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Mathieu Chartier1c23e1e2012-10-12 14:14:11 -07001/*
2 * Copyright (C) 2012 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 */
16
Ian Rogers1d54e732013-05-02 21:10:01 -070017#include "large_object_space.h"
18
Ian Rogers700a4022014-05-19 16:49:03 -070019#include <memory>
20
Mathieu Chartierbbd695c2014-04-16 09:48:48 -070021#include "gc/accounting/space_bitmap-inl.h"
Elliott Hughes07ed66b2012-12-12 18:34:25 -080022#include "base/logging.h"
Hiroshi Yamauchi967a0ad2013-09-10 16:24:21 -070023#include "base/mutex-inl.h"
Elliott Hughes1aa246d2012-12-13 09:29:36 -080024#include "base/stl_util.h"
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -070025#include "image.h"
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -070026#include "os.h"
Mathieu Chartierbbd695c2014-04-16 09:48:48 -070027#include "space-inl.h"
Brian Carlstroma3d27182013-11-05 23:22:27 -080028#include "thread-inl.h"
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -070029#include "utils.h"
30
31namespace art {
Ian Rogers1d54e732013-05-02 21:10:01 -070032namespace gc {
33namespace space {
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -070034
Mathieu Chartier0767c9a2014-03-26 12:53:19 -070035class ValgrindLargeObjectMapSpace FINAL : public LargeObjectMapSpace {
36 public:
37 explicit ValgrindLargeObjectMapSpace(const std::string& name) : LargeObjectMapSpace(name) {
38 }
39
40 virtual mirror::Object* Alloc(Thread* self, size_t num_bytes, size_t* bytes_allocated,
41 size_t* usable_size) OVERRIDE {
42 mirror::Object* obj =
43 LargeObjectMapSpace::Alloc(self, num_bytes + kValgrindRedZoneBytes * 2, bytes_allocated,
44 usable_size);
45 mirror::Object* object_without_rdz = reinterpret_cast<mirror::Object*>(
46 reinterpret_cast<uintptr_t>(obj) + kValgrindRedZoneBytes);
47 VALGRIND_MAKE_MEM_NOACCESS(reinterpret_cast<void*>(obj), kValgrindRedZoneBytes);
Ian Rogers13735952014-10-08 12:43:28 -070048 VALGRIND_MAKE_MEM_NOACCESS(reinterpret_cast<uint8_t*>(object_without_rdz) + num_bytes,
Mathieu Chartier0767c9a2014-03-26 12:53:19 -070049 kValgrindRedZoneBytes);
50 if (usable_size != nullptr) {
51 *usable_size = num_bytes; // Since we have redzones, shrink the usable size.
52 }
53 return object_without_rdz;
54 }
55
56 virtual size_t AllocationSize(mirror::Object* obj, size_t* usable_size) OVERRIDE {
57 mirror::Object* object_with_rdz = reinterpret_cast<mirror::Object*>(
58 reinterpret_cast<uintptr_t>(obj) - kValgrindRedZoneBytes);
59 return LargeObjectMapSpace::AllocationSize(object_with_rdz, usable_size);
60 }
61
62 virtual size_t Free(Thread* self, mirror::Object* obj) OVERRIDE {
63 mirror::Object* object_with_rdz = reinterpret_cast<mirror::Object*>(
64 reinterpret_cast<uintptr_t>(obj) - kValgrindRedZoneBytes);
65 VALGRIND_MAKE_MEM_UNDEFINED(object_with_rdz, AllocationSize(obj, nullptr));
66 return LargeObjectMapSpace::Free(self, object_with_rdz);
67 }
68
69 bool Contains(const mirror::Object* obj) const OVERRIDE {
70 mirror::Object* object_with_rdz = reinterpret_cast<mirror::Object*>(
71 reinterpret_cast<uintptr_t>(obj) - kValgrindRedZoneBytes);
72 return LargeObjectMapSpace::Contains(object_with_rdz);
73 }
74
75 private:
76 static constexpr size_t kValgrindRedZoneBytes = kPageSize;
77};
78
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -070079void LargeObjectSpace::SwapBitmaps() {
Mathieu Chartierbbd695c2014-04-16 09:48:48 -070080 live_bitmap_.swap(mark_bitmap_);
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -070081 // Swap names to get more descriptive diagnostics.
Mathieu Chartierbbd695c2014-04-16 09:48:48 -070082 std::string temp_name = live_bitmap_->GetName();
83 live_bitmap_->SetName(mark_bitmap_->GetName());
84 mark_bitmap_->SetName(temp_name);
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -070085}
86
Ian Rogers13735952014-10-08 12:43:28 -070087LargeObjectSpace::LargeObjectSpace(const std::string& name, uint8_t* begin, uint8_t* end)
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -070088 : DiscontinuousSpace(name, kGcRetentionPolicyAlwaysCollect),
89 num_bytes_allocated_(0), num_objects_allocated_(0), total_bytes_allocated_(0),
Mathieu Chartierbbd695c2014-04-16 09:48:48 -070090 total_objects_allocated_(0), begin_(begin), end_(end) {
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -070091}
92
93
94void LargeObjectSpace::CopyLiveToMarked() {
Mathieu Chartierbbd695c2014-04-16 09:48:48 -070095 mark_bitmap_->CopyFrom(live_bitmap_.get());
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -070096}
97
98LargeObjectMapSpace::LargeObjectMapSpace(const std::string& name)
Mathieu Chartier6f365cc2014-04-23 12:42:27 -070099 : LargeObjectSpace(name, nullptr, nullptr),
Brian Carlstrom0cd7ec22013-07-17 23:40:20 -0700100 lock_("large object map space lock", kAllocSpaceLock) {}
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700101
102LargeObjectMapSpace* LargeObjectMapSpace::Create(const std::string& name) {
Mathieu Chartierda44d772014-04-01 15:01:46 -0700103 if (Runtime::Current()->RunningOnValgrind()) {
Mathieu Chartier0767c9a2014-03-26 12:53:19 -0700104 return new ValgrindLargeObjectMapSpace(name);
105 } else {
106 return new LargeObjectMapSpace(name);
107 }
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700108}
109
Ian Rogers8d31bbd2013-10-13 10:44:14 -0700110mirror::Object* LargeObjectMapSpace::Alloc(Thread* self, size_t num_bytes,
Ian Rogers6fac4472014-02-25 17:01:10 -0800111 size_t* bytes_allocated, size_t* usable_size) {
Ian Rogers8d31bbd2013-10-13 10:44:14 -0700112 std::string error_msg;
Ian Rogersa40307e2013-02-22 11:32:44 -0800113 MemMap* mem_map = MemMap::MapAnonymous("large object space allocation", NULL, num_bytes,
Ian Rogersef7d42f2014-01-06 12:55:46 -0800114 PROT_READ | PROT_WRITE, true, &error_msg);
Ian Rogers8d31bbd2013-10-13 10:44:14 -0700115 if (UNLIKELY(mem_map == NULL)) {
116 LOG(WARNING) << "Large object allocation failed: " << error_msg;
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700117 return NULL;
118 }
119 MutexLock mu(self, lock_);
Ian Rogers2dd0e2c2013-01-24 12:42:14 -0800120 mirror::Object* obj = reinterpret_cast<mirror::Object*>(mem_map->Begin());
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700121 large_objects_.push_back(obj);
122 mem_maps_.Put(obj, mem_map);
Mathieu Chartier2dbe6272014-09-16 10:43:23 -0700123 const size_t allocation_size = mem_map->BaseSize();
Mathieu Chartierbbd695c2014-04-16 09:48:48 -0700124 DCHECK(bytes_allocated != nullptr);
Ian Rogers13735952014-10-08 12:43:28 -0700125 begin_ = std::min(begin_, reinterpret_cast<uint8_t*>(obj));
126 uint8_t* obj_end = reinterpret_cast<uint8_t*>(obj) + allocation_size;
Mathieu Chartier6f365cc2014-04-23 12:42:27 -0700127 if (end_ == nullptr || obj_end > end_) {
128 end_ = obj_end;
129 }
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700130 *bytes_allocated = allocation_size;
Ian Rogers6fac4472014-02-25 17:01:10 -0800131 if (usable_size != nullptr) {
132 *usable_size = allocation_size;
133 }
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700134 num_bytes_allocated_ += allocation_size;
135 total_bytes_allocated_ += allocation_size;
136 ++num_objects_allocated_;
137 ++total_objects_allocated_;
138 return obj;
139}
140
Ian Rogers2dd0e2c2013-01-24 12:42:14 -0800141size_t LargeObjectMapSpace::Free(Thread* self, mirror::Object* ptr) {
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700142 MutexLock mu(self, lock_);
143 MemMaps::iterator found = mem_maps_.find(ptr);
Mathieu Chartierd07a9132014-05-23 16:42:20 -0700144 if (UNLIKELY(found == mem_maps_.end())) {
145 Runtime::Current()->GetHeap()->DumpSpaces(LOG(ERROR));
146 LOG(FATAL) << "Attempted to free large object " << ptr << " which was not live";
147 }
Mathieu Chartier2dbe6272014-09-16 10:43:23 -0700148 const size_t map_size = found->second->BaseSize();
149 DCHECK_GE(num_bytes_allocated_, map_size);
150 size_t allocation_size = map_size;
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700151 num_bytes_allocated_ -= allocation_size;
152 --num_objects_allocated_;
153 delete found->second;
154 mem_maps_.erase(found);
155 return allocation_size;
156}
157
Ian Rogers6fac4472014-02-25 17:01:10 -0800158size_t LargeObjectMapSpace::AllocationSize(mirror::Object* obj, size_t* usable_size) {
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700159 MutexLock mu(Thread::Current(), lock_);
Ian Rogers6fac4472014-02-25 17:01:10 -0800160 auto found = mem_maps_.find(obj);
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700161 CHECK(found != mem_maps_.end()) << "Attempted to get size of a large object which is not live";
Ian Rogers6a3c1fc2014-10-31 00:33:20 -0700162 size_t alloc_size = found->second->BaseSize();
163 if (usable_size != nullptr) {
164 *usable_size = alloc_size;
165 }
166 return alloc_size;
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700167}
168
Ian Rogers2dd0e2c2013-01-24 12:42:14 -0800169size_t LargeObjectSpace::FreeList(Thread* self, size_t num_ptrs, mirror::Object** ptrs) {
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700170 size_t total = 0;
171 for (size_t i = 0; i < num_ptrs; ++i) {
172 if (kDebugSpaces) {
173 CHECK(Contains(ptrs[i]));
174 }
175 total += Free(self, ptrs[i]);
176 }
177 return total;
178}
179
180void LargeObjectMapSpace::Walk(DlMallocSpace::WalkCallback callback, void* arg) {
181 MutexLock mu(Thread::Current(), lock_);
Ian Rogers6fac4472014-02-25 17:01:10 -0800182 for (auto it = mem_maps_.begin(); it != mem_maps_.end(); ++it) {
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700183 MemMap* mem_map = it->second;
184 callback(mem_map->Begin(), mem_map->End(), mem_map->Size(), arg);
185 callback(NULL, NULL, 0, arg);
186 }
187}
188
Ian Rogers2dd0e2c2013-01-24 12:42:14 -0800189bool LargeObjectMapSpace::Contains(const mirror::Object* obj) const {
Ian Rogersa3dd0b32013-03-19 19:30:59 -0700190 Thread* self = Thread::Current();
191 if (lock_.IsExclusiveHeld(self)) {
192 // We hold lock_ so do the check.
193 return mem_maps_.find(const_cast<mirror::Object*>(obj)) != mem_maps_.end();
194 } else {
195 MutexLock mu(self, lock_);
196 return mem_maps_.find(const_cast<mirror::Object*>(obj)) != mem_maps_.end();
197 }
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700198}
199
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700200// Keeps track of allocation sizes + whether or not the previous allocation is free.
201// Used to coalesce free blocks and find the best fit block for an allocation.
202class AllocationInfo {
203 public:
204 AllocationInfo() : prev_free_(0), alloc_size_(0) {
205 }
206 // Return the number of pages that the allocation info covers.
207 size_t AlignSize() const {
208 return alloc_size_ & ~kFlagFree;
209 }
210 // Returns the allocation size in bytes.
211 size_t ByteSize() const {
212 return AlignSize() * FreeListSpace::kAlignment;
213 }
214 // Updates the allocation size and whether or not it is free.
215 void SetByteSize(size_t size, bool free) {
216 DCHECK_ALIGNED(size, FreeListSpace::kAlignment);
217 alloc_size_ = (size / FreeListSpace::kAlignment) | (free ? kFlagFree : 0U);
218 }
219 bool IsFree() const {
220 return (alloc_size_ & kFlagFree) != 0;
221 }
222 // Finds and returns the next non free allocation info after ourself.
223 AllocationInfo* GetNextInfo() {
224 return this + AlignSize();
225 }
226 const AllocationInfo* GetNextInfo() const {
227 return this + AlignSize();
228 }
229 // Returns the previous free allocation info by using the prev_free_ member to figure out
230 // where it is. This is only used for coalescing so we only need to be able to do it if the
231 // previous allocation info is free.
232 AllocationInfo* GetPrevFreeInfo() {
233 DCHECK_NE(prev_free_, 0U);
234 return this - prev_free_;
235 }
236 // Returns the address of the object associated with this allocation info.
237 mirror::Object* GetObjectAddress() {
238 return reinterpret_cast<mirror::Object*>(reinterpret_cast<uintptr_t>(this) + sizeof(*this));
239 }
240 // Return how many kAlignment units there are before the free block.
241 size_t GetPrevFree() const {
242 return prev_free_;
243 }
244 // Returns how many free bytes there is before the block.
245 size_t GetPrevFreeBytes() const {
246 return GetPrevFree() * FreeListSpace::kAlignment;
247 }
248 // Update the size of the free block prior to the allocation.
249 void SetPrevFreeBytes(size_t bytes) {
250 DCHECK_ALIGNED(bytes, FreeListSpace::kAlignment);
251 prev_free_ = bytes / FreeListSpace::kAlignment;
252 }
253
254 private:
255 // Used to implement best fit object allocation. Each allocation has an AllocationInfo which
256 // contains the size of the previous free block preceding it. Implemented in such a way that we
257 // can also find the iterator for any allocation info pointer.
258 static constexpr uint32_t kFlagFree = 0x8000000;
259 // Contains the size of the previous free block with kAlignment as the unit. If 0 then the
260 // allocation before us is not free.
261 // These variables are undefined in the middle of allocations / free blocks.
262 uint32_t prev_free_;
263 // Allocation size of this object in kAlignment as the unit.
264 uint32_t alloc_size_;
265};
266
267size_t FreeListSpace::GetSlotIndexForAllocationInfo(const AllocationInfo* info) const {
268 DCHECK_GE(info, allocation_info_);
269 DCHECK_LT(info, reinterpret_cast<AllocationInfo*>(allocation_info_map_->End()));
270 return info - allocation_info_;
271}
272
273AllocationInfo* FreeListSpace::GetAllocationInfoForAddress(uintptr_t address) {
274 return &allocation_info_[GetSlotIndexForAddress(address)];
275}
276
277const AllocationInfo* FreeListSpace::GetAllocationInfoForAddress(uintptr_t address) const {
278 return &allocation_info_[GetSlotIndexForAddress(address)];
279}
280
281inline bool FreeListSpace::SortByPrevFree::operator()(const AllocationInfo* a,
282 const AllocationInfo* b) const {
283 if (a->GetPrevFree() < b->GetPrevFree()) return true;
284 if (a->GetPrevFree() > b->GetPrevFree()) return false;
285 if (a->AlignSize() < b->AlignSize()) return true;
286 if (a->AlignSize() > b->AlignSize()) return false;
287 return reinterpret_cast<uintptr_t>(a) < reinterpret_cast<uintptr_t>(b);
288}
289
Ian Rogers13735952014-10-08 12:43:28 -0700290FreeListSpace* FreeListSpace::Create(const std::string& name, uint8_t* requested_begin, size_t size) {
Brian Carlstrom42748892013-07-18 18:04:08 -0700291 CHECK_EQ(size % kAlignment, 0U);
Ian Rogers8d31bbd2013-10-13 10:44:14 -0700292 std::string error_msg;
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700293 MemMap* mem_map = MemMap::MapAnonymous(name.c_str(), requested_begin, size,
Ian Rogersef7d42f2014-01-06 12:55:46 -0800294 PROT_READ | PROT_WRITE, true, &error_msg);
Ian Rogers8d31bbd2013-10-13 10:44:14 -0700295 CHECK(mem_map != NULL) << "Failed to allocate large object space mem map: " << error_msg;
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700296 return new FreeListSpace(name, mem_map, mem_map->Begin(), mem_map->End());
297}
298
Ian Rogers13735952014-10-08 12:43:28 -0700299FreeListSpace::FreeListSpace(const std::string& name, MemMap* mem_map, uint8_t* begin, uint8_t* end)
Mathieu Chartierbbd695c2014-04-16 09:48:48 -0700300 : LargeObjectSpace(name, begin, end),
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700301 mem_map_(mem_map),
302 lock_("free list space lock", kAllocSpaceLock) {
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700303 const size_t space_capacity = end - begin;
304 free_end_ = space_capacity;
305 CHECK_ALIGNED(space_capacity, kAlignment);
306 const size_t alloc_info_size = sizeof(AllocationInfo) * (space_capacity / kAlignment);
307 std::string error_msg;
308 allocation_info_map_.reset(MemMap::MapAnonymous("large object free list space allocation info map",
309 nullptr, alloc_info_size, PROT_READ | PROT_WRITE,
310 false, &error_msg));
311 CHECK(allocation_info_map_.get() != nullptr) << "Failed to allocate allocation info map"
312 << error_msg;
313 allocation_info_ = reinterpret_cast<AllocationInfo*>(allocation_info_map_->Begin());
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700314}
315
Brian Carlstrom0cd7ec22013-07-17 23:40:20 -0700316FreeListSpace::~FreeListSpace() {}
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700317
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700318void FreeListSpace::Walk(DlMallocSpace::WalkCallback callback, void* arg) {
319 MutexLock mu(Thread::Current(), lock_);
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700320 const uintptr_t free_end_start = reinterpret_cast<uintptr_t>(end_) - free_end_;
321 AllocationInfo* cur_info = &allocation_info_[0];
322 const AllocationInfo* end_info = GetAllocationInfoForAddress(free_end_start);
323 while (cur_info < end_info) {
324 if (!cur_info->IsFree()) {
325 size_t alloc_size = cur_info->ByteSize();
Ian Rogers13735952014-10-08 12:43:28 -0700326 uint8_t* byte_start = reinterpret_cast<uint8_t*>(GetAddressForAllocationInfo(cur_info));
327 uint8_t* byte_end = byte_start + alloc_size;
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700328 callback(byte_start, byte_end, alloc_size, arg);
329 callback(nullptr, nullptr, 0, arg);
330 }
331 cur_info = cur_info->GetNextInfo();
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700332 }
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700333 CHECK_EQ(cur_info, end_info);
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700334}
335
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700336void FreeListSpace::RemoveFreePrev(AllocationInfo* info) {
337 CHECK_GT(info->GetPrevFree(), 0U);
338 auto it = free_blocks_.lower_bound(info);
339 CHECK(it != free_blocks_.end());
340 CHECK_EQ(*it, info);
341 free_blocks_.erase(it);
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700342}
343
Ian Rogers2dd0e2c2013-01-24 12:42:14 -0800344size_t FreeListSpace::Free(Thread* self, mirror::Object* obj) {
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700345 MutexLock mu(self, lock_);
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700346 DCHECK(Contains(obj)) << reinterpret_cast<void*>(Begin()) << " " << obj << " "
347 << reinterpret_cast<void*>(End());
348 DCHECK_ALIGNED(obj, kAlignment);
349 AllocationInfo* info = GetAllocationInfoForAddress(reinterpret_cast<uintptr_t>(obj));
350 DCHECK(!info->IsFree());
351 const size_t allocation_size = info->ByteSize();
352 DCHECK_GT(allocation_size, 0U);
353 DCHECK_ALIGNED(allocation_size, kAlignment);
354 info->SetByteSize(allocation_size, true); // Mark as free.
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700355 // Look at the next chunk.
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700356 AllocationInfo* next_info = info->GetNextInfo();
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700357 // Calculate the start of the end free block.
358 uintptr_t free_end_start = reinterpret_cast<uintptr_t>(end_) - free_end_;
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700359 size_t prev_free_bytes = info->GetPrevFreeBytes();
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700360 size_t new_free_size = allocation_size;
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700361 if (prev_free_bytes != 0) {
362 // Coalesce with previous free chunk.
363 new_free_size += prev_free_bytes;
364 RemoveFreePrev(info);
365 info = info->GetPrevFreeInfo();
366 // The previous allocation info must not be free since we are supposed to always coalesce.
367 DCHECK_EQ(info->GetPrevFreeBytes(), 0U) << "Previous allocation was free";
Ian Rogers22a20862013-03-16 16:34:57 -0700368 }
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700369 uintptr_t next_addr = GetAddressForAllocationInfo(next_info);
370 if (next_addr >= free_end_start) {
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700371 // Easy case, the next chunk is the end free region.
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700372 CHECK_EQ(next_addr, free_end_start);
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700373 free_end_ += new_free_size;
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700374 } else {
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700375 AllocationInfo* new_free_info;
376 if (next_info->IsFree()) {
377 AllocationInfo* next_next_info = next_info->GetNextInfo();
378 // Next next info can't be free since we always coalesce.
379 DCHECK(!next_next_info->IsFree());
380 DCHECK(IsAligned<kAlignment>(next_next_info->ByteSize()));
381 new_free_info = next_next_info;
382 new_free_size += next_next_info->GetPrevFreeBytes();
383 RemoveFreePrev(next_next_info);
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700384 } else {
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700385 new_free_info = next_info;
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700386 }
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700387 new_free_info->SetPrevFreeBytes(new_free_size);
388 free_blocks_.insert(new_free_info);
389 info->SetByteSize(new_free_size, true);
390 DCHECK_EQ(info->GetNextInfo(), new_free_info);
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700391 }
392 --num_objects_allocated_;
393 DCHECK_LE(allocation_size, num_bytes_allocated_);
394 num_bytes_allocated_ -= allocation_size;
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700395 madvise(obj, allocation_size, MADV_DONTNEED);
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700396 if (kIsDebugBuild) {
397 // Can't disallow reads since we use them to find next chunks during coalescing.
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700398 mprotect(obj, allocation_size, PROT_READ);
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700399 }
400 return allocation_size;
401}
402
Ian Rogers6fac4472014-02-25 17:01:10 -0800403size_t FreeListSpace::AllocationSize(mirror::Object* obj, size_t* usable_size) {
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700404 DCHECK(Contains(obj));
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700405 AllocationInfo* info = GetAllocationInfoForAddress(reinterpret_cast<uintptr_t>(obj));
406 DCHECK(!info->IsFree());
407 size_t alloc_size = info->ByteSize();
Ian Rogers6fac4472014-02-25 17:01:10 -0800408 if (usable_size != nullptr) {
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700409 *usable_size = alloc_size;
Ian Rogers6fac4472014-02-25 17:01:10 -0800410 }
411 return alloc_size;
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700412}
413
Ian Rogers6fac4472014-02-25 17:01:10 -0800414mirror::Object* FreeListSpace::Alloc(Thread* self, size_t num_bytes, size_t* bytes_allocated,
415 size_t* usable_size) {
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700416 MutexLock mu(self, lock_);
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700417 const size_t allocation_size = RoundUp(num_bytes, kAlignment);
418 AllocationInfo temp_info;
419 temp_info.SetPrevFreeBytes(allocation_size);
420 temp_info.SetByteSize(0, false);
421 AllocationInfo* new_info;
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700422 // Find the smallest chunk at least num_bytes in size.
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700423 auto it = free_blocks_.lower_bound(&temp_info);
424 if (it != free_blocks_.end()) {
425 AllocationInfo* info = *it;
426 free_blocks_.erase(it);
427 // Fit our object in the previous allocation info free space.
428 new_info = info->GetPrevFreeInfo();
429 // Remove the newly allocated block from the info and update the prev_free_.
430 info->SetPrevFreeBytes(info->GetPrevFreeBytes() - allocation_size);
431 if (info->GetPrevFreeBytes() > 0) {
432 AllocationInfo* new_free = info - info->GetPrevFree();
433 new_free->SetPrevFreeBytes(0);
434 new_free->SetByteSize(info->GetPrevFreeBytes(), true);
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700435 // If there is remaining space, insert back into the free set.
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700436 free_blocks_.insert(info);
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700437 }
438 } else {
439 // Try to steal some memory from the free space at the end of the space.
440 if (LIKELY(free_end_ >= allocation_size)) {
441 // Fit our object at the start of the end free block.
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700442 new_info = GetAllocationInfoForAddress(reinterpret_cast<uintptr_t>(End()) - free_end_);
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700443 free_end_ -= allocation_size;
444 } else {
Ian Rogers6fac4472014-02-25 17:01:10 -0800445 return nullptr;
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700446 }
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700447 }
Ian Rogers6fac4472014-02-25 17:01:10 -0800448 DCHECK(bytes_allocated != nullptr);
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700449 *bytes_allocated = allocation_size;
Ian Rogers6fac4472014-02-25 17:01:10 -0800450 if (usable_size != nullptr) {
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700451 *usable_size = allocation_size;
Ian Rogers6fac4472014-02-25 17:01:10 -0800452 }
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700453 // Need to do these inside of the lock.
454 ++num_objects_allocated_;
455 ++total_objects_allocated_;
456 num_bytes_allocated_ += allocation_size;
457 total_bytes_allocated_ += allocation_size;
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700458 mirror::Object* obj = reinterpret_cast<mirror::Object*>(GetAddressForAllocationInfo(new_info));
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700459 // We always put our object at the start of the free block, there can not be another free block
460 // before it.
461 if (kIsDebugBuild) {
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700462 mprotect(obj, allocation_size, PROT_READ | PROT_WRITE);
Hiroshi Yamauchi50b29282013-07-30 13:58:37 -0700463 }
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700464 new_info->SetPrevFreeBytes(0);
465 new_info->SetByteSize(allocation_size, false);
466 return obj;
Mathieu Chartier1c23e1e2012-10-12 14:14:11 -0700467}
468
Brian Carlstrom2ce745c2013-07-17 17:44:30 -0700469void FreeListSpace::Dump(std::ostream& os) const {
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700470 MutexLock mu(Thread::Current(), const_cast<Mutex&>(lock_));
Mathieu Chartier128c52c2012-10-16 14:12:41 -0700471 os << GetName() << " -"
472 << " begin: " << reinterpret_cast<void*>(Begin())
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700473 << " end: " << reinterpret_cast<void*>(End()) << "\n";
474 uintptr_t free_end_start = reinterpret_cast<uintptr_t>(end_) - free_end_;
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700475 const AllocationInfo* cur_info =
476 GetAllocationInfoForAddress(reinterpret_cast<uintptr_t>(Begin()));
477 const AllocationInfo* end_info = GetAllocationInfoForAddress(free_end_start);
478 while (cur_info < end_info) {
479 size_t size = cur_info->ByteSize();
480 uintptr_t address = GetAddressForAllocationInfo(cur_info);
481 if (cur_info->IsFree()) {
482 os << "Free block at address: " << reinterpret_cast<const void*>(address)
483 << " of length " << size << " bytes\n";
484 } else {
485 os << "Large object at address: " << reinterpret_cast<const void*>(address)
486 << " of length " << size << " bytes\n";
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700487 }
Mathieu Chartieraf4edbd2014-09-08 17:42:48 -0700488 cur_info = cur_info->GetNextInfo();
Mathieu Chartiereb5710e2013-07-25 15:19:42 -0700489 }
490 if (free_end_) {
491 os << "Free block at address: " << reinterpret_cast<const void*>(free_end_start)
492 << " of length " << free_end_ << " bytes\n";
493 }
Mathieu Chartier128c52c2012-10-16 14:12:41 -0700494}
495
Mathieu Chartierbbd695c2014-04-16 09:48:48 -0700496void LargeObjectSpace::SweepCallback(size_t num_ptrs, mirror::Object** ptrs, void* arg) {
497 SweepCallbackContext* context = static_cast<SweepCallbackContext*>(arg);
498 space::LargeObjectSpace* space = context->space->AsLargeObjectSpace();
499 Thread* self = context->self;
500 Locks::heap_bitmap_lock_->AssertExclusiveHeld(self);
501 // If the bitmaps aren't swapped we need to clear the bits since the GC isn't going to re-swap
502 // the bitmaps as an optimization.
503 if (!context->swap_bitmaps) {
504 accounting::LargeObjectBitmap* bitmap = space->GetLiveBitmap();
505 for (size_t i = 0; i < num_ptrs; ++i) {
506 bitmap->Clear(ptrs[i]);
Mathieu Chartierdb7f37d2014-01-10 11:09:06 -0800507 }
508 }
Mathieu Chartier10fb83a2014-06-15 15:15:43 -0700509 context->freed.objects += num_ptrs;
510 context->freed.bytes += space->FreeList(self, num_ptrs, ptrs);
Mathieu Chartierbbd695c2014-04-16 09:48:48 -0700511}
512
Mathieu Chartier10fb83a2014-06-15 15:15:43 -0700513collector::ObjectBytePair LargeObjectSpace::Sweep(bool swap_bitmaps) {
Mathieu Chartierbbd695c2014-04-16 09:48:48 -0700514 if (Begin() >= End()) {
Mathieu Chartier10fb83a2014-06-15 15:15:43 -0700515 return collector::ObjectBytePair(0, 0);
Mathieu Chartierbbd695c2014-04-16 09:48:48 -0700516 }
517 accounting::LargeObjectBitmap* live_bitmap = GetLiveBitmap();
518 accounting::LargeObjectBitmap* mark_bitmap = GetMarkBitmap();
519 if (swap_bitmaps) {
520 std::swap(live_bitmap, mark_bitmap);
521 }
Mathieu Chartier10fb83a2014-06-15 15:15:43 -0700522 AllocSpace::SweepCallbackContext scc(swap_bitmaps, this);
Mathieu Chartierbbd695c2014-04-16 09:48:48 -0700523 accounting::LargeObjectBitmap::SweepWalk(*live_bitmap, *mark_bitmap,
524 reinterpret_cast<uintptr_t>(Begin()),
525 reinterpret_cast<uintptr_t>(End()), SweepCallback, &scc);
Mathieu Chartier10fb83a2014-06-15 15:15:43 -0700526 return scc.freed;
Mathieu Chartierdb7f37d2014-01-10 11:09:06 -0800527}
528
Mathieu Chartierb363f662014-07-16 13:28:58 -0700529void LargeObjectSpace::LogFragmentationAllocFailure(std::ostream& /*os*/,
530 size_t /*failed_alloc_bytes*/) {
531 UNIMPLEMENTED(FATAL);
532}
533
Ian Rogers1d54e732013-05-02 21:10:01 -0700534} // namespace space
535} // namespace gc
536} // namespace art