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2054 lines (1834 loc) · 79.8 KB
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// Copyright (c) 2011-present, Facebook, Inc. All rights reserved.
// This source code is licensed under both the GPLv2 (found in the
// COPYING file in the root directory) and Apache 2.0 License
// (found in the LICENSE.Apache file in the root directory).
//
// Copyright (c) 2011 The LevelDB Authors. All rights reserved.
// Use of this source code is governed by a BSD-style license that can be
// found in the LICENSE file. See the AUTHORS file for names of contributors.
#include "db/compaction/compaction_job.h"
#include <algorithm>
#include <cinttypes>
#include <memory>
#include <optional>
#include <set>
#include <utility>
#include <vector>
#include "db/blob/blob_counting_iterator.h"
#include "db/blob/blob_file_addition.h"
#include "db/blob/blob_file_builder.h"
#include "db/builder.h"
#include "db/compaction/clipping_iterator.h"
#include "db/compaction/compaction_state.h"
#include "db/db_impl/db_impl.h"
#include "db/dbformat.h"
#include "db/error_handler.h"
#include "db/event_helpers.h"
#include "db/history_trimming_iterator.h"
#include "db/log_writer.h"
#include "db/merge_helper.h"
#include "db/range_del_aggregator.h"
#include "db/version_edit.h"
#include "db/version_set.h"
#include "file/filename.h"
#include "file/read_write_util.h"
#include "file/sst_file_manager_impl.h"
#include "file/writable_file_writer.h"
#include "logging/log_buffer.h"
#include "logging/logging.h"
#include "monitoring/iostats_context_imp.h"
#include "monitoring/thread_status_util.h"
#include "options/configurable_helper.h"
#include "options/options_helper.h"
#include "port/port.h"
#include "rocksdb/db.h"
#include "rocksdb/env.h"
#include "rocksdb/options.h"
#include "rocksdb/statistics.h"
#include "rocksdb/status.h"
#include "rocksdb/table.h"
#include "rocksdb/utilities/options_type.h"
#include "table/merging_iterator.h"
#include "table/table_builder.h"
#include "table/unique_id_impl.h"
#include "test_util/sync_point.h"
#include "util/stop_watch.h"
namespace ROCKSDB_NAMESPACE {
const char* GetCompactionReasonString(CompactionReason compaction_reason) {
switch (compaction_reason) {
case CompactionReason::kUnknown:
return "Unknown";
case CompactionReason::kLevelL0FilesNum:
return "LevelL0FilesNum";
case CompactionReason::kLevelMaxLevelSize:
return "LevelMaxLevelSize";
case CompactionReason::kUniversalSizeAmplification:
return "UniversalSizeAmplification";
case CompactionReason::kUniversalSizeRatio:
return "UniversalSizeRatio";
case CompactionReason::kUniversalSortedRunNum:
return "UniversalSortedRunNum";
case CompactionReason::kFIFOMaxSize:
return "FIFOMaxSize";
case CompactionReason::kFIFOReduceNumFiles:
return "FIFOReduceNumFiles";
case CompactionReason::kFIFOTtl:
return "FIFOTtl";
case CompactionReason::kManualCompaction:
return "ManualCompaction";
case CompactionReason::kFilesMarkedForCompaction:
return "FilesMarkedForCompaction";
case CompactionReason::kBottommostFiles:
return "BottommostFiles";
case CompactionReason::kTtl:
return "Ttl";
case CompactionReason::kFlush:
return "Flush";
case CompactionReason::kExternalSstIngestion:
return "ExternalSstIngestion";
case CompactionReason::kPeriodicCompaction:
return "PeriodicCompaction";
case CompactionReason::kChangeTemperature:
return "ChangeTemperature";
case CompactionReason::kForcedBlobGC:
return "ForcedBlobGC";
case CompactionReason::kRoundRobinTtl:
return "RoundRobinTtl";
case CompactionReason::kRefitLevel:
return "RefitLevel";
case CompactionReason::kNumOfReasons:
// fall through
default:
assert(false);
return "Invalid";
}
}
const char* GetCompactionPenultimateOutputRangeTypeString(
Compaction::PenultimateOutputRangeType range_type) {
switch (range_type) {
case Compaction::PenultimateOutputRangeType::kNotSupported:
return "NotSupported";
case Compaction::PenultimateOutputRangeType::kFullRange:
return "FullRange";
case Compaction::PenultimateOutputRangeType::kNonLastRange:
return "NonLastRange";
case Compaction::PenultimateOutputRangeType::kDisabled:
return "Disabled";
default:
assert(false);
return "Invalid";
}
}
CompactionJob::CompactionJob(
int job_id, Compaction* compaction, const ImmutableDBOptions& db_options,
const MutableDBOptions& mutable_db_options, const FileOptions& file_options,
VersionSet* versions, const std::atomic<bool>* shutting_down,
LogBuffer* log_buffer, FSDirectory* db_directory,
FSDirectory* output_directory, FSDirectory* blob_output_directory,
Statistics* stats, InstrumentedMutex* db_mutex,
ErrorHandler* db_error_handler,
std::vector<SequenceNumber> existing_snapshots,
SequenceNumber earliest_write_conflict_snapshot,
const SnapshotChecker* snapshot_checker, JobContext* job_context,
std::shared_ptr<Cache> table_cache, EventLogger* event_logger,
bool paranoid_file_checks, bool measure_io_stats, const std::string& dbname,
CompactionJobStats* compaction_job_stats, Env::Priority thread_pri,
const std::shared_ptr<IOTracer>& io_tracer,
const std::atomic<bool>& manual_compaction_canceled,
const std::string& db_id, const std::string& db_session_id,
std::string full_history_ts_low, std::string trim_ts,
BlobFileCompletionCallback* blob_callback, int* bg_compaction_scheduled,
int* bg_bottom_compaction_scheduled)
: compact_(new CompactionState(compaction)),
compaction_stats_(compaction->compaction_reason(), 1),
db_options_(db_options),
mutable_db_options_copy_(mutable_db_options),
log_buffer_(log_buffer),
output_directory_(output_directory),
stats_(stats),
bottommost_level_(false),
write_hint_(Env::WLTH_NOT_SET),
compaction_job_stats_(compaction_job_stats),
job_id_(job_id),
dbname_(dbname),
db_id_(db_id),
db_session_id_(db_session_id),
file_options_(file_options),
env_(db_options.env),
io_tracer_(io_tracer),
fs_(db_options.fs, io_tracer),
file_options_for_read_(
fs_->OptimizeForCompactionTableRead(file_options, db_options_)),
versions_(versions),
shutting_down_(shutting_down),
manual_compaction_canceled_(manual_compaction_canceled),
db_directory_(db_directory),
blob_output_directory_(blob_output_directory),
db_mutex_(db_mutex),
db_error_handler_(db_error_handler),
existing_snapshots_(std::move(existing_snapshots)),
earliest_write_conflict_snapshot_(earliest_write_conflict_snapshot),
snapshot_checker_(snapshot_checker),
job_context_(job_context),
table_cache_(std::move(table_cache)),
event_logger_(event_logger),
paranoid_file_checks_(paranoid_file_checks),
measure_io_stats_(measure_io_stats),
thread_pri_(thread_pri),
full_history_ts_low_(std::move(full_history_ts_low)),
trim_ts_(std::move(trim_ts)),
blob_callback_(blob_callback),
extra_num_subcompaction_threads_reserved_(0),
bg_compaction_scheduled_(bg_compaction_scheduled),
bg_bottom_compaction_scheduled_(bg_bottom_compaction_scheduled) {
assert(compaction_job_stats_ != nullptr);
assert(log_buffer_ != nullptr);
const auto* cfd = compact_->compaction->column_family_data();
ThreadStatusUtil::SetEnableTracking(db_options_.enable_thread_tracking);
ThreadStatusUtil::SetColumnFamily(cfd);
ThreadStatusUtil::SetThreadOperation(ThreadStatus::OP_COMPACTION);
ReportStartedCompaction(compaction);
}
CompactionJob::~CompactionJob() {
assert(compact_ == nullptr);
ThreadStatusUtil::ResetThreadStatus();
}
void CompactionJob::ReportStartedCompaction(Compaction* compaction) {
ThreadStatusUtil::SetThreadOperationProperty(ThreadStatus::COMPACTION_JOB_ID,
job_id_);
ThreadStatusUtil::SetThreadOperationProperty(
ThreadStatus::COMPACTION_INPUT_OUTPUT_LEVEL,
(static_cast<uint64_t>(compact_->compaction->start_level()) << 32) +
compact_->compaction->output_level());
// In the current design, a CompactionJob is always created
// for non-trivial compaction.
assert(compaction->IsTrivialMove() == false ||
compaction->is_manual_compaction() == true);
ThreadStatusUtil::SetThreadOperationProperty(
ThreadStatus::COMPACTION_PROP_FLAGS,
compaction->is_manual_compaction() +
(compaction->deletion_compaction() << 1));
ThreadStatusUtil::SetThreadOperationProperty(
ThreadStatus::COMPACTION_TOTAL_INPUT_BYTES,
compaction->CalculateTotalInputSize());
IOSTATS_RESET(bytes_written);
IOSTATS_RESET(bytes_read);
ThreadStatusUtil::SetThreadOperationProperty(
ThreadStatus::COMPACTION_BYTES_WRITTEN, 0);
ThreadStatusUtil::SetThreadOperationProperty(
ThreadStatus::COMPACTION_BYTES_READ, 0);
// Set the thread operation after operation properties
// to ensure GetThreadList() can always show them all together.
ThreadStatusUtil::SetThreadOperation(ThreadStatus::OP_COMPACTION);
compaction_job_stats_->is_manual_compaction =
compaction->is_manual_compaction();
compaction_job_stats_->is_full_compaction = compaction->is_full_compaction();
}
void CompactionJob::Prepare() {
AutoThreadOperationStageUpdater stage_updater(
ThreadStatus::STAGE_COMPACTION_PREPARE);
// Generate file_levels_ for compaction before making Iterator
auto* c = compact_->compaction;
ColumnFamilyData* cfd = c->column_family_data();
assert(cfd != nullptr);
assert(cfd->current()->storage_info()->NumLevelFiles(
compact_->compaction->level()) > 0);
write_hint_ = cfd->CalculateSSTWriteHint(c->output_level());
bottommost_level_ = c->bottommost_level();
if (c->ShouldFormSubcompactions()) {
StopWatch sw(db_options_.clock, stats_, SUBCOMPACTION_SETUP_TIME);
GenSubcompactionBoundaries();
}
if (boundaries_.size() >= 1) {
for (size_t i = 0; i <= boundaries_.size(); i++) {
compact_->sub_compact_states.emplace_back(
c, (i != 0) ? std::optional<Slice>(boundaries_[i - 1]) : std::nullopt,
(i != boundaries_.size()) ? std::optional<Slice>(boundaries_[i])
: std::nullopt,
static_cast<uint32_t>(i));
// assert to validate that boundaries don't have same user keys (without
// timestamp part).
assert(i == 0 || i == boundaries_.size() ||
cfd->user_comparator()->CompareWithoutTimestamp(
boundaries_[i - 1], boundaries_[i]) < 0);
}
RecordInHistogram(stats_, NUM_SUBCOMPACTIONS_SCHEDULED,
compact_->sub_compact_states.size());
} else {
compact_->sub_compact_states.emplace_back(c, std::nullopt, std::nullopt,
/*sub_job_id*/ 0);
}
// collect all seqno->time information from the input files which will be used
// to encode seqno->time to the output files.
uint64_t preserve_time_duration =
std::max(c->immutable_options()->preserve_internal_time_seconds,
c->immutable_options()->preclude_last_level_data_seconds);
if (preserve_time_duration > 0) {
const ReadOptions read_options(Env::IOActivity::kCompaction);
// setup seqno_time_mapping_
seqno_time_mapping_.SetMaxTimeDuration(preserve_time_duration);
for (const auto& each_level : *c->inputs()) {
for (const auto& fmd : each_level.files) {
std::shared_ptr<const TableProperties> tp;
Status s =
cfd->current()->GetTableProperties(read_options, &tp, fmd, nullptr);
if (s.ok()) {
seqno_time_mapping_.Add(tp->seqno_to_time_mapping)
.PermitUncheckedError();
seqno_time_mapping_.Add(fmd->fd.smallest_seqno,
fmd->oldest_ancester_time);
}
}
}
auto status = seqno_time_mapping_.Sort();
if (!status.ok()) {
ROCKS_LOG_WARN(db_options_.info_log,
"Invalid sequence number to time mapping: Status: %s",
status.ToString().c_str());
}
int64_t _current_time = 0;
status = db_options_.clock->GetCurrentTime(&_current_time);
if (!status.ok()) {
ROCKS_LOG_WARN(db_options_.info_log,
"Failed to get current time in compaction: Status: %s",
status.ToString().c_str());
// preserve all time information
preserve_time_min_seqno_ = 0;
preclude_last_level_min_seqno_ = 0;
} else {
seqno_time_mapping_.TruncateOldEntries(_current_time);
uint64_t preserve_time =
static_cast<uint64_t>(_current_time) > preserve_time_duration
? _current_time - preserve_time_duration
: 0;
preserve_time_min_seqno_ =
seqno_time_mapping_.GetOldestSequenceNum(preserve_time);
if (c->immutable_options()->preclude_last_level_data_seconds > 0) {
uint64_t preclude_last_level_time =
static_cast<uint64_t>(_current_time) >
c->immutable_options()->preclude_last_level_data_seconds
? _current_time -
c->immutable_options()->preclude_last_level_data_seconds
: 0;
preclude_last_level_min_seqno_ =
seqno_time_mapping_.GetOldestSequenceNum(preclude_last_level_time);
}
}
}
}
uint64_t CompactionJob::GetSubcompactionsLimit() {
return extra_num_subcompaction_threads_reserved_ +
std::max(
std::uint64_t(1),
static_cast<uint64_t>(compact_->compaction->max_subcompactions()));
}
void CompactionJob::AcquireSubcompactionResources(
int num_extra_required_subcompactions) {
TEST_SYNC_POINT("CompactionJob::AcquireSubcompactionResources:0");
TEST_SYNC_POINT("CompactionJob::AcquireSubcompactionResources:1");
int max_db_compactions =
DBImpl::GetBGJobLimits(
mutable_db_options_copy_.max_background_flushes,
mutable_db_options_copy_.max_background_compactions,
mutable_db_options_copy_.max_background_jobs,
versions_->GetColumnFamilySet()
->write_controller()
->NeedSpeedupCompaction())
.max_compactions;
InstrumentedMutexLock l(db_mutex_);
// Apply min function first since We need to compute the extra subcompaction
// against compaction limits. And then try to reserve threads for extra
// subcompactions. The actual number of reserved threads could be less than
// the desired number.
int available_bg_compactions_against_db_limit =
std::max(max_db_compactions - *bg_compaction_scheduled_ -
*bg_bottom_compaction_scheduled_,
0);
// Reservation only supports backgrdoun threads of which the priority is
// between BOTTOM and HIGH. Need to degrade the priority to HIGH if the
// origin thread_pri_ is higher than that. Similar to ReleaseThreads().
extra_num_subcompaction_threads_reserved_ =
env_->ReserveThreads(std::min(num_extra_required_subcompactions,
available_bg_compactions_against_db_limit),
std::min(thread_pri_, Env::Priority::HIGH));
// Update bg_compaction_scheduled_ or bg_bottom_compaction_scheduled_
// depending on if this compaction has the bottommost priority
if (thread_pri_ == Env::Priority::BOTTOM) {
*bg_bottom_compaction_scheduled_ +=
extra_num_subcompaction_threads_reserved_;
} else {
*bg_compaction_scheduled_ += extra_num_subcompaction_threads_reserved_;
}
}
void CompactionJob::ShrinkSubcompactionResources(uint64_t num_extra_resources) {
// Do nothing when we have zero resources to shrink
if (num_extra_resources == 0) return;
db_mutex_->Lock();
// We cannot release threads more than what we reserved before
int extra_num_subcompaction_threads_released = env_->ReleaseThreads(
(int)num_extra_resources, std::min(thread_pri_, Env::Priority::HIGH));
// Update the number of reserved threads and the number of background
// scheduled compactions for this compaction job
extra_num_subcompaction_threads_reserved_ -=
extra_num_subcompaction_threads_released;
// TODO (zichen): design a test case with new subcompaction partitioning
// when the number of actual partitions is less than the number of planned
// partitions
assert(extra_num_subcompaction_threads_released == (int)num_extra_resources);
// Update bg_compaction_scheduled_ or bg_bottom_compaction_scheduled_
// depending on if this compaction has the bottommost priority
if (thread_pri_ == Env::Priority::BOTTOM) {
*bg_bottom_compaction_scheduled_ -=
extra_num_subcompaction_threads_released;
} else {
*bg_compaction_scheduled_ -= extra_num_subcompaction_threads_released;
}
db_mutex_->Unlock();
TEST_SYNC_POINT("CompactionJob::ShrinkSubcompactionResources:0");
}
void CompactionJob::ReleaseSubcompactionResources() {
if (extra_num_subcompaction_threads_reserved_ == 0) {
return;
}
{
InstrumentedMutexLock l(db_mutex_);
// The number of reserved threads becomes larger than 0 only if the
// compaction prioity is round robin and there is no sufficient
// sub-compactions available
// The scheduled compaction must be no less than 1 + extra number
// subcompactions using acquired resources since this compaction job has not
// finished yet
assert(*bg_bottom_compaction_scheduled_ >=
1 + extra_num_subcompaction_threads_reserved_ ||
*bg_compaction_scheduled_ >=
1 + extra_num_subcompaction_threads_reserved_);
}
ShrinkSubcompactionResources(extra_num_subcompaction_threads_reserved_);
}
struct RangeWithSize {
Range range;
uint64_t size;
RangeWithSize(const Slice& a, const Slice& b, uint64_t s = 0)
: range(a, b), size(s) {}
};
void CompactionJob::GenSubcompactionBoundaries() {
// The goal is to find some boundary keys so that we can evenly partition
// the compaction input data into max_subcompactions ranges.
// For every input file, we ask TableReader to estimate 128 anchor points
// that evenly partition the input file into 128 ranges and the range
// sizes. This can be calculated by scanning index blocks of the file.
// Once we have the anchor points for all the input files, we merge them
// together and try to find keys dividing ranges evenly.
// For example, if we have two input files, and each returns following
// ranges:
// File1: (a1, 1000), (b1, 1200), (c1, 1100)
// File2: (a2, 1100), (b2, 1000), (c2, 1000)
// We total sort the keys to following:
// (a1, 1000), (a2, 1100), (b1, 1200), (b2, 1000), (c1, 1100), (c2, 1000)
// We calculate the total size by adding up all ranges' size, which is 6400.
// If we would like to partition into 2 subcompactions, the target of the
// range size is 3200. Based on the size, we take "b1" as the partition key
// since the first three ranges would hit 3200.
//
// Note that the ranges are actually overlapping. For example, in the example
// above, the range ending with "b1" is overlapping with the range ending with
// "b2". So the size 1000+1100+1200 is an underestimation of data size up to
// "b1". In extreme cases where we only compact N L0 files, a range can
// overlap with N-1 other ranges. Since we requested a relatively large number
// (128) of ranges from each input files, even N range overlapping would
// cause relatively small inaccuracy.
const ReadOptions read_options(Env::IOActivity::kCompaction);
auto* c = compact_->compaction;
if (c->max_subcompactions() <= 1 &&
!(c->immutable_options()->compaction_pri == kRoundRobin &&
c->immutable_options()->compaction_style == kCompactionStyleLevel)) {
return;
}
auto* cfd = c->column_family_data();
const Comparator* cfd_comparator = cfd->user_comparator();
const InternalKeyComparator& icomp = cfd->internal_comparator();
auto* v = compact_->compaction->input_version();
int base_level = v->storage_info()->base_level();
InstrumentedMutexUnlock unlock_guard(db_mutex_);
uint64_t total_size = 0;
std::vector<TableReader::Anchor> all_anchors;
int start_lvl = c->start_level();
int out_lvl = c->output_level();
for (size_t lvl_idx = 0; lvl_idx < c->num_input_levels(); lvl_idx++) {
int lvl = c->level(lvl_idx);
if (lvl >= start_lvl && lvl <= out_lvl) {
const LevelFilesBrief* flevel = c->input_levels(lvl_idx);
size_t num_files = flevel->num_files;
if (num_files == 0) {
continue;
}
for (size_t i = 0; i < num_files; i++) {
FileMetaData* f = flevel->files[i].file_metadata;
std::vector<TableReader::Anchor> my_anchors;
Status s = cfd->table_cache()->ApproximateKeyAnchors(
read_options, icomp, *f,
c->mutable_cf_options()->block_protection_bytes_per_key,
my_anchors);
if (!s.ok() || my_anchors.empty()) {
my_anchors.emplace_back(f->largest.user_key(), f->fd.GetFileSize());
}
for (auto& ac : my_anchors) {
// Can be optimize to avoid this loop.
total_size += ac.range_size;
}
all_anchors.insert(all_anchors.end(), my_anchors.begin(),
my_anchors.end());
}
}
}
// Here we total sort all the anchor points across all files and go through
// them in the sorted order to find partitioning boundaries.
// Not the most efficient implementation. A much more efficient algorithm
// probably exists. But they are more complex. If performance turns out to
// be a problem, we can optimize.
std::sort(
all_anchors.begin(), all_anchors.end(),
[cfd_comparator](TableReader::Anchor& a, TableReader::Anchor& b) -> bool {
return cfd_comparator->CompareWithoutTimestamp(a.user_key, b.user_key) <
0;
});
// Remove duplicated entries from boundaries.
all_anchors.erase(
std::unique(all_anchors.begin(), all_anchors.end(),
[cfd_comparator](TableReader::Anchor& a,
TableReader::Anchor& b) -> bool {
return cfd_comparator->CompareWithoutTimestamp(
a.user_key, b.user_key) == 0;
}),
all_anchors.end());
// Get the number of planned subcompactions, may update reserve threads
// and update extra_num_subcompaction_threads_reserved_ for round-robin
uint64_t num_planned_subcompactions;
if (c->immutable_options()->compaction_pri == kRoundRobin &&
c->immutable_options()->compaction_style == kCompactionStyleLevel) {
// For round-robin compaction prioity, we need to employ more
// subcompactions (may exceed the max_subcompaction limit). The extra
// subcompactions will be executed using reserved threads and taken into
// account bg_compaction_scheduled or bg_bottom_compaction_scheduled.
// Initialized by the number of input files
num_planned_subcompactions = static_cast<uint64_t>(c->num_input_files(0));
uint64_t max_subcompactions_limit = GetSubcompactionsLimit();
if (max_subcompactions_limit < num_planned_subcompactions) {
// Assert two pointers are not empty so that we can use extra
// subcompactions against db compaction limits
assert(bg_bottom_compaction_scheduled_ != nullptr);
assert(bg_compaction_scheduled_ != nullptr);
// Reserve resources when max_subcompaction is not sufficient
AcquireSubcompactionResources(
(int)(num_planned_subcompactions - max_subcompactions_limit));
// Subcompactions limit changes after acquiring additional resources.
// Need to call GetSubcompactionsLimit() again to update the number
// of planned subcompactions
num_planned_subcompactions =
std::min(num_planned_subcompactions, GetSubcompactionsLimit());
} else {
num_planned_subcompactions = max_subcompactions_limit;
}
} else {
num_planned_subcompactions = GetSubcompactionsLimit();
}
TEST_SYNC_POINT_CALLBACK("CompactionJob::GenSubcompactionBoundaries:0",
&num_planned_subcompactions);
if (num_planned_subcompactions == 1) return;
// Group the ranges into subcompactions
uint64_t target_range_size = std::max(
total_size / num_planned_subcompactions,
MaxFileSizeForLevel(
*(c->mutable_cf_options()), out_lvl,
c->immutable_options()->compaction_style, base_level,
c->immutable_options()->level_compaction_dynamic_level_bytes));
if (target_range_size >= total_size) {
return;
}
uint64_t next_threshold = target_range_size;
uint64_t cumulative_size = 0;
uint64_t num_actual_subcompactions = 1U;
for (TableReader::Anchor& anchor : all_anchors) {
cumulative_size += anchor.range_size;
if (cumulative_size > next_threshold) {
next_threshold += target_range_size;
num_actual_subcompactions++;
boundaries_.push_back(anchor.user_key);
}
if (num_actual_subcompactions == num_planned_subcompactions) {
break;
}
}
TEST_SYNC_POINT_CALLBACK("CompactionJob::GenSubcompactionBoundaries:1",
&num_actual_subcompactions);
// Shrink extra subcompactions resources when extra resrouces are acquired
ShrinkSubcompactionResources(
std::min((int)(num_planned_subcompactions - num_actual_subcompactions),
extra_num_subcompaction_threads_reserved_));
}
Status CompactionJob::Run() {
AutoThreadOperationStageUpdater stage_updater(
ThreadStatus::STAGE_COMPACTION_RUN);
TEST_SYNC_POINT("CompactionJob::Run():Start");
log_buffer_->FlushBufferToLog();
LogCompaction();
const size_t num_threads = compact_->sub_compact_states.size();
assert(num_threads > 0);
const uint64_t start_micros = db_options_.clock->NowMicros();
// Launch a thread for each of subcompactions 1...num_threads-1
std::vector<port::Thread> thread_pool;
thread_pool.reserve(num_threads - 1);
for (size_t i = 1; i < compact_->sub_compact_states.size(); i++) {
thread_pool.emplace_back(&CompactionJob::ProcessKeyValueCompaction, this,
&compact_->sub_compact_states[i]);
}
// Always schedule the first subcompaction (whether or not there are also
// others) in the current thread to be efficient with resources
ProcessKeyValueCompaction(&compact_->sub_compact_states[0]);
// Wait for all other threads (if there are any) to finish execution
for (auto& thread : thread_pool) {
thread.join();
}
compaction_stats_.SetMicros(db_options_.clock->NowMicros() - start_micros);
for (auto& state : compact_->sub_compact_states) {
compaction_stats_.AddCpuMicros(state.compaction_job_stats.cpu_micros);
state.RemoveLastEmptyOutput();
}
RecordTimeToHistogram(stats_, COMPACTION_TIME,
compaction_stats_.stats.micros);
RecordTimeToHistogram(stats_, COMPACTION_CPU_TIME,
compaction_stats_.stats.cpu_micros);
TEST_SYNC_POINT("CompactionJob::Run:BeforeVerify");
// Check if any thread encountered an error during execution
Status status;
IOStatus io_s;
bool wrote_new_blob_files = false;
for (const auto& state : compact_->sub_compact_states) {
if (!state.status.ok()) {
status = state.status;
io_s = state.io_status;
break;
}
if (state.Current().HasBlobFileAdditions()) {
wrote_new_blob_files = true;
}
}
if (io_status_.ok()) {
io_status_ = io_s;
}
if (status.ok()) {
constexpr IODebugContext* dbg = nullptr;
if (output_directory_) {
io_s = output_directory_->FsyncWithDirOptions(
IOOptions(), dbg,
DirFsyncOptions(DirFsyncOptions::FsyncReason::kNewFileSynced));
}
if (io_s.ok() && wrote_new_blob_files && blob_output_directory_ &&
blob_output_directory_ != output_directory_) {
io_s = blob_output_directory_->FsyncWithDirOptions(
IOOptions(), dbg,
DirFsyncOptions(DirFsyncOptions::FsyncReason::kNewFileSynced));
}
}
if (io_status_.ok()) {
io_status_ = io_s;
}
if (status.ok()) {
status = io_s;
}
if (status.ok()) {
thread_pool.clear();
std::vector<const CompactionOutputs::Output*> files_output;
for (const auto& state : compact_->sub_compact_states) {
for (const auto& output : state.GetOutputs()) {
files_output.emplace_back(&output);
}
}
ColumnFamilyData* cfd = compact_->compaction->column_family_data();
auto& prefix_extractor =
compact_->compaction->mutable_cf_options()->prefix_extractor;
std::atomic<size_t> next_file_idx(0);
auto verify_table = [&](Status& output_status) {
while (true) {
size_t file_idx = next_file_idx.fetch_add(1);
if (file_idx >= files_output.size()) {
break;
}
// Verify that the table is usable
// We set for_compaction to false and don't
// OptimizeForCompactionTableRead here because this is a special case
// after we finish the table building No matter whether
// use_direct_io_for_flush_and_compaction is true, we will regard this
// verification as user reads since the goal is to cache it here for
// further user reads
const ReadOptions verify_table_read_options(
Env::IOActivity::kCompaction);
InternalIterator* iter = cfd->table_cache()->NewIterator(
verify_table_read_options, file_options_,
cfd->internal_comparator(), files_output[file_idx]->meta,
/*range_del_agg=*/nullptr, prefix_extractor,
/*table_reader_ptr=*/nullptr,
cfd->internal_stats()->GetFileReadHist(
compact_->compaction->output_level()),
TableReaderCaller::kCompactionRefill, /*arena=*/nullptr,
/*skip_filters=*/false, compact_->compaction->output_level(),
MaxFileSizeForL0MetaPin(
*compact_->compaction->mutable_cf_options()),
/*smallest_compaction_key=*/nullptr,
/*largest_compaction_key=*/nullptr,
/*allow_unprepared_value=*/false,
compact_->compaction->mutable_cf_options()
->block_protection_bytes_per_key);
auto s = iter->status();
if (s.ok() && paranoid_file_checks_) {
OutputValidator validator(cfd->internal_comparator(),
/*_enable_order_check=*/true,
/*_enable_hash=*/true);
for (iter->SeekToFirst(); iter->Valid(); iter->Next()) {
s = validator.Add(iter->key(), iter->value());
if (!s.ok()) {
break;
}
}
if (s.ok()) {
s = iter->status();
}
if (s.ok() &&
!validator.CompareValidator(files_output[file_idx]->validator)) {
s = Status::Corruption("Paranoid checksums do not match");
}
}
delete iter;
if (!s.ok()) {
output_status = s;
break;
}
}
};
for (size_t i = 1; i < compact_->sub_compact_states.size(); i++) {
thread_pool.emplace_back(
verify_table, std::ref(compact_->sub_compact_states[i].status));
}
verify_table(compact_->sub_compact_states[0].status);
for (auto& thread : thread_pool) {
thread.join();
}
for (const auto& state : compact_->sub_compact_states) {
if (!state.status.ok()) {
status = state.status;
break;
}
}
}
ReleaseSubcompactionResources();
TEST_SYNC_POINT("CompactionJob::ReleaseSubcompactionResources:0");
TEST_SYNC_POINT("CompactionJob::ReleaseSubcompactionResources:1");
TablePropertiesCollection tp;
for (const auto& state : compact_->sub_compact_states) {
for (const auto& output : state.GetOutputs()) {
auto fn =
TableFileName(state.compaction->immutable_options()->cf_paths,
output.meta.fd.GetNumber(), output.meta.fd.GetPathId());
tp[fn] = output.table_properties;
}
}
compact_->compaction->SetOutputTableProperties(std::move(tp));
// Finish up all book-keeping to unify the subcompaction results
compact_->AggregateCompactionStats(compaction_stats_, *compaction_job_stats_);
UpdateCompactionStats();
RecordCompactionIOStats();
LogFlush(db_options_.info_log);
TEST_SYNC_POINT("CompactionJob::Run():End");
compact_->status = status;
TEST_SYNC_POINT_CALLBACK("CompactionJob::Run():EndStatusSet", &status);
return status;
}
Status CompactionJob::Install(const MutableCFOptions& mutable_cf_options) {
assert(compact_);
AutoThreadOperationStageUpdater stage_updater(
ThreadStatus::STAGE_COMPACTION_INSTALL);
db_mutex_->AssertHeld();
Status status = compact_->status;
ColumnFamilyData* cfd = compact_->compaction->column_family_data();
assert(cfd);
int output_level = compact_->compaction->output_level();
cfd->internal_stats()->AddCompactionStats(output_level, thread_pri_,
compaction_stats_);
if (status.ok()) {
status = InstallCompactionResults(mutable_cf_options);
}
if (!versions_->io_status().ok()) {
io_status_ = versions_->io_status();
}
VersionStorageInfo::LevelSummaryStorage tmp;
auto vstorage = cfd->current()->storage_info();
const auto& stats = compaction_stats_.stats;
double read_write_amp = 0.0;
double write_amp = 0.0;
double bytes_read_per_sec = 0;
double bytes_written_per_sec = 0;
const uint64_t bytes_read_non_output_and_blob =
stats.bytes_read_non_output_levels + stats.bytes_read_blob;
const uint64_t bytes_read_all =
stats.bytes_read_output_level + bytes_read_non_output_and_blob;
const uint64_t bytes_written_all =
stats.bytes_written + stats.bytes_written_blob;
if (bytes_read_non_output_and_blob > 0) {
read_write_amp = (bytes_written_all + bytes_read_all) /
static_cast<double>(bytes_read_non_output_and_blob);
write_amp =
bytes_written_all / static_cast<double>(bytes_read_non_output_and_blob);
}
if (stats.micros > 0) {
bytes_read_per_sec = bytes_read_all / static_cast<double>(stats.micros);
bytes_written_per_sec =
bytes_written_all / static_cast<double>(stats.micros);
}
const std::string& column_family_name = cfd->GetName();
constexpr double kMB = 1048576.0;
ROCKS_LOG_BUFFER(
log_buffer_,
"[%s] compacted to: %s, MB/sec: %.1f rd, %.1f wr, level %d, "
"files in(%d, %d) out(%d +%d blob) "
"MB in(%.1f, %.1f +%.1f blob) out(%.1f +%.1f blob), "
"read-write-amplify(%.1f) write-amplify(%.1f) %s, records in: %" PRIu64
", records dropped: %" PRIu64 " output_compression: %s\n",
column_family_name.c_str(), vstorage->LevelSummary(&tmp),
bytes_read_per_sec, bytes_written_per_sec,
compact_->compaction->output_level(),
stats.num_input_files_in_non_output_levels,
stats.num_input_files_in_output_level, stats.num_output_files,
stats.num_output_files_blob, stats.bytes_read_non_output_levels / kMB,
stats.bytes_read_output_level / kMB, stats.bytes_read_blob / kMB,
stats.bytes_written / kMB, stats.bytes_written_blob / kMB, read_write_amp,
write_amp, status.ToString().c_str(), stats.num_input_records,
stats.num_dropped_records,
CompressionTypeToString(compact_->compaction->output_compression())
.c_str());
const auto& blob_files = vstorage->GetBlobFiles();
if (!blob_files.empty()) {
assert(blob_files.front());
assert(blob_files.back());
ROCKS_LOG_BUFFER(
log_buffer_,
"[%s] Blob file summary: head=%" PRIu64 ", tail=%" PRIu64 "\n",
column_family_name.c_str(), blob_files.front()->GetBlobFileNumber(),
blob_files.back()->GetBlobFileNumber());
}
if (compaction_stats_.has_penultimate_level_output) {
ROCKS_LOG_BUFFER(
log_buffer_,
"[%s] has Penultimate Level output: %" PRIu64
", level %d, number of files: %" PRIu64 ", number of records: %" PRIu64,
column_family_name.c_str(),
compaction_stats_.penultimate_level_stats.bytes_written,
compact_->compaction->GetPenultimateLevel(),
compaction_stats_.penultimate_level_stats.num_output_files,
compaction_stats_.penultimate_level_stats.num_output_records);
}
UpdateCompactionJobStats(stats);
auto stream = event_logger_->LogToBuffer(log_buffer_, 8192);
stream << "job" << job_id_ << "event"
<< "compaction_finished"
<< "compaction_time_micros" << stats.micros
<< "compaction_time_cpu_micros" << stats.cpu_micros << "output_level"
<< compact_->compaction->output_level() << "num_output_files"
<< stats.num_output_files << "total_output_size"
<< stats.bytes_written;
if (stats.num_output_files_blob > 0) {
stream << "num_blob_output_files" << stats.num_output_files_blob
<< "total_blob_output_size" << stats.bytes_written_blob;
}
stream << "num_input_records" << stats.num_input_records
<< "num_output_records" << stats.num_output_records
<< "num_subcompactions" << compact_->sub_compact_states.size()
<< "output_compression"
<< CompressionTypeToString(compact_->compaction->output_compression());
stream << "num_single_delete_mismatches"
<< compaction_job_stats_->num_single_del_mismatch;
stream << "num_single_delete_fallthrough"
<< compaction_job_stats_->num_single_del_fallthru;
if (measure_io_stats_) {
stream << "file_write_nanos" << compaction_job_stats_->file_write_nanos;
stream << "file_range_sync_nanos"
<< compaction_job_stats_->file_range_sync_nanos;
stream << "file_fsync_nanos" << compaction_job_stats_->file_fsync_nanos;
stream << "file_prepare_write_nanos"
<< compaction_job_stats_->file_prepare_write_nanos;
}
stream << "lsm_state";
stream.StartArray();
for (int level = 0; level < vstorage->num_levels(); ++level) {
stream << vstorage->NumLevelFiles(level);
}
stream.EndArray();
if (!blob_files.empty()) {
assert(blob_files.front());
stream << "blob_file_head" << blob_files.front()->GetBlobFileNumber();
assert(blob_files.back());
stream << "blob_file_tail" << blob_files.back()->GetBlobFileNumber();
}
if (compaction_stats_.has_penultimate_level_output) {
InternalStats::CompactionStats& pl_stats =
compaction_stats_.penultimate_level_stats;
stream << "penultimate_level_num_output_files" << pl_stats.num_output_files;
stream << "penultimate_level_bytes_written" << pl_stats.bytes_written;
stream << "penultimate_level_num_output_records"
<< pl_stats.num_output_records;
stream << "penultimate_level_num_output_files_blob"
<< pl_stats.num_output_files_blob;
stream << "penultimate_level_bytes_written_blob"
<< pl_stats.bytes_written_blob;
}
CleanupCompaction();
return status;
}
void CompactionJob::NotifyOnSubcompactionBegin(
SubcompactionState* sub_compact) {
Compaction* c = compact_->compaction;
if (db_options_.listeners.empty()) {
return;
}
if (shutting_down_->load(std::memory_order_acquire)) {
return;
}
if (c->is_manual_compaction() &&
manual_compaction_canceled_.load(std::memory_order_acquire)) {
return;
}
sub_compact->notify_on_subcompaction_completion = true;
SubcompactionJobInfo info{};
sub_compact->BuildSubcompactionJobInfo(info);