src/share/vm/gc_implementation/g1/g1CollectedHeap.cpp

Mon, 01 Dec 2008 23:25:24 -0800

author
ysr
date
Mon, 01 Dec 2008 23:25:24 -0800
changeset 892
27a80744a83b
parent 888
c96030fff130
child 905
ad8c8ca4ab0f
child 916
7d7a7c599c17
permissions
-rw-r--r--

6778647: snap(), snap_policy() should be renamed setup(), setup_policy()
Summary: Renamed Reference{Policy,Pocessor} methods from snap{,_policy}() to setup{,_policy}()
Reviewed-by: apetrusenko

ysr@777 1 /*
ysr@777 2 * Copyright 2001-2007 Sun Microsystems, Inc. All Rights Reserved.
ysr@777 3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
ysr@777 4 *
ysr@777 5 * This code is free software; you can redistribute it and/or modify it
ysr@777 6 * under the terms of the GNU General Public License version 2 only, as
ysr@777 7 * published by the Free Software Foundation.
ysr@777 8 *
ysr@777 9 * This code is distributed in the hope that it will be useful, but WITHOUT
ysr@777 10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
ysr@777 11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
ysr@777 12 * version 2 for more details (a copy is included in the LICENSE file that
ysr@777 13 * accompanied this code).
ysr@777 14 *
ysr@777 15 * You should have received a copy of the GNU General Public License version
ysr@777 16 * 2 along with this work; if not, write to the Free Software Foundation,
ysr@777 17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
ysr@777 18 *
ysr@777 19 * Please contact Sun Microsystems, Inc., 4150 Network Circle, Santa Clara,
ysr@777 20 * CA 95054 USA or visit www.sun.com if you need additional information or
ysr@777 21 * have any questions.
ysr@777 22 *
ysr@777 23 */
ysr@777 24
ysr@777 25 #include "incls/_precompiled.incl"
ysr@777 26 #include "incls/_g1CollectedHeap.cpp.incl"
ysr@777 27
ysr@777 28 // turn it on so that the contents of the young list (scan-only /
ysr@777 29 // to-be-collected) are printed at "strategic" points before / during
ysr@777 30 // / after the collection --- this is useful for debugging
ysr@777 31 #define SCAN_ONLY_VERBOSE 0
ysr@777 32 // CURRENT STATUS
ysr@777 33 // This file is under construction. Search for "FIXME".
ysr@777 34
ysr@777 35 // INVARIANTS/NOTES
ysr@777 36 //
ysr@777 37 // All allocation activity covered by the G1CollectedHeap interface is
ysr@777 38 // serialized by acquiring the HeapLock. This happens in
ysr@777 39 // mem_allocate_work, which all such allocation functions call.
ysr@777 40 // (Note that this does not apply to TLAB allocation, which is not part
ysr@777 41 // of this interface: it is done by clients of this interface.)
ysr@777 42
ysr@777 43 // Local to this file.
ysr@777 44
ysr@777 45 // Finds the first HeapRegion.
ysr@777 46 // No longer used, but might be handy someday.
ysr@777 47
ysr@777 48 class FindFirstRegionClosure: public HeapRegionClosure {
ysr@777 49 HeapRegion* _a_region;
ysr@777 50 public:
ysr@777 51 FindFirstRegionClosure() : _a_region(NULL) {}
ysr@777 52 bool doHeapRegion(HeapRegion* r) {
ysr@777 53 _a_region = r;
ysr@777 54 return true;
ysr@777 55 }
ysr@777 56 HeapRegion* result() { return _a_region; }
ysr@777 57 };
ysr@777 58
ysr@777 59
ysr@777 60 class RefineCardTableEntryClosure: public CardTableEntryClosure {
ysr@777 61 SuspendibleThreadSet* _sts;
ysr@777 62 G1RemSet* _g1rs;
ysr@777 63 ConcurrentG1Refine* _cg1r;
ysr@777 64 bool _concurrent;
ysr@777 65 public:
ysr@777 66 RefineCardTableEntryClosure(SuspendibleThreadSet* sts,
ysr@777 67 G1RemSet* g1rs,
ysr@777 68 ConcurrentG1Refine* cg1r) :
ysr@777 69 _sts(sts), _g1rs(g1rs), _cg1r(cg1r), _concurrent(true)
ysr@777 70 {}
ysr@777 71 bool do_card_ptr(jbyte* card_ptr, int worker_i) {
ysr@777 72 _g1rs->concurrentRefineOneCard(card_ptr, worker_i);
ysr@777 73 if (_concurrent && _sts->should_yield()) {
ysr@777 74 // Caller will actually yield.
ysr@777 75 return false;
ysr@777 76 }
ysr@777 77 // Otherwise, we finished successfully; return true.
ysr@777 78 return true;
ysr@777 79 }
ysr@777 80 void set_concurrent(bool b) { _concurrent = b; }
ysr@777 81 };
ysr@777 82
ysr@777 83
ysr@777 84 class ClearLoggedCardTableEntryClosure: public CardTableEntryClosure {
ysr@777 85 int _calls;
ysr@777 86 G1CollectedHeap* _g1h;
ysr@777 87 CardTableModRefBS* _ctbs;
ysr@777 88 int _histo[256];
ysr@777 89 public:
ysr@777 90 ClearLoggedCardTableEntryClosure() :
ysr@777 91 _calls(0)
ysr@777 92 {
ysr@777 93 _g1h = G1CollectedHeap::heap();
ysr@777 94 _ctbs = (CardTableModRefBS*)_g1h->barrier_set();
ysr@777 95 for (int i = 0; i < 256; i++) _histo[i] = 0;
ysr@777 96 }
ysr@777 97 bool do_card_ptr(jbyte* card_ptr, int worker_i) {
ysr@777 98 if (_g1h->is_in_reserved(_ctbs->addr_for(card_ptr))) {
ysr@777 99 _calls++;
ysr@777 100 unsigned char* ujb = (unsigned char*)card_ptr;
ysr@777 101 int ind = (int)(*ujb);
ysr@777 102 _histo[ind]++;
ysr@777 103 *card_ptr = -1;
ysr@777 104 }
ysr@777 105 return true;
ysr@777 106 }
ysr@777 107 int calls() { return _calls; }
ysr@777 108 void print_histo() {
ysr@777 109 gclog_or_tty->print_cr("Card table value histogram:");
ysr@777 110 for (int i = 0; i < 256; i++) {
ysr@777 111 if (_histo[i] != 0) {
ysr@777 112 gclog_or_tty->print_cr(" %d: %d", i, _histo[i]);
ysr@777 113 }
ysr@777 114 }
ysr@777 115 }
ysr@777 116 };
ysr@777 117
ysr@777 118 class RedirtyLoggedCardTableEntryClosure: public CardTableEntryClosure {
ysr@777 119 int _calls;
ysr@777 120 G1CollectedHeap* _g1h;
ysr@777 121 CardTableModRefBS* _ctbs;
ysr@777 122 public:
ysr@777 123 RedirtyLoggedCardTableEntryClosure() :
ysr@777 124 _calls(0)
ysr@777 125 {
ysr@777 126 _g1h = G1CollectedHeap::heap();
ysr@777 127 _ctbs = (CardTableModRefBS*)_g1h->barrier_set();
ysr@777 128 }
ysr@777 129 bool do_card_ptr(jbyte* card_ptr, int worker_i) {
ysr@777 130 if (_g1h->is_in_reserved(_ctbs->addr_for(card_ptr))) {
ysr@777 131 _calls++;
ysr@777 132 *card_ptr = 0;
ysr@777 133 }
ysr@777 134 return true;
ysr@777 135 }
ysr@777 136 int calls() { return _calls; }
ysr@777 137 };
ysr@777 138
ysr@777 139 YoungList::YoungList(G1CollectedHeap* g1h)
ysr@777 140 : _g1h(g1h), _head(NULL),
ysr@777 141 _scan_only_head(NULL), _scan_only_tail(NULL), _curr_scan_only(NULL),
ysr@777 142 _length(0), _scan_only_length(0),
ysr@777 143 _last_sampled_rs_lengths(0),
ysr@777 144 _survivor_head(NULL), _survivors_tail(NULL), _survivor_length(0)
ysr@777 145 {
ysr@777 146 guarantee( check_list_empty(false), "just making sure..." );
ysr@777 147 }
ysr@777 148
ysr@777 149 void YoungList::push_region(HeapRegion *hr) {
ysr@777 150 assert(!hr->is_young(), "should not already be young");
ysr@777 151 assert(hr->get_next_young_region() == NULL, "cause it should!");
ysr@777 152
ysr@777 153 hr->set_next_young_region(_head);
ysr@777 154 _head = hr;
ysr@777 155
ysr@777 156 hr->set_young();
ysr@777 157 double yg_surv_rate = _g1h->g1_policy()->predict_yg_surv_rate((int)_length);
ysr@777 158 ++_length;
ysr@777 159 }
ysr@777 160
ysr@777 161 void YoungList::add_survivor_region(HeapRegion* hr) {
ysr@777 162 assert(!hr->is_survivor(), "should not already be for survived");
ysr@777 163 assert(hr->get_next_young_region() == NULL, "cause it should!");
ysr@777 164
ysr@777 165 hr->set_next_young_region(_survivor_head);
ysr@777 166 if (_survivor_head == NULL) {
ysr@777 167 _survivors_tail = hr;
ysr@777 168 }
ysr@777 169 _survivor_head = hr;
ysr@777 170
ysr@777 171 hr->set_survivor();
ysr@777 172 ++_survivor_length;
ysr@777 173 }
ysr@777 174
ysr@777 175 HeapRegion* YoungList::pop_region() {
ysr@777 176 while (_head != NULL) {
ysr@777 177 assert( length() > 0, "list should not be empty" );
ysr@777 178 HeapRegion* ret = _head;
ysr@777 179 _head = ret->get_next_young_region();
ysr@777 180 ret->set_next_young_region(NULL);
ysr@777 181 --_length;
ysr@777 182 assert(ret->is_young(), "region should be very young");
ysr@777 183
ysr@777 184 // Replace 'Survivor' region type with 'Young'. So the region will
ysr@777 185 // be treated as a young region and will not be 'confused' with
ysr@777 186 // newly created survivor regions.
ysr@777 187 if (ret->is_survivor()) {
ysr@777 188 ret->set_young();
ysr@777 189 }
ysr@777 190
ysr@777 191 if (!ret->is_scan_only()) {
ysr@777 192 return ret;
ysr@777 193 }
ysr@777 194
ysr@777 195 // scan-only, we'll add it to the scan-only list
ysr@777 196 if (_scan_only_tail == NULL) {
ysr@777 197 guarantee( _scan_only_head == NULL, "invariant" );
ysr@777 198
ysr@777 199 _scan_only_head = ret;
ysr@777 200 _curr_scan_only = ret;
ysr@777 201 } else {
ysr@777 202 guarantee( _scan_only_head != NULL, "invariant" );
ysr@777 203 _scan_only_tail->set_next_young_region(ret);
ysr@777 204 }
ysr@777 205 guarantee( ret->get_next_young_region() == NULL, "invariant" );
ysr@777 206 _scan_only_tail = ret;
ysr@777 207
ysr@777 208 // no need to be tagged as scan-only any more
ysr@777 209 ret->set_young();
ysr@777 210
ysr@777 211 ++_scan_only_length;
ysr@777 212 }
ysr@777 213 assert( length() == 0, "list should be empty" );
ysr@777 214 return NULL;
ysr@777 215 }
ysr@777 216
ysr@777 217 void YoungList::empty_list(HeapRegion* list) {
ysr@777 218 while (list != NULL) {
ysr@777 219 HeapRegion* next = list->get_next_young_region();
ysr@777 220 list->set_next_young_region(NULL);
ysr@777 221 list->uninstall_surv_rate_group();
ysr@777 222 list->set_not_young();
ysr@777 223 list = next;
ysr@777 224 }
ysr@777 225 }
ysr@777 226
ysr@777 227 void YoungList::empty_list() {
ysr@777 228 assert(check_list_well_formed(), "young list should be well formed");
ysr@777 229
ysr@777 230 empty_list(_head);
ysr@777 231 _head = NULL;
ysr@777 232 _length = 0;
ysr@777 233
ysr@777 234 empty_list(_scan_only_head);
ysr@777 235 _scan_only_head = NULL;
ysr@777 236 _scan_only_tail = NULL;
ysr@777 237 _scan_only_length = 0;
ysr@777 238 _curr_scan_only = NULL;
ysr@777 239
ysr@777 240 empty_list(_survivor_head);
ysr@777 241 _survivor_head = NULL;
ysr@777 242 _survivors_tail = NULL;
ysr@777 243 _survivor_length = 0;
ysr@777 244
ysr@777 245 _last_sampled_rs_lengths = 0;
ysr@777 246
ysr@777 247 assert(check_list_empty(false), "just making sure...");
ysr@777 248 }
ysr@777 249
ysr@777 250 bool YoungList::check_list_well_formed() {
ysr@777 251 bool ret = true;
ysr@777 252
ysr@777 253 size_t length = 0;
ysr@777 254 HeapRegion* curr = _head;
ysr@777 255 HeapRegion* last = NULL;
ysr@777 256 while (curr != NULL) {
ysr@777 257 if (!curr->is_young() || curr->is_scan_only()) {
ysr@777 258 gclog_or_tty->print_cr("### YOUNG REGION "PTR_FORMAT"-"PTR_FORMAT" "
ysr@777 259 "incorrectly tagged (%d, %d)",
ysr@777 260 curr->bottom(), curr->end(),
ysr@777 261 curr->is_young(), curr->is_scan_only());
ysr@777 262 ret = false;
ysr@777 263 }
ysr@777 264 ++length;
ysr@777 265 last = curr;
ysr@777 266 curr = curr->get_next_young_region();
ysr@777 267 }
ysr@777 268 ret = ret && (length == _length);
ysr@777 269
ysr@777 270 if (!ret) {
ysr@777 271 gclog_or_tty->print_cr("### YOUNG LIST seems not well formed!");
ysr@777 272 gclog_or_tty->print_cr("### list has %d entries, _length is %d",
ysr@777 273 length, _length);
ysr@777 274 }
ysr@777 275
ysr@777 276 bool scan_only_ret = true;
ysr@777 277 length = 0;
ysr@777 278 curr = _scan_only_head;
ysr@777 279 last = NULL;
ysr@777 280 while (curr != NULL) {
ysr@777 281 if (!curr->is_young() || curr->is_scan_only()) {
ysr@777 282 gclog_or_tty->print_cr("### SCAN-ONLY REGION "PTR_FORMAT"-"PTR_FORMAT" "
ysr@777 283 "incorrectly tagged (%d, %d)",
ysr@777 284 curr->bottom(), curr->end(),
ysr@777 285 curr->is_young(), curr->is_scan_only());
ysr@777 286 scan_only_ret = false;
ysr@777 287 }
ysr@777 288 ++length;
ysr@777 289 last = curr;
ysr@777 290 curr = curr->get_next_young_region();
ysr@777 291 }
ysr@777 292 scan_only_ret = scan_only_ret && (length == _scan_only_length);
ysr@777 293
ysr@777 294 if ( (last != _scan_only_tail) ||
ysr@777 295 (_scan_only_head == NULL && _scan_only_tail != NULL) ||
ysr@777 296 (_scan_only_head != NULL && _scan_only_tail == NULL) ) {
ysr@777 297 gclog_or_tty->print_cr("## _scan_only_tail is set incorrectly");
ysr@777 298 scan_only_ret = false;
ysr@777 299 }
ysr@777 300
ysr@777 301 if (_curr_scan_only != NULL && _curr_scan_only != _scan_only_head) {
ysr@777 302 gclog_or_tty->print_cr("### _curr_scan_only is set incorrectly");
ysr@777 303 scan_only_ret = false;
ysr@777 304 }
ysr@777 305
ysr@777 306 if (!scan_only_ret) {
ysr@777 307 gclog_or_tty->print_cr("### SCAN-ONLY LIST seems not well formed!");
ysr@777 308 gclog_or_tty->print_cr("### list has %d entries, _scan_only_length is %d",
ysr@777 309 length, _scan_only_length);
ysr@777 310 }
ysr@777 311
ysr@777 312 return ret && scan_only_ret;
ysr@777 313 }
ysr@777 314
ysr@777 315 bool YoungList::check_list_empty(bool ignore_scan_only_list,
ysr@777 316 bool check_sample) {
ysr@777 317 bool ret = true;
ysr@777 318
ysr@777 319 if (_length != 0) {
ysr@777 320 gclog_or_tty->print_cr("### YOUNG LIST should have 0 length, not %d",
ysr@777 321 _length);
ysr@777 322 ret = false;
ysr@777 323 }
ysr@777 324 if (check_sample && _last_sampled_rs_lengths != 0) {
ysr@777 325 gclog_or_tty->print_cr("### YOUNG LIST has non-zero last sampled RS lengths");
ysr@777 326 ret = false;
ysr@777 327 }
ysr@777 328 if (_head != NULL) {
ysr@777 329 gclog_or_tty->print_cr("### YOUNG LIST does not have a NULL head");
ysr@777 330 ret = false;
ysr@777 331 }
ysr@777 332 if (!ret) {
ysr@777 333 gclog_or_tty->print_cr("### YOUNG LIST does not seem empty");
ysr@777 334 }
ysr@777 335
ysr@777 336 if (ignore_scan_only_list)
ysr@777 337 return ret;
ysr@777 338
ysr@777 339 bool scan_only_ret = true;
ysr@777 340 if (_scan_only_length != 0) {
ysr@777 341 gclog_or_tty->print_cr("### SCAN-ONLY LIST should have 0 length, not %d",
ysr@777 342 _scan_only_length);
ysr@777 343 scan_only_ret = false;
ysr@777 344 }
ysr@777 345 if (_scan_only_head != NULL) {
ysr@777 346 gclog_or_tty->print_cr("### SCAN-ONLY LIST does not have a NULL head");
ysr@777 347 scan_only_ret = false;
ysr@777 348 }
ysr@777 349 if (_scan_only_tail != NULL) {
ysr@777 350 gclog_or_tty->print_cr("### SCAN-ONLY LIST does not have a NULL tail");
ysr@777 351 scan_only_ret = false;
ysr@777 352 }
ysr@777 353 if (!scan_only_ret) {
ysr@777 354 gclog_or_tty->print_cr("### SCAN-ONLY LIST does not seem empty");
ysr@777 355 }
ysr@777 356
ysr@777 357 return ret && scan_only_ret;
ysr@777 358 }
ysr@777 359
ysr@777 360 void
ysr@777 361 YoungList::rs_length_sampling_init() {
ysr@777 362 _sampled_rs_lengths = 0;
ysr@777 363 _curr = _head;
ysr@777 364 }
ysr@777 365
ysr@777 366 bool
ysr@777 367 YoungList::rs_length_sampling_more() {
ysr@777 368 return _curr != NULL;
ysr@777 369 }
ysr@777 370
ysr@777 371 void
ysr@777 372 YoungList::rs_length_sampling_next() {
ysr@777 373 assert( _curr != NULL, "invariant" );
ysr@777 374 _sampled_rs_lengths += _curr->rem_set()->occupied();
ysr@777 375 _curr = _curr->get_next_young_region();
ysr@777 376 if (_curr == NULL) {
ysr@777 377 _last_sampled_rs_lengths = _sampled_rs_lengths;
ysr@777 378 // gclog_or_tty->print_cr("last sampled RS lengths = %d", _last_sampled_rs_lengths);
ysr@777 379 }
ysr@777 380 }
ysr@777 381
ysr@777 382 void
ysr@777 383 YoungList::reset_auxilary_lists() {
ysr@777 384 // We could have just "moved" the scan-only list to the young list.
ysr@777 385 // However, the scan-only list is ordered according to the region
ysr@777 386 // age in descending order, so, by moving one entry at a time, we
ysr@777 387 // ensure that it is recreated in ascending order.
ysr@777 388
ysr@777 389 guarantee( is_empty(), "young list should be empty" );
ysr@777 390 assert(check_list_well_formed(), "young list should be well formed");
ysr@777 391
ysr@777 392 // Add survivor regions to SurvRateGroup.
ysr@777 393 _g1h->g1_policy()->note_start_adding_survivor_regions();
ysr@777 394 for (HeapRegion* curr = _survivor_head;
ysr@777 395 curr != NULL;
ysr@777 396 curr = curr->get_next_young_region()) {
ysr@777 397 _g1h->g1_policy()->set_region_survivors(curr);
ysr@777 398 }
ysr@777 399 _g1h->g1_policy()->note_stop_adding_survivor_regions();
ysr@777 400
ysr@777 401 if (_survivor_head != NULL) {
ysr@777 402 _head = _survivor_head;
ysr@777 403 _length = _survivor_length + _scan_only_length;
ysr@777 404 _survivors_tail->set_next_young_region(_scan_only_head);
ysr@777 405 } else {
ysr@777 406 _head = _scan_only_head;
ysr@777 407 _length = _scan_only_length;
ysr@777 408 }
ysr@777 409
ysr@777 410 for (HeapRegion* curr = _scan_only_head;
ysr@777 411 curr != NULL;
ysr@777 412 curr = curr->get_next_young_region()) {
ysr@777 413 curr->recalculate_age_in_surv_rate_group();
ysr@777 414 }
ysr@777 415 _scan_only_head = NULL;
ysr@777 416 _scan_only_tail = NULL;
ysr@777 417 _scan_only_length = 0;
ysr@777 418 _curr_scan_only = NULL;
ysr@777 419
ysr@777 420 _survivor_head = NULL;
ysr@777 421 _survivors_tail = NULL;
ysr@777 422 _survivor_length = 0;
ysr@777 423 _g1h->g1_policy()->finished_recalculating_age_indexes();
ysr@777 424
ysr@777 425 assert(check_list_well_formed(), "young list should be well formed");
ysr@777 426 }
ysr@777 427
ysr@777 428 void YoungList::print() {
ysr@777 429 HeapRegion* lists[] = {_head, _scan_only_head, _survivor_head};
ysr@777 430 const char* names[] = {"YOUNG", "SCAN-ONLY", "SURVIVOR"};
ysr@777 431
ysr@777 432 for (unsigned int list = 0; list < ARRAY_SIZE(lists); ++list) {
ysr@777 433 gclog_or_tty->print_cr("%s LIST CONTENTS", names[list]);
ysr@777 434 HeapRegion *curr = lists[list];
ysr@777 435 if (curr == NULL)
ysr@777 436 gclog_or_tty->print_cr(" empty");
ysr@777 437 while (curr != NULL) {
ysr@777 438 gclog_or_tty->print_cr(" [%08x-%08x], t: %08x, P: %08x, N: %08x, C: %08x, "
ysr@777 439 "age: %4d, y: %d, s-o: %d, surv: %d",
ysr@777 440 curr->bottom(), curr->end(),
ysr@777 441 curr->top(),
ysr@777 442 curr->prev_top_at_mark_start(),
ysr@777 443 curr->next_top_at_mark_start(),
ysr@777 444 curr->top_at_conc_mark_count(),
ysr@777 445 curr->age_in_surv_rate_group_cond(),
ysr@777 446 curr->is_young(),
ysr@777 447 curr->is_scan_only(),
ysr@777 448 curr->is_survivor());
ysr@777 449 curr = curr->get_next_young_region();
ysr@777 450 }
ysr@777 451 }
ysr@777 452
ysr@777 453 gclog_or_tty->print_cr("");
ysr@777 454 }
ysr@777 455
ysr@777 456 void G1CollectedHeap::stop_conc_gc_threads() {
ysr@777 457 _cg1r->cg1rThread()->stop();
ysr@777 458 _czft->stop();
ysr@777 459 _cmThread->stop();
ysr@777 460 }
ysr@777 461
ysr@777 462
ysr@777 463 void G1CollectedHeap::check_ct_logs_at_safepoint() {
ysr@777 464 DirtyCardQueueSet& dcqs = JavaThread::dirty_card_queue_set();
ysr@777 465 CardTableModRefBS* ct_bs = (CardTableModRefBS*)barrier_set();
ysr@777 466
ysr@777 467 // Count the dirty cards at the start.
ysr@777 468 CountNonCleanMemRegionClosure count1(this);
ysr@777 469 ct_bs->mod_card_iterate(&count1);
ysr@777 470 int orig_count = count1.n();
ysr@777 471
ysr@777 472 // First clear the logged cards.
ysr@777 473 ClearLoggedCardTableEntryClosure clear;
ysr@777 474 dcqs.set_closure(&clear);
ysr@777 475 dcqs.apply_closure_to_all_completed_buffers();
ysr@777 476 dcqs.iterate_closure_all_threads(false);
ysr@777 477 clear.print_histo();
ysr@777 478
ysr@777 479 // Now ensure that there's no dirty cards.
ysr@777 480 CountNonCleanMemRegionClosure count2(this);
ysr@777 481 ct_bs->mod_card_iterate(&count2);
ysr@777 482 if (count2.n() != 0) {
ysr@777 483 gclog_or_tty->print_cr("Card table has %d entries; %d originally",
ysr@777 484 count2.n(), orig_count);
ysr@777 485 }
ysr@777 486 guarantee(count2.n() == 0, "Card table should be clean.");
ysr@777 487
ysr@777 488 RedirtyLoggedCardTableEntryClosure redirty;
ysr@777 489 JavaThread::dirty_card_queue_set().set_closure(&redirty);
ysr@777 490 dcqs.apply_closure_to_all_completed_buffers();
ysr@777 491 dcqs.iterate_closure_all_threads(false);
ysr@777 492 gclog_or_tty->print_cr("Log entries = %d, dirty cards = %d.",
ysr@777 493 clear.calls(), orig_count);
ysr@777 494 guarantee(redirty.calls() == clear.calls(),
ysr@777 495 "Or else mechanism is broken.");
ysr@777 496
ysr@777 497 CountNonCleanMemRegionClosure count3(this);
ysr@777 498 ct_bs->mod_card_iterate(&count3);
ysr@777 499 if (count3.n() != orig_count) {
ysr@777 500 gclog_or_tty->print_cr("Should have restored them all: orig = %d, final = %d.",
ysr@777 501 orig_count, count3.n());
ysr@777 502 guarantee(count3.n() >= orig_count, "Should have restored them all.");
ysr@777 503 }
ysr@777 504
ysr@777 505 JavaThread::dirty_card_queue_set().set_closure(_refine_cte_cl);
ysr@777 506 }
ysr@777 507
ysr@777 508 // Private class members.
ysr@777 509
ysr@777 510 G1CollectedHeap* G1CollectedHeap::_g1h;
ysr@777 511
ysr@777 512 // Private methods.
ysr@777 513
ysr@777 514 // Finds a HeapRegion that can be used to allocate a given size of block.
ysr@777 515
ysr@777 516
ysr@777 517 HeapRegion* G1CollectedHeap::newAllocRegion_work(size_t word_size,
ysr@777 518 bool do_expand,
ysr@777 519 bool zero_filled) {
ysr@777 520 ConcurrentZFThread::note_region_alloc();
ysr@777 521 HeapRegion* res = alloc_free_region_from_lists(zero_filled);
ysr@777 522 if (res == NULL && do_expand) {
ysr@777 523 expand(word_size * HeapWordSize);
ysr@777 524 res = alloc_free_region_from_lists(zero_filled);
ysr@777 525 assert(res == NULL ||
ysr@777 526 (!res->isHumongous() &&
ysr@777 527 (!zero_filled ||
ysr@777 528 res->zero_fill_state() == HeapRegion::Allocated)),
ysr@777 529 "Alloc Regions must be zero filled (and non-H)");
ysr@777 530 }
ysr@777 531 if (res != NULL && res->is_empty()) _free_regions--;
ysr@777 532 assert(res == NULL ||
ysr@777 533 (!res->isHumongous() &&
ysr@777 534 (!zero_filled ||
ysr@777 535 res->zero_fill_state() == HeapRegion::Allocated)),
ysr@777 536 "Non-young alloc Regions must be zero filled (and non-H)");
ysr@777 537
ysr@777 538 if (G1TraceRegions) {
ysr@777 539 if (res != NULL) {
ysr@777 540 gclog_or_tty->print_cr("new alloc region %d:["PTR_FORMAT", "PTR_FORMAT"], "
ysr@777 541 "top "PTR_FORMAT,
ysr@777 542 res->hrs_index(), res->bottom(), res->end(), res->top());
ysr@777 543 }
ysr@777 544 }
ysr@777 545
ysr@777 546 return res;
ysr@777 547 }
ysr@777 548
ysr@777 549 HeapRegion* G1CollectedHeap::newAllocRegionWithExpansion(int purpose,
ysr@777 550 size_t word_size,
ysr@777 551 bool zero_filled) {
ysr@777 552 HeapRegion* alloc_region = NULL;
ysr@777 553 if (_gc_alloc_region_counts[purpose] < g1_policy()->max_regions(purpose)) {
ysr@777 554 alloc_region = newAllocRegion_work(word_size, true, zero_filled);
ysr@777 555 if (purpose == GCAllocForSurvived && alloc_region != NULL) {
ysr@777 556 _young_list->add_survivor_region(alloc_region);
ysr@777 557 }
ysr@777 558 ++_gc_alloc_region_counts[purpose];
ysr@777 559 } else {
ysr@777 560 g1_policy()->note_alloc_region_limit_reached(purpose);
ysr@777 561 }
ysr@777 562 return alloc_region;
ysr@777 563 }
ysr@777 564
ysr@777 565 // If could fit into free regions w/o expansion, try.
ysr@777 566 // Otherwise, if can expand, do so.
ysr@777 567 // Otherwise, if using ex regions might help, try with ex given back.
ysr@777 568 HeapWord* G1CollectedHeap::humongousObjAllocate(size_t word_size) {
ysr@777 569 assert(regions_accounted_for(), "Region leakage!");
ysr@777 570
ysr@777 571 // We can't allocate H regions while cleanupComplete is running, since
ysr@777 572 // some of the regions we find to be empty might not yet be added to the
ysr@777 573 // unclean list. (If we're already at a safepoint, this call is
ysr@777 574 // unnecessary, not to mention wrong.)
ysr@777 575 if (!SafepointSynchronize::is_at_safepoint())
ysr@777 576 wait_for_cleanup_complete();
ysr@777 577
ysr@777 578 size_t num_regions =
ysr@777 579 round_to(word_size, HeapRegion::GrainWords) / HeapRegion::GrainWords;
ysr@777 580
ysr@777 581 // Special case if < one region???
ysr@777 582
ysr@777 583 // Remember the ft size.
ysr@777 584 size_t x_size = expansion_regions();
ysr@777 585
ysr@777 586 HeapWord* res = NULL;
ysr@777 587 bool eliminated_allocated_from_lists = false;
ysr@777 588
ysr@777 589 // Can the allocation potentially fit in the free regions?
ysr@777 590 if (free_regions() >= num_regions) {
ysr@777 591 res = _hrs->obj_allocate(word_size);
ysr@777 592 }
ysr@777 593 if (res == NULL) {
ysr@777 594 // Try expansion.
ysr@777 595 size_t fs = _hrs->free_suffix();
ysr@777 596 if (fs + x_size >= num_regions) {
ysr@777 597 expand((num_regions - fs) * HeapRegion::GrainBytes);
ysr@777 598 res = _hrs->obj_allocate(word_size);
ysr@777 599 assert(res != NULL, "This should have worked.");
ysr@777 600 } else {
ysr@777 601 // Expansion won't help. Are there enough free regions if we get rid
ysr@777 602 // of reservations?
ysr@777 603 size_t avail = free_regions();
ysr@777 604 if (avail >= num_regions) {
ysr@777 605 res = _hrs->obj_allocate(word_size);
ysr@777 606 if (res != NULL) {
ysr@777 607 remove_allocated_regions_from_lists();
ysr@777 608 eliminated_allocated_from_lists = true;
ysr@777 609 }
ysr@777 610 }
ysr@777 611 }
ysr@777 612 }
ysr@777 613 if (res != NULL) {
ysr@777 614 // Increment by the number of regions allocated.
ysr@777 615 // FIXME: Assumes regions all of size GrainBytes.
ysr@777 616 #ifndef PRODUCT
ysr@777 617 mr_bs()->verify_clean_region(MemRegion(res, res + num_regions *
ysr@777 618 HeapRegion::GrainWords));
ysr@777 619 #endif
ysr@777 620 if (!eliminated_allocated_from_lists)
ysr@777 621 remove_allocated_regions_from_lists();
ysr@777 622 _summary_bytes_used += word_size * HeapWordSize;
ysr@777 623 _free_regions -= num_regions;
ysr@777 624 _num_humongous_regions += (int) num_regions;
ysr@777 625 }
ysr@777 626 assert(regions_accounted_for(), "Region Leakage");
ysr@777 627 return res;
ysr@777 628 }
ysr@777 629
ysr@777 630 HeapWord*
ysr@777 631 G1CollectedHeap::attempt_allocation_slow(size_t word_size,
ysr@777 632 bool permit_collection_pause) {
ysr@777 633 HeapWord* res = NULL;
ysr@777 634 HeapRegion* allocated_young_region = NULL;
ysr@777 635
ysr@777 636 assert( SafepointSynchronize::is_at_safepoint() ||
ysr@777 637 Heap_lock->owned_by_self(), "pre condition of the call" );
ysr@777 638
ysr@777 639 if (isHumongous(word_size)) {
ysr@777 640 // Allocation of a humongous object can, in a sense, complete a
ysr@777 641 // partial region, if the previous alloc was also humongous, and
ysr@777 642 // caused the test below to succeed.
ysr@777 643 if (permit_collection_pause)
ysr@777 644 do_collection_pause_if_appropriate(word_size);
ysr@777 645 res = humongousObjAllocate(word_size);
ysr@777 646 assert(_cur_alloc_region == NULL
ysr@777 647 || !_cur_alloc_region->isHumongous(),
ysr@777 648 "Prevent a regression of this bug.");
ysr@777 649
ysr@777 650 } else {
iveresov@789 651 // We may have concurrent cleanup working at the time. Wait for it
iveresov@789 652 // to complete. In the future we would probably want to make the
iveresov@789 653 // concurrent cleanup truly concurrent by decoupling it from the
iveresov@789 654 // allocation.
iveresov@789 655 if (!SafepointSynchronize::is_at_safepoint())
iveresov@789 656 wait_for_cleanup_complete();
ysr@777 657 // If we do a collection pause, this will be reset to a non-NULL
ysr@777 658 // value. If we don't, nulling here ensures that we allocate a new
ysr@777 659 // region below.
ysr@777 660 if (_cur_alloc_region != NULL) {
ysr@777 661 // We're finished with the _cur_alloc_region.
ysr@777 662 _summary_bytes_used += _cur_alloc_region->used();
ysr@777 663 _cur_alloc_region = NULL;
ysr@777 664 }
ysr@777 665 assert(_cur_alloc_region == NULL, "Invariant.");
ysr@777 666 // Completion of a heap region is perhaps a good point at which to do
ysr@777 667 // a collection pause.
ysr@777 668 if (permit_collection_pause)
ysr@777 669 do_collection_pause_if_appropriate(word_size);
ysr@777 670 // Make sure we have an allocation region available.
ysr@777 671 if (_cur_alloc_region == NULL) {
ysr@777 672 if (!SafepointSynchronize::is_at_safepoint())
ysr@777 673 wait_for_cleanup_complete();
ysr@777 674 bool next_is_young = should_set_young_locked();
ysr@777 675 // If the next region is not young, make sure it's zero-filled.
ysr@777 676 _cur_alloc_region = newAllocRegion(word_size, !next_is_young);
ysr@777 677 if (_cur_alloc_region != NULL) {
ysr@777 678 _summary_bytes_used -= _cur_alloc_region->used();
ysr@777 679 if (next_is_young) {
ysr@777 680 set_region_short_lived_locked(_cur_alloc_region);
ysr@777 681 allocated_young_region = _cur_alloc_region;
ysr@777 682 }
ysr@777 683 }
ysr@777 684 }
ysr@777 685 assert(_cur_alloc_region == NULL || !_cur_alloc_region->isHumongous(),
ysr@777 686 "Prevent a regression of this bug.");
ysr@777 687
ysr@777 688 // Now retry the allocation.
ysr@777 689 if (_cur_alloc_region != NULL) {
ysr@777 690 res = _cur_alloc_region->allocate(word_size);
ysr@777 691 }
ysr@777 692 }
ysr@777 693
ysr@777 694 // NOTE: fails frequently in PRT
ysr@777 695 assert(regions_accounted_for(), "Region leakage!");
ysr@777 696
ysr@777 697 if (res != NULL) {
ysr@777 698 if (!SafepointSynchronize::is_at_safepoint()) {
ysr@777 699 assert( permit_collection_pause, "invariant" );
ysr@777 700 assert( Heap_lock->owned_by_self(), "invariant" );
ysr@777 701 Heap_lock->unlock();
ysr@777 702 }
ysr@777 703
ysr@777 704 if (allocated_young_region != NULL) {
ysr@777 705 HeapRegion* hr = allocated_young_region;
ysr@777 706 HeapWord* bottom = hr->bottom();
ysr@777 707 HeapWord* end = hr->end();
ysr@777 708 MemRegion mr(bottom, end);
ysr@777 709 ((CardTableModRefBS*)_g1h->barrier_set())->dirty(mr);
ysr@777 710 }
ysr@777 711 }
ysr@777 712
ysr@777 713 assert( SafepointSynchronize::is_at_safepoint() ||
ysr@777 714 (res == NULL && Heap_lock->owned_by_self()) ||
ysr@777 715 (res != NULL && !Heap_lock->owned_by_self()),
ysr@777 716 "post condition of the call" );
ysr@777 717
ysr@777 718 return res;
ysr@777 719 }
ysr@777 720
ysr@777 721 HeapWord*
ysr@777 722 G1CollectedHeap::mem_allocate(size_t word_size,
ysr@777 723 bool is_noref,
ysr@777 724 bool is_tlab,
ysr@777 725 bool* gc_overhead_limit_was_exceeded) {
ysr@777 726 debug_only(check_for_valid_allocation_state());
ysr@777 727 assert(no_gc_in_progress(), "Allocation during gc not allowed");
ysr@777 728 HeapWord* result = NULL;
ysr@777 729
ysr@777 730 // Loop until the allocation is satisified,
ysr@777 731 // or unsatisfied after GC.
ysr@777 732 for (int try_count = 1; /* return or throw */; try_count += 1) {
ysr@777 733 int gc_count_before;
ysr@777 734 {
ysr@777 735 Heap_lock->lock();
ysr@777 736 result = attempt_allocation(word_size);
ysr@777 737 if (result != NULL) {
ysr@777 738 // attempt_allocation should have unlocked the heap lock
ysr@777 739 assert(is_in(result), "result not in heap");
ysr@777 740 return result;
ysr@777 741 }
ysr@777 742 // Read the gc count while the heap lock is held.
ysr@777 743 gc_count_before = SharedHeap::heap()->total_collections();
ysr@777 744 Heap_lock->unlock();
ysr@777 745 }
ysr@777 746
ysr@777 747 // Create the garbage collection operation...
ysr@777 748 VM_G1CollectForAllocation op(word_size,
ysr@777 749 gc_count_before);
ysr@777 750
ysr@777 751 // ...and get the VM thread to execute it.
ysr@777 752 VMThread::execute(&op);
ysr@777 753 if (op.prologue_succeeded()) {
ysr@777 754 result = op.result();
ysr@777 755 assert(result == NULL || is_in(result), "result not in heap");
ysr@777 756 return result;
ysr@777 757 }
ysr@777 758
ysr@777 759 // Give a warning if we seem to be looping forever.
ysr@777 760 if ((QueuedAllocationWarningCount > 0) &&
ysr@777 761 (try_count % QueuedAllocationWarningCount == 0)) {
ysr@777 762 warning("G1CollectedHeap::mem_allocate_work retries %d times",
ysr@777 763 try_count);
ysr@777 764 }
ysr@777 765 }
ysr@777 766 }
ysr@777 767
ysr@777 768 void G1CollectedHeap::abandon_cur_alloc_region() {
ysr@777 769 if (_cur_alloc_region != NULL) {
ysr@777 770 // We're finished with the _cur_alloc_region.
ysr@777 771 if (_cur_alloc_region->is_empty()) {
ysr@777 772 _free_regions++;
ysr@777 773 free_region(_cur_alloc_region);
ysr@777 774 } else {
ysr@777 775 _summary_bytes_used += _cur_alloc_region->used();
ysr@777 776 }
ysr@777 777 _cur_alloc_region = NULL;
ysr@777 778 }
ysr@777 779 }
ysr@777 780
ysr@777 781 class PostMCRemSetClearClosure: public HeapRegionClosure {
ysr@777 782 ModRefBarrierSet* _mr_bs;
ysr@777 783 public:
ysr@777 784 PostMCRemSetClearClosure(ModRefBarrierSet* mr_bs) : _mr_bs(mr_bs) {}
ysr@777 785 bool doHeapRegion(HeapRegion* r) {
ysr@777 786 r->reset_gc_time_stamp();
ysr@777 787 if (r->continuesHumongous())
ysr@777 788 return false;
ysr@777 789 HeapRegionRemSet* hrrs = r->rem_set();
ysr@777 790 if (hrrs != NULL) hrrs->clear();
ysr@777 791 // You might think here that we could clear just the cards
ysr@777 792 // corresponding to the used region. But no: if we leave a dirty card
ysr@777 793 // in a region we might allocate into, then it would prevent that card
ysr@777 794 // from being enqueued, and cause it to be missed.
ysr@777 795 // Re: the performance cost: we shouldn't be doing full GC anyway!
ysr@777 796 _mr_bs->clear(MemRegion(r->bottom(), r->end()));
ysr@777 797 return false;
ysr@777 798 }
ysr@777 799 };
ysr@777 800
ysr@777 801
ysr@777 802 class PostMCRemSetInvalidateClosure: public HeapRegionClosure {
ysr@777 803 ModRefBarrierSet* _mr_bs;
ysr@777 804 public:
ysr@777 805 PostMCRemSetInvalidateClosure(ModRefBarrierSet* mr_bs) : _mr_bs(mr_bs) {}
ysr@777 806 bool doHeapRegion(HeapRegion* r) {
ysr@777 807 if (r->continuesHumongous()) return false;
ysr@777 808 if (r->used_region().word_size() != 0) {
ysr@777 809 _mr_bs->invalidate(r->used_region(), true /*whole heap*/);
ysr@777 810 }
ysr@777 811 return false;
ysr@777 812 }
ysr@777 813 };
ysr@777 814
ysr@777 815 void G1CollectedHeap::do_collection(bool full, bool clear_all_soft_refs,
ysr@777 816 size_t word_size) {
ysr@777 817 ResourceMark rm;
ysr@777 818
ysr@777 819 if (full && DisableExplicitGC) {
ysr@777 820 gclog_or_tty->print("\n\n\nDisabling Explicit GC\n\n\n");
ysr@777 821 return;
ysr@777 822 }
ysr@777 823
ysr@777 824 assert(SafepointSynchronize::is_at_safepoint(), "should be at safepoint");
ysr@777 825 assert(Thread::current() == VMThread::vm_thread(), "should be in vm thread");
ysr@777 826
ysr@777 827 if (GC_locker::is_active()) {
ysr@777 828 return; // GC is disabled (e.g. JNI GetXXXCritical operation)
ysr@777 829 }
ysr@777 830
ysr@777 831 {
ysr@777 832 IsGCActiveMark x;
ysr@777 833
ysr@777 834 // Timing
ysr@777 835 gclog_or_tty->date_stamp(PrintGC && PrintGCDateStamps);
ysr@777 836 TraceCPUTime tcpu(PrintGCDetails, true, gclog_or_tty);
ysr@777 837 TraceTime t(full ? "Full GC (System.gc())" : "Full GC", PrintGC, true, gclog_or_tty);
ysr@777 838
ysr@777 839 double start = os::elapsedTime();
ysr@777 840 GCOverheadReporter::recordSTWStart(start);
ysr@777 841 g1_policy()->record_full_collection_start();
ysr@777 842
ysr@777 843 gc_prologue(true);
ysr@777 844 increment_total_collections();
ysr@777 845
ysr@777 846 size_t g1h_prev_used = used();
ysr@777 847 assert(used() == recalculate_used(), "Should be equal");
ysr@777 848
ysr@777 849 if (VerifyBeforeGC && total_collections() >= VerifyGCStartAt) {
ysr@777 850 HandleMark hm; // Discard invalid handles created during verification
ysr@777 851 prepare_for_verify();
ysr@777 852 gclog_or_tty->print(" VerifyBeforeGC:");
ysr@777 853 Universe::verify(true);
ysr@777 854 }
ysr@777 855 assert(regions_accounted_for(), "Region leakage!");
ysr@777 856
ysr@777 857 COMPILER2_PRESENT(DerivedPointerTable::clear());
ysr@777 858
ysr@777 859 // We want to discover references, but not process them yet.
ysr@777 860 // This mode is disabled in
ysr@777 861 // instanceRefKlass::process_discovered_references if the
ysr@777 862 // generation does some collection work, or
ysr@777 863 // instanceRefKlass::enqueue_discovered_references if the
ysr@777 864 // generation returns without doing any work.
ysr@777 865 ref_processor()->disable_discovery();
ysr@777 866 ref_processor()->abandon_partial_discovery();
ysr@777 867 ref_processor()->verify_no_references_recorded();
ysr@777 868
ysr@777 869 // Abandon current iterations of concurrent marking and concurrent
ysr@777 870 // refinement, if any are in progress.
ysr@777 871 concurrent_mark()->abort();
ysr@777 872
ysr@777 873 // Make sure we'll choose a new allocation region afterwards.
ysr@777 874 abandon_cur_alloc_region();
ysr@777 875 assert(_cur_alloc_region == NULL, "Invariant.");
ysr@777 876 g1_rem_set()->as_HRInto_G1RemSet()->cleanupHRRS();
ysr@777 877 tear_down_region_lists();
ysr@777 878 set_used_regions_to_need_zero_fill();
ysr@777 879 if (g1_policy()->in_young_gc_mode()) {
ysr@777 880 empty_young_list();
ysr@777 881 g1_policy()->set_full_young_gcs(true);
ysr@777 882 }
ysr@777 883
ysr@777 884 // Temporarily make reference _discovery_ single threaded (non-MT).
ysr@777 885 ReferenceProcessorMTMutator rp_disc_ser(ref_processor(), false);
ysr@777 886
ysr@777 887 // Temporarily make refs discovery atomic
ysr@777 888 ReferenceProcessorAtomicMutator rp_disc_atomic(ref_processor(), true);
ysr@777 889
ysr@777 890 // Temporarily clear _is_alive_non_header
ysr@777 891 ReferenceProcessorIsAliveMutator rp_is_alive_null(ref_processor(), NULL);
ysr@777 892
ysr@777 893 ref_processor()->enable_discovery();
ysr@892 894 ref_processor()->setup_policy(clear_all_soft_refs);
ysr@777 895
ysr@777 896 // Do collection work
ysr@777 897 {
ysr@777 898 HandleMark hm; // Discard invalid handles created during gc
ysr@777 899 G1MarkSweep::invoke_at_safepoint(ref_processor(), clear_all_soft_refs);
ysr@777 900 }
ysr@777 901 // Because freeing humongous regions may have added some unclean
ysr@777 902 // regions, it is necessary to tear down again before rebuilding.
ysr@777 903 tear_down_region_lists();
ysr@777 904 rebuild_region_lists();
ysr@777 905
ysr@777 906 _summary_bytes_used = recalculate_used();
ysr@777 907
ysr@777 908 ref_processor()->enqueue_discovered_references();
ysr@777 909
ysr@777 910 COMPILER2_PRESENT(DerivedPointerTable::update_pointers());
ysr@777 911
ysr@777 912 if (VerifyAfterGC && total_collections() >= VerifyGCStartAt) {
ysr@777 913 HandleMark hm; // Discard invalid handles created during verification
ysr@777 914 gclog_or_tty->print(" VerifyAfterGC:");
ysr@777 915 Universe::verify(false);
ysr@777 916 }
ysr@777 917 NOT_PRODUCT(ref_processor()->verify_no_references_recorded());
ysr@777 918
ysr@777 919 reset_gc_time_stamp();
ysr@777 920 // Since everything potentially moved, we will clear all remembered
ysr@777 921 // sets, and clear all cards. Later we will also cards in the used
ysr@777 922 // portion of the heap after the resizing (which could be a shrinking.)
ysr@777 923 // We will also reset the GC time stamps of the regions.
ysr@777 924 PostMCRemSetClearClosure rs_clear(mr_bs());
ysr@777 925 heap_region_iterate(&rs_clear);
ysr@777 926
ysr@777 927 // Resize the heap if necessary.
ysr@777 928 resize_if_necessary_after_full_collection(full ? 0 : word_size);
ysr@777 929
ysr@777 930 // Since everything potentially moved, we will clear all remembered
ysr@777 931 // sets, but also dirty all cards corresponding to used regions.
ysr@777 932 PostMCRemSetInvalidateClosure rs_invalidate(mr_bs());
ysr@777 933 heap_region_iterate(&rs_invalidate);
ysr@777 934 if (_cg1r->use_cache()) {
ysr@777 935 _cg1r->clear_and_record_card_counts();
ysr@777 936 _cg1r->clear_hot_cache();
ysr@777 937 }
ysr@777 938
ysr@777 939 if (PrintGC) {
ysr@777 940 print_size_transition(gclog_or_tty, g1h_prev_used, used(), capacity());
ysr@777 941 }
ysr@777 942
ysr@777 943 if (true) { // FIXME
ysr@777 944 // Ask the permanent generation to adjust size for full collections
ysr@777 945 perm()->compute_new_size();
ysr@777 946 }
ysr@777 947
ysr@777 948 double end = os::elapsedTime();
ysr@777 949 GCOverheadReporter::recordSTWEnd(end);
ysr@777 950 g1_policy()->record_full_collection_end();
ysr@777 951
ysr@777 952 gc_epilogue(true);
ysr@777 953
ysr@777 954 // Abandon concurrent refinement. This must happen last: in the
ysr@777 955 // dirty-card logging system, some cards may be dirty by weak-ref
ysr@777 956 // processing, and may be enqueued. But the whole card table is
ysr@777 957 // dirtied, so this should abandon those logs, and set "do_traversal"
ysr@777 958 // to true.
ysr@777 959 concurrent_g1_refine()->set_pya_restart();
ysr@777 960
ysr@777 961 assert(regions_accounted_for(), "Region leakage!");
ysr@777 962 }
ysr@777 963
ysr@777 964 if (g1_policy()->in_young_gc_mode()) {
ysr@777 965 _young_list->reset_sampled_info();
ysr@777 966 assert( check_young_list_empty(false, false),
ysr@777 967 "young list should be empty at this point");
ysr@777 968 }
ysr@777 969 }
ysr@777 970
ysr@777 971 void G1CollectedHeap::do_full_collection(bool clear_all_soft_refs) {
ysr@777 972 do_collection(true, clear_all_soft_refs, 0);
ysr@777 973 }
ysr@777 974
ysr@777 975 // This code is mostly copied from TenuredGeneration.
ysr@777 976 void
ysr@777 977 G1CollectedHeap::
ysr@777 978 resize_if_necessary_after_full_collection(size_t word_size) {
ysr@777 979 assert(MinHeapFreeRatio <= MaxHeapFreeRatio, "sanity check");
ysr@777 980
ysr@777 981 // Include the current allocation, if any, and bytes that will be
ysr@777 982 // pre-allocated to support collections, as "used".
ysr@777 983 const size_t used_after_gc = used();
ysr@777 984 const size_t capacity_after_gc = capacity();
ysr@777 985 const size_t free_after_gc = capacity_after_gc - used_after_gc;
ysr@777 986
ysr@777 987 // We don't have floating point command-line arguments
ysr@777 988 const double minimum_free_percentage = (double) MinHeapFreeRatio / 100;
ysr@777 989 const double maximum_used_percentage = 1.0 - minimum_free_percentage;
ysr@777 990 const double maximum_free_percentage = (double) MaxHeapFreeRatio / 100;
ysr@777 991 const double minimum_used_percentage = 1.0 - maximum_free_percentage;
ysr@777 992
ysr@777 993 size_t minimum_desired_capacity = (size_t) (used_after_gc / maximum_used_percentage);
ysr@777 994 size_t maximum_desired_capacity = (size_t) (used_after_gc / minimum_used_percentage);
ysr@777 995
ysr@777 996 // Don't shrink less than the initial size.
ysr@777 997 minimum_desired_capacity =
ysr@777 998 MAX2(minimum_desired_capacity,
ysr@777 999 collector_policy()->initial_heap_byte_size());
ysr@777 1000 maximum_desired_capacity =
ysr@777 1001 MAX2(maximum_desired_capacity,
ysr@777 1002 collector_policy()->initial_heap_byte_size());
ysr@777 1003
ysr@777 1004 // We are failing here because minimum_desired_capacity is
ysr@777 1005 assert(used_after_gc <= minimum_desired_capacity, "sanity check");
ysr@777 1006 assert(minimum_desired_capacity <= maximum_desired_capacity, "sanity check");
ysr@777 1007
ysr@777 1008 if (PrintGC && Verbose) {
ysr@777 1009 const double free_percentage = ((double)free_after_gc) / capacity();
ysr@777 1010 gclog_or_tty->print_cr("Computing new size after full GC ");
ysr@777 1011 gclog_or_tty->print_cr(" "
ysr@777 1012 " minimum_free_percentage: %6.2f",
ysr@777 1013 minimum_free_percentage);
ysr@777 1014 gclog_or_tty->print_cr(" "
ysr@777 1015 " maximum_free_percentage: %6.2f",
ysr@777 1016 maximum_free_percentage);
ysr@777 1017 gclog_or_tty->print_cr(" "
ysr@777 1018 " capacity: %6.1fK"
ysr@777 1019 " minimum_desired_capacity: %6.1fK"
ysr@777 1020 " maximum_desired_capacity: %6.1fK",
ysr@777 1021 capacity() / (double) K,
ysr@777 1022 minimum_desired_capacity / (double) K,
ysr@777 1023 maximum_desired_capacity / (double) K);
ysr@777 1024 gclog_or_tty->print_cr(" "
ysr@777 1025 " free_after_gc : %6.1fK"
ysr@777 1026 " used_after_gc : %6.1fK",
ysr@777 1027 free_after_gc / (double) K,
ysr@777 1028 used_after_gc / (double) K);
ysr@777 1029 gclog_or_tty->print_cr(" "
ysr@777 1030 " free_percentage: %6.2f",
ysr@777 1031 free_percentage);
ysr@777 1032 }
ysr@777 1033 if (capacity() < minimum_desired_capacity) {
ysr@777 1034 // Don't expand unless it's significant
ysr@777 1035 size_t expand_bytes = minimum_desired_capacity - capacity_after_gc;
ysr@777 1036 expand(expand_bytes);
ysr@777 1037 if (PrintGC && Verbose) {
ysr@777 1038 gclog_or_tty->print_cr(" expanding:"
ysr@777 1039 " minimum_desired_capacity: %6.1fK"
ysr@777 1040 " expand_bytes: %6.1fK",
ysr@777 1041 minimum_desired_capacity / (double) K,
ysr@777 1042 expand_bytes / (double) K);
ysr@777 1043 }
ysr@777 1044
ysr@777 1045 // No expansion, now see if we want to shrink
ysr@777 1046 } else if (capacity() > maximum_desired_capacity) {
ysr@777 1047 // Capacity too large, compute shrinking size
ysr@777 1048 size_t shrink_bytes = capacity_after_gc - maximum_desired_capacity;
ysr@777 1049 shrink(shrink_bytes);
ysr@777 1050 if (PrintGC && Verbose) {
ysr@777 1051 gclog_or_tty->print_cr(" "
ysr@777 1052 " shrinking:"
ysr@777 1053 " initSize: %.1fK"
ysr@777 1054 " maximum_desired_capacity: %.1fK",
ysr@777 1055 collector_policy()->initial_heap_byte_size() / (double) K,
ysr@777 1056 maximum_desired_capacity / (double) K);
ysr@777 1057 gclog_or_tty->print_cr(" "
ysr@777 1058 " shrink_bytes: %.1fK",
ysr@777 1059 shrink_bytes / (double) K);
ysr@777 1060 }
ysr@777 1061 }
ysr@777 1062 }
ysr@777 1063
ysr@777 1064
ysr@777 1065 HeapWord*
ysr@777 1066 G1CollectedHeap::satisfy_failed_allocation(size_t word_size) {
ysr@777 1067 HeapWord* result = NULL;
ysr@777 1068
ysr@777 1069 // In a G1 heap, we're supposed to keep allocation from failing by
ysr@777 1070 // incremental pauses. Therefore, at least for now, we'll favor
ysr@777 1071 // expansion over collection. (This might change in the future if we can
ysr@777 1072 // do something smarter than full collection to satisfy a failed alloc.)
ysr@777 1073
ysr@777 1074 result = expand_and_allocate(word_size);
ysr@777 1075 if (result != NULL) {
ysr@777 1076 assert(is_in(result), "result not in heap");
ysr@777 1077 return result;
ysr@777 1078 }
ysr@777 1079
ysr@777 1080 // OK, I guess we have to try collection.
ysr@777 1081
ysr@777 1082 do_collection(false, false, word_size);
ysr@777 1083
ysr@777 1084 result = attempt_allocation(word_size, /*permit_collection_pause*/false);
ysr@777 1085
ysr@777 1086 if (result != NULL) {
ysr@777 1087 assert(is_in(result), "result not in heap");
ysr@777 1088 return result;
ysr@777 1089 }
ysr@777 1090
ysr@777 1091 // Try collecting soft references.
ysr@777 1092 do_collection(false, true, word_size);
ysr@777 1093 result = attempt_allocation(word_size, /*permit_collection_pause*/false);
ysr@777 1094 if (result != NULL) {
ysr@777 1095 assert(is_in(result), "result not in heap");
ysr@777 1096 return result;
ysr@777 1097 }
ysr@777 1098
ysr@777 1099 // What else? We might try synchronous finalization later. If the total
ysr@777 1100 // space available is large enough for the allocation, then a more
ysr@777 1101 // complete compaction phase than we've tried so far might be
ysr@777 1102 // appropriate.
ysr@777 1103 return NULL;
ysr@777 1104 }
ysr@777 1105
ysr@777 1106 // Attempting to expand the heap sufficiently
ysr@777 1107 // to support an allocation of the given "word_size". If
ysr@777 1108 // successful, perform the allocation and return the address of the
ysr@777 1109 // allocated block, or else "NULL".
ysr@777 1110
ysr@777 1111 HeapWord* G1CollectedHeap::expand_and_allocate(size_t word_size) {
ysr@777 1112 size_t expand_bytes = word_size * HeapWordSize;
ysr@777 1113 if (expand_bytes < MinHeapDeltaBytes) {
ysr@777 1114 expand_bytes = MinHeapDeltaBytes;
ysr@777 1115 }
ysr@777 1116 expand(expand_bytes);
ysr@777 1117 assert(regions_accounted_for(), "Region leakage!");
ysr@777 1118 HeapWord* result = attempt_allocation(word_size, false /* permit_collection_pause */);
ysr@777 1119 return result;
ysr@777 1120 }
ysr@777 1121
ysr@777 1122 size_t G1CollectedHeap::free_region_if_totally_empty(HeapRegion* hr) {
ysr@777 1123 size_t pre_used = 0;
ysr@777 1124 size_t cleared_h_regions = 0;
ysr@777 1125 size_t freed_regions = 0;
ysr@777 1126 UncleanRegionList local_list;
ysr@777 1127 free_region_if_totally_empty_work(hr, pre_used, cleared_h_regions,
ysr@777 1128 freed_regions, &local_list);
ysr@777 1129
ysr@777 1130 finish_free_region_work(pre_used, cleared_h_regions, freed_regions,
ysr@777 1131 &local_list);
ysr@777 1132 return pre_used;
ysr@777 1133 }
ysr@777 1134
ysr@777 1135 void
ysr@777 1136 G1CollectedHeap::free_region_if_totally_empty_work(HeapRegion* hr,
ysr@777 1137 size_t& pre_used,
ysr@777 1138 size_t& cleared_h,
ysr@777 1139 size_t& freed_regions,
ysr@777 1140 UncleanRegionList* list,
ysr@777 1141 bool par) {
ysr@777 1142 assert(!hr->continuesHumongous(), "should have filtered these out");
ysr@777 1143 size_t res = 0;
ysr@777 1144 if (!hr->popular() && hr->used() > 0 && hr->garbage_bytes() == hr->used()) {
ysr@777 1145 if (!hr->is_young()) {
ysr@777 1146 if (G1PolicyVerbose > 0)
ysr@777 1147 gclog_or_tty->print_cr("Freeing empty region "PTR_FORMAT "(" SIZE_FORMAT " bytes)"
ysr@777 1148 " during cleanup", hr, hr->used());
ysr@777 1149 free_region_work(hr, pre_used, cleared_h, freed_regions, list, par);
ysr@777 1150 }
ysr@777 1151 }
ysr@777 1152 }
ysr@777 1153
ysr@777 1154 // FIXME: both this and shrink could probably be more efficient by
ysr@777 1155 // doing one "VirtualSpace::expand_by" call rather than several.
ysr@777 1156 void G1CollectedHeap::expand(size_t expand_bytes) {
ysr@777 1157 size_t old_mem_size = _g1_storage.committed_size();
ysr@777 1158 // We expand by a minimum of 1K.
ysr@777 1159 expand_bytes = MAX2(expand_bytes, (size_t)K);
ysr@777 1160 size_t aligned_expand_bytes =
ysr@777 1161 ReservedSpace::page_align_size_up(expand_bytes);
ysr@777 1162 aligned_expand_bytes = align_size_up(aligned_expand_bytes,
ysr@777 1163 HeapRegion::GrainBytes);
ysr@777 1164 expand_bytes = aligned_expand_bytes;
ysr@777 1165 while (expand_bytes > 0) {
ysr@777 1166 HeapWord* base = (HeapWord*)_g1_storage.high();
ysr@777 1167 // Commit more storage.
ysr@777 1168 bool successful = _g1_storage.expand_by(HeapRegion::GrainBytes);
ysr@777 1169 if (!successful) {
ysr@777 1170 expand_bytes = 0;
ysr@777 1171 } else {
ysr@777 1172 expand_bytes -= HeapRegion::GrainBytes;
ysr@777 1173 // Expand the committed region.
ysr@777 1174 HeapWord* high = (HeapWord*) _g1_storage.high();
ysr@777 1175 _g1_committed.set_end(high);
ysr@777 1176 // Create a new HeapRegion.
ysr@777 1177 MemRegion mr(base, high);
ysr@777 1178 bool is_zeroed = !_g1_max_committed.contains(base);
ysr@777 1179 HeapRegion* hr = new HeapRegion(_bot_shared, mr, is_zeroed);
ysr@777 1180
ysr@777 1181 // Now update max_committed if necessary.
ysr@777 1182 _g1_max_committed.set_end(MAX2(_g1_max_committed.end(), high));
ysr@777 1183
ysr@777 1184 // Add it to the HeapRegionSeq.
ysr@777 1185 _hrs->insert(hr);
ysr@777 1186 // Set the zero-fill state, according to whether it's already
ysr@777 1187 // zeroed.
ysr@777 1188 {
ysr@777 1189 MutexLockerEx x(ZF_mon, Mutex::_no_safepoint_check_flag);
ysr@777 1190 if (is_zeroed) {
ysr@777 1191 hr->set_zero_fill_complete();
ysr@777 1192 put_free_region_on_list_locked(hr);
ysr@777 1193 } else {
ysr@777 1194 hr->set_zero_fill_needed();
ysr@777 1195 put_region_on_unclean_list_locked(hr);
ysr@777 1196 }
ysr@777 1197 }
ysr@777 1198 _free_regions++;
ysr@777 1199 // And we used up an expansion region to create it.
ysr@777 1200 _expansion_regions--;
ysr@777 1201 // Tell the cardtable about it.
ysr@777 1202 Universe::heap()->barrier_set()->resize_covered_region(_g1_committed);
ysr@777 1203 // And the offset table as well.
ysr@777 1204 _bot_shared->resize(_g1_committed.word_size());
ysr@777 1205 }
ysr@777 1206 }
ysr@777 1207 if (Verbose && PrintGC) {
ysr@777 1208 size_t new_mem_size = _g1_storage.committed_size();
ysr@777 1209 gclog_or_tty->print_cr("Expanding garbage-first heap from %ldK by %ldK to %ldK",
ysr@777 1210 old_mem_size/K, aligned_expand_bytes/K,
ysr@777 1211 new_mem_size/K);
ysr@777 1212 }
ysr@777 1213 }
ysr@777 1214
ysr@777 1215 void G1CollectedHeap::shrink_helper(size_t shrink_bytes)
ysr@777 1216 {
ysr@777 1217 size_t old_mem_size = _g1_storage.committed_size();
ysr@777 1218 size_t aligned_shrink_bytes =
ysr@777 1219 ReservedSpace::page_align_size_down(shrink_bytes);
ysr@777 1220 aligned_shrink_bytes = align_size_down(aligned_shrink_bytes,
ysr@777 1221 HeapRegion::GrainBytes);
ysr@777 1222 size_t num_regions_deleted = 0;
ysr@777 1223 MemRegion mr = _hrs->shrink_by(aligned_shrink_bytes, num_regions_deleted);
ysr@777 1224
ysr@777 1225 assert(mr.end() == (HeapWord*)_g1_storage.high(), "Bad shrink!");
ysr@777 1226 if (mr.byte_size() > 0)
ysr@777 1227 _g1_storage.shrink_by(mr.byte_size());
ysr@777 1228 assert(mr.start() == (HeapWord*)_g1_storage.high(), "Bad shrink!");
ysr@777 1229
ysr@777 1230 _g1_committed.set_end(mr.start());
ysr@777 1231 _free_regions -= num_regions_deleted;
ysr@777 1232 _expansion_regions += num_regions_deleted;
ysr@777 1233
ysr@777 1234 // Tell the cardtable about it.
ysr@777 1235 Universe::heap()->barrier_set()->resize_covered_region(_g1_committed);
ysr@777 1236
ysr@777 1237 // And the offset table as well.
ysr@777 1238 _bot_shared->resize(_g1_committed.word_size());
ysr@777 1239
ysr@777 1240 HeapRegionRemSet::shrink_heap(n_regions());
ysr@777 1241
ysr@777 1242 if (Verbose && PrintGC) {
ysr@777 1243 size_t new_mem_size = _g1_storage.committed_size();
ysr@777 1244 gclog_or_tty->print_cr("Shrinking garbage-first heap from %ldK by %ldK to %ldK",
ysr@777 1245 old_mem_size/K, aligned_shrink_bytes/K,
ysr@777 1246 new_mem_size/K);
ysr@777 1247 }
ysr@777 1248 }
ysr@777 1249
ysr@777 1250 void G1CollectedHeap::shrink(size_t shrink_bytes) {
ysr@777 1251 release_gc_alloc_regions();
ysr@777 1252 tear_down_region_lists(); // We will rebuild them in a moment.
ysr@777 1253 shrink_helper(shrink_bytes);
ysr@777 1254 rebuild_region_lists();
ysr@777 1255 }
ysr@777 1256
ysr@777 1257 // Public methods.
ysr@777 1258
ysr@777 1259 #ifdef _MSC_VER // the use of 'this' below gets a warning, make it go away
ysr@777 1260 #pragma warning( disable:4355 ) // 'this' : used in base member initializer list
ysr@777 1261 #endif // _MSC_VER
ysr@777 1262
ysr@777 1263
ysr@777 1264 G1CollectedHeap::G1CollectedHeap(G1CollectorPolicy* policy_) :
ysr@777 1265 SharedHeap(policy_),
ysr@777 1266 _g1_policy(policy_),
ysr@777 1267 _ref_processor(NULL),
ysr@777 1268 _process_strong_tasks(new SubTasksDone(G1H_PS_NumElements)),
ysr@777 1269 _bot_shared(NULL),
ysr@777 1270 _par_alloc_during_gc_lock(Mutex::leaf, "par alloc during GC lock"),
ysr@777 1271 _objs_with_preserved_marks(NULL), _preserved_marks_of_objs(NULL),
ysr@777 1272 _evac_failure_scan_stack(NULL) ,
ysr@777 1273 _mark_in_progress(false),
ysr@777 1274 _cg1r(NULL), _czft(NULL), _summary_bytes_used(0),
ysr@777 1275 _cur_alloc_region(NULL),
ysr@777 1276 _refine_cte_cl(NULL),
ysr@777 1277 _free_region_list(NULL), _free_region_list_size(0),
ysr@777 1278 _free_regions(0),
ysr@777 1279 _popular_object_boundary(NULL),
ysr@777 1280 _cur_pop_hr_index(0),
ysr@777 1281 _popular_regions_to_be_evacuated(NULL),
ysr@777 1282 _pop_obj_rc_at_copy(),
ysr@777 1283 _full_collection(false),
ysr@777 1284 _unclean_region_list(),
ysr@777 1285 _unclean_regions_coming(false),
ysr@777 1286 _young_list(new YoungList(this)),
ysr@777 1287 _gc_time_stamp(0),
ysr@777 1288 _surviving_young_words(NULL)
ysr@777 1289 {
ysr@777 1290 _g1h = this; // To catch bugs.
ysr@777 1291 if (_process_strong_tasks == NULL || !_process_strong_tasks->valid()) {
ysr@777 1292 vm_exit_during_initialization("Failed necessary allocation.");
ysr@777 1293 }
ysr@777 1294 int n_queues = MAX2((int)ParallelGCThreads, 1);
ysr@777 1295 _task_queues = new RefToScanQueueSet(n_queues);
ysr@777 1296
ysr@777 1297 int n_rem_sets = HeapRegionRemSet::num_par_rem_sets();
ysr@777 1298 assert(n_rem_sets > 0, "Invariant.");
ysr@777 1299
ysr@777 1300 HeapRegionRemSetIterator** iter_arr =
ysr@777 1301 NEW_C_HEAP_ARRAY(HeapRegionRemSetIterator*, n_queues);
ysr@777 1302 for (int i = 0; i < n_queues; i++) {
ysr@777 1303 iter_arr[i] = new HeapRegionRemSetIterator();
ysr@777 1304 }
ysr@777 1305 _rem_set_iterator = iter_arr;
ysr@777 1306
ysr@777 1307 for (int i = 0; i < n_queues; i++) {
ysr@777 1308 RefToScanQueue* q = new RefToScanQueue();
ysr@777 1309 q->initialize();
ysr@777 1310 _task_queues->register_queue(i, q);
ysr@777 1311 }
ysr@777 1312
ysr@777 1313 for (int ap = 0; ap < GCAllocPurposeCount; ++ap) {
ysr@777 1314 _gc_alloc_regions[ap] = NULL;
ysr@777 1315 _gc_alloc_region_counts[ap] = 0;
ysr@777 1316 }
ysr@777 1317 guarantee(_task_queues != NULL, "task_queues allocation failure.");
ysr@777 1318 }
ysr@777 1319
ysr@777 1320 jint G1CollectedHeap::initialize() {
ysr@777 1321 os::enable_vtime();
ysr@777 1322
ysr@777 1323 // Necessary to satisfy locking discipline assertions.
ysr@777 1324
ysr@777 1325 MutexLocker x(Heap_lock);
ysr@777 1326
ysr@777 1327 // While there are no constraints in the GC code that HeapWordSize
ysr@777 1328 // be any particular value, there are multiple other areas in the
ysr@777 1329 // system which believe this to be true (e.g. oop->object_size in some
ysr@777 1330 // cases incorrectly returns the size in wordSize units rather than
ysr@777 1331 // HeapWordSize).
ysr@777 1332 guarantee(HeapWordSize == wordSize, "HeapWordSize must equal wordSize");
ysr@777 1333
ysr@777 1334 size_t init_byte_size = collector_policy()->initial_heap_byte_size();
ysr@777 1335 size_t max_byte_size = collector_policy()->max_heap_byte_size();
ysr@777 1336
ysr@777 1337 // Ensure that the sizes are properly aligned.
ysr@777 1338 Universe::check_alignment(init_byte_size, HeapRegion::GrainBytes, "g1 heap");
ysr@777 1339 Universe::check_alignment(max_byte_size, HeapRegion::GrainBytes, "g1 heap");
ysr@777 1340
ysr@777 1341 // We allocate this in any case, but only do no work if the command line
ysr@777 1342 // param is off.
ysr@777 1343 _cg1r = new ConcurrentG1Refine();
ysr@777 1344
ysr@777 1345 // Reserve the maximum.
ysr@777 1346 PermanentGenerationSpec* pgs = collector_policy()->permanent_generation();
ysr@777 1347 // Includes the perm-gen.
ysr@777 1348 ReservedSpace heap_rs(max_byte_size + pgs->max_size(),
ysr@777 1349 HeapRegion::GrainBytes,
ysr@777 1350 false /*ism*/);
ysr@777 1351
ysr@777 1352 if (!heap_rs.is_reserved()) {
ysr@777 1353 vm_exit_during_initialization("Could not reserve enough space for object heap");
ysr@777 1354 return JNI_ENOMEM;
ysr@777 1355 }
ysr@777 1356
ysr@777 1357 // It is important to do this in a way such that concurrent readers can't
ysr@777 1358 // temporarily think somethings in the heap. (I've actually seen this
ysr@777 1359 // happen in asserts: DLD.)
ysr@777 1360 _reserved.set_word_size(0);
ysr@777 1361 _reserved.set_start((HeapWord*)heap_rs.base());
ysr@777 1362 _reserved.set_end((HeapWord*)(heap_rs.base() + heap_rs.size()));
ysr@777 1363
ysr@777 1364 _expansion_regions = max_byte_size/HeapRegion::GrainBytes;
ysr@777 1365
ysr@777 1366 _num_humongous_regions = 0;
ysr@777 1367
ysr@777 1368 // Create the gen rem set (and barrier set) for the entire reserved region.
ysr@777 1369 _rem_set = collector_policy()->create_rem_set(_reserved, 2);
ysr@777 1370 set_barrier_set(rem_set()->bs());
ysr@777 1371 if (barrier_set()->is_a(BarrierSet::ModRef)) {
ysr@777 1372 _mr_bs = (ModRefBarrierSet*)_barrier_set;
ysr@777 1373 } else {
ysr@777 1374 vm_exit_during_initialization("G1 requires a mod ref bs.");
ysr@777 1375 return JNI_ENOMEM;
ysr@777 1376 }
ysr@777 1377
ysr@777 1378 // Also create a G1 rem set.
ysr@777 1379 if (G1UseHRIntoRS) {
ysr@777 1380 if (mr_bs()->is_a(BarrierSet::CardTableModRef)) {
ysr@777 1381 _g1_rem_set = new HRInto_G1RemSet(this, (CardTableModRefBS*)mr_bs());
ysr@777 1382 } else {
ysr@777 1383 vm_exit_during_initialization("G1 requires a cardtable mod ref bs.");
ysr@777 1384 return JNI_ENOMEM;
ysr@777 1385 }
ysr@777 1386 } else {
ysr@777 1387 _g1_rem_set = new StupidG1RemSet(this);
ysr@777 1388 }
ysr@777 1389
ysr@777 1390 // Carve out the G1 part of the heap.
ysr@777 1391
ysr@777 1392 ReservedSpace g1_rs = heap_rs.first_part(max_byte_size);
ysr@777 1393 _g1_reserved = MemRegion((HeapWord*)g1_rs.base(),
ysr@777 1394 g1_rs.size()/HeapWordSize);
ysr@777 1395 ReservedSpace perm_gen_rs = heap_rs.last_part(max_byte_size);
ysr@777 1396
ysr@777 1397 _perm_gen = pgs->init(perm_gen_rs, pgs->init_size(), rem_set());
ysr@777 1398
ysr@777 1399 _g1_storage.initialize(g1_rs, 0);
ysr@777 1400 _g1_committed = MemRegion((HeapWord*)_g1_storage.low(), (size_t) 0);
ysr@777 1401 _g1_max_committed = _g1_committed;
iveresov@828 1402 _hrs = new HeapRegionSeq(_expansion_regions);
ysr@777 1403 guarantee(_hrs != NULL, "Couldn't allocate HeapRegionSeq");
ysr@777 1404 guarantee(_cur_alloc_region == NULL, "from constructor");
ysr@777 1405
ysr@777 1406 _bot_shared = new G1BlockOffsetSharedArray(_reserved,
ysr@777 1407 heap_word_size(init_byte_size));
ysr@777 1408
ysr@777 1409 _g1h = this;
ysr@777 1410
ysr@777 1411 // Create the ConcurrentMark data structure and thread.
ysr@777 1412 // (Must do this late, so that "max_regions" is defined.)
ysr@777 1413 _cm = new ConcurrentMark(heap_rs, (int) max_regions());
ysr@777 1414 _cmThread = _cm->cmThread();
ysr@777 1415
ysr@777 1416 // ...and the concurrent zero-fill thread, if necessary.
ysr@777 1417 if (G1ConcZeroFill) {
ysr@777 1418 _czft = new ConcurrentZFThread();
ysr@777 1419 }
ysr@777 1420
ysr@777 1421
ysr@777 1422
ysr@777 1423 // Allocate the popular regions; take them off free lists.
ysr@777 1424 size_t pop_byte_size = G1NumPopularRegions * HeapRegion::GrainBytes;
ysr@777 1425 expand(pop_byte_size);
ysr@777 1426 _popular_object_boundary =
ysr@777 1427 _g1_reserved.start() + (G1NumPopularRegions * HeapRegion::GrainWords);
ysr@777 1428 for (int i = 0; i < G1NumPopularRegions; i++) {
ysr@777 1429 HeapRegion* hr = newAllocRegion(HeapRegion::GrainWords);
ysr@777 1430 // assert(hr != NULL && hr->bottom() < _popular_object_boundary,
ysr@777 1431 // "Should be enough, and all should be below boundary.");
ysr@777 1432 hr->set_popular(true);
ysr@777 1433 }
ysr@777 1434 assert(_cur_pop_hr_index == 0, "Start allocating at the first region.");
ysr@777 1435
ysr@777 1436 // Initialize the from_card cache structure of HeapRegionRemSet.
ysr@777 1437 HeapRegionRemSet::init_heap(max_regions());
ysr@777 1438
ysr@777 1439 // Now expand into the rest of the initial heap size.
ysr@777 1440 expand(init_byte_size - pop_byte_size);
ysr@777 1441
ysr@777 1442 // Perform any initialization actions delegated to the policy.
ysr@777 1443 g1_policy()->init();
ysr@777 1444
ysr@777 1445 g1_policy()->note_start_of_mark_thread();
ysr@777 1446
ysr@777 1447 _refine_cte_cl =
ysr@777 1448 new RefineCardTableEntryClosure(ConcurrentG1RefineThread::sts(),
ysr@777 1449 g1_rem_set(),
ysr@777 1450 concurrent_g1_refine());
ysr@777 1451 JavaThread::dirty_card_queue_set().set_closure(_refine_cte_cl);
ysr@777 1452
ysr@777 1453 JavaThread::satb_mark_queue_set().initialize(SATB_Q_CBL_mon,
ysr@777 1454 SATB_Q_FL_lock,
ysr@777 1455 0,
ysr@777 1456 Shared_SATB_Q_lock);
ysr@777 1457 if (G1RSBarrierUseQueue) {
ysr@777 1458 JavaThread::dirty_card_queue_set().initialize(DirtyCardQ_CBL_mon,
ysr@777 1459 DirtyCardQ_FL_lock,
ysr@777 1460 G1DirtyCardQueueMax,
ysr@777 1461 Shared_DirtyCardQ_lock);
ysr@777 1462 }
ysr@777 1463 // In case we're keeping closure specialization stats, initialize those
ysr@777 1464 // counts and that mechanism.
ysr@777 1465 SpecializationStats::clear();
ysr@777 1466
ysr@777 1467 _gc_alloc_region_list = NULL;
ysr@777 1468
ysr@777 1469 // Do later initialization work for concurrent refinement.
ysr@777 1470 _cg1r->init();
ysr@777 1471
ysr@777 1472 const char* group_names[] = { "CR", "ZF", "CM", "CL" };
ysr@777 1473 GCOverheadReporter::initGCOverheadReporter(4, group_names);
ysr@777 1474
ysr@777 1475 return JNI_OK;
ysr@777 1476 }
ysr@777 1477
ysr@777 1478 void G1CollectedHeap::ref_processing_init() {
ysr@777 1479 SharedHeap::ref_processing_init();
ysr@777 1480 MemRegion mr = reserved_region();
ysr@777 1481 _ref_processor = ReferenceProcessor::create_ref_processor(
ysr@777 1482 mr, // span
ysr@777 1483 false, // Reference discovery is not atomic
ysr@777 1484 // (though it shouldn't matter here.)
ysr@777 1485 true, // mt_discovery
ysr@777 1486 NULL, // is alive closure: need to fill this in for efficiency
ysr@777 1487 ParallelGCThreads,
ysr@777 1488 ParallelRefProcEnabled,
ysr@777 1489 true); // Setting next fields of discovered
ysr@777 1490 // lists requires a barrier.
ysr@777 1491 }
ysr@777 1492
ysr@777 1493 size_t G1CollectedHeap::capacity() const {
ysr@777 1494 return _g1_committed.byte_size();
ysr@777 1495 }
ysr@777 1496
ysr@777 1497 void G1CollectedHeap::iterate_dirty_card_closure(bool concurrent,
ysr@777 1498 int worker_i) {
ysr@777 1499 DirtyCardQueueSet& dcqs = JavaThread::dirty_card_queue_set();
ysr@777 1500 int n_completed_buffers = 0;
ysr@777 1501 while (dcqs.apply_closure_to_completed_buffer(worker_i, 0, true)) {
ysr@777 1502 n_completed_buffers++;
ysr@777 1503 }
ysr@777 1504 g1_policy()->record_update_rs_processed_buffers(worker_i,
ysr@777 1505 (double) n_completed_buffers);
ysr@777 1506 dcqs.clear_n_completed_buffers();
ysr@777 1507 // Finish up the queue...
ysr@777 1508 if (worker_i == 0) concurrent_g1_refine()->clean_up_cache(worker_i,
ysr@777 1509 g1_rem_set());
ysr@777 1510 assert(!dcqs.completed_buffers_exist_dirty(), "Completed buffers exist!");
ysr@777 1511 }
ysr@777 1512
ysr@777 1513
ysr@777 1514 // Computes the sum of the storage used by the various regions.
ysr@777 1515
ysr@777 1516 size_t G1CollectedHeap::used() const {
ysr@777 1517 assert(Heap_lock->owner() != NULL,
ysr@777 1518 "Should be owned on this thread's behalf.");
ysr@777 1519 size_t result = _summary_bytes_used;
ysr@777 1520 if (_cur_alloc_region != NULL)
ysr@777 1521 result += _cur_alloc_region->used();
ysr@777 1522 return result;
ysr@777 1523 }
ysr@777 1524
ysr@777 1525 class SumUsedClosure: public HeapRegionClosure {
ysr@777 1526 size_t _used;
ysr@777 1527 public:
ysr@777 1528 SumUsedClosure() : _used(0) {}
ysr@777 1529 bool doHeapRegion(HeapRegion* r) {
ysr@777 1530 if (!r->continuesHumongous()) {
ysr@777 1531 _used += r->used();
ysr@777 1532 }
ysr@777 1533 return false;
ysr@777 1534 }
ysr@777 1535 size_t result() { return _used; }
ysr@777 1536 };
ysr@777 1537
ysr@777 1538 size_t G1CollectedHeap::recalculate_used() const {
ysr@777 1539 SumUsedClosure blk;
ysr@777 1540 _hrs->iterate(&blk);
ysr@777 1541 return blk.result();
ysr@777 1542 }
ysr@777 1543
ysr@777 1544 #ifndef PRODUCT
ysr@777 1545 class SumUsedRegionsClosure: public HeapRegionClosure {
ysr@777 1546 size_t _num;
ysr@777 1547 public:
ysr@777 1548 // _num is set to 1 to account for the popular region
ysr@777 1549 SumUsedRegionsClosure() : _num(G1NumPopularRegions) {}
ysr@777 1550 bool doHeapRegion(HeapRegion* r) {
ysr@777 1551 if (r->continuesHumongous() || r->used() > 0 || r->is_gc_alloc_region()) {
ysr@777 1552 _num += 1;
ysr@777 1553 }
ysr@777 1554 return false;
ysr@777 1555 }
ysr@777 1556 size_t result() { return _num; }
ysr@777 1557 };
ysr@777 1558
ysr@777 1559 size_t G1CollectedHeap::recalculate_used_regions() const {
ysr@777 1560 SumUsedRegionsClosure blk;
ysr@777 1561 _hrs->iterate(&blk);
ysr@777 1562 return blk.result();
ysr@777 1563 }
ysr@777 1564 #endif // PRODUCT
ysr@777 1565
ysr@777 1566 size_t G1CollectedHeap::unsafe_max_alloc() {
ysr@777 1567 if (_free_regions > 0) return HeapRegion::GrainBytes;
ysr@777 1568 // otherwise, is there space in the current allocation region?
ysr@777 1569
ysr@777 1570 // We need to store the current allocation region in a local variable
ysr@777 1571 // here. The problem is that this method doesn't take any locks and
ysr@777 1572 // there may be other threads which overwrite the current allocation
ysr@777 1573 // region field. attempt_allocation(), for example, sets it to NULL
ysr@777 1574 // and this can happen *after* the NULL check here but before the call
ysr@777 1575 // to free(), resulting in a SIGSEGV. Note that this doesn't appear
ysr@777 1576 // to be a problem in the optimized build, since the two loads of the
ysr@777 1577 // current allocation region field are optimized away.
ysr@777 1578 HeapRegion* car = _cur_alloc_region;
ysr@777 1579
ysr@777 1580 // FIXME: should iterate over all regions?
ysr@777 1581 if (car == NULL) {
ysr@777 1582 return 0;
ysr@777 1583 }
ysr@777 1584 return car->free();
ysr@777 1585 }
ysr@777 1586
ysr@777 1587 void G1CollectedHeap::collect(GCCause::Cause cause) {
ysr@777 1588 // The caller doesn't have the Heap_lock
ysr@777 1589 assert(!Heap_lock->owned_by_self(), "this thread should not own the Heap_lock");
ysr@777 1590 MutexLocker ml(Heap_lock);
ysr@777 1591 collect_locked(cause);
ysr@777 1592 }
ysr@777 1593
ysr@777 1594 void G1CollectedHeap::collect_as_vm_thread(GCCause::Cause cause) {
ysr@777 1595 assert(Thread::current()->is_VM_thread(), "Precondition#1");
ysr@777 1596 assert(Heap_lock->is_locked(), "Precondition#2");
ysr@777 1597 GCCauseSetter gcs(this, cause);
ysr@777 1598 switch (cause) {
ysr@777 1599 case GCCause::_heap_inspection:
ysr@777 1600 case GCCause::_heap_dump: {
ysr@777 1601 HandleMark hm;
ysr@777 1602 do_full_collection(false); // don't clear all soft refs
ysr@777 1603 break;
ysr@777 1604 }
ysr@777 1605 default: // XXX FIX ME
ysr@777 1606 ShouldNotReachHere(); // Unexpected use of this function
ysr@777 1607 }
ysr@777 1608 }
ysr@777 1609
ysr@777 1610
ysr@777 1611 void G1CollectedHeap::collect_locked(GCCause::Cause cause) {
ysr@777 1612 // Don't want to do a GC until cleanup is completed.
ysr@777 1613 wait_for_cleanup_complete();
ysr@777 1614
ysr@777 1615 // Read the GC count while holding the Heap_lock
ysr@777 1616 int gc_count_before = SharedHeap::heap()->total_collections();
ysr@777 1617 {
ysr@777 1618 MutexUnlocker mu(Heap_lock); // give up heap lock, execute gets it back
ysr@777 1619 VM_G1CollectFull op(gc_count_before, cause);
ysr@777 1620 VMThread::execute(&op);
ysr@777 1621 }
ysr@777 1622 }
ysr@777 1623
ysr@777 1624 bool G1CollectedHeap::is_in(const void* p) const {
ysr@777 1625 if (_g1_committed.contains(p)) {
ysr@777 1626 HeapRegion* hr = _hrs->addr_to_region(p);
ysr@777 1627 return hr->is_in(p);
ysr@777 1628 } else {
ysr@777 1629 return _perm_gen->as_gen()->is_in(p);
ysr@777 1630 }
ysr@777 1631 }
ysr@777 1632
ysr@777 1633 // Iteration functions.
ysr@777 1634
ysr@777 1635 // Iterates an OopClosure over all ref-containing fields of objects
ysr@777 1636 // within a HeapRegion.
ysr@777 1637
ysr@777 1638 class IterateOopClosureRegionClosure: public HeapRegionClosure {
ysr@777 1639 MemRegion _mr;
ysr@777 1640 OopClosure* _cl;
ysr@777 1641 public:
ysr@777 1642 IterateOopClosureRegionClosure(MemRegion mr, OopClosure* cl)
ysr@777 1643 : _mr(mr), _cl(cl) {}
ysr@777 1644 bool doHeapRegion(HeapRegion* r) {
ysr@777 1645 if (! r->continuesHumongous()) {
ysr@777 1646 r->oop_iterate(_cl);
ysr@777 1647 }
ysr@777 1648 return false;
ysr@777 1649 }
ysr@777 1650 };
ysr@777 1651
ysr@777 1652 void G1CollectedHeap::oop_iterate(OopClosure* cl) {
ysr@777 1653 IterateOopClosureRegionClosure blk(_g1_committed, cl);
ysr@777 1654 _hrs->iterate(&blk);
ysr@777 1655 }
ysr@777 1656
ysr@777 1657 void G1CollectedHeap::oop_iterate(MemRegion mr, OopClosure* cl) {
ysr@777 1658 IterateOopClosureRegionClosure blk(mr, cl);
ysr@777 1659 _hrs->iterate(&blk);
ysr@777 1660 }
ysr@777 1661
ysr@777 1662 // Iterates an ObjectClosure over all objects within a HeapRegion.
ysr@777 1663
ysr@777 1664 class IterateObjectClosureRegionClosure: public HeapRegionClosure {
ysr@777 1665 ObjectClosure* _cl;
ysr@777 1666 public:
ysr@777 1667 IterateObjectClosureRegionClosure(ObjectClosure* cl) : _cl(cl) {}
ysr@777 1668 bool doHeapRegion(HeapRegion* r) {
ysr@777 1669 if (! r->continuesHumongous()) {
ysr@777 1670 r->object_iterate(_cl);
ysr@777 1671 }
ysr@777 1672 return false;
ysr@777 1673 }
ysr@777 1674 };
ysr@777 1675
ysr@777 1676 void G1CollectedHeap::object_iterate(ObjectClosure* cl) {
ysr@777 1677 IterateObjectClosureRegionClosure blk(cl);
ysr@777 1678 _hrs->iterate(&blk);
ysr@777 1679 }
ysr@777 1680
ysr@777 1681 void G1CollectedHeap::object_iterate_since_last_GC(ObjectClosure* cl) {
ysr@777 1682 // FIXME: is this right?
ysr@777 1683 guarantee(false, "object_iterate_since_last_GC not supported by G1 heap");
ysr@777 1684 }
ysr@777 1685
ysr@777 1686 // Calls a SpaceClosure on a HeapRegion.
ysr@777 1687
ysr@777 1688 class SpaceClosureRegionClosure: public HeapRegionClosure {
ysr@777 1689 SpaceClosure* _cl;
ysr@777 1690 public:
ysr@777 1691 SpaceClosureRegionClosure(SpaceClosure* cl) : _cl(cl) {}
ysr@777 1692 bool doHeapRegion(HeapRegion* r) {
ysr@777 1693 _cl->do_space(r);
ysr@777 1694 return false;
ysr@777 1695 }
ysr@777 1696 };
ysr@777 1697
ysr@777 1698 void G1CollectedHeap::space_iterate(SpaceClosure* cl) {
ysr@777 1699 SpaceClosureRegionClosure blk(cl);
ysr@777 1700 _hrs->iterate(&blk);
ysr@777 1701 }
ysr@777 1702
ysr@777 1703 void G1CollectedHeap::heap_region_iterate(HeapRegionClosure* cl) {
ysr@777 1704 _hrs->iterate(cl);
ysr@777 1705 }
ysr@777 1706
ysr@777 1707 void G1CollectedHeap::heap_region_iterate_from(HeapRegion* r,
ysr@777 1708 HeapRegionClosure* cl) {
ysr@777 1709 _hrs->iterate_from(r, cl);
ysr@777 1710 }
ysr@777 1711
ysr@777 1712 void
ysr@777 1713 G1CollectedHeap::heap_region_iterate_from(int idx, HeapRegionClosure* cl) {
ysr@777 1714 _hrs->iterate_from(idx, cl);
ysr@777 1715 }
ysr@777 1716
ysr@777 1717 HeapRegion* G1CollectedHeap::region_at(size_t idx) { return _hrs->at(idx); }
ysr@777 1718
ysr@777 1719 void
ysr@777 1720 G1CollectedHeap::heap_region_par_iterate_chunked(HeapRegionClosure* cl,
ysr@777 1721 int worker,
ysr@777 1722 jint claim_value) {
tonyp@790 1723 const size_t regions = n_regions();
tonyp@790 1724 const size_t worker_num = (ParallelGCThreads > 0 ? ParallelGCThreads : 1);
tonyp@790 1725 // try to spread out the starting points of the workers
tonyp@790 1726 const size_t start_index = regions / worker_num * (size_t) worker;
tonyp@790 1727
tonyp@790 1728 // each worker will actually look at all regions
tonyp@790 1729 for (size_t count = 0; count < regions; ++count) {
tonyp@790 1730 const size_t index = (start_index + count) % regions;
tonyp@790 1731 assert(0 <= index && index < regions, "sanity");
tonyp@790 1732 HeapRegion* r = region_at(index);
tonyp@790 1733 // we'll ignore "continues humongous" regions (we'll process them
tonyp@790 1734 // when we come across their corresponding "start humongous"
tonyp@790 1735 // region) and regions already claimed
tonyp@790 1736 if (r->claim_value() == claim_value || r->continuesHumongous()) {
tonyp@790 1737 continue;
tonyp@790 1738 }
tonyp@790 1739 // OK, try to claim it
ysr@777 1740 if (r->claimHeapRegion(claim_value)) {
tonyp@790 1741 // success!
tonyp@790 1742 assert(!r->continuesHumongous(), "sanity");
tonyp@790 1743 if (r->startsHumongous()) {
tonyp@790 1744 // If the region is "starts humongous" we'll iterate over its
tonyp@790 1745 // "continues humongous" first; in fact we'll do them
tonyp@790 1746 // first. The order is important. In on case, calling the
tonyp@790 1747 // closure on the "starts humongous" region might de-allocate
tonyp@790 1748 // and clear all its "continues humongous" regions and, as a
tonyp@790 1749 // result, we might end up processing them twice. So, we'll do
tonyp@790 1750 // them first (notice: most closures will ignore them anyway) and
tonyp@790 1751 // then we'll do the "starts humongous" region.
tonyp@790 1752 for (size_t ch_index = index + 1; ch_index < regions; ++ch_index) {
tonyp@790 1753 HeapRegion* chr = region_at(ch_index);
tonyp@790 1754
tonyp@790 1755 // if the region has already been claimed or it's not
tonyp@790 1756 // "continues humongous" we're done
tonyp@790 1757 if (chr->claim_value() == claim_value ||
tonyp@790 1758 !chr->continuesHumongous()) {
tonyp@790 1759 break;
tonyp@790 1760 }
tonyp@790 1761
tonyp@790 1762 // Noone should have claimed it directly. We can given
tonyp@790 1763 // that we claimed its "starts humongous" region.
tonyp@790 1764 assert(chr->claim_value() != claim_value, "sanity");
tonyp@790 1765 assert(chr->humongous_start_region() == r, "sanity");
tonyp@790 1766
tonyp@790 1767 if (chr->claimHeapRegion(claim_value)) {
tonyp@790 1768 // we should always be able to claim it; noone else should
tonyp@790 1769 // be trying to claim this region
tonyp@790 1770
tonyp@790 1771 bool res2 = cl->doHeapRegion(chr);
tonyp@790 1772 assert(!res2, "Should not abort");
tonyp@790 1773
tonyp@790 1774 // Right now, this holds (i.e., no closure that actually
tonyp@790 1775 // does something with "continues humongous" regions
tonyp@790 1776 // clears them). We might have to weaken it in the future,
tonyp@790 1777 // but let's leave these two asserts here for extra safety.
tonyp@790 1778 assert(chr->continuesHumongous(), "should still be the case");
tonyp@790 1779 assert(chr->humongous_start_region() == r, "sanity");
tonyp@790 1780 } else {
tonyp@790 1781 guarantee(false, "we should not reach here");
tonyp@790 1782 }
tonyp@790 1783 }
tonyp@790 1784 }
tonyp@790 1785
tonyp@790 1786 assert(!r->continuesHumongous(), "sanity");
tonyp@790 1787 bool res = cl->doHeapRegion(r);
tonyp@790 1788 assert(!res, "Should not abort");
tonyp@790 1789 }
tonyp@790 1790 }
tonyp@790 1791 }
tonyp@790 1792
tonyp@825 1793 class ResetClaimValuesClosure: public HeapRegionClosure {
tonyp@825 1794 public:
tonyp@825 1795 bool doHeapRegion(HeapRegion* r) {
tonyp@825 1796 r->set_claim_value(HeapRegion::InitialClaimValue);
tonyp@825 1797 return false;
tonyp@825 1798 }
tonyp@825 1799 };
tonyp@825 1800
tonyp@825 1801 void
tonyp@825 1802 G1CollectedHeap::reset_heap_region_claim_values() {
tonyp@825 1803 ResetClaimValuesClosure blk;
tonyp@825 1804 heap_region_iterate(&blk);
tonyp@825 1805 }
tonyp@825 1806
tonyp@790 1807 #ifdef ASSERT
tonyp@790 1808 // This checks whether all regions in the heap have the correct claim
tonyp@790 1809 // value. I also piggy-backed on this a check to ensure that the
tonyp@790 1810 // humongous_start_region() information on "continues humongous"
tonyp@790 1811 // regions is correct.
tonyp@790 1812
tonyp@790 1813 class CheckClaimValuesClosure : public HeapRegionClosure {
tonyp@790 1814 private:
tonyp@790 1815 jint _claim_value;
tonyp@790 1816 size_t _failures;
tonyp@790 1817 HeapRegion* _sh_region;
tonyp@790 1818 public:
tonyp@790 1819 CheckClaimValuesClosure(jint claim_value) :
tonyp@790 1820 _claim_value(claim_value), _failures(0), _sh_region(NULL) { }
tonyp@790 1821 bool doHeapRegion(HeapRegion* r) {
tonyp@790 1822 if (r->claim_value() != _claim_value) {
tonyp@790 1823 gclog_or_tty->print_cr("Region ["PTR_FORMAT","PTR_FORMAT"), "
tonyp@790 1824 "claim value = %d, should be %d",
tonyp@790 1825 r->bottom(), r->end(), r->claim_value(),
tonyp@790 1826 _claim_value);
tonyp@790 1827 ++_failures;
tonyp@790 1828 }
tonyp@790 1829 if (!r->isHumongous()) {
tonyp@790 1830 _sh_region = NULL;
tonyp@790 1831 } else if (r->startsHumongous()) {
tonyp@790 1832 _sh_region = r;
tonyp@790 1833 } else if (r->continuesHumongous()) {
tonyp@790 1834 if (r->humongous_start_region() != _sh_region) {
tonyp@790 1835 gclog_or_tty->print_cr("Region ["PTR_FORMAT","PTR_FORMAT"), "
tonyp@790 1836 "HS = "PTR_FORMAT", should be "PTR_FORMAT,
tonyp@790 1837 r->bottom(), r->end(),
tonyp@790 1838 r->humongous_start_region(),
tonyp@790 1839 _sh_region);
tonyp@790 1840 ++_failures;
ysr@777 1841 }
ysr@777 1842 }
tonyp@790 1843 return false;
tonyp@790 1844 }
tonyp@790 1845 size_t failures() {
tonyp@790 1846 return _failures;
tonyp@790 1847 }
tonyp@790 1848 };
tonyp@790 1849
tonyp@790 1850 bool G1CollectedHeap::check_heap_region_claim_values(jint claim_value) {
tonyp@790 1851 CheckClaimValuesClosure cl(claim_value);
tonyp@790 1852 heap_region_iterate(&cl);
tonyp@790 1853 return cl.failures() == 0;
tonyp@790 1854 }
tonyp@790 1855 #endif // ASSERT
ysr@777 1856
ysr@777 1857 void G1CollectedHeap::collection_set_iterate(HeapRegionClosure* cl) {
ysr@777 1858 HeapRegion* r = g1_policy()->collection_set();
ysr@777 1859 while (r != NULL) {
ysr@777 1860 HeapRegion* next = r->next_in_collection_set();
ysr@777 1861 if (cl->doHeapRegion(r)) {
ysr@777 1862 cl->incomplete();
ysr@777 1863 return;
ysr@777 1864 }
ysr@777 1865 r = next;
ysr@777 1866 }
ysr@777 1867 }
ysr@777 1868
ysr@777 1869 void G1CollectedHeap::collection_set_iterate_from(HeapRegion* r,
ysr@777 1870 HeapRegionClosure *cl) {
ysr@777 1871 assert(r->in_collection_set(),
ysr@777 1872 "Start region must be a member of the collection set.");
ysr@777 1873 HeapRegion* cur = r;
ysr@777 1874 while (cur != NULL) {
ysr@777 1875 HeapRegion* next = cur->next_in_collection_set();
ysr@777 1876 if (cl->doHeapRegion(cur) && false) {
ysr@777 1877 cl->incomplete();
ysr@777 1878 return;
ysr@777 1879 }
ysr@777 1880 cur = next;
ysr@777 1881 }
ysr@777 1882 cur = g1_policy()->collection_set();
ysr@777 1883 while (cur != r) {
ysr@777 1884 HeapRegion* next = cur->next_in_collection_set();
ysr@777 1885 if (cl->doHeapRegion(cur) && false) {
ysr@777 1886 cl->incomplete();
ysr@777 1887 return;
ysr@777 1888 }
ysr@777 1889 cur = next;
ysr@777 1890 }
ysr@777 1891 }
ysr@777 1892
ysr@777 1893 CompactibleSpace* G1CollectedHeap::first_compactible_space() {
ysr@777 1894 return _hrs->length() > 0 ? _hrs->at(0) : NULL;
ysr@777 1895 }
ysr@777 1896
ysr@777 1897
ysr@777 1898 Space* G1CollectedHeap::space_containing(const void* addr) const {
ysr@777 1899 Space* res = heap_region_containing(addr);
ysr@777 1900 if (res == NULL)
ysr@777 1901 res = perm_gen()->space_containing(addr);
ysr@777 1902 return res;
ysr@777 1903 }
ysr@777 1904
ysr@777 1905 HeapWord* G1CollectedHeap::block_start(const void* addr) const {
ysr@777 1906 Space* sp = space_containing(addr);
ysr@777 1907 if (sp != NULL) {
ysr@777 1908 return sp->block_start(addr);
ysr@777 1909 }
ysr@777 1910 return NULL;
ysr@777 1911 }
ysr@777 1912
ysr@777 1913 size_t G1CollectedHeap::block_size(const HeapWord* addr) const {
ysr@777 1914 Space* sp = space_containing(addr);
ysr@777 1915 assert(sp != NULL, "block_size of address outside of heap");
ysr@777 1916 return sp->block_size(addr);
ysr@777 1917 }
ysr@777 1918
ysr@777 1919 bool G1CollectedHeap::block_is_obj(const HeapWord* addr) const {
ysr@777 1920 Space* sp = space_containing(addr);
ysr@777 1921 return sp->block_is_obj(addr);
ysr@777 1922 }
ysr@777 1923
ysr@777 1924 bool G1CollectedHeap::supports_tlab_allocation() const {
ysr@777 1925 return true;
ysr@777 1926 }
ysr@777 1927
ysr@777 1928 size_t G1CollectedHeap::tlab_capacity(Thread* ignored) const {
ysr@777 1929 return HeapRegion::GrainBytes;
ysr@777 1930 }
ysr@777 1931
ysr@777 1932 size_t G1CollectedHeap::unsafe_max_tlab_alloc(Thread* ignored) const {
ysr@777 1933 // Return the remaining space in the cur alloc region, but not less than
ysr@777 1934 // the min TLAB size.
ysr@777 1935 // Also, no more than half the region size, since we can't allow tlabs to
ysr@777 1936 // grow big enough to accomodate humongous objects.
ysr@777 1937
ysr@777 1938 // We need to story it locally, since it might change between when we
ysr@777 1939 // test for NULL and when we use it later.
ysr@777 1940 ContiguousSpace* cur_alloc_space = _cur_alloc_region;
ysr@777 1941 if (cur_alloc_space == NULL) {
ysr@777 1942 return HeapRegion::GrainBytes/2;
ysr@777 1943 } else {
ysr@777 1944 return MAX2(MIN2(cur_alloc_space->free(),
ysr@777 1945 (size_t)(HeapRegion::GrainBytes/2)),
ysr@777 1946 (size_t)MinTLABSize);
ysr@777 1947 }
ysr@777 1948 }
ysr@777 1949
ysr@777 1950 HeapWord* G1CollectedHeap::allocate_new_tlab(size_t size) {
ysr@777 1951 bool dummy;
ysr@777 1952 return G1CollectedHeap::mem_allocate(size, false, true, &dummy);
ysr@777 1953 }
ysr@777 1954
ysr@777 1955 bool G1CollectedHeap::allocs_are_zero_filled() {
ysr@777 1956 return false;
ysr@777 1957 }
ysr@777 1958
ysr@777 1959 size_t G1CollectedHeap::large_typearray_limit() {
ysr@777 1960 // FIXME
ysr@777 1961 return HeapRegion::GrainBytes/HeapWordSize;
ysr@777 1962 }
ysr@777 1963
ysr@777 1964 size_t G1CollectedHeap::max_capacity() const {
ysr@777 1965 return _g1_committed.byte_size();
ysr@777 1966 }
ysr@777 1967
ysr@777 1968 jlong G1CollectedHeap::millis_since_last_gc() {
ysr@777 1969 // assert(false, "NYI");
ysr@777 1970 return 0;
ysr@777 1971 }
ysr@777 1972
ysr@777 1973
ysr@777 1974 void G1CollectedHeap::prepare_for_verify() {
ysr@777 1975 if (SafepointSynchronize::is_at_safepoint() || ! UseTLAB) {
ysr@777 1976 ensure_parsability(false);
ysr@777 1977 }
ysr@777 1978 g1_rem_set()->prepare_for_verify();
ysr@777 1979 }
ysr@777 1980
ysr@777 1981 class VerifyLivenessOopClosure: public OopClosure {
ysr@777 1982 G1CollectedHeap* g1h;
ysr@777 1983 public:
ysr@777 1984 VerifyLivenessOopClosure(G1CollectedHeap* _g1h) {
ysr@777 1985 g1h = _g1h;
ysr@777 1986 }
ysr@777 1987 void do_oop(narrowOop *p) {
ysr@777 1988 guarantee(false, "NYI");
ysr@777 1989 }
ysr@777 1990 void do_oop(oop *p) {
ysr@777 1991 oop obj = *p;
ysr@777 1992 assert(obj == NULL || !g1h->is_obj_dead(obj),
ysr@777 1993 "Dead object referenced by a not dead object");
ysr@777 1994 }
ysr@777 1995 };
ysr@777 1996
ysr@777 1997 class VerifyObjsInRegionClosure: public ObjectClosure {
ysr@777 1998 G1CollectedHeap* _g1h;
ysr@777 1999 size_t _live_bytes;
ysr@777 2000 HeapRegion *_hr;
ysr@777 2001 public:
ysr@777 2002 VerifyObjsInRegionClosure(HeapRegion *hr) : _live_bytes(0), _hr(hr) {
ysr@777 2003 _g1h = G1CollectedHeap::heap();
ysr@777 2004 }
ysr@777 2005 void do_object(oop o) {
ysr@777 2006 VerifyLivenessOopClosure isLive(_g1h);
ysr@777 2007 assert(o != NULL, "Huh?");
ysr@777 2008 if (!_g1h->is_obj_dead(o)) {
ysr@777 2009 o->oop_iterate(&isLive);
ysr@777 2010 if (!_hr->obj_allocated_since_prev_marking(o))
ysr@777 2011 _live_bytes += (o->size() * HeapWordSize);
ysr@777 2012 }
ysr@777 2013 }
ysr@777 2014 size_t live_bytes() { return _live_bytes; }
ysr@777 2015 };
ysr@777 2016
ysr@777 2017 class PrintObjsInRegionClosure : public ObjectClosure {
ysr@777 2018 HeapRegion *_hr;
ysr@777 2019 G1CollectedHeap *_g1;
ysr@777 2020 public:
ysr@777 2021 PrintObjsInRegionClosure(HeapRegion *hr) : _hr(hr) {
ysr@777 2022 _g1 = G1CollectedHeap::heap();
ysr@777 2023 };
ysr@777 2024
ysr@777 2025 void do_object(oop o) {
ysr@777 2026 if (o != NULL) {
ysr@777 2027 HeapWord *start = (HeapWord *) o;
ysr@777 2028 size_t word_sz = o->size();
ysr@777 2029 gclog_or_tty->print("\nPrinting obj "PTR_FORMAT" of size " SIZE_FORMAT
ysr@777 2030 " isMarkedPrev %d isMarkedNext %d isAllocSince %d\n",
ysr@777 2031 (void*) o, word_sz,
ysr@777 2032 _g1->isMarkedPrev(o),
ysr@777 2033 _g1->isMarkedNext(o),
ysr@777 2034 _hr->obj_allocated_since_prev_marking(o));
ysr@777 2035 HeapWord *end = start + word_sz;
ysr@777 2036 HeapWord *cur;
ysr@777 2037 int *val;
ysr@777 2038 for (cur = start; cur < end; cur++) {
ysr@777 2039 val = (int *) cur;
ysr@777 2040 gclog_or_tty->print("\t "PTR_FORMAT":"PTR_FORMAT"\n", val, *val);
ysr@777 2041 }
ysr@777 2042 }
ysr@777 2043 }
ysr@777 2044 };
ysr@777 2045
ysr@777 2046 class VerifyRegionClosure: public HeapRegionClosure {
ysr@777 2047 public:
ysr@777 2048 bool _allow_dirty;
tonyp@825 2049 bool _par;
tonyp@825 2050 VerifyRegionClosure(bool allow_dirty, bool par = false)
tonyp@825 2051 : _allow_dirty(allow_dirty), _par(par) {}
ysr@777 2052 bool doHeapRegion(HeapRegion* r) {
tonyp@825 2053 guarantee(_par || r->claim_value() == HeapRegion::InitialClaimValue,
tonyp@825 2054 "Should be unclaimed at verify points.");
ysr@777 2055 if (r->isHumongous()) {
ysr@777 2056 if (r->startsHumongous()) {
ysr@777 2057 // Verify the single H object.
ysr@777 2058 oop(r->bottom())->verify();
ysr@777 2059 size_t word_sz = oop(r->bottom())->size();
ysr@777 2060 guarantee(r->top() == r->bottom() + word_sz,
ysr@777 2061 "Only one object in a humongous region");
ysr@777 2062 }
ysr@777 2063 } else {
ysr@777 2064 VerifyObjsInRegionClosure not_dead_yet_cl(r);
ysr@777 2065 r->verify(_allow_dirty);
ysr@777 2066 r->object_iterate(&not_dead_yet_cl);
ysr@777 2067 guarantee(r->max_live_bytes() >= not_dead_yet_cl.live_bytes(),
ysr@777 2068 "More live objects than counted in last complete marking.");
ysr@777 2069 }
ysr@777 2070 return false;
ysr@777 2071 }
ysr@777 2072 };
ysr@777 2073
ysr@777 2074 class VerifyRootsClosure: public OopsInGenClosure {
ysr@777 2075 private:
ysr@777 2076 G1CollectedHeap* _g1h;
ysr@777 2077 bool _failures;
ysr@777 2078
ysr@777 2079 public:
ysr@777 2080 VerifyRootsClosure() :
ysr@777 2081 _g1h(G1CollectedHeap::heap()), _failures(false) { }
ysr@777 2082
ysr@777 2083 bool failures() { return _failures; }
ysr@777 2084
ysr@777 2085 void do_oop(narrowOop* p) {
ysr@777 2086 guarantee(false, "NYI");
ysr@777 2087 }
ysr@777 2088
ysr@777 2089 void do_oop(oop* p) {
ysr@777 2090 oop obj = *p;
ysr@777 2091 if (obj != NULL) {
ysr@777 2092 if (_g1h->is_obj_dead(obj)) {
ysr@777 2093 gclog_or_tty->print_cr("Root location "PTR_FORMAT" "
ysr@777 2094 "points to dead obj "PTR_FORMAT, p, (void*) obj);
ysr@777 2095 obj->print_on(gclog_or_tty);
ysr@777 2096 _failures = true;
ysr@777 2097 }
ysr@777 2098 }
ysr@777 2099 }
ysr@777 2100 };
ysr@777 2101
tonyp@825 2102 // This is the task used for parallel heap verification.
tonyp@825 2103
tonyp@825 2104 class G1ParVerifyTask: public AbstractGangTask {
tonyp@825 2105 private:
tonyp@825 2106 G1CollectedHeap* _g1h;
tonyp@825 2107 bool _allow_dirty;
tonyp@825 2108
tonyp@825 2109 public:
tonyp@825 2110 G1ParVerifyTask(G1CollectedHeap* g1h, bool allow_dirty) :
tonyp@825 2111 AbstractGangTask("Parallel verify task"),
tonyp@825 2112 _g1h(g1h), _allow_dirty(allow_dirty) { }
tonyp@825 2113
tonyp@825 2114 void work(int worker_i) {
tonyp@825 2115 VerifyRegionClosure blk(_allow_dirty, true);
tonyp@825 2116 _g1h->heap_region_par_iterate_chunked(&blk, worker_i,
tonyp@825 2117 HeapRegion::ParVerifyClaimValue);
tonyp@825 2118 }
tonyp@825 2119 };
tonyp@825 2120
ysr@777 2121 void G1CollectedHeap::verify(bool allow_dirty, bool silent) {
ysr@777 2122 if (SafepointSynchronize::is_at_safepoint() || ! UseTLAB) {
ysr@777 2123 if (!silent) { gclog_or_tty->print("roots "); }
ysr@777 2124 VerifyRootsClosure rootsCl;
ysr@777 2125 process_strong_roots(false,
ysr@777 2126 SharedHeap::SO_AllClasses,
ysr@777 2127 &rootsCl,
ysr@777 2128 &rootsCl);
ysr@777 2129 rem_set()->invalidate(perm_gen()->used_region(), false);
ysr@777 2130 if (!silent) { gclog_or_tty->print("heapRegions "); }
tonyp@825 2131 if (GCParallelVerificationEnabled && ParallelGCThreads > 1) {
tonyp@825 2132 assert(check_heap_region_claim_values(HeapRegion::InitialClaimValue),
tonyp@825 2133 "sanity check");
tonyp@825 2134
tonyp@825 2135 G1ParVerifyTask task(this, allow_dirty);
tonyp@825 2136 int n_workers = workers()->total_workers();
tonyp@825 2137 set_par_threads(n_workers);
tonyp@825 2138 workers()->run_task(&task);
tonyp@825 2139 set_par_threads(0);
tonyp@825 2140
tonyp@825 2141 assert(check_heap_region_claim_values(HeapRegion::ParVerifyClaimValue),
tonyp@825 2142 "sanity check");
tonyp@825 2143
tonyp@825 2144 reset_heap_region_claim_values();
tonyp@825 2145
tonyp@825 2146 assert(check_heap_region_claim_values(HeapRegion::InitialClaimValue),
tonyp@825 2147 "sanity check");
tonyp@825 2148 } else {
tonyp@825 2149 VerifyRegionClosure blk(allow_dirty);
tonyp@825 2150 _hrs->iterate(&blk);
tonyp@825 2151 }
ysr@777 2152 if (!silent) gclog_or_tty->print("remset ");
ysr@777 2153 rem_set()->verify();
ysr@777 2154 guarantee(!rootsCl.failures(), "should not have had failures");
ysr@777 2155 } else {
ysr@777 2156 if (!silent) gclog_or_tty->print("(SKIPPING roots, heapRegions, remset) ");
ysr@777 2157 }
ysr@777 2158 }
ysr@777 2159
ysr@777 2160 class PrintRegionClosure: public HeapRegionClosure {
ysr@777 2161 outputStream* _st;
ysr@777 2162 public:
ysr@777 2163 PrintRegionClosure(outputStream* st) : _st(st) {}
ysr@777 2164 bool doHeapRegion(HeapRegion* r) {
ysr@777 2165 r->print_on(_st);
ysr@777 2166 return false;
ysr@777 2167 }
ysr@777 2168 };
ysr@777 2169
ysr@777 2170 void G1CollectedHeap::print() const { print_on(gclog_or_tty); }
ysr@777 2171
ysr@777 2172 void G1CollectedHeap::print_on(outputStream* st) const {
ysr@777 2173 PrintRegionClosure blk(st);
ysr@777 2174 _hrs->iterate(&blk);
ysr@777 2175 }
ysr@777 2176
ysr@777 2177 void G1CollectedHeap::print_gc_threads_on(outputStream* st) const {
ysr@777 2178 if (ParallelGCThreads > 0) {
ysr@777 2179 workers()->print_worker_threads();
ysr@777 2180 }
ysr@777 2181 st->print("\"G1 concurrent mark GC Thread\" ");
ysr@777 2182 _cmThread->print();
ysr@777 2183 st->cr();
ysr@777 2184 st->print("\"G1 concurrent refinement GC Thread\" ");
ysr@777 2185 _cg1r->cg1rThread()->print_on(st);
ysr@777 2186 st->cr();
ysr@777 2187 st->print("\"G1 zero-fill GC Thread\" ");
ysr@777 2188 _czft->print_on(st);
ysr@777 2189 st->cr();
ysr@777 2190 }
ysr@777 2191
ysr@777 2192 void G1CollectedHeap::gc_threads_do(ThreadClosure* tc) const {
ysr@777 2193 if (ParallelGCThreads > 0) {
ysr@777 2194 workers()->threads_do(tc);
ysr@777 2195 }
ysr@777 2196 tc->do_thread(_cmThread);
ysr@777 2197 tc->do_thread(_cg1r->cg1rThread());
ysr@777 2198 tc->do_thread(_czft);
ysr@777 2199 }
ysr@777 2200
ysr@777 2201 void G1CollectedHeap::print_tracing_info() const {
ysr@777 2202 concurrent_g1_refine()->print_final_card_counts();
ysr@777 2203
ysr@777 2204 // We'll overload this to mean "trace GC pause statistics."
ysr@777 2205 if (TraceGen0Time || TraceGen1Time) {
ysr@777 2206 // The "G1CollectorPolicy" is keeping track of these stats, so delegate
ysr@777 2207 // to that.
ysr@777 2208 g1_policy()->print_tracing_info();
ysr@777 2209 }
ysr@777 2210 if (SummarizeG1RSStats) {
ysr@777 2211 g1_rem_set()->print_summary_info();
ysr@777 2212 }
ysr@777 2213 if (SummarizeG1ConcMark) {
ysr@777 2214 concurrent_mark()->print_summary_info();
ysr@777 2215 }
ysr@777 2216 if (SummarizeG1ZFStats) {
ysr@777 2217 ConcurrentZFThread::print_summary_info();
ysr@777 2218 }
ysr@777 2219 if (G1SummarizePopularity) {
ysr@777 2220 print_popularity_summary_info();
ysr@777 2221 }
ysr@777 2222 g1_policy()->print_yg_surv_rate_info();
ysr@777 2223
ysr@777 2224 GCOverheadReporter::printGCOverhead();
ysr@777 2225
ysr@777 2226 SpecializationStats::print();
ysr@777 2227 }
ysr@777 2228
ysr@777 2229
ysr@777 2230 int G1CollectedHeap::addr_to_arena_id(void* addr) const {
ysr@777 2231 HeapRegion* hr = heap_region_containing(addr);
ysr@777 2232 if (hr == NULL) {
ysr@777 2233 return 0;
ysr@777 2234 } else {
ysr@777 2235 return 1;
ysr@777 2236 }
ysr@777 2237 }
ysr@777 2238
ysr@777 2239 G1CollectedHeap* G1CollectedHeap::heap() {
ysr@777 2240 assert(_sh->kind() == CollectedHeap::G1CollectedHeap,
ysr@777 2241 "not a garbage-first heap");
ysr@777 2242 return _g1h;
ysr@777 2243 }
ysr@777 2244
ysr@777 2245 void G1CollectedHeap::gc_prologue(bool full /* Ignored */) {
ysr@777 2246 if (PrintHeapAtGC){
ysr@777 2247 gclog_or_tty->print_cr(" {Heap before GC collections=%d:", total_collections());
ysr@777 2248 Universe::print();
ysr@777 2249 }
ysr@777 2250 assert(InlineCacheBuffer::is_empty(), "should have cleaned up ICBuffer");
ysr@777 2251 // Call allocation profiler
ysr@777 2252 AllocationProfiler::iterate_since_last_gc();
ysr@777 2253 // Fill TLAB's and such
ysr@777 2254 ensure_parsability(true);
ysr@777 2255 }
ysr@777 2256
ysr@777 2257 void G1CollectedHeap::gc_epilogue(bool full /* Ignored */) {
ysr@777 2258 // FIXME: what is this about?
ysr@777 2259 // I'm ignoring the "fill_newgen()" call if "alloc_event_enabled"
ysr@777 2260 // is set.
ysr@777 2261 COMPILER2_PRESENT(assert(DerivedPointerTable::is_empty(),
ysr@777 2262 "derived pointer present"));
ysr@777 2263
ysr@777 2264 if (PrintHeapAtGC){
ysr@777 2265 gclog_or_tty->print_cr(" Heap after GC collections=%d:", total_collections());
ysr@777 2266 Universe::print();
ysr@777 2267 gclog_or_tty->print("} ");
ysr@777 2268 }
ysr@777 2269 }
ysr@777 2270
ysr@777 2271 void G1CollectedHeap::do_collection_pause() {
ysr@777 2272 // Read the GC count while holding the Heap_lock
ysr@777 2273 // we need to do this _before_ wait_for_cleanup_complete(), to
ysr@777 2274 // ensure that we do not give up the heap lock and potentially
ysr@777 2275 // pick up the wrong count
ysr@777 2276 int gc_count_before = SharedHeap::heap()->total_collections();
ysr@777 2277
ysr@777 2278 // Don't want to do a GC pause while cleanup is being completed!
ysr@777 2279 wait_for_cleanup_complete();
ysr@777 2280
ysr@777 2281 g1_policy()->record_stop_world_start();
ysr@777 2282 {
ysr@777 2283 MutexUnlocker mu(Heap_lock); // give up heap lock, execute gets it back
ysr@777 2284 VM_G1IncCollectionPause op(gc_count_before);
ysr@777 2285 VMThread::execute(&op);
ysr@777 2286 }
ysr@777 2287 }
ysr@777 2288
ysr@777 2289 void
ysr@777 2290 G1CollectedHeap::doConcurrentMark() {
ysr@777 2291 if (G1ConcMark) {
ysr@777 2292 MutexLockerEx x(CGC_lock, Mutex::_no_safepoint_check_flag);
ysr@777 2293 if (!_cmThread->in_progress()) {
ysr@777 2294 _cmThread->set_started();
ysr@777 2295 CGC_lock->notify();
ysr@777 2296 }
ysr@777 2297 }
ysr@777 2298 }
ysr@777 2299
ysr@777 2300 class VerifyMarkedObjsClosure: public ObjectClosure {
ysr@777 2301 G1CollectedHeap* _g1h;
ysr@777 2302 public:
ysr@777 2303 VerifyMarkedObjsClosure(G1CollectedHeap* g1h) : _g1h(g1h) {}
ysr@777 2304 void do_object(oop obj) {
ysr@777 2305 assert(obj->mark()->is_marked() ? !_g1h->is_obj_dead(obj) : true,
ysr@777 2306 "markandsweep mark should agree with concurrent deadness");
ysr@777 2307 }
ysr@777 2308 };
ysr@777 2309
ysr@777 2310 void
ysr@777 2311 G1CollectedHeap::checkConcurrentMark() {
ysr@777 2312 VerifyMarkedObjsClosure verifycl(this);
ysr@777 2313 doConcurrentMark();
ysr@777 2314 // MutexLockerEx x(getMarkBitMapLock(),
ysr@777 2315 // Mutex::_no_safepoint_check_flag);
ysr@777 2316 object_iterate(&verifycl);
ysr@777 2317 }
ysr@777 2318
ysr@777 2319 void G1CollectedHeap::do_sync_mark() {
ysr@777 2320 _cm->checkpointRootsInitial();
ysr@777 2321 _cm->markFromRoots();
ysr@777 2322 _cm->checkpointRootsFinal(false);
ysr@777 2323 }
ysr@777 2324
ysr@777 2325 // <NEW PREDICTION>
ysr@777 2326
ysr@777 2327 double G1CollectedHeap::predict_region_elapsed_time_ms(HeapRegion *hr,
ysr@777 2328 bool young) {
ysr@777 2329 return _g1_policy->predict_region_elapsed_time_ms(hr, young);
ysr@777 2330 }
ysr@777 2331
ysr@777 2332 void G1CollectedHeap::check_if_region_is_too_expensive(double
ysr@777 2333 predicted_time_ms) {
ysr@777 2334 _g1_policy->check_if_region_is_too_expensive(predicted_time_ms);
ysr@777 2335 }
ysr@777 2336
ysr@777 2337 size_t G1CollectedHeap::pending_card_num() {
ysr@777 2338 size_t extra_cards = 0;
ysr@777 2339 JavaThread *curr = Threads::first();
ysr@777 2340 while (curr != NULL) {
ysr@777 2341 DirtyCardQueue& dcq = curr->dirty_card_queue();
ysr@777 2342 extra_cards += dcq.size();
ysr@777 2343 curr = curr->next();
ysr@777 2344 }
ysr@777 2345 DirtyCardQueueSet& dcqs = JavaThread::dirty_card_queue_set();
ysr@777 2346 size_t buffer_size = dcqs.buffer_size();
ysr@777 2347 size_t buffer_num = dcqs.completed_buffers_num();
ysr@777 2348 return buffer_size * buffer_num + extra_cards;
ysr@777 2349 }
ysr@777 2350
ysr@777 2351 size_t G1CollectedHeap::max_pending_card_num() {
ysr@777 2352 DirtyCardQueueSet& dcqs = JavaThread::dirty_card_queue_set();
ysr@777 2353 size_t buffer_size = dcqs.buffer_size();
ysr@777 2354 size_t buffer_num = dcqs.completed_buffers_num();
ysr@777 2355 int thread_num = Threads::number_of_threads();
ysr@777 2356 return (buffer_num + thread_num) * buffer_size;
ysr@777 2357 }
ysr@777 2358
ysr@777 2359 size_t G1CollectedHeap::cards_scanned() {
ysr@777 2360 HRInto_G1RemSet* g1_rset = (HRInto_G1RemSet*) g1_rem_set();
ysr@777 2361 return g1_rset->cardsScanned();
ysr@777 2362 }
ysr@777 2363
ysr@777 2364 void
ysr@777 2365 G1CollectedHeap::setup_surviving_young_words() {
ysr@777 2366 guarantee( _surviving_young_words == NULL, "pre-condition" );
ysr@777 2367 size_t array_length = g1_policy()->young_cset_length();
ysr@777 2368 _surviving_young_words = NEW_C_HEAP_ARRAY(size_t, array_length);
ysr@777 2369 if (_surviving_young_words == NULL) {
ysr@777 2370 vm_exit_out_of_memory(sizeof(size_t) * array_length,
ysr@777 2371 "Not enough space for young surv words summary.");
ysr@777 2372 }
ysr@777 2373 memset(_surviving_young_words, 0, array_length * sizeof(size_t));
ysr@777 2374 for (size_t i = 0; i < array_length; ++i) {
ysr@777 2375 guarantee( _surviving_young_words[i] == 0, "invariant" );
ysr@777 2376 }
ysr@777 2377 }
ysr@777 2378
ysr@777 2379 void
ysr@777 2380 G1CollectedHeap::update_surviving_young_words(size_t* surv_young_words) {
ysr@777 2381 MutexLockerEx x(ParGCRareEvent_lock, Mutex::_no_safepoint_check_flag);
ysr@777 2382 size_t array_length = g1_policy()->young_cset_length();
ysr@777 2383 for (size_t i = 0; i < array_length; ++i)
ysr@777 2384 _surviving_young_words[i] += surv_young_words[i];
ysr@777 2385 }
ysr@777 2386
ysr@777 2387 void
ysr@777 2388 G1CollectedHeap::cleanup_surviving_young_words() {
ysr@777 2389 guarantee( _surviving_young_words != NULL, "pre-condition" );
ysr@777 2390 FREE_C_HEAP_ARRAY(size_t, _surviving_young_words);
ysr@777 2391 _surviving_young_words = NULL;
ysr@777 2392 }
ysr@777 2393
ysr@777 2394 // </NEW PREDICTION>
ysr@777 2395
ysr@777 2396 void
ysr@777 2397 G1CollectedHeap::do_collection_pause_at_safepoint(HeapRegion* popular_region) {
ysr@777 2398 char verbose_str[128];
ysr@777 2399 sprintf(verbose_str, "GC pause ");
ysr@777 2400 if (popular_region != NULL)
ysr@777 2401 strcat(verbose_str, "(popular)");
ysr@777 2402 else if (g1_policy()->in_young_gc_mode()) {
ysr@777 2403 if (g1_policy()->full_young_gcs())
ysr@777 2404 strcat(verbose_str, "(young)");
ysr@777 2405 else
ysr@777 2406 strcat(verbose_str, "(partial)");
ysr@777 2407 }
ysr@777 2408 bool reset_should_initiate_conc_mark = false;
ysr@777 2409 if (popular_region != NULL && g1_policy()->should_initiate_conc_mark()) {
ysr@777 2410 // we currently do not allow an initial mark phase to be piggy-backed
ysr@777 2411 // on a popular pause
ysr@777 2412 reset_should_initiate_conc_mark = true;
ysr@777 2413 g1_policy()->unset_should_initiate_conc_mark();
ysr@777 2414 }
ysr@777 2415 if (g1_policy()->should_initiate_conc_mark())
ysr@777 2416 strcat(verbose_str, " (initial-mark)");
ysr@777 2417
ysr@777 2418 GCCauseSetter x(this, (popular_region == NULL ?
ysr@777 2419 GCCause::_g1_inc_collection_pause :
ysr@777 2420 GCCause::_g1_pop_region_collection_pause));
ysr@777 2421
ysr@777 2422 // if PrintGCDetails is on, we'll print long statistics information
ysr@777 2423 // in the collector policy code, so let's not print this as the output
ysr@777 2424 // is messy if we do.
ysr@777 2425 gclog_or_tty->date_stamp(PrintGC && PrintGCDateStamps);
ysr@777 2426 TraceCPUTime tcpu(PrintGCDetails, true, gclog_or_tty);
ysr@777 2427 TraceTime t(verbose_str, PrintGC && !PrintGCDetails, true, gclog_or_tty);
ysr@777 2428
ysr@777 2429 ResourceMark rm;
ysr@777 2430 assert(SafepointSynchronize::is_at_safepoint(), "should be at safepoint");
ysr@777 2431 assert(Thread::current() == VMThread::vm_thread(), "should be in vm thread");
ysr@777 2432 guarantee(!is_gc_active(), "collection is not reentrant");
ysr@777 2433 assert(regions_accounted_for(), "Region leakage!");
iveresov@788 2434
iveresov@788 2435 increment_gc_time_stamp();
ysr@777 2436
ysr@777 2437 if (g1_policy()->in_young_gc_mode()) {
ysr@777 2438 assert(check_young_list_well_formed(),
ysr@777 2439 "young list should be well formed");
ysr@777 2440 }
ysr@777 2441
ysr@777 2442 if (GC_locker::is_active()) {
ysr@777 2443 return; // GC is disabled (e.g. JNI GetXXXCritical operation)
ysr@777 2444 }
ysr@777 2445
ysr@777 2446 bool abandoned = false;
ysr@777 2447 { // Call to jvmpi::post_class_unload_events must occur outside of active GC
ysr@777 2448 IsGCActiveMark x;
ysr@777 2449
ysr@777 2450 gc_prologue(false);
ysr@777 2451 increment_total_collections();
ysr@777 2452
ysr@777 2453 #if G1_REM_SET_LOGGING
ysr@777 2454 gclog_or_tty->print_cr("\nJust chose CS, heap:");
ysr@777 2455 print();
ysr@777 2456 #endif
ysr@777 2457
ysr@777 2458 if (VerifyBeforeGC && total_collections() >= VerifyGCStartAt) {
ysr@777 2459 HandleMark hm; // Discard invalid handles created during verification
ysr@777 2460 prepare_for_verify();
ysr@777 2461 gclog_or_tty->print(" VerifyBeforeGC:");
ysr@777 2462 Universe::verify(false);
ysr@777 2463 }
ysr@777 2464
ysr@777 2465 COMPILER2_PRESENT(DerivedPointerTable::clear());
ysr@777 2466
ysr@888 2467 // We want to turn off ref discovery, if necessary, and turn it back on
ysr@777 2468 // on again later if we do.
ysr@777 2469 bool was_enabled = ref_processor()->discovery_enabled();
ysr@777 2470 if (was_enabled) ref_processor()->disable_discovery();
ysr@777 2471
ysr@777 2472 // Forget the current alloc region (we might even choose it to be part
ysr@777 2473 // of the collection set!).
ysr@777 2474 abandon_cur_alloc_region();
ysr@777 2475
ysr@777 2476 // The elapsed time induced by the start time below deliberately elides
ysr@777 2477 // the possible verification above.
ysr@777 2478 double start_time_sec = os::elapsedTime();
ysr@777 2479 GCOverheadReporter::recordSTWStart(start_time_sec);
ysr@777 2480 size_t start_used_bytes = used();
ysr@777 2481 if (!G1ConcMark) {
ysr@777 2482 do_sync_mark();
ysr@777 2483 }
ysr@777 2484
ysr@777 2485 g1_policy()->record_collection_pause_start(start_time_sec,
ysr@777 2486 start_used_bytes);
ysr@777 2487
ysr@777 2488 #if SCAN_ONLY_VERBOSE
ysr@777 2489 _young_list->print();
ysr@777 2490 #endif // SCAN_ONLY_VERBOSE
ysr@777 2491
ysr@777 2492 if (g1_policy()->should_initiate_conc_mark()) {
ysr@777 2493 concurrent_mark()->checkpointRootsInitialPre();
ysr@777 2494 }
ysr@777 2495 save_marks();
ysr@777 2496
ysr@777 2497 // We must do this before any possible evacuation that should propogate
ysr@777 2498 // marks, including evacuation of popular objects in a popular pause.
ysr@777 2499 if (mark_in_progress()) {
ysr@777 2500 double start_time_sec = os::elapsedTime();
ysr@777 2501
ysr@777 2502 _cm->drainAllSATBBuffers();
ysr@777 2503 double finish_mark_ms = (os::elapsedTime() - start_time_sec) * 1000.0;
ysr@777 2504 g1_policy()->record_satb_drain_time(finish_mark_ms);
ysr@777 2505
ysr@777 2506 }
ysr@777 2507 // Record the number of elements currently on the mark stack, so we
ysr@777 2508 // only iterate over these. (Since evacuation may add to the mark
ysr@777 2509 // stack, doing more exposes race conditions.) If no mark is in
ysr@777 2510 // progress, this will be zero.
ysr@777 2511 _cm->set_oops_do_bound();
ysr@777 2512
ysr@777 2513 assert(regions_accounted_for(), "Region leakage.");
ysr@777 2514
ysr@777 2515 bool abandoned = false;
ysr@777 2516
ysr@777 2517 if (mark_in_progress())
ysr@777 2518 concurrent_mark()->newCSet();
ysr@777 2519
ysr@777 2520 // Now choose the CS.
ysr@777 2521 if (popular_region == NULL) {
ysr@777 2522 g1_policy()->choose_collection_set();
ysr@777 2523 } else {
ysr@777 2524 // We may be evacuating a single region (for popularity).
ysr@777 2525 g1_policy()->record_popular_pause_preamble_start();
ysr@777 2526 popularity_pause_preamble(popular_region);
ysr@777 2527 g1_policy()->record_popular_pause_preamble_end();
ysr@777 2528 abandoned = (g1_policy()->collection_set() == NULL);
ysr@777 2529 // Now we allow more regions to be added (we have to collect
ysr@777 2530 // all popular regions).
ysr@777 2531 if (!abandoned) {
ysr@777 2532 g1_policy()->choose_collection_set(popular_region);
ysr@777 2533 }
ysr@777 2534 }
ysr@777 2535 // We may abandon a pause if we find no region that will fit in the MMU
ysr@777 2536 // pause.
ysr@777 2537 abandoned = (g1_policy()->collection_set() == NULL);
ysr@777 2538
ysr@777 2539 // Nothing to do if we were unable to choose a collection set.
ysr@777 2540 if (!abandoned) {
ysr@777 2541 #if G1_REM_SET_LOGGING
ysr@777 2542 gclog_or_tty->print_cr("\nAfter pause, heap:");
ysr@777 2543 print();
ysr@777 2544 #endif
ysr@777 2545
ysr@777 2546 setup_surviving_young_words();
ysr@777 2547
ysr@777 2548 // Set up the gc allocation regions.
ysr@777 2549 get_gc_alloc_regions();
ysr@777 2550
ysr@777 2551 // Actually do the work...
ysr@777 2552 evacuate_collection_set();
ysr@777 2553 free_collection_set(g1_policy()->collection_set());
ysr@777 2554 g1_policy()->clear_collection_set();
ysr@777 2555
ysr@777 2556 if (popular_region != NULL) {
ysr@777 2557 // We have to wait until now, because we don't want the region to
ysr@777 2558 // be rescheduled for pop-evac during RS update.
ysr@777 2559 popular_region->set_popular_pending(false);
ysr@777 2560 }
ysr@777 2561
ysr@777 2562 release_gc_alloc_regions();
ysr@777 2563
ysr@777 2564 cleanup_surviving_young_words();
ysr@777 2565
ysr@777 2566 if (g1_policy()->in_young_gc_mode()) {
ysr@777 2567 _young_list->reset_sampled_info();
ysr@777 2568 assert(check_young_list_empty(true),
ysr@777 2569 "young list should be empty");
ysr@777 2570
ysr@777 2571 #if SCAN_ONLY_VERBOSE
ysr@777 2572 _young_list->print();
ysr@777 2573 #endif // SCAN_ONLY_VERBOSE
ysr@777 2574
ysr@777 2575 _young_list->reset_auxilary_lists();
ysr@777 2576 }
ysr@777 2577 } else {
ysr@777 2578 COMPILER2_PRESENT(DerivedPointerTable::update_pointers());
ysr@777 2579 }
ysr@777 2580
ysr@777 2581 if (evacuation_failed()) {
ysr@777 2582 _summary_bytes_used = recalculate_used();
ysr@777 2583 } else {
ysr@777 2584 // The "used" of the the collection set have already been subtracted
ysr@777 2585 // when they were freed. Add in the bytes evacuated.
ysr@777 2586 _summary_bytes_used += g1_policy()->bytes_in_to_space();
ysr@777 2587 }
ysr@777 2588
ysr@777 2589 if (g1_policy()->in_young_gc_mode() &&
ysr@777 2590 g1_policy()->should_initiate_conc_mark()) {
ysr@777 2591 concurrent_mark()->checkpointRootsInitialPost();
ysr@777 2592 set_marking_started();
ysr@777 2593 doConcurrentMark();
ysr@777 2594 }
ysr@777 2595
ysr@777 2596 #if SCAN_ONLY_VERBOSE
ysr@777 2597 _young_list->print();
ysr@777 2598 #endif // SCAN_ONLY_VERBOSE
ysr@777 2599
ysr@777 2600 double end_time_sec = os::elapsedTime();
ysr@777 2601 g1_policy()->record_pause_time((end_time_sec - start_time_sec)*1000.0);
ysr@777 2602 GCOverheadReporter::recordSTWEnd(end_time_sec);
ysr@777 2603 g1_policy()->record_collection_pause_end(popular_region != NULL,
ysr@777 2604 abandoned);
ysr@777 2605
ysr@777 2606 assert(regions_accounted_for(), "Region leakage.");
ysr@777 2607
ysr@777 2608 if (VerifyAfterGC && total_collections() >= VerifyGCStartAt) {
ysr@777 2609 HandleMark hm; // Discard invalid handles created during verification
ysr@777 2610 gclog_or_tty->print(" VerifyAfterGC:");
ysr@777 2611 Universe::verify(false);
ysr@777 2612 }
ysr@777 2613
ysr@777 2614 if (was_enabled) ref_processor()->enable_discovery();
ysr@777 2615
ysr@777 2616 {
ysr@777 2617 size_t expand_bytes = g1_policy()->expansion_amount();
ysr@777 2618 if (expand_bytes > 0) {
ysr@777 2619 size_t bytes_before = capacity();
ysr@777 2620 expand(expand_bytes);
ysr@777 2621 }
ysr@777 2622 }
ysr@777 2623
ysr@777 2624 if (mark_in_progress())
ysr@777 2625 concurrent_mark()->update_g1_committed();
ysr@777 2626
ysr@777 2627 gc_epilogue(false);
ysr@777 2628 }
ysr@777 2629
ysr@777 2630 assert(verify_region_lists(), "Bad region lists.");
ysr@777 2631
ysr@777 2632 if (reset_should_initiate_conc_mark)
ysr@777 2633 g1_policy()->set_should_initiate_conc_mark();
ysr@777 2634
ysr@777 2635 if (ExitAfterGCNum > 0 && total_collections() == ExitAfterGCNum) {
ysr@777 2636 gclog_or_tty->print_cr("Stopping after GC #%d", ExitAfterGCNum);
ysr@777 2637 print_tracing_info();
ysr@777 2638 vm_exit(-1);
ysr@777 2639 }
ysr@777 2640 }
ysr@777 2641
ysr@777 2642 void G1CollectedHeap::set_gc_alloc_region(int purpose, HeapRegion* r) {
ysr@777 2643 assert(purpose >= 0 && purpose < GCAllocPurposeCount, "invalid purpose");
ysr@777 2644 HeapWord* original_top = NULL;
ysr@777 2645 if (r != NULL)
ysr@777 2646 original_top = r->top();
ysr@777 2647
ysr@777 2648 // We will want to record the used space in r as being there before gc.
ysr@777 2649 // One we install it as a GC alloc region it's eligible for allocation.
ysr@777 2650 // So record it now and use it later.
ysr@777 2651 size_t r_used = 0;
ysr@777 2652 if (r != NULL) {
ysr@777 2653 r_used = r->used();
ysr@777 2654
ysr@777 2655 if (ParallelGCThreads > 0) {
ysr@777 2656 // need to take the lock to guard against two threads calling
ysr@777 2657 // get_gc_alloc_region concurrently (very unlikely but...)
ysr@777 2658 MutexLockerEx x(ParGCRareEvent_lock, Mutex::_no_safepoint_check_flag);
ysr@777 2659 r->save_marks();
ysr@777 2660 }
ysr@777 2661 }
ysr@777 2662 HeapRegion* old_alloc_region = _gc_alloc_regions[purpose];
ysr@777 2663 _gc_alloc_regions[purpose] = r;
ysr@777 2664 if (old_alloc_region != NULL) {
ysr@777 2665 // Replace aliases too.
ysr@777 2666 for (int ap = 0; ap < GCAllocPurposeCount; ++ap) {
ysr@777 2667 if (_gc_alloc_regions[ap] == old_alloc_region) {
ysr@777 2668 _gc_alloc_regions[ap] = r;
ysr@777 2669 }
ysr@777 2670 }
ysr@777 2671 }
ysr@777 2672 if (r != NULL) {
ysr@777 2673 push_gc_alloc_region(r);
ysr@777 2674 if (mark_in_progress() && original_top != r->next_top_at_mark_start()) {
ysr@777 2675 // We are using a region as a GC alloc region after it has been used
ysr@777 2676 // as a mutator allocation region during the current marking cycle.
ysr@777 2677 // The mutator-allocated objects are currently implicitly marked, but
ysr@777 2678 // when we move hr->next_top_at_mark_start() forward at the the end
ysr@777 2679 // of the GC pause, they won't be. We therefore mark all objects in
ysr@777 2680 // the "gap". We do this object-by-object, since marking densely
ysr@777 2681 // does not currently work right with marking bitmap iteration. This
ysr@777 2682 // means we rely on TLAB filling at the start of pauses, and no
ysr@777 2683 // "resuscitation" of filled TLAB's. If we want to do this, we need
ysr@777 2684 // to fix the marking bitmap iteration.
ysr@777 2685 HeapWord* curhw = r->next_top_at_mark_start();
ysr@777 2686 HeapWord* t = original_top;
ysr@777 2687
ysr@777 2688 while (curhw < t) {
ysr@777 2689 oop cur = (oop)curhw;
ysr@777 2690 // We'll assume parallel for generality. This is rare code.
ysr@777 2691 concurrent_mark()->markAndGrayObjectIfNecessary(cur); // can't we just mark them?
ysr@777 2692 curhw = curhw + cur->size();
ysr@777 2693 }
ysr@777 2694 assert(curhw == t, "Should have parsed correctly.");
ysr@777 2695 }
ysr@777 2696 if (G1PolicyVerbose > 1) {
ysr@777 2697 gclog_or_tty->print("New alloc region ["PTR_FORMAT", "PTR_FORMAT", " PTR_FORMAT") "
ysr@777 2698 "for survivors:", r->bottom(), original_top, r->end());
ysr@777 2699 r->print();
ysr@777 2700 }
ysr@777 2701 g1_policy()->record_before_bytes(r_used);
ysr@777 2702 }
ysr@777 2703 }
ysr@777 2704
ysr@777 2705 void G1CollectedHeap::push_gc_alloc_region(HeapRegion* hr) {
ysr@777 2706 assert(Thread::current()->is_VM_thread() ||
ysr@777 2707 par_alloc_during_gc_lock()->owned_by_self(), "Precondition");
ysr@777 2708 assert(!hr->is_gc_alloc_region() && !hr->in_collection_set(),
ysr@777 2709 "Precondition.");
ysr@777 2710 hr->set_is_gc_alloc_region(true);
ysr@777 2711 hr->set_next_gc_alloc_region(_gc_alloc_region_list);
ysr@777 2712 _gc_alloc_region_list = hr;
ysr@777 2713 }
ysr@777 2714
ysr@777 2715 #ifdef G1_DEBUG
ysr@777 2716 class FindGCAllocRegion: public HeapRegionClosure {
ysr@777 2717 public:
ysr@777 2718 bool doHeapRegion(HeapRegion* r) {
ysr@777 2719 if (r->is_gc_alloc_region()) {
ysr@777 2720 gclog_or_tty->print_cr("Region %d ["PTR_FORMAT"...] is still a gc_alloc_region.",
ysr@777 2721 r->hrs_index(), r->bottom());
ysr@777 2722 }
ysr@777 2723 return false;
ysr@777 2724 }
ysr@777 2725 };
ysr@777 2726 #endif // G1_DEBUG
ysr@777 2727
ysr@777 2728 void G1CollectedHeap::forget_alloc_region_list() {
ysr@777 2729 assert(Thread::current()->is_VM_thread(), "Precondition");
ysr@777 2730 while (_gc_alloc_region_list != NULL) {
ysr@777 2731 HeapRegion* r = _gc_alloc_region_list;
ysr@777 2732 assert(r->is_gc_alloc_region(), "Invariant.");
ysr@777 2733 _gc_alloc_region_list = r->next_gc_alloc_region();
ysr@777 2734 r->set_next_gc_alloc_region(NULL);
ysr@777 2735 r->set_is_gc_alloc_region(false);
ysr@777 2736 if (r->is_empty()) {
ysr@777 2737 ++_free_regions;
ysr@777 2738 }
ysr@777 2739 }
ysr@777 2740 #ifdef G1_DEBUG
ysr@777 2741 FindGCAllocRegion fa;
ysr@777 2742 heap_region_iterate(&fa);
ysr@777 2743 #endif // G1_DEBUG
ysr@777 2744 }
ysr@777 2745
ysr@777 2746
ysr@777 2747 bool G1CollectedHeap::check_gc_alloc_regions() {
ysr@777 2748 // TODO: allocation regions check
ysr@777 2749 return true;
ysr@777 2750 }
ysr@777 2751
ysr@777 2752 void G1CollectedHeap::get_gc_alloc_regions() {
ysr@777 2753 for (int ap = 0; ap < GCAllocPurposeCount; ++ap) {
ysr@777 2754 // Create new GC alloc regions.
ysr@777 2755 HeapRegion* alloc_region = _gc_alloc_regions[ap];
ysr@777 2756 // Clear this alloc region, so that in case it turns out to be
ysr@777 2757 // unacceptable, we end up with no allocation region, rather than a bad
ysr@777 2758 // one.
ysr@777 2759 _gc_alloc_regions[ap] = NULL;
ysr@777 2760 if (alloc_region == NULL || alloc_region->in_collection_set()) {
ysr@777 2761 // Can't re-use old one. Allocate a new one.
ysr@777 2762 alloc_region = newAllocRegionWithExpansion(ap, 0);
ysr@777 2763 }
ysr@777 2764 if (alloc_region != NULL) {
ysr@777 2765 set_gc_alloc_region(ap, alloc_region);
ysr@777 2766 }
ysr@777 2767 }
ysr@777 2768 // Set alternative regions for allocation purposes that have reached
ysr@777 2769 // thier limit.
ysr@777 2770 for (int ap = 0; ap < GCAllocPurposeCount; ++ap) {
ysr@777 2771 GCAllocPurpose alt_purpose = g1_policy()->alternative_purpose(ap);
ysr@777 2772 if (_gc_alloc_regions[ap] == NULL && alt_purpose != ap) {
ysr@777 2773 _gc_alloc_regions[ap] = _gc_alloc_regions[alt_purpose];
ysr@777 2774 }
ysr@777 2775 }
ysr@777 2776 assert(check_gc_alloc_regions(), "alloc regions messed up");
ysr@777 2777 }
ysr@777 2778
ysr@777 2779 void G1CollectedHeap::release_gc_alloc_regions() {
ysr@777 2780 // We keep a separate list of all regions that have been alloc regions in
ysr@777 2781 // the current collection pause. Forget that now.
ysr@777 2782 forget_alloc_region_list();
ysr@777 2783
ysr@777 2784 // The current alloc regions contain objs that have survived
ysr@777 2785 // collection. Make them no longer GC alloc regions.
ysr@777 2786 for (int ap = 0; ap < GCAllocPurposeCount; ++ap) {
ysr@777 2787 HeapRegion* r = _gc_alloc_regions[ap];
ysr@777 2788 if (r != NULL && r->is_empty()) {
ysr@777 2789 {
ysr@777 2790 MutexLockerEx x(ZF_mon, Mutex::_no_safepoint_check_flag);
ysr@777 2791 r->set_zero_fill_complete();
ysr@777 2792 put_free_region_on_list_locked(r);
ysr@777 2793 }
ysr@777 2794 }
ysr@777 2795 // set_gc_alloc_region will also NULLify all aliases to the region
ysr@777 2796 set_gc_alloc_region(ap, NULL);
ysr@777 2797 _gc_alloc_region_counts[ap] = 0;
ysr@777 2798 }
ysr@777 2799 }
ysr@777 2800
ysr@777 2801 void G1CollectedHeap::init_for_evac_failure(OopsInHeapRegionClosure* cl) {
ysr@777 2802 _drain_in_progress = false;
ysr@777 2803 set_evac_failure_closure(cl);
ysr@777 2804 _evac_failure_scan_stack = new (ResourceObj::C_HEAP) GrowableArray<oop>(40, true);
ysr@777 2805 }
ysr@777 2806
ysr@777 2807 void G1CollectedHeap::finalize_for_evac_failure() {
ysr@777 2808 assert(_evac_failure_scan_stack != NULL &&
ysr@777 2809 _evac_failure_scan_stack->length() == 0,
ysr@777 2810 "Postcondition");
ysr@777 2811 assert(!_drain_in_progress, "Postcondition");
ysr@777 2812 // Don't have to delete, since the scan stack is a resource object.
ysr@777 2813 _evac_failure_scan_stack = NULL;
ysr@777 2814 }
ysr@777 2815
ysr@777 2816
ysr@777 2817
ysr@777 2818 // *** Sequential G1 Evacuation
ysr@777 2819
ysr@777 2820 HeapWord* G1CollectedHeap::allocate_during_gc(GCAllocPurpose purpose, size_t word_size) {
ysr@777 2821 HeapRegion* alloc_region = _gc_alloc_regions[purpose];
ysr@777 2822 // let the caller handle alloc failure
ysr@777 2823 if (alloc_region == NULL) return NULL;
ysr@777 2824 assert(isHumongous(word_size) || !alloc_region->isHumongous(),
ysr@777 2825 "Either the object is humongous or the region isn't");
ysr@777 2826 HeapWord* block = alloc_region->allocate(word_size);
ysr@777 2827 if (block == NULL) {
ysr@777 2828 block = allocate_during_gc_slow(purpose, alloc_region, false, word_size);
ysr@777 2829 }
ysr@777 2830 return block;
ysr@777 2831 }
ysr@777 2832
ysr@777 2833 class G1IsAliveClosure: public BoolObjectClosure {
ysr@777 2834 G1CollectedHeap* _g1;
ysr@777 2835 public:
ysr@777 2836 G1IsAliveClosure(G1CollectedHeap* g1) : _g1(g1) {}
ysr@777 2837 void do_object(oop p) { assert(false, "Do not call."); }
ysr@777 2838 bool do_object_b(oop p) {
ysr@777 2839 // It is reachable if it is outside the collection set, or is inside
ysr@777 2840 // and forwarded.
ysr@777 2841
ysr@777 2842 #ifdef G1_DEBUG
ysr@777 2843 gclog_or_tty->print_cr("is alive "PTR_FORMAT" in CS %d forwarded %d overall %d",
ysr@777 2844 (void*) p, _g1->obj_in_cs(p), p->is_forwarded(),
ysr@777 2845 !_g1->obj_in_cs(p) || p->is_forwarded());
ysr@777 2846 #endif // G1_DEBUG
ysr@777 2847
ysr@777 2848 return !_g1->obj_in_cs(p) || p->is_forwarded();
ysr@777 2849 }
ysr@777 2850 };
ysr@777 2851
ysr@777 2852 class G1KeepAliveClosure: public OopClosure {
ysr@777 2853 G1CollectedHeap* _g1;
ysr@777 2854 public:
ysr@777 2855 G1KeepAliveClosure(G1CollectedHeap* g1) : _g1(g1) {}
ysr@777 2856 void do_oop(narrowOop* p) {
ysr@777 2857 guarantee(false, "NYI");
ysr@777 2858 }
ysr@777 2859 void do_oop(oop* p) {
ysr@777 2860 oop obj = *p;
ysr@777 2861 #ifdef G1_DEBUG
ysr@777 2862 if (PrintGC && Verbose) {
ysr@777 2863 gclog_or_tty->print_cr("keep alive *"PTR_FORMAT" = "PTR_FORMAT" "PTR_FORMAT,
ysr@777 2864 p, (void*) obj, (void*) *p);
ysr@777 2865 }
ysr@777 2866 #endif // G1_DEBUG
ysr@777 2867
ysr@777 2868 if (_g1->obj_in_cs(obj)) {
ysr@777 2869 assert( obj->is_forwarded(), "invariant" );
ysr@777 2870 *p = obj->forwardee();
ysr@777 2871
ysr@777 2872 #ifdef G1_DEBUG
ysr@777 2873 gclog_or_tty->print_cr(" in CSet: moved "PTR_FORMAT" -> "PTR_FORMAT,
ysr@777 2874 (void*) obj, (void*) *p);
ysr@777 2875 #endif // G1_DEBUG
ysr@777 2876 }
ysr@777 2877 }
ysr@777 2878 };
ysr@777 2879
ysr@777 2880 class RecreateRSetEntriesClosure: public OopClosure {
ysr@777 2881 private:
ysr@777 2882 G1CollectedHeap* _g1;
ysr@777 2883 G1RemSet* _g1_rem_set;
ysr@777 2884 HeapRegion* _from;
ysr@777 2885 public:
ysr@777 2886 RecreateRSetEntriesClosure(G1CollectedHeap* g1, HeapRegion* from) :
ysr@777 2887 _g1(g1), _g1_rem_set(g1->g1_rem_set()), _from(from)
ysr@777 2888 {}
ysr@777 2889
ysr@777 2890 void do_oop(narrowOop* p) {
ysr@777 2891 guarantee(false, "NYI");
ysr@777 2892 }
ysr@777 2893 void do_oop(oop* p) {
ysr@777 2894 assert(_from->is_in_reserved(p), "paranoia");
ysr@777 2895 if (*p != NULL) {
ysr@777 2896 _g1_rem_set->write_ref(_from, p);
ysr@777 2897 }
ysr@777 2898 }
ysr@777 2899 };
ysr@777 2900
ysr@777 2901 class RemoveSelfPointerClosure: public ObjectClosure {
ysr@777 2902 private:
ysr@777 2903 G1CollectedHeap* _g1;
ysr@777 2904 ConcurrentMark* _cm;
ysr@777 2905 HeapRegion* _hr;
ysr@777 2906 size_t _prev_marked_bytes;
ysr@777 2907 size_t _next_marked_bytes;
ysr@777 2908 public:
ysr@777 2909 RemoveSelfPointerClosure(G1CollectedHeap* g1, HeapRegion* hr) :
ysr@777 2910 _g1(g1), _cm(_g1->concurrent_mark()), _hr(hr),
ysr@777 2911 _prev_marked_bytes(0), _next_marked_bytes(0)
ysr@777 2912 {}
ysr@777 2913
ysr@777 2914 size_t prev_marked_bytes() { return _prev_marked_bytes; }
ysr@777 2915 size_t next_marked_bytes() { return _next_marked_bytes; }
ysr@777 2916
iveresov@787 2917 // The original idea here was to coalesce evacuated and dead objects.
iveresov@787 2918 // However that caused complications with the block offset table (BOT).
iveresov@787 2919 // In particular if there were two TLABs, one of them partially refined.
iveresov@787 2920 // |----- TLAB_1--------|----TLAB_2-~~~(partially refined part)~~~|
iveresov@787 2921 // The BOT entries of the unrefined part of TLAB_2 point to the start
iveresov@787 2922 // of TLAB_2. If the last object of the TLAB_1 and the first object
iveresov@787 2923 // of TLAB_2 are coalesced, then the cards of the unrefined part
iveresov@787 2924 // would point into middle of the filler object.
iveresov@787 2925 //
iveresov@787 2926 // The current approach is to not coalesce and leave the BOT contents intact.
iveresov@787 2927 void do_object(oop obj) {
iveresov@787 2928 if (obj->is_forwarded() && obj->forwardee() == obj) {
iveresov@787 2929 // The object failed to move.
iveresov@787 2930 assert(!_g1->is_obj_dead(obj), "We should not be preserving dead objs.");
iveresov@787 2931 _cm->markPrev(obj);
iveresov@787 2932 assert(_cm->isPrevMarked(obj), "Should be marked!");
iveresov@787 2933 _prev_marked_bytes += (obj->size() * HeapWordSize);
iveresov@787 2934 if (_g1->mark_in_progress() && !_g1->is_obj_ill(obj)) {
iveresov@787 2935 _cm->markAndGrayObjectIfNecessary(obj);
iveresov@787 2936 }
iveresov@787 2937 obj->set_mark(markOopDesc::prototype());
iveresov@787 2938 // While we were processing RSet buffers during the
iveresov@787 2939 // collection, we actually didn't scan any cards on the
iveresov@787 2940 // collection set, since we didn't want to update remebered
iveresov@787 2941 // sets with entries that point into the collection set, given
iveresov@787 2942 // that live objects fromthe collection set are about to move
iveresov@787 2943 // and such entries will be stale very soon. This change also
iveresov@787 2944 // dealt with a reliability issue which involved scanning a
iveresov@787 2945 // card in the collection set and coming across an array that
iveresov@787 2946 // was being chunked and looking malformed. The problem is
iveresov@787 2947 // that, if evacuation fails, we might have remembered set
iveresov@787 2948 // entries missing given that we skipped cards on the
iveresov@787 2949 // collection set. So, we'll recreate such entries now.
iveresov@787 2950 RecreateRSetEntriesClosure cl(_g1, _hr);
iveresov@787 2951 obj->oop_iterate(&cl);
iveresov@787 2952 assert(_cm->isPrevMarked(obj), "Should be marked!");
iveresov@787 2953 } else {
iveresov@787 2954 // The object has been either evacuated or is dead. Fill it with a
iveresov@787 2955 // dummy object.
iveresov@787 2956 MemRegion mr((HeapWord*)obj, obj->size());
ysr@777 2957 SharedHeap::fill_region_with_object(mr);
ysr@777 2958 _cm->clearRangeBothMaps(mr);
ysr@777 2959 }
ysr@777 2960 }
ysr@777 2961 };
ysr@777 2962
ysr@777 2963 void G1CollectedHeap::remove_self_forwarding_pointers() {
ysr@777 2964 HeapRegion* cur = g1_policy()->collection_set();
ysr@777 2965
ysr@777 2966 while (cur != NULL) {
ysr@777 2967 assert(g1_policy()->assertMarkedBytesDataOK(), "Should be!");
ysr@777 2968
ysr@777 2969 if (cur->evacuation_failed()) {
ysr@777 2970 RemoveSelfPointerClosure rspc(_g1h, cur);
ysr@777 2971 assert(cur->in_collection_set(), "bad CS");
ysr@777 2972 cur->object_iterate(&rspc);
ysr@777 2973
ysr@777 2974 // A number of manipulations to make the TAMS be the current top,
ysr@777 2975 // and the marked bytes be the ones observed in the iteration.
ysr@777 2976 if (_g1h->concurrent_mark()->at_least_one_mark_complete()) {
ysr@777 2977 // The comments below are the postconditions achieved by the
ysr@777 2978 // calls. Note especially the last such condition, which says that
ysr@777 2979 // the count of marked bytes has been properly restored.
ysr@777 2980 cur->note_start_of_marking(false);
ysr@777 2981 // _next_top_at_mark_start == top, _next_marked_bytes == 0
ysr@777 2982 cur->add_to_marked_bytes(rspc.prev_marked_bytes());
ysr@777 2983 // _next_marked_bytes == prev_marked_bytes.
ysr@777 2984 cur->note_end_of_marking();
ysr@777 2985 // _prev_top_at_mark_start == top(),
ysr@777 2986 // _prev_marked_bytes == prev_marked_bytes
ysr@777 2987 }
ysr@777 2988 // If there is no mark in progress, we modified the _next variables
ysr@777 2989 // above needlessly, but harmlessly.
ysr@777 2990 if (_g1h->mark_in_progress()) {
ysr@777 2991 cur->note_start_of_marking(false);
ysr@777 2992 // _next_top_at_mark_start == top, _next_marked_bytes == 0
ysr@777 2993 // _next_marked_bytes == next_marked_bytes.
ysr@777 2994 }
ysr@777 2995
ysr@777 2996 // Now make sure the region has the right index in the sorted array.
ysr@777 2997 g1_policy()->note_change_in_marked_bytes(cur);
ysr@777 2998 }
ysr@777 2999 cur = cur->next_in_collection_set();
ysr@777 3000 }
ysr@777 3001 assert(g1_policy()->assertMarkedBytesDataOK(), "Should be!");
ysr@777 3002
ysr@777 3003 // Now restore saved marks, if any.
ysr@777 3004 if (_objs_with_preserved_marks != NULL) {
ysr@777 3005 assert(_preserved_marks_of_objs != NULL, "Both or none.");
ysr@777 3006 assert(_objs_with_preserved_marks->length() ==
ysr@777 3007 _preserved_marks_of_objs->length(), "Both or none.");
ysr@777 3008 guarantee(_objs_with_preserved_marks->length() ==
ysr@777 3009 _preserved_marks_of_objs->length(), "Both or none.");
ysr@777 3010 for (int i = 0; i < _objs_with_preserved_marks->length(); i++) {
ysr@777 3011 oop obj = _objs_with_preserved_marks->at(i);
ysr@777 3012 markOop m = _preserved_marks_of_objs->at(i);
ysr@777 3013 obj->set_mark(m);
ysr@777 3014 }
ysr@777 3015 // Delete the preserved marks growable arrays (allocated on the C heap).
ysr@777 3016 delete _objs_with_preserved_marks;
ysr@777 3017 delete _preserved_marks_of_objs;
ysr@777 3018 _objs_with_preserved_marks = NULL;
ysr@777 3019 _preserved_marks_of_objs = NULL;
ysr@777 3020 }
ysr@777 3021 }
ysr@777 3022
ysr@777 3023 void G1CollectedHeap::push_on_evac_failure_scan_stack(oop obj) {
ysr@777 3024 _evac_failure_scan_stack->push(obj);
ysr@777 3025 }
ysr@777 3026
ysr@777 3027 void G1CollectedHeap::drain_evac_failure_scan_stack() {
ysr@777 3028 assert(_evac_failure_scan_stack != NULL, "precondition");
ysr@777 3029
ysr@777 3030 while (_evac_failure_scan_stack->length() > 0) {
ysr@777 3031 oop obj = _evac_failure_scan_stack->pop();
ysr@777 3032 _evac_failure_closure->set_region(heap_region_containing(obj));
ysr@777 3033 obj->oop_iterate_backwards(_evac_failure_closure);
ysr@777 3034 }
ysr@777 3035 }
ysr@777 3036
ysr@777 3037 void G1CollectedHeap::handle_evacuation_failure(oop old) {
ysr@777 3038 markOop m = old->mark();
ysr@777 3039 // forward to self
ysr@777 3040 assert(!old->is_forwarded(), "precondition");
ysr@777 3041
ysr@777 3042 old->forward_to(old);
ysr@777 3043 handle_evacuation_failure_common(old, m);
ysr@777 3044 }
ysr@777 3045
ysr@777 3046 oop
ysr@777 3047 G1CollectedHeap::handle_evacuation_failure_par(OopsInHeapRegionClosure* cl,
ysr@777 3048 oop old) {
ysr@777 3049 markOop m = old->mark();
ysr@777 3050 oop forward_ptr = old->forward_to_atomic(old);
ysr@777 3051 if (forward_ptr == NULL) {
ysr@777 3052 // Forward-to-self succeeded.
ysr@777 3053 if (_evac_failure_closure != cl) {
ysr@777 3054 MutexLockerEx x(EvacFailureStack_lock, Mutex::_no_safepoint_check_flag);
ysr@777 3055 assert(!_drain_in_progress,
ysr@777 3056 "Should only be true while someone holds the lock.");
ysr@777 3057 // Set the global evac-failure closure to the current thread's.
ysr@777 3058 assert(_evac_failure_closure == NULL, "Or locking has failed.");
ysr@777 3059 set_evac_failure_closure(cl);
ysr@777 3060 // Now do the common part.
ysr@777 3061 handle_evacuation_failure_common(old, m);
ysr@777 3062 // Reset to NULL.
ysr@777 3063 set_evac_failure_closure(NULL);
ysr@777 3064 } else {
ysr@777 3065 // The lock is already held, and this is recursive.
ysr@777 3066 assert(_drain_in_progress, "This should only be the recursive case.");
ysr@777 3067 handle_evacuation_failure_common(old, m);
ysr@777 3068 }
ysr@777 3069 return old;
ysr@777 3070 } else {
ysr@777 3071 // Someone else had a place to copy it.
ysr@777 3072 return forward_ptr;
ysr@777 3073 }
ysr@777 3074 }
ysr@777 3075
ysr@777 3076 void G1CollectedHeap::handle_evacuation_failure_common(oop old, markOop m) {
ysr@777 3077 set_evacuation_failed(true);
ysr@777 3078
ysr@777 3079 preserve_mark_if_necessary(old, m);
ysr@777 3080
ysr@777 3081 HeapRegion* r = heap_region_containing(old);
ysr@777 3082 if (!r->evacuation_failed()) {
ysr@777 3083 r->set_evacuation_failed(true);
ysr@777 3084 if (G1TraceRegions) {
ysr@777 3085 gclog_or_tty->print("evacuation failed in heap region "PTR_FORMAT" "
ysr@777 3086 "["PTR_FORMAT","PTR_FORMAT")\n",
ysr@777 3087 r, r->bottom(), r->end());
ysr@777 3088 }
ysr@777 3089 }
ysr@777 3090
ysr@777 3091 push_on_evac_failure_scan_stack(old);
ysr@777 3092
ysr@777 3093 if (!_drain_in_progress) {
ysr@777 3094 // prevent recursion in copy_to_survivor_space()
ysr@777 3095 _drain_in_progress = true;
ysr@777 3096 drain_evac_failure_scan_stack();
ysr@777 3097 _drain_in_progress = false;
ysr@777 3098 }
ysr@777 3099 }
ysr@777 3100
ysr@777 3101 void G1CollectedHeap::preserve_mark_if_necessary(oop obj, markOop m) {
ysr@777 3102 if (m != markOopDesc::prototype()) {
ysr@777 3103 if (_objs_with_preserved_marks == NULL) {
ysr@777 3104 assert(_preserved_marks_of_objs == NULL, "Both or none.");
ysr@777 3105 _objs_with_preserved_marks =
ysr@777 3106 new (ResourceObj::C_HEAP) GrowableArray<oop>(40, true);
ysr@777 3107 _preserved_marks_of_objs =
ysr@777 3108 new (ResourceObj::C_HEAP) GrowableArray<markOop>(40, true);
ysr@777 3109 }
ysr@777 3110 _objs_with_preserved_marks->push(obj);
ysr@777 3111 _preserved_marks_of_objs->push(m);
ysr@777 3112 }
ysr@777 3113 }
ysr@777 3114
ysr@777 3115 // *** Parallel G1 Evacuation
ysr@777 3116
ysr@777 3117 HeapWord* G1CollectedHeap::par_allocate_during_gc(GCAllocPurpose purpose,
ysr@777 3118 size_t word_size) {
ysr@777 3119 HeapRegion* alloc_region = _gc_alloc_regions[purpose];
ysr@777 3120 // let the caller handle alloc failure
ysr@777 3121 if (alloc_region == NULL) return NULL;
ysr@777 3122
ysr@777 3123 HeapWord* block = alloc_region->par_allocate(word_size);
ysr@777 3124 if (block == NULL) {
ysr@777 3125 MutexLockerEx x(par_alloc_during_gc_lock(),
ysr@777 3126 Mutex::_no_safepoint_check_flag);
ysr@777 3127 block = allocate_during_gc_slow(purpose, alloc_region, true, word_size);
ysr@777 3128 }
ysr@777 3129 return block;
ysr@777 3130 }
ysr@777 3131
ysr@777 3132 HeapWord*
ysr@777 3133 G1CollectedHeap::allocate_during_gc_slow(GCAllocPurpose purpose,
ysr@777 3134 HeapRegion* alloc_region,
ysr@777 3135 bool par,
ysr@777 3136 size_t word_size) {
ysr@777 3137 HeapWord* block = NULL;
ysr@777 3138 // In the parallel case, a previous thread to obtain the lock may have
ysr@777 3139 // already assigned a new gc_alloc_region.
ysr@777 3140 if (alloc_region != _gc_alloc_regions[purpose]) {
ysr@777 3141 assert(par, "But should only happen in parallel case.");
ysr@777 3142 alloc_region = _gc_alloc_regions[purpose];
ysr@777 3143 if (alloc_region == NULL) return NULL;
ysr@777 3144 block = alloc_region->par_allocate(word_size);
ysr@777 3145 if (block != NULL) return block;
ysr@777 3146 // Otherwise, continue; this new region is empty, too.
ysr@777 3147 }
ysr@777 3148 assert(alloc_region != NULL, "We better have an allocation region");
ysr@777 3149 // Another thread might have obtained alloc_region for the given
ysr@777 3150 // purpose, and might be attempting to allocate in it, and might
ysr@777 3151 // succeed. Therefore, we can't do the "finalization" stuff on the
ysr@777 3152 // region below until we're sure the last allocation has happened.
ysr@777 3153 // We ensure this by allocating the remaining space with a garbage
ysr@777 3154 // object.
ysr@777 3155 if (par) par_allocate_remaining_space(alloc_region);
ysr@777 3156 // Now we can do the post-GC stuff on the region.
ysr@777 3157 alloc_region->note_end_of_copying();
ysr@777 3158 g1_policy()->record_after_bytes(alloc_region->used());
ysr@777 3159
ysr@777 3160 if (_gc_alloc_region_counts[purpose] >= g1_policy()->max_regions(purpose)) {
ysr@777 3161 // Cannot allocate more regions for the given purpose.
ysr@777 3162 GCAllocPurpose alt_purpose = g1_policy()->alternative_purpose(purpose);
ysr@777 3163 // Is there an alternative?
ysr@777 3164 if (purpose != alt_purpose) {
ysr@777 3165 HeapRegion* alt_region = _gc_alloc_regions[alt_purpose];
ysr@777 3166 // Has not the alternative region been aliased?
ysr@777 3167 if (alloc_region != alt_region) {
ysr@777 3168 // Try to allocate in the alternative region.
ysr@777 3169 if (par) {
ysr@777 3170 block = alt_region->par_allocate(word_size);
ysr@777 3171 } else {
ysr@777 3172 block = alt_region->allocate(word_size);
ysr@777 3173 }
ysr@777 3174 // Make an alias.
ysr@777 3175 _gc_alloc_regions[purpose] = _gc_alloc_regions[alt_purpose];
ysr@777 3176 }
ysr@777 3177 if (block != NULL) {
ysr@777 3178 return block;
ysr@777 3179 }
ysr@777 3180 // Both the allocation region and the alternative one are full
ysr@777 3181 // and aliased, replace them with a new allocation region.
ysr@777 3182 purpose = alt_purpose;
ysr@777 3183 } else {
ysr@777 3184 set_gc_alloc_region(purpose, NULL);
ysr@777 3185 return NULL;
ysr@777 3186 }
ysr@777 3187 }
ysr@777 3188
ysr@777 3189 // Now allocate a new region for allocation.
ysr@777 3190 alloc_region = newAllocRegionWithExpansion(purpose, word_size, false /*zero_filled*/);
ysr@777 3191
ysr@777 3192 // let the caller handle alloc failure
ysr@777 3193 if (alloc_region != NULL) {
ysr@777 3194
ysr@777 3195 assert(check_gc_alloc_regions(), "alloc regions messed up");
ysr@777 3196 assert(alloc_region->saved_mark_at_top(),
ysr@777 3197 "Mark should have been saved already.");
ysr@777 3198 // We used to assert that the region was zero-filled here, but no
ysr@777 3199 // longer.
ysr@777 3200
ysr@777 3201 // This must be done last: once it's installed, other regions may
ysr@777 3202 // allocate in it (without holding the lock.)
ysr@777 3203 set_gc_alloc_region(purpose, alloc_region);
ysr@777 3204
ysr@777 3205 if (par) {
ysr@777 3206 block = alloc_region->par_allocate(word_size);
ysr@777 3207 } else {
ysr@777 3208 block = alloc_region->allocate(word_size);
ysr@777 3209 }
ysr@777 3210 // Caller handles alloc failure.
ysr@777 3211 } else {
ysr@777 3212 // This sets other apis using the same old alloc region to NULL, also.
ysr@777 3213 set_gc_alloc_region(purpose, NULL);
ysr@777 3214 }
ysr@777 3215 return block; // May be NULL.
ysr@777 3216 }
ysr@777 3217
ysr@777 3218 void G1CollectedHeap::par_allocate_remaining_space(HeapRegion* r) {
ysr@777 3219 HeapWord* block = NULL;
ysr@777 3220 size_t free_words;
ysr@777 3221 do {
ysr@777 3222 free_words = r->free()/HeapWordSize;
ysr@777 3223 // If there's too little space, no one can allocate, so we're done.
ysr@777 3224 if (free_words < (size_t)oopDesc::header_size()) return;
ysr@777 3225 // Otherwise, try to claim it.
ysr@777 3226 block = r->par_allocate(free_words);
ysr@777 3227 } while (block == NULL);
ysr@777 3228 SharedHeap::fill_region_with_object(MemRegion(block, free_words));
ysr@777 3229 }
ysr@777 3230
ysr@777 3231 #define use_local_bitmaps 1
ysr@777 3232 #define verify_local_bitmaps 0
ysr@777 3233
ysr@777 3234 #ifndef PRODUCT
ysr@777 3235
ysr@777 3236 class GCLabBitMap;
ysr@777 3237 class GCLabBitMapClosure: public BitMapClosure {
ysr@777 3238 private:
ysr@777 3239 ConcurrentMark* _cm;
ysr@777 3240 GCLabBitMap* _bitmap;
ysr@777 3241
ysr@777 3242 public:
ysr@777 3243 GCLabBitMapClosure(ConcurrentMark* cm,
ysr@777 3244 GCLabBitMap* bitmap) {
ysr@777 3245 _cm = cm;
ysr@777 3246 _bitmap = bitmap;
ysr@777 3247 }
ysr@777 3248
ysr@777 3249 virtual bool do_bit(size_t offset);
ysr@777 3250 };
ysr@777 3251
ysr@777 3252 #endif // PRODUCT
ysr@777 3253
ysr@777 3254 #define oop_buffer_length 256
ysr@777 3255
ysr@777 3256 class GCLabBitMap: public BitMap {
ysr@777 3257 private:
ysr@777 3258 ConcurrentMark* _cm;
ysr@777 3259
ysr@777 3260 int _shifter;
ysr@777 3261 size_t _bitmap_word_covers_words;
ysr@777 3262
ysr@777 3263 // beginning of the heap
ysr@777 3264 HeapWord* _heap_start;
ysr@777 3265
ysr@777 3266 // this is the actual start of the GCLab
ysr@777 3267 HeapWord* _real_start_word;
ysr@777 3268
ysr@777 3269 // this is the actual end of the GCLab
ysr@777 3270 HeapWord* _real_end_word;
ysr@777 3271
ysr@777 3272 // this is the first word, possibly located before the actual start
ysr@777 3273 // of the GCLab, that corresponds to the first bit of the bitmap
ysr@777 3274 HeapWord* _start_word;
ysr@777 3275
ysr@777 3276 // size of a GCLab in words
ysr@777 3277 size_t _gclab_word_size;
ysr@777 3278
ysr@777 3279 static int shifter() {
ysr@777 3280 return MinObjAlignment - 1;
ysr@777 3281 }
ysr@777 3282
ysr@777 3283 // how many heap words does a single bitmap word corresponds to?
ysr@777 3284 static size_t bitmap_word_covers_words() {
ysr@777 3285 return BitsPerWord << shifter();
ysr@777 3286 }
ysr@777 3287
ysr@777 3288 static size_t gclab_word_size() {
ysr@777 3289 return ParallelGCG1AllocBufferSize / HeapWordSize;
ysr@777 3290 }
ysr@777 3291
ysr@777 3292 static size_t bitmap_size_in_bits() {
ysr@777 3293 size_t bits_in_bitmap = gclab_word_size() >> shifter();
ysr@777 3294 // We are going to ensure that the beginning of a word in this
ysr@777 3295 // bitmap also corresponds to the beginning of a word in the
ysr@777 3296 // global marking bitmap. To handle the case where a GCLab
ysr@777 3297 // starts from the middle of the bitmap, we need to add enough
ysr@777 3298 // space (i.e. up to a bitmap word) to ensure that we have
ysr@777 3299 // enough bits in the bitmap.
ysr@777 3300 return bits_in_bitmap + BitsPerWord - 1;
ysr@777 3301 }
ysr@777 3302 public:
ysr@777 3303 GCLabBitMap(HeapWord* heap_start)
ysr@777 3304 : BitMap(bitmap_size_in_bits()),
ysr@777 3305 _cm(G1CollectedHeap::heap()->concurrent_mark()),
ysr@777 3306 _shifter(shifter()),
ysr@777 3307 _bitmap_word_covers_words(bitmap_word_covers_words()),
ysr@777 3308 _heap_start(heap_start),
ysr@777 3309 _gclab_word_size(gclab_word_size()),
ysr@777 3310 _real_start_word(NULL),
ysr@777 3311 _real_end_word(NULL),
ysr@777 3312 _start_word(NULL)
ysr@777 3313 {
ysr@777 3314 guarantee( size_in_words() >= bitmap_size_in_words(),
ysr@777 3315 "just making sure");
ysr@777 3316 }
ysr@777 3317
ysr@777 3318 inline unsigned heapWordToOffset(HeapWord* addr) {
ysr@777 3319 unsigned offset = (unsigned) pointer_delta(addr, _start_word) >> _shifter;
ysr@777 3320 assert(offset < size(), "offset should be within bounds");
ysr@777 3321 return offset;
ysr@777 3322 }
ysr@777 3323
ysr@777 3324 inline HeapWord* offsetToHeapWord(size_t offset) {
ysr@777 3325 HeapWord* addr = _start_word + (offset << _shifter);
ysr@777 3326 assert(_real_start_word <= addr && addr < _real_end_word, "invariant");
ysr@777 3327 return addr;
ysr@777 3328 }
ysr@777 3329
ysr@777 3330 bool fields_well_formed() {
ysr@777 3331 bool ret1 = (_real_start_word == NULL) &&
ysr@777 3332 (_real_end_word == NULL) &&
ysr@777 3333 (_start_word == NULL);
ysr@777 3334 if (ret1)
ysr@777 3335 return true;
ysr@777 3336
ysr@777 3337 bool ret2 = _real_start_word >= _start_word &&
ysr@777 3338 _start_word < _real_end_word &&
ysr@777 3339 (_real_start_word + _gclab_word_size) == _real_end_word &&
ysr@777 3340 (_start_word + _gclab_word_size + _bitmap_word_covers_words)
ysr@777 3341 > _real_end_word;
ysr@777 3342 return ret2;
ysr@777 3343 }
ysr@777 3344
ysr@777 3345 inline bool mark(HeapWord* addr) {
ysr@777 3346 guarantee(use_local_bitmaps, "invariant");
ysr@777 3347 assert(fields_well_formed(), "invariant");
ysr@777 3348
ysr@777 3349 if (addr >= _real_start_word && addr < _real_end_word) {
ysr@777 3350 assert(!isMarked(addr), "should not have already been marked");
ysr@777 3351
ysr@777 3352 // first mark it on the bitmap
ysr@777 3353 at_put(heapWordToOffset(addr), true);
ysr@777 3354
ysr@777 3355 return true;
ysr@777 3356 } else {
ysr@777 3357 return false;
ysr@777 3358 }
ysr@777 3359 }
ysr@777 3360
ysr@777 3361 inline bool isMarked(HeapWord* addr) {
ysr@777 3362 guarantee(use_local_bitmaps, "invariant");
ysr@777 3363 assert(fields_well_formed(), "invariant");
ysr@777 3364
ysr@777 3365 return at(heapWordToOffset(addr));
ysr@777 3366 }
ysr@777 3367
ysr@777 3368 void set_buffer(HeapWord* start) {
ysr@777 3369 guarantee(use_local_bitmaps, "invariant");
ysr@777 3370 clear();
ysr@777 3371
ysr@777 3372 assert(start != NULL, "invariant");
ysr@777 3373 _real_start_word = start;
ysr@777 3374 _real_end_word = start + _gclab_word_size;
ysr@777 3375
ysr@777 3376 size_t diff =
ysr@777 3377 pointer_delta(start, _heap_start) % _bitmap_word_covers_words;
ysr@777 3378 _start_word = start - diff;
ysr@777 3379
ysr@777 3380 assert(fields_well_formed(), "invariant");
ysr@777 3381 }
ysr@777 3382
ysr@777 3383 #ifndef PRODUCT
ysr@777 3384 void verify() {
ysr@777 3385 // verify that the marks have been propagated
ysr@777 3386 GCLabBitMapClosure cl(_cm, this);
ysr@777 3387 iterate(&cl);
ysr@777 3388 }
ysr@777 3389 #endif // PRODUCT
ysr@777 3390
ysr@777 3391 void retire() {
ysr@777 3392 guarantee(use_local_bitmaps, "invariant");
ysr@777 3393 assert(fields_well_formed(), "invariant");
ysr@777 3394
ysr@777 3395 if (_start_word != NULL) {
ysr@777 3396 CMBitMap* mark_bitmap = _cm->nextMarkBitMap();
ysr@777 3397
ysr@777 3398 // this means that the bitmap was set up for the GCLab
ysr@777 3399 assert(_real_start_word != NULL && _real_end_word != NULL, "invariant");
ysr@777 3400
ysr@777 3401 mark_bitmap->mostly_disjoint_range_union(this,
ysr@777 3402 0, // always start from the start of the bitmap
ysr@777 3403 _start_word,
ysr@777 3404 size_in_words());
ysr@777 3405 _cm->grayRegionIfNecessary(MemRegion(_real_start_word, _real_end_word));
ysr@777 3406
ysr@777 3407 #ifndef PRODUCT
ysr@777 3408 if (use_local_bitmaps && verify_local_bitmaps)
ysr@777 3409 verify();
ysr@777 3410 #endif // PRODUCT
ysr@777 3411 } else {
ysr@777 3412 assert(_real_start_word == NULL && _real_end_word == NULL, "invariant");
ysr@777 3413 }
ysr@777 3414 }
ysr@777 3415
ysr@777 3416 static size_t bitmap_size_in_words() {
ysr@777 3417 return (bitmap_size_in_bits() + BitsPerWord - 1) / BitsPerWord;
ysr@777 3418 }
ysr@777 3419 };
ysr@777 3420
ysr@777 3421 #ifndef PRODUCT
ysr@777 3422
ysr@777 3423 bool GCLabBitMapClosure::do_bit(size_t offset) {
ysr@777 3424 HeapWord* addr = _bitmap->offsetToHeapWord(offset);
ysr@777 3425 guarantee(_cm->isMarked(oop(addr)), "it should be!");
ysr@777 3426 return true;
ysr@777 3427 }
ysr@777 3428
ysr@777 3429 #endif // PRODUCT
ysr@777 3430
ysr@777 3431 class G1ParGCAllocBuffer: public ParGCAllocBuffer {
ysr@777 3432 private:
ysr@777 3433 bool _retired;
ysr@777 3434 bool _during_marking;
ysr@777 3435 GCLabBitMap _bitmap;
ysr@777 3436
ysr@777 3437 public:
ysr@777 3438 G1ParGCAllocBuffer() :
ysr@777 3439 ParGCAllocBuffer(ParallelGCG1AllocBufferSize / HeapWordSize),
ysr@777 3440 _during_marking(G1CollectedHeap::heap()->mark_in_progress()),
ysr@777 3441 _bitmap(G1CollectedHeap::heap()->reserved_region().start()),
ysr@777 3442 _retired(false)
ysr@777 3443 { }
ysr@777 3444
ysr@777 3445 inline bool mark(HeapWord* addr) {
ysr@777 3446 guarantee(use_local_bitmaps, "invariant");
ysr@777 3447 assert(_during_marking, "invariant");
ysr@777 3448 return _bitmap.mark(addr);
ysr@777 3449 }
ysr@777 3450
ysr@777 3451 inline void set_buf(HeapWord* buf) {
ysr@777 3452 if (use_local_bitmaps && _during_marking)
ysr@777 3453 _bitmap.set_buffer(buf);
ysr@777 3454 ParGCAllocBuffer::set_buf(buf);
ysr@777 3455 _retired = false;
ysr@777 3456 }
ysr@777 3457
ysr@777 3458 inline void retire(bool end_of_gc, bool retain) {
ysr@777 3459 if (_retired)
ysr@777 3460 return;
ysr@777 3461 if (use_local_bitmaps && _during_marking) {
ysr@777 3462 _bitmap.retire();
ysr@777 3463 }
ysr@777 3464 ParGCAllocBuffer::retire(end_of_gc, retain);
ysr@777 3465 _retired = true;
ysr@777 3466 }
ysr@777 3467 };
ysr@777 3468
ysr@777 3469
ysr@777 3470 class G1ParScanThreadState : public StackObj {
ysr@777 3471 protected:
ysr@777 3472 G1CollectedHeap* _g1h;
ysr@777 3473 RefToScanQueue* _refs;
ysr@777 3474
ysr@777 3475 typedef GrowableArray<oop*> OverflowQueue;
ysr@777 3476 OverflowQueue* _overflowed_refs;
ysr@777 3477
ysr@777 3478 G1ParGCAllocBuffer _alloc_buffers[GCAllocPurposeCount];
ysr@777 3479
ysr@777 3480 size_t _alloc_buffer_waste;
ysr@777 3481 size_t _undo_waste;
ysr@777 3482
ysr@777 3483 OopsInHeapRegionClosure* _evac_failure_cl;
ysr@777 3484 G1ParScanHeapEvacClosure* _evac_cl;
ysr@777 3485 G1ParScanPartialArrayClosure* _partial_scan_cl;
ysr@777 3486
ysr@777 3487 int _hash_seed;
ysr@777 3488 int _queue_num;
ysr@777 3489
ysr@777 3490 int _term_attempts;
ysr@777 3491 #if G1_DETAILED_STATS
ysr@777 3492 int _pushes, _pops, _steals, _steal_attempts;
ysr@777 3493 int _overflow_pushes;
ysr@777 3494 #endif
ysr@777 3495
ysr@777 3496 double _start;
ysr@777 3497 double _start_strong_roots;
ysr@777 3498 double _strong_roots_time;
ysr@777 3499 double _start_term;
ysr@777 3500 double _term_time;
ysr@777 3501
ysr@777 3502 // Map from young-age-index (0 == not young, 1 is youngest) to
ysr@777 3503 // surviving words. base is what we get back from the malloc call
ysr@777 3504 size_t* _surviving_young_words_base;
ysr@777 3505 // this points into the array, as we use the first few entries for padding
ysr@777 3506 size_t* _surviving_young_words;
ysr@777 3507
ysr@777 3508 #define PADDING_ELEM_NUM (64 / sizeof(size_t))
ysr@777 3509
ysr@777 3510 void add_to_alloc_buffer_waste(size_t waste) { _alloc_buffer_waste += waste; }
ysr@777 3511
ysr@777 3512 void add_to_undo_waste(size_t waste) { _undo_waste += waste; }
ysr@777 3513
ysr@777 3514 public:
ysr@777 3515 G1ParScanThreadState(G1CollectedHeap* g1h, int queue_num)
ysr@777 3516 : _g1h(g1h),
ysr@777 3517 _refs(g1h->task_queue(queue_num)),
ysr@777 3518 _hash_seed(17), _queue_num(queue_num),
ysr@777 3519 _term_attempts(0),
ysr@777 3520 #if G1_DETAILED_STATS
ysr@777 3521 _pushes(0), _pops(0), _steals(0),
ysr@777 3522 _steal_attempts(0), _overflow_pushes(0),
ysr@777 3523 #endif
ysr@777 3524 _strong_roots_time(0), _term_time(0),
ysr@777 3525 _alloc_buffer_waste(0), _undo_waste(0)
ysr@777 3526 {
ysr@777 3527 // we allocate G1YoungSurvRateNumRegions plus one entries, since
ysr@777 3528 // we "sacrifice" entry 0 to keep track of surviving bytes for
ysr@777 3529 // non-young regions (where the age is -1)
ysr@777 3530 // We also add a few elements at the beginning and at the end in
ysr@777 3531 // an attempt to eliminate cache contention
ysr@777 3532 size_t real_length = 1 + _g1h->g1_policy()->young_cset_length();
ysr@777 3533 size_t array_length = PADDING_ELEM_NUM +
ysr@777 3534 real_length +
ysr@777 3535 PADDING_ELEM_NUM;
ysr@777 3536 _surviving_young_words_base = NEW_C_HEAP_ARRAY(size_t, array_length);
ysr@777 3537 if (_surviving_young_words_base == NULL)
ysr@777 3538 vm_exit_out_of_memory(array_length * sizeof(size_t),
ysr@777 3539 "Not enough space for young surv histo.");
ysr@777 3540 _surviving_young_words = _surviving_young_words_base + PADDING_ELEM_NUM;
ysr@777 3541 memset(_surviving_young_words, 0, real_length * sizeof(size_t));
ysr@777 3542
ysr@777 3543 _overflowed_refs = new OverflowQueue(10);
ysr@777 3544
ysr@777 3545 _start = os::elapsedTime();
ysr@777 3546 }
ysr@777 3547
ysr@777 3548 ~G1ParScanThreadState() {
ysr@777 3549 FREE_C_HEAP_ARRAY(size_t, _surviving_young_words_base);
ysr@777 3550 }
ysr@777 3551
ysr@777 3552 RefToScanQueue* refs() { return _refs; }
ysr@777 3553 OverflowQueue* overflowed_refs() { return _overflowed_refs; }
ysr@777 3554
ysr@777 3555 inline G1ParGCAllocBuffer* alloc_buffer(GCAllocPurpose purpose) {
ysr@777 3556 return &_alloc_buffers[purpose];
ysr@777 3557 }
ysr@777 3558
ysr@777 3559 size_t alloc_buffer_waste() { return _alloc_buffer_waste; }
ysr@777 3560 size_t undo_waste() { return _undo_waste; }
ysr@777 3561
ysr@777 3562 void push_on_queue(oop* ref) {
ysr@777 3563 if (!refs()->push(ref)) {
ysr@777 3564 overflowed_refs()->push(ref);
ysr@777 3565 IF_G1_DETAILED_STATS(note_overflow_push());
ysr@777 3566 } else {
ysr@777 3567 IF_G1_DETAILED_STATS(note_push());
ysr@777 3568 }
ysr@777 3569 }
ysr@777 3570
ysr@777 3571 void pop_from_queue(oop*& ref) {
ysr@777 3572 if (!refs()->pop_local(ref)) {
ysr@777 3573 ref = NULL;
ysr@777 3574 } else {
ysr@777 3575 IF_G1_DETAILED_STATS(note_pop());
ysr@777 3576 }
ysr@777 3577 }
ysr@777 3578
ysr@777 3579 void pop_from_overflow_queue(oop*& ref) {
ysr@777 3580 ref = overflowed_refs()->pop();
ysr@777 3581 }
ysr@777 3582
ysr@777 3583 int refs_to_scan() { return refs()->size(); }
ysr@777 3584 int overflowed_refs_to_scan() { return overflowed_refs()->length(); }
ysr@777 3585
ysr@777 3586 HeapWord* allocate_slow(GCAllocPurpose purpose, size_t word_sz) {
ysr@777 3587
ysr@777 3588 HeapWord* obj = NULL;
ysr@777 3589 if (word_sz * 100 <
ysr@777 3590 (size_t)(ParallelGCG1AllocBufferSize / HeapWordSize) *
ysr@777 3591 ParallelGCBufferWastePct) {
ysr@777 3592 G1ParGCAllocBuffer* alloc_buf = alloc_buffer(purpose);
ysr@777 3593 add_to_alloc_buffer_waste(alloc_buf->words_remaining());
ysr@777 3594 alloc_buf->retire(false, false);
ysr@777 3595
ysr@777 3596 HeapWord* buf =
ysr@777 3597 _g1h->par_allocate_during_gc(purpose, ParallelGCG1AllocBufferSize / HeapWordSize);
ysr@777 3598 if (buf == NULL) return NULL; // Let caller handle allocation failure.
ysr@777 3599 // Otherwise.
ysr@777 3600 alloc_buf->set_buf(buf);
ysr@777 3601
ysr@777 3602 obj = alloc_buf->allocate(word_sz);
ysr@777 3603 assert(obj != NULL, "buffer was definitely big enough...");
ysr@777 3604 }
ysr@777 3605 else {
ysr@777 3606 obj = _g1h->par_allocate_during_gc(purpose, word_sz);
ysr@777 3607 }
ysr@777 3608 return obj;
ysr@777 3609 }
ysr@777 3610
ysr@777 3611 HeapWord* allocate(GCAllocPurpose purpose, size_t word_sz) {
ysr@777 3612 HeapWord* obj = alloc_buffer(purpose)->allocate(word_sz);
ysr@777 3613 if (obj != NULL) return obj;
ysr@777 3614 return allocate_slow(purpose, word_sz);
ysr@777 3615 }
ysr@777 3616
ysr@777 3617 void undo_allocation(GCAllocPurpose purpose, HeapWord* obj, size_t word_sz) {
ysr@777 3618 if (alloc_buffer(purpose)->contains(obj)) {
ysr@777 3619 guarantee(alloc_buffer(purpose)->contains(obj + word_sz - 1),
ysr@777 3620 "should contain whole object");
ysr@777 3621 alloc_buffer(purpose)->undo_allocation(obj, word_sz);
ysr@777 3622 }
ysr@777 3623 else {
ysr@777 3624 SharedHeap::fill_region_with_object(MemRegion(obj, word_sz));
ysr@777 3625 add_to_undo_waste(word_sz);
ysr@777 3626 }
ysr@777 3627 }
ysr@777 3628
ysr@777 3629 void set_evac_failure_closure(OopsInHeapRegionClosure* evac_failure_cl) {
ysr@777 3630 _evac_failure_cl = evac_failure_cl;
ysr@777 3631 }
ysr@777 3632 OopsInHeapRegionClosure* evac_failure_closure() {
ysr@777 3633 return _evac_failure_cl;
ysr@777 3634 }
ysr@777 3635
ysr@777 3636 void set_evac_closure(G1ParScanHeapEvacClosure* evac_cl) {
ysr@777 3637 _evac_cl = evac_cl;
ysr@777 3638 }
ysr@777 3639
ysr@777 3640 void set_partial_scan_closure(G1ParScanPartialArrayClosure* partial_scan_cl) {
ysr@777 3641 _partial_scan_cl = partial_scan_cl;
ysr@777 3642 }
ysr@777 3643
ysr@777 3644 int* hash_seed() { return &_hash_seed; }
ysr@777 3645 int queue_num() { return _queue_num; }
ysr@777 3646
ysr@777 3647 int term_attempts() { return _term_attempts; }
ysr@777 3648 void note_term_attempt() { _term_attempts++; }
ysr@777 3649
ysr@777 3650 #if G1_DETAILED_STATS
ysr@777 3651 int pushes() { return _pushes; }
ysr@777 3652 int pops() { return _pops; }
ysr@777 3653 int steals() { return _steals; }
ysr@777 3654 int steal_attempts() { return _steal_attempts; }
ysr@777 3655 int overflow_pushes() { return _overflow_pushes; }
ysr@777 3656
ysr@777 3657 void note_push() { _pushes++; }
ysr@777 3658 void note_pop() { _pops++; }
ysr@777 3659 void note_steal() { _steals++; }
ysr@777 3660 void note_steal_attempt() { _steal_attempts++; }
ysr@777 3661 void note_overflow_push() { _overflow_pushes++; }
ysr@777 3662 #endif
ysr@777 3663
ysr@777 3664 void start_strong_roots() {
ysr@777 3665 _start_strong_roots = os::elapsedTime();
ysr@777 3666 }
ysr@777 3667 void end_strong_roots() {
ysr@777 3668 _strong_roots_time += (os::elapsedTime() - _start_strong_roots);
ysr@777 3669 }
ysr@777 3670 double strong_roots_time() { return _strong_roots_time; }
ysr@777 3671
ysr@777 3672 void start_term_time() {
ysr@777 3673 note_term_attempt();
ysr@777 3674 _start_term = os::elapsedTime();
ysr@777 3675 }
ysr@777 3676 void end_term_time() {
ysr@777 3677 _term_time += (os::elapsedTime() - _start_term);
ysr@777 3678 }
ysr@777 3679 double term_time() { return _term_time; }
ysr@777 3680
ysr@777 3681 double elapsed() {
ysr@777 3682 return os::elapsedTime() - _start;
ysr@777 3683 }
ysr@777 3684
ysr@777 3685 size_t* surviving_young_words() {
ysr@777 3686 // We add on to hide entry 0 which accumulates surviving words for
ysr@777 3687 // age -1 regions (i.e. non-young ones)
ysr@777 3688 return _surviving_young_words;
ysr@777 3689 }
ysr@777 3690
ysr@777 3691 void retire_alloc_buffers() {
ysr@777 3692 for (int ap = 0; ap < GCAllocPurposeCount; ++ap) {
ysr@777 3693 size_t waste = _alloc_buffers[ap].words_remaining();
ysr@777 3694 add_to_alloc_buffer_waste(waste);
ysr@777 3695 _alloc_buffers[ap].retire(true, false);
ysr@777 3696 }
ysr@777 3697 }
ysr@777 3698
ysr@777 3699 void trim_queue() {
ysr@777 3700 while (refs_to_scan() > 0 || overflowed_refs_to_scan() > 0) {
ysr@777 3701 oop *ref_to_scan = NULL;
ysr@777 3702 if (overflowed_refs_to_scan() == 0) {
ysr@777 3703 pop_from_queue(ref_to_scan);
ysr@777 3704 } else {
ysr@777 3705 pop_from_overflow_queue(ref_to_scan);
ysr@777 3706 }
ysr@777 3707 if (ref_to_scan != NULL) {
ysr@777 3708 if ((intptr_t)ref_to_scan & G1_PARTIAL_ARRAY_MASK) {
ysr@777 3709 _partial_scan_cl->do_oop_nv(ref_to_scan);
ysr@777 3710 } else {
ysr@777 3711 // Note: we can use "raw" versions of "region_containing" because
ysr@777 3712 // "obj_to_scan" is definitely in the heap, and is not in a
ysr@777 3713 // humongous region.
ysr@777 3714 HeapRegion* r = _g1h->heap_region_containing_raw(ref_to_scan);
ysr@777 3715 _evac_cl->set_region(r);
ysr@777 3716 _evac_cl->do_oop_nv(ref_to_scan);
ysr@777 3717 }
ysr@777 3718 }
ysr@777 3719 }
ysr@777 3720 }
ysr@777 3721 };
ysr@777 3722
ysr@777 3723
ysr@777 3724 G1ParClosureSuper::G1ParClosureSuper(G1CollectedHeap* g1, G1ParScanThreadState* par_scan_state) :
ysr@777 3725 _g1(g1), _g1_rem(_g1->g1_rem_set()), _cm(_g1->concurrent_mark()),
ysr@777 3726 _par_scan_state(par_scan_state) { }
ysr@777 3727
ysr@777 3728 // This closure is applied to the fields of the objects that have just been copied.
ysr@777 3729 // Should probably be made inline and moved in g1OopClosures.inline.hpp.
ysr@777 3730 void G1ParScanClosure::do_oop_nv(oop* p) {
ysr@777 3731 oop obj = *p;
ysr@777 3732 if (obj != NULL) {
ysr@777 3733 if (_g1->obj_in_cs(obj)) {
ysr@777 3734 if (obj->is_forwarded()) {
ysr@777 3735 *p = obj->forwardee();
ysr@777 3736 } else {
ysr@777 3737 _par_scan_state->push_on_queue(p);
ysr@777 3738 return;
ysr@777 3739 }
ysr@777 3740 }
ysr@777 3741 _g1_rem->par_write_ref(_from, p, _par_scan_state->queue_num());
ysr@777 3742 }
ysr@777 3743 }
ysr@777 3744
ysr@777 3745 void G1ParCopyHelper::mark_forwardee(oop* p) {
ysr@777 3746 // This is called _after_ do_oop_work has been called, hence after
ysr@777 3747 // the object has been relocated to its new location and *p points
ysr@777 3748 // to its new location.
ysr@777 3749
ysr@777 3750 oop thisOop = *p;
ysr@777 3751 if (thisOop != NULL) {
ysr@777 3752 assert((_g1->evacuation_failed()) || (!_g1->obj_in_cs(thisOop)),
ysr@777 3753 "shouldn't still be in the CSet if evacuation didn't fail.");
ysr@777 3754 HeapWord* addr = (HeapWord*)thisOop;
ysr@777 3755 if (_g1->is_in_g1_reserved(addr))
ysr@777 3756 _cm->grayRoot(oop(addr));
ysr@777 3757 }
ysr@777 3758 }
ysr@777 3759
ysr@777 3760 oop G1ParCopyHelper::copy_to_survivor_space(oop old) {
ysr@777 3761 size_t word_sz = old->size();
ysr@777 3762 HeapRegion* from_region = _g1->heap_region_containing_raw(old);
ysr@777 3763 // +1 to make the -1 indexes valid...
ysr@777 3764 int young_index = from_region->young_index_in_cset()+1;
ysr@777 3765 assert( (from_region->is_young() && young_index > 0) ||
ysr@777 3766 (!from_region->is_young() && young_index == 0), "invariant" );
ysr@777 3767 G1CollectorPolicy* g1p = _g1->g1_policy();
ysr@777 3768 markOop m = old->mark();
ysr@777 3769 GCAllocPurpose alloc_purpose = g1p->evacuation_destination(from_region, m->age(),
ysr@777 3770 word_sz);
ysr@777 3771 HeapWord* obj_ptr = _par_scan_state->allocate(alloc_purpose, word_sz);
ysr@777 3772 oop obj = oop(obj_ptr);
ysr@777 3773
ysr@777 3774 if (obj_ptr == NULL) {
ysr@777 3775 // This will either forward-to-self, or detect that someone else has
ysr@777 3776 // installed a forwarding pointer.
ysr@777 3777 OopsInHeapRegionClosure* cl = _par_scan_state->evac_failure_closure();
ysr@777 3778 return _g1->handle_evacuation_failure_par(cl, old);
ysr@777 3779 }
ysr@777 3780
ysr@777 3781 oop forward_ptr = old->forward_to_atomic(obj);
ysr@777 3782 if (forward_ptr == NULL) {
ysr@777 3783 Copy::aligned_disjoint_words((HeapWord*) old, obj_ptr, word_sz);
ysr@777 3784 obj->set_mark(m);
ysr@777 3785 if (g1p->track_object_age(alloc_purpose)) {
ysr@777 3786 obj->incr_age();
ysr@777 3787 }
ysr@777 3788 // preserve "next" mark bit
ysr@777 3789 if (_g1->mark_in_progress() && !_g1->is_obj_ill(old)) {
ysr@777 3790 if (!use_local_bitmaps ||
ysr@777 3791 !_par_scan_state->alloc_buffer(alloc_purpose)->mark(obj_ptr)) {
ysr@777 3792 // if we couldn't mark it on the local bitmap (this happens when
ysr@777 3793 // the object was not allocated in the GCLab), we have to bite
ysr@777 3794 // the bullet and do the standard parallel mark
ysr@777 3795 _cm->markAndGrayObjectIfNecessary(obj);
ysr@777 3796 }
ysr@777 3797 #if 1
ysr@777 3798 if (_g1->isMarkedNext(old)) {
ysr@777 3799 _cm->nextMarkBitMap()->parClear((HeapWord*)old);
ysr@777 3800 }
ysr@777 3801 #endif
ysr@777 3802 }
ysr@777 3803
ysr@777 3804 size_t* surv_young_words = _par_scan_state->surviving_young_words();
ysr@777 3805 surv_young_words[young_index] += word_sz;
ysr@777 3806
ysr@777 3807 if (obj->is_objArray() && arrayOop(obj)->length() >= ParGCArrayScanChunk) {
ysr@777 3808 arrayOop(old)->set_length(0);
ysr@777 3809 _par_scan_state->push_on_queue((oop*) ((intptr_t)old | G1_PARTIAL_ARRAY_MASK));
ysr@777 3810 } else {
ysr@777 3811 _scanner->set_region(_g1->heap_region_containing(obj));
ysr@777 3812 obj->oop_iterate_backwards(_scanner);
ysr@777 3813 }
ysr@777 3814 } else {
ysr@777 3815 _par_scan_state->undo_allocation(alloc_purpose, obj_ptr, word_sz);
ysr@777 3816 obj = forward_ptr;
ysr@777 3817 }
ysr@777 3818 return obj;
ysr@777 3819 }
ysr@777 3820
ysr@777 3821 template<bool do_gen_barrier, G1Barrier barrier, bool do_mark_forwardee>
ysr@777 3822 void G1ParCopyClosure<do_gen_barrier, barrier, do_mark_forwardee>::do_oop_work(oop* p) {
ysr@777 3823 oop obj = *p;
ysr@777 3824 assert(barrier != G1BarrierRS || obj != NULL,
ysr@777 3825 "Precondition: G1BarrierRS implies obj is nonNull");
ysr@777 3826
ysr@777 3827 if (obj != NULL) {
ysr@777 3828 if (_g1->obj_in_cs(obj)) {
ysr@777 3829 #if G1_REM_SET_LOGGING
ysr@777 3830 gclog_or_tty->print_cr("Loc "PTR_FORMAT" contains pointer "PTR_FORMAT" into CS.",
ysr@777 3831 p, (void*) obj);
ysr@777 3832 #endif
ysr@777 3833 if (obj->is_forwarded()) {
ysr@777 3834 *p = obj->forwardee();
ysr@777 3835 } else {
ysr@777 3836 *p = copy_to_survivor_space(obj);
ysr@777 3837 }
ysr@777 3838 // When scanning the RS, we only care about objs in CS.
ysr@777 3839 if (barrier == G1BarrierRS) {
ysr@777 3840 _g1_rem->par_write_ref(_from, p, _par_scan_state->queue_num());
ysr@777 3841 }
ysr@777 3842 }
ysr@777 3843 // When scanning moved objs, must look at all oops.
ysr@777 3844 if (barrier == G1BarrierEvac) {
ysr@777 3845 _g1_rem->par_write_ref(_from, p, _par_scan_state->queue_num());
ysr@777 3846 }
ysr@777 3847
ysr@777 3848 if (do_gen_barrier) {
ysr@777 3849 par_do_barrier(p);
ysr@777 3850 }
ysr@777 3851 }
ysr@777 3852 }
ysr@777 3853
ysr@777 3854 template void G1ParCopyClosure<false, G1BarrierEvac, false>::do_oop_work(oop* p);
ysr@777 3855
ysr@777 3856 template <class T> void G1ParScanPartialArrayClosure::process_array_chunk(
ysr@777 3857 oop obj, int start, int end) {
ysr@777 3858 // process our set of indices (include header in first chunk)
ysr@777 3859 assert(start < end, "invariant");
ysr@777 3860 T* const base = (T*)objArrayOop(obj)->base();
ysr@777 3861 T* const start_addr = base + start;
ysr@777 3862 T* const end_addr = base + end;
ysr@777 3863 MemRegion mr((HeapWord*)start_addr, (HeapWord*)end_addr);
ysr@777 3864 _scanner.set_region(_g1->heap_region_containing(obj));
ysr@777 3865 obj->oop_iterate(&_scanner, mr);
ysr@777 3866 }
ysr@777 3867
ysr@777 3868 void G1ParScanPartialArrayClosure::do_oop_nv(oop* p) {
ysr@777 3869 assert(!UseCompressedOops, "Needs to be fixed to work with compressed oops");
ysr@777 3870 oop old = oop((intptr_t)p & ~G1_PARTIAL_ARRAY_MASK);
ysr@777 3871 assert(old->is_objArray(), "must be obj array");
ysr@777 3872 assert(old->is_forwarded(), "must be forwarded");
ysr@777 3873 assert(Universe::heap()->is_in_reserved(old), "must be in heap.");
ysr@777 3874
ysr@777 3875 objArrayOop obj = objArrayOop(old->forwardee());
ysr@777 3876 assert((void*)old != (void*)old->forwardee(), "self forwarding here?");
ysr@777 3877 // Process ParGCArrayScanChunk elements now
ysr@777 3878 // and push the remainder back onto queue
ysr@777 3879 int start = arrayOop(old)->length();
ysr@777 3880 int end = obj->length();
ysr@777 3881 int remainder = end - start;
ysr@777 3882 assert(start <= end, "just checking");
ysr@777 3883 if (remainder > 2 * ParGCArrayScanChunk) {
ysr@777 3884 // Test above combines last partial chunk with a full chunk
ysr@777 3885 end = start + ParGCArrayScanChunk;
ysr@777 3886 arrayOop(old)->set_length(end);
ysr@777 3887 // Push remainder.
ysr@777 3888 _par_scan_state->push_on_queue((oop*) ((intptr_t) old | G1_PARTIAL_ARRAY_MASK));
ysr@777 3889 } else {
ysr@777 3890 // Restore length so that the heap remains parsable in
ysr@777 3891 // case of evacuation failure.
ysr@777 3892 arrayOop(old)->set_length(end);
ysr@777 3893 }
ysr@777 3894
ysr@777 3895 // process our set of indices (include header in first chunk)
ysr@777 3896 process_array_chunk<oop>(obj, start, end);
ysr@777 3897 oop* start_addr = start == 0 ? (oop*)obj : obj->obj_at_addr<oop>(start);
ysr@777 3898 oop* end_addr = (oop*)(obj->base()) + end; // obj_at_addr(end) asserts end < length
ysr@777 3899 MemRegion mr((HeapWord*)start_addr, (HeapWord*)end_addr);
ysr@777 3900 _scanner.set_region(_g1->heap_region_containing(obj));
ysr@777 3901 obj->oop_iterate(&_scanner, mr);
ysr@777 3902 }
ysr@777 3903
ysr@777 3904 int G1ScanAndBalanceClosure::_nq = 0;
ysr@777 3905
ysr@777 3906 class G1ParEvacuateFollowersClosure : public VoidClosure {
ysr@777 3907 protected:
ysr@777 3908 G1CollectedHeap* _g1h;
ysr@777 3909 G1ParScanThreadState* _par_scan_state;
ysr@777 3910 RefToScanQueueSet* _queues;
ysr@777 3911 ParallelTaskTerminator* _terminator;
ysr@777 3912
ysr@777 3913 G1ParScanThreadState* par_scan_state() { return _par_scan_state; }
ysr@777 3914 RefToScanQueueSet* queues() { return _queues; }
ysr@777 3915 ParallelTaskTerminator* terminator() { return _terminator; }
ysr@777 3916
ysr@777 3917 public:
ysr@777 3918 G1ParEvacuateFollowersClosure(G1CollectedHeap* g1h,
ysr@777 3919 G1ParScanThreadState* par_scan_state,
ysr@777 3920 RefToScanQueueSet* queues,
ysr@777 3921 ParallelTaskTerminator* terminator)
ysr@777 3922 : _g1h(g1h), _par_scan_state(par_scan_state),
ysr@777 3923 _queues(queues), _terminator(terminator) {}
ysr@777 3924
ysr@777 3925 void do_void() {
ysr@777 3926 G1ParScanThreadState* pss = par_scan_state();
ysr@777 3927 while (true) {
ysr@777 3928 oop* ref_to_scan;
ysr@777 3929 pss->trim_queue();
ysr@777 3930 IF_G1_DETAILED_STATS(pss->note_steal_attempt());
ysr@777 3931 if (queues()->steal(pss->queue_num(),
ysr@777 3932 pss->hash_seed(),
ysr@777 3933 ref_to_scan)) {
ysr@777 3934 IF_G1_DETAILED_STATS(pss->note_steal());
ysr@777 3935 pss->push_on_queue(ref_to_scan);
ysr@777 3936 continue;
ysr@777 3937 }
ysr@777 3938 pss->start_term_time();
ysr@777 3939 if (terminator()->offer_termination()) break;
ysr@777 3940 pss->end_term_time();
ysr@777 3941 }
ysr@777 3942 pss->end_term_time();
ysr@777 3943 pss->retire_alloc_buffers();
ysr@777 3944 }
ysr@777 3945 };
ysr@777 3946
ysr@777 3947 class G1ParTask : public AbstractGangTask {
ysr@777 3948 protected:
ysr@777 3949 G1CollectedHeap* _g1h;
ysr@777 3950 RefToScanQueueSet *_queues;
ysr@777 3951 ParallelTaskTerminator _terminator;
ysr@777 3952
ysr@777 3953 Mutex _stats_lock;
ysr@777 3954 Mutex* stats_lock() { return &_stats_lock; }
ysr@777 3955
ysr@777 3956 size_t getNCards() {
ysr@777 3957 return (_g1h->capacity() + G1BlockOffsetSharedArray::N_bytes - 1)
ysr@777 3958 / G1BlockOffsetSharedArray::N_bytes;
ysr@777 3959 }
ysr@777 3960
ysr@777 3961 public:
ysr@777 3962 G1ParTask(G1CollectedHeap* g1h, int workers, RefToScanQueueSet *task_queues)
ysr@777 3963 : AbstractGangTask("G1 collection"),
ysr@777 3964 _g1h(g1h),
ysr@777 3965 _queues(task_queues),
ysr@777 3966 _terminator(workers, _queues),
ysr@777 3967 _stats_lock(Mutex::leaf, "parallel G1 stats lock", true)
ysr@777 3968 {}
ysr@777 3969
ysr@777 3970 RefToScanQueueSet* queues() { return _queues; }
ysr@777 3971
ysr@777 3972 RefToScanQueue *work_queue(int i) {
ysr@777 3973 return queues()->queue(i);
ysr@777 3974 }
ysr@777 3975
ysr@777 3976 void work(int i) {
ysr@777 3977 ResourceMark rm;
ysr@777 3978 HandleMark hm;
ysr@777 3979
ysr@777 3980 G1ParScanThreadState pss(_g1h, i);
ysr@777 3981 G1ParScanHeapEvacClosure scan_evac_cl(_g1h, &pss);
ysr@777 3982 G1ParScanHeapEvacClosure evac_failure_cl(_g1h, &pss);
ysr@777 3983 G1ParScanPartialArrayClosure partial_scan_cl(_g1h, &pss);
ysr@777 3984
ysr@777 3985 pss.set_evac_closure(&scan_evac_cl);
ysr@777 3986 pss.set_evac_failure_closure(&evac_failure_cl);
ysr@777 3987 pss.set_partial_scan_closure(&partial_scan_cl);
ysr@777 3988
ysr@777 3989 G1ParScanExtRootClosure only_scan_root_cl(_g1h, &pss);
ysr@777 3990 G1ParScanPermClosure only_scan_perm_cl(_g1h, &pss);
ysr@777 3991 G1ParScanHeapRSClosure only_scan_heap_rs_cl(_g1h, &pss);
ysr@777 3992 G1ParScanAndMarkExtRootClosure scan_mark_root_cl(_g1h, &pss);
ysr@777 3993 G1ParScanAndMarkPermClosure scan_mark_perm_cl(_g1h, &pss);
ysr@777 3994 G1ParScanAndMarkHeapRSClosure scan_mark_heap_rs_cl(_g1h, &pss);
ysr@777 3995
ysr@777 3996 OopsInHeapRegionClosure *scan_root_cl;
ysr@777 3997 OopsInHeapRegionClosure *scan_perm_cl;
ysr@777 3998 OopsInHeapRegionClosure *scan_so_cl;
ysr@777 3999
ysr@777 4000 if (_g1h->g1_policy()->should_initiate_conc_mark()) {
ysr@777 4001 scan_root_cl = &scan_mark_root_cl;
ysr@777 4002 scan_perm_cl = &scan_mark_perm_cl;
ysr@777 4003 scan_so_cl = &scan_mark_heap_rs_cl;
ysr@777 4004 } else {
ysr@777 4005 scan_root_cl = &only_scan_root_cl;
ysr@777 4006 scan_perm_cl = &only_scan_perm_cl;
ysr@777 4007 scan_so_cl = &only_scan_heap_rs_cl;
ysr@777 4008 }
ysr@777 4009
ysr@777 4010 pss.start_strong_roots();
ysr@777 4011 _g1h->g1_process_strong_roots(/* not collecting perm */ false,
ysr@777 4012 SharedHeap::SO_AllClasses,
ysr@777 4013 scan_root_cl,
ysr@777 4014 &only_scan_heap_rs_cl,
ysr@777 4015 scan_so_cl,
ysr@777 4016 scan_perm_cl,
ysr@777 4017 i);
ysr@777 4018 pss.end_strong_roots();
ysr@777 4019 {
ysr@777 4020 double start = os::elapsedTime();
ysr@777 4021 G1ParEvacuateFollowersClosure evac(_g1h, &pss, _queues, &_terminator);
ysr@777 4022 evac.do_void();
ysr@777 4023 double elapsed_ms = (os::elapsedTime()-start)*1000.0;
ysr@777 4024 double term_ms = pss.term_time()*1000.0;
ysr@777 4025 _g1h->g1_policy()->record_obj_copy_time(i, elapsed_ms-term_ms);
ysr@777 4026 _g1h->g1_policy()->record_termination_time(i, term_ms);
ysr@777 4027 }
ysr@777 4028 _g1h->update_surviving_young_words(pss.surviving_young_words()+1);
ysr@777 4029
ysr@777 4030 // Clean up any par-expanded rem sets.
ysr@777 4031 HeapRegionRemSet::par_cleanup();
ysr@777 4032
ysr@777 4033 MutexLocker x(stats_lock());
ysr@777 4034 if (ParallelGCVerbose) {
ysr@777 4035 gclog_or_tty->print("Thread %d complete:\n", i);
ysr@777 4036 #if G1_DETAILED_STATS
ysr@777 4037 gclog_or_tty->print(" Pushes: %7d Pops: %7d Overflows: %7d Steals %7d (in %d attempts)\n",
ysr@777 4038 pss.pushes(),
ysr@777 4039 pss.pops(),
ysr@777 4040 pss.overflow_pushes(),
ysr@777 4041 pss.steals(),
ysr@777 4042 pss.steal_attempts());
ysr@777 4043 #endif
ysr@777 4044 double elapsed = pss.elapsed();
ysr@777 4045 double strong_roots = pss.strong_roots_time();
ysr@777 4046 double term = pss.term_time();
ysr@777 4047 gclog_or_tty->print(" Elapsed: %7.2f ms.\n"
ysr@777 4048 " Strong roots: %7.2f ms (%6.2f%%)\n"
ysr@777 4049 " Termination: %7.2f ms (%6.2f%%) (in %d entries)\n",
ysr@777 4050 elapsed * 1000.0,
ysr@777 4051 strong_roots * 1000.0, (strong_roots*100.0/elapsed),
ysr@777 4052 term * 1000.0, (term*100.0/elapsed),
ysr@777 4053 pss.term_attempts());
ysr@777 4054 size_t total_waste = pss.alloc_buffer_waste() + pss.undo_waste();
ysr@777 4055 gclog_or_tty->print(" Waste: %8dK\n"
ysr@777 4056 " Alloc Buffer: %8dK\n"
ysr@777 4057 " Undo: %8dK\n",
ysr@777 4058 (total_waste * HeapWordSize) / K,
ysr@777 4059 (pss.alloc_buffer_waste() * HeapWordSize) / K,
ysr@777 4060 (pss.undo_waste() * HeapWordSize) / K);
ysr@777 4061 }
ysr@777 4062
ysr@777 4063 assert(pss.refs_to_scan() == 0, "Task queue should be empty");
ysr@777 4064 assert(pss.overflowed_refs_to_scan() == 0, "Overflow queue should be empty");
ysr@777 4065 }
ysr@777 4066 };
ysr@777 4067
ysr@777 4068 // *** Common G1 Evacuation Stuff
ysr@777 4069
ysr@777 4070 class G1CountClosure: public OopsInHeapRegionClosure {
ysr@777 4071 public:
ysr@777 4072 int n;
ysr@777 4073 G1CountClosure() : n(0) {}
ysr@777 4074 void do_oop(narrowOop* p) {
ysr@777 4075 guarantee(false, "NYI");
ysr@777 4076 }
ysr@777 4077 void do_oop(oop* p) {
ysr@777 4078 oop obj = *p;
ysr@777 4079 assert(obj != NULL && G1CollectedHeap::heap()->obj_in_cs(obj),
ysr@777 4080 "Rem set closure called on non-rem-set pointer.");
ysr@777 4081 n++;
ysr@777 4082 }
ysr@777 4083 };
ysr@777 4084
ysr@777 4085 static G1CountClosure count_closure;
ysr@777 4086
ysr@777 4087 void
ysr@777 4088 G1CollectedHeap::
ysr@777 4089 g1_process_strong_roots(bool collecting_perm_gen,
ysr@777 4090 SharedHeap::ScanningOption so,
ysr@777 4091 OopClosure* scan_non_heap_roots,
ysr@777 4092 OopsInHeapRegionClosure* scan_rs,
ysr@777 4093 OopsInHeapRegionClosure* scan_so,
ysr@777 4094 OopsInGenClosure* scan_perm,
ysr@777 4095 int worker_i) {
ysr@777 4096 // First scan the strong roots, including the perm gen.
ysr@777 4097 double ext_roots_start = os::elapsedTime();
ysr@777 4098 double closure_app_time_sec = 0.0;
ysr@777 4099
ysr@777 4100 BufferingOopClosure buf_scan_non_heap_roots(scan_non_heap_roots);
ysr@777 4101 BufferingOopsInGenClosure buf_scan_perm(scan_perm);
ysr@777 4102 buf_scan_perm.set_generation(perm_gen());
ysr@777 4103
ysr@777 4104 process_strong_roots(collecting_perm_gen, so,
ysr@777 4105 &buf_scan_non_heap_roots,
ysr@777 4106 &buf_scan_perm);
ysr@777 4107 // Finish up any enqueued closure apps.
ysr@777 4108 buf_scan_non_heap_roots.done();
ysr@777 4109 buf_scan_perm.done();
ysr@777 4110 double ext_roots_end = os::elapsedTime();
ysr@777 4111 g1_policy()->reset_obj_copy_time(worker_i);
ysr@777 4112 double obj_copy_time_sec =
ysr@777 4113 buf_scan_non_heap_roots.closure_app_seconds() +
ysr@777 4114 buf_scan_perm.closure_app_seconds();
ysr@777 4115 g1_policy()->record_obj_copy_time(worker_i, obj_copy_time_sec * 1000.0);
ysr@777 4116 double ext_root_time_ms =
ysr@777 4117 ((ext_roots_end - ext_roots_start) - obj_copy_time_sec) * 1000.0;
ysr@777 4118 g1_policy()->record_ext_root_scan_time(worker_i, ext_root_time_ms);
ysr@777 4119
ysr@777 4120 // Scan strong roots in mark stack.
ysr@777 4121 if (!_process_strong_tasks->is_task_claimed(G1H_PS_mark_stack_oops_do)) {
ysr@777 4122 concurrent_mark()->oops_do(scan_non_heap_roots);
ysr@777 4123 }
ysr@777 4124 double mark_stack_scan_ms = (os::elapsedTime() - ext_roots_end) * 1000.0;
ysr@777 4125 g1_policy()->record_mark_stack_scan_time(worker_i, mark_stack_scan_ms);
ysr@777 4126
ysr@777 4127 // XXX What should this be doing in the parallel case?
ysr@777 4128 g1_policy()->record_collection_pause_end_CH_strong_roots();
ysr@777 4129 if (G1VerifyRemSet) {
ysr@777 4130 // :::: FIXME ::::
ysr@777 4131 // The stupid remembered set doesn't know how to filter out dead
ysr@777 4132 // objects, which the smart one does, and so when it is created
ysr@777 4133 // and then compared the number of entries in each differs and
ysr@777 4134 // the verification code fails.
ysr@777 4135 guarantee(false, "verification code is broken, see note");
ysr@777 4136
ysr@777 4137 // Let's make sure that the current rem set agrees with the stupidest
ysr@777 4138 // one possible!
ysr@777 4139 bool refs_enabled = ref_processor()->discovery_enabled();
ysr@777 4140 if (refs_enabled) ref_processor()->disable_discovery();
ysr@777 4141 StupidG1RemSet stupid(this);
ysr@777 4142 count_closure.n = 0;
ysr@777 4143 stupid.oops_into_collection_set_do(&count_closure, worker_i);
ysr@777 4144 int stupid_n = count_closure.n;
ysr@777 4145 count_closure.n = 0;
ysr@777 4146 g1_rem_set()->oops_into_collection_set_do(&count_closure, worker_i);
ysr@777 4147 guarantee(count_closure.n == stupid_n, "Old and new rem sets differ.");
ysr@777 4148 gclog_or_tty->print_cr("\nFound %d pointers in heap RS.", count_closure.n);
ysr@777 4149 if (refs_enabled) ref_processor()->enable_discovery();
ysr@777 4150 }
ysr@777 4151 if (scan_so != NULL) {
ysr@777 4152 scan_scan_only_set(scan_so, worker_i);
ysr@777 4153 }
ysr@777 4154 // Now scan the complement of the collection set.
ysr@777 4155 if (scan_rs != NULL) {
ysr@777 4156 g1_rem_set()->oops_into_collection_set_do(scan_rs, worker_i);
ysr@777 4157 }
ysr@777 4158 // Finish with the ref_processor roots.
ysr@777 4159 if (!_process_strong_tasks->is_task_claimed(G1H_PS_refProcessor_oops_do)) {
ysr@777 4160 ref_processor()->oops_do(scan_non_heap_roots);
ysr@777 4161 }
ysr@777 4162 g1_policy()->record_collection_pause_end_G1_strong_roots();
ysr@777 4163 _process_strong_tasks->all_tasks_completed();
ysr@777 4164 }
ysr@777 4165
ysr@777 4166 void
ysr@777 4167 G1CollectedHeap::scan_scan_only_region(HeapRegion* r,
ysr@777 4168 OopsInHeapRegionClosure* oc,
ysr@777 4169 int worker_i) {
ysr@777 4170 HeapWord* startAddr = r->bottom();
ysr@777 4171 HeapWord* endAddr = r->used_region().end();
ysr@777 4172
ysr@777 4173 oc->set_region(r);
ysr@777 4174
ysr@777 4175 HeapWord* p = r->bottom();
ysr@777 4176 HeapWord* t = r->top();
ysr@777 4177 guarantee( p == r->next_top_at_mark_start(), "invariant" );
ysr@777 4178 while (p < t) {
ysr@777 4179 oop obj = oop(p);
ysr@777 4180 p += obj->oop_iterate(oc);
ysr@777 4181 }
ysr@777 4182 }
ysr@777 4183
ysr@777 4184 void
ysr@777 4185 G1CollectedHeap::scan_scan_only_set(OopsInHeapRegionClosure* oc,
ysr@777 4186 int worker_i) {
ysr@777 4187 double start = os::elapsedTime();
ysr@777 4188
ysr@777 4189 BufferingOopsInHeapRegionClosure boc(oc);
ysr@777 4190
ysr@777 4191 FilterInHeapRegionAndIntoCSClosure scan_only(this, &boc);
ysr@777 4192 FilterAndMarkInHeapRegionAndIntoCSClosure scan_and_mark(this, &boc, concurrent_mark());
ysr@777 4193
ysr@777 4194 OopsInHeapRegionClosure *foc;
ysr@777 4195 if (g1_policy()->should_initiate_conc_mark())
ysr@777 4196 foc = &scan_and_mark;
ysr@777 4197 else
ysr@777 4198 foc = &scan_only;
ysr@777 4199
ysr@777 4200 HeapRegion* hr;
ysr@777 4201 int n = 0;
ysr@777 4202 while ((hr = _young_list->par_get_next_scan_only_region()) != NULL) {
ysr@777 4203 scan_scan_only_region(hr, foc, worker_i);
ysr@777 4204 ++n;
ysr@777 4205 }
ysr@777 4206 boc.done();
ysr@777 4207
ysr@777 4208 double closure_app_s = boc.closure_app_seconds();
ysr@777 4209 g1_policy()->record_obj_copy_time(worker_i, closure_app_s * 1000.0);
ysr@777 4210 double ms = (os::elapsedTime() - start - closure_app_s)*1000.0;
ysr@777 4211 g1_policy()->record_scan_only_time(worker_i, ms, n);
ysr@777 4212 }
ysr@777 4213
ysr@777 4214 void
ysr@777 4215 G1CollectedHeap::g1_process_weak_roots(OopClosure* root_closure,
ysr@777 4216 OopClosure* non_root_closure) {
ysr@777 4217 SharedHeap::process_weak_roots(root_closure, non_root_closure);
ysr@777 4218 }
ysr@777 4219
ysr@777 4220
ysr@777 4221 class SaveMarksClosure: public HeapRegionClosure {
ysr@777 4222 public:
ysr@777 4223 bool doHeapRegion(HeapRegion* r) {
ysr@777 4224 r->save_marks();
ysr@777 4225 return false;
ysr@777 4226 }
ysr@777 4227 };
ysr@777 4228
ysr@777 4229 void G1CollectedHeap::save_marks() {
ysr@777 4230 if (ParallelGCThreads == 0) {
ysr@777 4231 SaveMarksClosure sm;
ysr@777 4232 heap_region_iterate(&sm);
ysr@777 4233 }
ysr@777 4234 // We do this even in the parallel case
ysr@777 4235 perm_gen()->save_marks();
ysr@777 4236 }
ysr@777 4237
ysr@777 4238 void G1CollectedHeap::evacuate_collection_set() {
ysr@777 4239 set_evacuation_failed(false);
ysr@777 4240
ysr@777 4241 g1_rem_set()->prepare_for_oops_into_collection_set_do();
ysr@777 4242 concurrent_g1_refine()->set_use_cache(false);
ysr@777 4243 int n_workers = (ParallelGCThreads > 0 ? workers()->total_workers() : 1);
ysr@777 4244
ysr@777 4245 set_par_threads(n_workers);
ysr@777 4246 G1ParTask g1_par_task(this, n_workers, _task_queues);
ysr@777 4247
ysr@777 4248 init_for_evac_failure(NULL);
ysr@777 4249
ysr@777 4250 change_strong_roots_parity(); // In preparation for parallel strong roots.
ysr@777 4251 rem_set()->prepare_for_younger_refs_iterate(true);
ysr@777 4252 double start_par = os::elapsedTime();
ysr@777 4253
ysr@777 4254 if (ParallelGCThreads > 0) {
ysr@777 4255 // The individual threads will set their evac-failure closures.
ysr@777 4256 workers()->run_task(&g1_par_task);
ysr@777 4257 } else {
ysr@777 4258 g1_par_task.work(0);
ysr@777 4259 }
ysr@777 4260
ysr@777 4261 double par_time = (os::elapsedTime() - start_par) * 1000.0;
ysr@777 4262 g1_policy()->record_par_time(par_time);
ysr@777 4263 set_par_threads(0);
ysr@777 4264 // Is this the right thing to do here? We don't save marks
ysr@777 4265 // on individual heap regions when we allocate from
ysr@777 4266 // them in parallel, so this seems like the correct place for this.
ysr@777 4267 all_alloc_regions_note_end_of_copying();
ysr@777 4268 {
ysr@777 4269 G1IsAliveClosure is_alive(this);
ysr@777 4270 G1KeepAliveClosure keep_alive(this);
ysr@777 4271 JNIHandles::weak_oops_do(&is_alive, &keep_alive);
ysr@777 4272 }
ysr@777 4273
ysr@777 4274 g1_rem_set()->cleanup_after_oops_into_collection_set_do();
ysr@777 4275 concurrent_g1_refine()->set_use_cache(true);
ysr@777 4276
ysr@777 4277 finalize_for_evac_failure();
ysr@777 4278
ysr@777 4279 // Must do this before removing self-forwarding pointers, which clears
ysr@777 4280 // the per-region evac-failure flags.
ysr@777 4281 concurrent_mark()->complete_marking_in_collection_set();
ysr@777 4282
ysr@777 4283 if (evacuation_failed()) {
ysr@777 4284 remove_self_forwarding_pointers();
ysr@777 4285
ysr@777 4286 if (PrintGCDetails) {
ysr@777 4287 gclog_or_tty->print(" (evacuation failed)");
ysr@777 4288 } else if (PrintGC) {
ysr@777 4289 gclog_or_tty->print("--");
ysr@777 4290 }
ysr@777 4291 }
ysr@777 4292
ysr@777 4293 COMPILER2_PRESENT(DerivedPointerTable::update_pointers());
ysr@777 4294 }
ysr@777 4295
ysr@777 4296 void G1CollectedHeap::free_region(HeapRegion* hr) {
ysr@777 4297 size_t pre_used = 0;
ysr@777 4298 size_t cleared_h_regions = 0;
ysr@777 4299 size_t freed_regions = 0;
ysr@777 4300 UncleanRegionList local_list;
ysr@777 4301
ysr@777 4302 HeapWord* start = hr->bottom();
ysr@777 4303 HeapWord* end = hr->prev_top_at_mark_start();
ysr@777 4304 size_t used_bytes = hr->used();
ysr@777 4305 size_t live_bytes = hr->max_live_bytes();
ysr@777 4306 if (used_bytes > 0) {
ysr@777 4307 guarantee( live_bytes <= used_bytes, "invariant" );
ysr@777 4308 } else {
ysr@777 4309 guarantee( live_bytes == 0, "invariant" );
ysr@777 4310 }
ysr@777 4311
ysr@777 4312 size_t garbage_bytes = used_bytes - live_bytes;
ysr@777 4313 if (garbage_bytes > 0)
ysr@777 4314 g1_policy()->decrease_known_garbage_bytes(garbage_bytes);
ysr@777 4315
ysr@777 4316 free_region_work(hr, pre_used, cleared_h_regions, freed_regions,
ysr@777 4317 &local_list);
ysr@777 4318 finish_free_region_work(pre_used, cleared_h_regions, freed_regions,
ysr@777 4319 &local_list);
ysr@777 4320 }
ysr@777 4321
ysr@777 4322 void
ysr@777 4323 G1CollectedHeap::free_region_work(HeapRegion* hr,
ysr@777 4324 size_t& pre_used,
ysr@777 4325 size_t& cleared_h_regions,
ysr@777 4326 size_t& freed_regions,
ysr@777 4327 UncleanRegionList* list,
ysr@777 4328 bool par) {
ysr@777 4329 assert(!hr->popular(), "should not free popular regions");
ysr@777 4330 pre_used += hr->used();
ysr@777 4331 if (hr->isHumongous()) {
ysr@777 4332 assert(hr->startsHumongous(),
ysr@777 4333 "Only the start of a humongous region should be freed.");
ysr@777 4334 int ind = _hrs->find(hr);
ysr@777 4335 assert(ind != -1, "Should have an index.");
ysr@777 4336 // Clear the start region.
ysr@777 4337 hr->hr_clear(par, true /*clear_space*/);
ysr@777 4338 list->insert_before_head(hr);
ysr@777 4339 cleared_h_regions++;
ysr@777 4340 freed_regions++;
ysr@777 4341 // Clear any continued regions.
ysr@777 4342 ind++;
ysr@777 4343 while ((size_t)ind < n_regions()) {
ysr@777 4344 HeapRegion* hrc = _hrs->at(ind);
ysr@777 4345 if (!hrc->continuesHumongous()) break;
ysr@777 4346 // Otherwise, does continue the H region.
ysr@777 4347 assert(hrc->humongous_start_region() == hr, "Huh?");
ysr@777 4348 hrc->hr_clear(par, true /*clear_space*/);
ysr@777 4349 cleared_h_regions++;
ysr@777 4350 freed_regions++;
ysr@777 4351 list->insert_before_head(hrc);
ysr@777 4352 ind++;
ysr@777 4353 }
ysr@777 4354 } else {
ysr@777 4355 hr->hr_clear(par, true /*clear_space*/);
ysr@777 4356 list->insert_before_head(hr);
ysr@777 4357 freed_regions++;
ysr@777 4358 // If we're using clear2, this should not be enabled.
ysr@777 4359 // assert(!hr->in_cohort(), "Can't be both free and in a cohort.");
ysr@777 4360 }
ysr@777 4361 }
ysr@777 4362
ysr@777 4363 void G1CollectedHeap::finish_free_region_work(size_t pre_used,
ysr@777 4364 size_t cleared_h_regions,
ysr@777 4365 size_t freed_regions,
ysr@777 4366 UncleanRegionList* list) {
ysr@777 4367 if (list != NULL && list->sz() > 0) {
ysr@777 4368 prepend_region_list_on_unclean_list(list);
ysr@777 4369 }
ysr@777 4370 // Acquire a lock, if we're parallel, to update possibly-shared
ysr@777 4371 // variables.
ysr@777 4372 Mutex* lock = (n_par_threads() > 0) ? ParGCRareEvent_lock : NULL;
ysr@777 4373 {
ysr@777 4374 MutexLockerEx x(lock, Mutex::_no_safepoint_check_flag);
ysr@777 4375 _summary_bytes_used -= pre_used;
ysr@777 4376 _num_humongous_regions -= (int) cleared_h_regions;
ysr@777 4377 _free_regions += freed_regions;
ysr@777 4378 }
ysr@777 4379 }
ysr@777 4380
ysr@777 4381
ysr@777 4382 void G1CollectedHeap::dirtyCardsForYoungRegions(CardTableModRefBS* ct_bs, HeapRegion* list) {
ysr@777 4383 while (list != NULL) {
ysr@777 4384 guarantee( list->is_young(), "invariant" );
ysr@777 4385
ysr@777 4386 HeapWord* bottom = list->bottom();
ysr@777 4387 HeapWord* end = list->end();
ysr@777 4388 MemRegion mr(bottom, end);
ysr@777 4389 ct_bs->dirty(mr);
ysr@777 4390
ysr@777 4391 list = list->get_next_young_region();
ysr@777 4392 }
ysr@777 4393 }
ysr@777 4394
ysr@777 4395 void G1CollectedHeap::cleanUpCardTable() {
ysr@777 4396 CardTableModRefBS* ct_bs = (CardTableModRefBS*) (barrier_set());
ysr@777 4397 double start = os::elapsedTime();
ysr@777 4398
ysr@777 4399 ct_bs->clear(_g1_committed);
ysr@777 4400
ysr@777 4401 // now, redirty the cards of the scan-only and survivor regions
ysr@777 4402 // (it seemed faster to do it this way, instead of iterating over
ysr@777 4403 // all regions and then clearing / dirtying as approprite)
ysr@777 4404 dirtyCardsForYoungRegions(ct_bs, _young_list->first_scan_only_region());
ysr@777 4405 dirtyCardsForYoungRegions(ct_bs, _young_list->first_survivor_region());
ysr@777 4406
ysr@777 4407 double elapsed = os::elapsedTime() - start;
ysr@777 4408 g1_policy()->record_clear_ct_time( elapsed * 1000.0);
ysr@777 4409 }
ysr@777 4410
ysr@777 4411
ysr@777 4412 void G1CollectedHeap::do_collection_pause_if_appropriate(size_t word_size) {
ysr@777 4413 // First do any popular regions.
ysr@777 4414 HeapRegion* hr;
ysr@777 4415 while ((hr = popular_region_to_evac()) != NULL) {
ysr@777 4416 evac_popular_region(hr);
ysr@777 4417 }
ysr@777 4418 // Now do heuristic pauses.
ysr@777 4419 if (g1_policy()->should_do_collection_pause(word_size)) {
ysr@777 4420 do_collection_pause();
ysr@777 4421 }
ysr@777 4422 }
ysr@777 4423
ysr@777 4424 void G1CollectedHeap::free_collection_set(HeapRegion* cs_head) {
ysr@777 4425 double young_time_ms = 0.0;
ysr@777 4426 double non_young_time_ms = 0.0;
ysr@777 4427
ysr@777 4428 G1CollectorPolicy* policy = g1_policy();
ysr@777 4429
ysr@777 4430 double start_sec = os::elapsedTime();
ysr@777 4431 bool non_young = true;
ysr@777 4432
ysr@777 4433 HeapRegion* cur = cs_head;
ysr@777 4434 int age_bound = -1;
ysr@777 4435 size_t rs_lengths = 0;
ysr@777 4436
ysr@777 4437 while (cur != NULL) {
ysr@777 4438 if (non_young) {
ysr@777 4439 if (cur->is_young()) {
ysr@777 4440 double end_sec = os::elapsedTime();
ysr@777 4441 double elapsed_ms = (end_sec - start_sec) * 1000.0;
ysr@777 4442 non_young_time_ms += elapsed_ms;
ysr@777 4443
ysr@777 4444 start_sec = os::elapsedTime();
ysr@777 4445 non_young = false;
ysr@777 4446 }
ysr@777 4447 } else {
ysr@777 4448 if (!cur->is_on_free_list()) {
ysr@777 4449 double end_sec = os::elapsedTime();
ysr@777 4450 double elapsed_ms = (end_sec - start_sec) * 1000.0;
ysr@777 4451 young_time_ms += elapsed_ms;
ysr@777 4452
ysr@777 4453 start_sec = os::elapsedTime();
ysr@777 4454 non_young = true;
ysr@777 4455 }
ysr@777 4456 }
ysr@777 4457
ysr@777 4458 rs_lengths += cur->rem_set()->occupied();
ysr@777 4459
ysr@777 4460 HeapRegion* next = cur->next_in_collection_set();
ysr@777 4461 assert(cur->in_collection_set(), "bad CS");
ysr@777 4462 cur->set_next_in_collection_set(NULL);
ysr@777 4463 cur->set_in_collection_set(false);
ysr@777 4464
ysr@777 4465 if (cur->is_young()) {
ysr@777 4466 int index = cur->young_index_in_cset();
ysr@777 4467 guarantee( index != -1, "invariant" );
ysr@777 4468 guarantee( (size_t)index < policy->young_cset_length(), "invariant" );
ysr@777 4469 size_t words_survived = _surviving_young_words[index];
ysr@777 4470 cur->record_surv_words_in_group(words_survived);
ysr@777 4471 } else {
ysr@777 4472 int index = cur->young_index_in_cset();
ysr@777 4473 guarantee( index == -1, "invariant" );
ysr@777 4474 }
ysr@777 4475
ysr@777 4476 assert( (cur->is_young() && cur->young_index_in_cset() > -1) ||
ysr@777 4477 (!cur->is_young() && cur->young_index_in_cset() == -1),
ysr@777 4478 "invariant" );
ysr@777 4479
ysr@777 4480 if (!cur->evacuation_failed()) {
ysr@777 4481 // And the region is empty.
ysr@777 4482 assert(!cur->is_empty(),
ysr@777 4483 "Should not have empty regions in a CS.");
ysr@777 4484 free_region(cur);
ysr@777 4485 } else {
ysr@777 4486 guarantee( !cur->is_scan_only(), "should not be scan only" );
ysr@777 4487 cur->uninstall_surv_rate_group();
ysr@777 4488 if (cur->is_young())
ysr@777 4489 cur->set_young_index_in_cset(-1);
ysr@777 4490 cur->set_not_young();
ysr@777 4491 cur->set_evacuation_failed(false);
ysr@777 4492 }
ysr@777 4493 cur = next;
ysr@777 4494 }
ysr@777 4495
ysr@777 4496 policy->record_max_rs_lengths(rs_lengths);
ysr@777 4497 policy->cset_regions_freed();
ysr@777 4498
ysr@777 4499 double end_sec = os::elapsedTime();
ysr@777 4500 double elapsed_ms = (end_sec - start_sec) * 1000.0;
ysr@777 4501 if (non_young)
ysr@777 4502 non_young_time_ms += elapsed_ms;
ysr@777 4503 else
ysr@777 4504 young_time_ms += elapsed_ms;
ysr@777 4505
ysr@777 4506 policy->record_young_free_cset_time_ms(young_time_ms);
ysr@777 4507 policy->record_non_young_free_cset_time_ms(non_young_time_ms);
ysr@777 4508 }
ysr@777 4509
ysr@777 4510 HeapRegion*
ysr@777 4511 G1CollectedHeap::alloc_region_from_unclean_list_locked(bool zero_filled) {
ysr@777 4512 assert(ZF_mon->owned_by_self(), "Precondition");
ysr@777 4513 HeapRegion* res = pop_unclean_region_list_locked();
ysr@777 4514 if (res != NULL) {
ysr@777 4515 assert(!res->continuesHumongous() &&
ysr@777 4516 res->zero_fill_state() != HeapRegion::Allocated,
ysr@777 4517 "Only free regions on unclean list.");
ysr@777 4518 if (zero_filled) {
ysr@777 4519 res->ensure_zero_filled_locked();
ysr@777 4520 res->set_zero_fill_allocated();
ysr@777 4521 }
ysr@777 4522 }
ysr@777 4523 return res;
ysr@777 4524 }
ysr@777 4525
ysr@777 4526 HeapRegion* G1CollectedHeap::alloc_region_from_unclean_list(bool zero_filled) {
ysr@777 4527 MutexLockerEx zx(ZF_mon, Mutex::_no_safepoint_check_flag);
ysr@777 4528 return alloc_region_from_unclean_list_locked(zero_filled);
ysr@777 4529 }
ysr@777 4530
ysr@777 4531 void G1CollectedHeap::put_region_on_unclean_list(HeapRegion* r) {
ysr@777 4532 MutexLockerEx x(ZF_mon, Mutex::_no_safepoint_check_flag);
ysr@777 4533 put_region_on_unclean_list_locked(r);
ysr@777 4534 if (should_zf()) ZF_mon->notify_all(); // Wake up ZF thread.
ysr@777 4535 }
ysr@777 4536
ysr@777 4537 void G1CollectedHeap::set_unclean_regions_coming(bool b) {
ysr@777 4538 MutexLockerEx x(Cleanup_mon);
ysr@777 4539 set_unclean_regions_coming_locked(b);
ysr@777 4540 }
ysr@777 4541
ysr@777 4542 void G1CollectedHeap::set_unclean_regions_coming_locked(bool b) {
ysr@777 4543 assert(Cleanup_mon->owned_by_self(), "Precondition");
ysr@777 4544 _unclean_regions_coming = b;
ysr@777 4545 // Wake up mutator threads that might be waiting for completeCleanup to
ysr@777 4546 // finish.
ysr@777 4547 if (!b) Cleanup_mon->notify_all();
ysr@777 4548 }
ysr@777 4549
ysr@777 4550 void G1CollectedHeap::wait_for_cleanup_complete() {
ysr@777 4551 MutexLockerEx x(Cleanup_mon);
ysr@777 4552 wait_for_cleanup_complete_locked();
ysr@777 4553 }
ysr@777 4554
ysr@777 4555 void G1CollectedHeap::wait_for_cleanup_complete_locked() {
ysr@777 4556 assert(Cleanup_mon->owned_by_self(), "precondition");
ysr@777 4557 while (_unclean_regions_coming) {
ysr@777 4558 Cleanup_mon->wait();
ysr@777 4559 }
ysr@777 4560 }
ysr@777 4561
ysr@777 4562 void
ysr@777 4563 G1CollectedHeap::put_region_on_unclean_list_locked(HeapRegion* r) {
ysr@777 4564 assert(ZF_mon->owned_by_self(), "precondition.");
ysr@777 4565 _unclean_region_list.insert_before_head(r);
ysr@777 4566 }
ysr@777 4567
ysr@777 4568 void
ysr@777 4569 G1CollectedHeap::prepend_region_list_on_unclean_list(UncleanRegionList* list) {
ysr@777 4570 MutexLockerEx x(ZF_mon, Mutex::_no_safepoint_check_flag);
ysr@777 4571 prepend_region_list_on_unclean_list_locked(list);
ysr@777 4572 if (should_zf()) ZF_mon->notify_all(); // Wake up ZF thread.
ysr@777 4573 }
ysr@777 4574
ysr@777 4575 void
ysr@777 4576 G1CollectedHeap::
ysr@777 4577 prepend_region_list_on_unclean_list_locked(UncleanRegionList* list) {
ysr@777 4578 assert(ZF_mon->owned_by_self(), "precondition.");
ysr@777 4579 _unclean_region_list.prepend_list(list);
ysr@777 4580 }
ysr@777 4581
ysr@777 4582 HeapRegion* G1CollectedHeap::pop_unclean_region_list_locked() {
ysr@777 4583 assert(ZF_mon->owned_by_self(), "precondition.");
ysr@777 4584 HeapRegion* res = _unclean_region_list.pop();
ysr@777 4585 if (res != NULL) {
ysr@777 4586 // Inform ZF thread that there's a new unclean head.
ysr@777 4587 if (_unclean_region_list.hd() != NULL && should_zf())
ysr@777 4588 ZF_mon->notify_all();
ysr@777 4589 }
ysr@777 4590 return res;
ysr@777 4591 }
ysr@777 4592
ysr@777 4593 HeapRegion* G1CollectedHeap::peek_unclean_region_list_locked() {
ysr@777 4594 assert(ZF_mon->owned_by_self(), "precondition.");
ysr@777 4595 return _unclean_region_list.hd();
ysr@777 4596 }
ysr@777 4597
ysr@777 4598
ysr@777 4599 bool G1CollectedHeap::move_cleaned_region_to_free_list_locked() {
ysr@777 4600 assert(ZF_mon->owned_by_self(), "Precondition");
ysr@777 4601 HeapRegion* r = peek_unclean_region_list_locked();
ysr@777 4602 if (r != NULL && r->zero_fill_state() == HeapRegion::ZeroFilled) {
ysr@777 4603 // Result of below must be equal to "r", since we hold the lock.
ysr@777 4604 (void)pop_unclean_region_list_locked();
ysr@777 4605 put_free_region_on_list_locked(r);
ysr@777 4606 return true;
ysr@777 4607 } else {
ysr@777 4608 return false;
ysr@777 4609 }
ysr@777 4610 }
ysr@777 4611
ysr@777 4612 bool G1CollectedHeap::move_cleaned_region_to_free_list() {
ysr@777 4613 MutexLockerEx x(ZF_mon, Mutex::_no_safepoint_check_flag);
ysr@777 4614 return move_cleaned_region_to_free_list_locked();
ysr@777 4615 }
ysr@777 4616
ysr@777 4617
ysr@777 4618 void G1CollectedHeap::put_free_region_on_list_locked(HeapRegion* r) {
ysr@777 4619 assert(ZF_mon->owned_by_self(), "precondition.");
ysr@777 4620 assert(_free_region_list_size == free_region_list_length(), "Inv");
ysr@777 4621 assert(r->zero_fill_state() == HeapRegion::ZeroFilled,
ysr@777 4622 "Regions on free list must be zero filled");
ysr@777 4623 assert(!r->isHumongous(), "Must not be humongous.");
ysr@777 4624 assert(r->is_empty(), "Better be empty");
ysr@777 4625 assert(!r->is_on_free_list(),
ysr@777 4626 "Better not already be on free list");
ysr@777 4627 assert(!r->is_on_unclean_list(),
ysr@777 4628 "Better not already be on unclean list");
ysr@777 4629 r->set_on_free_list(true);
ysr@777 4630 r->set_next_on_free_list(_free_region_list);
ysr@777 4631 _free_region_list = r;
ysr@777 4632 _free_region_list_size++;
ysr@777 4633 assert(_free_region_list_size == free_region_list_length(), "Inv");
ysr@777 4634 }
ysr@777 4635
ysr@777 4636 void G1CollectedHeap::put_free_region_on_list(HeapRegion* r) {
ysr@777 4637 MutexLockerEx x(ZF_mon, Mutex::_no_safepoint_check_flag);
ysr@777 4638 put_free_region_on_list_locked(r);
ysr@777 4639 }
ysr@777 4640
ysr@777 4641 HeapRegion* G1CollectedHeap::pop_free_region_list_locked() {
ysr@777 4642 assert(ZF_mon->owned_by_self(), "precondition.");
ysr@777 4643 assert(_free_region_list_size == free_region_list_length(), "Inv");
ysr@777 4644 HeapRegion* res = _free_region_list;
ysr@777 4645 if (res != NULL) {
ysr@777 4646 _free_region_list = res->next_from_free_list();
ysr@777 4647 _free_region_list_size--;
ysr@777 4648 res->set_on_free_list(false);
ysr@777 4649 res->set_next_on_free_list(NULL);
ysr@777 4650 assert(_free_region_list_size == free_region_list_length(), "Inv");
ysr@777 4651 }
ysr@777 4652 return res;
ysr@777 4653 }
ysr@777 4654
ysr@777 4655
ysr@777 4656 HeapRegion* G1CollectedHeap::alloc_free_region_from_lists(bool zero_filled) {
ysr@777 4657 // By self, or on behalf of self.
ysr@777 4658 assert(Heap_lock->is_locked(), "Precondition");
ysr@777 4659 HeapRegion* res = NULL;
ysr@777 4660 bool first = true;
ysr@777 4661 while (res == NULL) {
ysr@777 4662 if (zero_filled || !first) {
ysr@777 4663 MutexLockerEx x(ZF_mon, Mutex::_no_safepoint_check_flag);
ysr@777 4664 res = pop_free_region_list_locked();
ysr@777 4665 if (res != NULL) {
ysr@777 4666 assert(!res->zero_fill_is_allocated(),
ysr@777 4667 "No allocated regions on free list.");
ysr@777 4668 res->set_zero_fill_allocated();
ysr@777 4669 } else if (!first) {
ysr@777 4670 break; // We tried both, time to return NULL.
ysr@777 4671 }
ysr@777 4672 }
ysr@777 4673
ysr@777 4674 if (res == NULL) {
ysr@777 4675 res = alloc_region_from_unclean_list(zero_filled);
ysr@777 4676 }
ysr@777 4677 assert(res == NULL ||
ysr@777 4678 !zero_filled ||
ysr@777 4679 res->zero_fill_is_allocated(),
ysr@777 4680 "We must have allocated the region we're returning");
ysr@777 4681 first = false;
ysr@777 4682 }
ysr@777 4683 return res;
ysr@777 4684 }
ysr@777 4685
ysr@777 4686 void G1CollectedHeap::remove_allocated_regions_from_lists() {
ysr@777 4687 MutexLockerEx x(ZF_mon, Mutex::_no_safepoint_check_flag);
ysr@777 4688 {
ysr@777 4689 HeapRegion* prev = NULL;
ysr@777 4690 HeapRegion* cur = _unclean_region_list.hd();
ysr@777 4691 while (cur != NULL) {
ysr@777 4692 HeapRegion* next = cur->next_from_unclean_list();
ysr@777 4693 if (cur->zero_fill_is_allocated()) {
ysr@777 4694 // Remove from the list.
ysr@777 4695 if (prev == NULL) {
ysr@777 4696 (void)_unclean_region_list.pop();
ysr@777 4697 } else {
ysr@777 4698 _unclean_region_list.delete_after(prev);
ysr@777 4699 }
ysr@777 4700 cur->set_on_unclean_list(false);
ysr@777 4701 cur->set_next_on_unclean_list(NULL);
ysr@777 4702 } else {
ysr@777 4703 prev = cur;
ysr@777 4704 }
ysr@777 4705 cur = next;
ysr@777 4706 }
ysr@777 4707 assert(_unclean_region_list.sz() == unclean_region_list_length(),
ysr@777 4708 "Inv");
ysr@777 4709 }
ysr@777 4710
ysr@777 4711 {
ysr@777 4712 HeapRegion* prev = NULL;
ysr@777 4713 HeapRegion* cur = _free_region_list;
ysr@777 4714 while (cur != NULL) {
ysr@777 4715 HeapRegion* next = cur->next_from_free_list();
ysr@777 4716 if (cur->zero_fill_is_allocated()) {
ysr@777 4717 // Remove from the list.
ysr@777 4718 if (prev == NULL) {
ysr@777 4719 _free_region_list = cur->next_from_free_list();
ysr@777 4720 } else {
ysr@777 4721 prev->set_next_on_free_list(cur->next_from_free_list());
ysr@777 4722 }
ysr@777 4723 cur->set_on_free_list(false);
ysr@777 4724 cur->set_next_on_free_list(NULL);
ysr@777 4725 _free_region_list_size--;
ysr@777 4726 } else {
ysr@777 4727 prev = cur;
ysr@777 4728 }
ysr@777 4729 cur = next;
ysr@777 4730 }
ysr@777 4731 assert(_free_region_list_size == free_region_list_length(), "Inv");
ysr@777 4732 }
ysr@777 4733 }
ysr@777 4734
ysr@777 4735 bool G1CollectedHeap::verify_region_lists() {
ysr@777 4736 MutexLockerEx x(ZF_mon, Mutex::_no_safepoint_check_flag);
ysr@777 4737 return verify_region_lists_locked();
ysr@777 4738 }
ysr@777 4739
ysr@777 4740 bool G1CollectedHeap::verify_region_lists_locked() {
ysr@777 4741 HeapRegion* unclean = _unclean_region_list.hd();
ysr@777 4742 while (unclean != NULL) {
ysr@777 4743 guarantee(unclean->is_on_unclean_list(), "Well, it is!");
ysr@777 4744 guarantee(!unclean->is_on_free_list(), "Well, it shouldn't be!");
ysr@777 4745 guarantee(unclean->zero_fill_state() != HeapRegion::Allocated,
ysr@777 4746 "Everything else is possible.");
ysr@777 4747 unclean = unclean->next_from_unclean_list();
ysr@777 4748 }
ysr@777 4749 guarantee(_unclean_region_list.sz() == unclean_region_list_length(), "Inv");
ysr@777 4750
ysr@777 4751 HeapRegion* free_r = _free_region_list;
ysr@777 4752 while (free_r != NULL) {
ysr@777 4753 assert(free_r->is_on_free_list(), "Well, it is!");
ysr@777 4754 assert(!free_r->is_on_unclean_list(), "Well, it shouldn't be!");
ysr@777 4755 switch (free_r->zero_fill_state()) {
ysr@777 4756 case HeapRegion::NotZeroFilled:
ysr@777 4757 case HeapRegion::ZeroFilling:
ysr@777 4758 guarantee(false, "Should not be on free list.");
ysr@777 4759 break;
ysr@777 4760 default:
ysr@777 4761 // Everything else is possible.
ysr@777 4762 break;
ysr@777 4763 }
ysr@777 4764 free_r = free_r->next_from_free_list();
ysr@777 4765 }
ysr@777 4766 guarantee(_free_region_list_size == free_region_list_length(), "Inv");
ysr@777 4767 // If we didn't do an assertion...
ysr@777 4768 return true;
ysr@777 4769 }
ysr@777 4770
ysr@777 4771 size_t G1CollectedHeap::free_region_list_length() {
ysr@777 4772 assert(ZF_mon->owned_by_self(), "precondition.");
ysr@777 4773 size_t len = 0;
ysr@777 4774 HeapRegion* cur = _free_region_list;
ysr@777 4775 while (cur != NULL) {
ysr@777 4776 len++;
ysr@777 4777 cur = cur->next_from_free_list();
ysr@777 4778 }
ysr@777 4779 return len;
ysr@777 4780 }
ysr@777 4781
ysr@777 4782 size_t G1CollectedHeap::unclean_region_list_length() {
ysr@777 4783 assert(ZF_mon->owned_by_self(), "precondition.");
ysr@777 4784 return _unclean_region_list.length();
ysr@777 4785 }
ysr@777 4786
ysr@777 4787 size_t G1CollectedHeap::n_regions() {
ysr@777 4788 return _hrs->length();
ysr@777 4789 }
ysr@777 4790
ysr@777 4791 size_t G1CollectedHeap::max_regions() {
ysr@777 4792 return
ysr@777 4793 (size_t)align_size_up(g1_reserved_obj_bytes(), HeapRegion::GrainBytes) /
ysr@777 4794 HeapRegion::GrainBytes;
ysr@777 4795 }
ysr@777 4796
ysr@777 4797 size_t G1CollectedHeap::free_regions() {
ysr@777 4798 /* Possibly-expensive assert.
ysr@777 4799 assert(_free_regions == count_free_regions(),
ysr@777 4800 "_free_regions is off.");
ysr@777 4801 */
ysr@777 4802 return _free_regions;
ysr@777 4803 }
ysr@777 4804
ysr@777 4805 bool G1CollectedHeap::should_zf() {
ysr@777 4806 return _free_region_list_size < (size_t) G1ConcZFMaxRegions;
ysr@777 4807 }
ysr@777 4808
ysr@777 4809 class RegionCounter: public HeapRegionClosure {
ysr@777 4810 size_t _n;
ysr@777 4811 public:
ysr@777 4812 RegionCounter() : _n(0) {}
ysr@777 4813 bool doHeapRegion(HeapRegion* r) {
ysr@777 4814 if (r->is_empty() && !r->popular()) {
ysr@777 4815 assert(!r->isHumongous(), "H regions should not be empty.");
ysr@777 4816 _n++;
ysr@777 4817 }
ysr@777 4818 return false;
ysr@777 4819 }
ysr@777 4820 int res() { return (int) _n; }
ysr@777 4821 };
ysr@777 4822
ysr@777 4823 size_t G1CollectedHeap::count_free_regions() {
ysr@777 4824 RegionCounter rc;
ysr@777 4825 heap_region_iterate(&rc);
ysr@777 4826 size_t n = rc.res();
ysr@777 4827 if (_cur_alloc_region != NULL && _cur_alloc_region->is_empty())
ysr@777 4828 n--;
ysr@777 4829 return n;
ysr@777 4830 }
ysr@777 4831
ysr@777 4832 size_t G1CollectedHeap::count_free_regions_list() {
ysr@777 4833 size_t n = 0;
ysr@777 4834 size_t o = 0;
ysr@777 4835 ZF_mon->lock_without_safepoint_check();
ysr@777 4836 HeapRegion* cur = _free_region_list;
ysr@777 4837 while (cur != NULL) {
ysr@777 4838 cur = cur->next_from_free_list();
ysr@777 4839 n++;
ysr@777 4840 }
ysr@777 4841 size_t m = unclean_region_list_length();
ysr@777 4842 ZF_mon->unlock();
ysr@777 4843 return n + m;
ysr@777 4844 }
ysr@777 4845
ysr@777 4846 bool G1CollectedHeap::should_set_young_locked() {
ysr@777 4847 assert(heap_lock_held_for_gc(),
ysr@777 4848 "the heap lock should already be held by or for this thread");
ysr@777 4849 return (g1_policy()->in_young_gc_mode() &&
ysr@777 4850 g1_policy()->should_add_next_region_to_young_list());
ysr@777 4851 }
ysr@777 4852
ysr@777 4853 void G1CollectedHeap::set_region_short_lived_locked(HeapRegion* hr) {
ysr@777 4854 assert(heap_lock_held_for_gc(),
ysr@777 4855 "the heap lock should already be held by or for this thread");
ysr@777 4856 _young_list->push_region(hr);
ysr@777 4857 g1_policy()->set_region_short_lived(hr);
ysr@777 4858 }
ysr@777 4859
ysr@777 4860 class NoYoungRegionsClosure: public HeapRegionClosure {
ysr@777 4861 private:
ysr@777 4862 bool _success;
ysr@777 4863 public:
ysr@777 4864 NoYoungRegionsClosure() : _success(true) { }
ysr@777 4865 bool doHeapRegion(HeapRegion* r) {
ysr@777 4866 if (r->is_young()) {
ysr@777 4867 gclog_or_tty->print_cr("Region ["PTR_FORMAT", "PTR_FORMAT") tagged as young",
ysr@777 4868 r->bottom(), r->end());
ysr@777 4869 _success = false;
ysr@777 4870 }
ysr@777 4871 return false;
ysr@777 4872 }
ysr@777 4873 bool success() { return _success; }
ysr@777 4874 };
ysr@777 4875
ysr@777 4876 bool G1CollectedHeap::check_young_list_empty(bool ignore_scan_only_list,
ysr@777 4877 bool check_sample) {
ysr@777 4878 bool ret = true;
ysr@777 4879
ysr@777 4880 ret = _young_list->check_list_empty(ignore_scan_only_list, check_sample);
ysr@777 4881 if (!ignore_scan_only_list) {
ysr@777 4882 NoYoungRegionsClosure closure;
ysr@777 4883 heap_region_iterate(&closure);
ysr@777 4884 ret = ret && closure.success();
ysr@777 4885 }
ysr@777 4886
ysr@777 4887 return ret;
ysr@777 4888 }
ysr@777 4889
ysr@777 4890 void G1CollectedHeap::empty_young_list() {
ysr@777 4891 assert(heap_lock_held_for_gc(),
ysr@777 4892 "the heap lock should already be held by or for this thread");
ysr@777 4893 assert(g1_policy()->in_young_gc_mode(), "should be in young GC mode");
ysr@777 4894
ysr@777 4895 _young_list->empty_list();
ysr@777 4896 }
ysr@777 4897
ysr@777 4898 bool G1CollectedHeap::all_alloc_regions_no_allocs_since_save_marks() {
ysr@777 4899 bool no_allocs = true;
ysr@777 4900 for (int ap = 0; ap < GCAllocPurposeCount && no_allocs; ++ap) {
ysr@777 4901 HeapRegion* r = _gc_alloc_regions[ap];
ysr@777 4902 no_allocs = r == NULL || r->saved_mark_at_top();
ysr@777 4903 }
ysr@777 4904 return no_allocs;
ysr@777 4905 }
ysr@777 4906
ysr@777 4907 void G1CollectedHeap::all_alloc_regions_note_end_of_copying() {
ysr@777 4908 for (int ap = 0; ap < GCAllocPurposeCount; ++ap) {
ysr@777 4909 HeapRegion* r = _gc_alloc_regions[ap];
ysr@777 4910 if (r != NULL) {
ysr@777 4911 // Check for aliases.
ysr@777 4912 bool has_processed_alias = false;
ysr@777 4913 for (int i = 0; i < ap; ++i) {
ysr@777 4914 if (_gc_alloc_regions[i] == r) {
ysr@777 4915 has_processed_alias = true;
ysr@777 4916 break;
ysr@777 4917 }
ysr@777 4918 }
ysr@777 4919 if (!has_processed_alias) {
ysr@777 4920 r->note_end_of_copying();
ysr@777 4921 g1_policy()->record_after_bytes(r->used());
ysr@777 4922 }
ysr@777 4923 }
ysr@777 4924 }
ysr@777 4925 }
ysr@777 4926
ysr@777 4927
ysr@777 4928 // Done at the start of full GC.
ysr@777 4929 void G1CollectedHeap::tear_down_region_lists() {
ysr@777 4930 MutexLockerEx x(ZF_mon, Mutex::_no_safepoint_check_flag);
ysr@777 4931 while (pop_unclean_region_list_locked() != NULL) ;
ysr@777 4932 assert(_unclean_region_list.hd() == NULL && _unclean_region_list.sz() == 0,
ysr@777 4933 "Postconditions of loop.")
ysr@777 4934 while (pop_free_region_list_locked() != NULL) ;
ysr@777 4935 assert(_free_region_list == NULL, "Postcondition of loop.");
ysr@777 4936 if (_free_region_list_size != 0) {
ysr@777 4937 gclog_or_tty->print_cr("Size is %d.", _free_region_list_size);
ysr@777 4938 print();
ysr@777 4939 }
ysr@777 4940 assert(_free_region_list_size == 0, "Postconditions of loop.");
ysr@777 4941 }
ysr@777 4942
ysr@777 4943
ysr@777 4944 class RegionResetter: public HeapRegionClosure {
ysr@777 4945 G1CollectedHeap* _g1;
ysr@777 4946 int _n;
ysr@777 4947 public:
ysr@777 4948 RegionResetter() : _g1(G1CollectedHeap::heap()), _n(0) {}
ysr@777 4949 bool doHeapRegion(HeapRegion* r) {
ysr@777 4950 if (r->continuesHumongous()) return false;
ysr@777 4951 if (r->top() > r->bottom()) {
ysr@777 4952 if (r->top() < r->end()) {
ysr@777 4953 Copy::fill_to_words(r->top(),
ysr@777 4954 pointer_delta(r->end(), r->top()));
ysr@777 4955 }
ysr@777 4956 r->set_zero_fill_allocated();
ysr@777 4957 } else {
ysr@777 4958 assert(r->is_empty(), "tautology");
ysr@777 4959 if (r->popular()) {
ysr@777 4960 if (r->zero_fill_state() != HeapRegion::Allocated) {
ysr@777 4961 r->ensure_zero_filled_locked();
ysr@777 4962 r->set_zero_fill_allocated();
ysr@777 4963 }
ysr@777 4964 } else {
ysr@777 4965 _n++;
ysr@777 4966 switch (r->zero_fill_state()) {
ysr@777 4967 case HeapRegion::NotZeroFilled:
ysr@777 4968 case HeapRegion::ZeroFilling:
ysr@777 4969 _g1->put_region_on_unclean_list_locked(r);
ysr@777 4970 break;
ysr@777 4971 case HeapRegion::Allocated:
ysr@777 4972 r->set_zero_fill_complete();
ysr@777 4973 // no break; go on to put on free list.
ysr@777 4974 case HeapRegion::ZeroFilled:
ysr@777 4975 _g1->put_free_region_on_list_locked(r);
ysr@777 4976 break;
ysr@777 4977 }
ysr@777 4978 }
ysr@777 4979 }
ysr@777 4980 return false;
ysr@777 4981 }
ysr@777 4982
ysr@777 4983 int getFreeRegionCount() {return _n;}
ysr@777 4984 };
ysr@777 4985
ysr@777 4986 // Done at the end of full GC.
ysr@777 4987 void G1CollectedHeap::rebuild_region_lists() {
ysr@777 4988 MutexLockerEx x(ZF_mon, Mutex::_no_safepoint_check_flag);
ysr@777 4989 // This needs to go at the end of the full GC.
ysr@777 4990 RegionResetter rs;
ysr@777 4991 heap_region_iterate(&rs);
ysr@777 4992 _free_regions = rs.getFreeRegionCount();
ysr@777 4993 // Tell the ZF thread it may have work to do.
ysr@777 4994 if (should_zf()) ZF_mon->notify_all();
ysr@777 4995 }
ysr@777 4996
ysr@777 4997 class UsedRegionsNeedZeroFillSetter: public HeapRegionClosure {
ysr@777 4998 G1CollectedHeap* _g1;
ysr@777 4999 int _n;
ysr@777 5000 public:
ysr@777 5001 UsedRegionsNeedZeroFillSetter() : _g1(G1CollectedHeap::heap()), _n(0) {}
ysr@777 5002 bool doHeapRegion(HeapRegion* r) {
ysr@777 5003 if (r->continuesHumongous()) return false;
ysr@777 5004 if (r->top() > r->bottom()) {
ysr@777 5005 // There are assertions in "set_zero_fill_needed()" below that
ysr@777 5006 // require top() == bottom(), so this is technically illegal.
ysr@777 5007 // We'll skirt the law here, by making that true temporarily.
ysr@777 5008 DEBUG_ONLY(HeapWord* save_top = r->top();
ysr@777 5009 r->set_top(r->bottom()));
ysr@777 5010 r->set_zero_fill_needed();
ysr@777 5011 DEBUG_ONLY(r->set_top(save_top));
ysr@777 5012 }
ysr@777 5013 return false;
ysr@777 5014 }
ysr@777 5015 };
ysr@777 5016
ysr@777 5017 // Done at the start of full GC.
ysr@777 5018 void G1CollectedHeap::set_used_regions_to_need_zero_fill() {
ysr@777 5019 MutexLockerEx x(ZF_mon, Mutex::_no_safepoint_check_flag);
ysr@777 5020 // This needs to go at the end of the full GC.
ysr@777 5021 UsedRegionsNeedZeroFillSetter rs;
ysr@777 5022 heap_region_iterate(&rs);
ysr@777 5023 }
ysr@777 5024
ysr@777 5025 class CountObjClosure: public ObjectClosure {
ysr@777 5026 size_t _n;
ysr@777 5027 public:
ysr@777 5028 CountObjClosure() : _n(0) {}
ysr@777 5029 void do_object(oop obj) { _n++; }
ysr@777 5030 size_t n() { return _n; }
ysr@777 5031 };
ysr@777 5032
ysr@777 5033 size_t G1CollectedHeap::pop_object_used_objs() {
ysr@777 5034 size_t sum_objs = 0;
ysr@777 5035 for (int i = 0; i < G1NumPopularRegions; i++) {
ysr@777 5036 CountObjClosure cl;
ysr@777 5037 _hrs->at(i)->object_iterate(&cl);
ysr@777 5038 sum_objs += cl.n();
ysr@777 5039 }
ysr@777 5040 return sum_objs;
ysr@777 5041 }
ysr@777 5042
ysr@777 5043 size_t G1CollectedHeap::pop_object_used_bytes() {
ysr@777 5044 size_t sum_bytes = 0;
ysr@777 5045 for (int i = 0; i < G1NumPopularRegions; i++) {
ysr@777 5046 sum_bytes += _hrs->at(i)->used();
ysr@777 5047 }
ysr@777 5048 return sum_bytes;
ysr@777 5049 }
ysr@777 5050
ysr@777 5051
ysr@777 5052 static int nq = 0;
ysr@777 5053
ysr@777 5054 HeapWord* G1CollectedHeap::allocate_popular_object(size_t word_size) {
ysr@777 5055 while (_cur_pop_hr_index < G1NumPopularRegions) {
ysr@777 5056 HeapRegion* cur_pop_region = _hrs->at(_cur_pop_hr_index);
ysr@777 5057 HeapWord* res = cur_pop_region->allocate(word_size);
ysr@777 5058 if (res != NULL) {
ysr@777 5059 // We account for popular objs directly in the used summary:
ysr@777 5060 _summary_bytes_used += (word_size * HeapWordSize);
ysr@777 5061 return res;
ysr@777 5062 }
ysr@777 5063 // Otherwise, try the next region (first making sure that we remember
ysr@777 5064 // the last "top" value as the "next_top_at_mark_start", so that
ysr@777 5065 // objects made popular during markings aren't automatically considered
ysr@777 5066 // live).
ysr@777 5067 cur_pop_region->note_end_of_copying();
ysr@777 5068 // Otherwise, try the next region.
ysr@777 5069 _cur_pop_hr_index++;
ysr@777 5070 }
ysr@777 5071 // XXX: For now !!!
ysr@777 5072 vm_exit_out_of_memory(word_size,
ysr@777 5073 "Not enough pop obj space (To Be Fixed)");
ysr@777 5074 return NULL;
ysr@777 5075 }
ysr@777 5076
ysr@777 5077 class HeapRegionList: public CHeapObj {
ysr@777 5078 public:
ysr@777 5079 HeapRegion* hr;
ysr@777 5080 HeapRegionList* next;
ysr@777 5081 };
ysr@777 5082
ysr@777 5083 void G1CollectedHeap::schedule_popular_region_evac(HeapRegion* r) {
ysr@777 5084 // This might happen during parallel GC, so protect by this lock.
ysr@777 5085 MutexLockerEx x(ParGCRareEvent_lock, Mutex::_no_safepoint_check_flag);
ysr@777 5086 // We don't schedule regions whose evacuations are already pending, or
ysr@777 5087 // are already being evacuated.
ysr@777 5088 if (!r->popular_pending() && !r->in_collection_set()) {
ysr@777 5089 r->set_popular_pending(true);
ysr@777 5090 if (G1TracePopularity) {
ysr@777 5091 gclog_or_tty->print_cr("Scheduling region "PTR_FORMAT" "
ysr@777 5092 "["PTR_FORMAT", "PTR_FORMAT") for pop-object evacuation.",
ysr@777 5093 r, r->bottom(), r->end());
ysr@777 5094 }
ysr@777 5095 HeapRegionList* hrl = new HeapRegionList;
ysr@777 5096 hrl->hr = r;
ysr@777 5097 hrl->next = _popular_regions_to_be_evacuated;
ysr@777 5098 _popular_regions_to_be_evacuated = hrl;
ysr@777 5099 }
ysr@777 5100 }
ysr@777 5101
ysr@777 5102 HeapRegion* G1CollectedHeap::popular_region_to_evac() {
ysr@777 5103 MutexLockerEx x(ParGCRareEvent_lock, Mutex::_no_safepoint_check_flag);
ysr@777 5104 HeapRegion* res = NULL;
ysr@777 5105 while (_popular_regions_to_be_evacuated != NULL && res == NULL) {
ysr@777 5106 HeapRegionList* hrl = _popular_regions_to_be_evacuated;
ysr@777 5107 _popular_regions_to_be_evacuated = hrl->next;
ysr@777 5108 res = hrl->hr;
ysr@777 5109 // The G1RSPopLimit may have increased, so recheck here...
ysr@777 5110 if (res->rem_set()->occupied() < (size_t) G1RSPopLimit) {
ysr@777 5111 // Hah: don't need to schedule.
ysr@777 5112 if (G1TracePopularity) {
ysr@777 5113 gclog_or_tty->print_cr("Unscheduling region "PTR_FORMAT" "
ysr@777 5114 "["PTR_FORMAT", "PTR_FORMAT") "
ysr@777 5115 "for pop-object evacuation (size %d < limit %d)",
ysr@777 5116 res, res->bottom(), res->end(),
ysr@777 5117 res->rem_set()->occupied(), G1RSPopLimit);
ysr@777 5118 }
ysr@777 5119 res->set_popular_pending(false);
ysr@777 5120 res = NULL;
ysr@777 5121 }
ysr@777 5122 // We do not reset res->popular() here; if we did so, it would allow
ysr@777 5123 // the region to be "rescheduled" for popularity evacuation. Instead,
ysr@777 5124 // this is done in the collection pause, with the world stopped.
ysr@777 5125 // So the invariant is that the regions in the list have the popularity
ysr@777 5126 // boolean set, but having the boolean set does not imply membership
ysr@777 5127 // on the list (though there can at most one such pop-pending region
ysr@777 5128 // not on the list at any time).
ysr@777 5129 delete hrl;
ysr@777 5130 }
ysr@777 5131 return res;
ysr@777 5132 }
ysr@777 5133
ysr@777 5134 void G1CollectedHeap::evac_popular_region(HeapRegion* hr) {
ysr@777 5135 while (true) {
ysr@777 5136 // Don't want to do a GC pause while cleanup is being completed!
ysr@777 5137 wait_for_cleanup_complete();
ysr@777 5138
ysr@777 5139 // Read the GC count while holding the Heap_lock
ysr@777 5140 int gc_count_before = SharedHeap::heap()->total_collections();
ysr@777 5141 g1_policy()->record_stop_world_start();
ysr@777 5142
ysr@777 5143 {
ysr@777 5144 MutexUnlocker mu(Heap_lock); // give up heap lock, execute gets it back
ysr@777 5145 VM_G1PopRegionCollectionPause op(gc_count_before, hr);
ysr@777 5146 VMThread::execute(&op);
ysr@777 5147
ysr@777 5148 // If the prolog succeeded, we didn't do a GC for this.
ysr@777 5149 if (op.prologue_succeeded()) break;
ysr@777 5150 }
ysr@777 5151 // Otherwise we didn't. We should recheck the size, though, since
ysr@777 5152 // the limit may have increased...
ysr@777 5153 if (hr->rem_set()->occupied() < (size_t) G1RSPopLimit) {
ysr@777 5154 hr->set_popular_pending(false);
ysr@777 5155 break;
ysr@777 5156 }
ysr@777 5157 }
ysr@777 5158 }
ysr@777 5159
ysr@777 5160 void G1CollectedHeap::atomic_inc_obj_rc(oop obj) {
ysr@777 5161 Atomic::inc(obj_rc_addr(obj));
ysr@777 5162 }
ysr@777 5163
ysr@777 5164 class CountRCClosure: public OopsInHeapRegionClosure {
ysr@777 5165 G1CollectedHeap* _g1h;
ysr@777 5166 bool _parallel;
ysr@777 5167 public:
ysr@777 5168 CountRCClosure(G1CollectedHeap* g1h) :
ysr@777 5169 _g1h(g1h), _parallel(ParallelGCThreads > 0)
ysr@777 5170 {}
ysr@777 5171 void do_oop(narrowOop* p) {
ysr@777 5172 guarantee(false, "NYI");
ysr@777 5173 }
ysr@777 5174 void do_oop(oop* p) {
ysr@777 5175 oop obj = *p;
ysr@777 5176 assert(obj != NULL, "Precondition.");
ysr@777 5177 if (_parallel) {
ysr@777 5178 // We go sticky at the limit to avoid excess contention.
ysr@777 5179 // If we want to track the actual RC's further, we'll need to keep a
ysr@777 5180 // per-thread hash table or something for the popular objects.
ysr@777 5181 if (_g1h->obj_rc(obj) < G1ObjPopLimit) {
ysr@777 5182 _g1h->atomic_inc_obj_rc(obj);
ysr@777 5183 }
ysr@777 5184 } else {
ysr@777 5185 _g1h->inc_obj_rc(obj);
ysr@777 5186 }
ysr@777 5187 }
ysr@777 5188 };
ysr@777 5189
ysr@777 5190 class EvacPopObjClosure: public ObjectClosure {
ysr@777 5191 G1CollectedHeap* _g1h;
ysr@777 5192 size_t _pop_objs;
ysr@777 5193 size_t _max_rc;
ysr@777 5194 public:
ysr@777 5195 EvacPopObjClosure(G1CollectedHeap* g1h) :
ysr@777 5196 _g1h(g1h), _pop_objs(0), _max_rc(0) {}
ysr@777 5197
ysr@777 5198 void do_object(oop obj) {
ysr@777 5199 size_t rc = _g1h->obj_rc(obj);
ysr@777 5200 _max_rc = MAX2(rc, _max_rc);
ysr@777 5201 if (rc >= (size_t) G1ObjPopLimit) {
ysr@777 5202 _g1h->_pop_obj_rc_at_copy.add((double)rc);
ysr@777 5203 size_t word_sz = obj->size();
ysr@777 5204 HeapWord* new_pop_loc = _g1h->allocate_popular_object(word_sz);
ysr@777 5205 oop new_pop_obj = (oop)new_pop_loc;
ysr@777 5206 Copy::aligned_disjoint_words((HeapWord*)obj, new_pop_loc, word_sz);
ysr@777 5207 obj->forward_to(new_pop_obj);
ysr@777 5208 G1ScanAndBalanceClosure scan_and_balance(_g1h);
ysr@777 5209 new_pop_obj->oop_iterate_backwards(&scan_and_balance);
ysr@777 5210 // preserve "next" mark bit if marking is in progress.
ysr@777 5211 if (_g1h->mark_in_progress() && !_g1h->is_obj_ill(obj)) {
ysr@777 5212 _g1h->concurrent_mark()->markAndGrayObjectIfNecessary(new_pop_obj);
ysr@777 5213 }
ysr@777 5214
ysr@777 5215 if (G1TracePopularity) {
ysr@777 5216 gclog_or_tty->print_cr("Found obj " PTR_FORMAT " of word size " SIZE_FORMAT
ysr@777 5217 " pop (%d), move to " PTR_FORMAT,
ysr@777 5218 (void*) obj, word_sz,
ysr@777 5219 _g1h->obj_rc(obj), (void*) new_pop_obj);
ysr@777 5220 }
ysr@777 5221 _pop_objs++;
ysr@777 5222 }
ysr@777 5223 }
ysr@777 5224 size_t pop_objs() { return _pop_objs; }
ysr@777 5225 size_t max_rc() { return _max_rc; }
ysr@777 5226 };
ysr@777 5227
ysr@777 5228 class G1ParCountRCTask : public AbstractGangTask {
ysr@777 5229 G1CollectedHeap* _g1h;
ysr@777 5230 BitMap _bm;
ysr@777 5231
ysr@777 5232 size_t getNCards() {
ysr@777 5233 return (_g1h->capacity() + G1BlockOffsetSharedArray::N_bytes - 1)
ysr@777 5234 / G1BlockOffsetSharedArray::N_bytes;
ysr@777 5235 }
ysr@777 5236 CountRCClosure _count_rc_closure;
ysr@777 5237 public:
ysr@777 5238 G1ParCountRCTask(G1CollectedHeap* g1h) :
ysr@777 5239 AbstractGangTask("G1 Par RC Count task"),
ysr@777 5240 _g1h(g1h), _bm(getNCards()), _count_rc_closure(g1h)
ysr@777 5241 {}
ysr@777 5242
ysr@777 5243 void work(int i) {
ysr@777 5244 ResourceMark rm;
ysr@777 5245 HandleMark hm;
ysr@777 5246 _g1h->g1_rem_set()->oops_into_collection_set_do(&_count_rc_closure, i);
ysr@777 5247 }
ysr@777 5248 };
ysr@777 5249
ysr@777 5250 void G1CollectedHeap::popularity_pause_preamble(HeapRegion* popular_region) {
ysr@777 5251 // We're evacuating a single region (for popularity).
ysr@777 5252 if (G1TracePopularity) {
ysr@777 5253 gclog_or_tty->print_cr("Doing pop region pause for ["PTR_FORMAT", "PTR_FORMAT")",
ysr@777 5254 popular_region->bottom(), popular_region->end());
ysr@777 5255 }
ysr@777 5256 g1_policy()->set_single_region_collection_set(popular_region);
ysr@777 5257 size_t max_rc;
ysr@777 5258 if (!compute_reference_counts_and_evac_popular(popular_region,
ysr@777 5259 &max_rc)) {
ysr@777 5260 // We didn't evacuate any popular objects.
ysr@777 5261 // We increase the RS popularity limit, to prevent this from
ysr@777 5262 // happening in the future.
ysr@777 5263 if (G1RSPopLimit < (1 << 30)) {
ysr@777 5264 G1RSPopLimit *= 2;
ysr@777 5265 }
ysr@777 5266 // For now, interesting enough for a message:
ysr@777 5267 #if 1
ysr@777 5268 gclog_or_tty->print_cr("In pop region pause for ["PTR_FORMAT", "PTR_FORMAT"), "
ysr@777 5269 "failed to find a pop object (max = %d).",
ysr@777 5270 popular_region->bottom(), popular_region->end(),
ysr@777 5271 max_rc);
ysr@777 5272 gclog_or_tty->print_cr("Increased G1RSPopLimit to %d.", G1RSPopLimit);
ysr@777 5273 #endif // 0
ysr@777 5274 // Also, we reset the collection set to NULL, to make the rest of
ysr@777 5275 // the collection do nothing.
ysr@777 5276 assert(popular_region->next_in_collection_set() == NULL,
ysr@777 5277 "should be single-region.");
ysr@777 5278 popular_region->set_in_collection_set(false);
ysr@777 5279 popular_region->set_popular_pending(false);
ysr@777 5280 g1_policy()->clear_collection_set();
ysr@777 5281 }
ysr@777 5282 }
ysr@777 5283
ysr@777 5284 bool G1CollectedHeap::
ysr@777 5285 compute_reference_counts_and_evac_popular(HeapRegion* popular_region,
ysr@777 5286 size_t* max_rc) {
ysr@777 5287 HeapWord* rc_region_bot;
ysr@777 5288 HeapWord* rc_region_end;
ysr@777 5289
ysr@777 5290 // Set up the reference count region.
ysr@777 5291 HeapRegion* rc_region = newAllocRegion(HeapRegion::GrainWords);
ysr@777 5292 if (rc_region != NULL) {
ysr@777 5293 rc_region_bot = rc_region->bottom();
ysr@777 5294 rc_region_end = rc_region->end();
ysr@777 5295 } else {
ysr@777 5296 rc_region_bot = NEW_C_HEAP_ARRAY(HeapWord, HeapRegion::GrainWords);
ysr@777 5297 if (rc_region_bot == NULL) {
ysr@777 5298 vm_exit_out_of_memory(HeapRegion::GrainWords,
ysr@777 5299 "No space for RC region.");
ysr@777 5300 }
ysr@777 5301 rc_region_end = rc_region_bot + HeapRegion::GrainWords;
ysr@777 5302 }
ysr@777 5303
ysr@777 5304 if (G1TracePopularity)
ysr@777 5305 gclog_or_tty->print_cr("RC region is ["PTR_FORMAT", "PTR_FORMAT")",
ysr@777 5306 rc_region_bot, rc_region_end);
ysr@777 5307 if (rc_region_bot > popular_region->bottom()) {
ysr@777 5308 _rc_region_above = true;
ysr@777 5309 _rc_region_diff =
ysr@777 5310 pointer_delta(rc_region_bot, popular_region->bottom(), 1);
ysr@777 5311 } else {
ysr@777 5312 assert(rc_region_bot < popular_region->bottom(), "Can't be equal.");
ysr@777 5313 _rc_region_above = false;
ysr@777 5314 _rc_region_diff =
ysr@777 5315 pointer_delta(popular_region->bottom(), rc_region_bot, 1);
ysr@777 5316 }
ysr@777 5317 g1_policy()->record_pop_compute_rc_start();
ysr@777 5318 // Count external references.
ysr@777 5319 g1_rem_set()->prepare_for_oops_into_collection_set_do();
ysr@777 5320 if (ParallelGCThreads > 0) {
ysr@777 5321
ysr@777 5322 set_par_threads(workers()->total_workers());
ysr@777 5323 G1ParCountRCTask par_count_rc_task(this);
ysr@777 5324 workers()->run_task(&par_count_rc_task);
ysr@777 5325 set_par_threads(0);
ysr@777 5326
ysr@777 5327 } else {
ysr@777 5328 CountRCClosure count_rc_closure(this);
ysr@777 5329 g1_rem_set()->oops_into_collection_set_do(&count_rc_closure, 0);
ysr@777 5330 }
ysr@777 5331 g1_rem_set()->cleanup_after_oops_into_collection_set_do();
ysr@777 5332 g1_policy()->record_pop_compute_rc_end();
ysr@777 5333
ysr@777 5334 // Now evacuate popular objects.
ysr@777 5335 g1_policy()->record_pop_evac_start();
ysr@777 5336 EvacPopObjClosure evac_pop_obj_cl(this);
ysr@777 5337 popular_region->object_iterate(&evac_pop_obj_cl);
ysr@777 5338 *max_rc = evac_pop_obj_cl.max_rc();
ysr@777 5339
ysr@777 5340 // Make sure the last "top" value of the current popular region is copied
ysr@777 5341 // as the "next_top_at_mark_start", so that objects made popular during
ysr@777 5342 // markings aren't automatically considered live.
ysr@777 5343 HeapRegion* cur_pop_region = _hrs->at(_cur_pop_hr_index);
ysr@777 5344 cur_pop_region->note_end_of_copying();
ysr@777 5345
ysr@777 5346 if (rc_region != NULL) {
ysr@777 5347 free_region(rc_region);
ysr@777 5348 } else {
ysr@777 5349 FREE_C_HEAP_ARRAY(HeapWord, rc_region_bot);
ysr@777 5350 }
ysr@777 5351 g1_policy()->record_pop_evac_end();
ysr@777 5352
ysr@777 5353 return evac_pop_obj_cl.pop_objs() > 0;
ysr@777 5354 }
ysr@777 5355
ysr@777 5356 class CountPopObjInfoClosure: public HeapRegionClosure {
ysr@777 5357 size_t _objs;
ysr@777 5358 size_t _bytes;
ysr@777 5359
ysr@777 5360 class CountObjClosure: public ObjectClosure {
ysr@777 5361 int _n;
ysr@777 5362 public:
ysr@777 5363 CountObjClosure() : _n(0) {}
ysr@777 5364 void do_object(oop obj) { _n++; }
ysr@777 5365 size_t n() { return _n; }
ysr@777 5366 };
ysr@777 5367
ysr@777 5368 public:
ysr@777 5369 CountPopObjInfoClosure() : _objs(0), _bytes(0) {}
ysr@777 5370 bool doHeapRegion(HeapRegion* r) {
ysr@777 5371 _bytes += r->used();
ysr@777 5372 CountObjClosure blk;
ysr@777 5373 r->object_iterate(&blk);
ysr@777 5374 _objs += blk.n();
ysr@777 5375 return false;
ysr@777 5376 }
ysr@777 5377 size_t objs() { return _objs; }
ysr@777 5378 size_t bytes() { return _bytes; }
ysr@777 5379 };
ysr@777 5380
ysr@777 5381
ysr@777 5382 void G1CollectedHeap::print_popularity_summary_info() const {
ysr@777 5383 CountPopObjInfoClosure blk;
ysr@777 5384 for (int i = 0; i <= _cur_pop_hr_index; i++) {
ysr@777 5385 blk.doHeapRegion(_hrs->at(i));
ysr@777 5386 }
ysr@777 5387 gclog_or_tty->print_cr("\nPopular objects: %d objs, %d bytes.",
ysr@777 5388 blk.objs(), blk.bytes());
ysr@777 5389 gclog_or_tty->print_cr(" RC at copy = [avg = %5.2f, max = %5.2f, sd = %5.2f].",
ysr@777 5390 _pop_obj_rc_at_copy.avg(),
ysr@777 5391 _pop_obj_rc_at_copy.maximum(),
ysr@777 5392 _pop_obj_rc_at_copy.sd());
ysr@777 5393 }
ysr@777 5394
ysr@777 5395 void G1CollectedHeap::set_refine_cte_cl_concurrency(bool concurrent) {
ysr@777 5396 _refine_cte_cl->set_concurrent(concurrent);
ysr@777 5397 }
ysr@777 5398
ysr@777 5399 #ifndef PRODUCT
ysr@777 5400
ysr@777 5401 class PrintHeapRegionClosure: public HeapRegionClosure {
ysr@777 5402 public:
ysr@777 5403 bool doHeapRegion(HeapRegion *r) {
ysr@777 5404 gclog_or_tty->print("Region: "PTR_FORMAT":", r);
ysr@777 5405 if (r != NULL) {
ysr@777 5406 if (r->is_on_free_list())
ysr@777 5407 gclog_or_tty->print("Free ");
ysr@777 5408 if (r->is_young())
ysr@777 5409 gclog_or_tty->print("Young ");
ysr@777 5410 if (r->isHumongous())
ysr@777 5411 gclog_or_tty->print("Is Humongous ");
ysr@777 5412 r->print();
ysr@777 5413 }
ysr@777 5414 return false;
ysr@777 5415 }
ysr@777 5416 };
ysr@777 5417
ysr@777 5418 class SortHeapRegionClosure : public HeapRegionClosure {
ysr@777 5419 size_t young_regions,free_regions, unclean_regions;
ysr@777 5420 size_t hum_regions, count;
ysr@777 5421 size_t unaccounted, cur_unclean, cur_alloc;
ysr@777 5422 size_t total_free;
ysr@777 5423 HeapRegion* cur;
ysr@777 5424 public:
ysr@777 5425 SortHeapRegionClosure(HeapRegion *_cur) : cur(_cur), young_regions(0),
ysr@777 5426 free_regions(0), unclean_regions(0),
ysr@777 5427 hum_regions(0),
ysr@777 5428 count(0), unaccounted(0),
ysr@777 5429 cur_alloc(0), total_free(0)
ysr@777 5430 {}
ysr@777 5431 bool doHeapRegion(HeapRegion *r) {
ysr@777 5432 count++;
ysr@777 5433 if (r->is_on_free_list()) free_regions++;
ysr@777 5434 else if (r->is_on_unclean_list()) unclean_regions++;
ysr@777 5435 else if (r->isHumongous()) hum_regions++;
ysr@777 5436 else if (r->is_young()) young_regions++;
ysr@777 5437 else if (r == cur) cur_alloc++;
ysr@777 5438 else unaccounted++;
ysr@777 5439 return false;
ysr@777 5440 }
ysr@777 5441 void print() {
ysr@777 5442 total_free = free_regions + unclean_regions;
ysr@777 5443 gclog_or_tty->print("%d regions\n", count);
ysr@777 5444 gclog_or_tty->print("%d free: free_list = %d unclean = %d\n",
ysr@777 5445 total_free, free_regions, unclean_regions);
ysr@777 5446 gclog_or_tty->print("%d humongous %d young\n",
ysr@777 5447 hum_regions, young_regions);
ysr@777 5448 gclog_or_tty->print("%d cur_alloc\n", cur_alloc);
ysr@777 5449 gclog_or_tty->print("UHOH unaccounted = %d\n", unaccounted);
ysr@777 5450 }
ysr@777 5451 };
ysr@777 5452
ysr@777 5453 void G1CollectedHeap::print_region_counts() {
ysr@777 5454 SortHeapRegionClosure sc(_cur_alloc_region);
ysr@777 5455 PrintHeapRegionClosure cl;
ysr@777 5456 heap_region_iterate(&cl);
ysr@777 5457 heap_region_iterate(&sc);
ysr@777 5458 sc.print();
ysr@777 5459 print_region_accounting_info();
ysr@777 5460 };
ysr@777 5461
ysr@777 5462 bool G1CollectedHeap::regions_accounted_for() {
ysr@777 5463 // TODO: regions accounting for young/survivor/tenured
ysr@777 5464 return true;
ysr@777 5465 }
ysr@777 5466
ysr@777 5467 bool G1CollectedHeap::print_region_accounting_info() {
ysr@777 5468 gclog_or_tty->print_cr("P regions: %d.", G1NumPopularRegions);
ysr@777 5469 gclog_or_tty->print_cr("Free regions: %d (count: %d count list %d) (clean: %d unclean: %d).",
ysr@777 5470 free_regions(),
ysr@777 5471 count_free_regions(), count_free_regions_list(),
ysr@777 5472 _free_region_list_size, _unclean_region_list.sz());
ysr@777 5473 gclog_or_tty->print_cr("cur_alloc: %d.",
ysr@777 5474 (_cur_alloc_region == NULL ? 0 : 1));
ysr@777 5475 gclog_or_tty->print_cr("H regions: %d.", _num_humongous_regions);
ysr@777 5476
ysr@777 5477 // TODO: check regions accounting for young/survivor/tenured
ysr@777 5478 return true;
ysr@777 5479 }
ysr@777 5480
ysr@777 5481 bool G1CollectedHeap::is_in_closed_subset(const void* p) const {
ysr@777 5482 HeapRegion* hr = heap_region_containing(p);
ysr@777 5483 if (hr == NULL) {
ysr@777 5484 return is_in_permanent(p);
ysr@777 5485 } else {
ysr@777 5486 return hr->is_in(p);
ysr@777 5487 }
ysr@777 5488 }
ysr@777 5489 #endif // PRODUCT
ysr@777 5490
ysr@777 5491 void G1CollectedHeap::g1_unimplemented() {
ysr@777 5492 // Unimplemented();
ysr@777 5493 }
ysr@777 5494
ysr@777 5495
ysr@777 5496 // Local Variables: ***
ysr@777 5497 // c-indentation-style: gnu ***
ysr@777 5498 // End: ***

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