db_stress_common.h 19.0 KB
Newer Older
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28
//  Copyright (c) 2011-present, Facebook, Inc.  All rights reserved.
//  This source code is licensed under both the GPLv2 (found in the
//  COPYING file in the root directory) and Apache 2.0 License
//  (found in the LICENSE.Apache file in the root directory).
//
// Copyright (c) 2011 The LevelDB Authors. All rights reserved.
// Use of this source code is governed by a BSD-style license that can be
// found in the LICENSE file. See the AUTHORS file for names of contributors.
//
// The test uses an array to compare against values written to the database.
// Keys written to the array are in 1:1 correspondence to the actual values in
// the database according to the formula in the function GenerateValue.

// Space is reserved in the array from 0 to FLAGS_max_key and values are
// randomly written/deleted/read from those positions. During verification we
// compare all the positions in the array. To shorten/elongate the running
// time, you could change the settings: FLAGS_max_key, FLAGS_ops_per_thread,
// (sometimes also FLAGS_threads).
//
// NOTE that if FLAGS_test_batches_snapshots is set, the test will have
// different behavior. See comment of the flag for details.

#ifdef GFLAGS
#pragma once
#include <fcntl.h>
#include <stdio.h>
#include <stdlib.h>
#include <sys/types.h>
M
mrambacher 已提交
29

30 31 32 33 34 35 36 37 38 39
#include <algorithm>
#include <array>
#include <chrono>
#include <cinttypes>
#include <exception>
#include <queue>
#include <thread>

#include "db/db_impl/db_impl.h"
#include "db/version_set.h"
40
#include "db_stress_tool/db_stress_env_wrapper.h"
41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61
#include "db_stress_tool/db_stress_listener.h"
#include "db_stress_tool/db_stress_shared_state.h"
#include "db_stress_tool/db_stress_test_base.h"
#include "hdfs/env_hdfs.h"
#include "logging/logging.h"
#include "monitoring/histogram.h"
#include "options/options_helper.h"
#include "port/port.h"
#include "rocksdb/cache.h"
#include "rocksdb/env.h"
#include "rocksdb/slice.h"
#include "rocksdb/slice_transform.h"
#include "rocksdb/statistics.h"
#include "rocksdb/utilities/backupable_db.h"
#include "rocksdb/utilities/checkpoint.h"
#include "rocksdb/utilities/db_ttl.h"
#include "rocksdb/utilities/debug.h"
#include "rocksdb/utilities/options_util.h"
#include "rocksdb/utilities/transaction.h"
#include "rocksdb/utilities/transaction_db.h"
#include "rocksdb/write_batch.h"
M
mrambacher 已提交
62
#include "test_util/testutil.h"
63 64 65 66 67 68 69
#include "util/coding.h"
#include "util/compression.h"
#include "util/crc32c.h"
#include "util/gflags_compat.h"
#include "util/mutexlock.h"
#include "util/random.h"
#include "util/string_util.h"
L
Levi Tamasi 已提交
70
#include "utilities/blob_db/blob_db.h"
71 72 73 74 75 76 77 78 79
#include "utilities/merge_operators.h"

using GFLAGS_NAMESPACE::ParseCommandLineFlags;
using GFLAGS_NAMESPACE::RegisterFlagValidator;
using GFLAGS_NAMESPACE::SetUsageMessage;

DECLARE_uint64(seed);
DECLARE_bool(read_only);
DECLARE_int64(max_key);
80
DECLARE_double(hot_key_alpha);
81 82 83
DECLARE_int32(max_key_len);
DECLARE_string(key_len_percent_dist);
DECLARE_int32(key_window_scale_factor);
84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110
DECLARE_int32(column_families);
DECLARE_string(options_file);
DECLARE_int64(active_width);
DECLARE_bool(test_batches_snapshots);
DECLARE_bool(atomic_flush);
DECLARE_bool(test_cf_consistency);
DECLARE_int32(threads);
DECLARE_int32(ttl);
DECLARE_int32(value_size_mult);
DECLARE_int32(compaction_readahead_size);
DECLARE_bool(enable_pipelined_write);
DECLARE_bool(verify_before_write);
DECLARE_bool(histogram);
DECLARE_bool(destroy_db_initially);
DECLARE_bool(verbose);
DECLARE_bool(progress_reports);
DECLARE_uint64(db_write_buffer_size);
DECLARE_int32(write_buffer_size);
DECLARE_int32(max_write_buffer_number);
DECLARE_int32(min_write_buffer_number_to_merge);
DECLARE_int32(max_write_buffer_number_to_maintain);
DECLARE_int64(max_write_buffer_size_to_maintain);
DECLARE_double(memtable_prefix_bloom_size_ratio);
DECLARE_bool(memtable_whole_key_filtering);
DECLARE_int32(open_files);
DECLARE_int64(compressed_cache_size);
DECLARE_int32(compaction_style);
111
DECLARE_int32(num_levels);
112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127
DECLARE_int32(level0_file_num_compaction_trigger);
DECLARE_int32(level0_slowdown_writes_trigger);
DECLARE_int32(level0_stop_writes_trigger);
DECLARE_int32(block_size);
DECLARE_int32(format_version);
DECLARE_int32(index_block_restart_interval);
DECLARE_int32(max_background_compactions);
DECLARE_int32(num_bottom_pri_threads);
DECLARE_int32(compaction_thread_pool_adjust_interval);
DECLARE_int32(compaction_thread_pool_variations);
DECLARE_int32(max_background_flushes);
DECLARE_int32(universal_size_ratio);
DECLARE_int32(universal_min_merge_width);
DECLARE_int32(universal_max_merge_width);
DECLARE_int32(universal_max_size_amplification_percent);
DECLARE_int32(clear_column_family_one_in);
128 129 130
DECLARE_int32(get_live_files_one_in);
DECLARE_int32(get_sorted_wal_files_one_in);
DECLARE_int32(get_current_wal_file_one_in);
131 132 133 134 135 136 137 138 139 140 141
DECLARE_int32(set_options_one_in);
DECLARE_int32(set_in_place_one_in);
DECLARE_int64(cache_size);
DECLARE_bool(cache_index_and_filter_blocks);
DECLARE_bool(use_clock_cache);
DECLARE_uint64(subcompactions);
DECLARE_uint64(periodic_compaction_seconds);
DECLARE_uint64(compaction_ttl);
DECLARE_bool(allow_concurrent_memtable_write);
DECLARE_bool(enable_write_thread_adaptive_yield);
DECLARE_int32(reopen);
142
DECLARE_double(bloom_bits);
143 144
DECLARE_bool(use_block_based_filter);
DECLARE_bool(partition_filters);
145
DECLARE_bool(optimize_filters_for_memory);
146 147 148
DECLARE_int32(index_type);
DECLARE_string(db);
DECLARE_string(secondaries_base);
149
DECLARE_bool(test_secondary);
150 151 152 153 154 155
DECLARE_string(expected_values_path);
DECLARE_bool(verify_checksum);
DECLARE_bool(mmap_read);
DECLARE_bool(mmap_write);
DECLARE_bool(use_direct_reads);
DECLARE_bool(use_direct_io_for_flush_and_compaction);
156
DECLARE_bool(mock_direct_io);
157 158 159 160
DECLARE_bool(statistics);
DECLARE_bool(sync);
DECLARE_bool(use_fsync);
DECLARE_int32(kill_random_test);
161
DECLARE_string(kill_exclude_prefixes);
162 163 164 165 166 167 168 169 170
DECLARE_bool(disable_wal);
DECLARE_uint64(recycle_log_file_num);
DECLARE_int64(target_file_size_base);
DECLARE_int32(target_file_size_multiplier);
DECLARE_uint64(max_bytes_for_level_base);
DECLARE_double(max_bytes_for_level_multiplier);
DECLARE_int32(range_deletion_width);
DECLARE_uint64(rate_limiter_bytes_per_sec);
DECLARE_bool(rate_limit_bg_reads);
171 172
DECLARE_uint64(sst_file_manager_bytes_per_sec);
DECLARE_uint64(sst_file_manager_bytes_per_truncate);
173
DECLARE_bool(use_txn);
174
DECLARE_uint64(txn_write_policy);
175
DECLARE_bool(unordered_write);
176
DECLARE_int32(backup_one_in);
177
DECLARE_uint64(backup_max_size);
178 179 180 181 182
DECLARE_int32(checkpoint_one_in);
DECLARE_int32(ingest_external_file_one_in);
DECLARE_int32(ingest_external_file_width);
DECLARE_int32(compact_files_one_in);
DECLARE_int32(compact_range_one_in);
183
DECLARE_int32(mark_for_compaction_one_file_in);
184
DECLARE_int32(flush_one_in);
185
DECLARE_int32(pause_background_one_in);
186 187 188 189
DECLARE_int32(compact_range_width);
DECLARE_int32(acquire_snapshot_one_in);
DECLARE_bool(compare_full_db_state_snapshot);
DECLARE_uint64(snapshot_hold_ops);
190
DECLARE_bool(long_running_snapshots);
191 192 193 194 195 196 197 198 199 200
DECLARE_bool(use_multiget);
DECLARE_int32(readpercent);
DECLARE_int32(prefixpercent);
DECLARE_int32(writepercent);
DECLARE_int32(delpercent);
DECLARE_int32(delrangepercent);
DECLARE_int32(nooverwritepercent);
DECLARE_int32(iterpercent);
DECLARE_uint64(num_iterations);
DECLARE_string(compression_type);
201
DECLARE_string(bottommost_compression_type);
202 203
DECLARE_int32(compression_max_dict_bytes);
DECLARE_int32(compression_zstd_max_train_bytes);
204
DECLARE_int32(compression_parallel_threads);
205 206 207
DECLARE_string(checksum_type);
DECLARE_string(hdfs);
DECLARE_string(env_uri);
208
DECLARE_string(fs_uri);
209 210 211 212 213 214 215 216 217
DECLARE_uint64(ops_per_thread);
DECLARE_uint64(log2_keys_per_lock);
DECLARE_uint64(max_manifest_file_size);
DECLARE_bool(in_place_update);
DECLARE_int32(secondary_catch_up_one_in);
DECLARE_string(memtablerep);
DECLARE_int32(prefix_size);
DECLARE_bool(use_merge);
DECLARE_bool(use_full_merge_v1);
Y
Yanqin Jin 已提交
218
DECLARE_int32(sync_wal_one_in);
S
sdong 已提交
219 220
DECLARE_bool(avoid_unnecessary_blocking_io);
DECLARE_bool(write_dbid_to_manifest);
221
DECLARE_bool(avoid_flush_during_recovery);
S
sdong 已提交
222 223
DECLARE_uint64(max_write_batch_group_size_bytes);
DECLARE_bool(level_compaction_dynamic_level_bytes);
224
DECLARE_int32(verify_checksum_one_in);
225 226
DECLARE_int32(verify_db_one_in);
DECLARE_int32(continuous_verification_interval);
227
DECLARE_int32(get_property_one_in);
228
DECLARE_string(file_checksum_impl);
229

L
Levi Tamasi 已提交
230 231 232 233 234 235 236 237
#ifndef ROCKSDB_LITE
DECLARE_bool(use_blob_db);
DECLARE_uint64(blob_db_min_blob_size);
DECLARE_uint64(blob_db_bytes_per_sync);
DECLARE_uint64(blob_db_file_size);
DECLARE_bool(blob_db_enable_gc);
DECLARE_double(blob_db_gc_cutoff);
#endif  // !ROCKSDB_LITE
S
sdong 已提交
238
DECLARE_int32(approximate_size_one_in);
239
DECLARE_bool(sync_fault_injection);
L
Levi Tamasi 已提交
240

241 242
DECLARE_bool(best_efforts_recovery);
DECLARE_bool(skip_verifydb);
243
DECLARE_bool(enable_compaction_filter);
244

245 246 247
const long KB = 1024;
const int kRandomValueMaxFactor = 3;
const int kValueMaxLen = 100;
248

249
// wrapped posix or hdfs environment
250
extern ROCKSDB_NAMESPACE::DbStressEnvWrapper* db_stress_env;
A
anand76 已提交
251
#ifndef NDEBUG
M
mrambacher 已提交
252 253 254
namespace ROCKSDB_NAMESPACE {
class FaultInjectionTestFS;
}  // namespace ROCKSDB_NAMESPACE
A
anand76 已提交
255 256
extern std::shared_ptr<ROCKSDB_NAMESPACE::FaultInjectionTestFS> fault_fs_guard;
#endif
257

258 259 260
extern enum ROCKSDB_NAMESPACE::CompressionType compression_type_e;
extern enum ROCKSDB_NAMESPACE::CompressionType bottommost_compression_type_e;
extern enum ROCKSDB_NAMESPACE::ChecksumType checksum_type_e;
261 262 263 264 265 266 267 268 269 270 271 272 273 274 275 276 277 278 279

enum RepFactory { kSkipList, kHashSkipList, kVectorRep };

inline enum RepFactory StringToRepFactory(const char* ctype) {
  assert(ctype);

  if (!strcasecmp(ctype, "skip_list"))
    return kSkipList;
  else if (!strcasecmp(ctype, "prefix_hash"))
    return kHashSkipList;
  else if (!strcasecmp(ctype, "vector"))
    return kVectorRep;

  fprintf(stdout, "Cannot parse memreptable %s\n", ctype);
  return kSkipList;
}

extern enum RepFactory FLAGS_rep_factory;

280 281
namespace ROCKSDB_NAMESPACE {
inline enum ROCKSDB_NAMESPACE::CompressionType StringToCompressionType(
282 283 284
    const char* ctype) {
  assert(ctype);

285
  ROCKSDB_NAMESPACE::CompressionType ret_compression_type;
286

287
  if (!strcasecmp(ctype, "disable")) {
288
    ret_compression_type = ROCKSDB_NAMESPACE::kDisableCompressionOption;
289
  } else if (!strcasecmp(ctype, "none")) {
290
    ret_compression_type = ROCKSDB_NAMESPACE::kNoCompression;
291
  } else if (!strcasecmp(ctype, "snappy")) {
292
    ret_compression_type = ROCKSDB_NAMESPACE::kSnappyCompression;
293
  } else if (!strcasecmp(ctype, "zlib")) {
294
    ret_compression_type = ROCKSDB_NAMESPACE::kZlibCompression;
295
  } else if (!strcasecmp(ctype, "bzip2")) {
296
    ret_compression_type = ROCKSDB_NAMESPACE::kBZip2Compression;
297
  } else if (!strcasecmp(ctype, "lz4")) {
298
    ret_compression_type = ROCKSDB_NAMESPACE::kLZ4Compression;
299
  } else if (!strcasecmp(ctype, "lz4hc")) {
300
    ret_compression_type = ROCKSDB_NAMESPACE::kLZ4HCCompression;
301
  } else if (!strcasecmp(ctype, "xpress")) {
302
    ret_compression_type = ROCKSDB_NAMESPACE::kXpressCompression;
303
  } else if (!strcasecmp(ctype, "zstd")) {
304
    ret_compression_type = ROCKSDB_NAMESPACE::kZSTD;
305 306
  } else {
    fprintf(stderr, "Cannot parse compression type '%s'\n", ctype);
307 308
    ret_compression_type =
        ROCKSDB_NAMESPACE::kSnappyCompression;  // default value
309
  }
310
  if (ret_compression_type != ROCKSDB_NAMESPACE::kDisableCompressionOption &&
311 312 313
      !CompressionTypeSupported(ret_compression_type)) {
    // Use no compression will be more portable but considering this is
    // only a stress test and snappy is widely available. Use snappy here.
314
    ret_compression_type = ROCKSDB_NAMESPACE::kSnappyCompression;
315 316
  }
  return ret_compression_type;
317 318
}

319 320
inline enum ROCKSDB_NAMESPACE::ChecksumType StringToChecksumType(
    const char* ctype) {
321
  assert(ctype);
322 323
  auto iter = ROCKSDB_NAMESPACE::checksum_type_string_map.find(ctype);
  if (iter != ROCKSDB_NAMESPACE::checksum_type_string_map.end()) {
324 325 326
    return iter->second;
  }
  fprintf(stderr, "Cannot parse checksum type '%s'\n", ctype);
327
  return ROCKSDB_NAMESPACE::kCRC32c;
328 329
}

330
inline std::string ChecksumTypeToString(ROCKSDB_NAMESPACE::ChecksumType ctype) {
331
  auto iter = std::find_if(
332 333 334
      ROCKSDB_NAMESPACE::checksum_type_string_map.begin(),
      ROCKSDB_NAMESPACE::checksum_type_string_map.end(),
      [&](const std::pair<std::string, ROCKSDB_NAMESPACE::ChecksumType>&
335
              name_and_enum_val) { return name_and_enum_val.second == ctype; });
336
  assert(iter != ROCKSDB_NAMESPACE::checksum_type_string_map.end());
337 338 339 340 341 342 343 344 345 346 347 348 349 350 351 352 353 354 355 356 357 358 359
  return iter->first;
}

inline std::vector<std::string> SplitString(std::string src) {
  std::vector<std::string> ret;
  if (src.empty()) {
    return ret;
  }
  size_t pos = 0;
  size_t pos_comma;
  while ((pos_comma = src.find(',', pos)) != std::string::npos) {
    ret.push_back(src.substr(pos, pos_comma - pos));
    pos = pos_comma + 1;
  }
  ret.push_back(src.substr(pos, src.length()));
  return ret;
}

#ifdef _MSC_VER
#pragma warning(push)
// truncation of constant value on static_cast
#pragma warning(disable : 4309)
#endif
360
inline bool GetNextPrefix(const ROCKSDB_NAMESPACE::Slice& src, std::string* v) {
361 362 363 364 365 366 367 368 369 370 371 372 373 374 375 376 377 378 379 380
  std::string ret = src.ToString();
  for (int i = static_cast<int>(ret.size()) - 1; i >= 0; i--) {
    if (ret[i] != static_cast<char>(255)) {
      ret[i] = ret[i] + 1;
      break;
    } else if (i != 0) {
      ret[i] = 0;
    } else {
      // all FF. No next prefix
      return false;
    }
  }
  *v = ret;
  return true;
}
#ifdef _MSC_VER
#pragma warning(pop)
#endif

// convert long to a big-endian slice key
381
extern inline std::string GetStringFromInt(int64_t val) {
382 383 384 385 386 387 388 389 390 391 392
  std::string little_endian_key;
  std::string big_endian_key;
  PutFixed64(&little_endian_key, val);
  assert(little_endian_key.size() == sizeof(val));
  big_endian_key.resize(sizeof(val));
  for (size_t i = 0; i < sizeof(val); ++i) {
    big_endian_key[i] = little_endian_key[sizeof(val) - 1 - i];
  }
  return big_endian_key;
}

393 394 395 396 397 398 399 400 401 402 403 404 405 406 407 408 409 410 411 412 413 414 415 416 417 418 419 420 421 422 423 424 425 426 427 428 429 430 431 432 433 434 435 436 437 438 439 440 441
// A struct for maintaining the parameters for generating variable length keys
struct KeyGenContext {
  // Number of adjacent keys in one cycle of key lengths
  uint64_t window;
  // Number of keys of each possible length in a given window
  std::vector<uint64_t> weights;
};
extern KeyGenContext key_gen_ctx;

// Generate a variable length key string from the given int64 val. The
// order of the keys is preserved. The key could be anywhere from 8 to
// max_key_len * 8 bytes.
// The algorithm picks the length based on the
// offset of the val within a configured window and the distribution of the
// number of keys of various lengths in that window. For example, if x, y, x are
// the weights assigned to each possible key length, the keys generated would be
// - {0}...{x-1}
// {(x-1),0}..{(x-1),(y-1)},{(x-1),(y-1),0}..{(x-1),(y-1),(z-1)} and so on.
// Additionally, a trailer of 0-7 bytes could be appended.
extern inline std::string Key(int64_t val) {
  uint64_t window = key_gen_ctx.window;
  size_t levels = key_gen_ctx.weights.size();
  std::string key;

  for (size_t level = 0; level < levels; ++level) {
    uint64_t weight = key_gen_ctx.weights[level];
    uint64_t offset = static_cast<uint64_t>(val) % window;
    uint64_t mult = static_cast<uint64_t>(val) / window;
    uint64_t pfx = mult * weight + (offset >= weight ? weight - 1 : offset);
    key.append(GetStringFromInt(pfx));
    if (offset < weight) {
      // Use the bottom 3 bits of offset as the number of trailing 'x's in the
      // key. If the next key is going to be of the next level, then skip the
      // trailer as it would break ordering. If the key length is already at max,
      // skip the trailer.
      if (offset < weight - 1 && level < levels - 1) {
        size_t trailer_len = offset & 0x7;
        key.append(trailer_len, 'x');
      }
      break;
    }
    val = offset - weight;
    window -= weight;
  }

  return key;
}

// Given a string key, map it to an index into the expected values buffer
442
extern inline bool GetIntVal(std::string big_endian_key, uint64_t* key_p) {
443 444 445 446 447
  size_t size_key = big_endian_key.size();
  std::vector<uint64_t> prefixes;

  assert(size_key <= key_gen_ctx.weights.size() * sizeof(uint64_t));

448 449
  std::string little_endian_key;
  little_endian_key.resize(size_key);
450 451
  for (size_t start = 0; start + sizeof(uint64_t) <= size_key;
       start += sizeof(uint64_t)) {
452 453 454 455 456 457 458 459 460 461 462 463 464 465 466 467 468 469
    size_t end = start + sizeof(uint64_t);
    for (size_t i = 0; i < sizeof(uint64_t); ++i) {
      little_endian_key[start + i] = big_endian_key[end - 1 - i];
    }
    Slice little_endian_slice =
        Slice(&little_endian_key[start], sizeof(uint64_t));
    uint64_t pfx;
    if (!GetFixed64(&little_endian_slice, &pfx)) {
      return false;
    }
    prefixes.emplace_back(pfx);
  }

  uint64_t key = 0;
  for (size_t i = 0; i < prefixes.size(); ++i) {
    uint64_t pfx = prefixes[i];
    key += (pfx / key_gen_ctx.weights[i]) * key_gen_ctx.window +
           pfx % key_gen_ctx.weights[i];
470 471 472 473 474 475
    if (i < prefixes.size() - 1) {
      // The encoding writes a `key_gen_ctx.weights[i] - 1` that counts for
      // `key_gen_ctx.weights[i]` when there are more prefixes to come. So we
      // need to add back the one here as we're at a non-last prefix.
      ++key;
    }
476
  }
477 478 479 480
  *key_p = key;
  return true;
}

481 482 483 484 485 486 487 488 489 490 491 492 493 494 495 496
// Given a string prefix, map it to the first corresponding index in the
// expected values buffer.
inline bool GetFirstIntValInPrefix(std::string big_endian_prefix,
                                   uint64_t* key_p) {
  size_t size_key = big_endian_prefix.size();
  // Pad with zeros to make it a multiple of 8. This function may be called
  // with a prefix, in which case we return the first index that falls
  // inside or outside that prefix, dependeing on whether the prefix is
  // the start of upper bound of a scan
  unsigned int pad = sizeof(uint64_t) - (size_key % sizeof(uint64_t));
  if (pad < sizeof(uint64_t)) {
    big_endian_prefix.append(pad, '\0');
  }
  return GetIntVal(std::move(big_endian_prefix), key_p);
}

497 498 499 500 501
extern inline uint64_t GetPrefixKeyCount(const std::string& prefix,
                                         const std::string& ub) {
  uint64_t start = 0;
  uint64_t end = 0;

502 503
  if (!GetFirstIntValInPrefix(prefix, &start) ||
      !GetFirstIntValInPrefix(ub, &end)) {
504 505 506 507
    return 0;
  }

  return end - start;
508 509 510 511 512 513 514 515
}

extern inline std::string StringToHex(const std::string& str) {
  std::string result = "0x";
  result.append(Slice(str).ToString(true));
  return result;
}

516 517 518 519 520 521 522 523 524 525 526
// Unified output format for double parameters
extern inline std::string FormatDoubleParam(double param) {
  return std::to_string(param);
}

// Make sure that double parameter is a value we can reproduce by
// re-inputting the value printed.
extern inline void SanitizeDoubleParam(double* param) {
  *param = std::atof(FormatDoubleParam(*param).c_str());
}

527 528
extern void PoolSizeChangeThread(void* v);

529 530
extern void DbVerificationThread(void* v);

531 532 533 534 535 536 537 538 539 540 541 542
extern void PrintKeyValue(int cf, uint64_t key, const char* value, size_t sz);

extern int64_t GenerateOneKey(ThreadState* thread, uint64_t iteration);

extern std::vector<int64_t> GenerateNKeys(ThreadState* thread, int num_keys,
                                          uint64_t iteration);

extern size_t GenerateValue(uint32_t rand, char* v, size_t max_sz);

extern StressTest* CreateCfConsistencyStressTest();
extern StressTest* CreateBatchedOpsStressTest();
extern StressTest* CreateNonBatchedOpsStressTest();
543 544
extern void InitializeHotKeyGenerator(double alpha);
extern int64_t GetOneHotKeyID(double rand_seed, int64_t max_key);
545 546 547

std::shared_ptr<FileChecksumGenFactory> GetFileChecksumImpl(
    const std::string& name);
548
}  // namespace ROCKSDB_NAMESPACE
549
#endif  // GFLAGS