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Repaired or selectively disabled offending formats; future-proofed with additional checking Reviewed-by: kvn, jrose, stefank
484 lines
24 KiB
C++
484 lines
24 KiB
C++
/*
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* Copyright (c) 2007, 2014, Oracle and/or its affiliates. All rights reserved.
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* DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
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*
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* This code is free software; you can redistribute it and/or modify it
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* under the terms of the GNU General Public License version 2 only, as
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* published by the Free Software Foundation.
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*
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* This code is distributed in the hope that it will be useful, but WITHOUT
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* ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
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* FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
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* version 2 for more details (a copy is included in the LICENSE file that
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* accompanied this code).
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*
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* You should have received a copy of the GNU General Public License version
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* 2 along with this work; if not, write to the Free Software Foundation,
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* Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
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*
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* Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
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* or visit www.oracle.com if you need additional information or have any
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* questions.
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*
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*/
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#include "precompiled.hpp"
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#include "memory/allocation.inline.hpp"
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#include "memory/cardTableModRefBS.hpp"
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#include "memory/cardTableRS.hpp"
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#include "memory/sharedHeap.hpp"
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#include "memory/space.inline.hpp"
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#include "memory/universe.hpp"
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#include "oops/oop.inline.hpp"
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#include "runtime/java.hpp"
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#include "runtime/mutexLocker.hpp"
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#include "runtime/orderAccess.inline.hpp"
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#include "runtime/virtualspace.hpp"
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#include "runtime/vmThread.hpp"
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PRAGMA_FORMAT_MUTE_WARNINGS_FOR_GCC
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void CardTableModRefBS::non_clean_card_iterate_parallel_work(Space* sp, MemRegion mr,
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OopsInGenClosure* cl,
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CardTableRS* ct,
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int n_threads) {
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assert(n_threads > 0, "Error: expected n_threads > 0");
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assert((n_threads == 1 && ParallelGCThreads == 0) ||
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n_threads <= (int)ParallelGCThreads,
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"# worker threads != # requested!");
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assert(!Thread::current()->is_VM_thread() || (n_threads == 1), "There is only 1 VM thread");
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assert(UseDynamicNumberOfGCThreads ||
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!FLAG_IS_DEFAULT(ParallelGCThreads) ||
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n_threads == (int)ParallelGCThreads,
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"# worker threads != # requested!");
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// Make sure the LNC array is valid for the space.
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jbyte** lowest_non_clean;
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uintptr_t lowest_non_clean_base_chunk_index;
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size_t lowest_non_clean_chunk_size;
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get_LNC_array_for_space(sp, lowest_non_clean,
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lowest_non_clean_base_chunk_index,
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lowest_non_clean_chunk_size);
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uint n_strides = n_threads * ParGCStridesPerThread;
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SequentialSubTasksDone* pst = sp->par_seq_tasks();
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// Sets the condition for completion of the subtask (how many threads
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// need to finish in order to be done).
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pst->set_n_threads(n_threads);
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pst->set_n_tasks(n_strides);
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uint stride = 0;
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while (!pst->is_task_claimed(/* reference */ stride)) {
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process_stride(sp, mr, stride, n_strides, cl, ct,
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lowest_non_clean,
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lowest_non_clean_base_chunk_index,
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lowest_non_clean_chunk_size);
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}
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if (pst->all_tasks_completed()) {
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// Clear lowest_non_clean array for next time.
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intptr_t first_chunk_index = addr_to_chunk_index(mr.start());
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uintptr_t last_chunk_index = addr_to_chunk_index(mr.last());
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for (uintptr_t ch = first_chunk_index; ch <= last_chunk_index; ch++) {
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intptr_t ind = ch - lowest_non_clean_base_chunk_index;
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assert(0 <= ind && ind < (intptr_t)lowest_non_clean_chunk_size,
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"Bounds error");
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lowest_non_clean[ind] = NULL;
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}
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}
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}
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void
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CardTableModRefBS::
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process_stride(Space* sp,
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MemRegion used,
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jint stride, int n_strides,
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OopsInGenClosure* cl,
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CardTableRS* ct,
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jbyte** lowest_non_clean,
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uintptr_t lowest_non_clean_base_chunk_index,
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size_t lowest_non_clean_chunk_size) {
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// We go from higher to lower addresses here; it wouldn't help that much
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// because of the strided parallelism pattern used here.
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// Find the first card address of the first chunk in the stride that is
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// at least "bottom" of the used region.
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jbyte* start_card = byte_for(used.start());
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jbyte* end_card = byte_after(used.last());
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uintptr_t start_chunk = addr_to_chunk_index(used.start());
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uintptr_t start_chunk_stride_num = start_chunk % n_strides;
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jbyte* chunk_card_start;
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if ((uintptr_t)stride >= start_chunk_stride_num) {
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chunk_card_start = (jbyte*)(start_card +
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(stride - start_chunk_stride_num) *
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ParGCCardsPerStrideChunk);
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} else {
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// Go ahead to the next chunk group boundary, then to the requested stride.
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chunk_card_start = (jbyte*)(start_card +
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(n_strides - start_chunk_stride_num + stride) *
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ParGCCardsPerStrideChunk);
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}
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while (chunk_card_start < end_card) {
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// Even though we go from lower to higher addresses below, the
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// strided parallelism can interleave the actual processing of the
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// dirty pages in various ways. For a specific chunk within this
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// stride, we take care to avoid double scanning or missing a card
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// by suitably initializing the "min_done" field in process_chunk_boundaries()
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// below, together with the dirty region extension accomplished in
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// DirtyCardToOopClosure::do_MemRegion().
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jbyte* chunk_card_end = chunk_card_start + ParGCCardsPerStrideChunk;
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// Invariant: chunk_mr should be fully contained within the "used" region.
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MemRegion chunk_mr = MemRegion(addr_for(chunk_card_start),
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chunk_card_end >= end_card ?
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used.end() : addr_for(chunk_card_end));
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assert(chunk_mr.word_size() > 0, "[chunk_card_start > used_end)");
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assert(used.contains(chunk_mr), "chunk_mr should be subset of used");
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DirtyCardToOopClosure* dcto_cl = sp->new_dcto_cl(cl, precision(),
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cl->gen_boundary());
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ClearNoncleanCardWrapper clear_cl(dcto_cl, ct);
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// Process the chunk.
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process_chunk_boundaries(sp,
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dcto_cl,
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chunk_mr,
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used,
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lowest_non_clean,
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lowest_non_clean_base_chunk_index,
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lowest_non_clean_chunk_size);
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// We want the LNC array updates above in process_chunk_boundaries
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// to be visible before any of the card table value changes as a
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// result of the dirty card iteration below.
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OrderAccess::storestore();
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// We do not call the non_clean_card_iterate_serial() version because
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// we want to clear the cards: clear_cl here does the work of finding
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// contiguous dirty ranges of cards to process and clear.
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clear_cl.do_MemRegion(chunk_mr);
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// Find the next chunk of the stride.
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chunk_card_start += ParGCCardsPerStrideChunk * n_strides;
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}
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}
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// If you want a talkative process_chunk_boundaries,
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// then #define NOISY(x) x
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#ifdef NOISY
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#error "Encountered a global preprocessor flag, NOISY, which might clash with local definition to follow"
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#else
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#define NOISY(x)
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#endif
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void
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CardTableModRefBS::
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process_chunk_boundaries(Space* sp,
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DirtyCardToOopClosure* dcto_cl,
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MemRegion chunk_mr,
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MemRegion used,
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jbyte** lowest_non_clean,
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uintptr_t lowest_non_clean_base_chunk_index,
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size_t lowest_non_clean_chunk_size)
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{
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// We must worry about non-array objects that cross chunk boundaries,
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// because such objects are both precisely and imprecisely marked:
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// .. if the head of such an object is dirty, the entire object
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// needs to be scanned, under the interpretation that this
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// was an imprecise mark
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// .. if the head of such an object is not dirty, we can assume
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// precise marking and it's efficient to scan just the dirty
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// cards.
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// In either case, each scanned reference must be scanned precisely
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// once so as to avoid cloning of a young referent. For efficiency,
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// our closures depend on this property and do not protect against
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// double scans.
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uintptr_t cur_chunk_index = addr_to_chunk_index(chunk_mr.start());
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cur_chunk_index = cur_chunk_index - lowest_non_clean_base_chunk_index;
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NOISY(tty->print_cr("===========================================================================");)
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NOISY(tty->print_cr(" process_chunk_boundary: Called with [" PTR_FORMAT "," PTR_FORMAT ")",
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chunk_mr.start(), chunk_mr.end());)
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// First, set "our" lowest_non_clean entry, which would be
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// used by the thread scanning an adjoining left chunk with
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// a non-array object straddling the mutual boundary.
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// Find the object that spans our boundary, if one exists.
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// first_block is the block possibly straddling our left boundary.
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HeapWord* first_block = sp->block_start(chunk_mr.start());
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assert((chunk_mr.start() != used.start()) || (first_block == chunk_mr.start()),
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"First chunk should always have a co-initial block");
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// Does the block straddle the chunk's left boundary, and is it
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// a non-array object?
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if (first_block < chunk_mr.start() // first block straddles left bdry
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&& sp->block_is_obj(first_block) // first block is an object
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&& !(oop(first_block)->is_objArray() // first block is not an array (arrays are precisely dirtied)
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|| oop(first_block)->is_typeArray())) {
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// Find our least non-clean card, so that a left neighbor
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// does not scan an object straddling the mutual boundary
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// too far to the right, and attempt to scan a portion of
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// that object twice.
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jbyte* first_dirty_card = NULL;
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jbyte* last_card_of_first_obj =
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byte_for(first_block + sp->block_size(first_block) - 1);
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jbyte* first_card_of_cur_chunk = byte_for(chunk_mr.start());
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jbyte* last_card_of_cur_chunk = byte_for(chunk_mr.last());
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jbyte* last_card_to_check =
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(jbyte*) MIN2((intptr_t) last_card_of_cur_chunk,
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(intptr_t) last_card_of_first_obj);
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// Note that this does not need to go beyond our last card
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// if our first object completely straddles this chunk.
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for (jbyte* cur = first_card_of_cur_chunk;
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cur <= last_card_to_check; cur++) {
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jbyte val = *cur;
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if (card_will_be_scanned(val)) {
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first_dirty_card = cur; break;
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} else {
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assert(!card_may_have_been_dirty(val), "Error");
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}
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}
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if (first_dirty_card != NULL) {
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NOISY(tty->print_cr(" LNC: Found a dirty card at " PTR_FORMAT " in current chunk",
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first_dirty_card);)
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assert(0 <= cur_chunk_index && cur_chunk_index < lowest_non_clean_chunk_size,
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"Bounds error.");
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assert(lowest_non_clean[cur_chunk_index] == NULL,
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"Write exactly once : value should be stable hereafter for this round");
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lowest_non_clean[cur_chunk_index] = first_dirty_card;
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} NOISY(else {
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tty->print_cr(" LNC: Found no dirty card in current chunk; leaving LNC entry NULL");
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// In the future, we could have this thread look for a non-NULL value to copy from its
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// right neighbor (up to the end of the first object).
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if (last_card_of_cur_chunk < last_card_of_first_obj) {
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tty->print_cr(" LNC: BEWARE!!! first obj straddles past right end of chunk:\n"
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" might be efficient to get value from right neighbor?");
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}
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})
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} else {
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// In this case we can help our neighbor by just asking them
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// to stop at our first card (even though it may not be dirty).
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NOISY(tty->print_cr(" LNC: first block is not a non-array object; setting LNC to first card of current chunk");)
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assert(lowest_non_clean[cur_chunk_index] == NULL, "Write once : value should be stable hereafter");
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jbyte* first_card_of_cur_chunk = byte_for(chunk_mr.start());
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lowest_non_clean[cur_chunk_index] = first_card_of_cur_chunk;
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}
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NOISY(tty->print_cr(" process_chunk_boundary: lowest_non_clean[" INTPTR_FORMAT "] = " PTR_FORMAT
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" which corresponds to the heap address " PTR_FORMAT,
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cur_chunk_index, lowest_non_clean[cur_chunk_index],
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(lowest_non_clean[cur_chunk_index] != NULL)
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? addr_for(lowest_non_clean[cur_chunk_index])
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: NULL);)
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NOISY(tty->print_cr("---------------------------------------------------------------------------");)
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// Next, set our own max_to_do, which will strictly/exclusively bound
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// the highest address that we will scan past the right end of our chunk.
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HeapWord* max_to_do = NULL;
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if (chunk_mr.end() < used.end()) {
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// This is not the last chunk in the used region.
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// What is our last block? We check the first block of
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// the next (right) chunk rather than strictly check our last block
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// because it's potentially more efficient to do so.
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HeapWord* const last_block = sp->block_start(chunk_mr.end());
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assert(last_block <= chunk_mr.end(), "In case this property changes.");
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if ((last_block == chunk_mr.end()) // our last block does not straddle boundary
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|| !sp->block_is_obj(last_block) // last_block isn't an object
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|| oop(last_block)->is_objArray() // last_block is an array (precisely marked)
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|| oop(last_block)->is_typeArray()) {
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max_to_do = chunk_mr.end();
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NOISY(tty->print_cr(" process_chunk_boundary: Last block on this card is not a non-array object;\n"
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" max_to_do left at " PTR_FORMAT, max_to_do);)
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} else {
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assert(last_block < chunk_mr.end(), "Tautology");
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// It is a non-array object that straddles the right boundary of this chunk.
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// last_obj_card is the card corresponding to the start of the last object
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// in the chunk. Note that the last object may not start in
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// the chunk.
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jbyte* const last_obj_card = byte_for(last_block);
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const jbyte val = *last_obj_card;
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if (!card_will_be_scanned(val)) {
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assert(!card_may_have_been_dirty(val), "Error");
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// The card containing the head is not dirty. Any marks on
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// subsequent cards still in this chunk must have been made
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// precisely; we can cap processing at the end of our chunk.
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max_to_do = chunk_mr.end();
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NOISY(tty->print_cr(" process_chunk_boundary: Head of last object on this card is not dirty;\n"
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" max_to_do left at " PTR_FORMAT,
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max_to_do);)
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} else {
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// The last object must be considered dirty, and extends onto the
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// following chunk. Look for a dirty card in that chunk that will
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// bound our processing.
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jbyte* limit_card = NULL;
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const size_t last_block_size = sp->block_size(last_block);
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jbyte* const last_card_of_last_obj =
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byte_for(last_block + last_block_size - 1);
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jbyte* const first_card_of_next_chunk = byte_for(chunk_mr.end());
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// This search potentially goes a long distance looking
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// for the next card that will be scanned, terminating
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// at the end of the last_block, if no earlier dirty card
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// is found.
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assert(byte_for(chunk_mr.end()) - byte_for(chunk_mr.start()) == ParGCCardsPerStrideChunk,
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"last card of next chunk may be wrong");
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for (jbyte* cur = first_card_of_next_chunk;
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cur <= last_card_of_last_obj; cur++) {
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const jbyte val = *cur;
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if (card_will_be_scanned(val)) {
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NOISY(tty->print_cr(" Found a non-clean card " PTR_FORMAT " with value 0x%x",
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cur, (int)val);)
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limit_card = cur; break;
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} else {
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assert(!card_may_have_been_dirty(val), "Error: card can't be skipped");
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}
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}
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if (limit_card != NULL) {
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max_to_do = addr_for(limit_card);
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assert(limit_card != NULL && max_to_do != NULL, "Error");
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NOISY(tty->print_cr(" process_chunk_boundary: Found a dirty card at " PTR_FORMAT
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" max_to_do set at " PTR_FORMAT " which is before end of last block in chunk: "
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PTR_FORMAT " + " PTR_FORMAT " = " PTR_FORMAT,
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limit_card, max_to_do, last_block, last_block_size, (last_block+last_block_size));)
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} else {
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// The following is a pessimistic value, because it's possible
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// that a dirty card on a subsequent chunk has been cleared by
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// the time we get to look at it; we'll correct for that further below,
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// using the LNC array which records the least non-clean card
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// before cards were cleared in a particular chunk.
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limit_card = last_card_of_last_obj;
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max_to_do = last_block + last_block_size;
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assert(limit_card != NULL && max_to_do != NULL, "Error");
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NOISY(tty->print_cr(" process_chunk_boundary: Found no dirty card before end of last block in chunk\n"
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" Setting limit_card to " PTR_FORMAT
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" and max_to_do " PTR_FORMAT " + " PTR_FORMAT " = " PTR_FORMAT,
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limit_card, last_block, last_block_size, max_to_do);)
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}
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assert(0 < cur_chunk_index+1 && cur_chunk_index+1 < lowest_non_clean_chunk_size,
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"Bounds error.");
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// It is possible that a dirty card for the last object may have been
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// cleared before we had a chance to examine it. In that case, the value
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// will have been logged in the LNC for that chunk.
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// We need to examine as many chunks to the right as this object
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// covers. However, we need to bound this checking to the largest
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// entry in the LNC array: this is because the heap may expand
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// after the LNC array has been created but before we reach this point,
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// and the last block in our chunk may have been expanded to include
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// the expansion delta (and possibly subsequently allocated from, so
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// it wouldn't be sufficient to check whether that last block was
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// or was not an object at this point).
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uintptr_t last_chunk_index_to_check = addr_to_chunk_index(last_block + last_block_size - 1)
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- lowest_non_clean_base_chunk_index;
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const uintptr_t last_chunk_index = addr_to_chunk_index(used.last())
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- lowest_non_clean_base_chunk_index;
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if (last_chunk_index_to_check > last_chunk_index) {
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assert(last_block + last_block_size > used.end(),
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err_msg("Inconsistency detected: last_block [" PTR_FORMAT "," PTR_FORMAT "]"
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" does not exceed used.end() = " PTR_FORMAT ","
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" yet last_chunk_index_to_check " INTPTR_FORMAT
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" exceeds last_chunk_index " INTPTR_FORMAT,
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last_block, last_block + last_block_size,
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used.end(),
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last_chunk_index_to_check, last_chunk_index));
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assert(sp->used_region().end() > used.end(),
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err_msg("Expansion did not happen: "
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"[" PTR_FORMAT "," PTR_FORMAT ") -> [" PTR_FORMAT "," PTR_FORMAT ")",
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sp->used_region().start(), sp->used_region().end(), used.start(), used.end()));
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NOISY(tty->print_cr(" process_chunk_boundary: heap expanded; explicitly bounding last_chunk");)
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last_chunk_index_to_check = last_chunk_index;
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}
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for (uintptr_t lnc_index = cur_chunk_index + 1;
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lnc_index <= last_chunk_index_to_check;
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lnc_index++) {
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jbyte* lnc_card = lowest_non_clean[lnc_index];
|
|
if (lnc_card != NULL) {
|
|
// we can stop at the first non-NULL entry we find
|
|
if (lnc_card <= limit_card) {
|
|
NOISY(tty->print_cr(" process_chunk_boundary: LNC card " PTR_FORMAT " is lower than limit_card " PTR_FORMAT,
|
|
" max_to_do will be lowered to " PTR_FORMAT " from " PTR_FORMAT,
|
|
lnc_card, limit_card, addr_for(lnc_card), max_to_do);)
|
|
limit_card = lnc_card;
|
|
max_to_do = addr_for(limit_card);
|
|
assert(limit_card != NULL && max_to_do != NULL, "Error");
|
|
}
|
|
// In any case, we break now
|
|
break;
|
|
} // else continue to look for a non-NULL entry if any
|
|
}
|
|
assert(limit_card != NULL && max_to_do != NULL, "Error");
|
|
}
|
|
assert(max_to_do != NULL, "OOPS 1 !");
|
|
}
|
|
assert(max_to_do != NULL, "OOPS 2!");
|
|
} else {
|
|
max_to_do = used.end();
|
|
NOISY(tty->print_cr(" process_chunk_boundary: Last chunk of this space;\n"
|
|
" max_to_do left at " PTR_FORMAT,
|
|
max_to_do);)
|
|
}
|
|
assert(max_to_do != NULL, "OOPS 3!");
|
|
// Now we can set the closure we're using so it doesn't to beyond
|
|
// max_to_do.
|
|
dcto_cl->set_min_done(max_to_do);
|
|
#ifndef PRODUCT
|
|
dcto_cl->set_last_bottom(max_to_do);
|
|
#endif
|
|
NOISY(tty->print_cr("===========================================================================\n");)
|
|
}
|
|
|
|
#undef NOISY
|
|
|
|
void
|
|
CardTableModRefBS::
|
|
get_LNC_array_for_space(Space* sp,
|
|
jbyte**& lowest_non_clean,
|
|
uintptr_t& lowest_non_clean_base_chunk_index,
|
|
size_t& lowest_non_clean_chunk_size) {
|
|
|
|
int i = find_covering_region_containing(sp->bottom());
|
|
MemRegion covered = _covered[i];
|
|
size_t n_chunks = chunks_to_cover(covered);
|
|
|
|
// Only the first thread to obtain the lock will resize the
|
|
// LNC array for the covered region. Any later expansion can't affect
|
|
// the used_at_save_marks region.
|
|
// (I observed a bug in which the first thread to execute this would
|
|
// resize, and then it would cause "expand_and_allocate" that would
|
|
// increase the number of chunks in the covered region. Then a second
|
|
// thread would come and execute this, see that the size didn't match,
|
|
// and free and allocate again. So the first thread would be using a
|
|
// freed "_lowest_non_clean" array.)
|
|
|
|
// Do a dirty read here. If we pass the conditional then take the rare
|
|
// event lock and do the read again in case some other thread had already
|
|
// succeeded and done the resize.
|
|
int cur_collection = Universe::heap()->total_collections();
|
|
if (_last_LNC_resizing_collection[i] != cur_collection) {
|
|
MutexLocker x(ParGCRareEvent_lock);
|
|
if (_last_LNC_resizing_collection[i] != cur_collection) {
|
|
if (_lowest_non_clean[i] == NULL ||
|
|
n_chunks != _lowest_non_clean_chunk_size[i]) {
|
|
|
|
// Should we delete the old?
|
|
if (_lowest_non_clean[i] != NULL) {
|
|
assert(n_chunks != _lowest_non_clean_chunk_size[i],
|
|
"logical consequence");
|
|
FREE_C_HEAP_ARRAY(CardPtr, _lowest_non_clean[i], mtGC);
|
|
_lowest_non_clean[i] = NULL;
|
|
}
|
|
// Now allocate a new one if necessary.
|
|
if (_lowest_non_clean[i] == NULL) {
|
|
_lowest_non_clean[i] = NEW_C_HEAP_ARRAY(CardPtr, n_chunks, mtGC);
|
|
_lowest_non_clean_chunk_size[i] = n_chunks;
|
|
_lowest_non_clean_base_chunk_index[i] = addr_to_chunk_index(covered.start());
|
|
for (int j = 0; j < (int)n_chunks; j++)
|
|
_lowest_non_clean[i][j] = NULL;
|
|
}
|
|
}
|
|
_last_LNC_resizing_collection[i] = cur_collection;
|
|
}
|
|
}
|
|
// In any case, now do the initialization.
|
|
lowest_non_clean = _lowest_non_clean[i];
|
|
lowest_non_clean_base_chunk_index = _lowest_non_clean_base_chunk_index[i];
|
|
lowest_non_clean_chunk_size = _lowest_non_clean_chunk_size[i];
|
|
}
|