1f953c3fe1
TEST=ci Change-Id: Ia0d0f181b8d54c3ec0e1cc8f2076bea7854379ab Reviewed-on: https://dart-review.googlesource.com/c/sdk/+/311142 Commit-Queue: Ryan Macnak <rmacnak@google.com> Reviewed-by: Alexander Aprelev <aam@google.com>
327 lines
9.8 KiB
C++
327 lines
9.8 KiB
C++
// Copyright (c) 2012, the Dart project authors. Please see the AUTHORS file
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// for details. All rights reserved. Use of this source code is governed by a
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// BSD-style license that can be found in the LICENSE file.
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#ifndef RUNTIME_VM_HEAP_SCAVENGER_H_
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#define RUNTIME_VM_HEAP_SCAVENGER_H_
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#include "platform/assert.h"
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#include "platform/utils.h"
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#include "vm/dart.h"
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#include "vm/flags.h"
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#include "vm/globals.h"
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#include "vm/heap/page.h"
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#include "vm/heap/spaces.h"
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#include "vm/isolate.h"
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#include "vm/lockers.h"
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#include "vm/raw_object.h"
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#include "vm/ring_buffer.h"
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#include "vm/virtual_memory.h"
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#include "vm/visitor.h"
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namespace dart {
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// Forward declarations.
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class Heap;
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class Isolate;
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class JSONObject;
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class ObjectSet;
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template <bool parallel>
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class ScavengerVisitorBase;
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class SemiSpace {
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public:
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explicit SemiSpace(intptr_t max_capacity_in_words);
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~SemiSpace();
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Page* TryAllocatePageLocked(bool link);
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bool Contains(uword addr) const;
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void WriteProtect(bool read_only);
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intptr_t used_in_words() const {
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intptr_t size = 0;
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for (const Page* p = head_; p != nullptr; p = p->next()) {
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size += p->used();
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}
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return size >> kWordSizeLog2;
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}
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intptr_t capacity_in_words() const { return capacity_in_words_; }
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intptr_t max_capacity_in_words() const { return max_capacity_in_words_; }
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Page* head() const { return head_; }
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void AddList(Page* head, Page* tail);
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private:
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// Size of NewPages in this semi-space.
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intptr_t capacity_in_words_ = 0;
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// Size of NewPages before we trigger a scavenge.
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intptr_t max_capacity_in_words_;
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Page* head_ = nullptr;
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Page* tail_ = nullptr;
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};
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// Statistics for a particular scavenge.
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class ScavengeStats {
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public:
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ScavengeStats() {}
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ScavengeStats(int64_t start_micros,
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int64_t end_micros,
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SpaceUsage before,
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SpaceUsage after,
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intptr_t promo_candidates_in_words,
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intptr_t promoted_in_words,
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intptr_t abandoned_in_words)
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: start_micros_(start_micros),
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end_micros_(end_micros),
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before_(before),
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after_(after),
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promo_candidates_in_words_(promo_candidates_in_words),
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promoted_in_words_(promoted_in_words),
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abandoned_in_words_(abandoned_in_words) {}
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// Of all data before scavenge, what fraction was found to be garbage?
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// If this scavenge included growth, assume the extra capacity would become
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// garbage to give the scavenger a chance to stabilize at the new capacity.
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double ExpectedGarbageFraction() const {
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double work =
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after_.used_in_words + promoted_in_words_ + abandoned_in_words_;
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return 1.0 - (work / after_.capacity_in_words);
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}
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// Fraction of promotion candidates that survived and was thereby promoted.
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// Returns zero if there were no promotion candidates.
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double PromoCandidatesSuccessFraction() const {
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return promo_candidates_in_words_ > 0
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? promoted_in_words_ /
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static_cast<double>(promo_candidates_in_words_)
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: 0.0;
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}
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intptr_t UsedBeforeInWords() const { return before_.used_in_words; }
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int64_t DurationMicros() const { return end_micros_ - start_micros_; }
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private:
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int64_t start_micros_;
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int64_t end_micros_;
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SpaceUsage before_;
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SpaceUsage after_;
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intptr_t promo_candidates_in_words_;
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intptr_t promoted_in_words_;
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intptr_t abandoned_in_words_;
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};
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class Scavenger {
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private:
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static constexpr intptr_t kTLABSize = 512 * KB;
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public:
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Scavenger(Heap* heap, intptr_t max_semi_capacity_in_words);
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~Scavenger();
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// Check whether this Scavenger contains this address.
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// During scavenging both the to and from spaces contain "legal" objects.
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// During a scavenge this function only returns true for addresses that will
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// be part of the surviving objects.
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bool Contains(uword addr) const { return to_->Contains(addr); }
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uword TryAllocate(Thread* thread, intptr_t size) {
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uword addr = TryAllocateFromTLAB(thread, size);
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if (LIKELY(addr != 0)) {
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return addr;
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}
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TryAllocateNewTLAB(thread, size, true);
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return TryAllocateFromTLAB(thread, size);
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}
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uword TryAllocateNoSafepoint(Thread* thread, intptr_t size) {
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uword addr = TryAllocateFromTLAB(thread, size);
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if (LIKELY(addr != 0)) {
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return addr;
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}
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TryAllocateNewTLAB(thread, size, false);
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return TryAllocateFromTLAB(thread, size);
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}
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void AbandonRemainingTLAB(Thread* thread);
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void AbandonRemainingTLABForDebugging(Thread* thread);
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// Collect the garbage in this scavenger.
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void Scavenge(Thread* thread, GCType type, GCReason reason);
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int64_t UsedInWords() const {
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MutexLocker ml(&space_lock_);
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return to_->used_in_words();
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}
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int64_t CapacityInWords() const { return to_->max_capacity_in_words(); }
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int64_t ExternalInWords() const { return external_size_ >> kWordSizeLog2; }
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SpaceUsage GetCurrentUsage() const {
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SpaceUsage usage;
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usage.used_in_words = UsedInWords();
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usage.capacity_in_words = CapacityInWords();
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usage.external_in_words = ExternalInWords();
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return usage;
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}
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void VisitObjects(ObjectVisitor* visitor) const;
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void VisitObjectPointers(ObjectPointerVisitor* visitor) const;
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void AddRegionsToObjectSet(ObjectSet* set) const;
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void WriteProtect(bool read_only);
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bool ShouldPerformIdleScavenge(int64_t deadline);
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void AddGCTime(int64_t micros) { gc_time_micros_ += micros; }
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int64_t gc_time_micros() const { return gc_time_micros_; }
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void IncrementCollections() { collections_++; }
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intptr_t collections() const { return collections_; }
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#ifndef PRODUCT
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void PrintToJSONObject(JSONObject* object) const;
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#endif // !PRODUCT
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// Tracks an external allocation by incrementing the new space's total
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// external size tracker. Returns false without incrementing the tracker if
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// this allocation will make it exceed kMaxAddrSpaceInWords.
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bool AllocatedExternal(intptr_t size) {
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ASSERT(size >= 0);
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intptr_t expected = external_size_.load();
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intptr_t desired;
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do {
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intptr_t next_external_size_in_words =
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(external_size_ >> kWordSizeLog2) + (size >> kWordSizeLog2);
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if (next_external_size_in_words < 0 ||
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next_external_size_in_words > kMaxAddrSpaceInWords) {
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return false;
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}
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desired = expected + size;
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ASSERT(desired >= 0);
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} while (!external_size_.compare_exchange_weak(expected, desired));
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return true;
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}
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void FreedExternal(intptr_t size) {
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ASSERT(size >= 0);
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external_size_ -= size;
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ASSERT(external_size_ >= 0);
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}
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int64_t FreeSpaceInWords(Isolate* isolate) const;
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// The maximum number of Dart mutator threads we allow to execute at the same
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// time.
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static intptr_t MaxMutatorThreadCount() {
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// With a max new-space of 16 MB and 512kb TLABs we would allow up to 8
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// mutator threads to run at the same time.
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const intptr_t max_parallel_tlab_usage =
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(FLAG_new_gen_semi_max_size * MB) / Scavenger::kTLABSize;
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const intptr_t max_pool_size = max_parallel_tlab_usage / 4;
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return max_pool_size > 0 ? max_pool_size : 1;
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}
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Page* head() const {
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return to_->head();
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}
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private:
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// Ids for time and data records in Heap::GCStats.
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enum {
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// Time
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kDummyScavengeTime = 0,
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kSafePoint = 1,
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kVisitIsolateRoots = 2,
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kIterateStoreBuffers = 3,
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kProcessToSpace = 4,
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kIterateWeaks = 5,
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};
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uword TryAllocateFromTLAB(Thread* thread, intptr_t size) {
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ASSERT(Utils::IsAligned(size, kObjectAlignment));
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ASSERT(heap_ != Dart::vm_isolate_group()->heap());
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const uword result = thread->top();
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const intptr_t remaining = static_cast<intptr_t>(thread->end()) - result;
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ASSERT(remaining >= 0);
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if (UNLIKELY(remaining < size)) {
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return 0;
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}
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ASSERT(to_->Contains(result));
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ASSERT((result & kObjectAlignmentMask) == kNewObjectAlignmentOffset);
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thread->set_top(result + size);
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return result;
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}
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void TryAllocateNewTLAB(Thread* thread, intptr_t size, bool can_safepoint);
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SemiSpace* Prologue(GCReason reason);
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intptr_t ParallelScavenge(SemiSpace* from);
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intptr_t SerialScavenge(SemiSpace* from);
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void ReverseScavenge(SemiSpace** from);
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void IterateIsolateRoots(ObjectPointerVisitor* visitor);
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template <bool parallel>
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void IterateStoreBuffers(ScavengerVisitorBase<parallel>* visitor);
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template <bool parallel>
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void IterateRememberedCards(ScavengerVisitorBase<parallel>* visitor);
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void IterateObjectIdTable(ObjectPointerVisitor* visitor);
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template <bool parallel>
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void IterateRoots(ScavengerVisitorBase<parallel>* visitor);
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void MournWeakHandles();
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void Epilogue(SemiSpace* from);
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void VerifyStoreBuffers(const char* msg);
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void UpdateMaxHeapCapacity();
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void UpdateMaxHeapUsage();
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void MournWeakTables();
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intptr_t NewSizeInWords(intptr_t old_size_in_words, GCReason reason) const;
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Heap* heap_;
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SemiSpace* to_;
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PromotionStack promotion_stack_;
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intptr_t max_semi_capacity_in_words_;
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// Keep track whether a scavenge is currently running.
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bool scavenging_;
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bool early_tenure_ = false;
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RelaxedAtomic<intptr_t> root_slices_started_;
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StoreBufferBlock* blocks_ = nullptr;
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int64_t gc_time_micros_;
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intptr_t collections_;
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static constexpr int kStatsHistoryCapacity = 4;
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RingBuffer<ScavengeStats, kStatsHistoryCapacity> stats_history_;
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intptr_t scavenge_words_per_micro_;
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intptr_t idle_scavenge_threshold_in_words_;
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// The total size of external data associated with objects in this scavenger.
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RelaxedAtomic<intptr_t> external_size_;
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RelaxedAtomic<bool> failed_to_promote_;
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RelaxedAtomic<bool> abort_;
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// Protects new space during the allocation of new TLABs
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mutable Mutex space_lock_;
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template <bool>
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friend class ScavengerVisitorBase;
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friend class ScavengerWeakVisitor;
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friend class ScavengerFinalizerVisitor;
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DISALLOW_COPY_AND_ASSIGN(Scavenger);
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};
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} // namespace dart
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#endif // RUNTIME_VM_HEAP_SCAVENGER_H_
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