374 lines
13 KiB
C++
374 lines
13 KiB
C++
/*
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* Copyright (C) 2009 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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#include "indirect_reference_table-inl.h"
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#include "base/bit_utils.h"
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#include "base/globals.h"
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#include "base/mutator_locked_dumpable.h"
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#include "base/systrace.h"
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#include "base/utils.h"
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#include "indirect_reference_table.h"
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#include "jni/java_vm_ext.h"
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#include "jni/jni_internal.h"
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#include "mirror/object-inl.h"
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#include "nth_caller_visitor.h"
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#include "object_callbacks.h"
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#include "reference_table.h"
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#include "runtime-inl.h"
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#include "scoped_thread_state_change-inl.h"
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#include "thread.h"
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#include <cstdlib>
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namespace art {
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static constexpr bool kDebugIRT = false;
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// Maximum table size we allow.
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static constexpr size_t kMaxTableSizeInBytes = 128 * MB;
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const char* GetIndirectRefKindString(IndirectRefKind kind) {
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switch (kind) {
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case kJniTransition:
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return "JniTransition";
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case kLocal:
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return "Local";
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case kGlobal:
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return "Global";
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case kWeakGlobal:
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return "WeakGlobal";
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}
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return "IndirectRefKind Error";
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}
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void IndirectReferenceTable::AbortIfNoCheckJNI(const std::string& msg) {
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// If -Xcheck:jni is on, it'll give a more detailed error before aborting.
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JavaVMExt* vm = Runtime::Current()->GetJavaVM();
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if (!vm->IsCheckJniEnabled()) {
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// Otherwise, we want to abort rather than hand back a bad reference.
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LOG(FATAL) << msg;
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} else {
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LOG(ERROR) << msg;
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}
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}
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// Mmap an "indirect ref table region. Table_bytes is a multiple of a page size.
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static inline MemMap NewIRTMap(size_t table_bytes, std::string* error_msg) {
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MemMap result = MemMap::MapAnonymous("indirect ref table",
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table_bytes,
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PROT_READ | PROT_WRITE,
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/*low_4gb=*/ false,
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error_msg);
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if (!result.IsValid() && error_msg->empty()) {
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*error_msg = "Unable to map memory for indirect ref table";
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}
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return result;
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}
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IndirectReferenceTable::IndirectReferenceTable(IndirectRefKind kind)
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: table_mem_map_(),
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table_(nullptr),
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kind_(kind),
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top_index_(0u),
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max_entries_(0u),
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current_num_holes_(0) {
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CHECK_NE(kind, kJniTransition);
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CHECK_NE(kind, kLocal);
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}
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bool IndirectReferenceTable::Initialize(size_t max_count, std::string* error_msg) {
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CHECK(error_msg != nullptr);
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// Overflow and maximum check.
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CHECK_LE(max_count, kMaxTableSizeInBytes / sizeof(IrtEntry));
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const size_t table_bytes = RoundUp(max_count * sizeof(IrtEntry), kPageSize);
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table_mem_map_ = NewIRTMap(table_bytes, error_msg);
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if (!table_mem_map_.IsValid()) {
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DCHECK(!error_msg->empty());
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return false;
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}
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table_ = reinterpret_cast<IrtEntry*>(table_mem_map_.Begin());
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// Take into account the actual length.
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max_entries_ = table_bytes / sizeof(IrtEntry);
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return true;
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}
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IndirectReferenceTable::~IndirectReferenceTable() {
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}
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void IndirectReferenceTable::ConstexprChecks() {
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// Use this for some assertions. They can't be put into the header as C++ wants the class
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// to be complete.
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// Check kind.
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static_assert((EncodeIndirectRefKind(kLocal) & (~kKindMask)) == 0, "Kind encoding error");
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static_assert((EncodeIndirectRefKind(kGlobal) & (~kKindMask)) == 0, "Kind encoding error");
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static_assert((EncodeIndirectRefKind(kWeakGlobal) & (~kKindMask)) == 0, "Kind encoding error");
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static_assert(DecodeIndirectRefKind(EncodeIndirectRefKind(kLocal)) == kLocal,
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"Kind encoding error");
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static_assert(DecodeIndirectRefKind(EncodeIndirectRefKind(kGlobal)) == kGlobal,
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"Kind encoding error");
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static_assert(DecodeIndirectRefKind(EncodeIndirectRefKind(kWeakGlobal)) == kWeakGlobal,
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"Kind encoding error");
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// Check serial.
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static_assert(DecodeSerial(EncodeSerial(0u)) == 0u, "Serial encoding error");
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static_assert(DecodeSerial(EncodeSerial(1u)) == 1u, "Serial encoding error");
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static_assert(DecodeSerial(EncodeSerial(2u)) == 2u, "Serial encoding error");
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static_assert(DecodeSerial(EncodeSerial(3u)) == 3u, "Serial encoding error");
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// Table index.
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static_assert(DecodeIndex(EncodeIndex(0u)) == 0u, "Index encoding error");
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static_assert(DecodeIndex(EncodeIndex(1u)) == 1u, "Index encoding error");
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static_assert(DecodeIndex(EncodeIndex(2u)) == 2u, "Index encoding error");
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static_assert(DecodeIndex(EncodeIndex(3u)) == 3u, "Index encoding error");
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// Distinguishing between local and (weak) global references.
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static_assert((GetGlobalOrWeakGlobalMask() & EncodeIndirectRefKind(kJniTransition)) == 0u);
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static_assert((GetGlobalOrWeakGlobalMask() & EncodeIndirectRefKind(kLocal)) == 0u);
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static_assert((GetGlobalOrWeakGlobalMask() & EncodeIndirectRefKind(kGlobal)) != 0u);
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static_assert((GetGlobalOrWeakGlobalMask() & EncodeIndirectRefKind(kWeakGlobal)) != 0u);
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}
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// Holes:
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//
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// To keep the IRT compact, we want to fill "holes" created by non-stack-discipline Add & Remove
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// operation sequences. For simplicity and lower memory overhead, we do not use a free list or
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// similar. Instead, we scan for holes, with the expectation that we will find holes fast as they
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// are usually near the end of the table (see the header, TODO: verify this assumption). To avoid
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// scans when there are no holes, the number of known holes should be tracked.
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static size_t CountNullEntries(const IrtEntry* table, size_t to) {
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size_t count = 0;
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for (size_t index = 0u; index != to; ++index) {
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if (table[index].GetReference()->IsNull()) {
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count++;
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}
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}
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return count;
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}
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ALWAYS_INLINE
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static inline void CheckHoleCount(IrtEntry* table,
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size_t exp_num_holes,
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size_t top_index) {
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if (kIsDebugBuild) {
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size_t count = CountNullEntries(table, top_index);
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CHECK_EQ(exp_num_holes, count) << " topIndex=" << top_index;
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}
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}
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IndirectRef IndirectReferenceTable::Add(ObjPtr<mirror::Object> obj, std::string* error_msg) {
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if (kDebugIRT) {
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LOG(INFO) << "+++ Add: top_index=" << top_index_
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<< " holes=" << current_num_holes_;
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}
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CHECK(obj != nullptr);
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VerifyObject(obj);
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DCHECK(table_ != nullptr);
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if (top_index_ == max_entries_) {
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// TODO: Fill holes before reporting error.
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std::ostringstream oss;
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oss << "JNI ERROR (app bug): " << kind_ << " table overflow "
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<< "(max=" << max_entries_ << ")"
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<< MutatorLockedDumpable<IndirectReferenceTable>(*this);
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*error_msg = oss.str();
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return nullptr;
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}
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CheckHoleCount(table_, current_num_holes_, top_index_);
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// We know there's enough room in the table. Now we just need to find
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// the right spot. If there's a hole, find it and fill it; otherwise,
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// add to the end of the list.
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IndirectRef result;
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size_t index;
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if (current_num_holes_ > 0) {
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DCHECK_GT(top_index_, 1U);
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// Find the first hole; likely to be near the end of the list.
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IrtEntry* p_scan = &table_[top_index_ - 1];
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DCHECK(!p_scan->GetReference()->IsNull());
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--p_scan;
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while (!p_scan->GetReference()->IsNull()) {
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DCHECK_GT(p_scan, table_);
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--p_scan;
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}
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index = p_scan - table_;
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current_num_holes_--;
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} else {
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// Add to the end.
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index = top_index_;
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++top_index_;
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}
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table_[index].Add(obj);
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result = ToIndirectRef(index);
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if (kDebugIRT) {
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LOG(INFO) << "+++ added at " << ExtractIndex(result) << " top=" << top_index_
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<< " holes=" << current_num_holes_;
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}
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DCHECK(result != nullptr);
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return result;
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}
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// Removes an object. We extract the table offset bits from "iref"
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// and zap the corresponding entry, leaving a hole if it's not at the top.
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// Returns "false" if nothing was removed.
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bool IndirectReferenceTable::Remove(IndirectRef iref) {
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if (kDebugIRT) {
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LOG(INFO) << "+++ Remove: top_index=" << top_index_
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<< " holes=" << current_num_holes_;
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}
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// TODO: We should eagerly check the ref kind against the `kind_` instead of postponing until
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// `CheckEntry()` below. Passing the wrong kind shall currently result in misleading warnings.
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const uint32_t top_index = top_index_;
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DCHECK(table_ != nullptr);
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const uint32_t idx = ExtractIndex(iref);
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if (idx >= top_index) {
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// Bad --- stale reference?
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LOG(WARNING) << "Attempt to remove invalid index " << idx
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<< " (top=" << top_index << ")";
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return false;
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}
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CheckHoleCount(table_, current_num_holes_, top_index_);
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if (idx == top_index - 1) {
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// Top-most entry. Scan up and consume holes.
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if (!CheckEntry("remove", iref, idx)) {
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return false;
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}
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*table_[idx].GetReference() = GcRoot<mirror::Object>(nullptr);
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if (current_num_holes_ != 0) {
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uint32_t collapse_top_index = top_index;
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while (--collapse_top_index > 0u && current_num_holes_ != 0) {
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if (kDebugIRT) {
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ScopedObjectAccess soa(Thread::Current());
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LOG(INFO) << "+++ checking for hole at " << collapse_top_index - 1 << " val="
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<< table_[collapse_top_index - 1].GetReference()->Read<kWithoutReadBarrier>();
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}
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if (!table_[collapse_top_index - 1].GetReference()->IsNull()) {
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break;
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}
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if (kDebugIRT) {
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LOG(INFO) << "+++ ate hole at " << (collapse_top_index - 1);
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}
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current_num_holes_--;
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}
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top_index_ = collapse_top_index;
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CheckHoleCount(table_, current_num_holes_, top_index_);
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} else {
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top_index_ = top_index - 1;
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if (kDebugIRT) {
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LOG(INFO) << "+++ ate last entry " << top_index - 1;
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}
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}
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} else {
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// Not the top-most entry. This creates a hole. We null out the entry to prevent somebody
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// from deleting it twice and screwing up the hole count.
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if (table_[idx].GetReference()->IsNull()) {
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LOG(INFO) << "--- WEIRD: removing null entry " << idx;
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return false;
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}
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if (!CheckEntry("remove", iref, idx)) {
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return false;
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}
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*table_[idx].GetReference() = GcRoot<mirror::Object>(nullptr);
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current_num_holes_++;
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CheckHoleCount(table_, current_num_holes_, top_index_);
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if (kDebugIRT) {
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LOG(INFO) << "+++ left hole at " << idx << ", holes=" << current_num_holes_;
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}
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}
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return true;
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}
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void IndirectReferenceTable::Trim() {
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ScopedTrace trace(__PRETTY_FUNCTION__);
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DCHECK(table_mem_map_.IsValid());
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const size_t top_index = Capacity();
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uint8_t* release_start = AlignUp(reinterpret_cast<uint8_t*>(&table_[top_index]), kPageSize);
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uint8_t* release_end = static_cast<uint8_t*>(table_mem_map_.BaseEnd());
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DCHECK_GE(reinterpret_cast<uintptr_t>(release_end), reinterpret_cast<uintptr_t>(release_start));
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DCHECK_ALIGNED(release_end, kPageSize);
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DCHECK_ALIGNED(release_end - release_start, kPageSize);
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if (release_start != release_end) {
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madvise(release_start, release_end - release_start, MADV_DONTNEED);
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}
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}
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void IndirectReferenceTable::VisitRoots(RootVisitor* visitor, const RootInfo& root_info) {
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BufferedRootVisitor<kDefaultBufferedRootCount> root_visitor(visitor, root_info);
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for (size_t i = 0, capacity = Capacity(); i != capacity; ++i) {
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GcRoot<mirror::Object>* ref = table_[i].GetReference();
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if (!ref->IsNull()) {
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root_visitor.VisitRoot(*ref);
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DCHECK(!ref->IsNull());
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}
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}
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}
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void IndirectReferenceTable::SweepJniWeakGlobals(IsMarkedVisitor* visitor) {
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CHECK_EQ(kind_, kWeakGlobal);
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MutexLock mu(Thread::Current(), *Locks::jni_weak_globals_lock_);
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Runtime* const runtime = Runtime::Current();
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for (size_t i = 0, capacity = Capacity(); i != capacity; ++i) {
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GcRoot<mirror::Object>* entry = table_[i].GetReference();
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// Need to skip null here to distinguish between null entries and cleared weak ref entries.
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if (!entry->IsNull()) {
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mirror::Object* obj = entry->Read<kWithoutReadBarrier>();
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mirror::Object* new_obj = visitor->IsMarked(obj);
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if (new_obj == nullptr) {
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new_obj = runtime->GetClearedJniWeakGlobal();
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}
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*entry = GcRoot<mirror::Object>(new_obj);
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}
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}
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}
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void IndirectReferenceTable::Dump(std::ostream& os) const {
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os << kind_ << " table dump:\n";
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ReferenceTable::Table entries;
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for (size_t i = 0; i < Capacity(); ++i) {
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ObjPtr<mirror::Object> obj = table_[i].GetReference()->Read<kWithoutReadBarrier>();
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if (obj != nullptr) {
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obj = table_[i].GetReference()->Read();
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entries.push_back(GcRoot<mirror::Object>(obj));
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}
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}
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ReferenceTable::Dump(os, entries);
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}
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size_t IndirectReferenceTable::FreeCapacity() const {
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return max_entries_ - top_index_;
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}
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} // namespace art
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