1 /*
2 * Copyright 2014 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 #include "jit_code_cache.h"
18
19 #include <sstream>
20
21 #include "art_method-inl.h"
22 #include "base/stl_util.h"
23 #include "base/systrace.h"
24 #include "base/time_utils.h"
25 #include "debugger_interface.h"
26 #include "entrypoints/runtime_asm_entrypoints.h"
27 #include "gc/accounting/bitmap-inl.h"
28 #include "gc/scoped_gc_critical_section.h"
29 #include "jit/jit.h"
30 #include "jit/profiling_info.h"
31 #include "linear_alloc.h"
32 #include "mem_map.h"
33 #include "oat_file-inl.h"
34 #include "scoped_thread_state_change.h"
35 #include "thread_list.h"
36
37 namespace art {
38 namespace jit {
39
40 static constexpr int kProtAll = PROT_READ | PROT_WRITE | PROT_EXEC;
41 static constexpr int kProtData = PROT_READ | PROT_WRITE;
42 static constexpr int kProtCode = PROT_READ | PROT_EXEC;
43
44 static constexpr size_t kCodeSizeLogThreshold = 50 * KB;
45 static constexpr size_t kStackMapSizeLogThreshold = 50 * KB;
46
47 #define CHECKED_MPROTECT(memory, size, prot) \
48 do { \
49 int rc = mprotect(memory, size, prot); \
50 if (UNLIKELY(rc != 0)) { \
51 errno = rc; \
52 PLOG(FATAL) << "Failed to mprotect jit code cache"; \
53 } \
54 } while (false) \
55
Create(size_t initial_capacity,size_t max_capacity,bool generate_debug_info,std::string * error_msg)56 JitCodeCache* JitCodeCache::Create(size_t initial_capacity,
57 size_t max_capacity,
58 bool generate_debug_info,
59 std::string* error_msg) {
60 ScopedTrace trace(__PRETTY_FUNCTION__);
61 CHECK_GE(max_capacity, initial_capacity);
62
63 // Generating debug information is mostly for using the 'perf' tool, which does
64 // not work with ashmem.
65 bool use_ashmem = !generate_debug_info;
66 // With 'perf', we want a 1-1 mapping between an address and a method.
67 bool garbage_collect_code = !generate_debug_info;
68
69 // We need to have 32 bit offsets from method headers in code cache which point to things
70 // in the data cache. If the maps are more than 4G apart, having multiple maps wouldn't work.
71 // Ensure we're below 1 GB to be safe.
72 if (max_capacity > 1 * GB) {
73 std::ostringstream oss;
74 oss << "Maxium code cache capacity is limited to 1 GB, "
75 << PrettySize(max_capacity) << " is too big";
76 *error_msg = oss.str();
77 return nullptr;
78 }
79
80 std::string error_str;
81 // Map name specific for android_os_Debug.cpp accounting.
82 MemMap* data_map = MemMap::MapAnonymous(
83 "data-code-cache", nullptr, max_capacity, kProtAll, false, false, &error_str, use_ashmem);
84 if (data_map == nullptr) {
85 std::ostringstream oss;
86 oss << "Failed to create read write execute cache: " << error_str << " size=" << max_capacity;
87 *error_msg = oss.str();
88 return nullptr;
89 }
90
91 // Align both capacities to page size, as that's the unit mspaces use.
92 initial_capacity = RoundDown(initial_capacity, 2 * kPageSize);
93 max_capacity = RoundDown(max_capacity, 2 * kPageSize);
94
95 // Data cache is 1 / 2 of the map.
96 // TODO: Make this variable?
97 size_t data_size = max_capacity / 2;
98 size_t code_size = max_capacity - data_size;
99 DCHECK_EQ(code_size + data_size, max_capacity);
100 uint8_t* divider = data_map->Begin() + data_size;
101
102 MemMap* code_map =
103 data_map->RemapAtEnd(divider, "jit-code-cache", kProtAll, &error_str, use_ashmem);
104 if (code_map == nullptr) {
105 std::ostringstream oss;
106 oss << "Failed to create read write execute cache: " << error_str << " size=" << max_capacity;
107 *error_msg = oss.str();
108 return nullptr;
109 }
110 DCHECK_EQ(code_map->Begin(), divider);
111 data_size = initial_capacity / 2;
112 code_size = initial_capacity - data_size;
113 DCHECK_EQ(code_size + data_size, initial_capacity);
114 return new JitCodeCache(
115 code_map, data_map, code_size, data_size, max_capacity, garbage_collect_code);
116 }
117
JitCodeCache(MemMap * code_map,MemMap * data_map,size_t initial_code_capacity,size_t initial_data_capacity,size_t max_capacity,bool garbage_collect_code)118 JitCodeCache::JitCodeCache(MemMap* code_map,
119 MemMap* data_map,
120 size_t initial_code_capacity,
121 size_t initial_data_capacity,
122 size_t max_capacity,
123 bool garbage_collect_code)
124 : lock_("Jit code cache", kJitCodeCacheLock),
125 lock_cond_("Jit code cache variable", lock_),
126 collection_in_progress_(false),
127 code_map_(code_map),
128 data_map_(data_map),
129 max_capacity_(max_capacity),
130 current_capacity_(initial_code_capacity + initial_data_capacity),
131 code_end_(initial_code_capacity),
132 data_end_(initial_data_capacity),
133 last_collection_increased_code_cache_(false),
134 last_update_time_ns_(0),
135 garbage_collect_code_(garbage_collect_code),
136 used_memory_for_data_(0),
137 used_memory_for_code_(0),
138 number_of_compilations_(0),
139 number_of_osr_compilations_(0),
140 number_of_deoptimizations_(0),
141 number_of_collections_(0),
142 histogram_stack_map_memory_use_("Memory used for stack maps", 16),
143 histogram_code_memory_use_("Memory used for compiled code", 16),
144 histogram_profiling_info_memory_use_("Memory used for profiling info", 16) {
145
146 DCHECK_GE(max_capacity, initial_code_capacity + initial_data_capacity);
147 code_mspace_ = create_mspace_with_base(code_map_->Begin(), code_end_, false /*locked*/);
148 data_mspace_ = create_mspace_with_base(data_map_->Begin(), data_end_, false /*locked*/);
149
150 if (code_mspace_ == nullptr || data_mspace_ == nullptr) {
151 PLOG(FATAL) << "create_mspace_with_base failed";
152 }
153
154 SetFootprintLimit(current_capacity_);
155
156 CHECKED_MPROTECT(code_map_->Begin(), code_map_->Size(), kProtCode);
157 CHECKED_MPROTECT(data_map_->Begin(), data_map_->Size(), kProtData);
158
159 VLOG(jit) << "Created jit code cache: initial data size="
160 << PrettySize(initial_data_capacity)
161 << ", initial code size="
162 << PrettySize(initial_code_capacity);
163 }
164
ContainsPc(const void * ptr) const165 bool JitCodeCache::ContainsPc(const void* ptr) const {
166 return code_map_->Begin() <= ptr && ptr < code_map_->End();
167 }
168
ContainsMethod(ArtMethod * method)169 bool JitCodeCache::ContainsMethod(ArtMethod* method) {
170 MutexLock mu(Thread::Current(), lock_);
171 for (auto& it : method_code_map_) {
172 if (it.second == method) {
173 return true;
174 }
175 }
176 return false;
177 }
178
179 class ScopedCodeCacheWrite : ScopedTrace {
180 public:
ScopedCodeCacheWrite(MemMap * code_map)181 explicit ScopedCodeCacheWrite(MemMap* code_map)
182 : ScopedTrace("ScopedCodeCacheWrite"),
183 code_map_(code_map) {
184 ScopedTrace trace("mprotect all");
185 CHECKED_MPROTECT(code_map_->Begin(), code_map_->Size(), kProtAll);
186 }
~ScopedCodeCacheWrite()187 ~ScopedCodeCacheWrite() {
188 ScopedTrace trace("mprotect code");
189 CHECKED_MPROTECT(code_map_->Begin(), code_map_->Size(), kProtCode);
190 }
191 private:
192 MemMap* const code_map_;
193
194 DISALLOW_COPY_AND_ASSIGN(ScopedCodeCacheWrite);
195 };
196
CommitCode(Thread * self,ArtMethod * method,const uint8_t * vmap_table,size_t frame_size_in_bytes,size_t core_spill_mask,size_t fp_spill_mask,const uint8_t * code,size_t code_size,bool osr)197 uint8_t* JitCodeCache::CommitCode(Thread* self,
198 ArtMethod* method,
199 const uint8_t* vmap_table,
200 size_t frame_size_in_bytes,
201 size_t core_spill_mask,
202 size_t fp_spill_mask,
203 const uint8_t* code,
204 size_t code_size,
205 bool osr) {
206 uint8_t* result = CommitCodeInternal(self,
207 method,
208 vmap_table,
209 frame_size_in_bytes,
210 core_spill_mask,
211 fp_spill_mask,
212 code,
213 code_size,
214 osr);
215 if (result == nullptr) {
216 // Retry.
217 GarbageCollectCache(self);
218 result = CommitCodeInternal(self,
219 method,
220 vmap_table,
221 frame_size_in_bytes,
222 core_spill_mask,
223 fp_spill_mask,
224 code,
225 code_size,
226 osr);
227 }
228 return result;
229 }
230
WaitForPotentialCollectionToComplete(Thread * self)231 bool JitCodeCache::WaitForPotentialCollectionToComplete(Thread* self) {
232 bool in_collection = false;
233 while (collection_in_progress_) {
234 in_collection = true;
235 lock_cond_.Wait(self);
236 }
237 return in_collection;
238 }
239
FromCodeToAllocation(const void * code)240 static uintptr_t FromCodeToAllocation(const void* code) {
241 size_t alignment = GetInstructionSetAlignment(kRuntimeISA);
242 return reinterpret_cast<uintptr_t>(code) - RoundUp(sizeof(OatQuickMethodHeader), alignment);
243 }
244
FreeCode(const void * code_ptr,ArtMethod * method ATTRIBUTE_UNUSED)245 void JitCodeCache::FreeCode(const void* code_ptr, ArtMethod* method ATTRIBUTE_UNUSED) {
246 uintptr_t allocation = FromCodeToAllocation(code_ptr);
247 const OatQuickMethodHeader* method_header = OatQuickMethodHeader::FromCodePointer(code_ptr);
248 // Notify native debugger that we are about to remove the code.
249 // It does nothing if we are not using native debugger.
250 DeleteJITCodeEntryForAddress(reinterpret_cast<uintptr_t>(code_ptr));
251
252 // Use the offset directly to prevent sanity check that the method is
253 // compiled with optimizing.
254 // TODO(ngeoffray): Clean up.
255 if (method_header->vmap_table_offset_ != 0) {
256 const uint8_t* data = method_header->code_ - method_header->vmap_table_offset_;
257 FreeData(const_cast<uint8_t*>(data));
258 }
259 FreeCode(reinterpret_cast<uint8_t*>(allocation));
260 }
261
RemoveMethodsIn(Thread * self,const LinearAlloc & alloc)262 void JitCodeCache::RemoveMethodsIn(Thread* self, const LinearAlloc& alloc) {
263 ScopedTrace trace(__PRETTY_FUNCTION__);
264 MutexLock mu(self, lock_);
265 // We do not check if a code cache GC is in progress, as this method comes
266 // with the classlinker_classes_lock_ held, and suspending ourselves could
267 // lead to a deadlock.
268 {
269 ScopedCodeCacheWrite scc(code_map_.get());
270 for (auto it = method_code_map_.begin(); it != method_code_map_.end();) {
271 if (alloc.ContainsUnsafe(it->second)) {
272 FreeCode(it->first, it->second);
273 it = method_code_map_.erase(it);
274 } else {
275 ++it;
276 }
277 }
278 }
279 for (auto it = osr_code_map_.begin(); it != osr_code_map_.end();) {
280 if (alloc.ContainsUnsafe(it->first)) {
281 // Note that the code has already been removed in the loop above.
282 it = osr_code_map_.erase(it);
283 } else {
284 ++it;
285 }
286 }
287 for (auto it = profiling_infos_.begin(); it != profiling_infos_.end();) {
288 ProfilingInfo* info = *it;
289 if (alloc.ContainsUnsafe(info->GetMethod())) {
290 info->GetMethod()->SetProfilingInfo(nullptr);
291 FreeData(reinterpret_cast<uint8_t*>(info));
292 it = profiling_infos_.erase(it);
293 } else {
294 ++it;
295 }
296 }
297 }
298
ClearGcRootsInInlineCaches(Thread * self)299 void JitCodeCache::ClearGcRootsInInlineCaches(Thread* self) {
300 MutexLock mu(self, lock_);
301 for (ProfilingInfo* info : profiling_infos_) {
302 if (!info->IsInUseByCompiler()) {
303 info->ClearGcRootsInInlineCaches();
304 }
305 }
306 }
307
CommitCodeInternal(Thread * self,ArtMethod * method,const uint8_t * vmap_table,size_t frame_size_in_bytes,size_t core_spill_mask,size_t fp_spill_mask,const uint8_t * code,size_t code_size,bool osr)308 uint8_t* JitCodeCache::CommitCodeInternal(Thread* self,
309 ArtMethod* method,
310 const uint8_t* vmap_table,
311 size_t frame_size_in_bytes,
312 size_t core_spill_mask,
313 size_t fp_spill_mask,
314 const uint8_t* code,
315 size_t code_size,
316 bool osr) {
317 size_t alignment = GetInstructionSetAlignment(kRuntimeISA);
318 // Ensure the header ends up at expected instruction alignment.
319 size_t header_size = RoundUp(sizeof(OatQuickMethodHeader), alignment);
320 size_t total_size = header_size + code_size;
321
322 OatQuickMethodHeader* method_header = nullptr;
323 uint8_t* code_ptr = nullptr;
324 uint8_t* memory = nullptr;
325 {
326 ScopedThreadSuspension sts(self, kSuspended);
327 MutexLock mu(self, lock_);
328 WaitForPotentialCollectionToComplete(self);
329 {
330 ScopedCodeCacheWrite scc(code_map_.get());
331 memory = AllocateCode(total_size);
332 if (memory == nullptr) {
333 return nullptr;
334 }
335 code_ptr = memory + header_size;
336
337 std::copy(code, code + code_size, code_ptr);
338 method_header = OatQuickMethodHeader::FromCodePointer(code_ptr);
339 new (method_header) OatQuickMethodHeader(
340 (vmap_table == nullptr) ? 0 : code_ptr - vmap_table,
341 frame_size_in_bytes,
342 core_spill_mask,
343 fp_spill_mask,
344 code_size);
345 }
346
347 FlushInstructionCache(reinterpret_cast<char*>(code_ptr),
348 reinterpret_cast<char*>(code_ptr + code_size));
349 number_of_compilations_++;
350 }
351 // We need to update the entry point in the runnable state for the instrumentation.
352 {
353 MutexLock mu(self, lock_);
354 method_code_map_.Put(code_ptr, method);
355 if (osr) {
356 number_of_osr_compilations_++;
357 osr_code_map_.Put(method, code_ptr);
358 } else {
359 Runtime::Current()->GetInstrumentation()->UpdateMethodsCode(
360 method, method_header->GetEntryPoint());
361 }
362 if (collection_in_progress_) {
363 // We need to update the live bitmap if there is a GC to ensure it sees this new
364 // code.
365 GetLiveBitmap()->AtomicTestAndSet(FromCodeToAllocation(code_ptr));
366 }
367 last_update_time_ns_.StoreRelease(NanoTime());
368 VLOG(jit)
369 << "JIT added (osr=" << std::boolalpha << osr << std::noboolalpha << ") "
370 << PrettyMethod(method) << "@" << method
371 << " ccache_size=" << PrettySize(CodeCacheSizeLocked()) << ": "
372 << " dcache_size=" << PrettySize(DataCacheSizeLocked()) << ": "
373 << reinterpret_cast<const void*>(method_header->GetEntryPoint()) << ","
374 << reinterpret_cast<const void*>(method_header->GetEntryPoint() + method_header->code_size_);
375 histogram_code_memory_use_.AddValue(code_size);
376 if (code_size > kCodeSizeLogThreshold) {
377 LOG(INFO) << "JIT allocated "
378 << PrettySize(code_size)
379 << " for compiled code of "
380 << PrettyMethod(method);
381 }
382 }
383
384 return reinterpret_cast<uint8_t*>(method_header);
385 }
386
CodeCacheSize()387 size_t JitCodeCache::CodeCacheSize() {
388 MutexLock mu(Thread::Current(), lock_);
389 return CodeCacheSizeLocked();
390 }
391
CodeCacheSizeLocked()392 size_t JitCodeCache::CodeCacheSizeLocked() {
393 return used_memory_for_code_;
394 }
395
DataCacheSize()396 size_t JitCodeCache::DataCacheSize() {
397 MutexLock mu(Thread::Current(), lock_);
398 return DataCacheSizeLocked();
399 }
400
DataCacheSizeLocked()401 size_t JitCodeCache::DataCacheSizeLocked() {
402 return used_memory_for_data_;
403 }
404
ClearData(Thread * self,void * data)405 void JitCodeCache::ClearData(Thread* self, void* data) {
406 MutexLock mu(self, lock_);
407 FreeData(reinterpret_cast<uint8_t*>(data));
408 }
409
ReserveData(Thread * self,size_t size,ArtMethod * method)410 uint8_t* JitCodeCache::ReserveData(Thread* self, size_t size, ArtMethod* method) {
411 size = RoundUp(size, sizeof(void*));
412 uint8_t* result = nullptr;
413
414 {
415 ScopedThreadSuspension sts(self, kSuspended);
416 MutexLock mu(self, lock_);
417 WaitForPotentialCollectionToComplete(self);
418 result = AllocateData(size);
419 }
420
421 if (result == nullptr) {
422 // Retry.
423 GarbageCollectCache(self);
424 ScopedThreadSuspension sts(self, kSuspended);
425 MutexLock mu(self, lock_);
426 WaitForPotentialCollectionToComplete(self);
427 result = AllocateData(size);
428 }
429
430 MutexLock mu(self, lock_);
431 histogram_stack_map_memory_use_.AddValue(size);
432 if (size > kStackMapSizeLogThreshold) {
433 LOG(INFO) << "JIT allocated "
434 << PrettySize(size)
435 << " for stack maps of "
436 << PrettyMethod(method);
437 }
438 return result;
439 }
440
441 class MarkCodeVisitor FINAL : public StackVisitor {
442 public:
MarkCodeVisitor(Thread * thread_in,JitCodeCache * code_cache_in)443 MarkCodeVisitor(Thread* thread_in, JitCodeCache* code_cache_in)
444 : StackVisitor(thread_in, nullptr, StackVisitor::StackWalkKind::kSkipInlinedFrames),
445 code_cache_(code_cache_in),
446 bitmap_(code_cache_->GetLiveBitmap()) {}
447
VisitFrame()448 bool VisitFrame() OVERRIDE SHARED_REQUIRES(Locks::mutator_lock_) {
449 const OatQuickMethodHeader* method_header = GetCurrentOatQuickMethodHeader();
450 if (method_header == nullptr) {
451 return true;
452 }
453 const void* code = method_header->GetCode();
454 if (code_cache_->ContainsPc(code)) {
455 // Use the atomic set version, as multiple threads are executing this code.
456 bitmap_->AtomicTestAndSet(FromCodeToAllocation(code));
457 }
458 return true;
459 }
460
461 private:
462 JitCodeCache* const code_cache_;
463 CodeCacheBitmap* const bitmap_;
464 };
465
466 class MarkCodeClosure FINAL : public Closure {
467 public:
MarkCodeClosure(JitCodeCache * code_cache,Barrier * barrier)468 MarkCodeClosure(JitCodeCache* code_cache, Barrier* barrier)
469 : code_cache_(code_cache), barrier_(barrier) {}
470
Run(Thread * thread)471 void Run(Thread* thread) OVERRIDE SHARED_REQUIRES(Locks::mutator_lock_) {
472 ScopedTrace trace(__PRETTY_FUNCTION__);
473 DCHECK(thread == Thread::Current() || thread->IsSuspended());
474 MarkCodeVisitor visitor(thread, code_cache_);
475 visitor.WalkStack();
476 if (kIsDebugBuild) {
477 // The stack walking code queries the side instrumentation stack if it
478 // sees an instrumentation exit pc, so the JIT code of methods in that stack
479 // must have been seen. We sanity check this below.
480 for (const instrumentation::InstrumentationStackFrame& frame
481 : *thread->GetInstrumentationStack()) {
482 // The 'method_' in InstrumentationStackFrame is the one that has return_pc_ in
483 // its stack frame, it is not the method owning return_pc_. We just pass null to
484 // LookupMethodHeader: the method is only checked against in debug builds.
485 OatQuickMethodHeader* method_header =
486 code_cache_->LookupMethodHeader(frame.return_pc_, nullptr);
487 if (method_header != nullptr) {
488 const void* code = method_header->GetCode();
489 CHECK(code_cache_->GetLiveBitmap()->Test(FromCodeToAllocation(code)));
490 }
491 }
492 }
493 barrier_->Pass(Thread::Current());
494 }
495
496 private:
497 JitCodeCache* const code_cache_;
498 Barrier* const barrier_;
499 };
500
NotifyCollectionDone(Thread * self)501 void JitCodeCache::NotifyCollectionDone(Thread* self) {
502 collection_in_progress_ = false;
503 lock_cond_.Broadcast(self);
504 }
505
SetFootprintLimit(size_t new_footprint)506 void JitCodeCache::SetFootprintLimit(size_t new_footprint) {
507 size_t per_space_footprint = new_footprint / 2;
508 DCHECK(IsAlignedParam(per_space_footprint, kPageSize));
509 DCHECK_EQ(per_space_footprint * 2, new_footprint);
510 mspace_set_footprint_limit(data_mspace_, per_space_footprint);
511 {
512 ScopedCodeCacheWrite scc(code_map_.get());
513 mspace_set_footprint_limit(code_mspace_, per_space_footprint);
514 }
515 }
516
IncreaseCodeCacheCapacity()517 bool JitCodeCache::IncreaseCodeCacheCapacity() {
518 if (current_capacity_ == max_capacity_) {
519 return false;
520 }
521
522 // Double the capacity if we're below 1MB, or increase it by 1MB if
523 // we're above.
524 if (current_capacity_ < 1 * MB) {
525 current_capacity_ *= 2;
526 } else {
527 current_capacity_ += 1 * MB;
528 }
529 if (current_capacity_ > max_capacity_) {
530 current_capacity_ = max_capacity_;
531 }
532
533 if (!kIsDebugBuild || VLOG_IS_ON(jit)) {
534 LOG(INFO) << "Increasing code cache capacity to " << PrettySize(current_capacity_);
535 }
536
537 SetFootprintLimit(current_capacity_);
538
539 return true;
540 }
541
MarkCompiledCodeOnThreadStacks(Thread * self)542 void JitCodeCache::MarkCompiledCodeOnThreadStacks(Thread* self) {
543 Barrier barrier(0);
544 size_t threads_running_checkpoint = 0;
545 MarkCodeClosure closure(this, &barrier);
546 threads_running_checkpoint = Runtime::Current()->GetThreadList()->RunCheckpoint(&closure);
547 // Now that we have run our checkpoint, move to a suspended state and wait
548 // for other threads to run the checkpoint.
549 ScopedThreadSuspension sts(self, kSuspended);
550 if (threads_running_checkpoint != 0) {
551 barrier.Increment(self, threads_running_checkpoint);
552 }
553 }
554
ShouldDoFullCollection()555 bool JitCodeCache::ShouldDoFullCollection() {
556 if (current_capacity_ == max_capacity_) {
557 // Always do a full collection when the code cache is full.
558 return true;
559 } else if (current_capacity_ < kReservedCapacity) {
560 // Always do partial collection when the code cache size is below the reserved
561 // capacity.
562 return false;
563 } else if (last_collection_increased_code_cache_) {
564 // This time do a full collection.
565 return true;
566 } else {
567 // This time do a partial collection.
568 return false;
569 }
570 }
571
GarbageCollectCache(Thread * self)572 void JitCodeCache::GarbageCollectCache(Thread* self) {
573 ScopedTrace trace(__FUNCTION__);
574 if (!garbage_collect_code_) {
575 MutexLock mu(self, lock_);
576 IncreaseCodeCacheCapacity();
577 return;
578 }
579
580 // Wait for an existing collection, or let everyone know we are starting one.
581 {
582 ScopedThreadSuspension sts(self, kSuspended);
583 MutexLock mu(self, lock_);
584 if (WaitForPotentialCollectionToComplete(self)) {
585 return;
586 } else {
587 number_of_collections_++;
588 live_bitmap_.reset(CodeCacheBitmap::Create(
589 "code-cache-bitmap",
590 reinterpret_cast<uintptr_t>(code_map_->Begin()),
591 reinterpret_cast<uintptr_t>(code_map_->Begin() + current_capacity_ / 2)));
592 collection_in_progress_ = true;
593 }
594 }
595
596 TimingLogger logger("JIT code cache timing logger", true, VLOG_IS_ON(jit));
597 {
598 TimingLogger::ScopedTiming st("Code cache collection", &logger);
599
600 bool do_full_collection = false;
601 {
602 MutexLock mu(self, lock_);
603 do_full_collection = ShouldDoFullCollection();
604 }
605
606 if (!kIsDebugBuild || VLOG_IS_ON(jit)) {
607 LOG(INFO) << "Do "
608 << (do_full_collection ? "full" : "partial")
609 << " code cache collection, code="
610 << PrettySize(CodeCacheSize())
611 << ", data=" << PrettySize(DataCacheSize());
612 }
613
614 DoCollection(self, /* collect_profiling_info */ do_full_collection);
615
616 if (!kIsDebugBuild || VLOG_IS_ON(jit)) {
617 LOG(INFO) << "After code cache collection, code="
618 << PrettySize(CodeCacheSize())
619 << ", data=" << PrettySize(DataCacheSize());
620 }
621
622 {
623 MutexLock mu(self, lock_);
624
625 // Increase the code cache only when we do partial collections.
626 // TODO: base this strategy on how full the code cache is?
627 if (do_full_collection) {
628 last_collection_increased_code_cache_ = false;
629 } else {
630 last_collection_increased_code_cache_ = true;
631 IncreaseCodeCacheCapacity();
632 }
633
634 bool next_collection_will_be_full = ShouldDoFullCollection();
635
636 // Start polling the liveness of compiled code to prepare for the next full collection.
637 if (next_collection_will_be_full) {
638 // Save the entry point of methods we have compiled, and update the entry
639 // point of those methods to the interpreter. If the method is invoked, the
640 // interpreter will update its entry point to the compiled code and call it.
641 for (ProfilingInfo* info : profiling_infos_) {
642 const void* entry_point = info->GetMethod()->GetEntryPointFromQuickCompiledCode();
643 if (ContainsPc(entry_point)) {
644 info->SetSavedEntryPoint(entry_point);
645 Runtime::Current()->GetInstrumentation()->UpdateMethodsCode(
646 info->GetMethod(), GetQuickToInterpreterBridge());
647 }
648 }
649
650 DCHECK(CheckLiveCompiledCodeHasProfilingInfo());
651 }
652 live_bitmap_.reset(nullptr);
653 NotifyCollectionDone(self);
654 }
655 }
656 Runtime::Current()->GetJit()->AddTimingLogger(logger);
657 }
658
RemoveUnmarkedCode(Thread * self)659 void JitCodeCache::RemoveUnmarkedCode(Thread* self) {
660 ScopedTrace trace(__FUNCTION__);
661 MutexLock mu(self, lock_);
662 ScopedCodeCacheWrite scc(code_map_.get());
663 // Iterate over all compiled code and remove entries that are not marked.
664 for (auto it = method_code_map_.begin(); it != method_code_map_.end();) {
665 const void* code_ptr = it->first;
666 ArtMethod* method = it->second;
667 uintptr_t allocation = FromCodeToAllocation(code_ptr);
668 if (GetLiveBitmap()->Test(allocation)) {
669 ++it;
670 } else {
671 FreeCode(code_ptr, method);
672 it = method_code_map_.erase(it);
673 }
674 }
675 }
676
DoCollection(Thread * self,bool collect_profiling_info)677 void JitCodeCache::DoCollection(Thread* self, bool collect_profiling_info) {
678 ScopedTrace trace(__FUNCTION__);
679 {
680 MutexLock mu(self, lock_);
681 if (collect_profiling_info) {
682 // Clear the profiling info of methods that do not have compiled code as entrypoint.
683 // Also remove the saved entry point from the ProfilingInfo objects.
684 for (ProfilingInfo* info : profiling_infos_) {
685 const void* ptr = info->GetMethod()->GetEntryPointFromQuickCompiledCode();
686 if (!ContainsPc(ptr) && !info->IsInUseByCompiler()) {
687 info->GetMethod()->SetProfilingInfo(nullptr);
688 }
689
690 if (info->GetSavedEntryPoint() != nullptr) {
691 info->SetSavedEntryPoint(nullptr);
692 // We are going to move this method back to interpreter. Clear the counter now to
693 // give it a chance to be hot again.
694 info->GetMethod()->ClearCounter();
695 }
696 }
697 } else if (kIsDebugBuild) {
698 // Sanity check that the profiling infos do not have a dangling entry point.
699 for (ProfilingInfo* info : profiling_infos_) {
700 DCHECK(info->GetSavedEntryPoint() == nullptr);
701 }
702 }
703
704 // Mark compiled code that are entrypoints of ArtMethods. Compiled code that is not
705 // an entry point is either:
706 // - an osr compiled code, that will be removed if not in a thread call stack.
707 // - discarded compiled code, that will be removed if not in a thread call stack.
708 for (const auto& it : method_code_map_) {
709 ArtMethod* method = it.second;
710 const void* code_ptr = it.first;
711 const OatQuickMethodHeader* method_header = OatQuickMethodHeader::FromCodePointer(code_ptr);
712 if (method_header->GetEntryPoint() == method->GetEntryPointFromQuickCompiledCode()) {
713 GetLiveBitmap()->AtomicTestAndSet(FromCodeToAllocation(code_ptr));
714 }
715 }
716
717 // Empty osr method map, as osr compiled code will be deleted (except the ones
718 // on thread stacks).
719 osr_code_map_.clear();
720 }
721
722 // Run a checkpoint on all threads to mark the JIT compiled code they are running.
723 MarkCompiledCodeOnThreadStacks(self);
724
725 // At this point, mutator threads are still running, and entrypoints of methods can
726 // change. We do know they cannot change to a code cache entry that is not marked,
727 // therefore we can safely remove those entries.
728 RemoveUnmarkedCode(self);
729
730 if (collect_profiling_info) {
731 ScopedThreadSuspension sts(self, kSuspended);
732 gc::ScopedGCCriticalSection gcs(
733 self, gc::kGcCauseJitCodeCache, gc::kCollectorTypeJitCodeCache);
734 MutexLock mu(self, lock_);
735 // Free all profiling infos of methods not compiled nor being compiled.
736 auto profiling_kept_end = std::remove_if(profiling_infos_.begin(), profiling_infos_.end(),
737 [this] (ProfilingInfo* info) NO_THREAD_SAFETY_ANALYSIS {
738 const void* ptr = info->GetMethod()->GetEntryPointFromQuickCompiledCode();
739 // We have previously cleared the ProfilingInfo pointer in the ArtMethod in the hope
740 // that the compiled code would not get revived. As mutator threads run concurrently,
741 // they may have revived the compiled code, and now we are in the situation where
742 // a method has compiled code but no ProfilingInfo.
743 // We make sure compiled methods have a ProfilingInfo object. It is needed for
744 // code cache collection.
745 if (ContainsPc(ptr) && info->GetMethod()->GetProfilingInfo(sizeof(void*)) == nullptr) {
746 // We clear the inline caches as classes in it might be stalled.
747 info->ClearGcRootsInInlineCaches();
748 // Do a fence to make sure the clearing is seen before attaching to the method.
749 QuasiAtomic::ThreadFenceRelease();
750 info->GetMethod()->SetProfilingInfo(info);
751 } else if (info->GetMethod()->GetProfilingInfo(sizeof(void*)) != info) {
752 // No need for this ProfilingInfo object anymore.
753 FreeData(reinterpret_cast<uint8_t*>(info));
754 return true;
755 }
756 return false;
757 });
758 profiling_infos_.erase(profiling_kept_end, profiling_infos_.end());
759 DCHECK(CheckLiveCompiledCodeHasProfilingInfo());
760 }
761 }
762
CheckLiveCompiledCodeHasProfilingInfo()763 bool JitCodeCache::CheckLiveCompiledCodeHasProfilingInfo() {
764 ScopedTrace trace(__FUNCTION__);
765 // Check that methods we have compiled do have a ProfilingInfo object. We would
766 // have memory leaks of compiled code otherwise.
767 for (const auto& it : method_code_map_) {
768 ArtMethod* method = it.second;
769 if (method->GetProfilingInfo(sizeof(void*)) == nullptr) {
770 const void* code_ptr = it.first;
771 const OatQuickMethodHeader* method_header = OatQuickMethodHeader::FromCodePointer(code_ptr);
772 if (method_header->GetEntryPoint() == method->GetEntryPointFromQuickCompiledCode()) {
773 // If the code is not dead, then we have a problem. Note that this can even
774 // happen just after a collection, as mutator threads are running in parallel
775 // and could deoptimize an existing compiled code.
776 return false;
777 }
778 }
779 }
780 return true;
781 }
782
LookupMethodHeader(uintptr_t pc,ArtMethod * method)783 OatQuickMethodHeader* JitCodeCache::LookupMethodHeader(uintptr_t pc, ArtMethod* method) {
784 static_assert(kRuntimeISA != kThumb2, "kThumb2 cannot be a runtime ISA");
785 if (kRuntimeISA == kArm) {
786 // On Thumb-2, the pc is offset by one.
787 --pc;
788 }
789 if (!ContainsPc(reinterpret_cast<const void*>(pc))) {
790 return nullptr;
791 }
792
793 MutexLock mu(Thread::Current(), lock_);
794 if (method_code_map_.empty()) {
795 return nullptr;
796 }
797 auto it = method_code_map_.lower_bound(reinterpret_cast<const void*>(pc));
798 --it;
799
800 const void* code_ptr = it->first;
801 OatQuickMethodHeader* method_header = OatQuickMethodHeader::FromCodePointer(code_ptr);
802 if (!method_header->Contains(pc)) {
803 return nullptr;
804 }
805 if (kIsDebugBuild && method != nullptr) {
806 DCHECK_EQ(it->second, method)
807 << PrettyMethod(method) << " " << PrettyMethod(it->second) << " " << std::hex << pc;
808 }
809 return method_header;
810 }
811
LookupOsrMethodHeader(ArtMethod * method)812 OatQuickMethodHeader* JitCodeCache::LookupOsrMethodHeader(ArtMethod* method) {
813 MutexLock mu(Thread::Current(), lock_);
814 auto it = osr_code_map_.find(method);
815 if (it == osr_code_map_.end()) {
816 return nullptr;
817 }
818 return OatQuickMethodHeader::FromCodePointer(it->second);
819 }
820
AddProfilingInfo(Thread * self,ArtMethod * method,const std::vector<uint32_t> & entries,bool retry_allocation)821 ProfilingInfo* JitCodeCache::AddProfilingInfo(Thread* self,
822 ArtMethod* method,
823 const std::vector<uint32_t>& entries,
824 bool retry_allocation)
825 // No thread safety analysis as we are using TryLock/Unlock explicitly.
826 NO_THREAD_SAFETY_ANALYSIS {
827 ProfilingInfo* info = nullptr;
828 if (!retry_allocation) {
829 // If we are allocating for the interpreter, just try to lock, to avoid
830 // lock contention with the JIT.
831 if (lock_.ExclusiveTryLock(self)) {
832 info = AddProfilingInfoInternal(self, method, entries);
833 lock_.ExclusiveUnlock(self);
834 }
835 } else {
836 {
837 MutexLock mu(self, lock_);
838 info = AddProfilingInfoInternal(self, method, entries);
839 }
840
841 if (info == nullptr) {
842 GarbageCollectCache(self);
843 MutexLock mu(self, lock_);
844 info = AddProfilingInfoInternal(self, method, entries);
845 }
846 }
847 return info;
848 }
849
AddProfilingInfoInternal(Thread * self ATTRIBUTE_UNUSED,ArtMethod * method,const std::vector<uint32_t> & entries)850 ProfilingInfo* JitCodeCache::AddProfilingInfoInternal(Thread* self ATTRIBUTE_UNUSED,
851 ArtMethod* method,
852 const std::vector<uint32_t>& entries) {
853 size_t profile_info_size = RoundUp(
854 sizeof(ProfilingInfo) + sizeof(InlineCache) * entries.size(),
855 sizeof(void*));
856
857 // Check whether some other thread has concurrently created it.
858 ProfilingInfo* info = method->GetProfilingInfo(sizeof(void*));
859 if (info != nullptr) {
860 return info;
861 }
862
863 uint8_t* data = AllocateData(profile_info_size);
864 if (data == nullptr) {
865 return nullptr;
866 }
867 info = new (data) ProfilingInfo(method, entries);
868
869 // Make sure other threads see the data in the profiling info object before the
870 // store in the ArtMethod's ProfilingInfo pointer.
871 QuasiAtomic::ThreadFenceRelease();
872
873 method->SetProfilingInfo(info);
874 profiling_infos_.push_back(info);
875 histogram_profiling_info_memory_use_.AddValue(profile_info_size);
876 return info;
877 }
878
879 // NO_THREAD_SAFETY_ANALYSIS as this is called from mspace code, at which point the lock
880 // is already held.
MoreCore(const void * mspace,intptr_t increment)881 void* JitCodeCache::MoreCore(const void* mspace, intptr_t increment) NO_THREAD_SAFETY_ANALYSIS {
882 if (code_mspace_ == mspace) {
883 size_t result = code_end_;
884 code_end_ += increment;
885 return reinterpret_cast<void*>(result + code_map_->Begin());
886 } else {
887 DCHECK_EQ(data_mspace_, mspace);
888 size_t result = data_end_;
889 data_end_ += increment;
890 return reinterpret_cast<void*>(result + data_map_->Begin());
891 }
892 }
893
GetProfiledMethods(const std::set<std::string> & dex_base_locations,std::vector<MethodReference> & methods)894 void JitCodeCache::GetProfiledMethods(const std::set<std::string>& dex_base_locations,
895 std::vector<MethodReference>& methods) {
896 ScopedTrace trace(__FUNCTION__);
897 MutexLock mu(Thread::Current(), lock_);
898 for (const ProfilingInfo* info : profiling_infos_) {
899 ArtMethod* method = info->GetMethod();
900 const DexFile* dex_file = method->GetDexFile();
901 if (ContainsElement(dex_base_locations, dex_file->GetBaseLocation())) {
902 methods.emplace_back(dex_file, method->GetDexMethodIndex());
903 }
904 }
905 }
906
GetLastUpdateTimeNs() const907 uint64_t JitCodeCache::GetLastUpdateTimeNs() const {
908 return last_update_time_ns_.LoadAcquire();
909 }
910
IsOsrCompiled(ArtMethod * method)911 bool JitCodeCache::IsOsrCompiled(ArtMethod* method) {
912 MutexLock mu(Thread::Current(), lock_);
913 return osr_code_map_.find(method) != osr_code_map_.end();
914 }
915
NotifyCompilationOf(ArtMethod * method,Thread * self,bool osr)916 bool JitCodeCache::NotifyCompilationOf(ArtMethod* method, Thread* self, bool osr) {
917 if (!osr && ContainsPc(method->GetEntryPointFromQuickCompiledCode())) {
918 return false;
919 }
920
921 MutexLock mu(self, lock_);
922 if (osr && (osr_code_map_.find(method) != osr_code_map_.end())) {
923 return false;
924 }
925
926 ProfilingInfo* info = method->GetProfilingInfo(sizeof(void*));
927 if (info == nullptr) {
928 VLOG(jit) << PrettyMethod(method) << " needs a ProfilingInfo to be compiled";
929 // Because the counter is not atomic, there are some rare cases where we may not
930 // hit the threshold for creating the ProfilingInfo. Reset the counter now to
931 // "correct" this.
932 method->ClearCounter();
933 return false;
934 }
935
936 if (info->IsMethodBeingCompiled(osr)) {
937 return false;
938 }
939
940 info->SetIsMethodBeingCompiled(true, osr);
941 return true;
942 }
943
NotifyCompilerUse(ArtMethod * method,Thread * self)944 ProfilingInfo* JitCodeCache::NotifyCompilerUse(ArtMethod* method, Thread* self) {
945 MutexLock mu(self, lock_);
946 ProfilingInfo* info = method->GetProfilingInfo(sizeof(void*));
947 if (info != nullptr) {
948 info->IncrementInlineUse();
949 }
950 return info;
951 }
952
DoneCompilerUse(ArtMethod * method,Thread * self)953 void JitCodeCache::DoneCompilerUse(ArtMethod* method, Thread* self) {
954 MutexLock mu(self, lock_);
955 ProfilingInfo* info = method->GetProfilingInfo(sizeof(void*));
956 DCHECK(info != nullptr);
957 info->DecrementInlineUse();
958 }
959
DoneCompiling(ArtMethod * method,Thread * self ATTRIBUTE_UNUSED,bool osr)960 void JitCodeCache::DoneCompiling(ArtMethod* method, Thread* self ATTRIBUTE_UNUSED, bool osr) {
961 ProfilingInfo* info = method->GetProfilingInfo(sizeof(void*));
962 DCHECK(info->IsMethodBeingCompiled(osr));
963 info->SetIsMethodBeingCompiled(false, osr);
964 }
965
GetMemorySizeOfCodePointer(const void * ptr)966 size_t JitCodeCache::GetMemorySizeOfCodePointer(const void* ptr) {
967 MutexLock mu(Thread::Current(), lock_);
968 return mspace_usable_size(reinterpret_cast<const void*>(FromCodeToAllocation(ptr)));
969 }
970
InvalidateCompiledCodeFor(ArtMethod * method,const OatQuickMethodHeader * header)971 void JitCodeCache::InvalidateCompiledCodeFor(ArtMethod* method,
972 const OatQuickMethodHeader* header) {
973 ProfilingInfo* profiling_info = method->GetProfilingInfo(sizeof(void*));
974 if ((profiling_info != nullptr) &&
975 (profiling_info->GetSavedEntryPoint() == header->GetEntryPoint())) {
976 // Prevent future uses of the compiled code.
977 profiling_info->SetSavedEntryPoint(nullptr);
978 }
979
980 if (method->GetEntryPointFromQuickCompiledCode() == header->GetEntryPoint()) {
981 // The entrypoint is the one to invalidate, so we just update
982 // it to the interpreter entry point and clear the counter to get the method
983 // Jitted again.
984 Runtime::Current()->GetInstrumentation()->UpdateMethodsCode(
985 method, GetQuickToInterpreterBridge());
986 method->ClearCounter();
987 } else {
988 MutexLock mu(Thread::Current(), lock_);
989 auto it = osr_code_map_.find(method);
990 if (it != osr_code_map_.end() && OatQuickMethodHeader::FromCodePointer(it->second) == header) {
991 // Remove the OSR method, to avoid using it again.
992 osr_code_map_.erase(it);
993 }
994 }
995 MutexLock mu(Thread::Current(), lock_);
996 number_of_deoptimizations_++;
997 }
998
AllocateCode(size_t code_size)999 uint8_t* JitCodeCache::AllocateCode(size_t code_size) {
1000 size_t alignment = GetInstructionSetAlignment(kRuntimeISA);
1001 uint8_t* result = reinterpret_cast<uint8_t*>(
1002 mspace_memalign(code_mspace_, alignment, code_size));
1003 size_t header_size = RoundUp(sizeof(OatQuickMethodHeader), alignment);
1004 // Ensure the header ends up at expected instruction alignment.
1005 DCHECK_ALIGNED_PARAM(reinterpret_cast<uintptr_t>(result + header_size), alignment);
1006 used_memory_for_code_ += mspace_usable_size(result);
1007 return result;
1008 }
1009
FreeCode(uint8_t * code)1010 void JitCodeCache::FreeCode(uint8_t* code) {
1011 used_memory_for_code_ -= mspace_usable_size(code);
1012 mspace_free(code_mspace_, code);
1013 }
1014
AllocateData(size_t data_size)1015 uint8_t* JitCodeCache::AllocateData(size_t data_size) {
1016 void* result = mspace_malloc(data_mspace_, data_size);
1017 used_memory_for_data_ += mspace_usable_size(result);
1018 return reinterpret_cast<uint8_t*>(result);
1019 }
1020
FreeData(uint8_t * data)1021 void JitCodeCache::FreeData(uint8_t* data) {
1022 used_memory_for_data_ -= mspace_usable_size(data);
1023 mspace_free(data_mspace_, data);
1024 }
1025
Dump(std::ostream & os)1026 void JitCodeCache::Dump(std::ostream& os) {
1027 MutexLock mu(Thread::Current(), lock_);
1028 os << "Current JIT code cache size: " << PrettySize(used_memory_for_code_) << "\n"
1029 << "Current JIT data cache size: " << PrettySize(used_memory_for_data_) << "\n"
1030 << "Current JIT capacity: " << PrettySize(current_capacity_) << "\n"
1031 << "Current number of JIT code cache entries: " << method_code_map_.size() << "\n"
1032 << "Total number of JIT compilations: " << number_of_compilations_ << "\n"
1033 << "Total number of JIT compilations for on stack replacement: "
1034 << number_of_osr_compilations_ << "\n"
1035 << "Total number of deoptimizations: " << number_of_deoptimizations_ << "\n"
1036 << "Total number of JIT code cache collections: " << number_of_collections_ << std::endl;
1037 histogram_stack_map_memory_use_.PrintMemoryUse(os);
1038 histogram_code_memory_use_.PrintMemoryUse(os);
1039 histogram_profiling_info_memory_use_.PrintMemoryUse(os);
1040 }
1041
1042 } // namespace jit
1043 } // namespace art
1044