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
73namespace art {
74
75using android::base::StringPrintf;
76
77// The key identifying the debugger to update instrumentation.
78static 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.
81static 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
89class 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
134static 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
141class 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.
304static bool gJdwpAllowed = true;
305
306// Was there a -Xrunjdwp or -agentlib:jdwp= argument on the command line?
307static bool gJdwpConfigured = false;
308
309// JDWP options for debugging. Only valid if IsJdwpConfigured() is true.
310static JDWP::JdwpOptions gJdwpOptions;
311
312// Runtime JDWP state.
313static JDWP::JdwpState* gJdwpState = nullptr;
314static bool gDebuggerConnected;  // debugger or DDMS is connected.
315
316static bool gDdmThreadNotification = false;
317
318// DDMS GC-related settings.
319static Dbg::HpifWhen gDdmHpifWhen = Dbg::HPIF_WHEN_NEVER;
320static Dbg::HpsgWhen gDdmHpsgWhen = Dbg::HPSG_WHEN_NEVER;
321static Dbg::HpsgWhat gDdmHpsgWhat;
322static Dbg::HpsgWhen gDdmNhsgWhen = Dbg::HPSG_WHEN_NEVER;
323static Dbg::HpsgWhat gDdmNhsgWhat;
324
325bool Dbg::gDebuggerActive = false;
326bool Dbg::gDisposed = false;
327ObjectRegistry* Dbg::gRegistry = nullptr;
328DebuggerActiveMethodInspectionCallback Dbg::gDebugActiveCallback;
329DebuggerDdmCallback Dbg::gDebugDdmCallback;
330InternalDebuggerControlCallback Dbg::gDebuggerControlCallback;
331
332// Deoptimization support.
333std::vector<DeoptimizationRequest> Dbg::deoptimization_requests_;
334size_t Dbg::full_deoptimization_event_count_ = 0;
335
336// Instrumentation event reference counters.
337size_t Dbg::dex_pc_change_event_ref_count_ = 0;
338size_t Dbg::method_enter_event_ref_count_ = 0;
339size_t Dbg::method_exit_event_ref_count_ = 0;
340size_t Dbg::field_read_event_ref_count_ = 0;
341size_t Dbg::field_write_event_ref_count_ = 0;
342size_t Dbg::exception_catch_event_ref_count_ = 0;
343uint32_t Dbg::instrumentation_events_ = 0;
344
345Dbg::DbgThreadLifecycleCallback Dbg::thread_lifecycle_callback_;
346Dbg::DbgClassLoadCallback Dbg::class_load_callback_;
347
348void 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
359bool DebuggerActiveMethodInspectionCallback::IsMethodBeingInspected(ArtMethod* m ATTRIBUTE_UNUSED) {
360  return Dbg::IsDebuggerActive();
361}
362
363bool DebuggerActiveMethodInspectionCallback::IsMethodSafeToJit(ArtMethod* m) {
364  return !Dbg::MethodHasAnyBreakpoints(m);
365}
366
367bool DebuggerActiveMethodInspectionCallback::MethodNeedsDebugVersion(
368    ArtMethod* m ATTRIBUTE_UNUSED) {
369  return Dbg::IsDebuggerActive();
370}
371
372void InternalDebuggerControlCallback::StartDebugger() {
373  // Release the mutator lock.
374  ScopedThreadStateChange stsc(art::Thread::Current(), kNative);
375  Dbg::StartJdwp();
376}
377
378void InternalDebuggerControlCallback::StopDebugger() {
379  Dbg::StopJdwp();
380}
381
382bool InternalDebuggerControlCallback::IsDebuggerConfigured() {
383  return Dbg::IsJdwpConfigured();
384}
385
386// Breakpoints.
387static std::vector<Breakpoint> gBreakpoints GUARDED_BY(Locks::breakpoint_lock_);
388
389void 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
394void SingleStepControl::AddDexPc(uint32_t dex_pc) {
395  dex_pcs_.insert(dex_pc);
396}
397
398bool SingleStepControl::ContainsDexPc(uint32_t dex_pc) const {
399  return dex_pcs_.find(dex_pc) == dex_pcs_.end();
400}
401
402static 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
415static 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
423static 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
438static 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
453static 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
480static 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
486static 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
493static 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 */
537JDWP::JdwpTag Dbg::TagFromObject(const ScopedObjectAccessUnchecked& soa, mirror::Object* o) {
538  return (o == nullptr) ? JDWP::JT_OBJECT : TagFromClass(soa, o->GetClass());
539}
540
541static 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
558void 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
592void 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
606void 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
624void Dbg::SetJdwpAllowed(bool allowed) {
625  gJdwpAllowed = allowed;
626}
627
628bool Dbg::IsJdwpAllowed() {
629  return gJdwpAllowed;
630}
631
632DebugInvokeReq* Dbg::GetInvokeReq() {
633  return Thread::Current()->GetInvokeReq();
634}
635
636Thread* Dbg::GetDebugThread() {
637  return (gJdwpState != nullptr) ? gJdwpState->GetDebugThread() : nullptr;
638}
639
640void Dbg::ClearWaitForEventThread() {
641  gJdwpState->ReleaseJdwpTokenForEvent();
642}
643
644void Dbg::Connected() {
645  CHECK(!gDebuggerConnected);
646  VLOG(jdwp) << "JDWP has attached";
647  gDebuggerConnected = true;
648  gDisposed = false;
649}
650
651bool 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
657void 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
707void 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
754void 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
761bool Dbg::IsJdwpConfigured() {
762  return gJdwpConfigured;
763}
764
765int64_t Dbg::LastDebuggerActivity() {
766  return gJdwpState->LastDebuggerActivity();
767}
768
769void Dbg::UndoDebuggerSuspensions() {
770  Runtime::Current()->GetThreadList()->UndoDebuggerSuspensions();
771}
772
773std::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
789std::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
797JDWP::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
808JDWP::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
824JDWP::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
834JDWP::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
855JDWP::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
885JDWP::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
935JDWP::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
954JDWP::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
974JDWP::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
997JDWP::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
1015JDWP::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
1025JDWP::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
1039JDWP::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
1055void Dbg::DisposeObject(JDWP::ObjectId object_id, uint32_t reference_count) {
1056  gRegistry->DisposeObject(object_id, reference_count);
1057}
1058
1059JDWP::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
1070JDWP::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.
1086class 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
1101void Dbg::GetClassList(std::vector<JDWP::RefTypeId>* classes) {
1102  ClassListCreator clc(classes);
1103  Runtime::Current()->GetClassLinker()->VisitClassesWithoutClassesLock(&clc);
1104}
1105
1106JDWP::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
1133void 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
1142JDWP::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
1158JDWP::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
1169JDWP::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
1186JDWP::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
1200JDWP::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
1212size_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
1242JDWP::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
1252JDWP::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
1298template <typename T>
1299static 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
1310JDWP::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
1354JDWP::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
1368JDWP::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 */
1398JDWP::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
1422JDWP::FieldId Dbg::ToFieldId(const ArtField* f) {
1423  return static_cast<JDWP::FieldId>(reinterpret_cast<uintptr_t>(f));
1424}
1425
1426static 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
1432static ArtField* FromFieldId(JDWP::FieldId fid)
1433    REQUIRES_SHARED(Locks::mutator_lock_) {
1434  return reinterpret_cast<ArtField*>(static_cast<uintptr_t>(fid));
1435}
1436
1437static ArtMethod* FromMethodId(JDWP::MethodId mid)
1438    REQUIRES_SHARED(Locks::mutator_lock_) {
1439  return reinterpret_cast<ArtMethod*>(static_cast<uintptr_t>(mid));
1440}
1441
1442bool 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
1450bool 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
1459bool 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
1469bool 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
1478bool 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
1484void 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
1497std::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
1505bool 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
1514std::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 */
1527static 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 */
1540static 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
1558static 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 */
1571static 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
1599JDWP::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
1627JDWP::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
1653JDWP::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
1670void 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
1716void 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
1780void 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
1787void 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
1794JDWP::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
1810JDWP::JdwpTag Dbg::GetFieldBasicTag(JDWP::FieldId field_id) {
1811  return BasicTagFromDescriptor(FromFieldId(field_id)->GetTypeDescriptor());
1812}
1813
1814JDWP::JdwpTag Dbg::GetStaticFieldBasicTag(JDWP::FieldId field_id) {
1815  return BasicTagFromDescriptor(FromFieldId(field_id)->GetTypeDescriptor());
1816}
1817
1818static 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
1863static 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
1923JDWP::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
1928JDWP::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
1933static 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
2003static 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
2041JDWP::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
2046JDWP::JdwpError Dbg::SetStaticFieldValue(JDWP::FieldId field_id, uint64_t value, int width) {
2047  return SetFieldValueImpl(0, field_id, value, width, true);
2048}
2049
2050JDWP::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
2072void 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
2094JDWP::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
2114JDWP::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
2141static 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
2165JDWP::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
2182JDWP::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
2201static 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
2231JDWP::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
2263JDWP::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
2270JDWP::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
2310JDWP::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
2334JDWP::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
2346JDWP::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
2357static 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
2369void 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
2402static 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
2424JDWP::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
2439JDWP::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
2494JDWP::ObjectId Dbg::GetThreadSelfId() {
2495  return GetThreadId(Thread::Current());
2496}
2497
2498JDWP::ObjectId Dbg::GetThreadId(Thread* thread) {
2499  ScopedObjectAccessUnchecked soa(Thread::Current());
2500  return gRegistry->Add(thread->GetPeerFromOtherThread());
2501}
2502
2503void 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
2511void Dbg::ResumeVM() {
2512  Runtime::Current()->GetThreadList()->ResumeAllForDebugger();
2513}
2514
2515JDWP::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
2542void 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
2567void Dbg::SuspendSelf() {
2568  Runtime::Current()->GetThreadList()->SuspendSelfForDebugger();
2569}
2570
2571struct 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
2593JDWP::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.
2612class 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
2648JDWP::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
2688constexpr JDWP::JdwpError kStackFrameLocalAccessError = JDWP::ERR_ABSENT_INFORMATION;
2689
2690static 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
2696static 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
2704JDWP::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
2819JDWP::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
2857template<typename T>
2858static 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
2867JDWP::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
2953static 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
2964void 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
2996void 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
3010void 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 */
3030class 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
3110void 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
3129void Dbg::PostClassPrepare(mirror::Class* c) {
3130  if (!IsDebuggerActive()) {
3131    return;
3132  }
3133  gJdwpState->PostClassPrepare(c);
3134}
3135
3136void 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
3213size_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.
3233void 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
3278void 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
3287void 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
3357void 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
3387static 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
3397bool 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.
3403static 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.
3431static 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.
3488void 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.
3523void 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
3565bool 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
3585bool 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
3619bool 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
3656bool 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
3690class 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?
3741bool 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.
3756class 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
3816JDWP::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
3944void 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
3953static 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
3982JDWP::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
4135void 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.
4157static 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
4177void 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
4295void 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
4316void 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
4339bool 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 */
4429bool 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
4464void 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
4485void Dbg::DdmConnected() {
4486  Dbg::DdmBroadcast(true);
4487}
4488
4489void 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 */
4500void 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
4532void 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
4556void 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
4563void Dbg::PostThreadStart(Thread* t) {
4564  Dbg::PostThreadStartOrStop(t, CHUNK_TYPE("THCR"));
4565}
4566
4567void Dbg::PostThreadDeath(Thread* t) {
4568  Dbg::PostThreadStartOrStop(t, CHUNK_TYPE("THDE"));
4569}
4570
4571JDWP::JdwpState* Dbg::GetJdwpState() {
4572  return gJdwpState;
4573}
4574
4575int 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
4590bool 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
4611void 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
4652enum 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
4662enum 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
4676class 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
4912void 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
4990void Dbg::SetAllocTrackingEnabled(bool enable) {
4991  gc::AllocRecordObjectMap::SetAllocTrackingEnabled(enable);
4992}
4993
4994void 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
5029class 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
5133static 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 */
5182jbyteArray 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
5337ArtMethod* DeoptimizationRequest::Method() const {
5338  return jni::DecodeArtMethod(method_);
5339}
5340
5341void DeoptimizationRequest::SetMethod(ArtMethod* m) {
5342  method_ = jni::EncodeArtMethod(m);
5343}
5344
5345void 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
5354void Dbg::DbgThreadLifecycleCallback::ThreadStart(Thread* self) {
5355  Dbg::PostThreadStart(self);
5356}
5357
5358void Dbg::DbgThreadLifecycleCallback::ThreadDeath(Thread* self) {
5359  Dbg::PostThreadDeath(self);
5360}
5361
5362void Dbg::DbgClassLoadCallback::ClassLoad(Handle<mirror::Class> klass ATTRIBUTE_UNUSED) {
5363  // Ignore ClassLoad;
5364}
5365void 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