1018981977
libsanitizer/ * All source files: Merge from upstream 285547. * configure.tgt (SANITIZER_COMMON_TARGET_DEPENDENT_OBJECTS): New variable. * configure.ac (SANITIZER_COMMON_TARGET_DEPENDENT_OBJECTS): Handle it. * asan/Makefile.am (asan_files): Add new files. * asan/Makefile.in: Regenerate. * ubsan/Makefile.in: Likewise. * lsan/Makefile.in: Likewise. * tsan/Makefile.am (tsan_files): Add new files. * tsan/Makefile.in: Regenerate. * sanitizer_common/Makefile.am (sanitizer_common_files): Add new files. (EXTRA_libsanitizer_common_la_SOURCES): Define. (libsanitizer_common_la_LIBADD): Likewise. (libsanitizer_common_la_DEPENDENCIES): Likewise. * sanitizer_common/Makefile.in: Regenerate. * interception/Makefile.in: Likewise. * libbacktace/Makefile.in: Likewise. * Makefile.in: Likewise. * configure: Likewise. * merge.sh: Handle builtins/assembly.h merging. * builtins/assembly.h: New file. * asan/libtool-version: Bump the libasan SONAME. From-SVN: r241977
247 lines
8.4 KiB
C++
247 lines
8.4 KiB
C++
//===-- sanitizer_allocator_local_cache.h -----------------------*- C++ -*-===//
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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//
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// Part of the Sanitizer Allocator.
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//
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//===----------------------------------------------------------------------===//
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#ifndef SANITIZER_ALLOCATOR_H
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#error This file must be included inside sanitizer_allocator.h
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#endif
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// Objects of this type should be used as local caches for SizeClassAllocator64
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// or SizeClassAllocator32. Since the typical use of this class is to have one
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// object per thread in TLS, is has to be POD.
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template<class SizeClassAllocator>
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struct SizeClassAllocatorLocalCache
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: SizeClassAllocator::AllocatorCache {
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};
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// Cache used by SizeClassAllocator64.
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template <class SizeClassAllocator>
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struct SizeClassAllocator64LocalCache {
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typedef SizeClassAllocator Allocator;
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static const uptr kNumClasses = SizeClassAllocator::kNumClasses;
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typedef typename Allocator::SizeClassMapT SizeClassMap;
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typedef typename Allocator::CompactPtrT CompactPtrT;
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void Init(AllocatorGlobalStats *s) {
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stats_.Init();
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if (s)
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s->Register(&stats_);
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}
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void Destroy(SizeClassAllocator *allocator, AllocatorGlobalStats *s) {
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Drain(allocator);
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if (s)
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s->Unregister(&stats_);
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}
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void *Allocate(SizeClassAllocator *allocator, uptr class_id) {
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CHECK_NE(class_id, 0UL);
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CHECK_LT(class_id, kNumClasses);
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stats_.Add(AllocatorStatAllocated, Allocator::ClassIdToSize(class_id));
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PerClass *c = &per_class_[class_id];
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if (UNLIKELY(c->count == 0))
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Refill(c, allocator, class_id);
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CHECK_GT(c->count, 0);
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CompactPtrT chunk = c->chunks[--c->count];
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void *res = reinterpret_cast<void *>(allocator->CompactPtrToPointer(
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allocator->GetRegionBeginBySizeClass(class_id), chunk));
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return res;
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}
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void Deallocate(SizeClassAllocator *allocator, uptr class_id, void *p) {
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CHECK_NE(class_id, 0UL);
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CHECK_LT(class_id, kNumClasses);
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// If the first allocator call on a new thread is a deallocation, then
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// max_count will be zero, leading to check failure.
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InitCache();
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stats_.Sub(AllocatorStatAllocated, Allocator::ClassIdToSize(class_id));
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PerClass *c = &per_class_[class_id];
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CHECK_NE(c->max_count, 0UL);
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if (UNLIKELY(c->count == c->max_count))
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Drain(c, allocator, class_id, c->max_count / 2);
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CompactPtrT chunk = allocator->PointerToCompactPtr(
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allocator->GetRegionBeginBySizeClass(class_id),
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reinterpret_cast<uptr>(p));
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c->chunks[c->count++] = chunk;
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}
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void Drain(SizeClassAllocator *allocator) {
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for (uptr class_id = 0; class_id < kNumClasses; class_id++) {
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PerClass *c = &per_class_[class_id];
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while (c->count > 0)
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Drain(c, allocator, class_id, c->count);
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}
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}
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// private:
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struct PerClass {
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u32 count;
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u32 max_count;
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CompactPtrT chunks[2 * SizeClassMap::kMaxNumCachedHint];
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};
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PerClass per_class_[kNumClasses];
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AllocatorStats stats_;
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void InitCache() {
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if (per_class_[1].max_count)
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return;
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for (uptr i = 0; i < kNumClasses; i++) {
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PerClass *c = &per_class_[i];
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c->max_count = 2 * SizeClassMap::MaxCachedHint(i);
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}
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}
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NOINLINE void Refill(PerClass *c, SizeClassAllocator *allocator,
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uptr class_id) {
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InitCache();
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uptr num_requested_chunks = SizeClassMap::MaxCachedHint(class_id);
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allocator->GetFromAllocator(&stats_, class_id, c->chunks,
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num_requested_chunks);
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c->count = num_requested_chunks;
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}
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NOINLINE void Drain(PerClass *c, SizeClassAllocator *allocator, uptr class_id,
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uptr count) {
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InitCache();
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CHECK_GE(c->count, count);
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uptr first_idx_to_drain = c->count - count;
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c->count -= count;
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allocator->ReturnToAllocator(&stats_, class_id,
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&c->chunks[first_idx_to_drain], count);
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}
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};
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// Cache used by SizeClassAllocator32.
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template <class SizeClassAllocator>
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struct SizeClassAllocator32LocalCache {
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typedef SizeClassAllocator Allocator;
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typedef typename Allocator::TransferBatch TransferBatch;
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static const uptr kNumClasses = SizeClassAllocator::kNumClasses;
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void Init(AllocatorGlobalStats *s) {
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stats_.Init();
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if (s)
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s->Register(&stats_);
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}
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void Destroy(SizeClassAllocator *allocator, AllocatorGlobalStats *s) {
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Drain(allocator);
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if (s)
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s->Unregister(&stats_);
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}
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void *Allocate(SizeClassAllocator *allocator, uptr class_id) {
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CHECK_NE(class_id, 0UL);
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CHECK_LT(class_id, kNumClasses);
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stats_.Add(AllocatorStatAllocated, Allocator::ClassIdToSize(class_id));
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PerClass *c = &per_class_[class_id];
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if (UNLIKELY(c->count == 0))
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Refill(allocator, class_id);
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void *res = c->batch[--c->count];
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PREFETCH(c->batch[c->count - 1]);
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return res;
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}
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void Deallocate(SizeClassAllocator *allocator, uptr class_id, void *p) {
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CHECK_NE(class_id, 0UL);
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CHECK_LT(class_id, kNumClasses);
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// If the first allocator call on a new thread is a deallocation, then
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// max_count will be zero, leading to check failure.
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InitCache();
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stats_.Sub(AllocatorStatAllocated, Allocator::ClassIdToSize(class_id));
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PerClass *c = &per_class_[class_id];
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CHECK_NE(c->max_count, 0UL);
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if (UNLIKELY(c->count == c->max_count))
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Drain(allocator, class_id);
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c->batch[c->count++] = p;
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}
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void Drain(SizeClassAllocator *allocator) {
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for (uptr class_id = 0; class_id < kNumClasses; class_id++) {
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PerClass *c = &per_class_[class_id];
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while (c->count > 0)
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Drain(allocator, class_id);
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}
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}
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// private:
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typedef typename SizeClassAllocator::SizeClassMapT SizeClassMap;
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struct PerClass {
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uptr count;
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uptr max_count;
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void *batch[2 * TransferBatch::kMaxNumCached];
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};
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PerClass per_class_[kNumClasses];
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AllocatorStats stats_;
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void InitCache() {
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if (per_class_[1].max_count)
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return;
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for (uptr i = 0; i < kNumClasses; i++) {
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PerClass *c = &per_class_[i];
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c->max_count = 2 * TransferBatch::MaxCached(i);
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}
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}
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// TransferBatch class is declared in SizeClassAllocator.
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// We transfer chunks between central and thread-local free lists in batches.
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// For small size classes we allocate batches separately.
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// For large size classes we may use one of the chunks to store the batch.
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// sizeof(TransferBatch) must be a power of 2 for more efficient allocation.
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static uptr SizeClassForTransferBatch(uptr class_id) {
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if (Allocator::ClassIdToSize(class_id) <
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TransferBatch::AllocationSizeRequiredForNElements(
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TransferBatch::MaxCached(class_id)))
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return SizeClassMap::ClassID(sizeof(TransferBatch));
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return 0;
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}
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// Returns a TransferBatch suitable for class_id.
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// For small size classes allocates the batch from the allocator.
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// For large size classes simply returns b.
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TransferBatch *CreateBatch(uptr class_id, SizeClassAllocator *allocator,
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TransferBatch *b) {
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if (uptr batch_class_id = SizeClassForTransferBatch(class_id))
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return (TransferBatch*)Allocate(allocator, batch_class_id);
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return b;
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}
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// Destroys TransferBatch b.
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// For small size classes deallocates b to the allocator.
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// Does notthing for large size classes.
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void DestroyBatch(uptr class_id, SizeClassAllocator *allocator,
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TransferBatch *b) {
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if (uptr batch_class_id = SizeClassForTransferBatch(class_id))
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Deallocate(allocator, batch_class_id, b);
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}
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NOINLINE void Refill(SizeClassAllocator *allocator, uptr class_id) {
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InitCache();
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PerClass *c = &per_class_[class_id];
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TransferBatch *b = allocator->AllocateBatch(&stats_, this, class_id);
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CHECK_GT(b->Count(), 0);
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b->CopyToArray(c->batch);
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c->count = b->Count();
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DestroyBatch(class_id, allocator, b);
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}
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NOINLINE void Drain(SizeClassAllocator *allocator, uptr class_id) {
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InitCache();
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PerClass *c = &per_class_[class_id];
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uptr cnt = Min(c->max_count / 2, c->count);
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uptr first_idx_to_drain = c->count - cnt;
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TransferBatch *b = CreateBatch(
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class_id, allocator, (TransferBatch *)c->batch[first_idx_to_drain]);
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b->SetFromArray(allocator->GetRegionBeginBySizeClass(class_id),
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&c->batch[first_idx_to_drain], cnt);
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c->count -= cnt;
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allocator->DeallocateBatch(&stats_, class_id, b);
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}
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};
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