1 /*
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 */
16
17 #include "runtime.h"
18
19 // sys/mount.h has to come before linux/fs.h due to redefinition of MS_RDONLY, MS_BIND, etc
20 #include <sys/mount.h>
21 #ifdef __linux__
22 #include <linux/fs.h>
23 #endif
24
25 #include <signal.h>
26 #include <sys/syscall.h>
27 #include <valgrind.h>
28
29 #include <cstdio>
30 #include <cstdlib>
31 #include <limits>
32 #include <memory>
33 #include <vector>
34 #include <fcntl.h>
35
36 #include "arch/arm/quick_method_frame_info_arm.h"
37 #include "arch/arm/registers_arm.h"
38 #include "arch/arm64/quick_method_frame_info_arm64.h"
39 #include "arch/arm64/registers_arm64.h"
40 #include "arch/mips/quick_method_frame_info_mips.h"
41 #include "arch/mips/registers_mips.h"
42 #include "arch/x86/quick_method_frame_info_x86.h"
43 #include "arch/x86/registers_x86.h"
44 #include "arch/x86_64/quick_method_frame_info_x86_64.h"
45 #include "arch/x86_64/registers_x86_64.h"
46 #include "atomic.h"
47 #include "class_linker.h"
48 #include "debugger.h"
49 #include "elf_file.h"
50 #include "fault_handler.h"
51 #include "gc/accounting/card_table-inl.h"
52 #include "gc/heap.h"
53 #include "gc/space/image_space.h"
54 #include "gc/space/space.h"
55 #include "image.h"
56 #include "instrumentation.h"
57 #include "intern_table.h"
58 #include "jni_internal.h"
59 #include "mirror/art_field-inl.h"
60 #include "mirror/art_method-inl.h"
61 #include "mirror/array.h"
62 #include "mirror/class-inl.h"
63 #include "mirror/class_loader.h"
64 #include "mirror/stack_trace_element.h"
65 #include "mirror/throwable.h"
66 #include "monitor.h"
67 #include "native_bridge_art_interface.h"
68 #include "parsed_options.h"
69 #include "oat_file.h"
70 #include "os.h"
71 #include "quick/quick_method_frame_info.h"
72 #include "reflection.h"
73 #include "ScopedLocalRef.h"
74 #include "scoped_thread_state_change.h"
75 #include "sigchain.h"
76 #include "signal_catcher.h"
77 #include "signal_set.h"
78 #include "handle_scope-inl.h"
79 #include "thread.h"
80 #include "thread_list.h"
81 #include "trace.h"
82 #include "transaction.h"
83 #include "profiler.h"
84 #include "verifier/method_verifier.h"
85 #include "well_known_classes.h"
86
87 #include "JniConstants.h" // Last to avoid LOG redefinition in ics-mr1-plus-art.
88
89 #ifdef HAVE_ANDROID_OS
90 #include "cutils/properties.h"
91 #endif
92
93 namespace art {
94
95 static constexpr bool kEnableJavaStackTraceHandler = false;
96 const char* Runtime::kDefaultInstructionSetFeatures =
97 STRINGIFY(ART_DEFAULT_INSTRUCTION_SET_FEATURES);
98 Runtime* Runtime::instance_ = NULL;
99
Runtime()100 Runtime::Runtime()
101 : instruction_set_(kNone),
102 compiler_callbacks_(nullptr),
103 is_zygote_(false),
104 must_relocate_(false),
105 is_concurrent_gc_enabled_(true),
106 is_explicit_gc_disabled_(false),
107 dex2oat_enabled_(true),
108 image_dex2oat_enabled_(true),
109 default_stack_size_(0),
110 heap_(nullptr),
111 max_spins_before_thin_lock_inflation_(Monitor::kDefaultMaxSpinsBeforeThinLockInflation),
112 monitor_list_(nullptr),
113 monitor_pool_(nullptr),
114 thread_list_(nullptr),
115 intern_table_(nullptr),
116 class_linker_(nullptr),
117 signal_catcher_(nullptr),
118 java_vm_(nullptr),
119 fault_message_lock_("Fault message lock"),
120 fault_message_(""),
121 method_verifier_lock_("Method verifiers lock"),
122 threads_being_born_(0),
123 shutdown_cond_(new ConditionVariable("Runtime shutdown", *Locks::runtime_shutdown_lock_)),
124 shutting_down_(false),
125 shutting_down_started_(false),
126 started_(false),
127 finished_starting_(false),
128 vfprintf_(nullptr),
129 exit_(nullptr),
130 abort_(nullptr),
131 stats_enabled_(false),
132 running_on_valgrind_(RUNNING_ON_VALGRIND > 0),
133 profiler_started_(false),
134 method_trace_(false),
135 method_trace_file_size_(0),
136 instrumentation_(),
137 use_compile_time_class_path_(false),
138 main_thread_group_(nullptr),
139 system_thread_group_(nullptr),
140 system_class_loader_(nullptr),
141 dump_gc_performance_on_shutdown_(false),
142 preinitialization_transaction_(nullptr),
143 null_pointer_handler_(nullptr),
144 suspend_handler_(nullptr),
145 stack_overflow_handler_(nullptr),
146 verify_(false),
147 target_sdk_version_(0),
148 implicit_null_checks_(false),
149 implicit_so_checks_(false),
150 implicit_suspend_checks_(false),
151 is_native_bridge_loaded_(false) {
152 }
153
~Runtime()154 Runtime::~Runtime() {
155 if (is_native_bridge_loaded_) {
156 UnloadNativeBridge();
157 }
158 if (dump_gc_performance_on_shutdown_) {
159 // This can't be called from the Heap destructor below because it
160 // could call RosAlloc::InspectAll() which needs the thread_list
161 // to be still alive.
162 heap_->DumpGcPerformanceInfo(LOG(INFO));
163 }
164
165 Thread* self = Thread::Current();
166 {
167 MutexLock mu(self, *Locks::runtime_shutdown_lock_);
168 shutting_down_started_ = true;
169 while (threads_being_born_ > 0) {
170 shutdown_cond_->Wait(self);
171 }
172 shutting_down_ = true;
173 }
174 // Shut down background profiler before the runtime exits.
175 if (profiler_started_) {
176 BackgroundMethodSamplingProfiler::Shutdown();
177 }
178
179 Trace::Shutdown();
180
181 // Make sure to let the GC complete if it is running.
182 heap_->WaitForGcToComplete(gc::kGcCauseBackground, self);
183 heap_->DeleteThreadPool();
184
185 // Make sure our internal threads are dead before we start tearing down things they're using.
186 Dbg::StopJdwp();
187 delete signal_catcher_;
188
189 // Make sure all other non-daemon threads have terminated, and all daemon threads are suspended.
190 delete thread_list_;
191
192 // Shutdown the fault manager if it was initialized.
193 fault_manager.Shutdown();
194
195 delete monitor_list_;
196 delete monitor_pool_;
197 delete class_linker_;
198 delete heap_;
199 delete intern_table_;
200 delete java_vm_;
201 Thread::Shutdown();
202 QuasiAtomic::Shutdown();
203 verifier::MethodVerifier::Shutdown();
204 MemMap::Shutdown();
205 // TODO: acquire a static mutex on Runtime to avoid racing.
206 CHECK(instance_ == nullptr || instance_ == this);
207 instance_ = nullptr;
208
209 delete null_pointer_handler_;
210 delete suspend_handler_;
211 delete stack_overflow_handler_;
212 }
213
214 struct AbortState {
Dumpart::AbortState215 void Dump(std::ostream& os) NO_THREAD_SAFETY_ANALYSIS {
216 if (gAborting > 1) {
217 os << "Runtime aborting --- recursively, so no thread-specific detail!\n";
218 return;
219 }
220 gAborting++;
221 os << "Runtime aborting...\n";
222 if (Runtime::Current() == NULL) {
223 os << "(Runtime does not yet exist!)\n";
224 return;
225 }
226 Thread* self = Thread::Current();
227 if (self == nullptr) {
228 os << "(Aborting thread was not attached to runtime!)\n";
229 DumpKernelStack(os, GetTid(), " kernel: ", false);
230 DumpNativeStack(os, GetTid(), " native: ", nullptr);
231 } else {
232 os << "Aborting thread:\n";
233 if (Locks::mutator_lock_->IsExclusiveHeld(self) || Locks::mutator_lock_->IsSharedHeld(self)) {
234 DumpThread(os, self);
235 } else {
236 if (Locks::mutator_lock_->SharedTryLock(self)) {
237 DumpThread(os, self);
238 Locks::mutator_lock_->SharedUnlock(self);
239 }
240 }
241 }
242 DumpAllThreads(os, self);
243 }
244
DumpThreadart::AbortState245 void DumpThread(std::ostream& os, Thread* self) SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
246 self->Dump(os);
247 if (self->IsExceptionPending()) {
248 ThrowLocation throw_location;
249 mirror::Throwable* exception = self->GetException(&throw_location);
250 os << "Pending exception " << PrettyTypeOf(exception)
251 << " thrown by '" << throw_location.Dump() << "'\n"
252 << exception->Dump();
253 }
254 }
255
DumpAllThreadsart::AbortState256 void DumpAllThreads(std::ostream& os, Thread* self) NO_THREAD_SAFETY_ANALYSIS {
257 Runtime* runtime = Runtime::Current();
258 if (runtime != nullptr) {
259 ThreadList* thread_list = runtime->GetThreadList();
260 if (thread_list != nullptr) {
261 bool tll_already_held = Locks::thread_list_lock_->IsExclusiveHeld(self);
262 bool ml_already_held = Locks::mutator_lock_->IsSharedHeld(self);
263 if (!tll_already_held || !ml_already_held) {
264 os << "Dumping all threads without appropriate locks held:"
265 << (!tll_already_held ? " thread list lock" : "")
266 << (!ml_already_held ? " mutator lock" : "")
267 << "\n";
268 }
269 os << "All threads:\n";
270 thread_list->DumpLocked(os);
271 }
272 }
273 }
274 };
275
Abort()276 void Runtime::Abort() {
277 gAborting++; // set before taking any locks
278
279 // Ensure that we don't have multiple threads trying to abort at once,
280 // which would result in significantly worse diagnostics.
281 MutexLock mu(Thread::Current(), *Locks::abort_lock_);
282
283 // Get any pending output out of the way.
284 fflush(NULL);
285
286 // Many people have difficulty distinguish aborts from crashes,
287 // so be explicit.
288 AbortState state;
289 LOG(INTERNAL_FATAL) << Dumpable<AbortState>(state);
290
291 // Call the abort hook if we have one.
292 if (Runtime::Current() != NULL && Runtime::Current()->abort_ != NULL) {
293 LOG(INTERNAL_FATAL) << "Calling abort hook...";
294 Runtime::Current()->abort_();
295 // notreached
296 LOG(INTERNAL_FATAL) << "Unexpectedly returned from abort hook!";
297 }
298
299 #if defined(__GLIBC__)
300 // TODO: we ought to be able to use pthread_kill(3) here (or abort(3),
301 // which POSIX defines in terms of raise(3), which POSIX defines in terms
302 // of pthread_kill(3)). On Linux, though, libcorkscrew can't unwind through
303 // libpthread, which means the stacks we dump would be useless. Calling
304 // tgkill(2) directly avoids that.
305 syscall(__NR_tgkill, getpid(), GetTid(), SIGABRT);
306 // TODO: LLVM installs it's own SIGABRT handler so exit to be safe... Can we disable that in LLVM?
307 // If not, we could use sigaction(3) before calling tgkill(2) and lose this call to exit(3).
308 exit(1);
309 #else
310 abort();
311 #endif
312 // notreached
313 }
314
PreZygoteFork()315 void Runtime::PreZygoteFork() {
316 heap_->PreZygoteFork();
317 }
318
CallExitHook(jint status)319 void Runtime::CallExitHook(jint status) {
320 if (exit_ != NULL) {
321 ScopedThreadStateChange tsc(Thread::Current(), kNative);
322 exit_(status);
323 LOG(WARNING) << "Exit hook returned instead of exiting!";
324 }
325 }
326
SweepSystemWeaks(IsMarkedCallback * visitor,void * arg)327 void Runtime::SweepSystemWeaks(IsMarkedCallback* visitor, void* arg) {
328 GetInternTable()->SweepInternTableWeaks(visitor, arg);
329 GetMonitorList()->SweepMonitorList(visitor, arg);
330 GetJavaVM()->SweepJniWeakGlobals(visitor, arg);
331 }
332
Create(const RuntimeOptions & options,bool ignore_unrecognized)333 bool Runtime::Create(const RuntimeOptions& options, bool ignore_unrecognized) {
334 // TODO: acquire a static mutex on Runtime to avoid racing.
335 if (Runtime::instance_ != NULL) {
336 return false;
337 }
338 InitLogging(NULL); // Calls Locks::Init() as a side effect.
339 instance_ = new Runtime;
340 if (!instance_->Init(options, ignore_unrecognized)) {
341 delete instance_;
342 instance_ = NULL;
343 return false;
344 }
345 return true;
346 }
347
CreateSystemClassLoader()348 jobject CreateSystemClassLoader() {
349 if (Runtime::Current()->UseCompileTimeClassPath()) {
350 return NULL;
351 }
352
353 ScopedObjectAccess soa(Thread::Current());
354 ClassLinker* cl = Runtime::Current()->GetClassLinker();
355
356 StackHandleScope<3> hs(soa.Self());
357 Handle<mirror::Class> class_loader_class(
358 hs.NewHandle(soa.Decode<mirror::Class*>(WellKnownClasses::java_lang_ClassLoader)));
359 CHECK(cl->EnsureInitialized(class_loader_class, true, true));
360
361 mirror::ArtMethod* getSystemClassLoader =
362 class_loader_class->FindDirectMethod("getSystemClassLoader", "()Ljava/lang/ClassLoader;");
363 CHECK(getSystemClassLoader != NULL);
364
365 JValue result = InvokeWithJValues(soa, nullptr, soa.EncodeMethod(getSystemClassLoader), nullptr);
366 Handle<mirror::ClassLoader> class_loader(
367 hs.NewHandle(down_cast<mirror::ClassLoader*>(result.GetL())));
368 CHECK(class_loader.Get() != nullptr);
369 JNIEnv* env = soa.Self()->GetJniEnv();
370 ScopedLocalRef<jobject> system_class_loader(env,
371 soa.AddLocalReference<jobject>(class_loader.Get()));
372 CHECK(system_class_loader.get() != nullptr);
373
374 soa.Self()->SetClassLoaderOverride(class_loader.Get());
375
376 Handle<mirror::Class> thread_class(
377 hs.NewHandle(soa.Decode<mirror::Class*>(WellKnownClasses::java_lang_Thread)));
378 CHECK(cl->EnsureInitialized(thread_class, true, true));
379
380 mirror::ArtField* contextClassLoader =
381 thread_class->FindDeclaredInstanceField("contextClassLoader", "Ljava/lang/ClassLoader;");
382 CHECK(contextClassLoader != NULL);
383
384 // We can't run in a transaction yet.
385 contextClassLoader->SetObject<false>(soa.Self()->GetPeer(), class_loader.Get());
386
387 return env->NewGlobalRef(system_class_loader.get());
388 }
389
GetPatchoatExecutable() const390 std::string Runtime::GetPatchoatExecutable() const {
391 if (!patchoat_executable_.empty()) {
392 return patchoat_executable_;
393 }
394 std::string patchoat_executable_(GetAndroidRoot());
395 patchoat_executable_ += (kIsDebugBuild ? "/bin/patchoatd" : "/bin/patchoat");
396 return patchoat_executable_;
397 }
398
GetCompilerExecutable() const399 std::string Runtime::GetCompilerExecutable() const {
400 if (!compiler_executable_.empty()) {
401 return compiler_executable_;
402 }
403 std::string compiler_executable(GetAndroidRoot());
404 compiler_executable += (kIsDebugBuild ? "/bin/dex2oatd" : "/bin/dex2oat");
405 return compiler_executable;
406 }
407
Start()408 bool Runtime::Start() {
409 VLOG(startup) << "Runtime::Start entering";
410
411 // Restore main thread state to kNative as expected by native code.
412 Thread* self = Thread::Current();
413
414 self->TransitionFromRunnableToSuspended(kNative);
415
416 started_ = true;
417
418 if (IsZygote()) {
419 ScopedObjectAccess soa(self);
420 gc::space::ImageSpace* image_space = heap_->GetImageSpace();
421 if (image_space != nullptr) {
422 Runtime::Current()->GetInternTable()->AddImageStringsToTable(image_space);
423 Runtime::Current()->GetClassLinker()->MoveImageClassesToClassTable();
424 }
425 }
426
427 if (!IsImageDex2OatEnabled() || !Runtime::Current()->GetHeap()->HasImageSpace()) {
428 ScopedObjectAccess soa(self);
429 StackHandleScope<1> hs(soa.Self());
430 auto klass(hs.NewHandle<mirror::Class>(mirror::Class::GetJavaLangClass()));
431 class_linker_->EnsureInitialized(klass, true, true);
432 }
433
434 // InitNativeMethods needs to be after started_ so that the classes
435 // it touches will have methods linked to the oat file if necessary.
436 InitNativeMethods();
437
438 // Initialize well known thread group values that may be accessed threads while attaching.
439 InitThreadGroups(self);
440
441 Thread::FinishStartup();
442
443 system_class_loader_ = CreateSystemClassLoader();
444
445 if (is_zygote_) {
446 if (!InitZygote()) {
447 return false;
448 }
449 } else {
450 if (is_native_bridge_loaded_) {
451 PreInitializeNativeBridge(".");
452 }
453 DidForkFromZygote(self->GetJniEnv(), NativeBridgeAction::kInitialize,
454 GetInstructionSetString(kRuntimeISA));
455 }
456
457 StartDaemonThreads();
458
459 {
460 ScopedObjectAccess soa(self);
461 self->GetJniEnv()->locals.AssertEmpty();
462 }
463
464 VLOG(startup) << "Runtime::Start exiting";
465 finished_starting_ = true;
466
467 if (profiler_options_.IsEnabled() && !profile_output_filename_.empty()) {
468 // User has asked for a profile using -Xenable-profiler.
469 // Create the profile file if it doesn't exist.
470 int fd = open(profile_output_filename_.c_str(), O_RDWR|O_CREAT|O_EXCL, 0660);
471 if (fd >= 0) {
472 close(fd);
473 } else if (errno != EEXIST) {
474 LOG(INFO) << "Failed to access the profile file. Profiler disabled.";
475 return true;
476 }
477 StartProfiler(profile_output_filename_.c_str());
478 }
479
480 return true;
481 }
482
EndThreadBirth()483 void Runtime::EndThreadBirth() EXCLUSIVE_LOCKS_REQUIRED(Locks::runtime_shutdown_lock_) {
484 DCHECK_GT(threads_being_born_, 0U);
485 threads_being_born_--;
486 if (shutting_down_started_ && threads_being_born_ == 0) {
487 shutdown_cond_->Broadcast(Thread::Current());
488 }
489 }
490
491 // Do zygote-mode-only initialization.
InitZygote()492 bool Runtime::InitZygote() {
493 #ifdef __linux__
494 // zygote goes into its own process group
495 setpgid(0, 0);
496
497 // See storage config details at http://source.android.com/tech/storage/
498 // Create private mount namespace shared by all children
499 if (unshare(CLONE_NEWNS) == -1) {
500 PLOG(WARNING) << "Failed to unshare()";
501 return false;
502 }
503
504 // Mark rootfs as being a slave so that changes from default
505 // namespace only flow into our children.
506 if (mount("rootfs", "/", NULL, (MS_SLAVE | MS_REC), NULL) == -1) {
507 PLOG(WARNING) << "Failed to mount() rootfs as MS_SLAVE";
508 return false;
509 }
510
511 // Create a staging tmpfs that is shared by our children; they will
512 // bind mount storage into their respective private namespaces, which
513 // are isolated from each other.
514 const char* target_base = getenv("EMULATED_STORAGE_TARGET");
515 if (target_base != NULL) {
516 if (mount("tmpfs", target_base, "tmpfs", MS_NOSUID | MS_NODEV,
517 "uid=0,gid=1028,mode=0751") == -1) {
518 LOG(WARNING) << "Failed to mount tmpfs to " << target_base;
519 return false;
520 }
521 }
522
523 return true;
524 #else
525 UNIMPLEMENTED(FATAL);
526 return false;
527 #endif
528 }
529
DidForkFromZygote(JNIEnv * env,NativeBridgeAction action,const char * isa)530 void Runtime::DidForkFromZygote(JNIEnv* env, NativeBridgeAction action, const char* isa) {
531 is_zygote_ = false;
532
533 if (is_native_bridge_loaded_) {
534 switch (action) {
535 case NativeBridgeAction::kUnload:
536 UnloadNativeBridge();
537 is_native_bridge_loaded_ = false;
538 break;
539
540 case NativeBridgeAction::kInitialize:
541 InitializeNativeBridge(env, isa);
542 break;
543 }
544 }
545
546 // Create the thread pool.
547 heap_->CreateThreadPool();
548
549 StartSignalCatcher();
550
551 // Start the JDWP thread. If the command-line debugger flags specified "suspend=y",
552 // this will pause the runtime, so we probably want this to come last.
553 Dbg::StartJdwp();
554 }
555
StartSignalCatcher()556 void Runtime::StartSignalCatcher() {
557 if (!is_zygote_) {
558 signal_catcher_ = new SignalCatcher(stack_trace_file_);
559 }
560 }
561
IsShuttingDown(Thread * self)562 bool Runtime::IsShuttingDown(Thread* self) {
563 MutexLock mu(self, *Locks::runtime_shutdown_lock_);
564 return IsShuttingDownLocked();
565 }
566
StartDaemonThreads()567 void Runtime::StartDaemonThreads() {
568 VLOG(startup) << "Runtime::StartDaemonThreads entering";
569
570 Thread* self = Thread::Current();
571
572 // Must be in the kNative state for calling native methods.
573 CHECK_EQ(self->GetState(), kNative);
574
575 JNIEnv* env = self->GetJniEnv();
576 env->CallStaticVoidMethod(WellKnownClasses::java_lang_Daemons,
577 WellKnownClasses::java_lang_Daemons_start);
578 if (env->ExceptionCheck()) {
579 env->ExceptionDescribe();
580 LOG(FATAL) << "Error starting java.lang.Daemons";
581 }
582
583 VLOG(startup) << "Runtime::StartDaemonThreads exiting";
584 }
585
OpenDexFilesFromImage(const std::vector<std::string> & dex_filenames,const std::string & image_location,std::vector<const DexFile * > & dex_files,size_t * failures)586 static bool OpenDexFilesFromImage(const std::vector<std::string>& dex_filenames,
587 const std::string& image_location,
588 std::vector<const DexFile*>& dex_files,
589 size_t* failures) {
590 std::string system_filename;
591 bool has_system = false;
592 std::string cache_filename_unused;
593 bool dalvik_cache_exists_unused;
594 bool has_cache_unused;
595 bool is_global_cache_unused;
596 bool found_image = gc::space::ImageSpace::FindImageFilename(image_location.c_str(),
597 kRuntimeISA,
598 &system_filename,
599 &has_system,
600 &cache_filename_unused,
601 &dalvik_cache_exists_unused,
602 &has_cache_unused,
603 &is_global_cache_unused);
604 *failures = 0;
605 if (!found_image || !has_system) {
606 return false;
607 }
608 std::string error_msg;
609 // We are falling back to non-executable use of the oat file because patching failed, presumably
610 // due to lack of space.
611 std::string oat_filename = ImageHeader::GetOatLocationFromImageLocation(system_filename.c_str());
612 std::string oat_location = ImageHeader::GetOatLocationFromImageLocation(image_location.c_str());
613 std::unique_ptr<File> file(OS::OpenFileForReading(oat_filename.c_str()));
614 if (file.get() == nullptr) {
615 return false;
616 }
617 std::unique_ptr<ElfFile> elf_file(ElfFile::Open(file.release(), false, false, &error_msg));
618 if (elf_file.get() == nullptr) {
619 return false;
620 }
621 std::unique_ptr<OatFile> oat_file(OatFile::OpenWithElfFile(elf_file.release(), oat_location,
622 &error_msg));
623 if (oat_file.get() == nullptr) {
624 LOG(INFO) << "Unable to use '" << oat_filename << "' because " << error_msg;
625 return false;
626 }
627
628 for (const OatFile::OatDexFile* oat_dex_file : oat_file->GetOatDexFiles()) {
629 if (oat_dex_file == nullptr) {
630 *failures += 1;
631 continue;
632 }
633 const DexFile* dex_file = oat_dex_file->OpenDexFile(&error_msg);
634 if (dex_file == nullptr) {
635 *failures += 1;
636 } else {
637 dex_files.push_back(dex_file);
638 }
639 }
640 Runtime::Current()->GetClassLinker()->RegisterOatFile(oat_file.release());
641 return true;
642 }
643
644
OpenDexFiles(const std::vector<std::string> & dex_filenames,const std::string & image_location,std::vector<const DexFile * > & dex_files)645 static size_t OpenDexFiles(const std::vector<std::string>& dex_filenames,
646 const std::string& image_location,
647 std::vector<const DexFile*>& dex_files) {
648 size_t failure_count = 0;
649 if (!image_location.empty() && OpenDexFilesFromImage(dex_filenames, image_location, dex_files,
650 &failure_count)) {
651 return failure_count;
652 }
653 failure_count = 0;
654 for (size_t i = 0; i < dex_filenames.size(); i++) {
655 const char* dex_filename = dex_filenames[i].c_str();
656 std::string error_msg;
657 if (!OS::FileExists(dex_filename)) {
658 LOG(WARNING) << "Skipping non-existent dex file '" << dex_filename << "'";
659 continue;
660 }
661 if (!DexFile::Open(dex_filename, dex_filename, &error_msg, &dex_files)) {
662 LOG(WARNING) << "Failed to open .dex from file '" << dex_filename << "': " << error_msg;
663 ++failure_count;
664 }
665 }
666 return failure_count;
667 }
668
Init(const RuntimeOptions & raw_options,bool ignore_unrecognized)669 bool Runtime::Init(const RuntimeOptions& raw_options, bool ignore_unrecognized) {
670 CHECK_EQ(sysconf(_SC_PAGE_SIZE), kPageSize);
671
672 MemMap::Init();
673
674 std::unique_ptr<ParsedOptions> options(ParsedOptions::Create(raw_options, ignore_unrecognized));
675 if (options.get() == nullptr) {
676 LOG(ERROR) << "Failed to parse options";
677 return false;
678 }
679 VLOG(startup) << "Runtime::Init -verbose:startup enabled";
680
681 QuasiAtomic::Startup();
682
683 Monitor::Init(options->lock_profiling_threshold_, options->hook_is_sensitive_thread_);
684
685 boot_class_path_string_ = options->boot_class_path_string_;
686 class_path_string_ = options->class_path_string_;
687 properties_ = options->properties_;
688
689 compiler_callbacks_ = options->compiler_callbacks_;
690 patchoat_executable_ = options->patchoat_executable_;
691 must_relocate_ = options->must_relocate_;
692 is_zygote_ = options->is_zygote_;
693 is_explicit_gc_disabled_ = options->is_explicit_gc_disabled_;
694 dex2oat_enabled_ = options->dex2oat_enabled_;
695 image_dex2oat_enabled_ = options->image_dex2oat_enabled_;
696
697 vfprintf_ = options->hook_vfprintf_;
698 exit_ = options->hook_exit_;
699 abort_ = options->hook_abort_;
700
701 default_stack_size_ = options->stack_size_;
702 stack_trace_file_ = options->stack_trace_file_;
703
704 compiler_executable_ = options->compiler_executable_;
705 compiler_options_ = options->compiler_options_;
706 image_compiler_options_ = options->image_compiler_options_;
707 image_location_ = options->image_;
708
709 max_spins_before_thin_lock_inflation_ = options->max_spins_before_thin_lock_inflation_;
710
711 monitor_list_ = new MonitorList;
712 monitor_pool_ = MonitorPool::Create();
713 thread_list_ = new ThreadList;
714 intern_table_ = new InternTable;
715
716 verify_ = options->verify_;
717
718 if (options->interpreter_only_) {
719 GetInstrumentation()->ForceInterpretOnly();
720 }
721
722 heap_ = new gc::Heap(options->heap_initial_size_,
723 options->heap_growth_limit_,
724 options->heap_min_free_,
725 options->heap_max_free_,
726 options->heap_target_utilization_,
727 options->foreground_heap_growth_multiplier_,
728 options->heap_maximum_size_,
729 options->heap_non_moving_space_capacity_,
730 options->image_,
731 options->image_isa_,
732 options->collector_type_,
733 options->background_collector_type_,
734 options->parallel_gc_threads_,
735 options->conc_gc_threads_,
736 options->low_memory_mode_,
737 options->long_pause_log_threshold_,
738 options->long_gc_log_threshold_,
739 options->ignore_max_footprint_,
740 options->use_tlab_,
741 options->verify_pre_gc_heap_,
742 options->verify_pre_sweeping_heap_,
743 options->verify_post_gc_heap_,
744 options->verify_pre_gc_rosalloc_,
745 options->verify_pre_sweeping_rosalloc_,
746 options->verify_post_gc_rosalloc_,
747 options->use_homogeneous_space_compaction_for_oom_,
748 options->min_interval_homogeneous_space_compaction_by_oom_);
749
750 dump_gc_performance_on_shutdown_ = options->dump_gc_performance_on_shutdown_;
751
752 BlockSignals();
753 InitPlatformSignalHandlers();
754
755 // Change the implicit checks flags based on runtime architecture.
756 switch (kRuntimeISA) {
757 case kArm:
758 case kThumb2:
759 case kX86:
760 case kArm64:
761 case kX86_64:
762 implicit_null_checks_ = true;
763 implicit_so_checks_ = (RUNNING_ON_VALGRIND == 0);
764 break;
765 default:
766 // Keep the defaults.
767 break;
768 }
769
770 // Always initialize the signal chain so that any calls to sigaction get
771 // correctly routed to the next in the chain regardless of whether we
772 // have claimed the signal or not.
773 InitializeSignalChain();
774
775 if (implicit_null_checks_ || implicit_so_checks_ || implicit_suspend_checks_) {
776 fault_manager.Init();
777
778 // These need to be in a specific order. The null point check handler must be
779 // after the suspend check and stack overflow check handlers.
780 if (implicit_suspend_checks_) {
781 suspend_handler_ = new SuspensionHandler(&fault_manager);
782 }
783
784 if (implicit_so_checks_) {
785 stack_overflow_handler_ = new StackOverflowHandler(&fault_manager);
786 }
787
788 if (implicit_null_checks_) {
789 null_pointer_handler_ = new NullPointerHandler(&fault_manager);
790 }
791
792 if (kEnableJavaStackTraceHandler) {
793 new JavaStackTraceHandler(&fault_manager);
794 }
795 }
796
797 java_vm_ = new JavaVMExt(this, options.get());
798
799 Thread::Startup();
800
801 // ClassLinker needs an attached thread, but we can't fully attach a thread without creating
802 // objects. We can't supply a thread group yet; it will be fixed later. Since we are the main
803 // thread, we do not get a java peer.
804 Thread* self = Thread::Attach("main", false, nullptr, false);
805 CHECK_EQ(self->GetThreadId(), ThreadList::kMainThreadId);
806 CHECK(self != nullptr);
807
808 // Set us to runnable so tools using a runtime can allocate and GC by default
809 self->TransitionFromSuspendedToRunnable();
810
811 // Now we're attached, we can take the heap locks and validate the heap.
812 GetHeap()->EnableObjectValidation();
813
814 CHECK_GE(GetHeap()->GetContinuousSpaces().size(), 1U);
815 class_linker_ = new ClassLinker(intern_table_);
816 if (GetHeap()->HasImageSpace()) {
817 class_linker_->InitFromImage();
818 if (kIsDebugBuild) {
819 GetHeap()->GetImageSpace()->VerifyImageAllocations();
820 }
821 } else if (!IsCompiler() || !image_dex2oat_enabled_) {
822 std::vector<std::string> dex_filenames;
823 Split(boot_class_path_string_, ':', dex_filenames);
824 std::vector<const DexFile*> boot_class_path;
825 OpenDexFiles(dex_filenames, options->image_, boot_class_path);
826 class_linker_->InitWithoutImage(boot_class_path);
827 // TODO: Should we move the following to InitWithoutImage?
828 SetInstructionSet(kRuntimeISA);
829 for (int i = 0; i < Runtime::kLastCalleeSaveType; i++) {
830 Runtime::CalleeSaveType type = Runtime::CalleeSaveType(i);
831 if (!HasCalleeSaveMethod(type)) {
832 SetCalleeSaveMethod(CreateCalleeSaveMethod(type), type);
833 }
834 }
835 } else {
836 CHECK(options->boot_class_path_ != nullptr);
837 CHECK_NE(options->boot_class_path_->size(), 0U);
838 class_linker_->InitWithoutImage(*options->boot_class_path_);
839 }
840 CHECK(class_linker_ != nullptr);
841 verifier::MethodVerifier::Init();
842
843 method_trace_ = options->method_trace_;
844 method_trace_file_ = options->method_trace_file_;
845 method_trace_file_size_ = options->method_trace_file_size_;
846
847 profile_output_filename_ = options->profile_output_filename_;
848 profiler_options_ = options->profiler_options_;
849
850 // TODO: move this to just be an Trace::Start argument
851 Trace::SetDefaultClockSource(options->profile_clock_source_);
852
853 if (options->method_trace_) {
854 ScopedThreadStateChange tsc(self, kWaitingForMethodTracingStart);
855 Trace::Start(options->method_trace_file_.c_str(), -1, options->method_trace_file_size_, 0,
856 false, false, 0);
857 }
858
859 // Pre-allocate an OutOfMemoryError for the double-OOME case.
860 self->ThrowNewException(ThrowLocation(), "Ljava/lang/OutOfMemoryError;",
861 "OutOfMemoryError thrown while trying to throw OutOfMemoryError; "
862 "no stack available");
863 pre_allocated_OutOfMemoryError_ = GcRoot<mirror::Throwable>(self->GetException(NULL));
864 self->ClearException();
865
866 // Pre-allocate a NoClassDefFoundError for the common case of failing to find a system class
867 // ahead of checking the application's class loader.
868 self->ThrowNewException(ThrowLocation(), "Ljava/lang/NoClassDefFoundError;",
869 "Class not found using the boot class loader; no stack available");
870 pre_allocated_NoClassDefFoundError_ = GcRoot<mirror::Throwable>(self->GetException(NULL));
871 self->ClearException();
872
873 // Look for a native bridge.
874 //
875 // The intended flow here is, in the case of a running system:
876 //
877 // Runtime::Init() (zygote):
878 // LoadNativeBridge -> dlopen from cmd line parameter.
879 // |
880 // V
881 // Runtime::Start() (zygote):
882 // No-op wrt native bridge.
883 // |
884 // | start app
885 // V
886 // DidForkFromZygote(action)
887 // action = kUnload -> dlclose native bridge.
888 // action = kInitialize -> initialize library
889 //
890 //
891 // The intended flow here is, in the case of a simple dalvikvm call:
892 //
893 // Runtime::Init():
894 // LoadNativeBridge -> dlopen from cmd line parameter.
895 // |
896 // V
897 // Runtime::Start():
898 // DidForkFromZygote(kInitialize) -> try to initialize any native bridge given.
899 // No-op wrt native bridge.
900 is_native_bridge_loaded_ = LoadNativeBridge(options->native_bridge_library_filename_);
901
902 VLOG(startup) << "Runtime::Init exiting";
903 return true;
904 }
905
InitNativeMethods()906 void Runtime::InitNativeMethods() {
907 VLOG(startup) << "Runtime::InitNativeMethods entering";
908 Thread* self = Thread::Current();
909 JNIEnv* env = self->GetJniEnv();
910
911 // Must be in the kNative state for calling native methods (JNI_OnLoad code).
912 CHECK_EQ(self->GetState(), kNative);
913
914 // First set up JniConstants, which is used by both the runtime's built-in native
915 // methods and libcore.
916 JniConstants::init(env);
917 WellKnownClasses::Init(env);
918
919 // Then set up the native methods provided by the runtime itself.
920 RegisterRuntimeNativeMethods(env);
921
922 // Then set up libcore, which is just a regular JNI library with a regular JNI_OnLoad.
923 // Most JNI libraries can just use System.loadLibrary, but libcore can't because it's
924 // the library that implements System.loadLibrary!
925 {
926 std::string mapped_name(StringPrintf(OS_SHARED_LIB_FORMAT_STR, "javacore"));
927 std::string reason;
928 self->TransitionFromSuspendedToRunnable();
929 StackHandleScope<1> hs(self);
930 auto class_loader(hs.NewHandle<mirror::ClassLoader>(nullptr));
931 if (!instance_->java_vm_->LoadNativeLibrary(mapped_name, class_loader, &reason)) {
932 LOG(FATAL) << "LoadNativeLibrary failed for \"" << mapped_name << "\": " << reason;
933 }
934 self->TransitionFromRunnableToSuspended(kNative);
935 }
936
937 // Initialize well known classes that may invoke runtime native methods.
938 WellKnownClasses::LateInit(env);
939
940 VLOG(startup) << "Runtime::InitNativeMethods exiting";
941 }
942
InitThreadGroups(Thread * self)943 void Runtime::InitThreadGroups(Thread* self) {
944 JNIEnvExt* env = self->GetJniEnv();
945 ScopedJniEnvLocalRefState env_state(env);
946 main_thread_group_ =
947 env->NewGlobalRef(env->GetStaticObjectField(
948 WellKnownClasses::java_lang_ThreadGroup,
949 WellKnownClasses::java_lang_ThreadGroup_mainThreadGroup));
950 CHECK(main_thread_group_ != NULL || IsCompiler());
951 system_thread_group_ =
952 env->NewGlobalRef(env->GetStaticObjectField(
953 WellKnownClasses::java_lang_ThreadGroup,
954 WellKnownClasses::java_lang_ThreadGroup_systemThreadGroup));
955 CHECK(system_thread_group_ != NULL || IsCompiler());
956 }
957
GetMainThreadGroup() const958 jobject Runtime::GetMainThreadGroup() const {
959 CHECK(main_thread_group_ != NULL || IsCompiler());
960 return main_thread_group_;
961 }
962
GetSystemThreadGroup() const963 jobject Runtime::GetSystemThreadGroup() const {
964 CHECK(system_thread_group_ != NULL || IsCompiler());
965 return system_thread_group_;
966 }
967
GetSystemClassLoader() const968 jobject Runtime::GetSystemClassLoader() const {
969 CHECK(system_class_loader_ != NULL || IsCompiler());
970 return system_class_loader_;
971 }
972
RegisterRuntimeNativeMethods(JNIEnv * env)973 void Runtime::RegisterRuntimeNativeMethods(JNIEnv* env) {
974 #define REGISTER(FN) extern void FN(JNIEnv*); FN(env)
975 // Register Throwable first so that registration of other native methods can throw exceptions
976 REGISTER(register_java_lang_Throwable);
977 REGISTER(register_dalvik_system_DexFile);
978 REGISTER(register_dalvik_system_VMDebug);
979 REGISTER(register_dalvik_system_VMRuntime);
980 REGISTER(register_dalvik_system_VMStack);
981 REGISTER(register_dalvik_system_ZygoteHooks);
982 REGISTER(register_java_lang_Class);
983 REGISTER(register_java_lang_DexCache);
984 REGISTER(register_java_lang_Object);
985 REGISTER(register_java_lang_Runtime);
986 REGISTER(register_java_lang_String);
987 REGISTER(register_java_lang_System);
988 REGISTER(register_java_lang_Thread);
989 REGISTER(register_java_lang_VMClassLoader);
990 REGISTER(register_java_lang_ref_FinalizerReference);
991 REGISTER(register_java_lang_ref_Reference);
992 REGISTER(register_java_lang_reflect_Array);
993 REGISTER(register_java_lang_reflect_Constructor);
994 REGISTER(register_java_lang_reflect_Field);
995 REGISTER(register_java_lang_reflect_Method);
996 REGISTER(register_java_lang_reflect_Proxy);
997 REGISTER(register_java_util_concurrent_atomic_AtomicLong);
998 REGISTER(register_org_apache_harmony_dalvik_ddmc_DdmServer);
999 REGISTER(register_org_apache_harmony_dalvik_ddmc_DdmVmInternal);
1000 REGISTER(register_sun_misc_Unsafe);
1001 #undef REGISTER
1002 }
1003
DumpForSigQuit(std::ostream & os)1004 void Runtime::DumpForSigQuit(std::ostream& os) {
1005 GetClassLinker()->DumpForSigQuit(os);
1006 GetInternTable()->DumpForSigQuit(os);
1007 GetJavaVM()->DumpForSigQuit(os);
1008 GetHeap()->DumpForSigQuit(os);
1009 TrackedAllocators::Dump(os);
1010 os << "\n";
1011
1012 thread_list_->DumpForSigQuit(os);
1013 BaseMutex::DumpAll(os);
1014 }
1015
DumpLockHolders(std::ostream & os)1016 void Runtime::DumpLockHolders(std::ostream& os) {
1017 uint64_t mutator_lock_owner = Locks::mutator_lock_->GetExclusiveOwnerTid();
1018 pid_t thread_list_lock_owner = GetThreadList()->GetLockOwner();
1019 pid_t classes_lock_owner = GetClassLinker()->GetClassesLockOwner();
1020 pid_t dex_lock_owner = GetClassLinker()->GetDexLockOwner();
1021 if ((thread_list_lock_owner | classes_lock_owner | dex_lock_owner) != 0) {
1022 os << "Mutator lock exclusive owner tid: " << mutator_lock_owner << "\n"
1023 << "ThreadList lock owner tid: " << thread_list_lock_owner << "\n"
1024 << "ClassLinker classes lock owner tid: " << classes_lock_owner << "\n"
1025 << "ClassLinker dex lock owner tid: " << dex_lock_owner << "\n";
1026 }
1027 }
1028
SetStatsEnabled(bool new_state)1029 void Runtime::SetStatsEnabled(bool new_state) {
1030 Thread* self = Thread::Current();
1031 MutexLock mu(self, *Locks::instrument_entrypoints_lock_);
1032 if (new_state == true) {
1033 GetStats()->Clear(~0);
1034 // TODO: wouldn't it make more sense to clear _all_ threads' stats?
1035 self->GetStats()->Clear(~0);
1036 if (stats_enabled_ != new_state) {
1037 GetInstrumentation()->InstrumentQuickAllocEntryPointsLocked();
1038 }
1039 } else if (stats_enabled_ != new_state) {
1040 GetInstrumentation()->UninstrumentQuickAllocEntryPointsLocked();
1041 }
1042 stats_enabled_ = new_state;
1043 }
1044
ResetStats(int kinds)1045 void Runtime::ResetStats(int kinds) {
1046 GetStats()->Clear(kinds & 0xffff);
1047 // TODO: wouldn't it make more sense to clear _all_ threads' stats?
1048 Thread::Current()->GetStats()->Clear(kinds >> 16);
1049 }
1050
GetStat(int kind)1051 int32_t Runtime::GetStat(int kind) {
1052 RuntimeStats* stats;
1053 if (kind < (1<<16)) {
1054 stats = GetStats();
1055 } else {
1056 stats = Thread::Current()->GetStats();
1057 kind >>= 16;
1058 }
1059 switch (kind) {
1060 case KIND_ALLOCATED_OBJECTS:
1061 return stats->allocated_objects;
1062 case KIND_ALLOCATED_BYTES:
1063 return stats->allocated_bytes;
1064 case KIND_FREED_OBJECTS:
1065 return stats->freed_objects;
1066 case KIND_FREED_BYTES:
1067 return stats->freed_bytes;
1068 case KIND_GC_INVOCATIONS:
1069 return stats->gc_for_alloc_count;
1070 case KIND_CLASS_INIT_COUNT:
1071 return stats->class_init_count;
1072 case KIND_CLASS_INIT_TIME:
1073 // Convert ns to us, reduce to 32 bits.
1074 return static_cast<int>(stats->class_init_time_ns / 1000);
1075 case KIND_EXT_ALLOCATED_OBJECTS:
1076 case KIND_EXT_ALLOCATED_BYTES:
1077 case KIND_EXT_FREED_OBJECTS:
1078 case KIND_EXT_FREED_BYTES:
1079 return 0; // backward compatibility
1080 default:
1081 LOG(FATAL) << "Unknown statistic " << kind;
1082 return -1; // unreachable
1083 }
1084 }
1085
BlockSignals()1086 void Runtime::BlockSignals() {
1087 SignalSet signals;
1088 signals.Add(SIGPIPE);
1089 // SIGQUIT is used to dump the runtime's state (including stack traces).
1090 signals.Add(SIGQUIT);
1091 // SIGUSR1 is used to initiate a GC.
1092 signals.Add(SIGUSR1);
1093 signals.Block();
1094 }
1095
AttachCurrentThread(const char * thread_name,bool as_daemon,jobject thread_group,bool create_peer)1096 bool Runtime::AttachCurrentThread(const char* thread_name, bool as_daemon, jobject thread_group,
1097 bool create_peer) {
1098 return Thread::Attach(thread_name, as_daemon, thread_group, create_peer) != NULL;
1099 }
1100
DetachCurrentThread()1101 void Runtime::DetachCurrentThread() {
1102 Thread* self = Thread::Current();
1103 if (self == NULL) {
1104 LOG(FATAL) << "attempting to detach thread that is not attached";
1105 }
1106 if (self->HasManagedStack()) {
1107 LOG(FATAL) << *Thread::Current() << " attempting to detach while still running code";
1108 }
1109 thread_list_->Unregister(self);
1110 }
1111
GetPreAllocatedOutOfMemoryError()1112 mirror::Throwable* Runtime::GetPreAllocatedOutOfMemoryError() {
1113 mirror::Throwable* oome = pre_allocated_OutOfMemoryError_.Read();
1114 if (oome == nullptr) {
1115 LOG(ERROR) << "Failed to return pre-allocated OOME";
1116 }
1117 return oome;
1118 }
1119
GetPreAllocatedNoClassDefFoundError()1120 mirror::Throwable* Runtime::GetPreAllocatedNoClassDefFoundError() {
1121 mirror::Throwable* ncdfe = pre_allocated_NoClassDefFoundError_.Read();
1122 if (ncdfe == nullptr) {
1123 LOG(ERROR) << "Failed to return pre-allocated NoClassDefFoundError";
1124 }
1125 return ncdfe;
1126 }
1127
VisitConstantRoots(RootCallback * callback,void * arg)1128 void Runtime::VisitConstantRoots(RootCallback* callback, void* arg) {
1129 // Visit the classes held as static in mirror classes, these can be visited concurrently and only
1130 // need to be visited once per GC since they never change.
1131 mirror::ArtField::VisitRoots(callback, arg);
1132 mirror::ArtMethod::VisitRoots(callback, arg);
1133 mirror::Class::VisitRoots(callback, arg);
1134 mirror::Reference::VisitRoots(callback, arg);
1135 mirror::StackTraceElement::VisitRoots(callback, arg);
1136 mirror::String::VisitRoots(callback, arg);
1137 mirror::Throwable::VisitRoots(callback, arg);
1138 // Visit all the primitive array types classes.
1139 mirror::PrimitiveArray<uint8_t>::VisitRoots(callback, arg); // BooleanArray
1140 mirror::PrimitiveArray<int8_t>::VisitRoots(callback, arg); // ByteArray
1141 mirror::PrimitiveArray<uint16_t>::VisitRoots(callback, arg); // CharArray
1142 mirror::PrimitiveArray<double>::VisitRoots(callback, arg); // DoubleArray
1143 mirror::PrimitiveArray<float>::VisitRoots(callback, arg); // FloatArray
1144 mirror::PrimitiveArray<int32_t>::VisitRoots(callback, arg); // IntArray
1145 mirror::PrimitiveArray<int64_t>::VisitRoots(callback, arg); // LongArray
1146 mirror::PrimitiveArray<int16_t>::VisitRoots(callback, arg); // ShortArray
1147 }
1148
VisitConcurrentRoots(RootCallback * callback,void * arg,VisitRootFlags flags)1149 void Runtime::VisitConcurrentRoots(RootCallback* callback, void* arg, VisitRootFlags flags) {
1150 intern_table_->VisitRoots(callback, arg, flags);
1151 class_linker_->VisitRoots(callback, arg, flags);
1152 if ((flags & kVisitRootFlagNewRoots) == 0) {
1153 // Guaranteed to have no new roots in the constant roots.
1154 VisitConstantRoots(callback, arg);
1155 }
1156 }
1157
VisitNonThreadRoots(RootCallback * callback,void * arg)1158 void Runtime::VisitNonThreadRoots(RootCallback* callback, void* arg) {
1159 java_vm_->VisitRoots(callback, arg);
1160 pre_allocated_OutOfMemoryError_.VisitRootIfNonNull(callback, arg, RootInfo(kRootVMInternal));
1161 resolution_method_.VisitRoot(callback, arg, RootInfo(kRootVMInternal));
1162 pre_allocated_NoClassDefFoundError_.VisitRootIfNonNull(callback, arg, RootInfo(kRootVMInternal));
1163 imt_conflict_method_.VisitRootIfNonNull(callback, arg, RootInfo(kRootVMInternal));
1164 imt_unimplemented_method_.VisitRootIfNonNull(callback, arg, RootInfo(kRootVMInternal));
1165 default_imt_.VisitRootIfNonNull(callback, arg, RootInfo(kRootVMInternal));
1166 for (int i = 0; i < Runtime::kLastCalleeSaveType; i++) {
1167 callee_save_methods_[i].VisitRootIfNonNull(callback, arg, RootInfo(kRootVMInternal));
1168 }
1169 verifier::MethodVerifier::VisitStaticRoots(callback, arg);
1170 {
1171 MutexLock mu(Thread::Current(), method_verifier_lock_);
1172 for (verifier::MethodVerifier* verifier : method_verifiers_) {
1173 verifier->VisitRoots(callback, arg);
1174 }
1175 }
1176 if (preinitialization_transaction_ != nullptr) {
1177 preinitialization_transaction_->VisitRoots(callback, arg);
1178 }
1179 instrumentation_.VisitRoots(callback, arg);
1180 }
1181
VisitNonConcurrentRoots(RootCallback * callback,void * arg)1182 void Runtime::VisitNonConcurrentRoots(RootCallback* callback, void* arg) {
1183 thread_list_->VisitRoots(callback, arg);
1184 VisitNonThreadRoots(callback, arg);
1185 }
1186
VisitRoots(RootCallback * callback,void * arg,VisitRootFlags flags)1187 void Runtime::VisitRoots(RootCallback* callback, void* arg, VisitRootFlags flags) {
1188 VisitNonConcurrentRoots(callback, arg);
1189 VisitConcurrentRoots(callback, arg, flags);
1190 }
1191
CreateDefaultImt(ClassLinker * cl)1192 mirror::ObjectArray<mirror::ArtMethod>* Runtime::CreateDefaultImt(ClassLinker* cl) {
1193 Thread* self = Thread::Current();
1194 StackHandleScope<1> hs(self);
1195 Handle<mirror::ObjectArray<mirror::ArtMethod>> imtable(
1196 hs.NewHandle(cl->AllocArtMethodArray(self, 64)));
1197 mirror::ArtMethod* imt_conflict_method = Runtime::Current()->GetImtConflictMethod();
1198 for (size_t i = 0; i < static_cast<size_t>(imtable->GetLength()); i++) {
1199 imtable->Set<false>(i, imt_conflict_method);
1200 }
1201 return imtable.Get();
1202 }
1203
CreateImtConflictMethod()1204 mirror::ArtMethod* Runtime::CreateImtConflictMethod() {
1205 Thread* self = Thread::Current();
1206 Runtime* runtime = Runtime::Current();
1207 ClassLinker* class_linker = runtime->GetClassLinker();
1208 StackHandleScope<1> hs(self);
1209 Handle<mirror::ArtMethod> method(hs.NewHandle(class_linker->AllocArtMethod(self)));
1210 method->SetDeclaringClass(mirror::ArtMethod::GetJavaLangReflectArtMethod());
1211 // TODO: use a special method for imt conflict method saves.
1212 method->SetDexMethodIndex(DexFile::kDexNoIndex);
1213 // When compiling, the code pointer will get set later when the image is loaded.
1214 if (runtime->IsCompiler()) {
1215 #if defined(ART_USE_PORTABLE_COMPILER)
1216 method->SetEntryPointFromPortableCompiledCode(nullptr);
1217 #endif
1218 method->SetEntryPointFromQuickCompiledCode(nullptr);
1219 } else {
1220 #if defined(ART_USE_PORTABLE_COMPILER)
1221 method->SetEntryPointFromPortableCompiledCode(class_linker->GetPortableImtConflictTrampoline());
1222 #endif
1223 method->SetEntryPointFromQuickCompiledCode(class_linker->GetQuickImtConflictTrampoline());
1224 }
1225 return method.Get();
1226 }
1227
CreateResolutionMethod()1228 mirror::ArtMethod* Runtime::CreateResolutionMethod() {
1229 Thread* self = Thread::Current();
1230 Runtime* runtime = Runtime::Current();
1231 ClassLinker* class_linker = runtime->GetClassLinker();
1232 StackHandleScope<1> hs(self);
1233 Handle<mirror::ArtMethod> method(hs.NewHandle(class_linker->AllocArtMethod(self)));
1234 method->SetDeclaringClass(mirror::ArtMethod::GetJavaLangReflectArtMethod());
1235 // TODO: use a special method for resolution method saves
1236 method->SetDexMethodIndex(DexFile::kDexNoIndex);
1237 // When compiling, the code pointer will get set later when the image is loaded.
1238 if (runtime->IsCompiler()) {
1239 #if defined(ART_USE_PORTABLE_COMPILER)
1240 method->SetEntryPointFromPortableCompiledCode(nullptr);
1241 #endif
1242 method->SetEntryPointFromQuickCompiledCode(nullptr);
1243 } else {
1244 #if defined(ART_USE_PORTABLE_COMPILER)
1245 method->SetEntryPointFromPortableCompiledCode(class_linker->GetPortableResolutionTrampoline());
1246 #endif
1247 method->SetEntryPointFromQuickCompiledCode(class_linker->GetQuickResolutionTrampoline());
1248 }
1249 return method.Get();
1250 }
1251
CreateCalleeSaveMethod(CalleeSaveType type)1252 mirror::ArtMethod* Runtime::CreateCalleeSaveMethod(CalleeSaveType type) {
1253 Thread* self = Thread::Current();
1254 Runtime* runtime = Runtime::Current();
1255 ClassLinker* class_linker = runtime->GetClassLinker();
1256 StackHandleScope<1> hs(self);
1257 Handle<mirror::ArtMethod> method(hs.NewHandle(class_linker->AllocArtMethod(self)));
1258 method->SetDeclaringClass(mirror::ArtMethod::GetJavaLangReflectArtMethod());
1259 // TODO: use a special method for callee saves
1260 method->SetDexMethodIndex(DexFile::kDexNoIndex);
1261 #if defined(ART_USE_PORTABLE_COMPILER)
1262 method->SetEntryPointFromPortableCompiledCode(nullptr);
1263 #endif
1264 method->SetEntryPointFromQuickCompiledCode(nullptr);
1265 DCHECK_NE(instruction_set_, kNone);
1266 return method.Get();
1267 }
1268
DisallowNewSystemWeaks()1269 void Runtime::DisallowNewSystemWeaks() {
1270 monitor_list_->DisallowNewMonitors();
1271 intern_table_->DisallowNewInterns();
1272 java_vm_->DisallowNewWeakGlobals();
1273 }
1274
AllowNewSystemWeaks()1275 void Runtime::AllowNewSystemWeaks() {
1276 monitor_list_->AllowNewMonitors();
1277 intern_table_->AllowNewInterns();
1278 java_vm_->AllowNewWeakGlobals();
1279 }
1280
SetInstructionSet(InstructionSet instruction_set)1281 void Runtime::SetInstructionSet(InstructionSet instruction_set) {
1282 instruction_set_ = instruction_set;
1283 if ((instruction_set_ == kThumb2) || (instruction_set_ == kArm)) {
1284 for (int i = 0; i != kLastCalleeSaveType; ++i) {
1285 CalleeSaveType type = static_cast<CalleeSaveType>(i);
1286 callee_save_method_frame_infos_[i] = arm::ArmCalleeSaveMethodFrameInfo(type);
1287 }
1288 } else if (instruction_set_ == kMips) {
1289 for (int i = 0; i != kLastCalleeSaveType; ++i) {
1290 CalleeSaveType type = static_cast<CalleeSaveType>(i);
1291 callee_save_method_frame_infos_[i] = mips::MipsCalleeSaveMethodFrameInfo(type);
1292 }
1293 } else if (instruction_set_ == kX86) {
1294 for (int i = 0; i != kLastCalleeSaveType; ++i) {
1295 CalleeSaveType type = static_cast<CalleeSaveType>(i);
1296 callee_save_method_frame_infos_[i] = x86::X86CalleeSaveMethodFrameInfo(type);
1297 }
1298 } else if (instruction_set_ == kX86_64) {
1299 for (int i = 0; i != kLastCalleeSaveType; ++i) {
1300 CalleeSaveType type = static_cast<CalleeSaveType>(i);
1301 callee_save_method_frame_infos_[i] = x86_64::X86_64CalleeSaveMethodFrameInfo(type);
1302 }
1303 } else if (instruction_set_ == kArm64) {
1304 for (int i = 0; i != kLastCalleeSaveType; ++i) {
1305 CalleeSaveType type = static_cast<CalleeSaveType>(i);
1306 callee_save_method_frame_infos_[i] = arm64::Arm64CalleeSaveMethodFrameInfo(type);
1307 }
1308 } else {
1309 UNIMPLEMENTED(FATAL) << instruction_set_;
1310 }
1311 }
1312
SetCalleeSaveMethod(mirror::ArtMethod * method,CalleeSaveType type)1313 void Runtime::SetCalleeSaveMethod(mirror::ArtMethod* method, CalleeSaveType type) {
1314 DCHECK_LT(static_cast<int>(type), static_cast<int>(kLastCalleeSaveType));
1315 callee_save_methods_[type] = GcRoot<mirror::ArtMethod>(method);
1316 }
1317
GetCompileTimeClassPath(jobject class_loader)1318 const std::vector<const DexFile*>& Runtime::GetCompileTimeClassPath(jobject class_loader) {
1319 if (class_loader == NULL) {
1320 return GetClassLinker()->GetBootClassPath();
1321 }
1322 CHECK(UseCompileTimeClassPath());
1323 CompileTimeClassPaths::const_iterator it = compile_time_class_paths_.find(class_loader);
1324 CHECK(it != compile_time_class_paths_.end());
1325 return it->second;
1326 }
1327
SetCompileTimeClassPath(jobject class_loader,std::vector<const DexFile * > & class_path)1328 void Runtime::SetCompileTimeClassPath(jobject class_loader,
1329 std::vector<const DexFile*>& class_path) {
1330 CHECK(!IsStarted());
1331 use_compile_time_class_path_ = true;
1332 compile_time_class_paths_.Put(class_loader, class_path);
1333 }
1334
AddMethodVerifier(verifier::MethodVerifier * verifier)1335 void Runtime::AddMethodVerifier(verifier::MethodVerifier* verifier) {
1336 DCHECK(verifier != nullptr);
1337 MutexLock mu(Thread::Current(), method_verifier_lock_);
1338 method_verifiers_.insert(verifier);
1339 }
1340
RemoveMethodVerifier(verifier::MethodVerifier * verifier)1341 void Runtime::RemoveMethodVerifier(verifier::MethodVerifier* verifier) {
1342 DCHECK(verifier != nullptr);
1343 MutexLock mu(Thread::Current(), method_verifier_lock_);
1344 auto it = method_verifiers_.find(verifier);
1345 CHECK(it != method_verifiers_.end());
1346 method_verifiers_.erase(it);
1347 }
1348
StartProfiler(const char * profile_output_filename)1349 void Runtime::StartProfiler(const char* profile_output_filename) {
1350 profile_output_filename_ = profile_output_filename;
1351 profiler_started_ =
1352 BackgroundMethodSamplingProfiler::Start(profile_output_filename_, profiler_options_);
1353 }
1354
1355 // Transaction support.
EnterTransactionMode(Transaction * transaction)1356 void Runtime::EnterTransactionMode(Transaction* transaction) {
1357 DCHECK(IsCompiler());
1358 DCHECK(transaction != nullptr);
1359 DCHECK(!IsActiveTransaction());
1360 preinitialization_transaction_ = transaction;
1361 }
1362
ExitTransactionMode()1363 void Runtime::ExitTransactionMode() {
1364 DCHECK(IsCompiler());
1365 DCHECK(IsActiveTransaction());
1366 preinitialization_transaction_ = nullptr;
1367 }
1368
RecordWriteField32(mirror::Object * obj,MemberOffset field_offset,uint32_t value,bool is_volatile) const1369 void Runtime::RecordWriteField32(mirror::Object* obj, MemberOffset field_offset,
1370 uint32_t value, bool is_volatile) const {
1371 DCHECK(IsCompiler());
1372 DCHECK(IsActiveTransaction());
1373 preinitialization_transaction_->RecordWriteField32(obj, field_offset, value, is_volatile);
1374 }
1375
RecordWriteField64(mirror::Object * obj,MemberOffset field_offset,uint64_t value,bool is_volatile) const1376 void Runtime::RecordWriteField64(mirror::Object* obj, MemberOffset field_offset,
1377 uint64_t value, bool is_volatile) const {
1378 DCHECK(IsCompiler());
1379 DCHECK(IsActiveTransaction());
1380 preinitialization_transaction_->RecordWriteField64(obj, field_offset, value, is_volatile);
1381 }
1382
RecordWriteFieldReference(mirror::Object * obj,MemberOffset field_offset,mirror::Object * value,bool is_volatile) const1383 void Runtime::RecordWriteFieldReference(mirror::Object* obj, MemberOffset field_offset,
1384 mirror::Object* value, bool is_volatile) const {
1385 DCHECK(IsCompiler());
1386 DCHECK(IsActiveTransaction());
1387 preinitialization_transaction_->RecordWriteFieldReference(obj, field_offset, value, is_volatile);
1388 }
1389
RecordWriteArray(mirror::Array * array,size_t index,uint64_t value) const1390 void Runtime::RecordWriteArray(mirror::Array* array, size_t index, uint64_t value) const {
1391 DCHECK(IsCompiler());
1392 DCHECK(IsActiveTransaction());
1393 preinitialization_transaction_->RecordWriteArray(array, index, value);
1394 }
1395
RecordStrongStringInsertion(mirror::String * s) const1396 void Runtime::RecordStrongStringInsertion(mirror::String* s) const {
1397 DCHECK(IsCompiler());
1398 DCHECK(IsActiveTransaction());
1399 preinitialization_transaction_->RecordStrongStringInsertion(s);
1400 }
1401
RecordWeakStringInsertion(mirror::String * s) const1402 void Runtime::RecordWeakStringInsertion(mirror::String* s) const {
1403 DCHECK(IsCompiler());
1404 DCHECK(IsActiveTransaction());
1405 preinitialization_transaction_->RecordWeakStringInsertion(s);
1406 }
1407
RecordStrongStringRemoval(mirror::String * s) const1408 void Runtime::RecordStrongStringRemoval(mirror::String* s) const {
1409 DCHECK(IsCompiler());
1410 DCHECK(IsActiveTransaction());
1411 preinitialization_transaction_->RecordStrongStringRemoval(s);
1412 }
1413
RecordWeakStringRemoval(mirror::String * s) const1414 void Runtime::RecordWeakStringRemoval(mirror::String* s) const {
1415 DCHECK(IsCompiler());
1416 DCHECK(IsActiveTransaction());
1417 preinitialization_transaction_->RecordWeakStringRemoval(s);
1418 }
1419
SetFaultMessage(const std::string & message)1420 void Runtime::SetFaultMessage(const std::string& message) {
1421 MutexLock mu(Thread::Current(), fault_message_lock_);
1422 fault_message_ = message;
1423 }
1424
AddCurrentRuntimeFeaturesAsDex2OatArguments(std::vector<std::string> * argv) const1425 void Runtime::AddCurrentRuntimeFeaturesAsDex2OatArguments(std::vector<std::string>* argv)
1426 const {
1427 if (GetInstrumentation()->InterpretOnly()) {
1428 argv->push_back("--compiler-filter=interpret-only");
1429 }
1430
1431 // Make the dex2oat instruction set match that of the launching runtime. If we have multiple
1432 // architecture support, dex2oat may be compiled as a different instruction-set than that
1433 // currently being executed.
1434 std::string instruction_set("--instruction-set=");
1435 instruction_set += GetInstructionSetString(kRuntimeISA);
1436 argv->push_back(instruction_set);
1437
1438 std::string features("--instruction-set-features=");
1439 features += GetDefaultInstructionSetFeatures();
1440 argv->push_back(features);
1441 }
1442
UpdateProfilerState(int state)1443 void Runtime::UpdateProfilerState(int state) {
1444 VLOG(profiler) << "Profiler state updated to " << state;
1445 }
1446 } // namespace art
1447