db_impl.cc 65.9 KB
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// 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/db_impl.h"

#include <algorithm>
#include <set>
#include <string>
#include <stdint.h>
#include <stdio.h>
#include <vector>
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#include <algorithm>
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#include "db/builder.h"
#include "db/db_iter.h"
#include "db/dbformat.h"
#include "db/filename.h"
#include "db/log_reader.h"
#include "db/log_writer.h"
#include "db/memtable.h"
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#include "db/memtablelist.h"
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#include "db/table_cache.h"
#include "db/version_set.h"
#include "db/write_batch_internal.h"
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#include "leveldb/db.h"
#include "leveldb/env.h"
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#include "leveldb/statistics.h"
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#include "leveldb/status.h"
#include "leveldb/table.h"
#include "leveldb/table_builder.h"
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#include "port/port.h"
#include "table/block.h"
#include "table/merger.h"
#include "table/two_level_iterator.h"
#include "util/coding.h"
#include "util/logging.h"
#include "util/mutexlock.h"
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#include "util/build_version.h"
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#include "util/auto_split_logger.h"
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namespace leveldb {

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void dumpLeveldbBuildVersion(Logger * log);

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static Status NewLogger(const std::string& dbname,
                        const std::string& db_log_dir,
                        Env* env,
                        size_t max_log_file_size,
                        Logger** logger) {
  std::string db_absolute_path;
  env->GetAbsolutePath(dbname, &db_absolute_path);

  if (max_log_file_size > 0) { // need to auto split the log file?
    AutoSplitLogger<Logger>* auto_split_logger =
      new AutoSplitLogger<Logger>(env, dbname, db_log_dir, max_log_file_size);
    Status s = auto_split_logger->GetStatus();
    if (!s.ok()) {
      delete auto_split_logger;
    } else {
      *logger = auto_split_logger;
    }
    return s;
  } else {
    // Open a log file in the same directory as the db
    env->CreateDir(dbname);  // In case it does not exist
    std::string fname = InfoLogFileName(dbname, db_absolute_path, db_log_dir);
    env->RenameFile(fname, OldInfoLogFileName(dbname, env->NowMicros(),
                                              db_absolute_path, db_log_dir));
    return env->NewLogger(fname, logger);
  }
}

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// Information kept for every waiting writer
struct DBImpl::Writer {
  Status status;
  WriteBatch* batch;
  bool sync;
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  bool disableWAL;
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  bool done;
  port::CondVar cv;

  explicit Writer(port::Mutex* mu) : cv(mu) { }
};

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struct DBImpl::CompactionState {
  Compaction* const compaction;

  // Sequence numbers < smallest_snapshot are not significant since we
  // will never have to service a snapshot below smallest_snapshot.
  // Therefore if we have seen a sequence number S <= smallest_snapshot,
  // we can drop all entries for the same key with sequence numbers < S.
  SequenceNumber smallest_snapshot;

  // Files produced by compaction
  struct Output {
    uint64_t number;
    uint64_t file_size;
    InternalKey smallest, largest;
  };
  std::vector<Output> outputs;
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  std::list<uint64_t> allocated_file_numbers;
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  // State kept for output being generated
  WritableFile* outfile;
  TableBuilder* builder;

  uint64_t total_bytes;

  Output* current_output() { return &outputs[outputs.size()-1]; }

  explicit CompactionState(Compaction* c)
      : compaction(c),
        outfile(NULL),
        builder(NULL),
        total_bytes(0) {
  }
};

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struct DBImpl::DeletionState {

  // the set of all live files that cannot be deleted
  std::set<uint64_t> live;

  // a list of all siles that exists in the db directory
  std::vector<std::string> allfiles;

  // the current filenumber, lognumber and prevlognumber
  // that corresponds to the set of files in 'live'.
  uint64_t filenumber, lognumber, prevlognumber;

  // the list of all files to be evicted from the table cahce
  std::vector<uint64_t> files_to_evict;
};

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// Fix user-supplied options to be reasonable
template <class T,class V>
static void ClipToRange(T* ptr, V minvalue, V maxvalue) {
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  if (static_cast<V>(*ptr) > maxvalue) *ptr = maxvalue;
  if (static_cast<V>(*ptr) < minvalue) *ptr = minvalue;
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}
Options SanitizeOptions(const std::string& dbname,
                        const InternalKeyComparator* icmp,
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                        const InternalFilterPolicy* ipolicy,
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                        const Options& src) {
  Options result = src;
  result.comparator = icmp;
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  result.filter_policy = (src.filter_policy != NULL) ? ipolicy : NULL;
  ClipToRange(&result.max_open_files,            20,     50000);
  ClipToRange(&result.write_buffer_size,         64<<10, 1<<30);
  ClipToRange(&result.block_size,                1<<10,  4<<20);
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  if (result.info_log == NULL) {
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    Status s = NewLogger(dbname, result.db_log_dir, src.env,
                         result.max_log_file_size, &result.info_log);
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    if (!s.ok()) {
      // No place suitable for logging
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      result.info_log = NULL;
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    }
  }
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  if (result.block_cache == NULL && !result.no_block_cache) {
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    result.block_cache = NewLRUCache(8 << 20);
  }
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  if (src.compression_per_level != NULL) {
    result.compression_per_level = new CompressionType[src.num_levels];
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    for (int i = 0; i < src.num_levels; i++) {
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      result.compression_per_level[i] = src.compression_per_level[i];
    }
  }
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  return result;
}

DBImpl::DBImpl(const Options& options, const std::string& dbname)
    : env_(options.env),
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      dbname_(dbname),
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      internal_comparator_(options.comparator),
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      options_(SanitizeOptions(
          dbname, &internal_comparator_, &internal_filter_policy_, options)),
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      internal_filter_policy_(options.filter_policy),
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      owns_info_log_(options_.info_log != options.info_log),
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      owns_cache_(options_.block_cache != options.block_cache),
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      db_lock_(NULL),
      shutting_down_(NULL),
      bg_cv_(&mutex_),
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      mem_(new MemTable(internal_comparator_, NumberLevels())),
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      logfile_(NULL),
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      logfile_number_(0),
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      log_(NULL),
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      tmp_batch_(new WriteBatch),
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      bg_compaction_scheduled_(0),
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      bg_logstats_scheduled_(false),
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      manual_compaction_(NULL),
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      logger_(NULL),
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      disable_delete_obsolete_files_(false),
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      delete_obsolete_files_last_run_(0),
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      stall_level0_slowdown_(0),
      stall_memtable_compaction_(0),
      stall_level0_num_files_(0),
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      stall_leveln_slowdown_(0),
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      started_at_(options.env->NowMicros()),
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      flush_on_destroy_(false),
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      delayed_writes_(0) {
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  mem_->Ref();
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  env_->GetAbsolutePath(dbname, &db_absolute_path_);
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  stats_ = new CompactionStats[options.num_levels];
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  // Reserve ten files or so for other uses and give the rest to TableCache.
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  const int table_cache_size = options_.max_open_files - 10;
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  table_cache_ = new TableCache(dbname_, &options_, table_cache_size);

  versions_ = new VersionSet(dbname_, &options_, table_cache_,
                             &internal_comparator_);
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  dumpLeveldbBuildVersion(options_.info_log);
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  options_.Dump(options_.info_log);

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#ifdef USE_SCRIBE
  logger_ = new ScribeLogger("localhost", 1456);
#endif

  char name[100];
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  Status st = env_->GetHostName(name, 100L);
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  if(st.ok()) {
    host_name_ = name;
  } else {
    Log(options_.info_log, "Can't get hostname, use localhost as host name.");
    host_name_ = "localhost";
  }
  last_log_ts = 0;
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}

DBImpl::~DBImpl() {
  // Wait for background work to finish
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  if (flush_on_destroy_) {
    FlushMemTable(FlushOptions());
  }
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  mutex_.Lock();
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  shutting_down_.Release_Store(this);  // Any non-NULL value is ok
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  while (bg_compaction_scheduled_ || bg_logstats_scheduled_) {
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    bg_cv_.Wait();
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  }
  mutex_.Unlock();

  if (db_lock_ != NULL) {
    env_->UnlockFile(db_lock_);
  }

  delete versions_;
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  if (mem_ != NULL) mem_->Unref();
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  imm_.UnrefAll();
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  delete tmp_batch_;
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  delete log_;
  delete logfile_;
  delete table_cache_;
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  delete[] stats_;
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  if (owns_info_log_) {
    delete options_.info_log;
  }
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  if (owns_cache_) {
    delete options_.block_cache;
  }
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  if (options_.compression_per_level != NULL) {
    delete options_.compression_per_level;
  }
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  delete logger_;
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}

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// Do not flush and close database elegantly. Simulate a crash. 
void DBImpl::TEST_Destroy_DBImpl() {
  // ensure that no new memtable flushes can occur
  flush_on_destroy_ = false;

  // wait till all background compactions are done.
  mutex_.Lock();
  while (bg_compaction_scheduled_ || bg_logstats_scheduled_) {
    bg_cv_.Wait();
  }

  // Prevent new compactions from occuring.
  const int LargeNumber = 10000000;
  bg_compaction_scheduled_ += LargeNumber;
  mutex_.Unlock();

  // force release the lock file.
  if (db_lock_ != NULL) {
    env_->UnlockFile(db_lock_);
  }
}


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Status DBImpl::NewDB() {
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  VersionEdit new_db(NumberLevels());
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  new_db.SetComparatorName(user_comparator()->Name());
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  new_db.SetLogNumber(0);
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  new_db.SetNextFile(2);
  new_db.SetLastSequence(0);

  const std::string manifest = DescriptorFileName(dbname_, 1);
  WritableFile* file;
  Status s = env_->NewWritableFile(manifest, &file);
  if (!s.ok()) {
    return s;
  }
  {
    log::Writer log(file);
    std::string record;
    new_db.EncodeTo(&record);
    s = log.AddRecord(record);
    if (s.ok()) {
      s = file->Close();
    }
  }
  delete file;
  if (s.ok()) {
    // Make "CURRENT" file that points to the new manifest file.
    s = SetCurrentFile(env_, dbname_, 1);
  } else {
    env_->DeleteFile(manifest);
  }
  return s;
}

void DBImpl::MaybeIgnoreError(Status* s) const {
  if (s->ok() || options_.paranoid_checks) {
    // No change needed
  } else {
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    Log(options_.info_log, "Ignoring error %s", s->ToString().c_str());
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    *s = Status::OK();
  }
}

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// Returns the list of live files in 'live' and the list
// of all files in the filesystem in 'allfiles'.
void DBImpl::FindObsoleteFiles(DeletionState& deletion_state) {
  mutex_.AssertHeld();

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  // if deletion is disabled, do nothing
  if (disable_delete_obsolete_files_) {
    return;
  }

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  // This method is costly when the number of files is large.
  // Do not allow it to trigger more often than once in
  // delete_obsolete_files_period_micros.
  if (options_.delete_obsolete_files_period_micros != 0) {
    const uint64_t now_micros = env_->NowMicros();
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    if (delete_obsolete_files_last_run_ +
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        options_.delete_obsolete_files_period_micros > now_micros) {
      return;
    }
    delete_obsolete_files_last_run_ = now_micros;
  }

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  // Make a set of all of the live files
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  deletion_state.live = pending_outputs_;
  versions_->AddLiveFiles(&deletion_state.live);

  // set of all files in the directory
  env_->GetChildren(dbname_, &deletion_state.allfiles); // Ignore errors
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  // store the current filenum, lognum, etc
  deletion_state.filenumber = versions_->ManifestFileNumber();
  deletion_state.lognumber = versions_->LogNumber();
  deletion_state.prevlognumber = versions_->PrevLogNumber();
}

// Diffs the files listed in filenames and those that do not
// belong to live files are posibly removed. If the removed file
// is a sst file, then it returns the file number in files_to_evict.
// It is not necesary to hold the mutex when invoking this method.
void DBImpl::PurgeObsoleteFiles(DeletionState& state) {
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  uint64_t number;
  FileType type;
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  std::vector<std::string> old_log_files;
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  for (size_t i = 0; i < state.allfiles.size(); i++) {
    if (ParseFileName(state.allfiles[i], &number, &type)) {
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      bool keep = true;
      switch (type) {
        case kLogFile:
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          keep = ((number >= state.lognumber) ||
                  (number == state.prevlognumber));
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          break;
        case kDescriptorFile:
          // Keep my manifest file, and any newer incarnations'
          // (in case there is a race that allows other incarnations)
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          keep = (number >= state.filenumber);
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          break;
        case kTableFile:
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          keep = (state.live.find(number) != state.live.end());
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          break;
        case kTempFile:
          // Any temp files that are currently being written to must
          // be recorded in pending_outputs_, which is inserted into "live"
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          keep = (state.live.find(number) != state.live.end());
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          break;
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        case kInfoLogFile:
          keep = true;
          if (number != 0) {
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            old_log_files.push_back(state.allfiles[i]);
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          }
          break;
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        case kCurrentFile:
        case kDBLockFile:
          keep = true;
          break;
      }

      if (!keep) {
        if (type == kTableFile) {
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          // record the files to be evicted from the cache
          state.files_to_evict.push_back(number);
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        }
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        Log(options_.info_log, "Delete type=%d #%lld\n",
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            int(type),
            static_cast<unsigned long long>(number));
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        Status st = env_->DeleteFile(dbname_ + "/" + state.allfiles[i]);
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        if(!st.ok()) {
          Log(options_.info_log, "Delete type=%d #%lld FAILED\n",
              int(type),
              static_cast<unsigned long long>(number));
        }
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      }
    }
  }
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  // Delete old log files.
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  int old_log_file_count = old_log_files.size();
  if (old_log_file_count >= KEEP_LOG_FILE_NUM &&
      !options_.db_log_dir.empty()) {
    std::sort(old_log_files.begin(), old_log_files.end());
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    for (int i = 0; i >= (old_log_file_count - KEEP_LOG_FILE_NUM); i++) {
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      std::string& to_delete = old_log_files.at(i);
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      // Log(options_.info_log, "Delete type=%d %s\n",
      //     int(kInfoLogFile), to_delete.c_str());
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      env_->DeleteFile(dbname_ + "/" + to_delete);
    }
  }
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}

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void DBImpl::EvictObsoleteFiles(DeletionState& state) {
  for (unsigned int i = 0; i < state.files_to_evict.size(); i++) {
    table_cache_->Evict(state.files_to_evict[i]);
  }
}

void DBImpl::DeleteObsoleteFiles() {
  mutex_.AssertHeld();
  DeletionState deletion_state;
  std::set<uint64_t> live;
  std::vector<std::string> allfiles;
  std::vector<uint64_t> files_to_evict;
  FindObsoleteFiles(deletion_state);
  PurgeObsoleteFiles(deletion_state);
  EvictObsoleteFiles(deletion_state);
}

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Status DBImpl::Recover(VersionEdit* edit, bool no_log_recory,
    bool error_if_log_file_exist) {
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  mutex_.AssertHeld();

  // Ignore error from CreateDir since the creation of the DB is
  // committed only when the descriptor is created, and this directory
  // may already exist from a previous failed creation attempt.
  env_->CreateDir(dbname_);
  assert(db_lock_ == NULL);
  Status s = env_->LockFile(LockFileName(dbname_), &db_lock_);
  if (!s.ok()) {
    return s;
  }

  if (!env_->FileExists(CurrentFileName(dbname_))) {
    if (options_.create_if_missing) {
      s = NewDB();
      if (!s.ok()) {
        return s;
      }
    } else {
      return Status::InvalidArgument(
          dbname_, "does not exist (create_if_missing is false)");
    }
  } else {
    if (options_.error_if_exists) {
      return Status::InvalidArgument(
          dbname_, "exists (error_if_exists is true)");
    }
  }

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  s = versions_->Recover();
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  if (s.ok()) {
    SequenceNumber max_sequence(0);
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    // Recover from all newer log files than the ones named in the
    // descriptor (new log files may have been added by the previous
    // incarnation without registering them in the descriptor).
    //
    // Note that PrevLogNumber() is no longer used, but we pay
    // attention to it in case we are recovering a database
    // produced by an older version of leveldb.
    const uint64_t min_log = versions_->LogNumber();
    const uint64_t prev_log = versions_->PrevLogNumber();
    std::vector<std::string> filenames;
    s = env_->GetChildren(dbname_, &filenames);
    if (!s.ok()) {
      return s;
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    }
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    uint64_t number;
    FileType type;
    std::vector<uint64_t> logs;
    for (size_t i = 0; i < filenames.size(); i++) {
      if (ParseFileName(filenames[i], &number, &type)
          && type == kLogFile
          && ((number >= min_log) || (number == prev_log))) {
        logs.push_back(number);
      }
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    }
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    if (logs.size() > 0 && error_if_log_file_exist) {
      return Status::Corruption(""
          "The db was opened in readonly mode with error_if_log_file_exist"
          "flag but a log file already exists");
    }

    if (no_log_recory) {
      return s;
    }

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    // Recover in the order in which the logs were generated
    std::sort(logs.begin(), logs.end());
    for (size_t i = 0; i < logs.size(); i++) {
      s = RecoverLogFile(logs[i], edit, &max_sequence);
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      // The previous incarnation may not have written any MANIFEST
      // records after allocating this log number.  So we manually
      // update the file number allocation counter in VersionSet.
      versions_->MarkFileNumberUsed(logs[i]);
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    }

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    if (s.ok()) {
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      if (versions_->LastSequence() < max_sequence) {
        versions_->SetLastSequence(max_sequence);
      }
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    }
  }

  return s;
}

Status DBImpl::RecoverLogFile(uint64_t log_number,
                              VersionEdit* edit,
                              SequenceNumber* max_sequence) {
  struct LogReporter : public log::Reader::Reporter {
    Env* env;
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    Logger* info_log;
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    const char* fname;
    Status* status;  // NULL if options_.paranoid_checks==false
    virtual void Corruption(size_t bytes, const Status& s) {
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      Log(info_log, "%s%s: dropping %d bytes; %s",
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          (this->status == NULL ? "(ignoring error) " : ""),
          fname, static_cast<int>(bytes), s.ToString().c_str());
      if (this->status != NULL && this->status->ok()) *this->status = s;
    }
  };

  mutex_.AssertHeld();

  // Open the log file
  std::string fname = LogFileName(dbname_, log_number);
  SequentialFile* file;
  Status status = env_->NewSequentialFile(fname, &file);
  if (!status.ok()) {
    MaybeIgnoreError(&status);
    return status;
  }

  // Create the log reader.
  LogReporter reporter;
  reporter.env = env_;
  reporter.info_log = options_.info_log;
  reporter.fname = fname.c_str();
  reporter.status = (options_.paranoid_checks ? &status : NULL);
  // We intentially make log::Reader do checksumming even if
  // paranoid_checks==false so that corruptions cause entire commits
  // to be skipped instead of propagating bad information (like overly
  // large sequence numbers).
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  log::Reader reader(file, &reporter, true/*checksum*/,
                     0/*initial_offset*/);
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  Log(options_.info_log, "Recovering log #%llu",
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      (unsigned long long) log_number);

  // Read all the records and add to a memtable
  std::string scratch;
  Slice record;
  WriteBatch batch;
  MemTable* mem = NULL;
  while (reader.ReadRecord(&record, &scratch) &&
         status.ok()) {
    if (record.size() < 12) {
      reporter.Corruption(
          record.size(), Status::Corruption("log record too small"));
      continue;
    }
    WriteBatchInternal::SetContents(&batch, record);

    if (mem == NULL) {
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      mem = new MemTable(internal_comparator_, NumberLevels());
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      mem->Ref();
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    }
    status = WriteBatchInternal::InsertInto(&batch, mem);
    MaybeIgnoreError(&status);
    if (!status.ok()) {
      break;
    }
    const SequenceNumber last_seq =
        WriteBatchInternal::Sequence(&batch) +
        WriteBatchInternal::Count(&batch) - 1;
    if (last_seq > *max_sequence) {
      *max_sequence = last_seq;
    }

    if (mem->ApproximateMemoryUsage() > options_.write_buffer_size) {
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      status = WriteLevel0TableForRecovery(mem, edit);
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      if (!status.ok()) {
        // Reflect errors immediately so that conditions like full
        // file-systems cause the DB::Open() to fail.
        break;
      }
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      mem->Unref();
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      mem = NULL;
    }
  }

  if (status.ok() && mem != NULL) {
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    status = WriteLevel0TableForRecovery(mem, edit);
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    // Reflect errors immediately so that conditions like full
    // file-systems cause the DB::Open() to fail.
  }

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  if (mem != NULL) mem->Unref();
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  delete file;
  return status;
}

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Status DBImpl::WriteLevel0TableForRecovery(MemTable* mem, VersionEdit* edit) {
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  mutex_.AssertHeld();
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  const uint64_t start_micros = env_->NowMicros();
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  FileMetaData meta;
  meta.number = versions_->NewFileNumber();
  pending_outputs_.insert(meta.number);
  Iterator* iter = mem->NewIterator();
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  Log(options_.info_log, "Level-0 table #%llu: started",
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      (unsigned long long) meta.number);
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  Status s;
  {
    mutex_.Unlock();
656
    s = BuildTable(dbname_, env_, options_, table_cache_, iter, &meta);
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    mutex_.Lock();
  }

660
  Log(options_.info_log, "Level-0 table #%llu: %lld bytes %s",
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      (unsigned long long) meta.number,
      (unsigned long long) meta.file_size,
      s.ToString().c_str());
  delete iter;
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666
  pending_outputs_.erase(meta.number);
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  // Note that if file_size is zero, the file has been deleted and
  // should not be added to the manifest.
  int level = 0;
  if (s.ok() && meta.file_size > 0) {
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    const Slice min_user_key = meta.smallest.user_key();
    const Slice max_user_key = meta.largest.user_key();
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    edit->AddFile(level, meta.number, meta.file_size,
                  meta.smallest, meta.largest);
  }

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  CompactionStats stats;
  stats.micros = env_->NowMicros() - start_micros;
  stats.bytes_written = meta.file_size;
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  stats.files_out_levelnp1 = 1;
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  stats_[level].Add(stats);
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  return s;
}

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Status DBImpl::WriteLevel0Table(MemTable* mem, VersionEdit* edit,
                                uint64_t* filenumber) {
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  mutex_.AssertHeld();
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  const uint64_t start_micros = env_->NowMicros();
  FileMetaData meta;
  meta.number = versions_->NewFileNumber();
  *filenumber = meta.number;
  pending_outputs_.insert(meta.number);
  Iterator* iter = mem->NewIterator();
  Log(options_.info_log, "Level-0 flush table #%llu: started",
      (unsigned long long) meta.number);
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  Version* base = versions_->current();
  base->Ref();
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  Status s;
  {
    mutex_.Unlock();
    s = BuildTable(dbname_, env_, options_, table_cache_, iter, &meta);
    mutex_.Lock();
  }
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  base->Unref();

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  Log(options_.info_log, "Level-0 flush table #%llu: %lld bytes %s",
      (unsigned long long) meta.number,
      (unsigned long long) meta.file_size,
      s.ToString().c_str());
  delete iter;

  // re-acquire the most current version
  base = versions_->current();

  // There could be multiple threads writing to its own level-0 file.
  // The pending_outputs cannot be cleared here, otherwise this newly
  // created file might not be considered as a live-file by another
  // compaction thread that is concurrently deleting obselete files.
  // The pending_outputs can be cleared only after the new version is
  // committed so that other threads can recognize this file as a 
  // valid one.
  // pending_outputs_.erase(meta.number);

  // Note that if file_size is zero, the file has been deleted and
  // should not be added to the manifest.
  int level = 0;
  if (s.ok() && meta.file_size > 0) {
    const Slice min_user_key = meta.smallest.user_key();
    const Slice max_user_key = meta.largest.user_key();
    // if we have more than 1 background thread, then we cannot
    // insert files directly into higher levels because some other
    // threads could be concurrently producing compacted files for
    // that key range.
    if (base != NULL && options_.max_background_compactions <= 1) {
      level = base->PickLevelForMemTableOutput(min_user_key, max_user_key);
    }
    edit->AddFile(level, meta.number, meta.file_size,
                  meta.smallest, meta.largest);
  }

  CompactionStats stats;
  stats.micros = env_->NowMicros() - start_micros;
  stats.bytes_written = meta.file_size;
  stats_[level].Add(stats);
  return s;
}

Status DBImpl::CompactMemTable(bool* madeProgress) {
  mutex_.AssertHeld();
  assert(imm_.size() != 0);

  if (!imm_.IsFlushPending()) {
    Log(options_.info_log, "Memcompaction already in progress");
    Status s = Status::IOError("Memcompaction already in progress");
    return s;
  }

  // Save the contents of the earliest memtable as a new Table
  // This will release and re-acquire the mutex.
  uint64_t file_number;
  MemTable* m = imm_.PickMemtableToFlush();
  if (m == NULL) {
    Log(options_.info_log, "Nothing in memstore to flush");
    Status s = Status::IOError("Nothing in memstore to flush");
    return s;
  }

  // record the logfile_number_ before we release the mutex
  VersionEdit* edit = m->GetEdits();
  edit->SetPrevLogNumber(0);
  edit->SetLogNumber(logfile_number_);  // Earlier logs no longer needed

  Status s = WriteLevel0Table(m, edit, &file_number);

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  if (s.ok() && shutting_down_.Acquire_Load()) {
    s = Status::IOError("Deleting DB during memtable compaction");
  }
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  // Replace immutable memtable with the generated Table
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  s = imm_.InstallMemtableFlushResults(m, versions_, s, &mutex_, 
                        options_.info_log, file_number, pending_outputs_);
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  if (s.ok()) {
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    if (madeProgress) {
      *madeProgress = 1;
    }
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    MaybeScheduleLogDBDeployStats();
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    // we could have deleted obsolete files here, but it is not
    // absolutely necessary because it could be also done as part
    // of other background compaction
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  }
  return s;
}

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void DBImpl::CompactRange(const Slice* begin, const Slice* end) {
  int max_level_with_files = 1;
  {
    MutexLock l(&mutex_);
    Version* base = versions_->current();
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    for (int level = 1; level < NumberLevels(); level++) {
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      if (base->OverlapInLevel(level, begin, end)) {
        max_level_with_files = level;
      }
    }
  }
  TEST_CompactMemTable(); // TODO(sanjay): Skip if memtable does not overlap
  for (int level = 0; level < max_level_with_files; level++) {
    TEST_CompactRange(level, begin, end);
  }
}

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int DBImpl::NumberLevels() {
816
  return options_.num_levels;
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}

int DBImpl::MaxMemCompactionLevel() {
820
  return options_.max_mem_compaction_level;
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}

int DBImpl::Level0StopWriteTrigger() {
824
  return options_.level0_stop_writes_trigger;
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}

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Status DBImpl::Flush(const FlushOptions& options) {
  Status status = FlushMemTable(options);
  return status;
}

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void DBImpl::TEST_CompactRange(int level, const Slice* begin,const Slice* end) {
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  assert(level >= 0);

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  InternalKey begin_storage, end_storage;

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  ManualCompaction manual;
  manual.level = level;
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  manual.done = false;
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  manual.in_progress = false;
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  if (begin == NULL) {
    manual.begin = NULL;
  } else {
    begin_storage = InternalKey(*begin, kMaxSequenceNumber, kValueTypeForSeek);
    manual.begin = &begin_storage;
  }
  if (end == NULL) {
    manual.end = NULL;
  } else {
    end_storage = InternalKey(*end, 0, static_cast<ValueType>(0));
    manual.end = &end_storage;
  }

  MutexLock l(&mutex_);
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  // When a manual compaction arrives, temporarily throttle down 
  // the number of background compaction threads to 1. This is 
  // needed to ensure that this manual compaction can compact 
  // any range of keys/files. We artificialy increase 
  // bg_compaction_scheduled_ by a large number, this causes
  // the system to have a single background thread. Now,
  // this manual compaction can progress without stomping
  // on any other concurrent compactions.
  const int LargeNumber = 10000000;
  const int newvalue = options_.max_background_compactions-1;
  bg_compaction_scheduled_ += LargeNumber;
  while (bg_compaction_scheduled_ > LargeNumber) {
    Log(options_.info_log, "Manual compaction request waiting for background threads to fall below 1");
    bg_cv_.Wait();
  }
  Log(options_.info_log, "Manual compaction starting");

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  while (!manual.done) {
    while (manual_compaction_ != NULL) {
      bg_cv_.Wait();
    }
    manual_compaction_ = &manual;
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    if (bg_compaction_scheduled_ == LargeNumber) {
      bg_compaction_scheduled_ = newvalue;
    }
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    MaybeScheduleCompaction();
    while (manual_compaction_ == &manual) {
      bg_cv_.Wait();
    }
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  }
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  assert(!manual.in_progress);

  // wait till there are no background threads scheduled
  bg_compaction_scheduled_ += LargeNumber;
  while (bg_compaction_scheduled_ > LargeNumber + newvalue) {
    Log(options_.info_log, "Manual compaction resetting background threads");
    bg_cv_.Wait();
  }
  bg_compaction_scheduled_ = 0;
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}

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Status DBImpl::FlushMemTable(const FlushOptions& options) {
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  // NULL batch means just wait for earlier writes to be done
  Status s = Write(WriteOptions(), NULL);
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  if (s.ok() && options.wait) {
901
    // Wait until the compaction completes
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    s = WaitForCompactMemTable();
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  }
  return s;
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}

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Status DBImpl::WaitForCompactMemTable() {
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  Status s;
  // Wait until the compaction completes
  MutexLock l(&mutex_);
911
  while (imm_.size() > 0 && bg_error_.ok()) {
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    bg_cv_.Wait();
  }
914
  if (imm_.size() != 0) {
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    s = bg_error_;
  }
  return s;
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}

Status DBImpl::TEST_CompactMemTable() {
  return FlushMemTable(FlushOptions());
}

924
Status DBImpl::TEST_WaitForCompactMemTable() {
925
  return WaitForCompactMemTable();
926 927 928
}

Status DBImpl::TEST_WaitForCompact() {
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  // Wait until the compaction completes
  MutexLock l(&mutex_);
  while (bg_compaction_scheduled_ && bg_error_.ok()) {
    bg_cv_.Wait();
  }
  return bg_error_;
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}

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void DBImpl::MaybeScheduleCompaction() {
  mutex_.AssertHeld();
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  if (bg_compaction_scheduled_ >= options_.max_background_compactions) {
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    // Already scheduled
  } else if (shutting_down_.Acquire_Load()) {
    // DB is being deleted; no more background compactions
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  } else if (!imm_.IsFlushPending() &&
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             manual_compaction_ == NULL &&
             !versions_->NeedsCompaction()) {
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    // No work to be done
  } else {
948
    bg_compaction_scheduled_++;
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    env_->Schedule(&DBImpl::BGWork, this);
  }
}

void DBImpl::BGWork(void* db) {
  reinterpret_cast<DBImpl*>(db)->BackgroundCall();
}

void DBImpl::BackgroundCall() {
958
  bool madeProgress;
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  DeletionState deletion_state;
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  MutexLock l(&mutex_);
961
  // Log(options_.info_log, "XXX BG Thread %llx process new work item", pthread_self());
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  assert(bg_compaction_scheduled_);
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  if (!shutting_down_.Acquire_Load()) {
964
    Status s = BackgroundCompaction(&madeProgress, deletion_state);
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    if (!s.ok()) {
      // Wait a little bit before retrying background compaction in
      // case this is an environmental problem and we do not want to
      // chew up resources for failed compactions for the duration of
      // the problem.
      bg_cv_.SignalAll();  // In case a waiter can proceed despite the error
      Log(options_.info_log, "Waiting after background compaction error: %s",
          s.ToString().c_str());
      mutex_.Unlock();
      env_->SleepForMicroseconds(1000000);
      mutex_.Lock();
    }
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  }
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  // delete unnecessary files if any, this is done outside the mutex
  if (!deletion_state.live.empty()) {
    mutex_.Unlock();
    PurgeObsoleteFiles(deletion_state);
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    EvictObsoleteFiles(deletion_state);
984
    mutex_.Lock();
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  }

987
  bg_compaction_scheduled_--;
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  MaybeScheduleLogDBDeployStats();

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  // Previous compaction may have produced too many files in a level,
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  // So reschedule another compaction if we made progress in the 
  // last compaction.
  if (madeProgress) {
    MaybeScheduleCompaction();
  }
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  bg_cv_.SignalAll();
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}

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Status DBImpl::BackgroundCompaction(bool* madeProgress, 
  DeletionState& deletion_state) {
1002
  *madeProgress = false;
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  mutex_.AssertHeld();
1004

1005 1006 1007 1008 1009 1010 1011 1012
  while (imm_.IsFlushPending()) {
    Log(options_.info_log, 
        "BackgroundCompaction doing CompactMemTable, compaction slots available %d",
        options_.max_background_compactions - bg_compaction_scheduled_);
    Status stat = CompactMemTable(madeProgress);
    if (!stat.ok()) {
      return stat;
    }
1013 1014
  }

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  Compaction* c;
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  bool is_manual = (manual_compaction_ != NULL) &&
                   (manual_compaction_->in_progress == false);
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  InternalKey manual_end;
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  if (is_manual) {
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    ManualCompaction* m = manual_compaction_;
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    assert(!m->in_progress);
    m->in_progress = true; // another thread cannot pick up the same work
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    c = versions_->CompactRange(m->level, m->begin, m->end);
    m->done = (c == NULL);
    if (c != NULL) {
      manual_end = c->input(0, c->num_input_files(0) - 1)->largest;
    }
    Log(options_.info_log,
        "Manual compaction at level-%d from %s .. %s; will stop at %s\n",
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        m->level,
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        (m->begin ? m->begin->DebugString().c_str() : "(begin)"),
        (m->end ? m->end->DebugString().c_str() : "(end)"),
        (m->done ? "(end)" : manual_end.DebugString().c_str()));
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  } else {
    c = versions_->PickCompaction();
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  }

  Status status;
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  if (c == NULL) {
    // Nothing to do
1041
    Log(options_.info_log, "Compaction nothing to do");
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  } else if (!is_manual && c->IsTrivialMove()) {
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    // Move file to next level
1044
    assert(c->num_input_files(0) == 1);
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    FileMetaData* f = c->input(0, 0);
    c->edit()->DeleteFile(c->level(), f->number);
    c->edit()->AddFile(c->level() + 1, f->number, f->file_size,
                       f->smallest, f->largest);
1049
    status = versions_->LogAndApply(c->edit(), &mutex_);
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    VersionSet::LevelSummaryStorage tmp;
1051
    Log(options_.info_log, "Moved #%lld to level-%d %lld bytes %s: %s\n",
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        static_cast<unsigned long long>(f->number),
        c->level() + 1,
        static_cast<unsigned long long>(f->file_size),
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        status.ToString().c_str(),
        versions_->LevelSummary(&tmp));
1057
    versions_->ReleaseCompactionFiles(c, status);
1058
    *madeProgress = true;
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  } else {
    CompactionState* compact = new CompactionState(c);
    status = DoCompactionWork(compact);
    CleanupCompaction(compact);
1063
    versions_->ReleaseCompactionFiles(c, status);
1064
    c->ReleaseInputs();
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    FindObsoleteFiles(deletion_state);
1066
    *madeProgress = true;
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  }
  delete c;

  if (status.ok()) {
    // Done
  } else if (shutting_down_.Acquire_Load()) {
    // Ignore compaction errors found during shutting down
  } else {
1075
    Log(options_.info_log,
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        "Compaction error: %s", status.ToString().c_str());
    if (options_.paranoid_checks && bg_error_.ok()) {
      bg_error_ = status;
    }
  }
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  if (is_manual) {
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    ManualCompaction* m = manual_compaction_;
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    if (!status.ok()) {
      m->done = true;
    }
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    if (!m->done) {
      // We only compacted part of the requested range.  Update *m
      // to the range that is left to be compacted.
      m->tmp_storage = manual_end;
      m->begin = &m->tmp_storage;
    }
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    m->in_progress = false; // not being processed anymore
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    manual_compaction_ = NULL;
  }
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  return status;
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}

void DBImpl::CleanupCompaction(CompactionState* compact) {
  mutex_.AssertHeld();
  if (compact->builder != NULL) {
    // May happen if we get a shutdown call in the middle of compaction
    compact->builder->Abandon();
    delete compact->builder;
  } else {
    assert(compact->outfile == NULL);
  }
  delete compact->outfile;
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  for (size_t i = 0; i < compact->outputs.size(); i++) {
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    const CompactionState::Output& out = compact->outputs[i];
    pending_outputs_.erase(out.number);
  }
  delete compact;
}

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// Allocate the file numbers for the output file. We allocate as
// many output file numbers as there are files in level+1.
// Insert them into pending_outputs so that they do not get deleted.
void DBImpl::AllocateCompactionOutputFileNumbers(CompactionState* compact) {
  mutex_.AssertHeld();
  assert(compact != NULL);
  assert(compact->builder == NULL);
  int filesNeeded = compact->compaction->num_input_files(1);
1124
  for (int i = 0; i < filesNeeded; i++) {
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    uint64_t file_number = versions_->NewFileNumber();
    pending_outputs_.insert(file_number);
    compact->allocated_file_numbers.push_back(file_number);
  }
}

// Frees up unused file number.
void DBImpl::ReleaseCompactionUnusedFileNumbers(CompactionState* compact) {
  mutex_.AssertHeld();
  for (std::list<uint64_t>::iterator it = 
       compact->allocated_file_numbers.begin();
       it != compact->allocated_file_numbers.end(); ++it) {
    uint64_t file_number = *it;
    pending_outputs_.erase(file_number);
    // Log(options_.info_log, "XXX releasing unused file num %d", file_number);
  }
}

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Status DBImpl::OpenCompactionOutputFile(CompactionState* compact) {
  assert(compact != NULL);
  assert(compact->builder == NULL);
  uint64_t file_number;
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  // If we have not yet exhausted the pre-allocated file numbers,
  // then use the one from the front. Otherwise, we have to acquire
  // the heavyweight lock and allocate a new file number.
  if (!compact->allocated_file_numbers.empty()) {
    file_number = compact->allocated_file_numbers.front();
    compact->allocated_file_numbers.pop_front();
  } else {
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    mutex_.Lock();
    file_number = versions_->NewFileNumber();
    pending_outputs_.insert(file_number);
    mutex_.Unlock();
  }
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  CompactionState::Output out;
  out.number = file_number;
  out.smallest.Clear();
  out.largest.Clear();
  compact->outputs.push_back(out);
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  // Make the output file
  std::string fname = TableFileName(dbname_, file_number);
  Status s = env_->NewWritableFile(fname, &compact->outfile);
  if (s.ok()) {
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    compact->builder = new TableBuilder(options_, compact->outfile,
                                        compact->compaction->level() + 1);
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  }
  return s;
}

Status DBImpl::FinishCompactionOutputFile(CompactionState* compact,
                                          Iterator* input) {
  assert(compact != NULL);
  assert(compact->outfile != NULL);
  assert(compact->builder != NULL);

  const uint64_t output_number = compact->current_output()->number;
  assert(output_number != 0);

  // Check for iterator errors
  Status s = input->status();
  const uint64_t current_entries = compact->builder->NumEntries();
  if (s.ok()) {
    s = compact->builder->Finish();
  } else {
    compact->builder->Abandon();
  }
  const uint64_t current_bytes = compact->builder->FileSize();
  compact->current_output()->file_size = current_bytes;
  compact->total_bytes += current_bytes;
  delete compact->builder;
  compact->builder = NULL;

  // Finish and check for file errors
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  if (s.ok() && !options_.disableDataSync) {
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    if (options_.use_fsync) {
      s = compact->outfile->Fsync();
    } else {
      s = compact->outfile->Sync();
    }
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  }
  if (s.ok()) {
    s = compact->outfile->Close();
  }
  delete compact->outfile;
  compact->outfile = NULL;

  if (s.ok() && current_entries > 0) {
    // Verify that the table is usable
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    Iterator* iter = table_cache_->NewIterator(ReadOptions(),
                                               output_number,
                                               current_bytes);
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    s = iter->status();
    delete iter;
    if (s.ok()) {
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      Log(options_.info_log,
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          "Generated table #%llu: %lld keys, %lld bytes",
          (unsigned long long) output_number,
          (unsigned long long) current_entries,
          (unsigned long long) current_bytes);
    }
  }
  return s;
}


Status DBImpl::InstallCompactionResults(CompactionState* compact) {
  mutex_.AssertHeld();
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  // paranoia: verify that the files that we started with
  // still exist in the current version and in the same original level.
  // This ensures that a concurrent compaction did not erroneously
  // pick the same files to compact.
  if (options_.paranoid_checks &&
      !versions_->VerifyCompactionFileConsistency(compact->compaction)) {
    Log(options_.info_log,  "Compaction %d@%d + %d@%d files aborted",
      compact->compaction->num_input_files(0),
      compact->compaction->level(),
      compact->compaction->num_input_files(1),
      compact->compaction->level() + 1);
    return Status::IOError("Compaction input files inconsistent");
  }

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  Log(options_.info_log,  "Compacted %d@%d + %d@%d files => %lld bytes",
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      compact->compaction->num_input_files(0),
      compact->compaction->level(),
      compact->compaction->num_input_files(1),
      compact->compaction->level() + 1,
      static_cast<long long>(compact->total_bytes));

  // Add compaction outputs
  compact->compaction->AddInputDeletions(compact->compaction->edit());
  const int level = compact->compaction->level();
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  for (size_t i = 0; i < compact->outputs.size(); i++) {
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    const CompactionState::Output& out = compact->outputs[i];
    compact->compaction->edit()->AddFile(
        level + 1,
        out.number, out.file_size, out.smallest, out.largest);
  }
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  return versions_->LogAndApply(compact->compaction->edit(), &mutex_);
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}

Status DBImpl::DoCompactionWork(CompactionState* compact) {
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  int64_t imm_micros = 0;  // Micros spent doing imm_ compactions

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  Log(options_.info_log, 
      "Compacting %d@%d + %d@%d files, compaction slots available %d",
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      compact->compaction->num_input_files(0),
      compact->compaction->level(),
      compact->compaction->num_input_files(1),
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      compact->compaction->level() + 1,
      options_.max_background_compactions - bg_compaction_scheduled_);
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  char scratch[256];
  compact->compaction->Summary(scratch, sizeof(scratch));
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  Log(options_.info_log, "Compaction start summary: %s\n", scratch);
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  assert(versions_->NumLevelFiles(compact->compaction->level()) > 0);
  assert(compact->builder == NULL);
  assert(compact->outfile == NULL);
  if (snapshots_.empty()) {
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    compact->smallest_snapshot = versions_->LastSequence();
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  } else {
    compact->smallest_snapshot = snapshots_.oldest()->number_;
  }

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  // Allocate the output file numbers before we release the lock
  AllocateCompactionOutputFileNumbers(compact);

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  // Release mutex while we're actually doing the compaction work
  mutex_.Unlock();

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  const uint64_t start_micros = env_->NowMicros();
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  Iterator* input = versions_->MakeInputIterator(compact->compaction);
  input->SeekToFirst();
  Status status;
  ParsedInternalKey ikey;
  std::string current_user_key;
  bool has_current_user_key = false;
  SequenceNumber last_sequence_for_key = kMaxSequenceNumber;
  for (; input->Valid() && !shutting_down_.Acquire_Load(); ) {
1305
    // Prioritize immutable compaction work
1306
    if (imm_.imm_flush_needed.NoBarrier_Load() != NULL) {
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      const uint64_t imm_start = env_->NowMicros();
      mutex_.Lock();
1309
      if (imm_.IsFlushPending()) {
1310
        CompactMemTable();
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        bg_cv_.SignalAll();  // Wakeup MakeRoomForWrite() if necessary
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      }
      mutex_.Unlock();
      imm_micros += (env_->NowMicros() - imm_start);
    }

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    Slice key = input->key();
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    Slice value = input->value();
    Slice* compaction_filter_value = NULL;
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    if (compact->compaction->ShouldStopBefore(key) &&
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        compact->builder != NULL) {
      status = FinishCompactionOutputFile(compact, input);
      if (!status.ok()) {
        break;
      }
    }

    // Handle key/value, add to state, etc.
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    bool drop = false;
    if (!ParseInternalKey(key, &ikey)) {
      // Do not hide error keys
      current_user_key.clear();
      has_current_user_key = false;
      last_sequence_for_key = kMaxSequenceNumber;
    } else {
      if (!has_current_user_key ||
          user_comparator()->Compare(ikey.user_key,
                                     Slice(current_user_key)) != 0) {
        // First occurrence of this user key
        current_user_key.assign(ikey.user_key.data(), ikey.user_key.size());
        has_current_user_key = true;
        last_sequence_for_key = kMaxSequenceNumber;
      }

      if (last_sequence_for_key <= compact->smallest_snapshot) {
        // Hidden by an newer entry for same user key
        drop = true;    // (A)
1348
        RecordTick(options_.statistics, COMPACTION_KEY_DROP_NEWER_ENTRY);
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      } else if (ikey.type == kTypeDeletion &&
                 ikey.sequence <= compact->smallest_snapshot &&
                 compact->compaction->IsBaseLevelForKey(ikey.user_key)) {
        // For this user key:
        // (1) there is no data in higher levels
        // (2) data in lower levels will have larger sequence numbers
        // (3) data in layers that are being compacted here and have
        //     smaller sequence numbers will be dropped in the next
        //     few iterations of this loop (by rule (A) above).
        // Therefore this deletion marker is obsolete and can be dropped.
        drop = true;
1360
        RecordTick(options_.statistics, COMPACTION_KEY_DROP_OBSOLETE);
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      } else if (options_.CompactionFilter != NULL &&
                 ikey.type != kTypeDeletion &&
                 ikey.sequence < compact->smallest_snapshot) {
        // If the user has specified a compaction filter, then invoke
        // it. If this key is not visible via any snapshot and the
1366 1367
        // return value of the compaction filter is true and then
        // drop this key from the output.
1368 1369
        drop = options_.CompactionFilter(options_.compaction_filter_args,
                         compact->compaction->level(),
1370 1371
                         ikey.user_key, value, &compaction_filter_value);

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        if (drop) {
          RecordTick(options_.statistics, COMPACTION_KEY_DROP_USER);
        }
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        // If the application wants to change the value, then do so here.
        if (compaction_filter_value != NULL) {
          value = *compaction_filter_value;
          delete compaction_filter_value;
        }
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      }

      last_sequence_for_key = ikey.sequence;
    }
#if 0
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    Log(options_.info_log,
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        "  Compact: %s, seq %d, type: %d %d, drop: %d, is_base: %d, "
        "%d smallest_snapshot: %d",
        ikey.user_key.ToString().c_str(),
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        (int)ikey.sequence, ikey.type, kTypeValue, drop,
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        compact->compaction->IsBaseLevelForKey(ikey.user_key),
        (int)last_sequence_for_key, (int)compact->smallest_snapshot);
#endif

    if (!drop) {
      // Open output file if necessary
      if (compact->builder == NULL) {
        status = OpenCompactionOutputFile(compact);
        if (!status.ok()) {
          break;
        }
      }
      if (compact->builder->NumEntries() == 0) {
        compact->current_output()->smallest.DecodeFrom(key);
      }
      compact->current_output()->largest.DecodeFrom(key);
1406
      compact->builder->Add(key, value);
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      // Close output file if it is big enough
      if (compact->builder->FileSize() >=
          compact->compaction->MaxOutputFileSize()) {
        status = FinishCompactionOutputFile(compact, input);
        if (!status.ok()) {
          break;
        }
      }
    }

    input->Next();
  }

  if (status.ok() && shutting_down_.Acquire_Load()) {
    status = Status::IOError("Deleting DB during compaction");
  }
  if (status.ok() && compact->builder != NULL) {
    status = FinishCompactionOutputFile(compact, input);
  }
  if (status.ok()) {
    status = input->status();
  }
  delete input;
  input = NULL;

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  CompactionStats stats;
  stats.micros = env_->NowMicros() - start_micros - imm_micros;
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  stats.files_in_leveln = compact->compaction->num_input_files(0);
  stats.files_in_levelnp1 = compact->compaction->num_input_files(1);
  stats.files_out_levelnp1 = compact->outputs.size();

  for (int i = 0; i < compact->compaction->num_input_files(0); i++)
    stats.bytes_readn += compact->compaction->input(0, i)->file_size;

  for (int i = 0; i < compact->compaction->num_input_files(1); i++)
    stats.bytes_readnp1 += compact->compaction->input(1, i)->file_size;

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  for (size_t i = 0; i < compact->outputs.size(); i++) {
1447 1448 1449
    stats.bytes_written += compact->outputs[i].file_size;
  }

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  mutex_.Lock();
1451
  stats_[compact->compaction->level() + 1].Add(stats);
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1453 1454 1455 1456
  // if there were any unused file number (mostly in case of
  // compaction error), free up the entry from pending_putputs
  ReleaseCompactionUnusedFileNumbers(compact);

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  if (status.ok()) {
    status = InstallCompactionResults(compact);
  }
1460
  VersionSet::LevelSummaryStorage tmp;
1461
  Log(options_.info_log,
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      "compacted to: %s, %.1f MB/sec, level %d, files in(%d, %d) out(%d) "
      "MB in(%.1f, %.1f) out(%.1f), amplify(%.1f)\n",
      versions_->LevelSummary(&tmp),
      (stats.bytes_readn + stats.bytes_readnp1 + stats.bytes_written) /
          (double) stats.micros,
      compact->compaction->level() + 1,
      stats.files_in_leveln, stats.files_in_levelnp1, stats.files_out_levelnp1,
      stats.bytes_readn / 1048576.0,
      stats.bytes_readnp1 / 1048576.0,
      stats.bytes_written / 1048576.0,
      (stats.bytes_written + stats.bytes_readnp1) /
          (double) stats.bytes_readn);

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  return status;
}

1478 1479 1480 1481
namespace {
struct IterState {
  port::Mutex* mu;
  Version* version;
1482
  std::vector<MemTable*> mem; // includes both mem_ and imm_
1483 1484 1485 1486 1487
};

static void CleanupIteratorState(void* arg1, void* arg2) {
  IterState* state = reinterpret_cast<IterState*>(arg1);
  state->mu->Lock();
1488 1489 1490
  for (unsigned int i = 0; i < state->mem.size(); i++) {
    state->mem[i]->Unref();
  }
1491 1492 1493 1494
  state->version->Unref();
  state->mu->Unlock();
  delete state;
}
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}  // namespace
1496

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Iterator* DBImpl::NewInternalIterator(const ReadOptions& options,
                                      SequenceNumber* latest_snapshot) {
1499
  IterState* cleanup = new IterState;
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  mutex_.Lock();
1501
  *latest_snapshot = versions_->LastSequence();
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1503
  // Collect together all needed child iterators for mem
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  std::vector<Iterator*> list;
1505
  mem_->Ref();
1506 1507 1508 1509 1510 1511 1512 1513 1514 1515 1516
  list.push_back(mem_->NewIterator());
  cleanup->mem.push_back(mem_);

  // Collect together all needed child iterators for imm_
  std::vector<MemTable*> immutables;
  imm_.GetMemTables(&immutables);
  for (unsigned int i = 0; i < immutables.size(); i++) {
    MemTable* m = immutables[i];
    m->Ref();
    list.push_back(m->NewIterator());
    cleanup->mem.push_back(m);
1517
  }
1518 1519

  // Collect iterators for files in L0 - Ln
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  versions_->current()->AddIterators(options, &list);
  Iterator* internal_iter =
      NewMergingIterator(&internal_comparator_, &list[0], list.size());
  versions_->current()->Ref();
1524 1525 1526 1527

  cleanup->mu = &mutex_;
  cleanup->version = versions_->current();
  internal_iter->RegisterCleanup(CleanupIteratorState, cleanup, NULL);
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  mutex_.Unlock();
  return internal_iter;
}

Iterator* DBImpl::TEST_NewInternalIterator() {
  SequenceNumber ignored;
  return NewInternalIterator(ReadOptions(), &ignored);
}

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int64_t DBImpl::TEST_MaxNextLevelOverlappingBytes() {
1539 1540 1541 1542
  MutexLock l(&mutex_);
  return versions_->MaxNextLevelOverlappingBytes();
}

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Status DBImpl::Get(const ReadOptions& options,
                   const Slice& key,
                   std::string* value) {
1546 1547 1548 1549 1550 1551 1552
  Status s;
  MutexLock l(&mutex_);
  SequenceNumber snapshot;
  if (options.snapshot != NULL) {
    snapshot = reinterpret_cast<const SnapshotImpl*>(options.snapshot)->number_;
  } else {
    snapshot = versions_->LastSequence();
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  }
1554

1555
  MemTable* mem = mem_;
1556
  MemTableList imm = imm_;
1557
  Version* current = versions_->current();
1558
  mem->Ref();
1559
  imm.RefAll();
1560
  current->Ref();
1561 1562

  bool have_stat_update = false;
1563
  Version::GetStats stats;
1564 1565 1566

  // Unlock while reading from files and memtables
  {
1567
    mutex_.Unlock();
1568 1569
    // First look in the memtable, then in the immutable memtable (if any).
    LookupKey lkey(key, snapshot);
1570
    if (mem->Get(lkey, value, &s)) {
1571
      // Done
1572
    } else if (imm.Get(lkey, value, &s)) {
1573 1574 1575 1576 1577
      // Done
    } else {
      s = current->Get(options, lkey, value, &stats);
      have_stat_update = true;
    }
1578 1579
    mutex_.Lock();
  }
1580

1581 1582
  if (!options_.disable_seek_compaction &&
      have_stat_update && current->UpdateStats(stats)) {
1583 1584
    MaybeScheduleCompaction();
  }
1585
  mem->Unref();
1586
  imm.UnrefAll();
1587 1588
  current->Unref();
  return s;
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}

Iterator* DBImpl::NewIterator(const ReadOptions& options) {
  SequenceNumber latest_snapshot;
  Iterator* internal_iter = NewInternalIterator(options, &latest_snapshot);
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  return NewDBIterator(
      &dbname_, env_, user_comparator(), internal_iter,
      (options.snapshot != NULL
       ? reinterpret_cast<const SnapshotImpl*>(options.snapshot)->number_
       : latest_snapshot));
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}

const Snapshot* DBImpl::GetSnapshot() {
  MutexLock l(&mutex_);
1603
  return snapshots_.New(versions_->LastSequence());
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}

void DBImpl::ReleaseSnapshot(const Snapshot* s) {
  MutexLock l(&mutex_);
1608
  snapshots_.Delete(reinterpret_cast<const SnapshotImpl*>(s));
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}

// Convenience methods
Status DBImpl::Put(const WriteOptions& o, const Slice& key, const Slice& val) {
  return DB::Put(o, key, val);
}

Status DBImpl::Delete(const WriteOptions& options, const Slice& key) {
  return DB::Delete(options, key);
}

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Status DBImpl::Write(const WriteOptions& options, WriteBatch* my_batch) {
  Writer w(&mutex_);
  w.batch = my_batch;
  w.sync = options.sync;
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  w.disableWAL = options.disableWAL;
1625
  w.done = false;
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  MutexLock l(&mutex_);
1628 1629 1630 1631 1632 1633 1634 1635 1636 1637
  writers_.push_back(&w);
  while (!w.done && &w != writers_.front()) {
    w.cv.Wait();
  }
  if (w.done) {
    return w.status;
  }

  // May temporarily unlock and wait.
  Status status = MakeRoomForWrite(my_batch == NULL);
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  uint64_t last_sequence = versions_->LastSequence();
1639 1640 1641
  Writer* last_writer = &w;
  if (status.ok() && my_batch != NULL) {  // NULL batch is for compactions
    WriteBatch* updates = BuildBatchGroup(&last_writer);
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    WriteBatchInternal::SetSequence(updates, last_sequence + 1);
    last_sequence += WriteBatchInternal::Count(updates);

1645 1646 1647 1648
    // Add to log and apply to memtable.  We can release the lock
    // during this phase since &w is currently responsible for logging
    // and protects against concurrent loggers and concurrent writes
    // into mem_.
1649 1650
    {
      mutex_.Unlock();
1651 1652 1653 1654
      if (options.disableWAL) {
        flush_on_destroy_ = true;
      }

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      if (!options.disableWAL) {
        status = log_->AddRecord(WriteBatchInternal::Contents(updates));
        if (status.ok() && options.sync) {
1658 1659 1660 1661 1662
          if (options_.use_fsync) {
            status = logfile_->Fsync();
          } else {
            status = logfile_->Sync();
          }
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        }
1664 1665 1666 1667 1668
      }
      if (status.ok()) {
        status = WriteBatchInternal::InsertInto(updates, mem_);
      }
      mutex_.Lock();
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    }
1670
    if (updates == tmp_batch_) tmp_batch_->Clear();
1671 1672

    versions_->SetLastSequence(last_sequence);
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  }
1674 1675 1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687 1688 1689 1690

  while (true) {
    Writer* ready = writers_.front();
    writers_.pop_front();
    if (ready != &w) {
      ready->status = status;
      ready->done = true;
      ready->cv.Signal();
    }
    if (ready == last_writer) break;
  }

  // Notify new head of write queue
  if (!writers_.empty()) {
    writers_.front()->cv.Signal();
  }

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  return status;
}

1694 1695 1696 1697 1698 1699 1700 1701 1702 1703 1704 1705 1706 1707 1708 1709 1710 1711 1712 1713 1714 1715 1716 1717 1718 1719 1720 1721
// REQUIRES: Writer list must be non-empty
// REQUIRES: First writer must have a non-NULL batch
WriteBatch* DBImpl::BuildBatchGroup(Writer** last_writer) {
  assert(!writers_.empty());
  Writer* first = writers_.front();
  WriteBatch* result = first->batch;
  assert(result != NULL);

  size_t size = WriteBatchInternal::ByteSize(first->batch);

  // Allow the group to grow up to a maximum size, but if the
  // original write is small, limit the growth so we do not slow
  // down the small write too much.
  size_t max_size = 1 << 20;
  if (size <= (128<<10)) {
    max_size = size + (128<<10);
  }

  *last_writer = first;
  std::deque<Writer*>::iterator iter = writers_.begin();
  ++iter;  // Advance past "first"
  for (; iter != writers_.end(); ++iter) {
    Writer* w = *iter;
    if (w->sync && !first->sync) {
      // Do not include a sync write into a batch handled by a non-sync write.
      break;
    }

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    if (!w->disableWAL && first->disableWAL) {
      // Do not include a write that needs WAL into a batch that has
      // WAL disabled.
      break;
    }

1728 1729 1730 1731 1732 1733 1734 1735 1736 1737 1738 1739 1740 1741 1742 1743 1744 1745 1746 1747 1748
    if (w->batch != NULL) {
      size += WriteBatchInternal::ByteSize(w->batch);
      if (size > max_size) {
        // Do not make batch too big
        break;
      }

      // Append to *reuslt
      if (result == first->batch) {
        // Switch to temporary batch instead of disturbing caller's batch
        result = tmp_batch_;
        assert(WriteBatchInternal::Count(result) == 0);
        WriteBatchInternal::Append(result, first->batch);
      }
      WriteBatchInternal::Append(result, w->batch);
    }
    *last_writer = w;
  }
  return result;
}

1749
// REQUIRES: mutex_ is held
1750
// REQUIRES: this thread is currently at the front of the writer queue
1751 1752
Status DBImpl::MakeRoomForWrite(bool force) {
  mutex_.AssertHeld();
1753
  assert(!writers_.empty());
1754
  bool allow_delay = !force;
1755
  Status s;
1756
  double score;
1757

1758 1759 1760 1761 1762
  while (true) {
    if (!bg_error_.ok()) {
      // Yield previous error
      s = bg_error_;
      break;
1763 1764
    } else if (
        allow_delay &&
1765 1766
        versions_->NumLevelFiles(0) >=
					options_.level0_slowdown_writes_trigger) {
1767 1768 1769 1770 1771 1772 1773
      // We are getting close to hitting a hard limit on the number of
      // L0 files.  Rather than delaying a single write by several
      // seconds when we hit the hard limit, start delaying each
      // individual write by 1ms to reduce latency variance.  Also,
      // this delay hands over some CPU to the compaction thread in
      // case it is sharing the same core as the writer.
      mutex_.Unlock();
1774
      uint64_t t1 = env_->NowMicros();
1775
      env_->SleepForMicroseconds(1000);
1776 1777
      uint64_t delayed = env_->NowMicros() - t1;
      stall_level0_slowdown_ += delayed;
1778
      allow_delay = false;  // Do not delay a single write more than once
1779 1780
      //Log(options_.info_log,
      //    "delaying write %llu usecs for level0_slowdown_writes_trigger\n",
1781
      //     (long long unsigned int)delayed);
1782
      mutex_.Lock();
1783
      delayed_writes_++;
1784 1785 1786
    } else if (!force &&
               (mem_->ApproximateMemoryUsage() <= options_.write_buffer_size)) {
      // There is room in current memtable
1787 1788 1789
      if (allow_delay) {
        DelayLoggingAndReset();
      }
1790
      break;
1791
    } else if (imm_.size() == options_.max_write_buffer_number - 1) {
1792
      // We have filled up the current memtable, but the previous
1793 1794
      // ones are still being compacted, so we wait.
      DelayLoggingAndReset();
1795
      Log(options_.info_log, "wait for memtable compaction...\n");
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      uint64_t t1 = env_->NowMicros();
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      bg_cv_.Wait();
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      stall_memtable_compaction_ += env_->NowMicros() - t1;
1799 1800
    } else if (versions_->NumLevelFiles(0) >=
		options_.level0_stop_writes_trigger) {
1801
      // There are too many level-0 files.
1802
      DelayLoggingAndReset();
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      uint64_t t1 = env_->NowMicros();
1804
      Log(options_.info_log, "wait for fewer level0 files...\n");
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      bg_cv_.Wait();
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      stall_level0_num_files_ += env_->NowMicros() - t1;
1807 1808 1809 1810 1811 1812
    } else if (
        allow_delay &&
        options_.rate_limit > 1.0 &&
        (score = versions_->MaxCompactionScore()) > options_.rate_limit) {
      // Delay a write when the compaction score for any level is too large.
      mutex_.Unlock();
1813
      uint64_t t1 = env_->NowMicros();
1814
      env_->SleepForMicroseconds(1000);
1815 1816
      uint64_t delayed = env_->NowMicros() - t1;
      stall_leveln_slowdown_ += delayed;
1817 1818
      allow_delay = false;  // Do not delay a single write more than once
      Log(options_.info_log,
1819
          "delaying write %llu usecs for rate limits with max score %.2f\n",
1820
          (long long unsigned int)delayed, score);
1821
      mutex_.Lock();
1822 1823
    } else {
      // Attempt to switch to a new memtable and trigger compaction of old
1824
      DelayLoggingAndReset();
1825 1826 1827 1828 1829
      assert(versions_->PrevLogNumber() == 0);
      uint64_t new_log_number = versions_->NewFileNumber();
      WritableFile* lfile = NULL;
      s = env_->NewWritableFile(LogFileName(dbname_, new_log_number), &lfile);
      if (!s.ok()) {
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        // Avoid chewing through file number space in a tight loop.
	versions_->ReuseFileNumber(new_log_number);
1832 1833 1834 1835 1836
        break;
      }
      delete log_;
      delete logfile_;
      logfile_ = lfile;
1837
      logfile_number_ = new_log_number;
1838
      log_ = new log::Writer(lfile);
1839 1840
      imm_.Add(mem_);
      mem_ = new MemTable(internal_comparator_, NumberLevels());
1841
      mem_->Ref();
1842 1843 1844 1845 1846 1847 1848 1849 1850 1851
      force = false;   // Do not force another compaction if have room
      MaybeScheduleCompaction();
    }
  }
  return s;
}

bool DBImpl::GetProperty(const Slice& property, std::string* value) {
  value->clear();

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  MutexLock l(&mutex_);
  Slice in = property;
  Slice prefix("leveldb.");
  if (!in.starts_with(prefix)) return false;
  in.remove_prefix(prefix.size());

  if (in.starts_with("num-files-at-level")) {
    in.remove_prefix(strlen("num-files-at-level"));
    uint64_t level;
    bool ok = ConsumeDecimalNumber(&in, &level) && in.empty();
1862
    if (!ok || (int)level >= NumberLevels()) {
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      return false;
    } else {
1865
      char buf[100];
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      snprintf(buf, sizeof(buf), "%d",
               versions_->NumLevelFiles(static_cast<int>(level)));
1868
      *value = buf;
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      return true;
    }
1871
  } else if (in == "stats") {
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    char buf[1000];
    uint64_t total_bytes = 0;
    uint64_t micros_up = env_->NowMicros() - started_at_;
    double seconds_up = micros_up / 1000000.0;

    // Pardon the long line but I think it is easier to read this way.
1878 1879
    snprintf(buf, sizeof(buf),
             "                               Compactions\n"
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             "Level  Files Size(MB) Time(sec)  Read(MB) Write(MB)    Rn(MB)  Rnp1(MB)  Wnew(MB) Amplify Read(MB/s) Write(MB/s)      Rn     Rnp1     Wnp1     NewW    Count\n"
             "------------------------------------------------------------------------------------------------------------------------------------------------------------\n"
1882 1883
             );
    value->append(buf);
1884
    for (int level = 0; level < NumberLevels(); level++) {
1885 1886
      int files = versions_->NumLevelFiles(level);
      if (stats_[level].micros > 0 || files > 0) {
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        int64_t bytes_read = stats_[level].bytes_readn +
                             stats_[level].bytes_readnp1;
        int64_t bytes_new = stats_[level].bytes_written -
                            stats_[level].bytes_readnp1;
        double amplify = (stats_[level].bytes_readn == 0)
            ? 0.0
            : (stats_[level].bytes_written + stats_[level].bytes_readnp1) /
                (double) stats_[level].bytes_readn;

        total_bytes += bytes_read + stats_[level].bytes_written;
1897 1898
        snprintf(
            buf, sizeof(buf),
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            "%3d %8d %8.0f %9.0f %9.0f %9.0f %9.0f %9.0f %9.0f %7.1f %9.1f %11.1f %8d %8d %8d %8d %8d\n",
1900 1901 1902 1903
            level,
            files,
            versions_->NumLevelBytes(level) / 1048576.0,
            stats_[level].micros / 1e6,
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            bytes_read / 1048576.0,
            stats_[level].bytes_written / 1048576.0,
            stats_[level].bytes_readn / 1048576.0,
            stats_[level].bytes_readnp1 / 1048576.0,
            bytes_new / 1048576.0,
            amplify,
1910 1911 1912
            (bytes_read / 1048576.0) / (stats_[level].micros / 1000000.0),
            (stats_[level].bytes_written / 1048576.0) /
                (stats_[level].micros / 1000000.0),
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            stats_[level].files_in_leveln,
            stats_[level].files_in_levelnp1,
            stats_[level].files_out_levelnp1,
            stats_[level].files_out_levelnp1 - stats_[level].files_in_levelnp1,
            stats_[level].count);
1918 1919 1920
        value->append(buf);
      }
    }
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    snprintf(buf, sizeof(buf),
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             "Amplification: %.1f rate, %.2f GB in, %.2f GB out, %.2f MB/sec in, %.2f MB/sec out\n",
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             (double) total_bytes / stats_[0].bytes_written,
             stats_[0].bytes_written / (1048576.0 * 1024),
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             total_bytes / (1048576.0 * 1024),
             stats_[0].bytes_written / 1048576.0 / seconds_up,
             total_bytes / 1048576.0 / seconds_up);
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1929 1930 1931 1932 1933 1934 1935
    value->append(buf);

    snprintf(buf, sizeof(buf), "Uptime(secs): %.1f\n", seconds_up);
    value->append(buf);

    snprintf(buf, sizeof(buf),
            "Stalls(secs): %.3f level0_slowdown, %.3f level0_numfiles, "
1936
            "%.3f memtable_compaction, %.3f leveln_slowdown\n",
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            stall_level0_slowdown_ / 1000000.0,
            stall_level0_num_files_ / 1000000.0,
1939 1940
            stall_memtable_compaction_ / 1000000.0,
            stall_leveln_slowdown_ / 1000000.0);
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1941 1942
    value->append(buf);

1943
    return true;
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1944 1945 1946
  } else if (in == "sstables") {
    *value = versions_->current()->DebugString();
    return true;
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  }
1948

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1949 1950 1951 1952 1953 1954 1955 1956 1957 1958 1959 1960 1961 1962 1963 1964 1965 1966 1967 1968 1969 1970 1971 1972 1973 1974 1975 1976 1977
  return false;
}

void DBImpl::GetApproximateSizes(
    const Range* range, int n,
    uint64_t* sizes) {
  // TODO(opt): better implementation
  Version* v;
  {
    MutexLock l(&mutex_);
    versions_->current()->Ref();
    v = versions_->current();
  }

  for (int i = 0; i < n; i++) {
    // Convert user_key into a corresponding internal key.
    InternalKey k1(range[i].start, kMaxSequenceNumber, kValueTypeForSeek);
    InternalKey k2(range[i].limit, kMaxSequenceNumber, kValueTypeForSeek);
    uint64_t start = versions_->ApproximateOffsetOf(v, k1);
    uint64_t limit = versions_->ApproximateOffsetOf(v, k2);
    sizes[i] = (limit >= start ? limit - start : 0);
  }

  {
    MutexLock l(&mutex_);
    v->Unref();
  }
}

1978 1979 1980 1981 1982 1983 1984
inline void DBImpl::DelayLoggingAndReset() {
  if (delayed_writes_ > 0) {
    Log(options_.info_log, "delayed %d write...\n", delayed_writes_ );
    delayed_writes_ = 0;
  }
}

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jorlow@chromium.org 已提交
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// Default implementations of convenience methods that subclasses of DB
// can call if they wish
Status DB::Put(const WriteOptions& opt, const Slice& key, const Slice& value) {
  WriteBatch batch;
  batch.Put(key, value);
  return Write(opt, &batch);
}

Status DB::Delete(const WriteOptions& opt, const Slice& key) {
  WriteBatch batch;
  batch.Delete(key);
  return Write(opt, &batch);
}

DB::~DB() { }

Status DB::Open(const Options& options, const std::string& dbname,
                DB** dbptr) {
  *dbptr = NULL;

2005 2006 2007 2008
  if (options.block_cache != NULL && options.no_block_cache) {
    return Status::InvalidArgument(
        "no_block_cache is true while block_cache is not NULL");
  }
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  DBImpl* impl = new DBImpl(options, dbname);
  impl->mutex_.Lock();
2011
  VersionEdit edit(impl->NumberLevels());
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  Status s = impl->Recover(&edit); // Handles create_if_missing, error_if_exists
  if (s.ok()) {
2014
    uint64_t new_log_number = impl->versions_->NewFileNumber();
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    WritableFile* lfile;
2016
    s = options.env->NewWritableFile(LogFileName(dbname, new_log_number),
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2017 2018
                                     &lfile);
    if (s.ok()) {
2019
      edit.SetLogNumber(new_log_number);
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2020
      impl->logfile_ = lfile;
2021
      impl->logfile_number_ = new_log_number;
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2022
      impl->log_ = new log::Writer(lfile);
2023
      s = impl->versions_->LogAndApply(&edit, &impl->mutex_);
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2024 2025 2026
    }
    if (s.ok()) {
      impl->DeleteObsoleteFiles();
2027
      impl->MaybeScheduleCompaction();
2028
      impl->MaybeScheduleLogDBDeployStats();
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2029 2030 2031 2032 2033 2034 2035 2036 2037 2038 2039
    }
  }
  impl->mutex_.Unlock();
  if (s.ok()) {
    *dbptr = impl;
  } else {
    delete impl;
  }
  return s;
}

2040 2041 2042
Snapshot::~Snapshot() {
}

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Status DestroyDB(const std::string& dbname, const Options& options) {
  Env* env = options.env;
  std::vector<std::string> filenames;
  // Ignore error in case directory does not exist
  env->GetChildren(dbname, &filenames);
  if (filenames.empty()) {
    return Status::OK();
  }

  FileLock* lock;
2053 2054
  const std::string lockname = LockFileName(dbname);
  Status result = env->LockFile(lockname, &lock);
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2055 2056 2057
  if (result.ok()) {
    uint64_t number;
    FileType type;
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2058
    for (size_t i = 0; i < filenames.size(); i++) {
2059
      if (ParseFileName(filenames[i], &number, &type) &&
2060
          type != kDBLockFile) {  // Lock file will be deleted at end
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2061 2062 2063 2064 2065 2066 2067
        Status del = env->DeleteFile(dbname + "/" + filenames[i]);
        if (result.ok() && !del.ok()) {
          result = del;
        }
      }
    }
    env->UnlockFile(lock);  // Ignore error since state is already gone
2068
    env->DeleteFile(lockname);
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    env->DeleteDir(dbname);  // Ignore error in case dir contains other files
  }
  return result;
}

2074 2075
//
// A global method that can dump out the build version
2076 2077 2078 2079
void dumpLeveldbBuildVersion(Logger * log) {
  Log(log, "Git sha %s", leveldb_build_git_sha);
  Log(log, "Git datetime %s", leveldb_build_git_datetime);
  Log(log, "Compile time %s %s", leveldb_build_compile_time, leveldb_build_compile_date);
2080 2081
}

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Hans Wennborg 已提交
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}  // namespace leveldb