xref: /sqlite-3.40.0/test/wal2.test (revision a3fdec71)
1# 2010 May 5
2#
3# The author disclaims copyright to this source code.  In place of
4# a legal notice, here is a blessing:
5#
6#    May you do good and not evil.
7#    May you find forgiveness for yourself and forgive others.
8#    May you share freely, never taking more than you give.
9#
10#***********************************************************************
11# This file implements regression tests for SQLite library.  The
12# focus of this file is testing the operation of the library in
13# "PRAGMA journal_mode=WAL" mode.
14#
15
16set testdir [file dirname $argv0]
17source $testdir/tester.tcl
18source $testdir/lock_common.tcl
19source $testdir/malloc_common.tcl
20source $testdir/wal_common.tcl
21
22set testprefix wal2
23
24ifcapable !wal {finish_test ; return }
25
26set sqlite_sync_count 0
27proc cond_incr_sync_count {adj} {
28  global sqlite_sync_count
29  if {$::tcl_platform(platform) == "windows"} {
30    incr sqlite_sync_count $adj
31  } {
32    ifcapable !dirsync {
33      incr sqlite_sync_count $adj
34    }
35  }
36}
37
38proc set_tvfs_hdr {file args} {
39
40  # Set $nHdr to the number of bytes in the wal-index header:
41  set nHdr 48
42  set nInt [expr {$nHdr/4}]
43
44  if {[llength $args]>2} {
45    error {wrong # args: should be "set_tvfs_hdr fileName ?val1? ?val2?"}
46  }
47
48  set blob [tvfs shm $file]
49  if {$::tcl_platform(byteOrder)=="bigEndian"} {set fmt I} {set fmt i}
50
51  if {[llength $args]} {
52    set ia [lindex $args 0]
53    set ib $ia
54    if {[llength $args]==2} {
55      set ib [lindex $args 1]
56    }
57    binary scan $blob a[expr $nHdr*2]a* dummy tail
58    set blob [binary format ${fmt}${nInt}${fmt}${nInt}a* $ia $ib $tail]
59    tvfs shm $file $blob
60  }
61
62  binary scan $blob ${fmt}${nInt} ints
63  return $ints
64}
65
66proc incr_tvfs_hdr {file idx incrval} {
67  set ints [set_tvfs_hdr $file]
68  set v [lindex $ints $idx]
69  incr v $incrval
70  lset ints $idx $v
71  set_tvfs_hdr $file $ints
72}
73
74
75#-------------------------------------------------------------------------
76# Test case wal2-1.*:
77#
78# Set up a small database containing a single table. The database is not
79# checkpointed during the test - all content resides in the log file.
80#
81# Two connections are established to the database file - a writer ([db])
82# and a reader ([db2]). For each of the 8 integer fields in the wal-index
83# header (6 fields and 2 checksum values), do the following:
84#
85#   1. Modify the database using the writer.
86#
87#   2. Attempt to read the database using the reader. Before the reader
88#      has a chance to snapshot the wal-index header, increment one
89#      of the integer fields (so that the reader ends up with a corrupted
90#      header).
91#
92#   3. Check that the reader recovers the wal-index and reads the correct
93#      database content.
94#
95do_test wal2-1.0 {
96  proc tvfs_cb {method filename args} {
97    set ::filename $filename
98    return SQLITE_OK
99  }
100
101  testvfs tvfs
102  tvfs script tvfs_cb
103  tvfs filter xShmOpen
104
105  sqlite3 db  test.db -vfs tvfs
106  sqlite3 db2 test.db -vfs tvfs
107
108  execsql {
109    PRAGMA journal_mode = WAL;
110    CREATE TABLE t1(a);
111  } db2
112  execsql {
113    INSERT INTO t1 VALUES(1);
114    INSERT INTO t1 VALUES(2);
115    INSERT INTO t1 VALUES(3);
116    INSERT INTO t1 VALUES(4);
117    SELECT count(a), sum(a) FROM t1;
118  }
119} {4 10}
120do_test wal2-1.1 {
121  execsql { SELECT count(a), sum(a) FROM t1 } db2
122} {4 10}
123
124set RECOVER [list                                      \
125  {0 1 lock exclusive}   {1 7 lock exclusive}          \
126  {1 7 unlock exclusive} {0 1 unlock exclusive}        \
127]
128set READ [list                                         \
129  {4 1 lock shared}    {4 1 unlock shared}             \
130]
131set INITSLOT [list                                     \
132  {4 1 lock exclusive} {4 1 unlock exclusive}          \
133]
134
135foreach {tn iInsert res wal_index_hdr_mod wal_locks} "
136         2    5   {5 15}    0             {$RECOVER $READ}
137         3    6   {6 21}    1             {$RECOVER $READ}
138         4    7   {7 28}    2             {$RECOVER $READ}
139         5    8   {8 36}    3             {$RECOVER $READ}
140         6    9   {9 45}    4             {$RECOVER $READ}
141         7   10   {10 55}   5             {$RECOVER $READ}
142         8   11   {11 66}   6             {$RECOVER $READ}
143         9   12   {12 78}   7             {$RECOVER $READ}
144        10   13   {13 91}   8             {$RECOVER $READ}
145        11   14   {14 105}  9             {$RECOVER $READ}
146        12   15   {15 120}  -1            {$INITSLOT $READ}
147" {
148
149  do_test wal2-1.$tn.1 {
150    execsql { INSERT INTO t1 VALUES($iInsert) }
151    set ::locks [list]
152    proc tvfs_cb {method args} {
153      lappend ::locks [lindex $args 2]
154      return SQLITE_OK
155    }
156    tvfs filter xShmLock
157    if {$::wal_index_hdr_mod >= 0} {
158      incr_tvfs_hdr $::filename $::wal_index_hdr_mod 1
159    }
160    execsql { SELECT count(a), sum(a) FROM t1 } db2
161  } $res
162
163  do_test wal2-1.$tn.2 {
164    set ::locks
165  } $wal_locks
166}
167db close
168db2 close
169tvfs delete
170forcedelete test.db test.db-wal test.db-journal
171
172#-------------------------------------------------------------------------
173# This test case is very similar to the previous one, except, after
174# the reader reads the corrupt wal-index header, but before it has
175# a chance to re-read it under the cover of the RECOVER lock, the
176# wal-index header is replaced with a valid, but out-of-date, header.
177#
178# Because the header checksum looks Ok, the reader does not run recovery,
179# it simply drops back to a READ lock and proceeds. But because the
180# header is out-of-date, the reader reads the out-of-date snapshot.
181#
182# After this, the header is corrupted again and the reader is allowed
183# to run recovery. This time, it sees an up-to-date snapshot of the
184# database file.
185#
186set WRITER [list 0 1 lock exclusive]
187set LOCKS  [list \
188  {0 1 lock exclusive} {0 1 unlock exclusive} \
189  {4 1 lock exclusive} {4 1 unlock exclusive} \
190  {4 1 lock shared}    {4 1 unlock shared}    \
191]
192do_test wal2-2.0 {
193
194  testvfs tvfs
195  tvfs script tvfs_cb
196  tvfs filter xShmOpen
197  proc tvfs_cb {method args} {
198    set ::filename [lindex $args 0]
199    return SQLITE_OK
200  }
201
202  sqlite3 db  test.db -vfs tvfs
203  sqlite3 db2 test.db -vfs tvfs
204
205  execsql {
206    PRAGMA journal_mode = WAL;
207    CREATE TABLE t1(a);
208  } db2
209  execsql {
210    INSERT INTO t1 VALUES(1);
211    INSERT INTO t1 VALUES(2);
212    INSERT INTO t1 VALUES(3);
213    INSERT INTO t1 VALUES(4);
214    SELECT count(a), sum(a) FROM t1;
215  }
216} {4 10}
217do_test wal2-2.1 {
218  execsql { SELECT count(a), sum(a) FROM t1 } db2
219} {4 10}
220
221foreach {tn iInsert res0 res1 wal_index_hdr_mod} {
222         2    5   {4 10}   {5 15}    0
223         3    6   {5 15}   {6 21}    1
224         4    7   {6 21}   {7 28}    2
225         5    8   {7 28}   {8 36}    3
226         6    9   {8 36}   {9 45}    4
227         7   10   {9 45}   {10 55}   5
228         8   11   {10 55}  {11 66}   6
229         9   12   {11 66}  {12 78}   7
230} {
231  tvfs filter xShmLock
232
233  do_test wal2-2.$tn.1 {
234    set oldhdr [set_tvfs_hdr $::filename]
235    execsql { INSERT INTO t1 VALUES($iInsert) }
236    execsql { SELECT count(a), sum(a) FROM t1 }
237  } $res1
238
239  do_test wal2-2.$tn.2 {
240    set ::locks [list]
241    proc tvfs_cb {method args} {
242      set lock [lindex $args 2]
243      lappend ::locks $lock
244      if {$lock == $::WRITER} {
245        set_tvfs_hdr $::filename $::oldhdr
246      }
247      return SQLITE_OK
248    }
249
250    if {$::wal_index_hdr_mod >= 0} {
251      incr_tvfs_hdr $::filename $::wal_index_hdr_mod 1
252    }
253    execsql { SELECT count(a), sum(a) FROM t1 } db2
254  } $res0
255
256  do_test wal2-2.$tn.3 {
257    set ::locks
258  } $LOCKS
259
260  do_test wal2-2.$tn.4 {
261    set ::locks [list]
262    proc tvfs_cb {method args} {
263      set lock [lindex $args 2]
264      lappend ::locks $lock
265      return SQLITE_OK
266    }
267
268    if {$::wal_index_hdr_mod >= 0} {
269      incr_tvfs_hdr $::filename $::wal_index_hdr_mod 1
270    }
271    execsql { SELECT count(a), sum(a) FROM t1 } db2
272  } $res1
273}
274db close
275db2 close
276tvfs delete
277forcedelete test.db test.db-wal test.db-journal
278
279
280if 0 {
281#-------------------------------------------------------------------------
282# This test case - wal2-3.* - tests the response of the library to an
283# SQLITE_BUSY when attempting to obtain a READ or RECOVER lock.
284#
285#   wal2-3.0 - 2: SQLITE_BUSY when obtaining a READ lock
286#   wal2-3.3 - 6: SQLITE_BUSY when obtaining a RECOVER lock
287#
288do_test wal2-3.0 {
289  proc tvfs_cb {method args} {
290    if {$method == "xShmLock"} {
291      if {[info exists ::locked]} { return SQLITE_BUSY }
292    }
293    return SQLITE_OK
294  }
295
296  proc busyhandler x {
297    if {$x>3} { unset -nocomplain ::locked }
298    return 0
299  }
300
301  testvfs tvfs
302  tvfs script tvfs_cb
303  sqlite3 db test.db -vfs tvfs
304  db busy busyhandler
305
306  execsql {
307    PRAGMA journal_mode = WAL;
308    CREATE TABLE t1(a);
309    INSERT INTO t1 VALUES(1);
310    INSERT INTO t1 VALUES(2);
311    INSERT INTO t1 VALUES(3);
312    INSERT INTO t1 VALUES(4);
313  }
314
315  set ::locked 1
316  info exists ::locked
317} {1}
318do_test wal2-3.1 {
319  execsql { SELECT count(a), sum(a) FROM t1 }
320} {4 10}
321do_test wal2-3.2 {
322  info exists ::locked
323} {0}
324
325do_test wal2-3.3 {
326  proc tvfs_cb {method args} {
327    if {$method == "xShmLock"} {
328      if {[info exists ::sabotage]} {
329        unset -nocomplain ::sabotage
330        incr_tvfs_hdr [lindex $args 0] 1 1
331      }
332      if {[info exists ::locked] && [lindex $args 2] == "RECOVER"} {
333        return SQLITE_BUSY
334      }
335    }
336    return SQLITE_OK
337  }
338  set ::sabotage 1
339  set ::locked 1
340  list [info exists ::sabotage] [info exists ::locked]
341} {1 1}
342do_test wal2-3.4 {
343  execsql { SELECT count(a), sum(a) FROM t1 }
344} {4 10}
345do_test wal2-3.5 {
346  list [info exists ::sabotage] [info exists ::locked]
347} {0 0}
348db close
349tvfs delete
350forcedelete test.db test.db-wal test.db-journal
351
352}
353
354#-------------------------------------------------------------------------
355# Test that a database connection using a VFS that does not support the
356# xShmXXX interfaces cannot open a WAL database.
357#
358do_test wal2-4.1 {
359  sqlite3 db test.db
360  execsql {
361    PRAGMA auto_vacuum = 0;
362    PRAGMA journal_mode = WAL;
363    CREATE TABLE data(x);
364    INSERT INTO data VALUES('need xShmOpen to see this');
365    PRAGMA wal_checkpoint;
366  }
367  # Three pages in the WAL file at this point: One copy of page 1 and two
368  # of the root page for table "data".
369} {wal 0 3 3}
370do_test wal2-4.2 {
371  db close
372  testvfs tvfs -noshm 1
373  sqlite3 db test.db -vfs tvfs
374  catchsql { SELECT * FROM data }
375} {1 {unable to open database file}}
376do_test wal2-4.3 {
377  db close
378  testvfs tvfs
379  sqlite3 db test.db -vfs tvfs
380  catchsql { SELECT * FROM data }
381} {0 {{need xShmOpen to see this}}}
382db close
383tvfs delete
384
385#-------------------------------------------------------------------------
386# Test that if a database connection is forced to run recovery before it
387# can perform a checkpoint, it does not transition into RECOVER state.
388#
389# UPDATE: This has now changed. When running a checkpoint, if recovery is
390# required the client grabs all exclusive locks (just as it would for a
391# recovery performed as a pre-cursor to a normal database transaction).
392#
393set expected_locks [list]
394lappend expected_locks {1 1 lock exclusive}   ;# Lock checkpoint
395lappend expected_locks {0 1 lock exclusive}   ;# Lock writer
396lappend expected_locks {2 6 lock exclusive}   ;# Lock recovery & all aReadMark[]
397lappend expected_locks {2 6 unlock exclusive} ;# Unlock recovery & aReadMark[]
398lappend expected_locks {0 1 unlock exclusive} ;# Unlock writer
399lappend expected_locks {3 1 lock exclusive}   ;# Lock aReadMark[0]
400lappend expected_locks {3 1 unlock exclusive} ;# Unlock aReadMark[0]
401lappend expected_locks {1 1 unlock exclusive} ;# Unlock checkpoint
402do_test wal2-5.1 {
403  proc tvfs_cb {method args} {
404    set ::shm_file [lindex $args 0]
405    if {$method == "xShmLock"} { lappend ::locks [lindex $args 2] }
406    return $::tvfs_cb_return
407  }
408  set tvfs_cb_return SQLITE_OK
409
410  testvfs tvfs
411  tvfs script tvfs_cb
412
413  sqlite3 db test.db -vfs tvfs
414  execsql {
415    PRAGMA journal_mode = WAL;
416    CREATE TABLE x(y);
417    INSERT INTO x VALUES(1);
418  }
419
420  incr_tvfs_hdr $::shm_file 1 1
421  set ::locks [list]
422  execsql { PRAGMA wal_checkpoint }
423  set ::locks
424} $expected_locks
425db close
426tvfs delete
427
428#-------------------------------------------------------------------------
429# This block, test cases wal2-6.*, tests the operation of WAL with
430# "PRAGMA locking_mode=EXCLUSIVE" set.
431#
432#   wal2-6.1.*: Changing to WAL mode before setting locking_mode=exclusive.
433#
434#   wal2-6.2.*: Changing to WAL mode after setting locking_mode=exclusive.
435#
436#   wal2-6.3.*: Changing back to rollback mode from WAL mode after setting
437#               locking_mode=exclusive.
438#
439#   wal2-6.4.*: Check that xShmLock calls are omitted in exclusive locking
440#               mode.
441#
442#   wal2-6.5.*:
443#
444#   wal2-6.6.*: Check that if the xShmLock() to reaquire a WAL read-lock when
445#               exiting exclusive mode fails (i.e. SQLITE_IOERR), then the
446#               connection silently remains in exclusive mode.
447#
448do_test wal2-6.1.1 {
449  forcedelete test.db test.db-wal test.db-journal
450  sqlite3 db test.db
451  execsql {
452    Pragma Journal_Mode = Wal;
453  }
454} {wal}
455do_test wal2-6.1.2 {
456  execsql { PRAGMA lock_status }
457} {main unlocked temp closed}
458do_test wal2-6.1.3 {
459  execsql {
460    SELECT * FROM sqlite_master;
461    Pragma Locking_Mode = Exclusive;
462  }
463  execsql {
464    BEGIN;
465      CREATE TABLE t1(a, b);
466      INSERT INTO t1 VALUES(1, 2);
467    COMMIT;
468    PRAGMA lock_status;
469  }
470} {main exclusive temp closed}
471do_test wal2-6.1.4 {
472  execsql {
473    PRAGMA locking_mode = normal;
474    PRAGMA lock_status;
475  }
476} {normal main exclusive temp closed}
477do_test wal2-6.1.5 {
478  execsql {
479    SELECT * FROM t1;
480    PRAGMA lock_status;
481  }
482} {1 2 main shared temp closed}
483do_test wal2-6.1.6 {
484  execsql {
485    INSERT INTO t1 VALUES(3, 4);
486    PRAGMA lock_status;
487  }
488} {main shared temp closed}
489db close
490
491do_test wal2-6.2.1 {
492  forcedelete test.db test.db-wal test.db-journal
493  sqlite3 db test.db
494  execsql {
495    Pragma Locking_Mode = Exclusive;
496    Pragma Journal_Mode = Wal;
497    Pragma Lock_Status;
498  }
499} {exclusive wal main exclusive temp closed}
500do_test wal2-6.2.2 {
501  execsql {
502    BEGIN;
503      CREATE TABLE t1(a, b);
504      INSERT INTO t1 VALUES(1, 2);
505    COMMIT;
506    Pragma loCK_STATus;
507  }
508} {main exclusive temp closed}
509do_test wal2-6.2.3 {
510  db close
511  sqlite3 db test.db
512  execsql { SELECT * FROM sqlite_master }
513  execsql { PRAGMA LOCKING_MODE = EXCLUSIVE }
514} {exclusive}
515do_test wal2-6.2.4 {
516  execsql {
517    SELECT * FROM t1;
518    pragma lock_status;
519  }
520} {1 2 main shared temp closed}
521do_test wal2-6.2.5 {
522  execsql {
523    INSERT INTO t1 VALUES(3, 4);
524    pragma lock_status;
525  }
526} {main exclusive temp closed}
527do_test wal2-6.2.6 {
528  execsql {
529    PRAGMA locking_mode = NORMAL;
530    pragma lock_status;
531  }
532} {normal main exclusive temp closed}
533do_test wal2-6.2.7 {
534  execsql {
535    BEGIN IMMEDIATE; COMMIT;
536    pragma lock_status;
537  }
538} {main shared temp closed}
539do_test wal2-6.2.8 {
540  execsql {
541    PRAGMA locking_mode = EXCLUSIVE;
542    BEGIN IMMEDIATE; COMMIT;
543    PRAGMA locking_mode = NORMAL;
544  }
545  execsql {
546    SELECT * FROM t1;
547    pragma lock_status;
548  }
549} {1 2 3 4 main shared temp closed}
550do_test wal2-6.2.9 {
551  execsql {
552    INSERT INTO t1 VALUES(5, 6);
553    SELECT * FROM t1;
554    pragma lock_status;
555  }
556} {1 2 3 4 5 6 main shared temp closed}
557db close
558
559do_test wal2-6.3.1 {
560  forcedelete test.db test.db-wal test.db-journal
561  sqlite3 db test.db
562  execsql {
563    PRAGMA journal_mode = WAL;
564    PRAGMA locking_mode = exclusive;
565    BEGIN;
566      CREATE TABLE t1(x);
567      INSERT INTO t1 VALUES('Chico');
568      INSERT INTO t1 VALUES('Harpo');
569    COMMIT;
570  }
571  list [file exists test.db-wal] [file exists test.db-journal]
572} {1 0}
573do_test wal2-6.3.2 {
574  execsql { PRAGMA journal_mode = DELETE }
575  file exists test.db-wal
576} {0}
577do_test wal2-6.3.3 {
578  execsql { PRAGMA lock_status }
579} {main exclusive temp closed}
580do_test wal2-6.3.4 {
581  execsql {
582    BEGIN;
583      INSERT INTO t1 VALUES('Groucho');
584  }
585  list [file exists test.db-wal] [file exists test.db-journal]
586} {0 1}
587do_test wal2-6.3.5 {
588  execsql { PRAGMA lock_status }
589} {main exclusive temp closed}
590do_test wal2-6.3.6 {
591  execsql { COMMIT }
592  list [file exists test.db-wal] [file exists test.db-journal]
593} {0 1}
594do_test wal2-6.3.7 {
595  execsql { PRAGMA lock_status }
596} {main exclusive temp closed}
597db close
598
599
600# This test - wal2-6.4.* - uses a single database connection and the
601# [testvfs] instrumentation to test that xShmLock() is being called
602# as expected when a WAL database is used with locking_mode=exclusive.
603#
604do_test wal2-6.4.1 {
605  forcedelete test.db test.db-wal test.db-journal
606  proc tvfs_cb {method args} {
607    set ::shm_file [lindex $args 0]
608    if {$method == "xShmLock"} { lappend ::locks [lindex $args 2] }
609    return "SQLITE_OK"
610  }
611  testvfs tvfs
612  tvfs script tvfs_cb
613  sqlite3 db test.db -vfs tvfs
614  set {} {}
615} {}
616
617set RECOVERY {
618  {0 1 lock exclusive} {1 7 lock exclusive}
619  {1 7 unlock exclusive} {0 1 unlock exclusive}
620}
621set READMARK0_READ {
622  {3 1 lock shared} {3 1 unlock shared}
623}
624set READMARK0_WRITE {
625  {3 1 lock shared}
626  {0 1 lock exclusive} {3 1 unlock shared}
627  {4 1 lock exclusive} {4 1 unlock exclusive} {4 1 lock shared}
628  {0 1 unlock exclusive} {4 1 unlock shared}
629}
630set READMARK1_SET {
631  {4 1 lock exclusive} {4 1 unlock exclusive}
632}
633set READMARK1_READ {
634  {4 1 lock shared} {4 1 unlock shared}
635}
636set READMARK1_WRITE {
637  {4 1 lock shared}
638    {0 1 lock exclusive} {0 1 unlock exclusive}
639  {4 1 unlock shared}
640}
641
642foreach {tn sql res expected_locks} {
643  2 {
644    PRAGMA auto_vacuum = 0;
645    PRAGMA journal_mode = WAL;
646    BEGIN;
647      CREATE TABLE t1(x);
648      INSERT INTO t1 VALUES('Leonard');
649      INSERT INTO t1 VALUES('Arthur');
650    COMMIT;
651  } {wal} {
652    $RECOVERY
653    $READMARK0_WRITE
654  }
655
656  3 {
657    # This test should do the READMARK1_SET locking to populate the
658    # aReadMark[1] slot with the current mxFrame value. Followed by
659    # READMARK1_READ to read the database.
660    #
661    SELECT * FROM t1
662  } {Leonard Arthur} {
663    $READMARK1_SET
664    $READMARK1_READ
665  }
666
667  4 {
668    # aReadMark[1] is already set to mxFrame. So just READMARK1_READ
669    # this time, not READMARK1_SET.
670    #
671    SELECT * FROM t1 ORDER BY x
672  } {Arthur Leonard} {
673    $READMARK1_READ
674  }
675
676  5 {
677    PRAGMA locking_mode = exclusive
678  } {exclusive} { }
679
680  6 {
681    INSERT INTO t1 VALUES('Julius Henry');
682    SELECT * FROM t1;
683  } {Leonard Arthur {Julius Henry}} {
684    $READMARK1_READ
685  }
686
687  7 {
688    INSERT INTO t1 VALUES('Karl');
689    SELECT * FROM t1;
690  } {Leonard Arthur {Julius Henry} Karl} { }
691
692  8 {
693    PRAGMA locking_mode = normal
694  } {normal} { }
695
696  9 {
697    SELECT * FROM t1 ORDER BY x
698  } {Arthur {Julius Henry} Karl Leonard} $READMARK1_READ
699
700  10 { DELETE FROM t1 } {} $READMARK1_WRITE
701
702  11 {
703    SELECT * FROM t1
704  } {} {
705    $READMARK1_SET
706    $READMARK1_READ
707  }
708} {
709
710  set L [list]
711  foreach el [subst $expected_locks] { lappend L $el }
712
713  set S ""
714  foreach sq [split $sql "\n"] {
715    set sq [string trim $sq]
716    if {[string match {#*} $sq]==0} {append S "$sq\n"}
717  }
718
719  set ::locks [list]
720  do_test wal2-6.4.$tn.1 { execsql $S } $res
721  do_test wal2-6.4.$tn.2 { set ::locks  } $L
722}
723
724db close
725tvfs delete
726
727do_test wal2-6.5.1 {
728  sqlite3 db test.db
729  execsql {
730    PRAGMA auto_vacuum = 0;
731    PRAGMA journal_mode = wal;
732    PRAGMA locking_mode = exclusive;
733    CREATE TABLE t2(a, b);
734    PRAGMA wal_checkpoint;
735    INSERT INTO t2 VALUES('I', 'II');
736    PRAGMA journal_mode;
737  }
738} {wal exclusive 0 2 2 wal}
739do_test wal2-6.5.2 {
740  execsql {
741    PRAGMA locking_mode = normal;
742    INSERT INTO t2 VALUES('III', 'IV');
743    PRAGMA locking_mode = exclusive;
744    SELECT * FROM t2;
745  }
746} {normal exclusive I II III IV}
747do_test wal2-6.5.3 {
748  execsql { PRAGMA wal_checkpoint }
749} {0 2 2}
750db close
751
752proc lock_control {method filename handle spec} {
753  foreach {start n op type} $spec break
754  if {$op == "lock"} { return SQLITE_IOERR }
755  return SQLITE_OK
756}
757do_test wal2-6.6.1 {
758  testvfs T
759  T script lock_control
760  T filter {}
761  sqlite3 db test.db -vfs T
762  execsql { SELECT * FROM sqlite_master }
763  execsql { PRAGMA locking_mode = exclusive }
764  execsql { INSERT INTO t2 VALUES('V', 'VI') }
765} {}
766do_test wal2-6.6.2 {
767  execsql { PRAGMA locking_mode = normal }
768  T filter xShmLock
769  execsql { INSERT INTO t2 VALUES('VII', 'VIII') }
770} {}
771do_test wal2-6.6.3 {
772  # At this point the connection should still be in exclusive-mode, even
773  # though it tried to exit exclusive-mode when committing the INSERT
774  # statement above. To exit exclusive mode, SQLite has to take a read-lock
775  # on the WAL file using xShmLock(). Since that call failed, it remains
776  # in exclusive mode.
777  #
778  sqlite3 db2 test.db -vfs T
779  catchsql { SELECT * FROM t2 } db2
780} {1 {database is locked}}
781do_test wal2-6.6.2 {
782  db2 close
783  T filter {}
784  execsql { INSERT INTO t2 VALUES('IX', 'X') }
785} {}
786do_test wal2-6.6.4 {
787  # This time, we have successfully exited exclusive mode. So the second
788  # connection can read the database.
789  sqlite3 db2 test.db -vfs T
790  catchsql { SELECT * FROM t2 } db2
791} {0 {I II III IV V VI VII VIII IX X}}
792
793db close
794db2 close
795T delete
796
797#-------------------------------------------------------------------------
798# Test a theory about the checksum algorithm. Theory was false and this
799# test did not provoke a bug.
800#
801forcedelete test.db test.db-wal test.db-journal
802do_test wal2-7.1.1 {
803  sqlite3 db test.db
804  execsql {
805    PRAGMA page_size = 4096;
806    PRAGMA journal_mode = WAL;
807    CREATE TABLE t1(a, b);
808  }
809  file size test.db
810} {4096}
811do_test wal2-7.1.2 {
812  forcecopy test.db test2.db
813  forcecopy test.db-wal test2.db-wal
814  hexio_write test2.db-wal 48 FF
815} {1}
816do_test wal2-7.1.3 {
817  sqlite3 db2 test2.db
818  execsql { PRAGMA wal_checkpoint } db2
819  execsql { SELECT * FROM sqlite_master } db2
820} {}
821db close
822db2 close
823forcedelete test.db test.db-wal test.db-journal
824do_test wal2-8.1.2 {
825  sqlite3 db test.db
826  execsql {
827    PRAGMA auto_vacuum=OFF;
828    PRAGMA page_size = 1024;
829    PRAGMA journal_mode = WAL;
830    CREATE TABLE t1(x);
831    INSERT INTO t1 VALUES(zeroblob(8188*1020));
832    CREATE TABLE t2(y);
833    PRAGMA wal_checkpoint;
834  }
835  execsql {
836    SELECT rootpage>=8192 FROM sqlite_master WHERE tbl_name = 't2';
837  }
838} {1}
839do_test wal2-8.1.3 {
840  execsql {
841    PRAGMA cache_size = 10;
842    CREATE TABLE t3(z);
843    BEGIN;
844      INSERT INTO t3 VALUES(randomblob(900));
845      INSERT INTO t3 SELECT randomblob(900) FROM t3;
846      INSERT INTO t2 VALUES('hello');
847      INSERT INTO t3 SELECT randomblob(900) FROM t3;
848      INSERT INTO t3 SELECT randomblob(900) FROM t3;
849      INSERT INTO t3 SELECT randomblob(900) FROM t3;
850      INSERT INTO t3 SELECT randomblob(900) FROM t3;
851      INSERT INTO t3 SELECT randomblob(900) FROM t3;
852      INSERT INTO t3 SELECT randomblob(900) FROM t3;
853    ROLLBACK;
854  }
855  execsql {
856    INSERT INTO t2 VALUES('goodbye');
857    INSERT INTO t3 SELECT randomblob(900) FROM t3;
858    INSERT INTO t3 SELECT randomblob(900) FROM t3;
859  }
860} {}
861do_test wal2-8.1.4 {
862  sqlite3 db2 test.db
863  execsql { SELECT * FROM t2 }
864} {goodbye}
865db2 close
866db close
867
868#-------------------------------------------------------------------------
869# Test that even if the checksums for both are valid, if the two copies
870# of the wal-index header in the wal-index do not match, the client
871# runs (or at least tries to run) database recovery.
872#
873#
874proc get_name {method args} { set ::filename [lindex $args 0] ; tvfs filter {} }
875testvfs tvfs
876tvfs script get_name
877tvfs filter xShmOpen
878
879forcedelete test.db test.db-wal test.db-journal
880do_test wal2-9.1 {
881  sqlite3 db test.db -vfs tvfs
882  execsql {
883    PRAGMA journal_mode = WAL;
884    CREATE TABLE x(y);
885    INSERT INTO x VALUES('Barton');
886    INSERT INTO x VALUES('Deakin');
887  }
888
889  # Set $wih(1) to the contents of the wal-index header after
890  # the frames associated with the first two rows in table 'x' have
891  # been inserted. Then insert one more row and set $wih(2)
892  # to the new value of the wal-index header.
893  #
894  # If the $wih(1) is written into the wal-index before running
895  # a read operation, the client will see only the first two rows. If
896  # $wih(2) is written into the wal-index, the client will see
897  # three rows. If an invalid header is written into the wal-index, then
898  # the client will run recovery and see three rows.
899  #
900  set wih(1) [set_tvfs_hdr $::filename]
901  execsql { INSERT INTO x VALUES('Watson') }
902  set wih(2) [set_tvfs_hdr $::filename]
903
904  sqlite3 db2 test.db -vfs tvfs
905  execsql { SELECT * FROM x } db2
906} {Barton Deakin Watson}
907
908foreach {tn hdr1 hdr2 res} [list                                            \
909  3  $wih(1)                $wih(1)                {Barton Deakin}          \
910  4  $wih(1)                $wih(2)                {Barton Deakin Watson}   \
911  5  $wih(2)                $wih(1)                {Barton Deakin Watson}   \
912  6  $wih(2)                $wih(2)                {Barton Deakin Watson}   \
913  7  $wih(1)                $wih(1)                {Barton Deakin}          \
914  8  {0 0 0 0 0 0 0 0 0 0 0 0} {0 0 0 0 0 0 0 0 0 0 0 0} {Barton Deakin Watson}
915] {
916  do_test wal2-9.$tn {
917    set_tvfs_hdr $::filename $hdr1 $hdr2
918    execsql { SELECT * FROM x } db2
919  } $res
920}
921
922db2 close
923db close
924
925#-------------------------------------------------------------------------
926# This block of tests - wal2-10.* - focus on the libraries response to
927# new versions of the wal or wal-index formats.
928#
929#   wal2-10.1.*: Test that the library refuses to "recover" a new WAL
930#                format.
931#
932#   wal2-10.2.*: Test that the library refuses to read or write a database
933#                if the wal-index version is newer than it understands.
934#
935# At time of writing, the only versions of the wal and wal-index formats
936# that exist are versions 3007000 (corresponding to SQLite version 3.7.0,
937# the first version of SQLite to feature wal mode).
938#
939do_test wal2-10.1.1 {
940  faultsim_delete_and_reopen
941  execsql {
942    PRAGMA journal_mode = WAL;
943    CREATE TABLE t1(a, b);
944    PRAGMA wal_checkpoint;
945    INSERT INTO t1 VALUES(1, 2);
946    INSERT INTO t1 VALUES(3, 4);
947  }
948  faultsim_save_and_close
949} {}
950do_test wal2-10.1.2 {
951  faultsim_restore_and_reopen
952  execsql { SELECT * FROM t1 }
953} {1 2 3 4}
954do_test wal2-10.1.3 {
955  faultsim_restore_and_reopen
956  set hdr [wal_set_walhdr test.db-wal]
957  lindex $hdr 1
958} {3007000}
959do_test wal2-10.1.4 {
960  lset hdr 1 3007001
961  wal_set_walhdr test.db-wal $hdr
962  catchsql { SELECT * FROM t1 }
963} {1 {unable to open database file}}
964
965testvfs tvfs -default 1
966do_test wal2-10.2.1 {
967  faultsim_restore_and_reopen
968  execsql { SELECT * FROM t1 }
969} {1 2 3 4}
970do_test wal2-10.2.2 {
971  set hdr [set_tvfs_hdr $::filename]
972  lindex $hdr 0
973} {3007000}
974do_test wal2-10.2.3 {
975  lset hdr 0 3007001
976  wal_fix_walindex_cksum hdr
977  set_tvfs_hdr $::filename $hdr
978  catchsql { SELECT * FROM t1 }
979} {1 {unable to open database file}}
980db close
981tvfs delete
982
983#-------------------------------------------------------------------------
984# This block of tests - wal2-11.* - tests that it is not possible to put
985# the library into an infinite loop by presenting it with a corrupt
986# hash table (one that appears to contain a single chain of infinite
987# length).
988#
989#   wal2-11.1.*: While reading the hash-table.
990#
991#   wal2-11.2.*: While writing the hash-table.
992#
993testvfs tvfs -default 1
994do_test wal2-11.0 {
995  faultsim_delete_and_reopen
996  execsql {
997    PRAGMA journal_mode = WAL;
998    CREATE TABLE t1(a, b, c);
999    INSERT INTO t1 VALUES(1, 2, 3);
1000    INSERT INTO t1 VALUES(4, 5, 6);
1001    INSERT INTO t1 VALUES(7, 8, 9);
1002    SELECT * FROM t1;
1003  }
1004} {wal 1 2 3 4 5 6 7 8 9}
1005
1006do_test wal2-11.1.1 {
1007  sqlite3 db2 test.db
1008  execsql { SELECT name FROM sqlite_master } db2
1009} {t1}
1010
1011if {$::tcl_version>=8.5} {
1012  # Set all zeroed slots in the first hash table to invalid values.
1013  #
1014  set blob [string range [tvfs shm $::filename] 0 16383]
1015  set I [string range [tvfs shm $::filename] 16384 end]
1016  binary scan $I t* L
1017  set I [list]
1018  foreach p $L {
1019    lappend I [expr $p ? $p : 400]
1020  }
1021  append blob [binary format t* $I]
1022  tvfs shm $::filename $blob
1023  do_test wal2-11.2 {
1024    catchsql { INSERT INTO t1 VALUES(10, 11, 12) }
1025  } {1 {database disk image is malformed}}
1026
1027  # Fill up the hash table on the first page of shared memory with 0x55 bytes.
1028  #
1029  set blob [string range [tvfs shm $::filename] 0 16383]
1030  append blob [string repeat [binary format c 55] 16384]
1031  tvfs shm $::filename $blob
1032  do_test wal2-11.3 {
1033    catchsql { SELECT * FROM t1 } db2
1034  } {1 {database disk image is malformed}}
1035}
1036
1037db close
1038db2 close
1039tvfs delete
1040
1041#-------------------------------------------------------------------------
1042# If a connection is required to create a WAL or SHM file, it creates
1043# the new files with the same file-system permissions as the database
1044# file itself. Test this.
1045#
1046if {$::tcl_platform(platform) == "unix"} {
1047  faultsim_delete_and_reopen
1048  # Changed on 2012-02-13: umask is deliberately ignored for -wal files.
1049  #set umask [exec /bin/sh -c umask]
1050  set umask 0
1051
1052
1053  do_test wal2-12.1 {
1054    sqlite3 db test.db
1055    execsql {
1056      CREATE TABLE tx(y, z);
1057      PRAGMA journal_mode = WAL;
1058    }
1059    db close
1060    list [file exists test.db-wal] [file exists test.db-shm]
1061  } {0 0}
1062
1063  foreach {tn permissions} {
1064   1 00644
1065   2 00666
1066   3 00600
1067   4 00755
1068  } {
1069    set effective [format %.5o [expr $permissions & ~$umask]]
1070    do_test wal2-12.2.$tn.1 {
1071      file attributes test.db -permissions $permissions
1072      file attributes test.db -permissions
1073    } $permissions
1074    do_test wal2-12.2.$tn.2 {
1075      list [file exists test.db-wal] [file exists test.db-shm]
1076    } {0 0}
1077    do_test wal2-12.2.$tn.3 {
1078      sqlite3 db test.db
1079      execsql { INSERT INTO tx DEFAULT VALUES }
1080      list [file exists test.db-wal] [file exists test.db-shm]
1081    } {1 1}
1082    do_test wal2-12.2.$tn.4 {
1083      list [file attr test.db-wal -perm] [file attr test.db-shm -perm]
1084    } [list $effective $effective]
1085    do_test wal2-12.2.$tn.5 {
1086      db close
1087      list [file exists test.db-wal] [file exists test.db-shm]
1088    } {0 0}
1089  }
1090}
1091
1092#-------------------------------------------------------------------------
1093# Test the libraries response to discovering that one or more of the
1094# database, wal or shm files cannot be opened, or can only be opened
1095# read-only.
1096#
1097if {$::tcl_platform(platform) == "unix"} {
1098  proc perm {} {
1099    set L [list]
1100    foreach f {test.db test.db-wal test.db-shm} {
1101      if {[file exists $f]} {
1102        lappend L [file attr $f -perm]
1103      } else {
1104        lappend L {}
1105      }
1106    }
1107    set L
1108  }
1109
1110  faultsim_delete_and_reopen
1111  execsql {
1112    PRAGMA journal_mode = WAL;
1113    CREATE TABLE t1(a, b);
1114    PRAGMA wal_checkpoint;
1115    INSERT INTO t1 VALUES('3.14', '2.72');
1116  }
1117  do_test wal2-13.1.1 {
1118    list [file exists test.db-shm] [file exists test.db-wal]
1119  } {1 1}
1120  faultsim_save_and_close
1121
1122  foreach {tn db_perm wal_perm shm_perm can_open can_read can_write} {
1123    2   00644   00644   00644   1   1   1
1124    3   00644   00400   00644   1   1   0
1125    4   00644   00644   00400   1   0   0
1126    5   00400   00644   00644   1   1   0
1127
1128    7   00644   00000   00644   1   0   0
1129    8   00644   00644   00000   1   0   0
1130    9   00000   00644   00644   0   0   0
1131  } {
1132    faultsim_restore
1133    do_test wal2-13.$tn.1 {
1134      file attr test.db     -perm $db_perm
1135      file attr test.db-wal -perm $wal_perm
1136      file attr test.db-shm -perm $shm_perm
1137
1138      set     L [file attr test.db -perm]
1139      lappend L [file attr test.db-wal -perm]
1140      lappend L [file attr test.db-shm -perm]
1141    } [list $db_perm $wal_perm $shm_perm]
1142
1143    # If $can_open is true, then it should be possible to open a database
1144    # handle. Otherwise, if $can_open is 0, attempting to open the db
1145    # handle throws an "unable to open database file" exception.
1146    #
1147    set r(1) {0 ok}
1148    set r(0) {1 {unable to open database file}}
1149    do_test wal2-13.$tn.2 {
1150      list [catch {sqlite3 db test.db ; set {} ok} msg] $msg
1151    } $r($can_open)
1152
1153    if {$can_open} {
1154
1155      # If $can_read is true, then the client should be able to read from
1156      # the database file. If $can_read is false, attempting to read should
1157      # throw the "unable to open database file" exception.
1158      #
1159      set a(0) {1 {unable to open database file}}
1160      set a(1) {0 {3.14 2.72}}
1161      do_test wal2-13.$tn.3 {
1162        catchsql { SELECT * FROM t1 }
1163      } $a($can_read)
1164
1165      # Now try to write to the db file. If the client can read but not
1166      # write, then it should throw the familiar "unable to open db file"
1167      # exception. If it can read but not write, the exception should
1168      # be "attempt to write a read only database".
1169      #
1170      # If the client can read and write, the operation should succeed.
1171      #
1172      set b(0,0) {1 {unable to open database file}}
1173      set b(1,0) {1 {attempt to write a readonly database}}
1174      set b(1,1) {0 {}}
1175      do_test wal2-13.$tn.4 {
1176        catchsql { INSERT INTO t1 DEFAULT VALUES }
1177      } $b($can_read,$can_write)
1178    }
1179    catch { db close }
1180  }
1181}
1182
1183#-------------------------------------------------------------------------
1184# Test that "PRAGMA checkpoint_fullsync" appears to be working.
1185#
1186foreach {tn sql reslist} {
1187  1 { }                                 {10 0 4 0 6 0}
1188  2 { PRAGMA checkpoint_fullfsync = 1 } {10 4 4 2 6 2}
1189  3 { PRAGMA checkpoint_fullfsync = 0 } {10 0 4 0 6 0}
1190} {
1191  faultsim_delete_and_reopen
1192
1193  execsql {PRAGMA auto_vacuum = 0}
1194  execsql $sql
1195  do_execsql_test wal2-14.$tn.0 { PRAGMA page_size = 4096 }   {}
1196  do_execsql_test wal2-14.$tn.1 { PRAGMA journal_mode = WAL } {wal}
1197
1198  set sqlite_sync_count 0
1199  set sqlite_fullsync_count 0
1200
1201  do_execsql_test wal2-14.$tn.2 {
1202    PRAGMA wal_autocheckpoint = 10;
1203    CREATE TABLE t1(a, b);                -- 2 wal syncs
1204    INSERT INTO t1 VALUES(1, 2);          -- 2 wal sync
1205    PRAGMA wal_checkpoint;                -- 1 wal sync, 1 db sync
1206    BEGIN;
1207      INSERT INTO t1 VALUES(3, 4);
1208      INSERT INTO t1 VALUES(5, 6);
1209    COMMIT;                               -- 2 wal sync
1210    PRAGMA wal_checkpoint;                -- 1 wal sync, 1 db sync
1211  } {10 0 3 3 0 1 1}
1212
1213  do_test wal2-14.$tn.3 {
1214    cond_incr_sync_count 1
1215    list $sqlite_sync_count $sqlite_fullsync_count
1216  } [lrange $reslist 0 1]
1217
1218  set sqlite_sync_count 0
1219  set sqlite_fullsync_count 0
1220
1221  do_test wal2-14.$tn.4 {
1222    execsql { INSERT INTO t1 VALUES(7, zeroblob(12*4096)) }
1223    list $sqlite_sync_count $sqlite_fullsync_count
1224  } [lrange $reslist 2 3]
1225
1226  set sqlite_sync_count 0
1227  set sqlite_fullsync_count 0
1228
1229  do_test wal2-14.$tn.5 {
1230    execsql { PRAGMA wal_autocheckpoint = 1000 }
1231    execsql { INSERT INTO t1 VALUES(9, 10) }
1232    execsql { INSERT INTO t1 VALUES(11, 12) }
1233    execsql { INSERT INTO t1 VALUES(13, 14) }
1234    db close
1235    list $sqlite_sync_count $sqlite_fullsync_count
1236  } [lrange $reslist 4 5]
1237}
1238
1239catch { db close }
1240
1241# PRAGMA checkpoint_fullsync
1242# PRAGMA fullfsync
1243# PRAGMA synchronous
1244#
1245foreach {tn settings restart_sync commit_sync ckpt_sync} {
1246  1  {0 0 off}     {0 0}  {0 0}  {0 0}
1247  2  {0 0 normal}  {1 0}  {0 0}  {2 0}
1248  3  {0 0 full}    {2 0}  {1 0}  {2 0}
1249
1250  4  {0 1 off}     {0 0}  {0 0}  {0 0}
1251  5  {0 1 normal}  {0 1}  {0 0}  {0 2}
1252  6  {0 1 full}    {0 2}  {0 1}  {0 2}
1253
1254  7  {1 0 off}     {0 0}  {0 0}  {0 0}
1255  8  {1 0 normal}  {1 0}  {0 0}  {0 2}
1256  9  {1 0 full}    {2 0}  {1 0}  {0 2}
1257
1258  10 {1 1 off}     {0 0}  {0 0}  {0 0}
1259  11 {1 1 normal}  {0 1}  {0 0}  {0 2}
1260  12 {1 1 full}    {0 2}  {0 1}  {0 2}
1261} {
1262  forcedelete test.db
1263
1264  testvfs tvfs -default 1
1265  tvfs filter xSync
1266  tvfs script xSyncCb
1267  proc xSyncCb {method file fileid flags} {
1268    incr ::sync($flags)
1269  }
1270
1271  sqlite3 db test.db
1272  do_execsql_test 15.$tn.1 "
1273    PRAGMA page_size = 4096;
1274    CREATE TABLE t1(x);
1275    PRAGMA wal_autocheckpoint = OFF;
1276    PRAGMA journal_mode = WAL;
1277    PRAGMA checkpoint_fullfsync = [lindex $settings 0];
1278    PRAGMA fullfsync = [lindex $settings 1];
1279    PRAGMA synchronous = [lindex $settings 2];
1280  " {0 wal}
1281
1282  do_test 15.$tn.2 {
1283    set sync(normal) 0
1284    set sync(full) 0
1285    execsql { INSERT INTO t1 VALUES('abc') }
1286    list $::sync(normal) $::sync(full)
1287  } $restart_sync
1288
1289  do_test 15.$tn.3 {
1290    set sync(normal) 0
1291    set sync(full) 0
1292    execsql { INSERT INTO t1 VALUES('abc') }
1293    list $::sync(normal) $::sync(full)
1294  } $commit_sync
1295
1296  do_test 15.$tn.4 {
1297    set sync(normal) 0
1298    set sync(full) 0
1299    execsql { INSERT INTO t1 VALUES('def') }
1300    list $::sync(normal) $::sync(full)
1301  } $commit_sync
1302
1303  do_test 15.$tn.5 {
1304    set sync(normal) 0
1305    set sync(full) 0
1306    execsql { PRAGMA wal_checkpoint }
1307    list $::sync(normal) $::sync(full)
1308  } $ckpt_sync
1309
1310  db close
1311  tvfs delete
1312}
1313
1314
1315
1316finish_test
1317