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      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 <algorithm>
     20 #include <deque>
     21 #include <iostream>
     22 #include <map>
     23 #include <memory>
     24 #include <queue>
     25 #include <string>
     26 #include <tuple>
     27 #include <unistd.h>
     28 #include <unordered_map>
     29 #include <utility>
     30 #include <vector>
     31 
     32 #include "android-base/stringprintf.h"
     33 
     34 #include "art_field-inl.h"
     35 #include "art_method-inl.h"
     36 #include "base/arena_allocator.h"
     37 #include "base/casts.h"
     38 #include "base/logging.h"
     39 #include "base/scoped_arena_containers.h"
     40 #include "base/scoped_flock.h"
     41 #include "base/stl_util.h"
     42 #include "base/systrace.h"
     43 #include "base/time_utils.h"
     44 #include "base/unix_file/fd_file.h"
     45 #include "base/value_object.h"
     46 #include "cha.h"
     47 #include "class_linker-inl.h"
     48 #include "class_table-inl.h"
     49 #include "compiler_callbacks.h"
     50 #include "debugger.h"
     51 #include "dex_file-inl.h"
     52 #include "entrypoints/entrypoint_utils.h"
     53 #include "entrypoints/runtime_asm_entrypoints.h"
     54 #include "experimental_flags.h"
     55 #include "gc_root-inl.h"
     56 #include "gc/accounting/card_table-inl.h"
     57 #include "gc/accounting/heap_bitmap-inl.h"
     58 #include "gc/heap.h"
     59 #include "gc/scoped_gc_critical_section.h"
     60 #include "gc/space/image_space.h"
     61 #include "gc/space/space-inl.h"
     62 #include "handle_scope-inl.h"
     63 #include "image-inl.h"
     64 #include "imt_conflict_table.h"
     65 #include "imtable-inl.h"
     66 #include "intern_table.h"
     67 #include "interpreter/interpreter.h"
     68 #include "java_vm_ext.h"
     69 #include "jit/jit.h"
     70 #include "jit/jit_code_cache.h"
     71 #include "jit/profile_compilation_info.h"
     72 #include "jni_internal.h"
     73 #include "leb128.h"
     74 #include "linear_alloc.h"
     75 #include "mirror/call_site.h"
     76 #include "mirror/class.h"
     77 #include "mirror/class-inl.h"
     78 #include "mirror/class_ext.h"
     79 #include "mirror/class_loader.h"
     80 #include "mirror/dex_cache.h"
     81 #include "mirror/dex_cache-inl.h"
     82 #include "mirror/emulated_stack_frame.h"
     83 #include "mirror/field.h"
     84 #include "mirror/iftable-inl.h"
     85 #include "mirror/method.h"
     86 #include "mirror/method_type.h"
     87 #include "mirror/method_handle_impl.h"
     88 #include "mirror/method_handles_lookup.h"
     89 #include "mirror/object-inl.h"
     90 #include "mirror/object_array-inl.h"
     91 #include "mirror/proxy.h"
     92 #include "mirror/reference-inl.h"
     93 #include "mirror/stack_trace_element.h"
     94 #include "mirror/string-inl.h"
     95 #include "native/dalvik_system_DexFile.h"
     96 #include "oat.h"
     97 #include "oat_file.h"
     98 #include "oat_file-inl.h"
     99 #include "oat_file_assistant.h"
    100 #include "oat_file_manager.h"
    101 #include "object_lock.h"
    102 #include "os.h"
    103 #include "runtime.h"
    104 #include "runtime_callbacks.h"
    105 #include "ScopedLocalRef.h"
    106 #include "scoped_thread_state_change-inl.h"
    107 #include "thread-inl.h"
    108 #include "thread_list.h"
    109 #include "trace.h"
    110 #include "utils.h"
    111 #include "utils/dex_cache_arrays_layout-inl.h"
    112 #include "verifier/method_verifier.h"
    113 #include "well_known_classes.h"
    114 
    115 namespace art {
    116 
    117 using android::base::StringPrintf;
    118 
    119 static constexpr bool kSanityCheckObjects = kIsDebugBuild;
    120 static constexpr bool kVerifyArtMethodDeclaringClasses = kIsDebugBuild;
    121 
    122 static void ThrowNoClassDefFoundError(const char* fmt, ...)
    123     __attribute__((__format__(__printf__, 1, 2)))
    124     REQUIRES_SHARED(Locks::mutator_lock_);
    125 static void ThrowNoClassDefFoundError(const char* fmt, ...) {
    126   va_list args;
    127   va_start(args, fmt);
    128   Thread* self = Thread::Current();
    129   self->ThrowNewExceptionV("Ljava/lang/NoClassDefFoundError;", fmt, args);
    130   va_end(args);
    131 }
    132 
    133 static bool HasInitWithString(Thread* self, ClassLinker* class_linker, const char* descriptor)
    134     REQUIRES_SHARED(Locks::mutator_lock_) {
    135   ArtMethod* method = self->GetCurrentMethod(nullptr);
    136   StackHandleScope<1> hs(self);
    137   Handle<mirror::ClassLoader> class_loader(hs.NewHandle(method != nullptr ?
    138       method->GetDeclaringClass()->GetClassLoader() : nullptr));
    139   ObjPtr<mirror::Class> exception_class = class_linker->FindClass(self, descriptor, class_loader);
    140 
    141   if (exception_class == nullptr) {
    142     // No exc class ~ no <init>-with-string.
    143     CHECK(self->IsExceptionPending());
    144     self->ClearException();
    145     return false;
    146   }
    147 
    148   ArtMethod* exception_init_method = exception_class->FindDeclaredDirectMethod(
    149       "<init>", "(Ljava/lang/String;)V", class_linker->GetImagePointerSize());
    150   return exception_init_method != nullptr;
    151 }
    152 
    153 static mirror::Object* GetVerifyError(ObjPtr<mirror::Class> c)
    154     REQUIRES_SHARED(Locks::mutator_lock_) {
    155   ObjPtr<mirror::ClassExt> ext(c->GetExtData());
    156   if (ext == nullptr) {
    157     return nullptr;
    158   } else {
    159     return ext->GetVerifyError();
    160   }
    161 }
    162 
    163 // Helper for ThrowEarlierClassFailure. Throws the stored error.
    164 static void HandleEarlierVerifyError(Thread* self,
    165                                      ClassLinker* class_linker,
    166                                      ObjPtr<mirror::Class> c)
    167     REQUIRES_SHARED(Locks::mutator_lock_) {
    168   ObjPtr<mirror::Object> obj = GetVerifyError(c);
    169   DCHECK(obj != nullptr);
    170   self->AssertNoPendingException();
    171   if (obj->IsClass()) {
    172     // Previous error has been stored as class. Create a new exception of that type.
    173 
    174     // It's possible the exception doesn't have a <init>(String).
    175     std::string temp;
    176     const char* descriptor = obj->AsClass()->GetDescriptor(&temp);
    177 
    178     if (HasInitWithString(self, class_linker, descriptor)) {
    179       self->ThrowNewException(descriptor, c->PrettyDescriptor().c_str());
    180     } else {
    181       self->ThrowNewException(descriptor, nullptr);
    182     }
    183   } else {
    184     // Previous error has been stored as an instance. Just rethrow.
    185     ObjPtr<mirror::Class> throwable_class =
    186         self->DecodeJObject(WellKnownClasses::java_lang_Throwable)->AsClass();
    187     ObjPtr<mirror::Class> error_class = obj->GetClass();
    188     CHECK(throwable_class->IsAssignableFrom(error_class));
    189     self->SetException(obj->AsThrowable());
    190   }
    191   self->AssertPendingException();
    192 }
    193 
    194 void ClassLinker::ThrowEarlierClassFailure(ObjPtr<mirror::Class> c, bool wrap_in_no_class_def) {
    195   // The class failed to initialize on a previous attempt, so we want to throw
    196   // a NoClassDefFoundError (v2 2.17.5).  The exception to this rule is if we
    197   // failed in verification, in which case v2 5.4.1 says we need to re-throw
    198   // the previous error.
    199   Runtime* const runtime = Runtime::Current();
    200   if (!runtime->IsAotCompiler()) {  // Give info if this occurs at runtime.
    201     std::string extra;
    202     if (GetVerifyError(c) != nullptr) {
    203       ObjPtr<mirror::Object> verify_error = GetVerifyError(c);
    204       if (verify_error->IsClass()) {
    205         extra = mirror::Class::PrettyDescriptor(verify_error->AsClass());
    206       } else {
    207         extra = verify_error->AsThrowable()->Dump();
    208       }
    209     }
    210     LOG(INFO) << "Rejecting re-init on previously-failed class " << c->PrettyClass()
    211               << ": " << extra;
    212   }
    213 
    214   CHECK(c->IsErroneous()) << c->PrettyClass() << " " << c->GetStatus();
    215   Thread* self = Thread::Current();
    216   if (runtime->IsAotCompiler()) {
    217     // At compile time, accurate errors and NCDFE are disabled to speed compilation.
    218     ObjPtr<mirror::Throwable> pre_allocated = runtime->GetPreAllocatedNoClassDefFoundError();
    219     self->SetException(pre_allocated);
    220   } else {
    221     if (GetVerifyError(c) != nullptr) {
    222       // Rethrow stored error.
    223       HandleEarlierVerifyError(self, this, c);
    224     }
    225     // TODO This might be wrong if we hit an OOME while allocating the ClassExt. In that case we
    226     // might have meant to go down the earlier if statement with the original error but it got
    227     // swallowed by the OOM so we end up here.
    228     if (GetVerifyError(c) == nullptr || wrap_in_no_class_def) {
    229       // If there isn't a recorded earlier error, or this is a repeat throw from initialization,
    230       // the top-level exception must be a NoClassDefFoundError. The potentially already pending
    231       // exception will be a cause.
    232       self->ThrowNewWrappedException("Ljava/lang/NoClassDefFoundError;",
    233                                      c->PrettyDescriptor().c_str());
    234     }
    235   }
    236 }
    237 
    238 static void VlogClassInitializationFailure(Handle<mirror::Class> klass)
    239     REQUIRES_SHARED(Locks::mutator_lock_) {
    240   if (VLOG_IS_ON(class_linker)) {
    241     std::string temp;
    242     LOG(INFO) << "Failed to initialize class " << klass->GetDescriptor(&temp) << " from "
    243               << klass->GetLocation() << "\n" << Thread::Current()->GetException()->Dump();
    244   }
    245 }
    246 
    247 static void WrapExceptionInInitializer(Handle<mirror::Class> klass)
    248     REQUIRES_SHARED(Locks::mutator_lock_) {
    249   Thread* self = Thread::Current();
    250   JNIEnv* env = self->GetJniEnv();
    251 
    252   ScopedLocalRef<jthrowable> cause(env, env->ExceptionOccurred());
    253   CHECK(cause.get() != nullptr);
    254 
    255   // Boot classpath classes should not fail initialization. This is a sanity debug check. This
    256   // cannot in general be guaranteed, but in all likelihood leads to breakage down the line.
    257   if (klass->GetClassLoader() == nullptr && !Runtime::Current()->IsAotCompiler()) {
    258     std::string tmp;
    259     LOG(kIsDebugBuild ? FATAL : WARNING) << klass->GetDescriptor(&tmp) << " failed initialization";
    260   }
    261 
    262   env->ExceptionClear();
    263   bool is_error = env->IsInstanceOf(cause.get(), WellKnownClasses::java_lang_Error);
    264   env->Throw(cause.get());
    265 
    266   // We only wrap non-Error exceptions; an Error can just be used as-is.
    267   if (!is_error) {
    268     self->ThrowNewWrappedException("Ljava/lang/ExceptionInInitializerError;", nullptr);
    269   }
    270   VlogClassInitializationFailure(klass);
    271 }
    272 
    273 // Gap between two fields in object layout.
    274 struct FieldGap {
    275   uint32_t start_offset;  // The offset from the start of the object.
    276   uint32_t size;  // The gap size of 1, 2, or 4 bytes.
    277 };
    278 struct FieldGapsComparator {
    279   explicit FieldGapsComparator() {
    280   }
    281   bool operator() (const FieldGap& lhs, const FieldGap& rhs)
    282       NO_THREAD_SAFETY_ANALYSIS {
    283     // Sort by gap size, largest first. Secondary sort by starting offset.
    284     // Note that the priority queue returns the largest element, so operator()
    285     // should return true if lhs is less than rhs.
    286     return lhs.size < rhs.size || (lhs.size == rhs.size && lhs.start_offset > rhs.start_offset);
    287   }
    288 };
    289 typedef std::priority_queue<FieldGap, std::vector<FieldGap>, FieldGapsComparator> FieldGaps;
    290 
    291 // Adds largest aligned gaps to queue of gaps.
    292 static void AddFieldGap(uint32_t gap_start, uint32_t gap_end, FieldGaps* gaps) {
    293   DCHECK(gaps != nullptr);
    294 
    295   uint32_t current_offset = gap_start;
    296   while (current_offset != gap_end) {
    297     size_t remaining = gap_end - current_offset;
    298     if (remaining >= sizeof(uint32_t) && IsAligned<4>(current_offset)) {
    299       gaps->push(FieldGap {current_offset, sizeof(uint32_t)});
    300       current_offset += sizeof(uint32_t);
    301     } else if (remaining >= sizeof(uint16_t) && IsAligned<2>(current_offset)) {
    302       gaps->push(FieldGap {current_offset, sizeof(uint16_t)});
    303       current_offset += sizeof(uint16_t);
    304     } else {
    305       gaps->push(FieldGap {current_offset, sizeof(uint8_t)});
    306       current_offset += sizeof(uint8_t);
    307     }
    308     DCHECK_LE(current_offset, gap_end) << "Overran gap";
    309   }
    310 }
    311 // Shuffle fields forward, making use of gaps whenever possible.
    312 template<int n>
    313 static void ShuffleForward(size_t* current_field_idx,
    314                            MemberOffset* field_offset,
    315                            std::deque<ArtField*>* grouped_and_sorted_fields,
    316                            FieldGaps* gaps)
    317     REQUIRES_SHARED(Locks::mutator_lock_) {
    318   DCHECK(current_field_idx != nullptr);
    319   DCHECK(grouped_and_sorted_fields != nullptr);
    320   DCHECK(gaps != nullptr);
    321   DCHECK(field_offset != nullptr);
    322 
    323   DCHECK(IsPowerOfTwo(n));
    324   while (!grouped_and_sorted_fields->empty()) {
    325     ArtField* field = grouped_and_sorted_fields->front();
    326     Primitive::Type type = field->GetTypeAsPrimitiveType();
    327     if (Primitive::ComponentSize(type) < n) {
    328       break;
    329     }
    330     if (!IsAligned<n>(field_offset->Uint32Value())) {
    331       MemberOffset old_offset = *field_offset;
    332       *field_offset = MemberOffset(RoundUp(field_offset->Uint32Value(), n));
    333       AddFieldGap(old_offset.Uint32Value(), field_offset->Uint32Value(), gaps);
    334     }
    335     CHECK(type != Primitive::kPrimNot) << field->PrettyField();  // should be primitive types
    336     grouped_and_sorted_fields->pop_front();
    337     if (!gaps->empty() && gaps->top().size >= n) {
    338       FieldGap gap = gaps->top();
    339       gaps->pop();
    340       DCHECK_ALIGNED(gap.start_offset, n);
    341       field->SetOffset(MemberOffset(gap.start_offset));
    342       if (gap.size > n) {
    343         AddFieldGap(gap.start_offset + n, gap.start_offset + gap.size, gaps);
    344       }
    345     } else {
    346       DCHECK_ALIGNED(field_offset->Uint32Value(), n);
    347       field->SetOffset(*field_offset);
    348       *field_offset = MemberOffset(field_offset->Uint32Value() + n);
    349     }
    350     ++(*current_field_idx);
    351   }
    352 }
    353 
    354 ClassLinker::ClassLinker(InternTable* intern_table)
    355     : failed_dex_cache_class_lookups_(0),
    356       class_roots_(nullptr),
    357       array_iftable_(nullptr),
    358       find_array_class_cache_next_victim_(0),
    359       init_done_(false),
    360       log_new_roots_(false),
    361       intern_table_(intern_table),
    362       quick_resolution_trampoline_(nullptr),
    363       quick_imt_conflict_trampoline_(nullptr),
    364       quick_generic_jni_trampoline_(nullptr),
    365       quick_to_interpreter_bridge_trampoline_(nullptr),
    366       image_pointer_size_(kRuntimePointerSize) {
    367   CHECK(intern_table_ != nullptr);
    368   static_assert(kFindArrayCacheSize == arraysize(find_array_class_cache_),
    369                 "Array cache size wrong.");
    370   std::fill_n(find_array_class_cache_, kFindArrayCacheSize, GcRoot<mirror::Class>(nullptr));
    371 }
    372 
    373 void ClassLinker::CheckSystemClass(Thread* self, Handle<mirror::Class> c1, const char* descriptor) {
    374   ObjPtr<mirror::Class> c2 = FindSystemClass(self, descriptor);
    375   if (c2 == nullptr) {
    376     LOG(FATAL) << "Could not find class " << descriptor;
    377     UNREACHABLE();
    378   }
    379   if (c1.Get() != c2) {
    380     std::ostringstream os1, os2;
    381     c1->DumpClass(os1, mirror::Class::kDumpClassFullDetail);
    382     c2->DumpClass(os2, mirror::Class::kDumpClassFullDetail);
    383     LOG(FATAL) << "InitWithoutImage: Class mismatch for " << descriptor
    384                << ". This is most likely the result of a broken build. Make sure that "
    385                << "libcore and art projects match.\n\n"
    386                << os1.str() << "\n\n" << os2.str();
    387     UNREACHABLE();
    388   }
    389 }
    390 
    391 bool ClassLinker::InitWithoutImage(std::vector<std::unique_ptr<const DexFile>> boot_class_path,
    392                                    std::string* error_msg) {
    393   VLOG(startup) << "ClassLinker::Init";
    394 
    395   Thread* const self = Thread::Current();
    396   Runtime* const runtime = Runtime::Current();
    397   gc::Heap* const heap = runtime->GetHeap();
    398 
    399   CHECK(!heap->HasBootImageSpace()) << "Runtime has image. We should use it.";
    400   CHECK(!init_done_);
    401 
    402   // Use the pointer size from the runtime since we are probably creating the image.
    403   image_pointer_size_ = InstructionSetPointerSize(runtime->GetInstructionSet());
    404 
    405   // java_lang_Class comes first, it's needed for AllocClass
    406   // The GC can't handle an object with a null class since we can't get the size of this object.
    407   heap->IncrementDisableMovingGC(self);
    408   StackHandleScope<64> hs(self);  // 64 is picked arbitrarily.
    409   auto class_class_size = mirror::Class::ClassClassSize(image_pointer_size_);
    410   Handle<mirror::Class> java_lang_Class(hs.NewHandle(down_cast<mirror::Class*>(
    411       heap->AllocNonMovableObject<true>(self, nullptr, class_class_size, VoidFunctor()))));
    412   CHECK(java_lang_Class != nullptr);
    413   mirror::Class::SetClassClass(java_lang_Class.Get());
    414   java_lang_Class->SetClass(java_lang_Class.Get());
    415   if (kUseBakerReadBarrier) {
    416     java_lang_Class->AssertReadBarrierState();
    417   }
    418   java_lang_Class->SetClassSize(class_class_size);
    419   java_lang_Class->SetPrimitiveType(Primitive::kPrimNot);
    420   heap->DecrementDisableMovingGC(self);
    421   // AllocClass(ObjPtr<mirror::Class>) can now be used
    422 
    423   // Class[] is used for reflection support.
    424   auto class_array_class_size = mirror::ObjectArray<mirror::Class>::ClassSize(image_pointer_size_);
    425   Handle<mirror::Class> class_array_class(hs.NewHandle(
    426       AllocClass(self, java_lang_Class.Get(), class_array_class_size)));
    427   class_array_class->SetComponentType(java_lang_Class.Get());
    428 
    429   // java_lang_Object comes next so that object_array_class can be created.
    430   Handle<mirror::Class> java_lang_Object(hs.NewHandle(
    431       AllocClass(self, java_lang_Class.Get(), mirror::Object::ClassSize(image_pointer_size_))));
    432   CHECK(java_lang_Object != nullptr);
    433   // backfill Object as the super class of Class.
    434   java_lang_Class->SetSuperClass(java_lang_Object.Get());
    435   mirror::Class::SetStatus(java_lang_Object, mirror::Class::kStatusLoaded, self);
    436 
    437   java_lang_Object->SetObjectSize(sizeof(mirror::Object));
    438   // Allocate in non-movable so that it's possible to check if a JNI weak global ref has been
    439   // cleared without triggering the read barrier and unintentionally mark the sentinel alive.
    440   runtime->SetSentinel(heap->AllocNonMovableObject<true>(self,
    441                                                          java_lang_Object.Get(),
    442                                                          java_lang_Object->GetObjectSize(),
    443                                                          VoidFunctor()));
    444 
    445   // Object[] next to hold class roots.
    446   Handle<mirror::Class> object_array_class(hs.NewHandle(
    447       AllocClass(self, java_lang_Class.Get(),
    448                  mirror::ObjectArray<mirror::Object>::ClassSize(image_pointer_size_))));
    449   object_array_class->SetComponentType(java_lang_Object.Get());
    450 
    451   // Setup the char (primitive) class to be used for char[].
    452   Handle<mirror::Class> char_class(hs.NewHandle(
    453       AllocClass(self, java_lang_Class.Get(),
    454                  mirror::Class::PrimitiveClassSize(image_pointer_size_))));
    455   // The primitive char class won't be initialized by
    456   // InitializePrimitiveClass until line 459, but strings (and
    457   // internal char arrays) will be allocated before that and the
    458   // component size, which is computed from the primitive type, needs
    459   // to be set here.
    460   char_class->SetPrimitiveType(Primitive::kPrimChar);
    461 
    462   // Setup the char[] class to be used for String.
    463   Handle<mirror::Class> char_array_class(hs.NewHandle(
    464       AllocClass(self, java_lang_Class.Get(), mirror::Array::ClassSize(image_pointer_size_))));
    465   char_array_class->SetComponentType(char_class.Get());
    466   mirror::CharArray::SetArrayClass(char_array_class.Get());
    467 
    468   // Setup String.
    469   Handle<mirror::Class> java_lang_String(hs.NewHandle(
    470       AllocClass(self, java_lang_Class.Get(), mirror::String::ClassSize(image_pointer_size_))));
    471   java_lang_String->SetStringClass();
    472   mirror::String::SetClass(java_lang_String.Get());
    473   mirror::Class::SetStatus(java_lang_String, mirror::Class::kStatusResolved, self);
    474 
    475   // Setup java.lang.ref.Reference.
    476   Handle<mirror::Class> java_lang_ref_Reference(hs.NewHandle(
    477       AllocClass(self, java_lang_Class.Get(), mirror::Reference::ClassSize(image_pointer_size_))));
    478   mirror::Reference::SetClass(java_lang_ref_Reference.Get());
    479   java_lang_ref_Reference->SetObjectSize(mirror::Reference::InstanceSize());
    480   mirror::Class::SetStatus(java_lang_ref_Reference, mirror::Class::kStatusResolved, self);
    481 
    482   // Create storage for root classes, save away our work so far (requires descriptors).
    483   class_roots_ = GcRoot<mirror::ObjectArray<mirror::Class>>(
    484       mirror::ObjectArray<mirror::Class>::Alloc(self, object_array_class.Get(),
    485                                                 kClassRootsMax));
    486   CHECK(!class_roots_.IsNull());
    487   SetClassRoot(kJavaLangClass, java_lang_Class.Get());
    488   SetClassRoot(kJavaLangObject, java_lang_Object.Get());
    489   SetClassRoot(kClassArrayClass, class_array_class.Get());
    490   SetClassRoot(kObjectArrayClass, object_array_class.Get());
    491   SetClassRoot(kCharArrayClass, char_array_class.Get());
    492   SetClassRoot(kJavaLangString, java_lang_String.Get());
    493   SetClassRoot(kJavaLangRefReference, java_lang_ref_Reference.Get());
    494 
    495   // Fill in the empty iftable. Needs to be done after the kObjectArrayClass root is set.
    496   java_lang_Object->SetIfTable(AllocIfTable(self, 0));
    497 
    498   // Setup the primitive type classes.
    499   SetClassRoot(kPrimitiveBoolean, CreatePrimitiveClass(self, Primitive::kPrimBoolean));
    500   SetClassRoot(kPrimitiveByte, CreatePrimitiveClass(self, Primitive::kPrimByte));
    501   SetClassRoot(kPrimitiveShort, CreatePrimitiveClass(self, Primitive::kPrimShort));
    502   SetClassRoot(kPrimitiveInt, CreatePrimitiveClass(self, Primitive::kPrimInt));
    503   SetClassRoot(kPrimitiveLong, CreatePrimitiveClass(self, Primitive::kPrimLong));
    504   SetClassRoot(kPrimitiveFloat, CreatePrimitiveClass(self, Primitive::kPrimFloat));
    505   SetClassRoot(kPrimitiveDouble, CreatePrimitiveClass(self, Primitive::kPrimDouble));
    506   SetClassRoot(kPrimitiveVoid, CreatePrimitiveClass(self, Primitive::kPrimVoid));
    507 
    508   // Create array interface entries to populate once we can load system classes.
    509   array_iftable_ = GcRoot<mirror::IfTable>(AllocIfTable(self, 2));
    510 
    511   // Create int array type for AllocDexCache (done in AppendToBootClassPath).
    512   Handle<mirror::Class> int_array_class(hs.NewHandle(
    513       AllocClass(self, java_lang_Class.Get(), mirror::Array::ClassSize(image_pointer_size_))));
    514   int_array_class->SetComponentType(GetClassRoot(kPrimitiveInt));
    515   mirror::IntArray::SetArrayClass(int_array_class.Get());
    516   SetClassRoot(kIntArrayClass, int_array_class.Get());
    517 
    518   // Create long array type for AllocDexCache (done in AppendToBootClassPath).
    519   Handle<mirror::Class> long_array_class(hs.NewHandle(
    520       AllocClass(self, java_lang_Class.Get(), mirror::Array::ClassSize(image_pointer_size_))));
    521   long_array_class->SetComponentType(GetClassRoot(kPrimitiveLong));
    522   mirror::LongArray::SetArrayClass(long_array_class.Get());
    523   SetClassRoot(kLongArrayClass, long_array_class.Get());
    524 
    525   // now that these are registered, we can use AllocClass() and AllocObjectArray
    526 
    527   // Set up DexCache. This cannot be done later since AppendToBootClassPath calls AllocDexCache.
    528   Handle<mirror::Class> java_lang_DexCache(hs.NewHandle(
    529       AllocClass(self, java_lang_Class.Get(), mirror::DexCache::ClassSize(image_pointer_size_))));
    530   SetClassRoot(kJavaLangDexCache, java_lang_DexCache.Get());
    531   java_lang_DexCache->SetDexCacheClass();
    532   java_lang_DexCache->SetObjectSize(mirror::DexCache::InstanceSize());
    533   mirror::Class::SetStatus(java_lang_DexCache, mirror::Class::kStatusResolved, self);
    534 
    535 
    536   // Setup dalvik.system.ClassExt
    537   Handle<mirror::Class> dalvik_system_ClassExt(hs.NewHandle(
    538       AllocClass(self, java_lang_Class.Get(), mirror::ClassExt::ClassSize(image_pointer_size_))));
    539   SetClassRoot(kDalvikSystemClassExt, dalvik_system_ClassExt.Get());
    540   mirror::ClassExt::SetClass(dalvik_system_ClassExt.Get());
    541   mirror::Class::SetStatus(dalvik_system_ClassExt, mirror::Class::kStatusResolved, self);
    542 
    543   // Set up array classes for string, field, method
    544   Handle<mirror::Class> object_array_string(hs.NewHandle(
    545       AllocClass(self, java_lang_Class.Get(),
    546                  mirror::ObjectArray<mirror::String>::ClassSize(image_pointer_size_))));
    547   object_array_string->SetComponentType(java_lang_String.Get());
    548   SetClassRoot(kJavaLangStringArrayClass, object_array_string.Get());
    549 
    550   LinearAlloc* linear_alloc = runtime->GetLinearAlloc();
    551   // Create runtime resolution and imt conflict methods.
    552   runtime->SetResolutionMethod(runtime->CreateResolutionMethod());
    553   runtime->SetImtConflictMethod(runtime->CreateImtConflictMethod(linear_alloc));
    554   runtime->SetImtUnimplementedMethod(runtime->CreateImtConflictMethod(linear_alloc));
    555 
    556   // Setup boot_class_path_ and register class_path now that we can use AllocObjectArray to create
    557   // DexCache instances. Needs to be after String, Field, Method arrays since AllocDexCache uses
    558   // these roots.
    559   if (boot_class_path.empty()) {
    560     *error_msg = "Boot classpath is empty.";
    561     return false;
    562   }
    563   for (auto& dex_file : boot_class_path) {
    564     if (dex_file.get() == nullptr) {
    565       *error_msg = "Null dex file.";
    566       return false;
    567     }
    568     AppendToBootClassPath(self, *dex_file);
    569     boot_dex_files_.push_back(std::move(dex_file));
    570   }
    571 
    572   // now we can use FindSystemClass
    573 
    574   // run char class through InitializePrimitiveClass to finish init
    575   InitializePrimitiveClass(char_class.Get(), Primitive::kPrimChar);
    576   SetClassRoot(kPrimitiveChar, char_class.Get());  // needs descriptor
    577 
    578   // Set up GenericJNI entrypoint. That is mainly a hack for common_compiler_test.h so that
    579   // we do not need friend classes or a publicly exposed setter.
    580   quick_generic_jni_trampoline_ = GetQuickGenericJniStub();
    581   if (!runtime->IsAotCompiler()) {
    582     // We need to set up the generic trampolines since we don't have an image.
    583     quick_resolution_trampoline_ = GetQuickResolutionStub();
    584     quick_imt_conflict_trampoline_ = GetQuickImtConflictStub();
    585     quick_to_interpreter_bridge_trampoline_ = GetQuickToInterpreterBridge();
    586   }
    587 
    588   // Object, String, ClassExt and DexCache need to be rerun through FindSystemClass to finish init
    589   mirror::Class::SetStatus(java_lang_Object, mirror::Class::kStatusNotReady, self);
    590   CheckSystemClass(self, java_lang_Object, "Ljava/lang/Object;");
    591   CHECK_EQ(java_lang_Object->GetObjectSize(), mirror::Object::InstanceSize());
    592   mirror::Class::SetStatus(java_lang_String, mirror::Class::kStatusNotReady, self);
    593   CheckSystemClass(self, java_lang_String, "Ljava/lang/String;");
    594   mirror::Class::SetStatus(java_lang_DexCache, mirror::Class::kStatusNotReady, self);
    595   CheckSystemClass(self, java_lang_DexCache, "Ljava/lang/DexCache;");
    596   CHECK_EQ(java_lang_DexCache->GetObjectSize(), mirror::DexCache::InstanceSize());
    597   mirror::Class::SetStatus(dalvik_system_ClassExt, mirror::Class::kStatusNotReady, self);
    598   CheckSystemClass(self, dalvik_system_ClassExt, "Ldalvik/system/ClassExt;");
    599   CHECK_EQ(dalvik_system_ClassExt->GetObjectSize(), mirror::ClassExt::InstanceSize());
    600 
    601   // Setup the primitive array type classes - can't be done until Object has a vtable.
    602   SetClassRoot(kBooleanArrayClass, FindSystemClass(self, "[Z"));
    603   mirror::BooleanArray::SetArrayClass(GetClassRoot(kBooleanArrayClass));
    604 
    605   SetClassRoot(kByteArrayClass, FindSystemClass(self, "[B"));
    606   mirror::ByteArray::SetArrayClass(GetClassRoot(kByteArrayClass));
    607 
    608   CheckSystemClass(self, char_array_class, "[C");
    609 
    610   SetClassRoot(kShortArrayClass, FindSystemClass(self, "[S"));
    611   mirror::ShortArray::SetArrayClass(GetClassRoot(kShortArrayClass));
    612 
    613   CheckSystemClass(self, int_array_class, "[I");
    614   CheckSystemClass(self, long_array_class, "[J");
    615 
    616   SetClassRoot(kFloatArrayClass, FindSystemClass(self, "[F"));
    617   mirror::FloatArray::SetArrayClass(GetClassRoot(kFloatArrayClass));
    618 
    619   SetClassRoot(kDoubleArrayClass, FindSystemClass(self, "[D"));
    620   mirror::DoubleArray::SetArrayClass(GetClassRoot(kDoubleArrayClass));
    621 
    622   // Run Class through FindSystemClass. This initializes the dex_cache_ fields and register it
    623   // in class_table_.
    624   CheckSystemClass(self, java_lang_Class, "Ljava/lang/Class;");
    625 
    626   CheckSystemClass(self, class_array_class, "[Ljava/lang/Class;");
    627   CheckSystemClass(self, object_array_class, "[Ljava/lang/Object;");
    628 
    629   // Setup the single, global copy of "iftable".
    630   auto java_lang_Cloneable = hs.NewHandle(FindSystemClass(self, "Ljava/lang/Cloneable;"));
    631   CHECK(java_lang_Cloneable != nullptr);
    632   auto java_io_Serializable = hs.NewHandle(FindSystemClass(self, "Ljava/io/Serializable;"));
    633   CHECK(java_io_Serializable != nullptr);
    634   // We assume that Cloneable/Serializable don't have superinterfaces -- normally we'd have to
    635   // crawl up and explicitly list all of the supers as well.
    636   array_iftable_.Read()->SetInterface(0, java_lang_Cloneable.Get());
    637   array_iftable_.Read()->SetInterface(1, java_io_Serializable.Get());
    638 
    639   // Sanity check Class[] and Object[]'s interfaces. GetDirectInterface may cause thread
    640   // suspension.
    641   CHECK_EQ(java_lang_Cloneable.Get(),
    642            mirror::Class::GetDirectInterface(self, class_array_class.Get(), 0));
    643   CHECK_EQ(java_io_Serializable.Get(),
    644            mirror::Class::GetDirectInterface(self, class_array_class.Get(), 1));
    645   CHECK_EQ(java_lang_Cloneable.Get(),
    646            mirror::Class::GetDirectInterface(self, object_array_class.Get(), 0));
    647   CHECK_EQ(java_io_Serializable.Get(),
    648            mirror::Class::GetDirectInterface(self, object_array_class.Get(), 1));
    649 
    650   CHECK_EQ(object_array_string.Get(),
    651            FindSystemClass(self, GetClassRootDescriptor(kJavaLangStringArrayClass)));
    652 
    653   // End of special init trickery, all subsequent classes may be loaded via FindSystemClass.
    654 
    655   // Create java.lang.reflect.Proxy root.
    656   SetClassRoot(kJavaLangReflectProxy, FindSystemClass(self, "Ljava/lang/reflect/Proxy;"));
    657 
    658   // Create java.lang.reflect.Field.class root.
    659   auto* class_root = FindSystemClass(self, "Ljava/lang/reflect/Field;");
    660   CHECK(class_root != nullptr);
    661   SetClassRoot(kJavaLangReflectField, class_root);
    662   mirror::Field::SetClass(class_root);
    663 
    664   // Create java.lang.reflect.Field array root.
    665   class_root = FindSystemClass(self, "[Ljava/lang/reflect/Field;");
    666   CHECK(class_root != nullptr);
    667   SetClassRoot(kJavaLangReflectFieldArrayClass, class_root);
    668   mirror::Field::SetArrayClass(class_root);
    669 
    670   // Create java.lang.reflect.Constructor.class root and array root.
    671   class_root = FindSystemClass(self, "Ljava/lang/reflect/Constructor;");
    672   CHECK(class_root != nullptr);
    673   SetClassRoot(kJavaLangReflectConstructor, class_root);
    674   mirror::Constructor::SetClass(class_root);
    675   class_root = FindSystemClass(self, "[Ljava/lang/reflect/Constructor;");
    676   CHECK(class_root != nullptr);
    677   SetClassRoot(kJavaLangReflectConstructorArrayClass, class_root);
    678   mirror::Constructor::SetArrayClass(class_root);
    679 
    680   // Create java.lang.reflect.Method.class root and array root.
    681   class_root = FindSystemClass(self, "Ljava/lang/reflect/Method;");
    682   CHECK(class_root != nullptr);
    683   SetClassRoot(kJavaLangReflectMethod, class_root);
    684   mirror::Method::SetClass(class_root);
    685   class_root = FindSystemClass(self, "[Ljava/lang/reflect/Method;");
    686   CHECK(class_root != nullptr);
    687   SetClassRoot(kJavaLangReflectMethodArrayClass, class_root);
    688   mirror::Method::SetArrayClass(class_root);
    689 
    690   // Create java.lang.invoke.MethodType.class root
    691   class_root = FindSystemClass(self, "Ljava/lang/invoke/MethodType;");
    692   CHECK(class_root != nullptr);
    693   SetClassRoot(kJavaLangInvokeMethodType, class_root);
    694   mirror::MethodType::SetClass(class_root);
    695 
    696   // Create java.lang.invoke.MethodHandleImpl.class root
    697   class_root = FindSystemClass(self, "Ljava/lang/invoke/MethodHandleImpl;");
    698   CHECK(class_root != nullptr);
    699   SetClassRoot(kJavaLangInvokeMethodHandleImpl, class_root);
    700   mirror::MethodHandleImpl::SetClass(class_root);
    701 
    702   // Create java.lang.invoke.MethodHandles.Lookup.class root
    703   class_root = FindSystemClass(self, "Ljava/lang/invoke/MethodHandles$Lookup;");
    704   CHECK(class_root != nullptr);
    705   SetClassRoot(kJavaLangInvokeMethodHandlesLookup, class_root);
    706   mirror::MethodHandlesLookup::SetClass(class_root);
    707 
    708   // Create java.lang.invoke.CallSite.class root
    709   class_root = FindSystemClass(self, "Ljava/lang/invoke/CallSite;");
    710   CHECK(class_root != nullptr);
    711   SetClassRoot(kJavaLangInvokeCallSite, class_root);
    712   mirror::CallSite::SetClass(class_root);
    713 
    714   class_root = FindSystemClass(self, "Ldalvik/system/EmulatedStackFrame;");
    715   CHECK(class_root != nullptr);
    716   SetClassRoot(kDalvikSystemEmulatedStackFrame, class_root);
    717   mirror::EmulatedStackFrame::SetClass(class_root);
    718 
    719   // java.lang.ref classes need to be specially flagged, but otherwise are normal classes
    720   // finish initializing Reference class
    721   mirror::Class::SetStatus(java_lang_ref_Reference, mirror::Class::kStatusNotReady, self);
    722   CheckSystemClass(self, java_lang_ref_Reference, "Ljava/lang/ref/Reference;");
    723   CHECK_EQ(java_lang_ref_Reference->GetObjectSize(), mirror::Reference::InstanceSize());
    724   CHECK_EQ(java_lang_ref_Reference->GetClassSize(),
    725            mirror::Reference::ClassSize(image_pointer_size_));
    726   class_root = FindSystemClass(self, "Ljava/lang/ref/FinalizerReference;");
    727   CHECK_EQ(class_root->GetClassFlags(), mirror::kClassFlagNormal);
    728   class_root->SetClassFlags(class_root->GetClassFlags() | mirror::kClassFlagFinalizerReference);
    729   class_root = FindSystemClass(self, "Ljava/lang/ref/PhantomReference;");
    730   CHECK_EQ(class_root->GetClassFlags(), mirror::kClassFlagNormal);
    731   class_root->SetClassFlags(class_root->GetClassFlags() | mirror::kClassFlagPhantomReference);
    732   class_root = FindSystemClass(self, "Ljava/lang/ref/SoftReference;");
    733   CHECK_EQ(class_root->GetClassFlags(), mirror::kClassFlagNormal);
    734   class_root->SetClassFlags(class_root->GetClassFlags() | mirror::kClassFlagSoftReference);
    735   class_root = FindSystemClass(self, "Ljava/lang/ref/WeakReference;");
    736   CHECK_EQ(class_root->GetClassFlags(), mirror::kClassFlagNormal);
    737   class_root->SetClassFlags(class_root->GetClassFlags() | mirror::kClassFlagWeakReference);
    738 
    739   // Setup the ClassLoader, verifying the object_size_.
    740   class_root = FindSystemClass(self, "Ljava/lang/ClassLoader;");
    741   class_root->SetClassLoaderClass();
    742   CHECK_EQ(class_root->GetObjectSize(), mirror::ClassLoader::InstanceSize());
    743   SetClassRoot(kJavaLangClassLoader, class_root);
    744 
    745   // Set up java.lang.Throwable, java.lang.ClassNotFoundException, and
    746   // java.lang.StackTraceElement as a convenience.
    747   SetClassRoot(kJavaLangThrowable, FindSystemClass(self, "Ljava/lang/Throwable;"));
    748   mirror::Throwable::SetClass(GetClassRoot(kJavaLangThrowable));
    749   SetClassRoot(kJavaLangClassNotFoundException,
    750                FindSystemClass(self, "Ljava/lang/ClassNotFoundException;"));
    751   SetClassRoot(kJavaLangStackTraceElement, FindSystemClass(self, "Ljava/lang/StackTraceElement;"));
    752   SetClassRoot(kJavaLangStackTraceElementArrayClass,
    753                FindSystemClass(self, "[Ljava/lang/StackTraceElement;"));
    754   mirror::StackTraceElement::SetClass(GetClassRoot(kJavaLangStackTraceElement));
    755 
    756   // Create conflict tables that depend on the class linker.
    757   runtime->FixupConflictTables();
    758 
    759   FinishInit(self);
    760 
    761   VLOG(startup) << "ClassLinker::InitFromCompiler exiting";
    762 
    763   return true;
    764 }
    765 
    766 void ClassLinker::FinishInit(Thread* self) {
    767   VLOG(startup) << "ClassLinker::FinishInit entering";
    768 
    769   // Let the heap know some key offsets into java.lang.ref instances
    770   // Note: we hard code the field indexes here rather than using FindInstanceField
    771   // as the types of the field can't be resolved prior to the runtime being
    772   // fully initialized
    773   StackHandleScope<2> hs(self);
    774   Handle<mirror::Class> java_lang_ref_Reference = hs.NewHandle(GetClassRoot(kJavaLangRefReference));
    775   Handle<mirror::Class> java_lang_ref_FinalizerReference =
    776       hs.NewHandle(FindSystemClass(self, "Ljava/lang/ref/FinalizerReference;"));
    777 
    778   ArtField* pendingNext = java_lang_ref_Reference->GetInstanceField(0);
    779   CHECK_STREQ(pendingNext->GetName(), "pendingNext");
    780   CHECK_STREQ(pendingNext->GetTypeDescriptor(), "Ljava/lang/ref/Reference;");
    781 
    782   ArtField* queue = java_lang_ref_Reference->GetInstanceField(1);
    783   CHECK_STREQ(queue->GetName(), "queue");
    784   CHECK_STREQ(queue->GetTypeDescriptor(), "Ljava/lang/ref/ReferenceQueue;");
    785 
    786   ArtField* queueNext = java_lang_ref_Reference->GetInstanceField(2);
    787   CHECK_STREQ(queueNext->GetName(), "queueNext");
    788   CHECK_STREQ(queueNext->GetTypeDescriptor(), "Ljava/lang/ref/Reference;");
    789 
    790   ArtField* referent = java_lang_ref_Reference->GetInstanceField(3);
    791   CHECK_STREQ(referent->GetName(), "referent");
    792   CHECK_STREQ(referent->GetTypeDescriptor(), "Ljava/lang/Object;");
    793 
    794   ArtField* zombie = java_lang_ref_FinalizerReference->GetInstanceField(2);
    795   CHECK_STREQ(zombie->GetName(), "zombie");
    796   CHECK_STREQ(zombie->GetTypeDescriptor(), "Ljava/lang/Object;");
    797 
    798   // ensure all class_roots_ are initialized
    799   for (size_t i = 0; i < kClassRootsMax; i++) {
    800     ClassRoot class_root = static_cast<ClassRoot>(i);
    801     ObjPtr<mirror::Class> klass = GetClassRoot(class_root);
    802     CHECK(klass != nullptr);
    803     DCHECK(klass->IsArrayClass() || klass->IsPrimitive() || klass->GetDexCache() != nullptr);
    804     // note SetClassRoot does additional validation.
    805     // if possible add new checks there to catch errors early
    806   }
    807 
    808   CHECK(!array_iftable_.IsNull());
    809 
    810   // disable the slow paths in FindClass and CreatePrimitiveClass now
    811   // that Object, Class, and Object[] are setup
    812   init_done_ = true;
    813 
    814   VLOG(startup) << "ClassLinker::FinishInit exiting";
    815 }
    816 
    817 void ClassLinker::RunRootClinits() {
    818   Thread* self = Thread::Current();
    819   for (size_t i = 0; i < ClassLinker::kClassRootsMax; ++i) {
    820     ObjPtr<mirror::Class> c = GetClassRoot(ClassRoot(i));
    821     if (!c->IsArrayClass() && !c->IsPrimitive()) {
    822       StackHandleScope<1> hs(self);
    823       Handle<mirror::Class> h_class(hs.NewHandle(GetClassRoot(ClassRoot(i))));
    824       EnsureInitialized(self, h_class, true, true);
    825       self->AssertNoPendingException();
    826     }
    827   }
    828 }
    829 
    830 // Set image methods' entry point to interpreter.
    831 class SetInterpreterEntrypointArtMethodVisitor : public ArtMethodVisitor {
    832  public:
    833   explicit SetInterpreterEntrypointArtMethodVisitor(PointerSize image_pointer_size)
    834     : image_pointer_size_(image_pointer_size) {}
    835 
    836   void Visit(ArtMethod* method) OVERRIDE REQUIRES_SHARED(Locks::mutator_lock_) {
    837     if (kIsDebugBuild && !method->IsRuntimeMethod()) {
    838       CHECK(method->GetDeclaringClass() != nullptr);
    839     }
    840     if (!method->IsNative() && !method->IsRuntimeMethod() && !method->IsResolutionMethod()) {
    841       method->SetEntryPointFromQuickCompiledCodePtrSize(GetQuickToInterpreterBridge(),
    842                                                         image_pointer_size_);
    843     }
    844   }
    845 
    846  private:
    847   const PointerSize image_pointer_size_;
    848 
    849   DISALLOW_COPY_AND_ASSIGN(SetInterpreterEntrypointArtMethodVisitor);
    850 };
    851 
    852 struct TrampolineCheckData {
    853   const void* quick_resolution_trampoline;
    854   const void* quick_imt_conflict_trampoline;
    855   const void* quick_generic_jni_trampoline;
    856   const void* quick_to_interpreter_bridge_trampoline;
    857   PointerSize pointer_size;
    858   ArtMethod* m;
    859   bool error;
    860 };
    861 
    862 static void CheckTrampolines(mirror::Object* obj, void* arg) NO_THREAD_SAFETY_ANALYSIS {
    863   if (obj->IsClass()) {
    864     ObjPtr<mirror::Class> klass = obj->AsClass();
    865     TrampolineCheckData* d = reinterpret_cast<TrampolineCheckData*>(arg);
    866     for (ArtMethod& m : klass->GetMethods(d->pointer_size)) {
    867       const void* entrypoint = m.GetEntryPointFromQuickCompiledCodePtrSize(d->pointer_size);
    868       if (entrypoint == d->quick_resolution_trampoline ||
    869           entrypoint == d->quick_imt_conflict_trampoline ||
    870           entrypoint == d->quick_generic_jni_trampoline ||
    871           entrypoint == d->quick_to_interpreter_bridge_trampoline) {
    872         d->m = &m;
    873         d->error = true;
    874         return;
    875       }
    876     }
    877   }
    878 }
    879 
    880 bool ClassLinker::InitFromBootImage(std::string* error_msg) {
    881   VLOG(startup) << __FUNCTION__ << " entering";
    882   CHECK(!init_done_);
    883 
    884   Runtime* const runtime = Runtime::Current();
    885   Thread* const self = Thread::Current();
    886   gc::Heap* const heap = runtime->GetHeap();
    887   std::vector<gc::space::ImageSpace*> spaces = heap->GetBootImageSpaces();
    888   CHECK(!spaces.empty());
    889   uint32_t pointer_size_unchecked = spaces[0]->GetImageHeader().GetPointerSizeUnchecked();
    890   if (!ValidPointerSize(pointer_size_unchecked)) {
    891     *error_msg = StringPrintf("Invalid image pointer size: %u", pointer_size_unchecked);
    892     return false;
    893   }
    894   image_pointer_size_ = spaces[0]->GetImageHeader().GetPointerSize();
    895   if (!runtime->IsAotCompiler()) {
    896     // Only the Aot compiler supports having an image with a different pointer size than the
    897     // runtime. This happens on the host for compiling 32 bit tests since we use a 64 bit libart
    898     // compiler. We may also use 32 bit dex2oat on a system with 64 bit apps.
    899     if (image_pointer_size_ != kRuntimePointerSize) {
    900       *error_msg = StringPrintf("Runtime must use current image pointer size: %zu vs %zu",
    901                                 static_cast<size_t>(image_pointer_size_),
    902                                 sizeof(void*));
    903       return false;
    904     }
    905   }
    906   std::vector<const OatFile*> oat_files =
    907       runtime->GetOatFileManager().RegisterImageOatFiles(spaces);
    908   DCHECK(!oat_files.empty());
    909   const OatHeader& default_oat_header = oat_files[0]->GetOatHeader();
    910   CHECK_EQ(default_oat_header.GetImageFileLocationOatDataBegin(), 0U);
    911   const char* image_file_location = oat_files[0]->GetOatHeader().
    912       GetStoreValueByKey(OatHeader::kImageLocationKey);
    913   CHECK(image_file_location == nullptr || *image_file_location == 0);
    914   quick_resolution_trampoline_ = default_oat_header.GetQuickResolutionTrampoline();
    915   quick_imt_conflict_trampoline_ = default_oat_header.GetQuickImtConflictTrampoline();
    916   quick_generic_jni_trampoline_ = default_oat_header.GetQuickGenericJniTrampoline();
    917   quick_to_interpreter_bridge_trampoline_ = default_oat_header.GetQuickToInterpreterBridge();
    918   if (kIsDebugBuild) {
    919     // Check that the other images use the same trampoline.
    920     for (size_t i = 1; i < oat_files.size(); ++i) {
    921       const OatHeader& ith_oat_header = oat_files[i]->GetOatHeader();
    922       const void* ith_quick_resolution_trampoline =
    923           ith_oat_header.GetQuickResolutionTrampoline();
    924       const void* ith_quick_imt_conflict_trampoline =
    925           ith_oat_header.GetQuickImtConflictTrampoline();
    926       const void* ith_quick_generic_jni_trampoline =
    927           ith_oat_header.GetQuickGenericJniTrampoline();
    928       const void* ith_quick_to_interpreter_bridge_trampoline =
    929           ith_oat_header.GetQuickToInterpreterBridge();
    930       if (ith_quick_resolution_trampoline != quick_resolution_trampoline_ ||
    931           ith_quick_imt_conflict_trampoline != quick_imt_conflict_trampoline_ ||
    932           ith_quick_generic_jni_trampoline != quick_generic_jni_trampoline_ ||
    933           ith_quick_to_interpreter_bridge_trampoline != quick_to_interpreter_bridge_trampoline_) {
    934         // Make sure that all methods in this image do not contain those trampolines as
    935         // entrypoints. Otherwise the class-linker won't be able to work with a single set.
    936         TrampolineCheckData data;
    937         data.error = false;
    938         data.pointer_size = GetImagePointerSize();
    939         data.quick_resolution_trampoline = ith_quick_resolution_trampoline;
    940         data.quick_imt_conflict_trampoline = ith_quick_imt_conflict_trampoline;
    941         data.quick_generic_jni_trampoline = ith_quick_generic_jni_trampoline;
    942         data.quick_to_interpreter_bridge_trampoline = ith_quick_to_interpreter_bridge_trampoline;
    943         ReaderMutexLock mu(self, *Locks::heap_bitmap_lock_);
    944         spaces[i]->GetLiveBitmap()->Walk(CheckTrampolines, &data);
    945         if (data.error) {
    946           ArtMethod* m = data.m;
    947           LOG(ERROR) << "Found a broken ArtMethod: " << ArtMethod::PrettyMethod(m);
    948           *error_msg = "Found an ArtMethod with a bad entrypoint";
    949           return false;
    950         }
    951       }
    952     }
    953   }
    954 
    955   class_roots_ = GcRoot<mirror::ObjectArray<mirror::Class>>(
    956       down_cast<mirror::ObjectArray<mirror::Class>*>(
    957           spaces[0]->GetImageHeader().GetImageRoot(ImageHeader::kClassRoots)));
    958   mirror::Class::SetClassClass(class_roots_.Read()->Get(kJavaLangClass));
    959 
    960   // Special case of setting up the String class early so that we can test arbitrary objects
    961   // as being Strings or not
    962   mirror::String::SetClass(GetClassRoot(kJavaLangString));
    963 
    964   ObjPtr<mirror::Class> java_lang_Object = GetClassRoot(kJavaLangObject);
    965   java_lang_Object->SetObjectSize(sizeof(mirror::Object));
    966   // Allocate in non-movable so that it's possible to check if a JNI weak global ref has been
    967   // cleared without triggering the read barrier and unintentionally mark the sentinel alive.
    968   runtime->SetSentinel(heap->AllocNonMovableObject<true>(
    969       self, java_lang_Object, java_lang_Object->GetObjectSize(), VoidFunctor()));
    970 
    971   // reinit array_iftable_ from any array class instance, they should be ==
    972   array_iftable_ = GcRoot<mirror::IfTable>(GetClassRoot(kObjectArrayClass)->GetIfTable());
    973   DCHECK_EQ(array_iftable_.Read(), GetClassRoot(kBooleanArrayClass)->GetIfTable());
    974   // String class root was set above
    975   mirror::Field::SetClass(GetClassRoot(kJavaLangReflectField));
    976   mirror::Field::SetArrayClass(GetClassRoot(kJavaLangReflectFieldArrayClass));
    977   mirror::Constructor::SetClass(GetClassRoot(kJavaLangReflectConstructor));
    978   mirror::Constructor::SetArrayClass(GetClassRoot(kJavaLangReflectConstructorArrayClass));
    979   mirror::Method::SetClass(GetClassRoot(kJavaLangReflectMethod));
    980   mirror::Method::SetArrayClass(GetClassRoot(kJavaLangReflectMethodArrayClass));
    981   mirror::MethodType::SetClass(GetClassRoot(kJavaLangInvokeMethodType));
    982   mirror::MethodHandleImpl::SetClass(GetClassRoot(kJavaLangInvokeMethodHandleImpl));
    983   mirror::MethodHandlesLookup::SetClass(GetClassRoot(kJavaLangInvokeMethodHandlesLookup));
    984   mirror::CallSite::SetClass(GetClassRoot(kJavaLangInvokeCallSite));
    985   mirror::Reference::SetClass(GetClassRoot(kJavaLangRefReference));
    986   mirror::BooleanArray::SetArrayClass(GetClassRoot(kBooleanArrayClass));
    987   mirror::ByteArray::SetArrayClass(GetClassRoot(kByteArrayClass));
    988   mirror::CharArray::SetArrayClass(GetClassRoot(kCharArrayClass));
    989   mirror::DoubleArray::SetArrayClass(GetClassRoot(kDoubleArrayClass));
    990   mirror::FloatArray::SetArrayClass(GetClassRoot(kFloatArrayClass));
    991   mirror::IntArray::SetArrayClass(GetClassRoot(kIntArrayClass));
    992   mirror::LongArray::SetArrayClass(GetClassRoot(kLongArrayClass));
    993   mirror::ShortArray::SetArrayClass(GetClassRoot(kShortArrayClass));
    994   mirror::Throwable::SetClass(GetClassRoot(kJavaLangThrowable));
    995   mirror::StackTraceElement::SetClass(GetClassRoot(kJavaLangStackTraceElement));
    996   mirror::EmulatedStackFrame::SetClass(GetClassRoot(kDalvikSystemEmulatedStackFrame));
    997   mirror::ClassExt::SetClass(GetClassRoot(kDalvikSystemClassExt));
    998 
    999   for (gc::space::ImageSpace* image_space : spaces) {
   1000     // Boot class loader, use a null handle.
   1001     std::vector<std::unique_ptr<const DexFile>> dex_files;
   1002     if (!AddImageSpace(image_space,
   1003                        ScopedNullHandle<mirror::ClassLoader>(),
   1004                        /*dex_elements*/nullptr,
   1005                        /*dex_location*/nullptr,
   1006                        /*out*/&dex_files,
   1007                        error_msg)) {
   1008       return false;
   1009     }
   1010     // Append opened dex files at the end.
   1011     boot_dex_files_.insert(boot_dex_files_.end(),
   1012                            std::make_move_iterator(dex_files.begin()),
   1013                            std::make_move_iterator(dex_files.end()));
   1014   }
   1015   FinishInit(self);
   1016 
   1017   VLOG(startup) << __FUNCTION__ << " exiting";
   1018   return true;
   1019 }
   1020 
   1021 bool ClassLinker::IsBootClassLoader(ScopedObjectAccessAlreadyRunnable& soa,
   1022                                     ObjPtr<mirror::ClassLoader> class_loader) {
   1023   return class_loader == nullptr ||
   1024        soa.Decode<mirror::Class>(WellKnownClasses::java_lang_BootClassLoader) ==
   1025            class_loader->GetClass();
   1026 }
   1027 
   1028 static bool GetDexPathListElementName(ObjPtr<mirror::Object> element,
   1029                                       ObjPtr<mirror::String>* out_name)
   1030     REQUIRES_SHARED(Locks::mutator_lock_) {
   1031   ArtField* const dex_file_field =
   1032       jni::DecodeArtField(WellKnownClasses::dalvik_system_DexPathList__Element_dexFile);
   1033   ArtField* const dex_file_name_field =
   1034       jni::DecodeArtField(WellKnownClasses::dalvik_system_DexFile_fileName);
   1035   DCHECK(dex_file_field != nullptr);
   1036   DCHECK(dex_file_name_field != nullptr);
   1037   DCHECK(element != nullptr);
   1038   CHECK_EQ(dex_file_field->GetDeclaringClass(), element->GetClass()) << element->PrettyTypeOf();
   1039   ObjPtr<mirror::Object> dex_file = dex_file_field->GetObject(element);
   1040   if (dex_file == nullptr) {
   1041     // Null dex file means it was probably a jar with no dex files, return a null string.
   1042     *out_name = nullptr;
   1043     return true;
   1044   }
   1045   ObjPtr<mirror::Object> name_object = dex_file_name_field->GetObject(dex_file);
   1046   if (name_object != nullptr) {
   1047     *out_name = name_object->AsString();
   1048     return true;
   1049   }
   1050   return false;
   1051 }
   1052 
   1053 static bool FlattenPathClassLoader(ObjPtr<mirror::ClassLoader> class_loader,
   1054                                    std::list<ObjPtr<mirror::String>>* out_dex_file_names,
   1055                                    std::string* error_msg)
   1056     REQUIRES_SHARED(Locks::mutator_lock_) {
   1057   DCHECK(out_dex_file_names != nullptr);
   1058   DCHECK(error_msg != nullptr);
   1059   ScopedObjectAccessUnchecked soa(Thread::Current());
   1060   ArtField* const dex_path_list_field =
   1061       jni::DecodeArtField(WellKnownClasses::dalvik_system_BaseDexClassLoader_pathList);
   1062   ArtField* const dex_elements_field =
   1063       jni::DecodeArtField(WellKnownClasses::dalvik_system_DexPathList_dexElements);
   1064   CHECK(dex_path_list_field != nullptr);
   1065   CHECK(dex_elements_field != nullptr);
   1066   while (!ClassLinker::IsBootClassLoader(soa, class_loader)) {
   1067     if (soa.Decode<mirror::Class>(WellKnownClasses::dalvik_system_PathClassLoader) !=
   1068         class_loader->GetClass()) {
   1069       *error_msg = StringPrintf("Unknown class loader type %s",
   1070                                 class_loader->PrettyTypeOf().c_str());
   1071       // Unsupported class loader.
   1072       return false;
   1073     }
   1074     ObjPtr<mirror::Object> dex_path_list = dex_path_list_field->GetObject(class_loader);
   1075     if (dex_path_list != nullptr) {
   1076       // DexPathList has an array dexElements of Elements[] which each contain a dex file.
   1077       ObjPtr<mirror::Object> dex_elements_obj = dex_elements_field->GetObject(dex_path_list);
   1078       // Loop through each dalvik.system.DexPathList$Element's dalvik.system.DexFile and look
   1079       // at the mCookie which is a DexFile vector.
   1080       if (dex_elements_obj != nullptr) {
   1081         ObjPtr<mirror::ObjectArray<mirror::Object>> dex_elements =
   1082             dex_elements_obj->AsObjectArray<mirror::Object>();
   1083         // Reverse order since we insert the parent at the front.
   1084         for (int32_t i = dex_elements->GetLength() - 1; i >= 0; --i) {
   1085           ObjPtr<mirror::Object> element = dex_elements->GetWithoutChecks(i);
   1086           if (element == nullptr) {
   1087             *error_msg = StringPrintf("Null dex element at index %d", i);
   1088             return false;
   1089           }
   1090           ObjPtr<mirror::String> name;
   1091           if (!GetDexPathListElementName(element, &name)) {
   1092             *error_msg = StringPrintf("Invalid dex path list element at index %d", i);
   1093             return false;
   1094           }
   1095           if (name != nullptr) {
   1096             out_dex_file_names->push_front(name.Ptr());
   1097           }
   1098         }
   1099       }
   1100     }
   1101     class_loader = class_loader->GetParent();
   1102   }
   1103   return true;
   1104 }
   1105 
   1106 class FixupArtMethodArrayVisitor : public ArtMethodVisitor {
   1107  public:
   1108   explicit FixupArtMethodArrayVisitor(const ImageHeader& header) : header_(header) {}
   1109 
   1110   virtual void Visit(ArtMethod* method) REQUIRES_SHARED(Locks::mutator_lock_) {
   1111     const bool is_copied = method->IsCopied();
   1112     ArtMethod** resolved_methods = method->GetDexCacheResolvedMethods(kRuntimePointerSize);
   1113     if (resolved_methods != nullptr) {
   1114       bool in_image_space = false;
   1115       if (kIsDebugBuild || is_copied) {
   1116         in_image_space = header_.GetImageSection(ImageHeader::kSectionDexCacheArrays).Contains(
   1117               reinterpret_cast<const uint8_t*>(resolved_methods) - header_.GetImageBegin());
   1118       }
   1119       // Must be in image space for non-miranda method.
   1120       DCHECK(is_copied || in_image_space)
   1121           << resolved_methods << " is not in image starting at "
   1122           << reinterpret_cast<void*>(header_.GetImageBegin());
   1123       if (!is_copied || in_image_space) {
   1124         method->SetDexCacheResolvedMethods(method->GetDexCache()->GetResolvedMethods(),
   1125                                            kRuntimePointerSize);
   1126       }
   1127     }
   1128   }
   1129 
   1130  private:
   1131   const ImageHeader& header_;
   1132 };
   1133 
   1134 class VerifyClassInTableArtMethodVisitor : public ArtMethodVisitor {
   1135  public:
   1136   explicit VerifyClassInTableArtMethodVisitor(ClassTable* table) : table_(table) {}
   1137 
   1138   virtual void Visit(ArtMethod* method)
   1139       REQUIRES_SHARED(Locks::mutator_lock_, Locks::classlinker_classes_lock_) {
   1140     ObjPtr<mirror::Class> klass = method->GetDeclaringClass();
   1141     if (klass != nullptr && !Runtime::Current()->GetHeap()->ObjectIsInBootImageSpace(klass)) {
   1142       CHECK_EQ(table_->LookupByDescriptor(klass), klass) << mirror::Class::PrettyClass(klass);
   1143     }
   1144   }
   1145 
   1146  private:
   1147   ClassTable* const table_;
   1148 };
   1149 
   1150 class VerifyDirectInterfacesInTableClassVisitor {
   1151  public:
   1152   explicit VerifyDirectInterfacesInTableClassVisitor(ObjPtr<mirror::ClassLoader> class_loader)
   1153       : class_loader_(class_loader), self_(Thread::Current()) { }
   1154 
   1155   bool operator()(ObjPtr<mirror::Class> klass) REQUIRES_SHARED(Locks::mutator_lock_) {
   1156     if (!klass->IsPrimitive() && klass->GetClassLoader() == class_loader_) {
   1157       classes_.push_back(klass);
   1158     }
   1159     return true;
   1160   }
   1161 
   1162   void Check() const REQUIRES_SHARED(Locks::mutator_lock_) {
   1163     for (ObjPtr<mirror::Class> klass : classes_) {
   1164       for (uint32_t i = 0, num = klass->NumDirectInterfaces(); i != num; ++i) {
   1165         CHECK(klass->GetDirectInterface(self_, klass, i) != nullptr)
   1166             << klass->PrettyDescriptor() << " iface #" << i;
   1167       }
   1168     }
   1169   }
   1170 
   1171  private:
   1172   ObjPtr<mirror::ClassLoader> class_loader_;
   1173   Thread* self_;
   1174   std::vector<ObjPtr<mirror::Class>> classes_;
   1175 };
   1176 
   1177 class VerifyDeclaringClassVisitor : public ArtMethodVisitor {
   1178  public:
   1179   VerifyDeclaringClassVisitor() REQUIRES_SHARED(Locks::mutator_lock_, Locks::heap_bitmap_lock_)
   1180       : live_bitmap_(Runtime::Current()->GetHeap()->GetLiveBitmap()) {}
   1181 
   1182   virtual void Visit(ArtMethod* method)
   1183       REQUIRES_SHARED(Locks::mutator_lock_, Locks::heap_bitmap_lock_) {
   1184     ObjPtr<mirror::Class> klass = method->GetDeclaringClassUnchecked();
   1185     if (klass != nullptr) {
   1186       CHECK(live_bitmap_->Test(klass.Ptr())) << "Image method has unmarked declaring class";
   1187     }
   1188   }
   1189 
   1190  private:
   1191   gc::accounting::HeapBitmap* const live_bitmap_;
   1192 };
   1193 
   1194 // Copies data from one array to another array at the same position
   1195 // if pred returns false. If there is a page of continuous data in
   1196 // the src array for which pred consistently returns true then
   1197 // corresponding page in the dst array will not be touched.
   1198 // This should reduce number of allocated physical pages.
   1199 template <class T, class NullPred>
   1200 static void CopyNonNull(const T* src, size_t count, T* dst, const NullPred& pred) {
   1201   for (size_t i = 0; i < count; ++i) {
   1202     if (!pred(src[i])) {
   1203       dst[i] = src[i];
   1204     }
   1205   }
   1206 }
   1207 
   1208 template <typename T>
   1209 static void CopyDexCachePairs(const std::atomic<mirror::DexCachePair<T>>* src,
   1210                               size_t count,
   1211                               std::atomic<mirror::DexCachePair<T>>* dst) {
   1212   DCHECK_NE(count, 0u);
   1213   DCHECK(!src[0].load(std::memory_order_relaxed).object.IsNull() ||
   1214          src[0].load(std::memory_order_relaxed).index != 0u);
   1215   for (size_t i = 0; i < count; ++i) {
   1216     DCHECK_EQ(dst[i].load(std::memory_order_relaxed).index, 0u);
   1217     DCHECK(dst[i].load(std::memory_order_relaxed).object.IsNull());
   1218     mirror::DexCachePair<T> source = src[i].load(std::memory_order_relaxed);
   1219     if (source.index != 0u || !source.object.IsNull()) {
   1220       dst[i].store(source, std::memory_order_relaxed);
   1221     }
   1222   }
   1223 }
   1224 
   1225 bool ClassLinker::UpdateAppImageClassLoadersAndDexCaches(
   1226     gc::space::ImageSpace* space,
   1227     Handle<mirror::ClassLoader> class_loader,
   1228     Handle<mirror::ObjectArray<mirror::DexCache>> dex_caches,
   1229     ClassTable::ClassSet* new_class_set,
   1230     bool* out_forward_dex_cache_array,
   1231     std::string* out_error_msg) {
   1232   DCHECK(out_forward_dex_cache_array != nullptr);
   1233   DCHECK(out_error_msg != nullptr);
   1234   Thread* const self = Thread::Current();
   1235   gc::Heap* const heap = Runtime::Current()->GetHeap();
   1236   const ImageHeader& header = space->GetImageHeader();
   1237   {
   1238     // Add image classes into the class table for the class loader, and fixup the dex caches and
   1239     // class loader fields.
   1240     WriterMutexLock mu(self, *Locks::classlinker_classes_lock_);
   1241     // Dex cache array fixup is all or nothing, we must reject app images that have mixed since we
   1242     // rely on clobering the dex cache arrays in the image to forward to bss.
   1243     size_t num_dex_caches_with_bss_arrays = 0;
   1244     const size_t num_dex_caches = dex_caches->GetLength();
   1245     for (size_t i = 0; i < num_dex_caches; i++) {
   1246       ObjPtr<mirror::DexCache> const dex_cache = dex_caches->Get(i);
   1247       const DexFile* const dex_file = dex_cache->GetDexFile();
   1248       const OatFile::OatDexFile* oat_dex_file = dex_file->GetOatDexFile();
   1249       if (oat_dex_file != nullptr && oat_dex_file->GetDexCacheArrays() != nullptr) {
   1250         ++num_dex_caches_with_bss_arrays;
   1251       }
   1252     }
   1253     *out_forward_dex_cache_array = num_dex_caches_with_bss_arrays != 0;
   1254     if (*out_forward_dex_cache_array) {
   1255       if (num_dex_caches_with_bss_arrays != num_dex_caches) {
   1256         // Reject application image since we cannot forward only some of the dex cache arrays.
   1257         // TODO: We could get around this by having a dedicated forwarding slot. It should be an
   1258         // uncommon case.
   1259         *out_error_msg = StringPrintf("Dex caches in bss does not match total: %zu vs %zu",
   1260                                       num_dex_caches_with_bss_arrays,
   1261                                       num_dex_caches);
   1262         return false;
   1263       }
   1264     }
   1265     // Only add the classes to the class loader after the points where we can return false.
   1266     for (size_t i = 0; i < num_dex_caches; i++) {
   1267       ObjPtr<mirror::DexCache> dex_cache = dex_caches->Get(i);
   1268       const DexFile* const dex_file = dex_cache->GetDexFile();
   1269       const OatFile::OatDexFile* oat_dex_file = dex_file->GetOatDexFile();
   1270       if (oat_dex_file != nullptr && oat_dex_file->GetDexCacheArrays() != nullptr) {
   1271         // If the oat file expects the dex cache arrays to be in the BSS, then allocate there and
   1272         // copy over the arrays.
   1273         DCHECK(dex_file != nullptr);
   1274         size_t num_strings = mirror::DexCache::kDexCacheStringCacheSize;
   1275         if (dex_file->NumStringIds() < num_strings) {
   1276           num_strings = dex_file->NumStringIds();
   1277         }
   1278         size_t num_types = mirror::DexCache::kDexCacheTypeCacheSize;
   1279         if (dex_file->NumTypeIds() < num_types) {
   1280           num_types = dex_file->NumTypeIds();
   1281         }
   1282         const size_t num_methods = dex_file->NumMethodIds();
   1283         size_t num_fields = mirror::DexCache::kDexCacheFieldCacheSize;
   1284         if (dex_file->NumFieldIds() < num_fields) {
   1285           num_fields = dex_file->NumFieldIds();
   1286         }
   1287         size_t num_method_types = mirror::DexCache::kDexCacheMethodTypeCacheSize;
   1288         if (dex_file->NumProtoIds() < num_method_types) {
   1289           num_method_types = dex_file->NumProtoIds();
   1290         }
   1291         const size_t num_call_sites = dex_file->NumCallSiteIds();
   1292         CHECK_EQ(num_strings, dex_cache->NumStrings());
   1293         CHECK_EQ(num_types, dex_cache->NumResolvedTypes());
   1294         CHECK_EQ(num_methods, dex_cache->NumResolvedMethods());
   1295         CHECK_EQ(num_fields, dex_cache->NumResolvedFields());
   1296         CHECK_EQ(num_method_types, dex_cache->NumResolvedMethodTypes());
   1297         CHECK_EQ(num_call_sites, dex_cache->NumResolvedCallSites());
   1298         DexCacheArraysLayout layout(image_pointer_size_, dex_file);
   1299         uint8_t* const raw_arrays = oat_dex_file->GetDexCacheArrays();
   1300         if (num_strings != 0u) {
   1301           mirror::StringDexCacheType* const image_resolved_strings = dex_cache->GetStrings();
   1302           mirror::StringDexCacheType* const strings =
   1303               reinterpret_cast<mirror::StringDexCacheType*>(raw_arrays + layout.StringsOffset());
   1304           CopyDexCachePairs(image_resolved_strings, num_strings, strings);
   1305           dex_cache->SetStrings(strings);
   1306         }
   1307         if (num_types != 0u) {
   1308           mirror::TypeDexCacheType* const image_resolved_types = dex_cache->GetResolvedTypes();
   1309           mirror::TypeDexCacheType* const types =
   1310               reinterpret_cast<mirror::TypeDexCacheType*>(raw_arrays + layout.TypesOffset());
   1311           CopyDexCachePairs(image_resolved_types, num_types, types);
   1312           dex_cache->SetResolvedTypes(types);
   1313         }
   1314         if (num_methods != 0u) {
   1315           ArtMethod** const methods = reinterpret_cast<ArtMethod**>(
   1316               raw_arrays + layout.MethodsOffset());
   1317           ArtMethod** const image_resolved_methods = dex_cache->GetResolvedMethods();
   1318           for (size_t j = 0; kIsDebugBuild && j < num_methods; ++j) {
   1319             DCHECK(methods[j] == nullptr);
   1320           }
   1321           CopyNonNull(image_resolved_methods,
   1322                       num_methods,
   1323                       methods,
   1324                       [] (const ArtMethod* method) {
   1325                           return method == nullptr;
   1326                       });
   1327           dex_cache->SetResolvedMethods(methods);
   1328         }
   1329         if (num_fields != 0u) {
   1330           mirror::FieldDexCacheType* const image_resolved_fields = dex_cache->GetResolvedFields();
   1331           mirror::FieldDexCacheType* const fields =
   1332               reinterpret_cast<mirror::FieldDexCacheType*>(raw_arrays + layout.FieldsOffset());
   1333           for (size_t j = 0; j < num_fields; ++j) {
   1334             DCHECK_EQ(mirror::DexCache::GetNativePairPtrSize(fields, j, image_pointer_size_).index,
   1335                       0u);
   1336             DCHECK(mirror::DexCache::GetNativePairPtrSize(fields, j, image_pointer_size_).object ==
   1337                    nullptr);
   1338             mirror::DexCache::SetNativePairPtrSize(
   1339                 fields,
   1340                 j,
   1341                 mirror::DexCache::GetNativePairPtrSize(image_resolved_fields,
   1342                                                        j,
   1343                                                        image_pointer_size_),
   1344                 image_pointer_size_);
   1345           }
   1346           dex_cache->SetResolvedFields(fields);
   1347         }
   1348         if (num_method_types != 0u) {
   1349           // NOTE: We currently (Sep 2016) do not resolve any method types at
   1350           // compile time, but plan to in the future. This code exists for the
   1351           // sake of completeness.
   1352           mirror::MethodTypeDexCacheType* const image_resolved_method_types =
   1353               dex_cache->GetResolvedMethodTypes();
   1354           mirror::MethodTypeDexCacheType* const method_types =
   1355               reinterpret_cast<mirror::MethodTypeDexCacheType*>(
   1356                   raw_arrays + layout.MethodTypesOffset());
   1357           CopyDexCachePairs(image_resolved_method_types, num_method_types, method_types);
   1358           dex_cache->SetResolvedMethodTypes(method_types);
   1359         }
   1360         if (num_call_sites != 0u) {
   1361           GcRoot<mirror::CallSite>* const image_resolved_call_sites =
   1362               dex_cache->GetResolvedCallSites();
   1363           GcRoot<mirror::CallSite>* const call_sites =
   1364               reinterpret_cast<GcRoot<mirror::CallSite>*>(raw_arrays + layout.CallSitesOffset());
   1365           for (size_t j = 0; kIsDebugBuild && j < num_call_sites; ++j) {
   1366             DCHECK(call_sites[j].IsNull());
   1367           }
   1368           CopyNonNull(image_resolved_call_sites,
   1369                       num_call_sites,
   1370                       call_sites,
   1371                       [](const GcRoot<mirror::CallSite>& elem) {
   1372                           return elem.IsNull();
   1373                       });
   1374           dex_cache->SetResolvedCallSites(call_sites);
   1375         }
   1376       }
   1377       {
   1378         WriterMutexLock mu2(self, *Locks::dex_lock_);
   1379         // Make sure to do this after we update the arrays since we store the resolved types array
   1380         // in DexCacheData in RegisterDexFileLocked. We need the array pointer to be the one in the
   1381         // BSS.
   1382         CHECK(!FindDexCacheDataLocked(*dex_file).IsValid());
   1383         RegisterDexFileLocked(*dex_file, dex_cache, class_loader.Get());
   1384       }
   1385       if (kIsDebugBuild) {
   1386         CHECK(new_class_set != nullptr);
   1387         mirror::TypeDexCacheType* const types = dex_cache->GetResolvedTypes();
   1388         const size_t num_types = dex_cache->NumResolvedTypes();
   1389         for (size_t j = 0; j != num_types; ++j) {
   1390           // The image space is not yet added to the heap, avoid read barriers.
   1391           ObjPtr<mirror::Class> klass = types[j].load(std::memory_order_relaxed).object.Read();
   1392           if (space->HasAddress(klass.Ptr())) {
   1393             DCHECK(!klass->IsErroneous()) << klass->GetStatus();
   1394             auto it = new_class_set->Find(ClassTable::TableSlot(klass));
   1395             DCHECK(it != new_class_set->end());
   1396             DCHECK_EQ(it->Read(), klass);
   1397             ObjPtr<mirror::Class> super_class = klass->GetSuperClass();
   1398             if (super_class != nullptr && !heap->ObjectIsInBootImageSpace(super_class)) {
   1399               auto it2 = new_class_set->Find(ClassTable::TableSlot(super_class));
   1400               DCHECK(it2 != new_class_set->end());
   1401               DCHECK_EQ(it2->Read(), super_class);
   1402             }
   1403             for (ArtMethod& m : klass->GetDirectMethods(kRuntimePointerSize)) {
   1404               const void* code = m.GetEntryPointFromQuickCompiledCode();
   1405               const void* oat_code = m.IsInvokable() ? GetQuickOatCodeFor(&m) : code;
   1406               if (!IsQuickResolutionStub(code) &&
   1407                   !IsQuickGenericJniStub(code) &&
   1408                   !IsQuickToInterpreterBridge(code) &&
   1409                   !m.IsNative()) {
   1410                 DCHECK_EQ(code, oat_code) << m.PrettyMethod();
   1411               }
   1412             }
   1413             for (ArtMethod& m : klass->GetVirtualMethods(kRuntimePointerSize)) {
   1414               const void* code = m.GetEntryPointFromQuickCompiledCode();
   1415               const void* oat_code = m.IsInvokable() ? GetQuickOatCodeFor(&m) : code;
   1416               if (!IsQuickResolutionStub(code) &&
   1417                   !IsQuickGenericJniStub(code) &&
   1418                   !IsQuickToInterpreterBridge(code) &&
   1419                   !m.IsNative()) {
   1420                 DCHECK_EQ(code, oat_code) << m.PrettyMethod();
   1421               }
   1422             }
   1423           }
   1424         }
   1425       }
   1426     }
   1427   }
   1428   if (*out_forward_dex_cache_array) {
   1429     ScopedTrace timing("Fixup ArtMethod dex cache arrays");
   1430     FixupArtMethodArrayVisitor visitor(header);
   1431     header.VisitPackedArtMethods(&visitor, space->Begin(), kRuntimePointerSize);
   1432     Runtime::Current()->GetHeap()->WriteBarrierEveryFieldOf(class_loader.Get());
   1433   }
   1434   if (kVerifyArtMethodDeclaringClasses) {
   1435     ScopedTrace timing("Verify declaring classes");
   1436     ReaderMutexLock rmu(self, *Locks::heap_bitmap_lock_);
   1437     VerifyDeclaringClassVisitor visitor;
   1438     header.VisitPackedArtMethods(&visitor, space->Begin(), kRuntimePointerSize);
   1439   }
   1440   return true;
   1441 }
   1442 
   1443 // Update the class loader. Should only be used on classes in the image space.
   1444 class UpdateClassLoaderVisitor {
   1445  public:
   1446   UpdateClassLoaderVisitor(gc::space::ImageSpace* space, ObjPtr<mirror::ClassLoader> class_loader)
   1447       : space_(space),
   1448         class_loader_(class_loader) {}
   1449 
   1450   bool operator()(ObjPtr<mirror::Class> klass) const REQUIRES_SHARED(Locks::mutator_lock_) {
   1451     // Do not update class loader for boot image classes where the app image
   1452     // class loader is only the initiating loader but not the defining loader.
   1453     if (klass->GetClassLoader() != nullptr) {
   1454       klass->SetClassLoader(class_loader_);
   1455     }
   1456     return true;
   1457   }
   1458 
   1459   gc::space::ImageSpace* const space_;
   1460   ObjPtr<mirror::ClassLoader> const class_loader_;
   1461 };
   1462 
   1463 static std::unique_ptr<const DexFile> OpenOatDexFile(const OatFile* oat_file,
   1464                                                      const char* location,
   1465                                                      std::string* error_msg)
   1466     REQUIRES_SHARED(Locks::mutator_lock_) {
   1467   DCHECK(error_msg != nullptr);
   1468   std::unique_ptr<const DexFile> dex_file;
   1469   const OatFile::OatDexFile* oat_dex_file = oat_file->GetOatDexFile(location, nullptr, error_msg);
   1470   if (oat_dex_file == nullptr) {
   1471     return std::unique_ptr<const DexFile>();
   1472   }
   1473   std::string inner_error_msg;
   1474   dex_file = oat_dex_file->OpenDexFile(&inner_error_msg);
   1475   if (dex_file == nullptr) {
   1476     *error_msg = StringPrintf("Failed to open dex file %s from within oat file %s error '%s'",
   1477                               location,
   1478                               oat_file->GetLocation().c_str(),
   1479                               inner_error_msg.c_str());
   1480     return std::unique_ptr<const DexFile>();
   1481   }
   1482 
   1483   if (dex_file->GetLocationChecksum() != oat_dex_file->GetDexFileLocationChecksum()) {
   1484     *error_msg = StringPrintf("Checksums do not match for %s: %x vs %x",
   1485                               location,
   1486                               dex_file->GetLocationChecksum(),
   1487                               oat_dex_file->GetDexFileLocationChecksum());
   1488     return std::unique_ptr<const DexFile>();
   1489   }
   1490   return dex_file;
   1491 }
   1492 
   1493 bool ClassLinker::OpenImageDexFiles(gc::space::ImageSpace* space,
   1494                                     std::vector<std::unique_ptr<const DexFile>>* out_dex_files,
   1495                                     std::string* error_msg) {
   1496   ScopedAssertNoThreadSuspension nts(__FUNCTION__);
   1497   const ImageHeader& header = space->GetImageHeader();
   1498   ObjPtr<mirror::Object> dex_caches_object = header.GetImageRoot(ImageHeader::kDexCaches);
   1499   DCHECK(dex_caches_object != nullptr);
   1500   mirror::ObjectArray<mirror::DexCache>* dex_caches =
   1501       dex_caches_object->AsObjectArray<mirror::DexCache>();
   1502   const OatFile* oat_file = space->GetOatFile();
   1503   for (int32_t i = 0; i < dex_caches->GetLength(); i++) {
   1504     ObjPtr<mirror::DexCache> dex_cache = dex_caches->Get(i);
   1505     std::string dex_file_location(dex_cache->GetLocation()->ToModifiedUtf8());
   1506     std::unique_ptr<const DexFile> dex_file = OpenOatDexFile(oat_file,
   1507                                                              dex_file_location.c_str(),
   1508                                                              error_msg);
   1509     if (dex_file == nullptr) {
   1510       return false;
   1511     }
   1512     dex_cache->SetDexFile(dex_file.get());
   1513     out_dex_files->push_back(std::move(dex_file));
   1514   }
   1515   return true;
   1516 }
   1517 
   1518 // Helper class for ArtMethod checks when adding an image. Keeps all required functionality
   1519 // together and caches some intermediate results.
   1520 class ImageSanityChecks FINAL {
   1521  public:
   1522   static void CheckObjects(gc::Heap* heap, ClassLinker* class_linker)
   1523       REQUIRES_SHARED(Locks::mutator_lock_) {
   1524     ImageSanityChecks isc(heap, class_linker);
   1525     heap->VisitObjects(ImageSanityChecks::SanityCheckObjectsCallback, &isc);
   1526   }
   1527 
   1528   static void CheckPointerArray(gc::Heap* heap,
   1529                                 ClassLinker* class_linker,
   1530                                 ArtMethod** arr,
   1531                                 size_t size)
   1532       REQUIRES_SHARED(Locks::mutator_lock_) {
   1533     ImageSanityChecks isc(heap, class_linker);
   1534     isc.SanityCheckArtMethodPointerArray(arr, size);
   1535   }
   1536 
   1537   static void SanityCheckObjectsCallback(mirror::Object* obj, void* arg)
   1538       REQUIRES_SHARED(Locks::mutator_lock_) {
   1539     DCHECK(obj != nullptr);
   1540     CHECK(obj->GetClass() != nullptr) << "Null class in object " << obj;
   1541     CHECK(obj->GetClass()->GetClass() != nullptr) << "Null class class " << obj;
   1542     if (obj->IsClass()) {
   1543       ImageSanityChecks* isc = reinterpret_cast<ImageSanityChecks*>(arg);
   1544 
   1545       auto klass = obj->AsClass();
   1546       for (ArtField& field : klass->GetIFields()) {
   1547         CHECK_EQ(field.GetDeclaringClass(), klass);
   1548       }
   1549       for (ArtField& field : klass->GetSFields()) {
   1550         CHECK_EQ(field.GetDeclaringClass(), klass);
   1551       }
   1552       const auto pointer_size = isc->pointer_size_;
   1553       for (auto& m : klass->GetMethods(pointer_size)) {
   1554         isc->SanityCheckArtMethod(&m, klass);
   1555       }
   1556       auto* vtable = klass->GetVTable();
   1557       if (vtable != nullptr) {
   1558         isc->SanityCheckArtMethodPointerArray(vtable, nullptr);
   1559       }
   1560       if (klass->ShouldHaveImt()) {
   1561         ImTable* imt = klass->GetImt(pointer_size);
   1562         for (size_t i = 0; i < ImTable::kSize; ++i) {
   1563           isc->SanityCheckArtMethod(imt->Get(i, pointer_size), nullptr);
   1564         }
   1565       }
   1566       if (klass->ShouldHaveEmbeddedVTable()) {
   1567         for (int32_t i = 0; i < klass->GetEmbeddedVTableLength(); ++i) {
   1568           isc->SanityCheckArtMethod(klass->GetEmbeddedVTableEntry(i, pointer_size), nullptr);
   1569         }
   1570       }
   1571       mirror::IfTable* iftable = klass->GetIfTable();
   1572       for (int32_t i = 0; i < klass->GetIfTableCount(); ++i) {
   1573         if (iftable->GetMethodArrayCount(i) > 0) {
   1574           isc->SanityCheckArtMethodPointerArray(iftable->GetMethodArray(i), nullptr);
   1575         }
   1576       }
   1577     }
   1578   }
   1579 
   1580  private:
   1581   ImageSanityChecks(gc::Heap* heap, ClassLinker* class_linker)
   1582      :  spaces_(heap->GetBootImageSpaces()),
   1583         pointer_size_(class_linker->GetImagePointerSize()) {
   1584     space_begin_.reserve(spaces_.size());
   1585     method_sections_.reserve(spaces_.size());
   1586     runtime_method_sections_.reserve(spaces_.size());
   1587     for (gc::space::ImageSpace* space : spaces_) {
   1588       space_begin_.push_back(space->Begin());
   1589       auto& header = space->GetImageHeader();
   1590       method_sections_.push_back(&header.GetMethodsSection());
   1591       runtime_method_sections_.push_back(&header.GetRuntimeMethodsSection());
   1592     }
   1593   }
   1594 
   1595   void SanityCheckArtMethod(ArtMethod* m, ObjPtr<mirror::Class> expected_class)
   1596       REQUIRES_SHARED(Locks::mutator_lock_) {
   1597     if (m->IsRuntimeMethod()) {
   1598       ObjPtr<mirror::Class> declaring_class = m->GetDeclaringClassUnchecked();
   1599       CHECK(declaring_class == nullptr) << declaring_class << " " << m->PrettyMethod();
   1600     } else if (m->IsCopied()) {
   1601       CHECK(m->GetDeclaringClass() != nullptr) << m->PrettyMethod();
   1602     } else if (expected_class != nullptr) {
   1603       CHECK_EQ(m->GetDeclaringClassUnchecked(), expected_class) << m->PrettyMethod();
   1604     }
   1605     if (!spaces_.empty()) {
   1606       bool contains = false;
   1607       for (size_t i = 0; !contains && i != space_begin_.size(); ++i) {
   1608         const size_t offset = reinterpret_cast<uint8_t*>(m) - space_begin_[i];
   1609         contains = method_sections_[i]->Contains(offset) ||
   1610             runtime_method_sections_[i]->Contains(offset);
   1611       }
   1612       CHECK(contains) << m << " not found";
   1613     }
   1614   }
   1615 
   1616   void SanityCheckArtMethodPointerArray(ObjPtr<mirror::PointerArray> arr,
   1617                                         ObjPtr<mirror::Class> expected_class)
   1618       REQUIRES_SHARED(Locks::mutator_lock_) {
   1619     CHECK(arr != nullptr);
   1620     for (int32_t j = 0; j < arr->GetLength(); ++j) {
   1621       auto* method = arr->GetElementPtrSize<ArtMethod*>(j, pointer_size_);
   1622       // expected_class == null means we are a dex cache.
   1623       if (expected_class != nullptr) {
   1624         CHECK(method != nullptr);
   1625       }
   1626       if (method != nullptr) {
   1627         SanityCheckArtMethod(method, expected_class);
   1628       }
   1629     }
   1630   }
   1631 
   1632   void SanityCheckArtMethodPointerArray(ArtMethod** arr, size_t size)
   1633       REQUIRES_SHARED(Locks::mutator_lock_) {
   1634     CHECK_EQ(arr != nullptr, size != 0u);
   1635     if (arr != nullptr) {
   1636       bool contains = false;
   1637       for (auto space : spaces_) {
   1638         auto offset = reinterpret_cast<uint8_t*>(arr) - space->Begin();
   1639         if (space->GetImageHeader().GetImageSection(
   1640             ImageHeader::kSectionDexCacheArrays).Contains(offset)) {
   1641           contains = true;
   1642           break;
   1643         }
   1644       }
   1645       CHECK(contains);
   1646     }
   1647     for (size_t j = 0; j < size; ++j) {
   1648       ArtMethod* method = mirror::DexCache::GetElementPtrSize(arr, j, pointer_size_);
   1649       // expected_class == null means we are a dex cache.
   1650       if (method != nullptr) {
   1651         SanityCheckArtMethod(method, nullptr);
   1652       }
   1653     }
   1654   }
   1655 
   1656   const std::vector<gc::space::ImageSpace*>& spaces_;
   1657   const PointerSize pointer_size_;
   1658 
   1659   // Cached sections from the spaces.
   1660   std::vector<const uint8_t*> space_begin_;
   1661   std::vector<const ImageSection*> method_sections_;
   1662   std::vector<const ImageSection*> runtime_method_sections_;
   1663 };
   1664 
   1665 bool ClassLinker::AddImageSpace(
   1666     gc::space::ImageSpace* space,
   1667     Handle<mirror::ClassLoader> class_loader,
   1668     jobjectArray dex_elements,
   1669     const char* dex_location,
   1670     std::vector<std::unique_ptr<const DexFile>>* out_dex_files,
   1671     std::string* error_msg) {
   1672   DCHECK(out_dex_files != nullptr);
   1673   DCHECK(error_msg != nullptr);
   1674   const uint64_t start_time = NanoTime();
   1675   const bool app_image = class_loader != nullptr;
   1676   const ImageHeader& header = space->GetImageHeader();
   1677   ObjPtr<mirror::Object> dex_caches_object = header.GetImageRoot(ImageHeader::kDexCaches);
   1678   DCHECK(dex_caches_object != nullptr);
   1679   Runtime* const runtime = Runtime::Current();
   1680   gc::Heap* const heap = runtime->GetHeap();
   1681   Thread* const self = Thread::Current();
   1682   // Check that the image is what we are expecting.
   1683   if (image_pointer_size_ != space->GetImageHeader().GetPointerSize()) {
   1684     *error_msg = StringPrintf("Application image pointer size does not match runtime: %zu vs %zu",
   1685                               static_cast<size_t>(space->GetImageHeader().GetPointerSize()),
   1686                               image_pointer_size_);
   1687     return false;
   1688   }
   1689   size_t expected_image_roots = ImageHeader::NumberOfImageRoots(app_image);
   1690   if (static_cast<size_t>(header.GetImageRoots()->GetLength()) != expected_image_roots) {
   1691     *error_msg = StringPrintf("Expected %zu image roots but got %d",
   1692                               expected_image_roots,
   1693                               header.GetImageRoots()->GetLength());
   1694     return false;
   1695   }
   1696   StackHandleScope<3> hs(self);
   1697   Handle<mirror::ObjectArray<mirror::DexCache>> dex_caches(
   1698       hs.NewHandle(dex_caches_object->AsObjectArray<mirror::DexCache>()));
   1699   Handle<mirror::ObjectArray<mirror::Class>> class_roots(hs.NewHandle(
   1700       header.GetImageRoot(ImageHeader::kClassRoots)->AsObjectArray<mirror::Class>()));
   1701   static_assert(ImageHeader::kClassLoader + 1u == ImageHeader::kImageRootsMax,
   1702                 "Class loader should be the last image root.");
   1703   MutableHandle<mirror::ClassLoader> image_class_loader(hs.NewHandle(
   1704       app_image ? header.GetImageRoot(ImageHeader::kClassLoader)->AsClassLoader() : nullptr));
   1705   DCHECK(class_roots != nullptr);
   1706   if (class_roots->GetLength() != static_cast<int32_t>(kClassRootsMax)) {
   1707     *error_msg = StringPrintf("Expected %d class roots but got %d",
   1708                               class_roots->GetLength(),
   1709                               static_cast<int32_t>(kClassRootsMax));
   1710     return false;
   1711   }
   1712   // Check against existing class roots to make sure they match the ones in the boot image.
   1713   for (size_t i = 0; i < kClassRootsMax; i++) {
   1714     if (class_roots->Get(i) != GetClassRoot(static_cast<ClassRoot>(i))) {
   1715       *error_msg = "App image class roots must have pointer equality with runtime ones.";
   1716       return false;
   1717     }
   1718   }
   1719   const OatFile* oat_file = space->GetOatFile();
   1720   if (oat_file->GetOatHeader().GetDexFileCount() !=
   1721       static_cast<uint32_t>(dex_caches->GetLength())) {
   1722     *error_msg = "Dex cache count and dex file count mismatch while trying to initialize from "
   1723                  "image";
   1724     return false;
   1725   }
   1726 
   1727   for (int32_t i = 0; i < dex_caches->GetLength(); i++) {
   1728     ObjPtr<mirror::DexCache> dex_cache = dex_caches->Get(i);
   1729     std::string dex_file_location(dex_cache->GetLocation()->ToModifiedUtf8());
   1730     // TODO: Only store qualified paths.
   1731     // If non qualified, qualify it.
   1732     if (dex_file_location.find('/') == std::string::npos) {
   1733       std::string dex_location_path = dex_location;
   1734       const size_t pos = dex_location_path.find_last_of('/');
   1735       CHECK_NE(pos, std::string::npos);
   1736       dex_location_path = dex_location_path.substr(0, pos + 1);  // Keep trailing '/'
   1737       dex_file_location = dex_location_path + dex_file_location;
   1738     }
   1739     std::unique_ptr<const DexFile> dex_file = OpenOatDexFile(oat_file,
   1740                                                              dex_file_location.c_str(),
   1741                                                              error_msg);
   1742     if (dex_file == nullptr) {
   1743       return false;
   1744     }
   1745 
   1746     if (app_image) {
   1747       // The current dex file field is bogus, overwrite it so that we can get the dex file in the
   1748       // loop below.
   1749       dex_cache->SetDexFile(dex_file.get());
   1750       mirror::TypeDexCacheType* const types = dex_cache->GetResolvedTypes();
   1751       for (int32_t j = 0, num_types = dex_cache->NumResolvedTypes(); j < num_types; j++) {
   1752         ObjPtr<mirror::Class> klass = types[j].load(std::memory_order_relaxed).object.Read();
   1753         if (klass != nullptr) {
   1754           DCHECK(!klass->IsErroneous()) << klass->GetStatus();
   1755         }
   1756       }
   1757     } else {
   1758       if (kSanityCheckObjects) {
   1759         ImageSanityChecks::CheckPointerArray(heap,
   1760                                              this,
   1761                                              dex_cache->GetResolvedMethods(),
   1762                                              dex_cache->NumResolvedMethods());
   1763       }
   1764       // Register dex files, keep track of existing ones that are conflicts.
   1765       AppendToBootClassPath(*dex_file.get(), dex_cache);
   1766     }
   1767     out_dex_files->push_back(std::move(dex_file));
   1768   }
   1769 
   1770   if (app_image) {
   1771     ScopedObjectAccessUnchecked soa(Thread::Current());
   1772     // Check that the class loader resolves the same way as the ones in the image.
   1773     // Image class loader [A][B][C][image dex files]
   1774     // Class loader = [???][dex_elements][image dex files]
   1775     // Need to ensure that [???][dex_elements] == [A][B][C].
   1776     // For each class loader, PathClassLoader, the laoder checks the parent first. Also the logic
   1777     // for PathClassLoader does this by looping through the array of dex files. To ensure they
   1778     // resolve the same way, simply flatten the hierarchy in the way the resolution order would be,
   1779     // and check that the dex file names are the same.
   1780     if (IsBootClassLoader(soa, image_class_loader.Get())) {
   1781       *error_msg = "Unexpected BootClassLoader in app image";
   1782       return false;
   1783     }
   1784     std::list<ObjPtr<mirror::String>> image_dex_file_names;
   1785     std::string temp_error_msg;
   1786     if (!FlattenPathClassLoader(image_class_loader.Get(), &image_dex_file_names, &temp_error_msg)) {
   1787       *error_msg = StringPrintf("Failed to flatten image class loader hierarchy '%s'",
   1788                                 temp_error_msg.c_str());
   1789       return false;
   1790     }
   1791     std::list<ObjPtr<mirror::String>> loader_dex_file_names;
   1792     if (!FlattenPathClassLoader(class_loader.Get(), &loader_dex_file_names, &temp_error_msg)) {
   1793       *error_msg = StringPrintf("Failed to flatten class loader hierarchy '%s'",
   1794                                 temp_error_msg.c_str());
   1795       return false;
   1796     }
   1797     // Add the temporary dex path list elements at the end.
   1798     auto elements = soa.Decode<mirror::ObjectArray<mirror::Object>>(dex_elements);
   1799     for (size_t i = 0, num_elems = elements->GetLength(); i < num_elems; ++i) {
   1800       ObjPtr<mirror::Object> element = elements->GetWithoutChecks(i);
   1801       if (element != nullptr) {
   1802         // If we are somewhere in the middle of the array, there may be nulls at the end.
   1803         ObjPtr<mirror::String> name;
   1804         if (GetDexPathListElementName(element, &name) && name != nullptr) {
   1805           loader_dex_file_names.push_back(name);
   1806         }
   1807       }
   1808     }
   1809     // Ignore the number of image dex files since we are adding those to the class loader anyways.
   1810     CHECK_GE(static_cast<size_t>(image_dex_file_names.size()),
   1811              static_cast<size_t>(dex_caches->GetLength()));
   1812     size_t image_count = image_dex_file_names.size() - dex_caches->GetLength();
   1813     // Check that the dex file names match.
   1814     bool equal = image_count == loader_dex_file_names.size();
   1815     if (equal) {
   1816       auto it1 = image_dex_file_names.begin();
   1817       auto it2 = loader_dex_file_names.begin();
   1818       for (size_t i = 0; equal && i < image_count; ++i, ++it1, ++it2) {
   1819         equal = equal && (*it1)->Equals(*it2);
   1820       }
   1821     }
   1822     if (!equal) {
   1823       VLOG(image) << "Image dex files " << image_dex_file_names.size();
   1824       for (ObjPtr<mirror::String> name : image_dex_file_names) {
   1825         VLOG(image) << name->ToModifiedUtf8();
   1826       }
   1827       VLOG(image) << "Loader dex files " << loader_dex_file_names.size();
   1828       for (ObjPtr<mirror::String> name : loader_dex_file_names) {
   1829         VLOG(image) << name->ToModifiedUtf8();
   1830       }
   1831       *error_msg = "Rejecting application image due to class loader mismatch";
   1832       // Ignore class loader mismatch for now since these would just use possibly incorrect
   1833       // oat code anyways. The structural class check should be done in the parent.
   1834     }
   1835   }
   1836 
   1837   if (kSanityCheckObjects) {
   1838     for (int32_t i = 0; i < dex_caches->GetLength(); i++) {
   1839       auto* dex_cache = dex_caches->Get(i);
   1840       for (size_t j = 0; j < dex_cache->NumResolvedFields(); ++j) {
   1841         auto* field = dex_cache->GetResolvedField(j, image_pointer_size_);
   1842         if (field != nullptr) {
   1843           CHECK(field->GetDeclaringClass()->GetClass() != nullptr);
   1844         }
   1845       }
   1846     }
   1847     if (!app_image) {
   1848       ImageSanityChecks::CheckObjects(heap, this);
   1849     }
   1850   }
   1851 
   1852   // Set entry point to interpreter if in InterpretOnly mode.
   1853   if (!runtime->IsAotCompiler() && runtime->GetInstrumentation()->InterpretOnly()) {
   1854     SetInterpreterEntrypointArtMethodVisitor visitor(image_pointer_size_);
   1855     header.VisitPackedArtMethods(&visitor, space->Begin(), image_pointer_size_);
   1856   }
   1857 
   1858   ClassTable* class_table = nullptr;
   1859   {
   1860     WriterMutexLock mu(self, *Locks::classlinker_classes_lock_);
   1861     class_table = InsertClassTableForClassLoader(class_loader.Get());
   1862   }
   1863   // If we have a class table section, read it and use it for verification in
   1864   // UpdateAppImageClassLoadersAndDexCaches.
   1865   ClassTable::ClassSet temp_set;
   1866   const ImageSection& class_table_section = header.GetImageSection(ImageHeader::kSectionClassTable);
   1867   const bool added_class_table = class_table_section.Size() > 0u;
   1868   if (added_class_table) {
   1869     const uint64_t start_time2 = NanoTime();
   1870     size_t read_count = 0;
   1871     temp_set = ClassTable::ClassSet(space->Begin() + class_table_section.Offset(),
   1872                                     /*make copy*/false,
   1873                                     &read_count);
   1874     VLOG(image) << "Adding class table classes took " << PrettyDuration(NanoTime() - start_time2);
   1875   }
   1876   if (app_image) {
   1877     bool forward_dex_cache_arrays = false;
   1878     if (!UpdateAppImageClassLoadersAndDexCaches(space,
   1879                                                 class_loader,
   1880                                                 dex_caches,
   1881                                                 &temp_set,
   1882                                                 /*out*/&forward_dex_cache_arrays,
   1883                                                 /*out*/error_msg)) {
   1884       return false;
   1885     }
   1886     // Update class loader and resolved strings. If added_class_table is false, the resolved
   1887     // strings were forwarded UpdateAppImageClassLoadersAndDexCaches.
   1888     UpdateClassLoaderVisitor visitor(space, class_loader.Get());
   1889     for (const ClassTable::TableSlot& root : temp_set) {
   1890       visitor(root.Read());
   1891     }
   1892     // forward_dex_cache_arrays is true iff we copied all of the dex cache arrays into the .bss.
   1893     // In this case, madvise away the dex cache arrays section of the image to reduce RAM usage and
   1894     // mark as PROT_NONE to catch any invalid accesses.
   1895     if (forward_dex_cache_arrays) {
   1896       const ImageSection& dex_cache_section = header.GetImageSection(
   1897           ImageHeader::kSectionDexCacheArrays);
   1898       uint8_t* section_begin = AlignUp(space->Begin() + dex_cache_section.Offset(), kPageSize);
   1899       uint8_t* section_end = AlignDown(space->Begin() + dex_cache_section.End(), kPageSize);
   1900       if (section_begin < section_end) {
   1901         madvise(section_begin, section_end - section_begin, MADV_DONTNEED);
   1902         mprotect(section_begin, section_end - section_begin, PROT_NONE);
   1903         VLOG(image) << "Released and protected dex cache array image section from "
   1904                     << reinterpret_cast<const void*>(section_begin) << "-"
   1905                     << reinterpret_cast<const void*>(section_end);
   1906       }
   1907     }
   1908   }
   1909   if (!oat_file->GetBssGcRoots().empty()) {
   1910     // Insert oat file to class table for visiting .bss GC roots.
   1911     class_table->InsertOatFile(oat_file);
   1912   }
   1913   if (added_class_table) {
   1914     WriterMutexLock mu(self, *Locks::classlinker_classes_lock_);
   1915     class_table->AddClassSet(std::move(temp_set));
   1916   }
   1917   if (kIsDebugBuild && app_image) {
   1918     // This verification needs to happen after the classes have been added to the class loader.
   1919     // Since it ensures classes are in the class table.
   1920     VerifyClassInTableArtMethodVisitor visitor2(class_table);
   1921     header.VisitPackedArtMethods(&visitor2, space->Begin(), kRuntimePointerSize);
   1922     // Verify that all direct interfaces of classes in the class table are also resolved.
   1923     VerifyDirectInterfacesInTableClassVisitor visitor(class_loader.Get());
   1924     class_table->Visit(visitor);
   1925     visitor.Check();
   1926     // Check that all non-primitive classes in dex caches are also in the class table.
   1927     for (int32_t i = 0; i < dex_caches->GetLength(); i++) {
   1928       ObjPtr<mirror::DexCache> dex_cache = dex_caches->Get(i);
   1929       mirror::TypeDexCacheType* const types = dex_cache->GetResolvedTypes();
   1930       for (int32_t j = 0, num_types = dex_cache->NumResolvedTypes(); j < num_types; j++) {
   1931         ObjPtr<mirror::Class> klass = types[j].load(std::memory_order_relaxed).object.Read();
   1932         if (klass != nullptr && !klass->IsPrimitive()) {
   1933           CHECK(class_table->Contains(klass)) << klass->PrettyDescriptor()
   1934               << " " << dex_cache->GetDexFile()->GetLocation();
   1935         }
   1936       }
   1937     }
   1938   }
   1939   VLOG(class_linker) << "Adding image space took " << PrettyDuration(NanoTime() - start_time);
   1940   return true;
   1941 }
   1942 
   1943 bool ClassLinker::ClassInClassTable(ObjPtr<mirror::Class> klass) {
   1944   ClassTable* const class_table = ClassTableForClassLoader(klass->GetClassLoader());
   1945   return class_table != nullptr && class_table->Contains(klass);
   1946 }
   1947 
   1948 void ClassLinker::VisitClassRoots(RootVisitor* visitor, VisitRootFlags flags) {
   1949   // Acquire tracing_enabled before locking class linker lock to prevent lock order violation. Since
   1950   // enabling tracing requires the mutator lock, there are no race conditions here.
   1951   const bool tracing_enabled = Trace::IsTracingEnabled();
   1952   Thread* const self = Thread::Current();
   1953   WriterMutexLock mu(self, *Locks::classlinker_classes_lock_);
   1954   if (kUseReadBarrier) {
   1955     // We do not track new roots for CC.
   1956     DCHECK_EQ(0, flags & (kVisitRootFlagNewRoots |
   1957                           kVisitRootFlagClearRootLog |
   1958                           kVisitRootFlagStartLoggingNewRoots |
   1959                           kVisitRootFlagStopLoggingNewRoots));
   1960   }
   1961   if ((flags & kVisitRootFlagAllRoots) != 0) {
   1962     // Argument for how root visiting deals with ArtField and ArtMethod roots.
   1963     // There is 3 GC cases to handle:
   1964     // Non moving concurrent:
   1965     // This case is easy to handle since the reference members of ArtMethod and ArtFields are held
   1966     // live by the class and class roots.
   1967     //
   1968     // Moving non-concurrent:
   1969     // This case needs to call visit VisitNativeRoots in case the classes or dex cache arrays move.
   1970     // To prevent missing roots, this case needs to ensure that there is no
   1971     // suspend points between the point which we allocate ArtMethod arrays and place them in a
   1972     // class which is in the class table.
   1973     //
   1974     // Moving concurrent:
   1975     // Need to make sure to not copy ArtMethods without doing read barriers since the roots are
   1976     // marked concurrently and we don't hold the classlinker_classes_lock_ when we do the copy.
   1977     //
   1978     // Use an unbuffered visitor since the class table uses a temporary GcRoot for holding decoded
   1979     // ClassTable::TableSlot. The buffered root visiting would access a stale stack location for
   1980     // these objects.
   1981     UnbufferedRootVisitor root_visitor(visitor, RootInfo(kRootStickyClass));
   1982     boot_class_table_.VisitRoots(root_visitor);
   1983     // If tracing is enabled, then mark all the class loaders to prevent unloading.
   1984     if ((flags & kVisitRootFlagClassLoader) != 0 || tracing_enabled) {
   1985       for (const ClassLoaderData& data : class_loaders_) {
   1986         GcRoot<mirror::Object> root(GcRoot<mirror::Object>(self->DecodeJObject(data.weak_root)));
   1987         root.VisitRoot(visitor, RootInfo(kRootVMInternal));
   1988       }
   1989     }
   1990   } else if (!kUseReadBarrier && (flags & kVisitRootFlagNewRoots) != 0) {
   1991     for (auto& root : new_class_roots_) {
   1992       ObjPtr<mirror::Class> old_ref = root.Read<kWithoutReadBarrier>();
   1993       root.VisitRoot(visitor, RootInfo(kRootStickyClass));
   1994       ObjPtr<mirror::Class> new_ref = root.Read<kWithoutReadBarrier>();
   1995       // Concurrent moving GC marked new roots through the to-space invariant.
   1996       CHECK_EQ(new_ref, old_ref);
   1997     }
   1998     for (const OatFile* oat_file : new_bss_roots_boot_oat_files_) {
   1999       for (GcRoot<mirror::Object>& root : oat_file->GetBssGcRoots()) {
   2000         ObjPtr<mirror::Object> old_ref = root.Read<kWithoutReadBarrier>();
   2001         if (old_ref != nullptr) {
   2002           DCHECK(old_ref->IsClass());
   2003           root.VisitRoot(visitor, RootInfo(kRootStickyClass));
   2004           ObjPtr<mirror::Object> new_ref = root.Read<kWithoutReadBarrier>();
   2005           // Concurrent moving GC marked new roots through the to-space invariant.
   2006           CHECK_EQ(new_ref, old_ref);
   2007         }
   2008       }
   2009     }
   2010   }
   2011   if (!kUseReadBarrier && (flags & kVisitRootFlagClearRootLog) != 0) {
   2012     new_class_roots_.clear();
   2013     new_bss_roots_boot_oat_files_.clear();
   2014   }
   2015   if (!kUseReadBarrier && (flags & kVisitRootFlagStartLoggingNewRoots) != 0) {
   2016     log_new_roots_ = true;
   2017   } else if (!kUseReadBarrier && (flags & kVisitRootFlagStopLoggingNewRoots) != 0) {
   2018     log_new_roots_ = false;
   2019   }
   2020   // We deliberately ignore the class roots in the image since we
   2021   // handle image roots by using the MS/CMS rescanning of dirty cards.
   2022 }
   2023 
   2024 // Keep in sync with InitCallback. Anything we visit, we need to
   2025 // reinit references to when reinitializing a ClassLinker from a
   2026 // mapped image.
   2027 void ClassLinker::VisitRoots(RootVisitor* visitor, VisitRootFlags flags) {
   2028   class_roots_.VisitRootIfNonNull(visitor, RootInfo(kRootVMInternal));
   2029   VisitClassRoots(visitor, flags);
   2030   array_iftable_.VisitRootIfNonNull(visitor, RootInfo(kRootVMInternal));
   2031   // Instead of visiting the find_array_class_cache_ drop it so that it doesn't prevent class
   2032   // unloading if we are marking roots.
   2033   DropFindArrayClassCache();
   2034 }
   2035 
   2036 class VisitClassLoaderClassesVisitor : public ClassLoaderVisitor {
   2037  public:
   2038   explicit VisitClassLoaderClassesVisitor(ClassVisitor* visitor)
   2039       : visitor_(visitor),
   2040         done_(false) {}
   2041 
   2042   void Visit(ObjPtr<mirror::ClassLoader> class_loader)
   2043       REQUIRES_SHARED(Locks::classlinker_classes_lock_, Locks::mutator_lock_) OVERRIDE {
   2044     ClassTable* const class_table = class_loader->GetClassTable();
   2045     if (!done_ && class_table != nullptr) {
   2046       DefiningClassLoaderFilterVisitor visitor(class_loader, visitor_);
   2047       if (!class_table->Visit(visitor)) {
   2048         // If the visitor ClassTable returns false it means that we don't need to continue.
   2049         done_ = true;
   2050       }
   2051     }
   2052   }
   2053 
   2054  private:
   2055   // Class visitor that limits the class visits from a ClassTable to the classes with
   2056   // the provided defining class loader. This filter is used to avoid multiple visits
   2057   // of the same class which can be recorded for multiple initiating class loaders.
   2058   class DefiningClassLoaderFilterVisitor : public ClassVisitor {
   2059    public:
   2060     DefiningClassLoaderFilterVisitor(ObjPtr<mirror::ClassLoader> defining_class_loader,
   2061                                      ClassVisitor* visitor)
   2062         : defining_class_loader_(defining_class_loader), visitor_(visitor) { }
   2063 
   2064     bool operator()(ObjPtr<mirror::Class> klass) OVERRIDE REQUIRES_SHARED(Locks::mutator_lock_) {
   2065       if (klass->GetClassLoader() != defining_class_loader_) {
   2066         return true;
   2067       }
   2068       return (*visitor_)(klass);
   2069     }
   2070 
   2071     ObjPtr<mirror::ClassLoader> const defining_class_loader_;
   2072     ClassVisitor* const visitor_;
   2073   };
   2074 
   2075   ClassVisitor* const visitor_;
   2076   // If done is true then we don't need to do any more visiting.
   2077   bool done_;
   2078 };
   2079 
   2080 void ClassLinker::VisitClassesInternal(ClassVisitor* visitor) {
   2081   if (boot_class_table_.Visit(*visitor)) {
   2082     VisitClassLoaderClassesVisitor loader_visitor(visitor);
   2083     VisitClassLoaders(&loader_visitor);
   2084   }
   2085 }
   2086 
   2087 void ClassLinker::VisitClasses(ClassVisitor* visitor) {
   2088   Thread* const self = Thread::Current();
   2089   ReaderMutexLock mu(self, *Locks::classlinker_classes_lock_);
   2090   // Not safe to have thread suspension when we are holding a lock.
   2091   if (self != nullptr) {
   2092     ScopedAssertNoThreadSuspension nts(__FUNCTION__);
   2093     VisitClassesInternal(visitor);
   2094   } else {
   2095     VisitClassesInternal(visitor);
   2096   }
   2097 }
   2098 
   2099 class GetClassesInToVector : public ClassVisitor {
   2100  public:
   2101   bool operator()(ObjPtr<mirror::Class> klass) OVERRIDE {
   2102     classes_.push_back(klass);
   2103     return true;
   2104   }
   2105   std::vector<ObjPtr<mirror::Class>> classes_;
   2106 };
   2107 
   2108 class GetClassInToObjectArray : public ClassVisitor {
   2109  public:
   2110   explicit GetClassInToObjectArray(mirror::ObjectArray<mirror::Class>* arr)
   2111       : arr_(arr), index_(0) {}
   2112 
   2113   bool operator()(ObjPtr<mirror::Class> klass) OVERRIDE REQUIRES_SHARED(Locks::mutator_lock_) {
   2114     ++index_;
   2115     if (index_ <= arr_->GetLength()) {
   2116       arr_->Set(index_ - 1, klass);
   2117       return true;
   2118     }
   2119     return false;
   2120   }
   2121 
   2122   bool Succeeded() const REQUIRES_SHARED(Locks::mutator_lock_) {
   2123     return index_ <= arr_->GetLength();
   2124   }
   2125 
   2126  private:
   2127   mirror::ObjectArray<mirror::Class>* const arr_;
   2128   int32_t index_;
   2129 };
   2130 
   2131 void ClassLinker::VisitClassesWithoutClassesLock(ClassVisitor* visitor) {
   2132   // TODO: it may be possible to avoid secondary storage if we iterate over dex caches. The problem
   2133   // is avoiding duplicates.
   2134   if (!kMovingClasses) {
   2135     ScopedAssertNoThreadSuspension nts(__FUNCTION__);
   2136     GetClassesInToVector accumulator;
   2137     VisitClasses(&accumulator);
   2138     for (ObjPtr<mirror::Class> klass : accumulator.classes_) {
   2139       if (!visitor->operator()(klass)) {
   2140         return;
   2141       }
   2142     }
   2143   } else {
   2144     Thread* const self = Thread::Current();
   2145     StackHandleScope<1> hs(self);
   2146     auto classes = hs.NewHandle<mirror::ObjectArray<mirror::Class>>(nullptr);
   2147     // We size the array assuming classes won't be added to the class table during the visit.
   2148     // If this assumption fails we iterate again.
   2149     while (true) {
   2150       size_t class_table_size;
   2151       {
   2152         ReaderMutexLock mu(self, *Locks::classlinker_classes_lock_);
   2153         // Add 100 in case new classes get loaded when we are filling in the object array.
   2154         class_table_size = NumZygoteClasses() + NumNonZygoteClasses() + 100;
   2155       }
   2156       ObjPtr<mirror::Class> class_type = mirror::Class::GetJavaLangClass();
   2157       ObjPtr<mirror::Class> array_of_class = FindArrayClass(self, &class_type);
   2158       classes.Assign(
   2159           mirror::ObjectArray<mirror::Class>::Alloc(self, array_of_class, class_table_size));
   2160       CHECK(classes != nullptr);  // OOME.
   2161       GetClassInToObjectArray accumulator(classes.Get());
   2162       VisitClasses(&accumulator);
   2163       if (accumulator.Succeeded()) {
   2164         break;
   2165       }
   2166     }
   2167     for (int32_t i = 0; i < classes->GetLength(); ++i) {
   2168       // If the class table shrank during creation of the clases array we expect null elements. If
   2169       // the class table grew then the loop repeats. If classes are created after the loop has
   2170       // finished then we don't visit.
   2171       ObjPtr<mirror::Class> klass = classes->Get(i);
   2172       if (klass != nullptr && !visitor->operator()(klass)) {
   2173         return;
   2174       }
   2175     }
   2176   }
   2177 }
   2178 
   2179 ClassLinker::~ClassLinker() {
   2180   mirror::Class::ResetClass();
   2181   mirror::Constructor::ResetClass();
   2182   mirror::Field::ResetClass();
   2183   mirror::Method::ResetClass();
   2184   mirror::Reference::ResetClass();
   2185   mirror::StackTraceElement::ResetClass();
   2186   mirror::String::ResetClass();
   2187   mirror::Throwable::ResetClass();
   2188   mirror::BooleanArray::ResetArrayClass();
   2189   mirror::ByteArray::ResetArrayClass();
   2190   mirror::CharArray::ResetArrayClass();
   2191   mirror::Constructor::ResetArrayClass();
   2192   mirror::DoubleArray::ResetArrayClass();
   2193   mirror::Field::ResetArrayClass();
   2194   mirror::FloatArray::ResetArrayClass();
   2195   mirror::Method::ResetArrayClass();
   2196   mirror::IntArray::ResetArrayClass();
   2197   mirror::LongArray::ResetArrayClass();
   2198   mirror::ShortArray::ResetArrayClass();
   2199   mirror::MethodType::ResetClass();
   2200   mirror::MethodHandleImpl::ResetClass();
   2201   mirror::MethodHandlesLookup::ResetClass();
   2202   mirror::CallSite::ResetClass();
   2203   mirror::EmulatedStackFrame::ResetClass();
   2204   Thread* const self = Thread::Current();
   2205   for (const ClassLoaderData& data : class_loaders_) {
   2206     DeleteClassLoader(self, data);
   2207   }
   2208   class_loaders_.clear();
   2209 }
   2210 
   2211 void ClassLinker::DeleteClassLoader(Thread* self, const ClassLoaderData& data) {
   2212   Runtime* const runtime = Runtime::Current();
   2213   JavaVMExt* const vm = runtime->GetJavaVM();
   2214   vm->DeleteWeakGlobalRef(self, data.weak_root);
   2215   // Notify the JIT that we need to remove the methods and/or profiling info.
   2216   if (runtime->GetJit() != nullptr) {
   2217     jit::JitCodeCache* code_cache = runtime->GetJit()->GetCodeCache();
   2218     if (code_cache != nullptr) {
   2219       code_cache->RemoveMethodsIn(self, *data.allocator);
   2220     }
   2221   }
   2222   delete data.allocator;
   2223   delete data.class_table;
   2224 }
   2225 
   2226 mirror::PointerArray* ClassLinker::AllocPointerArray(Thread* self, size_t length) {
   2227   return down_cast<mirror::PointerArray*>(
   2228       image_pointer_size_ == PointerSize::k64
   2229           ? static_cast<mirror::Array*>(mirror::LongArray::Alloc(self, length))
   2230           : static_cast<mirror::Array*>(mirror::IntArray::Alloc(self, length)));
   2231 }
   2232 
   2233 mirror::DexCache* ClassLinker::AllocDexCache(ObjPtr<mirror::String>* out_location,
   2234                                              Thread* self,
   2235                                              const DexFile& dex_file) {
   2236   StackHandleScope<1> hs(self);
   2237   DCHECK(out_location != nullptr);
   2238   auto dex_cache(hs.NewHandle(ObjPtr<mirror::DexCache>::DownCast(
   2239       GetClassRoot(kJavaLangDexCache)->AllocObject(self))));
   2240   if (dex_cache == nullptr) {
   2241     self->AssertPendingOOMException();
   2242     return nullptr;
   2243   }
   2244   ObjPtr<mirror::String> location = intern_table_->InternStrong(dex_file.GetLocation().c_str());
   2245   if (location == nullptr) {
   2246     self->AssertPendingOOMException();
   2247     return nullptr;
   2248   }
   2249   *out_location = location;
   2250   return dex_cache.Get();
   2251 }
   2252 
   2253 mirror::DexCache* ClassLinker::AllocAndInitializeDexCache(Thread* self,
   2254                                                           const DexFile& dex_file,
   2255                                                           LinearAlloc* linear_alloc) {
   2256   ObjPtr<mirror::String> location = nullptr;
   2257   ObjPtr<mirror::DexCache> dex_cache = AllocDexCache(&location, self, dex_file);
   2258   if (dex_cache != nullptr) {
   2259     WriterMutexLock mu(self, *Locks::dex_lock_);
   2260     DCHECK(location != nullptr);
   2261     mirror::DexCache::InitializeDexCache(self,
   2262                                          dex_cache,
   2263                                          location,
   2264                                          &dex_file,
   2265                                          linear_alloc,
   2266                                          image_pointer_size_);
   2267   }
   2268   return dex_cache.Ptr();
   2269 }
   2270 
   2271 mirror::Class* ClassLinker::AllocClass(Thread* self,
   2272                                        ObjPtr<mirror::Class> java_lang_Class,
   2273                                        uint32_t class_size) {
   2274   DCHECK_GE(class_size, sizeof(mirror::Class));
   2275   gc::Heap* heap = Runtime::Current()->GetHeap();
   2276   mirror::Class::InitializeClassVisitor visitor(class_size);
   2277   ObjPtr<mirror::Object> k = kMovingClasses ?
   2278       heap->AllocObject<true>(self, java_lang_Class, class_size, visitor) :
   2279       heap->AllocNonMovableObject<true>(self, java_lang_Class, class_size, visitor);
   2280   if (UNLIKELY(k == nullptr)) {
   2281     self->AssertPendingOOMException();
   2282     return nullptr;
   2283   }
   2284   return k->AsClass();
   2285 }
   2286 
   2287 mirror::Class* ClassLinker::AllocClass(Thread* self, uint32_t class_size) {
   2288   return AllocClass(self, GetClassRoot(kJavaLangClass), class_size);
   2289 }
   2290 
   2291 mirror::ObjectArray<mirror::StackTraceElement>* ClassLinker::AllocStackTraceElementArray(
   2292     Thread* self,
   2293     size_t length) {
   2294   return mirror::ObjectArray<mirror::StackTraceElement>::Alloc(
   2295       self, GetClassRoot(kJavaLangStackTraceElementArrayClass), length);
   2296 }
   2297 
   2298 mirror::Class* ClassLinker::EnsureResolved(Thread* self,
   2299                                            const char* descriptor,
   2300                                            ObjPtr<mirror::Class> klass) {
   2301   DCHECK(klass != nullptr);
   2302   if (kIsDebugBuild) {
   2303     StackHandleScope<1> hs(self);
   2304     HandleWrapperObjPtr<mirror::Class> h = hs.NewHandleWrapper(&klass);
   2305     Thread::PoisonObjectPointersIfDebug();
   2306   }
   2307 
   2308   // For temporary classes we must wait for them to be retired.
   2309   if (init_done_ && klass->IsTemp()) {
   2310     CHECK(!klass->IsResolved());
   2311     if (klass->IsErroneousUnresolved()) {
   2312       ThrowEarlierClassFailure(klass);
   2313       return nullptr;
   2314     }
   2315     StackHandleScope<1> hs(self);
   2316     Handle<mirror::Class> h_class(hs.NewHandle(klass));
   2317     ObjectLock<mirror::Class> lock(self, h_class);
   2318     // Loop and wait for the resolving thread to retire this class.
   2319     while (!h_class->IsRetired() && !h_class->IsErroneousUnresolved()) {
   2320       lock.WaitIgnoringInterrupts();
   2321     }
   2322     if (h_class->IsErroneousUnresolved()) {
   2323       ThrowEarlierClassFailure(h_class.Get());
   2324       return nullptr;
   2325     }
   2326     CHECK(h_class->IsRetired());
   2327     // Get the updated class from class table.
   2328     klass = LookupClass(self, descriptor, h_class.Get()->GetClassLoader());
   2329   }
   2330 
   2331   // Wait for the class if it has not already been linked.
   2332   size_t index = 0;
   2333   // Maximum number of yield iterations until we start sleeping.
   2334   static const size_t kNumYieldIterations = 1000;
   2335   // How long each sleep is in us.
   2336   static const size_t kSleepDurationUS = 1000;  // 1 ms.
   2337   while (!klass->IsResolved() && !klass->IsErroneousUnresolved()) {
   2338     StackHandleScope<1> hs(self);
   2339     HandleWrapperObjPtr<mirror::Class> h_class(hs.NewHandleWrapper(&klass));
   2340     {
   2341       ObjectTryLock<mirror::Class> lock(self, h_class);
   2342       // Can not use a monitor wait here since it may block when returning and deadlock if another
   2343       // thread has locked klass.
   2344       if (lock.Acquired()) {
   2345         // Check for circular dependencies between classes, the lock is required for SetStatus.
   2346         if (!h_class->IsResolved() && h_class->GetClinitThreadId() == self->GetTid()) {
   2347           ThrowClassCircularityError(h_class.Get());
   2348           mirror::Class::SetStatus(h_class, mirror::Class::kStatusErrorUnresolved, self);
   2349           return nullptr;
   2350         }
   2351       }
   2352     }
   2353     {
   2354       // Handle wrapper deals with klass moving.
   2355       ScopedThreadSuspension sts(self, kSuspended);
   2356       if (index < kNumYieldIterations) {
   2357         sched_yield();
   2358       } else {
   2359         usleep(kSleepDurationUS);
   2360       }
   2361     }
   2362     ++index;
   2363   }
   2364 
   2365   if (klass->IsErroneousUnresolved()) {
   2366     ThrowEarlierClassFailure(klass);
   2367     return nullptr;
   2368   }
   2369   // Return the loaded class.  No exceptions should be pending.
   2370   CHECK(klass->IsResolved()) << klass->PrettyClass();
   2371   self->AssertNoPendingException();
   2372   return klass.Ptr();
   2373 }
   2374 
   2375 typedef std::pair<const DexFile*, const DexFile::ClassDef*> ClassPathEntry;
   2376 
   2377 // Search a collection of DexFiles for a descriptor
   2378 ClassPathEntry FindInClassPath(const char* descriptor,
   2379                                size_t hash, const std::vector<const DexFile*>& class_path) {
   2380   for (const DexFile* dex_file : class_path) {
   2381     const DexFile::ClassDef* dex_class_def = OatDexFile::FindClassDef(*dex_file, descriptor, hash);
   2382     if (dex_class_def != nullptr) {
   2383       return ClassPathEntry(dex_file, dex_class_def);
   2384     }
   2385   }
   2386   return ClassPathEntry(nullptr, nullptr);
   2387 }
   2388 
   2389 bool ClassLinker::FindClassInBaseDexClassLoader(ScopedObjectAccessAlreadyRunnable& soa,
   2390                                                 Thread* self,
   2391                                                 const char* descriptor,
   2392                                                 size_t hash,
   2393                                                 Handle<mirror::ClassLoader> class_loader,
   2394                                                 ObjPtr<mirror::Class>* result) {
   2395   // Termination case: boot class-loader.
   2396   if (IsBootClassLoader(soa, class_loader.Get())) {
   2397     // The boot class loader, search the boot class path.
   2398     ClassPathEntry pair = FindInClassPath(descriptor, hash, boot_class_path_);
   2399     if (pair.second != nullptr) {
   2400       ObjPtr<mirror::Class> klass = LookupClass(self, descriptor, hash, nullptr);
   2401       if (klass != nullptr) {
   2402         *result = EnsureResolved(self, descriptor, klass);
   2403       } else {
   2404         *result = DefineClass(self,
   2405                               descriptor,
   2406                               hash,
   2407                               ScopedNullHandle<mirror::ClassLoader>(),
   2408                               *pair.first,
   2409                               *pair.second);
   2410       }
   2411       if (*result == nullptr) {
   2412         CHECK(self->IsExceptionPending()) << descriptor;
   2413         self->ClearException();
   2414       }
   2415     } else {
   2416       *result = nullptr;
   2417     }
   2418     return true;
   2419   }
   2420 
   2421   // Unsupported class-loader?
   2422   if (soa.Decode<mirror::Class>(WellKnownClasses::dalvik_system_PathClassLoader) !=
   2423       class_loader->GetClass()) {
   2424     // PathClassLoader is the most common case, so it's the one we check first. For secondary dex
   2425     // files, we also check DexClassLoader here.
   2426     if (soa.Decode<mirror::Class>(WellKnownClasses::dalvik_system_DexClassLoader) !=
   2427         class_loader->GetClass()) {
   2428       *result = nullptr;
   2429       return false;
   2430     }
   2431   }
   2432 
   2433   // Handles as RegisterDexFile may allocate dex caches (and cause thread suspension).
   2434   StackHandleScope<4> hs(self);
   2435   Handle<mirror::ClassLoader> h_parent(hs.NewHandle(class_loader->GetParent()));
   2436   bool recursive_result = FindClassInBaseDexClassLoader(soa,
   2437                                                         self,
   2438                                                         descriptor,
   2439                                                         hash,
   2440                                                         h_parent,
   2441                                                         result);
   2442 
   2443   if (!recursive_result) {
   2444     // Something wrong up the chain.
   2445     return false;
   2446   }
   2447 
   2448   if (*result != nullptr) {
   2449     // Found the class up the chain.
   2450     return true;
   2451   }
   2452 
   2453   // Handle this step.
   2454   // Handle as if this is the child PathClassLoader.
   2455   // The class loader is a PathClassLoader which inherits from BaseDexClassLoader.
   2456   // We need to get the DexPathList and loop through it.
   2457   ArtField* const cookie_field =
   2458       jni::DecodeArtField(WellKnownClasses::dalvik_system_DexFile_cookie);
   2459   ArtField* const dex_file_field =
   2460       jni::DecodeArtField(WellKnownClasses::dalvik_system_DexPathList__Element_dexFile);
   2461   ObjPtr<mirror::Object> dex_path_list =
   2462       jni::DecodeArtField(WellKnownClasses::dalvik_system_BaseDexClassLoader_pathList)->
   2463           GetObject(class_loader.Get());
   2464   if (dex_path_list != nullptr && dex_file_field != nullptr && cookie_field != nullptr) {
   2465     // DexPathList has an array dexElements of Elements[] which each contain a dex file.
   2466     ObjPtr<mirror::Object> dex_elements_obj =
   2467         jni::DecodeArtField(WellKnownClasses::dalvik_system_DexPathList_dexElements)->
   2468         GetObject(dex_path_list);
   2469     // Loop through each dalvik.system.DexPathList$Element's dalvik.system.DexFile and look
   2470     // at the mCookie which is a DexFile vector.
   2471     if (dex_elements_obj != nullptr) {
   2472       Handle<mirror::ObjectArray<mirror::Object>> dex_elements =
   2473           hs.NewHandle(dex_elements_obj->AsObjectArray<mirror::Object>());
   2474       for (int32_t i = 0; i < dex_elements->GetLength(); ++i) {
   2475         ObjPtr<mirror::Object> element = dex_elements->GetWithoutChecks(i);
   2476         if (element == nullptr) {
   2477           // Should never happen, fall back to java code to throw a NPE.
   2478           break;
   2479         }
   2480         ObjPtr<mirror::Object> dex_file = dex_file_field->GetObject(element);
   2481         if (dex_file != nullptr) {
   2482           ObjPtr<mirror::LongArray> long_array = cookie_field->GetObject(dex_file)->AsLongArray();
   2483           if (long_array == nullptr) {
   2484             // This should never happen so log a warning.
   2485             LOG(WARNING) << "Null DexFile::mCookie for " << descriptor;
   2486             break;
   2487           }
   2488           int32_t long_array_size = long_array->GetLength();
   2489           // First element is the oat file.
   2490           for (int32_t j = kDexFileIndexStart; j < long_array_size; ++j) {
   2491             const DexFile* cp_dex_file = reinterpret_cast<const DexFile*>(static_cast<uintptr_t>(
   2492                 long_array->GetWithoutChecks(j)));
   2493             const DexFile::ClassDef* dex_class_def =
   2494                 OatDexFile::FindClassDef(*cp_dex_file, descriptor, hash);
   2495             if (dex_class_def != nullptr) {
   2496               ObjPtr<mirror::Class> klass = DefineClass(self,
   2497                                                  descriptor,
   2498                                                  hash,
   2499                                                  class_loader,
   2500                                                  *cp_dex_file,
   2501                                                  *dex_class_def);
   2502               if (klass == nullptr) {
   2503                 CHECK(self->IsExceptionPending()) << descriptor;
   2504                 self->ClearException();
   2505                 // TODO: Is it really right to break here, and not check the other dex files?
   2506                 return true;
   2507               }
   2508               *result = klass;
   2509               return true;
   2510             }
   2511           }
   2512         }
   2513       }
   2514     }
   2515     self->AssertNoPendingException();
   2516   }
   2517 
   2518   // Result is still null from the parent call, no need to set it again...
   2519   return true;
   2520 }
   2521 
   2522 mirror::Class* ClassLinker::FindClass(Thread* self,
   2523                                       const char* descriptor,
   2524                                       Handle<mirror::ClassLoader> class_loader) {
   2525   DCHECK_NE(*descriptor, '\0') << "descriptor is empty string";
   2526   DCHECK(self != nullptr);
   2527   self->AssertNoPendingException();
   2528   self->PoisonObjectPointers();  // For DefineClass, CreateArrayClass, etc...
   2529   if (descriptor[1] == '\0') {
   2530     // only the descriptors of primitive types should be 1 character long, also avoid class lookup
   2531     // for primitive classes that aren't backed by dex files.
   2532     return FindPrimitiveClass(descriptor[0]);
   2533   }
   2534   const size_t hash = ComputeModifiedUtf8Hash(descriptor);
   2535   // Find the class in the loaded classes table.
   2536   ObjPtr<mirror::Class> klass = LookupClass(self, descriptor, hash, class_loader.Get());
   2537   if (klass != nullptr) {
   2538     return EnsureResolved(self, descriptor, klass);
   2539   }
   2540   // Class is not yet loaded.
   2541   if (descriptor[0] != '[' && class_loader == nullptr) {
   2542     // Non-array class and the boot class loader, search the boot class path.
   2543     ClassPathEntry pair = FindInClassPath(descriptor, hash, boot_class_path_);
   2544     if (pair.second != nullptr) {
   2545       return DefineClass(self,
   2546                          descriptor,
   2547                          hash,
   2548                          ScopedNullHandle<mirror::ClassLoader>(),
   2549                          *pair.first,
   2550                          *pair.second);
   2551     } else {
   2552       // The boot class loader is searched ahead of the application class loader, failures are
   2553       // expected and will be wrapped in a ClassNotFoundException. Use the pre-allocated error to
   2554       // trigger the chaining with a proper stack trace.
   2555       ObjPtr<mirror::Throwable> pre_allocated =
   2556           Runtime::Current()->GetPreAllocatedNoClassDefFoundError();
   2557       self->SetException(pre_allocated);
   2558       return nullptr;
   2559     }
   2560   }
   2561   ObjPtr<mirror::Class> result_ptr;
   2562   bool descriptor_equals;
   2563   if (descriptor[0] == '[') {
   2564     result_ptr = CreateArrayClass(self, descriptor, hash, class_loader);
   2565     DCHECK_EQ(result_ptr == nullptr, self->IsExceptionPending());
   2566     DCHECK(result_ptr == nullptr || result_ptr->DescriptorEquals(descriptor));
   2567     descriptor_equals = true;
   2568   } else {
   2569     ScopedObjectAccessUnchecked soa(self);
   2570     bool known_hierarchy =
   2571         FindClassInBaseDexClassLoader(soa, self, descriptor, hash, class_loader, &result_ptr);
   2572     if (result_ptr != nullptr) {
   2573       // The chain was understood and we found the class. We still need to add the class to
   2574       // the class table to protect from racy programs that can try and redefine the path list
   2575       // which would change the Class<?> returned for subsequent evaluation of const-class.
   2576       DCHECK(known_hierarchy);
   2577       DCHECK(result_ptr->DescriptorEquals(descriptor));
   2578       descriptor_equals = true;
   2579     } else {
   2580       // Either the chain wasn't understood or the class wasn't found.
   2581       //
   2582       // If the chain was understood but we did not find the class, let the Java-side
   2583       // rediscover all this and throw the exception with the right stack trace. Note that
   2584       // the Java-side could still succeed for racy programs if another thread is actively
   2585       // modifying the class loader's path list.
   2586 
   2587       if (!self->CanCallIntoJava()) {
   2588         // Oops, we can't call into java so we can't run actual class-loader code.
   2589         // This is true for e.g. for the compiler (jit or aot).
   2590         ObjPtr<mirror::Throwable> pre_allocated =
   2591             Runtime::Current()->GetPreAllocatedNoClassDefFoundError();
   2592         self->SetException(pre_allocated);
   2593         return nullptr;
   2594       }
   2595 
   2596       // Inlined DescriptorToDot(descriptor) with extra validation.
   2597       //
   2598       // Throw NoClassDefFoundError early rather than potentially load a class only to fail
   2599       // the DescriptorEquals() check below and give a confusing error message. For example,
   2600       // when native code erroneously calls JNI GetFieldId() with signature "java/lang/String"
   2601       // instead of "Ljava/lang/String;", the message below using the "dot" names would be
   2602       // "class loader [...] returned class java.lang.String instead of java.lang.String".
   2603       size_t descriptor_length = strlen(descriptor);
   2604       if (UNLIKELY(descriptor[0] != 'L') ||
   2605           UNLIKELY(descriptor[descriptor_length - 1] != ';') ||
   2606           UNLIKELY(memchr(descriptor + 1, '.', descriptor_length - 2) != nullptr)) {
   2607         ThrowNoClassDefFoundError("Invalid descriptor: %s.", descriptor);
   2608         return nullptr;
   2609       }
   2610       std::string class_name_string(descriptor + 1, descriptor_length - 2);
   2611       std::replace(class_name_string.begin(), class_name_string.end(), '/', '.');
   2612 
   2613       ScopedLocalRef<jobject> class_loader_object(
   2614           soa.Env(), soa.AddLocalReference<jobject>(class_loader.Get()));
   2615       ScopedLocalRef<jobject> result(soa.Env(), nullptr);
   2616       {
   2617         ScopedThreadStateChange tsc(self, kNative);
   2618         ScopedLocalRef<jobject> class_name_object(
   2619             soa.Env(), soa.Env()->NewStringUTF(class_name_string.c_str()));
   2620         if (class_name_object.get() == nullptr) {
   2621           DCHECK(self->IsExceptionPending());  // OOME.
   2622           return nullptr;
   2623         }
   2624         CHECK(class_loader_object.get() != nullptr);
   2625         result.reset(soa.Env()->CallObjectMethod(class_loader_object.get(),
   2626                                                  WellKnownClasses::java_lang_ClassLoader_loadClass,
   2627                                                  class_name_object.get()));
   2628       }
   2629       if (result.get() == nullptr && !self->IsExceptionPending()) {
   2630         // broken loader - throw NPE to be compatible with Dalvik
   2631         ThrowNullPointerException(StringPrintf("ClassLoader.loadClass returned null for %s",
   2632                                                class_name_string.c_str()).c_str());
   2633         return nullptr;
   2634       }
   2635       result_ptr = soa.Decode<mirror::Class>(result.get());
   2636       // Check the name of the returned class.
   2637       descriptor_equals = (result_ptr != nullptr) && result_ptr->DescriptorEquals(descriptor);
   2638     }
   2639   }
   2640 
   2641   if (self->IsExceptionPending()) {
   2642     // If the ClassLoader threw or array class allocation failed, pass that exception up.
   2643     // However, to comply with the RI behavior, first check if another thread succeeded.
   2644     result_ptr = LookupClass(self, descriptor, hash, class_loader.Get());
   2645     if (result_ptr != nullptr && !result_ptr->IsErroneous()) {
   2646       self->ClearException();
   2647       return EnsureResolved(self, descriptor, result_ptr);
   2648     }
   2649     return nullptr;
   2650   }
   2651 
   2652   // Try to insert the class to the class table, checking for mismatch.
   2653   ObjPtr<mirror::Class> old;
   2654   {
   2655     WriterMutexLock mu(self, *Locks::classlinker_classes_lock_);
   2656     ClassTable* const class_table = InsertClassTableForClassLoader(class_loader.Get());
   2657     old = class_table->Lookup(descriptor, hash);
   2658     if (old == nullptr) {
   2659       old = result_ptr;  // For the comparison below, after releasing the lock.
   2660       if (descriptor_equals) {
   2661         class_table->InsertWithHash(result_ptr.Ptr(), hash);
   2662         Runtime::Current()->GetHeap()->WriteBarrierEveryFieldOf(class_loader.Get());
   2663       }  // else throw below, after releasing the lock.
   2664     }
   2665   }
   2666   if (UNLIKELY(old != result_ptr)) {
   2667     // Return `old` (even if `!descriptor_equals`) to mimic the RI behavior for parallel
   2668     // capable class loaders.  (All class loaders are considered parallel capable on Android.)
   2669     mirror::Class* loader_class = class_loader->GetClass();
   2670     const char* loader_class_name =
   2671         loader_class->GetDexFile().StringByTypeIdx(loader_class->GetDexTypeIndex());
   2672     LOG(WARNING) << "Initiating class loader of type " << DescriptorToDot(loader_class_name)
   2673         << " is not well-behaved; it returned a different Class for racing loadClass(\""
   2674         << DescriptorToDot(descriptor) << "\").";
   2675     return EnsureResolved(self, descriptor, old);
   2676   }
   2677   if (UNLIKELY(!descriptor_equals)) {
   2678     std::string result_storage;
   2679     const char* result_name = result_ptr->GetDescriptor(&result_storage);
   2680     std::string loader_storage;
   2681     const char* loader_class_name = class_loader->GetClass()->GetDescriptor(&loader_storage);
   2682     ThrowNoClassDefFoundError(
   2683         "Initiating class loader of type %s returned class %s instead of %s.",
   2684         DescriptorToDot(loader_class_name).c_str(),
   2685         DescriptorToDot(result_name).c_str(),
   2686         DescriptorToDot(descriptor).c_str());
   2687     return nullptr;
   2688   }
   2689   // success, return mirror::Class*
   2690   return result_ptr.Ptr();
   2691 }
   2692 
   2693 mirror::Class* ClassLinker::DefineClass(Thread* self,
   2694                                         const char* descriptor,
   2695                                         size_t hash,
   2696                                         Handle<mirror::ClassLoader> class_loader,
   2697                                         const DexFile& dex_file,
   2698                                         const DexFile::ClassDef& dex_class_def) {
   2699   StackHandleScope<3> hs(self);
   2700   auto klass = hs.NewHandle<mirror::Class>(nullptr);
   2701 
   2702   // Load the class from the dex file.
   2703   if (UNLIKELY(!init_done_)) {
   2704     // finish up init of hand crafted class_roots_
   2705     if (strcmp(descriptor, "Ljava/lang/Object;") == 0) {
   2706       klass.Assign(GetClassRoot(kJavaLangObject));
   2707     } else if (strcmp(descriptor, "Ljava/lang/Class;") == 0) {
   2708       klass.Assign(GetClassRoot(kJavaLangClass));
   2709     } else if (strcmp(descriptor, "Ljava/lang/String;") == 0) {
   2710       klass.Assign(GetClassRoot(kJavaLangString));
   2711     } else if (strcmp(descriptor, "Ljava/lang/ref/Reference;") == 0) {
   2712       klass.Assign(GetClassRoot(kJavaLangRefReference));
   2713     } else if (strcmp(descriptor, "Ljava/lang/DexCache;") == 0) {
   2714       klass.Assign(GetClassRoot(kJavaLangDexCache));
   2715     } else if (strcmp(descriptor, "Ldalvik/system/ClassExt;") == 0) {
   2716       klass.Assign(GetClassRoot(kDalvikSystemClassExt));
   2717     }
   2718   }
   2719 
   2720   if (klass == nullptr) {
   2721     // Allocate a class with the status of not ready.
   2722     // Interface object should get the right size here. Regular class will
   2723     // figure out the right size later and be replaced with one of the right
   2724     // size when the class becomes resolved.
   2725     klass.Assign(AllocClass(self, SizeOfClassWithoutEmbeddedTables(dex_file, dex_class_def)));
   2726   }
   2727   if (UNLIKELY(klass == nullptr)) {
   2728     self->AssertPendingOOMException();
   2729     return nullptr;
   2730   }
   2731   // Get the real dex file. This will return the input if there aren't any callbacks or they do
   2732   // nothing.
   2733   DexFile const* new_dex_file = nullptr;
   2734   DexFile::ClassDef const* new_class_def = nullptr;
   2735   // TODO We should ideally figure out some way to move this after we get a lock on the klass so it
   2736   // will only be called once.
   2737   Runtime::Current()->GetRuntimeCallbacks()->ClassPreDefine(descriptor,
   2738                                                             klass,
   2739                                                             class_loader,
   2740                                                             dex_file,
   2741                                                             dex_class_def,
   2742                                                             &new_dex_file,
   2743                                                             &new_class_def);
   2744   // Check to see if an exception happened during runtime callbacks. Return if so.
   2745   if (self->IsExceptionPending()) {
   2746     return nullptr;
   2747   }
   2748   ObjPtr<mirror::DexCache> dex_cache = RegisterDexFile(*new_dex_file, class_loader.Get());
   2749   if (dex_cache == nullptr) {
   2750     self->AssertPendingException();
   2751     return nullptr;
   2752   }
   2753   klass->SetDexCache(dex_cache);
   2754   SetupClass(*new_dex_file, *new_class_def, klass, class_loader.Get());
   2755 
   2756   // Mark the string class by setting its access flag.
   2757   if (UNLIKELY(!init_done_)) {
   2758     if (strcmp(descriptor, "Ljava/lang/String;") == 0) {
   2759       klass->SetStringClass();
   2760     }
   2761   }
   2762 
   2763   ObjectLock<mirror::Class> lock(self, klass);
   2764   klass->SetClinitThreadId(self->GetTid());
   2765   // Make sure we have a valid empty iftable even if there are errors.
   2766   klass->SetIfTable(GetClassRoot(kJavaLangObject)->GetIfTable());
   2767 
   2768   // Add the newly loaded class to the loaded classes table.
   2769   ObjPtr<mirror::Class> existing = InsertClass(descriptor, klass.Get(), hash);
   2770   if (existing != nullptr) {
   2771     // We failed to insert because we raced with another thread. Calling EnsureResolved may cause
   2772     // this thread to block.
   2773     return EnsureResolved(self, descriptor, existing);
   2774   }
   2775 
   2776   // Load the fields and other things after we are inserted in the table. This is so that we don't
   2777   // end up allocating unfree-able linear alloc resources and then lose the race condition. The
   2778   // other reason is that the field roots are only visited from the class table. So we need to be
   2779   // inserted before we allocate / fill in these fields.
   2780   LoadClass(self, *new_dex_file, *new_class_def, klass);
   2781   if (self->IsExceptionPending()) {
   2782     VLOG(class_linker) << self->GetException()->Dump();
   2783     // An exception occured during load, set status to erroneous while holding klass' lock in case
   2784     // notification is necessary.
   2785     if (!klass->IsErroneous()) {
   2786       mirror::Class::SetStatus(klass, mirror::Class::kStatusErrorUnresolved, self);
   2787     }
   2788     return nullptr;
   2789   }
   2790 
   2791   // Finish loading (if necessary) by finding parents
   2792   CHECK(!klass->IsLoaded());
   2793   if (!LoadSuperAndInterfaces(klass, *new_dex_file)) {
   2794     // Loading failed.
   2795     if (!klass->IsErroneous()) {
   2796       mirror::Class::SetStatus(klass, mirror::Class::kStatusErrorUnresolved, self);
   2797     }
   2798     return nullptr;
   2799   }
   2800   CHECK(klass->IsLoaded());
   2801 
   2802   // At this point the class is loaded. Publish a ClassLoad event.
   2803   // Note: this may be a temporary class. It is a listener's responsibility to handle this.
   2804   Runtime::Current()->GetRuntimeCallbacks()->ClassLoad(klass);
   2805 
   2806   // Link the class (if necessary)
   2807   CHECK(!klass->IsResolved());
   2808   // TODO: Use fast jobjects?
   2809   auto interfaces = hs.NewHandle<mirror::ObjectArray<mirror::Class>>(nullptr);
   2810 
   2811   MutableHandle<mirror::Class> h_new_class = hs.NewHandle<mirror::Class>(nullptr);
   2812   if (!LinkClass(self, descriptor, klass, interfaces, &h_new_class)) {
   2813     // Linking failed.
   2814     if (!klass->IsErroneous()) {
   2815       mirror::Class::SetStatus(klass, mirror::Class::kStatusErrorUnresolved, self);
   2816     }
   2817     return nullptr;
   2818   }
   2819   self->AssertNoPendingException();
   2820   CHECK(h_new_class != nullptr) << descriptor;
   2821   CHECK(h_new_class->IsResolved() && !h_new_class->IsErroneousResolved()) << descriptor;
   2822 
   2823   // Instrumentation may have updated entrypoints for all methods of all
   2824   // classes. However it could not update methods of this class while we
   2825   // were loading it. Now the class is resolved, we can update entrypoints
   2826   // as required by instrumentation.
   2827   if (Runtime::Current()->GetInstrumentation()->AreExitStubsInstalled()) {
   2828     // We must be in the kRunnable state to prevent instrumentation from
   2829     // suspending all threads to update entrypoints while we are doing it
   2830     // for this class.
   2831     DCHECK_EQ(self->GetState(), kRunnable);
   2832     Runtime::Current()->GetInstrumentation()->InstallStubsForClass(h_new_class.Get());
   2833   }
   2834 
   2835   /*
   2836    * We send CLASS_PREPARE events to the debugger from here.  The
   2837    * definition of "preparation" is creating the static fields for a
   2838    * class and initializing them to the standard default values, but not
   2839    * executing any code (that comes later, during "initialization").
   2840    *
   2841    * We did the static preparation in LinkClass.
   2842    *
   2843    * The class has been prepared and resolved but possibly not yet verified
   2844    * at this point.
   2845    */
   2846   Runtime::Current()->GetRuntimeCallbacks()->ClassPrepare(klass, h_new_class);
   2847 
   2848   // Notify native debugger of the new class and its layout.
   2849   jit::Jit::NewTypeLoadedIfUsingJit(h_new_class.Get());
   2850 
   2851   return h_new_class.Get();
   2852 }
   2853 
   2854 uint32_t ClassLinker::SizeOfClassWithoutEmbeddedTables(const DexFile& dex_file,
   2855                                                        const DexFile::ClassDef& dex_class_def) {
   2856   const uint8_t* class_data = dex_file.GetClassData(dex_class_def);
   2857   size_t num_ref = 0;
   2858   size_t num_8 = 0;
   2859   size_t num_16 = 0;
   2860   size_t num_32 = 0;
   2861   size_t num_64 = 0;
   2862   if (class_data != nullptr) {
   2863     // We allow duplicate definitions of the same field in a class_data_item
   2864     // but ignore the repeated indexes here, b/21868015.
   2865     uint32_t last_field_idx = DexFile::kDexNoIndex;
   2866     for (ClassDataItemIterator it(dex_file, class_data); it.HasNextStaticField(); it.Next()) {
   2867       uint32_t field_idx = it.GetMemberIndex();
   2868       // Ordering enforced by DexFileVerifier.
   2869       DCHECK(last_field_idx == DexFile::kDexNoIndex || last_field_idx <= field_idx);
   2870       if (UNLIKELY(field_idx == last_field_idx)) {
   2871         continue;
   2872       }
   2873       last_field_idx = field_idx;
   2874       const DexFile::FieldId& field_id = dex_file.GetFieldId(field_idx);
   2875       const char* descriptor = dex_file.GetFieldTypeDescriptor(field_id);
   2876       char c = descriptor[0];
   2877       switch (c) {
   2878         case 'L':
   2879         case '[':
   2880           num_ref++;
   2881           break;
   2882         case 'J':
   2883         case 'D':
   2884           num_64++;
   2885           break;
   2886         case 'I':
   2887         case 'F':
   2888           num_32++;
   2889           break;
   2890         case 'S':
   2891         case 'C':
   2892           num_16++;
   2893           break;
   2894         case 'B':
   2895         case 'Z':
   2896           num_8++;
   2897           break;
   2898         default:
   2899           LOG(FATAL) << "Unknown descriptor: " << c;
   2900           UNREACHABLE();
   2901       }
   2902     }
   2903   }
   2904   return mirror::Class::ComputeClassSize(false,
   2905                                          0,
   2906                                          num_8,
   2907                                          num_16,
   2908                                          num_32,
   2909                                          num_64,
   2910                                          num_ref,
   2911                                          image_pointer_size_);
   2912 }
   2913 
   2914 // Special case to get oat code without overwriting a trampoline.
   2915 const void* ClassLinker::GetQuickOatCodeFor(ArtMethod* method) {
   2916   CHECK(method->IsInvokable()) << method->PrettyMethod();
   2917   if (method->IsProxyMethod()) {
   2918     return GetQuickProxyInvokeHandler();
   2919   }
   2920   auto* code = method->GetOatMethodQuickCode(GetImagePointerSize());
   2921   if (code != nullptr) {
   2922     return code;
   2923   }
   2924   if (method->IsNative()) {
   2925     // No code and native? Use generic trampoline.
   2926     return GetQuickGenericJniStub();
   2927   }
   2928   return GetQuickToInterpreterBridge();
   2929 }
   2930 
   2931 bool ClassLinker::ShouldUseInterpreterEntrypoint(ArtMethod* method, const void* quick_code) {
   2932   if (UNLIKELY(method->IsNative() || method->IsProxyMethod())) {
   2933     return false;
   2934   }
   2935 
   2936   if (quick_code == nullptr) {
   2937     return true;
   2938   }
   2939 
   2940   Runtime* runtime = Runtime::Current();
   2941   instrumentation::Instrumentation* instr = runtime->GetInstrumentation();
   2942   if (instr->InterpretOnly()) {
   2943     return true;
   2944   }
   2945 
   2946   if (runtime->GetClassLinker()->IsQuickToInterpreterBridge(quick_code)) {
   2947     // Doing this check avoids doing compiled/interpreter transitions.
   2948     return true;
   2949   }
   2950 
   2951   if (Dbg::IsForcedInterpreterNeededForCalling(Thread::Current(), method)) {
   2952     // Force the use of interpreter when it is required by the debugger.
   2953     return true;
   2954   }
   2955 
   2956   if (runtime->IsJavaDebuggable()) {
   2957     // For simplicity, we ignore precompiled code and go to the interpreter
   2958     // assuming we don't already have jitted code.
   2959     // We could look at the oat file where `quick_code` is being defined,
   2960     // and check whether it's been compiled debuggable, but we decided to
   2961     // only rely on the JIT for debuggable apps.
   2962     jit::Jit* jit = Runtime::Current()->GetJit();
   2963     return (jit == nullptr) || !jit->GetCodeCache()->ContainsPc(quick_code);
   2964   }
   2965 
   2966   if (runtime->IsNativeDebuggable()) {
   2967     DCHECK(runtime->UseJitCompilation() && runtime->GetJit()->JitAtFirstUse());
   2968     // If we are doing native debugging, ignore application's AOT code,
   2969     // since we want to JIT it (at first use) with extra stackmaps for native
   2970     // debugging. We keep however all AOT code from the boot image,
   2971     // since the JIT-at-first-use is blocking and would result in non-negligible
   2972     // startup performance impact.
   2973     return !runtime->GetHeap()->IsInBootImageOatFile(quick_code);
   2974   }
   2975 
   2976   return false;
   2977 }
   2978 
   2979 void ClassLinker::FixupStaticTrampolines(ObjPtr<mirror::Class> klass) {
   2980   DCHECK(klass->IsInitialized()) << klass->PrettyDescriptor();
   2981   if (klass->NumDirectMethods() == 0) {
   2982     return;  // No direct methods => no static methods.
   2983   }
   2984   Runtime* runtime = Runtime::Current();
   2985   if (!runtime->IsStarted()) {
   2986     if (runtime->IsAotCompiler() || runtime->GetHeap()->HasBootImageSpace()) {
   2987       return;  // OAT file unavailable.
   2988     }
   2989   }
   2990 
   2991   const DexFile& dex_file = klass->GetDexFile();
   2992   const DexFile::ClassDef* dex_class_def = klass->GetClassDef();
   2993   CHECK(dex_class_def != nullptr);
   2994   const uint8_t* class_data = dex_file.GetClassData(*dex_class_def);
   2995   // There should always be class data if there were direct methods.
   2996   CHECK(class_data != nullptr) << klass->PrettyDescriptor();
   2997   ClassDataItemIterator it(dex_file, class_data);
   2998   // Skip fields
   2999   while (it.HasNextStaticField()) {
   3000     it.Next();
   3001   }
   3002   while (it.HasNextInstanceField()) {
   3003     it.Next();
   3004   }
   3005   bool has_oat_class;
   3006   OatFile::OatClass oat_class = OatFile::FindOatClass(dex_file,
   3007                                                       klass->GetDexClassDefIndex(),
   3008                                                       &has_oat_class);
   3009   // Link the code of methods skipped by LinkCode.
   3010   for (size_t method_index = 0; it.HasNextDirectMethod(); ++method_index, it.Next()) {
   3011     ArtMethod* method = klass->GetDirectMethod(method_index, image_pointer_size_);
   3012     if (!method->IsStatic()) {
   3013       // Only update static methods.
   3014       continue;
   3015     }
   3016     const void* quick_code = nullptr;
   3017     if (has_oat_class) {
   3018       OatFile::OatMethod oat_method = oat_class.GetOatMethod(method_index);
   3019       quick_code = oat_method.GetQuickCode();
   3020     }
   3021     // Check whether the method is native, in which case it's generic JNI.
   3022     if (quick_code == nullptr && method->IsNative()) {
   3023       quick_code = GetQuickGenericJniStub();
   3024     } else if (ShouldUseInterpreterEntrypoint(method, quick_code)) {
   3025       // Use interpreter entry point.
   3026       quick_code = GetQuickToInterpreterBridge();
   3027     }
   3028     runtime->GetInstrumentation()->UpdateMethodsCode(method, quick_code);
   3029   }
   3030   // Ignore virtual methods on the iterator.
   3031 }
   3032 
   3033 // Does anything needed to make sure that the compiler will not generate a direct invoke to this
   3034 // method. Should only be called on non-invokable methods.
   3035 inline void EnsureThrowsInvocationError(ClassLinker* class_linker, ArtMethod* method) {
   3036   DCHECK(method != nullptr);
   3037   DCHECK(!method->IsInvokable());
   3038   method->SetEntryPointFromQuickCompiledCodePtrSize(
   3039       class_linker->GetQuickToInterpreterBridgeTrampoline(),
   3040       class_linker->GetImagePointerSize());
   3041 }
   3042 
   3043 static void LinkCode(ClassLinker* class_linker,
   3044                      ArtMethod* method,
   3045                      const OatFile::OatClass* oat_class,
   3046                      uint32_t class_def_method_index) REQUIRES_SHARED(Locks::mutator_lock_) {
   3047   Runtime* const runtime = Runtime::Current();
   3048   if (runtime->IsAotCompiler()) {
   3049     // The following code only applies to a non-compiler runtime.
   3050     return;
   3051   }
   3052   // Method shouldn't have already been linked.
   3053   DCHECK(method->GetEntryPointFromQuickCompiledCode() == nullptr);
   3054   if (oat_class != nullptr) {
   3055     // Every kind of method should at least get an invoke stub from the oat_method.
   3056     // non-abstract methods also get their code pointers.
   3057     const OatFile::OatMethod oat_method = oat_class->GetOatMethod(class_def_method_index);
   3058     oat_method.LinkMethod(method);
   3059   }
   3060 
   3061   // Install entry point from interpreter.
   3062   const void* quick_code = method->GetEntryPointFromQuickCompiledCode();
   3063   bool enter_interpreter = class_linker->ShouldUseInterpreterEntrypoint(method, quick_code);
   3064 
   3065   if (!method->IsInvokable()) {
   3066     EnsureThrowsInvocationError(class_linker, method);
   3067     return;
   3068   }
   3069 
   3070   if (method->IsStatic() && !method->IsConstructor()) {
   3071     // For static methods excluding the class initializer, install the trampoline.
   3072     // It will be replaced by the proper entry point by ClassLinker::FixupStaticTrampolines
   3073     // after initializing class (see ClassLinker::InitializeClass method).
   3074     method->SetEntryPointFromQuickCompiledCode(GetQuickResolutionStub());
   3075   } else if (quick_code == nullptr && method->IsNative()) {
   3076     method->SetEntryPointFromQuickCompiledCode(GetQuickGenericJniStub());
   3077   } else if (enter_interpreter) {
   3078     // Set entry point from compiled code if there's no code or in interpreter only mode.
   3079     method->SetEntryPointFromQuickCompiledCode(GetQuickToInterpreterBridge());
   3080   }
   3081 
   3082   if (method->IsNative()) {
   3083     // Unregistering restores the dlsym lookup stub.
   3084     method->UnregisterNative();
   3085 
   3086     if (enter_interpreter || quick_code == nullptr) {
   3087       // We have a native method here without code. Then it should have either the generic JNI
   3088       // trampoline as entrypoint (non-static), or the resolution trampoline (static).
   3089       // TODO: this doesn't handle all the cases where trampolines may be installed.
   3090       const void* entry_point = method->GetEntryPointFromQuickCompiledCode();
   3091       DCHECK(class_linker->IsQuickGenericJniStub(entry_point) ||
   3092              class_linker->IsQuickResolutionStub(entry_point));
   3093     }
   3094   }
   3095 }
   3096 
   3097 void ClassLinker::SetupClass(const DexFile& dex_file,
   3098                              const DexFile::ClassDef& dex_class_def,
   3099                              Handle<mirror::Class> klass,
   3100                              ObjPtr<mirror::ClassLoader> class_loader) {
   3101   CHECK(klass != nullptr);
   3102   CHECK(klass->GetDexCache() != nullptr);
   3103   CHECK_EQ(mirror::Class::kStatusNotReady, klass->GetStatus());
   3104   const char* descriptor = dex_file.GetClassDescriptor(dex_class_def);
   3105   CHECK(descriptor != nullptr);
   3106 
   3107   klass->SetClass(GetClassRoot(kJavaLangClass));
   3108   uint32_t access_flags = dex_class_def.GetJavaAccessFlags();
   3109   CHECK_EQ(access_flags & ~kAccJavaFlagsMask, 0U);
   3110   klass->SetAccessFlags(access_flags);
   3111   klass->SetClassLoader(class_loader);
   3112   DCHECK_EQ(klass->GetPrimitiveType(), Primitive::kPrimNot);
   3113   mirror::Class::SetStatus(klass, mirror::Class::kStatusIdx, nullptr);
   3114 
   3115   klass->SetDexClassDefIndex(dex_file.GetIndexForClassDef(dex_class_def));
   3116   klass->SetDexTypeIndex(dex_class_def.class_idx_);
   3117 }
   3118 
   3119 void ClassLinker::LoadClass(Thread* self,
   3120                             const DexFile& dex_file,
   3121                             const DexFile::ClassDef& dex_class_def,
   3122                             Handle<mirror::Class> klass) {
   3123   const uint8_t* class_data = dex_file.GetClassData(dex_class_def);
   3124   if (class_data == nullptr) {
   3125     return;  // no fields or methods - for example a marker interface
   3126   }
   3127   LoadClassMembers(self, dex_file, class_data, klass);
   3128 }
   3129 
   3130 LengthPrefixedArray<ArtField>* ClassLinker::AllocArtFieldArray(Thread* self,
   3131                                                                LinearAlloc* allocator,
   3132                                                                size_t length) {
   3133   if (length == 0) {
   3134     return nullptr;
   3135   }
   3136   // If the ArtField alignment changes, review all uses of LengthPrefixedArray<ArtField>.
   3137   static_assert(alignof(ArtField) == 4, "ArtField alignment is expected to be 4.");
   3138   size_t storage_size = LengthPrefixedArray<ArtField>::ComputeSize(length);
   3139   void* array_storage = allocator->Alloc(self, storage_size);
   3140   auto* ret = new(array_storage) LengthPrefixedArray<ArtField>(length);
   3141   CHECK(ret != nullptr);
   3142   std::uninitialized_fill_n(&ret->At(0), length, ArtField());
   3143   return ret;
   3144 }
   3145 
   3146 LengthPrefixedArray<ArtMethod>* ClassLinker::AllocArtMethodArray(Thread* self,
   3147                                                                  LinearAlloc* allocator,
   3148                                                                  size_t length) {
   3149   if (length == 0) {
   3150     return nullptr;
   3151   }
   3152   const size_t method_alignment = ArtMethod::Alignment(image_pointer_size_);
   3153   const size_t method_size = ArtMethod::Size(image_pointer_size_);
   3154   const size_t storage_size =
   3155       LengthPrefixedArray<ArtMethod>::ComputeSize(length, method_size, method_alignment);
   3156   void* array_storage = allocator->Alloc(self, storage_size);
   3157   auto* ret = new (array_storage) LengthPrefixedArray<ArtMethod>(length);
   3158   CHECK(ret != nullptr);
   3159   for (size_t i = 0; i < length; ++i) {
   3160     new(reinterpret_cast<void*>(&ret->At(i, method_size, method_alignment))) ArtMethod;
   3161   }
   3162   return ret;
   3163 }
   3164 
   3165 LinearAlloc* ClassLinker::GetAllocatorForClassLoader(ObjPtr<mirror::ClassLoader> class_loader) {
   3166   if (class_loader == nullptr) {
   3167     return Runtime::Current()->GetLinearAlloc();
   3168   }
   3169   LinearAlloc* allocator = class_loader->GetAllocator();
   3170   DCHECK(allocator != nullptr);
   3171   return allocator;
   3172 }
   3173 
   3174 LinearAlloc* ClassLinker::GetOrCreateAllocatorForClassLoader(ObjPtr<mirror::ClassLoader> class_loader) {
   3175   if (class_loader == nullptr) {
   3176     return Runtime::Current()->GetLinearAlloc();
   3177   }
   3178   WriterMutexLock mu(Thread::Current(), *Locks::classlinker_classes_lock_);
   3179   LinearAlloc* allocator = class_loader->GetAllocator();
   3180   if (allocator == nullptr) {
   3181     RegisterClassLoader(class_loader);
   3182     allocator = class_loader->GetAllocator();
   3183     CHECK(allocator != nullptr);
   3184   }
   3185   return allocator;
   3186 }
   3187 
   3188 void ClassLinker::LoadClassMembers(Thread* self,
   3189                                    const DexFile& dex_file,
   3190                                    const uint8_t* class_data,
   3191                                    Handle<mirror::Class> klass) {
   3192   {
   3193     // Note: We cannot have thread suspension until the field and method arrays are setup or else
   3194     // Class::VisitFieldRoots may miss some fields or methods.
   3195     ScopedAssertNoThreadSuspension nts(__FUNCTION__);
   3196     // Load static fields.
   3197     // We allow duplicate definitions of the same field in a class_data_item
   3198     // but ignore the repeated indexes here, b/21868015.
   3199     LinearAlloc* const allocator = GetAllocatorForClassLoader(klass->GetClassLoader());
   3200     ClassDataItemIterator it(dex_file, class_data);
   3201     LengthPrefixedArray<ArtField>* sfields = AllocArtFieldArray(self,
   3202                                                                 allocator,
   3203                                                                 it.NumStaticFields());
   3204     size_t num_sfields = 0;
   3205     uint32_t last_field_idx = 0u;
   3206     for (; it.HasNextStaticField(); it.Next()) {
   3207       uint32_t field_idx = it.GetMemberIndex();
   3208       DCHECK_GE(field_idx, last_field_idx);  // Ordering enforced by DexFileVerifier.
   3209       if (num_sfields == 0 || LIKELY(field_idx > last_field_idx)) {
   3210         DCHECK_LT(num_sfields, it.NumStaticFields());
   3211         LoadField(it, klass, &sfields->At(num_sfields));
   3212         ++num_sfields;
   3213         last_field_idx = field_idx;
   3214       }
   3215     }
   3216 
   3217     // Load instance fields.
   3218     LengthPrefixedArray<ArtField>* ifields = AllocArtFieldArray(self,
   3219                                                                 allocator,
   3220                                                                 it.NumInstanceFields());
   3221     size_t num_ifields = 0u;
   3222     last_field_idx = 0u;
   3223     for (; it.HasNextInstanceField(); it.Next()) {
   3224       uint32_t field_idx = it.GetMemberIndex();
   3225       DCHECK_GE(field_idx, last_field_idx);  // Ordering enforced by DexFileVerifier.
   3226       if (num_ifields == 0 || LIKELY(field_idx > last_field_idx)) {
   3227         DCHECK_LT(num_ifields, it.NumInstanceFields());
   3228         LoadField(it, klass, &ifields->At(num_ifields));
   3229         ++num_ifields;
   3230         last_field_idx = field_idx;
   3231       }
   3232     }
   3233 
   3234     if (UNLIKELY(num_sfields != it.NumStaticFields()) ||
   3235         UNLIKELY(num_ifields != it.NumInstanceFields())) {
   3236       LOG(WARNING) << "Duplicate fields in class " << klass->PrettyDescriptor()
   3237           << " (unique static fields: " << num_sfields << "/" << it.NumStaticFields()
   3238           << ", unique instance fields: " << num_ifields << "/" << it.NumInstanceFields() << ")";
   3239       // NOTE: Not shrinking the over-allocated sfields/ifields, just setting size.
   3240       if (sfields != nullptr) {
   3241         sfields->SetSize(num_sfields);
   3242       }
   3243       if (ifields != nullptr) {
   3244         ifields->SetSize(num_ifields);
   3245       }
   3246     }
   3247     // Set the field arrays.
   3248     klass->SetSFieldsPtr(sfields);
   3249     DCHECK_EQ(klass->NumStaticFields(), num_sfields);
   3250     klass->SetIFieldsPtr(ifields);
   3251     DCHECK_EQ(klass->NumInstanceFields(), num_ifields);
   3252     // Load methods.
   3253     bool has_oat_class = false;
   3254     const OatFile::OatClass oat_class =
   3255         (Runtime::Current()->IsStarted() && !Runtime::Current()->IsAotCompiler())
   3256             ? OatFile::FindOatClass(dex_file, klass->GetDexClassDefIndex(), &has_oat_class)
   3257             : OatFile::OatClass::Invalid();
   3258     const OatFile::OatClass* oat_class_ptr = has_oat_class ? &oat_class : nullptr;
   3259     klass->SetMethodsPtr(
   3260         AllocArtMethodArray(self, allocator, it.NumDirectMethods() + it.NumVirtualMethods()),
   3261         it.NumDirectMethods(),
   3262         it.NumVirtualMethods());
   3263     size_t class_def_method_index = 0;
   3264     uint32_t last_dex_method_index = DexFile::kDexNoIndex;
   3265     size_t last_class_def_method_index = 0;
   3266     // TODO These should really use the iterators.
   3267     for (size_t i = 0; it.HasNextDirectMethod(); i++, it.Next()) {
   3268       ArtMethod* method = klass->GetDirectMethodUnchecked(i, image_pointer_size_);
   3269       LoadMethod(dex_file, it, klass, method);
   3270       LinkCode(this, method, oat_class_ptr, class_def_method_index);
   3271       uint32_t it_method_index = it.GetMemberIndex();
   3272       if (last_dex_method_index == it_method_index) {
   3273         // duplicate case
   3274         method->SetMethodIndex(last_class_def_method_index);
   3275       } else {
   3276         method->SetMethodIndex(class_def_method_index);
   3277         last_dex_method_index = it_method_index;
   3278         last_class_def_method_index = class_def_method_index;
   3279       }
   3280       class_def_method_index++;
   3281     }
   3282     for (size_t i = 0; it.HasNextVirtualMethod(); i++, it.Next()) {
   3283       ArtMethod* method = klass->GetVirtualMethodUnchecked(i, image_pointer_size_);
   3284       LoadMethod(dex_file, it, klass, method);
   3285       DCHECK_EQ(class_def_method_index, it.NumDirectMethods() + i);
   3286       LinkCode(this, method, oat_class_ptr, class_def_method_index);
   3287       class_def_method_index++;
   3288     }
   3289     DCHECK(!it.HasNext());
   3290   }
   3291   // Ensure that the card is marked so that remembered sets pick up native roots.
   3292   Runtime::Current()->GetHeap()->WriteBarrierEveryFieldOf(klass.Get());
   3293   self->AllowThreadSuspension();
   3294 }
   3295 
   3296 void ClassLinker::LoadField(const ClassDataItemIterator& it,
   3297                             Handle<mirror::Class> klass,
   3298                             ArtField* dst) {
   3299   const uint32_t field_idx = it.GetMemberIndex();
   3300   dst->SetDexFieldIndex(field_idx);
   3301   dst->SetDeclaringClass(klass.Get());
   3302   dst->SetAccessFlags(it.GetFieldAccessFlags());
   3303 }
   3304 
   3305 void ClassLinker::LoadMethod(const DexFile& dex_file,
   3306                              const ClassDataItemIterator& it,
   3307                              Handle<mirror::Class> klass,
   3308                              ArtMethod* dst) {
   3309   uint32_t dex_method_idx = it.GetMemberIndex();
   3310   const DexFile::MethodId& method_id = dex_file.GetMethodId(dex_method_idx);
   3311   const char* method_name = dex_file.StringDataByIdx(method_id.name_idx_);
   3312 
   3313   ScopedAssertNoThreadSuspension ants("LoadMethod");
   3314   dst->SetDexMethodIndex(dex_method_idx);
   3315   dst->SetDeclaringClass(klass.Get());
   3316   dst->SetCodeItemOffset(it.GetMethodCodeItemOffset());
   3317 
   3318   dst->SetDexCacheResolvedMethods(klass->GetDexCache()->GetResolvedMethods(), image_pointer_size_);
   3319 
   3320   uint32_t access_flags = it.GetMethodAccessFlags();
   3321 
   3322   if (UNLIKELY(strcmp("finalize", method_name) == 0)) {
   3323     // Set finalizable flag on declaring class.
   3324     if (strcmp("V", dex_file.GetShorty(method_id.proto_idx_)) == 0) {
   3325       // Void return type.
   3326       if (klass->GetClassLoader() != nullptr) {  // All non-boot finalizer methods are flagged.
   3327         klass->SetFinalizable();
   3328       } else {
   3329         std::string temp;
   3330         const char* klass_descriptor = klass->GetDescriptor(&temp);
   3331         // The Enum class declares a "final" finalize() method to prevent subclasses from
   3332         // introducing a finalizer. We don't want to set the finalizable flag for Enum or its
   3333         // subclasses, so we exclude it here.
   3334         // We also want to avoid setting the flag on Object, where we know that finalize() is
   3335         // empty.
   3336         if (strcmp(klass_descriptor, "Ljava/lang/Object;") != 0 &&
   3337             strcmp(klass_descriptor, "Ljava/lang/Enum;") != 0) {
   3338           klass->SetFinalizable();
   3339         }
   3340       }
   3341     }
   3342   } else if (method_name[0] == '<') {
   3343     // Fix broken access flags for initializers. Bug 11157540.
   3344     bool is_init = (strcmp("<init>", method_name) == 0);
   3345     bool is_clinit = !is_init && (strcmp("<clinit>", method_name) == 0);
   3346     if (UNLIKELY(!is_init && !is_clinit)) {
   3347       LOG(WARNING) << "Unexpected '<' at start of method name " << method_name;
   3348     } else {
   3349       if (UNLIKELY((access_flags & kAccConstructor) == 0)) {
   3350         LOG(WARNING) << method_name << " didn't have expected constructor access flag in class "
   3351             << klass->PrettyDescriptor() << " in dex file " << dex_file.GetLocation();
   3352         access_flags |= kAccConstructor;
   3353       }
   3354     }
   3355   }
   3356   dst->SetAccessFlags(access_flags);
   3357 }
   3358 
   3359 void ClassLinker::AppendToBootClassPath(Thread* self, const DexFile& dex_file) {
   3360   ObjPtr<mirror::DexCache> dex_cache = AllocAndInitializeDexCache(
   3361       self,
   3362       dex_file,
   3363       Runtime::Current()->GetLinearAlloc());
   3364   CHECK(dex_cache != nullptr) << "Failed to allocate dex cache for " << dex_file.GetLocation();
   3365   AppendToBootClassPath(dex_file, dex_cache);
   3366 }
   3367 
   3368 void ClassLinker::AppendToBootClassPath(const DexFile& dex_file,
   3369                                         ObjPtr<mirror::DexCache> dex_cache) {
   3370   CHECK(dex_cache != nullptr) << dex_file.GetLocation();
   3371   boot_class_path_.push_back(&dex_file);
   3372   RegisterBootClassPathDexFile(dex_file, dex_cache);
   3373 }
   3374 
   3375 void ClassLinker::RegisterDexFileLocked(const DexFile& dex_file,
   3376                                         ObjPtr<mirror::DexCache> dex_cache,
   3377                                         ObjPtr<mirror::ClassLoader> class_loader) {
   3378   Thread* const self = Thread::Current();
   3379   Locks::dex_lock_->AssertExclusiveHeld(self);
   3380   CHECK(dex_cache != nullptr) << dex_file.GetLocation();
   3381   // For app images, the dex cache location may be a suffix of the dex file location since the
   3382   // dex file location is an absolute path.
   3383   const std::string dex_cache_location = dex_cache->GetLocation()->ToModifiedUtf8();
   3384   const size_t dex_cache_length = dex_cache_location.length();
   3385   CHECK_GT(dex_cache_length, 0u) << dex_file.GetLocation();
   3386   std::string dex_file_location = dex_file.GetLocation();
   3387   CHECK_GE(dex_file_location.length(), dex_cache_length)
   3388       << dex_cache_location << " " << dex_file.GetLocation();
   3389   // Take suffix.
   3390   const std::string dex_file_suffix = dex_file_location.substr(
   3391       dex_file_location.length() - dex_cache_length,
   3392       dex_cache_length);
   3393   // Example dex_cache location is SettingsProvider.apk and
   3394   // dex file location is /system/priv-app/SettingsProvider/SettingsProvider.apk
   3395   CHECK_EQ(dex_cache_location, dex_file_suffix);
   3396   // Clean up pass to remove null dex caches.
   3397   // Null dex caches can occur due to class unloading and we are lazily removing null entries.
   3398   JavaVMExt* const vm = self->GetJniEnv()->vm;
   3399   for (auto it = dex_caches_.begin(); it != dex_caches_.end(); ) {
   3400     DexCacheData data = *it;
   3401     if (self->IsJWeakCleared(data.weak_root)) {
   3402       vm->DeleteWeakGlobalRef(self, data.weak_root);
   3403       it = dex_caches_.erase(it);
   3404     } else {
   3405       ++it;
   3406     }
   3407   }
   3408   jweak dex_cache_jweak = vm->AddWeakGlobalRef(self, dex_cache);
   3409   dex_cache->SetDexFile(&dex_file);
   3410   DexCacheData data;
   3411   data.weak_root = dex_cache_jweak;
   3412   data.dex_file = dex_cache->GetDexFile();
   3413   data.resolved_methods = dex_cache->GetResolvedMethods();
   3414   data.class_table = ClassTableForClassLoader(class_loader);
   3415   DCHECK(data.class_table != nullptr);
   3416   dex_caches_.push_back(data);
   3417 }
   3418 
   3419 ObjPtr<mirror::DexCache> ClassLinker::DecodeDexCache(Thread* self, const DexCacheData& data) {
   3420   return data.IsValid()
   3421       ? ObjPtr<mirror::DexCache>::DownCast(self->DecodeJObject(data.weak_root))
   3422       : nullptr;
   3423 }
   3424 
   3425 ObjPtr<mirror::DexCache> ClassLinker::EnsureSameClassLoader(
   3426     Thread* self,
   3427     ObjPtr<mirror::DexCache> dex_cache,
   3428     const DexCacheData& data,
   3429     ObjPtr<mirror::ClassLoader> class_loader) {
   3430   DCHECK_EQ(dex_cache->GetDexFile(), data.dex_file);
   3431   if (data.class_table != ClassTableForClassLoader(class_loader)) {
   3432     self->ThrowNewExceptionF("Ljava/lang/InternalError;",
   3433                              "Attempt to register dex file %s with multiple class loaders",
   3434                              data.dex_file->GetLocation().c_str());
   3435     return nullptr;
   3436   }
   3437   return dex_cache;
   3438 }
   3439 
   3440 ObjPtr<mirror::DexCache> ClassLinker::RegisterDexFile(const DexFile& dex_file,
   3441                                                       ObjPtr<mirror::ClassLoader> class_loader) {
   3442   Thread* self = Thread::Current();
   3443   DexCacheData old_data;
   3444   {
   3445     ReaderMutexLock mu(self, *Locks::dex_lock_);
   3446     old_data = FindDexCacheDataLocked(dex_file);
   3447   }
   3448   ObjPtr<mirror::DexCache> old_dex_cache = DecodeDexCache(self, old_data);
   3449   if (old_dex_cache != nullptr) {
   3450     return EnsureSameClassLoader(self, old_dex_cache, old_data, class_loader);
   3451   }
   3452   LinearAlloc* const linear_alloc = GetOrCreateAllocatorForClassLoader(class_loader);
   3453   DCHECK(linear_alloc != nullptr);
   3454   ClassTable* table;
   3455   {
   3456     WriterMutexLock mu(self, *Locks::classlinker_classes_lock_);
   3457     table = InsertClassTableForClassLoader(class_loader);
   3458   }
   3459   // Don't alloc while holding the lock, since allocation may need to
   3460   // suspend all threads and another thread may need the dex_lock_ to
   3461   // get to a suspend point.
   3462   StackHandleScope<3> hs(self);
   3463   Handle<mirror::ClassLoader> h_class_loader(hs.NewHandle(class_loader));
   3464   ObjPtr<mirror::String> location;
   3465   Handle<mirror::DexCache> h_dex_cache(hs.NewHandle(AllocDexCache(/*out*/&location,
   3466                                                                   self,
   3467                                                                   dex_file)));
   3468   Handle<mirror::String> h_location(hs.NewHandle(location));
   3469   {
   3470     WriterMutexLock mu(self, *Locks::dex_lock_);
   3471     old_data = FindDexCacheDataLocked(dex_file);
   3472     old_dex_cache = DecodeDexCache(self, old_data);
   3473     if (old_dex_cache == nullptr && h_dex_cache != nullptr) {
   3474       // Do InitializeDexCache while holding dex lock to make sure two threads don't call it at the
   3475       // same time with the same dex cache. Since the .bss is shared this can cause failing DCHECK
   3476       // that the arrays are null.
   3477       mirror::DexCache::InitializeDexCache(self,
   3478                                            h_dex_cache.Get(),
   3479                                            h_location.Get(),
   3480                                            &dex_file,
   3481                                            linear_alloc,
   3482                                            image_pointer_size_);
   3483       RegisterDexFileLocked(dex_file, h_dex_cache.Get(), h_class_loader.Get());
   3484     }
   3485   }
   3486   if (old_dex_cache != nullptr) {
   3487     // Another thread managed to initialize the dex cache faster, so use that DexCache.
   3488     // If this thread encountered OOME, ignore it.
   3489     DCHECK_EQ(h_dex_cache == nullptr, self->IsExceptionPending());
   3490     self->ClearException();
   3491     // We cannot call EnsureSameClassLoader() while holding the dex_lock_.
   3492     return EnsureSameClassLoader(self, old_dex_cache, old_data, h_class_loader.Get());
   3493   }
   3494   if (h_dex_cache == nullptr) {
   3495     self->AssertPendingOOMException();
   3496     return nullptr;
   3497   }
   3498   table->InsertStrongRoot(h_dex_cache.Get());
   3499   if (h_class_loader.Get() != nullptr) {
   3500     // Since we added a strong root to the class table, do the write barrier as required for
   3501     // remembered sets and generational GCs.
   3502     Runtime::Current()->GetHeap()->WriteBarrierEveryFieldOf(h_class_loader.Get());
   3503   }
   3504   return h_dex_cache.Get();
   3505 }
   3506 
   3507 void ClassLinker::RegisterBootClassPathDexFile(const DexFile& dex_file,
   3508                                                ObjPtr<mirror::DexCache> dex_cache) {
   3509   WriterMutexLock mu(Thread::Current(), *Locks::dex_lock_);
   3510   RegisterDexFileLocked(dex_file, dex_cache, /* class_loader */ nullptr);
   3511 }
   3512 
   3513 bool ClassLinker::IsDexFileRegistered(Thread* self, const DexFile& dex_file) {
   3514   ReaderMutexLock mu(self, *Locks::dex_lock_);
   3515   return DecodeDexCache(self, FindDexCacheDataLocked(dex_file)) != nullptr;
   3516 }
   3517 
   3518 ObjPtr<mirror::DexCache> ClassLinker::FindDexCache(Thread* self, const DexFile& dex_file) {
   3519   ReaderMutexLock mu(self, *Locks::dex_lock_);
   3520   ObjPtr<mirror::DexCache> dex_cache = DecodeDexCache(self, FindDexCacheDataLocked(dex_file));
   3521   if (dex_cache != nullptr) {
   3522     return dex_cache;
   3523   }
   3524   // Failure, dump diagnostic and abort.
   3525   for (const DexCacheData& data : dex_caches_) {
   3526     if (DecodeDexCache(self, data) != nullptr) {
   3527       LOG(FATAL_WITHOUT_ABORT) << "Registered dex file " << data.dex_file->GetLocation();
   3528     }
   3529   }
   3530   LOG(FATAL) << "Failed to find DexCache for DexFile " << dex_file.GetLocation();
   3531   UNREACHABLE();
   3532 }
   3533 
   3534 ClassTable* ClassLinker::FindClassTable(Thread* self, ObjPtr<mirror::DexCache> dex_cache) {
   3535   const DexFile* dex_file = dex_cache->GetDexFile();
   3536   DCHECK(dex_file != nullptr);
   3537   ReaderMutexLock mu(self, *Locks::dex_lock_);
   3538   // Search assuming unique-ness of dex file.
   3539   for (const DexCacheData& data : dex_caches_) {
   3540     // Avoid decoding (and read barriers) other unrelated dex caches.
   3541     if (data.dex_file == dex_file) {
   3542       ObjPtr<mirror::DexCache> registered_dex_cache = DecodeDexCache(self, data);
   3543       if (registered_dex_cache != nullptr) {
   3544         CHECK_EQ(registered_dex_cache, dex_cache) << dex_file->GetLocation();
   3545         return data.class_table;
   3546       }
   3547     }
   3548   }
   3549   return nullptr;
   3550 }
   3551 
   3552 ClassLinker::DexCacheData ClassLinker::FindDexCacheDataLocked(const DexFile& dex_file) {
   3553   // Search assuming unique-ness of dex file.
   3554   for (const DexCacheData& data : dex_caches_) {
   3555     // Avoid decoding (and read barriers) other unrelated dex caches.
   3556     if (data.dex_file == &dex_file) {
   3557       return data;
   3558     }
   3559   }
   3560   return DexCacheData();
   3561 }
   3562 
   3563 void ClassLinker::FixupDexCaches(ArtMethod* resolution_method) {
   3564   Thread* const self = Thread::Current();
   3565   ReaderMutexLock mu(self, *Locks::dex_lock_);
   3566   for (const DexCacheData& data : dex_caches_) {
   3567     if (!self->IsJWeakCleared(data.weak_root)) {
   3568       ObjPtr<mirror::DexCache> dex_cache = ObjPtr<mirror::DexCache>::DownCast(
   3569           self->DecodeJObject(data.weak_root));
   3570       if (dex_cache != nullptr) {
   3571         dex_cache->Fixup(resolution_method, image_pointer_size_);
   3572       }
   3573     }
   3574   }
   3575 }
   3576 
   3577 mirror::Class* ClassLinker::CreatePrimitiveClass(Thread* self, Primitive::Type type) {
   3578   ObjPtr<mirror::Class> klass =
   3579       AllocClass(self, mirror::Class::PrimitiveClassSize(image_pointer_size_));
   3580   if (UNLIKELY(klass == nullptr)) {
   3581     self->AssertPendingOOMException();
   3582     return nullptr;
   3583   }
   3584   return InitializePrimitiveClass(klass, type);
   3585 }
   3586 
   3587 mirror::Class* ClassLinker::InitializePrimitiveClass(ObjPtr<mirror::Class> primitive_class,
   3588                                                      Primitive::Type type) {
   3589   CHECK(primitive_class != nullptr);
   3590   // Must hold lock on object when initializing.
   3591   Thread* self = Thread::Current();
   3592   StackHandleScope<1> hs(self);
   3593   Handle<mirror::Class> h_class(hs.NewHandle(primitive_class));
   3594   ObjectLock<mirror::Class> lock(self, h_class);
   3595   h_class->SetAccessFlags(kAccPublic | kAccFinal | kAccAbstract);
   3596   h_class->SetPrimitiveType(type);
   3597   h_class->SetIfTable(GetClassRoot(kJavaLangObject)->GetIfTable());
   3598   mirror::Class::SetStatus(h_class, mirror::Class::kStatusInitialized, self);
   3599   const char* descriptor = Primitive::Descriptor(type);
   3600   ObjPtr<mirror::Class> existing = InsertClass(descriptor,
   3601                                                h_class.Get(),
   3602                                                ComputeModifiedUtf8Hash(descriptor));
   3603   CHECK(existing == nullptr) << "InitPrimitiveClass(" << type << ") failed";
   3604   return h_class.Get();
   3605 }
   3606 
   3607 // Create an array class (i.e. the class object for the array, not the
   3608 // array itself).  "descriptor" looks like "[C" or "[[[[B" or
   3609 // "[Ljava/lang/String;".
   3610 //
   3611 // If "descriptor" refers to an array of primitives, look up the
   3612 // primitive type's internally-generated class object.
   3613 //
   3614 // "class_loader" is the class loader of the class that's referring to
   3615 // us.  It's used to ensure that we're looking for the element type in
   3616 // the right context.  It does NOT become the class loader for the
   3617 // array class; that always comes from the base element class.
   3618 //
   3619 // Returns null with an exception raised on failure.
   3620 mirror::Class* ClassLinker::CreateArrayClass(Thread* self, const char* descriptor, size_t hash,
   3621                                              Handle<mirror::ClassLoader> class_loader) {
   3622   // Identify the underlying component type
   3623   CHECK_EQ('[', descriptor[0]);
   3624   StackHandleScope<2> hs(self);
   3625   MutableHandle<mirror::Class> component_type(hs.NewHandle(FindClass(self, descriptor + 1,
   3626                                                                      class_loader)));
   3627   if (component_type == nullptr) {
   3628     DCHECK(self->IsExceptionPending());
   3629     // We need to accept erroneous classes as component types.
   3630     const size_t component_hash = ComputeModifiedUtf8Hash(descriptor + 1);
   3631     component_type.Assign(LookupClass(self, descriptor + 1, component_hash, class_loader.Get()));
   3632     if (component_type == nullptr) {
   3633       DCHECK(self->IsExceptionPending());
   3634       return nullptr;
   3635     } else {
   3636       self->ClearException();
   3637     }
   3638   }
   3639   if (UNLIKELY(component_type->IsPrimitiveVoid())) {
   3640     ThrowNoClassDefFoundError("Attempt to create array of void primitive type");
   3641     return nullptr;
   3642   }
   3643   // See if the component type is already loaded.  Array classes are
   3644   // always associated with the class loader of their underlying
   3645   // element type -- an array of Strings goes with the loader for
   3646   // java/lang/String -- so we need to look for it there.  (The
   3647   // caller should have checked for the existence of the class
   3648   // before calling here, but they did so with *their* class loader,
   3649   // not the component type's loader.)
   3650   //
   3651   // If we find it, the caller adds "loader" to the class' initiating
   3652   // loader list, which should prevent us from going through this again.
   3653   //
   3654   // This call is unnecessary if "loader" and "component_type->GetClassLoader()"
   3655   // are the same, because our caller (FindClass) just did the
   3656   // lookup.  (Even if we get this wrong we still have correct behavior,
   3657   // because we effectively do this lookup again when we add the new
   3658   // class to the hash table --- necessary because of possible races with
   3659   // other threads.)
   3660   if (class_loader.Get() != component_type->GetClassLoader()) {
   3661     ObjPtr<mirror::Class> new_class =
   3662         LookupClass(self, descriptor, hash, component_type->GetClassLoader());
   3663     if (new_class != nullptr) {
   3664       return new_class.Ptr();
   3665     }
   3666   }
   3667 
   3668   // Fill out the fields in the Class.
   3669   //
   3670   // It is possible to execute some methods against arrays, because
   3671   // all arrays are subclasses of java_lang_Object_, so we need to set
   3672   // up a vtable.  We can just point at the one in java_lang_Object_.
   3673   //
   3674   // Array classes are simple enough that we don't need to do a full
   3675   // link step.
   3676   auto new_class = hs.NewHandle<mirror::Class>(nullptr);
   3677   if (UNLIKELY(!init_done_)) {
   3678     // Classes that were hand created, ie not by FindSystemClass
   3679     if (strcmp(descriptor, "[Ljava/lang/Class;") == 0) {
   3680       new_class.Assign(GetClassRoot(kClassArrayClass));
   3681     } else if (strcmp(descriptor, "[Ljava/lang/Object;") == 0) {
   3682       new_class.Assign(GetClassRoot(kObjectArrayClass));
   3683     } else if (strcmp(descriptor, GetClassRootDescriptor(kJavaLangStringArrayClass)) == 0) {
   3684       new_class.Assign(GetClassRoot(kJavaLangStringArrayClass));
   3685     } else if (strcmp(descriptor, "[C") == 0) {
   3686       new_class.Assign(GetClassRoot(kCharArrayClass));
   3687     } else if (strcmp(descriptor, "[I") == 0) {
   3688       new_class.Assign(GetClassRoot(kIntArrayClass));
   3689     } else if (strcmp(descriptor, "[J") == 0) {
   3690       new_class.Assign(GetClassRoot(kLongArrayClass));
   3691     }
   3692   }
   3693   if (new_class == nullptr) {
   3694     new_class.Assign(AllocClass(self, mirror::Array::ClassSize(image_pointer_size_)));
   3695     if (new_class == nullptr) {
   3696       self->AssertPendingOOMException();
   3697       return nullptr;
   3698     }
   3699     new_class->SetComponentType(component_type.Get());
   3700   }
   3701   ObjectLock<mirror::Class> lock(self, new_class);  // Must hold lock on object when initializing.
   3702   DCHECK(new_class->GetComponentType() != nullptr);
   3703   ObjPtr<mirror::Class> java_lang_Object = GetClassRoot(kJavaLangObject);
   3704   new_class->SetSuperClass(java_lang_Object);
   3705   new_class->SetVTable(java_lang_Object->GetVTable());
   3706   new_class->SetPrimitiveType(Primitive::kPrimNot);
   3707   new_class->SetClassLoader(component_type->GetClassLoader());
   3708   if (component_type->IsPrimitive()) {
   3709     new_class->SetClassFlags(mirror::kClassFlagNoReferenceFields);
   3710   } else {
   3711     new_class->SetClassFlags(mirror::kClassFlagObjectArray);
   3712   }
   3713   mirror::Class::SetStatus(new_class, mirror::Class::kStatusLoaded, self);
   3714   new_class->PopulateEmbeddedVTable(image_pointer_size_);
   3715   ImTable* object_imt = java_lang_Object->GetImt(image_pointer_size_);
   3716   new_class->SetImt(object_imt, image_pointer_size_);
   3717   mirror::Class::SetStatus(new_class, mirror::Class::kStatusInitialized, self);
   3718   // don't need to set new_class->SetObjectSize(..)
   3719   // because Object::SizeOf delegates to Array::SizeOf
   3720 
   3721   // All arrays have java/lang/Cloneable and java/io/Serializable as
   3722   // interfaces.  We need to set that up here, so that stuff like
   3723   // "instanceof" works right.
   3724   //
   3725   // Note: The GC could run during the call to FindSystemClass,
   3726   // so we need to make sure the class object is GC-valid while we're in
   3727   // there.  Do this by clearing the interface list so the GC will just
   3728   // think that the entries are null.
   3729 
   3730 
   3731   // Use the single, global copies of "interfaces" and "iftable"
   3732   // (remember not to free them for arrays).
   3733   {
   3734     ObjPtr<mirror::IfTable> array_iftable = array_iftable_.Read();
   3735     CHECK(array_iftable != nullptr);
   3736     new_class->SetIfTable(array_iftable);
   3737   }
   3738 
   3739   // Inherit access flags from the component type.
   3740   int access_flags = new_class->GetComponentType()->GetAccessFlags();
   3741   // Lose any implementation detail flags; in particular, arrays aren't finalizable.
   3742   access_flags &= kAccJavaFlagsMask;
   3743   // Arrays can't be used as a superclass or interface, so we want to add "abstract final"
   3744   // and remove "interface".
   3745   access_flags |= kAccAbstract | kAccFinal;
   3746   access_flags &= ~kAccInterface;
   3747 
   3748   new_class->SetAccessFlags(access_flags);
   3749 
   3750   ObjPtr<mirror::Class> existing = InsertClass(descriptor, new_class.Get(), hash);
   3751   if (existing == nullptr) {
   3752     // We postpone ClassLoad and ClassPrepare events to this point in time to avoid
   3753     // duplicate events in case of races. Array classes don't really follow dedicated
   3754     // load and prepare, anyways.
   3755     Runtime::Current()->GetRuntimeCallbacks()->ClassLoad(new_class);
   3756     Runtime::Current()->GetRuntimeCallbacks()->ClassPrepare(new_class, new_class);
   3757 
   3758     jit::Jit::NewTypeLoadedIfUsingJit(new_class.Get());
   3759     return new_class.Get();
   3760   }
   3761   // Another thread must have loaded the class after we
   3762   // started but before we finished.  Abandon what we've
   3763   // done.
   3764   //
   3765   // (Yes, this happens.)
   3766 
   3767   return existing.Ptr();
   3768 }
   3769 
   3770 mirror::Class* ClassLinker::FindPrimitiveClass(char type) {
   3771   switch (type) {
   3772     case 'B':
   3773       return GetClassRoot(kPrimitiveByte);
   3774     case 'C':
   3775       return GetClassRoot(kPrimitiveChar);
   3776     case 'D':
   3777       return GetClassRoot(kPrimitiveDouble);
   3778     case 'F':
   3779       return GetClassRoot(kPrimitiveFloat);
   3780     case 'I':
   3781       return GetClassRoot(kPrimitiveInt);
   3782     case 'J':
   3783       return GetClassRoot(kPrimitiveLong);
   3784     case 'S':
   3785       return GetClassRoot(kPrimitiveShort);
   3786     case 'Z':
   3787       return GetClassRoot(kPrimitiveBoolean);
   3788     case 'V':
   3789       return GetClassRoot(kPrimitiveVoid);
   3790     default:
   3791       break;
   3792   }
   3793   std::string printable_type(PrintableChar(type));
   3794   ThrowNoClassDefFoundError("Not a primitive type: %s", printable_type.c_str());
   3795   return nullptr;
   3796 }
   3797 
   3798 mirror::Class* ClassLinker::InsertClass(const char* descriptor, ObjPtr<mirror::Class> klass, size_t hash) {
   3799   if (VLOG_IS_ON(class_linker)) {
   3800     ObjPtr<mirror::DexCache> dex_cache = klass->GetDexCache();
   3801     std::string source;
   3802     if (dex_cache != nullptr) {
   3803       source += " from ";
   3804       source += dex_cache->GetLocation()->ToModifiedUtf8();
   3805     }
   3806     LOG(INFO) << "Loaded class " << descriptor << source;
   3807   }
   3808   {
   3809     WriterMutexLock mu(Thread::Current(), *Locks::classlinker_classes_lock_);
   3810     ObjPtr<mirror::ClassLoader> const class_loader = klass->GetClassLoader();
   3811     ClassTable* const class_table = InsertClassTableForClassLoader(class_loader);
   3812     ObjPtr<mirror::Class> existing = class_table->Lookup(descriptor, hash);
   3813     if (existing != nullptr) {
   3814       return existing.Ptr();
   3815     }
   3816     VerifyObject(klass);
   3817     class_table->InsertWithHash(klass, hash);
   3818     if (class_loader != nullptr) {
   3819       // This is necessary because we need to have the card dirtied for remembered sets.
   3820       Runtime::Current()->GetHeap()->WriteBarrierEveryFieldOf(class_loader);
   3821     }
   3822     if (log_new_roots_) {
   3823       new_class_roots_.push_back(GcRoot<mirror::Class>(klass));
   3824     }
   3825   }
   3826   if (kIsDebugBuild) {
   3827     // Test that copied methods correctly can find their holder.
   3828     for (ArtMethod& method : klass->GetCopiedMethods(image_pointer_size_)) {
   3829       CHECK_EQ(GetHoldingClassOfCopiedMethod(&method), klass);
   3830     }
   3831   }
   3832   return nullptr;
   3833 }
   3834 
   3835 void ClassLinker::WriteBarrierForBootOatFileBssRoots(const OatFile* oat_file) {
   3836   WriterMutexLock mu(Thread::Current(), *Locks::classlinker_classes_lock_);
   3837   DCHECK(!oat_file->GetBssGcRoots().empty()) << oat_file->GetLocation();
   3838   if (log_new_roots_ && !ContainsElement(new_bss_roots_boot_oat_files_, oat_file)) {
   3839     new_bss_roots_boot_oat_files_.push_back(oat_file);
   3840   }
   3841 }
   3842 
   3843 // TODO This should really be in mirror::Class.
   3844 void ClassLinker::UpdateClassMethods(ObjPtr<mirror::Class> klass,
   3845                                      LengthPrefixedArray<ArtMethod>* new_methods) {
   3846   klass->SetMethodsPtrUnchecked(new_methods,
   3847                                 klass->NumDirectMethods(),
   3848                                 klass->NumDeclaredVirtualMethods());
   3849   // Need to mark the card so that the remembered sets and mod union tables get updated.
   3850   Runtime::Current()->GetHeap()->WriteBarrierEveryFieldOf(klass);
   3851 }
   3852 
   3853 mirror::Class* ClassLinker::LookupClass(Thread* self,
   3854                                         const char* descriptor,
   3855                                         size_t hash,
   3856                                         ObjPtr<mirror::ClassLoader> class_loader) {
   3857   ReaderMutexLock mu(self, *Locks::classlinker_classes_lock_);
   3858   ClassTable* const class_table = ClassTableForClassLoader(class_loader);
   3859   if (class_table != nullptr) {
   3860     ObjPtr<mirror::Class> result = class_table->Lookup(descriptor, hash);
   3861     if (result != nullptr) {
   3862       return result.Ptr();
   3863     }
   3864   }
   3865   return nullptr;
   3866 }
   3867 
   3868 class MoveClassTableToPreZygoteVisitor : public ClassLoaderVisitor {
   3869  public:
   3870   explicit MoveClassTableToPreZygoteVisitor() {}
   3871 
   3872   void Visit(ObjPtr<mirror::ClassLoader> class_loader)
   3873       REQUIRES(Locks::classlinker_classes_lock_)
   3874       REQUIRES_SHARED(Locks::mutator_lock_) OVERRIDE {
   3875     ClassTable* const class_table = class_loader->GetClassTable();
   3876     if (class_table != nullptr) {
   3877       class_table->FreezeSnapshot();
   3878     }
   3879   }
   3880 };
   3881 
   3882 void ClassLinker::MoveClassTableToPreZygote() {
   3883   WriterMutexLock mu(Thread::Current(), *Locks::classlinker_classes_lock_);
   3884   boot_class_table_.FreezeSnapshot();
   3885   MoveClassTableToPreZygoteVisitor visitor;
   3886   VisitClassLoaders(&visitor);
   3887 }
   3888 
   3889 // Look up classes by hash and descriptor and put all matching ones in the result array.
   3890 class LookupClassesVisitor : public ClassLoaderVisitor {
   3891  public:
   3892   LookupClassesVisitor(const char* descriptor,
   3893                        size_t hash,
   3894                        std::vector<ObjPtr<mirror::Class>>* result)
   3895      : descriptor_(descriptor),
   3896        hash_(hash),
   3897        result_(result) {}
   3898 
   3899   void Visit(ObjPtr<mirror::ClassLoader> class_loader)
   3900       REQUIRES_SHARED(Locks::classlinker_classes_lock_, Locks::mutator_lock_) OVERRIDE {
   3901     ClassTable* const class_table = class_loader->GetClassTable();
   3902     ObjPtr<mirror::Class> klass = class_table->Lookup(descriptor_, hash_);
   3903     // Add `klass` only if `class_loader` is its defining (not just initiating) class loader.
   3904     if (klass != nullptr && klass->GetClassLoader() == class_loader) {
   3905       result_->push_back(klass);
   3906     }
   3907   }
   3908 
   3909  private:
   3910   const char* const descriptor_;
   3911   const size_t hash_;
   3912   std::vector<ObjPtr<mirror::Class>>* const result_;
   3913 };
   3914 
   3915 void ClassLinker::LookupClasses(const char* descriptor,
   3916                                 std::vector<ObjPtr<mirror::Class>>& result) {
   3917   result.clear();
   3918   Thread* const self = Thread::Current();
   3919   ReaderMutexLock mu(self, *Locks::classlinker_classes_lock_);
   3920   const size_t hash = ComputeModifiedUtf8Hash(descriptor);
   3921   ObjPtr<mirror::Class> klass = boot_class_table_.Lookup(descriptor, hash);
   3922   if (klass != nullptr) {
   3923     DCHECK(klass->GetClassLoader() == nullptr);
   3924     result.push_back(klass);
   3925   }
   3926   LookupClassesVisitor visitor(descriptor, hash, &result);
   3927   VisitClassLoaders(&visitor);
   3928 }
   3929 
   3930 bool ClassLinker::AttemptSupertypeVerification(Thread* self,
   3931                                                Handle<mirror::Class> klass,
   3932                                                Handle<mirror::Class> supertype) {
   3933   DCHECK(self != nullptr);
   3934   DCHECK(klass != nullptr);
   3935   DCHECK(supertype != nullptr);
   3936 
   3937   if (!supertype->IsVerified() && !supertype->IsErroneous()) {
   3938     VerifyClass(self, supertype);
   3939   }
   3940 
   3941   if (supertype->IsVerified() || supertype->ShouldVerifyAtRuntime()) {
   3942     // The supertype is either verified, or we soft failed at AOT time.
   3943     DCHECK(supertype->IsVerified() || Runtime::Current()->IsAotCompiler());
   3944     return true;
   3945   }
   3946   // If we got this far then we have a hard failure.
   3947   std::string error_msg =
   3948       StringPrintf("Rejecting class %s that attempts to sub-type erroneous class %s",
   3949                    klass->PrettyDescriptor().c_str(),
   3950                    supertype->PrettyDescriptor().c_str());
   3951   LOG(WARNING) << error_msg  << " in " << klass->GetDexCache()->GetLocation()->ToModifiedUtf8();
   3952   StackHandleScope<1> hs(self);
   3953   Handle<mirror::Throwable> cause(hs.NewHandle(self->GetException()));
   3954   if (cause != nullptr) {
   3955     // Set during VerifyClass call (if at all).
   3956     self->ClearException();
   3957   }
   3958   // Change into a verify error.
   3959   ThrowVerifyError(klass.Get(), "%s", error_msg.c_str());
   3960   if (cause != nullptr) {
   3961     self->GetException()->SetCause(cause.Get());
   3962   }
   3963   ClassReference ref(klass->GetDexCache()->GetDexFile(), klass->GetDexClassDefIndex());
   3964   if (Runtime::Current()->IsAotCompiler()) {
   3965     Runtime::Current()->GetCompilerCallbacks()->ClassRejected(ref);
   3966   }
   3967   // Need to grab the lock to change status.
   3968   ObjectLock<mirror::Class> super_lock(self, klass);
   3969   mirror::Class::SetStatus(klass, mirror::Class::kStatusErrorResolved, self);
   3970   return false;
   3971 }
   3972 
   3973 // Ensures that methods have the kAccSkipAccessChecks bit set. We use the
   3974 // kAccVerificationAttempted bit on the class access flags to determine whether this has been done
   3975 // before.
   3976 static void EnsureSkipAccessChecksMethods(Handle<mirror::Class> klass, PointerSize pointer_size)
   3977     REQUIRES_SHARED(Locks::mutator_lock_) {
   3978   if (!klass->WasVerificationAttempted()) {
   3979     klass->SetSkipAccessChecksFlagOnAllMethods(pointer_size);
   3980     klass->SetVerificationAttempted();
   3981   }
   3982 }
   3983 
   3984 verifier::FailureKind ClassLinker::VerifyClass(
   3985     Thread* self, Handle<mirror::Class> klass, verifier::HardFailLogMode log_level) {
   3986   {
   3987     // TODO: assert that the monitor on the Class is held
   3988     ObjectLock<mirror::Class> lock(self, klass);
   3989 
   3990     // Is somebody verifying this now?
   3991     mirror::Class::Status old_status = klass->GetStatus();
   3992     while (old_status == mirror::Class::kStatusVerifying ||
   3993         old_status == mirror::Class::kStatusVerifyingAtRuntime) {
   3994       lock.WaitIgnoringInterrupts();
   3995       CHECK(klass->IsErroneous() || (klass->GetStatus() > old_status))
   3996           << "Class '" << klass->PrettyClass()
   3997           << "' performed an illegal verification state transition from " << old_status
   3998           << " to " << klass->GetStatus();
   3999       old_status = klass->GetStatus();
   4000     }
   4001 
   4002     // The class might already be erroneous, for example at compile time if we attempted to verify
   4003     // this class as a parent to another.
   4004     if (klass->IsErroneous()) {
   4005       ThrowEarlierClassFailure(klass.Get());
   4006       return verifier::FailureKind::kHardFailure;
   4007     }
   4008 
   4009     // Don't attempt to re-verify if already verified.
   4010     if (klass->IsVerified()) {
   4011       EnsureSkipAccessChecksMethods(klass, image_pointer_size_);
   4012       return verifier::FailureKind::kNoFailure;
   4013     }
   4014 
   4015     // For AOT, don't attempt to re-verify if we have already found we should
   4016     // verify at runtime.
   4017     if (Runtime::Current()->IsAotCompiler() && klass->ShouldVerifyAtRuntime()) {
   4018       return verifier::FailureKind::kSoftFailure;
   4019     }
   4020 
   4021     if (klass->GetStatus() == mirror::Class::kStatusResolved) {
   4022       mirror::Class::SetStatus(klass, mirror::Class::kStatusVerifying, self);
   4023     } else {
   4024       CHECK_EQ(klass->GetStatus(), mirror::Class::kStatusRetryVerificationAtRuntime)
   4025           << klass->PrettyClass();
   4026       CHECK(!Runtime::Current()->IsAotCompiler());
   4027       mirror::Class::SetStatus(klass, mirror::Class::kStatusVerifyingAtRuntime, self);
   4028     }
   4029 
   4030     // Skip verification if disabled.
   4031     if (!Runtime::Current()->IsVerificationEnabled()) {
   4032       mirror::Class::SetStatus(klass, mirror::Class::kStatusVerified, self);
   4033       EnsureSkipAccessChecksMethods(klass, image_pointer_size_);
   4034       return verifier::FailureKind::kNoFailure;
   4035     }
   4036   }
   4037 
   4038   // Verify super class.
   4039   StackHandleScope<2> hs(self);
   4040   MutableHandle<mirror::Class> supertype(hs.NewHandle(klass->GetSuperClass()));
   4041   // If we have a superclass and we get a hard verification failure we can return immediately.
   4042   if (supertype != nullptr && !AttemptSupertypeVerification(self, klass, supertype)) {
   4043     CHECK(self->IsExceptionPending()) << "Verification error should be pending.";
   4044     return verifier::FailureKind::kHardFailure;
   4045   }
   4046 
   4047   // Verify all default super-interfaces.
   4048   //
   4049   // (1) Don't bother if the superclass has already had a soft verification failure.
   4050   //
   4051   // (2) Interfaces shouldn't bother to do this recursive verification because they cannot cause
   4052   //     recursive initialization by themselves. This is because when an interface is initialized
   4053   //     directly it must not initialize its superinterfaces. We are allowed to verify regardless
   4054   //     but choose not to for an optimization. If the interfaces is being verified due to a class
   4055   //     initialization (which would need all the default interfaces to be verified) the class code
   4056   //     will trigger the recursive verification anyway.
   4057   if ((supertype == nullptr || supertype->IsVerified())  // See (1)
   4058       && !klass->IsInterface()) {                              // See (2)
   4059     int32_t iftable_count = klass->GetIfTableCount();
   4060     MutableHandle<mirror::Class> iface(hs.NewHandle<mirror::Class>(nullptr));
   4061     // Loop through all interfaces this class has defined. It doesn't matter the order.
   4062     for (int32_t i = 0; i < iftable_count; i++) {
   4063       iface.Assign(klass->GetIfTable()->GetInterface(i));
   4064       DCHECK(iface != nullptr);
   4065       // We only care if we have default interfaces and can skip if we are already verified...
   4066       if (LIKELY(!iface->HasDefaultMethods() || iface->IsVerified())) {
   4067         continue;
   4068       } else if (UNLIKELY(!AttemptSupertypeVerification(self, klass, iface))) {
   4069         // We had a hard failure while verifying this interface. Just return immediately.
   4070         CHECK(self->IsExceptionPending()) << "Verification error should be pending.";
   4071         return verifier::FailureKind::kHardFailure;
   4072       } else if (UNLIKELY(!iface->IsVerified())) {
   4073         // We softly failed to verify the iface. Stop checking and clean up.
   4074         // Put the iface into the supertype handle so we know what caused us to fail.
   4075         supertype.Assign(iface.Get());
   4076         break;
   4077       }
   4078     }
   4079   }
   4080 
   4081   // At this point if verification failed, then supertype is the "first" supertype that failed
   4082   // verification (without a specific order). If verification succeeded, then supertype is either
   4083   // null or the original superclass of klass and is verified.
   4084   DCHECK(supertype == nullptr ||
   4085          supertype.Get() == klass->GetSuperClass() ||
   4086          !supertype->IsVerified());
   4087 
   4088   // Try to use verification information from the oat file, otherwise do runtime verification.
   4089   const DexFile& dex_file = *klass->GetDexCache()->GetDexFile();
   4090   mirror::Class::Status oat_file_class_status(mirror::Class::kStatusNotReady);
   4091   bool preverified = VerifyClassUsingOatFile(dex_file, klass.Get(), oat_file_class_status);
   4092   // If the oat file says the class had an error, re-run the verifier. That way we will get a
   4093   // precise error message. To ensure a rerun, test:
   4094   //     mirror::Class::IsErroneous(oat_file_class_status) => !preverified
   4095   DCHECK(!mirror::Class::IsErroneous(oat_file_class_status) || !preverified);
   4096 
   4097   std::string error_msg;
   4098   verifier::FailureKind verifier_failure = verifier::FailureKind::kNoFailure;
   4099   if (!preverified) {
   4100     Runtime* runtime = Runtime::Current();
   4101     verifier_failure = verifier::MethodVerifier::VerifyClass(self,
   4102                                                              klass.Get(),
   4103                                                              runtime->GetCompilerCallbacks(),
   4104                                                              runtime->IsAotCompiler(),
   4105                                                              log_level,
   4106                                                              &error_msg);
   4107   }
   4108 
   4109   // Verification is done, grab the lock again.
   4110   ObjectLock<mirror::Class> lock(self, klass);
   4111 
   4112   if (preverified || verifier_failure != verifier::FailureKind::kHardFailure) {
   4113     if (!preverified && verifier_failure != verifier::FailureKind::kNoFailure) {
   4114       VLOG(class_linker) << "Soft verification failure in class "
   4115                          << klass->PrettyDescriptor()
   4116                          << " in " << klass->GetDexCache()->GetLocation()->ToModifiedUtf8()
   4117                          << " because: " << error_msg;
   4118     }
   4119     self->AssertNoPendingException();
   4120     // Make sure all classes referenced by catch blocks are resolved.
   4121     ResolveClassExceptionHandlerTypes(klass);
   4122     if (verifier_failure == verifier::FailureKind::kNoFailure) {
   4123       // Even though there were no verifier failures we need to respect whether the super-class and
   4124       // super-default-interfaces were verified or requiring runtime reverification.
   4125       if (supertype == nullptr || supertype->IsVerified()) {
   4126         mirror::Class::SetStatus(klass, mirror::Class::kStatusVerified, self);
   4127       } else {
   4128         CHECK_EQ(supertype->GetStatus(), mirror::Class::kStatusRetryVerificationAtRuntime);
   4129         mirror::Class::SetStatus(klass, mirror::Class::kStatusRetryVerificationAtRuntime, self);
   4130         // Pretend a soft failure occurred so that we don't consider the class verified below.
   4131         verifier_failure = verifier::FailureKind::kSoftFailure;
   4132       }
   4133     } else {
   4134       CHECK_EQ(verifier_failure, verifier::FailureKind::kSoftFailure);
   4135       // Soft failures at compile time should be retried at runtime. Soft
   4136       // failures at runtime will be handled by slow paths in the generated
   4137       // code. Set status accordingly.
   4138       if (Runtime::Current()->IsAotCompiler()) {
   4139         mirror::Class::SetStatus(klass, mirror::Class::kStatusRetryVerificationAtRuntime, self);
   4140       } else {
   4141         mirror::Class::SetStatus(klass, mirror::Class::kStatusVerified, self);
   4142         // As this is a fake verified status, make sure the methods are _not_ marked
   4143         // kAccSkipAccessChecks later.
   4144         klass->SetVerificationAttempted();
   4145       }
   4146     }
   4147   } else {
   4148     VLOG(verifier) << "Verification failed on class " << klass->PrettyDescriptor()
   4149                   << " in " << klass->GetDexCache()->GetLocation()->ToModifiedUtf8()
   4150                   << " because: " << error_msg;
   4151     self->AssertNoPendingException();
   4152     ThrowVerifyError(klass.Get(), "%s", error_msg.c_str());
   4153     mirror::Class::SetStatus(klass, mirror::Class::kStatusErrorResolved, self);
   4154   }
   4155   if (preverified || verifier_failure == verifier::FailureKind::kNoFailure) {
   4156     // Class is verified so we don't need to do any access check on its methods.
   4157     // Let the interpreter know it by setting the kAccSkipAccessChecks flag onto each
   4158     // method.
   4159     // Note: we're going here during compilation and at runtime. When we set the
   4160     // kAccSkipAccessChecks flag when compiling image classes, the flag is recorded
   4161     // in the image and is set when loading the image.
   4162 
   4163     if (UNLIKELY(Runtime::Current()->IsVerificationSoftFail())) {
   4164       // Never skip access checks if the verification soft fail is forced.
   4165       // Mark the class as having a verification attempt to avoid re-running the verifier.
   4166       klass->SetVerificationAttempted();
   4167     } else {
   4168       EnsureSkipAccessChecksMethods(klass, image_pointer_size_);
   4169     }
   4170   }
   4171   return verifier_failure;
   4172 }
   4173 
   4174 bool ClassLinker::VerifyClassUsingOatFile(const DexFile& dex_file,
   4175                                           ObjPtr<mirror::Class> klass,
   4176                                           mirror::Class::Status& oat_file_class_status) {
   4177   // If we're compiling, we can only verify the class using the oat file if
   4178   // we are not compiling the image or if the class we're verifying is not part of
   4179   // the app.  In other words, we will only check for preverification of bootclasspath
   4180   // classes.
   4181   if (Runtime::Current()->IsAotCompiler()) {
   4182     // Are we compiling the bootclasspath?
   4183     if (Runtime::Current()->GetCompilerCallbacks()->IsBootImage()) {
   4184       return false;
   4185     }
   4186     // We are compiling an app (not the image).
   4187 
   4188     // Is this an app class? (I.e. not a bootclasspath class)
   4189     if (klass->GetClassLoader() != nullptr) {
   4190       return false;
   4191     }
   4192   }
   4193 
   4194   const OatFile::OatDexFile* oat_dex_file = dex_file.GetOatDexFile();
   4195   // In case we run without an image there won't be a backing oat file.
   4196   if (oat_dex_file == nullptr || oat_dex_file->GetOatFile() == nullptr) {
   4197     return false;
   4198   }
   4199 
   4200   uint16_t class_def_index = klass->GetDexClassDefIndex();
   4201   oat_file_class_status = oat_dex_file->GetOatClass(class_def_index).GetStatus();
   4202   if (oat_file_class_status == mirror::Class::kStatusVerified ||
   4203       oat_file_class_status == mirror::Class::kStatusInitialized) {
   4204     return true;
   4205   }
   4206   // If we only verified a subset of the classes at compile time, we can end up with classes that
   4207   // were resolved by the verifier.
   4208   if (oat_file_class_status == mirror::Class::kStatusResolved) {
   4209     return false;
   4210   }
   4211   if (oat_file_class_status == mirror::Class::kStatusRetryVerificationAtRuntime) {
   4212     // Compile time verification failed with a soft error. Compile time verification can fail
   4213     // because we have incomplete type information. Consider the following:
   4214     // class ... {
   4215     //   Foo x;
   4216     //   .... () {
   4217     //     if (...) {
   4218     //       v1 gets assigned a type of resolved class Foo
   4219     //     } else {
   4220     //       v1 gets assigned a type of unresolved class Bar
   4221     //     }
   4222     //     iput x = v1
   4223     // } }
   4224     // when we merge v1 following the if-the-else it results in Conflict
   4225     // (see verifier::RegType::Merge) as we can't know the type of Bar and we could possibly be
   4226     // allowing an unsafe assignment to the field x in the iput (javac may have compiled this as
   4227     // it knew Bar was a sub-class of Foo, but for us this may have been moved into a separate apk
   4228     // at compile time).
   4229     return false;
   4230   }
   4231   if (mirror::Class::IsErroneous(oat_file_class_status)) {
   4232     // Compile time verification failed with a hard error. This is caused by invalid instructions
   4233     // in the class. These errors are unrecoverable.
   4234     return false;
   4235   }
   4236   if (oat_file_class_status == mirror::Class::kStatusNotReady) {
   4237     // Status is uninitialized if we couldn't determine the status at compile time, for example,
   4238     // not loading the class.
   4239     // TODO: when the verifier doesn't rely on Class-es failing to resolve/load the type hierarchy
   4240     // isn't a problem and this case shouldn't occur
   4241     return false;
   4242   }
   4243   std::string temp;
   4244   LOG(FATAL) << "Unexpected class status: " << oat_file_class_status
   4245              << " " << dex_file.GetLocation() << " " << klass->PrettyClass() << " "
   4246              << klass->GetDescriptor(&temp);
   4247   UNREACHABLE();
   4248 }
   4249 
   4250 void ClassLinker::ResolveClassExceptionHandlerTypes(Handle<mirror::Class> klass) {
   4251   for (ArtMethod& method : klass->GetMethods(image_pointer_size_)) {
   4252     ResolveMethodExceptionHandlerTypes(&method);
   4253   }
   4254 }
   4255 
   4256 void ClassLinker::ResolveMethodExceptionHandlerTypes(ArtMethod* method) {
   4257   // similar to DexVerifier::ScanTryCatchBlocks and dex2oat's ResolveExceptionsForMethod.
   4258   const DexFile::CodeItem* code_item =
   4259       method->GetDexFile()->GetCodeItem(method->GetCodeItemOffset());
   4260   if (code_item == nullptr) {
   4261     return;  // native or abstract method
   4262   }
   4263   if (code_item->tries_size_ == 0) {
   4264     return;  // nothing to process
   4265   }
   4266   const uint8_t* handlers_ptr = DexFile::GetCatchHandlerData(*code_item, 0);
   4267   uint32_t handlers_size = DecodeUnsignedLeb128(&handlers_ptr);
   4268   for (uint32_t idx = 0; idx < handlers_size; idx++) {
   4269     CatchHandlerIterator iterator(handlers_ptr);
   4270     for (; iterator.HasNext(); iterator.Next()) {
   4271       // Ensure exception types are resolved so that they don't need resolution to be delivered,
   4272       // unresolved exception types will be ignored by exception delivery
   4273       if (iterator.GetHandlerTypeIndex().IsValid()) {
   4274         ObjPtr<mirror::Class> exception_type = ResolveType(iterator.GetHandlerTypeIndex(), method);
   4275         if (exception_type == nullptr) {
   4276           DCHECK(Thread::Current()->IsExceptionPending());
   4277           Thread::Current()->ClearException();
   4278         }
   4279       }
   4280     }
   4281     handlers_ptr = iterator.EndDataPointer();
   4282   }
   4283 }
   4284 
   4285 mirror::Class* ClassLinker::CreateProxyClass(ScopedObjectAccessAlreadyRunnable& soa,
   4286                                              jstring name,
   4287                                              jobjectArray interfaces,
   4288                                              jobject loader,
   4289                                              jobjectArray methods,
   4290                                              jobjectArray throws) {
   4291   Thread* self = soa.Self();
   4292   StackHandleScope<10> hs(self);
   4293   MutableHandle<mirror::Class> temp_klass(hs.NewHandle(
   4294       AllocClass(self, GetClassRoot(kJavaLangClass), sizeof(mirror::Class))));
   4295   if (temp_klass == nullptr) {
   4296     CHECK(self->IsExceptionPending());  // OOME.
   4297     return nullptr;
   4298   }
   4299   DCHECK(temp_klass->GetClass() != nullptr);
   4300   temp_klass->SetObjectSize(sizeof(mirror::Proxy));
   4301   // Set the class access flags incl. VerificationAttempted, so we do not try to set the flag on
   4302   // the methods.
   4303   temp_klass->SetAccessFlags(kAccClassIsProxy | kAccPublic | kAccFinal | kAccVerificationAttempted);
   4304   temp_klass->SetClassLoader(soa.Decode<mirror::ClassLoader>(loader));
   4305   DCHECK_EQ(temp_klass->GetPrimitiveType(), Primitive::kPrimNot);
   4306   temp_klass->SetName(soa.Decode<mirror::String>(name));
   4307   temp_klass->SetDexCache(GetClassRoot(kJavaLangReflectProxy)->GetDexCache());
   4308   // Object has an empty iftable, copy it for that reason.
   4309   temp_klass->SetIfTable(GetClassRoot(kJavaLangObject)->GetIfTable());
   4310   mirror::Class::SetStatus(temp_klass, mirror::Class::kStatusIdx, self);
   4311   std::string descriptor(GetDescriptorForProxy(temp_klass.Get()));
   4312   const size_t hash = ComputeModifiedUtf8Hash(descriptor.c_str());
   4313 
   4314   // Needs to be before we insert the class so that the allocator field is set.
   4315   LinearAlloc* const allocator = GetOrCreateAllocatorForClassLoader(temp_klass->GetClassLoader());
   4316 
   4317   // Insert the class before loading the fields as the field roots
   4318   // (ArtField::declaring_class_) are only visited from the class
   4319   // table. There can't be any suspend points between inserting the
   4320   // class and setting the field arrays below.
   4321   ObjPtr<mirror::Class> existing = InsertClass(descriptor.c_str(), temp_klass.Get(), hash);
   4322   CHECK(existing == nullptr);
   4323 
   4324   // Instance fields are inherited, but we add a couple of static fields...
   4325   const size_t num_fields = 2;
   4326   LengthPrefixedArray<ArtField>* sfields = AllocArtFieldArray(self, allocator, num_fields);
   4327   temp_klass->SetSFieldsPtr(sfields);
   4328 
   4329   // 1. Create a static field 'interfaces' that holds the _declared_ interfaces implemented by
   4330   // our proxy, so Class.getInterfaces doesn't return the flattened set.
   4331   ArtField& interfaces_sfield = sfields->At(0);
   4332   interfaces_sfield.SetDexFieldIndex(0);
   4333   interfaces_sfield.SetDeclaringClass(temp_klass.Get());
   4334   interfaces_sfield.SetAccessFlags(kAccStatic | kAccPublic | kAccFinal);
   4335 
   4336   // 2. Create a static field 'throws' that holds exceptions thrown by our methods.
   4337   ArtField& throws_sfield = sfields->At(1);
   4338   throws_sfield.SetDexFieldIndex(1);
   4339   throws_sfield.SetDeclaringClass(temp_klass.Get());
   4340   throws_sfield.SetAccessFlags(kAccStatic | kAccPublic | kAccFinal);
   4341 
   4342   // Proxies have 1 direct method, the constructor
   4343   const size_t num_direct_methods = 1;
   4344 
   4345   // They have as many virtual methods as the array
   4346   auto h_methods = hs.NewHandle(soa.Decode<mirror::ObjectArray<mirror::Method>>(methods));
   4347   DCHECK_EQ(h_methods->GetClass(), mirror::Method::ArrayClass())
   4348       << mirror::Class::PrettyClass(h_methods->GetClass());
   4349   const size_t num_virtual_methods = h_methods->GetLength();
   4350 
   4351   // Create the methods array.
   4352   LengthPrefixedArray<ArtMethod>* proxy_class_methods = AllocArtMethodArray(
   4353         self, allocator, num_direct_methods + num_virtual_methods);
   4354   // Currently AllocArtMethodArray cannot return null, but the OOM logic is left there in case we
   4355   // want to throw OOM in the future.
   4356   if (UNLIKELY(proxy_class_methods == nullptr)) {
   4357     self->AssertPendingOOMException();
   4358     return nullptr;
   4359   }
   4360   temp_klass->SetMethodsPtr(proxy_class_methods, num_direct_methods, num_virtual_methods);
   4361 
   4362   // Create the single direct method.
   4363   CreateProxyConstructor(temp_klass, temp_klass->GetDirectMethodUnchecked(0, image_pointer_size_));
   4364 
   4365   // Create virtual method using specified prototypes.
   4366   // TODO These should really use the iterators.
   4367   for (size_t i = 0; i < num_virtual_methods; ++i) {
   4368     auto* virtual_method = temp_klass->GetVirtualMethodUnchecked(i, image_pointer_size_);
   4369     auto* prototype = h_methods->Get(i)->GetArtMethod();
   4370     CreateProxyMethod(temp_klass, prototype, virtual_method);
   4371     DCHECK(virtual_method->GetDeclaringClass() != nullptr);
   4372     DCHECK(prototype->GetDeclaringClass() != nullptr);
   4373   }
   4374 
   4375   // The super class is java.lang.reflect.Proxy
   4376   temp_klass->SetSuperClass(GetClassRoot(kJavaLangReflectProxy));
   4377   // Now effectively in the loaded state.
   4378   mirror::Class::SetStatus(temp_klass, mirror::Class::kStatusLoaded, self);
   4379   self->AssertNoPendingException();
   4380 
   4381   // At this point the class is loaded. Publish a ClassLoad event.
   4382   // Note: this may be a temporary class. It is a listener's responsibility to handle this.
   4383   Runtime::Current()->GetRuntimeCallbacks()->ClassLoad(temp_klass);
   4384 
   4385   MutableHandle<mirror::Class> klass = hs.NewHandle<mirror::Class>(nullptr);
   4386   {
   4387     // Must hold lock on object when resolved.
   4388     ObjectLock<mirror::Class> resolution_lock(self, temp_klass);
   4389     // Link the fields and virtual methods, creating vtable and iftables.
   4390     // The new class will replace the old one in the class table.
   4391     Handle<mirror::ObjectArray<mirror::Class>> h_interfaces(
   4392         hs.NewHandle(soa.Decode<mirror::ObjectArray<mirror::Class>>(interfaces)));
   4393     if (!LinkClass(self, descriptor.c_str(), temp_klass, h_interfaces, &klass)) {
   4394       mirror::Class::SetStatus(temp_klass, mirror::Class::kStatusErrorUnresolved, self);
   4395       return nullptr;
   4396     }
   4397   }
   4398   CHECK(temp_klass->IsRetired());
   4399   CHECK_NE(temp_klass.Get(), klass.Get());
   4400 
   4401   CHECK_EQ(interfaces_sfield.GetDeclaringClass(), klass.Get());
   4402   interfaces_sfield.SetObject<false>(
   4403       klass.Get(),
   4404       soa.Decode<mirror::ObjectArray<mirror::Class>>(interfaces));
   4405   CHECK_EQ(throws_sfield.GetDeclaringClass(), klass.Get());
   4406   throws_sfield.SetObject<false>(
   4407       klass.Get(),
   4408       soa.Decode<mirror::ObjectArray<mirror::ObjectArray<mirror::Class>>>(throws));
   4409 
   4410   Runtime::Current()->GetRuntimeCallbacks()->ClassPrepare(temp_klass, klass);
   4411 
   4412   {
   4413     // Lock on klass is released. Lock new class object.
   4414     ObjectLock<mirror::Class> initialization_lock(self, klass);
   4415     mirror::Class::SetStatus(klass, mirror::Class::kStatusInitialized, self);
   4416   }
   4417 
   4418   // sanity checks
   4419   if (kIsDebugBuild) {
   4420     CHECK(klass->GetIFieldsPtr() == nullptr);
   4421     CheckProxyConstructor(klass->GetDirectMethod(0, image_pointer_size_));
   4422 
   4423     for (size_t i = 0; i < num_virtual_methods; ++i) {
   4424       auto* virtual_method = klass->GetVirtualMethodUnchecked(i, image_pointer_size_);
   4425       auto* prototype = h_methods->Get(i++)->GetArtMethod();
   4426       CheckProxyMethod(virtual_method, prototype);
   4427     }
   4428 
   4429     StackHandleScope<1> hs2(self);
   4430     Handle<mirror::String> decoded_name = hs2.NewHandle(soa.Decode<mirror::String>(name));
   4431     std::string interfaces_field_name(StringPrintf("java.lang.Class[] %s.interfaces",
   4432                                                    decoded_name->ToModifiedUtf8().c_str()));
   4433     CHECK_EQ(ArtField::PrettyField(klass->GetStaticField(0)), interfaces_field_name);
   4434 
   4435     std::string throws_field_name(StringPrintf("java.lang.Class[][] %s.throws",
   4436                                                decoded_name->ToModifiedUtf8().c_str()));
   4437     CHECK_EQ(ArtField::PrettyField(klass->GetStaticField(1)), throws_field_name);
   4438 
   4439     CHECK_EQ(klass.Get()->GetProxyInterfaces(),
   4440              soa.Decode<mirror::ObjectArray<mirror::Class>>(interfaces));
   4441     CHECK_EQ(klass.Get()->GetProxyThrows(),
   4442              soa.Decode<mirror::ObjectArray<mirror::ObjectArray<mirror::Class>>>(throws));
   4443   }
   4444   return klass.Get();
   4445 }
   4446 
   4447 std::string ClassLinker::GetDescriptorForProxy(ObjPtr<mirror::Class> proxy_class) {
   4448   DCHECK(proxy_class->IsProxyClass());
   4449   ObjPtr<mirror::String> name = proxy_class->GetName();
   4450   DCHECK(name != nullptr);
   4451   return DotToDescriptor(name->ToModifiedUtf8().c_str());
   4452 }
   4453 
   4454 void ClassLinker::CreateProxyConstructor(Handle<mirror::Class> klass, ArtMethod* out) {
   4455   // Create constructor for Proxy that must initialize the method.
   4456   CHECK_EQ(GetClassRoot(kJavaLangReflectProxy)->NumDirectMethods(), 23u);
   4457 
   4458   // Find the <init>(InvocationHandler)V method. The exact method offset varies depending
   4459   // on which front-end compiler was used to build the libcore DEX files.
   4460   ArtMethod* proxy_constructor = GetClassRoot(kJavaLangReflectProxy)->
   4461       FindDeclaredDirectMethod("<init>",
   4462                                "(Ljava/lang/reflect/InvocationHandler;)V",
   4463                                image_pointer_size_);
   4464   DCHECK(proxy_constructor != nullptr)
   4465       << "Could not find <init> method in java.lang.reflect.Proxy";
   4466 
   4467   // Ensure constructor is in dex cache so that we can use the dex cache to look up the overridden
   4468   // constructor method.
   4469   GetClassRoot(kJavaLangReflectProxy)->GetDexCache()->SetResolvedMethod(
   4470       proxy_constructor->GetDexMethodIndex(), proxy_constructor, image_pointer_size_);
   4471   // Clone the existing constructor of Proxy (our constructor would just invoke it so steal its
   4472   // code_ too)
   4473   DCHECK(out != nullptr);
   4474   out->CopyFrom(proxy_constructor, image_pointer_size_);
   4475   // Make this constructor public and fix the class to be our Proxy version
   4476   out->SetAccessFlags((out->GetAccessFlags() & ~kAccProtected) | kAccPublic);
   4477   out->SetDeclaringClass(klass.Get());
   4478 }
   4479 
   4480 void ClassLinker::CheckProxyConstructor(ArtMethod* constructor) const {
   4481   CHECK(constructor->IsConstructor());
   4482   auto* np = constructor->GetInterfaceMethodIfProxy(image_pointer_size_);
   4483   CHECK_STREQ(np->GetName(), "<init>");
   4484   CHECK_STREQ(np->GetSignature().ToString().c_str(), "(Ljava/lang/reflect/InvocationHandler;)V");
   4485   DCHECK(constructor->IsPublic());
   4486 }
   4487 
   4488 void ClassLinker::CreateProxyMethod(Handle<mirror::Class> klass, ArtMethod* prototype,
   4489                                     ArtMethod* out) {
   4490   // Ensure prototype is in dex cache so that we can use the dex cache to look up the overridden
   4491   // prototype method
   4492   auto* dex_cache = prototype->GetDeclaringClass()->GetDexCache();
   4493   // Avoid dirtying the dex cache unless we need to.
   4494   if (dex_cache->GetResolvedMethod(prototype->GetDexMethodIndex(), image_pointer_size_) !=
   4495       prototype) {
   4496     dex_cache->SetResolvedMethod(
   4497         prototype->GetDexMethodIndex(), prototype, image_pointer_size_);
   4498   }
   4499   // We steal everything from the prototype (such as DexCache, invoke stub, etc.) then specialize
   4500   // as necessary
   4501   DCHECK(out != nullptr);
   4502   out->CopyFrom(prototype, image_pointer_size_);
   4503 
   4504   // Set class to be the concrete proxy class.
   4505   out->SetDeclaringClass(klass.Get());
   4506   // Clear the abstract, default and conflict flags to ensure that defaults aren't picked in
   4507   // preference to the invocation handler.
   4508   const uint32_t kRemoveFlags = kAccAbstract | kAccDefault | kAccDefaultConflict;
   4509   // Make the method final.
   4510   const uint32_t kAddFlags = kAccFinal;
   4511   out->SetAccessFlags((out->GetAccessFlags() & ~kRemoveFlags) | kAddFlags);
   4512 
   4513   // Clear the dex_code_item_offset_. It needs to be 0 since proxy methods have no CodeItems but the
   4514   // method they copy might (if it's a default method).
   4515   out->SetCodeItemOffset(0);
   4516 
   4517   // At runtime the method looks like a reference and argument saving method, clone the code
   4518   // related parameters from this method.
   4519   out->SetEntryPointFromQuickCompiledCode(GetQuickProxyInvokeHandler());
   4520 }
   4521 
   4522 void ClassLinker::CheckProxyMethod(ArtMethod* method, ArtMethod* prototype) const {
   4523   // Basic sanity
   4524   CHECK(!prototype->IsFinal());
   4525   CHECK(method->IsFinal());
   4526   CHECK(method->IsInvokable());
   4527 
   4528   // The proxy method doesn't have its own dex cache or dex file and so it steals those of its
   4529   // interface prototype. The exception to this are Constructors and the Class of the Proxy itself.
   4530   CHECK(prototype->HasSameDexCacheResolvedMethods(method, image_pointer_size_));
   4531   auto* np = method->GetInterfaceMethodIfProxy(image_pointer_size_);
   4532   CHECK_EQ(prototype->GetDeclaringClass()->GetDexCache(), np->GetDexCache());
   4533   CHECK_EQ(prototype->GetDexMethodIndex(), method->GetDexMethodIndex());
   4534 
   4535   CHECK_STREQ(np->GetName(), prototype->GetName());
   4536   CHECK_STREQ(np->GetShorty(), prototype->GetShorty());
   4537   // More complex sanity - via dex cache
   4538   CHECK_EQ(np->GetReturnType(true /* resolve */), prototype->GetReturnType(true /* resolve */));
   4539 }
   4540 
   4541 bool ClassLinker::CanWeInitializeClass(ObjPtr<mirror::Class> klass, bool can_init_statics,
   4542                                        bool can_init_parents) {
   4543   if (can_init_statics && can_init_parents) {
   4544     return true;
   4545   }
   4546   if (!can_init_statics) {
   4547     // Check if there's a class initializer.
   4548     ArtMethod* clinit = klass->FindClassInitializer(image_pointer_size_);
   4549     if (clinit != nullptr) {
   4550       return false;
   4551     }
   4552     // Check if there are encoded static values needing initialization.
   4553     if (klass->NumStaticFields() != 0) {
   4554       const DexFile::ClassDef* dex_class_def = klass->GetClassDef();
   4555       DCHECK(dex_class_def != nullptr);
   4556       if (dex_class_def->static_values_off_ != 0) {
   4557         return false;
   4558       }
   4559     }
   4560     // If we are a class we need to initialize all interfaces with default methods when we are
   4561     // initialized. Check all of them.
   4562     if (!klass->IsInterface()) {
   4563       size_t num_interfaces = klass->GetIfTableCount();
   4564       for (size_t i = 0; i < num_interfaces; i++) {
   4565         ObjPtr<mirror::Class> iface = klass->GetIfTable()->GetInterface(i);
   4566         if (iface->HasDefaultMethods() &&
   4567             !CanWeInitializeClass(iface, can_init_statics, can_init_parents)) {
   4568           return false;
   4569         }
   4570       }
   4571     }
   4572   }
   4573   if (klass->IsInterface() || !klass->HasSuperClass()) {
   4574     return true;
   4575   }
   4576   ObjPtr<mirror::Class> super_class = klass->GetSuperClass();
   4577   if (!can_init_parents && !super_class->IsInitialized()) {
   4578     return false;
   4579   }
   4580   return CanWeInitializeClass(super_class, can_init_statics, can_init_parents);
   4581 }
   4582 
   4583 bool ClassLinker::InitializeClass(Thread* self, Handle<mirror::Class> klass,
   4584                                   bool can_init_statics, bool can_init_parents) {
   4585   // see JLS 3rd edition, 12.4.2 "Detailed Initialization Procedure" for the locking protocol
   4586 
   4587   // Are we already initialized and therefore done?
   4588   // Note: we differ from the JLS here as we don't do this under the lock, this is benign as
   4589   // an initialized class will never change its state.
   4590   if (klass->IsInitialized()) {
   4591     return true;
   4592   }
   4593 
   4594   // Fast fail if initialization requires a full runtime. Not part of the JLS.
   4595   if (!CanWeInitializeClass(klass.Get(), can_init_statics, can_init_parents)) {
   4596     return false;
   4597   }
   4598 
   4599   self->AllowThreadSuspension();
   4600   uint64_t t0;
   4601   {
   4602     ObjectLock<mirror::Class> lock(self, klass);
   4603 
   4604     // Re-check under the lock in case another thread initialized ahead of us.
   4605     if (klass->IsInitialized()) {
   4606       return true;
   4607     }
   4608 
   4609     // Was the class already found to be erroneous? Done under the lock to match the JLS.
   4610     if (klass->IsErroneous()) {
   4611       ThrowEarlierClassFailure(klass.Get(), true);
   4612       VlogClassInitializationFailure(klass);
   4613       return false;
   4614     }
   4615 
   4616     CHECK(klass->IsResolved() && !klass->IsErroneousResolved())
   4617         << klass->PrettyClass() << ": state=" << klass->GetStatus();
   4618 
   4619     if (!klass->IsVerified()) {
   4620       VerifyClass(self, klass);
   4621       if (!klass->IsVerified()) {
   4622         // We failed to verify, expect either the klass to be erroneous or verification failed at
   4623         // compile time.
   4624         if (klass->IsErroneous()) {
   4625           // The class is erroneous. This may be a verifier error, or another thread attempted
   4626           // verification and/or initialization and failed. We can distinguish those cases by
   4627           // whether an exception is already pending.
   4628           if (self->IsExceptionPending()) {
   4629             // Check that it's a VerifyError.
   4630             DCHECK_EQ("java.lang.Class<java.lang.VerifyError>",
   4631                       mirror::Class::PrettyClass(self->GetException()->GetClass()));
   4632           } else {
   4633             // Check that another thread attempted initialization.
   4634             DCHECK_NE(0, klass->GetClinitThreadId());
   4635             DCHECK_NE(self->GetTid(), klass->GetClinitThreadId());
   4636             // Need to rethrow the previous failure now.
   4637             ThrowEarlierClassFailure(klass.Get(), true);
   4638           }
   4639           VlogClassInitializationFailure(klass);
   4640         } else {
   4641           CHECK(Runtime::Current()->IsAotCompiler());
   4642           CHECK_EQ(klass->GetStatus(), mirror::Class::kStatusRetryVerificationAtRuntime);
   4643         }
   4644         return false;
   4645       } else {
   4646         self->AssertNoPendingException();
   4647       }
   4648 
   4649       // A separate thread could have moved us all the way to initialized. A "simple" example
   4650       // involves a subclass of the current class being initialized at the same time (which
   4651       // will implicitly initialize the superclass, if scheduled that way). b/28254258
   4652       DCHECK(!klass->IsErroneous()) << klass->GetStatus();
   4653       if (klass->IsInitialized()) {
   4654         return true;
   4655       }
   4656     }
   4657 
   4658     // If the class is kStatusInitializing, either this thread is
   4659     // initializing higher up the stack or another thread has beat us
   4660     // to initializing and we need to wait. Either way, this
   4661     // invocation of InitializeClass will not be responsible for
   4662     // running <clinit> and will return.
   4663     if (klass->GetStatus() == mirror::Class::kStatusInitializing) {
   4664       // Could have got an exception during verification.
   4665       if (self->IsExceptionPending()) {
   4666         VlogClassInitializationFailure(klass);
   4667         return false;
   4668       }
   4669       // We caught somebody else in the act; was it us?
   4670       if (klass->GetClinitThreadId() == self->GetTid()) {
   4671         // Yes. That's fine. Return so we can continue initializing.
   4672         return true;
   4673       }
   4674       // No. That's fine. Wait for another thread to finish initializing.
   4675       return WaitForInitializeClass(klass, self, lock);
   4676     }
   4677 
   4678     if (!ValidateSuperClassDescriptors(klass)) {
   4679       mirror::Class::SetStatus(klass, mirror::Class::kStatusErrorResolved, self);
   4680       return false;
   4681     }
   4682     self->AllowThreadSuspension();
   4683 
   4684     CHECK_EQ(klass->GetStatus(), mirror::Class::kStatusVerified) << klass->PrettyClass()
   4685         << " self.tid=" << self->GetTid() << " clinit.tid=" << klass->GetClinitThreadId();
   4686 
   4687     // From here out other threads may observe that we're initializing and so changes of state
   4688     // require the a notification.
   4689     klass->SetClinitThreadId(self->GetTid());
   4690     mirror::Class::SetStatus(klass, mirror::Class::kStatusInitializing, self);
   4691 
   4692     t0 = NanoTime();
   4693   }
   4694 
   4695   // Initialize super classes, must be done while initializing for the JLS.
   4696   if (!klass->IsInterface() && klass->HasSuperClass()) {
   4697     ObjPtr<mirror::Class> super_class = klass->GetSuperClass();
   4698     if (!super_class->IsInitialized()) {
   4699       CHECK(!super_class->IsInterface());
   4700       CHECK(can_init_parents);
   4701       StackHandleScope<1> hs(self);
   4702       Handle<mirror::Class> handle_scope_super(hs.NewHandle(super_class));
   4703       bool super_initialized = InitializeClass(self, handle_scope_super, can_init_statics, true);
   4704       if (!super_initialized) {
   4705         // The super class was verified ahead of entering initializing, we should only be here if
   4706         // the super class became erroneous due to initialization.
   4707         CHECK(handle_scope_super->IsErroneous() && self->IsExceptionPending())
   4708             << "Super class initialization failed for "
   4709             << handle_scope_super->PrettyDescriptor()
   4710             << " that has unexpected status " << handle_scope_super->GetStatus()
   4711             << "\nPending exception:\n"
   4712             << (self->GetException() != nullptr ? self->GetException()->Dump() : "");
   4713         ObjectLock<mirror::Class> lock(self, klass);
   4714         // Initialization failed because the super-class is erroneous.
   4715         mirror::Class::SetStatus(klass, mirror::Class::kStatusErrorResolved, self);
   4716         return false;
   4717       }
   4718     }
   4719   }
   4720 
   4721   if (!klass->IsInterface()) {
   4722     // Initialize interfaces with default methods for the JLS.
   4723     size_t num_direct_interfaces = klass->NumDirectInterfaces();
   4724     // Only setup the (expensive) handle scope if we actually need to.
   4725     if (UNLIKELY(num_direct_interfaces > 0)) {
   4726       StackHandleScope<1> hs_iface(self);
   4727       MutableHandle<mirror::Class> handle_scope_iface(hs_iface.NewHandle<mirror::Class>(nullptr));
   4728       for (size_t i = 0; i < num_direct_interfaces; i++) {
   4729         handle_scope_iface.Assign(mirror::Class::GetDirectInterface(self, klass.Get(), i));
   4730         CHECK(handle_scope_iface != nullptr) << klass->PrettyDescriptor() << " iface #" << i;
   4731         CHECK(handle_scope_iface->IsInterface());
   4732         if (handle_scope_iface->HasBeenRecursivelyInitialized()) {
   4733           // We have already done this for this interface. Skip it.
   4734           continue;
   4735         }
   4736         // We cannot just call initialize class directly because we need to ensure that ALL
   4737         // interfaces with default methods are initialized. Non-default interface initialization
   4738         // will not affect other non-default super-interfaces.
   4739         bool iface_initialized = InitializeDefaultInterfaceRecursive(self,
   4740                                                                      handle_scope_iface,
   4741                                                                      can_init_statics,
   4742                                                                      can_init_parents);
   4743         if (!iface_initialized) {
   4744           ObjectLock<mirror::Class> lock(self, klass);
   4745           // Initialization failed because one of our interfaces with default methods is erroneous.
   4746           mirror::Class::SetStatus(klass, mirror::Class::kStatusErrorResolved, self);
   4747           return false;
   4748         }
   4749       }
   4750     }
   4751   }
   4752 
   4753   const size_t num_static_fields = klass->NumStaticFields();
   4754   if (num_static_fields > 0) {
   4755     const DexFile::ClassDef* dex_class_def = klass->GetClassDef();
   4756     CHECK(dex_class_def != nullptr);
   4757     const DexFile& dex_file = klass->GetDexFile();
   4758     StackHandleScope<3> hs(self);
   4759     Handle<mirror::ClassLoader> class_loader(hs.NewHandle(klass->GetClassLoader()));
   4760     Handle<mirror::DexCache> dex_cache(hs.NewHandle(klass->GetDexCache()));
   4761 
   4762     // Eagerly fill in static fields so that the we don't have to do as many expensive
   4763     // Class::FindStaticField in ResolveField.
   4764     for (size_t i = 0; i < num_static_fields; ++i) {
   4765       ArtField* field = klass->GetStaticField(i);
   4766       const uint32_t field_idx = field->GetDexFieldIndex();
   4767       ArtField* resolved_field = dex_cache->GetResolvedField(field_idx, image_pointer_size_);
   4768       if (resolved_field == nullptr) {
   4769         dex_cache->SetResolvedField(field_idx, field, image_pointer_size_);
   4770       } else {
   4771         DCHECK_EQ(field, resolved_field);
   4772       }
   4773     }
   4774 
   4775     annotations::RuntimeEncodedStaticFieldValueIterator value_it(dex_file,
   4776                                                                  &dex_cache,
   4777                                                                  &class_loader,
   4778                                                                  this,
   4779                                                                  *dex_class_def);
   4780     const uint8_t* class_data = dex_file.GetClassData(*dex_class_def);
   4781     ClassDataItemIterator field_it(dex_file, class_data);
   4782     if (value_it.HasNext()) {
   4783       DCHECK(field_it.HasNextStaticField());
   4784       CHECK(can_init_statics);
   4785       for ( ; value_it.HasNext(); value_it.Next(), field_it.Next()) {
   4786         ArtField* field = ResolveField(
   4787             dex_file, field_it.GetMemberIndex(), dex_cache, class_loader, true);
   4788         if (Runtime::Current()->IsActiveTransaction()) {
   4789           value_it.ReadValueToField<true>(field);
   4790         } else {
   4791           value_it.ReadValueToField<false>(field);
   4792         }
   4793         if (self->IsExceptionPending()) {
   4794           break;
   4795         }
   4796         DCHECK(!value_it.HasNext() || field_it.HasNextStaticField());
   4797       }
   4798     }
   4799   }
   4800 
   4801 
   4802   if (!self->IsExceptionPending()) {
   4803     ArtMethod* clinit = klass->FindClassInitializer(image_pointer_size_);
   4804     if (clinit != nullptr) {
   4805       CHECK(can_init_statics);
   4806       JValue result;
   4807       clinit->Invoke(self, nullptr, 0, &result, "V");
   4808     }
   4809   }
   4810   self->AllowThreadSuspension();
   4811   uint64_t t1 = NanoTime();
   4812 
   4813   bool success = true;
   4814   {
   4815     ObjectLock<mirror::Class> lock(self, klass);
   4816 
   4817     if (self->IsExceptionPending()) {
   4818       WrapExceptionInInitializer(klass);
   4819       mirror::Class::SetStatus(klass, mirror::Class::kStatusErrorResolved, self);
   4820       success = false;
   4821     } else if (Runtime::Current()->IsTransactionAborted()) {
   4822       // The exception thrown when the transaction aborted has been caught and cleared
   4823       // so we need to throw it again now.
   4824       VLOG(compiler) << "Return from class initializer of "
   4825                      << mirror::Class::PrettyDescriptor(klass.Get())
   4826                      << " without exception while transaction was aborted: re-throw it now.";
   4827       Runtime::Current()->ThrowTransactionAbortError(self);
   4828       mirror::Class::SetStatus(klass, mirror::Class::kStatusErrorResolved, self);
   4829       success = false;
   4830     } else {
   4831       RuntimeStats* global_stats = Runtime::Current()->GetStats();
   4832       RuntimeStats* thread_stats = self->GetStats();
   4833       ++global_stats->class_init_count;
   4834       ++thread_stats->class_init_count;
   4835       global_stats->class_init_time_ns += (t1 - t0);
   4836       thread_stats->class_init_time_ns += (t1 - t0);
   4837       // Set the class as initialized except if failed to initialize static fields.
   4838       mirror::Class::SetStatus(klass, mirror::Class::kStatusInitialized, self);
   4839       if (VLOG_IS_ON(class_linker)) {
   4840         std::string temp;
   4841         LOG(INFO) << "Initialized class " << klass->GetDescriptor(&temp) << " from " <<
   4842             klass->GetLocation();
   4843       }
   4844       // Opportunistically set static method trampolines to their destination.
   4845       FixupStaticTrampolines(klass.Get());
   4846     }
   4847   }
   4848   return success;
   4849 }
   4850 
   4851 // We recursively run down the tree of interfaces. We need to do this in the order they are declared
   4852 // and perform the initialization only on those interfaces that contain default methods.
   4853 bool ClassLinker::InitializeDefaultInterfaceRecursive(Thread* self,
   4854                                                       Handle<mirror::Class> iface,
   4855                                                       bool can_init_statics,
   4856                                                       bool can_init_parents) {
   4857   CHECK(iface->IsInterface());
   4858   size_t num_direct_ifaces = iface->NumDirectInterfaces();
   4859   // Only create the (expensive) handle scope if we need it.
   4860   if (UNLIKELY(num_direct_ifaces > 0)) {
   4861     StackHandleScope<1> hs(self);
   4862     MutableHandle<mirror::Class> handle_super_iface(hs.NewHandle<mirror::Class>(nullptr));
   4863     // First we initialize all of iface's super-interfaces recursively.
   4864     for (size_t i = 0; i < num_direct_ifaces; i++) {
   4865       ObjPtr<mirror::Class> super_iface = mirror::Class::GetDirectInterface(self, iface.Get(), i);
   4866       CHECK(super_iface != nullptr) << iface->PrettyDescriptor() << " iface #" << i;
   4867       if (!super_iface->HasBeenRecursivelyInitialized()) {
   4868         // Recursive step
   4869         handle_super_iface.Assign(super_iface);
   4870         if (!InitializeDefaultInterfaceRecursive(self,
   4871                                                  handle_super_iface,
   4872                                                  can_init_statics,
   4873                                                  can_init_parents)) {
   4874           return false;
   4875         }
   4876       }
   4877     }
   4878   }
   4879 
   4880   bool result = true;
   4881   // Then we initialize 'iface' if it has default methods. We do not need to (and in fact must not)
   4882   // initialize if we don't have default methods.
   4883   if (iface->HasDefaultMethods()) {
   4884     result = EnsureInitialized(self, iface, can_init_statics, can_init_parents);
   4885   }
   4886 
   4887   // Mark that this interface has undergone recursive default interface initialization so we know we
   4888   // can skip it on any later class initializations. We do this even if we are not a default
   4889   // interface since we can still avoid the traversal. This is purely a performance optimization.
   4890   if (result) {
   4891     // TODO This should be done in a better way
   4892     ObjectLock<mirror::Class> lock(self, iface);
   4893     iface->SetRecursivelyInitialized();
   4894   }
   4895   return result;
   4896 }
   4897 
   4898 bool ClassLinker::WaitForInitializeClass(Handle<mirror::Class> klass,
   4899                                          Thread* self,
   4900                                          ObjectLock<mirror::Class>& lock)
   4901     REQUIRES_SHARED(Locks::mutator_lock_) {
   4902   while (true) {
   4903     self->AssertNoPendingException();
   4904     CHECK(!klass->IsInitialized());
   4905     lock.WaitIgnoringInterrupts();
   4906 
   4907     // When we wake up, repeat the test for init-in-progress.  If
   4908     // there's an exception pending (only possible if
   4909     // we were not using WaitIgnoringInterrupts), bail out.
   4910     if (self->IsExceptionPending()) {
   4911       WrapExceptionInInitializer(klass);
   4912       mirror::Class::SetStatus(klass, mirror::Class::kStatusErrorResolved, self);
   4913       return false;
   4914     }
   4915     // Spurious wakeup? Go back to waiting.
   4916     if (klass->GetStatus() == mirror::Class::kStatusInitializing) {
   4917       continue;
   4918     }
   4919     if (klass->GetStatus() == mirror::Class::kStatusVerified &&
   4920         Runtime::Current()->IsAotCompiler()) {
   4921       // Compile time initialization failed.
   4922       return false;
   4923     }
   4924     if (klass->IsErroneous()) {
   4925       // The caller wants an exception, but it was thrown in a
   4926       // different thread.  Synthesize one here.
   4927       ThrowNoClassDefFoundError("<clinit> failed for class %s; see exception in other thread",
   4928                                 klass->PrettyDescriptor().c_str());
   4929       VlogClassInitializationFailure(klass);
   4930       return false;
   4931     }
   4932     if (klass->IsInitialized()) {
   4933       return true;
   4934     }
   4935     LOG(FATAL) << "Unexpected class status. " << klass->PrettyClass() << " is "
   4936         << klass->GetStatus();
   4937   }
   4938   UNREACHABLE();
   4939 }
   4940 
   4941 static void ThrowSignatureCheckResolveReturnTypeException(Handle<mirror::Class> klass,
   4942                                                           Handle<mirror::Class> super_klass,
   4943                                                           ArtMethod* method,
   4944                                                           ArtMethod* m)
   4945     REQUIRES_SHARED(Locks::mutator_lock_) {
   4946   DCHECK(Thread::Current()->IsExceptionPending());
   4947   DCHECK(!m->IsProxyMethod());
   4948   const DexFile* dex_file = m->GetDexFile();
   4949   const DexFile::MethodId& method_id = dex_file->GetMethodId(m->GetDexMethodIndex());
   4950   const DexFile::ProtoId& proto_id = dex_file->GetMethodPrototype(method_id);
   4951   dex::TypeIndex return_type_idx = proto_id.return_type_idx_;
   4952   std::string return_type = dex_file->PrettyType(return_type_idx);
   4953   std::string class_loader = mirror::Object::PrettyTypeOf(m->GetDeclaringClass()->GetClassLoader());
   4954   ThrowWrappedLinkageError(klass.Get(),
   4955                            "While checking class %s method %s signature against %s %s: "
   4956                            "Failed to resolve return type %s with %s",
   4957                            mirror::Class::PrettyDescriptor(klass.Get()).c_str(),
   4958                            ArtMethod::PrettyMethod(method).c_str(),
   4959                            super_klass->IsInterface() ? "interface" : "superclass",
   4960                            mirror::Class::PrettyDescriptor(super_klass.Get()).c_str(),
   4961                            return_type.c_str(), class_loader.c_str());
   4962 }
   4963 
   4964 static void ThrowSignatureCheckResolveArgException(Handle<mirror::Class> klass,
   4965                                                    Handle<mirror::Class> super_klass,
   4966                                                    ArtMethod* method,
   4967                                                    ArtMethod* m,
   4968                                                    uint32_t index,
   4969                                                    dex::TypeIndex arg_type_idx)
   4970     REQUIRES_SHARED(Locks::mutator_lock_) {
   4971   DCHECK(Thread::Current()->IsExceptionPending());
   4972   DCHECK(!m->IsProxyMethod());
   4973   const DexFile* dex_file = m->GetDexFile();
   4974   std::string arg_type = dex_file->PrettyType(arg_type_idx);
   4975   std::string class_loader = mirror::Object::PrettyTypeOf(m->GetDeclaringClass()->GetClassLoader());
   4976   ThrowWrappedLinkageError(klass.Get(),
   4977                            "While checking class %s method %s signature against %s %s: "
   4978                            "Failed to resolve arg %u type %s with %s",
   4979                            mirror::Class::PrettyDescriptor(klass.Get()).c_str(),
   4980                            ArtMethod::PrettyMethod(method).c_str(),
   4981                            super_klass->IsInterface() ? "interface" : "superclass",
   4982                            mirror::Class::PrettyDescriptor(super_klass.Get()).c_str(),
   4983                            index, arg_type.c_str(), class_loader.c_str());
   4984 }
   4985 
   4986 static void ThrowSignatureMismatch(Handle<mirror::Class> klass,
   4987                                    Handle<mirror::Class> super_klass,
   4988                                    ArtMethod* method,
   4989                                    const std::string& error_msg)
   4990     REQUIRES_SHARED(Locks::mutator_lock_) {
   4991   ThrowLinkageError(klass.Get(),
   4992                     "Class %s method %s resolves differently in %s %s: %s",
   4993                     mirror::Class::PrettyDescriptor(klass.Get()).c_str(),
   4994                     ArtMethod::PrettyMethod(method).c_str(),
   4995                     super_klass->IsInterface() ? "interface" : "superclass",
   4996                     mirror::Class::PrettyDescriptor(super_klass.Get()).c_str(),
   4997                     error_msg.c_str());
   4998 }
   4999 
   5000 static bool HasSameSignatureWithDifferentClassLoaders(Thread* self,
   5001                                                       Handle<mirror::Class> klass,
   5002                                                       Handle<mirror::Class> super_klass,
   5003                                                       ArtMethod* method1,
   5004                                                       ArtMethod* method2)
   5005     REQUIRES_SHARED(Locks::mutator_lock_) {
   5006   {
   5007     StackHandleScope<1> hs(self);
   5008     Handle<mirror::Class> return_type(hs.NewHandle(method1->GetReturnType(true /* resolve */)));
   5009     if (UNLIKELY(return_type == nullptr)) {
   5010       ThrowSignatureCheckResolveReturnTypeException(klass, super_klass, method1, method1);
   5011       return false;
   5012     }
   5013     ObjPtr<mirror::Class> other_return_type = method2->GetReturnType(true /* resolve */);
   5014     if (UNLIKELY(other_return_type == nullptr)) {
   5015       ThrowSignatureCheckResolveReturnTypeException(klass, super_klass, method1, method2);
   5016       return false;
   5017     }
   5018     if (UNLIKELY(other_return_type != return_type.Get())) {
   5019       ThrowSignatureMismatch(klass, super_klass, method1,
   5020                              StringPrintf("Return types mismatch: %s(%p) vs %s(%p)",
   5021                                           return_type->PrettyClassAndClassLoader().c_str(),
   5022                                           return_type.Get(),
   5023                                           other_return_type->PrettyClassAndClassLoader().c_str(),
   5024                                           other_return_type.Ptr()));
   5025       return false;
   5026     }
   5027   }
   5028   const DexFile::TypeList* types1 = method1->GetParameterTypeList();
   5029   const DexFile::TypeList* types2 = method2->GetParameterTypeList();
   5030   if (types1 == nullptr) {
   5031     if (types2 != nullptr && types2->Size() != 0) {
   5032       ThrowSignatureMismatch(klass, super_klass, method1,
   5033                              StringPrintf("Type list mismatch with %s",
   5034                                           method2->PrettyMethod(true).c_str()));
   5035       return false;
   5036     }
   5037     return true;
   5038   } else if (UNLIKELY(types2 == nullptr)) {
   5039     if (types1->Size() != 0) {
   5040       ThrowSignatureMismatch(klass, super_klass, method1,
   5041                              StringPrintf("Type list mismatch with %s",
   5042                                           method2->PrettyMethod(true).c_str()));
   5043       return false;
   5044     }
   5045     return true;
   5046   }
   5047   uint32_t num_types = types1->Size();
   5048   if (UNLIKELY(num_types != types2->Size())) {
   5049     ThrowSignatureMismatch(klass, super_klass, method1,
   5050                            StringPrintf("Type list mismatch with %s",
   5051                                         method2->PrettyMethod(true).c_str()));
   5052     return false;
   5053   }
   5054   for (uint32_t i = 0; i < num_types; ++i) {
   5055     StackHandleScope<1> hs(self);
   5056     dex::TypeIndex param_type_idx = types1->GetTypeItem(i).type_idx_;
   5057     Handle<mirror::Class> param_type(hs.NewHandle(
   5058         method1->GetClassFromTypeIndex(param_type_idx, true /* resolve */)));
   5059     if (UNLIKELY(param_type == nullptr)) {
   5060       ThrowSignatureCheckResolveArgException(klass, super_klass, method1,
   5061                                              method1, i, param_type_idx);
   5062       return false;
   5063     }
   5064     dex::TypeIndex other_param_type_idx = types2->GetTypeItem(i).type_idx_;
   5065     ObjPtr<mirror::Class> other_param_type =
   5066         method2->GetClassFromTypeIndex(other_param_type_idx, true /* resolve */);
   5067     if (UNLIKELY(other_param_type == nullptr)) {
   5068       ThrowSignatureCheckResolveArgException(klass, super_klass, method1,
   5069                                              method2, i, other_param_type_idx);
   5070       return false;
   5071     }
   5072     if (UNLIKELY(param_type.Get() != other_param_type)) {
   5073       ThrowSignatureMismatch(klass, super_klass, method1,
   5074                              StringPrintf("Parameter %u type mismatch: %s(%p) vs %s(%p)",
   5075                                           i,
   5076                                           param_type->PrettyClassAndClassLoader().c_str(),
   5077                                           param_type.Get(),
   5078                                           other_param_type->PrettyClassAndClassLoader().c_str(),
   5079                                           other_param_type.Ptr()));
   5080       return false;
   5081     }
   5082   }
   5083   return true;
   5084 }
   5085 
   5086 
   5087 bool ClassLinker::ValidateSuperClassDescriptors(Handle<mirror::Class> klass) {
   5088   if (klass->IsInterface()) {
   5089     return true;
   5090   }
   5091   // Begin with the methods local to the superclass.
   5092   Thread* self = Thread::Current();
   5093   StackHandleScope<1> hs(self);
   5094   MutableHandle<mirror::Class> super_klass(hs.NewHandle<mirror::Class>(nullptr));
   5095   if (klass->HasSuperClass() &&
   5096       klass->GetClassLoader() != klass->GetSuperClass()->GetClassLoader()) {
   5097     super_klass.Assign(klass->GetSuperClass());
   5098     for (int i = klass->GetSuperClass()->GetVTableLength() - 1; i >= 0; --i) {
   5099       auto* m = klass->GetVTableEntry(i, image_pointer_size_);
   5100       auto* super_m = klass->GetSuperClass()->GetVTableEntry(i, image_pointer_size_);
   5101       if (m != super_m) {
   5102         if (UNLIKELY(!HasSameSignatureWithDifferentClassLoaders(self,
   5103                                                                 klass,
   5104                                                                 super_klass,
   5105                                                                 m,
   5106                                                                 super_m))) {
   5107           self->AssertPendingException();
   5108           return false;
   5109         }
   5110       }
   5111     }
   5112   }
   5113   for (int32_t i = 0; i < klass->GetIfTableCount(); ++i) {
   5114     super_klass.Assign(klass->GetIfTable()->GetInterface(i));
   5115     if (klass->GetClassLoader() != super_klass->GetClassLoader()) {
   5116       uint32_t num_methods = super_klass->NumVirtualMethods();
   5117       for (uint32_t j = 0; j < num_methods; ++j) {
   5118         auto* m = klass->GetIfTable()->GetMethodArray(i)->GetElementPtrSize<ArtMethod*>(
   5119             j, image_pointer_size_);
   5120         auto* super_m = super_klass->GetVirtualMethod(j, image_pointer_size_);
   5121         if (m != super_m) {
   5122           if (UNLIKELY(!HasSameSignatureWithDifferentClassLoaders(self,
   5123                                                                   klass,
   5124                                                                   super_klass,
   5125                                                                   m,
   5126                                                                   super_m))) {
   5127             self->AssertPendingException();
   5128             return false;
   5129           }
   5130         }
   5131       }
   5132     }
   5133   }
   5134   return true;
   5135 }
   5136 
   5137 bool ClassLinker::EnsureInitialized(Thread* self,
   5138                                     Handle<mirror::Class> c,
   5139                                     bool can_init_fields,
   5140                                     bool can_init_parents) {
   5141   DCHECK(c != nullptr);
   5142   if (c->IsInitialized()) {
   5143     EnsureSkipAccessChecksMethods(c, image_pointer_size_);
   5144     self->AssertNoPendingException();
   5145     return true;
   5146   }
   5147   const bool success = InitializeClass(self, c, can_init_fields, can_init_parents);
   5148   if (!success) {
   5149     if (can_init_fields && can_init_parents) {
   5150       CHECK(self->IsExceptionPending()) << c->PrettyClass();
   5151     }
   5152   } else {
   5153     self->AssertNoPendingException();
   5154   }
   5155   return success;
   5156 }
   5157 
   5158 void ClassLinker::FixupTemporaryDeclaringClass(ObjPtr<mirror::Class> temp_class,
   5159                                                ObjPtr<mirror::Class> new_class) {
   5160   DCHECK_EQ(temp_class->NumInstanceFields(), 0u);
   5161   for (ArtField& field : new_class->GetIFields()) {
   5162     if (field.GetDeclaringClass() == temp_class) {
   5163       field.SetDeclaringClass(new_class);
   5164     }
   5165   }
   5166 
   5167   DCHECK_EQ(temp_class->NumStaticFields(), 0u);
   5168   for (ArtField& field : new_class->GetSFields()) {
   5169     if (field.GetDeclaringClass() == temp_class) {
   5170       field.SetDeclaringClass(new_class);
   5171     }
   5172   }
   5173 
   5174   DCHECK_EQ(temp_class->NumDirectMethods(), 0u);
   5175   DCHECK_EQ(temp_class->NumVirtualMethods(), 0u);
   5176   for (auto& method : new_class->GetMethods(image_pointer_size_)) {
   5177     if (method.GetDeclaringClass() == temp_class) {
   5178       method.SetDeclaringClass(new_class);
   5179     }
   5180   }
   5181 
   5182   // Make sure the remembered set and mod-union tables know that we updated some of the native
   5183   // roots.
   5184   Runtime::Current()->GetHeap()->WriteBarrierEveryFieldOf(new_class);
   5185 }
   5186 
   5187 void ClassLinker::RegisterClassLoader(ObjPtr<mirror::ClassLoader> class_loader) {
   5188   CHECK(class_loader->GetAllocator() == nullptr);
   5189   CHECK(class_loader->GetClassTable() == nullptr);
   5190   Thread* const self = Thread::Current();
   5191   ClassLoaderData data;
   5192   data.weak_root = self->GetJniEnv()->vm->AddWeakGlobalRef(self, class_loader);
   5193   // Create and set the class table.
   5194   data.class_table = new ClassTable;
   5195   class_loader->SetClassTable(data.class_table);
   5196   // Create and set the linear allocator.
   5197   data.allocator = Runtime::Current()->CreateLinearAlloc();
   5198   class_loader->SetAllocator(data.allocator);
   5199   // Add to the list so that we know to free the data later.
   5200   class_loaders_.push_back(data);
   5201 }
   5202 
   5203 ClassTable* ClassLinker::InsertClassTableForClassLoader(ObjPtr<mirror::ClassLoader> class_loader) {
   5204   if (class_loader == nullptr) {
   5205     return &boot_class_table_;
   5206   }
   5207   ClassTable* class_table = class_loader->GetClassTable();
   5208   if (class_table == nullptr) {
   5209     RegisterClassLoader(class_loader);
   5210     class_table = class_loader->GetClassTable();
   5211     DCHECK(class_table != nullptr);
   5212   }
   5213   return class_table;
   5214 }
   5215 
   5216 ClassTable* ClassLinker::ClassTableForClassLoader(ObjPtr<mirror::ClassLoader> class_loader) {
   5217   return class_loader == nullptr ? &boot_class_table_ : class_loader->GetClassTable();
   5218 }
   5219 
   5220 static ImTable* FindSuperImt(ObjPtr<mirror::Class> klass, PointerSize pointer_size)
   5221     REQUIRES_SHARED(Locks::mutator_lock_) {
   5222   while (klass->HasSuperClass()) {
   5223     klass = klass->GetSuperClass();
   5224     if (klass->ShouldHaveImt()) {
   5225       return klass->GetImt(pointer_size);
   5226     }
   5227   }
   5228   return nullptr;
   5229 }
   5230 
   5231 bool ClassLinker::LinkClass(Thread* self,
   5232                             const char* descriptor,
   5233                             Handle<mirror::Class> klass,
   5234                             Handle<mirror::ObjectArray<mirror::Class>> interfaces,
   5235                             MutableHandle<mirror::Class>* h_new_class_out) {
   5236   CHECK_EQ(mirror::Class::kStatusLoaded, klass->GetStatus());
   5237 
   5238   if (!LinkSuperClass(klass)) {
   5239     return false;
   5240   }
   5241   ArtMethod* imt_data[ImTable::kSize];
   5242   // If there are any new conflicts compared to super class.
   5243   bool new_conflict = false;
   5244   std::fill_n(imt_data, arraysize(imt_data), Runtime::Current()->GetImtUnimplementedMethod());
   5245   if (!LinkMethods(self, klass, interfaces, &new_conflict, imt_data)) {
   5246     return false;
   5247   }
   5248   if (!LinkInstanceFields(self, klass)) {
   5249     return false;
   5250   }
   5251   size_t class_size;
   5252   if (!LinkStaticFields(self, klass, &class_size)) {
   5253     return false;
   5254   }
   5255   CreateReferenceInstanceOffsets(klass);
   5256   CHECK_EQ(mirror::Class::kStatusLoaded, klass->GetStatus());
   5257 
   5258   ImTable* imt = nullptr;
   5259   if (klass->ShouldHaveImt()) {
   5260     // If there are any new conflicts compared to the super class we can not make a copy. There
   5261     // can be cases where both will have a conflict method at the same slot without having the same
   5262     // set of conflicts. In this case, we can not share the IMT since the conflict table slow path
   5263     // will possibly create a table that is incorrect for either of the classes.
   5264     // Same IMT with new_conflict does not happen very often.
   5265     if (!new_conflict) {
   5266       ImTable* super_imt = FindSuperImt(klass.Get(), image_pointer_size_);
   5267       if (super_imt != nullptr) {
   5268         bool imt_equals = true;
   5269         for (size_t i = 0; i < ImTable::kSize && imt_equals; ++i) {
   5270           imt_equals = imt_equals && (super_imt->Get(i, image_pointer_size_) == imt_data[i]);
   5271         }
   5272         if (imt_equals) {
   5273           imt = super_imt;
   5274         }
   5275       }
   5276     }
   5277     if (imt == nullptr) {
   5278       LinearAlloc* allocator = GetAllocatorForClassLoader(klass->GetClassLoader());
   5279       imt = reinterpret_cast<ImTable*>(
   5280           allocator->Alloc(self, ImTable::SizeInBytes(image_pointer_size_)));
   5281       if (imt == nullptr) {
   5282         return false;
   5283       }
   5284       imt->Populate(imt_data, image_pointer_size_);
   5285     }
   5286   }
   5287 
   5288   if (!klass->IsTemp() || (!init_done_ && klass->GetClassSize() == class_size)) {
   5289     // We don't need to retire this class as it has no embedded tables or it was created the
   5290     // correct size during class linker initialization.
   5291     CHECK_EQ(klass->GetClassSize(), class_size) << klass->PrettyDescriptor();
   5292 
   5293     if (klass->ShouldHaveEmbeddedVTable()) {
   5294       klass->PopulateEmbeddedVTable(image_pointer_size_);
   5295     }
   5296     if (klass->ShouldHaveImt()) {
   5297       klass->SetImt(imt, image_pointer_size_);
   5298     }
   5299 
   5300     // Update CHA info based on whether we override methods.
   5301     // Have to do this before setting the class as resolved which allows
   5302     // instantiation of klass.
   5303     Runtime::Current()->GetClassHierarchyAnalysis()->UpdateAfterLoadingOf(klass);
   5304 
   5305     // This will notify waiters on klass that saw the not yet resolved
   5306     // class in the class_table_ during EnsureResolved.
   5307     mirror::Class::SetStatus(klass, mirror::Class::kStatusResolved, self);
   5308     h_new_class_out->Assign(klass.Get());
   5309   } else {
   5310     CHECK(!klass->IsResolved());
   5311     // Retire the temporary class and create the correctly sized resolved class.
   5312     StackHandleScope<1> hs(self);
   5313     auto h_new_class = hs.NewHandle(klass->CopyOf(self, class_size, imt, image_pointer_size_));
   5314     // Set arrays to null since we don't want to have multiple classes with the same ArtField or
   5315     // ArtMethod array pointers. If this occurs, it causes bugs in remembered sets since the GC
   5316     // may not see any references to the target space and clean the card for a class if another
   5317     // class had the same array pointer.
   5318     klass->SetMethodsPtrUnchecked(nullptr, 0, 0);
   5319     klass->SetSFieldsPtrUnchecked(nullptr);
   5320     klass->SetIFieldsPtrUnchecked(nullptr);
   5321     if (UNLIKELY(h_new_class == nullptr)) {
   5322       self->AssertPendingOOMException();
   5323       mirror::Class::SetStatus(klass, mirror::Class::kStatusErrorUnresolved, self);
   5324       return false;
   5325     }
   5326 
   5327     CHECK_EQ(h_new_class->GetClassSize(), class_size);
   5328     ObjectLock<mirror::Class> lock(self, h_new_class);
   5329     FixupTemporaryDeclaringClass(klass.Get(), h_new_class.Get());
   5330 
   5331     {
   5332       WriterMutexLock mu(self, *Locks::classlinker_classes_lock_);
   5333       ObjPtr<mirror::ClassLoader> const class_loader = h_new_class.Get()->GetClassLoader();
   5334       ClassTable* const table = InsertClassTableForClassLoader(class_loader);
   5335       ObjPtr<mirror::Class> existing = table->UpdateClass(descriptor, h_new_class.Get(),
   5336                                                    ComputeModifiedUtf8Hash(descriptor));
   5337       if (class_loader != nullptr) {
   5338         // We updated the class in the class table, perform the write barrier so that the GC knows
   5339         // about the change.
   5340         Runtime::Current()->GetHeap()->WriteBarrierEveryFieldOf(class_loader);
   5341       }
   5342       CHECK_EQ(existing, klass.Get());
   5343       if (log_new_roots_) {
   5344         new_class_roots_.push_back(GcRoot<mirror::Class>(h_new_class.Get()));
   5345       }
   5346     }
   5347 
   5348     // Update CHA info based on whether we override methods.
   5349     // Have to do this before setting the class as resolved which allows
   5350     // instantiation of klass.
   5351     Runtime::Current()->GetClassHierarchyAnalysis()->UpdateAfterLoadingOf(h_new_class);
   5352 
   5353     // This will notify waiters on temp class that saw the not yet resolved class in the
   5354     // class_table_ during EnsureResolved.
   5355     mirror::Class::SetStatus(klass, mirror::Class::kStatusRetired, self);
   5356 
   5357     CHECK_EQ(h_new_class->GetStatus(), mirror::Class::kStatusResolving);
   5358     // This will notify waiters on new_class that saw the not yet resolved
   5359     // class in the class_table_ during EnsureResolved.
   5360     mirror::Class::SetStatus(h_new_class, mirror::Class::kStatusResolved, self);
   5361     // Return the new class.
   5362     h_new_class_out->Assign(h_new_class.Get());
   5363   }
   5364   return true;
   5365 }
   5366 
   5367 static void CountMethodsAndFields(ClassDataItemIterator& dex_data,
   5368                                   size_t* virtual_methods,
   5369                                   size_t* direct_methods,
   5370                                   size_t* static_fields,
   5371                                   size_t* instance_fields) {
   5372   *virtual_methods = *direct_methods = *static_fields = *instance_fields = 0;
   5373 
   5374   while (dex_data.HasNextStaticField()) {
   5375     dex_data.Next();
   5376     (*static_fields)++;
   5377   }
   5378   while (dex_data.HasNextInstanceField()) {
   5379     dex_data.Next();
   5380     (*instance_fields)++;
   5381   }
   5382   while (dex_data.HasNextDirectMethod()) {
   5383     (*direct_methods)++;
   5384     dex_data.Next();
   5385   }
   5386   while (dex_data.HasNextVirtualMethod()) {
   5387     (*virtual_methods)++;
   5388     dex_data.Next();
   5389   }
   5390   DCHECK(!dex_data.HasNext());
   5391 }
   5392 
   5393 static void DumpClass(std::ostream& os,
   5394                       const DexFile& dex_file, const DexFile::ClassDef& dex_class_def,
   5395                       const char* suffix) {
   5396   ClassDataItemIterator dex_data(dex_file, dex_file.GetClassData(dex_class_def));
   5397   os << dex_file.GetClassDescriptor(dex_class_def) << suffix << ":\n";
   5398   os << " Static fields:\n";
   5399   while (dex_data.HasNextStaticField()) {
   5400     const DexFile::FieldId& id = dex_file.GetFieldId(dex_data.GetMemberIndex());
   5401     os << "  " << dex_file.GetFieldTypeDescriptor(id) << " " << dex_file.GetFieldName(id) << "\n";
   5402     dex_data.Next();
   5403   }
   5404   os << " Instance fields:\n";
   5405   while (dex_data.HasNextInstanceField()) {
   5406     const DexFile::FieldId& id = dex_file.GetFieldId(dex_data.GetMemberIndex());
   5407     os << "  " << dex_file.GetFieldTypeDescriptor(id) << " " << dex_file.GetFieldName(id) << "\n";
   5408     dex_data.Next();
   5409   }
   5410   os << " Direct methods:\n";
   5411   while (dex_data.HasNextDirectMethod()) {
   5412     const DexFile::MethodId& id = dex_file.GetMethodId(dex_data.GetMemberIndex());
   5413     os << "  " << dex_file.GetMethodName(id) << dex_file.GetMethodSignature(id).ToString() << "\n";
   5414     dex_data.Next();
   5415   }
   5416   os << " Virtual methods:\n";
   5417   while (dex_data.HasNextVirtualMethod()) {
   5418     const DexFile::MethodId& id = dex_file.GetMethodId(dex_data.GetMemberIndex());
   5419     os << "  " << dex_file.GetMethodName(id) << dex_file.GetMethodSignature(id).ToString() << "\n";
   5420     dex_data.Next();
   5421   }
   5422 }
   5423 
   5424 static std::string DumpClasses(const DexFile& dex_file1,
   5425                                const DexFile::ClassDef& dex_class_def1,
   5426                                const DexFile& dex_file2,
   5427                                const DexFile::ClassDef& dex_class_def2) {
   5428   std::ostringstream os;
   5429   DumpClass(os, dex_file1, dex_class_def1, " (Compile time)");
   5430   DumpClass(os, dex_file2, dex_class_def2, " (Runtime)");
   5431   return os.str();
   5432 }
   5433 
   5434 
   5435 // Very simple structural check on whether the classes match. Only compares the number of
   5436 // methods and fields.
   5437 static bool SimpleStructuralCheck(const DexFile& dex_file1,
   5438                                   const DexFile::ClassDef& dex_class_def1,
   5439                                   const DexFile& dex_file2,
   5440                                   const DexFile::ClassDef& dex_class_def2,
   5441                                   std::string* error_msg) {
   5442   ClassDataItemIterator dex_data1(dex_file1, dex_file1.GetClassData(dex_class_def1));
   5443   ClassDataItemIterator dex_data2(dex_file2, dex_file2.GetClassData(dex_class_def2));
   5444 
   5445   // Counters for current dex file.
   5446   size_t dex_virtual_methods1, dex_direct_methods1, dex_static_fields1, dex_instance_fields1;
   5447   CountMethodsAndFields(dex_data1,
   5448                         &dex_virtual_methods1,
   5449                         &dex_direct_methods1,
   5450                         &dex_static_fields1,
   5451                         &dex_instance_fields1);
   5452   // Counters for compile-time dex file.
   5453   size_t dex_virtual_methods2, dex_direct_methods2, dex_static_fields2, dex_instance_fields2;
   5454   CountMethodsAndFields(dex_data2,
   5455                         &dex_virtual_methods2,
   5456                         &dex_direct_methods2,
   5457                         &dex_static_fields2,
   5458                         &dex_instance_fields2);
   5459 
   5460   if (dex_virtual_methods1 != dex_virtual_methods2) {
   5461     std::string class_dump = DumpClasses(dex_file1, dex_class_def1, dex_file2, dex_class_def2);
   5462     *error_msg = StringPrintf("Virtual method count off: %zu vs %zu\n%s",
   5463                               dex_virtual_methods1,
   5464                               dex_virtual_methods2,
   5465                               class_dump.c_str());
   5466     return false;
   5467   }
   5468   if (dex_direct_methods1 != dex_direct_methods2) {
   5469     std::string class_dump = DumpClasses(dex_file1, dex_class_def1, dex_file2, dex_class_def2);
   5470     *error_msg = StringPrintf("Direct method count off: %zu vs %zu\n%s",
   5471                               dex_direct_methods1,
   5472                               dex_direct_methods2,
   5473                               class_dump.c_str());
   5474     return false;
   5475   }
   5476   if (dex_static_fields1 != dex_static_fields2) {
   5477     std::string class_dump = DumpClasses(dex_file1, dex_class_def1, dex_file2, dex_class_def2);
   5478     *error_msg = StringPrintf("Static field count off: %zu vs %zu\n%s",
   5479                               dex_static_fields1,
   5480                               dex_static_fields2,
   5481                               class_dump.c_str());
   5482     return false;
   5483   }
   5484   if (dex_instance_fields1 != dex_instance_fields2) {
   5485     std::string class_dump = DumpClasses(dex_file1, dex_class_def1, dex_file2, dex_class_def2);
   5486     *error_msg = StringPrintf("Instance field count off: %zu vs %zu\n%s",
   5487                               dex_instance_fields1,
   5488                               dex_instance_fields2,
   5489                               class_dump.c_str());
   5490     return false;
   5491   }
   5492 
   5493   return true;
   5494 }
   5495 
   5496 // Checks whether a the super-class changed from what we had at compile-time. This would
   5497 // invalidate quickening.
   5498 static bool CheckSuperClassChange(Handle<mirror::Class> klass,
   5499                                   const DexFile& dex_file,
   5500                                   const DexFile::ClassDef& class_def,
   5501                                   ObjPtr<mirror::Class> super_class)
   5502     REQUIRES_SHARED(Locks::mutator_lock_) {
   5503   // Check for unexpected changes in the superclass.
   5504   // Quick check 1) is the super_class class-loader the boot class loader? This always has
   5505   // precedence.
   5506   if (super_class->GetClassLoader() != nullptr &&
   5507       // Quick check 2) different dex cache? Breaks can only occur for different dex files,
   5508       // which is implied by different dex cache.
   5509       klass->GetDexCache() != super_class->GetDexCache()) {
   5510     // Now comes the expensive part: things can be broken if (a) the klass' dex file has a
   5511     // definition for the super-class, and (b) the files are in separate oat files. The oat files
   5512     // are referenced from the dex file, so do (b) first. Only relevant if we have oat files.
   5513     const OatDexFile* class_oat_dex_file = dex_file.GetOatDexFile();
   5514     const OatFile* class_oat_file = nullptr;
   5515     if (class_oat_dex_file != nullptr) {
   5516       class_oat_file = class_oat_dex_file->GetOatFile();
   5517     }
   5518 
   5519     if (class_oat_file != nullptr) {
   5520       const OatDexFile* loaded_super_oat_dex_file = super_class->GetDexFile().GetOatDexFile();
   5521       const OatFile* loaded_super_oat_file = nullptr;
   5522       if (loaded_super_oat_dex_file != nullptr) {
   5523         loaded_super_oat_file = loaded_super_oat_dex_file->GetOatFile();
   5524       }
   5525 
   5526       if (loaded_super_oat_file != nullptr && class_oat_file != loaded_super_oat_file) {
   5527         // Now check (a).
   5528         const DexFile::ClassDef* super_class_def = dex_file.FindClassDef(class_def.superclass_idx_);
   5529         if (super_class_def != nullptr) {
   5530           // Uh-oh, we found something. Do our check.
   5531           std::string error_msg;
   5532           if (!SimpleStructuralCheck(dex_file, *super_class_def,
   5533                                      super_class->GetDexFile(), *super_class->GetClassDef(),
   5534                                      &error_msg)) {
   5535             // Print a warning to the log. This exception might be caught, e.g., as common in test
   5536             // drivers. When the class is later tried to be used, we re-throw a new instance, as we
   5537             // only save the type of the exception.
   5538             LOG(WARNING) << "Incompatible structural change detected: " <<
   5539                 StringPrintf(
   5540                     "Structural change of %s is hazardous (%s at compile time, %s at runtime): %s",
   5541                     dex_file.PrettyType(super_class_def->class_idx_).c_str(),
   5542                     class_oat_file->GetLocation().c_str(),
   5543                     loaded_super_oat_file->GetLocation().c_str(),
   5544                     error_msg.c_str());
   5545             ThrowIncompatibleClassChangeError(klass.Get(),
   5546                 "Structural change of %s is hazardous (%s at compile time, %s at runtime): %s",
   5547                 dex_file.PrettyType(super_class_def->class_idx_).c_str(),
   5548                 class_oat_file->GetLocation().c_str(),
   5549                 loaded_super_oat_file->GetLocation().c_str(),
   5550                 error_msg.c_str());
   5551             return false;
   5552           }
   5553         }
   5554       }
   5555     }
   5556   }
   5557   return true;
   5558 }
   5559 
   5560 bool ClassLinker::LoadSuperAndInterfaces(Handle<mirror::Class> klass, const DexFile& dex_file) {
   5561   CHECK_EQ(mirror::Class::kStatusIdx, klass->GetStatus());
   5562   const DexFile::ClassDef& class_def = dex_file.GetClassDef(klass->GetDexClassDefIndex());
   5563   dex::TypeIndex super_class_idx = class_def.superclass_idx_;
   5564   if (super_class_idx.IsValid()) {
   5565     // Check that a class does not inherit from itself directly.
   5566     //
   5567     // TODO: This is a cheap check to detect the straightforward case
   5568     // of a class extending itself (b/28685551), but we should do a
   5569     // proper cycle detection on loaded classes, to detect all cases
   5570     // of class circularity errors (b/28830038).
   5571     if (super_class_idx == class_def.class_idx_) {
   5572       ThrowClassCircularityError(klass.Get(),
   5573                                  "Class %s extends itself",
   5574                                  klass->PrettyDescriptor().c_str());
   5575       return false;
   5576     }
   5577 
   5578     ObjPtr<mirror::Class> super_class = ResolveType(dex_file, super_class_idx, klass.Get());
   5579     if (super_class == nullptr) {
   5580       DCHECK(Thread::Current()->IsExceptionPending());
   5581       return false;
   5582     }
   5583     // Verify
   5584     if (!klass->CanAccess(super_class)) {
   5585       ThrowIllegalAccessError(klass.Get(), "Class %s extended by class %s is inaccessible",
   5586                               super_class->PrettyDescriptor().c_str(),
   5587                               klass->PrettyDescriptor().c_str());
   5588       return false;
   5589     }
   5590     CHECK(super_class->IsResolved());
   5591     klass->SetSuperClass(super_class);
   5592 
   5593     if (!CheckSuperClassChange(klass, dex_file, class_def, super_class)) {
   5594       DCHECK(Thread::Current()->IsExceptionPending());
   5595       return false;
   5596     }
   5597   }
   5598   const DexFile::TypeList* interfaces = dex_file.GetInterfacesList(class_def);
   5599   if (interfaces != nullptr) {
   5600     for (size_t i = 0; i < interfaces->Size(); i++) {
   5601       dex::TypeIndex idx = interfaces->GetTypeItem(i).type_idx_;
   5602       ObjPtr<mirror::Class> interface = ResolveType(dex_file, idx, klass.Get());
   5603       if (interface == nullptr) {
   5604         DCHECK(Thread::Current()->IsExceptionPending());
   5605         return false;
   5606       }
   5607       // Verify
   5608       if (!klass->CanAccess(interface)) {
   5609         // TODO: the RI seemed to ignore this in my testing.
   5610         ThrowIllegalAccessError(klass.Get(),
   5611                                 "Interface %s implemented by class %s is inaccessible",
   5612                                 interface->PrettyDescriptor().c_str(),
   5613                                 klass->PrettyDescriptor().c_str());
   5614         return false;
   5615       }
   5616     }
   5617   }
   5618   // Mark the class as loaded.
   5619   mirror::Class::SetStatus(klass, mirror::Class::kStatusLoaded, nullptr);
   5620   return true;
   5621 }
   5622 
   5623 bool ClassLinker::LinkSuperClass(Handle<mirror::Class> klass) {
   5624   CHECK(!klass->IsPrimitive());
   5625   ObjPtr<mirror::Class> super = klass->GetSuperClass();
   5626   if (klass.Get() == GetClassRoot(kJavaLangObject)) {
   5627     if (super != nullptr) {
   5628       ThrowClassFormatError(klass.Get(), "java.lang.Object must not have a superclass");
   5629       return false;
   5630     }
   5631     return true;
   5632   }
   5633   if (super == nullptr) {
   5634     ThrowLinkageError(klass.Get(), "No superclass defined for class %s",
   5635                       klass->PrettyDescriptor().c_str());
   5636     return false;
   5637   }
   5638   // Verify
   5639   if (super->IsFinal() || super->IsInterface()) {
   5640     ThrowIncompatibleClassChangeError(klass.Get(),
   5641                                       "Superclass %s of %s is %s",
   5642                                       super->PrettyDescriptor().c_str(),
   5643                                       klass->PrettyDescriptor().c_str(),
   5644                                       super->IsFinal() ? "declared final" : "an interface");
   5645     return false;
   5646   }
   5647   if (!klass->CanAccess(super)) {
   5648     ThrowIllegalAccessError(klass.Get(), "Superclass %s is inaccessible to class %s",
   5649                             super->PrettyDescriptor().c_str(),
   5650                             klass->PrettyDescriptor().c_str());
   5651     return false;
   5652   }
   5653 
   5654   // Inherit kAccClassIsFinalizable from the superclass in case this
   5655   // class doesn't override finalize.
   5656   if (super->IsFinalizable()) {
   5657     klass->SetFinalizable();
   5658   }
   5659 
   5660   // Inherit class loader flag form super class.
   5661   if (super->IsClassLoaderClass()) {
   5662     klass->SetClassLoaderClass();
   5663   }
   5664 
   5665   // Inherit reference flags (if any) from the superclass.
   5666   uint32_t reference_flags = (super->GetClassFlags() & mirror::kClassFlagReference);
   5667   if (reference_flags != 0) {
   5668     CHECK_EQ(klass->GetClassFlags(), 0u);
   5669     klass->SetClassFlags(klass->GetClassFlags() | reference_flags);
   5670   }
   5671   // Disallow custom direct subclasses of java.lang.ref.Reference.
   5672   if (init_done_ && super == GetClassRoot(kJavaLangRefReference)) {
   5673     ThrowLinkageError(klass.Get(),
   5674                       "Class %s attempts to subclass java.lang.ref.Reference, which is not allowed",
   5675                       klass->PrettyDescriptor().c_str());
   5676     return false;
   5677   }
   5678 
   5679   if (kIsDebugBuild) {
   5680     // Ensure super classes are fully resolved prior to resolving fields..
   5681     while (super != nullptr) {
   5682       CHECK(super->IsResolved());
   5683       super = super->GetSuperClass();
   5684     }
   5685   }
   5686   return true;
   5687 }
   5688 
   5689 // Populate the class vtable and itable. Compute return type indices.
   5690 bool ClassLinker::LinkMethods(Thread* self,
   5691                               Handle<mirror::Class> klass,
   5692                               Handle<mirror::ObjectArray<mirror::Class>> interfaces,
   5693                               bool* out_new_conflict,
   5694                               ArtMethod** out_imt) {
   5695   self->AllowThreadSuspension();
   5696   // A map from vtable indexes to the method they need to be updated to point to. Used because we
   5697   // need to have default methods be in the virtuals array of each class but we don't set that up
   5698   // until LinkInterfaceMethods.
   5699   std::unordered_map<size_t, ClassLinker::MethodTranslation> default_translations;
   5700   // Link virtual methods then interface methods.
   5701   // We set up the interface lookup table first because we need it to determine if we need to update
   5702   // any vtable entries with new default method implementations.
   5703   return SetupInterfaceLookupTable(self, klass, interfaces)
   5704           && LinkVirtualMethods(self, klass, /*out*/ &default_translations)
   5705           && LinkInterfaceMethods(self, klass, default_translations, out_new_conflict, out_imt);
   5706 }
   5707 
   5708 // Comparator for name and signature of a method, used in finding overriding methods. Implementation
   5709 // avoids the use of handles, if it didn't then rather than compare dex files we could compare dex
   5710 // caches in the implementation below.
   5711 class MethodNameAndSignatureComparator FINAL : public ValueObject {
   5712  public:
   5713   explicit MethodNameAndSignatureComparator(ArtMethod* method)
   5714       REQUIRES_SHARED(Locks::mutator_lock_) :
   5715       dex_file_(method->GetDexFile()), mid_(&dex_file_->GetMethodId(method->GetDexMethodIndex())),
   5716       name_(nullptr), name_len_(0) {
   5717     DCHECK(!method->IsProxyMethod()) << method->PrettyMethod();
   5718   }
   5719 
   5720   const char* GetName() {
   5721     if (name_ == nullptr) {
   5722       name_ = dex_file_->StringDataAndUtf16LengthByIdx(mid_->name_idx_, &name_len_);
   5723     }
   5724     return name_;
   5725   }
   5726 
   5727   bool HasSameNameAndSignature(ArtMethod* other)
   5728       REQUIRES_SHARED(Locks::mutator_lock_) {
   5729     DCHECK(!other->IsProxyMethod()) << other->PrettyMethod();
   5730     const DexFile* other_dex_file = other->GetDexFile();
   5731     const DexFile::MethodId& other_mid = other_dex_file->GetMethodId(other->GetDexMethodIndex());
   5732     if (dex_file_ == other_dex_file) {
   5733       return mid_->name_idx_ == other_mid.name_idx_ && mid_->proto_idx_ == other_mid.proto_idx_;
   5734     }
   5735     GetName();  // Only used to make sure its calculated.
   5736     uint32_t other_name_len;
   5737     const char* other_name = other_dex_file->StringDataAndUtf16LengthByIdx(other_mid.name_idx_,
   5738                                                                            &other_name_len);
   5739     if (name_len_ != other_name_len || strcmp(name_, other_name) != 0) {
   5740       return false;
   5741     }
   5742     return dex_file_->GetMethodSignature(*mid_) == other_dex_file->GetMethodSignature(other_mid);
   5743   }
   5744 
   5745  private:
   5746   // Dex file for the method to compare against.
   5747   const DexFile* const dex_file_;
   5748   // MethodId for the method to compare against.
   5749   const DexFile::MethodId* const mid_;
   5750   // Lazily computed name from the dex file's strings.
   5751   const char* name_;
   5752   // Lazily computed name length.
   5753   uint32_t name_len_;
   5754 };
   5755 
   5756 class LinkVirtualHashTable {
   5757  public:
   5758   LinkVirtualHashTable(Handle<mirror::Class> klass,
   5759                        size_t hash_size,
   5760                        uint32_t* hash_table,
   5761                        PointerSize image_pointer_size)
   5762      : klass_(klass),
   5763        hash_size_(hash_size),
   5764        hash_table_(hash_table),
   5765        image_pointer_size_(image_pointer_size) {
   5766     std::fill(hash_table_, hash_table_ + hash_size_, invalid_index_);
   5767   }
   5768 
   5769   void Add(uint32_t virtual_method_index) REQUIRES_SHARED(Locks::mutator_lock_) {
   5770     ArtMethod* local_method = klass_->GetVirtualMethodDuringLinking(
   5771         virtual_method_index, image_pointer_size_);
   5772     const char* name = local_method->GetInterfaceMethodIfProxy(image_pointer_size_)->GetName();
   5773     uint32_t hash = ComputeModifiedUtf8Hash(name);
   5774     uint32_t index = hash % hash_size_;
   5775     // Linear probe until we have an empty slot.
   5776     while (hash_table_[index] != invalid_index_) {
   5777       if (++index == hash_size_) {
   5778         index = 0;
   5779       }
   5780     }
   5781     hash_table_[index] = virtual_method_index;
   5782   }
   5783 
   5784   uint32_t FindAndRemove(MethodNameAndSignatureComparator* comparator)
   5785       REQUIRES_SHARED(Locks::mutator_lock_) {
   5786     const char* name = comparator->GetName();
   5787     uint32_t hash = ComputeModifiedUtf8Hash(name);
   5788     size_t index = hash % hash_size_;
   5789     while (true) {
   5790       const uint32_t value = hash_table_[index];
   5791       // Since linear probe makes continuous blocks, hitting an invalid index means we are done
   5792       // the block and can safely assume not found.
   5793       if (value == invalid_index_) {
   5794         break;
   5795       }
   5796       if (value != removed_index_) {  // This signifies not already overriden.
   5797         ArtMethod* virtual_method =
   5798             klass_->GetVirtualMethodDuringLinking(value, image_pointer_size_);
   5799         if (comparator->HasSameNameAndSignature(
   5800             virtual_method->GetInterfaceMethodIfProxy(image_pointer_size_))) {
   5801           hash_table_[index] = removed_index_;
   5802           return value;
   5803         }
   5804       }
   5805       if (++index == hash_size_) {
   5806         index = 0;
   5807       }
   5808     }
   5809     return GetNotFoundIndex();
   5810   }
   5811 
   5812   static uint32_t GetNotFoundIndex() {
   5813     return invalid_index_;
   5814   }
   5815 
   5816  private:
   5817   static const uint32_t invalid_index_;
   5818   static const uint32_t removed_index_;
   5819 
   5820   Handle<mirror::Class> klass_;
   5821   const size_t hash_size_;
   5822   uint32_t* const hash_table_;
   5823   const PointerSize image_pointer_size_;
   5824 };
   5825 
   5826 const uint32_t LinkVirtualHashTable::invalid_index_ = std::numeric_limits<uint32_t>::max();
   5827 const uint32_t LinkVirtualHashTable::removed_index_ = std::numeric_limits<uint32_t>::max() - 1;
   5828 
   5829 bool ClassLinker::LinkVirtualMethods(
   5830     Thread* self,
   5831     Handle<mirror::Class> klass,
   5832     /*out*/std::unordered_map<size_t, ClassLinker::MethodTranslation>* default_translations) {
   5833   const size_t num_virtual_methods = klass->NumVirtualMethods();
   5834   if (klass->IsInterface()) {
   5835     // No vtable.
   5836     if (!IsUint<16>(num_virtual_methods)) {
   5837       ThrowClassFormatError(klass.Get(), "Too many methods on interface: %zu", num_virtual_methods);
   5838       return false;
   5839     }
   5840     bool has_defaults = false;
   5841     // Assign each method an IMT index and set the default flag.
   5842     for (size_t i = 0; i < num_virtual_methods; ++i) {
   5843       ArtMethod* m = klass->GetVirtualMethodDuringLinking(i, image_pointer_size_);
   5844       m->SetMethodIndex(i);
   5845       if (!m->IsAbstract()) {
   5846         m->SetAccessFlags(m->GetAccessFlags() | kAccDefault);
   5847         has_defaults = true;
   5848       }
   5849     }
   5850     // Mark that we have default methods so that we won't need to scan the virtual_methods_ array
   5851     // during initialization. This is a performance optimization. We could simply traverse the
   5852     // virtual_methods_ array again during initialization.
   5853     if (has_defaults) {
   5854       klass->SetHasDefaultMethods();
   5855     }
   5856     return true;
   5857   } else if (klass->HasSuperClass()) {
   5858     const size_t super_vtable_length = klass->GetSuperClass()->GetVTableLength();
   5859     const size_t max_count = num_virtual_methods + super_vtable_length;
   5860     StackHandleScope<2> hs(self);
   5861     Handle<mirror::Class> super_class(hs.NewHandle(klass->GetSuperClass()));
   5862     MutableHandle<mirror::PointerArray> vtable;
   5863     if (super_class->ShouldHaveEmbeddedVTable()) {
   5864       vtable = hs.NewHandle(AllocPointerArray(self, max_count));
   5865       if (UNLIKELY(vtable == nullptr)) {
   5866         self->AssertPendingOOMException();
   5867         return false;
   5868       }
   5869       for (size_t i = 0; i < super_vtable_length; i++) {
   5870         vtable->SetElementPtrSize(
   5871             i, super_class->GetEmbeddedVTableEntry(i, image_pointer_size_), image_pointer_size_);
   5872       }
   5873       // We might need to change vtable if we have new virtual methods or new interfaces (since that
   5874       // might give us new default methods). If no new interfaces then we can skip the rest since
   5875       // the class cannot override any of the super-class's methods. This is required for
   5876       // correctness since without it we might not update overridden default method vtable entries
   5877       // correctly.
   5878       if (num_virtual_methods == 0 && super_class->GetIfTableCount() == klass->GetIfTableCount()) {
   5879         klass->SetVTable(vtable.Get());
   5880         return true;
   5881       }
   5882     } else {
   5883       DCHECK(super_class->IsAbstract() && !super_class->IsArrayClass());
   5884       auto* super_vtable = super_class->GetVTable();
   5885       CHECK(super_vtable != nullptr) << super_class->PrettyClass();
   5886       // We might need to change vtable if we have new virtual methods or new interfaces (since that
   5887       // might give us new default methods). See comment above.
   5888       if (num_virtual_methods == 0 && super_class->GetIfTableCount() == klass->GetIfTableCount()) {
   5889         klass->SetVTable(super_vtable);
   5890         return true;
   5891       }
   5892       vtable = hs.NewHandle(down_cast<mirror::PointerArray*>(
   5893           super_vtable->CopyOf(self, max_count)));
   5894       if (UNLIKELY(vtable == nullptr)) {
   5895         self->AssertPendingOOMException();
   5896         return false;
   5897       }
   5898     }
   5899     // How the algorithm works:
   5900     // 1. Populate hash table by adding num_virtual_methods from klass. The values in the hash
   5901     // table are: invalid_index for unused slots, index super_vtable_length + i for a virtual
   5902     // method which has not been matched to a vtable method, and j if the virtual method at the
   5903     // index overrode the super virtual method at index j.
   5904     // 2. Loop through super virtual methods, if they overwrite, update hash table to j
   5905     // (j < super_vtable_length) to avoid redundant checks. (TODO maybe use this info for reducing
   5906     // the need for the initial vtable which we later shrink back down).
   5907     // 3. Add non overridden methods to the end of the vtable.
   5908     static constexpr size_t kMaxStackHash = 250;
   5909     // + 1 so that even if we only have new default methods we will still be able to use this hash
   5910     // table (i.e. it will never have 0 size).
   5911     const size_t hash_table_size = num_virtual_methods * 3 + 1;
   5912     uint32_t* hash_table_ptr;
   5913     std::unique_ptr<uint32_t[]> hash_heap_storage;
   5914     if (hash_table_size <= kMaxStackHash) {
   5915       hash_table_ptr = reinterpret_cast<uint32_t*>(
   5916           alloca(hash_table_size * sizeof(*hash_table_ptr)));
   5917     } else {
   5918       hash_heap_storage.reset(new uint32_t[hash_table_size]);
   5919       hash_table_ptr = hash_heap_storage.get();
   5920     }
   5921     LinkVirtualHashTable hash_table(klass, hash_table_size, hash_table_ptr, image_pointer_size_);
   5922     // Add virtual methods to the hash table.
   5923     for (size_t i = 0; i < num_virtual_methods; ++i) {
   5924       DCHECK(klass->GetVirtualMethodDuringLinking(
   5925           i, image_pointer_size_)->GetDeclaringClass() != nullptr);
   5926       hash_table.Add(i);
   5927     }
   5928     // Loop through each super vtable method and see if they are overridden by a method we added to
   5929     // the hash table.
   5930     for (size_t j = 0; j < super_vtable_length; ++j) {
   5931       // Search the hash table to see if we are overridden by any method.
   5932       ArtMethod* super_method = vtable->GetElementPtrSize<ArtMethod*>(j, image_pointer_size_);
   5933       if (!klass->CanAccessMember(super_method->GetDeclaringClass(),
   5934                                   super_method->GetAccessFlags())) {
   5935         // Continue on to the next method since this one is package private and canot be overridden.
   5936         // Before Android 4.1, the package-private method super_method might have been incorrectly
   5937         // overridden.
   5938         continue;
   5939       }
   5940       MethodNameAndSignatureComparator super_method_name_comparator(
   5941           super_method->GetInterfaceMethodIfProxy(image_pointer_size_));
   5942       // We remove the method so that subsequent lookups will be faster by making the hash-map
   5943       // smaller as we go on.
   5944       uint32_t hash_index = hash_table.FindAndRemove(&super_method_name_comparator);
   5945       if (hash_index != hash_table.GetNotFoundIndex()) {
   5946         ArtMethod* virtual_method = klass->GetVirtualMethodDuringLinking(
   5947             hash_index, image_pointer_size_);
   5948         if (super_method->IsFinal()) {
   5949           ThrowLinkageError(klass.Get(), "Method %s overrides final method in class %s",
   5950                             virtual_method->PrettyMethod().c_str(),
   5951                             super_method->GetDeclaringClassDescriptor());
   5952           return false;
   5953         }
   5954         vtable->SetElementPtrSize(j, virtual_method, image_pointer_size_);
   5955         virtual_method->SetMethodIndex(j);
   5956       } else if (super_method->IsOverridableByDefaultMethod()) {
   5957         // We didn't directly override this method but we might through default methods...
   5958         // Check for default method update.
   5959         ArtMethod* default_method = nullptr;
   5960         switch (FindDefaultMethodImplementation(self,
   5961                                                 super_method,
   5962                                                 klass,
   5963                                                 /*out*/&default_method)) {
   5964           case DefaultMethodSearchResult::kDefaultConflict: {
   5965             // A conflict was found looking for default methods. Note this (assuming it wasn't
   5966             // pre-existing) in the translations map.
   5967             if (UNLIKELY(!super_method->IsDefaultConflicting())) {
   5968               // Don't generate another conflict method to reduce memory use as an optimization.
   5969               default_translations->insert(
   5970                   {j, ClassLinker::MethodTranslation::CreateConflictingMethod()});
   5971             }
   5972             break;
   5973           }
   5974           case DefaultMethodSearchResult::kAbstractFound: {
   5975             // No conflict but method is abstract.
   5976             // We note that this vtable entry must be made abstract.
   5977             if (UNLIKELY(!super_method->IsAbstract())) {
   5978               default_translations->insert(
   5979                   {j, ClassLinker::MethodTranslation::CreateAbstractMethod()});
   5980             }
   5981             break;
   5982           }
   5983           case DefaultMethodSearchResult::kDefaultFound: {
   5984             if (UNLIKELY(super_method->IsDefaultConflicting() ||
   5985                         default_method->GetDeclaringClass() != super_method->GetDeclaringClass())) {
   5986               // Found a default method implementation that is new.
   5987               // TODO Refactor this add default methods to virtuals here and not in
   5988               //      LinkInterfaceMethods maybe.
   5989               //      The problem is default methods might override previously present
   5990               //      default-method or miranda-method vtable entries from the superclass.
   5991               //      Unfortunately we need these to be entries in this class's virtuals. We do not
   5992               //      give these entries there until LinkInterfaceMethods so we pass this map around
   5993               //      to let it know which vtable entries need to be updated.
   5994               // Make a note that vtable entry j must be updated, store what it needs to be updated
   5995               // to. We will allocate a virtual method slot in LinkInterfaceMethods and fix it up
   5996               // then.
   5997               default_translations->insert(
   5998                   {j, ClassLinker::MethodTranslation::CreateTranslatedMethod(default_method)});
   5999               VLOG(class_linker) << "Method " << super_method->PrettyMethod()
   6000                                  << " overridden by default "
   6001                                  << default_method->PrettyMethod()
   6002                                  << " in " << mirror::Class::PrettyClass(klass.Get());
   6003             }
   6004             break;
   6005           }
   6006         }
   6007       }
   6008     }
   6009     size_t actual_count = super_vtable_length;
   6010     // Add the non-overridden methods at the end.
   6011     for (size_t i = 0; i < num_virtual_methods; ++i) {
   6012       ArtMethod* local_method = klass->GetVirtualMethodDuringLinking(i, image_pointer_size_);
   6013       size_t method_idx = local_method->GetMethodIndexDuringLinking();
   6014       if (method_idx < super_vtable_length &&
   6015           local_method == vtable->GetElementPtrSize<ArtMethod*>(method_idx, image_pointer_size_)) {
   6016         continue;
   6017       }
   6018       vtable->SetElementPtrSize(actual_count, local_method, image_pointer_size_);
   6019       local_method->SetMethodIndex(actual_count);
   6020       ++actual_count;
   6021     }
   6022     if (!IsUint<16>(actual_count)) {
   6023       ThrowClassFormatError(klass.Get(), "Too many methods defined on class: %zd", actual_count);
   6024       return false;
   6025     }
   6026     // Shrink vtable if possible
   6027     CHECK_LE(actual_count, max_count);
   6028     if (actual_count < max_count) {
   6029       vtable.Assign(down_cast<mirror::PointerArray*>(vtable->CopyOf(self, actual_count)));
   6030       if (UNLIKELY(vtable == nullptr)) {
   6031         self->AssertPendingOOMException();
   6032         return false;
   6033       }
   6034     }
   6035     klass->SetVTable(vtable.Get());
   6036   } else {
   6037     CHECK_EQ(klass.Get(), GetClassRoot(kJavaLangObject));
   6038     if (!IsUint<16>(num_virtual_methods)) {
   6039       ThrowClassFormatError(klass.Get(), "Too many methods: %d",
   6040                             static_cast<int>(num_virtual_methods));
   6041       return false;
   6042     }
   6043     auto* vtable = AllocPointerArray(self, num_virtual_methods);
   6044     if (UNLIKELY(vtable == nullptr)) {
   6045       self->AssertPendingOOMException();
   6046       return false;
   6047     }
   6048     for (size_t i = 0; i < num_virtual_methods; ++i) {
   6049       ArtMethod* virtual_method = klass->GetVirtualMethodDuringLinking(i, image_pointer_size_);
   6050       vtable->SetElementPtrSize(i, virtual_method, image_pointer_size_);
   6051       virtual_method->SetMethodIndex(i & 0xFFFF);
   6052     }
   6053     klass->SetVTable(vtable);
   6054   }
   6055   return true;
   6056 }
   6057 
   6058 // Determine if the given iface has any subinterface in the given list that declares the method
   6059 // specified by 'target'.
   6060 //
   6061 // Arguments
   6062 // - self:    The thread we are running on
   6063 // - target:  A comparator that will match any method that overrides the method we are checking for
   6064 // - iftable: The iftable we are searching for an overriding method on.
   6065 // - ifstart: The index of the interface we are checking to see if anything overrides
   6066 // - iface:   The interface we are checking to see if anything overrides.
   6067 // - image_pointer_size:
   6068 //            The image pointer size.
   6069 //
   6070 // Returns
   6071 // - True:  There is some method that matches the target comparator defined in an interface that
   6072 //          is a subtype of iface.
   6073 // - False: There is no method that matches the target comparator in any interface that is a subtype
   6074 //          of iface.
   6075 static bool ContainsOverridingMethodOf(Thread* self,
   6076                                        MethodNameAndSignatureComparator& target,
   6077                                        Handle<mirror::IfTable> iftable,
   6078                                        size_t ifstart,
   6079                                        Handle<mirror::Class> iface,
   6080                                        PointerSize image_pointer_size)
   6081     REQUIRES_SHARED(Locks::mutator_lock_) {
   6082   DCHECK(self != nullptr);
   6083   DCHECK(iface != nullptr);
   6084   DCHECK(iftable != nullptr);
   6085   DCHECK_GE(ifstart, 0u);
   6086   DCHECK_LT(ifstart, iftable->Count());
   6087   DCHECK_EQ(iface.Get(), iftable->GetInterface(ifstart));
   6088   DCHECK(iface->IsInterface());
   6089 
   6090   size_t iftable_count = iftable->Count();
   6091   StackHandleScope<1> hs(self);
   6092   MutableHandle<mirror::Class> current_iface(hs.NewHandle<mirror::Class>(nullptr));
   6093   for (size_t k = ifstart + 1; k < iftable_count; k++) {
   6094     // Skip ifstart since our current interface obviously cannot override itself.
   6095     current_iface.Assign(iftable->GetInterface(k));
   6096     // Iterate through every method on this interface. The order does not matter.
   6097     for (ArtMethod& current_method : current_iface->GetDeclaredVirtualMethods(image_pointer_size)) {
   6098       if (UNLIKELY(target.HasSameNameAndSignature(
   6099                       current_method.GetInterfaceMethodIfProxy(image_pointer_size)))) {
   6100         // Check if the i'th interface is a subtype of this one.
   6101         if (iface->IsAssignableFrom(current_iface.Get())) {
   6102           return true;
   6103         }
   6104         break;
   6105       }
   6106     }
   6107   }
   6108   return false;
   6109 }
   6110 
   6111 // Find the default method implementation for 'interface_method' in 'klass'. Stores it into
   6112 // out_default_method and returns kDefaultFound on success. If no default method was found return
   6113 // kAbstractFound and store nullptr into out_default_method. If an error occurs (such as a
   6114 // default_method conflict) it will return kDefaultConflict.
   6115 ClassLinker::DefaultMethodSearchResult ClassLinker::FindDefaultMethodImplementation(
   6116     Thread* self,
   6117     ArtMethod* target_method,
   6118     Handle<mirror::Class> klass,
   6119     /*out*/ArtMethod** out_default_method) const {
   6120   DCHECK(self != nullptr);
   6121   DCHECK(target_method != nullptr);
   6122   DCHECK(out_default_method != nullptr);
   6123 
   6124   *out_default_method = nullptr;
   6125 
   6126   // We organize the interface table so that, for interface I any subinterfaces J follow it in the
   6127   // table. This lets us walk the table backwards when searching for default methods.  The first one
   6128   // we encounter is the best candidate since it is the most specific. Once we have found it we keep
   6129   // track of it and then continue checking all other interfaces, since we need to throw an error if
   6130   // we encounter conflicting default method implementations (one is not a subtype of the other).
   6131   //
   6132   // The order of unrelated interfaces does not matter and is not defined.
   6133   size_t iftable_count = klass->GetIfTableCount();
   6134   if (iftable_count == 0) {
   6135     // No interfaces. We have already reset out to null so just return kAbstractFound.
   6136     return DefaultMethodSearchResult::kAbstractFound;
   6137   }
   6138 
   6139   StackHandleScope<3> hs(self);
   6140   MutableHandle<mirror::Class> chosen_iface(hs.NewHandle<mirror::Class>(nullptr));
   6141   MutableHandle<mirror::IfTable> iftable(hs.NewHandle(klass->GetIfTable()));
   6142   MutableHandle<mirror::Class> iface(hs.NewHandle<mirror::Class>(nullptr));
   6143   MethodNameAndSignatureComparator target_name_comparator(
   6144       target_method->GetInterfaceMethodIfProxy(image_pointer_size_));
   6145   // Iterates over the klass's iftable in reverse
   6146   for (size_t k = iftable_count; k != 0; ) {
   6147     --k;
   6148 
   6149     DCHECK_LT(k, iftable->Count());
   6150 
   6151     iface.Assign(iftable->GetInterface(k));
   6152     // Iterate through every declared method on this interface. The order does not matter.
   6153     for (auto& method_iter : iface->GetDeclaredVirtualMethods(image_pointer_size_)) {
   6154       ArtMethod* current_method = &method_iter;
   6155       // Skip abstract methods and methods with different names.
   6156       if (current_method->IsAbstract() ||
   6157           !target_name_comparator.HasSameNameAndSignature(
   6158               current_method->GetInterfaceMethodIfProxy(image_pointer_size_))) {
   6159         continue;
   6160       } else if (!current_method->IsPublic()) {
   6161         // The verifier should have caught the non-public method for dex version 37. Just warn and
   6162         // skip it since this is from before default-methods so we don't really need to care that it
   6163         // has code.
   6164         LOG(WARNING) << "Interface method " << current_method->PrettyMethod()
   6165                      << " is not public! "
   6166                      << "This will be a fatal error in subsequent versions of android. "
   6167                      << "Continuing anyway.";
   6168       }
   6169       if (UNLIKELY(chosen_iface != nullptr)) {
   6170         // We have multiple default impls of the same method. This is a potential default conflict.
   6171         // We need to check if this possibly conflicting method is either a superclass of the chosen
   6172         // default implementation or is overridden by a non-default interface method. In either case
   6173         // there is no conflict.
   6174         if (!iface->IsAssignableFrom(chosen_iface.Get()) &&
   6175             !ContainsOverridingMethodOf(self,
   6176                                         target_name_comparator,
   6177                                         iftable,
   6178                                         k,
   6179                                         iface,
   6180                                         image_pointer_size_)) {
   6181           VLOG(class_linker) << "Conflicting default method implementations found: "
   6182                              << current_method->PrettyMethod() << " and "
   6183                              << ArtMethod::PrettyMethod(*out_default_method) << " in class "
   6184                              << klass->PrettyClass() << " conflict.";
   6185           *out_default_method = nullptr;
   6186           return DefaultMethodSearchResult::kDefaultConflict;
   6187         } else {
   6188           break;  // Continue checking at the next interface.
   6189         }
   6190       } else {
   6191         // chosen_iface == null
   6192         if (!ContainsOverridingMethodOf(self,
   6193                                         target_name_comparator,
   6194                                         iftable,
   6195                                         k,
   6196                                         iface,
   6197                                         image_pointer_size_)) {
   6198           // Don't set this as the chosen interface if something else is overriding it (because that
   6199           // other interface would be potentially chosen instead if it was default). If the other
   6200           // interface was abstract then we wouldn't select this interface as chosen anyway since
   6201           // the abstract method masks it.
   6202           *out_default_method = current_method;
   6203           chosen_iface.Assign(iface.Get());
   6204           // We should now finish traversing the graph to find if we have default methods that
   6205           // conflict.
   6206         } else {
   6207           VLOG(class_linker) << "A default method '" << current_method->PrettyMethod()
   6208                              << "' was "
   6209                              << "skipped because it was overridden by an abstract method in a "
   6210                              << "subinterface on class '" << klass->PrettyClass() << "'";
   6211         }
   6212       }
   6213       break;
   6214     }
   6215   }
   6216   if (*out_default_method != nullptr) {
   6217     VLOG(class_linker) << "Default method '" << (*out_default_method)->PrettyMethod()
   6218                        << "' selected "
   6219                        << "as the implementation for '" << target_method->PrettyMethod()
   6220                        << "' in '" << klass->PrettyClass() << "'";
   6221     return DefaultMethodSearchResult::kDefaultFound;
   6222   } else {
   6223     return DefaultMethodSearchResult::kAbstractFound;
   6224   }
   6225 }
   6226 
   6227 ArtMethod* ClassLinker::AddMethodToConflictTable(ObjPtr<mirror::Class> klass,
   6228                                                  ArtMethod* conflict_method,
   6229                                                  ArtMethod* interface_method,
   6230                                                  ArtMethod* method,
   6231                                                  bool force_new_conflict_method) {
   6232   ImtConflictTable* current_table = conflict_method->GetImtConflictTable(kRuntimePointerSize);
   6233   Runtime* const runtime = Runtime::Current();
   6234   LinearAlloc* linear_alloc = GetAllocatorForClassLoader(klass->GetClassLoader());
   6235   bool new_entry = conflict_method == runtime->GetImtConflictMethod() || force_new_conflict_method;
   6236 
   6237   // Create a new entry if the existing one is the shared conflict method.
   6238   ArtMethod* new_conflict_method = new_entry
   6239       ? runtime->CreateImtConflictMethod(linear_alloc)
   6240       : conflict_method;
   6241 
   6242   // Allocate a new table. Note that we will leak this table at the next conflict,
   6243   // but that's a tradeoff compared to making the table fixed size.
   6244   void* data = linear_alloc->Alloc(
   6245       Thread::Current(), ImtConflictTable::ComputeSizeWithOneMoreEntry(current_table,
   6246                                                                        image_pointer_size_));
   6247   if (data == nullptr) {
   6248     LOG(ERROR) << "Failed to allocate conflict table";
   6249     return conflict_method;
   6250   }
   6251   ImtConflictTable* new_table = new (data) ImtConflictTable(current_table,
   6252                                                             interface_method,
   6253                                                             method,
   6254                                                             image_pointer_size_);
   6255 
   6256   // Do a fence to ensure threads see the data in the table before it is assigned
   6257   // to the conflict method.
   6258   // Note that there is a race in the presence of multiple threads and we may leak
   6259   // memory from the LinearAlloc, but that's a tradeoff compared to using
   6260   // atomic operations.
   6261   QuasiAtomic::ThreadFenceRelease();
   6262   new_conflict_method->SetImtConflictTable(new_table, image_pointer_size_);
   6263   return new_conflict_method;
   6264 }
   6265 
   6266 bool ClassLinker::AllocateIfTableMethodArrays(Thread* self,
   6267                                               Handle<mirror::Class> klass,
   6268                                               Handle<mirror::IfTable> iftable) {
   6269   DCHECK(!klass->IsInterface());
   6270   const bool has_superclass = klass->HasSuperClass();
   6271   const bool extend_super_iftable = has_superclass;
   6272   const size_t ifcount = klass->GetIfTableCount();
   6273   const size_t super_ifcount = has_superclass ? klass->GetSuperClass()->GetIfTableCount() : 0U;
   6274   for (size_t i = 0; i < ifcount; ++i) {
   6275     size_t num_methods = iftable->GetInterface(i)->NumDeclaredVirtualMethods();
   6276     if (num_methods > 0) {
   6277       const bool is_super = i < super_ifcount;
   6278       // This is an interface implemented by a super-class. Therefore we can just copy the method
   6279       // array from the superclass.
   6280       const bool super_interface = is_super && extend_super_iftable;
   6281       ObjPtr<mirror::PointerArray> method_array;
   6282       if (super_interface) {
   6283         ObjPtr<mirror::IfTable> if_table = klass->GetSuperClass()->GetIfTable();
   6284         DCHECK(if_table != nullptr);
   6285         DCHECK(if_table->GetMethodArray(i) != nullptr);
   6286         // If we are working on a super interface, try extending the existing method array.
   6287         method_array = down_cast<mirror::PointerArray*>(if_table->GetMethodArray(i)->Clone(self));
   6288       } else {
   6289         method_array = AllocPointerArray(self, num_methods);
   6290       }
   6291       if (UNLIKELY(method_array == nullptr)) {
   6292         self->AssertPendingOOMException();
   6293         return false;
   6294       }
   6295       iftable->SetMethodArray(i, method_array);
   6296     }
   6297   }
   6298   return true;
   6299 }
   6300 
   6301 void ClassLinker::SetIMTRef(ArtMethod* unimplemented_method,
   6302                             ArtMethod* imt_conflict_method,
   6303                             ArtMethod* current_method,
   6304                             /*out*/bool* new_conflict,
   6305                             /*out*/ArtMethod** imt_ref) {
   6306   // Place method in imt if entry is empty, place conflict otherwise.
   6307   if (*imt_ref == unimplemented_method) {
   6308     *imt_ref = current_method;
   6309   } else if (!(*imt_ref)->IsRuntimeMethod()) {
   6310     // If we are not a conflict and we have the same signature and name as the imt
   6311     // entry, it must be that we overwrote a superclass vtable entry.
   6312     // Note that we have checked IsRuntimeMethod, as there may be multiple different
   6313     // conflict methods.
   6314     MethodNameAndSignatureComparator imt_comparator(
   6315         (*imt_ref)->GetInterfaceMethodIfProxy(image_pointer_size_));
   6316     if (imt_comparator.HasSameNameAndSignature(
   6317           current_method->GetInterfaceMethodIfProxy(image_pointer_size_))) {
   6318       *imt_ref = current_method;
   6319     } else {
   6320       *imt_ref = imt_conflict_method;
   6321       *new_conflict = true;
   6322     }
   6323   } else {
   6324     // Place the default conflict method. Note that there may be an existing conflict
   6325     // method in the IMT, but it could be one tailored to the super class, with a
   6326     // specific ImtConflictTable.
   6327     *imt_ref = imt_conflict_method;
   6328     *new_conflict = true;
   6329   }
   6330 }
   6331 
   6332 void ClassLinker::FillIMTAndConflictTables(ObjPtr<mirror::Class> klass) {
   6333   DCHECK(klass->ShouldHaveImt()) << klass->PrettyClass();
   6334   DCHECK(!klass->IsTemp()) << klass->PrettyClass();
   6335   ArtMethod* imt_data[ImTable::kSize];
   6336   Runtime* const runtime = Runtime::Current();
   6337   ArtMethod* const unimplemented_method = runtime->GetImtUnimplementedMethod();
   6338   ArtMethod* const conflict_method = runtime->GetImtConflictMethod();
   6339   std::fill_n(imt_data, arraysize(imt_data), unimplemented_method);
   6340   if (klass->GetIfTable() != nullptr) {
   6341     bool new_conflict = false;
   6342     FillIMTFromIfTable(klass->GetIfTable(),
   6343                        unimplemented_method,
   6344                        conflict_method,
   6345                        klass,
   6346                        /*create_conflict_tables*/true,
   6347                        /*ignore_copied_methods*/false,
   6348                        &new_conflict,
   6349                        &imt_data[0]);
   6350   }
   6351   if (!klass->ShouldHaveImt()) {
   6352     return;
   6353   }
   6354   // Compare the IMT with the super class including the conflict methods. If they are equivalent,
   6355   // we can just use the same pointer.
   6356   ImTable* imt = nullptr;
   6357   ObjPtr<mirror::Class> super_class = klass->GetSuperClass();
   6358   if (super_class != nullptr && super_class->ShouldHaveImt()) {
   6359     ImTable* super_imt = super_class->GetImt(image_pointer_size_);
   6360     bool same = true;
   6361     for (size_t i = 0; same && i < ImTable::kSize; ++i) {
   6362       ArtMethod* method = imt_data[i];
   6363       ArtMethod* super_method = super_imt->Get(i, image_pointer_size_);
   6364       if (method != super_method) {
   6365         bool is_conflict_table = method->IsRuntimeMethod() &&
   6366                                  method != unimplemented_method &&
   6367                                  method != conflict_method;
   6368         // Verify conflict contents.
   6369         bool super_conflict_table = super_method->IsRuntimeMethod() &&
   6370                                     super_method != unimplemented_method &&
   6371                                     super_method != conflict_method;
   6372         if (!is_conflict_table || !super_conflict_table) {
   6373           same = false;
   6374         } else {
   6375           ImtConflictTable* table1 = method->GetImtConflictTable(image_pointer_size_);
   6376           ImtConflictTable* table2 = super_method->GetImtConflictTable(image_pointer_size_);
   6377           same = same && table1->Equals(table2, image_pointer_size_);
   6378         }
   6379       }
   6380     }
   6381     if (same) {
   6382       imt = super_imt;
   6383     }
   6384   }
   6385   if (imt == nullptr) {
   6386     imt = klass->GetImt(image_pointer_size_);
   6387     DCHECK(imt != nullptr);
   6388     imt->Populate(imt_data, image_pointer_size_);
   6389   } else {
   6390     klass->SetImt(imt, image_pointer_size_);
   6391   }
   6392 }
   6393 
   6394 ImtConflictTable* ClassLinker::CreateImtConflictTable(size_t count,
   6395                                                       LinearAlloc* linear_alloc,
   6396                                                       PointerSize image_pointer_size) {
   6397   void* data = linear_alloc->Alloc(Thread::Current(),
   6398                                    ImtConflictTable::ComputeSize(count,
   6399                                                                  image_pointer_size));
   6400   return (data != nullptr) ? new (data) ImtConflictTable(count, image_pointer_size) : nullptr;
   6401 }
   6402 
   6403 ImtConflictTable* ClassLinker::CreateImtConflictTable(size_t count, LinearAlloc* linear_alloc) {
   6404   return CreateImtConflictTable(count, linear_alloc, image_pointer_size_);
   6405 }
   6406 
   6407 void ClassLinker::FillIMTFromIfTable(ObjPtr<mirror::IfTable> if_table,
   6408                                      ArtMethod* unimplemented_method,
   6409                                      ArtMethod* imt_conflict_method,
   6410                                      ObjPtr<mirror::Class> klass,
   6411                                      bool create_conflict_tables,
   6412                                      bool ignore_copied_methods,
   6413                                      /*out*/bool* new_conflict,
   6414                                      /*out*/ArtMethod** imt) {
   6415   uint32_t conflict_counts[ImTable::kSize] = {};
   6416   for (size_t i = 0, length = if_table->Count(); i < length; ++i) {
   6417     ObjPtr<mirror::Class> interface = if_table->GetInterface(i);
   6418     const size_t num_virtuals = interface->NumVirtualMethods();
   6419     const size_t method_array_count = if_table->GetMethodArrayCount(i);
   6420     // Virtual methods can be larger than the if table methods if there are default methods.
   6421     DCHECK_GE(num_virtuals, method_array_count);
   6422     if (kIsDebugBuild) {
   6423       if (klass->IsInterface()) {
   6424         DCHECK_EQ(method_array_count, 0u);
   6425       } else {
   6426         DCHECK_EQ(interface->NumDeclaredVirtualMethods(), method_array_count);
   6427       }
   6428     }
   6429     if (method_array_count == 0) {
   6430       continue;
   6431     }
   6432     auto* method_array = if_table->GetMethodArray(i);
   6433     for (size_t j = 0; j < method_array_count; ++j) {
   6434       ArtMethod* implementation_method =
   6435           method_array->GetElementPtrSize<ArtMethod*>(j, image_pointer_size_);
   6436       if (ignore_copied_methods && implementation_method->IsCopied()) {
   6437         continue;
   6438       }
   6439       DCHECK(implementation_method != nullptr);
   6440       // Miranda methods cannot be used to implement an interface method, but they are safe to put
   6441       // in the IMT since their entrypoint is the interface trampoline. If we put any copied methods
   6442       // or interface methods in the IMT here they will not create extra conflicts since we compare
   6443       // names and signatures in SetIMTRef.
   6444       ArtMethod* interface_method = interface->GetVirtualMethod(j, image_pointer_size_);
   6445       const uint32_t imt_index = ImTable::GetImtIndex(interface_method);
   6446 
   6447       // There is only any conflicts if all of the interface methods for an IMT slot don't have
   6448       // the same implementation method, keep track of this to avoid creating a conflict table in
   6449       // this case.
   6450 
   6451       // Conflict table size for each IMT slot.
   6452       ++conflict_counts[imt_index];
   6453 
   6454       SetIMTRef(unimplemented_method,
   6455                 imt_conflict_method,
   6456                 implementation_method,
   6457                 /*out*/new_conflict,
   6458                 /*out*/&imt[imt_index]);
   6459     }
   6460   }
   6461 
   6462   if (create_conflict_tables) {
   6463     // Create the conflict tables.
   6464     LinearAlloc* linear_alloc = GetAllocatorForClassLoader(klass->GetClassLoader());
   6465     for (size_t i = 0; i < ImTable::kSize; ++i) {
   6466       size_t conflicts = conflict_counts[i];
   6467       if (imt[i] == imt_conflict_method) {
   6468         ImtConflictTable* new_table = CreateImtConflictTable(conflicts, linear_alloc);
   6469         if (new_table != nullptr) {
   6470           ArtMethod* new_conflict_method =
   6471               Runtime::Current()->CreateImtConflictMethod(linear_alloc);
   6472           new_conflict_method->SetImtConflictTable(new_table, image_pointer_size_);
   6473           imt[i] = new_conflict_method;
   6474         } else {
   6475           LOG(ERROR) << "Failed to allocate conflict table";
   6476           imt[i] = imt_conflict_method;
   6477         }
   6478       } else {
   6479         DCHECK_NE(imt[i], imt_conflict_method);
   6480       }
   6481     }
   6482 
   6483     for (size_t i = 0, length = if_table->Count(); i < length; ++i) {
   6484       ObjPtr<mirror::Class> interface = if_table->GetInterface(i);
   6485       const size_t method_array_count = if_table->GetMethodArrayCount(i);
   6486       // Virtual methods can be larger than the if table methods if there are default methods.
   6487       if (method_array_count == 0) {
   6488         continue;
   6489       }
   6490       auto* method_array = if_table->GetMethodArray(i);
   6491       for (size_t j = 0; j < method_array_count; ++j) {
   6492         ArtMethod* implementation_method =
   6493             method_array->GetElementPtrSize<ArtMethod*>(j, image_pointer_size_);
   6494         if (ignore_copied_methods && implementation_method->IsCopied()) {
   6495           continue;
   6496         }
   6497         DCHECK(implementation_method != nullptr);
   6498         ArtMethod* interface_method = interface->GetVirtualMethod(j, image_pointer_size_);
   6499         const uint32_t imt_index = ImTable::GetImtIndex(interface_method);
   6500         if (!imt[imt_index]->IsRuntimeMethod() ||
   6501             imt[imt_index] == unimplemented_method ||
   6502             imt[imt_index] == imt_conflict_method) {
   6503           continue;
   6504         }
   6505         ImtConflictTable* table = imt[imt_index]->GetImtConflictTable(image_pointer_size_);
   6506         const size_t num_entries = table->NumEntries(image_pointer_size_);
   6507         table->SetInterfaceMethod(num_entries, image_pointer_size_, interface_method);
   6508         table->SetImplementationMethod(num_entries, image_pointer_size_, implementation_method);
   6509       }
   6510     }
   6511   }
   6512 }
   6513 
   6514 // Simple helper function that checks that no subtypes of 'val' are contained within the 'classes'
   6515 // set.
   6516 static bool NotSubinterfaceOfAny(
   6517     const std::unordered_set<ObjPtr<mirror::Class>, HashObjPtr>& classes,
   6518     ObjPtr<mirror::Class> val)
   6519     REQUIRES(Roles::uninterruptible_)
   6520     REQUIRES_SHARED(Locks::mutator_lock_) {
   6521   DCHECK(val != nullptr);
   6522   for (ObjPtr<mirror::Class> c : classes) {
   6523     if (val->IsAssignableFrom(c)) {
   6524       return false;
   6525     }
   6526   }
   6527   return true;
   6528 }
   6529 
   6530 // Fills in and flattens the interface inheritance hierarchy.
   6531 //
   6532 // By the end of this function all interfaces in the transitive closure of to_process are added to
   6533 // the iftable and every interface precedes all of its sub-interfaces in this list.
   6534 //
   6535 // all I, J: Interface | I <: J implies J precedes I
   6536 //
   6537 // (note A <: B means that A is a subtype of B)
   6538 //
   6539 // This returns the total number of items in the iftable. The iftable might be resized down after
   6540 // this call.
   6541 //
   6542 // We order this backwards so that we do not need to reorder superclass interfaces when new
   6543 // interfaces are added in subclass's interface tables.
   6544 //
   6545 // Upon entry into this function iftable is a copy of the superclass's iftable with the first
   6546 // super_ifcount entries filled in with the transitive closure of the interfaces of the superclass.
   6547 // The other entries are uninitialized.  We will fill in the remaining entries in this function. The
   6548 // iftable must be large enough to hold all interfaces without changing its size.
   6549 static size_t FillIfTable(ObjPtr<mirror::IfTable> iftable,
   6550                           size_t super_ifcount,
   6551                           std::vector<mirror::Class*> to_process)
   6552     REQUIRES(Roles::uninterruptible_)
   6553     REQUIRES_SHARED(Locks::mutator_lock_) {
   6554   // This is the set of all class's already in the iftable. Used to make checking if a class has
   6555   // already been added quicker.
   6556   std::unordered_set<ObjPtr<mirror::Class>, HashObjPtr> classes_in_iftable;
   6557   // The first super_ifcount elements are from the superclass. We note that they are already added.
   6558   for (size_t i = 0; i < super_ifcount; i++) {
   6559     ObjPtr<mirror::Class> iface = iftable->GetInterface(i);
   6560     DCHECK(NotSubinterfaceOfAny(classes_in_iftable, iface)) << "Bad ordering.";
   6561     classes_in_iftable.insert(iface);
   6562   }
   6563   size_t filled_ifcount = super_ifcount;
   6564   for (ObjPtr<mirror::Class> interface : to_process) {
   6565     // Let us call the first filled_ifcount elements of iftable the current-iface-list.
   6566     // At this point in the loop current-iface-list has the invariant that:
   6567     //    for every pair of interfaces I,J within it:
   6568     //      if index_of(I) < index_of(J) then I is not a subtype of J
   6569 
   6570     // If we have already seen this element then all of its super-interfaces must already be in the
   6571     // current-iface-list so we can skip adding it.
   6572     if (!ContainsElement(classes_in_iftable, interface)) {
   6573       // We haven't seen this interface so add all of its super-interfaces onto the
   6574       // current-iface-list, skipping those already on it.
   6575       int32_t ifcount = interface->GetIfTableCount();
   6576       for (int32_t j = 0; j < ifcount; j++) {
   6577         ObjPtr<mirror::Class> super_interface = interface->GetIfTable()->GetInterface(j);
   6578         if (!ContainsElement(classes_in_iftable, super_interface)) {
   6579           DCHECK(NotSubinterfaceOfAny(classes_in_iftable, super_interface)) << "Bad ordering.";
   6580           classes_in_iftable.insert(super_interface);
   6581           iftable->SetInterface(filled_ifcount, super_interface);
   6582           filled_ifcount++;
   6583         }
   6584       }
   6585       DCHECK(NotSubinterfaceOfAny(classes_in_iftable, interface)) << "Bad ordering";
   6586       // Place this interface onto the current-iface-list after all of its super-interfaces.
   6587       classes_in_iftable.insert(interface);
   6588       iftable->SetInterface(filled_ifcount, interface);
   6589       filled_ifcount++;
   6590     } else if (kIsDebugBuild) {
   6591       // Check all super-interfaces are already in the list.
   6592       int32_t ifcount = interface->GetIfTableCount();
   6593       for (int32_t j = 0; j < ifcount; j++) {
   6594         ObjPtr<mirror::Class> super_interface = interface->GetIfTable()->GetInterface(j);
   6595         DCHECK(ContainsElement(classes_in_iftable, super_interface))
   6596             << "Iftable does not contain " << mirror::Class::PrettyClass(super_interface)
   6597             << ", a superinterface of " << interface->PrettyClass();
   6598       }
   6599     }
   6600   }
   6601   if (kIsDebugBuild) {
   6602     // Check that the iftable is ordered correctly.
   6603     for (size_t i = 0; i < filled_ifcount; i++) {
   6604       ObjPtr<mirror::Class> if_a = iftable->GetInterface(i);
   6605       for (size_t j = i + 1; j < filled_ifcount; j++) {
   6606         ObjPtr<mirror::Class> if_b = iftable->GetInterface(j);
   6607         // !(if_a <: if_b)
   6608         CHECK(!if_b->IsAssignableFrom(if_a))
   6609             << "Bad interface order: " << mirror::Class::PrettyClass(if_a) << " (index " << i
   6610             << ") extends "
   6611             << if_b->PrettyClass() << " (index " << j << ") and so should be after it in the "
   6612             << "interface list.";
   6613       }
   6614     }
   6615   }
   6616   return filled_ifcount;
   6617 }
   6618 
   6619 bool ClassLinker::SetupInterfaceLookupTable(Thread* self, Handle<mirror::Class> klass,
   6620                                             Handle<mirror::ObjectArray<mirror::Class>> interfaces) {
   6621   StackHandleScope<1> hs(self);
   6622   const bool has_superclass = klass->HasSuperClass();
   6623   const size_t super_ifcount = has_superclass ? klass->GetSuperClass()->GetIfTableCount() : 0U;
   6624   const bool have_interfaces = interfaces != nullptr;
   6625   const size_t num_interfaces =
   6626       have_interfaces ? interfaces->GetLength() : klass->NumDirectInterfaces();
   6627   if (num_interfaces == 0) {
   6628     if (super_ifcount == 0) {
   6629       if (LIKELY(has_superclass)) {
   6630         klass->SetIfTable(klass->GetSuperClass()->GetIfTable());
   6631       }
   6632       // Class implements no interfaces.
   6633       DCHECK_EQ(klass->GetIfTableCount(), 0);
   6634       return true;
   6635     }
   6636     // Class implements same interfaces as parent, are any of these not marker interfaces?
   6637     bool has_non_marker_interface = false;
   6638     ObjPtr<mirror::IfTable> super_iftable = klass->GetSuperClass()->GetIfTable();
   6639     for (size_t i = 0; i < super_ifcount; ++i) {
   6640       if (super_iftable->GetMethodArrayCount(i) > 0) {
   6641         has_non_marker_interface = true;
   6642         break;
   6643       }
   6644     }
   6645     // Class just inherits marker interfaces from parent so recycle parent's iftable.
   6646     if (!has_non_marker_interface) {
   6647       klass->SetIfTable(super_iftable);
   6648       return true;
   6649     }
   6650   }
   6651   size_t ifcount = super_ifcount + num_interfaces;
   6652   // Check that every class being implemented is an interface.
   6653   for (size_t i = 0; i < num_interfaces; i++) {
   6654     ObjPtr<mirror::Class> interface = have_interfaces
   6655         ? interfaces->GetWithoutChecks(i)
   6656         : mirror::Class::GetDirectInterface(self, klass.Get(), i);
   6657     DCHECK(interface != nullptr);
   6658     if (UNLIKELY(!interface->IsInterface())) {
   6659       std::string temp;
   6660       ThrowIncompatibleClassChangeError(klass.Get(),
   6661                                         "Class %s implements non-interface class %s",
   6662                                         klass->PrettyDescriptor().c_str(),
   6663                                         PrettyDescriptor(interface->GetDescriptor(&temp)).c_str());
   6664       return false;
   6665     }
   6666     ifcount += interface->GetIfTableCount();
   6667   }
   6668   // Create the interface function table.
   6669   MutableHandle<mirror::IfTable> iftable(hs.NewHandle(AllocIfTable(self, ifcount)));
   6670   if (UNLIKELY(iftable == nullptr)) {
   6671     self->AssertPendingOOMException();
   6672     return false;
   6673   }
   6674   // Fill in table with superclass's iftable.
   6675   if (super_ifcount != 0) {
   6676     ObjPtr<mirror::IfTable> super_iftable = klass->GetSuperClass()->GetIfTable();
   6677     for (size_t i = 0; i < super_ifcount; i++) {
   6678       ObjPtr<mirror::Class> super_interface = super_iftable->GetInterface(i);
   6679       iftable->SetInterface(i, super_interface);
   6680     }
   6681   }
   6682 
   6683   // Note that AllowThreadSuspension is to thread suspension as pthread_testcancel is to pthread
   6684   // cancellation. That is it will suspend if one has a pending suspend request but otherwise
   6685   // doesn't really do anything.
   6686   self->AllowThreadSuspension();
   6687 
   6688   size_t new_ifcount;
   6689   {
   6690     ScopedAssertNoThreadSuspension nts("Copying mirror::Class*'s for FillIfTable");
   6691     std::vector<mirror::Class*> to_add;
   6692     for (size_t i = 0; i < num_interfaces; i++) {
   6693       ObjPtr<mirror::Class> interface = have_interfaces ? interfaces->Get(i) :
   6694           mirror::Class::GetDirectInterface(self, klass.Get(), i);
   6695       to_add.push_back(interface.Ptr());
   6696     }
   6697 
   6698     new_ifcount = FillIfTable(iftable.Get(), super_ifcount, std::move(to_add));
   6699   }
   6700 
   6701   self->AllowThreadSuspension();
   6702 
   6703   // Shrink iftable in case duplicates were found
   6704   if (new_ifcount < ifcount) {
   6705     DCHECK_NE(num_interfaces, 0U);
   6706     iftable.Assign(down_cast<mirror::IfTable*>(
   6707         iftable->CopyOf(self, new_ifcount * mirror::IfTable::kMax)));
   6708     if (UNLIKELY(iftable == nullptr)) {
   6709       self->AssertPendingOOMException();
   6710       return false;
   6711     }
   6712     ifcount = new_ifcount;
   6713   } else {
   6714     DCHECK_EQ(new_ifcount, ifcount);
   6715   }
   6716   klass->SetIfTable(iftable.Get());
   6717   return true;
   6718 }
   6719 
   6720 // Finds the method with a name/signature that matches cmp in the given lists of methods. The list
   6721 // of methods must be unique.
   6722 static ArtMethod* FindSameNameAndSignature(MethodNameAndSignatureComparator& cmp ATTRIBUTE_UNUSED) {
   6723   return nullptr;
   6724 }
   6725 
   6726 template <typename ... Types>
   6727 static ArtMethod* FindSameNameAndSignature(MethodNameAndSignatureComparator& cmp,
   6728                                            const ScopedArenaVector<ArtMethod*>& list,
   6729                                            const Types& ... rest)
   6730     REQUIRES_SHARED(Locks::mutator_lock_) {
   6731   for (ArtMethod* method : list) {
   6732     if (cmp.HasSameNameAndSignature(method)) {
   6733       return method;
   6734     }
   6735   }
   6736   return FindSameNameAndSignature(cmp, rest...);
   6737 }
   6738 
   6739 // Check that all vtable entries are present in this class's virtuals or are the same as a
   6740 // superclasses vtable entry.
   6741 static void CheckClassOwnsVTableEntries(Thread* self,
   6742                                         Handle<mirror::Class> klass,
   6743                                         PointerSize pointer_size)
   6744     REQUIRES_SHARED(Locks::mutator_lock_) {
   6745   StackHandleScope<2> hs(self);
   6746   Handle<mirror::PointerArray> check_vtable(hs.NewHandle(klass->GetVTableDuringLinking()));
   6747   ObjPtr<mirror::Class> super_temp = (klass->HasSuperClass()) ? klass->GetSuperClass() : nullptr;
   6748   Handle<mirror::Class> superclass(hs.NewHandle(super_temp));
   6749   int32_t super_vtable_length = (superclass != nullptr) ? superclass->GetVTableLength() : 0;
   6750   for (int32_t i = 0; i < check_vtable->GetLength(); ++i) {
   6751     ArtMethod* m = check_vtable->GetElementPtrSize<ArtMethod*>(i, pointer_size);
   6752     CHECK(m != nullptr);
   6753 
   6754     if (m->GetMethodIndexDuringLinking() != i) {
   6755       LOG(WARNING) << m->PrettyMethod()
   6756                    << " has an unexpected method index for its spot in the vtable for class"
   6757                    << klass->PrettyClass();
   6758     }
   6759     ArraySlice<ArtMethod> virtuals = klass->GetVirtualMethodsSliceUnchecked(pointer_size);
   6760     auto is_same_method = [m] (const ArtMethod& meth) {
   6761       return &meth == m;
   6762     };
   6763     if (!((super_vtable_length > i && superclass->GetVTableEntry(i, pointer_size) == m) ||
   6764           std::find_if(virtuals.begin(), virtuals.end(), is_same_method) != virtuals.end())) {
   6765       LOG(WARNING) << m->PrettyMethod() << " does not seem to be owned by current class "
   6766                    << klass->PrettyClass() << " or any of its superclasses!";
   6767     }
   6768   }
   6769 }
   6770 
   6771 // Check to make sure the vtable does not have duplicates. Duplicates could cause problems when a
   6772 // method is overridden in a subclass.
   6773 static void CheckVTableHasNoDuplicates(Thread* self,
   6774                                        Handle<mirror::Class> klass,
   6775                                        PointerSize pointer_size)
   6776     REQUIRES_SHARED(Locks::mutator_lock_) {
   6777   StackHandleScope<1> hs(self);
   6778   Handle<mirror::PointerArray> vtable(hs.NewHandle(klass->GetVTableDuringLinking()));
   6779   int32_t num_entries = vtable->GetLength();
   6780   for (int32_t i = 0; i < num_entries; i++) {
   6781     ArtMethod* vtable_entry = vtable->GetElementPtrSize<ArtMethod*>(i, pointer_size);
   6782     // Don't bother if we cannot 'see' the vtable entry (i.e. it is a package-private member maybe).
   6783     if (!klass->CanAccessMember(vtable_entry->GetDeclaringClass(),
   6784                                 vtable_entry->GetAccessFlags())) {
   6785       continue;
   6786     }
   6787     MethodNameAndSignatureComparator name_comparator(
   6788         vtable_entry->GetInterfaceMethodIfProxy(pointer_size));
   6789     for (int32_t j = i + 1; j < num_entries; j++) {
   6790       ArtMethod* other_entry = vtable->GetElementPtrSize<ArtMethod*>(j, pointer_size);
   6791       if (!klass->CanAccessMember(other_entry->GetDeclaringClass(),
   6792                                   other_entry->GetAccessFlags())) {
   6793         continue;
   6794       }
   6795       if (vtable_entry == other_entry ||
   6796           name_comparator.HasSameNameAndSignature(
   6797                other_entry->GetInterfaceMethodIfProxy(pointer_size))) {
   6798         LOG(WARNING) << "vtable entries " << i << " and " << j << " are identical for "
   6799                      << klass->PrettyClass() << " in method " << vtable_entry->PrettyMethod()
   6800                      << " (0x" << std::hex << reinterpret_cast<uintptr_t>(vtable_entry) << ") and "
   6801                      << other_entry->PrettyMethod() << "  (0x" << std::hex
   6802                      << reinterpret_cast<uintptr_t>(other_entry) << ")";
   6803       }
   6804     }
   6805   }
   6806 }
   6807 
   6808 static void SanityCheckVTable(Thread* self, Handle<mirror::Class> klass, PointerSize pointer_size)
   6809     REQUIRES_SHARED(Locks::mutator_lock_) {
   6810   CheckClassOwnsVTableEntries(self, klass, pointer_size);
   6811   CheckVTableHasNoDuplicates(self, klass, pointer_size);
   6812 }
   6813 
   6814 void ClassLinker::FillImtFromSuperClass(Handle<mirror::Class> klass,
   6815                                         ArtMethod* unimplemented_method,
   6816                                         ArtMethod* imt_conflict_method,
   6817                                         bool* new_conflict,
   6818                                         ArtMethod** imt) {
   6819   DCHECK(klass->HasSuperClass());
   6820   ObjPtr<mirror::Class> super_class = klass->GetSuperClass();
   6821   if (super_class->ShouldHaveImt()) {
   6822     ImTable* super_imt = super_class->GetImt(image_pointer_size_);
   6823     for (size_t i = 0; i < ImTable::kSize; ++i) {
   6824       imt[i] = super_imt->Get(i, image_pointer_size_);
   6825     }
   6826   } else {
   6827     // No imt in the super class, need to reconstruct from the iftable.
   6828     ObjPtr<mirror::IfTable> if_table = super_class->GetIfTable();
   6829     if (if_table->Count() != 0) {
   6830       // Ignore copied methods since we will handle these in LinkInterfaceMethods.
   6831       FillIMTFromIfTable(if_table,
   6832                          unimplemented_method,
   6833                          imt_conflict_method,
   6834                          klass.Get(),
   6835                          /*create_conflict_table*/false,
   6836                          /*ignore_copied_methods*/true,
   6837                          /*out*/new_conflict,
   6838                          /*out*/imt);
   6839     }
   6840   }
   6841 }
   6842 
   6843 class ClassLinker::LinkInterfaceMethodsHelper {
   6844  public:
   6845   LinkInterfaceMethodsHelper(ClassLinker* class_linker,
   6846                              Handle<mirror::Class> klass,
   6847                              Thread* self,
   6848                              Runtime* runtime)
   6849       : class_linker_(class_linker),
   6850         klass_(klass),
   6851         method_alignment_(ArtMethod::Alignment(class_linker->GetImagePointerSize())),
   6852         method_size_(ArtMethod::Size(class_linker->GetImagePointerSize())),
   6853         self_(self),
   6854         stack_(runtime->GetLinearAlloc()->GetArenaPool()),
   6855         allocator_(&stack_),
   6856         default_conflict_methods_(allocator_.Adapter()),
   6857         overriding_default_conflict_methods_(allocator_.Adapter()),
   6858         miranda_methods_(allocator_.Adapter()),
   6859         default_methods_(allocator_.Adapter()),
   6860         overriding_default_methods_(allocator_.Adapter()),
   6861         move_table_(allocator_.Adapter()) {
   6862   }
   6863 
   6864   ArtMethod* FindMethod(ArtMethod* interface_method,
   6865                         MethodNameAndSignatureComparator& interface_name_comparator,
   6866                         ArtMethod* vtable_impl)
   6867       REQUIRES_SHARED(Locks::mutator_lock_);
   6868 
   6869   ArtMethod* GetOrCreateMirandaMethod(ArtMethod* interface_method,
   6870                                       MethodNameAndSignatureComparator& interface_name_comparator)
   6871       REQUIRES_SHARED(Locks::mutator_lock_);
   6872 
   6873   bool HasNewVirtuals() const {
   6874     return !(miranda_methods_.empty() &&
   6875              default_methods_.empty() &&
   6876              overriding_default_methods_.empty() &&
   6877              overriding_default_conflict_methods_.empty() &&
   6878              default_conflict_methods_.empty());
   6879   }
   6880 
   6881   void ReallocMethods() REQUIRES_SHARED(Locks::mutator_lock_);
   6882 
   6883   ObjPtr<mirror::PointerArray> UpdateVtable(
   6884       const std::unordered_map<size_t, ClassLinker::MethodTranslation>& default_translations,
   6885       ObjPtr<mirror::PointerArray> old_vtable) REQUIRES_SHARED(Locks::mutator_lock_);
   6886 
   6887   void UpdateIfTable(Handle<mirror::IfTable> iftable) REQUIRES_SHARED(Locks::mutator_lock_);
   6888 
   6889   void UpdateIMT(ArtMethod** out_imt);
   6890 
   6891   void CheckNoStaleMethodsInDexCache() REQUIRES_SHARED(Locks::mutator_lock_) {
   6892     if (kIsDebugBuild) {
   6893       PointerSize pointer_size = class_linker_->GetImagePointerSize();
   6894       // Check that there are no stale methods are in the dex cache array.
   6895       auto* resolved_methods = klass_->GetDexCache()->GetResolvedMethods();
   6896       for (size_t i = 0, count = klass_->GetDexCache()->NumResolvedMethods(); i < count; ++i) {
   6897         auto* m = mirror::DexCache::GetElementPtrSize(resolved_methods, i, pointer_size);
   6898         CHECK(move_table_.find(m) == move_table_.end() ||
   6899               // The original versions of copied methods will still be present so allow those too.
   6900               // Note that if the first check passes this might fail to GetDeclaringClass().
   6901               std::find_if(m->GetDeclaringClass()->GetMethods(pointer_size).begin(),
   6902                            m->GetDeclaringClass()->GetMethods(pointer_size).end(),
   6903                            [m] (ArtMethod& meth) {
   6904                              return &meth == m;
   6905                            }) != m->GetDeclaringClass()->GetMethods(pointer_size).end())
   6906             << "Obsolete method " << m->PrettyMethod() << " is in dex cache!";
   6907       }
   6908     }
   6909   }
   6910 
   6911   void ClobberOldMethods(LengthPrefixedArray<ArtMethod>* old_methods,
   6912                          LengthPrefixedArray<ArtMethod>* methods) {
   6913     if (kIsDebugBuild) {
   6914       CHECK(methods != nullptr);
   6915       // Put some random garbage in old methods to help find stale pointers.
   6916       if (methods != old_methods && old_methods != nullptr) {
   6917         // Need to make sure the GC is not running since it could be scanning the methods we are
   6918         // about to overwrite.
   6919         ScopedThreadStateChange tsc(self_, kSuspended);
   6920         gc::ScopedGCCriticalSection gcs(self_,
   6921                                         gc::kGcCauseClassLinker,
   6922                                         gc::kCollectorTypeClassLinker);
   6923         const size_t old_size = LengthPrefixedArray<ArtMethod>::ComputeSize(old_methods->size(),
   6924                                                                             method_size_,
   6925                                                                             method_alignment_);
   6926         memset(old_methods, 0xFEu, old_size);
   6927       }
   6928     }
   6929   }
   6930 
   6931  private:
   6932   size_t NumberOfNewVirtuals() const {
   6933     return miranda_methods_.size() +
   6934            default_methods_.size() +
   6935            overriding_default_conflict_methods_.size() +
   6936            overriding_default_methods_.size() +
   6937            default_conflict_methods_.size();
   6938   }
   6939 
   6940   bool FillTables() REQUIRES_SHARED(Locks::mutator_lock_) {
   6941     return !klass_->IsInterface();
   6942   }
   6943 
   6944   void LogNewVirtuals() const REQUIRES_SHARED(Locks::mutator_lock_) {
   6945     DCHECK(!klass_->IsInterface() || (default_methods_.empty() && miranda_methods_.empty()))
   6946         << "Interfaces should only have default-conflict methods appended to them.";
   6947     VLOG(class_linker) << mirror::Class::PrettyClass(klass_.Get()) << ": miranda_methods="
   6948                        << miranda_methods_.size()
   6949                        << " default_methods=" << default_methods_.size()
   6950                        << " overriding_default_methods=" << overriding_default_methods_.size()
   6951                        << " default_conflict_methods=" << default_conflict_methods_.size()
   6952                        << " overriding_default_conflict_methods="
   6953                        << overriding_default_conflict_methods_.size();
   6954   }
   6955 
   6956   ClassLinker* class_linker_;
   6957   Handle<mirror::Class> klass_;
   6958   size_t method_alignment_;
   6959   size_t method_size_;
   6960   Thread* const self_;
   6961 
   6962   // These are allocated on the heap to begin, we then transfer to linear alloc when we re-create
   6963   // the virtual methods array.
   6964   // Need to use low 4GB arenas for compiler or else the pointers wont fit in 32 bit method array
   6965   // during cross compilation.
   6966   // Use the linear alloc pool since this one is in the low 4gb for the compiler.
   6967   ArenaStack stack_;
   6968   ScopedArenaAllocator allocator_;
   6969 
   6970   ScopedArenaVector<ArtMethod*> default_conflict_methods_;
   6971   ScopedArenaVector<ArtMethod*> overriding_default_conflict_methods_;
   6972   ScopedArenaVector<ArtMethod*> miranda_methods_;
   6973   ScopedArenaVector<ArtMethod*> default_methods_;
   6974   ScopedArenaVector<ArtMethod*> overriding_default_methods_;
   6975 
   6976   ScopedArenaUnorderedMap<ArtMethod*, ArtMethod*> move_table_;
   6977 };
   6978 
   6979 ArtMethod* ClassLinker::LinkInterfaceMethodsHelper::FindMethod(
   6980     ArtMethod* interface_method,
   6981     MethodNameAndSignatureComparator& interface_name_comparator,
   6982     ArtMethod* vtable_impl) {
   6983   ArtMethod* current_method = nullptr;
   6984   switch (class_linker_->FindDefaultMethodImplementation(self_,
   6985                                                          interface_method,
   6986                                                          klass_,
   6987                                                          /*out*/&current_method)) {
   6988     case DefaultMethodSearchResult::kDefaultConflict: {
   6989       // Default method conflict.
   6990       DCHECK(current_method == nullptr);
   6991       ArtMethod* default_conflict_method = nullptr;
   6992       if (vtable_impl != nullptr && vtable_impl->IsDefaultConflicting()) {
   6993         // We can reuse the method from the superclass, don't bother adding it to virtuals.
   6994         default_conflict_method = vtable_impl;
   6995       } else {
   6996         // See if we already have a conflict method for this method.
   6997         ArtMethod* preexisting_conflict = FindSameNameAndSignature(
   6998             interface_name_comparator,
   6999             default_conflict_methods_,
   7000             overriding_default_conflict_methods_);
   7001         if (LIKELY(preexisting_conflict != nullptr)) {
   7002           // We already have another conflict we can reuse.
   7003           default_conflict_method = preexisting_conflict;
   7004         } else {
   7005           // Note that we do this even if we are an interface since we need to create this and
   7006           // cannot reuse another classes.
   7007           // Create a new conflict method for this to use.
   7008           default_conflict_method = reinterpret_cast<ArtMethod*>(allocator_.Alloc(method_size_));
   7009           new(default_conflict_method) ArtMethod(interface_method,
   7010                                                  class_linker_->GetImagePointerSize());
   7011           if (vtable_impl == nullptr) {
   7012             // Save the conflict method. We need to add it to the vtable.
   7013             default_conflict_methods_.push_back(default_conflict_method);
   7014           } else {
   7015             // Save the conflict method but it is already in the vtable.
   7016             overriding_default_conflict_methods_.push_back(default_conflict_method);
   7017           }
   7018         }
   7019       }
   7020       current_method = default_conflict_method;
   7021       break;
   7022     }  // case kDefaultConflict
   7023     case DefaultMethodSearchResult::kDefaultFound: {
   7024       DCHECK(current_method != nullptr);
   7025       // Found a default method.
   7026       if (vtable_impl != nullptr &&
   7027           current_method->GetDeclaringClass() == vtable_impl->GetDeclaringClass()) {
   7028         // We found a default method but it was the same one we already have from our
   7029         // superclass. Don't bother adding it to our vtable again.
   7030         current_method = vtable_impl;
   7031       } else if (LIKELY(FillTables())) {
   7032         // Interfaces don't need to copy default methods since they don't have vtables.
   7033         // Only record this default method if it is new to save space.
   7034         // TODO It might be worthwhile to copy default methods on interfaces anyway since it
   7035         //      would make lookup for interface super much faster. (We would only need to scan
   7036         //      the iftable to find if there is a NSME or AME.)
   7037         ArtMethod* old = FindSameNameAndSignature(interface_name_comparator,
   7038                                                   default_methods_,
   7039                                                   overriding_default_methods_);
   7040         if (old == nullptr) {
   7041           // We found a default method implementation and there were no conflicts.
   7042           if (vtable_impl == nullptr) {
   7043             // Save the default method. We need to add it to the vtable.
   7044             default_methods_.push_back(current_method);
   7045           } else {
   7046             // Save the default method but it is already in the vtable.
   7047             overriding_default_methods_.push_back(current_method);
   7048           }
   7049         } else {
   7050           CHECK(old == current_method) << "Multiple default implementations selected!";
   7051         }
   7052       }
   7053       break;
   7054     }  // case kDefaultFound
   7055     case DefaultMethodSearchResult::kAbstractFound: {
   7056       DCHECK(current_method == nullptr);
   7057       // Abstract method masks all defaults.
   7058       if (vtable_impl != nullptr &&
   7059           vtable_impl->IsAbstract() &&
   7060           !vtable_impl->IsDefaultConflicting()) {
   7061         // We need to make this an abstract method but the version in the vtable already is so
   7062         // don't do anything.
   7063         current_method = vtable_impl;
   7064       }
   7065       break;
   7066     }  // case kAbstractFound
   7067   }
   7068   return current_method;
   7069 }
   7070 
   7071 ArtMethod* ClassLinker::LinkInterfaceMethodsHelper::GetOrCreateMirandaMethod(
   7072     ArtMethod* interface_method,
   7073     MethodNameAndSignatureComparator& interface_name_comparator) {
   7074   // Find out if there is already a miranda method we can use.
   7075   ArtMethod* miranda_method = FindSameNameAndSignature(interface_name_comparator,
   7076                                                        miranda_methods_);
   7077   if (miranda_method == nullptr) {
   7078     DCHECK(interface_method->IsAbstract()) << interface_method->PrettyMethod();
   7079     miranda_method = reinterpret_cast<ArtMethod*>(allocator_.Alloc(method_size_));
   7080     CHECK(miranda_method != nullptr);
   7081     // Point the interface table at a phantom slot.
   7082     new(miranda_method) ArtMethod(interface_method, class_linker_->GetImagePointerSize());
   7083     miranda_methods_.push_back(miranda_method);
   7084   }
   7085   return miranda_method;
   7086 }
   7087 
   7088 void ClassLinker::LinkInterfaceMethodsHelper::ReallocMethods() {
   7089   LogNewVirtuals();
   7090 
   7091   const size_t old_method_count = klass_->NumMethods();
   7092   const size_t new_method_count = old_method_count + NumberOfNewVirtuals();
   7093   DCHECK_NE(old_method_count, new_method_count);
   7094 
   7095   // Attempt to realloc to save RAM if possible.
   7096   LengthPrefixedArray<ArtMethod>* old_methods = klass_->GetMethodsPtr();
   7097   // The Realloced virtual methods aren't visible from the class roots, so there is no issue
   7098   // where GCs could attempt to mark stale pointers due to memcpy. And since we overwrite the
   7099   // realloced memory with out->CopyFrom, we are guaranteed to have objects in the to space since
   7100   // CopyFrom has internal read barriers.
   7101   //
   7102   // TODO We should maybe move some of this into mirror::Class or at least into another method.
   7103   const size_t old_size = LengthPrefixedArray<ArtMethod>::ComputeSize(old_method_count,
   7104                                                                       method_size_,
   7105                                                                       method_alignment_);
   7106   const size_t new_size = LengthPrefixedArray<ArtMethod>::ComputeSize(new_method_count,
   7107                                                                       method_size_,
   7108                                                                       method_alignment_);
   7109   const size_t old_methods_ptr_size = (old_methods != nullptr) ? old_size : 0;
   7110   auto* methods = reinterpret_cast<LengthPrefixedArray<ArtMethod>*>(
   7111       Runtime::Current()->GetLinearAlloc()->Realloc(
   7112           self_, old_methods, old_methods_ptr_size, new_size));
   7113   CHECK(methods != nullptr);  // Native allocation failure aborts.
   7114 
   7115   PointerSize pointer_size = class_linker_->GetImagePointerSize();
   7116   if (methods != old_methods) {
   7117     // Maps from heap allocated miranda method to linear alloc miranda method.
   7118     StrideIterator<ArtMethod> out = methods->begin(method_size_, method_alignment_);
   7119     // Copy over the old methods.
   7120     for (auto& m : klass_->GetMethods(pointer_size)) {
   7121       move_table_.emplace(&m, &*out);
   7122       // The CopyFrom is only necessary to not miss read barriers since Realloc won't do read
   7123       // barriers when it copies.
   7124       out->CopyFrom(&m, pointer_size);
   7125       ++out;
   7126     }
   7127   }
   7128   StrideIterator<ArtMethod> out(methods->begin(method_size_, method_alignment_) + old_method_count);
   7129   // Copy over miranda methods before copying vtable since CopyOf may cause thread suspension and
   7130   // we want the roots of the miranda methods to get visited.
   7131   for (size_t i = 0; i < miranda_methods_.size(); ++i) {
   7132     ArtMethod* mir_method = miranda_methods_[i];
   7133     ArtMethod& new_method = *out;
   7134     new_method.CopyFrom(mir_method, pointer_size);
   7135     new_method.SetAccessFlags(new_method.GetAccessFlags() | kAccMiranda | kAccCopied);
   7136     DCHECK_NE(new_method.GetAccessFlags() & kAccAbstract, 0u)
   7137         << "Miranda method should be abstract!";
   7138     move_table_.emplace(mir_method, &new_method);
   7139     // Update the entry in the method array, as the array will be used for future lookups,
   7140     // where thread suspension is allowed.
   7141     // As such, the array should not contain locally allocated ArtMethod, otherwise the GC
   7142     // would not see them.
   7143     miranda_methods_[i] = &new_method;
   7144     ++out;
   7145   }
   7146   // We need to copy the default methods into our own method table since the runtime requires that
   7147   // every method on a class's vtable be in that respective class's virtual method table.
   7148   // NOTE This means that two classes might have the same implementation of a method from the same
   7149   // interface but will have different ArtMethod*s for them. This also means we cannot compare a
   7150   // default method found on a class with one found on the declaring interface directly and must
   7151   // look at the declaring class to determine if they are the same.
   7152   for (ScopedArenaVector<ArtMethod*>* methods_vec : {&default_methods_,
   7153                                                      &overriding_default_methods_}) {
   7154     for (size_t i = 0; i < methods_vec->size(); ++i) {
   7155       ArtMethod* def_method = (*methods_vec)[i];
   7156       ArtMethod& new_method = *out;
   7157       new_method.CopyFrom(def_method, pointer_size);
   7158       // Clear the kAccSkipAccessChecks flag if it is present. Since this class hasn't been
   7159       // verified yet it shouldn't have methods that are skipping access checks.
   7160       // TODO This is rather arbitrary. We should maybe support classes where only some of its
   7161       // methods are skip_access_checks.
   7162       constexpr uint32_t kSetFlags = kAccDefault | kAccCopied;
   7163       constexpr uint32_t kMaskFlags = ~kAccSkipAccessChecks;
   7164       new_method.SetAccessFlags((new_method.GetAccessFlags() | kSetFlags) & kMaskFlags);
   7165       move_table_.emplace(def_method, &new_method);
   7166       // Update the entry in the method array, as the array will be used for future lookups,
   7167       // where thread suspension is allowed.
   7168       // As such, the array should not contain locally allocated ArtMethod, otherwise the GC
   7169       // would not see them.
   7170       (*methods_vec)[i] = &new_method;
   7171       ++out;
   7172     }
   7173   }
   7174   for (ScopedArenaVector<ArtMethod*>* methods_vec : {&default_conflict_methods_,
   7175                                                      &overriding_default_conflict_methods_}) {
   7176     for (size_t i = 0; i < methods_vec->size(); ++i) {
   7177       ArtMethod* conf_method = (*methods_vec)[i];
   7178       ArtMethod& new_method = *out;
   7179       new_method.CopyFrom(conf_method, pointer_size);
   7180       // This is a type of default method (there are default method impls, just a conflict) so
   7181       // mark this as a default, non-abstract method, since thats what it is. Also clear the
   7182       // kAccSkipAccessChecks bit since this class hasn't been verified yet it shouldn't have
   7183       // methods that are skipping access checks.
   7184       constexpr uint32_t kSetFlags = kAccDefault | kAccDefaultConflict | kAccCopied;
   7185       constexpr uint32_t kMaskFlags = ~(kAccAbstract | kAccSkipAccessChecks);
   7186       new_method.SetAccessFlags((new_method.GetAccessFlags() | kSetFlags) & kMaskFlags);
   7187       DCHECK(new_method.IsDefaultConflicting());
   7188       // The actual method might or might not be marked abstract since we just copied it from a
   7189       // (possibly default) interface method. We need to set it entry point to be the bridge so
   7190       // that the compiler will not invoke the implementation of whatever method we copied from.
   7191       EnsureThrowsInvocationError(class_linker_, &new_method);
   7192       move_table_.emplace(conf_method, &new_method);
   7193       // Update the entry in the method array, as the array will be used for future lookups,
   7194       // where thread suspension is allowed.
   7195       // As such, the array should not contain locally allocated ArtMethod, otherwise the GC
   7196       // would not see them.
   7197       (*methods_vec)[i] = &new_method;
   7198       ++out;
   7199     }
   7200   }
   7201   methods->SetSize(new_method_count);
   7202   class_linker_->UpdateClassMethods(klass_.Get(), methods);
   7203 }
   7204 
   7205 ObjPtr<mirror::PointerArray> ClassLinker::LinkInterfaceMethodsHelper::UpdateVtable(
   7206     const std::unordered_map<size_t, ClassLinker::MethodTranslation>& default_translations,
   7207     ObjPtr<mirror::PointerArray> old_vtable) {
   7208   // Update the vtable to the new method structures. We can skip this for interfaces since they
   7209   // do not have vtables.
   7210   const size_t old_vtable_count = old_vtable->GetLength();
   7211   const size_t new_vtable_count = old_vtable_count +
   7212                                   miranda_methods_.size() +
   7213                                   default_methods_.size() +
   7214                                   default_conflict_methods_.size();
   7215 
   7216   ObjPtr<mirror::PointerArray> vtable =
   7217       down_cast<mirror::PointerArray*>(old_vtable->CopyOf(self_, new_vtable_count));
   7218   if (UNLIKELY(vtable == nullptr)) {
   7219     self_->AssertPendingOOMException();
   7220     return nullptr;
   7221   }
   7222 
   7223   size_t vtable_pos = old_vtable_count;
   7224   PointerSize pointer_size = class_linker_->GetImagePointerSize();
   7225   // Update all the newly copied method's indexes so they denote their placement in the vtable.
   7226   for (const ScopedArenaVector<ArtMethod*>& methods_vec : {default_methods_,
   7227                                                            default_conflict_methods_,
   7228                                                            miranda_methods_}) {
   7229     // These are the functions that are not already in the vtable!
   7230     for (ArtMethod* new_vtable_method : methods_vec) {
   7231       // Leave the declaring class alone the method's dex_code_item_offset_ and dex_method_index_
   7232       // fields are references into the dex file the method was defined in. Since the ArtMethod
   7233       // does not store that information it uses declaring_class_->dex_cache_.
   7234       new_vtable_method->SetMethodIndex(0xFFFF & vtable_pos);
   7235       vtable->SetElementPtrSize(vtable_pos, new_vtable_method, pointer_size);
   7236       ++vtable_pos;
   7237     }
   7238   }
   7239   DCHECK_EQ(vtable_pos, new_vtable_count);
   7240 
   7241   // Update old vtable methods. We use the default_translations map to figure out what each
   7242   // vtable entry should be updated to, if they need to be at all.
   7243   for (size_t i = 0; i < old_vtable_count; ++i) {
   7244     ArtMethod* translated_method = vtable->GetElementPtrSize<ArtMethod*>(i, pointer_size);
   7245     // Try and find what we need to change this method to.
   7246     auto translation_it = default_translations.find(i);
   7247     if (translation_it != default_translations.end()) {
   7248       if (translation_it->second.IsInConflict()) {
   7249         // Find which conflict method we are to use for this method.
   7250         MethodNameAndSignatureComparator old_method_comparator(
   7251             translated_method->GetInterfaceMethodIfProxy(pointer_size));
   7252         // We only need to look through overriding_default_conflict_methods since this is an
   7253         // overridden method we are fixing up here.
   7254         ArtMethod* new_conflict_method = FindSameNameAndSignature(
   7255             old_method_comparator, overriding_default_conflict_methods_);
   7256         CHECK(new_conflict_method != nullptr) << "Expected a conflict method!";
   7257         translated_method = new_conflict_method;
   7258       } else if (translation_it->second.IsAbstract()) {
   7259         // Find which miranda method we are to use for this method.
   7260         MethodNameAndSignatureComparator old_method_comparator(
   7261             translated_method->GetInterfaceMethodIfProxy(pointer_size));
   7262         ArtMethod* miranda_method = FindSameNameAndSignature(old_method_comparator,
   7263                                                              miranda_methods_);
   7264         DCHECK(miranda_method != nullptr);
   7265         translated_method = miranda_method;
   7266       } else {
   7267         // Normal default method (changed from an older default or abstract interface method).
   7268         DCHECK(translation_it->second.IsTranslation());
   7269         translated_method = translation_it->second.GetTranslation();
   7270         auto it = move_table_.find(translated_method);
   7271         DCHECK(it != move_table_.end());
   7272         translated_method = it->second;
   7273       }
   7274     } else {
   7275       auto it = move_table_.find(translated_method);
   7276       translated_method = (it != move_table_.end()) ? it->second : nullptr;
   7277     }
   7278 
   7279     if (translated_method != nullptr) {
   7280       // Make sure the new_methods index is set.
   7281       if (translated_method->GetMethodIndexDuringLinking() != i) {
   7282         if (kIsDebugBuild) {
   7283           auto* methods = klass_->GetMethodsPtr();
   7284           CHECK_LE(reinterpret_cast<uintptr_t>(&*methods->begin(method_size_, method_alignment_)),
   7285                    reinterpret_cast<uintptr_t>(translated_method));
   7286           CHECK_LT(reinterpret_cast<uintptr_t>(translated_method),
   7287                    reinterpret_cast<uintptr_t>(&*methods->end(method_size_, method_alignment_)));
   7288         }
   7289         translated_method->SetMethodIndex(0xFFFF & i);
   7290       }
   7291       vtable->SetElementPtrSize(i, translated_method, pointer_size);
   7292     }
   7293   }
   7294   klass_->SetVTable(vtable.Ptr());
   7295   return vtable;
   7296 }
   7297 
   7298 void ClassLinker::LinkInterfaceMethodsHelper::UpdateIfTable(Handle<mirror::IfTable> iftable) {
   7299   PointerSize pointer_size = class_linker_->GetImagePointerSize();
   7300   const size_t ifcount = klass_->GetIfTableCount();
   7301   // Go fix up all the stale iftable pointers.
   7302   for (size_t i = 0; i < ifcount; ++i) {
   7303     for (size_t j = 0, count = iftable->GetMethodArrayCount(i); j < count; ++j) {
   7304       auto* method_array = iftable->GetMethodArray(i);
   7305       auto* m = method_array->GetElementPtrSize<ArtMethod*>(j, pointer_size);
   7306       DCHECK(m != nullptr) << klass_->PrettyClass();
   7307       auto it = move_table_.find(m);
   7308       if (it != move_table_.end()) {
   7309         auto* new_m = it->second;
   7310         DCHECK(new_m != nullptr) << klass_->PrettyClass();
   7311         method_array->SetElementPtrSize(j, new_m, pointer_size);
   7312       }
   7313     }
   7314   }
   7315 }
   7316 
   7317 void ClassLinker::LinkInterfaceMethodsHelper::UpdateIMT(ArtMethod** out_imt) {
   7318   // Fix up IMT next.
   7319   for (size_t i = 0; i < ImTable::kSize; ++i) {
   7320     auto it = move_table_.find(out_imt[i]);
   7321     if (it != move_table_.end()) {
   7322       out_imt[i] = it->second;
   7323     }
   7324   }
   7325 }
   7326 
   7327 // TODO This method needs to be split up into several smaller methods.
   7328 bool ClassLinker::LinkInterfaceMethods(
   7329     Thread* self,
   7330     Handle<mirror::Class> klass,
   7331     const std::unordered_map<size_t, ClassLinker::MethodTranslation>& default_translations,
   7332     bool* out_new_conflict,
   7333     ArtMethod** out_imt) {
   7334   StackHandleScope<3> hs(self);
   7335   Runtime* const runtime = Runtime::Current();
   7336 
   7337   const bool is_interface = klass->IsInterface();
   7338   const bool has_superclass = klass->HasSuperClass();
   7339   const bool fill_tables = !is_interface;
   7340   const size_t super_ifcount = has_superclass ? klass->GetSuperClass()->GetIfTableCount() : 0U;
   7341   const size_t ifcount = klass->GetIfTableCount();
   7342 
   7343   Handle<mirror::IfTable> iftable(hs.NewHandle(klass->GetIfTable()));
   7344 
   7345   MutableHandle<mirror::PointerArray> vtable(hs.NewHandle(klass->GetVTableDuringLinking()));
   7346   ArtMethod* const unimplemented_method = runtime->GetImtUnimplementedMethod();
   7347   ArtMethod* const imt_conflict_method = runtime->GetImtConflictMethod();
   7348   // Copy the IMT from the super class if possible.
   7349   const bool extend_super_iftable = has_superclass;
   7350   if (has_superclass && fill_tables) {
   7351     FillImtFromSuperClass(klass,
   7352                           unimplemented_method,
   7353                           imt_conflict_method,
   7354                           out_new_conflict,
   7355                           out_imt);
   7356   }
   7357   // Allocate method arrays before since we don't want miss visiting miranda method roots due to
   7358   // thread suspension.
   7359   if (fill_tables) {
   7360     if (!AllocateIfTableMethodArrays(self, klass, iftable)) {
   7361       return false;
   7362     }
   7363   }
   7364 
   7365   LinkInterfaceMethodsHelper helper(this, klass, self, runtime);
   7366 
   7367   auto* old_cause = self->StartAssertNoThreadSuspension(
   7368       "Copying ArtMethods for LinkInterfaceMethods");
   7369   // Going in reverse to ensure that we will hit abstract methods that override defaults before the
   7370   // defaults. This means we don't need to do any trickery when creating the Miranda methods, since
   7371   // they will already be null. This has the additional benefit that the declarer of a miranda
   7372   // method will actually declare an abstract method.
   7373   for (size_t i = ifcount; i != 0; ) {
   7374     --i;
   7375 
   7376     DCHECK_GE(i, 0u);
   7377     DCHECK_LT(i, ifcount);
   7378 
   7379     size_t num_methods = iftable->GetInterface(i)->NumDeclaredVirtualMethods();
   7380     if (num_methods > 0) {
   7381       StackHandleScope<2> hs2(self);
   7382       const bool is_super = i < super_ifcount;
   7383       const bool super_interface = is_super && extend_super_iftable;
   7384       // We don't actually create or fill these tables for interfaces, we just copy some methods for
   7385       // conflict methods. Just set this as nullptr in those cases.
   7386       Handle<mirror::PointerArray> method_array(fill_tables
   7387                                                 ? hs2.NewHandle(iftable->GetMethodArray(i))
   7388                                                 : hs2.NewHandle<mirror::PointerArray>(nullptr));
   7389 
   7390       ArraySlice<ArtMethod> input_virtual_methods;
   7391       ScopedNullHandle<mirror::PointerArray> null_handle;
   7392       Handle<mirror::PointerArray> input_vtable_array(null_handle);
   7393       int32_t input_array_length = 0;
   7394 
   7395       // TODO Cleanup Needed: In the presence of default methods this optimization is rather dirty
   7396       //      and confusing. Default methods should always look through all the superclasses
   7397       //      because they are the last choice of an implementation. We get around this by looking
   7398       //      at the super-classes iftable methods (copied into method_array previously) when we are
   7399       //      looking for the implementation of a super-interface method but that is rather dirty.
   7400       bool using_virtuals;
   7401       if (super_interface || is_interface) {
   7402         // If we are overwriting a super class interface, try to only virtual methods instead of the
   7403         // whole vtable.
   7404         using_virtuals = true;
   7405         input_virtual_methods = klass->GetDeclaredMethodsSlice(image_pointer_size_);
   7406         input_array_length = input_virtual_methods.size();
   7407       } else {
   7408         // For a new interface, however, we need the whole vtable in case a new
   7409         // interface method is implemented in the whole superclass.
   7410         using_virtuals = false;
   7411         DCHECK(vtable != nullptr);
   7412         input_vtable_array = vtable;
   7413         input_array_length = input_vtable_array->GetLength();
   7414       }
   7415 
   7416       // For each method in interface
   7417       for (size_t j = 0; j < num_methods; ++j) {
   7418         auto* interface_method = iftable->GetInterface(i)->GetVirtualMethod(j, image_pointer_size_);
   7419         MethodNameAndSignatureComparator interface_name_comparator(
   7420             interface_method->GetInterfaceMethodIfProxy(image_pointer_size_));
   7421         uint32_t imt_index = ImTable::GetImtIndex(interface_method);
   7422         ArtMethod** imt_ptr = &out_imt[imt_index];
   7423         // For each method listed in the interface's method list, find the
   7424         // matching method in our class's method list.  We want to favor the
   7425         // subclass over the superclass, which just requires walking
   7426         // back from the end of the vtable.  (This only matters if the
   7427         // superclass defines a private method and this class redefines
   7428         // it -- otherwise it would use the same vtable slot.  In .dex files
   7429         // those don't end up in the virtual method table, so it shouldn't
   7430         // matter which direction we go.  We walk it backward anyway.)
   7431         //
   7432         // To find defaults we need to do the same but also go over interfaces.
   7433         bool found_impl = false;
   7434         ArtMethod* vtable_impl = nullptr;
   7435         for (int32_t k = input_array_length - 1; k >= 0; --k) {
   7436           ArtMethod* vtable_method = using_virtuals ?
   7437               &input_virtual_methods[k] :
   7438               input_vtable_array->GetElementPtrSize<ArtMethod*>(k, image_pointer_size_);
   7439           ArtMethod* vtable_method_for_name_comparison =
   7440               vtable_method->GetInterfaceMethodIfProxy(image_pointer_size_);
   7441           if (interface_name_comparator.HasSameNameAndSignature(
   7442               vtable_method_for_name_comparison)) {
   7443             if (!vtable_method->IsAbstract() && !vtable_method->IsPublic()) {
   7444               // Must do EndAssertNoThreadSuspension before throw since the throw can cause
   7445               // allocations.
   7446               self->EndAssertNoThreadSuspension(old_cause);
   7447               ThrowIllegalAccessError(klass.Get(),
   7448                   "Method '%s' implementing interface method '%s' is not public",
   7449                   vtable_method->PrettyMethod().c_str(),
   7450                   interface_method->PrettyMethod().c_str());
   7451               return false;
   7452             } else if (UNLIKELY(vtable_method->IsOverridableByDefaultMethod())) {
   7453               // We might have a newer, better, default method for this, so we just skip it. If we
   7454               // are still using this we will select it again when scanning for default methods. To
   7455               // obviate the need to copy the method again we will make a note that we already found
   7456               // a default here.
   7457               // TODO This should be much cleaner.
   7458               vtable_impl = vtable_method;
   7459               break;
   7460             } else {
   7461               found_impl = true;
   7462               if (LIKELY(fill_tables)) {
   7463                 method_array->SetElementPtrSize(j, vtable_method, image_pointer_size_);
   7464                 // Place method in imt if entry is empty, place conflict otherwise.
   7465                 SetIMTRef(unimplemented_method,
   7466                           imt_conflict_method,
   7467                           vtable_method,
   7468                           /*out*/out_new_conflict,
   7469                           /*out*/imt_ptr);
   7470               }
   7471               break;
   7472             }
   7473           }
   7474         }
   7475         // Continue on to the next method if we are done.
   7476         if (LIKELY(found_impl)) {
   7477           continue;
   7478         } else if (LIKELY(super_interface)) {
   7479           // Don't look for a default implementation when the super-method is implemented directly
   7480           // by the class.
   7481           //
   7482           // See if we can use the superclasses method and skip searching everything else.
   7483           // Note: !found_impl && super_interface
   7484           CHECK(extend_super_iftable);
   7485           // If this is a super_interface method it is possible we shouldn't override it because a
   7486           // superclass could have implemented it directly.  We get the method the superclass used
   7487           // to implement this to know if we can override it with a default method. Doing this is
   7488           // safe since we know that the super_iftable is filled in so we can simply pull it from
   7489           // there. We don't bother if this is not a super-classes interface since in that case we
   7490           // have scanned the entire vtable anyway and would have found it.
   7491           // TODO This is rather dirty but it is faster than searching through the entire vtable
   7492           //      every time.
   7493           ArtMethod* supers_method =
   7494               method_array->GetElementPtrSize<ArtMethod*>(j, image_pointer_size_);
   7495           DCHECK(supers_method != nullptr);
   7496           DCHECK(interface_name_comparator.HasSameNameAndSignature(supers_method));
   7497           if (LIKELY(!supers_method->IsOverridableByDefaultMethod())) {
   7498             // The method is not overridable by a default method (i.e. it is directly implemented
   7499             // in some class). Therefore move onto the next interface method.
   7500             continue;
   7501           } else {
   7502             // If the super-classes method is override-able by a default method we need to keep
   7503             // track of it since though it is override-able it is not guaranteed to be 'overridden'.
   7504             // If it turns out not to be overridden and we did not keep track of it we might add it
   7505             // to the vtable twice, causing corruption (vtable entries having inconsistent and
   7506             // illegal states, incorrect vtable size, and incorrect or inconsistent iftable entries)
   7507             // in this class and any subclasses.
   7508             DCHECK(vtable_impl == nullptr || vtable_impl == supers_method)
   7509                 << "vtable_impl was " << ArtMethod::PrettyMethod(vtable_impl)
   7510                 << " and not 'nullptr' or "
   7511                 << supers_method->PrettyMethod()
   7512                 << " as expected. IFTable appears to be corrupt!";
   7513             vtable_impl = supers_method;
   7514           }
   7515         }
   7516         // If we haven't found it yet we should search through the interfaces for default methods.
   7517         ArtMethod* current_method = helper.FindMethod(interface_method,
   7518                                                       interface_name_comparator,
   7519                                                       vtable_impl);
   7520         if (LIKELY(fill_tables)) {
   7521           if (current_method == nullptr && !super_interface) {
   7522             // We could not find an implementation for this method and since it is a brand new
   7523             // interface we searched the entire vtable (and all default methods) for an
   7524             // implementation but couldn't find one. We therefore need to make a miranda method.
   7525             current_method = helper.GetOrCreateMirandaMethod(interface_method,
   7526                                                              interface_name_comparator);
   7527           }
   7528 
   7529           if (current_method != nullptr) {
   7530             // We found a default method implementation. Record it in the iftable and IMT.
   7531             method_array->SetElementPtrSize(j, current_method, image_pointer_size_);
   7532             SetIMTRef(unimplemented_method,
   7533                       imt_conflict_method,
   7534                       current_method,
   7535                       /*out*/out_new_conflict,
   7536                       /*out*/imt_ptr);
   7537           }
   7538         }
   7539       }  // For each method in interface end.
   7540     }  // if (num_methods > 0)
   7541   }  // For each interface.
   7542   // TODO don't extend virtuals of interface unless necessary (when is it?).
   7543   if (helper.HasNewVirtuals()) {
   7544     LengthPrefixedArray<ArtMethod>* old_methods = kIsDebugBuild ? klass->GetMethodsPtr() : nullptr;
   7545     helper.ReallocMethods();  // No return value to check. Native allocation failure aborts.
   7546     LengthPrefixedArray<ArtMethod>* methods = kIsDebugBuild ? klass->GetMethodsPtr() : nullptr;
   7547 
   7548     // Done copying methods, they are all roots in the class now, so we can end the no thread
   7549     // suspension assert.
   7550     self->EndAssertNoThreadSuspension(old_cause);
   7551 
   7552     if (fill_tables) {
   7553       vtable.Assign(helper.UpdateVtable(default_translations, vtable.Get()));
   7554       if (UNLIKELY(vtable == nullptr)) {
   7555         // The helper has already called self->AssertPendingOOMException();
   7556         return false;
   7557       }
   7558       helper.UpdateIfTable(iftable);
   7559       helper.UpdateIMT(out_imt);
   7560     }
   7561 
   7562     helper.CheckNoStaleMethodsInDexCache();
   7563     helper.ClobberOldMethods(old_methods, methods);
   7564   } else {
   7565     self->EndAssertNoThreadSuspension(old_cause);
   7566   }
   7567   if (kIsDebugBuild && !is_interface) {
   7568     SanityCheckVTable(self, klass, image_pointer_size_);
   7569   }
   7570   return true;
   7571 }
   7572 
   7573 bool ClassLinker::LinkInstanceFields(Thread* self, Handle<mirror::Class> klass) {
   7574   CHECK(klass != nullptr);
   7575   return LinkFields(self, klass, false, nullptr);
   7576 }
   7577 
   7578 bool ClassLinker::LinkStaticFields(Thread* self, Handle<mirror::Class> klass, size_t* class_size) {
   7579   CHECK(klass != nullptr);
   7580   return LinkFields(self, klass, true, class_size);
   7581 }
   7582 
   7583 struct LinkFieldsComparator {
   7584   explicit LinkFieldsComparator() REQUIRES_SHARED(Locks::mutator_lock_) {
   7585   }
   7586   // No thread safety analysis as will be called from STL. Checked lock held in constructor.
   7587   bool operator()(ArtField* field1, ArtField* field2)
   7588       NO_THREAD_SAFETY_ANALYSIS {
   7589     // First come reference fields, then 64-bit, then 32-bit, and then 16-bit, then finally 8-bit.
   7590     Primitive::Type type1 = field1->GetTypeAsPrimitiveType();
   7591     Primitive::Type type2 = field2->GetTypeAsPrimitiveType();
   7592     if (type1 != type2) {
   7593       if (type1 == Primitive::kPrimNot) {
   7594         // Reference always goes first.
   7595         return true;
   7596       }
   7597       if (type2 == Primitive::kPrimNot) {
   7598         // Reference always goes first.
   7599         return false;
   7600       }
   7601       size_t size1 = Primitive::ComponentSize(type1);
   7602       size_t size2 = Primitive::ComponentSize(type2);
   7603       if (size1 != size2) {
   7604         // Larger primitive types go first.
   7605         return size1 > size2;
   7606       }
   7607       // Primitive types differ but sizes match. Arbitrarily order by primitive type.
   7608       return type1 < type2;
   7609     }
   7610     // Same basic group? Then sort by dex field index. This is guaranteed to be sorted
   7611     // by name and for equal names by type id index.
   7612     // NOTE: This works also for proxies. Their static fields are assigned appropriate indexes.
   7613     return field1->GetDexFieldIndex() < field2->GetDexFieldIndex();
   7614   }
   7615 };
   7616 
   7617 bool ClassLinker::LinkFields(Thread* self,
   7618                              Handle<mirror::Class> klass,
   7619                              bool is_static,
   7620                              size_t* class_size) {
   7621   self->AllowThreadSuspension();
   7622   const size_t num_fields = is_static ? klass->NumStaticFields() : klass->NumInstanceFields();
   7623   LengthPrefixedArray<ArtField>* const fields = is_static ? klass->GetSFieldsPtr() :
   7624       klass->GetIFieldsPtr();
   7625 
   7626   // Initialize field_offset
   7627   MemberOffset field_offset(0);
   7628   if (is_static) {
   7629     field_offset = klass->GetFirstReferenceStaticFieldOffsetDuringLinking(image_pointer_size_);
   7630   } else {
   7631     ObjPtr<mirror::Class> super_class = klass->GetSuperClass();
   7632     if (super_class != nullptr) {
   7633       CHECK(super_class->IsResolved())
   7634           << klass->PrettyClass() << " " << super_class->PrettyClass();
   7635       field_offset = MemberOffset(super_class->GetObjectSize());
   7636     }
   7637   }
   7638 
   7639   CHECK_EQ(num_fields == 0, fields == nullptr) << klass->PrettyClass();
   7640 
   7641   // we want a relatively stable order so that adding new fields
   7642   // minimizes disruption of C++ version such as Class and Method.
   7643   //
   7644   // The overall sort order order is:
   7645   // 1) All object reference fields, sorted alphabetically.
   7646   // 2) All java long (64-bit) integer fields, sorted alphabetically.
   7647   // 3) All java double (64-bit) floating point fields, sorted alphabetically.
   7648   // 4) All java int (32-bit) integer fields, sorted alphabetically.
   7649   // 5) All java float (32-bit) floating point fields, sorted alphabetically.
   7650   // 6) All java char (16-bit) integer fields, sorted alphabetically.
   7651   // 7) All java short (16-bit) integer fields, sorted alphabetically.
   7652   // 8) All java boolean (8-bit) integer fields, sorted alphabetically.
   7653   // 9) All java byte (8-bit) integer fields, sorted alphabetically.
   7654   //
   7655   // Once the fields are sorted in this order we will attempt to fill any gaps that might be present
   7656   // in the memory layout of the structure. See ShuffleForward for how this is done.
   7657   std::deque<ArtField*> grouped_and_sorted_fields;
   7658   const char* old_no_suspend_cause = self->StartAssertNoThreadSuspension(
   7659       "Naked ArtField references in deque");
   7660   for (size_t i = 0; i < num_fields; i++) {
   7661     grouped_and_sorted_fields.push_back(&fields->At(i));
   7662   }
   7663   std::sort(grouped_and_sorted_fields.begin(), grouped_and_sorted_fields.end(),
   7664             LinkFieldsComparator());
   7665 
   7666   // References should be at the front.
   7667   size_t current_field = 0;
   7668   size_t num_reference_fields = 0;
   7669   FieldGaps gaps;
   7670 
   7671   for (; current_field < num_fields; current_field++) {
   7672     ArtField* field = grouped_and_sorted_fields.front();
   7673     Primitive::Type type = field->GetTypeAsPrimitiveType();
   7674     bool isPrimitive = type != Primitive::kPrimNot;
   7675     if (isPrimitive) {
   7676       break;  // past last reference, move on to the next phase
   7677     }
   7678     if (UNLIKELY(!IsAligned<sizeof(mirror::HeapReference<mirror::Object>)>(
   7679         field_offset.Uint32Value()))) {
   7680       MemberOffset old_offset = field_offset;
   7681       field_offset = MemberOffset(RoundUp(field_offset.Uint32Value(), 4));
   7682       AddFieldGap(old_offset.Uint32Value(), field_offset.Uint32Value(), &gaps);
   7683     }
   7684     DCHECK_ALIGNED(field_offset.Uint32Value(), sizeof(mirror::HeapReference<mirror::Object>));
   7685     grouped_and_sorted_fields.pop_front();
   7686     num_reference_fields++;
   7687     field->SetOffset(field_offset);
   7688     field_offset = MemberOffset(field_offset.Uint32Value() +
   7689                                 sizeof(mirror::HeapReference<mirror::Object>));
   7690   }
   7691   // Gaps are stored as a max heap which means that we must shuffle from largest to smallest
   7692   // otherwise we could end up with suboptimal gap fills.
   7693   ShuffleForward<8>(&current_field, &field_offset, &grouped_and_sorted_fields, &gaps);
   7694   ShuffleForward<4>(&current_field, &field_offset, &grouped_and_sorted_fields, &gaps);
   7695   ShuffleForward<2>(&current_field, &field_offset, &grouped_and_sorted_fields, &gaps);
   7696   ShuffleForward<1>(&current_field, &field_offset, &grouped_and_sorted_fields, &gaps);
   7697   CHECK(grouped_and_sorted_fields.empty()) << "Missed " << grouped_and_sorted_fields.size() <<
   7698       " fields.";
   7699   self->EndAssertNoThreadSuspension(old_no_suspend_cause);
   7700 
   7701   // We lie to the GC about the java.lang.ref.Reference.referent field, so it doesn't scan it.
   7702   if (!is_static && klass->DescriptorEquals("Ljava/lang/ref/Reference;")) {
   7703     // We know there are no non-reference fields in the Reference classes, and we know
   7704     // that 'referent' is alphabetically last, so this is easy...
   7705     CHECK_EQ(num_reference_fields, num_fields) << klass->PrettyClass();
   7706     CHECK_STREQ(fields->At(num_fields - 1).GetName(), "referent")
   7707         << klass->PrettyClass();
   7708     --num_reference_fields;
   7709   }
   7710 
   7711   size_t size = field_offset.Uint32Value();
   7712   // Update klass
   7713   if (is_static) {
   7714     klass->SetNumReferenceStaticFields(num_reference_fields);
   7715     *class_size = size;
   7716   } else {
   7717     klass->SetNumReferenceInstanceFields(num_reference_fields);
   7718     ObjPtr<mirror::Class> super_class = klass->GetSuperClass();
   7719     if (num_reference_fields == 0 || super_class == nullptr) {
   7720       // object has one reference field, klass, but we ignore it since we always visit the class.
   7721       // super_class is null iff the class is java.lang.Object.
   7722       if (super_class == nullptr ||
   7723           (super_class->GetClassFlags() & mirror::kClassFlagNoReferenceFields) != 0) {
   7724         klass->SetClassFlags(klass->GetClassFlags() | mirror::kClassFlagNoReferenceFields);
   7725       }
   7726     }
   7727     if (kIsDebugBuild) {
   7728       DCHECK_EQ(super_class == nullptr, klass->DescriptorEquals("Ljava/lang/Object;"));
   7729       size_t total_reference_instance_fields = 0;
   7730       ObjPtr<mirror::Class> cur_super = klass.Get();
   7731       while (cur_super != nullptr) {
   7732         total_reference_instance_fields += cur_super->NumReferenceInstanceFieldsDuringLinking();
   7733         cur_super = cur_super->GetSuperClass();
   7734       }
   7735       if (super_class == nullptr) {
   7736         CHECK_EQ(total_reference_instance_fields, 1u) << klass->PrettyDescriptor();
   7737       } else {
   7738         // Check that there is at least num_reference_fields other than Object.class.
   7739         CHECK_GE(total_reference_instance_fields, 1u + num_reference_fields)
   7740             << klass->PrettyClass();
   7741       }
   7742     }
   7743     if (!klass->IsVariableSize()) {
   7744       std::string temp;
   7745       DCHECK_GE(size, sizeof(mirror::Object)) << klass->GetDescriptor(&temp);
   7746       size_t previous_size = klass->GetObjectSize();
   7747       if (previous_size != 0) {
   7748         // Make sure that we didn't originally have an incorrect size.
   7749         CHECK_EQ(previous_size, size) << klass->GetDescriptor(&temp);
   7750       }
   7751       klass->SetObjectSize(size);
   7752     }
   7753   }
   7754 
   7755   if (kIsDebugBuild) {
   7756     // Make sure that the fields array is ordered by name but all reference
   7757     // offsets are at the beginning as far as alignment allows.
   7758     MemberOffset start_ref_offset = is_static
   7759         ? klass->GetFirstReferenceStaticFieldOffsetDuringLinking(image_pointer_size_)
   7760         : klass->GetFirstReferenceInstanceFieldOffset();
   7761     MemberOffset end_ref_offset(start_ref_offset.Uint32Value() +
   7762                                 num_reference_fields *
   7763                                     sizeof(mirror::HeapReference<mirror::Object>));
   7764     MemberOffset current_ref_offset = start_ref_offset;
   7765     for (size_t i = 0; i < num_fields; i++) {
   7766       ArtField* field = &fields->At(i);
   7767       VLOG(class_linker) << "LinkFields: " << (is_static ? "static" : "instance")
   7768           << " class=" << klass->PrettyClass() << " field=" << field->PrettyField()
   7769           << " offset=" << field->GetOffsetDuringLinking();
   7770       if (i != 0) {
   7771         ArtField* const prev_field = &fields->At(i - 1);
   7772         // NOTE: The field names can be the same. This is not possible in the Java language
   7773         // but it's valid Java/dex bytecode and for example proguard can generate such bytecode.
   7774         DCHECK_LE(strcmp(prev_field->GetName(), field->GetName()), 0);
   7775       }
   7776       Primitive::Type type = field->GetTypeAsPrimitiveType();
   7777       bool is_primitive = type != Primitive::kPrimNot;
   7778       if (klass->DescriptorEquals("Ljava/lang/ref/Reference;") &&
   7779           strcmp("referent", field->GetName()) == 0) {
   7780         is_primitive = true;  // We lied above, so we have to expect a lie here.
   7781       }
   7782       MemberOffset offset = field->GetOffsetDuringLinking();
   7783       if (is_primitive) {
   7784         if (offset.Uint32Value() < end_ref_offset.Uint32Value()) {
   7785           // Shuffled before references.
   7786           size_t type_size = Primitive::ComponentSize(type);
   7787           CHECK_LT(type_size, sizeof(mirror::HeapReference<mirror::Object>));
   7788           CHECK_LT(offset.Uint32Value(), start_ref_offset.Uint32Value());
   7789           CHECK_LE(offset.Uint32Value() + type_size, start_ref_offset.Uint32Value());
   7790           CHECK(!IsAligned<sizeof(mirror::HeapReference<mirror::Object>)>(offset.Uint32Value()));
   7791         }
   7792       } else {
   7793         CHECK_EQ(current_ref_offset.Uint32Value(), offset.Uint32Value());
   7794         current_ref_offset = MemberOffset(current_ref_offset.Uint32Value() +
   7795                                           sizeof(mirror::HeapReference<mirror::Object>));
   7796       }
   7797     }
   7798     CHECK_EQ(current_ref_offset.Uint32Value(), end_ref_offset.Uint32Value());
   7799   }
   7800   return true;
   7801 }
   7802 
   7803 //  Set the bitmap of reference instance field offsets.
   7804 void ClassLinker::CreateReferenceInstanceOffsets(Handle<mirror::Class> klass) {
   7805   uint32_t reference_offsets = 0;
   7806   ObjPtr<mirror::Class> super_class = klass->GetSuperClass();
   7807   // Leave the reference offsets as 0 for mirror::Object (the class field is handled specially).
   7808   if (super_class != nullptr) {
   7809     reference_offsets = super_class->GetReferenceInstanceOffsets();
   7810     // Compute reference offsets unless our superclass overflowed.
   7811     if (reference_offsets != mirror::Class::kClassWalkSuper) {
   7812       size_t num_reference_fields = klass->NumReferenceInstanceFieldsDuringLinking();
   7813       if (num_reference_fields != 0u) {
   7814         // All of the fields that contain object references are guaranteed be grouped in memory
   7815         // starting at an appropriately aligned address after super class object data.
   7816         uint32_t start_offset = RoundUp(super_class->GetObjectSize(),
   7817                                         sizeof(mirror::HeapReference<mirror::Object>));
   7818         uint32_t start_bit = (start_offset - mirror::kObjectHeaderSize) /
   7819             sizeof(mirror::HeapReference<mirror::Object>);
   7820         if (start_bit + num_reference_fields > 32) {
   7821           reference_offsets = mirror::Class::kClassWalkSuper;
   7822         } else {
   7823           reference_offsets |= (0xffffffffu << start_bit) &
   7824                                (0xffffffffu >> (32 - (start_bit + num_reference_fields)));
   7825         }
   7826       }
   7827     }
   7828   }
   7829   klass->SetReferenceInstanceOffsets(reference_offsets);
   7830 }
   7831 
   7832 mirror::String* ClassLinker::ResolveString(const DexFile& dex_file,
   7833                                            dex::StringIndex string_idx,
   7834                                            Handle<mirror::DexCache> dex_cache) {
   7835   DCHECK(dex_cache != nullptr);
   7836   Thread::PoisonObjectPointersIfDebug();
   7837   ObjPtr<mirror::String> resolved = dex_cache->GetResolvedString(string_idx);
   7838   if (resolved != nullptr) {
   7839     return resolved.Ptr();
   7840   }
   7841   uint32_t utf16_length;
   7842   const char* utf8_data = dex_file.StringDataAndUtf16LengthByIdx(string_idx, &utf16_length);
   7843   ObjPtr<mirror::String> string = intern_table_->InternStrong(utf16_length, utf8_data);
   7844   if (string != nullptr) {
   7845     dex_cache->SetResolvedString(string_idx, string);
   7846   }
   7847   return string.Ptr();
   7848 }
   7849 
   7850 mirror::String* ClassLinker::LookupString(const DexFile& dex_file,
   7851                                           dex::StringIndex string_idx,
   7852                                           ObjPtr<mirror::DexCache> dex_cache) {
   7853   DCHECK(dex_cache != nullptr);
   7854   ObjPtr<mirror::String> resolved = dex_cache->GetResolvedString(string_idx);
   7855   if (resolved != nullptr) {
   7856     return resolved.Ptr();
   7857   }
   7858   uint32_t utf16_length;
   7859   const char* utf8_data = dex_file.StringDataAndUtf16LengthByIdx(string_idx, &utf16_length);
   7860   ObjPtr<mirror::String> string =
   7861       intern_table_->LookupStrong(Thread::Current(), utf16_length, utf8_data);
   7862   if (string != nullptr) {
   7863     dex_cache->SetResolvedString(string_idx, string);
   7864   }
   7865   return string.Ptr();
   7866 }
   7867 
   7868 ObjPtr<mirror::Class> ClassLinker::LookupResolvedType(const DexFile& dex_file,
   7869                                                       dex::TypeIndex type_idx,
   7870                                                       ObjPtr<mirror::DexCache> dex_cache,
   7871                                                       ObjPtr<mirror::ClassLoader> class_loader) {
   7872   ObjPtr<mirror::Class> type = dex_cache->GetResolvedType(type_idx);
   7873   if (type == nullptr) {
   7874     const char* descriptor = dex_file.StringByTypeIdx(type_idx);
   7875     DCHECK_NE(*descriptor, '\0') << "descriptor is empty string";
   7876     if (descriptor[1] == '\0') {
   7877       // only the descriptors of primitive types should be 1 character long, also avoid class lookup
   7878       // for primitive classes that aren't backed by dex files.
   7879       type = FindPrimitiveClass(descriptor[0]);
   7880     } else {
   7881       Thread* const self = Thread::Current();
   7882       DCHECK(self != nullptr);
   7883       const size_t hash = ComputeModifiedUtf8Hash(descriptor);
   7884       // Find the class in the loaded classes table.
   7885       type = LookupClass(self, descriptor, hash, class_loader.Ptr());
   7886     }
   7887     if (type != nullptr) {
   7888       if (type->IsResolved()) {
   7889         dex_cache->SetResolvedType(type_idx, type);
   7890       } else {
   7891         type = nullptr;
   7892       }
   7893     }
   7894   }
   7895   DCHECK(type == nullptr || type->IsResolved());
   7896   return type;
   7897 }
   7898 
   7899 mirror::Class* ClassLinker::ResolveType(const DexFile& dex_file,
   7900                                         dex::TypeIndex type_idx,
   7901                                         ObjPtr<mirror::Class> referrer) {
   7902   StackHandleScope<2> hs(Thread::Current());
   7903   Handle<mirror::DexCache> dex_cache(hs.NewHandle(referrer->GetDexCache()));
   7904   Handle<mirror::ClassLoader> class_loader(hs.NewHandle(referrer->GetClassLoader()));
   7905   return ResolveType(dex_file, type_idx, dex_cache, class_loader);
   7906 }
   7907 
   7908 mirror::Class* ClassLinker::ResolveType(const DexFile& dex_file,
   7909                                         dex::TypeIndex type_idx,
   7910                                         Handle<mirror::DexCache> dex_cache,
   7911                                         Handle<mirror::ClassLoader> class_loader) {
   7912   DCHECK(dex_cache != nullptr);
   7913   Thread::PoisonObjectPointersIfDebug();
   7914   ObjPtr<mirror::Class> resolved = dex_cache->GetResolvedType(type_idx);
   7915   if (resolved == nullptr) {
   7916     // TODO: Avoid this lookup as it duplicates work done in FindClass(). It is here
   7917     // as a workaround for FastNative JNI to avoid AssertNoPendingException() when
   7918     // trying to resolve annotations while an exception may be pending. Bug: 34659969
   7919     resolved = LookupResolvedType(dex_file, type_idx, dex_cache.Get(), class_loader.Get());
   7920   }
   7921   if (resolved == nullptr) {
   7922     Thread* self = Thread::Current();
   7923     const char* descriptor = dex_file.StringByTypeIdx(type_idx);
   7924     resolved = FindClass(self, descriptor, class_loader);
   7925     if (resolved != nullptr) {
   7926       // TODO: we used to throw here if resolved's class loader was not the
   7927       //       boot class loader. This was to permit different classes with the
   7928       //       same name to be loaded simultaneously by different loaders
   7929       dex_cache->SetResolvedType(type_idx, resolved);
   7930     } else {
   7931       CHECK(self->IsExceptionPending())
   7932           << "Expected pending exception for failed resolution of: " << descriptor;
   7933       // Convert a ClassNotFoundException to a NoClassDefFoundError.
   7934       StackHandleScope<1> hs(self);
   7935       Handle<mirror::Throwable> cause(hs.NewHandle(self->GetException()));
   7936       if (cause->InstanceOf(GetClassRoot(kJavaLangClassNotFoundException))) {
   7937         DCHECK(resolved == nullptr);  // No Handle needed to preserve resolved.
   7938         self->ClearException();
   7939         ThrowNoClassDefFoundError("Failed resolution of: %s", descriptor);
   7940         self->GetException()->SetCause(cause.Get());
   7941       }
   7942     }
   7943   }
   7944   DCHECK((resolved == nullptr) || resolved->IsResolved())
   7945       << resolved->PrettyDescriptor() << " " << resolved->GetStatus();
   7946   return resolved.Ptr();
   7947 }
   7948 
   7949 template <ClassLinker::ResolveMode kResolveMode>
   7950 ArtMethod* ClassLinker::ResolveMethod(const DexFile& dex_file,
   7951                                       uint32_t method_idx,
   7952                                       Handle<mirror::DexCache> dex_cache,
   7953                                       Handle<mirror::ClassLoader> class_loader,
   7954                                       ArtMethod* referrer,
   7955                                       InvokeType type) {
   7956   DCHECK(dex_cache != nullptr);
   7957   // Check for hit in the dex cache.
   7958   ArtMethod* resolved = dex_cache->GetResolvedMethod(method_idx, image_pointer_size_);
   7959   Thread::PoisonObjectPointersIfDebug();
   7960   if (resolved != nullptr && !resolved->IsRuntimeMethod()) {
   7961     DCHECK(resolved->GetDeclaringClassUnchecked() != nullptr) << resolved->GetDexMethodIndex();
   7962     if (kResolveMode == ClassLinker::kForceICCECheck) {
   7963       if (resolved->CheckIncompatibleClassChange(type)) {
   7964         ThrowIncompatibleClassChangeError(type, resolved->GetInvokeType(), resolved, referrer);
   7965         return nullptr;
   7966       }
   7967     }
   7968     return resolved;
   7969   }
   7970   // Fail, get the declaring class.
   7971   const DexFile::MethodId& method_id = dex_file.GetMethodId(method_idx);
   7972   ObjPtr<mirror::Class> klass = ResolveType(dex_file, method_id.class_idx_, dex_cache, class_loader);
   7973   if (klass == nullptr) {
   7974     DCHECK(Thread::Current()->IsExceptionPending());
   7975     return nullptr;
   7976   }
   7977   // Scan using method_idx, this saves string compares but will only hit for matching dex
   7978   // caches/files.
   7979   switch (type) {
   7980     case kDirect:  // Fall-through.
   7981     case kStatic:
   7982       resolved = klass->FindDirectMethod(dex_cache.Get(), method_idx, image_pointer_size_);
   7983       DCHECK(resolved == nullptr || resolved->GetDeclaringClassUnchecked() != nullptr);
   7984       break;
   7985     case kInterface:
   7986       // We have to check whether the method id really belongs to an interface (dex static bytecode
   7987       // constraint A15). Otherwise you must not invoke-interface on it.
   7988       //
   7989       // This is not symmetric to A12-A14 (direct, static, virtual), as using FindInterfaceMethod
   7990       // assumes that the given type is an interface, and will check the interface table if the
   7991       // method isn't declared in the class. So it may find an interface method (usually by name
   7992       // in the handling below, but we do the constraint check early). In that case,
   7993       // CheckIncompatibleClassChange will succeed (as it is called on an interface method)
   7994       // unexpectedly.
   7995       // Example:
   7996       //    interface I {
   7997       //      foo()
   7998       //    }
   7999       //    class A implements I {
   8000       //      ...
   8001       //    }
   8002       //    class B extends A {
   8003       //      ...
   8004       //    }
   8005       //    invoke-interface B.foo
   8006       //      -> FindInterfaceMethod finds I.foo (interface method), not A.foo (miranda method)
   8007       if (UNLIKELY(!klass->IsInterface())) {
   8008         ThrowIncompatibleClassChangeError(klass,
   8009                                           "Found class %s, but interface was expected",
   8010                                           klass->PrettyDescriptor().c_str());
   8011         return nullptr;
   8012       } else {
   8013         resolved = klass->FindInterfaceMethod(dex_cache.Get(), method_idx, image_pointer_size_);
   8014         DCHECK(resolved == nullptr || resolved->GetDeclaringClass()->IsInterface());
   8015       }
   8016       break;
   8017     case kSuper:
   8018       if (klass->IsInterface()) {
   8019         resolved = klass->FindInterfaceMethod(dex_cache.Get(), method_idx, image_pointer_size_);
   8020       } else {
   8021         resolved = klass->FindVirtualMethod(dex_cache.Get(), method_idx, image_pointer_size_);
   8022       }
   8023       break;
   8024     case kVirtual:
   8025       resolved = klass->FindVirtualMethod(dex_cache.Get(), method_idx, image_pointer_size_);
   8026       break;
   8027     default:
   8028       LOG(FATAL) << "Unreachable - invocation type: " << type;
   8029       UNREACHABLE();
   8030   }
   8031   if (resolved == nullptr) {
   8032     // Search by name, which works across dex files.
   8033     const char* name = dex_file.StringDataByIdx(method_id.name_idx_);
   8034     const Signature signature = dex_file.GetMethodSignature(method_id);
   8035     switch (type) {
   8036       case kDirect:  // Fall-through.
   8037       case kStatic:
   8038         resolved = klass->FindDirectMethod(name, signature, image_pointer_size_);
   8039         DCHECK(resolved == nullptr || resolved->GetDeclaringClassUnchecked() != nullptr);
   8040         break;
   8041       case kInterface:
   8042         resolved = klass->FindInterfaceMethod(name, signature, image_pointer_size_);
   8043         DCHECK(resolved == nullptr || resolved->GetDeclaringClass()->IsInterface());
   8044         break;
   8045       case kSuper:
   8046         if (klass->IsInterface()) {
   8047           resolved = klass->FindInterfaceMethod(name, signature, image_pointer_size_);
   8048         } else {
   8049           resolved = klass->FindVirtualMethod(name, signature, image_pointer_size_);
   8050         }
   8051         break;
   8052       case kVirtual:
   8053         resolved = klass->FindVirtualMethod(name, signature, image_pointer_size_);
   8054         break;
   8055     }
   8056   }
   8057   // If we found a method, check for incompatible class changes.
   8058   if (LIKELY(resolved != nullptr && !resolved->CheckIncompatibleClassChange(type))) {
   8059     // Be a good citizen and update the dex cache to speed subsequent calls.
   8060     dex_cache->SetResolvedMethod(method_idx, resolved, image_pointer_size_);
   8061     return resolved;
   8062   } else {
   8063     // If we had a method, it's an incompatible-class-change error.
   8064     if (resolved != nullptr) {
   8065       ThrowIncompatibleClassChangeError(type, resolved->GetInvokeType(), resolved, referrer);
   8066     } else {
   8067       // We failed to find the method which means either an access error, an incompatible class
   8068       // change, or no such method. First try to find the method among direct and virtual methods.
   8069       const char* name = dex_file.StringDataByIdx(method_id.name_idx_);
   8070       const Signature signature = dex_file.GetMethodSignature(method_id);
   8071       switch (type) {
   8072         case kDirect:
   8073         case kStatic:
   8074           resolved = klass->FindVirtualMethod(name, signature, image_pointer_size_);
   8075           // Note: kDirect and kStatic are also mutually exclusive, but in that case we would
   8076           //       have had a resolved method before, which triggers the "true" branch above.
   8077           break;
   8078         case kInterface:
   8079         case kVirtual:
   8080         case kSuper:
   8081           resolved = klass->FindDirectMethod(name, signature, image_pointer_size_);
   8082           break;
   8083       }
   8084 
   8085       // If we found something, check that it can be accessed by the referrer.
   8086       bool exception_generated = false;
   8087       if (resolved != nullptr && referrer != nullptr) {
   8088         ObjPtr<mirror::Class> methods_class = resolved->GetDeclaringClass();
   8089         ObjPtr<mirror::Class> referring_class = referrer->GetDeclaringClass();
   8090         if (!referring_class->CanAccess(methods_class)) {
   8091           ThrowIllegalAccessErrorClassForMethodDispatch(referring_class,
   8092                                                         methods_class,
   8093                                                         resolved,
   8094                                                         type);
   8095           exception_generated = true;
   8096         } else if (!referring_class->CanAccessMember(methods_class, resolved->GetAccessFlags())) {
   8097           ThrowIllegalAccessErrorMethod(referring_class, resolved);
   8098           exception_generated = true;
   8099         }
   8100       }
   8101       if (!exception_generated) {
   8102         // Otherwise, throw an IncompatibleClassChangeError if we found something, and check
   8103         // interface methods and throw if we find the method there. If we find nothing, throw a
   8104         // NoSuchMethodError.
   8105         switch (type) {
   8106           case kDirect:
   8107           case kStatic:
   8108             if (resolved != nullptr) {
   8109               ThrowIncompatibleClassChangeError(type, kVirtual, resolved, referrer);
   8110             } else {
   8111               resolved = klass->FindInterfaceMethod(name, signature, image_pointer_size_);
   8112               if (resolved != nullptr) {
   8113                 ThrowIncompatibleClassChangeError(type, kInterface, resolved, referrer);
   8114               } else {
   8115                 ThrowNoSuchMethodError(type, klass, name, signature);
   8116               }
   8117             }
   8118             break;
   8119           case kInterface:
   8120             if (resolved != nullptr) {
   8121               ThrowIncompatibleClassChangeError(type, kDirect, resolved, referrer);
   8122             } else {
   8123               resolved = klass->FindVirtualMethod(name, signature, image_pointer_size_);
   8124               if (resolved != nullptr) {
   8125                 ThrowIncompatibleClassChangeError(type, kVirtual, resolved, referrer);
   8126               } else {
   8127                 ThrowNoSuchMethodError(type, klass, name, signature);
   8128               }
   8129             }
   8130             break;
   8131           case kSuper:
   8132             if (resolved != nullptr) {
   8133               ThrowIncompatibleClassChangeError(type, kDirect, resolved, referrer);
   8134             } else {
   8135               ThrowNoSuchMethodError(type, klass, name, signature);
   8136             }
   8137             break;
   8138           case kVirtual:
   8139             if (resolved != nullptr) {
   8140               ThrowIncompatibleClassChangeError(type, kDirect, resolved, referrer);
   8141             } else {
   8142               resolved = klass->FindInterfaceMethod(name, signature, image_pointer_size_);
   8143               if (resolved != nullptr) {
   8144                 ThrowIncompatibleClassChangeError(type, kInterface, resolved, referrer);
   8145               } else {
   8146                 ThrowNoSuchMethodError(type, klass, name, signature);
   8147               }
   8148             }
   8149             break;
   8150         }
   8151       }
   8152     }
   8153     Thread::Current()->AssertPendingException();
   8154     return nullptr;
   8155   }
   8156 }
   8157 
   8158 ArtMethod* ClassLinker::ResolveMethodWithoutInvokeType(const DexFile& dex_file,
   8159                                                        uint32_t method_idx,
   8160                                                        Handle<mirror::DexCache> dex_cache,
   8161                                                        Handle<mirror::ClassLoader> class_loader) {
   8162   ArtMethod* resolved = dex_cache->GetResolvedMethod(method_idx, image_pointer_size_);
   8163   Thread::PoisonObjectPointersIfDebug();
   8164   if (resolved != nullptr && !resolved->IsRuntimeMethod()) {
   8165     DCHECK(resolved->GetDeclaringClassUnchecked() != nullptr) << resolved->GetDexMethodIndex();
   8166     return resolved;
   8167   }
   8168   // Fail, get the declaring class.
   8169   const DexFile::MethodId& method_id = dex_file.GetMethodId(method_idx);
   8170   ObjPtr<mirror::Class> klass = ResolveType(dex_file, method_id.class_idx_, dex_cache, class_loader);
   8171   if (klass == nullptr) {
   8172     Thread::Current()->AssertPendingException();
   8173     return nullptr;
   8174   }
   8175   if (klass->IsInterface()) {
   8176     LOG(FATAL) << "ResolveAmbiguousMethod: unexpected method in interface: "
   8177                << klass->PrettyClass();
   8178     return nullptr;
   8179   }
   8180 
   8181   // Search both direct and virtual methods
   8182   resolved = klass->FindDirectMethod(dex_cache.Get(), method_idx, image_pointer_size_);
   8183   if (resolved == nullptr) {
   8184     resolved = klass->FindVirtualMethod(dex_cache.Get(), method_idx, image_pointer_size_);
   8185   }
   8186 
   8187   return resolved;
   8188 }
   8189 
   8190 ArtField* ClassLinker::LookupResolvedField(uint32_t field_idx,
   8191                                            ObjPtr<mirror::DexCache> dex_cache,
   8192                                            ObjPtr<mirror::ClassLoader> class_loader,
   8193                                            bool is_static) {
   8194   const DexFile& dex_file = *dex_cache->GetDexFile();
   8195   const DexFile::FieldId& field_id = dex_file.GetFieldId(field_idx);
   8196   ObjPtr<mirror::Class> klass = dex_cache->GetResolvedType(field_id.class_idx_);
   8197   if (klass == nullptr) {
   8198     klass = LookupResolvedType(dex_file, field_id.class_idx_, dex_cache, class_loader);
   8199   }
   8200   if (klass == nullptr) {
   8201     // The class has not been resolved yet, so the field is also unresolved.
   8202     return nullptr;
   8203   }
   8204   DCHECK(klass->IsResolved());
   8205   Thread* self = is_static ? Thread::Current() : nullptr;
   8206 
   8207   // First try to find a field declared directly by `klass` by the field index.
   8208   ArtField* resolved_field = is_static
   8209       ? mirror::Class::FindStaticField(self, klass, dex_cache, field_idx)
   8210       : klass->FindInstanceField(dex_cache, field_idx);
   8211 
   8212   if (resolved_field == nullptr) {
   8213     // If not found in `klass` by field index, search the class hierarchy using the name and type.
   8214     const char* name = dex_file.GetFieldName(field_id);
   8215     const char* type = dex_file.GetFieldTypeDescriptor(field_id);
   8216     resolved_field = is_static
   8217         ? mirror::Class::FindStaticField(self, klass, name, type)
   8218         : klass->FindInstanceField(name, type);
   8219   }
   8220 
   8221   if (resolved_field != nullptr) {
   8222     dex_cache->SetResolvedField(field_idx, resolved_field, image_pointer_size_);
   8223   }
   8224   return resolved_field;
   8225 }
   8226 
   8227 ArtField* ClassLinker::ResolveField(const DexFile& dex_file,
   8228                                     uint32_t field_idx,
   8229                                     Handle<mirror::DexCache> dex_cache,
   8230                                     Handle<mirror::ClassLoader> class_loader,
   8231                                     bool is_static) {
   8232   DCHECK(dex_cache != nullptr);
   8233   ArtField* resolved = dex_cache->GetResolvedField(field_idx, image_pointer_size_);
   8234   Thread::PoisonObjectPointersIfDebug();
   8235   if (resolved != nullptr) {
   8236     return resolved;
   8237   }
   8238   const DexFile::FieldId& field_id = dex_file.GetFieldId(field_idx);
   8239   Thread* const self = Thread::Current();
   8240   ObjPtr<mirror::Class> klass = ResolveType(dex_file, field_id.class_idx_, dex_cache, class_loader);
   8241   if (klass == nullptr) {
   8242     DCHECK(Thread::Current()->IsExceptionPending());
   8243     return nullptr;
   8244   }
   8245 
   8246   if (is_static) {
   8247     resolved = mirror::Class::FindStaticField(self, klass, dex_cache.Get(), field_idx);
   8248   } else {
   8249     resolved = klass->FindInstanceField(dex_cache.Get(), field_idx);
   8250   }
   8251 
   8252   if (resolved == nullptr) {
   8253     const char* name = dex_file.GetFieldName(field_id);
   8254     const char* type = dex_file.GetFieldTypeDescriptor(field_id);
   8255     if (is_static) {
   8256       resolved = mirror::Class::FindStaticField(self, klass, name, type);
   8257     } else {
   8258       resolved = klass->FindInstanceField(name, type);
   8259     }
   8260     if (resolved == nullptr) {
   8261       ThrowNoSuchFieldError(is_static ? "static " : "instance ", klass, type, name);
   8262       return nullptr;
   8263     }
   8264   }
   8265   dex_cache->SetResolvedField(field_idx, resolved, image_pointer_size_);
   8266   return resolved;
   8267 }
   8268 
   8269 ArtField* ClassLinker::ResolveFieldJLS(const DexFile& dex_file,
   8270                                        uint32_t field_idx,
   8271                                        Handle<mirror::DexCache> dex_cache,
   8272                                        Handle<mirror::ClassLoader> class_loader) {
   8273   DCHECK(dex_cache != nullptr);
   8274   ArtField* resolved = dex_cache->GetResolvedField(field_idx, image_pointer_size_);
   8275   Thread::PoisonObjectPointersIfDebug();
   8276   if (resolved != nullptr) {
   8277     return resolved;
   8278   }
   8279   const DexFile::FieldId& field_id = dex_file.GetFieldId(field_idx);
   8280   Thread* self = Thread::Current();
   8281   ObjPtr<mirror::Class> klass(ResolveType(dex_file, field_id.class_idx_, dex_cache, class_loader));
   8282   if (klass == nullptr) {
   8283     DCHECK(Thread::Current()->IsExceptionPending());
   8284     return nullptr;
   8285   }
   8286 
   8287   StringPiece name(dex_file.GetFieldName(field_id));
   8288   StringPiece type(dex_file.GetFieldTypeDescriptor(field_id));
   8289   resolved = mirror::Class::FindField(self, klass, name, type);
   8290   if (resolved != nullptr) {
   8291     dex_cache->SetResolvedField(field_idx, resolved, image_pointer_size_);
   8292   } else {
   8293     ThrowNoSuchFieldError("", klass, type, name);
   8294   }
   8295   return resolved;
   8296 }
   8297 
   8298 mirror::MethodType* ClassLinker::ResolveMethodType(const DexFile& dex_file,
   8299                                                    uint32_t proto_idx,
   8300                                                    Handle<mirror::DexCache> dex_cache,
   8301                                                    Handle<mirror::ClassLoader> class_loader) {
   8302   DCHECK(Runtime::Current()->IsMethodHandlesEnabled());
   8303   DCHECK(dex_cache != nullptr);
   8304 
   8305   ObjPtr<mirror::MethodType> resolved = dex_cache->GetResolvedMethodType(proto_idx);
   8306   if (resolved != nullptr) {
   8307     return resolved.Ptr();
   8308   }
   8309 
   8310   Thread* const self = Thread::Current();
   8311   StackHandleScope<4> hs(self);
   8312 
   8313   // First resolve the return type.
   8314   const DexFile::ProtoId& proto_id = dex_file.GetProtoId(proto_idx);
   8315   Handle<mirror::Class> return_type(hs.NewHandle(
   8316       ResolveType(dex_file, proto_id.return_type_idx_, dex_cache, class_loader)));
   8317   if (return_type == nullptr) {
   8318     DCHECK(self->IsExceptionPending());
   8319     return nullptr;
   8320   }
   8321 
   8322   // Then resolve the argument types.
   8323   //
   8324   // TODO: Is there a better way to figure out the number of method arguments
   8325   // other than by looking at the shorty ?
   8326   const size_t num_method_args = strlen(dex_file.StringDataByIdx(proto_id.shorty_idx_)) - 1;
   8327 
   8328   ObjPtr<mirror::Class> class_type = mirror::Class::GetJavaLangClass();
   8329   ObjPtr<mirror::Class> array_of_class = FindArrayClass(self, &class_type);
   8330   Handle<mirror::ObjectArray<mirror::Class>> method_params(hs.NewHandle(
   8331       mirror::ObjectArray<mirror::Class>::Alloc(self, array_of_class, num_method_args)));
   8332   if (method_params == nullptr) {
   8333     DCHECK(self->IsExceptionPending());
   8334     return nullptr;
   8335   }
   8336 
   8337   DexFileParameterIterator it(dex_file, proto_id);
   8338   int32_t i = 0;
   8339   MutableHandle<mirror::Class> param_class = hs.NewHandle<mirror::Class>(nullptr);
   8340   for (; it.HasNext(); it.Next()) {
   8341     const dex::TypeIndex type_idx = it.GetTypeIdx();
   8342     param_class.Assign(ResolveType(dex_file, type_idx, dex_cache, class_loader));
   8343     if (param_class == nullptr) {
   8344       DCHECK(self->IsExceptionPending());
   8345       return nullptr;
   8346     }
   8347 
   8348     method_params->Set(i++, param_class.Get());
   8349   }
   8350 
   8351   DCHECK(!it.HasNext());
   8352 
   8353   Handle<mirror::MethodType> type = hs.NewHandle(
   8354       mirror::MethodType::Create(self, return_type, method_params));
   8355   dex_cache->SetResolvedMethodType(proto_idx, type.Get());
   8356 
   8357   return type.Get();
   8358 }
   8359 
   8360 mirror::MethodHandle* ClassLinker::ResolveMethodHandle(uint32_t method_handle_idx,
   8361                                                        ArtMethod* referrer)
   8362     REQUIRES_SHARED(Locks::mutator_lock_) {
   8363   Thread* const self = Thread::Current();
   8364   const DexFile* const dex_file = referrer->GetDexFile();
   8365   const DexFile::MethodHandleItem& mh = dex_file->GetMethodHandle(method_handle_idx);
   8366 
   8367   union {
   8368     ArtField* field;
   8369     ArtMethod* method;
   8370     uintptr_t field_or_method;
   8371   } target;
   8372   uint32_t num_params;
   8373   mirror::MethodHandle::Kind kind;
   8374   DexFile::MethodHandleType handle_type =
   8375       static_cast<DexFile::MethodHandleType>(mh.method_handle_type_);
   8376   switch (handle_type) {
   8377     case DexFile::MethodHandleType::kStaticPut: {
   8378       kind = mirror::MethodHandle::Kind::kStaticPut;
   8379       target.field = ResolveField(mh.field_or_method_idx_, referrer, true /* is_static */);
   8380       num_params = 1;
   8381       break;
   8382     }
   8383     case DexFile::MethodHandleType::kStaticGet: {
   8384       kind = mirror::MethodHandle::Kind::kStaticGet;
   8385       target.field = ResolveField(mh.field_or_method_idx_, referrer, true /* is_static */);
   8386       num_params = 0;
   8387       break;
   8388     }
   8389     case DexFile::MethodHandleType::kInstancePut: {
   8390       kind = mirror::MethodHandle::Kind::kInstancePut;
   8391       target.field = ResolveField(mh.field_or_method_idx_, referrer, false /* is_static */);
   8392       num_params = 2;
   8393       break;
   8394     }
   8395     case DexFile::MethodHandleType::kInstanceGet: {
   8396       kind = mirror::MethodHandle::Kind::kInstanceGet;
   8397       target.field = ResolveField(mh.field_or_method_idx_, referrer, false /* is_static */);
   8398       num_params = 1;
   8399       break;
   8400     }
   8401     case DexFile::MethodHandleType::kInvokeStatic: {
   8402       kind = mirror::MethodHandle::Kind::kInvokeStatic;
   8403       target.method = ResolveMethod<kNoICCECheckForCache>(self,
   8404                                                           mh.field_or_method_idx_,
   8405                                                           referrer,
   8406                                                           InvokeType::kStatic);
   8407       uint32_t shorty_length;
   8408       target.method->GetShorty(&shorty_length);
   8409       num_params = shorty_length - 1;  // Remove 1 for return value.
   8410       break;
   8411     }
   8412     case DexFile::MethodHandleType::kInvokeInstance: {
   8413       kind = mirror::MethodHandle::Kind::kInvokeVirtual;
   8414       target.method = ResolveMethod<kNoICCECheckForCache>(self,
   8415                                                           mh.field_or_method_idx_,
   8416                                                           referrer,
   8417                                                           InvokeType::kVirtual);
   8418       uint32_t shorty_length;
   8419       target.method->GetShorty(&shorty_length);
   8420       num_params = shorty_length - 1;  // Remove 1 for return value.
   8421       break;
   8422     }
   8423     case DexFile::MethodHandleType::kInvokeConstructor: {
   8424       UNIMPLEMENTED(FATAL) << "Invoke constructor is implemented as a transform.";
   8425       num_params = 0;
   8426     }
   8427   }
   8428 
   8429   StackHandleScope<5> hs(self);
   8430   ObjPtr<mirror::Class> class_type = mirror::Class::GetJavaLangClass();
   8431   ObjPtr<mirror::Class> array_of_class = FindArrayClass(self, &class_type);
   8432   Handle<mirror::ObjectArray<mirror::Class>> method_params(hs.NewHandle(
   8433       mirror::ObjectArray<mirror::Class>::Alloc(self, array_of_class, num_params)));
   8434   if (method_params.Get() == nullptr) {
   8435     DCHECK(self->IsExceptionPending());
   8436     return nullptr;
   8437   }
   8438 
   8439   Handle<mirror::Class> return_type;
   8440   switch (handle_type) {
   8441     case DexFile::MethodHandleType::kStaticPut: {
   8442       method_params->Set(0, target.field->GetType<true>());
   8443       return_type = hs.NewHandle(FindPrimitiveClass('V'));
   8444       break;
   8445     }
   8446     case DexFile::MethodHandleType::kStaticGet: {
   8447       return_type = hs.NewHandle(target.field->GetType<true>());
   8448       break;
   8449     }
   8450     case DexFile::MethodHandleType::kInstancePut: {
   8451       method_params->Set(0, target.field->GetDeclaringClass());
   8452       method_params->Set(1, target.field->GetType<true>());
   8453       return_type = hs.NewHandle(FindPrimitiveClass('V'));
   8454       break;
   8455     }
   8456     case DexFile::MethodHandleType::kInstanceGet: {
   8457       method_params->Set(0, target.field->GetDeclaringClass());
   8458       return_type = hs.NewHandle(target.field->GetType<true>());
   8459       break;
   8460     }
   8461     case DexFile::MethodHandleType::kInvokeStatic:
   8462     case DexFile::MethodHandleType::kInvokeInstance: {
   8463       // TODO(oth): This will not work for varargs methods as this
   8464       // requires instantiating a Transformer. This resolution step
   8465       // would be best done in managed code rather than in the run
   8466       // time (b/35235705)
   8467       Handle<mirror::DexCache> dex_cache(hs.NewHandle(referrer->GetDexCache()));
   8468       Handle<mirror::ClassLoader> class_loader(hs.NewHandle(referrer->GetClassLoader()));
   8469       DexFileParameterIterator it(*dex_file, target.method->GetPrototype());
   8470       for (int32_t i = 0; it.HasNext(); i++, it.Next()) {
   8471         const dex::TypeIndex type_idx = it.GetTypeIdx();
   8472         mirror::Class* klass = ResolveType(*dex_file, type_idx, dex_cache, class_loader);
   8473         if (nullptr == klass) {
   8474           DCHECK(self->IsExceptionPending());
   8475           return nullptr;
   8476         }
   8477         method_params->Set(i, klass);
   8478       }
   8479       return_type = hs.NewHandle(target.method->GetReturnType(true));
   8480       break;
   8481     }
   8482     case DexFile::MethodHandleType::kInvokeConstructor: {
   8483       // TODO(oth): b/35235705
   8484       UNIMPLEMENTED(FATAL) << "Invoke constructor is implemented as a transform.";
   8485     }
   8486   }
   8487 
   8488   if (return_type.IsNull()) {
   8489     DCHECK(self->IsExceptionPending());
   8490     return nullptr;
   8491   }
   8492 
   8493   Handle<mirror::MethodType>
   8494       mt(hs.NewHandle(mirror::MethodType::Create(self, return_type, method_params)));
   8495   if (mt.IsNull()) {
   8496     DCHECK(self->IsExceptionPending());
   8497     return nullptr;
   8498   }
   8499   return mirror::MethodHandleImpl::Create(self, target.field_or_method, kind, mt);
   8500 }
   8501 
   8502 bool ClassLinker::IsQuickResolutionStub(const void* entry_point) const {
   8503   return (entry_point == GetQuickResolutionStub()) ||
   8504       (quick_resolution_trampoline_ == entry_point);
   8505 }
   8506 
   8507 bool ClassLinker::IsQuickToInterpreterBridge(const void* entry_point) const {
   8508   return (entry_point == GetQuickToInterpreterBridge()) ||
   8509       (quick_to_interpreter_bridge_trampoline_ == entry_point);
   8510 }
   8511 
   8512 bool ClassLinker::IsQuickGenericJniStub(const void* entry_point) const {
   8513   return (entry_point == GetQuickGenericJniStub()) ||
   8514       (quick_generic_jni_trampoline_ == entry_point);
   8515 }
   8516 
   8517 const void* ClassLinker::GetRuntimeQuickGenericJniStub() const {
   8518   return GetQuickGenericJniStub();
   8519 }
   8520 
   8521 void ClassLinker::SetEntryPointsToCompiledCode(ArtMethod* method, const void* code) const {
   8522   CHECK(code != nullptr);
   8523   const uint8_t* base = reinterpret_cast<const uint8_t*>(code);  // Base of data points at code.
   8524   base -= sizeof(void*);  // Move backward so that code_offset != 0.
   8525   const uint32_t code_offset = sizeof(void*);
   8526   OatFile::OatMethod oat_method(base, code_offset);
   8527   oat_method.LinkMethod(method);
   8528 }
   8529 
   8530 void ClassLinker::SetEntryPointsToInterpreter(ArtMethod* method) const {
   8531   if (!method->IsNative()) {
   8532     method->SetEntryPointFromQuickCompiledCode(GetQuickToInterpreterBridge());
   8533   } else {
   8534     SetEntryPointsToCompiledCode(method, GetQuickGenericJniStub());
   8535   }
   8536 }
   8537 
   8538 void ClassLinker::SetEntryPointsForObsoleteMethod(ArtMethod* method) const {
   8539   DCHECK(method->IsObsolete());
   8540   // We cannot mess with the entrypoints of native methods because they are used to determine how
   8541   // large the method's quick stack frame is. Without this information we cannot walk the stacks.
   8542   if (!method->IsNative()) {
   8543     method->SetEntryPointFromQuickCompiledCode(GetInvokeObsoleteMethodStub());
   8544   }
   8545 }
   8546 
   8547 void ClassLinker::DumpForSigQuit(std::ostream& os) {
   8548   ScopedObjectAccess soa(Thread::Current());
   8549   ReaderMutexLock mu(soa.Self(), *Locks::classlinker_classes_lock_);
   8550   os << "Zygote loaded classes=" << NumZygoteClasses() << " post zygote classes="
   8551      << NumNonZygoteClasses() << "\n";
   8552 }
   8553 
   8554 class CountClassesVisitor : public ClassLoaderVisitor {
   8555  public:
   8556   CountClassesVisitor() : num_zygote_classes(0), num_non_zygote_classes(0) {}
   8557 
   8558   void Visit(ObjPtr<mirror::ClassLoader> class_loader)
   8559       REQUIRES_SHARED(Locks::classlinker_classes_lock_, Locks::mutator_lock_) OVERRIDE {
   8560     ClassTable* const class_table = class_loader->GetClassTable();
   8561     if (class_table != nullptr) {
   8562       num_zygote_classes += class_table->NumZygoteClasses(class_loader);
   8563       num_non_zygote_classes += class_table->NumNonZygoteClasses(class_loader);
   8564     }
   8565   }
   8566 
   8567   size_t num_zygote_classes;
   8568   size_t num_non_zygote_classes;
   8569 };
   8570 
   8571 size_t ClassLinker::NumZygoteClasses() const {
   8572   CountClassesVisitor visitor;
   8573   VisitClassLoaders(&visitor);
   8574   return visitor.num_zygote_classes + boot_class_table_.NumZygoteClasses(nullptr);
   8575 }
   8576 
   8577 size_t ClassLinker::NumNonZygoteClasses() const {
   8578   CountClassesVisitor visitor;
   8579   VisitClassLoaders(&visitor);
   8580   return visitor.num_non_zygote_classes + boot_class_table_.NumNonZygoteClasses(nullptr);
   8581 }
   8582 
   8583 size_t ClassLinker::NumLoadedClasses() {
   8584   ReaderMutexLock mu(Thread::Current(), *Locks::classlinker_classes_lock_);
   8585   // Only return non zygote classes since these are the ones which apps which care about.
   8586   return NumNonZygoteClasses();
   8587 }
   8588 
   8589 pid_t ClassLinker::GetClassesLockOwner() {
   8590   return Locks::classlinker_classes_lock_->GetExclusiveOwnerTid();
   8591 }
   8592 
   8593 pid_t ClassLinker::GetDexLockOwner() {
   8594   return Locks::dex_lock_->GetExclusiveOwnerTid();
   8595 }
   8596 
   8597 void ClassLinker::SetClassRoot(ClassRoot class_root, ObjPtr<mirror::Class> klass) {
   8598   DCHECK(!init_done_);
   8599 
   8600   DCHECK(klass != nullptr);
   8601   DCHECK(klass->GetClassLoader() == nullptr);
   8602 
   8603   mirror::ObjectArray<mirror::Class>* class_roots = class_roots_.Read();
   8604   DCHECK(class_roots != nullptr);
   8605   DCHECK(class_roots->Get(class_root) == nullptr);
   8606   class_roots->Set<false>(class_root, klass);
   8607 }
   8608 
   8609 const char* ClassLinker::GetClassRootDescriptor(ClassRoot class_root) {
   8610   static const char* class_roots_descriptors[] = {
   8611     "Ljava/lang/Class;",
   8612     "Ljava/lang/Object;",
   8613     "[Ljava/lang/Class;",
   8614     "[Ljava/lang/Object;",
   8615     "Ljava/lang/String;",
   8616     "Ljava/lang/DexCache;",
   8617     "Ljava/lang/ref/Reference;",
   8618     "Ljava/lang/reflect/Constructor;",
   8619     "Ljava/lang/reflect/Field;",
   8620     "Ljava/lang/reflect/Method;",
   8621     "Ljava/lang/reflect/Proxy;",
   8622     "[Ljava/lang/String;",
   8623     "[Ljava/lang/reflect/Constructor;",
   8624     "[Ljava/lang/reflect/Field;",
   8625     "[Ljava/lang/reflect/Method;",
   8626     "Ljava/lang/invoke/CallSite;",
   8627     "Ljava/lang/invoke/MethodHandleImpl;",
   8628     "Ljava/lang/invoke/MethodHandles$Lookup;",
   8629     "Ljava/lang/invoke/MethodType;",
   8630     "Ljava/lang/ClassLoader;",
   8631     "Ljava/lang/Throwable;",
   8632     "Ljava/lang/ClassNotFoundException;",
   8633     "Ljava/lang/StackTraceElement;",
   8634     "Ldalvik/system/EmulatedStackFrame;",
   8635     "Z",
   8636     "B",
   8637     "C",
   8638     "D",
   8639     "F",
   8640     "I",
   8641     "J",
   8642     "S",
   8643     "V",
   8644     "[Z",
   8645     "[B",
   8646     "[C",
   8647     "[D",
   8648     "[F",
   8649     "[I",
   8650     "[J",
   8651     "[S",
   8652     "[Ljava/lang/StackTraceElement;",
   8653     "Ldalvik/system/ClassExt;",
   8654   };
   8655   static_assert(arraysize(class_roots_descriptors) == size_t(kClassRootsMax),
   8656                 "Mismatch between class descriptors and class-root enum");
   8657 
   8658   const char* descriptor = class_roots_descriptors[class_root];
   8659   CHECK(descriptor != nullptr);
   8660   return descriptor;
   8661 }
   8662 
   8663 jobject ClassLinker::CreatePathClassLoader(Thread* self,
   8664                                            const std::vector<const DexFile*>& dex_files) {
   8665   // SOAAlreadyRunnable is protected, and we need something to add a global reference.
   8666   // We could move the jobject to the callers, but all call-sites do this...
   8667   ScopedObjectAccessUnchecked soa(self);
   8668 
   8669   // For now, create a libcore-level DexFile for each ART DexFile. This "explodes" multidex.
   8670   StackHandleScope<6> hs(self);
   8671 
   8672   ArtField* dex_elements_field =
   8673       jni::DecodeArtField(WellKnownClasses::dalvik_system_DexPathList_dexElements);
   8674 
   8675   Handle<mirror::Class> dex_elements_class(hs.NewHandle(dex_elements_field->GetType<true>()));
   8676   DCHECK(dex_elements_class != nullptr);
   8677   DCHECK(dex_elements_class->IsArrayClass());
   8678   Handle<mirror::ObjectArray<mirror::Object>> h_dex_elements(hs.NewHandle(
   8679       mirror::ObjectArray<mirror::Object>::Alloc(self,
   8680                                                  dex_elements_class.Get(),
   8681                                                  dex_files.size())));
   8682   Handle<mirror::Class> h_dex_element_class =
   8683       hs.NewHandle(dex_elements_class->GetComponentType());
   8684 
   8685   ArtField* element_file_field =
   8686       jni::DecodeArtField(WellKnownClasses::dalvik_system_DexPathList__Element_dexFile);
   8687   DCHECK_EQ(h_dex_element_class.Get(), element_file_field->GetDeclaringClass());
   8688 
   8689   ArtField* cookie_field = jni::DecodeArtField(WellKnownClasses::dalvik_system_DexFile_cookie);
   8690   DCHECK_EQ(cookie_field->GetDeclaringClass(), element_file_field->GetType<false>());
   8691 
   8692   ArtField* file_name_field = jni::DecodeArtField(WellKnownClasses::dalvik_system_DexFile_fileName);
   8693   DCHECK_EQ(file_name_field->GetDeclaringClass(), element_file_field->GetType<false>());
   8694 
   8695   // Fill the elements array.
   8696   int32_t index = 0;
   8697   for (const DexFile* dex_file : dex_files) {
   8698     StackHandleScope<4> hs2(self);
   8699 
   8700     // CreatePathClassLoader is only used by gtests. Index 0 of h_long_array is supposed to be the
   8701     // oat file but we can leave it null.
   8702     Handle<mirror::LongArray> h_long_array = hs2.NewHandle(mirror::LongArray::Alloc(
   8703         self,
   8704         kDexFileIndexStart + 1));
   8705     DCHECK(h_long_array != nullptr);
   8706     h_long_array->Set(kDexFileIndexStart, reinterpret_cast<intptr_t>(dex_file));
   8707 
   8708     // Note that this creates a finalizable dalvik.system.DexFile object and a corresponding
   8709     // FinalizerReference which will never get cleaned up without a started runtime.
   8710     Handle<mirror::Object> h_dex_file = hs2.NewHandle(
   8711         cookie_field->GetDeclaringClass()->AllocObject(self));
   8712     DCHECK(h_dex_file != nullptr);
   8713     cookie_field->SetObject<false>(h_dex_file.Get(), h_long_array.Get());
   8714 
   8715     Handle<mirror::String> h_file_name = hs2.NewHandle(
   8716         mirror::String::AllocFromModifiedUtf8(self, dex_file->GetLocation().c_str()));
   8717     DCHECK(h_file_name != nullptr);
   8718     file_name_field->SetObject<false>(h_dex_file.Get(), h_file_name.Get());
   8719 
   8720     Handle<mirror::Object> h_element = hs2.NewHandle(h_dex_element_class->AllocObject(self));
   8721     DCHECK(h_element != nullptr);
   8722     element_file_field->SetObject<false>(h_element.Get(), h_dex_file.Get());
   8723 
   8724     h_dex_elements->Set(index, h_element.Get());
   8725     index++;
   8726   }
   8727   DCHECK_EQ(index, h_dex_elements->GetLength());
   8728 
   8729   // Create DexPathList.
   8730   Handle<mirror::Object> h_dex_path_list = hs.NewHandle(
   8731       dex_elements_field->GetDeclaringClass()->AllocObject(self));
   8732   DCHECK(h_dex_path_list != nullptr);
   8733   // Set elements.
   8734   dex_elements_field->SetObject<false>(h_dex_path_list.Get(), h_dex_elements.Get());
   8735 
   8736   // Create PathClassLoader.
   8737   Handle<mirror::Class> h_path_class_class = hs.NewHandle(
   8738       soa.Decode<mirror::Class>(WellKnownClasses::dalvik_system_PathClassLoader));
   8739   Handle<mirror::Object> h_path_class_loader = hs.NewHandle(
   8740       h_path_class_class->AllocObject(self));
   8741   DCHECK(h_path_class_loader != nullptr);
   8742   // Set DexPathList.
   8743   ArtField* path_list_field =
   8744       jni::DecodeArtField(WellKnownClasses::dalvik_system_BaseDexClassLoader_pathList);
   8745   DCHECK(path_list_field != nullptr);
   8746   path_list_field->SetObject<false>(h_path_class_loader.Get(), h_dex_path_list.Get());
   8747 
   8748   // Make a pretend boot-classpath.
   8749   // TODO: Should we scan the image?
   8750   ArtField* const parent_field =
   8751       mirror::Class::FindField(self,
   8752                                h_path_class_loader->GetClass(),
   8753                                "parent",
   8754                                "Ljava/lang/ClassLoader;");
   8755   DCHECK(parent_field != nullptr);
   8756   ObjPtr<mirror::Object> boot_cl =
   8757       soa.Decode<mirror::Class>(WellKnownClasses::java_lang_BootClassLoader)->AllocObject(self);
   8758   parent_field->SetObject<false>(h_path_class_loader.Get(), boot_cl);
   8759 
   8760   // Make it a global ref and return.
   8761   ScopedLocalRef<jobject> local_ref(
   8762       soa.Env(), soa.Env()->AddLocalReference<jobject>(h_path_class_loader.Get()));
   8763   return soa.Env()->NewGlobalRef(local_ref.get());
   8764 }
   8765 
   8766 void ClassLinker::DropFindArrayClassCache() {
   8767   std::fill_n(find_array_class_cache_, kFindArrayCacheSize, GcRoot<mirror::Class>(nullptr));
   8768   find_array_class_cache_next_victim_ = 0;
   8769 }
   8770 
   8771 void ClassLinker::ClearClassTableStrongRoots() const {
   8772   Thread* const self = Thread::Current();
   8773   WriterMutexLock mu(self, *Locks::classlinker_classes_lock_);
   8774   for (const ClassLoaderData& data : class_loaders_) {
   8775     if (data.class_table != nullptr) {
   8776       data.class_table->ClearStrongRoots();
   8777     }
   8778   }
   8779 }
   8780 
   8781 void ClassLinker::VisitClassLoaders(ClassLoaderVisitor* visitor) const {
   8782   Thread* const self = Thread::Current();
   8783   for (const ClassLoaderData& data : class_loaders_) {
   8784     // Need to use DecodeJObject so that we get null for cleared JNI weak globals.
   8785     ObjPtr<mirror::ClassLoader> class_loader = ObjPtr<mirror::ClassLoader>::DownCast(
   8786         self->DecodeJObject(data.weak_root));
   8787     if (class_loader != nullptr) {
   8788       visitor->Visit(class_loader.Ptr());
   8789     }
   8790   }
   8791 }
   8792 
   8793 void ClassLinker::InsertDexFileInToClassLoader(ObjPtr<mirror::Object> dex_file,
   8794                                                ObjPtr<mirror::ClassLoader> class_loader) {
   8795   DCHECK(dex_file != nullptr);
   8796   Thread* const self = Thread::Current();
   8797   WriterMutexLock mu(self, *Locks::classlinker_classes_lock_);
   8798   ClassTable* const table = ClassTableForClassLoader(class_loader.Ptr());
   8799   DCHECK(table != nullptr);
   8800   if (table->InsertStrongRoot(dex_file) && class_loader != nullptr) {
   8801     // It was not already inserted, perform the write barrier to let the GC know the class loader's
   8802     // class table was modified.
   8803     Runtime::Current()->GetHeap()->WriteBarrierEveryFieldOf(class_loader);
   8804   }
   8805 }
   8806 
   8807 void ClassLinker::CleanupClassLoaders() {
   8808   Thread* const self = Thread::Current();
   8809   std::vector<ClassLoaderData> to_delete;
   8810   // Do the delete outside the lock to avoid lock violation in jit code cache.
   8811   {
   8812     WriterMutexLock mu(self, *Locks::classlinker_classes_lock_);
   8813     for (auto it = class_loaders_.begin(); it != class_loaders_.end(); ) {
   8814       const ClassLoaderData& data = *it;
   8815       // Need to use DecodeJObject so that we get null for cleared JNI weak globals.
   8816       ObjPtr<mirror::ClassLoader> class_loader =
   8817           ObjPtr<mirror::ClassLoader>::DownCast(self->DecodeJObject(data.weak_root));
   8818       if (class_loader != nullptr) {
   8819         ++it;
   8820       } else {
   8821         VLOG(class_linker) << "Freeing class loader";
   8822         to_delete.push_back(data);
   8823         it = class_loaders_.erase(it);
   8824       }
   8825     }
   8826   }
   8827   for (ClassLoaderData& data : to_delete) {
   8828     DeleteClassLoader(self, data);
   8829   }
   8830 }
   8831 
   8832 class GetResolvedClassesVisitor : public ClassVisitor {
   8833  public:
   8834   GetResolvedClassesVisitor(std::set<DexCacheResolvedClasses>* result, bool ignore_boot_classes)
   8835       : result_(result),
   8836         ignore_boot_classes_(ignore_boot_classes),
   8837         last_resolved_classes_(result->end()),
   8838         last_dex_file_(nullptr),
   8839         vlog_is_on_(VLOG_IS_ON(class_linker)),
   8840         extra_stats_(),
   8841         last_extra_stats_(extra_stats_.end()) { }
   8842 
   8843   bool operator()(ObjPtr<mirror::Class> klass) OVERRIDE REQUIRES_SHARED(Locks::mutator_lock_) {
   8844     if (!klass->IsProxyClass() &&
   8845         !klass->IsArrayClass() &&
   8846         klass->IsResolved() &&
   8847         !klass->IsErroneousResolved() &&
   8848         (!ignore_boot_classes_ || klass->GetClassLoader() != nullptr)) {
   8849       const DexFile& dex_file = klass->GetDexFile();
   8850       if (&dex_file != last_dex_file_) {
   8851         last_dex_file_ = &dex_file;
   8852         DexCacheResolvedClasses resolved_classes(dex_file.GetLocation(),
   8853                                                  dex_file.GetBaseLocation(),
   8854                                                  dex_file.GetLocationChecksum());
   8855         last_resolved_classes_ = result_->find(resolved_classes);
   8856         if (last_resolved_classes_ == result_->end()) {
   8857           last_resolved_classes_ = result_->insert(resolved_classes).first;
   8858         }
   8859       }
   8860       bool added = last_resolved_classes_->AddClass(klass->GetDexTypeIndex());
   8861       if (UNLIKELY(vlog_is_on_) && added) {
   8862         const DexCacheResolvedClasses* resolved_classes = std::addressof(*last_resolved_classes_);
   8863         if (last_extra_stats_ == extra_stats_.end() ||
   8864             last_extra_stats_->first != resolved_classes) {
   8865           last_extra_stats_ = extra_stats_.find(resolved_classes);
   8866           if (last_extra_stats_ == extra_stats_.end()) {
   8867             last_extra_stats_ =
   8868                 extra_stats_.emplace(resolved_classes, ExtraStats(dex_file.NumClassDefs())).first;
   8869           }
   8870         }
   8871       }
   8872     }
   8873     return true;
   8874   }
   8875 
   8876   void PrintStatistics() const {
   8877     if (vlog_is_on_) {
   8878       for (const DexCacheResolvedClasses& resolved_classes : *result_) {
   8879         auto it = extra_stats_.find(std::addressof(resolved_classes));
   8880         DCHECK(it != extra_stats_.end());
   8881         const ExtraStats& extra_stats = it->second;
   8882         LOG(INFO) << "Dex location " << resolved_classes.GetDexLocation()
   8883                   << " has " << resolved_classes.GetClasses().size() << " / "
   8884                   << extra_stats.number_of_class_defs_ << " resolved classes";
   8885       }
   8886     }
   8887   }
   8888 
   8889  private:
   8890   struct ExtraStats {
   8891     explicit ExtraStats(uint32_t number_of_class_defs)
   8892         : number_of_class_defs_(number_of_class_defs) {}
   8893     uint32_t number_of_class_defs_;
   8894   };
   8895 
   8896   std::set<DexCacheResolvedClasses>* result_;
   8897   bool ignore_boot_classes_;
   8898   std::set<DexCacheResolvedClasses>::iterator last_resolved_classes_;
   8899   const DexFile* last_dex_file_;
   8900 
   8901   // Statistics.
   8902   bool vlog_is_on_;
   8903   std::map<const DexCacheResolvedClasses*, ExtraStats> extra_stats_;
   8904   std::map<const DexCacheResolvedClasses*, ExtraStats>::iterator last_extra_stats_;
   8905 };
   8906 
   8907 std::set<DexCacheResolvedClasses> ClassLinker::GetResolvedClasses(bool ignore_boot_classes) {
   8908   ScopedTrace trace(__PRETTY_FUNCTION__);
   8909   ScopedObjectAccess soa(Thread::Current());
   8910   ScopedAssertNoThreadSuspension ants(__FUNCTION__);
   8911   std::set<DexCacheResolvedClasses> ret;
   8912   VLOG(class_linker) << "Collecting resolved classes";
   8913   const uint64_t start_time = NanoTime();
   8914   GetResolvedClassesVisitor visitor(&ret, ignore_boot_classes);
   8915   VisitClasses(&visitor);
   8916   if (VLOG_IS_ON(class_linker)) {
   8917     visitor.PrintStatistics();
   8918     LOG(INFO) << "Collecting class profile took " << PrettyDuration(NanoTime() - start_time);
   8919   }
   8920   return ret;
   8921 }
   8922 
   8923 std::unordered_set<std::string> ClassLinker::GetClassDescriptorsForResolvedClasses(
   8924     const std::set<DexCacheResolvedClasses>& classes) {
   8925   ScopedTrace trace(__PRETTY_FUNCTION__);
   8926   std::unordered_set<std::string> ret;
   8927   Thread* const self = Thread::Current();
   8928   std::unordered_map<std::string, const DexFile*> location_to_dex_file;
   8929   ScopedObjectAccess soa(self);
   8930   ScopedAssertNoThreadSuspension ants(__FUNCTION__);
   8931   ReaderMutexLock mu(self, *Locks::dex_lock_);
   8932   for (const ClassLinker::DexCacheData& data : GetDexCachesData()) {
   8933     if (!self->IsJWeakCleared(data.weak_root)) {
   8934       ObjPtr<mirror::DexCache> dex_cache = soa.Decode<mirror::DexCache>(data.weak_root);
   8935       if (dex_cache != nullptr) {
   8936         const DexFile* dex_file = dex_cache->GetDexFile();
   8937         // There could be duplicates if two dex files with the same location are mapped.
   8938         location_to_dex_file.emplace(dex_file->GetLocation(), dex_file);
   8939       }
   8940     }
   8941   }
   8942   for (const DexCacheResolvedClasses& info : classes) {
   8943     const std::string& location = info.GetDexLocation();
   8944     auto found = location_to_dex_file.find(location);
   8945     if (found != location_to_dex_file.end()) {
   8946       const DexFile* dex_file = found->second;
   8947       VLOG(profiler) << "Found opened dex file for " << dex_file->GetLocation() << " with "
   8948                      << info.GetClasses().size() << " classes";
   8949       DCHECK_EQ(dex_file->GetLocationChecksum(), info.GetLocationChecksum());
   8950       for (dex::TypeIndex type_idx : info.GetClasses()) {
   8951         if (!dex_file->IsTypeIndexValid(type_idx)) {
   8952           // Something went bad. The profile is probably corrupted. Abort and return an emtpy set.
   8953           LOG(WARNING) << "Corrupted profile: invalid type index "
   8954               << type_idx.index_ << " in dex " << location;
   8955           return std::unordered_set<std::string>();
   8956         }
   8957         const DexFile::TypeId& type_id = dex_file->GetTypeId(type_idx);
   8958         const char* descriptor = dex_file->GetTypeDescriptor(type_id);
   8959         ret.insert(descriptor);
   8960       }
   8961     } else {
   8962       VLOG(class_linker) << "Failed to find opened dex file for location " << location;
   8963     }
   8964   }
   8965   return ret;
   8966 }
   8967 
   8968 class ClassLinker::FindVirtualMethodHolderVisitor : public ClassVisitor {
   8969  public:
   8970   FindVirtualMethodHolderVisitor(const ArtMethod* method, PointerSize pointer_size)
   8971       : method_(method),
   8972         pointer_size_(pointer_size) {}
   8973 
   8974   bool operator()(ObjPtr<mirror::Class> klass) REQUIRES_SHARED(Locks::mutator_lock_) OVERRIDE {
   8975     if (klass->GetVirtualMethodsSliceUnchecked(pointer_size_).Contains(method_)) {
   8976       holder_ = klass;
   8977     }
   8978     // Return false to stop searching if holder_ is not null.
   8979     return holder_ == nullptr;
   8980   }
   8981 
   8982   ObjPtr<mirror::Class> holder_ = nullptr;
   8983   const ArtMethod* const method_;
   8984   const PointerSize pointer_size_;
   8985 };
   8986 
   8987 mirror::Class* ClassLinker::GetHoldingClassOfCopiedMethod(ArtMethod* method) {
   8988   ScopedTrace trace(__FUNCTION__);  // Since this function is slow, have a trace to notify people.
   8989   CHECK(method->IsCopied());
   8990   FindVirtualMethodHolderVisitor visitor(method, image_pointer_size_);
   8991   VisitClasses(&visitor);
   8992   return visitor.holder_.Ptr();
   8993 }
   8994 
   8995 mirror::IfTable* ClassLinker::AllocIfTable(Thread* self, size_t ifcount) {
   8996   return down_cast<mirror::IfTable*>(
   8997       mirror::IfTable::Alloc(self,
   8998                              GetClassRoot(kObjectArrayClass),
   8999                              ifcount * mirror::IfTable::kMax));
   9000 }
   9001 
   9002 // Instantiate ResolveMethod.
   9003 template ArtMethod* ClassLinker::ResolveMethod<ClassLinker::kForceICCECheck>(
   9004     const DexFile& dex_file,
   9005     uint32_t method_idx,
   9006     Handle<mirror::DexCache> dex_cache,
   9007     Handle<mirror::ClassLoader> class_loader,
   9008     ArtMethod* referrer,
   9009     InvokeType type);
   9010 template ArtMethod* ClassLinker::ResolveMethod<ClassLinker::kNoICCECheckForCache>(
   9011     const DexFile& dex_file,
   9012     uint32_t method_idx,
   9013     Handle<mirror::DexCache> dex_cache,
   9014     Handle<mirror::ClassLoader> class_loader,
   9015     ArtMethod* referrer,
   9016     InvokeType type);
   9017 
   9018 }  // namespace art
   9019