env_posix.cc 51.0 KB
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//  Copyright (c) 2013, Facebook, Inc.  All rights reserved.
//  This source code is licensed under the BSD-style license found in the
//  LICENSE file in the root directory of this source tree. An additional grant
//  of patent rights can be found in the PATENTS file in the same directory.
//
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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.

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#include <chrono>
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#include <deque>
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#include <set>
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#include <dirent.h>
#include <errno.h>
#include <fcntl.h>
#include <pthread.h>
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
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#include <sys/ioctl.h>
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#include <sys/mman.h>
#include <sys/stat.h>
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#ifdef OS_LINUX
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#include <sys/statfs.h>
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#include <sys/syscall.h>
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#endif
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#include <sys/time.h>
#include <sys/types.h>
#include <time.h>
#include <unistd.h>
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#if defined(OS_LINUX)
#include <linux/fs.h>
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#endif
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#include <signal.h>
#include <algorithm>
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#include "rocksdb/env.h"
#include "rocksdb/slice.h"
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#include "port/port.h"
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#include "util/coding.h"
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#include "util/logging.h"
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#include "util/posix_logger.h"
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#include "util/random.h"
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#include "util/iostats_context_imp.h"
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#include "util/rate_limiter.h"
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// Get nano time for mach systems
#ifdef __MACH__
#include <mach/clock.h>
#include <mach/mach.h>
#endif

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#if !defined(TMPFS_MAGIC)
#define TMPFS_MAGIC 0x01021994
#endif
#if !defined(XFS_SUPER_MAGIC)
#define XFS_SUPER_MAGIC 0x58465342
#endif
#if !defined(EXT4_SUPER_MAGIC)
#define EXT4_SUPER_MAGIC 0xEF53
#endif

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// For non linux platform, the following macros are used only as place
// holder.
#ifndef OS_LINUX
#define POSIX_FADV_NORMAL 0 /* [MC1] no further special treatment */
#define POSIX_FADV_RANDOM 1 /* [MC1] expect random page refs */
#define POSIX_FADV_SEQUENTIAL 2 /* [MC1] expect sequential page refs */
#define POSIX_FADV_WILLNEED 3 /* [MC1] will need these pages */
#define POSIX_FADV_DONTNEED 4 /* [MC1] dont need these pages */
#endif

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// This is only set from db_stress.cc and for testing only.
// If non-zero, kill at various points in source code with probability 1/this
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int rocksdb_kill_odds = 0;
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namespace rocksdb {
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namespace {

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// A wrapper for fadvise, if the platform doesn't support fadvise,
// it will simply return Status::NotSupport.
int Fadvise(int fd, off_t offset, size_t len, int advice) {
#ifdef OS_LINUX
  return posix_fadvise(fd, offset, len, advice);
#else
  return 0;  // simply do nothing.
#endif
}

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// list of pathnames that are locked
static std::set<std::string> lockedFiles;
static port::Mutex mutex_lockedFiles;

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static Status IOError(const std::string& context, int err_number) {
  return Status::IOError(context, strerror(err_number));
}

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#ifdef NDEBUG
// empty in release build
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#define TEST_KILL_RANDOM(rocksdb_kill_odds)
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#else

// Kill the process with probablity 1/odds for testing.
static void TestKillRandom(int odds, const std::string& srcfile,
                           int srcline) {
  time_t curtime = time(nullptr);
  Random r((uint32_t)curtime);

  assert(odds > 0);
  bool crash = r.OneIn(odds);
  if (crash) {
    fprintf(stdout, "Crashing at %s:%d\n", srcfile.c_str(), srcline);
    fflush(stdout);
    kill(getpid(), SIGTERM);
  }
}

// To avoid crashing always at some frequently executed codepaths (during
// kill random test), use this factor to reduce odds
#define REDUCE_ODDS 2
#define REDUCE_ODDS2 4

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#define TEST_KILL_RANDOM(rocksdb_kill_odds) {   \
  if (rocksdb_kill_odds > 0) { \
    TestKillRandom(rocksdb_kill_odds, __FILE__, __LINE__);     \
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  } \
}

#endif

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#if defined(OS_LINUX)
namespace {
  static size_t GetUniqueIdFromFile(int fd, char* id, size_t max_size) {
    if (max_size < kMaxVarint64Length*3) {
      return 0;
    }

    struct stat buf;
    int result = fstat(fd, &buf);
    if (result == -1) {
      return 0;
    }

    long version = 0;
    result = ioctl(fd, FS_IOC_GETVERSION, &version);
    if (result == -1) {
      return 0;
    }
    uint64_t uversion = (uint64_t)version;

    char* rid = id;
    rid = EncodeVarint64(rid, buf.st_dev);
    rid = EncodeVarint64(rid, buf.st_ino);
    rid = EncodeVarint64(rid, uversion);
    assert(rid >= id);
    return static_cast<size_t>(rid-id);
  }
}
#endif

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class PosixSequentialFile: public SequentialFile {
 private:
  std::string filename_;
  FILE* file_;
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  int fd_;
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  bool use_os_buffer_;
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 public:
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  PosixSequentialFile(const std::string& fname, FILE* f,
      const EnvOptions& options)
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      : filename_(fname), file_(f), fd_(fileno(f)),
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        use_os_buffer_(options.use_os_buffer) {
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  }
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  virtual ~PosixSequentialFile() { fclose(file_); }

  virtual Status Read(size_t n, Slice* result, char* scratch) {
    Status s;
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    size_t r = 0;
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    do {
      r = fread_unlocked(scratch, 1, n, file_);
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    } while (r == 0 && ferror(file_) && errno == EINTR);
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    IOSTATS_ADD(bytes_read, r);
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    *result = Slice(scratch, r);
    if (r < n) {
      if (feof(file_)) {
        // We leave status as ok if we hit the end of the file
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        // We also clear the error so that the reads can continue
        // if a new data is written to the file
        clearerr(file_);
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      } else {
        // A partial read with an error: return a non-ok status
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        s = IOError(filename_, errno);
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      }
    }
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    if (!use_os_buffer_) {
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      // we need to fadvise away the entire range of pages because
      // we do not want readahead pages to be cached.
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      Fadvise(fd_, 0, 0, POSIX_FADV_DONTNEED); // free OS pages
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    }
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    return s;
  }
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  virtual Status Skip(uint64_t n) {
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    if (fseek(file_, static_cast<long int>(n), SEEK_CUR)) {
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      return IOError(filename_, errno);
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    }
    return Status::OK();
  }
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  virtual Status InvalidateCache(size_t offset, size_t length) {
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#ifndef OS_LINUX
    return Status::OK();
#else
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    // free OS pages
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    int ret = Fadvise(fd_, offset, length, POSIX_FADV_DONTNEED);
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    if (ret == 0) {
      return Status::OK();
    }
    return IOError(filename_, errno);
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#endif
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  }
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};

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// pread() based random-access
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class PosixRandomAccessFile: public RandomAccessFile {
 private:
  std::string filename_;
  int fd_;
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  bool use_os_buffer_;
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 public:
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  PosixRandomAccessFile(const std::string& fname, int fd,
                        const EnvOptions& options)
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      : filename_(fname), fd_(fd), use_os_buffer_(options.use_os_buffer) {
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    assert(!options.use_mmap_reads || sizeof(void*) < 8);
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  }
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  virtual ~PosixRandomAccessFile() { close(fd_); }

  virtual Status Read(uint64_t offset, size_t n, Slice* result,
                      char* scratch) const {
    Status s;
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    ssize_t r = -1;
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    size_t left = n;
    char* ptr = scratch;
    while (left > 0) {
      r = pread(fd_, ptr, left, static_cast<off_t>(offset));
      if (r <= 0) {
        if (errno == EINTR) {
          continue;
        }
        break;
      }
      ptr += r;
      offset += r;
      left -= r;
    }

    IOSTATS_ADD_IF_POSITIVE(bytes_read, n - left);
    *result = Slice(scratch, (r < 0) ? 0 : n - left);
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    if (r < 0) {
      // An error: return a non-ok status
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      s = IOError(filename_, errno);
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    }
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    if (!use_os_buffer_) {
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      // we need to fadvise away the entire range of pages because
      // we do not want readahead pages to be cached.
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      Fadvise(fd_, 0, 0, POSIX_FADV_DONTNEED); // free OS pages
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    }
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    return s;
  }
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#ifdef OS_LINUX
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  virtual size_t GetUniqueId(char* id, size_t max_size) const {
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    return GetUniqueIdFromFile(fd_, id, max_size);
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  }
#endif
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  virtual void Hint(AccessPattern pattern) {
    switch(pattern) {
      case NORMAL:
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        Fadvise(fd_, 0, 0, POSIX_FADV_NORMAL);
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        break;
      case RANDOM:
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        Fadvise(fd_, 0, 0, POSIX_FADV_RANDOM);
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        break;
      case SEQUENTIAL:
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        Fadvise(fd_, 0, 0, POSIX_FADV_SEQUENTIAL);
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        break;
      case WILLNEED:
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        Fadvise(fd_, 0, 0, POSIX_FADV_WILLNEED);
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        break;
      case DONTNEED:
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        Fadvise(fd_, 0, 0, POSIX_FADV_DONTNEED);
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        break;
      default:
        assert(false);
        break;
    }
  }

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  virtual Status InvalidateCache(size_t offset, size_t length) {
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#ifndef OS_LINUX
    return Status::OK();
#else
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    // free OS pages
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    int ret = Fadvise(fd_, offset, length, POSIX_FADV_DONTNEED);
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    if (ret == 0) {
      return Status::OK();
    }
    return IOError(filename_, errno);
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#endif
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  }
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};

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// mmap() based random-access
class PosixMmapReadableFile: public RandomAccessFile {
 private:
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  int fd_;
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  std::string filename_;
  void* mmapped_region_;
  size_t length_;

 public:
  // base[0,length-1] contains the mmapped contents of the file.
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  PosixMmapReadableFile(const int fd, const std::string& fname,
                        void* base, size_t length,
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                        const EnvOptions& options)
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      : fd_(fd), filename_(fname), mmapped_region_(base), length_(length) {
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    fd_ = fd_ + 0;  // suppress the warning for used variables
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    assert(options.use_mmap_reads);
    assert(options.use_os_buffer);
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  }
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  virtual ~PosixMmapReadableFile() {
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    int ret = munmap(mmapped_region_, length_);
    if (ret != 0) {
      fprintf(stdout, "failed to munmap %p length %zu \n",
              mmapped_region_, length_);
    }
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  }
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  virtual Status Read(uint64_t offset, size_t n, Slice* result,
                      char* scratch) const {
    Status s;
    if (offset + n > length_) {
      *result = Slice();
      s = IOError(filename_, EINVAL);
    } else {
      *result = Slice(reinterpret_cast<char*>(mmapped_region_) + offset, n);
    }
    return s;
  }
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  virtual Status InvalidateCache(size_t offset, size_t length) {
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#ifndef OS_LINUX
    return Status::OK();
#else
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    // free OS pages
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    int ret = Fadvise(fd_, offset, length, POSIX_FADV_DONTNEED);
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    if (ret == 0) {
      return Status::OK();
    }
    return IOError(filename_, errno);
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#endif
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  }
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};

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// We preallocate up to an extra megabyte and use memcpy to append new
// data to the file.  This is safe since we either properly close the
// file before reading from it, or for log files, the reading code
// knows enough to skip zero suffixes.
class PosixMmapFile : public WritableFile {
 private:
  std::string filename_;
  int fd_;
  size_t page_size_;
  size_t map_size_;       // How much extra memory to map at a time
  char* base_;            // The mapped region
  char* limit_;           // Limit of the mapped region
  char* dst_;             // Where to write next  (in range [base_,limit_])
  char* last_sync_;       // Where have we synced up to
  uint64_t file_offset_;  // Offset of base_ in file
  // Have we done an munmap of unsynced data?
  bool pending_sync_;
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#ifdef ROCKSDB_FALLOCATE_PRESENT
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  bool fallocate_with_keep_size_;
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#endif
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  // Roundup x to a multiple of y
  static size_t Roundup(size_t x, size_t y) {
    return ((x + y - 1) / y) * y;
  }

  size_t TruncateToPageBoundary(size_t s) {
    s -= (s & (page_size_ - 1));
    assert((s % page_size_) == 0);
    return s;
  }

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  bool UnmapCurrentRegion() {
    bool result = true;
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    if (base_ != nullptr) {
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      if (last_sync_ < limit_) {
        // Defer syncing this data until next Sync() call, if any
        pending_sync_ = true;
      }
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      if (munmap(base_, limit_ - base_) != 0) {
        result = false;
      }
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      file_offset_ += limit_ - base_;
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      base_ = nullptr;
      limit_ = nullptr;
      last_sync_ = nullptr;
      dst_ = nullptr;
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      // Increase the amount we map the next time, but capped at 1MB
      if (map_size_ < (1<<20)) {
        map_size_ *= 2;
      }
    }
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    return result;
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  }

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  Status MapNewRegion() {
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#ifdef ROCKSDB_FALLOCATE_PRESENT
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    assert(base_ == nullptr);
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    TEST_KILL_RANDOM(rocksdb_kill_odds);
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    // we can't fallocate with FALLOC_FL_KEEP_SIZE here
    int alloc_status = fallocate(fd_, 0, file_offset_, map_size_);
    if (alloc_status != 0) {
      // fallback to posix_fallocate
      alloc_status = posix_fallocate(fd_, file_offset_, map_size_);
    }
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    if (alloc_status != 0) {
      return Status::IOError("Error allocating space to file : " + filename_ +
        "Error : " + strerror(alloc_status));
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    }
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    TEST_KILL_RANDOM(rocksdb_kill_odds);
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    void* ptr = mmap(nullptr, map_size_, PROT_READ | PROT_WRITE, MAP_SHARED,
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                     fd_, file_offset_);
    if (ptr == MAP_FAILED) {
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      return Status::IOError("MMap failed on " + filename_);
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    }
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    TEST_KILL_RANDOM(rocksdb_kill_odds);
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    base_ = reinterpret_cast<char*>(ptr);
    limit_ = base_ + map_size_;
    dst_ = base_;
    last_sync_ = base_;
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    return Status::OK();
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#else
    return Status::NotSupported("This platform doesn't support fallocate()");
#endif
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  }

 public:
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  PosixMmapFile(const std::string& fname, int fd, size_t page_size,
                const EnvOptions& options)
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      : filename_(fname),
        fd_(fd),
        page_size_(page_size),
        map_size_(Roundup(65536, page_size)),
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        base_(nullptr),
        limit_(nullptr),
        dst_(nullptr),
        last_sync_(nullptr),
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        file_offset_(0),
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        pending_sync_(false) {
#ifdef ROCKSDB_FALLOCATE_PRESENT
    fallocate_with_keep_size_ = options.fallocate_with_keep_size;
#endif
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    assert((page_size & (page_size - 1)) == 0);
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    assert(options.use_mmap_writes);
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  }


  ~PosixMmapFile() {
    if (fd_ >= 0) {
      PosixMmapFile::Close();
    }
  }

  virtual Status Append(const Slice& data) {
    const char* src = data.data();
    size_t left = data.size();
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    TEST_KILL_RANDOM(rocksdb_kill_odds * REDUCE_ODDS);
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    PrepareWrite(static_cast<size_t>(GetFileSize()), left);
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    while (left > 0) {
      assert(base_ <= dst_);
      assert(dst_ <= limit_);
      size_t avail = limit_ - dst_;
      if (avail == 0) {
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        if (UnmapCurrentRegion()) {
          Status s = MapNewRegion();
          if (!s.ok()) {
            return s;
          }
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          TEST_KILL_RANDOM(rocksdb_kill_odds);
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        }
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      }

      size_t n = (left <= avail) ? left : avail;
      memcpy(dst_, src, n);
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      IOSTATS_ADD(bytes_written, n);
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      dst_ += n;
      src += n;
      left -= n;
    }
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    TEST_KILL_RANDOM(rocksdb_kill_odds);
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    return Status::OK();
  }

  virtual Status Close() {
    Status s;
    size_t unused = limit_ - dst_;
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    TEST_KILL_RANDOM(rocksdb_kill_odds);
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    if (!UnmapCurrentRegion()) {
      s = IOError(filename_, errno);
    } else if (unused > 0) {
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      // Trim the extra space at the end of the file
      if (ftruncate(fd_, file_offset_ - unused) < 0) {
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        s = IOError(filename_, errno);
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      }
    }

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    TEST_KILL_RANDOM(rocksdb_kill_odds);
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    if (close(fd_) < 0) {
      if (s.ok()) {
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        s = IOError(filename_, errno);
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      }
    }

    fd_ = -1;
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    base_ = nullptr;
    limit_ = nullptr;
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    return s;
  }

  virtual Status Flush() {
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    TEST_KILL_RANDOM(rocksdb_kill_odds);
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    return Status::OK();
  }

  virtual Status Sync() {
    Status s;

    if (pending_sync_) {
      // Some unmapped data was not synced
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      TEST_KILL_RANDOM(rocksdb_kill_odds);
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      pending_sync_ = false;
      if (fdatasync(fd_) < 0) {
557
        s = IOError(filename_, errno);
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      }
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      TEST_KILL_RANDOM(rocksdb_kill_odds * REDUCE_ODDS);
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    }

    if (dst_ > last_sync_) {
      // Find the beginnings of the pages that contain the first and last
      // bytes to be synced.
      size_t p1 = TruncateToPageBoundary(last_sync_ - base_);
      size_t p2 = TruncateToPageBoundary(dst_ - base_ - 1);
      last_sync_ = dst_;
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      TEST_KILL_RANDOM(rocksdb_kill_odds);
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      if (msync(base_ + p1, p2 - p1 + page_size_, MS_SYNC) < 0) {
570
        s = IOError(filename_, errno);
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      }
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      TEST_KILL_RANDOM(rocksdb_kill_odds);
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    }

    return s;
  }
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  /**
   * Flush data as well as metadata to stable storage.
   */
  virtual Status Fsync() {
    if (pending_sync_) {
      // Some unmapped data was not synced
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      TEST_KILL_RANDOM(rocksdb_kill_odds);
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      pending_sync_ = false;
      if (fsync(fd_) < 0) {
        return IOError(filename_, errno);
      }
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      TEST_KILL_RANDOM(rocksdb_kill_odds);
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    }
    // This invocation to Sync will not issue the call to
    // fdatasync because pending_sync_ has already been cleared.
    return Sync();
  }
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  /**
   * Get the size of valid data in the file. This will not match the
   * size that is returned from the filesystem because we use mmap
   * to extend file by map_size every time.
   */
  virtual uint64_t GetFileSize() {
    size_t used = dst_ - base_;
    return file_offset_ + used;
  }
605

606
  virtual Status InvalidateCache(size_t offset, size_t length) {
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#ifndef OS_LINUX
    return Status::OK();
#else
610
    // free OS pages
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    int ret = Fadvise(fd_, offset, length, POSIX_FADV_DONTNEED);
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    if (ret == 0) {
      return Status::OK();
    }
    return IOError(filename_, errno);
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#endif
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  }

619
#ifdef ROCKSDB_FALLOCATE_PRESENT
620
  virtual Status Allocate(off_t offset, off_t len) {
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    TEST_KILL_RANDOM(rocksdb_kill_odds);
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    int alloc_status = fallocate(
        fd_, fallocate_with_keep_size_ ? FALLOC_FL_KEEP_SIZE : 0, offset, len);
    if (alloc_status == 0) {
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      return Status::OK();
    } else {
      return IOError(filename_, errno);
    }
  }
630
#endif
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};

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// Use posix write to write data to a file.
class PosixWritableFile : public WritableFile {
 private:
  const std::string filename_;
  int fd_;
  size_t cursize_;      // current size of cached data in buf_
  size_t capacity_;     // max size of buf_
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  unique_ptr<char[]> buf_;           // a buffer to cache writes
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  uint64_t filesize_;
  bool pending_sync_;
  bool pending_fsync_;
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  uint64_t last_sync_size_;
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  uint64_t bytes_per_sync_;
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#ifdef ROCKSDB_FALLOCATE_PRESENT
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  bool fallocate_with_keep_size_;
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#endif
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  RateLimiter* rate_limiter_;
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 public:
652
  PosixWritableFile(const std::string& fname, int fd, size_t capacity,
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                    const EnvOptions& options)
      : filename_(fname),
        fd_(fd),
        cursize_(0),
        capacity_(capacity),
        buf_(new char[capacity]),
        filesize_(0),
        pending_sync_(false),
        pending_fsync_(false),
        last_sync_size_(0),
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        bytes_per_sync_(options.bytes_per_sync),
        rate_limiter_(options.rate_limiter) {
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#ifdef ROCKSDB_FALLOCATE_PRESENT
    fallocate_with_keep_size_ = options.fallocate_with_keep_size;
#endif
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    assert(!options.use_mmap_writes);
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  }

  ~PosixWritableFile() {
    if (fd_ >= 0) {
      PosixWritableFile::Close();
    }
  }

  virtual Status Append(const Slice& data) {
678
    const char* src = data.data();
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    size_t left = data.size();
    Status s;
    pending_sync_ = true;
    pending_fsync_ = true;

684
    TEST_KILL_RANDOM(rocksdb_kill_odds * REDUCE_ODDS2);
685

686
    PrepareWrite(static_cast<size_t>(GetFileSize()), left);
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    // if there is no space in the cache, then flush
    if (cursize_ + left > capacity_) {
      s = Flush();
      if (!s.ok()) {
        return s;
      }
      // Increase the buffer size, but capped at 1MB
      if (capacity_ < (1<<20)) {
        capacity_ *= 2;
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        buf_.reset(new char[capacity_]);
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      }
      assert(cursize_ == 0);
    }

    // if the write fits into the cache, then write to cache
    // otherwise do a write() syscall to write to OS buffers.
    if (cursize_ + left <= capacity_) {
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      memcpy(buf_.get()+cursize_, src, left);
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      cursize_ += left;
    } else {
      while (left != 0) {
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        ssize_t done = write(fd_, src, RequestToken(left));
709
        if (done < 0) {
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          if (errno == EINTR) {
            continue;
          }
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          return IOError(filename_, errno);
        }
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        IOSTATS_ADD(bytes_written, done);
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        TEST_KILL_RANDOM(rocksdb_kill_odds);
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        left -= done;
        src += done;
      }
    }
    filesize_ += data.size();
    return Status::OK();
  }

  virtual Status Close() {
    Status s;
    s = Flush(); // flush cache to OS
    if (!s.ok()) {
730
      return s;
731
    }
732

733
    TEST_KILL_RANDOM(rocksdb_kill_odds);
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735 736 737 738 739
    size_t block_size;
    size_t last_allocated_block;
    GetPreallocationStatus(&block_size, &last_allocated_block);
    if (last_allocated_block > 0) {
      // trim the extra space preallocated at the end of the file
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      // NOTE(ljin): we probably don't want to surface failure as an IOError,
      // but it will be nice to log these errors.
742 743
      int dummy __attribute__((unused));
      dummy = ftruncate(fd_, filesize_);
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#ifdef ROCKSDB_FALLOCATE_PRESENT
      // in some file systems, ftruncate only trims trailing space if the
      // new file size is smaller than the current size. Calling fallocate
      // with FALLOC_FL_PUNCH_HOLE flag to explicitly release these unused
      // blocks. FALLOC_FL_PUNCH_HOLE is supported on at least the following
      // filesystems:
      //   XFS (since Linux 2.6.38)
      //   ext4 (since Linux 3.0)
      //   Btrfs (since Linux 3.7)
      //   tmpfs (since Linux 3.5)
      // We ignore error since failure of this operation does not affect
      // correctness.
      fallocate(fd_, FALLOC_FL_KEEP_SIZE | FALLOC_FL_PUNCH_HOLE,
                filesize_, block_size * last_allocated_block - filesize_);
#endif
759 760
    }

761
    if (close(fd_) < 0) {
762
      s = IOError(filename_, errno);
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    }
    fd_ = -1;
    return s;
  }

  // write out the cached data to the OS cache
  virtual Status Flush() {
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    TEST_KILL_RANDOM(rocksdb_kill_odds * REDUCE_ODDS2);
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    size_t left = cursize_;
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    char* src = buf_.get();
773
    while (left != 0) {
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      ssize_t done = write(fd_, src, RequestToken(left));
775
      if (done < 0) {
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        if (errno == EINTR) {
          continue;
        }
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        return IOError(filename_, errno);
      }
781
      IOSTATS_ADD(bytes_written, done);
782
      TEST_KILL_RANDOM(rocksdb_kill_odds * REDUCE_ODDS2);
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      left -= done;
      src += done;
    }
    cursize_ = 0;
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    // sync OS cache to disk for every bytes_per_sync_
    // TODO: give log file and sst file different options (log
    // files could be potentially cached in OS for their whole
    // life time, thus we might not want to flush at all).
    if (bytes_per_sync_ &&
        filesize_ - last_sync_size_ >= bytes_per_sync_) {
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      RangeSync(last_sync_size_, filesize_ - last_sync_size_);
      last_sync_size_ = filesize_;
    }

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    return Status::OK();
  }

  virtual Status Sync() {
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    Status s = Flush();
    if (!s.ok()) {
      return s;
    }
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    TEST_KILL_RANDOM(rocksdb_kill_odds);
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    if (pending_sync_ && fdatasync(fd_) < 0) {
      return IOError(filename_, errno);
    }
810
    TEST_KILL_RANDOM(rocksdb_kill_odds);
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    pending_sync_ = false;
    return Status::OK();
  }

  virtual Status Fsync() {
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    Status s = Flush();
    if (!s.ok()) {
      return s;
    }
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    TEST_KILL_RANDOM(rocksdb_kill_odds);
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    if (pending_fsync_ && fsync(fd_) < 0) {
      return IOError(filename_, errno);
    }
824
    TEST_KILL_RANDOM(rocksdb_kill_odds);
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    pending_fsync_ = false;
    pending_sync_ = false;
    return Status::OK();
  }

  virtual uint64_t GetFileSize() {
    return filesize_;
  }
833

834
  virtual Status InvalidateCache(size_t offset, size_t length) {
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#ifndef OS_LINUX
    return Status::OK();
#else
838
    // free OS pages
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    int ret = Fadvise(fd_, offset, length, POSIX_FADV_DONTNEED);
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    if (ret == 0) {
      return Status::OK();
    }
    return IOError(filename_, errno);
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#endif
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  }

847
#ifdef ROCKSDB_FALLOCATE_PRESENT
848
  virtual Status Allocate(off_t offset, off_t len) {
849
    TEST_KILL_RANDOM(rocksdb_kill_odds);
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    int alloc_status = fallocate(
        fd_, fallocate_with_keep_size_ ? FALLOC_FL_KEEP_SIZE : 0, offset, len);
    if (alloc_status == 0) {
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      return Status::OK();
    } else {
      return IOError(filename_, errno);
    }
  }
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  virtual Status RangeSync(off_t offset, off_t nbytes) {
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    if (sync_file_range(fd_, offset, nbytes, SYNC_FILE_RANGE_WRITE) == 0) {
      return Status::OK();
    } else {
      return IOError(filename_, errno);
    }
  }
866 867 868
  virtual size_t GetUniqueId(char* id, size_t max_size) const {
    return GetUniqueIdFromFile(fd_, id, max_size);
  }
869
#endif
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 private:
  inline size_t RequestToken(size_t bytes) {
    if (rate_limiter_ && io_priority_ < Env::IO_TOTAL) {
      bytes = std::min(bytes,
          static_cast<size_t>(rate_limiter_->GetSingleBurstBytes()));
      rate_limiter_->Request(bytes, io_priority_);
    }
    return bytes;
  }
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};

882 883 884 885 886 887
class PosixRandomRWFile : public RandomRWFile {
 private:
  const std::string filename_;
  int fd_;
  bool pending_sync_;
  bool pending_fsync_;
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#ifdef ROCKSDB_FALLOCATE_PRESENT
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  bool fallocate_with_keep_size_;
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#endif
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 public:
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  PosixRandomRWFile(const std::string& fname, int fd, const EnvOptions& options)
      : filename_(fname),
        fd_(fd),
        pending_sync_(false),
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        pending_fsync_(false) {
#ifdef ROCKSDB_FALLOCATE_PRESENT
    fallocate_with_keep_size_ = options.fallocate_with_keep_size;
#endif
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    assert(!options.use_mmap_writes && !options.use_mmap_reads);
  }

  ~PosixRandomRWFile() {
    if (fd_ >= 0) {
      Close();
    }
  }

  virtual Status Write(uint64_t offset, const Slice& data) {
    const char* src = data.data();
    size_t left = data.size();
    Status s;
    pending_sync_ = true;
    pending_fsync_ = true;

    while (left != 0) {
      ssize_t done = pwrite(fd_, src, left, offset);
      if (done < 0) {
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        if (errno == EINTR) {
          continue;
        }
923 924
        return IOError(filename_, errno);
      }
925
      IOSTATS_ADD(bytes_written, done);
926 927 928 929 930 931 932 933 934 935 936 937

      left -= done;
      src += done;
      offset += done;
    }

    return Status::OK();
  }

  virtual Status Read(uint64_t offset, size_t n, Slice* result,
                      char* scratch) const {
    Status s;
938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954
    ssize_t r = -1;
    size_t left = n;
    char* ptr = scratch;
    while (left > 0) {
      r = pread(fd_, ptr, left, static_cast<off_t>(offset));
      if (r <= 0) {
        if (errno == EINTR) {
          continue;
        }
        break;
      }
      ptr += r;
      offset += r;
      left -= r;
    }
    IOSTATS_ADD_IF_POSITIVE(bytes_read, n - left);
    *result = Slice(scratch, (r < 0) ? 0 : n - left);
955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986
    if (r < 0) {
      s = IOError(filename_, errno);
    }
    return s;
  }

  virtual Status Close() {
    Status s = Status::OK();
    if (fd_ >= 0 && close(fd_) < 0) {
      s = IOError(filename_, errno);
    }
    fd_ = -1;
    return s;
  }

  virtual Status Sync() {
    if (pending_sync_ && fdatasync(fd_) < 0) {
      return IOError(filename_, errno);
    }
    pending_sync_ = false;
    return Status::OK();
  }

  virtual Status Fsync() {
    if (pending_fsync_ && fsync(fd_) < 0) {
      return IOError(filename_, errno);
    }
    pending_fsync_ = false;
    pending_sync_ = false;
    return Status::OK();
  }

987
#ifdef ROCKSDB_FALLOCATE_PRESENT
988
  virtual Status Allocate(off_t offset, off_t len) {
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    TEST_KILL_RANDOM(rocksdb_kill_odds);
    int alloc_status = fallocate(
        fd_, fallocate_with_keep_size_ ? FALLOC_FL_KEEP_SIZE : 0, offset, len);
    if (alloc_status == 0) {
993 994 995 996 997 998 999 1000
      return Status::OK();
    } else {
      return IOError(filename_, errno);
    }
  }
#endif
};

1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018
class PosixDirectory : public Directory {
 public:
  explicit PosixDirectory(int fd) : fd_(fd) {}
  ~PosixDirectory() {
    close(fd_);
  }

  virtual Status Fsync() {
    if (fsync(fd_) == -1) {
      return IOError("directory", errno);
    }
    return Status::OK();
  }

 private:
  int fd_;
};

1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040
static int LockOrUnlock(const std::string& fname, int fd, bool lock) {
  mutex_lockedFiles.Lock();
  if (lock) {
    // If it already exists in the lockedFiles set, then it is already locked,
    // and fail this lock attempt. Otherwise, insert it into lockedFiles.
    // This check is needed because fcntl() does not detect lock conflict
    // if the fcntl is issued by the same thread that earlier acquired
    // this lock.
    if (lockedFiles.insert(fname).second == false) {
      mutex_lockedFiles.Unlock();
      errno = ENOLCK;
      return -1;
    }
  } else {
    // If we are unlocking, then verify that we had locked it earlier,
    // it should already exist in lockedFiles. Remove it from lockedFiles.
    if (lockedFiles.erase(fname) != 1) {
      mutex_lockedFiles.Unlock();
      errno = ENOLCK;
      return -1;
    }
  }
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  errno = 0;
  struct flock f;
  memset(&f, 0, sizeof(f));
  f.l_type = (lock ? F_WRLCK : F_UNLCK);
  f.l_whence = SEEK_SET;
  f.l_start = 0;
  f.l_len = 0;        // Lock/unlock entire file
1048 1049 1050 1051 1052 1053 1054
  int value = fcntl(fd, F_SETLK, &f);
  if (value == -1 && lock) {
    // if there is an error in locking, then remove the pathname from lockedfiles
    lockedFiles.erase(fname);
  }
  mutex_lockedFiles.Unlock();
  return value;
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}

class PosixFileLock : public FileLock {
 public:
  int fd_;
1060
  std::string filename;
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};

1063 1064 1065 1066 1067 1068 1069
void PthreadCall(const char* label, int result) {
  if (result != 0) {
    fprintf(stderr, "pthread %s: %s\n", label, strerror(result));
    exit(1);
  }
}

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class PosixEnv : public Env {
 public:
  PosixEnv();
1073 1074

  virtual ~PosixEnv(){
1075 1076 1077
    for (const auto tid : threads_to_join_) {
      pthread_join(tid, nullptr);
    }
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  }

1080
  void SetFD_CLOEXEC(int fd, const EnvOptions* options) {
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    if ((options == nullptr || options->set_fd_cloexec) && fd > 0) {
1082 1083 1084 1085
      fcntl(fd, F_SETFD, fcntl(fd, F_GETFD) | FD_CLOEXEC);
    }
  }

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  virtual Status NewSequentialFile(const std::string& fname,
1087 1088
                                   unique_ptr<SequentialFile>* result,
                                   const EnvOptions& options) {
1089
    result->reset();
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    FILE* f = nullptr;
    do {
      f = fopen(fname.c_str(), "r");
    } while (f == nullptr && errno == EINTR);
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    if (f == nullptr) {
      *result = nullptr;
1096
      return IOError(fname, errno);
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    } else {
1098 1099
      int fd = fileno(f);
      SetFD_CLOEXEC(fd, &options);
1100
      result->reset(new PosixSequentialFile(fname, f, options));
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      return Status::OK();
    }
  }

  virtual Status NewRandomAccessFile(const std::string& fname,
1106 1107
                                     unique_ptr<RandomAccessFile>* result,
                                     const EnvOptions& options) {
1108
    result->reset();
1109
    Status s;
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    int fd = open(fname.c_str(), O_RDONLY);
1111
    SetFD_CLOEXEC(fd, &options);
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    if (fd < 0) {
1113
      s = IOError(fname, errno);
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    } else if (options.use_mmap_reads && sizeof(void*) >= 8) {
1115 1116 1117 1118 1119 1120
      // Use of mmap for random reads has been removed because it
      // kills performance when storage is fast.
      // Use mmap when virtual address-space is plentiful.
      uint64_t size;
      s = GetFileSize(fname, &size);
      if (s.ok()) {
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        void* base = mmap(nullptr, size, PROT_READ, MAP_SHARED, fd, 0);
1122
        if (base != MAP_FAILED) {
1123 1124
          result->reset(new PosixMmapReadableFile(fd, fname, base,
                                                  size, options));
1125 1126 1127 1128 1129
        } else {
          s = IOError(fname, errno);
        }
      }
      close(fd);
1130
    } else {
1131
      result->reset(new PosixRandomAccessFile(fname, fd, options));
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    }
1133
    return s;
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  }

  virtual Status NewWritableFile(const std::string& fname,
1137 1138
                                 unique_ptr<WritableFile>* result,
                                 const EnvOptions& options) {
1139
    result->reset();
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    Status s;
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    int fd = -1;
    do {
      fd = open(fname.c_str(), O_CREAT | O_RDWR | O_TRUNC, 0644);
    } while (fd < 0 && errno == EINTR);
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    if (fd < 0) {
1146
      s = IOError(fname, errno);
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    } else {
1148
      SetFD_CLOEXEC(fd, &options);
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      if (options.use_mmap_writes) {
1150 1151
        if (!checkedDiskForMmap_) {
          // this will be executed once in the program's lifetime.
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          // do not use mmapWrite on non ext-3/xfs/tmpfs systems.
1153 1154 1155 1156
          if (!SupportsFastAllocate(fname)) {
            forceMmapOff = true;
          }
          checkedDiskForMmap_ = true;
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        }
      }
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      if (options.use_mmap_writes && !forceMmapOff) {
1160
        result->reset(new PosixMmapFile(fname, fd, page_size_, options));
1161
      } else {
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        // disable mmap writes
        EnvOptions no_mmap_writes_options = options;
        no_mmap_writes_options.use_mmap_writes = false;

        result->reset(
            new PosixWritableFile(fname, fd, 65536, no_mmap_writes_options)
        );
1169
      }
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    }
    return s;
  }

1174 1175 1176 1177
  virtual Status NewRandomRWFile(const std::string& fname,
                                 unique_ptr<RandomRWFile>* result,
                                 const EnvOptions& options) {
    result->reset();
1178 1179 1180 1181
    // no support for mmap yet
    if (options.use_mmap_writes || options.use_mmap_reads) {
      return Status::NotSupported("No support for mmap read/write yet");
    }
1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192
    Status s;
    const int fd = open(fname.c_str(), O_CREAT | O_RDWR, 0644);
    if (fd < 0) {
      s = IOError(fname, errno);
    } else {
      SetFD_CLOEXEC(fd, &options);
      result->reset(new PosixRandomRWFile(fname, fd, options));
    }
    return s;
  }

1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204
  virtual Status NewDirectory(const std::string& name,
                              unique_ptr<Directory>* result) {
    result->reset();
    const int fd = open(name.c_str(), 0);
    if (fd < 0) {
      return IOError(name, errno);
    } else {
      result->reset(new PosixDirectory(fd));
    }
    return Status::OK();
  }

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  virtual bool FileExists(const std::string& fname) {
    return access(fname.c_str(), F_OK) == 0;
  }

  virtual Status GetChildren(const std::string& dir,
                             std::vector<std::string>* result) {
    result->clear();
    DIR* d = opendir(dir.c_str());
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    if (d == nullptr) {
1214
      return IOError(dir, errno);
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    }
    struct dirent* entry;
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    while ((entry = readdir(d)) != nullptr) {
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      result->push_back(entry->d_name);
    }
    closedir(d);
    return Status::OK();
  }

  virtual Status DeleteFile(const std::string& fname) {
    Status result;
    if (unlink(fname.c_str()) != 0) {
1227
      result = IOError(fname, errno);
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    }
    return result;
  };

  virtual Status CreateDir(const std::string& name) {
    Status result;
    if (mkdir(name.c_str(), 0755) != 0) {
1235
      result = IOError(name, errno);
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    }
    return result;
  };

1240 1241 1242 1243 1244
  virtual Status CreateDirIfMissing(const std::string& name) {
    Status result;
    if (mkdir(name.c_str(), 0755) != 0) {
      if (errno != EEXIST) {
        result = IOError(name, errno);
1245 1246 1247 1248
      } else if (!DirExists(name)) { // Check that name is actually a
                                     // directory.
        // Message is taken from mkdir
        result = Status::IOError("`"+name+"' exists but is not a directory");
1249 1250 1251 1252 1253
      }
    }
    return result;
  };

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  virtual Status DeleteDir(const std::string& name) {
    Status result;
    if (rmdir(name.c_str()) != 0) {
1257
      result = IOError(name, errno);
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    }
    return result;
  };

  virtual Status GetFileSize(const std::string& fname, uint64_t* size) {
    Status s;
    struct stat sbuf;
    if (stat(fname.c_str(), &sbuf) != 0) {
      *size = 0;
1267
      s = IOError(fname, errno);
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    } else {
      *size = sbuf.st_size;
    }
    return s;
  }

1274 1275 1276 1277 1278 1279 1280 1281 1282
  virtual Status GetFileModificationTime(const std::string& fname,
                                         uint64_t* file_mtime) {
    struct stat s;
    if (stat(fname.c_str(), &s) !=0) {
      return IOError(fname, errno);
    }
    *file_mtime = static_cast<uint64_t>(s.st_mtime);
    return Status::OK();
  }
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  virtual Status RenameFile(const std::string& src, const std::string& target) {
    Status result;
    if (rename(src.c_str(), target.c_str()) != 0) {
1286
      result = IOError(src, errno);
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    }
    return result;
  }

  virtual Status LockFile(const std::string& fname, FileLock** lock) {
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    *lock = nullptr;
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    Status result;
    int fd = open(fname.c_str(), O_RDWR | O_CREAT, 0644);
    if (fd < 0) {
1296
      result = IOError(fname, errno);
1297
    } else if (LockOrUnlock(fname, fd, true) == -1) {
1298
      result = IOError("lock " + fname, errno);
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      close(fd);
    } else {
1301
      SetFD_CLOEXEC(fd, nullptr);
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      PosixFileLock* my_lock = new PosixFileLock;
      my_lock->fd_ = fd;
1304
      my_lock->filename = fname;
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      *lock = my_lock;
    }
    return result;
  }

  virtual Status UnlockFile(FileLock* lock) {
    PosixFileLock* my_lock = reinterpret_cast<PosixFileLock*>(lock);
    Status result;
1313
    if (LockOrUnlock(my_lock->filename, my_lock->fd_, false) == -1) {
1314
      result = IOError("unlock", errno);
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    }
    close(my_lock->fd_);
    delete my_lock;
    return result;
  }

1321
  virtual void Schedule(void (*function)(void*), void* arg, Priority pri = LOW);
1322

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  virtual void StartThread(void (*function)(void* arg), void* arg);

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  virtual void WaitForJoin();

1327 1328
  virtual unsigned int GetThreadPoolQueueLen(Priority pri = LOW) const override;

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  virtual Status GetTestDirectory(std::string* result) {
    const char* env = getenv("TEST_TMPDIR");
    if (env && env[0] != '\0') {
      *result = env;
    } else {
      char buf[100];
1335
      snprintf(buf, sizeof(buf), "/tmp/rocksdbtest-%d", int(geteuid()));
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      *result = buf;
    }
    // Directory may already exist
    CreateDir(*result);
    return Status::OK();
  }

1343
  static uint64_t gettid(pthread_t tid) {
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    uint64_t thread_id = 0;
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    memcpy(&thread_id, &tid, std::min(sizeof(thread_id), sizeof(tid)));
1346 1347
    return thread_id;
  }
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1349 1350 1351 1352 1353
  static uint64_t gettid() {
    pthread_t tid = pthread_self();
    return gettid(tid);
  }

1354 1355
  virtual Status NewLogger(const std::string& fname,
                           shared_ptr<Logger>* result) {
1356
    FILE* f = fopen(fname.c_str(), "w");
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    if (f == nullptr) {
1358
      result->reset();
1359 1360
      return IOError(fname, errno);
    } else {
1361 1362
      int fd = fileno(f);
      SetFD_CLOEXEC(fd, nullptr);
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      result->reset(new PosixLogger(f, &PosixEnv::gettid, this));
1364
      return Status::OK();
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    }
  }

  virtual uint64_t NowMicros() {
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    return std::chrono::duration_cast<std::chrono::microseconds>(
        std::chrono::system_clock::now().time_since_epoch()).count();
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  }

1373
  virtual uint64_t NowNanos() {
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    return std::chrono::duration_cast<std::chrono::nanoseconds>(
        std::chrono::steady_clock::now().time_since_epoch()).count();
1376 1377
  }

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  virtual void SleepForMicroseconds(int micros) {
    usleep(micros);
  }

1382
  virtual Status GetHostName(char* name, uint64_t len) {
1383
    int ret = gethostname(name, static_cast<size_t>(len));
1384 1385 1386 1387 1388 1389 1390 1391 1392 1393
    if (ret < 0) {
      if (errno == EFAULT || errno == EINVAL)
        return Status::InvalidArgument(strerror(errno));
      else
        return IOError("GetHostName", errno);
    }
    return Status::OK();
  }

  virtual Status GetCurrentTime(int64_t* unix_time) {
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    time_t ret = time(nullptr);
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    if (ret == (time_t) -1) {
      return IOError("GetCurrentTime", errno);
    }
    *unix_time = (int64_t) ret;
    return Status::OK();
  }

  virtual Status GetAbsolutePath(const std::string& db_path,
      std::string* output_path) {
    if (db_path.find('/') == 0) {
      *output_path = db_path;
      return Status::OK();
    }

    char the_path[256];
    char* ret = getcwd(the_path, 256);
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    if (ret == nullptr) {
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      return Status::IOError(strerror(errno));
    }

    *output_path = ret;
    return Status::OK();
  }

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  // Allow increasing the number of worker threads.
1420 1421 1422
  virtual void SetBackgroundThreads(int num, Priority pri) {
    assert(pri >= Priority::LOW && pri <= Priority::HIGH);
    thread_pools_[pri].SetBackgroundThreads(num);
1423 1424
  }

1425 1426 1427 1428 1429 1430
  // Allow increasing the number of worker threads.
  virtual void IncBackgroundThreadsIfNeeded(int num, Priority pri) {
    assert(pri >= Priority::LOW && pri <= Priority::HIGH);
    thread_pools_[pri].IncBackgroundThreadsIfNeeded(num);
  }

1431 1432 1433 1434 1435 1436 1437
  virtual void LowerThreadPoolIOPriority(Priority pool = LOW) override {
    assert(pool >= Priority::LOW && pool <= Priority::HIGH);
#ifdef OS_LINUX
    thread_pools_[pool].LowerIOPriority();
#endif
  }

1438 1439 1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457
  virtual std::string TimeToString(uint64_t secondsSince1970) {
    const time_t seconds = (time_t)secondsSince1970;
    struct tm t;
    int maxsize = 64;
    std::string dummy;
    dummy.reserve(maxsize);
    dummy.resize(maxsize);
    char* p = &dummy[0];
    localtime_r(&seconds, &t);
    snprintf(p, maxsize,
             "%04d/%02d/%02d-%02d:%02d:%02d ",
             t.tm_year + 1900,
             t.tm_mon + 1,
             t.tm_mday,
             t.tm_hour,
             t.tm_min,
             t.tm_sec);
    return dummy;
  }

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  EnvOptions OptimizeForLogWrite(const EnvOptions& env_options) const {
    EnvOptions optimized = env_options;
    optimized.use_mmap_writes = false;
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    // TODO(icanadi) it's faster if fallocate_with_keep_size is false, but it
    // breaks TransactionLogIteratorStallAtLastRecord unit test. Fix the unit
    // test and make this false
    optimized.fallocate_with_keep_size = true;
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    return optimized;
  }

  EnvOptions OptimizeForManifestWrite(const EnvOptions& env_options) const {
    EnvOptions optimized = env_options;
    optimized.use_mmap_writes = false;
    optimized.fallocate_with_keep_size = true;
    return optimized;
  }

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 private:
1476 1477
  bool checkedDiskForMmap_;
  bool forceMmapOff; // do we override Env options?
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1480 1481 1482 1483 1484 1485 1486 1487 1488
  // Returns true iff the named directory exists and is a directory.
  virtual bool DirExists(const std::string& dname) {
    struct stat statbuf;
    if (stat(dname.c_str(), &statbuf) == 0) {
      return S_ISDIR(statbuf.st_mode);
    }
    return false; // stat() failed return false
  }

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  bool SupportsFastAllocate(const std::string& path) {
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#ifdef ROCKSDB_FALLOCATE_PRESENT
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    struct statfs s;
    if (statfs(path.c_str(), &s)){
      return false;
    }
    switch (s.f_type) {
      case EXT4_SUPER_MAGIC:
        return true;
      case XFS_SUPER_MAGIC:
        return true;
      case TMPFS_MAGIC:
        return true;
      default:
        return false;
    }
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#else
    return false;
#endif
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  }

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  size_t page_size_;


1513 1514
  class ThreadPool {
   public:
1515 1516 1517 1518 1519
    ThreadPool()
        : total_threads_limit_(1),
          bgthreads_(0),
          queue_(),
          queue_len_(0),
1520 1521
          exit_all_threads_(false),
          low_io_priority_(false) {
1522 1523 1524
      PthreadCall("mutex_init", pthread_mutex_init(&mu_, nullptr));
      PthreadCall("cvar_init", pthread_cond_init(&bgsignal_, nullptr));
    }
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1526 1527 1528 1529 1530 1531 1532 1533 1534 1535
    ~ThreadPool() {
      PthreadCall("lock", pthread_mutex_lock(&mu_));
      assert(!exit_all_threads_);
      exit_all_threads_ = true;
      PthreadCall("signalall", pthread_cond_broadcast(&bgsignal_));
      PthreadCall("unlock", pthread_mutex_unlock(&mu_));
      for (const auto tid : bgthreads_) {
        pthread_join(tid, nullptr);
      }
    }
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1537 1538 1539 1540 1541 1542 1543 1544
    void LowerIOPriority() {
#ifdef OS_LINUX
      PthreadCall("lock", pthread_mutex_lock(&mu_));
      low_io_priority_ = true;
      PthreadCall("unlock", pthread_mutex_unlock(&mu_));
#endif
    }

1545 1546 1547 1548 1549 1550 1551 1552 1553
    // Return true if there is at least one thread needs to terminate.
    bool HasExcessiveThread() {
      return static_cast<int>(bgthreads_.size()) > total_threads_limit_;
    }

    // Return true iff the current thread is the excessive thread to terminate.
    // Always terminate the running thread that is added last, even if there are
    // more than one thread to terminate.
    bool IsLastExcessiveThread(size_t thread_id) {
1554
      return HasExcessiveThread() && thread_id == bgthreads_.size() - 1;
1555 1556 1557 1558 1559 1560 1561 1562
    }

    // Is one of the threads to terminate.
    bool IsExcessiveThread(size_t thread_id) {
      return static_cast<int>(thread_id) >= total_threads_limit_;
    }

    void BGThread(size_t thread_id) {
1563
      bool low_io_priority = false;
1564 1565 1566
      while (true) {
        // Wait until there is an item that is ready to run
        PthreadCall("lock", pthread_mutex_lock(&mu_));
1567 1568 1569
        // Stop waiting if the thread needs to do work or needs to terminate.
        while (!exit_all_threads_ && !IsLastExcessiveThread(thread_id) &&
               (queue_.empty() || IsExcessiveThread(thread_id))) {
1570 1571 1572 1573 1574 1575
          PthreadCall("wait", pthread_cond_wait(&bgsignal_, &mu_));
        }
        if (exit_all_threads_) { // mechanism to let BG threads exit safely
          PthreadCall("unlock", pthread_mutex_unlock(&mu_));
          break;
        }
1576 1577 1578 1579
        if (IsLastExcessiveThread(thread_id)) {
          // Current thread is the last generated one and is excessive.
          // We always terminate excessive thread in the reverse order of
          // generation time.
1580 1581
          auto terminating_thread = bgthreads_.back();
          pthread_detach(terminating_thread);
1582 1583 1584 1585 1586 1587
          bgthreads_.pop_back();
          if (HasExcessiveThread()) {
            // There is still at least more excessive thread to terminate.
            WakeUpAllThreads();
          }
          PthreadCall("unlock", pthread_mutex_unlock(&mu_));
1588 1589
          // TODO(sdong): temp logging. Need to help debugging. Remove it when
          // the feature is proved to be stable.
1590 1591
          fprintf(stdout, "Bg thread %zu terminates %llx\n", thread_id,
                  static_cast<long long unsigned int>(gettid()));
1592 1593
          break;
        }
1594 1595 1596
        void (*function)(void*) = queue_.front().function;
        void* arg = queue_.front().arg;
        queue_.pop_front();
1597 1598
        queue_len_.store(static_cast<unsigned int>(queue_.size()),
                         std::memory_order_relaxed);
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1600
        bool decrease_io_priority = (low_io_priority != low_io_priority_);
1601
        PthreadCall("unlock", pthread_mutex_unlock(&mu_));
1602 1603 1604 1605 1606 1607 1608 1609 1610 1611 1612 1613 1614 1615 1616 1617 1618 1619 1620 1621 1622 1623

#ifdef OS_LINUX
        if (decrease_io_priority) {
          #define IOPRIO_CLASS_SHIFT               (13)
          #define IOPRIO_PRIO_VALUE(class, data)   \
              (((class) << IOPRIO_CLASS_SHIFT) | data)
          // Put schedule into IOPRIO_CLASS_IDLE class (lowest)
          // These system calls only have an effect when used in conjunction
          // with an I/O scheduler that supports I/O priorities. As at
          // kernel 2.6.17 the only such scheduler is the Completely
          // Fair Queuing (CFQ) I/O scheduler.
          // To change scheduler:
          //  echo cfq > /sys/block/<device_name>/queue/schedule
          // Tunables to consider:
          //  /sys/block/<device_name>/queue/slice_idle
          //  /sys/block/<device_name>/queue/slice_sync
          syscall(SYS_ioprio_set,
                  1,  // IOPRIO_WHO_PROCESS
                  0,  // current thread
                  IOPRIO_PRIO_VALUE(3, 0));
          low_io_priority = true;
        }
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#else
        (void)decrease_io_priority; // avoid 'unused variable' error
1626
#endif
1627 1628 1629
        (*function)(arg);
      }
    }
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1631 1632 1633 1634 1635 1636 1637 1638
    // Helper struct for passing arguments when creating threads.
    struct BGThreadMetadata {
      ThreadPool* thread_pool_;
      size_t thread_id_;  // Thread count in the thread.
      explicit BGThreadMetadata(ThreadPool* thread_pool, size_t thread_id)
          : thread_pool_(thread_pool), thread_id_(thread_id) {}
    };

1639
    static void* BGThreadWrapper(void* arg) {
1640 1641 1642 1643 1644
      BGThreadMetadata* meta = reinterpret_cast<BGThreadMetadata*>(arg);
      size_t thread_id = meta->thread_id_;
      ThreadPool* tp = meta->thread_pool_;
      delete meta;
      tp->BGThread(thread_id);
1645 1646
      return nullptr;
    }
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1648 1649 1650 1651
    void WakeUpAllThreads() {
      PthreadCall("signalall", pthread_cond_broadcast(&bgsignal_));
    }

1652
    void SetBackgroundThreadsInternal(int num, bool allow_reduce) {
1653
      PthreadCall("lock", pthread_mutex_lock(&mu_));
1654 1655 1656 1657
      if (exit_all_threads_) {
        PthreadCall("unlock", pthread_mutex_unlock(&mu_));
        return;
      }
1658 1659
      if (num > total_threads_limit_ ||
          (num < total_threads_limit_ && allow_reduce)) {
1660
        total_threads_limit_ = num;
1661 1662
        WakeUpAllThreads();
        StartBGThreads();
1663 1664 1665
      }
      assert(total_threads_limit_ > 0);
      PthreadCall("unlock", pthread_mutex_unlock(&mu_));
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    }
1667

1668 1669 1670 1671 1672 1673 1674 1675
    void IncBackgroundThreadsIfNeeded(int num) {
      SetBackgroundThreadsInternal(num, false);
    }

    void SetBackgroundThreads(int num) {
      SetBackgroundThreadsInternal(num, true);
    }

1676
    void StartBGThreads() {
1677 1678 1679 1680
      // Start background thread if necessary
      while ((int)bgthreads_.size() < total_threads_limit_) {
        pthread_t t;
        PthreadCall(
1681 1682 1683
            "create thread",
            pthread_create(&t, nullptr, &ThreadPool::BGThreadWrapper,
                           new BGThreadMetadata(this, bgthreads_.size())));
1684 1685

        // Set the thread name to aid debugging
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#if defined(_GNU_SOURCE) && defined(__GLIBC_PREREQ)
#if __GLIBC_PREREQ(2, 12)
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        char name_buf[16];
        snprintf(name_buf, sizeof name_buf, "rocksdb:bg%zu", bgthreads_.size());
        name_buf[sizeof name_buf - 1] = '\0';
        pthread_setname_np(t, name_buf);
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#endif
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#endif

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        bgthreads_.push_back(t);
      }
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    }

    void Schedule(void (*function)(void*), void* arg) {
      PthreadCall("lock", pthread_mutex_lock(&mu_));

      if (exit_all_threads_) {
        PthreadCall("unlock", pthread_mutex_unlock(&mu_));
        return;
      }

      StartBGThreads();
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      // Add to priority queue
      queue_.push_back(BGItem());
      queue_.back().function = function;
      queue_.back().arg = arg;
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      queue_len_.store(static_cast<unsigned int>(queue_.size()),
                       std::memory_order_relaxed);
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      if (!HasExcessiveThread()) {
        // Wake up at least one waiting thread.
        PthreadCall("signal", pthread_cond_signal(&bgsignal_));
      } else {
        // Need to wake up all threads to make sure the one woken
        // up is not the one to terminate.
        WakeUpAllThreads();
      }
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      PthreadCall("unlock", pthread_mutex_unlock(&mu_));
    }
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    unsigned int GetQueueLen() const {
      return queue_len_.load(std::memory_order_relaxed);
    }

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   private:
    // Entry per Schedule() call
    struct BGItem { void* arg; void (*function)(void*); };
    typedef std::deque<BGItem> BGQueue;

    pthread_mutex_t mu_;
    pthread_cond_t bgsignal_;
    int total_threads_limit_;
    std::vector<pthread_t> bgthreads_;
    BGQueue queue_;
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    std::atomic_uint queue_len_;  // Queue length. Used for stats reporting
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    bool exit_all_threads_;
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    bool low_io_priority_;
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  };

  std::vector<ThreadPool> thread_pools_;

  pthread_mutex_t mu_;
  std::vector<pthread_t> threads_to_join_;

};

PosixEnv::PosixEnv() : checkedDiskForMmap_(false),
                       forceMmapOff(false),
                       page_size_(getpagesize()),
                       thread_pools_(Priority::TOTAL) {
  PthreadCall("mutex_init", pthread_mutex_init(&mu_, nullptr));
}

void PosixEnv::Schedule(void (*function)(void*), void* arg, Priority pri) {
  assert(pri >= Priority::LOW && pri <= Priority::HIGH);
  thread_pools_[pri].Schedule(function, arg);
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}

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unsigned int PosixEnv::GetThreadPoolQueueLen(Priority pri) const {
  assert(pri >= Priority::LOW && pri <= Priority::HIGH);
  return thread_pools_[pri].GetQueueLen();
}

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struct StartThreadState {
  void (*user_function)(void*);
  void* arg;
};
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static void* StartThreadWrapper(void* arg) {
  StartThreadState* state = reinterpret_cast<StartThreadState*>(arg);
  state->user_function(state->arg);
  delete state;
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  return nullptr;
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}

void PosixEnv::StartThread(void (*function)(void* arg), void* arg) {
  pthread_t t;
  StartThreadState* state = new StartThreadState;
  state->user_function = function;
  state->arg = arg;
  PthreadCall("start thread",
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              pthread_create(&t, nullptr,  &StartThreadWrapper, state));
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  PthreadCall("lock", pthread_mutex_lock(&mu_));
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  threads_to_join_.push_back(t);
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  PthreadCall("unlock", pthread_mutex_unlock(&mu_));
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}

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void PosixEnv::WaitForJoin() {
  for (const auto tid : threads_to_join_) {
    pthread_join(tid, nullptr);
  }
  threads_to_join_.clear();
}

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}  // namespace
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std::string Env::GenerateUniqueId() {
  std::string uuid_file = "/proc/sys/kernel/random/uuid";
  if (FileExists(uuid_file)) {
    std::string uuid;
    Status s = ReadFileToString(this, uuid_file, &uuid);
    if (s.ok()) {
      return uuid;
    }
  }
  // Could not read uuid_file - generate uuid using "nanos-random"
  Random64 r(time(nullptr));
  uint64_t random_uuid_portion =
    r.Uniform(std::numeric_limits<uint64_t>::max());
  uint64_t nanos_uuid_portion = NowNanos();
  char uuid2[200];
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  snprintf(uuid2,
           200,
           "%lx-%lx",
           (unsigned long)nanos_uuid_portion,
           (unsigned long)random_uuid_portion);
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  return uuid2;
}

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Env* Env::Default() {
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  static PosixEnv default_env;
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  return &default_env;
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}

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}  // namespace rocksdb