src/share/vm/memory/cardTableModRefBS.cpp

Thu, 12 Jun 2008 13:50:55 -0700

author
ysr
date
Thu, 12 Jun 2008 13:50:55 -0700
changeset 779
6aae2f9d0294
parent 777
37f87013dfd8
child 781
bb254e57d2f4
permissions
-rw-r--r--

Merge

     1 /*
     2  * Copyright 2000-2006 Sun Microsystems, Inc.  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 Sun Microsystems, Inc., 4150 Network Circle, Santa Clara,
    20  * CA 95054 USA or visit www.sun.com if you need additional information or
    21  * have any questions.
    22  *
    23  */
    25 // This kind of "BarrierSet" allows a "CollectedHeap" to detect and
    26 // enumerate ref fields that have been modified (since the last
    27 // enumeration.)
    29 # include "incls/_precompiled.incl"
    30 # include "incls/_cardTableModRefBS.cpp.incl"
    32 size_t CardTableModRefBS::cards_required(size_t covered_words)
    33 {
    34   // Add one for a guard card, used to detect errors.
    35   const size_t words = align_size_up(covered_words, card_size_in_words);
    36   return words / card_size_in_words + 1;
    37 }
    39 size_t CardTableModRefBS::compute_byte_map_size()
    40 {
    41   assert(_guard_index == cards_required(_whole_heap.word_size()) - 1,
    42                                         "unitialized, check declaration order");
    43   assert(_page_size != 0, "unitialized, check declaration order");
    44   const size_t granularity = os::vm_allocation_granularity();
    45   return align_size_up(_guard_index + 1, MAX2(_page_size, granularity));
    46 }
    48 CardTableModRefBS::CardTableModRefBS(MemRegion whole_heap,
    49                                      int max_covered_regions):
    50   ModRefBarrierSet(max_covered_regions),
    51   _whole_heap(whole_heap),
    52   _guard_index(cards_required(whole_heap.word_size()) - 1),
    53   _last_valid_index(_guard_index - 1),
    54   _page_size(os::vm_page_size()),
    55   _byte_map_size(compute_byte_map_size())
    56 {
    57   _kind = BarrierSet::CardTableModRef;
    59   HeapWord* low_bound  = _whole_heap.start();
    60   HeapWord* high_bound = _whole_heap.end();
    61   assert((uintptr_t(low_bound)  & (card_size - 1))  == 0, "heap must start at card boundary");
    62   assert((uintptr_t(high_bound) & (card_size - 1))  == 0, "heap must end at card boundary");
    64   assert(card_size <= 512, "card_size must be less than 512"); // why?
    66   _covered   = new MemRegion[max_covered_regions];
    67   _committed = new MemRegion[max_covered_regions];
    68   if (_covered == NULL || _committed == NULL)
    69     vm_exit_during_initialization("couldn't alloc card table covered region set.");
    70   int i;
    71   for (i = 0; i < max_covered_regions; i++) {
    72     _covered[i].set_word_size(0);
    73     _committed[i].set_word_size(0);
    74   }
    75   _cur_covered_regions = 0;
    77   const size_t rs_align = _page_size == (size_t) os::vm_page_size() ? 0 :
    78     MAX2(_page_size, (size_t) os::vm_allocation_granularity());
    79   ReservedSpace heap_rs(_byte_map_size, rs_align, false);
    80   os::trace_page_sizes("card table", _guard_index + 1, _guard_index + 1,
    81                        _page_size, heap_rs.base(), heap_rs.size());
    82   if (!heap_rs.is_reserved()) {
    83     vm_exit_during_initialization("Could not reserve enough space for the "
    84                                   "card marking array");
    85   }
    87   // The assember store_check code will do an unsigned shift of the oop,
    88   // then add it to byte_map_base, i.e.
    89   //
    90   //   _byte_map = byte_map_base + (uintptr_t(low_bound) >> card_shift)
    91   _byte_map = (jbyte*) heap_rs.base();
    92   byte_map_base = _byte_map - (uintptr_t(low_bound) >> card_shift);
    93   assert(byte_for(low_bound) == &_byte_map[0], "Checking start of map");
    94   assert(byte_for(high_bound-1) <= &_byte_map[_last_valid_index], "Checking end of map");
    96   jbyte* guard_card = &_byte_map[_guard_index];
    97   uintptr_t guard_page = align_size_down((uintptr_t)guard_card, _page_size);
    98   _guard_region = MemRegion((HeapWord*)guard_page, _page_size);
    99   if (!os::commit_memory((char*)guard_page, _page_size, _page_size)) {
   100     // Do better than this for Merlin
   101     vm_exit_out_of_memory(_page_size, "card table last card");
   102   }
   103   *guard_card = last_card;
   105    _lowest_non_clean =
   106     NEW_C_HEAP_ARRAY(CardArr, max_covered_regions);
   107   _lowest_non_clean_chunk_size =
   108     NEW_C_HEAP_ARRAY(size_t, max_covered_regions);
   109   _lowest_non_clean_base_chunk_index =
   110     NEW_C_HEAP_ARRAY(uintptr_t, max_covered_regions);
   111   _last_LNC_resizing_collection =
   112     NEW_C_HEAP_ARRAY(int, max_covered_regions);
   113   if (_lowest_non_clean == NULL
   114       || _lowest_non_clean_chunk_size == NULL
   115       || _lowest_non_clean_base_chunk_index == NULL
   116       || _last_LNC_resizing_collection == NULL)
   117     vm_exit_during_initialization("couldn't allocate an LNC array.");
   118   for (i = 0; i < max_covered_regions; i++) {
   119     _lowest_non_clean[i] = NULL;
   120     _lowest_non_clean_chunk_size[i] = 0;
   121     _last_LNC_resizing_collection[i] = -1;
   122   }
   124   if (TraceCardTableModRefBS) {
   125     gclog_or_tty->print_cr("CardTableModRefBS::CardTableModRefBS: ");
   126     gclog_or_tty->print_cr("  "
   127                   "  &_byte_map[0]: " INTPTR_FORMAT
   128                   "  &_byte_map[_last_valid_index]: " INTPTR_FORMAT,
   129                   &_byte_map[0],
   130                   &_byte_map[_last_valid_index]);
   131     gclog_or_tty->print_cr("  "
   132                   "  byte_map_base: " INTPTR_FORMAT,
   133                   byte_map_base);
   134   }
   135 }
   137 int CardTableModRefBS::find_covering_region_by_base(HeapWord* base) {
   138   int i;
   139   for (i = 0; i < _cur_covered_regions; i++) {
   140     if (_covered[i].start() == base) return i;
   141     if (_covered[i].start() > base) break;
   142   }
   143   // If we didn't find it, create a new one.
   144   assert(_cur_covered_regions < _max_covered_regions,
   145          "too many covered regions");
   146   // Move the ones above up, to maintain sorted order.
   147   for (int j = _cur_covered_regions; j > i; j--) {
   148     _covered[j] = _covered[j-1];
   149     _committed[j] = _committed[j-1];
   150   }
   151   int res = i;
   152   _cur_covered_regions++;
   153   _covered[res].set_start(base);
   154   _covered[res].set_word_size(0);
   155   jbyte* ct_start = byte_for(base);
   156   uintptr_t ct_start_aligned = align_size_down((uintptr_t)ct_start, _page_size);
   157   _committed[res].set_start((HeapWord*)ct_start_aligned);
   158   _committed[res].set_word_size(0);
   159   return res;
   160 }
   162 int CardTableModRefBS::find_covering_region_containing(HeapWord* addr) {
   163   for (int i = 0; i < _cur_covered_regions; i++) {
   164     if (_covered[i].contains(addr)) {
   165       return i;
   166     }
   167   }
   168   assert(0, "address outside of heap?");
   169   return -1;
   170 }
   172 HeapWord* CardTableModRefBS::largest_prev_committed_end(int ind) const {
   173   HeapWord* max_end = NULL;
   174   for (int j = 0; j < ind; j++) {
   175     HeapWord* this_end = _committed[j].end();
   176     if (this_end > max_end) max_end = this_end;
   177   }
   178   return max_end;
   179 }
   181 MemRegion CardTableModRefBS::committed_unique_to_self(int self,
   182                                                       MemRegion mr) const {
   183   MemRegion result = mr;
   184   for (int r = 0; r < _cur_covered_regions; r += 1) {
   185     if (r != self) {
   186       result = result.minus(_committed[r]);
   187     }
   188   }
   189   // Never include the guard page.
   190   result = result.minus(_guard_region);
   191   return result;
   192 }
   194 void CardTableModRefBS::resize_covered_region(MemRegion new_region) {
   195   // We don't change the start of a region, only the end.
   196   assert(_whole_heap.contains(new_region),
   197            "attempt to cover area not in reserved area");
   198   debug_only(verify_guard();)
   199   int const ind = find_covering_region_by_base(new_region.start());
   200   MemRegion const old_region = _covered[ind];
   201   assert(old_region.start() == new_region.start(), "just checking");
   202   if (new_region.word_size() != old_region.word_size()) {
   203     // Commit new or uncommit old pages, if necessary.
   204     MemRegion cur_committed = _committed[ind];
   205     // Extend the end of this _commited region
   206     // to cover the end of any lower _committed regions.
   207     // This forms overlapping regions, but never interior regions.
   208     HeapWord* const max_prev_end = largest_prev_committed_end(ind);
   209     if (max_prev_end > cur_committed.end()) {
   210       cur_committed.set_end(max_prev_end);
   211     }
   212     // Align the end up to a page size (starts are already aligned).
   213     jbyte* const new_end = byte_after(new_region.last());
   214     HeapWord* const new_end_aligned =
   215       (HeapWord*) align_size_up((uintptr_t)new_end, _page_size);
   216     assert(new_end_aligned >= (HeapWord*) new_end,
   217            "align up, but less");
   218     // The guard page is always committed and should not be committed over.
   219     HeapWord* const new_end_for_commit = MIN2(new_end_aligned, _guard_region.start());
   220     if (new_end_for_commit > cur_committed.end()) {
   221       // Must commit new pages.
   222       MemRegion const new_committed =
   223         MemRegion(cur_committed.end(), new_end_for_commit);
   225       assert(!new_committed.is_empty(), "Region should not be empty here");
   226       if (!os::commit_memory((char*)new_committed.start(),
   227                              new_committed.byte_size(), _page_size)) {
   228         // Do better than this for Merlin
   229         vm_exit_out_of_memory(new_committed.byte_size(),
   230                 "card table expansion");
   231       }
   232     // Use new_end_aligned (as opposed to new_end_for_commit) because
   233     // the cur_committed region may include the guard region.
   234     } else if (new_end_aligned < cur_committed.end()) {
   235       // Must uncommit pages.
   236       MemRegion const uncommit_region =
   237         committed_unique_to_self(ind, MemRegion(new_end_aligned,
   238                                                 cur_committed.end()));
   239       if (!uncommit_region.is_empty()) {
   240         if (!os::uncommit_memory((char*)uncommit_region.start(),
   241                                  uncommit_region.byte_size())) {
   242           // Do better than this for Merlin
   243           vm_exit_out_of_memory(uncommit_region.byte_size(),
   244             "card table contraction");
   245         }
   246       }
   247     }
   248     // In any case, we can reset the end of the current committed entry.
   249     _committed[ind].set_end(new_end_aligned);
   251     // The default of 0 is not necessarily clean cards.
   252     jbyte* entry;
   253     if (old_region.last() < _whole_heap.start()) {
   254       entry = byte_for(_whole_heap.start());
   255     } else {
   256       entry = byte_after(old_region.last());
   257     }
   258     assert(index_for(new_region.last()) < (int) _guard_index,
   259       "The guard card will be overwritten");
   260     jbyte* const end = byte_after(new_region.last());
   261     // do nothing if we resized downward.
   262     if (entry < end) {
   263       memset(entry, clean_card, pointer_delta(end, entry, sizeof(jbyte)));
   264     }
   265   }
   266   // In any case, the covered size changes.
   267   _covered[ind].set_word_size(new_region.word_size());
   268   if (TraceCardTableModRefBS) {
   269     gclog_or_tty->print_cr("CardTableModRefBS::resize_covered_region: ");
   270     gclog_or_tty->print_cr("  "
   271                   "  _covered[%d].start(): " INTPTR_FORMAT
   272                   "  _covered[%d].last(): " INTPTR_FORMAT,
   273                   ind, _covered[ind].start(),
   274                   ind, _covered[ind].last());
   275     gclog_or_tty->print_cr("  "
   276                   "  _committed[%d].start(): " INTPTR_FORMAT
   277                   "  _committed[%d].last(): " INTPTR_FORMAT,
   278                   ind, _committed[ind].start(),
   279                   ind, _committed[ind].last());
   280     gclog_or_tty->print_cr("  "
   281                   "  byte_for(start): " INTPTR_FORMAT
   282                   "  byte_for(last): " INTPTR_FORMAT,
   283                   byte_for(_covered[ind].start()),
   284                   byte_for(_covered[ind].last()));
   285     gclog_or_tty->print_cr("  "
   286                   "  addr_for(start): " INTPTR_FORMAT
   287                   "  addr_for(last): " INTPTR_FORMAT,
   288                   addr_for((jbyte*) _committed[ind].start()),
   289                   addr_for((jbyte*) _committed[ind].last()));
   290   }
   291   debug_only(verify_guard();)
   292 }
   294 // Note that these versions are precise!  The scanning code has to handle the
   295 // fact that the write barrier may be either precise or imprecise.
   297 void CardTableModRefBS::write_ref_field_work(void* field, oop newVal) {
   298   inline_write_ref_field(field, newVal);
   299 }
   302 bool CardTableModRefBS::claim_card(size_t card_index) {
   303   jbyte val = _byte_map[card_index];
   304   if (val != claimed_card_val()) {
   305     jbyte res = Atomic::cmpxchg((jbyte) claimed_card_val(), &_byte_map[card_index], val);
   306     if (res == val)
   307       return true;
   308     else return false;
   309   }
   310   return false;
   311 }
   313 void CardTableModRefBS::non_clean_card_iterate(Space* sp,
   314                                                MemRegion mr,
   315                                                DirtyCardToOopClosure* dcto_cl,
   316                                                MemRegionClosure* cl,
   317                                                bool clear) {
   318   if (!mr.is_empty()) {
   319     int n_threads = SharedHeap::heap()->n_par_threads();
   320     if (n_threads > 0) {
   321 #ifndef SERIALGC
   322       par_non_clean_card_iterate_work(sp, mr, dcto_cl, cl, clear, n_threads);
   323 #else  // SERIALGC
   324       fatal("Parallel gc not supported here.");
   325 #endif // SERIALGC
   326     } else {
   327       non_clean_card_iterate_work(mr, cl, clear);
   328     }
   329   }
   330 }
   332 // NOTE: For this to work correctly, it is important that
   333 // we look for non-clean cards below (so as to catch those
   334 // marked precleaned), rather than look explicitly for dirty
   335 // cards (and miss those marked precleaned). In that sense,
   336 // the name precleaned is currently somewhat of a misnomer.
   337 void CardTableModRefBS::non_clean_card_iterate_work(MemRegion mr,
   338                                                     MemRegionClosure* cl,
   339                                                     bool clear) {
   340   // Figure out whether we have to worry about parallelism.
   341   bool is_par = (SharedHeap::heap()->n_par_threads() > 1);
   342   for (int i = 0; i < _cur_covered_regions; i++) {
   343     MemRegion mri = mr.intersection(_covered[i]);
   344     if (mri.word_size() > 0) {
   345       jbyte* cur_entry = byte_for(mri.last());
   346       jbyte* limit = byte_for(mri.start());
   347       while (cur_entry >= limit) {
   348         jbyte* next_entry = cur_entry - 1;
   349         if (*cur_entry != clean_card) {
   350           size_t non_clean_cards = 1;
   351           // Should the next card be included in this range of dirty cards.
   352           while (next_entry >= limit && *next_entry != clean_card) {
   353             non_clean_cards++;
   354             cur_entry = next_entry;
   355             next_entry--;
   356           }
   357           // The memory region may not be on a card boundary.  So that
   358           // objects beyond the end of the region are not processed, make
   359           // cur_cards precise with regard to the end of the memory region.
   360           MemRegion cur_cards(addr_for(cur_entry),
   361                               non_clean_cards * card_size_in_words);
   362           MemRegion dirty_region = cur_cards.intersection(mri);
   363           if (clear) {
   364             for (size_t i = 0; i < non_clean_cards; i++) {
   365               // Clean the dirty cards (but leave the other non-clean
   366               // alone.)  If parallel, do the cleaning atomically.
   367               jbyte cur_entry_val = cur_entry[i];
   368               if (card_is_dirty_wrt_gen_iter(cur_entry_val)) {
   369                 if (is_par) {
   370                   jbyte res = Atomic::cmpxchg(clean_card, &cur_entry[i], cur_entry_val);
   371                   assert(res != clean_card,
   372                          "Dirty card mysteriously cleaned");
   373                 } else {
   374                   cur_entry[i] = clean_card;
   375                 }
   376               }
   377             }
   378           }
   379           cl->do_MemRegion(dirty_region);
   380         }
   381         cur_entry = next_entry;
   382       }
   383     }
   384   }
   385 }
   387 void CardTableModRefBS::mod_oop_in_space_iterate(Space* sp,
   388                                                  OopClosure* cl,
   389                                                  bool clear,
   390                                                  bool before_save_marks) {
   391   // Note that dcto_cl is resource-allocated, so there is no
   392   // corresponding "delete".
   393   DirtyCardToOopClosure* dcto_cl = sp->new_dcto_cl(cl, precision());
   394   MemRegion used_mr;
   395   if (before_save_marks) {
   396     used_mr = sp->used_region_at_save_marks();
   397   } else {
   398     used_mr = sp->used_region();
   399   }
   400   non_clean_card_iterate(sp, used_mr, dcto_cl, dcto_cl, clear);
   401 }
   403 void CardTableModRefBS::dirty_MemRegion(MemRegion mr) {
   404   jbyte* cur  = byte_for(mr.start());
   405   jbyte* last = byte_after(mr.last());
   406   while (cur < last) {
   407     *cur = dirty_card;
   408     cur++;
   409   }
   410 }
   412 void CardTableModRefBS::invalidate(MemRegion mr, bool whole_heap) {
   413   for (int i = 0; i < _cur_covered_regions; i++) {
   414     MemRegion mri = mr.intersection(_covered[i]);
   415     if (!mri.is_empty()) dirty_MemRegion(mri);
   416   }
   417 }
   419 void CardTableModRefBS::clear_MemRegion(MemRegion mr) {
   420   // Be conservative: only clean cards entirely contained within the
   421   // region.
   422   jbyte* cur;
   423   if (mr.start() == _whole_heap.start()) {
   424     cur = byte_for(mr.start());
   425   } else {
   426     assert(mr.start() > _whole_heap.start(), "mr is not covered.");
   427     cur = byte_after(mr.start() - 1);
   428   }
   429   jbyte* last = byte_after(mr.last());
   430   memset(cur, clean_card, pointer_delta(last, cur, sizeof(jbyte)));
   431 }
   433 void CardTableModRefBS::clear(MemRegion mr) {
   434   for (int i = 0; i < _cur_covered_regions; i++) {
   435     MemRegion mri = mr.intersection(_covered[i]);
   436     if (!mri.is_empty()) clear_MemRegion(mri);
   437   }
   438 }
   440 void CardTableModRefBS::dirty(MemRegion mr) {
   441   jbyte* first = byte_for(mr.start());
   442   jbyte* last  = byte_after(mr.last());
   443   memset(first, dirty_card, last-first);
   444 }
   446 // NOTES:
   447 // (1) Unlike mod_oop_in_space_iterate() above, dirty_card_iterate()
   448 //     iterates over dirty cards ranges in increasing address order.
   449 void CardTableModRefBS::dirty_card_iterate(MemRegion mr,
   450                                            MemRegionClosure* cl) {
   451   for (int i = 0; i < _cur_covered_regions; i++) {
   452     MemRegion mri = mr.intersection(_covered[i]);
   453     if (!mri.is_empty()) {
   454       jbyte *cur_entry, *next_entry, *limit;
   455       for (cur_entry = byte_for(mri.start()), limit = byte_for(mri.last());
   456            cur_entry <= limit;
   457            cur_entry  = next_entry) {
   458         next_entry = cur_entry + 1;
   459         if (*cur_entry == dirty_card) {
   460           size_t dirty_cards;
   461           // Accumulate maximal dirty card range, starting at cur_entry
   462           for (dirty_cards = 1;
   463                next_entry <= limit && *next_entry == dirty_card;
   464                dirty_cards++, next_entry++);
   465           MemRegion cur_cards(addr_for(cur_entry),
   466                               dirty_cards*card_size_in_words);
   467           cl->do_MemRegion(cur_cards);
   468         }
   469       }
   470     }
   471   }
   472 }
   474 MemRegion CardTableModRefBS::dirty_card_range_after_reset(MemRegion mr,
   475                                                           bool reset,
   476                                                           int reset_val) {
   477   for (int i = 0; i < _cur_covered_regions; i++) {
   478     MemRegion mri = mr.intersection(_covered[i]);
   479     if (!mri.is_empty()) {
   480       jbyte* cur_entry, *next_entry, *limit;
   481       for (cur_entry = byte_for(mri.start()), limit = byte_for(mri.last());
   482            cur_entry <= limit;
   483            cur_entry  = next_entry) {
   484         next_entry = cur_entry + 1;
   485         if (*cur_entry == dirty_card) {
   486           size_t dirty_cards;
   487           // Accumulate maximal dirty card range, starting at cur_entry
   488           for (dirty_cards = 1;
   489                next_entry <= limit && *next_entry == dirty_card;
   490                dirty_cards++, next_entry++);
   491           MemRegion cur_cards(addr_for(cur_entry),
   492                               dirty_cards*card_size_in_words);
   493           if (reset) {
   494             for (size_t i = 0; i < dirty_cards; i++) {
   495               cur_entry[i] = reset_val;
   496             }
   497           }
   498           return cur_cards;
   499         }
   500       }
   501     }
   502   }
   503   return MemRegion(mr.end(), mr.end());
   504 }
   506 // Set all the dirty cards in the given region to "precleaned" state.
   507 void CardTableModRefBS::preclean_dirty_cards(MemRegion mr) {
   508   for (int i = 0; i < _cur_covered_regions; i++) {
   509     MemRegion mri = mr.intersection(_covered[i]);
   510     if (!mri.is_empty()) {
   511       jbyte *cur_entry, *limit;
   512       for (cur_entry = byte_for(mri.start()), limit = byte_for(mri.last());
   513            cur_entry <= limit;
   514            cur_entry++) {
   515         if (*cur_entry == dirty_card) {
   516           *cur_entry = precleaned_card;
   517         }
   518       }
   519     }
   520   }
   521 }
   523 uintx CardTableModRefBS::ct_max_alignment_constraint() {
   524   return card_size * os::vm_page_size();
   525 }
   527 void CardTableModRefBS::verify_guard() {
   528   // For product build verification
   529   guarantee(_byte_map[_guard_index] == last_card,
   530             "card table guard has been modified");
   531 }
   533 void CardTableModRefBS::verify() {
   534   verify_guard();
   535 }
   537 #ifndef PRODUCT
   538 class GuaranteeNotModClosure: public MemRegionClosure {
   539   CardTableModRefBS* _ct;
   540 public:
   541   GuaranteeNotModClosure(CardTableModRefBS* ct) : _ct(ct) {}
   542   void do_MemRegion(MemRegion mr) {
   543     jbyte* entry = _ct->byte_for(mr.start());
   544     guarantee(*entry != CardTableModRefBS::clean_card,
   545               "Dirty card in region that should be clean");
   546   }
   547 };
   549 void CardTableModRefBS::verify_clean_region(MemRegion mr) {
   550   GuaranteeNotModClosure blk(this);
   551   non_clean_card_iterate_work(mr, &blk, false);
   552 }
   553 #endif
   555 bool CardTableModRefBSForCTRS::card_will_be_scanned(jbyte cv) {
   556   return
   557     CardTableModRefBS::card_will_be_scanned(cv) ||
   558     _rs->is_prev_nonclean_card_val(cv);
   559 };
   561 bool CardTableModRefBSForCTRS::card_may_have_been_dirty(jbyte cv) {
   562   return
   563     cv != clean_card &&
   564     (CardTableModRefBS::card_may_have_been_dirty(cv) ||
   565      CardTableRS::youngergen_may_have_been_dirty(cv));
   566 };

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