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      1 /*
      2  * Copyright (C) 2008 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 "debugger.h"
     18 
     19 #include <sys/uio.h>
     20 
     21 #include <functional>
     22 #include <memory>
     23 #include <set>
     24 #include <vector>
     25 
     26 #include "android-base/stringprintf.h"
     27 
     28 #include "arch/context.h"
     29 #include "art_field-inl.h"
     30 #include "art_method-inl.h"
     31 #include "base/enums.h"
     32 #include "base/safe_map.h"
     33 #include "base/strlcpy.h"
     34 #include "base/time_utils.h"
     35 #include "class_linker-inl.h"
     36 #include "class_linker.h"
     37 #include "dex/descriptors_names.h"
     38 #include "dex/dex_file-inl.h"
     39 #include "dex/dex_file_annotations.h"
     40 #include "dex/dex_file_types.h"
     41 #include "dex/dex_instruction.h"
     42 #include "dex/utf.h"
     43 #include "entrypoints/runtime_asm_entrypoints.h"
     44 #include "gc/accounting/card_table-inl.h"
     45 #include "gc/allocation_record.h"
     46 #include "gc/gc_cause.h"
     47 #include "gc/scoped_gc_critical_section.h"
     48 #include "gc/space/bump_pointer_space-walk-inl.h"
     49 #include "gc/space/large_object_space.h"
     50 #include "gc/space/space-inl.h"
     51 #include "handle_scope-inl.h"
     52 #include "jdwp/jdwp_priv.h"
     53 #include "jdwp/object_registry.h"
     54 #include "jni_internal.h"
     55 #include "jvalue-inl.h"
     56 #include "mirror/class-inl.h"
     57 #include "mirror/class.h"
     58 #include "mirror/class_loader.h"
     59 #include "mirror/object-inl.h"
     60 #include "mirror/object_array-inl.h"
     61 #include "mirror/string-inl.h"
     62 #include "mirror/throwable.h"
     63 #include "nativehelper/scoped_local_ref.h"
     64 #include "nativehelper/scoped_primitive_array.h"
     65 #include "oat_file.h"
     66 #include "obj_ptr-inl.h"
     67 #include "reflection.h"
     68 #include "scoped_thread_state_change-inl.h"
     69 #include "stack.h"
     70 #include "thread_list.h"
     71 #include "well_known_classes.h"
     72 
     73 namespace art {
     74 
     75 using android::base::StringPrintf;
     76 
     77 // The key identifying the debugger to update instrumentation.
     78 static constexpr const char* kDbgInstrumentationKey = "Debugger";
     79 
     80 // Limit alloc_record_count to the 2BE value (64k-1) that is the limit of the current protocol.
     81 static uint16_t CappedAllocRecordCount(size_t alloc_record_count) {
     82   const size_t cap = 0xffff;
     83   if (alloc_record_count > cap) {
     84     return cap;
     85   }
     86   return alloc_record_count;
     87 }
     88 
     89 class Breakpoint : public ValueObject {
     90  public:
     91   Breakpoint(ArtMethod* method, uint32_t dex_pc, DeoptimizationRequest::Kind deoptimization_kind)
     92     : method_(method->GetCanonicalMethod(kRuntimePointerSize)),
     93       dex_pc_(dex_pc),
     94       deoptimization_kind_(deoptimization_kind) {
     95     CHECK(deoptimization_kind_ == DeoptimizationRequest::kNothing ||
     96           deoptimization_kind_ == DeoptimizationRequest::kSelectiveDeoptimization ||
     97           deoptimization_kind_ == DeoptimizationRequest::kFullDeoptimization);
     98   }
     99 
    100   Breakpoint(const Breakpoint& other) REQUIRES_SHARED(Locks::mutator_lock_)
    101     : method_(other.method_),
    102       dex_pc_(other.dex_pc_),
    103       deoptimization_kind_(other.deoptimization_kind_) {}
    104 
    105   // Method() is called from root visiting, do not use ScopedObjectAccess here or it can cause
    106   // GC to deadlock if another thread tries to call SuspendAll while the GC is in a runnable state.
    107   ArtMethod* Method() const {
    108     return method_;
    109   }
    110 
    111   uint32_t DexPc() const {
    112     return dex_pc_;
    113   }
    114 
    115   DeoptimizationRequest::Kind GetDeoptimizationKind() const {
    116     return deoptimization_kind_;
    117   }
    118 
    119   // Returns true if the method of this breakpoint and the passed in method should be considered the
    120   // same. That is, they are either the same method or they are copied from the same method.
    121   bool IsInMethod(ArtMethod* m) const REQUIRES_SHARED(Locks::mutator_lock_) {
    122     return method_ == m->GetCanonicalMethod(kRuntimePointerSize);
    123   }
    124 
    125  private:
    126   // The location of this breakpoint.
    127   ArtMethod* method_;
    128   uint32_t dex_pc_;
    129 
    130   // Indicates whether breakpoint needs full deoptimization or selective deoptimization.
    131   DeoptimizationRequest::Kind deoptimization_kind_;
    132 };
    133 
    134 static std::ostream& operator<<(std::ostream& os, const Breakpoint& rhs)
    135     REQUIRES_SHARED(Locks::mutator_lock_) {
    136   os << StringPrintf("Breakpoint[%s @%#x]", ArtMethod::PrettyMethod(rhs.Method()).c_str(),
    137                      rhs.DexPc());
    138   return os;
    139 }
    140 
    141 class DebugInstrumentationListener FINAL : public instrumentation::InstrumentationListener {
    142  public:
    143   DebugInstrumentationListener() {}
    144   virtual ~DebugInstrumentationListener() {}
    145 
    146   void MethodEntered(Thread* thread,
    147                      Handle<mirror::Object> this_object,
    148                      ArtMethod* method,
    149                      uint32_t dex_pc)
    150       OVERRIDE REQUIRES_SHARED(Locks::mutator_lock_) {
    151     if (method->IsNative()) {
    152       // TODO: post location events is a suspension point and native method entry stubs aren't.
    153       return;
    154     }
    155     if (IsListeningToDexPcMoved()) {
    156       // We also listen to kDexPcMoved instrumentation event so we know the DexPcMoved method is
    157       // going to be called right after us. To avoid sending JDWP events twice for this location,
    158       // we report the event in DexPcMoved. However, we must remind this is method entry so we
    159       // send the METHOD_ENTRY event. And we can also group it with other events for this location
    160       // like BREAKPOINT or SINGLE_STEP (or even METHOD_EXIT if this is a RETURN instruction).
    161       thread->SetDebugMethodEntry();
    162     } else if (IsListeningToMethodExit() && IsReturn(method, dex_pc)) {
    163       // We also listen to kMethodExited instrumentation event and the current instruction is a
    164       // RETURN so we know the MethodExited method is going to be called right after us. To avoid
    165       // sending JDWP events twice for this location, we report the event(s) in MethodExited.
    166       // However, we must remind this is method entry so we send the METHOD_ENTRY event. And we can
    167       // also group it with other events for this location like BREAKPOINT or SINGLE_STEP.
    168       thread->SetDebugMethodEntry();
    169     } else {
    170       Dbg::UpdateDebugger(thread, this_object.Get(), method, 0, Dbg::kMethodEntry, nullptr);
    171     }
    172   }
    173 
    174   void MethodExited(Thread* thread,
    175                     Handle<mirror::Object> this_object,
    176                     ArtMethod* method,
    177                     uint32_t dex_pc,
    178                     const JValue& return_value)
    179       OVERRIDE REQUIRES_SHARED(Locks::mutator_lock_) {
    180     if (method->IsNative()) {
    181       // TODO: post location events is a suspension point and native method entry stubs aren't.
    182       return;
    183     }
    184     uint32_t events = Dbg::kMethodExit;
    185     if (thread->IsDebugMethodEntry()) {
    186       // It is also the method entry.
    187       DCHECK(IsReturn(method, dex_pc));
    188       events |= Dbg::kMethodEntry;
    189       thread->ClearDebugMethodEntry();
    190     }
    191     Dbg::UpdateDebugger(thread, this_object.Get(), method, dex_pc, events, &return_value);
    192   }
    193 
    194   void MethodUnwind(Thread* thread ATTRIBUTE_UNUSED,
    195                     Handle<mirror::Object> this_object ATTRIBUTE_UNUSED,
    196                     ArtMethod* method,
    197                     uint32_t dex_pc)
    198       OVERRIDE REQUIRES_SHARED(Locks::mutator_lock_) {
    199     // We're not recorded to listen to this kind of event, so complain.
    200     LOG(ERROR) << "Unexpected method unwind event in debugger " << ArtMethod::PrettyMethod(method)
    201                << " " << dex_pc;
    202   }
    203 
    204   void DexPcMoved(Thread* thread,
    205                   Handle<mirror::Object> this_object,
    206                   ArtMethod* method,
    207                   uint32_t new_dex_pc)
    208       OVERRIDE REQUIRES_SHARED(Locks::mutator_lock_) {
    209     if (IsListeningToMethodExit() && IsReturn(method, new_dex_pc)) {
    210       // We also listen to kMethodExited instrumentation event and the current instruction is a
    211       // RETURN so we know the MethodExited method is going to be called right after us. Like in
    212       // MethodEntered, we delegate event reporting to MethodExited.
    213       // Besides, if this RETURN instruction is the only one in the method, we can send multiple
    214       // JDWP events in the same packet: METHOD_ENTRY, METHOD_EXIT, BREAKPOINT and/or SINGLE_STEP.
    215       // Therefore, we must not clear the debug method entry flag here.
    216     } else {
    217       uint32_t events = 0;
    218       if (thread->IsDebugMethodEntry()) {
    219         // It is also the method entry.
    220         events = Dbg::kMethodEntry;
    221         thread->ClearDebugMethodEntry();
    222       }
    223       Dbg::UpdateDebugger(thread, this_object.Get(), method, new_dex_pc, events, nullptr);
    224     }
    225   }
    226 
    227   void FieldRead(Thread* thread ATTRIBUTE_UNUSED,
    228                  Handle<mirror::Object> this_object,
    229                  ArtMethod* method,
    230                  uint32_t dex_pc,
    231                  ArtField* field)
    232       OVERRIDE REQUIRES_SHARED(Locks::mutator_lock_) {
    233     Dbg::PostFieldAccessEvent(method, dex_pc, this_object.Get(), field);
    234   }
    235 
    236   void FieldWritten(Thread* thread ATTRIBUTE_UNUSED,
    237                     Handle<mirror::Object> this_object,
    238                     ArtMethod* method,
    239                     uint32_t dex_pc,
    240                     ArtField* field,
    241                     const JValue& field_value)
    242       OVERRIDE REQUIRES_SHARED(Locks::mutator_lock_) {
    243     Dbg::PostFieldModificationEvent(method, dex_pc, this_object.Get(), field, &field_value);
    244   }
    245 
    246   void ExceptionThrown(Thread* thread ATTRIBUTE_UNUSED,
    247                        Handle<mirror::Throwable> exception_object)
    248       OVERRIDE REQUIRES_SHARED(Locks::mutator_lock_) {
    249     Dbg::PostException(exception_object.Get());
    250   }
    251 
    252   // We only care about branches in the Jit.
    253   void Branch(Thread* /*thread*/, ArtMethod* method, uint32_t dex_pc, int32_t dex_pc_offset)
    254       OVERRIDE REQUIRES_SHARED(Locks::mutator_lock_) {
    255     LOG(ERROR) << "Unexpected branch event in debugger " << ArtMethod::PrettyMethod(method)
    256                << " " << dex_pc << ", " << dex_pc_offset;
    257   }
    258 
    259   // We only care about invokes in the Jit.
    260   void InvokeVirtualOrInterface(Thread* thread ATTRIBUTE_UNUSED,
    261                                 Handle<mirror::Object> this_object ATTRIBUTE_UNUSED,
    262                                 ArtMethod* method,
    263                                 uint32_t dex_pc,
    264                                 ArtMethod* target ATTRIBUTE_UNUSED)
    265       OVERRIDE REQUIRES_SHARED(Locks::mutator_lock_) {
    266     LOG(ERROR) << "Unexpected invoke event in debugger " << ArtMethod::PrettyMethod(method)
    267                << " " << dex_pc;
    268   }
    269 
    270   // TODO Might be worth it to post ExceptionCatch event.
    271   void ExceptionHandled(Thread* thread ATTRIBUTE_UNUSED,
    272                         Handle<mirror::Throwable> throwable ATTRIBUTE_UNUSED) OVERRIDE {
    273     LOG(ERROR) << "Unexpected exception handled event in debugger";
    274   }
    275 
    276   // TODO Might be worth it to implement this.
    277   void WatchedFramePop(Thread* thread ATTRIBUTE_UNUSED,
    278                        const ShadowFrame& frame ATTRIBUTE_UNUSED) OVERRIDE {
    279     LOG(ERROR) << "Unexpected WatchedFramePop event in debugger";
    280   }
    281 
    282  private:
    283   static bool IsReturn(ArtMethod* method, uint32_t dex_pc) REQUIRES_SHARED(Locks::mutator_lock_) {
    284     return method->DexInstructions().InstructionAt(dex_pc).IsReturn();
    285   }
    286 
    287   static bool IsListeningToDexPcMoved() REQUIRES_SHARED(Locks::mutator_lock_) {
    288     return IsListeningTo(instrumentation::Instrumentation::kDexPcMoved);
    289   }
    290 
    291   static bool IsListeningToMethodExit() REQUIRES_SHARED(Locks::mutator_lock_) {
    292     return IsListeningTo(instrumentation::Instrumentation::kMethodExited);
    293   }
    294 
    295   static bool IsListeningTo(instrumentation::Instrumentation::InstrumentationEvent event)
    296       REQUIRES_SHARED(Locks::mutator_lock_) {
    297     return (Dbg::GetInstrumentationEvents() & event) != 0;
    298   }
    299 
    300   DISALLOW_COPY_AND_ASSIGN(DebugInstrumentationListener);
    301 } gDebugInstrumentationListener;
    302 
    303 // JDWP is allowed unless the Zygote forbids it.
    304 static bool gJdwpAllowed = true;
    305 
    306 // Was there a -Xrunjdwp or -agentlib:jdwp= argument on the command line?
    307 static bool gJdwpConfigured = false;
    308 
    309 // JDWP options for debugging. Only valid if IsJdwpConfigured() is true.
    310 static JDWP::JdwpOptions gJdwpOptions;
    311 
    312 // Runtime JDWP state.
    313 static JDWP::JdwpState* gJdwpState = nullptr;
    314 static bool gDebuggerConnected;  // debugger or DDMS is connected.
    315 
    316 static bool gDdmThreadNotification = false;
    317 
    318 // DDMS GC-related settings.
    319 static Dbg::HpifWhen gDdmHpifWhen = Dbg::HPIF_WHEN_NEVER;
    320 static Dbg::HpsgWhen gDdmHpsgWhen = Dbg::HPSG_WHEN_NEVER;
    321 static Dbg::HpsgWhat gDdmHpsgWhat;
    322 static Dbg::HpsgWhen gDdmNhsgWhen = Dbg::HPSG_WHEN_NEVER;
    323 static Dbg::HpsgWhat gDdmNhsgWhat;
    324 
    325 bool Dbg::gDebuggerActive = false;
    326 bool Dbg::gDisposed = false;
    327 ObjectRegistry* Dbg::gRegistry = nullptr;
    328 DebuggerActiveMethodInspectionCallback Dbg::gDebugActiveCallback;
    329 DebuggerDdmCallback Dbg::gDebugDdmCallback;
    330 InternalDebuggerControlCallback Dbg::gDebuggerControlCallback;
    331 
    332 // Deoptimization support.
    333 std::vector<DeoptimizationRequest> Dbg::deoptimization_requests_;
    334 size_t Dbg::full_deoptimization_event_count_ = 0;
    335 
    336 // Instrumentation event reference counters.
    337 size_t Dbg::dex_pc_change_event_ref_count_ = 0;
    338 size_t Dbg::method_enter_event_ref_count_ = 0;
    339 size_t Dbg::method_exit_event_ref_count_ = 0;
    340 size_t Dbg::field_read_event_ref_count_ = 0;
    341 size_t Dbg::field_write_event_ref_count_ = 0;
    342 size_t Dbg::exception_catch_event_ref_count_ = 0;
    343 uint32_t Dbg::instrumentation_events_ = 0;
    344 
    345 Dbg::DbgThreadLifecycleCallback Dbg::thread_lifecycle_callback_;
    346 Dbg::DbgClassLoadCallback Dbg::class_load_callback_;
    347 
    348 void DebuggerDdmCallback::DdmPublishChunk(uint32_t type, const ArrayRef<const uint8_t>& data) {
    349   if (gJdwpState == nullptr) {
    350     VLOG(jdwp) << "Debugger thread not active, ignoring DDM send: " << type;
    351   } else {
    352     iovec vec[1];
    353     vec[0].iov_base = reinterpret_cast<void*>(const_cast<uint8_t*>(data.data()));
    354     vec[0].iov_len = data.size();
    355     gJdwpState->DdmSendChunkV(type, vec, 1);
    356   }
    357 }
    358 
    359 bool DebuggerActiveMethodInspectionCallback::IsMethodBeingInspected(ArtMethod* m ATTRIBUTE_UNUSED) {
    360   return Dbg::IsDebuggerActive();
    361 }
    362 
    363 bool DebuggerActiveMethodInspectionCallback::IsMethodSafeToJit(ArtMethod* m) {
    364   return !Dbg::MethodHasAnyBreakpoints(m);
    365 }
    366 
    367 bool DebuggerActiveMethodInspectionCallback::MethodNeedsDebugVersion(
    368     ArtMethod* m ATTRIBUTE_UNUSED) {
    369   return Dbg::IsDebuggerActive();
    370 }
    371 
    372 void InternalDebuggerControlCallback::StartDebugger() {
    373   // Release the mutator lock.
    374   ScopedThreadStateChange stsc(art::Thread::Current(), kNative);
    375   Dbg::StartJdwp();
    376 }
    377 
    378 void InternalDebuggerControlCallback::StopDebugger() {
    379   Dbg::StopJdwp();
    380 }
    381 
    382 bool InternalDebuggerControlCallback::IsDebuggerConfigured() {
    383   return Dbg::IsJdwpConfigured();
    384 }
    385 
    386 // Breakpoints.
    387 static std::vector<Breakpoint> gBreakpoints GUARDED_BY(Locks::breakpoint_lock_);
    388 
    389 void DebugInvokeReq::VisitRoots(RootVisitor* visitor, const RootInfo& root_info) {
    390   receiver.VisitRootIfNonNull(visitor, root_info);  // null for static method call.
    391   klass.VisitRoot(visitor, root_info);
    392 }
    393 
    394 void SingleStepControl::AddDexPc(uint32_t dex_pc) {
    395   dex_pcs_.insert(dex_pc);
    396 }
    397 
    398 bool SingleStepControl::ContainsDexPc(uint32_t dex_pc) const {
    399   return dex_pcs_.find(dex_pc) == dex_pcs_.end();
    400 }
    401 
    402 static bool IsBreakpoint(ArtMethod* m, uint32_t dex_pc)
    403     REQUIRES(!Locks::breakpoint_lock_)
    404     REQUIRES_SHARED(Locks::mutator_lock_) {
    405   ReaderMutexLock mu(Thread::Current(), *Locks::breakpoint_lock_);
    406   for (size_t i = 0, e = gBreakpoints.size(); i < e; ++i) {
    407     if (gBreakpoints[i].DexPc() == dex_pc && gBreakpoints[i].IsInMethod(m)) {
    408       VLOG(jdwp) << "Hit breakpoint #" << i << ": " << gBreakpoints[i];
    409       return true;
    410     }
    411   }
    412   return false;
    413 }
    414 
    415 static bool IsSuspendedForDebugger(ScopedObjectAccessUnchecked& soa, Thread* thread)
    416     REQUIRES(!Locks::thread_suspend_count_lock_) {
    417   MutexLock mu(soa.Self(), *Locks::thread_suspend_count_lock_);
    418   // A thread may be suspended for GC; in this code, we really want to know whether
    419   // there's a debugger suspension active.
    420   return thread->IsSuspended() && thread->GetDebugSuspendCount() > 0;
    421 }
    422 
    423 static mirror::Array* DecodeNonNullArray(JDWP::RefTypeId id, JDWP::JdwpError* error)
    424     REQUIRES_SHARED(Locks::mutator_lock_) {
    425   mirror::Object* o = Dbg::GetObjectRegistry()->Get<mirror::Object*>(id, error);
    426   if (o == nullptr) {
    427     *error = JDWP::ERR_INVALID_OBJECT;
    428     return nullptr;
    429   }
    430   if (!o->IsArrayInstance()) {
    431     *error = JDWP::ERR_INVALID_ARRAY;
    432     return nullptr;
    433   }
    434   *error = JDWP::ERR_NONE;
    435   return o->AsArray();
    436 }
    437 
    438 static mirror::Class* DecodeClass(JDWP::RefTypeId id, JDWP::JdwpError* error)
    439     REQUIRES_SHARED(Locks::mutator_lock_) {
    440   mirror::Object* o = Dbg::GetObjectRegistry()->Get<mirror::Object*>(id, error);
    441   if (o == nullptr) {
    442     *error = JDWP::ERR_INVALID_OBJECT;
    443     return nullptr;
    444   }
    445   if (!o->IsClass()) {
    446     *error = JDWP::ERR_INVALID_CLASS;
    447     return nullptr;
    448   }
    449   *error = JDWP::ERR_NONE;
    450   return o->AsClass();
    451 }
    452 
    453 static Thread* DecodeThread(ScopedObjectAccessUnchecked& soa, JDWP::ObjectId thread_id,
    454                             JDWP::JdwpError* error)
    455     REQUIRES_SHARED(Locks::mutator_lock_)
    456     REQUIRES(!Locks::thread_list_lock_, !Locks::thread_suspend_count_lock_) {
    457   mirror::Object* thread_peer = Dbg::GetObjectRegistry()->Get<mirror::Object*>(thread_id, error);
    458   if (thread_peer == nullptr) {
    459     // This isn't even an object.
    460     *error = JDWP::ERR_INVALID_OBJECT;
    461     return nullptr;
    462   }
    463 
    464   ObjPtr<mirror::Class> java_lang_Thread =
    465       soa.Decode<mirror::Class>(WellKnownClasses::java_lang_Thread);
    466   if (!java_lang_Thread->IsAssignableFrom(thread_peer->GetClass())) {
    467     // This isn't a thread.
    468     *error = JDWP::ERR_INVALID_THREAD;
    469     return nullptr;
    470   }
    471 
    472   MutexLock mu(soa.Self(), *Locks::thread_list_lock_);
    473   Thread* thread = Thread::FromManagedThread(soa, thread_peer);
    474   // If thread is null then this a java.lang.Thread without a Thread*. Must be a un-started or a
    475   // zombie.
    476   *error = (thread == nullptr) ? JDWP::ERR_THREAD_NOT_ALIVE : JDWP::ERR_NONE;
    477   return thread;
    478 }
    479 
    480 static JDWP::JdwpTag BasicTagFromDescriptor(const char* descriptor) {
    481   // JDWP deliberately uses the descriptor characters' ASCII values for its enum.
    482   // Note that by "basic" we mean that we don't get more specific than JT_OBJECT.
    483   return static_cast<JDWP::JdwpTag>(descriptor[0]);
    484 }
    485 
    486 static JDWP::JdwpTag BasicTagFromClass(mirror::Class* klass)
    487     REQUIRES_SHARED(Locks::mutator_lock_) {
    488   std::string temp;
    489   const char* descriptor = klass->GetDescriptor(&temp);
    490   return BasicTagFromDescriptor(descriptor);
    491 }
    492 
    493 static JDWP::JdwpTag TagFromClass(const ScopedObjectAccessUnchecked& soa, mirror::Class* c)
    494     REQUIRES_SHARED(Locks::mutator_lock_) {
    495   CHECK(c != nullptr);
    496   if (c->IsArrayClass()) {
    497     return JDWP::JT_ARRAY;
    498   }
    499   if (c->IsStringClass()) {
    500     return JDWP::JT_STRING;
    501   }
    502   if (c->IsClassClass()) {
    503     return JDWP::JT_CLASS_OBJECT;
    504   }
    505   {
    506     ObjPtr<mirror::Class> thread_class =
    507         soa.Decode<mirror::Class>(WellKnownClasses::java_lang_Thread);
    508     if (thread_class->IsAssignableFrom(c)) {
    509       return JDWP::JT_THREAD;
    510     }
    511   }
    512   {
    513     ObjPtr<mirror::Class> thread_group_class =
    514         soa.Decode<mirror::Class>(WellKnownClasses::java_lang_ThreadGroup);
    515     if (thread_group_class->IsAssignableFrom(c)) {
    516       return JDWP::JT_THREAD_GROUP;
    517     }
    518   }
    519   {
    520     ObjPtr<mirror::Class> class_loader_class =
    521         soa.Decode<mirror::Class>(WellKnownClasses::java_lang_ClassLoader);
    522     if (class_loader_class->IsAssignableFrom(c)) {
    523       return JDWP::JT_CLASS_LOADER;
    524     }
    525   }
    526   return JDWP::JT_OBJECT;
    527 }
    528 
    529 /*
    530  * Objects declared to hold Object might actually hold a more specific
    531  * type.  The debugger may take a special interest in these (e.g. it
    532  * wants to display the contents of Strings), so we want to return an
    533  * appropriate tag.
    534  *
    535  * Null objects are tagged JT_OBJECT.
    536  */
    537 JDWP::JdwpTag Dbg::TagFromObject(const ScopedObjectAccessUnchecked& soa, mirror::Object* o) {
    538   return (o == nullptr) ? JDWP::JT_OBJECT : TagFromClass(soa, o->GetClass());
    539 }
    540 
    541 static bool IsPrimitiveTag(JDWP::JdwpTag tag) {
    542   switch (tag) {
    543   case JDWP::JT_BOOLEAN:
    544   case JDWP::JT_BYTE:
    545   case JDWP::JT_CHAR:
    546   case JDWP::JT_FLOAT:
    547   case JDWP::JT_DOUBLE:
    548   case JDWP::JT_INT:
    549   case JDWP::JT_LONG:
    550   case JDWP::JT_SHORT:
    551   case JDWP::JT_VOID:
    552     return true;
    553   default:
    554     return false;
    555   }
    556 }
    557 
    558 void Dbg::StartJdwp() {
    559   if (!gJdwpAllowed || !IsJdwpConfigured()) {
    560     // No JDWP for you!
    561     return;
    562   }
    563 
    564   CHECK(gRegistry == nullptr);
    565   gRegistry = new ObjectRegistry;
    566 
    567   {
    568     // Setup the Ddm listener
    569     ScopedObjectAccess soa(Thread::Current());
    570     Runtime::Current()->GetRuntimeCallbacks()->AddDdmCallback(&gDebugDdmCallback);
    571   }
    572 
    573   // Init JDWP if the debugger is enabled. This may connect out to a
    574   // debugger, passively listen for a debugger, or block waiting for a
    575   // debugger.
    576   gJdwpState = JDWP::JdwpState::Create(&gJdwpOptions);
    577   if (gJdwpState == nullptr) {
    578     // We probably failed because some other process has the port already, which means that
    579     // if we don't abort the user is likely to think they're talking to us when they're actually
    580     // talking to that other process.
    581     LOG(FATAL) << "Debugger thread failed to initialize";
    582   }
    583 
    584   // If a debugger has already attached, send the "welcome" message.
    585   // This may cause us to suspend all threads.
    586   if (gJdwpState->IsActive()) {
    587     ScopedObjectAccess soa(Thread::Current());
    588     gJdwpState->PostVMStart();
    589   }
    590 }
    591 
    592 void Dbg::StopJdwp() {
    593   // Post VM_DEATH event before the JDWP connection is closed (either by the JDWP thread or the
    594   // destruction of gJdwpState).
    595   if (gJdwpState != nullptr && gJdwpState->IsActive()) {
    596     gJdwpState->PostVMDeath();
    597   }
    598   // Prevent the JDWP thread from processing JDWP incoming packets after we close the connection.
    599   Dispose();
    600   delete gJdwpState;
    601   gJdwpState = nullptr;
    602   delete gRegistry;
    603   gRegistry = nullptr;
    604 }
    605 
    606 void Dbg::GcDidFinish() {
    607   if (gDdmHpifWhen != HPIF_WHEN_NEVER) {
    608     ScopedObjectAccess soa(Thread::Current());
    609     VLOG(jdwp) << "Sending heap info to DDM";
    610     DdmSendHeapInfo(gDdmHpifWhen);
    611   }
    612   if (gDdmHpsgWhen != HPSG_WHEN_NEVER) {
    613     ScopedObjectAccess soa(Thread::Current());
    614     VLOG(jdwp) << "Dumping heap to DDM";
    615     DdmSendHeapSegments(false);
    616   }
    617   if (gDdmNhsgWhen != HPSG_WHEN_NEVER) {
    618     ScopedObjectAccess soa(Thread::Current());
    619     VLOG(jdwp) << "Dumping native heap to DDM";
    620     DdmSendHeapSegments(true);
    621   }
    622 }
    623 
    624 void Dbg::SetJdwpAllowed(bool allowed) {
    625   gJdwpAllowed = allowed;
    626 }
    627 
    628 bool Dbg::IsJdwpAllowed() {
    629   return gJdwpAllowed;
    630 }
    631 
    632 DebugInvokeReq* Dbg::GetInvokeReq() {
    633   return Thread::Current()->GetInvokeReq();
    634 }
    635 
    636 Thread* Dbg::GetDebugThread() {
    637   return (gJdwpState != nullptr) ? gJdwpState->GetDebugThread() : nullptr;
    638 }
    639 
    640 void Dbg::ClearWaitForEventThread() {
    641   gJdwpState->ReleaseJdwpTokenForEvent();
    642 }
    643 
    644 void Dbg::Connected() {
    645   CHECK(!gDebuggerConnected);
    646   VLOG(jdwp) << "JDWP has attached";
    647   gDebuggerConnected = true;
    648   gDisposed = false;
    649 }
    650 
    651 bool Dbg::RequiresDeoptimization() {
    652   // We don't need deoptimization if everything runs with interpreter after
    653   // enabling -Xint mode.
    654   return !Runtime::Current()->GetInstrumentation()->IsForcedInterpretOnly();
    655 }
    656 
    657 void Dbg::GoActive() {
    658   // Enable all debugging features, including scans for breakpoints.
    659   // This is a no-op if we're already active.
    660   // Only called from the JDWP handler thread.
    661   if (IsDebuggerActive()) {
    662     return;
    663   }
    664 
    665   Thread* const self = Thread::Current();
    666   {
    667     // TODO: dalvik only warned if there were breakpoints left over. clear in Dbg::Disconnected?
    668     ReaderMutexLock mu(self, *Locks::breakpoint_lock_);
    669     CHECK_EQ(gBreakpoints.size(), 0U);
    670   }
    671 
    672   {
    673     MutexLock mu(self, *Locks::deoptimization_lock_);
    674     CHECK_EQ(deoptimization_requests_.size(), 0U);
    675     CHECK_EQ(full_deoptimization_event_count_, 0U);
    676     CHECK_EQ(dex_pc_change_event_ref_count_, 0U);
    677     CHECK_EQ(method_enter_event_ref_count_, 0U);
    678     CHECK_EQ(method_exit_event_ref_count_, 0U);
    679     CHECK_EQ(field_read_event_ref_count_, 0U);
    680     CHECK_EQ(field_write_event_ref_count_, 0U);
    681     CHECK_EQ(exception_catch_event_ref_count_, 0U);
    682   }
    683 
    684   Runtime* runtime = Runtime::Current();
    685   // Best effort deoptimization if the runtime is non-Java debuggable. This happens when
    686   // ro.debuggable is set, but the application is not debuggable, or when a standalone
    687   // dalvikvm invocation is not passed the debuggable option (-Xcompiler-option --debuggable).
    688   //
    689   // The performance cost of this is non-negligible during native-debugging due to the
    690   // forced JIT, so we keep the AOT code in that case in exchange for limited native debugging.
    691   if (!runtime->IsJavaDebuggable() &&
    692       !runtime->GetInstrumentation()->IsForcedInterpretOnly() &&
    693       !runtime->IsNativeDebuggable()) {
    694     runtime->DeoptimizeBootImage();
    695   }
    696 
    697   ScopedSuspendAll ssa(__FUNCTION__);
    698   if (RequiresDeoptimization()) {
    699     runtime->GetInstrumentation()->EnableDeoptimization();
    700   }
    701   instrumentation_events_ = 0;
    702   gDebuggerActive = true;
    703   Runtime::Current()->GetRuntimeCallbacks()->AddMethodInspectionCallback(&gDebugActiveCallback);
    704   LOG(INFO) << "Debugger is active";
    705 }
    706 
    707 void Dbg::Disconnected() {
    708   CHECK(gDebuggerConnected);
    709 
    710   LOG(INFO) << "Debugger is no longer active";
    711 
    712   // Suspend all threads and exclusively acquire the mutator lock. Remove the debugger as a listener
    713   // and clear the object registry.
    714   Runtime* runtime = Runtime::Current();
    715   Thread* self = Thread::Current();
    716   {
    717     // Required for DisableDeoptimization.
    718     gc::ScopedGCCriticalSection gcs(self,
    719                                     gc::kGcCauseInstrumentation,
    720                                     gc::kCollectorTypeInstrumentation);
    721     ScopedSuspendAll ssa(__FUNCTION__);
    722     // Debugger may not be active at this point.
    723     if (IsDebuggerActive()) {
    724       {
    725         // Since we're going to disable deoptimization, we clear the deoptimization requests queue.
    726         // This prevents us from having any pending deoptimization request when the debugger attaches
    727         // to us again while no event has been requested yet.
    728         MutexLock mu(self, *Locks::deoptimization_lock_);
    729         deoptimization_requests_.clear();
    730         full_deoptimization_event_count_ = 0U;
    731       }
    732       if (instrumentation_events_ != 0) {
    733         runtime->GetInstrumentation()->RemoveListener(&gDebugInstrumentationListener,
    734                                                       instrumentation_events_);
    735         instrumentation_events_ = 0;
    736       }
    737       if (RequiresDeoptimization()) {
    738         runtime->GetInstrumentation()->DisableDeoptimization(kDbgInstrumentationKey);
    739       }
    740       gDebuggerActive = false;
    741       Runtime::Current()->GetRuntimeCallbacks()->RemoveMethodInspectionCallback(
    742           &gDebugActiveCallback);
    743     }
    744   }
    745 
    746   {
    747     ScopedObjectAccess soa(self);
    748     gRegistry->Clear();
    749   }
    750 
    751   gDebuggerConnected = false;
    752 }
    753 
    754 void Dbg::ConfigureJdwp(const JDWP::JdwpOptions& jdwp_options) {
    755   CHECK_NE(jdwp_options.transport, JDWP::kJdwpTransportUnknown);
    756   gJdwpOptions = jdwp_options;
    757   gJdwpConfigured = true;
    758   Runtime::Current()->GetRuntimeCallbacks()->AddDebuggerControlCallback(&gDebuggerControlCallback);
    759 }
    760 
    761 bool Dbg::IsJdwpConfigured() {
    762   return gJdwpConfigured;
    763 }
    764 
    765 int64_t Dbg::LastDebuggerActivity() {
    766   return gJdwpState->LastDebuggerActivity();
    767 }
    768 
    769 void Dbg::UndoDebuggerSuspensions() {
    770   Runtime::Current()->GetThreadList()->UndoDebuggerSuspensions();
    771 }
    772 
    773 std::string Dbg::GetClassName(JDWP::RefTypeId class_id) {
    774   JDWP::JdwpError error;
    775   mirror::Object* o = gRegistry->Get<mirror::Object*>(class_id, &error);
    776   if (o == nullptr) {
    777     if (error == JDWP::ERR_NONE) {
    778       return "null";
    779     } else {
    780       return StringPrintf("invalid object %p", reinterpret_cast<void*>(class_id));
    781     }
    782   }
    783   if (!o->IsClass()) {
    784     return StringPrintf("non-class %p", o);  // This is only used for debugging output anyway.
    785   }
    786   return GetClassName(o->AsClass());
    787 }
    788 
    789 std::string Dbg::GetClassName(mirror::Class* klass) {
    790   if (klass == nullptr) {
    791     return "null";
    792   }
    793   std::string temp;
    794   return DescriptorToName(klass->GetDescriptor(&temp));
    795 }
    796 
    797 JDWP::JdwpError Dbg::GetClassObject(JDWP::RefTypeId id, JDWP::ObjectId* class_object_id) {
    798   JDWP::JdwpError status;
    799   mirror::Class* c = DecodeClass(id, &status);
    800   if (c == nullptr) {
    801     *class_object_id = 0;
    802     return status;
    803   }
    804   *class_object_id = gRegistry->Add(c);
    805   return JDWP::ERR_NONE;
    806 }
    807 
    808 JDWP::JdwpError Dbg::GetSuperclass(JDWP::RefTypeId id, JDWP::RefTypeId* superclass_id) {
    809   JDWP::JdwpError status;
    810   mirror::Class* c = DecodeClass(id, &status);
    811   if (c == nullptr) {
    812     *superclass_id = 0;
    813     return status;
    814   }
    815   if (c->IsInterface()) {
    816     // http://code.google.com/p/android/issues/detail?id=20856
    817     *superclass_id = 0;
    818   } else {
    819     *superclass_id = gRegistry->Add(c->GetSuperClass());
    820   }
    821   return JDWP::ERR_NONE;
    822 }
    823 
    824 JDWP::JdwpError Dbg::GetClassLoader(JDWP::RefTypeId id, JDWP::ExpandBuf* pReply) {
    825   JDWP::JdwpError error;
    826   mirror::Class* c = DecodeClass(id, &error);
    827   if (c == nullptr) {
    828     return error;
    829   }
    830   expandBufAddObjectId(pReply, gRegistry->Add(c->GetClassLoader()));
    831   return JDWP::ERR_NONE;
    832 }
    833 
    834 JDWP::JdwpError Dbg::GetModifiers(JDWP::RefTypeId id, JDWP::ExpandBuf* pReply) {
    835   JDWP::JdwpError error;
    836   mirror::Class* c = DecodeClass(id, &error);
    837   if (c == nullptr) {
    838     return error;
    839   }
    840 
    841   uint32_t access_flags = c->GetAccessFlags() & kAccJavaFlagsMask;
    842 
    843   // Set ACC_SUPER. Dex files don't contain this flag but only classes are supposed to have it set,
    844   // not interfaces.
    845   // Class.getModifiers doesn't return it, but JDWP does, so we set it here.
    846   if ((access_flags & kAccInterface) == 0) {
    847     access_flags |= kAccSuper;
    848   }
    849 
    850   expandBufAdd4BE(pReply, access_flags);
    851 
    852   return JDWP::ERR_NONE;
    853 }
    854 
    855 JDWP::JdwpError Dbg::GetMonitorInfo(JDWP::ObjectId object_id, JDWP::ExpandBuf* reply) {
    856   JDWP::JdwpError error;
    857   mirror::Object* o = gRegistry->Get<mirror::Object*>(object_id, &error);
    858   if (o == nullptr) {
    859     return JDWP::ERR_INVALID_OBJECT;
    860   }
    861 
    862   // Ensure all threads are suspended while we read objects' lock words.
    863   Thread* self = Thread::Current();
    864   CHECK_EQ(self->GetState(), kRunnable);
    865 
    866   MonitorInfo monitor_info;
    867   {
    868     ScopedThreadSuspension sts(self, kSuspended);
    869     ScopedSuspendAll ssa(__FUNCTION__);
    870     monitor_info = MonitorInfo(o);
    871   }
    872   if (monitor_info.owner_ != nullptr) {
    873     expandBufAddObjectId(reply, gRegistry->Add(monitor_info.owner_->GetPeerFromOtherThread()));
    874   } else {
    875     expandBufAddObjectId(reply, gRegistry->Add(nullptr));
    876   }
    877   expandBufAdd4BE(reply, monitor_info.entry_count_);
    878   expandBufAdd4BE(reply, monitor_info.waiters_.size());
    879   for (size_t i = 0; i < monitor_info.waiters_.size(); ++i) {
    880     expandBufAddObjectId(reply, gRegistry->Add(monitor_info.waiters_[i]->GetPeerFromOtherThread()));
    881   }
    882   return JDWP::ERR_NONE;
    883 }
    884 
    885 JDWP::JdwpError Dbg::GetOwnedMonitors(JDWP::ObjectId thread_id,
    886                                       std::vector<JDWP::ObjectId>* monitors,
    887                                       std::vector<uint32_t>* stack_depths) {
    888   struct OwnedMonitorVisitor : public StackVisitor {
    889     OwnedMonitorVisitor(Thread* thread, Context* context,
    890                         std::vector<JDWP::ObjectId>* monitor_vector,
    891                         std::vector<uint32_t>* stack_depth_vector)
    892         REQUIRES_SHARED(Locks::mutator_lock_)
    893       : StackVisitor(thread, context, StackVisitor::StackWalkKind::kIncludeInlinedFrames),
    894         current_stack_depth(0),
    895         monitors(monitor_vector),
    896         stack_depths(stack_depth_vector) {}
    897 
    898     // TODO: Enable annotalysis. We know lock is held in constructor, but abstraction confuses
    899     // annotalysis.
    900     bool VisitFrame() NO_THREAD_SAFETY_ANALYSIS {
    901       if (!GetMethod()->IsRuntimeMethod()) {
    902         Monitor::VisitLocks(this, AppendOwnedMonitors, this);
    903         ++current_stack_depth;
    904       }
    905       return true;
    906     }
    907 
    908     static void AppendOwnedMonitors(mirror::Object* owned_monitor, void* arg)
    909         REQUIRES_SHARED(Locks::mutator_lock_) {
    910       OwnedMonitorVisitor* visitor = reinterpret_cast<OwnedMonitorVisitor*>(arg);
    911       visitor->monitors->push_back(gRegistry->Add(owned_monitor));
    912       visitor->stack_depths->push_back(visitor->current_stack_depth);
    913     }
    914 
    915     size_t current_stack_depth;
    916     std::vector<JDWP::ObjectId>* const monitors;
    917     std::vector<uint32_t>* const stack_depths;
    918   };
    919 
    920   ScopedObjectAccessUnchecked soa(Thread::Current());
    921   JDWP::JdwpError error;
    922   Thread* thread = DecodeThread(soa, thread_id, &error);
    923   if (thread == nullptr) {
    924     return error;
    925   }
    926   if (!IsSuspendedForDebugger(soa, thread)) {
    927     return JDWP::ERR_THREAD_NOT_SUSPENDED;
    928   }
    929   std::unique_ptr<Context> context(Context::Create());
    930   OwnedMonitorVisitor visitor(thread, context.get(), monitors, stack_depths);
    931   visitor.WalkStack();
    932   return JDWP::ERR_NONE;
    933 }
    934 
    935 JDWP::JdwpError Dbg::GetContendedMonitor(JDWP::ObjectId thread_id,
    936                                          JDWP::ObjectId* contended_monitor) {
    937   ScopedObjectAccessUnchecked soa(Thread::Current());
    938   *contended_monitor = 0;
    939   JDWP::JdwpError error;
    940   Thread* thread = DecodeThread(soa, thread_id, &error);
    941   if (thread == nullptr) {
    942     return error;
    943   }
    944   if (!IsSuspendedForDebugger(soa, thread)) {
    945     return JDWP::ERR_THREAD_NOT_SUSPENDED;
    946   }
    947   mirror::Object* contended_monitor_obj = Monitor::GetContendedMonitor(thread);
    948   // Add() requires the thread_list_lock_ not held to avoid the lock
    949   // level violation.
    950   *contended_monitor = gRegistry->Add(contended_monitor_obj);
    951   return JDWP::ERR_NONE;
    952 }
    953 
    954 JDWP::JdwpError Dbg::GetInstanceCounts(const std::vector<JDWP::RefTypeId>& class_ids,
    955                                        std::vector<uint64_t>* counts) {
    956   gc::Heap* heap = Runtime::Current()->GetHeap();
    957   heap->CollectGarbage(/* clear_soft_references */ false, gc::GcCause::kGcCauseDebugger);
    958   VariableSizedHandleScope hs(Thread::Current());
    959   std::vector<Handle<mirror::Class>> classes;
    960   counts->clear();
    961   for (size_t i = 0; i < class_ids.size(); ++i) {
    962     JDWP::JdwpError error;
    963     ObjPtr<mirror::Class> c = DecodeClass(class_ids[i], &error);
    964     if (c == nullptr) {
    965       return error;
    966     }
    967     classes.push_back(hs.NewHandle(c));
    968     counts->push_back(0);
    969   }
    970   heap->CountInstances(classes, false, &(*counts)[0]);
    971   return JDWP::ERR_NONE;
    972 }
    973 
    974 JDWP::JdwpError Dbg::GetInstances(JDWP::RefTypeId class_id, int32_t max_count,
    975                                   std::vector<JDWP::ObjectId>* instances) {
    976   gc::Heap* heap = Runtime::Current()->GetHeap();
    977   // We only want reachable instances, so do a GC.
    978   heap->CollectGarbage(/* clear_soft_references */ false, gc::GcCause::kGcCauseDebugger);
    979   JDWP::JdwpError error;
    980   ObjPtr<mirror::Class> c = DecodeClass(class_id, &error);
    981   if (c == nullptr) {
    982     return error;
    983   }
    984   VariableSizedHandleScope hs(Thread::Current());
    985   std::vector<Handle<mirror::Object>> raw_instances;
    986   Runtime::Current()->GetHeap()->GetInstances(hs,
    987                                               hs.NewHandle(c),
    988                                               /* use_is_assignable_from */ false,
    989                                               max_count,
    990                                               raw_instances);
    991   for (size_t i = 0; i < raw_instances.size(); ++i) {
    992     instances->push_back(gRegistry->Add(raw_instances[i].Get()));
    993   }
    994   return JDWP::ERR_NONE;
    995 }
    996 
    997 JDWP::JdwpError Dbg::GetReferringObjects(JDWP::ObjectId object_id, int32_t max_count,
    998                                          std::vector<JDWP::ObjectId>* referring_objects) {
    999   gc::Heap* heap = Runtime::Current()->GetHeap();
   1000   heap->CollectGarbage(/* clear_soft_references */ false, gc::GcCause::kGcCauseDebugger);
   1001   JDWP::JdwpError error;
   1002   ObjPtr<mirror::Object> o = gRegistry->Get<mirror::Object*>(object_id, &error);
   1003   if (o == nullptr) {
   1004     return JDWP::ERR_INVALID_OBJECT;
   1005   }
   1006   VariableSizedHandleScope hs(Thread::Current());
   1007   std::vector<Handle<mirror::Object>> raw_instances;
   1008   heap->GetReferringObjects(hs, hs.NewHandle(o), max_count, raw_instances);
   1009   for (size_t i = 0; i < raw_instances.size(); ++i) {
   1010     referring_objects->push_back(gRegistry->Add(raw_instances[i].Get()));
   1011   }
   1012   return JDWP::ERR_NONE;
   1013 }
   1014 
   1015 JDWP::JdwpError Dbg::DisableCollection(JDWP::ObjectId object_id) {
   1016   JDWP::JdwpError error;
   1017   mirror::Object* o = gRegistry->Get<mirror::Object*>(object_id, &error);
   1018   if (o == nullptr) {
   1019     return JDWP::ERR_INVALID_OBJECT;
   1020   }
   1021   gRegistry->DisableCollection(object_id);
   1022   return JDWP::ERR_NONE;
   1023 }
   1024 
   1025 JDWP::JdwpError Dbg::EnableCollection(JDWP::ObjectId object_id) {
   1026   JDWP::JdwpError error;
   1027   mirror::Object* o = gRegistry->Get<mirror::Object*>(object_id, &error);
   1028   // Unlike DisableCollection, JDWP specs do not state an invalid object causes an error. The RI
   1029   // also ignores these cases and never return an error. However it's not obvious why this command
   1030   // should behave differently from DisableCollection and IsCollected commands. So let's be more
   1031   // strict and return an error if this happens.
   1032   if (o == nullptr) {
   1033     return JDWP::ERR_INVALID_OBJECT;
   1034   }
   1035   gRegistry->EnableCollection(object_id);
   1036   return JDWP::ERR_NONE;
   1037 }
   1038 
   1039 JDWP::JdwpError Dbg::IsCollected(JDWP::ObjectId object_id, bool* is_collected) {
   1040   *is_collected = true;
   1041   if (object_id == 0) {
   1042     // Null object id is invalid.
   1043     return JDWP::ERR_INVALID_OBJECT;
   1044   }
   1045   // JDWP specs state an INVALID_OBJECT error is returned if the object ID is not valid. However
   1046   // the RI seems to ignore this and assume object has been collected.
   1047   JDWP::JdwpError error;
   1048   mirror::Object* o = gRegistry->Get<mirror::Object*>(object_id, &error);
   1049   if (o != nullptr) {
   1050     *is_collected = gRegistry->IsCollected(object_id);
   1051   }
   1052   return JDWP::ERR_NONE;
   1053 }
   1054 
   1055 void Dbg::DisposeObject(JDWP::ObjectId object_id, uint32_t reference_count) {
   1056   gRegistry->DisposeObject(object_id, reference_count);
   1057 }
   1058 
   1059 JDWP::JdwpTypeTag Dbg::GetTypeTag(ObjPtr<mirror::Class> klass) {
   1060   DCHECK(klass != nullptr);
   1061   if (klass->IsArrayClass()) {
   1062     return JDWP::TT_ARRAY;
   1063   } else if (klass->IsInterface()) {
   1064     return JDWP::TT_INTERFACE;
   1065   } else {
   1066     return JDWP::TT_CLASS;
   1067   }
   1068 }
   1069 
   1070 JDWP::JdwpError Dbg::GetReflectedType(JDWP::RefTypeId class_id, JDWP::ExpandBuf* pReply) {
   1071   JDWP::JdwpError error;
   1072   mirror::Class* c = DecodeClass(class_id, &error);
   1073   if (c == nullptr) {
   1074     return error;
   1075   }
   1076 
   1077   JDWP::JdwpTypeTag type_tag = GetTypeTag(c);
   1078   expandBufAdd1(pReply, type_tag);
   1079   expandBufAddRefTypeId(pReply, class_id);
   1080   return JDWP::ERR_NONE;
   1081 }
   1082 
   1083 // Get the complete list of reference classes (i.e. all classes except
   1084 // the primitive types).
   1085 // Returns a newly-allocated buffer full of RefTypeId values.
   1086 class ClassListCreator : public ClassVisitor {
   1087  public:
   1088   explicit ClassListCreator(std::vector<JDWP::RefTypeId>* classes) : classes_(classes) {}
   1089 
   1090   bool operator()(ObjPtr<mirror::Class> c) OVERRIDE REQUIRES_SHARED(Locks::mutator_lock_) {
   1091     if (!c->IsPrimitive()) {
   1092       classes_->push_back(Dbg::GetObjectRegistry()->AddRefType(c));
   1093     }
   1094     return true;
   1095   }
   1096 
   1097  private:
   1098   std::vector<JDWP::RefTypeId>* const classes_;
   1099 };
   1100 
   1101 void Dbg::GetClassList(std::vector<JDWP::RefTypeId>* classes) {
   1102   ClassListCreator clc(classes);
   1103   Runtime::Current()->GetClassLinker()->VisitClassesWithoutClassesLock(&clc);
   1104 }
   1105 
   1106 JDWP::JdwpError Dbg::GetClassInfo(JDWP::RefTypeId class_id, JDWP::JdwpTypeTag* pTypeTag,
   1107                                   uint32_t* pStatus, std::string* pDescriptor) {
   1108   JDWP::JdwpError error;
   1109   mirror::Class* c = DecodeClass(class_id, &error);
   1110   if (c == nullptr) {
   1111     return error;
   1112   }
   1113 
   1114   if (c->IsArrayClass()) {
   1115     *pStatus = JDWP::CS_VERIFIED | JDWP::CS_PREPARED;
   1116     *pTypeTag = JDWP::TT_ARRAY;
   1117   } else {
   1118     if (c->IsErroneous()) {
   1119       *pStatus = JDWP::CS_ERROR;
   1120     } else {
   1121       *pStatus = JDWP::CS_VERIFIED | JDWP::CS_PREPARED | JDWP::CS_INITIALIZED;
   1122     }
   1123     *pTypeTag = c->IsInterface() ? JDWP::TT_INTERFACE : JDWP::TT_CLASS;
   1124   }
   1125 
   1126   if (pDescriptor != nullptr) {
   1127     std::string temp;
   1128     *pDescriptor = c->GetDescriptor(&temp);
   1129   }
   1130   return JDWP::ERR_NONE;
   1131 }
   1132 
   1133 void Dbg::FindLoadedClassBySignature(const char* descriptor, std::vector<JDWP::RefTypeId>* ids) {
   1134   std::vector<ObjPtr<mirror::Class>> classes;
   1135   Runtime::Current()->GetClassLinker()->LookupClasses(descriptor, classes);
   1136   ids->clear();
   1137   for (ObjPtr<mirror::Class> c : classes) {
   1138     ids->push_back(gRegistry->Add(c));
   1139   }
   1140 }
   1141 
   1142 JDWP::JdwpError Dbg::GetReferenceType(JDWP::ObjectId object_id, JDWP::ExpandBuf* pReply) {
   1143   JDWP::JdwpError error;
   1144   mirror::Object* o = gRegistry->Get<mirror::Object*>(object_id, &error);
   1145   if (o == nullptr) {
   1146     return JDWP::ERR_INVALID_OBJECT;
   1147   }
   1148 
   1149   JDWP::JdwpTypeTag type_tag = GetTypeTag(o->GetClass());
   1150   JDWP::RefTypeId type_id = gRegistry->AddRefType(o->GetClass());
   1151 
   1152   expandBufAdd1(pReply, type_tag);
   1153   expandBufAddRefTypeId(pReply, type_id);
   1154 
   1155   return JDWP::ERR_NONE;
   1156 }
   1157 
   1158 JDWP::JdwpError Dbg::GetSignature(JDWP::RefTypeId class_id, std::string* signature) {
   1159   JDWP::JdwpError error;
   1160   mirror::Class* c = DecodeClass(class_id, &error);
   1161   if (c == nullptr) {
   1162     return error;
   1163   }
   1164   std::string temp;
   1165   *signature = c->GetDescriptor(&temp);
   1166   return JDWP::ERR_NONE;
   1167 }
   1168 
   1169 JDWP::JdwpError Dbg::GetSourceDebugExtension(JDWP::RefTypeId class_id,
   1170                                              std::string* extension_data) {
   1171   JDWP::JdwpError error;
   1172   mirror::Class* c = DecodeClass(class_id, &error);
   1173   if (c == nullptr) {
   1174     return error;
   1175   }
   1176   StackHandleScope<1> hs(Thread::Current());
   1177   Handle<mirror::Class> klass(hs.NewHandle(c));
   1178   const char* data = annotations::GetSourceDebugExtension(klass);
   1179   if (data == nullptr) {
   1180     return JDWP::ERR_ABSENT_INFORMATION;
   1181   }
   1182   *extension_data = data;
   1183   return JDWP::ERR_NONE;
   1184 }
   1185 
   1186 JDWP::JdwpError Dbg::GetSourceFile(JDWP::RefTypeId class_id, std::string* result) {
   1187   JDWP::JdwpError error;
   1188   mirror::Class* c = DecodeClass(class_id, &error);
   1189   if (c == nullptr) {
   1190     return error;
   1191   }
   1192   const char* source_file = c->GetSourceFile();
   1193   if (source_file == nullptr) {
   1194     return JDWP::ERR_ABSENT_INFORMATION;
   1195   }
   1196   *result = source_file;
   1197   return JDWP::ERR_NONE;
   1198 }
   1199 
   1200 JDWP::JdwpError Dbg::GetObjectTag(JDWP::ObjectId object_id, uint8_t* tag) {
   1201   ScopedObjectAccessUnchecked soa(Thread::Current());
   1202   JDWP::JdwpError error;
   1203   mirror::Object* o = gRegistry->Get<mirror::Object*>(object_id, &error);
   1204   if (error != JDWP::ERR_NONE) {
   1205     *tag = JDWP::JT_VOID;
   1206     return error;
   1207   }
   1208   *tag = TagFromObject(soa, o);
   1209   return JDWP::ERR_NONE;
   1210 }
   1211 
   1212 size_t Dbg::GetTagWidth(JDWP::JdwpTag tag) {
   1213   switch (tag) {
   1214   case JDWP::JT_VOID:
   1215     return 0;
   1216   case JDWP::JT_BYTE:
   1217   case JDWP::JT_BOOLEAN:
   1218     return 1;
   1219   case JDWP::JT_CHAR:
   1220   case JDWP::JT_SHORT:
   1221     return 2;
   1222   case JDWP::JT_FLOAT:
   1223   case JDWP::JT_INT:
   1224     return 4;
   1225   case JDWP::JT_ARRAY:
   1226   case JDWP::JT_OBJECT:
   1227   case JDWP::JT_STRING:
   1228   case JDWP::JT_THREAD:
   1229   case JDWP::JT_THREAD_GROUP:
   1230   case JDWP::JT_CLASS_LOADER:
   1231   case JDWP::JT_CLASS_OBJECT:
   1232     return sizeof(JDWP::ObjectId);
   1233   case JDWP::JT_DOUBLE:
   1234   case JDWP::JT_LONG:
   1235     return 8;
   1236   default:
   1237     LOG(FATAL) << "Unknown tag " << tag;
   1238     return -1;
   1239   }
   1240 }
   1241 
   1242 JDWP::JdwpError Dbg::GetArrayLength(JDWP::ObjectId array_id, int32_t* length) {
   1243   JDWP::JdwpError error;
   1244   mirror::Array* a = DecodeNonNullArray(array_id, &error);
   1245   if (a == nullptr) {
   1246     return error;
   1247   }
   1248   *length = a->GetLength();
   1249   return JDWP::ERR_NONE;
   1250 }
   1251 
   1252 JDWP::JdwpError Dbg::OutputArray(JDWP::ObjectId array_id, int offset, int count, JDWP::ExpandBuf* pReply) {
   1253   JDWP::JdwpError error;
   1254   mirror::Array* a = DecodeNonNullArray(array_id, &error);
   1255   if (a == nullptr) {
   1256     return error;
   1257   }
   1258 
   1259   if (offset < 0 || count < 0 || offset > a->GetLength() || a->GetLength() - offset < count) {
   1260     LOG(WARNING) << __FUNCTION__ << " access out of bounds: offset=" << offset << "; count=" << count;
   1261     return JDWP::ERR_INVALID_LENGTH;
   1262   }
   1263   JDWP::JdwpTag element_tag = BasicTagFromClass(a->GetClass()->GetComponentType());
   1264   expandBufAdd1(pReply, element_tag);
   1265   expandBufAdd4BE(pReply, count);
   1266 
   1267   if (IsPrimitiveTag(element_tag)) {
   1268     size_t width = GetTagWidth(element_tag);
   1269     uint8_t* dst = expandBufAddSpace(pReply, count * width);
   1270     if (width == 8) {
   1271       const uint64_t* src8 = reinterpret_cast<uint64_t*>(a->GetRawData(sizeof(uint64_t), 0));
   1272       for (int i = 0; i < count; ++i) JDWP::Write8BE(&dst, src8[offset + i]);
   1273     } else if (width == 4) {
   1274       const uint32_t* src4 = reinterpret_cast<uint32_t*>(a->GetRawData(sizeof(uint32_t), 0));
   1275       for (int i = 0; i < count; ++i) JDWP::Write4BE(&dst, src4[offset + i]);
   1276     } else if (width == 2) {
   1277       const uint16_t* src2 = reinterpret_cast<uint16_t*>(a->GetRawData(sizeof(uint16_t), 0));
   1278       for (int i = 0; i < count; ++i) JDWP::Write2BE(&dst, src2[offset + i]);
   1279     } else {
   1280       const uint8_t* src = reinterpret_cast<uint8_t*>(a->GetRawData(sizeof(uint8_t), 0));
   1281       memcpy(dst, &src[offset * width], count * width);
   1282     }
   1283   } else {
   1284     ScopedObjectAccessUnchecked soa(Thread::Current());
   1285     mirror::ObjectArray<mirror::Object>* oa = a->AsObjectArray<mirror::Object>();
   1286     for (int i = 0; i < count; ++i) {
   1287       mirror::Object* element = oa->Get(offset + i);
   1288       JDWP::JdwpTag specific_tag = (element != nullptr) ? TagFromObject(soa, element)
   1289                                                         : element_tag;
   1290       expandBufAdd1(pReply, specific_tag);
   1291       expandBufAddObjectId(pReply, gRegistry->Add(element));
   1292     }
   1293   }
   1294 
   1295   return JDWP::ERR_NONE;
   1296 }
   1297 
   1298 template <typename T>
   1299 static void CopyArrayData(mirror::Array* a, JDWP::Request* src, int offset, int count)
   1300     NO_THREAD_SAFETY_ANALYSIS {
   1301   // TODO: fix when annotalysis correctly handles non-member functions.
   1302   DCHECK(a->GetClass()->IsPrimitiveArray());
   1303 
   1304   T* dst = reinterpret_cast<T*>(a->GetRawData(sizeof(T), offset));
   1305   for (int i = 0; i < count; ++i) {
   1306     *dst++ = src->ReadValue(sizeof(T));
   1307   }
   1308 }
   1309 
   1310 JDWP::JdwpError Dbg::SetArrayElements(JDWP::ObjectId array_id, int offset, int count,
   1311                                       JDWP::Request* request) {
   1312   JDWP::JdwpError error;
   1313   mirror::Array* dst = DecodeNonNullArray(array_id, &error);
   1314   if (dst == nullptr) {
   1315     return error;
   1316   }
   1317 
   1318   if (offset < 0 || count < 0 || offset > dst->GetLength() || dst->GetLength() - offset < count) {
   1319     LOG(WARNING) << __FUNCTION__ << " access out of bounds: offset=" << offset << "; count=" << count;
   1320     return JDWP::ERR_INVALID_LENGTH;
   1321   }
   1322   JDWP::JdwpTag element_tag = BasicTagFromClass(dst->GetClass()->GetComponentType());
   1323 
   1324   if (IsPrimitiveTag(element_tag)) {
   1325     size_t width = GetTagWidth(element_tag);
   1326     if (width == 8) {
   1327       CopyArrayData<uint64_t>(dst, request, offset, count);
   1328     } else if (width == 4) {
   1329       CopyArrayData<uint32_t>(dst, request, offset, count);
   1330     } else if (width == 2) {
   1331       CopyArrayData<uint16_t>(dst, request, offset, count);
   1332     } else {
   1333       CopyArrayData<uint8_t>(dst, request, offset, count);
   1334     }
   1335   } else {
   1336     mirror::ObjectArray<mirror::Object>* oa = dst->AsObjectArray<mirror::Object>();
   1337     for (int i = 0; i < count; ++i) {
   1338       JDWP::ObjectId id = request->ReadObjectId();
   1339       mirror::Object* o = gRegistry->Get<mirror::Object*>(id, &error);
   1340       if (error != JDWP::ERR_NONE) {
   1341         return error;
   1342       }
   1343       // Check if the object's type is compatible with the array's type.
   1344       if (o != nullptr && !o->InstanceOf(oa->GetClass()->GetComponentType())) {
   1345         return JDWP::ERR_TYPE_MISMATCH;
   1346       }
   1347       oa->Set<false>(offset + i, o);
   1348     }
   1349   }
   1350 
   1351   return JDWP::ERR_NONE;
   1352 }
   1353 
   1354 JDWP::JdwpError Dbg::CreateString(const std::string& str, JDWP::ObjectId* new_string_id) {
   1355   Thread* self = Thread::Current();
   1356   mirror::String* new_string = mirror::String::AllocFromModifiedUtf8(self, str.c_str());
   1357   if (new_string == nullptr) {
   1358     DCHECK(self->IsExceptionPending());
   1359     self->ClearException();
   1360     LOG(ERROR) << "Could not allocate string";
   1361     *new_string_id = 0;
   1362     return JDWP::ERR_OUT_OF_MEMORY;
   1363   }
   1364   *new_string_id = gRegistry->Add(new_string);
   1365   return JDWP::ERR_NONE;
   1366 }
   1367 
   1368 JDWP::JdwpError Dbg::CreateObject(JDWP::RefTypeId class_id, JDWP::ObjectId* new_object_id) {
   1369   JDWP::JdwpError error;
   1370   mirror::Class* c = DecodeClass(class_id, &error);
   1371   if (c == nullptr) {
   1372     *new_object_id = 0;
   1373     return error;
   1374   }
   1375   Thread* self = Thread::Current();
   1376   ObjPtr<mirror::Object> new_object;
   1377   if (c->IsStringClass()) {
   1378     // Special case for java.lang.String.
   1379     gc::AllocatorType allocator_type = Runtime::Current()->GetHeap()->GetCurrentAllocator();
   1380     new_object = mirror::String::AllocEmptyString<true>(self, allocator_type);
   1381   } else {
   1382     new_object = c->AllocObject(self);
   1383   }
   1384   if (new_object == nullptr) {
   1385     DCHECK(self->IsExceptionPending());
   1386     self->ClearException();
   1387     LOG(ERROR) << "Could not allocate object of type " << mirror::Class::PrettyDescriptor(c);
   1388     *new_object_id = 0;
   1389     return JDWP::ERR_OUT_OF_MEMORY;
   1390   }
   1391   *new_object_id = gRegistry->Add(new_object.Ptr());
   1392   return JDWP::ERR_NONE;
   1393 }
   1394 
   1395 /*
   1396  * Used by Eclipse's "Display" view to evaluate "new byte[5]" to get "(byte[]) [0, 0, 0, 0, 0]".
   1397  */
   1398 JDWP::JdwpError Dbg::CreateArrayObject(JDWP::RefTypeId array_class_id, uint32_t length,
   1399                                        JDWP::ObjectId* new_array_id) {
   1400   JDWP::JdwpError error;
   1401   mirror::Class* c = DecodeClass(array_class_id, &error);
   1402   if (c == nullptr) {
   1403     *new_array_id = 0;
   1404     return error;
   1405   }
   1406   Thread* self = Thread::Current();
   1407   gc::Heap* heap = Runtime::Current()->GetHeap();
   1408   mirror::Array* new_array = mirror::Array::Alloc<true>(self, c, length,
   1409                                                         c->GetComponentSizeShift(),
   1410                                                         heap->GetCurrentAllocator());
   1411   if (new_array == nullptr) {
   1412     DCHECK(self->IsExceptionPending());
   1413     self->ClearException();
   1414     LOG(ERROR) << "Could not allocate array of type " << mirror::Class::PrettyDescriptor(c);
   1415     *new_array_id = 0;
   1416     return JDWP::ERR_OUT_OF_MEMORY;
   1417   }
   1418   *new_array_id = gRegistry->Add(new_array);
   1419   return JDWP::ERR_NONE;
   1420 }
   1421 
   1422 JDWP::FieldId Dbg::ToFieldId(const ArtField* f) {
   1423   return static_cast<JDWP::FieldId>(reinterpret_cast<uintptr_t>(f));
   1424 }
   1425 
   1426 static JDWP::MethodId ToMethodId(ArtMethod* m)
   1427     REQUIRES_SHARED(Locks::mutator_lock_) {
   1428   return static_cast<JDWP::MethodId>(
   1429       reinterpret_cast<uintptr_t>(m->GetCanonicalMethod(kRuntimePointerSize)));
   1430 }
   1431 
   1432 static ArtField* FromFieldId(JDWP::FieldId fid)
   1433     REQUIRES_SHARED(Locks::mutator_lock_) {
   1434   return reinterpret_cast<ArtField*>(static_cast<uintptr_t>(fid));
   1435 }
   1436 
   1437 static ArtMethod* FromMethodId(JDWP::MethodId mid)
   1438     REQUIRES_SHARED(Locks::mutator_lock_) {
   1439   return reinterpret_cast<ArtMethod*>(static_cast<uintptr_t>(mid));
   1440 }
   1441 
   1442 bool Dbg::MatchThread(JDWP::ObjectId expected_thread_id, Thread* event_thread) {
   1443   CHECK(event_thread != nullptr);
   1444   JDWP::JdwpError error;
   1445   mirror::Object* expected_thread_peer = gRegistry->Get<mirror::Object*>(
   1446       expected_thread_id, &error);
   1447   return expected_thread_peer == event_thread->GetPeerFromOtherThread();
   1448 }
   1449 
   1450 bool Dbg::MatchLocation(const JDWP::JdwpLocation& expected_location,
   1451                         const JDWP::EventLocation& event_location) {
   1452   if (expected_location.dex_pc != event_location.dex_pc) {
   1453     return false;
   1454   }
   1455   ArtMethod* m = FromMethodId(expected_location.method_id);
   1456   return m == event_location.method;
   1457 }
   1458 
   1459 bool Dbg::MatchType(ObjPtr<mirror::Class> event_class, JDWP::RefTypeId class_id) {
   1460   if (event_class == nullptr) {
   1461     return false;
   1462   }
   1463   JDWP::JdwpError error;
   1464   ObjPtr<mirror::Class> expected_class = DecodeClass(class_id, &error);
   1465   CHECK(expected_class != nullptr);
   1466   return expected_class->IsAssignableFrom(event_class);
   1467 }
   1468 
   1469 bool Dbg::MatchField(JDWP::RefTypeId expected_type_id, JDWP::FieldId expected_field_id,
   1470                      ArtField* event_field) {
   1471   ArtField* expected_field = FromFieldId(expected_field_id);
   1472   if (expected_field != event_field) {
   1473     return false;
   1474   }
   1475   return Dbg::MatchType(event_field->GetDeclaringClass(), expected_type_id);
   1476 }
   1477 
   1478 bool Dbg::MatchInstance(JDWP::ObjectId expected_instance_id, mirror::Object* event_instance) {
   1479   JDWP::JdwpError error;
   1480   mirror::Object* modifier_instance = gRegistry->Get<mirror::Object*>(expected_instance_id, &error);
   1481   return modifier_instance == event_instance;
   1482 }
   1483 
   1484 void Dbg::SetJdwpLocation(JDWP::JdwpLocation* location, ArtMethod* m, uint32_t dex_pc) {
   1485   if (m == nullptr) {
   1486     memset(location, 0, sizeof(*location));
   1487   } else {
   1488     mirror::Class* c = m->GetDeclaringClass();
   1489     location->type_tag = GetTypeTag(c);
   1490     location->class_id = gRegistry->AddRefType(c);
   1491     // The RI Seems to return 0 for all obsolete methods. For compatibility we shall do the same.
   1492     location->method_id = m->IsObsolete() ? 0 : ToMethodId(m);
   1493     location->dex_pc = (m->IsNative() || m->IsProxyMethod()) ? static_cast<uint64_t>(-1) : dex_pc;
   1494   }
   1495 }
   1496 
   1497 std::string Dbg::GetMethodName(JDWP::MethodId method_id) {
   1498   ArtMethod* m = FromMethodId(method_id);
   1499   if (m == nullptr) {
   1500     return "null";
   1501   }
   1502   return m->GetInterfaceMethodIfProxy(kRuntimePointerSize)->GetName();
   1503 }
   1504 
   1505 bool Dbg::IsMethodObsolete(JDWP::MethodId method_id) {
   1506   ArtMethod* m = FromMethodId(method_id);
   1507   if (m == nullptr) {
   1508     // NB Since we return 0 as MID for obsolete methods we want to default to true here.
   1509     return true;
   1510   }
   1511   return m->IsObsolete();
   1512 }
   1513 
   1514 std::string Dbg::GetFieldName(JDWP::FieldId field_id) {
   1515   ArtField* f = FromFieldId(field_id);
   1516   if (f == nullptr) {
   1517     return "null";
   1518   }
   1519   return f->GetName();
   1520 }
   1521 
   1522 /*
   1523  * Augment the access flags for synthetic methods and fields by setting
   1524  * the (as described by the spec) "0xf0000000 bit".  Also, strip out any
   1525  * flags not specified by the Java programming language.
   1526  */
   1527 static uint32_t MangleAccessFlags(uint32_t accessFlags) {
   1528   accessFlags &= kAccJavaFlagsMask;
   1529   if ((accessFlags & kAccSynthetic) != 0) {
   1530     accessFlags |= 0xf0000000;
   1531   }
   1532   return accessFlags;
   1533 }
   1534 
   1535 /*
   1536  * Circularly shifts registers so that arguments come first. Debuggers
   1537  * expect slots to begin with arguments, but dex code places them at
   1538  * the end.
   1539  */
   1540 static uint16_t MangleSlot(uint16_t slot, ArtMethod* m)
   1541     REQUIRES_SHARED(Locks::mutator_lock_) {
   1542   CodeItemDataAccessor accessor(m->DexInstructionData());
   1543   if (!accessor.HasCodeItem()) {
   1544     // We should not get here for a method without code (native, proxy or abstract). Log it and
   1545     // return the slot as is since all registers are arguments.
   1546     LOG(WARNING) << "Trying to mangle slot for method without code " << m->PrettyMethod();
   1547     return slot;
   1548   }
   1549   uint16_t ins_size = accessor.InsSize();
   1550   uint16_t locals_size = accessor.RegistersSize() - ins_size;
   1551   if (slot >= locals_size) {
   1552     return slot - locals_size;
   1553   } else {
   1554     return slot + ins_size;
   1555   }
   1556 }
   1557 
   1558 static size_t GetMethodNumArgRegistersIncludingThis(ArtMethod* method)
   1559     REQUIRES_SHARED(Locks::mutator_lock_) {
   1560   uint32_t num_registers = ArtMethod::NumArgRegisters(method->GetShorty());
   1561   if (!method->IsStatic()) {
   1562     ++num_registers;
   1563   }
   1564   return num_registers;
   1565 }
   1566 
   1567 /*
   1568  * Circularly shifts registers so that arguments come last. Reverts
   1569  * slots to dex style argument placement.
   1570  */
   1571 static uint16_t DemangleSlot(uint16_t slot, ArtMethod* m, JDWP::JdwpError* error)
   1572     REQUIRES_SHARED(Locks::mutator_lock_) {
   1573   CodeItemDataAccessor accessor(m->DexInstructionData());
   1574   if (!accessor.HasCodeItem()) {
   1575     // We should not get here for a method without code (native, proxy or abstract). Log it and
   1576     // return the slot as is since all registers are arguments.
   1577     LOG(WARNING) << "Trying to demangle slot for method without code "
   1578                  << m->PrettyMethod();
   1579     uint16_t vreg_count = GetMethodNumArgRegistersIncludingThis(m);
   1580     if (slot < vreg_count) {
   1581       *error = JDWP::ERR_NONE;
   1582       return slot;
   1583     }
   1584   } else {
   1585     if (slot < accessor.RegistersSize()) {
   1586       uint16_t ins_size = accessor.InsSize();
   1587       uint16_t locals_size = accessor.RegistersSize() - ins_size;
   1588       *error = JDWP::ERR_NONE;
   1589       return (slot < ins_size) ? slot + locals_size : slot - ins_size;
   1590     }
   1591   }
   1592 
   1593   // Slot is invalid in the method.
   1594   LOG(ERROR) << "Invalid local slot " << slot << " for method " << m->PrettyMethod();
   1595   *error = JDWP::ERR_INVALID_SLOT;
   1596   return DexFile::kDexNoIndex16;
   1597 }
   1598 
   1599 JDWP::JdwpError Dbg::OutputDeclaredFields(JDWP::RefTypeId class_id, bool with_generic,
   1600                                           JDWP::ExpandBuf* pReply) {
   1601   JDWP::JdwpError error;
   1602   mirror::Class* c = DecodeClass(class_id, &error);
   1603   if (c == nullptr) {
   1604     return error;
   1605   }
   1606 
   1607   size_t instance_field_count = c->NumInstanceFields();
   1608   size_t static_field_count = c->NumStaticFields();
   1609 
   1610   expandBufAdd4BE(pReply, instance_field_count + static_field_count);
   1611 
   1612   for (size_t i = 0; i < instance_field_count + static_field_count; ++i) {
   1613     ArtField* f = (i < instance_field_count) ? c->GetInstanceField(i) :
   1614         c->GetStaticField(i - instance_field_count);
   1615     expandBufAddFieldId(pReply, ToFieldId(f));
   1616     expandBufAddUtf8String(pReply, f->GetName());
   1617     expandBufAddUtf8String(pReply, f->GetTypeDescriptor());
   1618     if (with_generic) {
   1619       static const char genericSignature[1] = "";
   1620       expandBufAddUtf8String(pReply, genericSignature);
   1621     }
   1622     expandBufAdd4BE(pReply, MangleAccessFlags(f->GetAccessFlags()));
   1623   }
   1624   return JDWP::ERR_NONE;
   1625 }
   1626 
   1627 JDWP::JdwpError Dbg::OutputDeclaredMethods(JDWP::RefTypeId class_id, bool with_generic,
   1628                                            JDWP::ExpandBuf* pReply) {
   1629   JDWP::JdwpError error;
   1630   mirror::Class* c = DecodeClass(class_id, &error);
   1631   if (c == nullptr) {
   1632     return error;
   1633   }
   1634 
   1635   expandBufAdd4BE(pReply, c->NumMethods());
   1636 
   1637   auto* cl = Runtime::Current()->GetClassLinker();
   1638   auto ptr_size = cl->GetImagePointerSize();
   1639   for (ArtMethod& m : c->GetMethods(ptr_size)) {
   1640     expandBufAddMethodId(pReply, ToMethodId(&m));
   1641     expandBufAddUtf8String(pReply, m.GetInterfaceMethodIfProxy(kRuntimePointerSize)->GetName());
   1642     expandBufAddUtf8String(
   1643         pReply, m.GetInterfaceMethodIfProxy(kRuntimePointerSize)->GetSignature().ToString());
   1644     if (with_generic) {
   1645       const char* generic_signature = "";
   1646       expandBufAddUtf8String(pReply, generic_signature);
   1647     }
   1648     expandBufAdd4BE(pReply, MangleAccessFlags(m.GetAccessFlags()));
   1649   }
   1650   return JDWP::ERR_NONE;
   1651 }
   1652 
   1653 JDWP::JdwpError Dbg::OutputDeclaredInterfaces(JDWP::RefTypeId class_id, JDWP::ExpandBuf* pReply) {
   1654   JDWP::JdwpError error;
   1655   Thread* self = Thread::Current();
   1656   ObjPtr<mirror::Class> c = DecodeClass(class_id, &error);
   1657   if (c == nullptr) {
   1658     return error;
   1659   }
   1660   size_t interface_count = c->NumDirectInterfaces();
   1661   expandBufAdd4BE(pReply, interface_count);
   1662   for (size_t i = 0; i < interface_count; ++i) {
   1663     ObjPtr<mirror::Class> interface = mirror::Class::GetDirectInterface(self, c, i);
   1664     DCHECK(interface != nullptr);
   1665     expandBufAddRefTypeId(pReply, gRegistry->AddRefType(interface));
   1666   }
   1667   return JDWP::ERR_NONE;
   1668 }
   1669 
   1670 void Dbg::OutputLineTable(JDWP::RefTypeId, JDWP::MethodId method_id, JDWP::ExpandBuf* pReply) {
   1671   struct DebugCallbackContext {
   1672     int numItems;
   1673     JDWP::ExpandBuf* pReply;
   1674 
   1675     static bool Callback(void* context, const DexFile::PositionInfo& entry) {
   1676       DebugCallbackContext* pContext = reinterpret_cast<DebugCallbackContext*>(context);
   1677       expandBufAdd8BE(pContext->pReply, entry.address_);
   1678       expandBufAdd4BE(pContext->pReply, entry.line_);
   1679       pContext->numItems++;
   1680       return false;
   1681     }
   1682   };
   1683   ArtMethod* m = FromMethodId(method_id);
   1684   CodeItemDebugInfoAccessor accessor(m->DexInstructionDebugInfo());
   1685   uint64_t start, end;
   1686   if (!accessor.HasCodeItem()) {
   1687     DCHECK(m->IsNative() || m->IsProxyMethod());
   1688     start = -1;
   1689     end = -1;
   1690   } else {
   1691     start = 0;
   1692     // Return the index of the last instruction
   1693     end = accessor.InsnsSizeInCodeUnits() - 1;
   1694   }
   1695 
   1696   expandBufAdd8BE(pReply, start);
   1697   expandBufAdd8BE(pReply, end);
   1698 
   1699   // Add numLines later
   1700   size_t numLinesOffset = expandBufGetLength(pReply);
   1701   expandBufAdd4BE(pReply, 0);
   1702 
   1703   DebugCallbackContext context;
   1704   context.numItems = 0;
   1705   context.pReply = pReply;
   1706 
   1707   if (accessor.HasCodeItem()) {
   1708     m->GetDexFile()->DecodeDebugPositionInfo(accessor.DebugInfoOffset(),
   1709                                              DebugCallbackContext::Callback,
   1710                                              &context);
   1711   }
   1712 
   1713   JDWP::Set4BE(expandBufGetBuffer(pReply) + numLinesOffset, context.numItems);
   1714 }
   1715 
   1716 void Dbg::OutputVariableTable(JDWP::RefTypeId, JDWP::MethodId method_id, bool with_generic,
   1717                               JDWP::ExpandBuf* pReply) {
   1718   struct DebugCallbackContext {
   1719     ArtMethod* method;
   1720     JDWP::ExpandBuf* pReply;
   1721     size_t variable_count;
   1722     bool with_generic;
   1723 
   1724     static void Callback(void* context, const DexFile::LocalInfo& entry)
   1725         REQUIRES_SHARED(Locks::mutator_lock_) {
   1726       DebugCallbackContext* pContext = reinterpret_cast<DebugCallbackContext*>(context);
   1727 
   1728       uint16_t slot = entry.reg_;
   1729       VLOG(jdwp) << StringPrintf("    %2zd: %d(%d) '%s' '%s' '%s' actual slot=%d mangled slot=%d",
   1730                                  pContext->variable_count, entry.start_address_,
   1731                                  entry.end_address_ - entry.start_address_,
   1732                                  entry.name_, entry.descriptor_, entry.signature_, slot,
   1733                                  MangleSlot(slot, pContext->method));
   1734 
   1735       slot = MangleSlot(slot, pContext->method);
   1736 
   1737       expandBufAdd8BE(pContext->pReply, entry.start_address_);
   1738       expandBufAddUtf8String(pContext->pReply, entry.name_);
   1739       expandBufAddUtf8String(pContext->pReply, entry.descriptor_);
   1740       if (pContext->with_generic) {
   1741         expandBufAddUtf8String(pContext->pReply, entry.signature_);
   1742       }
   1743       expandBufAdd4BE(pContext->pReply, entry.end_address_- entry.start_address_);
   1744       expandBufAdd4BE(pContext->pReply, slot);
   1745 
   1746       ++pContext->variable_count;
   1747     }
   1748   };
   1749   ArtMethod* m = FromMethodId(method_id);
   1750   CodeItemDebugInfoAccessor accessor(m->DexInstructionDebugInfo());
   1751 
   1752   // arg_count considers doubles and longs to take 2 units.
   1753   // variable_count considers everything to take 1 unit.
   1754   expandBufAdd4BE(pReply, GetMethodNumArgRegistersIncludingThis(m));
   1755 
   1756   // We don't know the total number of variables yet, so leave a blank and update it later.
   1757   size_t variable_count_offset = expandBufGetLength(pReply);
   1758   expandBufAdd4BE(pReply, 0);
   1759 
   1760   DebugCallbackContext context;
   1761   context.method = m;
   1762   context.pReply = pReply;
   1763   context.variable_count = 0;
   1764   context.with_generic = with_generic;
   1765 
   1766   if (accessor.HasCodeItem()) {
   1767     m->GetDexFile()->DecodeDebugLocalInfo(accessor.RegistersSize(),
   1768                                           accessor.InsSize(),
   1769                                           accessor.InsnsSizeInCodeUnits(),
   1770                                           accessor.DebugInfoOffset(),
   1771                                           m->IsStatic(),
   1772                                           m->GetDexMethodIndex(),
   1773                                           DebugCallbackContext::Callback,
   1774                                           &context);
   1775   }
   1776 
   1777   JDWP::Set4BE(expandBufGetBuffer(pReply) + variable_count_offset, context.variable_count);
   1778 }
   1779 
   1780 void Dbg::OutputMethodReturnValue(JDWP::MethodId method_id, const JValue* return_value,
   1781                                   JDWP::ExpandBuf* pReply) {
   1782   ArtMethod* m = FromMethodId(method_id);
   1783   JDWP::JdwpTag tag = BasicTagFromDescriptor(m->GetShorty());
   1784   OutputJValue(tag, return_value, pReply);
   1785 }
   1786 
   1787 void Dbg::OutputFieldValue(JDWP::FieldId field_id, const JValue* field_value,
   1788                            JDWP::ExpandBuf* pReply) {
   1789   ArtField* f = FromFieldId(field_id);
   1790   JDWP::JdwpTag tag = BasicTagFromDescriptor(f->GetTypeDescriptor());
   1791   OutputJValue(tag, field_value, pReply);
   1792 }
   1793 
   1794 JDWP::JdwpError Dbg::GetBytecodes(JDWP::RefTypeId, JDWP::MethodId method_id,
   1795                                   std::vector<uint8_t>* bytecodes) {
   1796   ArtMethod* m = FromMethodId(method_id);
   1797   if (m == nullptr) {
   1798     return JDWP::ERR_INVALID_METHODID;
   1799   }
   1800   CodeItemDataAccessor accessor(m->DexInstructionData());
   1801   size_t byte_count = accessor.InsnsSizeInCodeUnits() * 2;
   1802   const uint8_t* begin = reinterpret_cast<const uint8_t*>(accessor.Insns());
   1803   const uint8_t* end = begin + byte_count;
   1804   for (const uint8_t* p = begin; p != end; ++p) {
   1805     bytecodes->push_back(*p);
   1806   }
   1807   return JDWP::ERR_NONE;
   1808 }
   1809 
   1810 JDWP::JdwpTag Dbg::GetFieldBasicTag(JDWP::FieldId field_id) {
   1811   return BasicTagFromDescriptor(FromFieldId(field_id)->GetTypeDescriptor());
   1812 }
   1813 
   1814 JDWP::JdwpTag Dbg::GetStaticFieldBasicTag(JDWP::FieldId field_id) {
   1815   return BasicTagFromDescriptor(FromFieldId(field_id)->GetTypeDescriptor());
   1816 }
   1817 
   1818 static JValue GetArtFieldValue(ArtField* f, mirror::Object* o)
   1819     REQUIRES_SHARED(Locks::mutator_lock_) {
   1820   Primitive::Type fieldType = f->GetTypeAsPrimitiveType();
   1821   JValue field_value;
   1822   switch (fieldType) {
   1823     case Primitive::kPrimBoolean:
   1824       field_value.SetZ(f->GetBoolean(o));
   1825       return field_value;
   1826 
   1827     case Primitive::kPrimByte:
   1828       field_value.SetB(f->GetByte(o));
   1829       return field_value;
   1830 
   1831     case Primitive::kPrimChar:
   1832       field_value.SetC(f->GetChar(o));
   1833       return field_value;
   1834 
   1835     case Primitive::kPrimShort:
   1836       field_value.SetS(f->GetShort(o));
   1837       return field_value;
   1838 
   1839     case Primitive::kPrimInt:
   1840     case Primitive::kPrimFloat:
   1841       // Int and Float must be treated as 32-bit values in JDWP.
   1842       field_value.SetI(f->GetInt(o));
   1843       return field_value;
   1844 
   1845     case Primitive::kPrimLong:
   1846     case Primitive::kPrimDouble:
   1847       // Long and Double must be treated as 64-bit values in JDWP.
   1848       field_value.SetJ(f->GetLong(o));
   1849       return field_value;
   1850 
   1851     case Primitive::kPrimNot:
   1852       field_value.SetL(f->GetObject(o).Ptr());
   1853       return field_value;
   1854 
   1855     case Primitive::kPrimVoid:
   1856       LOG(FATAL) << "Attempt to read from field of type 'void'";
   1857       UNREACHABLE();
   1858   }
   1859   LOG(FATAL) << "Attempt to read from field of unknown type";
   1860   UNREACHABLE();
   1861 }
   1862 
   1863 static JDWP::JdwpError GetFieldValueImpl(JDWP::RefTypeId ref_type_id, JDWP::ObjectId object_id,
   1864                                          JDWP::FieldId field_id, JDWP::ExpandBuf* pReply,
   1865                                          bool is_static)
   1866     REQUIRES_SHARED(Locks::mutator_lock_) {
   1867   JDWP::JdwpError error;
   1868   mirror::Class* c = DecodeClass(ref_type_id, &error);
   1869   if (ref_type_id != 0 && c == nullptr) {
   1870     return error;
   1871   }
   1872 
   1873   Thread* self = Thread::Current();
   1874   StackHandleScope<2> hs(self);
   1875   MutableHandle<mirror::Object>
   1876       o(hs.NewHandle(Dbg::GetObjectRegistry()->Get<mirror::Object*>(object_id, &error)));
   1877   if ((!is_static && o == nullptr) || error != JDWP::ERR_NONE) {
   1878     return JDWP::ERR_INVALID_OBJECT;
   1879   }
   1880   ArtField* f = FromFieldId(field_id);
   1881 
   1882   mirror::Class* receiver_class = c;
   1883   if (receiver_class == nullptr && o != nullptr) {
   1884     receiver_class = o->GetClass();
   1885   }
   1886 
   1887   // TODO: should we give up now if receiver_class is null?
   1888   if (receiver_class != nullptr && !f->GetDeclaringClass()->IsAssignableFrom(receiver_class)) {
   1889     LOG(INFO) << "ERR_INVALID_FIELDID: " << f->PrettyField() << " "
   1890               << receiver_class->PrettyClass();
   1891     return JDWP::ERR_INVALID_FIELDID;
   1892   }
   1893 
   1894   // Ensure the field's class is initialized.
   1895   Handle<mirror::Class> klass(hs.NewHandle(f->GetDeclaringClass()));
   1896   if (!Runtime::Current()->GetClassLinker()->EnsureInitialized(self, klass, true, false)) {
   1897     LOG(WARNING) << "Not able to initialize class for SetValues: "
   1898                  << mirror::Class::PrettyClass(klass.Get());
   1899   }
   1900 
   1901   // The RI only enforces the static/non-static mismatch in one direction.
   1902   // TODO: should we change the tests and check both?
   1903   if (is_static) {
   1904     if (!f->IsStatic()) {
   1905       return JDWP::ERR_INVALID_FIELDID;
   1906     }
   1907   } else {
   1908     if (f->IsStatic()) {
   1909       LOG(WARNING) << "Ignoring non-nullptr receiver for ObjectReference.GetValues"
   1910                    << " on static field " << f->PrettyField();
   1911     }
   1912   }
   1913   if (f->IsStatic()) {
   1914     o.Assign(f->GetDeclaringClass());
   1915   }
   1916 
   1917   JValue field_value(GetArtFieldValue(f, o.Get()));
   1918   JDWP::JdwpTag tag = BasicTagFromDescriptor(f->GetTypeDescriptor());
   1919   Dbg::OutputJValue(tag, &field_value, pReply);
   1920   return JDWP::ERR_NONE;
   1921 }
   1922 
   1923 JDWP::JdwpError Dbg::GetFieldValue(JDWP::ObjectId object_id, JDWP::FieldId field_id,
   1924                                    JDWP::ExpandBuf* pReply) {
   1925   return GetFieldValueImpl(0, object_id, field_id, pReply, false);
   1926 }
   1927 
   1928 JDWP::JdwpError Dbg::GetStaticFieldValue(JDWP::RefTypeId ref_type_id, JDWP::FieldId field_id,
   1929                                          JDWP::ExpandBuf* pReply) {
   1930   return GetFieldValueImpl(ref_type_id, 0, field_id, pReply, true);
   1931 }
   1932 
   1933 static JDWP::JdwpError SetArtFieldValue(ArtField* f, mirror::Object* o, uint64_t value, int width)
   1934     REQUIRES_SHARED(Locks::mutator_lock_) {
   1935   Primitive::Type fieldType = f->GetTypeAsPrimitiveType();
   1936   // Debugging only happens at runtime so we know we are not running in a transaction.
   1937   static constexpr bool kNoTransactionMode = false;
   1938   switch (fieldType) {
   1939     case Primitive::kPrimBoolean:
   1940       CHECK_EQ(width, 1);
   1941       f->SetBoolean<kNoTransactionMode>(o, static_cast<uint8_t>(value));
   1942       return JDWP::ERR_NONE;
   1943 
   1944     case Primitive::kPrimByte:
   1945       CHECK_EQ(width, 1);
   1946       f->SetByte<kNoTransactionMode>(o, static_cast<uint8_t>(value));
   1947       return JDWP::ERR_NONE;
   1948 
   1949     case Primitive::kPrimChar:
   1950       CHECK_EQ(width, 2);
   1951       f->SetChar<kNoTransactionMode>(o, static_cast<uint16_t>(value));
   1952       return JDWP::ERR_NONE;
   1953 
   1954     case Primitive::kPrimShort:
   1955       CHECK_EQ(width, 2);
   1956       f->SetShort<kNoTransactionMode>(o, static_cast<int16_t>(value));
   1957       return JDWP::ERR_NONE;
   1958 
   1959     case Primitive::kPrimInt:
   1960     case Primitive::kPrimFloat:
   1961       CHECK_EQ(width, 4);
   1962       // Int and Float must be treated as 32-bit values in JDWP.
   1963       f->SetInt<kNoTransactionMode>(o, static_cast<int32_t>(value));
   1964       return JDWP::ERR_NONE;
   1965 
   1966     case Primitive::kPrimLong:
   1967     case Primitive::kPrimDouble:
   1968       CHECK_EQ(width, 8);
   1969       // Long and Double must be treated as 64-bit values in JDWP.
   1970       f->SetLong<kNoTransactionMode>(o, value);
   1971       return JDWP::ERR_NONE;
   1972 
   1973     case Primitive::kPrimNot: {
   1974       JDWP::JdwpError error;
   1975       mirror::Object* v = Dbg::GetObjectRegistry()->Get<mirror::Object*>(value, &error);
   1976       if (error != JDWP::ERR_NONE) {
   1977         return JDWP::ERR_INVALID_OBJECT;
   1978       }
   1979       if (v != nullptr) {
   1980         ObjPtr<mirror::Class> field_type;
   1981         {
   1982           StackHandleScope<2> hs(Thread::Current());
   1983           HandleWrapper<mirror::Object> h_v(hs.NewHandleWrapper(&v));
   1984           HandleWrapper<mirror::Object> h_o(hs.NewHandleWrapper(&o));
   1985           field_type = f->ResolveType();
   1986         }
   1987         if (!field_type->IsAssignableFrom(v->GetClass())) {
   1988           return JDWP::ERR_INVALID_OBJECT;
   1989         }
   1990       }
   1991       f->SetObject<kNoTransactionMode>(o, v);
   1992       return JDWP::ERR_NONE;
   1993     }
   1994 
   1995     case Primitive::kPrimVoid:
   1996       LOG(FATAL) << "Attempt to write to field of type 'void'";
   1997       UNREACHABLE();
   1998   }
   1999   LOG(FATAL) << "Attempt to write to field of unknown type";
   2000   UNREACHABLE();
   2001 }
   2002 
   2003 static JDWP::JdwpError SetFieldValueImpl(JDWP::ObjectId object_id, JDWP::FieldId field_id,
   2004                                          uint64_t value, int width, bool is_static)
   2005     REQUIRES_SHARED(Locks::mutator_lock_) {
   2006   JDWP::JdwpError error;
   2007   Thread* self = Thread::Current();
   2008   StackHandleScope<2> hs(self);
   2009   MutableHandle<mirror::Object>
   2010       o(hs.NewHandle(Dbg::GetObjectRegistry()->Get<mirror::Object*>(object_id, &error)));
   2011   if ((!is_static && o == nullptr) || error != JDWP::ERR_NONE) {
   2012     return JDWP::ERR_INVALID_OBJECT;
   2013   }
   2014   ArtField* f = FromFieldId(field_id);
   2015 
   2016   // Ensure the field's class is initialized.
   2017   Handle<mirror::Class> klass(hs.NewHandle(f->GetDeclaringClass()));
   2018   if (!Runtime::Current()->GetClassLinker()->EnsureInitialized(self, klass, true, false)) {
   2019     LOG(WARNING) << "Not able to initialize class for SetValues: "
   2020                  << mirror::Class::PrettyClass(klass.Get());
   2021   }
   2022 
   2023   // The RI only enforces the static/non-static mismatch in one direction.
   2024   // TODO: should we change the tests and check both?
   2025   if (is_static) {
   2026     if (!f->IsStatic()) {
   2027       return JDWP::ERR_INVALID_FIELDID;
   2028     }
   2029   } else {
   2030     if (f->IsStatic()) {
   2031       LOG(WARNING) << "Ignoring non-nullptr receiver for ObjectReference.SetValues"
   2032                    << " on static field " << f->PrettyField();
   2033     }
   2034   }
   2035   if (f->IsStatic()) {
   2036     o.Assign(f->GetDeclaringClass());
   2037   }
   2038   return SetArtFieldValue(f, o.Get(), value, width);
   2039 }
   2040 
   2041 JDWP::JdwpError Dbg::SetFieldValue(JDWP::ObjectId object_id, JDWP::FieldId field_id, uint64_t value,
   2042                                    int width) {
   2043   return SetFieldValueImpl(object_id, field_id, value, width, false);
   2044 }
   2045 
   2046 JDWP::JdwpError Dbg::SetStaticFieldValue(JDWP::FieldId field_id, uint64_t value, int width) {
   2047   return SetFieldValueImpl(0, field_id, value, width, true);
   2048 }
   2049 
   2050 JDWP::JdwpError Dbg::StringToUtf8(JDWP::ObjectId string_id, std::string* str) {
   2051   JDWP::JdwpError error;
   2052   mirror::Object* obj = gRegistry->Get<mirror::Object*>(string_id, &error);
   2053   if (error != JDWP::ERR_NONE) {
   2054     return error;
   2055   }
   2056   if (obj == nullptr) {
   2057     return JDWP::ERR_INVALID_OBJECT;
   2058   }
   2059   {
   2060     ScopedObjectAccessUnchecked soa(Thread::Current());
   2061     ObjPtr<mirror::Class> java_lang_String =
   2062         soa.Decode<mirror::Class>(WellKnownClasses::java_lang_String);
   2063     if (!java_lang_String->IsAssignableFrom(obj->GetClass())) {
   2064       // This isn't a string.
   2065       return JDWP::ERR_INVALID_STRING;
   2066     }
   2067   }
   2068   *str = obj->AsString()->ToModifiedUtf8();
   2069   return JDWP::ERR_NONE;
   2070 }
   2071 
   2072 void Dbg::OutputJValue(JDWP::JdwpTag tag, const JValue* return_value, JDWP::ExpandBuf* pReply) {
   2073   if (IsPrimitiveTag(tag)) {
   2074     expandBufAdd1(pReply, tag);
   2075     if (tag == JDWP::JT_BOOLEAN || tag == JDWP::JT_BYTE) {
   2076       expandBufAdd1(pReply, return_value->GetI());
   2077     } else if (tag == JDWP::JT_CHAR || tag == JDWP::JT_SHORT) {
   2078       expandBufAdd2BE(pReply, return_value->GetI());
   2079     } else if (tag == JDWP::JT_FLOAT || tag == JDWP::JT_INT) {
   2080       expandBufAdd4BE(pReply, return_value->GetI());
   2081     } else if (tag == JDWP::JT_DOUBLE || tag == JDWP::JT_LONG) {
   2082       expandBufAdd8BE(pReply, return_value->GetJ());
   2083     } else {
   2084       CHECK_EQ(tag, JDWP::JT_VOID);
   2085     }
   2086   } else {
   2087     ScopedObjectAccessUnchecked soa(Thread::Current());
   2088     mirror::Object* value = return_value->GetL();
   2089     expandBufAdd1(pReply, TagFromObject(soa, value));
   2090     expandBufAddObjectId(pReply, gRegistry->Add(value));
   2091   }
   2092 }
   2093 
   2094 JDWP::JdwpError Dbg::GetThreadName(JDWP::ObjectId thread_id, std::string* name) {
   2095   ScopedObjectAccessUnchecked soa(Thread::Current());
   2096   JDWP::JdwpError error;
   2097   DecodeThread(soa, thread_id, &error);
   2098   if (error != JDWP::ERR_NONE && error != JDWP::ERR_THREAD_NOT_ALIVE) {
   2099     return error;
   2100   }
   2101 
   2102   // We still need to report the zombie threads' names, so we can't just call Thread::GetThreadName.
   2103   mirror::Object* thread_object = gRegistry->Get<mirror::Object*>(thread_id, &error);
   2104   CHECK(thread_object != nullptr) << error;
   2105   ArtField* java_lang_Thread_name_field =
   2106       jni::DecodeArtField(WellKnownClasses::java_lang_Thread_name);
   2107   ObjPtr<mirror::String> s(java_lang_Thread_name_field->GetObject(thread_object)->AsString());
   2108   if (s != nullptr) {
   2109     *name = s->ToModifiedUtf8();
   2110   }
   2111   return JDWP::ERR_NONE;
   2112 }
   2113 
   2114 JDWP::JdwpError Dbg::GetThreadGroup(JDWP::ObjectId thread_id, JDWP::ExpandBuf* pReply) {
   2115   ScopedObjectAccessUnchecked soa(Thread::Current());
   2116   JDWP::JdwpError error;
   2117   mirror::Object* thread_object = gRegistry->Get<mirror::Object*>(thread_id, &error);
   2118   if (error != JDWP::ERR_NONE) {
   2119     return JDWP::ERR_INVALID_OBJECT;
   2120   }
   2121   ScopedAssertNoThreadSuspension ants("Debugger: GetThreadGroup");
   2122   // Okay, so it's an object, but is it actually a thread?
   2123   DecodeThread(soa, thread_id, &error);
   2124   if (error == JDWP::ERR_THREAD_NOT_ALIVE) {
   2125     // Zombie threads are in the null group.
   2126     expandBufAddObjectId(pReply, JDWP::ObjectId(0));
   2127     error = JDWP::ERR_NONE;
   2128   } else if (error == JDWP::ERR_NONE) {
   2129     ObjPtr<mirror::Class> c = soa.Decode<mirror::Class>(WellKnownClasses::java_lang_Thread);
   2130     CHECK(c != nullptr);
   2131     ArtField* f = jni::DecodeArtField(WellKnownClasses::java_lang_Thread_group);
   2132     CHECK(f != nullptr);
   2133     ObjPtr<mirror::Object> group = f->GetObject(thread_object);
   2134     CHECK(group != nullptr);
   2135     JDWP::ObjectId thread_group_id = gRegistry->Add(group);
   2136     expandBufAddObjectId(pReply, thread_group_id);
   2137   }
   2138   return error;
   2139 }
   2140 
   2141 static mirror::Object* DecodeThreadGroup(ScopedObjectAccessUnchecked& soa,
   2142                                          JDWP::ObjectId thread_group_id, JDWP::JdwpError* error)
   2143     REQUIRES_SHARED(Locks::mutator_lock_) {
   2144   mirror::Object* thread_group = Dbg::GetObjectRegistry()->Get<mirror::Object*>(thread_group_id,
   2145                                                                                 error);
   2146   if (*error != JDWP::ERR_NONE) {
   2147     return nullptr;
   2148   }
   2149   if (thread_group == nullptr) {
   2150     *error = JDWP::ERR_INVALID_OBJECT;
   2151     return nullptr;
   2152   }
   2153   ObjPtr<mirror::Class> c =
   2154       soa.Decode<mirror::Class>(WellKnownClasses::java_lang_ThreadGroup);
   2155   CHECK(c != nullptr);
   2156   if (!c->IsAssignableFrom(thread_group->GetClass())) {
   2157     // This is not a java.lang.ThreadGroup.
   2158     *error = JDWP::ERR_INVALID_THREAD_GROUP;
   2159     return nullptr;
   2160   }
   2161   *error = JDWP::ERR_NONE;
   2162   return thread_group;
   2163 }
   2164 
   2165 JDWP::JdwpError Dbg::GetThreadGroupName(JDWP::ObjectId thread_group_id, JDWP::ExpandBuf* pReply) {
   2166   ScopedObjectAccessUnchecked soa(Thread::Current());
   2167   JDWP::JdwpError error;
   2168   mirror::Object* thread_group = DecodeThreadGroup(soa, thread_group_id, &error);
   2169   if (error != JDWP::ERR_NONE) {
   2170     return error;
   2171   }
   2172   ScopedAssertNoThreadSuspension ants("Debugger: GetThreadGroupName");
   2173   ArtField* f = jni::DecodeArtField(WellKnownClasses::java_lang_ThreadGroup_name);
   2174   CHECK(f != nullptr);
   2175   ObjPtr<mirror::String> s = f->GetObject(thread_group)->AsString();
   2176 
   2177   std::string thread_group_name(s->ToModifiedUtf8());
   2178   expandBufAddUtf8String(pReply, thread_group_name);
   2179   return JDWP::ERR_NONE;
   2180 }
   2181 
   2182 JDWP::JdwpError Dbg::GetThreadGroupParent(JDWP::ObjectId thread_group_id, JDWP::ExpandBuf* pReply) {
   2183   ScopedObjectAccessUnchecked soa(Thread::Current());
   2184   JDWP::JdwpError error;
   2185   mirror::Object* thread_group = DecodeThreadGroup(soa, thread_group_id, &error);
   2186   if (error != JDWP::ERR_NONE) {
   2187     return error;
   2188   }
   2189   ObjPtr<mirror::Object> parent;
   2190   {
   2191     ScopedAssertNoThreadSuspension ants("Debugger: GetThreadGroupParent");
   2192     ArtField* f = jni::DecodeArtField(WellKnownClasses::java_lang_ThreadGroup_parent);
   2193     CHECK(f != nullptr);
   2194     parent = f->GetObject(thread_group);
   2195   }
   2196   JDWP::ObjectId parent_group_id = gRegistry->Add(parent);
   2197   expandBufAddObjectId(pReply, parent_group_id);
   2198   return JDWP::ERR_NONE;
   2199 }
   2200 
   2201 static void GetChildThreadGroups(mirror::Object* thread_group,
   2202                                  std::vector<JDWP::ObjectId>* child_thread_group_ids)
   2203     REQUIRES_SHARED(Locks::mutator_lock_) {
   2204   CHECK(thread_group != nullptr);
   2205 
   2206   // Get the int "ngroups" count of this thread group...
   2207   ArtField* ngroups_field = jni::DecodeArtField(WellKnownClasses::java_lang_ThreadGroup_ngroups);
   2208   CHECK(ngroups_field != nullptr);
   2209   const int32_t size = ngroups_field->GetInt(thread_group);
   2210   if (size == 0) {
   2211     return;
   2212   }
   2213 
   2214   // Get the ThreadGroup[] "groups" out of this thread group...
   2215   ArtField* groups_field = jni::DecodeArtField(WellKnownClasses::java_lang_ThreadGroup_groups);
   2216   ObjPtr<mirror::Object> groups_array = groups_field->GetObject(thread_group);
   2217 
   2218   CHECK(groups_array != nullptr);
   2219   CHECK(groups_array->IsObjectArray());
   2220 
   2221   ObjPtr<mirror::ObjectArray<mirror::Object>> groups_array_as_array =
   2222       groups_array->AsObjectArray<mirror::Object>();
   2223 
   2224   // Copy the first 'size' elements out of the array into the result.
   2225   ObjectRegistry* registry = Dbg::GetObjectRegistry();
   2226   for (int32_t i = 0; i < size; ++i) {
   2227     child_thread_group_ids->push_back(registry->Add(groups_array_as_array->Get(i)));
   2228   }
   2229 }
   2230 
   2231 JDWP::JdwpError Dbg::GetThreadGroupChildren(JDWP::ObjectId thread_group_id,
   2232                                             JDWP::ExpandBuf* pReply) {
   2233   ScopedObjectAccessUnchecked soa(Thread::Current());
   2234   JDWP::JdwpError error;
   2235   mirror::Object* thread_group = DecodeThreadGroup(soa, thread_group_id, &error);
   2236   if (error != JDWP::ERR_NONE) {
   2237     return error;
   2238   }
   2239 
   2240   // Add child threads.
   2241   {
   2242     std::vector<JDWP::ObjectId> child_thread_ids;
   2243     GetThreads(thread_group, &child_thread_ids);
   2244     expandBufAdd4BE(pReply, child_thread_ids.size());
   2245     for (JDWP::ObjectId child_thread_id : child_thread_ids) {
   2246       expandBufAddObjectId(pReply, child_thread_id);
   2247     }
   2248   }
   2249 
   2250   // Add child thread groups.
   2251   {
   2252     std::vector<JDWP::ObjectId> child_thread_groups_ids;
   2253     GetChildThreadGroups(thread_group, &child_thread_groups_ids);
   2254     expandBufAdd4BE(pReply, child_thread_groups_ids.size());
   2255     for (JDWP::ObjectId child_thread_group_id : child_thread_groups_ids) {
   2256       expandBufAddObjectId(pReply, child_thread_group_id);
   2257     }
   2258   }
   2259 
   2260   return JDWP::ERR_NONE;
   2261 }
   2262 
   2263 JDWP::ObjectId Dbg::GetSystemThreadGroupId() {
   2264   ScopedObjectAccessUnchecked soa(Thread::Current());
   2265   ArtField* f = jni::DecodeArtField(WellKnownClasses::java_lang_ThreadGroup_systemThreadGroup);
   2266   ObjPtr<mirror::Object> group = f->GetObject(f->GetDeclaringClass());
   2267   return gRegistry->Add(group);
   2268 }
   2269 
   2270 JDWP::JdwpThreadStatus Dbg::ToJdwpThreadStatus(ThreadState state) {
   2271   switch (state) {
   2272     case kBlocked:
   2273       return JDWP::TS_MONITOR;
   2274     case kNative:
   2275     case kRunnable:
   2276     case kSuspended:
   2277       return JDWP::TS_RUNNING;
   2278     case kSleeping:
   2279       return JDWP::TS_SLEEPING;
   2280     case kStarting:
   2281     case kTerminated:
   2282       return JDWP::TS_ZOMBIE;
   2283     case kTimedWaiting:
   2284     case kWaitingForTaskProcessor:
   2285     case kWaitingForLockInflation:
   2286     case kWaitingForCheckPointsToRun:
   2287     case kWaitingForDebuggerSend:
   2288     case kWaitingForDebuggerSuspension:
   2289     case kWaitingForDebuggerToAttach:
   2290     case kWaitingForDeoptimization:
   2291     case kWaitingForGcToComplete:
   2292     case kWaitingForGetObjectsAllocated:
   2293     case kWaitingForJniOnLoad:
   2294     case kWaitingForMethodTracingStart:
   2295     case kWaitingForSignalCatcherOutput:
   2296     case kWaitingForVisitObjects:
   2297     case kWaitingInMainDebuggerLoop:
   2298     case kWaitingInMainSignalCatcherLoop:
   2299     case kWaitingPerformingGc:
   2300     case kWaitingWeakGcRootRead:
   2301     case kWaitingForGcThreadFlip:
   2302     case kWaiting:
   2303       return JDWP::TS_WAIT;
   2304       // Don't add a 'default' here so the compiler can spot incompatible enum changes.
   2305   }
   2306   LOG(FATAL) << "Unknown thread state: " << state;
   2307   return JDWP::TS_ZOMBIE;
   2308 }
   2309 
   2310 JDWP::JdwpError Dbg::GetThreadStatus(JDWP::ObjectId thread_id, JDWP::JdwpThreadStatus* pThreadStatus,
   2311                                      JDWP::JdwpSuspendStatus* pSuspendStatus) {
   2312   ScopedObjectAccess soa(Thread::Current());
   2313 
   2314   *pSuspendStatus = JDWP::SUSPEND_STATUS_NOT_SUSPENDED;
   2315 
   2316   JDWP::JdwpError error;
   2317   Thread* thread = DecodeThread(soa, thread_id, &error);
   2318   if (error != JDWP::ERR_NONE) {
   2319     if (error == JDWP::ERR_THREAD_NOT_ALIVE) {
   2320       *pThreadStatus = JDWP::TS_ZOMBIE;
   2321       return JDWP::ERR_NONE;
   2322     }
   2323     return error;
   2324   }
   2325 
   2326   if (IsSuspendedForDebugger(soa, thread)) {
   2327     *pSuspendStatus = JDWP::SUSPEND_STATUS_SUSPENDED;
   2328   }
   2329 
   2330   *pThreadStatus = ToJdwpThreadStatus(thread->GetState());
   2331   return JDWP::ERR_NONE;
   2332 }
   2333 
   2334 JDWP::JdwpError Dbg::GetThreadDebugSuspendCount(JDWP::ObjectId thread_id, JDWP::ExpandBuf* pReply) {
   2335   ScopedObjectAccess soa(Thread::Current());
   2336   JDWP::JdwpError error;
   2337   Thread* thread = DecodeThread(soa, thread_id, &error);
   2338   if (error != JDWP::ERR_NONE) {
   2339     return error;
   2340   }
   2341   MutexLock mu2(soa.Self(), *Locks::thread_suspend_count_lock_);
   2342   expandBufAdd4BE(pReply, thread->GetDebugSuspendCount());
   2343   return JDWP::ERR_NONE;
   2344 }
   2345 
   2346 JDWP::JdwpError Dbg::Interrupt(JDWP::ObjectId thread_id) {
   2347   ScopedObjectAccess soa(Thread::Current());
   2348   JDWP::JdwpError error;
   2349   Thread* thread = DecodeThread(soa, thread_id, &error);
   2350   if (error != JDWP::ERR_NONE) {
   2351     return error;
   2352   }
   2353   thread->Interrupt(soa.Self());
   2354   return JDWP::ERR_NONE;
   2355 }
   2356 
   2357 static bool IsInDesiredThreadGroup(mirror::Object* desired_thread_group, mirror::Object* peer)
   2358     REQUIRES_SHARED(Locks::mutator_lock_) {
   2359   // Do we want threads from all thread groups?
   2360   if (desired_thread_group == nullptr) {
   2361     return true;
   2362   }
   2363   ArtField* thread_group_field = jni::DecodeArtField(WellKnownClasses::java_lang_Thread_group);
   2364   DCHECK(thread_group_field != nullptr);
   2365   ObjPtr<mirror::Object> group = thread_group_field->GetObject(peer);
   2366   return (group == desired_thread_group);
   2367 }
   2368 
   2369 void Dbg::GetThreads(mirror::Object* thread_group, std::vector<JDWP::ObjectId>* thread_ids) {
   2370   ScopedObjectAccessUnchecked soa(Thread::Current());
   2371   std::list<Thread*> all_threads_list;
   2372   {
   2373     MutexLock mu(Thread::Current(), *Locks::thread_list_lock_);
   2374     all_threads_list = Runtime::Current()->GetThreadList()->GetList();
   2375   }
   2376   for (Thread* t : all_threads_list) {
   2377     if (t == Dbg::GetDebugThread()) {
   2378       // Skip the JDWP thread. Some debuggers get bent out of shape when they can't suspend and
   2379       // query all threads, so it's easier if we just don't tell them about this thread.
   2380       continue;
   2381     }
   2382     if (t->IsStillStarting()) {
   2383       // This thread is being started (and has been registered in the thread list). However, it is
   2384       // not completely started yet so we must ignore it.
   2385       continue;
   2386     }
   2387     mirror::Object* peer = t->GetPeerFromOtherThread();
   2388     if (peer == nullptr) {
   2389       // peer might be null if the thread is still starting up. We can't tell the debugger about
   2390       // this thread yet.
   2391       // TODO: if we identified threads to the debugger by their Thread*
   2392       // rather than their peer's mirror::Object*, we could fix this.
   2393       // Doing so might help us report ZOMBIE threads too.
   2394       continue;
   2395     }
   2396     if (IsInDesiredThreadGroup(thread_group, peer)) {
   2397       thread_ids->push_back(gRegistry->Add(peer));
   2398     }
   2399   }
   2400 }
   2401 
   2402 static int GetStackDepth(Thread* thread) REQUIRES_SHARED(Locks::mutator_lock_) {
   2403   struct CountStackDepthVisitor : public StackVisitor {
   2404     explicit CountStackDepthVisitor(Thread* thread_in)
   2405         : StackVisitor(thread_in, nullptr, StackVisitor::StackWalkKind::kIncludeInlinedFrames),
   2406           depth(0) {}
   2407 
   2408     // TODO: Enable annotalysis. We know lock is held in constructor, but abstraction confuses
   2409     // annotalysis.
   2410     bool VisitFrame() NO_THREAD_SAFETY_ANALYSIS {
   2411       if (!GetMethod()->IsRuntimeMethod()) {
   2412         ++depth;
   2413       }
   2414       return true;
   2415     }
   2416     size_t depth;
   2417   };
   2418 
   2419   CountStackDepthVisitor visitor(thread);
   2420   visitor.WalkStack();
   2421   return visitor.depth;
   2422 }
   2423 
   2424 JDWP::JdwpError Dbg::GetThreadFrameCount(JDWP::ObjectId thread_id, size_t* result) {
   2425   ScopedObjectAccess soa(Thread::Current());
   2426   JDWP::JdwpError error;
   2427   *result = 0;
   2428   Thread* thread = DecodeThread(soa, thread_id, &error);
   2429   if (error != JDWP::ERR_NONE) {
   2430     return error;
   2431   }
   2432   if (!IsSuspendedForDebugger(soa, thread)) {
   2433     return JDWP::ERR_THREAD_NOT_SUSPENDED;
   2434   }
   2435   *result = GetStackDepth(thread);
   2436   return JDWP::ERR_NONE;
   2437 }
   2438 
   2439 JDWP::JdwpError Dbg::GetThreadFrames(JDWP::ObjectId thread_id, size_t start_frame,
   2440                                      size_t frame_count, JDWP::ExpandBuf* buf) {
   2441   class GetFrameVisitor : public StackVisitor {
   2442    public:
   2443     GetFrameVisitor(Thread* thread, size_t start_frame_in, size_t frame_count_in,
   2444                     JDWP::ExpandBuf* buf_in)
   2445         REQUIRES_SHARED(Locks::mutator_lock_)
   2446         : StackVisitor(thread, nullptr, StackVisitor::StackWalkKind::kIncludeInlinedFrames),
   2447           depth_(0),
   2448           start_frame_(start_frame_in),
   2449           frame_count_(frame_count_in),
   2450           buf_(buf_in) {
   2451       expandBufAdd4BE(buf_, frame_count_);
   2452     }
   2453 
   2454     bool VisitFrame() OVERRIDE REQUIRES_SHARED(Locks::mutator_lock_) {
   2455       if (GetMethod()->IsRuntimeMethod()) {
   2456         return true;  // The debugger can't do anything useful with a frame that has no Method*.
   2457       }
   2458       if (depth_ >= start_frame_ + frame_count_) {
   2459         return false;
   2460       }
   2461       if (depth_ >= start_frame_) {
   2462         JDWP::FrameId frame_id(GetFrameId());
   2463         JDWP::JdwpLocation location;
   2464         SetJdwpLocation(&location, GetMethod(), GetDexPc());
   2465         VLOG(jdwp) << StringPrintf("    Frame %3zd: id=%3" PRIu64 " ", depth_, frame_id) << location;
   2466         expandBufAdd8BE(buf_, frame_id);
   2467         expandBufAddLocation(buf_, location);
   2468       }
   2469       ++depth_;
   2470       return true;
   2471     }
   2472 
   2473    private:
   2474     size_t depth_;
   2475     const size_t start_frame_;
   2476     const size_t frame_count_;
   2477     JDWP::ExpandBuf* buf_;
   2478   };
   2479 
   2480   ScopedObjectAccessUnchecked soa(Thread::Current());
   2481   JDWP::JdwpError error;
   2482   Thread* thread = DecodeThread(soa, thread_id, &error);
   2483   if (error != JDWP::ERR_NONE) {
   2484     return error;
   2485   }
   2486   if (!IsSuspendedForDebugger(soa, thread)) {
   2487     return JDWP::ERR_THREAD_NOT_SUSPENDED;
   2488   }
   2489   GetFrameVisitor visitor(thread, start_frame, frame_count, buf);
   2490   visitor.WalkStack();
   2491   return JDWP::ERR_NONE;
   2492 }
   2493 
   2494 JDWP::ObjectId Dbg::GetThreadSelfId() {
   2495   return GetThreadId(Thread::Current());
   2496 }
   2497 
   2498 JDWP::ObjectId Dbg::GetThreadId(Thread* thread) {
   2499   ScopedObjectAccessUnchecked soa(Thread::Current());
   2500   return gRegistry->Add(thread->GetPeerFromOtherThread());
   2501 }
   2502 
   2503 void Dbg::SuspendVM() {
   2504   // Avoid a deadlock between GC and debugger where GC gets suspended during GC. b/25800335.
   2505   gc::ScopedGCCriticalSection gcs(Thread::Current(),
   2506                                   gc::kGcCauseDebugger,
   2507                                   gc::kCollectorTypeDebugger);
   2508   Runtime::Current()->GetThreadList()->SuspendAllForDebugger();
   2509 }
   2510 
   2511 void Dbg::ResumeVM() {
   2512   Runtime::Current()->GetThreadList()->ResumeAllForDebugger();
   2513 }
   2514 
   2515 JDWP::JdwpError Dbg::SuspendThread(JDWP::ObjectId thread_id, bool request_suspension) {
   2516   Thread* self = Thread::Current();
   2517   ScopedLocalRef<jobject> peer(self->GetJniEnv(), nullptr);
   2518   {
   2519     ScopedObjectAccess soa(self);
   2520     JDWP::JdwpError error;
   2521     peer.reset(soa.AddLocalReference<jobject>(gRegistry->Get<mirror::Object*>(thread_id, &error)));
   2522   }
   2523   if (peer.get() == nullptr) {
   2524     return JDWP::ERR_THREAD_NOT_ALIVE;
   2525   }
   2526   // Suspend thread to build stack trace.
   2527   bool timed_out;
   2528   ThreadList* thread_list = Runtime::Current()->GetThreadList();
   2529   Thread* thread = thread_list->SuspendThreadByPeer(peer.get(),
   2530                                                     request_suspension,
   2531                                                     SuspendReason::kForDebugger,
   2532                                                     &timed_out);
   2533   if (thread != nullptr) {
   2534     return JDWP::ERR_NONE;
   2535   } else if (timed_out) {
   2536     return JDWP::ERR_INTERNAL;
   2537   } else {
   2538     return JDWP::ERR_THREAD_NOT_ALIVE;
   2539   }
   2540 }
   2541 
   2542 void Dbg::ResumeThread(JDWP::ObjectId thread_id) {
   2543   ScopedObjectAccessUnchecked soa(Thread::Current());
   2544   JDWP::JdwpError error;
   2545   mirror::Object* peer = gRegistry->Get<mirror::Object*>(thread_id, &error);
   2546   CHECK(peer != nullptr) << error;
   2547   Thread* thread;
   2548   {
   2549     MutexLock mu(soa.Self(), *Locks::thread_list_lock_);
   2550     thread = Thread::FromManagedThread(soa, peer);
   2551   }
   2552   if (thread == nullptr) {
   2553     LOG(WARNING) << "No such thread for resume: " << peer;
   2554     return;
   2555   }
   2556   bool needs_resume;
   2557   {
   2558     MutexLock mu2(soa.Self(), *Locks::thread_suspend_count_lock_);
   2559     needs_resume = thread->GetDebugSuspendCount() > 0;
   2560   }
   2561   if (needs_resume) {
   2562     bool resumed = Runtime::Current()->GetThreadList()->Resume(thread, SuspendReason::kForDebugger);
   2563     DCHECK(resumed);
   2564   }
   2565 }
   2566 
   2567 void Dbg::SuspendSelf() {
   2568   Runtime::Current()->GetThreadList()->SuspendSelfForDebugger();
   2569 }
   2570 
   2571 struct GetThisVisitor : public StackVisitor {
   2572   GetThisVisitor(Thread* thread, Context* context, JDWP::FrameId frame_id_in)
   2573       REQUIRES_SHARED(Locks::mutator_lock_)
   2574       : StackVisitor(thread, context, StackVisitor::StackWalkKind::kIncludeInlinedFrames),
   2575         this_object(nullptr),
   2576         frame_id(frame_id_in) {}
   2577 
   2578   // TODO: Enable annotalysis. We know lock is held in constructor, but abstraction confuses
   2579   // annotalysis.
   2580   virtual bool VisitFrame() NO_THREAD_SAFETY_ANALYSIS {
   2581     if (frame_id != GetFrameId()) {
   2582       return true;  // continue
   2583     } else {
   2584       this_object = GetThisObject();
   2585       return false;
   2586     }
   2587   }
   2588 
   2589   mirror::Object* this_object;
   2590   JDWP::FrameId frame_id;
   2591 };
   2592 
   2593 JDWP::JdwpError Dbg::GetThisObject(JDWP::ObjectId thread_id, JDWP::FrameId frame_id,
   2594                                    JDWP::ObjectId* result) {
   2595   ScopedObjectAccessUnchecked soa(Thread::Current());
   2596   JDWP::JdwpError error;
   2597   Thread* thread = DecodeThread(soa, thread_id, &error);
   2598   if (error != JDWP::ERR_NONE) {
   2599     return error;
   2600   }
   2601   if (!IsSuspendedForDebugger(soa, thread)) {
   2602     return JDWP::ERR_THREAD_NOT_SUSPENDED;
   2603   }
   2604   std::unique_ptr<Context> context(Context::Create());
   2605   GetThisVisitor visitor(thread, context.get(), frame_id);
   2606   visitor.WalkStack();
   2607   *result = gRegistry->Add(visitor.this_object);
   2608   return JDWP::ERR_NONE;
   2609 }
   2610 
   2611 // Walks the stack until we find the frame with the given FrameId.
   2612 class FindFrameVisitor FINAL : public StackVisitor {
   2613  public:
   2614   FindFrameVisitor(Thread* thread, Context* context, JDWP::FrameId frame_id)
   2615       REQUIRES_SHARED(Locks::mutator_lock_)
   2616       : StackVisitor(thread, context, StackVisitor::StackWalkKind::kIncludeInlinedFrames),
   2617         frame_id_(frame_id),
   2618         error_(JDWP::ERR_INVALID_FRAMEID) {}
   2619 
   2620   // TODO: Enable annotalysis. We know lock is held in constructor, but abstraction confuses
   2621   // annotalysis.
   2622   bool VisitFrame() NO_THREAD_SAFETY_ANALYSIS {
   2623     if (GetFrameId() != frame_id_) {
   2624       return true;  // Not our frame, carry on.
   2625     }
   2626     ArtMethod* m = GetMethod();
   2627     if (m->IsNative()) {
   2628       // We can't read/write local value from/into native method.
   2629       error_ = JDWP::ERR_OPAQUE_FRAME;
   2630     } else {
   2631       // We found our frame.
   2632       error_ = JDWP::ERR_NONE;
   2633     }
   2634     return false;
   2635   }
   2636 
   2637   JDWP::JdwpError GetError() const {
   2638     return error_;
   2639   }
   2640 
   2641  private:
   2642   const JDWP::FrameId frame_id_;
   2643   JDWP::JdwpError error_;
   2644 
   2645   DISALLOW_COPY_AND_ASSIGN(FindFrameVisitor);
   2646 };
   2647 
   2648 JDWP::JdwpError Dbg::GetLocalValues(JDWP::Request* request, JDWP::ExpandBuf* pReply) {
   2649   JDWP::ObjectId thread_id = request->ReadThreadId();
   2650   JDWP::FrameId frame_id = request->ReadFrameId();
   2651 
   2652   ScopedObjectAccessUnchecked soa(Thread::Current());
   2653   JDWP::JdwpError error;
   2654   Thread* thread = DecodeThread(soa, thread_id, &error);
   2655   if (error != JDWP::ERR_NONE) {
   2656     return error;
   2657   }
   2658   if (!IsSuspendedForDebugger(soa, thread)) {
   2659     return JDWP::ERR_THREAD_NOT_SUSPENDED;
   2660   }
   2661   // Find the frame with the given frame_id.
   2662   std::unique_ptr<Context> context(Context::Create());
   2663   FindFrameVisitor visitor(thread, context.get(), frame_id);
   2664   visitor.WalkStack();
   2665   if (visitor.GetError() != JDWP::ERR_NONE) {
   2666     return visitor.GetError();
   2667   }
   2668 
   2669   // Read the values from visitor's context.
   2670   int32_t slot_count = request->ReadSigned32("slot count");
   2671   expandBufAdd4BE(pReply, slot_count);     /* "int values" */
   2672   for (int32_t i = 0; i < slot_count; ++i) {
   2673     uint32_t slot = request->ReadUnsigned32("slot");
   2674     JDWP::JdwpTag reqSigByte = request->ReadTag();
   2675 
   2676     VLOG(jdwp) << "    --> slot " << slot << " " << reqSigByte;
   2677 
   2678     size_t width = Dbg::GetTagWidth(reqSigByte);
   2679     uint8_t* ptr = expandBufAddSpace(pReply, width + 1);
   2680     error = Dbg::GetLocalValue(visitor, soa, slot, reqSigByte, ptr, width);
   2681     if (error != JDWP::ERR_NONE) {
   2682       return error;
   2683     }
   2684   }
   2685   return JDWP::ERR_NONE;
   2686 }
   2687 
   2688 constexpr JDWP::JdwpError kStackFrameLocalAccessError = JDWP::ERR_ABSENT_INFORMATION;
   2689 
   2690 static std::string GetStackContextAsString(const StackVisitor& visitor)
   2691     REQUIRES_SHARED(Locks::mutator_lock_) {
   2692   return StringPrintf(" at DEX pc 0x%08x in method %s", visitor.GetDexPc(false),
   2693                       ArtMethod::PrettyMethod(visitor.GetMethod()).c_str());
   2694 }
   2695 
   2696 static JDWP::JdwpError FailGetLocalValue(const StackVisitor& visitor, uint16_t vreg,
   2697                                          JDWP::JdwpTag tag)
   2698     REQUIRES_SHARED(Locks::mutator_lock_) {
   2699   LOG(ERROR) << "Failed to read " << tag << " local from register v" << vreg
   2700              << GetStackContextAsString(visitor);
   2701   return kStackFrameLocalAccessError;
   2702 }
   2703 
   2704 JDWP::JdwpError Dbg::GetLocalValue(const StackVisitor& visitor, ScopedObjectAccessUnchecked& soa,
   2705                                    int slot, JDWP::JdwpTag tag, uint8_t* buf, size_t width) {
   2706   ArtMethod* m = visitor.GetMethod();
   2707   JDWP::JdwpError error = JDWP::ERR_NONE;
   2708   uint16_t vreg = DemangleSlot(slot, m, &error);
   2709   if (error != JDWP::ERR_NONE) {
   2710     return error;
   2711   }
   2712   // TODO: check that the tag is compatible with the actual type of the slot!
   2713   switch (tag) {
   2714     case JDWP::JT_BOOLEAN: {
   2715       CHECK_EQ(width, 1U);
   2716       uint32_t intVal;
   2717       if (!visitor.GetVReg(m, vreg, kIntVReg, &intVal)) {
   2718         return FailGetLocalValue(visitor, vreg, tag);
   2719       }
   2720       VLOG(jdwp) << "get boolean local " << vreg << " = " << intVal;
   2721       JDWP::Set1(buf + 1, intVal != 0);
   2722       break;
   2723     }
   2724     case JDWP::JT_BYTE: {
   2725       CHECK_EQ(width, 1U);
   2726       uint32_t intVal;
   2727       if (!visitor.GetVReg(m, vreg, kIntVReg, &intVal)) {
   2728         return FailGetLocalValue(visitor, vreg, tag);
   2729       }
   2730       VLOG(jdwp) << "get byte local " << vreg << " = " << intVal;
   2731       JDWP::Set1(buf + 1, intVal);
   2732       break;
   2733     }
   2734     case JDWP::JT_SHORT:
   2735     case JDWP::JT_CHAR: {
   2736       CHECK_EQ(width, 2U);
   2737       uint32_t intVal;
   2738       if (!visitor.GetVReg(m, vreg, kIntVReg, &intVal)) {
   2739         return FailGetLocalValue(visitor, vreg, tag);
   2740       }
   2741       VLOG(jdwp) << "get short/char local " << vreg << " = " << intVal;
   2742       JDWP::Set2BE(buf + 1, intVal);
   2743       break;
   2744     }
   2745     case JDWP::JT_INT: {
   2746       CHECK_EQ(width, 4U);
   2747       uint32_t intVal;
   2748       if (!visitor.GetVReg(m, vreg, kIntVReg, &intVal)) {
   2749         return FailGetLocalValue(visitor, vreg, tag);
   2750       }
   2751       VLOG(jdwp) << "get int local " << vreg << " = " << intVal;
   2752       JDWP::Set4BE(buf + 1, intVal);
   2753       break;
   2754     }
   2755     case JDWP::JT_FLOAT: {
   2756       CHECK_EQ(width, 4U);
   2757       uint32_t intVal;
   2758       if (!visitor.GetVReg(m, vreg, kFloatVReg, &intVal)) {
   2759         return FailGetLocalValue(visitor, vreg, tag);
   2760       }
   2761       VLOG(jdwp) << "get float local " << vreg << " = " << intVal;
   2762       JDWP::Set4BE(buf + 1, intVal);
   2763       break;
   2764     }
   2765     case JDWP::JT_ARRAY:
   2766     case JDWP::JT_CLASS_LOADER:
   2767     case JDWP::JT_CLASS_OBJECT:
   2768     case JDWP::JT_OBJECT:
   2769     case JDWP::JT_STRING:
   2770     case JDWP::JT_THREAD:
   2771     case JDWP::JT_THREAD_GROUP: {
   2772       CHECK_EQ(width, sizeof(JDWP::ObjectId));
   2773       uint32_t intVal;
   2774       if (!visitor.GetVReg(m, vreg, kReferenceVReg, &intVal)) {
   2775         return FailGetLocalValue(visitor, vreg, tag);
   2776       }
   2777       mirror::Object* o = reinterpret_cast<mirror::Object*>(intVal);
   2778       VLOG(jdwp) << "get " << tag << " object local " << vreg << " = " << o;
   2779       if (!Runtime::Current()->GetHeap()->IsValidObjectAddress(o)) {
   2780         LOG(FATAL) << StringPrintf("Found invalid object %#" PRIxPTR " in register v%u",
   2781                                    reinterpret_cast<uintptr_t>(o), vreg)
   2782                                    << GetStackContextAsString(visitor);
   2783         UNREACHABLE();
   2784       }
   2785       tag = TagFromObject(soa, o);
   2786       JDWP::SetObjectId(buf + 1, gRegistry->Add(o));
   2787       break;
   2788     }
   2789     case JDWP::JT_DOUBLE: {
   2790       CHECK_EQ(width, 8U);
   2791       uint64_t longVal;
   2792       if (!visitor.GetVRegPair(m, vreg, kDoubleLoVReg, kDoubleHiVReg, &longVal)) {
   2793         return FailGetLocalValue(visitor, vreg, tag);
   2794       }
   2795       VLOG(jdwp) << "get double local " << vreg << " = " << longVal;
   2796       JDWP::Set8BE(buf + 1, longVal);
   2797       break;
   2798     }
   2799     case JDWP::JT_LONG: {
   2800       CHECK_EQ(width, 8U);
   2801       uint64_t longVal;
   2802       if (!visitor.GetVRegPair(m, vreg, kLongLoVReg, kLongHiVReg, &longVal)) {
   2803         return FailGetLocalValue(visitor, vreg, tag);
   2804       }
   2805       VLOG(jdwp) << "get long local " << vreg << " = " << longVal;
   2806       JDWP::Set8BE(buf + 1, longVal);
   2807       break;
   2808     }
   2809     default:
   2810       LOG(FATAL) << "Unknown tag " << tag;
   2811       UNREACHABLE();
   2812   }
   2813 
   2814   // Prepend tag, which may have been updated.
   2815   JDWP::Set1(buf, tag);
   2816   return JDWP::ERR_NONE;
   2817 }
   2818 
   2819 JDWP::JdwpError Dbg::SetLocalValues(JDWP::Request* request) {
   2820   JDWP::ObjectId thread_id = request->ReadThreadId();
   2821   JDWP::FrameId frame_id = request->ReadFrameId();
   2822 
   2823   ScopedObjectAccessUnchecked soa(Thread::Current());
   2824   JDWP::JdwpError error;
   2825   Thread* thread = DecodeThread(soa, thread_id, &error);
   2826   if (error != JDWP::ERR_NONE) {
   2827     return error;
   2828   }
   2829   if (!IsSuspendedForDebugger(soa, thread)) {
   2830     return JDWP::ERR_THREAD_NOT_SUSPENDED;
   2831   }
   2832   // Find the frame with the given frame_id.
   2833   std::unique_ptr<Context> context(Context::Create());
   2834   FindFrameVisitor visitor(thread, context.get(), frame_id);
   2835   visitor.WalkStack();
   2836   if (visitor.GetError() != JDWP::ERR_NONE) {
   2837     return visitor.GetError();
   2838   }
   2839 
   2840   // Writes the values into visitor's context.
   2841   int32_t slot_count = request->ReadSigned32("slot count");
   2842   for (int32_t i = 0; i < slot_count; ++i) {
   2843     uint32_t slot = request->ReadUnsigned32("slot");
   2844     JDWP::JdwpTag sigByte = request->ReadTag();
   2845     size_t width = Dbg::GetTagWidth(sigByte);
   2846     uint64_t value = request->ReadValue(width);
   2847 
   2848     VLOG(jdwp) << "    --> slot " << slot << " " << sigByte << " " << value;
   2849     error = Dbg::SetLocalValue(thread, visitor, slot, sigByte, value, width);
   2850     if (error != JDWP::ERR_NONE) {
   2851       return error;
   2852     }
   2853   }
   2854   return JDWP::ERR_NONE;
   2855 }
   2856 
   2857 template<typename T>
   2858 static JDWP::JdwpError FailSetLocalValue(const StackVisitor& visitor, uint16_t vreg,
   2859                                          JDWP::JdwpTag tag, T value)
   2860     REQUIRES_SHARED(Locks::mutator_lock_) {
   2861   LOG(ERROR) << "Failed to write " << tag << " local " << value
   2862              << " (0x" << std::hex << value << ") into register v" << vreg
   2863              << GetStackContextAsString(visitor);
   2864   return kStackFrameLocalAccessError;
   2865 }
   2866 
   2867 JDWP::JdwpError Dbg::SetLocalValue(Thread* thread, StackVisitor& visitor, int slot,
   2868                                    JDWP::JdwpTag tag, uint64_t value, size_t width) {
   2869   ArtMethod* m = visitor.GetMethod();
   2870   JDWP::JdwpError error = JDWP::ERR_NONE;
   2871   uint16_t vreg = DemangleSlot(slot, m, &error);
   2872   if (error != JDWP::ERR_NONE) {
   2873     return error;
   2874   }
   2875   // TODO: check that the tag is compatible with the actual type of the slot!
   2876   switch (tag) {
   2877     case JDWP::JT_BOOLEAN:
   2878     case JDWP::JT_BYTE:
   2879       CHECK_EQ(width, 1U);
   2880       if (!visitor.SetVReg(m, vreg, static_cast<uint32_t>(value), kIntVReg)) {
   2881         return FailSetLocalValue(visitor, vreg, tag, static_cast<uint32_t>(value));
   2882       }
   2883       break;
   2884     case JDWP::JT_SHORT:
   2885     case JDWP::JT_CHAR:
   2886       CHECK_EQ(width, 2U);
   2887       if (!visitor.SetVReg(m, vreg, static_cast<uint32_t>(value), kIntVReg)) {
   2888         return FailSetLocalValue(visitor, vreg, tag, static_cast<uint32_t>(value));
   2889       }
   2890       break;
   2891     case JDWP::JT_INT:
   2892       CHECK_EQ(width, 4U);
   2893       if (!visitor.SetVReg(m, vreg, static_cast<uint32_t>(value), kIntVReg)) {
   2894         return FailSetLocalValue(visitor, vreg, tag, static_cast<uint32_t>(value));
   2895       }
   2896       break;
   2897     case JDWP::JT_FLOAT:
   2898       CHECK_EQ(width, 4U);
   2899       if (!visitor.SetVReg(m, vreg, static_cast<uint32_t>(value), kFloatVReg)) {
   2900         return FailSetLocalValue(visitor, vreg, tag, static_cast<uint32_t>(value));
   2901       }
   2902       break;
   2903     case JDWP::JT_ARRAY:
   2904     case JDWP::JT_CLASS_LOADER:
   2905     case JDWP::JT_CLASS_OBJECT:
   2906     case JDWP::JT_OBJECT:
   2907     case JDWP::JT_STRING:
   2908     case JDWP::JT_THREAD:
   2909     case JDWP::JT_THREAD_GROUP: {
   2910       CHECK_EQ(width, sizeof(JDWP::ObjectId));
   2911       mirror::Object* o = gRegistry->Get<mirror::Object*>(static_cast<JDWP::ObjectId>(value),
   2912                                                           &error);
   2913       if (error != JDWP::ERR_NONE) {
   2914         VLOG(jdwp) << tag << " object " << o << " is an invalid object";
   2915         return JDWP::ERR_INVALID_OBJECT;
   2916       }
   2917       if (!visitor.SetVReg(m, vreg, static_cast<uint32_t>(reinterpret_cast<uintptr_t>(o)),
   2918                                  kReferenceVReg)) {
   2919         return FailSetLocalValue(visitor, vreg, tag, reinterpret_cast<uintptr_t>(o));
   2920       }
   2921       break;
   2922     }
   2923     case JDWP::JT_DOUBLE: {
   2924       CHECK_EQ(width, 8U);
   2925       if (!visitor.SetVRegPair(m, vreg, value, kDoubleLoVReg, kDoubleHiVReg)) {
   2926         return FailSetLocalValue(visitor, vreg, tag, value);
   2927       }
   2928       break;
   2929     }
   2930     case JDWP::JT_LONG: {
   2931       CHECK_EQ(width, 8U);
   2932       if (!visitor.SetVRegPair(m, vreg, value, kLongLoVReg, kLongHiVReg)) {
   2933         return FailSetLocalValue(visitor, vreg, tag, value);
   2934       }
   2935       break;
   2936     }
   2937     default:
   2938       LOG(FATAL) << "Unknown tag " << tag;
   2939       UNREACHABLE();
   2940   }
   2941 
   2942   // If we set the local variable in a compiled frame, we need to trigger a deoptimization of
   2943   // the stack so we continue execution with the interpreter using the new value(s) of the updated
   2944   // local variable(s). To achieve this, we install instrumentation exit stub on each method of the
   2945   // thread's stack. The stub will cause the deoptimization to happen.
   2946   if (!visitor.IsShadowFrame() && thread->HasDebuggerShadowFrames()) {
   2947     Runtime::Current()->GetInstrumentation()->InstrumentThreadStack(thread);
   2948   }
   2949 
   2950   return JDWP::ERR_NONE;
   2951 }
   2952 
   2953 static void SetEventLocation(JDWP::EventLocation* location, ArtMethod* m, uint32_t dex_pc)
   2954     REQUIRES_SHARED(Locks::mutator_lock_) {
   2955   DCHECK(location != nullptr);
   2956   if (m == nullptr) {
   2957     memset(location, 0, sizeof(*location));
   2958   } else {
   2959     location->method = m->GetCanonicalMethod(kRuntimePointerSize);
   2960     location->dex_pc = (m->IsNative() || m->IsProxyMethod()) ? static_cast<uint32_t>(-1) : dex_pc;
   2961   }
   2962 }
   2963 
   2964 void Dbg::PostLocationEvent(ArtMethod* m, int dex_pc, mirror::Object* this_object,
   2965                             int event_flags, const JValue* return_value) {
   2966   if (!IsDebuggerActive()) {
   2967     return;
   2968   }
   2969   DCHECK(m != nullptr);
   2970   DCHECK_EQ(m->IsStatic(), this_object == nullptr);
   2971   JDWP::EventLocation location;
   2972   SetEventLocation(&location, m, dex_pc);
   2973 
   2974   // We need to be sure no exception is pending when calling JdwpState::PostLocationEvent.
   2975   // This is required to be able to call JNI functions to create JDWP ids. To achieve this,
   2976   // we temporarily clear the current thread's exception (if any) and will restore it after
   2977   // the call.
   2978   // Note: the only way to get a pending exception here is to suspend on a move-exception
   2979   // instruction.
   2980   Thread* const self = Thread::Current();
   2981   StackHandleScope<1> hs(self);
   2982   Handle<mirror::Throwable> pending_exception(hs.NewHandle(self->GetException()));
   2983   self->ClearException();
   2984   if (kIsDebugBuild && pending_exception != nullptr) {
   2985     const Instruction& instr = location.method->DexInstructions().InstructionAt(location.dex_pc);
   2986     CHECK_EQ(Instruction::MOVE_EXCEPTION, instr.Opcode());
   2987   }
   2988 
   2989   gJdwpState->PostLocationEvent(&location, this_object, event_flags, return_value);
   2990 
   2991   if (pending_exception != nullptr) {
   2992     self->SetException(pending_exception.Get());
   2993   }
   2994 }
   2995 
   2996 void Dbg::PostFieldAccessEvent(ArtMethod* m, int dex_pc,
   2997                                mirror::Object* this_object, ArtField* f) {
   2998   // TODO We should send events for native methods.
   2999   if (!IsDebuggerActive() || m->IsNative()) {
   3000     return;
   3001   }
   3002   DCHECK(m != nullptr);
   3003   DCHECK(f != nullptr);
   3004   JDWP::EventLocation location;
   3005   SetEventLocation(&location, m, dex_pc);
   3006 
   3007   gJdwpState->PostFieldEvent(&location, f, this_object, nullptr, false);
   3008 }
   3009 
   3010 void Dbg::PostFieldModificationEvent(ArtMethod* m, int dex_pc,
   3011                                      mirror::Object* this_object, ArtField* f,
   3012                                      const JValue* field_value) {
   3013   // TODO We should send events for native methods.
   3014   if (!IsDebuggerActive() || m->IsNative()) {
   3015     return;
   3016   }
   3017   DCHECK(m != nullptr);
   3018   DCHECK(f != nullptr);
   3019   DCHECK(field_value != nullptr);
   3020   JDWP::EventLocation location;
   3021   SetEventLocation(&location, m, dex_pc);
   3022 
   3023   gJdwpState->PostFieldEvent(&location, f, this_object, field_value, true);
   3024 }
   3025 
   3026 /**
   3027  * Finds the location where this exception will be caught. We search until we reach the top
   3028  * frame, in which case this exception is considered uncaught.
   3029  */
   3030 class CatchLocationFinder : public StackVisitor {
   3031  public:
   3032   CatchLocationFinder(Thread* self, const Handle<mirror::Throwable>& exception, Context* context)
   3033       REQUIRES_SHARED(Locks::mutator_lock_)
   3034     : StackVisitor(self, context, StackVisitor::StackWalkKind::kIncludeInlinedFrames),
   3035       exception_(exception),
   3036       handle_scope_(self),
   3037       this_at_throw_(handle_scope_.NewHandle<mirror::Object>(nullptr)),
   3038       catch_method_(nullptr),
   3039       throw_method_(nullptr),
   3040       catch_dex_pc_(dex::kDexNoIndex),
   3041       throw_dex_pc_(dex::kDexNoIndex) {
   3042   }
   3043 
   3044   bool VisitFrame() OVERRIDE REQUIRES_SHARED(Locks::mutator_lock_) {
   3045     ArtMethod* method = GetMethod();
   3046     DCHECK(method != nullptr);
   3047     if (method->IsRuntimeMethod()) {
   3048       // Ignore callee save method.
   3049       DCHECK(method->IsCalleeSaveMethod());
   3050       return true;
   3051     }
   3052 
   3053     uint32_t dex_pc = GetDexPc();
   3054     if (throw_method_ == nullptr) {
   3055       // First Java method found. It is either the method that threw the exception,
   3056       // or the Java native method that is reporting an exception thrown by
   3057       // native code.
   3058       this_at_throw_.Assign(GetThisObject());
   3059       throw_method_ = method;
   3060       throw_dex_pc_ = dex_pc;
   3061     }
   3062 
   3063     if (dex_pc != dex::kDexNoIndex) {
   3064       StackHandleScope<1> hs(GetThread());
   3065       uint32_t found_dex_pc;
   3066       Handle<mirror::Class> exception_class(hs.NewHandle(exception_->GetClass()));
   3067       bool unused_clear_exception;
   3068       found_dex_pc = method->FindCatchBlock(exception_class, dex_pc, &unused_clear_exception);
   3069       if (found_dex_pc != dex::kDexNoIndex) {
   3070         catch_method_ = method;
   3071         catch_dex_pc_ = found_dex_pc;
   3072         return false;  // End stack walk.
   3073       }
   3074     }
   3075     return true;  // Continue stack walk.
   3076   }
   3077 
   3078   ArtMethod* GetCatchMethod() REQUIRES_SHARED(Locks::mutator_lock_) {
   3079     return catch_method_;
   3080   }
   3081 
   3082   ArtMethod* GetThrowMethod() REQUIRES_SHARED(Locks::mutator_lock_) {
   3083     return throw_method_;
   3084   }
   3085 
   3086   mirror::Object* GetThisAtThrow() REQUIRES_SHARED(Locks::mutator_lock_) {
   3087     return this_at_throw_.Get();
   3088   }
   3089 
   3090   uint32_t GetCatchDexPc() const {
   3091     return catch_dex_pc_;
   3092   }
   3093 
   3094   uint32_t GetThrowDexPc() const {
   3095     return throw_dex_pc_;
   3096   }
   3097 
   3098  private:
   3099   const Handle<mirror::Throwable>& exception_;
   3100   StackHandleScope<1> handle_scope_;
   3101   MutableHandle<mirror::Object> this_at_throw_;
   3102   ArtMethod* catch_method_;
   3103   ArtMethod* throw_method_;
   3104   uint32_t catch_dex_pc_;
   3105   uint32_t throw_dex_pc_;
   3106 
   3107   DISALLOW_COPY_AND_ASSIGN(CatchLocationFinder);
   3108 };
   3109 
   3110 void Dbg::PostException(mirror::Throwable* exception_object) {
   3111   if (!IsDebuggerActive()) {
   3112     return;
   3113   }
   3114   Thread* const self = Thread::Current();
   3115   StackHandleScope<1> handle_scope(self);
   3116   Handle<mirror::Throwable> h_exception(handle_scope.NewHandle(exception_object));
   3117   std::unique_ptr<Context> context(Context::Create());
   3118   CatchLocationFinder clf(self, h_exception, context.get());
   3119   clf.WalkStack(/* include_transitions */ false);
   3120   JDWP::EventLocation exception_throw_location;
   3121   SetEventLocation(&exception_throw_location, clf.GetThrowMethod(), clf.GetThrowDexPc());
   3122   JDWP::EventLocation exception_catch_location;
   3123   SetEventLocation(&exception_catch_location, clf.GetCatchMethod(), clf.GetCatchDexPc());
   3124 
   3125   gJdwpState->PostException(&exception_throw_location, h_exception.Get(), &exception_catch_location,
   3126                             clf.GetThisAtThrow());
   3127 }
   3128 
   3129 void Dbg::PostClassPrepare(mirror::Class* c) {
   3130   if (!IsDebuggerActive()) {
   3131     return;
   3132   }
   3133   gJdwpState->PostClassPrepare(c);
   3134 }
   3135 
   3136 void Dbg::UpdateDebugger(Thread* thread, mirror::Object* this_object,
   3137                          ArtMethod* m, uint32_t dex_pc,
   3138                          int event_flags, const JValue* return_value) {
   3139   if (!IsDebuggerActive() || dex_pc == static_cast<uint32_t>(-2) /* fake method exit */) {
   3140     return;
   3141   }
   3142 
   3143   if (IsBreakpoint(m, dex_pc)) {
   3144     event_flags |= kBreakpoint;
   3145   }
   3146 
   3147   // If the debugger is single-stepping one of our threads, check to
   3148   // see if we're that thread and we've reached a step point.
   3149   const SingleStepControl* single_step_control = thread->GetSingleStepControl();
   3150   if (single_step_control != nullptr) {
   3151     CHECK(!m->IsNative());
   3152     if (single_step_control->GetStepDepth() == JDWP::SD_INTO) {
   3153       // Step into method calls.  We break when the line number
   3154       // or method pointer changes.  If we're in SS_MIN mode, we
   3155       // always stop.
   3156       if (single_step_control->GetMethod() != m) {
   3157         event_flags |= kSingleStep;
   3158         VLOG(jdwp) << "SS new method";
   3159       } else if (single_step_control->GetStepSize() == JDWP::SS_MIN) {
   3160         event_flags |= kSingleStep;
   3161         VLOG(jdwp) << "SS new instruction";
   3162       } else if (single_step_control->ContainsDexPc(dex_pc)) {
   3163         event_flags |= kSingleStep;
   3164         VLOG(jdwp) << "SS new line";
   3165       }
   3166     } else if (single_step_control->GetStepDepth() == JDWP::SD_OVER) {
   3167       // Step over method calls.  We break when the line number is
   3168       // different and the frame depth is <= the original frame
   3169       // depth.  (We can't just compare on the method, because we
   3170       // might get unrolled past it by an exception, and it's tricky
   3171       // to identify recursion.)
   3172 
   3173       int stack_depth = GetStackDepth(thread);
   3174 
   3175       if (stack_depth < single_step_control->GetStackDepth()) {
   3176         // Popped up one or more frames, always trigger.
   3177         event_flags |= kSingleStep;
   3178         VLOG(jdwp) << "SS method pop";
   3179       } else if (stack_depth == single_step_control->GetStackDepth()) {
   3180         // Same depth, see if we moved.
   3181         if (single_step_control->GetStepSize() == JDWP::SS_MIN) {
   3182           event_flags |= kSingleStep;
   3183           VLOG(jdwp) << "SS new instruction";
   3184         } else if (single_step_control->ContainsDexPc(dex_pc)) {
   3185           event_flags |= kSingleStep;
   3186           VLOG(jdwp) << "SS new line";
   3187         }
   3188       }
   3189     } else {
   3190       CHECK_EQ(single_step_control->GetStepDepth(), JDWP::SD_OUT);
   3191       // Return from the current method.  We break when the frame
   3192       // depth pops up.
   3193 
   3194       // This differs from the "method exit" break in that it stops
   3195       // with the PC at the next instruction in the returned-to
   3196       // function, rather than the end of the returning function.
   3197 
   3198       int stack_depth = GetStackDepth(thread);
   3199       if (stack_depth < single_step_control->GetStackDepth()) {
   3200         event_flags |= kSingleStep;
   3201         VLOG(jdwp) << "SS method pop";
   3202       }
   3203     }
   3204   }
   3205 
   3206   // If there's something interesting going on, see if it matches one
   3207   // of the debugger filters.
   3208   if (event_flags != 0) {
   3209     Dbg::PostLocationEvent(m, dex_pc, this_object, event_flags, return_value);
   3210   }
   3211 }
   3212 
   3213 size_t* Dbg::GetReferenceCounterForEvent(uint32_t instrumentation_event) {
   3214   switch (instrumentation_event) {
   3215     case instrumentation::Instrumentation::kMethodEntered:
   3216       return &method_enter_event_ref_count_;
   3217     case instrumentation::Instrumentation::kMethodExited:
   3218       return &method_exit_event_ref_count_;
   3219     case instrumentation::Instrumentation::kDexPcMoved:
   3220       return &dex_pc_change_event_ref_count_;
   3221     case instrumentation::Instrumentation::kFieldRead:
   3222       return &field_read_event_ref_count_;
   3223     case instrumentation::Instrumentation::kFieldWritten:
   3224       return &field_write_event_ref_count_;
   3225     case instrumentation::Instrumentation::kExceptionThrown:
   3226       return &exception_catch_event_ref_count_;
   3227     default:
   3228       return nullptr;
   3229   }
   3230 }
   3231 
   3232 // Process request while all mutator threads are suspended.
   3233 void Dbg::ProcessDeoptimizationRequest(const DeoptimizationRequest& request) {
   3234   instrumentation::Instrumentation* instrumentation = Runtime::Current()->GetInstrumentation();
   3235   switch (request.GetKind()) {
   3236     case DeoptimizationRequest::kNothing:
   3237       LOG(WARNING) << "Ignoring empty deoptimization request.";
   3238       break;
   3239     case DeoptimizationRequest::kRegisterForEvent:
   3240       VLOG(jdwp) << StringPrintf("Add debugger as listener for instrumentation event 0x%x",
   3241                                  request.InstrumentationEvent());
   3242       instrumentation->AddListener(&gDebugInstrumentationListener, request.InstrumentationEvent());
   3243       instrumentation_events_ |= request.InstrumentationEvent();
   3244       break;
   3245     case DeoptimizationRequest::kUnregisterForEvent:
   3246       VLOG(jdwp) << StringPrintf("Remove debugger as listener for instrumentation event 0x%x",
   3247                                  request.InstrumentationEvent());
   3248       instrumentation->RemoveListener(&gDebugInstrumentationListener,
   3249                                       request.InstrumentationEvent());
   3250       instrumentation_events_ &= ~request.InstrumentationEvent();
   3251       break;
   3252     case DeoptimizationRequest::kFullDeoptimization:
   3253       VLOG(jdwp) << "Deoptimize the world ...";
   3254       instrumentation->DeoptimizeEverything(kDbgInstrumentationKey);
   3255       VLOG(jdwp) << "Deoptimize the world DONE";
   3256       break;
   3257     case DeoptimizationRequest::kFullUndeoptimization:
   3258       VLOG(jdwp) << "Undeoptimize the world ...";
   3259       instrumentation->UndeoptimizeEverything(kDbgInstrumentationKey);
   3260       VLOG(jdwp) << "Undeoptimize the world DONE";
   3261       break;
   3262     case DeoptimizationRequest::kSelectiveDeoptimization:
   3263       VLOG(jdwp) << "Deoptimize method " << ArtMethod::PrettyMethod(request.Method()) << " ...";
   3264       instrumentation->Deoptimize(request.Method());
   3265       VLOG(jdwp) << "Deoptimize method " << ArtMethod::PrettyMethod(request.Method()) << " DONE";
   3266       break;
   3267     case DeoptimizationRequest::kSelectiveUndeoptimization:
   3268       VLOG(jdwp) << "Undeoptimize method " << ArtMethod::PrettyMethod(request.Method()) << " ...";
   3269       instrumentation->Undeoptimize(request.Method());
   3270       VLOG(jdwp) << "Undeoptimize method " << ArtMethod::PrettyMethod(request.Method()) << " DONE";
   3271       break;
   3272     default:
   3273       LOG(FATAL) << "Unsupported deoptimization request kind " << request.GetKind();
   3274       break;
   3275   }
   3276 }
   3277 
   3278 void Dbg::RequestDeoptimization(const DeoptimizationRequest& req) {
   3279   if (req.GetKind() == DeoptimizationRequest::kNothing) {
   3280     // Nothing to do.
   3281     return;
   3282   }
   3283   MutexLock mu(Thread::Current(), *Locks::deoptimization_lock_);
   3284   RequestDeoptimizationLocked(req);
   3285 }
   3286 
   3287 void Dbg::RequestDeoptimizationLocked(const DeoptimizationRequest& req) {
   3288   switch (req.GetKind()) {
   3289     case DeoptimizationRequest::kRegisterForEvent: {
   3290       DCHECK_NE(req.InstrumentationEvent(), 0u);
   3291       size_t* counter = GetReferenceCounterForEvent(req.InstrumentationEvent());
   3292       CHECK(counter != nullptr) << StringPrintf("No counter for instrumentation event 0x%x",
   3293                                                 req.InstrumentationEvent());
   3294       if (*counter == 0) {
   3295         VLOG(jdwp) << StringPrintf("Queue request #%zd to start listening to instrumentation event 0x%x",
   3296                                    deoptimization_requests_.size(), req.InstrumentationEvent());
   3297         deoptimization_requests_.push_back(req);
   3298       }
   3299       *counter = *counter + 1;
   3300       break;
   3301     }
   3302     case DeoptimizationRequest::kUnregisterForEvent: {
   3303       DCHECK_NE(req.InstrumentationEvent(), 0u);
   3304       size_t* counter = GetReferenceCounterForEvent(req.InstrumentationEvent());
   3305       CHECK(counter != nullptr) << StringPrintf("No counter for instrumentation event 0x%x",
   3306                                                 req.InstrumentationEvent());
   3307       *counter = *counter - 1;
   3308       if (*counter == 0) {
   3309         VLOG(jdwp) << StringPrintf("Queue request #%zd to stop listening to instrumentation event 0x%x",
   3310                                    deoptimization_requests_.size(), req.InstrumentationEvent());
   3311         deoptimization_requests_.push_back(req);
   3312       }
   3313       break;
   3314     }
   3315     case DeoptimizationRequest::kFullDeoptimization: {
   3316       DCHECK(req.Method() == nullptr);
   3317       if (full_deoptimization_event_count_ == 0) {
   3318         VLOG(jdwp) << "Queue request #" << deoptimization_requests_.size()
   3319                    << " for full deoptimization";
   3320         deoptimization_requests_.push_back(req);
   3321       }
   3322       ++full_deoptimization_event_count_;
   3323       break;
   3324     }
   3325     case DeoptimizationRequest::kFullUndeoptimization: {
   3326       DCHECK(req.Method() == nullptr);
   3327       DCHECK_GT(full_deoptimization_event_count_, 0U);
   3328       --full_deoptimization_event_count_;
   3329       if (full_deoptimization_event_count_ == 0) {
   3330         VLOG(jdwp) << "Queue request #" << deoptimization_requests_.size()
   3331                    << " for full undeoptimization";
   3332         deoptimization_requests_.push_back(req);
   3333       }
   3334       break;
   3335     }
   3336     case DeoptimizationRequest::kSelectiveDeoptimization: {
   3337       DCHECK(req.Method() != nullptr);
   3338       VLOG(jdwp) << "Queue request #" << deoptimization_requests_.size()
   3339                  << " for deoptimization of " << req.Method()->PrettyMethod();
   3340       deoptimization_requests_.push_back(req);
   3341       break;
   3342     }
   3343     case DeoptimizationRequest::kSelectiveUndeoptimization: {
   3344       DCHECK(req.Method() != nullptr);
   3345       VLOG(jdwp) << "Queue request #" << deoptimization_requests_.size()
   3346                  << " for undeoptimization of " << req.Method()->PrettyMethod();
   3347       deoptimization_requests_.push_back(req);
   3348       break;
   3349     }
   3350     default: {
   3351       LOG(FATAL) << "Unknown deoptimization request kind " << req.GetKind();
   3352       break;
   3353     }
   3354   }
   3355 }
   3356 
   3357 void Dbg::ManageDeoptimization() {
   3358   Thread* const self = Thread::Current();
   3359   {
   3360     // Avoid suspend/resume if there is no pending request.
   3361     MutexLock mu(self, *Locks::deoptimization_lock_);
   3362     if (deoptimization_requests_.empty()) {
   3363       return;
   3364     }
   3365   }
   3366   CHECK_EQ(self->GetState(), kRunnable);
   3367   ScopedThreadSuspension sts(self, kWaitingForDeoptimization);
   3368   // Required for ProcessDeoptimizationRequest.
   3369   gc::ScopedGCCriticalSection gcs(self,
   3370                                   gc::kGcCauseInstrumentation,
   3371                                   gc::kCollectorTypeInstrumentation);
   3372   // We need to suspend mutator threads first.
   3373   ScopedSuspendAll ssa(__FUNCTION__);
   3374   const ThreadState old_state = self->SetStateUnsafe(kRunnable);
   3375   {
   3376     MutexLock mu(self, *Locks::deoptimization_lock_);
   3377     size_t req_index = 0;
   3378     for (DeoptimizationRequest& request : deoptimization_requests_) {
   3379       VLOG(jdwp) << "Process deoptimization request #" << req_index++;
   3380       ProcessDeoptimizationRequest(request);
   3381     }
   3382     deoptimization_requests_.clear();
   3383   }
   3384   CHECK_EQ(self->SetStateUnsafe(old_state), kRunnable);
   3385 }
   3386 
   3387 static const Breakpoint* FindFirstBreakpointForMethod(ArtMethod* m)
   3388     REQUIRES_SHARED(Locks::mutator_lock_, Locks::breakpoint_lock_) {
   3389   for (Breakpoint& breakpoint : gBreakpoints) {
   3390     if (breakpoint.IsInMethod(m)) {
   3391       return &breakpoint;
   3392     }
   3393   }
   3394   return nullptr;
   3395 }
   3396 
   3397 bool Dbg::MethodHasAnyBreakpoints(ArtMethod* method) {
   3398   ReaderMutexLock mu(Thread::Current(), *Locks::breakpoint_lock_);
   3399   return FindFirstBreakpointForMethod(method) != nullptr;
   3400 }
   3401 
   3402 // Sanity checks all existing breakpoints on the same method.
   3403 static void SanityCheckExistingBreakpoints(ArtMethod* m,
   3404                                            DeoptimizationRequest::Kind deoptimization_kind)
   3405     REQUIRES_SHARED(Locks::mutator_lock_, Locks::breakpoint_lock_) {
   3406   for (const Breakpoint& breakpoint : gBreakpoints) {
   3407     if (breakpoint.IsInMethod(m)) {
   3408       CHECK_EQ(deoptimization_kind, breakpoint.GetDeoptimizationKind());
   3409     }
   3410   }
   3411   instrumentation::Instrumentation* instrumentation = Runtime::Current()->GetInstrumentation();
   3412   if (deoptimization_kind == DeoptimizationRequest::kFullDeoptimization) {
   3413     // We should have deoptimized everything but not "selectively" deoptimized this method.
   3414     CHECK(instrumentation->AreAllMethodsDeoptimized());
   3415     CHECK(!instrumentation->IsDeoptimized(m));
   3416   } else if (deoptimization_kind == DeoptimizationRequest::kSelectiveDeoptimization) {
   3417     // We should have "selectively" deoptimized this method.
   3418     // Note: while we have not deoptimized everything for this method, we may have done it for
   3419     // another event.
   3420     CHECK(instrumentation->IsDeoptimized(m));
   3421   } else {
   3422     // This method does not require deoptimization.
   3423     CHECK_EQ(deoptimization_kind, DeoptimizationRequest::kNothing);
   3424     CHECK(!instrumentation->IsDeoptimized(m));
   3425   }
   3426 }
   3427 
   3428 // Returns the deoptimization kind required to set a breakpoint in a method.
   3429 // If a breakpoint has already been set, we also return the first breakpoint
   3430 // through the given 'existing_brkpt' pointer.
   3431 static DeoptimizationRequest::Kind GetRequiredDeoptimizationKind(Thread* self,
   3432                                                                  ArtMethod* m,
   3433                                                                  const Breakpoint** existing_brkpt)
   3434     REQUIRES_SHARED(Locks::mutator_lock_) {
   3435   if (!Dbg::RequiresDeoptimization()) {
   3436     // We already run in interpreter-only mode so we don't need to deoptimize anything.
   3437     VLOG(jdwp) << "No need for deoptimization when fully running with interpreter for method "
   3438                << ArtMethod::PrettyMethod(m);
   3439     return DeoptimizationRequest::kNothing;
   3440   }
   3441   const Breakpoint* first_breakpoint;
   3442   {
   3443     ReaderMutexLock mu(self, *Locks::breakpoint_lock_);
   3444     first_breakpoint = FindFirstBreakpointForMethod(m);
   3445     *existing_brkpt = first_breakpoint;
   3446   }
   3447 
   3448   if (first_breakpoint == nullptr) {
   3449     // There is no breakpoint on this method yet: we need to deoptimize. If this method is default,
   3450     // we deoptimize everything; otherwise we deoptimize only this method. We
   3451     // deoptimize with defaults because we do not know everywhere they are used. It is possible some
   3452     // of the copies could be missed.
   3453     // TODO Deoptimizing on default methods might not be necessary in all cases.
   3454     bool need_full_deoptimization = m->IsDefault();
   3455     if (need_full_deoptimization) {
   3456       VLOG(jdwp) << "Need full deoptimization because of copying of method "
   3457                  << ArtMethod::PrettyMethod(m);
   3458       return DeoptimizationRequest::kFullDeoptimization;
   3459     } else {
   3460       // We don't need to deoptimize if the method has not been compiled.
   3461       const bool is_compiled = m->HasAnyCompiledCode();
   3462       if (is_compiled) {
   3463         VLOG(jdwp) << "Need selective deoptimization for compiled method "
   3464                    << ArtMethod::PrettyMethod(m);
   3465         return DeoptimizationRequest::kSelectiveDeoptimization;
   3466       } else {
   3467         // Method is not compiled: we don't need to deoptimize.
   3468         VLOG(jdwp) << "No need for deoptimization for non-compiled method "
   3469                    << ArtMethod::PrettyMethod(m);
   3470         return DeoptimizationRequest::kNothing;
   3471       }
   3472     }
   3473   } else {
   3474     // There is at least one breakpoint for this method: we don't need to deoptimize.
   3475     // Let's check that all breakpoints are configured the same way for deoptimization.
   3476     VLOG(jdwp) << "Breakpoint already set: no deoptimization is required";
   3477     DeoptimizationRequest::Kind deoptimization_kind = first_breakpoint->GetDeoptimizationKind();
   3478     if (kIsDebugBuild) {
   3479       ReaderMutexLock mu(self, *Locks::breakpoint_lock_);
   3480       SanityCheckExistingBreakpoints(m, deoptimization_kind);
   3481     }
   3482     return DeoptimizationRequest::kNothing;
   3483   }
   3484 }
   3485 
   3486 // Installs a breakpoint at the specified location. Also indicates through the deoptimization
   3487 // request if we need to deoptimize.
   3488 void Dbg::WatchLocation(const JDWP::JdwpLocation* location, DeoptimizationRequest* req) {
   3489   Thread* const self = Thread::Current();
   3490   ArtMethod* m = FromMethodId(location->method_id);
   3491   DCHECK(m != nullptr) << "No method for method id " << location->method_id;
   3492 
   3493   const Breakpoint* existing_breakpoint = nullptr;
   3494   const DeoptimizationRequest::Kind deoptimization_kind =
   3495       GetRequiredDeoptimizationKind(self, m, &existing_breakpoint);
   3496   req->SetKind(deoptimization_kind);
   3497   if (deoptimization_kind == DeoptimizationRequest::kSelectiveDeoptimization) {
   3498     req->SetMethod(m);
   3499   } else {
   3500     CHECK(deoptimization_kind == DeoptimizationRequest::kNothing ||
   3501           deoptimization_kind == DeoptimizationRequest::kFullDeoptimization);
   3502     req->SetMethod(nullptr);
   3503   }
   3504 
   3505   {
   3506     WriterMutexLock mu(self, *Locks::breakpoint_lock_);
   3507     // If there is at least one existing breakpoint on the same method, the new breakpoint
   3508     // must have the same deoptimization kind than the existing breakpoint(s).
   3509     DeoptimizationRequest::Kind breakpoint_deoptimization_kind;
   3510     if (existing_breakpoint != nullptr) {
   3511       breakpoint_deoptimization_kind = existing_breakpoint->GetDeoptimizationKind();
   3512     } else {
   3513       breakpoint_deoptimization_kind = deoptimization_kind;
   3514     }
   3515     gBreakpoints.push_back(Breakpoint(m, location->dex_pc, breakpoint_deoptimization_kind));
   3516     VLOG(jdwp) << "Set breakpoint #" << (gBreakpoints.size() - 1) << ": "
   3517                << gBreakpoints[gBreakpoints.size() - 1];
   3518   }
   3519 }
   3520 
   3521 // Uninstalls a breakpoint at the specified location. Also indicates through the deoptimization
   3522 // request if we need to undeoptimize.
   3523 void Dbg::UnwatchLocation(const JDWP::JdwpLocation* location, DeoptimizationRequest* req) {
   3524   WriterMutexLock mu(Thread::Current(), *Locks::breakpoint_lock_);
   3525   ArtMethod* m = FromMethodId(location->method_id);
   3526   DCHECK(m != nullptr) << "No method for method id " << location->method_id;
   3527   DeoptimizationRequest::Kind deoptimization_kind = DeoptimizationRequest::kNothing;
   3528   for (size_t i = 0, e = gBreakpoints.size(); i < e; ++i) {
   3529     if (gBreakpoints[i].DexPc() == location->dex_pc && gBreakpoints[i].IsInMethod(m)) {
   3530       VLOG(jdwp) << "Removed breakpoint #" << i << ": " << gBreakpoints[i];
   3531       deoptimization_kind = gBreakpoints[i].GetDeoptimizationKind();
   3532       DCHECK_EQ(deoptimization_kind == DeoptimizationRequest::kSelectiveDeoptimization,
   3533                 Runtime::Current()->GetInstrumentation()->IsDeoptimized(m));
   3534       gBreakpoints.erase(gBreakpoints.begin() + i);
   3535       break;
   3536     }
   3537   }
   3538   const Breakpoint* const existing_breakpoint = FindFirstBreakpointForMethod(m);
   3539   if (existing_breakpoint == nullptr) {
   3540     // There is no more breakpoint on this method: we need to undeoptimize.
   3541     if (deoptimization_kind == DeoptimizationRequest::kFullDeoptimization) {
   3542       // This method required full deoptimization: we need to undeoptimize everything.
   3543       req->SetKind(DeoptimizationRequest::kFullUndeoptimization);
   3544       req->SetMethod(nullptr);
   3545     } else if (deoptimization_kind == DeoptimizationRequest::kSelectiveDeoptimization) {
   3546       // This method required selective deoptimization: we need to undeoptimize only that method.
   3547       req->SetKind(DeoptimizationRequest::kSelectiveUndeoptimization);
   3548       req->SetMethod(m);
   3549     } else {
   3550       // This method had no need for deoptimization: do nothing.
   3551       CHECK_EQ(deoptimization_kind, DeoptimizationRequest::kNothing);
   3552       req->SetKind(DeoptimizationRequest::kNothing);
   3553       req->SetMethod(nullptr);
   3554     }
   3555   } else {
   3556     // There is at least one breakpoint for this method: we don't need to undeoptimize.
   3557     req->SetKind(DeoptimizationRequest::kNothing);
   3558     req->SetMethod(nullptr);
   3559     if (kIsDebugBuild) {
   3560       SanityCheckExistingBreakpoints(m, deoptimization_kind);
   3561     }
   3562   }
   3563 }
   3564 
   3565 bool Dbg::IsForcedInterpreterNeededForCallingImpl(Thread* thread, ArtMethod* m) {
   3566   const SingleStepControl* const ssc = thread->GetSingleStepControl();
   3567   if (ssc == nullptr) {
   3568     // If we are not single-stepping, then we don't have to force interpreter.
   3569     return false;
   3570   }
   3571   if (Runtime::Current()->GetInstrumentation()->InterpretOnly()) {
   3572     // If we are in interpreter only mode, then we don't have to force interpreter.
   3573     return false;
   3574   }
   3575 
   3576   if (!m->IsNative() && !m->IsProxyMethod()) {
   3577     // If we want to step into a method, then we have to force interpreter on that call.
   3578     if (ssc->GetStepDepth() == JDWP::SD_INTO) {
   3579       return true;
   3580     }
   3581   }
   3582   return false;
   3583 }
   3584 
   3585 bool Dbg::IsForcedInterpreterNeededForResolutionImpl(Thread* thread, ArtMethod* m) {
   3586   instrumentation::Instrumentation* const instrumentation =
   3587       Runtime::Current()->GetInstrumentation();
   3588   // If we are in interpreter only mode, then we don't have to force interpreter.
   3589   if (instrumentation->InterpretOnly()) {
   3590     return false;
   3591   }
   3592   // We can only interpret pure Java method.
   3593   if (m->IsNative() || m->IsProxyMethod()) {
   3594     return false;
   3595   }
   3596   const SingleStepControl* const ssc = thread->GetSingleStepControl();
   3597   if (ssc != nullptr) {
   3598     // If we want to step into a method, then we have to force interpreter on that call.
   3599     if (ssc->GetStepDepth() == JDWP::SD_INTO) {
   3600       return true;
   3601     }
   3602     // If we are stepping out from a static initializer, by issuing a step
   3603     // in or step over, that was implicitly invoked by calling a static method,
   3604     // then we need to step into that method. Having a lower stack depth than
   3605     // the one the single step control has indicates that the step originates
   3606     // from the static initializer.
   3607     if (ssc->GetStepDepth() != JDWP::SD_OUT &&
   3608         ssc->GetStackDepth() > GetStackDepth(thread)) {
   3609       return true;
   3610     }
   3611   }
   3612   // There are cases where we have to force interpreter on deoptimized methods,
   3613   // because in some cases the call will not be performed by invoking an entry
   3614   // point that has been replaced by the deoptimization, but instead by directly
   3615   // invoking the compiled code of the method, for example.
   3616   return instrumentation->IsDeoptimized(m);
   3617 }
   3618 
   3619 bool Dbg::IsForcedInstrumentationNeededForResolutionImpl(Thread* thread, ArtMethod* m) {
   3620   // The upcall can be null and in that case we don't need to do anything.
   3621   if (m == nullptr) {
   3622     return false;
   3623   }
   3624   instrumentation::Instrumentation* const instrumentation =
   3625       Runtime::Current()->GetInstrumentation();
   3626   // If we are in interpreter only mode, then we don't have to force interpreter.
   3627   if (instrumentation->InterpretOnly()) {
   3628     return false;
   3629   }
   3630   // We can only interpret pure Java method.
   3631   if (m->IsNative() || m->IsProxyMethod()) {
   3632     return false;
   3633   }
   3634   const SingleStepControl* const ssc = thread->GetSingleStepControl();
   3635   if (ssc != nullptr) {
   3636     // If we are stepping out from a static initializer, by issuing a step
   3637     // out, that was implicitly invoked by calling a static method, then we
   3638     // need to step into the caller of that method. Having a lower stack
   3639     // depth than the one the single step control has indicates that the
   3640     // step originates from the static initializer.
   3641     if (ssc->GetStepDepth() == JDWP::SD_OUT &&
   3642         ssc->GetStackDepth() > GetStackDepth(thread)) {
   3643       return true;
   3644     }
   3645   }
   3646   // If we are returning from a static intializer, that was implicitly
   3647   // invoked by calling a static method and the caller is deoptimized,
   3648   // then we have to deoptimize the stack without forcing interpreter
   3649   // on the static method that was called originally. This problem can
   3650   // be solved easily by forcing instrumentation on the called method,
   3651   // because the instrumentation exit hook will recognise the need of
   3652   // stack deoptimization by calling IsForcedInterpreterNeededForUpcall.
   3653   return instrumentation->IsDeoptimized(m);
   3654 }
   3655 
   3656 bool Dbg::IsForcedInterpreterNeededForUpcallImpl(Thread* thread, ArtMethod* m) {
   3657   // The upcall can be null and in that case we don't need to do anything.
   3658   if (m == nullptr) {
   3659     return false;
   3660   }
   3661   instrumentation::Instrumentation* const instrumentation =
   3662       Runtime::Current()->GetInstrumentation();
   3663   // If we are in interpreter only mode, then we don't have to force interpreter.
   3664   if (instrumentation->InterpretOnly()) {
   3665     return false;
   3666   }
   3667   // We can only interpret pure Java method.
   3668   if (m->IsNative() || m->IsProxyMethod()) {
   3669     return false;
   3670   }
   3671   const SingleStepControl* const ssc = thread->GetSingleStepControl();
   3672   if (ssc != nullptr) {
   3673     // The debugger is not interested in what is happening under the level
   3674     // of the step, thus we only force interpreter when we are not below of
   3675     // the step.
   3676     if (ssc->GetStackDepth() >= GetStackDepth(thread)) {
   3677       return true;
   3678     }
   3679   }
   3680   if (thread->HasDebuggerShadowFrames()) {
   3681     // We need to deoptimize the stack for the exception handling flow so that
   3682     // we don't miss any deoptimization that should be done when there are
   3683     // debugger shadow frames.
   3684     return true;
   3685   }
   3686   // We have to require stack deoptimization if the upcall is deoptimized.
   3687   return instrumentation->IsDeoptimized(m);
   3688 }
   3689 
   3690 class NeedsDeoptimizationVisitor : public StackVisitor {
   3691  public:
   3692   explicit NeedsDeoptimizationVisitor(Thread* self)
   3693       REQUIRES_SHARED(Locks::mutator_lock_)
   3694     : StackVisitor(self, nullptr, StackVisitor::StackWalkKind::kIncludeInlinedFrames),
   3695       needs_deoptimization_(false) {}
   3696 
   3697   bool VisitFrame() OVERRIDE REQUIRES_SHARED(Locks::mutator_lock_) {
   3698     // The visitor is meant to be used when handling exception from compiled code only.
   3699     CHECK(!IsShadowFrame()) << "We only expect to visit compiled frame: "
   3700                             << ArtMethod::PrettyMethod(GetMethod());
   3701     ArtMethod* method = GetMethod();
   3702     if (method == nullptr) {
   3703       // We reach an upcall and don't need to deoptimize this part of the stack (ManagedFragment)
   3704       // so we can stop the visit.
   3705       DCHECK(!needs_deoptimization_);
   3706       return false;
   3707     }
   3708     if (Runtime::Current()->GetInstrumentation()->InterpretOnly()) {
   3709       // We found a compiled frame in the stack but instrumentation is set to interpret
   3710       // everything: we need to deoptimize.
   3711       needs_deoptimization_ = true;
   3712       return false;
   3713     }
   3714     if (Runtime::Current()->GetInstrumentation()->IsDeoptimized(method)) {
   3715       // We found a deoptimized method in the stack.
   3716       needs_deoptimization_ = true;
   3717       return false;
   3718     }
   3719     ShadowFrame* frame = GetThread()->FindDebuggerShadowFrame(GetFrameId());
   3720     if (frame != nullptr) {
   3721       // The debugger allocated a ShadowFrame to update a variable in the stack: we need to
   3722       // deoptimize the stack to execute (and deallocate) this frame.
   3723       needs_deoptimization_ = true;
   3724       return false;
   3725     }
   3726     return true;
   3727   }
   3728 
   3729   bool NeedsDeoptimization() const {
   3730     return needs_deoptimization_;
   3731   }
   3732 
   3733  private:
   3734   // Do we need to deoptimize the stack?
   3735   bool needs_deoptimization_;
   3736 
   3737   DISALLOW_COPY_AND_ASSIGN(NeedsDeoptimizationVisitor);
   3738 };
   3739 
   3740 // Do we need to deoptimize the stack to handle an exception?
   3741 bool Dbg::IsForcedInterpreterNeededForExceptionImpl(Thread* thread) {
   3742   const SingleStepControl* const ssc = thread->GetSingleStepControl();
   3743   if (ssc != nullptr) {
   3744     // We deopt to step into the catch handler.
   3745     return true;
   3746   }
   3747   // Deoptimization is required if at least one method in the stack needs it. However we
   3748   // skip frames that will be unwound (thus not executed).
   3749   NeedsDeoptimizationVisitor visitor(thread);
   3750   visitor.WalkStack(true);  // includes upcall.
   3751   return visitor.NeedsDeoptimization();
   3752 }
   3753 
   3754 // Scoped utility class to suspend a thread so that we may do tasks such as walk its stack. Doesn't
   3755 // cause suspension if the thread is the current thread.
   3756 class ScopedDebuggerThreadSuspension {
   3757  public:
   3758   ScopedDebuggerThreadSuspension(Thread* self, JDWP::ObjectId thread_id)
   3759       REQUIRES(!Locks::thread_list_lock_)
   3760       REQUIRES_SHARED(Locks::mutator_lock_) :
   3761       thread_(nullptr),
   3762       error_(JDWP::ERR_NONE),
   3763       self_suspend_(false),
   3764       other_suspend_(false) {
   3765     ScopedObjectAccessUnchecked soa(self);
   3766     thread_ = DecodeThread(soa, thread_id, &error_);
   3767     if (error_ == JDWP::ERR_NONE) {
   3768       if (thread_ == soa.Self()) {
   3769         self_suspend_ = true;
   3770       } else {
   3771         Thread* suspended_thread;
   3772         {
   3773           ScopedThreadSuspension sts(self, kWaitingForDebuggerSuspension);
   3774           jobject thread_peer = Dbg::GetObjectRegistry()->GetJObject(thread_id);
   3775           bool timed_out;
   3776           ThreadList* const thread_list = Runtime::Current()->GetThreadList();
   3777           suspended_thread = thread_list->SuspendThreadByPeer(thread_peer,
   3778                                                               /* request_suspension */ true,
   3779                                                               SuspendReason::kForDebugger,
   3780                                                               &timed_out);
   3781         }
   3782         if (suspended_thread == nullptr) {
   3783           // Thread terminated from under us while suspending.
   3784           error_ = JDWP::ERR_INVALID_THREAD;
   3785         } else {
   3786           CHECK_EQ(suspended_thread, thread_);
   3787           other_suspend_ = true;
   3788         }
   3789       }
   3790     }
   3791   }
   3792 
   3793   Thread* GetThread() const {
   3794     return thread_;
   3795   }
   3796 
   3797   JDWP::JdwpError GetError() const {
   3798     return error_;
   3799   }
   3800 
   3801   ~ScopedDebuggerThreadSuspension() {
   3802     if (other_suspend_) {
   3803       bool resumed = Runtime::Current()->GetThreadList()->Resume(thread_,
   3804                                                                  SuspendReason::kForDebugger);
   3805       DCHECK(resumed);
   3806     }
   3807   }
   3808 
   3809  private:
   3810   Thread* thread_;
   3811   JDWP::JdwpError error_;
   3812   bool self_suspend_;
   3813   bool other_suspend_;
   3814 };
   3815 
   3816 JDWP::JdwpError Dbg::ConfigureStep(JDWP::ObjectId thread_id, JDWP::JdwpStepSize step_size,
   3817                                    JDWP::JdwpStepDepth step_depth) {
   3818   Thread* self = Thread::Current();
   3819   ScopedDebuggerThreadSuspension sts(self, thread_id);
   3820   if (sts.GetError() != JDWP::ERR_NONE) {
   3821     return sts.GetError();
   3822   }
   3823 
   3824   // Work out what ArtMethod* we're in, the current line number, and how deep the stack currently
   3825   // is for step-out.
   3826   struct SingleStepStackVisitor : public StackVisitor {
   3827     explicit SingleStepStackVisitor(Thread* thread) REQUIRES_SHARED(Locks::mutator_lock_)
   3828         : StackVisitor(thread, nullptr, StackVisitor::StackWalkKind::kIncludeInlinedFrames),
   3829           stack_depth(0),
   3830           method(nullptr),
   3831           line_number(-1) {}
   3832 
   3833     // TODO: Enable annotalysis. We know lock is held in constructor, but abstraction confuses
   3834     // annotalysis.
   3835     bool VisitFrame() NO_THREAD_SAFETY_ANALYSIS {
   3836       ArtMethod* m = GetMethod();
   3837       if (!m->IsRuntimeMethod()) {
   3838         ++stack_depth;
   3839         if (method == nullptr) {
   3840           const DexFile* dex_file = m->GetDexFile();
   3841           method = m;
   3842           if (dex_file != nullptr) {
   3843             line_number = annotations::GetLineNumFromPC(dex_file, m, GetDexPc());
   3844           }
   3845         }
   3846       }
   3847       return true;
   3848     }
   3849 
   3850     int stack_depth;
   3851     ArtMethod* method;
   3852     int32_t line_number;
   3853   };
   3854 
   3855   Thread* const thread = sts.GetThread();
   3856   SingleStepStackVisitor visitor(thread);
   3857   visitor.WalkStack();
   3858 
   3859   // Find the dex_pc values that correspond to the current line, for line-based single-stepping.
   3860   struct DebugCallbackContext {
   3861     DebugCallbackContext(SingleStepControl* single_step_control_cb,
   3862                          int32_t line_number_cb, uint32_t num_insns_in_code_units)
   3863         : single_step_control_(single_step_control_cb), line_number_(line_number_cb),
   3864           num_insns_in_code_units_(num_insns_in_code_units), last_pc_valid(false), last_pc(0) {
   3865     }
   3866 
   3867     static bool Callback(void* raw_context, const DexFile::PositionInfo& entry) {
   3868       DebugCallbackContext* context = reinterpret_cast<DebugCallbackContext*>(raw_context);
   3869       if (static_cast<int32_t>(entry.line_) == context->line_number_) {
   3870         if (!context->last_pc_valid) {
   3871           // Everything from this address until the next line change is ours.
   3872           context->last_pc = entry.address_;
   3873           context->last_pc_valid = true;
   3874         }
   3875         // Otherwise, if we're already in a valid range for this line,
   3876         // just keep going (shouldn't really happen)...
   3877       } else if (context->last_pc_valid) {  // and the line number is new
   3878         // Add everything from the last entry up until here to the set
   3879         for (uint32_t dex_pc = context->last_pc; dex_pc < entry.address_; ++dex_pc) {
   3880           context->single_step_control_->AddDexPc(dex_pc);
   3881         }
   3882         context->last_pc_valid = false;
   3883       }
   3884       return false;  // There may be multiple entries for any given line.
   3885     }
   3886 
   3887     ~DebugCallbackContext() {
   3888       // If the line number was the last in the position table...
   3889       if (last_pc_valid) {
   3890         for (uint32_t dex_pc = last_pc; dex_pc < num_insns_in_code_units_; ++dex_pc) {
   3891           single_step_control_->AddDexPc(dex_pc);
   3892         }
   3893       }
   3894     }
   3895 
   3896     SingleStepControl* const single_step_control_;
   3897     const int32_t line_number_;
   3898     const uint32_t num_insns_in_code_units_;
   3899     bool last_pc_valid;
   3900     uint32_t last_pc;
   3901   };
   3902 
   3903   // Allocate single step.
   3904   SingleStepControl* single_step_control =
   3905       new (std::nothrow) SingleStepControl(step_size, step_depth,
   3906                                            visitor.stack_depth, visitor.method);
   3907   if (single_step_control == nullptr) {
   3908     LOG(ERROR) << "Failed to allocate SingleStepControl";
   3909     return JDWP::ERR_OUT_OF_MEMORY;
   3910   }
   3911 
   3912   ArtMethod* m = single_step_control->GetMethod();
   3913   const int32_t line_number = visitor.line_number;
   3914   // Note: if the thread is not running Java code (pure native thread), there is no "current"
   3915   // method on the stack (and no line number either).
   3916   if (m != nullptr && !m->IsNative()) {
   3917     CodeItemDebugInfoAccessor accessor(m->DexInstructionDebugInfo());
   3918     DebugCallbackContext context(single_step_control, line_number, accessor.InsnsSizeInCodeUnits());
   3919     m->GetDexFile()->DecodeDebugPositionInfo(accessor.DebugInfoOffset(),
   3920                                              DebugCallbackContext::Callback,
   3921                                              &context);
   3922   }
   3923 
   3924   // Activate single-step in the thread.
   3925   thread->ActivateSingleStepControl(single_step_control);
   3926 
   3927   if (VLOG_IS_ON(jdwp)) {
   3928     VLOG(jdwp) << "Single-step thread: " << *thread;
   3929     VLOG(jdwp) << "Single-step step size: " << single_step_control->GetStepSize();
   3930     VLOG(jdwp) << "Single-step step depth: " << single_step_control->GetStepDepth();
   3931     VLOG(jdwp) << "Single-step current method: "
   3932                << ArtMethod::PrettyMethod(single_step_control->GetMethod());
   3933     VLOG(jdwp) << "Single-step current line: " << line_number;
   3934     VLOG(jdwp) << "Single-step current stack depth: " << single_step_control->GetStackDepth();
   3935     VLOG(jdwp) << "Single-step dex_pc values:";
   3936     for (uint32_t dex_pc : single_step_control->GetDexPcs()) {
   3937       VLOG(jdwp) << StringPrintf(" %#x", dex_pc);
   3938     }
   3939   }
   3940 
   3941   return JDWP::ERR_NONE;
   3942 }
   3943 
   3944 void Dbg::UnconfigureStep(JDWP::ObjectId thread_id) {
   3945   ScopedObjectAccessUnchecked soa(Thread::Current());
   3946   JDWP::JdwpError error;
   3947   Thread* thread = DecodeThread(soa, thread_id, &error);
   3948   if (error == JDWP::ERR_NONE) {
   3949     thread->DeactivateSingleStepControl();
   3950   }
   3951 }
   3952 
   3953 static char JdwpTagToShortyChar(JDWP::JdwpTag tag) {
   3954   switch (tag) {
   3955     default:
   3956       LOG(FATAL) << "unknown JDWP tag: " << PrintableChar(tag);
   3957       UNREACHABLE();
   3958 
   3959     // Primitives.
   3960     case JDWP::JT_BYTE:    return 'B';
   3961     case JDWP::JT_CHAR:    return 'C';
   3962     case JDWP::JT_FLOAT:   return 'F';
   3963     case JDWP::JT_DOUBLE:  return 'D';
   3964     case JDWP::JT_INT:     return 'I';
   3965     case JDWP::JT_LONG:    return 'J';
   3966     case JDWP::JT_SHORT:   return 'S';
   3967     case JDWP::JT_VOID:    return 'V';
   3968     case JDWP::JT_BOOLEAN: return 'Z';
   3969 
   3970     // Reference types.
   3971     case JDWP::JT_ARRAY:
   3972     case JDWP::JT_OBJECT:
   3973     case JDWP::JT_STRING:
   3974     case JDWP::JT_THREAD:
   3975     case JDWP::JT_THREAD_GROUP:
   3976     case JDWP::JT_CLASS_LOADER:
   3977     case JDWP::JT_CLASS_OBJECT:
   3978       return 'L';
   3979   }
   3980 }
   3981 
   3982 JDWP::JdwpError Dbg::PrepareInvokeMethod(uint32_t request_id, JDWP::ObjectId thread_id,
   3983                                          JDWP::ObjectId object_id, JDWP::RefTypeId class_id,
   3984                                          JDWP::MethodId method_id, uint32_t arg_count,
   3985                                          uint64_t arg_values[], JDWP::JdwpTag* arg_types,
   3986                                          uint32_t options) {
   3987   Thread* const self = Thread::Current();
   3988   CHECK_EQ(self, GetDebugThread()) << "This must be called by the JDWP thread";
   3989   const bool resume_all_threads = ((options & JDWP::INVOKE_SINGLE_THREADED) == 0);
   3990 
   3991   ThreadList* thread_list = Runtime::Current()->GetThreadList();
   3992   Thread* targetThread = nullptr;
   3993   {
   3994     ScopedObjectAccessUnchecked soa(self);
   3995     JDWP::JdwpError error;
   3996     targetThread = DecodeThread(soa, thread_id, &error);
   3997     if (error != JDWP::ERR_NONE) {
   3998       LOG(ERROR) << "InvokeMethod request for invalid thread id " << thread_id;
   3999       return error;
   4000     }
   4001     if (targetThread->GetInvokeReq() != nullptr) {
   4002       // Thread is already invoking a method on behalf of the debugger.
   4003       LOG(ERROR) << "InvokeMethod request for thread already invoking a method: " << *targetThread;
   4004       return JDWP::ERR_ALREADY_INVOKING;
   4005     }
   4006     if (!targetThread->IsReadyForDebugInvoke()) {
   4007       // Thread is not suspended by an event so it cannot invoke a method.
   4008       LOG(ERROR) << "InvokeMethod request for thread not stopped by event: " << *targetThread;
   4009       return JDWP::ERR_INVALID_THREAD;
   4010     }
   4011 
   4012     /*
   4013      * According to the JDWP specs, we are expected to resume all threads (or only the
   4014      * target thread) once. So if a thread has been suspended more than once (either by
   4015      * the debugger for an event or by the runtime for GC), it will remain suspended before
   4016      * the invoke is executed. This means the debugger is responsible to properly resume all
   4017      * the threads it has suspended so the target thread can execute the method.
   4018      *
   4019      * However, for compatibility reason with older versions of debuggers (like Eclipse), we
   4020      * fully resume all threads (by canceling *all* debugger suspensions) when the debugger
   4021      * wants us to resume all threads. This is to avoid ending up in deadlock situation.
   4022      *
   4023      * On the other hand, if we are asked to only resume the target thread, then we follow the
   4024      * JDWP specs by resuming that thread only once. This means the thread will remain suspended
   4025      * if it has been suspended more than once before the invoke (and again, this is the
   4026      * responsibility of the debugger to properly resume that thread before invoking a method).
   4027      */
   4028     int suspend_count;
   4029     {
   4030       MutexLock mu2(soa.Self(), *Locks::thread_suspend_count_lock_);
   4031       suspend_count = targetThread->GetSuspendCount();
   4032     }
   4033     if (suspend_count > 1 && resume_all_threads) {
   4034       // The target thread will remain suspended even after we resume it. Let's emit a warning
   4035       // to indicate the invoke won't be executed until the thread is resumed.
   4036       LOG(WARNING) << *targetThread << " suspended more than once (suspend count == "
   4037                    << suspend_count << "). This thread will invoke the method only once "
   4038                    << "it is fully resumed.";
   4039     }
   4040 
   4041     mirror::Object* receiver = gRegistry->Get<mirror::Object*>(object_id, &error);
   4042     if (error != JDWP::ERR_NONE) {
   4043       return JDWP::ERR_INVALID_OBJECT;
   4044     }
   4045 
   4046     gRegistry->Get<mirror::Object*>(thread_id, &error);
   4047     if (error != JDWP::ERR_NONE) {
   4048       return JDWP::ERR_INVALID_OBJECT;
   4049     }
   4050 
   4051     mirror::Class* c = DecodeClass(class_id, &error);
   4052     if (c == nullptr) {
   4053       return error;
   4054     }
   4055 
   4056     ArtMethod* m = FromMethodId(method_id);
   4057     if (m->IsStatic() != (receiver == nullptr)) {
   4058       return JDWP::ERR_INVALID_METHODID;
   4059     }
   4060     if (m->IsStatic()) {
   4061       if (m->GetDeclaringClass() != c) {
   4062         return JDWP::ERR_INVALID_METHODID;
   4063       }
   4064     } else {
   4065       if (!m->GetDeclaringClass()->IsAssignableFrom(c)) {
   4066         return JDWP::ERR_INVALID_METHODID;
   4067       }
   4068     }
   4069 
   4070     // Check the argument list matches the method.
   4071     uint32_t shorty_len = 0;
   4072     const char* shorty = m->GetShorty(&shorty_len);
   4073     if (shorty_len - 1 != arg_count) {
   4074       return JDWP::ERR_ILLEGAL_ARGUMENT;
   4075     }
   4076 
   4077     {
   4078       StackHandleScope<2> hs(soa.Self());
   4079       HandleWrapper<mirror::Object> h_obj(hs.NewHandleWrapper(&receiver));
   4080       HandleWrapper<mirror::Class> h_klass(hs.NewHandleWrapper(&c));
   4081       const DexFile::TypeList* types = m->GetParameterTypeList();
   4082       for (size_t i = 0; i < arg_count; ++i) {
   4083         if (shorty[i + 1] != JdwpTagToShortyChar(arg_types[i])) {
   4084           return JDWP::ERR_ILLEGAL_ARGUMENT;
   4085         }
   4086 
   4087         if (shorty[i + 1] == 'L') {
   4088           // Did we really get an argument of an appropriate reference type?
   4089           ObjPtr<mirror::Class> parameter_type =
   4090               m->ResolveClassFromTypeIndex(types->GetTypeItem(i).type_idx_);
   4091           mirror::Object* argument = gRegistry->Get<mirror::Object*>(arg_values[i], &error);
   4092           if (error != JDWP::ERR_NONE) {
   4093             return JDWP::ERR_INVALID_OBJECT;
   4094           }
   4095           if (argument != nullptr && !argument->InstanceOf(parameter_type)) {
   4096             return JDWP::ERR_ILLEGAL_ARGUMENT;
   4097           }
   4098 
   4099           // Turn the on-the-wire ObjectId into a jobject.
   4100           jvalue& v = reinterpret_cast<jvalue&>(arg_values[i]);
   4101           v.l = gRegistry->GetJObject(arg_values[i]);
   4102         }
   4103       }
   4104     }
   4105 
   4106     // Allocates a DebugInvokeReq.
   4107     DebugInvokeReq* req = new (std::nothrow) DebugInvokeReq(request_id, thread_id, receiver, c, m,
   4108                                                             options, arg_values, arg_count);
   4109     if (req == nullptr) {
   4110       LOG(ERROR) << "Failed to allocate DebugInvokeReq";
   4111       return JDWP::ERR_OUT_OF_MEMORY;
   4112     }
   4113 
   4114     // Attaches the DebugInvokeReq to the target thread so it executes the method when
   4115     // it is resumed. Once the invocation completes, the target thread will delete it before
   4116     // suspending itself (see ThreadList::SuspendSelfForDebugger).
   4117     targetThread->SetDebugInvokeReq(req);
   4118   }
   4119 
   4120   // The fact that we've released the thread list lock is a bit risky --- if the thread goes
   4121   // away we're sitting high and dry -- but we must release this before the UndoDebuggerSuspensions
   4122   // call.
   4123   if (resume_all_threads) {
   4124     VLOG(jdwp) << "      Resuming all threads";
   4125     thread_list->UndoDebuggerSuspensions();
   4126   } else {
   4127     VLOG(jdwp) << "      Resuming event thread only";
   4128     bool resumed = thread_list->Resume(targetThread, SuspendReason::kForDebugger);
   4129     DCHECK(resumed);
   4130   }
   4131 
   4132   return JDWP::ERR_NONE;
   4133 }
   4134 
   4135 void Dbg::ExecuteMethod(DebugInvokeReq* pReq) {
   4136   Thread* const self = Thread::Current();
   4137   CHECK_NE(self, GetDebugThread()) << "This must be called by the event thread";
   4138 
   4139   ScopedObjectAccess soa(self);
   4140 
   4141   // We can be called while an exception is pending. We need
   4142   // to preserve that across the method invocation.
   4143   StackHandleScope<1> hs(soa.Self());
   4144   Handle<mirror::Throwable> old_exception = hs.NewHandle(soa.Self()->GetException());
   4145   soa.Self()->ClearException();
   4146 
   4147   // Execute the method then sends reply to the debugger.
   4148   ExecuteMethodWithoutPendingException(soa, pReq);
   4149 
   4150   // If an exception was pending before the invoke, restore it now.
   4151   if (old_exception != nullptr) {
   4152     soa.Self()->SetException(old_exception.Get());
   4153   }
   4154 }
   4155 
   4156 // Helper function: write a variable-width value into the output input buffer.
   4157 static void WriteValue(JDWP::ExpandBuf* pReply, int width, uint64_t value) {
   4158   switch (width) {
   4159     case 1:
   4160       expandBufAdd1(pReply, value);
   4161       break;
   4162     case 2:
   4163       expandBufAdd2BE(pReply, value);
   4164       break;
   4165     case 4:
   4166       expandBufAdd4BE(pReply, value);
   4167       break;
   4168     case 8:
   4169       expandBufAdd8BE(pReply, value);
   4170       break;
   4171     default:
   4172       LOG(FATAL) << width;
   4173       UNREACHABLE();
   4174   }
   4175 }
   4176 
   4177 void Dbg::ExecuteMethodWithoutPendingException(ScopedObjectAccess& soa, DebugInvokeReq* pReq) {
   4178   soa.Self()->AssertNoPendingException();
   4179 
   4180   // Translate the method through the vtable, unless the debugger wants to suppress it.
   4181   ArtMethod* m = pReq->method;
   4182   PointerSize image_pointer_size = Runtime::Current()->GetClassLinker()->GetImagePointerSize();
   4183   if ((pReq->options & JDWP::INVOKE_NONVIRTUAL) == 0 && pReq->receiver.Read() != nullptr) {
   4184     ArtMethod* actual_method =
   4185         pReq->klass.Read()->FindVirtualMethodForVirtualOrInterface(m, image_pointer_size);
   4186     if (actual_method != m) {
   4187       VLOG(jdwp) << "ExecuteMethod translated " << ArtMethod::PrettyMethod(m)
   4188                  << " to " << ArtMethod::PrettyMethod(actual_method);
   4189       m = actual_method;
   4190     }
   4191   }
   4192   VLOG(jdwp) << "ExecuteMethod " << ArtMethod::PrettyMethod(m)
   4193              << " receiver=" << pReq->receiver.Read()
   4194              << " arg_count=" << pReq->arg_count;
   4195   CHECK(m != nullptr);
   4196 
   4197   static_assert(sizeof(jvalue) == sizeof(uint64_t), "jvalue and uint64_t have different sizes.");
   4198 
   4199   // Invoke the method.
   4200   ScopedLocalRef<jobject> ref(soa.Env(), soa.AddLocalReference<jobject>(pReq->receiver.Read()));
   4201   JValue result = InvokeWithJValues(soa, ref.get(), jni::EncodeArtMethod(m),
   4202                                     reinterpret_cast<jvalue*>(pReq->arg_values.get()));
   4203 
   4204   // Prepare JDWP ids for the reply.
   4205   JDWP::JdwpTag result_tag = BasicTagFromDescriptor(m->GetShorty());
   4206   const bool is_object_result = (result_tag == JDWP::JT_OBJECT);
   4207   StackHandleScope<3> hs(soa.Self());
   4208   Handle<mirror::Object> object_result = hs.NewHandle(is_object_result ? result.GetL() : nullptr);
   4209   Handle<mirror::Throwable> exception = hs.NewHandle(soa.Self()->GetException());
   4210   soa.Self()->ClearException();
   4211 
   4212   if (!IsDebuggerActive()) {
   4213     // The debugger detached: we must not re-suspend threads. We also don't need to fill the reply
   4214     // because it won't be sent either.
   4215     return;
   4216   }
   4217 
   4218   JDWP::ObjectId exceptionObjectId = gRegistry->Add(exception);
   4219   uint64_t result_value = 0;
   4220   if (exceptionObjectId != 0) {
   4221     VLOG(jdwp) << "  JDWP invocation returning with exception=" << exception.Get()
   4222                << " " << exception->Dump();
   4223     result_value = 0;
   4224   } else if (is_object_result) {
   4225     /* if no exception was thrown, examine object result more closely */
   4226     JDWP::JdwpTag new_tag = TagFromObject(soa, object_result.Get());
   4227     if (new_tag != result_tag) {
   4228       VLOG(jdwp) << "  JDWP promoted result from " << result_tag << " to " << new_tag;
   4229       result_tag = new_tag;
   4230     }
   4231 
   4232     // Register the object in the registry and reference its ObjectId. This ensures
   4233     // GC safety and prevents from accessing stale reference if the object is moved.
   4234     result_value = gRegistry->Add(object_result.Get());
   4235   } else {
   4236     // Primitive result.
   4237     DCHECK(IsPrimitiveTag(result_tag));
   4238     result_value = result.GetJ();
   4239   }
   4240   const bool is_constructor = m->IsConstructor() && !m->IsStatic();
   4241   if (is_constructor) {
   4242     // If we invoked a constructor (which actually returns void), return the receiver,
   4243     // unless we threw, in which case we return null.
   4244     DCHECK_EQ(JDWP::JT_VOID, result_tag);
   4245     if (exceptionObjectId == 0) {
   4246       if (m->GetDeclaringClass()->IsStringClass()) {
   4247         // For string constructors, the new string is remapped to the receiver (stored in ref).
   4248         Handle<mirror::Object> decoded_ref = hs.NewHandle(soa.Self()->DecodeJObject(ref.get()));
   4249         result_value = gRegistry->Add(decoded_ref);
   4250         result_tag = TagFromObject(soa, decoded_ref.Get());
   4251       } else {
   4252         // TODO we could keep the receiver ObjectId in the DebugInvokeReq to avoid looking into the
   4253         // object registry.
   4254         result_value = GetObjectRegistry()->Add(pReq->receiver.Read());
   4255         result_tag = TagFromObject(soa, pReq->receiver.Read());
   4256       }
   4257     } else {
   4258       result_value = 0;
   4259       result_tag = JDWP::JT_OBJECT;
   4260     }
   4261   }
   4262 
   4263   // Suspend other threads if the invoke is not single-threaded.
   4264   if ((pReq->options & JDWP::INVOKE_SINGLE_THREADED) == 0) {
   4265     ScopedThreadSuspension sts(soa.Self(), kWaitingForDebuggerSuspension);
   4266     // Avoid a deadlock between GC and debugger where GC gets suspended during GC. b/25800335.
   4267     gc::ScopedGCCriticalSection gcs(soa.Self(), gc::kGcCauseDebugger, gc::kCollectorTypeDebugger);
   4268     VLOG(jdwp) << "      Suspending all threads";
   4269     Runtime::Current()->GetThreadList()->SuspendAllForDebugger();
   4270   }
   4271 
   4272   VLOG(jdwp) << "  --> returned " << result_tag
   4273              << StringPrintf(" %#" PRIx64 " (except=%#" PRIx64 ")", result_value,
   4274                              exceptionObjectId);
   4275 
   4276   // Show detailed debug output.
   4277   if (result_tag == JDWP::JT_STRING && exceptionObjectId == 0) {
   4278     if (result_value != 0) {
   4279       if (VLOG_IS_ON(jdwp)) {
   4280         std::string result_string;
   4281         JDWP::JdwpError error = Dbg::StringToUtf8(result_value, &result_string);
   4282         CHECK_EQ(error, JDWP::ERR_NONE);
   4283         VLOG(jdwp) << "      string '" << result_string << "'";
   4284       }
   4285     } else {
   4286       VLOG(jdwp) << "      string (null)";
   4287     }
   4288   }
   4289 
   4290   // Attach the reply to DebugInvokeReq so it can be sent to the debugger when the event thread
   4291   // is ready to suspend.
   4292   BuildInvokeReply(pReq->reply, pReq->request_id, result_tag, result_value, exceptionObjectId);
   4293 }
   4294 
   4295 void Dbg::BuildInvokeReply(JDWP::ExpandBuf* pReply, uint32_t request_id, JDWP::JdwpTag result_tag,
   4296                            uint64_t result_value, JDWP::ObjectId exception) {
   4297   // Make room for the JDWP header since we do not know the size of the reply yet.
   4298   JDWP::expandBufAddSpace(pReply, kJDWPHeaderLen);
   4299 
   4300   size_t width = GetTagWidth(result_tag);
   4301   JDWP::expandBufAdd1(pReply, result_tag);
   4302   if (width != 0) {
   4303     WriteValue(pReply, width, result_value);
   4304   }
   4305   JDWP::expandBufAdd1(pReply, JDWP::JT_OBJECT);
   4306   JDWP::expandBufAddObjectId(pReply, exception);
   4307 
   4308   // Now we know the size, we can complete the JDWP header.
   4309   uint8_t* buf = expandBufGetBuffer(pReply);
   4310   JDWP::Set4BE(buf + kJDWPHeaderSizeOffset, expandBufGetLength(pReply));
   4311   JDWP::Set4BE(buf + kJDWPHeaderIdOffset, request_id);
   4312   JDWP::Set1(buf + kJDWPHeaderFlagsOffset, kJDWPFlagReply);  // flags
   4313   JDWP::Set2BE(buf + kJDWPHeaderErrorCodeOffset, JDWP::ERR_NONE);
   4314 }
   4315 
   4316 void Dbg::FinishInvokeMethod(DebugInvokeReq* pReq) {
   4317   CHECK_NE(Thread::Current(), GetDebugThread()) << "This must be called by the event thread";
   4318 
   4319   JDWP::ExpandBuf* const pReply = pReq->reply;
   4320   CHECK(pReply != nullptr) << "No reply attached to DebugInvokeReq";
   4321 
   4322   // We need to prevent other threads (including JDWP thread) from interacting with the debugger
   4323   // while we send the reply but are not yet suspended. The JDWP token will be released just before
   4324   // we suspend ourself again (see ThreadList::SuspendSelfForDebugger).
   4325   gJdwpState->AcquireJdwpTokenForEvent(pReq->thread_id);
   4326 
   4327   // Send the reply unless the debugger detached before the completion of the method.
   4328   if (IsDebuggerActive()) {
   4329     const size_t replyDataLength = expandBufGetLength(pReply) - kJDWPHeaderLen;
   4330     VLOG(jdwp) << StringPrintf("REPLY INVOKE id=0x%06x (length=%zu)",
   4331                                pReq->request_id, replyDataLength);
   4332 
   4333     gJdwpState->SendRequest(pReply);
   4334   } else {
   4335     VLOG(jdwp) << "Not sending invoke reply because debugger detached";
   4336   }
   4337 }
   4338 
   4339 bool Dbg::DdmHandleChunk(JNIEnv* env,
   4340                          uint32_t type,
   4341                          const ArrayRef<const jbyte>& data,
   4342                          /*out*/uint32_t* out_type,
   4343                          /*out*/std::vector<uint8_t>* out_data) {
   4344   ScopedLocalRef<jbyteArray> dataArray(env, env->NewByteArray(data.size()));
   4345   if (dataArray.get() == nullptr) {
   4346     LOG(WARNING) << "byte[] allocation failed: " << data.size();
   4347     env->ExceptionClear();
   4348     return false;
   4349   }
   4350   env->SetByteArrayRegion(dataArray.get(),
   4351                           0,
   4352                           data.size(),
   4353                           reinterpret_cast<const jbyte*>(data.data()));
   4354   // Call "private static Chunk dispatch(int type, byte[] data, int offset, int length)".
   4355   ScopedLocalRef<jobject> chunk(
   4356       env,
   4357       env->CallStaticObjectMethod(
   4358           WellKnownClasses::org_apache_harmony_dalvik_ddmc_DdmServer,
   4359           WellKnownClasses::org_apache_harmony_dalvik_ddmc_DdmServer_dispatch,
   4360           type, dataArray.get(), 0, data.size()));
   4361   if (env->ExceptionCheck()) {
   4362     LOG(INFO) << StringPrintf("Exception thrown by dispatcher for 0x%08x", type);
   4363     env->ExceptionDescribe();
   4364     env->ExceptionClear();
   4365     return false;
   4366   }
   4367 
   4368   if (chunk.get() == nullptr) {
   4369     return false;
   4370   }
   4371 
   4372   /*
   4373    * Pull the pieces out of the chunk.  We copy the results into a
   4374    * newly-allocated buffer that the caller can free.  We don't want to
   4375    * continue using the Chunk object because nothing has a reference to it.
   4376    *
   4377    * We could avoid this by returning type/data/offset/length and having
   4378    * the caller be aware of the object lifetime issues, but that
   4379    * integrates the JDWP code more tightly into the rest of the runtime, and doesn't work
   4380    * if we have responses for multiple chunks.
   4381    *
   4382    * So we're pretty much stuck with copying data around multiple times.
   4383    */
   4384   ScopedLocalRef<jbyteArray> replyData(
   4385       env,
   4386       reinterpret_cast<jbyteArray>(
   4387           env->GetObjectField(
   4388               chunk.get(), WellKnownClasses::org_apache_harmony_dalvik_ddmc_Chunk_data)));
   4389   jint offset = env->GetIntField(chunk.get(),
   4390                                  WellKnownClasses::org_apache_harmony_dalvik_ddmc_Chunk_offset);
   4391   jint length = env->GetIntField(chunk.get(),
   4392                                  WellKnownClasses::org_apache_harmony_dalvik_ddmc_Chunk_length);
   4393   *out_type = env->GetIntField(chunk.get(),
   4394                                WellKnownClasses::org_apache_harmony_dalvik_ddmc_Chunk_type);
   4395 
   4396   VLOG(jdwp) << StringPrintf("DDM reply: type=0x%08x data=%p offset=%d length=%d",
   4397                              type,
   4398                              replyData.get(),
   4399                              offset,
   4400                              length);
   4401   out_data->resize(length);
   4402   env->GetByteArrayRegion(replyData.get(),
   4403                           offset,
   4404                           length,
   4405                           reinterpret_cast<jbyte*>(out_data->data()));
   4406 
   4407   if (env->ExceptionCheck()) {
   4408     LOG(INFO) << StringPrintf("Exception thrown when reading response data from dispatcher 0x%08x",
   4409                               type);
   4410     env->ExceptionDescribe();
   4411     env->ExceptionClear();
   4412     return false;
   4413   }
   4414 
   4415   return true;
   4416 }
   4417 
   4418 /*
   4419  * "request" contains a full JDWP packet, possibly with multiple chunks.  We
   4420  * need to process each, accumulate the replies, and ship the whole thing
   4421  * back.
   4422  *
   4423  * Returns "true" if we have a reply.  The reply buffer is newly allocated,
   4424  * and includes the chunk type/length, followed by the data.
   4425  *
   4426  * OLD-TODO: we currently assume that the request and reply include a single
   4427  * chunk.  If this becomes inconvenient we will need to adapt.
   4428  */
   4429 bool Dbg::DdmHandlePacket(JDWP::Request* request, uint8_t** pReplyBuf, int* pReplyLen) {
   4430   Thread* self = Thread::Current();
   4431   JNIEnv* env = self->GetJniEnv();
   4432 
   4433   uint32_t type = request->ReadUnsigned32("type");
   4434   uint32_t length = request->ReadUnsigned32("length");
   4435 
   4436   // Create a byte[] corresponding to 'request'.
   4437   size_t request_length = request->size();
   4438   // Run through and find all chunks.  [Currently just find the first.]
   4439   if (length != request_length) {
   4440     LOG(WARNING) << StringPrintf("bad chunk found (len=%u pktLen=%zd)", length, request_length);
   4441     return false;
   4442   }
   4443 
   4444   ArrayRef<const jbyte> data(reinterpret_cast<const jbyte*>(request->data()), request_length);
   4445   std::vector<uint8_t> out_data;
   4446   uint32_t out_type = 0;
   4447   request->Skip(request_length);
   4448   if (!DdmHandleChunk(env, type, data, &out_type, &out_data) || out_data.empty()) {
   4449     return false;
   4450   }
   4451   const uint32_t kDdmHeaderSize = 8;
   4452   *pReplyLen = out_data.size() + kDdmHeaderSize;
   4453   *pReplyBuf = new uint8_t[out_data.size() + kDdmHeaderSize];
   4454   memcpy((*pReplyBuf) + kDdmHeaderSize, out_data.data(), out_data.size());
   4455   JDWP::Set4BE(*pReplyBuf, out_type);
   4456   JDWP::Set4BE((*pReplyBuf) + 4, static_cast<uint32_t>(out_data.size()));
   4457   VLOG(jdwp)
   4458       << StringPrintf("dvmHandleDdm returning type=%.4s", reinterpret_cast<char*>(*pReplyBuf))
   4459       << "0x" << std::hex << reinterpret_cast<uintptr_t>(*pReplyBuf) << std::dec
   4460       << " len= " << out_data.size();
   4461   return true;
   4462 }
   4463 
   4464 void Dbg::DdmBroadcast(bool connect) {
   4465   VLOG(jdwp) << "Broadcasting DDM " << (connect ? "connect" : "disconnect") << "...";
   4466 
   4467   Thread* self = Thread::Current();
   4468   if (self->GetState() != kRunnable) {
   4469     LOG(ERROR) << "DDM broadcast in thread state " << self->GetState();
   4470     /* try anyway? */
   4471   }
   4472 
   4473   JNIEnv* env = self->GetJniEnv();
   4474   jint event = connect ? 1 /*DdmServer.CONNECTED*/ : 2 /*DdmServer.DISCONNECTED*/;
   4475   env->CallStaticVoidMethod(WellKnownClasses::org_apache_harmony_dalvik_ddmc_DdmServer,
   4476                             WellKnownClasses::org_apache_harmony_dalvik_ddmc_DdmServer_broadcast,
   4477                             event);
   4478   if (env->ExceptionCheck()) {
   4479     LOG(ERROR) << "DdmServer.broadcast " << event << " failed";
   4480     env->ExceptionDescribe();
   4481     env->ExceptionClear();
   4482   }
   4483 }
   4484 
   4485 void Dbg::DdmConnected() {
   4486   Dbg::DdmBroadcast(true);
   4487 }
   4488 
   4489 void Dbg::DdmDisconnected() {
   4490   Dbg::DdmBroadcast(false);
   4491   gDdmThreadNotification = false;
   4492 }
   4493 
   4494 /*
   4495  * Send a notification when a thread starts, stops, or changes its name.
   4496  *
   4497  * Because we broadcast the full set of threads when the notifications are
   4498  * first enabled, it's possible for "thread" to be actively executing.
   4499  */
   4500 void Dbg::DdmSendThreadNotification(Thread* t, uint32_t type) {
   4501   if (!gDdmThreadNotification) {
   4502     return;
   4503   }
   4504 
   4505   RuntimeCallbacks* cb = Runtime::Current()->GetRuntimeCallbacks();
   4506   if (type == CHUNK_TYPE("THDE")) {
   4507     uint8_t buf[4];
   4508     JDWP::Set4BE(&buf[0], t->GetThreadId());
   4509     cb->DdmPublishChunk(CHUNK_TYPE("THDE"), ArrayRef<const uint8_t>(buf));
   4510   } else {
   4511     CHECK(type == CHUNK_TYPE("THCR") || type == CHUNK_TYPE("THNM")) << type;
   4512     ScopedObjectAccessUnchecked soa(Thread::Current());
   4513     StackHandleScope<1> hs(soa.Self());
   4514     Handle<mirror::String> name(hs.NewHandle(t->GetThreadName()));
   4515     size_t char_count = (name != nullptr) ? name->GetLength() : 0;
   4516     const jchar* chars = (name != nullptr) ? name->GetValue() : nullptr;
   4517     bool is_compressed = (name != nullptr) ? name->IsCompressed() : false;
   4518 
   4519     std::vector<uint8_t> bytes;
   4520     JDWP::Append4BE(bytes, t->GetThreadId());
   4521     if (is_compressed) {
   4522       const uint8_t* chars_compressed = name->GetValueCompressed();
   4523       JDWP::AppendUtf16CompressedBE(bytes, chars_compressed, char_count);
   4524     } else {
   4525       JDWP::AppendUtf16BE(bytes, chars, char_count);
   4526     }
   4527     CHECK_EQ(bytes.size(), char_count*2 + sizeof(uint32_t)*2);
   4528     cb->DdmPublishChunk(type, ArrayRef<const uint8_t>(bytes));
   4529   }
   4530 }
   4531 
   4532 void Dbg::DdmSetThreadNotification(bool enable) {
   4533   // Enable/disable thread notifications.
   4534   gDdmThreadNotification = enable;
   4535   if (enable) {
   4536     // Suspend the VM then post thread start notifications for all threads. Threads attaching will
   4537     // see a suspension in progress and block until that ends. They then post their own start
   4538     // notification.
   4539     SuspendVM();
   4540     std::list<Thread*> threads;
   4541     Thread* self = Thread::Current();
   4542     {
   4543       MutexLock mu(self, *Locks::thread_list_lock_);
   4544       threads = Runtime::Current()->GetThreadList()->GetList();
   4545     }
   4546     {
   4547       ScopedObjectAccess soa(self);
   4548       for (Thread* thread : threads) {
   4549         Dbg::DdmSendThreadNotification(thread, CHUNK_TYPE("THCR"));
   4550       }
   4551     }
   4552     ResumeVM();
   4553   }
   4554 }
   4555 
   4556 void Dbg::PostThreadStartOrStop(Thread* t, uint32_t type) {
   4557   if (IsDebuggerActive()) {
   4558     gJdwpState->PostThreadChange(t, type == CHUNK_TYPE("THCR"));
   4559   }
   4560   Dbg::DdmSendThreadNotification(t, type);
   4561 }
   4562 
   4563 void Dbg::PostThreadStart(Thread* t) {
   4564   Dbg::PostThreadStartOrStop(t, CHUNK_TYPE("THCR"));
   4565 }
   4566 
   4567 void Dbg::PostThreadDeath(Thread* t) {
   4568   Dbg::PostThreadStartOrStop(t, CHUNK_TYPE("THDE"));
   4569 }
   4570 
   4571 JDWP::JdwpState* Dbg::GetJdwpState() {
   4572   return gJdwpState;
   4573 }
   4574 
   4575 int Dbg::DdmHandleHpifChunk(HpifWhen when) {
   4576   if (when == HPIF_WHEN_NOW) {
   4577     DdmSendHeapInfo(when);
   4578     return true;
   4579   }
   4580 
   4581   if (when != HPIF_WHEN_NEVER && when != HPIF_WHEN_NEXT_GC && when != HPIF_WHEN_EVERY_GC) {
   4582     LOG(ERROR) << "invalid HpifWhen value: " << static_cast<int>(when);
   4583     return false;
   4584   }
   4585 
   4586   gDdmHpifWhen = when;
   4587   return true;
   4588 }
   4589 
   4590 bool Dbg::DdmHandleHpsgNhsgChunk(Dbg::HpsgWhen when, Dbg::HpsgWhat what, bool native) {
   4591   if (when != HPSG_WHEN_NEVER && when != HPSG_WHEN_EVERY_GC) {
   4592     LOG(ERROR) << "invalid HpsgWhen value: " << static_cast<int>(when);
   4593     return false;
   4594   }
   4595 
   4596   if (what != HPSG_WHAT_MERGED_OBJECTS && what != HPSG_WHAT_DISTINCT_OBJECTS) {
   4597     LOG(ERROR) << "invalid HpsgWhat value: " << static_cast<int>(what);
   4598     return false;
   4599   }
   4600 
   4601   if (native) {
   4602     gDdmNhsgWhen = when;
   4603     gDdmNhsgWhat = what;
   4604   } else {
   4605     gDdmHpsgWhen = when;
   4606     gDdmHpsgWhat = what;
   4607   }
   4608   return true;
   4609 }
   4610 
   4611 void Dbg::DdmSendHeapInfo(HpifWhen reason) {
   4612   // If there's a one-shot 'when', reset it.
   4613   if (reason == gDdmHpifWhen) {
   4614     if (gDdmHpifWhen == HPIF_WHEN_NEXT_GC) {
   4615       gDdmHpifWhen = HPIF_WHEN_NEVER;
   4616     }
   4617   }
   4618 
   4619   /*
   4620    * Chunk HPIF (client --> server)
   4621    *
   4622    * Heap Info. General information about the heap,
   4623    * suitable for a summary display.
   4624    *
   4625    *   [u4]: number of heaps
   4626    *
   4627    *   For each heap:
   4628    *     [u4]: heap ID
   4629    *     [u8]: timestamp in ms since Unix epoch
   4630    *     [u1]: capture reason (same as 'when' value from server)
   4631    *     [u4]: max heap size in bytes (-Xmx)
   4632    *     [u4]: current heap size in bytes
   4633    *     [u4]: current number of bytes allocated
   4634    *     [u4]: current number of objects allocated
   4635    */
   4636   uint8_t heap_count = 1;
   4637   gc::Heap* heap = Runtime::Current()->GetHeap();
   4638   std::vector<uint8_t> bytes;
   4639   JDWP::Append4BE(bytes, heap_count);
   4640   JDWP::Append4BE(bytes, 1);  // Heap id (bogus; we only have one heap).
   4641   JDWP::Append8BE(bytes, MilliTime());
   4642   JDWP::Append1BE(bytes, reason);
   4643   JDWP::Append4BE(bytes, heap->GetMaxMemory());  // Max allowed heap size in bytes.
   4644   JDWP::Append4BE(bytes, heap->GetTotalMemory());  // Current heap size in bytes.
   4645   JDWP::Append4BE(bytes, heap->GetBytesAllocated());
   4646   JDWP::Append4BE(bytes, heap->GetObjectsAllocated());
   4647   CHECK_EQ(bytes.size(), 4U + (heap_count * (4 + 8 + 1 + 4 + 4 + 4 + 4)));
   4648   Runtime::Current()->GetRuntimeCallbacks()->DdmPublishChunk(CHUNK_TYPE("HPIF"),
   4649                                                              ArrayRef<const uint8_t>(bytes));
   4650 }
   4651 
   4652 enum HpsgSolidity {
   4653   SOLIDITY_FREE = 0,
   4654   SOLIDITY_HARD = 1,
   4655   SOLIDITY_SOFT = 2,
   4656   SOLIDITY_WEAK = 3,
   4657   SOLIDITY_PHANTOM = 4,
   4658   SOLIDITY_FINALIZABLE = 5,
   4659   SOLIDITY_SWEEP = 6,
   4660 };
   4661 
   4662 enum HpsgKind {
   4663   KIND_OBJECT = 0,
   4664   KIND_CLASS_OBJECT = 1,
   4665   KIND_ARRAY_1 = 2,
   4666   KIND_ARRAY_2 = 3,
   4667   KIND_ARRAY_4 = 4,
   4668   KIND_ARRAY_8 = 5,
   4669   KIND_UNKNOWN = 6,
   4670   KIND_NATIVE = 7,
   4671 };
   4672 
   4673 #define HPSG_PARTIAL (1<<7)
   4674 #define HPSG_STATE(solidity, kind) ((uint8_t)((((kind) & 0x7) << 3) | ((solidity) & 0x7)))
   4675 
   4676 class HeapChunkContext {
   4677  public:
   4678   // Maximum chunk size.  Obtain this from the formula:
   4679   // (((maximum_heap_size / ALLOCATION_UNIT_SIZE) + 255) / 256) * 2
   4680   HeapChunkContext(bool merge, bool native)
   4681       : buf_(16384 - 16),
   4682         type_(0),
   4683         chunk_overhead_(0) {
   4684     Reset();
   4685     if (native) {
   4686       type_ = CHUNK_TYPE("NHSG");
   4687     } else {
   4688       type_ = merge ? CHUNK_TYPE("HPSG") : CHUNK_TYPE("HPSO");
   4689     }
   4690   }
   4691 
   4692   ~HeapChunkContext() {
   4693     if (p_ > &buf_[0]) {
   4694       Flush();
   4695     }
   4696   }
   4697 
   4698   void SetChunkOverhead(size_t chunk_overhead) {
   4699     chunk_overhead_ = chunk_overhead;
   4700   }
   4701 
   4702   void ResetStartOfNextChunk() {
   4703     startOfNextMemoryChunk_ = nullptr;
   4704   }
   4705 
   4706   void EnsureHeader(const void* chunk_ptr) {
   4707     if (!needHeader_) {
   4708       return;
   4709     }
   4710 
   4711     // Start a new HPSx chunk.
   4712     JDWP::Write4BE(&p_, 1);  // Heap id (bogus; we only have one heap).
   4713     JDWP::Write1BE(&p_, 8);  // Size of allocation unit, in bytes.
   4714 
   4715     JDWP::Write4BE(&p_, reinterpret_cast<uintptr_t>(chunk_ptr));  // virtual address of segment start.
   4716     JDWP::Write4BE(&p_, 0);  // offset of this piece (relative to the virtual address).
   4717     // [u4]: length of piece, in allocation units
   4718     // We won't know this until we're done, so save the offset and stuff in a dummy value.
   4719     pieceLenField_ = p_;
   4720     JDWP::Write4BE(&p_, 0x55555555);
   4721     needHeader_ = false;
   4722   }
   4723 
   4724   void Flush() REQUIRES_SHARED(Locks::mutator_lock_) {
   4725     if (pieceLenField_ == nullptr) {
   4726       // Flush immediately post Reset (maybe back-to-back Flush). Ignore.
   4727       CHECK(needHeader_);
   4728       return;
   4729     }
   4730     // Patch the "length of piece" field.
   4731     CHECK_LE(&buf_[0], pieceLenField_);
   4732     CHECK_LE(pieceLenField_, p_);
   4733     JDWP::Set4BE(pieceLenField_, totalAllocationUnits_);
   4734 
   4735     ArrayRef<const uint8_t> out(&buf_[0], p_ - &buf_[0]);
   4736     Runtime::Current()->GetRuntimeCallbacks()->DdmPublishChunk(type_, out);
   4737     Reset();
   4738   }
   4739 
   4740   static void HeapChunkJavaCallback(void* start, void* end, size_t used_bytes, void* arg)
   4741       REQUIRES_SHARED(Locks::heap_bitmap_lock_,
   4742                             Locks::mutator_lock_) {
   4743     reinterpret_cast<HeapChunkContext*>(arg)->HeapChunkJavaCallback(start, end, used_bytes);
   4744   }
   4745 
   4746   static void HeapChunkNativeCallback(void* start, void* end, size_t used_bytes, void* arg)
   4747       REQUIRES_SHARED(Locks::mutator_lock_) {
   4748     reinterpret_cast<HeapChunkContext*>(arg)->HeapChunkNativeCallback(start, end, used_bytes);
   4749   }
   4750 
   4751  private:
   4752   enum { ALLOCATION_UNIT_SIZE = 8 };
   4753 
   4754   void Reset() {
   4755     p_ = &buf_[0];
   4756     ResetStartOfNextChunk();
   4757     totalAllocationUnits_ = 0;
   4758     needHeader_ = true;
   4759     pieceLenField_ = nullptr;
   4760   }
   4761 
   4762   bool IsNative() const {
   4763     return type_ == CHUNK_TYPE("NHSG");
   4764   }
   4765 
   4766   // Returns true if the object is not an empty chunk.
   4767   bool ProcessRecord(void* start, size_t used_bytes) REQUIRES_SHARED(Locks::mutator_lock_) {
   4768     // Note: heap call backs cannot manipulate the heap upon which they are crawling, care is taken
   4769     // in the following code not to allocate memory, by ensuring buf_ is of the correct size
   4770     if (used_bytes == 0) {
   4771       if (start == nullptr) {
   4772         // Reset for start of new heap.
   4773         startOfNextMemoryChunk_ = nullptr;
   4774         Flush();
   4775       }
   4776       // Only process in use memory so that free region information
   4777       // also includes dlmalloc book keeping.
   4778       return false;
   4779     }
   4780     if (startOfNextMemoryChunk_ != nullptr) {
   4781       // Transmit any pending free memory. Native free memory of over kMaxFreeLen could be because
   4782       // of the use of mmaps, so don't report. If not free memory then start a new segment.
   4783       bool flush = true;
   4784       if (start > startOfNextMemoryChunk_) {
   4785         const size_t kMaxFreeLen = 2 * kPageSize;
   4786         void* free_start = startOfNextMemoryChunk_;
   4787         void* free_end = start;
   4788         const size_t free_len =
   4789             reinterpret_cast<uintptr_t>(free_end) - reinterpret_cast<uintptr_t>(free_start);
   4790         if (!IsNative() || free_len < kMaxFreeLen) {
   4791           AppendChunk(HPSG_STATE(SOLIDITY_FREE, 0), free_start, free_len, IsNative());
   4792           flush = false;
   4793         }
   4794       }
   4795       if (flush) {
   4796         startOfNextMemoryChunk_ = nullptr;
   4797         Flush();
   4798       }
   4799     }
   4800     return true;
   4801   }
   4802 
   4803   void HeapChunkNativeCallback(void* start, void* /*end*/, size_t used_bytes)
   4804       REQUIRES_SHARED(Locks::mutator_lock_) {
   4805     if (ProcessRecord(start, used_bytes)) {
   4806       uint8_t state = ExamineNativeObject(start);
   4807       AppendChunk(state, start, used_bytes + chunk_overhead_, true /*is_native*/);
   4808       startOfNextMemoryChunk_ = reinterpret_cast<char*>(start) + used_bytes + chunk_overhead_;
   4809     }
   4810   }
   4811 
   4812   void HeapChunkJavaCallback(void* start, void* /*end*/, size_t used_bytes)
   4813       REQUIRES_SHARED(Locks::heap_bitmap_lock_, Locks::mutator_lock_) {
   4814     if (ProcessRecord(start, used_bytes)) {
   4815       // Determine the type of this chunk.
   4816       // OLD-TODO: if context.merge, see if this chunk is different from the last chunk.
   4817       // If it's the same, we should combine them.
   4818       uint8_t state = ExamineJavaObject(reinterpret_cast<mirror::Object*>(start));
   4819       AppendChunk(state, start, used_bytes + chunk_overhead_, false /*is_native*/);
   4820       startOfNextMemoryChunk_ = reinterpret_cast<char*>(start) + used_bytes + chunk_overhead_;
   4821     }
   4822   }
   4823 
   4824   void AppendChunk(uint8_t state, void* ptr, size_t length, bool is_native)
   4825       REQUIRES_SHARED(Locks::mutator_lock_) {
   4826     // Make sure there's enough room left in the buffer.
   4827     // We need to use two bytes for every fractional 256 allocation units used by the chunk plus
   4828     // 17 bytes for any header.
   4829     const size_t needed = ((RoundUp(length / ALLOCATION_UNIT_SIZE, 256) / 256) * 2) + 17;
   4830     size_t byte_left = &buf_.back() - p_;
   4831     if (byte_left < needed) {
   4832       if (is_native) {
   4833       // Cannot trigger memory allocation while walking native heap.
   4834         return;
   4835       }
   4836       Flush();
   4837     }
   4838 
   4839     byte_left = &buf_.back() - p_;
   4840     if (byte_left < needed) {
   4841       LOG(WARNING) << "Chunk is too big to transmit (chunk_len=" << length << ", "
   4842           << needed << " bytes)";
   4843       return;
   4844     }
   4845     EnsureHeader(ptr);
   4846     // Write out the chunk description.
   4847     length /= ALLOCATION_UNIT_SIZE;   // Convert to allocation units.
   4848     totalAllocationUnits_ += length;
   4849     while (length > 256) {
   4850       *p_++ = state | HPSG_PARTIAL;
   4851       *p_++ = 255;     // length - 1
   4852       length -= 256;
   4853     }
   4854     *p_++ = state;
   4855     *p_++ = length - 1;
   4856   }
   4857 
   4858   uint8_t ExamineNativeObject(const void* p) REQUIRES_SHARED(Locks::mutator_lock_) {
   4859     return p == nullptr ? HPSG_STATE(SOLIDITY_FREE, 0) : HPSG_STATE(SOLIDITY_HARD, KIND_NATIVE);
   4860   }
   4861 
   4862   uint8_t ExamineJavaObject(mirror::Object* o)
   4863       REQUIRES_SHARED(Locks::mutator_lock_, Locks::heap_bitmap_lock_) {
   4864     if (o == nullptr) {
   4865       return HPSG_STATE(SOLIDITY_FREE, 0);
   4866     }
   4867     // It's an allocated chunk. Figure out what it is.
   4868     gc::Heap* heap = Runtime::Current()->GetHeap();
   4869     if (!heap->IsLiveObjectLocked(o)) {
   4870       LOG(ERROR) << "Invalid object in managed heap: " << o;
   4871       return HPSG_STATE(SOLIDITY_HARD, KIND_NATIVE);
   4872     }
   4873     mirror::Class* c = o->GetClass();
   4874     if (c == nullptr) {
   4875       // The object was probably just created but hasn't been initialized yet.
   4876       return HPSG_STATE(SOLIDITY_HARD, KIND_OBJECT);
   4877     }
   4878     if (!heap->IsValidObjectAddress(c)) {
   4879       LOG(ERROR) << "Invalid class for managed heap object: " << o << " " << c;
   4880       return HPSG_STATE(SOLIDITY_HARD, KIND_UNKNOWN);
   4881     }
   4882     if (c->GetClass() == nullptr) {
   4883       LOG(ERROR) << "Null class of class " << c << " for object " << o;
   4884       return HPSG_STATE(SOLIDITY_HARD, KIND_UNKNOWN);
   4885     }
   4886     if (c->IsClassClass()) {
   4887       return HPSG_STATE(SOLIDITY_HARD, KIND_CLASS_OBJECT);
   4888     }
   4889     if (c->IsArrayClass()) {
   4890       switch (c->GetComponentSize()) {
   4891       case 1: return HPSG_STATE(SOLIDITY_HARD, KIND_ARRAY_1);
   4892       case 2: return HPSG_STATE(SOLIDITY_HARD, KIND_ARRAY_2);
   4893       case 4: return HPSG_STATE(SOLIDITY_HARD, KIND_ARRAY_4);
   4894       case 8: return HPSG_STATE(SOLIDITY_HARD, KIND_ARRAY_8);
   4895       }
   4896     }
   4897     return HPSG_STATE(SOLIDITY_HARD, KIND_OBJECT);
   4898   }
   4899 
   4900   std::vector<uint8_t> buf_;
   4901   uint8_t* p_;
   4902   uint8_t* pieceLenField_;
   4903   void* startOfNextMemoryChunk_;
   4904   size_t totalAllocationUnits_;
   4905   uint32_t type_;
   4906   bool needHeader_;
   4907   size_t chunk_overhead_;
   4908 
   4909   DISALLOW_COPY_AND_ASSIGN(HeapChunkContext);
   4910 };
   4911 
   4912 void Dbg::DdmSendHeapSegments(bool native) {
   4913   Dbg::HpsgWhen when = native ? gDdmNhsgWhen : gDdmHpsgWhen;
   4914   Dbg::HpsgWhat what = native ? gDdmNhsgWhat : gDdmHpsgWhat;
   4915   if (when == HPSG_WHEN_NEVER) {
   4916     return;
   4917   }
   4918   RuntimeCallbacks* cb = Runtime::Current()->GetRuntimeCallbacks();
   4919   // Figure out what kind of chunks we'll be sending.
   4920   CHECK(what == HPSG_WHAT_MERGED_OBJECTS || what == HPSG_WHAT_DISTINCT_OBJECTS)
   4921       << static_cast<int>(what);
   4922 
   4923   // First, send a heap start chunk.
   4924   uint8_t heap_id[4];
   4925   JDWP::Set4BE(&heap_id[0], 1);  // Heap id (bogus; we only have one heap).
   4926   cb->DdmPublishChunk(native ? CHUNK_TYPE("NHST") : CHUNK_TYPE("HPST"),
   4927                       ArrayRef<const uint8_t>(heap_id));
   4928   Thread* self = Thread::Current();
   4929   Locks::mutator_lock_->AssertSharedHeld(self);
   4930 
   4931   // Send a series of heap segment chunks.
   4932   HeapChunkContext context(what == HPSG_WHAT_MERGED_OBJECTS, native);
   4933   auto bump_pointer_space_visitor = [&](mirror::Object* obj)
   4934       REQUIRES_SHARED(Locks::mutator_lock_) REQUIRES(Locks::heap_bitmap_lock_) {
   4935     const size_t size = RoundUp(obj->SizeOf(), kObjectAlignment);
   4936     HeapChunkContext::HeapChunkJavaCallback(
   4937         obj, reinterpret_cast<void*>(reinterpret_cast<uintptr_t>(obj) + size), size, &context);
   4938   };
   4939   if (native) {
   4940     UNIMPLEMENTED(WARNING) << "Native heap inspection is not supported";
   4941   } else {
   4942     gc::Heap* heap = Runtime::Current()->GetHeap();
   4943     for (const auto& space : heap->GetContinuousSpaces()) {
   4944       if (space->IsDlMallocSpace()) {
   4945         ReaderMutexLock mu(self, *Locks::heap_bitmap_lock_);
   4946         // dlmalloc's chunk header is 2 * sizeof(size_t), but if the previous chunk is in use for an
   4947         // allocation then the first sizeof(size_t) may belong to it.
   4948         context.SetChunkOverhead(sizeof(size_t));
   4949         space->AsDlMallocSpace()->Walk(HeapChunkContext::HeapChunkJavaCallback, &context);
   4950       } else if (space->IsRosAllocSpace()) {
   4951         context.SetChunkOverhead(0);
   4952         // Need to acquire the mutator lock before the heap bitmap lock with exclusive access since
   4953         // RosAlloc's internal logic doesn't know to release and reacquire the heap bitmap lock.
   4954         ScopedThreadSuspension sts(self, kSuspended);
   4955         ScopedSuspendAll ssa(__FUNCTION__);
   4956         ReaderMutexLock mu(self, *Locks::heap_bitmap_lock_);
   4957         space->AsRosAllocSpace()->Walk(HeapChunkContext::HeapChunkJavaCallback, &context);
   4958       } else if (space->IsBumpPointerSpace()) {
   4959         ReaderMutexLock mu(self, *Locks::heap_bitmap_lock_);
   4960         context.SetChunkOverhead(0);
   4961         space->AsBumpPointerSpace()->Walk(bump_pointer_space_visitor);
   4962         HeapChunkContext::HeapChunkJavaCallback(nullptr, nullptr, 0, &context);
   4963       } else if (space->IsRegionSpace()) {
   4964         heap->IncrementDisableMovingGC(self);
   4965         {
   4966           ScopedThreadSuspension sts(self, kSuspended);
   4967           ScopedSuspendAll ssa(__FUNCTION__);
   4968           ReaderMutexLock mu(self, *Locks::heap_bitmap_lock_);
   4969           context.SetChunkOverhead(0);
   4970           space->AsRegionSpace()->Walk(bump_pointer_space_visitor);
   4971           HeapChunkContext::HeapChunkJavaCallback(nullptr, nullptr, 0, &context);
   4972         }
   4973         heap->DecrementDisableMovingGC(self);
   4974       } else {
   4975         UNIMPLEMENTED(WARNING) << "Not counting objects in space " << *space;
   4976       }
   4977       context.ResetStartOfNextChunk();
   4978     }
   4979     ReaderMutexLock mu(self, *Locks::heap_bitmap_lock_);
   4980     // Walk the large objects, these are not in the AllocSpace.
   4981     context.SetChunkOverhead(0);
   4982     heap->GetLargeObjectsSpace()->Walk(HeapChunkContext::HeapChunkJavaCallback, &context);
   4983   }
   4984 
   4985   // Finally, send a heap end chunk.
   4986   cb->DdmPublishChunk(native ? CHUNK_TYPE("NHEN") : CHUNK_TYPE("HPEN"),
   4987                       ArrayRef<const uint8_t>(heap_id));
   4988 }
   4989 
   4990 void Dbg::SetAllocTrackingEnabled(bool enable) {
   4991   gc::AllocRecordObjectMap::SetAllocTrackingEnabled(enable);
   4992 }
   4993 
   4994 void Dbg::DumpRecentAllocations() {
   4995   ScopedObjectAccess soa(Thread::Current());
   4996   MutexLock mu(soa.Self(), *Locks::alloc_tracker_lock_);
   4997   if (!Runtime::Current()->GetHeap()->IsAllocTrackingEnabled()) {
   4998     LOG(INFO) << "Not recording tracked allocations";
   4999     return;
   5000   }
   5001   gc::AllocRecordObjectMap* records = Runtime::Current()->GetHeap()->GetAllocationRecords();
   5002   CHECK(records != nullptr);
   5003 
   5004   const uint16_t capped_count = CappedAllocRecordCount(records->GetRecentAllocationSize());
   5005   uint16_t count = capped_count;
   5006 
   5007   LOG(INFO) << "Tracked allocations, (count=" << count << ")";
   5008   for (auto it = records->RBegin(), end = records->REnd();
   5009       count > 0 && it != end; count--, it++) {
   5010     const gc::AllocRecord* record = &it->second;
   5011 
   5012     LOG(INFO) << StringPrintf(" Thread %-2d %6zd bytes ", record->GetTid(), record->ByteCount())
   5013               << mirror::Class::PrettyClass(record->GetClass());
   5014 
   5015     for (size_t stack_frame = 0, depth = record->GetDepth(); stack_frame < depth; ++stack_frame) {
   5016       const gc::AllocRecordStackTraceElement& stack_element = record->StackElement(stack_frame);
   5017       ArtMethod* m = stack_element.GetMethod();
   5018       LOG(INFO) << "    " << ArtMethod::PrettyMethod(m) << " line "
   5019                 << stack_element.ComputeLineNumber();
   5020     }
   5021 
   5022     // pause periodically to help logcat catch up
   5023     if ((count % 5) == 0) {
   5024       usleep(40000);
   5025     }
   5026   }
   5027 }
   5028 
   5029 class StringTable {
   5030  private:
   5031   struct Entry {
   5032     explicit Entry(const char* data_in)
   5033         : data(data_in), hash(ComputeModifiedUtf8Hash(data_in)), index(0) {
   5034     }
   5035     Entry(const Entry& entry) = default;
   5036     Entry(Entry&& entry) = default;
   5037 
   5038     // Pointer to the actual string data.
   5039     const char* data;
   5040 
   5041     // The hash of the data.
   5042     const uint32_t hash;
   5043 
   5044     // The index. This will be filled in on Finish and is not part of the ordering, so mark it
   5045     // mutable.
   5046     mutable uint32_t index;
   5047 
   5048     bool operator==(const Entry& other) const {
   5049       return strcmp(data, other.data) == 0;
   5050     }
   5051   };
   5052   struct EntryHash {
   5053     size_t operator()(const Entry& entry) const {
   5054       return entry.hash;
   5055     }
   5056   };
   5057 
   5058  public:
   5059   StringTable() : finished_(false) {
   5060   }
   5061 
   5062   void Add(const char* str, bool copy_string) {
   5063     DCHECK(!finished_);
   5064     if (UNLIKELY(copy_string)) {
   5065       // Check whether it's already there.
   5066       Entry entry(str);
   5067       if (table_.find(entry) != table_.end()) {
   5068         return;
   5069       }
   5070 
   5071       // Make a copy.
   5072       size_t str_len = strlen(str);
   5073       char* copy = new char[str_len + 1];
   5074       strlcpy(copy, str, str_len + 1);
   5075       string_backup_.emplace_back(copy);
   5076       str = copy;
   5077     }
   5078     Entry entry(str);
   5079     table_.insert(entry);
   5080   }
   5081 
   5082   // Update all entries and give them an index. Note that this is likely not the insertion order,
   5083   // as the set will with high likelihood reorder elements. Thus, Add must not be called after
   5084   // Finish, and Finish must be called before IndexOf. In that case, WriteTo will walk in
   5085   // the same order as Finish, and indices will agree. The order invariant, as well as indices,
   5086   // are enforced through debug checks.
   5087   void Finish() {
   5088     DCHECK(!finished_);
   5089     finished_ = true;
   5090     uint32_t index = 0;
   5091     for (auto& entry : table_) {
   5092       entry.index = index;
   5093       ++index;
   5094     }
   5095   }
   5096 
   5097   size_t IndexOf(const char* s) const {
   5098     DCHECK(finished_);
   5099     Entry entry(s);
   5100     auto it = table_.find(entry);
   5101     if (it == table_.end()) {
   5102       LOG(FATAL) << "IndexOf(\"" << s << "\") failed";
   5103     }
   5104     return it->index;
   5105   }
   5106 
   5107   size_t Size() const {
   5108     return table_.size();
   5109   }
   5110 
   5111   void WriteTo(std::vector<uint8_t>& bytes) const {
   5112     DCHECK(finished_);
   5113     uint32_t cur_index = 0;
   5114     for (const auto& entry : table_) {
   5115       DCHECK_EQ(cur_index++, entry.index);
   5116 
   5117       size_t s_len = CountModifiedUtf8Chars(entry.data);
   5118       std::unique_ptr<uint16_t[]> s_utf16(new uint16_t[s_len]);
   5119       ConvertModifiedUtf8ToUtf16(s_utf16.get(), entry.data);
   5120       JDWP::AppendUtf16BE(bytes, s_utf16.get(), s_len);
   5121     }
   5122   }
   5123 
   5124  private:
   5125   std::unordered_set<Entry, EntryHash> table_;
   5126   std::vector<std::unique_ptr<char[]>> string_backup_;
   5127 
   5128   bool finished_;
   5129 
   5130   DISALLOW_COPY_AND_ASSIGN(StringTable);
   5131 };
   5132 
   5133 static const char* GetMethodSourceFile(ArtMethod* method)
   5134     REQUIRES_SHARED(Locks::mutator_lock_) {
   5135   DCHECK(method != nullptr);
   5136   const char* source_file = method->GetDeclaringClassSourceFile();
   5137   return (source_file != nullptr) ? source_file : "";
   5138 }
   5139 
   5140 /*
   5141  * The data we send to DDMS contains everything we have recorded.
   5142  *
   5143  * Message header (all values big-endian):
   5144  * (1b) message header len (to allow future expansion); includes itself
   5145  * (1b) entry header len
   5146  * (1b) stack frame len
   5147  * (2b) number of entries
   5148  * (4b) offset to string table from start of message
   5149  * (2b) number of class name strings
   5150  * (2b) number of method name strings
   5151  * (2b) number of source file name strings
   5152  * For each entry:
   5153  *   (4b) total allocation size
   5154  *   (2b) thread id
   5155  *   (2b) allocated object's class name index
   5156  *   (1b) stack depth
   5157  *   For each stack frame:
   5158  *     (2b) method's class name
   5159  *     (2b) method name
   5160  *     (2b) method source file
   5161  *     (2b) line number, clipped to 32767; -2 if native; -1 if no source
   5162  * (xb) class name strings
   5163  * (xb) method name strings
   5164  * (xb) source file strings
   5165  *
   5166  * As with other DDM traffic, strings are sent as a 4-byte length
   5167  * followed by UTF-16 data.
   5168  *
   5169  * We send up 16-bit unsigned indexes into string tables.  In theory there
   5170  * can be (kMaxAllocRecordStackDepth * alloc_record_max_) unique strings in
   5171  * each table, but in practice there should be far fewer.
   5172  *
   5173  * The chief reason for using a string table here is to keep the size of
   5174  * the DDMS message to a minimum.  This is partly to make the protocol
   5175  * efficient, but also because we have to form the whole thing up all at
   5176  * once in a memory buffer.
   5177  *
   5178  * We use separate string tables for class names, method names, and source
   5179  * files to keep the indexes small.  There will generally be no overlap
   5180  * between the contents of these tables.
   5181  */
   5182 jbyteArray Dbg::GetRecentAllocations() {
   5183   if ((false)) {
   5184     DumpRecentAllocations();
   5185   }
   5186 
   5187   Thread* self = Thread::Current();
   5188   std::vector<uint8_t> bytes;
   5189   {
   5190     MutexLock mu(self, *Locks::alloc_tracker_lock_);
   5191     gc::AllocRecordObjectMap* records = Runtime::Current()->GetHeap()->GetAllocationRecords();
   5192     // In case this method is called when allocation tracker is disabled,
   5193     // we should still send some data back.
   5194     gc::AllocRecordObjectMap dummy;
   5195     if (records == nullptr) {
   5196       CHECK(!Runtime::Current()->GetHeap()->IsAllocTrackingEnabled());
   5197       records = &dummy;
   5198     }
   5199     // We don't need to wait on the condition variable records->new_record_condition_, because this
   5200     // function only reads the class objects, which are already marked so it doesn't change their
   5201     // reachability.
   5202 
   5203     //
   5204     // Part 1: generate string tables.
   5205     //
   5206     StringTable class_names;
   5207     StringTable method_names;
   5208     StringTable filenames;
   5209 
   5210     VLOG(jdwp) << "Collecting StringTables.";
   5211 
   5212     const uint16_t capped_count = CappedAllocRecordCount(records->GetRecentAllocationSize());
   5213     uint16_t count = capped_count;
   5214     size_t alloc_byte_count = 0;
   5215     for (auto it = records->RBegin(), end = records->REnd();
   5216          count > 0 && it != end; count--, it++) {
   5217       const gc::AllocRecord* record = &it->second;
   5218       std::string temp;
   5219       const char* class_descr = record->GetClassDescriptor(&temp);
   5220       class_names.Add(class_descr, !temp.empty());
   5221 
   5222       // Size + tid + class name index + stack depth.
   5223       alloc_byte_count += 4u + 2u + 2u + 1u;
   5224 
   5225       for (size_t i = 0, depth = record->GetDepth(); i < depth; i++) {
   5226         ArtMethod* m = record->StackElement(i).GetMethod();
   5227         class_names.Add(m->GetDeclaringClassDescriptor(), false);
   5228         method_names.Add(m->GetName(), false);
   5229         filenames.Add(GetMethodSourceFile(m), false);
   5230       }
   5231 
   5232       // Depth * (class index + method name index + file name index + line number).
   5233       alloc_byte_count += record->GetDepth() * (2u + 2u + 2u + 2u);
   5234     }
   5235 
   5236     class_names.Finish();
   5237     method_names.Finish();
   5238     filenames.Finish();
   5239     VLOG(jdwp) << "Done collecting StringTables:" << std::endl
   5240                << "  ClassNames: " << class_names.Size() << std::endl
   5241                << "  MethodNames: " << method_names.Size() << std::endl
   5242                << "  Filenames: " << filenames.Size();
   5243 
   5244     LOG(INFO) << "recent allocation records: " << capped_count;
   5245     LOG(INFO) << "allocation records all objects: " << records->Size();
   5246 
   5247     //
   5248     // Part 2: Generate the output and store it in the buffer.
   5249     //
   5250 
   5251     // (1b) message header len (to allow future expansion); includes itself
   5252     // (1b) entry header len
   5253     // (1b) stack frame len
   5254     const int kMessageHeaderLen = 15;
   5255     const int kEntryHeaderLen = 9;
   5256     const int kStackFrameLen = 8;
   5257     JDWP::Append1BE(bytes, kMessageHeaderLen);
   5258     JDWP::Append1BE(bytes, kEntryHeaderLen);
   5259     JDWP::Append1BE(bytes, kStackFrameLen);
   5260 
   5261     // (2b) number of entries
   5262     // (4b) offset to string table from start of message
   5263     // (2b) number of class name strings
   5264     // (2b) number of method name strings
   5265     // (2b) number of source file name strings
   5266     JDWP::Append2BE(bytes, capped_count);
   5267     size_t string_table_offset = bytes.size();
   5268     JDWP::Append4BE(bytes, 0);  // We'll patch this later...
   5269     JDWP::Append2BE(bytes, class_names.Size());
   5270     JDWP::Append2BE(bytes, method_names.Size());
   5271     JDWP::Append2BE(bytes, filenames.Size());
   5272 
   5273     VLOG(jdwp) << "Dumping allocations with stacks";
   5274 
   5275     // Enlarge the vector for the allocation data.
   5276     size_t reserve_size = bytes.size() + alloc_byte_count;
   5277     bytes.reserve(reserve_size);
   5278 
   5279     std::string temp;
   5280     count = capped_count;
   5281     // The last "count" number of allocation records in "records" are the most recent "count" number
   5282     // of allocations. Reverse iterate to get them. The most recent allocation is sent first.
   5283     for (auto it = records->RBegin(), end = records->REnd();
   5284          count > 0 && it != end; count--, it++) {
   5285       // For each entry:
   5286       // (4b) total allocation size
   5287       // (2b) thread id
   5288       // (2b) allocated object's class name index
   5289       // (1b) stack depth
   5290       const gc::AllocRecord* record = &it->second;
   5291       size_t stack_depth = record->GetDepth();
   5292       size_t allocated_object_class_name_index =
   5293           class_names.IndexOf(record->GetClassDescriptor(&temp));
   5294       JDWP::Append4BE(bytes, record->ByteCount());
   5295       JDWP::Append2BE(bytes, static_cast<uint16_t>(record->GetTid()));
   5296       JDWP::Append2BE(bytes, allocated_object_class_name_index);
   5297       JDWP::Append1BE(bytes, stack_depth);
   5298 
   5299       for (size_t stack_frame = 0; stack_frame < stack_depth; ++stack_frame) {
   5300         // For each stack frame:
   5301         // (2b) method's class name
   5302         // (2b) method name
   5303         // (2b) method source file
   5304         // (2b) line number, clipped to 32767; -2 if native; -1 if no source
   5305         ArtMethod* m = record->StackElement(stack_frame).GetMethod();
   5306         size_t class_name_index = class_names.IndexOf(m->GetDeclaringClassDescriptor());
   5307         size_t method_name_index = method_names.IndexOf(m->GetName());
   5308         size_t file_name_index = filenames.IndexOf(GetMethodSourceFile(m));
   5309         JDWP::Append2BE(bytes, class_name_index);
   5310         JDWP::Append2BE(bytes, method_name_index);
   5311         JDWP::Append2BE(bytes, file_name_index);
   5312         JDWP::Append2BE(bytes, record->StackElement(stack_frame).ComputeLineNumber());
   5313       }
   5314     }
   5315 
   5316     CHECK_EQ(bytes.size(), reserve_size);
   5317     VLOG(jdwp) << "Dumping tables.";
   5318 
   5319     // (xb) class name strings
   5320     // (xb) method name strings
   5321     // (xb) source file strings
   5322     JDWP::Set4BE(&bytes[string_table_offset], bytes.size());
   5323     class_names.WriteTo(bytes);
   5324     method_names.WriteTo(bytes);
   5325     filenames.WriteTo(bytes);
   5326 
   5327     VLOG(jdwp) << "GetRecentAllocations: data created. " << bytes.size();
   5328   }
   5329   JNIEnv* env = self->GetJniEnv();
   5330   jbyteArray result = env->NewByteArray(bytes.size());
   5331   if (result != nullptr) {
   5332     env->SetByteArrayRegion(result, 0, bytes.size(), reinterpret_cast<const jbyte*>(&bytes[0]));
   5333   }
   5334   return result;
   5335 }
   5336 
   5337 ArtMethod* DeoptimizationRequest::Method() const {
   5338   return jni::DecodeArtMethod(method_);
   5339 }
   5340 
   5341 void DeoptimizationRequest::SetMethod(ArtMethod* m) {
   5342   method_ = jni::EncodeArtMethod(m);
   5343 }
   5344 
   5345 void Dbg::VisitRoots(RootVisitor* visitor) {
   5346   // Visit breakpoint roots, used to prevent unloading of methods with breakpoints.
   5347   ReaderMutexLock mu(Thread::Current(), *Locks::breakpoint_lock_);
   5348   BufferedRootVisitor<128> root_visitor(visitor, RootInfo(kRootVMInternal));
   5349   for (Breakpoint& breakpoint : gBreakpoints) {
   5350     breakpoint.Method()->VisitRoots(root_visitor, kRuntimePointerSize);
   5351   }
   5352 }
   5353 
   5354 void Dbg::DbgThreadLifecycleCallback::ThreadStart(Thread* self) {
   5355   Dbg::PostThreadStart(self);
   5356 }
   5357 
   5358 void Dbg::DbgThreadLifecycleCallback::ThreadDeath(Thread* self) {
   5359   Dbg::PostThreadDeath(self);
   5360 }
   5361 
   5362 void Dbg::DbgClassLoadCallback::ClassLoad(Handle<mirror::Class> klass ATTRIBUTE_UNUSED) {
   5363   // Ignore ClassLoad;
   5364 }
   5365 void Dbg::DbgClassLoadCallback::ClassPrepare(Handle<mirror::Class> temp_klass ATTRIBUTE_UNUSED,
   5366                                              Handle<mirror::Class> klass) {
   5367   Dbg::PostClassPrepare(klass.Get());
   5368 }
   5369 
   5370 }  // namespace art
   5371