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Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -07001/*
2 * Copyright (C) 2013 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
17#ifndef ART_RUNTIME_GC_HEAP_INL_H_
18#define ART_RUNTIME_GC_HEAP_INL_H_
19
20#include "heap.h"
21
22#include "debugger.h"
Mathieu Chartier590fee92013-09-13 13:46:47 -070023#include "gc/space/bump_pointer_space-inl.h"
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -070024#include "gc/space/dlmalloc_space-inl.h"
25#include "gc/space/large_object_space.h"
Hiroshi Yamauchicf58d4a2013-09-26 14:21:22 -070026#include "gc/space/rosalloc_space-inl.h"
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -070027#include "runtime.h"
Mathieu Chartierc645f1d2014-03-06 18:11:53 -080028#include "sirt_ref-inl.h"
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -070029#include "thread.h"
30#include "thread-inl.h"
Mathieu Chartier4e305412014-02-19 10:54:44 -080031#include "verify_object-inl.h"
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -070032
33namespace art {
34namespace gc {
35
Mathieu Chartier692fafd2013-11-29 17:24:40 -080036template <bool kInstrumented, bool kCheckLargeObject, typename PreFenceVisitor>
Mathieu Chartier1febddf2013-11-20 12:33:14 -080037inline mirror::Object* Heap::AllocObjectWithAllocator(Thread* self, mirror::Class* klass,
38 size_t byte_count, AllocatorType allocator,
39 const PreFenceVisitor& pre_fence_visitor) {
Mathieu Chartierc645f1d2014-03-06 18:11:53 -080040 if (kIsDebugBuild) {
41 CheckPreconditionsForAllocObject(klass, byte_count);
42 }
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -070043 // Since allocation can cause a GC which will need to SuspendAll, make sure all allocations are
44 // done in the runnable state where suspension is expected.
45 DCHECK_EQ(self->GetState(), kRunnable);
46 self->AssertThreadSuspensionIsAllowable();
Mathieu Chartierc528dba2013-11-26 12:00:11 -080047 // Need to check that we arent the large object allocator since the large object allocation code
48 // path this function. If we didn't check we would have an infinite loop.
Mathieu Chartier692fafd2013-11-29 17:24:40 -080049 if (kCheckLargeObject && UNLIKELY(ShouldAllocLargeObject(klass, byte_count))) {
Mathieu Chartierc528dba2013-11-26 12:00:11 -080050 return AllocLargeObject<kInstrumented, PreFenceVisitor>(self, klass, byte_count,
51 pre_fence_visitor);
52 }
Mathieu Chartiercbb2d202013-11-14 17:45:16 -080053 mirror::Object* obj;
Mathieu Chartiercbb2d202013-11-14 17:45:16 -080054 AllocationTimer alloc_timer(this, &obj);
Ian Rogers6fac4472014-02-25 17:01:10 -080055 size_t bytes_allocated, usable_size;
56 obj = TryToAllocate<kInstrumented, false>(self, allocator, byte_count, &bytes_allocated,
57 &usable_size);
Mathieu Chartiercbb2d202013-11-14 17:45:16 -080058 if (UNLIKELY(obj == nullptr)) {
Mathieu Chartiere6da9af2013-12-16 11:54:42 -080059 bool is_current_allocator = allocator == GetCurrentAllocator();
Ian Rogers6fac4472014-02-25 17:01:10 -080060 obj = AllocateInternalWithGc(self, allocator, byte_count, &bytes_allocated, &usable_size,
61 &klass);
Mathieu Chartiercbb2d202013-11-14 17:45:16 -080062 if (obj == nullptr) {
Mathieu Chartiere6da9af2013-12-16 11:54:42 -080063 bool after_is_current_allocator = allocator == GetCurrentAllocator();
64 if (is_current_allocator && !after_is_current_allocator) {
65 // If the allocator changed, we need to restart the allocation.
66 return AllocObject<kInstrumented>(self, klass, byte_count);
67 }
Mathieu Chartiercbb2d202013-11-14 17:45:16 -080068 return nullptr;
Mathieu Chartiercbb2d202013-11-14 17:45:16 -080069 }
70 }
Ian Rogers6fac4472014-02-25 17:01:10 -080071 DCHECK_GT(bytes_allocated, 0u);
72 DCHECK_GT(usable_size, 0u);
Mathieu Chartier1febddf2013-11-20 12:33:14 -080073 obj->SetClass(klass);
Hiroshi Yamauchi9d04a202014-01-31 13:35:49 -080074 if (kUseBrooksPointer) {
75 obj->SetBrooksPointer(obj);
76 obj->AssertSelfBrooksPointer();
77 }
Ian Rogers6fac4472014-02-25 17:01:10 -080078 pre_fence_visitor(obj, usable_size);
Ian Rogersa55cf412014-02-27 00:31:26 -080079 if (kIsDebugBuild && Runtime::Current()->IsStarted()) {
Ian Rogers6fac4472014-02-25 17:01:10 -080080 CHECK_LE(obj->SizeOf(), usable_size);
81 }
Mathieu Chartiercbb2d202013-11-14 17:45:16 -080082 const size_t new_num_bytes_allocated =
Ian Rogersb122a4b2013-11-19 18:00:50 -080083 static_cast<size_t>(num_bytes_allocated_.FetchAndAdd(bytes_allocated)) + bytes_allocated;
Mathieu Chartiercbb2d202013-11-14 17:45:16 -080084 // TODO: Deprecate.
85 if (kInstrumented) {
86 if (Runtime::Current()->HasStatsEnabled()) {
87 RuntimeStats* thread_stats = self->GetStats();
88 ++thread_stats->allocated_objects;
89 thread_stats->allocated_bytes += bytes_allocated;
90 RuntimeStats* global_stats = Runtime::Current()->GetStats();
91 ++global_stats->allocated_objects;
92 global_stats->allocated_bytes += bytes_allocated;
93 }
94 } else {
95 DCHECK(!Runtime::Current()->HasStatsEnabled());
96 }
97 if (AllocatorHasAllocationStack(allocator)) {
Hiroshi Yamauchif5b0e202014-02-11 17:02:22 -080098 PushOnAllocationStack(self, obj);
Mathieu Chartiercbb2d202013-11-14 17:45:16 -080099 }
100 if (kInstrumented) {
101 if (Dbg::IsAllocTrackingEnabled()) {
Mathieu Chartier1febddf2013-11-20 12:33:14 -0800102 Dbg::RecordAllocation(klass, bytes_allocated);
Mathieu Chartiercbb2d202013-11-14 17:45:16 -0800103 }
104 } else {
105 DCHECK(!Dbg::IsAllocTrackingEnabled());
106 }
Mathieu Chartier692fafd2013-11-29 17:24:40 -0800107 // concurrent_gc_ isn't known at compile time so we can optimize by not checking it for
108 // the BumpPointer or TLAB allocators. This is nice since it allows the entire if statement to be
109 // optimized out. And for the other allocators, AllocatorMayHaveConcurrentGC is a constant since
110 // the allocator_type should be constant propagated.
111 if (AllocatorMayHaveConcurrentGC(allocator) && concurrent_gc_) {
Mathieu Chartierf517f1a2014-03-06 15:52:27 -0800112 CheckConcurrentGC(self, new_num_bytes_allocated, &obj);
Mathieu Chartiercbb2d202013-11-14 17:45:16 -0800113 }
Mathieu Chartier4e305412014-02-19 10:54:44 -0800114 VerifyObject(obj);
115 self->VerifyStack();
Mathieu Chartiercbb2d202013-11-14 17:45:16 -0800116 return obj;
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700117}
118
Hiroshi Yamauchif5b0e202014-02-11 17:02:22 -0800119// The size of a thread-local allocation stack in the number of references.
120static constexpr size_t kThreadLocalAllocationStackSize = 128;
121
122inline void Heap::PushOnAllocationStack(Thread* self, mirror::Object* obj) {
123 if (kUseThreadLocalAllocationStack) {
124 bool success = self->PushOnThreadLocalAllocationStack(obj);
125 if (UNLIKELY(!success)) {
126 // Slow path. Allocate a new thread-local allocation stack.
127 mirror::Object** start_address;
128 mirror::Object** end_address;
129 while (!allocation_stack_->AtomicBumpBack(kThreadLocalAllocationStackSize,
130 &start_address, &end_address)) {
131 CollectGarbageInternal(collector::kGcTypeSticky, kGcCauseForAlloc, false);
132 }
133 self->SetThreadLocalAllocationStack(start_address, end_address);
134 // Retry on the new thread-local allocation stack.
135 success = self->PushOnThreadLocalAllocationStack(obj);
136 // Must succeed.
137 CHECK(success);
138 }
139 } else {
140 // This is safe to do since the GC will never free objects which are neither in the allocation
141 // stack or the live bitmap.
142 while (!allocation_stack_->AtomicPushBack(obj)) {
143 CollectGarbageInternal(collector::kGcTypeSticky, kGcCauseForAlloc, false);
144 }
145 }
146}
147
Mathieu Chartierc528dba2013-11-26 12:00:11 -0800148template <bool kInstrumented, typename PreFenceVisitor>
149inline mirror::Object* Heap::AllocLargeObject(Thread* self, mirror::Class* klass,
150 size_t byte_count,
151 const PreFenceVisitor& pre_fence_visitor) {
Mathieu Chartier692fafd2013-11-29 17:24:40 -0800152 return AllocObjectWithAllocator<kInstrumented, false, PreFenceVisitor>(self, klass, byte_count,
153 kAllocatorTypeLOS,
154 pre_fence_visitor);
Mathieu Chartierc528dba2013-11-26 12:00:11 -0800155}
156
157template <const bool kInstrumented, const bool kGrow>
Mathieu Chartiercbb2d202013-11-14 17:45:16 -0800158inline mirror::Object* Heap::TryToAllocate(Thread* self, AllocatorType allocator_type,
Ian Rogers6fac4472014-02-25 17:01:10 -0800159 size_t alloc_size, size_t* bytes_allocated,
160 size_t* usable_size) {
Mathieu Chartier692fafd2013-11-29 17:24:40 -0800161 if (UNLIKELY(IsOutOfMemoryOnAllocation<kGrow>(allocator_type, alloc_size))) {
Mathieu Chartiercbb2d202013-11-14 17:45:16 -0800162 return nullptr;
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700163 }
Mathieu Chartiercbb2d202013-11-14 17:45:16 -0800164 mirror::Object* ret;
165 switch (allocator_type) {
166 case kAllocatorTypeBumpPointer: {
167 DCHECK(bump_pointer_space_ != nullptr);
168 alloc_size = RoundUp(alloc_size, space::BumpPointerSpace::kAlignment);
169 ret = bump_pointer_space_->AllocNonvirtual(alloc_size);
170 if (LIKELY(ret != nullptr)) {
171 *bytes_allocated = alloc_size;
Ian Rogers6fac4472014-02-25 17:01:10 -0800172 *usable_size = alloc_size;
Mathieu Chartiercbb2d202013-11-14 17:45:16 -0800173 }
174 break;
175 }
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800176 case kAllocatorTypeRosAlloc: {
177 if (kInstrumented && UNLIKELY(running_on_valgrind_)) {
178 // If running on valgrind, we should be using the instrumented path.
Ian Rogers6fac4472014-02-25 17:01:10 -0800179 ret = rosalloc_space_->Alloc(self, alloc_size, bytes_allocated, usable_size);
Mathieu Chartiercbb2d202013-11-14 17:45:16 -0800180 } else {
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800181 DCHECK(!running_on_valgrind_);
Ian Rogers6fac4472014-02-25 17:01:10 -0800182 ret = rosalloc_space_->AllocNonvirtual(self, alloc_size, bytes_allocated, usable_size);
Mathieu Chartiercbb2d202013-11-14 17:45:16 -0800183 }
184 break;
185 }
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800186 case kAllocatorTypeDlMalloc: {
187 if (kInstrumented && UNLIKELY(running_on_valgrind_)) {
188 // If running on valgrind, we should be using the instrumented path.
Ian Rogers6fac4472014-02-25 17:01:10 -0800189 ret = dlmalloc_space_->Alloc(self, alloc_size, bytes_allocated, usable_size);
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800190 } else {
191 DCHECK(!running_on_valgrind_);
Ian Rogers6fac4472014-02-25 17:01:10 -0800192 ret = dlmalloc_space_->AllocNonvirtual(self, alloc_size, bytes_allocated, usable_size);
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800193 }
194 break;
195 }
196 case kAllocatorTypeNonMoving: {
Ian Rogers6fac4472014-02-25 17:01:10 -0800197 ret = non_moving_space_->Alloc(self, alloc_size, bytes_allocated, usable_size);
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800198 break;
199 }
Mathieu Chartiercbb2d202013-11-14 17:45:16 -0800200 case kAllocatorTypeLOS: {
Ian Rogers6fac4472014-02-25 17:01:10 -0800201 ret = large_object_space_->Alloc(self, alloc_size, bytes_allocated, usable_size);
Hiroshi Yamauchi95a659f2013-11-22 14:43:45 -0800202 // Note that the bump pointer spaces aren't necessarily next to
203 // the other continuous spaces like the non-moving alloc space or
204 // the zygote space.
205 DCHECK(ret == nullptr || large_object_space_->Contains(ret));
Mathieu Chartiercbb2d202013-11-14 17:45:16 -0800206 break;
207 }
Mathieu Chartier692fafd2013-11-29 17:24:40 -0800208 case kAllocatorTypeTLAB: {
209 alloc_size = RoundUp(alloc_size, space::BumpPointerSpace::kAlignment);
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800210 if (UNLIKELY(self->TlabSize() < alloc_size)) {
Mathieu Chartier692fafd2013-11-29 17:24:40 -0800211 // Try allocating a new thread local buffer, if the allocaiton fails the space must be
212 // full so return nullptr.
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800213 if (!bump_pointer_space_->AllocNewTlab(self, alloc_size + kDefaultTLABSize)) {
Mathieu Chartier692fafd2013-11-29 17:24:40 -0800214 return nullptr;
215 }
216 }
217 // The allocation can't fail.
Mathieu Chartiere6da9af2013-12-16 11:54:42 -0800218 ret = self->AllocTlab(alloc_size);
Mathieu Chartier692fafd2013-11-29 17:24:40 -0800219 DCHECK(ret != nullptr);
220 *bytes_allocated = alloc_size;
221 break;
222 }
Mathieu Chartiercbb2d202013-11-14 17:45:16 -0800223 default: {
224 LOG(FATAL) << "Invalid allocator type";
225 ret = nullptr;
226 }
227 }
228 return ret;
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700229}
230
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700231inline Heap::AllocationTimer::AllocationTimer(Heap* heap, mirror::Object** allocated_obj_ptr)
232 : heap_(heap), allocated_obj_ptr_(allocated_obj_ptr) {
233 if (kMeasureAllocationTime) {
234 allocation_start_time_ = NanoTime() / kTimeAdjust;
235 }
236}
237
238inline Heap::AllocationTimer::~AllocationTimer() {
239 if (kMeasureAllocationTime) {
240 mirror::Object* allocated_obj = *allocated_obj_ptr_;
241 // Only if the allocation succeeded, record the time.
Mathieu Chartiercbb2d202013-11-14 17:45:16 -0800242 if (allocated_obj != nullptr) {
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700243 uint64_t allocation_end_time = NanoTime() / kTimeAdjust;
Ian Rogersb122a4b2013-11-19 18:00:50 -0800244 heap_->total_allocation_time_.FetchAndAdd(allocation_end_time - allocation_start_time_);
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700245 }
246 }
247};
248
Mathieu Chartiercbb2d202013-11-14 17:45:16 -0800249inline bool Heap::ShouldAllocLargeObject(mirror::Class* c, size_t byte_count) const {
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700250 // We need to have a zygote space or else our newly allocated large object can end up in the
251 // Zygote resulting in it being prematurely freed.
252 // We can only do this for primitive objects since large objects will not be within the card table
253 // range. This also means that we rely on SetClass not dirtying the object's card.
Mathieu Chartierbd0a6532014-02-27 11:14:21 -0800254 return byte_count >= large_object_threshold_ && c->IsPrimitiveArray();
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700255}
256
Mathieu Chartier692fafd2013-11-29 17:24:40 -0800257template <bool kGrow>
258inline bool Heap::IsOutOfMemoryOnAllocation(AllocatorType allocator_type, size_t alloc_size) {
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700259 size_t new_footprint = num_bytes_allocated_ + alloc_size;
260 if (UNLIKELY(new_footprint > max_allowed_footprint_)) {
261 if (UNLIKELY(new_footprint > growth_limit_)) {
262 return true;
263 }
Mathieu Chartier692fafd2013-11-29 17:24:40 -0800264 if (!AllocatorMayHaveConcurrentGC(allocator_type) || !concurrent_gc_) {
Mathieu Chartierc528dba2013-11-26 12:00:11 -0800265 if (!kGrow) {
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700266 return true;
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700267 }
Mathieu Chartier7bf82af2013-12-06 16:51:45 -0800268 // TODO: Grow for allocation is racy, fix it.
269 VLOG(heap) << "Growing heap from " << PrettySize(max_allowed_footprint_) << " to "
270 << PrettySize(new_footprint) << " for a " << PrettySize(alloc_size) << " allocation";
271 max_allowed_footprint_ = new_footprint;
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700272 }
273 }
274 return false;
275}
276
Mathieu Chartiercbb2d202013-11-14 17:45:16 -0800277inline void Heap::CheckConcurrentGC(Thread* self, size_t new_num_bytes_allocated,
Mathieu Chartierf517f1a2014-03-06 15:52:27 -0800278 mirror::Object** obj) {
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700279 if (UNLIKELY(new_num_bytes_allocated >= concurrent_start_bytes_)) {
280 // The SirtRef is necessary since the calls in RequestConcurrentGC are a safepoint.
Mathieu Chartierf517f1a2014-03-06 15:52:27 -0800281 SirtRef<mirror::Object> ref(self, *obj);
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700282 RequestConcurrentGC(self);
Mathieu Chartierf517f1a2014-03-06 15:52:27 -0800283 // Restore obj in case it moved.
284 *obj = ref.get();
Hiroshi Yamauchi3b4c1892013-09-12 21:33:12 -0700285 }
286}
287
288} // namespace gc
289} // namespace art
290
291#endif // ART_RUNTIME_GC_HEAP_INL_H_