay true until the end of the initial-mark pause and it's |
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706 // the condition that indicates that a pause is doing the |
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|
707 // initial-mark work. |
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|
708 volatile bool _during_initial_mark_pause; |
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|
709 |
4710 | 710 bool _should_revert_to_young_gcs; |
711 bool _last_young_gc; | |
342 | 712 |
713 // This set of variables tracks the collector efficiency, in order to | |
714 // determine whether we should initiate a new marking. | |
715 double _cur_mark_stop_world_time_ms; | |
716 double _mark_remark_start_sec; | |
717 double _mark_cleanup_start_sec; | |
718 double _mark_closure_time_ms; | |
719 | |
3919
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720 // Update the young list target length either by setting it to the |
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721 // desired fixed value or by calculating it using G1's pause |
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722 // prediction model. If no rs_lengths parameter is passed, predict |
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|
723 // the RS lengths using the prediction model, otherwise use the |
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724 // given rs_lengths as the prediction. |
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|
725 void update_young_list_target_length(size_t rs_lengths = (size_t) -1); |
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|
726 |
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|
727 // Calculate and return the minimum desired young list target |
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728 // length. This is the minimum desired young list length according |
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|
729 // to the user's inputs. |
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|
730 size_t calculate_young_list_desired_min_length(size_t base_min_length); |
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|
731 |
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|
732 // Calculate and return the maximum desired young list target |
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|
733 // length. This is the maximum desired young list length according |
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|
734 // to the user's inputs. |
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|
735 size_t calculate_young_list_desired_max_length(); |
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|
736 |
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|
737 // Calculate and return the maximum young list target length that |
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738 // can fit into the pause time goal. The parameters are: rs_lengths |
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739 // represent the prediction of how large the young RSet lengths will |
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740 // be, base_min_length is the alreay existing number of regions in |
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741 // the young list, min_length and max_length are the desired min and |
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742 // max young list length according to the user's inputs. |
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743 size_t calculate_young_list_target_length(size_t rs_lengths, |
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744 size_t base_min_length, |
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|
745 size_t desired_min_length, |
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|
746 size_t desired_max_length); |
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|
747 |
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|
748 // Check whether a given young length (young_length) fits into the |
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749 // given target pause time and whether the prediction for the amount |
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750 // of objects to be copied for the given length will fit into the |
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751 // given free space (expressed by base_free_regions). It is used by |
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752 // calculate_young_list_target_length(). |
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753 bool predict_will_fit(size_t young_length, double base_time_ms, |
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754 size_t base_free_regions, double target_pause_time_ms); |
342 | 755 |
4013 | 756 // Count the number of bytes used in the CS. |
757 void count_CS_bytes_used(); | |
758 | |
342 | 759 public: |
760 | |
761 G1CollectorPolicy(); | |
762 | |
763 virtual G1CollectorPolicy* as_g1_policy() { return this; } | |
764 | |
765 virtual CollectorPolicy::Name kind() { | |
766 return CollectorPolicy::G1CollectorPolicyKind; | |
767 } | |
768 | |
3919
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769 // Check the current value of the young list RSet lengths and |
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770 // compare it against the last prediction. If the current value is |
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771 // higher, recalculate the young list target length prediction. |
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772 void revise_young_list_target_length_if_necessary(); |
342 | 773 |
774 size_t bytes_in_collection_set() { | |
775 return _bytes_in_collection_set_before_gc; | |
776 } | |
777 | |
778 unsigned calc_gc_alloc_time_stamp() { | |
779 return _all_pause_times_ms->num() + 1; | |
780 } | |
781 | |
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782 // This should be called after the heap is resized. |
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783 void record_new_heap_size(size_t new_number_of_regions); |
3919
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784 |
4013 | 785 void init(); |
342 | 786 |
545 | 787 // Create jstat counters for the policy. |
788 virtual void initialize_gc_policy_counters(); | |
789 | |
342 | 790 virtual HeapWord* mem_allocate_work(size_t size, |
791 bool is_tlab, | |
792 bool* gc_overhead_limit_was_exceeded); | |
793 | |
794 // This method controls how a collector handles one or more | |
795 // of its generations being fully allocated. | |
796 virtual HeapWord* satisfy_failed_allocation(size_t size, | |
797 bool is_tlab); | |
798 | |
799 BarrierSet::Name barrier_set_name() { return BarrierSet::G1SATBCTLogging; } | |
800 | |
801 GenRemSet::Name rem_set_name() { return GenRemSet::CardTable; } | |
802 | |
803 // Update the heuristic info to record a collection pause of the given | |
804 // start time, where the given number of bytes were used at the start. | |
805 // This may involve changing the desired size of a collection set. | |
806 | |
4013 | 807 void record_stop_world_start(); |
342 | 808 |
4013 | 809 void record_collection_pause_start(double start_time_sec, size_t start_used); |
342 | 810 |
811 // Must currently be called while the world is stopped. | |
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812 void record_concurrent_mark_init_end(double |
342 | 813 mark_init_elapsed_time_ms); |
814 | |
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815 void record_mark_closure_time(double mark_closure_time_ms) { |
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816 _mark_closure_time_ms = mark_closure_time_ms; |
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817 } |
342 | 818 |
4013 | 819 void record_concurrent_mark_remark_start(); |
820 void record_concurrent_mark_remark_end(); | |
342 | 821 |
4013 | 822 void record_concurrent_mark_cleanup_start(); |
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823 void record_concurrent_mark_cleanup_end(int no_of_gc_threads); |
4013 | 824 void record_concurrent_mark_cleanup_completed(); |
342 | 825 |
4013 | 826 void record_concurrent_pause(); |
827 void record_concurrent_pause_end(); | |
342 | 828 |
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829 void record_collection_pause_end(int no_of_gc_threads); |
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830 void print_heap_transition(); |
342 | 831 |
832 // Record the fact that a full collection occurred. | |
4013 | 833 void record_full_collection_start(); |
834 void record_full_collection_end(); | |
342 | 835 |
1611 | 836 void record_gc_worker_start_time(int worker_i, double ms) { |
837 _par_last_gc_worker_start_times_ms[worker_i] = ms; | |
838 } | |
839 | |
342 | 840 void record_ext_root_scan_time(int worker_i, double ms) { |
841 _par_last_ext_root_scan_times_ms[worker_i] = ms; | |
842 } | |
843 | |
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844 void record_satb_filtering_time(int worker_i, double ms) { |
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845 _par_last_satb_filtering_times_ms[worker_i] = ms; |
342 | 846 } |
847 | |
848 void record_satb_drain_time(double ms) { | |
4023 | 849 assert(_g1->mark_in_progress(), "shouldn't be here otherwise"); |
342 | 850 _cur_satb_drain_time_ms = ms; |
851 } | |
852 | |
853 void record_update_rs_time(int thread, double ms) { | |
854 _par_last_update_rs_times_ms[thread] = ms; | |
855 } | |
856 | |
857 void record_update_rs_processed_buffers (int thread, | |
858 double processed_buffers) { | |
859 _par_last_update_rs_processed_buffers[thread] = processed_buffers; | |
860 } | |
861 | |
862 void record_scan_rs_time(int thread, double ms) { | |
863 _par_last_scan_rs_times_ms[thread] = ms; | |
864 } | |
865 | |
866 void reset_obj_copy_time(int thread) { | |
867 _par_last_obj_copy_times_ms[thread] = 0.0; | |
868 } | |
869 | |
870 void reset_obj_copy_time() { | |
871 reset_obj_copy_time(0); | |
872 } | |
873 | |
874 void record_obj_copy_time(int thread, double ms) { | |
875 _par_last_obj_copy_times_ms[thread] += ms; | |
876 } | |
877 | |
1611 | 878 void record_termination(int thread, double ms, size_t attempts) { |
879 _par_last_termination_times_ms[thread] = ms; | |
880 _par_last_termination_attempts[thread] = (double) attempts; | |
342 | 881 } |
882 | |
1611 | 883 void record_gc_worker_end_time(int worker_i, double ms) { |
884 _par_last_gc_worker_end_times_ms[worker_i] = ms; | |
342 | 885 } |
886 | |
595
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887 void record_pause_time_ms(double ms) { |
342 | 888 _last_pause_time_ms = ms; |
889 } | |
890 | |
891 void record_clear_ct_time(double ms) { | |
892 _cur_clear_ct_time_ms = ms; | |
893 } | |
894 | |
895 void record_par_time(double ms) { | |
896 _cur_collection_par_time_ms = ms; | |
897 } | |
898 | |
899 void record_aux_start_time(int i) { | |
900 guarantee(i < _aux_num, "should be within range"); | |
901 _cur_aux_start_times_ms[i] = os::elapsedTime() * 1000.0; | |
902 } | |
903 | |
904 void record_aux_end_time(int i) { | |
905 guarantee(i < _aux_num, "should be within range"); | |
906 double ms = os::elapsedTime() * 1000.0 - _cur_aux_start_times_ms[i]; | |
907 _cur_aux_times_set[i] = true; | |
908 _cur_aux_times_ms[i] += ms; | |
909 } | |
910 | |
3979
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911 void record_ref_proc_time(double ms) { |
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912 _cur_ref_proc_time_ms = ms; |
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|
913 } |
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|
914 |
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915 void record_ref_enq_time(double ms) { |
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|
916 _cur_ref_enq_time_ms = ms; |
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|
917 } |
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|
918 |
890
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|
919 #ifndef PRODUCT |
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|
920 void record_cc_clear_time(double ms) { |
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921 if (_min_clear_cc_time_ms < 0.0 || ms <= _min_clear_cc_time_ms) |
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922 _min_clear_cc_time_ms = ms; |
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923 if (_max_clear_cc_time_ms < 0.0 || ms >= _max_clear_cc_time_ms) |
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924 _max_clear_cc_time_ms = ms; |
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925 _cur_clear_cc_time_ms = ms; |
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926 _cum_clear_cc_time_ms += ms; |
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|
927 _num_cc_clears++; |
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|
928 } |
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|
929 #endif |
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|
930 |
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|
931 // Record how much space we copied during a GC. This is typically |
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932 // called when a GC alloc region is being retired. |
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|
933 void record_bytes_copied_during_gc(size_t bytes) { |
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|
934 _bytes_copied_during_gc += bytes; |
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|
935 } |
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|
936 |
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|
937 // The amount of space we copied during a GC. |
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938 size_t bytes_copied_during_gc() { |
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|
939 return _bytes_copied_during_gc; |
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|
940 } |
342 | 941 |
942 // Choose a new collection set. Marks the chosen regions as being | |
943 // "in_collection_set", and links them together. The head and number of | |
944 // the collection set are available via access methods. | |
4013 | 945 void choose_collection_set(double target_pause_time_ms); |
342 | 946 |
947 // The head of the list (via "next_in_collection_set()") representing the | |
948 // current collection set. | |
949 HeapRegion* collection_set() { return _collection_set; } | |
950 | |
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951 void clear_collection_set() { _collection_set = NULL; } |
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952 |
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953 // Add old region "hr" to the CSet. |
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|
954 void add_old_region_to_cset(HeapRegion* hr); |
342 | 955 |
1394
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956 // Incremental CSet Support |
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|
957 |
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|
958 // The head of the incrementally built collection set. |
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959 HeapRegion* inc_cset_head() { return _inc_cset_head; } |
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960 |
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961 // The tail of the incrementally built collection set. |
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962 HeapRegion* inc_set_tail() { return _inc_cset_tail; } |
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|
963 |
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964 // Initialize incremental collection set info. |
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965 void start_incremental_cset_building(); |
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|
966 |
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967 // Perform any final calculations on the incremental CSet fields |
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968 // before we can use them. |
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969 void finalize_incremental_cset_building(); |
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970 |
1394
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971 void clear_incremental_cset() { |
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972 _inc_cset_head = NULL; |
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973 _inc_cset_tail = NULL; |
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|
974 } |
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|
975 |
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|
976 // Stop adding regions to the incremental collection set |
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977 void stop_incremental_cset_building() { _inc_cset_build_state = Inactive; } |
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978 |
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979 // Add information about hr to the aggregated information for the |
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980 // incrementally built collection set. |
1394
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|
981 void add_to_incremental_cset_info(HeapRegion* hr, size_t rs_length); |
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|
982 |
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983 // Update information about hr in the aggregated information for |
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984 // the incrementally built collection set. |
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|
985 void update_incremental_cset_info(HeapRegion* hr, size_t new_rs_length); |
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|
986 |
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|
987 private: |
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|
988 // Update the incremental cset information when adding a region |
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989 // (should not be called directly). |
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990 void add_region_to_incremental_cset_common(HeapRegion* hr); |
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991 |
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992 public: |
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993 // Add hr to the LHS of the incremental collection set. |
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994 void add_region_to_incremental_cset_lhs(HeapRegion* hr); |
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995 |
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996 // Add hr to the RHS of the incremental collection set. |
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997 void add_region_to_incremental_cset_rhs(HeapRegion* hr); |
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998 |
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999 #ifndef PRODUCT |
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1000 void print_collection_set(HeapRegion* list_head, outputStream* st); |
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1001 #endif // !PRODUCT |
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1002 |
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1003 bool initiate_conc_mark_if_possible() { return _initiate_conc_mark_if_possible; } |
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1004 void set_initiate_conc_mark_if_possible() { _initiate_conc_mark_if_possible = true; } |
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1005 void clear_initiate_conc_mark_if_possible() { _initiate_conc_mark_if_possible = false; } |
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1006 |
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1007 bool during_initial_mark_pause() { return _during_initial_mark_pause; } |
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1008 void set_during_initial_mark_pause() { _during_initial_mark_pause = true; } |
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1009 void clear_during_initial_mark_pause(){ _during_initial_mark_pause = false; } |
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1010 |
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1011 // This sets the initiate_conc_mark_if_possible() flag to start a |
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1012 // new cycle, as long as we are not already in one. It's best if it |
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1013 // is called during a safepoint when the test whether a cycle is in |
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1014 // progress or not is stable. |
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1015 bool force_initial_mark_if_outside_cycle(GCCause::Cause gc_cause); |
1656
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1016 |
1359
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1017 // This is called at the very beginning of an evacuation pause (it |
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1018 // has to be the first thing that the pause does). If |
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1019 // initiate_conc_mark_if_possible() is true, and the concurrent |
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1020 // marking thread has completed its work during the previous cycle, |
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1021 // it will set during_initial_mark_pause() to so that the pause does |
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1022 // the initial-mark work and start a marking cycle. |
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1023 void decide_on_conc_mark_initiation(); |
342 | 1024 |
1025 // If an expansion would be appropriate, because recent GC overhead had | |
1026 // exceeded the desired limit, return an amount to expand by. | |
4013 | 1027 size_t expansion_amount(); |
342 | 1028 |
1029 #ifndef PRODUCT | |
1030 // Check any appropriate marked bytes info, asserting false if | |
1031 // something's wrong, else returning "true". | |
4013 | 1032 bool assertMarkedBytesDataOK(); |
342 | 1033 #endif |
1034 | |
1035 // Print tracing information. | |
1036 void print_tracing_info() const; | |
1037 | |
1038 // Print stats on young survival ratio | |
1039 void print_yg_surv_rate_info() const; | |
1040 | |
545 | 1041 void finished_recalculating_age_indexes(bool is_survivors) { |
1042 if (is_survivors) { | |
1043 _survivor_surv_rate_group->finished_recalculating_age_indexes(); | |
1044 } else { | |
1045 _short_lived_surv_rate_group->finished_recalculating_age_indexes(); | |
1046 } | |
342 | 1047 // do that for any other surv rate groups |
1048 } | |
1049 | |
1973 | 1050 bool is_young_list_full() { |
1051 size_t young_list_length = _g1->young_list()->length(); | |
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1052 size_t young_list_target_length = _young_list_target_length; |
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1053 return young_list_length >= young_list_target_length; |
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1054 } |
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1055 |
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1056 bool can_expand_young_list() { |
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1057 size_t young_list_length = _g1->young_list()->length(); |
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1058 size_t young_list_max_length = _young_list_max_length; |
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1059 return young_list_length < young_list_max_length; |
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1060 } |
1973 | 1061 |
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1062 size_t young_list_max_length() { |
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1063 return _young_list_max_length; |
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1064 } |
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1065 |
4710 | 1066 bool gcs_are_young() { |
1067 return _gcs_are_young; | |
342 | 1068 } |
4710 | 1069 void set_gcs_are_young(bool gcs_are_young) { |
1070 _gcs_are_young = gcs_are_young; | |
342 | 1071 } |
1072 | |
1073 bool adaptive_young_list_length() { | |
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1074 return _young_gen_sizer->adaptive_young_list_length(); |
342 | 1075 } |
1076 | |
1077 inline double get_gc_eff_factor() { | |
1078 double ratio = _known_garbage_ratio; | |
1079 | |
1080 double square = ratio * ratio; | |
1081 // square = square * square; | |
1082 double ret = square * 9.0 + 1.0; | |
1083 #if 0 | |
1084 gclog_or_tty->print_cr("ratio = %1.2lf, ret = %1.2lf", ratio, ret); | |
1085 #endif // 0 | |
1086 guarantee(0.0 <= ret && ret < 10.0, "invariant!"); | |
1087 return ret; | |
1088 } | |
1089 | |
4013 | 1090 private: |
342 | 1091 // |
1092 // Survivor regions policy. | |
1093 // | |
1094 | |
1095 // Current tenuring threshold, set to 0 if the collector reaches the | |
1096 // maximum amount of suvivors regions. | |
1097 int _tenuring_threshold; | |
1098 | |
545 | 1099 // The limit on the number of regions allocated for survivors. |
1100 size_t _max_survivor_regions; | |
1101 | |
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1102 // For reporting purposes. |
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1103 size_t _eden_bytes_before_gc; |
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1104 size_t _survivor_bytes_before_gc; |
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1105 size_t _capacity_before_gc; |
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1106 |
545 | 1107 // The amount of survor regions after a collection. |
1108 size_t _recorded_survivor_regions; | |
1109 // List of survivor regions. | |
1110 HeapRegion* _recorded_survivor_head; | |
1111 HeapRegion* _recorded_survivor_tail; | |
1112 | |
1113 ageTable _survivors_age_table; | |
1114 | |
342 | 1115 public: |
1116 | |
1117 inline GCAllocPurpose | |
1118 evacuation_destination(HeapRegion* src_region, int age, size_t word_sz) { | |
1119 if (age < _tenuring_threshold && src_region->is_young()) { | |
1120 return GCAllocForSurvived; | |
1121 } else { | |
1122 return GCAllocForTenured; | |
1123 } | |
1124 } | |
1125 | |
1126 inline bool track_object_age(GCAllocPurpose purpose) { | |
1127 return purpose == GCAllocForSurvived; | |
1128 } | |
1129 | |
545 | 1130 static const size_t REGIONS_UNLIMITED = ~(size_t)0; |
1131 | |
1132 size_t max_regions(int purpose); | |
342 | 1133 |
1134 // The limit on regions for a particular purpose is reached. | |
1135 void note_alloc_region_limit_reached(int purpose) { | |
1136 if (purpose == GCAllocForSurvived) { | |
1137 _tenuring_threshold = 0; | |
1138 } | |
1139 } | |
1140 | |
1141 void note_start_adding_survivor_regions() { | |
1142 _survivor_surv_rate_group->start_adding_regions(); | |
1143 } | |
1144 | |
1145 void note_stop_adding_survivor_regions() { | |
1146 _survivor_surv_rate_group->stop_adding_regions(); | |
1147 } | |
545 | 1148 |
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1149 void tenure_all_objects() { |
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1150 _max_survivor_regions = 0; |
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1151 _tenuring_threshold = 0; |
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1152 } |
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1153 |
545 | 1154 void record_survivor_regions(size_t regions, |
1155 HeapRegion* head, | |
1156 HeapRegion* tail) { | |
1157 _recorded_survivor_regions = regions; | |
1158 _recorded_survivor_head = head; | |
1159 _recorded_survivor_tail = tail; | |
1160 } | |
1161 | |
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1162 size_t recorded_survivor_regions() { |
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1163 return _recorded_survivor_regions; |
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1164 } |
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1165 |
545 | 1166 void record_thread_age_table(ageTable* age_table) |
1167 { | |
1168 _survivors_age_table.merge_par(age_table); | |
1169 } | |
1170 | |
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1171 void update_max_gc_locker_expansion(); |
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1172 |
545 | 1173 // Calculates survivor space parameters. |
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1174 void update_survivors_policy(); |
545 | 1175 |
342 | 1176 }; |
1177 | |
1178 // This should move to some place more general... | |
1179 | |
1180 // If we have "n" measurements, and we've kept track of their "sum" and the | |
1181 // "sum_of_squares" of the measurements, this returns the variance of the | |
1182 // sequence. | |
1183 inline double variance(int n, double sum_of_squares, double sum) { | |
1184 double n_d = (double)n; | |
1185 double avg = sum/n_d; | |
1186 return (sum_of_squares - 2.0 * avg * sum + n_d * avg * avg) / n_d; | |
1187 } | |
1188 | |
1972 | 1189 #endif // SHARE_VM_GC_IMPLEMENTATION_G1_G1COLLECTORPOLICY_HPP |