mdb.c 283 KB

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  1. /** @file mdb.c
  2. * @brief Lightning memory-mapped database library
  3. *
  4. * A Btree-based database management library modeled loosely on the
  5. * BerkeleyDB API, but much simplified.
  6. */
  7. /*
  8. * Copyright 2011-2018 Howard Chu, Symas Corp.
  9. * All rights reserved.
  10. *
  11. * Redistribution and use in source and binary forms, with or without
  12. * modification, are permitted only as authorized by the OpenLDAP
  13. * Public License.
  14. *
  15. * A copy of this license is available in the file LICENSE in the
  16. * top-level directory of the distribution or, alternatively, at
  17. * <http://www.OpenLDAP.org/license.html>.
  18. *
  19. * This code is derived from btree.c written by Martin Hedenfalk.
  20. *
  21. * Copyright (c) 2009, 2010 Martin Hedenfalk <martin@bzero.se>
  22. *
  23. * Permission to use, copy, modify, and distribute this software for any
  24. * purpose with or without fee is hereby granted, provided that the above
  25. * copyright notice and this permission notice appear in all copies.
  26. *
  27. * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
  28. * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
  29. * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
  30. * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
  31. * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
  32. * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
  33. * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
  34. */
  35. #ifndef _GNU_SOURCE
  36. #define _GNU_SOURCE 1
  37. #endif
  38. #if defined(__WIN64__)
  39. #define _FILE_OFFSET_BITS 64
  40. #endif
  41. #ifdef _WIN32
  42. #include <malloc.h>
  43. #include <windows.h>
  44. #include <wchar.h> /* get wcscpy() */
  45. /** getpid() returns int; MinGW defines pid_t but MinGW64 typedefs it
  46. * as int64 which is wrong. MSVC doesn't define it at all, so just
  47. * don't use it.
  48. */
  49. #define MDB_PID_T int
  50. #define MDB_THR_T DWORD
  51. #include <sys/types.h>
  52. #include <sys/stat.h>
  53. #ifdef __GNUC__
  54. # include <sys/param.h>
  55. #else
  56. # define LITTLE_ENDIAN 1234
  57. # define BIG_ENDIAN 4321
  58. # define BYTE_ORDER LITTLE_ENDIAN
  59. # ifndef SSIZE_MAX
  60. # define SSIZE_MAX INT_MAX
  61. # endif
  62. #endif
  63. #else
  64. #include <sys/types.h>
  65. #include <sys/stat.h>
  66. #define MDB_PID_T pid_t
  67. #define MDB_THR_T pthread_t
  68. #include <sys/param.h>
  69. #include <sys/uio.h>
  70. #include <sys/mman.h>
  71. #ifdef HAVE_SYS_FILE_H
  72. #include <sys/file.h>
  73. #endif
  74. #include <fcntl.h>
  75. #endif
  76. #if defined(__mips) && defined(__linux)
  77. /* MIPS has cache coherency issues, requires explicit cache control */
  78. #include <asm/cachectl.h>
  79. extern int cacheflush(char *addr, int nbytes, int cache);
  80. #define CACHEFLUSH(addr, bytes, cache) cacheflush(addr, bytes, cache)
  81. #else
  82. #define CACHEFLUSH(addr, bytes, cache)
  83. #endif
  84. #if defined(__linux) && !defined(MDB_FDATASYNC_WORKS)
  85. /** fdatasync is broken on ext3/ext4fs on older kernels, see
  86. * description in #mdb_env_open2 comments. You can safely
  87. * define MDB_FDATASYNC_WORKS if this code will only be run
  88. * on kernels 3.6 and newer.
  89. */
  90. #define BROKEN_FDATASYNC
  91. #endif
  92. #include <errno.h>
  93. #include <limits.h>
  94. #include <stddef.h>
  95. #include <inttypes.h>
  96. #include <stdio.h>
  97. #include <stdlib.h>
  98. #include <string.h>
  99. #include <time.h>
  100. #ifdef _MSC_VER
  101. #include <io.h>
  102. typedef SSIZE_T ssize_t;
  103. #else
  104. #include <unistd.h>
  105. #endif
  106. #if defined(__sun) || defined(ANDROID)
  107. /* Most platforms have posix_memalign, older may only have memalign */
  108. #define HAVE_MEMALIGN 1
  109. #include <malloc.h>
  110. /* On Solaris, we need the POSIX sigwait function */
  111. #if defined (__sun)
  112. # define _POSIX_PTHREAD_SEMANTICS 1
  113. #endif
  114. #endif
  115. #if !(defined(BYTE_ORDER) || defined(__BYTE_ORDER))
  116. #include <netinet/in.h>
  117. #include <resolv.h> /* defines BYTE_ORDER on HPUX and Solaris */
  118. #endif
  119. #if defined(__APPLE__) || defined (BSD) || defined(__FreeBSD_kernel__)
  120. # define MDB_USE_POSIX_SEM 1
  121. # define MDB_FDATASYNC fsync
  122. #elif defined(ANDROID)
  123. # define MDB_FDATASYNC fsync
  124. #endif
  125. #ifndef _WIN32
  126. #include <pthread.h>
  127. #include <signal.h>
  128. #ifdef MDB_USE_POSIX_SEM
  129. # define MDB_USE_HASH 1
  130. #include <semaphore.h>
  131. #else
  132. #define MDB_USE_POSIX_MUTEX 1
  133. #endif
  134. #endif
  135. #if defined(_WIN32) + defined(MDB_USE_POSIX_SEM) \
  136. + defined(MDB_USE_POSIX_MUTEX) != 1
  137. # error "Ambiguous shared-lock implementation"
  138. #endif
  139. #ifdef USE_VALGRIND
  140. #include <valgrind/memcheck.h>
  141. #define VGMEMP_CREATE(h,r,z) VALGRIND_CREATE_MEMPOOL(h,r,z)
  142. #define VGMEMP_ALLOC(h,a,s) VALGRIND_MEMPOOL_ALLOC(h,a,s)
  143. #define VGMEMP_FREE(h,a) VALGRIND_MEMPOOL_FREE(h,a)
  144. #define VGMEMP_DESTROY(h) VALGRIND_DESTROY_MEMPOOL(h)
  145. #define VGMEMP_DEFINED(a,s) VALGRIND_MAKE_MEM_DEFINED(a,s)
  146. #else
  147. #define VGMEMP_CREATE(h,r,z)
  148. #define VGMEMP_ALLOC(h,a,s)
  149. #define VGMEMP_FREE(h,a)
  150. #define VGMEMP_DESTROY(h)
  151. #define VGMEMP_DEFINED(a,s)
  152. #endif
  153. #ifndef BYTE_ORDER
  154. # if (defined(_LITTLE_ENDIAN) || defined(_BIG_ENDIAN)) && !(defined(_LITTLE_ENDIAN) && defined(_BIG_ENDIAN))
  155. /* Solaris just defines one or the other */
  156. # define LITTLE_ENDIAN 1234
  157. # define BIG_ENDIAN 4321
  158. # ifdef _LITTLE_ENDIAN
  159. # define BYTE_ORDER LITTLE_ENDIAN
  160. # else
  161. # define BYTE_ORDER BIG_ENDIAN
  162. # endif
  163. # else
  164. # define BYTE_ORDER __BYTE_ORDER
  165. # endif
  166. #endif
  167. #ifndef LITTLE_ENDIAN
  168. #define LITTLE_ENDIAN __LITTLE_ENDIAN
  169. #endif
  170. #ifndef BIG_ENDIAN
  171. #define BIG_ENDIAN __BIG_ENDIAN
  172. #endif
  173. #if defined(__i386) || defined(__x86_64) || defined(_M_IX86)
  174. #define MISALIGNED_OK 1
  175. #endif
  176. #include "lmdb.h"
  177. #include "midl.h"
  178. #if (BYTE_ORDER == LITTLE_ENDIAN) == (BYTE_ORDER == BIG_ENDIAN)
  179. # error "Unknown or unsupported endianness (BYTE_ORDER)"
  180. #elif (-6 & 5) || CHAR_BIT != 8 || UINT_MAX < 0xffffffff || ULONG_MAX % 0xFFFF
  181. # error "Two's complement, reasonably sized integer types, please"
  182. #endif
  183. #ifdef __GNUC__
  184. /** Put infrequently used env functions in separate section */
  185. # ifdef __APPLE__
  186. # define ESECT __attribute__ ((section("__TEXT,text_env")))
  187. # else
  188. # define ESECT __attribute__ ((section("text_env")))
  189. # endif
  190. #else
  191. #define ESECT
  192. #endif
  193. #ifdef _WIN32
  194. #define CALL_CONV WINAPI
  195. #else
  196. #define CALL_CONV
  197. #endif
  198. /** @defgroup internal LMDB Internals
  199. * @{
  200. */
  201. /** @defgroup compat Compatibility Macros
  202. * A bunch of macros to minimize the amount of platform-specific ifdefs
  203. * needed throughout the rest of the code. When the features this library
  204. * needs are similar enough to POSIX to be hidden in a one-or-two line
  205. * replacement, this macro approach is used.
  206. * @{
  207. */
  208. /** Features under development */
  209. #ifndef MDB_DEVEL
  210. #define MDB_DEVEL 0
  211. #endif
  212. /** Wrapper around __func__, which is a C99 feature */
  213. #if __STDC_VERSION__ >= 199901L
  214. # define mdb_func_ __func__
  215. #elif __GNUC__ >= 2 || _MSC_VER >= 1300
  216. # define mdb_func_ __FUNCTION__
  217. #else
  218. /* If a debug message says <mdb_unknown>(), update the #if statements above */
  219. # define mdb_func_ "<mdb_unknown>"
  220. #endif
  221. /* Internal error codes, not exposed outside liblmdb */
  222. #define MDB_NO_ROOT (MDB_LAST_ERRCODE + 10)
  223. #ifdef _WIN32
  224. #define MDB_OWNERDEAD ((int) WAIT_ABANDONED)
  225. #elif defined(MDB_USE_POSIX_MUTEX) && defined(EOWNERDEAD)
  226. #define MDB_OWNERDEAD EOWNERDEAD /**< #LOCK_MUTEX0() result if dead owner */
  227. #endif
  228. #ifdef __GLIBC__
  229. #define GLIBC_VER ((__GLIBC__ << 16 )| __GLIBC_MINOR__)
  230. #endif
  231. /** Some platforms define the EOWNERDEAD error code
  232. * even though they don't support Robust Mutexes.
  233. * Compile with -DMDB_USE_ROBUST=0, or use some other
  234. * mechanism like -DMDB_USE_POSIX_SEM instead of
  235. * -DMDB_USE_POSIX_MUTEX.
  236. * (Posix semaphores are not robust.)
  237. */
  238. #ifndef MDB_USE_ROBUST
  239. /* Android currently lacks Robust Mutex support. So does glibc < 2.4. */
  240. # if defined(MDB_USE_POSIX_MUTEX) && (defined(ANDROID) || \
  241. (defined(__GLIBC__) && GLIBC_VER < 0x020004))
  242. # define MDB_USE_ROBUST 0
  243. # else
  244. # define MDB_USE_ROBUST 1
  245. # endif
  246. #endif /* !MDB_USE_ROBUST */
  247. #if defined(MDB_USE_POSIX_MUTEX) && (MDB_USE_ROBUST)
  248. /* glibc < 2.12 only provided _np API */
  249. # if (defined(__GLIBC__) && GLIBC_VER < 0x02000c) || \
  250. (defined(PTHREAD_MUTEX_ROBUST_NP) && !defined(PTHREAD_MUTEX_ROBUST))
  251. # define PTHREAD_MUTEX_ROBUST PTHREAD_MUTEX_ROBUST_NP
  252. # define pthread_mutexattr_setrobust(attr, flag) pthread_mutexattr_setrobust_np(attr, flag)
  253. # define pthread_mutex_consistent(mutex) pthread_mutex_consistent_np(mutex)
  254. # endif
  255. #endif /* MDB_USE_POSIX_MUTEX && MDB_USE_ROBUST */
  256. #if defined(MDB_OWNERDEAD) && (MDB_USE_ROBUST)
  257. #define MDB_ROBUST_SUPPORTED 1
  258. #endif
  259. #ifdef _WIN32
  260. #define MDB_USE_HASH 1
  261. #define MDB_PIDLOCK 0
  262. #define THREAD_RET DWORD
  263. #define pthread_t HANDLE
  264. #define pthread_mutex_t HANDLE
  265. #define pthread_cond_t HANDLE
  266. typedef HANDLE mdb_mutex_t, mdb_mutexref_t;
  267. #define pthread_key_t DWORD
  268. #define pthread_self() GetCurrentThreadId()
  269. #define pthread_key_create(x,y) \
  270. ((*(x) = TlsAlloc()) == TLS_OUT_OF_INDEXES ? ErrCode() : 0)
  271. #define pthread_key_delete(x) TlsFree(x)
  272. #define pthread_getspecific(x) TlsGetValue(x)
  273. #define pthread_setspecific(x,y) (TlsSetValue(x,y) ? 0 : ErrCode())
  274. #define pthread_mutex_unlock(x) ReleaseMutex(*x)
  275. #define pthread_mutex_lock(x) WaitForSingleObject(*x, INFINITE)
  276. #define pthread_cond_signal(x) SetEvent(*x)
  277. #define pthread_cond_wait(cond,mutex) do{SignalObjectAndWait(*mutex, *cond, INFINITE, FALSE); WaitForSingleObject(*mutex, INFINITE);}while(0)
  278. #define THREAD_CREATE(thr,start,arg) \
  279. (((thr) = CreateThread(NULL, 0, start, arg, 0, NULL)) ? 0 : ErrCode())
  280. #define THREAD_FINISH(thr) \
  281. (WaitForSingleObject(thr, INFINITE) ? ErrCode() : 0)
  282. #define LOCK_MUTEX0(mutex) WaitForSingleObject(mutex, INFINITE)
  283. #define UNLOCK_MUTEX(mutex) ReleaseMutex(mutex)
  284. #define mdb_mutex_consistent(mutex) 0
  285. #define getpid() GetCurrentProcessId()
  286. #define MDB_FDATASYNC(fd) (!FlushFileBuffers(fd))
  287. #define MDB_MSYNC(addr,len,flags) (!FlushViewOfFile(addr,len))
  288. #define ErrCode() GetLastError()
  289. #define GET_PAGESIZE(x) {SYSTEM_INFO si; GetSystemInfo(&si); (x) = si.dwPageSize;}
  290. #define close(fd) (CloseHandle(fd) ? 0 : -1)
  291. #define munmap(ptr,len) UnmapViewOfFile(ptr)
  292. #ifdef PROCESS_QUERY_LIMITED_INFORMATION
  293. #define MDB_PROCESS_QUERY_LIMITED_INFORMATION PROCESS_QUERY_LIMITED_INFORMATION
  294. #else
  295. #define MDB_PROCESS_QUERY_LIMITED_INFORMATION 0x1000
  296. #endif
  297. #define Z "I"
  298. #else
  299. #define THREAD_RET void *
  300. #define THREAD_CREATE(thr,start,arg) pthread_create(&thr,NULL,start,arg)
  301. #define THREAD_FINISH(thr) pthread_join(thr,NULL)
  302. #define Z "z" /**< printf format modifier for size_t */
  303. /** For MDB_LOCK_FORMAT: True if readers take a pid lock in the lockfile */
  304. #define MDB_PIDLOCK 1
  305. #ifdef MDB_USE_POSIX_SEM
  306. typedef sem_t *mdb_mutex_t, *mdb_mutexref_t;
  307. #define LOCK_MUTEX0(mutex) mdb_sem_wait(mutex)
  308. #define UNLOCK_MUTEX(mutex) sem_post(mutex)
  309. static int
  310. mdb_sem_wait(sem_t *sem)
  311. {
  312. int rc;
  313. while ((rc = sem_wait(sem)) && (rc = errno) == EINTR) ;
  314. return rc;
  315. }
  316. #else /* MDB_USE_POSIX_MUTEX: */
  317. /** Shared mutex/semaphore as the original is stored.
  318. *
  319. * Not for copies. Instead it can be assigned to an #mdb_mutexref_t.
  320. * When mdb_mutexref_t is a pointer and mdb_mutex_t is not, then it
  321. * is array[size 1] so it can be assigned to the pointer.
  322. */
  323. typedef pthread_mutex_t mdb_mutex_t[1];
  324. /** Reference to an #mdb_mutex_t */
  325. typedef pthread_mutex_t *mdb_mutexref_t;
  326. /** Lock the reader or writer mutex.
  327. * Returns 0 or a code to give #mdb_mutex_failed(), as in #LOCK_MUTEX().
  328. */
  329. #define LOCK_MUTEX0(mutex) pthread_mutex_lock(mutex)
  330. /** Unlock the reader or writer mutex.
  331. */
  332. #define UNLOCK_MUTEX(mutex) pthread_mutex_unlock(mutex)
  333. /** Mark mutex-protected data as repaired, after death of previous owner.
  334. */
  335. #define mdb_mutex_consistent(mutex) pthread_mutex_consistent(mutex)
  336. #endif /* MDB_USE_POSIX_SEM */
  337. /** Get the error code for the last failed system function.
  338. */
  339. #define ErrCode() errno
  340. /** An abstraction for a file handle.
  341. * On POSIX systems file handles are small integers. On Windows
  342. * they're opaque pointers.
  343. */
  344. #define HANDLE int
  345. /** A value for an invalid file handle.
  346. * Mainly used to initialize file variables and signify that they are
  347. * unused.
  348. */
  349. #define INVALID_HANDLE_VALUE (-1)
  350. /** Get the size of a memory page for the system.
  351. * This is the basic size that the platform's memory manager uses, and is
  352. * fundamental to the use of memory-mapped files.
  353. */
  354. #define GET_PAGESIZE(x) ((x) = sysconf(_SC_PAGE_SIZE))
  355. #endif
  356. #if defined(_WIN32) || defined(MDB_USE_POSIX_SEM)
  357. #define MNAME_LEN 32
  358. #else
  359. #define MNAME_LEN (sizeof(pthread_mutex_t))
  360. #endif
  361. /** @} */
  362. #ifdef MDB_ROBUST_SUPPORTED
  363. /** Lock mutex, handle any error, set rc = result.
  364. * Return 0 on success, nonzero (not rc) on error.
  365. */
  366. #define LOCK_MUTEX(rc, env, mutex) \
  367. (((rc) = LOCK_MUTEX0(mutex)) && \
  368. ((rc) = mdb_mutex_failed(env, mutex, rc)))
  369. static int mdb_mutex_failed(MDB_env *env, mdb_mutexref_t mutex, int rc);
  370. #else
  371. #define LOCK_MUTEX(rc, env, mutex) ((rc) = LOCK_MUTEX0(mutex))
  372. #define mdb_mutex_failed(env, mutex, rc) (rc)
  373. #endif
  374. #ifndef _WIN32
  375. /** A flag for opening a file and requesting synchronous data writes.
  376. * This is only used when writing a meta page. It's not strictly needed;
  377. * we could just do a normal write and then immediately perform a flush.
  378. * But if this flag is available it saves us an extra system call.
  379. *
  380. * @note If O_DSYNC is undefined but exists in /usr/include,
  381. * preferably set some compiler flag to get the definition.
  382. */
  383. #ifndef MDB_DSYNC
  384. # ifdef O_DSYNC
  385. # define MDB_DSYNC O_DSYNC
  386. # else
  387. # define MDB_DSYNC O_SYNC
  388. # endif
  389. #endif
  390. #endif
  391. /** Function for flushing the data of a file. Define this to fsync
  392. * if fdatasync() is not supported.
  393. */
  394. #ifndef MDB_FDATASYNC
  395. # define MDB_FDATASYNC fdatasync
  396. #endif
  397. #ifndef MDB_MSYNC
  398. # define MDB_MSYNC(addr,len,flags) msync(addr,len,flags)
  399. #endif
  400. #ifndef MS_SYNC
  401. #define MS_SYNC 1
  402. #endif
  403. #ifndef MS_ASYNC
  404. #define MS_ASYNC 0
  405. #endif
  406. /** A page number in the database.
  407. * Note that 64 bit page numbers are overkill, since pages themselves
  408. * already represent 12-13 bits of addressable memory, and the OS will
  409. * always limit applications to a maximum of 63 bits of address space.
  410. *
  411. * @note In the #MDB_node structure, we only store 48 bits of this value,
  412. * which thus limits us to only 60 bits of addressable data.
  413. */
  414. typedef MDB_ID pgno_t;
  415. /** A transaction ID.
  416. * See struct MDB_txn.mt_txnid for details.
  417. */
  418. typedef MDB_ID txnid_t;
  419. /** @defgroup debug Debug Macros
  420. * @{
  421. */
  422. #ifndef MDB_DEBUG
  423. /** Enable debug output. Needs variable argument macros (a C99 feature).
  424. * Set this to 1 for copious tracing. Set to 2 to add dumps of all IDLs
  425. * read from and written to the database (used for free space management).
  426. */
  427. #define MDB_DEBUG 0
  428. #endif
  429. #if MDB_DEBUG
  430. static int mdb_debug;
  431. static txnid_t mdb_debug_start;
  432. /** Print a debug message with printf formatting.
  433. * Requires double parenthesis around 2 or more args.
  434. */
  435. # define DPRINTF(args) ((void) ((mdb_debug) && DPRINTF0 args))
  436. # define DPRINTF0(fmt, ...) \
  437. fprintf(stderr, "%s:%d " fmt "\n", mdb_func_, __LINE__, __VA_ARGS__)
  438. #else
  439. # define DPRINTF(args) ((void) 0)
  440. #endif
  441. /** Print a debug string.
  442. * The string is printed literally, with no format processing.
  443. */
  444. #define DPUTS(arg) DPRINTF(("%s", arg))
  445. /** Debuging output value of a cursor DBI: Negative in a sub-cursor. */
  446. #define DDBI(mc) \
  447. (((mc)->mc_flags & C_SUB) ? -(int)(mc)->mc_dbi : (int)(mc)->mc_dbi)
  448. /** @} */
  449. /** @brief The maximum size of a database page.
  450. *
  451. * It is 32k or 64k, since value-PAGEBASE must fit in
  452. * #MDB_page.%mp_upper.
  453. *
  454. * LMDB will use database pages < OS pages if needed.
  455. * That causes more I/O in write transactions: The OS must
  456. * know (read) the whole page before writing a partial page.
  457. *
  458. * Note that we don't currently support Huge pages. On Linux,
  459. * regular data files cannot use Huge pages, and in general
  460. * Huge pages aren't actually pageable. We rely on the OS
  461. * demand-pager to read our data and page it out when memory
  462. * pressure from other processes is high. So until OSs have
  463. * actual paging support for Huge pages, they're not viable.
  464. */
  465. #define MAX_PAGESIZE (PAGEBASE ? 0x10000 : 0x8000)
  466. /** The minimum number of keys required in a database page.
  467. * Setting this to a larger value will place a smaller bound on the
  468. * maximum size of a data item. Data items larger than this size will
  469. * be pushed into overflow pages instead of being stored directly in
  470. * the B-tree node. This value used to default to 4. With a page size
  471. * of 4096 bytes that meant that any item larger than 1024 bytes would
  472. * go into an overflow page. That also meant that on average 2-3KB of
  473. * each overflow page was wasted space. The value cannot be lower than
  474. * 2 because then there would no longer be a tree structure. With this
  475. * value, items larger than 2KB will go into overflow pages, and on
  476. * average only 1KB will be wasted.
  477. */
  478. #define MDB_MINKEYS 2
  479. /** A stamp that identifies a file as an LMDB file.
  480. * There's nothing special about this value other than that it is easily
  481. * recognizable, and it will reflect any byte order mismatches.
  482. */
  483. #define MDB_MAGIC 0xBEEFC0DE
  484. /** The version number for a database's datafile format. */
  485. #define MDB_DATA_VERSION ((MDB_DEVEL) ? 999 : 1)
  486. /** The version number for a database's lockfile format. */
  487. #define MDB_LOCK_VERSION 1
  488. /** @brief The max size of a key we can write, or 0 for computed max.
  489. *
  490. * This macro should normally be left alone or set to 0.
  491. * Note that a database with big keys or dupsort data cannot be
  492. * reliably modified by a liblmdb which uses a smaller max.
  493. * The default is 511 for backwards compat, or 0 when #MDB_DEVEL.
  494. *
  495. * Other values are allowed, for backwards compat. However:
  496. * A value bigger than the computed max can break if you do not
  497. * know what you are doing, and liblmdb <= 0.9.10 can break when
  498. * modifying a DB with keys/dupsort data bigger than its max.
  499. *
  500. * Data items in an #MDB_DUPSORT database are also limited to
  501. * this size, since they're actually keys of a sub-DB. Keys and
  502. * #MDB_DUPSORT data items must fit on a node in a regular page.
  503. */
  504. #ifndef MDB_MAXKEYSIZE
  505. #define MDB_MAXKEYSIZE ((MDB_DEVEL) ? 0 : 511)
  506. #endif
  507. /** The maximum size of a key we can write to the environment. */
  508. #if MDB_MAXKEYSIZE
  509. #define ENV_MAXKEY(env) (MDB_MAXKEYSIZE)
  510. #else
  511. #define ENV_MAXKEY(env) ((env)->me_maxkey)
  512. #endif
  513. /** @brief The maximum size of a data item.
  514. *
  515. * We only store a 32 bit value for node sizes.
  516. */
  517. #define MAXDATASIZE 0xffffffffUL
  518. #if MDB_DEBUG
  519. /** Key size which fits in a #DKBUF.
  520. * @ingroup debug
  521. */
  522. #define DKBUF_MAXKEYSIZE ((MDB_MAXKEYSIZE) > 0 ? (MDB_MAXKEYSIZE) : 511)
  523. /** A key buffer.
  524. * @ingroup debug
  525. * This is used for printing a hex dump of a key's contents.
  526. */
  527. #define DKBUF char kbuf[DKBUF_MAXKEYSIZE*2+1]
  528. /** Display a key in hex.
  529. * @ingroup debug
  530. * Invoke a function to display a key in hex.
  531. */
  532. #define DKEY(x) mdb_dkey(x, kbuf)
  533. #else
  534. #define DKBUF
  535. #define DKEY(x) 0
  536. #endif
  537. /** An invalid page number.
  538. * Mainly used to denote an empty tree.
  539. */
  540. #define P_INVALID (~(pgno_t)0)
  541. /** Test if the flags \b f are set in a flag word \b w. */
  542. #define F_ISSET(w, f) (((w) & (f)) == (f))
  543. /** Round \b n up to an even number. */
  544. #define EVEN(n) (((n) + 1U) & -2) /* sign-extending -2 to match n+1U */
  545. /** Used for offsets within a single page.
  546. * Since memory pages are typically 4 or 8KB in size, 12-13 bits,
  547. * this is plenty.
  548. */
  549. typedef uint16_t indx_t;
  550. /** Default size of memory map.
  551. * This is certainly too small for any actual applications. Apps should always set
  552. * the size explicitly using #mdb_env_set_mapsize().
  553. */
  554. #define DEFAULT_MAPSIZE 1048576
  555. /** @defgroup readers Reader Lock Table
  556. * Readers don't acquire any locks for their data access. Instead, they
  557. * simply record their transaction ID in the reader table. The reader
  558. * mutex is needed just to find an empty slot in the reader table. The
  559. * slot's address is saved in thread-specific data so that subsequent read
  560. * transactions started by the same thread need no further locking to proceed.
  561. *
  562. * If #MDB_NOTLS is set, the slot address is not saved in thread-specific data.
  563. *
  564. * No reader table is used if the database is on a read-only filesystem, or
  565. * if #MDB_NOLOCK is set.
  566. *
  567. * Since the database uses multi-version concurrency control, readers don't
  568. * actually need any locking. This table is used to keep track of which
  569. * readers are using data from which old transactions, so that we'll know
  570. * when a particular old transaction is no longer in use. Old transactions
  571. * that have discarded any data pages can then have those pages reclaimed
  572. * for use by a later write transaction.
  573. *
  574. * The lock table is constructed such that reader slots are aligned with the
  575. * processor's cache line size. Any slot is only ever used by one thread.
  576. * This alignment guarantees that there will be no contention or cache
  577. * thrashing as threads update their own slot info, and also eliminates
  578. * any need for locking when accessing a slot.
  579. *
  580. * A writer thread will scan every slot in the table to determine the oldest
  581. * outstanding reader transaction. Any freed pages older than this will be
  582. * reclaimed by the writer. The writer doesn't use any locks when scanning
  583. * this table. This means that there's no guarantee that the writer will
  584. * see the most up-to-date reader info, but that's not required for correct
  585. * operation - all we need is to know the upper bound on the oldest reader,
  586. * we don't care at all about the newest reader. So the only consequence of
  587. * reading stale information here is that old pages might hang around a
  588. * while longer before being reclaimed. That's actually good anyway, because
  589. * the longer we delay reclaiming old pages, the more likely it is that a
  590. * string of contiguous pages can be found after coalescing old pages from
  591. * many old transactions together.
  592. * @{
  593. */
  594. /** Number of slots in the reader table.
  595. * This value was chosen somewhat arbitrarily. 126 readers plus a
  596. * couple mutexes fit exactly into 8KB on my development machine.
  597. * Applications should set the table size using #mdb_env_set_maxreaders().
  598. */
  599. #define DEFAULT_READERS 126
  600. /** The size of a CPU cache line in bytes. We want our lock structures
  601. * aligned to this size to avoid false cache line sharing in the
  602. * lock table.
  603. * This value works for most CPUs. For Itanium this should be 128.
  604. */
  605. #ifndef CACHELINE
  606. #define CACHELINE 64
  607. #endif
  608. /** The information we store in a single slot of the reader table.
  609. * In addition to a transaction ID, we also record the process and
  610. * thread ID that owns a slot, so that we can detect stale information,
  611. * e.g. threads or processes that went away without cleaning up.
  612. * @note We currently don't check for stale records. We simply re-init
  613. * the table when we know that we're the only process opening the
  614. * lock file.
  615. */
  616. typedef struct MDB_rxbody {
  617. /** Current Transaction ID when this transaction began, or (txnid_t)-1.
  618. * Multiple readers that start at the same time will probably have the
  619. * same ID here. Again, it's not important to exclude them from
  620. * anything; all we need to know is which version of the DB they
  621. * started from so we can avoid overwriting any data used in that
  622. * particular version.
  623. */
  624. volatile txnid_t mrb_txnid;
  625. /** The process ID of the process owning this reader txn. */
  626. volatile MDB_PID_T mrb_pid;
  627. /** The thread ID of the thread owning this txn. */
  628. volatile MDB_THR_T mrb_tid;
  629. } MDB_rxbody;
  630. /** The actual reader record, with cacheline padding. */
  631. typedef struct MDB_reader {
  632. union {
  633. MDB_rxbody mrx;
  634. /** shorthand for mrb_txnid */
  635. #define mr_txnid mru.mrx.mrb_txnid
  636. #define mr_pid mru.mrx.mrb_pid
  637. #define mr_tid mru.mrx.mrb_tid
  638. /** cache line alignment */
  639. char pad[(sizeof(MDB_rxbody)+CACHELINE-1) & ~(CACHELINE-1)];
  640. } mru;
  641. } MDB_reader;
  642. /** The header for the reader table.
  643. * The table resides in a memory-mapped file. (This is a different file
  644. * than is used for the main database.)
  645. *
  646. * For POSIX the actual mutexes reside in the shared memory of this
  647. * mapped file. On Windows, mutexes are named objects allocated by the
  648. * kernel; we store the mutex names in this mapped file so that other
  649. * processes can grab them. This same approach is also used on
  650. * MacOSX/Darwin (using named semaphores) since MacOSX doesn't support
  651. * process-shared POSIX mutexes. For these cases where a named object
  652. * is used, the object name is derived from a 64 bit FNV hash of the
  653. * environment pathname. As such, naming collisions are extremely
  654. * unlikely. If a collision occurs, the results are unpredictable.
  655. */
  656. typedef struct MDB_txbody {
  657. /** Stamp identifying this as an LMDB file. It must be set
  658. * to #MDB_MAGIC. */
  659. uint32_t mtb_magic;
  660. /** Format of this lock file. Must be set to #MDB_LOCK_FORMAT. */
  661. uint32_t mtb_format;
  662. #if defined(_WIN32) || defined(MDB_USE_POSIX_SEM)
  663. char mtb_rmname[MNAME_LEN];
  664. #else
  665. /** Mutex protecting access to this table.
  666. * This is the reader table lock used with LOCK_MUTEX().
  667. */
  668. mdb_mutex_t mtb_rmutex;
  669. #endif
  670. /** The ID of the last transaction committed to the database.
  671. * This is recorded here only for convenience; the value can always
  672. * be determined by reading the main database meta pages.
  673. */
  674. volatile txnid_t mtb_txnid;
  675. /** The number of slots that have been used in the reader table.
  676. * This always records the maximum count, it is not decremented
  677. * when readers release their slots.
  678. */
  679. volatile unsigned mtb_numreaders;
  680. } MDB_txbody;
  681. /** The actual reader table definition. */
  682. typedef struct MDB_txninfo {
  683. union {
  684. MDB_txbody mtb;
  685. #define mti_magic mt1.mtb.mtb_magic
  686. #define mti_format mt1.mtb.mtb_format
  687. #define mti_rmutex mt1.mtb.mtb_rmutex
  688. #define mti_rmname mt1.mtb.mtb_rmname
  689. #define mti_txnid mt1.mtb.mtb_txnid
  690. #define mti_numreaders mt1.mtb.mtb_numreaders
  691. char pad[(sizeof(MDB_txbody)+CACHELINE-1) & ~(CACHELINE-1)];
  692. } mt1;
  693. union {
  694. #if defined(_WIN32) || defined(MDB_USE_POSIX_SEM)
  695. char mt2_wmname[MNAME_LEN];
  696. #define mti_wmname mt2.mt2_wmname
  697. #else
  698. mdb_mutex_t mt2_wmutex;
  699. #define mti_wmutex mt2.mt2_wmutex
  700. #endif
  701. char pad[(MNAME_LEN+CACHELINE-1) & ~(CACHELINE-1)];
  702. } mt2;
  703. MDB_reader mti_readers[1];
  704. } MDB_txninfo;
  705. /** Lockfile format signature: version, features and field layout */
  706. #define MDB_LOCK_FORMAT \
  707. ((uint32_t) \
  708. ((MDB_LOCK_VERSION) \
  709. /* Flags which describe functionality */ \
  710. + (((MDB_PIDLOCK) != 0) << 16)))
  711. /** @} */
  712. /** Common header for all page types. The page type depends on #mp_flags.
  713. *
  714. * #P_BRANCH and #P_LEAF pages have unsorted '#MDB_node's at the end, with
  715. * sorted #mp_ptrs[] entries referring to them. Exception: #P_LEAF2 pages
  716. * omit mp_ptrs and pack sorted #MDB_DUPFIXED values after the page header.
  717. *
  718. * #P_OVERFLOW records occupy one or more contiguous pages where only the
  719. * first has a page header. They hold the real data of #F_BIGDATA nodes.
  720. *
  721. * #P_SUBP sub-pages are small leaf "pages" with duplicate data.
  722. * A node with flag #F_DUPDATA but not #F_SUBDATA contains a sub-page.
  723. * (Duplicate data can also go in sub-databases, which use normal pages.)
  724. *
  725. * #P_META pages contain #MDB_meta, the start point of an LMDB snapshot.
  726. *
  727. * Each non-metapage up to #MDB_meta.%mm_last_pg is reachable exactly once
  728. * in the snapshot: Either used by a database or listed in a freeDB record.
  729. */
  730. typedef struct MDB_page {
  731. #define mp_pgno mp_p.p_pgno
  732. #define mp_next mp_p.p_next
  733. union {
  734. pgno_t p_pgno; /**< page number */
  735. struct MDB_page *p_next; /**< for in-memory list of freed pages */
  736. } mp_p;
  737. uint16_t mp_pad; /**< key size if this is a LEAF2 page */
  738. /** @defgroup mdb_page Page Flags
  739. * @ingroup internal
  740. * Flags for the page headers.
  741. * @{
  742. */
  743. #define P_BRANCH 0x01 /**< branch page */
  744. #define P_LEAF 0x02 /**< leaf page */
  745. #define P_OVERFLOW 0x04 /**< overflow page */
  746. #define P_META 0x08 /**< meta page */
  747. #define P_DIRTY 0x10 /**< dirty page, also set for #P_SUBP pages */
  748. #define P_LEAF2 0x20 /**< for #MDB_DUPFIXED records */
  749. #define P_SUBP 0x40 /**< for #MDB_DUPSORT sub-pages */
  750. #define P_LOOSE 0x4000 /**< page was dirtied then freed, can be reused */
  751. #define P_KEEP 0x8000 /**< leave this page alone during spill */
  752. /** @} */
  753. uint16_t mp_flags; /**< @ref mdb_page */
  754. #define mp_lower mp_pb.pb.pb_lower
  755. #define mp_upper mp_pb.pb.pb_upper
  756. #define mp_pages mp_pb.pb_pages
  757. union {
  758. struct {
  759. indx_t pb_lower; /**< lower bound of free space */
  760. indx_t pb_upper; /**< upper bound of free space */
  761. } pb;
  762. uint32_t pb_pages; /**< number of overflow pages */
  763. } mp_pb;
  764. indx_t mp_ptrs[1]; /**< dynamic size */
  765. } MDB_page;
  766. /** Size of the page header, excluding dynamic data at the end */
  767. #define PAGEHDRSZ ((unsigned) offsetof(MDB_page, mp_ptrs))
  768. /** Address of first usable data byte in a page, after the header */
  769. #define METADATA(p) ((void *)((char *)(p) + PAGEHDRSZ))
  770. /** ITS#7713, change PAGEBASE to handle 65536 byte pages */
  771. #define PAGEBASE ((MDB_DEVEL) ? PAGEHDRSZ : 0)
  772. /** Number of nodes on a page */
  773. #define NUMKEYS(p) (((p)->mp_lower - (PAGEHDRSZ-PAGEBASE)) >> 1)
  774. /** The amount of space remaining in the page */
  775. #define SIZELEFT(p) (indx_t)((p)->mp_upper - (p)->mp_lower)
  776. /** The percentage of space used in the page, in tenths of a percent. */
  777. #define PAGEFILL(env, p) (1000L * ((env)->me_psize - PAGEHDRSZ - SIZELEFT(p)) / \
  778. ((env)->me_psize - PAGEHDRSZ))
  779. /** The minimum page fill factor, in tenths of a percent.
  780. * Pages emptier than this are candidates for merging.
  781. */
  782. #define FILL_THRESHOLD 250
  783. /** Test if a page is a leaf page */
  784. #define IS_LEAF(p) F_ISSET((p)->mp_flags, P_LEAF)
  785. /** Test if a page is a LEAF2 page */
  786. #define IS_LEAF2(p) F_ISSET((p)->mp_flags, P_LEAF2)
  787. /** Test if a page is a branch page */
  788. #define IS_BRANCH(p) F_ISSET((p)->mp_flags, P_BRANCH)
  789. /** Test if a page is an overflow page */
  790. #define IS_OVERFLOW(p) F_ISSET((p)->mp_flags, P_OVERFLOW)
  791. /** Test if a page is a sub page */
  792. #define IS_SUBP(p) F_ISSET((p)->mp_flags, P_SUBP)
  793. /** The number of overflow pages needed to store the given size. */
  794. #define OVPAGES(size, psize) ((PAGEHDRSZ-1 + (size)) / (psize) + 1)
  795. /** Link in #MDB_txn.%mt_loose_pgs list.
  796. * Kept outside the page header, which is needed when reusing the page.
  797. */
  798. #define NEXT_LOOSE_PAGE(p) (*(MDB_page **)((p) + 2))
  799. /** Header for a single key/data pair within a page.
  800. * Used in pages of type #P_BRANCH and #P_LEAF without #P_LEAF2.
  801. * We guarantee 2-byte alignment for 'MDB_node's.
  802. *
  803. * #mn_lo and #mn_hi are used for data size on leaf nodes, and for child
  804. * pgno on branch nodes. On 64 bit platforms, #mn_flags is also used
  805. * for pgno. (Branch nodes have no flags). Lo and hi are in host byte
  806. * order in case some accesses can be optimized to 32-bit word access.
  807. *
  808. * Leaf node flags describe node contents. #F_BIGDATA says the node's
  809. * data part is the page number of an overflow page with actual data.
  810. * #F_DUPDATA and #F_SUBDATA can be combined giving duplicate data in
  811. * a sub-page/sub-database, and named databases (just #F_SUBDATA).
  812. */
  813. typedef struct MDB_node {
  814. /** part of data size or pgno
  815. * @{ */
  816. #if BYTE_ORDER == LITTLE_ENDIAN
  817. unsigned short mn_lo, mn_hi;
  818. #else
  819. unsigned short mn_hi, mn_lo;
  820. #endif
  821. /** @} */
  822. /** @defgroup mdb_node Node Flags
  823. * @ingroup internal
  824. * Flags for node headers.
  825. * @{
  826. */
  827. #define F_BIGDATA 0x01 /**< data put on overflow page */
  828. #define F_SUBDATA 0x02 /**< data is a sub-database */
  829. #define F_DUPDATA 0x04 /**< data has duplicates */
  830. /** valid flags for #mdb_node_add() */
  831. #define NODE_ADD_FLAGS (F_DUPDATA|F_SUBDATA|MDB_RESERVE|MDB_APPEND)
  832. /** @} */
  833. unsigned short mn_flags; /**< @ref mdb_node */
  834. unsigned short mn_ksize; /**< key size */
  835. char mn_data[1]; /**< key and data are appended here */
  836. } MDB_node;
  837. /** Size of the node header, excluding dynamic data at the end */
  838. #define NODESIZE offsetof(MDB_node, mn_data)
  839. /** Bit position of top word in page number, for shifting mn_flags */
  840. #define PGNO_TOPWORD ((pgno_t)-1 > 0xffffffffu ? 32 : 0)
  841. /** Size of a node in a branch page with a given key.
  842. * This is just the node header plus the key, there is no data.
  843. */
  844. #define INDXSIZE(k) (NODESIZE + ((k) == NULL ? 0 : (k)->mv_size))
  845. /** Size of a node in a leaf page with a given key and data.
  846. * This is node header plus key plus data size.
  847. */
  848. #define LEAFSIZE(k, d) (NODESIZE + (k)->mv_size + (d)->mv_size)
  849. /** Address of node \b i in page \b p */
  850. #define NODEPTR(p, i) ((MDB_node *)((char *)(p) + (p)->mp_ptrs[i] + PAGEBASE))
  851. /** Address of the key for the node */
  852. #define NODEKEY(node) (void *)((node)->mn_data)
  853. /** Address of the data for a node */
  854. #define NODEDATA(node) (void *)((char *)(node)->mn_data + (node)->mn_ksize)
  855. /** Get the page number pointed to by a branch node */
  856. #define NODEPGNO(node) \
  857. ((node)->mn_lo | ((pgno_t) (node)->mn_hi << 16) | \
  858. (PGNO_TOPWORD ? ((pgno_t) (node)->mn_flags << PGNO_TOPWORD) : 0))
  859. /** Set the page number in a branch node */
  860. #define SETPGNO(node,pgno) do { \
  861. (node)->mn_lo = (pgno) & 0xffff; (node)->mn_hi = (pgno) >> 16; \
  862. if (PGNO_TOPWORD) (node)->mn_flags = (pgno) >> PGNO_TOPWORD; } while(0)
  863. /** Get the size of the data in a leaf node */
  864. #define NODEDSZ(node) ((node)->mn_lo | ((unsigned)(node)->mn_hi << 16))
  865. /** Set the size of the data for a leaf node */
  866. #define SETDSZ(node,size) do { \
  867. (node)->mn_lo = (size) & 0xffff; (node)->mn_hi = (size) >> 16;} while(0)
  868. /** The size of a key in a node */
  869. #define NODEKSZ(node) ((node)->mn_ksize)
  870. /** Copy a page number from src to dst */
  871. #ifdef MISALIGNED_OK
  872. #define COPY_PGNO(dst,src) dst = src
  873. #else
  874. #if SIZE_MAX > 4294967295UL
  875. #define COPY_PGNO(dst,src) do { \
  876. unsigned short *s, *d; \
  877. s = (unsigned short *)&(src); \
  878. d = (unsigned short *)&(dst); \
  879. *d++ = *s++; \
  880. *d++ = *s++; \
  881. *d++ = *s++; \
  882. *d = *s; \
  883. } while (0)
  884. #else
  885. #define COPY_PGNO(dst,src) do { \
  886. unsigned short *s, *d; \
  887. s = (unsigned short *)&(src); \
  888. d = (unsigned short *)&(dst); \
  889. *d++ = *s++; \
  890. *d = *s; \
  891. } while (0)
  892. #endif
  893. #endif
  894. /** The address of a key in a LEAF2 page.
  895. * LEAF2 pages are used for #MDB_DUPFIXED sorted-duplicate sub-DBs.
  896. * There are no node headers, keys are stored contiguously.
  897. */
  898. #define LEAF2KEY(p, i, ks) ((char *)(p) + PAGEHDRSZ + ((i)*(ks)))
  899. /** Set the \b node's key into \b keyptr, if requested. */
  900. #define MDB_GET_KEY(node, keyptr) { if ((keyptr) != NULL) { \
  901. (keyptr)->mv_size = NODEKSZ(node); (keyptr)->mv_data = NODEKEY(node); } }
  902. /** Set the \b node's key into \b key. */
  903. #define MDB_GET_KEY2(node, key) { key.mv_size = NODEKSZ(node); key.mv_data = NODEKEY(node); }
  904. /** Information about a single database in the environment. */
  905. typedef struct MDB_db {
  906. uint32_t md_pad; /**< also ksize for LEAF2 pages */
  907. uint16_t md_flags; /**< @ref mdb_dbi_open */
  908. uint16_t md_depth; /**< depth of this tree */
  909. pgno_t md_branch_pages; /**< number of internal pages */
  910. pgno_t md_leaf_pages; /**< number of leaf pages */
  911. pgno_t md_overflow_pages; /**< number of overflow pages */
  912. size_t md_entries; /**< number of data items */
  913. pgno_t md_root; /**< the root page of this tree */
  914. } MDB_db;
  915. #define MDB_VALID 0x8000 /**< DB handle is valid, for me_dbflags */
  916. #define PERSISTENT_FLAGS (0xffff & ~(MDB_VALID))
  917. /** #mdb_dbi_open() flags */
  918. #define VALID_FLAGS (MDB_REVERSEKEY|MDB_DUPSORT|MDB_INTEGERKEY|MDB_DUPFIXED|\
  919. MDB_INTEGERDUP|MDB_REVERSEDUP|MDB_CREATE)
  920. /** Handle for the DB used to track free pages. */
  921. #define FREE_DBI 0
  922. /** Handle for the default DB. */
  923. #define MAIN_DBI 1
  924. /** Number of DBs in metapage (free and main) - also hardcoded elsewhere */
  925. #define CORE_DBS 2
  926. /** Number of meta pages - also hardcoded elsewhere */
  927. #define NUM_METAS 2
  928. /** Meta page content.
  929. * A meta page is the start point for accessing a database snapshot.
  930. * Pages 0-1 are meta pages. Transaction N writes meta page #(N % 2).
  931. */
  932. typedef struct MDB_meta {
  933. /** Stamp identifying this as an LMDB file. It must be set
  934. * to #MDB_MAGIC. */
  935. uint32_t mm_magic;
  936. /** Version number of this file. Must be set to #MDB_DATA_VERSION. */
  937. uint32_t mm_version;
  938. void *mm_address; /**< address for fixed mapping */
  939. size_t mm_mapsize; /**< size of mmap region */
  940. MDB_db mm_dbs[CORE_DBS]; /**< first is free space, 2nd is main db */
  941. /** The size of pages used in this DB */
  942. #define mm_psize mm_dbs[FREE_DBI].md_pad
  943. /** Any persistent environment flags. @ref mdb_env */
  944. #define mm_flags mm_dbs[FREE_DBI].md_flags
  945. /** Last used page in the datafile.
  946. * Actually the file may be shorter if the freeDB lists the final pages.
  947. */
  948. pgno_t mm_last_pg;
  949. volatile txnid_t mm_txnid; /**< txnid that committed this page */
  950. } MDB_meta;
  951. /** Buffer for a stack-allocated meta page.
  952. * The members define size and alignment, and silence type
  953. * aliasing warnings. They are not used directly; that could
  954. * mean incorrectly using several union members in parallel.
  955. */
  956. typedef union MDB_metabuf {
  957. MDB_page mb_page;
  958. struct {
  959. char mm_pad[PAGEHDRSZ];
  960. MDB_meta mm_meta;
  961. } mb_metabuf;
  962. } MDB_metabuf;
  963. /** Auxiliary DB info.
  964. * The information here is mostly static/read-only. There is
  965. * only a single copy of this record in the environment.
  966. */
  967. typedef struct MDB_dbx {
  968. MDB_val md_name; /**< name of the database */
  969. MDB_cmp_func *md_cmp; /**< function for comparing keys */
  970. MDB_cmp_func *md_dcmp; /**< function for comparing data items */
  971. MDB_rel_func *md_rel; /**< user relocate function */
  972. void *md_relctx; /**< user-provided context for md_rel */
  973. } MDB_dbx;
  974. /** A database transaction.
  975. * Every operation requires a transaction handle.
  976. */
  977. struct MDB_txn {
  978. MDB_txn *mt_parent; /**< parent of a nested txn */
  979. /** Nested txn under this txn, set together with flag #MDB_TXN_HAS_CHILD */
  980. MDB_txn *mt_child;
  981. pgno_t mt_next_pgno; /**< next unallocated page */
  982. /** The ID of this transaction. IDs are integers incrementing from 1.
  983. * Only committed write transactions increment the ID. If a transaction
  984. * aborts, the ID may be re-used by the next writer.
  985. */
  986. txnid_t mt_txnid;
  987. MDB_env *mt_env; /**< the DB environment */
  988. /** The list of pages that became unused during this transaction.
  989. */
  990. MDB_IDL mt_free_pgs;
  991. /** The list of loose pages that became unused and may be reused
  992. * in this transaction, linked through #NEXT_LOOSE_PAGE(page).
  993. */
  994. MDB_page *mt_loose_pgs;
  995. /** Number of loose pages (#mt_loose_pgs) */
  996. int mt_loose_count;
  997. /** The sorted list of dirty pages we temporarily wrote to disk
  998. * because the dirty list was full. page numbers in here are
  999. * shifted left by 1, deleted slots have the LSB set.
  1000. */
  1001. MDB_IDL mt_spill_pgs;
  1002. union {
  1003. /** For write txns: Modified pages. Sorted when not MDB_WRITEMAP. */
  1004. MDB_ID2L dirty_list;
  1005. /** For read txns: This thread/txn's reader table slot, or NULL. */
  1006. MDB_reader *reader;
  1007. } mt_u;
  1008. /** Array of records for each DB known in the environment. */
  1009. MDB_dbx *mt_dbxs;
  1010. /** Array of MDB_db records for each known DB */
  1011. MDB_db *mt_dbs;
  1012. /** Array of sequence numbers for each DB handle */
  1013. unsigned int *mt_dbiseqs;
  1014. /** @defgroup mt_dbflag Transaction DB Flags
  1015. * @ingroup internal
  1016. * @{
  1017. */
  1018. #define DB_DIRTY 0x01 /**< DB was written in this txn */
  1019. #define DB_STALE 0x02 /**< Named-DB record is older than txnID */
  1020. #define DB_NEW 0x04 /**< Named-DB handle opened in this txn */
  1021. #define DB_VALID 0x08 /**< DB handle is valid, see also #MDB_VALID */
  1022. #define DB_USRVALID 0x10 /**< As #DB_VALID, but not set for #FREE_DBI */
  1023. #define DB_DUPDATA 0x20 /**< DB is #MDB_DUPSORT data */
  1024. /** @} */
  1025. /** In write txns, array of cursors for each DB */
  1026. MDB_cursor **mt_cursors;
  1027. /** Array of flags for each DB */
  1028. unsigned char *mt_dbflags;
  1029. /** Number of DB records in use, or 0 when the txn is finished.
  1030. * This number only ever increments until the txn finishes; we
  1031. * don't decrement it when individual DB handles are closed.
  1032. */
  1033. MDB_dbi mt_numdbs;
  1034. /** @defgroup mdb_txn Transaction Flags
  1035. * @ingroup internal
  1036. * @{
  1037. */
  1038. /** #mdb_txn_begin() flags */
  1039. #define MDB_TXN_BEGIN_FLAGS MDB_RDONLY
  1040. #define MDB_TXN_RDONLY MDB_RDONLY /**< read-only transaction */
  1041. /* internal txn flags */
  1042. #define MDB_TXN_WRITEMAP MDB_WRITEMAP /**< copy of #MDB_env flag in writers */
  1043. #define MDB_TXN_FINISHED 0x01 /**< txn is finished or never began */
  1044. #define MDB_TXN_ERROR 0x02 /**< txn is unusable after an error */
  1045. #define MDB_TXN_DIRTY 0x04 /**< must write, even if dirty list is empty */
  1046. #define MDB_TXN_SPILLS 0x08 /**< txn or a parent has spilled pages */
  1047. #define MDB_TXN_HAS_CHILD 0x10 /**< txn has an #MDB_txn.%mt_child */
  1048. /** most operations on the txn are currently illegal */
  1049. #define MDB_TXN_BLOCKED (MDB_TXN_FINISHED|MDB_TXN_ERROR|MDB_TXN_HAS_CHILD)
  1050. /** @} */
  1051. unsigned int mt_flags; /**< @ref mdb_txn */
  1052. /** #dirty_list room: Array size - \#dirty pages visible to this txn.
  1053. * Includes ancestor txns' dirty pages not hidden by other txns'
  1054. * dirty/spilled pages. Thus commit(nested txn) has room to merge
  1055. * dirty_list into mt_parent after freeing hidden mt_parent pages.
  1056. */
  1057. unsigned int mt_dirty_room;
  1058. };
  1059. /** Enough space for 2^32 nodes with minimum of 2 keys per node. I.e., plenty.
  1060. * At 4 keys per node, enough for 2^64 nodes, so there's probably no need to
  1061. * raise this on a 64 bit machine.
  1062. */
  1063. #define CURSOR_STACK 32
  1064. struct MDB_xcursor;
  1065. /** Cursors are used for all DB operations.
  1066. * A cursor holds a path of (page pointer, key index) from the DB
  1067. * root to a position in the DB, plus other state. #MDB_DUPSORT
  1068. * cursors include an xcursor to the current data item. Write txns
  1069. * track their cursors and keep them up to date when data moves.
  1070. * Exception: An xcursor's pointer to a #P_SUBP page can be stale.
  1071. * (A node with #F_DUPDATA but no #F_SUBDATA contains a subpage).
  1072. */
  1073. struct MDB_cursor {
  1074. /** Next cursor on this DB in this txn */
  1075. MDB_cursor *mc_next;
  1076. /** Backup of the original cursor if this cursor is a shadow */
  1077. MDB_cursor *mc_backup;
  1078. /** Context used for databases with #MDB_DUPSORT, otherwise NULL */
  1079. struct MDB_xcursor *mc_xcursor;
  1080. /** The transaction that owns this cursor */
  1081. MDB_txn *mc_txn;
  1082. /** The database handle this cursor operates on */
  1083. MDB_dbi mc_dbi;
  1084. /** The database record for this cursor */
  1085. MDB_db *mc_db;
  1086. /** The database auxiliary record for this cursor */
  1087. MDB_dbx *mc_dbx;
  1088. /** The @ref mt_dbflag for this database */
  1089. unsigned char *mc_dbflag;
  1090. unsigned short mc_snum; /**< number of pushed pages */
  1091. unsigned short mc_top; /**< index of top page, normally mc_snum-1 */
  1092. /** @defgroup mdb_cursor Cursor Flags
  1093. * @ingroup internal
  1094. * Cursor state flags.
  1095. * @{
  1096. */
  1097. #define C_INITIALIZED 0x01 /**< cursor has been initialized and is valid */
  1098. #define C_EOF 0x02 /**< No more data */
  1099. #define C_SUB 0x04 /**< Cursor is a sub-cursor */
  1100. #define C_DEL 0x08 /**< last op was a cursor_del */
  1101. #define C_UNTRACK 0x40 /**< Un-track cursor when closing */
  1102. /** @} */
  1103. unsigned int mc_flags; /**< @ref mdb_cursor */
  1104. MDB_page *mc_pg[CURSOR_STACK]; /**< stack of pushed pages */
  1105. indx_t mc_ki[CURSOR_STACK]; /**< stack of page indices */
  1106. };
  1107. /** Context for sorted-dup records.
  1108. * We could have gone to a fully recursive design, with arbitrarily
  1109. * deep nesting of sub-databases. But for now we only handle these
  1110. * levels - main DB, optional sub-DB, sorted-duplicate DB.
  1111. */
  1112. typedef struct MDB_xcursor {
  1113. /** A sub-cursor for traversing the Dup DB */
  1114. MDB_cursor mx_cursor;
  1115. /** The database record for this Dup DB */
  1116. MDB_db mx_db;
  1117. /** The auxiliary DB record for this Dup DB */
  1118. MDB_dbx mx_dbx;
  1119. /** The @ref mt_dbflag for this Dup DB */
  1120. unsigned char mx_dbflag;
  1121. } MDB_xcursor;
  1122. /** Check if there is an inited xcursor */
  1123. #define XCURSOR_INITED(mc) \
  1124. ((mc)->mc_xcursor && ((mc)->mc_xcursor->mx_cursor.mc_flags & C_INITIALIZED))
  1125. /** Update the xcursor's sub-page pointer, if any, in \b mc. Needed
  1126. * when the node which contains the sub-page may have moved. Called
  1127. * with leaf page \b mp = mc->mc_pg[\b top].
  1128. */
  1129. #define XCURSOR_REFRESH(mc, top, mp) do { \
  1130. MDB_page *xr_pg = (mp); \
  1131. MDB_node *xr_node; \
  1132. if (!XCURSOR_INITED(mc) || (mc)->mc_ki[top] >= NUMKEYS(xr_pg)) break; \
  1133. xr_node = NODEPTR(xr_pg, (mc)->mc_ki[top]); \
  1134. if ((xr_node->mn_flags & (F_DUPDATA|F_SUBDATA)) == F_DUPDATA) \
  1135. (mc)->mc_xcursor->mx_cursor.mc_pg[0] = NODEDATA(xr_node); \
  1136. } while (0)
  1137. /** State of FreeDB old pages, stored in the MDB_env */
  1138. typedef struct MDB_pgstate {
  1139. pgno_t *mf_pghead; /**< Reclaimed freeDB pages, or NULL before use */
  1140. txnid_t mf_pglast; /**< ID of last used record, or 0 if !mf_pghead */
  1141. } MDB_pgstate;
  1142. /** The database environment. */
  1143. struct MDB_env {
  1144. HANDLE me_fd; /**< The main data file */
  1145. HANDLE me_lfd; /**< The lock file */
  1146. HANDLE me_mfd; /**< For writing and syncing the meta pages */
  1147. /** Failed to update the meta page. Probably an I/O error. */
  1148. #define MDB_FATAL_ERROR 0x80000000U
  1149. /** Some fields are initialized. */
  1150. #define MDB_ENV_ACTIVE 0x20000000U
  1151. /** me_txkey is set */
  1152. #define MDB_ENV_TXKEY 0x10000000U
  1153. /** fdatasync is unreliable */
  1154. #define MDB_FSYNCONLY 0x08000000U
  1155. uint32_t me_flags; /**< @ref mdb_env */
  1156. unsigned int me_psize; /**< DB page size, inited from me_os_psize */
  1157. unsigned int me_os_psize; /**< OS page size, from #GET_PAGESIZE */
  1158. unsigned int me_maxreaders; /**< size of the reader table */
  1159. /** Max #MDB_txninfo.%mti_numreaders of interest to #mdb_env_close() */
  1160. volatile int me_close_readers;
  1161. MDB_dbi me_numdbs; /**< number of DBs opened */
  1162. MDB_dbi me_maxdbs; /**< size of the DB table */
  1163. MDB_PID_T me_pid; /**< process ID of this env */
  1164. char *me_path; /**< path to the DB files */
  1165. char *me_map; /**< the memory map of the data file */
  1166. MDB_txninfo *me_txns; /**< the memory map of the lock file or NULL */
  1167. MDB_meta *me_metas[NUM_METAS]; /**< pointers to the two meta pages */
  1168. void *me_pbuf; /**< scratch area for DUPSORT put() */
  1169. MDB_txn *me_txn; /**< current write transaction */
  1170. MDB_txn *me_txn0; /**< prealloc'd write transaction */
  1171. size_t me_mapsize; /**< size of the data memory map */
  1172. off_t me_size; /**< current file size */
  1173. pgno_t me_maxpg; /**< me_mapsize / me_psize */
  1174. MDB_dbx *me_dbxs; /**< array of static DB info */
  1175. uint16_t *me_dbflags; /**< array of flags from MDB_db.md_flags */
  1176. unsigned int *me_dbiseqs; /**< array of dbi sequence numbers */
  1177. pthread_key_t me_txkey; /**< thread-key for readers */
  1178. txnid_t me_pgoldest; /**< ID of oldest reader last time we looked */
  1179. MDB_pgstate me_pgstate; /**< state of old pages from freeDB */
  1180. # define me_pglast me_pgstate.mf_pglast
  1181. # define me_pghead me_pgstate.mf_pghead
  1182. MDB_page *me_dpages; /**< list of malloc'd blocks for re-use */
  1183. /** IDL of pages that became unused in a write txn */
  1184. MDB_IDL me_free_pgs;
  1185. /** ID2L of pages written during a write txn. Length MDB_IDL_UM_SIZE. */
  1186. MDB_ID2L me_dirty_list;
  1187. /** Max number of freelist items that can fit in a single overflow page */
  1188. int me_maxfree_1pg;
  1189. /** Max size of a node on a page */
  1190. unsigned int me_nodemax;
  1191. #if !(MDB_MAXKEYSIZE)
  1192. unsigned int me_maxkey; /**< max size of a key */
  1193. #endif
  1194. int me_live_reader; /**< have liveness lock in reader table */
  1195. #ifdef _WIN32
  1196. int me_pidquery; /**< Used in OpenProcess */
  1197. #endif
  1198. #ifdef MDB_USE_POSIX_MUTEX /* Posix mutexes reside in shared mem */
  1199. # define me_rmutex me_txns->mti_rmutex /**< Shared reader lock */
  1200. # define me_wmutex me_txns->mti_wmutex /**< Shared writer lock */
  1201. #else
  1202. mdb_mutex_t me_rmutex;
  1203. mdb_mutex_t me_wmutex;
  1204. #endif
  1205. void *me_userctx; /**< User-settable context */
  1206. MDB_assert_func *me_assert_func; /**< Callback for assertion failures */
  1207. };
  1208. /** Nested transaction */
  1209. typedef struct MDB_ntxn {
  1210. MDB_txn mnt_txn; /**< the transaction */
  1211. MDB_pgstate mnt_pgstate; /**< parent transaction's saved freestate */
  1212. } MDB_ntxn;
  1213. /** max number of pages to commit in one writev() call */
  1214. #define MDB_COMMIT_PAGES 64
  1215. #if defined(IOV_MAX) && IOV_MAX < MDB_COMMIT_PAGES
  1216. #undef MDB_COMMIT_PAGES
  1217. #define MDB_COMMIT_PAGES IOV_MAX
  1218. #endif
  1219. /** max bytes to write in one call */
  1220. #define MAX_WRITE (0x40000000U >> (sizeof(ssize_t) == 4))
  1221. /** Check \b txn and \b dbi arguments to a function */
  1222. #define TXN_DBI_EXIST(txn, dbi, validity) \
  1223. ((txn) && (dbi)<(txn)->mt_numdbs && ((txn)->mt_dbflags[dbi] & (validity)))
  1224. /** Check for misused \b dbi handles */
  1225. #define TXN_DBI_CHANGED(txn, dbi) \
  1226. ((txn)->mt_dbiseqs[dbi] != (txn)->mt_env->me_dbiseqs[dbi])
  1227. static int mdb_page_alloc(MDB_cursor *mc, int num, MDB_page **mp);
  1228. static int mdb_page_new(MDB_cursor *mc, uint32_t flags, int num, MDB_page **mp);
  1229. static int mdb_page_touch(MDB_cursor *mc);
  1230. #define MDB_END_NAMES {"committed", "empty-commit", "abort", "reset", \
  1231. "reset-tmp", "fail-begin", "fail-beginchild"}
  1232. enum {
  1233. /* mdb_txn_end operation number, for logging */
  1234. MDB_END_COMMITTED, MDB_END_EMPTY_COMMIT, MDB_END_ABORT, MDB_END_RESET,
  1235. MDB_END_RESET_TMP, MDB_END_FAIL_BEGIN, MDB_END_FAIL_BEGINCHILD
  1236. };
  1237. #define MDB_END_OPMASK 0x0F /**< mask for #mdb_txn_end() operation number */
  1238. #define MDB_END_UPDATE 0x10 /**< update env state (DBIs) */
  1239. #define MDB_END_FREE 0x20 /**< free txn unless it is #MDB_env.%me_txn0 */
  1240. #define MDB_END_SLOT MDB_NOTLS /**< release any reader slot if #MDB_NOTLS */
  1241. static void mdb_txn_end(MDB_txn *txn, unsigned mode);
  1242. static int mdb_page_get(MDB_cursor *mc, pgno_t pgno, MDB_page **mp, int *lvl);
  1243. static int mdb_page_search_root(MDB_cursor *mc,
  1244. MDB_val *key, int modify);
  1245. #define MDB_PS_MODIFY 1
  1246. #define MDB_PS_ROOTONLY 2
  1247. #define MDB_PS_FIRST 4
  1248. #define MDB_PS_LAST 8
  1249. static int mdb_page_search(MDB_cursor *mc,
  1250. MDB_val *key, int flags);
  1251. static int mdb_page_merge(MDB_cursor *csrc, MDB_cursor *cdst);
  1252. #define MDB_SPLIT_REPLACE MDB_APPENDDUP /**< newkey is not new */
  1253. static int mdb_page_split(MDB_cursor *mc, MDB_val *newkey, MDB_val *newdata,
  1254. pgno_t newpgno, unsigned int nflags);
  1255. static int mdb_env_read_header(MDB_env *env, MDB_meta *meta);
  1256. static MDB_meta *mdb_env_pick_meta(const MDB_env *env);
  1257. static int mdb_env_write_meta(MDB_txn *txn);
  1258. #ifdef MDB_USE_POSIX_MUTEX /* Drop unused excl arg */
  1259. # define mdb_env_close0(env, excl) mdb_env_close1(env)
  1260. #endif
  1261. static void mdb_env_close0(MDB_env *env, int excl);
  1262. static MDB_node *mdb_node_search(MDB_cursor *mc, MDB_val *key, int *exactp);
  1263. static int mdb_node_add(MDB_cursor *mc, indx_t indx,
  1264. MDB_val *key, MDB_val *data, pgno_t pgno, unsigned int flags);
  1265. static void mdb_node_del(MDB_cursor *mc, int ksize);
  1266. static void mdb_node_shrink(MDB_page *mp, indx_t indx);
  1267. static int mdb_node_move(MDB_cursor *csrc, MDB_cursor *cdst, int fromleft);
  1268. static int mdb_node_read(MDB_cursor *mc, MDB_node *leaf, MDB_val *data);
  1269. static size_t mdb_leaf_size(MDB_env *env, MDB_val *key, MDB_val *data);
  1270. static size_t mdb_branch_size(MDB_env *env, MDB_val *key);
  1271. static int mdb_rebalance(MDB_cursor *mc);
  1272. static int mdb_update_key(MDB_cursor *mc, MDB_val *key);
  1273. static void mdb_cursor_pop(MDB_cursor *mc);
  1274. static int mdb_cursor_push(MDB_cursor *mc, MDB_page *mp);
  1275. static int mdb_cursor_del0(MDB_cursor *mc);
  1276. static int mdb_del0(MDB_txn *txn, MDB_dbi dbi, MDB_val *key, MDB_val *data, unsigned flags);
  1277. static int mdb_cursor_sibling(MDB_cursor *mc, int move_right);
  1278. static int mdb_cursor_next(MDB_cursor *mc, MDB_val *key, MDB_val *data, MDB_cursor_op op);
  1279. static int mdb_cursor_prev(MDB_cursor *mc, MDB_val *key, MDB_val *data, MDB_cursor_op op);
  1280. static int mdb_cursor_set(MDB_cursor *mc, MDB_val *key, MDB_val *data, MDB_cursor_op op,
  1281. int *exactp);
  1282. static int mdb_cursor_first(MDB_cursor *mc, MDB_val *key, MDB_val *data);
  1283. static int mdb_cursor_last(MDB_cursor *mc, MDB_val *key, MDB_val *data);
  1284. static void mdb_cursor_init(MDB_cursor *mc, MDB_txn *txn, MDB_dbi dbi, MDB_xcursor *mx);
  1285. static void mdb_xcursor_init0(MDB_cursor *mc);
  1286. static void mdb_xcursor_init1(MDB_cursor *mc, MDB_node *node);
  1287. static void mdb_xcursor_init2(MDB_cursor *mc, MDB_xcursor *src_mx, int force);
  1288. static int mdb_drop0(MDB_cursor *mc, int subs);
  1289. static void mdb_default_cmp(MDB_txn *txn, MDB_dbi dbi);
  1290. static int mdb_reader_check0(MDB_env *env, int rlocked, int *dead);
  1291. /** @cond */
  1292. static MDB_cmp_func mdb_cmp_memn, mdb_cmp_memnr, mdb_cmp_int, mdb_cmp_cint, mdb_cmp_long;
  1293. /** @endcond */
  1294. /** Compare two items pointing at size_t's of unknown alignment. */
  1295. #ifdef MISALIGNED_OK
  1296. # define mdb_cmp_clong mdb_cmp_long
  1297. #else
  1298. # define mdb_cmp_clong mdb_cmp_cint
  1299. #endif
  1300. #ifdef _WIN32
  1301. static SECURITY_DESCRIPTOR mdb_null_sd;
  1302. static SECURITY_ATTRIBUTES mdb_all_sa;
  1303. static int mdb_sec_inited;
  1304. struct MDB_name;
  1305. static int utf8_to_utf16(const char *src, struct MDB_name *dst, int xtra);
  1306. #endif
  1307. /** Return the library version info. */
  1308. char * ESECT
  1309. mdb_version(int *major, int *minor, int *patch)
  1310. {
  1311. if (major) *major = MDB_VERSION_MAJOR;
  1312. if (minor) *minor = MDB_VERSION_MINOR;
  1313. if (patch) *patch = MDB_VERSION_PATCH;
  1314. return MDB_VERSION_STRING;
  1315. }
  1316. /** Table of descriptions for LMDB @ref errors */
  1317. static char *const mdb_errstr[] = {
  1318. "MDB_KEYEXIST: Key/data pair already exists",
  1319. "MDB_NOTFOUND: No matching key/data pair found",
  1320. "MDB_PAGE_NOTFOUND: Requested page not found",
  1321. "MDB_CORRUPTED: Located page was wrong type",
  1322. "MDB_PANIC: Update of meta page failed or environment had fatal error",
  1323. "MDB_VERSION_MISMATCH: Database environment version mismatch",
  1324. "MDB_INVALID: File is not an LMDB file",
  1325. "MDB_MAP_FULL: Environment mapsize limit reached",
  1326. "MDB_DBS_FULL: Environment maxdbs limit reached",
  1327. "MDB_READERS_FULL: Environment maxreaders limit reached",
  1328. "MDB_TLS_FULL: Thread-local storage keys full - too many environments open",
  1329. "MDB_TXN_FULL: Transaction has too many dirty pages - transaction too big",
  1330. "MDB_CURSOR_FULL: Internal error - cursor stack limit reached",
  1331. "MDB_PAGE_FULL: Internal error - page has no more space",
  1332. "MDB_MAP_RESIZED: Database contents grew beyond environment mapsize",
  1333. "MDB_INCOMPATIBLE: Operation and DB incompatible, or DB flags changed",
  1334. "MDB_BAD_RSLOT: Invalid reuse of reader locktable slot",
  1335. "MDB_BAD_TXN: Transaction must abort, has a child, or is invalid",
  1336. "MDB_BAD_VALSIZE: Unsupported size of key/DB name/data, or wrong DUPFIXED size",
  1337. "MDB_BAD_DBI: The specified DBI handle was closed/changed unexpectedly",
  1338. };
  1339. char *
  1340. mdb_strerror(int err)
  1341. {
  1342. #ifdef _WIN32
  1343. /** HACK: pad 4KB on stack over the buf. Return system msgs in buf.
  1344. * This works as long as no function between the call to mdb_strerror
  1345. * and the actual use of the message uses more than 4K of stack.
  1346. */
  1347. #define MSGSIZE 1024
  1348. #define PADSIZE 4096
  1349. char buf[MSGSIZE+PADSIZE], *ptr = buf;
  1350. #endif
  1351. int i;
  1352. if (!err)
  1353. return ("Successful return: 0");
  1354. if (err >= MDB_KEYEXIST && err <= MDB_LAST_ERRCODE) {
  1355. i = err - MDB_KEYEXIST;
  1356. return mdb_errstr[i];
  1357. }
  1358. #ifdef _WIN32
  1359. /* These are the C-runtime error codes we use. The comment indicates
  1360. * their numeric value, and the Win32 error they would correspond to
  1361. * if the error actually came from a Win32 API. A major mess, we should
  1362. * have used LMDB-specific error codes for everything.
  1363. */
  1364. switch(err) {
  1365. case ENOENT: /* 2, FILE_NOT_FOUND */
  1366. case EIO: /* 5, ACCESS_DENIED */
  1367. case ENOMEM: /* 12, INVALID_ACCESS */
  1368. case EACCES: /* 13, INVALID_DATA */
  1369. case EBUSY: /* 16, CURRENT_DIRECTORY */
  1370. case EINVAL: /* 22, BAD_COMMAND */
  1371. case ENOSPC: /* 28, OUT_OF_PAPER */
  1372. return strerror(err);
  1373. default:
  1374. ;
  1375. }
  1376. buf[0] = 0;
  1377. FormatMessageA(FORMAT_MESSAGE_FROM_SYSTEM |
  1378. FORMAT_MESSAGE_IGNORE_INSERTS,
  1379. NULL, err, 0, ptr, MSGSIZE, (va_list *)buf+MSGSIZE);
  1380. return ptr;
  1381. #else
  1382. return strerror(err);
  1383. #endif
  1384. }
  1385. /** assert(3) variant in cursor context */
  1386. #define mdb_cassert(mc, expr) mdb_assert0((mc)->mc_txn->mt_env, expr, #expr)
  1387. /** assert(3) variant in transaction context */
  1388. #define mdb_tassert(txn, expr) mdb_assert0((txn)->mt_env, expr, #expr)
  1389. /** assert(3) variant in environment context */
  1390. #define mdb_eassert(env, expr) mdb_assert0(env, expr, #expr)
  1391. #ifndef NDEBUG
  1392. # define mdb_assert0(env, expr, expr_txt) ((expr) ? (void)0 : \
  1393. mdb_assert_fail(env, expr_txt, mdb_func_, __FILE__, __LINE__))
  1394. static void ESECT
  1395. mdb_assert_fail(MDB_env *env, const char *expr_txt,
  1396. const char *func, const char *file, int line)
  1397. {
  1398. char buf[400];
  1399. sprintf(buf, "%.100s:%d: Assertion '%.200s' failed in %.40s()",
  1400. file, line, expr_txt, func);
  1401. if (env->me_assert_func)
  1402. env->me_assert_func(env, buf);
  1403. fprintf(stderr, "%s\n", buf);
  1404. abort();
  1405. }
  1406. #else
  1407. # define mdb_assert0(env, expr, expr_txt) ((void) 0)
  1408. #endif /* NDEBUG */
  1409. #if MDB_DEBUG
  1410. /** Return the page number of \b mp which may be sub-page, for debug output */
  1411. static pgno_t
  1412. mdb_dbg_pgno(MDB_page *mp)
  1413. {
  1414. pgno_t ret;
  1415. COPY_PGNO(ret, mp->mp_pgno);
  1416. return ret;
  1417. }
  1418. /** Display a key in hexadecimal and return the address of the result.
  1419. * @param[in] key the key to display
  1420. * @param[in] buf the buffer to write into. Should always be #DKBUF.
  1421. * @return The key in hexadecimal form.
  1422. */
  1423. char *
  1424. mdb_dkey(MDB_val *key, char *buf)
  1425. {
  1426. char *ptr = buf;
  1427. unsigned char *c = key->mv_data;
  1428. unsigned int i;
  1429. if (!key)
  1430. return "";
  1431. if (key->mv_size > DKBUF_MAXKEYSIZE)
  1432. return "MDB_MAXKEYSIZE";
  1433. /* may want to make this a dynamic check: if the key is mostly
  1434. * printable characters, print it as-is instead of converting to hex.
  1435. */
  1436. #if 1
  1437. buf[0] = '\0';
  1438. for (i=0; i<key->mv_size; i++)
  1439. ptr += sprintf(ptr, "%02x", *c++);
  1440. #else
  1441. sprintf(buf, "%.*s", key->mv_size, key->mv_data);
  1442. #endif
  1443. return buf;
  1444. }
  1445. static const char *
  1446. mdb_leafnode_type(MDB_node *n)
  1447. {
  1448. static char *const tp[2][2] = {{"", ": DB"}, {": sub-page", ": sub-DB"}};
  1449. return F_ISSET(n->mn_flags, F_BIGDATA) ? ": overflow page" :
  1450. tp[F_ISSET(n->mn_flags, F_DUPDATA)][F_ISSET(n->mn_flags, F_SUBDATA)];
  1451. }
  1452. /** Display all the keys in the page. */
  1453. void
  1454. mdb_page_list(MDB_page *mp)
  1455. {
  1456. pgno_t pgno = mdb_dbg_pgno(mp);
  1457. const char *type, *state = (mp->mp_flags & P_DIRTY) ? ", dirty" : "";
  1458. MDB_node *node;
  1459. unsigned int i, nkeys, nsize, total = 0;
  1460. MDB_val key;
  1461. DKBUF;
  1462. switch (mp->mp_flags & (P_BRANCH|P_LEAF|P_LEAF2|P_META|P_OVERFLOW|P_SUBP)) {
  1463. case P_BRANCH: type = "Branch page"; break;
  1464. case P_LEAF: type = "Leaf page"; break;
  1465. case P_LEAF|P_SUBP: type = "Sub-page"; break;
  1466. case P_LEAF|P_LEAF2: type = "LEAF2 page"; break;
  1467. case P_LEAF|P_LEAF2|P_SUBP: type = "LEAF2 sub-page"; break;
  1468. case P_OVERFLOW:
  1469. fprintf(stderr, "Overflow page %"Z"u pages %u%s\n",
  1470. pgno, mp->mp_pages, state);
  1471. return;
  1472. case P_META:
  1473. fprintf(stderr, "Meta-page %"Z"u txnid %"Z"u\n",
  1474. pgno, ((MDB_meta *)METADATA(mp))->mm_txnid);
  1475. return;
  1476. default:
  1477. fprintf(stderr, "Bad page %"Z"u flags 0x%X\n", pgno, mp->mp_flags);
  1478. return;
  1479. }
  1480. nkeys = NUMKEYS(mp);
  1481. fprintf(stderr, "%s %"Z"u numkeys %d%s\n", type, pgno, nkeys, state);
  1482. for (i=0; i<nkeys; i++) {
  1483. if (IS_LEAF2(mp)) { /* LEAF2 pages have no mp_ptrs[] or node headers */
  1484. key.mv_size = nsize = mp->mp_pad;
  1485. key.mv_data = LEAF2KEY(mp, i, nsize);
  1486. total += nsize;
  1487. fprintf(stderr, "key %d: nsize %d, %s\n", i, nsize, DKEY(&key));
  1488. continue;
  1489. }
  1490. node = NODEPTR(mp, i);
  1491. key.mv_size = node->mn_ksize;
  1492. key.mv_data = node->mn_data;
  1493. nsize = NODESIZE + key.mv_size;
  1494. if (IS_BRANCH(mp)) {
  1495. fprintf(stderr, "key %d: page %"Z"u, %s\n", i, NODEPGNO(node),
  1496. DKEY(&key));
  1497. total += nsize;
  1498. } else {
  1499. if (F_ISSET(node->mn_flags, F_BIGDATA))
  1500. nsize += sizeof(pgno_t);
  1501. else
  1502. nsize += NODEDSZ(node);
  1503. total += nsize;
  1504. nsize += sizeof(indx_t);
  1505. fprintf(stderr, "key %d: nsize %d, %s%s\n",
  1506. i, nsize, DKEY(&key), mdb_leafnode_type(node));
  1507. }
  1508. total = EVEN(total);
  1509. }
  1510. fprintf(stderr, "Total: header %d + contents %d + unused %d\n",
  1511. IS_LEAF2(mp) ? PAGEHDRSZ : PAGEBASE + mp->mp_lower, total, SIZELEFT(mp));
  1512. }
  1513. void
  1514. mdb_cursor_chk(MDB_cursor *mc)
  1515. {
  1516. unsigned int i;
  1517. MDB_node *node;
  1518. MDB_page *mp;
  1519. if (!mc->mc_snum || !(mc->mc_flags & C_INITIALIZED)) return;
  1520. for (i=0; i<mc->mc_top; i++) {
  1521. mp = mc->mc_pg[i];
  1522. node = NODEPTR(mp, mc->mc_ki[i]);
  1523. if (NODEPGNO(node) != mc->mc_pg[i+1]->mp_pgno)
  1524. printf("oops!\n");
  1525. }
  1526. if (mc->mc_ki[i] >= NUMKEYS(mc->mc_pg[i]))
  1527. printf("ack!\n");
  1528. if (XCURSOR_INITED(mc)) {
  1529. node = NODEPTR(mc->mc_pg[mc->mc_top], mc->mc_ki[mc->mc_top]);
  1530. if (((node->mn_flags & (F_DUPDATA|F_SUBDATA)) == F_DUPDATA) &&
  1531. mc->mc_xcursor->mx_cursor.mc_pg[0] != NODEDATA(node)) {
  1532. printf("blah!\n");
  1533. }
  1534. }
  1535. }
  1536. #endif
  1537. #if (MDB_DEBUG) > 2
  1538. /** Count all the pages in each DB and in the freelist
  1539. * and make sure it matches the actual number of pages
  1540. * being used.
  1541. * All named DBs must be open for a correct count.
  1542. */
  1543. static void mdb_audit(MDB_txn *txn)
  1544. {
  1545. MDB_cursor mc;
  1546. MDB_val key, data;
  1547. MDB_ID freecount, count;
  1548. MDB_dbi i;
  1549. int rc;
  1550. freecount = 0;
  1551. mdb_cursor_init(&mc, txn, FREE_DBI, NULL);
  1552. while ((rc = mdb_cursor_get(&mc, &key, &data, MDB_NEXT)) == 0)
  1553. freecount += *(MDB_ID *)data.mv_data;
  1554. mdb_tassert(txn, rc == MDB_NOTFOUND);
  1555. count = 0;
  1556. for (i = 0; i<txn->mt_numdbs; i++) {
  1557. MDB_xcursor mx;
  1558. if (!(txn->mt_dbflags[i] & DB_VALID))
  1559. continue;
  1560. mdb_cursor_init(&mc, txn, i, &mx);
  1561. if (txn->mt_dbs[i].md_root == P_INVALID)
  1562. continue;
  1563. count += txn->mt_dbs[i].md_branch_pages +
  1564. txn->mt_dbs[i].md_leaf_pages +
  1565. txn->mt_dbs[i].md_overflow_pages;
  1566. if (txn->mt_dbs[i].md_flags & MDB_DUPSORT) {
  1567. rc = mdb_page_search(&mc, NULL, MDB_PS_FIRST);
  1568. for (; rc == MDB_SUCCESS; rc = mdb_cursor_sibling(&mc, 1)) {
  1569. unsigned j;
  1570. MDB_page *mp;
  1571. mp = mc.mc_pg[mc.mc_top];
  1572. for (j=0; j<NUMKEYS(mp); j++) {
  1573. MDB_node *leaf = NODEPTR(mp, j);
  1574. if (leaf->mn_flags & F_SUBDATA) {
  1575. MDB_db db;
  1576. memcpy(&db, NODEDATA(leaf), sizeof(db));
  1577. count += db.md_branch_pages + db.md_leaf_pages +
  1578. db.md_overflow_pages;
  1579. }
  1580. }
  1581. }
  1582. mdb_tassert(txn, rc == MDB_NOTFOUND);
  1583. }
  1584. }
  1585. if (freecount + count + NUM_METAS != txn->mt_next_pgno) {
  1586. fprintf(stderr, "audit: %"Z"u freecount: %"Z"u count: %"Z"u total: %"Z"u next_pgno: %"Z"u\n",
  1587. txn->mt_txnid, freecount, count+NUM_METAS,
  1588. freecount+count+NUM_METAS, txn->mt_next_pgno);
  1589. }
  1590. }
  1591. #endif
  1592. int
  1593. mdb_cmp(MDB_txn *txn, MDB_dbi dbi, const MDB_val *a, const MDB_val *b)
  1594. {
  1595. return txn->mt_dbxs[dbi].md_cmp(a, b);
  1596. }
  1597. int
  1598. mdb_dcmp(MDB_txn *txn, MDB_dbi dbi, const MDB_val *a, const MDB_val *b)
  1599. {
  1600. MDB_cmp_func *dcmp = txn->mt_dbxs[dbi].md_dcmp;
  1601. #if UINT_MAX < SIZE_MAX
  1602. if (dcmp == mdb_cmp_int && a->mv_size == sizeof(size_t))
  1603. dcmp = mdb_cmp_clong;
  1604. #endif
  1605. return dcmp(a, b);
  1606. }
  1607. /** Allocate memory for a page.
  1608. * Re-use old malloc'd pages first for singletons, otherwise just malloc.
  1609. * Set #MDB_TXN_ERROR on failure.
  1610. */
  1611. static MDB_page *
  1612. mdb_page_malloc(MDB_txn *txn, unsigned num)
  1613. {
  1614. MDB_env *env = txn->mt_env;
  1615. MDB_page *ret = env->me_dpages;
  1616. size_t psize = env->me_psize, sz = psize, off;
  1617. /* For ! #MDB_NOMEMINIT, psize counts how much to init.
  1618. * For a single page alloc, we init everything after the page header.
  1619. * For multi-page, we init the final page; if the caller needed that
  1620. * many pages they will be filling in at least up to the last page.
  1621. */
  1622. if (num == 1) {
  1623. if (ret) {
  1624. VGMEMP_ALLOC(env, ret, sz);
  1625. VGMEMP_DEFINED(ret, sizeof(ret->mp_next));
  1626. env->me_dpages = ret->mp_next;
  1627. return ret;
  1628. }
  1629. psize -= off = PAGEHDRSZ;
  1630. } else {
  1631. sz *= num;
  1632. off = sz - psize;
  1633. }
  1634. if ((ret = malloc(sz)) != NULL) {
  1635. VGMEMP_ALLOC(env, ret, sz);
  1636. if (!(env->me_flags & MDB_NOMEMINIT)) {
  1637. memset((char *)ret + off, 0, psize);
  1638. ret->mp_pad = 0;
  1639. }
  1640. } else {
  1641. txn->mt_flags |= MDB_TXN_ERROR;
  1642. }
  1643. return ret;
  1644. }
  1645. /** Free a single page.
  1646. * Saves single pages to a list, for future reuse.
  1647. * (This is not used for multi-page overflow pages.)
  1648. */
  1649. static void
  1650. mdb_page_free(MDB_env *env, MDB_page *mp)
  1651. {
  1652. mp->mp_next = env->me_dpages;
  1653. VGMEMP_FREE(env, mp);
  1654. env->me_dpages = mp;
  1655. }
  1656. /** Free a dirty page */
  1657. static void
  1658. mdb_dpage_free(MDB_env *env, MDB_page *dp)
  1659. {
  1660. if (!IS_OVERFLOW(dp) || dp->mp_pages == 1) {
  1661. mdb_page_free(env, dp);
  1662. } else {
  1663. /* large pages just get freed directly */
  1664. VGMEMP_FREE(env, dp);
  1665. free(dp);
  1666. }
  1667. }
  1668. /** Return all dirty pages to dpage list */
  1669. static void
  1670. mdb_dlist_free(MDB_txn *txn)
  1671. {
  1672. MDB_env *env = txn->mt_env;
  1673. MDB_ID2L dl = txn->mt_u.dirty_list;
  1674. unsigned i, n = dl[0].mid;
  1675. for (i = 1; i <= n; i++) {
  1676. mdb_dpage_free(env, dl[i].mptr);
  1677. }
  1678. dl[0].mid = 0;
  1679. }
  1680. /** Loosen or free a single page.
  1681. * Saves single pages to a list for future reuse
  1682. * in this same txn. It has been pulled from the freeDB
  1683. * and already resides on the dirty list, but has been
  1684. * deleted. Use these pages first before pulling again
  1685. * from the freeDB.
  1686. *
  1687. * If the page wasn't dirtied in this txn, just add it
  1688. * to this txn's free list.
  1689. */
  1690. static int
  1691. mdb_page_loose(MDB_cursor *mc, MDB_page *mp)
  1692. {
  1693. int loose = 0;
  1694. pgno_t pgno = mp->mp_pgno;
  1695. MDB_txn *txn = mc->mc_txn;
  1696. if ((mp->mp_flags & P_DIRTY) && mc->mc_dbi != FREE_DBI) {
  1697. if (txn->mt_parent) {
  1698. MDB_ID2 *dl = txn->mt_u.dirty_list;
  1699. /* If txn has a parent, make sure the page is in our
  1700. * dirty list.
  1701. */
  1702. if (dl[0].mid) {
  1703. unsigned x = mdb_mid2l_search(dl, pgno);
  1704. if (x <= dl[0].mid && dl[x].mid == pgno) {
  1705. if (mp != dl[x].mptr) { /* bad cursor? */
  1706. mc->mc_flags &= ~(C_INITIALIZED|C_EOF);
  1707. txn->mt_flags |= MDB_TXN_ERROR;
  1708. return MDB_CORRUPTED;
  1709. }
  1710. /* ok, it's ours */
  1711. loose = 1;
  1712. }
  1713. }
  1714. } else {
  1715. /* no parent txn, so it's just ours */
  1716. loose = 1;
  1717. }
  1718. }
  1719. if (loose) {
  1720. DPRINTF(("loosen db %d page %"Z"u", DDBI(mc),
  1721. mp->mp_pgno));
  1722. NEXT_LOOSE_PAGE(mp) = txn->mt_loose_pgs;
  1723. txn->mt_loose_pgs = mp;
  1724. txn->mt_loose_count++;
  1725. mp->mp_flags |= P_LOOSE;
  1726. } else {
  1727. int rc = mdb_midl_append(&txn->mt_free_pgs, pgno);
  1728. if (rc)
  1729. return rc;
  1730. }
  1731. return MDB_SUCCESS;
  1732. }
  1733. /** Set or clear P_KEEP in dirty, non-overflow, non-sub pages watched by txn.
  1734. * @param[in] mc A cursor handle for the current operation.
  1735. * @param[in] pflags Flags of the pages to update:
  1736. * P_DIRTY to set P_KEEP, P_DIRTY|P_KEEP to clear it.
  1737. * @param[in] all No shortcuts. Needed except after a full #mdb_page_flush().
  1738. * @return 0 on success, non-zero on failure.
  1739. */
  1740. static int
  1741. mdb_pages_xkeep(MDB_cursor *mc, unsigned pflags, int all)
  1742. {
  1743. enum { Mask = P_SUBP|P_DIRTY|P_LOOSE|P_KEEP };
  1744. MDB_txn *txn = mc->mc_txn;
  1745. MDB_cursor *m3, *m0 = mc;
  1746. MDB_xcursor *mx;
  1747. MDB_page *dp, *mp;
  1748. MDB_node *leaf;
  1749. unsigned i, j;
  1750. int rc = MDB_SUCCESS, level;
  1751. /* Mark pages seen by cursors */
  1752. if (mc->mc_flags & C_UNTRACK)
  1753. mc = NULL; /* will find mc in mt_cursors */
  1754. for (i = txn->mt_numdbs;; mc = txn->mt_cursors[--i]) {
  1755. for (; mc; mc=mc->mc_next) {
  1756. if (!(mc->mc_flags & C_INITIALIZED))
  1757. continue;
  1758. for (m3 = mc;; m3 = &mx->mx_cursor) {
  1759. mp = NULL;
  1760. for (j=0; j<m3->mc_snum; j++) {
  1761. mp = m3->mc_pg[j];
  1762. if ((mp->mp_flags & Mask) == pflags)
  1763. mp->mp_flags ^= P_KEEP;
  1764. }
  1765. mx = m3->mc_xcursor;
  1766. /* Proceed to mx if it is at a sub-database */
  1767. if (! (mx && (mx->mx_cursor.mc_flags & C_INITIALIZED)))
  1768. break;
  1769. if (! (mp && (mp->mp_flags & P_LEAF)))
  1770. break;
  1771. leaf = NODEPTR(mp, m3->mc_ki[j-1]);
  1772. if (!(leaf->mn_flags & F_SUBDATA))
  1773. break;
  1774. }
  1775. }
  1776. if (i == 0)
  1777. break;
  1778. }
  1779. if (all) {
  1780. /* Mark dirty root pages */
  1781. for (i=0; i<txn->mt_numdbs; i++) {
  1782. if (txn->mt_dbflags[i] & DB_DIRTY) {
  1783. pgno_t pgno = txn->mt_dbs[i].md_root;
  1784. if (pgno == P_INVALID)
  1785. continue;
  1786. if ((rc = mdb_page_get(m0, pgno, &dp, &level)) != MDB_SUCCESS)
  1787. break;
  1788. if ((dp->mp_flags & Mask) == pflags && level <= 1)
  1789. dp->mp_flags ^= P_KEEP;
  1790. }
  1791. }
  1792. }
  1793. return rc;
  1794. }
  1795. static int mdb_page_flush(MDB_txn *txn, int keep);
  1796. /** Spill pages from the dirty list back to disk.
  1797. * This is intended to prevent running into #MDB_TXN_FULL situations,
  1798. * but note that they may still occur in a few cases:
  1799. * 1) our estimate of the txn size could be too small. Currently this
  1800. * seems unlikely, except with a large number of #MDB_MULTIPLE items.
  1801. * 2) child txns may run out of space if their parents dirtied a
  1802. * lot of pages and never spilled them. TODO: we probably should do
  1803. * a preemptive spill during #mdb_txn_begin() of a child txn, if
  1804. * the parent's dirty_room is below a given threshold.
  1805. *
  1806. * Otherwise, if not using nested txns, it is expected that apps will
  1807. * not run into #MDB_TXN_FULL any more. The pages are flushed to disk
  1808. * the same way as for a txn commit, e.g. their P_DIRTY flag is cleared.
  1809. * If the txn never references them again, they can be left alone.
  1810. * If the txn only reads them, they can be used without any fuss.
  1811. * If the txn writes them again, they can be dirtied immediately without
  1812. * going thru all of the work of #mdb_page_touch(). Such references are
  1813. * handled by #mdb_page_unspill().
  1814. *
  1815. * Also note, we never spill DB root pages, nor pages of active cursors,
  1816. * because we'll need these back again soon anyway. And in nested txns,
  1817. * we can't spill a page in a child txn if it was already spilled in a
  1818. * parent txn. That would alter the parent txns' data even though
  1819. * the child hasn't committed yet, and we'd have no way to undo it if
  1820. * the child aborted.
  1821. *
  1822. * @param[in] m0 cursor A cursor handle identifying the transaction and
  1823. * database for which we are checking space.
  1824. * @param[in] key For a put operation, the key being stored.
  1825. * @param[in] data For a put operation, the data being stored.
  1826. * @return 0 on success, non-zero on failure.
  1827. */
  1828. static int
  1829. mdb_page_spill(MDB_cursor *m0, MDB_val *key, MDB_val *data)
  1830. {
  1831. MDB_txn *txn = m0->mc_txn;
  1832. MDB_page *dp;
  1833. MDB_ID2L dl = txn->mt_u.dirty_list;
  1834. unsigned int i, j, need;
  1835. int rc;
  1836. if (m0->mc_flags & C_SUB)
  1837. return MDB_SUCCESS;
  1838. /* Estimate how much space this op will take */
  1839. i = m0->mc_db->md_depth;
  1840. /* Named DBs also dirty the main DB */
  1841. if (m0->mc_dbi >= CORE_DBS)
  1842. i += txn->mt_dbs[MAIN_DBI].md_depth;
  1843. /* For puts, roughly factor in the key+data size */
  1844. if (key)
  1845. i += (LEAFSIZE(key, data) + txn->mt_env->me_psize) / txn->mt_env->me_psize;
  1846. i += i; /* double it for good measure */
  1847. need = i;
  1848. if (txn->mt_dirty_room > i)
  1849. return MDB_SUCCESS;
  1850. if (!txn->mt_spill_pgs) {
  1851. txn->mt_spill_pgs = mdb_midl_alloc(MDB_IDL_UM_MAX);
  1852. if (!txn->mt_spill_pgs)
  1853. return ENOMEM;
  1854. } else {
  1855. /* purge deleted slots */
  1856. MDB_IDL sl = txn->mt_spill_pgs;
  1857. unsigned int num = sl[0];
  1858. j=0;
  1859. for (i=1; i<=num; i++) {
  1860. if (!(sl[i] & 1))
  1861. sl[++j] = sl[i];
  1862. }
  1863. sl[0] = j;
  1864. }
  1865. /* Preserve pages which may soon be dirtied again */
  1866. if ((rc = mdb_pages_xkeep(m0, P_DIRTY, 1)) != MDB_SUCCESS)
  1867. goto done;
  1868. /* Less aggressive spill - we originally spilled the entire dirty list,
  1869. * with a few exceptions for cursor pages and DB root pages. But this
  1870. * turns out to be a lot of wasted effort because in a large txn many
  1871. * of those pages will need to be used again. So now we spill only 1/8th
  1872. * of the dirty pages. Testing revealed this to be a good tradeoff,
  1873. * better than 1/2, 1/4, or 1/10.
  1874. */
  1875. if (need < MDB_IDL_UM_MAX / 8)
  1876. need = MDB_IDL_UM_MAX / 8;
  1877. /* Save the page IDs of all the pages we're flushing */
  1878. /* flush from the tail forward, this saves a lot of shifting later on. */
  1879. for (i=dl[0].mid; i && need; i--) {
  1880. MDB_ID pn = dl[i].mid << 1;
  1881. dp = dl[i].mptr;
  1882. if (dp->mp_flags & (P_LOOSE|P_KEEP))
  1883. continue;
  1884. /* Can't spill twice, make sure it's not already in a parent's
  1885. * spill list.
  1886. */
  1887. if (txn->mt_parent) {
  1888. MDB_txn *tx2;
  1889. for (tx2 = txn->mt_parent; tx2; tx2 = tx2->mt_parent) {
  1890. if (tx2->mt_spill_pgs) {
  1891. j = mdb_midl_search(tx2->mt_spill_pgs, pn);
  1892. if (j <= tx2->mt_spill_pgs[0] && tx2->mt_spill_pgs[j] == pn) {
  1893. dp->mp_flags |= P_KEEP;
  1894. break;
  1895. }
  1896. }
  1897. }
  1898. if (tx2)
  1899. continue;
  1900. }
  1901. if ((rc = mdb_midl_append(&txn->mt_spill_pgs, pn)))
  1902. goto done;
  1903. need--;
  1904. }
  1905. mdb_midl_sort(txn->mt_spill_pgs);
  1906. /* Flush the spilled part of dirty list */
  1907. if ((rc = mdb_page_flush(txn, i)) != MDB_SUCCESS)
  1908. goto done;
  1909. /* Reset any dirty pages we kept that page_flush didn't see */
  1910. rc = mdb_pages_xkeep(m0, P_DIRTY|P_KEEP, i);
  1911. done:
  1912. txn->mt_flags |= rc ? MDB_TXN_ERROR : MDB_TXN_SPILLS;
  1913. return rc;
  1914. }
  1915. /** Find oldest txnid still referenced. Expects txn->mt_txnid > 0. */
  1916. static txnid_t
  1917. mdb_find_oldest(MDB_txn *txn)
  1918. {
  1919. int i;
  1920. txnid_t mr, oldest = txn->mt_txnid - 1;
  1921. if (txn->mt_env->me_txns) {
  1922. MDB_reader *r = txn->mt_env->me_txns->mti_readers;
  1923. for (i = txn->mt_env->me_txns->mti_numreaders; --i >= 0; ) {
  1924. if (r[i].mr_pid) {
  1925. mr = r[i].mr_txnid;
  1926. if (oldest > mr)
  1927. oldest = mr;
  1928. }
  1929. }
  1930. }
  1931. return oldest;
  1932. }
  1933. /** Add a page to the txn's dirty list */
  1934. static void
  1935. mdb_page_dirty(MDB_txn *txn, MDB_page *mp)
  1936. {
  1937. MDB_ID2 mid;
  1938. int rc, (*insert)(MDB_ID2L, MDB_ID2 *);
  1939. if (txn->mt_flags & MDB_TXN_WRITEMAP) {
  1940. insert = mdb_mid2l_append;
  1941. } else {
  1942. insert = mdb_mid2l_insert;
  1943. }
  1944. mid.mid = mp->mp_pgno;
  1945. mid.mptr = mp;
  1946. rc = insert(txn->mt_u.dirty_list, &mid);
  1947. mdb_tassert(txn, rc == 0);
  1948. txn->mt_dirty_room--;
  1949. }
  1950. /** Allocate page numbers and memory for writing. Maintain me_pglast,
  1951. * me_pghead and mt_next_pgno. Set #MDB_TXN_ERROR on failure.
  1952. *
  1953. * If there are free pages available from older transactions, they
  1954. * are re-used first. Otherwise allocate a new page at mt_next_pgno.
  1955. * Do not modify the freedB, just merge freeDB records into me_pghead[]
  1956. * and move me_pglast to say which records were consumed. Only this
  1957. * function can create me_pghead and move me_pglast/mt_next_pgno.
  1958. * @param[in] mc cursor A cursor handle identifying the transaction and
  1959. * database for which we are allocating.
  1960. * @param[in] num the number of pages to allocate.
  1961. * @param[out] mp Address of the allocated page(s). Requests for multiple pages
  1962. * will always be satisfied by a single contiguous chunk of memory.
  1963. * @return 0 on success, non-zero on failure.
  1964. */
  1965. static int
  1966. mdb_page_alloc(MDB_cursor *mc, int num, MDB_page **mp)
  1967. {
  1968. #ifdef MDB_PARANOID /* Seems like we can ignore this now */
  1969. /* Get at most <Max_retries> more freeDB records once me_pghead
  1970. * has enough pages. If not enough, use new pages from the map.
  1971. * If <Paranoid> and mc is updating the freeDB, only get new
  1972. * records if me_pghead is empty. Then the freelist cannot play
  1973. * catch-up with itself by growing while trying to save it.
  1974. */
  1975. enum { Paranoid = 1, Max_retries = 500 };
  1976. #else
  1977. enum { Paranoid = 0, Max_retries = INT_MAX /*infinite*/ };
  1978. #endif
  1979. int rc, retry = num * 60;
  1980. MDB_txn *txn = mc->mc_txn;
  1981. MDB_env *env = txn->mt_env;
  1982. pgno_t pgno, *mop = env->me_pghead;
  1983. unsigned i, j, mop_len = mop ? mop[0] : 0, n2 = num-1;
  1984. MDB_page *np;
  1985. txnid_t oldest = 0, last;
  1986. MDB_cursor_op op;
  1987. MDB_cursor m2;
  1988. int found_old = 0;
  1989. /* If there are any loose pages, just use them */
  1990. if (num == 1 && txn->mt_loose_pgs) {
  1991. np = txn->mt_loose_pgs;
  1992. txn->mt_loose_pgs = NEXT_LOOSE_PAGE(np);
  1993. txn->mt_loose_count--;
  1994. DPRINTF(("db %d use loose page %"Z"u", DDBI(mc),
  1995. np->mp_pgno));
  1996. *mp = np;
  1997. return MDB_SUCCESS;
  1998. }
  1999. *mp = NULL;
  2000. /* If our dirty list is already full, we can't do anything */
  2001. if (txn->mt_dirty_room == 0) {
  2002. rc = MDB_TXN_FULL;
  2003. goto fail;
  2004. }
  2005. for (op = MDB_FIRST;; op = MDB_NEXT) {
  2006. MDB_val key, data;
  2007. MDB_node *leaf;
  2008. pgno_t *idl;
  2009. /* Seek a big enough contiguous page range. Prefer
  2010. * pages at the tail, just truncating the list.
  2011. */
  2012. if (mop_len > n2) {
  2013. i = mop_len;
  2014. do {
  2015. pgno = mop[i];
  2016. if (mop[i-n2] == pgno+n2)
  2017. goto search_done;
  2018. } while (--i > n2);
  2019. if (--retry < 0)
  2020. break;
  2021. }
  2022. if (op == MDB_FIRST) { /* 1st iteration */
  2023. /* Prepare to fetch more and coalesce */
  2024. last = env->me_pglast;
  2025. oldest = env->me_pgoldest;
  2026. mdb_cursor_init(&m2, txn, FREE_DBI, NULL);
  2027. if (last) {
  2028. op = MDB_SET_RANGE;
  2029. key.mv_data = &last; /* will look up last+1 */
  2030. key.mv_size = sizeof(last);
  2031. }
  2032. if (Paranoid && mc->mc_dbi == FREE_DBI)
  2033. retry = -1;
  2034. }
  2035. if (Paranoid && retry < 0 && mop_len)
  2036. break;
  2037. last++;
  2038. /* Do not fetch more if the record will be too recent */
  2039. if (oldest <= last) {
  2040. if (!found_old) {
  2041. oldest = mdb_find_oldest(txn);
  2042. env->me_pgoldest = oldest;
  2043. found_old = 1;
  2044. }
  2045. if (oldest <= last)
  2046. break;
  2047. }
  2048. rc = mdb_cursor_get(&m2, &key, NULL, op);
  2049. if (rc) {
  2050. if (rc == MDB_NOTFOUND)
  2051. break;
  2052. goto fail;
  2053. }
  2054. last = *(txnid_t*)key.mv_data;
  2055. if (oldest <= last) {
  2056. if (!found_old) {
  2057. oldest = mdb_find_oldest(txn);
  2058. env->me_pgoldest = oldest;
  2059. found_old = 1;
  2060. }
  2061. if (oldest <= last)
  2062. break;
  2063. }
  2064. np = m2.mc_pg[m2.mc_top];
  2065. leaf = NODEPTR(np, m2.mc_ki[m2.mc_top]);
  2066. if ((rc = mdb_node_read(&m2, leaf, &data)) != MDB_SUCCESS)
  2067. goto fail;
  2068. idl = (MDB_ID *) data.mv_data;
  2069. i = idl[0];
  2070. if (!mop) {
  2071. if (!(env->me_pghead = mop = mdb_midl_alloc(i))) {
  2072. rc = ENOMEM;
  2073. goto fail;
  2074. }
  2075. } else {
  2076. if ((rc = mdb_midl_need(&env->me_pghead, i)) != 0)
  2077. goto fail;
  2078. mop = env->me_pghead;
  2079. }
  2080. env->me_pglast = last;
  2081. #if (MDB_DEBUG) > 1
  2082. DPRINTF(("IDL read txn %"Z"u root %"Z"u num %u",
  2083. last, txn->mt_dbs[FREE_DBI].md_root, i));
  2084. for (j = i; j; j--)
  2085. DPRINTF(("IDL %"Z"u", idl[j]));
  2086. #endif
  2087. /* Merge in descending sorted order */
  2088. mdb_midl_xmerge(mop, idl);
  2089. mop_len = mop[0];
  2090. }
  2091. /* Use new pages from the map when nothing suitable in the freeDB */
  2092. i = 0;
  2093. pgno = txn->mt_next_pgno;
  2094. if (pgno + num >= env->me_maxpg) {
  2095. DPUTS("DB size maxed out");
  2096. rc = MDB_MAP_FULL;
  2097. goto fail;
  2098. }
  2099. search_done:
  2100. if (env->me_flags & MDB_WRITEMAP) {
  2101. np = (MDB_page *)(env->me_map + env->me_psize * pgno);
  2102. } else {
  2103. if (!(np = mdb_page_malloc(txn, num))) {
  2104. rc = ENOMEM;
  2105. goto fail;
  2106. }
  2107. }
  2108. if (i) {
  2109. mop[0] = mop_len -= num;
  2110. /* Move any stragglers down */
  2111. for (j = i-num; j < mop_len; )
  2112. mop[++j] = mop[++i];
  2113. } else {
  2114. txn->mt_next_pgno = pgno + num;
  2115. }
  2116. np->mp_pgno = pgno;
  2117. mdb_page_dirty(txn, np);
  2118. *mp = np;
  2119. return MDB_SUCCESS;
  2120. fail:
  2121. txn->mt_flags |= MDB_TXN_ERROR;
  2122. return rc;
  2123. }
  2124. /** Copy the used portions of a non-overflow page.
  2125. * @param[in] dst page to copy into
  2126. * @param[in] src page to copy from
  2127. * @param[in] psize size of a page
  2128. */
  2129. static void
  2130. mdb_page_copy(MDB_page *dst, MDB_page *src, unsigned int psize)
  2131. {
  2132. enum { Align = sizeof(pgno_t) };
  2133. indx_t upper = src->mp_upper, lower = src->mp_lower, unused = upper-lower;
  2134. /* If page isn't full, just copy the used portion. Adjust
  2135. * alignment so memcpy may copy words instead of bytes.
  2136. */
  2137. if ((unused &= -Align) && !IS_LEAF2(src)) {
  2138. upper = (upper + PAGEBASE) & -Align;
  2139. memcpy(dst, src, (lower + PAGEBASE + (Align-1)) & -Align);
  2140. memcpy((pgno_t *)((char *)dst+upper), (pgno_t *)((char *)src+upper),
  2141. psize - upper);
  2142. } else {
  2143. memcpy(dst, src, psize - unused);
  2144. }
  2145. }
  2146. /** Pull a page off the txn's spill list, if present.
  2147. * If a page being referenced was spilled to disk in this txn, bring
  2148. * it back and make it dirty/writable again.
  2149. * @param[in] txn the transaction handle.
  2150. * @param[in] mp the page being referenced. It must not be dirty.
  2151. * @param[out] ret the writable page, if any. ret is unchanged if
  2152. * mp wasn't spilled.
  2153. */
  2154. static int
  2155. mdb_page_unspill(MDB_txn *txn, MDB_page *mp, MDB_page **ret)
  2156. {
  2157. MDB_env *env = txn->mt_env;
  2158. const MDB_txn *tx2;
  2159. unsigned x;
  2160. pgno_t pgno = mp->mp_pgno, pn = pgno << 1;
  2161. for (tx2 = txn; tx2; tx2=tx2->mt_parent) {
  2162. if (!tx2->mt_spill_pgs)
  2163. continue;
  2164. x = mdb_midl_search(tx2->mt_spill_pgs, pn);
  2165. if (x <= tx2->mt_spill_pgs[0] && tx2->mt_spill_pgs[x] == pn) {
  2166. MDB_page *np;
  2167. int num;
  2168. if (txn->mt_dirty_room == 0)
  2169. return MDB_TXN_FULL;
  2170. if (IS_OVERFLOW(mp))
  2171. num = mp->mp_pages;
  2172. else
  2173. num = 1;
  2174. if (env->me_flags & MDB_WRITEMAP) {
  2175. np = mp;
  2176. } else {
  2177. np = mdb_page_malloc(txn, num);
  2178. if (!np)
  2179. return ENOMEM;
  2180. if (num > 1)
  2181. memcpy(np, mp, num * env->me_psize);
  2182. else
  2183. mdb_page_copy(np, mp, env->me_psize);
  2184. }
  2185. if (tx2 == txn) {
  2186. /* If in current txn, this page is no longer spilled.
  2187. * If it happens to be the last page, truncate the spill list.
  2188. * Otherwise mark it as deleted by setting the LSB.
  2189. */
  2190. if (x == txn->mt_spill_pgs[0])
  2191. txn->mt_spill_pgs[0]--;
  2192. else
  2193. txn->mt_spill_pgs[x] |= 1;
  2194. } /* otherwise, if belonging to a parent txn, the
  2195. * page remains spilled until child commits
  2196. */
  2197. mdb_page_dirty(txn, np);
  2198. np->mp_flags |= P_DIRTY;
  2199. *ret = np;
  2200. break;
  2201. }
  2202. }
  2203. return MDB_SUCCESS;
  2204. }
  2205. /** Touch a page: make it dirty and re-insert into tree with updated pgno.
  2206. * Set #MDB_TXN_ERROR on failure.
  2207. * @param[in] mc cursor pointing to the page to be touched
  2208. * @return 0 on success, non-zero on failure.
  2209. */
  2210. static int
  2211. mdb_page_touch(MDB_cursor *mc)
  2212. {
  2213. MDB_page *mp = mc->mc_pg[mc->mc_top], *np;
  2214. MDB_txn *txn = mc->mc_txn;
  2215. MDB_cursor *m2, *m3;
  2216. pgno_t pgno;
  2217. int rc;
  2218. if (!F_ISSET(mp->mp_flags, P_DIRTY)) {
  2219. if (txn->mt_flags & MDB_TXN_SPILLS) {
  2220. np = NULL;
  2221. rc = mdb_page_unspill(txn, mp, &np);
  2222. if (rc)
  2223. goto fail;
  2224. if (np)
  2225. goto done;
  2226. }
  2227. if ((rc = mdb_midl_need(&txn->mt_free_pgs, 1)) ||
  2228. (rc = mdb_page_alloc(mc, 1, &np)))
  2229. goto fail;
  2230. pgno = np->mp_pgno;
  2231. DPRINTF(("touched db %d page %"Z"u -> %"Z"u", DDBI(mc),
  2232. mp->mp_pgno, pgno));
  2233. mdb_cassert(mc, mp->mp_pgno != pgno);
  2234. mdb_midl_xappend(txn->mt_free_pgs, mp->mp_pgno);
  2235. /* Update the parent page, if any, to point to the new page */
  2236. if (mc->mc_top) {
  2237. MDB_page *parent = mc->mc_pg[mc->mc_top-1];
  2238. MDB_node *node = NODEPTR(parent, mc->mc_ki[mc->mc_top-1]);
  2239. SETPGNO(node, pgno);
  2240. } else {
  2241. mc->mc_db->md_root = pgno;
  2242. }
  2243. } else if (txn->mt_parent && !IS_SUBP(mp)) {
  2244. MDB_ID2 mid, *dl = txn->mt_u.dirty_list;
  2245. pgno = mp->mp_pgno;
  2246. /* If txn has a parent, make sure the page is in our
  2247. * dirty list.
  2248. */
  2249. if (dl[0].mid) {
  2250. unsigned x = mdb_mid2l_search(dl, pgno);
  2251. if (x <= dl[0].mid && dl[x].mid == pgno) {
  2252. if (mp != dl[x].mptr) { /* bad cursor? */
  2253. mc->mc_flags &= ~(C_INITIALIZED|C_EOF);
  2254. txn->mt_flags |= MDB_TXN_ERROR;
  2255. return MDB_CORRUPTED;
  2256. }
  2257. return 0;
  2258. }
  2259. }
  2260. mdb_cassert(mc, dl[0].mid < MDB_IDL_UM_MAX);
  2261. /* No - copy it */
  2262. np = mdb_page_malloc(txn, 1);
  2263. if (!np)
  2264. return ENOMEM;
  2265. mid.mid = pgno;
  2266. mid.mptr = np;
  2267. rc = mdb_mid2l_insert(dl, &mid);
  2268. mdb_cassert(mc, rc == 0);
  2269. } else {
  2270. return 0;
  2271. }
  2272. mdb_page_copy(np, mp, txn->mt_env->me_psize);
  2273. np->mp_pgno = pgno;
  2274. np->mp_flags |= P_DIRTY;
  2275. done:
  2276. /* Adjust cursors pointing to mp */
  2277. mc->mc_pg[mc->mc_top] = np;
  2278. m2 = txn->mt_cursors[mc->mc_dbi];
  2279. if (mc->mc_flags & C_SUB) {
  2280. for (; m2; m2=m2->mc_next) {
  2281. m3 = &m2->mc_xcursor->mx_cursor;
  2282. if (m3->mc_snum < mc->mc_snum) continue;
  2283. if (m3->mc_pg[mc->mc_top] == mp)
  2284. m3->mc_pg[mc->mc_top] = np;
  2285. }
  2286. } else {
  2287. for (; m2; m2=m2->mc_next) {
  2288. if (m2->mc_snum < mc->mc_snum) continue;
  2289. if (m2 == mc) continue;
  2290. if (m2->mc_pg[mc->mc_top] == mp) {
  2291. m2->mc_pg[mc->mc_top] = np;
  2292. if (IS_LEAF(np))
  2293. XCURSOR_REFRESH(m2, mc->mc_top, np);
  2294. }
  2295. }
  2296. }
  2297. return 0;
  2298. fail:
  2299. txn->mt_flags |= MDB_TXN_ERROR;
  2300. return rc;
  2301. }
  2302. int
  2303. mdb_env_sync(MDB_env *env, int force)
  2304. {
  2305. int rc = 0;
  2306. if (env->me_flags & MDB_RDONLY)
  2307. return EACCES;
  2308. if (force || !F_ISSET(env->me_flags, MDB_NOSYNC)) {
  2309. if (env->me_flags & MDB_WRITEMAP) {
  2310. int flags = ((env->me_flags & MDB_MAPASYNC) && !force)
  2311. ? MS_ASYNC : MS_SYNC;
  2312. if (MDB_MSYNC(env->me_map, env->me_mapsize, flags))
  2313. rc = ErrCode();
  2314. #ifdef _WIN32
  2315. else if (flags == MS_SYNC && MDB_FDATASYNC(env->me_fd))
  2316. rc = ErrCode();
  2317. #endif
  2318. } else {
  2319. #ifdef BROKEN_FDATASYNC
  2320. if (env->me_flags & MDB_FSYNCONLY) {
  2321. if (fsync(env->me_fd))
  2322. rc = ErrCode();
  2323. } else
  2324. #endif
  2325. if (MDB_FDATASYNC(env->me_fd))
  2326. rc = ErrCode();
  2327. }
  2328. }
  2329. return rc;
  2330. }
  2331. /** Back up parent txn's cursors, then grab the originals for tracking */
  2332. static int
  2333. mdb_cursor_shadow(MDB_txn *src, MDB_txn *dst)
  2334. {
  2335. MDB_cursor *mc, *bk;
  2336. MDB_xcursor *mx;
  2337. size_t size;
  2338. int i;
  2339. for (i = src->mt_numdbs; --i >= 0; ) {
  2340. if ((mc = src->mt_cursors[i]) != NULL) {
  2341. size = sizeof(MDB_cursor);
  2342. if (mc->mc_xcursor)
  2343. size += sizeof(MDB_xcursor);
  2344. for (; mc; mc = bk->mc_next) {
  2345. bk = malloc(size);
  2346. if (!bk)
  2347. return ENOMEM;
  2348. *bk = *mc;
  2349. mc->mc_backup = bk;
  2350. mc->mc_db = &dst->mt_dbs[i];
  2351. /* Kill pointers into src to reduce abuse: The
  2352. * user may not use mc until dst ends. But we need a valid
  2353. * txn pointer here for cursor fixups to keep working.
  2354. */
  2355. mc->mc_txn = dst;
  2356. mc->mc_dbflag = &dst->mt_dbflags[i];
  2357. if ((mx = mc->mc_xcursor) != NULL) {
  2358. *(MDB_xcursor *)(bk+1) = *mx;
  2359. mx->mx_cursor.mc_txn = dst;
  2360. }
  2361. mc->mc_next = dst->mt_cursors[i];
  2362. dst->mt_cursors[i] = mc;
  2363. }
  2364. }
  2365. }
  2366. return MDB_SUCCESS;
  2367. }
  2368. /** Close this write txn's cursors, give parent txn's cursors back to parent.
  2369. * @param[in] txn the transaction handle.
  2370. * @param[in] merge true to keep changes to parent cursors, false to revert.
  2371. * @return 0 on success, non-zero on failure.
  2372. */
  2373. static void
  2374. mdb_cursors_close(MDB_txn *txn, unsigned merge)
  2375. {
  2376. MDB_cursor **cursors = txn->mt_cursors, *mc, *next, *bk;
  2377. MDB_xcursor *mx;
  2378. int i;
  2379. for (i = txn->mt_numdbs; --i >= 0; ) {
  2380. for (mc = cursors[i]; mc; mc = next) {
  2381. next = mc->mc_next;
  2382. if ((bk = mc->mc_backup) != NULL) {
  2383. if (merge) {
  2384. /* Commit changes to parent txn */
  2385. mc->mc_next = bk->mc_next;
  2386. mc->mc_backup = bk->mc_backup;
  2387. mc->mc_txn = bk->mc_txn;
  2388. mc->mc_db = bk->mc_db;
  2389. mc->mc_dbflag = bk->mc_dbflag;
  2390. if ((mx = mc->mc_xcursor) != NULL)
  2391. mx->mx_cursor.mc_txn = bk->mc_txn;
  2392. } else {
  2393. /* Abort nested txn */
  2394. *mc = *bk;
  2395. if ((mx = mc->mc_xcursor) != NULL)
  2396. *mx = *(MDB_xcursor *)(bk+1);
  2397. }
  2398. mc = bk;
  2399. }
  2400. /* Only malloced cursors are permanently tracked. */
  2401. free(mc);
  2402. }
  2403. cursors[i] = NULL;
  2404. }
  2405. }
  2406. #if !(MDB_PIDLOCK) /* Currently the same as defined(_WIN32) */
  2407. enum Pidlock_op {
  2408. Pidset, Pidcheck
  2409. };
  2410. #else
  2411. enum Pidlock_op {
  2412. Pidset = F_SETLK, Pidcheck = F_GETLK
  2413. };
  2414. #endif
  2415. /** Set or check a pid lock. Set returns 0 on success.
  2416. * Check returns 0 if the process is certainly dead, nonzero if it may
  2417. * be alive (the lock exists or an error happened so we do not know).
  2418. *
  2419. * On Windows Pidset is a no-op, we merely check for the existence
  2420. * of the process with the given pid. On POSIX we use a single byte
  2421. * lock on the lockfile, set at an offset equal to the pid.
  2422. */
  2423. static int
  2424. mdb_reader_pid(MDB_env *env, enum Pidlock_op op, MDB_PID_T pid)
  2425. {
  2426. #if !(MDB_PIDLOCK) /* Currently the same as defined(_WIN32) */
  2427. int ret = 0;
  2428. HANDLE h;
  2429. if (op == Pidcheck) {
  2430. h = OpenProcess(env->me_pidquery, FALSE, pid);
  2431. /* No documented "no such process" code, but other program use this: */
  2432. if (!h)
  2433. return ErrCode() != ERROR_INVALID_PARAMETER;
  2434. /* A process exists until all handles to it close. Has it exited? */
  2435. ret = WaitForSingleObject(h, 0) != 0;
  2436. CloseHandle(h);
  2437. }
  2438. return ret;
  2439. #else
  2440. for (;;) {
  2441. int rc;
  2442. struct flock lock_info;
  2443. memset(&lock_info, 0, sizeof(lock_info));
  2444. lock_info.l_type = F_WRLCK;
  2445. lock_info.l_whence = SEEK_SET;
  2446. lock_info.l_start = pid;
  2447. lock_info.l_len = 1;
  2448. if ((rc = fcntl(env->me_lfd, op, &lock_info)) == 0) {
  2449. if (op == F_GETLK && lock_info.l_type != F_UNLCK)
  2450. rc = -1;
  2451. } else if ((rc = ErrCode()) == EINTR) {
  2452. continue;
  2453. }
  2454. return rc;
  2455. }
  2456. #endif
  2457. }
  2458. /** Common code for #mdb_txn_begin() and #mdb_txn_renew().
  2459. * @param[in] txn the transaction handle to initialize
  2460. * @return 0 on success, non-zero on failure.
  2461. */
  2462. static int
  2463. mdb_txn_renew0(MDB_txn *txn)
  2464. {
  2465. MDB_env *env = txn->mt_env;
  2466. MDB_txninfo *ti = env->me_txns;
  2467. MDB_meta *meta;
  2468. unsigned int i, nr, flags = txn->mt_flags;
  2469. uint16_t x;
  2470. int rc, new_notls = 0;
  2471. if ((flags &= MDB_TXN_RDONLY) != 0) {
  2472. if (!ti) {
  2473. meta = mdb_env_pick_meta(env);
  2474. txn->mt_txnid = meta->mm_txnid;
  2475. txn->mt_u.reader = NULL;
  2476. } else {
  2477. MDB_reader *r = (env->me_flags & MDB_NOTLS) ? txn->mt_u.reader :
  2478. pthread_getspecific(env->me_txkey);
  2479. if (r) {
  2480. if (r->mr_pid != env->me_pid || r->mr_txnid != (txnid_t)-1)
  2481. return MDB_BAD_RSLOT;
  2482. } else {
  2483. MDB_PID_T pid = env->me_pid;
  2484. MDB_THR_T tid = pthread_self();
  2485. mdb_mutexref_t rmutex = env->me_rmutex;
  2486. if (!env->me_live_reader) {
  2487. rc = mdb_reader_pid(env, Pidset, pid);
  2488. if (rc)
  2489. return rc;
  2490. env->me_live_reader = 1;
  2491. }
  2492. if (LOCK_MUTEX(rc, env, rmutex))
  2493. return rc;
  2494. nr = ti->mti_numreaders;
  2495. for (i=0; i<nr; i++)
  2496. if (ti->mti_readers[i].mr_pid == 0)
  2497. break;
  2498. if (i == env->me_maxreaders) {
  2499. UNLOCK_MUTEX(rmutex);
  2500. return MDB_READERS_FULL;
  2501. }
  2502. r = &ti->mti_readers[i];
  2503. /* Claim the reader slot, carefully since other code
  2504. * uses the reader table un-mutexed: First reset the
  2505. * slot, next publish it in mti_numreaders. After
  2506. * that, it is safe for mdb_env_close() to touch it.
  2507. * When it will be closed, we can finally claim it.
  2508. */
  2509. r->mr_pid = 0;
  2510. r->mr_txnid = (txnid_t)-1;
  2511. r->mr_tid = tid;
  2512. if (i == nr)
  2513. ti->mti_numreaders = ++nr;
  2514. env->me_close_readers = nr;
  2515. r->mr_pid = pid;
  2516. UNLOCK_MUTEX(rmutex);
  2517. new_notls = (env->me_flags & MDB_NOTLS);
  2518. if (!new_notls && (rc=pthread_setspecific(env->me_txkey, r))) {
  2519. r->mr_pid = 0;
  2520. return rc;
  2521. }
  2522. }
  2523. do /* LY: Retry on a race, ITS#7970. */
  2524. r->mr_txnid = ti->mti_txnid;
  2525. while(r->mr_txnid != ti->mti_txnid);
  2526. txn->mt_txnid = r->mr_txnid;
  2527. txn->mt_u.reader = r;
  2528. meta = env->me_metas[txn->mt_txnid & 1];
  2529. }
  2530. } else {
  2531. /* Not yet touching txn == env->me_txn0, it may be active */
  2532. if (ti) {
  2533. if (LOCK_MUTEX(rc, env, env->me_wmutex))
  2534. return rc;
  2535. txn->mt_txnid = ti->mti_txnid;
  2536. meta = env->me_metas[txn->mt_txnid & 1];
  2537. } else {
  2538. meta = mdb_env_pick_meta(env);
  2539. txn->mt_txnid = meta->mm_txnid;
  2540. }
  2541. txn->mt_txnid++;
  2542. #if MDB_DEBUG
  2543. if (txn->mt_txnid == mdb_debug_start)
  2544. mdb_debug = 1;
  2545. #endif
  2546. txn->mt_child = NULL;
  2547. txn->mt_loose_pgs = NULL;
  2548. txn->mt_loose_count = 0;
  2549. txn->mt_dirty_room = MDB_IDL_UM_MAX;
  2550. txn->mt_u.dirty_list = env->me_dirty_list;
  2551. txn->mt_u.dirty_list[0].mid = 0;
  2552. txn->mt_free_pgs = env->me_free_pgs;
  2553. txn->mt_free_pgs[0] = 0;
  2554. txn->mt_spill_pgs = NULL;
  2555. env->me_txn = txn;
  2556. memcpy(txn->mt_dbiseqs, env->me_dbiseqs, env->me_maxdbs * sizeof(unsigned int));
  2557. }
  2558. /* Copy the DB info and flags */
  2559. memcpy(txn->mt_dbs, meta->mm_dbs, CORE_DBS * sizeof(MDB_db));
  2560. /* Moved to here to avoid a data race in read TXNs */
  2561. txn->mt_next_pgno = meta->mm_last_pg+1;
  2562. txn->mt_flags = flags;
  2563. /* Setup db info */
  2564. txn->mt_numdbs = env->me_numdbs;
  2565. for (i=CORE_DBS; i<txn->mt_numdbs; i++) {
  2566. x = env->me_dbflags[i];
  2567. txn->mt_dbs[i].md_flags = x & PERSISTENT_FLAGS;
  2568. txn->mt_dbflags[i] = (x & MDB_VALID) ? DB_VALID|DB_USRVALID|DB_STALE : 0;
  2569. }
  2570. txn->mt_dbflags[MAIN_DBI] = DB_VALID|DB_USRVALID;
  2571. txn->mt_dbflags[FREE_DBI] = DB_VALID;
  2572. if (env->me_flags & MDB_FATAL_ERROR) {
  2573. DPUTS("environment had fatal error, must shutdown!");
  2574. rc = MDB_PANIC;
  2575. } else if (env->me_maxpg < txn->mt_next_pgno) {
  2576. rc = MDB_MAP_RESIZED;
  2577. } else {
  2578. return MDB_SUCCESS;
  2579. }
  2580. mdb_txn_end(txn, new_notls /*0 or MDB_END_SLOT*/ | MDB_END_FAIL_BEGIN);
  2581. return rc;
  2582. }
  2583. int
  2584. mdb_txn_renew(MDB_txn *txn)
  2585. {
  2586. int rc;
  2587. if (!txn || !F_ISSET(txn->mt_flags, MDB_TXN_RDONLY|MDB_TXN_FINISHED))
  2588. return EINVAL;
  2589. rc = mdb_txn_renew0(txn);
  2590. if (rc == MDB_SUCCESS) {
  2591. DPRINTF(("renew txn %"Z"u%c %p on mdbenv %p, root page %"Z"u",
  2592. txn->mt_txnid, (txn->mt_flags & MDB_TXN_RDONLY) ? 'r' : 'w',
  2593. (void *)txn, (void *)txn->mt_env, txn->mt_dbs[MAIN_DBI].md_root));
  2594. }
  2595. return rc;
  2596. }
  2597. int
  2598. mdb_txn_begin(MDB_env *env, MDB_txn *parent, unsigned int flags, MDB_txn **ret)
  2599. {
  2600. MDB_txn *txn;
  2601. MDB_ntxn *ntxn;
  2602. int rc, size, tsize;
  2603. flags &= MDB_TXN_BEGIN_FLAGS;
  2604. flags |= env->me_flags & MDB_WRITEMAP;
  2605. if (env->me_flags & MDB_RDONLY & ~flags) /* write txn in RDONLY env */
  2606. return EACCES;
  2607. if (parent) {
  2608. /* Nested transactions: Max 1 child, write txns only, no writemap */
  2609. flags |= parent->mt_flags;
  2610. if (flags & (MDB_RDONLY|MDB_WRITEMAP|MDB_TXN_BLOCKED)) {
  2611. return (parent->mt_flags & MDB_TXN_RDONLY) ? EINVAL : MDB_BAD_TXN;
  2612. }
  2613. /* Child txns save MDB_pgstate and use own copy of cursors */
  2614. size = env->me_maxdbs * (sizeof(MDB_db)+sizeof(MDB_cursor *)+1);
  2615. size += tsize = sizeof(MDB_ntxn);
  2616. } else if (flags & MDB_RDONLY) {
  2617. size = env->me_maxdbs * (sizeof(MDB_db)+1);
  2618. size += tsize = sizeof(MDB_txn);
  2619. } else {
  2620. /* Reuse preallocated write txn. However, do not touch it until
  2621. * mdb_txn_renew0() succeeds, since it currently may be active.
  2622. */
  2623. txn = env->me_txn0;
  2624. goto renew;
  2625. }
  2626. if ((txn = calloc(1, size)) == NULL) {
  2627. DPRINTF(("calloc: %s", strerror(errno)));
  2628. return ENOMEM;
  2629. }
  2630. txn->mt_dbxs = env->me_dbxs; /* static */
  2631. txn->mt_dbs = (MDB_db *) ((char *)txn + tsize);
  2632. txn->mt_dbflags = (unsigned char *)txn + size - env->me_maxdbs;
  2633. txn->mt_flags = flags;
  2634. txn->mt_env = env;
  2635. if (parent) {
  2636. unsigned int i;
  2637. txn->mt_cursors = (MDB_cursor **)(txn->mt_dbs + env->me_maxdbs);
  2638. txn->mt_dbiseqs = parent->mt_dbiseqs;
  2639. txn->mt_u.dirty_list = malloc(sizeof(MDB_ID2)*MDB_IDL_UM_SIZE);
  2640. if (!txn->mt_u.dirty_list ||
  2641. !(txn->mt_free_pgs = mdb_midl_alloc(MDB_IDL_UM_MAX)))
  2642. {
  2643. free(txn->mt_u.dirty_list);
  2644. free(txn);
  2645. return ENOMEM;
  2646. }
  2647. txn->mt_txnid = parent->mt_txnid;
  2648. txn->mt_dirty_room = parent->mt_dirty_room;
  2649. txn->mt_u.dirty_list[0].mid = 0;
  2650. txn->mt_spill_pgs = NULL;
  2651. txn->mt_next_pgno = parent->mt_next_pgno;
  2652. parent->mt_flags |= MDB_TXN_HAS_CHILD;
  2653. parent->mt_child = txn;
  2654. txn->mt_parent = parent;
  2655. txn->mt_numdbs = parent->mt_numdbs;
  2656. memcpy(txn->mt_dbs, parent->mt_dbs, txn->mt_numdbs * sizeof(MDB_db));
  2657. /* Copy parent's mt_dbflags, but clear DB_NEW */
  2658. for (i=0; i<txn->mt_numdbs; i++)
  2659. txn->mt_dbflags[i] = parent->mt_dbflags[i] & ~DB_NEW;
  2660. rc = 0;
  2661. ntxn = (MDB_ntxn *)txn;
  2662. ntxn->mnt_pgstate = env->me_pgstate; /* save parent me_pghead & co */
  2663. if (env->me_pghead) {
  2664. size = MDB_IDL_SIZEOF(env->me_pghead);
  2665. env->me_pghead = mdb_midl_alloc(env->me_pghead[0]);
  2666. if (env->me_pghead)
  2667. memcpy(env->me_pghead, ntxn->mnt_pgstate.mf_pghead, size);
  2668. else
  2669. rc = ENOMEM;
  2670. }
  2671. if (!rc)
  2672. rc = mdb_cursor_shadow(parent, txn);
  2673. if (rc)
  2674. mdb_txn_end(txn, MDB_END_FAIL_BEGINCHILD);
  2675. } else { /* MDB_RDONLY */
  2676. txn->mt_dbiseqs = env->me_dbiseqs;
  2677. renew:
  2678. rc = mdb_txn_renew0(txn);
  2679. }
  2680. if (rc) {
  2681. if (txn != env->me_txn0)
  2682. free(txn);
  2683. } else {
  2684. txn->mt_flags |= flags; /* could not change txn=me_txn0 earlier */
  2685. *ret = txn;
  2686. DPRINTF(("begin txn %"Z"u%c %p on mdbenv %p, root page %"Z"u",
  2687. txn->mt_txnid, (flags & MDB_RDONLY) ? 'r' : 'w',
  2688. (void *) txn, (void *) env, txn->mt_dbs[MAIN_DBI].md_root));
  2689. }
  2690. return rc;
  2691. }
  2692. MDB_env *
  2693. mdb_txn_env(MDB_txn *txn)
  2694. {
  2695. if(!txn) return NULL;
  2696. return txn->mt_env;
  2697. }
  2698. size_t
  2699. mdb_txn_id(MDB_txn *txn)
  2700. {
  2701. if(!txn) return 0;
  2702. return txn->mt_txnid;
  2703. }
  2704. /** Export or close DBI handles opened in this txn. */
  2705. static void
  2706. mdb_dbis_update(MDB_txn *txn, int keep)
  2707. {
  2708. int i;
  2709. MDB_dbi n = txn->mt_numdbs;
  2710. MDB_env *env = txn->mt_env;
  2711. unsigned char *tdbflags = txn->mt_dbflags;
  2712. for (i = n; --i >= CORE_DBS;) {
  2713. if (tdbflags[i] & DB_NEW) {
  2714. if (keep) {
  2715. env->me_dbflags[i] = txn->mt_dbs[i].md_flags | MDB_VALID;
  2716. } else {
  2717. char *ptr = env->me_dbxs[i].md_name.mv_data;
  2718. if (ptr) {
  2719. env->me_dbxs[i].md_name.mv_data = NULL;
  2720. env->me_dbxs[i].md_name.mv_size = 0;
  2721. env->me_dbflags[i] = 0;
  2722. env->me_dbiseqs[i]++;
  2723. free(ptr);
  2724. }
  2725. }
  2726. }
  2727. }
  2728. if (keep && env->me_numdbs < n)
  2729. env->me_numdbs = n;
  2730. }
  2731. /** End a transaction, except successful commit of a nested transaction.
  2732. * May be called twice for readonly txns: First reset it, then abort.
  2733. * @param[in] txn the transaction handle to end
  2734. * @param[in] mode why and how to end the transaction
  2735. */
  2736. static void
  2737. mdb_txn_end(MDB_txn *txn, unsigned mode)
  2738. {
  2739. MDB_env *env = txn->mt_env;
  2740. #if MDB_DEBUG
  2741. static const char *const names[] = MDB_END_NAMES;
  2742. #endif
  2743. /* Export or close DBI handles opened in this txn */
  2744. mdb_dbis_update(txn, mode & MDB_END_UPDATE);
  2745. DPRINTF(("%s txn %"Z"u%c %p on mdbenv %p, root page %"Z"u",
  2746. names[mode & MDB_END_OPMASK],
  2747. txn->mt_txnid, (txn->mt_flags & MDB_TXN_RDONLY) ? 'r' : 'w',
  2748. (void *) txn, (void *)env, txn->mt_dbs[MAIN_DBI].md_root));
  2749. if (F_ISSET(txn->mt_flags, MDB_TXN_RDONLY)) {
  2750. if (txn->mt_u.reader) {
  2751. txn->mt_u.reader->mr_txnid = (txnid_t)-1;
  2752. if (!(env->me_flags & MDB_NOTLS)) {
  2753. txn->mt_u.reader = NULL; /* txn does not own reader */
  2754. } else if (mode & MDB_END_SLOT) {
  2755. txn->mt_u.reader->mr_pid = 0;
  2756. txn->mt_u.reader = NULL;
  2757. } /* else txn owns the slot until it does MDB_END_SLOT */
  2758. }
  2759. txn->mt_numdbs = 0; /* prevent further DBI activity */
  2760. txn->mt_flags |= MDB_TXN_FINISHED;
  2761. } else if (!F_ISSET(txn->mt_flags, MDB_TXN_FINISHED)) {
  2762. pgno_t *pghead = env->me_pghead;
  2763. if (!(mode & MDB_END_UPDATE)) /* !(already closed cursors) */
  2764. mdb_cursors_close(txn, 0);
  2765. if (!(env->me_flags & MDB_WRITEMAP)) {
  2766. mdb_dlist_free(txn);
  2767. }
  2768. txn->mt_numdbs = 0;
  2769. txn->mt_flags = MDB_TXN_FINISHED;
  2770. if (!txn->mt_parent) {
  2771. mdb_midl_shrink(&txn->mt_free_pgs);
  2772. env->me_free_pgs = txn->mt_free_pgs;
  2773. /* me_pgstate: */
  2774. env->me_pghead = NULL;
  2775. env->me_pglast = 0;
  2776. env->me_txn = NULL;
  2777. mode = 0; /* txn == env->me_txn0, do not free() it */
  2778. /* The writer mutex was locked in mdb_txn_begin. */
  2779. if (env->me_txns)
  2780. UNLOCK_MUTEX(env->me_wmutex);
  2781. } else {
  2782. txn->mt_parent->mt_child = NULL;
  2783. txn->mt_parent->mt_flags &= ~MDB_TXN_HAS_CHILD;
  2784. env->me_pgstate = ((MDB_ntxn *)txn)->mnt_pgstate;
  2785. mdb_midl_free(txn->mt_free_pgs);
  2786. mdb_midl_free(txn->mt_spill_pgs);
  2787. free(txn->mt_u.dirty_list);
  2788. }
  2789. mdb_midl_free(pghead);
  2790. }
  2791. if (mode & MDB_END_FREE)
  2792. free(txn);
  2793. }
  2794. void
  2795. mdb_txn_reset(MDB_txn *txn)
  2796. {
  2797. if (txn == NULL)
  2798. return;
  2799. /* This call is only valid for read-only txns */
  2800. if (!(txn->mt_flags & MDB_TXN_RDONLY))
  2801. return;
  2802. mdb_txn_end(txn, MDB_END_RESET);
  2803. }
  2804. void
  2805. mdb_txn_abort(MDB_txn *txn)
  2806. {
  2807. if (txn == NULL)
  2808. return;
  2809. if (txn->mt_child)
  2810. mdb_txn_abort(txn->mt_child);
  2811. mdb_txn_end(txn, MDB_END_ABORT|MDB_END_SLOT|MDB_END_FREE);
  2812. }
  2813. /** Save the freelist as of this transaction to the freeDB.
  2814. * This changes the freelist. Keep trying until it stabilizes.
  2815. */
  2816. static int
  2817. mdb_freelist_save(MDB_txn *txn)
  2818. {
  2819. /* env->me_pghead[] can grow and shrink during this call.
  2820. * env->me_pglast and txn->mt_free_pgs[] can only grow.
  2821. * Page numbers cannot disappear from txn->mt_free_pgs[].
  2822. */
  2823. MDB_cursor mc;
  2824. MDB_env *env = txn->mt_env;
  2825. int rc, maxfree_1pg = env->me_maxfree_1pg, more = 1;
  2826. txnid_t pglast = 0, head_id = 0;
  2827. pgno_t freecnt = 0, *free_pgs, *mop;
  2828. ssize_t head_room = 0, total_room = 0, mop_len, clean_limit;
  2829. mdb_cursor_init(&mc, txn, FREE_DBI, NULL);
  2830. if (env->me_pghead) {
  2831. /* Make sure first page of freeDB is touched and on freelist */
  2832. rc = mdb_page_search(&mc, NULL, MDB_PS_FIRST|MDB_PS_MODIFY);
  2833. if (rc && rc != MDB_NOTFOUND)
  2834. return rc;
  2835. }
  2836. if (!env->me_pghead && txn->mt_loose_pgs) {
  2837. /* Put loose page numbers in mt_free_pgs, since
  2838. * we may be unable to return them to me_pghead.
  2839. */
  2840. MDB_page *mp = txn->mt_loose_pgs;
  2841. if ((rc = mdb_midl_need(&txn->mt_free_pgs, txn->mt_loose_count)) != 0)
  2842. return rc;
  2843. for (; mp; mp = NEXT_LOOSE_PAGE(mp))
  2844. mdb_midl_xappend(txn->mt_free_pgs, mp->mp_pgno);
  2845. txn->mt_loose_pgs = NULL;
  2846. txn->mt_loose_count = 0;
  2847. }
  2848. /* MDB_RESERVE cancels meminit in ovpage malloc (when no WRITEMAP) */
  2849. clean_limit = (env->me_flags & (MDB_NOMEMINIT|MDB_WRITEMAP))
  2850. ? SSIZE_MAX : maxfree_1pg;
  2851. for (;;) {
  2852. /* Come back here after each Put() in case freelist changed */
  2853. MDB_val key, data;
  2854. pgno_t *pgs;
  2855. ssize_t j;
  2856. /* If using records from freeDB which we have not yet
  2857. * deleted, delete them and any we reserved for me_pghead.
  2858. */
  2859. while (pglast < env->me_pglast) {
  2860. rc = mdb_cursor_first(&mc, &key, NULL);
  2861. if (rc)
  2862. return rc;
  2863. pglast = head_id = *(txnid_t *)key.mv_data;
  2864. total_room = head_room = 0;
  2865. mdb_tassert(txn, pglast <= env->me_pglast);
  2866. rc = mdb_cursor_del(&mc, 0);
  2867. if (rc)
  2868. return rc;
  2869. }
  2870. /* Save the IDL of pages freed by this txn, to a single record */
  2871. if (freecnt < txn->mt_free_pgs[0]) {
  2872. if (!freecnt) {
  2873. /* Make sure last page of freeDB is touched and on freelist */
  2874. rc = mdb_page_search(&mc, NULL, MDB_PS_LAST|MDB_PS_MODIFY);
  2875. if (rc && rc != MDB_NOTFOUND)
  2876. return rc;
  2877. }
  2878. free_pgs = txn->mt_free_pgs;
  2879. /* Write to last page of freeDB */
  2880. key.mv_size = sizeof(txn->mt_txnid);
  2881. key.mv_data = &txn->mt_txnid;
  2882. do {
  2883. freecnt = free_pgs[0];
  2884. data.mv_size = MDB_IDL_SIZEOF(free_pgs);
  2885. rc = mdb_cursor_put(&mc, &key, &data, MDB_RESERVE);
  2886. if (rc)
  2887. return rc;
  2888. /* Retry if mt_free_pgs[] grew during the Put() */
  2889. free_pgs = txn->mt_free_pgs;
  2890. } while (freecnt < free_pgs[0]);
  2891. mdb_midl_sort(free_pgs);
  2892. memcpy(data.mv_data, free_pgs, data.mv_size);
  2893. #if (MDB_DEBUG) > 1
  2894. {
  2895. unsigned int i = free_pgs[0];
  2896. DPRINTF(("IDL write txn %"Z"u root %"Z"u num %u",
  2897. txn->mt_txnid, txn->mt_dbs[FREE_DBI].md_root, i));
  2898. for (; i; i--)
  2899. DPRINTF(("IDL %"Z"u", free_pgs[i]));
  2900. }
  2901. #endif
  2902. continue;
  2903. }
  2904. mop = env->me_pghead;
  2905. mop_len = (mop ? mop[0] : 0) + txn->mt_loose_count;
  2906. /* Reserve records for me_pghead[]. Split it if multi-page,
  2907. * to avoid searching freeDB for a page range. Use keys in
  2908. * range [1,me_pglast]: Smaller than txnid of oldest reader.
  2909. */
  2910. if (total_room >= mop_len) {
  2911. if (total_room == mop_len || --more < 0)
  2912. break;
  2913. } else if (head_room >= maxfree_1pg && head_id > 1) {
  2914. /* Keep current record (overflow page), add a new one */
  2915. head_id--;
  2916. head_room = 0;
  2917. }
  2918. /* (Re)write {key = head_id, IDL length = head_room} */
  2919. total_room -= head_room;
  2920. head_room = mop_len - total_room;
  2921. if (head_room > maxfree_1pg && head_id > 1) {
  2922. /* Overflow multi-page for part of me_pghead */
  2923. head_room /= head_id; /* amortize page sizes */
  2924. head_room += maxfree_1pg - head_room % (maxfree_1pg + 1);
  2925. } else if (head_room < 0) {
  2926. /* Rare case, not bothering to delete this record */
  2927. head_room = 0;
  2928. }
  2929. key.mv_size = sizeof(head_id);
  2930. key.mv_data = &head_id;
  2931. data.mv_size = (head_room + 1) * sizeof(pgno_t);
  2932. rc = mdb_cursor_put(&mc, &key, &data, MDB_RESERVE);
  2933. if (rc)
  2934. return rc;
  2935. /* IDL is initially empty, zero out at least the length */
  2936. pgs = (pgno_t *)data.mv_data;
  2937. j = head_room > clean_limit ? head_room : 0;
  2938. do {
  2939. pgs[j] = 0;
  2940. } while (--j >= 0);
  2941. total_room += head_room;
  2942. }
  2943. /* Return loose page numbers to me_pghead, though usually none are
  2944. * left at this point. The pages themselves remain in dirty_list.
  2945. */
  2946. if (txn->mt_loose_pgs) {
  2947. MDB_page *mp = txn->mt_loose_pgs;
  2948. unsigned count = txn->mt_loose_count;
  2949. MDB_IDL loose;
  2950. /* Room for loose pages + temp IDL with same */
  2951. if ((rc = mdb_midl_need(&env->me_pghead, 2*count+1)) != 0)
  2952. return rc;
  2953. mop = env->me_pghead;
  2954. loose = mop + MDB_IDL_ALLOCLEN(mop) - count;
  2955. for (count = 0; mp; mp = NEXT_LOOSE_PAGE(mp))
  2956. loose[ ++count ] = mp->mp_pgno;
  2957. loose[0] = count;
  2958. mdb_midl_sort(loose);
  2959. mdb_midl_xmerge(mop, loose);
  2960. txn->mt_loose_pgs = NULL;
  2961. txn->mt_loose_count = 0;
  2962. mop_len = mop[0];
  2963. }
  2964. /* Fill in the reserved me_pghead records */
  2965. rc = MDB_SUCCESS;
  2966. if (mop_len) {
  2967. MDB_val key, data;
  2968. mop += mop_len;
  2969. rc = mdb_cursor_first(&mc, &key, &data);
  2970. for (; !rc; rc = mdb_cursor_next(&mc, &key, &data, MDB_NEXT)) {
  2971. txnid_t id = *(txnid_t *)key.mv_data;
  2972. ssize_t len = (ssize_t)(data.mv_size / sizeof(MDB_ID)) - 1;
  2973. MDB_ID save;
  2974. mdb_tassert(txn, len >= 0 && id <= env->me_pglast);
  2975. key.mv_data = &id;
  2976. if (len > mop_len) {
  2977. len = mop_len;
  2978. data.mv_size = (len + 1) * sizeof(MDB_ID);
  2979. }
  2980. data.mv_data = mop -= len;
  2981. save = mop[0];
  2982. mop[0] = len;
  2983. rc = mdb_cursor_put(&mc, &key, &data, MDB_CURRENT);
  2984. mop[0] = save;
  2985. if (rc || !(mop_len -= len))
  2986. break;
  2987. }
  2988. }
  2989. return rc;
  2990. }
  2991. /** Flush (some) dirty pages to the map, after clearing their dirty flag.
  2992. * @param[in] txn the transaction that's being committed
  2993. * @param[in] keep number of initial pages in dirty_list to keep dirty.
  2994. * @return 0 on success, non-zero on failure.
  2995. */
  2996. static int
  2997. mdb_page_flush(MDB_txn *txn, int keep)
  2998. {
  2999. MDB_env *env = txn->mt_env;
  3000. MDB_ID2L dl = txn->mt_u.dirty_list;
  3001. unsigned psize = env->me_psize, j;
  3002. int i, pagecount = dl[0].mid, rc;
  3003. size_t size = 0, pos = 0;
  3004. pgno_t pgno = 0;
  3005. MDB_page *dp = NULL;
  3006. #ifdef _WIN32
  3007. OVERLAPPED ov;
  3008. #else
  3009. struct iovec iov[MDB_COMMIT_PAGES];
  3010. ssize_t wpos = 0, wsize = 0, wres;
  3011. size_t next_pos = 1; /* impossible pos, so pos != next_pos */
  3012. int n = 0;
  3013. #endif
  3014. j = i = keep;
  3015. if (env->me_flags & MDB_WRITEMAP) {
  3016. /* Clear dirty flags */
  3017. while (++i <= pagecount) {
  3018. dp = dl[i].mptr;
  3019. /* Don't flush this page yet */
  3020. if (dp->mp_flags & (P_LOOSE|P_KEEP)) {
  3021. dp->mp_flags &= ~P_KEEP;
  3022. dl[++j] = dl[i];
  3023. continue;
  3024. }
  3025. dp->mp_flags &= ~P_DIRTY;
  3026. }
  3027. goto done;
  3028. }
  3029. /* Write the pages */
  3030. for (;;) {
  3031. if (++i <= pagecount) {
  3032. dp = dl[i].mptr;
  3033. /* Don't flush this page yet */
  3034. if (dp->mp_flags & (P_LOOSE|P_KEEP)) {
  3035. dp->mp_flags &= ~P_KEEP;
  3036. dl[i].mid = 0;
  3037. continue;
  3038. }
  3039. pgno = dl[i].mid;
  3040. /* clear dirty flag */
  3041. dp->mp_flags &= ~P_DIRTY;
  3042. pos = pgno * psize;
  3043. size = psize;
  3044. if (IS_OVERFLOW(dp)) size *= dp->mp_pages;
  3045. }
  3046. #ifdef _WIN32
  3047. else break;
  3048. /* Windows actually supports scatter/gather I/O, but only on
  3049. * unbuffered file handles. Since we're relying on the OS page
  3050. * cache for all our data, that's self-defeating. So we just
  3051. * write pages one at a time. We use the ov structure to set
  3052. * the write offset, to at least save the overhead of a Seek
  3053. * system call.
  3054. */
  3055. DPRINTF(("committing page %"Z"u", pgno));
  3056. memset(&ov, 0, sizeof(ov));
  3057. ov.Offset = pos & 0xffffffff;
  3058. ov.OffsetHigh = pos >> 16 >> 16;
  3059. if (!WriteFile(env->me_fd, dp, size, NULL, &ov)) {
  3060. rc = ErrCode();
  3061. DPRINTF(("WriteFile: %d", rc));
  3062. return rc;
  3063. }
  3064. #else
  3065. /* Write up to MDB_COMMIT_PAGES dirty pages at a time. */
  3066. if (pos!=next_pos || n==MDB_COMMIT_PAGES || wsize+size>MAX_WRITE) {
  3067. if (n) {
  3068. retry_write:
  3069. /* Write previous page(s) */
  3070. #ifdef MDB_USE_PWRITEV
  3071. wres = pwritev(env->me_fd, iov, n, wpos);
  3072. #else
  3073. if (n == 1) {
  3074. wres = pwrite(env->me_fd, iov[0].iov_base, wsize, wpos);
  3075. } else {
  3076. retry_seek:
  3077. if (lseek(env->me_fd, wpos, SEEK_SET) == -1) {
  3078. rc = ErrCode();
  3079. if (rc == EINTR)
  3080. goto retry_seek;
  3081. DPRINTF(("lseek: %s", strerror(rc)));
  3082. return rc;
  3083. }
  3084. wres = writev(env->me_fd, iov, n);
  3085. }
  3086. #endif
  3087. if (wres != wsize) {
  3088. if (wres < 0) {
  3089. rc = ErrCode();
  3090. if (rc == EINTR)
  3091. goto retry_write;
  3092. DPRINTF(("Write error: %s", strerror(rc)));
  3093. } else {
  3094. rc = EIO; /* TODO: Use which error code? */
  3095. DPUTS("short write, filesystem full?");
  3096. }
  3097. return rc;
  3098. }
  3099. n = 0;
  3100. }
  3101. if (i > pagecount)
  3102. break;
  3103. wpos = pos;
  3104. wsize = 0;
  3105. }
  3106. DPRINTF(("committing page %"Z"u", pgno));
  3107. next_pos = pos + size;
  3108. iov[n].iov_len = size;
  3109. iov[n].iov_base = (char *)dp;
  3110. wsize += size;
  3111. n++;
  3112. #endif /* _WIN32 */
  3113. }
  3114. /* MIPS has cache coherency issues, this is a no-op everywhere else
  3115. * Note: for any size >= on-chip cache size, entire on-chip cache is
  3116. * flushed.
  3117. */
  3118. CACHEFLUSH(env->me_map, txn->mt_next_pgno * env->me_psize, DCACHE);
  3119. for (i = keep; ++i <= pagecount; ) {
  3120. dp = dl[i].mptr;
  3121. /* This is a page we skipped above */
  3122. if (!dl[i].mid) {
  3123. dl[++j] = dl[i];
  3124. dl[j].mid = dp->mp_pgno;
  3125. continue;
  3126. }
  3127. mdb_dpage_free(env, dp);
  3128. }
  3129. done:
  3130. i--;
  3131. txn->mt_dirty_room += i - j;
  3132. dl[0].mid = j;
  3133. return MDB_SUCCESS;
  3134. }
  3135. int
  3136. mdb_txn_commit(MDB_txn *txn)
  3137. {
  3138. int rc;
  3139. unsigned int i, end_mode;
  3140. MDB_env *env;
  3141. if (txn == NULL)
  3142. return EINVAL;
  3143. /* mdb_txn_end() mode for a commit which writes nothing */
  3144. end_mode = MDB_END_EMPTY_COMMIT|MDB_END_UPDATE|MDB_END_SLOT|MDB_END_FREE;
  3145. if (txn->mt_child) {
  3146. rc = mdb_txn_commit(txn->mt_child);
  3147. if (rc)
  3148. goto fail;
  3149. }
  3150. env = txn->mt_env;
  3151. if (F_ISSET(txn->mt_flags, MDB_TXN_RDONLY)) {
  3152. goto done;
  3153. }
  3154. if (txn->mt_flags & (MDB_TXN_FINISHED|MDB_TXN_ERROR)) {
  3155. DPUTS("txn has failed/finished, can't commit");
  3156. if (txn->mt_parent)
  3157. txn->mt_parent->mt_flags |= MDB_TXN_ERROR;
  3158. rc = MDB_BAD_TXN;
  3159. goto fail;
  3160. }
  3161. if (txn->mt_parent) {
  3162. MDB_txn *parent = txn->mt_parent;
  3163. MDB_page **lp;
  3164. MDB_ID2L dst, src;
  3165. MDB_IDL pspill;
  3166. unsigned x, y, len, ps_len;
  3167. /* Append our free list to parent's */
  3168. rc = mdb_midl_append_list(&parent->mt_free_pgs, txn->mt_free_pgs);
  3169. if (rc)
  3170. goto fail;
  3171. mdb_midl_free(txn->mt_free_pgs);
  3172. /* Failures after this must either undo the changes
  3173. * to the parent or set MDB_TXN_ERROR in the parent.
  3174. */
  3175. parent->mt_next_pgno = txn->mt_next_pgno;
  3176. parent->mt_flags = txn->mt_flags;
  3177. /* Merge our cursors into parent's and close them */
  3178. mdb_cursors_close(txn, 1);
  3179. /* Update parent's DB table. */
  3180. memcpy(parent->mt_dbs, txn->mt_dbs, txn->mt_numdbs * sizeof(MDB_db));
  3181. parent->mt_numdbs = txn->mt_numdbs;
  3182. parent->mt_dbflags[FREE_DBI] = txn->mt_dbflags[FREE_DBI];
  3183. parent->mt_dbflags[MAIN_DBI] = txn->mt_dbflags[MAIN_DBI];
  3184. for (i=CORE_DBS; i<txn->mt_numdbs; i++) {
  3185. /* preserve parent's DB_NEW status */
  3186. x = parent->mt_dbflags[i] & DB_NEW;
  3187. parent->mt_dbflags[i] = txn->mt_dbflags[i] | x;
  3188. }
  3189. dst = parent->mt_u.dirty_list;
  3190. src = txn->mt_u.dirty_list;
  3191. /* Remove anything in our dirty list from parent's spill list */
  3192. if ((pspill = parent->mt_spill_pgs) && (ps_len = pspill[0])) {
  3193. x = y = ps_len;
  3194. pspill[0] = (pgno_t)-1;
  3195. /* Mark our dirty pages as deleted in parent spill list */
  3196. for (i=0, len=src[0].mid; ++i <= len; ) {
  3197. MDB_ID pn = src[i].mid << 1;
  3198. while (pn > pspill[x])
  3199. x--;
  3200. if (pn == pspill[x]) {
  3201. pspill[x] = 1;
  3202. y = --x;
  3203. }
  3204. }
  3205. /* Squash deleted pagenums if we deleted any */
  3206. for (x=y; ++x <= ps_len; )
  3207. if (!(pspill[x] & 1))
  3208. pspill[++y] = pspill[x];
  3209. pspill[0] = y;
  3210. }
  3211. /* Remove anything in our spill list from parent's dirty list */
  3212. if (txn->mt_spill_pgs && txn->mt_spill_pgs[0]) {
  3213. for (i=1; i<=txn->mt_spill_pgs[0]; i++) {
  3214. MDB_ID pn = txn->mt_spill_pgs[i];
  3215. if (pn & 1)
  3216. continue; /* deleted spillpg */
  3217. pn >>= 1;
  3218. y = mdb_mid2l_search(dst, pn);
  3219. if (y <= dst[0].mid && dst[y].mid == pn) {
  3220. free(dst[y].mptr);
  3221. while (y < dst[0].mid) {
  3222. dst[y] = dst[y+1];
  3223. y++;
  3224. }
  3225. dst[0].mid--;
  3226. }
  3227. }
  3228. }
  3229. /* Find len = length of merging our dirty list with parent's */
  3230. x = dst[0].mid;
  3231. dst[0].mid = 0; /* simplify loops */
  3232. if (parent->mt_parent) {
  3233. len = x + src[0].mid;
  3234. y = mdb_mid2l_search(src, dst[x].mid + 1) - 1;
  3235. for (i = x; y && i; y--) {
  3236. pgno_t yp = src[y].mid;
  3237. while (yp < dst[i].mid)
  3238. i--;
  3239. if (yp == dst[i].mid) {
  3240. i--;
  3241. len--;
  3242. }
  3243. }
  3244. } else { /* Simplify the above for single-ancestor case */
  3245. len = MDB_IDL_UM_MAX - txn->mt_dirty_room;
  3246. }
  3247. /* Merge our dirty list with parent's */
  3248. y = src[0].mid;
  3249. for (i = len; y; dst[i--] = src[y--]) {
  3250. pgno_t yp = src[y].mid;
  3251. while (yp < dst[x].mid)
  3252. dst[i--] = dst[x--];
  3253. if (yp == dst[x].mid)
  3254. free(dst[x--].mptr);
  3255. }
  3256. mdb_tassert(txn, i == x);
  3257. dst[0].mid = len;
  3258. free(txn->mt_u.dirty_list);
  3259. parent->mt_dirty_room = txn->mt_dirty_room;
  3260. if (txn->mt_spill_pgs) {
  3261. if (parent->mt_spill_pgs) {
  3262. /* TODO: Prevent failure here, so parent does not fail */
  3263. rc = mdb_midl_append_list(&parent->mt_spill_pgs, txn->mt_spill_pgs);
  3264. if (rc)
  3265. parent->mt_flags |= MDB_TXN_ERROR;
  3266. mdb_midl_free(txn->mt_spill_pgs);
  3267. mdb_midl_sort(parent->mt_spill_pgs);
  3268. } else {
  3269. parent->mt_spill_pgs = txn->mt_spill_pgs;
  3270. }
  3271. }
  3272. /* Append our loose page list to parent's */
  3273. for (lp = &parent->mt_loose_pgs; *lp; lp = &NEXT_LOOSE_PAGE(*lp))
  3274. ;
  3275. *lp = txn->mt_loose_pgs;
  3276. parent->mt_loose_count += txn->mt_loose_count;
  3277. parent->mt_child = NULL;
  3278. mdb_midl_free(((MDB_ntxn *)txn)->mnt_pgstate.mf_pghead);
  3279. free(txn);
  3280. return rc;
  3281. }
  3282. if (txn != env->me_txn) {
  3283. DPUTS("attempt to commit unknown transaction");
  3284. rc = EINVAL;
  3285. goto fail;
  3286. }
  3287. mdb_cursors_close(txn, 0);
  3288. if (!txn->mt_u.dirty_list[0].mid &&
  3289. !(txn->mt_flags & (MDB_TXN_DIRTY|MDB_TXN_SPILLS)))
  3290. goto done;
  3291. DPRINTF(("committing txn %"Z"u %p on mdbenv %p, root page %"Z"u",
  3292. txn->mt_txnid, (void*)txn, (void*)env, txn->mt_dbs[MAIN_DBI].md_root));
  3293. /* Update DB root pointers */
  3294. if (txn->mt_numdbs > CORE_DBS) {
  3295. MDB_cursor mc;
  3296. MDB_dbi i;
  3297. MDB_val data;
  3298. data.mv_size = sizeof(MDB_db);
  3299. mdb_cursor_init(&mc, txn, MAIN_DBI, NULL);
  3300. for (i = CORE_DBS; i < txn->mt_numdbs; i++) {
  3301. if (txn->mt_dbflags[i] & DB_DIRTY) {
  3302. if (TXN_DBI_CHANGED(txn, i)) {
  3303. rc = MDB_BAD_DBI;
  3304. goto fail;
  3305. }
  3306. data.mv_data = &txn->mt_dbs[i];
  3307. rc = mdb_cursor_put(&mc, &txn->mt_dbxs[i].md_name, &data,
  3308. F_SUBDATA);
  3309. if (rc)
  3310. goto fail;
  3311. }
  3312. }
  3313. }
  3314. rc = mdb_freelist_save(txn);
  3315. if (rc)
  3316. goto fail;
  3317. mdb_midl_free(env->me_pghead);
  3318. env->me_pghead = NULL;
  3319. mdb_midl_shrink(&txn->mt_free_pgs);
  3320. #if (MDB_DEBUG) > 2
  3321. mdb_audit(txn);
  3322. #endif
  3323. if ((rc = mdb_page_flush(txn, 0)) ||
  3324. (rc = mdb_env_sync(env, 0)) ||
  3325. (rc = mdb_env_write_meta(txn)))
  3326. goto fail;
  3327. end_mode = MDB_END_COMMITTED|MDB_END_UPDATE;
  3328. done:
  3329. mdb_txn_end(txn, end_mode);
  3330. return MDB_SUCCESS;
  3331. fail:
  3332. mdb_txn_abort(txn);
  3333. return rc;
  3334. }
  3335. /** Read the environment parameters of a DB environment before
  3336. * mapping it into memory.
  3337. * @param[in] env the environment handle
  3338. * @param[out] meta address of where to store the meta information
  3339. * @return 0 on success, non-zero on failure.
  3340. */
  3341. static int ESECT
  3342. mdb_env_read_header(MDB_env *env, MDB_meta *meta)
  3343. {
  3344. MDB_metabuf pbuf;
  3345. MDB_page *p;
  3346. MDB_meta *m;
  3347. int i, rc, off;
  3348. enum { Size = sizeof(pbuf) };
  3349. /* We don't know the page size yet, so use a minimum value.
  3350. * Read both meta pages so we can use the latest one.
  3351. */
  3352. for (i=off=0; i<NUM_METAS; i++, off += meta->mm_psize) {
  3353. #ifdef _WIN32
  3354. DWORD len;
  3355. OVERLAPPED ov;
  3356. memset(&ov, 0, sizeof(ov));
  3357. ov.Offset = off;
  3358. rc = ReadFile(env->me_fd, &pbuf, Size, &len, &ov) ? (int)len : -1;
  3359. if (rc == -1 && ErrCode() == ERROR_HANDLE_EOF)
  3360. rc = 0;
  3361. #else
  3362. rc = pread(env->me_fd, &pbuf, Size, off);
  3363. #endif
  3364. if (rc != Size) {
  3365. if (rc == 0 && off == 0)
  3366. return ENOENT;
  3367. rc = rc < 0 ? (int) ErrCode() : MDB_INVALID;
  3368. DPRINTF(("read: %s", mdb_strerror(rc)));
  3369. return rc;
  3370. }
  3371. p = (MDB_page *)&pbuf;
  3372. if (!F_ISSET(p->mp_flags, P_META)) {
  3373. DPRINTF(("page %"Z"u not a meta page", p->mp_pgno));
  3374. return MDB_INVALID;
  3375. }
  3376. m = METADATA(p);
  3377. if (m->mm_magic != MDB_MAGIC) {
  3378. DPUTS("meta has invalid magic");
  3379. return MDB_INVALID;
  3380. }
  3381. if (m->mm_version != MDB_DATA_VERSION) {
  3382. DPRINTF(("database is version %u, expected version %u",
  3383. m->mm_version, MDB_DATA_VERSION));
  3384. return MDB_VERSION_MISMATCH;
  3385. }
  3386. if (off == 0 || m->mm_txnid > meta->mm_txnid)
  3387. *meta = *m;
  3388. }
  3389. return 0;
  3390. }
  3391. /** Fill in most of the zeroed #MDB_meta for an empty database environment */
  3392. static void ESECT
  3393. mdb_env_init_meta0(MDB_env *env, MDB_meta *meta)
  3394. {
  3395. meta->mm_magic = MDB_MAGIC;
  3396. meta->mm_version = MDB_DATA_VERSION;
  3397. meta->mm_mapsize = env->me_mapsize;
  3398. meta->mm_psize = env->me_psize;
  3399. meta->mm_last_pg = NUM_METAS-1;
  3400. meta->mm_flags = env->me_flags & 0xffff;
  3401. meta->mm_flags |= MDB_INTEGERKEY; /* this is mm_dbs[FREE_DBI].md_flags */
  3402. meta->mm_dbs[FREE_DBI].md_root = P_INVALID;
  3403. meta->mm_dbs[MAIN_DBI].md_root = P_INVALID;
  3404. }
  3405. /** Write the environment parameters of a freshly created DB environment.
  3406. * @param[in] env the environment handle
  3407. * @param[in] meta the #MDB_meta to write
  3408. * @return 0 on success, non-zero on failure.
  3409. */
  3410. static int ESECT
  3411. mdb_env_init_meta(MDB_env *env, MDB_meta *meta)
  3412. {
  3413. MDB_page *p, *q;
  3414. int rc;
  3415. unsigned int psize;
  3416. #ifdef _WIN32
  3417. DWORD len;
  3418. OVERLAPPED ov;
  3419. memset(&ov, 0, sizeof(ov));
  3420. #define DO_PWRITE(rc, fd, ptr, size, len, pos) do { \
  3421. ov.Offset = pos; \
  3422. rc = WriteFile(fd, ptr, size, &len, &ov); } while(0)
  3423. #else
  3424. int len;
  3425. #define DO_PWRITE(rc, fd, ptr, size, len, pos) do { \
  3426. len = pwrite(fd, ptr, size, pos); \
  3427. if (len == -1 && ErrCode() == EINTR) continue; \
  3428. rc = (len >= 0); break; } while(1)
  3429. #endif
  3430. DPUTS("writing new meta page");
  3431. psize = env->me_psize;
  3432. p = calloc(NUM_METAS, psize);
  3433. if (!p)
  3434. return ENOMEM;
  3435. p->mp_pgno = 0;
  3436. p->mp_flags = P_META;
  3437. *(MDB_meta *)METADATA(p) = *meta;
  3438. q = (MDB_page *)((char *)p + psize);
  3439. q->mp_pgno = 1;
  3440. q->mp_flags = P_META;
  3441. *(MDB_meta *)METADATA(q) = *meta;
  3442. DO_PWRITE(rc, env->me_fd, p, psize * NUM_METAS, len, 0);
  3443. if (!rc)
  3444. rc = ErrCode();
  3445. else if ((unsigned) len == psize * NUM_METAS)
  3446. rc = MDB_SUCCESS;
  3447. else
  3448. rc = ENOSPC;
  3449. free(p);
  3450. return rc;
  3451. }
  3452. /** Update the environment info to commit a transaction.
  3453. * @param[in] txn the transaction that's being committed
  3454. * @return 0 on success, non-zero on failure.
  3455. */
  3456. static int
  3457. mdb_env_write_meta(MDB_txn *txn)
  3458. {
  3459. MDB_env *env;
  3460. MDB_meta meta, metab, *mp;
  3461. unsigned flags;
  3462. size_t mapsize;
  3463. off_t off;
  3464. int rc, len, toggle;
  3465. char *ptr;
  3466. HANDLE mfd;
  3467. #ifdef _WIN32
  3468. OVERLAPPED ov;
  3469. #else
  3470. int r2;
  3471. #endif
  3472. toggle = txn->mt_txnid & 1;
  3473. DPRINTF(("writing meta page %d for root page %"Z"u",
  3474. toggle, txn->mt_dbs[MAIN_DBI].md_root));
  3475. env = txn->mt_env;
  3476. flags = env->me_flags;
  3477. mp = env->me_metas[toggle];
  3478. mapsize = env->me_metas[toggle ^ 1]->mm_mapsize;
  3479. /* Persist any increases of mapsize config */
  3480. if (mapsize < env->me_mapsize)
  3481. mapsize = env->me_mapsize;
  3482. if (flags & MDB_WRITEMAP) {
  3483. mp->mm_mapsize = mapsize;
  3484. mp->mm_dbs[FREE_DBI] = txn->mt_dbs[FREE_DBI];
  3485. mp->mm_dbs[MAIN_DBI] = txn->mt_dbs[MAIN_DBI];
  3486. mp->mm_last_pg = txn->mt_next_pgno - 1;
  3487. #if (__GNUC__ * 100 + __GNUC_MINOR__ >= 404) && /* TODO: portability */ \
  3488. !(defined(__i386__) || defined(__x86_64__))
  3489. /* LY: issue a memory barrier, if not x86. ITS#7969 */
  3490. __sync_synchronize();
  3491. #endif
  3492. mp->mm_txnid = txn->mt_txnid;
  3493. if (!(flags & (MDB_NOMETASYNC|MDB_NOSYNC))) {
  3494. unsigned meta_size = env->me_psize;
  3495. rc = (env->me_flags & MDB_MAPASYNC) ? MS_ASYNC : MS_SYNC;
  3496. ptr = (char *)mp - PAGEHDRSZ;
  3497. #ifndef _WIN32 /* POSIX msync() requires ptr = start of OS page */
  3498. r2 = (ptr - env->me_map) & (env->me_os_psize - 1);
  3499. ptr -= r2;
  3500. meta_size += r2;
  3501. #endif
  3502. if (MDB_MSYNC(ptr, meta_size, rc)) {
  3503. rc = ErrCode();
  3504. goto fail;
  3505. }
  3506. }
  3507. goto done;
  3508. }
  3509. metab.mm_txnid = mp->mm_txnid;
  3510. metab.mm_last_pg = mp->mm_last_pg;
  3511. meta.mm_mapsize = mapsize;
  3512. meta.mm_dbs[FREE_DBI] = txn->mt_dbs[FREE_DBI];
  3513. meta.mm_dbs[MAIN_DBI] = txn->mt_dbs[MAIN_DBI];
  3514. meta.mm_last_pg = txn->mt_next_pgno - 1;
  3515. meta.mm_txnid = txn->mt_txnid;
  3516. off = offsetof(MDB_meta, mm_mapsize);
  3517. ptr = (char *)&meta + off;
  3518. len = sizeof(MDB_meta) - off;
  3519. off += (char *)mp - env->me_map;
  3520. /* Write to the SYNC fd unless MDB_NOSYNC/MDB_NOMETASYNC.
  3521. * (me_mfd goes to the same file as me_fd, but writing to it
  3522. * also syncs to disk. Avoids a separate fdatasync() call.)
  3523. */
  3524. mfd = (flags & (MDB_NOSYNC|MDB_NOMETASYNC)) ? env->me_fd : env->me_mfd;
  3525. #ifdef _WIN32
  3526. {
  3527. memset(&ov, 0, sizeof(ov));
  3528. ov.Offset = off;
  3529. if (!WriteFile(mfd, ptr, len, (DWORD *)&rc, &ov))
  3530. rc = -1;
  3531. }
  3532. #else
  3533. retry_write:
  3534. rc = pwrite(mfd, ptr, len, off);
  3535. #endif
  3536. if (rc != len) {
  3537. rc = rc < 0 ? ErrCode() : EIO;
  3538. #ifndef _WIN32
  3539. if (rc == EINTR)
  3540. goto retry_write;
  3541. #endif
  3542. DPUTS("write failed, disk error?");
  3543. /* On a failure, the pagecache still contains the new data.
  3544. * Write some old data back, to prevent it from being used.
  3545. * Use the non-SYNC fd; we know it will fail anyway.
  3546. */
  3547. meta.mm_last_pg = metab.mm_last_pg;
  3548. meta.mm_txnid = metab.mm_txnid;
  3549. #ifdef _WIN32
  3550. memset(&ov, 0, sizeof(ov));
  3551. ov.Offset = off;
  3552. WriteFile(env->me_fd, ptr, len, NULL, &ov);
  3553. #else
  3554. r2 = pwrite(env->me_fd, ptr, len, off);
  3555. (void)r2; /* Silence warnings. We don't care about pwrite's return value */
  3556. #endif
  3557. fail:
  3558. env->me_flags |= MDB_FATAL_ERROR;
  3559. return rc;
  3560. }
  3561. /* MIPS has cache coherency issues, this is a no-op everywhere else */
  3562. CACHEFLUSH(env->me_map + off, len, DCACHE);
  3563. done:
  3564. /* Memory ordering issues are irrelevant; since the entire writer
  3565. * is wrapped by wmutex, all of these changes will become visible
  3566. * after the wmutex is unlocked. Since the DB is multi-version,
  3567. * readers will get consistent data regardless of how fresh or
  3568. * how stale their view of these values is.
  3569. */
  3570. if (env->me_txns)
  3571. env->me_txns->mti_txnid = txn->mt_txnid;
  3572. return MDB_SUCCESS;
  3573. }
  3574. /** Check both meta pages to see which one is newer.
  3575. * @param[in] env the environment handle
  3576. * @return newest #MDB_meta.
  3577. */
  3578. static MDB_meta *
  3579. mdb_env_pick_meta(const MDB_env *env)
  3580. {
  3581. MDB_meta *const *metas = env->me_metas;
  3582. return metas[ metas[0]->mm_txnid < metas[1]->mm_txnid ];
  3583. }
  3584. int ESECT
  3585. mdb_env_create(MDB_env **env)
  3586. {
  3587. MDB_env *e;
  3588. e = calloc(1, sizeof(MDB_env));
  3589. if (!e)
  3590. return ENOMEM;
  3591. e->me_maxreaders = DEFAULT_READERS;
  3592. e->me_maxdbs = e->me_numdbs = CORE_DBS;
  3593. e->me_fd = INVALID_HANDLE_VALUE;
  3594. e->me_lfd = INVALID_HANDLE_VALUE;
  3595. e->me_mfd = INVALID_HANDLE_VALUE;
  3596. #ifdef MDB_USE_POSIX_SEM
  3597. e->me_rmutex = SEM_FAILED;
  3598. e->me_wmutex = SEM_FAILED;
  3599. #endif
  3600. e->me_pid = getpid();
  3601. GET_PAGESIZE(e->me_os_psize);
  3602. VGMEMP_CREATE(e,0,0);
  3603. *env = e;
  3604. return MDB_SUCCESS;
  3605. }
  3606. static int ESECT
  3607. mdb_env_map(MDB_env *env, void *addr)
  3608. {
  3609. MDB_page *p;
  3610. unsigned int flags = env->me_flags;
  3611. #ifdef _WIN32
  3612. int rc;
  3613. HANDLE mh;
  3614. LONG sizelo, sizehi;
  3615. size_t msize;
  3616. if (flags & MDB_RDONLY) {
  3617. /* Don't set explicit map size, use whatever exists */
  3618. msize = 0;
  3619. sizelo = 0;
  3620. sizehi = 0;
  3621. } else {
  3622. msize = env->me_mapsize;
  3623. sizelo = msize & 0xffffffff;
  3624. sizehi = msize >> 16 >> 16; /* only needed on Win64 */
  3625. /* Windows won't create mappings for zero length files.
  3626. * and won't map more than the file size.
  3627. * Just set the maxsize right now.
  3628. */
  3629. if (SetFilePointer(env->me_fd, sizelo, &sizehi, 0) != (DWORD)sizelo
  3630. || !SetEndOfFile(env->me_fd)
  3631. || SetFilePointer(env->me_fd, 0, NULL, 0) != 0)
  3632. return ErrCode();
  3633. }
  3634. mh = CreateFileMapping(env->me_fd, NULL, flags & MDB_WRITEMAP ?
  3635. PAGE_READWRITE : PAGE_READONLY,
  3636. sizehi, sizelo, NULL);
  3637. if (!mh)
  3638. return ErrCode();
  3639. env->me_map = MapViewOfFileEx(mh, flags & MDB_WRITEMAP ?
  3640. FILE_MAP_WRITE : FILE_MAP_READ,
  3641. 0, 0, msize, addr);
  3642. rc = env->me_map ? 0 : ErrCode();
  3643. CloseHandle(mh);
  3644. if (rc)
  3645. return rc;
  3646. #else
  3647. int prot = PROT_READ;
  3648. if (flags & MDB_WRITEMAP) {
  3649. prot |= PROT_WRITE;
  3650. if (ftruncate(env->me_fd, env->me_mapsize) < 0)
  3651. return ErrCode();
  3652. }
  3653. env->me_map = mmap(addr, env->me_mapsize, prot, MAP_SHARED,
  3654. env->me_fd, 0);
  3655. if (env->me_map == MAP_FAILED) {
  3656. env->me_map = NULL;
  3657. return ErrCode();
  3658. }
  3659. if (flags & MDB_NORDAHEAD) {
  3660. /* Turn off readahead. It's harmful when the DB is larger than RAM. */
  3661. #ifdef MADV_RANDOM
  3662. madvise(env->me_map, env->me_mapsize, MADV_RANDOM);
  3663. #else
  3664. #ifdef POSIX_MADV_RANDOM
  3665. posix_madvise(env->me_map, env->me_mapsize, POSIX_MADV_RANDOM);
  3666. #endif /* POSIX_MADV_RANDOM */
  3667. #endif /* MADV_RANDOM */
  3668. }
  3669. #endif /* _WIN32 */
  3670. /* Can happen because the address argument to mmap() is just a
  3671. * hint. mmap() can pick another, e.g. if the range is in use.
  3672. * The MAP_FIXED flag would prevent that, but then mmap could
  3673. * instead unmap existing pages to make room for the new map.
  3674. */
  3675. if (addr && env->me_map != addr)
  3676. return EBUSY; /* TODO: Make a new MDB_* error code? */
  3677. p = (MDB_page *)env->me_map;
  3678. env->me_metas[0] = METADATA(p);
  3679. env->me_metas[1] = (MDB_meta *)((char *)env->me_metas[0] + env->me_psize);
  3680. return MDB_SUCCESS;
  3681. }
  3682. int ESECT
  3683. mdb_env_set_mapsize(MDB_env *env, size_t size)
  3684. {
  3685. /* If env is already open, caller is responsible for making
  3686. * sure there are no active txns.
  3687. */
  3688. if (env->me_map) {
  3689. int rc;
  3690. MDB_meta *meta;
  3691. void *old;
  3692. if (env->me_txn)
  3693. return EINVAL;
  3694. meta = mdb_env_pick_meta(env);
  3695. if (!size)
  3696. size = meta->mm_mapsize;
  3697. {
  3698. /* Silently round up to minimum if the size is too small */
  3699. size_t minsize = (meta->mm_last_pg + 1) * env->me_psize;
  3700. if (size < minsize)
  3701. size = minsize;
  3702. }
  3703. munmap(env->me_map, env->me_mapsize);
  3704. env->me_mapsize = size;
  3705. old = (env->me_flags & MDB_FIXEDMAP) ? env->me_map : NULL;
  3706. rc = mdb_env_map(env, old);
  3707. if (rc)
  3708. return rc;
  3709. }
  3710. env->me_mapsize = size;
  3711. if (env->me_psize)
  3712. env->me_maxpg = env->me_mapsize / env->me_psize;
  3713. return MDB_SUCCESS;
  3714. }
  3715. int ESECT
  3716. mdb_env_set_maxdbs(MDB_env *env, MDB_dbi dbs)
  3717. {
  3718. if (env->me_map)
  3719. return EINVAL;
  3720. env->me_maxdbs = dbs + CORE_DBS;
  3721. return MDB_SUCCESS;
  3722. }
  3723. int ESECT
  3724. mdb_env_set_maxreaders(MDB_env *env, unsigned int readers)
  3725. {
  3726. if (env->me_map || readers < 1)
  3727. return EINVAL;
  3728. env->me_maxreaders = readers;
  3729. return MDB_SUCCESS;
  3730. }
  3731. int ESECT
  3732. mdb_env_get_maxreaders(MDB_env *env, unsigned int *readers)
  3733. {
  3734. if (!env || !readers)
  3735. return EINVAL;
  3736. *readers = env->me_maxreaders;
  3737. return MDB_SUCCESS;
  3738. }
  3739. static int ESECT
  3740. mdb_fsize(HANDLE fd, size_t *size)
  3741. {
  3742. #ifdef _WIN32
  3743. LARGE_INTEGER fsize;
  3744. if (!GetFileSizeEx(fd, &fsize))
  3745. return ErrCode();
  3746. *size = fsize.QuadPart;
  3747. #else
  3748. struct stat st;
  3749. if (fstat(fd, &st))
  3750. return ErrCode();
  3751. *size = st.st_size;
  3752. #endif
  3753. return MDB_SUCCESS;
  3754. }
  3755. #ifdef _WIN32
  3756. typedef wchar_t mdb_nchar_t;
  3757. # define MDB_NAME(str) L##str
  3758. # define mdb_name_cpy wcscpy
  3759. #else
  3760. /** Character type for file names: char on Unix, wchar_t on Windows */
  3761. typedef char mdb_nchar_t;
  3762. # define MDB_NAME(str) str /**< #mdb_nchar_t[] string literal */
  3763. # define mdb_name_cpy strcpy /**< Copy name (#mdb_nchar_t string) */
  3764. #endif
  3765. /** Filename - string of #mdb_nchar_t[] */
  3766. typedef struct MDB_name {
  3767. int mn_len; /**< Length */
  3768. int mn_alloced; /**< True if #mn_val was malloced */
  3769. mdb_nchar_t *mn_val; /**< Contents */
  3770. } MDB_name;
  3771. /** Filename suffixes [datafile,lockfile][without,with MDB_NOSUBDIR] */
  3772. static const mdb_nchar_t *const mdb_suffixes[2][2] = {
  3773. { MDB_NAME("/data.mdb"), MDB_NAME("") },
  3774. { MDB_NAME("/lock.mdb"), MDB_NAME("-lock") }
  3775. };
  3776. #define MDB_SUFFLEN 9 /**< Max string length in #mdb_suffixes[] */
  3777. /** Set up filename + scratch area for filename suffix, for opening files.
  3778. * It should be freed with #mdb_fname_destroy().
  3779. * On Windows, paths are converted from char *UTF-8 to wchar_t *UTF-16.
  3780. *
  3781. * @param[in] path Pathname for #mdb_env_open().
  3782. * @param[in] envflags Whether a subdir and/or lockfile will be used.
  3783. * @param[out] fname Resulting filename, with room for a suffix if necessary.
  3784. */
  3785. static int ESECT
  3786. mdb_fname_init(const char *path, unsigned envflags, MDB_name *fname)
  3787. {
  3788. int no_suffix = F_ISSET(envflags, MDB_NOSUBDIR|MDB_NOLOCK);
  3789. fname->mn_alloced = 0;
  3790. #ifdef _WIN32
  3791. return utf8_to_utf16(path, fname, no_suffix ? 0 : MDB_SUFFLEN);
  3792. #else
  3793. fname->mn_len = strlen(path);
  3794. if (no_suffix)
  3795. fname->mn_val = (char *) path;
  3796. else if ((fname->mn_val = malloc(fname->mn_len + MDB_SUFFLEN+1)) != NULL) {
  3797. fname->mn_alloced = 1;
  3798. strcpy(fname->mn_val, path);
  3799. }
  3800. else
  3801. return ENOMEM;
  3802. return MDB_SUCCESS;
  3803. #endif
  3804. }
  3805. /** Destroy \b fname from #mdb_fname_init() */
  3806. #define mdb_fname_destroy(fname) \
  3807. do { if ((fname).mn_alloced) free((fname).mn_val); } while (0)
  3808. #ifdef O_CLOEXEC /* POSIX.1-2008: Set FD_CLOEXEC atomically at open() */
  3809. # define MDB_CLOEXEC O_CLOEXEC
  3810. #else
  3811. # define MDB_CLOEXEC 0
  3812. #endif
  3813. /** File type, access mode etc. for #mdb_fopen() */
  3814. enum mdb_fopen_type {
  3815. #ifdef _WIN32
  3816. MDB_O_RDONLY, MDB_O_RDWR, MDB_O_META, MDB_O_COPY, MDB_O_LOCKS
  3817. #else
  3818. /* A comment in mdb_fopen() explains some O_* flag choices. */
  3819. MDB_O_RDONLY= O_RDONLY, /**< for RDONLY me_fd */
  3820. MDB_O_RDWR = O_RDWR |O_CREAT, /**< for me_fd */
  3821. MDB_O_META = O_WRONLY|MDB_DSYNC |MDB_CLOEXEC, /**< for me_mfd */
  3822. MDB_O_COPY = O_WRONLY|O_CREAT|O_EXCL|MDB_CLOEXEC, /**< for #mdb_env_copy() */
  3823. /** Bitmask for open() flags in enum #mdb_fopen_type. The other bits
  3824. * distinguish otherwise-equal MDB_O_* constants from each other.
  3825. */
  3826. MDB_O_MASK = MDB_O_RDWR|MDB_CLOEXEC | MDB_O_RDONLY|MDB_O_META|MDB_O_COPY,
  3827. MDB_O_LOCKS = MDB_O_RDWR|MDB_CLOEXEC | ((MDB_O_MASK+1) & ~MDB_O_MASK) /**< for me_lfd */
  3828. #endif
  3829. };
  3830. /** Open an LMDB file.
  3831. * @param[in] env The LMDB environment.
  3832. * @param[in,out] fname Path from from #mdb_fname_init(). A suffix is
  3833. * appended if necessary to create the filename, without changing mn_len.
  3834. * @param[in] which Determines file type, access mode, etc.
  3835. * @param[in] mode The Unix permissions for the file, if we create it.
  3836. * @param[out] res Resulting file handle.
  3837. * @return 0 on success, non-zero on failure.
  3838. */
  3839. static int ESECT
  3840. mdb_fopen(const MDB_env *env, MDB_name *fname,
  3841. enum mdb_fopen_type which, mdb_mode_t mode,
  3842. HANDLE *res)
  3843. {
  3844. int rc = MDB_SUCCESS;
  3845. HANDLE fd;
  3846. #ifdef _WIN32
  3847. DWORD acc, share, disp, attrs;
  3848. #else
  3849. int flags;
  3850. #endif
  3851. if (fname->mn_alloced) /* modifiable copy */
  3852. mdb_name_cpy(fname->mn_val + fname->mn_len,
  3853. mdb_suffixes[which==MDB_O_LOCKS][F_ISSET(env->me_flags, MDB_NOSUBDIR)]);
  3854. /* The directory must already exist. Usually the file need not.
  3855. * MDB_O_META requires the file because we already created it using
  3856. * MDB_O_RDWR. MDB_O_COPY must not overwrite an existing file.
  3857. *
  3858. * With MDB_O_COPY we do not want the OS to cache the writes, since
  3859. * the source data is already in the OS cache.
  3860. *
  3861. * The lockfile needs FD_CLOEXEC (close file descriptor on exec*())
  3862. * to avoid the flock() issues noted under Caveats in lmdb.h.
  3863. * Also set it for other filehandles which the user cannot get at
  3864. * and close himself, which he may need after fork(). I.e. all but
  3865. * me_fd, which programs do use via mdb_env_get_fd().
  3866. */
  3867. #ifdef _WIN32
  3868. acc = GENERIC_READ|GENERIC_WRITE;
  3869. share = FILE_SHARE_READ|FILE_SHARE_WRITE;
  3870. disp = OPEN_ALWAYS;
  3871. attrs = FILE_ATTRIBUTE_NORMAL;
  3872. switch (which) {
  3873. case MDB_O_RDONLY: /* read-only datafile */
  3874. acc = GENERIC_READ;
  3875. disp = OPEN_EXISTING;
  3876. break;
  3877. case MDB_O_META: /* for writing metapages */
  3878. acc = GENERIC_WRITE;
  3879. disp = OPEN_EXISTING;
  3880. attrs = FILE_ATTRIBUTE_NORMAL|FILE_FLAG_WRITE_THROUGH;
  3881. break;
  3882. case MDB_O_COPY: /* mdb_env_copy() & co */
  3883. acc = GENERIC_WRITE;
  3884. share = 0;
  3885. disp = CREATE_NEW;
  3886. attrs = FILE_FLAG_NO_BUFFERING|FILE_FLAG_WRITE_THROUGH;
  3887. break;
  3888. default: break; /* silence gcc -Wswitch (not all enum values handled) */
  3889. }
  3890. fd = CreateFileW(fname->mn_val, acc, share, NULL, disp, attrs, NULL);
  3891. #else
  3892. fd = open(fname->mn_val, which & MDB_O_MASK, mode);
  3893. #endif
  3894. if (fd == INVALID_HANDLE_VALUE)
  3895. rc = ErrCode();
  3896. #ifndef _WIN32
  3897. else {
  3898. if (which != MDB_O_RDONLY && which != MDB_O_RDWR) {
  3899. /* Set CLOEXEC if we could not pass it to open() */
  3900. if (!MDB_CLOEXEC && (flags = fcntl(fd, F_GETFD)) != -1)
  3901. (void) fcntl(fd, F_SETFD, flags | FD_CLOEXEC);
  3902. }
  3903. if (which == MDB_O_COPY && env->me_psize >= env->me_os_psize) {
  3904. /* This may require buffer alignment. There is no portable
  3905. * way to ask how much, so we require OS pagesize alignment.
  3906. */
  3907. # ifdef F_NOCACHE /* __APPLE__ */
  3908. (void) fcntl(fd, F_NOCACHE, 1);
  3909. # elif defined O_DIRECT
  3910. /* open(...O_DIRECT...) would break on filesystems without
  3911. * O_DIRECT support (ITS#7682). Try to set it here instead.
  3912. */
  3913. if ((flags = fcntl(fd, F_GETFL)) != -1)
  3914. (void) fcntl(fd, F_SETFL, flags | O_DIRECT);
  3915. # endif
  3916. }
  3917. }
  3918. #endif /* !_WIN32 */
  3919. *res = fd;
  3920. return rc;
  3921. }
  3922. #ifdef BROKEN_FDATASYNC
  3923. #include <sys/utsname.h>
  3924. #include <sys/vfs.h>
  3925. #endif
  3926. /** Further setup required for opening an LMDB environment
  3927. */
  3928. static int ESECT
  3929. mdb_env_open2(MDB_env *env)
  3930. {
  3931. unsigned int flags = env->me_flags;
  3932. int i, newenv = 0, rc;
  3933. MDB_meta meta;
  3934. #ifdef _WIN32
  3935. /* See if we should use QueryLimited */
  3936. rc = GetVersion();
  3937. if ((rc & 0xff) > 5)
  3938. env->me_pidquery = MDB_PROCESS_QUERY_LIMITED_INFORMATION;
  3939. else
  3940. env->me_pidquery = PROCESS_QUERY_INFORMATION;
  3941. #endif /* _WIN32 */
  3942. #ifdef BROKEN_FDATASYNC
  3943. /* ext3/ext4 fdatasync is broken on some older Linux kernels.
  3944. * https://lkml.org/lkml/2012/9/3/83
  3945. * Kernels after 3.6-rc6 are known good.
  3946. * https://lkml.org/lkml/2012/9/10/556
  3947. * See if the DB is on ext3/ext4, then check for new enough kernel
  3948. * Kernels 2.6.32.60, 2.6.34.15, 3.2.30, and 3.5.4 are also known
  3949. * to be patched.
  3950. */
  3951. {
  3952. struct statfs st;
  3953. fstatfs(env->me_fd, &st);
  3954. while (st.f_type == 0xEF53) {
  3955. struct utsname uts;
  3956. int i;
  3957. uname(&uts);
  3958. if (uts.release[0] < '3') {
  3959. if (!strncmp(uts.release, "2.6.32.", 7)) {
  3960. i = atoi(uts.release+7);
  3961. if (i >= 60)
  3962. break; /* 2.6.32.60 and newer is OK */
  3963. } else if (!strncmp(uts.release, "2.6.34.", 7)) {
  3964. i = atoi(uts.release+7);
  3965. if (i >= 15)
  3966. break; /* 2.6.34.15 and newer is OK */
  3967. }
  3968. } else if (uts.release[0] == '3') {
  3969. i = atoi(uts.release+2);
  3970. if (i > 5)
  3971. break; /* 3.6 and newer is OK */
  3972. if (i == 5) {
  3973. i = atoi(uts.release+4);
  3974. if (i >= 4)
  3975. break; /* 3.5.4 and newer is OK */
  3976. } else if (i == 2) {
  3977. i = atoi(uts.release+4);
  3978. if (i >= 30)
  3979. break; /* 3.2.30 and newer is OK */
  3980. }
  3981. } else { /* 4.x and newer is OK */
  3982. break;
  3983. }
  3984. env->me_flags |= MDB_FSYNCONLY;
  3985. break;
  3986. }
  3987. }
  3988. #endif
  3989. if ((i = mdb_env_read_header(env, &meta)) != 0) {
  3990. if (i != ENOENT)
  3991. return i;
  3992. DPUTS("new mdbenv");
  3993. newenv = 1;
  3994. env->me_psize = env->me_os_psize;
  3995. if (env->me_psize > MAX_PAGESIZE)
  3996. env->me_psize = MAX_PAGESIZE;
  3997. memset(&meta, 0, sizeof(meta));
  3998. mdb_env_init_meta0(env, &meta);
  3999. meta.mm_mapsize = DEFAULT_MAPSIZE;
  4000. } else {
  4001. env->me_psize = meta.mm_psize;
  4002. }
  4003. /* Was a mapsize configured? */
  4004. if (!env->me_mapsize) {
  4005. env->me_mapsize = meta.mm_mapsize;
  4006. }
  4007. {
  4008. /* Make sure mapsize >= committed data size. Even when using
  4009. * mm_mapsize, which could be broken in old files (ITS#7789).
  4010. */
  4011. size_t minsize = (meta.mm_last_pg + 1) * meta.mm_psize;
  4012. if (env->me_mapsize < minsize)
  4013. env->me_mapsize = minsize;
  4014. }
  4015. meta.mm_mapsize = env->me_mapsize;
  4016. if (newenv && !(flags & MDB_FIXEDMAP)) {
  4017. /* mdb_env_map() may grow the datafile. Write the metapages
  4018. * first, so the file will be valid if initialization fails.
  4019. * Except with FIXEDMAP, since we do not yet know mm_address.
  4020. * We could fill in mm_address later, but then a different
  4021. * program might end up doing that - one with a memory layout
  4022. * and map address which does not suit the main program.
  4023. */
  4024. rc = mdb_env_init_meta(env, &meta);
  4025. if (rc)
  4026. return rc;
  4027. newenv = 0;
  4028. }
  4029. rc = mdb_env_map(env, (flags & MDB_FIXEDMAP) ? meta.mm_address : NULL);
  4030. if (rc)
  4031. return rc;
  4032. if (newenv) {
  4033. if (flags & MDB_FIXEDMAP)
  4034. meta.mm_address = env->me_map;
  4035. i = mdb_env_init_meta(env, &meta);
  4036. if (i != MDB_SUCCESS) {
  4037. return i;
  4038. }
  4039. }
  4040. env->me_maxfree_1pg = (env->me_psize - PAGEHDRSZ) / sizeof(pgno_t) - 1;
  4041. env->me_nodemax = (((env->me_psize - PAGEHDRSZ) / MDB_MINKEYS) & -2)
  4042. - sizeof(indx_t);
  4043. #if !(MDB_MAXKEYSIZE)
  4044. env->me_maxkey = env->me_nodemax - (NODESIZE + sizeof(MDB_db));
  4045. #endif
  4046. env->me_maxpg = env->me_mapsize / env->me_psize;
  4047. #if MDB_DEBUG
  4048. {
  4049. MDB_meta *meta = mdb_env_pick_meta(env);
  4050. MDB_db *db = &meta->mm_dbs[MAIN_DBI];
  4051. DPRINTF(("opened database version %u, pagesize %u",
  4052. meta->mm_version, env->me_psize));
  4053. DPRINTF(("using meta page %d", (int) (meta->mm_txnid & 1)));
  4054. DPRINTF(("depth: %u", db->md_depth));
  4055. DPRINTF(("entries: %"Z"u", db->md_entries));
  4056. DPRINTF(("branch pages: %"Z"u", db->md_branch_pages));
  4057. DPRINTF(("leaf pages: %"Z"u", db->md_leaf_pages));
  4058. DPRINTF(("overflow pages: %"Z"u", db->md_overflow_pages));
  4059. DPRINTF(("root: %"Z"u", db->md_root));
  4060. }
  4061. #endif
  4062. return MDB_SUCCESS;
  4063. }
  4064. /** Release a reader thread's slot in the reader lock table.
  4065. * This function is called automatically when a thread exits.
  4066. * @param[in] ptr This points to the slot in the reader lock table.
  4067. */
  4068. static void
  4069. mdb_env_reader_dest(void *ptr)
  4070. {
  4071. MDB_reader *reader = ptr;
  4072. #ifndef _WIN32
  4073. if (reader->mr_pid == getpid()) /* catch pthread_exit() in child process */
  4074. #endif
  4075. /* We omit the mutex, so do this atomically (i.e. skip mr_txnid) */
  4076. reader->mr_pid = 0;
  4077. }
  4078. #ifdef _WIN32
  4079. /** Junk for arranging thread-specific callbacks on Windows. This is
  4080. * necessarily platform and compiler-specific. Windows supports up
  4081. * to 1088 keys. Let's assume nobody opens more than 64 environments
  4082. * in a single process, for now. They can override this if needed.
  4083. */
  4084. #ifndef MAX_TLS_KEYS
  4085. #define MAX_TLS_KEYS 64
  4086. #endif
  4087. static pthread_key_t mdb_tls_keys[MAX_TLS_KEYS];
  4088. static int mdb_tls_nkeys;
  4089. static void NTAPI mdb_tls_callback(PVOID module, DWORD reason, PVOID ptr)
  4090. {
  4091. int i;
  4092. switch(reason) {
  4093. case DLL_PROCESS_ATTACH: break;
  4094. case DLL_THREAD_ATTACH: break;
  4095. case DLL_THREAD_DETACH:
  4096. for (i=0; i<mdb_tls_nkeys; i++) {
  4097. MDB_reader *r = pthread_getspecific(mdb_tls_keys[i]);
  4098. if (r) {
  4099. mdb_env_reader_dest(r);
  4100. }
  4101. }
  4102. break;
  4103. case DLL_PROCESS_DETACH: break;
  4104. }
  4105. }
  4106. #ifdef __GNUC__
  4107. #ifdef _WIN64
  4108. const PIMAGE_TLS_CALLBACK mdb_tls_cbp __attribute__((section (".CRT$XLB"))) = mdb_tls_callback;
  4109. #else
  4110. PIMAGE_TLS_CALLBACK mdb_tls_cbp __attribute__((section (".CRT$XLB"))) = mdb_tls_callback;
  4111. #endif
  4112. #else
  4113. #ifdef _WIN64
  4114. /* Force some symbol references.
  4115. * _tls_used forces the linker to create the TLS directory if not already done
  4116. * mdb_tls_cbp prevents whole-program-optimizer from dropping the symbol.
  4117. */
  4118. #pragma comment(linker, "/INCLUDE:_tls_used")
  4119. #pragma comment(linker, "/INCLUDE:mdb_tls_cbp")
  4120. #pragma const_seg(".CRT$XLB")
  4121. extern const PIMAGE_TLS_CALLBACK mdb_tls_cbp;
  4122. const PIMAGE_TLS_CALLBACK mdb_tls_cbp = mdb_tls_callback;
  4123. #pragma const_seg()
  4124. #else /* _WIN32 */
  4125. #pragma comment(linker, "/INCLUDE:__tls_used")
  4126. #pragma comment(linker, "/INCLUDE:_mdb_tls_cbp")
  4127. #pragma data_seg(".CRT$XLB")
  4128. PIMAGE_TLS_CALLBACK mdb_tls_cbp = mdb_tls_callback;
  4129. #pragma data_seg()
  4130. #endif /* WIN 32/64 */
  4131. #endif /* !__GNUC__ */
  4132. #endif
  4133. /** Downgrade the exclusive lock on the region back to shared */
  4134. static int ESECT
  4135. mdb_env_share_locks(MDB_env *env, int *excl)
  4136. {
  4137. int rc = 0;
  4138. MDB_meta *meta = mdb_env_pick_meta(env);
  4139. env->me_txns->mti_txnid = meta->mm_txnid;
  4140. #ifdef _WIN32
  4141. {
  4142. OVERLAPPED ov;
  4143. /* First acquire a shared lock. The Unlock will
  4144. * then release the existing exclusive lock.
  4145. */
  4146. memset(&ov, 0, sizeof(ov));
  4147. if (!LockFileEx(env->me_lfd, 0, 0, 1, 0, &ov)) {
  4148. rc = ErrCode();
  4149. } else {
  4150. UnlockFile(env->me_lfd, 0, 0, 1, 0);
  4151. *excl = 0;
  4152. }
  4153. }
  4154. #else
  4155. {
  4156. struct flock lock_info;
  4157. /* The shared lock replaces the existing lock */
  4158. memset((void *)&lock_info, 0, sizeof(lock_info));
  4159. lock_info.l_type = F_RDLCK;
  4160. lock_info.l_whence = SEEK_SET;
  4161. lock_info.l_start = 0;
  4162. lock_info.l_len = 1;
  4163. while ((rc = fcntl(env->me_lfd, F_SETLK, &lock_info)) &&
  4164. (rc = ErrCode()) == EINTR) ;
  4165. *excl = rc ? -1 : 0; /* error may mean we lost the lock */
  4166. }
  4167. #endif
  4168. return rc;
  4169. }
  4170. /** Try to get exclusive lock, otherwise shared.
  4171. * Maintain *excl = -1: no/unknown lock, 0: shared, 1: exclusive.
  4172. */
  4173. static int ESECT
  4174. mdb_env_excl_lock(MDB_env *env, int *excl)
  4175. {
  4176. int rc = 0;
  4177. #ifdef _WIN32
  4178. if (LockFile(env->me_lfd, 0, 0, 1, 0)) {
  4179. *excl = 1;
  4180. } else {
  4181. OVERLAPPED ov;
  4182. memset(&ov, 0, sizeof(ov));
  4183. if (LockFileEx(env->me_lfd, 0, 0, 1, 0, &ov)) {
  4184. *excl = 0;
  4185. } else {
  4186. rc = ErrCode();
  4187. }
  4188. }
  4189. #else
  4190. struct flock lock_info;
  4191. memset((void *)&lock_info, 0, sizeof(lock_info));
  4192. lock_info.l_type = F_WRLCK;
  4193. lock_info.l_whence = SEEK_SET;
  4194. lock_info.l_start = 0;
  4195. lock_info.l_len = 1;
  4196. while ((rc = fcntl(env->me_lfd, F_SETLK, &lock_info)) &&
  4197. (rc = ErrCode()) == EINTR) ;
  4198. if (!rc) {
  4199. *excl = 1;
  4200. } else
  4201. # ifndef MDB_USE_POSIX_MUTEX
  4202. if (*excl < 0) /* always true when MDB_USE_POSIX_MUTEX */
  4203. # endif
  4204. {
  4205. lock_info.l_type = F_RDLCK;
  4206. while ((rc = fcntl(env->me_lfd, F_SETLKW, &lock_info)) &&
  4207. (rc = ErrCode()) == EINTR) ;
  4208. if (rc == 0)
  4209. *excl = 0;
  4210. }
  4211. #endif
  4212. return rc;
  4213. }
  4214. #ifdef MDB_USE_HASH
  4215. /*
  4216. * hash_64 - 64 bit Fowler/Noll/Vo-0 FNV-1a hash code
  4217. *
  4218. * @(#) $Revision: 5.1 $
  4219. * @(#) $Id: hash_64a.c,v 5.1 2009/06/30 09:01:38 chongo Exp $
  4220. * @(#) $Source: /usr/local/src/cmd/fnv/RCS/hash_64a.c,v $
  4221. *
  4222. * http://www.isthe.com/chongo/tech/comp/fnv/index.html
  4223. *
  4224. ***
  4225. *
  4226. * Please do not copyright this code. This code is in the public domain.
  4227. *
  4228. * LANDON CURT NOLL DISCLAIMS ALL WARRANTIES WITH REGARD TO THIS SOFTWARE,
  4229. * INCLUDING ALL IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS. IN NO
  4230. * EVENT SHALL LANDON CURT NOLL BE LIABLE FOR ANY SPECIAL, INDIRECT OR
  4231. * CONSEQUENTIAL DAMAGES OR ANY DAMAGES WHATSOEVER RESULTING FROM LOSS OF
  4232. * USE, DATA OR PROFITS, WHETHER IN AN ACTION OF CONTRACT, NEGLIGENCE OR
  4233. * OTHER TORTIOUS ACTION, ARISING OUT OF OR IN CONNECTION WITH THE USE OR
  4234. * PERFORMANCE OF THIS SOFTWARE.
  4235. *
  4236. * By:
  4237. * chongo <Landon Curt Noll> /\oo/\
  4238. * http://www.isthe.com/chongo/
  4239. *
  4240. * Share and Enjoy! :-)
  4241. */
  4242. typedef unsigned long long mdb_hash_t;
  4243. #define MDB_HASH_INIT ((mdb_hash_t)0xcbf29ce484222325ULL)
  4244. /** perform a 64 bit Fowler/Noll/Vo FNV-1a hash on a buffer
  4245. * @param[in] val value to hash
  4246. * @param[in] hval initial value for hash
  4247. * @return 64 bit hash
  4248. *
  4249. * NOTE: To use the recommended 64 bit FNV-1a hash, use MDB_HASH_INIT as the
  4250. * hval arg on the first call.
  4251. */
  4252. static mdb_hash_t
  4253. mdb_hash_val(MDB_val *val, mdb_hash_t hval)
  4254. {
  4255. unsigned char *s = (unsigned char *)val->mv_data; /* unsigned string */
  4256. unsigned char *end = s + val->mv_size;
  4257. /*
  4258. * FNV-1a hash each octet of the string
  4259. */
  4260. while (s < end) {
  4261. /* xor the bottom with the current octet */
  4262. hval ^= (mdb_hash_t)*s++;
  4263. /* multiply by the 64 bit FNV magic prime mod 2^64 */
  4264. hval += (hval << 1) + (hval << 4) + (hval << 5) +
  4265. (hval << 7) + (hval << 8) + (hval << 40);
  4266. }
  4267. /* return our new hash value */
  4268. return hval;
  4269. }
  4270. /** Hash the string and output the encoded hash.
  4271. * This uses modified RFC1924 Ascii85 encoding to accommodate systems with
  4272. * very short name limits. We don't care about the encoding being reversible,
  4273. * we just want to preserve as many bits of the input as possible in a
  4274. * small printable string.
  4275. * @param[in] str string to hash
  4276. * @param[out] encbuf an array of 11 chars to hold the hash
  4277. */
  4278. static const char mdb_a85[]= "0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz!#$%&()*+-;<=>?@^_`{|}~";
  4279. static void ESECT
  4280. mdb_pack85(unsigned long l, char *out)
  4281. {
  4282. int i;
  4283. for (i=0; i<5; i++) {
  4284. *out++ = mdb_a85[l % 85];
  4285. l /= 85;
  4286. }
  4287. }
  4288. static void ESECT
  4289. mdb_hash_enc(MDB_val *val, char *encbuf)
  4290. {
  4291. mdb_hash_t h = mdb_hash_val(val, MDB_HASH_INIT);
  4292. mdb_pack85(h, encbuf);
  4293. mdb_pack85(h>>32, encbuf+5);
  4294. encbuf[10] = '\0';
  4295. }
  4296. #endif
  4297. /** Open and/or initialize the lock region for the environment.
  4298. * @param[in] env The LMDB environment.
  4299. * @param[in] fname Filename + scratch area, from #mdb_fname_init().
  4300. * @param[in] mode The Unix permissions for the file, if we create it.
  4301. * @param[in,out] excl In -1, out lock type: -1 none, 0 shared, 1 exclusive
  4302. * @return 0 on success, non-zero on failure.
  4303. */
  4304. static int ESECT
  4305. mdb_env_setup_locks(MDB_env *env, MDB_name *fname, int mode, int *excl)
  4306. {
  4307. #ifdef _WIN32
  4308. # define MDB_ERRCODE_ROFS ERROR_WRITE_PROTECT
  4309. #else
  4310. # define MDB_ERRCODE_ROFS EROFS
  4311. #endif
  4312. int rc;
  4313. off_t size, rsize;
  4314. rc = mdb_fopen(env, fname, MDB_O_LOCKS, mode, &env->me_lfd);
  4315. if (rc) {
  4316. /* Omit lockfile if read-only env on read-only filesystem */
  4317. if (rc == MDB_ERRCODE_ROFS && (env->me_flags & MDB_RDONLY)) {
  4318. return MDB_SUCCESS;
  4319. }
  4320. goto fail;
  4321. }
  4322. if (!(env->me_flags & MDB_NOTLS)) {
  4323. rc = pthread_key_create(&env->me_txkey, mdb_env_reader_dest);
  4324. if (rc)
  4325. goto fail;
  4326. env->me_flags |= MDB_ENV_TXKEY;
  4327. #ifdef _WIN32
  4328. /* Windows TLS callbacks need help finding their TLS info. */
  4329. if (mdb_tls_nkeys >= MAX_TLS_KEYS) {
  4330. rc = MDB_TLS_FULL;
  4331. goto fail;
  4332. }
  4333. mdb_tls_keys[mdb_tls_nkeys++] = env->me_txkey;
  4334. #endif
  4335. }
  4336. /* Try to get exclusive lock. If we succeed, then
  4337. * nobody is using the lock region and we should initialize it.
  4338. */
  4339. if ((rc = mdb_env_excl_lock(env, excl))) goto fail;
  4340. #ifdef _WIN32
  4341. size = GetFileSize(env->me_lfd, NULL);
  4342. #else
  4343. size = lseek(env->me_lfd, 0, SEEK_END);
  4344. if (size == -1) goto fail_errno;
  4345. #endif
  4346. rsize = (env->me_maxreaders-1) * sizeof(MDB_reader) + sizeof(MDB_txninfo);
  4347. if (size < rsize && *excl > 0) {
  4348. #ifdef _WIN32
  4349. if (SetFilePointer(env->me_lfd, rsize, NULL, FILE_BEGIN) != (DWORD)rsize
  4350. || !SetEndOfFile(env->me_lfd))
  4351. goto fail_errno;
  4352. #else
  4353. if (ftruncate(env->me_lfd, rsize) != 0) goto fail_errno;
  4354. #endif
  4355. } else {
  4356. rsize = size;
  4357. size = rsize - sizeof(MDB_txninfo);
  4358. env->me_maxreaders = size/sizeof(MDB_reader) + 1;
  4359. }
  4360. {
  4361. #ifdef _WIN32
  4362. HANDLE mh;
  4363. mh = CreateFileMapping(env->me_lfd, NULL, PAGE_READWRITE,
  4364. 0, 0, NULL);
  4365. if (!mh) goto fail_errno;
  4366. env->me_txns = MapViewOfFileEx(mh, FILE_MAP_WRITE, 0, 0, rsize, NULL);
  4367. CloseHandle(mh);
  4368. if (!env->me_txns) goto fail_errno;
  4369. #else
  4370. void *m = mmap(NULL, rsize, PROT_READ|PROT_WRITE, MAP_SHARED,
  4371. env->me_lfd, 0);
  4372. if (m == MAP_FAILED) goto fail_errno;
  4373. env->me_txns = m;
  4374. #endif
  4375. }
  4376. if (*excl > 0) {
  4377. #ifdef _WIN32
  4378. BY_HANDLE_FILE_INFORMATION stbuf;
  4379. struct {
  4380. DWORD volume;
  4381. DWORD nhigh;
  4382. DWORD nlow;
  4383. } idbuf;
  4384. MDB_val val;
  4385. char encbuf[11];
  4386. if (!mdb_sec_inited) {
  4387. InitializeSecurityDescriptor(&mdb_null_sd,
  4388. SECURITY_DESCRIPTOR_REVISION);
  4389. SetSecurityDescriptorDacl(&mdb_null_sd, TRUE, 0, FALSE);
  4390. mdb_all_sa.nLength = sizeof(SECURITY_ATTRIBUTES);
  4391. mdb_all_sa.bInheritHandle = FALSE;
  4392. mdb_all_sa.lpSecurityDescriptor = &mdb_null_sd;
  4393. mdb_sec_inited = 1;
  4394. }
  4395. if (!GetFileInformationByHandle(env->me_lfd, &stbuf)) goto fail_errno;
  4396. idbuf.volume = stbuf.dwVolumeSerialNumber;
  4397. idbuf.nhigh = stbuf.nFileIndexHigh;
  4398. idbuf.nlow = stbuf.nFileIndexLow;
  4399. val.mv_data = &idbuf;
  4400. val.mv_size = sizeof(idbuf);
  4401. mdb_hash_enc(&val, encbuf);
  4402. sprintf(env->me_txns->mti_rmname, "Global\\MDBr%s", encbuf);
  4403. sprintf(env->me_txns->mti_wmname, "Global\\MDBw%s", encbuf);
  4404. env->me_rmutex = CreateMutexA(&mdb_all_sa, FALSE, env->me_txns->mti_rmname);
  4405. if (!env->me_rmutex) goto fail_errno;
  4406. env->me_wmutex = CreateMutexA(&mdb_all_sa, FALSE, env->me_txns->mti_wmname);
  4407. if (!env->me_wmutex) goto fail_errno;
  4408. #elif defined(MDB_USE_POSIX_SEM)
  4409. struct stat stbuf;
  4410. struct {
  4411. dev_t dev;
  4412. ino_t ino;
  4413. } idbuf;
  4414. MDB_val val;
  4415. char encbuf[11];
  4416. #if defined(__NetBSD__)
  4417. #define MDB_SHORT_SEMNAMES 1 /* limited to 14 chars */
  4418. #endif
  4419. if (fstat(env->me_lfd, &stbuf)) goto fail_errno;
  4420. idbuf.dev = stbuf.st_dev;
  4421. idbuf.ino = stbuf.st_ino;
  4422. val.mv_data = &idbuf;
  4423. val.mv_size = sizeof(idbuf);
  4424. mdb_hash_enc(&val, encbuf);
  4425. #ifdef MDB_SHORT_SEMNAMES
  4426. encbuf[9] = '\0'; /* drop name from 15 chars to 14 chars */
  4427. #endif
  4428. sprintf(env->me_txns->mti_rmname, "/MDBr%s", encbuf);
  4429. sprintf(env->me_txns->mti_wmname, "/MDBw%s", encbuf);
  4430. /* Clean up after a previous run, if needed: Try to
  4431. * remove both semaphores before doing anything else.
  4432. */
  4433. sem_unlink(env->me_txns->mti_rmname);
  4434. sem_unlink(env->me_txns->mti_wmname);
  4435. env->me_rmutex = sem_open(env->me_txns->mti_rmname,
  4436. O_CREAT|O_EXCL, mode, 1);
  4437. if (env->me_rmutex == SEM_FAILED) goto fail_errno;
  4438. env->me_wmutex = sem_open(env->me_txns->mti_wmname,
  4439. O_CREAT|O_EXCL, mode, 1);
  4440. if (env->me_wmutex == SEM_FAILED) goto fail_errno;
  4441. #else /* MDB_USE_POSIX_MUTEX: */
  4442. pthread_mutexattr_t mattr;
  4443. /* Solaris needs this before initing a robust mutex. Otherwise
  4444. * it may skip the init and return EBUSY "seems someone already
  4445. * inited" or EINVAL "it was inited differently".
  4446. */
  4447. memset(env->me_txns->mti_rmutex, 0, sizeof(*env->me_txns->mti_rmutex));
  4448. memset(env->me_txns->mti_wmutex, 0, sizeof(*env->me_txns->mti_wmutex));
  4449. if ((rc = pthread_mutexattr_init(&mattr)))
  4450. goto fail;
  4451. rc = pthread_mutexattr_setpshared(&mattr, PTHREAD_PROCESS_SHARED);
  4452. #ifdef MDB_ROBUST_SUPPORTED
  4453. if (!rc) rc = pthread_mutexattr_setrobust(&mattr, PTHREAD_MUTEX_ROBUST);
  4454. #endif
  4455. if (!rc) rc = pthread_mutex_init(env->me_txns->mti_rmutex, &mattr);
  4456. if (!rc) rc = pthread_mutex_init(env->me_txns->mti_wmutex, &mattr);
  4457. pthread_mutexattr_destroy(&mattr);
  4458. if (rc)
  4459. goto fail;
  4460. #endif /* _WIN32 || MDB_USE_POSIX_SEM */
  4461. env->me_txns->mti_magic = MDB_MAGIC;
  4462. env->me_txns->mti_format = MDB_LOCK_FORMAT;
  4463. env->me_txns->mti_txnid = 0;
  4464. env->me_txns->mti_numreaders = 0;
  4465. } else {
  4466. if (env->me_txns->mti_magic != MDB_MAGIC) {
  4467. DPUTS("lock region has invalid magic");
  4468. rc = MDB_INVALID;
  4469. goto fail;
  4470. }
  4471. if (env->me_txns->mti_format != MDB_LOCK_FORMAT) {
  4472. DPRINTF(("lock region has format+version 0x%x, expected 0x%x",
  4473. env->me_txns->mti_format, MDB_LOCK_FORMAT));
  4474. rc = MDB_VERSION_MISMATCH;
  4475. goto fail;
  4476. }
  4477. rc = ErrCode();
  4478. if (rc && rc != EACCES && rc != EAGAIN) {
  4479. goto fail;
  4480. }
  4481. #ifdef _WIN32
  4482. env->me_rmutex = OpenMutexA(SYNCHRONIZE, FALSE, env->me_txns->mti_rmname);
  4483. if (!env->me_rmutex) goto fail_errno;
  4484. env->me_wmutex = OpenMutexA(SYNCHRONIZE, FALSE, env->me_txns->mti_wmname);
  4485. if (!env->me_wmutex) goto fail_errno;
  4486. #elif defined(MDB_USE_POSIX_SEM)
  4487. env->me_rmutex = sem_open(env->me_txns->mti_rmname, 0);
  4488. if (env->me_rmutex == SEM_FAILED) goto fail_errno;
  4489. env->me_wmutex = sem_open(env->me_txns->mti_wmname, 0);
  4490. if (env->me_wmutex == SEM_FAILED) goto fail_errno;
  4491. #endif
  4492. }
  4493. return MDB_SUCCESS;
  4494. fail_errno:
  4495. rc = ErrCode();
  4496. fail:
  4497. return rc;
  4498. }
  4499. /** Only a subset of the @ref mdb_env flags can be changed
  4500. * at runtime. Changing other flags requires closing the
  4501. * environment and re-opening it with the new flags.
  4502. */
  4503. #define CHANGEABLE (MDB_NOSYNC|MDB_NOMETASYNC|MDB_MAPASYNC|MDB_NOMEMINIT)
  4504. #define CHANGELESS (MDB_FIXEDMAP|MDB_NOSUBDIR|MDB_RDONLY| \
  4505. MDB_WRITEMAP|MDB_NOTLS|MDB_NOLOCK|MDB_NORDAHEAD)
  4506. #if VALID_FLAGS & PERSISTENT_FLAGS & (CHANGEABLE|CHANGELESS)
  4507. # error "Persistent DB flags & env flags overlap, but both go in mm_flags"
  4508. #endif
  4509. int ESECT
  4510. mdb_env_open(MDB_env *env, const char *path, unsigned int flags, mdb_mode_t mode)
  4511. {
  4512. int rc, excl = -1;
  4513. MDB_name fname;
  4514. if (env->me_fd!=INVALID_HANDLE_VALUE || (flags & ~(CHANGEABLE|CHANGELESS)))
  4515. return EINVAL;
  4516. flags |= env->me_flags;
  4517. rc = mdb_fname_init(path, flags, &fname);
  4518. if (rc)
  4519. return rc;
  4520. if (flags & MDB_RDONLY) {
  4521. /* silently ignore WRITEMAP when we're only getting read access */
  4522. flags &= ~MDB_WRITEMAP;
  4523. } else {
  4524. if (!((env->me_free_pgs = mdb_midl_alloc(MDB_IDL_UM_MAX)) &&
  4525. (env->me_dirty_list = calloc(MDB_IDL_UM_SIZE, sizeof(MDB_ID2)))))
  4526. rc = ENOMEM;
  4527. }
  4528. env->me_flags = flags |= MDB_ENV_ACTIVE;
  4529. if (rc)
  4530. goto leave;
  4531. env->me_path = strdup(path);
  4532. env->me_dbxs = calloc(env->me_maxdbs, sizeof(MDB_dbx));
  4533. env->me_dbflags = calloc(env->me_maxdbs, sizeof(uint16_t));
  4534. env->me_dbiseqs = calloc(env->me_maxdbs, sizeof(unsigned int));
  4535. if (!(env->me_dbxs && env->me_path && env->me_dbflags && env->me_dbiseqs)) {
  4536. rc = ENOMEM;
  4537. goto leave;
  4538. }
  4539. env->me_dbxs[FREE_DBI].md_cmp = mdb_cmp_long; /* aligned MDB_INTEGERKEY */
  4540. /* For RDONLY, get lockfile after we know datafile exists */
  4541. if (!(flags & (MDB_RDONLY|MDB_NOLOCK))) {
  4542. rc = mdb_env_setup_locks(env, &fname, mode, &excl);
  4543. if (rc)
  4544. goto leave;
  4545. }
  4546. rc = mdb_fopen(env, &fname,
  4547. (flags & MDB_RDONLY) ? MDB_O_RDONLY : MDB_O_RDWR,
  4548. mode, &env->me_fd);
  4549. if (rc)
  4550. goto leave;
  4551. if ((flags & (MDB_RDONLY|MDB_NOLOCK)) == MDB_RDONLY) {
  4552. rc = mdb_env_setup_locks(env, &fname, mode, &excl);
  4553. if (rc)
  4554. goto leave;
  4555. }
  4556. if ((rc = mdb_env_open2(env)) == MDB_SUCCESS) {
  4557. if (!(flags & (MDB_RDONLY|MDB_WRITEMAP))) {
  4558. /* Synchronous fd for meta writes. Needed even with
  4559. * MDB_NOSYNC/MDB_NOMETASYNC, in case these get reset.
  4560. */
  4561. rc = mdb_fopen(env, &fname, MDB_O_META, mode, &env->me_mfd);
  4562. if (rc)
  4563. goto leave;
  4564. }
  4565. DPRINTF(("opened dbenv %p", (void *) env));
  4566. if (excl > 0) {
  4567. rc = mdb_env_share_locks(env, &excl);
  4568. if (rc)
  4569. goto leave;
  4570. }
  4571. if (!(flags & MDB_RDONLY)) {
  4572. MDB_txn *txn;
  4573. int tsize = sizeof(MDB_txn), size = tsize + env->me_maxdbs *
  4574. (sizeof(MDB_db)+sizeof(MDB_cursor *)+sizeof(unsigned int)+1);
  4575. if ((env->me_pbuf = calloc(1, env->me_psize)) &&
  4576. (txn = calloc(1, size)))
  4577. {
  4578. txn->mt_dbs = (MDB_db *)((char *)txn + tsize);
  4579. txn->mt_cursors = (MDB_cursor **)(txn->mt_dbs + env->me_maxdbs);
  4580. txn->mt_dbiseqs = (unsigned int *)(txn->mt_cursors + env->me_maxdbs);
  4581. txn->mt_dbflags = (unsigned char *)(txn->mt_dbiseqs + env->me_maxdbs);
  4582. txn->mt_env = env;
  4583. txn->mt_dbxs = env->me_dbxs;
  4584. txn->mt_flags = MDB_TXN_FINISHED;
  4585. env->me_txn0 = txn;
  4586. } else {
  4587. rc = ENOMEM;
  4588. }
  4589. }
  4590. }
  4591. leave:
  4592. if (rc) {
  4593. mdb_env_close0(env, excl);
  4594. }
  4595. mdb_fname_destroy(fname);
  4596. return rc;
  4597. }
  4598. /** Destroy resources from mdb_env_open(), clear our readers & DBIs */
  4599. static void ESECT
  4600. mdb_env_close0(MDB_env *env, int excl)
  4601. {
  4602. int i;
  4603. if (!(env->me_flags & MDB_ENV_ACTIVE))
  4604. return;
  4605. /* Doing this here since me_dbxs may not exist during mdb_env_close */
  4606. if (env->me_dbxs) {
  4607. for (i = env->me_maxdbs; --i >= CORE_DBS; )
  4608. free(env->me_dbxs[i].md_name.mv_data);
  4609. free(env->me_dbxs);
  4610. }
  4611. free(env->me_pbuf);
  4612. free(env->me_dbiseqs);
  4613. free(env->me_dbflags);
  4614. free(env->me_path);
  4615. free(env->me_dirty_list);
  4616. free(env->me_txn0);
  4617. mdb_midl_free(env->me_free_pgs);
  4618. if (env->me_flags & MDB_ENV_TXKEY) {
  4619. pthread_key_delete(env->me_txkey);
  4620. #ifdef _WIN32
  4621. /* Delete our key from the global list */
  4622. for (i=0; i<mdb_tls_nkeys; i++)
  4623. if (mdb_tls_keys[i] == env->me_txkey) {
  4624. mdb_tls_keys[i] = mdb_tls_keys[mdb_tls_nkeys-1];
  4625. mdb_tls_nkeys--;
  4626. break;
  4627. }
  4628. #endif
  4629. }
  4630. if (env->me_map) {
  4631. munmap(env->me_map, env->me_mapsize);
  4632. }
  4633. if (env->me_mfd != INVALID_HANDLE_VALUE)
  4634. (void) close(env->me_mfd);
  4635. if (env->me_fd != INVALID_HANDLE_VALUE)
  4636. (void) close(env->me_fd);
  4637. if (env->me_txns) {
  4638. MDB_PID_T pid = env->me_pid;
  4639. /* Clearing readers is done in this function because
  4640. * me_txkey with its destructor must be disabled first.
  4641. *
  4642. * We skip the the reader mutex, so we touch only
  4643. * data owned by this process (me_close_readers and
  4644. * our readers), and clear each reader atomically.
  4645. */
  4646. for (i = env->me_close_readers; --i >= 0; )
  4647. if (env->me_txns->mti_readers[i].mr_pid == pid)
  4648. env->me_txns->mti_readers[i].mr_pid = 0;
  4649. #ifdef _WIN32
  4650. if (env->me_rmutex) {
  4651. CloseHandle(env->me_rmutex);
  4652. if (env->me_wmutex) CloseHandle(env->me_wmutex);
  4653. }
  4654. /* Windows automatically destroys the mutexes when
  4655. * the last handle closes.
  4656. */
  4657. #elif defined(MDB_USE_POSIX_SEM)
  4658. if (env->me_rmutex != SEM_FAILED) {
  4659. sem_close(env->me_rmutex);
  4660. if (env->me_wmutex != SEM_FAILED)
  4661. sem_close(env->me_wmutex);
  4662. /* If we have the filelock: If we are the
  4663. * only remaining user, clean up semaphores.
  4664. */
  4665. if (excl == 0)
  4666. mdb_env_excl_lock(env, &excl);
  4667. if (excl > 0) {
  4668. sem_unlink(env->me_txns->mti_rmname);
  4669. sem_unlink(env->me_txns->mti_wmname);
  4670. }
  4671. }
  4672. #endif
  4673. munmap((void *)env->me_txns, (env->me_maxreaders-1)*sizeof(MDB_reader)+sizeof(MDB_txninfo));
  4674. }
  4675. if (env->me_lfd != INVALID_HANDLE_VALUE) {
  4676. #ifdef _WIN32
  4677. if (excl >= 0) {
  4678. /* Unlock the lockfile. Windows would have unlocked it
  4679. * after closing anyway, but not necessarily at once.
  4680. */
  4681. UnlockFile(env->me_lfd, 0, 0, 1, 0);
  4682. }
  4683. #endif
  4684. (void) close(env->me_lfd);
  4685. }
  4686. env->me_flags &= ~(MDB_ENV_ACTIVE|MDB_ENV_TXKEY);
  4687. }
  4688. void ESECT
  4689. mdb_env_close(MDB_env *env)
  4690. {
  4691. MDB_page *dp;
  4692. if (env == NULL)
  4693. return;
  4694. VGMEMP_DESTROY(env);
  4695. while ((dp = env->me_dpages) != NULL) {
  4696. VGMEMP_DEFINED(&dp->mp_next, sizeof(dp->mp_next));
  4697. env->me_dpages = dp->mp_next;
  4698. free(dp);
  4699. }
  4700. mdb_env_close0(env, 0);
  4701. free(env);
  4702. }
  4703. /** Compare two items pointing at aligned size_t's */
  4704. static int
  4705. mdb_cmp_long(const MDB_val *a, const MDB_val *b)
  4706. {
  4707. return (*(size_t *)a->mv_data < *(size_t *)b->mv_data) ? -1 :
  4708. *(size_t *)a->mv_data > *(size_t *)b->mv_data;
  4709. }
  4710. /** Compare two items pointing at aligned unsigned int's.
  4711. *
  4712. * This is also set as #MDB_INTEGERDUP|#MDB_DUPFIXED's #MDB_dbx.%md_dcmp,
  4713. * but #mdb_cmp_clong() is called instead if the data type is size_t.
  4714. */
  4715. static int
  4716. mdb_cmp_int(const MDB_val *a, const MDB_val *b)
  4717. {
  4718. return (*(unsigned int *)a->mv_data < *(unsigned int *)b->mv_data) ? -1 :
  4719. *(unsigned int *)a->mv_data > *(unsigned int *)b->mv_data;
  4720. }
  4721. /** Compare two items pointing at unsigned ints of unknown alignment.
  4722. * Nodes and keys are guaranteed to be 2-byte aligned.
  4723. */
  4724. static int
  4725. mdb_cmp_cint(const MDB_val *a, const MDB_val *b)
  4726. {
  4727. #if BYTE_ORDER == LITTLE_ENDIAN
  4728. unsigned short *u, *c;
  4729. int x;
  4730. u = (unsigned short *) ((char *) a->mv_data + a->mv_size);
  4731. c = (unsigned short *) ((char *) b->mv_data + a->mv_size);
  4732. do {
  4733. x = *--u - *--c;
  4734. } while(!x && u > (unsigned short *)a->mv_data);
  4735. return x;
  4736. #else
  4737. unsigned short *u, *c, *end;
  4738. int x;
  4739. end = (unsigned short *) ((char *) a->mv_data + a->mv_size);
  4740. u = (unsigned short *)a->mv_data;
  4741. c = (unsigned short *)b->mv_data;
  4742. do {
  4743. x = *u++ - *c++;
  4744. } while(!x && u < end);
  4745. return x;
  4746. #endif
  4747. }
  4748. /** Compare two items lexically */
  4749. static int
  4750. mdb_cmp_memn(const MDB_val *a, const MDB_val *b)
  4751. {
  4752. int diff;
  4753. ssize_t len_diff;
  4754. unsigned int len;
  4755. len = a->mv_size;
  4756. len_diff = (ssize_t) a->mv_size - (ssize_t) b->mv_size;
  4757. if (len_diff > 0) {
  4758. len = b->mv_size;
  4759. len_diff = 1;
  4760. }
  4761. diff = memcmp(a->mv_data, b->mv_data, len);
  4762. return diff ? diff : len_diff<0 ? -1 : len_diff;
  4763. }
  4764. /** Compare two items in reverse byte order */
  4765. static int
  4766. mdb_cmp_memnr(const MDB_val *a, const MDB_val *b)
  4767. {
  4768. const unsigned char *p1, *p2, *p1_lim;
  4769. ssize_t len_diff;
  4770. int diff;
  4771. p1_lim = (const unsigned char *)a->mv_data;
  4772. p1 = (const unsigned char *)a->mv_data + a->mv_size;
  4773. p2 = (const unsigned char *)b->mv_data + b->mv_size;
  4774. len_diff = (ssize_t) a->mv_size - (ssize_t) b->mv_size;
  4775. if (len_diff > 0) {
  4776. p1_lim += len_diff;
  4777. len_diff = 1;
  4778. }
  4779. while (p1 > p1_lim) {
  4780. diff = *--p1 - *--p2;
  4781. if (diff)
  4782. return diff;
  4783. }
  4784. return len_diff<0 ? -1 : len_diff;
  4785. }
  4786. /** Search for key within a page, using binary search.
  4787. * Returns the smallest entry larger or equal to the key.
  4788. * If exactp is non-null, stores whether the found entry was an exact match
  4789. * in *exactp (1 or 0).
  4790. * Updates the cursor index with the index of the found entry.
  4791. * If no entry larger or equal to the key is found, returns NULL.
  4792. */
  4793. static MDB_node *
  4794. mdb_node_search(MDB_cursor *mc, MDB_val *key, int *exactp)
  4795. {
  4796. unsigned int i = 0, nkeys;
  4797. int low, high;
  4798. int rc = 0;
  4799. MDB_page *mp = mc->mc_pg[mc->mc_top];
  4800. MDB_node *node = NULL;
  4801. MDB_val nodekey;
  4802. MDB_cmp_func *cmp;
  4803. DKBUF;
  4804. nkeys = NUMKEYS(mp);
  4805. DPRINTF(("searching %u keys in %s %spage %"Z"u",
  4806. nkeys, IS_LEAF(mp) ? "leaf" : "branch", IS_SUBP(mp) ? "sub-" : "",
  4807. mdb_dbg_pgno(mp)));
  4808. low = IS_LEAF(mp) ? 0 : 1;
  4809. high = nkeys - 1;
  4810. cmp = mc->mc_dbx->md_cmp;
  4811. /* Branch pages have no data, so if using integer keys,
  4812. * alignment is guaranteed. Use faster mdb_cmp_int.
  4813. */
  4814. if (cmp == mdb_cmp_cint && IS_BRANCH(mp)) {
  4815. if (NODEPTR(mp, 1)->mn_ksize == sizeof(size_t))
  4816. cmp = mdb_cmp_long;
  4817. else
  4818. cmp = mdb_cmp_int;
  4819. }
  4820. if (IS_LEAF2(mp)) {
  4821. nodekey.mv_size = mc->mc_db->md_pad;
  4822. node = NODEPTR(mp, 0); /* fake */
  4823. while (low <= high) {
  4824. i = (low + high) >> 1;
  4825. nodekey.mv_data = LEAF2KEY(mp, i, nodekey.mv_size);
  4826. rc = cmp(key, &nodekey);
  4827. DPRINTF(("found leaf index %u [%s], rc = %i",
  4828. i, DKEY(&nodekey), rc));
  4829. if (rc == 0)
  4830. break;
  4831. if (rc > 0)
  4832. low = i + 1;
  4833. else
  4834. high = i - 1;
  4835. }
  4836. } else {
  4837. while (low <= high) {
  4838. i = (low + high) >> 1;
  4839. node = NODEPTR(mp, i);
  4840. nodekey.mv_size = NODEKSZ(node);
  4841. nodekey.mv_data = NODEKEY(node);
  4842. rc = cmp(key, &nodekey);
  4843. #if MDB_DEBUG
  4844. if (IS_LEAF(mp))
  4845. DPRINTF(("found leaf index %u [%s], rc = %i",
  4846. i, DKEY(&nodekey), rc));
  4847. else
  4848. DPRINTF(("found branch index %u [%s -> %"Z"u], rc = %i",
  4849. i, DKEY(&nodekey), NODEPGNO(node), rc));
  4850. #endif
  4851. if (rc == 0)
  4852. break;
  4853. if (rc > 0)
  4854. low = i + 1;
  4855. else
  4856. high = i - 1;
  4857. }
  4858. }
  4859. if (rc > 0) { /* Found entry is less than the key. */
  4860. i++; /* Skip to get the smallest entry larger than key. */
  4861. if (!IS_LEAF2(mp))
  4862. node = NODEPTR(mp, i);
  4863. }
  4864. if (exactp)
  4865. *exactp = (rc == 0 && nkeys > 0);
  4866. /* store the key index */
  4867. mc->mc_ki[mc->mc_top] = i;
  4868. if (i >= nkeys)
  4869. /* There is no entry larger or equal to the key. */
  4870. return NULL;
  4871. /* nodeptr is fake for LEAF2 */
  4872. return node;
  4873. }
  4874. #if 0
  4875. static void
  4876. mdb_cursor_adjust(MDB_cursor *mc, func)
  4877. {
  4878. MDB_cursor *m2;
  4879. for (m2 = mc->mc_txn->mt_cursors[mc->mc_dbi]; m2; m2=m2->mc_next) {
  4880. if (m2->mc_pg[m2->mc_top] == mc->mc_pg[mc->mc_top]) {
  4881. func(mc, m2);
  4882. }
  4883. }
  4884. }
  4885. #endif
  4886. /** Pop a page off the top of the cursor's stack. */
  4887. static void
  4888. mdb_cursor_pop(MDB_cursor *mc)
  4889. {
  4890. if (mc->mc_snum) {
  4891. DPRINTF(("popping page %"Z"u off db %d cursor %p",
  4892. mc->mc_pg[mc->mc_top]->mp_pgno, DDBI(mc), (void *) mc));
  4893. mc->mc_snum--;
  4894. if (mc->mc_snum) {
  4895. mc->mc_top--;
  4896. } else {
  4897. mc->mc_flags &= ~C_INITIALIZED;
  4898. }
  4899. }
  4900. }
  4901. /** Push a page onto the top of the cursor's stack.
  4902. * Set #MDB_TXN_ERROR on failure.
  4903. */
  4904. static int
  4905. mdb_cursor_push(MDB_cursor *mc, MDB_page *mp)
  4906. {
  4907. DPRINTF(("pushing page %"Z"u on db %d cursor %p", mp->mp_pgno,
  4908. DDBI(mc), (void *) mc));
  4909. if (mc->mc_snum >= CURSOR_STACK) {
  4910. mc->mc_txn->mt_flags |= MDB_TXN_ERROR;
  4911. return MDB_CURSOR_FULL;
  4912. }
  4913. mc->mc_top = mc->mc_snum++;
  4914. mc->mc_pg[mc->mc_top] = mp;
  4915. mc->mc_ki[mc->mc_top] = 0;
  4916. return MDB_SUCCESS;
  4917. }
  4918. /** Find the address of the page corresponding to a given page number.
  4919. * Set #MDB_TXN_ERROR on failure.
  4920. * @param[in] mc the cursor accessing the page.
  4921. * @param[in] pgno the page number for the page to retrieve.
  4922. * @param[out] ret address of a pointer where the page's address will be stored.
  4923. * @param[out] lvl dirty_list inheritance level of found page. 1=current txn, 0=mapped page.
  4924. * @return 0 on success, non-zero on failure.
  4925. */
  4926. static int
  4927. mdb_page_get(MDB_cursor *mc, pgno_t pgno, MDB_page **ret, int *lvl)
  4928. {
  4929. MDB_txn *txn = mc->mc_txn;
  4930. MDB_env *env = txn->mt_env;
  4931. MDB_page *p = NULL;
  4932. int level;
  4933. if (! (txn->mt_flags & (MDB_TXN_RDONLY|MDB_TXN_WRITEMAP))) {
  4934. MDB_txn *tx2 = txn;
  4935. level = 1;
  4936. do {
  4937. MDB_ID2L dl = tx2->mt_u.dirty_list;
  4938. unsigned x;
  4939. /* Spilled pages were dirtied in this txn and flushed
  4940. * because the dirty list got full. Bring this page
  4941. * back in from the map (but don't unspill it here,
  4942. * leave that unless page_touch happens again).
  4943. */
  4944. if (tx2->mt_spill_pgs) {
  4945. MDB_ID pn = pgno << 1;
  4946. x = mdb_midl_search(tx2->mt_spill_pgs, pn);
  4947. if (x <= tx2->mt_spill_pgs[0] && tx2->mt_spill_pgs[x] == pn) {
  4948. p = (MDB_page *)(env->me_map + env->me_psize * pgno);
  4949. goto done;
  4950. }
  4951. }
  4952. if (dl[0].mid) {
  4953. unsigned x = mdb_mid2l_search(dl, pgno);
  4954. if (x <= dl[0].mid && dl[x].mid == pgno) {
  4955. p = dl[x].mptr;
  4956. goto done;
  4957. }
  4958. }
  4959. level++;
  4960. } while ((tx2 = tx2->mt_parent) != NULL);
  4961. }
  4962. if (pgno < txn->mt_next_pgno) {
  4963. level = 0;
  4964. p = (MDB_page *)(env->me_map + env->me_psize * pgno);
  4965. } else {
  4966. DPRINTF(("page %"Z"u not found", pgno));
  4967. txn->mt_flags |= MDB_TXN_ERROR;
  4968. return MDB_PAGE_NOTFOUND;
  4969. }
  4970. done:
  4971. *ret = p;
  4972. if (lvl)
  4973. *lvl = level;
  4974. return MDB_SUCCESS;
  4975. }
  4976. /** Finish #mdb_page_search() / #mdb_page_search_lowest().
  4977. * The cursor is at the root page, set up the rest of it.
  4978. */
  4979. static int
  4980. mdb_page_search_root(MDB_cursor *mc, MDB_val *key, int flags)
  4981. {
  4982. MDB_page *mp = mc->mc_pg[mc->mc_top];
  4983. int rc;
  4984. DKBUF;
  4985. while (IS_BRANCH(mp)) {
  4986. MDB_node *node;
  4987. indx_t i;
  4988. DPRINTF(("branch page %"Z"u has %u keys", mp->mp_pgno, NUMKEYS(mp)));
  4989. /* Don't assert on branch pages in the FreeDB. We can get here
  4990. * while in the process of rebalancing a FreeDB branch page; we must
  4991. * let that proceed. ITS#8336
  4992. */
  4993. mdb_cassert(mc, !mc->mc_dbi || NUMKEYS(mp) > 1);
  4994. DPRINTF(("found index 0 to page %"Z"u", NODEPGNO(NODEPTR(mp, 0))));
  4995. if (flags & (MDB_PS_FIRST|MDB_PS_LAST)) {
  4996. i = 0;
  4997. if (flags & MDB_PS_LAST) {
  4998. i = NUMKEYS(mp) - 1;
  4999. /* if already init'd, see if we're already in right place */
  5000. if (mc->mc_flags & C_INITIALIZED) {
  5001. if (mc->mc_ki[mc->mc_top] == i) {
  5002. mc->mc_top = mc->mc_snum++;
  5003. mp = mc->mc_pg[mc->mc_top];
  5004. goto ready;
  5005. }
  5006. }
  5007. }
  5008. } else {
  5009. int exact;
  5010. node = mdb_node_search(mc, key, &exact);
  5011. if (node == NULL)
  5012. i = NUMKEYS(mp) - 1;
  5013. else {
  5014. i = mc->mc_ki[mc->mc_top];
  5015. if (!exact) {
  5016. mdb_cassert(mc, i > 0);
  5017. i--;
  5018. }
  5019. }
  5020. DPRINTF(("following index %u for key [%s]", i, DKEY(key)));
  5021. }
  5022. mdb_cassert(mc, i < NUMKEYS(mp));
  5023. node = NODEPTR(mp, i);
  5024. if ((rc = mdb_page_get(mc, NODEPGNO(node), &mp, NULL)) != 0)
  5025. return rc;
  5026. mc->mc_ki[mc->mc_top] = i;
  5027. if ((rc = mdb_cursor_push(mc, mp)))
  5028. return rc;
  5029. ready:
  5030. if (flags & MDB_PS_MODIFY) {
  5031. if ((rc = mdb_page_touch(mc)) != 0)
  5032. return rc;
  5033. mp = mc->mc_pg[mc->mc_top];
  5034. }
  5035. }
  5036. if (!IS_LEAF(mp)) {
  5037. DPRINTF(("internal error, index points to a %02X page!?",
  5038. mp->mp_flags));
  5039. mc->mc_txn->mt_flags |= MDB_TXN_ERROR;
  5040. return MDB_CORRUPTED;
  5041. }
  5042. DPRINTF(("found leaf page %"Z"u for key [%s]", mp->mp_pgno,
  5043. key ? DKEY(key) : "null"));
  5044. mc->mc_flags |= C_INITIALIZED;
  5045. mc->mc_flags &= ~C_EOF;
  5046. return MDB_SUCCESS;
  5047. }
  5048. /** Search for the lowest key under the current branch page.
  5049. * This just bypasses a NUMKEYS check in the current page
  5050. * before calling mdb_page_search_root(), because the callers
  5051. * are all in situations where the current page is known to
  5052. * be underfilled.
  5053. */
  5054. static int
  5055. mdb_page_search_lowest(MDB_cursor *mc)
  5056. {
  5057. MDB_page *mp = mc->mc_pg[mc->mc_top];
  5058. MDB_node *node = NODEPTR(mp, 0);
  5059. int rc;
  5060. if ((rc = mdb_page_get(mc, NODEPGNO(node), &mp, NULL)) != 0)
  5061. return rc;
  5062. mc->mc_ki[mc->mc_top] = 0;
  5063. if ((rc = mdb_cursor_push(mc, mp)))
  5064. return rc;
  5065. return mdb_page_search_root(mc, NULL, MDB_PS_FIRST);
  5066. }
  5067. /** Search for the page a given key should be in.
  5068. * Push it and its parent pages on the cursor stack.
  5069. * @param[in,out] mc the cursor for this operation.
  5070. * @param[in] key the key to search for, or NULL for first/last page.
  5071. * @param[in] flags If MDB_PS_MODIFY is set, visited pages in the DB
  5072. * are touched (updated with new page numbers).
  5073. * If MDB_PS_FIRST or MDB_PS_LAST is set, find first or last leaf.
  5074. * This is used by #mdb_cursor_first() and #mdb_cursor_last().
  5075. * If MDB_PS_ROOTONLY set, just fetch root node, no further lookups.
  5076. * @return 0 on success, non-zero on failure.
  5077. */
  5078. static int
  5079. mdb_page_search(MDB_cursor *mc, MDB_val *key, int flags)
  5080. {
  5081. int rc;
  5082. pgno_t root;
  5083. /* Make sure the txn is still viable, then find the root from
  5084. * the txn's db table and set it as the root of the cursor's stack.
  5085. */
  5086. if (mc->mc_txn->mt_flags & MDB_TXN_BLOCKED) {
  5087. DPUTS("transaction may not be used now");
  5088. return MDB_BAD_TXN;
  5089. } else {
  5090. /* Make sure we're using an up-to-date root */
  5091. if (*mc->mc_dbflag & DB_STALE) {
  5092. MDB_cursor mc2;
  5093. if (TXN_DBI_CHANGED(mc->mc_txn, mc->mc_dbi))
  5094. return MDB_BAD_DBI;
  5095. mdb_cursor_init(&mc2, mc->mc_txn, MAIN_DBI, NULL);
  5096. rc = mdb_page_search(&mc2, &mc->mc_dbx->md_name, 0);
  5097. if (rc)
  5098. return rc;
  5099. {
  5100. MDB_val data;
  5101. int exact = 0;
  5102. uint16_t flags;
  5103. MDB_node *leaf = mdb_node_search(&mc2,
  5104. &mc->mc_dbx->md_name, &exact);
  5105. if (!exact)
  5106. return MDB_NOTFOUND;
  5107. if ((leaf->mn_flags & (F_DUPDATA|F_SUBDATA)) != F_SUBDATA)
  5108. return MDB_INCOMPATIBLE; /* not a named DB */
  5109. rc = mdb_node_read(&mc2, leaf, &data);
  5110. if (rc)
  5111. return rc;
  5112. memcpy(&flags, ((char *) data.mv_data + offsetof(MDB_db, md_flags)),
  5113. sizeof(uint16_t));
  5114. /* The txn may not know this DBI, or another process may
  5115. * have dropped and recreated the DB with other flags.
  5116. */
  5117. if ((mc->mc_db->md_flags & PERSISTENT_FLAGS) != flags)
  5118. return MDB_INCOMPATIBLE;
  5119. memcpy(mc->mc_db, data.mv_data, sizeof(MDB_db));
  5120. }
  5121. *mc->mc_dbflag &= ~DB_STALE;
  5122. }
  5123. root = mc->mc_db->md_root;
  5124. if (root == P_INVALID) { /* Tree is empty. */
  5125. DPUTS("tree is empty");
  5126. return MDB_NOTFOUND;
  5127. }
  5128. }
  5129. mdb_cassert(mc, root > 1);
  5130. if (!mc->mc_pg[0] || mc->mc_pg[0]->mp_pgno != root)
  5131. if ((rc = mdb_page_get(mc, root, &mc->mc_pg[0], NULL)) != 0)
  5132. return rc;
  5133. mc->mc_snum = 1;
  5134. mc->mc_top = 0;
  5135. DPRINTF(("db %d root page %"Z"u has flags 0x%X",
  5136. DDBI(mc), root, mc->mc_pg[0]->mp_flags));
  5137. if (flags & MDB_PS_MODIFY) {
  5138. if ((rc = mdb_page_touch(mc)))
  5139. return rc;
  5140. }
  5141. if (flags & MDB_PS_ROOTONLY)
  5142. return MDB_SUCCESS;
  5143. return mdb_page_search_root(mc, key, flags);
  5144. }
  5145. static int
  5146. mdb_ovpage_free(MDB_cursor *mc, MDB_page *mp)
  5147. {
  5148. MDB_txn *txn = mc->mc_txn;
  5149. pgno_t pg = mp->mp_pgno;
  5150. unsigned x = 0, ovpages = mp->mp_pages;
  5151. MDB_env *env = txn->mt_env;
  5152. MDB_IDL sl = txn->mt_spill_pgs;
  5153. MDB_ID pn = pg << 1;
  5154. int rc;
  5155. DPRINTF(("free ov page %"Z"u (%d)", pg, ovpages));
  5156. /* If the page is dirty or on the spill list we just acquired it,
  5157. * so we should give it back to our current free list, if any.
  5158. * Otherwise put it onto the list of pages we freed in this txn.
  5159. *
  5160. * Won't create me_pghead: me_pglast must be inited along with it.
  5161. * Unsupported in nested txns: They would need to hide the page
  5162. * range in ancestor txns' dirty and spilled lists.
  5163. */
  5164. if (env->me_pghead &&
  5165. !txn->mt_parent &&
  5166. ((mp->mp_flags & P_DIRTY) ||
  5167. (sl && (x = mdb_midl_search(sl, pn)) <= sl[0] && sl[x] == pn)))
  5168. {
  5169. unsigned i, j;
  5170. pgno_t *mop;
  5171. MDB_ID2 *dl, ix, iy;
  5172. rc = mdb_midl_need(&env->me_pghead, ovpages);
  5173. if (rc)
  5174. return rc;
  5175. if (!(mp->mp_flags & P_DIRTY)) {
  5176. /* This page is no longer spilled */
  5177. if (x == sl[0])
  5178. sl[0]--;
  5179. else
  5180. sl[x] |= 1;
  5181. goto release;
  5182. }
  5183. /* Remove from dirty list */
  5184. dl = txn->mt_u.dirty_list;
  5185. x = dl[0].mid--;
  5186. for (ix = dl[x]; ix.mptr != mp; ix = iy) {
  5187. if (x > 1) {
  5188. x--;
  5189. iy = dl[x];
  5190. dl[x] = ix;
  5191. } else {
  5192. mdb_cassert(mc, x > 1);
  5193. j = ++(dl[0].mid);
  5194. dl[j] = ix; /* Unsorted. OK when MDB_TXN_ERROR. */
  5195. txn->mt_flags |= MDB_TXN_ERROR;
  5196. return MDB_CORRUPTED;
  5197. }
  5198. }
  5199. txn->mt_dirty_room++;
  5200. if (!(env->me_flags & MDB_WRITEMAP))
  5201. mdb_dpage_free(env, mp);
  5202. release:
  5203. /* Insert in me_pghead */
  5204. mop = env->me_pghead;
  5205. j = mop[0] + ovpages;
  5206. for (i = mop[0]; i && mop[i] < pg; i--)
  5207. mop[j--] = mop[i];
  5208. while (j>i)
  5209. mop[j--] = pg++;
  5210. mop[0] += ovpages;
  5211. } else {
  5212. rc = mdb_midl_append_range(&txn->mt_free_pgs, pg, ovpages);
  5213. if (rc)
  5214. return rc;
  5215. }
  5216. mc->mc_db->md_overflow_pages -= ovpages;
  5217. return 0;
  5218. }
  5219. /** Return the data associated with a given node.
  5220. * @param[in] mc The cursor for this operation.
  5221. * @param[in] leaf The node being read.
  5222. * @param[out] data Updated to point to the node's data.
  5223. * @return 0 on success, non-zero on failure.
  5224. */
  5225. static int
  5226. mdb_node_read(MDB_cursor *mc, MDB_node *leaf, MDB_val *data)
  5227. {
  5228. MDB_page *omp; /* overflow page */
  5229. pgno_t pgno;
  5230. int rc;
  5231. if (!F_ISSET(leaf->mn_flags, F_BIGDATA)) {
  5232. data->mv_size = NODEDSZ(leaf);
  5233. data->mv_data = NODEDATA(leaf);
  5234. return MDB_SUCCESS;
  5235. }
  5236. /* Read overflow data.
  5237. */
  5238. data->mv_size = NODEDSZ(leaf);
  5239. memcpy(&pgno, NODEDATA(leaf), sizeof(pgno));
  5240. if ((rc = mdb_page_get(mc, pgno, &omp, NULL)) != 0) {
  5241. DPRINTF(("read overflow page %"Z"u failed", pgno));
  5242. return rc;
  5243. }
  5244. data->mv_data = METADATA(omp);
  5245. return MDB_SUCCESS;
  5246. }
  5247. int
  5248. mdb_get(MDB_txn *txn, MDB_dbi dbi,
  5249. MDB_val *key, MDB_val *data)
  5250. {
  5251. MDB_cursor mc;
  5252. MDB_xcursor mx;
  5253. int exact = 0;
  5254. DKBUF;
  5255. DPRINTF(("===> get db %u key [%s]", dbi, DKEY(key)));
  5256. if (!key || !data || !TXN_DBI_EXIST(txn, dbi, DB_USRVALID))
  5257. return EINVAL;
  5258. if (txn->mt_flags & MDB_TXN_BLOCKED)
  5259. return MDB_BAD_TXN;
  5260. mdb_cursor_init(&mc, txn, dbi, &mx);
  5261. return mdb_cursor_set(&mc, key, data, MDB_SET, &exact);
  5262. }
  5263. /** Find a sibling for a page.
  5264. * Replaces the page at the top of the cursor's stack with the
  5265. * specified sibling, if one exists.
  5266. * @param[in] mc The cursor for this operation.
  5267. * @param[in] move_right Non-zero if the right sibling is requested,
  5268. * otherwise the left sibling.
  5269. * @return 0 on success, non-zero on failure.
  5270. */
  5271. static int
  5272. mdb_cursor_sibling(MDB_cursor *mc, int move_right)
  5273. {
  5274. int rc;
  5275. MDB_node *indx;
  5276. MDB_page *mp;
  5277. if (mc->mc_snum < 2) {
  5278. return MDB_NOTFOUND; /* root has no siblings */
  5279. }
  5280. mdb_cursor_pop(mc);
  5281. DPRINTF(("parent page is page %"Z"u, index %u",
  5282. mc->mc_pg[mc->mc_top]->mp_pgno, mc->mc_ki[mc->mc_top]));
  5283. if (move_right ? (mc->mc_ki[mc->mc_top] + 1u >= NUMKEYS(mc->mc_pg[mc->mc_top]))
  5284. : (mc->mc_ki[mc->mc_top] == 0)) {
  5285. DPRINTF(("no more keys left, moving to %s sibling",
  5286. move_right ? "right" : "left"));
  5287. if ((rc = mdb_cursor_sibling(mc, move_right)) != MDB_SUCCESS) {
  5288. /* undo cursor_pop before returning */
  5289. mc->mc_top++;
  5290. mc->mc_snum++;
  5291. return rc;
  5292. }
  5293. } else {
  5294. if (move_right)
  5295. mc->mc_ki[mc->mc_top]++;
  5296. else
  5297. mc->mc_ki[mc->mc_top]--;
  5298. DPRINTF(("just moving to %s index key %u",
  5299. move_right ? "right" : "left", mc->mc_ki[mc->mc_top]));
  5300. }
  5301. mdb_cassert(mc, IS_BRANCH(mc->mc_pg[mc->mc_top]));
  5302. indx = NODEPTR(mc->mc_pg[mc->mc_top], mc->mc_ki[mc->mc_top]);
  5303. if ((rc = mdb_page_get(mc, NODEPGNO(indx), &mp, NULL)) != 0) {
  5304. /* mc will be inconsistent if caller does mc_snum++ as above */
  5305. mc->mc_flags &= ~(C_INITIALIZED|C_EOF);
  5306. return rc;
  5307. }
  5308. mdb_cursor_push(mc, mp);
  5309. if (!move_right)
  5310. mc->mc_ki[mc->mc_top] = NUMKEYS(mp)-1;
  5311. return MDB_SUCCESS;
  5312. }
  5313. /** Move the cursor to the next data item. */
  5314. static int
  5315. mdb_cursor_next(MDB_cursor *mc, MDB_val *key, MDB_val *data, MDB_cursor_op op)
  5316. {
  5317. MDB_page *mp;
  5318. MDB_node *leaf;
  5319. int rc;
  5320. if ((mc->mc_flags & C_DEL && op == MDB_NEXT_DUP))
  5321. return MDB_NOTFOUND;
  5322. if (!(mc->mc_flags & C_INITIALIZED))
  5323. return mdb_cursor_first(mc, key, data);
  5324. mp = mc->mc_pg[mc->mc_top];
  5325. if (mc->mc_flags & C_EOF) {
  5326. if (mc->mc_ki[mc->mc_top] >= NUMKEYS(mp)-1)
  5327. return MDB_NOTFOUND;
  5328. mc->mc_flags ^= C_EOF;
  5329. }
  5330. if (mc->mc_db->md_flags & MDB_DUPSORT) {
  5331. leaf = NODEPTR(mp, mc->mc_ki[mc->mc_top]);
  5332. if (F_ISSET(leaf->mn_flags, F_DUPDATA)) {
  5333. if (op == MDB_NEXT || op == MDB_NEXT_DUP) {
  5334. rc = mdb_cursor_next(&mc->mc_xcursor->mx_cursor, data, NULL, MDB_NEXT);
  5335. if (op != MDB_NEXT || rc != MDB_NOTFOUND) {
  5336. if (rc == MDB_SUCCESS)
  5337. MDB_GET_KEY(leaf, key);
  5338. return rc;
  5339. }
  5340. }
  5341. } else {
  5342. mc->mc_xcursor->mx_cursor.mc_flags &= ~(C_INITIALIZED|C_EOF);
  5343. if (op == MDB_NEXT_DUP)
  5344. return MDB_NOTFOUND;
  5345. }
  5346. }
  5347. DPRINTF(("cursor_next: top page is %"Z"u in cursor %p",
  5348. mdb_dbg_pgno(mp), (void *) mc));
  5349. if (mc->mc_flags & C_DEL) {
  5350. mc->mc_flags ^= C_DEL;
  5351. goto skip;
  5352. }
  5353. if (mc->mc_ki[mc->mc_top] + 1u >= NUMKEYS(mp)) {
  5354. DPUTS("=====> move to next sibling page");
  5355. if ((rc = mdb_cursor_sibling(mc, 1)) != MDB_SUCCESS) {
  5356. mc->mc_flags |= C_EOF;
  5357. return rc;
  5358. }
  5359. mp = mc->mc_pg[mc->mc_top];
  5360. DPRINTF(("next page is %"Z"u, key index %u", mp->mp_pgno, mc->mc_ki[mc->mc_top]));
  5361. } else
  5362. mc->mc_ki[mc->mc_top]++;
  5363. skip:
  5364. DPRINTF(("==> cursor points to page %"Z"u with %u keys, key index %u",
  5365. mdb_dbg_pgno(mp), NUMKEYS(mp), mc->mc_ki[mc->mc_top]));
  5366. if (IS_LEAF2(mp)) {
  5367. key->mv_size = mc->mc_db->md_pad;
  5368. key->mv_data = LEAF2KEY(mp, mc->mc_ki[mc->mc_top], key->mv_size);
  5369. return MDB_SUCCESS;
  5370. }
  5371. mdb_cassert(mc, IS_LEAF(mp));
  5372. leaf = NODEPTR(mp, mc->mc_ki[mc->mc_top]);
  5373. if (F_ISSET(leaf->mn_flags, F_DUPDATA)) {
  5374. mdb_xcursor_init1(mc, leaf);
  5375. }
  5376. if (data) {
  5377. if ((rc = mdb_node_read(mc, leaf, data)) != MDB_SUCCESS)
  5378. return rc;
  5379. if (F_ISSET(leaf->mn_flags, F_DUPDATA)) {
  5380. rc = mdb_cursor_first(&mc->mc_xcursor->mx_cursor, data, NULL);
  5381. if (rc != MDB_SUCCESS)
  5382. return rc;
  5383. }
  5384. }
  5385. MDB_GET_KEY(leaf, key);
  5386. return MDB_SUCCESS;
  5387. }
  5388. /** Move the cursor to the previous data item. */
  5389. static int
  5390. mdb_cursor_prev(MDB_cursor *mc, MDB_val *key, MDB_val *data, MDB_cursor_op op)
  5391. {
  5392. MDB_page *mp;
  5393. MDB_node *leaf;
  5394. int rc;
  5395. if (!(mc->mc_flags & C_INITIALIZED)) {
  5396. rc = mdb_cursor_last(mc, key, data);
  5397. if (rc)
  5398. return rc;
  5399. mc->mc_ki[mc->mc_top]++;
  5400. }
  5401. mp = mc->mc_pg[mc->mc_top];
  5402. if (mc->mc_db->md_flags & MDB_DUPSORT) {
  5403. leaf = NODEPTR(mp, mc->mc_ki[mc->mc_top]);
  5404. if (F_ISSET(leaf->mn_flags, F_DUPDATA)) {
  5405. if (op == MDB_PREV || op == MDB_PREV_DUP) {
  5406. rc = mdb_cursor_prev(&mc->mc_xcursor->mx_cursor, data, NULL, MDB_PREV);
  5407. if (op != MDB_PREV || rc != MDB_NOTFOUND) {
  5408. if (rc == MDB_SUCCESS) {
  5409. MDB_GET_KEY(leaf, key);
  5410. mc->mc_flags &= ~C_EOF;
  5411. }
  5412. return rc;
  5413. }
  5414. }
  5415. } else {
  5416. mc->mc_xcursor->mx_cursor.mc_flags &= ~(C_INITIALIZED|C_EOF);
  5417. if (op == MDB_PREV_DUP)
  5418. return MDB_NOTFOUND;
  5419. }
  5420. }
  5421. DPRINTF(("cursor_prev: top page is %"Z"u in cursor %p",
  5422. mdb_dbg_pgno(mp), (void *) mc));
  5423. mc->mc_flags &= ~(C_EOF|C_DEL);
  5424. if (mc->mc_ki[mc->mc_top] == 0) {
  5425. DPUTS("=====> move to prev sibling page");
  5426. if ((rc = mdb_cursor_sibling(mc, 0)) != MDB_SUCCESS) {
  5427. return rc;
  5428. }
  5429. mp = mc->mc_pg[mc->mc_top];
  5430. mc->mc_ki[mc->mc_top] = NUMKEYS(mp) - 1;
  5431. DPRINTF(("prev page is %"Z"u, key index %u", mp->mp_pgno, mc->mc_ki[mc->mc_top]));
  5432. } else
  5433. mc->mc_ki[mc->mc_top]--;
  5434. DPRINTF(("==> cursor points to page %"Z"u with %u keys, key index %u",
  5435. mdb_dbg_pgno(mp), NUMKEYS(mp), mc->mc_ki[mc->mc_top]));
  5436. if (IS_LEAF2(mp)) {
  5437. key->mv_size = mc->mc_db->md_pad;
  5438. key->mv_data = LEAF2KEY(mp, mc->mc_ki[mc->mc_top], key->mv_size);
  5439. return MDB_SUCCESS;
  5440. }
  5441. mdb_cassert(mc, IS_LEAF(mp));
  5442. leaf = NODEPTR(mp, mc->mc_ki[mc->mc_top]);
  5443. if (F_ISSET(leaf->mn_flags, F_DUPDATA)) {
  5444. mdb_xcursor_init1(mc, leaf);
  5445. }
  5446. if (data) {
  5447. if ((rc = mdb_node_read(mc, leaf, data)) != MDB_SUCCESS)
  5448. return rc;
  5449. if (F_ISSET(leaf->mn_flags, F_DUPDATA)) {
  5450. rc = mdb_cursor_last(&mc->mc_xcursor->mx_cursor, data, NULL);
  5451. if (rc != MDB_SUCCESS)
  5452. return rc;
  5453. }
  5454. }
  5455. MDB_GET_KEY(leaf, key);
  5456. return MDB_SUCCESS;
  5457. }
  5458. /** Set the cursor on a specific data item. */
  5459. static int
  5460. mdb_cursor_set(MDB_cursor *mc, MDB_val *key, MDB_val *data,
  5461. MDB_cursor_op op, int *exactp)
  5462. {
  5463. int rc;
  5464. MDB_page *mp;
  5465. MDB_node *leaf = NULL;
  5466. DKBUF;
  5467. if (key->mv_size == 0)
  5468. return MDB_BAD_VALSIZE;
  5469. if (mc->mc_xcursor)
  5470. mc->mc_xcursor->mx_cursor.mc_flags &= ~(C_INITIALIZED|C_EOF);
  5471. /* See if we're already on the right page */
  5472. if (mc->mc_flags & C_INITIALIZED) {
  5473. MDB_val nodekey;
  5474. mp = mc->mc_pg[mc->mc_top];
  5475. if (!NUMKEYS(mp)) {
  5476. mc->mc_ki[mc->mc_top] = 0;
  5477. return MDB_NOTFOUND;
  5478. }
  5479. if (mp->mp_flags & P_LEAF2) {
  5480. nodekey.mv_size = mc->mc_db->md_pad;
  5481. nodekey.mv_data = LEAF2KEY(mp, 0, nodekey.mv_size);
  5482. } else {
  5483. leaf = NODEPTR(mp, 0);
  5484. MDB_GET_KEY2(leaf, nodekey);
  5485. }
  5486. rc = mc->mc_dbx->md_cmp(key, &nodekey);
  5487. if (rc == 0) {
  5488. /* Probably happens rarely, but first node on the page
  5489. * was the one we wanted.
  5490. */
  5491. mc->mc_ki[mc->mc_top] = 0;
  5492. if (exactp)
  5493. *exactp = 1;
  5494. goto set1;
  5495. }
  5496. if (rc > 0) {
  5497. unsigned int i;
  5498. unsigned int nkeys = NUMKEYS(mp);
  5499. if (nkeys > 1) {
  5500. if (mp->mp_flags & P_LEAF2) {
  5501. nodekey.mv_data = LEAF2KEY(mp,
  5502. nkeys-1, nodekey.mv_size);
  5503. } else {
  5504. leaf = NODEPTR(mp, nkeys-1);
  5505. MDB_GET_KEY2(leaf, nodekey);
  5506. }
  5507. rc = mc->mc_dbx->md_cmp(key, &nodekey);
  5508. if (rc == 0) {
  5509. /* last node was the one we wanted */
  5510. mc->mc_ki[mc->mc_top] = nkeys-1;
  5511. if (exactp)
  5512. *exactp = 1;
  5513. goto set1;
  5514. }
  5515. if (rc < 0) {
  5516. if (mc->mc_ki[mc->mc_top] < NUMKEYS(mp)) {
  5517. /* This is definitely the right page, skip search_page */
  5518. if (mp->mp_flags & P_LEAF2) {
  5519. nodekey.mv_data = LEAF2KEY(mp,
  5520. mc->mc_ki[mc->mc_top], nodekey.mv_size);
  5521. } else {
  5522. leaf = NODEPTR(mp, mc->mc_ki[mc->mc_top]);
  5523. MDB_GET_KEY2(leaf, nodekey);
  5524. }
  5525. rc = mc->mc_dbx->md_cmp(key, &nodekey);
  5526. if (rc == 0) {
  5527. /* current node was the one we wanted */
  5528. if (exactp)
  5529. *exactp = 1;
  5530. goto set1;
  5531. }
  5532. }
  5533. rc = 0;
  5534. mc->mc_flags &= ~C_EOF;
  5535. goto set2;
  5536. }
  5537. }
  5538. /* If any parents have right-sibs, search.
  5539. * Otherwise, there's nothing further.
  5540. */
  5541. for (i=0; i<mc->mc_top; i++)
  5542. if (mc->mc_ki[i] <
  5543. NUMKEYS(mc->mc_pg[i])-1)
  5544. break;
  5545. if (i == mc->mc_top) {
  5546. /* There are no other pages */
  5547. mc->mc_ki[mc->mc_top] = nkeys;
  5548. return MDB_NOTFOUND;
  5549. }
  5550. }
  5551. if (!mc->mc_top) {
  5552. /* There are no other pages */
  5553. mc->mc_ki[mc->mc_top] = 0;
  5554. if (op == MDB_SET_RANGE && !exactp) {
  5555. rc = 0;
  5556. goto set1;
  5557. } else
  5558. return MDB_NOTFOUND;
  5559. }
  5560. } else {
  5561. mc->mc_pg[0] = 0;
  5562. }
  5563. rc = mdb_page_search(mc, key, 0);
  5564. if (rc != MDB_SUCCESS)
  5565. return rc;
  5566. mp = mc->mc_pg[mc->mc_top];
  5567. mdb_cassert(mc, IS_LEAF(mp));
  5568. set2:
  5569. leaf = mdb_node_search(mc, key, exactp);
  5570. if (exactp != NULL && !*exactp) {
  5571. /* MDB_SET specified and not an exact match. */
  5572. return MDB_NOTFOUND;
  5573. }
  5574. if (leaf == NULL) {
  5575. DPUTS("===> inexact leaf not found, goto sibling");
  5576. if ((rc = mdb_cursor_sibling(mc, 1)) != MDB_SUCCESS) {
  5577. mc->mc_flags |= C_EOF;
  5578. return rc; /* no entries matched */
  5579. }
  5580. mp = mc->mc_pg[mc->mc_top];
  5581. mdb_cassert(mc, IS_LEAF(mp));
  5582. leaf = NODEPTR(mp, 0);
  5583. }
  5584. set1:
  5585. mc->mc_flags |= C_INITIALIZED;
  5586. mc->mc_flags &= ~C_EOF;
  5587. if (IS_LEAF2(mp)) {
  5588. if (op == MDB_SET_RANGE || op == MDB_SET_KEY) {
  5589. key->mv_size = mc->mc_db->md_pad;
  5590. key->mv_data = LEAF2KEY(mp, mc->mc_ki[mc->mc_top], key->mv_size);
  5591. }
  5592. return MDB_SUCCESS;
  5593. }
  5594. if (F_ISSET(leaf->mn_flags, F_DUPDATA)) {
  5595. mdb_xcursor_init1(mc, leaf);
  5596. }
  5597. if (data) {
  5598. if (F_ISSET(leaf->mn_flags, F_DUPDATA)) {
  5599. if (op == MDB_SET || op == MDB_SET_KEY || op == MDB_SET_RANGE) {
  5600. rc = mdb_cursor_first(&mc->mc_xcursor->mx_cursor, data, NULL);
  5601. } else {
  5602. int ex2, *ex2p;
  5603. if (op == MDB_GET_BOTH) {
  5604. ex2p = &ex2;
  5605. ex2 = 0;
  5606. } else {
  5607. ex2p = NULL;
  5608. }
  5609. rc = mdb_cursor_set(&mc->mc_xcursor->mx_cursor, data, NULL, MDB_SET_RANGE, ex2p);
  5610. if (rc != MDB_SUCCESS)
  5611. return rc;
  5612. }
  5613. } else if (op == MDB_GET_BOTH || op == MDB_GET_BOTH_RANGE) {
  5614. MDB_val olddata;
  5615. MDB_cmp_func *dcmp;
  5616. if ((rc = mdb_node_read(mc, leaf, &olddata)) != MDB_SUCCESS)
  5617. return rc;
  5618. dcmp = mc->mc_dbx->md_dcmp;
  5619. #if UINT_MAX < SIZE_MAX
  5620. if (dcmp == mdb_cmp_int && olddata.mv_size == sizeof(size_t))
  5621. dcmp = mdb_cmp_clong;
  5622. #endif
  5623. rc = dcmp(data, &olddata);
  5624. if (rc) {
  5625. if (op == MDB_GET_BOTH || rc > 0)
  5626. return MDB_NOTFOUND;
  5627. rc = 0;
  5628. }
  5629. *data = olddata;
  5630. } else {
  5631. if (mc->mc_xcursor)
  5632. mc->mc_xcursor->mx_cursor.mc_flags &= ~(C_INITIALIZED|C_EOF);
  5633. if ((rc = mdb_node_read(mc, leaf, data)) != MDB_SUCCESS)
  5634. return rc;
  5635. }
  5636. }
  5637. /* The key already matches in all other cases */
  5638. if (op == MDB_SET_RANGE || op == MDB_SET_KEY)
  5639. MDB_GET_KEY(leaf, key);
  5640. DPRINTF(("==> cursor placed on key [%s]", DKEY(key)));
  5641. return rc;
  5642. }
  5643. /** Move the cursor to the first item in the database. */
  5644. static int
  5645. mdb_cursor_first(MDB_cursor *mc, MDB_val *key, MDB_val *data)
  5646. {
  5647. int rc;
  5648. MDB_node *leaf;
  5649. if (mc->mc_xcursor)
  5650. mc->mc_xcursor->mx_cursor.mc_flags &= ~(C_INITIALIZED|C_EOF);
  5651. if (!(mc->mc_flags & C_INITIALIZED) || mc->mc_top) {
  5652. rc = mdb_page_search(mc, NULL, MDB_PS_FIRST);
  5653. if (rc != MDB_SUCCESS)
  5654. return rc;
  5655. }
  5656. mdb_cassert(mc, IS_LEAF(mc->mc_pg[mc->mc_top]));
  5657. leaf = NODEPTR(mc->mc_pg[mc->mc_top], 0);
  5658. mc->mc_flags |= C_INITIALIZED;
  5659. mc->mc_flags &= ~C_EOF;
  5660. mc->mc_ki[mc->mc_top] = 0;
  5661. if (IS_LEAF2(mc->mc_pg[mc->mc_top])) {
  5662. key->mv_size = mc->mc_db->md_pad;
  5663. key->mv_data = LEAF2KEY(mc->mc_pg[mc->mc_top], 0, key->mv_size);
  5664. return MDB_SUCCESS;
  5665. }
  5666. if (data) {
  5667. if (F_ISSET(leaf->mn_flags, F_DUPDATA)) {
  5668. mdb_xcursor_init1(mc, leaf);
  5669. rc = mdb_cursor_first(&mc->mc_xcursor->mx_cursor, data, NULL);
  5670. if (rc)
  5671. return rc;
  5672. } else {
  5673. if ((rc = mdb_node_read(mc, leaf, data)) != MDB_SUCCESS)
  5674. return rc;
  5675. }
  5676. }
  5677. MDB_GET_KEY(leaf, key);
  5678. return MDB_SUCCESS;
  5679. }
  5680. /** Move the cursor to the last item in the database. */
  5681. static int
  5682. mdb_cursor_last(MDB_cursor *mc, MDB_val *key, MDB_val *data)
  5683. {
  5684. int rc;
  5685. MDB_node *leaf;
  5686. if (mc->mc_xcursor)
  5687. mc->mc_xcursor->mx_cursor.mc_flags &= ~(C_INITIALIZED|C_EOF);
  5688. if (!(mc->mc_flags & C_INITIALIZED) || mc->mc_top) {
  5689. rc = mdb_page_search(mc, NULL, MDB_PS_LAST);
  5690. if (rc != MDB_SUCCESS)
  5691. return rc;
  5692. }
  5693. mdb_cassert(mc, IS_LEAF(mc->mc_pg[mc->mc_top]));
  5694. mc->mc_ki[mc->mc_top] = NUMKEYS(mc->mc_pg[mc->mc_top]) - 1;
  5695. mc->mc_flags |= C_INITIALIZED|C_EOF;
  5696. leaf = NODEPTR(mc->mc_pg[mc->mc_top], mc->mc_ki[mc->mc_top]);
  5697. if (IS_LEAF2(mc->mc_pg[mc->mc_top])) {
  5698. key->mv_size = mc->mc_db->md_pad;
  5699. key->mv_data = LEAF2KEY(mc->mc_pg[mc->mc_top], mc->mc_ki[mc->mc_top], key->mv_size);
  5700. return MDB_SUCCESS;
  5701. }
  5702. if (data) {
  5703. if (F_ISSET(leaf->mn_flags, F_DUPDATA)) {
  5704. mdb_xcursor_init1(mc, leaf);
  5705. rc = mdb_cursor_last(&mc->mc_xcursor->mx_cursor, data, NULL);
  5706. if (rc)
  5707. return rc;
  5708. } else {
  5709. if ((rc = mdb_node_read(mc, leaf, data)) != MDB_SUCCESS)
  5710. return rc;
  5711. }
  5712. }
  5713. MDB_GET_KEY(leaf, key);
  5714. return MDB_SUCCESS;
  5715. }
  5716. int
  5717. mdb_cursor_get(MDB_cursor *mc, MDB_val *key, MDB_val *data,
  5718. MDB_cursor_op op)
  5719. {
  5720. int rc;
  5721. int exact = 0;
  5722. int (*mfunc)(MDB_cursor *mc, MDB_val *key, MDB_val *data);
  5723. if (mc == NULL)
  5724. return EINVAL;
  5725. if (mc->mc_txn->mt_flags & MDB_TXN_BLOCKED)
  5726. return MDB_BAD_TXN;
  5727. switch (op) {
  5728. case MDB_GET_CURRENT:
  5729. if (!(mc->mc_flags & C_INITIALIZED)) {
  5730. rc = EINVAL;
  5731. } else {
  5732. MDB_page *mp = mc->mc_pg[mc->mc_top];
  5733. int nkeys = NUMKEYS(mp);
  5734. if (!nkeys || mc->mc_ki[mc->mc_top] >= nkeys) {
  5735. mc->mc_ki[mc->mc_top] = nkeys;
  5736. rc = MDB_NOTFOUND;
  5737. break;
  5738. }
  5739. rc = MDB_SUCCESS;
  5740. if (IS_LEAF2(mp)) {
  5741. key->mv_size = mc->mc_db->md_pad;
  5742. key->mv_data = LEAF2KEY(mp, mc->mc_ki[mc->mc_top], key->mv_size);
  5743. } else {
  5744. MDB_node *leaf = NODEPTR(mp, mc->mc_ki[mc->mc_top]);
  5745. MDB_GET_KEY(leaf, key);
  5746. if (data) {
  5747. if (F_ISSET(leaf->mn_flags, F_DUPDATA)) {
  5748. rc = mdb_cursor_get(&mc->mc_xcursor->mx_cursor, data, NULL, MDB_GET_CURRENT);
  5749. } else {
  5750. rc = mdb_node_read(mc, leaf, data);
  5751. }
  5752. }
  5753. }
  5754. }
  5755. break;
  5756. case MDB_GET_BOTH:
  5757. case MDB_GET_BOTH_RANGE:
  5758. if (data == NULL) {
  5759. rc = EINVAL;
  5760. break;
  5761. }
  5762. if (mc->mc_xcursor == NULL) {
  5763. rc = MDB_INCOMPATIBLE;
  5764. break;
  5765. }
  5766. /* FALLTHRU */
  5767. case MDB_SET:
  5768. case MDB_SET_KEY:
  5769. case MDB_SET_RANGE:
  5770. if (key == NULL) {
  5771. rc = EINVAL;
  5772. } else {
  5773. rc = mdb_cursor_set(mc, key, data, op,
  5774. op == MDB_SET_RANGE ? NULL : &exact);
  5775. }
  5776. break;
  5777. case MDB_GET_MULTIPLE:
  5778. if (data == NULL || !(mc->mc_flags & C_INITIALIZED)) {
  5779. rc = EINVAL;
  5780. break;
  5781. }
  5782. if (!(mc->mc_db->md_flags & MDB_DUPFIXED)) {
  5783. rc = MDB_INCOMPATIBLE;
  5784. break;
  5785. }
  5786. rc = MDB_SUCCESS;
  5787. if (!(mc->mc_xcursor->mx_cursor.mc_flags & C_INITIALIZED) ||
  5788. (mc->mc_xcursor->mx_cursor.mc_flags & C_EOF))
  5789. break;
  5790. goto fetchm;
  5791. case MDB_NEXT_MULTIPLE:
  5792. if (data == NULL) {
  5793. rc = EINVAL;
  5794. break;
  5795. }
  5796. if (!(mc->mc_db->md_flags & MDB_DUPFIXED)) {
  5797. rc = MDB_INCOMPATIBLE;
  5798. break;
  5799. }
  5800. rc = mdb_cursor_next(mc, key, data, MDB_NEXT_DUP);
  5801. if (rc == MDB_SUCCESS) {
  5802. if (mc->mc_xcursor->mx_cursor.mc_flags & C_INITIALIZED) {
  5803. MDB_cursor *mx;
  5804. fetchm:
  5805. mx = &mc->mc_xcursor->mx_cursor;
  5806. data->mv_size = NUMKEYS(mx->mc_pg[mx->mc_top]) *
  5807. mx->mc_db->md_pad;
  5808. data->mv_data = METADATA(mx->mc_pg[mx->mc_top]);
  5809. mx->mc_ki[mx->mc_top] = NUMKEYS(mx->mc_pg[mx->mc_top])-1;
  5810. } else {
  5811. rc = MDB_NOTFOUND;
  5812. }
  5813. }
  5814. break;
  5815. case MDB_PREV_MULTIPLE:
  5816. if (data == NULL) {
  5817. rc = EINVAL;
  5818. break;
  5819. }
  5820. if (!(mc->mc_db->md_flags & MDB_DUPFIXED)) {
  5821. rc = MDB_INCOMPATIBLE;
  5822. break;
  5823. }
  5824. if (!(mc->mc_flags & C_INITIALIZED))
  5825. rc = mdb_cursor_last(mc, key, data);
  5826. else
  5827. rc = MDB_SUCCESS;
  5828. if (rc == MDB_SUCCESS) {
  5829. MDB_cursor *mx = &mc->mc_xcursor->mx_cursor;
  5830. if (mx->mc_flags & C_INITIALIZED) {
  5831. rc = mdb_cursor_sibling(mx, 0);
  5832. if (rc == MDB_SUCCESS)
  5833. goto fetchm;
  5834. } else {
  5835. rc = MDB_NOTFOUND;
  5836. }
  5837. }
  5838. break;
  5839. case MDB_NEXT:
  5840. case MDB_NEXT_DUP:
  5841. case MDB_NEXT_NODUP:
  5842. rc = mdb_cursor_next(mc, key, data, op);
  5843. break;
  5844. case MDB_PREV:
  5845. case MDB_PREV_DUP:
  5846. case MDB_PREV_NODUP:
  5847. rc = mdb_cursor_prev(mc, key, data, op);
  5848. break;
  5849. case MDB_FIRST:
  5850. rc = mdb_cursor_first(mc, key, data);
  5851. break;
  5852. case MDB_FIRST_DUP:
  5853. mfunc = mdb_cursor_first;
  5854. mmove:
  5855. if (data == NULL || !(mc->mc_flags & C_INITIALIZED)) {
  5856. rc = EINVAL;
  5857. break;
  5858. }
  5859. if (mc->mc_xcursor == NULL) {
  5860. rc = MDB_INCOMPATIBLE;
  5861. break;
  5862. }
  5863. if (mc->mc_ki[mc->mc_top] >= NUMKEYS(mc->mc_pg[mc->mc_top])) {
  5864. mc->mc_ki[mc->mc_top] = NUMKEYS(mc->mc_pg[mc->mc_top]);
  5865. rc = MDB_NOTFOUND;
  5866. break;
  5867. }
  5868. {
  5869. MDB_node *leaf = NODEPTR(mc->mc_pg[mc->mc_top], mc->mc_ki[mc->mc_top]);
  5870. if (!F_ISSET(leaf->mn_flags, F_DUPDATA)) {
  5871. MDB_GET_KEY(leaf, key);
  5872. rc = mdb_node_read(mc, leaf, data);
  5873. break;
  5874. }
  5875. }
  5876. if (!(mc->mc_xcursor->mx_cursor.mc_flags & C_INITIALIZED)) {
  5877. rc = EINVAL;
  5878. break;
  5879. }
  5880. rc = mfunc(&mc->mc_xcursor->mx_cursor, data, NULL);
  5881. break;
  5882. case MDB_LAST:
  5883. rc = mdb_cursor_last(mc, key, data);
  5884. break;
  5885. case MDB_LAST_DUP:
  5886. mfunc = mdb_cursor_last;
  5887. goto mmove;
  5888. default:
  5889. DPRINTF(("unhandled/unimplemented cursor operation %u", op));
  5890. rc = EINVAL;
  5891. break;
  5892. }
  5893. if (mc->mc_flags & C_DEL)
  5894. mc->mc_flags ^= C_DEL;
  5895. return rc;
  5896. }
  5897. /** Touch all the pages in the cursor stack. Set mc_top.
  5898. * Makes sure all the pages are writable, before attempting a write operation.
  5899. * @param[in] mc The cursor to operate on.
  5900. */
  5901. static int
  5902. mdb_cursor_touch(MDB_cursor *mc)
  5903. {
  5904. int rc = MDB_SUCCESS;
  5905. if (mc->mc_dbi >= CORE_DBS && !(*mc->mc_dbflag & (DB_DIRTY|DB_DUPDATA))) {
  5906. /* Touch DB record of named DB */
  5907. MDB_cursor mc2;
  5908. MDB_xcursor mcx;
  5909. if (TXN_DBI_CHANGED(mc->mc_txn, mc->mc_dbi))
  5910. return MDB_BAD_DBI;
  5911. mdb_cursor_init(&mc2, mc->mc_txn, MAIN_DBI, &mcx);
  5912. rc = mdb_page_search(&mc2, &mc->mc_dbx->md_name, MDB_PS_MODIFY);
  5913. if (rc)
  5914. return rc;
  5915. *mc->mc_dbflag |= DB_DIRTY;
  5916. }
  5917. mc->mc_top = 0;
  5918. if (mc->mc_snum) {
  5919. do {
  5920. rc = mdb_page_touch(mc);
  5921. } while (!rc && ++(mc->mc_top) < mc->mc_snum);
  5922. mc->mc_top = mc->mc_snum-1;
  5923. }
  5924. return rc;
  5925. }
  5926. /** Do not spill pages to disk if txn is getting full, may fail instead */
  5927. #define MDB_NOSPILL 0x8000
  5928. int
  5929. mdb_cursor_put(MDB_cursor *mc, MDB_val *key, MDB_val *data,
  5930. unsigned int flags)
  5931. {
  5932. MDB_env *env;
  5933. MDB_node *leaf = NULL;
  5934. MDB_page *fp, *mp, *sub_root = NULL;
  5935. uint16_t fp_flags;
  5936. MDB_val xdata, *rdata, dkey, olddata;
  5937. MDB_db dummy;
  5938. int do_sub = 0, insert_key, insert_data;
  5939. unsigned int mcount = 0, dcount = 0, nospill;
  5940. size_t nsize;
  5941. int rc, rc2;
  5942. unsigned int nflags;
  5943. DKBUF;
  5944. if (mc == NULL || key == NULL)
  5945. return EINVAL;
  5946. env = mc->mc_txn->mt_env;
  5947. /* Check this first so counter will always be zero on any
  5948. * early failures.
  5949. */
  5950. if (flags & MDB_MULTIPLE) {
  5951. dcount = data[1].mv_size;
  5952. data[1].mv_size = 0;
  5953. if (!F_ISSET(mc->mc_db->md_flags, MDB_DUPFIXED))
  5954. return MDB_INCOMPATIBLE;
  5955. }
  5956. nospill = flags & MDB_NOSPILL;
  5957. flags &= ~MDB_NOSPILL;
  5958. if (mc->mc_txn->mt_flags & (MDB_TXN_RDONLY|MDB_TXN_BLOCKED))
  5959. return (mc->mc_txn->mt_flags & MDB_TXN_RDONLY) ? EACCES : MDB_BAD_TXN;
  5960. if (key->mv_size-1 >= ENV_MAXKEY(env))
  5961. return MDB_BAD_VALSIZE;
  5962. #if SIZE_MAX > MAXDATASIZE
  5963. if (data->mv_size > ((mc->mc_db->md_flags & MDB_DUPSORT) ? ENV_MAXKEY(env) : MAXDATASIZE))
  5964. return MDB_BAD_VALSIZE;
  5965. #else
  5966. if ((mc->mc_db->md_flags & MDB_DUPSORT) && data->mv_size > ENV_MAXKEY(env))
  5967. return MDB_BAD_VALSIZE;
  5968. #endif
  5969. DPRINTF(("==> put db %d key [%s], size %"Z"u, data size %"Z"u",
  5970. DDBI(mc), DKEY(key), key ? key->mv_size : 0, data->mv_size));
  5971. dkey.mv_size = 0;
  5972. if (flags == MDB_CURRENT) {
  5973. if (!(mc->mc_flags & C_INITIALIZED))
  5974. return EINVAL;
  5975. rc = MDB_SUCCESS;
  5976. } else if (mc->mc_db->md_root == P_INVALID) {
  5977. /* new database, cursor has nothing to point to */
  5978. mc->mc_snum = 0;
  5979. mc->mc_top = 0;
  5980. mc->mc_flags &= ~C_INITIALIZED;
  5981. rc = MDB_NO_ROOT;
  5982. } else {
  5983. int exact = 0;
  5984. MDB_val d2;
  5985. if (flags & MDB_APPEND) {
  5986. MDB_val k2;
  5987. rc = mdb_cursor_last(mc, &k2, &d2);
  5988. if (rc == 0) {
  5989. rc = mc->mc_dbx->md_cmp(key, &k2);
  5990. if (rc > 0) {
  5991. rc = MDB_NOTFOUND;
  5992. mc->mc_ki[mc->mc_top]++;
  5993. } else {
  5994. /* new key is <= last key */
  5995. rc = MDB_KEYEXIST;
  5996. }
  5997. }
  5998. } else {
  5999. rc = mdb_cursor_set(mc, key, &d2, MDB_SET, &exact);
  6000. }
  6001. if ((flags & MDB_NOOVERWRITE) && rc == 0) {
  6002. DPRINTF(("duplicate key [%s]", DKEY(key)));
  6003. *data = d2;
  6004. return MDB_KEYEXIST;
  6005. }
  6006. if (rc && rc != MDB_NOTFOUND)
  6007. return rc;
  6008. }
  6009. if (mc->mc_flags & C_DEL)
  6010. mc->mc_flags ^= C_DEL;
  6011. /* Cursor is positioned, check for room in the dirty list */
  6012. if (!nospill) {
  6013. if (flags & MDB_MULTIPLE) {
  6014. rdata = &xdata;
  6015. xdata.mv_size = data->mv_size * dcount;
  6016. } else {
  6017. rdata = data;
  6018. }
  6019. if ((rc2 = mdb_page_spill(mc, key, rdata)))
  6020. return rc2;
  6021. }
  6022. if (rc == MDB_NO_ROOT) {
  6023. MDB_page *np;
  6024. /* new database, write a root leaf page */
  6025. DPUTS("allocating new root leaf page");
  6026. if ((rc2 = mdb_page_new(mc, P_LEAF, 1, &np))) {
  6027. return rc2;
  6028. }
  6029. mdb_cursor_push(mc, np);
  6030. mc->mc_db->md_root = np->mp_pgno;
  6031. mc->mc_db->md_depth++;
  6032. *mc->mc_dbflag |= DB_DIRTY;
  6033. if ((mc->mc_db->md_flags & (MDB_DUPSORT|MDB_DUPFIXED))
  6034. == MDB_DUPFIXED)
  6035. np->mp_flags |= P_LEAF2;
  6036. mc->mc_flags |= C_INITIALIZED;
  6037. } else {
  6038. /* make sure all cursor pages are writable */
  6039. rc2 = mdb_cursor_touch(mc);
  6040. if (rc2)
  6041. return rc2;
  6042. }
  6043. insert_key = insert_data = rc;
  6044. if (insert_key) {
  6045. /* The key does not exist */
  6046. DPRINTF(("inserting key at index %i", mc->mc_ki[mc->mc_top]));
  6047. if ((mc->mc_db->md_flags & MDB_DUPSORT) &&
  6048. LEAFSIZE(key, data) > env->me_nodemax)
  6049. {
  6050. /* Too big for a node, insert in sub-DB. Set up an empty
  6051. * "old sub-page" for prep_subDB to expand to a full page.
  6052. */
  6053. fp_flags = P_LEAF|P_DIRTY;
  6054. fp = env->me_pbuf;
  6055. fp->mp_pad = data->mv_size; /* used if MDB_DUPFIXED */
  6056. fp->mp_lower = fp->mp_upper = (PAGEHDRSZ-PAGEBASE);
  6057. olddata.mv_size = PAGEHDRSZ;
  6058. goto prep_subDB;
  6059. }
  6060. } else {
  6061. /* there's only a key anyway, so this is a no-op */
  6062. if (IS_LEAF2(mc->mc_pg[mc->mc_top])) {
  6063. char *ptr;
  6064. unsigned int ksize = mc->mc_db->md_pad;
  6065. if (key->mv_size != ksize)
  6066. return MDB_BAD_VALSIZE;
  6067. ptr = LEAF2KEY(mc->mc_pg[mc->mc_top], mc->mc_ki[mc->mc_top], ksize);
  6068. memcpy(ptr, key->mv_data, ksize);
  6069. fix_parent:
  6070. /* if overwriting slot 0 of leaf, need to
  6071. * update branch key if there is a parent page
  6072. */
  6073. if (mc->mc_top && !mc->mc_ki[mc->mc_top]) {
  6074. unsigned short dtop = 1;
  6075. mc->mc_top--;
  6076. /* slot 0 is always an empty key, find real slot */
  6077. while (mc->mc_top && !mc->mc_ki[mc->mc_top]) {
  6078. mc->mc_top--;
  6079. dtop++;
  6080. }
  6081. if (mc->mc_ki[mc->mc_top])
  6082. rc2 = mdb_update_key(mc, key);
  6083. else
  6084. rc2 = MDB_SUCCESS;
  6085. mc->mc_top += dtop;
  6086. if (rc2)
  6087. return rc2;
  6088. }
  6089. return MDB_SUCCESS;
  6090. }
  6091. more:
  6092. leaf = NODEPTR(mc->mc_pg[mc->mc_top], mc->mc_ki[mc->mc_top]);
  6093. olddata.mv_size = NODEDSZ(leaf);
  6094. olddata.mv_data = NODEDATA(leaf);
  6095. /* DB has dups? */
  6096. if (F_ISSET(mc->mc_db->md_flags, MDB_DUPSORT)) {
  6097. /* Prepare (sub-)page/sub-DB to accept the new item,
  6098. * if needed. fp: old sub-page or a header faking
  6099. * it. mp: new (sub-)page. offset: growth in page
  6100. * size. xdata: node data with new page or DB.
  6101. */
  6102. unsigned i, offset = 0;
  6103. mp = fp = xdata.mv_data = env->me_pbuf;
  6104. mp->mp_pgno = mc->mc_pg[mc->mc_top]->mp_pgno;
  6105. /* Was a single item before, must convert now */
  6106. if (!F_ISSET(leaf->mn_flags, F_DUPDATA)) {
  6107. MDB_cmp_func *dcmp;
  6108. /* Just overwrite the current item */
  6109. if (flags == MDB_CURRENT)
  6110. goto current;
  6111. dcmp = mc->mc_dbx->md_dcmp;
  6112. #if UINT_MAX < SIZE_MAX
  6113. if (dcmp == mdb_cmp_int && olddata.mv_size == sizeof(size_t))
  6114. dcmp = mdb_cmp_clong;
  6115. #endif
  6116. /* does data match? */
  6117. if (!dcmp(data, &olddata)) {
  6118. if (flags & (MDB_NODUPDATA|MDB_APPENDDUP))
  6119. return MDB_KEYEXIST;
  6120. /* overwrite it */
  6121. goto current;
  6122. }
  6123. /* Back up original data item */
  6124. dkey.mv_size = olddata.mv_size;
  6125. dkey.mv_data = memcpy(fp+1, olddata.mv_data, olddata.mv_size);
  6126. /* Make sub-page header for the dup items, with dummy body */
  6127. fp->mp_flags = P_LEAF|P_DIRTY|P_SUBP;
  6128. fp->mp_lower = (PAGEHDRSZ-PAGEBASE);
  6129. xdata.mv_size = PAGEHDRSZ + dkey.mv_size + data->mv_size;
  6130. if (mc->mc_db->md_flags & MDB_DUPFIXED) {
  6131. fp->mp_flags |= P_LEAF2;
  6132. fp->mp_pad = data->mv_size;
  6133. xdata.mv_size += 2 * data->mv_size; /* leave space for 2 more */
  6134. } else {
  6135. xdata.mv_size += 2 * (sizeof(indx_t) + NODESIZE) +
  6136. (dkey.mv_size & 1) + (data->mv_size & 1);
  6137. }
  6138. fp->mp_upper = xdata.mv_size - PAGEBASE;
  6139. olddata.mv_size = xdata.mv_size; /* pretend olddata is fp */
  6140. } else if (leaf->mn_flags & F_SUBDATA) {
  6141. /* Data is on sub-DB, just store it */
  6142. flags |= F_DUPDATA|F_SUBDATA;
  6143. goto put_sub;
  6144. } else {
  6145. /* Data is on sub-page */
  6146. fp = olddata.mv_data;
  6147. switch (flags) {
  6148. default:
  6149. if (!(mc->mc_db->md_flags & MDB_DUPFIXED)) {
  6150. offset = EVEN(NODESIZE + sizeof(indx_t) +
  6151. data->mv_size);
  6152. break;
  6153. }
  6154. offset = fp->mp_pad;
  6155. if (SIZELEFT(fp) < offset) {
  6156. offset *= 4; /* space for 4 more */
  6157. break;
  6158. }
  6159. /* FALLTHRU: Big enough MDB_DUPFIXED sub-page */
  6160. case MDB_CURRENT:
  6161. fp->mp_flags |= P_DIRTY;
  6162. COPY_PGNO(fp->mp_pgno, mp->mp_pgno);
  6163. mc->mc_xcursor->mx_cursor.mc_pg[0] = fp;
  6164. flags |= F_DUPDATA;
  6165. goto put_sub;
  6166. }
  6167. xdata.mv_size = olddata.mv_size + offset;
  6168. }
  6169. fp_flags = fp->mp_flags;
  6170. if (NODESIZE + NODEKSZ(leaf) + xdata.mv_size > env->me_nodemax) {
  6171. /* Too big for a sub-page, convert to sub-DB */
  6172. fp_flags &= ~P_SUBP;
  6173. prep_subDB:
  6174. if (mc->mc_db->md_flags & MDB_DUPFIXED) {
  6175. fp_flags |= P_LEAF2;
  6176. dummy.md_pad = fp->mp_pad;
  6177. dummy.md_flags = MDB_DUPFIXED;
  6178. if (mc->mc_db->md_flags & MDB_INTEGERDUP)
  6179. dummy.md_flags |= MDB_INTEGERKEY;
  6180. } else {
  6181. dummy.md_pad = 0;
  6182. dummy.md_flags = 0;
  6183. }
  6184. dummy.md_depth = 1;
  6185. dummy.md_branch_pages = 0;
  6186. dummy.md_leaf_pages = 1;
  6187. dummy.md_overflow_pages = 0;
  6188. dummy.md_entries = NUMKEYS(fp);
  6189. xdata.mv_size = sizeof(MDB_db);
  6190. xdata.mv_data = &dummy;
  6191. if ((rc = mdb_page_alloc(mc, 1, &mp)))
  6192. return rc;
  6193. offset = env->me_psize - olddata.mv_size;
  6194. flags |= F_DUPDATA|F_SUBDATA;
  6195. dummy.md_root = mp->mp_pgno;
  6196. sub_root = mp;
  6197. }
  6198. if (mp != fp) {
  6199. mp->mp_flags = fp_flags | P_DIRTY;
  6200. mp->mp_pad = fp->mp_pad;
  6201. mp->mp_lower = fp->mp_lower;
  6202. mp->mp_upper = fp->mp_upper + offset;
  6203. if (fp_flags & P_LEAF2) {
  6204. memcpy(METADATA(mp), METADATA(fp), NUMKEYS(fp) * fp->mp_pad);
  6205. } else {
  6206. memcpy((char *)mp + mp->mp_upper + PAGEBASE, (char *)fp + fp->mp_upper + PAGEBASE,
  6207. olddata.mv_size - fp->mp_upper - PAGEBASE);
  6208. memcpy((char *)(&mp->mp_ptrs), (char *)(&fp->mp_ptrs), NUMKEYS(fp) * sizeof(mp->mp_ptrs[0]));
  6209. for (i=0; i<NUMKEYS(fp); i++)
  6210. mp->mp_ptrs[i] += offset;
  6211. }
  6212. }
  6213. rdata = &xdata;
  6214. flags |= F_DUPDATA;
  6215. do_sub = 1;
  6216. if (!insert_key)
  6217. mdb_node_del(mc, 0);
  6218. goto new_sub;
  6219. }
  6220. current:
  6221. /* LMDB passes F_SUBDATA in 'flags' to write a DB record */
  6222. if ((leaf->mn_flags ^ flags) & F_SUBDATA)
  6223. return MDB_INCOMPATIBLE;
  6224. /* overflow page overwrites need special handling */
  6225. if (F_ISSET(leaf->mn_flags, F_BIGDATA)) {
  6226. MDB_page *omp;
  6227. pgno_t pg;
  6228. int level, ovpages, dpages = OVPAGES(data->mv_size, env->me_psize);
  6229. memcpy(&pg, olddata.mv_data, sizeof(pg));
  6230. if ((rc2 = mdb_page_get(mc, pg, &omp, &level)) != 0)
  6231. return rc2;
  6232. ovpages = omp->mp_pages;
  6233. /* Is the ov page large enough? */
  6234. if (ovpages >= dpages) {
  6235. if (!(omp->mp_flags & P_DIRTY) &&
  6236. (level || (env->me_flags & MDB_WRITEMAP)))
  6237. {
  6238. rc = mdb_page_unspill(mc->mc_txn, omp, &omp);
  6239. if (rc)
  6240. return rc;
  6241. level = 0; /* dirty in this txn or clean */
  6242. }
  6243. /* Is it dirty? */
  6244. if (omp->mp_flags & P_DIRTY) {
  6245. /* yes, overwrite it. Note in this case we don't
  6246. * bother to try shrinking the page if the new data
  6247. * is smaller than the overflow threshold.
  6248. */
  6249. if (level > 1) {
  6250. /* It is writable only in a parent txn */
  6251. size_t sz = (size_t) env->me_psize * ovpages, off;
  6252. MDB_page *np = mdb_page_malloc(mc->mc_txn, ovpages);
  6253. MDB_ID2 id2;
  6254. if (!np)
  6255. return ENOMEM;
  6256. id2.mid = pg;
  6257. id2.mptr = np;
  6258. /* Note - this page is already counted in parent's dirty_room */
  6259. rc2 = mdb_mid2l_insert(mc->mc_txn->mt_u.dirty_list, &id2);
  6260. mdb_cassert(mc, rc2 == 0);
  6261. /* Currently we make the page look as with put() in the
  6262. * parent txn, in case the user peeks at MDB_RESERVEd
  6263. * or unused parts. Some users treat ovpages specially.
  6264. */
  6265. if (!(flags & MDB_RESERVE)) {
  6266. /* Skip the part where LMDB will put *data.
  6267. * Copy end of page, adjusting alignment so
  6268. * compiler may copy words instead of bytes.
  6269. */
  6270. off = (PAGEHDRSZ + data->mv_size) & -sizeof(size_t);
  6271. memcpy((size_t *)((char *)np + off),
  6272. (size_t *)((char *)omp + off), sz - off);
  6273. sz = PAGEHDRSZ;
  6274. }
  6275. memcpy(np, omp, sz); /* Copy beginning of page */
  6276. omp = np;
  6277. }
  6278. SETDSZ(leaf, data->mv_size);
  6279. if (F_ISSET(flags, MDB_RESERVE))
  6280. data->mv_data = METADATA(omp);
  6281. else
  6282. memcpy(METADATA(omp), data->mv_data, data->mv_size);
  6283. return MDB_SUCCESS;
  6284. }
  6285. }
  6286. if ((rc2 = mdb_ovpage_free(mc, omp)) != MDB_SUCCESS)
  6287. return rc2;
  6288. } else if (data->mv_size == olddata.mv_size) {
  6289. /* same size, just replace it. Note that we could
  6290. * also reuse this node if the new data is smaller,
  6291. * but instead we opt to shrink the node in that case.
  6292. */
  6293. if (F_ISSET(flags, MDB_RESERVE))
  6294. data->mv_data = olddata.mv_data;
  6295. else if (!(mc->mc_flags & C_SUB))
  6296. memcpy(olddata.mv_data, data->mv_data, data->mv_size);
  6297. else {
  6298. memcpy(NODEKEY(leaf), key->mv_data, key->mv_size);
  6299. goto fix_parent;
  6300. }
  6301. return MDB_SUCCESS;
  6302. }
  6303. mdb_node_del(mc, 0);
  6304. }
  6305. rdata = data;
  6306. new_sub:
  6307. nflags = flags & NODE_ADD_FLAGS;
  6308. nsize = IS_LEAF2(mc->mc_pg[mc->mc_top]) ? key->mv_size : mdb_leaf_size(env, key, rdata);
  6309. if (SIZELEFT(mc->mc_pg[mc->mc_top]) < nsize) {
  6310. if (( flags & (F_DUPDATA|F_SUBDATA)) == F_DUPDATA )
  6311. nflags &= ~MDB_APPEND; /* sub-page may need room to grow */
  6312. if (!insert_key)
  6313. nflags |= MDB_SPLIT_REPLACE;
  6314. rc = mdb_page_split(mc, key, rdata, P_INVALID, nflags);
  6315. } else {
  6316. /* There is room already in this leaf page. */
  6317. rc = mdb_node_add(mc, mc->mc_ki[mc->mc_top], key, rdata, 0, nflags);
  6318. if (rc == 0) {
  6319. /* Adjust other cursors pointing to mp */
  6320. MDB_cursor *m2, *m3;
  6321. MDB_dbi dbi = mc->mc_dbi;
  6322. unsigned i = mc->mc_top;
  6323. MDB_page *mp = mc->mc_pg[i];
  6324. for (m2 = mc->mc_txn->mt_cursors[dbi]; m2; m2=m2->mc_next) {
  6325. if (mc->mc_flags & C_SUB)
  6326. m3 = &m2->mc_xcursor->mx_cursor;
  6327. else
  6328. m3 = m2;
  6329. if (m3 == mc || m3->mc_snum < mc->mc_snum || m3->mc_pg[i] != mp) continue;
  6330. if (m3->mc_ki[i] >= mc->mc_ki[i] && insert_key) {
  6331. m3->mc_ki[i]++;
  6332. }
  6333. XCURSOR_REFRESH(m3, i, mp);
  6334. }
  6335. }
  6336. }
  6337. if (rc == MDB_SUCCESS) {
  6338. /* Now store the actual data in the child DB. Note that we're
  6339. * storing the user data in the keys field, so there are strict
  6340. * size limits on dupdata. The actual data fields of the child
  6341. * DB are all zero size.
  6342. */
  6343. if (do_sub) {
  6344. int xflags, new_dupdata;
  6345. size_t ecount;
  6346. put_sub:
  6347. xdata.mv_size = 0;
  6348. xdata.mv_data = "";
  6349. leaf = NODEPTR(mc->mc_pg[mc->mc_top], mc->mc_ki[mc->mc_top]);
  6350. if (flags & MDB_CURRENT) {
  6351. xflags = MDB_CURRENT|MDB_NOSPILL;
  6352. } else {
  6353. mdb_xcursor_init1(mc, leaf);
  6354. xflags = (flags & MDB_NODUPDATA) ?
  6355. MDB_NOOVERWRITE|MDB_NOSPILL : MDB_NOSPILL;
  6356. }
  6357. if (sub_root)
  6358. mc->mc_xcursor->mx_cursor.mc_pg[0] = sub_root;
  6359. new_dupdata = (int)dkey.mv_size;
  6360. /* converted, write the original data first */
  6361. if (dkey.mv_size) {
  6362. rc = mdb_cursor_put(&mc->mc_xcursor->mx_cursor, &dkey, &xdata, xflags);
  6363. if (rc)
  6364. goto bad_sub;
  6365. /* we've done our job */
  6366. dkey.mv_size = 0;
  6367. }
  6368. if (!(leaf->mn_flags & F_SUBDATA) || sub_root) {
  6369. /* Adjust other cursors pointing to mp */
  6370. MDB_cursor *m2;
  6371. MDB_xcursor *mx = mc->mc_xcursor;
  6372. unsigned i = mc->mc_top;
  6373. MDB_page *mp = mc->mc_pg[i];
  6374. for (m2 = mc->mc_txn->mt_cursors[mc->mc_dbi]; m2; m2=m2->mc_next) {
  6375. if (m2 == mc || m2->mc_snum < mc->mc_snum) continue;
  6376. if (!(m2->mc_flags & C_INITIALIZED)) continue;
  6377. if (m2->mc_pg[i] == mp) {
  6378. if (m2->mc_ki[i] == mc->mc_ki[i]) {
  6379. mdb_xcursor_init2(m2, mx, new_dupdata);
  6380. } else if (!insert_key) {
  6381. XCURSOR_REFRESH(m2, i, mp);
  6382. }
  6383. }
  6384. }
  6385. }
  6386. ecount = mc->mc_xcursor->mx_db.md_entries;
  6387. if (flags & MDB_APPENDDUP)
  6388. xflags |= MDB_APPEND;
  6389. rc = mdb_cursor_put(&mc->mc_xcursor->mx_cursor, data, &xdata, xflags);
  6390. if (flags & F_SUBDATA) {
  6391. void *db = NODEDATA(leaf);
  6392. memcpy(db, &mc->mc_xcursor->mx_db, sizeof(MDB_db));
  6393. }
  6394. insert_data = mc->mc_xcursor->mx_db.md_entries - ecount;
  6395. }
  6396. /* Increment count unless we just replaced an existing item. */
  6397. if (insert_data)
  6398. mc->mc_db->md_entries++;
  6399. if (insert_key) {
  6400. /* Invalidate txn if we created an empty sub-DB */
  6401. if (rc)
  6402. goto bad_sub;
  6403. /* If we succeeded and the key didn't exist before,
  6404. * make sure the cursor is marked valid.
  6405. */
  6406. mc->mc_flags |= C_INITIALIZED;
  6407. }
  6408. if (flags & MDB_MULTIPLE) {
  6409. if (!rc) {
  6410. mcount++;
  6411. /* let caller know how many succeeded, if any */
  6412. data[1].mv_size = mcount;
  6413. if (mcount < dcount) {
  6414. data[0].mv_data = (char *)data[0].mv_data + data[0].mv_size;
  6415. insert_key = insert_data = 0;
  6416. goto more;
  6417. }
  6418. }
  6419. }
  6420. return rc;
  6421. bad_sub:
  6422. if (rc == MDB_KEYEXIST) /* should not happen, we deleted that item */
  6423. rc = MDB_CORRUPTED;
  6424. }
  6425. mc->mc_txn->mt_flags |= MDB_TXN_ERROR;
  6426. return rc;
  6427. }
  6428. int
  6429. mdb_cursor_del(MDB_cursor *mc, unsigned int flags)
  6430. {
  6431. MDB_node *leaf;
  6432. MDB_page *mp;
  6433. int rc;
  6434. if (mc->mc_txn->mt_flags & (MDB_TXN_RDONLY|MDB_TXN_BLOCKED))
  6435. return (mc->mc_txn->mt_flags & MDB_TXN_RDONLY) ? EACCES : MDB_BAD_TXN;
  6436. if (!(mc->mc_flags & C_INITIALIZED))
  6437. return EINVAL;
  6438. if (mc->mc_ki[mc->mc_top] >= NUMKEYS(mc->mc_pg[mc->mc_top]))
  6439. return MDB_NOTFOUND;
  6440. if (!(flags & MDB_NOSPILL) && (rc = mdb_page_spill(mc, NULL, NULL)))
  6441. return rc;
  6442. rc = mdb_cursor_touch(mc);
  6443. if (rc)
  6444. return rc;
  6445. mp = mc->mc_pg[mc->mc_top];
  6446. if (IS_LEAF2(mp))
  6447. goto del_key;
  6448. leaf = NODEPTR(mp, mc->mc_ki[mc->mc_top]);
  6449. if (F_ISSET(leaf->mn_flags, F_DUPDATA)) {
  6450. if (flags & MDB_NODUPDATA) {
  6451. /* mdb_cursor_del0() will subtract the final entry */
  6452. mc->mc_db->md_entries -= mc->mc_xcursor->mx_db.md_entries - 1;
  6453. mc->mc_xcursor->mx_cursor.mc_flags &= ~C_INITIALIZED;
  6454. } else {
  6455. if (!F_ISSET(leaf->mn_flags, F_SUBDATA)) {
  6456. mc->mc_xcursor->mx_cursor.mc_pg[0] = NODEDATA(leaf);
  6457. }
  6458. rc = mdb_cursor_del(&mc->mc_xcursor->mx_cursor, MDB_NOSPILL);
  6459. if (rc)
  6460. return rc;
  6461. /* If sub-DB still has entries, we're done */
  6462. if (mc->mc_xcursor->mx_db.md_entries) {
  6463. if (leaf->mn_flags & F_SUBDATA) {
  6464. /* update subDB info */
  6465. void *db = NODEDATA(leaf);
  6466. memcpy(db, &mc->mc_xcursor->mx_db, sizeof(MDB_db));
  6467. } else {
  6468. MDB_cursor *m2;
  6469. /* shrink fake page */
  6470. mdb_node_shrink(mp, mc->mc_ki[mc->mc_top]);
  6471. leaf = NODEPTR(mp, mc->mc_ki[mc->mc_top]);
  6472. mc->mc_xcursor->mx_cursor.mc_pg[0] = NODEDATA(leaf);
  6473. /* fix other sub-DB cursors pointed at fake pages on this page */
  6474. for (m2 = mc->mc_txn->mt_cursors[mc->mc_dbi]; m2; m2=m2->mc_next) {
  6475. if (m2 == mc || m2->mc_snum < mc->mc_snum) continue;
  6476. if (!(m2->mc_flags & C_INITIALIZED)) continue;
  6477. if (m2->mc_pg[mc->mc_top] == mp) {
  6478. XCURSOR_REFRESH(m2, mc->mc_top, mp);
  6479. }
  6480. }
  6481. }
  6482. mc->mc_db->md_entries--;
  6483. return rc;
  6484. } else {
  6485. mc->mc_xcursor->mx_cursor.mc_flags &= ~C_INITIALIZED;
  6486. }
  6487. /* otherwise fall thru and delete the sub-DB */
  6488. }
  6489. if (leaf->mn_flags & F_SUBDATA) {
  6490. /* add all the child DB's pages to the free list */
  6491. rc = mdb_drop0(&mc->mc_xcursor->mx_cursor, 0);
  6492. if (rc)
  6493. goto fail;
  6494. }
  6495. }
  6496. /* LMDB passes F_SUBDATA in 'flags' to delete a DB record */
  6497. else if ((leaf->mn_flags ^ flags) & F_SUBDATA) {
  6498. rc = MDB_INCOMPATIBLE;
  6499. goto fail;
  6500. }
  6501. /* add overflow pages to free list */
  6502. if (F_ISSET(leaf->mn_flags, F_BIGDATA)) {
  6503. MDB_page *omp;
  6504. pgno_t pg;
  6505. memcpy(&pg, NODEDATA(leaf), sizeof(pg));
  6506. if ((rc = mdb_page_get(mc, pg, &omp, NULL)) ||
  6507. (rc = mdb_ovpage_free(mc, omp)))
  6508. goto fail;
  6509. }
  6510. del_key:
  6511. return mdb_cursor_del0(mc);
  6512. fail:
  6513. mc->mc_txn->mt_flags |= MDB_TXN_ERROR;
  6514. return rc;
  6515. }
  6516. /** Allocate and initialize new pages for a database.
  6517. * Set #MDB_TXN_ERROR on failure.
  6518. * @param[in] mc a cursor on the database being added to.
  6519. * @param[in] flags flags defining what type of page is being allocated.
  6520. * @param[in] num the number of pages to allocate. This is usually 1,
  6521. * unless allocating overflow pages for a large record.
  6522. * @param[out] mp Address of a page, or NULL on failure.
  6523. * @return 0 on success, non-zero on failure.
  6524. */
  6525. static int
  6526. mdb_page_new(MDB_cursor *mc, uint32_t flags, int num, MDB_page **mp)
  6527. {
  6528. MDB_page *np;
  6529. int rc;
  6530. if ((rc = mdb_page_alloc(mc, num, &np)))
  6531. return rc;
  6532. DPRINTF(("allocated new mpage %"Z"u, page size %u",
  6533. np->mp_pgno, mc->mc_txn->mt_env->me_psize));
  6534. np->mp_flags = flags | P_DIRTY;
  6535. np->mp_lower = (PAGEHDRSZ-PAGEBASE);
  6536. np->mp_upper = mc->mc_txn->mt_env->me_psize - PAGEBASE;
  6537. if (IS_BRANCH(np))
  6538. mc->mc_db->md_branch_pages++;
  6539. else if (IS_LEAF(np))
  6540. mc->mc_db->md_leaf_pages++;
  6541. else if (IS_OVERFLOW(np)) {
  6542. mc->mc_db->md_overflow_pages += num;
  6543. np->mp_pages = num;
  6544. }
  6545. *mp = np;
  6546. return 0;
  6547. }
  6548. /** Calculate the size of a leaf node.
  6549. * The size depends on the environment's page size; if a data item
  6550. * is too large it will be put onto an overflow page and the node
  6551. * size will only include the key and not the data. Sizes are always
  6552. * rounded up to an even number of bytes, to guarantee 2-byte alignment
  6553. * of the #MDB_node headers.
  6554. * @param[in] env The environment handle.
  6555. * @param[in] key The key for the node.
  6556. * @param[in] data The data for the node.
  6557. * @return The number of bytes needed to store the node.
  6558. */
  6559. static size_t
  6560. mdb_leaf_size(MDB_env *env, MDB_val *key, MDB_val *data)
  6561. {
  6562. size_t sz;
  6563. sz = LEAFSIZE(key, data);
  6564. if (sz > env->me_nodemax) {
  6565. /* put on overflow page */
  6566. sz -= data->mv_size - sizeof(pgno_t);
  6567. }
  6568. return EVEN(sz + sizeof(indx_t));
  6569. }
  6570. /** Calculate the size of a branch node.
  6571. * The size should depend on the environment's page size but since
  6572. * we currently don't support spilling large keys onto overflow
  6573. * pages, it's simply the size of the #MDB_node header plus the
  6574. * size of the key. Sizes are always rounded up to an even number
  6575. * of bytes, to guarantee 2-byte alignment of the #MDB_node headers.
  6576. * @param[in] env The environment handle.
  6577. * @param[in] key The key for the node.
  6578. * @return The number of bytes needed to store the node.
  6579. */
  6580. static size_t
  6581. mdb_branch_size(MDB_env *env, MDB_val *key)
  6582. {
  6583. size_t sz;
  6584. sz = INDXSIZE(key);
  6585. if (sz > env->me_nodemax) {
  6586. /* put on overflow page */
  6587. /* not implemented */
  6588. /* sz -= key->size - sizeof(pgno_t); */
  6589. }
  6590. return sz + sizeof(indx_t);
  6591. }
  6592. /** Add a node to the page pointed to by the cursor.
  6593. * Set #MDB_TXN_ERROR on failure.
  6594. * @param[in] mc The cursor for this operation.
  6595. * @param[in] indx The index on the page where the new node should be added.
  6596. * @param[in] key The key for the new node.
  6597. * @param[in] data The data for the new node, if any.
  6598. * @param[in] pgno The page number, if adding a branch node.
  6599. * @param[in] flags Flags for the node.
  6600. * @return 0 on success, non-zero on failure. Possible errors are:
  6601. * <ul>
  6602. * <li>ENOMEM - failed to allocate overflow pages for the node.
  6603. * <li>MDB_PAGE_FULL - there is insufficient room in the page. This error
  6604. * should never happen since all callers already calculate the
  6605. * page's free space before calling this function.
  6606. * </ul>
  6607. */
  6608. static int
  6609. mdb_node_add(MDB_cursor *mc, indx_t indx,
  6610. MDB_val *key, MDB_val *data, pgno_t pgno, unsigned int flags)
  6611. {
  6612. unsigned int i;
  6613. size_t node_size = NODESIZE;
  6614. ssize_t room;
  6615. indx_t ofs;
  6616. MDB_node *node;
  6617. MDB_page *mp = mc->mc_pg[mc->mc_top];
  6618. MDB_page *ofp = NULL; /* overflow page */
  6619. void *ndata;
  6620. DKBUF;
  6621. mdb_cassert(mc, mp->mp_upper >= mp->mp_lower);
  6622. DPRINTF(("add to %s %spage %"Z"u index %i, data size %"Z"u key size %"Z"u [%s]",
  6623. IS_LEAF(mp) ? "leaf" : "branch",
  6624. IS_SUBP(mp) ? "sub-" : "",
  6625. mdb_dbg_pgno(mp), indx, data ? data->mv_size : 0,
  6626. key ? key->mv_size : 0, key ? DKEY(key) : "null"));
  6627. if (IS_LEAF2(mp)) {
  6628. /* Move higher keys up one slot. */
  6629. int ksize = mc->mc_db->md_pad, dif;
  6630. char *ptr = LEAF2KEY(mp, indx, ksize);
  6631. dif = NUMKEYS(mp) - indx;
  6632. if (dif > 0)
  6633. memmove(ptr+ksize, ptr, dif*ksize);
  6634. /* insert new key */
  6635. memcpy(ptr, key->mv_data, ksize);
  6636. /* Just using these for counting */
  6637. mp->mp_lower += sizeof(indx_t);
  6638. mp->mp_upper -= ksize - sizeof(indx_t);
  6639. return MDB_SUCCESS;
  6640. }
  6641. room = (ssize_t)SIZELEFT(mp) - (ssize_t)sizeof(indx_t);
  6642. if (key != NULL)
  6643. node_size += key->mv_size;
  6644. if (IS_LEAF(mp)) {
  6645. mdb_cassert(mc, key && data);
  6646. if (F_ISSET(flags, F_BIGDATA)) {
  6647. /* Data already on overflow page. */
  6648. node_size += sizeof(pgno_t);
  6649. } else if (node_size + data->mv_size > mc->mc_txn->mt_env->me_nodemax) {
  6650. int ovpages = OVPAGES(data->mv_size, mc->mc_txn->mt_env->me_psize);
  6651. int rc;
  6652. /* Put data on overflow page. */
  6653. DPRINTF(("data size is %"Z"u, node would be %"Z"u, put data on overflow page",
  6654. data->mv_size, node_size+data->mv_size));
  6655. node_size = EVEN(node_size + sizeof(pgno_t));
  6656. if ((ssize_t)node_size > room)
  6657. goto full;
  6658. if ((rc = mdb_page_new(mc, P_OVERFLOW, ovpages, &ofp)))
  6659. return rc;
  6660. DPRINTF(("allocated overflow page %"Z"u", ofp->mp_pgno));
  6661. flags |= F_BIGDATA;
  6662. goto update;
  6663. } else {
  6664. node_size += data->mv_size;
  6665. }
  6666. }
  6667. node_size = EVEN(node_size);
  6668. if ((ssize_t)node_size > room)
  6669. goto full;
  6670. update:
  6671. /* Move higher pointers up one slot. */
  6672. for (i = NUMKEYS(mp); i > indx; i--)
  6673. mp->mp_ptrs[i] = mp->mp_ptrs[i - 1];
  6674. /* Adjust free space offsets. */
  6675. ofs = mp->mp_upper - node_size;
  6676. mdb_cassert(mc, ofs >= mp->mp_lower + sizeof(indx_t));
  6677. mp->mp_ptrs[indx] = ofs;
  6678. mp->mp_upper = ofs;
  6679. mp->mp_lower += sizeof(indx_t);
  6680. /* Write the node data. */
  6681. node = NODEPTR(mp, indx);
  6682. node->mn_ksize = (key == NULL) ? 0 : key->mv_size;
  6683. node->mn_flags = flags;
  6684. if (IS_LEAF(mp))
  6685. SETDSZ(node,data->mv_size);
  6686. else
  6687. SETPGNO(node,pgno);
  6688. if (key)
  6689. memcpy(NODEKEY(node), key->mv_data, key->mv_size);
  6690. if (IS_LEAF(mp)) {
  6691. ndata = NODEDATA(node);
  6692. if (ofp == NULL) {
  6693. if (F_ISSET(flags, F_BIGDATA))
  6694. memcpy(ndata, data->mv_data, sizeof(pgno_t));
  6695. else if (F_ISSET(flags, MDB_RESERVE))
  6696. data->mv_data = ndata;
  6697. else
  6698. memcpy(ndata, data->mv_data, data->mv_size);
  6699. } else {
  6700. memcpy(ndata, &ofp->mp_pgno, sizeof(pgno_t));
  6701. ndata = METADATA(ofp);
  6702. if (F_ISSET(flags, MDB_RESERVE))
  6703. data->mv_data = ndata;
  6704. else
  6705. memcpy(ndata, data->mv_data, data->mv_size);
  6706. }
  6707. }
  6708. return MDB_SUCCESS;
  6709. full:
  6710. DPRINTF(("not enough room in page %"Z"u, got %u ptrs",
  6711. mdb_dbg_pgno(mp), NUMKEYS(mp)));
  6712. DPRINTF(("upper-lower = %u - %u = %"Z"d", mp->mp_upper,mp->mp_lower,room));
  6713. DPRINTF(("node size = %"Z"u", node_size));
  6714. mc->mc_txn->mt_flags |= MDB_TXN_ERROR;
  6715. return MDB_PAGE_FULL;
  6716. }
  6717. /** Delete the specified node from a page.
  6718. * @param[in] mc Cursor pointing to the node to delete.
  6719. * @param[in] ksize The size of a node. Only used if the page is
  6720. * part of a #MDB_DUPFIXED database.
  6721. */
  6722. static void
  6723. mdb_node_del(MDB_cursor *mc, int ksize)
  6724. {
  6725. MDB_page *mp = mc->mc_pg[mc->mc_top];
  6726. indx_t indx = mc->mc_ki[mc->mc_top];
  6727. unsigned int sz;
  6728. indx_t i, j, numkeys, ptr;
  6729. MDB_node *node;
  6730. char *base;
  6731. DPRINTF(("delete node %u on %s page %"Z"u", indx,
  6732. IS_LEAF(mp) ? "leaf" : "branch", mdb_dbg_pgno(mp)));
  6733. numkeys = NUMKEYS(mp);
  6734. mdb_cassert(mc, indx < numkeys);
  6735. if (IS_LEAF2(mp)) {
  6736. int x = numkeys - 1 - indx;
  6737. base = LEAF2KEY(mp, indx, ksize);
  6738. if (x)
  6739. memmove(base, base + ksize, x * ksize);
  6740. mp->mp_lower -= sizeof(indx_t);
  6741. mp->mp_upper += ksize - sizeof(indx_t);
  6742. return;
  6743. }
  6744. node = NODEPTR(mp, indx);
  6745. sz = NODESIZE + node->mn_ksize;
  6746. if (IS_LEAF(mp)) {
  6747. if (F_ISSET(node->mn_flags, F_BIGDATA))
  6748. sz += sizeof(pgno_t);
  6749. else
  6750. sz += NODEDSZ(node);
  6751. }
  6752. sz = EVEN(sz);
  6753. ptr = mp->mp_ptrs[indx];
  6754. for (i = j = 0; i < numkeys; i++) {
  6755. if (i != indx) {
  6756. mp->mp_ptrs[j] = mp->mp_ptrs[i];
  6757. if (mp->mp_ptrs[i] < ptr)
  6758. mp->mp_ptrs[j] += sz;
  6759. j++;
  6760. }
  6761. }
  6762. base = (char *)mp + mp->mp_upper + PAGEBASE;
  6763. memmove(base + sz, base, ptr - mp->mp_upper);
  6764. mp->mp_lower -= sizeof(indx_t);
  6765. mp->mp_upper += sz;
  6766. }
  6767. /** Compact the main page after deleting a node on a subpage.
  6768. * @param[in] mp The main page to operate on.
  6769. * @param[in] indx The index of the subpage on the main page.
  6770. */
  6771. static void
  6772. mdb_node_shrink(MDB_page *mp, indx_t indx)
  6773. {
  6774. MDB_node *node;
  6775. MDB_page *sp, *xp;
  6776. char *base;
  6777. indx_t delta, nsize, len, ptr;
  6778. int i;
  6779. node = NODEPTR(mp, indx);
  6780. sp = (MDB_page *)NODEDATA(node);
  6781. delta = SIZELEFT(sp);
  6782. nsize = NODEDSZ(node) - delta;
  6783. /* Prepare to shift upward, set len = length(subpage part to shift) */
  6784. if (IS_LEAF2(sp)) {
  6785. len = nsize;
  6786. if (nsize & 1)
  6787. return; /* do not make the node uneven-sized */
  6788. } else {
  6789. xp = (MDB_page *)((char *)sp + delta); /* destination subpage */
  6790. for (i = NUMKEYS(sp); --i >= 0; )
  6791. xp->mp_ptrs[i] = sp->mp_ptrs[i] - delta;
  6792. len = PAGEHDRSZ;
  6793. }
  6794. sp->mp_upper = sp->mp_lower;
  6795. COPY_PGNO(sp->mp_pgno, mp->mp_pgno);
  6796. SETDSZ(node, nsize);
  6797. /* Shift <lower nodes...initial part of subpage> upward */
  6798. base = (char *)mp + mp->mp_upper + PAGEBASE;
  6799. memmove(base + delta, base, (char *)sp + len - base);
  6800. ptr = mp->mp_ptrs[indx];
  6801. for (i = NUMKEYS(mp); --i >= 0; ) {
  6802. if (mp->mp_ptrs[i] <= ptr)
  6803. mp->mp_ptrs[i] += delta;
  6804. }
  6805. mp->mp_upper += delta;
  6806. }
  6807. /** Initial setup of a sorted-dups cursor.
  6808. * Sorted duplicates are implemented as a sub-database for the given key.
  6809. * The duplicate data items are actually keys of the sub-database.
  6810. * Operations on the duplicate data items are performed using a sub-cursor
  6811. * initialized when the sub-database is first accessed. This function does
  6812. * the preliminary setup of the sub-cursor, filling in the fields that
  6813. * depend only on the parent DB.
  6814. * @param[in] mc The main cursor whose sorted-dups cursor is to be initialized.
  6815. */
  6816. static void
  6817. mdb_xcursor_init0(MDB_cursor *mc)
  6818. {
  6819. MDB_xcursor *mx = mc->mc_xcursor;
  6820. mx->mx_cursor.mc_xcursor = NULL;
  6821. mx->mx_cursor.mc_txn = mc->mc_txn;
  6822. mx->mx_cursor.mc_db = &mx->mx_db;
  6823. mx->mx_cursor.mc_dbx = &mx->mx_dbx;
  6824. mx->mx_cursor.mc_dbi = mc->mc_dbi;
  6825. mx->mx_cursor.mc_dbflag = &mx->mx_dbflag;
  6826. mx->mx_cursor.mc_snum = 0;
  6827. mx->mx_cursor.mc_top = 0;
  6828. mx->mx_cursor.mc_flags = C_SUB;
  6829. mx->mx_dbx.md_name.mv_size = 0;
  6830. mx->mx_dbx.md_name.mv_data = NULL;
  6831. mx->mx_dbx.md_cmp = mc->mc_dbx->md_dcmp;
  6832. mx->mx_dbx.md_dcmp = NULL;
  6833. mx->mx_dbx.md_rel = mc->mc_dbx->md_rel;
  6834. }
  6835. /** Final setup of a sorted-dups cursor.
  6836. * Sets up the fields that depend on the data from the main cursor.
  6837. * @param[in] mc The main cursor whose sorted-dups cursor is to be initialized.
  6838. * @param[in] node The data containing the #MDB_db record for the
  6839. * sorted-dup database.
  6840. */
  6841. static void
  6842. mdb_xcursor_init1(MDB_cursor *mc, MDB_node *node)
  6843. {
  6844. MDB_xcursor *mx = mc->mc_xcursor;
  6845. if (node->mn_flags & F_SUBDATA) {
  6846. memcpy(&mx->mx_db, NODEDATA(node), sizeof(MDB_db));
  6847. mx->mx_cursor.mc_pg[0] = 0;
  6848. mx->mx_cursor.mc_snum = 0;
  6849. mx->mx_cursor.mc_top = 0;
  6850. mx->mx_cursor.mc_flags = C_SUB;
  6851. } else {
  6852. MDB_page *fp = NODEDATA(node);
  6853. mx->mx_db.md_pad = 0;
  6854. mx->mx_db.md_flags = 0;
  6855. mx->mx_db.md_depth = 1;
  6856. mx->mx_db.md_branch_pages = 0;
  6857. mx->mx_db.md_leaf_pages = 1;
  6858. mx->mx_db.md_overflow_pages = 0;
  6859. mx->mx_db.md_entries = NUMKEYS(fp);
  6860. COPY_PGNO(mx->mx_db.md_root, fp->mp_pgno);
  6861. mx->mx_cursor.mc_snum = 1;
  6862. mx->mx_cursor.mc_top = 0;
  6863. mx->mx_cursor.mc_flags = C_INITIALIZED|C_SUB;
  6864. mx->mx_cursor.mc_pg[0] = fp;
  6865. mx->mx_cursor.mc_ki[0] = 0;
  6866. if (mc->mc_db->md_flags & MDB_DUPFIXED) {
  6867. mx->mx_db.md_flags = MDB_DUPFIXED;
  6868. mx->mx_db.md_pad = fp->mp_pad;
  6869. if (mc->mc_db->md_flags & MDB_INTEGERDUP)
  6870. mx->mx_db.md_flags |= MDB_INTEGERKEY;
  6871. }
  6872. }
  6873. DPRINTF(("Sub-db -%u root page %"Z"u", mx->mx_cursor.mc_dbi,
  6874. mx->mx_db.md_root));
  6875. mx->mx_dbflag = DB_VALID|DB_USRVALID|DB_DUPDATA;
  6876. #if UINT_MAX < SIZE_MAX
  6877. if (mx->mx_dbx.md_cmp == mdb_cmp_int && mx->mx_db.md_pad == sizeof(size_t))
  6878. mx->mx_dbx.md_cmp = mdb_cmp_clong;
  6879. #endif
  6880. }
  6881. /** Fixup a sorted-dups cursor due to underlying update.
  6882. * Sets up some fields that depend on the data from the main cursor.
  6883. * Almost the same as init1, but skips initialization steps if the
  6884. * xcursor had already been used.
  6885. * @param[in] mc The main cursor whose sorted-dups cursor is to be fixed up.
  6886. * @param[in] src_mx The xcursor of an up-to-date cursor.
  6887. * @param[in] new_dupdata True if converting from a non-#F_DUPDATA item.
  6888. */
  6889. static void
  6890. mdb_xcursor_init2(MDB_cursor *mc, MDB_xcursor *src_mx, int new_dupdata)
  6891. {
  6892. MDB_xcursor *mx = mc->mc_xcursor;
  6893. if (new_dupdata) {
  6894. mx->mx_cursor.mc_snum = 1;
  6895. mx->mx_cursor.mc_top = 0;
  6896. mx->mx_cursor.mc_flags |= C_INITIALIZED;
  6897. mx->mx_cursor.mc_ki[0] = 0;
  6898. mx->mx_dbflag = DB_VALID|DB_USRVALID|DB_DUPDATA;
  6899. #if UINT_MAX < SIZE_MAX
  6900. mx->mx_dbx.md_cmp = src_mx->mx_dbx.md_cmp;
  6901. #endif
  6902. } else if (!(mx->mx_cursor.mc_flags & C_INITIALIZED)) {
  6903. return;
  6904. }
  6905. mx->mx_db = src_mx->mx_db;
  6906. mx->mx_cursor.mc_pg[0] = src_mx->mx_cursor.mc_pg[0];
  6907. DPRINTF(("Sub-db -%u root page %"Z"u", mx->mx_cursor.mc_dbi,
  6908. mx->mx_db.md_root));
  6909. }
  6910. /** Initialize a cursor for a given transaction and database. */
  6911. static void
  6912. mdb_cursor_init(MDB_cursor *mc, MDB_txn *txn, MDB_dbi dbi, MDB_xcursor *mx)
  6913. {
  6914. mc->mc_next = NULL;
  6915. mc->mc_backup = NULL;
  6916. mc->mc_dbi = dbi;
  6917. mc->mc_txn = txn;
  6918. mc->mc_db = &txn->mt_dbs[dbi];
  6919. mc->mc_dbx = &txn->mt_dbxs[dbi];
  6920. mc->mc_dbflag = &txn->mt_dbflags[dbi];
  6921. mc->mc_snum = 0;
  6922. mc->mc_top = 0;
  6923. mc->mc_pg[0] = 0;
  6924. mc->mc_ki[0] = 0;
  6925. mc->mc_flags = 0;
  6926. if (txn->mt_dbs[dbi].md_flags & MDB_DUPSORT) {
  6927. mdb_tassert(txn, mx != NULL);
  6928. mc->mc_xcursor = mx;
  6929. mdb_xcursor_init0(mc);
  6930. } else {
  6931. mc->mc_xcursor = NULL;
  6932. }
  6933. if (*mc->mc_dbflag & DB_STALE) {
  6934. mdb_page_search(mc, NULL, MDB_PS_ROOTONLY);
  6935. }
  6936. }
  6937. int
  6938. mdb_cursor_open(MDB_txn *txn, MDB_dbi dbi, MDB_cursor **ret)
  6939. {
  6940. MDB_cursor *mc;
  6941. size_t size = sizeof(MDB_cursor);
  6942. if (!ret || !TXN_DBI_EXIST(txn, dbi, DB_VALID))
  6943. return EINVAL;
  6944. if (txn->mt_flags & MDB_TXN_BLOCKED)
  6945. return MDB_BAD_TXN;
  6946. if (dbi == FREE_DBI && !F_ISSET(txn->mt_flags, MDB_TXN_RDONLY))
  6947. return EINVAL;
  6948. if (txn->mt_dbs[dbi].md_flags & MDB_DUPSORT)
  6949. size += sizeof(MDB_xcursor);
  6950. if ((mc = malloc(size)) != NULL) {
  6951. mdb_cursor_init(mc, txn, dbi, (MDB_xcursor *)(mc + 1));
  6952. if (txn->mt_cursors) {
  6953. mc->mc_next = txn->mt_cursors[dbi];
  6954. txn->mt_cursors[dbi] = mc;
  6955. mc->mc_flags |= C_UNTRACK;
  6956. }
  6957. } else {
  6958. return ENOMEM;
  6959. }
  6960. *ret = mc;
  6961. return MDB_SUCCESS;
  6962. }
  6963. int
  6964. mdb_cursor_renew(MDB_txn *txn, MDB_cursor *mc)
  6965. {
  6966. if (!mc || !TXN_DBI_EXIST(txn, mc->mc_dbi, DB_VALID))
  6967. return EINVAL;
  6968. if ((mc->mc_flags & C_UNTRACK) || txn->mt_cursors)
  6969. return EINVAL;
  6970. if (txn->mt_flags & MDB_TXN_BLOCKED)
  6971. return MDB_BAD_TXN;
  6972. mdb_cursor_init(mc, txn, mc->mc_dbi, mc->mc_xcursor);
  6973. return MDB_SUCCESS;
  6974. }
  6975. /* Return the count of duplicate data items for the current key */
  6976. int
  6977. mdb_cursor_count(MDB_cursor *mc, size_t *countp)
  6978. {
  6979. MDB_node *leaf;
  6980. if (mc == NULL || countp == NULL)
  6981. return EINVAL;
  6982. if (mc->mc_xcursor == NULL)
  6983. return MDB_INCOMPATIBLE;
  6984. if (mc->mc_txn->mt_flags & MDB_TXN_BLOCKED)
  6985. return MDB_BAD_TXN;
  6986. if (!(mc->mc_flags & C_INITIALIZED))
  6987. return EINVAL;
  6988. if (!mc->mc_snum)
  6989. return MDB_NOTFOUND;
  6990. if (mc->mc_flags & C_EOF) {
  6991. if (mc->mc_ki[mc->mc_top] >= NUMKEYS(mc->mc_pg[mc->mc_top]))
  6992. return MDB_NOTFOUND;
  6993. mc->mc_flags ^= C_EOF;
  6994. }
  6995. leaf = NODEPTR(mc->mc_pg[mc->mc_top], mc->mc_ki[mc->mc_top]);
  6996. if (!F_ISSET(leaf->mn_flags, F_DUPDATA)) {
  6997. *countp = 1;
  6998. } else {
  6999. if (!(mc->mc_xcursor->mx_cursor.mc_flags & C_INITIALIZED))
  7000. return EINVAL;
  7001. *countp = mc->mc_xcursor->mx_db.md_entries;
  7002. }
  7003. return MDB_SUCCESS;
  7004. }
  7005. void
  7006. mdb_cursor_close(MDB_cursor *mc)
  7007. {
  7008. if (mc && !mc->mc_backup) {
  7009. /* remove from txn, if tracked */
  7010. if ((mc->mc_flags & C_UNTRACK) && mc->mc_txn->mt_cursors) {
  7011. MDB_cursor **prev = &mc->mc_txn->mt_cursors[mc->mc_dbi];
  7012. while (*prev && *prev != mc) prev = &(*prev)->mc_next;
  7013. if (*prev == mc)
  7014. *prev = mc->mc_next;
  7015. }
  7016. free(mc);
  7017. }
  7018. }
  7019. MDB_txn *
  7020. mdb_cursor_txn(MDB_cursor *mc)
  7021. {
  7022. if (!mc) return NULL;
  7023. return mc->mc_txn;
  7024. }
  7025. MDB_dbi
  7026. mdb_cursor_dbi(MDB_cursor *mc)
  7027. {
  7028. return mc->mc_dbi;
  7029. }
  7030. /** Replace the key for a branch node with a new key.
  7031. * Set #MDB_TXN_ERROR on failure.
  7032. * @param[in] mc Cursor pointing to the node to operate on.
  7033. * @param[in] key The new key to use.
  7034. * @return 0 on success, non-zero on failure.
  7035. */
  7036. static int
  7037. mdb_update_key(MDB_cursor *mc, MDB_val *key)
  7038. {
  7039. MDB_page *mp;
  7040. MDB_node *node;
  7041. char *base;
  7042. size_t len;
  7043. int delta, ksize, oksize;
  7044. indx_t ptr, i, numkeys, indx;
  7045. DKBUF;
  7046. indx = mc->mc_ki[mc->mc_top];
  7047. mp = mc->mc_pg[mc->mc_top];
  7048. node = NODEPTR(mp, indx);
  7049. ptr = mp->mp_ptrs[indx];
  7050. #if MDB_DEBUG
  7051. {
  7052. MDB_val k2;
  7053. char kbuf2[DKBUF_MAXKEYSIZE*2+1];
  7054. k2.mv_data = NODEKEY(node);
  7055. k2.mv_size = node->mn_ksize;
  7056. DPRINTF(("update key %u (ofs %u) [%s] to [%s] on page %"Z"u",
  7057. indx, ptr,
  7058. mdb_dkey(&k2, kbuf2),
  7059. DKEY(key),
  7060. mp->mp_pgno));
  7061. }
  7062. #endif
  7063. /* Sizes must be 2-byte aligned. */
  7064. ksize = EVEN(key->mv_size);
  7065. oksize = EVEN(node->mn_ksize);
  7066. delta = ksize - oksize;
  7067. /* Shift node contents if EVEN(key length) changed. */
  7068. if (delta) {
  7069. if (delta > 0 && SIZELEFT(mp) < delta) {
  7070. pgno_t pgno;
  7071. /* not enough space left, do a delete and split */
  7072. DPRINTF(("Not enough room, delta = %d, splitting...", delta));
  7073. pgno = NODEPGNO(node);
  7074. mdb_node_del(mc, 0);
  7075. return mdb_page_split(mc, key, NULL, pgno, MDB_SPLIT_REPLACE);
  7076. }
  7077. numkeys = NUMKEYS(mp);
  7078. for (i = 0; i < numkeys; i++) {
  7079. if (mp->mp_ptrs[i] <= ptr)
  7080. mp->mp_ptrs[i] -= delta;
  7081. }
  7082. base = (char *)mp + mp->mp_upper + PAGEBASE;
  7083. len = ptr - mp->mp_upper + NODESIZE;
  7084. memmove(base - delta, base, len);
  7085. mp->mp_upper -= delta;
  7086. node = NODEPTR(mp, indx);
  7087. }
  7088. /* But even if no shift was needed, update ksize */
  7089. if (node->mn_ksize != key->mv_size)
  7090. node->mn_ksize = key->mv_size;
  7091. if (key->mv_size)
  7092. memcpy(NODEKEY(node), key->mv_data, key->mv_size);
  7093. return MDB_SUCCESS;
  7094. }
  7095. static void
  7096. mdb_cursor_copy(const MDB_cursor *csrc, MDB_cursor *cdst);
  7097. /** Perform \b act while tracking temporary cursor \b mn */
  7098. #define WITH_CURSOR_TRACKING(mn, act) do { \
  7099. MDB_cursor dummy, *tracked, **tp = &(mn).mc_txn->mt_cursors[mn.mc_dbi]; \
  7100. if ((mn).mc_flags & C_SUB) { \
  7101. dummy.mc_flags = C_INITIALIZED; \
  7102. dummy.mc_xcursor = (MDB_xcursor *)&(mn); \
  7103. tracked = &dummy; \
  7104. } else { \
  7105. tracked = &(mn); \
  7106. } \
  7107. tracked->mc_next = *tp; \
  7108. *tp = tracked; \
  7109. { act; } \
  7110. *tp = tracked->mc_next; \
  7111. } while (0)
  7112. /** Move a node from csrc to cdst.
  7113. */
  7114. static int
  7115. mdb_node_move(MDB_cursor *csrc, MDB_cursor *cdst, int fromleft)
  7116. {
  7117. MDB_node *srcnode;
  7118. MDB_val key, data;
  7119. pgno_t srcpg;
  7120. MDB_cursor mn;
  7121. int rc;
  7122. unsigned short flags;
  7123. DKBUF;
  7124. /* Mark src and dst as dirty. */
  7125. if ((rc = mdb_page_touch(csrc)) ||
  7126. (rc = mdb_page_touch(cdst)))
  7127. return rc;
  7128. if (IS_LEAF2(csrc->mc_pg[csrc->mc_top])) {
  7129. key.mv_size = csrc->mc_db->md_pad;
  7130. key.mv_data = LEAF2KEY(csrc->mc_pg[csrc->mc_top], csrc->mc_ki[csrc->mc_top], key.mv_size);
  7131. data.mv_size = 0;
  7132. data.mv_data = NULL;
  7133. srcpg = 0;
  7134. flags = 0;
  7135. } else {
  7136. srcnode = NODEPTR(csrc->mc_pg[csrc->mc_top], csrc->mc_ki[csrc->mc_top]);
  7137. mdb_cassert(csrc, !((size_t)srcnode & 1));
  7138. srcpg = NODEPGNO(srcnode);
  7139. flags = srcnode->mn_flags;
  7140. if (csrc->mc_ki[csrc->mc_top] == 0 && IS_BRANCH(csrc->mc_pg[csrc->mc_top])) {
  7141. unsigned int snum = csrc->mc_snum;
  7142. MDB_node *s2;
  7143. /* must find the lowest key below src */
  7144. rc = mdb_page_search_lowest(csrc);
  7145. if (rc)
  7146. return rc;
  7147. if (IS_LEAF2(csrc->mc_pg[csrc->mc_top])) {
  7148. key.mv_size = csrc->mc_db->md_pad;
  7149. key.mv_data = LEAF2KEY(csrc->mc_pg[csrc->mc_top], 0, key.mv_size);
  7150. } else {
  7151. s2 = NODEPTR(csrc->mc_pg[csrc->mc_top], 0);
  7152. key.mv_size = NODEKSZ(s2);
  7153. key.mv_data = NODEKEY(s2);
  7154. }
  7155. csrc->mc_snum = snum--;
  7156. csrc->mc_top = snum;
  7157. } else {
  7158. key.mv_size = NODEKSZ(srcnode);
  7159. key.mv_data = NODEKEY(srcnode);
  7160. }
  7161. data.mv_size = NODEDSZ(srcnode);
  7162. data.mv_data = NODEDATA(srcnode);
  7163. }
  7164. mn.mc_xcursor = NULL;
  7165. if (IS_BRANCH(cdst->mc_pg[cdst->mc_top]) && cdst->mc_ki[cdst->mc_top] == 0) {
  7166. unsigned int snum = cdst->mc_snum;
  7167. MDB_node *s2;
  7168. MDB_val bkey;
  7169. /* must find the lowest key below dst */
  7170. mdb_cursor_copy(cdst, &mn);
  7171. rc = mdb_page_search_lowest(&mn);
  7172. if (rc)
  7173. return rc;
  7174. if (IS_LEAF2(mn.mc_pg[mn.mc_top])) {
  7175. bkey.mv_size = mn.mc_db->md_pad;
  7176. bkey.mv_data = LEAF2KEY(mn.mc_pg[mn.mc_top], 0, bkey.mv_size);
  7177. } else {
  7178. s2 = NODEPTR(mn.mc_pg[mn.mc_top], 0);
  7179. bkey.mv_size = NODEKSZ(s2);
  7180. bkey.mv_data = NODEKEY(s2);
  7181. }
  7182. mn.mc_snum = snum--;
  7183. mn.mc_top = snum;
  7184. mn.mc_ki[snum] = 0;
  7185. rc = mdb_update_key(&mn, &bkey);
  7186. if (rc)
  7187. return rc;
  7188. }
  7189. DPRINTF(("moving %s node %u [%s] on page %"Z"u to node %u on page %"Z"u",
  7190. IS_LEAF(csrc->mc_pg[csrc->mc_top]) ? "leaf" : "branch",
  7191. csrc->mc_ki[csrc->mc_top],
  7192. DKEY(&key),
  7193. csrc->mc_pg[csrc->mc_top]->mp_pgno,
  7194. cdst->mc_ki[cdst->mc_top], cdst->mc_pg[cdst->mc_top]->mp_pgno));
  7195. /* Add the node to the destination page.
  7196. */
  7197. rc = mdb_node_add(cdst, cdst->mc_ki[cdst->mc_top], &key, &data, srcpg, flags);
  7198. if (rc != MDB_SUCCESS)
  7199. return rc;
  7200. /* Delete the node from the source page.
  7201. */
  7202. mdb_node_del(csrc, key.mv_size);
  7203. {
  7204. /* Adjust other cursors pointing to mp */
  7205. MDB_cursor *m2, *m3;
  7206. MDB_dbi dbi = csrc->mc_dbi;
  7207. MDB_page *mpd, *mps;
  7208. mps = csrc->mc_pg[csrc->mc_top];
  7209. /* If we're adding on the left, bump others up */
  7210. if (fromleft) {
  7211. mpd = cdst->mc_pg[csrc->mc_top];
  7212. for (m2 = csrc->mc_txn->mt_cursors[dbi]; m2; m2=m2->mc_next) {
  7213. if (csrc->mc_flags & C_SUB)
  7214. m3 = &m2->mc_xcursor->mx_cursor;
  7215. else
  7216. m3 = m2;
  7217. if (!(m3->mc_flags & C_INITIALIZED) || m3->mc_top < csrc->mc_top)
  7218. continue;
  7219. if (m3 != cdst &&
  7220. m3->mc_pg[csrc->mc_top] == mpd &&
  7221. m3->mc_ki[csrc->mc_top] >= cdst->mc_ki[csrc->mc_top]) {
  7222. m3->mc_ki[csrc->mc_top]++;
  7223. }
  7224. if (m3 !=csrc &&
  7225. m3->mc_pg[csrc->mc_top] == mps &&
  7226. m3->mc_ki[csrc->mc_top] == csrc->mc_ki[csrc->mc_top]) {
  7227. m3->mc_pg[csrc->mc_top] = cdst->mc_pg[cdst->mc_top];
  7228. m3->mc_ki[csrc->mc_top] = cdst->mc_ki[cdst->mc_top];
  7229. m3->mc_ki[csrc->mc_top-1]++;
  7230. }
  7231. if (IS_LEAF(mps))
  7232. XCURSOR_REFRESH(m3, csrc->mc_top, m3->mc_pg[csrc->mc_top]);
  7233. }
  7234. } else
  7235. /* Adding on the right, bump others down */
  7236. {
  7237. for (m2 = csrc->mc_txn->mt_cursors[dbi]; m2; m2=m2->mc_next) {
  7238. if (csrc->mc_flags & C_SUB)
  7239. m3 = &m2->mc_xcursor->mx_cursor;
  7240. else
  7241. m3 = m2;
  7242. if (m3 == csrc) continue;
  7243. if (!(m3->mc_flags & C_INITIALIZED) || m3->mc_top < csrc->mc_top)
  7244. continue;
  7245. if (m3->mc_pg[csrc->mc_top] == mps) {
  7246. if (!m3->mc_ki[csrc->mc_top]) {
  7247. m3->mc_pg[csrc->mc_top] = cdst->mc_pg[cdst->mc_top];
  7248. m3->mc_ki[csrc->mc_top] = cdst->mc_ki[cdst->mc_top];
  7249. m3->mc_ki[csrc->mc_top-1]--;
  7250. } else {
  7251. m3->mc_ki[csrc->mc_top]--;
  7252. }
  7253. if (IS_LEAF(mps))
  7254. XCURSOR_REFRESH(m3, csrc->mc_top, m3->mc_pg[csrc->mc_top]);
  7255. }
  7256. }
  7257. }
  7258. }
  7259. /* Update the parent separators.
  7260. */
  7261. if (csrc->mc_ki[csrc->mc_top] == 0) {
  7262. if (csrc->mc_ki[csrc->mc_top-1] != 0) {
  7263. if (IS_LEAF2(csrc->mc_pg[csrc->mc_top])) {
  7264. key.mv_data = LEAF2KEY(csrc->mc_pg[csrc->mc_top], 0, key.mv_size);
  7265. } else {
  7266. srcnode = NODEPTR(csrc->mc_pg[csrc->mc_top], 0);
  7267. key.mv_size = NODEKSZ(srcnode);
  7268. key.mv_data = NODEKEY(srcnode);
  7269. }
  7270. DPRINTF(("update separator for source page %"Z"u to [%s]",
  7271. csrc->mc_pg[csrc->mc_top]->mp_pgno, DKEY(&key)));
  7272. mdb_cursor_copy(csrc, &mn);
  7273. mn.mc_snum--;
  7274. mn.mc_top--;
  7275. /* We want mdb_rebalance to find mn when doing fixups */
  7276. WITH_CURSOR_TRACKING(mn,
  7277. rc = mdb_update_key(&mn, &key));
  7278. if (rc)
  7279. return rc;
  7280. }
  7281. if (IS_BRANCH(csrc->mc_pg[csrc->mc_top])) {
  7282. MDB_val nullkey;
  7283. indx_t ix = csrc->mc_ki[csrc->mc_top];
  7284. nullkey.mv_size = 0;
  7285. csrc->mc_ki[csrc->mc_top] = 0;
  7286. rc = mdb_update_key(csrc, &nullkey);
  7287. csrc->mc_ki[csrc->mc_top] = ix;
  7288. mdb_cassert(csrc, rc == MDB_SUCCESS);
  7289. }
  7290. }
  7291. if (cdst->mc_ki[cdst->mc_top] == 0) {
  7292. if (cdst->mc_ki[cdst->mc_top-1] != 0) {
  7293. if (IS_LEAF2(csrc->mc_pg[csrc->mc_top])) {
  7294. key.mv_data = LEAF2KEY(cdst->mc_pg[cdst->mc_top], 0, key.mv_size);
  7295. } else {
  7296. srcnode = NODEPTR(cdst->mc_pg[cdst->mc_top], 0);
  7297. key.mv_size = NODEKSZ(srcnode);
  7298. key.mv_data = NODEKEY(srcnode);
  7299. }
  7300. DPRINTF(("update separator for destination page %"Z"u to [%s]",
  7301. cdst->mc_pg[cdst->mc_top]->mp_pgno, DKEY(&key)));
  7302. mdb_cursor_copy(cdst, &mn);
  7303. mn.mc_snum--;
  7304. mn.mc_top--;
  7305. /* We want mdb_rebalance to find mn when doing fixups */
  7306. WITH_CURSOR_TRACKING(mn,
  7307. rc = mdb_update_key(&mn, &key));
  7308. if (rc)
  7309. return rc;
  7310. }
  7311. if (IS_BRANCH(cdst->mc_pg[cdst->mc_top])) {
  7312. MDB_val nullkey;
  7313. indx_t ix = cdst->mc_ki[cdst->mc_top];
  7314. nullkey.mv_size = 0;
  7315. cdst->mc_ki[cdst->mc_top] = 0;
  7316. rc = mdb_update_key(cdst, &nullkey);
  7317. cdst->mc_ki[cdst->mc_top] = ix;
  7318. mdb_cassert(cdst, rc == MDB_SUCCESS);
  7319. }
  7320. }
  7321. return MDB_SUCCESS;
  7322. }
  7323. /** Merge one page into another.
  7324. * The nodes from the page pointed to by \b csrc will
  7325. * be copied to the page pointed to by \b cdst and then
  7326. * the \b csrc page will be freed.
  7327. * @param[in] csrc Cursor pointing to the source page.
  7328. * @param[in] cdst Cursor pointing to the destination page.
  7329. * @return 0 on success, non-zero on failure.
  7330. */
  7331. static int
  7332. mdb_page_merge(MDB_cursor *csrc, MDB_cursor *cdst)
  7333. {
  7334. MDB_page *psrc, *pdst;
  7335. MDB_node *srcnode;
  7336. MDB_val key, data;
  7337. unsigned nkeys;
  7338. int rc;
  7339. indx_t i, j;
  7340. psrc = csrc->mc_pg[csrc->mc_top];
  7341. pdst = cdst->mc_pg[cdst->mc_top];
  7342. DPRINTF(("merging page %"Z"u into %"Z"u", psrc->mp_pgno, pdst->mp_pgno));
  7343. mdb_cassert(csrc, csrc->mc_snum > 1); /* can't merge root page */
  7344. mdb_cassert(csrc, cdst->mc_snum > 1);
  7345. /* Mark dst as dirty. */
  7346. if ((rc = mdb_page_touch(cdst)))
  7347. return rc;
  7348. /* get dst page again now that we've touched it. */
  7349. pdst = cdst->mc_pg[cdst->mc_top];
  7350. /* Move all nodes from src to dst.
  7351. */
  7352. j = nkeys = NUMKEYS(pdst);
  7353. if (IS_LEAF2(psrc)) {
  7354. key.mv_size = csrc->mc_db->md_pad;
  7355. key.mv_data = METADATA(psrc);
  7356. for (i = 0; i < NUMKEYS(psrc); i++, j++) {
  7357. rc = mdb_node_add(cdst, j, &key, NULL, 0, 0);
  7358. if (rc != MDB_SUCCESS)
  7359. return rc;
  7360. key.mv_data = (char *)key.mv_data + key.mv_size;
  7361. }
  7362. } else {
  7363. for (i = 0; i < NUMKEYS(psrc); i++, j++) {
  7364. srcnode = NODEPTR(psrc, i);
  7365. if (i == 0 && IS_BRANCH(psrc)) {
  7366. MDB_cursor mn;
  7367. MDB_node *s2;
  7368. mdb_cursor_copy(csrc, &mn);
  7369. mn.mc_xcursor = NULL;
  7370. /* must find the lowest key below src */
  7371. rc = mdb_page_search_lowest(&mn);
  7372. if (rc)
  7373. return rc;
  7374. if (IS_LEAF2(mn.mc_pg[mn.mc_top])) {
  7375. key.mv_size = mn.mc_db->md_pad;
  7376. key.mv_data = LEAF2KEY(mn.mc_pg[mn.mc_top], 0, key.mv_size);
  7377. } else {
  7378. s2 = NODEPTR(mn.mc_pg[mn.mc_top], 0);
  7379. key.mv_size = NODEKSZ(s2);
  7380. key.mv_data = NODEKEY(s2);
  7381. }
  7382. } else {
  7383. key.mv_size = srcnode->mn_ksize;
  7384. key.mv_data = NODEKEY(srcnode);
  7385. }
  7386. data.mv_size = NODEDSZ(srcnode);
  7387. data.mv_data = NODEDATA(srcnode);
  7388. rc = mdb_node_add(cdst, j, &key, &data, NODEPGNO(srcnode), srcnode->mn_flags);
  7389. if (rc != MDB_SUCCESS)
  7390. return rc;
  7391. }
  7392. }
  7393. DPRINTF(("dst page %"Z"u now has %u keys (%.1f%% filled)",
  7394. pdst->mp_pgno, NUMKEYS(pdst),
  7395. (float)PAGEFILL(cdst->mc_txn->mt_env, pdst) / 10));
  7396. /* Unlink the src page from parent and add to free list.
  7397. */
  7398. csrc->mc_top--;
  7399. mdb_node_del(csrc, 0);
  7400. if (csrc->mc_ki[csrc->mc_top] == 0) {
  7401. key.mv_size = 0;
  7402. rc = mdb_update_key(csrc, &key);
  7403. if (rc) {
  7404. csrc->mc_top++;
  7405. return rc;
  7406. }
  7407. }
  7408. csrc->mc_top++;
  7409. psrc = csrc->mc_pg[csrc->mc_top];
  7410. /* If not operating on FreeDB, allow this page to be reused
  7411. * in this txn. Otherwise just add to free list.
  7412. */
  7413. rc = mdb_page_loose(csrc, psrc);
  7414. if (rc)
  7415. return rc;
  7416. if (IS_LEAF(psrc))
  7417. csrc->mc_db->md_leaf_pages--;
  7418. else
  7419. csrc->mc_db->md_branch_pages--;
  7420. {
  7421. /* Adjust other cursors pointing to mp */
  7422. MDB_cursor *m2, *m3;
  7423. MDB_dbi dbi = csrc->mc_dbi;
  7424. unsigned int top = csrc->mc_top;
  7425. for (m2 = csrc->mc_txn->mt_cursors[dbi]; m2; m2=m2->mc_next) {
  7426. if (csrc->mc_flags & C_SUB)
  7427. m3 = &m2->mc_xcursor->mx_cursor;
  7428. else
  7429. m3 = m2;
  7430. if (m3 == csrc) continue;
  7431. if (m3->mc_snum < csrc->mc_snum) continue;
  7432. if (m3->mc_pg[top] == psrc) {
  7433. m3->mc_pg[top] = pdst;
  7434. m3->mc_ki[top] += nkeys;
  7435. m3->mc_ki[top-1] = cdst->mc_ki[top-1];
  7436. } else if (m3->mc_pg[top-1] == csrc->mc_pg[top-1] &&
  7437. m3->mc_ki[top-1] > csrc->mc_ki[top-1]) {
  7438. m3->mc_ki[top-1]--;
  7439. }
  7440. if (IS_LEAF(psrc))
  7441. XCURSOR_REFRESH(m3, top, m3->mc_pg[top]);
  7442. }
  7443. }
  7444. {
  7445. unsigned int snum = cdst->mc_snum;
  7446. uint16_t depth = cdst->mc_db->md_depth;
  7447. mdb_cursor_pop(cdst);
  7448. rc = mdb_rebalance(cdst);
  7449. /* Did the tree height change? */
  7450. if (depth != cdst->mc_db->md_depth)
  7451. snum += cdst->mc_db->md_depth - depth;
  7452. cdst->mc_snum = snum;
  7453. cdst->mc_top = snum-1;
  7454. }
  7455. return rc;
  7456. }
  7457. /** Copy the contents of a cursor.
  7458. * @param[in] csrc The cursor to copy from.
  7459. * @param[out] cdst The cursor to copy to.
  7460. */
  7461. static void
  7462. mdb_cursor_copy(const MDB_cursor *csrc, MDB_cursor *cdst)
  7463. {
  7464. unsigned int i;
  7465. cdst->mc_txn = csrc->mc_txn;
  7466. cdst->mc_dbi = csrc->mc_dbi;
  7467. cdst->mc_db = csrc->mc_db;
  7468. cdst->mc_dbx = csrc->mc_dbx;
  7469. cdst->mc_snum = csrc->mc_snum;
  7470. cdst->mc_top = csrc->mc_top;
  7471. cdst->mc_flags = csrc->mc_flags;
  7472. for (i=0; i<csrc->mc_snum; i++) {
  7473. cdst->mc_pg[i] = csrc->mc_pg[i];
  7474. cdst->mc_ki[i] = csrc->mc_ki[i];
  7475. }
  7476. }
  7477. /** Rebalance the tree after a delete operation.
  7478. * @param[in] mc Cursor pointing to the page where rebalancing
  7479. * should begin.
  7480. * @return 0 on success, non-zero on failure.
  7481. */
  7482. static int
  7483. mdb_rebalance(MDB_cursor *mc)
  7484. {
  7485. MDB_node *node;
  7486. int rc, fromleft;
  7487. unsigned int ptop, minkeys, thresh;
  7488. MDB_cursor mn;
  7489. indx_t oldki;
  7490. if (IS_BRANCH(mc->mc_pg[mc->mc_top])) {
  7491. minkeys = 2;
  7492. thresh = 1;
  7493. } else {
  7494. minkeys = 1;
  7495. thresh = FILL_THRESHOLD;
  7496. }
  7497. DPRINTF(("rebalancing %s page %"Z"u (has %u keys, %.1f%% full)",
  7498. IS_LEAF(mc->mc_pg[mc->mc_top]) ? "leaf" : "branch",
  7499. mdb_dbg_pgno(mc->mc_pg[mc->mc_top]), NUMKEYS(mc->mc_pg[mc->mc_top]),
  7500. (float)PAGEFILL(mc->mc_txn->mt_env, mc->mc_pg[mc->mc_top]) / 10));
  7501. if (PAGEFILL(mc->mc_txn->mt_env, mc->mc_pg[mc->mc_top]) >= thresh &&
  7502. NUMKEYS(mc->mc_pg[mc->mc_top]) >= minkeys) {
  7503. DPRINTF(("no need to rebalance page %"Z"u, above fill threshold",
  7504. mdb_dbg_pgno(mc->mc_pg[mc->mc_top])));
  7505. return MDB_SUCCESS;
  7506. }
  7507. if (mc->mc_snum < 2) {
  7508. MDB_page *mp = mc->mc_pg[0];
  7509. if (IS_SUBP(mp)) {
  7510. DPUTS("Can't rebalance a subpage, ignoring");
  7511. return MDB_SUCCESS;
  7512. }
  7513. if (NUMKEYS(mp) == 0) {
  7514. DPUTS("tree is completely empty");
  7515. mc->mc_db->md_root = P_INVALID;
  7516. mc->mc_db->md_depth = 0;
  7517. mc->mc_db->md_leaf_pages = 0;
  7518. rc = mdb_midl_append(&mc->mc_txn->mt_free_pgs, mp->mp_pgno);
  7519. if (rc)
  7520. return rc;
  7521. /* Adjust cursors pointing to mp */
  7522. mc->mc_snum = 0;
  7523. mc->mc_top = 0;
  7524. mc->mc_flags &= ~C_INITIALIZED;
  7525. {
  7526. MDB_cursor *m2, *m3;
  7527. MDB_dbi dbi = mc->mc_dbi;
  7528. for (m2 = mc->mc_txn->mt_cursors[dbi]; m2; m2=m2->mc_next) {
  7529. if (mc->mc_flags & C_SUB)
  7530. m3 = &m2->mc_xcursor->mx_cursor;
  7531. else
  7532. m3 = m2;
  7533. if (!(m3->mc_flags & C_INITIALIZED) || (m3->mc_snum < mc->mc_snum))
  7534. continue;
  7535. if (m3->mc_pg[0] == mp) {
  7536. m3->mc_snum = 0;
  7537. m3->mc_top = 0;
  7538. m3->mc_flags &= ~C_INITIALIZED;
  7539. }
  7540. }
  7541. }
  7542. } else if (IS_BRANCH(mp) && NUMKEYS(mp) == 1) {
  7543. int i;
  7544. DPUTS("collapsing root page!");
  7545. rc = mdb_midl_append(&mc->mc_txn->mt_free_pgs, mp->mp_pgno);
  7546. if (rc)
  7547. return rc;
  7548. mc->mc_db->md_root = NODEPGNO(NODEPTR(mp, 0));
  7549. rc = mdb_page_get(mc, mc->mc_db->md_root, &mc->mc_pg[0], NULL);
  7550. if (rc)
  7551. return rc;
  7552. mc->mc_db->md_depth--;
  7553. mc->mc_db->md_branch_pages--;
  7554. mc->mc_ki[0] = mc->mc_ki[1];
  7555. for (i = 1; i<mc->mc_db->md_depth; i++) {
  7556. mc->mc_pg[i] = mc->mc_pg[i+1];
  7557. mc->mc_ki[i] = mc->mc_ki[i+1];
  7558. }
  7559. {
  7560. /* Adjust other cursors pointing to mp */
  7561. MDB_cursor *m2, *m3;
  7562. MDB_dbi dbi = mc->mc_dbi;
  7563. for (m2 = mc->mc_txn->mt_cursors[dbi]; m2; m2=m2->mc_next) {
  7564. if (mc->mc_flags & C_SUB)
  7565. m3 = &m2->mc_xcursor->mx_cursor;
  7566. else
  7567. m3 = m2;
  7568. if (m3 == mc) continue;
  7569. if (!(m3->mc_flags & C_INITIALIZED))
  7570. continue;
  7571. if (m3->mc_pg[0] == mp) {
  7572. for (i=0; i<mc->mc_db->md_depth; i++) {
  7573. m3->mc_pg[i] = m3->mc_pg[i+1];
  7574. m3->mc_ki[i] = m3->mc_ki[i+1];
  7575. }
  7576. m3->mc_snum--;
  7577. m3->mc_top--;
  7578. }
  7579. }
  7580. }
  7581. } else
  7582. DPUTS("root page doesn't need rebalancing");
  7583. return MDB_SUCCESS;
  7584. }
  7585. /* The parent (branch page) must have at least 2 pointers,
  7586. * otherwise the tree is invalid.
  7587. */
  7588. ptop = mc->mc_top-1;
  7589. mdb_cassert(mc, NUMKEYS(mc->mc_pg[ptop]) > 1);
  7590. /* Leaf page fill factor is below the threshold.
  7591. * Try to move keys from left or right neighbor, or
  7592. * merge with a neighbor page.
  7593. */
  7594. /* Find neighbors.
  7595. */
  7596. mdb_cursor_copy(mc, &mn);
  7597. mn.mc_xcursor = NULL;
  7598. oldki = mc->mc_ki[mc->mc_top];
  7599. if (mc->mc_ki[ptop] == 0) {
  7600. /* We're the leftmost leaf in our parent.
  7601. */
  7602. DPUTS("reading right neighbor");
  7603. mn.mc_ki[ptop]++;
  7604. node = NODEPTR(mc->mc_pg[ptop], mn.mc_ki[ptop]);
  7605. rc = mdb_page_get(mc, NODEPGNO(node), &mn.mc_pg[mn.mc_top], NULL);
  7606. if (rc)
  7607. return rc;
  7608. mn.mc_ki[mn.mc_top] = 0;
  7609. mc->mc_ki[mc->mc_top] = NUMKEYS(mc->mc_pg[mc->mc_top]);
  7610. fromleft = 0;
  7611. } else {
  7612. /* There is at least one neighbor to the left.
  7613. */
  7614. DPUTS("reading left neighbor");
  7615. mn.mc_ki[ptop]--;
  7616. node = NODEPTR(mc->mc_pg[ptop], mn.mc_ki[ptop]);
  7617. rc = mdb_page_get(mc, NODEPGNO(node), &mn.mc_pg[mn.mc_top], NULL);
  7618. if (rc)
  7619. return rc;
  7620. mn.mc_ki[mn.mc_top] = NUMKEYS(mn.mc_pg[mn.mc_top]) - 1;
  7621. mc->mc_ki[mc->mc_top] = 0;
  7622. fromleft = 1;
  7623. }
  7624. DPRINTF(("found neighbor page %"Z"u (%u keys, %.1f%% full)",
  7625. mn.mc_pg[mn.mc_top]->mp_pgno, NUMKEYS(mn.mc_pg[mn.mc_top]),
  7626. (float)PAGEFILL(mc->mc_txn->mt_env, mn.mc_pg[mn.mc_top]) / 10));
  7627. /* If the neighbor page is above threshold and has enough keys,
  7628. * move one key from it. Otherwise we should try to merge them.
  7629. * (A branch page must never have less than 2 keys.)
  7630. */
  7631. if (PAGEFILL(mc->mc_txn->mt_env, mn.mc_pg[mn.mc_top]) >= thresh && NUMKEYS(mn.mc_pg[mn.mc_top]) > minkeys) {
  7632. rc = mdb_node_move(&mn, mc, fromleft);
  7633. if (fromleft) {
  7634. /* if we inserted on left, bump position up */
  7635. oldki++;
  7636. }
  7637. } else {
  7638. if (!fromleft) {
  7639. rc = mdb_page_merge(&mn, mc);
  7640. } else {
  7641. oldki += NUMKEYS(mn.mc_pg[mn.mc_top]);
  7642. mn.mc_ki[mn.mc_top] += mc->mc_ki[mn.mc_top] + 1;
  7643. /* We want mdb_rebalance to find mn when doing fixups */
  7644. WITH_CURSOR_TRACKING(mn,
  7645. rc = mdb_page_merge(mc, &mn));
  7646. mdb_cursor_copy(&mn, mc);
  7647. }
  7648. mc->mc_flags &= ~C_EOF;
  7649. }
  7650. mc->mc_ki[mc->mc_top] = oldki;
  7651. return rc;
  7652. }
  7653. /** Complete a delete operation started by #mdb_cursor_del(). */
  7654. static int
  7655. mdb_cursor_del0(MDB_cursor *mc)
  7656. {
  7657. int rc;
  7658. MDB_page *mp;
  7659. indx_t ki;
  7660. unsigned int nkeys;
  7661. MDB_cursor *m2, *m3;
  7662. MDB_dbi dbi = mc->mc_dbi;
  7663. ki = mc->mc_ki[mc->mc_top];
  7664. mp = mc->mc_pg[mc->mc_top];
  7665. mdb_node_del(mc, mc->mc_db->md_pad);
  7666. mc->mc_db->md_entries--;
  7667. {
  7668. /* Adjust other cursors pointing to mp */
  7669. for (m2 = mc->mc_txn->mt_cursors[dbi]; m2; m2=m2->mc_next) {
  7670. m3 = (mc->mc_flags & C_SUB) ? &m2->mc_xcursor->mx_cursor : m2;
  7671. if (! (m2->mc_flags & m3->mc_flags & C_INITIALIZED))
  7672. continue;
  7673. if (m3 == mc || m3->mc_snum < mc->mc_snum)
  7674. continue;
  7675. if (m3->mc_pg[mc->mc_top] == mp) {
  7676. if (m3->mc_ki[mc->mc_top] == ki) {
  7677. m3->mc_flags |= C_DEL;
  7678. if (mc->mc_db->md_flags & MDB_DUPSORT) {
  7679. /* Sub-cursor referred into dataset which is gone */
  7680. m3->mc_xcursor->mx_cursor.mc_flags &= ~(C_INITIALIZED|C_EOF);
  7681. }
  7682. continue;
  7683. } else if (m3->mc_ki[mc->mc_top] > ki) {
  7684. m3->mc_ki[mc->mc_top]--;
  7685. }
  7686. XCURSOR_REFRESH(m3, mc->mc_top, mp);
  7687. }
  7688. }
  7689. }
  7690. rc = mdb_rebalance(mc);
  7691. if (rc == MDB_SUCCESS) {
  7692. /* DB is totally empty now, just bail out.
  7693. * Other cursors adjustments were already done
  7694. * by mdb_rebalance and aren't needed here.
  7695. */
  7696. if (!mc->mc_snum)
  7697. return rc;
  7698. mp = mc->mc_pg[mc->mc_top];
  7699. nkeys = NUMKEYS(mp);
  7700. /* Adjust other cursors pointing to mp */
  7701. for (m2 = mc->mc_txn->mt_cursors[dbi]; !rc && m2; m2=m2->mc_next) {
  7702. m3 = (mc->mc_flags & C_SUB) ? &m2->mc_xcursor->mx_cursor : m2;
  7703. if (! (m2->mc_flags & m3->mc_flags & C_INITIALIZED))
  7704. continue;
  7705. if (m3->mc_snum < mc->mc_snum)
  7706. continue;
  7707. if (m3->mc_pg[mc->mc_top] == mp) {
  7708. /* if m3 points past last node in page, find next sibling */
  7709. if (m3->mc_ki[mc->mc_top] >= mc->mc_ki[mc->mc_top]) {
  7710. if (m3->mc_ki[mc->mc_top] >= nkeys) {
  7711. rc = mdb_cursor_sibling(m3, 1);
  7712. if (rc == MDB_NOTFOUND) {
  7713. m3->mc_flags |= C_EOF;
  7714. rc = MDB_SUCCESS;
  7715. continue;
  7716. }
  7717. }
  7718. if (mc->mc_db->md_flags & MDB_DUPSORT) {
  7719. MDB_node *node = NODEPTR(m3->mc_pg[m3->mc_top], m3->mc_ki[m3->mc_top]);
  7720. /* If this node has dupdata, it may need to be reinited
  7721. * because its data has moved.
  7722. * If the xcursor was not initd it must be reinited.
  7723. * Else if node points to a subDB, nothing is needed.
  7724. * Else (xcursor was initd, not a subDB) needs mc_pg[0] reset.
  7725. */
  7726. if (node->mn_flags & F_DUPDATA) {
  7727. if (m3->mc_xcursor->mx_cursor.mc_flags & C_INITIALIZED) {
  7728. if (!(node->mn_flags & F_SUBDATA))
  7729. m3->mc_xcursor->mx_cursor.mc_pg[0] = NODEDATA(node);
  7730. } else {
  7731. mdb_xcursor_init1(m3, node);
  7732. m3->mc_xcursor->mx_cursor.mc_flags |= C_DEL;
  7733. }
  7734. }
  7735. }
  7736. }
  7737. }
  7738. }
  7739. mc->mc_flags |= C_DEL;
  7740. }
  7741. if (rc)
  7742. mc->mc_txn->mt_flags |= MDB_TXN_ERROR;
  7743. return rc;
  7744. }
  7745. int
  7746. mdb_del(MDB_txn *txn, MDB_dbi dbi,
  7747. MDB_val *key, MDB_val *data)
  7748. {
  7749. if (!key || !TXN_DBI_EXIST(txn, dbi, DB_USRVALID))
  7750. return EINVAL;
  7751. if (txn->mt_flags & (MDB_TXN_RDONLY|MDB_TXN_BLOCKED))
  7752. return (txn->mt_flags & MDB_TXN_RDONLY) ? EACCES : MDB_BAD_TXN;
  7753. if (!F_ISSET(txn->mt_dbs[dbi].md_flags, MDB_DUPSORT)) {
  7754. /* must ignore any data */
  7755. data = NULL;
  7756. }
  7757. return mdb_del0(txn, dbi, key, data, 0);
  7758. }
  7759. static int
  7760. mdb_del0(MDB_txn *txn, MDB_dbi dbi,
  7761. MDB_val *key, MDB_val *data, unsigned flags)
  7762. {
  7763. MDB_cursor mc;
  7764. MDB_xcursor mx;
  7765. MDB_cursor_op op;
  7766. MDB_val rdata, *xdata;
  7767. int rc, exact = 0;
  7768. DKBUF;
  7769. DPRINTF(("====> delete db %u key [%s]", dbi, DKEY(key)));
  7770. mdb_cursor_init(&mc, txn, dbi, &mx);
  7771. if (data) {
  7772. op = MDB_GET_BOTH;
  7773. rdata = *data;
  7774. xdata = &rdata;
  7775. } else {
  7776. op = MDB_SET;
  7777. xdata = NULL;
  7778. flags |= MDB_NODUPDATA;
  7779. }
  7780. rc = mdb_cursor_set(&mc, key, xdata, op, &exact);
  7781. if (rc == 0) {
  7782. /* let mdb_page_split know about this cursor if needed:
  7783. * delete will trigger a rebalance; if it needs to move
  7784. * a node from one page to another, it will have to
  7785. * update the parent's separator key(s). If the new sepkey
  7786. * is larger than the current one, the parent page may
  7787. * run out of space, triggering a split. We need this
  7788. * cursor to be consistent until the end of the rebalance.
  7789. */
  7790. mc.mc_flags |= C_UNTRACK;
  7791. mc.mc_next = txn->mt_cursors[dbi];
  7792. txn->mt_cursors[dbi] = &mc;
  7793. rc = mdb_cursor_del(&mc, flags);
  7794. txn->mt_cursors[dbi] = mc.mc_next;
  7795. }
  7796. return rc;
  7797. }
  7798. /** Split a page and insert a new node.
  7799. * Set #MDB_TXN_ERROR on failure.
  7800. * @param[in,out] mc Cursor pointing to the page and desired insertion index.
  7801. * The cursor will be updated to point to the actual page and index where
  7802. * the node got inserted after the split.
  7803. * @param[in] newkey The key for the newly inserted node.
  7804. * @param[in] newdata The data for the newly inserted node.
  7805. * @param[in] newpgno The page number, if the new node is a branch node.
  7806. * @param[in] nflags The #NODE_ADD_FLAGS for the new node.
  7807. * @return 0 on success, non-zero on failure.
  7808. */
  7809. static int
  7810. mdb_page_split(MDB_cursor *mc, MDB_val *newkey, MDB_val *newdata, pgno_t newpgno,
  7811. unsigned int nflags)
  7812. {
  7813. unsigned int flags;
  7814. int rc = MDB_SUCCESS, new_root = 0, did_split = 0;
  7815. indx_t newindx;
  7816. pgno_t pgno = 0;
  7817. int i, j, split_indx, nkeys, pmax;
  7818. MDB_env *env = mc->mc_txn->mt_env;
  7819. MDB_node *node;
  7820. MDB_val sepkey, rkey, xdata, *rdata = &xdata;
  7821. MDB_page *copy = NULL;
  7822. MDB_page *mp, *rp, *pp;
  7823. int ptop;
  7824. MDB_cursor mn;
  7825. DKBUF;
  7826. mp = mc->mc_pg[mc->mc_top];
  7827. newindx = mc->mc_ki[mc->mc_top];
  7828. nkeys = NUMKEYS(mp);
  7829. DPRINTF(("-----> splitting %s page %"Z"u and adding [%s] at index %i/%i",
  7830. IS_LEAF(mp) ? "leaf" : "branch", mp->mp_pgno,
  7831. DKEY(newkey), mc->mc_ki[mc->mc_top], nkeys));
  7832. /* Create a right sibling. */
  7833. if ((rc = mdb_page_new(mc, mp->mp_flags, 1, &rp)))
  7834. return rc;
  7835. rp->mp_pad = mp->mp_pad;
  7836. DPRINTF(("new right sibling: page %"Z"u", rp->mp_pgno));
  7837. /* Usually when splitting the root page, the cursor
  7838. * height is 1. But when called from mdb_update_key,
  7839. * the cursor height may be greater because it walks
  7840. * up the stack while finding the branch slot to update.
  7841. */
  7842. if (mc->mc_top < 1) {
  7843. if ((rc = mdb_page_new(mc, P_BRANCH, 1, &pp)))
  7844. goto done;
  7845. /* shift current top to make room for new parent */
  7846. for (i=mc->mc_snum; i>0; i--) {
  7847. mc->mc_pg[i] = mc->mc_pg[i-1];
  7848. mc->mc_ki[i] = mc->mc_ki[i-1];
  7849. }
  7850. mc->mc_pg[0] = pp;
  7851. mc->mc_ki[0] = 0;
  7852. mc->mc_db->md_root = pp->mp_pgno;
  7853. DPRINTF(("root split! new root = %"Z"u", pp->mp_pgno));
  7854. new_root = mc->mc_db->md_depth++;
  7855. /* Add left (implicit) pointer. */
  7856. if ((rc = mdb_node_add(mc, 0, NULL, NULL, mp->mp_pgno, 0)) != MDB_SUCCESS) {
  7857. /* undo the pre-push */
  7858. mc->mc_pg[0] = mc->mc_pg[1];
  7859. mc->mc_ki[0] = mc->mc_ki[1];
  7860. mc->mc_db->md_root = mp->mp_pgno;
  7861. mc->mc_db->md_depth--;
  7862. goto done;
  7863. }
  7864. mc->mc_snum++;
  7865. mc->mc_top++;
  7866. ptop = 0;
  7867. } else {
  7868. ptop = mc->mc_top-1;
  7869. DPRINTF(("parent branch page is %"Z"u", mc->mc_pg[ptop]->mp_pgno));
  7870. }
  7871. mdb_cursor_copy(mc, &mn);
  7872. mn.mc_xcursor = NULL;
  7873. mn.mc_pg[mn.mc_top] = rp;
  7874. mn.mc_ki[ptop] = mc->mc_ki[ptop]+1;
  7875. if (nflags & MDB_APPEND) {
  7876. mn.mc_ki[mn.mc_top] = 0;
  7877. sepkey = *newkey;
  7878. split_indx = newindx;
  7879. nkeys = 0;
  7880. } else {
  7881. split_indx = (nkeys+1) / 2;
  7882. if (IS_LEAF2(rp)) {
  7883. char *split, *ins;
  7884. int x;
  7885. unsigned int lsize, rsize, ksize;
  7886. /* Move half of the keys to the right sibling */
  7887. x = mc->mc_ki[mc->mc_top] - split_indx;
  7888. ksize = mc->mc_db->md_pad;
  7889. split = LEAF2KEY(mp, split_indx, ksize);
  7890. rsize = (nkeys - split_indx) * ksize;
  7891. lsize = (nkeys - split_indx) * sizeof(indx_t);
  7892. mp->mp_lower -= lsize;
  7893. rp->mp_lower += lsize;
  7894. mp->mp_upper += rsize - lsize;
  7895. rp->mp_upper -= rsize - lsize;
  7896. sepkey.mv_size = ksize;
  7897. if (newindx == split_indx) {
  7898. sepkey.mv_data = newkey->mv_data;
  7899. } else {
  7900. sepkey.mv_data = split;
  7901. }
  7902. if (x<0) {
  7903. ins = LEAF2KEY(mp, mc->mc_ki[mc->mc_top], ksize);
  7904. memcpy(rp->mp_ptrs, split, rsize);
  7905. sepkey.mv_data = rp->mp_ptrs;
  7906. memmove(ins+ksize, ins, (split_indx - mc->mc_ki[mc->mc_top]) * ksize);
  7907. memcpy(ins, newkey->mv_data, ksize);
  7908. mp->mp_lower += sizeof(indx_t);
  7909. mp->mp_upper -= ksize - sizeof(indx_t);
  7910. } else {
  7911. if (x)
  7912. memcpy(rp->mp_ptrs, split, x * ksize);
  7913. ins = LEAF2KEY(rp, x, ksize);
  7914. memcpy(ins, newkey->mv_data, ksize);
  7915. memcpy(ins+ksize, split + x * ksize, rsize - x * ksize);
  7916. rp->mp_lower += sizeof(indx_t);
  7917. rp->mp_upper -= ksize - sizeof(indx_t);
  7918. mc->mc_ki[mc->mc_top] = x;
  7919. }
  7920. } else {
  7921. int psize, nsize, k;
  7922. /* Maximum free space in an empty page */
  7923. pmax = env->me_psize - PAGEHDRSZ;
  7924. if (IS_LEAF(mp))
  7925. nsize = mdb_leaf_size(env, newkey, newdata);
  7926. else
  7927. nsize = mdb_branch_size(env, newkey);
  7928. nsize = EVEN(nsize);
  7929. /* grab a page to hold a temporary copy */
  7930. copy = mdb_page_malloc(mc->mc_txn, 1);
  7931. if (copy == NULL) {
  7932. rc = ENOMEM;
  7933. goto done;
  7934. }
  7935. copy->mp_pgno = mp->mp_pgno;
  7936. copy->mp_flags = mp->mp_flags;
  7937. copy->mp_lower = (PAGEHDRSZ-PAGEBASE);
  7938. copy->mp_upper = env->me_psize - PAGEBASE;
  7939. /* prepare to insert */
  7940. for (i=0, j=0; i<nkeys; i++) {
  7941. if (i == newindx) {
  7942. copy->mp_ptrs[j++] = 0;
  7943. }
  7944. copy->mp_ptrs[j++] = mp->mp_ptrs[i];
  7945. }
  7946. /* When items are relatively large the split point needs
  7947. * to be checked, because being off-by-one will make the
  7948. * difference between success or failure in mdb_node_add.
  7949. *
  7950. * It's also relevant if a page happens to be laid out
  7951. * such that one half of its nodes are all "small" and
  7952. * the other half of its nodes are "large." If the new
  7953. * item is also "large" and falls on the half with
  7954. * "large" nodes, it also may not fit.
  7955. *
  7956. * As a final tweak, if the new item goes on the last
  7957. * spot on the page (and thus, onto the new page), bias
  7958. * the split so the new page is emptier than the old page.
  7959. * This yields better packing during sequential inserts.
  7960. */
  7961. if (nkeys < 20 || nsize > pmax/16 || newindx >= nkeys) {
  7962. /* Find split point */
  7963. psize = 0;
  7964. if (newindx <= split_indx || newindx >= nkeys) {
  7965. i = 0; j = 1;
  7966. k = newindx >= nkeys ? nkeys : split_indx+1+IS_LEAF(mp);
  7967. } else {
  7968. i = nkeys; j = -1;
  7969. k = split_indx-1;
  7970. }
  7971. for (; i!=k; i+=j) {
  7972. if (i == newindx) {
  7973. psize += nsize;
  7974. node = NULL;
  7975. } else {
  7976. node = (MDB_node *)((char *)mp + copy->mp_ptrs[i] + PAGEBASE);
  7977. psize += NODESIZE + NODEKSZ(node) + sizeof(indx_t);
  7978. if (IS_LEAF(mp)) {
  7979. if (F_ISSET(node->mn_flags, F_BIGDATA))
  7980. psize += sizeof(pgno_t);
  7981. else
  7982. psize += NODEDSZ(node);
  7983. }
  7984. psize = EVEN(psize);
  7985. }
  7986. if (psize > pmax || i == k-j) {
  7987. split_indx = i + (j<0);
  7988. break;
  7989. }
  7990. }
  7991. }
  7992. if (split_indx == newindx) {
  7993. sepkey.mv_size = newkey->mv_size;
  7994. sepkey.mv_data = newkey->mv_data;
  7995. } else {
  7996. node = (MDB_node *)((char *)mp + copy->mp_ptrs[split_indx] + PAGEBASE);
  7997. sepkey.mv_size = node->mn_ksize;
  7998. sepkey.mv_data = NODEKEY(node);
  7999. }
  8000. }
  8001. }
  8002. DPRINTF(("separator is %d [%s]", split_indx, DKEY(&sepkey)));
  8003. /* Copy separator key to the parent.
  8004. */
  8005. if (SIZELEFT(mn.mc_pg[ptop]) < mdb_branch_size(env, &sepkey)) {
  8006. int snum = mc->mc_snum;
  8007. mn.mc_snum--;
  8008. mn.mc_top--;
  8009. did_split = 1;
  8010. /* We want other splits to find mn when doing fixups */
  8011. WITH_CURSOR_TRACKING(mn,
  8012. rc = mdb_page_split(&mn, &sepkey, NULL, rp->mp_pgno, 0));
  8013. if (rc)
  8014. goto done;
  8015. /* root split? */
  8016. if (mc->mc_snum > snum) {
  8017. ptop++;
  8018. }
  8019. /* Right page might now have changed parent.
  8020. * Check if left page also changed parent.
  8021. */
  8022. if (mn.mc_pg[ptop] != mc->mc_pg[ptop] &&
  8023. mc->mc_ki[ptop] >= NUMKEYS(mc->mc_pg[ptop])) {
  8024. for (i=0; i<ptop; i++) {
  8025. mc->mc_pg[i] = mn.mc_pg[i];
  8026. mc->mc_ki[i] = mn.mc_ki[i];
  8027. }
  8028. mc->mc_pg[ptop] = mn.mc_pg[ptop];
  8029. if (mn.mc_ki[ptop]) {
  8030. mc->mc_ki[ptop] = mn.mc_ki[ptop] - 1;
  8031. } else {
  8032. /* find right page's left sibling */
  8033. mc->mc_ki[ptop] = mn.mc_ki[ptop];
  8034. mdb_cursor_sibling(mc, 0);
  8035. }
  8036. }
  8037. } else {
  8038. mn.mc_top--;
  8039. rc = mdb_node_add(&mn, mn.mc_ki[ptop], &sepkey, NULL, rp->mp_pgno, 0);
  8040. mn.mc_top++;
  8041. }
  8042. if (rc != MDB_SUCCESS) {
  8043. goto done;
  8044. }
  8045. if (nflags & MDB_APPEND) {
  8046. mc->mc_pg[mc->mc_top] = rp;
  8047. mc->mc_ki[mc->mc_top] = 0;
  8048. rc = mdb_node_add(mc, 0, newkey, newdata, newpgno, nflags);
  8049. if (rc)
  8050. goto done;
  8051. for (i=0; i<mc->mc_top; i++)
  8052. mc->mc_ki[i] = mn.mc_ki[i];
  8053. } else if (!IS_LEAF2(mp)) {
  8054. /* Move nodes */
  8055. mc->mc_pg[mc->mc_top] = rp;
  8056. i = split_indx;
  8057. j = 0;
  8058. do {
  8059. if (i == newindx) {
  8060. rkey.mv_data = newkey->mv_data;
  8061. rkey.mv_size = newkey->mv_size;
  8062. if (IS_LEAF(mp)) {
  8063. rdata = newdata;
  8064. } else
  8065. pgno = newpgno;
  8066. flags = nflags;
  8067. /* Update index for the new key. */
  8068. mc->mc_ki[mc->mc_top] = j;
  8069. } else {
  8070. node = (MDB_node *)((char *)mp + copy->mp_ptrs[i] + PAGEBASE);
  8071. rkey.mv_data = NODEKEY(node);
  8072. rkey.mv_size = node->mn_ksize;
  8073. if (IS_LEAF(mp)) {
  8074. xdata.mv_data = NODEDATA(node);
  8075. xdata.mv_size = NODEDSZ(node);
  8076. rdata = &xdata;
  8077. } else
  8078. pgno = NODEPGNO(node);
  8079. flags = node->mn_flags;
  8080. }
  8081. if (!IS_LEAF(mp) && j == 0) {
  8082. /* First branch index doesn't need key data. */
  8083. rkey.mv_size = 0;
  8084. }
  8085. rc = mdb_node_add(mc, j, &rkey, rdata, pgno, flags);
  8086. if (rc)
  8087. goto done;
  8088. if (i == nkeys) {
  8089. i = 0;
  8090. j = 0;
  8091. mc->mc_pg[mc->mc_top] = copy;
  8092. } else {
  8093. i++;
  8094. j++;
  8095. }
  8096. } while (i != split_indx);
  8097. nkeys = NUMKEYS(copy);
  8098. for (i=0; i<nkeys; i++)
  8099. mp->mp_ptrs[i] = copy->mp_ptrs[i];
  8100. mp->mp_lower = copy->mp_lower;
  8101. mp->mp_upper = copy->mp_upper;
  8102. memcpy(NODEPTR(mp, nkeys-1), NODEPTR(copy, nkeys-1),
  8103. env->me_psize - copy->mp_upper - PAGEBASE);
  8104. /* reset back to original page */
  8105. if (newindx < split_indx) {
  8106. mc->mc_pg[mc->mc_top] = mp;
  8107. } else {
  8108. mc->mc_pg[mc->mc_top] = rp;
  8109. mc->mc_ki[ptop]++;
  8110. /* Make sure mc_ki is still valid.
  8111. */
  8112. if (mn.mc_pg[ptop] != mc->mc_pg[ptop] &&
  8113. mc->mc_ki[ptop] >= NUMKEYS(mc->mc_pg[ptop])) {
  8114. for (i=0; i<=ptop; i++) {
  8115. mc->mc_pg[i] = mn.mc_pg[i];
  8116. mc->mc_ki[i] = mn.mc_ki[i];
  8117. }
  8118. }
  8119. }
  8120. if (nflags & MDB_RESERVE) {
  8121. node = NODEPTR(mc->mc_pg[mc->mc_top], mc->mc_ki[mc->mc_top]);
  8122. if (!(node->mn_flags & F_BIGDATA))
  8123. newdata->mv_data = NODEDATA(node);
  8124. }
  8125. } else {
  8126. if (newindx >= split_indx) {
  8127. mc->mc_pg[mc->mc_top] = rp;
  8128. mc->mc_ki[ptop]++;
  8129. /* Make sure mc_ki is still valid.
  8130. */
  8131. if (mn.mc_pg[ptop] != mc->mc_pg[ptop] &&
  8132. mc->mc_ki[ptop] >= NUMKEYS(mc->mc_pg[ptop])) {
  8133. for (i=0; i<=ptop; i++) {
  8134. mc->mc_pg[i] = mn.mc_pg[i];
  8135. mc->mc_ki[i] = mn.mc_ki[i];
  8136. }
  8137. }
  8138. }
  8139. }
  8140. {
  8141. /* Adjust other cursors pointing to mp */
  8142. MDB_cursor *m2, *m3;
  8143. MDB_dbi dbi = mc->mc_dbi;
  8144. nkeys = NUMKEYS(mp);
  8145. for (m2 = mc->mc_txn->mt_cursors[dbi]; m2; m2=m2->mc_next) {
  8146. if (mc->mc_flags & C_SUB)
  8147. m3 = &m2->mc_xcursor->mx_cursor;
  8148. else
  8149. m3 = m2;
  8150. if (m3 == mc)
  8151. continue;
  8152. if (!(m2->mc_flags & m3->mc_flags & C_INITIALIZED))
  8153. continue;
  8154. if (new_root) {
  8155. int k;
  8156. /* sub cursors may be on different DB */
  8157. if (m3->mc_pg[0] != mp)
  8158. continue;
  8159. /* root split */
  8160. for (k=new_root; k>=0; k--) {
  8161. m3->mc_ki[k+1] = m3->mc_ki[k];
  8162. m3->mc_pg[k+1] = m3->mc_pg[k];
  8163. }
  8164. if (m3->mc_ki[0] >= nkeys) {
  8165. m3->mc_ki[0] = 1;
  8166. } else {
  8167. m3->mc_ki[0] = 0;
  8168. }
  8169. m3->mc_pg[0] = mc->mc_pg[0];
  8170. m3->mc_snum++;
  8171. m3->mc_top++;
  8172. }
  8173. if (m3->mc_top >= mc->mc_top && m3->mc_pg[mc->mc_top] == mp) {
  8174. if (m3->mc_ki[mc->mc_top] >= newindx && !(nflags & MDB_SPLIT_REPLACE))
  8175. m3->mc_ki[mc->mc_top]++;
  8176. if (m3->mc_ki[mc->mc_top] >= nkeys) {
  8177. m3->mc_pg[mc->mc_top] = rp;
  8178. m3->mc_ki[mc->mc_top] -= nkeys;
  8179. for (i=0; i<mc->mc_top; i++) {
  8180. m3->mc_ki[i] = mn.mc_ki[i];
  8181. m3->mc_pg[i] = mn.mc_pg[i];
  8182. }
  8183. }
  8184. } else if (!did_split && m3->mc_top >= ptop && m3->mc_pg[ptop] == mc->mc_pg[ptop] &&
  8185. m3->mc_ki[ptop] >= mc->mc_ki[ptop]) {
  8186. m3->mc_ki[ptop]++;
  8187. }
  8188. if (IS_LEAF(mp))
  8189. XCURSOR_REFRESH(m3, mc->mc_top, m3->mc_pg[mc->mc_top]);
  8190. }
  8191. }
  8192. DPRINTF(("mp left: %d, rp left: %d", SIZELEFT(mp), SIZELEFT(rp)));
  8193. done:
  8194. if (copy) /* tmp page */
  8195. mdb_page_free(env, copy);
  8196. if (rc)
  8197. mc->mc_txn->mt_flags |= MDB_TXN_ERROR;
  8198. return rc;
  8199. }
  8200. int
  8201. mdb_put(MDB_txn *txn, MDB_dbi dbi,
  8202. MDB_val *key, MDB_val *data, unsigned int flags)
  8203. {
  8204. MDB_cursor mc;
  8205. MDB_xcursor mx;
  8206. int rc;
  8207. if (!key || !data || !TXN_DBI_EXIST(txn, dbi, DB_USRVALID))
  8208. return EINVAL;
  8209. if (flags & ~(MDB_NOOVERWRITE|MDB_NODUPDATA|MDB_RESERVE|MDB_APPEND|MDB_APPENDDUP))
  8210. return EINVAL;
  8211. if (txn->mt_flags & (MDB_TXN_RDONLY|MDB_TXN_BLOCKED))
  8212. return (txn->mt_flags & MDB_TXN_RDONLY) ? EACCES : MDB_BAD_TXN;
  8213. mdb_cursor_init(&mc, txn, dbi, &mx);
  8214. mc.mc_next = txn->mt_cursors[dbi];
  8215. txn->mt_cursors[dbi] = &mc;
  8216. rc = mdb_cursor_put(&mc, key, data, flags);
  8217. txn->mt_cursors[dbi] = mc.mc_next;
  8218. return rc;
  8219. }
  8220. #ifndef MDB_WBUF
  8221. #define MDB_WBUF (1024*1024)
  8222. #endif
  8223. #define MDB_EOF 0x10 /**< #mdb_env_copyfd1() is done reading */
  8224. /** State needed for a double-buffering compacting copy. */
  8225. typedef struct mdb_copy {
  8226. MDB_env *mc_env;
  8227. MDB_txn *mc_txn;
  8228. pthread_mutex_t mc_mutex;
  8229. pthread_cond_t mc_cond; /**< Condition variable for #mc_new */
  8230. char *mc_wbuf[2];
  8231. char *mc_over[2];
  8232. int mc_wlen[2];
  8233. int mc_olen[2];
  8234. pgno_t mc_next_pgno;
  8235. HANDLE mc_fd;
  8236. int mc_toggle; /**< Buffer number in provider */
  8237. int mc_new; /**< (0-2 buffers to write) | (#MDB_EOF at end) */
  8238. /** Error code. Never cleared if set. Both threads can set nonzero
  8239. * to fail the copy. Not mutex-protected, LMDB expects atomic int.
  8240. */
  8241. volatile int mc_error;
  8242. } mdb_copy;
  8243. /** Dedicated writer thread for compacting copy. */
  8244. static THREAD_RET ESECT CALL_CONV
  8245. mdb_env_copythr(void *arg)
  8246. {
  8247. mdb_copy *my = arg;
  8248. char *ptr;
  8249. int toggle = 0, wsize, rc;
  8250. #ifdef _WIN32
  8251. DWORD len;
  8252. #define DO_WRITE(rc, fd, ptr, w2, len) rc = WriteFile(fd, ptr, w2, &len, NULL)
  8253. #else
  8254. int len;
  8255. #define DO_WRITE(rc, fd, ptr, w2, len) len = write(fd, ptr, w2); rc = (len >= 0)
  8256. #ifdef SIGPIPE
  8257. sigset_t set;
  8258. sigemptyset(&set);
  8259. sigaddset(&set, SIGPIPE);
  8260. if ((rc = pthread_sigmask(SIG_BLOCK, &set, NULL)) != 0)
  8261. my->mc_error = rc;
  8262. #endif
  8263. #endif
  8264. pthread_mutex_lock(&my->mc_mutex);
  8265. for(;;) {
  8266. while (!my->mc_new)
  8267. pthread_cond_wait(&my->mc_cond, &my->mc_mutex);
  8268. if (my->mc_new == 0 + MDB_EOF) /* 0 buffers, just EOF */
  8269. break;
  8270. wsize = my->mc_wlen[toggle];
  8271. ptr = my->mc_wbuf[toggle];
  8272. again:
  8273. rc = MDB_SUCCESS;
  8274. while (wsize > 0 && !my->mc_error) {
  8275. DO_WRITE(rc, my->mc_fd, ptr, wsize, len);
  8276. if (!rc) {
  8277. rc = ErrCode();
  8278. #if defined(SIGPIPE) && !defined(_WIN32)
  8279. if (rc == EPIPE) {
  8280. /* Collect the pending SIGPIPE, otherwise at least OS X
  8281. * gives it to the process on thread-exit (ITS#8504).
  8282. */
  8283. int tmp;
  8284. sigwait(&set, &tmp);
  8285. }
  8286. #endif
  8287. break;
  8288. } else if (len > 0) {
  8289. rc = MDB_SUCCESS;
  8290. ptr += len;
  8291. wsize -= len;
  8292. continue;
  8293. } else {
  8294. rc = EIO;
  8295. break;
  8296. }
  8297. }
  8298. if (rc) {
  8299. my->mc_error = rc;
  8300. }
  8301. /* If there's an overflow page tail, write it too */
  8302. if (my->mc_olen[toggle]) {
  8303. wsize = my->mc_olen[toggle];
  8304. ptr = my->mc_over[toggle];
  8305. my->mc_olen[toggle] = 0;
  8306. goto again;
  8307. }
  8308. my->mc_wlen[toggle] = 0;
  8309. toggle ^= 1;
  8310. /* Return the empty buffer to provider */
  8311. my->mc_new--;
  8312. pthread_cond_signal(&my->mc_cond);
  8313. }
  8314. pthread_mutex_unlock(&my->mc_mutex);
  8315. return (THREAD_RET)0;
  8316. #undef DO_WRITE
  8317. }
  8318. /** Give buffer and/or #MDB_EOF to writer thread, await unused buffer.
  8319. *
  8320. * @param[in] my control structure.
  8321. * @param[in] adjust (1 to hand off 1 buffer) | (MDB_EOF when ending).
  8322. */
  8323. static int ESECT
  8324. mdb_env_cthr_toggle(mdb_copy *my, int adjust)
  8325. {
  8326. pthread_mutex_lock(&my->mc_mutex);
  8327. my->mc_new += adjust;
  8328. pthread_cond_signal(&my->mc_cond);
  8329. while (my->mc_new & 2) /* both buffers in use */
  8330. pthread_cond_wait(&my->mc_cond, &my->mc_mutex);
  8331. pthread_mutex_unlock(&my->mc_mutex);
  8332. my->mc_toggle ^= (adjust & 1);
  8333. /* Both threads reset mc_wlen, to be safe from threading errors */
  8334. my->mc_wlen[my->mc_toggle] = 0;
  8335. return my->mc_error;
  8336. }
  8337. /** Depth-first tree traversal for compacting copy.
  8338. * @param[in] my control structure.
  8339. * @param[in,out] pg database root.
  8340. * @param[in] flags includes #F_DUPDATA if it is a sorted-duplicate sub-DB.
  8341. */
  8342. static int ESECT
  8343. mdb_env_cwalk(mdb_copy *my, pgno_t *pg, int flags)
  8344. {
  8345. MDB_cursor mc = {0};
  8346. MDB_node *ni;
  8347. MDB_page *mo, *mp, *leaf;
  8348. char *buf, *ptr;
  8349. int rc, toggle;
  8350. unsigned int i;
  8351. /* Empty DB, nothing to do */
  8352. if (*pg == P_INVALID)
  8353. return MDB_SUCCESS;
  8354. mc.mc_snum = 1;
  8355. mc.mc_txn = my->mc_txn;
  8356. rc = mdb_page_get(&mc, *pg, &mc.mc_pg[0], NULL);
  8357. if (rc)
  8358. return rc;
  8359. rc = mdb_page_search_root(&mc, NULL, MDB_PS_FIRST);
  8360. if (rc)
  8361. return rc;
  8362. /* Make cursor pages writable */
  8363. buf = ptr = malloc(my->mc_env->me_psize * mc.mc_snum);
  8364. if (buf == NULL)
  8365. return ENOMEM;
  8366. for (i=0; i<mc.mc_top; i++) {
  8367. mdb_page_copy((MDB_page *)ptr, mc.mc_pg[i], my->mc_env->me_psize);
  8368. mc.mc_pg[i] = (MDB_page *)ptr;
  8369. ptr += my->mc_env->me_psize;
  8370. }
  8371. /* This is writable space for a leaf page. Usually not needed. */
  8372. leaf = (MDB_page *)ptr;
  8373. toggle = my->mc_toggle;
  8374. while (mc.mc_snum > 0) {
  8375. unsigned n;
  8376. mp = mc.mc_pg[mc.mc_top];
  8377. n = NUMKEYS(mp);
  8378. if (IS_LEAF(mp)) {
  8379. if (!IS_LEAF2(mp) && !(flags & F_DUPDATA)) {
  8380. for (i=0; i<n; i++) {
  8381. ni = NODEPTR(mp, i);
  8382. if (ni->mn_flags & F_BIGDATA) {
  8383. MDB_page *omp;
  8384. pgno_t pg;
  8385. /* Need writable leaf */
  8386. if (mp != leaf) {
  8387. mc.mc_pg[mc.mc_top] = leaf;
  8388. mdb_page_copy(leaf, mp, my->mc_env->me_psize);
  8389. mp = leaf;
  8390. ni = NODEPTR(mp, i);
  8391. }
  8392. memcpy(&pg, NODEDATA(ni), sizeof(pg));
  8393. memcpy(NODEDATA(ni), &my->mc_next_pgno, sizeof(pgno_t));
  8394. rc = mdb_page_get(&mc, pg, &omp, NULL);
  8395. if (rc)
  8396. goto done;
  8397. if (my->mc_wlen[toggle] >= MDB_WBUF) {
  8398. rc = mdb_env_cthr_toggle(my, 1);
  8399. if (rc)
  8400. goto done;
  8401. toggle = my->mc_toggle;
  8402. }
  8403. mo = (MDB_page *)(my->mc_wbuf[toggle] + my->mc_wlen[toggle]);
  8404. memcpy(mo, omp, my->mc_env->me_psize);
  8405. mo->mp_pgno = my->mc_next_pgno;
  8406. my->mc_next_pgno += omp->mp_pages;
  8407. my->mc_wlen[toggle] += my->mc_env->me_psize;
  8408. if (omp->mp_pages > 1) {
  8409. my->mc_olen[toggle] = my->mc_env->me_psize * (omp->mp_pages - 1);
  8410. my->mc_over[toggle] = (char *)omp + my->mc_env->me_psize;
  8411. rc = mdb_env_cthr_toggle(my, 1);
  8412. if (rc)
  8413. goto done;
  8414. toggle = my->mc_toggle;
  8415. }
  8416. } else if (ni->mn_flags & F_SUBDATA) {
  8417. MDB_db db;
  8418. /* Need writable leaf */
  8419. if (mp != leaf) {
  8420. mc.mc_pg[mc.mc_top] = leaf;
  8421. mdb_page_copy(leaf, mp, my->mc_env->me_psize);
  8422. mp = leaf;
  8423. ni = NODEPTR(mp, i);
  8424. }
  8425. memcpy(&db, NODEDATA(ni), sizeof(db));
  8426. my->mc_toggle = toggle;
  8427. rc = mdb_env_cwalk(my, &db.md_root, ni->mn_flags & F_DUPDATA);
  8428. if (rc)
  8429. goto done;
  8430. toggle = my->mc_toggle;
  8431. memcpy(NODEDATA(ni), &db, sizeof(db));
  8432. }
  8433. }
  8434. }
  8435. } else {
  8436. mc.mc_ki[mc.mc_top]++;
  8437. if (mc.mc_ki[mc.mc_top] < n) {
  8438. pgno_t pg;
  8439. again:
  8440. ni = NODEPTR(mp, mc.mc_ki[mc.mc_top]);
  8441. pg = NODEPGNO(ni);
  8442. rc = mdb_page_get(&mc, pg, &mp, NULL);
  8443. if (rc)
  8444. goto done;
  8445. mc.mc_top++;
  8446. mc.mc_snum++;
  8447. mc.mc_ki[mc.mc_top] = 0;
  8448. if (IS_BRANCH(mp)) {
  8449. /* Whenever we advance to a sibling branch page,
  8450. * we must proceed all the way down to its first leaf.
  8451. */
  8452. mdb_page_copy(mc.mc_pg[mc.mc_top], mp, my->mc_env->me_psize);
  8453. goto again;
  8454. } else
  8455. mc.mc_pg[mc.mc_top] = mp;
  8456. continue;
  8457. }
  8458. }
  8459. if (my->mc_wlen[toggle] >= MDB_WBUF) {
  8460. rc = mdb_env_cthr_toggle(my, 1);
  8461. if (rc)
  8462. goto done;
  8463. toggle = my->mc_toggle;
  8464. }
  8465. mo = (MDB_page *)(my->mc_wbuf[toggle] + my->mc_wlen[toggle]);
  8466. mdb_page_copy(mo, mp, my->mc_env->me_psize);
  8467. mo->mp_pgno = my->mc_next_pgno++;
  8468. my->mc_wlen[toggle] += my->mc_env->me_psize;
  8469. if (mc.mc_top) {
  8470. /* Update parent if there is one */
  8471. ni = NODEPTR(mc.mc_pg[mc.mc_top-1], mc.mc_ki[mc.mc_top-1]);
  8472. SETPGNO(ni, mo->mp_pgno);
  8473. mdb_cursor_pop(&mc);
  8474. } else {
  8475. /* Otherwise we're done */
  8476. *pg = mo->mp_pgno;
  8477. break;
  8478. }
  8479. }
  8480. done:
  8481. free(buf);
  8482. return rc;
  8483. }
  8484. /** Copy environment with compaction. */
  8485. static int ESECT
  8486. mdb_env_copyfd1(MDB_env *env, HANDLE fd)
  8487. {
  8488. MDB_meta *mm;
  8489. MDB_page *mp;
  8490. mdb_copy my = {0};
  8491. MDB_txn *txn = NULL;
  8492. pthread_t thr;
  8493. pgno_t root, new_root;
  8494. int rc = MDB_SUCCESS;
  8495. #ifdef _WIN32
  8496. if (!(my.mc_mutex = CreateMutex(NULL, FALSE, NULL)) ||
  8497. !(my.mc_cond = CreateEvent(NULL, FALSE, FALSE, NULL))) {
  8498. rc = ErrCode();
  8499. goto done;
  8500. }
  8501. my.mc_wbuf[0] = _aligned_malloc(MDB_WBUF*2, env->me_os_psize);
  8502. if (my.mc_wbuf[0] == NULL) {
  8503. /* _aligned_malloc() sets errno, but we use Windows error codes */
  8504. rc = ERROR_NOT_ENOUGH_MEMORY;
  8505. goto done;
  8506. }
  8507. #else
  8508. if ((rc = pthread_mutex_init(&my.mc_mutex, NULL)) != 0)
  8509. return rc;
  8510. if ((rc = pthread_cond_init(&my.mc_cond, NULL)) != 0)
  8511. goto done2;
  8512. #ifdef HAVE_MEMALIGN
  8513. my.mc_wbuf[0] = memalign(env->me_os_psize, MDB_WBUF*2);
  8514. if (my.mc_wbuf[0] == NULL) {
  8515. rc = errno;
  8516. goto done;
  8517. }
  8518. #else
  8519. {
  8520. void *p;
  8521. if ((rc = posix_memalign(&p, env->me_os_psize, MDB_WBUF*2)) != 0)
  8522. goto done;
  8523. my.mc_wbuf[0] = p;
  8524. }
  8525. #endif
  8526. #endif
  8527. memset(my.mc_wbuf[0], 0, MDB_WBUF*2);
  8528. my.mc_wbuf[1] = my.mc_wbuf[0] + MDB_WBUF;
  8529. my.mc_next_pgno = NUM_METAS;
  8530. my.mc_env = env;
  8531. my.mc_fd = fd;
  8532. rc = THREAD_CREATE(thr, mdb_env_copythr, &my);
  8533. if (rc)
  8534. goto done;
  8535. rc = mdb_txn_begin(env, NULL, MDB_RDONLY, &txn);
  8536. if (rc)
  8537. goto finish;
  8538. mp = (MDB_page *)my.mc_wbuf[0];
  8539. memset(mp, 0, NUM_METAS * env->me_psize);
  8540. mp->mp_pgno = 0;
  8541. mp->mp_flags = P_META;
  8542. mm = (MDB_meta *)METADATA(mp);
  8543. mdb_env_init_meta0(env, mm);
  8544. mm->mm_address = env->me_metas[0]->mm_address;
  8545. mp = (MDB_page *)(my.mc_wbuf[0] + env->me_psize);
  8546. mp->mp_pgno = 1;
  8547. mp->mp_flags = P_META;
  8548. *(MDB_meta *)METADATA(mp) = *mm;
  8549. mm = (MDB_meta *)METADATA(mp);
  8550. /* Set metapage 1 with current main DB */
  8551. root = new_root = txn->mt_dbs[MAIN_DBI].md_root;
  8552. if (root != P_INVALID) {
  8553. /* Count free pages + freeDB pages. Subtract from last_pg
  8554. * to find the new last_pg, which also becomes the new root.
  8555. */
  8556. MDB_ID freecount = 0;
  8557. MDB_cursor mc;
  8558. MDB_val key, data;
  8559. mdb_cursor_init(&mc, txn, FREE_DBI, NULL);
  8560. while ((rc = mdb_cursor_get(&mc, &key, &data, MDB_NEXT)) == 0)
  8561. freecount += *(MDB_ID *)data.mv_data;
  8562. if (rc != MDB_NOTFOUND)
  8563. goto finish;
  8564. freecount += txn->mt_dbs[FREE_DBI].md_branch_pages +
  8565. txn->mt_dbs[FREE_DBI].md_leaf_pages +
  8566. txn->mt_dbs[FREE_DBI].md_overflow_pages;
  8567. new_root = txn->mt_next_pgno - 1 - freecount;
  8568. mm->mm_last_pg = new_root;
  8569. mm->mm_dbs[MAIN_DBI] = txn->mt_dbs[MAIN_DBI];
  8570. mm->mm_dbs[MAIN_DBI].md_root = new_root;
  8571. } else {
  8572. /* When the DB is empty, handle it specially to
  8573. * fix any breakage like page leaks from ITS#8174.
  8574. */
  8575. mm->mm_dbs[MAIN_DBI].md_flags = txn->mt_dbs[MAIN_DBI].md_flags;
  8576. }
  8577. if (root != P_INVALID || mm->mm_dbs[MAIN_DBI].md_flags) {
  8578. mm->mm_txnid = 1; /* use metapage 1 */
  8579. }
  8580. my.mc_wlen[0] = env->me_psize * NUM_METAS;
  8581. my.mc_txn = txn;
  8582. rc = mdb_env_cwalk(&my, &root, 0);
  8583. if (rc == MDB_SUCCESS && root != new_root) {
  8584. rc = MDB_INCOMPATIBLE; /* page leak or corrupt DB */
  8585. }
  8586. finish:
  8587. if (rc)
  8588. my.mc_error = rc;
  8589. mdb_env_cthr_toggle(&my, 1 | MDB_EOF);
  8590. rc = THREAD_FINISH(thr);
  8591. mdb_txn_abort(txn);
  8592. done:
  8593. #ifdef _WIN32
  8594. if (my.mc_wbuf[0]) _aligned_free(my.mc_wbuf[0]);
  8595. if (my.mc_cond) CloseHandle(my.mc_cond);
  8596. if (my.mc_mutex) CloseHandle(my.mc_mutex);
  8597. #else
  8598. free(my.mc_wbuf[0]);
  8599. pthread_cond_destroy(&my.mc_cond);
  8600. done2:
  8601. pthread_mutex_destroy(&my.mc_mutex);
  8602. #endif
  8603. return rc ? rc : my.mc_error;
  8604. }
  8605. /** Copy environment as-is. */
  8606. static int ESECT
  8607. mdb_env_copyfd0(MDB_env *env, HANDLE fd)
  8608. {
  8609. MDB_txn *txn = NULL;
  8610. mdb_mutexref_t wmutex = NULL;
  8611. int rc;
  8612. size_t wsize, w3;
  8613. char *ptr;
  8614. #ifdef _WIN32
  8615. DWORD len, w2;
  8616. #define DO_WRITE(rc, fd, ptr, w2, len) rc = WriteFile(fd, ptr, w2, &len, NULL)
  8617. #else
  8618. ssize_t len;
  8619. size_t w2;
  8620. #define DO_WRITE(rc, fd, ptr, w2, len) len = write(fd, ptr, w2); rc = (len >= 0)
  8621. #endif
  8622. /* Do the lock/unlock of the reader mutex before starting the
  8623. * write txn. Otherwise other read txns could block writers.
  8624. */
  8625. rc = mdb_txn_begin(env, NULL, MDB_RDONLY, &txn);
  8626. if (rc)
  8627. return rc;
  8628. if (env->me_txns) {
  8629. /* We must start the actual read txn after blocking writers */
  8630. mdb_txn_end(txn, MDB_END_RESET_TMP);
  8631. /* Temporarily block writers until we snapshot the meta pages */
  8632. wmutex = env->me_wmutex;
  8633. if (LOCK_MUTEX(rc, env, wmutex))
  8634. goto leave;
  8635. rc = mdb_txn_renew0(txn);
  8636. if (rc) {
  8637. UNLOCK_MUTEX(wmutex);
  8638. goto leave;
  8639. }
  8640. }
  8641. wsize = env->me_psize * NUM_METAS;
  8642. ptr = env->me_map;
  8643. w2 = wsize;
  8644. while (w2 > 0) {
  8645. DO_WRITE(rc, fd, ptr, w2, len);
  8646. if (!rc) {
  8647. rc = ErrCode();
  8648. break;
  8649. } else if (len > 0) {
  8650. rc = MDB_SUCCESS;
  8651. ptr += len;
  8652. w2 -= len;
  8653. continue;
  8654. } else {
  8655. /* Non-blocking or async handles are not supported */
  8656. rc = EIO;
  8657. break;
  8658. }
  8659. }
  8660. if (wmutex)
  8661. UNLOCK_MUTEX(wmutex);
  8662. if (rc)
  8663. goto leave;
  8664. w3 = txn->mt_next_pgno * env->me_psize;
  8665. {
  8666. size_t fsize = 0;
  8667. if ((rc = mdb_fsize(env->me_fd, &fsize)))
  8668. goto leave;
  8669. if (w3 > fsize)
  8670. w3 = fsize;
  8671. }
  8672. wsize = w3 - wsize;
  8673. while (wsize > 0) {
  8674. if (wsize > MAX_WRITE)
  8675. w2 = MAX_WRITE;
  8676. else
  8677. w2 = wsize;
  8678. DO_WRITE(rc, fd, ptr, w2, len);
  8679. if (!rc) {
  8680. rc = ErrCode();
  8681. break;
  8682. } else if (len > 0) {
  8683. rc = MDB_SUCCESS;
  8684. ptr += len;
  8685. wsize -= len;
  8686. continue;
  8687. } else {
  8688. rc = EIO;
  8689. break;
  8690. }
  8691. }
  8692. leave:
  8693. mdb_txn_abort(txn);
  8694. return rc;
  8695. }
  8696. int ESECT
  8697. mdb_env_copyfd2(MDB_env *env, HANDLE fd, unsigned int flags)
  8698. {
  8699. if (flags & MDB_CP_COMPACT)
  8700. return mdb_env_copyfd1(env, fd);
  8701. else
  8702. return mdb_env_copyfd0(env, fd);
  8703. }
  8704. int ESECT
  8705. mdb_env_copyfd(MDB_env *env, HANDLE fd)
  8706. {
  8707. return mdb_env_copyfd2(env, fd, 0);
  8708. }
  8709. int ESECT
  8710. mdb_env_copy2(MDB_env *env, const char *path, unsigned int flags)
  8711. {
  8712. int rc;
  8713. MDB_name fname;
  8714. HANDLE newfd = INVALID_HANDLE_VALUE;
  8715. rc = mdb_fname_init(path, env->me_flags | MDB_NOLOCK, &fname);
  8716. if (rc == MDB_SUCCESS) {
  8717. rc = mdb_fopen(env, &fname, MDB_O_COPY, 0666, &newfd);
  8718. mdb_fname_destroy(fname);
  8719. }
  8720. if (rc == MDB_SUCCESS) {
  8721. rc = mdb_env_copyfd2(env, newfd, flags);
  8722. if (close(newfd) < 0 && rc == MDB_SUCCESS)
  8723. rc = ErrCode();
  8724. }
  8725. return rc;
  8726. }
  8727. int ESECT
  8728. mdb_env_copy(MDB_env *env, const char *path)
  8729. {
  8730. return mdb_env_copy2(env, path, 0);
  8731. }
  8732. int ESECT
  8733. mdb_env_set_flags(MDB_env *env, unsigned int flag, int onoff)
  8734. {
  8735. if (flag & ~CHANGEABLE)
  8736. return EINVAL;
  8737. if (onoff)
  8738. env->me_flags |= flag;
  8739. else
  8740. env->me_flags &= ~flag;
  8741. return MDB_SUCCESS;
  8742. }
  8743. int ESECT
  8744. mdb_env_get_flags(MDB_env *env, unsigned int *arg)
  8745. {
  8746. if (!env || !arg)
  8747. return EINVAL;
  8748. *arg = env->me_flags & (CHANGEABLE|CHANGELESS);
  8749. return MDB_SUCCESS;
  8750. }
  8751. int ESECT
  8752. mdb_env_set_userctx(MDB_env *env, void *ctx)
  8753. {
  8754. if (!env)
  8755. return EINVAL;
  8756. env->me_userctx = ctx;
  8757. return MDB_SUCCESS;
  8758. }
  8759. void * ESECT
  8760. mdb_env_get_userctx(MDB_env *env)
  8761. {
  8762. return env ? env->me_userctx : NULL;
  8763. }
  8764. int ESECT
  8765. mdb_env_set_assert(MDB_env *env, MDB_assert_func *func)
  8766. {
  8767. if (!env)
  8768. return EINVAL;
  8769. #ifndef NDEBUG
  8770. env->me_assert_func = func;
  8771. #endif
  8772. return MDB_SUCCESS;
  8773. }
  8774. int ESECT
  8775. mdb_env_get_path(MDB_env *env, const char **arg)
  8776. {
  8777. if (!env || !arg)
  8778. return EINVAL;
  8779. *arg = env->me_path;
  8780. return MDB_SUCCESS;
  8781. }
  8782. int ESECT
  8783. mdb_env_get_fd(MDB_env *env, mdb_filehandle_t *arg)
  8784. {
  8785. if (!env || !arg)
  8786. return EINVAL;
  8787. *arg = env->me_fd;
  8788. return MDB_SUCCESS;
  8789. }
  8790. /** Common code for #mdb_stat() and #mdb_env_stat().
  8791. * @param[in] env the environment to operate in.
  8792. * @param[in] db the #MDB_db record containing the stats to return.
  8793. * @param[out] arg the address of an #MDB_stat structure to receive the stats.
  8794. * @return 0, this function always succeeds.
  8795. */
  8796. static int ESECT
  8797. mdb_stat0(MDB_env *env, MDB_db *db, MDB_stat *arg)
  8798. {
  8799. arg->ms_psize = env->me_psize;
  8800. arg->ms_depth = db->md_depth;
  8801. arg->ms_branch_pages = db->md_branch_pages;
  8802. arg->ms_leaf_pages = db->md_leaf_pages;
  8803. arg->ms_overflow_pages = db->md_overflow_pages;
  8804. arg->ms_entries = db->md_entries;
  8805. return MDB_SUCCESS;
  8806. }
  8807. int ESECT
  8808. mdb_env_stat(MDB_env *env, MDB_stat *arg)
  8809. {
  8810. MDB_meta *meta;
  8811. if (env == NULL || arg == NULL)
  8812. return EINVAL;
  8813. meta = mdb_env_pick_meta(env);
  8814. return mdb_stat0(env, &meta->mm_dbs[MAIN_DBI], arg);
  8815. }
  8816. int ESECT
  8817. mdb_env_info(MDB_env *env, MDB_envinfo *arg)
  8818. {
  8819. MDB_meta *meta;
  8820. if (env == NULL || arg == NULL)
  8821. return EINVAL;
  8822. meta = mdb_env_pick_meta(env);
  8823. arg->me_mapaddr = meta->mm_address;
  8824. arg->me_last_pgno = meta->mm_last_pg;
  8825. arg->me_last_txnid = meta->mm_txnid;
  8826. arg->me_mapsize = env->me_mapsize;
  8827. arg->me_maxreaders = env->me_maxreaders;
  8828. arg->me_numreaders = env->me_txns ? env->me_txns->mti_numreaders : 0;
  8829. return MDB_SUCCESS;
  8830. }
  8831. /** Set the default comparison functions for a database.
  8832. * Called immediately after a database is opened to set the defaults.
  8833. * The user can then override them with #mdb_set_compare() or
  8834. * #mdb_set_dupsort().
  8835. * @param[in] txn A transaction handle returned by #mdb_txn_begin()
  8836. * @param[in] dbi A database handle returned by #mdb_dbi_open()
  8837. */
  8838. static void
  8839. mdb_default_cmp(MDB_txn *txn, MDB_dbi dbi)
  8840. {
  8841. uint16_t f = txn->mt_dbs[dbi].md_flags;
  8842. txn->mt_dbxs[dbi].md_cmp =
  8843. (f & MDB_REVERSEKEY) ? mdb_cmp_memnr :
  8844. (f & MDB_INTEGERKEY) ? mdb_cmp_cint : mdb_cmp_memn;
  8845. txn->mt_dbxs[dbi].md_dcmp =
  8846. !(f & MDB_DUPSORT) ? 0 :
  8847. ((f & MDB_INTEGERDUP)
  8848. ? ((f & MDB_DUPFIXED) ? mdb_cmp_int : mdb_cmp_cint)
  8849. : ((f & MDB_REVERSEDUP) ? mdb_cmp_memnr : mdb_cmp_memn));
  8850. }
  8851. int mdb_dbi_open(MDB_txn *txn, const char *name, unsigned int flags, MDB_dbi *dbi)
  8852. {
  8853. MDB_val key, data;
  8854. MDB_dbi i;
  8855. MDB_cursor mc;
  8856. MDB_db dummy;
  8857. int rc, dbflag, exact;
  8858. unsigned int unused = 0, seq;
  8859. char *namedup;
  8860. size_t len;
  8861. if (flags & ~VALID_FLAGS)
  8862. return EINVAL;
  8863. if (txn->mt_flags & MDB_TXN_BLOCKED)
  8864. return MDB_BAD_TXN;
  8865. /* main DB? */
  8866. if (!name) {
  8867. *dbi = MAIN_DBI;
  8868. if (flags & PERSISTENT_FLAGS) {
  8869. uint16_t f2 = flags & PERSISTENT_FLAGS;
  8870. /* make sure flag changes get committed */
  8871. if ((txn->mt_dbs[MAIN_DBI].md_flags | f2) != txn->mt_dbs[MAIN_DBI].md_flags) {
  8872. txn->mt_dbs[MAIN_DBI].md_flags |= f2;
  8873. txn->mt_flags |= MDB_TXN_DIRTY;
  8874. }
  8875. }
  8876. mdb_default_cmp(txn, MAIN_DBI);
  8877. return MDB_SUCCESS;
  8878. }
  8879. if (txn->mt_dbxs[MAIN_DBI].md_cmp == NULL) {
  8880. mdb_default_cmp(txn, MAIN_DBI);
  8881. }
  8882. /* Is the DB already open? */
  8883. len = strlen(name);
  8884. for (i=CORE_DBS; i<txn->mt_numdbs; i++) {
  8885. if (!txn->mt_dbxs[i].md_name.mv_size) {
  8886. /* Remember this free slot */
  8887. if (!unused) unused = i;
  8888. continue;
  8889. }
  8890. if (len == txn->mt_dbxs[i].md_name.mv_size &&
  8891. !strncmp(name, txn->mt_dbxs[i].md_name.mv_data, len)) {
  8892. *dbi = i;
  8893. return MDB_SUCCESS;
  8894. }
  8895. }
  8896. /* If no free slot and max hit, fail */
  8897. if (!unused && txn->mt_numdbs >= txn->mt_env->me_maxdbs)
  8898. return MDB_DBS_FULL;
  8899. /* Cannot mix named databases with some mainDB flags */
  8900. if (txn->mt_dbs[MAIN_DBI].md_flags & (MDB_DUPSORT|MDB_INTEGERKEY))
  8901. return (flags & MDB_CREATE) ? MDB_INCOMPATIBLE : MDB_NOTFOUND;
  8902. /* Find the DB info */
  8903. dbflag = DB_NEW|DB_VALID|DB_USRVALID;
  8904. exact = 0;
  8905. key.mv_size = len;
  8906. key.mv_data = (void *)name;
  8907. mdb_cursor_init(&mc, txn, MAIN_DBI, NULL);
  8908. rc = mdb_cursor_set(&mc, &key, &data, MDB_SET, &exact);
  8909. if (rc == MDB_SUCCESS) {
  8910. /* make sure this is actually a DB */
  8911. MDB_node *node = NODEPTR(mc.mc_pg[mc.mc_top], mc.mc_ki[mc.mc_top]);
  8912. if ((node->mn_flags & (F_DUPDATA|F_SUBDATA)) != F_SUBDATA)
  8913. return MDB_INCOMPATIBLE;
  8914. } else {
  8915. if (rc != MDB_NOTFOUND || !(flags & MDB_CREATE))
  8916. return rc;
  8917. if (F_ISSET(txn->mt_flags, MDB_TXN_RDONLY))
  8918. return EACCES;
  8919. }
  8920. /* Done here so we cannot fail after creating a new DB */
  8921. if ((namedup = strdup(name)) == NULL)
  8922. return ENOMEM;
  8923. if (rc) {
  8924. /* MDB_NOTFOUND and MDB_CREATE: Create new DB */
  8925. data.mv_size = sizeof(MDB_db);
  8926. data.mv_data = &dummy;
  8927. memset(&dummy, 0, sizeof(dummy));
  8928. dummy.md_root = P_INVALID;
  8929. dummy.md_flags = flags & PERSISTENT_FLAGS;
  8930. WITH_CURSOR_TRACKING(mc,
  8931. rc = mdb_cursor_put(&mc, &key, &data, F_SUBDATA));
  8932. dbflag |= DB_DIRTY;
  8933. }
  8934. if (rc) {
  8935. free(namedup);
  8936. } else {
  8937. /* Got info, register DBI in this txn */
  8938. unsigned int slot = unused ? unused : txn->mt_numdbs;
  8939. txn->mt_dbxs[slot].md_name.mv_data = namedup;
  8940. txn->mt_dbxs[slot].md_name.mv_size = len;
  8941. txn->mt_dbxs[slot].md_rel = NULL;
  8942. txn->mt_dbflags[slot] = dbflag;
  8943. /* txn-> and env-> are the same in read txns, use
  8944. * tmp variable to avoid undefined assignment
  8945. */
  8946. seq = ++txn->mt_env->me_dbiseqs[slot];
  8947. txn->mt_dbiseqs[slot] = seq;
  8948. memcpy(&txn->mt_dbs[slot], data.mv_data, sizeof(MDB_db));
  8949. *dbi = slot;
  8950. mdb_default_cmp(txn, slot);
  8951. if (!unused) {
  8952. txn->mt_numdbs++;
  8953. }
  8954. }
  8955. return rc;
  8956. }
  8957. int ESECT
  8958. mdb_stat(MDB_txn *txn, MDB_dbi dbi, MDB_stat *arg)
  8959. {
  8960. if (!arg || !TXN_DBI_EXIST(txn, dbi, DB_VALID))
  8961. return EINVAL;
  8962. if (txn->mt_flags & MDB_TXN_BLOCKED)
  8963. return MDB_BAD_TXN;
  8964. if (txn->mt_dbflags[dbi] & DB_STALE) {
  8965. MDB_cursor mc;
  8966. MDB_xcursor mx;
  8967. /* Stale, must read the DB's root. cursor_init does it for us. */
  8968. mdb_cursor_init(&mc, txn, dbi, &mx);
  8969. }
  8970. return mdb_stat0(txn->mt_env, &txn->mt_dbs[dbi], arg);
  8971. }
  8972. void mdb_dbi_close(MDB_env *env, MDB_dbi dbi)
  8973. {
  8974. char *ptr;
  8975. if (dbi < CORE_DBS || dbi >= env->me_maxdbs)
  8976. return;
  8977. ptr = env->me_dbxs[dbi].md_name.mv_data;
  8978. /* If there was no name, this was already closed */
  8979. if (ptr) {
  8980. env->me_dbxs[dbi].md_name.mv_data = NULL;
  8981. env->me_dbxs[dbi].md_name.mv_size = 0;
  8982. env->me_dbflags[dbi] = 0;
  8983. env->me_dbiseqs[dbi]++;
  8984. free(ptr);
  8985. }
  8986. }
  8987. int mdb_dbi_flags(MDB_txn *txn, MDB_dbi dbi, unsigned int *flags)
  8988. {
  8989. /* We could return the flags for the FREE_DBI too but what's the point? */
  8990. if (!TXN_DBI_EXIST(txn, dbi, DB_USRVALID))
  8991. return EINVAL;
  8992. *flags = txn->mt_dbs[dbi].md_flags & PERSISTENT_FLAGS;
  8993. return MDB_SUCCESS;
  8994. }
  8995. /** Add all the DB's pages to the free list.
  8996. * @param[in] mc Cursor on the DB to free.
  8997. * @param[in] subs non-Zero to check for sub-DBs in this DB.
  8998. * @return 0 on success, non-zero on failure.
  8999. */
  9000. static int
  9001. mdb_drop0(MDB_cursor *mc, int subs)
  9002. {
  9003. int rc;
  9004. rc = mdb_page_search(mc, NULL, MDB_PS_FIRST);
  9005. if (rc == MDB_SUCCESS) {
  9006. MDB_txn *txn = mc->mc_txn;
  9007. MDB_node *ni;
  9008. MDB_cursor mx;
  9009. unsigned int i;
  9010. /* DUPSORT sub-DBs have no ovpages/DBs. Omit scanning leaves.
  9011. * This also avoids any P_LEAF2 pages, which have no nodes.
  9012. * Also if the DB doesn't have sub-DBs and has no overflow
  9013. * pages, omit scanning leaves.
  9014. */
  9015. if ((mc->mc_flags & C_SUB) ||
  9016. (!subs && !mc->mc_db->md_overflow_pages))
  9017. mdb_cursor_pop(mc);
  9018. mdb_cursor_copy(mc, &mx);
  9019. while (mc->mc_snum > 0) {
  9020. MDB_page *mp = mc->mc_pg[mc->mc_top];
  9021. unsigned n = NUMKEYS(mp);
  9022. if (IS_LEAF(mp)) {
  9023. for (i=0; i<n; i++) {
  9024. ni = NODEPTR(mp, i);
  9025. if (ni->mn_flags & F_BIGDATA) {
  9026. MDB_page *omp;
  9027. pgno_t pg;
  9028. memcpy(&pg, NODEDATA(ni), sizeof(pg));
  9029. rc = mdb_page_get(mc, pg, &omp, NULL);
  9030. if (rc != 0)
  9031. goto done;
  9032. mdb_cassert(mc, IS_OVERFLOW(omp));
  9033. rc = mdb_midl_append_range(&txn->mt_free_pgs,
  9034. pg, omp->mp_pages);
  9035. if (rc)
  9036. goto done;
  9037. mc->mc_db->md_overflow_pages -= omp->mp_pages;
  9038. if (!mc->mc_db->md_overflow_pages && !subs)
  9039. break;
  9040. } else if (subs && (ni->mn_flags & F_SUBDATA)) {
  9041. mdb_xcursor_init1(mc, ni);
  9042. rc = mdb_drop0(&mc->mc_xcursor->mx_cursor, 0);
  9043. if (rc)
  9044. goto done;
  9045. }
  9046. }
  9047. if (!subs && !mc->mc_db->md_overflow_pages)
  9048. goto pop;
  9049. } else {
  9050. if ((rc = mdb_midl_need(&txn->mt_free_pgs, n)) != 0)
  9051. goto done;
  9052. for (i=0; i<n; i++) {
  9053. pgno_t pg;
  9054. ni = NODEPTR(mp, i);
  9055. pg = NODEPGNO(ni);
  9056. /* free it */
  9057. mdb_midl_xappend(txn->mt_free_pgs, pg);
  9058. }
  9059. }
  9060. if (!mc->mc_top)
  9061. break;
  9062. mc->mc_ki[mc->mc_top] = i;
  9063. rc = mdb_cursor_sibling(mc, 1);
  9064. if (rc) {
  9065. if (rc != MDB_NOTFOUND)
  9066. goto done;
  9067. /* no more siblings, go back to beginning
  9068. * of previous level.
  9069. */
  9070. pop:
  9071. mdb_cursor_pop(mc);
  9072. mc->mc_ki[0] = 0;
  9073. for (i=1; i<mc->mc_snum; i++) {
  9074. mc->mc_ki[i] = 0;
  9075. mc->mc_pg[i] = mx.mc_pg[i];
  9076. }
  9077. }
  9078. }
  9079. /* free it */
  9080. rc = mdb_midl_append(&txn->mt_free_pgs, mc->mc_db->md_root);
  9081. done:
  9082. if (rc)
  9083. txn->mt_flags |= MDB_TXN_ERROR;
  9084. } else if (rc == MDB_NOTFOUND) {
  9085. rc = MDB_SUCCESS;
  9086. }
  9087. mc->mc_flags &= ~C_INITIALIZED;
  9088. return rc;
  9089. }
  9090. int mdb_drop(MDB_txn *txn, MDB_dbi dbi, int del)
  9091. {
  9092. MDB_cursor *mc, *m2;
  9093. int rc;
  9094. if ((unsigned)del > 1 || !TXN_DBI_EXIST(txn, dbi, DB_USRVALID))
  9095. return EINVAL;
  9096. if (F_ISSET(txn->mt_flags, MDB_TXN_RDONLY))
  9097. return EACCES;
  9098. if (TXN_DBI_CHANGED(txn, dbi))
  9099. return MDB_BAD_DBI;
  9100. rc = mdb_cursor_open(txn, dbi, &mc);
  9101. if (rc)
  9102. return rc;
  9103. rc = mdb_drop0(mc, mc->mc_db->md_flags & MDB_DUPSORT);
  9104. /* Invalidate the dropped DB's cursors */
  9105. for (m2 = txn->mt_cursors[dbi]; m2; m2 = m2->mc_next)
  9106. m2->mc_flags &= ~(C_INITIALIZED|C_EOF);
  9107. if (rc)
  9108. goto leave;
  9109. /* Can't delete the main DB */
  9110. if (del && dbi >= CORE_DBS) {
  9111. rc = mdb_del0(txn, MAIN_DBI, &mc->mc_dbx->md_name, NULL, F_SUBDATA);
  9112. if (!rc) {
  9113. txn->mt_dbflags[dbi] = DB_STALE;
  9114. mdb_dbi_close(txn->mt_env, dbi);
  9115. } else {
  9116. txn->mt_flags |= MDB_TXN_ERROR;
  9117. }
  9118. } else {
  9119. /* reset the DB record, mark it dirty */
  9120. txn->mt_dbflags[dbi] |= DB_DIRTY;
  9121. txn->mt_dbs[dbi].md_depth = 0;
  9122. txn->mt_dbs[dbi].md_branch_pages = 0;
  9123. txn->mt_dbs[dbi].md_leaf_pages = 0;
  9124. txn->mt_dbs[dbi].md_overflow_pages = 0;
  9125. txn->mt_dbs[dbi].md_entries = 0;
  9126. txn->mt_dbs[dbi].md_root = P_INVALID;
  9127. txn->mt_flags |= MDB_TXN_DIRTY;
  9128. }
  9129. leave:
  9130. mdb_cursor_close(mc);
  9131. return rc;
  9132. }
  9133. int mdb_set_compare(MDB_txn *txn, MDB_dbi dbi, MDB_cmp_func *cmp)
  9134. {
  9135. if (!TXN_DBI_EXIST(txn, dbi, DB_USRVALID))
  9136. return EINVAL;
  9137. txn->mt_dbxs[dbi].md_cmp = cmp;
  9138. return MDB_SUCCESS;
  9139. }
  9140. int mdb_set_dupsort(MDB_txn *txn, MDB_dbi dbi, MDB_cmp_func *cmp)
  9141. {
  9142. if (!TXN_DBI_EXIST(txn, dbi, DB_USRVALID))
  9143. return EINVAL;
  9144. txn->mt_dbxs[dbi].md_dcmp = cmp;
  9145. return MDB_SUCCESS;
  9146. }
  9147. int mdb_set_relfunc(MDB_txn *txn, MDB_dbi dbi, MDB_rel_func *rel)
  9148. {
  9149. if (!TXN_DBI_EXIST(txn, dbi, DB_USRVALID))
  9150. return EINVAL;
  9151. txn->mt_dbxs[dbi].md_rel = rel;
  9152. return MDB_SUCCESS;
  9153. }
  9154. int mdb_set_relctx(MDB_txn *txn, MDB_dbi dbi, void *ctx)
  9155. {
  9156. if (!TXN_DBI_EXIST(txn, dbi, DB_USRVALID))
  9157. return EINVAL;
  9158. txn->mt_dbxs[dbi].md_relctx = ctx;
  9159. return MDB_SUCCESS;
  9160. }
  9161. int ESECT
  9162. mdb_env_get_maxkeysize(MDB_env *env)
  9163. {
  9164. return ENV_MAXKEY(env);
  9165. }
  9166. int ESECT
  9167. mdb_reader_list(MDB_env *env, MDB_msg_func *func, void *ctx)
  9168. {
  9169. unsigned int i, rdrs;
  9170. MDB_reader *mr;
  9171. char buf[64];
  9172. int rc = 0, first = 1;
  9173. if (!env || !func)
  9174. return -1;
  9175. if (!env->me_txns) {
  9176. return func("(no reader locks)\n", ctx);
  9177. }
  9178. rdrs = env->me_txns->mti_numreaders;
  9179. mr = env->me_txns->mti_readers;
  9180. for (i=0; i<rdrs; i++) {
  9181. if (mr[i].mr_pid) {
  9182. txnid_t txnid = mr[i].mr_txnid;
  9183. sprintf(buf, txnid == (txnid_t)-1 ?
  9184. "%10d %"Z"x -\n" : "%10d %"Z"x %"Z"u\n",
  9185. (int)mr[i].mr_pid, (size_t)mr[i].mr_tid, txnid);
  9186. if (first) {
  9187. first = 0;
  9188. rc = func(" pid thread txnid\n", ctx);
  9189. if (rc < 0)
  9190. break;
  9191. }
  9192. rc = func(buf, ctx);
  9193. if (rc < 0)
  9194. break;
  9195. }
  9196. }
  9197. if (first) {
  9198. rc = func("(no active readers)\n", ctx);
  9199. }
  9200. return rc;
  9201. }
  9202. /** Insert pid into list if not already present.
  9203. * return -1 if already present.
  9204. */
  9205. static int ESECT
  9206. mdb_pid_insert(MDB_PID_T *ids, MDB_PID_T pid)
  9207. {
  9208. /* binary search of pid in list */
  9209. unsigned base = 0;
  9210. unsigned cursor = 1;
  9211. int val = 0;
  9212. unsigned n = ids[0];
  9213. while( 0 < n ) {
  9214. unsigned pivot = n >> 1;
  9215. cursor = base + pivot + 1;
  9216. val = pid - ids[cursor];
  9217. if( val < 0 ) {
  9218. n = pivot;
  9219. } else if ( val > 0 ) {
  9220. base = cursor;
  9221. n -= pivot + 1;
  9222. } else {
  9223. /* found, so it's a duplicate */
  9224. return -1;
  9225. }
  9226. }
  9227. if( val > 0 ) {
  9228. ++cursor;
  9229. }
  9230. ids[0]++;
  9231. for (n = ids[0]; n > cursor; n--)
  9232. ids[n] = ids[n-1];
  9233. ids[n] = pid;
  9234. return 0;
  9235. }
  9236. int ESECT
  9237. mdb_reader_check(MDB_env *env, int *dead)
  9238. {
  9239. if (!env)
  9240. return EINVAL;
  9241. if (dead)
  9242. *dead = 0;
  9243. return env->me_txns ? mdb_reader_check0(env, 0, dead) : MDB_SUCCESS;
  9244. }
  9245. /** As #mdb_reader_check(). \b rlocked is set if caller locked #me_rmutex. */
  9246. static int ESECT
  9247. mdb_reader_check0(MDB_env *env, int rlocked, int *dead)
  9248. {
  9249. mdb_mutexref_t rmutex = rlocked ? NULL : env->me_rmutex;
  9250. unsigned int i, j, rdrs;
  9251. MDB_reader *mr;
  9252. MDB_PID_T *pids, pid;
  9253. int rc = MDB_SUCCESS, count = 0;
  9254. rdrs = env->me_txns->mti_numreaders;
  9255. pids = malloc((rdrs+1) * sizeof(MDB_PID_T));
  9256. if (!pids)
  9257. return ENOMEM;
  9258. pids[0] = 0;
  9259. mr = env->me_txns->mti_readers;
  9260. for (i=0; i<rdrs; i++) {
  9261. pid = mr[i].mr_pid;
  9262. if (pid && pid != env->me_pid) {
  9263. if (mdb_pid_insert(pids, pid) == 0) {
  9264. if (!mdb_reader_pid(env, Pidcheck, pid)) {
  9265. /* Stale reader found */
  9266. j = i;
  9267. if (rmutex) {
  9268. if ((rc = LOCK_MUTEX0(rmutex)) != 0) {
  9269. if ((rc = mdb_mutex_failed(env, rmutex, rc)))
  9270. break;
  9271. rdrs = 0; /* the above checked all readers */
  9272. } else {
  9273. /* Recheck, a new process may have reused pid */
  9274. if (mdb_reader_pid(env, Pidcheck, pid))
  9275. j = rdrs;
  9276. }
  9277. }
  9278. for (; j<rdrs; j++)
  9279. if (mr[j].mr_pid == pid) {
  9280. DPRINTF(("clear stale reader pid %u txn %"Z"d",
  9281. (unsigned) pid, mr[j].mr_txnid));
  9282. mr[j].mr_pid = 0;
  9283. count++;
  9284. }
  9285. if (rmutex)
  9286. UNLOCK_MUTEX(rmutex);
  9287. }
  9288. }
  9289. }
  9290. }
  9291. free(pids);
  9292. if (dead)
  9293. *dead = count;
  9294. return rc;
  9295. }
  9296. #ifdef MDB_ROBUST_SUPPORTED
  9297. /** Handle #LOCK_MUTEX0() failure.
  9298. * Try to repair the lock file if the mutex owner died.
  9299. * @param[in] env the environment handle
  9300. * @param[in] mutex LOCK_MUTEX0() mutex
  9301. * @param[in] rc LOCK_MUTEX0() error (nonzero)
  9302. * @return 0 on success with the mutex locked, or an error code on failure.
  9303. */
  9304. static int ESECT
  9305. mdb_mutex_failed(MDB_env *env, mdb_mutexref_t mutex, int rc)
  9306. {
  9307. int rlocked, rc2;
  9308. MDB_meta *meta;
  9309. if (rc == MDB_OWNERDEAD) {
  9310. /* We own the mutex. Clean up after dead previous owner. */
  9311. rc = MDB_SUCCESS;
  9312. rlocked = (mutex == env->me_rmutex);
  9313. if (!rlocked) {
  9314. /* Keep mti_txnid updated, otherwise next writer can
  9315. * overwrite data which latest meta page refers to.
  9316. */
  9317. meta = mdb_env_pick_meta(env);
  9318. env->me_txns->mti_txnid = meta->mm_txnid;
  9319. /* env is hosed if the dead thread was ours */
  9320. if (env->me_txn) {
  9321. env->me_flags |= MDB_FATAL_ERROR;
  9322. env->me_txn = NULL;
  9323. rc = MDB_PANIC;
  9324. }
  9325. }
  9326. DPRINTF(("%cmutex owner died, %s", (rlocked ? 'r' : 'w'),
  9327. (rc ? "this process' env is hosed" : "recovering")));
  9328. rc2 = mdb_reader_check0(env, rlocked, NULL);
  9329. if (rc2 == 0)
  9330. rc2 = mdb_mutex_consistent(mutex);
  9331. if (rc || (rc = rc2)) {
  9332. DPRINTF(("LOCK_MUTEX recovery failed, %s", mdb_strerror(rc)));
  9333. UNLOCK_MUTEX(mutex);
  9334. }
  9335. } else {
  9336. #ifdef _WIN32
  9337. rc = ErrCode();
  9338. #endif
  9339. DPRINTF(("LOCK_MUTEX failed, %s", mdb_strerror(rc)));
  9340. }
  9341. return rc;
  9342. }
  9343. #endif /* MDB_ROBUST_SUPPORTED */
  9344. #if defined(_WIN32)
  9345. /** Convert \b src to new wchar_t[] string with room for \b xtra extra chars */
  9346. static int ESECT
  9347. utf8_to_utf16(const char *src, MDB_name *dst, int xtra)
  9348. {
  9349. int rc, need = 0;
  9350. wchar_t *result = NULL;
  9351. for (;;) { /* malloc result, then fill it in */
  9352. need = MultiByteToWideChar(CP_UTF8, 0, src, -1, result, need);
  9353. if (!need) {
  9354. rc = ErrCode();
  9355. free(result);
  9356. return rc;
  9357. }
  9358. if (!result) {
  9359. result = malloc(sizeof(wchar_t) * (need + xtra));
  9360. if (!result)
  9361. return ENOMEM;
  9362. continue;
  9363. }
  9364. dst->mn_alloced = 1;
  9365. dst->mn_len = need - 1;
  9366. dst->mn_val = result;
  9367. return MDB_SUCCESS;
  9368. }
  9369. }
  9370. #endif /* defined(_WIN32) */
  9371. /** @} */