class_linker.cc revision 194116c836080de14245a3a7c4617d07b8abf8cf
1/*
2 * Copyright (C) 2011 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 *      http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17#include "class_linker.h"
18
19#include <fcntl.h>
20#include <sys/file.h>
21#include <sys/stat.h>
22#include <deque>
23#include <memory>
24#include <string>
25#include <utility>
26#include <vector>
27
28#include "base/casts.h"
29#include "base/logging.h"
30#include "base/scoped_flock.h"
31#include "base/stl_util.h"
32#include "base/unix_file/fd_file.h"
33#include "class_linker-inl.h"
34#include "compiler_callbacks.h"
35#include "debugger.h"
36#include "dex_file-inl.h"
37#include "gc_root-inl.h"
38#include "gc/accounting/card_table-inl.h"
39#include "gc/accounting/heap_bitmap.h"
40#include "gc/heap.h"
41#include "gc/space/image_space.h"
42#include "handle_scope.h"
43#include "intern_table.h"
44#include "interpreter/interpreter.h"
45#include "leb128.h"
46#include "method_helper-inl.h"
47#include "oat.h"
48#include "oat_file.h"
49#include "object_lock.h"
50#include "mirror/art_field-inl.h"
51#include "mirror/art_method-inl.h"
52#include "mirror/class.h"
53#include "mirror/class-inl.h"
54#include "mirror/class_loader.h"
55#include "mirror/dex_cache-inl.h"
56#include "mirror/iftable-inl.h"
57#include "mirror/object-inl.h"
58#include "mirror/object_array-inl.h"
59#include "mirror/proxy.h"
60#include "mirror/reference-inl.h"
61#include "mirror/stack_trace_element.h"
62#include "mirror/string-inl.h"
63#include "os.h"
64#include "runtime.h"
65#include "entrypoints/entrypoint_utils.h"
66#include "ScopedLocalRef.h"
67#include "scoped_thread_state_change.h"
68#include "handle_scope-inl.h"
69#include "thread.h"
70#include "utils.h"
71#include "verifier/method_verifier.h"
72#include "well_known_classes.h"
73
74namespace art {
75
76static void ThrowNoClassDefFoundError(const char* fmt, ...)
77    __attribute__((__format__(__printf__, 1, 2)))
78    SHARED_LOCKS_REQUIRED(Locks::mutator_lock_);
79static void ThrowNoClassDefFoundError(const char* fmt, ...) {
80  va_list args;
81  va_start(args, fmt);
82  Thread* self = Thread::Current();
83  ThrowLocation throw_location = self->GetCurrentLocationForThrow();
84  self->ThrowNewExceptionV(throw_location, "Ljava/lang/NoClassDefFoundError;", fmt, args);
85  va_end(args);
86}
87
88static void ThrowEarlierClassFailure(mirror::Class* c)
89    SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
90  // The class failed to initialize on a previous attempt, so we want to throw
91  // a NoClassDefFoundError (v2 2.17.5).  The exception to this rule is if we
92  // failed in verification, in which case v2 5.4.1 says we need to re-throw
93  // the previous error.
94  if (!Runtime::Current()->IsCompiler()) {  // Give info if this occurs at runtime.
95    LOG(INFO) << "Rejecting re-init on previously-failed class " << PrettyClass(c);
96  }
97
98  CHECK(c->IsErroneous()) << PrettyClass(c) << " " << c->GetStatus();
99  Thread* self = Thread::Current();
100  ThrowLocation throw_location = self->GetCurrentLocationForThrow();
101  if (c->GetVerifyErrorClass() != NULL) {
102    // TODO: change the verifier to store an _instance_, with a useful detail message?
103    std::string temp;
104    self->ThrowNewException(throw_location, c->GetVerifyErrorClass()->GetDescriptor(&temp),
105                            PrettyDescriptor(c).c_str());
106  } else {
107    self->ThrowNewException(throw_location, "Ljava/lang/NoClassDefFoundError;",
108                            PrettyDescriptor(c).c_str());
109  }
110}
111
112static void WrapExceptionInInitializer() SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
113  Thread* self = Thread::Current();
114  JNIEnv* env = self->GetJniEnv();
115
116  ScopedLocalRef<jthrowable> cause(env, env->ExceptionOccurred());
117  CHECK(cause.get() != NULL);
118
119  env->ExceptionClear();
120  bool is_error = env->IsInstanceOf(cause.get(), WellKnownClasses::java_lang_Error);
121  env->Throw(cause.get());
122
123  // We only wrap non-Error exceptions; an Error can just be used as-is.
124  if (!is_error) {
125    ThrowLocation throw_location = self->GetCurrentLocationForThrow();
126    self->ThrowNewWrappedException(throw_location, "Ljava/lang/ExceptionInInitializerError;", NULL);
127  }
128}
129
130static size_t Hash(const char* s) {
131  // This is the java.lang.String hashcode for convenience, not interoperability.
132  size_t hash = 0;
133  for (; *s != '\0'; ++s) {
134    hash = hash * 31 + *s;
135  }
136  return hash;
137}
138
139const char* ClassLinker::class_roots_descriptors_[] = {
140  "Ljava/lang/Class;",
141  "Ljava/lang/Object;",
142  "[Ljava/lang/Class;",
143  "[Ljava/lang/Object;",
144  "Ljava/lang/String;",
145  "Ljava/lang/DexCache;",
146  "Ljava/lang/ref/Reference;",
147  "Ljava/lang/reflect/ArtField;",
148  "Ljava/lang/reflect/ArtMethod;",
149  "Ljava/lang/reflect/Proxy;",
150  "[Ljava/lang/String;",
151  "[Ljava/lang/reflect/ArtField;",
152  "[Ljava/lang/reflect/ArtMethod;",
153  "Ljava/lang/ClassLoader;",
154  "Ljava/lang/Throwable;",
155  "Ljava/lang/ClassNotFoundException;",
156  "Ljava/lang/StackTraceElement;",
157  "Z",
158  "B",
159  "C",
160  "D",
161  "F",
162  "I",
163  "J",
164  "S",
165  "V",
166  "[Z",
167  "[B",
168  "[C",
169  "[D",
170  "[F",
171  "[I",
172  "[J",
173  "[S",
174  "[Ljava/lang/StackTraceElement;",
175};
176
177ClassLinker::ClassLinker(InternTable* intern_table)
178    // dex_lock_ is recursive as it may be used in stack dumping.
179    : dex_lock_("ClassLinker dex lock", kDefaultMutexLevel),
180      dex_cache_image_class_lookup_required_(false),
181      failed_dex_cache_class_lookups_(0),
182      class_roots_(nullptr),
183      array_iftable_(nullptr),
184      find_array_class_cache_next_victim_(0),
185      init_done_(false),
186      log_new_dex_caches_roots_(false),
187      log_new_class_table_roots_(false),
188      intern_table_(intern_table),
189      portable_resolution_trampoline_(nullptr),
190      quick_resolution_trampoline_(nullptr),
191      portable_imt_conflict_trampoline_(nullptr),
192      quick_imt_conflict_trampoline_(nullptr),
193      quick_generic_jni_trampoline_(nullptr),
194      quick_to_interpreter_bridge_trampoline_(nullptr) {
195  CHECK_EQ(arraysize(class_roots_descriptors_), size_t(kClassRootsMax));
196  memset(find_array_class_cache_, 0, kFindArrayCacheSize * sizeof(mirror::Class*));
197}
198
199// To set a value for generic JNI. May be necessary in compiler tests.
200extern "C" void art_quick_generic_jni_trampoline(mirror::ArtMethod*);
201extern "C" void art_quick_resolution_trampoline(mirror::ArtMethod*);
202extern "C" void art_quick_imt_conflict_trampoline(mirror::ArtMethod*);
203extern "C" void art_quick_to_interpreter_bridge(mirror::ArtMethod*);
204
205void ClassLinker::InitWithoutImage(const std::vector<const DexFile*>& boot_class_path) {
206  VLOG(startup) << "ClassLinker::Init";
207  CHECK(!Runtime::Current()->GetHeap()->HasImageSpace()) << "Runtime has image. We should use it.";
208
209  CHECK(!init_done_);
210
211  // java_lang_Class comes first, it's needed for AllocClass
212  Thread* self = Thread::Current();
213  gc::Heap* heap = Runtime::Current()->GetHeap();
214  // The GC can't handle an object with a null class since we can't get the size of this object.
215  heap->IncrementDisableMovingGC(self);
216  StackHandleScope<64> hs(self);  // 64 is picked arbitrarily.
217  Handle<mirror::Class> java_lang_Class(hs.NewHandle(down_cast<mirror::Class*>(
218      heap->AllocNonMovableObject<true>(self, nullptr,
219                                        mirror::Class::ClassClassSize(),
220                                        VoidFunctor()))));
221  CHECK(java_lang_Class.Get() != NULL);
222  mirror::Class::SetClassClass(java_lang_Class.Get());
223  java_lang_Class->SetClass(java_lang_Class.Get());
224  if (kUseBakerOrBrooksReadBarrier) {
225    java_lang_Class->AssertReadBarrierPointer();
226  }
227  java_lang_Class->SetClassSize(mirror::Class::ClassClassSize());
228  heap->DecrementDisableMovingGC(self);
229  // AllocClass(mirror::Class*) can now be used
230
231  // Class[] is used for reflection support.
232  Handle<mirror::Class> class_array_class(hs.NewHandle(
233     AllocClass(self, java_lang_Class.Get(), mirror::ObjectArray<mirror::Class>::ClassSize())));
234  class_array_class->SetComponentType(java_lang_Class.Get());
235
236  // java_lang_Object comes next so that object_array_class can be created.
237  Handle<mirror::Class> java_lang_Object(hs.NewHandle(
238      AllocClass(self, java_lang_Class.Get(), mirror::Object::ClassSize())));
239  CHECK(java_lang_Object.Get() != NULL);
240  // backfill Object as the super class of Class.
241  java_lang_Class->SetSuperClass(java_lang_Object.Get());
242  java_lang_Object->SetStatus(mirror::Class::kStatusLoaded, self);
243
244  // Object[] next to hold class roots.
245  Handle<mirror::Class> object_array_class(hs.NewHandle(
246      AllocClass(self, java_lang_Class.Get(), mirror::ObjectArray<mirror::Object>::ClassSize())));
247  object_array_class->SetComponentType(java_lang_Object.Get());
248
249  // Setup the char (primitive) class to be used for char[].
250  Handle<mirror::Class> char_class(hs.NewHandle(
251      AllocClass(self, java_lang_Class.Get(), mirror::Class::PrimitiveClassSize())));
252
253  // Setup the char[] class to be used for String.
254  Handle<mirror::Class> char_array_class(hs.NewHandle(
255      AllocClass(self, java_lang_Class.Get(),
256                 mirror::Array::ClassSize())));
257  char_array_class->SetComponentType(char_class.Get());
258  mirror::CharArray::SetArrayClass(char_array_class.Get());
259
260  // Setup String.
261  Handle<mirror::Class> java_lang_String(hs.NewHandle(
262      AllocClass(self, java_lang_Class.Get(), mirror::String::ClassSize())));
263  mirror::String::SetClass(java_lang_String.Get());
264  java_lang_String->SetObjectSize(mirror::String::InstanceSize());
265  java_lang_String->SetStatus(mirror::Class::kStatusResolved, self);
266
267  // Setup Reference.
268  Handle<mirror::Class> java_lang_ref_Reference(hs.NewHandle(
269      AllocClass(self, java_lang_Class.Get(), mirror::Reference::ClassSize())));
270  mirror::Reference::SetClass(java_lang_ref_Reference.Get());
271  java_lang_ref_Reference->SetObjectSize(mirror::Reference::InstanceSize());
272  java_lang_ref_Reference->SetStatus(mirror::Class::kStatusResolved, self);
273
274  // Create storage for root classes, save away our work so far (requires descriptors).
275  class_roots_ = GcRoot<mirror::ObjectArray<mirror::Class> >(
276      mirror::ObjectArray<mirror::Class>::Alloc(self, object_array_class.Get(),
277                                                kClassRootsMax));
278  CHECK(!class_roots_.IsNull());
279  SetClassRoot(kJavaLangClass, java_lang_Class.Get());
280  SetClassRoot(kJavaLangObject, java_lang_Object.Get());
281  SetClassRoot(kClassArrayClass, class_array_class.Get());
282  SetClassRoot(kObjectArrayClass, object_array_class.Get());
283  SetClassRoot(kCharArrayClass, char_array_class.Get());
284  SetClassRoot(kJavaLangString, java_lang_String.Get());
285  SetClassRoot(kJavaLangRefReference, java_lang_ref_Reference.Get());
286
287  // Setup the primitive type classes.
288  SetClassRoot(kPrimitiveBoolean, CreatePrimitiveClass(self, Primitive::kPrimBoolean));
289  SetClassRoot(kPrimitiveByte, CreatePrimitiveClass(self, Primitive::kPrimByte));
290  SetClassRoot(kPrimitiveShort, CreatePrimitiveClass(self, Primitive::kPrimShort));
291  SetClassRoot(kPrimitiveInt, CreatePrimitiveClass(self, Primitive::kPrimInt));
292  SetClassRoot(kPrimitiveLong, CreatePrimitiveClass(self, Primitive::kPrimLong));
293  SetClassRoot(kPrimitiveFloat, CreatePrimitiveClass(self, Primitive::kPrimFloat));
294  SetClassRoot(kPrimitiveDouble, CreatePrimitiveClass(self, Primitive::kPrimDouble));
295  SetClassRoot(kPrimitiveVoid, CreatePrimitiveClass(self, Primitive::kPrimVoid));
296
297  // Create array interface entries to populate once we can load system classes.
298  array_iftable_ = GcRoot<mirror::IfTable>(AllocIfTable(self, 2));
299
300  // Create int array type for AllocDexCache (done in AppendToBootClassPath).
301  Handle<mirror::Class> int_array_class(hs.NewHandle(
302      AllocClass(self, java_lang_Class.Get(), mirror::Array::ClassSize())));
303  int_array_class->SetComponentType(GetClassRoot(kPrimitiveInt));
304  mirror::IntArray::SetArrayClass(int_array_class.Get());
305  SetClassRoot(kIntArrayClass, int_array_class.Get());
306
307  // now that these are registered, we can use AllocClass() and AllocObjectArray
308
309  // Set up DexCache. This cannot be done later since AppendToBootClassPath calls AllocDexCache.
310  Handle<mirror::Class> java_lang_DexCache(hs.NewHandle(
311      AllocClass(self, java_lang_Class.Get(), mirror::DexCache::ClassSize())));
312  SetClassRoot(kJavaLangDexCache, java_lang_DexCache.Get());
313  java_lang_DexCache->SetObjectSize(mirror::DexCache::InstanceSize());
314  java_lang_DexCache->SetStatus(mirror::Class::kStatusResolved, self);
315
316  // Constructor, Field, Method, and AbstractMethod are necessary so
317  // that FindClass can link members.
318  Handle<mirror::Class> java_lang_reflect_ArtField(hs.NewHandle(
319      AllocClass(self, java_lang_Class.Get(), mirror::ArtField::ClassSize())));
320  CHECK(java_lang_reflect_ArtField.Get() != NULL);
321  java_lang_reflect_ArtField->SetObjectSize(mirror::ArtField::InstanceSize());
322  SetClassRoot(kJavaLangReflectArtField, java_lang_reflect_ArtField.Get());
323  java_lang_reflect_ArtField->SetStatus(mirror::Class::kStatusResolved, self);
324  mirror::ArtField::SetClass(java_lang_reflect_ArtField.Get());
325
326  Handle<mirror::Class> java_lang_reflect_ArtMethod(hs.NewHandle(
327    AllocClass(self, java_lang_Class.Get(), mirror::ArtMethod::ClassSize())));
328  CHECK(java_lang_reflect_ArtMethod.Get() != NULL);
329  java_lang_reflect_ArtMethod->SetObjectSize(mirror::ArtMethod::InstanceSize());
330  SetClassRoot(kJavaLangReflectArtMethod, java_lang_reflect_ArtMethod.Get());
331  java_lang_reflect_ArtMethod->SetStatus(mirror::Class::kStatusResolved, self);
332
333  mirror::ArtMethod::SetClass(java_lang_reflect_ArtMethod.Get());
334
335  // Set up array classes for string, field, method
336  Handle<mirror::Class> object_array_string(hs.NewHandle(
337      AllocClass(self, java_lang_Class.Get(),
338                 mirror::ObjectArray<mirror::String>::ClassSize())));
339  object_array_string->SetComponentType(java_lang_String.Get());
340  SetClassRoot(kJavaLangStringArrayClass, object_array_string.Get());
341
342  Handle<mirror::Class> object_array_art_method(hs.NewHandle(
343      AllocClass(self, java_lang_Class.Get(),
344                 mirror::ObjectArray<mirror::ArtMethod>::ClassSize())));
345  object_array_art_method->SetComponentType(java_lang_reflect_ArtMethod.Get());
346  SetClassRoot(kJavaLangReflectArtMethodArrayClass, object_array_art_method.Get());
347
348  Handle<mirror::Class> object_array_art_field(hs.NewHandle(
349      AllocClass(self, java_lang_Class.Get(),
350                 mirror::ObjectArray<mirror::ArtField>::ClassSize())));
351  object_array_art_field->SetComponentType(java_lang_reflect_ArtField.Get());
352  SetClassRoot(kJavaLangReflectArtFieldArrayClass, object_array_art_field.Get());
353
354  // Setup boot_class_path_ and register class_path now that we can use AllocObjectArray to create
355  // DexCache instances. Needs to be after String, Field, Method arrays since AllocDexCache uses
356  // these roots.
357  CHECK_NE(0U, boot_class_path.size());
358  for (size_t i = 0; i != boot_class_path.size(); ++i) {
359    const DexFile* dex_file = boot_class_path[i];
360    CHECK(dex_file != NULL);
361    AppendToBootClassPath(*dex_file);
362  }
363
364  // now we can use FindSystemClass
365
366  // run char class through InitializePrimitiveClass to finish init
367  InitializePrimitiveClass(char_class.Get(), Primitive::kPrimChar);
368  SetClassRoot(kPrimitiveChar, char_class.Get());  // needs descriptor
369
370  // Create runtime resolution and imt conflict methods. Also setup the default imt.
371  Runtime* runtime = Runtime::Current();
372  runtime->SetResolutionMethod(runtime->CreateResolutionMethod());
373  runtime->SetImtConflictMethod(runtime->CreateImtConflictMethod());
374  runtime->SetDefaultImt(runtime->CreateDefaultImt(this));
375
376  // Set up GenericJNI entrypoint. That is mainly a hack for common_compiler_test.h so that
377  // we do not need friend classes or a publicly exposed setter.
378  quick_generic_jni_trampoline_ = reinterpret_cast<void*>(art_quick_generic_jni_trampoline);
379  if (!runtime->IsCompiler()) {
380    // We need to set up the generic trampolines since we don't have an image.
381    quick_resolution_trampoline_ = reinterpret_cast<void*>(art_quick_resolution_trampoline);
382    quick_imt_conflict_trampoline_ = reinterpret_cast<void*>(art_quick_imt_conflict_trampoline);
383    quick_to_interpreter_bridge_trampoline_ = reinterpret_cast<void*>(art_quick_to_interpreter_bridge);
384  }
385
386  // Object, String and DexCache need to be rerun through FindSystemClass to finish init
387  java_lang_Object->SetStatus(mirror::Class::kStatusNotReady, self);
388  mirror::Class* Object_class = FindSystemClass(self, "Ljava/lang/Object;");
389  CHECK_EQ(java_lang_Object.Get(), Object_class);
390  CHECK_EQ(java_lang_Object->GetObjectSize(), mirror::Object::InstanceSize());
391  java_lang_String->SetStatus(mirror::Class::kStatusNotReady, self);
392  mirror::Class* String_class = FindSystemClass(self, "Ljava/lang/String;");
393  std::ostringstream os1, os2;
394  java_lang_String->DumpClass(os1, mirror::Class::kDumpClassFullDetail);
395  String_class->DumpClass(os2, mirror::Class::kDumpClassFullDetail);
396  CHECK_EQ(java_lang_String.Get(), String_class) << os1.str() << "\n\n" << os2.str();
397  CHECK_EQ(java_lang_String->GetObjectSize(), mirror::String::InstanceSize());
398  java_lang_DexCache->SetStatus(mirror::Class::kStatusNotReady, self);
399  mirror::Class* DexCache_class = FindSystemClass(self, "Ljava/lang/DexCache;");
400  CHECK_EQ(java_lang_String.Get(), String_class);
401  CHECK_EQ(java_lang_DexCache.Get(), DexCache_class);
402  CHECK_EQ(java_lang_DexCache->GetObjectSize(), mirror::DexCache::InstanceSize());
403
404  // Setup the primitive array type classes - can't be done until Object has a vtable.
405  SetClassRoot(kBooleanArrayClass, FindSystemClass(self, "[Z"));
406  mirror::BooleanArray::SetArrayClass(GetClassRoot(kBooleanArrayClass));
407
408  SetClassRoot(kByteArrayClass, FindSystemClass(self, "[B"));
409  mirror::ByteArray::SetArrayClass(GetClassRoot(kByteArrayClass));
410
411  mirror::Class* found_char_array_class = FindSystemClass(self, "[C");
412  CHECK_EQ(char_array_class.Get(), found_char_array_class);
413
414  SetClassRoot(kShortArrayClass, FindSystemClass(self, "[S"));
415  mirror::ShortArray::SetArrayClass(GetClassRoot(kShortArrayClass));
416
417  mirror::Class* found_int_array_class = FindSystemClass(self, "[I");
418  CHECK_EQ(int_array_class.Get(), found_int_array_class);
419
420  SetClassRoot(kLongArrayClass, FindSystemClass(self, "[J"));
421  mirror::LongArray::SetArrayClass(GetClassRoot(kLongArrayClass));
422
423  SetClassRoot(kFloatArrayClass, FindSystemClass(self, "[F"));
424  mirror::FloatArray::SetArrayClass(GetClassRoot(kFloatArrayClass));
425
426  SetClassRoot(kDoubleArrayClass, FindSystemClass(self, "[D"));
427  mirror::DoubleArray::SetArrayClass(GetClassRoot(kDoubleArrayClass));
428
429  mirror::Class* found_class_array_class = FindSystemClass(self, "[Ljava/lang/Class;");
430  CHECK_EQ(class_array_class.Get(), found_class_array_class);
431
432  mirror::Class* found_object_array_class = FindSystemClass(self, "[Ljava/lang/Object;");
433  CHECK_EQ(object_array_class.Get(), found_object_array_class);
434
435  // Setup the single, global copy of "iftable".
436  mirror::Class* java_lang_Cloneable = FindSystemClass(self, "Ljava/lang/Cloneable;");
437  CHECK(java_lang_Cloneable != NULL);
438  mirror::Class* java_io_Serializable = FindSystemClass(self, "Ljava/io/Serializable;");
439  CHECK(java_io_Serializable != NULL);
440  // We assume that Cloneable/Serializable don't have superinterfaces -- normally we'd have to
441  // crawl up and explicitly list all of the supers as well.
442  {
443    mirror::IfTable* array_iftable = array_iftable_.Read();
444    array_iftable->SetInterface(0, java_lang_Cloneable);
445    array_iftable->SetInterface(1, java_io_Serializable);
446  }
447
448  // Sanity check Class[] and Object[]'s interfaces.
449  CHECK_EQ(java_lang_Cloneable, mirror::Class::GetDirectInterface(self, class_array_class, 0));
450  CHECK_EQ(java_io_Serializable, mirror::Class::GetDirectInterface(self, class_array_class, 1));
451  CHECK_EQ(java_lang_Cloneable, mirror::Class::GetDirectInterface(self, object_array_class, 0));
452  CHECK_EQ(java_io_Serializable, mirror::Class::GetDirectInterface(self, object_array_class, 1));
453  // Run Class, ArtField, and ArtMethod through FindSystemClass. This initializes their
454  // dex_cache_ fields and register them in class_table_.
455  mirror::Class* Class_class = FindSystemClass(self, "Ljava/lang/Class;");
456  CHECK_EQ(java_lang_Class.Get(), Class_class);
457
458  java_lang_reflect_ArtMethod->SetStatus(mirror::Class::kStatusNotReady, self);
459  mirror::Class* Art_method_class = FindSystemClass(self, "Ljava/lang/reflect/ArtMethod;");
460  CHECK_EQ(java_lang_reflect_ArtMethod.Get(), Art_method_class);
461
462  java_lang_reflect_ArtField->SetStatus(mirror::Class::kStatusNotReady, self);
463  mirror::Class* Art_field_class = FindSystemClass(self, "Ljava/lang/reflect/ArtField;");
464  CHECK_EQ(java_lang_reflect_ArtField.Get(), Art_field_class);
465
466  mirror::Class* String_array_class =
467      FindSystemClass(self, class_roots_descriptors_[kJavaLangStringArrayClass]);
468  CHECK_EQ(object_array_string.Get(), String_array_class);
469
470  mirror::Class* Art_method_array_class =
471      FindSystemClass(self, class_roots_descriptors_[kJavaLangReflectArtMethodArrayClass]);
472  CHECK_EQ(object_array_art_method.Get(), Art_method_array_class);
473
474  mirror::Class* Art_field_array_class =
475      FindSystemClass(self, class_roots_descriptors_[kJavaLangReflectArtFieldArrayClass]);
476  CHECK_EQ(object_array_art_field.Get(), Art_field_array_class);
477
478  // End of special init trickery, subsequent classes may be loaded via FindSystemClass.
479
480  // Create java.lang.reflect.Proxy root.
481  mirror::Class* java_lang_reflect_Proxy = FindSystemClass(self, "Ljava/lang/reflect/Proxy;");
482  SetClassRoot(kJavaLangReflectProxy, java_lang_reflect_Proxy);
483
484  // java.lang.ref classes need to be specially flagged, but otherwise are normal classes
485  // finish initializing Reference class
486  java_lang_ref_Reference->SetStatus(mirror::Class::kStatusNotReady, self);
487  mirror::Class* Reference_class = FindSystemClass(self, "Ljava/lang/ref/Reference;");
488  CHECK_EQ(java_lang_ref_Reference.Get(), Reference_class);
489  CHECK_EQ(java_lang_ref_Reference->GetObjectSize(), mirror::Reference::InstanceSize());
490  CHECK_EQ(java_lang_ref_Reference->GetClassSize(), mirror::Reference::ClassSize());
491  mirror::Class* java_lang_ref_FinalizerReference =
492      FindSystemClass(self, "Ljava/lang/ref/FinalizerReference;");
493  java_lang_ref_FinalizerReference->SetAccessFlags(
494      java_lang_ref_FinalizerReference->GetAccessFlags() |
495          kAccClassIsReference | kAccClassIsFinalizerReference);
496  mirror::Class* java_lang_ref_PhantomReference =
497      FindSystemClass(self, "Ljava/lang/ref/PhantomReference;");
498  java_lang_ref_PhantomReference->SetAccessFlags(
499      java_lang_ref_PhantomReference->GetAccessFlags() |
500          kAccClassIsReference | kAccClassIsPhantomReference);
501  mirror::Class* java_lang_ref_SoftReference =
502      FindSystemClass(self, "Ljava/lang/ref/SoftReference;");
503  java_lang_ref_SoftReference->SetAccessFlags(
504      java_lang_ref_SoftReference->GetAccessFlags() | kAccClassIsReference);
505  mirror::Class* java_lang_ref_WeakReference =
506      FindSystemClass(self, "Ljava/lang/ref/WeakReference;");
507  java_lang_ref_WeakReference->SetAccessFlags(
508      java_lang_ref_WeakReference->GetAccessFlags() |
509          kAccClassIsReference | kAccClassIsWeakReference);
510
511  // Setup the ClassLoader, verifying the object_size_.
512  mirror::Class* java_lang_ClassLoader = FindSystemClass(self, "Ljava/lang/ClassLoader;");
513  CHECK_EQ(java_lang_ClassLoader->GetObjectSize(), mirror::ClassLoader::InstanceSize());
514  SetClassRoot(kJavaLangClassLoader, java_lang_ClassLoader);
515
516  // Set up java.lang.Throwable, java.lang.ClassNotFoundException, and
517  // java.lang.StackTraceElement as a convenience.
518  SetClassRoot(kJavaLangThrowable, FindSystemClass(self, "Ljava/lang/Throwable;"));
519  mirror::Throwable::SetClass(GetClassRoot(kJavaLangThrowable));
520  SetClassRoot(kJavaLangClassNotFoundException,
521               FindSystemClass(self, "Ljava/lang/ClassNotFoundException;"));
522  SetClassRoot(kJavaLangStackTraceElement, FindSystemClass(self, "Ljava/lang/StackTraceElement;"));
523  SetClassRoot(kJavaLangStackTraceElementArrayClass,
524               FindSystemClass(self, "[Ljava/lang/StackTraceElement;"));
525  mirror::StackTraceElement::SetClass(GetClassRoot(kJavaLangStackTraceElement));
526
527  FinishInit(self);
528
529  VLOG(startup) << "ClassLinker::InitFromCompiler exiting";
530}
531
532void ClassLinker::FinishInit(Thread* self) {
533  VLOG(startup) << "ClassLinker::FinishInit entering";
534
535  // Let the heap know some key offsets into java.lang.ref instances
536  // Note: we hard code the field indexes here rather than using FindInstanceField
537  // as the types of the field can't be resolved prior to the runtime being
538  // fully initialized
539  mirror::Class* java_lang_ref_Reference = GetClassRoot(kJavaLangRefReference);
540  mirror::Class* java_lang_ref_FinalizerReference =
541      FindSystemClass(self, "Ljava/lang/ref/FinalizerReference;");
542
543  mirror::ArtField* pendingNext = java_lang_ref_Reference->GetInstanceField(0);
544  CHECK_STREQ(pendingNext->GetName(), "pendingNext");
545  CHECK_STREQ(pendingNext->GetTypeDescriptor(), "Ljava/lang/ref/Reference;");
546
547  mirror::ArtField* queue = java_lang_ref_Reference->GetInstanceField(1);
548  CHECK_STREQ(queue->GetName(), "queue");
549  CHECK_STREQ(queue->GetTypeDescriptor(), "Ljava/lang/ref/ReferenceQueue;");
550
551  mirror::ArtField* queueNext = java_lang_ref_Reference->GetInstanceField(2);
552  CHECK_STREQ(queueNext->GetName(), "queueNext");
553  CHECK_STREQ(queueNext->GetTypeDescriptor(), "Ljava/lang/ref/Reference;");
554
555  mirror::ArtField* referent = java_lang_ref_Reference->GetInstanceField(3);
556  CHECK_STREQ(referent->GetName(), "referent");
557  CHECK_STREQ(referent->GetTypeDescriptor(), "Ljava/lang/Object;");
558
559  mirror::ArtField* zombie = java_lang_ref_FinalizerReference->GetInstanceField(2);
560  CHECK_STREQ(zombie->GetName(), "zombie");
561  CHECK_STREQ(zombie->GetTypeDescriptor(), "Ljava/lang/Object;");
562
563  // ensure all class_roots_ are initialized
564  for (size_t i = 0; i < kClassRootsMax; i++) {
565    ClassRoot class_root = static_cast<ClassRoot>(i);
566    mirror::Class* klass = GetClassRoot(class_root);
567    CHECK(klass != NULL);
568    DCHECK(klass->IsArrayClass() || klass->IsPrimitive() || klass->GetDexCache() != NULL);
569    // note SetClassRoot does additional validation.
570    // if possible add new checks there to catch errors early
571  }
572
573  CHECK(!array_iftable_.IsNull());
574
575  // disable the slow paths in FindClass and CreatePrimitiveClass now
576  // that Object, Class, and Object[] are setup
577  init_done_ = true;
578
579  VLOG(startup) << "ClassLinker::FinishInit exiting";
580}
581
582void ClassLinker::RunRootClinits() {
583  Thread* self = Thread::Current();
584  for (size_t i = 0; i < ClassLinker::kClassRootsMax; ++i) {
585    mirror::Class* c = GetClassRoot(ClassRoot(i));
586    if (!c->IsArrayClass() && !c->IsPrimitive()) {
587      StackHandleScope<1> hs(self);
588      Handle<mirror::Class> h_class(hs.NewHandle(GetClassRoot(ClassRoot(i))));
589      EnsureInitialized(h_class, true, true);
590      self->AssertNoPendingException();
591    }
592  }
593}
594
595bool ClassLinker::GenerateOatFile(const char* dex_filename,
596                                  int oat_fd,
597                                  const char* oat_cache_filename,
598                                  std::string* error_msg) {
599  Locks::mutator_lock_->AssertNotHeld(Thread::Current());  // Avoid starving GC.
600  std::string dex2oat(Runtime::Current()->GetCompilerExecutable());
601
602  gc::Heap* heap = Runtime::Current()->GetHeap();
603  std::string boot_image_option("--boot-image=");
604  if (heap->GetImageSpace() == nullptr) {
605    // TODO If we get a dex2dex compiler working we could maybe use that, OTOH since we are likely
606    // out of space anyway it might not matter.
607    *error_msg = StringPrintf("Cannot create oat file for '%s' because we are running "
608                              "without an image.", dex_filename);
609    return false;
610  }
611  boot_image_option += heap->GetImageSpace()->GetImageLocation();
612
613  std::string dex_file_option("--dex-file=");
614  dex_file_option += dex_filename;
615
616  std::string oat_fd_option("--oat-fd=");
617  StringAppendF(&oat_fd_option, "%d", oat_fd);
618
619  std::string oat_location_option("--oat-location=");
620  oat_location_option += oat_cache_filename;
621
622  std::vector<std::string> argv;
623  argv.push_back(dex2oat);
624  argv.push_back("--runtime-arg");
625  argv.push_back("-classpath");
626  argv.push_back("--runtime-arg");
627  argv.push_back(Runtime::Current()->GetClassPathString());
628
629  Runtime::Current()->AddCurrentRuntimeFeaturesAsDex2OatArguments(&argv);
630
631  if (!Runtime::Current()->IsVerificationEnabled()) {
632    argv.push_back("--compiler-filter=verify-none");
633  }
634
635  if (Runtime::Current()->MustRelocateIfPossible()) {
636    argv.push_back("--runtime-arg");
637    argv.push_back("-Xrelocate");
638  } else {
639    argv.push_back("--runtime-arg");
640    argv.push_back("-Xnorelocate");
641  }
642
643  if (!kIsTargetBuild) {
644    argv.push_back("--host");
645  }
646
647  argv.push_back(boot_image_option);
648  argv.push_back(dex_file_option);
649  argv.push_back(oat_fd_option);
650  argv.push_back(oat_location_option);
651  const std::vector<std::string>& compiler_options = Runtime::Current()->GetCompilerOptions();
652  for (size_t i = 0; i < compiler_options.size(); ++i) {
653    argv.push_back(compiler_options[i].c_str());
654  }
655
656  return Exec(argv, error_msg);
657}
658
659const OatFile* ClassLinker::RegisterOatFile(const OatFile* oat_file) {
660  WriterMutexLock mu(Thread::Current(), dex_lock_);
661  if (kIsDebugBuild) {
662    for (size_t i = 0; i < oat_files_.size(); ++i) {
663      CHECK_NE(oat_file, oat_files_[i]) << oat_file->GetLocation();
664    }
665  }
666  VLOG(class_linker) << "Registering " << oat_file->GetLocation();
667  oat_files_.push_back(oat_file);
668  return oat_file;
669}
670
671OatFile& ClassLinker::GetImageOatFile(gc::space::ImageSpace* space) {
672  VLOG(startup) << "ClassLinker::GetImageOatFile entering";
673  OatFile* oat_file = space->ReleaseOatFile();
674  CHECK_EQ(RegisterOatFile(oat_file), oat_file);
675  VLOG(startup) << "ClassLinker::GetImageOatFile exiting";
676  return *oat_file;
677}
678
679const OatFile::OatDexFile* ClassLinker::FindOpenedOatDexFileForDexFile(const DexFile& dex_file) {
680  const char* dex_location = dex_file.GetLocation().c_str();
681  uint32_t dex_location_checksum = dex_file.GetLocationChecksum();
682  return FindOpenedOatDexFile(nullptr, dex_location, &dex_location_checksum);
683}
684
685const OatFile::OatDexFile* ClassLinker::FindOpenedOatDexFile(const char* oat_location,
686                                                             const char* dex_location,
687                                                             const uint32_t* dex_location_checksum) {
688  ReaderMutexLock mu(Thread::Current(), dex_lock_);
689  for (const OatFile* oat_file : oat_files_) {
690    DCHECK(oat_file != nullptr);
691
692    if (oat_location != nullptr) {
693      if (oat_file->GetLocation() != oat_location) {
694        continue;
695      }
696    }
697
698    const OatFile::OatDexFile* oat_dex_file = oat_file->GetOatDexFile(dex_location,
699                                                                      dex_location_checksum,
700                                                                      false);
701    if (oat_dex_file != nullptr) {
702      return oat_dex_file;
703    }
704  }
705  return nullptr;
706}
707
708
709// Loads all multi dex files from the given oat file returning true on success.
710//
711// Parameters:
712//   oat_file - the oat file to load from
713//   dex_location - the dex location used to generate the oat file
714//   dex_location_checksum - the checksum of the dex_location (may be null for pre-opted files)
715//   generated - whether or not the oat_file existed before or was just (re)generated
716//   error_msgs - any error messages will be appended here
717//   dex_files - the loaded dex_files will be appended here (only if the loading succeeds)
718static bool LoadMultiDexFilesFromOatFile(const OatFile* oat_file,
719                                         const char* dex_location,
720                                         const uint32_t* dex_location_checksum,
721                                         bool generated,
722                                         std::vector<std::string>* error_msgs,
723                                         std::vector<const DexFile*>* dex_files) {
724  if (oat_file == nullptr) {
725    return false;
726  }
727
728  size_t old_size = dex_files->size();  // To rollback on error.
729
730  bool success = true;
731  for (size_t i = 0; success; ++i) {
732    std::string next_name_str = DexFile::GetMultiDexClassesDexName(i, dex_location);
733    const char* next_name = next_name_str.c_str();
734
735    uint32_t next_location_checksum;
736    uint32_t* next_location_checksum_pointer = &next_location_checksum;
737    std::string error_msg;
738    if ((i == 0) && (strcmp(next_name, dex_location) == 0)) {
739      // When i=0 the multidex name should be the same as the location name. We already have the
740      // checksum it so we don't need to recompute it.
741      if (dex_location_checksum == nullptr) {
742        next_location_checksum_pointer = nullptr;
743      } else {
744        next_location_checksum = *dex_location_checksum;
745      }
746    } else if (!DexFile::GetChecksum(next_name, next_location_checksum_pointer, &error_msg)) {
747      DCHECK_EQ(false, i == 0 && generated);
748      next_location_checksum_pointer = nullptr;
749    }
750
751    const OatFile::OatDexFile* oat_dex_file = oat_file->GetOatDexFile(next_name, nullptr, false);
752
753    if (oat_dex_file == nullptr) {
754      if (i == 0 && generated) {
755        std::string error_msg;
756        error_msg = StringPrintf("\nFailed to find dex file '%s' (checksum 0x%x) in generated out "
757                                 " file'%s'", dex_location, next_location_checksum,
758                                 oat_file->GetLocation().c_str());
759        error_msgs->push_back(error_msg);
760      }
761      break;  // Not found, done.
762    }
763
764    // Checksum test. Test must succeed when generated.
765    success = !generated;
766    if (next_location_checksum_pointer != nullptr) {
767      success = next_location_checksum == oat_dex_file->GetDexFileLocationChecksum();
768    }
769
770    if (success) {
771      const DexFile* dex_file = oat_dex_file->OpenDexFile(&error_msg);
772      if (dex_file == nullptr) {
773        success = false;
774        error_msgs->push_back(error_msg);
775      } else {
776        dex_files->push_back(dex_file);
777      }
778    }
779
780    // When we generated the file, we expect success, or something is terribly wrong.
781    CHECK_EQ(false, generated && !success)
782        << "dex_location=" << next_name << " oat_location=" << oat_file->GetLocation().c_str()
783        << std::hex << " dex_location_checksum=" << next_location_checksum
784        << " OatDexFile::GetLocationChecksum()=" << oat_dex_file->GetDexFileLocationChecksum();
785  }
786
787  if (dex_files->size() == old_size) {
788    success = false;  // We did not even find classes.dex
789  }
790
791  if (success) {
792    return true;
793  } else {
794    // Free all the dex files we have loaded.
795    auto it = dex_files->begin() + old_size;
796    auto it_end = dex_files->end();
797    for (; it != it_end; it++) {
798      delete *it;
799    }
800    dex_files->erase(dex_files->begin() + old_size, it_end);
801
802    return false;
803  }
804}
805
806// Multidex files make it possible that some, but not all, dex files can be broken/outdated. This
807// complicates the loading process, as we should not use an iterative loading process, because that
808// would register the oat file and dex files that come before the broken one. Instead, check all
809// multidex ahead of time.
810bool ClassLinker::OpenDexFilesFromOat(const char* dex_location, const char* oat_location,
811                                      std::vector<std::string>* error_msgs,
812                                      std::vector<const DexFile*>* dex_files) {
813  // 1) Check whether we have an open oat file.
814  // This requires a dex checksum, use the "primary" one.
815  uint32_t dex_location_checksum;
816  uint32_t* dex_location_checksum_pointer = &dex_location_checksum;
817  bool have_checksum = true;
818  std::string checksum_error_msg;
819  if (!DexFile::GetChecksum(dex_location, dex_location_checksum_pointer, &checksum_error_msg)) {
820    // This happens for pre-opted files since the corresponding dex files are no longer on disk.
821    dex_location_checksum_pointer = nullptr;
822    have_checksum = false;
823  }
824
825  bool needs_registering = false;
826
827  const OatFile::OatDexFile* oat_dex_file = FindOpenedOatDexFile(oat_location, dex_location,
828                                                                 dex_location_checksum_pointer);
829  std::unique_ptr<const OatFile> open_oat_file(
830      oat_dex_file != nullptr ? oat_dex_file->GetOatFile() : nullptr);
831
832  // 2) If we do not have an open one, maybe there's one on disk already.
833
834  // In case the oat file is not open, we play a locking game here so
835  // that if two different processes race to load and register or generate
836  // (or worse, one tries to open a partial generated file) we will be okay.
837  // This is actually common with apps that use DexClassLoader to work
838  // around the dex method reference limit and that have a background
839  // service running in a separate process.
840  ScopedFlock scoped_flock;
841
842  if (open_oat_file.get() == nullptr) {
843    if (oat_location != nullptr) {
844      // Can only do this if we have a checksum, else error.
845      if (!have_checksum) {
846        error_msgs->push_back(checksum_error_msg);
847        return false;
848      }
849
850      std::string error_msg;
851
852      // We are loading or creating one in the future. Time to set up the file lock.
853      if (!scoped_flock.Init(oat_location, &error_msg)) {
854        error_msgs->push_back(error_msg);
855        return false;
856      }
857
858      // TODO Caller specifically asks for this oat_location. We should honor it. Probably?
859      open_oat_file.reset(FindOatFileInOatLocationForDexFile(dex_location, dex_location_checksum,
860                                                             oat_location, &error_msg));
861
862      if (open_oat_file.get() == nullptr) {
863        std::string compound_msg = StringPrintf("Failed to find dex file '%s' in oat location '%s': %s",
864                                                dex_location, oat_location, error_msg.c_str());
865        VLOG(class_linker) << compound_msg;
866        error_msgs->push_back(compound_msg);
867      }
868    } else {
869      // TODO: What to lock here?
870      bool obsolete_file_cleanup_failed;
871      open_oat_file.reset(FindOatFileContainingDexFileFromDexLocation(dex_location,
872                                                                      dex_location_checksum_pointer,
873                                                                      kRuntimeISA, error_msgs,
874                                                                      &obsolete_file_cleanup_failed));
875      // There's no point in going forward and eventually try to regenerate the
876      // file if we couldn't remove the obsolete one. Mostly likely we will fail
877      // with the same error when trying to write the new file.
878      // TODO: should we maybe do this only when we get permission issues? (i.e. EACCESS).
879      if (obsolete_file_cleanup_failed) {
880        return false;
881      }
882    }
883    needs_registering = true;
884  }
885
886  // 3) If we have an oat file, check all contained multidex files for our dex_location.
887  // Note: LoadMultiDexFilesFromOatFile will check for nullptr in the first argument.
888  bool success = LoadMultiDexFilesFromOatFile(open_oat_file.get(), dex_location,
889                                              dex_location_checksum_pointer,
890                                              false, error_msgs, dex_files);
891  if (success) {
892    const OatFile* oat_file = open_oat_file.release();  // Avoid deleting it.
893    if (needs_registering) {
894      // We opened the oat file, so we must register it.
895      RegisterOatFile(oat_file);
896    }
897    // If the file isn't executable we failed patchoat but did manage to get the dex files.
898    return oat_file->IsExecutable();
899  } else {
900    if (needs_registering) {
901      // We opened it, delete it.
902      open_oat_file.reset();
903    } else {
904      open_oat_file.release();  // Do not delete open oat files.
905    }
906  }
907
908  // 4) If it's not the case (either no oat file or mismatches), regenerate and load.
909
910  // Need a checksum, fail else.
911  if (!have_checksum) {
912    error_msgs->push_back(checksum_error_msg);
913    return false;
914  }
915
916  // Look in cache location if no oat_location is given.
917  std::string cache_location;
918  if (oat_location == nullptr) {
919    // Use the dalvik cache.
920    const std::string dalvik_cache(GetDalvikCacheOrDie(GetInstructionSetString(kRuntimeISA)));
921    cache_location = GetDalvikCacheFilenameOrDie(dex_location, dalvik_cache.c_str());
922    oat_location = cache_location.c_str();
923  }
924
925  bool has_flock = true;
926  // Definitely need to lock now.
927  if (!scoped_flock.HasFile()) {
928    std::string error_msg;
929    if (!scoped_flock.Init(oat_location, &error_msg)) {
930      error_msgs->push_back(error_msg);
931      has_flock = false;
932    }
933  }
934
935  if (Runtime::Current()->IsDex2OatEnabled() && has_flock && scoped_flock.HasFile()) {
936    // Create the oat file.
937    open_oat_file.reset(CreateOatFileForDexLocation(dex_location, scoped_flock.GetFile()->Fd(),
938                                                    oat_location, error_msgs));
939  }
940
941  // Failed, bail.
942  if (open_oat_file.get() == nullptr) {
943    std::string error_msg;
944    // dex2oat was disabled or crashed. Add the dex file in the list of dex_files to make progress.
945    DexFile::Open(dex_location, dex_location, &error_msg, dex_files);
946    error_msgs->push_back(error_msg);
947    return false;
948  }
949
950  // Try to load again, but stronger checks.
951  success = LoadMultiDexFilesFromOatFile(open_oat_file.get(), dex_location,
952                                         dex_location_checksum_pointer,
953                                         true, error_msgs, dex_files);
954  if (success) {
955    RegisterOatFile(open_oat_file.release());
956    return true;
957  } else {
958    return false;
959  }
960}
961
962const OatFile* ClassLinker::FindOatFileInOatLocationForDexFile(const char* dex_location,
963                                                               uint32_t dex_location_checksum,
964                                                               const char* oat_location,
965                                                               std::string* error_msg) {
966  std::unique_ptr<OatFile> oat_file(OatFile::Open(oat_location, oat_location, NULL,
967                                            !Runtime::Current()->IsCompiler(),
968                                            error_msg));
969  if (oat_file.get() == nullptr) {
970    *error_msg = StringPrintf("Failed to find existing oat file at %s: %s", oat_location,
971                              error_msg->c_str());
972    return nullptr;
973  }
974  Runtime* runtime = Runtime::Current();
975  const gc::space::ImageSpace* image_space = runtime->GetHeap()->GetImageSpace();
976  if (image_space != nullptr) {
977    const ImageHeader& image_header = image_space->GetImageHeader();
978    uint32_t expected_image_oat_checksum = image_header.GetOatChecksum();
979    uint32_t actual_image_oat_checksum = oat_file->GetOatHeader().GetImageFileLocationOatChecksum();
980    if (expected_image_oat_checksum != actual_image_oat_checksum) {
981      *error_msg = StringPrintf("Failed to find oat file at '%s' with expected image oat checksum of "
982                                "0x%x, found 0x%x", oat_location, expected_image_oat_checksum,
983                                actual_image_oat_checksum);
984      return nullptr;
985    }
986
987    uintptr_t expected_image_oat_offset = reinterpret_cast<uintptr_t>(image_header.GetOatDataBegin());
988    uint32_t actual_image_oat_offset = oat_file->GetOatHeader().GetImageFileLocationOatDataBegin();
989    if (expected_image_oat_offset != actual_image_oat_offset) {
990      *error_msg = StringPrintf("Failed to find oat file at '%s' with expected image oat offset %"
991                                PRIuPTR ", found %ud", oat_location, expected_image_oat_offset,
992                                actual_image_oat_offset);
993      return nullptr;
994    }
995    int32_t expected_patch_delta = image_header.GetPatchDelta();
996    int32_t actual_patch_delta = oat_file->GetOatHeader().GetImagePatchDelta();
997    if (expected_patch_delta != actual_patch_delta) {
998      *error_msg = StringPrintf("Failed to find oat file at '%s' with expected patch delta %d, "
999                                " found %d", oat_location, expected_patch_delta, actual_patch_delta);
1000      return nullptr;
1001    }
1002  }
1003
1004  const OatFile::OatDexFile* oat_dex_file = oat_file->GetOatDexFile(dex_location,
1005                                                                    &dex_location_checksum);
1006  if (oat_dex_file == nullptr) {
1007    *error_msg = StringPrintf("Failed to find oat file at '%s' containing '%s'", oat_location,
1008                              dex_location);
1009    return nullptr;
1010  }
1011  uint32_t expected_dex_checksum = dex_location_checksum;
1012  uint32_t actual_dex_checksum = oat_dex_file->GetDexFileLocationChecksum();
1013  if (expected_dex_checksum != actual_dex_checksum) {
1014    *error_msg = StringPrintf("Failed to find oat file at '%s' with expected dex checksum of 0x%x, "
1015                              "found 0x%x", oat_location, expected_dex_checksum,
1016                              actual_dex_checksum);
1017    return nullptr;
1018  }
1019  std::unique_ptr<const DexFile> dex_file(oat_dex_file->OpenDexFile(error_msg));
1020  if (dex_file.get() != nullptr) {
1021    return oat_file.release();
1022  } else {
1023    return nullptr;
1024  }
1025}
1026
1027const OatFile* ClassLinker::CreateOatFileForDexLocation(const char* dex_location,
1028                                                        int fd, const char* oat_location,
1029                                                        std::vector<std::string>* error_msgs) {
1030  // Generate the output oat file for the dex file
1031  VLOG(class_linker) << "Generating oat file " << oat_location << " for " << dex_location;
1032  std::string error_msg;
1033  if (!GenerateOatFile(dex_location, fd, oat_location, &error_msg)) {
1034    CHECK(!error_msg.empty());
1035    error_msgs->push_back(error_msg);
1036    return nullptr;
1037  }
1038  std::unique_ptr<OatFile> oat_file(OatFile::Open(oat_location, oat_location, NULL,
1039                                            !Runtime::Current()->IsCompiler(),
1040                                            &error_msg));
1041  if (oat_file.get() == nullptr) {
1042    std::string compound_msg = StringPrintf("\nFailed to open generated oat file '%s': %s",
1043                                            oat_location, error_msg.c_str());
1044    error_msgs->push_back(compound_msg);
1045    return nullptr;
1046  }
1047
1048  return oat_file.release();
1049}
1050
1051bool ClassLinker::VerifyOatImageChecksum(const OatFile* oat_file,
1052                                         const InstructionSet instruction_set) {
1053  Runtime* runtime = Runtime::Current();
1054  const gc::space::ImageSpace* image_space = runtime->GetHeap()->GetImageSpace();
1055  if (image_space == nullptr) {
1056    return false;
1057  }
1058  uint32_t image_oat_checksum = 0;
1059  if (instruction_set == kRuntimeISA) {
1060    const ImageHeader& image_header = image_space->GetImageHeader();
1061    image_oat_checksum = image_header.GetOatChecksum();
1062  } else {
1063    std::unique_ptr<ImageHeader> image_header(gc::space::ImageSpace::ReadImageHeaderOrDie(
1064        image_space->GetImageLocation().c_str(), instruction_set));
1065    image_oat_checksum = image_header->GetOatChecksum();
1066  }
1067  return oat_file->GetOatHeader().GetImageFileLocationOatChecksum() == image_oat_checksum;
1068}
1069
1070bool ClassLinker::VerifyOatChecksums(const OatFile* oat_file,
1071                                     const InstructionSet instruction_set,
1072                                     std::string* error_msg) {
1073  Runtime* runtime = Runtime::Current();
1074  const gc::space::ImageSpace* image_space = runtime->GetHeap()->GetImageSpace();
1075  if (image_space == nullptr) {
1076    *error_msg = "No image space for verification against";
1077    return false;
1078  }
1079
1080  // If the requested instruction set is the same as the current runtime,
1081  // we can use the checksums directly. If it isn't, we'll have to read the
1082  // image header from the image for the right instruction set.
1083  uint32_t image_oat_checksum = 0;
1084  uintptr_t image_oat_data_begin = 0;
1085  int32_t image_patch_delta = 0;
1086  if (instruction_set == Runtime::Current()->GetInstructionSet()) {
1087    const ImageHeader& image_header = image_space->GetImageHeader();
1088    image_oat_checksum = image_header.GetOatChecksum();
1089    image_oat_data_begin = reinterpret_cast<uintptr_t>(image_header.GetOatDataBegin());
1090    image_patch_delta = image_header.GetPatchDelta();
1091  } else {
1092    std::unique_ptr<ImageHeader> image_header(gc::space::ImageSpace::ReadImageHeaderOrDie(
1093        image_space->GetImageLocation().c_str(), instruction_set));
1094    image_oat_checksum = image_header->GetOatChecksum();
1095    image_oat_data_begin = reinterpret_cast<uintptr_t>(image_header->GetOatDataBegin());
1096    image_patch_delta = image_header->GetPatchDelta();
1097  }
1098  const OatHeader& oat_header = oat_file->GetOatHeader();
1099  bool ret = ((oat_header.GetImageFileLocationOatChecksum() == image_oat_checksum)
1100              && (oat_header.GetImagePatchDelta() == image_patch_delta)
1101              && (oat_header.GetImageFileLocationOatDataBegin() == image_oat_data_begin));
1102  if (!ret) {
1103    *error_msg = StringPrintf("oat file '%s' mismatch (0x%x, %d, %d) with (0x%x, %" PRIdPTR ", %d)",
1104                              oat_file->GetLocation().c_str(),
1105                              oat_file->GetOatHeader().GetImageFileLocationOatChecksum(),
1106                              oat_file->GetOatHeader().GetImageFileLocationOatDataBegin(),
1107                              oat_file->GetOatHeader().GetImagePatchDelta(),
1108                              image_oat_checksum, image_oat_data_begin, image_patch_delta);
1109  }
1110  return ret;
1111}
1112
1113bool ClassLinker::VerifyOatAndDexFileChecksums(const OatFile* oat_file,
1114                                               const char* dex_location,
1115                                               uint32_t dex_location_checksum,
1116                                               const InstructionSet instruction_set,
1117                                               std::string* error_msg) {
1118  if (!VerifyOatChecksums(oat_file, instruction_set, error_msg)) {
1119    return false;
1120  }
1121
1122  const OatFile::OatDexFile* oat_dex_file = oat_file->GetOatDexFile(dex_location,
1123                                                                    &dex_location_checksum);
1124  if (oat_dex_file == NULL) {
1125    *error_msg = StringPrintf("oat file '%s' does not contain contents for '%s' with checksum 0x%x",
1126                              oat_file->GetLocation().c_str(), dex_location, dex_location_checksum);
1127    for (const OatFile::OatDexFile* oat_dex_file : oat_file->GetOatDexFiles()) {
1128      *error_msg  += StringPrintf("\noat file '%s' contains contents for '%s' with checksum 0x%x",
1129                                  oat_file->GetLocation().c_str(),
1130                                  oat_dex_file->GetDexFileLocation().c_str(),
1131                                  oat_dex_file->GetDexFileLocationChecksum());
1132    }
1133    return false;
1134  }
1135
1136  if (dex_location_checksum != oat_dex_file->GetDexFileLocationChecksum()) {
1137    *error_msg = StringPrintf("oat file '%s' mismatch (0x%x) with '%s' (0x%x)",
1138                              oat_file->GetLocation().c_str(),
1139                              oat_dex_file->GetDexFileLocationChecksum(),
1140                              dex_location, dex_location_checksum);
1141    return false;
1142  }
1143  return true;
1144}
1145
1146bool ClassLinker::VerifyOatWithDexFile(const OatFile* oat_file,
1147                                       const char* dex_location,
1148                                       const uint32_t* dex_location_checksum,
1149                                       std::string* error_msg) {
1150  CHECK(oat_file != nullptr);
1151  CHECK(dex_location != nullptr);
1152  std::unique_ptr<const DexFile> dex_file;
1153  if (dex_location_checksum == nullptr) {
1154    // If no classes.dex found in dex_location, it has been stripped or is corrupt, assume oat is
1155    // up-to-date. This is the common case in user builds for jar's and apk's in the /system
1156    // directory.
1157    const OatFile::OatDexFile* oat_dex_file = oat_file->GetOatDexFile(dex_location, NULL);
1158    if (oat_dex_file == nullptr) {
1159      *error_msg = StringPrintf("Dex checksum mismatch for location '%s' and failed to find oat "
1160                                "dex file '%s': %s", oat_file->GetLocation().c_str(), dex_location,
1161                                error_msg->c_str());
1162      return false;
1163    }
1164    dex_file.reset(oat_dex_file->OpenDexFile(error_msg));
1165  } else {
1166    bool verified = VerifyOatAndDexFileChecksums(oat_file, dex_location, *dex_location_checksum,
1167                                                 kRuntimeISA, error_msg);
1168    if (!verified) {
1169      return false;
1170    }
1171    dex_file.reset(oat_file->GetOatDexFile(dex_location,
1172                                           dex_location_checksum)->OpenDexFile(error_msg));
1173  }
1174  return dex_file.get() != nullptr;
1175}
1176
1177const OatFile* ClassLinker::FindOatFileContainingDexFileFromDexLocation(
1178    const char* dex_location,
1179    const uint32_t* dex_location_checksum,
1180    InstructionSet isa,
1181    std::vector<std::string>* error_msgs,
1182    bool* obsolete_file_cleanup_failed) {
1183  *obsolete_file_cleanup_failed = false;
1184  bool already_opened = false;
1185  std::string dex_location_str(dex_location);
1186  std::unique_ptr<const OatFile> oat_file(OpenOatFileFromDexLocation(dex_location_str, isa,
1187                                                                     &already_opened,
1188                                                                     obsolete_file_cleanup_failed,
1189                                                                     error_msgs));
1190  std::string error_msg;
1191  if (oat_file.get() == nullptr) {
1192    error_msgs->push_back(StringPrintf("Failed to open oat file from dex location '%s'",
1193                                       dex_location));
1194    return nullptr;
1195  } else if (oat_file->IsExecutable() &&
1196             !VerifyOatWithDexFile(oat_file.get(), dex_location,
1197                                   dex_location_checksum, &error_msg)) {
1198    error_msgs->push_back(StringPrintf("Failed to verify oat file '%s' found for dex location "
1199                                       "'%s': %s", oat_file->GetLocation().c_str(), dex_location,
1200                                       error_msg.c_str()));
1201    return nullptr;
1202  } else if (!oat_file->IsExecutable() &&
1203             Runtime::Current()->GetHeap()->HasImageSpace() &&
1204             !VerifyOatImageChecksum(oat_file.get(), isa)) {
1205    error_msgs->push_back(StringPrintf("Failed to verify non-executable oat file '%s' found for "
1206                                       "dex location '%s'. Image checksum incorrect.",
1207                                       oat_file->GetLocation().c_str(), dex_location));
1208    return nullptr;
1209  } else {
1210    return oat_file.release();
1211  }
1212}
1213
1214const OatFile* ClassLinker::FindOpenedOatFileFromOatLocation(const std::string& oat_location) {
1215  ReaderMutexLock mu(Thread::Current(), dex_lock_);
1216  for (size_t i = 0; i < oat_files_.size(); i++) {
1217    const OatFile* oat_file = oat_files_[i];
1218    DCHECK(oat_file != nullptr);
1219    if (oat_file->GetLocation() == oat_location) {
1220      return oat_file;
1221    }
1222  }
1223  return nullptr;
1224}
1225
1226const OatFile* ClassLinker::OpenOatFileFromDexLocation(const std::string& dex_location,
1227                                                       InstructionSet isa,
1228                                                       bool *already_opened,
1229                                                       bool *obsolete_file_cleanup_failed,
1230                                                       std::vector<std::string>* error_msgs) {
1231  // Find out if we've already opened the file
1232  const OatFile* ret = nullptr;
1233  std::string odex_filename(DexFilenameToOdexFilename(dex_location, isa));
1234  ret = FindOpenedOatFileFromOatLocation(odex_filename);
1235  if (ret != nullptr) {
1236    *already_opened = true;
1237    return ret;
1238  }
1239
1240  std::string dalvik_cache;
1241  bool have_android_data = false;
1242  bool have_dalvik_cache = false;
1243  GetDalvikCache(GetInstructionSetString(kRuntimeISA), false, &dalvik_cache,
1244                 &have_android_data, &have_dalvik_cache);
1245  std::string cache_filename;
1246  if (have_dalvik_cache) {
1247    cache_filename = GetDalvikCacheFilenameOrDie(dex_location.c_str(), dalvik_cache.c_str());
1248    ret = FindOpenedOatFileFromOatLocation(cache_filename);
1249    if (ret != nullptr) {
1250      *already_opened = true;
1251      return ret;
1252    }
1253  } else {
1254    // If we need to relocate we should just place odex back where it started.
1255    cache_filename = odex_filename;
1256  }
1257
1258  ret = nullptr;
1259
1260  // We know that neither the odex nor the cache'd version is already in use, if it even exists.
1261  //
1262  // Now we do the following:
1263  // 1) Try and open the odex version
1264  // 2) If present, checksum-verified & relocated correctly return it
1265  // 3) Close the odex version to free up its address space.
1266  // 4) Try and open the cache version
1267  // 5) If present, checksum-verified & relocated correctly return it
1268  // 6) Close the cache version to free up its address space.
1269  // 7) If we should relocate:
1270  //   a) If we have opened and checksum-verified the odex version relocate it to
1271  //      'cache_filename' and return it
1272  //   b) If we have opened and checksum-verified the cache version relocate it in place and return
1273  //      it. This should not happen often (I think only the run-test's will hit this case).
1274  // 8) If the cache-version was present we should delete it since it must be obsolete if we get to
1275  //    this point.
1276  // 9) Return nullptr
1277
1278  *already_opened = false;
1279  const Runtime* runtime = Runtime::Current();
1280  CHECK(runtime != nullptr);
1281  bool executable = !runtime->IsCompiler();
1282
1283  std::string odex_error_msg;
1284  bool should_patch_system = false;
1285  bool odex_checksum_verified = false;
1286  bool have_system_odex = false;
1287  {
1288    // There is a high probability that these both these oat files map similar/the same address
1289    // spaces so we must scope them like this so they each gets its turn.
1290    std::unique_ptr<OatFile> odex_oat_file(OatFile::Open(odex_filename, odex_filename, NULL,
1291                                                         executable, &odex_error_msg));
1292    if (odex_oat_file.get() != nullptr && CheckOatFile(odex_oat_file.get(), isa,
1293                                                       &odex_checksum_verified,
1294                                                       &odex_error_msg)) {
1295      error_msgs->push_back(odex_error_msg);
1296      return odex_oat_file.release();
1297    } else {
1298      if (odex_checksum_verified) {
1299        // We can just relocate
1300        should_patch_system = true;
1301        odex_error_msg = "Image Patches are incorrect";
1302      }
1303      if (odex_oat_file.get() != nullptr) {
1304        have_system_odex = true;
1305      }
1306    }
1307  }
1308
1309  std::string cache_error_msg;
1310  bool should_patch_cache = false;
1311  bool cache_checksum_verified = false;
1312  if (have_dalvik_cache) {
1313    std::unique_ptr<OatFile> cache_oat_file(OatFile::Open(cache_filename, cache_filename, NULL,
1314                                                          executable, &cache_error_msg));
1315    if (cache_oat_file.get() != nullptr && CheckOatFile(cache_oat_file.get(), isa,
1316                                                        &cache_checksum_verified,
1317                                                        &cache_error_msg)) {
1318      error_msgs->push_back(cache_error_msg);
1319      return cache_oat_file.release();
1320    } else if (cache_checksum_verified) {
1321      // We can just relocate
1322      should_patch_cache = true;
1323      cache_error_msg = "Image Patches are incorrect";
1324    }
1325  } else if (have_android_data) {
1326    // dalvik_cache does not exist but android data does. This means we should be able to create
1327    // it, so we should try.
1328    GetDalvikCacheOrDie(GetInstructionSetString(kRuntimeISA), true);
1329  }
1330
1331  ret = nullptr;
1332  std::string error_msg;
1333  if (runtime->CanRelocate()) {
1334    // Run relocation
1335    gc::space::ImageSpace* space = Runtime::Current()->GetHeap()->GetImageSpace();
1336    if (space != nullptr) {
1337      const std::string& image_location = space->GetImageLocation();
1338      if (odex_checksum_verified && should_patch_system) {
1339        ret = PatchAndRetrieveOat(odex_filename, cache_filename, image_location, isa, &error_msg);
1340      } else if (cache_checksum_verified && should_patch_cache) {
1341        CHECK(have_dalvik_cache);
1342        ret = PatchAndRetrieveOat(cache_filename, cache_filename, image_location, isa, &error_msg);
1343      }
1344    } else if (have_system_odex) {
1345      ret = GetInterpretedOnlyOat(odex_filename, isa, &error_msg);
1346    }
1347  }
1348  if (ret == nullptr && have_dalvik_cache && OS::FileExists(cache_filename.c_str())) {
1349    // implicitly: were able to fine where the cached version is but we were unable to use it,
1350    // either as a destination for relocation or to open a file. We should delete it if it is
1351    // there.
1352    if (TEMP_FAILURE_RETRY(unlink(cache_filename.c_str())) != 0) {
1353      std::string rm_error_msg = StringPrintf("Failed to remove obsolete file from %s when "
1354                                              "searching for dex file %s: %s",
1355                                              cache_filename.c_str(), dex_location.c_str(),
1356                                              strerror(errno));
1357      error_msgs->push_back(rm_error_msg);
1358      VLOG(class_linker) << rm_error_msg;
1359      // Let the caller know that we couldn't remove the obsolete file.
1360      // This is a good indication that further writes may fail as well.
1361      *obsolete_file_cleanup_failed = true;
1362    }
1363  }
1364  if (ret == nullptr) {
1365    VLOG(class_linker) << error_msg;
1366    error_msgs->push_back(error_msg);
1367    std::string relocation_msg;
1368    if (runtime->CanRelocate()) {
1369      relocation_msg = StringPrintf(" and relocation failed");
1370    }
1371    if (have_dalvik_cache && cache_checksum_verified) {
1372      error_msg = StringPrintf("Failed to open oat file from %s (error %s) or %s "
1373                                "(error %s)%s.", odex_filename.c_str(), odex_error_msg.c_str(),
1374                                cache_filename.c_str(), cache_error_msg.c_str(),
1375                                relocation_msg.c_str());
1376    } else {
1377      error_msg = StringPrintf("Failed to open oat file from %s (error %s) (no "
1378                               "dalvik_cache availible)%s.", odex_filename.c_str(),
1379                               odex_error_msg.c_str(), relocation_msg.c_str());
1380    }
1381    VLOG(class_linker) << error_msg;
1382    error_msgs->push_back(error_msg);
1383  }
1384  return ret;
1385}
1386
1387const OatFile* ClassLinker::GetInterpretedOnlyOat(const std::string& oat_path,
1388                                                  InstructionSet isa,
1389                                                  std::string* error_msg) {
1390  // We open it non-executable
1391  std::unique_ptr<OatFile> output(OatFile::Open(oat_path, oat_path, NULL, false, error_msg));
1392  if (output.get() == nullptr) {
1393    return nullptr;
1394  }
1395  if (!Runtime::Current()->GetHeap()->HasImageSpace() ||
1396      VerifyOatImageChecksum(output.get(), isa)) {
1397    return output.release();
1398  } else {
1399    *error_msg = StringPrintf("Could not use oat file '%s', image checksum failed to verify.",
1400                              oat_path.c_str());
1401    return nullptr;
1402  }
1403}
1404
1405const OatFile* ClassLinker::PatchAndRetrieveOat(const std::string& input_oat,
1406                                                const std::string& output_oat,
1407                                                const std::string& image_location,
1408                                                InstructionSet isa,
1409                                                std::string* error_msg) {
1410  if (!Runtime::Current()->GetHeap()->HasImageSpace()) {
1411    // We don't have an image space so there is no point in trying to patchoat.
1412    LOG(WARNING) << "Patching of oat file '" << input_oat << "' not attempted because we are "
1413                 << "running without an image. Attempting to use oat file for interpretation.";
1414    return GetInterpretedOnlyOat(input_oat, isa, error_msg);
1415  }
1416  if (!Runtime::Current()->IsDex2OatEnabled()) {
1417    // We don't have dex2oat so we can assume we don't have patchoat either. We should just use the
1418    // input_oat but make sure we only do interpretation on it's dex files.
1419    LOG(WARNING) << "Patching of oat file '" << input_oat << "' not attempted due to dex2oat being "
1420                 << "disabled. Attempting to use oat file for interpretation";
1421    return GetInterpretedOnlyOat(input_oat, isa, error_msg);
1422  }
1423  Locks::mutator_lock_->AssertNotHeld(Thread::Current());  // Avoid starving GC.
1424  std::string patchoat(Runtime::Current()->GetPatchoatExecutable());
1425
1426  std::string isa_arg("--instruction-set=");
1427  isa_arg += GetInstructionSetString(isa);
1428  std::string input_oat_filename_arg("--input-oat-file=");
1429  input_oat_filename_arg += input_oat;
1430  std::string output_oat_filename_arg("--output-oat-file=");
1431  output_oat_filename_arg += output_oat;
1432  std::string patched_image_arg("--patched-image-location=");
1433  patched_image_arg += image_location;
1434
1435  std::vector<std::string> argv;
1436  argv.push_back(patchoat);
1437  argv.push_back(isa_arg);
1438  argv.push_back(input_oat_filename_arg);
1439  argv.push_back(output_oat_filename_arg);
1440  argv.push_back(patched_image_arg);
1441
1442  std::string command_line(Join(argv, ' '));
1443  LOG(INFO) << "Relocate Oat File: " << command_line;
1444  bool success = Exec(argv, error_msg);
1445  if (success) {
1446    std::unique_ptr<OatFile> output(OatFile::Open(output_oat, output_oat, NULL,
1447                                                  !Runtime::Current()->IsCompiler(), error_msg));
1448    bool checksum_verified = false;
1449    if (output.get() != nullptr && CheckOatFile(output.get(), isa, &checksum_verified, error_msg)) {
1450      return output.release();
1451    } else if (output.get() != nullptr) {
1452      *error_msg = StringPrintf("Patching of oat file '%s' succeeded "
1453                                "but output file '%s' failed verifcation: %s",
1454                                input_oat.c_str(), output_oat.c_str(), error_msg->c_str());
1455    } else {
1456      *error_msg = StringPrintf("Patching of oat file '%s' succeeded "
1457                                "but was unable to open output file '%s': %s",
1458                                input_oat.c_str(), output_oat.c_str(), error_msg->c_str());
1459    }
1460  } else if (!Runtime::Current()->IsCompiler()) {
1461    // patchoat failed which means we probably don't have enough room to place the output oat file,
1462    // instead of failing we should just run the interpreter from the dex files in the input oat.
1463    LOG(WARNING) << "Patching of oat file '" << input_oat << "' failed. Attempting to use oat file "
1464                 << "for interpretation. patchoat failure was: " << *error_msg;
1465    return GetInterpretedOnlyOat(input_oat, isa, error_msg);
1466  } else {
1467    *error_msg = StringPrintf("Patching of oat file '%s to '%s' "
1468                              "failed: %s", input_oat.c_str(), output_oat.c_str(),
1469                              error_msg->c_str());
1470  }
1471  return nullptr;
1472}
1473
1474int32_t ClassLinker::GetRequiredDelta(const OatFile* oat_file, InstructionSet isa) {
1475  Runtime* runtime = Runtime::Current();
1476  int32_t real_patch_delta;
1477  const gc::space::ImageSpace* image_space = runtime->GetHeap()->GetImageSpace();
1478  CHECK(image_space != nullptr);
1479  if (isa == Runtime::Current()->GetInstructionSet()) {
1480    const ImageHeader& image_header = image_space->GetImageHeader();
1481    real_patch_delta = image_header.GetPatchDelta();
1482  } else {
1483    std::unique_ptr<ImageHeader> image_header(gc::space::ImageSpace::ReadImageHeaderOrDie(
1484        image_space->GetImageLocation().c_str(), isa));
1485    real_patch_delta = image_header->GetPatchDelta();
1486  }
1487  const OatHeader& oat_header = oat_file->GetOatHeader();
1488  return real_patch_delta - oat_header.GetImagePatchDelta();
1489}
1490
1491bool ClassLinker::CheckOatFile(const OatFile* oat_file, InstructionSet isa,
1492                               bool* checksum_verified,
1493                               std::string* error_msg) {
1494  std::string compound_msg("Oat file failed to verify: ");
1495  Runtime* runtime = Runtime::Current();
1496  uint32_t real_image_checksum;
1497  void* real_image_oat_offset;
1498  int32_t real_patch_delta;
1499  const gc::space::ImageSpace* image_space = runtime->GetHeap()->GetImageSpace();
1500  if (image_space == nullptr) {
1501    *error_msg = "No image space present";
1502    return false;
1503  }
1504  if (isa == Runtime::Current()->GetInstructionSet()) {
1505    const ImageHeader& image_header = image_space->GetImageHeader();
1506    real_image_checksum = image_header.GetOatChecksum();
1507    real_image_oat_offset = image_header.GetOatDataBegin();
1508    real_patch_delta = image_header.GetPatchDelta();
1509  } else {
1510    std::unique_ptr<ImageHeader> image_header(gc::space::ImageSpace::ReadImageHeaderOrDie(
1511        image_space->GetImageLocation().c_str(), isa));
1512    real_image_checksum = image_header->GetOatChecksum();
1513    real_image_oat_offset = image_header->GetOatDataBegin();
1514    real_patch_delta = image_header->GetPatchDelta();
1515  }
1516
1517  const OatHeader& oat_header = oat_file->GetOatHeader();
1518
1519  uint32_t oat_image_checksum = oat_header.GetImageFileLocationOatChecksum();
1520  *checksum_verified = oat_image_checksum == real_image_checksum;
1521  if (!*checksum_verified) {
1522    compound_msg += StringPrintf(" Oat Image Checksum Incorrect (expected 0x%x, recieved 0x%x)",
1523                                 real_image_checksum, oat_image_checksum);
1524  }
1525
1526  void* oat_image_oat_offset =
1527      reinterpret_cast<void*>(oat_header.GetImageFileLocationOatDataBegin());
1528  bool offset_verified = oat_image_oat_offset == real_image_oat_offset;
1529  if (!offset_verified) {
1530    compound_msg += StringPrintf(" Oat Image oat offset incorrect (expected 0x%p, recieved 0x%p)",
1531                                 real_image_oat_offset, oat_image_oat_offset);
1532  }
1533
1534  int32_t oat_patch_delta = oat_header.GetImagePatchDelta();
1535  bool patch_delta_verified = oat_patch_delta == real_patch_delta;
1536  if (!patch_delta_verified) {
1537    compound_msg += StringPrintf(" Oat image patch delta incorrect (expected 0x%x, recieved 0x%x)",
1538                                 real_patch_delta, oat_patch_delta);
1539  }
1540
1541  bool ret = (*checksum_verified && offset_verified && patch_delta_verified);
1542  if (ret) {
1543    *error_msg = compound_msg;
1544  }
1545  return ret;
1546}
1547
1548const OatFile* ClassLinker::FindOatFileFromOatLocation(const std::string& oat_location,
1549                                                       std::string* error_msg) {
1550  const OatFile* oat_file = FindOpenedOatFileFromOatLocation(oat_location);
1551  if (oat_file != nullptr) {
1552    return oat_file;
1553  }
1554
1555  oat_file = OatFile::Open(oat_location, oat_location, NULL, !Runtime::Current()->IsCompiler(),
1556                           error_msg);
1557  if (oat_file == NULL) {
1558    return NULL;
1559  }
1560  return oat_file;
1561}
1562
1563static void InitFromImageInterpretOnlyCallback(mirror::Object* obj, void* arg)
1564    SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
1565  ClassLinker* class_linker = reinterpret_cast<ClassLinker*>(arg);
1566
1567  DCHECK(obj != NULL);
1568  DCHECK(class_linker != NULL);
1569
1570  if (obj->IsArtMethod()) {
1571    mirror::ArtMethod* method = obj->AsArtMethod();
1572    if (!method->IsNative()) {
1573      method->SetEntryPointFromInterpreter(interpreter::artInterpreterToInterpreterBridge);
1574      if (method != Runtime::Current()->GetResolutionMethod()) {
1575        method->SetEntryPointFromQuickCompiledCode(GetQuickToInterpreterBridge());
1576        method->SetEntryPointFromPortableCompiledCode(GetPortableToInterpreterBridge());
1577      }
1578    }
1579  }
1580}
1581
1582void ClassLinker::InitFromImage() {
1583  VLOG(startup) << "ClassLinker::InitFromImage entering";
1584  CHECK(!init_done_);
1585
1586  Thread* self = Thread::Current();
1587  gc::Heap* heap = Runtime::Current()->GetHeap();
1588  gc::space::ImageSpace* space = heap->GetImageSpace();
1589  dex_cache_image_class_lookup_required_ = true;
1590  CHECK(space != NULL);
1591  OatFile& oat_file = GetImageOatFile(space);
1592  CHECK_EQ(oat_file.GetOatHeader().GetImageFileLocationOatChecksum(), 0U);
1593  CHECK_EQ(oat_file.GetOatHeader().GetImageFileLocationOatDataBegin(), 0U);
1594  const char* image_file_location = oat_file.GetOatHeader().
1595      GetStoreValueByKey(OatHeader::kImageLocationKey);
1596  CHECK(image_file_location == nullptr || *image_file_location == 0);
1597  portable_resolution_trampoline_ = oat_file.GetOatHeader().GetPortableResolutionTrampoline();
1598  quick_resolution_trampoline_ = oat_file.GetOatHeader().GetQuickResolutionTrampoline();
1599  portable_imt_conflict_trampoline_ = oat_file.GetOatHeader().GetPortableImtConflictTrampoline();
1600  quick_imt_conflict_trampoline_ = oat_file.GetOatHeader().GetQuickImtConflictTrampoline();
1601  quick_generic_jni_trampoline_ = oat_file.GetOatHeader().GetQuickGenericJniTrampoline();
1602  quick_to_interpreter_bridge_trampoline_ = oat_file.GetOatHeader().GetQuickToInterpreterBridge();
1603  mirror::Object* dex_caches_object = space->GetImageHeader().GetImageRoot(ImageHeader::kDexCaches);
1604  mirror::ObjectArray<mirror::DexCache>* dex_caches =
1605      dex_caches_object->AsObjectArray<mirror::DexCache>();
1606
1607  StackHandleScope<1> hs(self);
1608  Handle<mirror::ObjectArray<mirror::Class>> class_roots(hs.NewHandle(
1609          space->GetImageHeader().GetImageRoot(ImageHeader::kClassRoots)->
1610          AsObjectArray<mirror::Class>()));
1611  class_roots_ = GcRoot<mirror::ObjectArray<mirror::Class>>(class_roots.Get());
1612
1613  // Special case of setting up the String class early so that we can test arbitrary objects
1614  // as being Strings or not
1615  mirror::String::SetClass(GetClassRoot(kJavaLangString));
1616
1617  CHECK_EQ(oat_file.GetOatHeader().GetDexFileCount(),
1618           static_cast<uint32_t>(dex_caches->GetLength()));
1619  for (int32_t i = 0; i < dex_caches->GetLength(); i++) {
1620    StackHandleScope<1> hs(self);
1621    Handle<mirror::DexCache> dex_cache(hs.NewHandle(dex_caches->Get(i)));
1622    const std::string& dex_file_location(dex_cache->GetLocation()->ToModifiedUtf8());
1623    const OatFile::OatDexFile* oat_dex_file = oat_file.GetOatDexFile(dex_file_location.c_str(),
1624                                                                     nullptr);
1625    CHECK(oat_dex_file != NULL) << oat_file.GetLocation() << " " << dex_file_location;
1626    std::string error_msg;
1627    const DexFile* dex_file = oat_dex_file->OpenDexFile(&error_msg);
1628    if (dex_file == NULL) {
1629      LOG(FATAL) << "Failed to open dex file " << dex_file_location
1630                 << " from within oat file " << oat_file.GetLocation()
1631                 << " error '" << error_msg << "'";
1632    }
1633
1634    CHECK_EQ(dex_file->GetLocationChecksum(), oat_dex_file->GetDexFileLocationChecksum());
1635
1636    AppendToBootClassPath(*dex_file, dex_cache);
1637  }
1638
1639  // Set classes on AbstractMethod early so that IsMethod tests can be performed during the live
1640  // bitmap walk.
1641  mirror::ArtMethod::SetClass(GetClassRoot(kJavaLangReflectArtMethod));
1642
1643  // Set entry point to interpreter if in InterpretOnly mode.
1644  if (Runtime::Current()->GetInstrumentation()->InterpretOnly()) {
1645    ReaderMutexLock mu(self, *Locks::heap_bitmap_lock_);
1646    heap->VisitObjects(InitFromImageInterpretOnlyCallback, this);
1647  }
1648
1649  // reinit class_roots_
1650  mirror::Class::SetClassClass(class_roots->Get(kJavaLangClass));
1651  class_roots_ = GcRoot<mirror::ObjectArray<mirror::Class>>(class_roots.Get());
1652
1653  // reinit array_iftable_ from any array class instance, they should be ==
1654  array_iftable_ = GcRoot<mirror::IfTable>(GetClassRoot(kObjectArrayClass)->GetIfTable());
1655  DCHECK(array_iftable_.Read() == GetClassRoot(kBooleanArrayClass)->GetIfTable());
1656  // String class root was set above
1657  mirror::Reference::SetClass(GetClassRoot(kJavaLangRefReference));
1658  mirror::ArtField::SetClass(GetClassRoot(kJavaLangReflectArtField));
1659  mirror::BooleanArray::SetArrayClass(GetClassRoot(kBooleanArrayClass));
1660  mirror::ByteArray::SetArrayClass(GetClassRoot(kByteArrayClass));
1661  mirror::CharArray::SetArrayClass(GetClassRoot(kCharArrayClass));
1662  mirror::DoubleArray::SetArrayClass(GetClassRoot(kDoubleArrayClass));
1663  mirror::FloatArray::SetArrayClass(GetClassRoot(kFloatArrayClass));
1664  mirror::IntArray::SetArrayClass(GetClassRoot(kIntArrayClass));
1665  mirror::LongArray::SetArrayClass(GetClassRoot(kLongArrayClass));
1666  mirror::ShortArray::SetArrayClass(GetClassRoot(kShortArrayClass));
1667  mirror::Throwable::SetClass(GetClassRoot(kJavaLangThrowable));
1668  mirror::StackTraceElement::SetClass(GetClassRoot(kJavaLangStackTraceElement));
1669
1670  FinishInit(self);
1671
1672  VLOG(startup) << "ClassLinker::InitFromImage exiting";
1673}
1674
1675void ClassLinker::VisitClassRoots(RootCallback* callback, void* arg, VisitRootFlags flags) {
1676  WriterMutexLock mu(Thread::Current(), *Locks::classlinker_classes_lock_);
1677  if ((flags & kVisitRootFlagAllRoots) != 0) {
1678    for (std::pair<const size_t, GcRoot<mirror::Class> >& it : class_table_) {
1679      it.second.VisitRoot(callback, arg, 0, kRootStickyClass);
1680    }
1681  } else if ((flags & kVisitRootFlagNewRoots) != 0) {
1682    for (auto& pair : new_class_roots_) {
1683      mirror::Class* old_ref = pair.second.Read<kWithoutReadBarrier>();
1684      pair.second.VisitRoot(callback, arg, 0, kRootStickyClass);
1685      mirror::Class* new_ref = pair.second.Read<kWithoutReadBarrier>();
1686      if (UNLIKELY(new_ref != old_ref)) {
1687        // Uh ohes, GC moved a root in the log. Need to search the class_table and update the
1688        // corresponding object. This is slow, but luckily for us, this may only happen with a
1689        // concurrent moving GC.
1690        for (auto it = class_table_.lower_bound(pair.first), end = class_table_.end();
1691            it != end && it->first == pair.first; ++it) {
1692          // If the class stored matches the old class, update it to the new value.
1693          if (old_ref == it->second.Read<kWithoutReadBarrier>()) {
1694            it->second = GcRoot<mirror::Class>(new_ref);
1695          }
1696        }
1697      }
1698    }
1699  }
1700  if ((flags & kVisitRootFlagClearRootLog) != 0) {
1701    new_class_roots_.clear();
1702  }
1703  if ((flags & kVisitRootFlagStartLoggingNewRoots) != 0) {
1704    log_new_class_table_roots_ = true;
1705  } else if ((flags & kVisitRootFlagStopLoggingNewRoots) != 0) {
1706    log_new_class_table_roots_ = false;
1707  }
1708  // We deliberately ignore the class roots in the image since we
1709  // handle image roots by using the MS/CMS rescanning of dirty cards.
1710}
1711
1712// Keep in sync with InitCallback. Anything we visit, we need to
1713// reinit references to when reinitializing a ClassLinker from a
1714// mapped image.
1715void ClassLinker::VisitRoots(RootCallback* callback, void* arg, VisitRootFlags flags) {
1716  class_roots_.VisitRoot(callback, arg, 0, kRootVMInternal);
1717  Thread* self = Thread::Current();
1718  {
1719    ReaderMutexLock mu(self, dex_lock_);
1720    if ((flags & kVisitRootFlagAllRoots) != 0) {
1721      for (GcRoot<mirror::DexCache>& dex_cache : dex_caches_) {
1722        dex_cache.VisitRoot(callback, arg, 0, kRootVMInternal);
1723      }
1724    } else if ((flags & kVisitRootFlagNewRoots) != 0) {
1725      for (size_t index : new_dex_cache_roots_) {
1726        dex_caches_[index].VisitRoot(callback, arg, 0, kRootVMInternal);
1727      }
1728    }
1729    if ((flags & kVisitRootFlagClearRootLog) != 0) {
1730      new_dex_cache_roots_.clear();
1731    }
1732    if ((flags & kVisitRootFlagStartLoggingNewRoots) != 0) {
1733      log_new_dex_caches_roots_ = true;
1734    } else if ((flags & kVisitRootFlagStopLoggingNewRoots) != 0) {
1735      log_new_dex_caches_roots_ = false;
1736    }
1737  }
1738  VisitClassRoots(callback, arg, flags);
1739  array_iftable_.VisitRoot(callback, arg, 0, kRootVMInternal);
1740  DCHECK(!array_iftable_.IsNull());
1741  for (size_t i = 0; i < kFindArrayCacheSize; ++i) {
1742    if (!find_array_class_cache_[i].IsNull()) {
1743      find_array_class_cache_[i].VisitRoot(callback, arg, 0, kRootVMInternal);
1744    }
1745  }
1746}
1747
1748void ClassLinker::VisitClasses(ClassVisitor* visitor, void* arg) {
1749  if (dex_cache_image_class_lookup_required_) {
1750    MoveImageClassesToClassTable();
1751  }
1752  // TODO: why isn't this a ReaderMutexLock?
1753  WriterMutexLock mu(Thread::Current(), *Locks::classlinker_classes_lock_);
1754  for (std::pair<const size_t, GcRoot<mirror::Class> >& it : class_table_) {
1755    mirror::Class* c = it.second.Read();
1756    if (!visitor(c, arg)) {
1757      return;
1758    }
1759  }
1760}
1761
1762static bool GetClassesVisitorSet(mirror::Class* c, void* arg) {
1763  std::set<mirror::Class*>* classes = reinterpret_cast<std::set<mirror::Class*>*>(arg);
1764  classes->insert(c);
1765  return true;
1766}
1767
1768struct GetClassesVisitorArrayArg {
1769  Handle<mirror::ObjectArray<mirror::Class>>* classes;
1770  int32_t index;
1771  bool success;
1772};
1773
1774static bool GetClassesVisitorArray(mirror::Class* c, void* varg)
1775    SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
1776  GetClassesVisitorArrayArg* arg = reinterpret_cast<GetClassesVisitorArrayArg*>(varg);
1777  if (arg->index < (*arg->classes)->GetLength()) {
1778    (*arg->classes)->Set(arg->index, c);
1779    arg->index++;
1780    return true;
1781  } else {
1782    arg->success = false;
1783    return false;
1784  }
1785}
1786
1787void ClassLinker::VisitClassesWithoutClassesLock(ClassVisitor* visitor, void* arg) {
1788  // TODO: it may be possible to avoid secondary storage if we iterate over dex caches. The problem
1789  // is avoiding duplicates.
1790  if (!kMovingClasses) {
1791    std::set<mirror::Class*> classes;
1792    VisitClasses(GetClassesVisitorSet, &classes);
1793    for (mirror::Class* klass : classes) {
1794      if (!visitor(klass, arg)) {
1795        return;
1796      }
1797    }
1798  } else {
1799    Thread* self = Thread::Current();
1800    StackHandleScope<1> hs(self);
1801    Handle<mirror::ObjectArray<mirror::Class>> classes =
1802        hs.NewHandle<mirror::ObjectArray<mirror::Class>>(nullptr);
1803    GetClassesVisitorArrayArg local_arg;
1804    local_arg.classes = &classes;
1805    local_arg.success = false;
1806    // We size the array assuming classes won't be added to the class table during the visit.
1807    // If this assumption fails we iterate again.
1808    while (!local_arg.success) {
1809      size_t class_table_size;
1810      {
1811        ReaderMutexLock mu(Thread::Current(), *Locks::classlinker_classes_lock_);
1812        class_table_size = class_table_.size();
1813      }
1814      mirror::Class* class_type = mirror::Class::GetJavaLangClass();
1815      mirror::Class* array_of_class = FindArrayClass(self, &class_type);
1816      classes.Assign(
1817          mirror::ObjectArray<mirror::Class>::Alloc(self, array_of_class, class_table_size));
1818      CHECK(classes.Get() != nullptr);  // OOME.
1819      local_arg.index = 0;
1820      local_arg.success = true;
1821      VisitClasses(GetClassesVisitorArray, &local_arg);
1822    }
1823    for (int32_t i = 0; i < classes->GetLength(); ++i) {
1824      // If the class table shrank during creation of the clases array we expect null elements. If
1825      // the class table grew then the loop repeats. If classes are created after the loop has
1826      // finished then we don't visit.
1827      mirror::Class* klass = classes->Get(i);
1828      if (klass != nullptr && !visitor(klass, arg)) {
1829        return;
1830      }
1831    }
1832  }
1833}
1834
1835ClassLinker::~ClassLinker() {
1836  mirror::Class::ResetClass();
1837  mirror::String::ResetClass();
1838  mirror::Reference::ResetClass();
1839  mirror::ArtField::ResetClass();
1840  mirror::ArtMethod::ResetClass();
1841  mirror::BooleanArray::ResetArrayClass();
1842  mirror::ByteArray::ResetArrayClass();
1843  mirror::CharArray::ResetArrayClass();
1844  mirror::DoubleArray::ResetArrayClass();
1845  mirror::FloatArray::ResetArrayClass();
1846  mirror::IntArray::ResetArrayClass();
1847  mirror::LongArray::ResetArrayClass();
1848  mirror::ShortArray::ResetArrayClass();
1849  mirror::Throwable::ResetClass();
1850  mirror::StackTraceElement::ResetClass();
1851  STLDeleteElements(&boot_class_path_);
1852  STLDeleteElements(&oat_files_);
1853}
1854
1855mirror::DexCache* ClassLinker::AllocDexCache(Thread* self, const DexFile& dex_file) {
1856  gc::Heap* heap = Runtime::Current()->GetHeap();
1857  StackHandleScope<16> hs(self);
1858  Handle<mirror::Class> dex_cache_class(hs.NewHandle(GetClassRoot(kJavaLangDexCache)));
1859  Handle<mirror::DexCache> dex_cache(
1860      hs.NewHandle(down_cast<mirror::DexCache*>(
1861          heap->AllocObject<true>(self, dex_cache_class.Get(), dex_cache_class->GetObjectSize(),
1862                                  VoidFunctor()))));
1863  if (dex_cache.Get() == NULL) {
1864    return NULL;
1865  }
1866  Handle<mirror::String>
1867      location(hs.NewHandle(intern_table_->InternStrong(dex_file.GetLocation().c_str())));
1868  if (location.Get() == NULL) {
1869    return NULL;
1870  }
1871  Handle<mirror::ObjectArray<mirror::String>>
1872      strings(hs.NewHandle(AllocStringArray(self, dex_file.NumStringIds())));
1873  if (strings.Get() == NULL) {
1874    return NULL;
1875  }
1876  Handle<mirror::ObjectArray<mirror::Class>>
1877      types(hs.NewHandle(AllocClassArray(self, dex_file.NumTypeIds())));
1878  if (types.Get() == NULL) {
1879    return NULL;
1880  }
1881  Handle<mirror::ObjectArray<mirror::ArtMethod>>
1882      methods(hs.NewHandle(AllocArtMethodArray(self, dex_file.NumMethodIds())));
1883  if (methods.Get() == NULL) {
1884    return NULL;
1885  }
1886  Handle<mirror::ObjectArray<mirror::ArtField>>
1887      fields(hs.NewHandle(AllocArtFieldArray(self, dex_file.NumFieldIds())));
1888  if (fields.Get() == NULL) {
1889    return NULL;
1890  }
1891  dex_cache->Init(&dex_file, location.Get(), strings.Get(), types.Get(), methods.Get(),
1892                  fields.Get());
1893  return dex_cache.Get();
1894}
1895
1896mirror::Class* ClassLinker::AllocClass(Thread* self, mirror::Class* java_lang_Class,
1897                                       uint32_t class_size) {
1898  DCHECK_GE(class_size, sizeof(mirror::Class));
1899  gc::Heap* heap = Runtime::Current()->GetHeap();
1900  mirror::Class::InitializeClassVisitor visitor(class_size);
1901  mirror::Object* k = kMovingClasses ?
1902      heap->AllocObject<true>(self, java_lang_Class, class_size, visitor) :
1903      heap->AllocNonMovableObject<true>(self, java_lang_Class, class_size, visitor);
1904  if (UNLIKELY(k == nullptr)) {
1905    CHECK(self->IsExceptionPending());  // OOME.
1906    return nullptr;
1907  }
1908  return k->AsClass();
1909}
1910
1911mirror::Class* ClassLinker::AllocClass(Thread* self, uint32_t class_size) {
1912  return AllocClass(self, GetClassRoot(kJavaLangClass), class_size);
1913}
1914
1915mirror::ArtField* ClassLinker::AllocArtField(Thread* self) {
1916  return down_cast<mirror::ArtField*>(
1917      GetClassRoot(kJavaLangReflectArtField)->AllocNonMovableObject(self));
1918}
1919
1920mirror::ArtMethod* ClassLinker::AllocArtMethod(Thread* self) {
1921  return down_cast<mirror::ArtMethod*>(
1922      GetClassRoot(kJavaLangReflectArtMethod)->AllocNonMovableObject(self));
1923}
1924
1925mirror::ObjectArray<mirror::StackTraceElement>* ClassLinker::AllocStackTraceElementArray(
1926    Thread* self, size_t length) {
1927  return mirror::ObjectArray<mirror::StackTraceElement>::Alloc(
1928      self, GetClassRoot(kJavaLangStackTraceElementArrayClass), length);
1929}
1930
1931mirror::Class* ClassLinker::EnsureResolved(Thread* self, const char* descriptor,
1932                                           mirror::Class* klass) {
1933  DCHECK(klass != NULL);
1934
1935  // For temporary classes we must wait for them to be retired.
1936  if (init_done_ && klass->IsTemp()) {
1937    CHECK(!klass->IsResolved());
1938    if (klass->IsErroneous()) {
1939      ThrowEarlierClassFailure(klass);
1940      return nullptr;
1941    }
1942    StackHandleScope<1> hs(self);
1943    Handle<mirror::Class> h_class(hs.NewHandle(klass));
1944    ObjectLock<mirror::Class> lock(self, h_class);
1945    // Loop and wait for the resolving thread to retire this class.
1946    while (!h_class->IsRetired() && !h_class->IsErroneous()) {
1947      lock.WaitIgnoringInterrupts();
1948    }
1949    if (h_class->IsErroneous()) {
1950      ThrowEarlierClassFailure(h_class.Get());
1951      return nullptr;
1952    }
1953    CHECK(h_class->IsRetired());
1954    // Get the updated class from class table.
1955    klass = LookupClass(descriptor, h_class.Get()->GetClassLoader());
1956  }
1957
1958  // Wait for the class if it has not already been linked.
1959  if (!klass->IsResolved() && !klass->IsErroneous()) {
1960    StackHandleScope<1> hs(self);
1961    HandleWrapper<mirror::Class> h_class(hs.NewHandleWrapper(&klass));
1962    ObjectLock<mirror::Class> lock(self, h_class);
1963    // Check for circular dependencies between classes.
1964    if (!h_class->IsResolved() && h_class->GetClinitThreadId() == self->GetTid()) {
1965      ThrowClassCircularityError(h_class.Get());
1966      h_class->SetStatus(mirror::Class::kStatusError, self);
1967      return nullptr;
1968    }
1969    // Wait for the pending initialization to complete.
1970    while (!h_class->IsResolved() && !h_class->IsErroneous()) {
1971      lock.WaitIgnoringInterrupts();
1972    }
1973  }
1974
1975  if (klass->IsErroneous()) {
1976    ThrowEarlierClassFailure(klass);
1977    return nullptr;
1978  }
1979  // Return the loaded class.  No exceptions should be pending.
1980  CHECK(klass->IsResolved()) << PrettyClass(klass);
1981  self->AssertNoPendingException();
1982  return klass;
1983}
1984
1985typedef std::pair<const DexFile*, const DexFile::ClassDef*> ClassPathEntry;
1986
1987// Search a collection of DexFiles for a descriptor
1988ClassPathEntry FindInClassPath(const char* descriptor,
1989                               const std::vector<const DexFile*>& class_path) {
1990  for (size_t i = 0; i != class_path.size(); ++i) {
1991    const DexFile* dex_file = class_path[i];
1992    const DexFile::ClassDef* dex_class_def = dex_file->FindClassDef(descriptor);
1993    if (dex_class_def != NULL) {
1994      return ClassPathEntry(dex_file, dex_class_def);
1995    }
1996  }
1997  // TODO: remove reinterpret_cast when issue with -std=gnu++0x host issue resolved
1998  return ClassPathEntry(reinterpret_cast<const DexFile*>(NULL),
1999                        reinterpret_cast<const DexFile::ClassDef*>(NULL));
2000}
2001
2002mirror::Class* ClassLinker::FindClassInPathClassLoader(ScopedObjectAccessAlreadyRunnable& soa,
2003                                                       Thread* self, const char* descriptor,
2004                                                       Handle<mirror::ClassLoader> class_loader) {
2005  if (class_loader->GetClass() !=
2006      soa.Decode<mirror::Class*>(WellKnownClasses::dalvik_system_PathClassLoader) ||
2007      class_loader->GetParent()->GetClass() !=
2008          soa.Decode<mirror::Class*>(WellKnownClasses::java_lang_BootClassLoader)) {
2009    return nullptr;
2010  }
2011  ClassPathEntry pair = FindInClassPath(descriptor, boot_class_path_);
2012  // Check if this would be found in the parent boot class loader.
2013  if (pair.second != nullptr) {
2014    mirror::Class* klass = LookupClass(descriptor, nullptr);
2015    if (klass != nullptr) {
2016      return EnsureResolved(self, descriptor, klass);
2017    }
2018    klass = DefineClass(descriptor, NullHandle<mirror::ClassLoader>(), *pair.first,
2019                        *pair.second);
2020    if (klass != nullptr) {
2021      return klass;
2022    }
2023    CHECK(self->IsExceptionPending()) << descriptor;
2024    self->ClearException();
2025  } else {
2026    // RegisterDexFile may allocate dex caches (and cause thread suspension).
2027    StackHandleScope<3> hs(self);
2028    // The class loader is a PathClassLoader which inherits from BaseDexClassLoader.
2029    // We need to get the DexPathList and loop through it.
2030    Handle<mirror::ArtField> cookie_field =
2031        hs.NewHandle(soa.DecodeField(WellKnownClasses::dalvik_system_DexFile_cookie));
2032    Handle<mirror::ArtField> dex_file_field =
2033        hs.NewHandle(
2034            soa.DecodeField(WellKnownClasses::dalvik_system_DexPathList$Element_dexFile));
2035    mirror::Object* dex_path_list =
2036        soa.DecodeField(WellKnownClasses::dalvik_system_PathClassLoader_pathList)->
2037        GetObject(class_loader.Get());
2038    if (dex_path_list != nullptr && dex_file_field.Get() != nullptr &&
2039        cookie_field.Get() != nullptr) {
2040      // DexPathList has an array dexElements of Elements[] which each contain a dex file.
2041      mirror::Object* dex_elements_obj =
2042          soa.DecodeField(WellKnownClasses::dalvik_system_DexPathList_dexElements)->
2043          GetObject(dex_path_list);
2044      // Loop through each dalvik.system.DexPathList$Element's dalvik.system.DexFile and look
2045      // at the mCookie which is a DexFile vector.
2046      if (dex_elements_obj != nullptr) {
2047        Handle<mirror::ObjectArray<mirror::Object>> dex_elements =
2048            hs.NewHandle(dex_elements_obj->AsObjectArray<mirror::Object>());
2049        for (int32_t i = 0; i < dex_elements->GetLength(); ++i) {
2050          mirror::Object* element = dex_elements->GetWithoutChecks(i);
2051          if (element == nullptr) {
2052            // Should never happen, fall back to java code to throw a NPE.
2053            break;
2054          }
2055          mirror::Object* dex_file = dex_file_field->GetObject(element);
2056          if (dex_file != nullptr) {
2057            const uint64_t cookie = cookie_field->GetLong(dex_file);
2058            auto* dex_files =
2059                reinterpret_cast<std::vector<const DexFile*>*>(static_cast<uintptr_t>(cookie));
2060            if (dex_files == nullptr) {
2061              // This should never happen so log a warning.
2062              LOG(WARNING) << "Null DexFile::mCookie for " << descriptor;
2063              break;
2064            }
2065            for (const DexFile* dex_file : *dex_files) {
2066              const DexFile::ClassDef* dex_class_def = dex_file->FindClassDef(descriptor);
2067              if (dex_class_def != nullptr) {
2068                RegisterDexFile(*dex_file);
2069                mirror::Class* klass =
2070                    DefineClass(descriptor, class_loader, *dex_file, *dex_class_def);
2071                if (klass == nullptr) {
2072                  CHECK(self->IsExceptionPending()) << descriptor;
2073                  self->ClearException();
2074                  return nullptr;
2075                }
2076                return klass;
2077              }
2078            }
2079          }
2080        }
2081      }
2082    }
2083  }
2084  return nullptr;
2085}
2086
2087mirror::Class* ClassLinker::FindClass(Thread* self, const char* descriptor,
2088                                      Handle<mirror::ClassLoader> class_loader) {
2089  DCHECK_NE(*descriptor, '\0') << "descriptor is empty string";
2090  DCHECK(self != nullptr);
2091  self->AssertNoPendingException();
2092  if (descriptor[1] == '\0') {
2093    // only the descriptors of primitive types should be 1 character long, also avoid class lookup
2094    // for primitive classes that aren't backed by dex files.
2095    return FindPrimitiveClass(descriptor[0]);
2096  }
2097  // Find the class in the loaded classes table.
2098  mirror::Class* klass = LookupClass(descriptor, class_loader.Get());
2099  if (klass != nullptr) {
2100    return EnsureResolved(self, descriptor, klass);
2101  }
2102  // Class is not yet loaded.
2103  if (descriptor[0] == '[') {
2104    return CreateArrayClass(self, descriptor, class_loader);
2105  } else if (class_loader.Get() == nullptr) {
2106    // The boot class loader, search the boot class path.
2107    ClassPathEntry pair = FindInClassPath(descriptor, boot_class_path_);
2108    if (pair.second != nullptr) {
2109      return DefineClass(descriptor, NullHandle<mirror::ClassLoader>(), *pair.first, *pair.second);
2110    } else {
2111      // The boot class loader is searched ahead of the application class loader, failures are
2112      // expected and will be wrapped in a ClassNotFoundException. Use the pre-allocated error to
2113      // trigger the chaining with a proper stack trace.
2114      mirror::Throwable* pre_allocated = Runtime::Current()->GetPreAllocatedNoClassDefFoundError();
2115      self->SetException(ThrowLocation(), pre_allocated);
2116      return nullptr;
2117    }
2118  } else if (Runtime::Current()->UseCompileTimeClassPath()) {
2119    // First try with the bootstrap class loader.
2120    if (class_loader.Get() != nullptr) {
2121      klass = LookupClass(descriptor, nullptr);
2122      if (klass != nullptr) {
2123        return EnsureResolved(self, descriptor, klass);
2124      }
2125    }
2126    // If the lookup failed search the boot class path. We don't perform a recursive call to avoid
2127    // a NoClassDefFoundError being allocated.
2128    ClassPathEntry pair = FindInClassPath(descriptor, boot_class_path_);
2129    if (pair.second != nullptr) {
2130      return DefineClass(descriptor, NullHandle<mirror::ClassLoader>(), *pair.first, *pair.second);
2131    }
2132    // Next try the compile time class path.
2133    const std::vector<const DexFile*>* class_path;
2134    {
2135      ScopedObjectAccessUnchecked soa(self);
2136      ScopedLocalRef<jobject> jclass_loader(soa.Env(),
2137                                            soa.AddLocalReference<jobject>(class_loader.Get()));
2138      class_path = &Runtime::Current()->GetCompileTimeClassPath(jclass_loader.get());
2139    }
2140    pair = FindInClassPath(descriptor, *class_path);
2141    if (pair.second != nullptr) {
2142      return DefineClass(descriptor, class_loader, *pair.first, *pair.second);
2143    }
2144  } else {
2145    ScopedObjectAccessUnchecked soa(self);
2146    mirror::Class* klass = FindClassInPathClassLoader(soa, self, descriptor, class_loader);
2147    if (klass != nullptr) {
2148      return klass;
2149    }
2150    ScopedLocalRef<jobject> class_loader_object(soa.Env(),
2151                                                soa.AddLocalReference<jobject>(class_loader.Get()));
2152    std::string class_name_string(DescriptorToDot(descriptor));
2153    ScopedLocalRef<jobject> result(soa.Env(), nullptr);
2154    {
2155      ScopedThreadStateChange tsc(self, kNative);
2156      ScopedLocalRef<jobject> class_name_object(soa.Env(),
2157                                                soa.Env()->NewStringUTF(class_name_string.c_str()));
2158      if (class_name_object.get() == nullptr) {
2159        DCHECK(self->IsExceptionPending());  // OOME.
2160        return nullptr;
2161      }
2162      CHECK(class_loader_object.get() != nullptr);
2163      result.reset(soa.Env()->CallObjectMethod(class_loader_object.get(),
2164                                               WellKnownClasses::java_lang_ClassLoader_loadClass,
2165                                               class_name_object.get()));
2166    }
2167    if (self->IsExceptionPending()) {
2168      // If the ClassLoader threw, pass that exception up.
2169      return nullptr;
2170    } else if (result.get() == nullptr) {
2171      // broken loader - throw NPE to be compatible with Dalvik
2172      ThrowNullPointerException(nullptr, StringPrintf("ClassLoader.loadClass returned null for %s",
2173                                                      class_name_string.c_str()).c_str());
2174      return nullptr;
2175    } else {
2176      // success, return mirror::Class*
2177      return soa.Decode<mirror::Class*>(result.get());
2178    }
2179  }
2180
2181  ThrowNoClassDefFoundError("Class %s not found", PrintableString(descriptor).c_str());
2182  return nullptr;
2183}
2184
2185mirror::Class* ClassLinker::DefineClass(const char* descriptor,
2186                                        Handle<mirror::ClassLoader> class_loader,
2187                                        const DexFile& dex_file,
2188                                        const DexFile::ClassDef& dex_class_def) {
2189  Thread* self = Thread::Current();
2190  StackHandleScope<3> hs(self);
2191  auto klass = hs.NewHandle<mirror::Class>(nullptr);
2192  bool should_allocate = false;
2193
2194  // Load the class from the dex file.
2195  if (UNLIKELY(!init_done_)) {
2196    // finish up init of hand crafted class_roots_
2197    if (strcmp(descriptor, "Ljava/lang/Object;") == 0) {
2198      klass.Assign(GetClassRoot(kJavaLangObject));
2199    } else if (strcmp(descriptor, "Ljava/lang/Class;") == 0) {
2200      klass.Assign(GetClassRoot(kJavaLangClass));
2201    } else if (strcmp(descriptor, "Ljava/lang/String;") == 0) {
2202      klass.Assign(GetClassRoot(kJavaLangString));
2203    } else if (strcmp(descriptor, "Ljava/lang/ref/Reference;") == 0) {
2204      klass.Assign(GetClassRoot(kJavaLangRefReference));
2205    } else if (strcmp(descriptor, "Ljava/lang/DexCache;") == 0) {
2206      klass.Assign(GetClassRoot(kJavaLangDexCache));
2207    } else if (strcmp(descriptor, "Ljava/lang/reflect/ArtField;") == 0) {
2208      klass.Assign(GetClassRoot(kJavaLangReflectArtField));
2209    } else if (strcmp(descriptor, "Ljava/lang/reflect/ArtMethod;") == 0) {
2210      klass.Assign(GetClassRoot(kJavaLangReflectArtMethod));
2211    } else {
2212      should_allocate = true;
2213    }
2214  } else {
2215    should_allocate = true;
2216  }
2217
2218  if (should_allocate) {
2219    // Allocate a class with the status of not ready.
2220    // Interface object should get the right size here. Regular class will
2221    // figure out the right size later and be replaced with one of the right
2222    // size when the class becomes resolved.
2223    klass.Assign(AllocClass(self, SizeOfClassWithoutEmbeddedTables(dex_file, dex_class_def)));
2224  }
2225  if (UNLIKELY(klass.Get() == nullptr)) {
2226    CHECK(self->IsExceptionPending());  // Expect an OOME.
2227    return nullptr;
2228  }
2229  klass->SetDexCache(FindDexCache(dex_file));
2230  LoadClass(dex_file, dex_class_def, klass, class_loader.Get());
2231  ObjectLock<mirror::Class> lock(self, klass);
2232  if (self->IsExceptionPending()) {
2233    // An exception occured during load, set status to erroneous while holding klass' lock in case
2234    // notification is necessary.
2235    if (!klass->IsErroneous()) {
2236      klass->SetStatus(mirror::Class::kStatusError, self);
2237    }
2238    return nullptr;
2239  }
2240  klass->SetClinitThreadId(self->GetTid());
2241
2242  // Add the newly loaded class to the loaded classes table.
2243  mirror::Class* existing = InsertClass(descriptor, klass.Get(), Hash(descriptor));
2244  if (existing != nullptr) {
2245    // We failed to insert because we raced with another thread. Calling EnsureResolved may cause
2246    // this thread to block.
2247    return EnsureResolved(self, descriptor, existing);
2248  }
2249
2250  // Finish loading (if necessary) by finding parents
2251  CHECK(!klass->IsLoaded());
2252  if (!LoadSuperAndInterfaces(klass, dex_file)) {
2253    // Loading failed.
2254    if (!klass->IsErroneous()) {
2255      klass->SetStatus(mirror::Class::kStatusError, self);
2256    }
2257    return nullptr;
2258  }
2259  CHECK(klass->IsLoaded());
2260  // Link the class (if necessary)
2261  CHECK(!klass->IsResolved());
2262  // TODO: Use fast jobjects?
2263  auto interfaces = hs.NewHandle<mirror::ObjectArray<mirror::Class>>(nullptr);
2264
2265  mirror::Class* new_class = nullptr;
2266  if (!LinkClass(self, descriptor, klass, interfaces, &new_class)) {
2267    // Linking failed.
2268    if (!klass->IsErroneous()) {
2269      klass->SetStatus(mirror::Class::kStatusError, self);
2270    }
2271    return nullptr;
2272  }
2273  self->AssertNoPendingException();
2274  CHECK(new_class != nullptr) << descriptor;
2275  CHECK(new_class->IsResolved()) << descriptor;
2276
2277  Handle<mirror::Class> new_class_h(hs.NewHandle(new_class));
2278
2279  /*
2280   * We send CLASS_PREPARE events to the debugger from here.  The
2281   * definition of "preparation" is creating the static fields for a
2282   * class and initializing them to the standard default values, but not
2283   * executing any code (that comes later, during "initialization").
2284   *
2285   * We did the static preparation in LinkClass.
2286   *
2287   * The class has been prepared and resolved but possibly not yet verified
2288   * at this point.
2289   */
2290  Dbg::PostClassPrepare(new_class_h.Get());
2291
2292  return new_class_h.Get();
2293}
2294
2295uint32_t ClassLinker::SizeOfClassWithoutEmbeddedTables(const DexFile& dex_file,
2296                                                       const DexFile::ClassDef& dex_class_def) {
2297  const byte* class_data = dex_file.GetClassData(dex_class_def);
2298  size_t num_ref = 0;
2299  size_t num_32 = 0;
2300  size_t num_64 = 0;
2301  if (class_data != NULL) {
2302    for (ClassDataItemIterator it(dex_file, class_data); it.HasNextStaticField(); it.Next()) {
2303      const DexFile::FieldId& field_id = dex_file.GetFieldId(it.GetMemberIndex());
2304      const char* descriptor = dex_file.GetFieldTypeDescriptor(field_id);
2305      char c = descriptor[0];
2306      if (c == 'L' || c == '[') {
2307        num_ref++;
2308      } else if (c == 'J' || c == 'D') {
2309        num_64++;
2310      } else {
2311        num_32++;
2312      }
2313    }
2314  }
2315  return mirror::Class::ComputeClassSize(false, 0, num_32, num_64, num_ref);
2316}
2317
2318bool ClassLinker::FindOatClass(const DexFile& dex_file,
2319                               uint16_t class_def_idx,
2320                               OatFile::OatClass* oat_class) {
2321  DCHECK(oat_class != nullptr);
2322  DCHECK_NE(class_def_idx, DexFile::kDexNoIndex16);
2323  const OatFile::OatDexFile* oat_dex_file = FindOpenedOatDexFileForDexFile(dex_file);
2324  if (oat_dex_file == nullptr) {
2325    return false;
2326  }
2327  *oat_class = oat_dex_file->GetOatClass(class_def_idx);
2328  return true;
2329}
2330
2331static uint32_t GetOatMethodIndexFromMethodIndex(const DexFile& dex_file, uint16_t class_def_idx,
2332                                                 uint32_t method_idx) {
2333  const DexFile::ClassDef& class_def = dex_file.GetClassDef(class_def_idx);
2334  const byte* class_data = dex_file.GetClassData(class_def);
2335  CHECK(class_data != NULL);
2336  ClassDataItemIterator it(dex_file, class_data);
2337  // Skip fields
2338  while (it.HasNextStaticField()) {
2339    it.Next();
2340  }
2341  while (it.HasNextInstanceField()) {
2342    it.Next();
2343  }
2344  // Process methods
2345  size_t class_def_method_index = 0;
2346  while (it.HasNextDirectMethod()) {
2347    if (it.GetMemberIndex() == method_idx) {
2348      return class_def_method_index;
2349    }
2350    class_def_method_index++;
2351    it.Next();
2352  }
2353  while (it.HasNextVirtualMethod()) {
2354    if (it.GetMemberIndex() == method_idx) {
2355      return class_def_method_index;
2356    }
2357    class_def_method_index++;
2358    it.Next();
2359  }
2360  DCHECK(!it.HasNext());
2361  LOG(FATAL) << "Failed to find method index " << method_idx << " in " << dex_file.GetLocation();
2362  return 0;
2363}
2364
2365bool ClassLinker::FindOatMethodFor(mirror::ArtMethod* method, OatFile::OatMethod* oat_method) {
2366  DCHECK(oat_method != nullptr);
2367  // Although we overwrite the trampoline of non-static methods, we may get here via the resolution
2368  // method for direct methods (or virtual methods made direct).
2369  mirror::Class* declaring_class = method->GetDeclaringClass();
2370  size_t oat_method_index;
2371  if (method->IsStatic() || method->IsDirect()) {
2372    // Simple case where the oat method index was stashed at load time.
2373    oat_method_index = method->GetMethodIndex();
2374  } else {
2375    // We're invoking a virtual method directly (thanks to sharpening), compute the oat_method_index
2376    // by search for its position in the declared virtual methods.
2377    oat_method_index = declaring_class->NumDirectMethods();
2378    size_t end = declaring_class->NumVirtualMethods();
2379    bool found = false;
2380    for (size_t i = 0; i < end; i++) {
2381      // Check method index instead of identity in case of duplicate method definitions.
2382      if (method->GetDexMethodIndex() ==
2383          declaring_class->GetVirtualMethod(i)->GetDexMethodIndex()) {
2384        found = true;
2385        break;
2386      }
2387      oat_method_index++;
2388    }
2389    CHECK(found) << "Didn't find oat method index for virtual method: " << PrettyMethod(method);
2390  }
2391  DCHECK_EQ(oat_method_index,
2392            GetOatMethodIndexFromMethodIndex(*declaring_class->GetDexCache()->GetDexFile(),
2393                                             method->GetDeclaringClass()->GetDexClassDefIndex(),
2394                                             method->GetDexMethodIndex()));
2395  OatFile::OatClass oat_class;
2396  if (!FindOatClass(*declaring_class->GetDexCache()->GetDexFile(),
2397                    declaring_class->GetDexClassDefIndex(),
2398                    &oat_class)) {
2399    return false;
2400  }
2401
2402  *oat_method = oat_class.GetOatMethod(oat_method_index);
2403  return true;
2404}
2405
2406// Special case to get oat code without overwriting a trampoline.
2407const void* ClassLinker::GetQuickOatCodeFor(mirror::ArtMethod* method) {
2408  CHECK(!method->IsAbstract()) << PrettyMethod(method);
2409  if (method->IsProxyMethod()) {
2410    return GetQuickProxyInvokeHandler();
2411  }
2412  OatFile::OatMethod oat_method;
2413  const void* result = nullptr;
2414  if (FindOatMethodFor(method, &oat_method)) {
2415    result = oat_method.GetQuickCode();
2416  }
2417
2418  if (result == nullptr) {
2419    if (method->IsNative()) {
2420      // No code and native? Use generic trampoline.
2421      result = GetQuickGenericJniTrampoline();
2422    } else if (method->IsPortableCompiled()) {
2423      // No code? Do we expect portable code?
2424      result = GetQuickToPortableBridge();
2425    } else {
2426      // No code? You must mean to go into the interpreter.
2427      result = GetQuickToInterpreterBridge();
2428    }
2429  }
2430  return result;
2431}
2432
2433const void* ClassLinker::GetPortableOatCodeFor(mirror::ArtMethod* method,
2434                                               bool* have_portable_code) {
2435  CHECK(!method->IsAbstract()) << PrettyMethod(method);
2436  *have_portable_code = false;
2437  if (method->IsProxyMethod()) {
2438    return GetPortableProxyInvokeHandler();
2439  }
2440  OatFile::OatMethod oat_method;
2441  const void* result = nullptr;
2442  const void* quick_code = nullptr;
2443  if (FindOatMethodFor(method, &oat_method)) {
2444    result = oat_method.GetPortableCode();
2445    quick_code = oat_method.GetQuickCode();
2446  }
2447
2448  if (result == nullptr) {
2449    if (quick_code == nullptr) {
2450      // No code? You must mean to go into the interpreter.
2451      result = GetPortableToInterpreterBridge();
2452    } else {
2453      // No code? But there's quick code, so use a bridge.
2454      result = GetPortableToQuickBridge();
2455    }
2456  } else {
2457    *have_portable_code = true;
2458  }
2459  return result;
2460}
2461
2462const void* ClassLinker::GetQuickOatCodeFor(const DexFile& dex_file, uint16_t class_def_idx,
2463                                            uint32_t method_idx) {
2464  OatFile::OatClass oat_class;
2465  if (!FindOatClass(dex_file, class_def_idx, &oat_class)) {
2466    return nullptr;
2467  }
2468  uint32_t oat_method_idx = GetOatMethodIndexFromMethodIndex(dex_file, class_def_idx, method_idx);
2469  return oat_class.GetOatMethod(oat_method_idx).GetQuickCode();
2470}
2471
2472const void* ClassLinker::GetPortableOatCodeFor(const DexFile& dex_file, uint16_t class_def_idx,
2473                                               uint32_t method_idx) {
2474  OatFile::OatClass oat_class;
2475  if (!FindOatClass(dex_file, class_def_idx, &oat_class)) {
2476    return nullptr;
2477  }
2478  uint32_t oat_method_idx = GetOatMethodIndexFromMethodIndex(dex_file, class_def_idx, method_idx);
2479  return oat_class.GetOatMethod(oat_method_idx).GetPortableCode();
2480}
2481
2482// Returns true if the method must run with interpreter, false otherwise.
2483static bool NeedsInterpreter(
2484    mirror::ArtMethod* method, const void* quick_code, const void* portable_code)
2485    SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
2486  if ((quick_code == nullptr) && (portable_code == nullptr)) {
2487    // No code: need interpreter.
2488    // May return true for native code, in the case of generic JNI
2489    // DCHECK(!method->IsNative());
2490    return true;
2491  }
2492#ifdef ART_SEA_IR_MODE
2493  ScopedObjectAccess soa(Thread::Current());
2494  if (std::string::npos != PrettyMethod(method).find("fibonacci")) {
2495    LOG(INFO) << "Found " << PrettyMethod(method);
2496    return false;
2497  }
2498#endif
2499  // If interpreter mode is enabled, every method (except native and proxy) must
2500  // be run with interpreter.
2501  return Runtime::Current()->GetInstrumentation()->InterpretOnly() &&
2502         !method->IsNative() && !method->IsProxyMethod();
2503}
2504
2505void ClassLinker::FixupStaticTrampolines(mirror::Class* klass) {
2506  DCHECK(klass->IsInitialized()) << PrettyDescriptor(klass);
2507  if (klass->NumDirectMethods() == 0) {
2508    return;  // No direct methods => no static methods.
2509  }
2510  Runtime* runtime = Runtime::Current();
2511  if (!runtime->IsStarted() || runtime->UseCompileTimeClassPath()) {
2512    if (runtime->IsCompiler() || runtime->GetHeap()->HasImageSpace()) {
2513      return;  // OAT file unavailable.
2514    }
2515  }
2516
2517  const DexFile& dex_file = klass->GetDexFile();
2518  const DexFile::ClassDef* dex_class_def = klass->GetClassDef();
2519  CHECK(dex_class_def != nullptr);
2520  const byte* class_data = dex_file.GetClassData(*dex_class_def);
2521  // There should always be class data if there were direct methods.
2522  CHECK(class_data != nullptr) << PrettyDescriptor(klass);
2523  ClassDataItemIterator it(dex_file, class_data);
2524  // Skip fields
2525  while (it.HasNextStaticField()) {
2526    it.Next();
2527  }
2528  while (it.HasNextInstanceField()) {
2529    it.Next();
2530  }
2531  OatFile::OatClass oat_class;
2532  bool has_oat_class = FindOatClass(dex_file, klass->GetDexClassDefIndex(), &oat_class);
2533  // Link the code of methods skipped by LinkCode.
2534  for (size_t method_index = 0; it.HasNextDirectMethod(); ++method_index, it.Next()) {
2535    mirror::ArtMethod* method = klass->GetDirectMethod(method_index);
2536    if (!method->IsStatic()) {
2537      // Only update static methods.
2538      continue;
2539    }
2540    const void* portable_code = nullptr;
2541    const void* quick_code = nullptr;
2542    if (has_oat_class) {
2543      OatFile::OatMethod oat_method = oat_class.GetOatMethod(method_index);
2544      portable_code = oat_method.GetPortableCode();
2545      quick_code = oat_method.GetQuickCode();
2546    }
2547    const bool enter_interpreter = NeedsInterpreter(method, quick_code, portable_code);
2548    bool have_portable_code = false;
2549    if (enter_interpreter) {
2550      // Use interpreter entry point.
2551      // Check whether the method is native, in which case it's generic JNI.
2552      if (quick_code == nullptr && portable_code == nullptr && method->IsNative()) {
2553        quick_code = GetQuickGenericJniTrampoline();
2554        portable_code = GetPortableToQuickBridge();
2555      } else {
2556        portable_code = GetPortableToInterpreterBridge();
2557        quick_code = GetQuickToInterpreterBridge();
2558      }
2559    } else {
2560      if (portable_code == nullptr) {
2561        portable_code = GetPortableToQuickBridge();
2562      } else {
2563        have_portable_code = true;
2564      }
2565      if (quick_code == nullptr) {
2566        quick_code = GetQuickToPortableBridge();
2567      }
2568    }
2569    runtime->GetInstrumentation()->UpdateMethodsCode(method, quick_code, portable_code,
2570                                                     have_portable_code);
2571  }
2572  // Ignore virtual methods on the iterator.
2573}
2574
2575void ClassLinker::LinkCode(Handle<mirror::ArtMethod> method, const OatFile::OatClass* oat_class,
2576                           const DexFile& dex_file, uint32_t dex_method_index,
2577                           uint32_t method_index) {
2578  if (Runtime::Current()->IsCompiler()) {
2579    // The following code only applies to a non-compiler runtime.
2580    return;
2581  }
2582  // Method shouldn't have already been linked.
2583  DCHECK(method->GetEntryPointFromQuickCompiledCode() == nullptr);
2584  DCHECK(method->GetEntryPointFromPortableCompiledCode() == nullptr);
2585  if (oat_class != nullptr) {
2586    // Every kind of method should at least get an invoke stub from the oat_method.
2587    // non-abstract methods also get their code pointers.
2588    const OatFile::OatMethod oat_method = oat_class->GetOatMethod(method_index);
2589    oat_method.LinkMethod(method.Get());
2590  }
2591
2592  // Install entry point from interpreter.
2593  bool enter_interpreter = NeedsInterpreter(method.Get(),
2594                                            method->GetEntryPointFromQuickCompiledCode(),
2595                                            method->GetEntryPointFromPortableCompiledCode());
2596  if (enter_interpreter && !method->IsNative()) {
2597    method->SetEntryPointFromInterpreter(interpreter::artInterpreterToInterpreterBridge);
2598  } else {
2599    method->SetEntryPointFromInterpreter(artInterpreterToCompiledCodeBridge);
2600  }
2601
2602  if (method->IsAbstract()) {
2603    method->SetEntryPointFromQuickCompiledCode(GetQuickToInterpreterBridge());
2604    method->SetEntryPointFromPortableCompiledCode(GetPortableToInterpreterBridge());
2605    return;
2606  }
2607
2608  bool have_portable_code = false;
2609  if (method->IsStatic() && !method->IsConstructor()) {
2610    // For static methods excluding the class initializer, install the trampoline.
2611    // It will be replaced by the proper entry point by ClassLinker::FixupStaticTrampolines
2612    // after initializing class (see ClassLinker::InitializeClass method).
2613    method->SetEntryPointFromQuickCompiledCode(GetQuickResolutionTrampoline());
2614    method->SetEntryPointFromPortableCompiledCode(GetPortableResolutionTrampoline());
2615  } else if (enter_interpreter) {
2616    if (!method->IsNative()) {
2617      // Set entry point from compiled code if there's no code or in interpreter only mode.
2618      method->SetEntryPointFromQuickCompiledCode(GetQuickToInterpreterBridge());
2619      method->SetEntryPointFromPortableCompiledCode(GetPortableToInterpreterBridge());
2620    } else {
2621      method->SetEntryPointFromQuickCompiledCode(GetQuickGenericJniTrampoline());
2622      method->SetEntryPointFromPortableCompiledCode(GetPortableToQuickBridge());
2623    }
2624  } else if (method->GetEntryPointFromPortableCompiledCode() != nullptr) {
2625    DCHECK(method->GetEntryPointFromQuickCompiledCode() == nullptr);
2626    have_portable_code = true;
2627    method->SetEntryPointFromQuickCompiledCode(GetQuickToPortableBridge());
2628  } else {
2629    DCHECK(method->GetEntryPointFromQuickCompiledCode() != nullptr);
2630    method->SetEntryPointFromPortableCompiledCode(GetPortableToQuickBridge());
2631  }
2632
2633  if (method->IsNative()) {
2634    // Unregistering restores the dlsym lookup stub.
2635    method->UnregisterNative(Thread::Current());
2636
2637    if (enter_interpreter) {
2638      // We have a native method here without code. Then it should have either the GenericJni
2639      // trampoline as entrypoint (non-static), or the Resolution trampoline (static).
2640      DCHECK(method->GetEntryPointFromQuickCompiledCode() == GetQuickResolutionTrampoline()
2641          || method->GetEntryPointFromQuickCompiledCode() == GetQuickGenericJniTrampoline());
2642    }
2643  }
2644
2645  // Allow instrumentation its chance to hijack code.
2646  Runtime* runtime = Runtime::Current();
2647  runtime->GetInstrumentation()->UpdateMethodsCode(method.Get(),
2648                                                   method->GetEntryPointFromQuickCompiledCode(),
2649                                                   method->GetEntryPointFromPortableCompiledCode(),
2650                                                   have_portable_code);
2651}
2652
2653void ClassLinker::LoadClass(const DexFile& dex_file,
2654                            const DexFile::ClassDef& dex_class_def,
2655                            Handle<mirror::Class> klass,
2656                            mirror::ClassLoader* class_loader) {
2657  CHECK(klass.Get() != NULL);
2658  CHECK(klass->GetDexCache() != NULL);
2659  CHECK_EQ(mirror::Class::kStatusNotReady, klass->GetStatus());
2660  const char* descriptor = dex_file.GetClassDescriptor(dex_class_def);
2661  CHECK(descriptor != NULL);
2662
2663  klass->SetClass(GetClassRoot(kJavaLangClass));
2664  if (kUseBakerOrBrooksReadBarrier) {
2665    klass->AssertReadBarrierPointer();
2666  }
2667  uint32_t access_flags = dex_class_def.access_flags_;
2668  // Make sure that none of our runtime-only flags are set.
2669  CHECK_EQ(access_flags & ~kAccJavaFlagsMask, 0U);
2670  klass->SetAccessFlags(access_flags);
2671  klass->SetClassLoader(class_loader);
2672  DCHECK_EQ(klass->GetPrimitiveType(), Primitive::kPrimNot);
2673  klass->SetStatus(mirror::Class::kStatusIdx, NULL);
2674
2675  klass->SetDexClassDefIndex(dex_file.GetIndexForClassDef(dex_class_def));
2676  klass->SetDexTypeIndex(dex_class_def.class_idx_);
2677
2678  const byte* class_data = dex_file.GetClassData(dex_class_def);
2679  if (class_data == NULL) {
2680    return;  // no fields or methods - for example a marker interface
2681  }
2682
2683  OatFile::OatClass oat_class;
2684  if (Runtime::Current()->IsStarted()
2685      && !Runtime::Current()->UseCompileTimeClassPath()
2686      && FindOatClass(dex_file, klass->GetDexClassDefIndex(), &oat_class)) {
2687    LoadClassMembers(dex_file, class_data, klass, class_loader, &oat_class);
2688  } else {
2689    LoadClassMembers(dex_file, class_data, klass, class_loader, nullptr);
2690  }
2691}
2692
2693void ClassLinker::LoadClassMembers(const DexFile& dex_file,
2694                                   const byte* class_data,
2695                                   Handle<mirror::Class> klass,
2696                                   mirror::ClassLoader* class_loader,
2697                                   const OatFile::OatClass* oat_class) {
2698  // Load fields.
2699  ClassDataItemIterator it(dex_file, class_data);
2700  Thread* self = Thread::Current();
2701  if (it.NumStaticFields() != 0) {
2702    mirror::ObjectArray<mirror::ArtField>* statics = AllocArtFieldArray(self, it.NumStaticFields());
2703    if (UNLIKELY(statics == NULL)) {
2704      CHECK(self->IsExceptionPending());  // OOME.
2705      return;
2706    }
2707    klass->SetSFields(statics);
2708  }
2709  if (it.NumInstanceFields() != 0) {
2710    mirror::ObjectArray<mirror::ArtField>* fields =
2711        AllocArtFieldArray(self, it.NumInstanceFields());
2712    if (UNLIKELY(fields == NULL)) {
2713      CHECK(self->IsExceptionPending());  // OOME.
2714      return;
2715    }
2716    klass->SetIFields(fields);
2717  }
2718  for (size_t i = 0; it.HasNextStaticField(); i++, it.Next()) {
2719    StackHandleScope<1> hs(self);
2720    Handle<mirror::ArtField> sfield(hs.NewHandle(AllocArtField(self)));
2721    if (UNLIKELY(sfield.Get() == NULL)) {
2722      CHECK(self->IsExceptionPending());  // OOME.
2723      return;
2724    }
2725    klass->SetStaticField(i, sfield.Get());
2726    LoadField(dex_file, it, klass, sfield);
2727  }
2728  for (size_t i = 0; it.HasNextInstanceField(); i++, it.Next()) {
2729    StackHandleScope<1> hs(self);
2730    Handle<mirror::ArtField> ifield(hs.NewHandle(AllocArtField(self)));
2731    if (UNLIKELY(ifield.Get() == NULL)) {
2732      CHECK(self->IsExceptionPending());  // OOME.
2733      return;
2734    }
2735    klass->SetInstanceField(i, ifield.Get());
2736    LoadField(dex_file, it, klass, ifield);
2737  }
2738
2739  // Load methods.
2740  if (it.NumDirectMethods() != 0) {
2741    // TODO: append direct methods to class object
2742    mirror::ObjectArray<mirror::ArtMethod>* directs =
2743         AllocArtMethodArray(self, it.NumDirectMethods());
2744    if (UNLIKELY(directs == NULL)) {
2745      CHECK(self->IsExceptionPending());  // OOME.
2746      return;
2747    }
2748    klass->SetDirectMethods(directs);
2749  }
2750  if (it.NumVirtualMethods() != 0) {
2751    // TODO: append direct methods to class object
2752    mirror::ObjectArray<mirror::ArtMethod>* virtuals =
2753        AllocArtMethodArray(self, it.NumVirtualMethods());
2754    if (UNLIKELY(virtuals == NULL)) {
2755      CHECK(self->IsExceptionPending());  // OOME.
2756      return;
2757    }
2758    klass->SetVirtualMethods(virtuals);
2759  }
2760  size_t class_def_method_index = 0;
2761  uint32_t last_dex_method_index = DexFile::kDexNoIndex;
2762  size_t last_class_def_method_index = 0;
2763  for (size_t i = 0; it.HasNextDirectMethod(); i++, it.Next()) {
2764    StackHandleScope<1> hs(self);
2765    Handle<mirror::ArtMethod> method(hs.NewHandle(LoadMethod(self, dex_file, it, klass)));
2766    if (UNLIKELY(method.Get() == NULL)) {
2767      CHECK(self->IsExceptionPending());  // OOME.
2768      return;
2769    }
2770    klass->SetDirectMethod(i, method.Get());
2771    LinkCode(method, oat_class, dex_file, it.GetMemberIndex(), class_def_method_index);
2772    uint32_t it_method_index = it.GetMemberIndex();
2773    if (last_dex_method_index == it_method_index) {
2774      // duplicate case
2775      method->SetMethodIndex(last_class_def_method_index);
2776    } else {
2777      method->SetMethodIndex(class_def_method_index);
2778      last_dex_method_index = it_method_index;
2779      last_class_def_method_index = class_def_method_index;
2780    }
2781    class_def_method_index++;
2782  }
2783  for (size_t i = 0; it.HasNextVirtualMethod(); i++, it.Next()) {
2784    StackHandleScope<1> hs(self);
2785    Handle<mirror::ArtMethod> method(hs.NewHandle(LoadMethod(self, dex_file, it, klass)));
2786    if (UNLIKELY(method.Get() == NULL)) {
2787      CHECK(self->IsExceptionPending());  // OOME.
2788      return;
2789    }
2790    klass->SetVirtualMethod(i, method.Get());
2791    DCHECK_EQ(class_def_method_index, it.NumDirectMethods() + i);
2792    LinkCode(method, oat_class, dex_file, it.GetMemberIndex(), class_def_method_index);
2793    class_def_method_index++;
2794  }
2795  DCHECK(!it.HasNext());
2796}
2797
2798void ClassLinker::LoadField(const DexFile& /*dex_file*/, const ClassDataItemIterator& it,
2799                            Handle<mirror::Class> klass, Handle<mirror::ArtField> dst) {
2800  uint32_t field_idx = it.GetMemberIndex();
2801  dst->SetDexFieldIndex(field_idx);
2802  dst->SetDeclaringClass(klass.Get());
2803  dst->SetAccessFlags(it.GetMemberAccessFlags());
2804}
2805
2806mirror::ArtMethod* ClassLinker::LoadMethod(Thread* self, const DexFile& dex_file,
2807                                           const ClassDataItemIterator& it,
2808                                           Handle<mirror::Class> klass) {
2809  uint32_t dex_method_idx = it.GetMemberIndex();
2810  const DexFile::MethodId& method_id = dex_file.GetMethodId(dex_method_idx);
2811  const char* method_name = dex_file.StringDataByIdx(method_id.name_idx_);
2812
2813  mirror::ArtMethod* dst = AllocArtMethod(self);
2814  if (UNLIKELY(dst == NULL)) {
2815    CHECK(self->IsExceptionPending());  // OOME.
2816    return NULL;
2817  }
2818  DCHECK(dst->IsArtMethod()) << PrettyDescriptor(dst->GetClass());
2819
2820  const char* old_cause = self->StartAssertNoThreadSuspension("LoadMethod");
2821  dst->SetDexMethodIndex(dex_method_idx);
2822  dst->SetDeclaringClass(klass.Get());
2823  dst->SetCodeItemOffset(it.GetMethodCodeItemOffset());
2824
2825  dst->SetDexCacheStrings(klass->GetDexCache()->GetStrings());
2826  dst->SetDexCacheResolvedMethods(klass->GetDexCache()->GetResolvedMethods());
2827  dst->SetDexCacheResolvedTypes(klass->GetDexCache()->GetResolvedTypes());
2828
2829  uint32_t access_flags = it.GetMemberAccessFlags();
2830
2831  if (UNLIKELY(strcmp("finalize", method_name) == 0)) {
2832    // Set finalizable flag on declaring class.
2833    if (strcmp("V", dex_file.GetShorty(method_id.proto_idx_)) == 0) {
2834      // Void return type.
2835      if (klass->GetClassLoader() != NULL) {  // All non-boot finalizer methods are flagged.
2836        klass->SetFinalizable();
2837      } else {
2838        std::string temp;
2839        const char* klass_descriptor = klass->GetDescriptor(&temp);
2840        // The Enum class declares a "final" finalize() method to prevent subclasses from
2841        // introducing a finalizer. We don't want to set the finalizable flag for Enum or its
2842        // subclasses, so we exclude it here.
2843        // We also want to avoid setting the flag on Object, where we know that finalize() is
2844        // empty.
2845        if (strcmp(klass_descriptor, "Ljava/lang/Object;") != 0 &&
2846            strcmp(klass_descriptor, "Ljava/lang/Enum;") != 0) {
2847          klass->SetFinalizable();
2848        }
2849      }
2850    }
2851  } else if (method_name[0] == '<') {
2852    // Fix broken access flags for initializers. Bug 11157540.
2853    bool is_init = (strcmp("<init>", method_name) == 0);
2854    bool is_clinit = !is_init && (strcmp("<clinit>", method_name) == 0);
2855    if (UNLIKELY(!is_init && !is_clinit)) {
2856      LOG(WARNING) << "Unexpected '<' at start of method name " << method_name;
2857    } else {
2858      if (UNLIKELY((access_flags & kAccConstructor) == 0)) {
2859        LOG(WARNING) << method_name << " didn't have expected constructor access flag in class "
2860            << PrettyDescriptor(klass.Get()) << " in dex file " << dex_file.GetLocation();
2861        access_flags |= kAccConstructor;
2862      }
2863    }
2864  }
2865  dst->SetAccessFlags(access_flags);
2866
2867  self->EndAssertNoThreadSuspension(old_cause);
2868  return dst;
2869}
2870
2871void ClassLinker::AppendToBootClassPath(const DexFile& dex_file) {
2872  Thread* self = Thread::Current();
2873  StackHandleScope<1> hs(self);
2874  Handle<mirror::DexCache> dex_cache(hs.NewHandle(AllocDexCache(self, dex_file)));
2875  CHECK(dex_cache.Get() != NULL) << "Failed to allocate dex cache for " << dex_file.GetLocation();
2876  AppendToBootClassPath(dex_file, dex_cache);
2877}
2878
2879void ClassLinker::AppendToBootClassPath(const DexFile& dex_file,
2880                                        Handle<mirror::DexCache> dex_cache) {
2881  CHECK(dex_cache.Get() != NULL) << dex_file.GetLocation();
2882  boot_class_path_.push_back(&dex_file);
2883  RegisterDexFile(dex_file, dex_cache);
2884}
2885
2886bool ClassLinker::IsDexFileRegisteredLocked(const DexFile& dex_file) {
2887  dex_lock_.AssertSharedHeld(Thread::Current());
2888  for (size_t i = 0; i != dex_caches_.size(); ++i) {
2889    mirror::DexCache* dex_cache = GetDexCache(i);
2890    if (dex_cache->GetDexFile() == &dex_file) {
2891      return true;
2892    }
2893  }
2894  return false;
2895}
2896
2897bool ClassLinker::IsDexFileRegistered(const DexFile& dex_file) {
2898  ReaderMutexLock mu(Thread::Current(), dex_lock_);
2899  return IsDexFileRegisteredLocked(dex_file);
2900}
2901
2902void ClassLinker::RegisterDexFileLocked(const DexFile& dex_file,
2903                                        Handle<mirror::DexCache> dex_cache) {
2904  dex_lock_.AssertExclusiveHeld(Thread::Current());
2905  CHECK(dex_cache.Get() != NULL) << dex_file.GetLocation();
2906  CHECK(dex_cache->GetLocation()->Equals(dex_file.GetLocation()))
2907      << dex_cache->GetLocation()->ToModifiedUtf8() << " " << dex_file.GetLocation();
2908  dex_caches_.push_back(GcRoot<mirror::DexCache>(dex_cache.Get()));
2909  dex_cache->SetDexFile(&dex_file);
2910  if (log_new_dex_caches_roots_) {
2911    // TODO: This is not safe if we can remove dex caches.
2912    new_dex_cache_roots_.push_back(dex_caches_.size() - 1);
2913  }
2914}
2915
2916void ClassLinker::RegisterDexFile(const DexFile& dex_file) {
2917  Thread* self = Thread::Current();
2918  {
2919    ReaderMutexLock mu(self, dex_lock_);
2920    if (IsDexFileRegisteredLocked(dex_file)) {
2921      return;
2922    }
2923  }
2924  // Don't alloc while holding the lock, since allocation may need to
2925  // suspend all threads and another thread may need the dex_lock_ to
2926  // get to a suspend point.
2927  StackHandleScope<1> hs(self);
2928  Handle<mirror::DexCache> dex_cache(hs.NewHandle(AllocDexCache(self, dex_file)));
2929  CHECK(dex_cache.Get() != NULL) << "Failed to allocate dex cache for " << dex_file.GetLocation();
2930  {
2931    WriterMutexLock mu(self, dex_lock_);
2932    if (IsDexFileRegisteredLocked(dex_file)) {
2933      return;
2934    }
2935    RegisterDexFileLocked(dex_file, dex_cache);
2936  }
2937}
2938
2939void ClassLinker::RegisterDexFile(const DexFile& dex_file,
2940                                  Handle<mirror::DexCache> dex_cache) {
2941  WriterMutexLock mu(Thread::Current(), dex_lock_);
2942  RegisterDexFileLocked(dex_file, dex_cache);
2943}
2944
2945mirror::DexCache* ClassLinker::FindDexCache(const DexFile& dex_file) {
2946  ReaderMutexLock mu(Thread::Current(), dex_lock_);
2947  // Search assuming unique-ness of dex file.
2948  for (size_t i = 0; i != dex_caches_.size(); ++i) {
2949    mirror::DexCache* dex_cache = GetDexCache(i);
2950    if (dex_cache->GetDexFile() == &dex_file) {
2951      return dex_cache;
2952    }
2953  }
2954  // Search matching by location name.
2955  std::string location(dex_file.GetLocation());
2956  for (size_t i = 0; i != dex_caches_.size(); ++i) {
2957    mirror::DexCache* dex_cache = GetDexCache(i);
2958    if (dex_cache->GetDexFile()->GetLocation() == location) {
2959      return dex_cache;
2960    }
2961  }
2962  // Failure, dump diagnostic and abort.
2963  for (size_t i = 0; i != dex_caches_.size(); ++i) {
2964    mirror::DexCache* dex_cache = GetDexCache(i);
2965    LOG(ERROR) << "Registered dex file " << i << " = " << dex_cache->GetDexFile()->GetLocation();
2966  }
2967  LOG(FATAL) << "Failed to find DexCache for DexFile " << location;
2968  return NULL;
2969}
2970
2971void ClassLinker::FixupDexCaches(mirror::ArtMethod* resolution_method) {
2972  ReaderMutexLock mu(Thread::Current(), dex_lock_);
2973  for (size_t i = 0; i != dex_caches_.size(); ++i) {
2974    mirror::DexCache* dex_cache = GetDexCache(i);
2975    dex_cache->Fixup(resolution_method);
2976  }
2977}
2978
2979mirror::Class* ClassLinker::CreatePrimitiveClass(Thread* self, Primitive::Type type) {
2980  mirror::Class* klass = AllocClass(self, mirror::Class::PrimitiveClassSize());
2981  if (UNLIKELY(klass == NULL)) {
2982    return NULL;
2983  }
2984  return InitializePrimitiveClass(klass, type);
2985}
2986
2987mirror::Class* ClassLinker::InitializePrimitiveClass(mirror::Class* primitive_class,
2988                                                     Primitive::Type type) {
2989  CHECK(primitive_class != NULL);
2990  // Must hold lock on object when initializing.
2991  Thread* self = Thread::Current();
2992  StackHandleScope<1> hs(self);
2993  Handle<mirror::Class> h_class(hs.NewHandle(primitive_class));
2994  ObjectLock<mirror::Class> lock(self, h_class);
2995  primitive_class->SetAccessFlags(kAccPublic | kAccFinal | kAccAbstract);
2996  primitive_class->SetPrimitiveType(type);
2997  primitive_class->SetStatus(mirror::Class::kStatusInitialized, self);
2998  const char* descriptor = Primitive::Descriptor(type);
2999  mirror::Class* existing = InsertClass(descriptor, primitive_class, Hash(descriptor));
3000  CHECK(existing == NULL) << "InitPrimitiveClass(" << type << ") failed";
3001  return primitive_class;
3002}
3003
3004// Create an array class (i.e. the class object for the array, not the
3005// array itself).  "descriptor" looks like "[C" or "[[[[B" or
3006// "[Ljava/lang/String;".
3007//
3008// If "descriptor" refers to an array of primitives, look up the
3009// primitive type's internally-generated class object.
3010//
3011// "class_loader" is the class loader of the class that's referring to
3012// us.  It's used to ensure that we're looking for the element type in
3013// the right context.  It does NOT become the class loader for the
3014// array class; that always comes from the base element class.
3015//
3016// Returns NULL with an exception raised on failure.
3017mirror::Class* ClassLinker::CreateArrayClass(Thread* self, const char* descriptor,
3018                                             Handle<mirror::ClassLoader> class_loader) {
3019  // Identify the underlying component type
3020  CHECK_EQ('[', descriptor[0]);
3021  StackHandleScope<2> hs(self);
3022  Handle<mirror::Class> component_type(hs.NewHandle(FindClass(self, descriptor + 1, class_loader)));
3023  if (component_type.Get() == nullptr) {
3024    DCHECK(self->IsExceptionPending());
3025    // We need to accept erroneous classes as component types.
3026    component_type.Assign(LookupClass(descriptor + 1, class_loader.Get()));
3027    if (component_type.Get() == nullptr) {
3028      DCHECK(self->IsExceptionPending());
3029      return nullptr;
3030    } else {
3031      self->ClearException();
3032    }
3033  }
3034  if (UNLIKELY(component_type->IsPrimitiveVoid())) {
3035    ThrowNoClassDefFoundError("Attempt to create array of void primitive type");
3036    return nullptr;
3037  }
3038  // See if the component type is already loaded.  Array classes are
3039  // always associated with the class loader of their underlying
3040  // element type -- an array of Strings goes with the loader for
3041  // java/lang/String -- so we need to look for it there.  (The
3042  // caller should have checked for the existence of the class
3043  // before calling here, but they did so with *their* class loader,
3044  // not the component type's loader.)
3045  //
3046  // If we find it, the caller adds "loader" to the class' initiating
3047  // loader list, which should prevent us from going through this again.
3048  //
3049  // This call is unnecessary if "loader" and "component_type->GetClassLoader()"
3050  // are the same, because our caller (FindClass) just did the
3051  // lookup.  (Even if we get this wrong we still have correct behavior,
3052  // because we effectively do this lookup again when we add the new
3053  // class to the hash table --- necessary because of possible races with
3054  // other threads.)
3055  if (class_loader.Get() != component_type->GetClassLoader()) {
3056    mirror::Class* new_class = LookupClass(descriptor, component_type->GetClassLoader());
3057    if (new_class != NULL) {
3058      return new_class;
3059    }
3060  }
3061
3062  // Fill out the fields in the Class.
3063  //
3064  // It is possible to execute some methods against arrays, because
3065  // all arrays are subclasses of java_lang_Object_, so we need to set
3066  // up a vtable.  We can just point at the one in java_lang_Object_.
3067  //
3068  // Array classes are simple enough that we don't need to do a full
3069  // link step.
3070  auto new_class = hs.NewHandle<mirror::Class>(nullptr);
3071  if (UNLIKELY(!init_done_)) {
3072    // Classes that were hand created, ie not by FindSystemClass
3073    if (strcmp(descriptor, "[Ljava/lang/Class;") == 0) {
3074      new_class.Assign(GetClassRoot(kClassArrayClass));
3075    } else if (strcmp(descriptor, "[Ljava/lang/Object;") == 0) {
3076      new_class.Assign(GetClassRoot(kObjectArrayClass));
3077    } else if (strcmp(descriptor, class_roots_descriptors_[kJavaLangStringArrayClass]) == 0) {
3078      new_class.Assign(GetClassRoot(kJavaLangStringArrayClass));
3079    } else if (strcmp(descriptor,
3080                      class_roots_descriptors_[kJavaLangReflectArtMethodArrayClass]) == 0) {
3081      new_class.Assign(GetClassRoot(kJavaLangReflectArtMethodArrayClass));
3082    } else if (strcmp(descriptor,
3083                      class_roots_descriptors_[kJavaLangReflectArtFieldArrayClass]) == 0) {
3084      new_class.Assign(GetClassRoot(kJavaLangReflectArtFieldArrayClass));
3085    } else if (strcmp(descriptor, "[C") == 0) {
3086      new_class.Assign(GetClassRoot(kCharArrayClass));
3087    } else if (strcmp(descriptor, "[I") == 0) {
3088      new_class.Assign(GetClassRoot(kIntArrayClass));
3089    }
3090  }
3091  if (new_class.Get() == nullptr) {
3092    new_class.Assign(AllocClass(self, mirror::Array::ClassSize()));
3093    if (new_class.Get() == nullptr) {
3094      return nullptr;
3095    }
3096    new_class->SetComponentType(component_type.Get());
3097  }
3098  ObjectLock<mirror::Class> lock(self, new_class);  // Must hold lock on object when initializing.
3099  DCHECK(new_class->GetComponentType() != NULL);
3100  mirror::Class* java_lang_Object = GetClassRoot(kJavaLangObject);
3101  new_class->SetSuperClass(java_lang_Object);
3102  new_class->SetVTable(java_lang_Object->GetVTable());
3103  new_class->SetPrimitiveType(Primitive::kPrimNot);
3104  new_class->SetClassLoader(component_type->GetClassLoader());
3105  new_class->SetStatus(mirror::Class::kStatusLoaded, self);
3106  new_class->PopulateEmbeddedImtAndVTable();
3107  new_class->SetStatus(mirror::Class::kStatusInitialized, self);
3108  // don't need to set new_class->SetObjectSize(..)
3109  // because Object::SizeOf delegates to Array::SizeOf
3110
3111
3112  // All arrays have java/lang/Cloneable and java/io/Serializable as
3113  // interfaces.  We need to set that up here, so that stuff like
3114  // "instanceof" works right.
3115  //
3116  // Note: The GC could run during the call to FindSystemClass,
3117  // so we need to make sure the class object is GC-valid while we're in
3118  // there.  Do this by clearing the interface list so the GC will just
3119  // think that the entries are null.
3120
3121
3122  // Use the single, global copies of "interfaces" and "iftable"
3123  // (remember not to free them for arrays).
3124  {
3125    mirror::IfTable* array_iftable = array_iftable_.Read();
3126    CHECK(array_iftable != nullptr);
3127    new_class->SetIfTable(array_iftable);
3128  }
3129
3130  // Inherit access flags from the component type.
3131  int access_flags = new_class->GetComponentType()->GetAccessFlags();
3132  // Lose any implementation detail flags; in particular, arrays aren't finalizable.
3133  access_flags &= kAccJavaFlagsMask;
3134  // Arrays can't be used as a superclass or interface, so we want to add "abstract final"
3135  // and remove "interface".
3136  access_flags |= kAccAbstract | kAccFinal;
3137  access_flags &= ~kAccInterface;
3138
3139  new_class->SetAccessFlags(access_flags);
3140
3141  mirror::Class* existing = InsertClass(descriptor, new_class.Get(), Hash(descriptor));
3142  if (existing == nullptr) {
3143    return new_class.Get();
3144  }
3145  // Another thread must have loaded the class after we
3146  // started but before we finished.  Abandon what we've
3147  // done.
3148  //
3149  // (Yes, this happens.)
3150
3151  return existing;
3152}
3153
3154mirror::Class* ClassLinker::FindPrimitiveClass(char type) {
3155  switch (type) {
3156    case 'B':
3157      return GetClassRoot(kPrimitiveByte);
3158    case 'C':
3159      return GetClassRoot(kPrimitiveChar);
3160    case 'D':
3161      return GetClassRoot(kPrimitiveDouble);
3162    case 'F':
3163      return GetClassRoot(kPrimitiveFloat);
3164    case 'I':
3165      return GetClassRoot(kPrimitiveInt);
3166    case 'J':
3167      return GetClassRoot(kPrimitiveLong);
3168    case 'S':
3169      return GetClassRoot(kPrimitiveShort);
3170    case 'Z':
3171      return GetClassRoot(kPrimitiveBoolean);
3172    case 'V':
3173      return GetClassRoot(kPrimitiveVoid);
3174    default:
3175      break;
3176  }
3177  std::string printable_type(PrintableChar(type));
3178  ThrowNoClassDefFoundError("Not a primitive type: %s", printable_type.c_str());
3179  return NULL;
3180}
3181
3182mirror::Class* ClassLinker::InsertClass(const char* descriptor, mirror::Class* klass,
3183                                        size_t hash) {
3184  if (VLOG_IS_ON(class_linker)) {
3185    mirror::DexCache* dex_cache = klass->GetDexCache();
3186    std::string source;
3187    if (dex_cache != NULL) {
3188      source += " from ";
3189      source += dex_cache->GetLocation()->ToModifiedUtf8();
3190    }
3191    LOG(INFO) << "Loaded class " << descriptor << source;
3192  }
3193  WriterMutexLock mu(Thread::Current(), *Locks::classlinker_classes_lock_);
3194  mirror::Class* existing =
3195      LookupClassFromTableLocked(descriptor, klass->GetClassLoader(), hash);
3196  if (existing != NULL) {
3197    return existing;
3198  }
3199  if (kIsDebugBuild && !klass->IsTemp() && klass->GetClassLoader() == NULL &&
3200      dex_cache_image_class_lookup_required_) {
3201    // Check a class loaded with the system class loader matches one in the image if the class
3202    // is in the image.
3203    existing = LookupClassFromImage(descriptor);
3204    if (existing != NULL) {
3205      CHECK(klass == existing);
3206    }
3207  }
3208  VerifyObject(klass);
3209  class_table_.insert(std::make_pair(hash, GcRoot<mirror::Class>(klass)));
3210  if (log_new_class_table_roots_) {
3211    new_class_roots_.push_back(std::make_pair(hash, GcRoot<mirror::Class>(klass)));
3212  }
3213  return NULL;
3214}
3215
3216mirror::Class* ClassLinker::UpdateClass(const char* descriptor, mirror::Class* klass,
3217                                        size_t hash) {
3218  WriterMutexLock mu(Thread::Current(), *Locks::classlinker_classes_lock_);
3219  mirror::Class* existing =
3220      LookupClassFromTableLocked(descriptor, klass->GetClassLoader(), hash);
3221
3222  if (existing == nullptr) {
3223    CHECK(klass->IsProxyClass());
3224    return nullptr;
3225  }
3226
3227  CHECK_NE(existing, klass) << descriptor;
3228  CHECK(!existing->IsResolved()) << descriptor;
3229  CHECK_EQ(klass->GetStatus(), mirror::Class::kStatusResolving) << descriptor;
3230
3231  for (auto it = class_table_.lower_bound(hash), end = class_table_.end(); it != end && it->first == hash;
3232       ++it) {
3233    mirror::Class* klass = it->second.Read();
3234    if (klass == existing) {
3235      class_table_.erase(it);
3236      break;
3237    }
3238  }
3239
3240  CHECK(!klass->IsTemp()) << descriptor;
3241  if (kIsDebugBuild && klass->GetClassLoader() == nullptr &&
3242      dex_cache_image_class_lookup_required_) {
3243    // Check a class loaded with the system class loader matches one in the image if the class
3244    // is in the image.
3245    existing = LookupClassFromImage(descriptor);
3246    if (existing != nullptr) {
3247      CHECK(klass == existing) << descriptor;
3248    }
3249  }
3250  VerifyObject(klass);
3251
3252  class_table_.insert(std::make_pair(hash, GcRoot<mirror::Class>(klass)));
3253  if (log_new_class_table_roots_) {
3254    new_class_roots_.push_back(std::make_pair(hash, GcRoot<mirror::Class>(klass)));
3255  }
3256
3257  return existing;
3258}
3259
3260bool ClassLinker::RemoveClass(const char* descriptor, const mirror::ClassLoader* class_loader) {
3261  size_t hash = Hash(descriptor);
3262  WriterMutexLock mu(Thread::Current(), *Locks::classlinker_classes_lock_);
3263  for (auto it = class_table_.lower_bound(hash), end = class_table_.end();
3264       it != end && it->first == hash;
3265       ++it) {
3266    mirror::Class* klass = it->second.Read();
3267    if (klass->GetClassLoader() == class_loader && klass->DescriptorEquals(descriptor)) {
3268      class_table_.erase(it);
3269      return true;
3270    }
3271  }
3272  return false;
3273}
3274
3275mirror::Class* ClassLinker::LookupClass(const char* descriptor,
3276                                        const mirror::ClassLoader* class_loader) {
3277  size_t hash = Hash(descriptor);
3278  {
3279    ReaderMutexLock mu(Thread::Current(), *Locks::classlinker_classes_lock_);
3280    mirror::Class* result = LookupClassFromTableLocked(descriptor, class_loader, hash);
3281    if (result != NULL) {
3282      return result;
3283    }
3284  }
3285  if (class_loader != NULL || !dex_cache_image_class_lookup_required_) {
3286    return NULL;
3287  } else {
3288    // Lookup failed but need to search dex_caches_.
3289    mirror::Class* result = LookupClassFromImage(descriptor);
3290    if (result != NULL) {
3291      InsertClass(descriptor, result, hash);
3292    } else {
3293      // Searching the image dex files/caches failed, we don't want to get into this situation
3294      // often as map searches are faster, so after kMaxFailedDexCacheLookups move all image
3295      // classes into the class table.
3296      constexpr uint32_t kMaxFailedDexCacheLookups = 1000;
3297      if (++failed_dex_cache_class_lookups_ > kMaxFailedDexCacheLookups) {
3298        MoveImageClassesToClassTable();
3299      }
3300    }
3301    return result;
3302  }
3303}
3304
3305mirror::Class* ClassLinker::LookupClassFromTableLocked(const char* descriptor,
3306                                                       const mirror::ClassLoader* class_loader,
3307                                                       size_t hash) {
3308  auto end = class_table_.end();
3309  for (auto it = class_table_.lower_bound(hash); it != end && it->first == hash; ++it) {
3310    mirror::Class* klass = it->second.Read();
3311    if (klass->GetClassLoader() == class_loader && klass->DescriptorEquals(descriptor)) {
3312      if (kIsDebugBuild) {
3313        // Check for duplicates in the table.
3314        for (++it; it != end && it->first == hash; ++it) {
3315          mirror::Class* klass2 = it->second.Read();
3316          CHECK(!(klass2->GetClassLoader() == class_loader &&
3317              klass2->DescriptorEquals(descriptor)))
3318              << PrettyClass(klass) << " " << klass << " " << klass->GetClassLoader() << " "
3319              << PrettyClass(klass2) << " " << klass2 << " " << klass2->GetClassLoader();
3320        }
3321      }
3322      return klass;
3323    }
3324  }
3325  return NULL;
3326}
3327
3328static mirror::ObjectArray<mirror::DexCache>* GetImageDexCaches()
3329    SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
3330  gc::space::ImageSpace* image = Runtime::Current()->GetHeap()->GetImageSpace();
3331  CHECK(image != NULL);
3332  mirror::Object* root = image->GetImageHeader().GetImageRoot(ImageHeader::kDexCaches);
3333  return root->AsObjectArray<mirror::DexCache>();
3334}
3335
3336void ClassLinker::MoveImageClassesToClassTable() {
3337  Thread* self = Thread::Current();
3338  WriterMutexLock mu(self, *Locks::classlinker_classes_lock_);
3339  if (!dex_cache_image_class_lookup_required_) {
3340    return;  // All dex cache classes are already in the class table.
3341  }
3342  const char* old_no_suspend_cause =
3343      self->StartAssertNoThreadSuspension("Moving image classes to class table");
3344  mirror::ObjectArray<mirror::DexCache>* dex_caches = GetImageDexCaches();
3345  std::string temp;
3346  for (int32_t i = 0; i < dex_caches->GetLength(); i++) {
3347    mirror::DexCache* dex_cache = dex_caches->Get(i);
3348    mirror::ObjectArray<mirror::Class>* types = dex_cache->GetResolvedTypes();
3349    for (int32_t j = 0; j < types->GetLength(); j++) {
3350      mirror::Class* klass = types->Get(j);
3351      if (klass != NULL) {
3352        DCHECK(klass->GetClassLoader() == NULL);
3353        const char* descriptor = klass->GetDescriptor(&temp);
3354        size_t hash = Hash(descriptor);
3355        mirror::Class* existing = LookupClassFromTableLocked(descriptor, NULL, hash);
3356        if (existing != NULL) {
3357          CHECK(existing == klass) << PrettyClassAndClassLoader(existing) << " != "
3358              << PrettyClassAndClassLoader(klass);
3359        } else {
3360          class_table_.insert(std::make_pair(hash, GcRoot<mirror::Class>(klass)));
3361          if (log_new_class_table_roots_) {
3362            new_class_roots_.push_back(std::make_pair(hash, GcRoot<mirror::Class>(klass)));
3363          }
3364        }
3365      }
3366    }
3367  }
3368  dex_cache_image_class_lookup_required_ = false;
3369  self->EndAssertNoThreadSuspension(old_no_suspend_cause);
3370}
3371
3372mirror::Class* ClassLinker::LookupClassFromImage(const char* descriptor) {
3373  Thread* self = Thread::Current();
3374  const char* old_no_suspend_cause =
3375      self->StartAssertNoThreadSuspension("Image class lookup");
3376  mirror::ObjectArray<mirror::DexCache>* dex_caches = GetImageDexCaches();
3377  for (int32_t i = 0; i < dex_caches->GetLength(); ++i) {
3378    mirror::DexCache* dex_cache = dex_caches->Get(i);
3379    const DexFile* dex_file = dex_cache->GetDexFile();
3380    // Try binary searching the string/type index.
3381    const DexFile::StringId* string_id = dex_file->FindStringId(descriptor);
3382    if (string_id != NULL) {
3383      const DexFile::TypeId* type_id =
3384          dex_file->FindTypeId(dex_file->GetIndexForStringId(*string_id));
3385      if (type_id != NULL) {
3386        uint16_t type_idx = dex_file->GetIndexForTypeId(*type_id);
3387        mirror::Class* klass = dex_cache->GetResolvedType(type_idx);
3388        if (klass != NULL) {
3389          self->EndAssertNoThreadSuspension(old_no_suspend_cause);
3390          return klass;
3391        }
3392      }
3393    }
3394  }
3395  self->EndAssertNoThreadSuspension(old_no_suspend_cause);
3396  return NULL;
3397}
3398
3399void ClassLinker::LookupClasses(const char* descriptor, std::vector<mirror::Class*>& result) {
3400  result.clear();
3401  if (dex_cache_image_class_lookup_required_) {
3402    MoveImageClassesToClassTable();
3403  }
3404  size_t hash = Hash(descriptor);
3405  ReaderMutexLock mu(Thread::Current(), *Locks::classlinker_classes_lock_);
3406  for (auto it = class_table_.lower_bound(hash), end = class_table_.end();
3407      it != end && it->first == hash; ++it) {
3408    mirror::Class* klass = it->second.Read();
3409    if (klass->DescriptorEquals(descriptor)) {
3410      result.push_back(klass);
3411    }
3412  }
3413}
3414
3415void ClassLinker::VerifyClass(Handle<mirror::Class> klass) {
3416  // TODO: assert that the monitor on the Class is held
3417  Thread* self = Thread::Current();
3418  ObjectLock<mirror::Class> lock(self, klass);
3419
3420  // Don't attempt to re-verify if already sufficiently verified.
3421  if (klass->IsVerified()) {
3422    EnsurePreverifiedMethods(klass);
3423    return;
3424  }
3425  if (klass->IsCompileTimeVerified() && Runtime::Current()->IsCompiler()) {
3426    return;
3427  }
3428
3429  // The class might already be erroneous, for example at compile time if we attempted to verify
3430  // this class as a parent to another.
3431  if (klass->IsErroneous()) {
3432    ThrowEarlierClassFailure(klass.Get());
3433    return;
3434  }
3435
3436  if (klass->GetStatus() == mirror::Class::kStatusResolved) {
3437    klass->SetStatus(mirror::Class::kStatusVerifying, self);
3438  } else {
3439    CHECK_EQ(klass->GetStatus(), mirror::Class::kStatusRetryVerificationAtRuntime)
3440        << PrettyClass(klass.Get());
3441    CHECK(!Runtime::Current()->IsCompiler());
3442    klass->SetStatus(mirror::Class::kStatusVerifyingAtRuntime, self);
3443  }
3444
3445  // Skip verification if disabled.
3446  if (!Runtime::Current()->IsVerificationEnabled()) {
3447    klass->SetStatus(mirror::Class::kStatusVerified, self);
3448    EnsurePreverifiedMethods(klass);
3449    return;
3450  }
3451
3452  // Verify super class.
3453  StackHandleScope<2> hs(self);
3454  Handle<mirror::Class> super(hs.NewHandle(klass->GetSuperClass()));
3455  if (super.Get() != NULL) {
3456    // Acquire lock to prevent races on verifying the super class.
3457    ObjectLock<mirror::Class> lock(self, super);
3458
3459    if (!super->IsVerified() && !super->IsErroneous()) {
3460      VerifyClass(super);
3461    }
3462    if (!super->IsCompileTimeVerified()) {
3463      std::string error_msg(
3464          StringPrintf("Rejecting class %s that attempts to sub-class erroneous class %s",
3465                       PrettyDescriptor(klass.Get()).c_str(),
3466                       PrettyDescriptor(super.Get()).c_str()));
3467      LOG(ERROR) << error_msg  << " in " << klass->GetDexCache()->GetLocation()->ToModifiedUtf8();
3468      Handle<mirror::Throwable> cause(hs.NewHandle(self->GetException(nullptr)));
3469      if (cause.Get() != nullptr) {
3470        self->ClearException();
3471      }
3472      ThrowVerifyError(klass.Get(), "%s", error_msg.c_str());
3473      if (cause.Get() != nullptr) {
3474        self->GetException(nullptr)->SetCause(cause.Get());
3475      }
3476      ClassReference ref(klass->GetDexCache()->GetDexFile(), klass->GetDexClassDefIndex());
3477      if (Runtime::Current()->IsCompiler()) {
3478        Runtime::Current()->GetCompilerCallbacks()->ClassRejected(ref);
3479      }
3480      klass->SetStatus(mirror::Class::kStatusError, self);
3481      return;
3482    }
3483  }
3484
3485  // Try to use verification information from the oat file, otherwise do runtime verification.
3486  const DexFile& dex_file = *klass->GetDexCache()->GetDexFile();
3487  mirror::Class::Status oat_file_class_status(mirror::Class::kStatusNotReady);
3488  bool preverified = VerifyClassUsingOatFile(dex_file, klass.Get(), oat_file_class_status);
3489  if (oat_file_class_status == mirror::Class::kStatusError) {
3490    VLOG(class_linker) << "Skipping runtime verification of erroneous class "
3491        << PrettyDescriptor(klass.Get()) << " in "
3492        << klass->GetDexCache()->GetLocation()->ToModifiedUtf8();
3493    ThrowVerifyError(klass.Get(), "Rejecting class %s because it failed compile-time verification",
3494                     PrettyDescriptor(klass.Get()).c_str());
3495    klass->SetStatus(mirror::Class::kStatusError, self);
3496    return;
3497  }
3498  verifier::MethodVerifier::FailureKind verifier_failure = verifier::MethodVerifier::kNoFailure;
3499  std::string error_msg;
3500  if (!preverified) {
3501    verifier_failure = verifier::MethodVerifier::VerifyClass(klass.Get(),
3502                                                             Runtime::Current()->IsCompiler(),
3503                                                             &error_msg);
3504  }
3505  if (preverified || verifier_failure != verifier::MethodVerifier::kHardFailure) {
3506    if (!preverified && verifier_failure != verifier::MethodVerifier::kNoFailure) {
3507      VLOG(class_linker) << "Soft verification failure in class " << PrettyDescriptor(klass.Get())
3508          << " in " << klass->GetDexCache()->GetLocation()->ToModifiedUtf8()
3509          << " because: " << error_msg;
3510    }
3511    self->AssertNoPendingException();
3512    // Make sure all classes referenced by catch blocks are resolved.
3513    ResolveClassExceptionHandlerTypes(dex_file, klass);
3514    if (verifier_failure == verifier::MethodVerifier::kNoFailure) {
3515      // Even though there were no verifier failures we need to respect whether the super-class
3516      // was verified or requiring runtime reverification.
3517      if (super.Get() == NULL || super->IsVerified()) {
3518        klass->SetStatus(mirror::Class::kStatusVerified, self);
3519      } else {
3520        CHECK_EQ(super->GetStatus(), mirror::Class::kStatusRetryVerificationAtRuntime);
3521        klass->SetStatus(mirror::Class::kStatusRetryVerificationAtRuntime, self);
3522        // Pretend a soft failure occured so that we don't consider the class verified below.
3523        verifier_failure = verifier::MethodVerifier::kSoftFailure;
3524      }
3525    } else {
3526      CHECK_EQ(verifier_failure, verifier::MethodVerifier::kSoftFailure);
3527      // Soft failures at compile time should be retried at runtime. Soft
3528      // failures at runtime will be handled by slow paths in the generated
3529      // code. Set status accordingly.
3530      if (Runtime::Current()->IsCompiler()) {
3531        klass->SetStatus(mirror::Class::kStatusRetryVerificationAtRuntime, self);
3532      } else {
3533        klass->SetStatus(mirror::Class::kStatusVerified, self);
3534        // As this is a fake verified status, make sure the methods are _not_ marked preverified
3535        // later.
3536        klass->SetAccessFlags(klass->GetAccessFlags() | kAccPreverified);
3537      }
3538    }
3539  } else {
3540    LOG(ERROR) << "Verification failed on class " << PrettyDescriptor(klass.Get())
3541        << " in " << klass->GetDexCache()->GetLocation()->ToModifiedUtf8()
3542        << " because: " << error_msg;
3543    self->AssertNoPendingException();
3544    ThrowVerifyError(klass.Get(), "%s", error_msg.c_str());
3545    klass->SetStatus(mirror::Class::kStatusError, self);
3546  }
3547  if (preverified || verifier_failure == verifier::MethodVerifier::kNoFailure) {
3548    // Class is verified so we don't need to do any access check on its methods.
3549    // Let the interpreter know it by setting the kAccPreverified flag onto each
3550    // method.
3551    // Note: we're going here during compilation and at runtime. When we set the
3552    // kAccPreverified flag when compiling image classes, the flag is recorded
3553    // in the image and is set when loading the image.
3554    EnsurePreverifiedMethods(klass);
3555  }
3556}
3557
3558void ClassLinker::EnsurePreverifiedMethods(Handle<mirror::Class> klass) {
3559  if ((klass->GetAccessFlags() & kAccPreverified) == 0) {
3560    klass->SetPreverifiedFlagOnAllMethods();
3561    klass->SetAccessFlags(klass->GetAccessFlags() | kAccPreverified);
3562  }
3563}
3564
3565bool ClassLinker::VerifyClassUsingOatFile(const DexFile& dex_file, mirror::Class* klass,
3566                                          mirror::Class::Status& oat_file_class_status) {
3567  // If we're compiling, we can only verify the class using the oat file if
3568  // we are not compiling the image or if the class we're verifying is not part of
3569  // the app.  In other words, we will only check for preverification of bootclasspath
3570  // classes.
3571  if (Runtime::Current()->IsCompiler()) {
3572    // Are we compiling the bootclasspath?
3573    if (!Runtime::Current()->UseCompileTimeClassPath()) {
3574      return false;
3575    }
3576    // We are compiling an app (not the image).
3577
3578    // Is this an app class? (I.e. not a bootclasspath class)
3579    if (klass->GetClassLoader() != NULL) {
3580      return false;
3581    }
3582  }
3583
3584  const OatFile::OatDexFile* oat_dex_file = FindOpenedOatDexFileForDexFile(dex_file);
3585  // Make this work with gtests, which do not set up the image properly.
3586  // TODO: we should clean up gtests to set up the image path properly.
3587  if (Runtime::Current()->IsCompiler() || (oat_dex_file == nullptr)) {
3588    return false;
3589  }
3590
3591  CHECK(oat_dex_file != NULL) << dex_file.GetLocation() << " " << PrettyClass(klass);
3592  uint16_t class_def_index = klass->GetDexClassDefIndex();
3593  oat_file_class_status = oat_dex_file->GetOatClass(class_def_index).GetStatus();
3594  if (oat_file_class_status == mirror::Class::kStatusVerified ||
3595      oat_file_class_status == mirror::Class::kStatusInitialized) {
3596      return true;
3597  }
3598  if (oat_file_class_status == mirror::Class::kStatusRetryVerificationAtRuntime) {
3599    // Compile time verification failed with a soft error. Compile time verification can fail
3600    // because we have incomplete type information. Consider the following:
3601    // class ... {
3602    //   Foo x;
3603    //   .... () {
3604    //     if (...) {
3605    //       v1 gets assigned a type of resolved class Foo
3606    //     } else {
3607    //       v1 gets assigned a type of unresolved class Bar
3608    //     }
3609    //     iput x = v1
3610    // } }
3611    // when we merge v1 following the if-the-else it results in Conflict
3612    // (see verifier::RegType::Merge) as we can't know the type of Bar and we could possibly be
3613    // allowing an unsafe assignment to the field x in the iput (javac may have compiled this as
3614    // it knew Bar was a sub-class of Foo, but for us this may have been moved into a separate apk
3615    // at compile time).
3616    return false;
3617  }
3618  if (oat_file_class_status == mirror::Class::kStatusError) {
3619    // Compile time verification failed with a hard error. This is caused by invalid instructions
3620    // in the class. These errors are unrecoverable.
3621    return false;
3622  }
3623  if (oat_file_class_status == mirror::Class::kStatusNotReady) {
3624    // Status is uninitialized if we couldn't determine the status at compile time, for example,
3625    // not loading the class.
3626    // TODO: when the verifier doesn't rely on Class-es failing to resolve/load the type hierarchy
3627    // isn't a problem and this case shouldn't occur
3628    return false;
3629  }
3630  std::string temp;
3631  LOG(FATAL) << "Unexpected class status: " << oat_file_class_status
3632             << " " << dex_file.GetLocation() << " " << PrettyClass(klass) << " "
3633             << klass->GetDescriptor(&temp);
3634
3635  return false;
3636}
3637
3638void ClassLinker::ResolveClassExceptionHandlerTypes(const DexFile& dex_file,
3639                                                    Handle<mirror::Class> klass) {
3640  for (size_t i = 0; i < klass->NumDirectMethods(); i++) {
3641    ResolveMethodExceptionHandlerTypes(dex_file, klass->GetDirectMethod(i));
3642  }
3643  for (size_t i = 0; i < klass->NumVirtualMethods(); i++) {
3644    ResolveMethodExceptionHandlerTypes(dex_file, klass->GetVirtualMethod(i));
3645  }
3646}
3647
3648void ClassLinker::ResolveMethodExceptionHandlerTypes(const DexFile& dex_file,
3649                                                     mirror::ArtMethod* method) {
3650  // similar to DexVerifier::ScanTryCatchBlocks and dex2oat's ResolveExceptionsForMethod.
3651  const DexFile::CodeItem* code_item = dex_file.GetCodeItem(method->GetCodeItemOffset());
3652  if (code_item == NULL) {
3653    return;  // native or abstract method
3654  }
3655  if (code_item->tries_size_ == 0) {
3656    return;  // nothing to process
3657  }
3658  const byte* handlers_ptr = DexFile::GetCatchHandlerData(*code_item, 0);
3659  uint32_t handlers_size = DecodeUnsignedLeb128(&handlers_ptr);
3660  ClassLinker* linker = Runtime::Current()->GetClassLinker();
3661  for (uint32_t idx = 0; idx < handlers_size; idx++) {
3662    CatchHandlerIterator iterator(handlers_ptr);
3663    for (; iterator.HasNext(); iterator.Next()) {
3664      // Ensure exception types are resolved so that they don't need resolution to be delivered,
3665      // unresolved exception types will be ignored by exception delivery
3666      if (iterator.GetHandlerTypeIndex() != DexFile::kDexNoIndex16) {
3667        mirror::Class* exception_type = linker->ResolveType(iterator.GetHandlerTypeIndex(), method);
3668        if (exception_type == NULL) {
3669          DCHECK(Thread::Current()->IsExceptionPending());
3670          Thread::Current()->ClearException();
3671        }
3672      }
3673    }
3674    handlers_ptr = iterator.EndDataPointer();
3675  }
3676}
3677
3678static void CheckProxyConstructor(mirror::ArtMethod* constructor);
3679static void CheckProxyMethod(Handle<mirror::ArtMethod> method,
3680                             Handle<mirror::ArtMethod> prototype);
3681
3682mirror::Class* ClassLinker::CreateProxyClass(ScopedObjectAccessAlreadyRunnable& soa, jstring name,
3683                                             jobjectArray interfaces, jobject loader,
3684                                             jobjectArray methods, jobjectArray throws) {
3685  Thread* self = soa.Self();
3686  StackHandleScope<8> hs(self);
3687  Handle<mirror::Class> klass(hs.NewHandle(
3688      AllocClass(self, GetClassRoot(kJavaLangClass), sizeof(mirror::Class))));
3689  if (klass.Get() == NULL) {
3690    CHECK(self->IsExceptionPending());  // OOME.
3691    return NULL;
3692  }
3693  DCHECK(klass->GetClass() != NULL);
3694  klass->SetObjectSize(sizeof(mirror::Proxy));
3695  // Set the class access flags incl. preverified, so we do not try to set the flag on the methods.
3696  klass->SetAccessFlags(kAccClassIsProxy | kAccPublic | kAccFinal | kAccPreverified);
3697  klass->SetClassLoader(soa.Decode<mirror::ClassLoader*>(loader));
3698  DCHECK_EQ(klass->GetPrimitiveType(), Primitive::kPrimNot);
3699  klass->SetName(soa.Decode<mirror::String*>(name));
3700  mirror::Class* proxy_class = GetClassRoot(kJavaLangReflectProxy);
3701  klass->SetDexCache(proxy_class->GetDexCache());
3702  klass->SetStatus(mirror::Class::kStatusIdx, self);
3703
3704  // Instance fields are inherited, but we add a couple of static fields...
3705  {
3706    mirror::ObjectArray<mirror::ArtField>* sfields = AllocArtFieldArray(self, 2);
3707    if (UNLIKELY(sfields == NULL)) {
3708      CHECK(self->IsExceptionPending());  // OOME.
3709      return NULL;
3710    }
3711    klass->SetSFields(sfields);
3712  }
3713  // 1. Create a static field 'interfaces' that holds the _declared_ interfaces implemented by
3714  // our proxy, so Class.getInterfaces doesn't return the flattened set.
3715  Handle<mirror::ArtField> interfaces_sfield(hs.NewHandle(AllocArtField(self)));
3716  if (UNLIKELY(interfaces_sfield.Get() == nullptr)) {
3717    CHECK(self->IsExceptionPending());  // OOME.
3718    return nullptr;
3719  }
3720  klass->SetStaticField(0, interfaces_sfield.Get());
3721  interfaces_sfield->SetDexFieldIndex(0);
3722  interfaces_sfield->SetDeclaringClass(klass.Get());
3723  interfaces_sfield->SetAccessFlags(kAccStatic | kAccPublic | kAccFinal);
3724  // 2. Create a static field 'throws' that holds exceptions thrown by our methods.
3725  Handle<mirror::ArtField> throws_sfield(hs.NewHandle(AllocArtField(self)));
3726  if (UNLIKELY(throws_sfield.Get() == nullptr)) {
3727    CHECK(self->IsExceptionPending());  // OOME.
3728    return nullptr;
3729  }
3730  klass->SetStaticField(1, throws_sfield.Get());
3731  throws_sfield->SetDexFieldIndex(1);
3732  throws_sfield->SetDeclaringClass(klass.Get());
3733  throws_sfield->SetAccessFlags(kAccStatic | kAccPublic | kAccFinal);
3734
3735  // Proxies have 1 direct method, the constructor
3736  {
3737    mirror::ObjectArray<mirror::ArtMethod>* directs = AllocArtMethodArray(self, 1);
3738    if (UNLIKELY(directs == nullptr)) {
3739      CHECK(self->IsExceptionPending());  // OOME.
3740      return nullptr;
3741    }
3742    klass->SetDirectMethods(directs);
3743    mirror::ArtMethod* constructor = CreateProxyConstructor(self, klass, proxy_class);
3744    if (UNLIKELY(constructor == nullptr)) {
3745      CHECK(self->IsExceptionPending());  // OOME.
3746      return nullptr;
3747    }
3748    klass->SetDirectMethod(0, constructor);
3749  }
3750
3751  // Create virtual method using specified prototypes.
3752  size_t num_virtual_methods =
3753      soa.Decode<mirror::ObjectArray<mirror::ArtMethod>*>(methods)->GetLength();
3754  {
3755    mirror::ObjectArray<mirror::ArtMethod>* virtuals = AllocArtMethodArray(self,
3756                                                                           num_virtual_methods);
3757    if (UNLIKELY(virtuals == NULL)) {
3758      CHECK(self->IsExceptionPending());  // OOME.
3759      return NULL;
3760    }
3761    klass->SetVirtualMethods(virtuals);
3762  }
3763  for (size_t i = 0; i < num_virtual_methods; ++i) {
3764    StackHandleScope<1> hs(self);
3765    mirror::ObjectArray<mirror::ArtMethod>* decoded_methods =
3766        soa.Decode<mirror::ObjectArray<mirror::ArtMethod>*>(methods);
3767    Handle<mirror::ArtMethod> prototype(hs.NewHandle(decoded_methods->Get(i)));
3768    mirror::ArtMethod* clone = CreateProxyMethod(self, klass, prototype);
3769    if (UNLIKELY(clone == nullptr)) {
3770      CHECK(self->IsExceptionPending());  // OOME.
3771      return nullptr;
3772    }
3773    klass->SetVirtualMethod(i, clone);
3774  }
3775
3776  klass->SetSuperClass(proxy_class);  // The super class is java.lang.reflect.Proxy
3777  klass->SetStatus(mirror::Class::kStatusLoaded, self);  // Now effectively in the loaded state.
3778  self->AssertNoPendingException();
3779
3780  std::string descriptor(GetDescriptorForProxy(klass.Get()));
3781  mirror::Class* new_class = nullptr;
3782  {
3783    ObjectLock<mirror::Class> resolution_lock(self, klass);  // Must hold lock on object when resolved.
3784    // Link the fields and virtual methods, creating vtable and iftables
3785    Handle<mirror::ObjectArray<mirror::Class> > h_interfaces(
3786        hs.NewHandle(soa.Decode<mirror::ObjectArray<mirror::Class>*>(interfaces)));
3787    if (!LinkClass(self, descriptor.c_str(), klass, h_interfaces, &new_class)) {
3788      klass->SetStatus(mirror::Class::kStatusError, self);
3789      return nullptr;
3790    }
3791  }
3792
3793  CHECK(klass->IsRetired());
3794  CHECK_NE(klass.Get(), new_class);
3795  klass.Assign(new_class);
3796
3797  CHECK_EQ(interfaces_sfield->GetDeclaringClass(), new_class);
3798  interfaces_sfield->SetObject<false>(klass.Get(), soa.Decode<mirror::ObjectArray<mirror::Class>*>(interfaces));
3799  CHECK_EQ(throws_sfield->GetDeclaringClass(), new_class);
3800  throws_sfield->SetObject<false>(klass.Get(), soa.Decode<mirror::ObjectArray<mirror::ObjectArray<mirror::Class> >*>(throws));
3801
3802  {
3803    // Lock on klass is released. Lock new class object.
3804    ObjectLock<mirror::Class> initialization_lock(self, klass);
3805    klass->SetStatus(mirror::Class::kStatusInitialized, self);
3806  }
3807
3808  // sanity checks
3809  if (kIsDebugBuild) {
3810    CHECK(klass->GetIFields() == nullptr);
3811    CheckProxyConstructor(klass->GetDirectMethod(0));
3812    for (size_t i = 0; i < num_virtual_methods; ++i) {
3813      StackHandleScope<2> hs(self);
3814      mirror::ObjectArray<mirror::ArtMethod>* decoded_methods =
3815          soa.Decode<mirror::ObjectArray<mirror::ArtMethod>*>(methods);
3816      Handle<mirror::ArtMethod> prototype(hs.NewHandle(decoded_methods->Get(i)));
3817      Handle<mirror::ArtMethod> virtual_method(hs.NewHandle(klass->GetVirtualMethod(i)));
3818      CheckProxyMethod(virtual_method, prototype);
3819    }
3820
3821    mirror::String* decoded_name = soa.Decode<mirror::String*>(name);
3822    std::string interfaces_field_name(StringPrintf("java.lang.Class[] %s.interfaces",
3823                                                   decoded_name->ToModifiedUtf8().c_str()));
3824    CHECK_EQ(PrettyField(klass->GetStaticField(0)), interfaces_field_name);
3825
3826    std::string throws_field_name(StringPrintf("java.lang.Class[][] %s.throws",
3827                                               decoded_name->ToModifiedUtf8().c_str()));
3828    CHECK_EQ(PrettyField(klass->GetStaticField(1)), throws_field_name);
3829
3830    CHECK_EQ(klass.Get()->GetInterfaces(),
3831             soa.Decode<mirror::ObjectArray<mirror::Class>*>(interfaces));
3832    CHECK_EQ(klass.Get()->GetThrows(),
3833             soa.Decode<mirror::ObjectArray<mirror::ObjectArray<mirror::Class>>*>(throws));
3834  }
3835  mirror::Class* existing = InsertClass(descriptor.c_str(), klass.Get(), Hash(descriptor.c_str()));
3836  CHECK(existing == nullptr);
3837  return klass.Get();
3838}
3839
3840std::string ClassLinker::GetDescriptorForProxy(mirror::Class* proxy_class) {
3841  DCHECK(proxy_class->IsProxyClass());
3842  mirror::String* name = proxy_class->GetName();
3843  DCHECK(name != NULL);
3844  return DotToDescriptor(name->ToModifiedUtf8().c_str());
3845}
3846
3847mirror::ArtMethod* ClassLinker::FindMethodForProxy(mirror::Class* proxy_class,
3848                                                   mirror::ArtMethod* proxy_method) {
3849  DCHECK(proxy_class->IsProxyClass());
3850  DCHECK(proxy_method->IsProxyMethod());
3851  // Locate the dex cache of the original interface/Object
3852  mirror::DexCache* dex_cache = nullptr;
3853  {
3854    ReaderMutexLock mu(Thread::Current(), dex_lock_);
3855    for (size_t i = 0; i != dex_caches_.size(); ++i) {
3856      mirror::DexCache* a_dex_cache = GetDexCache(i);
3857      if (proxy_method->HasSameDexCacheResolvedTypes(a_dex_cache->GetResolvedTypes())) {
3858        dex_cache = a_dex_cache;
3859        break;
3860      }
3861    }
3862  }
3863  CHECK(dex_cache != nullptr);
3864  uint32_t method_idx = proxy_method->GetDexMethodIndex();
3865  mirror::ArtMethod* resolved_method = dex_cache->GetResolvedMethod(method_idx);
3866  CHECK(resolved_method != nullptr);
3867  return resolved_method;
3868}
3869
3870
3871mirror::ArtMethod* ClassLinker::CreateProxyConstructor(Thread* self,
3872                                                       Handle<mirror::Class> klass,
3873                                                       mirror::Class* proxy_class) {
3874  // Create constructor for Proxy that must initialize h
3875  mirror::ObjectArray<mirror::ArtMethod>* proxy_direct_methods =
3876      proxy_class->GetDirectMethods();
3877  CHECK_EQ(proxy_direct_methods->GetLength(), 16);
3878  mirror::ArtMethod* proxy_constructor = proxy_direct_methods->Get(2);
3879  // Ensure constructor is in dex cache so that we can use the dex cache to look up the overridden
3880  // constructor method.
3881  proxy_class->GetDexCache()->SetResolvedMethod(proxy_constructor->GetDexMethodIndex(),
3882                                                proxy_constructor);
3883  // Clone the existing constructor of Proxy (our constructor would just invoke it so steal its
3884  // code_ too)
3885  mirror::ArtMethod* constructor = down_cast<mirror::ArtMethod*>(proxy_constructor->Clone(self));
3886  if (constructor == nullptr) {
3887    CHECK(self->IsExceptionPending());  // OOME.
3888    return nullptr;
3889  }
3890  // Make this constructor public and fix the class to be our Proxy version
3891  constructor->SetAccessFlags((constructor->GetAccessFlags() & ~kAccProtected) | kAccPublic);
3892  constructor->SetDeclaringClass(klass.Get());
3893  return constructor;
3894}
3895
3896static void CheckProxyConstructor(mirror::ArtMethod* constructor)
3897    SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
3898  CHECK(constructor->IsConstructor());
3899  CHECK_STREQ(constructor->GetName(), "<init>");
3900  CHECK_STREQ(constructor->GetSignature().ToString().c_str(),
3901              "(Ljava/lang/reflect/InvocationHandler;)V");
3902  DCHECK(constructor->IsPublic());
3903}
3904
3905mirror::ArtMethod* ClassLinker::CreateProxyMethod(Thread* self,
3906                                                  Handle<mirror::Class> klass,
3907                                                  Handle<mirror::ArtMethod> prototype) {
3908  // Ensure prototype is in dex cache so that we can use the dex cache to look up the overridden
3909  // prototype method
3910  prototype->GetDeclaringClass()->GetDexCache()->SetResolvedMethod(prototype->GetDexMethodIndex(),
3911                                                                   prototype.Get());
3912  // We steal everything from the prototype (such as DexCache, invoke stub, etc.) then specialize
3913  // as necessary
3914  mirror::ArtMethod* method = down_cast<mirror::ArtMethod*>(prototype->Clone(self));
3915  if (UNLIKELY(method == NULL)) {
3916    CHECK(self->IsExceptionPending());  // OOME.
3917    return NULL;
3918  }
3919
3920  // Set class to be the concrete proxy class and clear the abstract flag, modify exceptions to
3921  // the intersection of throw exceptions as defined in Proxy
3922  method->SetDeclaringClass(klass.Get());
3923  method->SetAccessFlags((method->GetAccessFlags() & ~kAccAbstract) | kAccFinal);
3924
3925  // At runtime the method looks like a reference and argument saving method, clone the code
3926  // related parameters from this method.
3927  method->SetEntryPointFromQuickCompiledCode(GetQuickProxyInvokeHandler());
3928  method->SetEntryPointFromPortableCompiledCode(GetPortableProxyInvokeHandler());
3929  method->SetEntryPointFromInterpreter(artInterpreterToCompiledCodeBridge);
3930
3931  return method;
3932}
3933
3934static void CheckProxyMethod(Handle<mirror::ArtMethod> method, Handle<mirror::ArtMethod> prototype)
3935    SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
3936  // Basic sanity
3937  CHECK(!prototype->IsFinal());
3938  CHECK(method->IsFinal());
3939  CHECK(!method->IsAbstract());
3940
3941  // The proxy method doesn't have its own dex cache or dex file and so it steals those of its
3942  // interface prototype. The exception to this are Constructors and the Class of the Proxy itself.
3943  CHECK_EQ(prototype->GetDexCacheStrings(), method->GetDexCacheStrings());
3944  CHECK(prototype->HasSameDexCacheResolvedMethods(method.Get()));
3945  CHECK(prototype->HasSameDexCacheResolvedTypes(method.Get()));
3946  CHECK_EQ(prototype->GetDexMethodIndex(), method->GetDexMethodIndex());
3947
3948  MethodHelper mh(method);
3949  MethodHelper mh2(prototype);
3950  CHECK_STREQ(method->GetName(), prototype->GetName());
3951  CHECK_STREQ(method->GetShorty(), prototype->GetShorty());
3952  // More complex sanity - via dex cache
3953  CHECK_EQ(mh.GetReturnType(), mh2.GetReturnType());
3954}
3955
3956static bool CanWeInitializeClass(mirror::Class* klass, bool can_init_statics,
3957                                 bool can_init_parents)
3958    SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
3959  if (can_init_statics && can_init_parents) {
3960    return true;
3961  }
3962  if (!can_init_statics) {
3963    // Check if there's a class initializer.
3964    mirror::ArtMethod* clinit = klass->FindClassInitializer();
3965    if (clinit != NULL) {
3966      return false;
3967    }
3968    // Check if there are encoded static values needing initialization.
3969    if (klass->NumStaticFields() != 0) {
3970      const DexFile::ClassDef* dex_class_def = klass->GetClassDef();
3971      DCHECK(dex_class_def != NULL);
3972      if (dex_class_def->static_values_off_ != 0) {
3973        return false;
3974      }
3975    }
3976  }
3977  if (!klass->IsInterface() && klass->HasSuperClass()) {
3978    mirror::Class* super_class = klass->GetSuperClass();
3979    if (!can_init_parents && !super_class->IsInitialized()) {
3980      return false;
3981    } else {
3982      if (!CanWeInitializeClass(super_class, can_init_statics, can_init_parents)) {
3983        return false;
3984      }
3985    }
3986  }
3987  return true;
3988}
3989
3990bool ClassLinker::IsInitialized() const {
3991  return init_done_;
3992}
3993
3994bool ClassLinker::InitializeClass(Handle<mirror::Class> klass, bool can_init_statics,
3995                                  bool can_init_parents) {
3996  // see JLS 3rd edition, 12.4.2 "Detailed Initialization Procedure" for the locking protocol
3997
3998  // Are we already initialized and therefore done?
3999  // Note: we differ from the JLS here as we don't do this under the lock, this is benign as
4000  // an initialized class will never change its state.
4001  if (klass->IsInitialized()) {
4002    return true;
4003  }
4004
4005  // Fast fail if initialization requires a full runtime. Not part of the JLS.
4006  if (!CanWeInitializeClass(klass.Get(), can_init_statics, can_init_parents)) {
4007    return false;
4008  }
4009
4010  Thread* self = Thread::Current();
4011  uint64_t t0;
4012  {
4013    ObjectLock<mirror::Class> lock(self, klass);
4014
4015    // Re-check under the lock in case another thread initialized ahead of us.
4016    if (klass->IsInitialized()) {
4017      return true;
4018    }
4019
4020    // Was the class already found to be erroneous? Done under the lock to match the JLS.
4021    if (klass->IsErroneous()) {
4022      ThrowEarlierClassFailure(klass.Get());
4023      return false;
4024    }
4025
4026    CHECK(klass->IsResolved()) << PrettyClass(klass.Get()) << ": state=" << klass->GetStatus();
4027
4028    if (!klass->IsVerified()) {
4029      VerifyClass(klass);
4030      if (!klass->IsVerified()) {
4031        // We failed to verify, expect either the klass to be erroneous or verification failed at
4032        // compile time.
4033        if (klass->IsErroneous()) {
4034          CHECK(self->IsExceptionPending());
4035        } else {
4036          CHECK(Runtime::Current()->IsCompiler());
4037          CHECK_EQ(klass->GetStatus(), mirror::Class::kStatusRetryVerificationAtRuntime);
4038        }
4039        return false;
4040      } else {
4041        self->AssertNoPendingException();
4042      }
4043    }
4044
4045    // If the class is kStatusInitializing, either this thread is
4046    // initializing higher up the stack or another thread has beat us
4047    // to initializing and we need to wait. Either way, this
4048    // invocation of InitializeClass will not be responsible for
4049    // running <clinit> and will return.
4050    if (klass->GetStatus() == mirror::Class::kStatusInitializing) {
4051      // Could have got an exception during verification.
4052      if (self->IsExceptionPending()) {
4053        return false;
4054      }
4055      // We caught somebody else in the act; was it us?
4056      if (klass->GetClinitThreadId() == self->GetTid()) {
4057        // Yes. That's fine. Return so we can continue initializing.
4058        return true;
4059      }
4060      // No. That's fine. Wait for another thread to finish initializing.
4061      return WaitForInitializeClass(klass, self, lock);
4062    }
4063
4064    if (!ValidateSuperClassDescriptors(klass)) {
4065      klass->SetStatus(mirror::Class::kStatusError, self);
4066      return false;
4067    }
4068
4069    CHECK_EQ(klass->GetStatus(), mirror::Class::kStatusVerified) << PrettyClass(klass.Get());
4070
4071    // From here out other threads may observe that we're initializing and so changes of state
4072    // require the a notification.
4073    klass->SetClinitThreadId(self->GetTid());
4074    klass->SetStatus(mirror::Class::kStatusInitializing, self);
4075
4076    t0 = NanoTime();
4077  }
4078
4079  // Initialize super classes, must be done while initializing for the JLS.
4080  if (!klass->IsInterface() && klass->HasSuperClass()) {
4081    mirror::Class* super_class = klass->GetSuperClass();
4082    if (!super_class->IsInitialized()) {
4083      CHECK(!super_class->IsInterface());
4084      CHECK(can_init_parents);
4085      StackHandleScope<1> hs(self);
4086      Handle<mirror::Class> handle_scope_super(hs.NewHandle(super_class));
4087      bool super_initialized = InitializeClass(handle_scope_super, can_init_statics, true);
4088      if (!super_initialized) {
4089        // The super class was verified ahead of entering initializing, we should only be here if
4090        // the super class became erroneous due to initialization.
4091        CHECK(handle_scope_super->IsErroneous() && self->IsExceptionPending())
4092            << "Super class initialization failed for "
4093            << PrettyDescriptor(handle_scope_super.Get())
4094            << " that has unexpected status " << handle_scope_super->GetStatus()
4095            << "\nPending exception:\n"
4096            << (self->GetException(NULL) != NULL ? self->GetException(NULL)->Dump() : "");
4097        ObjectLock<mirror::Class> lock(self, klass);
4098        // Initialization failed because the super-class is erroneous.
4099        klass->SetStatus(mirror::Class::kStatusError, self);
4100        return false;
4101      }
4102    }
4103  }
4104
4105  if (klass->NumStaticFields() > 0) {
4106    const DexFile::ClassDef* dex_class_def = klass->GetClassDef();
4107    CHECK(dex_class_def != NULL);
4108    const DexFile& dex_file = klass->GetDexFile();
4109    StackHandleScope<2> hs(self);
4110    Handle<mirror::ClassLoader> class_loader(hs.NewHandle(klass->GetClassLoader()));
4111    Handle<mirror::DexCache> dex_cache(hs.NewHandle(klass->GetDexCache()));
4112    EncodedStaticFieldValueIterator it(dex_file, &dex_cache, &class_loader,
4113                                       this, *dex_class_def);
4114    if (it.HasNext()) {
4115      CHECK(can_init_statics);
4116      // We reordered the fields, so we need to be able to map the
4117      // field indexes to the right fields.
4118      SafeMap<uint32_t, mirror::ArtField*> field_map;
4119      ConstructFieldMap(dex_file, *dex_class_def, klass.Get(), field_map);
4120      for (size_t i = 0; it.HasNext(); i++, it.Next()) {
4121        if (Runtime::Current()->IsActiveTransaction()) {
4122          it.ReadValueToField<true>(field_map.Get(i));
4123        } else {
4124          it.ReadValueToField<false>(field_map.Get(i));
4125        }
4126      }
4127    }
4128  }
4129
4130  mirror::ArtMethod* clinit = klass->FindClassInitializer();
4131  if (clinit != NULL) {
4132    CHECK(can_init_statics);
4133    JValue result;
4134    clinit->Invoke(self, NULL, 0, &result, "V");
4135  }
4136
4137  uint64_t t1 = NanoTime();
4138
4139  bool success = true;
4140  {
4141    ObjectLock<mirror::Class> lock(self, klass);
4142
4143    if (self->IsExceptionPending()) {
4144      WrapExceptionInInitializer();
4145      klass->SetStatus(mirror::Class::kStatusError, self);
4146      success = false;
4147    } else {
4148      RuntimeStats* global_stats = Runtime::Current()->GetStats();
4149      RuntimeStats* thread_stats = self->GetStats();
4150      ++global_stats->class_init_count;
4151      ++thread_stats->class_init_count;
4152      global_stats->class_init_time_ns += (t1 - t0);
4153      thread_stats->class_init_time_ns += (t1 - t0);
4154      // Set the class as initialized except if failed to initialize static fields.
4155      klass->SetStatus(mirror::Class::kStatusInitialized, self);
4156      if (VLOG_IS_ON(class_linker)) {
4157        std::string temp;
4158        LOG(INFO) << "Initialized class " << klass->GetDescriptor(&temp) << " from " <<
4159            klass->GetLocation();
4160      }
4161      // Opportunistically set static method trampolines to their destination.
4162      FixupStaticTrampolines(klass.Get());
4163    }
4164  }
4165  return success;
4166}
4167
4168bool ClassLinker::WaitForInitializeClass(Handle<mirror::Class> klass, Thread* self,
4169                                         ObjectLock<mirror::Class>& lock)
4170    SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
4171  while (true) {
4172    self->AssertNoPendingException();
4173    CHECK(!klass->IsInitialized());
4174    lock.WaitIgnoringInterrupts();
4175
4176    // When we wake up, repeat the test for init-in-progress.  If
4177    // there's an exception pending (only possible if
4178    // "interruptShouldThrow" was set), bail out.
4179    if (self->IsExceptionPending()) {
4180      WrapExceptionInInitializer();
4181      klass->SetStatus(mirror::Class::kStatusError, self);
4182      return false;
4183    }
4184    // Spurious wakeup? Go back to waiting.
4185    if (klass->GetStatus() == mirror::Class::kStatusInitializing) {
4186      continue;
4187    }
4188    if (klass->GetStatus() == mirror::Class::kStatusVerified && Runtime::Current()->IsCompiler()) {
4189      // Compile time initialization failed.
4190      return false;
4191    }
4192    if (klass->IsErroneous()) {
4193      // The caller wants an exception, but it was thrown in a
4194      // different thread.  Synthesize one here.
4195      ThrowNoClassDefFoundError("<clinit> failed for class %s; see exception in other thread",
4196                                PrettyDescriptor(klass.Get()).c_str());
4197      return false;
4198    }
4199    if (klass->IsInitialized()) {
4200      return true;
4201    }
4202    LOG(FATAL) << "Unexpected class status. " << PrettyClass(klass.Get()) << " is "
4203        << klass->GetStatus();
4204  }
4205  LOG(FATAL) << "Not Reached" << PrettyClass(klass.Get());
4206}
4207
4208bool ClassLinker::ValidateSuperClassDescriptors(Handle<mirror::Class> klass) {
4209  if (klass->IsInterface()) {
4210    return true;
4211  }
4212  // Begin with the methods local to the superclass.
4213  StackHandleScope<2> hs(Thread::Current());
4214  MethodHelper mh(hs.NewHandle<mirror::ArtMethod>(nullptr));
4215  MethodHelper super_mh(hs.NewHandle<mirror::ArtMethod>(nullptr));
4216  if (klass->HasSuperClass() &&
4217      klass->GetClassLoader() != klass->GetSuperClass()->GetClassLoader()) {
4218    for (int i = klass->GetSuperClass()->GetVTableLength() - 1; i >= 0; --i) {
4219      mh.ChangeMethod(klass->GetVTableEntry(i));
4220      super_mh.ChangeMethod(klass->GetSuperClass()->GetVTableEntry(i));
4221      if (mh.GetMethod() != super_mh.GetMethod() &&
4222          !mh.HasSameSignatureWithDifferentClassLoaders(&super_mh)) {
4223        ThrowLinkageError(klass.Get(),
4224                          "Class %s method %s resolves differently in superclass %s",
4225                          PrettyDescriptor(klass.Get()).c_str(),
4226                          PrettyMethod(mh.GetMethod()).c_str(),
4227                          PrettyDescriptor(klass->GetSuperClass()).c_str());
4228        return false;
4229      }
4230    }
4231  }
4232  for (int32_t i = 0; i < klass->GetIfTableCount(); ++i) {
4233    if (klass->GetClassLoader() != klass->GetIfTable()->GetInterface(i)->GetClassLoader()) {
4234      uint32_t num_methods = klass->GetIfTable()->GetInterface(i)->NumVirtualMethods();
4235      for (uint32_t j = 0; j < num_methods; ++j) {
4236        mh.ChangeMethod(klass->GetIfTable()->GetMethodArray(i)->GetWithoutChecks(j));
4237        super_mh.ChangeMethod(klass->GetIfTable()->GetInterface(i)->GetVirtualMethod(j));
4238        if (mh.GetMethod() != super_mh.GetMethod() &&
4239            !mh.HasSameSignatureWithDifferentClassLoaders(&super_mh)) {
4240          ThrowLinkageError(klass.Get(),
4241                            "Class %s method %s resolves differently in interface %s",
4242                            PrettyDescriptor(klass.Get()).c_str(),
4243                            PrettyMethod(mh.GetMethod()).c_str(),
4244                            PrettyDescriptor(klass->GetIfTable()->GetInterface(i)).c_str());
4245          return false;
4246        }
4247      }
4248    }
4249  }
4250  return true;
4251}
4252
4253bool ClassLinker::EnsureInitialized(Handle<mirror::Class> c, bool can_init_fields,
4254                                    bool can_init_parents) {
4255  DCHECK(c.Get() != nullptr);
4256  if (c->IsInitialized()) {
4257    EnsurePreverifiedMethods(c);
4258    return true;
4259  }
4260  const bool success = InitializeClass(c, can_init_fields, can_init_parents);
4261  Thread* self = Thread::Current();
4262  if (!success) {
4263    if (can_init_fields && can_init_parents) {
4264      CHECK(self->IsExceptionPending()) << PrettyClass(c.Get());
4265    }
4266  } else {
4267    self->AssertNoPendingException();
4268  }
4269  return success;
4270}
4271
4272void ClassLinker::ConstructFieldMap(const DexFile& dex_file, const DexFile::ClassDef& dex_class_def,
4273                                    mirror::Class* c,
4274                                    SafeMap<uint32_t, mirror::ArtField*>& field_map) {
4275  const byte* class_data = dex_file.GetClassData(dex_class_def);
4276  ClassDataItemIterator it(dex_file, class_data);
4277  StackHandleScope<2> hs(Thread::Current());
4278  Handle<mirror::DexCache> dex_cache(hs.NewHandle(c->GetDexCache()));
4279  Handle<mirror::ClassLoader> class_loader(hs.NewHandle(c->GetClassLoader()));
4280  CHECK(!kMovingFields);
4281  for (size_t i = 0; it.HasNextStaticField(); i++, it.Next()) {
4282    field_map.Put(i, ResolveField(dex_file, it.GetMemberIndex(), dex_cache, class_loader, true));
4283  }
4284}
4285
4286void ClassLinker::FixupTemporaryDeclaringClass(mirror::Class* temp_class, mirror::Class* new_class) {
4287  mirror::ObjectArray<mirror::ArtField>* fields = new_class->GetIFields();
4288  if (fields != nullptr) {
4289    for (int index = 0; index < fields->GetLength(); index ++) {
4290      if (fields->Get(index)->GetDeclaringClass() == temp_class) {
4291        fields->Get(index)->SetDeclaringClass(new_class);
4292      }
4293    }
4294  }
4295
4296  fields = new_class->GetSFields();
4297  if (fields != nullptr) {
4298    for (int index = 0; index < fields->GetLength(); index ++) {
4299      if (fields->Get(index)->GetDeclaringClass() == temp_class) {
4300        fields->Get(index)->SetDeclaringClass(new_class);
4301      }
4302    }
4303  }
4304
4305  mirror::ObjectArray<mirror::ArtMethod>* methods = new_class->GetDirectMethods();
4306  if (methods != nullptr) {
4307    for (int index = 0; index < methods->GetLength(); index ++) {
4308      if (methods->Get(index)->GetDeclaringClass() == temp_class) {
4309        methods->Get(index)->SetDeclaringClass(new_class);
4310      }
4311    }
4312  }
4313
4314  methods = new_class->GetVirtualMethods();
4315  if (methods != nullptr) {
4316    for (int index = 0; index < methods->GetLength(); index ++) {
4317      if (methods->Get(index)->GetDeclaringClass() == temp_class) {
4318        methods->Get(index)->SetDeclaringClass(new_class);
4319      }
4320    }
4321  }
4322}
4323
4324bool ClassLinker::LinkClass(Thread* self, const char* descriptor, Handle<mirror::Class> klass,
4325                            Handle<mirror::ObjectArray<mirror::Class>> interfaces,
4326                            mirror::Class** new_class) {
4327  CHECK_EQ(mirror::Class::kStatusLoaded, klass->GetStatus());
4328
4329  if (!LinkSuperClass(klass)) {
4330    return false;
4331  }
4332  if (!LinkMethods(self, klass, interfaces)) {
4333    return false;
4334  }
4335  if (!LinkInstanceFields(klass)) {
4336    return false;
4337  }
4338  size_t class_size;
4339  if (!LinkStaticFields(klass, &class_size)) {
4340    return false;
4341  }
4342  CreateReferenceInstanceOffsets(klass);
4343  CreateReferenceStaticOffsets(klass);
4344  CHECK_EQ(mirror::Class::kStatusLoaded, klass->GetStatus());
4345
4346  if (!klass->IsTemp() || (!init_done_ && klass->GetClassSize() == class_size)) {
4347    // We don't need to retire this class as it has no embedded tables or it was created the
4348    // correct size during class linker initialization.
4349    CHECK_EQ(klass->GetClassSize(), class_size) << PrettyDescriptor(klass.Get());
4350
4351    if (klass->ShouldHaveEmbeddedImtAndVTable()) {
4352      klass->PopulateEmbeddedImtAndVTable();
4353    }
4354
4355    // This will notify waiters on klass that saw the not yet resolved
4356    // class in the class_table_ during EnsureResolved.
4357    klass->SetStatus(mirror::Class::kStatusResolved, self);
4358    *new_class = klass.Get();
4359  } else {
4360    CHECK(!klass->IsResolved());
4361    // Retire the temporary class and create the correctly sized resolved class.
4362    *new_class = klass->CopyOf(self, class_size);
4363    if (UNLIKELY(*new_class == NULL)) {
4364      CHECK(self->IsExceptionPending());  // Expect an OOME.
4365      klass->SetStatus(mirror::Class::kStatusError, self);
4366      return false;
4367    }
4368
4369    CHECK_EQ((*new_class)->GetClassSize(), class_size);
4370    StackHandleScope<1> hs(self);
4371    auto new_class_h = hs.NewHandleWrapper<mirror::Class>(new_class);
4372    ObjectLock<mirror::Class> lock(self, new_class_h);
4373
4374    FixupTemporaryDeclaringClass(klass.Get(), new_class_h.Get());
4375
4376    mirror::Class* existing = UpdateClass(descriptor, new_class_h.Get(), Hash(descriptor));
4377    CHECK(existing == NULL || existing == klass.Get());
4378
4379    // This will notify waiters on temp class that saw the not yet resolved class in the
4380    // class_table_ during EnsureResolved.
4381    klass->SetStatus(mirror::Class::kStatusRetired, self);
4382
4383    CHECK_EQ(new_class_h->GetStatus(), mirror::Class::kStatusResolving);
4384    // This will notify waiters on new_class that saw the not yet resolved
4385    // class in the class_table_ during EnsureResolved.
4386    new_class_h->SetStatus(mirror::Class::kStatusResolved, self);
4387  }
4388  return true;
4389}
4390
4391bool ClassLinker::LoadSuperAndInterfaces(Handle<mirror::Class> klass, const DexFile& dex_file) {
4392  CHECK_EQ(mirror::Class::kStatusIdx, klass->GetStatus());
4393  const DexFile::ClassDef& class_def = dex_file.GetClassDef(klass->GetDexClassDefIndex());
4394  uint16_t super_class_idx = class_def.superclass_idx_;
4395  if (super_class_idx != DexFile::kDexNoIndex16) {
4396    mirror::Class* super_class = ResolveType(dex_file, super_class_idx, klass.Get());
4397    if (super_class == NULL) {
4398      DCHECK(Thread::Current()->IsExceptionPending());
4399      return false;
4400    }
4401    // Verify
4402    if (!klass->CanAccess(super_class)) {
4403      ThrowIllegalAccessError(klass.Get(), "Class %s extended by class %s is inaccessible",
4404                              PrettyDescriptor(super_class).c_str(),
4405                              PrettyDescriptor(klass.Get()).c_str());
4406      return false;
4407    }
4408    CHECK(super_class->IsResolved());
4409    klass->SetSuperClass(super_class);
4410  }
4411  const DexFile::TypeList* interfaces = dex_file.GetInterfacesList(class_def);
4412  if (interfaces != NULL) {
4413    for (size_t i = 0; i < interfaces->Size(); i++) {
4414      uint16_t idx = interfaces->GetTypeItem(i).type_idx_;
4415      mirror::Class* interface = ResolveType(dex_file, idx, klass.Get());
4416      if (interface == NULL) {
4417        DCHECK(Thread::Current()->IsExceptionPending());
4418        return false;
4419      }
4420      // Verify
4421      if (!klass->CanAccess(interface)) {
4422        // TODO: the RI seemed to ignore this in my testing.
4423        ThrowIllegalAccessError(klass.Get(), "Interface %s implemented by class %s is inaccessible",
4424                                PrettyDescriptor(interface).c_str(),
4425                                PrettyDescriptor(klass.Get()).c_str());
4426        return false;
4427      }
4428    }
4429  }
4430  // Mark the class as loaded.
4431  klass->SetStatus(mirror::Class::kStatusLoaded, NULL);
4432  return true;
4433}
4434
4435bool ClassLinker::LinkSuperClass(Handle<mirror::Class> klass) {
4436  CHECK(!klass->IsPrimitive());
4437  mirror::Class* super = klass->GetSuperClass();
4438  if (klass.Get() == GetClassRoot(kJavaLangObject)) {
4439    if (super != NULL) {
4440      ThrowClassFormatError(klass.Get(), "java.lang.Object must not have a superclass");
4441      return false;
4442    }
4443    return true;
4444  }
4445  if (super == NULL) {
4446    ThrowLinkageError(klass.Get(), "No superclass defined for class %s",
4447                      PrettyDescriptor(klass.Get()).c_str());
4448    return false;
4449  }
4450  // Verify
4451  if (super->IsFinal() || super->IsInterface()) {
4452    ThrowIncompatibleClassChangeError(klass.Get(), "Superclass %s of %s is %s",
4453                                      PrettyDescriptor(super).c_str(),
4454                                      PrettyDescriptor(klass.Get()).c_str(),
4455                                      super->IsFinal() ? "declared final" : "an interface");
4456    return false;
4457  }
4458  if (!klass->CanAccess(super)) {
4459    ThrowIllegalAccessError(klass.Get(), "Superclass %s is inaccessible to class %s",
4460                            PrettyDescriptor(super).c_str(),
4461                            PrettyDescriptor(klass.Get()).c_str());
4462    return false;
4463  }
4464
4465  // Inherit kAccClassIsFinalizable from the superclass in case this
4466  // class doesn't override finalize.
4467  if (super->IsFinalizable()) {
4468    klass->SetFinalizable();
4469  }
4470
4471  // Inherit reference flags (if any) from the superclass.
4472  int reference_flags = (super->GetAccessFlags() & kAccReferenceFlagsMask);
4473  if (reference_flags != 0) {
4474    klass->SetAccessFlags(klass->GetAccessFlags() | reference_flags);
4475  }
4476  // Disallow custom direct subclasses of java.lang.ref.Reference.
4477  if (init_done_ && super == GetClassRoot(kJavaLangRefReference)) {
4478    ThrowLinkageError(klass.Get(),
4479                      "Class %s attempts to subclass java.lang.ref.Reference, which is not allowed",
4480                      PrettyDescriptor(klass.Get()).c_str());
4481    return false;
4482  }
4483
4484  if (kIsDebugBuild) {
4485    // Ensure super classes are fully resolved prior to resolving fields..
4486    while (super != NULL) {
4487      CHECK(super->IsResolved());
4488      super = super->GetSuperClass();
4489    }
4490  }
4491  return true;
4492}
4493
4494// Populate the class vtable and itable. Compute return type indices.
4495bool ClassLinker::LinkMethods(Thread* self, Handle<mirror::Class> klass,
4496                              Handle<mirror::ObjectArray<mirror::Class>> interfaces) {
4497  if (klass->IsInterface()) {
4498    // No vtable.
4499    size_t count = klass->NumVirtualMethods();
4500    if (!IsUint(16, count)) {
4501      ThrowClassFormatError(klass.Get(), "Too many methods on interface: %zd", count);
4502      return false;
4503    }
4504    for (size_t i = 0; i < count; ++i) {
4505      klass->GetVirtualMethodDuringLinking(i)->SetMethodIndex(i);
4506    }
4507    // Link interface method tables
4508    return LinkInterfaceMethods(klass, interfaces);
4509  } else {
4510    // Link virtual and interface method tables
4511    return LinkVirtualMethods(self, klass) && LinkInterfaceMethods(klass, interfaces);
4512  }
4513  return true;
4514}
4515
4516bool ClassLinker::LinkVirtualMethods(Thread* self, Handle<mirror::Class> klass) {
4517  if (klass->HasSuperClass()) {
4518    uint32_t max_count = klass->NumVirtualMethods() +
4519        klass->GetSuperClass()->GetVTableLength();
4520    size_t actual_count = klass->GetSuperClass()->GetVTableLength();
4521    CHECK_LE(actual_count, max_count);
4522    StackHandleScope<4> hs(self);
4523    Handle<mirror::Class> super_class(hs.NewHandle(klass->GetSuperClass()));
4524    Handle<mirror::ObjectArray<mirror::ArtMethod>> vtable;
4525    if (super_class->ShouldHaveEmbeddedImtAndVTable()) {
4526      vtable = hs.NewHandle(AllocArtMethodArray(self, max_count));
4527      if (UNLIKELY(vtable.Get() == nullptr)) {
4528        CHECK(self->IsExceptionPending());  // OOME.
4529        return false;
4530      }
4531      int len = super_class->GetVTableLength();
4532      for (int i = 0; i < len; i++) {
4533        vtable->Set<false>(i, super_class->GetVTableEntry(i));
4534      }
4535    } else {
4536      CHECK(super_class->GetVTable() != nullptr) << PrettyClass(super_class.Get());
4537      vtable = hs.NewHandle(super_class->GetVTable()->CopyOf(self, max_count));
4538      if (UNLIKELY(vtable.Get() == nullptr)) {
4539        CHECK(self->IsExceptionPending());  // OOME.
4540        return false;
4541      }
4542    }
4543
4544    // See if any of our virtual methods override the superclass.
4545    MethodHelper local_mh(hs.NewHandle<mirror::ArtMethod>(nullptr));
4546    MethodHelper super_mh(hs.NewHandle<mirror::ArtMethod>(nullptr));
4547    for (size_t i = 0; i < klass->NumVirtualMethods(); ++i) {
4548      mirror::ArtMethod* local_method = klass->GetVirtualMethodDuringLinking(i);
4549      local_mh.ChangeMethod(local_method);
4550      size_t j = 0;
4551      for (; j < actual_count; ++j) {
4552        mirror::ArtMethod* super_method = vtable->Get(j);
4553        super_mh.ChangeMethod(super_method);
4554        if (local_mh.HasSameNameAndSignature(&super_mh)) {
4555          if (klass->CanAccessMember(super_method->GetDeclaringClass(),
4556                                     super_method->GetAccessFlags())) {
4557            if (super_method->IsFinal()) {
4558              ThrowLinkageError(klass.Get(), "Method %s overrides final method in class %s",
4559                                PrettyMethod(local_method).c_str(),
4560                                super_method->GetDeclaringClassDescriptor());
4561              return false;
4562            }
4563            vtable->Set<false>(j, local_method);
4564            local_method->SetMethodIndex(j);
4565            break;
4566          } else {
4567            LOG(WARNING) << "Before Android 4.1, method " << PrettyMethod(local_method)
4568                         << " would have incorrectly overridden the package-private method in "
4569                         << PrettyDescriptor(super_method->GetDeclaringClassDescriptor());
4570          }
4571        }
4572      }
4573      if (j == actual_count) {
4574        // Not overriding, append.
4575        vtable->Set<false>(actual_count, local_method);
4576        local_method->SetMethodIndex(actual_count);
4577        actual_count += 1;
4578      }
4579    }
4580    if (!IsUint(16, actual_count)) {
4581      ThrowClassFormatError(klass.Get(), "Too many methods defined on class: %zd", actual_count);
4582      return false;
4583    }
4584    // Shrink vtable if possible
4585    CHECK_LE(actual_count, max_count);
4586    if (actual_count < max_count) {
4587      vtable.Assign(vtable->CopyOf(self, actual_count));
4588      if (UNLIKELY(vtable.Get() == NULL)) {
4589        CHECK(self->IsExceptionPending());  // OOME.
4590        return false;
4591      }
4592    }
4593    klass->SetVTable(vtable.Get());
4594  } else {
4595    CHECK_EQ(klass.Get(), GetClassRoot(kJavaLangObject));
4596    uint32_t num_virtual_methods = klass->NumVirtualMethods();
4597    if (!IsUint(16, num_virtual_methods)) {
4598      ThrowClassFormatError(klass.Get(), "Too many methods: %d", num_virtual_methods);
4599      return false;
4600    }
4601    StackHandleScope<1> hs(self);
4602    Handle<mirror::ObjectArray<mirror::ArtMethod>>
4603        vtable(hs.NewHandle(AllocArtMethodArray(self, num_virtual_methods)));
4604    if (UNLIKELY(vtable.Get() == NULL)) {
4605      CHECK(self->IsExceptionPending());  // OOME.
4606      return false;
4607    }
4608    for (size_t i = 0; i < num_virtual_methods; ++i) {
4609      mirror::ArtMethod* virtual_method = klass->GetVirtualMethodDuringLinking(i);
4610      vtable->Set<false>(i, virtual_method);
4611      virtual_method->SetMethodIndex(i & 0xFFFF);
4612    }
4613    klass->SetVTable(vtable.Get());
4614  }
4615  return true;
4616}
4617
4618bool ClassLinker::LinkInterfaceMethods(Handle<mirror::Class> klass,
4619                                       Handle<mirror::ObjectArray<mirror::Class>> interfaces) {
4620  Thread* const self = Thread::Current();
4621  Runtime* const runtime = Runtime::Current();
4622  // Set the imt table to be all conflicts by default.
4623  klass->SetImTable(runtime->GetDefaultImt());
4624  size_t super_ifcount;
4625  if (klass->HasSuperClass()) {
4626    super_ifcount = klass->GetSuperClass()->GetIfTableCount();
4627  } else {
4628    super_ifcount = 0;
4629  }
4630  uint32_t num_interfaces =
4631      interfaces.Get() == nullptr ? klass->NumDirectInterfaces() : interfaces->GetLength();
4632  size_t ifcount = super_ifcount + num_interfaces;
4633  for (size_t i = 0; i < num_interfaces; i++) {
4634    mirror::Class* interface =
4635        interfaces.Get() == nullptr ? mirror::Class::GetDirectInterface(self, klass, i) :
4636            interfaces->Get(i);
4637    ifcount += interface->GetIfTableCount();
4638  }
4639  if (ifcount == 0) {
4640    // Class implements no interfaces.
4641    DCHECK_EQ(klass->GetIfTableCount(), 0);
4642    DCHECK(klass->GetIfTable() == NULL);
4643    return true;
4644  }
4645  if (ifcount == super_ifcount) {
4646    // Class implements same interfaces as parent, are any of these not marker interfaces?
4647    bool has_non_marker_interface = false;
4648    mirror::IfTable* super_iftable = klass->GetSuperClass()->GetIfTable();
4649    for (size_t i = 0; i < ifcount; ++i) {
4650      if (super_iftable->GetMethodArrayCount(i) > 0) {
4651        has_non_marker_interface = true;
4652        break;
4653      }
4654    }
4655    if (!has_non_marker_interface) {
4656      // Class just inherits marker interfaces from parent so recycle parent's iftable.
4657      klass->SetIfTable(super_iftable);
4658      return true;
4659    }
4660  }
4661  StackHandleScope<4> hs(self);
4662  Handle<mirror::IfTable> iftable(hs.NewHandle(AllocIfTable(self, ifcount)));
4663  if (UNLIKELY(iftable.Get() == NULL)) {
4664    CHECK(self->IsExceptionPending());  // OOME.
4665    return false;
4666  }
4667  if (super_ifcount != 0) {
4668    mirror::IfTable* super_iftable = klass->GetSuperClass()->GetIfTable();
4669    for (size_t i = 0; i < super_ifcount; i++) {
4670      mirror::Class* super_interface = super_iftable->GetInterface(i);
4671      iftable->SetInterface(i, super_interface);
4672    }
4673  }
4674  // Flatten the interface inheritance hierarchy.
4675  size_t idx = super_ifcount;
4676  for (size_t i = 0; i < num_interfaces; i++) {
4677    mirror::Class* interface =
4678        interfaces.Get() == nullptr ? mirror::Class::GetDirectInterface(self, klass, i) :
4679            interfaces->Get(i);
4680    DCHECK(interface != NULL);
4681    if (!interface->IsInterface()) {
4682      std::string temp;
4683      ThrowIncompatibleClassChangeError(klass.Get(), "Class %s implements non-interface class %s",
4684                                        PrettyDescriptor(klass.Get()).c_str(),
4685                                        PrettyDescriptor(interface->GetDescriptor(&temp)).c_str());
4686      return false;
4687    }
4688    // Check if interface is already in iftable
4689    bool duplicate = false;
4690    for (size_t j = 0; j < idx; j++) {
4691      mirror::Class* existing_interface = iftable->GetInterface(j);
4692      if (existing_interface == interface) {
4693        duplicate = true;
4694        break;
4695      }
4696    }
4697    if (!duplicate) {
4698      // Add this non-duplicate interface.
4699      iftable->SetInterface(idx++, interface);
4700      // Add this interface's non-duplicate super-interfaces.
4701      for (int32_t j = 0; j < interface->GetIfTableCount(); j++) {
4702        mirror::Class* super_interface = interface->GetIfTable()->GetInterface(j);
4703        bool super_duplicate = false;
4704        for (size_t k = 0; k < idx; k++) {
4705          mirror::Class* existing_interface = iftable->GetInterface(k);
4706          if (existing_interface == super_interface) {
4707            super_duplicate = true;
4708            break;
4709          }
4710        }
4711        if (!super_duplicate) {
4712          iftable->SetInterface(idx++, super_interface);
4713        }
4714      }
4715    }
4716  }
4717  // Shrink iftable in case duplicates were found
4718  if (idx < ifcount) {
4719    iftable.Assign(down_cast<mirror::IfTable*>(iftable->CopyOf(self, idx * mirror::IfTable::kMax)));
4720    if (UNLIKELY(iftable.Get() == NULL)) {
4721      CHECK(self->IsExceptionPending());  // OOME.
4722      return false;
4723    }
4724    ifcount = idx;
4725  } else {
4726    CHECK_EQ(idx, ifcount);
4727  }
4728  klass->SetIfTable(iftable.Get());
4729
4730  // If we're an interface, we don't need the vtable pointers, so we're done.
4731  if (klass->IsInterface()) {
4732    return true;
4733  }
4734  // Allocate imtable
4735  bool imtable_changed = false;
4736  Handle<mirror::ObjectArray<mirror::ArtMethod>> imtable(
4737      hs.NewHandle(AllocArtMethodArray(self, mirror::Class::kImtSize)));
4738  if (UNLIKELY(imtable.Get() == NULL)) {
4739    CHECK(self->IsExceptionPending());  // OOME.
4740    return false;
4741  }
4742  MethodHelper interface_mh(hs.NewHandle<mirror::ArtMethod>(nullptr));
4743  MethodHelper vtable_mh(hs.NewHandle<mirror::ArtMethod>(nullptr));
4744  std::vector<mirror::ArtMethod*> miranda_list;
4745  for (size_t i = 0; i < ifcount; ++i) {
4746    size_t num_methods = iftable->GetInterface(i)->NumVirtualMethods();
4747    if (num_methods > 0) {
4748      StackHandleScope<2> hs(self);
4749      Handle<mirror::ObjectArray<mirror::ArtMethod>>
4750          method_array(hs.NewHandle(AllocArtMethodArray(self, num_methods)));
4751      if (UNLIKELY(method_array.Get() == nullptr)) {
4752        CHECK(self->IsExceptionPending());  // OOME.
4753        return false;
4754      }
4755      iftable->SetMethodArray(i, method_array.Get());
4756      Handle<mirror::ObjectArray<mirror::ArtMethod>> vtable(
4757          hs.NewHandle(klass->GetVTableDuringLinking()));
4758      for (size_t j = 0; j < num_methods; ++j) {
4759        mirror::ArtMethod* interface_method = iftable->GetInterface(i)->GetVirtualMethod(j);
4760        interface_mh.ChangeMethod(interface_method);
4761        int32_t k;
4762        // For each method listed in the interface's method list, find the
4763        // matching method in our class's method list.  We want to favor the
4764        // subclass over the superclass, which just requires walking
4765        // back from the end of the vtable.  (This only matters if the
4766        // superclass defines a private method and this class redefines
4767        // it -- otherwise it would use the same vtable slot.  In .dex files
4768        // those don't end up in the virtual method table, so it shouldn't
4769        // matter which direction we go.  We walk it backward anyway.)
4770        for (k = vtable->GetLength() - 1; k >= 0; --k) {
4771          mirror::ArtMethod* vtable_method = vtable->Get(k);
4772          vtable_mh.ChangeMethod(vtable_method);
4773          if (interface_mh.HasSameNameAndSignature(&vtable_mh)) {
4774            if (!vtable_method->IsAbstract() && !vtable_method->IsPublic()) {
4775              ThrowIllegalAccessError(
4776                  klass.Get(),
4777                  "Method '%s' implementing interface method '%s' is not public",
4778                  PrettyMethod(vtable_method).c_str(),
4779                  PrettyMethod(interface_method).c_str());
4780              return false;
4781            }
4782            method_array->Set<false>(j, vtable_method);
4783            // Place method in imt if entry is empty, place conflict otherwise.
4784            uint32_t imt_index = interface_method->GetDexMethodIndex() % mirror::Class::kImtSize;
4785            if (imtable->Get(imt_index) == NULL) {
4786              imtable->Set<false>(imt_index, vtable_method);
4787              imtable_changed = true;
4788            } else {
4789              imtable->Set<false>(imt_index, runtime->GetImtConflictMethod());
4790            }
4791            break;
4792          }
4793        }
4794        if (k < 0) {
4795          StackHandleScope<1> hs(self);
4796          auto miranda_method = hs.NewHandle<mirror::ArtMethod>(nullptr);
4797          for (mirror::ArtMethod* mir_method : miranda_list) {
4798            vtable_mh.ChangeMethod(mir_method);
4799            if (interface_mh.HasSameNameAndSignature(&vtable_mh)) {
4800              miranda_method.Assign(mir_method);
4801              break;
4802            }
4803          }
4804          if (miranda_method.Get() == NULL) {
4805            // Point the interface table at a phantom slot.
4806            miranda_method.Assign(down_cast<mirror::ArtMethod*>(interface_method->Clone(self)));
4807            if (UNLIKELY(miranda_method.Get() == NULL)) {
4808              CHECK(self->IsExceptionPending());  // OOME.
4809              return false;
4810            }
4811            // TODO: If a methods move then the miranda_list may hold stale references.
4812            miranda_list.push_back(miranda_method.Get());
4813          }
4814          method_array->Set<false>(j, miranda_method.Get());
4815        }
4816      }
4817    }
4818  }
4819  if (imtable_changed) {
4820    // Fill in empty entries in interface method table with conflict.
4821    mirror::ArtMethod* imt_conflict_method = runtime->GetImtConflictMethod();
4822    for (size_t i = 0; i < mirror::Class::kImtSize; i++) {
4823      if (imtable->Get(i) == NULL) {
4824        imtable->Set<false>(i, imt_conflict_method);
4825      }
4826    }
4827    klass->SetImTable(imtable.Get());
4828  }
4829  if (!miranda_list.empty()) {
4830    int old_method_count = klass->NumVirtualMethods();
4831    int new_method_count = old_method_count + miranda_list.size();
4832    mirror::ObjectArray<mirror::ArtMethod>* virtuals;
4833    if (old_method_count == 0) {
4834      virtuals = AllocArtMethodArray(self, new_method_count);
4835    } else {
4836      virtuals = klass->GetVirtualMethods()->CopyOf(self, new_method_count);
4837    }
4838    if (UNLIKELY(virtuals == NULL)) {
4839      CHECK(self->IsExceptionPending());  // OOME.
4840      return false;
4841    }
4842    klass->SetVirtualMethods(virtuals);
4843
4844    StackHandleScope<1> hs(self);
4845    Handle<mirror::ObjectArray<mirror::ArtMethod>> vtable(
4846        hs.NewHandle(klass->GetVTableDuringLinking()));
4847    CHECK(vtable.Get() != NULL);
4848    int old_vtable_count = vtable->GetLength();
4849    int new_vtable_count = old_vtable_count + miranda_list.size();
4850    vtable.Assign(vtable->CopyOf(self, new_vtable_count));
4851    if (UNLIKELY(vtable.Get() == NULL)) {
4852      CHECK(self->IsExceptionPending());  // OOME.
4853      return false;
4854    }
4855    for (size_t i = 0; i < miranda_list.size(); ++i) {
4856      mirror::ArtMethod* method = miranda_list[i];
4857      // Leave the declaring class alone as type indices are relative to it
4858      method->SetAccessFlags(method->GetAccessFlags() | kAccMiranda);
4859      method->SetMethodIndex(0xFFFF & (old_vtable_count + i));
4860      klass->SetVirtualMethod(old_method_count + i, method);
4861      vtable->Set<false>(old_vtable_count + i, method);
4862    }
4863    // TODO: do not assign to the vtable field until it is fully constructed.
4864    klass->SetVTable(vtable.Get());
4865  }
4866
4867  mirror::ObjectArray<mirror::ArtMethod>* vtable = klass->GetVTableDuringLinking();
4868  for (int i = 0; i < vtable->GetLength(); ++i) {
4869    CHECK(vtable->Get(i) != NULL);
4870  }
4871
4872//  klass->DumpClass(std::cerr, Class::kDumpClassFullDetail);
4873
4874  return true;
4875}
4876
4877bool ClassLinker::LinkInstanceFields(Handle<mirror::Class> klass) {
4878  CHECK(klass.Get() != NULL);
4879  return LinkFields(klass, false, nullptr);
4880}
4881
4882bool ClassLinker::LinkStaticFields(Handle<mirror::Class> klass, size_t* class_size) {
4883  CHECK(klass.Get() != NULL);
4884  return LinkFields(klass, true, class_size);
4885}
4886
4887struct LinkFieldsComparator {
4888  explicit LinkFieldsComparator() SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
4889  }
4890  // No thread safety analysis as will be called from STL. Checked lock held in constructor.
4891  bool operator()(mirror::ArtField* field1, mirror::ArtField* field2)
4892      NO_THREAD_SAFETY_ANALYSIS {
4893    // First come reference fields, then 64-bit, and finally 32-bit
4894    Primitive::Type type1 = field1->GetTypeAsPrimitiveType();
4895    Primitive::Type type2 = field2->GetTypeAsPrimitiveType();
4896    if (type1 != type2) {
4897      bool is_primitive1 = type1 != Primitive::kPrimNot;
4898      bool is_primitive2 = type2 != Primitive::kPrimNot;
4899      bool is64bit1 = is_primitive1 && (type1 == Primitive::kPrimLong ||
4900                                        type1 == Primitive::kPrimDouble);
4901      bool is64bit2 = is_primitive2 && (type2 == Primitive::kPrimLong ||
4902                                        type2 == Primitive::kPrimDouble);
4903      int order1 = !is_primitive1 ? 0 : (is64bit1 ? 1 : 2);
4904      int order2 = !is_primitive2 ? 0 : (is64bit2 ? 1 : 2);
4905      if (order1 != order2) {
4906        return order1 < order2;
4907      }
4908    }
4909    // same basic group? then sort by string.
4910    return strcmp(field1->GetName(), field2->GetName()) < 0;
4911  }
4912};
4913
4914bool ClassLinker::LinkFields(Handle<mirror::Class> klass, bool is_static, size_t* class_size) {
4915  size_t num_fields =
4916      is_static ? klass->NumStaticFields() : klass->NumInstanceFields();
4917
4918  mirror::ObjectArray<mirror::ArtField>* fields =
4919      is_static ? klass->GetSFields() : klass->GetIFields();
4920
4921  // Initialize field_offset
4922  MemberOffset field_offset(0);
4923  if (is_static) {
4924    uint32_t base = sizeof(mirror::Class);  // Static fields come after the class.
4925    if (klass->ShouldHaveEmbeddedImtAndVTable()) {
4926      // Static fields come after the embedded tables.
4927      base = mirror::Class::ComputeClassSize(true, klass->GetVTableDuringLinking()->GetLength(),
4928                                             0, 0, 0);
4929    }
4930    field_offset = MemberOffset(base);
4931  } else {
4932    mirror::Class* super_class = klass->GetSuperClass();
4933    if (super_class != NULL) {
4934      CHECK(super_class->IsResolved())
4935          << PrettyClass(klass.Get()) << " " << PrettyClass(super_class);
4936      field_offset = MemberOffset(super_class->GetObjectSize());
4937    }
4938  }
4939
4940  CHECK_EQ(num_fields == 0, fields == NULL) << PrettyClass(klass.Get());
4941
4942  // we want a relatively stable order so that adding new fields
4943  // minimizes disruption of C++ version such as Class and Method.
4944  std::deque<mirror::ArtField*> grouped_and_sorted_fields;
4945  for (size_t i = 0; i < num_fields; i++) {
4946    mirror::ArtField* f = fields->Get(i);
4947    CHECK(f != NULL) << PrettyClass(klass.Get());
4948    grouped_and_sorted_fields.push_back(f);
4949  }
4950  std::sort(grouped_and_sorted_fields.begin(), grouped_and_sorted_fields.end(),
4951            LinkFieldsComparator());
4952
4953  // References should be at the front.
4954  size_t current_field = 0;
4955  size_t num_reference_fields = 0;
4956  for (; current_field < num_fields; current_field++) {
4957    mirror::ArtField* field = grouped_and_sorted_fields.front();
4958    Primitive::Type type = field->GetTypeAsPrimitiveType();
4959    bool isPrimitive = type != Primitive::kPrimNot;
4960    if (isPrimitive) {
4961      break;  // past last reference, move on to the next phase
4962    }
4963    grouped_and_sorted_fields.pop_front();
4964    num_reference_fields++;
4965    fields->Set<false>(current_field, field);
4966    field->SetOffset(field_offset);
4967    field_offset = MemberOffset(field_offset.Uint32Value() + sizeof(uint32_t));
4968  }
4969
4970  // Now we want to pack all of the double-wide fields together.  If
4971  // we're not aligned, though, we want to shuffle one 32-bit field
4972  // into place.  If we can't find one, we'll have to pad it.
4973  if (current_field != num_fields && !IsAligned<8>(field_offset.Uint32Value())) {
4974    for (size_t i = 0; i < grouped_and_sorted_fields.size(); i++) {
4975      mirror::ArtField* field = grouped_and_sorted_fields[i];
4976      Primitive::Type type = field->GetTypeAsPrimitiveType();
4977      CHECK(type != Primitive::kPrimNot) << PrettyField(field);  // should be primitive types
4978      if (type == Primitive::kPrimLong || type == Primitive::kPrimDouble) {
4979        continue;
4980      }
4981      fields->Set<false>(current_field++, field);
4982      field->SetOffset(field_offset);
4983      // drop the consumed field
4984      grouped_and_sorted_fields.erase(grouped_and_sorted_fields.begin() + i);
4985      break;
4986    }
4987    // whether we found a 32-bit field for padding or not, we advance
4988    field_offset = MemberOffset(field_offset.Uint32Value() + sizeof(uint32_t));
4989  }
4990
4991  // Alignment is good, shuffle any double-wide fields forward, and
4992  // finish assigning field offsets to all fields.
4993  DCHECK(current_field == num_fields || IsAligned<8>(field_offset.Uint32Value()))
4994      << PrettyClass(klass.Get());
4995  while (!grouped_and_sorted_fields.empty()) {
4996    mirror::ArtField* field = grouped_and_sorted_fields.front();
4997    grouped_and_sorted_fields.pop_front();
4998    Primitive::Type type = field->GetTypeAsPrimitiveType();
4999    CHECK(type != Primitive::kPrimNot) << PrettyField(field);  // should be primitive types
5000    fields->Set<false>(current_field, field);
5001    field->SetOffset(field_offset);
5002    field_offset = MemberOffset(field_offset.Uint32Value() +
5003                                ((type == Primitive::kPrimLong || type == Primitive::kPrimDouble)
5004                                 ? sizeof(uint64_t)
5005                                 : sizeof(uint32_t)));
5006    current_field++;
5007  }
5008
5009  // We lie to the GC about the java.lang.ref.Reference.referent field, so it doesn't scan it.
5010  if (!is_static && klass->DescriptorEquals("Ljava/lang/ref/Reference;")) {
5011    // We know there are no non-reference fields in the Reference classes, and we know
5012    // that 'referent' is alphabetically last, so this is easy...
5013    CHECK_EQ(num_reference_fields, num_fields) << PrettyClass(klass.Get());
5014    CHECK_STREQ(fields->Get(num_fields - 1)->GetName(), "referent") << PrettyClass(klass.Get());
5015    --num_reference_fields;
5016  }
5017
5018  if (kIsDebugBuild) {
5019    // Make sure that all reference fields appear before
5020    // non-reference fields, and all double-wide fields are aligned.
5021    bool seen_non_ref = false;
5022    for (size_t i = 0; i < num_fields; i++) {
5023      mirror::ArtField* field = fields->Get(i);
5024      if (false) {  // enable to debug field layout
5025        LOG(INFO) << "LinkFields: " << (is_static ? "static" : "instance")
5026                    << " class=" << PrettyClass(klass.Get())
5027                    << " field=" << PrettyField(field)
5028                    << " offset="
5029                    << field->GetField32(MemberOffset(mirror::ArtField::OffsetOffset()));
5030      }
5031      Primitive::Type type = field->GetTypeAsPrimitiveType();
5032      bool is_primitive = type != Primitive::kPrimNot;
5033      if (klass->DescriptorEquals("Ljava/lang/ref/Reference;") &&
5034          strcmp("referent", field->GetName()) == 0) {
5035        is_primitive = true;  // We lied above, so we have to expect a lie here.
5036      }
5037      if (is_primitive) {
5038        if (!seen_non_ref) {
5039          seen_non_ref = true;
5040          DCHECK_EQ(num_reference_fields, i) << PrettyField(field);
5041        }
5042      } else {
5043        DCHECK(!seen_non_ref) << PrettyField(field);
5044      }
5045    }
5046    if (!seen_non_ref) {
5047      DCHECK_EQ(num_fields, num_reference_fields) << PrettyClass(klass.Get());
5048    }
5049  }
5050
5051  size_t size = field_offset.Uint32Value();
5052  // Update klass
5053  if (is_static) {
5054    klass->SetNumReferenceStaticFields(num_reference_fields);
5055    *class_size = size;
5056  } else {
5057    klass->SetNumReferenceInstanceFields(num_reference_fields);
5058    if (!klass->IsVariableSize()) {
5059      std::string temp;
5060      DCHECK_GE(size, sizeof(mirror::Object)) << klass->GetDescriptor(&temp);
5061      size_t previous_size = klass->GetObjectSize();
5062      if (previous_size != 0) {
5063        // Make sure that we didn't originally have an incorrect size.
5064        CHECK_EQ(previous_size, size) << klass->GetDescriptor(&temp);
5065      }
5066      klass->SetObjectSize(size);
5067    }
5068  }
5069  return true;
5070}
5071
5072//  Set the bitmap of reference offsets, refOffsets, from the ifields
5073//  list.
5074void ClassLinker::CreateReferenceInstanceOffsets(Handle<mirror::Class> klass) {
5075  uint32_t reference_offsets = 0;
5076  mirror::Class* super_class = klass->GetSuperClass();
5077  if (super_class != NULL) {
5078    reference_offsets = super_class->GetReferenceInstanceOffsets();
5079    // If our superclass overflowed, we don't stand a chance.
5080    if (reference_offsets == CLASS_WALK_SUPER) {
5081      klass->SetReferenceInstanceOffsets(reference_offsets);
5082      return;
5083    }
5084  }
5085  CreateReferenceOffsets(klass, false, reference_offsets);
5086}
5087
5088void ClassLinker::CreateReferenceStaticOffsets(Handle<mirror::Class> klass) {
5089  CreateReferenceOffsets(klass, true, 0);
5090}
5091
5092void ClassLinker::CreateReferenceOffsets(Handle<mirror::Class> klass, bool is_static,
5093                                         uint32_t reference_offsets) {
5094  size_t num_reference_fields =
5095      is_static ? klass->NumReferenceStaticFieldsDuringLinking()
5096                : klass->NumReferenceInstanceFieldsDuringLinking();
5097  mirror::ObjectArray<mirror::ArtField>* fields =
5098      is_static ? klass->GetSFields() : klass->GetIFields();
5099  // All of the fields that contain object references are guaranteed
5100  // to be at the beginning of the fields list.
5101  for (size_t i = 0; i < num_reference_fields; ++i) {
5102    // Note that byte_offset is the offset from the beginning of
5103    // object, not the offset into instance data
5104    mirror::ArtField* field = fields->Get(i);
5105    MemberOffset byte_offset = field->GetOffsetDuringLinking();
5106    CHECK_EQ(byte_offset.Uint32Value() & (CLASS_OFFSET_ALIGNMENT - 1), 0U);
5107    if (CLASS_CAN_ENCODE_OFFSET(byte_offset.Uint32Value())) {
5108      uint32_t new_bit = CLASS_BIT_FROM_OFFSET(byte_offset.Uint32Value());
5109      CHECK_NE(new_bit, 0U);
5110      reference_offsets |= new_bit;
5111    } else {
5112      reference_offsets = CLASS_WALK_SUPER;
5113      break;
5114    }
5115  }
5116  // Update fields in klass
5117  if (is_static) {
5118    klass->SetReferenceStaticOffsets(reference_offsets);
5119  } else {
5120    klass->SetReferenceInstanceOffsets(reference_offsets);
5121  }
5122}
5123
5124mirror::String* ClassLinker::ResolveString(const DexFile& dex_file, uint32_t string_idx,
5125                                           Handle<mirror::DexCache> dex_cache) {
5126  DCHECK(dex_cache.Get() != nullptr);
5127  mirror::String* resolved = dex_cache->GetResolvedString(string_idx);
5128  if (resolved != NULL) {
5129    return resolved;
5130  }
5131  uint32_t utf16_length;
5132  const char* utf8_data = dex_file.StringDataAndUtf16LengthByIdx(string_idx, &utf16_length);
5133  mirror::String* string = intern_table_->InternStrong(utf16_length, utf8_data);
5134  dex_cache->SetResolvedString(string_idx, string);
5135  return string;
5136}
5137
5138mirror::Class* ClassLinker::ResolveType(const DexFile& dex_file, uint16_t type_idx,
5139                                        mirror::Class* referrer) {
5140  StackHandleScope<2> hs(Thread::Current());
5141  Handle<mirror::DexCache> dex_cache(hs.NewHandle(referrer->GetDexCache()));
5142  Handle<mirror::ClassLoader> class_loader(hs.NewHandle(referrer->GetClassLoader()));
5143  return ResolveType(dex_file, type_idx, dex_cache, class_loader);
5144}
5145
5146mirror::Class* ClassLinker::ResolveType(const DexFile& dex_file, uint16_t type_idx,
5147                                        Handle<mirror::DexCache> dex_cache,
5148                                        Handle<mirror::ClassLoader> class_loader) {
5149  DCHECK(dex_cache.Get() != NULL);
5150  mirror::Class* resolved = dex_cache->GetResolvedType(type_idx);
5151  if (resolved == NULL) {
5152    Thread* self = Thread::Current();
5153    const char* descriptor = dex_file.StringByTypeIdx(type_idx);
5154    resolved = FindClass(self, descriptor, class_loader);
5155    if (resolved != NULL) {
5156      // TODO: we used to throw here if resolved's class loader was not the
5157      //       boot class loader. This was to permit different classes with the
5158      //       same name to be loaded simultaneously by different loaders
5159      dex_cache->SetResolvedType(type_idx, resolved);
5160    } else {
5161      CHECK(self->IsExceptionPending())
5162          << "Expected pending exception for failed resolution of: " << descriptor;
5163      // Convert a ClassNotFoundException to a NoClassDefFoundError.
5164      StackHandleScope<1> hs(self);
5165      Handle<mirror::Throwable> cause(hs.NewHandle(self->GetException(nullptr)));
5166      if (cause->InstanceOf(GetClassRoot(kJavaLangClassNotFoundException))) {
5167        DCHECK(resolved == NULL);  // No Handle needed to preserve resolved.
5168        self->ClearException();
5169        ThrowNoClassDefFoundError("Failed resolution of: %s", descriptor);
5170        self->GetException(NULL)->SetCause(cause.Get());
5171      }
5172    }
5173  }
5174  DCHECK((resolved == NULL) || resolved->IsResolved() || resolved->IsErroneous())
5175          << PrettyDescriptor(resolved) << " " << resolved->GetStatus();
5176  return resolved;
5177}
5178
5179mirror::ArtMethod* ClassLinker::ResolveMethod(const DexFile& dex_file, uint32_t method_idx,
5180                                              Handle<mirror::DexCache> dex_cache,
5181                                              Handle<mirror::ClassLoader> class_loader,
5182                                              Handle<mirror::ArtMethod> referrer,
5183                                              InvokeType type) {
5184  DCHECK(dex_cache.Get() != nullptr);
5185  // Check for hit in the dex cache.
5186  mirror::ArtMethod* resolved = dex_cache->GetResolvedMethod(method_idx);
5187  if (resolved != nullptr && !resolved->IsRuntimeMethod()) {
5188    return resolved;
5189  }
5190  // Fail, get the declaring class.
5191  const DexFile::MethodId& method_id = dex_file.GetMethodId(method_idx);
5192  mirror::Class* klass = ResolveType(dex_file, method_id.class_idx_, dex_cache, class_loader);
5193  if (klass == nullptr) {
5194    DCHECK(Thread::Current()->IsExceptionPending());
5195    return nullptr;
5196  }
5197  // Scan using method_idx, this saves string compares but will only hit for matching dex
5198  // caches/files.
5199  switch (type) {
5200    case kDirect:  // Fall-through.
5201    case kStatic:
5202      resolved = klass->FindDirectMethod(dex_cache.Get(), method_idx);
5203      break;
5204    case kInterface:
5205      resolved = klass->FindInterfaceMethod(dex_cache.Get(), method_idx);
5206      DCHECK(resolved == nullptr || resolved->GetDeclaringClass()->IsInterface());
5207      break;
5208    case kSuper:  // Fall-through.
5209    case kVirtual:
5210      resolved = klass->FindVirtualMethod(dex_cache.Get(), method_idx);
5211      break;
5212    default:
5213      LOG(FATAL) << "Unreachable - invocation type: " << type;
5214  }
5215  if (resolved == nullptr) {
5216    // Search by name, which works across dex files.
5217    const char* name = dex_file.StringDataByIdx(method_id.name_idx_);
5218    const Signature signature = dex_file.GetMethodSignature(method_id);
5219    switch (type) {
5220      case kDirect:  // Fall-through.
5221      case kStatic:
5222        resolved = klass->FindDirectMethod(name, signature);
5223        break;
5224      case kInterface:
5225        resolved = klass->FindInterfaceMethod(name, signature);
5226        DCHECK(resolved == nullptr || resolved->GetDeclaringClass()->IsInterface());
5227        break;
5228      case kSuper:  // Fall-through.
5229      case kVirtual:
5230        resolved = klass->FindVirtualMethod(name, signature);
5231        break;
5232    }
5233  }
5234  // If we found a method, check for incompatible class changes.
5235  if (LIKELY(resolved != nullptr && !resolved->CheckIncompatibleClassChange(type))) {
5236    // Be a good citizen and update the dex cache to speed subsequent calls.
5237    dex_cache->SetResolvedMethod(method_idx, resolved);
5238    return resolved;
5239  } else {
5240    // If we had a method, it's an incompatible-class-change error.
5241    if (resolved != nullptr) {
5242      ThrowIncompatibleClassChangeError(type, resolved->GetInvokeType(), resolved, referrer.Get());
5243    } else {
5244      // We failed to find the method which means either an access error, an incompatible class
5245      // change, or no such method. First try to find the method among direct and virtual methods.
5246      const char* name = dex_file.StringDataByIdx(method_id.name_idx_);
5247      const Signature signature = dex_file.GetMethodSignature(method_id);
5248      switch (type) {
5249        case kDirect:
5250        case kStatic:
5251          resolved = klass->FindVirtualMethod(name, signature);
5252          // Note: kDirect and kStatic are also mutually exclusive, but in that case we would
5253          //       have had a resolved method before, which triggers the "true" branch above.
5254          break;
5255        case kInterface:
5256        case kVirtual:
5257        case kSuper:
5258          resolved = klass->FindDirectMethod(name, signature);
5259          break;
5260      }
5261
5262      // If we found something, check that it can be accessed by the referrer.
5263      if (resolved != nullptr && referrer.Get() != nullptr) {
5264        mirror::Class* methods_class = resolved->GetDeclaringClass();
5265        mirror::Class* referring_class = referrer->GetDeclaringClass();
5266        if (!referring_class->CanAccess(methods_class)) {
5267          ThrowIllegalAccessErrorClassForMethodDispatch(referring_class, methods_class,
5268                                                        resolved, type);
5269          return nullptr;
5270        } else if (!referring_class->CanAccessMember(methods_class,
5271                                                     resolved->GetAccessFlags())) {
5272          ThrowIllegalAccessErrorMethod(referring_class, resolved);
5273          return nullptr;
5274        }
5275      }
5276
5277      // Otherwise, throw an IncompatibleClassChangeError if we found something, and check interface
5278      // methods and throw if we find the method there. If we find nothing, throw a
5279      // NoSuchMethodError.
5280      switch (type) {
5281        case kDirect:
5282        case kStatic:
5283          if (resolved != nullptr) {
5284            ThrowIncompatibleClassChangeError(type, kVirtual, resolved, referrer.Get());
5285          } else {
5286            resolved = klass->FindInterfaceMethod(name, signature);
5287            if (resolved != nullptr) {
5288              ThrowIncompatibleClassChangeError(type, kInterface, resolved, referrer.Get());
5289            } else {
5290              ThrowNoSuchMethodError(type, klass, name, signature);
5291            }
5292          }
5293          break;
5294        case kInterface:
5295          if (resolved != nullptr) {
5296            ThrowIncompatibleClassChangeError(type, kDirect, resolved, referrer.Get());
5297          } else {
5298            resolved = klass->FindVirtualMethod(name, signature);
5299            if (resolved != nullptr) {
5300              ThrowIncompatibleClassChangeError(type, kVirtual, resolved, referrer.Get());
5301            } else {
5302              ThrowNoSuchMethodError(type, klass, name, signature);
5303            }
5304          }
5305          break;
5306        case kSuper:
5307          if (resolved != nullptr) {
5308            ThrowIncompatibleClassChangeError(type, kDirect, resolved, referrer.Get());
5309          } else {
5310            ThrowNoSuchMethodError(type, klass, name, signature);
5311          }
5312          break;
5313        case kVirtual:
5314          if (resolved != nullptr) {
5315            ThrowIncompatibleClassChangeError(type, kDirect, resolved, referrer.Get());
5316          } else {
5317            resolved = klass->FindInterfaceMethod(name, signature);
5318            if (resolved != nullptr) {
5319              ThrowIncompatibleClassChangeError(type, kInterface, resolved, referrer.Get());
5320            } else {
5321              ThrowNoSuchMethodError(type, klass, name, signature);
5322            }
5323          }
5324          break;
5325      }
5326    }
5327    DCHECK(Thread::Current()->IsExceptionPending());
5328    return nullptr;
5329  }
5330}
5331
5332mirror::ArtField* ClassLinker::ResolveField(const DexFile& dex_file, uint32_t field_idx,
5333                                            Handle<mirror::DexCache> dex_cache,
5334                                            Handle<mirror::ClassLoader> class_loader,
5335                                            bool is_static) {
5336  DCHECK(dex_cache.Get() != nullptr);
5337  mirror::ArtField* resolved = dex_cache->GetResolvedField(field_idx);
5338  if (resolved != nullptr) {
5339    return resolved;
5340  }
5341  const DexFile::FieldId& field_id = dex_file.GetFieldId(field_idx);
5342  Thread* const self = Thread::Current();
5343  StackHandleScope<1> hs(self);
5344  Handle<mirror::Class> klass(
5345      hs.NewHandle(ResolveType(dex_file, field_id.class_idx_, dex_cache, class_loader)));
5346  if (klass.Get() == nullptr) {
5347    DCHECK(Thread::Current()->IsExceptionPending());
5348    return nullptr;
5349  }
5350
5351  if (is_static) {
5352    resolved = mirror::Class::FindStaticField(self, klass, dex_cache.Get(), field_idx);
5353  } else {
5354    resolved = klass->FindInstanceField(dex_cache.Get(), field_idx);
5355  }
5356
5357  if (resolved == nullptr) {
5358    const char* name = dex_file.GetFieldName(field_id);
5359    const char* type = dex_file.GetFieldTypeDescriptor(field_id);
5360    if (is_static) {
5361      resolved = mirror::Class::FindStaticField(self, klass, name, type);
5362    } else {
5363      resolved = klass->FindInstanceField(name, type);
5364    }
5365    if (resolved == nullptr) {
5366      ThrowNoSuchFieldError(is_static ? "static " : "instance ", klass.Get(), type, name);
5367      return NULL;
5368    }
5369  }
5370  dex_cache->SetResolvedField(field_idx, resolved);
5371  return resolved;
5372}
5373
5374mirror::ArtField* ClassLinker::ResolveFieldJLS(const DexFile& dex_file,
5375                                               uint32_t field_idx,
5376                                               Handle<mirror::DexCache> dex_cache,
5377                                               Handle<mirror::ClassLoader> class_loader) {
5378  DCHECK(dex_cache.Get() != nullptr);
5379  mirror::ArtField* resolved = dex_cache->GetResolvedField(field_idx);
5380  if (resolved != nullptr) {
5381    return resolved;
5382  }
5383  const DexFile::FieldId& field_id = dex_file.GetFieldId(field_idx);
5384  Thread* self = Thread::Current();
5385  StackHandleScope<1> hs(self);
5386  Handle<mirror::Class> klass(
5387      hs.NewHandle(ResolveType(dex_file, field_id.class_idx_, dex_cache, class_loader)));
5388  if (klass.Get() == NULL) {
5389    DCHECK(Thread::Current()->IsExceptionPending());
5390    return NULL;
5391  }
5392
5393  StringPiece name(dex_file.StringDataByIdx(field_id.name_idx_));
5394  StringPiece type(dex_file.StringDataByIdx(
5395      dex_file.GetTypeId(field_id.type_idx_).descriptor_idx_));
5396  resolved = mirror::Class::FindField(self, klass, name, type);
5397  if (resolved != NULL) {
5398    dex_cache->SetResolvedField(field_idx, resolved);
5399  } else {
5400    ThrowNoSuchFieldError("", klass.Get(), type, name);
5401  }
5402  return resolved;
5403}
5404
5405const char* ClassLinker::MethodShorty(uint32_t method_idx, mirror::ArtMethod* referrer,
5406                                      uint32_t* length) {
5407  mirror::Class* declaring_class = referrer->GetDeclaringClass();
5408  mirror::DexCache* dex_cache = declaring_class->GetDexCache();
5409  const DexFile& dex_file = *dex_cache->GetDexFile();
5410  const DexFile::MethodId& method_id = dex_file.GetMethodId(method_idx);
5411  return dex_file.GetMethodShorty(method_id, length);
5412}
5413
5414void ClassLinker::DumpAllClasses(int flags) {
5415  if (dex_cache_image_class_lookup_required_) {
5416    MoveImageClassesToClassTable();
5417  }
5418  // TODO: at the time this was written, it wasn't safe to call PrettyField with the ClassLinker
5419  // lock held, because it might need to resolve a field's type, which would try to take the lock.
5420  std::vector<mirror::Class*> all_classes;
5421  {
5422    ReaderMutexLock mu(Thread::Current(), *Locks::classlinker_classes_lock_);
5423    for (std::pair<const size_t, GcRoot<mirror::Class> >& it : class_table_) {
5424      mirror::Class* klass = it.second.Read();
5425      all_classes.push_back(klass);
5426    }
5427  }
5428
5429  for (size_t i = 0; i < all_classes.size(); ++i) {
5430    all_classes[i]->DumpClass(std::cerr, flags);
5431  }
5432}
5433
5434void ClassLinker::DumpForSigQuit(std::ostream& os) {
5435  if (dex_cache_image_class_lookup_required_) {
5436    MoveImageClassesToClassTable();
5437  }
5438  ReaderMutexLock mu(Thread::Current(), *Locks::classlinker_classes_lock_);
5439  os << "Loaded classes: " << class_table_.size() << " allocated classes\n";
5440}
5441
5442size_t ClassLinker::NumLoadedClasses() {
5443  if (dex_cache_image_class_lookup_required_) {
5444    MoveImageClassesToClassTable();
5445  }
5446  ReaderMutexLock mu(Thread::Current(), *Locks::classlinker_classes_lock_);
5447  return class_table_.size();
5448}
5449
5450pid_t ClassLinker::GetClassesLockOwner() {
5451  return Locks::classlinker_classes_lock_->GetExclusiveOwnerTid();
5452}
5453
5454pid_t ClassLinker::GetDexLockOwner() {
5455  return dex_lock_.GetExclusiveOwnerTid();
5456}
5457
5458void ClassLinker::SetClassRoot(ClassRoot class_root, mirror::Class* klass) {
5459  DCHECK(!init_done_);
5460
5461  DCHECK(klass != NULL);
5462  DCHECK(klass->GetClassLoader() == NULL);
5463
5464  mirror::ObjectArray<mirror::Class>* class_roots = class_roots_.Read();
5465  DCHECK(class_roots != NULL);
5466  DCHECK(class_roots->Get(class_root) == NULL);
5467  class_roots->Set<false>(class_root, klass);
5468}
5469
5470}  // namespace art
5471