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ti_heap.cc
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/*
* Copyright (C) 2016 The Android Open Source Project
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*/
#include "ti_heap.h"
#include <ios>
#include <unordered_map>
#include "android-base/logging.h"
#include "android-base/thread_annotations.h"
#include "arch/context.h"
#include "art_field-inl.h"
#include "art_jvmti.h"
#include "base/logging.h"
#include "base/macros.h"
#include "base/mutex.h"
#include "base/utils.h"
#include "class_linker.h"
#include "deopt_manager.h"
#include "dex/primitive.h"
#include "events-inl.h"
#include "gc/collector_type.h"
#include "gc/gc_cause.h"
#include "gc/heap-visit-objects-inl.h"
#include "gc/heap-inl.h"
#include "gc/scoped_gc_critical_section.h"
#include "gc_root-inl.h"
#include "handle.h"
#include "handle_scope.h"
#include "java_frame_root_info.h"
#include "jni/jni_env_ext.h"
#include "jni/jni_id_manager.h"
#include "jni/jni_internal.h"
#include "jvmti_weak_table-inl.h"
#include "mirror/array-inl.h"
#include "mirror/array.h"
#include "mirror/class.h"
#include "mirror/object-inl.h"
#include "mirror/object-refvisitor-inl.h"
#include "mirror/object_array-inl.h"
#include "mirror/object_array-alloc-inl.h"
#include "mirror/object_reference.h"
#include "obj_ptr-inl.h"
#include "object_callbacks.h"
#include "object_tagging.h"
#include "offsets.h"
#include "read_barrier.h"
#include "runtime.h"
#include "scoped_thread_state_change-inl.h"
#include "stack.h"
#include "thread-inl.h"
#include "thread_list.h"
#include "ti_logging.h"
#include "ti_stack.h"
#include "ti_thread.h"
#include "well_known_classes.h"
namespace openjdkjvmti {
EventHandler* HeapExtensions::gEventHandler = nullptr;
namespace {
struct IndexCache {
// The number of interface fields implemented by the class. This is a prefix to all assigned
// field indices.
size_t interface_fields;
// It would be nice to also cache the following, but it is complicated to wire up into the
// generic visit:
// The number of fields in interfaces and superclasses. This is the first index assigned to
// fields of the class.
// size_t superclass_fields;
};
using IndexCachingTable = JvmtiWeakTable<IndexCache>;
static IndexCachingTable gIndexCachingTable;
// Report the contents of a string, if a callback is set.
jint ReportString(art::ObjPtr<art::mirror::Object> obj,
jvmtiEnv* env,
ObjectTagTable* tag_table,
const jvmtiHeapCallbacks* cb,
const void* user_data) REQUIRES_SHARED(art::Locks::mutator_lock_) {
if (UNLIKELY(cb->string_primitive_value_callback != nullptr) && obj->IsString()) {
art::ObjPtr<art::mirror::String> str = obj->AsString();
int32_t string_length = str->GetLength();
JvmtiUniquePtr<uint16_t[]> data;
if (string_length > 0) {
jvmtiError alloc_error;
data = AllocJvmtiUniquePtr<uint16_t[]>(env, string_length, &alloc_error);
if (data == nullptr) {
// TODO: Not really sure what to do here. Should we abort the iteration and go all the way
// back? For now just warn.
LOG(WARNING) << "Unable to allocate buffer for string reporting! Silently dropping value."
<< " >" << str->ToModifiedUtf8() << "<";
return 0;
}
if (str->IsCompressed()) {
uint8_t* compressed_data = str->GetValueCompressed();
for (int32_t i = 0; i != string_length; ++i) {
data[i] = compressed_data[i];
}
} else {
// Can copy directly.
memcpy(data.get(), str->GetValue(), string_length * sizeof(uint16_t));
}
}
const jlong class_tag = tag_table->GetTagOrZero(obj->GetClass());
jlong string_tag = tag_table->GetTagOrZero(obj.Ptr());
const jlong saved_string_tag = string_tag;
jint result = cb->string_primitive_value_callback(class_tag,
obj->SizeOf(),
&string_tag,
data.get(),
string_length,
const_cast<void*>(user_data));
if (string_tag != saved_string_tag) {
tag_table->Set(obj.Ptr(), string_tag);
}
return result;
}
return 0;
}
// Report the contents of a primitive array, if a callback is set.
jint ReportPrimitiveArray(art::ObjPtr<art::mirror::Object> obj,
jvmtiEnv* env,
ObjectTagTable* tag_table,
const jvmtiHeapCallbacks* cb,
const void* user_data) REQUIRES_SHARED(art::Locks::mutator_lock_) {
if (UNLIKELY(cb->array_primitive_value_callback != nullptr) &&
obj->IsArrayInstance() &&
!obj->IsObjectArray()) {
art::ObjPtr<art::mirror::Array> array = obj->AsArray();
int32_t array_length = array->GetLength();
size_t component_size = array->GetClass()->GetComponentSize();
art::Primitive::Type art_prim_type = array->GetClass()->GetComponentType()->GetPrimitiveType();
jvmtiPrimitiveType prim_type =
static_cast<jvmtiPrimitiveType>(art::Primitive::Descriptor(art_prim_type)[0]);
DCHECK(prim_type == JVMTI_PRIMITIVE_TYPE_BOOLEAN ||
prim_type == JVMTI_PRIMITIVE_TYPE_BYTE ||
prim_type == JVMTI_PRIMITIVE_TYPE_CHAR ||
prim_type == JVMTI_PRIMITIVE_TYPE_SHORT ||
prim_type == JVMTI_PRIMITIVE_TYPE_INT ||
prim_type == JVMTI_PRIMITIVE_TYPE_LONG ||
prim_type == JVMTI_PRIMITIVE_TYPE_FLOAT ||
prim_type == JVMTI_PRIMITIVE_TYPE_DOUBLE);
const jlong class_tag = tag_table->GetTagOrZero(obj->GetClass());
jlong array_tag = tag_table->GetTagOrZero(obj.Ptr());
const jlong saved_array_tag = array_tag;
jint result;
if (array_length == 0) {
result = cb->array_primitive_value_callback(class_tag,
obj->SizeOf(),
&array_tag,
0,
prim_type,
nullptr,
const_cast<void*>(user_data));
} else {
jvmtiError alloc_error;
JvmtiUniquePtr<char[]> data = AllocJvmtiUniquePtr<char[]>(env,
array_length * component_size,
&alloc_error);
if (data == nullptr) {
// TODO: Not really sure what to do here. Should we abort the iteration and go all the way
// back? For now just warn.
LOG(WARNING) << "Unable to allocate buffer for array reporting! Silently dropping value.";
return 0;
}
memcpy(data.get(), array->GetRawData(component_size, 0), array_length * component_size);
result = cb->array_primitive_value_callback(class_tag,
obj->SizeOf(),
&array_tag,
array_length,
prim_type,
data.get(),
const_cast<void*>(user_data));
}
if (array_tag != saved_array_tag) {
tag_table->Set(obj.Ptr(), array_tag);
}
return result;
}
return 0;
}
template <typename UserData>
bool VisitorFalse(art::ObjPtr<art::mirror::Object> obj ATTRIBUTE_UNUSED,
art::ObjPtr<art::mirror::Class> klass ATTRIBUTE_UNUSED,
art::ArtField& field ATTRIBUTE_UNUSED,
size_t field_index ATTRIBUTE_UNUSED,
UserData* user_data ATTRIBUTE_UNUSED) {
return false;
}
template <typename UserData, bool kCallVisitorOnRecursion>
class FieldVisitor {
public:
// Report the contents of a primitive fields of the given object, if a callback is set.
template <typename StaticPrimitiveVisitor,
typename StaticReferenceVisitor,
typename InstancePrimitiveVisitor,
typename InstanceReferenceVisitor>
static bool ReportFields(art::ObjPtr<art::mirror::Object> obj,
UserData* user_data,
StaticPrimitiveVisitor& static_prim_visitor,
StaticReferenceVisitor& static_ref_visitor,
InstancePrimitiveVisitor& instance_prim_visitor,
InstanceReferenceVisitor& instance_ref_visitor)
REQUIRES_SHARED(art::Locks::mutator_lock_) {
FieldVisitor fv(user_data);
if (obj->IsClass()) {
// When visiting a class, we only visit the static fields of the given class. No field of
// superclasses is visited.
art::ObjPtr<art::mirror::Class> klass = obj->AsClass();
// Only report fields on resolved classes. We need valid field data.
if (!klass->IsResolved()) {
return false;
}
return fv.ReportFieldsImpl(nullptr,
obj->AsClass(),
obj->AsClass()->IsInterface(),
static_prim_visitor,
static_ref_visitor,
instance_prim_visitor,
instance_ref_visitor);
} else {
// See comment above. Just double-checking here, but an instance *should* mean the class was
// resolved.
DCHECK(obj->GetClass()->IsResolved() || obj->GetClass()->IsErroneousResolved());
return fv.ReportFieldsImpl(obj,
obj->GetClass(),
false,
static_prim_visitor,
static_ref_visitor,
instance_prim_visitor,
instance_ref_visitor);
}
}
private:
explicit FieldVisitor(UserData* user_data) : user_data_(user_data) {}
// Report the contents of fields of the given object. If obj is null, report the static fields,
// otherwise the instance fields.
template <typename StaticPrimitiveVisitor,
typename StaticReferenceVisitor,
typename InstancePrimitiveVisitor,
typename InstanceReferenceVisitor>
bool ReportFieldsImpl(art::ObjPtr<art::mirror::Object> obj,
art::ObjPtr<art::mirror::Class> klass,
bool skip_java_lang_object,
StaticPrimitiveVisitor& static_prim_visitor,
StaticReferenceVisitor& static_ref_visitor,
InstancePrimitiveVisitor& instance_prim_visitor,
InstanceReferenceVisitor& instance_ref_visitor)
REQUIRES_SHARED(art::Locks::mutator_lock_) {
// Compute the offset of field indices.
size_t interface_field_count = CountInterfaceFields(klass);
size_t tmp;
bool aborted = ReportFieldsRecursive(obj,
klass,
interface_field_count,
skip_java_lang_object,
static_prim_visitor,
static_ref_visitor,
instance_prim_visitor,
instance_ref_visitor,
&tmp);
return aborted;
}
// Visit primitive fields in an object (instance). Return true if the visit was aborted.
template <typename StaticPrimitiveVisitor,
typename StaticReferenceVisitor,
typename InstancePrimitiveVisitor,
typename InstanceReferenceVisitor>
bool ReportFieldsRecursive(art::ObjPtr<art::mirror::Object> obj,
art::ObjPtr<art::mirror::Class> klass,
size_t interface_fields,
bool skip_java_lang_object,
StaticPrimitiveVisitor& static_prim_visitor,
StaticReferenceVisitor& static_ref_visitor,
InstancePrimitiveVisitor& instance_prim_visitor,
InstanceReferenceVisitor& instance_ref_visitor,
size_t* field_index_out)
REQUIRES_SHARED(art::Locks::mutator_lock_) {
DCHECK(klass != nullptr);
size_t field_index;
if (klass->GetSuperClass() == nullptr) {
// j.l.Object. Start with the fields from interfaces.
field_index = interface_fields;
if (skip_java_lang_object) {
*field_index_out = field_index;
return false;
}
} else {
// Report superclass fields.
if (kCallVisitorOnRecursion) {
if (ReportFieldsRecursive(obj,
klass->GetSuperClass(),
interface_fields,
skip_java_lang_object,
static_prim_visitor,
static_ref_visitor,
instance_prim_visitor,
instance_ref_visitor,
&field_index)) {
return true;
}
} else {
// Still call, but with empty visitor. This is required for correct counting.
ReportFieldsRecursive(obj,
klass->GetSuperClass(),
interface_fields,
skip_java_lang_object,
VisitorFalse<UserData>,
VisitorFalse<UserData>,
VisitorFalse<UserData>,
VisitorFalse<UserData>,
&field_index);
}
}
// Now visit fields for the current klass.
for (auto& static_field : klass->GetSFields()) {
if (static_field.IsPrimitiveType()) {
if (static_prim_visitor(obj,
klass,
static_field,
field_index,
user_data_)) {
return true;
}
} else {
if (static_ref_visitor(obj,
klass,
static_field,
field_index,
user_data_)) {
return true;
}
}
field_index++;
}
for (auto& instance_field : klass->GetIFields()) {
if (instance_field.IsPrimitiveType()) {
if (instance_prim_visitor(obj,
klass,
instance_field,
field_index,
user_data_)) {
return true;
}
} else {
if (instance_ref_visitor(obj,
klass,
instance_field,
field_index,
user_data_)) {
return true;
}
}
field_index++;
}
*field_index_out = field_index;
return false;
}
// Implements a visit of the implemented interfaces of a given class.
template <typename T>
struct RecursiveInterfaceVisit {
static void VisitStatic(art::Thread* self, art::ObjPtr<art::mirror::Class> klass, T& visitor)
REQUIRES_SHARED(art::Locks::mutator_lock_) {
RecursiveInterfaceVisit rv;
rv.Visit(self, klass, visitor);
}
void Visit(art::Thread* self, art::ObjPtr<art::mirror::Class> klass, T& visitor)
REQUIRES_SHARED(art::Locks::mutator_lock_) {
// First visit the parent, to get the order right.
// (We do this in preparation for actual visiting of interface fields.)
if (klass->GetSuperClass() != nullptr) {
Visit(self, klass->GetSuperClass(), visitor);
}
for (uint32_t i = 0; i != klass->NumDirectInterfaces(); ++i) {
art::ObjPtr<art::mirror::Class> inf_klass = klass->GetDirectInterface(i);
DCHECK(inf_klass != nullptr);
VisitInterface(self, inf_klass, visitor);
}
}
void VisitInterface(art::Thread* self, art::ObjPtr<art::mirror::Class> inf_klass, T& visitor)
REQUIRES_SHARED(art::Locks::mutator_lock_) {
auto it = visited_interfaces.find(inf_klass.Ptr());
if (it != visited_interfaces.end()) {
return;
}
visited_interfaces.insert(inf_klass.Ptr());
// Let the visitor know about this one. Note that this order is acceptable, as the ordering
// of these fields never matters for known visitors.
visitor(inf_klass);
// Now visit the superinterfaces.
for (uint32_t i = 0; i != inf_klass->NumDirectInterfaces(); ++i) {
art::ObjPtr<art::mirror::Class> super_inf_klass = inf_klass->GetDirectInterface(i);
DCHECK(super_inf_klass != nullptr);
VisitInterface(self, super_inf_klass, visitor);
}
}
std::unordered_set<art::mirror::Class*> visited_interfaces;
};
// Counting interface fields. Note that we cannot use the interface table, as that only contains
// "non-marker" interfaces (= interfaces with methods).
static size_t CountInterfaceFields(art::ObjPtr<art::mirror::Class> klass)
REQUIRES_SHARED(art::Locks::mutator_lock_) {
// Do we have a cached value?
IndexCache tmp;
if (gIndexCachingTable.GetTag(klass.Ptr(), &tmp)) {
return tmp.interface_fields;
}
size_t count = 0;
auto visitor = [&count](art::ObjPtr<art::mirror::Class> inf_klass)
REQUIRES_SHARED(art::Locks::mutator_lock_) {
DCHECK(inf_klass->IsInterface());
DCHECK_EQ(0u, inf_klass->NumInstanceFields());
count += inf_klass->NumStaticFields();
};
RecursiveInterfaceVisit<decltype(visitor)>::VisitStatic(art::Thread::Current(), klass, visitor);
// Store this into the cache.
tmp.interface_fields = count;
gIndexCachingTable.Set(klass.Ptr(), tmp);
return count;
}
UserData* user_data_;
};
// Debug helper. Prints the structure of an object.
template <bool kStatic, bool kRef>
struct DumpVisitor {
static bool Callback(art::ObjPtr<art::mirror::Object> obj ATTRIBUTE_UNUSED,
art::ObjPtr<art::mirror::Class> klass ATTRIBUTE_UNUSED,
art::ArtField& field,
size_t field_index,
void* user_data ATTRIBUTE_UNUSED)
REQUIRES_SHARED(art::Locks::mutator_lock_) {
LOG(ERROR) << (kStatic ? "static " : "instance ")
<< (kRef ? "ref " : "primitive ")
<< field.PrettyField()
<< " @ "
<< field_index;
return false;
}
};
ATTRIBUTE_UNUSED
void DumpObjectFields(art::ObjPtr<art::mirror::Object> obj)
REQUIRES_SHARED(art::Locks::mutator_lock_) {
if (obj->IsClass()) {
FieldVisitor<void, false>:: ReportFields(obj,
nullptr,
DumpVisitor<true, false>::Callback,
DumpVisitor<true, true>::Callback,
DumpVisitor<false, false>::Callback,
DumpVisitor<false, true>::Callback);
} else {
FieldVisitor<void, true>::ReportFields(obj,
nullptr,
DumpVisitor<true, false>::Callback,
DumpVisitor<true, true>::Callback,
DumpVisitor<false, false>::Callback,
DumpVisitor<false, true>::Callback);
}
}
class ReportPrimitiveField {
public:
static bool Report(art::ObjPtr<art::mirror::Object> obj,
ObjectTagTable* tag_table,
const jvmtiHeapCallbacks* cb,
const void* user_data)
REQUIRES_SHARED(art::Locks::mutator_lock_) {
if (UNLIKELY(cb->primitive_field_callback != nullptr)) {
jlong class_tag = tag_table->GetTagOrZero(obj->GetClass());
ReportPrimitiveField rpf(tag_table, class_tag, cb, user_data);
if (obj->IsClass()) {
return FieldVisitor<ReportPrimitiveField, false>::ReportFields(
obj,
&rpf,
ReportPrimitiveFieldCallback<true>,
VisitorFalse<ReportPrimitiveField>,
VisitorFalse<ReportPrimitiveField>,
VisitorFalse<ReportPrimitiveField>);
} else {
return FieldVisitor<ReportPrimitiveField, true>::ReportFields(
obj,
&rpf,
VisitorFalse<ReportPrimitiveField>,
VisitorFalse<ReportPrimitiveField>,
ReportPrimitiveFieldCallback<false>,
VisitorFalse<ReportPrimitiveField>);
}
}
return false;
}
private:
ReportPrimitiveField(ObjectTagTable* tag_table,
jlong class_tag,
const jvmtiHeapCallbacks* cb,
const void* user_data)
: tag_table_(tag_table), class_tag_(class_tag), cb_(cb), user_data_(user_data) {}
template <bool kReportStatic>
static bool ReportPrimitiveFieldCallback(art::ObjPtr<art::mirror::Object> obj,
art::ObjPtr<art::mirror::Class> klass,
art::ArtField& field,
size_t field_index,
ReportPrimitiveField* user_data)
REQUIRES_SHARED(art::Locks::mutator_lock_) {
art::Primitive::Type art_prim_type = field.GetTypeAsPrimitiveType();
jvmtiPrimitiveType prim_type =
static_cast<jvmtiPrimitiveType>(art::Primitive::Descriptor(art_prim_type)[0]);
DCHECK(prim_type == JVMTI_PRIMITIVE_TYPE_BOOLEAN ||
prim_type == JVMTI_PRIMITIVE_TYPE_BYTE ||
prim_type == JVMTI_PRIMITIVE_TYPE_CHAR ||
prim_type == JVMTI_PRIMITIVE_TYPE_SHORT ||
prim_type == JVMTI_PRIMITIVE_TYPE_INT ||
prim_type == JVMTI_PRIMITIVE_TYPE_LONG ||
prim_type == JVMTI_PRIMITIVE_TYPE_FLOAT ||
prim_type == JVMTI_PRIMITIVE_TYPE_DOUBLE);
jvmtiHeapReferenceInfo info;
info.field.index = field_index;
jvalue value;
memset(&value, 0, sizeof(jvalue));
art::ObjPtr<art::mirror::Object> src = kReportStatic ? klass : obj;
switch (art_prim_type) {
case art::Primitive::Type::kPrimBoolean:
value.z = field.GetBoolean(src) == 0 ? JNI_FALSE : JNI_TRUE;
break;
case art::Primitive::Type::kPrimByte:
value.b = field.GetByte(src);
break;
case art::Primitive::Type::kPrimChar:
value.c = field.GetChar(src);
break;
case art::Primitive::Type::kPrimShort:
value.s = field.GetShort(src);
break;
case art::Primitive::Type::kPrimInt:
value.i = field.GetInt(src);
break;
case art::Primitive::Type::kPrimLong:
value.j = field.GetLong(src);
break;
case art::Primitive::Type::kPrimFloat:
value.f = field.GetFloat(src);
break;
case art::Primitive::Type::kPrimDouble:
value.d = field.GetDouble(src);
break;
case art::Primitive::Type::kPrimVoid:
case art::Primitive::Type::kPrimNot: {
LOG(FATAL) << "Should not reach here";
UNREACHABLE();
}
}
jlong obj_tag = user_data->tag_table_->GetTagOrZero(src.Ptr());
const jlong saved_obj_tag = obj_tag;
jint ret = user_data->cb_->primitive_field_callback(kReportStatic
? JVMTI_HEAP_REFERENCE_STATIC_FIELD
: JVMTI_HEAP_REFERENCE_FIELD,
&info,
user_data->class_tag_,
&obj_tag,
value,
prim_type,
const_cast<void*>(user_data->user_data_));
if (saved_obj_tag != obj_tag) {
user_data->tag_table_->Set(src.Ptr(), obj_tag);
}
if ((ret & JVMTI_VISIT_ABORT) != 0) {
return true;
}
return false;
}
ObjectTagTable* tag_table_;
jlong class_tag_;
const jvmtiHeapCallbacks* cb_;
const void* user_data_;
};
struct HeapFilter {
explicit HeapFilter(jint heap_filter)
: filter_out_tagged((heap_filter & JVMTI_HEAP_FILTER_TAGGED) != 0),
filter_out_untagged((heap_filter & JVMTI_HEAP_FILTER_UNTAGGED) != 0),
filter_out_class_tagged((heap_filter & JVMTI_HEAP_FILTER_CLASS_TAGGED) != 0),
filter_out_class_untagged((heap_filter & JVMTI_HEAP_FILTER_CLASS_UNTAGGED) != 0),
any_filter(filter_out_tagged ||
filter_out_untagged ||
filter_out_class_tagged ||
filter_out_class_untagged) {
}
bool ShouldReportByHeapFilter(jlong tag, jlong class_tag) const {
if (!any_filter) {
return true;
}
if ((tag == 0 && filter_out_untagged) || (tag != 0 && filter_out_tagged)) {
return false;
}
if ((class_tag == 0 && filter_out_class_untagged) ||
(class_tag != 0 && filter_out_class_tagged)) {
return false;
}
return true;
}
const bool filter_out_tagged;
const bool filter_out_untagged;
const bool filter_out_class_tagged;
const bool filter_out_class_untagged;
const bool any_filter;
};
} // namespace
void HeapUtil::Register() {
art::Runtime::Current()->AddSystemWeakHolder(&gIndexCachingTable);
}
void HeapUtil::Unregister() {
art::Runtime::Current()->RemoveSystemWeakHolder(&gIndexCachingTable);
}
jvmtiError HeapUtil::IterateOverInstancesOfClass(jvmtiEnv* env,
jclass klass,
jvmtiHeapObjectFilter filter,
jvmtiHeapObjectCallback cb,
const void* user_data) {
if (cb == nullptr || klass == nullptr) {
return ERR(NULL_POINTER);
}
art::Thread* self = art::Thread::Current();
art::ScopedObjectAccess soa(self); // Now we know we have the shared lock.
art::StackHandleScope<1> hs(self);
art::ObjPtr<art::mirror::Object> klass_ptr(soa.Decode<art::mirror::Class>(klass));
if (!klass_ptr->IsClass()) {
return ERR(INVALID_CLASS);
}
art::Handle<art::mirror::Class> filter_klass(hs.NewHandle(klass_ptr->AsClass()));
ObjectTagTable* tag_table = ArtJvmTiEnv::AsArtJvmTiEnv(env)->object_tag_table.get();
bool stop_reports = false;
auto visitor = [&](art::mirror::Object* obj) REQUIRES_SHARED(art::Locks::mutator_lock_) {
// Early return, as we can't really stop visiting.
if (stop_reports) {
return;
}
art::ScopedAssertNoThreadSuspension no_suspension("IterateOverInstancesOfClass");
art::ObjPtr<art::mirror::Class> klass = obj->GetClass();
if (filter_klass != nullptr && !filter_klass->IsAssignableFrom(klass)) {
return;
}
jlong tag = 0;
tag_table->GetTag(obj, &tag);
if ((filter != JVMTI_HEAP_OBJECT_EITHER) &&
((tag == 0 && filter == JVMTI_HEAP_OBJECT_TAGGED) ||
(tag != 0 && filter == JVMTI_HEAP_OBJECT_UNTAGGED))) {
return;
}
jlong class_tag = 0;
tag_table->GetTag(klass.Ptr(), &class_tag);
jlong saved_tag = tag;
jint ret = cb(class_tag, obj->SizeOf(), &tag, const_cast<void*>(user_data));
stop_reports = (ret == JVMTI_ITERATION_ABORT);
if (tag != saved_tag) {
tag_table->Set(obj, tag);
}
};
art::Runtime::Current()->GetHeap()->VisitObjects(visitor);
return OK;
}
template <typename T>
static jvmtiError DoIterateThroughHeap(T fn,
jvmtiEnv* env,
ObjectTagTable* tag_table,
jint heap_filter_int,
jclass klass,
const jvmtiHeapCallbacks* callbacks,
const void* user_data) {
if (callbacks == nullptr) {
return ERR(NULL_POINTER);
}
art::Thread* self = art::Thread::Current();
art::ScopedObjectAccess soa(self); // Now we know we have the shared lock.
bool stop_reports = false;
const HeapFilter heap_filter(heap_filter_int);
art::StackHandleScope<1> hs(self);
art::Handle<art::mirror::Class> filter_klass(hs.NewHandle(soa.Decode<art::mirror::Class>(klass)));
auto visitor = [&](art::mirror::Object* obj) REQUIRES_SHARED(art::Locks::mutator_lock_) {
// Early return, as we can't really stop visiting.
if (stop_reports) {
return;
}
art::ScopedAssertNoThreadSuspension no_suspension("IterateThroughHeapCallback");
jlong tag = 0;
tag_table->GetTag(obj, &tag);
jlong class_tag = 0;
art::ObjPtr<art::mirror::Class> klass = obj->GetClass();
tag_table->GetTag(klass.Ptr(), &class_tag);
// For simplicity, even if we find a tag = 0, assume 0 = not tagged.
if (!heap_filter.ShouldReportByHeapFilter(tag, class_tag)) {
return;
}
if (filter_klass != nullptr) {
if (filter_klass.Get() != klass) {
return;
}
}
jlong size = obj->SizeOf();
jint length = -1;
if (obj->IsArrayInstance()) {
length = obj->AsArray()->GetLength();
}
jlong saved_tag = tag;
jint ret = fn(obj, callbacks, class_tag, size, &tag, length, const_cast<void*>(user_data));
if (tag != saved_tag) {
tag_table->Set(obj, tag);
}
stop_reports = (ret & JVMTI_VISIT_ABORT) != 0;
if (!stop_reports) {
jint string_ret = ReportString(obj, env, tag_table, callbacks, user_data);
stop_reports = (string_ret & JVMTI_VISIT_ABORT) != 0;
}
if (!stop_reports) {
jint array_ret = ReportPrimitiveArray(obj, env, tag_table, callbacks, user_data);
stop_reports = (array_ret & JVMTI_VISIT_ABORT) != 0;
}
if (!stop_reports) {
stop_reports = ReportPrimitiveField::Report(obj, tag_table, callbacks, user_data);
}
};
art::Runtime::Current()->GetHeap()->VisitObjects(visitor);
return ERR(NONE);
}
jvmtiError HeapUtil::IterateThroughHeap(jvmtiEnv* env,
jint heap_filter,
jclass klass,
const jvmtiHeapCallbacks* callbacks,
const void* user_data) {
auto JvmtiIterateHeap = [](art::mirror::Object* obj ATTRIBUTE_UNUSED,
const jvmtiHeapCallbacks* cb_callbacks,
jlong class_tag,
jlong size,
jlong* tag,
jint length,
void* cb_user_data)
REQUIRES_SHARED(art::Locks::mutator_lock_) {
return cb_callbacks->heap_iteration_callback(class_tag,
size,
tag,
length,
cb_user_data);
};
return DoIterateThroughHeap(JvmtiIterateHeap,
env,
ArtJvmTiEnv::AsArtJvmTiEnv(env)->object_tag_table.get(),
heap_filter,
klass,
callbacks,
user_data);
}
class FollowReferencesHelper final {
public:
FollowReferencesHelper(HeapUtil* h,
jvmtiEnv* jvmti_env,
art::ObjPtr<art::mirror::Object> initial_object,
const jvmtiHeapCallbacks* callbacks,
art::ObjPtr<art::mirror::Class> class_filter,
jint heap_filter,
const void* user_data)
: env(jvmti_env),
tag_table_(h->GetTags()),
initial_object_(initial_object),
callbacks_(callbacks),
class_filter_(class_filter),
heap_filter_(heap_filter),
user_data_(user_data),
start_(0),
stop_reports_(false) {
}
void Init()
REQUIRES_SHARED(art::Locks::mutator_lock_)
REQUIRES(!*tag_table_->GetAllowDisallowLock()) {
if (initial_object_.IsNull()) {
CollectAndReportRootsVisitor carrv(this, tag_table_, &worklist_, &visited_);
// We need precise info (e.g., vregs).
constexpr art::VisitRootFlags kRootFlags = static_cast<art::VisitRootFlags>(
art::VisitRootFlags::kVisitRootFlagAllRoots | art::VisitRootFlags::kVisitRootFlagPrecise);
art::Runtime::Current()->VisitRoots(&carrv, kRootFlags);
art::Runtime::Current()->VisitImageRoots(&carrv);
stop_reports_ = carrv.IsStopReports();
if (stop_reports_) {
worklist_.clear();
}
} else {
visited_.insert(initial_object_.Ptr());
worklist_.push_back(initial_object_.Ptr());
}
}
void Work()
REQUIRES_SHARED(art::Locks::mutator_lock_)
REQUIRES(!*tag_table_->GetAllowDisallowLock()) {
// Currently implemented as a BFS. To lower overhead, we don't erase elements immediately
// from the head of the work list, instead postponing until there's a gap that's "large."
//
// Alternatively, we can implement a DFS and use the work list as a stack.
while (start_ < worklist_.size()) {
art::mirror::Object* cur_obj = worklist_[start_];
start_++;
if (start_ >= kMaxStart) {
worklist_.erase(worklist_.begin(), worklist_.begin() + start_);
start_ = 0;
}
VisitObject(cur_obj);
if (stop_reports_) {
break;
}
}
}
private:
class CollectAndReportRootsVisitor final : public art::RootVisitor {
public:
CollectAndReportRootsVisitor(FollowReferencesHelper* helper,
ObjectTagTable* tag_table,
std::vector<art::mirror::Object*>* worklist,
std::unordered_set<art::mirror::Object*>* visited)
: helper_(helper),
tag_table_(tag_table),
worklist_(worklist),
visited_(visited),
stop_reports_(false) {}
void VisitRoots(art::mirror::Object*** roots, size_t count, const art::RootInfo& info)
override
REQUIRES_SHARED(art::Locks::mutator_lock_)
REQUIRES(!*helper_->tag_table_->GetAllowDisallowLock()) {
for (size_t i = 0; i != count; ++i) {
AddRoot(*roots[i], info);
}
}
void VisitRoots(art::mirror::CompressedReference<art::mirror::Object>** roots,
size_t count,
const art::RootInfo& info)
override REQUIRES_SHARED(art::Locks::mutator_lock_)
REQUIRES(!*helper_->tag_table_->GetAllowDisallowLock()) {
for (size_t i = 0; i != count; ++i) {
AddRoot(roots[i]->AsMirrorPtr(), info);
}
}
bool IsStopReports() {
return stop_reports_;
}
private:
void AddRoot(art::mirror::Object* root_obj, const art::RootInfo& info)
REQUIRES_SHARED(art::Locks::mutator_lock_)
REQUIRES(!*tag_table_->GetAllowDisallowLock()) {
if (stop_reports_) {
return;
}
bool add_to_worklist = ReportRoot(root_obj, info);
// We use visited_ to mark roots already so we do not need another set.
if (visited_->find(root_obj) == visited_->end()) {
if (add_to_worklist) {
visited_->insert(root_obj);
worklist_->push_back(root_obj);
}
}
}
// Remove NO_THREAD_SAFETY_ANALYSIS once ASSERT_CAPABILITY works correctly.
art::Thread* FindThread(const art::RootInfo& info) NO_THREAD_SAFETY_ANALYSIS {
art::Locks::thread_list_lock_->AssertExclusiveHeld(art::Thread::Current());
return art::Runtime::Current()->GetThreadList()->FindThreadByThreadId(info.GetThreadId());
}
jvmtiHeapReferenceKind GetReferenceKind(const art::RootInfo& info,
jvmtiHeapReferenceInfo* ref_info)
REQUIRES_SHARED(art::Locks::mutator_lock_) {
// TODO: Fill in ref_info.
memset(ref_info, 0, sizeof(jvmtiHeapReferenceInfo));
switch (info.GetType()) {
case art::RootType::kRootJNIGlobal:
return JVMTI_HEAP_REFERENCE_JNI_GLOBAL;
case art::RootType::kRootJNILocal:
{
uint32_t thread_id = info.GetThreadId();
ref_info->jni_local.thread_id = thread_id;
art::Thread* thread = FindThread(info);
if (thread != nullptr) {
art::mirror::Object* thread_obj;
if (thread->IsStillStarting()) {
thread_obj = nullptr;
} else {
thread_obj = thread->GetPeerFromOtherThread();
}
if (thread_obj != nullptr) {