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Elliott Hughes2faa5f12012-01-30 14:42:07 -08001/*
2 * Copyright (C) 2011 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 * http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
Carl Shapiro69759ea2011-07-21 18:13:35 -070016
Brian Carlstrom578bbdc2011-07-21 14:07:47 -070017#include "heap.h"
Carl Shapiro58551df2011-07-24 03:09:51 -070018
Mathieu Chartier752a0e62013-06-27 11:03:27 -070019#define ATRACE_TAG ATRACE_TAG_DALVIK
20#include <cutils/trace.h>
Brian Carlstrom5643b782012-02-05 12:32:53 -080021
Brian Carlstrom58ae9412011-10-04 00:56:06 -070022#include <limits>
Ian Rogers700a4022014-05-19 16:49:03 -070023#include <memory>
Carl Shapiro58551df2011-07-24 03:09:51 -070024#include <vector>
25
Mathieu Chartierbad02672014-08-25 13:08:22 -070026#include "base/allocator.h"
Ian Rogersc7dd2952014-10-21 23:31:19 -070027#include "base/dumpable.h"
Mathieu Chartierb2f99362013-11-20 17:26:00 -080028#include "base/histogram-inl.h"
Elliott Hughes1aa246d2012-12-13 09:29:36 -080029#include "base/stl_util.h"
Mathieu Chartier987ccff2013-07-08 11:05:21 -070030#include "common_throws.h"
Ian Rogers48931882013-01-22 14:35:16 -080031#include "cutils/sched_policy.h"
Elliott Hughes767a1472011-10-26 18:49:02 -070032#include "debugger.h"
Ian Rogers1d54e732013-05-02 21:10:01 -070033#include "gc/accounting/atomic_stack.h"
34#include "gc/accounting/card_table-inl.h"
35#include "gc/accounting/heap_bitmap-inl.h"
Mathieu Chartier590fee92013-09-13 13:46:47 -070036#include "gc/accounting/mod_union_table.h"
Ian Rogers1d54e732013-05-02 21:10:01 -070037#include "gc/accounting/mod_union_table-inl.h"
Hiroshi Yamauchi38e68e92014-03-07 13:59:08 -080038#include "gc/accounting/remembered_set.h"
Ian Rogers1d54e732013-05-02 21:10:01 -070039#include "gc/accounting/space_bitmap-inl.h"
Hiroshi Yamauchid5307ec2014-03-27 21:07:51 -070040#include "gc/collector/concurrent_copying.h"
Mathieu Chartier52e4b432014-06-10 11:22:31 -070041#include "gc/collector/mark_compact.h"
Ian Rogers1d54e732013-05-02 21:10:01 -070042#include "gc/collector/mark_sweep-inl.h"
43#include "gc/collector/partial_mark_sweep.h"
Mathieu Chartier590fee92013-09-13 13:46:47 -070044#include "gc/collector/semi_space.h"
Ian Rogers1d54e732013-05-02 21:10:01 -070045#include "gc/collector/sticky_mark_sweep.h"
Mathieu Chartier78f7b4c2014-05-06 10:57:27 -070046#include "gc/reference_processor.h"
Mathieu Chartier590fee92013-09-13 13:46:47 -070047#include "gc/space/bump_pointer_space.h"
Hiroshi Yamauchi50b29282013-07-30 13:58:37 -070048#include "gc/space/dlmalloc_space-inl.h"
Ian Rogers1d54e732013-05-02 21:10:01 -070049#include "gc/space/image_space.h"
50#include "gc/space/large_object_space.h"
Hiroshi Yamauchicf58d4a2013-09-26 14:21:22 -070051#include "gc/space/rosalloc_space-inl.h"
Ian Rogers1d54e732013-05-02 21:10:01 -070052#include "gc/space/space-inl.h"
Mathieu Chartiera1602f22014-01-13 17:19:19 -080053#include "gc/space/zygote_space.h"
Mathieu Chartierd8891782014-03-02 13:28:37 -080054#include "entrypoints/quick/quick_alloc_entrypoints.h"
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -070055#include "heap-inl.h"
Brian Carlstrom9cff8e12011-08-18 16:47:29 -070056#include "image.h"
Mathieu Chartiereb175f72014-10-31 11:49:27 -070057#include "intern_table.h"
Brian Carlstromea46f952013-07-30 01:26:50 -070058#include "mirror/art_field-inl.h"
Ian Rogers2dd0e2c2013-01-24 12:42:14 -080059#include "mirror/class-inl.h"
Ian Rogers2dd0e2c2013-01-24 12:42:14 -080060#include "mirror/object.h"
61#include "mirror/object-inl.h"
62#include "mirror/object_array-inl.h"
Mathieu Chartier8fa2dad2014-03-13 12:22:56 -070063#include "mirror/reference-inl.h"
Brian Carlstrom5643b782012-02-05 12:32:53 -080064#include "os.h"
Ian Rogers53b8b092014-03-13 23:45:53 -070065#include "reflection.h"
Mathieu Chartier0de9f732013-11-22 17:58:48 -080066#include "runtime.h"
Mathieu Chartier7664f5c2012-06-08 18:15:32 -070067#include "ScopedLocalRef.h"
Ian Rogers00f7d0e2012-07-19 15:28:27 -070068#include "scoped_thread_state_change.h"
Mathieu Chartiereb8167a2014-05-07 15:43:14 -070069#include "handle_scope-inl.h"
Elliott Hughes8d768a92011-09-14 16:35:25 -070070#include "thread_list.h"
Elliott Hugheseac76672012-05-24 21:56:51 -070071#include "well_known_classes.h"
Carl Shapiro69759ea2011-07-21 18:13:35 -070072
73namespace art {
Mathieu Chartier50482232013-11-21 11:48:14 -080074
Ian Rogers1d54e732013-05-02 21:10:01 -070075namespace gc {
Carl Shapiro69759ea2011-07-21 18:13:35 -070076
Mathieu Chartier91e30632014-03-25 15:58:50 -070077static constexpr size_t kCollectorTransitionStressIterations = 0;
78static constexpr size_t kCollectorTransitionStressWait = 10 * 1000; // Microseconds
Mathieu Chartier720ef762013-08-17 14:46:54 -070079static constexpr bool kGCALotMode = false;
80static constexpr size_t kGcAlotInterval = KB;
Ian Rogers1d54e732013-05-02 21:10:01 -070081// Minimum amount of remaining bytes before a concurrent GC is triggered.
Mathieu Chartier720ef762013-08-17 14:46:54 -070082static constexpr size_t kMinConcurrentRemainingBytes = 128 * KB;
Mathieu Chartier74762802014-01-24 10:21:35 -080083static constexpr size_t kMaxConcurrentRemainingBytes = 512 * KB;
Mathieu Chartierdf86d1f2014-04-08 13:44:04 -070084// Sticky GC throughput adjustment, divided by 4. Increasing this causes sticky GC to occur more
Mathieu Chartier73d1e172014-04-11 17:53:48 -070085// relative to partial/full GC. This may be desirable since sticky GCs interfere less with mutator
Mathieu Chartierdf86d1f2014-04-08 13:44:04 -070086// threads (lower pauses, use less memory bandwidth).
Mathieu Chartier73d1e172014-04-11 17:53:48 -070087static constexpr double kStickyGcThroughputAdjustment = 1.0;
Mathieu Chartierc1790162014-05-23 10:54:50 -070088// Whether or not we compact the zygote in PreZygoteFork.
Mathieu Chartier31f44142014-04-08 14:40:03 -070089static constexpr bool kCompactZygote = kMovingCollector;
Mathieu Chartierc1790162014-05-23 10:54:50 -070090// How many reserve entries are at the end of the allocation stack, these are only needed if the
91// allocation stack overflows.
92static constexpr size_t kAllocationStackReserveSize = 1024;
93// Default mark stack size in bytes.
94static const size_t kDefaultMarkStackSize = 64 * KB;
Zuo Wangf37a88b2014-07-10 04:26:41 -070095// Define space name.
96static const char* kDlMallocSpaceName[2] = {"main dlmalloc space", "main dlmalloc space 1"};
97static const char* kRosAllocSpaceName[2] = {"main rosalloc space", "main rosalloc space 1"};
98static const char* kMemMapSpaceName[2] = {"main space", "main space 1"};
Mathieu Chartierb363f662014-07-16 13:28:58 -070099static constexpr size_t kGSSBumpPointerSpaceCapacity = 32 * MB;
Mathieu Chartier0051be62012-10-12 17:47:11 -0700100
Mathieu Chartier0051be62012-10-12 17:47:11 -0700101Heap::Heap(size_t initial_size, size_t growth_limit, size_t min_free, size_t max_free,
Mathieu Chartier6a7824d2014-08-22 14:53:04 -0700102 double target_utilization, double foreground_heap_growth_multiplier,
103 size_t capacity, size_t non_moving_space_capacity, const std::string& image_file_name,
104 const InstructionSet image_instruction_set, CollectorType foreground_collector_type,
Mathieu Chartier2dbe6272014-09-16 10:43:23 -0700105 CollectorType background_collector_type,
106 space::LargeObjectSpaceType large_object_space_type, size_t large_object_threshold,
107 size_t parallel_gc_threads, size_t conc_gc_threads, bool low_memory_mode,
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800108 size_t long_pause_log_threshold, size_t long_gc_log_threshold,
Mathieu Chartier6f365cc2014-04-23 12:42:27 -0700109 bool ignore_max_footprint, bool use_tlab,
110 bool verify_pre_gc_heap, bool verify_pre_sweeping_heap, bool verify_post_gc_heap,
111 bool verify_pre_gc_rosalloc, bool verify_pre_sweeping_rosalloc,
Zuo Wangf37a88b2014-07-10 04:26:41 -0700112 bool verify_post_gc_rosalloc, bool use_homogeneous_space_compaction_for_oom,
113 uint64_t min_interval_homogeneous_space_compaction_by_oom)
Mathieu Chartiercbb2d202013-11-14 17:45:16 -0800114 : non_moving_space_(nullptr),
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800115 rosalloc_space_(nullptr),
116 dlmalloc_space_(nullptr),
Mathieu Chartierfc5b5282014-01-09 16:15:36 -0800117 main_space_(nullptr),
Mathieu Chartier7bf82af2013-12-06 16:51:45 -0800118 collector_type_(kCollectorTypeNone),
Mathieu Chartier31f44142014-04-08 14:40:03 -0700119 foreground_collector_type_(foreground_collector_type),
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800120 background_collector_type_(background_collector_type),
Mathieu Chartier31f44142014-04-08 14:40:03 -0700121 desired_collector_type_(foreground_collector_type_),
Mathieu Chartiera5f9de02014-02-28 16:48:42 -0800122 heap_trim_request_lock_(nullptr),
Mathieu Chartier7bf52d22014-03-13 14:46:09 -0700123 last_trim_time_(0),
Mathieu Chartierb2728552014-09-08 20:08:41 +0000124 heap_transition_or_trim_target_time_(0),
Mathieu Chartiera5f9de02014-02-28 16:48:42 -0800125 heap_trim_request_pending_(false),
Mathieu Chartier2775ee42013-08-20 17:43:47 -0700126 parallel_gc_threads_(parallel_gc_threads),
127 conc_gc_threads_(conc_gc_threads),
Mathieu Chartiere0a53e92013-08-05 10:17:40 -0700128 low_memory_mode_(low_memory_mode),
Mathieu Chartier2775ee42013-08-20 17:43:47 -0700129 long_pause_log_threshold_(long_pause_log_threshold),
130 long_gc_log_threshold_(long_gc_log_threshold),
131 ignore_max_footprint_(ignore_max_footprint),
Mathieu Chartier8e4a96d2014-05-21 10:44:32 -0700132 zygote_creation_lock_("zygote creation lock", kZygoteCreationLock),
Mathieu Chartiere4cab172014-08-19 18:24:04 -0700133 zygote_space_(nullptr),
Mathieu Chartier2dbe6272014-09-16 10:43:23 -0700134 large_object_threshold_(large_object_threshold),
Mathieu Chartierd5a89ee2014-01-31 09:55:13 -0800135 collector_type_running_(kCollectorTypeNone),
Ian Rogers1d54e732013-05-02 21:10:01 -0700136 last_gc_type_(collector::kGcTypeNone),
Mathieu Chartierbdd0fb92013-07-02 10:16:15 -0700137 next_gc_type_(collector::kGcTypePartial),
Mathieu Chartier80de7a62012-11-27 17:21:50 -0800138 capacity_(capacity),
Mathieu Chartier2fde5332012-09-14 14:51:54 -0700139 growth_limit_(growth_limit),
Mathieu Chartier0051be62012-10-12 17:47:11 -0700140 max_allowed_footprint_(initial_size),
Mathieu Chartier987ccff2013-07-08 11:05:21 -0700141 native_footprint_gc_watermark_(initial_size),
Mathieu Chartier590fee92013-09-13 13:46:47 -0700142 native_need_to_run_finalization_(false),
Mathieu Chartierca2a24d2013-11-25 15:12:12 -0800143 // Initially assume we perceive jank in case the process state is never updated.
144 process_state_(kProcessStateJankPerceptible),
Mathieu Chartier7bf82af2013-12-06 16:51:45 -0800145 concurrent_start_bytes_(std::numeric_limits<size_t>::max()),
Ian Rogers1d54e732013-05-02 21:10:01 -0700146 total_bytes_freed_ever_(0),
147 total_objects_freed_ever_(0),
Elliott Hughesb3bd5f02012-03-08 21:05:27 -0800148 num_bytes_allocated_(0),
Mathieu Chartier987ccff2013-07-08 11:05:21 -0700149 native_bytes_allocated_(0),
Mathieu Chartierc7b83a02012-09-11 18:07:39 -0700150 verify_missing_card_marks_(false),
151 verify_system_weaks_(false),
Mathieu Chartier938a03b2014-01-16 15:10:31 -0800152 verify_pre_gc_heap_(verify_pre_gc_heap),
Mathieu Chartier6f365cc2014-04-23 12:42:27 -0700153 verify_pre_sweeping_heap_(verify_pre_sweeping_heap),
Mathieu Chartier938a03b2014-01-16 15:10:31 -0800154 verify_post_gc_heap_(verify_post_gc_heap),
Mathieu Chartierfd678be2012-08-30 14:50:54 -0700155 verify_mod_union_table_(false),
Hiroshi Yamauchia4adbfd2014-02-04 18:12:17 -0800156 verify_pre_gc_rosalloc_(verify_pre_gc_rosalloc),
Mathieu Chartier6f365cc2014-04-23 12:42:27 -0700157 verify_pre_sweeping_rosalloc_(verify_pre_sweeping_rosalloc),
Hiroshi Yamauchia4adbfd2014-02-04 18:12:17 -0800158 verify_post_gc_rosalloc_(verify_post_gc_rosalloc),
Mathieu Chartieraff59a82014-06-06 17:51:16 -0700159 last_gc_time_ns_(NanoTime()),
Mathieu Chartier65db8802012-11-20 12:36:46 -0800160 allocation_rate_(0),
Mathieu Chartier0418ae22013-07-31 13:35:46 -0700161 /* For GC a lot mode, we limit the allocations stacks to be kGcAlotInterval allocations. This
162 * causes a lot of GC since we do a GC for alloc whenever the stack is full. When heap
163 * verification is enabled, we limit the size of allocation stacks to speed up their
164 * searching.
165 */
166 max_allocation_stack_size_(kGCALotMode ? kGcAlotInterval
Mathieu Chartier4e305412014-02-19 10:54:44 -0800167 : (kVerifyObjectSupport > kVerifyObjectModeFast) ? KB : MB),
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800168 current_allocator_(kAllocatorTypeDlMalloc),
169 current_non_moving_allocator_(kAllocatorTypeNonMoving),
Mathieu Chartier590fee92013-09-13 13:46:47 -0700170 bump_pointer_space_(nullptr),
171 temp_space_(nullptr),
Mathieu Chartier0051be62012-10-12 17:47:11 -0700172 min_free_(min_free),
173 max_free_(max_free),
174 target_utilization_(target_utilization),
Mathieu Chartier2f8da3e2014-04-15 15:37:02 -0700175 foreground_heap_growth_multiplier_(foreground_heap_growth_multiplier),
Mathieu Chartier155dfe92012-10-09 14:24:49 -0700176 total_wait_time_(0),
Mathieu Chartier155dfe92012-10-09 14:24:49 -0700177 total_allocation_time_(0),
Mathieu Chartier4e305412014-02-19 10:54:44 -0800178 verify_object_mode_(kVerifyObjectModeDisabled),
Mathieu Chartier1d27b342014-01-28 12:51:09 -0800179 disable_moving_gc_count_(0),
Mathieu Chartierda44d772014-04-01 15:01:46 -0700180 running_on_valgrind_(Runtime::Current()->RunningOnValgrind()),
Zuo Wangf37a88b2014-07-10 04:26:41 -0700181 use_tlab_(use_tlab),
182 main_space_backup_(nullptr),
Mathieu Chartierb363f662014-07-16 13:28:58 -0700183 min_interval_homogeneous_space_compaction_by_oom_(
184 min_interval_homogeneous_space_compaction_by_oom),
Zuo Wangf37a88b2014-07-10 04:26:41 -0700185 last_time_homogeneous_space_compaction_by_oom_(NanoTime()),
186 use_homogeneous_space_compaction_for_oom_(use_homogeneous_space_compaction_for_oom) {
Elliott Hughes4dd9b4d2011-12-12 18:29:24 -0800187 if (VLOG_IS_ON(heap) || VLOG_IS_ON(startup)) {
Elliott Hughesb3bd5f02012-03-08 21:05:27 -0800188 LOG(INFO) << "Heap() entering";
Brian Carlstrom0a5b14d2011-09-27 13:29:15 -0700189 }
Mathieu Chartier50482232013-11-21 11:48:14 -0800190 // If we aren't the zygote, switch to the default non zygote allocator. This may update the
191 // entrypoints.
Mathieu Chartier8e219ae2014-08-19 14:29:46 -0700192 const bool is_zygote = Runtime::Current()->IsZygote();
193 if (!is_zygote) {
Mathieu Chartier31f44142014-04-08 14:40:03 -0700194 // Background compaction is currently not supported for command line runs.
195 if (background_collector_type_ != foreground_collector_type_) {
Mathieu Chartier52ba1992014-05-07 14:39:21 -0700196 VLOG(heap) << "Disabling background compaction for non zygote";
Mathieu Chartier31f44142014-04-08 14:40:03 -0700197 background_collector_type_ = foreground_collector_type_;
Mathieu Chartierbd0a6532014-02-27 11:14:21 -0800198 }
Mathieu Chartier50482232013-11-21 11:48:14 -0800199 }
Mathieu Chartiera5f9de02014-02-28 16:48:42 -0800200 ChangeCollector(desired_collector_type_);
Ian Rogers1d54e732013-05-02 21:10:01 -0700201 live_bitmap_.reset(new accounting::HeapBitmap(this));
202 mark_bitmap_.reset(new accounting::HeapBitmap(this));
Ian Rogers30fab402012-01-23 15:43:46 -0800203 // Requested begin for the alloc space, to follow the mapped image and oat files
Ian Rogers13735952014-10-08 12:43:28 -0700204 uint8_t* requested_alloc_space_begin = nullptr;
Brian Carlstrom5643b782012-02-05 12:32:53 -0800205 if (!image_file_name.empty()) {
Alex Light64ad14d2014-08-19 14:23:13 -0700206 std::string error_msg;
Narayan Kamath11d9f062014-04-23 20:24:57 +0100207 space::ImageSpace* image_space = space::ImageSpace::Create(image_file_name.c_str(),
Alex Light64ad14d2014-08-19 14:23:13 -0700208 image_instruction_set,
209 &error_msg);
210 if (image_space != nullptr) {
211 AddSpace(image_space);
212 // Oat files referenced by image files immediately follow them in memory, ensure alloc space
213 // isn't going to get in the middle
Ian Rogers13735952014-10-08 12:43:28 -0700214 uint8_t* oat_file_end_addr = image_space->GetImageHeader().GetOatFileEnd();
Alex Light64ad14d2014-08-19 14:23:13 -0700215 CHECK_GT(oat_file_end_addr, image_space->End());
216 requested_alloc_space_begin = AlignUp(oat_file_end_addr, kPageSize);
217 } else {
218 LOG(WARNING) << "Could not create image space with image file '" << image_file_name << "'. "
219 << "Attempting to fall back to imageless running. Error was: " << error_msg;
220 }
Brian Carlstrom69b15fb2011-09-03 12:25:21 -0700221 }
Zuo Wangf37a88b2014-07-10 04:26:41 -0700222 /*
223 requested_alloc_space_begin -> +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-
Mathieu Chartier6a7824d2014-08-22 14:53:04 -0700224 +- nonmoving space (non_moving_space_capacity)+-
Zuo Wangf37a88b2014-07-10 04:26:41 -0700225 +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-
Mathieu Chartier8e219ae2014-08-19 14:29:46 -0700226 +-????????????????????????????????????????????+-
227 +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-
Mathieu Chartierb363f662014-07-16 13:28:58 -0700228 +-main alloc space / bump space 1 (capacity_) +-
Zuo Wangf37a88b2014-07-10 04:26:41 -0700229 +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-
Mathieu Chartierb363f662014-07-16 13:28:58 -0700230 +-????????????????????????????????????????????+-
231 +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-
232 +-main alloc space2 / bump space 2 (capacity_)+-
Zuo Wangf37a88b2014-07-10 04:26:41 -0700233 +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-
234 */
Mathieu Chartierb363f662014-07-16 13:28:58 -0700235 bool support_homogeneous_space_compaction =
Mathieu Chartier0deeb812014-08-21 18:28:20 -0700236 background_collector_type_ == gc::kCollectorTypeHomogeneousSpaceCompact ||
Zuo Wangf37a88b2014-07-10 04:26:41 -0700237 use_homogeneous_space_compaction_for_oom;
Mathieu Chartierb363f662014-07-16 13:28:58 -0700238 // We may use the same space the main space for the non moving space if we don't need to compact
239 // from the main space.
240 // This is not the case if we support homogeneous compaction or have a moving background
241 // collector type.
Mathieu Chartierb363f662014-07-16 13:28:58 -0700242 bool separate_non_moving_space = is_zygote ||
243 support_homogeneous_space_compaction || IsMovingGc(foreground_collector_type_) ||
244 IsMovingGc(background_collector_type_);
245 if (foreground_collector_type == kCollectorTypeGSS) {
246 separate_non_moving_space = false;
247 }
248 std::unique_ptr<MemMap> main_mem_map_1;
249 std::unique_ptr<MemMap> main_mem_map_2;
Ian Rogers13735952014-10-08 12:43:28 -0700250 uint8_t* request_begin = requested_alloc_space_begin;
Mathieu Chartierb363f662014-07-16 13:28:58 -0700251 if (request_begin != nullptr && separate_non_moving_space) {
Mathieu Chartier6a7824d2014-08-22 14:53:04 -0700252 request_begin += non_moving_space_capacity;
Mathieu Chartierb363f662014-07-16 13:28:58 -0700253 }
254 std::string error_str;
255 std::unique_ptr<MemMap> non_moving_space_mem_map;
256 if (separate_non_moving_space) {
257 // Reserve the non moving mem map before the other two since it needs to be at a specific
258 // address.
259 non_moving_space_mem_map.reset(
260 MemMap::MapAnonymous("non moving space", requested_alloc_space_begin,
Mathieu Chartier6a7824d2014-08-22 14:53:04 -0700261 non_moving_space_capacity, PROT_READ | PROT_WRITE, true, &error_str));
Mathieu Chartierb363f662014-07-16 13:28:58 -0700262 CHECK(non_moving_space_mem_map != nullptr) << error_str;
Mathieu Chartierc44ce2e2014-08-25 16:32:41 -0700263 // Try to reserve virtual memory at a lower address if we have a separate non moving space.
Ian Rogers13735952014-10-08 12:43:28 -0700264 request_begin = reinterpret_cast<uint8_t*>(300 * MB);
Mathieu Chartierb363f662014-07-16 13:28:58 -0700265 }
266 // Attempt to create 2 mem maps at or after the requested begin.
267 main_mem_map_1.reset(MapAnonymousPreferredAddress(kMemMapSpaceName[0], request_begin, capacity_,
268 PROT_READ | PROT_WRITE, &error_str));
269 CHECK(main_mem_map_1.get() != nullptr) << error_str;
270 if (support_homogeneous_space_compaction ||
271 background_collector_type_ == kCollectorTypeSS ||
272 foreground_collector_type_ == kCollectorTypeSS) {
273 main_mem_map_2.reset(MapAnonymousPreferredAddress(kMemMapSpaceName[1], main_mem_map_1->End(),
274 capacity_, PROT_READ | PROT_WRITE,
275 &error_str));
276 CHECK(main_mem_map_2.get() != nullptr) << error_str;
277 }
278 // Create the non moving space first so that bitmaps don't take up the address range.
279 if (separate_non_moving_space) {
Mathieu Chartier31f44142014-04-08 14:40:03 -0700280 // Non moving space is always dlmalloc since we currently don't have support for multiple
Zuo Wangf37a88b2014-07-10 04:26:41 -0700281 // active rosalloc spaces.
Mathieu Chartierb363f662014-07-16 13:28:58 -0700282 const size_t size = non_moving_space_mem_map->Size();
283 non_moving_space_ = space::DlMallocSpace::CreateFromMemMap(
Mathieu Chartier6a7824d2014-08-22 14:53:04 -0700284 non_moving_space_mem_map.release(), "zygote / non moving space", kDefaultStartingSize,
Mathieu Chartierb363f662014-07-16 13:28:58 -0700285 initial_size, size, size, false);
Mathieu Chartier78408882014-04-11 18:06:01 -0700286 non_moving_space_->SetFootprintLimit(non_moving_space_->Capacity());
Mathieu Chartierb363f662014-07-16 13:28:58 -0700287 CHECK(non_moving_space_ != nullptr) << "Failed creating non moving space "
288 << requested_alloc_space_begin;
289 AddSpace(non_moving_space_);
290 }
291 // Create other spaces based on whether or not we have a moving GC.
292 if (IsMovingGc(foreground_collector_type_) && foreground_collector_type_ != kCollectorTypeGSS) {
293 // Create bump pointer spaces.
294 // We only to create the bump pointer if the foreground collector is a compacting GC.
295 // TODO: Place bump-pointer spaces somewhere to minimize size of card table.
296 bump_pointer_space_ = space::BumpPointerSpace::CreateFromMemMap("Bump pointer space 1",
297 main_mem_map_1.release());
298 CHECK(bump_pointer_space_ != nullptr) << "Failed to create bump pointer space";
299 AddSpace(bump_pointer_space_);
300 temp_space_ = space::BumpPointerSpace::CreateFromMemMap("Bump pointer space 2",
301 main_mem_map_2.release());
302 CHECK(temp_space_ != nullptr) << "Failed to create bump pointer space";
303 AddSpace(temp_space_);
304 CHECK(separate_non_moving_space);
Hiroshi Yamauchi5ccd4982014-03-11 12:19:04 -0700305 } else {
Mathieu Chartierb363f662014-07-16 13:28:58 -0700306 CreateMainMallocSpace(main_mem_map_1.release(), initial_size, growth_limit_, capacity_);
307 CHECK(main_space_ != nullptr);
308 AddSpace(main_space_);
309 if (!separate_non_moving_space) {
Zuo Wangf37a88b2014-07-10 04:26:41 -0700310 non_moving_space_ = main_space_;
Mathieu Chartierb363f662014-07-16 13:28:58 -0700311 CHECK(!non_moving_space_->CanMoveObjects());
312 }
313 if (foreground_collector_type_ == kCollectorTypeGSS) {
314 CHECK_EQ(foreground_collector_type_, background_collector_type_);
315 // Create bump pointer spaces instead of a backup space.
316 main_mem_map_2.release();
317 bump_pointer_space_ = space::BumpPointerSpace::Create("Bump pointer space 1",
318 kGSSBumpPointerSpaceCapacity, nullptr);
319 CHECK(bump_pointer_space_ != nullptr);
320 AddSpace(bump_pointer_space_);
321 temp_space_ = space::BumpPointerSpace::Create("Bump pointer space 2",
322 kGSSBumpPointerSpaceCapacity, nullptr);
323 CHECK(temp_space_ != nullptr);
324 AddSpace(temp_space_);
325 } else if (main_mem_map_2.get() != nullptr) {
326 const char* name = kUseRosAlloc ? kRosAllocSpaceName[1] : kDlMallocSpaceName[1];
327 main_space_backup_.reset(CreateMallocSpaceFromMemMap(main_mem_map_2.release(), initial_size,
328 growth_limit_, capacity_, name, true));
329 CHECK(main_space_backup_.get() != nullptr);
330 // Add the space so its accounted for in the heap_begin and heap_end.
331 AddSpace(main_space_backup_.get());
Zuo Wangf37a88b2014-07-10 04:26:41 -0700332 }
Hiroshi Yamauchi5ccd4982014-03-11 12:19:04 -0700333 }
Mathieu Chartier31f44142014-04-08 14:40:03 -0700334 CHECK(non_moving_space_ != nullptr);
Mathieu Chartierb363f662014-07-16 13:28:58 -0700335 CHECK(!non_moving_space_->CanMoveObjects());
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700336 // Allocate the large object space.
Mathieu Chartier2dbe6272014-09-16 10:43:23 -0700337 if (large_object_space_type == space::kLargeObjectSpaceTypeFreeList) {
338 large_object_space_ = space::FreeListSpace::Create("free list large object space", nullptr,
339 capacity_);
340 CHECK(large_object_space_ != nullptr) << "Failed to create large object space";
341 } else if (large_object_space_type == space::kLargeObjectSpaceTypeMap) {
342 large_object_space_ = space::LargeObjectMapSpace::Create("mem map large object space");
343 CHECK(large_object_space_ != nullptr) << "Failed to create large object space";
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700344 } else {
Mathieu Chartier2dbe6272014-09-16 10:43:23 -0700345 // Disable the large object space by making the cutoff excessively large.
346 large_object_threshold_ = std::numeric_limits<size_t>::max();
347 large_object_space_ = nullptr;
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700348 }
Mathieu Chartier2dbe6272014-09-16 10:43:23 -0700349 if (large_object_space_ != nullptr) {
350 AddSpace(large_object_space_);
351 }
Ian Rogers1d54e732013-05-02 21:10:01 -0700352 // Compute heap capacity. Continuous spaces are sorted in order of Begin().
Mathieu Chartier590fee92013-09-13 13:46:47 -0700353 CHECK(!continuous_spaces_.empty());
354 // Relies on the spaces being sorted.
Ian Rogers13735952014-10-08 12:43:28 -0700355 uint8_t* heap_begin = continuous_spaces_.front()->Begin();
356 uint8_t* heap_end = continuous_spaces_.back()->Limit();
Mathieu Chartier590fee92013-09-13 13:46:47 -0700357 size_t heap_capacity = heap_end - heap_begin;
Mathieu Chartierb363f662014-07-16 13:28:58 -0700358 // Remove the main backup space since it slows down the GC to have unused extra spaces.
359 if (main_space_backup_.get() != nullptr) {
360 RemoveSpace(main_space_backup_.get());
361 }
Elliott Hughes6c9c06d2011-11-07 16:43:47 -0800362 // Allocate the card table.
Ian Rogers1d54e732013-05-02 21:10:01 -0700363 card_table_.reset(accounting::CardTable::Create(heap_begin, heap_capacity));
Mathieu Chartiercc236d72012-07-20 10:29:05 -0700364 CHECK(card_table_.get() != NULL) << "Failed to create card table";
Mathieu Chartier590fee92013-09-13 13:46:47 -0700365 // Card cache for now since it makes it easier for us to update the references to the copying
366 // spaces.
Mathieu Chartier11409ae2013-09-23 11:49:36 -0700367 accounting::ModUnionTable* mod_union_table =
Mathieu Chartier0e54cd02014-03-20 12:41:23 -0700368 new accounting::ModUnionTableToZygoteAllocspace("Image mod-union table", this,
369 GetImageSpace());
Mathieu Chartier11409ae2013-09-23 11:49:36 -0700370 CHECK(mod_union_table != nullptr) << "Failed to create image mod-union table";
371 AddModUnionTable(mod_union_table);
Mathieu Chartier96bcd452014-06-17 09:50:02 -0700372 if (collector::SemiSpace::kUseRememberedSet && non_moving_space_ != main_space_) {
Hiroshi Yamauchi38e68e92014-03-07 13:59:08 -0800373 accounting::RememberedSet* non_moving_space_rem_set =
374 new accounting::RememberedSet("Non-moving space remembered set", this, non_moving_space_);
375 CHECK(non_moving_space_rem_set != nullptr) << "Failed to create non-moving space remembered set";
376 AddRememberedSet(non_moving_space_rem_set);
377 }
Mathieu Chartierb363f662014-07-16 13:28:58 -0700378 // TODO: Count objects in the image space here?
Ian Rogers3e5cf302014-05-20 16:40:37 -0700379 num_bytes_allocated_.StoreRelaxed(0);
Mathieu Chartierc1790162014-05-23 10:54:50 -0700380 mark_stack_.reset(accounting::ObjectStack::Create("mark stack", kDefaultMarkStackSize,
381 kDefaultMarkStackSize));
382 const size_t alloc_stack_capacity = max_allocation_stack_size_ + kAllocationStackReserveSize;
383 allocation_stack_.reset(accounting::ObjectStack::Create(
384 "allocation stack", max_allocation_stack_size_, alloc_stack_capacity));
385 live_stack_.reset(accounting::ObjectStack::Create(
386 "live stack", max_allocation_stack_size_, alloc_stack_capacity));
Mathieu Chartier65db8802012-11-20 12:36:46 -0800387 // It's still too early to take a lock because there are no threads yet, but we can create locks
388 // now. We don't create it earlier to make it clear that you can't use locks during heap
389 // initialization.
Mathieu Chartierfd678be2012-08-30 14:50:54 -0700390 gc_complete_lock_ = new Mutex("GC complete lock");
Ian Rogersc604d732012-10-14 16:09:54 -0700391 gc_complete_cond_.reset(new ConditionVariable("GC complete condition variable",
392 *gc_complete_lock_));
Mathieu Chartiera5f9de02014-02-28 16:48:42 -0800393 heap_trim_request_lock_ = new Mutex("Heap trim request lock");
Mathieu Chartier65db8802012-11-20 12:36:46 -0800394 last_gc_size_ = GetBytesAllocated();
Mathieu Chartier2775ee42013-08-20 17:43:47 -0700395 if (ignore_max_footprint_) {
396 SetIdealFootprint(std::numeric_limits<size_t>::max());
Mathieu Chartier590fee92013-09-13 13:46:47 -0700397 concurrent_start_bytes_ = std::numeric_limits<size_t>::max();
Mathieu Chartier2775ee42013-08-20 17:43:47 -0700398 }
Mathieu Chartier590fee92013-09-13 13:46:47 -0700399 CHECK_NE(max_allowed_footprint_, 0U);
Mathieu Chartier2b82db42012-11-14 17:29:05 -0800400 // Create our garbage collectors.
Mathieu Chartier50482232013-11-21 11:48:14 -0800401 for (size_t i = 0; i < 2; ++i) {
402 const bool concurrent = i != 0;
403 garbage_collectors_.push_back(new collector::MarkSweep(this, concurrent));
404 garbage_collectors_.push_back(new collector::PartialMarkSweep(this, concurrent));
405 garbage_collectors_.push_back(new collector::StickyMarkSweep(this, concurrent));
406 }
Mathieu Chartier50482232013-11-21 11:48:14 -0800407 if (kMovingCollector) {
408 // TODO: Clean this up.
Zuo Wangf37a88b2014-07-10 04:26:41 -0700409 const bool generational = foreground_collector_type_ == kCollectorTypeGSS;
Hiroshi Yamauchidf386c52014-04-08 16:21:52 -0700410 semi_space_collector_ = new collector::SemiSpace(this, generational,
411 generational ? "generational" : "");
Mathieu Chartier590fee92013-09-13 13:46:47 -0700412 garbage_collectors_.push_back(semi_space_collector_);
Hiroshi Yamauchid5307ec2014-03-27 21:07:51 -0700413 concurrent_copying_collector_ = new collector::ConcurrentCopying(this);
414 garbage_collectors_.push_back(concurrent_copying_collector_);
Mathieu Chartier52e4b432014-06-10 11:22:31 -0700415 mark_compact_collector_ = new collector::MarkCompact(this);
416 garbage_collectors_.push_back(mark_compact_collector_);
Mathieu Chartier0325e622012-09-05 14:22:51 -0700417 }
Andreas Gampee1cb2982014-08-27 11:01:09 -0700418 if (GetImageSpace() != nullptr && non_moving_space_ != nullptr &&
419 (is_zygote || separate_non_moving_space || foreground_collector_type_ == kCollectorTypeGSS)) {
Mathieu Chartierb363f662014-07-16 13:28:58 -0700420 // Check that there's no gap between the image space and the non moving space so that the
Andreas Gampee1cb2982014-08-27 11:01:09 -0700421 // immune region won't break (eg. due to a large object allocated in the gap). This is only
422 // required when we're the zygote or using GSS.
Mathieu Chartierb363f662014-07-16 13:28:58 -0700423 bool no_gap = MemMap::CheckNoGaps(GetImageSpace()->GetMemMap(),
424 non_moving_space_->GetMemMap());
Hiroshi Yamauchi3eed93d2014-06-04 11:43:59 -0700425 if (!no_gap) {
426 MemMap::DumpMaps(LOG(ERROR));
427 LOG(FATAL) << "There's a gap between the image space and the main space";
428 }
429 }
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700430 if (running_on_valgrind_) {
Mathieu Chartier9ef78b52014-09-25 17:03:12 -0700431 Runtime::Current()->GetInstrumentation()->InstrumentQuickAllocEntryPoints();
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700432 }
Elliott Hughes4dd9b4d2011-12-12 18:29:24 -0800433 if (VLOG_IS_ON(heap) || VLOG_IS_ON(startup)) {
Elliott Hughesb3bd5f02012-03-08 21:05:27 -0800434 LOG(INFO) << "Heap() exiting";
Brian Carlstrom0a5b14d2011-09-27 13:29:15 -0700435 }
Carl Shapiro69759ea2011-07-21 18:13:35 -0700436}
437
Ian Rogers13735952014-10-08 12:43:28 -0700438MemMap* Heap::MapAnonymousPreferredAddress(const char* name, uint8_t* request_begin, size_t capacity,
Mathieu Chartierb363f662014-07-16 13:28:58 -0700439 int prot_flags, std::string* out_error_str) {
440 while (true) {
Kyungmin Leeef32b8f2014-10-23 09:32:05 +0900441 MemMap* map = MemMap::MapAnonymous(name, request_begin, capacity,
Mathieu Chartierb363f662014-07-16 13:28:58 -0700442 PROT_READ | PROT_WRITE, true, out_error_str);
443 if (map != nullptr || request_begin == nullptr) {
444 return map;
445 }
446 // Retry a second time with no specified request begin.
447 request_begin = nullptr;
448 }
449 return nullptr;
450}
451
Zuo Wangf37a88b2014-07-10 04:26:41 -0700452space::MallocSpace* Heap::CreateMallocSpaceFromMemMap(MemMap* mem_map, size_t initial_size,
453 size_t growth_limit, size_t capacity,
454 const char* name, bool can_move_objects) {
455 space::MallocSpace* malloc_space = nullptr;
456 if (kUseRosAlloc) {
457 // Create rosalloc space.
458 malloc_space = space::RosAllocSpace::CreateFromMemMap(mem_map, name, kDefaultStartingSize,
459 initial_size, growth_limit, capacity,
460 low_memory_mode_, can_move_objects);
461 } else {
462 malloc_space = space::DlMallocSpace::CreateFromMemMap(mem_map, name, kDefaultStartingSize,
463 initial_size, growth_limit, capacity,
464 can_move_objects);
465 }
466 if (collector::SemiSpace::kUseRememberedSet) {
467 accounting::RememberedSet* rem_set =
468 new accounting::RememberedSet(std::string(name) + " remembered set", this, malloc_space);
469 CHECK(rem_set != nullptr) << "Failed to create main space remembered set";
470 AddRememberedSet(rem_set);
471 }
472 CHECK(malloc_space != nullptr) << "Failed to create " << name;
473 malloc_space->SetFootprintLimit(malloc_space->Capacity());
474 return malloc_space;
475}
476
Mathieu Chartier31f44142014-04-08 14:40:03 -0700477void Heap::CreateMainMallocSpace(MemMap* mem_map, size_t initial_size, size_t growth_limit,
478 size_t capacity) {
479 // Is background compaction is enabled?
480 bool can_move_objects = IsMovingGc(background_collector_type_) !=
Zuo Wangf37a88b2014-07-10 04:26:41 -0700481 IsMovingGc(foreground_collector_type_) || use_homogeneous_space_compaction_for_oom_;
Mathieu Chartier31f44142014-04-08 14:40:03 -0700482 // If we are the zygote and don't yet have a zygote space, it means that the zygote fork will
483 // happen in the future. If this happens and we have kCompactZygote enabled we wish to compact
484 // from the main space to the zygote space. If background compaction is enabled, always pass in
485 // that we can move objets.
486 if (kCompactZygote && Runtime::Current()->IsZygote() && !can_move_objects) {
487 // After the zygote we want this to be false if we don't have background compaction enabled so
488 // that getting primitive array elements is faster.
Mathieu Chartierb363f662014-07-16 13:28:58 -0700489 // We never have homogeneous compaction with GSS and don't need a space with movable objects.
Mathieu Chartiere4cab172014-08-19 18:24:04 -0700490 can_move_objects = !HasZygoteSpace() && foreground_collector_type_ != kCollectorTypeGSS;
Mathieu Chartier31f44142014-04-08 14:40:03 -0700491 }
Mathieu Chartier96bcd452014-06-17 09:50:02 -0700492 if (collector::SemiSpace::kUseRememberedSet && main_space_ != nullptr) {
493 RemoveRememberedSet(main_space_);
494 }
Zuo Wangf37a88b2014-07-10 04:26:41 -0700495 const char* name = kUseRosAlloc ? kRosAllocSpaceName[0] : kDlMallocSpaceName[0];
496 main_space_ = CreateMallocSpaceFromMemMap(mem_map, initial_size, growth_limit, capacity, name,
497 can_move_objects);
498 SetSpaceAsDefault(main_space_);
Mathieu Chartier31f44142014-04-08 14:40:03 -0700499 VLOG(heap) << "Created main space " << main_space_;
500}
501
Mathieu Chartier50482232013-11-21 11:48:14 -0800502void Heap::ChangeAllocator(AllocatorType allocator) {
Mathieu Chartier50482232013-11-21 11:48:14 -0800503 if (current_allocator_ != allocator) {
Mathieu Chartierd8891782014-03-02 13:28:37 -0800504 // These two allocators are only used internally and don't have any entrypoints.
505 CHECK_NE(allocator, kAllocatorTypeLOS);
506 CHECK_NE(allocator, kAllocatorTypeNonMoving);
Mathieu Chartier50482232013-11-21 11:48:14 -0800507 current_allocator_ = allocator;
Mathieu Chartierd8891782014-03-02 13:28:37 -0800508 MutexLock mu(nullptr, *Locks::runtime_shutdown_lock_);
Mathieu Chartier50482232013-11-21 11:48:14 -0800509 SetQuickAllocEntryPointsAllocator(current_allocator_);
510 Runtime::Current()->GetInstrumentation()->ResetQuickAllocEntryPoints();
511 }
512}
513
Mathieu Chartier6a7824d2014-08-22 14:53:04 -0700514void Heap::DisableMovingGc() {
Mathieu Chartier31f44142014-04-08 14:40:03 -0700515 if (IsMovingGc(foreground_collector_type_)) {
Mathieu Chartier6a7824d2014-08-22 14:53:04 -0700516 foreground_collector_type_ = kCollectorTypeCMS;
Mathieu Chartier6dda8982014-03-06 11:11:48 -0800517 }
Mathieu Chartier31f44142014-04-08 14:40:03 -0700518 if (IsMovingGc(background_collector_type_)) {
519 background_collector_type_ = foreground_collector_type_;
Mathieu Chartier6dda8982014-03-06 11:11:48 -0800520 }
Mathieu Chartier31f44142014-04-08 14:40:03 -0700521 TransitionCollector(foreground_collector_type_);
Mathieu Chartier6a7824d2014-08-22 14:53:04 -0700522 ThreadList* tl = Runtime::Current()->GetThreadList();
523 Thread* self = Thread::Current();
524 ScopedThreadStateChange tsc(self, kSuspended);
525 tl->SuspendAll();
526 // Something may have caused the transition to fail.
Mathieu Chartiere4927f62014-08-23 13:56:03 -0700527 if (!IsMovingGc(collector_type_) && non_moving_space_ != main_space_) {
Mathieu Chartier6a7824d2014-08-22 14:53:04 -0700528 CHECK(main_space_ != nullptr);
529 // The allocation stack may have non movable objects in it. We need to flush it since the GC
530 // can't only handle marking allocation stack objects of one non moving space and one main
531 // space.
532 {
533 WriterMutexLock mu(self, *Locks::heap_bitmap_lock_);
534 FlushAllocStack();
535 }
536 main_space_->DisableMovingObjects();
537 non_moving_space_ = main_space_;
538 CHECK(!non_moving_space_->CanMoveObjects());
539 }
540 tl->ResumeAll();
Mathieu Chartier6dda8982014-03-06 11:11:48 -0800541}
542
Mathieu Chartier15d34022014-02-26 17:16:38 -0800543std::string Heap::SafeGetClassDescriptor(mirror::Class* klass) {
544 if (!IsValidContinuousSpaceObjectAddress(klass)) {
545 return StringPrintf("<non heap address klass %p>", klass);
546 }
547 mirror::Class* component_type = klass->GetComponentType<kVerifyNone>();
548 if (IsValidContinuousSpaceObjectAddress(component_type) && klass->IsArrayClass<kVerifyNone>()) {
549 std::string result("[");
550 result += SafeGetClassDescriptor(component_type);
551 return result;
552 } else if (UNLIKELY(klass->IsPrimitive<kVerifyNone>())) {
553 return Primitive::Descriptor(klass->GetPrimitiveType<kVerifyNone>());
Mathieu Chartierc2f4d022014-03-03 16:11:42 -0800554 } else if (UNLIKELY(klass->IsProxyClass<kVerifyNone>())) {
Mathieu Chartier15d34022014-02-26 17:16:38 -0800555 return Runtime::Current()->GetClassLinker()->GetDescriptorForProxy(klass);
556 } else {
Mathieu Chartierc2f4d022014-03-03 16:11:42 -0800557 mirror::DexCache* dex_cache = klass->GetDexCache<kVerifyNone>();
Mathieu Chartier15d34022014-02-26 17:16:38 -0800558 if (!IsValidContinuousSpaceObjectAddress(dex_cache)) {
559 return StringPrintf("<non heap address dex_cache %p>", dex_cache);
560 }
561 const DexFile* dex_file = dex_cache->GetDexFile();
562 uint16_t class_def_idx = klass->GetDexClassDefIndex();
563 if (class_def_idx == DexFile::kDexNoIndex16) {
564 return "<class def not found>";
565 }
566 const DexFile::ClassDef& class_def = dex_file->GetClassDef(class_def_idx);
567 const DexFile::TypeId& type_id = dex_file->GetTypeId(class_def.class_idx_);
568 return dex_file->GetTypeDescriptor(type_id);
569 }
570}
571
572std::string Heap::SafePrettyTypeOf(mirror::Object* obj) {
573 if (obj == nullptr) {
574 return "null";
575 }
576 mirror::Class* klass = obj->GetClass<kVerifyNone>();
577 if (klass == nullptr) {
578 return "(class=null)";
579 }
580 std::string result(SafeGetClassDescriptor(klass));
581 if (obj->IsClass()) {
Mathieu Chartierc2f4d022014-03-03 16:11:42 -0800582 result += "<" + SafeGetClassDescriptor(obj->AsClass<kVerifyNone>()) + ">";
Mathieu Chartier15d34022014-02-26 17:16:38 -0800583 }
584 return result;
585}
586
587void Heap::DumpObject(std::ostream& stream, mirror::Object* obj) {
588 if (obj == nullptr) {
589 stream << "(obj=null)";
590 return;
591 }
592 if (IsAligned<kObjectAlignment>(obj)) {
593 space::Space* space = nullptr;
594 // Don't use find space since it only finds spaces which actually contain objects instead of
595 // spaces which may contain objects (e.g. cleared bump pointer spaces).
596 for (const auto& cur_space : continuous_spaces_) {
597 if (cur_space->HasAddress(obj)) {
598 space = cur_space;
599 break;
600 }
601 }
Mathieu Chartier15d34022014-02-26 17:16:38 -0800602 // Unprotect all the spaces.
603 for (const auto& space : continuous_spaces_) {
604 mprotect(space->Begin(), space->Capacity(), PROT_READ | PROT_WRITE);
605 }
606 stream << "Object " << obj;
607 if (space != nullptr) {
608 stream << " in space " << *space;
609 }
Mathieu Chartierc2f4d022014-03-03 16:11:42 -0800610 mirror::Class* klass = obj->GetClass<kVerifyNone>();
Mathieu Chartier15d34022014-02-26 17:16:38 -0800611 stream << "\nclass=" << klass;
612 if (klass != nullptr) {
613 stream << " type= " << SafePrettyTypeOf(obj);
614 }
615 // Re-protect the address we faulted on.
616 mprotect(AlignDown(obj, kPageSize), kPageSize, PROT_NONE);
617 }
618}
619
Mathieu Chartier590fee92013-09-13 13:46:47 -0700620bool Heap::IsCompilingBoot() const {
Alex Light64ad14d2014-08-19 14:23:13 -0700621 if (!Runtime::Current()->IsCompiler()) {
622 return false;
623 }
Mathieu Chartier590fee92013-09-13 13:46:47 -0700624 for (const auto& space : continuous_spaces_) {
Mathieu Chartier4e305412014-02-19 10:54:44 -0800625 if (space->IsImageSpace() || space->IsZygoteSpace()) {
Mathieu Chartier590fee92013-09-13 13:46:47 -0700626 return false;
627 }
628 }
629 return true;
630}
631
632bool Heap::HasImageSpace() const {
633 for (const auto& space : continuous_spaces_) {
634 if (space->IsImageSpace()) {
635 return true;
636 }
637 }
638 return false;
639}
640
Mathieu Chartier1d27b342014-01-28 12:51:09 -0800641void Heap::IncrementDisableMovingGC(Thread* self) {
Mathieu Chartier590fee92013-09-13 13:46:47 -0700642 // Need to do this holding the lock to prevent races where the GC is about to run / running when
643 // we attempt to disable it.
Mathieu Chartiercaa82d62014-02-02 16:51:17 -0800644 ScopedThreadStateChange tsc(self, kWaitingForGcToComplete);
Mathieu Chartier590fee92013-09-13 13:46:47 -0700645 MutexLock mu(self, *gc_complete_lock_);
Mathieu Chartier1d27b342014-01-28 12:51:09 -0800646 ++disable_moving_gc_count_;
Mathieu Chartier31f44142014-04-08 14:40:03 -0700647 if (IsMovingGc(collector_type_running_)) {
Mathieu Chartier89a201e2014-05-02 10:27:26 -0700648 WaitForGcToCompleteLocked(kGcCauseDisableMovingGc, self);
Mathieu Chartierd5a89ee2014-01-31 09:55:13 -0800649 }
Mathieu Chartier590fee92013-09-13 13:46:47 -0700650}
651
Mathieu Chartier1d27b342014-01-28 12:51:09 -0800652void Heap::DecrementDisableMovingGC(Thread* self) {
Mathieu Chartier590fee92013-09-13 13:46:47 -0700653 MutexLock mu(self, *gc_complete_lock_);
Mathieu Chartier1d27b342014-01-28 12:51:09 -0800654 CHECK_GE(disable_moving_gc_count_, 0U);
655 --disable_moving_gc_count_;
Mathieu Chartier590fee92013-09-13 13:46:47 -0700656}
657
Mathieu Chartierca2a24d2013-11-25 15:12:12 -0800658void Heap::UpdateProcessState(ProcessState process_state) {
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800659 if (process_state_ != process_state) {
660 process_state_ = process_state;
Mathieu Chartier91e30632014-03-25 15:58:50 -0700661 for (size_t i = 1; i <= kCollectorTransitionStressIterations; ++i) {
662 // Start at index 1 to avoid "is always false" warning.
663 // Have iteration 1 always transition the collector.
664 TransitionCollector((((i & 1) == 1) == (process_state_ == kProcessStateJankPerceptible))
Mathieu Chartier31f44142014-04-08 14:40:03 -0700665 ? foreground_collector_type_ : background_collector_type_);
Mathieu Chartier91e30632014-03-25 15:58:50 -0700666 usleep(kCollectorTransitionStressWait);
667 }
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800668 if (process_state_ == kProcessStateJankPerceptible) {
Mathieu Chartiera5f9de02014-02-28 16:48:42 -0800669 // Transition back to foreground right away to prevent jank.
Mathieu Chartier31f44142014-04-08 14:40:03 -0700670 RequestCollectorTransition(foreground_collector_type_, 0);
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800671 } else {
Mathieu Chartiera5f9de02014-02-28 16:48:42 -0800672 // Don't delay for debug builds since we may want to stress test the GC.
Zuo Wangf37a88b2014-07-10 04:26:41 -0700673 // If background_collector_type_ is kCollectorTypeHomogeneousSpaceCompact then we have
674 // special handling which does a homogenous space compaction once but then doesn't transition
675 // the collector.
676 RequestCollectorTransition(background_collector_type_,
677 kIsDebugBuild ? 0 : kCollectorTransitionWait);
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800678 }
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800679 }
Mathieu Chartierca2a24d2013-11-25 15:12:12 -0800680}
681
Mathieu Chartier02b6a782012-10-26 13:51:26 -0700682void Heap::CreateThreadPool() {
Mathieu Chartier2775ee42013-08-20 17:43:47 -0700683 const size_t num_threads = std::max(parallel_gc_threads_, conc_gc_threads_);
684 if (num_threads != 0) {
Mathieu Chartierbcd5e9d2013-11-13 14:33:28 -0800685 thread_pool_.reset(new ThreadPool("Heap thread pool", num_threads));
Mathieu Chartier94c32c52013-08-09 11:14:04 -0700686 }
Mathieu Chartier02b6a782012-10-26 13:51:26 -0700687}
688
Mathieu Chartier83c8ee02014-01-28 14:50:23 -0800689void Heap::VisitObjects(ObjectCallback callback, void* arg) {
Mathieu Chartier692fafd2013-11-29 17:24:40 -0800690 // GCs can move objects, so don't allow this.
Mathieu Chartier2d5f39e2014-09-19 17:52:37 -0700691 ScopedAssertNoThreadSuspension ants(Thread::Current(), "Visiting objects");
Mathieu Chartier590fee92013-09-13 13:46:47 -0700692 if (bump_pointer_space_ != nullptr) {
Mathieu Chartier692fafd2013-11-29 17:24:40 -0800693 // Visit objects in bump pointer space.
694 bump_pointer_space_->Walk(callback, arg);
Mathieu Chartier590fee92013-09-13 13:46:47 -0700695 }
696 // TODO: Switch to standard begin and end to use ranged a based loop.
697 for (mirror::Object** it = allocation_stack_->Begin(), **end = allocation_stack_->End();
698 it < end; ++it) {
699 mirror::Object* obj = *it;
Mathieu Chartierebdf3f32014-02-13 10:23:27 -0800700 if (obj != nullptr && obj->GetClass() != nullptr) {
701 // Avoid the race condition caused by the object not yet being written into the allocation
Hiroshi Yamauchif5b0e202014-02-11 17:02:22 -0800702 // stack or the class not yet being written in the object. Or, if kUseThreadLocalAllocationStack,
703 // there can be nulls on the allocation stack.
Mathieu Chartierebdf3f32014-02-13 10:23:27 -0800704 callback(obj, arg);
705 }
Mathieu Chartier590fee92013-09-13 13:46:47 -0700706 }
707 GetLiveBitmap()->Walk(callback, arg);
Mathieu Chartier590fee92013-09-13 13:46:47 -0700708}
709
710void Heap::MarkAllocStackAsLive(accounting::ObjectStack* stack) {
Mathieu Chartier00b59152014-07-25 10:13:51 -0700711 space::ContinuousSpace* space1 = main_space_ != nullptr ? main_space_ : non_moving_space_;
712 space::ContinuousSpace* space2 = non_moving_space_;
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800713 // TODO: Generalize this to n bitmaps?
Mathieu Chartier00b59152014-07-25 10:13:51 -0700714 CHECK(space1 != nullptr);
715 CHECK(space2 != nullptr);
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800716 MarkAllocStack(space1->GetLiveBitmap(), space2->GetLiveBitmap(),
Mathieu Chartier2dbe6272014-09-16 10:43:23 -0700717 (large_object_space_ != nullptr ? large_object_space_->GetLiveBitmap() : nullptr),
718 stack);
Mathieu Chartier590fee92013-09-13 13:46:47 -0700719}
720
Mathieu Chartier02b6a782012-10-26 13:51:26 -0700721void Heap::DeleteThreadPool() {
Mathieu Chartier2775ee42013-08-20 17:43:47 -0700722 thread_pool_.reset(nullptr);
Mathieu Chartier02b6a782012-10-26 13:51:26 -0700723}
724
Mathieu Chartier1b54f9c2014-04-30 16:45:02 -0700725void Heap::AddSpace(space::Space* space) {
Zuo Wangf37a88b2014-07-10 04:26:41 -0700726 CHECK(space != nullptr);
Mathieu Chartier590fee92013-09-13 13:46:47 -0700727 WriterMutexLock mu(Thread::Current(), *Locks::heap_bitmap_lock_);
728 if (space->IsContinuousSpace()) {
729 DCHECK(!space->IsDiscontinuousSpace());
730 space::ContinuousSpace* continuous_space = space->AsContinuousSpace();
731 // Continuous spaces don't necessarily have bitmaps.
Mathieu Chartiera8e8f9c2014-04-09 14:51:05 -0700732 accounting::ContinuousSpaceBitmap* live_bitmap = continuous_space->GetLiveBitmap();
733 accounting::ContinuousSpaceBitmap* mark_bitmap = continuous_space->GetMarkBitmap();
Mathieu Chartier590fee92013-09-13 13:46:47 -0700734 if (live_bitmap != nullptr) {
Mathieu Chartier2796a162014-07-25 11:50:47 -0700735 CHECK(mark_bitmap != nullptr);
Mathieu Chartier590fee92013-09-13 13:46:47 -0700736 live_bitmap_->AddContinuousSpaceBitmap(live_bitmap);
737 mark_bitmap_->AddContinuousSpaceBitmap(mark_bitmap);
Mathieu Chartier357e9be2012-08-01 11:00:14 -0700738 }
Mathieu Chartier590fee92013-09-13 13:46:47 -0700739 continuous_spaces_.push_back(continuous_space);
Mathieu Chartier590fee92013-09-13 13:46:47 -0700740 // Ensure that spaces remain sorted in increasing order of start address.
741 std::sort(continuous_spaces_.begin(), continuous_spaces_.end(),
742 [](const space::ContinuousSpace* a, const space::ContinuousSpace* b) {
743 return a->Begin() < b->Begin();
744 });
Mathieu Chartier590fee92013-09-13 13:46:47 -0700745 } else {
Mathieu Chartier2796a162014-07-25 11:50:47 -0700746 CHECK(space->IsDiscontinuousSpace());
Mathieu Chartier590fee92013-09-13 13:46:47 -0700747 space::DiscontinuousSpace* discontinuous_space = space->AsDiscontinuousSpace();
Mathieu Chartierbbd695c2014-04-16 09:48:48 -0700748 live_bitmap_->AddLargeObjectBitmap(discontinuous_space->GetLiveBitmap());
749 mark_bitmap_->AddLargeObjectBitmap(discontinuous_space->GetMarkBitmap());
Mathieu Chartier590fee92013-09-13 13:46:47 -0700750 discontinuous_spaces_.push_back(discontinuous_space);
751 }
752 if (space->IsAllocSpace()) {
753 alloc_spaces_.push_back(space->AsAllocSpace());
Mathieu Chartier357e9be2012-08-01 11:00:14 -0700754 }
Elliott Hughesb3bd5f02012-03-08 21:05:27 -0800755}
756
Mathieu Chartier1b54f9c2014-04-30 16:45:02 -0700757void Heap::SetSpaceAsDefault(space::ContinuousSpace* continuous_space) {
758 WriterMutexLock mu(Thread::Current(), *Locks::heap_bitmap_lock_);
759 if (continuous_space->IsDlMallocSpace()) {
760 dlmalloc_space_ = continuous_space->AsDlMallocSpace();
761 } else if (continuous_space->IsRosAllocSpace()) {
762 rosalloc_space_ = continuous_space->AsRosAllocSpace();
763 }
764}
765
766void Heap::RemoveSpace(space::Space* space) {
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800767 DCHECK(space != nullptr);
768 WriterMutexLock mu(Thread::Current(), *Locks::heap_bitmap_lock_);
769 if (space->IsContinuousSpace()) {
770 DCHECK(!space->IsDiscontinuousSpace());
771 space::ContinuousSpace* continuous_space = space->AsContinuousSpace();
772 // Continuous spaces don't necessarily have bitmaps.
Mathieu Chartiera8e8f9c2014-04-09 14:51:05 -0700773 accounting::ContinuousSpaceBitmap* live_bitmap = continuous_space->GetLiveBitmap();
774 accounting::ContinuousSpaceBitmap* mark_bitmap = continuous_space->GetMarkBitmap();
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800775 if (live_bitmap != nullptr) {
776 DCHECK(mark_bitmap != nullptr);
777 live_bitmap_->RemoveContinuousSpaceBitmap(live_bitmap);
778 mark_bitmap_->RemoveContinuousSpaceBitmap(mark_bitmap);
779 }
780 auto it = std::find(continuous_spaces_.begin(), continuous_spaces_.end(), continuous_space);
781 DCHECK(it != continuous_spaces_.end());
782 continuous_spaces_.erase(it);
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800783 } else {
784 DCHECK(space->IsDiscontinuousSpace());
785 space::DiscontinuousSpace* discontinuous_space = space->AsDiscontinuousSpace();
Mathieu Chartierbbd695c2014-04-16 09:48:48 -0700786 live_bitmap_->RemoveLargeObjectBitmap(discontinuous_space->GetLiveBitmap());
787 mark_bitmap_->RemoveLargeObjectBitmap(discontinuous_space->GetMarkBitmap());
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800788 auto it = std::find(discontinuous_spaces_.begin(), discontinuous_spaces_.end(),
789 discontinuous_space);
790 DCHECK(it != discontinuous_spaces_.end());
791 discontinuous_spaces_.erase(it);
792 }
793 if (space->IsAllocSpace()) {
794 auto it = std::find(alloc_spaces_.begin(), alloc_spaces_.end(), space->AsAllocSpace());
795 DCHECK(it != alloc_spaces_.end());
796 alloc_spaces_.erase(it);
797 }
798}
799
Elliott Hughes8b788fe2013-04-17 15:57:01 -0700800void Heap::DumpGcPerformanceInfo(std::ostream& os) {
Mathieu Chartier155dfe92012-10-09 14:24:49 -0700801 // Dump cumulative timings.
Elliott Hughes8b788fe2013-04-17 15:57:01 -0700802 os << "Dumping cumulative Gc timings\n";
Mathieu Chartier155dfe92012-10-09 14:24:49 -0700803 uint64_t total_duration = 0;
Mathieu Chartier2b82db42012-11-14 17:29:05 -0800804 // Dump cumulative loggers for each GC type.
Mathieu Chartier2b82db42012-11-14 17:29:05 -0800805 uint64_t total_paused_time = 0;
Mathieu Chartier5a487192014-04-08 11:14:54 -0700806 for (auto& collector : garbage_collectors_) {
Mathieu Chartier104fa0c2014-08-07 14:26:27 -0700807 total_duration += collector->GetCumulativeTimings().GetTotalNs();
808 total_paused_time += collector->GetTotalPausedTimeNs();
809 collector->DumpPerformanceInfo(os);
Mathieu Chartier5a487192014-04-08 11:14:54 -0700810 collector->ResetMeasurements();
Mathieu Chartier155dfe92012-10-09 14:24:49 -0700811 }
Ian Rogers3e5cf302014-05-20 16:40:37 -0700812 uint64_t allocation_time =
813 static_cast<uint64_t>(total_allocation_time_.LoadRelaxed()) * kTimeAdjust;
Mathieu Chartier155dfe92012-10-09 14:24:49 -0700814 if (total_duration != 0) {
Brian Carlstrom2d888622013-07-18 17:02:00 -0700815 const double total_seconds = static_cast<double>(total_duration / 1000) / 1000000.0;
Elliott Hughes8b788fe2013-04-17 15:57:01 -0700816 os << "Total time spent in GC: " << PrettyDuration(total_duration) << "\n";
817 os << "Mean GC size throughput: "
Ian Rogers1d54e732013-05-02 21:10:01 -0700818 << PrettySize(GetBytesFreedEver() / total_seconds) << "/s\n";
Elliott Hughes8b788fe2013-04-17 15:57:01 -0700819 os << "Mean GC object throughput: "
Ian Rogers1d54e732013-05-02 21:10:01 -0700820 << (GetObjectsFreedEver() / total_seconds) << " objects/s\n";
Mathieu Chartier155dfe92012-10-09 14:24:49 -0700821 }
Mathieu Chartierdd162fb2014-08-06 17:06:33 -0700822 uint64_t total_objects_allocated = GetObjectsAllocatedEver();
Mathieu Chartierc30a7252014-08-12 10:13:48 -0700823 os << "Total number of allocations " << total_objects_allocated << "\n";
Mathieu Chartierdd162fb2014-08-06 17:06:33 -0700824 uint64_t total_bytes_allocated = GetBytesAllocatedEver();
Elliott Hughes8b788fe2013-04-17 15:57:01 -0700825 os << "Total bytes allocated " << PrettySize(total_bytes_allocated) << "\n";
Mathieu Chartierc30a7252014-08-12 10:13:48 -0700826 os << "Free memory " << PrettySize(GetFreeMemory()) << "\n";
Mathieu Chartierdd162fb2014-08-06 17:06:33 -0700827 os << "Free memory until GC " << PrettySize(GetFreeMemoryUntilGC()) << "\n";
828 os << "Free memory until OOME " << PrettySize(GetFreeMemoryUntilOOME()) << "\n";
Mathieu Chartierc30a7252014-08-12 10:13:48 -0700829 os << "Total memory " << PrettySize(GetTotalMemory()) << "\n";
830 os << "Max memory " << PrettySize(GetMaxMemory()) << "\n";
Hiroshi Yamauchi50b29282013-07-30 13:58:37 -0700831 if (kMeasureAllocationTime) {
Elliott Hughes8b788fe2013-04-17 15:57:01 -0700832 os << "Total time spent allocating: " << PrettyDuration(allocation_time) << "\n";
833 os << "Mean allocation time: " << PrettyDuration(allocation_time / total_objects_allocated)
834 << "\n";
Mathieu Chartier155dfe92012-10-09 14:24:49 -0700835 }
Mathieu Chartiere4cab172014-08-19 18:24:04 -0700836 if (HasZygoteSpace()) {
837 os << "Zygote space size " << PrettySize(zygote_space_->Size()) << "\n";
838 }
Elliott Hughes8b788fe2013-04-17 15:57:01 -0700839 os << "Total mutator paused time: " << PrettyDuration(total_paused_time) << "\n";
840 os << "Total time waiting for GC to complete: " << PrettyDuration(total_wait_time_) << "\n";
Mathieu Chartier73d1e172014-04-11 17:53:48 -0700841 BaseMutex::DumpAll(os);
Mathieu Chartier155dfe92012-10-09 14:24:49 -0700842}
843
Elliott Hughesb3bd5f02012-03-08 21:05:27 -0800844Heap::~Heap() {
Mathieu Chartier590fee92013-09-13 13:46:47 -0700845 VLOG(heap) << "Starting ~Heap()";
Mathieu Chartier590fee92013-09-13 13:46:47 -0700846 STLDeleteElements(&garbage_collectors_);
847 // If we don't reset then the mark stack complains in its destructor.
Mathieu Chartier357e9be2012-08-01 11:00:14 -0700848 allocation_stack_->Reset();
849 live_stack_->Reset();
Mathieu Chartier11409ae2013-09-23 11:49:36 -0700850 STLDeleteValues(&mod_union_tables_);
Mathieu Chartier0767c9a2014-03-26 12:53:19 -0700851 STLDeleteValues(&remembered_sets_);
Ian Rogers1d54e732013-05-02 21:10:01 -0700852 STLDeleteElements(&continuous_spaces_);
853 STLDeleteElements(&discontinuous_spaces_);
Ian Rogers00f7d0e2012-07-19 15:28:27 -0700854 delete gc_complete_lock_;
Mathieu Chartier0767c9a2014-03-26 12:53:19 -0700855 delete heap_trim_request_lock_;
Mathieu Chartier590fee92013-09-13 13:46:47 -0700856 VLOG(heap) << "Finished ~Heap()";
Carl Shapiro69759ea2011-07-21 18:13:35 -0700857}
858
Ian Rogers1d54e732013-05-02 21:10:01 -0700859space::ContinuousSpace* Heap::FindContinuousSpaceFromObject(const mirror::Object* obj,
860 bool fail_ok) const {
Mathieu Chartier02e25112013-08-14 16:14:24 -0700861 for (const auto& space : continuous_spaces_) {
862 if (space->Contains(obj)) {
863 return space;
Mathieu Chartierb062fdd2012-07-03 09:51:48 -0700864 }
865 }
Ian Rogers1d54e732013-05-02 21:10:01 -0700866 if (!fail_ok) {
867 LOG(FATAL) << "object " << reinterpret_cast<const void*>(obj) << " not inside any spaces!";
868 }
Mathieu Chartierb062fdd2012-07-03 09:51:48 -0700869 return NULL;
870}
871
Ian Rogers1d54e732013-05-02 21:10:01 -0700872space::DiscontinuousSpace* Heap::FindDiscontinuousSpaceFromObject(const mirror::Object* obj,
873 bool fail_ok) const {
Mathieu Chartier02e25112013-08-14 16:14:24 -0700874 for (const auto& space : discontinuous_spaces_) {
875 if (space->Contains(obj)) {
876 return space;
Ian Rogers1d54e732013-05-02 21:10:01 -0700877 }
878 }
879 if (!fail_ok) {
880 LOG(FATAL) << "object " << reinterpret_cast<const void*>(obj) << " not inside any spaces!";
881 }
882 return NULL;
883}
884
885space::Space* Heap::FindSpaceFromObject(const mirror::Object* obj, bool fail_ok) const {
886 space::Space* result = FindContinuousSpaceFromObject(obj, true);
887 if (result != NULL) {
888 return result;
889 }
890 return FindDiscontinuousSpaceFromObject(obj, true);
891}
892
893space::ImageSpace* Heap::GetImageSpace() const {
Mathieu Chartier02e25112013-08-14 16:14:24 -0700894 for (const auto& space : continuous_spaces_) {
895 if (space->IsImageSpace()) {
896 return space->AsImageSpace();
Mathieu Chartierb062fdd2012-07-03 09:51:48 -0700897 }
898 }
899 return NULL;
900}
901
Hiroshi Yamauchi654dd482014-07-09 12:54:32 -0700902void Heap::ThrowOutOfMemoryError(Thread* self, size_t byte_count, AllocatorType allocator_type) {
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700903 std::ostringstream oss;
Ian Rogersef7d42f2014-01-06 12:55:46 -0800904 size_t total_bytes_free = GetFreeMemory();
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700905 oss << "Failed to allocate a " << byte_count << " byte allocation with " << total_bytes_free
Mathieu Chartierdd162fb2014-08-06 17:06:33 -0700906 << " free bytes and " << PrettySize(GetFreeMemoryUntilOOME()) << " until OOM";
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700907 // If the allocation failed due to fragmentation, print out the largest continuous allocation.
Zuo Wangf37a88b2014-07-10 04:26:41 -0700908 if (total_bytes_free >= byte_count) {
Mathieu Chartierb363f662014-07-16 13:28:58 -0700909 space::AllocSpace* space = nullptr;
Hiroshi Yamauchi654dd482014-07-09 12:54:32 -0700910 if (allocator_type == kAllocatorTypeNonMoving) {
911 space = non_moving_space_;
912 } else if (allocator_type == kAllocatorTypeRosAlloc ||
913 allocator_type == kAllocatorTypeDlMalloc) {
914 space = main_space_;
Mathieu Chartierb363f662014-07-16 13:28:58 -0700915 } else if (allocator_type == kAllocatorTypeBumpPointer ||
916 allocator_type == kAllocatorTypeTLAB) {
917 space = bump_pointer_space_;
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700918 }
Hiroshi Yamauchi654dd482014-07-09 12:54:32 -0700919 if (space != nullptr) {
920 space->LogFragmentationAllocFailure(oss, byte_count);
921 }
Mathieu Chartier155dfe92012-10-09 14:24:49 -0700922 }
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700923 self->ThrowOutOfMemoryError(oss.str().c_str());
924}
Mathieu Chartiere0f0cb32012-08-28 11:26:00 -0700925
Mathieu Chartiera5f9de02014-02-28 16:48:42 -0800926void Heap::DoPendingTransitionOrTrim() {
Mathieu Chartierb2728552014-09-08 20:08:41 +0000927 Thread* self = Thread::Current();
928 CollectorType desired_collector_type;
929 // Wait until we reach the desired transition time.
930 while (true) {
931 uint64_t wait_time;
932 {
933 MutexLock mu(self, *heap_trim_request_lock_);
934 desired_collector_type = desired_collector_type_;
935 uint64_t current_time = NanoTime();
936 if (current_time >= heap_transition_or_trim_target_time_) {
937 break;
938 }
939 wait_time = heap_transition_or_trim_target_time_ - current_time;
940 }
941 ScopedThreadStateChange tsc(self, kSleeping);
942 usleep(wait_time / 1000); // Usleep takes microseconds.
943 }
944 // Launch homogeneous space compaction if it is desired.
945 if (desired_collector_type == kCollectorTypeHomogeneousSpaceCompact) {
946 if (!CareAboutPauseTimes()) {
947 PerformHomogeneousSpaceCompact();
948 }
949 // No need to Trim(). Homogeneous space compaction may free more virtual and physical memory.
950 desired_collector_type = collector_type_;
951 return;
952 }
953 // Transition the collector if the desired collector type is not the same as the current
954 // collector type.
955 TransitionCollector(desired_collector_type);
Mathieu Chartier440e4ce2014-03-31 16:36:35 -0700956 if (!CareAboutPauseTimes()) {
957 // Deflate the monitors, this can cause a pause but shouldn't matter since we don't care
958 // about pauses.
959 Runtime* runtime = Runtime::Current();
960 runtime->GetThreadList()->SuspendAll();
Mathieu Chartier48ab6872014-06-24 11:21:59 -0700961 uint64_t start_time = NanoTime();
962 size_t count = runtime->GetMonitorList()->DeflateMonitors();
963 VLOG(heap) << "Deflating " << count << " monitors took "
964 << PrettyDuration(NanoTime() - start_time);
Mathieu Chartier440e4ce2014-03-31 16:36:35 -0700965 runtime->GetThreadList()->ResumeAll();
Mathieu Chartier440e4ce2014-03-31 16:36:35 -0700966 }
Mathieu Chartierb2728552014-09-08 20:08:41 +0000967 // Do a heap trim if it is needed.
Mathieu Chartiera5b5c552014-06-24 14:48:59 -0700968 Trim();
Mathieu Chartiera5f9de02014-02-28 16:48:42 -0800969}
970
Mathieu Chartier590fee92013-09-13 13:46:47 -0700971void Heap::Trim() {
Mathieu Chartierd5a89ee2014-01-31 09:55:13 -0800972 Thread* self = Thread::Current();
973 {
Mathieu Chartiera5f9de02014-02-28 16:48:42 -0800974 MutexLock mu(self, *heap_trim_request_lock_);
Mathieu Chartier7bf52d22014-03-13 14:46:09 -0700975 if (!heap_trim_request_pending_ || last_trim_time_ + kHeapTrimWait >= NanoTime()) {
Mathieu Chartiera5f9de02014-02-28 16:48:42 -0800976 return;
977 }
Mathieu Chartier7bf52d22014-03-13 14:46:09 -0700978 last_trim_time_ = NanoTime();
Mathieu Chartiera5f9de02014-02-28 16:48:42 -0800979 heap_trim_request_pending_ = false;
980 }
981 {
Mathieu Chartiercaa82d62014-02-02 16:51:17 -0800982 // Need to do this before acquiring the locks since we don't want to get suspended while
983 // holding any locks.
984 ScopedThreadStateChange tsc(self, kWaitingForGcToComplete);
Mathieu Chartierd5a89ee2014-01-31 09:55:13 -0800985 // Pretend we are doing a GC to prevent background compaction from deleting the space we are
986 // trimming.
987 MutexLock mu(self, *gc_complete_lock_);
988 // Ensure there is only one GC at a time.
Mathieu Chartier89a201e2014-05-02 10:27:26 -0700989 WaitForGcToCompleteLocked(kGcCauseTrim, self);
Mathieu Chartierd5a89ee2014-01-31 09:55:13 -0800990 collector_type_running_ = kCollectorTypeHeapTrim;
991 }
Mathieu Chartier590fee92013-09-13 13:46:47 -0700992 uint64_t start_ns = NanoTime();
993 // Trim the managed spaces.
994 uint64_t total_alloc_space_allocated = 0;
995 uint64_t total_alloc_space_size = 0;
996 uint64_t managed_reclaimed = 0;
997 for (const auto& space : continuous_spaces_) {
Mathieu Chartiera1602f22014-01-13 17:19:19 -0800998 if (space->IsMallocSpace()) {
Mathieu Chartiera5b5c552014-06-24 14:48:59 -0700999 gc::space::MallocSpace* malloc_space = space->AsMallocSpace();
1000 if (malloc_space->IsRosAllocSpace() || !CareAboutPauseTimes()) {
1001 // Don't trim dlmalloc spaces if we care about pauses since this can hold the space lock
1002 // for a long period of time.
1003 managed_reclaimed += malloc_space->Trim();
1004 }
1005 total_alloc_space_size += malloc_space->Size();
Mathieu Chartier590fee92013-09-13 13:46:47 -07001006 }
1007 }
Mathieu Chartier2dbe6272014-09-16 10:43:23 -07001008 total_alloc_space_allocated = GetBytesAllocated();
1009 if (large_object_space_ != nullptr) {
1010 total_alloc_space_allocated -= large_object_space_->GetBytesAllocated();
1011 }
Mathieu Chartier31f44142014-04-08 14:40:03 -07001012 if (bump_pointer_space_ != nullptr) {
1013 total_alloc_space_allocated -= bump_pointer_space_->Size();
1014 }
Mathieu Chartier590fee92013-09-13 13:46:47 -07001015 const float managed_utilization = static_cast<float>(total_alloc_space_allocated) /
1016 static_cast<float>(total_alloc_space_size);
1017 uint64_t gc_heap_end_ns = NanoTime();
Mathieu Chartierd5a89ee2014-01-31 09:55:13 -08001018 // We never move things in the native heap, so we can finish the GC at this point.
1019 FinishGC(self, collector::kGcTypeNone);
Christopher Ferrisc4ddc042014-05-13 14:47:50 -07001020 size_t native_reclaimed = 0;
Ian Rogers872dd822014-10-30 11:19:14 -07001021
1022#ifdef HAVE_ANDROID_OS
Mathieu Chartiera5b5c552014-06-24 14:48:59 -07001023 // Only trim the native heap if we don't care about pauses.
1024 if (!CareAboutPauseTimes()) {
Christopher Ferrisc4ddc042014-05-13 14:47:50 -07001025#if defined(USE_DLMALLOC)
Mathieu Chartiera5b5c552014-06-24 14:48:59 -07001026 // Trim the native heap.
1027 dlmalloc_trim(0);
1028 dlmalloc_inspect_all(DlmallocMadviseCallback, &native_reclaimed);
Christopher Ferrisc4ddc042014-05-13 14:47:50 -07001029#elif defined(USE_JEMALLOC)
Mathieu Chartiera5b5c552014-06-24 14:48:59 -07001030 // Jemalloc does it's own internal trimming.
Christopher Ferrisc4ddc042014-05-13 14:47:50 -07001031#else
Mathieu Chartiera5b5c552014-06-24 14:48:59 -07001032 UNIMPLEMENTED(WARNING) << "Add trimming support";
Christopher Ferrisc4ddc042014-05-13 14:47:50 -07001033#endif
Mathieu Chartiera5b5c552014-06-24 14:48:59 -07001034 }
Ian Rogers872dd822014-10-30 11:19:14 -07001035#endif // HAVE_ANDROID_OS
Mathieu Chartier590fee92013-09-13 13:46:47 -07001036 uint64_t end_ns = NanoTime();
1037 VLOG(heap) << "Heap trim of managed (duration=" << PrettyDuration(gc_heap_end_ns - start_ns)
1038 << ", advised=" << PrettySize(managed_reclaimed) << ") and native (duration="
1039 << PrettyDuration(end_ns - gc_heap_end_ns) << ", advised=" << PrettySize(native_reclaimed)
1040 << ") heaps. Managed heap utilization of " << static_cast<int>(100 * managed_utilization)
1041 << "%.";
1042}
1043
1044bool Heap::IsValidObjectAddress(const mirror::Object* obj) const {
1045 // Note: we deliberately don't take the lock here, and mustn't test anything that would require
1046 // taking the lock.
1047 if (obj == nullptr) {
Elliott Hughes88c5c352012-03-15 18:49:48 -07001048 return true;
1049 }
Mathieu Chartier15d34022014-02-26 17:16:38 -08001050 return IsAligned<kObjectAlignment>(obj) && FindSpaceFromObject(obj, true) != nullptr;
Mathieu Chartier590fee92013-09-13 13:46:47 -07001051}
1052
Mathieu Chartierd68ac702014-02-11 14:50:51 -08001053bool Heap::IsNonDiscontinuousSpaceHeapAddress(const mirror::Object* obj) const {
1054 return FindContinuousSpaceFromObject(obj, true) != nullptr;
1055}
1056
Mathieu Chartier15d34022014-02-26 17:16:38 -08001057bool Heap::IsValidContinuousSpaceObjectAddress(const mirror::Object* obj) const {
1058 if (obj == nullptr || !IsAligned<kObjectAlignment>(obj)) {
1059 return false;
1060 }
1061 for (const auto& space : continuous_spaces_) {
1062 if (space->HasAddress(obj)) {
1063 return true;
1064 }
1065 }
1066 return false;
Elliott Hughesa2501992011-08-26 19:39:54 -07001067}
1068
Ian Rogersef7d42f2014-01-06 12:55:46 -08001069bool Heap::IsLiveObjectLocked(mirror::Object* obj, bool search_allocation_stack,
Mathieu Chartier0f72e412013-09-06 16:40:01 -07001070 bool search_live_stack, bool sorted) {
Mathieu Chartier938a03b2014-01-16 15:10:31 -08001071 if (UNLIKELY(!IsAligned<kObjectAlignment>(obj))) {
1072 return false;
1073 }
1074 if (bump_pointer_space_ != nullptr && bump_pointer_space_->HasAddress(obj)) {
Mathieu Chartier4e305412014-02-19 10:54:44 -08001075 mirror::Class* klass = obj->GetClass<kVerifyNone>();
Mathieu Chartier938a03b2014-01-16 15:10:31 -08001076 if (obj == klass) {
Mathieu Chartier9be9a7a2014-01-24 14:07:33 -08001077 // This case happens for java.lang.Class.
Mathieu Chartier938a03b2014-01-16 15:10:31 -08001078 return true;
1079 }
1080 return VerifyClassClass(klass) && IsLiveObjectLocked(klass);
1081 } else if (temp_space_ != nullptr && temp_space_->HasAddress(obj)) {
Mathieu Chartier4e305412014-02-19 10:54:44 -08001082 // If we are in the allocated region of the temp space, then we are probably live (e.g. during
1083 // a GC). When a GC isn't running End() - Begin() is 0 which means no objects are contained.
1084 return temp_space_->Contains(obj);
Ian Rogers1d54e732013-05-02 21:10:01 -07001085 }
Mathieu Chartierf082d3c2013-07-29 17:04:07 -07001086 space::ContinuousSpace* c_space = FindContinuousSpaceFromObject(obj, true);
Mathieu Chartierbbd695c2014-04-16 09:48:48 -07001087 space::DiscontinuousSpace* d_space = nullptr;
Mathieu Chartier938a03b2014-01-16 15:10:31 -08001088 if (c_space != nullptr) {
Mathieu Chartierf082d3c2013-07-29 17:04:07 -07001089 if (c_space->GetLiveBitmap()->Test(obj)) {
Ian Rogers1d54e732013-05-02 21:10:01 -07001090 return true;
1091 }
1092 } else {
Mathieu Chartierf082d3c2013-07-29 17:04:07 -07001093 d_space = FindDiscontinuousSpaceFromObject(obj, true);
Mathieu Chartier938a03b2014-01-16 15:10:31 -08001094 if (d_space != nullptr) {
Mathieu Chartierbbd695c2014-04-16 09:48:48 -07001095 if (d_space->GetLiveBitmap()->Test(obj)) {
Ian Rogers1d54e732013-05-02 21:10:01 -07001096 return true;
1097 }
1098 }
1099 }
Mathieu Chartierf082d3c2013-07-29 17:04:07 -07001100 // This is covering the allocation/live stack swapping that is done without mutators suspended.
Mathieu Chartier0f72e412013-09-06 16:40:01 -07001101 for (size_t i = 0; i < (sorted ? 1 : 5); ++i) {
1102 if (i > 0) {
1103 NanoSleep(MsToNs(10));
Ian Rogers1d54e732013-05-02 21:10:01 -07001104 }
Mathieu Chartier0f72e412013-09-06 16:40:01 -07001105 if (search_allocation_stack) {
1106 if (sorted) {
Mathieu Chartier407f7022014-02-18 14:37:05 -08001107 if (allocation_stack_->ContainsSorted(obj)) {
Mathieu Chartier0f72e412013-09-06 16:40:01 -07001108 return true;
1109 }
Mathieu Chartier407f7022014-02-18 14:37:05 -08001110 } else if (allocation_stack_->Contains(obj)) {
Mathieu Chartier0f72e412013-09-06 16:40:01 -07001111 return true;
1112 }
1113 }
1114
1115 if (search_live_stack) {
1116 if (sorted) {
Mathieu Chartier407f7022014-02-18 14:37:05 -08001117 if (live_stack_->ContainsSorted(obj)) {
Mathieu Chartier0f72e412013-09-06 16:40:01 -07001118 return true;
1119 }
Mathieu Chartier407f7022014-02-18 14:37:05 -08001120 } else if (live_stack_->Contains(obj)) {
Mathieu Chartier0f72e412013-09-06 16:40:01 -07001121 return true;
1122 }
1123 }
Ian Rogers1d54e732013-05-02 21:10:01 -07001124 }
Mathieu Chartierf082d3c2013-07-29 17:04:07 -07001125 // We need to check the bitmaps again since there is a race where we mark something as live and
1126 // then clear the stack containing it.
Mathieu Chartier938a03b2014-01-16 15:10:31 -08001127 if (c_space != nullptr) {
Mathieu Chartierf082d3c2013-07-29 17:04:07 -07001128 if (c_space->GetLiveBitmap()->Test(obj)) {
1129 return true;
1130 }
1131 } else {
1132 d_space = FindDiscontinuousSpaceFromObject(obj, true);
Mathieu Chartierbbd695c2014-04-16 09:48:48 -07001133 if (d_space != nullptr && d_space->GetLiveBitmap()->Test(obj)) {
Mathieu Chartierf082d3c2013-07-29 17:04:07 -07001134 return true;
1135 }
1136 }
Ian Rogers1d54e732013-05-02 21:10:01 -07001137 return false;
Elliott Hughes6a5bd492011-10-28 14:33:57 -07001138}
1139
Mathieu Chartier4c13a3f2014-07-14 14:57:16 -07001140std::string Heap::DumpSpaces() const {
1141 std::ostringstream oss;
1142 DumpSpaces(oss);
1143 return oss.str();
1144}
1145
1146void Heap::DumpSpaces(std::ostream& stream) const {
Mathieu Chartier02e25112013-08-14 16:14:24 -07001147 for (const auto& space : continuous_spaces_) {
Mathieu Chartiera8e8f9c2014-04-09 14:51:05 -07001148 accounting::ContinuousSpaceBitmap* live_bitmap = space->GetLiveBitmap();
1149 accounting::ContinuousSpaceBitmap* mark_bitmap = space->GetMarkBitmap();
Mathieu Chartier590fee92013-09-13 13:46:47 -07001150 stream << space << " " << *space << "\n";
1151 if (live_bitmap != nullptr) {
1152 stream << live_bitmap << " " << *live_bitmap << "\n";
1153 }
1154 if (mark_bitmap != nullptr) {
1155 stream << mark_bitmap << " " << *mark_bitmap << "\n";
1156 }
Mathieu Chartiercc236d72012-07-20 10:29:05 -07001157 }
Mathieu Chartier02e25112013-08-14 16:14:24 -07001158 for (const auto& space : discontinuous_spaces_) {
Mathieu Chartier590fee92013-09-13 13:46:47 -07001159 stream << space << " " << *space << "\n";
Mathieu Chartier128c52c2012-10-16 14:12:41 -07001160 }
Mathieu Chartiercc236d72012-07-20 10:29:05 -07001161}
1162
Ian Rogersef7d42f2014-01-06 12:55:46 -08001163void Heap::VerifyObjectBody(mirror::Object* obj) {
Stephen Hines22c6a812014-07-16 11:03:43 -07001164 if (verify_object_mode_ == kVerifyObjectModeDisabled) {
1165 return;
1166 }
1167
Mathieu Chartier0f72e412013-09-06 16:40:01 -07001168 // Ignore early dawn of the universe verifications.
Ian Rogers3e5cf302014-05-20 16:40:37 -07001169 if (UNLIKELY(static_cast<size_t>(num_bytes_allocated_.LoadRelaxed()) < 10 * KB)) {
Ian Rogers62d6c772013-02-27 08:32:07 -08001170 return;
1171 }
Mathieu Chartier4e305412014-02-19 10:54:44 -08001172 CHECK(IsAligned<kObjectAlignment>(obj)) << "Object isn't aligned: " << obj;
Ian Rogersb0fa5dc2014-04-28 16:47:08 -07001173 mirror::Class* c = obj->GetFieldObject<mirror::Class, kVerifyNone>(mirror::Object::ClassOffset());
Mathieu Chartier4e305412014-02-19 10:54:44 -08001174 CHECK(c != nullptr) << "Null class in object " << obj;
1175 CHECK(IsAligned<kObjectAlignment>(c)) << "Class " << c << " not aligned in object " << obj;
Mathieu Chartier938a03b2014-01-16 15:10:31 -08001176 CHECK(VerifyClassClass(c));
Mathieu Chartier0325e622012-09-05 14:22:51 -07001177
Mathieu Chartier4e305412014-02-19 10:54:44 -08001178 if (verify_object_mode_ > kVerifyObjectModeFast) {
1179 // Note: the bitmap tests below are racy since we don't hold the heap bitmap lock.
Mathieu Chartier4c13a3f2014-07-14 14:57:16 -07001180 CHECK(IsLiveObjectLocked(obj)) << "Object is dead " << obj << "\n" << DumpSpaces();
Mathieu Chartierdcf8d722012-08-02 14:55:54 -07001181 }
Ian Rogers0cfe1fb2011-08-26 03:29:44 -07001182}
1183
Ian Rogers2dd0e2c2013-01-24 12:42:14 -08001184void Heap::VerificationCallback(mirror::Object* obj, void* arg) {
Mathieu Chartier357e9be2012-08-01 11:00:14 -07001185 reinterpret_cast<Heap*>(arg)->VerifyObjectBody(obj);
Ian Rogers0cfe1fb2011-08-26 03:29:44 -07001186}
1187
1188void Heap::VerifyHeap() {
Ian Rogers50b35e22012-10-04 10:09:15 -07001189 ReaderMutexLock mu(Thread::Current(), *Locks::heap_bitmap_lock_);
Mathieu Chartierb062fdd2012-07-03 09:51:48 -07001190 GetLiveBitmap()->Walk(Heap::VerificationCallback, this);
Ian Rogers0cfe1fb2011-08-26 03:29:44 -07001191}
1192
Mathieu Chartiere76e70f2014-05-02 16:35:37 -07001193void Heap::RecordFree(uint64_t freed_objects, int64_t freed_bytes) {
Mathieu Chartier601276a2014-03-20 15:12:30 -07001194 // Use signed comparison since freed bytes can be negative when background compaction foreground
1195 // transitions occurs. This is caused by the moving objects from a bump pointer space to a
1196 // free list backed space typically increasing memory footprint due to padding and binning.
Ian Rogers3e5cf302014-05-20 16:40:37 -07001197 DCHECK_LE(freed_bytes, static_cast<int64_t>(num_bytes_allocated_.LoadRelaxed()));
Mathieu Chartiere76e70f2014-05-02 16:35:37 -07001198 // Note: This relies on 2s complement for handling negative freed_bytes.
Ian Rogers3e5cf302014-05-20 16:40:37 -07001199 num_bytes_allocated_.FetchAndSubSequentiallyConsistent(static_cast<ssize_t>(freed_bytes));
Elliott Hughes9d5ccec2011-09-19 13:19:50 -07001200 if (Runtime::Current()->HasStatsEnabled()) {
Elliott Hughes9d5ccec2011-09-19 13:19:50 -07001201 RuntimeStats* thread_stats = Thread::Current()->GetStats();
Mathieu Chartier357e9be2012-08-01 11:00:14 -07001202 thread_stats->freed_objects += freed_objects;
Elliott Hughes307f75d2011-10-12 18:04:40 -07001203 thread_stats->freed_bytes += freed_bytes;
Mathieu Chartier2fde5332012-09-14 14:51:54 -07001204 // TODO: Do this concurrently.
1205 RuntimeStats* global_stats = Runtime::Current()->GetStats();
1206 global_stats->freed_objects += freed_objects;
1207 global_stats->freed_bytes += freed_bytes;
Elliott Hughes9d5ccec2011-09-19 13:19:50 -07001208 }
Carl Shapiro58551df2011-07-24 03:09:51 -07001209}
1210
Zuo Wangf37a88b2014-07-10 04:26:41 -07001211space::RosAllocSpace* Heap::GetRosAllocSpace(gc::allocator::RosAlloc* rosalloc) const {
1212 for (const auto& space : continuous_spaces_) {
1213 if (space->AsContinuousSpace()->IsRosAllocSpace()) {
1214 if (space->AsContinuousSpace()->AsRosAllocSpace()->GetRosAlloc() == rosalloc) {
1215 return space->AsContinuousSpace()->AsRosAllocSpace();
1216 }
1217 }
1218 }
1219 return nullptr;
1220}
1221
Mathieu Chartiercbb2d202013-11-14 17:45:16 -08001222mirror::Object* Heap::AllocateInternalWithGc(Thread* self, AllocatorType allocator,
Mathieu Chartierc528dba2013-11-26 12:00:11 -08001223 size_t alloc_size, size_t* bytes_allocated,
Ian Rogers6fac4472014-02-25 17:01:10 -08001224 size_t* usable_size,
Mathieu Chartierc528dba2013-11-26 12:00:11 -08001225 mirror::Class** klass) {
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001226 bool was_default_allocator = allocator == GetCurrentAllocator();
Mathieu Chartierf4f38432014-09-03 11:21:08 -07001227 // Make sure there is no pending exception since we may need to throw an OOME.
1228 self->AssertNoPendingException();
Mathieu Chartierc528dba2013-11-26 12:00:11 -08001229 DCHECK(klass != nullptr);
Mathieu Chartiereb8167a2014-05-07 15:43:14 -07001230 StackHandleScope<1> hs(self);
1231 HandleWrapper<mirror::Class> h(hs.NewHandleWrapper(klass));
1232 klass = nullptr; // Invalidate for safety.
Mathieu Chartier866fb2a2012-09-10 10:47:49 -07001233 // The allocation failed. If the GC is running, block until it completes, and then retry the
1234 // allocation.
Mathieu Chartier89a201e2014-05-02 10:27:26 -07001235 collector::GcType last_gc = WaitForGcToComplete(kGcCauseForAlloc, self);
Ian Rogers1d54e732013-05-02 21:10:01 -07001236 if (last_gc != collector::kGcTypeNone) {
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001237 // If we were the default allocator but the allocator changed while we were suspended,
1238 // abort the allocation.
1239 if (was_default_allocator && allocator != GetCurrentAllocator()) {
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001240 return nullptr;
1241 }
Mathieu Chartier866fb2a2012-09-10 10:47:49 -07001242 // A GC was in progress and we blocked, retry allocation now that memory has been freed.
Mathieu Chartiereb8167a2014-05-07 15:43:14 -07001243 mirror::Object* ptr = TryToAllocate<true, false>(self, allocator, alloc_size, bytes_allocated,
1244 usable_size);
1245 if (ptr != nullptr) {
1246 return ptr;
1247 }
Carl Shapiro69759ea2011-07-21 18:13:35 -07001248 }
1249
Mathieu Chartier5ae2c932014-03-28 16:22:20 -07001250 collector::GcType tried_type = next_gc_type_;
Mathieu Chartiereb8167a2014-05-07 15:43:14 -07001251 const bool gc_ran =
1252 CollectGarbageInternal(tried_type, kGcCauseForAlloc, false) != collector::kGcTypeNone;
1253 if (was_default_allocator && allocator != GetCurrentAllocator()) {
1254 return nullptr;
1255 }
1256 if (gc_ran) {
1257 mirror::Object* ptr = TryToAllocate<true, false>(self, allocator, alloc_size, bytes_allocated,
1258 usable_size);
1259 if (ptr != nullptr) {
1260 return ptr;
Mathieu Chartier5ae2c932014-03-28 16:22:20 -07001261 }
1262 }
1263
Mathieu Chartier866fb2a2012-09-10 10:47:49 -07001264 // Loop through our different Gc types and try to Gc until we get enough free memory.
Mathieu Chartiercbb2d202013-11-14 17:45:16 -08001265 for (collector::GcType gc_type : gc_plan_) {
Mathieu Chartier5ae2c932014-03-28 16:22:20 -07001266 if (gc_type == tried_type) {
1267 continue;
1268 }
Mathieu Chartiercbb2d202013-11-14 17:45:16 -08001269 // Attempt to run the collector, if we succeed, re-try the allocation.
Mathieu Chartier5ae2c932014-03-28 16:22:20 -07001270 const bool gc_ran =
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001271 CollectGarbageInternal(gc_type, kGcCauseForAlloc, false) != collector::kGcTypeNone;
1272 if (was_default_allocator && allocator != GetCurrentAllocator()) {
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001273 return nullptr;
1274 }
1275 if (gc_ran) {
Mathieu Chartier866fb2a2012-09-10 10:47:49 -07001276 // Did we free sufficient memory for the allocation to succeed?
Mathieu Chartiereb8167a2014-05-07 15:43:14 -07001277 mirror::Object* ptr = TryToAllocate<true, false>(self, allocator, alloc_size, bytes_allocated,
1278 usable_size);
1279 if (ptr != nullptr) {
1280 return ptr;
1281 }
Mathieu Chartier866fb2a2012-09-10 10:47:49 -07001282 }
Ian Rogers00f7d0e2012-07-19 15:28:27 -07001283 }
Ian Rogers00f7d0e2012-07-19 15:28:27 -07001284 // Allocations have failed after GCs; this is an exceptional state.
Mathieu Chartiereb8167a2014-05-07 15:43:14 -07001285 // Try harder, growing the heap if necessary.
1286 mirror::Object* ptr = TryToAllocate<true, true>(self, allocator, alloc_size, bytes_allocated,
1287 usable_size);
1288 if (ptr != nullptr) {
1289 return ptr;
Carl Shapiro69759ea2011-07-21 18:13:35 -07001290 }
Mathieu Chartiereb8167a2014-05-07 15:43:14 -07001291 // Most allocations should have succeeded by now, so the heap is really full, really fragmented,
1292 // or the requested size is really big. Do another GC, collecting SoftReferences this time. The
1293 // VM spec requires that all SoftReferences have been collected and cleared before throwing
1294 // OOME.
1295 VLOG(gc) << "Forcing collection of SoftReferences for " << PrettySize(alloc_size)
1296 << " allocation";
1297 // TODO: Run finalization, but this may cause more allocations to occur.
1298 // We don't need a WaitForGcToComplete here either.
1299 DCHECK(!gc_plan_.empty());
1300 CollectGarbageInternal(gc_plan_.back(), kGcCauseForAlloc, true);
1301 if (was_default_allocator && allocator != GetCurrentAllocator()) {
1302 return nullptr;
Mathieu Chartiercbb2d202013-11-14 17:45:16 -08001303 }
Mathieu Chartiereb8167a2014-05-07 15:43:14 -07001304 ptr = TryToAllocate<true, true>(self, allocator, alloc_size, bytes_allocated, usable_size);
Mathieu Chartier6a7824d2014-08-22 14:53:04 -07001305 if (ptr == nullptr) {
Zuo Wangf37a88b2014-07-10 04:26:41 -07001306 const uint64_t current_time = NanoTime();
Mathieu Chartier6a7824d2014-08-22 14:53:04 -07001307 switch (allocator) {
1308 case kAllocatorTypeRosAlloc:
1309 // Fall-through.
1310 case kAllocatorTypeDlMalloc: {
1311 if (use_homogeneous_space_compaction_for_oom_ &&
1312 current_time - last_time_homogeneous_space_compaction_by_oom_ >
1313 min_interval_homogeneous_space_compaction_by_oom_) {
1314 last_time_homogeneous_space_compaction_by_oom_ = current_time;
1315 HomogeneousSpaceCompactResult result = PerformHomogeneousSpaceCompact();
1316 switch (result) {
1317 case HomogeneousSpaceCompactResult::kSuccess:
1318 // If the allocation succeeded, we delayed an oom.
1319 ptr = TryToAllocate<true, true>(self, allocator, alloc_size, bytes_allocated,
1320 usable_size);
1321 if (ptr != nullptr) {
1322 count_delayed_oom_++;
1323 }
1324 break;
1325 case HomogeneousSpaceCompactResult::kErrorReject:
1326 // Reject due to disabled moving GC.
1327 break;
1328 case HomogeneousSpaceCompactResult::kErrorVMShuttingDown:
1329 // Throw OOM by default.
1330 break;
1331 default: {
Ian Rogers2c4257b2014-10-24 14:20:06 -07001332 UNIMPLEMENTED(FATAL) << "homogeneous space compaction result: "
1333 << static_cast<size_t>(result);
1334 UNREACHABLE();
Mathieu Chartier6a7824d2014-08-22 14:53:04 -07001335 }
Zuo Wangf37a88b2014-07-10 04:26:41 -07001336 }
Mathieu Chartier6a7824d2014-08-22 14:53:04 -07001337 // Always print that we ran homogeneous space compation since this can cause jank.
1338 VLOG(heap) << "Ran heap homogeneous space compaction, "
1339 << " requested defragmentation "
1340 << count_requested_homogeneous_space_compaction_.LoadSequentiallyConsistent()
1341 << " performed defragmentation "
1342 << count_performed_homogeneous_space_compaction_.LoadSequentiallyConsistent()
1343 << " ignored homogeneous space compaction "
1344 << count_ignored_homogeneous_space_compaction_.LoadSequentiallyConsistent()
1345 << " delayed count = "
1346 << count_delayed_oom_.LoadSequentiallyConsistent();
Zuo Wangf37a88b2014-07-10 04:26:41 -07001347 }
Mathieu Chartier6a7824d2014-08-22 14:53:04 -07001348 break;
Zuo Wangf37a88b2014-07-10 04:26:41 -07001349 }
Mathieu Chartier6a7824d2014-08-22 14:53:04 -07001350 case kAllocatorTypeNonMoving: {
1351 // Try to transition the heap if the allocation failure was due to the space being full.
1352 if (!IsOutOfMemoryOnAllocation<false>(allocator, alloc_size)) {
1353 // If we aren't out of memory then the OOM was probably from the non moving space being
1354 // full. Attempt to disable compaction and turn the main space into a non moving space.
1355 DisableMovingGc();
1356 // If we are still a moving GC then something must have caused the transition to fail.
1357 if (IsMovingGc(collector_type_)) {
1358 MutexLock mu(self, *gc_complete_lock_);
1359 // If we couldn't disable moving GC, just throw OOME and return null.
1360 LOG(WARNING) << "Couldn't disable moving GC with disable GC count "
1361 << disable_moving_gc_count_;
1362 } else {
1363 LOG(WARNING) << "Disabled moving GC due to the non moving space being full";
1364 ptr = TryToAllocate<true, true>(self, allocator, alloc_size, bytes_allocated,
1365 usable_size);
1366 }
1367 }
1368 break;
1369 }
1370 default: {
1371 // Do nothing for others allocators.
1372 }
Zuo Wangf37a88b2014-07-10 04:26:41 -07001373 }
1374 }
1375 // If the allocation hasn't succeeded by this point, throw an OOM error.
Mathieu Chartiereb8167a2014-05-07 15:43:14 -07001376 if (ptr == nullptr) {
Hiroshi Yamauchi654dd482014-07-09 12:54:32 -07001377 ThrowOutOfMemoryError(self, alloc_size, allocator);
Mathieu Chartiereb8167a2014-05-07 15:43:14 -07001378 }
Mathieu Chartiercbb2d202013-11-14 17:45:16 -08001379 return ptr;
Carl Shapiro69759ea2011-07-21 18:13:35 -07001380}
1381
Mathieu Chartier155dfe92012-10-09 14:24:49 -07001382void Heap::SetTargetHeapUtilization(float target) {
1383 DCHECK_GT(target, 0.0f); // asserted in Java code
1384 DCHECK_LT(target, 1.0f);
1385 target_utilization_ = target;
1386}
1387
Ian Rogers1d54e732013-05-02 21:10:01 -07001388size_t Heap::GetObjectsAllocated() const {
1389 size_t total = 0;
Mathieu Chartier590fee92013-09-13 13:46:47 -07001390 for (space::AllocSpace* space : alloc_spaces_) {
1391 total += space->GetObjectsAllocated();
Ian Rogers1d54e732013-05-02 21:10:01 -07001392 }
Mathieu Chartier155dfe92012-10-09 14:24:49 -07001393 return total;
1394}
1395
Mathieu Chartierdd162fb2014-08-06 17:06:33 -07001396uint64_t Heap::GetObjectsAllocatedEver() const {
Mathieu Chartier692fafd2013-11-29 17:24:40 -08001397 return GetObjectsFreedEver() + GetObjectsAllocated();
Ian Rogers1d54e732013-05-02 21:10:01 -07001398}
1399
Mathieu Chartierdd162fb2014-08-06 17:06:33 -07001400uint64_t Heap::GetBytesAllocatedEver() const {
Mathieu Chartier692fafd2013-11-29 17:24:40 -08001401 return GetBytesFreedEver() + GetBytesAllocated();
Mathieu Chartier155dfe92012-10-09 14:24:49 -07001402}
1403
Elliott Hughes9d5ccec2011-09-19 13:19:50 -07001404class InstanceCounter {
1405 public:
Ian Rogers2dd0e2c2013-01-24 12:42:14 -08001406 InstanceCounter(const std::vector<mirror::Class*>& classes, bool use_is_assignable_from, uint64_t* counts)
Ian Rogersb726dcb2012-09-05 08:57:23 -07001407 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_)
Elliott Hughesec0f83d2013-01-15 16:54:08 -08001408 : classes_(classes), use_is_assignable_from_(use_is_assignable_from), counts_(counts) {
Elliott Hughes9d5ccec2011-09-19 13:19:50 -07001409 }
Mathieu Chartier412c7fc2014-02-07 12:18:39 -08001410 static void Callback(mirror::Object* obj, void* arg)
1411 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_, Locks::heap_bitmap_lock_) {
1412 InstanceCounter* instance_counter = reinterpret_cast<InstanceCounter*>(arg);
1413 mirror::Class* instance_class = obj->GetClass();
1414 CHECK(instance_class != nullptr);
1415 for (size_t i = 0; i < instance_counter->classes_.size(); ++i) {
1416 if (instance_counter->use_is_assignable_from_) {
1417 if (instance_counter->classes_[i]->IsAssignableFrom(instance_class)) {
1418 ++instance_counter->counts_[i];
Elliott Hughesec0f83d2013-01-15 16:54:08 -08001419 }
Mathieu Chartier412c7fc2014-02-07 12:18:39 -08001420 } else if (instance_class == instance_counter->classes_[i]) {
1421 ++instance_counter->counts_[i];
Elliott Hughes9d5ccec2011-09-19 13:19:50 -07001422 }
1423 }
1424 }
1425
Mathieu Chartier7469ebf2012-09-24 16:28:36 -07001426 private:
Ian Rogers2dd0e2c2013-01-24 12:42:14 -08001427 const std::vector<mirror::Class*>& classes_;
Elliott Hughesec0f83d2013-01-15 16:54:08 -08001428 bool use_is_assignable_from_;
1429 uint64_t* const counts_;
Elliott Hughesec0f83d2013-01-15 16:54:08 -08001430 DISALLOW_COPY_AND_ASSIGN(InstanceCounter);
Elliott Hughes9d5ccec2011-09-19 13:19:50 -07001431};
1432
Ian Rogers2dd0e2c2013-01-24 12:42:14 -08001433void Heap::CountInstances(const std::vector<mirror::Class*>& classes, bool use_is_assignable_from,
Elliott Hughesec0f83d2013-01-15 16:54:08 -08001434 uint64_t* counts) {
Mathieu Chartier412c7fc2014-02-07 12:18:39 -08001435 // Can't do any GC in this function since this may move classes.
Mathieu Chartier2d5f39e2014-09-19 17:52:37 -07001436 ScopedAssertNoThreadSuspension ants(Thread::Current(), "CountInstances");
Elliott Hughesec0f83d2013-01-15 16:54:08 -08001437 InstanceCounter counter(classes, use_is_assignable_from, counts);
Mathieu Chartier2d5f39e2014-09-19 17:52:37 -07001438 ReaderMutexLock mu(ants.Self(), *Locks::heap_bitmap_lock_);
Mathieu Chartier412c7fc2014-02-07 12:18:39 -08001439 VisitObjects(InstanceCounter::Callback, &counter);
Elliott Hughes9d5ccec2011-09-19 13:19:50 -07001440}
1441
Elliott Hughes3b78c942013-01-15 17:35:41 -08001442class InstanceCollector {
1443 public:
Ian Rogers2dd0e2c2013-01-24 12:42:14 -08001444 InstanceCollector(mirror::Class* c, int32_t max_count, std::vector<mirror::Object*>& instances)
Elliott Hughes3b78c942013-01-15 17:35:41 -08001445 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_)
1446 : class_(c), max_count_(max_count), instances_(instances) {
1447 }
Mathieu Chartier412c7fc2014-02-07 12:18:39 -08001448 static void Callback(mirror::Object* obj, void* arg)
1449 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_, Locks::heap_bitmap_lock_) {
1450 DCHECK(arg != nullptr);
1451 InstanceCollector* instance_collector = reinterpret_cast<InstanceCollector*>(arg);
Mathieu Chartier2d5f39e2014-09-19 17:52:37 -07001452 if (obj->GetClass() == instance_collector->class_) {
Mathieu Chartier412c7fc2014-02-07 12:18:39 -08001453 if (instance_collector->max_count_ == 0 ||
1454 instance_collector->instances_.size() < instance_collector->max_count_) {
1455 instance_collector->instances_.push_back(obj);
Elliott Hughes3b78c942013-01-15 17:35:41 -08001456 }
1457 }
1458 }
1459
1460 private:
Mathieu Chartier2d5f39e2014-09-19 17:52:37 -07001461 const mirror::Class* const class_;
1462 const uint32_t max_count_;
Ian Rogers2dd0e2c2013-01-24 12:42:14 -08001463 std::vector<mirror::Object*>& instances_;
Elliott Hughes3b78c942013-01-15 17:35:41 -08001464 DISALLOW_COPY_AND_ASSIGN(InstanceCollector);
1465};
1466
Ian Rogers2dd0e2c2013-01-24 12:42:14 -08001467void Heap::GetInstances(mirror::Class* c, int32_t max_count,
1468 std::vector<mirror::Object*>& instances) {
Mathieu Chartier412c7fc2014-02-07 12:18:39 -08001469 // Can't do any GC in this function since this may move classes.
Mathieu Chartier2d5f39e2014-09-19 17:52:37 -07001470 ScopedAssertNoThreadSuspension ants(Thread::Current(), "GetInstances");
Elliott Hughes3b78c942013-01-15 17:35:41 -08001471 InstanceCollector collector(c, max_count, instances);
Mathieu Chartier2d5f39e2014-09-19 17:52:37 -07001472 ReaderMutexLock mu(ants.Self(), *Locks::heap_bitmap_lock_);
Mathieu Chartier412c7fc2014-02-07 12:18:39 -08001473 VisitObjects(&InstanceCollector::Callback, &collector);
Elliott Hughes3b78c942013-01-15 17:35:41 -08001474}
1475
Elliott Hughes0cbaff52013-01-16 15:28:01 -08001476class ReferringObjectsFinder {
1477 public:
Ian Rogers2dd0e2c2013-01-24 12:42:14 -08001478 ReferringObjectsFinder(mirror::Object* object, int32_t max_count,
1479 std::vector<mirror::Object*>& referring_objects)
Elliott Hughes0cbaff52013-01-16 15:28:01 -08001480 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_)
1481 : object_(object), max_count_(max_count), referring_objects_(referring_objects) {
1482 }
1483
Mathieu Chartier412c7fc2014-02-07 12:18:39 -08001484 static void Callback(mirror::Object* obj, void* arg)
1485 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_, Locks::heap_bitmap_lock_) {
1486 reinterpret_cast<ReferringObjectsFinder*>(arg)->operator()(obj);
1487 }
1488
Elliott Hughes0cbaff52013-01-16 15:28:01 -08001489 // For bitmap Visit.
1490 // TODO: Fix lock analysis to not use NO_THREAD_SAFETY_ANALYSIS, requires support for
1491 // annotalysis on visitors.
Mathieu Chartier0e54cd02014-03-20 12:41:23 -07001492 void operator()(mirror::Object* o) const NO_THREAD_SAFETY_ANALYSIS {
Ian Rogersb0fa5dc2014-04-28 16:47:08 -07001493 o->VisitReferences<true>(*this, VoidFunctor());
Elliott Hughes0cbaff52013-01-16 15:28:01 -08001494 }
1495
Mathieu Chartier3b05e9b2014-03-25 09:29:43 -07001496 // For Object::VisitReferences.
Mathieu Chartier407f7022014-02-18 14:37:05 -08001497 void operator()(mirror::Object* obj, MemberOffset offset, bool /* is_static */) const
1498 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
Ian Rogersb0fa5dc2014-04-28 16:47:08 -07001499 mirror::Object* ref = obj->GetFieldObject<mirror::Object>(offset);
Mathieu Chartier407f7022014-02-18 14:37:05 -08001500 if (ref == object_ && (max_count_ == 0 || referring_objects_.size() < max_count_)) {
1501 referring_objects_.push_back(obj);
Elliott Hughes0cbaff52013-01-16 15:28:01 -08001502 }
1503 }
1504
1505 private:
Mathieu Chartier2d5f39e2014-09-19 17:52:37 -07001506 const mirror::Object* const object_;
1507 const uint32_t max_count_;
Ian Rogers2dd0e2c2013-01-24 12:42:14 -08001508 std::vector<mirror::Object*>& referring_objects_;
Elliott Hughes0cbaff52013-01-16 15:28:01 -08001509 DISALLOW_COPY_AND_ASSIGN(ReferringObjectsFinder);
1510};
1511
Ian Rogers2dd0e2c2013-01-24 12:42:14 -08001512void Heap::GetReferringObjects(mirror::Object* o, int32_t max_count,
1513 std::vector<mirror::Object*>& referring_objects) {
Mathieu Chartier83c8ee02014-01-28 14:50:23 -08001514 // Can't do any GC in this function since this may move the object o.
Mathieu Chartier2d5f39e2014-09-19 17:52:37 -07001515 ScopedAssertNoThreadSuspension ants(Thread::Current(), "GetReferringObjects");
Elliott Hughes0cbaff52013-01-16 15:28:01 -08001516 ReferringObjectsFinder finder(o, max_count, referring_objects);
Mathieu Chartier2d5f39e2014-09-19 17:52:37 -07001517 ReaderMutexLock mu(ants.Self(), *Locks::heap_bitmap_lock_);
Mathieu Chartier412c7fc2014-02-07 12:18:39 -08001518 VisitObjects(&ReferringObjectsFinder::Callback, &finder);
Elliott Hughes0cbaff52013-01-16 15:28:01 -08001519}
1520
Ian Rogers30fab402012-01-23 15:43:46 -08001521void Heap::CollectGarbage(bool clear_soft_references) {
Mathieu Chartier866fb2a2012-09-10 10:47:49 -07001522 // Even if we waited for a GC we still need to do another GC since weaks allocated during the
1523 // last GC will not have necessarily been cleared.
Mathieu Chartier7bf82af2013-12-06 16:51:45 -08001524 CollectGarbageInternal(gc_plan_.back(), kGcCauseExplicit, clear_soft_references);
Carl Shapiro69759ea2011-07-21 18:13:35 -07001525}
1526
Zuo Wangf37a88b2014-07-10 04:26:41 -07001527HomogeneousSpaceCompactResult Heap::PerformHomogeneousSpaceCompact() {
1528 Thread* self = Thread::Current();
1529 // Inc requested homogeneous space compaction.
1530 count_requested_homogeneous_space_compaction_++;
1531 // Store performed homogeneous space compaction at a new request arrival.
1532 ThreadList* tl = Runtime::Current()->GetThreadList();
1533 ScopedThreadStateChange tsc(self, kWaitingPerformingGc);
1534 Locks::mutator_lock_->AssertNotHeld(self);
1535 {
1536 ScopedThreadStateChange tsc(self, kWaitingForGcToComplete);
1537 MutexLock mu(self, *gc_complete_lock_);
1538 // Ensure there is only one GC at a time.
1539 WaitForGcToCompleteLocked(kGcCauseHomogeneousSpaceCompact, self);
1540 // Homogeneous space compaction is a copying transition, can't run it if the moving GC disable count
1541 // is non zero.
Mathieu Chartier6a7824d2014-08-22 14:53:04 -07001542 // If the collector type changed to something which doesn't benefit from homogeneous space compaction,
Zuo Wangf37a88b2014-07-10 04:26:41 -07001543 // exit.
Mathieu Chartier6a7824d2014-08-22 14:53:04 -07001544 if (disable_moving_gc_count_ != 0 || IsMovingGc(collector_type_) ||
1545 !main_space_->CanMoveObjects()) {
Zuo Wangf37a88b2014-07-10 04:26:41 -07001546 return HomogeneousSpaceCompactResult::kErrorReject;
1547 }
1548 collector_type_running_ = kCollectorTypeHomogeneousSpaceCompact;
1549 }
1550 if (Runtime::Current()->IsShuttingDown(self)) {
1551 // Don't allow heap transitions to happen if the runtime is shutting down since these can
1552 // cause objects to get finalized.
1553 FinishGC(self, collector::kGcTypeNone);
1554 return HomogeneousSpaceCompactResult::kErrorVMShuttingDown;
1555 }
1556 // Suspend all threads.
1557 tl->SuspendAll();
1558 uint64_t start_time = NanoTime();
1559 // Launch compaction.
Mathieu Chartierb363f662014-07-16 13:28:58 -07001560 space::MallocSpace* to_space = main_space_backup_.release();
Zuo Wangf37a88b2014-07-10 04:26:41 -07001561 space::MallocSpace* from_space = main_space_;
1562 to_space->GetMemMap()->Protect(PROT_READ | PROT_WRITE);
1563 const uint64_t space_size_before_compaction = from_space->Size();
Mathieu Chartierb363f662014-07-16 13:28:58 -07001564 AddSpace(to_space);
Zuo Wangf37a88b2014-07-10 04:26:41 -07001565 Compact(to_space, from_space, kGcCauseHomogeneousSpaceCompact);
1566 // Leave as prot read so that we can still run ROSAlloc verification on this space.
1567 from_space->GetMemMap()->Protect(PROT_READ);
1568 const uint64_t space_size_after_compaction = to_space->Size();
Mathieu Chartierb363f662014-07-16 13:28:58 -07001569 main_space_ = to_space;
1570 main_space_backup_.reset(from_space);
1571 RemoveSpace(from_space);
Zuo Wangf37a88b2014-07-10 04:26:41 -07001572 SetSpaceAsDefault(main_space_); // Set as default to reset the proper dlmalloc space.
1573 // Update performed homogeneous space compaction count.
1574 count_performed_homogeneous_space_compaction_++;
1575 // Print statics log and resume all threads.
1576 uint64_t duration = NanoTime() - start_time;
Mathieu Chartier98172a62014-09-02 12:33:25 -07001577 VLOG(heap) << "Heap homogeneous space compaction took " << PrettyDuration(duration) << " size: "
1578 << PrettySize(space_size_before_compaction) << " -> "
1579 << PrettySize(space_size_after_compaction) << " compact-ratio: "
1580 << std::fixed << static_cast<double>(space_size_after_compaction) /
1581 static_cast<double>(space_size_before_compaction);
Zuo Wangf37a88b2014-07-10 04:26:41 -07001582 tl->ResumeAll();
1583 // Finish GC.
1584 reference_processor_.EnqueueClearedReferences(self);
1585 GrowForUtilization(semi_space_collector_);
1586 FinishGC(self, collector::kGcTypeFull);
1587 return HomogeneousSpaceCompactResult::kSuccess;
1588}
1589
1590
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001591void Heap::TransitionCollector(CollectorType collector_type) {
1592 if (collector_type == collector_type_) {
1593 return;
1594 }
Hiroshi Yamauchia4adbfd2014-02-04 18:12:17 -08001595 VLOG(heap) << "TransitionCollector: " << static_cast<int>(collector_type_)
1596 << " -> " << static_cast<int>(collector_type);
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001597 uint64_t start_time = NanoTime();
Ian Rogers3e5cf302014-05-20 16:40:37 -07001598 uint32_t before_allocated = num_bytes_allocated_.LoadSequentiallyConsistent();
Mathieu Chartier52e4b432014-06-10 11:22:31 -07001599 Runtime* const runtime = Runtime::Current();
1600 ThreadList* const tl = runtime->GetThreadList();
1601 Thread* const self = Thread::Current();
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001602 ScopedThreadStateChange tsc(self, kWaitingPerformingGc);
1603 Locks::mutator_lock_->AssertNotHeld(self);
Mathieu Chartier1d27b342014-01-28 12:51:09 -08001604 // Busy wait until we can GC (StartGC can fail if we have a non-zero
1605 // compacting_gc_disable_count_, this should rarely occurs).
Mathieu Chartierd5a89ee2014-01-31 09:55:13 -08001606 for (;;) {
Mathieu Chartiercaa82d62014-02-02 16:51:17 -08001607 {
1608 ScopedThreadStateChange tsc(self, kWaitingForGcToComplete);
1609 MutexLock mu(self, *gc_complete_lock_);
1610 // Ensure there is only one GC at a time.
Mathieu Chartier89a201e2014-05-02 10:27:26 -07001611 WaitForGcToCompleteLocked(kGcCauseCollectorTransition, self);
Mathieu Chartiere4927f62014-08-23 13:56:03 -07001612 // Currently we only need a heap transition if we switch from a moving collector to a
1613 // non-moving one, or visa versa.
1614 const bool copying_transition = IsMovingGc(collector_type_) != IsMovingGc(collector_type);
Mathieu Chartierb38d4832014-04-10 10:56:55 -07001615 // If someone else beat us to it and changed the collector before we could, exit.
1616 // This is safe to do before the suspend all since we set the collector_type_running_ before
1617 // we exit the loop. If another thread attempts to do the heap transition before we exit,
1618 // then it would get blocked on WaitForGcToCompleteLocked.
1619 if (collector_type == collector_type_) {
1620 return;
1621 }
Mathieu Chartiercaa82d62014-02-02 16:51:17 -08001622 // GC can be disabled if someone has a used GetPrimitiveArrayCritical but not yet released.
1623 if (!copying_transition || disable_moving_gc_count_ == 0) {
1624 // TODO: Not hard code in semi-space collector?
1625 collector_type_running_ = copying_transition ? kCollectorTypeSS : collector_type;
1626 break;
1627 }
Mathieu Chartierd5a89ee2014-01-31 09:55:13 -08001628 }
Mathieu Chartiercaa82d62014-02-02 16:51:17 -08001629 usleep(1000);
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001630 }
Mathieu Chartier52e4b432014-06-10 11:22:31 -07001631 if (runtime->IsShuttingDown(self)) {
Hiroshi Yamauchia6a8d142014-05-12 16:57:33 -07001632 // Don't allow heap transitions to happen if the runtime is shutting down since these can
1633 // cause objects to get finalized.
1634 FinishGC(self, collector::kGcTypeNone);
1635 return;
1636 }
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001637 tl->SuspendAll();
1638 switch (collector_type) {
Mathieu Chartierb363f662014-07-16 13:28:58 -07001639 case kCollectorTypeSS: {
Mathieu Chartier31f44142014-04-08 14:40:03 -07001640 if (!IsMovingGc(collector_type_)) {
Mathieu Chartierb363f662014-07-16 13:28:58 -07001641 // Create the bump pointer space from the backup space.
1642 CHECK(main_space_backup_ != nullptr);
1643 std::unique_ptr<MemMap> mem_map(main_space_backup_->ReleaseMemMap());
Mathieu Chartier31f44142014-04-08 14:40:03 -07001644 // We are transitioning from non moving GC -> moving GC, since we copied from the bump
1645 // pointer space last transition it will be protected.
Mathieu Chartierb363f662014-07-16 13:28:58 -07001646 CHECK(mem_map != nullptr);
1647 mem_map->Protect(PROT_READ | PROT_WRITE);
1648 bump_pointer_space_ = space::BumpPointerSpace::CreateFromMemMap("Bump pointer space",
1649 mem_map.release());
1650 AddSpace(bump_pointer_space_);
Zuo Wangf37a88b2014-07-10 04:26:41 -07001651 Compact(bump_pointer_space_, main_space_, kGcCauseCollectorTransition);
Mathieu Chartierb363f662014-07-16 13:28:58 -07001652 // Use the now empty main space mem map for the bump pointer temp space.
1653 mem_map.reset(main_space_->ReleaseMemMap());
Mathieu Chartier00b59152014-07-25 10:13:51 -07001654 // Unset the pointers just in case.
1655 if (dlmalloc_space_ == main_space_) {
1656 dlmalloc_space_ = nullptr;
1657 } else if (rosalloc_space_ == main_space_) {
1658 rosalloc_space_ = nullptr;
1659 }
Mathieu Chartier2796a162014-07-25 11:50:47 -07001660 // Remove the main space so that we don't try to trim it, this doens't work for debug
1661 // builds since RosAlloc attempts to read the magic number from a protected page.
1662 RemoveSpace(main_space_);
Mathieu Chartierc5a83472014-07-23 18:45:17 -07001663 RemoveRememberedSet(main_space_);
Mathieu Chartier2796a162014-07-25 11:50:47 -07001664 delete main_space_; // Delete the space since it has been removed.
Mathieu Chartierc5a83472014-07-23 18:45:17 -07001665 main_space_ = nullptr;
Mathieu Chartier2796a162014-07-25 11:50:47 -07001666 RemoveRememberedSet(main_space_backup_.get());
1667 main_space_backup_.reset(nullptr); // Deletes the space.
Mathieu Chartierb363f662014-07-16 13:28:58 -07001668 temp_space_ = space::BumpPointerSpace::CreateFromMemMap("Bump pointer space 2",
1669 mem_map.release());
1670 AddSpace(temp_space_);
Mathieu Chartier31f44142014-04-08 14:40:03 -07001671 }
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001672 break;
1673 }
1674 case kCollectorTypeMS:
1675 // Fall through.
1676 case kCollectorTypeCMS: {
Mathieu Chartier31f44142014-04-08 14:40:03 -07001677 if (IsMovingGc(collector_type_)) {
Mathieu Chartierb363f662014-07-16 13:28:58 -07001678 CHECK(temp_space_ != nullptr);
1679 std::unique_ptr<MemMap> mem_map(temp_space_->ReleaseMemMap());
1680 RemoveSpace(temp_space_);
1681 temp_space_ = nullptr;
Mathieu Chartier36dab362014-07-30 14:59:56 -07001682 mem_map->Protect(PROT_READ | PROT_WRITE);
Mathieu Chartierb363f662014-07-16 13:28:58 -07001683 CreateMainMallocSpace(mem_map.get(), kDefaultInitialSize, mem_map->Size(),
1684 mem_map->Size());
1685 mem_map.release();
Mathieu Chartier31f44142014-04-08 14:40:03 -07001686 // Compact to the main space from the bump pointer space, don't need to swap semispaces.
Mathieu Chartier1b54f9c2014-04-30 16:45:02 -07001687 AddSpace(main_space_);
Zuo Wangf37a88b2014-07-10 04:26:41 -07001688 Compact(main_space_, bump_pointer_space_, kGcCauseCollectorTransition);
Mathieu Chartierb363f662014-07-16 13:28:58 -07001689 mem_map.reset(bump_pointer_space_->ReleaseMemMap());
1690 RemoveSpace(bump_pointer_space_);
1691 bump_pointer_space_ = nullptr;
1692 const char* name = kUseRosAlloc ? kRosAllocSpaceName[1] : kDlMallocSpaceName[1];
Hiroshi Yamauchic1276c82014-08-07 10:27:17 -07001693 // Temporarily unprotect the backup mem map so rosalloc can write the debug magic number.
1694 if (kIsDebugBuild && kUseRosAlloc) {
1695 mem_map->Protect(PROT_READ | PROT_WRITE);
1696 }
Mathieu Chartierb363f662014-07-16 13:28:58 -07001697 main_space_backup_.reset(CreateMallocSpaceFromMemMap(mem_map.get(), kDefaultInitialSize,
1698 mem_map->Size(), mem_map->Size(),
1699 name, true));
Hiroshi Yamauchic1276c82014-08-07 10:27:17 -07001700 if (kIsDebugBuild && kUseRosAlloc) {
1701 mem_map->Protect(PROT_NONE);
1702 }
Mathieu Chartierb363f662014-07-16 13:28:58 -07001703 mem_map.release();
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001704 }
1705 break;
1706 }
1707 default: {
Hiroshi Yamauchid5307ec2014-03-27 21:07:51 -07001708 LOG(FATAL) << "Attempted to transition to invalid collector type "
1709 << static_cast<size_t>(collector_type);
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001710 break;
1711 }
1712 }
1713 ChangeCollector(collector_type);
1714 tl->ResumeAll();
1715 // Can't call into java code with all threads suspended.
Mathieu Chartier308351a2014-06-15 12:39:02 -07001716 reference_processor_.EnqueueClearedReferences(self);
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001717 uint64_t duration = NanoTime() - start_time;
Mathieu Chartierafe49982014-03-27 10:55:04 -07001718 GrowForUtilization(semi_space_collector_);
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001719 FinishGC(self, collector::kGcTypeFull);
Ian Rogers3e5cf302014-05-20 16:40:37 -07001720 int32_t after_allocated = num_bytes_allocated_.LoadSequentiallyConsistent();
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001721 int32_t delta_allocated = before_allocated - after_allocated;
Mathieu Chartier19d46b42014-06-17 15:04:40 -07001722 std::string saved_str;
1723 if (delta_allocated >= 0) {
1724 saved_str = " saved at least " + PrettySize(delta_allocated);
1725 } else {
1726 saved_str = " expanded " + PrettySize(-delta_allocated);
1727 }
Mathieu Chartier98172a62014-09-02 12:33:25 -07001728 VLOG(heap) << "Heap transition to " << process_state_ << " took "
Mathieu Chartier19d46b42014-06-17 15:04:40 -07001729 << PrettyDuration(duration) << saved_str;
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001730}
1731
Mathieu Chartier0de9f732013-11-22 17:58:48 -08001732void Heap::ChangeCollector(CollectorType collector_type) {
Mathieu Chartier7bf82af2013-12-06 16:51:45 -08001733 // TODO: Only do this with all mutators suspended to avoid races.
1734 if (collector_type != collector_type_) {
Mathieu Chartier52e4b432014-06-10 11:22:31 -07001735 if (collector_type == kCollectorTypeMC) {
1736 // Don't allow mark compact unless support is compiled in.
1737 CHECK(kMarkCompactSupport);
1738 }
Mathieu Chartier7bf82af2013-12-06 16:51:45 -08001739 collector_type_ = collector_type;
1740 gc_plan_.clear();
1741 switch (collector_type_) {
Hiroshi Yamauchid5307ec2014-03-27 21:07:51 -07001742 case kCollectorTypeCC: // Fall-through.
Mathieu Chartier52e4b432014-06-10 11:22:31 -07001743 case kCollectorTypeMC: // Fall-through.
Hiroshi Yamauchi3e417802014-03-20 12:03:02 -07001744 case kCollectorTypeSS: // Fall-through.
Hiroshi Yamauchi6f4ffe42014-01-13 12:30:44 -08001745 case kCollectorTypeGSS: {
Mathieu Chartier7bf82af2013-12-06 16:51:45 -08001746 gc_plan_.push_back(collector::kGcTypeFull);
Mathieu Chartier692fafd2013-11-29 17:24:40 -08001747 if (use_tlab_) {
1748 ChangeAllocator(kAllocatorTypeTLAB);
1749 } else {
1750 ChangeAllocator(kAllocatorTypeBumpPointer);
1751 }
Mathieu Chartier7bf82af2013-12-06 16:51:45 -08001752 break;
1753 }
1754 case kCollectorTypeMS: {
Mathieu Chartier7bf82af2013-12-06 16:51:45 -08001755 gc_plan_.push_back(collector::kGcTypeSticky);
1756 gc_plan_.push_back(collector::kGcTypePartial);
1757 gc_plan_.push_back(collector::kGcTypeFull);
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001758 ChangeAllocator(kUseRosAlloc ? kAllocatorTypeRosAlloc : kAllocatorTypeDlMalloc);
Mathieu Chartier7bf82af2013-12-06 16:51:45 -08001759 break;
1760 }
1761 case kCollectorTypeCMS: {
Mathieu Chartier7bf82af2013-12-06 16:51:45 -08001762 gc_plan_.push_back(collector::kGcTypeSticky);
1763 gc_plan_.push_back(collector::kGcTypePartial);
1764 gc_plan_.push_back(collector::kGcTypeFull);
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08001765 ChangeAllocator(kUseRosAlloc ? kAllocatorTypeRosAlloc : kAllocatorTypeDlMalloc);
Mathieu Chartier7bf82af2013-12-06 16:51:45 -08001766 break;
1767 }
1768 default: {
Ian Rogers2c4257b2014-10-24 14:20:06 -07001769 UNIMPLEMENTED(FATAL);
1770 UNREACHABLE();
Mathieu Chartier7bf82af2013-12-06 16:51:45 -08001771 }
Mathieu Chartier0de9f732013-11-22 17:58:48 -08001772 }
Hiroshi Yamauchi3e417802014-03-20 12:03:02 -07001773 if (IsGcConcurrent()) {
Mathieu Chartier7bf82af2013-12-06 16:51:45 -08001774 concurrent_start_bytes_ =
1775 std::max(max_allowed_footprint_, kMinConcurrentRemainingBytes) - kMinConcurrentRemainingBytes;
1776 } else {
1777 concurrent_start_bytes_ = std::numeric_limits<size_t>::max();
Mathieu Chartier0de9f732013-11-22 17:58:48 -08001778 }
1779 }
1780}
1781
Mathieu Chartier85a43c02014-01-07 17:59:00 -08001782// Special compacting collector which uses sub-optimal bin packing to reduce zygote space size.
Ian Rogers6fac4472014-02-25 17:01:10 -08001783class ZygoteCompactingCollector FINAL : public collector::SemiSpace {
Mathieu Chartier85a43c02014-01-07 17:59:00 -08001784 public:
Hiroshi Yamauchi38e68e92014-03-07 13:59:08 -08001785 explicit ZygoteCompactingCollector(gc::Heap* heap) : SemiSpace(heap, false, "zygote collector"),
Ian Rogers6fac4472014-02-25 17:01:10 -08001786 bin_live_bitmap_(nullptr), bin_mark_bitmap_(nullptr) {
Mathieu Chartier85a43c02014-01-07 17:59:00 -08001787 }
1788
1789 void BuildBins(space::ContinuousSpace* space) {
1790 bin_live_bitmap_ = space->GetLiveBitmap();
1791 bin_mark_bitmap_ = space->GetMarkBitmap();
1792 BinContext context;
1793 context.prev_ = reinterpret_cast<uintptr_t>(space->Begin());
1794 context.collector_ = this;
1795 WriterMutexLock mu(Thread::Current(), *Locks::heap_bitmap_lock_);
1796 // Note: This requires traversing the space in increasing order of object addresses.
1797 bin_live_bitmap_->Walk(Callback, reinterpret_cast<void*>(&context));
1798 // Add the last bin which spans after the last object to the end of the space.
1799 AddBin(reinterpret_cast<uintptr_t>(space->End()) - context.prev_, context.prev_);
1800 }
1801
1802 private:
1803 struct BinContext {
1804 uintptr_t prev_; // The end of the previous object.
1805 ZygoteCompactingCollector* collector_;
1806 };
1807 // Maps from bin sizes to locations.
1808 std::multimap<size_t, uintptr_t> bins_;
1809 // Live bitmap of the space which contains the bins.
Mathieu Chartiera8e8f9c2014-04-09 14:51:05 -07001810 accounting::ContinuousSpaceBitmap* bin_live_bitmap_;
Mathieu Chartier85a43c02014-01-07 17:59:00 -08001811 // Mark bitmap of the space which contains the bins.
Mathieu Chartiera8e8f9c2014-04-09 14:51:05 -07001812 accounting::ContinuousSpaceBitmap* bin_mark_bitmap_;
Mathieu Chartier85a43c02014-01-07 17:59:00 -08001813
1814 static void Callback(mirror::Object* obj, void* arg)
1815 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
1816 DCHECK(arg != nullptr);
1817 BinContext* context = reinterpret_cast<BinContext*>(arg);
1818 ZygoteCompactingCollector* collector = context->collector_;
1819 uintptr_t object_addr = reinterpret_cast<uintptr_t>(obj);
1820 size_t bin_size = object_addr - context->prev_;
1821 // Add the bin consisting of the end of the previous object to the start of the current object.
1822 collector->AddBin(bin_size, context->prev_);
1823 context->prev_ = object_addr + RoundUp(obj->SizeOf(), kObjectAlignment);
1824 }
1825
1826 void AddBin(size_t size, uintptr_t position) {
1827 if (size != 0) {
1828 bins_.insert(std::make_pair(size, position));
1829 }
1830 }
1831
Mathieu Chartiera1602f22014-01-13 17:19:19 -08001832 virtual bool ShouldSweepSpace(space::ContinuousSpace* space) const {
Mathieu Chartier85a43c02014-01-07 17:59:00 -08001833 // Don't sweep any spaces since we probably blasted the internal accounting of the free list
1834 // allocator.
1835 return false;
1836 }
1837
1838 virtual mirror::Object* MarkNonForwardedObject(mirror::Object* obj)
1839 EXCLUSIVE_LOCKS_REQUIRED(Locks::heap_bitmap_lock_, Locks::mutator_lock_) {
1840 size_t object_size = RoundUp(obj->SizeOf(), kObjectAlignment);
Mathieu Chartier5dc08a62014-01-10 10:10:23 -08001841 mirror::Object* forward_address;
Mathieu Chartier85a43c02014-01-07 17:59:00 -08001842 // Find the smallest bin which we can move obj in.
1843 auto it = bins_.lower_bound(object_size);
1844 if (it == bins_.end()) {
1845 // No available space in the bins, place it in the target space instead (grows the zygote
1846 // space).
Mathieu Chartier5dc08a62014-01-10 10:10:23 -08001847 size_t bytes_allocated;
Ian Rogers6fac4472014-02-25 17:01:10 -08001848 forward_address = to_space_->Alloc(self_, object_size, &bytes_allocated, nullptr);
Mathieu Chartier85a43c02014-01-07 17:59:00 -08001849 if (to_space_live_bitmap_ != nullptr) {
1850 to_space_live_bitmap_->Set(forward_address);
Mathieu Chartier938a03b2014-01-16 15:10:31 -08001851 } else {
1852 GetHeap()->GetNonMovingSpace()->GetLiveBitmap()->Set(forward_address);
1853 GetHeap()->GetNonMovingSpace()->GetMarkBitmap()->Set(forward_address);
Mathieu Chartier85a43c02014-01-07 17:59:00 -08001854 }
1855 } else {
1856 size_t size = it->first;
1857 uintptr_t pos = it->second;
1858 bins_.erase(it); // Erase the old bin which we replace with the new smaller bin.
1859 forward_address = reinterpret_cast<mirror::Object*>(pos);
1860 // Set the live and mark bits so that sweeping system weaks works properly.
1861 bin_live_bitmap_->Set(forward_address);
1862 bin_mark_bitmap_->Set(forward_address);
1863 DCHECK_GE(size, object_size);
1864 AddBin(size - object_size, pos + object_size); // Add a new bin with the remaining space.
1865 }
1866 // Copy the object over to its new location.
1867 memcpy(reinterpret_cast<void*>(forward_address), obj, object_size);
Hiroshi Yamauchi624468c2014-03-31 15:14:47 -07001868 if (kUseBakerOrBrooksReadBarrier) {
1869 obj->AssertReadBarrierPointer();
1870 if (kUseBrooksReadBarrier) {
1871 DCHECK_EQ(forward_address->GetReadBarrierPointer(), obj);
1872 forward_address->SetReadBarrierPointer(forward_address);
1873 }
1874 forward_address->AssertReadBarrierPointer();
Hiroshi Yamauchi9d04a202014-01-31 13:35:49 -08001875 }
Mathieu Chartier85a43c02014-01-07 17:59:00 -08001876 return forward_address;
1877 }
1878};
1879
Mathieu Chartiera1602f22014-01-13 17:19:19 -08001880void Heap::UnBindBitmaps() {
Mathieu Chartierf5997b42014-06-20 10:37:54 -07001881 TimingLogger::ScopedTiming t("UnBindBitmaps", GetCurrentGcIteration()->GetTimings());
Mathieu Chartiera1602f22014-01-13 17:19:19 -08001882 for (const auto& space : GetContinuousSpaces()) {
1883 if (space->IsContinuousMemMapAllocSpace()) {
1884 space::ContinuousMemMapAllocSpace* alloc_space = space->AsContinuousMemMapAllocSpace();
1885 if (alloc_space->HasBoundBitmaps()) {
1886 alloc_space->UnBindBitmaps();
1887 }
1888 }
1889 }
1890}
1891
Mathieu Chartiercc236d72012-07-20 10:29:05 -07001892void Heap::PreZygoteFork() {
Mathieu Chartier1f3b5352014-02-03 14:00:42 -08001893 CollectGarbageInternal(collector::kGcTypeFull, kGcCauseBackground, false);
Ian Rogers81d425b2012-09-27 16:03:43 -07001894 Thread* self = Thread::Current();
1895 MutexLock mu(self, zygote_creation_lock_);
Mathieu Chartiercc236d72012-07-20 10:29:05 -07001896 // Try to see if we have any Zygote spaces.
Mathieu Chartiere4cab172014-08-19 18:24:04 -07001897 if (HasZygoteSpace()) {
1898 LOG(WARNING) << __FUNCTION__ << " called when we already have a zygote space.";
Mathieu Chartiercc236d72012-07-20 10:29:05 -07001899 return;
1900 }
Mathieu Chartiereb175f72014-10-31 11:49:27 -07001901 Runtime::Current()->GetInternTable()->SwapPostZygoteWithPreZygote();
Mathieu Chartier590fee92013-09-13 13:46:47 -07001902 VLOG(heap) << "Starting PreZygoteFork";
Mathieu Chartier590fee92013-09-13 13:46:47 -07001903 // Trim the pages at the end of the non moving space.
1904 non_moving_space_->Trim();
Mathieu Chartier31f44142014-04-08 14:40:03 -07001905 // The end of the non-moving space may be protected, unprotect it so that we can copy the zygote
1906 // there.
Mathieu Chartier590fee92013-09-13 13:46:47 -07001907 non_moving_space_->GetMemMap()->Protect(PROT_READ | PROT_WRITE);
Mathieu Chartier6a7824d2014-08-22 14:53:04 -07001908 const bool same_space = non_moving_space_ == main_space_;
Mathieu Chartier31f44142014-04-08 14:40:03 -07001909 if (kCompactZygote) {
Mathieu Chartier6a7824d2014-08-22 14:53:04 -07001910 // Can't compact if the non moving space is the same as the main space.
Mathieu Chartier31f44142014-04-08 14:40:03 -07001911 DCHECK(semi_space_collector_ != nullptr);
Hiroshi Yamauchia4adbfd2014-02-04 18:12:17 -08001912 // Temporarily disable rosalloc verification because the zygote
1913 // compaction will mess up the rosalloc internal metadata.
1914 ScopedDisableRosAllocVerification disable_rosalloc_verif(this);
Mathieu Chartier85a43c02014-01-07 17:59:00 -08001915 ZygoteCompactingCollector zygote_collector(this);
1916 zygote_collector.BuildBins(non_moving_space_);
Mathieu Chartier50482232013-11-21 11:48:14 -08001917 // Create a new bump pointer space which we will compact into.
Mathieu Chartier590fee92013-09-13 13:46:47 -07001918 space::BumpPointerSpace target_space("zygote bump space", non_moving_space_->End(),
1919 non_moving_space_->Limit());
1920 // Compact the bump pointer space to a new zygote bump pointer space.
Mathieu Chartier31f44142014-04-08 14:40:03 -07001921 bool reset_main_space = false;
1922 if (IsMovingGc(collector_type_)) {
1923 zygote_collector.SetFromSpace(bump_pointer_space_);
1924 } else {
1925 CHECK(main_space_ != nullptr);
1926 // Copy from the main space.
1927 zygote_collector.SetFromSpace(main_space_);
1928 reset_main_space = true;
1929 }
Mathieu Chartier85a43c02014-01-07 17:59:00 -08001930 zygote_collector.SetToSpace(&target_space);
Mathieu Chartier1b54f9c2014-04-30 16:45:02 -07001931 zygote_collector.SetSwapSemiSpaces(false);
Hiroshi Yamauchi6f4ffe42014-01-13 12:30:44 -08001932 zygote_collector.Run(kGcCauseCollectorTransition, false);
Mathieu Chartier31f44142014-04-08 14:40:03 -07001933 if (reset_main_space) {
1934 main_space_->GetMemMap()->Protect(PROT_READ | PROT_WRITE);
1935 madvise(main_space_->Begin(), main_space_->Capacity(), MADV_DONTNEED);
1936 MemMap* mem_map = main_space_->ReleaseMemMap();
1937 RemoveSpace(main_space_);
Mathieu Chartier96bcd452014-06-17 09:50:02 -07001938 space::Space* old_main_space = main_space_;
Mathieu Chartier31f44142014-04-08 14:40:03 -07001939 CreateMainMallocSpace(mem_map, kDefaultInitialSize, mem_map->Size(), mem_map->Size());
Mathieu Chartier96bcd452014-06-17 09:50:02 -07001940 delete old_main_space;
Mathieu Chartier31f44142014-04-08 14:40:03 -07001941 AddSpace(main_space_);
1942 } else {
1943 bump_pointer_space_->GetMemMap()->Protect(PROT_READ | PROT_WRITE);
1944 }
1945 if (temp_space_ != nullptr) {
1946 CHECK(temp_space_->IsEmpty());
1947 }
Mathieu Chartier10fb83a2014-06-15 15:15:43 -07001948 total_objects_freed_ever_ += GetCurrentGcIteration()->GetFreedObjects();
1949 total_bytes_freed_ever_ += GetCurrentGcIteration()->GetFreedBytes();
Mathieu Chartier590fee92013-09-13 13:46:47 -07001950 // Update the end and write out image.
1951 non_moving_space_->SetEnd(target_space.End());
1952 non_moving_space_->SetLimit(target_space.Limit());
Mathieu Chartier31f44142014-04-08 14:40:03 -07001953 VLOG(heap) << "Zygote space size " << non_moving_space_->Size() << " bytes";
Mathieu Chartier357e9be2012-08-01 11:00:14 -07001954 }
Mathieu Chartier6a7824d2014-08-22 14:53:04 -07001955 // Change the collector to the post zygote one.
Mathieu Chartier31f44142014-04-08 14:40:03 -07001956 ChangeCollector(foreground_collector_type_);
Mathieu Chartiera1602f22014-01-13 17:19:19 -08001957 // Save the old space so that we can remove it after we complete creating the zygote space.
1958 space::MallocSpace* old_alloc_space = non_moving_space_;
Mathieu Chartier590fee92013-09-13 13:46:47 -07001959 // Turn the current alloc space into a zygote space and obtain the new alloc space composed of
Mathieu Chartiera1602f22014-01-13 17:19:19 -08001960 // the remaining available space.
1961 // Remove the old space before creating the zygote space since creating the zygote space sets
1962 // the old alloc space's bitmaps to nullptr.
1963 RemoveSpace(old_alloc_space);
Hiroshi Yamauchi38e68e92014-03-07 13:59:08 -08001964 if (collector::SemiSpace::kUseRememberedSet) {
1965 // Sanity bound check.
1966 FindRememberedSetFromSpace(old_alloc_space)->AssertAllDirtyCardsAreWithinSpace();
1967 // Remove the remembered set for the now zygote space (the old
1968 // non-moving space). Note now that we have compacted objects into
1969 // the zygote space, the data in the remembered set is no longer
1970 // needed. The zygote space will instead have a mod-union table
1971 // from this point on.
1972 RemoveRememberedSet(old_alloc_space);
1973 }
Mathieu Chartiere4cab172014-08-19 18:24:04 -07001974 zygote_space_ = old_alloc_space->CreateZygoteSpace("alloc space", low_memory_mode_,
1975 &non_moving_space_);
Mathieu Chartierb363f662014-07-16 13:28:58 -07001976 CHECK(!non_moving_space_->CanMoveObjects());
1977 if (same_space) {
1978 main_space_ = non_moving_space_;
1979 SetSpaceAsDefault(main_space_);
1980 }
Mathieu Chartiera1602f22014-01-13 17:19:19 -08001981 delete old_alloc_space;
Mathieu Chartiere4cab172014-08-19 18:24:04 -07001982 CHECK(HasZygoteSpace()) << "Failed creating zygote space";
1983 AddSpace(zygote_space_);
Mathieu Chartier31f44142014-04-08 14:40:03 -07001984 non_moving_space_->SetFootprintLimit(non_moving_space_->Capacity());
1985 AddSpace(non_moving_space_);
Mathieu Chartier11409ae2013-09-23 11:49:36 -07001986 // Create the zygote space mod union table.
1987 accounting::ModUnionTable* mod_union_table =
Mathieu Chartiere4cab172014-08-19 18:24:04 -07001988 new accounting::ModUnionTableCardCache("zygote space mod-union table", this,
1989 zygote_space_);
Mathieu Chartier11409ae2013-09-23 11:49:36 -07001990 CHECK(mod_union_table != nullptr) << "Failed to create zygote space mod-union table";
Mathieu Chartiere4cab172014-08-19 18:24:04 -07001991 // Set all the cards in the mod-union table since we don't know which objects contain references
1992 // to large objects.
1993 mod_union_table->SetCards();
Mathieu Chartier11409ae2013-09-23 11:49:36 -07001994 AddModUnionTable(mod_union_table);
Hiroshi Yamauchi38e68e92014-03-07 13:59:08 -08001995 if (collector::SemiSpace::kUseRememberedSet) {
Hiroshi Yamauchi38e68e92014-03-07 13:59:08 -08001996 // Add a new remembered set for the post-zygote non-moving space.
1997 accounting::RememberedSet* post_zygote_non_moving_space_rem_set =
1998 new accounting::RememberedSet("Post-zygote non-moving space remembered set", this,
1999 non_moving_space_);
2000 CHECK(post_zygote_non_moving_space_rem_set != nullptr)
2001 << "Failed to create post-zygote non-moving space remembered set";
2002 AddRememberedSet(post_zygote_non_moving_space_rem_set);
2003 }
Mathieu Chartiercc236d72012-07-20 10:29:05 -07002004}
2005
Mathieu Chartier357e9be2012-08-01 11:00:14 -07002006void Heap::FlushAllocStack() {
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08002007 MarkAllocStackAsLive(allocation_stack_.get());
Mathieu Chartier357e9be2012-08-01 11:00:14 -07002008 allocation_stack_->Reset();
2009}
2010
Mathieu Chartiera8e8f9c2014-04-09 14:51:05 -07002011void Heap::MarkAllocStack(accounting::ContinuousSpaceBitmap* bitmap1,
2012 accounting::ContinuousSpaceBitmap* bitmap2,
Mathieu Chartierbbd695c2014-04-16 09:48:48 -07002013 accounting::LargeObjectBitmap* large_objects,
Ian Rogers1d54e732013-05-02 21:10:01 -07002014 accounting::ObjectStack* stack) {
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08002015 DCHECK(bitmap1 != nullptr);
2016 DCHECK(bitmap2 != nullptr);
Ian Rogers2dd0e2c2013-01-24 12:42:14 -08002017 mirror::Object** limit = stack->End();
2018 for (mirror::Object** it = stack->Begin(); it != limit; ++it) {
2019 const mirror::Object* obj = *it;
Hiroshi Yamauchif5b0e202014-02-11 17:02:22 -08002020 if (!kUseThreadLocalAllocationStack || obj != nullptr) {
2021 if (bitmap1->HasAddress(obj)) {
2022 bitmap1->Set(obj);
2023 } else if (bitmap2->HasAddress(obj)) {
2024 bitmap2->Set(obj);
2025 } else {
Mathieu Chartier2dbe6272014-09-16 10:43:23 -07002026 DCHECK(large_objects != nullptr);
Hiroshi Yamauchif5b0e202014-02-11 17:02:22 -08002027 large_objects->Set(obj);
2028 }
Mathieu Chartiere0f0cb32012-08-28 11:26:00 -07002029 }
Mathieu Chartier357e9be2012-08-01 11:00:14 -07002030 }
2031}
2032
Mathieu Chartier590fee92013-09-13 13:46:47 -07002033void Heap::SwapSemiSpaces() {
Mathieu Chartier31f44142014-04-08 14:40:03 -07002034 CHECK(bump_pointer_space_ != nullptr);
2035 CHECK(temp_space_ != nullptr);
Mathieu Chartier590fee92013-09-13 13:46:47 -07002036 std::swap(bump_pointer_space_, temp_space_);
2037}
2038
2039void Heap::Compact(space::ContinuousMemMapAllocSpace* target_space,
Zuo Wangf37a88b2014-07-10 04:26:41 -07002040 space::ContinuousMemMapAllocSpace* source_space,
2041 GcCause gc_cause) {
Mathieu Chartier590fee92013-09-13 13:46:47 -07002042 CHECK(kMovingCollector);
Mathieu Chartier590fee92013-09-13 13:46:47 -07002043 if (target_space != source_space) {
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002044 // Don't swap spaces since this isn't a typical semi space collection.
2045 semi_space_collector_->SetSwapSemiSpaces(false);
Mathieu Chartier590fee92013-09-13 13:46:47 -07002046 semi_space_collector_->SetFromSpace(source_space);
2047 semi_space_collector_->SetToSpace(target_space);
Zuo Wangf37a88b2014-07-10 04:26:41 -07002048 semi_space_collector_->Run(gc_cause, false);
Mathieu Chartier52e4b432014-06-10 11:22:31 -07002049 } else {
2050 CHECK(target_space->IsBumpPointerSpace())
2051 << "In-place compaction is only supported for bump pointer spaces";
2052 mark_compact_collector_->SetSpace(target_space->AsBumpPointerSpace());
2053 mark_compact_collector_->Run(kGcCauseCollectorTransition, false);
Mathieu Chartier590fee92013-09-13 13:46:47 -07002054 }
2055}
Anwar Ghuloum67f99412013-08-12 14:19:48 -07002056
Ian Rogers1d54e732013-05-02 21:10:01 -07002057collector::GcType Heap::CollectGarbageInternal(collector::GcType gc_type, GcCause gc_cause,
2058 bool clear_soft_references) {
Ian Rogers81d425b2012-09-27 16:03:43 -07002059 Thread* self = Thread::Current();
Mathieu Chartier590fee92013-09-13 13:46:47 -07002060 Runtime* runtime = Runtime::Current();
Mathieu Chartiercbb2d202013-11-14 17:45:16 -08002061 // If the heap can't run the GC, silently fail and return that no GC was run.
2062 switch (gc_type) {
Mathieu Chartiercbb2d202013-11-14 17:45:16 -08002063 case collector::kGcTypePartial: {
Mathieu Chartiere4cab172014-08-19 18:24:04 -07002064 if (!HasZygoteSpace()) {
Mathieu Chartiercbb2d202013-11-14 17:45:16 -08002065 return collector::kGcTypeNone;
2066 }
2067 break;
2068 }
2069 default: {
2070 // Other GC types don't have any special cases which makes them not runnable. The main case
2071 // here is full GC.
2072 }
2073 }
Mathieu Chartier65db8802012-11-20 12:36:46 -08002074 ScopedThreadStateChange tsc(self, kWaitingPerformingGc);
Ian Rogers81d425b2012-09-27 16:03:43 -07002075 Locks::mutator_lock_->AssertNotHeld(self);
Ian Rogers120f1c72012-09-28 17:17:10 -07002076 if (self->IsHandlingStackOverflow()) {
2077 LOG(WARNING) << "Performing GC on a thread that is handling a stack overflow.";
2078 }
Mathieu Chartierd5a89ee2014-01-31 09:55:13 -08002079 bool compacting_gc;
2080 {
2081 gc_complete_lock_->AssertNotHeld(self);
Mathieu Chartiercaa82d62014-02-02 16:51:17 -08002082 ScopedThreadStateChange tsc(self, kWaitingForGcToComplete);
Mathieu Chartierd5a89ee2014-01-31 09:55:13 -08002083 MutexLock mu(self, *gc_complete_lock_);
2084 // Ensure there is only one GC at a time.
Mathieu Chartier89a201e2014-05-02 10:27:26 -07002085 WaitForGcToCompleteLocked(gc_cause, self);
Mathieu Chartier31f44142014-04-08 14:40:03 -07002086 compacting_gc = IsMovingGc(collector_type_);
Mathieu Chartierd5a89ee2014-01-31 09:55:13 -08002087 // GC can be disabled if someone has a used GetPrimitiveArrayCritical.
2088 if (compacting_gc && disable_moving_gc_count_ != 0) {
2089 LOG(WARNING) << "Skipping GC due to disable moving GC count " << disable_moving_gc_count_;
2090 return collector::kGcTypeNone;
2091 }
2092 collector_type_running_ = collector_type_;
Ian Rogers00f7d0e2012-07-19 15:28:27 -07002093 }
Mathieu Chartierd5a89ee2014-01-31 09:55:13 -08002094
Mathieu Chartier590fee92013-09-13 13:46:47 -07002095 if (gc_cause == kGcCauseForAlloc && runtime->HasStatsEnabled()) {
2096 ++runtime->GetStats()->gc_for_alloc_count;
2097 ++self->GetStats()->gc_for_alloc_count;
Mathieu Chartier2fde5332012-09-14 14:51:54 -07002098 }
Ian Rogers1d54e732013-05-02 21:10:01 -07002099 uint64_t gc_start_time_ns = NanoTime();
Mathieu Chartier65db8802012-11-20 12:36:46 -08002100 uint64_t gc_start_size = GetBytesAllocated();
2101 // Approximate allocation rate in bytes / second.
Ian Rogers1d54e732013-05-02 21:10:01 -07002102 uint64_t ms_delta = NsToMs(gc_start_time_ns - last_gc_time_ns_);
Mathieu Chartier590fee92013-09-13 13:46:47 -07002103 // Back to back GCs can cause 0 ms of wait time in between GC invocations.
2104 if (LIKELY(ms_delta != 0)) {
Ian Rogers1d54e732013-05-02 21:10:01 -07002105 allocation_rate_ = ((gc_start_size - last_gc_size_) * 1000) / ms_delta;
Mathieu Chartier1b636c62014-08-13 10:08:05 -07002106 ATRACE_INT("Allocation rate KB/s", allocation_rate_ / KB);
Mathieu Chartier65db8802012-11-20 12:36:46 -08002107 VLOG(heap) << "Allocation rate: " << PrettySize(allocation_rate_) << "/s";
2108 }
2109
Ian Rogers1d54e732013-05-02 21:10:01 -07002110 DCHECK_LT(gc_type, collector::kGcTypeMax);
2111 DCHECK_NE(gc_type, collector::kGcTypeNone);
Anwar Ghuloum67f99412013-08-12 14:19:48 -07002112
Mathieu Chartier590fee92013-09-13 13:46:47 -07002113 collector::GarbageCollector* collector = nullptr;
Mathieu Chartier50482232013-11-21 11:48:14 -08002114 // TODO: Clean this up.
Mathieu Chartier1d27b342014-01-28 12:51:09 -08002115 if (compacting_gc) {
Mathieu Chartier692fafd2013-11-29 17:24:40 -08002116 DCHECK(current_allocator_ == kAllocatorTypeBumpPointer ||
2117 current_allocator_ == kAllocatorTypeTLAB);
Mathieu Chartier52e4b432014-06-10 11:22:31 -07002118 switch (collector_type_) {
2119 case kCollectorTypeSS:
2120 // Fall-through.
2121 case kCollectorTypeGSS:
2122 semi_space_collector_->SetFromSpace(bump_pointer_space_);
2123 semi_space_collector_->SetToSpace(temp_space_);
2124 semi_space_collector_->SetSwapSemiSpaces(true);
2125 collector = semi_space_collector_;
2126 break;
2127 case kCollectorTypeCC:
2128 collector = concurrent_copying_collector_;
2129 break;
2130 case kCollectorTypeMC:
2131 mark_compact_collector_->SetSpace(bump_pointer_space_);
2132 collector = mark_compact_collector_;
2133 break;
2134 default:
2135 LOG(FATAL) << "Invalid collector type " << static_cast<size_t>(collector_type_);
Hiroshi Yamauchid5307ec2014-03-27 21:07:51 -07002136 }
Mathieu Chartier52e4b432014-06-10 11:22:31 -07002137 if (collector != mark_compact_collector_) {
2138 temp_space_->GetMemMap()->Protect(PROT_READ | PROT_WRITE);
2139 CHECK(temp_space_->IsEmpty());
2140 }
2141 gc_type = collector::kGcTypeFull; // TODO: Not hard code this in.
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08002142 } else if (current_allocator_ == kAllocatorTypeRosAlloc ||
2143 current_allocator_ == kAllocatorTypeDlMalloc) {
Mathieu Chartierafe49982014-03-27 10:55:04 -07002144 collector = FindCollectorByGcType(gc_type);
Mathieu Chartier50482232013-11-21 11:48:14 -08002145 } else {
2146 LOG(FATAL) << "Invalid current allocator " << current_allocator_;
Mathieu Chartier590fee92013-09-13 13:46:47 -07002147 }
Mathieu Chartier08cef222014-10-22 17:18:34 -07002148 if (IsGcConcurrent()) {
2149 // Disable concurrent GC check so that we don't have spammy JNI requests.
2150 // This gets recalculated in GrowForUtilization. It is important that it is disabled /
2151 // calculated in the same thread so that there aren't any races that can cause it to become
2152 // permanantly disabled. b/17942071
2153 concurrent_start_bytes_ = std::numeric_limits<size_t>::max();
2154 }
Mathieu Chartier7bf82af2013-12-06 16:51:45 -08002155 CHECK(collector != nullptr)
Hiroshi Yamauchi3e417802014-03-20 12:03:02 -07002156 << "Could not find garbage collector with collector_type="
2157 << static_cast<size_t>(collector_type_) << " and gc_type=" << gc_type;
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002158 collector->Run(gc_cause, clear_soft_references || runtime->IsZygote());
Mathieu Chartier10fb83a2014-06-15 15:15:43 -07002159 total_objects_freed_ever_ += GetCurrentGcIteration()->GetFreedObjects();
2160 total_bytes_freed_ever_ += GetCurrentGcIteration()->GetFreedBytes();
Mathieu Chartier7bf52d22014-03-13 14:46:09 -07002161 RequestHeapTrim();
Mathieu Chartier39e32612013-11-12 16:28:05 -08002162 // Enqueue cleared references.
Mathieu Chartier308351a2014-06-15 12:39:02 -07002163 reference_processor_.EnqueueClearedReferences(self);
Mathieu Chartier590fee92013-09-13 13:46:47 -07002164 // Grow the heap so that we know when to perform the next GC.
Mathieu Chartierafe49982014-03-27 10:55:04 -07002165 GrowForUtilization(collector);
Mathieu Chartier10fb83a2014-06-15 15:15:43 -07002166 const size_t duration = GetCurrentGcIteration()->GetDurationNs();
2167 const std::vector<uint64_t>& pause_times = GetCurrentGcIteration()->GetPauseTimes();
Mathieu Chartier62ab87b2014-04-28 12:22:07 -07002168 // Print the GC if it is an explicit GC (e.g. Runtime.gc()) or a slow GC
Mathieu Chartierf5997b42014-06-20 10:37:54 -07002169 // (mutator time blocked >= long_pause_log_threshold_).
Mathieu Chartier62ab87b2014-04-28 12:22:07 -07002170 bool log_gc = gc_cause == kGcCauseExplicit;
2171 if (!log_gc && CareAboutPauseTimes()) {
Mathieu Chartiere53225c2013-08-19 10:59:11 -07002172 // GC for alloc pauses the allocating thread, so consider it as a pause.
Mathieu Chartier62ab87b2014-04-28 12:22:07 -07002173 log_gc = duration > long_gc_log_threshold_ ||
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08002174 (gc_cause == kGcCauseForAlloc && duration > long_pause_log_threshold_);
Mathieu Chartier62ab87b2014-04-28 12:22:07 -07002175 for (uint64_t pause : pause_times) {
2176 log_gc = log_gc || pause >= long_pause_log_threshold_;
Mathieu Chartiere53225c2013-08-19 10:59:11 -07002177 }
Mathieu Chartier62ab87b2014-04-28 12:22:07 -07002178 }
2179 if (log_gc) {
2180 const size_t percent_free = GetPercentFree();
2181 const size_t current_heap_size = GetBytesAllocated();
2182 const size_t total_memory = GetTotalMemory();
2183 std::ostringstream pause_string;
2184 for (size_t i = 0; i < pause_times.size(); ++i) {
2185 pause_string << PrettyDuration((pause_times[i] / 1000) * 1000)
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002186 << ((i != pause_times.size() - 1) ? "," : "");
Mathieu Chartiere53225c2013-08-19 10:59:11 -07002187 }
Mathieu Chartier62ab87b2014-04-28 12:22:07 -07002188 LOG(INFO) << gc_cause << " " << collector->GetName()
Mathieu Chartier10fb83a2014-06-15 15:15:43 -07002189 << " GC freed " << current_gc_iteration_.GetFreedObjects() << "("
2190 << PrettySize(current_gc_iteration_.GetFreedBytes()) << ") AllocSpace objects, "
2191 << current_gc_iteration_.GetFreedLargeObjects() << "("
2192 << PrettySize(current_gc_iteration_.GetFreedLargeObjectBytes()) << ") LOS objects, "
Mathieu Chartier62ab87b2014-04-28 12:22:07 -07002193 << percent_free << "% free, " << PrettySize(current_heap_size) << "/"
2194 << PrettySize(total_memory) << ", " << "paused " << pause_string.str()
2195 << " total " << PrettyDuration((duration / 1000) * 1000);
Ian Rogersc7dd2952014-10-21 23:31:19 -07002196 VLOG(heap) << Dumpable<TimingLogger>(*current_gc_iteration_.GetTimings());
Mathieu Chartier2b82db42012-11-14 17:29:05 -08002197 }
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08002198 FinishGC(self, gc_type);
Anwar Ghuloum4446ab92013-08-09 21:17:25 -07002199 // Inform DDMS that a GC completed.
Ian Rogers15bf2d32012-08-28 17:33:04 -07002200 Dbg::GcDidFinish();
Mathieu Chartier866fb2a2012-09-10 10:47:49 -07002201 return gc_type;
Ian Rogers00f7d0e2012-07-19 15:28:27 -07002202}
Mathieu Chartiera6399032012-06-11 18:49:50 -07002203
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08002204void Heap::FinishGC(Thread* self, collector::GcType gc_type) {
2205 MutexLock mu(self, *gc_complete_lock_);
Mathieu Chartierd5a89ee2014-01-31 09:55:13 -08002206 collector_type_running_ = kCollectorTypeNone;
2207 if (gc_type != collector::kGcTypeNone) {
2208 last_gc_type_ = gc_type;
2209 }
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08002210 // Wake anyone who may have been waiting for the GC to complete.
2211 gc_complete_cond_->Broadcast(self);
2212}
2213
Mathieu Chartier815873e2014-02-13 18:02:13 -08002214static void RootMatchesObjectVisitor(mirror::Object** root, void* arg, uint32_t /*thread_id*/,
2215 RootType /*root_type*/) {
Ian Rogers2dd0e2c2013-01-24 12:42:14 -08002216 mirror::Object* obj = reinterpret_cast<mirror::Object*>(arg);
Mathieu Chartier815873e2014-02-13 18:02:13 -08002217 if (*root == obj) {
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002218 LOG(INFO) << "Object " << obj << " is a root";
2219 }
2220}
2221
2222class ScanVisitor {
2223 public:
Brian Carlstromdf629502013-07-17 22:39:56 -07002224 void operator()(const mirror::Object* obj) const {
Mathieu Chartier0f72e412013-09-06 16:40:01 -07002225 LOG(ERROR) << "Would have rescanned object " << obj;
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002226 }
2227};
2228
Ian Rogers1d54e732013-05-02 21:10:01 -07002229// Verify a reference from an object.
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002230class VerifyReferenceVisitor {
2231 public:
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002232 explicit VerifyReferenceVisitor(Heap* heap, Atomic<size_t>* fail_count, bool verify_referent)
Ian Rogers1d54e732013-05-02 21:10:01 -07002233 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_, Locks::heap_bitmap_lock_)
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002234 : heap_(heap), fail_count_(fail_count), verify_referent_(verify_referent) {}
Ian Rogers1d54e732013-05-02 21:10:01 -07002235
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002236 size_t GetFailureCount() const {
Mathieu Chartiere9e55ac2014-05-21 17:48:25 -07002237 return fail_count_->LoadSequentiallyConsistent();
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002238 }
2239
Mathieu Chartier407f7022014-02-18 14:37:05 -08002240 void operator()(mirror::Class* klass, mirror::Reference* ref) const
2241 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
Mathieu Chartier78f7b4c2014-05-06 10:57:27 -07002242 if (verify_referent_) {
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002243 VerifyReference(ref, ref->GetReferent(), mirror::Reference::ReferentOffset());
Mathieu Chartier78f7b4c2014-05-06 10:57:27 -07002244 }
Mathieu Chartier407f7022014-02-18 14:37:05 -08002245 }
2246
Mathieu Chartier3b05e9b2014-03-25 09:29:43 -07002247 void operator()(mirror::Object* obj, MemberOffset offset, bool /*is_static*/) const
Mathieu Chartier407f7022014-02-18 14:37:05 -08002248 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002249 VerifyReference(obj, obj->GetFieldObject<mirror::Object>(offset), offset);
Mathieu Chartier407f7022014-02-18 14:37:05 -08002250 }
2251
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002252 bool IsLive(mirror::Object* obj) const NO_THREAD_SAFETY_ANALYSIS {
2253 return heap_->IsLiveObjectLocked(obj, true, false, true);
2254 }
2255
2256 static void VerifyRootCallback(mirror::Object** root, void* arg, uint32_t thread_id,
2257 RootType root_type) SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
2258 VerifyReferenceVisitor* visitor = reinterpret_cast<VerifyReferenceVisitor*>(arg);
2259 if (!visitor->VerifyReference(nullptr, *root, MemberOffset(0))) {
2260 LOG(ERROR) << "Root " << *root << " is dead with type " << PrettyTypeOf(*root)
2261 << " thread_id= " << thread_id << " root_type= " << root_type;
2262 }
2263 }
2264
2265 private:
Mathieu Chartier407f7022014-02-18 14:37:05 -08002266 // TODO: Fix the no thread safety analysis.
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002267 // Returns false on failure.
2268 bool VerifyReference(mirror::Object* obj, mirror::Object* ref, MemberOffset offset) const
Ian Rogers2dd0e2c2013-01-24 12:42:14 -08002269 NO_THREAD_SAFETY_ANALYSIS {
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002270 if (ref == nullptr || IsLive(ref)) {
2271 // Verify that the reference is live.
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002272 return true;
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002273 }
Mathieu Chartiere9e55ac2014-05-21 17:48:25 -07002274 if (fail_count_->FetchAndAddSequentiallyConsistent(1) == 0) {
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002275 // Print message on only on first failure to prevent spam.
2276 LOG(ERROR) << "!!!!!!!!!!!!!!Heap corruption detected!!!!!!!!!!!!!!!!!!!";
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002277 }
2278 if (obj != nullptr) {
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002279 // Only do this part for non roots.
Ian Rogers1d54e732013-05-02 21:10:01 -07002280 accounting::CardTable* card_table = heap_->GetCardTable();
2281 accounting::ObjectStack* alloc_stack = heap_->allocation_stack_.get();
2282 accounting::ObjectStack* live_stack = heap_->live_stack_.get();
Ian Rogers13735952014-10-08 12:43:28 -07002283 uint8_t* card_addr = card_table->CardFromAddr(obj);
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002284 LOG(ERROR) << "Object " << obj << " references dead object " << ref << " at offset "
2285 << offset << "\n card value = " << static_cast<int>(*card_addr);
2286 if (heap_->IsValidObjectAddress(obj->GetClass())) {
2287 LOG(ERROR) << "Obj type " << PrettyTypeOf(obj);
2288 } else {
2289 LOG(ERROR) << "Object " << obj << " class(" << obj->GetClass() << ") not a heap address";
Mathieu Chartier0f72e412013-09-06 16:40:01 -07002290 }
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002291
Mathieu Chartierb363f662014-07-16 13:28:58 -07002292 // Attempt to find the class inside of the recently freed objects.
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002293 space::ContinuousSpace* ref_space = heap_->FindContinuousSpaceFromObject(ref, true);
2294 if (ref_space != nullptr && ref_space->IsMallocSpace()) {
2295 space::MallocSpace* space = ref_space->AsMallocSpace();
2296 mirror::Class* ref_class = space->FindRecentFreedObject(ref);
2297 if (ref_class != nullptr) {
2298 LOG(ERROR) << "Reference " << ref << " found as a recently freed object with class "
2299 << PrettyClass(ref_class);
Mathieu Chartier0f72e412013-09-06 16:40:01 -07002300 } else {
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002301 LOG(ERROR) << "Reference " << ref << " not found as a recently freed object";
Mathieu Chartier0f72e412013-09-06 16:40:01 -07002302 }
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002303 }
Mathieu Chartier0f72e412013-09-06 16:40:01 -07002304
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002305 if (ref->GetClass() != nullptr && heap_->IsValidObjectAddress(ref->GetClass()) &&
2306 ref->GetClass()->IsClass()) {
2307 LOG(ERROR) << "Ref type " << PrettyTypeOf(ref);
2308 } else {
2309 LOG(ERROR) << "Ref " << ref << " class(" << ref->GetClass()
2310 << ") is not a valid heap address";
2311 }
2312
Ian Rogers13735952014-10-08 12:43:28 -07002313 card_table->CheckAddrIsInCardTable(reinterpret_cast<const uint8_t*>(obj));
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002314 void* cover_begin = card_table->AddrFromCard(card_addr);
2315 void* cover_end = reinterpret_cast<void*>(reinterpret_cast<size_t>(cover_begin) +
2316 accounting::CardTable::kCardSize);
2317 LOG(ERROR) << "Card " << reinterpret_cast<void*>(card_addr) << " covers " << cover_begin
2318 << "-" << cover_end;
Mathieu Chartiera8e8f9c2014-04-09 14:51:05 -07002319 accounting::ContinuousSpaceBitmap* bitmap =
2320 heap_->GetLiveBitmap()->GetContinuousSpaceBitmap(obj);
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002321
2322 if (bitmap == nullptr) {
2323 LOG(ERROR) << "Object " << obj << " has no bitmap";
Mathieu Chartier4e305412014-02-19 10:54:44 -08002324 if (!VerifyClassClass(obj->GetClass())) {
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002325 LOG(ERROR) << "Object " << obj << " failed class verification!";
Mathieu Chartier0f72e412013-09-06 16:40:01 -07002326 }
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002327 } else {
Ian Rogers1d54e732013-05-02 21:10:01 -07002328 // Print out how the object is live.
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002329 if (bitmap->Test(obj)) {
Ian Rogers1d54e732013-05-02 21:10:01 -07002330 LOG(ERROR) << "Object " << obj << " found in live bitmap";
2331 }
Mathieu Chartier0f72e412013-09-06 16:40:01 -07002332 if (alloc_stack->Contains(const_cast<mirror::Object*>(obj))) {
Ian Rogers1d54e732013-05-02 21:10:01 -07002333 LOG(ERROR) << "Object " << obj << " found in allocation stack";
2334 }
Mathieu Chartier0f72e412013-09-06 16:40:01 -07002335 if (live_stack->Contains(const_cast<mirror::Object*>(obj))) {
Ian Rogers1d54e732013-05-02 21:10:01 -07002336 LOG(ERROR) << "Object " << obj << " found in live stack";
2337 }
Mathieu Chartier0f72e412013-09-06 16:40:01 -07002338 if (alloc_stack->Contains(const_cast<mirror::Object*>(ref))) {
2339 LOG(ERROR) << "Ref " << ref << " found in allocation stack";
2340 }
2341 if (live_stack->Contains(const_cast<mirror::Object*>(ref))) {
2342 LOG(ERROR) << "Ref " << ref << " found in live stack";
2343 }
Ian Rogers1d54e732013-05-02 21:10:01 -07002344 // Attempt to see if the card table missed the reference.
2345 ScanVisitor scan_visitor;
Ian Rogers13735952014-10-08 12:43:28 -07002346 uint8_t* byte_cover_begin = reinterpret_cast<uint8_t*>(card_table->AddrFromCard(card_addr));
Ian Rogers1d54e732013-05-02 21:10:01 -07002347 card_table->Scan(bitmap, byte_cover_begin,
Mathieu Chartier184e3222013-08-03 14:02:57 -07002348 byte_cover_begin + accounting::CardTable::kCardSize, scan_visitor);
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002349 }
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002350
2351 // Search to see if any of the roots reference our object.
2352 void* arg = const_cast<void*>(reinterpret_cast<const void*>(obj));
Mathieu Chartier893263b2014-03-04 11:07:42 -08002353 Runtime::Current()->VisitRoots(&RootMatchesObjectVisitor, arg);
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002354
2355 // Search to see if any of the roots reference our reference.
2356 arg = const_cast<void*>(reinterpret_cast<const void*>(ref));
Mathieu Chartier893263b2014-03-04 11:07:42 -08002357 Runtime::Current()->VisitRoots(&RootMatchesObjectVisitor, arg);
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002358 }
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002359 return false;
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002360 }
2361
Ian Rogers1d54e732013-05-02 21:10:01 -07002362 Heap* const heap_;
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002363 Atomic<size_t>* const fail_count_;
2364 const bool verify_referent_;
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002365};
2366
Ian Rogers1d54e732013-05-02 21:10:01 -07002367// Verify all references within an object, for use with HeapBitmap::Visit.
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002368class VerifyObjectVisitor {
2369 public:
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002370 explicit VerifyObjectVisitor(Heap* heap, Atomic<size_t>* fail_count, bool verify_referent)
2371 : heap_(heap), fail_count_(fail_count), verify_referent_(verify_referent) {
Mathieu Chartier78f7b4c2014-05-06 10:57:27 -07002372 }
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002373
Mathieu Chartier590fee92013-09-13 13:46:47 -07002374 void operator()(mirror::Object* obj) const
Ian Rogersb726dcb2012-09-05 08:57:23 -07002375 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_, Locks::heap_bitmap_lock_) {
Ian Rogers1d54e732013-05-02 21:10:01 -07002376 // Note: we are verifying the references in obj but not obj itself, this is because obj must
2377 // be live or else how did we find it in the live bitmap?
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002378 VerifyReferenceVisitor visitor(heap_, fail_count_, verify_referent_);
Mathieu Chartier0f72e412013-09-06 16:40:01 -07002379 // The class doesn't count as a reference but we should verify it anyways.
Mathieu Chartier407f7022014-02-18 14:37:05 -08002380 obj->VisitReferences<true>(visitor, visitor);
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002381 }
2382
Mathieu Chartier590fee92013-09-13 13:46:47 -07002383 static void VisitCallback(mirror::Object* obj, void* arg)
2384 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_, Locks::heap_bitmap_lock_) {
2385 VerifyObjectVisitor* visitor = reinterpret_cast<VerifyObjectVisitor*>(arg);
2386 visitor->operator()(obj);
2387 }
2388
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002389 size_t GetFailureCount() const {
Mathieu Chartiere9e55ac2014-05-21 17:48:25 -07002390 return fail_count_->LoadSequentiallyConsistent();
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002391 }
2392
2393 private:
Ian Rogers1d54e732013-05-02 21:10:01 -07002394 Heap* const heap_;
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002395 Atomic<size_t>* const fail_count_;
Mathieu Chartier78f7b4c2014-05-06 10:57:27 -07002396 const bool verify_referent_;
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002397};
2398
Mathieu Chartierc1790162014-05-23 10:54:50 -07002399void Heap::PushOnAllocationStackWithInternalGC(Thread* self, mirror::Object** obj) {
2400 // Slow path, the allocation stack push back must have already failed.
2401 DCHECK(!allocation_stack_->AtomicPushBack(*obj));
2402 do {
2403 // TODO: Add handle VerifyObject.
2404 StackHandleScope<1> hs(self);
2405 HandleWrapper<mirror::Object> wrapper(hs.NewHandleWrapper(obj));
2406 // Push our object into the reserve region of the allocaiton stack. This is only required due
2407 // to heap verification requiring that roots are live (either in the live bitmap or in the
2408 // allocation stack).
2409 CHECK(allocation_stack_->AtomicPushBackIgnoreGrowthLimit(*obj));
2410 CollectGarbageInternal(collector::kGcTypeSticky, kGcCauseForAlloc, false);
2411 } while (!allocation_stack_->AtomicPushBack(*obj));
2412}
2413
2414void Heap::PushOnThreadLocalAllocationStackWithInternalGC(Thread* self, mirror::Object** obj) {
2415 // Slow path, the allocation stack push back must have already failed.
2416 DCHECK(!self->PushOnThreadLocalAllocationStack(*obj));
2417 mirror::Object** start_address;
2418 mirror::Object** end_address;
2419 while (!allocation_stack_->AtomicBumpBack(kThreadLocalAllocationStackSize, &start_address,
2420 &end_address)) {
2421 // TODO: Add handle VerifyObject.
2422 StackHandleScope<1> hs(self);
2423 HandleWrapper<mirror::Object> wrapper(hs.NewHandleWrapper(obj));
2424 // Push our object into the reserve region of the allocaiton stack. This is only required due
2425 // to heap verification requiring that roots are live (either in the live bitmap or in the
2426 // allocation stack).
2427 CHECK(allocation_stack_->AtomicPushBackIgnoreGrowthLimit(*obj));
2428 // Push into the reserve allocation stack.
2429 CollectGarbageInternal(collector::kGcTypeSticky, kGcCauseForAlloc, false);
2430 }
2431 self->SetThreadLocalAllocationStack(start_address, end_address);
2432 // Retry on the new thread-local allocation stack.
2433 CHECK(self->PushOnThreadLocalAllocationStack(*obj)); // Must succeed.
2434}
2435
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002436// Must do this with mutators suspended since we are directly accessing the allocation stacks.
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002437size_t Heap::VerifyHeapReferences(bool verify_referents) {
Hiroshi Yamauchi1ed90612014-02-14 15:00:51 -08002438 Thread* self = Thread::Current();
2439 Locks::mutator_lock_->AssertExclusiveHeld(self);
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002440 // Lets sort our allocation stacks so that we can efficiently binary search them.
Ian Rogers1d54e732013-05-02 21:10:01 -07002441 allocation_stack_->Sort();
2442 live_stack_->Sort();
Hiroshi Yamauchi1ed90612014-02-14 15:00:51 -08002443 // Since we sorted the allocation stack content, need to revoke all
2444 // thread-local allocation stacks.
2445 RevokeAllThreadLocalAllocationStacks(self);
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002446 Atomic<size_t> fail_count_(0);
2447 VerifyObjectVisitor visitor(this, &fail_count_, verify_referents);
Mathieu Chartier0f72e412013-09-06 16:40:01 -07002448 // Verify objects in the allocation stack since these will be objects which were:
2449 // 1. Allocated prior to the GC (pre GC verification).
2450 // 2. Allocated during the GC (pre sweep GC verification).
Mathieu Chartier0f72e412013-09-06 16:40:01 -07002451 // We don't want to verify the objects in the live stack since they themselves may be
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002452 // pointing to dead objects if they are not reachable.
Mathieu Chartier590fee92013-09-13 13:46:47 -07002453 VisitObjects(VerifyObjectVisitor::VisitCallback, &visitor);
2454 // Verify the roots:
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002455 Runtime::Current()->VisitRoots(VerifyReferenceVisitor::VerifyRootCallback, &visitor);
2456 if (visitor.GetFailureCount() > 0) {
Mathieu Chartier0f72e412013-09-06 16:40:01 -07002457 // Dump mod-union tables.
Mathieu Chartier11409ae2013-09-23 11:49:36 -07002458 for (const auto& table_pair : mod_union_tables_) {
2459 accounting::ModUnionTable* mod_union_table = table_pair.second;
2460 mod_union_table->Dump(LOG(ERROR) << mod_union_table->GetName() << ": ");
2461 }
Hiroshi Yamauchi38e68e92014-03-07 13:59:08 -08002462 // Dump remembered sets.
2463 for (const auto& table_pair : remembered_sets_) {
2464 accounting::RememberedSet* remembered_set = table_pair.second;
2465 remembered_set->Dump(LOG(ERROR) << remembered_set->GetName() << ": ");
2466 }
Mathieu Chartier4c13a3f2014-07-14 14:57:16 -07002467 DumpSpaces(LOG(ERROR));
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002468 }
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002469 return visitor.GetFailureCount();
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002470}
2471
2472class VerifyReferenceCardVisitor {
2473 public:
2474 VerifyReferenceCardVisitor(Heap* heap, bool* failed)
2475 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_,
2476 Locks::heap_bitmap_lock_)
Ian Rogers1d54e732013-05-02 21:10:01 -07002477 : heap_(heap), failed_(failed) {
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002478 }
2479
Mathieu Chartier4da7f2f2012-11-13 12:51:01 -08002480 // TODO: Fix lock analysis to not use NO_THREAD_SAFETY_ANALYSIS, requires support for
2481 // annotalysis on visitors.
Mathieu Chartier407f7022014-02-18 14:37:05 -08002482 void operator()(mirror::Object* obj, MemberOffset offset, bool is_static) const
2483 NO_THREAD_SAFETY_ANALYSIS {
Ian Rogersb0fa5dc2014-04-28 16:47:08 -07002484 mirror::Object* ref = obj->GetFieldObject<mirror::Object>(offset);
Mathieu Chartier4da7f2f2012-11-13 12:51:01 -08002485 // Filter out class references since changing an object's class does not mark the card as dirty.
2486 // Also handles large objects, since the only reference they hold is a class reference.
Mathieu Chartier407f7022014-02-18 14:37:05 -08002487 if (ref != nullptr && !ref->IsClass()) {
Ian Rogers1d54e732013-05-02 21:10:01 -07002488 accounting::CardTable* card_table = heap_->GetCardTable();
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002489 // If the object is not dirty and it is referencing something in the live stack other than
2490 // class, then it must be on a dirty card.
Mathieu Chartier7469ebf2012-09-24 16:28:36 -07002491 if (!card_table->AddrIsInCardTable(obj)) {
2492 LOG(ERROR) << "Object " << obj << " is not in the address range of the card table";
2493 *failed_ = true;
Mathieu Chartier2b82db42012-11-14 17:29:05 -08002494 } else if (!card_table->IsDirty(obj)) {
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002495 // TODO: Check mod-union tables.
Mathieu Chartier4da7f2f2012-11-13 12:51:01 -08002496 // Card should be either kCardDirty if it got re-dirtied after we aged it, or
2497 // kCardDirty - 1 if it didnt get touched since we aged it.
Ian Rogers1d54e732013-05-02 21:10:01 -07002498 accounting::ObjectStack* live_stack = heap_->live_stack_.get();
Mathieu Chartier407f7022014-02-18 14:37:05 -08002499 if (live_stack->ContainsSorted(ref)) {
2500 if (live_stack->ContainsSorted(obj)) {
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002501 LOG(ERROR) << "Object " << obj << " found in live stack";
2502 }
2503 if (heap_->GetLiveBitmap()->Test(obj)) {
2504 LOG(ERROR) << "Object " << obj << " found in live bitmap";
2505 }
2506 LOG(ERROR) << "Object " << obj << " " << PrettyTypeOf(obj)
2507 << " references " << ref << " " << PrettyTypeOf(ref) << " in live stack";
2508
2509 // Print which field of the object is dead.
2510 if (!obj->IsObjectArray()) {
Ian Rogersef7d42f2014-01-06 12:55:46 -08002511 mirror::Class* klass = is_static ? obj->AsClass() : obj->GetClass();
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002512 CHECK(klass != NULL);
Ian Rogersef7d42f2014-01-06 12:55:46 -08002513 mirror::ObjectArray<mirror::ArtField>* fields = is_static ? klass->GetSFields()
2514 : klass->GetIFields();
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002515 CHECK(fields != NULL);
2516 for (int32_t i = 0; i < fields->GetLength(); ++i) {
Ian Rogersef7d42f2014-01-06 12:55:46 -08002517 mirror::ArtField* cur = fields->Get(i);
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002518 if (cur->GetOffset().Int32Value() == offset.Int32Value()) {
2519 LOG(ERROR) << (is_static ? "Static " : "") << "field in the live stack is "
2520 << PrettyField(cur);
2521 break;
2522 }
2523 }
2524 } else {
Ian Rogersef7d42f2014-01-06 12:55:46 -08002525 mirror::ObjectArray<mirror::Object>* object_array =
Ian Rogers2dd0e2c2013-01-24 12:42:14 -08002526 obj->AsObjectArray<mirror::Object>();
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002527 for (int32_t i = 0; i < object_array->GetLength(); ++i) {
2528 if (object_array->Get(i) == ref) {
2529 LOG(ERROR) << (is_static ? "Static " : "") << "obj[" << i << "] = ref";
2530 }
2531 }
2532 }
2533
2534 *failed_ = true;
2535 }
2536 }
2537 }
2538 }
2539
2540 private:
Ian Rogers1d54e732013-05-02 21:10:01 -07002541 Heap* const heap_;
2542 bool* const failed_;
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002543};
2544
2545class VerifyLiveStackReferences {
2546 public:
Brian Carlstrom93ba8932013-07-17 21:31:49 -07002547 explicit VerifyLiveStackReferences(Heap* heap)
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002548 : heap_(heap),
Brian Carlstrom93ba8932013-07-17 21:31:49 -07002549 failed_(false) {}
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002550
Mathieu Chartier11409ae2013-09-23 11:49:36 -07002551 void operator()(mirror::Object* obj) const
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002552 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_, Locks::heap_bitmap_lock_) {
2553 VerifyReferenceCardVisitor visitor(heap_, const_cast<bool*>(&failed_));
Ian Rogersb0fa5dc2014-04-28 16:47:08 -07002554 obj->VisitReferences<true>(visitor, VoidFunctor());
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002555 }
2556
2557 bool Failed() const {
2558 return failed_;
2559 }
2560
2561 private:
Ian Rogers1d54e732013-05-02 21:10:01 -07002562 Heap* const heap_;
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002563 bool failed_;
2564};
2565
2566bool Heap::VerifyMissingCardMarks() {
Hiroshi Yamauchi1ed90612014-02-14 15:00:51 -08002567 Thread* self = Thread::Current();
2568 Locks::mutator_lock_->AssertExclusiveHeld(self);
Mathieu Chartier2b82db42012-11-14 17:29:05 -08002569 // We need to sort the live stack since we binary search it.
Ian Rogers1d54e732013-05-02 21:10:01 -07002570 live_stack_->Sort();
Hiroshi Yamauchi1ed90612014-02-14 15:00:51 -08002571 // Since we sorted the allocation stack content, need to revoke all
2572 // thread-local allocation stacks.
2573 RevokeAllThreadLocalAllocationStacks(self);
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002574 VerifyLiveStackReferences visitor(this);
2575 GetLiveBitmap()->Visit(visitor);
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002576 // We can verify objects in the live stack since none of these should reference dead objects.
Ian Rogers2dd0e2c2013-01-24 12:42:14 -08002577 for (mirror::Object** it = live_stack_->Begin(); it != live_stack_->End(); ++it) {
Hiroshi Yamauchif5b0e202014-02-11 17:02:22 -08002578 if (!kUseThreadLocalAllocationStack || *it != nullptr) {
2579 visitor(*it);
2580 }
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002581 }
Mathieu Chartier4c13a3f2014-07-14 14:57:16 -07002582 return !visitor.Failed();
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002583}
2584
Hiroshi Yamauchif5b0e202014-02-11 17:02:22 -08002585void Heap::SwapStacks(Thread* self) {
2586 if (kUseThreadLocalAllocationStack) {
2587 live_stack_->AssertAllZero();
2588 }
Mathieu Chartierd22d5482012-11-06 17:14:12 -08002589 allocation_stack_.swap(live_stack_);
Mathieu Chartierc7b83a02012-09-11 18:07:39 -07002590}
2591
Hiroshi Yamauchif5b0e202014-02-11 17:02:22 -08002592void Heap::RevokeAllThreadLocalAllocationStacks(Thread* self) {
Hiroshi Yamauchif5b0e202014-02-11 17:02:22 -08002593 // This must be called only during the pause.
2594 CHECK(Locks::mutator_lock_->IsExclusiveHeld(self));
2595 MutexLock mu(self, *Locks::runtime_shutdown_lock_);
2596 MutexLock mu2(self, *Locks::thread_list_lock_);
2597 std::list<Thread*> thread_list = Runtime::Current()->GetThreadList()->GetList();
2598 for (Thread* t : thread_list) {
2599 t->RevokeThreadLocalAllocationStack();
2600 }
2601}
2602
Ian Rogers68d8b422014-07-17 11:09:10 -07002603void Heap::AssertThreadLocalBuffersAreRevoked(Thread* thread) {
2604 if (kIsDebugBuild) {
2605 if (rosalloc_space_ != nullptr) {
2606 rosalloc_space_->AssertThreadLocalBuffersAreRevoked(thread);
2607 }
2608 if (bump_pointer_space_ != nullptr) {
2609 bump_pointer_space_->AssertThreadLocalBuffersAreRevoked(thread);
2610 }
2611 }
2612}
2613
Hiroshi Yamauchic93c5302014-03-20 16:15:37 -07002614void Heap::AssertAllBumpPointerSpaceThreadLocalBuffersAreRevoked() {
2615 if (kIsDebugBuild) {
2616 if (bump_pointer_space_ != nullptr) {
2617 bump_pointer_space_->AssertAllThreadLocalBuffersAreRevoked();
2618 }
2619 }
2620}
2621
Mathieu Chartier11409ae2013-09-23 11:49:36 -07002622accounting::ModUnionTable* Heap::FindModUnionTableFromSpace(space::Space* space) {
2623 auto it = mod_union_tables_.find(space);
2624 if (it == mod_union_tables_.end()) {
2625 return nullptr;
2626 }
2627 return it->second;
2628}
2629
Hiroshi Yamauchi38e68e92014-03-07 13:59:08 -08002630accounting::RememberedSet* Heap::FindRememberedSetFromSpace(space::Space* space) {
2631 auto it = remembered_sets_.find(space);
2632 if (it == remembered_sets_.end()) {
2633 return nullptr;
2634 }
2635 return it->second;
2636}
2637
Mathieu Chartier10fb83a2014-06-15 15:15:43 -07002638void Heap::ProcessCards(TimingLogger* timings, bool use_rem_sets) {
Mathieu Chartierf5997b42014-06-20 10:37:54 -07002639 TimingLogger::ScopedTiming t(__FUNCTION__, timings);
Ian Rogers1d54e732013-05-02 21:10:01 -07002640 // Clear cards and keep track of cards cleared in the mod-union table.
Mathieu Chartier02e25112013-08-14 16:14:24 -07002641 for (const auto& space : continuous_spaces_) {
Mathieu Chartier11409ae2013-09-23 11:49:36 -07002642 accounting::ModUnionTable* table = FindModUnionTableFromSpace(space);
Hiroshi Yamauchi38e68e92014-03-07 13:59:08 -08002643 accounting::RememberedSet* rem_set = FindRememberedSetFromSpace(space);
Mathieu Chartier11409ae2013-09-23 11:49:36 -07002644 if (table != nullptr) {
2645 const char* name = space->IsZygoteSpace() ? "ZygoteModUnionClearCards" :
2646 "ImageModUnionClearCards";
Mathieu Chartierf5997b42014-06-20 10:37:54 -07002647 TimingLogger::ScopedTiming t(name, timings);
Mathieu Chartier11409ae2013-09-23 11:49:36 -07002648 table->ClearCards();
Hiroshi Yamauchi38e68e92014-03-07 13:59:08 -08002649 } else if (use_rem_sets && rem_set != nullptr) {
2650 DCHECK(collector::SemiSpace::kUseRememberedSet && collector_type_ == kCollectorTypeGSS)
2651 << static_cast<int>(collector_type_);
Mathieu Chartierf5997b42014-06-20 10:37:54 -07002652 TimingLogger::ScopedTiming t("AllocSpaceRemSetClearCards", timings);
Hiroshi Yamauchi38e68e92014-03-07 13:59:08 -08002653 rem_set->ClearCards();
Mathieu Chartier590fee92013-09-13 13:46:47 -07002654 } else if (space->GetType() != space::kSpaceTypeBumpPointerSpace) {
Mathieu Chartierf5997b42014-06-20 10:37:54 -07002655 TimingLogger::ScopedTiming t("AllocSpaceClearCards", timings);
Mathieu Chartierd22d5482012-11-06 17:14:12 -08002656 // No mod union table for the AllocSpace. Age the cards so that the GC knows that these cards
2657 // were dirty before the GC started.
Mathieu Chartierbd0a6532014-02-27 11:14:21 -08002658 // TODO: Need to use atomic for the case where aged(cleaning thread) -> dirty(other thread)
2659 // -> clean(cleaning thread).
Mathieu Chartier590fee92013-09-13 13:46:47 -07002660 // The races are we either end up with: Aged card, unaged card. Since we have the checkpoint
Mathieu Chartier938a03b2014-01-16 15:10:31 -08002661 // roots and then we scan / update mod union tables after. We will always scan either card.
Mathieu Chartier590fee92013-09-13 13:46:47 -07002662 // If we end up with the non aged card, we scan it it in the pause.
Mathieu Chartier10fb83a2014-06-15 15:15:43 -07002663 card_table_->ModifyCardsAtomic(space->Begin(), space->End(), AgeCardVisitor(),
2664 VoidFunctor());
Mathieu Chartier7469ebf2012-09-24 16:28:36 -07002665 }
2666 }
2667}
2668
Mathieu Chartier407f7022014-02-18 14:37:05 -08002669static void IdentityMarkHeapReferenceCallback(mirror::HeapReference<mirror::Object>*, void*) {
Mathieu Chartier11409ae2013-09-23 11:49:36 -07002670}
2671
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002672void Heap::PreGcVerificationPaused(collector::GarbageCollector* gc) {
2673 Thread* const self = Thread::Current();
Mathieu Chartier10fb83a2014-06-15 15:15:43 -07002674 TimingLogger* const timings = current_gc_iteration_.GetTimings();
Mathieu Chartierf5997b42014-06-20 10:37:54 -07002675 TimingLogger::ScopedTiming t(__FUNCTION__, timings);
Mathieu Chartier2b82db42012-11-14 17:29:05 -08002676 if (verify_pre_gc_heap_) {
Mathieu Chartierf5997b42014-06-20 10:37:54 -07002677 TimingLogger::ScopedTiming t("(Paused)PreGcVerifyHeapReferences", timings);
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002678 ReaderMutexLock mu(self, *Locks::heap_bitmap_lock_);
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002679 size_t failures = VerifyHeapReferences();
2680 if (failures > 0) {
2681 LOG(FATAL) << "Pre " << gc->GetName() << " heap verification failed with " << failures
2682 << " failures";
Mathieu Chartier2b82db42012-11-14 17:29:05 -08002683 }
Mathieu Chartier4da7f2f2012-11-13 12:51:01 -08002684 }
Mathieu Chartier2b82db42012-11-14 17:29:05 -08002685 // Check that all objects which reference things in the live stack are on dirty cards.
2686 if (verify_missing_card_marks_) {
Mathieu Chartierf5997b42014-06-20 10:37:54 -07002687 TimingLogger::ScopedTiming t("(Paused)PreGcVerifyMissingCardMarks", timings);
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002688 ReaderMutexLock mu(self, *Locks::heap_bitmap_lock_);
2689 SwapStacks(self);
2690 // Sort the live stack so that we can quickly binary search it later.
Mathieu Chartier4c13a3f2014-07-14 14:57:16 -07002691 CHECK(VerifyMissingCardMarks()) << "Pre " << gc->GetName()
2692 << " missing card mark verification failed\n" << DumpSpaces();
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002693 SwapStacks(self);
Mathieu Chartier2b82db42012-11-14 17:29:05 -08002694 }
Mathieu Chartier2b82db42012-11-14 17:29:05 -08002695 if (verify_mod_union_table_) {
Mathieu Chartierf5997b42014-06-20 10:37:54 -07002696 TimingLogger::ScopedTiming t("(Paused)PreGcVerifyModUnionTables", timings);
Mathieu Chartier2b82db42012-11-14 17:29:05 -08002697 ReaderMutexLock reader_lock(self, *Locks::heap_bitmap_lock_);
Mathieu Chartier11409ae2013-09-23 11:49:36 -07002698 for (const auto& table_pair : mod_union_tables_) {
2699 accounting::ModUnionTable* mod_union_table = table_pair.second;
Mathieu Chartier407f7022014-02-18 14:37:05 -08002700 mod_union_table->UpdateAndMarkReferences(IdentityMarkHeapReferenceCallback, nullptr);
Mathieu Chartier11409ae2013-09-23 11:49:36 -07002701 mod_union_table->Verify();
2702 }
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002703 }
2704}
2705
2706void Heap::PreGcVerification(collector::GarbageCollector* gc) {
Mathieu Chartier0651d412014-04-29 14:37:57 -07002707 if (verify_pre_gc_heap_ || verify_missing_card_marks_ || verify_mod_union_table_) {
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002708 collector::GarbageCollector::ScopedPause pause(gc);
2709 PreGcVerificationPaused(gc);
2710 }
2711}
2712
2713void Heap::PrePauseRosAllocVerification(collector::GarbageCollector* gc) {
2714 // TODO: Add a new runtime option for this?
2715 if (verify_pre_gc_rosalloc_) {
Mathieu Chartier10fb83a2014-06-15 15:15:43 -07002716 RosAllocVerification(current_gc_iteration_.GetTimings(), "PreGcRosAllocVerification");
Mathieu Chartier2b82db42012-11-14 17:29:05 -08002717 }
Mathieu Chartier4da7f2f2012-11-13 12:51:01 -08002718}
2719
Ian Rogers1d54e732013-05-02 21:10:01 -07002720void Heap::PreSweepingGcVerification(collector::GarbageCollector* gc) {
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002721 Thread* const self = Thread::Current();
Mathieu Chartier10fb83a2014-06-15 15:15:43 -07002722 TimingLogger* const timings = current_gc_iteration_.GetTimings();
Mathieu Chartierf5997b42014-06-20 10:37:54 -07002723 TimingLogger::ScopedTiming t(__FUNCTION__, timings);
Mathieu Chartier2b82db42012-11-14 17:29:05 -08002724 // Called before sweeping occurs since we want to make sure we are not going so reclaim any
2725 // reachable objects.
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002726 if (verify_pre_sweeping_heap_) {
Mathieu Chartierf5997b42014-06-20 10:37:54 -07002727 TimingLogger::ScopedTiming t("(Paused)PostSweepingVerifyHeapReferences", timings);
Ian Rogers1d54e732013-05-02 21:10:01 -07002728 CHECK_NE(self->GetState(), kRunnable);
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002729 WriterMutexLock mu(self, *Locks::heap_bitmap_lock_);
2730 // Swapping bound bitmaps does nothing.
2731 gc->SwapBitmaps();
Mathieu Chartier78f7b4c2014-05-06 10:57:27 -07002732 // Pass in false since concurrent reference processing can mean that the reference referents
2733 // may point to dead objects at the point which PreSweepingGcVerification is called.
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002734 size_t failures = VerifyHeapReferences(false);
2735 if (failures > 0) {
2736 LOG(FATAL) << "Pre sweeping " << gc->GetName() << " GC verification failed with " << failures
2737 << " failures";
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002738 }
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002739 gc->SwapBitmaps();
2740 }
2741 if (verify_pre_sweeping_rosalloc_) {
2742 RosAllocVerification(timings, "PreSweepingRosAllocVerification");
2743 }
2744}
2745
2746void Heap::PostGcVerificationPaused(collector::GarbageCollector* gc) {
2747 // Only pause if we have to do some verification.
2748 Thread* const self = Thread::Current();
Mathieu Chartier10fb83a2014-06-15 15:15:43 -07002749 TimingLogger* const timings = GetCurrentGcIteration()->GetTimings();
Mathieu Chartierf5997b42014-06-20 10:37:54 -07002750 TimingLogger::ScopedTiming t(__FUNCTION__, timings);
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002751 if (verify_system_weaks_) {
2752 ReaderMutexLock mu2(self, *Locks::heap_bitmap_lock_);
2753 collector::MarkSweep* mark_sweep = down_cast<collector::MarkSweep*>(gc);
2754 mark_sweep->VerifySystemWeaks();
2755 }
2756 if (verify_post_gc_rosalloc_) {
Mathieu Chartierf5997b42014-06-20 10:37:54 -07002757 RosAllocVerification(timings, "(Paused)PostGcRosAllocVerification");
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002758 }
2759 if (verify_post_gc_heap_) {
Mathieu Chartierf5997b42014-06-20 10:37:54 -07002760 TimingLogger::ScopedTiming t("(Paused)PostGcVerifyHeapReferences", timings);
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002761 ReaderMutexLock mu(self, *Locks::heap_bitmap_lock_);
Mathieu Chartier8ab7e782014-05-19 16:55:27 -07002762 size_t failures = VerifyHeapReferences();
2763 if (failures > 0) {
2764 LOG(FATAL) << "Pre " << gc->GetName() << " heap verification failed with " << failures
2765 << " failures";
Ian Rogers00f7d0e2012-07-19 15:28:27 -07002766 }
Ian Rogers00f7d0e2012-07-19 15:28:27 -07002767 }
Mathieu Chartier2b82db42012-11-14 17:29:05 -08002768}
Ian Rogers00f7d0e2012-07-19 15:28:27 -07002769
Ian Rogers1d54e732013-05-02 21:10:01 -07002770void Heap::PostGcVerification(collector::GarbageCollector* gc) {
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002771 if (verify_system_weaks_ || verify_post_gc_rosalloc_ || verify_post_gc_heap_) {
2772 collector::GarbageCollector::ScopedPause pause(gc);
Mathieu Chartierd35326f2014-08-18 15:02:59 -07002773 PostGcVerificationPaused(gc);
Ian Rogers00f7d0e2012-07-19 15:28:27 -07002774 }
Carl Shapiro69759ea2011-07-21 18:13:35 -07002775}
2776
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002777void Heap::RosAllocVerification(TimingLogger* timings, const char* name) {
Mathieu Chartierf5997b42014-06-20 10:37:54 -07002778 TimingLogger::ScopedTiming t(name, timings);
Mathieu Chartier6f365cc2014-04-23 12:42:27 -07002779 for (const auto& space : continuous_spaces_) {
2780 if (space->IsRosAllocSpace()) {
2781 VLOG(heap) << name << " : " << space->GetName();
2782 space->AsRosAllocSpace()->Verify();
Hiroshi Yamauchia4adbfd2014-02-04 18:12:17 -08002783 }
2784 }
2785}
2786
Mathieu Chartier89a201e2014-05-02 10:27:26 -07002787collector::GcType Heap::WaitForGcToComplete(GcCause cause, Thread* self) {
Mathieu Chartiercaa82d62014-02-02 16:51:17 -08002788 ScopedThreadStateChange tsc(self, kWaitingForGcToComplete);
Mathieu Chartier590fee92013-09-13 13:46:47 -07002789 MutexLock mu(self, *gc_complete_lock_);
Mathieu Chartier89a201e2014-05-02 10:27:26 -07002790 return WaitForGcToCompleteLocked(cause, self);
Mathieu Chartier590fee92013-09-13 13:46:47 -07002791}
2792
Mathieu Chartier89a201e2014-05-02 10:27:26 -07002793collector::GcType Heap::WaitForGcToCompleteLocked(GcCause cause, Thread* self) {
Ian Rogers1d54e732013-05-02 21:10:01 -07002794 collector::GcType last_gc_type = collector::kGcTypeNone;
Mathieu Chartier590fee92013-09-13 13:46:47 -07002795 uint64_t wait_start = NanoTime();
Mathieu Chartierd5a89ee2014-01-31 09:55:13 -08002796 while (collector_type_running_ != kCollectorTypeNone) {
Mathieu Chartier590fee92013-09-13 13:46:47 -07002797 ATRACE_BEGIN("GC: Wait For Completion");
2798 // We must wait, change thread state then sleep on gc_complete_cond_;
2799 gc_complete_cond_->Wait(self);
2800 last_gc_type = last_gc_type_;
Mathieu Chartier752a0e62013-06-27 11:03:27 -07002801 ATRACE_END();
Mathieu Chartier7664f5c2012-06-08 18:15:32 -07002802 }
Mathieu Chartier590fee92013-09-13 13:46:47 -07002803 uint64_t wait_time = NanoTime() - wait_start;
2804 total_wait_time_ += wait_time;
2805 if (wait_time > long_pause_log_threshold_) {
Mathieu Chartier89a201e2014-05-02 10:27:26 -07002806 LOG(INFO) << "WaitForGcToComplete blocked for " << PrettyDuration(wait_time)
2807 << " for cause " << cause;
Mathieu Chartier590fee92013-09-13 13:46:47 -07002808 }
Mathieu Chartier866fb2a2012-09-10 10:47:49 -07002809 return last_gc_type;
Carl Shapiro69759ea2011-07-21 18:13:35 -07002810}
2811
Elliott Hughesc967f782012-04-16 10:23:15 -07002812void Heap::DumpForSigQuit(std::ostream& os) {
Ian Rogers1d54e732013-05-02 21:10:01 -07002813 os << "Heap: " << GetPercentFree() << "% free, " << PrettySize(GetBytesAllocated()) << "/"
Mathieu Chartier2fde5332012-09-14 14:51:54 -07002814 << PrettySize(GetTotalMemory()) << "; " << GetObjectsAllocated() << " objects\n";
Elliott Hughes8b788fe2013-04-17 15:57:01 -07002815 DumpGcPerformanceInfo(os);
Elliott Hughesc967f782012-04-16 10:23:15 -07002816}
2817
2818size_t Heap::GetPercentFree() {
Mathieu Chartierd30e1d62014-06-09 13:25:22 -07002819 return static_cast<size_t>(100.0f * static_cast<float>(GetFreeMemory()) / max_allowed_footprint_);
Elliott Hughesc967f782012-04-16 10:23:15 -07002820}
2821
Elliott Hughes4dd9b4d2011-12-12 18:29:24 -08002822void Heap::SetIdealFootprint(size_t max_allowed_footprint) {
Mathieu Chartier2fde5332012-09-14 14:51:54 -07002823 if (max_allowed_footprint > GetMaxMemory()) {
Mathieu Chartierfd678be2012-08-30 14:50:54 -07002824 VLOG(gc) << "Clamp target GC heap from " << PrettySize(max_allowed_footprint) << " to "
Mathieu Chartier2fde5332012-09-14 14:51:54 -07002825 << PrettySize(GetMaxMemory());
2826 max_allowed_footprint = GetMaxMemory();
2827 }
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -07002828 max_allowed_footprint_ = max_allowed_footprint;
Shih-wei Liao8c2f6412011-10-03 22:58:14 -07002829}
2830
Mathieu Chartier590fee92013-09-13 13:46:47 -07002831bool Heap::IsMovableObject(const mirror::Object* obj) const {
2832 if (kMovingCollector) {
Mathieu Chartier31f44142014-04-08 14:40:03 -07002833 space::Space* space = FindContinuousSpaceFromObject(obj, true);
2834 if (space != nullptr) {
2835 // TODO: Check large object?
2836 return space->CanMoveObjects();
Mathieu Chartier590fee92013-09-13 13:46:47 -07002837 }
Mathieu Chartier590fee92013-09-13 13:46:47 -07002838 }
2839 return false;
2840}
2841
Mathieu Chartier987ccff2013-07-08 11:05:21 -07002842void Heap::UpdateMaxNativeFootprint() {
Ian Rogers3e5cf302014-05-20 16:40:37 -07002843 size_t native_size = native_bytes_allocated_.LoadRelaxed();
Mathieu Chartier987ccff2013-07-08 11:05:21 -07002844 // TODO: Tune the native heap utilization to be a value other than the java heap utilization.
2845 size_t target_size = native_size / GetTargetHeapUtilization();
2846 if (target_size > native_size + max_free_) {
2847 target_size = native_size + max_free_;
2848 } else if (target_size < native_size + min_free_) {
2849 target_size = native_size + min_free_;
2850 }
Mathieu Chartier8ec31f92014-09-03 10:30:11 -07002851 native_footprint_gc_watermark_ = std::min(growth_limit_, target_size);
Mathieu Chartier987ccff2013-07-08 11:05:21 -07002852}
2853
Mathieu Chartierafe49982014-03-27 10:55:04 -07002854collector::GarbageCollector* Heap::FindCollectorByGcType(collector::GcType gc_type) {
2855 for (const auto& collector : garbage_collectors_) {
2856 if (collector->GetCollectorType() == collector_type_ &&
2857 collector->GetGcType() == gc_type) {
2858 return collector;
2859 }
2860 }
2861 return nullptr;
2862}
2863
Mathieu Chartier2f8da3e2014-04-15 15:37:02 -07002864double Heap::HeapGrowthMultiplier() const {
2865 // If we don't care about pause times we are background, so return 1.0.
2866 if (!CareAboutPauseTimes() || IsLowMemoryMode()) {
2867 return 1.0;
2868 }
2869 return foreground_heap_growth_multiplier_;
2870}
2871
Mathieu Chartierafe49982014-03-27 10:55:04 -07002872void Heap::GrowForUtilization(collector::GarbageCollector* collector_ran) {
Mathieu Chartier2fde5332012-09-14 14:51:54 -07002873 // We know what our utilization is at this moment.
2874 // This doesn't actually resize any memory. It just lets the heap grow more when necessary.
Mathieu Chartier2f8da3e2014-04-15 15:37:02 -07002875 const uint64_t bytes_allocated = GetBytesAllocated();
Mathieu Chartier65db8802012-11-20 12:36:46 -08002876 last_gc_size_ = bytes_allocated;
Ian Rogers1d54e732013-05-02 21:10:01 -07002877 last_gc_time_ns_ = NanoTime();
Mathieu Chartier2f8da3e2014-04-15 15:37:02 -07002878 uint64_t target_size;
Mathieu Chartierafe49982014-03-27 10:55:04 -07002879 collector::GcType gc_type = collector_ran->GetGcType();
Mathieu Chartierbdd0fb92013-07-02 10:16:15 -07002880 if (gc_type != collector::kGcTypeSticky) {
2881 // Grow the heap for non sticky GC.
Mathieu Chartier2f8da3e2014-04-15 15:37:02 -07002882 const float multiplier = HeapGrowthMultiplier(); // Use the multiplier to grow more for
2883 // foreground.
2884 intptr_t delta = bytes_allocated / GetTargetHeapUtilization() - bytes_allocated;
2885 CHECK_GE(delta, 0);
2886 target_size = bytes_allocated + delta * multiplier;
2887 target_size = std::min(target_size,
2888 bytes_allocated + static_cast<uint64_t>(max_free_ * multiplier));
2889 target_size = std::max(target_size,
2890 bytes_allocated + static_cast<uint64_t>(min_free_ * multiplier));
Mathieu Chartier590fee92013-09-13 13:46:47 -07002891 native_need_to_run_finalization_ = true;
Mathieu Chartierbdd0fb92013-07-02 10:16:15 -07002892 next_gc_type_ = collector::kGcTypeSticky;
2893 } else {
Mathieu Chartierafe49982014-03-27 10:55:04 -07002894 collector::GcType non_sticky_gc_type =
Mathieu Chartiere4cab172014-08-19 18:24:04 -07002895 HasZygoteSpace() ? collector::kGcTypePartial : collector::kGcTypeFull;
Mathieu Chartierafe49982014-03-27 10:55:04 -07002896 // Find what the next non sticky collector will be.
2897 collector::GarbageCollector* non_sticky_collector = FindCollectorByGcType(non_sticky_gc_type);
2898 // If the throughput of the current sticky GC >= throughput of the non sticky collector, then
2899 // do another sticky collection next.
2900 // We also check that the bytes allocated aren't over the footprint limit in order to prevent a
2901 // pathological case where dead objects which aren't reclaimed by sticky could get accumulated
2902 // if the sticky GC throughput always remained >= the full/partial throughput.
Mathieu Chartier10fb83a2014-06-15 15:15:43 -07002903 if (current_gc_iteration_.GetEstimatedThroughput() * kStickyGcThroughputAdjustment >=
Mathieu Chartierafe49982014-03-27 10:55:04 -07002904 non_sticky_collector->GetEstimatedMeanThroughput() &&
Mathieu Chartier10fb83a2014-06-15 15:15:43 -07002905 non_sticky_collector->NumberOfIterations() > 0 &&
Mathieu Chartierafe49982014-03-27 10:55:04 -07002906 bytes_allocated <= max_allowed_footprint_) {
Mathieu Chartierbdd0fb92013-07-02 10:16:15 -07002907 next_gc_type_ = collector::kGcTypeSticky;
2908 } else {
Mathieu Chartierafe49982014-03-27 10:55:04 -07002909 next_gc_type_ = non_sticky_gc_type;
Mathieu Chartierbdd0fb92013-07-02 10:16:15 -07002910 }
Mathieu Chartierbdd0fb92013-07-02 10:16:15 -07002911 // If we have freed enough memory, shrink the heap back down.
2912 if (bytes_allocated + max_free_ < max_allowed_footprint_) {
2913 target_size = bytes_allocated + max_free_;
2914 } else {
Mathieu Chartier2f8da3e2014-04-15 15:37:02 -07002915 target_size = std::max(bytes_allocated, static_cast<uint64_t>(max_allowed_footprint_));
Mathieu Chartierbdd0fb92013-07-02 10:16:15 -07002916 }
2917 }
Mathieu Chartier2775ee42013-08-20 17:43:47 -07002918 if (!ignore_max_footprint_) {
2919 SetIdealFootprint(target_size);
Hiroshi Yamauchi3e417802014-03-20 12:03:02 -07002920 if (IsGcConcurrent()) {
Mathieu Chartier2775ee42013-08-20 17:43:47 -07002921 // Calculate when to perform the next ConcurrentGC.
Mathieu Chartier2775ee42013-08-20 17:43:47 -07002922 // Calculate the estimated GC duration.
Mathieu Chartier10fb83a2014-06-15 15:15:43 -07002923 const double gc_duration_seconds = NsToMs(current_gc_iteration_.GetDurationNs()) / 1000.0;
Mathieu Chartier2775ee42013-08-20 17:43:47 -07002924 // Estimate how many remaining bytes we will have when we need to start the next GC.
2925 size_t remaining_bytes = allocation_rate_ * gc_duration_seconds;
Mathieu Chartier74762802014-01-24 10:21:35 -08002926 remaining_bytes = std::min(remaining_bytes, kMaxConcurrentRemainingBytes);
Mathieu Chartier2775ee42013-08-20 17:43:47 -07002927 remaining_bytes = std::max(remaining_bytes, kMinConcurrentRemainingBytes);
2928 if (UNLIKELY(remaining_bytes > max_allowed_footprint_)) {
2929 // A never going to happen situation that from the estimated allocation rate we will exceed
2930 // the applications entire footprint with the given estimated allocation rate. Schedule
Mathieu Chartier74762802014-01-24 10:21:35 -08002931 // another GC nearly straight away.
2932 remaining_bytes = kMinConcurrentRemainingBytes;
Mathieu Chartier2775ee42013-08-20 17:43:47 -07002933 }
Mathieu Chartier74762802014-01-24 10:21:35 -08002934 DCHECK_LE(remaining_bytes, max_allowed_footprint_);
Mathieu Chartierdd162fb2014-08-06 17:06:33 -07002935 DCHECK_LE(max_allowed_footprint_, GetMaxMemory());
Mathieu Chartier74762802014-01-24 10:21:35 -08002936 // Start a concurrent GC when we get close to the estimated remaining bytes. When the
2937 // allocation rate is very high, remaining_bytes could tell us that we should start a GC
2938 // right away.
Mathieu Chartier2f8da3e2014-04-15 15:37:02 -07002939 concurrent_start_bytes_ = std::max(max_allowed_footprint_ - remaining_bytes,
2940 static_cast<size_t>(bytes_allocated));
Mathieu Chartier65db8802012-11-20 12:36:46 -08002941 }
Mathieu Chartier65db8802012-11-20 12:36:46 -08002942 }
Carl Shapiro69759ea2011-07-21 18:13:35 -07002943}
2944
jeffhaoc1160702011-10-27 15:48:45 -07002945void Heap::ClearGrowthLimit() {
Mathieu Chartier80de7a62012-11-27 17:21:50 -08002946 growth_limit_ = capacity_;
Mathieu Chartier590fee92013-09-13 13:46:47 -07002947 non_moving_space_->ClearGrowthLimit();
jeffhaoc1160702011-10-27 15:48:45 -07002948}
2949
Mathieu Chartier8668c3c2014-04-24 16:48:11 -07002950void Heap::AddFinalizerReference(Thread* self, mirror::Object** object) {
Ian Rogers00f7d0e2012-07-19 15:28:27 -07002951 ScopedObjectAccess soa(self);
Mathieu Chartier8668c3c2014-04-24 16:48:11 -07002952 ScopedLocalRef<jobject> arg(self->GetJniEnv(), soa.AddLocalReference<jobject>(*object));
Ian Rogers53b8b092014-03-13 23:45:53 -07002953 jvalue args[1];
2954 args[0].l = arg.get();
2955 InvokeWithJValues(soa, nullptr, WellKnownClasses::java_lang_ref_FinalizerReference_add, args);
Mathieu Chartier8668c3c2014-04-24 16:48:11 -07002956 // Restore object in case it gets moved.
2957 *object = soa.Decode<mirror::Object*>(arg.get());
Ian Rogers00f7d0e2012-07-19 15:28:27 -07002958}
2959
Mathieu Chartiereb8167a2014-05-07 15:43:14 -07002960void Heap::RequestConcurrentGCAndSaveObject(Thread* self, mirror::Object** obj) {
2961 StackHandleScope<1> hs(self);
2962 HandleWrapper<mirror::Object> wrapper(hs.NewHandleWrapper(obj));
2963 RequestConcurrentGC(self);
2964}
2965
Ian Rogers1f539342012-10-03 21:09:42 -07002966void Heap::RequestConcurrentGC(Thread* self) {
Mathieu Chartier069387a2012-06-18 12:01:01 -07002967 // Make sure that we can do a concurrent GC.
Ian Rogers120f1c72012-09-28 17:17:10 -07002968 Runtime* runtime = Runtime::Current();
Mathieu Chartier78f7b4c2014-05-06 10:57:27 -07002969 if (runtime == nullptr || !runtime->IsFinishedStarting() || runtime->IsShuttingDown(self) ||
Mathieu Chartier590fee92013-09-13 13:46:47 -07002970 self->IsHandlingStackOverflow()) {
Ian Rogers120f1c72012-09-28 17:17:10 -07002971 return;
2972 }
Ian Rogers120f1c72012-09-28 17:17:10 -07002973 JNIEnv* env = self->GetJniEnv();
Mathieu Chartier590fee92013-09-13 13:46:47 -07002974 DCHECK(WellKnownClasses::java_lang_Daemons != nullptr);
2975 DCHECK(WellKnownClasses::java_lang_Daemons_requestGC != nullptr);
Ian Rogers00f7d0e2012-07-19 15:28:27 -07002976 env->CallStaticVoidMethod(WellKnownClasses::java_lang_Daemons,
2977 WellKnownClasses::java_lang_Daemons_requestGC);
Mathieu Chartier7664f5c2012-06-08 18:15:32 -07002978 CHECK(!env->ExceptionCheck());
Mathieu Chartier7664f5c2012-06-08 18:15:32 -07002979}
2980
Ian Rogers81d425b2012-09-27 16:03:43 -07002981void Heap::ConcurrentGC(Thread* self) {
Mathieu Chartier590fee92013-09-13 13:46:47 -07002982 if (Runtime::Current()->IsShuttingDown(self)) {
2983 return;
Mathieu Chartier2542d662012-06-21 17:14:11 -07002984 }
Mathieu Chartier65db8802012-11-20 12:36:46 -08002985 // Wait for any GCs currently running to finish.
Mathieu Chartier89a201e2014-05-02 10:27:26 -07002986 if (WaitForGcToComplete(kGcCauseBackground, self) == collector::kGcTypeNone) {
Mathieu Chartierf9ed0d32013-11-21 16:42:47 -08002987 // If the we can't run the GC type we wanted to run, find the next appropriate one and try that
2988 // instead. E.g. can't do partial, so do full instead.
2989 if (CollectGarbageInternal(next_gc_type_, kGcCauseBackground, false) ==
2990 collector::kGcTypeNone) {
2991 for (collector::GcType gc_type : gc_plan_) {
2992 // Attempt to run the collector, if we succeed, we are done.
2993 if (gc_type > next_gc_type_ &&
2994 CollectGarbageInternal(gc_type, kGcCauseBackground, false) != collector::kGcTypeNone) {
2995 break;
2996 }
2997 }
2998 }
Mathieu Chartiercc236d72012-07-20 10:29:05 -07002999 }
Mathieu Chartier7664f5c2012-06-08 18:15:32 -07003000}
3001
Mathieu Chartier7bf52d22014-03-13 14:46:09 -07003002void Heap::RequestCollectorTransition(CollectorType desired_collector_type, uint64_t delta_time) {
Mathieu Chartiera5f9de02014-02-28 16:48:42 -08003003 Thread* self = Thread::Current();
3004 {
3005 MutexLock mu(self, *heap_trim_request_lock_);
3006 if (desired_collector_type_ == desired_collector_type) {
3007 return;
3008 }
Mathieu Chartierb2728552014-09-08 20:08:41 +00003009 heap_transition_or_trim_target_time_ =
3010 std::max(heap_transition_or_trim_target_time_, NanoTime() + delta_time);
Mathieu Chartiera5f9de02014-02-28 16:48:42 -08003011 desired_collector_type_ = desired_collector_type;
3012 }
3013 SignalHeapTrimDaemon(self);
3014}
3015
Mathieu Chartier7bf52d22014-03-13 14:46:09 -07003016void Heap::RequestHeapTrim() {
Ian Rogers48931882013-01-22 14:35:16 -08003017 // GC completed and now we must decide whether to request a heap trim (advising pages back to the
3018 // kernel) or not. Issuing a request will also cause trimming of the libc heap. As a trim scans
3019 // a space it will hold its lock and can become a cause of jank.
3020 // Note, the large object space self trims and the Zygote space was trimmed and unchanging since
3021 // forking.
3022
Elliott Hughes8cf5bc02012-02-02 16:32:16 -08003023 // We don't have a good measure of how worthwhile a trim might be. We can't use the live bitmap
3024 // because that only marks object heads, so a large array looks like lots of empty space. We
3025 // don't just call dlmalloc all the time, because the cost of an _attempted_ trim is proportional
3026 // to utilization (which is probably inversely proportional to how much benefit we can expect).
3027 // We could try mincore(2) but that's only a measure of how many pages we haven't given away,
3028 // not how much use we're making of those pages.
Ian Rogers120f1c72012-09-28 17:17:10 -07003029
3030 Thread* self = Thread::Current();
Mathieu Chartier590fee92013-09-13 13:46:47 -07003031 Runtime* runtime = Runtime::Current();
Mathieu Chartier30cbbee2014-09-08 13:35:11 -07003032 if (runtime == nullptr || !runtime->IsFinishedStarting() || runtime->IsShuttingDown(self) ||
3033 runtime->IsZygote()) {
3034 // Ignore the request if we are the zygote to prevent app launching lag due to sleep in heap
3035 // trimmer daemon. b/17310019
Mathieu Chartier590fee92013-09-13 13:46:47 -07003036 // Heap trimming isn't supported without a Java runtime or Daemons (such as at dex2oat time)
3037 // Also: we do not wish to start a heap trim if the runtime is shutting down (a racy check
3038 // as we don't hold the lock while requesting the trim).
3039 return;
Ian Rogerse1d490c2012-02-03 09:09:07 -08003040 }
Mathieu Chartier440e4ce2014-03-31 16:36:35 -07003041 {
3042 MutexLock mu(self, *heap_trim_request_lock_);
3043 if (last_trim_time_ + kHeapTrimWait >= NanoTime()) {
3044 // We have done a heap trim in the last kHeapTrimWait nanosecs, don't request another one
3045 // just yet.
3046 return;
Mathieu Chartiera5f9de02014-02-28 16:48:42 -08003047 }
Mathieu Chartier440e4ce2014-03-31 16:36:35 -07003048 heap_trim_request_pending_ = true;
Mathieu Chartierb2728552014-09-08 20:08:41 +00003049 uint64_t current_time = NanoTime();
3050 if (heap_transition_or_trim_target_time_ < current_time) {
3051 heap_transition_or_trim_target_time_ = current_time + kHeapTrimWait;
3052 }
Mathieu Chartierc39e3422013-08-07 16:41:36 -07003053 }
Mathieu Chartier440e4ce2014-03-31 16:36:35 -07003054 // Notify the daemon thread which will actually do the heap trim.
3055 SignalHeapTrimDaemon(self);
Elliott Hughes8cf5bc02012-02-02 16:32:16 -08003056}
3057
Mathieu Chartiera5f9de02014-02-28 16:48:42 -08003058void Heap::SignalHeapTrimDaemon(Thread* self) {
3059 JNIEnv* env = self->GetJniEnv();
3060 DCHECK(WellKnownClasses::java_lang_Daemons != nullptr);
3061 DCHECK(WellKnownClasses::java_lang_Daemons_requestHeapTrim != nullptr);
3062 env->CallStaticVoidMethod(WellKnownClasses::java_lang_Daemons,
3063 WellKnownClasses::java_lang_Daemons_requestHeapTrim);
3064 CHECK(!env->ExceptionCheck());
3065}
3066
Hiroshi Yamauchicf58d4a2013-09-26 14:21:22 -07003067void Heap::RevokeThreadLocalBuffers(Thread* thread) {
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08003068 if (rosalloc_space_ != nullptr) {
3069 rosalloc_space_->RevokeThreadLocalBuffers(thread);
3070 }
Mathieu Chartier692fafd2013-11-29 17:24:40 -08003071 if (bump_pointer_space_ != nullptr) {
3072 bump_pointer_space_->RevokeThreadLocalBuffers(thread);
3073 }
Hiroshi Yamauchicf58d4a2013-09-26 14:21:22 -07003074}
3075
Hiroshi Yamauchic93c5302014-03-20 16:15:37 -07003076void Heap::RevokeRosAllocThreadLocalBuffers(Thread* thread) {
3077 if (rosalloc_space_ != nullptr) {
3078 rosalloc_space_->RevokeThreadLocalBuffers(thread);
3079 }
3080}
3081
Hiroshi Yamauchicf58d4a2013-09-26 14:21:22 -07003082void Heap::RevokeAllThreadLocalBuffers() {
Mathieu Chartiere6da9af2013-12-16 11:54:42 -08003083 if (rosalloc_space_ != nullptr) {
3084 rosalloc_space_->RevokeAllThreadLocalBuffers();
3085 }
Mathieu Chartier692fafd2013-11-29 17:24:40 -08003086 if (bump_pointer_space_ != nullptr) {
3087 bump_pointer_space_->RevokeAllThreadLocalBuffers();
3088 }
Hiroshi Yamauchicf58d4a2013-09-26 14:21:22 -07003089}
3090
Mathieu Chartier987ccff2013-07-08 11:05:21 -07003091bool Heap::IsGCRequestPending() const {
3092 return concurrent_start_bytes_ != std::numeric_limits<size_t>::max();
3093}
3094
Mathieu Chartier590fee92013-09-13 13:46:47 -07003095void Heap::RunFinalization(JNIEnv* env) {
3096 // Can't do this in WellKnownClasses::Init since System is not properly set up at that point.
3097 if (WellKnownClasses::java_lang_System_runFinalization == nullptr) {
3098 CHECK(WellKnownClasses::java_lang_System != nullptr);
3099 WellKnownClasses::java_lang_System_runFinalization =
3100 CacheMethod(env, WellKnownClasses::java_lang_System, true, "runFinalization", "()V");
3101 CHECK(WellKnownClasses::java_lang_System_runFinalization != nullptr);
3102 }
3103 env->CallStaticVoidMethod(WellKnownClasses::java_lang_System,
3104 WellKnownClasses::java_lang_System_runFinalization);
3105}
3106
Mathieu Chartier8ec31f92014-09-03 10:30:11 -07003107void Heap::RegisterNativeAllocation(JNIEnv* env, size_t bytes) {
Mathieu Chartier590fee92013-09-13 13:46:47 -07003108 Thread* self = ThreadForEnv(env);
3109 if (native_need_to_run_finalization_) {
3110 RunFinalization(env);
3111 UpdateMaxNativeFootprint();
3112 native_need_to_run_finalization_ = false;
3113 }
Mathieu Chartier987ccff2013-07-08 11:05:21 -07003114 // Total number of native bytes allocated.
Ian Rogers3e5cf302014-05-20 16:40:37 -07003115 size_t new_native_bytes_allocated = native_bytes_allocated_.FetchAndAddSequentiallyConsistent(bytes);
3116 new_native_bytes_allocated += bytes;
3117 if (new_native_bytes_allocated > native_footprint_gc_watermark_) {
Mathieu Chartiere4cab172014-08-19 18:24:04 -07003118 collector::GcType gc_type = HasZygoteSpace() ? collector::kGcTypePartial :
Mathieu Chartiercbb2d202013-11-14 17:45:16 -08003119 collector::kGcTypeFull;
3120
Mathieu Chartier987ccff2013-07-08 11:05:21 -07003121 // The second watermark is higher than the gc watermark. If you hit this it means you are
3122 // allocating native objects faster than the GC can keep up with.
Mathieu Chartier08487452014-09-02 16:21:01 -07003123 if (new_native_bytes_allocated > growth_limit_) {
Mathieu Chartier89a201e2014-05-02 10:27:26 -07003124 if (WaitForGcToComplete(kGcCauseForNativeAlloc, self) != collector::kGcTypeNone) {
Mathieu Chartier590fee92013-09-13 13:46:47 -07003125 // Just finished a GC, attempt to run finalizers.
3126 RunFinalization(env);
3127 CHECK(!env->ExceptionCheck());
3128 }
3129 // If we still are over the watermark, attempt a GC for alloc and run finalizers.
Mathieu Chartier08487452014-09-02 16:21:01 -07003130 if (new_native_bytes_allocated > growth_limit_) {
Hiroshi Yamauchi6f4ffe42014-01-13 12:30:44 -08003131 CollectGarbageInternal(gc_type, kGcCauseForNativeAlloc, false);
Mathieu Chartier590fee92013-09-13 13:46:47 -07003132 RunFinalization(env);
3133 native_need_to_run_finalization_ = false;
3134 CHECK(!env->ExceptionCheck());
3135 }
3136 // We have just run finalizers, update the native watermark since it is very likely that
3137 // finalizers released native managed allocations.
3138 UpdateMaxNativeFootprint();
3139 } else if (!IsGCRequestPending()) {
Hiroshi Yamauchi3e417802014-03-20 12:03:02 -07003140 if (IsGcConcurrent()) {
Mathieu Chartier590fee92013-09-13 13:46:47 -07003141 RequestConcurrentGC(self);
3142 } else {
Hiroshi Yamauchid20aba12014-04-11 15:31:09 -07003143 CollectGarbageInternal(gc_type, kGcCauseForNativeAlloc, false);
Mathieu Chartier987ccff2013-07-08 11:05:21 -07003144 }
3145 }
3146 }
3147}
3148
Mathieu Chartier8ec31f92014-09-03 10:30:11 -07003149void Heap::RegisterNativeFree(JNIEnv* env, size_t bytes) {
3150 size_t expected_size;
Mathieu Chartier987ccff2013-07-08 11:05:21 -07003151 do {
Ian Rogers3e5cf302014-05-20 16:40:37 -07003152 expected_size = native_bytes_allocated_.LoadRelaxed();
Mathieu Chartier8ec31f92014-09-03 10:30:11 -07003153 if (UNLIKELY(bytes > expected_size)) {
Mathieu Chartier590fee92013-09-13 13:46:47 -07003154 ScopedObjectAccess soa(env);
3155 env->ThrowNew(WellKnownClasses::java_lang_RuntimeException,
Mathieu Chartier8ec31f92014-09-03 10:30:11 -07003156 StringPrintf("Attempted to free %zd native bytes with only %zd native bytes "
Mathieu Chartier590fee92013-09-13 13:46:47 -07003157 "registered as allocated", bytes, expected_size).c_str());
3158 break;
3159 }
Mathieu Chartier8ec31f92014-09-03 10:30:11 -07003160 } while (!native_bytes_allocated_.CompareExchangeWeakRelaxed(expected_size,
3161 expected_size - bytes));
Mathieu Chartier987ccff2013-07-08 11:05:21 -07003162}
3163
Ian Rogersef7d42f2014-01-06 12:55:46 -08003164size_t Heap::GetTotalMemory() const {
Mathieu Chartierdd162fb2014-08-06 17:06:33 -07003165 return std::max(max_allowed_footprint_, GetBytesAllocated());
Hiroshi Yamauchi09b07a92013-07-15 13:17:06 -07003166}
3167
Mathieu Chartier11409ae2013-09-23 11:49:36 -07003168void Heap::AddModUnionTable(accounting::ModUnionTable* mod_union_table) {
3169 DCHECK(mod_union_table != nullptr);
3170 mod_union_tables_.Put(mod_union_table->GetSpace(), mod_union_table);
3171}
3172
Mathieu Chartierc645f1d2014-03-06 18:11:53 -08003173void Heap::CheckPreconditionsForAllocObject(mirror::Class* c, size_t byte_count) {
3174 CHECK(c == NULL || (c->IsClassClass() && byte_count >= sizeof(mirror::Class)) ||
Ian Rogers1ff3c982014-08-12 02:30:58 -07003175 (c->IsVariableSize() || c->GetObjectSize() == byte_count));
Mathieu Chartierc645f1d2014-03-06 18:11:53 -08003176 CHECK_GE(byte_count, sizeof(mirror::Object));
3177}
3178
Hiroshi Yamauchi38e68e92014-03-07 13:59:08 -08003179void Heap::AddRememberedSet(accounting::RememberedSet* remembered_set) {
3180 CHECK(remembered_set != nullptr);
3181 space::Space* space = remembered_set->GetSpace();
3182 CHECK(space != nullptr);
Mathieu Chartier8e4a96d2014-05-21 10:44:32 -07003183 CHECK(remembered_sets_.find(space) == remembered_sets_.end()) << space;
Hiroshi Yamauchi38e68e92014-03-07 13:59:08 -08003184 remembered_sets_.Put(space, remembered_set);
Mathieu Chartier8e4a96d2014-05-21 10:44:32 -07003185 CHECK(remembered_sets_.find(space) != remembered_sets_.end()) << space;
Hiroshi Yamauchi38e68e92014-03-07 13:59:08 -08003186}
3187
3188void Heap::RemoveRememberedSet(space::Space* space) {
3189 CHECK(space != nullptr);
3190 auto it = remembered_sets_.find(space);
3191 CHECK(it != remembered_sets_.end());
Mathieu Chartier5189e242014-07-24 11:11:05 -07003192 delete it->second;
Hiroshi Yamauchi38e68e92014-03-07 13:59:08 -08003193 remembered_sets_.erase(it);
3194 CHECK(remembered_sets_.find(space) == remembered_sets_.end());
3195}
3196
Mathieu Chartier4aeec172014-03-27 16:09:46 -07003197void Heap::ClearMarkedObjects() {
3198 // Clear all of the spaces' mark bitmaps.
3199 for (const auto& space : GetContinuousSpaces()) {
Mathieu Chartiera8e8f9c2014-04-09 14:51:05 -07003200 accounting::ContinuousSpaceBitmap* mark_bitmap = space->GetMarkBitmap();
Mathieu Chartier4aeec172014-03-27 16:09:46 -07003201 if (space->GetLiveBitmap() != mark_bitmap) {
3202 mark_bitmap->Clear();
3203 }
3204 }
3205 // Clear the marked objects in the discontinous space object sets.
3206 for (const auto& space : GetDiscontinuousSpaces()) {
Mathieu Chartierbbd695c2014-04-16 09:48:48 -07003207 space->GetMarkBitmap()->Clear();
Mathieu Chartier4aeec172014-03-27 16:09:46 -07003208 }
3209}
3210
Ian Rogers1d54e732013-05-02 21:10:01 -07003211} // namespace gc
Carl Shapiro69759ea2011-07-21 18:13:35 -07003212} // namespace art