src/share/vm/services/memSnapshot.cpp

Wed, 27 Apr 2016 01:25:04 +0800

author
aoqi
date
Wed, 27 Apr 2016 01:25:04 +0800
changeset 0
f90c822e73f8
child 6876
710a3c8b516e
permissions
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http://hg.openjdk.java.net/jdk8u/jdk8u/hotspot/
changeset: 6782:28b50d07f6f8
tag: jdk8u25-b17

     1 /*
     2  * Copyright (c) 2012, 2014, Oracle and/or its affiliates. All rights reserved.
     3  * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
     4  *
     5  * This code is free software; you can redistribute it and/or modify it
     6  * under the terms of the GNU General Public License version 2 only, as
     7  * published by the Free Software Foundation.
     8  *
     9  * This code is distributed in the hope that it will be useful, but WITHOUT
    10  * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
    11  * FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License
    12  * version 2 for more details (a copy is included in the LICENSE file that
    13  * accompanied this code).
    14  *
    15  * You should have received a copy of the GNU General Public License version
    16  * 2 along with this work; if not, write to the Free Software Foundation,
    17  * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
    18  *
    19  * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
    20  * or visit www.oracle.com if you need additional information or have any
    21  * questions.
    22  *
    23  */
    25 #include "precompiled.hpp"
    26 #include "runtime/mutexLocker.hpp"
    27 #include "utilities/decoder.hpp"
    28 #include "services/memBaseline.hpp"
    29 #include "services/memPtr.hpp"
    30 #include "services/memPtrArray.hpp"
    31 #include "services/memSnapshot.hpp"
    32 #include "services/memTracker.hpp"
    34 PRAGMA_FORMAT_MUTE_WARNINGS_FOR_GCC
    36 #ifdef ASSERT
    38 void decode_pointer_record(MemPointerRecord* rec) {
    39   tty->print("Pointer: [" PTR_FORMAT " - " PTR_FORMAT  "] size = %d bytes", rec->addr(),
    40     rec->addr() + rec->size(), (int)rec->size());
    41   tty->print(" type = %s", MemBaseline::type2name(FLAGS_TO_MEMORY_TYPE(rec->flags())));
    42   if (rec->is_vm_pointer()) {
    43     if (rec->is_allocation_record()) {
    44       tty->print_cr(" (reserve)");
    45     } else if (rec->is_commit_record()) {
    46       tty->print_cr(" (commit)");
    47     } else if (rec->is_uncommit_record()) {
    48       tty->print_cr(" (uncommit)");
    49     } else if (rec->is_deallocation_record()) {
    50       tty->print_cr(" (release)");
    51     } else {
    52       tty->print_cr(" (tag)");
    53     }
    54   } else {
    55     if (rec->is_arena_memory_record()) {
    56       tty->print_cr(" (arena size)");
    57     } else if (rec->is_allocation_record()) {
    58       tty->print_cr(" (malloc)");
    59     } else {
    60       tty->print_cr(" (free)");
    61     }
    62   }
    63   if (MemTracker::track_callsite()) {
    64     char buf[1024];
    65     address pc = ((MemPointerRecordEx*)rec)->pc();
    66     if (pc != NULL && os::dll_address_to_function_name(pc, buf, sizeof(buf), NULL)) {
    67       tty->print_cr("\tfrom %s", buf);
    68     } else {
    69       tty->print_cr("\tcould not decode pc = " PTR_FORMAT "", pc);
    70     }
    71   }
    72 }
    74 void decode_vm_region_record(VMMemRegion* rec) {
    75   tty->print("VM Region [" PTR_FORMAT " - " PTR_FORMAT "]", rec->addr(),
    76     rec->addr() + rec->size());
    77   tty->print(" type = %s", MemBaseline::type2name(FLAGS_TO_MEMORY_TYPE(rec->flags())));
    78   if (rec->is_allocation_record()) {
    79     tty->print_cr(" (reserved)");
    80   } else if (rec->is_commit_record()) {
    81     tty->print_cr(" (committed)");
    82   } else {
    83     ShouldNotReachHere();
    84   }
    85   if (MemTracker::track_callsite()) {
    86     char buf[1024];
    87     address pc = ((VMMemRegionEx*)rec)->pc();
    88     if (pc != NULL && os::dll_address_to_function_name(pc, buf, sizeof(buf), NULL)) {
    89       tty->print_cr("\tfrom %s", buf);
    90     } else {
    91       tty->print_cr("\tcould not decode pc = " PTR_FORMAT "", pc);
    92     }
    94   }
    95 }
    97 #endif
   100 bool VMMemPointerIterator::insert_record(MemPointerRecord* rec) {
   101   VMMemRegionEx new_rec;
   102   assert(rec->is_allocation_record() || rec->is_commit_record(),
   103     "Sanity check");
   104   if (MemTracker::track_callsite()) {
   105     new_rec.init((MemPointerRecordEx*)rec);
   106   } else {
   107     new_rec.init(rec);
   108   }
   109   return insert(&new_rec);
   110 }
   112 bool VMMemPointerIterator::insert_record_after(MemPointerRecord* rec) {
   113   VMMemRegionEx new_rec;
   114   assert(rec->is_allocation_record() || rec->is_commit_record(),
   115     "Sanity check");
   116   if (MemTracker::track_callsite()) {
   117     new_rec.init((MemPointerRecordEx*)rec);
   118   } else {
   119     new_rec.init(rec);
   120   }
   121   return insert_after(&new_rec);
   122 }
   124 // we don't consolidate reserved regions, since they may be categorized
   125 // in different types.
   126 bool VMMemPointerIterator::add_reserved_region(MemPointerRecord* rec) {
   127   assert(rec->is_allocation_record(), "Sanity check");
   128   VMMemRegion* reserved_region = (VMMemRegion*)current();
   130   // we don't have anything yet
   131   if (reserved_region == NULL) {
   132     return insert_record(rec);
   133   }
   135   assert(reserved_region->is_reserved_region(), "Sanity check");
   136   // duplicated records
   137   if (reserved_region->is_same_region(rec)) {
   138     return true;
   139   }
   140   // Overlapping stack regions indicate that a JNI thread failed to
   141   // detach from the VM before exiting. This leaks the JavaThread object.
   142   if (CheckJNICalls)  {
   143       guarantee(FLAGS_TO_MEMORY_TYPE(reserved_region->flags()) != mtThreadStack ||
   144          !reserved_region->overlaps_region(rec),
   145          "Attached JNI thread exited without being detached");
   146   }
   147   // otherwise, we should not have overlapping reserved regions
   148   assert(FLAGS_TO_MEMORY_TYPE(reserved_region->flags()) == mtThreadStack ||
   149     reserved_region->base() > rec->addr(), "Just check: locate()");
   150   assert(FLAGS_TO_MEMORY_TYPE(reserved_region->flags()) == mtThreadStack ||
   151     !reserved_region->overlaps_region(rec), "overlapping reserved regions");
   153   return insert_record(rec);
   154 }
   156 // we do consolidate committed regions
   157 bool VMMemPointerIterator::add_committed_region(MemPointerRecord* rec) {
   158   assert(rec->is_commit_record(), "Sanity check");
   159   VMMemRegion* reserved_rgn = (VMMemRegion*)current();
   160   assert(reserved_rgn->is_reserved_region() && reserved_rgn->contains_region(rec),
   161     "Sanity check");
   163   // thread's native stack is always marked as "committed", ignore
   164   // the "commit" operation for creating stack guard pages
   165   if (FLAGS_TO_MEMORY_TYPE(reserved_rgn->flags()) == mtThreadStack &&
   166       FLAGS_TO_MEMORY_TYPE(rec->flags()) != mtThreadStack) {
   167     return true;
   168   }
   170   // if the reserved region has any committed regions
   171   VMMemRegion* committed_rgn  = (VMMemRegion*)next();
   172   while (committed_rgn != NULL && committed_rgn->is_committed_region()) {
   173     // duplicated commit records
   174     if(committed_rgn->contains_region(rec)) {
   175       return true;
   176     } else if (committed_rgn->overlaps_region(rec)) {
   177       // overlaps front part
   178       if (rec->addr() < committed_rgn->addr()) {
   179         committed_rgn->expand_region(rec->addr(),
   180           committed_rgn->addr() - rec->addr());
   181       } else {
   182         // overlaps tail part
   183         address committed_rgn_end = committed_rgn->addr() +
   184               committed_rgn->size();
   185         assert(committed_rgn_end < rec->addr() + rec->size(),
   186              "overlap tail part");
   187         committed_rgn->expand_region(committed_rgn_end,
   188           (rec->addr() + rec->size()) - committed_rgn_end);
   189       }
   190     } else if (committed_rgn->base() + committed_rgn->size() == rec->addr()) {
   191       // adjunct each other
   192       committed_rgn->expand_region(rec->addr(), rec->size());
   193       VMMemRegion* next_reg = (VMMemRegion*)next();
   194       // see if we can consolidate next committed region
   195       if (next_reg != NULL && next_reg->is_committed_region() &&
   196         next_reg->base() == committed_rgn->base() + committed_rgn->size()) {
   197           committed_rgn->expand_region(next_reg->base(), next_reg->size());
   198           // delete merged region
   199           remove();
   200       }
   201       return true;
   202     } else if (committed_rgn->base() > rec->addr()) {
   203       // found the location, insert this committed region
   204       return insert_record(rec);
   205     }
   206     committed_rgn = (VMMemRegion*)next();
   207   }
   208   return insert_record(rec);
   209 }
   211 bool VMMemPointerIterator::remove_uncommitted_region(MemPointerRecord* rec) {
   212   assert(rec->is_uncommit_record(), "sanity check");
   213   VMMemRegion* cur;
   214   cur = (VMMemRegion*)current();
   215   assert(cur->is_reserved_region() && cur->contains_region(rec),
   216     "Sanity check");
   217   // thread's native stack is always marked as "committed", ignore
   218   // the "commit" operation for creating stack guard pages
   219   if (FLAGS_TO_MEMORY_TYPE(cur->flags()) == mtThreadStack &&
   220       FLAGS_TO_MEMORY_TYPE(rec->flags()) != mtThreadStack) {
   221     return true;
   222   }
   224   cur = (VMMemRegion*)next();
   225   while (cur != NULL && cur->is_committed_region()) {
   226     // region already uncommitted, must be due to duplicated record
   227     if (cur->addr() >= rec->addr() + rec->size()) {
   228       break;
   229     } else if (cur->contains_region(rec)) {
   230       // uncommit whole region
   231       if (cur->is_same_region(rec)) {
   232         remove();
   233         break;
   234       } else if (rec->addr() == cur->addr() ||
   235         rec->addr() + rec->size() == cur->addr() + cur->size()) {
   236         // uncommitted from either end of current memory region.
   237         cur->exclude_region(rec->addr(), rec->size());
   238         break;
   239       } else { // split the committed region and release the middle
   240         address high_addr = cur->addr() + cur->size();
   241         size_t sz = high_addr - rec->addr();
   242         cur->exclude_region(rec->addr(), sz);
   243         sz = high_addr - (rec->addr() + rec->size());
   244         if (MemTracker::track_callsite()) {
   245           MemPointerRecordEx tmp(rec->addr() + rec->size(), cur->flags(), sz,
   246              ((VMMemRegionEx*)cur)->pc());
   247           return insert_record_after(&tmp);
   248         } else {
   249           MemPointerRecord tmp(rec->addr() + rec->size(), cur->flags(), sz);
   250           return insert_record_after(&tmp);
   251         }
   252       }
   253     }
   254     cur = (VMMemRegion*)next();
   255   }
   257   // we may not find committed record due to duplicated records
   258   return true;
   259 }
   261 bool VMMemPointerIterator::remove_released_region(MemPointerRecord* rec) {
   262   assert(rec->is_deallocation_record(), "Sanity check");
   263   VMMemRegion* cur = (VMMemRegion*)current();
   264   assert(cur->is_reserved_region() && cur->contains_region(rec),
   265     "Sanity check");
   266   if (rec->is_same_region(cur)) {
   268     // In snapshot, the virtual memory records are sorted in following orders:
   269     // 1. virtual memory's base address
   270     // 2. virtual memory reservation record, followed by commit records within this reservation.
   271     //    The commit records are also in base address order.
   272     // When a reserved region is released, we want to remove the reservation record and all
   273     // commit records following it.
   274 #ifdef ASSERT
   275     address low_addr = cur->addr();
   276     address high_addr = low_addr + cur->size();
   277 #endif
   278     // remove virtual memory reservation record
   279     remove();
   280     // remove committed regions within above reservation
   281     VMMemRegion* next_region = (VMMemRegion*)current();
   282     while (next_region != NULL && next_region->is_committed_region()) {
   283       assert(next_region->addr() >= low_addr &&
   284              next_region->addr() + next_region->size() <= high_addr,
   285             "Range check");
   286       remove();
   287       next_region = (VMMemRegion*)current();
   288     }
   289   } else if (rec->addr() == cur->addr() ||
   290     rec->addr() + rec->size() == cur->addr() + cur->size()) {
   291     // released region is at either end of this region
   292     cur->exclude_region(rec->addr(), rec->size());
   293     assert(check_reserved_region(), "Integrity check");
   294   } else { // split the reserved region and release the middle
   295     address high_addr = cur->addr() + cur->size();
   296     size_t sz = high_addr - rec->addr();
   297     cur->exclude_region(rec->addr(), sz);
   298     sz = high_addr - rec->addr() - rec->size();
   299     if (MemTracker::track_callsite()) {
   300       MemPointerRecordEx tmp(rec->addr() + rec->size(), cur->flags(), sz,
   301         ((VMMemRegionEx*)cur)->pc());
   302       bool ret = insert_reserved_region(&tmp);
   303       assert(!ret || check_reserved_region(), "Integrity check");
   304       return ret;
   305     } else {
   306       MemPointerRecord tmp(rec->addr() + rec->size(), cur->flags(), sz);
   307       bool ret = insert_reserved_region(&tmp);
   308       assert(!ret || check_reserved_region(), "Integrity check");
   309       return ret;
   310     }
   311   }
   312   return true;
   313 }
   315 bool VMMemPointerIterator::insert_reserved_region(MemPointerRecord* rec) {
   316   // skip all 'commit' records associated with previous reserved region
   317   VMMemRegion* p = (VMMemRegion*)next();
   318   while (p != NULL && p->is_committed_region() &&
   319          p->base() + p->size() < rec->addr()) {
   320     p = (VMMemRegion*)next();
   321   }
   322   return insert_record(rec);
   323 }
   325 bool VMMemPointerIterator::split_reserved_region(VMMemRegion* rgn, address new_rgn_addr, size_t new_rgn_size) {
   326   assert(rgn->contains_region(new_rgn_addr, new_rgn_size), "Not fully contained");
   327   address pc = (MemTracker::track_callsite() ? ((VMMemRegionEx*)rgn)->pc() : NULL);
   328   if (rgn->base() == new_rgn_addr) { // new region is at the beginning of the region
   329     size_t sz = rgn->size() - new_rgn_size;
   330     // the original region becomes 'new' region
   331     rgn->exclude_region(new_rgn_addr + new_rgn_size, sz);
   332      // remaining becomes next region
   333     MemPointerRecordEx next_rgn(new_rgn_addr + new_rgn_size, rgn->flags(), sz, pc);
   334     return insert_reserved_region(&next_rgn);
   335   } else if (rgn->base() + rgn->size() == new_rgn_addr + new_rgn_size) {
   336     rgn->exclude_region(new_rgn_addr, new_rgn_size);
   337     MemPointerRecordEx next_rgn(new_rgn_addr, rgn->flags(), new_rgn_size, pc);
   338     return insert_reserved_region(&next_rgn);
   339   } else {
   340     // the orginal region will be split into three
   341     address rgn_high_addr = rgn->base() + rgn->size();
   342     // first region
   343     rgn->exclude_region(new_rgn_addr, (rgn_high_addr - new_rgn_addr));
   344     // the second region is the new region
   345     MemPointerRecordEx new_rgn(new_rgn_addr, rgn->flags(), new_rgn_size, pc);
   346     if (!insert_reserved_region(&new_rgn)) return false;
   347     // the remaining region
   348     MemPointerRecordEx rem_rgn(new_rgn_addr + new_rgn_size, rgn->flags(),
   349       rgn_high_addr - (new_rgn_addr + new_rgn_size), pc);
   350     return insert_reserved_region(&rem_rgn);
   351   }
   352 }
   354 static int sort_in_seq_order(const void* p1, const void* p2) {
   355   assert(p1 != NULL && p2 != NULL, "Sanity check");
   356   const MemPointerRecord* mp1 = (MemPointerRecord*)p1;
   357   const MemPointerRecord* mp2 = (MemPointerRecord*)p2;
   358   return (mp1->seq() - mp2->seq());
   359 }
   361 bool StagingArea::init() {
   362   if (MemTracker::track_callsite()) {
   363     _malloc_data = new (std::nothrow)MemPointerArrayImpl<SeqMemPointerRecordEx>();
   364     _vm_data = new (std::nothrow)MemPointerArrayImpl<SeqMemPointerRecordEx>();
   365   } else {
   366     _malloc_data = new (std::nothrow)MemPointerArrayImpl<SeqMemPointerRecord>();
   367     _vm_data = new (std::nothrow)MemPointerArrayImpl<SeqMemPointerRecord>();
   368   }
   370   if (_malloc_data != NULL && _vm_data != NULL &&
   371       !_malloc_data->out_of_memory() &&
   372       !_vm_data->out_of_memory()) {
   373     return true;
   374   } else {
   375     if (_malloc_data != NULL) delete _malloc_data;
   376     if (_vm_data != NULL) delete _vm_data;
   377     _malloc_data = NULL;
   378     _vm_data = NULL;
   379     return false;
   380   }
   381 }
   384 VMRecordIterator StagingArea::virtual_memory_record_walker() {
   385   MemPointerArray* arr = vm_data();
   386   // sort into seq number order
   387   arr->sort((FN_SORT)sort_in_seq_order);
   388   return VMRecordIterator(arr);
   389 }
   392 MemSnapshot::MemSnapshot() {
   393   if (MemTracker::track_callsite()) {
   394     _alloc_ptrs = new (std::nothrow) MemPointerArrayImpl<MemPointerRecordEx>();
   395     _vm_ptrs = new (std::nothrow)MemPointerArrayImpl<VMMemRegionEx>(64, true);
   396   } else {
   397     _alloc_ptrs = new (std::nothrow) MemPointerArrayImpl<MemPointerRecord>();
   398     _vm_ptrs = new (std::nothrow)MemPointerArrayImpl<VMMemRegion>(64, true);
   399   }
   401   _staging_area.init();
   402   _lock = new (std::nothrow) Mutex(Monitor::max_nonleaf - 1, "memSnapshotLock");
   403   NOT_PRODUCT(_untracked_count = 0;)
   404   _number_of_classes = 0;
   405 }
   407 MemSnapshot::~MemSnapshot() {
   408   assert(MemTracker::shutdown_in_progress(), "native memory tracking still on");
   409   {
   410     MutexLockerEx locker(_lock);
   411     if (_alloc_ptrs != NULL) {
   412       delete _alloc_ptrs;
   413       _alloc_ptrs = NULL;
   414     }
   416     if (_vm_ptrs != NULL) {
   417       delete _vm_ptrs;
   418       _vm_ptrs = NULL;
   419     }
   420   }
   422   if (_lock != NULL) {
   423     delete _lock;
   424     _lock = NULL;
   425   }
   426 }
   429 void MemSnapshot::copy_seq_pointer(MemPointerRecord* dest, const MemPointerRecord* src) {
   430   assert(dest != NULL && src != NULL, "Just check");
   431   assert(dest->addr() == src->addr(), "Just check");
   432   assert(dest->seq() > 0 && src->seq() > 0, "not sequenced");
   434   if (MemTracker::track_callsite()) {
   435     *(SeqMemPointerRecordEx*)dest = *(SeqMemPointerRecordEx*)src;
   436   } else {
   437     *(SeqMemPointerRecord*)dest = *(SeqMemPointerRecord*)src;
   438   }
   439 }
   441 void MemSnapshot::assign_pointer(MemPointerRecord*dest, const MemPointerRecord* src) {
   442   assert(src != NULL && dest != NULL, "Just check");
   443   assert(dest->seq() == 0 && src->seq() >0, "cast away sequence");
   445   if (MemTracker::track_callsite()) {
   446     *(MemPointerRecordEx*)dest = *(MemPointerRecordEx*)src;
   447   } else {
   448     *(MemPointerRecord*)dest = *(MemPointerRecord*)src;
   449   }
   450 }
   452 // merge a recorder to the staging area
   453 bool MemSnapshot::merge(MemRecorder* rec) {
   454   assert(rec != NULL && !rec->out_of_memory(), "Just check");
   456   SequencedRecordIterator itr(rec->pointer_itr());
   458   MutexLockerEx lock(_lock, true);
   459   MemPointerIterator malloc_staging_itr(_staging_area.malloc_data());
   460   MemPointerRecord* incoming_rec = (MemPointerRecord*) itr.current();
   461   MemPointerRecord* matched_rec;
   463   while (incoming_rec != NULL) {
   464     if (incoming_rec->is_vm_pointer()) {
   465       // we don't do anything with virtual memory records during merge
   466       if (!_staging_area.vm_data()->append(incoming_rec)) {
   467         return false;
   468       }
   469     } else {
   470       // locate matched record and/or also position the iterator to proper
   471       // location for this incoming record.
   472       matched_rec = (MemPointerRecord*)malloc_staging_itr.locate(incoming_rec->addr());
   473       // we have not seen this memory block in this generation,
   474       // so just add to staging area
   475       if (matched_rec == NULL) {
   476         if (!malloc_staging_itr.insert(incoming_rec)) {
   477           return false;
   478         }
   479       } else if (incoming_rec->addr() == matched_rec->addr()) {
   480         // whoever has higher sequence number wins
   481         if (incoming_rec->seq() > matched_rec->seq()) {
   482           copy_seq_pointer(matched_rec, incoming_rec);
   483         }
   484       } else if (incoming_rec->addr() < matched_rec->addr()) {
   485         if (!malloc_staging_itr.insert(incoming_rec)) {
   486           return false;
   487         }
   488       } else {
   489         ShouldNotReachHere();
   490       }
   491     }
   492     incoming_rec = (MemPointerRecord*)itr.next();
   493   }
   494   NOT_PRODUCT(void check_staging_data();)
   495   return true;
   496 }
   499 // promote data to next generation
   500 bool MemSnapshot::promote(int number_of_classes) {
   501   assert(_alloc_ptrs != NULL && _vm_ptrs != NULL, "Just check");
   502   assert(_staging_area.malloc_data() != NULL && _staging_area.vm_data() != NULL,
   503          "Just check");
   504   MutexLockerEx lock(_lock, true);
   506   MallocRecordIterator  malloc_itr = _staging_area.malloc_record_walker();
   507   bool promoted = false;
   508   if (promote_malloc_records(&malloc_itr)) {
   509     VMRecordIterator vm_itr = _staging_area.virtual_memory_record_walker();
   510     if (promote_virtual_memory_records(&vm_itr)) {
   511       promoted = true;
   512     }
   513   }
   515   NOT_PRODUCT(check_malloc_pointers();)
   516   _staging_area.clear();
   517   _number_of_classes = number_of_classes;
   518   return promoted;
   519 }
   521 bool MemSnapshot::promote_malloc_records(MemPointerArrayIterator* itr) {
   522   MemPointerIterator malloc_snapshot_itr(_alloc_ptrs);
   523   MemPointerRecord* new_rec = (MemPointerRecord*)itr->current();
   524   MemPointerRecord* matched_rec;
   525   while (new_rec != NULL) {
   526     matched_rec = (MemPointerRecord*)malloc_snapshot_itr.locate(new_rec->addr());
   527     // found matched memory block
   528     if (matched_rec != NULL && new_rec->addr() == matched_rec->addr()) {
   529       // snapshot already contains 'live' records
   530       assert(matched_rec->is_allocation_record() || matched_rec->is_arena_memory_record(),
   531              "Sanity check");
   532       // update block states
   533       if (new_rec->is_allocation_record()) {
   534         assign_pointer(matched_rec, new_rec);
   535       } else if (new_rec->is_arena_memory_record()) {
   536         if (new_rec->size() == 0) {
   537           // remove size record once size drops to 0
   538           malloc_snapshot_itr.remove();
   539         } else {
   540           assign_pointer(matched_rec, new_rec);
   541         }
   542       } else {
   543         // a deallocation record
   544         assert(new_rec->is_deallocation_record(), "Sanity check");
   545         // an arena record can be followed by a size record, we need to remove both
   546         if (matched_rec->is_arena_record()) {
   547           MemPointerRecord* next = (MemPointerRecord*)malloc_snapshot_itr.peek_next();
   548           if (next != NULL && next->is_arena_memory_record() &&
   549               next->is_memory_record_of_arena(matched_rec)) {
   550             malloc_snapshot_itr.remove();
   551           }
   552         }
   553         // the memory is deallocated, remove related record(s)
   554         malloc_snapshot_itr.remove();
   555       }
   556     } else {
   557       // don't insert size 0 record
   558       if (new_rec->is_arena_memory_record() && new_rec->size() == 0) {
   559         new_rec = NULL;
   560       }
   562       if (new_rec != NULL) {
   563         if  (new_rec->is_allocation_record() || new_rec->is_arena_memory_record()) {
   564           if (matched_rec != NULL && new_rec->addr() > matched_rec->addr()) {
   565             if (!malloc_snapshot_itr.insert_after(new_rec)) {
   566               return false;
   567             }
   568           } else {
   569             if (!malloc_snapshot_itr.insert(new_rec)) {
   570               return false;
   571             }
   572           }
   573         }
   574 #ifndef PRODUCT
   575         else if (!has_allocation_record(new_rec->addr())) {
   576           // NMT can not track some startup memory, which is allocated before NMT is on
   577           _untracked_count ++;
   578         }
   579 #endif
   580       }
   581     }
   582     new_rec = (MemPointerRecord*)itr->next();
   583   }
   584   return true;
   585 }
   587 bool MemSnapshot::promote_virtual_memory_records(MemPointerArrayIterator* itr) {
   588   VMMemPointerIterator vm_snapshot_itr(_vm_ptrs);
   589   MemPointerRecord* new_rec = (MemPointerRecord*)itr->current();
   590   VMMemRegion*  reserved_rec;
   591   while (new_rec != NULL) {
   592     assert(new_rec->is_vm_pointer(), "Sanity check");
   594     // locate a reserved region that contains the specified address, or
   595     // the nearest reserved region has base address just above the specified
   596     // address
   597     reserved_rec = (VMMemRegion*)vm_snapshot_itr.locate(new_rec->addr());
   598     if (reserved_rec != NULL && reserved_rec->contains_region(new_rec)) {
   599       // snapshot can only have 'live' records
   600       assert(reserved_rec->is_reserved_region(), "Sanity check");
   601       if (new_rec->is_allocation_record()) {
   602         if (!reserved_rec->is_same_region(new_rec)) {
   603           // only deal with split a bigger reserved region into smaller regions.
   604           // So far, CDS is the only use case.
   605           if (!vm_snapshot_itr.split_reserved_region(reserved_rec, new_rec->addr(), new_rec->size())) {
   606             return false;
   607           }
   608         }
   609       } else if (new_rec->is_uncommit_record()) {
   610         if (!vm_snapshot_itr.remove_uncommitted_region(new_rec)) {
   611           return false;
   612         }
   613       } else if (new_rec->is_commit_record()) {
   614         // insert or expand existing committed region to cover this
   615         // newly committed region
   616         if (!vm_snapshot_itr.add_committed_region(new_rec)) {
   617           return false;
   618         }
   619       } else if (new_rec->is_deallocation_record()) {
   620         // release part or all memory region
   621         if (!vm_snapshot_itr.remove_released_region(new_rec)) {
   622           return false;
   623         }
   624       } else if (new_rec->is_type_tagging_record()) {
   625         // tag this reserved virtual memory range to a memory type. Can not re-tag a memory range
   626         // to different type.
   627         assert(FLAGS_TO_MEMORY_TYPE(reserved_rec->flags()) == mtNone ||
   628                FLAGS_TO_MEMORY_TYPE(reserved_rec->flags()) == FLAGS_TO_MEMORY_TYPE(new_rec->flags()),
   629                "Sanity check");
   630         reserved_rec->tag(new_rec->flags());
   631     } else {
   632         ShouldNotReachHere();
   633           }
   634         } else {
   635       /*
   636        * The assertion failure indicates mis-matched virtual memory records. The likely
   637        * scenario is, that some virtual memory operations are not going through os::xxxx_memory()
   638        * api, which have to be tracked manually. (perfMemory is an example).
   639       */
   640       assert(new_rec->is_allocation_record(), "Sanity check");
   641       if (!vm_snapshot_itr.add_reserved_region(new_rec)) {
   642             return false;
   643           }
   644   }
   645     new_rec = (MemPointerRecord*)itr->next();
   646   }
   647   return true;
   648 }
   650 #ifndef PRODUCT
   651 void MemSnapshot::print_snapshot_stats(outputStream* st) {
   652   st->print_cr("Snapshot:");
   653   st->print_cr("\tMalloced: %d/%d [%5.2f%%]  %dKB", _alloc_ptrs->length(), _alloc_ptrs->capacity(),
   654     (100.0 * (float)_alloc_ptrs->length()) / (float)_alloc_ptrs->capacity(), _alloc_ptrs->instance_size()/K);
   656   st->print_cr("\tVM: %d/%d [%5.2f%%] %dKB", _vm_ptrs->length(), _vm_ptrs->capacity(),
   657     (100.0 * (float)_vm_ptrs->length()) / (float)_vm_ptrs->capacity(), _vm_ptrs->instance_size()/K);
   659   st->print_cr("\tMalloc staging Area:     %d/%d [%5.2f%%] %dKB", _staging_area.malloc_data()->length(),
   660     _staging_area.malloc_data()->capacity(),
   661     (100.0 * (float)_staging_area.malloc_data()->length()) / (float)_staging_area.malloc_data()->capacity(),
   662     _staging_area.malloc_data()->instance_size()/K);
   664   st->print_cr("\tVirtual memory staging Area:     %d/%d [%5.2f%%] %dKB", _staging_area.vm_data()->length(),
   665     _staging_area.vm_data()->capacity(),
   666     (100.0 * (float)_staging_area.vm_data()->length()) / (float)_staging_area.vm_data()->capacity(),
   667     _staging_area.vm_data()->instance_size()/K);
   669   st->print_cr("\tUntracked allocation: %d", _untracked_count);
   670 }
   672 void MemSnapshot::check_malloc_pointers() {
   673   MemPointerArrayIteratorImpl mItr(_alloc_ptrs);
   674   MemPointerRecord* p = (MemPointerRecord*)mItr.current();
   675   MemPointerRecord* prev = NULL;
   676   while (p != NULL) {
   677     if (prev != NULL) {
   678       assert(p->addr() >= prev->addr(), "sorting order");
   679     }
   680     prev = p;
   681     p = (MemPointerRecord*)mItr.next();
   682   }
   683 }
   685 bool MemSnapshot::has_allocation_record(address addr) {
   686   MemPointerArrayIteratorImpl itr(_staging_area.malloc_data());
   687   MemPointerRecord* cur = (MemPointerRecord*)itr.current();
   688   while (cur != NULL) {
   689     if (cur->addr() == addr && cur->is_allocation_record()) {
   690       return true;
   691     }
   692     cur = (MemPointerRecord*)itr.next();
   693   }
   694   return false;
   695 }
   696 #endif // PRODUCT
   698 #ifdef ASSERT
   699 void MemSnapshot::check_staging_data() {
   700   MemPointerArrayIteratorImpl itr(_staging_area.malloc_data());
   701   MemPointerRecord* cur = (MemPointerRecord*)itr.current();
   702   MemPointerRecord* next = (MemPointerRecord*)itr.next();
   703   while (next != NULL) {
   704     assert((next->addr() > cur->addr()) ||
   705       ((next->flags() & MemPointerRecord::tag_masks) >
   706        (cur->flags() & MemPointerRecord::tag_masks)),
   707        "sorting order");
   708     cur = next;
   709     next = (MemPointerRecord*)itr.next();
   710   }
   712   MemPointerArrayIteratorImpl vm_itr(_staging_area.vm_data());
   713   cur = (MemPointerRecord*)vm_itr.current();
   714   while (cur != NULL) {
   715     assert(cur->is_vm_pointer(), "virtual memory pointer only");
   716     cur = (MemPointerRecord*)vm_itr.next();
   717   }
   718 }
   720 void MemSnapshot::dump_all_vm_pointers() {
   721   MemPointerArrayIteratorImpl itr(_vm_ptrs);
   722   VMMemRegion* ptr = (VMMemRegion*)itr.current();
   723   tty->print_cr("dump virtual memory pointers:");
   724   while (ptr != NULL) {
   725     if (ptr->is_committed_region()) {
   726       tty->print("\t");
   727     }
   728     tty->print("[" PTR_FORMAT " - " PTR_FORMAT "] [%x]", ptr->addr(),
   729       (ptr->addr() + ptr->size()), ptr->flags());
   731     if (MemTracker::track_callsite()) {
   732       VMMemRegionEx* ex = (VMMemRegionEx*)ptr;
   733       if (ex->pc() != NULL) {
   734         char buf[1024];
   735         if (os::dll_address_to_function_name(ex->pc(), buf, sizeof(buf), NULL)) {
   736           tty->print_cr("\t%s", buf);
   737         } else {
   738           tty->cr();
   739         }
   740       }
   741     }
   743     ptr = (VMMemRegion*)itr.next();
   744   }
   745   tty->flush();
   746 }
   747 #endif // ASSERT

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