805 lines
36 KiB
C++
805 lines
36 KiB
C++
/*
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* Copyright (C) 2012 The Android Open Source Project
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#ifndef ART_RUNTIME_ENTRYPOINTS_ENTRYPOINT_UTILS_INL_H_
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#define ART_RUNTIME_ENTRYPOINTS_ENTRYPOINT_UTILS_INL_H_
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#include "entrypoint_utils.h"
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#include "art_method.h"
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#include "class_linker-inl.h"
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#include "common_throws.h"
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#include "dex_file.h"
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#include "entrypoints/quick/callee_save_frame.h"
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#include "handle_scope-inl.h"
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#include "indirect_reference_table.h"
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#include "invoke_type.h"
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#include "jni_internal.h"
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#include "mirror/array.h"
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#include "mirror/class-inl.h"
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#include "mirror/object-inl.h"
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#include "mirror/throwable.h"
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#include "nth_caller_visitor.h"
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#include "runtime.h"
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#include "stack_map.h"
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#include "thread.h"
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namespace art {
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template <bool kResolve = true>
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inline ArtMethod* GetResolvedMethod(ArtMethod* outer_method,
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const InlineInfo& inline_info,
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const InlineInfoEncoding& encoding,
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uint8_t inlining_depth)
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SHARED_REQUIRES(Locks::mutator_lock_) {
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uint32_t method_index = inline_info.GetMethodIndexAtDepth(encoding, inlining_depth);
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InvokeType invoke_type = static_cast<InvokeType>(
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inline_info.GetInvokeTypeAtDepth(encoding, inlining_depth));
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ArtMethod* caller = outer_method->GetDexCacheResolvedMethod(method_index, sizeof(void*));
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if (!caller->IsRuntimeMethod()) {
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return caller;
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}
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if (!kResolve) {
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return nullptr;
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}
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// The method in the dex cache can be the runtime method responsible for invoking
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// the stub that will then update the dex cache. Therefore, we need to do the
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// resolution ourselves.
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// We first find the class loader of our caller. If it is the outer method, we can directly
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// use its class loader. Otherwise, we also need to resolve our caller.
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StackHandleScope<2> hs(Thread::Current());
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ClassLinker* class_linker = Runtime::Current()->GetClassLinker();
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MutableHandle<mirror::ClassLoader> class_loader(hs.NewHandle<mirror::Class>(nullptr));
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Handle<mirror::DexCache> dex_cache(hs.NewHandle(outer_method->GetDexCache()));
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if (inlining_depth == 0) {
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class_loader.Assign(outer_method->GetClassLoader());
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} else {
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caller = GetResolvedMethod<kResolve>(outer_method,
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inline_info,
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encoding,
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inlining_depth - 1);
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class_loader.Assign(caller->GetClassLoader());
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}
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return class_linker->ResolveMethod<ClassLinker::kNoICCECheckForCache>(
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*outer_method->GetDexFile(), method_index, dex_cache, class_loader, nullptr, invoke_type);
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}
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inline ArtMethod* GetCalleeSaveMethodCaller(Thread* self, Runtime::CalleeSaveType type)
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SHARED_REQUIRES(Locks::mutator_lock_) {
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return GetCalleeSaveMethodCaller(
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self->GetManagedStack()->GetTopQuickFrame(), type, true /* do_caller_check */);
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}
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template <const bool kAccessCheck>
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ALWAYS_INLINE
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inline mirror::Class* CheckObjectAlloc(uint32_t type_idx,
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ArtMethod* method,
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Thread* self, bool* slow_path) {
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ClassLinker* class_linker = Runtime::Current()->GetClassLinker();
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size_t pointer_size = class_linker->GetImagePointerSize();
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mirror::Class* klass = method->GetDexCacheResolvedType<false>(type_idx, pointer_size);
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if (UNLIKELY(klass == nullptr)) {
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klass = class_linker->ResolveType(type_idx, method);
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*slow_path = true;
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if (klass == nullptr) {
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DCHECK(self->IsExceptionPending());
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return nullptr; // Failure
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} else {
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DCHECK(!self->IsExceptionPending());
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}
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}
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if (kAccessCheck) {
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if (UNLIKELY(!klass->IsInstantiable())) {
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self->ThrowNewException("Ljava/lang/InstantiationError;", PrettyDescriptor(klass).c_str());
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*slow_path = true;
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return nullptr; // Failure
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}
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mirror::Class* referrer = method->GetDeclaringClass();
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if (UNLIKELY(!referrer->CanAccess(klass))) {
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ThrowIllegalAccessErrorClass(referrer, klass);
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*slow_path = true;
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return nullptr; // Failure
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}
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}
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if (UNLIKELY(!klass->IsInitialized())) {
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StackHandleScope<1> hs(self);
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Handle<mirror::Class> h_klass(hs.NewHandle(klass));
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// EnsureInitialized (the class initializer) might cause a GC.
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// may cause us to suspend meaning that another thread may try to
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// change the allocator while we are stuck in the entrypoints of
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// an old allocator. Also, the class initialization may fail. To
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// handle these cases we mark the slow path boolean as true so
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// that the caller knows to check the allocator type to see if it
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// has changed and to null-check the return value in case the
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// initialization fails.
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*slow_path = true;
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if (!Runtime::Current()->GetClassLinker()->EnsureInitialized(self, h_klass, true, true)) {
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DCHECK(self->IsExceptionPending());
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return nullptr; // Failure
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} else {
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DCHECK(!self->IsExceptionPending());
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}
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return h_klass.Get();
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}
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return klass;
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}
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ALWAYS_INLINE
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inline mirror::Class* CheckClassInitializedForObjectAlloc(mirror::Class* klass,
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Thread* self,
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bool* slow_path) {
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if (UNLIKELY(!klass->IsInitialized())) {
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StackHandleScope<1> hs(self);
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Handle<mirror::Class> h_class(hs.NewHandle(klass));
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// EnsureInitialized (the class initializer) might cause a GC.
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// may cause us to suspend meaning that another thread may try to
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// change the allocator while we are stuck in the entrypoints of
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// an old allocator. Also, the class initialization may fail. To
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// handle these cases we mark the slow path boolean as true so
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// that the caller knows to check the allocator type to see if it
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// has changed and to null-check the return value in case the
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// initialization fails.
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*slow_path = true;
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if (!Runtime::Current()->GetClassLinker()->EnsureInitialized(self, h_class, true, true)) {
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DCHECK(self->IsExceptionPending());
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return nullptr; // Failure
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}
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return h_class.Get();
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}
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return klass;
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}
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// Given the context of a calling Method, use its DexCache to resolve a type to a Class. If it
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// cannot be resolved, throw an error. If it can, use it to create an instance.
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// When verification/compiler hasn't been able to verify access, optionally perform an access
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// check.
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template <bool kAccessCheck, bool kInstrumented>
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ALWAYS_INLINE
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inline mirror::Object* AllocObjectFromCode(uint32_t type_idx,
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ArtMethod* method,
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Thread* self,
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gc::AllocatorType allocator_type) {
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bool slow_path = false;
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mirror::Class* klass = CheckObjectAlloc<kAccessCheck>(type_idx, method, self, &slow_path);
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if (UNLIKELY(slow_path)) {
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if (klass == nullptr) {
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return nullptr;
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}
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// CheckObjectAlloc can cause thread suspension which means we may now be instrumented.
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return klass->Alloc</*kInstrumented*/true>(
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self,
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Runtime::Current()->GetHeap()->GetCurrentAllocator());
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}
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DCHECK(klass != nullptr);
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return klass->Alloc<kInstrumented>(self, allocator_type);
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}
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// Given the context of a calling Method and a resolved class, create an instance.
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template <bool kInstrumented>
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ALWAYS_INLINE
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inline mirror::Object* AllocObjectFromCodeResolved(mirror::Class* klass,
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Thread* self,
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gc::AllocatorType allocator_type) {
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DCHECK(klass != nullptr);
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bool slow_path = false;
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klass = CheckClassInitializedForObjectAlloc(klass, self, &slow_path);
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if (UNLIKELY(slow_path)) {
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if (klass == nullptr) {
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return nullptr;
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}
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gc::Heap* heap = Runtime::Current()->GetHeap();
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// Pass in false since the object cannot be finalizable.
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// CheckClassInitializedForObjectAlloc can cause thread suspension which means we may now be
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// instrumented.
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return klass->Alloc</*kInstrumented*/true, false>(self, heap->GetCurrentAllocator());
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}
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// Pass in false since the object cannot be finalizable.
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return klass->Alloc<kInstrumented, false>(self, allocator_type);
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}
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// Given the context of a calling Method and an initialized class, create an instance.
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template <bool kInstrumented>
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ALWAYS_INLINE
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inline mirror::Object* AllocObjectFromCodeInitialized(mirror::Class* klass,
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Thread* self,
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gc::AllocatorType allocator_type) {
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DCHECK(klass != nullptr);
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// Pass in false since the object cannot be finalizable.
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return klass->Alloc<kInstrumented, false>(self, allocator_type);
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}
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template <bool kAccessCheck>
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ALWAYS_INLINE
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inline mirror::Class* CheckArrayAlloc(uint32_t type_idx,
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int32_t component_count,
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ArtMethod* method,
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bool* slow_path) {
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if (UNLIKELY(component_count < 0)) {
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ThrowNegativeArraySizeException(component_count);
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*slow_path = true;
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return nullptr; // Failure
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}
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ClassLinker* class_linker = Runtime::Current()->GetClassLinker();
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size_t pointer_size = class_linker->GetImagePointerSize();
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mirror::Class* klass = method->GetDexCacheResolvedType<false>(type_idx, pointer_size);
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if (UNLIKELY(klass == nullptr)) { // Not in dex cache so try to resolve
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klass = class_linker->ResolveType(type_idx, method);
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*slow_path = true;
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if (klass == nullptr) { // Error
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DCHECK(Thread::Current()->IsExceptionPending());
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return nullptr; // Failure
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}
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CHECK(klass->IsArrayClass()) << PrettyClass(klass);
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}
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if (kAccessCheck) {
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mirror::Class* referrer = method->GetDeclaringClass();
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if (UNLIKELY(!referrer->CanAccess(klass))) {
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ThrowIllegalAccessErrorClass(referrer, klass);
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*slow_path = true;
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return nullptr; // Failure
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}
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}
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return klass;
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}
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// Given the context of a calling Method, use its DexCache to resolve a type to an array Class. If
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// it cannot be resolved, throw an error. If it can, use it to create an array.
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// When verification/compiler hasn't been able to verify access, optionally perform an access
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// check.
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template <bool kAccessCheck, bool kInstrumented>
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ALWAYS_INLINE
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inline mirror::Array* AllocArrayFromCode(uint32_t type_idx,
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int32_t component_count,
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ArtMethod* method,
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Thread* self,
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gc::AllocatorType allocator_type) {
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bool slow_path = false;
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mirror::Class* klass = CheckArrayAlloc<kAccessCheck>(type_idx, component_count, method,
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&slow_path);
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if (UNLIKELY(slow_path)) {
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if (klass == nullptr) {
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return nullptr;
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}
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gc::Heap* heap = Runtime::Current()->GetHeap();
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// CheckArrayAlloc can cause thread suspension which means we may now be instrumented.
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return mirror::Array::Alloc</*kInstrumented*/true>(self,
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klass,
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component_count,
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klass->GetComponentSizeShift(),
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heap->GetCurrentAllocator());
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}
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return mirror::Array::Alloc<kInstrumented>(self, klass, component_count,
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klass->GetComponentSizeShift(), allocator_type);
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}
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template <bool kAccessCheck, bool kInstrumented>
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ALWAYS_INLINE
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inline mirror::Array* AllocArrayFromCodeResolved(mirror::Class* klass,
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int32_t component_count,
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ArtMethod* method,
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Thread* self,
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gc::AllocatorType allocator_type) {
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DCHECK(klass != nullptr);
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if (UNLIKELY(component_count < 0)) {
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ThrowNegativeArraySizeException(component_count);
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return nullptr; // Failure
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}
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if (kAccessCheck) {
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mirror::Class* referrer = method->GetDeclaringClass();
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if (UNLIKELY(!referrer->CanAccess(klass))) {
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ThrowIllegalAccessErrorClass(referrer, klass);
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return nullptr; // Failure
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}
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}
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// No need to retry a slow-path allocation as the above code won't cause a GC or thread
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// suspension.
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return mirror::Array::Alloc<kInstrumented>(self, klass, component_count,
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klass->GetComponentSizeShift(), allocator_type);
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}
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template<FindFieldType type, bool access_check>
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inline ArtField* FindFieldFromCode(uint32_t field_idx,
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ArtMethod* referrer,
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Thread* self,
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size_t expected_size) REQUIRES(!Roles::uninterruptible_) {
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bool is_primitive;
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bool is_set;
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bool is_static;
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switch (type) {
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case InstanceObjectRead: is_primitive = false; is_set = false; is_static = false; break;
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case InstanceObjectWrite: is_primitive = false; is_set = true; is_static = false; break;
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case InstancePrimitiveRead: is_primitive = true; is_set = false; is_static = false; break;
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case InstancePrimitiveWrite: is_primitive = true; is_set = true; is_static = false; break;
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case StaticObjectRead: is_primitive = false; is_set = false; is_static = true; break;
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case StaticObjectWrite: is_primitive = false; is_set = true; is_static = true; break;
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case StaticPrimitiveRead: is_primitive = true; is_set = false; is_static = true; break;
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case StaticPrimitiveWrite: // Keep GCC happy by having a default handler, fall-through.
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default: is_primitive = true; is_set = true; is_static = true; break;
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}
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ClassLinker* class_linker = Runtime::Current()->GetClassLinker();
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ArtField* resolved_field;
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if (access_check) {
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// Slow path: According to JLS 13.4.8, a linkage error may occur if a compile-time
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// qualifying type of a field and the resolved run-time qualifying type of a field differed
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// in their static-ness.
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//
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// In particular, don't assume the dex instruction already correctly knows if the
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// real field is static or not. The resolution must not be aware of this.
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ArtMethod* method = referrer->GetInterfaceMethodIfProxy(sizeof(void*));
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StackHandleScope<2> hs(self);
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Handle<mirror::DexCache> h_dex_cache(hs.NewHandle(method->GetDexCache()));
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Handle<mirror::ClassLoader> h_class_loader(hs.NewHandle(method->GetClassLoader()));
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resolved_field = class_linker->ResolveFieldJLS(*method->GetDexFile(),
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field_idx,
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h_dex_cache,
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h_class_loader);
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} else {
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// Fast path: Verifier already would've called ResolveFieldJLS and we wouldn't
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// be executing here if there was a static/non-static mismatch.
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resolved_field = class_linker->ResolveField(field_idx, referrer, is_static);
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}
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if (UNLIKELY(resolved_field == nullptr)) {
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DCHECK(self->IsExceptionPending()); // Throw exception and unwind.
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return nullptr; // Failure.
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}
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mirror::Class* fields_class = resolved_field->GetDeclaringClass();
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if (access_check) {
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if (UNLIKELY(resolved_field->IsStatic() != is_static)) {
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ThrowIncompatibleClassChangeErrorField(resolved_field, is_static, referrer);
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return nullptr;
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}
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mirror::Class* referring_class = referrer->GetDeclaringClass();
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if (UNLIKELY(!referring_class->CheckResolvedFieldAccess(fields_class, resolved_field,
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field_idx))) {
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DCHECK(self->IsExceptionPending()); // Throw exception and unwind.
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return nullptr; // Failure.
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}
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if (UNLIKELY(is_set && resolved_field->IsFinal() && (fields_class != referring_class))) {
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ThrowIllegalAccessErrorFinalField(referrer, resolved_field);
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return nullptr; // Failure.
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} else {
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if (UNLIKELY(resolved_field->IsPrimitiveType() != is_primitive ||
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resolved_field->FieldSize() != expected_size)) {
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self->ThrowNewExceptionF("Ljava/lang/NoSuchFieldError;",
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"Attempted read of %zd-bit %s on field '%s'",
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expected_size * (32 / sizeof(int32_t)),
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is_primitive ? "primitive" : "non-primitive",
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PrettyField(resolved_field, true).c_str());
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return nullptr; // Failure.
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}
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}
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}
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if (!is_static) {
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// instance fields must be being accessed on an initialized class
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return resolved_field;
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} else {
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// If the class is initialized we're done.
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if (LIKELY(fields_class->IsInitialized())) {
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return resolved_field;
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} else {
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StackHandleScope<1> hs(self);
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Handle<mirror::Class> h_class(hs.NewHandle(fields_class));
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if (LIKELY(class_linker->EnsureInitialized(self, h_class, true, true))) {
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// Otherwise let's ensure the class is initialized before resolving the field.
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return resolved_field;
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}
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DCHECK(self->IsExceptionPending()); // Throw exception and unwind
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return nullptr; // Failure.
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}
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}
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}
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// Explicit template declarations of FindFieldFromCode for all field access types.
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#define EXPLICIT_FIND_FIELD_FROM_CODE_TEMPLATE_DECL(_type, _access_check) \
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template SHARED_REQUIRES(Locks::mutator_lock_) ALWAYS_INLINE \
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ArtField* FindFieldFromCode<_type, _access_check>(uint32_t field_idx, \
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ArtMethod* referrer, \
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Thread* self, size_t expected_size) \
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#define EXPLICIT_FIND_FIELD_FROM_CODE_TYPED_TEMPLATE_DECL(_type) \
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EXPLICIT_FIND_FIELD_FROM_CODE_TEMPLATE_DECL(_type, false); \
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EXPLICIT_FIND_FIELD_FROM_CODE_TEMPLATE_DECL(_type, true)
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EXPLICIT_FIND_FIELD_FROM_CODE_TYPED_TEMPLATE_DECL(InstanceObjectRead);
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EXPLICIT_FIND_FIELD_FROM_CODE_TYPED_TEMPLATE_DECL(InstanceObjectWrite);
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EXPLICIT_FIND_FIELD_FROM_CODE_TYPED_TEMPLATE_DECL(InstancePrimitiveRead);
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EXPLICIT_FIND_FIELD_FROM_CODE_TYPED_TEMPLATE_DECL(InstancePrimitiveWrite);
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EXPLICIT_FIND_FIELD_FROM_CODE_TYPED_TEMPLATE_DECL(StaticObjectRead);
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EXPLICIT_FIND_FIELD_FROM_CODE_TYPED_TEMPLATE_DECL(StaticObjectWrite);
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EXPLICIT_FIND_FIELD_FROM_CODE_TYPED_TEMPLATE_DECL(StaticPrimitiveRead);
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EXPLICIT_FIND_FIELD_FROM_CODE_TYPED_TEMPLATE_DECL(StaticPrimitiveWrite);
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#undef EXPLICIT_FIND_FIELD_FROM_CODE_TYPED_TEMPLATE_DECL
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#undef EXPLICIT_FIND_FIELD_FROM_CODE_TEMPLATE_DECL
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template<InvokeType type, bool access_check>
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inline ArtMethod* FindMethodFromCode(uint32_t method_idx, mirror::Object** this_object,
|
|
ArtMethod* referrer, Thread* self) {
|
|
ClassLinker* const class_linker = Runtime::Current()->GetClassLinker();
|
|
ArtMethod* resolved_method = class_linker->GetResolvedMethod(method_idx, referrer);
|
|
if (resolved_method == nullptr) {
|
|
StackHandleScope<1> hs(self);
|
|
mirror::Object* null_this = nullptr;
|
|
HandleWrapper<mirror::Object> h_this(
|
|
hs.NewHandleWrapper(type == kStatic ? &null_this : this_object));
|
|
constexpr ClassLinker::ResolveMode resolve_mode =
|
|
access_check ? ClassLinker::kForceICCECheck
|
|
: ClassLinker::kNoICCECheckForCache;
|
|
resolved_method = class_linker->ResolveMethod<resolve_mode>(self, method_idx, referrer, type);
|
|
}
|
|
if (UNLIKELY(resolved_method == nullptr)) {
|
|
DCHECK(self->IsExceptionPending()); // Throw exception and unwind.
|
|
return nullptr; // Failure.
|
|
} else if (UNLIKELY(*this_object == nullptr && type != kStatic)) {
|
|
if (UNLIKELY(resolved_method->GetDeclaringClass()->IsStringClass() &&
|
|
resolved_method->IsConstructor())) {
|
|
// Hack for String init:
|
|
//
|
|
// We assume that the input of String.<init> in verified code is always
|
|
// an unitialized reference. If it is a null constant, it must have been
|
|
// optimized out by the compiler. Do not throw NullPointerException.
|
|
} else {
|
|
// Maintain interpreter-like semantics where NullPointerException is thrown
|
|
// after potential NoSuchMethodError from class linker.
|
|
ThrowNullPointerExceptionForMethodAccess(method_idx, type);
|
|
return nullptr; // Failure.
|
|
}
|
|
} else if (access_check) {
|
|
mirror::Class* methods_class = resolved_method->GetDeclaringClass();
|
|
bool can_access_resolved_method =
|
|
referrer->GetDeclaringClass()->CheckResolvedMethodAccess<type>(methods_class,
|
|
resolved_method,
|
|
method_idx);
|
|
if (UNLIKELY(!can_access_resolved_method)) {
|
|
DCHECK(self->IsExceptionPending()); // Throw exception and unwind.
|
|
return nullptr; // Failure.
|
|
}
|
|
// Incompatible class change should have been handled in resolve method.
|
|
if (UNLIKELY(resolved_method->CheckIncompatibleClassChange(type))) {
|
|
ThrowIncompatibleClassChangeError(type, resolved_method->GetInvokeType(), resolved_method,
|
|
referrer);
|
|
return nullptr; // Failure.
|
|
}
|
|
}
|
|
switch (type) {
|
|
case kStatic:
|
|
case kDirect:
|
|
return resolved_method;
|
|
case kVirtual: {
|
|
mirror::Class* klass = (*this_object)->GetClass();
|
|
uint16_t vtable_index = resolved_method->GetMethodIndex();
|
|
if (access_check &&
|
|
(!klass->HasVTable() ||
|
|
vtable_index >= static_cast<uint32_t>(klass->GetVTableLength()))) {
|
|
// Behavior to agree with that of the verifier.
|
|
ThrowNoSuchMethodError(type, resolved_method->GetDeclaringClass(),
|
|
resolved_method->GetName(), resolved_method->GetSignature());
|
|
return nullptr; // Failure.
|
|
}
|
|
DCHECK(klass->HasVTable()) << PrettyClass(klass);
|
|
return klass->GetVTableEntry(vtable_index, class_linker->GetImagePointerSize());
|
|
}
|
|
case kSuper: {
|
|
// TODO This lookup is quite slow.
|
|
// NB This is actually quite tricky to do any other way. We cannot use GetDeclaringClass since
|
|
// that will actually not be what we want in some cases where there are miranda methods or
|
|
// defaults. What we actually need is a GetContainingClass that says which classes virtuals
|
|
// this method is coming from.
|
|
mirror::Class* referring_class = referrer->GetDeclaringClass();
|
|
uint16_t method_type_idx = referring_class->GetDexFile().GetMethodId(method_idx).class_idx_;
|
|
mirror::Class* method_reference_class = class_linker->ResolveType(method_type_idx, referrer);
|
|
if (UNLIKELY(method_reference_class == nullptr)) {
|
|
// Bad type idx.
|
|
CHECK(self->IsExceptionPending());
|
|
return nullptr;
|
|
} else if (!method_reference_class->IsInterface()) {
|
|
// It is not an interface. If the referring class is in the class hierarchy of the
|
|
// referenced class in the bytecode, we use its super class. Otherwise, we throw
|
|
// a NoSuchMethodError.
|
|
mirror::Class* super_class = nullptr;
|
|
if (method_reference_class->IsAssignableFrom(referring_class)) {
|
|
super_class = referring_class->GetSuperClass();
|
|
}
|
|
uint16_t vtable_index = resolved_method->GetMethodIndex();
|
|
if (access_check) {
|
|
// Check existence of super class.
|
|
if (super_class == nullptr ||
|
|
!super_class->HasVTable() ||
|
|
vtable_index >= static_cast<uint32_t>(super_class->GetVTableLength())) {
|
|
// Behavior to agree with that of the verifier.
|
|
ThrowNoSuchMethodError(type, resolved_method->GetDeclaringClass(),
|
|
resolved_method->GetName(), resolved_method->GetSignature());
|
|
return nullptr; // Failure.
|
|
}
|
|
}
|
|
DCHECK(super_class != nullptr);
|
|
DCHECK(super_class->HasVTable());
|
|
return super_class->GetVTableEntry(vtable_index, class_linker->GetImagePointerSize());
|
|
} else {
|
|
// It is an interface.
|
|
if (access_check) {
|
|
if (!method_reference_class->IsAssignableFrom((*this_object)->GetClass())) {
|
|
ThrowIncompatibleClassChangeErrorClassForInterfaceSuper(resolved_method,
|
|
method_reference_class,
|
|
*this_object,
|
|
referrer);
|
|
return nullptr; // Failure.
|
|
}
|
|
}
|
|
// TODO We can do better than this for a (compiled) fastpath.
|
|
ArtMethod* result = method_reference_class->FindVirtualMethodForInterfaceSuper(
|
|
resolved_method, class_linker->GetImagePointerSize());
|
|
// Throw an NSME if nullptr;
|
|
if (result == nullptr) {
|
|
ThrowNoSuchMethodError(type, resolved_method->GetDeclaringClass(),
|
|
resolved_method->GetName(), resolved_method->GetSignature());
|
|
}
|
|
return result;
|
|
}
|
|
}
|
|
case kInterface: {
|
|
uint32_t imt_index = resolved_method->GetDexMethodIndex() % ImTable::kSize;
|
|
size_t pointer_size = class_linker->GetImagePointerSize();
|
|
ArtMethod* imt_method = (*this_object)->GetClass()->GetImt(pointer_size)->
|
|
Get(imt_index, pointer_size);
|
|
if (!imt_method->IsRuntimeMethod()) {
|
|
if (kIsDebugBuild) {
|
|
mirror::Class* klass = (*this_object)->GetClass();
|
|
ArtMethod* method = klass->FindVirtualMethodForInterface(
|
|
resolved_method, class_linker->GetImagePointerSize());
|
|
CHECK_EQ(imt_method, method) << PrettyMethod(resolved_method) << " / " <<
|
|
PrettyMethod(imt_method) << " / " << PrettyMethod(method) << " / " <<
|
|
PrettyClass(klass);
|
|
}
|
|
return imt_method;
|
|
} else {
|
|
ArtMethod* interface_method = (*this_object)->GetClass()->FindVirtualMethodForInterface(
|
|
resolved_method, class_linker->GetImagePointerSize());
|
|
if (UNLIKELY(interface_method == nullptr)) {
|
|
ThrowIncompatibleClassChangeErrorClassForInterfaceDispatch(resolved_method,
|
|
*this_object, referrer);
|
|
return nullptr; // Failure.
|
|
}
|
|
return interface_method;
|
|
}
|
|
}
|
|
default:
|
|
LOG(FATAL) << "Unknown invoke type " << type;
|
|
return nullptr; // Failure.
|
|
}
|
|
}
|
|
|
|
// Explicit template declarations of FindMethodFromCode for all invoke types.
|
|
#define EXPLICIT_FIND_METHOD_FROM_CODE_TEMPLATE_DECL(_type, _access_check) \
|
|
template SHARED_REQUIRES(Locks::mutator_lock_) ALWAYS_INLINE \
|
|
ArtMethod* FindMethodFromCode<_type, _access_check>(uint32_t method_idx, \
|
|
mirror::Object** this_object, \
|
|
ArtMethod* referrer, \
|
|
Thread* self)
|
|
#define EXPLICIT_FIND_METHOD_FROM_CODE_TYPED_TEMPLATE_DECL(_type) \
|
|
EXPLICIT_FIND_METHOD_FROM_CODE_TEMPLATE_DECL(_type, false); \
|
|
EXPLICIT_FIND_METHOD_FROM_CODE_TEMPLATE_DECL(_type, true)
|
|
|
|
EXPLICIT_FIND_METHOD_FROM_CODE_TYPED_TEMPLATE_DECL(kStatic);
|
|
EXPLICIT_FIND_METHOD_FROM_CODE_TYPED_TEMPLATE_DECL(kDirect);
|
|
EXPLICIT_FIND_METHOD_FROM_CODE_TYPED_TEMPLATE_DECL(kVirtual);
|
|
EXPLICIT_FIND_METHOD_FROM_CODE_TYPED_TEMPLATE_DECL(kSuper);
|
|
EXPLICIT_FIND_METHOD_FROM_CODE_TYPED_TEMPLATE_DECL(kInterface);
|
|
|
|
#undef EXPLICIT_FIND_METHOD_FROM_CODE_TYPED_TEMPLATE_DECL
|
|
#undef EXPLICIT_FIND_METHOD_FROM_CODE_TEMPLATE_DECL
|
|
|
|
// Fast path field resolution that can't initialize classes or throw exceptions.
|
|
inline ArtField* FindFieldFast(uint32_t field_idx, ArtMethod* referrer, FindFieldType type,
|
|
size_t expected_size) {
|
|
ArtField* resolved_field =
|
|
referrer->GetDeclaringClass()->GetDexCache()->GetResolvedField(field_idx, sizeof(void*));
|
|
if (UNLIKELY(resolved_field == nullptr)) {
|
|
return nullptr;
|
|
}
|
|
// Check for incompatible class change.
|
|
bool is_primitive;
|
|
bool is_set;
|
|
bool is_static;
|
|
switch (type) {
|
|
case InstanceObjectRead: is_primitive = false; is_set = false; is_static = false; break;
|
|
case InstanceObjectWrite: is_primitive = false; is_set = true; is_static = false; break;
|
|
case InstancePrimitiveRead: is_primitive = true; is_set = false; is_static = false; break;
|
|
case InstancePrimitiveWrite: is_primitive = true; is_set = true; is_static = false; break;
|
|
case StaticObjectRead: is_primitive = false; is_set = false; is_static = true; break;
|
|
case StaticObjectWrite: is_primitive = false; is_set = true; is_static = true; break;
|
|
case StaticPrimitiveRead: is_primitive = true; is_set = false; is_static = true; break;
|
|
case StaticPrimitiveWrite: is_primitive = true; is_set = true; is_static = true; break;
|
|
default:
|
|
LOG(FATAL) << "UNREACHABLE";
|
|
UNREACHABLE();
|
|
}
|
|
if (UNLIKELY(resolved_field->IsStatic() != is_static)) {
|
|
// Incompatible class change.
|
|
return nullptr;
|
|
}
|
|
mirror::Class* fields_class = resolved_field->GetDeclaringClass();
|
|
if (is_static) {
|
|
// Check class is initialized else fail so that we can contend to initialize the class with
|
|
// other threads that may be racing to do this.
|
|
if (UNLIKELY(!fields_class->IsInitialized())) {
|
|
return nullptr;
|
|
}
|
|
}
|
|
mirror::Class* referring_class = referrer->GetDeclaringClass();
|
|
if (UNLIKELY(!referring_class->CanAccess(fields_class) ||
|
|
!referring_class->CanAccessMember(fields_class, resolved_field->GetAccessFlags()) ||
|
|
(is_set && resolved_field->IsFinal() && (fields_class != referring_class)))) {
|
|
// Illegal access.
|
|
return nullptr;
|
|
}
|
|
if (UNLIKELY(resolved_field->IsPrimitiveType() != is_primitive ||
|
|
resolved_field->FieldSize() != expected_size)) {
|
|
return nullptr;
|
|
}
|
|
return resolved_field;
|
|
}
|
|
|
|
// Fast path method resolution that can't throw exceptions.
|
|
inline ArtMethod* FindMethodFast(uint32_t method_idx, mirror::Object* this_object,
|
|
ArtMethod* referrer, bool access_check, InvokeType type) {
|
|
if (UNLIKELY(this_object == nullptr && type != kStatic)) {
|
|
return nullptr;
|
|
}
|
|
mirror::Class* referring_class = referrer->GetDeclaringClass();
|
|
ArtMethod* resolved_method =
|
|
referring_class->GetDexCache()->GetResolvedMethod(method_idx, sizeof(void*));
|
|
if (UNLIKELY(resolved_method == nullptr)) {
|
|
return nullptr;
|
|
}
|
|
if (access_check) {
|
|
// Check for incompatible class change errors and access.
|
|
bool icce = resolved_method->CheckIncompatibleClassChange(type);
|
|
if (UNLIKELY(icce)) {
|
|
return nullptr;
|
|
}
|
|
mirror::Class* methods_class = resolved_method->GetDeclaringClass();
|
|
if (UNLIKELY(!referring_class->CanAccess(methods_class) ||
|
|
!referring_class->CanAccessMember(methods_class,
|
|
resolved_method->GetAccessFlags()))) {
|
|
// Potential illegal access, may need to refine the method's class.
|
|
return nullptr;
|
|
}
|
|
}
|
|
if (type == kInterface) { // Most common form of slow path dispatch.
|
|
return this_object->GetClass()->FindVirtualMethodForInterface(resolved_method, sizeof(void*));
|
|
} else if (type == kStatic || type == kDirect) {
|
|
return resolved_method;
|
|
} else if (type == kSuper) {
|
|
// TODO This lookup is rather slow.
|
|
uint16_t method_type_idx = referring_class->GetDexFile().GetMethodId(method_idx).class_idx_;
|
|
mirror::Class* method_reference_class =
|
|
referring_class->GetDexCache()->GetResolvedType(method_type_idx);
|
|
if (method_reference_class == nullptr) {
|
|
// Need to do full type resolution...
|
|
return nullptr;
|
|
} else if (!method_reference_class->IsInterface()) {
|
|
// It is not an interface. If the referring class is in the class hierarchy of the
|
|
// referenced class in the bytecode, we use its super class. Otherwise, we cannot
|
|
// resolve the method.
|
|
if (!method_reference_class->IsAssignableFrom(referring_class)) {
|
|
return nullptr;
|
|
}
|
|
mirror::Class* super_class = referring_class->GetSuperClass();
|
|
if (resolved_method->GetMethodIndex() >= super_class->GetVTableLength()) {
|
|
// The super class does not have the method.
|
|
return nullptr;
|
|
}
|
|
return super_class->GetVTableEntry(resolved_method->GetMethodIndex(), sizeof(void*));
|
|
} else {
|
|
return method_reference_class->FindVirtualMethodForInterfaceSuper(
|
|
resolved_method, sizeof(void*));
|
|
}
|
|
} else {
|
|
DCHECK(type == kVirtual);
|
|
return this_object->GetClass()->GetVTableEntry(
|
|
resolved_method->GetMethodIndex(), sizeof(void*));
|
|
}
|
|
}
|
|
|
|
inline mirror::Class* ResolveVerifyAndClinit(uint32_t type_idx, ArtMethod* referrer, Thread* self,
|
|
bool can_run_clinit, bool verify_access) {
|
|
ClassLinker* class_linker = Runtime::Current()->GetClassLinker();
|
|
mirror::Class* klass = class_linker->ResolveType(type_idx, referrer);
|
|
if (UNLIKELY(klass == nullptr)) {
|
|
CHECK(self->IsExceptionPending());
|
|
return nullptr; // Failure - Indicate to caller to deliver exception
|
|
}
|
|
// Perform access check if necessary.
|
|
mirror::Class* referring_class = referrer->GetDeclaringClass();
|
|
if (verify_access && UNLIKELY(!referring_class->CanAccess(klass))) {
|
|
ThrowIllegalAccessErrorClass(referring_class, klass);
|
|
return nullptr; // Failure - Indicate to caller to deliver exception
|
|
}
|
|
// If we're just implementing const-class, we shouldn't call <clinit>.
|
|
if (!can_run_clinit) {
|
|
return klass;
|
|
}
|
|
// If we are the <clinit> of this class, just return our storage.
|
|
//
|
|
// Do not set the DexCache InitializedStaticStorage, since that implies <clinit> has finished
|
|
// running.
|
|
if (klass == referring_class && referrer->IsConstructor() && referrer->IsStatic()) {
|
|
return klass;
|
|
}
|
|
StackHandleScope<1> hs(self);
|
|
Handle<mirror::Class> h_class(hs.NewHandle(klass));
|
|
if (!class_linker->EnsureInitialized(self, h_class, true, true)) {
|
|
CHECK(self->IsExceptionPending());
|
|
return nullptr; // Failure - Indicate to caller to deliver exception
|
|
}
|
|
return h_class.Get();
|
|
}
|
|
|
|
inline mirror::String* ResolveStringFromCode(ArtMethod* referrer, uint32_t string_idx) {
|
|
ClassLinker* class_linker = Runtime::Current()->GetClassLinker();
|
|
return class_linker->ResolveString(string_idx, referrer);
|
|
}
|
|
|
|
inline void UnlockJniSynchronizedMethod(jobject locked, Thread* self) {
|
|
// Save any pending exception over monitor exit call.
|
|
mirror::Throwable* saved_exception = nullptr;
|
|
if (UNLIKELY(self->IsExceptionPending())) {
|
|
saved_exception = self->GetException();
|
|
self->ClearException();
|
|
}
|
|
// Decode locked object and unlock, before popping local references.
|
|
self->DecodeJObject(locked)->MonitorExit(self);
|
|
if (UNLIKELY(self->IsExceptionPending())) {
|
|
LOG(FATAL) << "Synchronized JNI code returning with an exception:\n"
|
|
<< saved_exception->Dump()
|
|
<< "\nEncountered second exception during implicit MonitorExit:\n"
|
|
<< self->GetException()->Dump();
|
|
}
|
|
// Restore pending exception.
|
|
if (saved_exception != nullptr) {
|
|
self->SetException(saved_exception);
|
|
}
|
|
}
|
|
|
|
template <typename INT_TYPE, typename FLOAT_TYPE>
|
|
inline INT_TYPE art_float_to_integral(FLOAT_TYPE f) {
|
|
const INT_TYPE kMaxInt = static_cast<INT_TYPE>(std::numeric_limits<INT_TYPE>::max());
|
|
const INT_TYPE kMinInt = static_cast<INT_TYPE>(std::numeric_limits<INT_TYPE>::min());
|
|
const FLOAT_TYPE kMaxIntAsFloat = static_cast<FLOAT_TYPE>(kMaxInt);
|
|
const FLOAT_TYPE kMinIntAsFloat = static_cast<FLOAT_TYPE>(kMinInt);
|
|
if (LIKELY(f > kMinIntAsFloat)) {
|
|
if (LIKELY(f < kMaxIntAsFloat)) {
|
|
return static_cast<INT_TYPE>(f);
|
|
} else {
|
|
return kMaxInt;
|
|
}
|
|
} else {
|
|
return (f != f) ? 0 : kMinInt; // f != f implies NaN
|
|
}
|
|
}
|
|
|
|
} // namespace art
|
|
|
|
#endif // ART_RUNTIME_ENTRYPOINTS_ENTRYPOINT_UTILS_INL_H_
|