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 <set> 22 23 #include "arch/context.h" 24 #include "class_linker.h" 25 #include "class_linker-inl.h" 26 #include "dex_file-inl.h" 27 #include "dex_instruction.h" 28 #include "field_helper.h" 29 #include "gc/accounting/card_table-inl.h" 30 #include "gc/space/large_object_space.h" 31 #include "gc/space/space-inl.h" 32 #include "handle_scope.h" 33 #include "jdwp/object_registry.h" 34 #include "method_helper.h" 35 #include "mirror/art_field-inl.h" 36 #include "mirror/art_method-inl.h" 37 #include "mirror/class.h" 38 #include "mirror/class-inl.h" 39 #include "mirror/class_loader.h" 40 #include "mirror/object-inl.h" 41 #include "mirror/object_array-inl.h" 42 #include "mirror/string-inl.h" 43 #include "mirror/throwable.h" 44 #include "quick/inline_method_analyser.h" 45 #include "reflection.h" 46 #include "safe_map.h" 47 #include "scoped_thread_state_change.h" 48 #include "ScopedLocalRef.h" 49 #include "ScopedPrimitiveArray.h" 50 #include "handle_scope-inl.h" 51 #include "thread_list.h" 52 #include "throw_location.h" 53 #include "utf.h" 54 #include "verifier/method_verifier-inl.h" 55 #include "well_known_classes.h" 56 57 #ifdef HAVE_ANDROID_OS 58 #include "cutils/properties.h" 59 #endif 60 61 namespace art { 62 63 static const size_t kMaxAllocRecordStackDepth = 16; // Max 255. 64 static const size_t kDefaultNumAllocRecords = 64*1024; // Must be a power of 2. 2BE can hold 64k-1. 65 66 // Limit alloc_record_count to the 2BE value that is the limit of the current protocol. 67 static uint16_t CappedAllocRecordCount(size_t alloc_record_count) { 68 if (alloc_record_count > 0xffff) { 69 return 0xffff; 70 } 71 return alloc_record_count; 72 } 73 74 class AllocRecordStackTraceElement { 75 public: 76 AllocRecordStackTraceElement() : method_(nullptr), dex_pc_(0) { 77 } 78 79 int32_t LineNumber() SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 80 mirror::ArtMethod* method = Method(); 81 DCHECK(method != nullptr); 82 return method->GetLineNumFromDexPC(DexPc()); 83 } 84 85 mirror::ArtMethod* Method() SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 86 ScopedObjectAccessUnchecked soa(Thread::Current()); 87 return soa.DecodeMethod(method_); 88 } 89 90 void SetMethod(mirror::ArtMethod* m) SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 91 ScopedObjectAccessUnchecked soa(Thread::Current()); 92 method_ = soa.EncodeMethod(m); 93 } 94 95 uint32_t DexPc() const { 96 return dex_pc_; 97 } 98 99 void SetDexPc(uint32_t pc) { 100 dex_pc_ = pc; 101 } 102 103 private: 104 jmethodID method_; 105 uint32_t dex_pc_; 106 }; 107 108 jobject Dbg::TypeCache::Add(mirror::Class* t) { 109 ScopedObjectAccessUnchecked soa(Thread::Current()); 110 int32_t hash_code = t->IdentityHashCode(); 111 auto range = objects_.equal_range(hash_code); 112 for (auto it = range.first; it != range.second; ++it) { 113 if (soa.Decode<mirror::Class*>(it->second) == t) { 114 // Found a matching weak global, return it. 115 return it->second; 116 } 117 } 118 JNIEnv* env = soa.Env(); 119 const jobject local_ref = soa.AddLocalReference<jobject>(t); 120 const jobject weak_global = env->NewWeakGlobalRef(local_ref); 121 env->DeleteLocalRef(local_ref); 122 objects_.insert(std::make_pair(hash_code, weak_global)); 123 return weak_global; 124 } 125 126 void Dbg::TypeCache::Clear() { 127 JavaVMExt* vm = Runtime::Current()->GetJavaVM(); 128 Thread* self = Thread::Current(); 129 for (const auto& p : objects_) { 130 vm->DeleteWeakGlobalRef(self, p.second); 131 } 132 objects_.clear(); 133 } 134 135 class AllocRecord { 136 public: 137 AllocRecord() : type_(nullptr), byte_count_(0), thin_lock_id_(0) {} 138 139 mirror::Class* Type() SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 140 return down_cast<mirror::Class*>(Thread::Current()->DecodeJObject(type_)); 141 } 142 143 void SetType(mirror::Class* t) SHARED_LOCKS_REQUIRED(Locks::mutator_lock_, 144 Locks::alloc_tracker_lock_) { 145 type_ = Dbg::type_cache_.Add(t); 146 } 147 148 size_t GetDepth() SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 149 size_t depth = 0; 150 while (depth < kMaxAllocRecordStackDepth && stack_[depth].Method() != NULL) { 151 ++depth; 152 } 153 return depth; 154 } 155 156 size_t ByteCount() const { 157 return byte_count_; 158 } 159 160 void SetByteCount(size_t count) { 161 byte_count_ = count; 162 } 163 164 uint16_t ThinLockId() const { 165 return thin_lock_id_; 166 } 167 168 void SetThinLockId(uint16_t id) { 169 thin_lock_id_ = id; 170 } 171 172 AllocRecordStackTraceElement* StackElement(size_t index) { 173 DCHECK_LT(index, kMaxAllocRecordStackDepth); 174 return &stack_[index]; 175 } 176 177 private: 178 jobject type_; // This is a weak global. 179 size_t byte_count_; 180 uint16_t thin_lock_id_; 181 AllocRecordStackTraceElement stack_[kMaxAllocRecordStackDepth]; // Unused entries have NULL method. 182 }; 183 184 class Breakpoint { 185 public: 186 Breakpoint(mirror::ArtMethod* method, uint32_t dex_pc, 187 DeoptimizationRequest::Kind deoptimization_kind) 188 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) 189 : method_(nullptr), dex_pc_(dex_pc), deoptimization_kind_(deoptimization_kind) { 190 CHECK(deoptimization_kind_ == DeoptimizationRequest::kNothing || 191 deoptimization_kind_ == DeoptimizationRequest::kSelectiveDeoptimization || 192 deoptimization_kind_ == DeoptimizationRequest::kFullDeoptimization); 193 ScopedObjectAccessUnchecked soa(Thread::Current()); 194 method_ = soa.EncodeMethod(method); 195 } 196 197 Breakpoint(const Breakpoint& other) SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) 198 : method_(nullptr), dex_pc_(other.dex_pc_), 199 deoptimization_kind_(other.deoptimization_kind_) { 200 ScopedObjectAccessUnchecked soa(Thread::Current()); 201 method_ = soa.EncodeMethod(other.Method()); 202 } 203 204 mirror::ArtMethod* Method() const SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 205 ScopedObjectAccessUnchecked soa(Thread::Current()); 206 return soa.DecodeMethod(method_); 207 } 208 209 uint32_t DexPc() const { 210 return dex_pc_; 211 } 212 213 DeoptimizationRequest::Kind GetDeoptimizationKind() const { 214 return deoptimization_kind_; 215 } 216 217 private: 218 // The location of this breakpoint. 219 jmethodID method_; 220 uint32_t dex_pc_; 221 222 // Indicates whether breakpoint needs full deoptimization or selective deoptimization. 223 DeoptimizationRequest::Kind deoptimization_kind_; 224 }; 225 226 static std::ostream& operator<<(std::ostream& os, const Breakpoint& rhs) 227 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 228 os << StringPrintf("Breakpoint[%s @%#x]", PrettyMethod(rhs.Method()).c_str(), rhs.DexPc()); 229 return os; 230 } 231 232 class DebugInstrumentationListener FINAL : public instrumentation::InstrumentationListener { 233 public: 234 DebugInstrumentationListener() {} 235 virtual ~DebugInstrumentationListener() {} 236 237 void MethodEntered(Thread* thread, mirror::Object* this_object, mirror::ArtMethod* method, 238 uint32_t dex_pc) 239 OVERRIDE SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 240 if (method->IsNative()) { 241 // TODO: post location events is a suspension point and native method entry stubs aren't. 242 return; 243 } 244 Dbg::UpdateDebugger(thread, this_object, method, 0, Dbg::kMethodEntry, nullptr); 245 } 246 247 void MethodExited(Thread* thread, mirror::Object* this_object, mirror::ArtMethod* method, 248 uint32_t dex_pc, const JValue& return_value) 249 OVERRIDE SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 250 if (method->IsNative()) { 251 // TODO: post location events is a suspension point and native method entry stubs aren't. 252 return; 253 } 254 Dbg::UpdateDebugger(thread, this_object, method, dex_pc, Dbg::kMethodExit, &return_value); 255 } 256 257 void MethodUnwind(Thread* thread, mirror::Object* this_object, mirror::ArtMethod* method, 258 uint32_t dex_pc) 259 OVERRIDE SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 260 // We're not recorded to listen to this kind of event, so complain. 261 LOG(ERROR) << "Unexpected method unwind event in debugger " << PrettyMethod(method) 262 << " " << dex_pc; 263 } 264 265 void DexPcMoved(Thread* thread, mirror::Object* this_object, mirror::ArtMethod* method, 266 uint32_t new_dex_pc) 267 OVERRIDE SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 268 Dbg::UpdateDebugger(thread, this_object, method, new_dex_pc, 0, nullptr); 269 } 270 271 void FieldRead(Thread* thread, mirror::Object* this_object, mirror::ArtMethod* method, 272 uint32_t dex_pc, mirror::ArtField* field) 273 OVERRIDE SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 274 Dbg::PostFieldAccessEvent(method, dex_pc, this_object, field); 275 } 276 277 void FieldWritten(Thread* thread, mirror::Object* this_object, mirror::ArtMethod* method, 278 uint32_t dex_pc, mirror::ArtField* field, const JValue& field_value) 279 OVERRIDE SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 280 Dbg::PostFieldModificationEvent(method, dex_pc, this_object, field, &field_value); 281 } 282 283 void ExceptionCaught(Thread* thread, const ThrowLocation& throw_location, 284 mirror::ArtMethod* catch_method, uint32_t catch_dex_pc, 285 mirror::Throwable* exception_object) 286 OVERRIDE SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 287 Dbg::PostException(throw_location, catch_method, catch_dex_pc, exception_object); 288 } 289 290 private: 291 DISALLOW_COPY_AND_ASSIGN(DebugInstrumentationListener); 292 } gDebugInstrumentationListener; 293 294 // JDWP is allowed unless the Zygote forbids it. 295 static bool gJdwpAllowed = true; 296 297 // Was there a -Xrunjdwp or -agentlib:jdwp= argument on the command line? 298 static bool gJdwpConfigured = false; 299 300 // Broken-down JDWP options. (Only valid if IsJdwpConfigured() is true.) 301 static JDWP::JdwpOptions gJdwpOptions; 302 303 // Runtime JDWP state. 304 static JDWP::JdwpState* gJdwpState = NULL; 305 static bool gDebuggerConnected; // debugger or DDMS is connected. 306 static bool gDebuggerActive; // debugger is making requests. 307 static bool gDisposed; // debugger called VirtualMachine.Dispose, so we should drop the connection. 308 309 static bool gDdmThreadNotification = false; 310 311 // DDMS GC-related settings. 312 static Dbg::HpifWhen gDdmHpifWhen = Dbg::HPIF_WHEN_NEVER; 313 static Dbg::HpsgWhen gDdmHpsgWhen = Dbg::HPSG_WHEN_NEVER; 314 static Dbg::HpsgWhat gDdmHpsgWhat; 315 static Dbg::HpsgWhen gDdmNhsgWhen = Dbg::HPSG_WHEN_NEVER; 316 static Dbg::HpsgWhat gDdmNhsgWhat; 317 318 ObjectRegistry* Dbg::gRegistry = nullptr; 319 320 // Recent allocation tracking. 321 AllocRecord* Dbg::recent_allocation_records_ = nullptr; // TODO: CircularBuffer<AllocRecord> 322 size_t Dbg::alloc_record_max_ = 0; 323 size_t Dbg::alloc_record_head_ = 0; 324 size_t Dbg::alloc_record_count_ = 0; 325 Dbg::TypeCache Dbg::type_cache_; 326 327 // Deoptimization support. 328 std::vector<DeoptimizationRequest> Dbg::deoptimization_requests_; 329 size_t Dbg::full_deoptimization_event_count_ = 0; 330 size_t Dbg::delayed_full_undeoptimization_count_ = 0; 331 332 // Instrumentation event reference counters. 333 size_t Dbg::dex_pc_change_event_ref_count_ = 0; 334 size_t Dbg::method_enter_event_ref_count_ = 0; 335 size_t Dbg::method_exit_event_ref_count_ = 0; 336 size_t Dbg::field_read_event_ref_count_ = 0; 337 size_t Dbg::field_write_event_ref_count_ = 0; 338 size_t Dbg::exception_catch_event_ref_count_ = 0; 339 uint32_t Dbg::instrumentation_events_ = 0; 340 341 // Breakpoints. 342 static std::vector<Breakpoint> gBreakpoints GUARDED_BY(Locks::breakpoint_lock_); 343 344 void DebugInvokeReq::VisitRoots(RootCallback* callback, void* arg, const RootInfo& root_info) { 345 if (receiver != nullptr) { 346 callback(&receiver, arg, root_info); 347 } 348 if (thread != nullptr) { 349 callback(&thread, arg, root_info); 350 } 351 if (klass != nullptr) { 352 callback(reinterpret_cast<mirror::Object**>(&klass), arg, root_info); 353 } 354 if (method != nullptr) { 355 callback(reinterpret_cast<mirror::Object**>(&method), arg, root_info); 356 } 357 } 358 359 void DebugInvokeReq::Clear() { 360 invoke_needed = false; 361 receiver = nullptr; 362 thread = nullptr; 363 klass = nullptr; 364 method = nullptr; 365 } 366 367 void SingleStepControl::VisitRoots(RootCallback* callback, void* arg, const RootInfo& root_info) { 368 if (method != nullptr) { 369 callback(reinterpret_cast<mirror::Object**>(&method), arg, root_info); 370 } 371 } 372 373 bool SingleStepControl::ContainsDexPc(uint32_t dex_pc) const { 374 return dex_pcs.find(dex_pc) == dex_pcs.end(); 375 } 376 377 void SingleStepControl::Clear() { 378 is_active = false; 379 method = nullptr; 380 dex_pcs.clear(); 381 } 382 383 static bool IsBreakpoint(const mirror::ArtMethod* m, uint32_t dex_pc) 384 LOCKS_EXCLUDED(Locks::breakpoint_lock_) 385 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 386 ReaderMutexLock mu(Thread::Current(), *Locks::breakpoint_lock_); 387 for (size_t i = 0, e = gBreakpoints.size(); i < e; ++i) { 388 if (gBreakpoints[i].DexPc() == dex_pc && gBreakpoints[i].Method() == m) { 389 VLOG(jdwp) << "Hit breakpoint #" << i << ": " << gBreakpoints[i]; 390 return true; 391 } 392 } 393 return false; 394 } 395 396 static bool IsSuspendedForDebugger(ScopedObjectAccessUnchecked& soa, Thread* thread) 397 LOCKS_EXCLUDED(Locks::thread_suspend_count_lock_) { 398 MutexLock mu(soa.Self(), *Locks::thread_suspend_count_lock_); 399 // A thread may be suspended for GC; in this code, we really want to know whether 400 // there's a debugger suspension active. 401 return thread->IsSuspended() && thread->GetDebugSuspendCount() > 0; 402 } 403 404 static mirror::Array* DecodeArray(JDWP::RefTypeId id, JDWP::JdwpError& status) 405 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 406 mirror::Object* o = Dbg::GetObjectRegistry()->Get<mirror::Object*>(id); 407 if (o == NULL || o == ObjectRegistry::kInvalidObject) { 408 status = JDWP::ERR_INVALID_OBJECT; 409 return NULL; 410 } 411 if (!o->IsArrayInstance()) { 412 status = JDWP::ERR_INVALID_ARRAY; 413 return NULL; 414 } 415 status = JDWP::ERR_NONE; 416 return o->AsArray(); 417 } 418 419 static mirror::Class* DecodeClass(JDWP::RefTypeId id, JDWP::JdwpError& status) 420 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 421 mirror::Object* o = Dbg::GetObjectRegistry()->Get<mirror::Object*>(id); 422 if (o == NULL || o == ObjectRegistry::kInvalidObject) { 423 status = JDWP::ERR_INVALID_OBJECT; 424 return NULL; 425 } 426 if (!o->IsClass()) { 427 status = JDWP::ERR_INVALID_CLASS; 428 return NULL; 429 } 430 status = JDWP::ERR_NONE; 431 return o->AsClass(); 432 } 433 434 static JDWP::JdwpError DecodeThread(ScopedObjectAccessUnchecked& soa, JDWP::ObjectId thread_id, Thread*& thread) 435 EXCLUSIVE_LOCKS_REQUIRED(Locks::thread_list_lock_) 436 LOCKS_EXCLUDED(Locks::thread_suspend_count_lock_) 437 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 438 mirror::Object* thread_peer = Dbg::GetObjectRegistry()->Get<mirror::Object*>(thread_id); 439 if (thread_peer == NULL || thread_peer == ObjectRegistry::kInvalidObject) { 440 // This isn't even an object. 441 return JDWP::ERR_INVALID_OBJECT; 442 } 443 444 mirror::Class* java_lang_Thread = soa.Decode<mirror::Class*>(WellKnownClasses::java_lang_Thread); 445 if (!java_lang_Thread->IsAssignableFrom(thread_peer->GetClass())) { 446 // This isn't a thread. 447 return JDWP::ERR_INVALID_THREAD; 448 } 449 450 thread = Thread::FromManagedThread(soa, thread_peer); 451 if (thread == NULL) { 452 // This is a java.lang.Thread without a Thread*. Must be a zombie. 453 return JDWP::ERR_THREAD_NOT_ALIVE; 454 } 455 return JDWP::ERR_NONE; 456 } 457 458 static JDWP::JdwpTag BasicTagFromDescriptor(const char* descriptor) { 459 // JDWP deliberately uses the descriptor characters' ASCII values for its enum. 460 // Note that by "basic" we mean that we don't get more specific than JT_OBJECT. 461 return static_cast<JDWP::JdwpTag>(descriptor[0]); 462 } 463 464 static JDWP::JdwpTag BasicTagFromClass(mirror::Class* klass) 465 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 466 std::string temp; 467 const char* descriptor = klass->GetDescriptor(&temp); 468 return BasicTagFromDescriptor(descriptor); 469 } 470 471 static JDWP::JdwpTag TagFromClass(const ScopedObjectAccessUnchecked& soa, mirror::Class* c) 472 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 473 CHECK(c != NULL); 474 if (c->IsArrayClass()) { 475 return JDWP::JT_ARRAY; 476 } 477 if (c->IsStringClass()) { 478 return JDWP::JT_STRING; 479 } 480 if (c->IsClassClass()) { 481 return JDWP::JT_CLASS_OBJECT; 482 } 483 { 484 mirror::Class* thread_class = soa.Decode<mirror::Class*>(WellKnownClasses::java_lang_Thread); 485 if (thread_class->IsAssignableFrom(c)) { 486 return JDWP::JT_THREAD; 487 } 488 } 489 { 490 mirror::Class* thread_group_class = 491 soa.Decode<mirror::Class*>(WellKnownClasses::java_lang_ThreadGroup); 492 if (thread_group_class->IsAssignableFrom(c)) { 493 return JDWP::JT_THREAD_GROUP; 494 } 495 } 496 { 497 mirror::Class* class_loader_class = 498 soa.Decode<mirror::Class*>(WellKnownClasses::java_lang_ClassLoader); 499 if (class_loader_class->IsAssignableFrom(c)) { 500 return JDWP::JT_CLASS_LOADER; 501 } 502 } 503 return JDWP::JT_OBJECT; 504 } 505 506 /* 507 * Objects declared to hold Object might actually hold a more specific 508 * type. The debugger may take a special interest in these (e.g. it 509 * wants to display the contents of Strings), so we want to return an 510 * appropriate tag. 511 * 512 * Null objects are tagged JT_OBJECT. 513 */ 514 JDWP::JdwpTag Dbg::TagFromObject(const ScopedObjectAccessUnchecked& soa, mirror::Object* o) { 515 return (o == NULL) ? JDWP::JT_OBJECT : TagFromClass(soa, o->GetClass()); 516 } 517 518 static bool IsPrimitiveTag(JDWP::JdwpTag tag) { 519 switch (tag) { 520 case JDWP::JT_BOOLEAN: 521 case JDWP::JT_BYTE: 522 case JDWP::JT_CHAR: 523 case JDWP::JT_FLOAT: 524 case JDWP::JT_DOUBLE: 525 case JDWP::JT_INT: 526 case JDWP::JT_LONG: 527 case JDWP::JT_SHORT: 528 case JDWP::JT_VOID: 529 return true; 530 default: 531 return false; 532 } 533 } 534 535 /* 536 * Handle one of the JDWP name/value pairs. 537 * 538 * JDWP options are: 539 * help: if specified, show help message and bail 540 * transport: may be dt_socket or dt_shmem 541 * address: for dt_socket, "host:port", or just "port" when listening 542 * server: if "y", wait for debugger to attach; if "n", attach to debugger 543 * timeout: how long to wait for debugger to connect / listen 544 * 545 * Useful with server=n (these aren't supported yet): 546 * onthrow=<exception-name>: connect to debugger when exception thrown 547 * onuncaught=y|n: connect to debugger when uncaught exception thrown 548 * launch=<command-line>: launch the debugger itself 549 * 550 * The "transport" option is required, as is "address" if server=n. 551 */ 552 static bool ParseJdwpOption(const std::string& name, const std::string& value) { 553 if (name == "transport") { 554 if (value == "dt_socket") { 555 gJdwpOptions.transport = JDWP::kJdwpTransportSocket; 556 } else if (value == "dt_android_adb") { 557 gJdwpOptions.transport = JDWP::kJdwpTransportAndroidAdb; 558 } else { 559 LOG(ERROR) << "JDWP transport not supported: " << value; 560 return false; 561 } 562 } else if (name == "server") { 563 if (value == "n") { 564 gJdwpOptions.server = false; 565 } else if (value == "y") { 566 gJdwpOptions.server = true; 567 } else { 568 LOG(ERROR) << "JDWP option 'server' must be 'y' or 'n'"; 569 return false; 570 } 571 } else if (name == "suspend") { 572 if (value == "n") { 573 gJdwpOptions.suspend = false; 574 } else if (value == "y") { 575 gJdwpOptions.suspend = true; 576 } else { 577 LOG(ERROR) << "JDWP option 'suspend' must be 'y' or 'n'"; 578 return false; 579 } 580 } else if (name == "address") { 581 /* this is either <port> or <host>:<port> */ 582 std::string port_string; 583 gJdwpOptions.host.clear(); 584 std::string::size_type colon = value.find(':'); 585 if (colon != std::string::npos) { 586 gJdwpOptions.host = value.substr(0, colon); 587 port_string = value.substr(colon + 1); 588 } else { 589 port_string = value; 590 } 591 if (port_string.empty()) { 592 LOG(ERROR) << "JDWP address missing port: " << value; 593 return false; 594 } 595 char* end; 596 uint64_t port = strtoul(port_string.c_str(), &end, 10); 597 if (*end != '\0' || port > 0xffff) { 598 LOG(ERROR) << "JDWP address has junk in port field: " << value; 599 return false; 600 } 601 gJdwpOptions.port = port; 602 } else if (name == "launch" || name == "onthrow" || name == "oncaught" || name == "timeout") { 603 /* valid but unsupported */ 604 LOG(INFO) << "Ignoring JDWP option '" << name << "'='" << value << "'"; 605 } else { 606 LOG(INFO) << "Ignoring unrecognized JDWP option '" << name << "'='" << value << "'"; 607 } 608 609 return true; 610 } 611 612 /* 613 * Parse the latter half of a -Xrunjdwp/-agentlib:jdwp= string, e.g.: 614 * "transport=dt_socket,address=8000,server=y,suspend=n" 615 */ 616 bool Dbg::ParseJdwpOptions(const std::string& options) { 617 VLOG(jdwp) << "ParseJdwpOptions: " << options; 618 619 std::vector<std::string> pairs; 620 Split(options, ',', pairs); 621 622 for (size_t i = 0; i < pairs.size(); ++i) { 623 std::string::size_type equals = pairs[i].find('='); 624 if (equals == std::string::npos) { 625 LOG(ERROR) << "Can't parse JDWP option '" << pairs[i] << "' in '" << options << "'"; 626 return false; 627 } 628 ParseJdwpOption(pairs[i].substr(0, equals), pairs[i].substr(equals + 1)); 629 } 630 631 if (gJdwpOptions.transport == JDWP::kJdwpTransportUnknown) { 632 LOG(ERROR) << "Must specify JDWP transport: " << options; 633 } 634 if (!gJdwpOptions.server && (gJdwpOptions.host.empty() || gJdwpOptions.port == 0)) { 635 LOG(ERROR) << "Must specify JDWP host and port when server=n: " << options; 636 return false; 637 } 638 639 gJdwpConfigured = true; 640 return true; 641 } 642 643 void Dbg::StartJdwp() { 644 if (!gJdwpAllowed || !IsJdwpConfigured()) { 645 // No JDWP for you! 646 return; 647 } 648 649 CHECK(gRegistry == nullptr); 650 gRegistry = new ObjectRegistry; 651 652 // Init JDWP if the debugger is enabled. This may connect out to a 653 // debugger, passively listen for a debugger, or block waiting for a 654 // debugger. 655 gJdwpState = JDWP::JdwpState::Create(&gJdwpOptions); 656 if (gJdwpState == NULL) { 657 // We probably failed because some other process has the port already, which means that 658 // if we don't abort the user is likely to think they're talking to us when they're actually 659 // talking to that other process. 660 LOG(FATAL) << "Debugger thread failed to initialize"; 661 } 662 663 // If a debugger has already attached, send the "welcome" message. 664 // This may cause us to suspend all threads. 665 if (gJdwpState->IsActive()) { 666 ScopedObjectAccess soa(Thread::Current()); 667 if (!gJdwpState->PostVMStart()) { 668 LOG(WARNING) << "Failed to post 'start' message to debugger"; 669 } 670 } 671 } 672 673 void Dbg::StopJdwp() { 674 // Post VM_DEATH event before the JDWP connection is closed (either by the JDWP thread or the 675 // destruction of gJdwpState). 676 if (gJdwpState != nullptr && gJdwpState->IsActive()) { 677 gJdwpState->PostVMDeath(); 678 } 679 // Prevent the JDWP thread from processing JDWP incoming packets after we close the connection. 680 Disposed(); 681 delete gJdwpState; 682 gJdwpState = nullptr; 683 delete gRegistry; 684 gRegistry = nullptr; 685 } 686 687 void Dbg::GcDidFinish() { 688 if (gDdmHpifWhen != HPIF_WHEN_NEVER) { 689 ScopedObjectAccess soa(Thread::Current()); 690 VLOG(jdwp) << "Sending heap info to DDM"; 691 DdmSendHeapInfo(gDdmHpifWhen); 692 } 693 if (gDdmHpsgWhen != HPSG_WHEN_NEVER) { 694 ScopedObjectAccess soa(Thread::Current()); 695 VLOG(jdwp) << "Dumping heap to DDM"; 696 DdmSendHeapSegments(false); 697 } 698 if (gDdmNhsgWhen != HPSG_WHEN_NEVER) { 699 ScopedObjectAccess soa(Thread::Current()); 700 VLOG(jdwp) << "Dumping native heap to DDM"; 701 DdmSendHeapSegments(true); 702 } 703 } 704 705 void Dbg::SetJdwpAllowed(bool allowed) { 706 gJdwpAllowed = allowed; 707 } 708 709 DebugInvokeReq* Dbg::GetInvokeReq() { 710 return Thread::Current()->GetInvokeReq(); 711 } 712 713 Thread* Dbg::GetDebugThread() { 714 return (gJdwpState != NULL) ? gJdwpState->GetDebugThread() : NULL; 715 } 716 717 void Dbg::ClearWaitForEventThread() { 718 gJdwpState->ClearWaitForEventThread(); 719 } 720 721 void Dbg::Connected() { 722 CHECK(!gDebuggerConnected); 723 VLOG(jdwp) << "JDWP has attached"; 724 gDebuggerConnected = true; 725 gDisposed = false; 726 } 727 728 void Dbg::Disposed() { 729 gDisposed = true; 730 } 731 732 bool Dbg::IsDisposed() { 733 return gDisposed; 734 } 735 736 bool Dbg::RequiresDeoptimization() { 737 // We don't need deoptimization if everything runs with interpreter after 738 // enabling -Xint mode. 739 return !Runtime::Current()->GetInstrumentation()->IsForcedInterpretOnly(); 740 } 741 742 void Dbg::GoActive() { 743 // Enable all debugging features, including scans for breakpoints. 744 // This is a no-op if we're already active. 745 // Only called from the JDWP handler thread. 746 if (gDebuggerActive) { 747 return; 748 } 749 750 { 751 // TODO: dalvik only warned if there were breakpoints left over. clear in Dbg::Disconnected? 752 ReaderMutexLock mu(Thread::Current(), *Locks::breakpoint_lock_); 753 CHECK_EQ(gBreakpoints.size(), 0U); 754 } 755 756 { 757 MutexLock mu(Thread::Current(), *Locks::deoptimization_lock_); 758 CHECK_EQ(deoptimization_requests_.size(), 0U); 759 CHECK_EQ(full_deoptimization_event_count_, 0U); 760 CHECK_EQ(delayed_full_undeoptimization_count_, 0U); 761 CHECK_EQ(dex_pc_change_event_ref_count_, 0U); 762 CHECK_EQ(method_enter_event_ref_count_, 0U); 763 CHECK_EQ(method_exit_event_ref_count_, 0U); 764 CHECK_EQ(field_read_event_ref_count_, 0U); 765 CHECK_EQ(field_write_event_ref_count_, 0U); 766 CHECK_EQ(exception_catch_event_ref_count_, 0U); 767 } 768 769 Runtime* runtime = Runtime::Current(); 770 runtime->GetThreadList()->SuspendAll(); 771 Thread* self = Thread::Current(); 772 ThreadState old_state = self->SetStateUnsafe(kRunnable); 773 CHECK_NE(old_state, kRunnable); 774 if (RequiresDeoptimization()) { 775 runtime->GetInstrumentation()->EnableDeoptimization(); 776 } 777 instrumentation_events_ = 0; 778 gDebuggerActive = true; 779 CHECK_EQ(self->SetStateUnsafe(old_state), kRunnable); 780 runtime->GetThreadList()->ResumeAll(); 781 782 LOG(INFO) << "Debugger is active"; 783 } 784 785 void Dbg::Disconnected() { 786 CHECK(gDebuggerConnected); 787 788 LOG(INFO) << "Debugger is no longer active"; 789 790 // Suspend all threads and exclusively acquire the mutator lock. Set the state of the thread 791 // to kRunnable to avoid scoped object access transitions. Remove the debugger as a listener 792 // and clear the object registry. 793 Runtime* runtime = Runtime::Current(); 794 runtime->GetThreadList()->SuspendAll(); 795 Thread* self = Thread::Current(); 796 ThreadState old_state = self->SetStateUnsafe(kRunnable); 797 798 // Debugger may not be active at this point. 799 if (gDebuggerActive) { 800 { 801 // Since we're going to disable deoptimization, we clear the deoptimization requests queue. 802 // This prevents us from having any pending deoptimization request when the debugger attaches 803 // to us again while no event has been requested yet. 804 MutexLock mu(Thread::Current(), *Locks::deoptimization_lock_); 805 deoptimization_requests_.clear(); 806 full_deoptimization_event_count_ = 0U; 807 delayed_full_undeoptimization_count_ = 0U; 808 } 809 if (instrumentation_events_ != 0) { 810 runtime->GetInstrumentation()->RemoveListener(&gDebugInstrumentationListener, 811 instrumentation_events_); 812 instrumentation_events_ = 0; 813 } 814 if (RequiresDeoptimization()) { 815 runtime->GetInstrumentation()->DisableDeoptimization(); 816 } 817 gDebuggerActive = false; 818 } 819 gRegistry->Clear(); 820 gDebuggerConnected = false; 821 CHECK_EQ(self->SetStateUnsafe(old_state), kRunnable); 822 runtime->GetThreadList()->ResumeAll(); 823 } 824 825 bool Dbg::IsDebuggerActive() { 826 return gDebuggerActive; 827 } 828 829 bool Dbg::IsJdwpConfigured() { 830 return gJdwpConfigured; 831 } 832 833 int64_t Dbg::LastDebuggerActivity() { 834 return gJdwpState->LastDebuggerActivity(); 835 } 836 837 void Dbg::UndoDebuggerSuspensions() { 838 Runtime::Current()->GetThreadList()->UndoDebuggerSuspensions(); 839 } 840 841 std::string Dbg::GetClassName(JDWP::RefTypeId class_id) { 842 mirror::Object* o = gRegistry->Get<mirror::Object*>(class_id); 843 if (o == NULL) { 844 return "NULL"; 845 } 846 if (o == ObjectRegistry::kInvalidObject) { 847 return StringPrintf("invalid object %p", reinterpret_cast<void*>(class_id)); 848 } 849 if (!o->IsClass()) { 850 return StringPrintf("non-class %p", o); // This is only used for debugging output anyway. 851 } 852 return GetClassName(o->AsClass()); 853 } 854 855 std::string Dbg::GetClassName(mirror::Class* klass) { 856 if (klass == nullptr) { 857 return "NULL"; 858 } 859 std::string temp; 860 return DescriptorToName(klass->GetDescriptor(&temp)); 861 } 862 863 JDWP::JdwpError Dbg::GetClassObject(JDWP::RefTypeId id, JDWP::ObjectId& class_object_id) { 864 JDWP::JdwpError status; 865 mirror::Class* c = DecodeClass(id, status); 866 if (c == NULL) { 867 return status; 868 } 869 class_object_id = gRegistry->Add(c); 870 return JDWP::ERR_NONE; 871 } 872 873 JDWP::JdwpError Dbg::GetSuperclass(JDWP::RefTypeId id, JDWP::RefTypeId& superclass_id) { 874 JDWP::JdwpError status; 875 mirror::Class* c = DecodeClass(id, status); 876 if (c == NULL) { 877 return status; 878 } 879 if (c->IsInterface()) { 880 // http://code.google.com/p/android/issues/detail?id=20856 881 superclass_id = 0; 882 } else { 883 superclass_id = gRegistry->Add(c->GetSuperClass()); 884 } 885 return JDWP::ERR_NONE; 886 } 887 888 JDWP::JdwpError Dbg::GetClassLoader(JDWP::RefTypeId id, JDWP::ExpandBuf* pReply) { 889 mirror::Object* o = gRegistry->Get<mirror::Object*>(id); 890 if (o == NULL || o == ObjectRegistry::kInvalidObject) { 891 return JDWP::ERR_INVALID_OBJECT; 892 } 893 expandBufAddObjectId(pReply, gRegistry->Add(o->GetClass()->GetClassLoader())); 894 return JDWP::ERR_NONE; 895 } 896 897 JDWP::JdwpError Dbg::GetModifiers(JDWP::RefTypeId id, JDWP::ExpandBuf* pReply) { 898 JDWP::JdwpError status; 899 mirror::Class* c = DecodeClass(id, status); 900 if (c == NULL) { 901 return status; 902 } 903 904 uint32_t access_flags = c->GetAccessFlags() & kAccJavaFlagsMask; 905 906 // Set ACC_SUPER. Dex files don't contain this flag but only classes are supposed to have it set, 907 // not interfaces. 908 // Class.getModifiers doesn't return it, but JDWP does, so we set it here. 909 if ((access_flags & kAccInterface) == 0) { 910 access_flags |= kAccSuper; 911 } 912 913 expandBufAdd4BE(pReply, access_flags); 914 915 return JDWP::ERR_NONE; 916 } 917 918 JDWP::JdwpError Dbg::GetMonitorInfo(JDWP::ObjectId object_id, JDWP::ExpandBuf* reply) 919 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 920 mirror::Object* o = gRegistry->Get<mirror::Object*>(object_id); 921 if (o == NULL || o == ObjectRegistry::kInvalidObject) { 922 return JDWP::ERR_INVALID_OBJECT; 923 } 924 925 // Ensure all threads are suspended while we read objects' lock words. 926 Thread* self = Thread::Current(); 927 CHECK_EQ(self->GetState(), kRunnable); 928 self->TransitionFromRunnableToSuspended(kSuspended); 929 Runtime::Current()->GetThreadList()->SuspendAll(); 930 931 MonitorInfo monitor_info(o); 932 933 Runtime::Current()->GetThreadList()->ResumeAll(); 934 self->TransitionFromSuspendedToRunnable(); 935 936 if (monitor_info.owner_ != NULL) { 937 expandBufAddObjectId(reply, gRegistry->Add(monitor_info.owner_->GetPeer())); 938 } else { 939 expandBufAddObjectId(reply, gRegistry->Add(NULL)); 940 } 941 expandBufAdd4BE(reply, monitor_info.entry_count_); 942 expandBufAdd4BE(reply, monitor_info.waiters_.size()); 943 for (size_t i = 0; i < monitor_info.waiters_.size(); ++i) { 944 expandBufAddObjectId(reply, gRegistry->Add(monitor_info.waiters_[i]->GetPeer())); 945 } 946 return JDWP::ERR_NONE; 947 } 948 949 JDWP::JdwpError Dbg::GetOwnedMonitors(JDWP::ObjectId thread_id, 950 std::vector<JDWP::ObjectId>& monitors, 951 std::vector<uint32_t>& stack_depths) { 952 struct OwnedMonitorVisitor : public StackVisitor { 953 OwnedMonitorVisitor(Thread* thread, Context* context, 954 std::vector<JDWP::ObjectId>* monitor_vector, 955 std::vector<uint32_t>* stack_depth_vector) 956 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) 957 : StackVisitor(thread, context), current_stack_depth(0), 958 monitors(monitor_vector), stack_depths(stack_depth_vector) {} 959 960 // TODO: Enable annotalysis. We know lock is held in constructor, but abstraction confuses 961 // annotalysis. 962 bool VisitFrame() NO_THREAD_SAFETY_ANALYSIS { 963 if (!GetMethod()->IsRuntimeMethod()) { 964 Monitor::VisitLocks(this, AppendOwnedMonitors, this); 965 ++current_stack_depth; 966 } 967 return true; 968 } 969 970 static void AppendOwnedMonitors(mirror::Object* owned_monitor, void* arg) 971 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 972 OwnedMonitorVisitor* visitor = reinterpret_cast<OwnedMonitorVisitor*>(arg); 973 visitor->monitors->push_back(gRegistry->Add(owned_monitor)); 974 visitor->stack_depths->push_back(visitor->current_stack_depth); 975 } 976 977 size_t current_stack_depth; 978 std::vector<JDWP::ObjectId>* monitors; 979 std::vector<uint32_t>* stack_depths; 980 }; 981 982 ScopedObjectAccessUnchecked soa(Thread::Current()); 983 Thread* thread; 984 { 985 MutexLock mu(soa.Self(), *Locks::thread_list_lock_); 986 JDWP::JdwpError error = DecodeThread(soa, thread_id, thread); 987 if (error != JDWP::ERR_NONE) { 988 return error; 989 } 990 if (!IsSuspendedForDebugger(soa, thread)) { 991 return JDWP::ERR_THREAD_NOT_SUSPENDED; 992 } 993 } 994 std::unique_ptr<Context> context(Context::Create()); 995 OwnedMonitorVisitor visitor(thread, context.get(), &monitors, &stack_depths); 996 visitor.WalkStack(); 997 return JDWP::ERR_NONE; 998 } 999 1000 JDWP::JdwpError Dbg::GetContendedMonitor(JDWP::ObjectId thread_id, 1001 JDWP::ObjectId& contended_monitor) { 1002 mirror::Object* contended_monitor_obj; 1003 ScopedObjectAccessUnchecked soa(Thread::Current()); 1004 { 1005 MutexLock mu(soa.Self(), *Locks::thread_list_lock_); 1006 Thread* thread; 1007 JDWP::JdwpError error = DecodeThread(soa, thread_id, thread); 1008 if (error != JDWP::ERR_NONE) { 1009 return error; 1010 } 1011 if (!IsSuspendedForDebugger(soa, thread)) { 1012 return JDWP::ERR_THREAD_NOT_SUSPENDED; 1013 } 1014 contended_monitor_obj = Monitor::GetContendedMonitor(thread); 1015 } 1016 // Add() requires the thread_list_lock_ not held to avoid the lock 1017 // level violation. 1018 contended_monitor = gRegistry->Add(contended_monitor_obj); 1019 return JDWP::ERR_NONE; 1020 } 1021 1022 JDWP::JdwpError Dbg::GetInstanceCounts(const std::vector<JDWP::RefTypeId>& class_ids, 1023 std::vector<uint64_t>& counts) 1024 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1025 gc::Heap* heap = Runtime::Current()->GetHeap(); 1026 heap->CollectGarbage(false); 1027 std::vector<mirror::Class*> classes; 1028 counts.clear(); 1029 for (size_t i = 0; i < class_ids.size(); ++i) { 1030 JDWP::JdwpError status; 1031 mirror::Class* c = DecodeClass(class_ids[i], status); 1032 if (c == NULL) { 1033 return status; 1034 } 1035 classes.push_back(c); 1036 counts.push_back(0); 1037 } 1038 heap->CountInstances(classes, false, &counts[0]); 1039 return JDWP::ERR_NONE; 1040 } 1041 1042 JDWP::JdwpError Dbg::GetInstances(JDWP::RefTypeId class_id, int32_t max_count, std::vector<JDWP::ObjectId>& instances) 1043 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1044 gc::Heap* heap = Runtime::Current()->GetHeap(); 1045 // We only want reachable instances, so do a GC. 1046 heap->CollectGarbage(false); 1047 JDWP::JdwpError status; 1048 mirror::Class* c = DecodeClass(class_id, status); 1049 if (c == nullptr) { 1050 return status; 1051 } 1052 std::vector<mirror::Object*> raw_instances; 1053 Runtime::Current()->GetHeap()->GetInstances(c, max_count, raw_instances); 1054 for (size_t i = 0; i < raw_instances.size(); ++i) { 1055 instances.push_back(gRegistry->Add(raw_instances[i])); 1056 } 1057 return JDWP::ERR_NONE; 1058 } 1059 1060 JDWP::JdwpError Dbg::GetReferringObjects(JDWP::ObjectId object_id, int32_t max_count, 1061 std::vector<JDWP::ObjectId>& referring_objects) 1062 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1063 gc::Heap* heap = Runtime::Current()->GetHeap(); 1064 heap->CollectGarbage(false); 1065 mirror::Object* o = gRegistry->Get<mirror::Object*>(object_id); 1066 if (o == NULL || o == ObjectRegistry::kInvalidObject) { 1067 return JDWP::ERR_INVALID_OBJECT; 1068 } 1069 std::vector<mirror::Object*> raw_instances; 1070 heap->GetReferringObjects(o, max_count, raw_instances); 1071 for (size_t i = 0; i < raw_instances.size(); ++i) { 1072 referring_objects.push_back(gRegistry->Add(raw_instances[i])); 1073 } 1074 return JDWP::ERR_NONE; 1075 } 1076 1077 JDWP::JdwpError Dbg::DisableCollection(JDWP::ObjectId object_id) 1078 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1079 mirror::Object* o = gRegistry->Get<mirror::Object*>(object_id); 1080 if (o == NULL || o == ObjectRegistry::kInvalidObject) { 1081 return JDWP::ERR_INVALID_OBJECT; 1082 } 1083 gRegistry->DisableCollection(object_id); 1084 return JDWP::ERR_NONE; 1085 } 1086 1087 JDWP::JdwpError Dbg::EnableCollection(JDWP::ObjectId object_id) 1088 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1089 mirror::Object* o = gRegistry->Get<mirror::Object*>(object_id); 1090 // Unlike DisableCollection, JDWP specs do not state an invalid object causes an error. The RI 1091 // also ignores these cases and never return an error. However it's not obvious why this command 1092 // should behave differently from DisableCollection and IsCollected commands. So let's be more 1093 // strict and return an error if this happens. 1094 if (o == NULL || o == ObjectRegistry::kInvalidObject) { 1095 return JDWP::ERR_INVALID_OBJECT; 1096 } 1097 gRegistry->EnableCollection(object_id); 1098 return JDWP::ERR_NONE; 1099 } 1100 1101 JDWP::JdwpError Dbg::IsCollected(JDWP::ObjectId object_id, bool& is_collected) 1102 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1103 if (object_id == 0) { 1104 // Null object id is invalid. 1105 return JDWP::ERR_INVALID_OBJECT; 1106 } 1107 // JDWP specs state an INVALID_OBJECT error is returned if the object ID is not valid. However 1108 // the RI seems to ignore this and assume object has been collected. 1109 mirror::Object* o = gRegistry->Get<mirror::Object*>(object_id); 1110 if (o == NULL || o == ObjectRegistry::kInvalidObject) { 1111 is_collected = true; 1112 } else { 1113 is_collected = gRegistry->IsCollected(object_id); 1114 } 1115 return JDWP::ERR_NONE; 1116 } 1117 1118 void Dbg::DisposeObject(JDWP::ObjectId object_id, uint32_t reference_count) 1119 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1120 gRegistry->DisposeObject(object_id, reference_count); 1121 } 1122 1123 JDWP::JdwpTypeTag Dbg::GetTypeTag(mirror::Class* klass) { 1124 DCHECK(klass != nullptr); 1125 if (klass->IsArrayClass()) { 1126 return JDWP::TT_ARRAY; 1127 } else if (klass->IsInterface()) { 1128 return JDWP::TT_INTERFACE; 1129 } else { 1130 return JDWP::TT_CLASS; 1131 } 1132 } 1133 1134 JDWP::JdwpError Dbg::GetReflectedType(JDWP::RefTypeId class_id, JDWP::ExpandBuf* pReply) { 1135 JDWP::JdwpError status; 1136 mirror::Class* c = DecodeClass(class_id, status); 1137 if (c == NULL) { 1138 return status; 1139 } 1140 1141 JDWP::JdwpTypeTag type_tag = GetTypeTag(c); 1142 expandBufAdd1(pReply, type_tag); 1143 expandBufAddRefTypeId(pReply, class_id); 1144 return JDWP::ERR_NONE; 1145 } 1146 1147 void Dbg::GetClassList(std::vector<JDWP::RefTypeId>& classes) { 1148 // Get the complete list of reference classes (i.e. all classes except 1149 // the primitive types). 1150 // Returns a newly-allocated buffer full of RefTypeId values. 1151 struct ClassListCreator { 1152 explicit ClassListCreator(std::vector<JDWP::RefTypeId>& classes) : classes(classes) { 1153 } 1154 1155 static bool Visit(mirror::Class* c, void* arg) { 1156 return reinterpret_cast<ClassListCreator*>(arg)->Visit(c); 1157 } 1158 1159 // TODO: Enable annotalysis. We know lock is held in constructor, but abstraction confuses 1160 // annotalysis. 1161 bool Visit(mirror::Class* c) NO_THREAD_SAFETY_ANALYSIS { 1162 if (!c->IsPrimitive()) { 1163 classes.push_back(gRegistry->AddRefType(c)); 1164 } 1165 return true; 1166 } 1167 1168 std::vector<JDWP::RefTypeId>& classes; 1169 }; 1170 1171 ClassListCreator clc(classes); 1172 Runtime::Current()->GetClassLinker()->VisitClassesWithoutClassesLock(ClassListCreator::Visit, 1173 &clc); 1174 } 1175 1176 JDWP::JdwpError Dbg::GetClassInfo(JDWP::RefTypeId class_id, JDWP::JdwpTypeTag* pTypeTag, 1177 uint32_t* pStatus, std::string* pDescriptor) { 1178 JDWP::JdwpError status; 1179 mirror::Class* c = DecodeClass(class_id, status); 1180 if (c == NULL) { 1181 return status; 1182 } 1183 1184 if (c->IsArrayClass()) { 1185 *pStatus = JDWP::CS_VERIFIED | JDWP::CS_PREPARED; 1186 *pTypeTag = JDWP::TT_ARRAY; 1187 } else { 1188 if (c->IsErroneous()) { 1189 *pStatus = JDWP::CS_ERROR; 1190 } else { 1191 *pStatus = JDWP::CS_VERIFIED | JDWP::CS_PREPARED | JDWP::CS_INITIALIZED; 1192 } 1193 *pTypeTag = c->IsInterface() ? JDWP::TT_INTERFACE : JDWP::TT_CLASS; 1194 } 1195 1196 if (pDescriptor != NULL) { 1197 std::string temp; 1198 *pDescriptor = c->GetDescriptor(&temp); 1199 } 1200 return JDWP::ERR_NONE; 1201 } 1202 1203 void Dbg::FindLoadedClassBySignature(const char* descriptor, std::vector<JDWP::RefTypeId>& ids) { 1204 std::vector<mirror::Class*> classes; 1205 Runtime::Current()->GetClassLinker()->LookupClasses(descriptor, classes); 1206 ids.clear(); 1207 for (size_t i = 0; i < classes.size(); ++i) { 1208 ids.push_back(gRegistry->Add(classes[i])); 1209 } 1210 } 1211 1212 JDWP::JdwpError Dbg::GetReferenceType(JDWP::ObjectId object_id, JDWP::ExpandBuf* pReply) 1213 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1214 mirror::Object* o = gRegistry->Get<mirror::Object*>(object_id); 1215 if (o == NULL || o == ObjectRegistry::kInvalidObject) { 1216 return JDWP::ERR_INVALID_OBJECT; 1217 } 1218 1219 JDWP::JdwpTypeTag type_tag = GetTypeTag(o->GetClass()); 1220 JDWP::RefTypeId type_id = gRegistry->AddRefType(o->GetClass()); 1221 1222 expandBufAdd1(pReply, type_tag); 1223 expandBufAddRefTypeId(pReply, type_id); 1224 1225 return JDWP::ERR_NONE; 1226 } 1227 1228 JDWP::JdwpError Dbg::GetSignature(JDWP::RefTypeId class_id, std::string* signature) { 1229 JDWP::JdwpError status; 1230 mirror::Class* c = DecodeClass(class_id, status); 1231 if (c == NULL) { 1232 return status; 1233 } 1234 std::string temp; 1235 *signature = c->GetDescriptor(&temp); 1236 return JDWP::ERR_NONE; 1237 } 1238 1239 JDWP::JdwpError Dbg::GetSourceFile(JDWP::RefTypeId class_id, std::string& result) { 1240 JDWP::JdwpError status; 1241 mirror::Class* c = DecodeClass(class_id, status); 1242 if (c == nullptr) { 1243 return status; 1244 } 1245 const char* source_file = c->GetSourceFile(); 1246 if (source_file == nullptr) { 1247 return JDWP::ERR_ABSENT_INFORMATION; 1248 } 1249 result = source_file; 1250 return JDWP::ERR_NONE; 1251 } 1252 1253 JDWP::JdwpError Dbg::GetObjectTag(JDWP::ObjectId object_id, uint8_t& tag) { 1254 ScopedObjectAccessUnchecked soa(Thread::Current()); 1255 mirror::Object* o = gRegistry->Get<mirror::Object*>(object_id); 1256 if (o == ObjectRegistry::kInvalidObject) { 1257 return JDWP::ERR_INVALID_OBJECT; 1258 } 1259 tag = TagFromObject(soa, o); 1260 return JDWP::ERR_NONE; 1261 } 1262 1263 size_t Dbg::GetTagWidth(JDWP::JdwpTag tag) { 1264 switch (tag) { 1265 case JDWP::JT_VOID: 1266 return 0; 1267 case JDWP::JT_BYTE: 1268 case JDWP::JT_BOOLEAN: 1269 return 1; 1270 case JDWP::JT_CHAR: 1271 case JDWP::JT_SHORT: 1272 return 2; 1273 case JDWP::JT_FLOAT: 1274 case JDWP::JT_INT: 1275 return 4; 1276 case JDWP::JT_ARRAY: 1277 case JDWP::JT_OBJECT: 1278 case JDWP::JT_STRING: 1279 case JDWP::JT_THREAD: 1280 case JDWP::JT_THREAD_GROUP: 1281 case JDWP::JT_CLASS_LOADER: 1282 case JDWP::JT_CLASS_OBJECT: 1283 return sizeof(JDWP::ObjectId); 1284 case JDWP::JT_DOUBLE: 1285 case JDWP::JT_LONG: 1286 return 8; 1287 default: 1288 LOG(FATAL) << "Unknown tag " << tag; 1289 return -1; 1290 } 1291 } 1292 1293 JDWP::JdwpError Dbg::GetArrayLength(JDWP::ObjectId array_id, int& length) { 1294 JDWP::JdwpError status; 1295 mirror::Array* a = DecodeArray(array_id, status); 1296 if (a == NULL) { 1297 return status; 1298 } 1299 length = a->GetLength(); 1300 return JDWP::ERR_NONE; 1301 } 1302 1303 JDWP::JdwpError Dbg::OutputArray(JDWP::ObjectId array_id, int offset, int count, JDWP::ExpandBuf* pReply) { 1304 JDWP::JdwpError status; 1305 mirror::Array* a = DecodeArray(array_id, status); 1306 if (a == nullptr) { 1307 return status; 1308 } 1309 1310 if (offset < 0 || count < 0 || offset > a->GetLength() || a->GetLength() - offset < count) { 1311 LOG(WARNING) << __FUNCTION__ << " access out of bounds: offset=" << offset << "; count=" << count; 1312 return JDWP::ERR_INVALID_LENGTH; 1313 } 1314 JDWP::JdwpTag element_tag = BasicTagFromClass(a->GetClass()->GetComponentType()); 1315 expandBufAdd1(pReply, element_tag); 1316 expandBufAdd4BE(pReply, count); 1317 1318 if (IsPrimitiveTag(element_tag)) { 1319 size_t width = GetTagWidth(element_tag); 1320 uint8_t* dst = expandBufAddSpace(pReply, count * width); 1321 if (width == 8) { 1322 const uint64_t* src8 = reinterpret_cast<uint64_t*>(a->GetRawData(sizeof(uint64_t), 0)); 1323 for (int i = 0; i < count; ++i) JDWP::Write8BE(&dst, src8[offset + i]); 1324 } else if (width == 4) { 1325 const uint32_t* src4 = reinterpret_cast<uint32_t*>(a->GetRawData(sizeof(uint32_t), 0)); 1326 for (int i = 0; i < count; ++i) JDWP::Write4BE(&dst, src4[offset + i]); 1327 } else if (width == 2) { 1328 const uint16_t* src2 = reinterpret_cast<uint16_t*>(a->GetRawData(sizeof(uint16_t), 0)); 1329 for (int i = 0; i < count; ++i) JDWP::Write2BE(&dst, src2[offset + i]); 1330 } else { 1331 const uint8_t* src = reinterpret_cast<uint8_t*>(a->GetRawData(sizeof(uint8_t), 0)); 1332 memcpy(dst, &src[offset * width], count * width); 1333 } 1334 } else { 1335 ScopedObjectAccessUnchecked soa(Thread::Current()); 1336 mirror::ObjectArray<mirror::Object>* oa = a->AsObjectArray<mirror::Object>(); 1337 for (int i = 0; i < count; ++i) { 1338 mirror::Object* element = oa->Get(offset + i); 1339 JDWP::JdwpTag specific_tag = (element != nullptr) ? TagFromObject(soa, element) 1340 : element_tag; 1341 expandBufAdd1(pReply, specific_tag); 1342 expandBufAddObjectId(pReply, gRegistry->Add(element)); 1343 } 1344 } 1345 1346 return JDWP::ERR_NONE; 1347 } 1348 1349 template <typename T> 1350 static void CopyArrayData(mirror::Array* a, JDWP::Request& src, int offset, int count) 1351 NO_THREAD_SAFETY_ANALYSIS { 1352 // TODO: fix when annotalysis correctly handles non-member functions. 1353 DCHECK(a->GetClass()->IsPrimitiveArray()); 1354 1355 T* dst = reinterpret_cast<T*>(a->GetRawData(sizeof(T), offset)); 1356 for (int i = 0; i < count; ++i) { 1357 *dst++ = src.ReadValue(sizeof(T)); 1358 } 1359 } 1360 1361 JDWP::JdwpError Dbg::SetArrayElements(JDWP::ObjectId array_id, int offset, int count, 1362 JDWP::Request& request) 1363 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1364 JDWP::JdwpError status; 1365 mirror::Array* dst = DecodeArray(array_id, status); 1366 if (dst == NULL) { 1367 return status; 1368 } 1369 1370 if (offset < 0 || count < 0 || offset > dst->GetLength() || dst->GetLength() - offset < count) { 1371 LOG(WARNING) << __FUNCTION__ << " access out of bounds: offset=" << offset << "; count=" << count; 1372 return JDWP::ERR_INVALID_LENGTH; 1373 } 1374 JDWP::JdwpTag element_tag = BasicTagFromClass(dst->GetClass()->GetComponentType()); 1375 1376 if (IsPrimitiveTag(element_tag)) { 1377 size_t width = GetTagWidth(element_tag); 1378 if (width == 8) { 1379 CopyArrayData<uint64_t>(dst, request, offset, count); 1380 } else if (width == 4) { 1381 CopyArrayData<uint32_t>(dst, request, offset, count); 1382 } else if (width == 2) { 1383 CopyArrayData<uint16_t>(dst, request, offset, count); 1384 } else { 1385 CopyArrayData<uint8_t>(dst, request, offset, count); 1386 } 1387 } else { 1388 mirror::ObjectArray<mirror::Object>* oa = dst->AsObjectArray<mirror::Object>(); 1389 for (int i = 0; i < count; ++i) { 1390 JDWP::ObjectId id = request.ReadObjectId(); 1391 mirror::Object* o = gRegistry->Get<mirror::Object*>(id); 1392 if (o == ObjectRegistry::kInvalidObject) { 1393 return JDWP::ERR_INVALID_OBJECT; 1394 } 1395 oa->Set<false>(offset + i, o); 1396 } 1397 } 1398 1399 return JDWP::ERR_NONE; 1400 } 1401 1402 JDWP::ObjectId Dbg::CreateString(const std::string& str) { 1403 return gRegistry->Add(mirror::String::AllocFromModifiedUtf8(Thread::Current(), str.c_str())); 1404 } 1405 1406 JDWP::JdwpError Dbg::CreateObject(JDWP::RefTypeId class_id, JDWP::ObjectId& new_object) { 1407 JDWP::JdwpError status; 1408 mirror::Class* c = DecodeClass(class_id, status); 1409 if (c == NULL) { 1410 return status; 1411 } 1412 new_object = gRegistry->Add(c->AllocObject(Thread::Current())); 1413 return JDWP::ERR_NONE; 1414 } 1415 1416 /* 1417 * Used by Eclipse's "Display" view to evaluate "new byte[5]" to get "(byte[]) [0, 0, 0, 0, 0]". 1418 */ 1419 JDWP::JdwpError Dbg::CreateArrayObject(JDWP::RefTypeId array_class_id, uint32_t length, 1420 JDWP::ObjectId& new_array) { 1421 JDWP::JdwpError status; 1422 mirror::Class* c = DecodeClass(array_class_id, status); 1423 if (c == NULL) { 1424 return status; 1425 } 1426 new_array = gRegistry->Add(mirror::Array::Alloc<true>(Thread::Current(), c, length, 1427 c->GetComponentSize(), 1428 Runtime::Current()->GetHeap()->GetCurrentAllocator())); 1429 return JDWP::ERR_NONE; 1430 } 1431 1432 JDWP::FieldId Dbg::ToFieldId(const mirror::ArtField* f) { 1433 CHECK(!kMovingFields); 1434 return static_cast<JDWP::FieldId>(reinterpret_cast<uintptr_t>(f)); 1435 } 1436 1437 static JDWP::MethodId ToMethodId(const mirror::ArtMethod* m) 1438 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1439 CHECK(!kMovingMethods); 1440 return static_cast<JDWP::MethodId>(reinterpret_cast<uintptr_t>(m)); 1441 } 1442 1443 static mirror::ArtField* FromFieldId(JDWP::FieldId fid) 1444 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1445 CHECK(!kMovingFields); 1446 return reinterpret_cast<mirror::ArtField*>(static_cast<uintptr_t>(fid)); 1447 } 1448 1449 static mirror::ArtMethod* FromMethodId(JDWP::MethodId mid) 1450 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1451 CHECK(!kMovingMethods); 1452 return reinterpret_cast<mirror::ArtMethod*>(static_cast<uintptr_t>(mid)); 1453 } 1454 1455 bool Dbg::MatchThread(JDWP::ObjectId expected_thread_id, Thread* event_thread) { 1456 CHECK(event_thread != nullptr); 1457 mirror::Object* expected_thread_peer = gRegistry->Get<mirror::Object*>(expected_thread_id); 1458 return expected_thread_peer == event_thread->GetPeer(); 1459 } 1460 1461 bool Dbg::MatchLocation(const JDWP::JdwpLocation& expected_location, 1462 const JDWP::EventLocation& event_location) { 1463 if (expected_location.dex_pc != event_location.dex_pc) { 1464 return false; 1465 } 1466 mirror::ArtMethod* m = FromMethodId(expected_location.method_id); 1467 return m == event_location.method; 1468 } 1469 1470 bool Dbg::MatchType(mirror::Class* event_class, JDWP::RefTypeId class_id) { 1471 if (event_class == nullptr) { 1472 return false; 1473 } 1474 JDWP::JdwpError status; 1475 mirror::Class* expected_class = DecodeClass(class_id, status); 1476 CHECK(expected_class != nullptr); 1477 return expected_class->IsAssignableFrom(event_class); 1478 } 1479 1480 bool Dbg::MatchField(JDWP::RefTypeId expected_type_id, JDWP::FieldId expected_field_id, 1481 mirror::ArtField* event_field) { 1482 mirror::ArtField* expected_field = FromFieldId(expected_field_id); 1483 if (expected_field != event_field) { 1484 return false; 1485 } 1486 return Dbg::MatchType(event_field->GetDeclaringClass(), expected_type_id); 1487 } 1488 1489 bool Dbg::MatchInstance(JDWP::ObjectId expected_instance_id, mirror::Object* event_instance) { 1490 mirror::Object* modifier_instance = gRegistry->Get<mirror::Object*>(expected_instance_id); 1491 return modifier_instance == event_instance; 1492 } 1493 1494 void Dbg::SetJdwpLocation(JDWP::JdwpLocation* location, mirror::ArtMethod* m, uint32_t dex_pc) 1495 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1496 if (m == nullptr) { 1497 memset(location, 0, sizeof(*location)); 1498 } else { 1499 mirror::Class* c = m->GetDeclaringClass(); 1500 location->type_tag = GetTypeTag(c); 1501 location->class_id = gRegistry->AddRefType(c); 1502 location->method_id = ToMethodId(m); 1503 location->dex_pc = (m->IsNative() || m->IsProxyMethod()) ? static_cast<uint64_t>(-1) : dex_pc; 1504 } 1505 } 1506 1507 std::string Dbg::GetMethodName(JDWP::MethodId method_id) 1508 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1509 mirror::ArtMethod* m = FromMethodId(method_id); 1510 if (m == nullptr) { 1511 return "NULL"; 1512 } 1513 return m->GetName(); 1514 } 1515 1516 std::string Dbg::GetFieldName(JDWP::FieldId field_id) 1517 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1518 mirror::ArtField* f = FromFieldId(field_id); 1519 if (f == nullptr) { 1520 return "NULL"; 1521 } 1522 return f->GetName(); 1523 } 1524 1525 /* 1526 * Augment the access flags for synthetic methods and fields by setting 1527 * the (as described by the spec) "0xf0000000 bit". Also, strip out any 1528 * flags not specified by the Java programming language. 1529 */ 1530 static uint32_t MangleAccessFlags(uint32_t accessFlags) { 1531 accessFlags &= kAccJavaFlagsMask; 1532 if ((accessFlags & kAccSynthetic) != 0) { 1533 accessFlags |= 0xf0000000; 1534 } 1535 return accessFlags; 1536 } 1537 1538 /* 1539 * Circularly shifts registers so that arguments come first. Debuggers 1540 * expect slots to begin with arguments, but dex code places them at 1541 * the end. 1542 */ 1543 static uint16_t MangleSlot(uint16_t slot, mirror::ArtMethod* m) 1544 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1545 const DexFile::CodeItem* code_item = m->GetCodeItem(); 1546 if (code_item == nullptr) { 1547 // We should not get here for a method without code (native, proxy or abstract). Log it and 1548 // return the slot as is since all registers are arguments. 1549 LOG(WARNING) << "Trying to mangle slot for method without code " << PrettyMethod(m); 1550 return slot; 1551 } 1552 uint16_t ins_size = code_item->ins_size_; 1553 uint16_t locals_size = code_item->registers_size_ - ins_size; 1554 if (slot >= locals_size) { 1555 return slot - locals_size; 1556 } else { 1557 return slot + ins_size; 1558 } 1559 } 1560 1561 /* 1562 * Circularly shifts registers so that arguments come last. Reverts 1563 * slots to dex style argument placement. 1564 */ 1565 static uint16_t DemangleSlot(uint16_t slot, mirror::ArtMethod* m) 1566 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1567 const DexFile::CodeItem* code_item = m->GetCodeItem(); 1568 if (code_item == nullptr) { 1569 // We should not get here for a method without code (native, proxy or abstract). Log it and 1570 // return the slot as is since all registers are arguments. 1571 LOG(WARNING) << "Trying to demangle slot for method without code " << PrettyMethod(m); 1572 return slot; 1573 } 1574 uint16_t ins_size = code_item->ins_size_; 1575 uint16_t locals_size = code_item->registers_size_ - ins_size; 1576 if (slot < ins_size) { 1577 return slot + locals_size; 1578 } else { 1579 return slot - ins_size; 1580 } 1581 } 1582 1583 JDWP::JdwpError Dbg::OutputDeclaredFields(JDWP::RefTypeId class_id, bool with_generic, JDWP::ExpandBuf* pReply) { 1584 JDWP::JdwpError status; 1585 mirror::Class* c = DecodeClass(class_id, status); 1586 if (c == NULL) { 1587 return status; 1588 } 1589 1590 size_t instance_field_count = c->NumInstanceFields(); 1591 size_t static_field_count = c->NumStaticFields(); 1592 1593 expandBufAdd4BE(pReply, instance_field_count + static_field_count); 1594 1595 for (size_t i = 0; i < instance_field_count + static_field_count; ++i) { 1596 mirror::ArtField* f = (i < instance_field_count) ? c->GetInstanceField(i) : c->GetStaticField(i - instance_field_count); 1597 expandBufAddFieldId(pReply, ToFieldId(f)); 1598 expandBufAddUtf8String(pReply, f->GetName()); 1599 expandBufAddUtf8String(pReply, f->GetTypeDescriptor()); 1600 if (with_generic) { 1601 static const char genericSignature[1] = ""; 1602 expandBufAddUtf8String(pReply, genericSignature); 1603 } 1604 expandBufAdd4BE(pReply, MangleAccessFlags(f->GetAccessFlags())); 1605 } 1606 return JDWP::ERR_NONE; 1607 } 1608 1609 JDWP::JdwpError Dbg::OutputDeclaredMethods(JDWP::RefTypeId class_id, bool with_generic, 1610 JDWP::ExpandBuf* pReply) { 1611 JDWP::JdwpError status; 1612 mirror::Class* c = DecodeClass(class_id, status); 1613 if (c == NULL) { 1614 return status; 1615 } 1616 1617 size_t direct_method_count = c->NumDirectMethods(); 1618 size_t virtual_method_count = c->NumVirtualMethods(); 1619 1620 expandBufAdd4BE(pReply, direct_method_count + virtual_method_count); 1621 1622 for (size_t i = 0; i < direct_method_count + virtual_method_count; ++i) { 1623 mirror::ArtMethod* m = (i < direct_method_count) ? c->GetDirectMethod(i) : c->GetVirtualMethod(i - direct_method_count); 1624 expandBufAddMethodId(pReply, ToMethodId(m)); 1625 expandBufAddUtf8String(pReply, m->GetName()); 1626 expandBufAddUtf8String(pReply, m->GetSignature().ToString()); 1627 if (with_generic) { 1628 static const char genericSignature[1] = ""; 1629 expandBufAddUtf8String(pReply, genericSignature); 1630 } 1631 expandBufAdd4BE(pReply, MangleAccessFlags(m->GetAccessFlags())); 1632 } 1633 return JDWP::ERR_NONE; 1634 } 1635 1636 JDWP::JdwpError Dbg::OutputDeclaredInterfaces(JDWP::RefTypeId class_id, JDWP::ExpandBuf* pReply) { 1637 JDWP::JdwpError status; 1638 Thread* self = Thread::Current(); 1639 StackHandleScope<1> hs(self); 1640 Handle<mirror::Class> c(hs.NewHandle(DecodeClass(class_id, status))); 1641 if (c.Get() == nullptr) { 1642 return status; 1643 } 1644 size_t interface_count = c->NumDirectInterfaces(); 1645 expandBufAdd4BE(pReply, interface_count); 1646 for (size_t i = 0; i < interface_count; ++i) { 1647 expandBufAddRefTypeId(pReply, 1648 gRegistry->AddRefType(mirror::Class::GetDirectInterface(self, c, i))); 1649 } 1650 return JDWP::ERR_NONE; 1651 } 1652 1653 void Dbg::OutputLineTable(JDWP::RefTypeId, JDWP::MethodId method_id, JDWP::ExpandBuf* pReply) 1654 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1655 struct DebugCallbackContext { 1656 int numItems; 1657 JDWP::ExpandBuf* pReply; 1658 1659 static bool Callback(void* context, uint32_t address, uint32_t line_number) { 1660 DebugCallbackContext* pContext = reinterpret_cast<DebugCallbackContext*>(context); 1661 expandBufAdd8BE(pContext->pReply, address); 1662 expandBufAdd4BE(pContext->pReply, line_number); 1663 pContext->numItems++; 1664 return false; 1665 } 1666 }; 1667 mirror::ArtMethod* m = FromMethodId(method_id); 1668 const DexFile::CodeItem* code_item = m->GetCodeItem(); 1669 uint64_t start, end; 1670 if (code_item == nullptr) { 1671 DCHECK(m->IsNative() || m->IsProxyMethod()); 1672 start = -1; 1673 end = -1; 1674 } else { 1675 start = 0; 1676 // Return the index of the last instruction 1677 end = code_item->insns_size_in_code_units_ - 1; 1678 } 1679 1680 expandBufAdd8BE(pReply, start); 1681 expandBufAdd8BE(pReply, end); 1682 1683 // Add numLines later 1684 size_t numLinesOffset = expandBufGetLength(pReply); 1685 expandBufAdd4BE(pReply, 0); 1686 1687 DebugCallbackContext context; 1688 context.numItems = 0; 1689 context.pReply = pReply; 1690 1691 if (code_item != nullptr) { 1692 m->GetDexFile()->DecodeDebugInfo(code_item, m->IsStatic(), m->GetDexMethodIndex(), 1693 DebugCallbackContext::Callback, NULL, &context); 1694 } 1695 1696 JDWP::Set4BE(expandBufGetBuffer(pReply) + numLinesOffset, context.numItems); 1697 } 1698 1699 void Dbg::OutputVariableTable(JDWP::RefTypeId, JDWP::MethodId method_id, bool with_generic, 1700 JDWP::ExpandBuf* pReply) { 1701 struct DebugCallbackContext { 1702 mirror::ArtMethod* method; 1703 JDWP::ExpandBuf* pReply; 1704 size_t variable_count; 1705 bool with_generic; 1706 1707 static void Callback(void* context, uint16_t slot, uint32_t startAddress, uint32_t endAddress, 1708 const char* name, const char* descriptor, const char* signature) 1709 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1710 DebugCallbackContext* pContext = reinterpret_cast<DebugCallbackContext*>(context); 1711 1712 VLOG(jdwp) << StringPrintf(" %2zd: %d(%d) '%s' '%s' '%s' actual slot=%d mangled slot=%d", 1713 pContext->variable_count, startAddress, endAddress - startAddress, 1714 name, descriptor, signature, slot, 1715 MangleSlot(slot, pContext->method)); 1716 1717 slot = MangleSlot(slot, pContext->method); 1718 1719 expandBufAdd8BE(pContext->pReply, startAddress); 1720 expandBufAddUtf8String(pContext->pReply, name); 1721 expandBufAddUtf8String(pContext->pReply, descriptor); 1722 if (pContext->with_generic) { 1723 expandBufAddUtf8String(pContext->pReply, signature); 1724 } 1725 expandBufAdd4BE(pContext->pReply, endAddress - startAddress); 1726 expandBufAdd4BE(pContext->pReply, slot); 1727 1728 ++pContext->variable_count; 1729 } 1730 }; 1731 mirror::ArtMethod* m = FromMethodId(method_id); 1732 1733 // arg_count considers doubles and longs to take 2 units. 1734 // variable_count considers everything to take 1 unit. 1735 std::string shorty(m->GetShorty()); 1736 expandBufAdd4BE(pReply, mirror::ArtMethod::NumArgRegisters(shorty)); 1737 1738 // We don't know the total number of variables yet, so leave a blank and update it later. 1739 size_t variable_count_offset = expandBufGetLength(pReply); 1740 expandBufAdd4BE(pReply, 0); 1741 1742 DebugCallbackContext context; 1743 context.method = m; 1744 context.pReply = pReply; 1745 context.variable_count = 0; 1746 context.with_generic = with_generic; 1747 1748 const DexFile::CodeItem* code_item = m->GetCodeItem(); 1749 if (code_item != nullptr) { 1750 m->GetDexFile()->DecodeDebugInfo( 1751 code_item, m->IsStatic(), m->GetDexMethodIndex(), NULL, DebugCallbackContext::Callback, 1752 &context); 1753 } 1754 1755 JDWP::Set4BE(expandBufGetBuffer(pReply) + variable_count_offset, context.variable_count); 1756 } 1757 1758 void Dbg::OutputMethodReturnValue(JDWP::MethodId method_id, const JValue* return_value, 1759 JDWP::ExpandBuf* pReply) { 1760 mirror::ArtMethod* m = FromMethodId(method_id); 1761 JDWP::JdwpTag tag = BasicTagFromDescriptor(m->GetShorty()); 1762 OutputJValue(tag, return_value, pReply); 1763 } 1764 1765 void Dbg::OutputFieldValue(JDWP::FieldId field_id, const JValue* field_value, 1766 JDWP::ExpandBuf* pReply) { 1767 mirror::ArtField* f = FromFieldId(field_id); 1768 JDWP::JdwpTag tag = BasicTagFromDescriptor(f->GetTypeDescriptor()); 1769 OutputJValue(tag, field_value, pReply); 1770 } 1771 1772 JDWP::JdwpError Dbg::GetBytecodes(JDWP::RefTypeId, JDWP::MethodId method_id, 1773 std::vector<uint8_t>& bytecodes) 1774 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1775 mirror::ArtMethod* m = FromMethodId(method_id); 1776 if (m == NULL) { 1777 return JDWP::ERR_INVALID_METHODID; 1778 } 1779 const DexFile::CodeItem* code_item = m->GetCodeItem(); 1780 size_t byte_count = code_item->insns_size_in_code_units_ * 2; 1781 const uint8_t* begin = reinterpret_cast<const uint8_t*>(code_item->insns_); 1782 const uint8_t* end = begin + byte_count; 1783 for (const uint8_t* p = begin; p != end; ++p) { 1784 bytecodes.push_back(*p); 1785 } 1786 return JDWP::ERR_NONE; 1787 } 1788 1789 JDWP::JdwpTag Dbg::GetFieldBasicTag(JDWP::FieldId field_id) { 1790 return BasicTagFromDescriptor(FromFieldId(field_id)->GetTypeDescriptor()); 1791 } 1792 1793 JDWP::JdwpTag Dbg::GetStaticFieldBasicTag(JDWP::FieldId field_id) { 1794 return BasicTagFromDescriptor(FromFieldId(field_id)->GetTypeDescriptor()); 1795 } 1796 1797 static JDWP::JdwpError GetFieldValueImpl(JDWP::RefTypeId ref_type_id, JDWP::ObjectId object_id, 1798 JDWP::FieldId field_id, JDWP::ExpandBuf* pReply, 1799 bool is_static) 1800 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1801 JDWP::JdwpError status; 1802 mirror::Class* c = DecodeClass(ref_type_id, status); 1803 if (ref_type_id != 0 && c == NULL) { 1804 return status; 1805 } 1806 1807 mirror::Object* o = Dbg::GetObjectRegistry()->Get<mirror::Object*>(object_id); 1808 if ((!is_static && o == NULL) || o == ObjectRegistry::kInvalidObject) { 1809 return JDWP::ERR_INVALID_OBJECT; 1810 } 1811 mirror::ArtField* f = FromFieldId(field_id); 1812 1813 mirror::Class* receiver_class = c; 1814 if (receiver_class == NULL && o != NULL) { 1815 receiver_class = o->GetClass(); 1816 } 1817 // TODO: should we give up now if receiver_class is NULL? 1818 if (receiver_class != NULL && !f->GetDeclaringClass()->IsAssignableFrom(receiver_class)) { 1819 LOG(INFO) << "ERR_INVALID_FIELDID: " << PrettyField(f) << " " << PrettyClass(receiver_class); 1820 return JDWP::ERR_INVALID_FIELDID; 1821 } 1822 1823 // The RI only enforces the static/non-static mismatch in one direction. 1824 // TODO: should we change the tests and check both? 1825 if (is_static) { 1826 if (!f->IsStatic()) { 1827 return JDWP::ERR_INVALID_FIELDID; 1828 } 1829 } else { 1830 if (f->IsStatic()) { 1831 LOG(WARNING) << "Ignoring non-NULL receiver for ObjectReference.SetValues on static field " << PrettyField(f); 1832 } 1833 } 1834 if (f->IsStatic()) { 1835 o = f->GetDeclaringClass(); 1836 } 1837 1838 JDWP::JdwpTag tag = BasicTagFromDescriptor(f->GetTypeDescriptor()); 1839 JValue field_value; 1840 if (tag == JDWP::JT_VOID) { 1841 LOG(FATAL) << "Unknown tag: " << tag; 1842 } else if (!IsPrimitiveTag(tag)) { 1843 field_value.SetL(f->GetObject(o)); 1844 } else if (tag == JDWP::JT_DOUBLE || tag == JDWP::JT_LONG) { 1845 field_value.SetJ(f->Get64(o)); 1846 } else { 1847 field_value.SetI(f->Get32(o)); 1848 } 1849 Dbg::OutputJValue(tag, &field_value, pReply); 1850 1851 return JDWP::ERR_NONE; 1852 } 1853 1854 JDWP::JdwpError Dbg::GetFieldValue(JDWP::ObjectId object_id, JDWP::FieldId field_id, 1855 JDWP::ExpandBuf* pReply) { 1856 return GetFieldValueImpl(0, object_id, field_id, pReply, false); 1857 } 1858 1859 JDWP::JdwpError Dbg::GetStaticFieldValue(JDWP::RefTypeId ref_type_id, JDWP::FieldId field_id, JDWP::ExpandBuf* pReply) { 1860 return GetFieldValueImpl(ref_type_id, 0, field_id, pReply, true); 1861 } 1862 1863 static JDWP::JdwpError SetFieldValueImpl(JDWP::ObjectId object_id, JDWP::FieldId field_id, 1864 uint64_t value, int width, bool is_static) 1865 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 1866 mirror::Object* o = Dbg::GetObjectRegistry()->Get<mirror::Object*>(object_id); 1867 if ((!is_static && o == NULL) || o == ObjectRegistry::kInvalidObject) { 1868 return JDWP::ERR_INVALID_OBJECT; 1869 } 1870 mirror::ArtField* f = FromFieldId(field_id); 1871 1872 // The RI only enforces the static/non-static mismatch in one direction. 1873 // TODO: should we change the tests and check both? 1874 if (is_static) { 1875 if (!f->IsStatic()) { 1876 return JDWP::ERR_INVALID_FIELDID; 1877 } 1878 } else { 1879 if (f->IsStatic()) { 1880 LOG(WARNING) << "Ignoring non-NULL receiver for ObjectReference.SetValues on static field " << PrettyField(f); 1881 } 1882 } 1883 if (f->IsStatic()) { 1884 o = f->GetDeclaringClass(); 1885 } 1886 1887 JDWP::JdwpTag tag = BasicTagFromDescriptor(f->GetTypeDescriptor()); 1888 1889 if (IsPrimitiveTag(tag)) { 1890 if (tag == JDWP::JT_DOUBLE || tag == JDWP::JT_LONG) { 1891 CHECK_EQ(width, 8); 1892 // Debugging can't use transactional mode (runtime only). 1893 f->Set64<false>(o, value); 1894 } else { 1895 CHECK_LE(width, 4); 1896 // Debugging can't use transactional mode (runtime only). 1897 f->Set32<false>(o, value); 1898 } 1899 } else { 1900 mirror::Object* v = Dbg::GetObjectRegistry()->Get<mirror::Object*>(value); 1901 if (v == ObjectRegistry::kInvalidObject) { 1902 return JDWP::ERR_INVALID_OBJECT; 1903 } 1904 if (v != NULL) { 1905 mirror::Class* field_type; 1906 { 1907 StackHandleScope<3> hs(Thread::Current()); 1908 HandleWrapper<mirror::Object> h_v(hs.NewHandleWrapper(&v)); 1909 HandleWrapper<mirror::ArtField> h_f(hs.NewHandleWrapper(&f)); 1910 HandleWrapper<mirror::Object> h_o(hs.NewHandleWrapper(&o)); 1911 field_type = FieldHelper(h_f).GetType(); 1912 } 1913 if (!field_type->IsAssignableFrom(v->GetClass())) { 1914 return JDWP::ERR_INVALID_OBJECT; 1915 } 1916 } 1917 // Debugging can't use transactional mode (runtime only). 1918 f->SetObject<false>(o, v); 1919 } 1920 1921 return JDWP::ERR_NONE; 1922 } 1923 1924 JDWP::JdwpError Dbg::SetFieldValue(JDWP::ObjectId object_id, JDWP::FieldId field_id, uint64_t value, 1925 int width) { 1926 return SetFieldValueImpl(object_id, field_id, value, width, false); 1927 } 1928 1929 JDWP::JdwpError Dbg::SetStaticFieldValue(JDWP::FieldId field_id, uint64_t value, int width) { 1930 return SetFieldValueImpl(0, field_id, value, width, true); 1931 } 1932 1933 JDWP::JdwpError Dbg::StringToUtf8(JDWP::ObjectId string_id, std::string* str) { 1934 mirror::Object* obj = gRegistry->Get<mirror::Object*>(string_id); 1935 if (obj == nullptr || obj == ObjectRegistry::kInvalidObject) { 1936 return JDWP::ERR_INVALID_OBJECT; 1937 } 1938 { 1939 ScopedObjectAccessUnchecked soa(Thread::Current()); 1940 mirror::Class* java_lang_String = soa.Decode<mirror::Class*>(WellKnownClasses::java_lang_String); 1941 if (!java_lang_String->IsAssignableFrom(obj->GetClass())) { 1942 // This isn't a string. 1943 return JDWP::ERR_INVALID_STRING; 1944 } 1945 } 1946 *str = obj->AsString()->ToModifiedUtf8(); 1947 return JDWP::ERR_NONE; 1948 } 1949 1950 void Dbg::OutputJValue(JDWP::JdwpTag tag, const JValue* return_value, JDWP::ExpandBuf* pReply) { 1951 if (IsPrimitiveTag(tag)) { 1952 expandBufAdd1(pReply, tag); 1953 if (tag == JDWP::JT_BOOLEAN || tag == JDWP::JT_BYTE) { 1954 expandBufAdd1(pReply, return_value->GetI()); 1955 } else if (tag == JDWP::JT_CHAR || tag == JDWP::JT_SHORT) { 1956 expandBufAdd2BE(pReply, return_value->GetI()); 1957 } else if (tag == JDWP::JT_FLOAT || tag == JDWP::JT_INT) { 1958 expandBufAdd4BE(pReply, return_value->GetI()); 1959 } else if (tag == JDWP::JT_DOUBLE || tag == JDWP::JT_LONG) { 1960 expandBufAdd8BE(pReply, return_value->GetJ()); 1961 } else { 1962 CHECK_EQ(tag, JDWP::JT_VOID); 1963 } 1964 } else { 1965 ScopedObjectAccessUnchecked soa(Thread::Current()); 1966 mirror::Object* value = return_value->GetL(); 1967 expandBufAdd1(pReply, TagFromObject(soa, value)); 1968 expandBufAddObjectId(pReply, gRegistry->Add(value)); 1969 } 1970 } 1971 1972 JDWP::JdwpError Dbg::GetThreadName(JDWP::ObjectId thread_id, std::string& name) { 1973 ScopedObjectAccessUnchecked soa(Thread::Current()); 1974 MutexLock mu(soa.Self(), *Locks::thread_list_lock_); 1975 Thread* thread; 1976 JDWP::JdwpError error = DecodeThread(soa, thread_id, thread); 1977 if (error != JDWP::ERR_NONE && error != JDWP::ERR_THREAD_NOT_ALIVE) { 1978 return error; 1979 } 1980 1981 // We still need to report the zombie threads' names, so we can't just call Thread::GetThreadName. 1982 mirror::Object* thread_object = gRegistry->Get<mirror::Object*>(thread_id); 1983 mirror::ArtField* java_lang_Thread_name_field = 1984 soa.DecodeField(WellKnownClasses::java_lang_Thread_name); 1985 mirror::String* s = 1986 reinterpret_cast<mirror::String*>(java_lang_Thread_name_field->GetObject(thread_object)); 1987 if (s != NULL) { 1988 name = s->ToModifiedUtf8(); 1989 } 1990 return JDWP::ERR_NONE; 1991 } 1992 1993 JDWP::JdwpError Dbg::GetThreadGroup(JDWP::ObjectId thread_id, JDWP::ExpandBuf* pReply) { 1994 ScopedObjectAccessUnchecked soa(Thread::Current()); 1995 mirror::Object* thread_object = gRegistry->Get<mirror::Object*>(thread_id); 1996 if (thread_object == ObjectRegistry::kInvalidObject) { 1997 return JDWP::ERR_INVALID_OBJECT; 1998 } 1999 const char* old_cause = soa.Self()->StartAssertNoThreadSuspension("Debugger: GetThreadGroup"); 2000 // Okay, so it's an object, but is it actually a thread? 2001 JDWP::JdwpError error; 2002 { 2003 MutexLock mu(soa.Self(), *Locks::thread_list_lock_); 2004 Thread* thread; 2005 error = DecodeThread(soa, thread_id, thread); 2006 } 2007 if (error == JDWP::ERR_THREAD_NOT_ALIVE) { 2008 // Zombie threads are in the null group. 2009 expandBufAddObjectId(pReply, JDWP::ObjectId(0)); 2010 error = JDWP::ERR_NONE; 2011 } else if (error == JDWP::ERR_NONE) { 2012 mirror::Class* c = soa.Decode<mirror::Class*>(WellKnownClasses::java_lang_Thread); 2013 CHECK(c != nullptr); 2014 mirror::ArtField* f = c->FindInstanceField("group", "Ljava/lang/ThreadGroup;"); 2015 CHECK(f != nullptr); 2016 mirror::Object* group = f->GetObject(thread_object); 2017 CHECK(group != nullptr); 2018 JDWP::ObjectId thread_group_id = gRegistry->Add(group); 2019 expandBufAddObjectId(pReply, thread_group_id); 2020 } 2021 soa.Self()->EndAssertNoThreadSuspension(old_cause); 2022 return error; 2023 } 2024 2025 static mirror::Object* DecodeThreadGroup(ScopedObjectAccessUnchecked& soa, 2026 JDWP::ObjectId thread_group_id, JDWP::JdwpError* error) 2027 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 2028 mirror::Object* thread_group = Dbg::GetObjectRegistry()->Get<mirror::Object*>(thread_group_id); 2029 if (thread_group == nullptr || thread_group == ObjectRegistry::kInvalidObject) { 2030 *error = JDWP::ERR_INVALID_OBJECT; 2031 return nullptr; 2032 } 2033 mirror::Class* c = soa.Decode<mirror::Class*>(WellKnownClasses::java_lang_ThreadGroup); 2034 CHECK(c != nullptr); 2035 if (!c->IsAssignableFrom(thread_group->GetClass())) { 2036 // This is not a java.lang.ThreadGroup. 2037 *error = JDWP::ERR_INVALID_THREAD_GROUP; 2038 return nullptr; 2039 } 2040 *error = JDWP::ERR_NONE; 2041 return thread_group; 2042 } 2043 2044 JDWP::JdwpError Dbg::GetThreadGroupName(JDWP::ObjectId thread_group_id, JDWP::ExpandBuf* pReply) { 2045 ScopedObjectAccessUnchecked soa(Thread::Current()); 2046 JDWP::JdwpError error; 2047 mirror::Object* thread_group = DecodeThreadGroup(soa, thread_group_id, &error); 2048 if (error != JDWP::ERR_NONE) { 2049 return error; 2050 } 2051 const char* old_cause = soa.Self()->StartAssertNoThreadSuspension("Debugger: GetThreadGroupName"); 2052 mirror::Class* c = soa.Decode<mirror::Class*>(WellKnownClasses::java_lang_ThreadGroup); 2053 mirror::ArtField* f = c->FindInstanceField("name", "Ljava/lang/String;"); 2054 CHECK(f != NULL); 2055 mirror::String* s = reinterpret_cast<mirror::String*>(f->GetObject(thread_group)); 2056 soa.Self()->EndAssertNoThreadSuspension(old_cause); 2057 2058 std::string thread_group_name(s->ToModifiedUtf8()); 2059 expandBufAddUtf8String(pReply, thread_group_name); 2060 return JDWP::ERR_NONE; 2061 } 2062 2063 JDWP::JdwpError Dbg::GetThreadGroupParent(JDWP::ObjectId thread_group_id, JDWP::ExpandBuf* pReply) { 2064 ScopedObjectAccessUnchecked soa(Thread::Current()); 2065 JDWP::JdwpError error; 2066 mirror::Object* thread_group = DecodeThreadGroup(soa, thread_group_id, &error); 2067 if (error != JDWP::ERR_NONE) { 2068 return error; 2069 } 2070 const char* old_cause = soa.Self()->StartAssertNoThreadSuspension("Debugger: GetThreadGroupParent"); 2071 mirror::Class* c = soa.Decode<mirror::Class*>(WellKnownClasses::java_lang_ThreadGroup); 2072 CHECK(c != nullptr); 2073 mirror::ArtField* f = c->FindInstanceField("parent", "Ljava/lang/ThreadGroup;"); 2074 CHECK(f != NULL); 2075 mirror::Object* parent = f->GetObject(thread_group); 2076 soa.Self()->EndAssertNoThreadSuspension(old_cause); 2077 2078 JDWP::ObjectId parent_group_id = gRegistry->Add(parent); 2079 expandBufAddObjectId(pReply, parent_group_id); 2080 return JDWP::ERR_NONE; 2081 } 2082 2083 static void GetChildThreadGroups(ScopedObjectAccessUnchecked& soa, mirror::Object* thread_group, 2084 std::vector<JDWP::ObjectId>* child_thread_group_ids) 2085 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 2086 CHECK(thread_group != nullptr); 2087 2088 // Get the ArrayList<ThreadGroup> "groups" out of this thread group... 2089 mirror::ArtField* groups_field = thread_group->GetClass()->FindInstanceField("groups", "Ljava/util/List;"); 2090 mirror::Object* groups_array_list = groups_field->GetObject(thread_group); 2091 2092 // Get the array and size out of the ArrayList<ThreadGroup>... 2093 mirror::ArtField* array_field = groups_array_list->GetClass()->FindInstanceField("array", "[Ljava/lang/Object;"); 2094 mirror::ArtField* size_field = groups_array_list->GetClass()->FindInstanceField("size", "I"); 2095 mirror::ObjectArray<mirror::Object>* groups_array = 2096 array_field->GetObject(groups_array_list)->AsObjectArray<mirror::Object>(); 2097 const int32_t size = size_field->GetInt(groups_array_list); 2098 2099 // Copy the first 'size' elements out of the array into the result. 2100 ObjectRegistry* registry = Dbg::GetObjectRegistry(); 2101 for (int32_t i = 0; i < size; ++i) { 2102 child_thread_group_ids->push_back(registry->Add(groups_array->Get(i))); 2103 } 2104 } 2105 2106 JDWP::JdwpError Dbg::GetThreadGroupChildren(JDWP::ObjectId thread_group_id, 2107 JDWP::ExpandBuf* pReply) { 2108 ScopedObjectAccessUnchecked soa(Thread::Current()); 2109 JDWP::JdwpError error; 2110 mirror::Object* thread_group = DecodeThreadGroup(soa, thread_group_id, &error); 2111 if (error != JDWP::ERR_NONE) { 2112 return error; 2113 } 2114 2115 // Add child threads. 2116 { 2117 std::vector<JDWP::ObjectId> child_thread_ids; 2118 GetThreads(thread_group, &child_thread_ids); 2119 expandBufAdd4BE(pReply, child_thread_ids.size()); 2120 for (JDWP::ObjectId child_thread_id : child_thread_ids) { 2121 expandBufAddObjectId(pReply, child_thread_id); 2122 } 2123 } 2124 2125 // Add child thread groups. 2126 { 2127 std::vector<JDWP::ObjectId> child_thread_groups_ids; 2128 GetChildThreadGroups(soa, thread_group, &child_thread_groups_ids); 2129 expandBufAdd4BE(pReply, child_thread_groups_ids.size()); 2130 for (JDWP::ObjectId child_thread_group_id : child_thread_groups_ids) { 2131 expandBufAddObjectId(pReply, child_thread_group_id); 2132 } 2133 } 2134 2135 return JDWP::ERR_NONE; 2136 } 2137 2138 JDWP::ObjectId Dbg::GetSystemThreadGroupId() { 2139 ScopedObjectAccessUnchecked soa(Thread::Current()); 2140 mirror::ArtField* f = soa.DecodeField(WellKnownClasses::java_lang_ThreadGroup_systemThreadGroup); 2141 mirror::Object* group = f->GetObject(f->GetDeclaringClass()); 2142 return gRegistry->Add(group); 2143 } 2144 2145 JDWP::JdwpThreadStatus Dbg::ToJdwpThreadStatus(ThreadState state) { 2146 switch (state) { 2147 case kBlocked: 2148 return JDWP::TS_MONITOR; 2149 case kNative: 2150 case kRunnable: 2151 case kSuspended: 2152 return JDWP::TS_RUNNING; 2153 case kSleeping: 2154 return JDWP::TS_SLEEPING; 2155 case kStarting: 2156 case kTerminated: 2157 return JDWP::TS_ZOMBIE; 2158 case kTimedWaiting: 2159 case kWaitingForCheckPointsToRun: 2160 case kWaitingForDebuggerSend: 2161 case kWaitingForDebuggerSuspension: 2162 case kWaitingForDebuggerToAttach: 2163 case kWaitingForDeoptimization: 2164 case kWaitingForGcToComplete: 2165 case kWaitingForJniOnLoad: 2166 case kWaitingForMethodTracingStart: 2167 case kWaitingForSignalCatcherOutput: 2168 case kWaitingInMainDebuggerLoop: 2169 case kWaitingInMainSignalCatcherLoop: 2170 case kWaitingPerformingGc: 2171 case kWaiting: 2172 return JDWP::TS_WAIT; 2173 // Don't add a 'default' here so the compiler can spot incompatible enum changes. 2174 } 2175 LOG(FATAL) << "Unknown thread state: " << state; 2176 return JDWP::TS_ZOMBIE; 2177 } 2178 2179 JDWP::JdwpError Dbg::GetThreadStatus(JDWP::ObjectId thread_id, JDWP::JdwpThreadStatus* pThreadStatus, 2180 JDWP::JdwpSuspendStatus* pSuspendStatus) { 2181 ScopedObjectAccess soa(Thread::Current()); 2182 2183 *pSuspendStatus = JDWP::SUSPEND_STATUS_NOT_SUSPENDED; 2184 2185 MutexLock mu(soa.Self(), *Locks::thread_list_lock_); 2186 Thread* thread; 2187 JDWP::JdwpError error = DecodeThread(soa, thread_id, thread); 2188 if (error != JDWP::ERR_NONE) { 2189 if (error == JDWP::ERR_THREAD_NOT_ALIVE) { 2190 *pThreadStatus = JDWP::TS_ZOMBIE; 2191 return JDWP::ERR_NONE; 2192 } 2193 return error; 2194 } 2195 2196 if (IsSuspendedForDebugger(soa, thread)) { 2197 *pSuspendStatus = JDWP::SUSPEND_STATUS_SUSPENDED; 2198 } 2199 2200 *pThreadStatus = ToJdwpThreadStatus(thread->GetState()); 2201 return JDWP::ERR_NONE; 2202 } 2203 2204 JDWP::JdwpError Dbg::GetThreadDebugSuspendCount(JDWP::ObjectId thread_id, JDWP::ExpandBuf* pReply) { 2205 ScopedObjectAccess soa(Thread::Current()); 2206 MutexLock mu(soa.Self(), *Locks::thread_list_lock_); 2207 Thread* thread; 2208 JDWP::JdwpError error = DecodeThread(soa, thread_id, thread); 2209 if (error != JDWP::ERR_NONE) { 2210 return error; 2211 } 2212 MutexLock mu2(soa.Self(), *Locks::thread_suspend_count_lock_); 2213 expandBufAdd4BE(pReply, thread->GetDebugSuspendCount()); 2214 return JDWP::ERR_NONE; 2215 } 2216 2217 JDWP::JdwpError Dbg::Interrupt(JDWP::ObjectId thread_id) { 2218 ScopedObjectAccess soa(Thread::Current()); 2219 MutexLock mu(soa.Self(), *Locks::thread_list_lock_); 2220 Thread* thread; 2221 JDWP::JdwpError error = DecodeThread(soa, thread_id, thread); 2222 if (error != JDWP::ERR_NONE) { 2223 return error; 2224 } 2225 thread->Interrupt(soa.Self()); 2226 return JDWP::ERR_NONE; 2227 } 2228 2229 static bool IsInDesiredThreadGroup(ScopedObjectAccessUnchecked& soa, 2230 mirror::Object* desired_thread_group, mirror::Object* peer) 2231 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 2232 // Do we want threads from all thread groups? 2233 if (desired_thread_group == nullptr) { 2234 return true; 2235 } 2236 mirror::ArtField* thread_group_field = soa.DecodeField(WellKnownClasses::java_lang_Thread_group); 2237 DCHECK(thread_group_field != nullptr); 2238 mirror::Object* group = thread_group_field->GetObject(peer); 2239 return (group == desired_thread_group); 2240 } 2241 2242 void Dbg::GetThreads(mirror::Object* thread_group, std::vector<JDWP::ObjectId>* thread_ids) { 2243 ScopedObjectAccessUnchecked soa(Thread::Current()); 2244 std::list<Thread*> all_threads_list; 2245 { 2246 MutexLock mu(Thread::Current(), *Locks::thread_list_lock_); 2247 all_threads_list = Runtime::Current()->GetThreadList()->GetList(); 2248 } 2249 for (Thread* t : all_threads_list) { 2250 if (t == Dbg::GetDebugThread()) { 2251 // Skip the JDWP thread. Some debuggers get bent out of shape when they can't suspend and 2252 // query all threads, so it's easier if we just don't tell them about this thread. 2253 continue; 2254 } 2255 if (t->IsStillStarting()) { 2256 // This thread is being started (and has been registered in the thread list). However, it is 2257 // not completely started yet so we must ignore it. 2258 continue; 2259 } 2260 mirror::Object* peer = t->GetPeer(); 2261 if (peer == nullptr) { 2262 // peer might be NULL if the thread is still starting up. We can't tell the debugger about 2263 // this thread yet. 2264 // TODO: if we identified threads to the debugger by their Thread* 2265 // rather than their peer's mirror::Object*, we could fix this. 2266 // Doing so might help us report ZOMBIE threads too. 2267 continue; 2268 } 2269 if (IsInDesiredThreadGroup(soa, thread_group, peer)) { 2270 thread_ids->push_back(gRegistry->Add(peer)); 2271 } 2272 } 2273 } 2274 2275 static int GetStackDepth(Thread* thread) SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 2276 struct CountStackDepthVisitor : public StackVisitor { 2277 explicit CountStackDepthVisitor(Thread* thread) 2278 : StackVisitor(thread, NULL), depth(0) {} 2279 2280 // TODO: Enable annotalysis. We know lock is held in constructor, but abstraction confuses 2281 // annotalysis. 2282 bool VisitFrame() NO_THREAD_SAFETY_ANALYSIS { 2283 if (!GetMethod()->IsRuntimeMethod()) { 2284 ++depth; 2285 } 2286 return true; 2287 } 2288 size_t depth; 2289 }; 2290 2291 CountStackDepthVisitor visitor(thread); 2292 visitor.WalkStack(); 2293 return visitor.depth; 2294 } 2295 2296 JDWP::JdwpError Dbg::GetThreadFrameCount(JDWP::ObjectId thread_id, size_t& result) { 2297 ScopedObjectAccess soa(Thread::Current()); 2298 MutexLock mu(soa.Self(), *Locks::thread_list_lock_); 2299 Thread* thread; 2300 JDWP::JdwpError error = DecodeThread(soa, thread_id, thread); 2301 if (error != JDWP::ERR_NONE) { 2302 return error; 2303 } 2304 if (!IsSuspendedForDebugger(soa, thread)) { 2305 return JDWP::ERR_THREAD_NOT_SUSPENDED; 2306 } 2307 result = GetStackDepth(thread); 2308 return JDWP::ERR_NONE; 2309 } 2310 2311 JDWP::JdwpError Dbg::GetThreadFrames(JDWP::ObjectId thread_id, size_t start_frame, 2312 size_t frame_count, JDWP::ExpandBuf* buf) { 2313 class GetFrameVisitor : public StackVisitor { 2314 public: 2315 GetFrameVisitor(Thread* thread, size_t start_frame, size_t frame_count, JDWP::ExpandBuf* buf) 2316 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) 2317 : StackVisitor(thread, NULL), depth_(0), 2318 start_frame_(start_frame), frame_count_(frame_count), buf_(buf) { 2319 expandBufAdd4BE(buf_, frame_count_); 2320 } 2321 2322 // TODO: Enable annotalysis. We know lock is held in constructor, but abstraction confuses 2323 // annotalysis. 2324 virtual bool VisitFrame() NO_THREAD_SAFETY_ANALYSIS { 2325 if (GetMethod()->IsRuntimeMethod()) { 2326 return true; // The debugger can't do anything useful with a frame that has no Method*. 2327 } 2328 if (depth_ >= start_frame_ + frame_count_) { 2329 return false; 2330 } 2331 if (depth_ >= start_frame_) { 2332 JDWP::FrameId frame_id(GetFrameId()); 2333 JDWP::JdwpLocation location; 2334 SetJdwpLocation(&location, GetMethod(), GetDexPc()); 2335 VLOG(jdwp) << StringPrintf(" Frame %3zd: id=%3" PRIu64 " ", depth_, frame_id) << location; 2336 expandBufAdd8BE(buf_, frame_id); 2337 expandBufAddLocation(buf_, location); 2338 } 2339 ++depth_; 2340 return true; 2341 } 2342 2343 private: 2344 size_t depth_; 2345 const size_t start_frame_; 2346 const size_t frame_count_; 2347 JDWP::ExpandBuf* buf_; 2348 }; 2349 2350 ScopedObjectAccessUnchecked soa(Thread::Current()); 2351 MutexLock mu(soa.Self(), *Locks::thread_list_lock_); 2352 Thread* thread; 2353 JDWP::JdwpError error = DecodeThread(soa, thread_id, thread); 2354 if (error != JDWP::ERR_NONE) { 2355 return error; 2356 } 2357 if (!IsSuspendedForDebugger(soa, thread)) { 2358 return JDWP::ERR_THREAD_NOT_SUSPENDED; 2359 } 2360 GetFrameVisitor visitor(thread, start_frame, frame_count, buf); 2361 visitor.WalkStack(); 2362 return JDWP::ERR_NONE; 2363 } 2364 2365 JDWP::ObjectId Dbg::GetThreadSelfId() { 2366 return GetThreadId(Thread::Current()); 2367 } 2368 2369 JDWP::ObjectId Dbg::GetThreadId(Thread* thread) { 2370 ScopedObjectAccessUnchecked soa(Thread::Current()); 2371 return gRegistry->Add(thread->GetPeer()); 2372 } 2373 2374 void Dbg::SuspendVM() { 2375 Runtime::Current()->GetThreadList()->SuspendAllForDebugger(); 2376 } 2377 2378 void Dbg::ResumeVM() { 2379 Runtime::Current()->GetThreadList()->ResumeAllForDebugger(); 2380 } 2381 2382 JDWP::JdwpError Dbg::SuspendThread(JDWP::ObjectId thread_id, bool request_suspension) { 2383 Thread* self = Thread::Current(); 2384 ScopedLocalRef<jobject> peer(self->GetJniEnv(), NULL); 2385 { 2386 ScopedObjectAccess soa(self); 2387 peer.reset(soa.AddLocalReference<jobject>(gRegistry->Get<mirror::Object*>(thread_id))); 2388 } 2389 if (peer.get() == NULL) { 2390 return JDWP::ERR_THREAD_NOT_ALIVE; 2391 } 2392 // Suspend thread to build stack trace. Take suspend thread lock to avoid races with threads 2393 // trying to suspend this one. 2394 MutexLock mu(self, *Locks::thread_list_suspend_thread_lock_); 2395 bool timed_out; 2396 ThreadList* thread_list = Runtime::Current()->GetThreadList(); 2397 Thread* thread = thread_list->SuspendThreadByPeer(peer.get(), request_suspension, true, 2398 &timed_out); 2399 if (thread != NULL) { 2400 return JDWP::ERR_NONE; 2401 } else if (timed_out) { 2402 return JDWP::ERR_INTERNAL; 2403 } else { 2404 return JDWP::ERR_THREAD_NOT_ALIVE; 2405 } 2406 } 2407 2408 void Dbg::ResumeThread(JDWP::ObjectId thread_id) { 2409 ScopedObjectAccessUnchecked soa(Thread::Current()); 2410 mirror::Object* peer = gRegistry->Get<mirror::Object*>(thread_id); 2411 Thread* thread; 2412 { 2413 MutexLock mu(soa.Self(), *Locks::thread_list_lock_); 2414 thread = Thread::FromManagedThread(soa, peer); 2415 } 2416 if (thread == NULL) { 2417 LOG(WARNING) << "No such thread for resume: " << peer; 2418 return; 2419 } 2420 bool needs_resume; 2421 { 2422 MutexLock mu2(soa.Self(), *Locks::thread_suspend_count_lock_); 2423 needs_resume = thread->GetSuspendCount() > 0; 2424 } 2425 if (needs_resume) { 2426 Runtime::Current()->GetThreadList()->Resume(thread, true); 2427 } 2428 } 2429 2430 void Dbg::SuspendSelf() { 2431 Runtime::Current()->GetThreadList()->SuspendSelfForDebugger(); 2432 } 2433 2434 struct GetThisVisitor : public StackVisitor { 2435 GetThisVisitor(Thread* thread, Context* context, JDWP::FrameId frame_id) 2436 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) 2437 : StackVisitor(thread, context), this_object(NULL), frame_id(frame_id) {} 2438 2439 // TODO: Enable annotalysis. We know lock is held in constructor, but abstraction confuses 2440 // annotalysis. 2441 virtual bool VisitFrame() NO_THREAD_SAFETY_ANALYSIS { 2442 if (frame_id != GetFrameId()) { 2443 return true; // continue 2444 } else { 2445 this_object = GetThisObject(); 2446 return false; 2447 } 2448 } 2449 2450 mirror::Object* this_object; 2451 JDWP::FrameId frame_id; 2452 }; 2453 2454 JDWP::JdwpError Dbg::GetThisObject(JDWP::ObjectId thread_id, JDWP::FrameId frame_id, 2455 JDWP::ObjectId* result) { 2456 ScopedObjectAccessUnchecked soa(Thread::Current()); 2457 Thread* thread; 2458 { 2459 MutexLock mu(soa.Self(), *Locks::thread_list_lock_); 2460 JDWP::JdwpError error = DecodeThread(soa, thread_id, thread); 2461 if (error != JDWP::ERR_NONE) { 2462 return error; 2463 } 2464 if (!IsSuspendedForDebugger(soa, thread)) { 2465 return JDWP::ERR_THREAD_NOT_SUSPENDED; 2466 } 2467 } 2468 std::unique_ptr<Context> context(Context::Create()); 2469 GetThisVisitor visitor(thread, context.get(), frame_id); 2470 visitor.WalkStack(); 2471 *result = gRegistry->Add(visitor.this_object); 2472 return JDWP::ERR_NONE; 2473 } 2474 2475 // Walks the stack until we find the frame with the given FrameId. 2476 class FindFrameVisitor FINAL : public StackVisitor { 2477 public: 2478 FindFrameVisitor(Thread* thread, Context* context, JDWP::FrameId frame_id) 2479 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) 2480 : StackVisitor(thread, context), frame_id_(frame_id), error_(JDWP::ERR_INVALID_FRAMEID) {} 2481 2482 // TODO: Enable annotalysis. We know lock is held in constructor, but abstraction confuses 2483 // annotalysis. 2484 bool VisitFrame() NO_THREAD_SAFETY_ANALYSIS { 2485 if (GetFrameId() != frame_id_) { 2486 return true; // Not our frame, carry on. 2487 } 2488 mirror::ArtMethod* m = GetMethod(); 2489 if (m->IsNative()) { 2490 // We can't read/write local value from/into native method. 2491 error_ = JDWP::ERR_OPAQUE_FRAME; 2492 } else { 2493 // We found our frame. 2494 error_ = JDWP::ERR_NONE; 2495 } 2496 return false; 2497 } 2498 2499 JDWP::JdwpError GetError() const { 2500 return error_; 2501 } 2502 2503 private: 2504 const JDWP::FrameId frame_id_; 2505 JDWP::JdwpError error_; 2506 }; 2507 2508 JDWP::JdwpError Dbg::GetLocalValues(JDWP::Request* request, JDWP::ExpandBuf* pReply) { 2509 JDWP::ObjectId thread_id = request->ReadThreadId(); 2510 JDWP::FrameId frame_id = request->ReadFrameId(); 2511 2512 ScopedObjectAccessUnchecked soa(Thread::Current()); 2513 Thread* thread; 2514 { 2515 MutexLock mu(soa.Self(), *Locks::thread_list_lock_); 2516 JDWP::JdwpError error = DecodeThread(soa, thread_id, thread); 2517 if (error != JDWP::ERR_NONE) { 2518 return error; 2519 } 2520 } 2521 // Find the frame with the given frame_id. 2522 std::unique_ptr<Context> context(Context::Create()); 2523 FindFrameVisitor visitor(thread, context.get(), frame_id); 2524 visitor.WalkStack(); 2525 if (visitor.GetError() != JDWP::ERR_NONE) { 2526 return visitor.GetError(); 2527 } 2528 2529 // Read the values from visitor's context. 2530 int32_t slot_count = request->ReadSigned32("slot count"); 2531 expandBufAdd4BE(pReply, slot_count); /* "int values" */ 2532 for (int32_t i = 0; i < slot_count; ++i) { 2533 uint32_t slot = request->ReadUnsigned32("slot"); 2534 JDWP::JdwpTag reqSigByte = request->ReadTag(); 2535 2536 VLOG(jdwp) << " --> slot " << slot << " " << reqSigByte; 2537 2538 size_t width = Dbg::GetTagWidth(reqSigByte); 2539 uint8_t* ptr = expandBufAddSpace(pReply, width+1); 2540 JDWP::JdwpError error = Dbg::GetLocalValue(visitor, soa, slot, reqSigByte, ptr, width); 2541 if (error != JDWP::ERR_NONE) { 2542 return error; 2543 } 2544 } 2545 return JDWP::ERR_NONE; 2546 } 2547 2548 JDWP::JdwpError Dbg::GetLocalValue(const StackVisitor& visitor, ScopedObjectAccessUnchecked& soa, 2549 int slot, JDWP::JdwpTag tag, uint8_t* buf, size_t width) { 2550 mirror::ArtMethod* m = visitor.GetMethod(); 2551 uint16_t reg = DemangleSlot(slot, m); 2552 // TODO: check that the tag is compatible with the actual type of the slot! 2553 // TODO: check slot is valid for this method or return INVALID_SLOT error. 2554 constexpr JDWP::JdwpError kFailureErrorCode = JDWP::ERR_ABSENT_INFORMATION; 2555 switch (tag) { 2556 case JDWP::JT_BOOLEAN: { 2557 CHECK_EQ(width, 1U); 2558 uint32_t intVal; 2559 if (visitor.GetVReg(m, reg, kIntVReg, &intVal)) { 2560 VLOG(jdwp) << "get boolean local " << reg << " = " << intVal; 2561 JDWP::Set1(buf + 1, intVal != 0); 2562 } else { 2563 VLOG(jdwp) << "failed to get boolean local " << reg; 2564 return kFailureErrorCode; 2565 } 2566 break; 2567 } 2568 case JDWP::JT_BYTE: { 2569 CHECK_EQ(width, 1U); 2570 uint32_t intVal; 2571 if (visitor.GetVReg(m, reg, kIntVReg, &intVal)) { 2572 VLOG(jdwp) << "get byte local " << reg << " = " << intVal; 2573 JDWP::Set1(buf + 1, intVal); 2574 } else { 2575 VLOG(jdwp) << "failed to get byte local " << reg; 2576 return kFailureErrorCode; 2577 } 2578 break; 2579 } 2580 case JDWP::JT_SHORT: 2581 case JDWP::JT_CHAR: { 2582 CHECK_EQ(width, 2U); 2583 uint32_t intVal; 2584 if (visitor.GetVReg(m, reg, kIntVReg, &intVal)) { 2585 VLOG(jdwp) << "get short/char local " << reg << " = " << intVal; 2586 JDWP::Set2BE(buf + 1, intVal); 2587 } else { 2588 VLOG(jdwp) << "failed to get short/char local " << reg; 2589 return kFailureErrorCode; 2590 } 2591 break; 2592 } 2593 case JDWP::JT_INT: { 2594 CHECK_EQ(width, 4U); 2595 uint32_t intVal; 2596 if (visitor.GetVReg(m, reg, kIntVReg, &intVal)) { 2597 VLOG(jdwp) << "get int local " << reg << " = " << intVal; 2598 JDWP::Set4BE(buf + 1, intVal); 2599 } else { 2600 VLOG(jdwp) << "failed to get int local " << reg; 2601 return kFailureErrorCode; 2602 } 2603 break; 2604 } 2605 case JDWP::JT_FLOAT: { 2606 CHECK_EQ(width, 4U); 2607 uint32_t intVal; 2608 if (visitor.GetVReg(m, reg, kFloatVReg, &intVal)) { 2609 VLOG(jdwp) << "get float local " << reg << " = " << intVal; 2610 JDWP::Set4BE(buf + 1, intVal); 2611 } else { 2612 VLOG(jdwp) << "failed to get float local " << reg; 2613 return kFailureErrorCode; 2614 } 2615 break; 2616 } 2617 case JDWP::JT_ARRAY: 2618 case JDWP::JT_CLASS_LOADER: 2619 case JDWP::JT_CLASS_OBJECT: 2620 case JDWP::JT_OBJECT: 2621 case JDWP::JT_STRING: 2622 case JDWP::JT_THREAD: 2623 case JDWP::JT_THREAD_GROUP: { 2624 CHECK_EQ(width, sizeof(JDWP::ObjectId)); 2625 uint32_t intVal; 2626 if (visitor.GetVReg(m, reg, kReferenceVReg, &intVal)) { 2627 mirror::Object* o = reinterpret_cast<mirror::Object*>(intVal); 2628 VLOG(jdwp) << "get " << tag << " object local " << reg << " = " << o; 2629 if (!Runtime::Current()->GetHeap()->IsValidObjectAddress(o)) { 2630 LOG(FATAL) << "Register " << reg << " expected to hold " << tag << " object: " << o; 2631 } 2632 tag = TagFromObject(soa, o); 2633 JDWP::SetObjectId(buf + 1, gRegistry->Add(o)); 2634 } else { 2635 VLOG(jdwp) << "failed to get " << tag << " object local " << reg; 2636 return kFailureErrorCode; 2637 } 2638 break; 2639 } 2640 case JDWP::JT_DOUBLE: { 2641 CHECK_EQ(width, 8U); 2642 uint64_t longVal; 2643 if (visitor.GetVRegPair(m, reg, kDoubleLoVReg, kDoubleHiVReg, &longVal)) { 2644 VLOG(jdwp) << "get double local " << reg << " = " << longVal; 2645 JDWP::Set8BE(buf + 1, longVal); 2646 } else { 2647 VLOG(jdwp) << "failed to get double local " << reg; 2648 return kFailureErrorCode; 2649 } 2650 break; 2651 } 2652 case JDWP::JT_LONG: { 2653 CHECK_EQ(width, 8U); 2654 uint64_t longVal; 2655 if (visitor.GetVRegPair(m, reg, kLongLoVReg, kLongHiVReg, &longVal)) { 2656 VLOG(jdwp) << "get long local " << reg << " = " << longVal; 2657 JDWP::Set8BE(buf + 1, longVal); 2658 } else { 2659 VLOG(jdwp) << "failed to get long local " << reg; 2660 return kFailureErrorCode; 2661 } 2662 break; 2663 } 2664 default: 2665 LOG(FATAL) << "Unknown tag " << tag; 2666 break; 2667 } 2668 2669 // Prepend tag, which may have been updated. 2670 JDWP::Set1(buf, tag); 2671 return JDWP::ERR_NONE; 2672 } 2673 2674 JDWP::JdwpError Dbg::SetLocalValues(JDWP::Request* request) { 2675 JDWP::ObjectId thread_id = request->ReadThreadId(); 2676 JDWP::FrameId frame_id = request->ReadFrameId(); 2677 2678 ScopedObjectAccessUnchecked soa(Thread::Current()); 2679 Thread* thread; 2680 { 2681 MutexLock mu(soa.Self(), *Locks::thread_list_lock_); 2682 JDWP::JdwpError error = DecodeThread(soa, thread_id, thread); 2683 if (error != JDWP::ERR_NONE) { 2684 return error; 2685 } 2686 } 2687 // Find the frame with the given frame_id. 2688 std::unique_ptr<Context> context(Context::Create()); 2689 FindFrameVisitor visitor(thread, context.get(), frame_id); 2690 visitor.WalkStack(); 2691 if (visitor.GetError() != JDWP::ERR_NONE) { 2692 return visitor.GetError(); 2693 } 2694 2695 // Writes the values into visitor's context. 2696 int32_t slot_count = request->ReadSigned32("slot count"); 2697 for (int32_t i = 0; i < slot_count; ++i) { 2698 uint32_t slot = request->ReadUnsigned32("slot"); 2699 JDWP::JdwpTag sigByte = request->ReadTag(); 2700 size_t width = Dbg::GetTagWidth(sigByte); 2701 uint64_t value = request->ReadValue(width); 2702 2703 VLOG(jdwp) << " --> slot " << slot << " " << sigByte << " " << value; 2704 JDWP::JdwpError error = Dbg::SetLocalValue(visitor, slot, sigByte, value, width); 2705 if (error != JDWP::ERR_NONE) { 2706 return error; 2707 } 2708 } 2709 return JDWP::ERR_NONE; 2710 } 2711 2712 JDWP::JdwpError Dbg::SetLocalValue(StackVisitor& visitor, int slot, JDWP::JdwpTag tag, 2713 uint64_t value, size_t width) { 2714 mirror::ArtMethod* m = visitor.GetMethod(); 2715 uint16_t reg = DemangleSlot(slot, m); 2716 // TODO: check that the tag is compatible with the actual type of the slot! 2717 // TODO: check slot is valid for this method or return INVALID_SLOT error. 2718 constexpr JDWP::JdwpError kFailureErrorCode = JDWP::ERR_ABSENT_INFORMATION; 2719 switch (tag) { 2720 case JDWP::JT_BOOLEAN: 2721 case JDWP::JT_BYTE: 2722 CHECK_EQ(width, 1U); 2723 if (!visitor.SetVReg(m, reg, static_cast<uint32_t>(value), kIntVReg)) { 2724 VLOG(jdwp) << "failed to set boolean/byte local " << reg << " = " 2725 << static_cast<uint32_t>(value); 2726 return kFailureErrorCode; 2727 } 2728 break; 2729 case JDWP::JT_SHORT: 2730 case JDWP::JT_CHAR: 2731 CHECK_EQ(width, 2U); 2732 if (!visitor.SetVReg(m, reg, static_cast<uint32_t>(value), kIntVReg)) { 2733 VLOG(jdwp) << "failed to set short/char local " << reg << " = " 2734 << static_cast<uint32_t>(value); 2735 return kFailureErrorCode; 2736 } 2737 break; 2738 case JDWP::JT_INT: 2739 CHECK_EQ(width, 4U); 2740 if (!visitor.SetVReg(m, reg, static_cast<uint32_t>(value), kIntVReg)) { 2741 VLOG(jdwp) << "failed to set int local " << reg << " = " 2742 << static_cast<uint32_t>(value); 2743 return kFailureErrorCode; 2744 } 2745 break; 2746 case JDWP::JT_FLOAT: 2747 CHECK_EQ(width, 4U); 2748 if (!visitor.SetVReg(m, reg, static_cast<uint32_t>(value), kFloatVReg)) { 2749 VLOG(jdwp) << "failed to set float local " << reg << " = " 2750 << static_cast<uint32_t>(value); 2751 return kFailureErrorCode; 2752 } 2753 break; 2754 case JDWP::JT_ARRAY: 2755 case JDWP::JT_CLASS_LOADER: 2756 case JDWP::JT_CLASS_OBJECT: 2757 case JDWP::JT_OBJECT: 2758 case JDWP::JT_STRING: 2759 case JDWP::JT_THREAD: 2760 case JDWP::JT_THREAD_GROUP: { 2761 CHECK_EQ(width, sizeof(JDWP::ObjectId)); 2762 mirror::Object* o = gRegistry->Get<mirror::Object*>(static_cast<JDWP::ObjectId>(value)); 2763 if (o == ObjectRegistry::kInvalidObject) { 2764 VLOG(jdwp) << tag << " object " << o << " is an invalid object"; 2765 return JDWP::ERR_INVALID_OBJECT; 2766 } else if (!visitor.SetVReg(m, reg, static_cast<uint32_t>(reinterpret_cast<uintptr_t>(o)), 2767 kReferenceVReg)) { 2768 VLOG(jdwp) << "failed to set " << tag << " object local " << reg << " = " << o; 2769 return kFailureErrorCode; 2770 } 2771 break; 2772 } 2773 case JDWP::JT_DOUBLE: { 2774 CHECK_EQ(width, 8U); 2775 if (!visitor.SetVRegPair(m, reg, value, kDoubleLoVReg, kDoubleHiVReg)) { 2776 VLOG(jdwp) << "failed to set double local " << reg << " = " << value; 2777 return kFailureErrorCode; 2778 } 2779 break; 2780 } 2781 case JDWP::JT_LONG: { 2782 CHECK_EQ(width, 8U); 2783 if (!visitor.SetVRegPair(m, reg, value, kLongLoVReg, kLongHiVReg)) { 2784 VLOG(jdwp) << "failed to set double local " << reg << " = " << value; 2785 return kFailureErrorCode; 2786 } 2787 break; 2788 } 2789 default: 2790 LOG(FATAL) << "Unknown tag " << tag; 2791 break; 2792 } 2793 return JDWP::ERR_NONE; 2794 } 2795 2796 static void SetEventLocation(JDWP::EventLocation* location, mirror::ArtMethod* m, uint32_t dex_pc) 2797 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 2798 DCHECK(location != nullptr); 2799 if (m == nullptr) { 2800 memset(location, 0, sizeof(*location)); 2801 } else { 2802 location->method = m; 2803 location->dex_pc = (m->IsNative() || m->IsProxyMethod()) ? static_cast<uint32_t>(-1) : dex_pc; 2804 } 2805 } 2806 2807 void Dbg::PostLocationEvent(mirror::ArtMethod* m, int dex_pc, mirror::Object* this_object, 2808 int event_flags, const JValue* return_value) { 2809 if (!IsDebuggerActive()) { 2810 return; 2811 } 2812 DCHECK(m != nullptr); 2813 DCHECK_EQ(m->IsStatic(), this_object == nullptr); 2814 JDWP::EventLocation location; 2815 SetEventLocation(&location, m, dex_pc); 2816 2817 gJdwpState->PostLocationEvent(&location, this_object, event_flags, return_value); 2818 } 2819 2820 void Dbg::PostFieldAccessEvent(mirror::ArtMethod* m, int dex_pc, 2821 mirror::Object* this_object, mirror::ArtField* f) { 2822 if (!IsDebuggerActive()) { 2823 return; 2824 } 2825 DCHECK(m != nullptr); 2826 DCHECK(f != nullptr); 2827 JDWP::EventLocation location; 2828 SetEventLocation(&location, m, dex_pc); 2829 2830 gJdwpState->PostFieldEvent(&location, f, this_object, nullptr, false); 2831 } 2832 2833 void Dbg::PostFieldModificationEvent(mirror::ArtMethod* m, int dex_pc, 2834 mirror::Object* this_object, mirror::ArtField* f, 2835 const JValue* field_value) { 2836 if (!IsDebuggerActive()) { 2837 return; 2838 } 2839 DCHECK(m != nullptr); 2840 DCHECK(f != nullptr); 2841 DCHECK(field_value != nullptr); 2842 JDWP::EventLocation location; 2843 SetEventLocation(&location, m, dex_pc); 2844 2845 gJdwpState->PostFieldEvent(&location, f, this_object, field_value, true); 2846 } 2847 2848 void Dbg::PostException(const ThrowLocation& throw_location, 2849 mirror::ArtMethod* catch_method, 2850 uint32_t catch_dex_pc, mirror::Throwable* exception_object) { 2851 if (!IsDebuggerActive()) { 2852 return; 2853 } 2854 JDWP::EventLocation exception_throw_location; 2855 SetEventLocation(&exception_throw_location, throw_location.GetMethod(), throw_location.GetDexPc()); 2856 JDWP::EventLocation exception_catch_location; 2857 SetEventLocation(&exception_catch_location, catch_method, catch_dex_pc); 2858 2859 gJdwpState->PostException(&exception_throw_location, exception_object, &exception_catch_location, 2860 throw_location.GetThis()); 2861 } 2862 2863 void Dbg::PostClassPrepare(mirror::Class* c) { 2864 if (!IsDebuggerActive()) { 2865 return; 2866 } 2867 gJdwpState->PostClassPrepare(c); 2868 } 2869 2870 void Dbg::UpdateDebugger(Thread* thread, mirror::Object* this_object, 2871 mirror::ArtMethod* m, uint32_t dex_pc, 2872 int event_flags, const JValue* return_value) { 2873 if (!IsDebuggerActive() || dex_pc == static_cast<uint32_t>(-2) /* fake method exit */) { 2874 return; 2875 } 2876 2877 if (IsBreakpoint(m, dex_pc)) { 2878 event_flags |= kBreakpoint; 2879 } 2880 2881 // If the debugger is single-stepping one of our threads, check to 2882 // see if we're that thread and we've reached a step point. 2883 const SingleStepControl* single_step_control = thread->GetSingleStepControl(); 2884 DCHECK(single_step_control != nullptr); 2885 if (single_step_control->is_active) { 2886 CHECK(!m->IsNative()); 2887 if (single_step_control->step_depth == JDWP::SD_INTO) { 2888 // Step into method calls. We break when the line number 2889 // or method pointer changes. If we're in SS_MIN mode, we 2890 // always stop. 2891 if (single_step_control->method != m) { 2892 event_flags |= kSingleStep; 2893 VLOG(jdwp) << "SS new method"; 2894 } else if (single_step_control->step_size == JDWP::SS_MIN) { 2895 event_flags |= kSingleStep; 2896 VLOG(jdwp) << "SS new instruction"; 2897 } else if (single_step_control->ContainsDexPc(dex_pc)) { 2898 event_flags |= kSingleStep; 2899 VLOG(jdwp) << "SS new line"; 2900 } 2901 } else if (single_step_control->step_depth == JDWP::SD_OVER) { 2902 // Step over method calls. We break when the line number is 2903 // different and the frame depth is <= the original frame 2904 // depth. (We can't just compare on the method, because we 2905 // might get unrolled past it by an exception, and it's tricky 2906 // to identify recursion.) 2907 2908 int stack_depth = GetStackDepth(thread); 2909 2910 if (stack_depth < single_step_control->stack_depth) { 2911 // Popped up one or more frames, always trigger. 2912 event_flags |= kSingleStep; 2913 VLOG(jdwp) << "SS method pop"; 2914 } else if (stack_depth == single_step_control->stack_depth) { 2915 // Same depth, see if we moved. 2916 if (single_step_control->step_size == JDWP::SS_MIN) { 2917 event_flags |= kSingleStep; 2918 VLOG(jdwp) << "SS new instruction"; 2919 } else if (single_step_control->ContainsDexPc(dex_pc)) { 2920 event_flags |= kSingleStep; 2921 VLOG(jdwp) << "SS new line"; 2922 } 2923 } 2924 } else { 2925 CHECK_EQ(single_step_control->step_depth, JDWP::SD_OUT); 2926 // Return from the current method. We break when the frame 2927 // depth pops up. 2928 2929 // This differs from the "method exit" break in that it stops 2930 // with the PC at the next instruction in the returned-to 2931 // function, rather than the end of the returning function. 2932 2933 int stack_depth = GetStackDepth(thread); 2934 if (stack_depth < single_step_control->stack_depth) { 2935 event_flags |= kSingleStep; 2936 VLOG(jdwp) << "SS method pop"; 2937 } 2938 } 2939 } 2940 2941 // If there's something interesting going on, see if it matches one 2942 // of the debugger filters. 2943 if (event_flags != 0) { 2944 Dbg::PostLocationEvent(m, dex_pc, this_object, event_flags, return_value); 2945 } 2946 } 2947 2948 size_t* Dbg::GetReferenceCounterForEvent(uint32_t instrumentation_event) { 2949 switch (instrumentation_event) { 2950 case instrumentation::Instrumentation::kMethodEntered: 2951 return &method_enter_event_ref_count_; 2952 case instrumentation::Instrumentation::kMethodExited: 2953 return &method_exit_event_ref_count_; 2954 case instrumentation::Instrumentation::kDexPcMoved: 2955 return &dex_pc_change_event_ref_count_; 2956 case instrumentation::Instrumentation::kFieldRead: 2957 return &field_read_event_ref_count_; 2958 case instrumentation::Instrumentation::kFieldWritten: 2959 return &field_write_event_ref_count_; 2960 case instrumentation::Instrumentation::kExceptionCaught: 2961 return &exception_catch_event_ref_count_; 2962 default: 2963 return nullptr; 2964 } 2965 } 2966 2967 // Process request while all mutator threads are suspended. 2968 void Dbg::ProcessDeoptimizationRequest(const DeoptimizationRequest& request) { 2969 instrumentation::Instrumentation* instrumentation = Runtime::Current()->GetInstrumentation(); 2970 switch (request.GetKind()) { 2971 case DeoptimizationRequest::kNothing: 2972 LOG(WARNING) << "Ignoring empty deoptimization request."; 2973 break; 2974 case DeoptimizationRequest::kRegisterForEvent: 2975 VLOG(jdwp) << StringPrintf("Add debugger as listener for instrumentation event 0x%x", 2976 request.InstrumentationEvent()); 2977 instrumentation->AddListener(&gDebugInstrumentationListener, request.InstrumentationEvent()); 2978 instrumentation_events_ |= request.InstrumentationEvent(); 2979 break; 2980 case DeoptimizationRequest::kUnregisterForEvent: 2981 VLOG(jdwp) << StringPrintf("Remove debugger as listener for instrumentation event 0x%x", 2982 request.InstrumentationEvent()); 2983 instrumentation->RemoveListener(&gDebugInstrumentationListener, 2984 request.InstrumentationEvent()); 2985 instrumentation_events_ &= ~request.InstrumentationEvent(); 2986 break; 2987 case DeoptimizationRequest::kFullDeoptimization: 2988 VLOG(jdwp) << "Deoptimize the world ..."; 2989 instrumentation->DeoptimizeEverything(); 2990 VLOG(jdwp) << "Deoptimize the world DONE"; 2991 break; 2992 case DeoptimizationRequest::kFullUndeoptimization: 2993 VLOG(jdwp) << "Undeoptimize the world ..."; 2994 instrumentation->UndeoptimizeEverything(); 2995 VLOG(jdwp) << "Undeoptimize the world DONE"; 2996 break; 2997 case DeoptimizationRequest::kSelectiveDeoptimization: 2998 VLOG(jdwp) << "Deoptimize method " << PrettyMethod(request.Method()) << " ..."; 2999 instrumentation->Deoptimize(request.Method()); 3000 VLOG(jdwp) << "Deoptimize method " << PrettyMethod(request.Method()) << " DONE"; 3001 break; 3002 case DeoptimizationRequest::kSelectiveUndeoptimization: 3003 VLOG(jdwp) << "Undeoptimize method " << PrettyMethod(request.Method()) << " ..."; 3004 instrumentation->Undeoptimize(request.Method()); 3005 VLOG(jdwp) << "Undeoptimize method " << PrettyMethod(request.Method()) << " DONE"; 3006 break; 3007 default: 3008 LOG(FATAL) << "Unsupported deoptimization request kind " << request.GetKind(); 3009 break; 3010 } 3011 } 3012 3013 void Dbg::DelayFullUndeoptimization() { 3014 if (RequiresDeoptimization()) { 3015 MutexLock mu(Thread::Current(), *Locks::deoptimization_lock_); 3016 ++delayed_full_undeoptimization_count_; 3017 DCHECK_LE(delayed_full_undeoptimization_count_, full_deoptimization_event_count_); 3018 } 3019 } 3020 3021 void Dbg::ProcessDelayedFullUndeoptimizations() { 3022 // TODO: avoid taking the lock twice (once here and once in ManageDeoptimization). 3023 { 3024 MutexLock mu(Thread::Current(), *Locks::deoptimization_lock_); 3025 while (delayed_full_undeoptimization_count_ > 0) { 3026 DeoptimizationRequest req; 3027 req.SetKind(DeoptimizationRequest::kFullUndeoptimization); 3028 req.SetMethod(nullptr); 3029 RequestDeoptimizationLocked(req); 3030 --delayed_full_undeoptimization_count_; 3031 } 3032 } 3033 ManageDeoptimization(); 3034 } 3035 3036 void Dbg::RequestDeoptimization(const DeoptimizationRequest& req) { 3037 if (req.GetKind() == DeoptimizationRequest::kNothing) { 3038 // Nothing to do. 3039 return; 3040 } 3041 MutexLock mu(Thread::Current(), *Locks::deoptimization_lock_); 3042 RequestDeoptimizationLocked(req); 3043 } 3044 3045 void Dbg::RequestDeoptimizationLocked(const DeoptimizationRequest& req) { 3046 switch (req.GetKind()) { 3047 case DeoptimizationRequest::kRegisterForEvent: { 3048 DCHECK_NE(req.InstrumentationEvent(), 0u); 3049 size_t* counter = GetReferenceCounterForEvent(req.InstrumentationEvent()); 3050 CHECK(counter != nullptr) << StringPrintf("No counter for instrumentation event 0x%x", 3051 req.InstrumentationEvent()); 3052 if (*counter == 0) { 3053 VLOG(jdwp) << StringPrintf("Queue request #%zd to start listening to instrumentation event 0x%x", 3054 deoptimization_requests_.size(), req.InstrumentationEvent()); 3055 deoptimization_requests_.push_back(req); 3056 } 3057 *counter = *counter + 1; 3058 break; 3059 } 3060 case DeoptimizationRequest::kUnregisterForEvent: { 3061 DCHECK_NE(req.InstrumentationEvent(), 0u); 3062 size_t* counter = GetReferenceCounterForEvent(req.InstrumentationEvent()); 3063 CHECK(counter != nullptr) << StringPrintf("No counter for instrumentation event 0x%x", 3064 req.InstrumentationEvent()); 3065 *counter = *counter - 1; 3066 if (*counter == 0) { 3067 VLOG(jdwp) << StringPrintf("Queue request #%zd to stop listening to instrumentation event 0x%x", 3068 deoptimization_requests_.size(), req.InstrumentationEvent()); 3069 deoptimization_requests_.push_back(req); 3070 } 3071 break; 3072 } 3073 case DeoptimizationRequest::kFullDeoptimization: { 3074 DCHECK(req.Method() == nullptr); 3075 if (full_deoptimization_event_count_ == 0) { 3076 VLOG(jdwp) << "Queue request #" << deoptimization_requests_.size() 3077 << " for full deoptimization"; 3078 deoptimization_requests_.push_back(req); 3079 } 3080 ++full_deoptimization_event_count_; 3081 break; 3082 } 3083 case DeoptimizationRequest::kFullUndeoptimization: { 3084 DCHECK(req.Method() == nullptr); 3085 DCHECK_GT(full_deoptimization_event_count_, 0U); 3086 --full_deoptimization_event_count_; 3087 if (full_deoptimization_event_count_ == 0) { 3088 VLOG(jdwp) << "Queue request #" << deoptimization_requests_.size() 3089 << " for full undeoptimization"; 3090 deoptimization_requests_.push_back(req); 3091 } 3092 break; 3093 } 3094 case DeoptimizationRequest::kSelectiveDeoptimization: { 3095 DCHECK(req.Method() != nullptr); 3096 VLOG(jdwp) << "Queue request #" << deoptimization_requests_.size() 3097 << " for deoptimization of " << PrettyMethod(req.Method()); 3098 deoptimization_requests_.push_back(req); 3099 break; 3100 } 3101 case DeoptimizationRequest::kSelectiveUndeoptimization: { 3102 DCHECK(req.Method() != nullptr); 3103 VLOG(jdwp) << "Queue request #" << deoptimization_requests_.size() 3104 << " for undeoptimization of " << PrettyMethod(req.Method()); 3105 deoptimization_requests_.push_back(req); 3106 break; 3107 } 3108 default: { 3109 LOG(FATAL) << "Unknown deoptimization request kind " << req.GetKind(); 3110 break; 3111 } 3112 } 3113 } 3114 3115 void Dbg::ManageDeoptimization() { 3116 Thread* const self = Thread::Current(); 3117 { 3118 // Avoid suspend/resume if there is no pending request. 3119 MutexLock mu(self, *Locks::deoptimization_lock_); 3120 if (deoptimization_requests_.empty()) { 3121 return; 3122 } 3123 } 3124 CHECK_EQ(self->GetState(), kRunnable); 3125 self->TransitionFromRunnableToSuspended(kWaitingForDeoptimization); 3126 // We need to suspend mutator threads first. 3127 Runtime* const runtime = Runtime::Current(); 3128 runtime->GetThreadList()->SuspendAll(); 3129 const ThreadState old_state = self->SetStateUnsafe(kRunnable); 3130 { 3131 MutexLock mu(self, *Locks::deoptimization_lock_); 3132 size_t req_index = 0; 3133 for (DeoptimizationRequest& request : deoptimization_requests_) { 3134 VLOG(jdwp) << "Process deoptimization request #" << req_index++; 3135 ProcessDeoptimizationRequest(request); 3136 } 3137 deoptimization_requests_.clear(); 3138 } 3139 CHECK_EQ(self->SetStateUnsafe(old_state), kRunnable); 3140 runtime->GetThreadList()->ResumeAll(); 3141 self->TransitionFromSuspendedToRunnable(); 3142 } 3143 3144 static bool IsMethodPossiblyInlined(Thread* self, mirror::ArtMethod* m) 3145 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 3146 const DexFile::CodeItem* code_item = m->GetCodeItem(); 3147 if (code_item == nullptr) { 3148 // TODO We should not be asked to watch location in a native or abstract method so the code item 3149 // should never be null. We could just check we never encounter this case. 3150 return false; 3151 } 3152 // Note: method verifier may cause thread suspension. 3153 self->AssertThreadSuspensionIsAllowable(); 3154 StackHandleScope<2> hs(self); 3155 mirror::Class* declaring_class = m->GetDeclaringClass(); 3156 Handle<mirror::DexCache> dex_cache(hs.NewHandle(declaring_class->GetDexCache())); 3157 Handle<mirror::ClassLoader> class_loader(hs.NewHandle(declaring_class->GetClassLoader())); 3158 verifier::MethodVerifier verifier(dex_cache->GetDexFile(), &dex_cache, &class_loader, 3159 &m->GetClassDef(), code_item, m->GetDexMethodIndex(), m, 3160 m->GetAccessFlags(), false, true, false); 3161 // Note: we don't need to verify the method. 3162 return InlineMethodAnalyser::AnalyseMethodCode(&verifier, nullptr); 3163 } 3164 3165 static const Breakpoint* FindFirstBreakpointForMethod(mirror::ArtMethod* m) 3166 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_, Locks::breakpoint_lock_) { 3167 for (Breakpoint& breakpoint : gBreakpoints) { 3168 if (breakpoint.Method() == m) { 3169 return &breakpoint; 3170 } 3171 } 3172 return nullptr; 3173 } 3174 3175 // Sanity checks all existing breakpoints on the same method. 3176 static void SanityCheckExistingBreakpoints(mirror::ArtMethod* m, 3177 DeoptimizationRequest::Kind deoptimization_kind) 3178 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_, Locks::breakpoint_lock_) { 3179 for (const Breakpoint& breakpoint : gBreakpoints) { 3180 if (breakpoint.Method() == m) { 3181 CHECK_EQ(deoptimization_kind, breakpoint.GetDeoptimizationKind()); 3182 } 3183 } 3184 instrumentation::Instrumentation* instrumentation = Runtime::Current()->GetInstrumentation(); 3185 if (deoptimization_kind == DeoptimizationRequest::kFullDeoptimization) { 3186 // We should have deoptimized everything but not "selectively" deoptimized this method. 3187 CHECK(instrumentation->AreAllMethodsDeoptimized()); 3188 CHECK(!instrumentation->IsDeoptimized(m)); 3189 } else if (deoptimization_kind == DeoptimizationRequest::kSelectiveDeoptimization) { 3190 // We should have "selectively" deoptimized this method. 3191 // Note: while we have not deoptimized everything for this method, we may have done it for 3192 // another event. 3193 CHECK(instrumentation->IsDeoptimized(m)); 3194 } else { 3195 // This method does not require deoptimization. 3196 CHECK_EQ(deoptimization_kind, DeoptimizationRequest::kNothing); 3197 CHECK(!instrumentation->IsDeoptimized(m)); 3198 } 3199 } 3200 3201 // Returns the deoptimization kind required to set a breakpoint in a method. 3202 // If a breakpoint has already been set, we also return the first breakpoint 3203 // through the given 'existing_brkpt' pointer. 3204 static DeoptimizationRequest::Kind GetRequiredDeoptimizationKind(Thread* self, 3205 mirror::ArtMethod* m, 3206 const Breakpoint** existing_brkpt) 3207 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 3208 if (!Dbg::RequiresDeoptimization()) { 3209 // We already run in interpreter-only mode so we don't need to deoptimize anything. 3210 VLOG(jdwp) << "No need for deoptimization when fully running with interpreter for method " 3211 << PrettyMethod(m); 3212 return DeoptimizationRequest::kNothing; 3213 } 3214 const Breakpoint* first_breakpoint; 3215 { 3216 ReaderMutexLock mu(self, *Locks::breakpoint_lock_); 3217 first_breakpoint = FindFirstBreakpointForMethod(m); 3218 *existing_brkpt = first_breakpoint; 3219 } 3220 3221 if (first_breakpoint == nullptr) { 3222 // There is no breakpoint on this method yet: we need to deoptimize. If this method may be 3223 // inlined, we deoptimize everything; otherwise we deoptimize only this method. 3224 // Note: IsMethodPossiblyInlined goes into the method verifier and may cause thread suspension. 3225 // Therefore we must not hold any lock when we call it. 3226 bool need_full_deoptimization = IsMethodPossiblyInlined(self, m); 3227 if (need_full_deoptimization) { 3228 VLOG(jdwp) << "Need full deoptimization because of possible inlining of method " 3229 << PrettyMethod(m); 3230 return DeoptimizationRequest::kFullDeoptimization; 3231 } else { 3232 // We don't need to deoptimize if the method has not been compiled. 3233 ClassLinker* const class_linker = Runtime::Current()->GetClassLinker(); 3234 const bool is_compiled = class_linker->GetOatMethodQuickCodeFor(m) != nullptr; 3235 if (is_compiled) { 3236 // If the method may be called through its direct code pointer (without loading 3237 // its updated entrypoint), we need full deoptimization to not miss the breakpoint. 3238 if (class_linker->MayBeCalledWithDirectCodePointer(m)) { 3239 VLOG(jdwp) << "Need full deoptimization because of possible direct code call " 3240 << "into image for compiled method " << PrettyMethod(m); 3241 return DeoptimizationRequest::kFullDeoptimization; 3242 } else { 3243 VLOG(jdwp) << "Need selective deoptimization for compiled method " << PrettyMethod(m); 3244 return DeoptimizationRequest::kSelectiveDeoptimization; 3245 } 3246 } else { 3247 // Method is not compiled: we don't need to deoptimize. 3248 VLOG(jdwp) << "No need for deoptimization for non-compiled method " << PrettyMethod(m); 3249 return DeoptimizationRequest::kNothing; 3250 } 3251 } 3252 } else { 3253 // There is at least one breakpoint for this method: we don't need to deoptimize. 3254 // Let's check that all breakpoints are configured the same way for deoptimization. 3255 VLOG(jdwp) << "Breakpoint already set: no deoptimization is required"; 3256 DeoptimizationRequest::Kind deoptimization_kind = first_breakpoint->GetDeoptimizationKind(); 3257 if (kIsDebugBuild) { 3258 ReaderMutexLock mu(self, *Locks::breakpoint_lock_); 3259 SanityCheckExistingBreakpoints(m, deoptimization_kind); 3260 } 3261 return DeoptimizationRequest::kNothing; 3262 } 3263 } 3264 3265 // Installs a breakpoint at the specified location. Also indicates through the deoptimization 3266 // request if we need to deoptimize. 3267 void Dbg::WatchLocation(const JDWP::JdwpLocation* location, DeoptimizationRequest* req) { 3268 Thread* const self = Thread::Current(); 3269 mirror::ArtMethod* m = FromMethodId(location->method_id); 3270 DCHECK(m != nullptr) << "No method for method id " << location->method_id; 3271 3272 const Breakpoint* existing_breakpoint = nullptr; 3273 const DeoptimizationRequest::Kind deoptimization_kind = 3274 GetRequiredDeoptimizationKind(self, m, &existing_breakpoint); 3275 req->SetKind(deoptimization_kind); 3276 if (deoptimization_kind == DeoptimizationRequest::kSelectiveDeoptimization) { 3277 req->SetMethod(m); 3278 } else { 3279 CHECK(deoptimization_kind == DeoptimizationRequest::kNothing || 3280 deoptimization_kind == DeoptimizationRequest::kFullDeoptimization); 3281 req->SetMethod(nullptr); 3282 } 3283 3284 { 3285 WriterMutexLock mu(self, *Locks::breakpoint_lock_); 3286 // If there is at least one existing breakpoint on the same method, the new breakpoint 3287 // must have the same deoptimization kind than the existing breakpoint(s). 3288 DeoptimizationRequest::Kind breakpoint_deoptimization_kind; 3289 if (existing_breakpoint != nullptr) { 3290 breakpoint_deoptimization_kind = existing_breakpoint->GetDeoptimizationKind(); 3291 } else { 3292 breakpoint_deoptimization_kind = deoptimization_kind; 3293 } 3294 gBreakpoints.push_back(Breakpoint(m, location->dex_pc, breakpoint_deoptimization_kind)); 3295 VLOG(jdwp) << "Set breakpoint #" << (gBreakpoints.size() - 1) << ": " 3296 << gBreakpoints[gBreakpoints.size() - 1]; 3297 } 3298 } 3299 3300 // Uninstalls a breakpoint at the specified location. Also indicates through the deoptimization 3301 // request if we need to undeoptimize. 3302 void Dbg::UnwatchLocation(const JDWP::JdwpLocation* location, DeoptimizationRequest* req) { 3303 WriterMutexLock mu(Thread::Current(), *Locks::breakpoint_lock_); 3304 mirror::ArtMethod* m = FromMethodId(location->method_id); 3305 DCHECK(m != nullptr) << "No method for method id " << location->method_id; 3306 DeoptimizationRequest::Kind deoptimization_kind = DeoptimizationRequest::kNothing; 3307 for (size_t i = 0, e = gBreakpoints.size(); i < e; ++i) { 3308 if (gBreakpoints[i].DexPc() == location->dex_pc && gBreakpoints[i].Method() == m) { 3309 VLOG(jdwp) << "Removed breakpoint #" << i << ": " << gBreakpoints[i]; 3310 deoptimization_kind = gBreakpoints[i].GetDeoptimizationKind(); 3311 DCHECK_EQ(deoptimization_kind == DeoptimizationRequest::kSelectiveDeoptimization, 3312 Runtime::Current()->GetInstrumentation()->IsDeoptimized(m)); 3313 gBreakpoints.erase(gBreakpoints.begin() + i); 3314 break; 3315 } 3316 } 3317 const Breakpoint* const existing_breakpoint = FindFirstBreakpointForMethod(m); 3318 if (existing_breakpoint == nullptr) { 3319 // There is no more breakpoint on this method: we need to undeoptimize. 3320 if (deoptimization_kind == DeoptimizationRequest::kFullDeoptimization) { 3321 // This method required full deoptimization: we need to undeoptimize everything. 3322 req->SetKind(DeoptimizationRequest::kFullUndeoptimization); 3323 req->SetMethod(nullptr); 3324 } else if (deoptimization_kind == DeoptimizationRequest::kSelectiveDeoptimization) { 3325 // This method required selective deoptimization: we need to undeoptimize only that method. 3326 req->SetKind(DeoptimizationRequest::kSelectiveUndeoptimization); 3327 req->SetMethod(m); 3328 } else { 3329 // This method had no need for deoptimization: do nothing. 3330 CHECK_EQ(deoptimization_kind, DeoptimizationRequest::kNothing); 3331 req->SetKind(DeoptimizationRequest::kNothing); 3332 req->SetMethod(nullptr); 3333 } 3334 } else { 3335 // There is at least one breakpoint for this method: we don't need to undeoptimize. 3336 req->SetKind(DeoptimizationRequest::kNothing); 3337 req->SetMethod(nullptr); 3338 if (kIsDebugBuild) { 3339 SanityCheckExistingBreakpoints(m, deoptimization_kind); 3340 } 3341 } 3342 } 3343 3344 // Scoped utility class to suspend a thread so that we may do tasks such as walk its stack. Doesn't 3345 // cause suspension if the thread is the current thread. 3346 class ScopedThreadSuspension { 3347 public: 3348 ScopedThreadSuspension(Thread* self, JDWP::ObjectId thread_id) 3349 LOCKS_EXCLUDED(Locks::thread_list_lock_) 3350 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) : 3351 thread_(nullptr), 3352 error_(JDWP::ERR_NONE), 3353 self_suspend_(false), 3354 other_suspend_(false) { 3355 ScopedObjectAccessUnchecked soa(self); 3356 { 3357 MutexLock mu(soa.Self(), *Locks::thread_list_lock_); 3358 error_ = DecodeThread(soa, thread_id, thread_); 3359 } 3360 if (error_ == JDWP::ERR_NONE) { 3361 if (thread_ == soa.Self()) { 3362 self_suspend_ = true; 3363 } else { 3364 soa.Self()->TransitionFromRunnableToSuspended(kWaitingForDebuggerSuspension); 3365 jobject thread_peer = Dbg::GetObjectRegistry()->GetJObject(thread_id); 3366 bool timed_out; 3367 Thread* suspended_thread; 3368 { 3369 // Take suspend thread lock to avoid races with threads trying to suspend this one. 3370 MutexLock mu(soa.Self(), *Locks::thread_list_suspend_thread_lock_); 3371 ThreadList* thread_list = Runtime::Current()->GetThreadList(); 3372 suspended_thread = thread_list->SuspendThreadByPeer(thread_peer, true, true, &timed_out); 3373 } 3374 CHECK_EQ(soa.Self()->TransitionFromSuspendedToRunnable(), kWaitingForDebuggerSuspension); 3375 if (suspended_thread == nullptr) { 3376 // Thread terminated from under us while suspending. 3377 error_ = JDWP::ERR_INVALID_THREAD; 3378 } else { 3379 CHECK_EQ(suspended_thread, thread_); 3380 other_suspend_ = true; 3381 } 3382 } 3383 } 3384 } 3385 3386 Thread* GetThread() const { 3387 return thread_; 3388 } 3389 3390 JDWP::JdwpError GetError() const { 3391 return error_; 3392 } 3393 3394 ~ScopedThreadSuspension() { 3395 if (other_suspend_) { 3396 Runtime::Current()->GetThreadList()->Resume(thread_, true); 3397 } 3398 } 3399 3400 private: 3401 Thread* thread_; 3402 JDWP::JdwpError error_; 3403 bool self_suspend_; 3404 bool other_suspend_; 3405 }; 3406 3407 JDWP::JdwpError Dbg::ConfigureStep(JDWP::ObjectId thread_id, JDWP::JdwpStepSize step_size, 3408 JDWP::JdwpStepDepth step_depth) { 3409 Thread* self = Thread::Current(); 3410 ScopedThreadSuspension sts(self, thread_id); 3411 if (sts.GetError() != JDWP::ERR_NONE) { 3412 return sts.GetError(); 3413 } 3414 3415 // 3416 // Work out what Method* we're in, the current line number, and how deep the stack currently 3417 // is for step-out. 3418 // 3419 3420 struct SingleStepStackVisitor : public StackVisitor { 3421 explicit SingleStepStackVisitor(Thread* thread, SingleStepControl* single_step_control, 3422 int32_t* line_number) 3423 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) 3424 : StackVisitor(thread, NULL), single_step_control_(single_step_control), 3425 line_number_(line_number) { 3426 DCHECK_EQ(single_step_control_, thread->GetSingleStepControl()); 3427 single_step_control_->method = NULL; 3428 single_step_control_->stack_depth = 0; 3429 } 3430 3431 // TODO: Enable annotalysis. We know lock is held in constructor, but abstraction confuses 3432 // annotalysis. 3433 bool VisitFrame() NO_THREAD_SAFETY_ANALYSIS { 3434 mirror::ArtMethod* m = GetMethod(); 3435 if (!m->IsRuntimeMethod()) { 3436 ++single_step_control_->stack_depth; 3437 if (single_step_control_->method == NULL) { 3438 mirror::DexCache* dex_cache = m->GetDeclaringClass()->GetDexCache(); 3439 single_step_control_->method = m; 3440 *line_number_ = -1; 3441 if (dex_cache != NULL) { 3442 const DexFile& dex_file = *dex_cache->GetDexFile(); 3443 *line_number_ = dex_file.GetLineNumFromPC(m, GetDexPc()); 3444 } 3445 } 3446 } 3447 return true; 3448 } 3449 3450 SingleStepControl* const single_step_control_; 3451 int32_t* const line_number_; 3452 }; 3453 3454 Thread* const thread = sts.GetThread(); 3455 SingleStepControl* const single_step_control = thread->GetSingleStepControl(); 3456 DCHECK(single_step_control != nullptr); 3457 int32_t line_number = -1; 3458 SingleStepStackVisitor visitor(thread, single_step_control, &line_number); 3459 visitor.WalkStack(); 3460 3461 // 3462 // Find the dex_pc values that correspond to the current line, for line-based single-stepping. 3463 // 3464 3465 struct DebugCallbackContext { 3466 explicit DebugCallbackContext(SingleStepControl* single_step_control, int32_t line_number, 3467 const DexFile::CodeItem* code_item) 3468 : single_step_control_(single_step_control), line_number_(line_number), code_item_(code_item), 3469 last_pc_valid(false), last_pc(0) { 3470 } 3471 3472 static bool Callback(void* raw_context, uint32_t address, uint32_t line_number) { 3473 DebugCallbackContext* context = reinterpret_cast<DebugCallbackContext*>(raw_context); 3474 if (static_cast<int32_t>(line_number) == context->line_number_) { 3475 if (!context->last_pc_valid) { 3476 // Everything from this address until the next line change is ours. 3477 context->last_pc = address; 3478 context->last_pc_valid = true; 3479 } 3480 // Otherwise, if we're already in a valid range for this line, 3481 // just keep going (shouldn't really happen)... 3482 } else if (context->last_pc_valid) { // and the line number is new 3483 // Add everything from the last entry up until here to the set 3484 for (uint32_t dex_pc = context->last_pc; dex_pc < address; ++dex_pc) { 3485 context->single_step_control_->dex_pcs.insert(dex_pc); 3486 } 3487 context->last_pc_valid = false; 3488 } 3489 return false; // There may be multiple entries for any given line. 3490 } 3491 3492 ~DebugCallbackContext() { 3493 // If the line number was the last in the position table... 3494 if (last_pc_valid) { 3495 size_t end = code_item_->insns_size_in_code_units_; 3496 for (uint32_t dex_pc = last_pc; dex_pc < end; ++dex_pc) { 3497 single_step_control_->dex_pcs.insert(dex_pc); 3498 } 3499 } 3500 } 3501 3502 SingleStepControl* const single_step_control_; 3503 const int32_t line_number_; 3504 const DexFile::CodeItem* const code_item_; 3505 bool last_pc_valid; 3506 uint32_t last_pc; 3507 }; 3508 single_step_control->dex_pcs.clear(); 3509 mirror::ArtMethod* m = single_step_control->method; 3510 if (!m->IsNative()) { 3511 const DexFile::CodeItem* const code_item = m->GetCodeItem(); 3512 DebugCallbackContext context(single_step_control, line_number, code_item); 3513 m->GetDexFile()->DecodeDebugInfo(code_item, m->IsStatic(), m->GetDexMethodIndex(), 3514 DebugCallbackContext::Callback, NULL, &context); 3515 } 3516 3517 // 3518 // Everything else... 3519 // 3520 3521 single_step_control->step_size = step_size; 3522 single_step_control->step_depth = step_depth; 3523 single_step_control->is_active = true; 3524 3525 if (VLOG_IS_ON(jdwp)) { 3526 VLOG(jdwp) << "Single-step thread: " << *thread; 3527 VLOG(jdwp) << "Single-step step size: " << single_step_control->step_size; 3528 VLOG(jdwp) << "Single-step step depth: " << single_step_control->step_depth; 3529 VLOG(jdwp) << "Single-step current method: " << PrettyMethod(single_step_control->method); 3530 VLOG(jdwp) << "Single-step current line: " << line_number; 3531 VLOG(jdwp) << "Single-step current stack depth: " << single_step_control->stack_depth; 3532 VLOG(jdwp) << "Single-step dex_pc values:"; 3533 for (uint32_t dex_pc : single_step_control->dex_pcs) { 3534 VLOG(jdwp) << StringPrintf(" %#x", dex_pc); 3535 } 3536 } 3537 3538 return JDWP::ERR_NONE; 3539 } 3540 3541 void Dbg::UnconfigureStep(JDWP::ObjectId thread_id) { 3542 ScopedObjectAccessUnchecked soa(Thread::Current()); 3543 MutexLock mu(soa.Self(), *Locks::thread_list_lock_); 3544 Thread* thread; 3545 JDWP::JdwpError error = DecodeThread(soa, thread_id, thread); 3546 if (error == JDWP::ERR_NONE) { 3547 SingleStepControl* single_step_control = thread->GetSingleStepControl(); 3548 DCHECK(single_step_control != nullptr); 3549 single_step_control->Clear(); 3550 } 3551 } 3552 3553 static char JdwpTagToShortyChar(JDWP::JdwpTag tag) { 3554 switch (tag) { 3555 default: 3556 LOG(FATAL) << "unknown JDWP tag: " << PrintableChar(tag); 3557 3558 // Primitives. 3559 case JDWP::JT_BYTE: return 'B'; 3560 case JDWP::JT_CHAR: return 'C'; 3561 case JDWP::JT_FLOAT: return 'F'; 3562 case JDWP::JT_DOUBLE: return 'D'; 3563 case JDWP::JT_INT: return 'I'; 3564 case JDWP::JT_LONG: return 'J'; 3565 case JDWP::JT_SHORT: return 'S'; 3566 case JDWP::JT_VOID: return 'V'; 3567 case JDWP::JT_BOOLEAN: return 'Z'; 3568 3569 // Reference types. 3570 case JDWP::JT_ARRAY: 3571 case JDWP::JT_OBJECT: 3572 case JDWP::JT_STRING: 3573 case JDWP::JT_THREAD: 3574 case JDWP::JT_THREAD_GROUP: 3575 case JDWP::JT_CLASS_LOADER: 3576 case JDWP::JT_CLASS_OBJECT: 3577 return 'L'; 3578 } 3579 } 3580 3581 JDWP::JdwpError Dbg::InvokeMethod(JDWP::ObjectId thread_id, JDWP::ObjectId object_id, 3582 JDWP::RefTypeId class_id, JDWP::MethodId method_id, 3583 uint32_t arg_count, uint64_t* arg_values, 3584 JDWP::JdwpTag* arg_types, uint32_t options, 3585 JDWP::JdwpTag* pResultTag, uint64_t* pResultValue, 3586 JDWP::ObjectId* pExceptionId) { 3587 ThreadList* thread_list = Runtime::Current()->GetThreadList(); 3588 3589 Thread* targetThread = NULL; 3590 DebugInvokeReq* req = NULL; 3591 Thread* self = Thread::Current(); 3592 { 3593 ScopedObjectAccessUnchecked soa(self); 3594 MutexLock mu(soa.Self(), *Locks::thread_list_lock_); 3595 JDWP::JdwpError error = DecodeThread(soa, thread_id, targetThread); 3596 if (error != JDWP::ERR_NONE) { 3597 LOG(ERROR) << "InvokeMethod request for invalid thread id " << thread_id; 3598 return error; 3599 } 3600 req = targetThread->GetInvokeReq(); 3601 if (!req->ready) { 3602 LOG(ERROR) << "InvokeMethod request for thread not stopped by event: " << *targetThread; 3603 return JDWP::ERR_INVALID_THREAD; 3604 } 3605 3606 /* 3607 * We currently have a bug where we don't successfully resume the 3608 * target thread if the suspend count is too deep. We're expected to 3609 * require one "resume" for each "suspend", but when asked to execute 3610 * a method we have to resume fully and then re-suspend it back to the 3611 * same level. (The easiest way to cause this is to type "suspend" 3612 * multiple times in jdb.) 3613 * 3614 * It's unclear what this means when the event specifies "resume all" 3615 * and some threads are suspended more deeply than others. This is 3616 * a rare problem, so for now we just prevent it from hanging forever 3617 * by rejecting the method invocation request. Without this, we will 3618 * be stuck waiting on a suspended thread. 3619 */ 3620 int suspend_count; 3621 { 3622 MutexLock mu2(soa.Self(), *Locks::thread_suspend_count_lock_); 3623 suspend_count = targetThread->GetSuspendCount(); 3624 } 3625 if (suspend_count > 1) { 3626 LOG(ERROR) << *targetThread << " suspend count too deep for method invocation: " << suspend_count; 3627 return JDWP::ERR_THREAD_SUSPENDED; // Probably not expected here. 3628 } 3629 3630 JDWP::JdwpError status; 3631 mirror::Object* receiver = gRegistry->Get<mirror::Object*>(object_id); 3632 if (receiver == ObjectRegistry::kInvalidObject) { 3633 return JDWP::ERR_INVALID_OBJECT; 3634 } 3635 3636 mirror::Object* thread = gRegistry->Get<mirror::Object*>(thread_id); 3637 if (thread == ObjectRegistry::kInvalidObject) { 3638 return JDWP::ERR_INVALID_OBJECT; 3639 } 3640 // TODO: check that 'thread' is actually a java.lang.Thread! 3641 3642 mirror::Class* c = DecodeClass(class_id, status); 3643 if (c == NULL) { 3644 return status; 3645 } 3646 3647 mirror::ArtMethod* m = FromMethodId(method_id); 3648 if (m->IsStatic() != (receiver == NULL)) { 3649 return JDWP::ERR_INVALID_METHODID; 3650 } 3651 if (m->IsStatic()) { 3652 if (m->GetDeclaringClass() != c) { 3653 return JDWP::ERR_INVALID_METHODID; 3654 } 3655 } else { 3656 if (!m->GetDeclaringClass()->IsAssignableFrom(c)) { 3657 return JDWP::ERR_INVALID_METHODID; 3658 } 3659 } 3660 3661 // Check the argument list matches the method. 3662 uint32_t shorty_len = 0; 3663 const char* shorty = m->GetShorty(&shorty_len); 3664 if (shorty_len - 1 != arg_count) { 3665 return JDWP::ERR_ILLEGAL_ARGUMENT; 3666 } 3667 3668 { 3669 StackHandleScope<3> hs(soa.Self()); 3670 MethodHelper mh(hs.NewHandle(m)); 3671 HandleWrapper<mirror::Object> h_obj(hs.NewHandleWrapper(&receiver)); 3672 HandleWrapper<mirror::Class> h_klass(hs.NewHandleWrapper(&c)); 3673 const DexFile::TypeList* types = m->GetParameterTypeList(); 3674 for (size_t i = 0; i < arg_count; ++i) { 3675 if (shorty[i + 1] != JdwpTagToShortyChar(arg_types[i])) { 3676 return JDWP::ERR_ILLEGAL_ARGUMENT; 3677 } 3678 3679 if (shorty[i + 1] == 'L') { 3680 // Did we really get an argument of an appropriate reference type? 3681 mirror::Class* parameter_type = mh.GetClassFromTypeIdx(types->GetTypeItem(i).type_idx_); 3682 mirror::Object* argument = gRegistry->Get<mirror::Object*>(arg_values[i]); 3683 if (argument == ObjectRegistry::kInvalidObject) { 3684 return JDWP::ERR_INVALID_OBJECT; 3685 } 3686 if (argument != NULL && !argument->InstanceOf(parameter_type)) { 3687 return JDWP::ERR_ILLEGAL_ARGUMENT; 3688 } 3689 3690 // Turn the on-the-wire ObjectId into a jobject. 3691 jvalue& v = reinterpret_cast<jvalue&>(arg_values[i]); 3692 v.l = gRegistry->GetJObject(arg_values[i]); 3693 } 3694 } 3695 // Update in case it moved. 3696 m = mh.GetMethod(); 3697 } 3698 3699 req->receiver = receiver; 3700 req->thread = thread; 3701 req->klass = c; 3702 req->method = m; 3703 req->arg_count = arg_count; 3704 req->arg_values = arg_values; 3705 req->options = options; 3706 req->invoke_needed = true; 3707 } 3708 3709 // The fact that we've released the thread list lock is a bit risky --- if the thread goes 3710 // away we're sitting high and dry -- but we must release this before the ResumeAllThreads 3711 // call, and it's unwise to hold it during WaitForSuspend. 3712 3713 { 3714 /* 3715 * We change our (JDWP thread) status, which should be THREAD_RUNNING, 3716 * so we can suspend for a GC if the invoke request causes us to 3717 * run out of memory. It's also a good idea to change it before locking 3718 * the invokeReq mutex, although that should never be held for long. 3719 */ 3720 self->TransitionFromRunnableToSuspended(kWaitingForDebuggerSend); 3721 3722 VLOG(jdwp) << " Transferring control to event thread"; 3723 { 3724 MutexLock mu(self, req->lock); 3725 3726 if ((options & JDWP::INVOKE_SINGLE_THREADED) == 0) { 3727 VLOG(jdwp) << " Resuming all threads"; 3728 thread_list->UndoDebuggerSuspensions(); 3729 } else { 3730 VLOG(jdwp) << " Resuming event thread only"; 3731 thread_list->Resume(targetThread, true); 3732 } 3733 3734 // Wait for the request to finish executing. 3735 while (req->invoke_needed) { 3736 req->cond.Wait(self); 3737 } 3738 } 3739 VLOG(jdwp) << " Control has returned from event thread"; 3740 3741 /* wait for thread to re-suspend itself */ 3742 SuspendThread(thread_id, false /* request_suspension */); 3743 self->TransitionFromSuspendedToRunnable(); 3744 } 3745 3746 /* 3747 * Suspend the threads. We waited for the target thread to suspend 3748 * itself, so all we need to do is suspend the others. 3749 * 3750 * The suspendAllThreads() call will double-suspend the event thread, 3751 * so we want to resume the target thread once to keep the books straight. 3752 */ 3753 if ((options & JDWP::INVOKE_SINGLE_THREADED) == 0) { 3754 self->TransitionFromRunnableToSuspended(kWaitingForDebuggerSuspension); 3755 VLOG(jdwp) << " Suspending all threads"; 3756 thread_list->SuspendAllForDebugger(); 3757 self->TransitionFromSuspendedToRunnable(); 3758 VLOG(jdwp) << " Resuming event thread to balance the count"; 3759 thread_list->Resume(targetThread, true); 3760 } 3761 3762 // Copy the result. 3763 *pResultTag = req->result_tag; 3764 if (IsPrimitiveTag(req->result_tag)) { 3765 *pResultValue = req->result_value.GetJ(); 3766 } else { 3767 *pResultValue = gRegistry->Add(req->result_value.GetL()); 3768 } 3769 *pExceptionId = req->exception; 3770 return req->error; 3771 } 3772 3773 void Dbg::ExecuteMethod(DebugInvokeReq* pReq) { 3774 ScopedObjectAccess soa(Thread::Current()); 3775 3776 // We can be called while an exception is pending. We need 3777 // to preserve that across the method invocation. 3778 StackHandleScope<4> hs(soa.Self()); 3779 auto old_throw_this_object = hs.NewHandle<mirror::Object>(nullptr); 3780 auto old_throw_method = hs.NewHandle<mirror::ArtMethod>(nullptr); 3781 auto old_exception = hs.NewHandle<mirror::Throwable>(nullptr); 3782 uint32_t old_throw_dex_pc; 3783 bool old_exception_report_flag; 3784 { 3785 ThrowLocation old_throw_location; 3786 mirror::Throwable* old_exception_obj = soa.Self()->GetException(&old_throw_location); 3787 old_throw_this_object.Assign(old_throw_location.GetThis()); 3788 old_throw_method.Assign(old_throw_location.GetMethod()); 3789 old_exception.Assign(old_exception_obj); 3790 old_throw_dex_pc = old_throw_location.GetDexPc(); 3791 old_exception_report_flag = soa.Self()->IsExceptionReportedToInstrumentation(); 3792 soa.Self()->ClearException(); 3793 } 3794 3795 // Translate the method through the vtable, unless the debugger wants to suppress it. 3796 Handle<mirror::ArtMethod> m(hs.NewHandle(pReq->method)); 3797 if ((pReq->options & JDWP::INVOKE_NONVIRTUAL) == 0 && pReq->receiver != NULL) { 3798 mirror::ArtMethod* actual_method = pReq->klass->FindVirtualMethodForVirtualOrInterface(m.Get()); 3799 if (actual_method != m.Get()) { 3800 VLOG(jdwp) << "ExecuteMethod translated " << PrettyMethod(m.Get()) << " to " << PrettyMethod(actual_method); 3801 m.Assign(actual_method); 3802 } 3803 } 3804 VLOG(jdwp) << "ExecuteMethod " << PrettyMethod(m.Get()) 3805 << " receiver=" << pReq->receiver 3806 << " arg_count=" << pReq->arg_count; 3807 CHECK(m.Get() != nullptr); 3808 3809 CHECK_EQ(sizeof(jvalue), sizeof(uint64_t)); 3810 3811 pReq->result_value = InvokeWithJValues(soa, pReq->receiver, soa.EncodeMethod(m.Get()), 3812 reinterpret_cast<jvalue*>(pReq->arg_values)); 3813 3814 mirror::Throwable* exception = soa.Self()->GetException(NULL); 3815 soa.Self()->ClearException(); 3816 pReq->exception = gRegistry->Add(exception); 3817 pReq->result_tag = BasicTagFromDescriptor(m.Get()->GetShorty()); 3818 if (pReq->exception != 0) { 3819 VLOG(jdwp) << " JDWP invocation returning with exception=" << exception 3820 << " " << exception->Dump(); 3821 pReq->result_value.SetJ(0); 3822 } else if (pReq->result_tag == JDWP::JT_OBJECT) { 3823 /* if no exception thrown, examine object result more closely */ 3824 JDWP::JdwpTag new_tag = TagFromObject(soa, pReq->result_value.GetL()); 3825 if (new_tag != pReq->result_tag) { 3826 VLOG(jdwp) << " JDWP promoted result from " << pReq->result_tag << " to " << new_tag; 3827 pReq->result_tag = new_tag; 3828 } 3829 3830 /* 3831 * Register the object. We don't actually need an ObjectId yet, 3832 * but we do need to be sure that the GC won't move or discard the 3833 * object when we switch out of RUNNING. The ObjectId conversion 3834 * will add the object to the "do not touch" list. 3835 * 3836 * We can't use the "tracked allocation" mechanism here because 3837 * the object is going to be handed off to a different thread. 3838 */ 3839 gRegistry->Add(pReq->result_value.GetL()); 3840 } 3841 3842 if (old_exception.Get() != NULL) { 3843 ThrowLocation gc_safe_throw_location(old_throw_this_object.Get(), old_throw_method.Get(), 3844 old_throw_dex_pc); 3845 soa.Self()->SetException(gc_safe_throw_location, old_exception.Get()); 3846 soa.Self()->SetExceptionReportedToInstrumentation(old_exception_report_flag); 3847 } 3848 } 3849 3850 /* 3851 * "request" contains a full JDWP packet, possibly with multiple chunks. We 3852 * need to process each, accumulate the replies, and ship the whole thing 3853 * back. 3854 * 3855 * Returns "true" if we have a reply. The reply buffer is newly allocated, 3856 * and includes the chunk type/length, followed by the data. 3857 * 3858 * OLD-TODO: we currently assume that the request and reply include a single 3859 * chunk. If this becomes inconvenient we will need to adapt. 3860 */ 3861 bool Dbg::DdmHandlePacket(JDWP::Request& request, uint8_t** pReplyBuf, int* pReplyLen) { 3862 Thread* self = Thread::Current(); 3863 JNIEnv* env = self->GetJniEnv(); 3864 3865 uint32_t type = request.ReadUnsigned32("type"); 3866 uint32_t length = request.ReadUnsigned32("length"); 3867 3868 // Create a byte[] corresponding to 'request'. 3869 size_t request_length = request.size(); 3870 ScopedLocalRef<jbyteArray> dataArray(env, env->NewByteArray(request_length)); 3871 if (dataArray.get() == NULL) { 3872 LOG(WARNING) << "byte[] allocation failed: " << request_length; 3873 env->ExceptionClear(); 3874 return false; 3875 } 3876 env->SetByteArrayRegion(dataArray.get(), 0, request_length, reinterpret_cast<const jbyte*>(request.data())); 3877 request.Skip(request_length); 3878 3879 // Run through and find all chunks. [Currently just find the first.] 3880 ScopedByteArrayRO contents(env, dataArray.get()); 3881 if (length != request_length) { 3882 LOG(WARNING) << StringPrintf("bad chunk found (len=%u pktLen=%zd)", length, request_length); 3883 return false; 3884 } 3885 3886 // Call "private static Chunk dispatch(int type, byte[] data, int offset, int length)". 3887 ScopedLocalRef<jobject> chunk(env, env->CallStaticObjectMethod(WellKnownClasses::org_apache_harmony_dalvik_ddmc_DdmServer, 3888 WellKnownClasses::org_apache_harmony_dalvik_ddmc_DdmServer_dispatch, 3889 type, dataArray.get(), 0, length)); 3890 if (env->ExceptionCheck()) { 3891 LOG(INFO) << StringPrintf("Exception thrown by dispatcher for 0x%08x", type); 3892 env->ExceptionDescribe(); 3893 env->ExceptionClear(); 3894 return false; 3895 } 3896 3897 if (chunk.get() == NULL) { 3898 return false; 3899 } 3900 3901 /* 3902 * Pull the pieces out of the chunk. We copy the results into a 3903 * newly-allocated buffer that the caller can free. We don't want to 3904 * continue using the Chunk object because nothing has a reference to it. 3905 * 3906 * We could avoid this by returning type/data/offset/length and having 3907 * the caller be aware of the object lifetime issues, but that 3908 * integrates the JDWP code more tightly into the rest of the runtime, and doesn't work 3909 * if we have responses for multiple chunks. 3910 * 3911 * So we're pretty much stuck with copying data around multiple times. 3912 */ 3913 ScopedLocalRef<jbyteArray> replyData(env, reinterpret_cast<jbyteArray>(env->GetObjectField(chunk.get(), WellKnownClasses::org_apache_harmony_dalvik_ddmc_Chunk_data))); 3914 jint offset = env->GetIntField(chunk.get(), WellKnownClasses::org_apache_harmony_dalvik_ddmc_Chunk_offset); 3915 length = env->GetIntField(chunk.get(), WellKnownClasses::org_apache_harmony_dalvik_ddmc_Chunk_length); 3916 type = env->GetIntField(chunk.get(), WellKnownClasses::org_apache_harmony_dalvik_ddmc_Chunk_type); 3917 3918 VLOG(jdwp) << StringPrintf("DDM reply: type=0x%08x data=%p offset=%d length=%d", type, replyData.get(), offset, length); 3919 if (length == 0 || replyData.get() == NULL) { 3920 return false; 3921 } 3922 3923 const int kChunkHdrLen = 8; 3924 uint8_t* reply = new uint8_t[length + kChunkHdrLen]; 3925 if (reply == NULL) { 3926 LOG(WARNING) << "malloc failed: " << (length + kChunkHdrLen); 3927 return false; 3928 } 3929 JDWP::Set4BE(reply + 0, type); 3930 JDWP::Set4BE(reply + 4, length); 3931 env->GetByteArrayRegion(replyData.get(), offset, length, reinterpret_cast<jbyte*>(reply + kChunkHdrLen)); 3932 3933 *pReplyBuf = reply; 3934 *pReplyLen = length + kChunkHdrLen; 3935 3936 VLOG(jdwp) << StringPrintf("dvmHandleDdm returning type=%.4s %p len=%d", reinterpret_cast<char*>(reply), reply, length); 3937 return true; 3938 } 3939 3940 void Dbg::DdmBroadcast(bool connect) { 3941 VLOG(jdwp) << "Broadcasting DDM " << (connect ? "connect" : "disconnect") << "..."; 3942 3943 Thread* self = Thread::Current(); 3944 if (self->GetState() != kRunnable) { 3945 LOG(ERROR) << "DDM broadcast in thread state " << self->GetState(); 3946 /* try anyway? */ 3947 } 3948 3949 JNIEnv* env = self->GetJniEnv(); 3950 jint event = connect ? 1 /*DdmServer.CONNECTED*/ : 2 /*DdmServer.DISCONNECTED*/; 3951 env->CallStaticVoidMethod(WellKnownClasses::org_apache_harmony_dalvik_ddmc_DdmServer, 3952 WellKnownClasses::org_apache_harmony_dalvik_ddmc_DdmServer_broadcast, 3953 event); 3954 if (env->ExceptionCheck()) { 3955 LOG(ERROR) << "DdmServer.broadcast " << event << " failed"; 3956 env->ExceptionDescribe(); 3957 env->ExceptionClear(); 3958 } 3959 } 3960 3961 void Dbg::DdmConnected() { 3962 Dbg::DdmBroadcast(true); 3963 } 3964 3965 void Dbg::DdmDisconnected() { 3966 Dbg::DdmBroadcast(false); 3967 gDdmThreadNotification = false; 3968 } 3969 3970 /* 3971 * Send a notification when a thread starts, stops, or changes its name. 3972 * 3973 * Because we broadcast the full set of threads when the notifications are 3974 * first enabled, it's possible for "thread" to be actively executing. 3975 */ 3976 void Dbg::DdmSendThreadNotification(Thread* t, uint32_t type) { 3977 if (!gDdmThreadNotification) { 3978 return; 3979 } 3980 3981 if (type == CHUNK_TYPE("THDE")) { 3982 uint8_t buf[4]; 3983 JDWP::Set4BE(&buf[0], t->GetThreadId()); 3984 Dbg::DdmSendChunk(CHUNK_TYPE("THDE"), 4, buf); 3985 } else { 3986 CHECK(type == CHUNK_TYPE("THCR") || type == CHUNK_TYPE("THNM")) << type; 3987 ScopedObjectAccessUnchecked soa(Thread::Current()); 3988 StackHandleScope<1> hs(soa.Self()); 3989 Handle<mirror::String> name(hs.NewHandle(t->GetThreadName(soa))); 3990 size_t char_count = (name.Get() != NULL) ? name->GetLength() : 0; 3991 const jchar* chars = (name.Get() != NULL) ? name->GetCharArray()->GetData() : NULL; 3992 3993 std::vector<uint8_t> bytes; 3994 JDWP::Append4BE(bytes, t->GetThreadId()); 3995 JDWP::AppendUtf16BE(bytes, chars, char_count); 3996 CHECK_EQ(bytes.size(), char_count*2 + sizeof(uint32_t)*2); 3997 Dbg::DdmSendChunk(type, bytes); 3998 } 3999 } 4000 4001 void Dbg::DdmSetThreadNotification(bool enable) { 4002 // Enable/disable thread notifications. 4003 gDdmThreadNotification = enable; 4004 if (enable) { 4005 // Suspend the VM then post thread start notifications for all threads. Threads attaching will 4006 // see a suspension in progress and block until that ends. They then post their own start 4007 // notification. 4008 SuspendVM(); 4009 std::list<Thread*> threads; 4010 Thread* self = Thread::Current(); 4011 { 4012 MutexLock mu(self, *Locks::thread_list_lock_); 4013 threads = Runtime::Current()->GetThreadList()->GetList(); 4014 } 4015 { 4016 ScopedObjectAccess soa(self); 4017 for (Thread* thread : threads) { 4018 Dbg::DdmSendThreadNotification(thread, CHUNK_TYPE("THCR")); 4019 } 4020 } 4021 ResumeVM(); 4022 } 4023 } 4024 4025 void Dbg::PostThreadStartOrStop(Thread* t, uint32_t type) { 4026 if (IsDebuggerActive()) { 4027 gJdwpState->PostThreadChange(t, type == CHUNK_TYPE("THCR")); 4028 } 4029 Dbg::DdmSendThreadNotification(t, type); 4030 } 4031 4032 void Dbg::PostThreadStart(Thread* t) { 4033 Dbg::PostThreadStartOrStop(t, CHUNK_TYPE("THCR")); 4034 } 4035 4036 void Dbg::PostThreadDeath(Thread* t) { 4037 Dbg::PostThreadStartOrStop(t, CHUNK_TYPE("THDE")); 4038 } 4039 4040 void Dbg::DdmSendChunk(uint32_t type, size_t byte_count, const uint8_t* buf) { 4041 CHECK(buf != NULL); 4042 iovec vec[1]; 4043 vec[0].iov_base = reinterpret_cast<void*>(const_cast<uint8_t*>(buf)); 4044 vec[0].iov_len = byte_count; 4045 Dbg::DdmSendChunkV(type, vec, 1); 4046 } 4047 4048 void Dbg::DdmSendChunk(uint32_t type, const std::vector<uint8_t>& bytes) { 4049 DdmSendChunk(type, bytes.size(), &bytes[0]); 4050 } 4051 4052 void Dbg::DdmSendChunkV(uint32_t type, const iovec* iov, int iov_count) { 4053 if (gJdwpState == NULL) { 4054 VLOG(jdwp) << "Debugger thread not active, ignoring DDM send: " << type; 4055 } else { 4056 gJdwpState->DdmSendChunkV(type, iov, iov_count); 4057 } 4058 } 4059 4060 int Dbg::DdmHandleHpifChunk(HpifWhen when) { 4061 if (when == HPIF_WHEN_NOW) { 4062 DdmSendHeapInfo(when); 4063 return true; 4064 } 4065 4066 if (when != HPIF_WHEN_NEVER && when != HPIF_WHEN_NEXT_GC && when != HPIF_WHEN_EVERY_GC) { 4067 LOG(ERROR) << "invalid HpifWhen value: " << static_cast<int>(when); 4068 return false; 4069 } 4070 4071 gDdmHpifWhen = when; 4072 return true; 4073 } 4074 4075 bool Dbg::DdmHandleHpsgNhsgChunk(Dbg::HpsgWhen when, Dbg::HpsgWhat what, bool native) { 4076 if (when != HPSG_WHEN_NEVER && when != HPSG_WHEN_EVERY_GC) { 4077 LOG(ERROR) << "invalid HpsgWhen value: " << static_cast<int>(when); 4078 return false; 4079 } 4080 4081 if (what != HPSG_WHAT_MERGED_OBJECTS && what != HPSG_WHAT_DISTINCT_OBJECTS) { 4082 LOG(ERROR) << "invalid HpsgWhat value: " << static_cast<int>(what); 4083 return false; 4084 } 4085 4086 if (native) { 4087 gDdmNhsgWhen = when; 4088 gDdmNhsgWhat = what; 4089 } else { 4090 gDdmHpsgWhen = when; 4091 gDdmHpsgWhat = what; 4092 } 4093 return true; 4094 } 4095 4096 void Dbg::DdmSendHeapInfo(HpifWhen reason) { 4097 // If there's a one-shot 'when', reset it. 4098 if (reason == gDdmHpifWhen) { 4099 if (gDdmHpifWhen == HPIF_WHEN_NEXT_GC) { 4100 gDdmHpifWhen = HPIF_WHEN_NEVER; 4101 } 4102 } 4103 4104 /* 4105 * Chunk HPIF (client --> server) 4106 * 4107 * Heap Info. General information about the heap, 4108 * suitable for a summary display. 4109 * 4110 * [u4]: number of heaps 4111 * 4112 * For each heap: 4113 * [u4]: heap ID 4114 * [u8]: timestamp in ms since Unix epoch 4115 * [u1]: capture reason (same as 'when' value from server) 4116 * [u4]: max heap size in bytes (-Xmx) 4117 * [u4]: current heap size in bytes 4118 * [u4]: current number of bytes allocated 4119 * [u4]: current number of objects allocated 4120 */ 4121 uint8_t heap_count = 1; 4122 gc::Heap* heap = Runtime::Current()->GetHeap(); 4123 std::vector<uint8_t> bytes; 4124 JDWP::Append4BE(bytes, heap_count); 4125 JDWP::Append4BE(bytes, 1); // Heap id (bogus; we only have one heap). 4126 JDWP::Append8BE(bytes, MilliTime()); 4127 JDWP::Append1BE(bytes, reason); 4128 JDWP::Append4BE(bytes, heap->GetMaxMemory()); // Max allowed heap size in bytes. 4129 JDWP::Append4BE(bytes, heap->GetTotalMemory()); // Current heap size in bytes. 4130 JDWP::Append4BE(bytes, heap->GetBytesAllocated()); 4131 JDWP::Append4BE(bytes, heap->GetObjectsAllocated()); 4132 CHECK_EQ(bytes.size(), 4U + (heap_count * (4 + 8 + 1 + 4 + 4 + 4 + 4))); 4133 Dbg::DdmSendChunk(CHUNK_TYPE("HPIF"), bytes); 4134 } 4135 4136 enum HpsgSolidity { 4137 SOLIDITY_FREE = 0, 4138 SOLIDITY_HARD = 1, 4139 SOLIDITY_SOFT = 2, 4140 SOLIDITY_WEAK = 3, 4141 SOLIDITY_PHANTOM = 4, 4142 SOLIDITY_FINALIZABLE = 5, 4143 SOLIDITY_SWEEP = 6, 4144 }; 4145 4146 enum HpsgKind { 4147 KIND_OBJECT = 0, 4148 KIND_CLASS_OBJECT = 1, 4149 KIND_ARRAY_1 = 2, 4150 KIND_ARRAY_2 = 3, 4151 KIND_ARRAY_4 = 4, 4152 KIND_ARRAY_8 = 5, 4153 KIND_UNKNOWN = 6, 4154 KIND_NATIVE = 7, 4155 }; 4156 4157 #define HPSG_PARTIAL (1<<7) 4158 #define HPSG_STATE(solidity, kind) ((uint8_t)((((kind) & 0x7) << 3) | ((solidity) & 0x7))) 4159 4160 class HeapChunkContext { 4161 public: 4162 // Maximum chunk size. Obtain this from the formula: 4163 // (((maximum_heap_size / ALLOCATION_UNIT_SIZE) + 255) / 256) * 2 4164 HeapChunkContext(bool merge, bool native) 4165 : buf_(16384 - 16), 4166 type_(0), 4167 merge_(merge), 4168 chunk_overhead_(0) { 4169 Reset(); 4170 if (native) { 4171 type_ = CHUNK_TYPE("NHSG"); 4172 } else { 4173 type_ = merge ? CHUNK_TYPE("HPSG") : CHUNK_TYPE("HPSO"); 4174 } 4175 } 4176 4177 ~HeapChunkContext() { 4178 if (p_ > &buf_[0]) { 4179 Flush(); 4180 } 4181 } 4182 4183 void SetChunkOverhead(size_t chunk_overhead) { 4184 chunk_overhead_ = chunk_overhead; 4185 } 4186 4187 void ResetStartOfNextChunk() { 4188 startOfNextMemoryChunk_ = nullptr; 4189 } 4190 4191 void EnsureHeader(const void* chunk_ptr) { 4192 if (!needHeader_) { 4193 return; 4194 } 4195 4196 // Start a new HPSx chunk. 4197 JDWP::Write4BE(&p_, 1); // Heap id (bogus; we only have one heap). 4198 JDWP::Write1BE(&p_, 8); // Size of allocation unit, in bytes. 4199 4200 JDWP::Write4BE(&p_, reinterpret_cast<uintptr_t>(chunk_ptr)); // virtual address of segment start. 4201 JDWP::Write4BE(&p_, 0); // offset of this piece (relative to the virtual address). 4202 // [u4]: length of piece, in allocation units 4203 // We won't know this until we're done, so save the offset and stuff in a dummy value. 4204 pieceLenField_ = p_; 4205 JDWP::Write4BE(&p_, 0x55555555); 4206 needHeader_ = false; 4207 } 4208 4209 void Flush() SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 4210 if (pieceLenField_ == NULL) { 4211 // Flush immediately post Reset (maybe back-to-back Flush). Ignore. 4212 CHECK(needHeader_); 4213 return; 4214 } 4215 // Patch the "length of piece" field. 4216 CHECK_LE(&buf_[0], pieceLenField_); 4217 CHECK_LE(pieceLenField_, p_); 4218 JDWP::Set4BE(pieceLenField_, totalAllocationUnits_); 4219 4220 Dbg::DdmSendChunk(type_, p_ - &buf_[0], &buf_[0]); 4221 Reset(); 4222 } 4223 4224 static void HeapChunkCallback(void* start, void* end, size_t used_bytes, void* arg) 4225 SHARED_LOCKS_REQUIRED(Locks::heap_bitmap_lock_, 4226 Locks::mutator_lock_) { 4227 reinterpret_cast<HeapChunkContext*>(arg)->HeapChunkCallback(start, end, used_bytes); 4228 } 4229 4230 private: 4231 enum { ALLOCATION_UNIT_SIZE = 8 }; 4232 4233 void Reset() { 4234 p_ = &buf_[0]; 4235 ResetStartOfNextChunk(); 4236 totalAllocationUnits_ = 0; 4237 needHeader_ = true; 4238 pieceLenField_ = NULL; 4239 } 4240 4241 void HeapChunkCallback(void* start, void* /*end*/, size_t used_bytes) 4242 SHARED_LOCKS_REQUIRED(Locks::heap_bitmap_lock_, 4243 Locks::mutator_lock_) { 4244 // Note: heap call backs cannot manipulate the heap upon which they are crawling, care is taken 4245 // in the following code not to allocate memory, by ensuring buf_ is of the correct size 4246 if (used_bytes == 0) { 4247 if (start == NULL) { 4248 // Reset for start of new heap. 4249 startOfNextMemoryChunk_ = NULL; 4250 Flush(); 4251 } 4252 // Only process in use memory so that free region information 4253 // also includes dlmalloc book keeping. 4254 return; 4255 } 4256 4257 /* If we're looking at the native heap, we'll just return 4258 * (SOLIDITY_HARD, KIND_NATIVE) for all allocated chunks 4259 */ 4260 bool native = type_ == CHUNK_TYPE("NHSG"); 4261 4262 // TODO: I'm not sure using start of next chunk works well with multiple spaces. We shouldn't 4263 // count gaps inbetween spaces as free memory. 4264 if (startOfNextMemoryChunk_ != NULL) { 4265 // Transmit any pending free memory. Native free memory of 4266 // over kMaxFreeLen could be because of the use of mmaps, so 4267 // don't report. If not free memory then start a new segment. 4268 bool flush = true; 4269 if (start > startOfNextMemoryChunk_) { 4270 const size_t kMaxFreeLen = 2 * kPageSize; 4271 void* freeStart = startOfNextMemoryChunk_; 4272 void* freeEnd = start; 4273 size_t freeLen = reinterpret_cast<char*>(freeEnd) - reinterpret_cast<char*>(freeStart); 4274 if (!native || freeLen < kMaxFreeLen) { 4275 AppendChunk(HPSG_STATE(SOLIDITY_FREE, 0), freeStart, freeLen); 4276 flush = false; 4277 } 4278 } 4279 if (flush) { 4280 startOfNextMemoryChunk_ = NULL; 4281 Flush(); 4282 } 4283 } 4284 mirror::Object* obj = reinterpret_cast<mirror::Object*>(start); 4285 4286 // Determine the type of this chunk. 4287 // OLD-TODO: if context.merge, see if this chunk is different from the last chunk. 4288 // If it's the same, we should combine them. 4289 uint8_t state = ExamineObject(obj, native); 4290 AppendChunk(state, start, used_bytes + chunk_overhead_); 4291 startOfNextMemoryChunk_ = reinterpret_cast<char*>(start) + used_bytes + chunk_overhead_; 4292 } 4293 4294 void AppendChunk(uint8_t state, void* ptr, size_t length) 4295 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 4296 // Make sure there's enough room left in the buffer. 4297 // We need to use two bytes for every fractional 256 allocation units used by the chunk plus 4298 // 17 bytes for any header. 4299 size_t needed = (((length/ALLOCATION_UNIT_SIZE + 255) / 256) * 2) + 17; 4300 size_t bytesLeft = buf_.size() - (size_t)(p_ - &buf_[0]); 4301 if (bytesLeft < needed) { 4302 Flush(); 4303 } 4304 4305 bytesLeft = buf_.size() - (size_t)(p_ - &buf_[0]); 4306 if (bytesLeft < needed) { 4307 LOG(WARNING) << "Chunk is too big to transmit (chunk_len=" << length << ", " 4308 << needed << " bytes)"; 4309 return; 4310 } 4311 EnsureHeader(ptr); 4312 // Write out the chunk description. 4313 length /= ALLOCATION_UNIT_SIZE; // Convert to allocation units. 4314 totalAllocationUnits_ += length; 4315 while (length > 256) { 4316 *p_++ = state | HPSG_PARTIAL; 4317 *p_++ = 255; // length - 1 4318 length -= 256; 4319 } 4320 *p_++ = state; 4321 *p_++ = length - 1; 4322 } 4323 4324 uint8_t ExamineObject(mirror::Object* o, bool is_native_heap) 4325 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_, Locks::heap_bitmap_lock_) { 4326 if (o == NULL) { 4327 return HPSG_STATE(SOLIDITY_FREE, 0); 4328 } 4329 4330 // It's an allocated chunk. Figure out what it is. 4331 4332 // If we're looking at the native heap, we'll just return 4333 // (SOLIDITY_HARD, KIND_NATIVE) for all allocated chunks. 4334 if (is_native_heap) { 4335 return HPSG_STATE(SOLIDITY_HARD, KIND_NATIVE); 4336 } 4337 4338 if (!Runtime::Current()->GetHeap()->IsLiveObjectLocked(o)) { 4339 return HPSG_STATE(SOLIDITY_HARD, KIND_NATIVE); 4340 } 4341 4342 mirror::Class* c = o->GetClass(); 4343 if (c == NULL) { 4344 // The object was probably just created but hasn't been initialized yet. 4345 return HPSG_STATE(SOLIDITY_HARD, KIND_OBJECT); 4346 } 4347 4348 if (!Runtime::Current()->GetHeap()->IsValidObjectAddress(c)) { 4349 LOG(ERROR) << "Invalid class for managed heap object: " << o << " " << c; 4350 return HPSG_STATE(SOLIDITY_HARD, KIND_UNKNOWN); 4351 } 4352 4353 if (c->GetClass() == nullptr) { 4354 LOG(ERROR) << "Null class of class " << c << " for object " << o; 4355 return HPSG_STATE(SOLIDITY_HARD, KIND_UNKNOWN); 4356 } 4357 4358 if (c->IsClassClass()) { 4359 return HPSG_STATE(SOLIDITY_HARD, KIND_CLASS_OBJECT); 4360 } 4361 4362 if (c->IsArrayClass()) { 4363 if (o->IsObjectArray()) { 4364 return HPSG_STATE(SOLIDITY_HARD, KIND_ARRAY_4); 4365 } 4366 switch (c->GetComponentSize()) { 4367 case 1: return HPSG_STATE(SOLIDITY_HARD, KIND_ARRAY_1); 4368 case 2: return HPSG_STATE(SOLIDITY_HARD, KIND_ARRAY_2); 4369 case 4: return HPSG_STATE(SOLIDITY_HARD, KIND_ARRAY_4); 4370 case 8: return HPSG_STATE(SOLIDITY_HARD, KIND_ARRAY_8); 4371 } 4372 } 4373 4374 return HPSG_STATE(SOLIDITY_HARD, KIND_OBJECT); 4375 } 4376 4377 std::vector<uint8_t> buf_; 4378 uint8_t* p_; 4379 uint8_t* pieceLenField_; 4380 void* startOfNextMemoryChunk_; 4381 size_t totalAllocationUnits_; 4382 uint32_t type_; 4383 bool merge_; 4384 bool needHeader_; 4385 size_t chunk_overhead_; 4386 4387 DISALLOW_COPY_AND_ASSIGN(HeapChunkContext); 4388 }; 4389 4390 static void BumpPointerSpaceCallback(mirror::Object* obj, void* arg) 4391 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) EXCLUSIVE_LOCKS_REQUIRED(Locks::heap_bitmap_lock_) { 4392 const size_t size = RoundUp(obj->SizeOf(), kObjectAlignment); 4393 HeapChunkContext::HeapChunkCallback( 4394 obj, reinterpret_cast<void*>(reinterpret_cast<uintptr_t>(obj) + size), size, arg); 4395 } 4396 4397 void Dbg::DdmSendHeapSegments(bool native) { 4398 Dbg::HpsgWhen when; 4399 Dbg::HpsgWhat what; 4400 if (!native) { 4401 when = gDdmHpsgWhen; 4402 what = gDdmHpsgWhat; 4403 } else { 4404 when = gDdmNhsgWhen; 4405 what = gDdmNhsgWhat; 4406 } 4407 if (when == HPSG_WHEN_NEVER) { 4408 return; 4409 } 4410 4411 // Figure out what kind of chunks we'll be sending. 4412 CHECK(what == HPSG_WHAT_MERGED_OBJECTS || what == HPSG_WHAT_DISTINCT_OBJECTS) << static_cast<int>(what); 4413 4414 // First, send a heap start chunk. 4415 uint8_t heap_id[4]; 4416 JDWP::Set4BE(&heap_id[0], 1); // Heap id (bogus; we only have one heap). 4417 Dbg::DdmSendChunk(native ? CHUNK_TYPE("NHST") : CHUNK_TYPE("HPST"), sizeof(heap_id), heap_id); 4418 4419 Thread* self = Thread::Current(); 4420 4421 Locks::mutator_lock_->AssertSharedHeld(self); 4422 4423 // Send a series of heap segment chunks. 4424 HeapChunkContext context((what == HPSG_WHAT_MERGED_OBJECTS), native); 4425 if (native) { 4426 #ifdef USE_DLMALLOC 4427 dlmalloc_inspect_all(HeapChunkContext::HeapChunkCallback, &context); 4428 #else 4429 UNIMPLEMENTED(WARNING) << "Native heap inspection is only supported with dlmalloc"; 4430 #endif 4431 } else { 4432 gc::Heap* heap = Runtime::Current()->GetHeap(); 4433 for (const auto& space : heap->GetContinuousSpaces()) { 4434 if (space->IsDlMallocSpace()) { 4435 ReaderMutexLock mu(self, *Locks::heap_bitmap_lock_); 4436 // dlmalloc's chunk header is 2 * sizeof(size_t), but if the previous chunk is in use for an 4437 // allocation then the first sizeof(size_t) may belong to it. 4438 context.SetChunkOverhead(sizeof(size_t)); 4439 space->AsDlMallocSpace()->Walk(HeapChunkContext::HeapChunkCallback, &context); 4440 } else if (space->IsRosAllocSpace()) { 4441 context.SetChunkOverhead(0); 4442 // Need to acquire the mutator lock before the heap bitmap lock with exclusive access since 4443 // RosAlloc's internal logic doesn't know to release and reacquire the heap bitmap lock. 4444 self->TransitionFromRunnableToSuspended(kSuspended); 4445 ThreadList* tl = Runtime::Current()->GetThreadList(); 4446 tl->SuspendAll(); 4447 { 4448 ReaderMutexLock mu(self, *Locks::heap_bitmap_lock_); 4449 space->AsRosAllocSpace()->Walk(HeapChunkContext::HeapChunkCallback, &context); 4450 } 4451 tl->ResumeAll(); 4452 self->TransitionFromSuspendedToRunnable(); 4453 } else if (space->IsBumpPointerSpace()) { 4454 ReaderMutexLock mu(self, *Locks::heap_bitmap_lock_); 4455 context.SetChunkOverhead(0); 4456 space->AsBumpPointerSpace()->Walk(BumpPointerSpaceCallback, &context); 4457 } else { 4458 UNIMPLEMENTED(WARNING) << "Not counting objects in space " << *space; 4459 } 4460 context.ResetStartOfNextChunk(); 4461 } 4462 ReaderMutexLock mu(self, *Locks::heap_bitmap_lock_); 4463 // Walk the large objects, these are not in the AllocSpace. 4464 context.SetChunkOverhead(0); 4465 heap->GetLargeObjectsSpace()->Walk(HeapChunkContext::HeapChunkCallback, &context); 4466 } 4467 4468 // Finally, send a heap end chunk. 4469 Dbg::DdmSendChunk(native ? CHUNK_TYPE("NHEN") : CHUNK_TYPE("HPEN"), sizeof(heap_id), heap_id); 4470 } 4471 4472 static size_t GetAllocTrackerMax() { 4473 #ifdef HAVE_ANDROID_OS 4474 // Check whether there's a system property overriding the number of records. 4475 const char* propertyName = "dalvik.vm.allocTrackerMax"; 4476 char allocRecordMaxString[PROPERTY_VALUE_MAX]; 4477 if (property_get(propertyName, allocRecordMaxString, "") > 0) { 4478 char* end; 4479 size_t value = strtoul(allocRecordMaxString, &end, 10); 4480 if (*end != '\0') { 4481 LOG(ERROR) << "Ignoring " << propertyName << " '" << allocRecordMaxString 4482 << "' --- invalid"; 4483 return kDefaultNumAllocRecords; 4484 } 4485 if (!IsPowerOfTwo(value)) { 4486 LOG(ERROR) << "Ignoring " << propertyName << " '" << allocRecordMaxString 4487 << "' --- not power of two"; 4488 return kDefaultNumAllocRecords; 4489 } 4490 return value; 4491 } 4492 #endif 4493 return kDefaultNumAllocRecords; 4494 } 4495 4496 void Dbg::SetAllocTrackingEnabled(bool enable) { 4497 Thread* self = Thread::Current(); 4498 if (enable) { 4499 { 4500 MutexLock mu(self, *Locks::alloc_tracker_lock_); 4501 if (recent_allocation_records_ != NULL) { 4502 return; // Already enabled, bail. 4503 } 4504 alloc_record_max_ = GetAllocTrackerMax(); 4505 LOG(INFO) << "Enabling alloc tracker (" << alloc_record_max_ << " entries of " 4506 << kMaxAllocRecordStackDepth << " frames, taking " 4507 << PrettySize(sizeof(AllocRecord) * alloc_record_max_) << ")"; 4508 DCHECK_EQ(alloc_record_head_, 0U); 4509 DCHECK_EQ(alloc_record_count_, 0U); 4510 recent_allocation_records_ = new AllocRecord[alloc_record_max_]; 4511 CHECK(recent_allocation_records_ != NULL); 4512 } 4513 Runtime::Current()->GetInstrumentation()->InstrumentQuickAllocEntryPoints(); 4514 } else { 4515 { 4516 ScopedObjectAccess soa(self); // For type_cache_.Clear(); 4517 MutexLock mu(self, *Locks::alloc_tracker_lock_); 4518 if (recent_allocation_records_ == NULL) { 4519 return; // Already disabled, bail. 4520 } 4521 LOG(INFO) << "Disabling alloc tracker"; 4522 delete[] recent_allocation_records_; 4523 recent_allocation_records_ = NULL; 4524 alloc_record_head_ = 0; 4525 alloc_record_count_ = 0; 4526 type_cache_.Clear(); 4527 } 4528 // If an allocation comes in before we uninstrument, we will safely drop it on the floor. 4529 Runtime::Current()->GetInstrumentation()->UninstrumentQuickAllocEntryPoints(); 4530 } 4531 } 4532 4533 struct AllocRecordStackVisitor : public StackVisitor { 4534 AllocRecordStackVisitor(Thread* thread, AllocRecord* record) 4535 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) 4536 : StackVisitor(thread, NULL), record(record), depth(0) {} 4537 4538 // TODO: Enable annotalysis. We know lock is held in constructor, but abstraction confuses 4539 // annotalysis. 4540 bool VisitFrame() NO_THREAD_SAFETY_ANALYSIS { 4541 if (depth >= kMaxAllocRecordStackDepth) { 4542 return false; 4543 } 4544 mirror::ArtMethod* m = GetMethod(); 4545 if (!m->IsRuntimeMethod()) { 4546 record->StackElement(depth)->SetMethod(m); 4547 record->StackElement(depth)->SetDexPc(GetDexPc()); 4548 ++depth; 4549 } 4550 return true; 4551 } 4552 4553 ~AllocRecordStackVisitor() { 4554 // Clear out any unused stack trace elements. 4555 for (; depth < kMaxAllocRecordStackDepth; ++depth) { 4556 record->StackElement(depth)->SetMethod(nullptr); 4557 record->StackElement(depth)->SetDexPc(0); 4558 } 4559 } 4560 4561 AllocRecord* record; 4562 size_t depth; 4563 }; 4564 4565 void Dbg::RecordAllocation(mirror::Class* type, size_t byte_count) { 4566 Thread* self = Thread::Current(); 4567 CHECK(self != NULL); 4568 4569 MutexLock mu(self, *Locks::alloc_tracker_lock_); 4570 if (recent_allocation_records_ == NULL) { 4571 // In the process of shutting down recording, bail. 4572 return; 4573 } 4574 4575 // Advance and clip. 4576 if (++alloc_record_head_ == alloc_record_max_) { 4577 alloc_record_head_ = 0; 4578 } 4579 4580 // Fill in the basics. 4581 AllocRecord* record = &recent_allocation_records_[alloc_record_head_]; 4582 record->SetType(type); 4583 record->SetByteCount(byte_count); 4584 record->SetThinLockId(self->GetThreadId()); 4585 4586 // Fill in the stack trace. 4587 AllocRecordStackVisitor visitor(self, record); 4588 visitor.WalkStack(); 4589 4590 if (alloc_record_count_ < alloc_record_max_) { 4591 ++alloc_record_count_; 4592 } 4593 } 4594 4595 // Returns the index of the head element. 4596 // 4597 // We point at the most-recently-written record, so if alloc_record_count_ is 1 4598 // we want to use the current element. Take "head+1" and subtract count 4599 // from it. 4600 // 4601 // We need to handle underflow in our circular buffer, so we add 4602 // alloc_record_max_ and then mask it back down. 4603 size_t Dbg::HeadIndex() { 4604 return (Dbg::alloc_record_head_ + 1 + Dbg::alloc_record_max_ - Dbg::alloc_record_count_) & 4605 (Dbg::alloc_record_max_ - 1); 4606 } 4607 4608 void Dbg::DumpRecentAllocations() { 4609 ScopedObjectAccess soa(Thread::Current()); 4610 MutexLock mu(soa.Self(), *Locks::alloc_tracker_lock_); 4611 if (recent_allocation_records_ == NULL) { 4612 LOG(INFO) << "Not recording tracked allocations"; 4613 return; 4614 } 4615 4616 // "i" is the head of the list. We want to start at the end of the 4617 // list and move forward to the tail. 4618 size_t i = HeadIndex(); 4619 const uint16_t capped_count = CappedAllocRecordCount(Dbg::alloc_record_count_); 4620 uint16_t count = capped_count; 4621 4622 LOG(INFO) << "Tracked allocations, (head=" << alloc_record_head_ << " count=" << count << ")"; 4623 while (count--) { 4624 AllocRecord* record = &recent_allocation_records_[i]; 4625 4626 LOG(INFO) << StringPrintf(" Thread %-2d %6zd bytes ", record->ThinLockId(), record->ByteCount()) 4627 << PrettyClass(record->Type()); 4628 4629 for (size_t stack_frame = 0; stack_frame < kMaxAllocRecordStackDepth; ++stack_frame) { 4630 AllocRecordStackTraceElement* stack_element = record->StackElement(stack_frame); 4631 mirror::ArtMethod* m = stack_element->Method(); 4632 if (m == NULL) { 4633 break; 4634 } 4635 LOG(INFO) << " " << PrettyMethod(m) << " line " << stack_element->LineNumber(); 4636 } 4637 4638 // pause periodically to help logcat catch up 4639 if ((count % 5) == 0) { 4640 usleep(40000); 4641 } 4642 4643 i = (i + 1) & (alloc_record_max_ - 1); 4644 } 4645 } 4646 4647 class StringTable { 4648 public: 4649 StringTable() { 4650 } 4651 4652 void Add(const std::string& str) { 4653 table_.insert(str); 4654 } 4655 4656 void Add(const char* str) { 4657 table_.insert(str); 4658 } 4659 4660 size_t IndexOf(const char* s) const { 4661 auto it = table_.find(s); 4662 if (it == table_.end()) { 4663 LOG(FATAL) << "IndexOf(\"" << s << "\") failed"; 4664 } 4665 return std::distance(table_.begin(), it); 4666 } 4667 4668 size_t Size() const { 4669 return table_.size(); 4670 } 4671 4672 void WriteTo(std::vector<uint8_t>& bytes) const { 4673 for (const std::string& str : table_) { 4674 const char* s = str.c_str(); 4675 size_t s_len = CountModifiedUtf8Chars(s); 4676 std::unique_ptr<uint16_t> s_utf16(new uint16_t[s_len]); 4677 ConvertModifiedUtf8ToUtf16(s_utf16.get(), s); 4678 JDWP::AppendUtf16BE(bytes, s_utf16.get(), s_len); 4679 } 4680 } 4681 4682 private: 4683 std::set<std::string> table_; 4684 DISALLOW_COPY_AND_ASSIGN(StringTable); 4685 }; 4686 4687 static const char* GetMethodSourceFile(mirror::ArtMethod* method) 4688 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) { 4689 DCHECK(method != nullptr); 4690 const char* source_file = method->GetDeclaringClassSourceFile(); 4691 return (source_file != nullptr) ? source_file : ""; 4692 } 4693 4694 /* 4695 * The data we send to DDMS contains everything we have recorded. 4696 * 4697 * Message header (all values big-endian): 4698 * (1b) message header len (to allow future expansion); includes itself 4699 * (1b) entry header len 4700 * (1b) stack frame len 4701 * (2b) number of entries 4702 * (4b) offset to string table from start of message 4703 * (2b) number of class name strings 4704 * (2b) number of method name strings 4705 * (2b) number of source file name strings 4706 * For each entry: 4707 * (4b) total allocation size 4708 * (2b) thread id 4709 * (2b) allocated object's class name index 4710 * (1b) stack depth 4711 * For each stack frame: 4712 * (2b) method's class name 4713 * (2b) method name 4714 * (2b) method source file 4715 * (2b) line number, clipped to 32767; -2 if native; -1 if no source 4716 * (xb) class name strings 4717 * (xb) method name strings 4718 * (xb) source file strings 4719 * 4720 * As with other DDM traffic, strings are sent as a 4-byte length 4721 * followed by UTF-16 data. 4722 * 4723 * We send up 16-bit unsigned indexes into string tables. In theory there 4724 * can be (kMaxAllocRecordStackDepth * alloc_record_max_) unique strings in 4725 * each table, but in practice there should be far fewer. 4726 * 4727 * The chief reason for using a string table here is to keep the size of 4728 * the DDMS message to a minimum. This is partly to make the protocol 4729 * efficient, but also because we have to form the whole thing up all at 4730 * once in a memory buffer. 4731 * 4732 * We use separate string tables for class names, method names, and source 4733 * files to keep the indexes small. There will generally be no overlap 4734 * between the contents of these tables. 4735 */ 4736 jbyteArray Dbg::GetRecentAllocations() { 4737 if (false) { 4738 DumpRecentAllocations(); 4739 } 4740 4741 Thread* self = Thread::Current(); 4742 std::vector<uint8_t> bytes; 4743 { 4744 MutexLock mu(self, *Locks::alloc_tracker_lock_); 4745 // 4746 // Part 1: generate string tables. 4747 // 4748 StringTable class_names; 4749 StringTable method_names; 4750 StringTable filenames; 4751 4752 const uint16_t capped_count = CappedAllocRecordCount(Dbg::alloc_record_count_); 4753 uint16_t count = capped_count; 4754 size_t idx = HeadIndex(); 4755 while (count--) { 4756 AllocRecord* record = &recent_allocation_records_[idx]; 4757 std::string temp; 4758 class_names.Add(record->Type()->GetDescriptor(&temp)); 4759 for (size_t i = 0; i < kMaxAllocRecordStackDepth; i++) { 4760 mirror::ArtMethod* m = record->StackElement(i)->Method(); 4761 if (m != NULL) { 4762 class_names.Add(m->GetDeclaringClassDescriptor()); 4763 method_names.Add(m->GetName()); 4764 filenames.Add(GetMethodSourceFile(m)); 4765 } 4766 } 4767 4768 idx = (idx + 1) & (alloc_record_max_ - 1); 4769 } 4770 4771 LOG(INFO) << "allocation records: " << capped_count; 4772 4773 // 4774 // Part 2: Generate the output and store it in the buffer. 4775 // 4776 4777 // (1b) message header len (to allow future expansion); includes itself 4778 // (1b) entry header len 4779 // (1b) stack frame len 4780 const int kMessageHeaderLen = 15; 4781 const int kEntryHeaderLen = 9; 4782 const int kStackFrameLen = 8; 4783 JDWP::Append1BE(bytes, kMessageHeaderLen); 4784 JDWP::Append1BE(bytes, kEntryHeaderLen); 4785 JDWP::Append1BE(bytes, kStackFrameLen); 4786 4787 // (2b) number of entries 4788 // (4b) offset to string table from start of message 4789 // (2b) number of class name strings 4790 // (2b) number of method name strings 4791 // (2b) number of source file name strings 4792 JDWP::Append2BE(bytes, capped_count); 4793 size_t string_table_offset = bytes.size(); 4794 JDWP::Append4BE(bytes, 0); // We'll patch this later... 4795 JDWP::Append2BE(bytes, class_names.Size()); 4796 JDWP::Append2BE(bytes, method_names.Size()); 4797 JDWP::Append2BE(bytes, filenames.Size()); 4798 4799 idx = HeadIndex(); 4800 std::string temp; 4801 for (count = capped_count; count != 0; --count) { 4802 // For each entry: 4803 // (4b) total allocation size 4804 // (2b) thread id 4805 // (2b) allocated object's class name index 4806 // (1b) stack depth 4807 AllocRecord* record = &recent_allocation_records_[idx]; 4808 size_t stack_depth = record->GetDepth(); 4809 size_t allocated_object_class_name_index = 4810 class_names.IndexOf(record->Type()->GetDescriptor(&temp)); 4811 JDWP::Append4BE(bytes, record->ByteCount()); 4812 JDWP::Append2BE(bytes, record->ThinLockId()); 4813 JDWP::Append2BE(bytes, allocated_object_class_name_index); 4814 JDWP::Append1BE(bytes, stack_depth); 4815 4816 for (size_t stack_frame = 0; stack_frame < stack_depth; ++stack_frame) { 4817 // For each stack frame: 4818 // (2b) method's class name 4819 // (2b) method name 4820 // (2b) method source file 4821 // (2b) line number, clipped to 32767; -2 if native; -1 if no source 4822 mirror::ArtMethod* m = record->StackElement(stack_frame)->Method(); 4823 size_t class_name_index = class_names.IndexOf(m->GetDeclaringClassDescriptor()); 4824 size_t method_name_index = method_names.IndexOf(m->GetName()); 4825 size_t file_name_index = filenames.IndexOf(GetMethodSourceFile(m)); 4826 JDWP::Append2BE(bytes, class_name_index); 4827 JDWP::Append2BE(bytes, method_name_index); 4828 JDWP::Append2BE(bytes, file_name_index); 4829 JDWP::Append2BE(bytes, record->StackElement(stack_frame)->LineNumber()); 4830 } 4831 idx = (idx + 1) & (alloc_record_max_ - 1); 4832 } 4833 4834 // (xb) class name strings 4835 // (xb) method name strings 4836 // (xb) source file strings 4837 JDWP::Set4BE(&bytes[string_table_offset], bytes.size()); 4838 class_names.WriteTo(bytes); 4839 method_names.WriteTo(bytes); 4840 filenames.WriteTo(bytes); 4841 } 4842 JNIEnv* env = self->GetJniEnv(); 4843 jbyteArray result = env->NewByteArray(bytes.size()); 4844 if (result != NULL) { 4845 env->SetByteArrayRegion(result, 0, bytes.size(), reinterpret_cast<const jbyte*>(&bytes[0])); 4846 } 4847 return result; 4848 } 4849 4850 mirror::ArtMethod* DeoptimizationRequest::Method() const { 4851 ScopedObjectAccessUnchecked soa(Thread::Current()); 4852 return soa.DecodeMethod(method_); 4853 } 4854 4855 void DeoptimizationRequest::SetMethod(mirror::ArtMethod* m) { 4856 ScopedObjectAccessUnchecked soa(Thread::Current()); 4857 method_ = soa.EncodeMethod(m); 4858 } 4859 4860 } // namespace art 4861