1 /*
   2  * Copyright (c) 2013, 2019, Red Hat, Inc. All rights reserved.
   3  *
   4  * This code is free software; you can redistribute it and/or modify it
   5  * under the terms of the GNU General Public License version 2 only, as
   6  * published by the Free Software Foundation.
   7  *
   8  * This code is distributed in the hope that it will be useful, but WITHOUT
   9  * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  10  * FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License
  11  * version 2 for more details (a copy is included in the LICENSE file that
  12  * accompanied this code).
  13  *
  14  * You should have received a copy of the GNU General Public License version
  15  * 2 along with this work; if not, write to the Free Software Foundation,
  16  * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
  17  *
  18  * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
  19  * or visit www.oracle.com if you need additional information or have any
  20  * questions.
  21  *
  22  */
  23 
  24 #include "precompiled.hpp"
  25 #include "memory/allocation.hpp"
  26 #include "memory/universe.hpp"
  27 
  28 #include "gc/shared/gcArguments.hpp"
  29 #include "gc/shared/gcTimer.hpp"
  30 #include "gc/shared/gcTraceTime.inline.hpp"
  31 #include "gc/shared/locationPrinter.inline.hpp"
  32 #include "gc/shared/memAllocator.hpp"
  33 #include "gc/shared/plab.hpp"
  34 
  35 #include "gc/shenandoah/shenandoahAllocTracker.hpp"
  36 #include "gc/shenandoah/shenandoahBarrierSet.hpp"
  37 #include "gc/shenandoah/shenandoahClosures.inline.hpp"
  38 #include "gc/shenandoah/shenandoahCollectionSet.hpp"
  39 #include "gc/shenandoah/shenandoahCollectorPolicy.hpp"
  40 #include "gc/shenandoah/shenandoahConcurrentMark.inline.hpp"
  41 #include "gc/shenandoah/shenandoahConcurrentRoots.hpp"
  42 #include "gc/shenandoah/shenandoahControlThread.hpp"
  43 #include "gc/shenandoah/shenandoahFreeSet.hpp"
  44 #include "gc/shenandoah/shenandoahPhaseTimings.hpp"
  45 #include "gc/shenandoah/shenandoahHeap.inline.hpp"
  46 #include "gc/shenandoah/shenandoahHeapRegion.hpp"
  47 #include "gc/shenandoah/shenandoahHeapRegionSet.hpp"
  48 #include "gc/shenandoah/shenandoahMarkCompact.hpp"
  49 #include "gc/shenandoah/shenandoahMarkingContext.inline.hpp"
  50 #include "gc/shenandoah/shenandoahMemoryPool.hpp"
  51 #include "gc/shenandoah/shenandoahMetrics.hpp"
  52 #include "gc/shenandoah/shenandoahMonitoringSupport.hpp"
  53 #include "gc/shenandoah/shenandoahNormalMode.hpp"
  54 #include "gc/shenandoah/shenandoahOopClosures.inline.hpp"
  55 #include "gc/shenandoah/shenandoahPacer.inline.hpp"
  56 #include "gc/shenandoah/shenandoahParallelCleaning.inline.hpp"
  57 #include "gc/shenandoah/shenandoahPassiveMode.hpp"
  58 #include "gc/shenandoah/shenandoahRootProcessor.inline.hpp"
  59 #include "gc/shenandoah/shenandoahStringDedup.hpp"
  60 #include "gc/shenandoah/shenandoahTaskqueue.hpp"
  61 #include "gc/shenandoah/shenandoahTraversalMode.hpp"
  62 #include "gc/shenandoah/shenandoahUtils.hpp"
  63 #include "gc/shenandoah/shenandoahVerifier.hpp"
  64 #include "gc/shenandoah/shenandoahCodeRoots.hpp"
  65 #include "gc/shenandoah/shenandoahVMOperations.hpp"
  66 #include "gc/shenandoah/shenandoahWorkGroup.hpp"
  67 #include "gc/shenandoah/shenandoahWorkerPolicy.hpp"
  68 #if INCLUDE_JFR
  69 #include "gc/shenandoah/shenandoahJfrSupport.hpp"
  70 #endif
  71 
  72 #include "memory/metaspace.hpp"
  73 #include "oops/compressedOops.inline.hpp"
  74 #include "runtime/atomic.hpp"
  75 #include "runtime/globals.hpp"
  76 #include "runtime/interfaceSupport.inline.hpp"
  77 #include "runtime/orderAccess.hpp"
  78 #include "runtime/safepointMechanism.hpp"
  79 #include "runtime/vmThread.hpp"
  80 #include "services/mallocTracker.hpp"
  81 
  82 #ifdef ASSERT
  83 template <class T>
  84 void ShenandoahAssertToSpaceClosure::do_oop_work(T* p) {
  85   T o = RawAccess<>::oop_load(p);
  86   if (! CompressedOops::is_null(o)) {
  87     oop obj = CompressedOops::decode_not_null(o);
  88     shenandoah_assert_not_forwarded(p, obj);
  89   }
  90 }
  91 
  92 void ShenandoahAssertToSpaceClosure::do_oop(narrowOop* p) { do_oop_work(p); }
  93 void ShenandoahAssertToSpaceClosure::do_oop(oop* p)       { do_oop_work(p); }
  94 #endif
  95 
  96 class ShenandoahPretouchHeapTask : public AbstractGangTask {
  97 private:
  98   ShenandoahRegionIterator _regions;
  99   const size_t _page_size;
 100 public:
 101   ShenandoahPretouchHeapTask(size_t page_size) :
 102     AbstractGangTask("Shenandoah Pretouch Heap"),
 103     _page_size(page_size) {}
 104 
 105   virtual void work(uint worker_id) {
 106     ShenandoahHeapRegion* r = _regions.next();
 107     while (r != NULL) {
 108       os::pretouch_memory(r->bottom(), r->end(), _page_size);
 109       r = _regions.next();
 110     }
 111   }
 112 };
 113 
 114 class ShenandoahPretouchBitmapTask : public AbstractGangTask {
 115 private:
 116   ShenandoahRegionIterator _regions;
 117   char* _bitmap_base;
 118   const size_t _bitmap_size;
 119   const size_t _page_size;
 120 public:
 121   ShenandoahPretouchBitmapTask(char* bitmap_base, size_t bitmap_size, size_t page_size) :
 122     AbstractGangTask("Shenandoah Pretouch Bitmap"),
 123     _bitmap_base(bitmap_base),
 124     _bitmap_size(bitmap_size),
 125     _page_size(page_size) {}
 126 
 127   virtual void work(uint worker_id) {
 128     ShenandoahHeapRegion* r = _regions.next();
 129     while (r != NULL) {
 130       size_t start = r->region_number()       * ShenandoahHeapRegion::region_size_bytes() / MarkBitMap::heap_map_factor();
 131       size_t end   = (r->region_number() + 1) * ShenandoahHeapRegion::region_size_bytes() / MarkBitMap::heap_map_factor();
 132       assert (end <= _bitmap_size, "end is sane: " SIZE_FORMAT " < " SIZE_FORMAT, end, _bitmap_size);
 133 
 134       os::pretouch_memory(_bitmap_base + start, _bitmap_base + end, _page_size);
 135 
 136       r = _regions.next();
 137     }
 138   }
 139 };
 140 
 141 jint ShenandoahHeap::initialize() {
 142   initialize_heuristics();
 143 
 144   //
 145   // Figure out heap sizing
 146   //
 147 
 148   size_t init_byte_size = InitialHeapSize;
 149   size_t min_byte_size  = MinHeapSize;
 150   size_t max_byte_size  = MaxHeapSize;
 151   size_t heap_alignment = HeapAlignment;
 152 
 153   size_t reg_size_bytes = ShenandoahHeapRegion::region_size_bytes();
 154 
 155   if (ShenandoahAlwaysPreTouch) {
 156     // Enabled pre-touch means the entire heap is committed right away.
 157     init_byte_size = max_byte_size;
 158   }
 159 
 160   Universe::check_alignment(max_byte_size,  reg_size_bytes, "Shenandoah heap");
 161   Universe::check_alignment(init_byte_size, reg_size_bytes, "Shenandoah heap");
 162 
 163   _num_regions = ShenandoahHeapRegion::region_count();
 164 
 165   size_t num_committed_regions = init_byte_size / reg_size_bytes;
 166   num_committed_regions = MIN2(num_committed_regions, _num_regions);
 167   assert(num_committed_regions <= _num_regions, "sanity");
 168   _initial_size = num_committed_regions * reg_size_bytes;
 169 
 170   size_t num_min_regions = min_byte_size / reg_size_bytes;
 171   num_min_regions = MIN2(num_min_regions, _num_regions);
 172   assert(num_min_regions <= _num_regions, "sanity");
 173   _minimum_size = num_min_regions * reg_size_bytes;
 174 
 175   _committed = _initial_size;
 176 
 177   size_t heap_page_size   = UseLargePages ? (size_t)os::large_page_size() : (size_t)os::vm_page_size();
 178   size_t bitmap_page_size = UseLargePages ? (size_t)os::large_page_size() : (size_t)os::vm_page_size();
 179 
 180   //
 181   // Reserve and commit memory for heap
 182   //
 183 
 184   ReservedHeapSpace heap_rs = Universe::reserve_heap(max_byte_size, heap_alignment);
 185   initialize_reserved_region(heap_rs);
 186   _heap_region = MemRegion((HeapWord*)heap_rs.base(), heap_rs.size() / HeapWordSize);
 187   _heap_region_special = heap_rs.special();
 188 
 189   assert((((size_t) base()) & ShenandoahHeapRegion::region_size_bytes_mask()) == 0,
 190          "Misaligned heap: " PTR_FORMAT, p2i(base()));
 191 
 192 #if SHENANDOAH_OPTIMIZED_OBJTASK
 193   // The optimized ObjArrayChunkedTask takes some bits away from the full object bits.
 194   // Fail if we ever attempt to address more than we can.
 195   if ((uintptr_t)heap_rs.end() >= ObjArrayChunkedTask::max_addressable()) {
 196     FormatBuffer<512> buf("Shenandoah reserved [" PTR_FORMAT ", " PTR_FORMAT") for the heap, \n"
 197                           "but max object address is " PTR_FORMAT ". Try to reduce heap size, or try other \n"
 198                           "VM options that allocate heap at lower addresses (HeapBaseMinAddress, AllocateHeapAt, etc).",
 199                 p2i(heap_rs.base()), p2i(heap_rs.end()), ObjArrayChunkedTask::max_addressable());
 200     vm_exit_during_initialization("Fatal Error", buf);
 201   }
 202 #endif
 203 
 204   ReservedSpace sh_rs = heap_rs.first_part(max_byte_size);
 205   if (!_heap_region_special) {
 206     os::commit_memory_or_exit(sh_rs.base(), _initial_size, heap_alignment, false,
 207                               "Cannot commit heap memory");
 208   }
 209 
 210   //
 211   // Reserve and commit memory for bitmap(s)
 212   //
 213 
 214   _bitmap_size = MarkBitMap::compute_size(heap_rs.size());
 215   _bitmap_size = align_up(_bitmap_size, bitmap_page_size);
 216 
 217   size_t bitmap_bytes_per_region = reg_size_bytes / MarkBitMap::heap_map_factor();
 218 
 219   guarantee(bitmap_bytes_per_region != 0,
 220             "Bitmap bytes per region should not be zero");
 221   guarantee(is_power_of_2(bitmap_bytes_per_region),
 222             "Bitmap bytes per region should be power of two: " SIZE_FORMAT, bitmap_bytes_per_region);
 223 
 224   if (bitmap_page_size > bitmap_bytes_per_region) {
 225     _bitmap_regions_per_slice = bitmap_page_size / bitmap_bytes_per_region;
 226     _bitmap_bytes_per_slice = bitmap_page_size;
 227   } else {
 228     _bitmap_regions_per_slice = 1;
 229     _bitmap_bytes_per_slice = bitmap_bytes_per_region;
 230   }
 231 
 232   guarantee(_bitmap_regions_per_slice >= 1,
 233             "Should have at least one region per slice: " SIZE_FORMAT,
 234             _bitmap_regions_per_slice);
 235 
 236   guarantee(((_bitmap_bytes_per_slice) % bitmap_page_size) == 0,
 237             "Bitmap slices should be page-granular: bps = " SIZE_FORMAT ", page size = " SIZE_FORMAT,
 238             _bitmap_bytes_per_slice, bitmap_page_size);
 239 
 240   ReservedSpace bitmap(_bitmap_size, bitmap_page_size);
 241   MemTracker::record_virtual_memory_type(bitmap.base(), mtGC);
 242   _bitmap_region = MemRegion((HeapWord*) bitmap.base(), bitmap.size() / HeapWordSize);
 243   _bitmap_region_special = bitmap.special();
 244 
 245   size_t bitmap_init_commit = _bitmap_bytes_per_slice *
 246                               align_up(num_committed_regions, _bitmap_regions_per_slice) / _bitmap_regions_per_slice;
 247   bitmap_init_commit = MIN2(_bitmap_size, bitmap_init_commit);
 248   if (!_bitmap_region_special) {
 249     os::commit_memory_or_exit((char *) _bitmap_region.start(), bitmap_init_commit, bitmap_page_size, false,
 250                               "Cannot commit bitmap memory");
 251   }
 252 
 253   _marking_context = new ShenandoahMarkingContext(_heap_region, _bitmap_region, _num_regions);
 254 
 255   if (ShenandoahVerify) {
 256     ReservedSpace verify_bitmap(_bitmap_size, bitmap_page_size);
 257     if (!verify_bitmap.special()) {
 258       os::commit_memory_or_exit(verify_bitmap.base(), verify_bitmap.size(), bitmap_page_size, false,
 259                                 "Cannot commit verification bitmap memory");
 260     }
 261     MemTracker::record_virtual_memory_type(verify_bitmap.base(), mtGC);
 262     MemRegion verify_bitmap_region = MemRegion((HeapWord *) verify_bitmap.base(), verify_bitmap.size() / HeapWordSize);
 263     _verification_bit_map.initialize(_heap_region, verify_bitmap_region);
 264     _verifier = new ShenandoahVerifier(this, &_verification_bit_map);
 265   }
 266 
 267   // Reserve aux bitmap for use in object_iterate(). We don't commit it here.
 268   ReservedSpace aux_bitmap(_bitmap_size, bitmap_page_size);
 269   MemTracker::record_virtual_memory_type(aux_bitmap.base(), mtGC);
 270   _aux_bitmap_region = MemRegion((HeapWord*) aux_bitmap.base(), aux_bitmap.size() / HeapWordSize);
 271   _aux_bitmap_region_special = aux_bitmap.special();
 272   _aux_bit_map.initialize(_heap_region, _aux_bitmap_region);
 273 
 274   //
 275   // Create regions and region sets
 276   //
 277 
 278   _regions = NEW_C_HEAP_ARRAY(ShenandoahHeapRegion*, _num_regions, mtGC);
 279   _free_set = new ShenandoahFreeSet(this, _num_regions);
 280   _collection_set = new ShenandoahCollectionSet(this, sh_rs.base(), sh_rs.size());
 281 
 282   {
 283     ShenandoahHeapLocker locker(lock());
 284 
 285     size_t size_words = ShenandoahHeapRegion::region_size_words();
 286 
 287     for (size_t i = 0; i < _num_regions; i++) {
 288       HeapWord* start = (HeapWord*)sh_rs.base() + size_words * i;
 289       bool is_committed = i < num_committed_regions;
 290       ShenandoahHeapRegion* r = new ShenandoahHeapRegion(this, start, size_words, i, is_committed);
 291 
 292       _marking_context->initialize_top_at_mark_start(r);
 293       _regions[i] = r;
 294       assert(!collection_set()->is_in(i), "New region should not be in collection set");
 295     }
 296 
 297     // Initialize to complete
 298     _marking_context->mark_complete();
 299 
 300     _free_set->rebuild();
 301   }
 302 
 303   if (ShenandoahAlwaysPreTouch) {
 304     assert(!AlwaysPreTouch, "Should have been overridden");
 305 
 306     // For NUMA, it is important to pre-touch the storage under bitmaps with worker threads,
 307     // before initialize() below zeroes it with initializing thread. For any given region,
 308     // we touch the region and the corresponding bitmaps from the same thread.
 309     ShenandoahPushWorkerScope scope(workers(), _max_workers, false);
 310 
 311     size_t pretouch_heap_page_size = heap_page_size;
 312     size_t pretouch_bitmap_page_size = bitmap_page_size;
 313 
 314 #ifdef LINUX
 315     // UseTransparentHugePages would madvise that backing memory can be coalesced into huge
 316     // pages. But, the kernel needs to know that every small page is used, in order to coalesce
 317     // them into huge one. Therefore, we need to pretouch with smaller pages.
 318     if (UseTransparentHugePages) {
 319       pretouch_heap_page_size = (size_t)os::vm_page_size();
 320       pretouch_bitmap_page_size = (size_t)os::vm_page_size();
 321     }
 322 #endif
 323 
 324     // OS memory managers may want to coalesce back-to-back pages. Make their jobs
 325     // simpler by pre-touching continuous spaces (heap and bitmap) separately.
 326 
 327     log_info(gc, init)("Pretouch bitmap: " SIZE_FORMAT " regions, " SIZE_FORMAT " bytes page",
 328                        _num_regions, pretouch_bitmap_page_size);
 329     ShenandoahPretouchBitmapTask bcl(bitmap.base(), _bitmap_size, pretouch_bitmap_page_size);
 330     _workers->run_task(&bcl);
 331 
 332     log_info(gc, init)("Pretouch heap: " SIZE_FORMAT " regions, " SIZE_FORMAT " bytes page",
 333                        _num_regions, pretouch_heap_page_size);
 334     ShenandoahPretouchHeapTask hcl(pretouch_heap_page_size);
 335     _workers->run_task(&hcl);
 336   }
 337 
 338   //
 339   // Initialize the rest of GC subsystems
 340   //
 341 
 342   _liveness_cache = NEW_C_HEAP_ARRAY(jushort*, _max_workers, mtGC);
 343   for (uint worker = 0; worker < _max_workers; worker++) {
 344     _liveness_cache[worker] = NEW_C_HEAP_ARRAY(jushort, _num_regions, mtGC);
 345     Copy::fill_to_bytes(_liveness_cache[worker], _num_regions * sizeof(jushort));
 346   }
 347 
 348   // There should probably be Shenandoah-specific options for these,
 349   // just as there are G1-specific options.
 350   {
 351     ShenandoahSATBMarkQueueSet& satbqs = ShenandoahBarrierSet::satb_mark_queue_set();
 352     satbqs.set_process_completed_buffers_threshold(20); // G1SATBProcessCompletedThreshold
 353     satbqs.set_buffer_enqueue_threshold_percentage(60); // G1SATBBufferEnqueueingThresholdPercent
 354   }
 355 
 356   _monitoring_support = new ShenandoahMonitoringSupport(this);
 357   _phase_timings = new ShenandoahPhaseTimings();
 358   ShenandoahStringDedup::initialize();
 359   ShenandoahCodeRoots::initialize();
 360 
 361   if (ShenandoahAllocationTrace) {
 362     _alloc_tracker = new ShenandoahAllocTracker();
 363   }
 364 
 365   if (ShenandoahPacing) {
 366     _pacer = new ShenandoahPacer(this);
 367     _pacer->setup_for_idle();
 368   } else {
 369     _pacer = NULL;
 370   }
 371 
 372   _traversal_gc = strcmp(ShenandoahGCMode, "traversal") == 0 ?
 373                   new ShenandoahTraversalGC(this, _num_regions) :
 374                   NULL;
 375 
 376   _control_thread = new ShenandoahControlThread();
 377 
 378   log_info(gc, init)("Initialize Shenandoah heap: " SIZE_FORMAT "%s initial, " SIZE_FORMAT "%s min, " SIZE_FORMAT "%s max",
 379                      byte_size_in_proper_unit(_initial_size),  proper_unit_for_byte_size(_initial_size),
 380                      byte_size_in_proper_unit(_minimum_size),  proper_unit_for_byte_size(_minimum_size),
 381                      byte_size_in_proper_unit(max_capacity()), proper_unit_for_byte_size(max_capacity())
 382   );
 383 
 384   log_info(gc, init)("Safepointing mechanism: %s",
 385                      SafepointMechanism::uses_thread_local_poll() ? "thread-local poll" :
 386                      (SafepointMechanism::uses_global_page_poll() ? "global-page poll" : "unknown"));
 387 
 388   return JNI_OK;
 389 }
 390 
 391 void ShenandoahHeap::initialize_heuristics() {
 392   if (ShenandoahGCMode != NULL) {
 393     if (strcmp(ShenandoahGCMode, "traversal") == 0) {
 394       _gc_mode = new ShenandoahTraversalMode();
 395     } else if (strcmp(ShenandoahGCMode, "normal") == 0) {
 396       _gc_mode = new ShenandoahNormalMode();
 397     } else if (strcmp(ShenandoahGCMode, "passive") == 0) {
 398       _gc_mode = new ShenandoahPassiveMode();
 399     } else {
 400       vm_exit_during_initialization("Unknown -XX:ShenandoahGCMode option");
 401     }
 402   } else {
 403     ShouldNotReachHere();
 404   }
 405   _gc_mode->initialize_flags();
 406   _heuristics = _gc_mode->initialize_heuristics();
 407 
 408   if (_heuristics->is_diagnostic() && !UnlockDiagnosticVMOptions) {
 409     vm_exit_during_initialization(
 410             err_msg("Heuristics \"%s\" is diagnostic, and must be enabled via -XX:+UnlockDiagnosticVMOptions.",
 411                     _heuristics->name()));
 412   }
 413   if (_heuristics->is_experimental() && !UnlockExperimentalVMOptions) {
 414     vm_exit_during_initialization(
 415             err_msg("Heuristics \"%s\" is experimental, and must be enabled via -XX:+UnlockExperimentalVMOptions.",
 416                     _heuristics->name()));
 417   }
 418   log_info(gc, init)("Shenandoah heuristics: %s",
 419                      _heuristics->name());
 420 }
 421 
 422 #ifdef _MSC_VER
 423 #pragma warning( push )
 424 #pragma warning( disable:4355 ) // 'this' : used in base member initializer list
 425 #endif
 426 
 427 ShenandoahHeap::ShenandoahHeap(ShenandoahCollectorPolicy* policy) :
 428   CollectedHeap(),
 429   _initial_size(0),
 430   _used(0),
 431   _committed(0),
 432   _bytes_allocated_since_gc_start(0),
 433   _max_workers(MAX2(ConcGCThreads, ParallelGCThreads)),
 434   _workers(NULL),
 435   _safepoint_workers(NULL),
 436   _heap_region_special(false),
 437   _num_regions(0),
 438   _regions(NULL),
 439   _update_refs_iterator(this),
 440   _control_thread(NULL),
 441   _shenandoah_policy(policy),
 442   _heuristics(NULL),
 443   _free_set(NULL),
 444   _scm(new ShenandoahConcurrentMark()),
 445   _traversal_gc(NULL),
 446   _full_gc(new ShenandoahMarkCompact()),
 447   _pacer(NULL),
 448   _verifier(NULL),
 449   _alloc_tracker(NULL),
 450   _phase_timings(NULL),
 451   _monitoring_support(NULL),
 452   _memory_pool(NULL),
 453   _stw_memory_manager("Shenandoah Pauses", "end of GC pause"),
 454   _cycle_memory_manager("Shenandoah Cycles", "end of GC cycle"),
 455   _gc_timer(new (ResourceObj::C_HEAP, mtGC) ConcurrentGCTimer()),
 456   _soft_ref_policy(),
 457   _log_min_obj_alignment_in_bytes(LogMinObjAlignmentInBytes),
 458   _ref_processor(NULL),
 459   _marking_context(NULL),
 460   _bitmap_size(0),
 461   _bitmap_regions_per_slice(0),
 462   _bitmap_bytes_per_slice(0),
 463   _bitmap_region_special(false),
 464   _aux_bitmap_region_special(false),
 465   _liveness_cache(NULL),
 466   _collection_set(NULL)
 467 {
 468   log_info(gc, init)("GC threads: " UINT32_FORMAT " parallel, " UINT32_FORMAT " concurrent", ParallelGCThreads, ConcGCThreads);
 469   log_info(gc, init)("Reference processing: %s", ParallelRefProcEnabled ? "parallel" : "serial");
 470 
 471   BarrierSet::set_barrier_set(new ShenandoahBarrierSet(this));
 472 
 473   _max_workers = MAX2(_max_workers, 1U);
 474   _workers = new ShenandoahWorkGang("Shenandoah GC Threads", _max_workers,
 475                             /* are_GC_task_threads */ true,
 476                             /* are_ConcurrentGC_threads */ true);
 477   if (_workers == NULL) {
 478     vm_exit_during_initialization("Failed necessary allocation.");
 479   } else {
 480     _workers->initialize_workers();
 481   }
 482 
 483   if (ShenandoahParallelSafepointThreads > 1) {
 484     _safepoint_workers = new ShenandoahWorkGang("Safepoint Cleanup Thread",
 485                                                 ShenandoahParallelSafepointThreads,
 486                       /* are_GC_task_threads */ false,
 487                  /* are_ConcurrentGC_threads */ false);
 488     _safepoint_workers->initialize_workers();
 489   }
 490 }
 491 
 492 #ifdef _MSC_VER
 493 #pragma warning( pop )
 494 #endif
 495 
 496 class ShenandoahResetBitmapTask : public AbstractGangTask {
 497 private:
 498   ShenandoahRegionIterator _regions;
 499 
 500 public:
 501   ShenandoahResetBitmapTask() :
 502     AbstractGangTask("Parallel Reset Bitmap Task") {}
 503 
 504   void work(uint worker_id) {
 505     ShenandoahHeapRegion* region = _regions.next();
 506     ShenandoahHeap* heap = ShenandoahHeap::heap();
 507     ShenandoahMarkingContext* const ctx = heap->marking_context();
 508     while (region != NULL) {
 509       if (heap->is_bitmap_slice_committed(region)) {
 510         ctx->clear_bitmap(region);
 511       }
 512       region = _regions.next();
 513     }
 514   }
 515 };
 516 
 517 void ShenandoahHeap::reset_mark_bitmap() {
 518   assert_gc_workers(_workers->active_workers());
 519   mark_incomplete_marking_context();
 520 
 521   ShenandoahResetBitmapTask task;
 522   _workers->run_task(&task);
 523 }
 524 
 525 void ShenandoahHeap::print_on(outputStream* st) const {
 526   st->print_cr("Shenandoah Heap");
 527   st->print_cr(" " SIZE_FORMAT "%s total, " SIZE_FORMAT "%s committed, " SIZE_FORMAT "%s used",
 528                byte_size_in_proper_unit(max_capacity()), proper_unit_for_byte_size(max_capacity()),
 529                byte_size_in_proper_unit(committed()),    proper_unit_for_byte_size(committed()),
 530                byte_size_in_proper_unit(used()),         proper_unit_for_byte_size(used()));
 531   st->print_cr(" " SIZE_FORMAT " x " SIZE_FORMAT"%s regions",
 532                num_regions(),
 533                byte_size_in_proper_unit(ShenandoahHeapRegion::region_size_bytes()),
 534                proper_unit_for_byte_size(ShenandoahHeapRegion::region_size_bytes()));
 535 
 536   st->print("Status: ");
 537   if (has_forwarded_objects())               st->print("has forwarded objects, ");
 538   if (is_concurrent_mark_in_progress())      st->print("marking, ");
 539   if (is_evacuation_in_progress())           st->print("evacuating, ");
 540   if (is_update_refs_in_progress())          st->print("updating refs, ");
 541   if (is_concurrent_traversal_in_progress()) st->print("traversal, ");
 542   if (is_degenerated_gc_in_progress())       st->print("degenerated gc, ");
 543   if (is_full_gc_in_progress())              st->print("full gc, ");
 544   if (is_full_gc_move_in_progress())         st->print("full gc move, ");
 545   if (is_concurrent_root_in_progress())      st->print("concurrent roots, ");
 546 
 547   if (cancelled_gc()) {
 548     st->print("cancelled");
 549   } else {
 550     st->print("not cancelled");
 551   }
 552   st->cr();
 553 
 554   st->print_cr("Reserved region:");
 555   st->print_cr(" - [" PTR_FORMAT ", " PTR_FORMAT ") ",
 556                p2i(reserved_region().start()),
 557                p2i(reserved_region().end()));
 558 
 559   ShenandoahCollectionSet* cset = collection_set();
 560   st->print_cr("Collection set:");
 561   if (cset != NULL) {
 562     st->print_cr(" - map (vanilla): " PTR_FORMAT, p2i(cset->map_address()));
 563     st->print_cr(" - map (biased):  " PTR_FORMAT, p2i(cset->biased_map_address()));
 564   } else {
 565     st->print_cr(" (NULL)");
 566   }
 567 
 568   st->cr();
 569   MetaspaceUtils::print_on(st);
 570 
 571   if (Verbose) {
 572     print_heap_regions_on(st);
 573   }
 574 }
 575 
 576 class ShenandoahInitWorkerGCLABClosure : public ThreadClosure {
 577 public:
 578   void do_thread(Thread* thread) {
 579     assert(thread != NULL, "Sanity");
 580     assert(thread->is_Worker_thread(), "Only worker thread expected");
 581     ShenandoahThreadLocalData::initialize_gclab(thread);
 582   }
 583 };
 584 
 585 void ShenandoahHeap::post_initialize() {
 586   CollectedHeap::post_initialize();
 587   MutexLocker ml(Threads_lock);
 588 
 589   ShenandoahInitWorkerGCLABClosure init_gclabs;
 590   _workers->threads_do(&init_gclabs);
 591 
 592   // gclab can not be initialized early during VM startup, as it can not determinate its max_size.
 593   // Now, we will let WorkGang to initialize gclab when new worker is created.
 594   _workers->set_initialize_gclab();
 595 
 596   _scm->initialize(_max_workers);
 597   _full_gc->initialize(_gc_timer);
 598 
 599   ref_processing_init();
 600 
 601   _heuristics->initialize();
 602 
 603   JFR_ONLY(ShenandoahJFRSupport::register_jfr_type_serializers());
 604 }
 605 
 606 size_t ShenandoahHeap::used() const {
 607   return Atomic::load_acquire(&_used);
 608 }
 609 
 610 size_t ShenandoahHeap::committed() const {
 611   OrderAccess::acquire();
 612   return _committed;
 613 }
 614 
 615 void ShenandoahHeap::increase_committed(size_t bytes) {
 616   assert_heaplock_or_safepoint();
 617   _committed += bytes;
 618 }
 619 
 620 void ShenandoahHeap::decrease_committed(size_t bytes) {
 621   assert_heaplock_or_safepoint();
 622   _committed -= bytes;
 623 }
 624 
 625 void ShenandoahHeap::increase_used(size_t bytes) {
 626   Atomic::add(&_used, bytes);
 627 }
 628 
 629 void ShenandoahHeap::set_used(size_t bytes) {
 630   Atomic::release_store_fence(&_used, bytes);
 631 }
 632 
 633 void ShenandoahHeap::decrease_used(size_t bytes) {
 634   assert(used() >= bytes, "never decrease heap size by more than we've left");
 635   Atomic::sub(&_used, bytes);
 636 }
 637 
 638 void ShenandoahHeap::increase_allocated(size_t bytes) {
 639   Atomic::add(&_bytes_allocated_since_gc_start, bytes);
 640 }
 641 
 642 void ShenandoahHeap::notify_mutator_alloc_words(size_t words, bool waste) {
 643   size_t bytes = words * HeapWordSize;
 644   if (!waste) {
 645     increase_used(bytes);
 646   }
 647   increase_allocated(bytes);
 648   if (ShenandoahPacing) {
 649     control_thread()->pacing_notify_alloc(words);
 650     if (waste) {
 651       pacer()->claim_for_alloc(words, true);
 652     }
 653   }
 654 }
 655 
 656 size_t ShenandoahHeap::capacity() const {
 657   return committed();
 658 }
 659 
 660 size_t ShenandoahHeap::max_capacity() const {
 661   return _num_regions * ShenandoahHeapRegion::region_size_bytes();
 662 }
 663 
 664 size_t ShenandoahHeap::min_capacity() const {
 665   return _minimum_size;
 666 }
 667 
 668 size_t ShenandoahHeap::initial_capacity() const {
 669   return _initial_size;
 670 }
 671 
 672 bool ShenandoahHeap::is_in(const void* p) const {
 673   HeapWord* heap_base = (HeapWord*) base();
 674   HeapWord* last_region_end = heap_base + ShenandoahHeapRegion::region_size_words() * num_regions();
 675   return p >= heap_base && p < last_region_end;
 676 }
 677 
 678 void ShenandoahHeap::op_uncommit(double shrink_before) {
 679   assert (ShenandoahUncommit, "should be enabled");
 680 
 681   // Application allocates from the beginning of the heap, and GC allocates at
 682   // the end of it. It is more efficient to uncommit from the end, so that applications
 683   // could enjoy the near committed regions. GC allocations are much less frequent,
 684   // and therefore can accept the committing costs.
 685 
 686   size_t count = 0;
 687   for (size_t i = num_regions(); i > 0; i--) { // care about size_t underflow
 688     ShenandoahHeapRegion* r = get_region(i - 1);
 689     if (r->is_empty_committed() && (r->empty_time() < shrink_before)) {
 690       ShenandoahHeapLocker locker(lock());
 691       if (r->is_empty_committed()) {
 692         // Do not uncommit below minimal capacity
 693         if (committed() < min_capacity() + ShenandoahHeapRegion::region_size_bytes()) {
 694           break;
 695         }
 696 
 697         r->make_uncommitted();
 698         count++;
 699       }
 700     }
 701     SpinPause(); // allow allocators to take the lock
 702   }
 703 
 704   if (count > 0) {
 705     control_thread()->notify_heap_changed();
 706   }
 707 }
 708 
 709 HeapWord* ShenandoahHeap::allocate_from_gclab_slow(Thread* thread, size_t size) {
 710   // New object should fit the GCLAB size
 711   size_t min_size = MAX2(size, PLAB::min_size());
 712 
 713   // Figure out size of new GCLAB, looking back at heuristics. Expand aggressively.
 714   size_t new_size = ShenandoahThreadLocalData::gclab_size(thread) * 2;
 715   new_size = MIN2(new_size, PLAB::max_size());
 716   new_size = MAX2(new_size, PLAB::min_size());
 717 
 718   // Record new heuristic value even if we take any shortcut. This captures
 719   // the case when moderately-sized objects always take a shortcut. At some point,
 720   // heuristics should catch up with them.
 721   ShenandoahThreadLocalData::set_gclab_size(thread, new_size);
 722 
 723   if (new_size < size) {
 724     // New size still does not fit the object. Fall back to shared allocation.
 725     // This avoids retiring perfectly good GCLABs, when we encounter a large object.
 726     return NULL;
 727   }
 728 
 729   // Retire current GCLAB, and allocate a new one.
 730   PLAB* gclab = ShenandoahThreadLocalData::gclab(thread);
 731   gclab->retire();
 732 
 733   size_t actual_size = 0;
 734   HeapWord* gclab_buf = allocate_new_gclab(min_size, new_size, &actual_size);
 735   if (gclab_buf == NULL) {
 736     return NULL;
 737   }
 738 
 739   assert (size <= actual_size, "allocation should fit");
 740 
 741   if (ZeroTLAB) {
 742     // ..and clear it.
 743     Copy::zero_to_words(gclab_buf, actual_size);
 744   } else {
 745     // ...and zap just allocated object.
 746 #ifdef ASSERT
 747     // Skip mangling the space corresponding to the object header to
 748     // ensure that the returned space is not considered parsable by
 749     // any concurrent GC thread.
 750     size_t hdr_size = oopDesc::header_size();
 751     Copy::fill_to_words(gclab_buf + hdr_size, actual_size - hdr_size, badHeapWordVal);
 752 #endif // ASSERT
 753   }
 754   gclab->set_buf(gclab_buf, actual_size);
 755   return gclab->allocate(size);
 756 }
 757 
 758 HeapWord* ShenandoahHeap::allocate_new_tlab(size_t min_size,
 759                                             size_t requested_size,
 760                                             size_t* actual_size) {
 761   ShenandoahAllocRequest req = ShenandoahAllocRequest::for_tlab(min_size, requested_size);
 762   HeapWord* res = allocate_memory(req);
 763   if (res != NULL) {
 764     *actual_size = req.actual_size();
 765   } else {
 766     *actual_size = 0;
 767   }
 768   return res;
 769 }
 770 
 771 HeapWord* ShenandoahHeap::allocate_new_gclab(size_t min_size,
 772                                              size_t word_size,
 773                                              size_t* actual_size) {
 774   ShenandoahAllocRequest req = ShenandoahAllocRequest::for_gclab(min_size, word_size);
 775   HeapWord* res = allocate_memory(req);
 776   if (res != NULL) {
 777     *actual_size = req.actual_size();
 778   } else {
 779     *actual_size = 0;
 780   }
 781   return res;
 782 }
 783 
 784 ShenandoahHeap* ShenandoahHeap::heap() {
 785   CollectedHeap* heap = Universe::heap();
 786   assert(heap != NULL, "Unitialized access to ShenandoahHeap::heap()");
 787   assert(heap->kind() == CollectedHeap::Shenandoah, "not a shenandoah heap");
 788   return (ShenandoahHeap*) heap;
 789 }
 790 
 791 ShenandoahHeap* ShenandoahHeap::heap_no_check() {
 792   CollectedHeap* heap = Universe::heap();
 793   return (ShenandoahHeap*) heap;
 794 }
 795 
 796 HeapWord* ShenandoahHeap::allocate_memory(ShenandoahAllocRequest& req) {
 797   ShenandoahAllocTrace trace_alloc(req.size(), req.type());
 798 
 799   intptr_t pacer_epoch = 0;
 800   bool in_new_region = false;
 801   HeapWord* result = NULL;
 802 
 803   if (req.is_mutator_alloc()) {
 804     if (ShenandoahPacing) {
 805       pacer()->pace_for_alloc(req.size());
 806       pacer_epoch = pacer()->epoch();
 807     }
 808 
 809     if (!ShenandoahAllocFailureALot || !should_inject_alloc_failure()) {
 810       result = allocate_memory_under_lock(req, in_new_region);
 811     }
 812 
 813     // Allocation failed, block until control thread reacted, then retry allocation.
 814     //
 815     // It might happen that one of the threads requesting allocation would unblock
 816     // way later after GC happened, only to fail the second allocation, because
 817     // other threads have already depleted the free storage. In this case, a better
 818     // strategy is to try again, as long as GC makes progress.
 819     //
 820     // Then, we need to make sure the allocation was retried after at least one
 821     // Full GC, which means we want to try more than ShenandoahFullGCThreshold times.
 822 
 823     size_t tries = 0;
 824 
 825     while (result == NULL && _progress_last_gc.is_set()) {
 826       tries++;
 827       control_thread()->handle_alloc_failure(req.size());
 828       result = allocate_memory_under_lock(req, in_new_region);
 829     }
 830 
 831     while (result == NULL && tries <= ShenandoahFullGCThreshold) {
 832       tries++;
 833       control_thread()->handle_alloc_failure(req.size());
 834       result = allocate_memory_under_lock(req, in_new_region);
 835     }
 836 
 837   } else {
 838     assert(req.is_gc_alloc(), "Can only accept GC allocs here");
 839     result = allocate_memory_under_lock(req, in_new_region);
 840     // Do not call handle_alloc_failure() here, because we cannot block.
 841     // The allocation failure would be handled by the LRB slowpath with handle_alloc_failure_evac().
 842   }
 843 
 844   if (in_new_region) {
 845     control_thread()->notify_heap_changed();
 846   }
 847 
 848   if (result != NULL) {
 849     size_t requested = req.size();
 850     size_t actual = req.actual_size();
 851 
 852     assert (req.is_lab_alloc() || (requested == actual),
 853             "Only LAB allocations are elastic: %s, requested = " SIZE_FORMAT ", actual = " SIZE_FORMAT,
 854             ShenandoahAllocRequest::alloc_type_to_string(req.type()), requested, actual);
 855 
 856     if (req.is_mutator_alloc()) {
 857       notify_mutator_alloc_words(actual, false);
 858 
 859       // If we requested more than we were granted, give the rest back to pacer.
 860       // This only matters if we are in the same pacing epoch: do not try to unpace
 861       // over the budget for the other phase.
 862       if (ShenandoahPacing && (pacer_epoch > 0) && (requested > actual)) {
 863         pacer()->unpace_for_alloc(pacer_epoch, requested - actual);
 864       }
 865     } else {
 866       increase_used(actual*HeapWordSize);
 867     }
 868   }
 869 
 870   return result;
 871 }
 872 
 873 HeapWord* ShenandoahHeap::allocate_memory_under_lock(ShenandoahAllocRequest& req, bool& in_new_region) {
 874   ShenandoahHeapLocker locker(lock());
 875   return _free_set->allocate(req, in_new_region);
 876 }
 877 
 878 HeapWord* ShenandoahHeap::mem_allocate(size_t size,
 879                                         bool*  gc_overhead_limit_was_exceeded) {
 880   ShenandoahAllocRequest req = ShenandoahAllocRequest::for_shared(size);
 881   return allocate_memory(req);
 882 }
 883 
 884 MetaWord* ShenandoahHeap::satisfy_failed_metadata_allocation(ClassLoaderData* loader_data,
 885                                                              size_t size,
 886                                                              Metaspace::MetadataType mdtype) {
 887   MetaWord* result;
 888 
 889   // Inform metaspace OOM to GC heuristics if class unloading is possible.
 890   if (heuristics()->can_unload_classes()) {
 891     ShenandoahHeuristics* h = heuristics();
 892     h->record_metaspace_oom();
 893   }
 894 
 895   // Expand and retry allocation
 896   result = loader_data->metaspace_non_null()->expand_and_allocate(size, mdtype);
 897   if (result != NULL) {
 898     return result;
 899   }
 900 
 901   // Start full GC
 902   collect(GCCause::_metadata_GC_clear_soft_refs);
 903 
 904   // Retry allocation
 905   result = loader_data->metaspace_non_null()->allocate(size, mdtype);
 906   if (result != NULL) {
 907     return result;
 908   }
 909 
 910   // Expand and retry allocation
 911   result = loader_data->metaspace_non_null()->expand_and_allocate(size, mdtype);
 912   if (result != NULL) {
 913     return result;
 914   }
 915 
 916   // Out of memory
 917   return NULL;
 918 }
 919 
 920 class ShenandoahConcurrentEvacuateRegionObjectClosure : public ObjectClosure {
 921 private:
 922   ShenandoahHeap* const _heap;
 923   Thread* const _thread;
 924 public:
 925   ShenandoahConcurrentEvacuateRegionObjectClosure(ShenandoahHeap* heap) :
 926     _heap(heap), _thread(Thread::current()) {}
 927 
 928   void do_object(oop p) {
 929     shenandoah_assert_marked(NULL, p);
 930     if (!p->is_forwarded()) {
 931       _heap->evacuate_object(p, _thread);
 932     }
 933   }
 934 };
 935 
 936 class ShenandoahEvacuationTask : public AbstractGangTask {
 937 private:
 938   ShenandoahHeap* const _sh;
 939   ShenandoahCollectionSet* const _cs;
 940   bool _concurrent;
 941 public:
 942   ShenandoahEvacuationTask(ShenandoahHeap* sh,
 943                            ShenandoahCollectionSet* cs,
 944                            bool concurrent) :
 945     AbstractGangTask("Parallel Evacuation Task"),
 946     _sh(sh),
 947     _cs(cs),
 948     _concurrent(concurrent)
 949   {}
 950 
 951   void work(uint worker_id) {
 952     if (_concurrent) {
 953       ShenandoahConcurrentWorkerSession worker_session(worker_id);
 954       ShenandoahSuspendibleThreadSetJoiner stsj(ShenandoahSuspendibleWorkers);
 955       ShenandoahEvacOOMScope oom_evac_scope;
 956       do_work();
 957     } else {
 958       ShenandoahParallelWorkerSession worker_session(worker_id);
 959       ShenandoahEvacOOMScope oom_evac_scope;
 960       do_work();
 961     }
 962   }
 963 
 964 private:
 965   void do_work() {
 966     ShenandoahConcurrentEvacuateRegionObjectClosure cl(_sh);
 967     ShenandoahHeapRegion* r;
 968     while ((r =_cs->claim_next()) != NULL) {
 969       assert(r->has_live(), "Region " SIZE_FORMAT " should have been reclaimed early", r->region_number());
 970       _sh->marked_object_iterate(r, &cl);
 971 
 972       if (ShenandoahPacing) {
 973         _sh->pacer()->report_evac(r->used() >> LogHeapWordSize);
 974       }
 975 
 976       if (_sh->check_cancelled_gc_and_yield(_concurrent)) {
 977         break;
 978       }
 979     }
 980   }
 981 };
 982 
 983 void ShenandoahHeap::trash_cset_regions() {
 984   ShenandoahHeapLocker locker(lock());
 985 
 986   ShenandoahCollectionSet* set = collection_set();
 987   ShenandoahHeapRegion* r;
 988   set->clear_current_index();
 989   while ((r = set->next()) != NULL) {
 990     r->make_trash();
 991   }
 992   collection_set()->clear();
 993 }
 994 
 995 void ShenandoahHeap::print_heap_regions_on(outputStream* st) const {
 996   st->print_cr("Heap Regions:");
 997   st->print_cr("EU=empty-uncommitted, EC=empty-committed, R=regular, H=humongous start, HC=humongous continuation, CS=collection set, T=trash, P=pinned");
 998   st->print_cr("BTE=bottom/top/end, U=used, T=TLAB allocs, G=GCLAB allocs, S=shared allocs, L=live data");
 999   st->print_cr("R=root, CP=critical pins, TAMS=top-at-mark-start (previous, next)");
1000   st->print_cr("SN=alloc sequence numbers (first mutator, last mutator, first gc, last gc)");
1001 
1002   for (size_t i = 0; i < num_regions(); i++) {
1003     get_region(i)->print_on(st);
1004   }
1005 }
1006 
1007 void ShenandoahHeap::trash_humongous_region_at(ShenandoahHeapRegion* start) {
1008   assert(start->is_humongous_start(), "reclaim regions starting with the first one");
1009 
1010   oop humongous_obj = oop(start->bottom());
1011   size_t size = humongous_obj->size();
1012   size_t required_regions = ShenandoahHeapRegion::required_regions(size * HeapWordSize);
1013   size_t index = start->region_number() + required_regions - 1;
1014 
1015   assert(!start->has_live(), "liveness must be zero");
1016 
1017   for(size_t i = 0; i < required_regions; i++) {
1018     // Reclaim from tail. Otherwise, assertion fails when printing region to trace log,
1019     // as it expects that every region belongs to a humongous region starting with a humongous start region.
1020     ShenandoahHeapRegion* region = get_region(index --);
1021 
1022     assert(region->is_humongous(), "expect correct humongous start or continuation");
1023     assert(!region->is_cset(), "Humongous region should not be in collection set");
1024 
1025     region->make_trash_immediate();
1026   }
1027 }
1028 
1029 class ShenandoahRetireGCLABClosure : public ThreadClosure {
1030 public:
1031   void do_thread(Thread* thread) {
1032     PLAB* gclab = ShenandoahThreadLocalData::gclab(thread);
1033     assert(gclab != NULL, "GCLAB should be initialized for %s", thread->name());
1034     gclab->retire();
1035   }
1036 };
1037 
1038 void ShenandoahHeap::make_parsable(bool retire_tlabs) {
1039   if (UseTLAB) {
1040     CollectedHeap::ensure_parsability(retire_tlabs);
1041   }
1042   ShenandoahRetireGCLABClosure cl;
1043   for (JavaThreadIteratorWithHandle jtiwh; JavaThread *t = jtiwh.next(); ) {
1044     cl.do_thread(t);
1045   }
1046   workers()->threads_do(&cl);
1047 }
1048 
1049 void ShenandoahHeap::resize_tlabs() {
1050   CollectedHeap::resize_all_tlabs();
1051 }
1052 
1053 class ShenandoahEvacuateUpdateRootsTask : public AbstractGangTask {
1054 private:
1055   ShenandoahRootEvacuator* _rp;
1056 
1057 public:
1058   ShenandoahEvacuateUpdateRootsTask(ShenandoahRootEvacuator* rp) :
1059     AbstractGangTask("Shenandoah evacuate and update roots"),
1060     _rp(rp) {}
1061 
1062   void work(uint worker_id) {
1063     ShenandoahParallelWorkerSession worker_session(worker_id);
1064     ShenandoahEvacOOMScope oom_evac_scope;
1065     ShenandoahEvacuateUpdateRootsClosure cl;
1066     MarkingCodeBlobClosure blobsCl(&cl, CodeBlobToOopClosure::FixRelocations);
1067     _rp->roots_do(worker_id, &cl);
1068   }
1069 };
1070 
1071 void ShenandoahHeap::evacuate_and_update_roots() {
1072 #if COMPILER2_OR_JVMCI
1073   DerivedPointerTable::clear();
1074 #endif
1075   assert(ShenandoahSafepoint::is_at_shenandoah_safepoint(), "Only iterate roots while world is stopped");
1076   {
1077     // Include concurrent roots if current cycle can not process those roots concurrently
1078     ShenandoahRootEvacuator rp(workers()->active_workers(),
1079                                ShenandoahPhaseTimings::init_evac,
1080                                !ShenandoahConcurrentRoots::should_do_concurrent_roots(),
1081                                !ShenandoahConcurrentRoots::should_do_concurrent_class_unloading());
1082     ShenandoahEvacuateUpdateRootsTask roots_task(&rp);
1083     workers()->run_task(&roots_task);
1084   }
1085 
1086 #if COMPILER2_OR_JVMCI
1087   DerivedPointerTable::update_pointers();
1088 #endif
1089 }
1090 
1091 // Returns size in bytes
1092 size_t ShenandoahHeap::unsafe_max_tlab_alloc(Thread *thread) const {
1093   if (ShenandoahElasticTLAB) {
1094     // With Elastic TLABs, return the max allowed size, and let the allocation path
1095     // figure out the safe size for current allocation.
1096     return ShenandoahHeapRegion::max_tlab_size_bytes();
1097   } else {
1098     return MIN2(_free_set->unsafe_peek_free(), ShenandoahHeapRegion::max_tlab_size_bytes());
1099   }
1100 }
1101 
1102 size_t ShenandoahHeap::max_tlab_size() const {
1103   // Returns size in words
1104   return ShenandoahHeapRegion::max_tlab_size_words();
1105 }
1106 
1107 class ShenandoahRetireAndResetGCLABClosure : public ThreadClosure {
1108 public:
1109   void do_thread(Thread* thread) {
1110     PLAB* gclab = ShenandoahThreadLocalData::gclab(thread);
1111     gclab->retire();
1112     if (ShenandoahThreadLocalData::gclab_size(thread) > 0) {
1113       ShenandoahThreadLocalData::set_gclab_size(thread, 0);
1114     }
1115   }
1116 };
1117 
1118 void ShenandoahHeap::retire_and_reset_gclabs() {
1119   ShenandoahRetireAndResetGCLABClosure cl;
1120   for (JavaThreadIteratorWithHandle jtiwh; JavaThread *t = jtiwh.next(); ) {
1121     cl.do_thread(t);
1122   }
1123   workers()->threads_do(&cl);
1124 }
1125 
1126 void ShenandoahHeap::collect(GCCause::Cause cause) {
1127   control_thread()->request_gc(cause);
1128 }
1129 
1130 void ShenandoahHeap::do_full_collection(bool clear_all_soft_refs) {
1131   //assert(false, "Shouldn't need to do full collections");
1132 }
1133 
1134 HeapWord* ShenandoahHeap::block_start(const void* addr) const {
1135   Space* sp = heap_region_containing(addr);
1136   if (sp != NULL) {
1137     return sp->block_start(addr);
1138   }
1139   return NULL;
1140 }
1141 
1142 bool ShenandoahHeap::block_is_obj(const HeapWord* addr) const {
1143   Space* sp = heap_region_containing(addr);
1144   return sp->block_is_obj(addr);
1145 }
1146 
1147 bool ShenandoahHeap::print_location(outputStream* st, void* addr) const {
1148   return BlockLocationPrinter<ShenandoahHeap>::print_location(st, addr);
1149 }
1150 
1151 jlong ShenandoahHeap::millis_since_last_gc() {
1152   double v = heuristics()->time_since_last_gc() * 1000;
1153   assert(0 <= v && v <= max_jlong, "value should fit: %f", v);
1154   return (jlong)v;
1155 }
1156 
1157 void ShenandoahHeap::prepare_for_verify() {
1158   if (SafepointSynchronize::is_at_safepoint() || ! UseTLAB) {
1159     make_parsable(false);
1160   }
1161 }
1162 
1163 void ShenandoahHeap::print_gc_threads_on(outputStream* st) const {
1164   workers()->print_worker_threads_on(st);
1165   if (ShenandoahStringDedup::is_enabled()) {
1166     ShenandoahStringDedup::print_worker_threads_on(st);
1167   }
1168 }
1169 
1170 void ShenandoahHeap::gc_threads_do(ThreadClosure* tcl) const {
1171   workers()->threads_do(tcl);
1172   if (_safepoint_workers != NULL) {
1173     _safepoint_workers->threads_do(tcl);
1174   }
1175   if (ShenandoahStringDedup::is_enabled()) {
1176     ShenandoahStringDedup::threads_do(tcl);
1177   }
1178 }
1179 
1180 void ShenandoahHeap::print_tracing_info() const {
1181   LogTarget(Info, gc, stats) lt;
1182   if (lt.is_enabled()) {
1183     ResourceMark rm;
1184     LogStream ls(lt);
1185 
1186     phase_timings()->print_on(&ls);
1187 
1188     ls.cr();
1189     ls.cr();
1190 
1191     shenandoah_policy()->print_gc_stats(&ls);
1192 
1193     ls.cr();
1194     ls.cr();
1195 
1196     if (ShenandoahPacing) {
1197       pacer()->print_on(&ls);
1198     }
1199 
1200     ls.cr();
1201     ls.cr();
1202 
1203     if (ShenandoahAllocationTrace) {
1204       assert(alloc_tracker() != NULL, "Must be");
1205       alloc_tracker()->print_on(&ls);
1206     } else {
1207       ls.print_cr("  Allocation tracing is disabled, use -XX:+ShenandoahAllocationTrace to enable.");
1208     }
1209   }
1210 }
1211 
1212 void ShenandoahHeap::verify(VerifyOption vo) {
1213   if (ShenandoahSafepoint::is_at_shenandoah_safepoint()) {
1214     if (ShenandoahVerify) {
1215       verifier()->verify_generic(vo);
1216     } else {
1217       // TODO: Consider allocating verification bitmaps on demand,
1218       // and turn this on unconditionally.
1219     }
1220   }
1221 }
1222 size_t ShenandoahHeap::tlab_capacity(Thread *thr) const {
1223   return _free_set->capacity();
1224 }
1225 
1226 class ObjectIterateScanRootClosure : public BasicOopIterateClosure {
1227 private:
1228   MarkBitMap* _bitmap;
1229   Stack<oop,mtGC>* _oop_stack;
1230 
1231   template <class T>
1232   void do_oop_work(T* p) {
1233     T o = RawAccess<>::oop_load(p);
1234     if (!CompressedOops::is_null(o)) {
1235       oop obj = CompressedOops::decode_not_null(o);
1236       oop fwd = (oop) ShenandoahForwarding::get_forwardee_raw_unchecked(obj);
1237       if (fwd == NULL) {
1238         // There is an odd interaction with VM_HeapWalkOperation, see jvmtiTagMap.cpp.
1239         //
1240         // That operation walks the reachable objects on its own, storing the marking
1241         // wavefront in the object marks. When it is done, it calls the CollectedHeap
1242         // to iterate over all objects to clean up the mess. When it reaches here,
1243         // the Shenandoah fwdptr resolution code encounters the marked objects with
1244         // NULL forwardee. Trying to act on that would crash the VM. Or fail the
1245         // asserts, should we go for resolve_forwarded_pointer(obj).
1246         //
1247         // Therefore, we have to dodge it by doing the raw access to forwardee, and
1248         // assuming the object had no forwardee, if that thing is NULL.
1249       } else {
1250         obj = fwd;
1251       }
1252       assert(oopDesc::is_oop(obj), "must be a valid oop");
1253       if (!_bitmap->is_marked((HeapWord*) obj)) {
1254         _bitmap->mark((HeapWord*) obj);
1255         _oop_stack->push(obj);
1256       }
1257     }
1258   }
1259 public:
1260   ObjectIterateScanRootClosure(MarkBitMap* bitmap, Stack<oop,mtGC>* oop_stack) :
1261     _bitmap(bitmap), _oop_stack(oop_stack) {}
1262   void do_oop(oop* p)       { do_oop_work(p); }
1263   void do_oop(narrowOop* p) { do_oop_work(p); }
1264 };
1265 
1266 /*
1267  * This is public API, used in preparation of object_iterate().
1268  * Since we don't do linear scan of heap in object_iterate() (see comment below), we don't
1269  * need to make the heap parsable. For Shenandoah-internal linear heap scans that we can
1270  * control, we call SH::make_tlabs_parsable().
1271  */
1272 void ShenandoahHeap::ensure_parsability(bool retire_tlabs) {
1273   // No-op.
1274 }
1275 
1276 /*
1277  * Iterates objects in the heap. This is public API, used for, e.g., heap dumping.
1278  *
1279  * We cannot safely iterate objects by doing a linear scan at random points in time. Linear
1280  * scanning needs to deal with dead objects, which may have dead Klass* pointers (e.g.
1281  * calling oopDesc::size() would crash) or dangling reference fields (crashes) etc. Linear
1282  * scanning therefore depends on having a valid marking bitmap to support it. However, we only
1283  * have a valid marking bitmap after successful marking. In particular, we *don't* have a valid
1284  * marking bitmap during marking, after aborted marking or during/after cleanup (when we just
1285  * wiped the bitmap in preparation for next marking).
1286  *
1287  * For all those reasons, we implement object iteration as a single marking traversal, reporting
1288  * objects as we mark+traverse through the heap, starting from GC roots. JVMTI IterateThroughHeap
1289  * is allowed to report dead objects, but is not required to do so.
1290  */
1291 void ShenandoahHeap::object_iterate(ObjectClosure* cl) {
1292   assert(SafepointSynchronize::is_at_safepoint(), "safe iteration is only available during safepoints");
1293   if (!_aux_bitmap_region_special && !os::commit_memory((char*)_aux_bitmap_region.start(), _aux_bitmap_region.byte_size(), false)) {
1294     log_warning(gc)("Could not commit native memory for auxiliary marking bitmap for heap iteration");
1295     return;
1296   }
1297 
1298   // Reset bitmap
1299   _aux_bit_map.clear();
1300 
1301   Stack<oop,mtGC> oop_stack;
1302 
1303   // First, we process GC roots according to current GC cycle. This populates the work stack with initial objects.
1304   ShenandoahHeapIterationRootScanner rp;
1305   ObjectIterateScanRootClosure oops(&_aux_bit_map, &oop_stack);
1306 
1307   // If we are unloading classes right now, we should not touch weak roots,
1308   // on the off-chance we would evacuate them and make them live accidentally.
1309   // In other cases, we have to scan all roots.
1310   if (is_evacuation_in_progress() && unload_classes()) {
1311     rp.strong_roots_do(&oops);
1312   } else {
1313     rp.roots_do(&oops);
1314   }
1315 
1316   // Work through the oop stack to traverse heap.
1317   while (! oop_stack.is_empty()) {
1318     oop obj = oop_stack.pop();
1319     assert(oopDesc::is_oop(obj), "must be a valid oop");
1320     cl->do_object(obj);
1321     obj->oop_iterate(&oops);
1322   }
1323 
1324   assert(oop_stack.is_empty(), "should be empty");
1325 
1326   if (!_aux_bitmap_region_special && !os::uncommit_memory((char*)_aux_bitmap_region.start(), _aux_bitmap_region.byte_size())) {
1327     log_warning(gc)("Could not uncommit native memory for auxiliary marking bitmap for heap iteration");
1328   }
1329 }
1330 
1331 // Keep alive an object that was loaded with AS_NO_KEEPALIVE.
1332 void ShenandoahHeap::keep_alive(oop obj) {
1333   if (is_concurrent_mark_in_progress()) {
1334     ShenandoahBarrierSet::barrier_set()->enqueue(obj);
1335   }
1336 }
1337 
1338 void ShenandoahHeap::heap_region_iterate(ShenandoahHeapRegionClosure* blk) const {
1339   for (size_t i = 0; i < num_regions(); i++) {
1340     ShenandoahHeapRegion* current = get_region(i);
1341     blk->heap_region_do(current);
1342   }
1343 }
1344 
1345 class ShenandoahParallelHeapRegionTask : public AbstractGangTask {
1346 private:
1347   ShenandoahHeap* const _heap;
1348   ShenandoahHeapRegionClosure* const _blk;
1349 
1350   DEFINE_PAD_MINUS_SIZE(0, DEFAULT_CACHE_LINE_SIZE, sizeof(volatile size_t));
1351   volatile size_t _index;
1352   DEFINE_PAD_MINUS_SIZE(1, DEFAULT_CACHE_LINE_SIZE, 0);
1353 
1354 public:
1355   ShenandoahParallelHeapRegionTask(ShenandoahHeapRegionClosure* blk) :
1356           AbstractGangTask("Parallel Region Task"),
1357           _heap(ShenandoahHeap::heap()), _blk(blk), _index(0) {}
1358 
1359   void work(uint worker_id) {
1360     size_t stride = ShenandoahParallelRegionStride;
1361 
1362     size_t max = _heap->num_regions();
1363     while (_index < max) {
1364       size_t cur = Atomic::add(&_index, stride) - stride;
1365       size_t start = cur;
1366       size_t end = MIN2(cur + stride, max);
1367       if (start >= max) break;
1368 
1369       for (size_t i = cur; i < end; i++) {
1370         ShenandoahHeapRegion* current = _heap->get_region(i);
1371         _blk->heap_region_do(current);
1372       }
1373     }
1374   }
1375 };
1376 
1377 void ShenandoahHeap::parallel_heap_region_iterate(ShenandoahHeapRegionClosure* blk) const {
1378   assert(blk->is_thread_safe(), "Only thread-safe closures here");
1379   if (num_regions() > ShenandoahParallelRegionStride) {
1380     ShenandoahParallelHeapRegionTask task(blk);
1381     workers()->run_task(&task);
1382   } else {
1383     heap_region_iterate(blk);
1384   }
1385 }
1386 
1387 class ShenandoahClearLivenessClosure : public ShenandoahHeapRegionClosure {
1388 private:
1389   ShenandoahMarkingContext* const _ctx;
1390 public:
1391   ShenandoahClearLivenessClosure() : _ctx(ShenandoahHeap::heap()->marking_context()) {}
1392 
1393   void heap_region_do(ShenandoahHeapRegion* r) {
1394     if (r->is_active()) {
1395       r->clear_live_data();
1396       _ctx->capture_top_at_mark_start(r);
1397     } else {
1398       assert(!r->has_live(), "Region " SIZE_FORMAT " should have no live data", r->region_number());
1399       assert(_ctx->top_at_mark_start(r) == r->top(),
1400              "Region " SIZE_FORMAT " should already have correct TAMS", r->region_number());
1401     }
1402   }
1403 
1404   bool is_thread_safe() { return true; }
1405 };
1406 
1407 void ShenandoahHeap::op_init_mark() {
1408   assert(ShenandoahSafepoint::is_at_shenandoah_safepoint(), "Should be at safepoint");
1409   assert(Thread::current()->is_VM_thread(), "can only do this in VMThread");
1410 
1411   assert(marking_context()->is_bitmap_clear(), "need clear marking bitmap");
1412   assert(!marking_context()->is_complete(), "should not be complete");
1413 
1414   if (ShenandoahVerify) {
1415     verifier()->verify_before_concmark();
1416   }
1417 
1418   if (VerifyBeforeGC) {
1419     Universe::verify();
1420   }
1421 
1422   set_concurrent_mark_in_progress(true);
1423   // We need to reset all TLABs because we'd lose marks on all objects allocated in them.
1424   {
1425     ShenandoahGCPhase phase(ShenandoahPhaseTimings::make_parsable);
1426     make_parsable(true);
1427   }
1428 
1429   {
1430     ShenandoahGCPhase phase(ShenandoahPhaseTimings::clear_liveness);
1431     ShenandoahClearLivenessClosure clc;
1432     parallel_heap_region_iterate(&clc);
1433   }
1434 
1435   // Make above changes visible to worker threads
1436   OrderAccess::fence();
1437 
1438   concurrent_mark()->mark_roots(ShenandoahPhaseTimings::scan_roots);
1439 
1440   if (UseTLAB) {
1441     ShenandoahGCPhase phase(ShenandoahPhaseTimings::resize_tlabs);
1442     resize_tlabs();
1443   }
1444 
1445   if (ShenandoahPacing) {
1446     pacer()->setup_for_mark();
1447   }
1448 }
1449 
1450 void ShenandoahHeap::op_mark() {
1451   concurrent_mark()->mark_from_roots();
1452 }
1453 
1454 class ShenandoahCompleteLivenessClosure : public ShenandoahHeapRegionClosure {
1455 private:
1456   ShenandoahMarkingContext* const _ctx;
1457 public:
1458   ShenandoahCompleteLivenessClosure() : _ctx(ShenandoahHeap::heap()->complete_marking_context()) {}
1459 
1460   void heap_region_do(ShenandoahHeapRegion* r) {
1461     if (r->is_active()) {
1462       HeapWord *tams = _ctx->top_at_mark_start(r);
1463       HeapWord *top = r->top();
1464       if (top > tams) {
1465         r->increase_live_data_alloc_words(pointer_delta(top, tams));
1466       }
1467     } else {
1468       assert(!r->has_live(), "Region " SIZE_FORMAT " should have no live data", r->region_number());
1469       assert(_ctx->top_at_mark_start(r) == r->top(),
1470              "Region " SIZE_FORMAT " should have correct TAMS", r->region_number());
1471     }
1472   }
1473 
1474   bool is_thread_safe() { return true; }
1475 };
1476 
1477 void ShenandoahHeap::op_final_mark() {
1478   assert(ShenandoahSafepoint::is_at_shenandoah_safepoint(), "Should be at safepoint");
1479 
1480   // It is critical that we
1481   // evacuate roots right after finishing marking, so that we don't
1482   // get unmarked objects in the roots.
1483 
1484   if (!cancelled_gc()) {
1485     concurrent_mark()->finish_mark_from_roots(/* full_gc = */ false);
1486 
1487     // Marking is completed, deactivate SATB barrier
1488     set_concurrent_mark_in_progress(false);
1489     mark_complete_marking_context();
1490 
1491     parallel_cleaning(false /* full gc*/);
1492 
1493     if (has_forwarded_objects()) {
1494       // Degen may be caused by failed evacuation of roots
1495       if (is_degenerated_gc_in_progress()) {
1496         concurrent_mark()->update_roots(ShenandoahPhaseTimings::degen_gc_update_roots);
1497       } else {
1498         concurrent_mark()->update_thread_roots(ShenandoahPhaseTimings::update_roots);
1499       }
1500       set_has_forwarded_objects(false);
1501    }
1502 
1503     if (ShenandoahVerify) {
1504       verifier()->verify_roots_no_forwarded();
1505     }
1506     // All allocations past TAMS are implicitly live, adjust the region data.
1507     // Bitmaps/TAMS are swapped at this point, so we need to poll complete bitmap.
1508     {
1509       ShenandoahGCPhase phase(ShenandoahPhaseTimings::complete_liveness);
1510       ShenandoahCompleteLivenessClosure cl;
1511       parallel_heap_region_iterate(&cl);
1512     }
1513 
1514     // Force the threads to reacquire their TLABs outside the collection set.
1515     {
1516       ShenandoahGCPhase phase(ShenandoahPhaseTimings::retire_tlabs);
1517       make_parsable(true);
1518     }
1519 
1520     // We are about to select the collection set, make sure it knows about
1521     // current pinning status. Also, this allows trashing more regions that
1522     // now have their pinning status dropped.
1523     {
1524       ShenandoahGCPhase phase(ShenandoahPhaseTimings::sync_pinned);
1525       sync_pinned_region_status();
1526     }
1527 
1528     // Trash the collection set left over from previous cycle, if any.
1529     {
1530       ShenandoahGCPhase phase(ShenandoahPhaseTimings::trash_cset);
1531       trash_cset_regions();
1532     }
1533 
1534     {
1535       ShenandoahGCPhase phase(ShenandoahPhaseTimings::prepare_evac);
1536 
1537       ShenandoahHeapLocker locker(lock());
1538       _collection_set->clear();
1539       _free_set->clear();
1540 
1541       heuristics()->choose_collection_set(_collection_set);
1542 
1543       _free_set->rebuild();
1544     }
1545 
1546     if (!is_degenerated_gc_in_progress()) {
1547       prepare_concurrent_roots();
1548       prepare_concurrent_unloading();
1549     }
1550 
1551     // If collection set has candidates, start evacuation.
1552     // Otherwise, bypass the rest of the cycle.
1553     if (!collection_set()->is_empty()) {
1554       ShenandoahGCPhase init_evac(ShenandoahPhaseTimings::init_evac);
1555 
1556       if (ShenandoahVerify) {
1557         verifier()->verify_before_evacuation();
1558       }
1559 
1560       set_evacuation_in_progress(true);
1561       // From here on, we need to update references.
1562       set_has_forwarded_objects(true);
1563 
1564       if (!is_degenerated_gc_in_progress()) {
1565         if (ShenandoahConcurrentRoots::should_do_concurrent_class_unloading()) {
1566           ShenandoahCodeRoots::arm_nmethods();
1567         }
1568         evacuate_and_update_roots();
1569       }
1570 
1571       if (ShenandoahPacing) {
1572         pacer()->setup_for_evac();
1573       }
1574 
1575       if (ShenandoahVerify) {
1576         ShenandoahRootVerifier::RootTypes types = ShenandoahRootVerifier::None;
1577         if (ShenandoahConcurrentRoots::should_do_concurrent_roots()) {
1578           types = ShenandoahRootVerifier::combine(ShenandoahRootVerifier::JNIHandleRoots, ShenandoahRootVerifier::WeakRoots);
1579           types = ShenandoahRootVerifier::combine(types, ShenandoahRootVerifier::CLDGRoots);
1580         }
1581 
1582         if (ShenandoahConcurrentRoots::should_do_concurrent_class_unloading()) {
1583           types = ShenandoahRootVerifier::combine(types, ShenandoahRootVerifier::CodeRoots);
1584         }
1585         verifier()->verify_roots_no_forwarded_except(types);
1586         verifier()->verify_during_evacuation();
1587       }
1588     } else {
1589       if (ShenandoahVerify) {
1590         verifier()->verify_after_concmark();
1591       }
1592 
1593       if (VerifyAfterGC) {
1594         Universe::verify();
1595       }
1596     }
1597 
1598   } else {
1599     // If this cycle was updating references, we need to keep the has_forwarded_objects
1600     // flag on, for subsequent phases to deal with it.
1601     concurrent_mark()->cancel();
1602     set_concurrent_mark_in_progress(false);
1603 
1604     if (process_references()) {
1605       // Abandon reference processing right away: pre-cleaning must have failed.
1606       ReferenceProcessor *rp = ref_processor();
1607       rp->disable_discovery();
1608       rp->abandon_partial_discovery();
1609       rp->verify_no_references_recorded();
1610     }
1611   }
1612 }
1613 
1614 void ShenandoahHeap::op_final_evac() {
1615   assert(ShenandoahSafepoint::is_at_shenandoah_safepoint(), "Should be at safepoint");
1616 
1617   set_evacuation_in_progress(false);
1618 
1619   {
1620     ShenandoahGCPhase phase(ShenandoahPhaseTimings::final_evac_retire_gclabs);
1621     retire_and_reset_gclabs();
1622   }
1623 
1624   if (ShenandoahVerify) {
1625     verifier()->verify_after_evacuation();
1626   }
1627 
1628   if (VerifyAfterGC) {
1629     Universe::verify();
1630   }
1631 }
1632 
1633 void ShenandoahHeap::op_conc_evac() {
1634   ShenandoahEvacuationTask task(this, _collection_set, true);
1635   workers()->run_task(&task);
1636 }
1637 
1638 void ShenandoahHeap::op_stw_evac() {
1639   ShenandoahEvacuationTask task(this, _collection_set, false);
1640   workers()->run_task(&task);
1641 }
1642 
1643 void ShenandoahHeap::op_updaterefs() {
1644   update_heap_references(true);
1645 }
1646 
1647 void ShenandoahHeap::op_cleanup() {
1648   free_set()->recycle_trash();
1649 }
1650 
1651 class ShenandoahConcurrentRootsEvacUpdateTask : public AbstractGangTask {
1652 private:
1653   ShenandoahVMRoots<true /*concurrent*/>        _vm_roots;
1654   ShenandoahWeakRoots<true /*concurrent*/>      _weak_roots;
1655   ShenandoahClassLoaderDataRoots<true /*concurrent*/, false /*single threaded*/> _cld_roots;
1656 
1657 public:
1658   ShenandoahConcurrentRootsEvacUpdateTask() :
1659     AbstractGangTask("Shenandoah Evacuate/Update Concurrent Roots Task") {
1660   }
1661 
1662   void work(uint worker_id) {
1663     ShenandoahEvacOOMScope oom;
1664     {
1665       // jni_roots and weak_roots are OopStorage backed roots, concurrent iteration
1666       // may race against OopStorage::release() calls.
1667       ShenandoahEvacUpdateOopStorageRootsClosure cl;
1668       _vm_roots.oops_do<ShenandoahEvacUpdateOopStorageRootsClosure>(&cl);
1669       _weak_roots.oops_do<ShenandoahEvacUpdateOopStorageRootsClosure>(&cl);
1670     }
1671 
1672     {
1673       ShenandoahEvacuateUpdateRootsClosure cl;
1674       CLDToOopClosure clds(&cl, ClassLoaderData::_claim_strong);
1675       _cld_roots.cld_do(&clds);
1676     }
1677   }
1678 };
1679 
1680 void ShenandoahHeap::op_roots() {
1681   if (is_concurrent_root_in_progress()) {
1682     if (ShenandoahConcurrentRoots::should_do_concurrent_class_unloading()) {
1683       _unloader.unload();
1684     }
1685 
1686     if (ShenandoahConcurrentRoots::should_do_concurrent_roots()) {
1687       ShenandoahConcurrentRootsEvacUpdateTask task;
1688       workers()->run_task(&task);
1689     }
1690   }
1691 
1692   set_concurrent_root_in_progress(false);
1693 }
1694 
1695 void ShenandoahHeap::op_reset() {
1696   reset_mark_bitmap();
1697 }
1698 
1699 void ShenandoahHeap::op_preclean() {
1700   concurrent_mark()->preclean_weak_refs();
1701 }
1702 
1703 void ShenandoahHeap::op_init_traversal() {
1704   traversal_gc()->init_traversal_collection();
1705 }
1706 
1707 void ShenandoahHeap::op_traversal() {
1708   traversal_gc()->concurrent_traversal_collection();
1709 }
1710 
1711 void ShenandoahHeap::op_final_traversal() {
1712   traversal_gc()->final_traversal_collection();
1713 }
1714 
1715 void ShenandoahHeap::op_full(GCCause::Cause cause) {
1716   ShenandoahMetricsSnapshot metrics;
1717   metrics.snap_before();
1718 
1719   full_gc()->do_it(cause);
1720   if (UseTLAB) {
1721     ShenandoahGCPhase phase(ShenandoahPhaseTimings::full_gc_resize_tlabs);
1722     resize_all_tlabs();
1723   }
1724 
1725   metrics.snap_after();
1726 
1727   if (metrics.is_good_progress()) {
1728     _progress_last_gc.set();
1729   } else {
1730     // Nothing to do. Tell the allocation path that we have failed to make
1731     // progress, and it can finally fail.
1732     _progress_last_gc.unset();
1733   }
1734 }
1735 
1736 void ShenandoahHeap::op_degenerated(ShenandoahDegenPoint point) {
1737   // Degenerated GC is STW, but it can also fail. Current mechanics communicates
1738   // GC failure via cancelled_concgc() flag. So, if we detect the failure after
1739   // some phase, we have to upgrade the Degenerate GC to Full GC.
1740 
1741   clear_cancelled_gc();
1742 
1743   ShenandoahMetricsSnapshot metrics;
1744   metrics.snap_before();
1745 
1746   switch (point) {
1747     case _degenerated_traversal:
1748       {
1749         // Drop the collection set. Note: this leaves some already forwarded objects
1750         // behind, which may be problematic, see comments for ShenandoahEvacAssist
1751         // workarounds in ShenandoahTraversalHeuristics.
1752 
1753         ShenandoahHeapLocker locker(lock());
1754         collection_set()->clear_current_index();
1755         for (size_t i = 0; i < collection_set()->count(); i++) {
1756           ShenandoahHeapRegion* r = collection_set()->next();
1757           r->make_regular_bypass();
1758         }
1759         collection_set()->clear();
1760       }
1761       op_final_traversal();
1762       op_cleanup();
1763       return;
1764 
1765     // The cases below form the Duff's-like device: it describes the actual GC cycle,
1766     // but enters it at different points, depending on which concurrent phase had
1767     // degenerated.
1768 
1769     case _degenerated_outside_cycle:
1770       // We have degenerated from outside the cycle, which means something is bad with
1771       // the heap, most probably heavy humongous fragmentation, or we are very low on free
1772       // space. It makes little sense to wait for Full GC to reclaim as much as it can, when
1773       // we can do the most aggressive degen cycle, which includes processing references and
1774       // class unloading, unless those features are explicitly disabled.
1775       //
1776       // Note that we can only do this for "outside-cycle" degens, otherwise we would risk
1777       // changing the cycle parameters mid-cycle during concurrent -> degenerated handover.
1778       set_process_references(heuristics()->can_process_references());
1779       set_unload_classes(heuristics()->can_unload_classes());
1780 
1781       if (is_traversal_mode()) {
1782         // Not possible to degenerate from here, upgrade to Full GC right away.
1783         cancel_gc(GCCause::_shenandoah_upgrade_to_full_gc);
1784         op_degenerated_fail();
1785         return;
1786       }
1787 
1788       op_reset();
1789 
1790       op_init_mark();
1791       if (cancelled_gc()) {
1792         op_degenerated_fail();
1793         return;
1794       }
1795 
1796     case _degenerated_mark:
1797       op_final_mark();
1798       if (cancelled_gc()) {
1799         op_degenerated_fail();
1800         return;
1801       }
1802 
1803       op_cleanup();
1804 
1805     case _degenerated_evac:
1806       // If heuristics thinks we should do the cycle, this flag would be set,
1807       // and we can do evacuation. Otherwise, it would be the shortcut cycle.
1808       if (is_evacuation_in_progress()) {
1809 
1810         // Degeneration under oom-evac protocol might have left some objects in
1811         // collection set un-evacuated. Restart evacuation from the beginning to
1812         // capture all objects. For all the objects that are already evacuated,
1813         // it would be a simple check, which is supposed to be fast. This is also
1814         // safe to do even without degeneration, as CSet iterator is at beginning
1815         // in preparation for evacuation anyway.
1816         //
1817         // Before doing that, we need to make sure we never had any cset-pinned
1818         // regions. This may happen if allocation failure happened when evacuating
1819         // the about-to-be-pinned object, oom-evac protocol left the object in
1820         // the collection set, and then the pin reached the cset region. If we continue
1821         // the cycle here, we would trash the cset and alive objects in it. To avoid
1822         // it, we fail degeneration right away and slide into Full GC to recover.
1823 
1824         {
1825           sync_pinned_region_status();
1826           collection_set()->clear_current_index();
1827 
1828           ShenandoahHeapRegion* r;
1829           while ((r = collection_set()->next()) != NULL) {
1830             if (r->is_pinned()) {
1831               cancel_gc(GCCause::_shenandoah_upgrade_to_full_gc);
1832               op_degenerated_fail();
1833               return;
1834             }
1835           }
1836 
1837           collection_set()->clear_current_index();
1838         }
1839 
1840         op_stw_evac();
1841         if (cancelled_gc()) {
1842           op_degenerated_fail();
1843           return;
1844         }
1845       }
1846 
1847       // If heuristics thinks we should do the cycle, this flag would be set,
1848       // and we need to do update-refs. Otherwise, it would be the shortcut cycle.
1849       if (has_forwarded_objects()) {
1850         op_init_updaterefs();
1851         if (cancelled_gc()) {
1852           op_degenerated_fail();
1853           return;
1854         }
1855       }
1856 
1857     case _degenerated_updaterefs:
1858       if (has_forwarded_objects()) {
1859         op_final_updaterefs();
1860         if (cancelled_gc()) {
1861           op_degenerated_fail();
1862           return;
1863         }
1864       }
1865 
1866       op_cleanup();
1867       break;
1868 
1869     default:
1870       ShouldNotReachHere();
1871   }
1872 
1873   if (ShenandoahVerify) {
1874     verifier()->verify_after_degenerated();
1875   }
1876 
1877   if (VerifyAfterGC) {
1878     Universe::verify();
1879   }
1880 
1881   metrics.snap_after();
1882 
1883   // Check for futility and fail. There is no reason to do several back-to-back Degenerated cycles,
1884   // because that probably means the heap is overloaded and/or fragmented.
1885   if (!metrics.is_good_progress()) {
1886     _progress_last_gc.unset();
1887     cancel_gc(GCCause::_shenandoah_upgrade_to_full_gc);
1888     op_degenerated_futile();
1889   } else {
1890     _progress_last_gc.set();
1891   }
1892 }
1893 
1894 void ShenandoahHeap::op_degenerated_fail() {
1895   log_info(gc)("Cannot finish degeneration, upgrading to Full GC");
1896   shenandoah_policy()->record_degenerated_upgrade_to_full();
1897   op_full(GCCause::_shenandoah_upgrade_to_full_gc);
1898 }
1899 
1900 void ShenandoahHeap::op_degenerated_futile() {
1901   shenandoah_policy()->record_degenerated_upgrade_to_full();
1902   op_full(GCCause::_shenandoah_upgrade_to_full_gc);
1903 }
1904 
1905 void ShenandoahHeap::force_satb_flush_all_threads() {
1906   if (!is_concurrent_mark_in_progress() && !is_concurrent_traversal_in_progress()) {
1907     // No need to flush SATBs
1908     return;
1909   }
1910 
1911   for (JavaThreadIteratorWithHandle jtiwh; JavaThread *t = jtiwh.next(); ) {
1912     ShenandoahThreadLocalData::set_force_satb_flush(t, true);
1913   }
1914   // The threads are not "acquiring" their thread-local data, but it does not
1915   // hurt to "release" the updates here anyway.
1916   OrderAccess::fence();
1917 }
1918 
1919 void ShenandoahHeap::set_gc_state_all_threads(char state) {
1920   for (JavaThreadIteratorWithHandle jtiwh; JavaThread *t = jtiwh.next(); ) {
1921     ShenandoahThreadLocalData::set_gc_state(t, state);
1922   }
1923 }
1924 
1925 void ShenandoahHeap::set_gc_state_mask(uint mask, bool value) {
1926   assert(ShenandoahSafepoint::is_at_shenandoah_safepoint(), "Should really be Shenandoah safepoint");
1927   _gc_state.set_cond(mask, value);
1928   set_gc_state_all_threads(_gc_state.raw_value());
1929 }
1930 
1931 void ShenandoahHeap::set_concurrent_mark_in_progress(bool in_progress) {
1932   if (has_forwarded_objects()) {
1933     set_gc_state_mask(MARKING | UPDATEREFS, in_progress);
1934   } else {
1935     set_gc_state_mask(MARKING, in_progress);
1936   }
1937   ShenandoahBarrierSet::satb_mark_queue_set().set_active_all_threads(in_progress, !in_progress);
1938 }
1939 
1940 void ShenandoahHeap::set_concurrent_traversal_in_progress(bool in_progress) {
1941    set_gc_state_mask(TRAVERSAL, in_progress);
1942    ShenandoahBarrierSet::satb_mark_queue_set().set_active_all_threads(in_progress, !in_progress);
1943 }
1944 
1945 void ShenandoahHeap::set_evacuation_in_progress(bool in_progress) {
1946   assert(ShenandoahSafepoint::is_at_shenandoah_safepoint(), "Only call this at safepoint");
1947   set_gc_state_mask(EVACUATION, in_progress);
1948 }
1949 
1950 void ShenandoahHeap::set_concurrent_root_in_progress(bool in_progress) {
1951   assert(ShenandoahConcurrentRoots::can_do_concurrent_roots(), "Why set the flag?");
1952   if (in_progress) {
1953     _concurrent_root_in_progress.set();
1954   } else {
1955     _concurrent_root_in_progress.unset();
1956   }
1957 }
1958 
1959 void ShenandoahHeap::ref_processing_init() {
1960   assert(_max_workers > 0, "Sanity");
1961 
1962   _ref_processor =
1963     new ReferenceProcessor(&_subject_to_discovery,  // is_subject_to_discovery
1964                            ParallelRefProcEnabled,  // MT processing
1965                            _max_workers,            // Degree of MT processing
1966                            true,                    // MT discovery
1967                            _max_workers,            // Degree of MT discovery
1968                            false,                   // Reference discovery is not atomic
1969                            NULL,                    // No closure, should be installed before use
1970                            true);                   // Scale worker threads
1971 
1972   shenandoah_assert_rp_isalive_not_installed();
1973 }
1974 
1975 GCTracer* ShenandoahHeap::tracer() {
1976   return shenandoah_policy()->tracer();
1977 }
1978 
1979 size_t ShenandoahHeap::tlab_used(Thread* thread) const {
1980   return _free_set->used();
1981 }
1982 
1983 bool ShenandoahHeap::try_cancel_gc() {
1984   while (true) {
1985     jbyte prev = _cancelled_gc.cmpxchg(CANCELLED, CANCELLABLE);
1986     if (prev == CANCELLABLE) return true;
1987     else if (prev == CANCELLED) return false;
1988     assert(ShenandoahSuspendibleWorkers, "should not get here when not using suspendible workers");
1989     assert(prev == NOT_CANCELLED, "must be NOT_CANCELLED");
1990     if (Thread::current()->is_Java_thread()) {
1991       // We need to provide a safepoint here, otherwise we might
1992       // spin forever if a SP is pending.
1993       ThreadBlockInVM sp(JavaThread::current());
1994       SpinPause();
1995     }
1996   }
1997 }
1998 
1999 void ShenandoahHeap::cancel_gc(GCCause::Cause cause) {
2000   if (try_cancel_gc()) {
2001     FormatBuffer<> msg("Cancelling GC: %s", GCCause::to_string(cause));
2002     log_info(gc)("%s", msg.buffer());
2003     Events::log(Thread::current(), "%s", msg.buffer());
2004   }
2005 }
2006 
2007 uint ShenandoahHeap::max_workers() {
2008   return _max_workers;
2009 }
2010 
2011 void ShenandoahHeap::stop() {
2012   // The shutdown sequence should be able to terminate when GC is running.
2013 
2014   // Step 0. Notify policy to disable event recording.
2015   _shenandoah_policy->record_shutdown();
2016 
2017   // Step 1. Notify control thread that we are in shutdown.
2018   // Note that we cannot do that with stop(), because stop() is blocking and waits for the actual shutdown.
2019   // Doing stop() here would wait for the normal GC cycle to complete, never falling through to cancel below.
2020   control_thread()->prepare_for_graceful_shutdown();
2021 
2022   // Step 2. Notify GC workers that we are cancelling GC.
2023   cancel_gc(GCCause::_shenandoah_stop_vm);
2024 
2025   // Step 3. Wait until GC worker exits normally.
2026   control_thread()->stop();
2027 
2028   // Step 4. Stop String Dedup thread if it is active
2029   if (ShenandoahStringDedup::is_enabled()) {
2030     ShenandoahStringDedup::stop();
2031   }
2032 }
2033 
2034 void ShenandoahHeap::stw_unload_classes(bool full_gc) {
2035   if (!unload_classes()) return;
2036   bool purged_class;
2037 
2038   // Unload classes and purge SystemDictionary.
2039   {
2040     ShenandoahGCPhase phase(full_gc ?
2041                             ShenandoahPhaseTimings::full_gc_purge_class_unload :
2042                             ShenandoahPhaseTimings::purge_class_unload);
2043     purged_class = SystemDictionary::do_unloading(gc_timer());
2044   }
2045 
2046   {
2047     ShenandoahGCPhase phase(full_gc ?
2048                             ShenandoahPhaseTimings::full_gc_purge_par :
2049                             ShenandoahPhaseTimings::purge_par);
2050     ShenandoahIsAliveSelector is_alive;
2051     uint num_workers = _workers->active_workers();
2052     ShenandoahClassUnloadingTask unlink_task(is_alive.is_alive_closure(), num_workers, purged_class);
2053     _workers->run_task(&unlink_task);
2054   }
2055 
2056   {
2057     ShenandoahGCPhase phase(full_gc ?
2058                             ShenandoahPhaseTimings::full_gc_purge_cldg :
2059                             ShenandoahPhaseTimings::purge_cldg);
2060     ClassLoaderDataGraph::purge();
2061   }
2062   // Resize and verify metaspace
2063   MetaspaceGC::compute_new_size();
2064   MetaspaceUtils::verify_metrics();
2065 }
2066 
2067 // Weak roots are either pre-evacuated (final mark) or updated (final updaterefs),
2068 // so they should not have forwarded oops.
2069 // However, we do need to "null" dead oops in the roots, if can not be done
2070 // in concurrent cycles.
2071 void ShenandoahHeap::stw_process_weak_roots(bool full_gc) {
2072   ShenandoahGCPhase root_phase(full_gc ?
2073                                ShenandoahPhaseTimings::full_gc_purge :
2074                                ShenandoahPhaseTimings::purge);
2075   uint num_workers = _workers->active_workers();
2076   ShenandoahPhaseTimings::Phase timing_phase = full_gc ?
2077                                                ShenandoahPhaseTimings::full_gc_purge_par :
2078                                                ShenandoahPhaseTimings::purge_par;
2079   // Cleanup weak roots
2080   ShenandoahGCPhase phase(timing_phase);
2081   if (has_forwarded_objects()) {
2082     if (is_traversal_mode()) {
2083       ShenandoahForwardedIsAliveClosure is_alive;
2084       ShenandoahTraversalUpdateRefsClosure keep_alive;
2085       ShenandoahParallelWeakRootsCleaningTask<ShenandoahForwardedIsAliveClosure, ShenandoahTraversalUpdateRefsClosure>
2086         cleaning_task(&is_alive, &keep_alive, num_workers);
2087       _workers->run_task(&cleaning_task);
2088     } else {
2089       ShenandoahForwardedIsAliveClosure is_alive;
2090       ShenandoahUpdateRefsClosure keep_alive;
2091       ShenandoahParallelWeakRootsCleaningTask<ShenandoahForwardedIsAliveClosure, ShenandoahUpdateRefsClosure>
2092         cleaning_task(&is_alive, &keep_alive, num_workers);
2093       _workers->run_task(&cleaning_task);
2094     }
2095   } else {
2096     ShenandoahIsAliveClosure is_alive;
2097 #ifdef ASSERT
2098   ShenandoahAssertNotForwardedClosure verify_cl;
2099   ShenandoahParallelWeakRootsCleaningTask<ShenandoahIsAliveClosure, ShenandoahAssertNotForwardedClosure>
2100     cleaning_task(&is_alive, &verify_cl, num_workers);
2101 #else
2102   ShenandoahParallelWeakRootsCleaningTask<ShenandoahIsAliveClosure, DoNothingClosure>
2103     cleaning_task(&is_alive, &do_nothing_cl, num_workers);
2104 #endif
2105     _workers->run_task(&cleaning_task);
2106   }
2107 }
2108 
2109 void ShenandoahHeap::parallel_cleaning(bool full_gc) {
2110   assert(SafepointSynchronize::is_at_safepoint(), "Must be at a safepoint");
2111   stw_process_weak_roots(full_gc);
2112   if (!ShenandoahConcurrentRoots::should_do_concurrent_class_unloading()) {
2113     stw_unload_classes(full_gc);
2114   }
2115 }
2116 
2117 void ShenandoahHeap::set_has_forwarded_objects(bool cond) {
2118   if (is_traversal_mode()) {
2119     set_gc_state_mask(HAS_FORWARDED | UPDATEREFS, cond);
2120   } else {
2121     set_gc_state_mask(HAS_FORWARDED, cond);
2122   }
2123 
2124 }
2125 
2126 void ShenandoahHeap::set_process_references(bool pr) {
2127   _process_references.set_cond(pr);
2128 }
2129 
2130 void ShenandoahHeap::set_unload_classes(bool uc) {
2131   _unload_classes.set_cond(uc);
2132 }
2133 
2134 bool ShenandoahHeap::process_references() const {
2135   return _process_references.is_set();
2136 }
2137 
2138 bool ShenandoahHeap::unload_classes() const {
2139   return _unload_classes.is_set();
2140 }
2141 
2142 address ShenandoahHeap::in_cset_fast_test_addr() {
2143   ShenandoahHeap* heap = ShenandoahHeap::heap();
2144   assert(heap->collection_set() != NULL, "Sanity");
2145   return (address) heap->collection_set()->biased_map_address();
2146 }
2147 
2148 address ShenandoahHeap::cancelled_gc_addr() {
2149   return (address) ShenandoahHeap::heap()->_cancelled_gc.addr_of();
2150 }
2151 
2152 address ShenandoahHeap::gc_state_addr() {
2153   return (address) ShenandoahHeap::heap()->_gc_state.addr_of();
2154 }
2155 
2156 size_t ShenandoahHeap::bytes_allocated_since_gc_start() {
2157   return Atomic::load_acquire(&_bytes_allocated_since_gc_start);
2158 }
2159 
2160 void ShenandoahHeap::reset_bytes_allocated_since_gc_start() {
2161   Atomic::release_store_fence(&_bytes_allocated_since_gc_start, (size_t)0);
2162 }
2163 
2164 void ShenandoahHeap::set_degenerated_gc_in_progress(bool in_progress) {
2165   _degenerated_gc_in_progress.set_cond(in_progress);
2166 }
2167 
2168 void ShenandoahHeap::set_full_gc_in_progress(bool in_progress) {
2169   _full_gc_in_progress.set_cond(in_progress);
2170 }
2171 
2172 void ShenandoahHeap::set_full_gc_move_in_progress(bool in_progress) {
2173   assert (is_full_gc_in_progress(), "should be");
2174   _full_gc_move_in_progress.set_cond(in_progress);
2175 }
2176 
2177 void ShenandoahHeap::set_update_refs_in_progress(bool in_progress) {
2178   set_gc_state_mask(UPDATEREFS, in_progress);
2179 }
2180 
2181 void ShenandoahHeap::register_nmethod(nmethod* nm) {
2182   ShenandoahCodeRoots::register_nmethod(nm);
2183 }
2184 
2185 void ShenandoahHeap::unregister_nmethod(nmethod* nm) {
2186   ShenandoahCodeRoots::unregister_nmethod(nm);
2187 }
2188 
2189 void ShenandoahHeap::flush_nmethod(nmethod* nm) {
2190   ShenandoahCodeRoots::flush_nmethod(nm);
2191 }
2192 
2193 oop ShenandoahHeap::pin_object(JavaThread* thr, oop o) {
2194   heap_region_containing(o)->record_pin();
2195   return o;
2196 }
2197 
2198 void ShenandoahHeap::unpin_object(JavaThread* thr, oop o) {
2199   heap_region_containing(o)->record_unpin();
2200 }
2201 
2202 void ShenandoahHeap::sync_pinned_region_status() {
2203   ShenandoahHeapLocker locker(lock());
2204 
2205   for (size_t i = 0; i < num_regions(); i++) {
2206     ShenandoahHeapRegion *r = get_region(i);
2207     if (r->is_active()) {
2208       if (r->is_pinned()) {
2209         if (r->pin_count() == 0) {
2210           r->make_unpinned();
2211         }
2212       } else {
2213         if (r->pin_count() > 0) {
2214           r->make_pinned();
2215         }
2216       }
2217     }
2218   }
2219 
2220   assert_pinned_region_status();
2221 }
2222 
2223 #ifdef ASSERT
2224 void ShenandoahHeap::assert_pinned_region_status() {
2225   for (size_t i = 0; i < num_regions(); i++) {
2226     ShenandoahHeapRegion* r = get_region(i);
2227     assert((r->is_pinned() && r->pin_count() > 0) || (!r->is_pinned() && r->pin_count() == 0),
2228            "Region " SIZE_FORMAT " pinning status is inconsistent", i);
2229   }
2230 }
2231 #endif
2232 
2233 GCTimer* ShenandoahHeap::gc_timer() const {
2234   return _gc_timer;
2235 }
2236 
2237 void ShenandoahHeap::prepare_concurrent_roots() {
2238   assert(SafepointSynchronize::is_at_safepoint(), "Must be at a safepoint");
2239   if (ShenandoahConcurrentRoots::should_do_concurrent_roots()) {
2240     set_concurrent_root_in_progress(true);
2241   }
2242 }
2243 
2244 void ShenandoahHeap::prepare_concurrent_unloading() {
2245   assert(SafepointSynchronize::is_at_safepoint(), "Must be at a safepoint");
2246   if (ShenandoahConcurrentRoots::should_do_concurrent_class_unloading()) {
2247     _unloader.prepare();
2248   }
2249 }
2250 
2251 void ShenandoahHeap::finish_concurrent_unloading() {
2252   assert(SafepointSynchronize::is_at_safepoint(), "Must be at a safepoint");
2253   if (ShenandoahConcurrentRoots::should_do_concurrent_class_unloading()) {
2254     _unloader.finish();
2255   }
2256 }
2257 
2258 #ifdef ASSERT
2259 void ShenandoahHeap::assert_gc_workers(uint nworkers) {
2260   assert(nworkers > 0 && nworkers <= max_workers(), "Sanity");
2261 
2262   if (ShenandoahSafepoint::is_at_shenandoah_safepoint()) {
2263     if (UseDynamicNumberOfGCThreads ||
2264         (FLAG_IS_DEFAULT(ParallelGCThreads) && ForceDynamicNumberOfGCThreads)) {
2265       assert(nworkers <= ParallelGCThreads, "Cannot use more than it has");
2266     } else {
2267       // Use ParallelGCThreads inside safepoints
2268       assert(nworkers == ParallelGCThreads, "Use ParalleGCThreads within safepoints");
2269     }
2270   } else {
2271     if (UseDynamicNumberOfGCThreads ||
2272         (FLAG_IS_DEFAULT(ConcGCThreads) && ForceDynamicNumberOfGCThreads)) {
2273       assert(nworkers <= ConcGCThreads, "Cannot use more than it has");
2274     } else {
2275       // Use ConcGCThreads outside safepoints
2276       assert(nworkers == ConcGCThreads, "Use ConcGCThreads outside safepoints");
2277     }
2278   }
2279 }
2280 #endif
2281 
2282 ShenandoahVerifier* ShenandoahHeap::verifier() {
2283   guarantee(ShenandoahVerify, "Should be enabled");
2284   assert (_verifier != NULL, "sanity");
2285   return _verifier;
2286 }
2287 
2288 template<class T>
2289 class ShenandoahUpdateHeapRefsTask : public AbstractGangTask {
2290 private:
2291   T cl;
2292   ShenandoahHeap* _heap;
2293   ShenandoahRegionIterator* _regions;
2294   bool _concurrent;
2295 public:
2296   ShenandoahUpdateHeapRefsTask(ShenandoahRegionIterator* regions, bool concurrent) :
2297     AbstractGangTask("Concurrent Update References Task"),
2298     cl(T()),
2299     _heap(ShenandoahHeap::heap()),
2300     _regions(regions),
2301     _concurrent(concurrent) {
2302   }
2303 
2304   void work(uint worker_id) {
2305     if (_concurrent) {
2306       ShenandoahConcurrentWorkerSession worker_session(worker_id);
2307       ShenandoahSuspendibleThreadSetJoiner stsj(ShenandoahSuspendibleWorkers);
2308       do_work();
2309     } else {
2310       ShenandoahParallelWorkerSession worker_session(worker_id);
2311       do_work();
2312     }
2313   }
2314 
2315 private:
2316   void do_work() {
2317     ShenandoahHeapRegion* r = _regions->next();
2318     ShenandoahMarkingContext* const ctx = _heap->complete_marking_context();
2319     while (r != NULL) {
2320       HeapWord* top_at_start_ur = r->concurrent_iteration_safe_limit();
2321       assert (top_at_start_ur >= r->bottom(), "sanity");
2322       if (r->is_active() && !r->is_cset()) {
2323         _heap->marked_object_oop_iterate(r, &cl, top_at_start_ur);
2324       }
2325       if (ShenandoahPacing) {
2326         _heap->pacer()->report_updaterefs(pointer_delta(top_at_start_ur, r->bottom()));
2327       }
2328       if (_heap->check_cancelled_gc_and_yield(_concurrent)) {
2329         return;
2330       }
2331       r = _regions->next();
2332     }
2333   }
2334 };
2335 
2336 void ShenandoahHeap::update_heap_references(bool concurrent) {
2337   ShenandoahUpdateHeapRefsTask<ShenandoahUpdateHeapRefsClosure> task(&_update_refs_iterator, concurrent);
2338   workers()->run_task(&task);
2339 }
2340 
2341 void ShenandoahHeap::op_init_updaterefs() {
2342   assert(ShenandoahSafepoint::is_at_shenandoah_safepoint(), "must be at safepoint");
2343 
2344   set_evacuation_in_progress(false);
2345 
2346   {
2347     ShenandoahGCPhase phase(ShenandoahPhaseTimings::init_update_refs_retire_gclabs);
2348     retire_and_reset_gclabs();
2349   }
2350 
2351   if (ShenandoahVerify) {
2352     if (!is_degenerated_gc_in_progress()) {
2353       verifier()->verify_roots_no_forwarded_except(ShenandoahRootVerifier::ThreadRoots);
2354     }
2355     verifier()->verify_before_updaterefs();
2356   }
2357 
2358   set_update_refs_in_progress(true);
2359 
2360   {
2361     ShenandoahGCPhase phase(ShenandoahPhaseTimings::init_update_refs_prepare);
2362 
2363     make_parsable(true);
2364     for (uint i = 0; i < num_regions(); i++) {
2365       ShenandoahHeapRegion* r = get_region(i);
2366       r->set_concurrent_iteration_safe_limit(r->top());
2367     }
2368 
2369     // Reset iterator.
2370     _update_refs_iterator.reset();
2371   }
2372 
2373   if (ShenandoahPacing) {
2374     pacer()->setup_for_updaterefs();
2375   }
2376 }
2377 
2378 void ShenandoahHeap::op_final_updaterefs() {
2379   assert(ShenandoahSafepoint::is_at_shenandoah_safepoint(), "must be at safepoint");
2380 
2381   finish_concurrent_unloading();
2382 
2383   // Check if there is left-over work, and finish it
2384   if (_update_refs_iterator.has_next()) {
2385     ShenandoahGCPhase phase(ShenandoahPhaseTimings::final_update_refs_finish_work);
2386 
2387     // Finish updating references where we left off.
2388     clear_cancelled_gc();
2389     update_heap_references(false);
2390   }
2391 
2392   // Clear cancelled GC, if set. On cancellation path, the block before would handle
2393   // everything. On degenerated paths, cancelled gc would not be set anyway.
2394   if (cancelled_gc()) {
2395     clear_cancelled_gc();
2396   }
2397   assert(!cancelled_gc(), "Should have been done right before");
2398 
2399   if (ShenandoahVerify && !is_degenerated_gc_in_progress()) {
2400     verifier()->verify_roots_in_to_space_except(ShenandoahRootVerifier::ThreadRoots);
2401   }
2402 
2403   if (is_degenerated_gc_in_progress()) {
2404     concurrent_mark()->update_roots(ShenandoahPhaseTimings::degen_gc_update_roots);
2405   } else {
2406     concurrent_mark()->update_thread_roots(ShenandoahPhaseTimings::final_update_refs_roots);
2407   }
2408 
2409   // Has to be done before cset is clear
2410   if (ShenandoahVerify) {
2411     verifier()->verify_roots_in_to_space();
2412   }
2413 
2414   // Drop unnecessary "pinned" state from regions that does not have CP marks
2415   // anymore, as this would allow trashing them below.
2416   {
2417     ShenandoahGCPhase phase(ShenandoahPhaseTimings::final_update_refs_sync_pinned);
2418     sync_pinned_region_status();
2419   }
2420 
2421   {
2422     ShenandoahGCPhase phase(ShenandoahPhaseTimings::final_update_refs_trash_cset);
2423     trash_cset_regions();
2424   }
2425 
2426   set_has_forwarded_objects(false);
2427   set_update_refs_in_progress(false);
2428 
2429   if (ShenandoahVerify) {
2430     verifier()->verify_after_updaterefs();
2431   }
2432 
2433   if (VerifyAfterGC) {
2434     Universe::verify();
2435   }
2436 
2437   {
2438     ShenandoahHeapLocker locker(lock());
2439     _free_set->rebuild();
2440   }
2441 }
2442 
2443 #ifdef ASSERT
2444 void ShenandoahHeap::assert_heaplock_owned_by_current_thread() {
2445   _lock.assert_owned_by_current_thread();
2446 }
2447 
2448 void ShenandoahHeap::assert_heaplock_not_owned_by_current_thread() {
2449   _lock.assert_not_owned_by_current_thread();
2450 }
2451 
2452 void ShenandoahHeap::assert_heaplock_or_safepoint() {
2453   _lock.assert_owned_by_current_thread_or_safepoint();
2454 }
2455 #endif
2456 
2457 void ShenandoahHeap::print_extended_on(outputStream *st) const {
2458   print_on(st);
2459   print_heap_regions_on(st);
2460 }
2461 
2462 bool ShenandoahHeap::is_bitmap_slice_committed(ShenandoahHeapRegion* r, bool skip_self) {
2463   size_t slice = r->region_number() / _bitmap_regions_per_slice;
2464 
2465   size_t regions_from = _bitmap_regions_per_slice * slice;
2466   size_t regions_to   = MIN2(num_regions(), _bitmap_regions_per_slice * (slice + 1));
2467   for (size_t g = regions_from; g < regions_to; g++) {
2468     assert (g / _bitmap_regions_per_slice == slice, "same slice");
2469     if (skip_self && g == r->region_number()) continue;
2470     if (get_region(g)->is_committed()) {
2471       return true;
2472     }
2473   }
2474   return false;
2475 }
2476 
2477 bool ShenandoahHeap::commit_bitmap_slice(ShenandoahHeapRegion* r) {
2478   assert_heaplock_owned_by_current_thread();
2479 
2480   // Bitmaps in special regions do not need commits
2481   if (_bitmap_region_special) {
2482     return true;
2483   }
2484 
2485   if (is_bitmap_slice_committed(r, true)) {
2486     // Some other region from the group is already committed, meaning the bitmap
2487     // slice is already committed, we exit right away.
2488     return true;
2489   }
2490 
2491   // Commit the bitmap slice:
2492   size_t slice = r->region_number() / _bitmap_regions_per_slice;
2493   size_t off = _bitmap_bytes_per_slice * slice;
2494   size_t len = _bitmap_bytes_per_slice;
2495   if (!os::commit_memory((char*)_bitmap_region.start() + off, len, false)) {
2496     return false;
2497   }
2498   return true;
2499 }
2500 
2501 bool ShenandoahHeap::uncommit_bitmap_slice(ShenandoahHeapRegion *r) {
2502   assert_heaplock_owned_by_current_thread();
2503 
2504   // Bitmaps in special regions do not need uncommits
2505   if (_bitmap_region_special) {
2506     return true;
2507   }
2508 
2509   if (is_bitmap_slice_committed(r, true)) {
2510     // Some other region from the group is still committed, meaning the bitmap
2511     // slice is should stay committed, exit right away.
2512     return true;
2513   }
2514 
2515   // Uncommit the bitmap slice:
2516   size_t slice = r->region_number() / _bitmap_regions_per_slice;
2517   size_t off = _bitmap_bytes_per_slice * slice;
2518   size_t len = _bitmap_bytes_per_slice;
2519   if (!os::uncommit_memory((char*)_bitmap_region.start() + off, len)) {
2520     return false;
2521   }
2522   return true;
2523 }
2524 
2525 void ShenandoahHeap::safepoint_synchronize_begin() {
2526   if (ShenandoahSuspendibleWorkers || UseStringDeduplication) {
2527     SuspendibleThreadSet::synchronize();
2528   }
2529 }
2530 
2531 void ShenandoahHeap::safepoint_synchronize_end() {
2532   if (ShenandoahSuspendibleWorkers || UseStringDeduplication) {
2533     SuspendibleThreadSet::desynchronize();
2534   }
2535 }
2536 
2537 void ShenandoahHeap::vmop_entry_init_mark() {
2538   TraceCollectorStats tcs(monitoring_support()->stw_collection_counters());
2539   ShenandoahGCPhase total(ShenandoahPhaseTimings::total_pause_gross);
2540   ShenandoahGCPhase phase(ShenandoahPhaseTimings::init_mark_gross);
2541 
2542   try_inject_alloc_failure();
2543   VM_ShenandoahInitMark op;
2544   VMThread::execute(&op); // jump to entry_init_mark() under safepoint
2545 }
2546 
2547 void ShenandoahHeap::vmop_entry_final_mark() {
2548   TraceCollectorStats tcs(monitoring_support()->stw_collection_counters());
2549   ShenandoahGCPhase total(ShenandoahPhaseTimings::total_pause_gross);
2550   ShenandoahGCPhase phase(ShenandoahPhaseTimings::final_mark_gross);
2551 
2552   try_inject_alloc_failure();
2553   VM_ShenandoahFinalMarkStartEvac op;
2554   VMThread::execute(&op); // jump to entry_final_mark under safepoint
2555 }
2556 
2557 void ShenandoahHeap::vmop_entry_final_evac() {
2558   TraceCollectorStats tcs(monitoring_support()->stw_collection_counters());
2559   ShenandoahGCPhase total(ShenandoahPhaseTimings::total_pause_gross);
2560   ShenandoahGCPhase phase(ShenandoahPhaseTimings::final_evac_gross);
2561 
2562   VM_ShenandoahFinalEvac op;
2563   VMThread::execute(&op); // jump to entry_final_evac under safepoint
2564 }
2565 
2566 void ShenandoahHeap::vmop_entry_init_updaterefs() {
2567   TraceCollectorStats tcs(monitoring_support()->stw_collection_counters());
2568   ShenandoahGCPhase total(ShenandoahPhaseTimings::total_pause_gross);
2569   ShenandoahGCPhase phase(ShenandoahPhaseTimings::init_update_refs_gross);
2570 
2571   try_inject_alloc_failure();
2572   VM_ShenandoahInitUpdateRefs op;
2573   VMThread::execute(&op);
2574 }
2575 
2576 void ShenandoahHeap::vmop_entry_final_updaterefs() {
2577   TraceCollectorStats tcs(monitoring_support()->stw_collection_counters());
2578   ShenandoahGCPhase total(ShenandoahPhaseTimings::total_pause_gross);
2579   ShenandoahGCPhase phase(ShenandoahPhaseTimings::final_update_refs_gross);
2580 
2581   try_inject_alloc_failure();
2582   VM_ShenandoahFinalUpdateRefs op;
2583   VMThread::execute(&op);
2584 }
2585 
2586 void ShenandoahHeap::vmop_entry_init_traversal() {
2587   TraceCollectorStats tcs(monitoring_support()->stw_collection_counters());
2588   ShenandoahGCPhase total(ShenandoahPhaseTimings::total_pause_gross);
2589   ShenandoahGCPhase phase(ShenandoahPhaseTimings::init_traversal_gc_gross);
2590 
2591   try_inject_alloc_failure();
2592   VM_ShenandoahInitTraversalGC op;
2593   VMThread::execute(&op);
2594 }
2595 
2596 void ShenandoahHeap::vmop_entry_final_traversal() {
2597   TraceCollectorStats tcs(monitoring_support()->stw_collection_counters());
2598   ShenandoahGCPhase total(ShenandoahPhaseTimings::total_pause_gross);
2599   ShenandoahGCPhase phase(ShenandoahPhaseTimings::final_traversal_gc_gross);
2600 
2601   try_inject_alloc_failure();
2602   VM_ShenandoahFinalTraversalGC op;
2603   VMThread::execute(&op);
2604 }
2605 
2606 void ShenandoahHeap::vmop_entry_full(GCCause::Cause cause) {
2607   TraceCollectorStats tcs(monitoring_support()->full_stw_collection_counters());
2608   ShenandoahGCPhase total(ShenandoahPhaseTimings::total_pause_gross);
2609   ShenandoahGCPhase phase(ShenandoahPhaseTimings::full_gc_gross);
2610 
2611   try_inject_alloc_failure();
2612   VM_ShenandoahFullGC op(cause);
2613   VMThread::execute(&op);
2614 }
2615 
2616 void ShenandoahHeap::vmop_degenerated(ShenandoahDegenPoint point) {
2617   TraceCollectorStats tcs(monitoring_support()->full_stw_collection_counters());
2618   ShenandoahGCPhase total(ShenandoahPhaseTimings::total_pause_gross);
2619   ShenandoahGCPhase phase(ShenandoahPhaseTimings::degen_gc_gross);
2620 
2621   VM_ShenandoahDegeneratedGC degenerated_gc((int)point);
2622   VMThread::execute(&degenerated_gc);
2623 }
2624 
2625 void ShenandoahHeap::entry_init_mark() {
2626   ShenandoahGCPhase total_phase(ShenandoahPhaseTimings::total_pause);
2627   ShenandoahGCPhase phase(ShenandoahPhaseTimings::init_mark);
2628   const char* msg = init_mark_event_message();
2629   GCTraceTime(Info, gc) time(msg, gc_timer());
2630   EventMark em("%s", msg);
2631 
2632   ShenandoahWorkerScope scope(workers(),
2633                               ShenandoahWorkerPolicy::calc_workers_for_init_marking(),
2634                               "init marking");
2635 
2636   op_init_mark();
2637 }
2638 
2639 void ShenandoahHeap::entry_final_mark() {
2640   ShenandoahGCPhase total_phase(ShenandoahPhaseTimings::total_pause);
2641   ShenandoahGCPhase phase(ShenandoahPhaseTimings::final_mark);
2642   const char* msg = final_mark_event_message();
2643   GCTraceTime(Info, gc) time(msg, gc_timer());
2644   EventMark em("%s", msg);
2645 
2646   ShenandoahWorkerScope scope(workers(),
2647                               ShenandoahWorkerPolicy::calc_workers_for_final_marking(),
2648                               "final marking");
2649 
2650   op_final_mark();
2651 }
2652 
2653 void ShenandoahHeap::entry_final_evac() {
2654   ShenandoahGCPhase total_phase(ShenandoahPhaseTimings::total_pause);
2655   ShenandoahGCPhase phase(ShenandoahPhaseTimings::final_evac);
2656   static const char* msg = "Pause Final Evac";
2657   GCTraceTime(Info, gc) time(msg, gc_timer());
2658   EventMark em("%s", msg);
2659 
2660   op_final_evac();
2661 }
2662 
2663 void ShenandoahHeap::entry_init_updaterefs() {
2664   ShenandoahGCPhase total_phase(ShenandoahPhaseTimings::total_pause);
2665   ShenandoahGCPhase phase(ShenandoahPhaseTimings::init_update_refs);
2666 
2667   static const char* msg = "Pause Init Update Refs";
2668   GCTraceTime(Info, gc) time(msg, gc_timer());
2669   EventMark em("%s", msg);
2670 
2671   // No workers used in this phase, no setup required
2672 
2673   op_init_updaterefs();
2674 }
2675 
2676 void ShenandoahHeap::entry_final_updaterefs() {
2677   ShenandoahGCPhase total_phase(ShenandoahPhaseTimings::total_pause);
2678   ShenandoahGCPhase phase(ShenandoahPhaseTimings::final_update_refs);
2679 
2680   static const char* msg = "Pause Final Update Refs";
2681   GCTraceTime(Info, gc) time(msg, gc_timer());
2682   EventMark em("%s", msg);
2683 
2684   ShenandoahWorkerScope scope(workers(),
2685                               ShenandoahWorkerPolicy::calc_workers_for_final_update_ref(),
2686                               "final reference update");
2687 
2688   op_final_updaterefs();
2689 }
2690 
2691 void ShenandoahHeap::entry_init_traversal() {
2692   ShenandoahGCPhase total_phase(ShenandoahPhaseTimings::total_pause);
2693   ShenandoahGCPhase phase(ShenandoahPhaseTimings::init_traversal_gc);
2694 
2695   static const char* msg = "Pause Init Traversal";
2696   GCTraceTime(Info, gc) time(msg, gc_timer());
2697   EventMark em("%s", msg);
2698 
2699   ShenandoahWorkerScope scope(workers(),
2700                               ShenandoahWorkerPolicy::calc_workers_for_stw_traversal(),
2701                               "init traversal");
2702 
2703   op_init_traversal();
2704 }
2705 
2706 void ShenandoahHeap::entry_final_traversal() {
2707   ShenandoahGCPhase total_phase(ShenandoahPhaseTimings::total_pause);
2708   ShenandoahGCPhase phase(ShenandoahPhaseTimings::final_traversal_gc);
2709 
2710   static const char* msg = "Pause Final Traversal";
2711   GCTraceTime(Info, gc) time(msg, gc_timer());
2712   EventMark em("%s", msg);
2713 
2714   ShenandoahWorkerScope scope(workers(),
2715                               ShenandoahWorkerPolicy::calc_workers_for_stw_traversal(),
2716                               "final traversal");
2717 
2718   op_final_traversal();
2719 }
2720 
2721 void ShenandoahHeap::entry_full(GCCause::Cause cause) {
2722   ShenandoahGCPhase total_phase(ShenandoahPhaseTimings::total_pause);
2723   ShenandoahGCPhase phase(ShenandoahPhaseTimings::full_gc);
2724 
2725   static const char* msg = "Pause Full";
2726   GCTraceTime(Info, gc) time(msg, gc_timer(), cause, true);
2727   EventMark em("%s", msg);
2728 
2729   ShenandoahWorkerScope scope(workers(),
2730                               ShenandoahWorkerPolicy::calc_workers_for_fullgc(),
2731                               "full gc");
2732 
2733   op_full(cause);
2734 }
2735 
2736 void ShenandoahHeap::entry_degenerated(int point) {
2737   ShenandoahGCPhase total_phase(ShenandoahPhaseTimings::total_pause);
2738   ShenandoahGCPhase phase(ShenandoahPhaseTimings::degen_gc);
2739 
2740   ShenandoahDegenPoint dpoint = (ShenandoahDegenPoint)point;
2741   const char* msg = degen_event_message(dpoint);
2742   GCTraceTime(Info, gc) time(msg, NULL, GCCause::_no_gc, true);
2743   EventMark em("%s", msg);
2744 
2745   ShenandoahWorkerScope scope(workers(),
2746                               ShenandoahWorkerPolicy::calc_workers_for_stw_degenerated(),
2747                               "stw degenerated gc");
2748 
2749   set_degenerated_gc_in_progress(true);
2750   op_degenerated(dpoint);
2751   set_degenerated_gc_in_progress(false);
2752 }
2753 
2754 void ShenandoahHeap::entry_mark() {
2755   TraceCollectorStats tcs(monitoring_support()->concurrent_collection_counters());
2756 
2757   const char* msg = conc_mark_event_message();
2758   GCTraceTime(Info, gc) time(msg, NULL, GCCause::_no_gc, true);
2759   EventMark em("%s", msg);
2760 
2761   ShenandoahWorkerScope scope(workers(),
2762                               ShenandoahWorkerPolicy::calc_workers_for_conc_marking(),
2763                               "concurrent marking");
2764 
2765   try_inject_alloc_failure();
2766   op_mark();
2767 }
2768 
2769 void ShenandoahHeap::entry_evac() {
2770   ShenandoahGCPhase conc_evac_phase(ShenandoahPhaseTimings::conc_evac);
2771   TraceCollectorStats tcs(monitoring_support()->concurrent_collection_counters());
2772 
2773   static const char* msg = "Concurrent evacuation";
2774   GCTraceTime(Info, gc) time(msg, NULL, GCCause::_no_gc, true);
2775   EventMark em("%s", msg);
2776 
2777   ShenandoahWorkerScope scope(workers(),
2778                               ShenandoahWorkerPolicy::calc_workers_for_conc_evac(),
2779                               "concurrent evacuation");
2780 
2781   try_inject_alloc_failure();
2782   op_conc_evac();
2783 }
2784 
2785 void ShenandoahHeap::entry_updaterefs() {
2786   ShenandoahGCPhase phase(ShenandoahPhaseTimings::conc_update_refs);
2787 
2788   static const char* msg = "Concurrent update references";
2789   GCTraceTime(Info, gc) time(msg, NULL, GCCause::_no_gc, true);
2790   EventMark em("%s", msg);
2791 
2792   ShenandoahWorkerScope scope(workers(),
2793                               ShenandoahWorkerPolicy::calc_workers_for_conc_update_ref(),
2794                               "concurrent reference update");
2795 
2796   try_inject_alloc_failure();
2797   op_updaterefs();
2798 }
2799 
2800 void ShenandoahHeap::entry_roots() {
2801   ShenandoahGCPhase phase(ShenandoahPhaseTimings::conc_roots);
2802 
2803   static const char* msg = "Concurrent roots processing";
2804   GCTraceTime(Info, gc) time(msg, NULL, GCCause::_no_gc, true);
2805   EventMark em("%s", msg);
2806 
2807   ShenandoahWorkerScope scope(workers(),
2808                               ShenandoahWorkerPolicy::calc_workers_for_conc_root_processing(),
2809                               "concurrent root processing");
2810 
2811   try_inject_alloc_failure();
2812   op_roots();
2813 }
2814 
2815 void ShenandoahHeap::entry_cleanup() {
2816   ShenandoahGCPhase phase(ShenandoahPhaseTimings::conc_cleanup);
2817 
2818   static const char* msg = "Concurrent cleanup";
2819   GCTraceTime(Info, gc) time(msg, NULL, GCCause::_no_gc, true);
2820   EventMark em("%s", msg);
2821 
2822   // This phase does not use workers, no need for setup
2823 
2824   try_inject_alloc_failure();
2825   op_cleanup();
2826 }
2827 
2828 void ShenandoahHeap::entry_reset() {
2829   ShenandoahGCPhase phase(ShenandoahPhaseTimings::conc_reset);
2830 
2831   static const char* msg = "Concurrent reset";
2832   GCTraceTime(Info, gc) time(msg, NULL, GCCause::_no_gc, true);
2833   EventMark em("%s", msg);
2834 
2835   ShenandoahWorkerScope scope(workers(),
2836                               ShenandoahWorkerPolicy::calc_workers_for_conc_reset(),
2837                               "concurrent reset");
2838 
2839   try_inject_alloc_failure();
2840   op_reset();
2841 }
2842 
2843 void ShenandoahHeap::entry_preclean() {
2844   if (ShenandoahPreclean && process_references()) {
2845     static const char* msg = "Concurrent precleaning";
2846     GCTraceTime(Info, gc) time(msg, NULL, GCCause::_no_gc, true);
2847     EventMark em("%s", msg);
2848 
2849     ShenandoahGCPhase conc_preclean(ShenandoahPhaseTimings::conc_preclean);
2850 
2851     ShenandoahWorkerScope scope(workers(),
2852                                 ShenandoahWorkerPolicy::calc_workers_for_conc_preclean(),
2853                                 "concurrent preclean",
2854                                 /* check_workers = */ false);
2855 
2856     try_inject_alloc_failure();
2857     op_preclean();
2858   }
2859 }
2860 
2861 void ShenandoahHeap::entry_traversal() {
2862   static const char* msg = "Concurrent traversal";
2863   GCTraceTime(Info, gc) time(msg, NULL, GCCause::_no_gc, true);
2864   EventMark em("%s", msg);
2865 
2866   TraceCollectorStats tcs(monitoring_support()->concurrent_collection_counters());
2867 
2868   ShenandoahWorkerScope scope(workers(),
2869                               ShenandoahWorkerPolicy::calc_workers_for_conc_traversal(),
2870                               "concurrent traversal");
2871 
2872   try_inject_alloc_failure();
2873   op_traversal();
2874 }
2875 
2876 void ShenandoahHeap::entry_uncommit(double shrink_before) {
2877   static const char *msg = "Concurrent uncommit";
2878   GCTraceTime(Info, gc) time(msg, NULL, GCCause::_no_gc, true);
2879   EventMark em("%s", msg);
2880 
2881   ShenandoahGCPhase phase(ShenandoahPhaseTimings::conc_uncommit);
2882 
2883   op_uncommit(shrink_before);
2884 }
2885 
2886 void ShenandoahHeap::try_inject_alloc_failure() {
2887   if (ShenandoahAllocFailureALot && !cancelled_gc() && ((os::random() % 1000) > 950)) {
2888     _inject_alloc_failure.set();
2889     os::naked_short_sleep(1);
2890     if (cancelled_gc()) {
2891       log_info(gc)("Allocation failure was successfully injected");
2892     }
2893   }
2894 }
2895 
2896 bool ShenandoahHeap::should_inject_alloc_failure() {
2897   return _inject_alloc_failure.is_set() && _inject_alloc_failure.try_unset();
2898 }
2899 
2900 void ShenandoahHeap::initialize_serviceability() {
2901   _memory_pool = new ShenandoahMemoryPool(this);
2902   _cycle_memory_manager.add_pool(_memory_pool);
2903   _stw_memory_manager.add_pool(_memory_pool);
2904 }
2905 
2906 GrowableArray<GCMemoryManager*> ShenandoahHeap::memory_managers() {
2907   GrowableArray<GCMemoryManager*> memory_managers(2);
2908   memory_managers.append(&_cycle_memory_manager);
2909   memory_managers.append(&_stw_memory_manager);
2910   return memory_managers;
2911 }
2912 
2913 GrowableArray<MemoryPool*> ShenandoahHeap::memory_pools() {
2914   GrowableArray<MemoryPool*> memory_pools(1);
2915   memory_pools.append(_memory_pool);
2916   return memory_pools;
2917 }
2918 
2919 MemoryUsage ShenandoahHeap::memory_usage() {
2920   return _memory_pool->get_memory_usage();
2921 }
2922 
2923 void ShenandoahHeap::enter_evacuation() {
2924   _oom_evac_handler.enter_evacuation();
2925 }
2926 
2927 void ShenandoahHeap::leave_evacuation() {
2928   _oom_evac_handler.leave_evacuation();
2929 }
2930 
2931 ShenandoahRegionIterator::ShenandoahRegionIterator() :
2932   _heap(ShenandoahHeap::heap()),
2933   _index(0) {}
2934 
2935 ShenandoahRegionIterator::ShenandoahRegionIterator(ShenandoahHeap* heap) :
2936   _heap(heap),
2937   _index(0) {}
2938 
2939 void ShenandoahRegionIterator::reset() {
2940   _index = 0;
2941 }
2942 
2943 bool ShenandoahRegionIterator::has_next() const {
2944   return _index < _heap->num_regions();
2945 }
2946 
2947 char ShenandoahHeap::gc_state() const {
2948   return _gc_state.raw_value();
2949 }
2950 
2951 void ShenandoahHeap::deduplicate_string(oop str) {
2952   assert(java_lang_String::is_instance(str), "invariant");
2953 
2954   if (ShenandoahStringDedup::is_enabled()) {
2955     ShenandoahStringDedup::deduplicate(str);
2956   }
2957 }
2958 
2959 const char* ShenandoahHeap::init_mark_event_message() const {
2960   bool update_refs = has_forwarded_objects();
2961   bool proc_refs = process_references();
2962   bool unload_cls = unload_classes();
2963 
2964   if (update_refs && proc_refs && unload_cls) {
2965     return "Pause Init Mark (update refs) (process weakrefs) (unload classes)";
2966   } else if (update_refs && proc_refs) {
2967     return "Pause Init Mark (update refs) (process weakrefs)";
2968   } else if (update_refs && unload_cls) {
2969     return "Pause Init Mark (update refs) (unload classes)";
2970   } else if (proc_refs && unload_cls) {
2971     return "Pause Init Mark (process weakrefs) (unload classes)";
2972   } else if (update_refs) {
2973     return "Pause Init Mark (update refs)";
2974   } else if (proc_refs) {
2975     return "Pause Init Mark (process weakrefs)";
2976   } else if (unload_cls) {
2977     return "Pause Init Mark (unload classes)";
2978   } else {
2979     return "Pause Init Mark";
2980   }
2981 }
2982 
2983 const char* ShenandoahHeap::final_mark_event_message() const {
2984   bool update_refs = has_forwarded_objects();
2985   bool proc_refs = process_references();
2986   bool unload_cls = unload_classes();
2987 
2988   if (update_refs && proc_refs && unload_cls) {
2989     return "Pause Final Mark (update refs) (process weakrefs) (unload classes)";
2990   } else if (update_refs && proc_refs) {
2991     return "Pause Final Mark (update refs) (process weakrefs)";
2992   } else if (update_refs && unload_cls) {
2993     return "Pause Final Mark (update refs) (unload classes)";
2994   } else if (proc_refs && unload_cls) {
2995     return "Pause Final Mark (process weakrefs) (unload classes)";
2996   } else if (update_refs) {
2997     return "Pause Final Mark (update refs)";
2998   } else if (proc_refs) {
2999     return "Pause Final Mark (process weakrefs)";
3000   } else if (unload_cls) {
3001     return "Pause Final Mark (unload classes)";
3002   } else {
3003     return "Pause Final Mark";
3004   }
3005 }
3006 
3007 const char* ShenandoahHeap::conc_mark_event_message() const {
3008   bool update_refs = has_forwarded_objects();
3009   bool proc_refs = process_references();
3010   bool unload_cls = unload_classes();
3011 
3012   if (update_refs && proc_refs && unload_cls) {
3013     return "Concurrent marking (update refs) (process weakrefs) (unload classes)";
3014   } else if (update_refs && proc_refs) {
3015     return "Concurrent marking (update refs) (process weakrefs)";
3016   } else if (update_refs && unload_cls) {
3017     return "Concurrent marking (update refs) (unload classes)";
3018   } else if (proc_refs && unload_cls) {
3019     return "Concurrent marking (process weakrefs) (unload classes)";
3020   } else if (update_refs) {
3021     return "Concurrent marking (update refs)";
3022   } else if (proc_refs) {
3023     return "Concurrent marking (process weakrefs)";
3024   } else if (unload_cls) {
3025     return "Concurrent marking (unload classes)";
3026   } else {
3027     return "Concurrent marking";
3028   }
3029 }
3030 
3031 const char* ShenandoahHeap::degen_event_message(ShenandoahDegenPoint point) const {
3032   switch (point) {
3033     case _degenerated_unset:
3034       return "Pause Degenerated GC (<UNSET>)";
3035     case _degenerated_traversal:
3036       return "Pause Degenerated GC (Traversal)";
3037     case _degenerated_outside_cycle:
3038       return "Pause Degenerated GC (Outside of Cycle)";
3039     case _degenerated_mark:
3040       return "Pause Degenerated GC (Mark)";
3041     case _degenerated_evac:
3042       return "Pause Degenerated GC (Evacuation)";
3043     case _degenerated_updaterefs:
3044       return "Pause Degenerated GC (Update Refs)";
3045     default:
3046       ShouldNotReachHere();
3047       return "ERROR";
3048   }
3049 }
3050 
3051 jushort* ShenandoahHeap::get_liveness_cache(uint worker_id) {
3052 #ifdef ASSERT
3053   assert(_liveness_cache != NULL, "sanity");
3054   assert(worker_id < _max_workers, "sanity");
3055   for (uint i = 0; i < num_regions(); i++) {
3056     assert(_liveness_cache[worker_id][i] == 0, "liveness cache should be empty");
3057   }
3058 #endif
3059   return _liveness_cache[worker_id];
3060 }
3061 
3062 void ShenandoahHeap::flush_liveness_cache(uint worker_id) {
3063   assert(worker_id < _max_workers, "sanity");
3064   assert(_liveness_cache != NULL, "sanity");
3065   jushort* ld = _liveness_cache[worker_id];
3066   for (uint i = 0; i < num_regions(); i++) {
3067     ShenandoahHeapRegion* r = get_region(i);
3068     jushort live = ld[i];
3069     if (live > 0) {
3070       r->increase_live_data_gc_words(live);
3071       ld[i] = 0;
3072     }
3073   }
3074 }