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1 /*
2 * CDDL HEADER START
4 * The contents of this file are subject to the terms of the
5 * Common Development and Distribution License (the "License").
6 * You may not use this file except in compliance with the License.
8 * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9 * or http://www.opensolaris.org/os/licensing.
10 * See the License for the specific language governing permissions
11 * and limitations under the License.
13 * When distributing Covered Code, include this CDDL HEADER in each
14 * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15 * If applicable, add the following below this CDDL HEADER, with the
16 * fields enclosed by brackets "[]" replaced with your own identifying
17 * information: Portions Copyright [yyyy] [name of copyright owner]
19 * CDDL HEADER END
22 * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved.
23 * Copyright (c) 2011, 2016 by Delphix. All rights reserved.
24 * Copyright 2011 Nexenta Systems, Inc. All rights reserved.
25 * Copyright (c) 2013 Steven Hartland. All rights reserved.
26 * Copyright (c) 2014 Integros [integros.com]
30 * The objective of this program is to provide a DMU/ZAP/SPA stress test
31 * that runs entirely in userland, is easy to use, and easy to extend.
33 * The overall design of the ztest program is as follows:
35 * (1) For each major functional area (e.g. adding vdevs to a pool,
36 * creating and destroying datasets, reading and writing objects, etc)
37 * we have a simple routine to test that functionality. These
38 * individual routines do not have to do anything "stressful".
40 * (2) We turn these simple functionality tests into a stress test by
41 * running them all in parallel, with as many threads as desired,
42 * and spread across as many datasets, objects, and vdevs as desired.
44 * (3) While all this is happening, we inject faults into the pool to
45 * verify that self-healing data really works.
47 * (4) Every time we open a dataset, we change its checksum and compression
48 * functions. Thus even individual objects vary from block to block
49 * in which checksum they use and whether they're compressed.
51 * (5) To verify that we never lose on-disk consistency after a crash,
52 * we run the entire test in a child of the main process.
53 * At random times, the child self-immolates with a SIGKILL.
54 * This is the software equivalent of pulling the power cord.
55 * The parent then runs the test again, using the existing
56 * storage pool, as many times as desired. If backwards compatibility
57 * testing is enabled ztest will sometimes run the "older" version
58 * of ztest after a SIGKILL.
60 * (6) To verify that we don't have future leaks or temporal incursions,
61 * many of the functional tests record the transaction group number
62 * as part of their data. When reading old data, they verify that
63 * the transaction group number is less than the current, open txg.
64 * If you add a new test, please do this if applicable.
66 * When run with no arguments, ztest runs for about five minutes and
67 * produces no output if successful. To get a little bit of information,
68 * specify -V. To get more information, specify -VV, and so on.
70 * To turn this into an overnight stress test, use -T to specify run time.
72 * You can ask more more vdevs [-v], datasets [-d], or threads [-t]
73 * to increase the pool capacity, fanout, and overall stress level.
75 * Use the -k option to set the desired frequency of kills.
77 * When ztest invokes itself it passes all relevant information through a
78 * temporary file which is mmap-ed in the child process. This allows shared
79 * memory to survive the exec syscall. The ztest_shared_hdr_t struct is always
80 * stored at offset 0 of this file and contains information on the size and
81 * number of shared structures in the file. The information stored in this file
82 * must remain backwards compatible with older versions of ztest so that
83 * ztest can invoke them during backwards compatibility testing (-B).
86 #include <sys/zfs_context.h>
87 #include <sys/spa.h>
88 #include <sys/dmu.h>
89 #include <sys/txg.h>
90 #include <sys/dbuf.h>
91 #include <sys/zap.h>
92 #include <sys/dmu_objset.h>
93 #include <sys/poll.h>
94 #include <sys/stat.h>
95 #include <sys/time.h>
96 #include <sys/wait.h>
97 #include <sys/mman.h>
98 #include <sys/resource.h>
99 #include <sys/zio.h>
100 #include <sys/zil.h>
101 #include <sys/zil_impl.h>
102 #include <sys/vdev_impl.h>
103 #include <sys/vdev_file.h>
104 #include <sys/spa_impl.h>
105 #include <sys/metaslab_impl.h>
106 #include <sys/dsl_prop.h>
107 #include <sys/dsl_dataset.h>
108 #include <sys/dsl_destroy.h>
109 #include <sys/dsl_scan.h>
110 #include <sys/zio_checksum.h>
111 #include <sys/refcount.h>
112 #include <sys/zfeature.h>
113 #include <sys/dsl_userhold.h>
114 #include <sys/abd.h>
115 #include <stdio.h>
116 #include <stdio_ext.h>
117 #include <stdlib.h>
118 #include <unistd.h>
119 #include <signal.h>
120 #include <umem.h>
121 #include <dlfcn.h>
122 #include <ctype.h>
123 #include <math.h>
124 #include <sys/fs/zfs.h>
125 #include <libnvpair.h>
127 static int ztest_fd_data = -1;
128 static int ztest_fd_rand = -1;
130 typedef struct ztest_shared_hdr {
131 uint64_t zh_hdr_size;
132 uint64_t zh_opts_size;
133 uint64_t zh_size;
134 uint64_t zh_stats_size;
135 uint64_t zh_stats_count;
136 uint64_t zh_ds_size;
137 uint64_t zh_ds_count;
138 } ztest_shared_hdr_t;
140 static ztest_shared_hdr_t *ztest_shared_hdr;
142 typedef struct ztest_shared_opts {
143 char zo_pool[ZFS_MAX_DATASET_NAME_LEN];
144 char zo_dir[ZFS_MAX_DATASET_NAME_LEN];
145 char zo_alt_ztest[MAXNAMELEN];
146 char zo_alt_libpath[MAXNAMELEN];
147 uint64_t zo_vdevs;
148 uint64_t zo_vdevtime;
149 size_t zo_vdev_size;
150 int zo_ashift;
151 int zo_mirrors;
152 int zo_raidz;
153 int zo_raidz_parity;
154 int zo_datasets;
155 int zo_threads;
156 uint64_t zo_passtime;
157 uint64_t zo_killrate;
158 int zo_verbose;
159 int zo_init;
160 uint64_t zo_time;
161 uint64_t zo_maxloops;
162 uint64_t zo_metaslab_gang_bang;
163 } ztest_shared_opts_t;
165 static const ztest_shared_opts_t ztest_opts_defaults = {
166 .zo_pool = { 'z', 't', 'e', 's', 't', '\0' },
167 .zo_dir = { '/', 't', 'm', 'p', '\0' },
168 .zo_alt_ztest = { '\0' },
169 .zo_alt_libpath = { '\0' },
170 .zo_vdevs = 5,
171 .zo_ashift = SPA_MINBLOCKSHIFT,
172 .zo_mirrors = 2,
173 .zo_raidz = 4,
174 .zo_raidz_parity = 1,
175 .zo_vdev_size = SPA_MINDEVSIZE * 4, /* 256m default size */
176 .zo_datasets = 7,
177 .zo_threads = 23,
178 .zo_passtime = 60, /* 60 seconds */
179 .zo_killrate = 70, /* 70% kill rate */
180 .zo_verbose = 0,
181 .zo_init = 1,
182 .zo_time = 300, /* 5 minutes */
183 .zo_maxloops = 50, /* max loops during spa_freeze() */
184 .zo_metaslab_gang_bang = 32 << 10
187 extern uint64_t metaslab_gang_bang;
188 extern uint64_t metaslab_df_alloc_threshold;
189 extern uint64_t zfs_deadman_synctime_ms;
190 extern int metaslab_preload_limit;
191 extern boolean_t zfs_compressed_arc_enabled;
192 extern boolean_t zfs_abd_scatter_enabled;
194 static ztest_shared_opts_t *ztest_shared_opts;
195 static ztest_shared_opts_t ztest_opts;
197 typedef struct ztest_shared_ds {
198 uint64_t zd_seq;
199 } ztest_shared_ds_t;
201 static ztest_shared_ds_t *ztest_shared_ds;
202 #define ZTEST_GET_SHARED_DS(d) (&ztest_shared_ds[d])
204 #define BT_MAGIC 0x123456789abcdefULL
205 #define MAXFAULTS() \
206 (MAX(zs->zs_mirrors, 1) * (ztest_opts.zo_raidz_parity + 1) - 1)
208 enum ztest_io_type {
209 ZTEST_IO_WRITE_TAG,
210 ZTEST_IO_WRITE_PATTERN,
211 ZTEST_IO_WRITE_ZEROES,
212 ZTEST_IO_TRUNCATE,
213 ZTEST_IO_SETATTR,
214 ZTEST_IO_REWRITE,
215 ZTEST_IO_TYPES
218 typedef struct ztest_block_tag {
219 uint64_t bt_magic;
220 uint64_t bt_objset;
221 uint64_t bt_object;
222 uint64_t bt_offset;
223 uint64_t bt_gen;
224 uint64_t bt_txg;
225 uint64_t bt_crtxg;
226 } ztest_block_tag_t;
228 typedef struct bufwad {
229 uint64_t bw_index;
230 uint64_t bw_txg;
231 uint64_t bw_data;
232 } bufwad_t;
235 * XXX -- fix zfs range locks to be generic so we can use them here.
237 typedef enum {
238 RL_READER,
239 RL_WRITER,
240 RL_APPEND
241 } rl_type_t;
243 typedef struct rll {
244 void *rll_writer;
245 int rll_readers;
246 mutex_t rll_lock;
247 cond_t rll_cv;
248 } rll_t;
250 typedef struct rl {
251 uint64_t rl_object;
252 uint64_t rl_offset;
253 uint64_t rl_size;
254 rll_t *rl_lock;
255 } rl_t;
257 #define ZTEST_RANGE_LOCKS 64
258 #define ZTEST_OBJECT_LOCKS 64
261 * Object descriptor. Used as a template for object lookup/create/remove.
263 typedef struct ztest_od {
264 uint64_t od_dir;
265 uint64_t od_object;
266 dmu_object_type_t od_type;
267 dmu_object_type_t od_crtype;
268 uint64_t od_blocksize;
269 uint64_t od_crblocksize;
270 uint64_t od_gen;
271 uint64_t od_crgen;
272 char od_name[ZFS_MAX_DATASET_NAME_LEN];
273 } ztest_od_t;
276 * Per-dataset state.
278 typedef struct ztest_ds {
279 ztest_shared_ds_t *zd_shared;
280 objset_t *zd_os;
281 rwlock_t zd_zilog_lock;
282 zilog_t *zd_zilog;
283 ztest_od_t *zd_od; /* debugging aid */
284 char zd_name[ZFS_MAX_DATASET_NAME_LEN];
285 mutex_t zd_dirobj_lock;
286 rll_t zd_object_lock[ZTEST_OBJECT_LOCKS];
287 rll_t zd_range_lock[ZTEST_RANGE_LOCKS];
288 } ztest_ds_t;
291 * Per-iteration state.
293 typedef void ztest_func_t(ztest_ds_t *zd, uint64_t id);
295 typedef struct ztest_info {
296 ztest_func_t *zi_func; /* test function */
297 uint64_t zi_iters; /* iterations per execution */
298 uint64_t *zi_interval; /* execute every <interval> seconds */
299 } ztest_info_t;
301 typedef struct ztest_shared_callstate {
302 uint64_t zc_count; /* per-pass count */
303 uint64_t zc_time; /* per-pass time */
304 uint64_t zc_next; /* next time to call this function */
305 } ztest_shared_callstate_t;
307 static ztest_shared_callstate_t *ztest_shared_callstate;
308 #define ZTEST_GET_SHARED_CALLSTATE(c) (&ztest_shared_callstate[c])
311 * Note: these aren't static because we want dladdr() to work.
313 ztest_func_t ztest_dmu_read_write;
314 ztest_func_t ztest_dmu_write_parallel;
315 ztest_func_t ztest_dmu_object_alloc_free;
316 ztest_func_t ztest_dmu_commit_callbacks;
317 ztest_func_t ztest_zap;
318 ztest_func_t ztest_zap_parallel;
319 ztest_func_t ztest_zil_commit;
320 ztest_func_t ztest_zil_remount;
321 ztest_func_t ztest_dmu_read_write_zcopy;
322 ztest_func_t ztest_dmu_objset_create_destroy;
323 ztest_func_t ztest_dmu_prealloc;
324 ztest_func_t ztest_fzap;
325 ztest_func_t ztest_dmu_snapshot_create_destroy;
326 ztest_func_t ztest_dsl_prop_get_set;
327 ztest_func_t ztest_spa_prop_get_set;
328 ztest_func_t ztest_spa_create_destroy;
329 ztest_func_t ztest_fault_inject;
330 ztest_func_t ztest_ddt_repair;
331 ztest_func_t ztest_dmu_snapshot_hold;
332 ztest_func_t ztest_spa_rename;
333 ztest_func_t ztest_scrub;
334 ztest_func_t ztest_dsl_dataset_promote_busy;
335 ztest_func_t ztest_vdev_attach_detach;
336 ztest_func_t ztest_vdev_LUN_growth;
337 ztest_func_t ztest_vdev_add_remove;
338 ztest_func_t ztest_vdev_aux_add_remove;
339 ztest_func_t ztest_split_pool;
340 ztest_func_t ztest_reguid;
341 ztest_func_t ztest_spa_upgrade;
343 uint64_t zopt_always = 0ULL * NANOSEC; /* all the time */
344 uint64_t zopt_incessant = 1ULL * NANOSEC / 10; /* every 1/10 second */
345 uint64_t zopt_often = 1ULL * NANOSEC; /* every second */
346 uint64_t zopt_sometimes = 10ULL * NANOSEC; /* every 10 seconds */
347 uint64_t zopt_rarely = 60ULL * NANOSEC; /* every 60 seconds */
349 ztest_info_t ztest_info[] = {
350 { ztest_dmu_read_write, 1, &zopt_always },
351 { ztest_dmu_write_parallel, 10, &zopt_always },
352 { ztest_dmu_object_alloc_free, 1, &zopt_always },
353 { ztest_dmu_commit_callbacks, 1, &zopt_always },
354 { ztest_zap, 30, &zopt_always },
355 { ztest_zap_parallel, 100, &zopt_always },
356 { ztest_split_pool, 1, &zopt_always },
357 { ztest_zil_commit, 1, &zopt_incessant },
358 { ztest_zil_remount, 1, &zopt_sometimes },
359 { ztest_dmu_read_write_zcopy, 1, &zopt_often },
360 { ztest_dmu_objset_create_destroy, 1, &zopt_often },
361 { ztest_dsl_prop_get_set, 1, &zopt_often },
362 { ztest_spa_prop_get_set, 1, &zopt_sometimes },
363 #if 0
364 { ztest_dmu_prealloc, 1, &zopt_sometimes },
365 #endif
366 { ztest_fzap, 1, &zopt_sometimes },
367 { ztest_dmu_snapshot_create_destroy, 1, &zopt_sometimes },
368 { ztest_spa_create_destroy, 1, &zopt_sometimes },
369 { ztest_fault_inject, 1, &zopt_sometimes },
370 { ztest_ddt_repair, 1, &zopt_sometimes },
371 { ztest_dmu_snapshot_hold, 1, &zopt_sometimes },
372 { ztest_reguid, 1, &zopt_rarely },
373 { ztest_spa_rename, 1, &zopt_rarely },
374 { ztest_scrub, 1, &zopt_rarely },
375 { ztest_spa_upgrade, 1, &zopt_rarely },
376 { ztest_dsl_dataset_promote_busy, 1, &zopt_rarely },
377 { ztest_vdev_attach_detach, 1, &zopt_sometimes },
378 { ztest_vdev_LUN_growth, 1, &zopt_rarely },
379 { ztest_vdev_add_remove, 1,
380 &ztest_opts.zo_vdevtime },
381 { ztest_vdev_aux_add_remove, 1,
382 &ztest_opts.zo_vdevtime },
385 #define ZTEST_FUNCS (sizeof (ztest_info) / sizeof (ztest_info_t))
388 * The following struct is used to hold a list of uncalled commit callbacks.
389 * The callbacks are ordered by txg number.
391 typedef struct ztest_cb_list {
392 mutex_t zcl_callbacks_lock;
393 list_t zcl_callbacks;
394 } ztest_cb_list_t;
397 * Stuff we need to share writably between parent and child.
399 typedef struct ztest_shared {
400 boolean_t zs_do_init;
401 hrtime_t zs_proc_start;
402 hrtime_t zs_proc_stop;
403 hrtime_t zs_thread_start;
404 hrtime_t zs_thread_stop;
405 hrtime_t zs_thread_kill;
406 uint64_t zs_enospc_count;
407 uint64_t zs_vdev_next_leaf;
408 uint64_t zs_vdev_aux;
409 uint64_t zs_alloc;
410 uint64_t zs_space;
411 uint64_t zs_splits;
412 uint64_t zs_mirrors;
413 uint64_t zs_metaslab_sz;
414 uint64_t zs_metaslab_df_alloc_threshold;
415 uint64_t zs_guid;
416 } ztest_shared_t;
418 #define ID_PARALLEL -1ULL
420 static char ztest_dev_template[] = "%s/%s.%llua";
421 static char ztest_aux_template[] = "%s/%s.%s.%llu";
422 ztest_shared_t *ztest_shared;
424 static spa_t *ztest_spa = NULL;
425 static ztest_ds_t *ztest_ds;
427 static mutex_t ztest_vdev_lock;
430 * The ztest_name_lock protects the pool and dataset namespace used by
431 * the individual tests. To modify the namespace, consumers must grab
432 * this lock as writer. Grabbing the lock as reader will ensure that the
433 * namespace does not change while the lock is held.
435 static rwlock_t ztest_name_lock;
437 static boolean_t ztest_dump_core = B_TRUE;
438 static boolean_t ztest_exiting;
440 /* Global commit callback list */
441 static ztest_cb_list_t zcl;
443 enum ztest_object {
444 ZTEST_META_DNODE = 0,
445 ZTEST_DIROBJ,
446 ZTEST_OBJECTS
449 static void usage(boolean_t) __NORETURN;
452 * These libumem hooks provide a reasonable set of defaults for the allocator's
453 * debugging facilities.
455 const char *
456 _umem_debug_init()
458 return ("default,verbose"); /* $UMEM_DEBUG setting */
461 const char *
462 _umem_logging_init(void)
464 return ("fail,contents"); /* $UMEM_LOGGING setting */
467 #define FATAL_MSG_SZ 1024
469 char *fatal_msg;
471 static void
472 fatal(int do_perror, char *message, ...)
474 va_list args;
475 int save_errno = errno;
476 char buf[FATAL_MSG_SZ];
478 (void) fflush(stdout);
480 va_start(args, message);
481 (void) sprintf(buf, "ztest: ");
482 /* LINTED */
483 (void) vsprintf(buf + strlen(buf), message, args);
484 va_end(args);
485 if (do_perror) {
486 (void) snprintf(buf + strlen(buf), FATAL_MSG_SZ - strlen(buf),
487 ": %s", strerror(save_errno));
489 (void) fprintf(stderr, "%s\n", buf);
490 fatal_msg = buf; /* to ease debugging */
491 if (ztest_dump_core)
492 abort();
493 exit(3);
496 static int
497 str2shift(const char *buf)
499 const char *ends = "BKMGTPEZ";
500 int i;
502 if (buf[0] == '\0')
503 return (0);
504 for (i = 0; i < strlen(ends); i++) {
505 if (toupper(buf[0]) == ends[i])
506 break;
508 if (i == strlen(ends)) {
509 (void) fprintf(stderr, "ztest: invalid bytes suffix: %s\n",
510 buf);
511 usage(B_FALSE);
513 if (buf[1] == '\0' || (toupper(buf[1]) == 'B' && buf[2] == '\0')) {
514 return (10*i);
516 (void) fprintf(stderr, "ztest: invalid bytes suffix: %s\n", buf);
517 usage(B_FALSE);
518 /* NOTREACHED */
521 static uint64_t
522 nicenumtoull(const char *buf)
524 char *end;
525 uint64_t val;
527 val = strtoull(buf, &end, 0);
528 if (end == buf) {
529 (void) fprintf(stderr, "ztest: bad numeric value: %s\n", buf);
530 usage(B_FALSE);
531 } else if (end[0] == '.') {
532 double fval = strtod(buf, &end);
533 fval *= pow(2, str2shift(end));
534 if (fval > UINT64_MAX) {
535 (void) fprintf(stderr, "ztest: value too large: %s\n",
536 buf);
537 usage(B_FALSE);
539 val = (uint64_t)fval;
540 } else {
541 int shift = str2shift(end);
542 if (shift >= 64 || (val << shift) >> shift != val) {
543 (void) fprintf(stderr, "ztest: value too large: %s\n",
544 buf);
545 usage(B_FALSE);
547 val <<= shift;
549 return (val);
552 static void
553 usage(boolean_t requested)
555 const ztest_shared_opts_t *zo = &ztest_opts_defaults;
557 char nice_vdev_size[10];
558 char nice_gang_bang[10];
559 FILE *fp = requested ? stdout : stderr;
561 nicenum(zo->zo_vdev_size, nice_vdev_size);
562 nicenum(zo->zo_metaslab_gang_bang, nice_gang_bang);
564 (void) fprintf(fp, "Usage: %s\n"
565 "\t[-v vdevs (default: %llu)]\n"
566 "\t[-s size_of_each_vdev (default: %s)]\n"
567 "\t[-a alignment_shift (default: %d)] use 0 for random\n"
568 "\t[-m mirror_copies (default: %d)]\n"
569 "\t[-r raidz_disks (default: %d)]\n"
570 "\t[-R raidz_parity (default: %d)]\n"
571 "\t[-d datasets (default: %d)]\n"
572 "\t[-t threads (default: %d)]\n"
573 "\t[-g gang_block_threshold (default: %s)]\n"
574 "\t[-i init_count (default: %d)] initialize pool i times\n"
575 "\t[-k kill_percentage (default: %llu%%)]\n"
576 "\t[-p pool_name (default: %s)]\n"
577 "\t[-f dir (default: %s)] file directory for vdev files\n"
578 "\t[-V] verbose (use multiple times for ever more blather)\n"
579 "\t[-E] use existing pool instead of creating new one\n"
580 "\t[-T time (default: %llu sec)] total run time\n"
581 "\t[-F freezeloops (default: %llu)] max loops in spa_freeze()\n"
582 "\t[-P passtime (default: %llu sec)] time per pass\n"
583 "\t[-B alt_ztest (default: <none>)] alternate ztest path\n"
584 "\t[-o variable=value] ... set global variable to an unsigned\n"
585 "\t 32-bit integer value\n"
586 "\t[-h] (print help)\n"
588 zo->zo_pool,
589 (u_longlong_t)zo->zo_vdevs, /* -v */
590 nice_vdev_size, /* -s */
591 zo->zo_ashift, /* -a */
592 zo->zo_mirrors, /* -m */
593 zo->zo_raidz, /* -r */
594 zo->zo_raidz_parity, /* -R */
595 zo->zo_datasets, /* -d */
596 zo->zo_threads, /* -t */
597 nice_gang_bang, /* -g */
598 zo->zo_init, /* -i */
599 (u_longlong_t)zo->zo_killrate, /* -k */
600 zo->zo_pool, /* -p */
601 zo->zo_dir, /* -f */
602 (u_longlong_t)zo->zo_time, /* -T */
603 (u_longlong_t)zo->zo_maxloops, /* -F */
604 (u_longlong_t)zo->zo_passtime);
605 exit(requested ? 0 : 1);
608 static void
609 process_options(int argc, char **argv)
611 char *path;
612 ztest_shared_opts_t *zo = &ztest_opts;
614 int opt;
615 uint64_t value;
616 char altdir[MAXNAMELEN] = { 0 };
618 bcopy(&ztest_opts_defaults, zo, sizeof (*zo));
620 while ((opt = getopt(argc, argv,
621 "v:s:a:m:r:R:d:t:g:i:k:p:f:VET:P:hF:B:o:")) != EOF) {
622 value = 0;
623 switch (opt) {
624 case 'v':
625 case 's':
626 case 'a':
627 case 'm':
628 case 'r':
629 case 'R':
630 case 'd':
631 case 't':
632 case 'g':
633 case 'i':
634 case 'k':
635 case 'T':
636 case 'P':
637 case 'F':
638 value = nicenumtoull(optarg);
640 switch (opt) {
641 case 'v':
642 zo->zo_vdevs = value;
643 break;
644 case 's':
645 zo->zo_vdev_size = MAX(SPA_MINDEVSIZE, value);
646 break;
647 case 'a':
648 zo->zo_ashift = value;
649 break;
650 case 'm':
651 zo->zo_mirrors = value;
652 break;
653 case 'r':
654 zo->zo_raidz = MAX(1, value);
655 break;
656 case 'R':
657 zo->zo_raidz_parity = MIN(MAX(value, 1), 3);
658 break;
659 case 'd':
660 zo->zo_datasets = MAX(1, value);
661 break;
662 case 't':
663 zo->zo_threads = MAX(1, value);
664 break;
665 case 'g':
666 zo->zo_metaslab_gang_bang = MAX(SPA_MINBLOCKSIZE << 1,
667 value);
668 break;
669 case 'i':
670 zo->zo_init = value;
671 break;
672 case 'k':
673 zo->zo_killrate = value;
674 break;
675 case 'p':
676 (void) strlcpy(zo->zo_pool, optarg,
677 sizeof (zo->zo_pool));
678 break;
679 case 'f':
680 path = realpath(optarg, NULL);
681 if (path == NULL) {
682 (void) fprintf(stderr, "error: %s: %s\n",
683 optarg, strerror(errno));
684 usage(B_FALSE);
685 } else {
686 (void) strlcpy(zo->zo_dir, path,
687 sizeof (zo->zo_dir));
689 break;
690 case 'V':
691 zo->zo_verbose++;
692 break;
693 case 'E':
694 zo->zo_init = 0;
695 break;
696 case 'T':
697 zo->zo_time = value;
698 break;
699 case 'P':
700 zo->zo_passtime = MAX(1, value);
701 break;
702 case 'F':
703 zo->zo_maxloops = MAX(1, value);
704 break;
705 case 'B':
706 (void) strlcpy(altdir, optarg, sizeof (altdir));
707 break;
708 case 'o':
709 if (set_global_var(optarg) != 0)
710 usage(B_FALSE);
711 break;
712 case 'h':
713 usage(B_TRUE);
714 break;
715 case '?':
716 default:
717 usage(B_FALSE);
718 break;
722 zo->zo_raidz_parity = MIN(zo->zo_raidz_parity, zo->zo_raidz - 1);
724 zo->zo_vdevtime =
725 (zo->zo_vdevs > 0 ? zo->zo_time * NANOSEC / zo->zo_vdevs :
726 UINT64_MAX >> 2);
728 if (strlen(altdir) > 0) {
729 char *cmd;
730 char *realaltdir;
731 char *bin;
732 char *ztest;
733 char *isa;
734 int isalen;
736 cmd = umem_alloc(MAXPATHLEN, UMEM_NOFAIL);
737 realaltdir = umem_alloc(MAXPATHLEN, UMEM_NOFAIL);
739 VERIFY(NULL != realpath(getexecname(), cmd));
740 if (0 != access(altdir, F_OK)) {
741 ztest_dump_core = B_FALSE;
742 fatal(B_TRUE, "invalid alternate ztest path: %s",
743 altdir);
745 VERIFY(NULL != realpath(altdir, realaltdir));
748 * 'cmd' should be of the form "<anything>/usr/bin/<isa>/ztest".
749 * We want to extract <isa> to determine if we should use
750 * 32 or 64 bit binaries.
752 bin = strstr(cmd, "/usr/bin/");
753 ztest = strstr(bin, "/ztest");
754 isa = bin + 9;
755 isalen = ztest - isa;
756 (void) snprintf(zo->zo_alt_ztest, sizeof (zo->zo_alt_ztest),
757 "%s/usr/bin/%.*s/ztest", realaltdir, isalen, isa);
758 (void) snprintf(zo->zo_alt_libpath, sizeof (zo->zo_alt_libpath),
759 "%s/usr/lib/%.*s", realaltdir, isalen, isa);
761 if (0 != access(zo->zo_alt_ztest, X_OK)) {
762 ztest_dump_core = B_FALSE;
763 fatal(B_TRUE, "invalid alternate ztest: %s",
764 zo->zo_alt_ztest);
765 } else if (0 != access(zo->zo_alt_libpath, X_OK)) {
766 ztest_dump_core = B_FALSE;
767 fatal(B_TRUE, "invalid alternate lib directory %s",
768 zo->zo_alt_libpath);
771 umem_free(cmd, MAXPATHLEN);
772 umem_free(realaltdir, MAXPATHLEN);
776 static void
777 ztest_kill(ztest_shared_t *zs)
779 zs->zs_alloc = metaslab_class_get_alloc(spa_normal_class(ztest_spa));
780 zs->zs_space = metaslab_class_get_space(spa_normal_class(ztest_spa));
783 * Before we kill off ztest, make sure that the config is updated.
784 * See comment above spa_config_sync().
786 mutex_enter(&spa_namespace_lock);
787 spa_config_sync(ztest_spa, B_FALSE, B_FALSE);
788 mutex_exit(&spa_namespace_lock);
790 zfs_dbgmsg_print(FTAG);
791 (void) kill(getpid(), SIGKILL);
794 static uint64_t
795 ztest_random(uint64_t range)
797 uint64_t r;
799 ASSERT3S(ztest_fd_rand, >=, 0);
801 if (range == 0)
802 return (0);
804 if (read(ztest_fd_rand, &r, sizeof (r)) != sizeof (r))
805 fatal(1, "short read from /dev/urandom");
807 return (r % range);
810 /* ARGSUSED */
811 static void
812 ztest_record_enospc(const char *s)
814 ztest_shared->zs_enospc_count++;
817 static uint64_t
818 ztest_get_ashift(void)
820 if (ztest_opts.zo_ashift == 0)
821 return (SPA_MINBLOCKSHIFT + ztest_random(5));
822 return (ztest_opts.zo_ashift);
825 static nvlist_t *
826 make_vdev_file(char *path, char *aux, char *pool, size_t size, uint64_t ashift)
828 char pathbuf[MAXPATHLEN];
829 uint64_t vdev;
830 nvlist_t *file;
832 if (ashift == 0)
833 ashift = ztest_get_ashift();
835 if (path == NULL) {
836 path = pathbuf;
838 if (aux != NULL) {
839 vdev = ztest_shared->zs_vdev_aux;
840 (void) snprintf(path, sizeof (pathbuf),
841 ztest_aux_template, ztest_opts.zo_dir,
842 pool == NULL ? ztest_opts.zo_pool : pool,
843 aux, vdev);
844 } else {
845 vdev = ztest_shared->zs_vdev_next_leaf++;
846 (void) snprintf(path, sizeof (pathbuf),
847 ztest_dev_template, ztest_opts.zo_dir,
848 pool == NULL ? ztest_opts.zo_pool : pool, vdev);
852 if (size != 0) {
853 int fd = open(path, O_RDWR | O_CREAT | O_TRUNC, 0666);
854 if (fd == -1)
855 fatal(1, "can't open %s", path);
856 if (ftruncate(fd, size) != 0)
857 fatal(1, "can't ftruncate %s", path);
858 (void) close(fd);
861 VERIFY(nvlist_alloc(&file, NV_UNIQUE_NAME, 0) == 0);
862 VERIFY(nvlist_add_string(file, ZPOOL_CONFIG_TYPE, VDEV_TYPE_FILE) == 0);
863 VERIFY(nvlist_add_string(file, ZPOOL_CONFIG_PATH, path) == 0);
864 VERIFY(nvlist_add_uint64(file, ZPOOL_CONFIG_ASHIFT, ashift) == 0);
866 return (file);
869 static nvlist_t *
870 make_vdev_raidz(char *path, char *aux, char *pool, size_t size,
871 uint64_t ashift, int r)
873 nvlist_t *raidz, **child;
874 int c;
876 if (r < 2)
877 return (make_vdev_file(path, aux, pool, size, ashift));
878 child = umem_alloc(r * sizeof (nvlist_t *), UMEM_NOFAIL);
880 for (c = 0; c < r; c++)
881 child[c] = make_vdev_file(path, aux, pool, size, ashift);
883 VERIFY(nvlist_alloc(&raidz, NV_UNIQUE_NAME, 0) == 0);
884 VERIFY(nvlist_add_string(raidz, ZPOOL_CONFIG_TYPE,
885 VDEV_TYPE_RAIDZ) == 0);
886 VERIFY(nvlist_add_uint64(raidz, ZPOOL_CONFIG_NPARITY,
887 ztest_opts.zo_raidz_parity) == 0);
888 VERIFY(nvlist_add_nvlist_array(raidz, ZPOOL_CONFIG_CHILDREN,
889 child, r) == 0);
891 for (c = 0; c < r; c++)
892 nvlist_free(child[c]);
894 umem_free(child, r * sizeof (nvlist_t *));
896 return (raidz);
899 static nvlist_t *
900 make_vdev_mirror(char *path, char *aux, char *pool, size_t size,
901 uint64_t ashift, int r, int m)
903 nvlist_t *mirror, **child;
904 int c;
906 if (m < 1)
907 return (make_vdev_raidz(path, aux, pool, size, ashift, r));
909 child = umem_alloc(m * sizeof (nvlist_t *), UMEM_NOFAIL);
911 for (c = 0; c < m; c++)
912 child[c] = make_vdev_raidz(path, aux, pool, size, ashift, r);
914 VERIFY(nvlist_alloc(&mirror, NV_UNIQUE_NAME, 0) == 0);
915 VERIFY(nvlist_add_string(mirror, ZPOOL_CONFIG_TYPE,
916 VDEV_TYPE_MIRROR) == 0);
917 VERIFY(nvlist_add_nvlist_array(mirror, ZPOOL_CONFIG_CHILDREN,
918 child, m) == 0);
920 for (c = 0; c < m; c++)
921 nvlist_free(child[c]);
923 umem_free(child, m * sizeof (nvlist_t *));
925 return (mirror);
928 static nvlist_t *
929 make_vdev_root(char *path, char *aux, char *pool, size_t size, uint64_t ashift,
930 int log, int r, int m, int t)
932 nvlist_t *root, **child;
933 int c;
935 ASSERT(t > 0);
937 child = umem_alloc(t * sizeof (nvlist_t *), UMEM_NOFAIL);
939 for (c = 0; c < t; c++) {
940 child[c] = make_vdev_mirror(path, aux, pool, size, ashift,
941 r, m);
942 VERIFY(nvlist_add_uint64(child[c], ZPOOL_CONFIG_IS_LOG,
943 log) == 0);
946 VERIFY(nvlist_alloc(&root, NV_UNIQUE_NAME, 0) == 0);
947 VERIFY(nvlist_add_string(root, ZPOOL_CONFIG_TYPE, VDEV_TYPE_ROOT) == 0);
948 VERIFY(nvlist_add_nvlist_array(root, aux ? aux : ZPOOL_CONFIG_CHILDREN,
949 child, t) == 0);
951 for (c = 0; c < t; c++)
952 nvlist_free(child[c]);
954 umem_free(child, t * sizeof (nvlist_t *));
956 return (root);
960 * Find a random spa version. Returns back a random spa version in the
961 * range [initial_version, SPA_VERSION_FEATURES].
963 static uint64_t
964 ztest_random_spa_version(uint64_t initial_version)
966 uint64_t version = initial_version;
968 if (version <= SPA_VERSION_BEFORE_FEATURES) {
969 version = version +
970 ztest_random(SPA_VERSION_BEFORE_FEATURES - version + 1);
973 if (version > SPA_VERSION_BEFORE_FEATURES)
974 version = SPA_VERSION_FEATURES;
976 ASSERT(SPA_VERSION_IS_SUPPORTED(version));
977 return (version);
980 static int
981 ztest_random_blocksize(void)
983 uint64_t block_shift;
985 * Choose a block size >= the ashift.
986 * If the SPA supports new MAXBLOCKSIZE, test up to 1MB blocks.
988 int maxbs = SPA_OLD_MAXBLOCKSHIFT;
989 if (spa_maxblocksize(ztest_spa) == SPA_MAXBLOCKSIZE)
990 maxbs = 20;
991 block_shift = ztest_random(maxbs - ztest_spa->spa_max_ashift + 1);
992 return (1 << (SPA_MINBLOCKSHIFT + block_shift));
995 static int
996 ztest_random_ibshift(void)
998 return (DN_MIN_INDBLKSHIFT +
999 ztest_random(DN_MAX_INDBLKSHIFT - DN_MIN_INDBLKSHIFT + 1));
1002 static uint64_t
1003 ztest_random_vdev_top(spa_t *spa, boolean_t log_ok)
1005 uint64_t top;
1006 vdev_t *rvd = spa->spa_root_vdev;
1007 vdev_t *tvd;
1009 ASSERT(spa_config_held(spa, SCL_ALL, RW_READER) != 0);
1011 do {
1012 top = ztest_random(rvd->vdev_children);
1013 tvd = rvd->vdev_child[top];
1014 } while (tvd->vdev_ishole || (tvd->vdev_islog && !log_ok) ||
1015 tvd->vdev_mg == NULL || tvd->vdev_mg->mg_class == NULL);
1017 return (top);
1020 static uint64_t
1021 ztest_random_dsl_prop(zfs_prop_t prop)
1023 uint64_t value;
1025 do {
1026 value = zfs_prop_random_value(prop, ztest_random(-1ULL));
1027 } while (prop == ZFS_PROP_CHECKSUM && value == ZIO_CHECKSUM_OFF);
1029 return (value);
1032 static int
1033 ztest_dsl_prop_set_uint64(char *osname, zfs_prop_t prop, uint64_t value,
1034 boolean_t inherit)
1036 const char *propname = zfs_prop_to_name(prop);
1037 const char *valname;
1038 char setpoint[MAXPATHLEN];
1039 uint64_t curval;
1040 int error;
1042 error = dsl_prop_set_int(osname, propname,
1043 (inherit ? ZPROP_SRC_NONE : ZPROP_SRC_LOCAL), value);
1045 if (error == ENOSPC) {
1046 ztest_record_enospc(FTAG);
1047 return (error);
1049 ASSERT0(error);
1051 VERIFY0(dsl_prop_get_integer(osname, propname, &curval, setpoint));
1053 if (ztest_opts.zo_verbose >= 6) {
1054 VERIFY(zfs_prop_index_to_string(prop, curval, &valname) == 0);
1055 (void) printf("%s %s = %s at '%s'\n",
1056 osname, propname, valname, setpoint);
1059 return (error);
1062 static int
1063 ztest_spa_prop_set_uint64(zpool_prop_t prop, uint64_t value)
1065 spa_t *spa = ztest_spa;
1066 nvlist_t *props = NULL;
1067 int error;
1069 VERIFY(nvlist_alloc(&props, NV_UNIQUE_NAME, 0) == 0);
1070 VERIFY(nvlist_add_uint64(props, zpool_prop_to_name(prop), value) == 0);
1072 error = spa_prop_set(spa, props);
1074 nvlist_free(props);
1076 if (error == ENOSPC) {
1077 ztest_record_enospc(FTAG);
1078 return (error);
1080 ASSERT0(error);
1082 return (error);
1085 static void
1086 ztest_rll_init(rll_t *rll)
1088 rll->rll_writer = NULL;
1089 rll->rll_readers = 0;
1090 VERIFY(_mutex_init(&rll->rll_lock, USYNC_THREAD, NULL) == 0);
1091 VERIFY(cond_init(&rll->rll_cv, USYNC_THREAD, NULL) == 0);
1094 static void
1095 ztest_rll_destroy(rll_t *rll)
1097 ASSERT(rll->rll_writer == NULL);
1098 ASSERT(rll->rll_readers == 0);
1099 VERIFY(_mutex_destroy(&rll->rll_lock) == 0);
1100 VERIFY(cond_destroy(&rll->rll_cv) == 0);
1103 static void
1104 ztest_rll_lock(rll_t *rll, rl_type_t type)
1106 VERIFY(mutex_lock(&rll->rll_lock) == 0);
1108 if (type == RL_READER) {
1109 while (rll->rll_writer != NULL)
1110 (void) cond_wait(&rll->rll_cv, &rll->rll_lock);
1111 rll->rll_readers++;
1112 } else {
1113 while (rll->rll_writer != NULL || rll->rll_readers)
1114 (void) cond_wait(&rll->rll_cv, &rll->rll_lock);
1115 rll->rll_writer = curthread;
1118 VERIFY(mutex_unlock(&rll->rll_lock) == 0);
1121 static void
1122 ztest_rll_unlock(rll_t *rll)
1124 VERIFY(mutex_lock(&rll->rll_lock) == 0);
1126 if (rll->rll_writer) {
1127 ASSERT(rll->rll_readers == 0);
1128 rll->rll_writer = NULL;
1129 } else {
1130 ASSERT(rll->rll_readers != 0);
1131 ASSERT(rll->rll_writer == NULL);
1132 rll->rll_readers--;
1135 if (rll->rll_writer == NULL && rll->rll_readers == 0)
1136 VERIFY(cond_broadcast(&rll->rll_cv) == 0);
1138 VERIFY(mutex_unlock(&rll->rll_lock) == 0);
1141 static void
1142 ztest_object_lock(ztest_ds_t *zd, uint64_t object, rl_type_t type)
1144 rll_t *rll = &zd->zd_object_lock[object & (ZTEST_OBJECT_LOCKS - 1)];
1146 ztest_rll_lock(rll, type);
1149 static void
1150 ztest_object_unlock(ztest_ds_t *zd, uint64_t object)
1152 rll_t *rll = &zd->zd_object_lock[object & (ZTEST_OBJECT_LOCKS - 1)];
1154 ztest_rll_unlock(rll);
1157 static rl_t *
1158 ztest_range_lock(ztest_ds_t *zd, uint64_t object, uint64_t offset,
1159 uint64_t size, rl_type_t type)
1161 uint64_t hash = object ^ (offset % (ZTEST_RANGE_LOCKS + 1));
1162 rll_t *rll = &zd->zd_range_lock[hash & (ZTEST_RANGE_LOCKS - 1)];
1163 rl_t *rl;
1165 rl = umem_alloc(sizeof (*rl), UMEM_NOFAIL);
1166 rl->rl_object = object;
1167 rl->rl_offset = offset;
1168 rl->rl_size = size;
1169 rl->rl_lock = rll;
1171 ztest_rll_lock(rll, type);
1173 return (rl);
1176 static void
1177 ztest_range_unlock(rl_t *rl)
1179 rll_t *rll = rl->rl_lock;
1181 ztest_rll_unlock(rll);
1183 umem_free(rl, sizeof (*rl));
1186 static void
1187 ztest_zd_init(ztest_ds_t *zd, ztest_shared_ds_t *szd, objset_t *os)
1189 zd->zd_os = os;
1190 zd->zd_zilog = dmu_objset_zil(os);
1191 zd->zd_shared = szd;
1192 dmu_objset_name(os, zd->zd_name);
1194 if (zd->zd_shared != NULL)
1195 zd->zd_shared->zd_seq = 0;
1197 VERIFY(rwlock_init(&zd->zd_zilog_lock, USYNC_THREAD, NULL) == 0);
1198 VERIFY(_mutex_init(&zd->zd_dirobj_lock, USYNC_THREAD, NULL) == 0);
1200 for (int l = 0; l < ZTEST_OBJECT_LOCKS; l++)
1201 ztest_rll_init(&zd->zd_object_lock[l]);
1203 for (int l = 0; l < ZTEST_RANGE_LOCKS; l++)
1204 ztest_rll_init(&zd->zd_range_lock[l]);
1207 static void
1208 ztest_zd_fini(ztest_ds_t *zd)
1210 VERIFY(_mutex_destroy(&zd->zd_dirobj_lock) == 0);
1212 for (int l = 0; l < ZTEST_OBJECT_LOCKS; l++)
1213 ztest_rll_destroy(&zd->zd_object_lock[l]);
1215 for (int l = 0; l < ZTEST_RANGE_LOCKS; l++)
1216 ztest_rll_destroy(&zd->zd_range_lock[l]);
1219 #define TXG_MIGHTWAIT (ztest_random(10) == 0 ? TXG_NOWAIT : TXG_WAIT)
1221 static uint64_t
1222 ztest_tx_assign(dmu_tx_t *tx, uint64_t txg_how, const char *tag)
1224 uint64_t txg;
1225 int error;
1228 * Attempt to assign tx to some transaction group.
1230 error = dmu_tx_assign(tx, txg_how);
1231 if (error) {
1232 if (error == ERESTART) {
1233 ASSERT(txg_how == TXG_NOWAIT);
1234 dmu_tx_wait(tx);
1235 } else {
1236 ASSERT3U(error, ==, ENOSPC);
1237 ztest_record_enospc(tag);
1239 dmu_tx_abort(tx);
1240 return (0);
1242 txg = dmu_tx_get_txg(tx);
1243 ASSERT(txg != 0);
1244 return (txg);
1247 static void
1248 ztest_pattern_set(void *buf, uint64_t size, uint64_t value)
1250 uint64_t *ip = buf;
1251 uint64_t *ip_end = (uint64_t *)((uintptr_t)buf + (uintptr_t)size);
1253 while (ip < ip_end)
1254 *ip++ = value;
1257 static boolean_t
1258 ztest_pattern_match(void *buf, uint64_t size, uint64_t value)
1260 uint64_t *ip = buf;
1261 uint64_t *ip_end = (uint64_t *)((uintptr_t)buf + (uintptr_t)size);
1262 uint64_t diff = 0;
1264 while (ip < ip_end)
1265 diff |= (value - *ip++);
1267 return (diff == 0);
1270 static void
1271 ztest_bt_generate(ztest_block_tag_t *bt, objset_t *os, uint64_t object,
1272 uint64_t offset, uint64_t gen, uint64_t txg, uint64_t crtxg)
1274 bt->bt_magic = BT_MAGIC;
1275 bt->bt_objset = dmu_objset_id(os);
1276 bt->bt_object = object;
1277 bt->bt_offset = offset;
1278 bt->bt_gen = gen;
1279 bt->bt_txg = txg;
1280 bt->bt_crtxg = crtxg;
1283 static void
1284 ztest_bt_verify(ztest_block_tag_t *bt, objset_t *os, uint64_t object,
1285 uint64_t offset, uint64_t gen, uint64_t txg, uint64_t crtxg)
1287 ASSERT3U(bt->bt_magic, ==, BT_MAGIC);
1288 ASSERT3U(bt->bt_objset, ==, dmu_objset_id(os));
1289 ASSERT3U(bt->bt_object, ==, object);
1290 ASSERT3U(bt->bt_offset, ==, offset);
1291 ASSERT3U(bt->bt_gen, <=, gen);
1292 ASSERT3U(bt->bt_txg, <=, txg);
1293 ASSERT3U(bt->bt_crtxg, ==, crtxg);
1296 static ztest_block_tag_t *
1297 ztest_bt_bonus(dmu_buf_t *db)
1299 dmu_object_info_t doi;
1300 ztest_block_tag_t *bt;
1302 dmu_object_info_from_db(db, &doi);
1303 ASSERT3U(doi.doi_bonus_size, <=, db->db_size);
1304 ASSERT3U(doi.doi_bonus_size, >=, sizeof (*bt));
1305 bt = (void *)((char *)db->db_data + doi.doi_bonus_size - sizeof (*bt));
1307 return (bt);
1311 * ZIL logging ops
1314 #define lrz_type lr_mode
1315 #define lrz_blocksize lr_uid
1316 #define lrz_ibshift lr_gid
1317 #define lrz_bonustype lr_rdev
1318 #define lrz_bonuslen lr_crtime[1]
1320 static void
1321 ztest_log_create(ztest_ds_t *zd, dmu_tx_t *tx, lr_create_t *lr)
1323 char *name = (void *)(lr + 1); /* name follows lr */
1324 size_t namesize = strlen(name) + 1;
1325 itx_t *itx;
1327 if (zil_replaying(zd->zd_zilog, tx))
1328 return;
1330 itx = zil_itx_create(TX_CREATE, sizeof (*lr) + namesize);
1331 bcopy(&lr->lr_common + 1, &itx->itx_lr + 1,
1332 sizeof (*lr) + namesize - sizeof (lr_t));
1334 zil_itx_assign(zd->zd_zilog, itx, tx);
1337 static void
1338 ztest_log_remove(ztest_ds_t *zd, dmu_tx_t *tx, lr_remove_t *lr, uint64_t object)
1340 char *name = (void *)(lr + 1); /* name follows lr */
1341 size_t namesize = strlen(name) + 1;
1342 itx_t *itx;
1344 if (zil_replaying(zd->zd_zilog, tx))
1345 return;
1347 itx = zil_itx_create(TX_REMOVE, sizeof (*lr) + namesize);
1348 bcopy(&lr->lr_common + 1, &itx->itx_lr + 1,
1349 sizeof (*lr) + namesize - sizeof (lr_t));
1351 itx->itx_oid = object;
1352 zil_itx_assign(zd->zd_zilog, itx, tx);
1355 static void
1356 ztest_log_write(ztest_ds_t *zd, dmu_tx_t *tx, lr_write_t *lr)
1358 itx_t *itx;
1359 itx_wr_state_t write_state = ztest_random(WR_NUM_STATES);
1361 if (zil_replaying(zd->zd_zilog, tx))
1362 return;
1364 if (lr->lr_length > ZIL_MAX_LOG_DATA)
1365 write_state = WR_INDIRECT;
1367 itx = zil_itx_create(TX_WRITE,
1368 sizeof (*lr) + (write_state == WR_COPIED ? lr->lr_length : 0));
1370 if (write_state == WR_COPIED &&
1371 dmu_read(zd->zd_os, lr->lr_foid, lr->lr_offset, lr->lr_length,
1372 ((lr_write_t *)&itx->itx_lr) + 1, DMU_READ_NO_PREFETCH) != 0) {
1373 zil_itx_destroy(itx);
1374 itx = zil_itx_create(TX_WRITE, sizeof (*lr));
1375 write_state = WR_NEED_COPY;
1377 itx->itx_private = zd;
1378 itx->itx_wr_state = write_state;
1379 itx->itx_sync = (ztest_random(8) == 0);
1381 bcopy(&lr->lr_common + 1, &itx->itx_lr + 1,
1382 sizeof (*lr) - sizeof (lr_t));
1384 zil_itx_assign(zd->zd_zilog, itx, tx);
1387 static void
1388 ztest_log_truncate(ztest_ds_t *zd, dmu_tx_t *tx, lr_truncate_t *lr)
1390 itx_t *itx;
1392 if (zil_replaying(zd->zd_zilog, tx))
1393 return;
1395 itx = zil_itx_create(TX_TRUNCATE, sizeof (*lr));
1396 bcopy(&lr->lr_common + 1, &itx->itx_lr + 1,
1397 sizeof (*lr) - sizeof (lr_t));
1399 itx->itx_sync = B_FALSE;
1400 zil_itx_assign(zd->zd_zilog, itx, tx);
1403 static void
1404 ztest_log_setattr(ztest_ds_t *zd, dmu_tx_t *tx, lr_setattr_t *lr)
1406 itx_t *itx;
1408 if (zil_replaying(zd->zd_zilog, tx))
1409 return;
1411 itx = zil_itx_create(TX_SETATTR, sizeof (*lr));
1412 bcopy(&lr->lr_common + 1, &itx->itx_lr + 1,
1413 sizeof (*lr) - sizeof (lr_t));
1415 itx->itx_sync = B_FALSE;
1416 zil_itx_assign(zd->zd_zilog, itx, tx);
1420 * ZIL replay ops
1422 static int
1423 ztest_replay_create(ztest_ds_t *zd, lr_create_t *lr, boolean_t byteswap)
1425 char *name = (void *)(lr + 1); /* name follows lr */
1426 objset_t *os = zd->zd_os;
1427 ztest_block_tag_t *bbt;
1428 dmu_buf_t *db;
1429 dmu_tx_t *tx;
1430 uint64_t txg;
1431 int error = 0;
1433 if (byteswap)
1434 byteswap_uint64_array(lr, sizeof (*lr));
1436 ASSERT(lr->lr_doid == ZTEST_DIROBJ);
1437 ASSERT(name[0] != '\0');
1439 tx = dmu_tx_create(os);
1441 dmu_tx_hold_zap(tx, lr->lr_doid, B_TRUE, name);
1443 if (lr->lrz_type == DMU_OT_ZAP_OTHER) {
1444 dmu_tx_hold_zap(tx, DMU_NEW_OBJECT, B_TRUE, NULL);
1445 } else {
1446 dmu_tx_hold_bonus(tx, DMU_NEW_OBJECT);
1449 txg = ztest_tx_assign(tx, TXG_WAIT, FTAG);
1450 if (txg == 0)
1451 return (ENOSPC);
1453 ASSERT(dmu_objset_zil(os)->zl_replay == !!lr->lr_foid);
1455 if (lr->lrz_type == DMU_OT_ZAP_OTHER) {
1456 if (lr->lr_foid == 0) {
1457 lr->lr_foid = zap_create(os,
1458 lr->lrz_type, lr->lrz_bonustype,
1459 lr->lrz_bonuslen, tx);
1460 } else {
1461 error = zap_create_claim(os, lr->lr_foid,
1462 lr->lrz_type, lr->lrz_bonustype,
1463 lr->lrz_bonuslen, tx);
1465 } else {
1466 if (lr->lr_foid == 0) {
1467 lr->lr_foid = dmu_object_alloc(os,
1468 lr->lrz_type, 0, lr->lrz_bonustype,
1469 lr->lrz_bonuslen, tx);
1470 } else {
1471 error = dmu_object_claim(os, lr->lr_foid,
1472 lr->lrz_type, 0, lr->lrz_bonustype,
1473 lr->lrz_bonuslen, tx);
1477 if (error) {
1478 ASSERT3U(error, ==, EEXIST);
1479 ASSERT(zd->zd_zilog->zl_replay);
1480 dmu_tx_commit(tx);
1481 return (error);
1484 ASSERT(lr->lr_foid != 0);
1486 if (lr->lrz_type != DMU_OT_ZAP_OTHER)
1487 VERIFY3U(0, ==, dmu_object_set_blocksize(os, lr->lr_foid,
1488 lr->lrz_blocksize, lr->lrz_ibshift, tx));
1490 VERIFY3U(0, ==, dmu_bonus_hold(os, lr->lr_foid, FTAG, &db));
1491 bbt = ztest_bt_bonus(db);
1492 dmu_buf_will_dirty(db, tx);
1493 ztest_bt_generate(bbt, os, lr->lr_foid, -1ULL, lr->lr_gen, txg, txg);
1494 dmu_buf_rele(db, FTAG);
1496 VERIFY3U(0, ==, zap_add(os, lr->lr_doid, name, sizeof (uint64_t), 1,
1497 &lr->lr_foid, tx));
1499 (void) ztest_log_create(zd, tx, lr);
1501 dmu_tx_commit(tx);
1503 return (0);
1506 static int
1507 ztest_replay_remove(ztest_ds_t *zd, lr_remove_t *lr, boolean_t byteswap)
1509 char *name = (void *)(lr + 1); /* name follows lr */
1510 objset_t *os = zd->zd_os;
1511 dmu_object_info_t doi;
1512 dmu_tx_t *tx;
1513 uint64_t object, txg;
1515 if (byteswap)
1516 byteswap_uint64_array(lr, sizeof (*lr));
1518 ASSERT(lr->lr_doid == ZTEST_DIROBJ);
1519 ASSERT(name[0] != '\0');
1521 VERIFY3U(0, ==,
1522 zap_lookup(os, lr->lr_doid, name, sizeof (object), 1, &object));
1523 ASSERT(object != 0);
1525 ztest_object_lock(zd, object, RL_WRITER);
1527 VERIFY3U(0, ==, dmu_object_info(os, object, &doi));
1529 tx = dmu_tx_create(os);
1531 dmu_tx_hold_zap(tx, lr->lr_doid, B_FALSE, name);
1532 dmu_tx_hold_free(tx, object, 0, DMU_OBJECT_END);
1534 txg = ztest_tx_assign(tx, TXG_WAIT, FTAG);
1535 if (txg == 0) {
1536 ztest_object_unlock(zd, object);
1537 return (ENOSPC);
1540 if (doi.doi_type == DMU_OT_ZAP_OTHER) {
1541 VERIFY3U(0, ==, zap_destroy(os, object, tx));
1542 } else {
1543 VERIFY3U(0, ==, dmu_object_free(os, object, tx));
1546 VERIFY3U(0, ==, zap_remove(os, lr->lr_doid, name, tx));
1548 (void) ztest_log_remove(zd, tx, lr, object);
1550 dmu_tx_commit(tx);
1552 ztest_object_unlock(zd, object);
1554 return (0);
1557 static int
1558 ztest_replay_write(ztest_ds_t *zd, lr_write_t *lr, boolean_t byteswap)
1560 objset_t *os = zd->zd_os;
1561 void *data = lr + 1; /* data follows lr */
1562 uint64_t offset, length;
1563 ztest_block_tag_t *bt = data;
1564 ztest_block_tag_t *bbt;
1565 uint64_t gen, txg, lrtxg, crtxg;
1566 dmu_object_info_t doi;
1567 dmu_tx_t *tx;
1568 dmu_buf_t *db;
1569 arc_buf_t *abuf = NULL;
1570 rl_t *rl;
1572 if (byteswap)
1573 byteswap_uint64_array(lr, sizeof (*lr));
1575 offset = lr->lr_offset;
1576 length = lr->lr_length;
1578 /* If it's a dmu_sync() block, write the whole block */
1579 if (lr->lr_common.lrc_reclen == sizeof (lr_write_t)) {
1580 uint64_t blocksize = BP_GET_LSIZE(&lr->lr_blkptr);
1581 if (length < blocksize) {
1582 offset -= offset % blocksize;
1583 length = blocksize;
1587 if (bt->bt_magic == BSWAP_64(BT_MAGIC))
1588 byteswap_uint64_array(bt, sizeof (*bt));
1590 if (bt->bt_magic != BT_MAGIC)
1591 bt = NULL;
1593 ztest_object_lock(zd, lr->lr_foid, RL_READER);
1594 rl = ztest_range_lock(zd, lr->lr_foid, offset, length, RL_WRITER);
1596 VERIFY3U(0, ==, dmu_bonus_hold(os, lr->lr_foid, FTAG, &db));
1598 dmu_object_info_from_db(db, &doi);
1600 bbt = ztest_bt_bonus(db);
1601 ASSERT3U(bbt->bt_magic, ==, BT_MAGIC);
1602 gen = bbt->bt_gen;
1603 crtxg = bbt->bt_crtxg;
1604 lrtxg = lr->lr_common.lrc_txg;
1606 tx = dmu_tx_create(os);
1608 dmu_tx_hold_write(tx, lr->lr_foid, offset, length);
1610 if (ztest_random(8) == 0 && length == doi.doi_data_block_size &&
1611 P2PHASE(offset, length) == 0)
1612 abuf = dmu_request_arcbuf(db, length);
1614 txg = ztest_tx_assign(tx, TXG_WAIT, FTAG);
1615 if (txg == 0) {
1616 if (abuf != NULL)
1617 dmu_return_arcbuf(abuf);
1618 dmu_buf_rele(db, FTAG);
1619 ztest_range_unlock(rl);
1620 ztest_object_unlock(zd, lr->lr_foid);
1621 return (ENOSPC);
1624 if (bt != NULL) {
1626 * Usually, verify the old data before writing new data --
1627 * but not always, because we also want to verify correct
1628 * behavior when the data was not recently read into cache.
1630 ASSERT(offset % doi.doi_data_block_size == 0);
1631 if (ztest_random(4) != 0) {
1632 int prefetch = ztest_random(2) ?
1633 DMU_READ_PREFETCH : DMU_READ_NO_PREFETCH;
1634 ztest_block_tag_t rbt;
1636 VERIFY(dmu_read(os, lr->lr_foid, offset,
1637 sizeof (rbt), &rbt, prefetch) == 0);
1638 if (rbt.bt_magic == BT_MAGIC) {
1639 ztest_bt_verify(&rbt, os, lr->lr_foid,
1640 offset, gen, txg, crtxg);
1645 * Writes can appear to be newer than the bonus buffer because
1646 * the ztest_get_data() callback does a dmu_read() of the
1647 * open-context data, which may be different than the data
1648 * as it was when the write was generated.
1650 if (zd->zd_zilog->zl_replay) {
1651 ztest_bt_verify(bt, os, lr->lr_foid, offset,
1652 MAX(gen, bt->bt_gen), MAX(txg, lrtxg),
1653 bt->bt_crtxg);
1657 * Set the bt's gen/txg to the bonus buffer's gen/txg
1658 * so that all of the usual ASSERTs will work.
1660 ztest_bt_generate(bt, os, lr->lr_foid, offset, gen, txg, crtxg);
1663 if (abuf == NULL) {
1664 dmu_write(os, lr->lr_foid, offset, length, data, tx);
1665 } else {
1666 bcopy(data, abuf->b_data, length);
1667 dmu_assign_arcbuf(db, offset, abuf, tx);
1670 (void) ztest_log_write(zd, tx, lr);
1672 dmu_buf_rele(db, FTAG);
1674 dmu_tx_commit(tx);
1676 ztest_range_unlock(rl);
1677 ztest_object_unlock(zd, lr->lr_foid);
1679 return (0);
1682 static int
1683 ztest_replay_truncate(ztest_ds_t *zd, lr_truncate_t *lr, boolean_t byteswap)
1685 objset_t *os = zd->zd_os;
1686 dmu_tx_t *tx;
1687 uint64_t txg;
1688 rl_t *rl;
1690 if (byteswap)
1691 byteswap_uint64_array(lr, sizeof (*lr));
1693 ztest_object_lock(zd, lr->lr_foid, RL_READER);
1694 rl = ztest_range_lock(zd, lr->lr_foid, lr->lr_offset, lr->lr_length,
1695 RL_WRITER);
1697 tx = dmu_tx_create(os);
1699 dmu_tx_hold_free(tx, lr->lr_foid, lr->lr_offset, lr->lr_length);
1701 txg = ztest_tx_assign(tx, TXG_WAIT, FTAG);
1702 if (txg == 0) {
1703 ztest_range_unlock(rl);
1704 ztest_object_unlock(zd, lr->lr_foid);
1705 return (ENOSPC);
1708 VERIFY(dmu_free_range(os, lr->lr_foid, lr->lr_offset,
1709 lr->lr_length, tx) == 0);
1711 (void) ztest_log_truncate(zd, tx, lr);
1713 dmu_tx_commit(tx);
1715 ztest_range_unlock(rl);
1716 ztest_object_unlock(zd, lr->lr_foid);
1718 return (0);
1721 static int
1722 ztest_replay_setattr(ztest_ds_t *zd, lr_setattr_t *lr, boolean_t byteswap)
1724 objset_t *os = zd->zd_os;
1725 dmu_tx_t *tx;
1726 dmu_buf_t *db;
1727 ztest_block_tag_t *bbt;
1728 uint64_t txg, lrtxg, crtxg;
1730 if (byteswap)
1731 byteswap_uint64_array(lr, sizeof (*lr));
1733 ztest_object_lock(zd, lr->lr_foid, RL_WRITER);
1735 VERIFY3U(0, ==, dmu_bonus_hold(os, lr->lr_foid, FTAG, &db));
1737 tx = dmu_tx_create(os);
1738 dmu_tx_hold_bonus(tx, lr->lr_foid);
1740 txg = ztest_tx_assign(tx, TXG_WAIT, FTAG);
1741 if (txg == 0) {
1742 dmu_buf_rele(db, FTAG);
1743 ztest_object_unlock(zd, lr->lr_foid);
1744 return (ENOSPC);
1747 bbt = ztest_bt_bonus(db);
1748 ASSERT3U(bbt->bt_magic, ==, BT_MAGIC);
1749 crtxg = bbt->bt_crtxg;
1750 lrtxg = lr->lr_common.lrc_txg;
1752 if (zd->zd_zilog->zl_replay) {
1753 ASSERT(lr->lr_size != 0);
1754 ASSERT(lr->lr_mode != 0);
1755 ASSERT(lrtxg != 0);
1756 } else {
1758 * Randomly change the size and increment the generation.
1760 lr->lr_size = (ztest_random(db->db_size / sizeof (*bbt)) + 1) *
1761 sizeof (*bbt);
1762 lr->lr_mode = bbt->bt_gen + 1;
1763 ASSERT(lrtxg == 0);
1767 * Verify that the current bonus buffer is not newer than our txg.
1769 ztest_bt_verify(bbt, os, lr->lr_foid, -1ULL, lr->lr_mode,
1770 MAX(txg, lrtxg), crtxg);
1772 dmu_buf_will_dirty(db, tx);
1774 ASSERT3U(lr->lr_size, >=, sizeof (*bbt));
1775 ASSERT3U(lr->lr_size, <=, db->db_size);
1776 VERIFY0(dmu_set_bonus(db, lr->lr_size, tx));
1777 bbt = ztest_bt_bonus(db);
1779 ztest_bt_generate(bbt, os, lr->lr_foid, -1ULL, lr->lr_mode, txg, crtxg);
1781 dmu_buf_rele(db, FTAG);
1783 (void) ztest_log_setattr(zd, tx, lr);
1785 dmu_tx_commit(tx);
1787 ztest_object_unlock(zd, lr->lr_foid);
1789 return (0);
1792 zil_replay_func_t *ztest_replay_vector[TX_MAX_TYPE] = {
1793 NULL, /* 0 no such transaction type */
1794 ztest_replay_create, /* TX_CREATE */
1795 NULL, /* TX_MKDIR */
1796 NULL, /* TX_MKXATTR */
1797 NULL, /* TX_SYMLINK */
1798 ztest_replay_remove, /* TX_REMOVE */
1799 NULL, /* TX_RMDIR */
1800 NULL, /* TX_LINK */
1801 NULL, /* TX_RENAME */
1802 ztest_replay_write, /* TX_WRITE */
1803 ztest_replay_truncate, /* TX_TRUNCATE */
1804 ztest_replay_setattr, /* TX_SETATTR */
1805 NULL, /* TX_ACL */
1806 NULL, /* TX_CREATE_ACL */
1807 NULL, /* TX_CREATE_ATTR */
1808 NULL, /* TX_CREATE_ACL_ATTR */
1809 NULL, /* TX_MKDIR_ACL */
1810 NULL, /* TX_MKDIR_ATTR */
1811 NULL, /* TX_MKDIR_ACL_ATTR */
1812 NULL, /* TX_WRITE2 */
1816 * ZIL get_data callbacks
1819 static void
1820 ztest_get_done(zgd_t *zgd, int error)
1822 ztest_ds_t *zd = zgd->zgd_private;
1823 uint64_t object = zgd->zgd_rl->rl_object;
1825 if (zgd->zgd_db)
1826 dmu_buf_rele(zgd->zgd_db, zgd);
1828 ztest_range_unlock(zgd->zgd_rl);
1829 ztest_object_unlock(zd, object);
1831 if (error == 0 && zgd->zgd_bp)
1832 zil_add_block(zgd->zgd_zilog, zgd->zgd_bp);
1834 umem_free(zgd, sizeof (*zgd));
1837 static int
1838 ztest_get_data(void *arg, lr_write_t *lr, char *buf, zio_t *zio)
1840 ztest_ds_t *zd = arg;
1841 objset_t *os = zd->zd_os;
1842 uint64_t object = lr->lr_foid;
1843 uint64_t offset = lr->lr_offset;
1844 uint64_t size = lr->lr_length;
1845 uint64_t txg = lr->lr_common.lrc_txg;
1846 uint64_t crtxg;
1847 dmu_object_info_t doi;
1848 dmu_buf_t *db;
1849 zgd_t *zgd;
1850 int error;
1852 ztest_object_lock(zd, object, RL_READER);
1853 error = dmu_bonus_hold(os, object, FTAG, &db);
1854 if (error) {
1855 ztest_object_unlock(zd, object);
1856 return (error);
1859 crtxg = ztest_bt_bonus(db)->bt_crtxg;
1861 if (crtxg == 0 || crtxg > txg) {
1862 dmu_buf_rele(db, FTAG);
1863 ztest_object_unlock(zd, object);
1864 return (ENOENT);
1867 dmu_object_info_from_db(db, &doi);
1868 dmu_buf_rele(db, FTAG);
1869 db = NULL;
1871 zgd = umem_zalloc(sizeof (*zgd), UMEM_NOFAIL);
1872 zgd->zgd_zilog = zd->zd_zilog;
1873 zgd->zgd_private = zd;
1875 if (buf != NULL) { /* immediate write */
1876 zgd->zgd_rl = ztest_range_lock(zd, object, offset, size,
1877 RL_READER);
1879 error = dmu_read(os, object, offset, size, buf,
1880 DMU_READ_NO_PREFETCH);
1881 ASSERT(error == 0);
1882 } else {
1883 size = doi.doi_data_block_size;
1884 if (ISP2(size)) {
1885 offset = P2ALIGN(offset, size);
1886 } else {
1887 ASSERT(offset < size);
1888 offset = 0;
1891 zgd->zgd_rl = ztest_range_lock(zd, object, offset, size,
1892 RL_READER);
1894 error = dmu_buf_hold(os, object, offset, zgd, &db,
1895 DMU_READ_NO_PREFETCH);
1897 if (error == 0) {
1898 blkptr_t *bp = &lr->lr_blkptr;
1900 zgd->zgd_db = db;
1901 zgd->zgd_bp = bp;
1903 ASSERT(db->db_offset == offset);
1904 ASSERT(db->db_size == size);
1906 error = dmu_sync(zio, lr->lr_common.lrc_txg,
1907 ztest_get_done, zgd);
1909 if (error == 0)
1910 return (0);
1914 ztest_get_done(zgd, error);
1916 return (error);
1919 static void *
1920 ztest_lr_alloc(size_t lrsize, char *name)
1922 char *lr;
1923 size_t namesize = name ? strlen(name) + 1 : 0;
1925 lr = umem_zalloc(lrsize + namesize, UMEM_NOFAIL);
1927 if (name)
1928 bcopy(name, lr + lrsize, namesize);
1930 return (lr);
1933 void
1934 ztest_lr_free(void *lr, size_t lrsize, char *name)
1936 size_t namesize = name ? strlen(name) + 1 : 0;
1938 umem_free(lr, lrsize + namesize);
1942 * Lookup a bunch of objects. Returns the number of objects not found.
1944 static int
1945 ztest_lookup(ztest_ds_t *zd, ztest_od_t *od, int count)
1947 int missing = 0;
1948 int error;
1950 ASSERT(_mutex_held(&zd->zd_dirobj_lock));
1952 for (int i = 0; i < count; i++, od++) {
1953 od->od_object = 0;
1954 error = zap_lookup(zd->zd_os, od->od_dir, od->od_name,
1955 sizeof (uint64_t), 1, &od->od_object);
1956 if (error) {
1957 ASSERT(error == ENOENT);
1958 ASSERT(od->od_object == 0);
1959 missing++;
1960 } else {
1961 dmu_buf_t *db;
1962 ztest_block_tag_t *bbt;
1963 dmu_object_info_t doi;
1965 ASSERT(od->od_object != 0);
1966 ASSERT(missing == 0); /* there should be no gaps */
1968 ztest_object_lock(zd, od->od_object, RL_READER);
1969 VERIFY3U(0, ==, dmu_bonus_hold(zd->zd_os,
1970 od->od_object, FTAG, &db));
1971 dmu_object_info_from_db(db, &doi);
1972 bbt = ztest_bt_bonus(db);
1973 ASSERT3U(bbt->bt_magic, ==, BT_MAGIC);
1974 od->od_type = doi.doi_type;
1975 od->od_blocksize = doi.doi_data_block_size;
1976 od->od_gen = bbt->bt_gen;
1977 dmu_buf_rele(db, FTAG);
1978 ztest_object_unlock(zd, od->od_object);
1982 return (missing);
1985 static int
1986 ztest_create(ztest_ds_t *zd, ztest_od_t *od, int count)
1988 int missing = 0;
1990 ASSERT(_mutex_held(&zd->zd_dirobj_lock));
1992 for (int i = 0; i < count; i++, od++) {
1993 if (missing) {
1994 od->od_object = 0;
1995 missing++;
1996 continue;
1999 lr_create_t *lr = ztest_lr_alloc(sizeof (*lr), od->od_name);
2001 lr->lr_doid = od->od_dir;
2002 lr->lr_foid = 0; /* 0 to allocate, > 0 to claim */
2003 lr->lrz_type = od->od_crtype;
2004 lr->lrz_blocksize = od->od_crblocksize;
2005 lr->lrz_ibshift = ztest_random_ibshift();
2006 lr->lrz_bonustype = DMU_OT_UINT64_OTHER;
2007 lr->lrz_bonuslen = dmu_bonus_max();
2008 lr->lr_gen = od->od_crgen;
2009 lr->lr_crtime[0] = time(NULL);
2011 if (ztest_replay_create(zd, lr, B_FALSE) != 0) {
2012 ASSERT(missing == 0);
2013 od->od_object = 0;
2014 missing++;
2015 } else {
2016 od->od_object = lr->lr_foid;
2017 od->od_type = od->od_crtype;
2018 od->od_blocksize = od->od_crblocksize;
2019 od->od_gen = od->od_crgen;
2020 ASSERT(od->od_object != 0);
2023 ztest_lr_free(lr, sizeof (*lr), od->od_name);
2026 return (missing);
2029 static int
2030 ztest_remove(ztest_ds_t *zd, ztest_od_t *od, int count)
2032 int missing = 0;
2033 int error;
2035 ASSERT(_mutex_held(&zd->zd_dirobj_lock));
2037 od += count - 1;
2039 for (int i = count - 1; i >= 0; i--, od--) {
2040 if (missing) {
2041 missing++;
2042 continue;
2046 * No object was found.
2048 if (od->od_object == 0)
2049 continue;
2051 lr_remove_t *lr = ztest_lr_alloc(sizeof (*lr), od->od_name);
2053 lr->lr_doid = od->od_dir;
2055 if ((error = ztest_replay_remove(zd, lr, B_FALSE)) != 0) {
2056 ASSERT3U(error, ==, ENOSPC);
2057 missing++;
2058 } else {
2059 od->od_object = 0;
2061 ztest_lr_free(lr, sizeof (*lr), od->od_name);
2064 return (missing);
2067 static int
2068 ztest_write(ztest_ds_t *zd, uint64_t object, uint64_t offset, uint64_t size,
2069 void *data)
2071 lr_write_t *lr;
2072 int error;
2074 lr = ztest_lr_alloc(sizeof (*lr) + size, NULL);
2076 lr->lr_foid = object;
2077 lr->lr_offset = offset;
2078 lr->lr_length = size;
2079 lr->lr_blkoff = 0;
2080 BP_ZERO(&lr->lr_blkptr);
2082 bcopy(data, lr + 1, size);
2084 error = ztest_replay_write(zd, lr, B_FALSE);
2086 ztest_lr_free(lr, sizeof (*lr) + size, NULL);
2088 return (error);
2091 static int
2092 ztest_truncate(ztest_ds_t *zd, uint64_t object, uint64_t offset, uint64_t size)
2094 lr_truncate_t *lr;
2095 int error;
2097 lr = ztest_lr_alloc(sizeof (*lr), NULL);
2099 lr->lr_foid = object;
2100 lr->lr_offset = offset;
2101 lr->lr_length = size;
2103 error = ztest_replay_truncate(zd, lr, B_FALSE);
2105 ztest_lr_free(lr, sizeof (*lr), NULL);
2107 return (error);
2110 static int
2111 ztest_setattr(ztest_ds_t *zd, uint64_t object)
2113 lr_setattr_t *lr;
2114 int error;
2116 lr = ztest_lr_alloc(sizeof (*lr), NULL);
2118 lr->lr_foid = object;
2119 lr->lr_size = 0;
2120 lr->lr_mode = 0;
2122 error = ztest_replay_setattr(zd, lr, B_FALSE);
2124 ztest_lr_free(lr, sizeof (*lr), NULL);
2126 return (error);
2129 static void
2130 ztest_prealloc(ztest_ds_t *zd, uint64_t object, uint64_t offset, uint64_t size)
2132 objset_t *os = zd->zd_os;
2133 dmu_tx_t *tx;
2134 uint64_t txg;
2135 rl_t *rl;
2137 txg_wait_synced(dmu_objset_pool(os), 0);
2139 ztest_object_lock(zd, object, RL_READER);
2140 rl = ztest_range_lock(zd, object, offset, size, RL_WRITER);
2142 tx = dmu_tx_create(os);
2144 dmu_tx_hold_write(tx, object, offset, size);
2146 txg = ztest_tx_assign(tx, TXG_WAIT, FTAG);
2148 if (txg != 0) {
2149 dmu_prealloc(os, object, offset, size, tx);
2150 dmu_tx_commit(tx);
2151 txg_wait_synced(dmu_objset_pool(os), txg);
2152 } else {
2153 (void) dmu_free_long_range(os, object, offset, size);
2156 ztest_range_unlock(rl);
2157 ztest_object_unlock(zd, object);
2160 static void
2161 ztest_io(ztest_ds_t *zd, uint64_t object, uint64_t offset)
2163 int err;
2164 ztest_block_tag_t wbt;
2165 dmu_object_info_t doi;
2166 enum ztest_io_type io_type;
2167 uint64_t blocksize;
2168 void *data;
2170 VERIFY(dmu_object_info(zd->zd_os, object, &doi) == 0);
2171 blocksize = doi.doi_data_block_size;
2172 data = umem_alloc(blocksize, UMEM_NOFAIL);
2175 * Pick an i/o type at random, biased toward writing block tags.
2177 io_type = ztest_random(ZTEST_IO_TYPES);
2178 if (ztest_random(2) == 0)
2179 io_type = ZTEST_IO_WRITE_TAG;
2181 (void) rw_rdlock(&zd->zd_zilog_lock);
2183 switch (io_type) {
2185 case ZTEST_IO_WRITE_TAG:
2186 ztest_bt_generate(&wbt, zd->zd_os, object, offset, 0, 0, 0);
2187 (void) ztest_write(zd, object, offset, sizeof (wbt), &wbt);
2188 break;
2190 case ZTEST_IO_WRITE_PATTERN:
2191 (void) memset(data, 'a' + (object + offset) % 5, blocksize);
2192 if (ztest_random(2) == 0) {
2194 * Induce fletcher2 collisions to ensure that
2195 * zio_ddt_collision() detects and resolves them
2196 * when using fletcher2-verify for deduplication.
2198 ((uint64_t *)data)[0] ^= 1ULL << 63;
2199 ((uint64_t *)data)[4] ^= 1ULL << 63;
2201 (void) ztest_write(zd, object, offset, blocksize, data);
2202 break;
2204 case ZTEST_IO_WRITE_ZEROES:
2205 bzero(data, blocksize);
2206 (void) ztest_write(zd, object, offset, blocksize, data);
2207 break;
2209 case ZTEST_IO_TRUNCATE:
2210 (void) ztest_truncate(zd, object, offset, blocksize);
2211 break;
2213 case ZTEST_IO_SETATTR:
2214 (void) ztest_setattr(zd, object);
2215 break;
2217 case ZTEST_IO_REWRITE:
2218 (void) rw_rdlock(&ztest_name_lock);
2219 err = ztest_dsl_prop_set_uint64(zd->zd_name,
2220 ZFS_PROP_CHECKSUM, spa_dedup_checksum(ztest_spa),
2221 B_FALSE);
2222 VERIFY(err == 0 || err == ENOSPC);
2223 err = ztest_dsl_prop_set_uint64(zd->zd_name,
2224 ZFS_PROP_COMPRESSION,
2225 ztest_random_dsl_prop(ZFS_PROP_COMPRESSION),
2226 B_FALSE);
2227 VERIFY(err == 0 || err == ENOSPC);
2228 (void) rw_unlock(&ztest_name_lock);
2230 VERIFY0(dmu_read(zd->zd_os, object, offset, blocksize, data,
2231 DMU_READ_NO_PREFETCH));
2233 (void) ztest_write(zd, object, offset, blocksize, data);
2234 break;
2237 (void) rw_unlock(&zd->zd_zilog_lock);
2239 umem_free(data, blocksize);
2243 * Initialize an object description template.
2245 static void
2246 ztest_od_init(ztest_od_t *od, uint64_t id, char *tag, uint64_t index,
2247 dmu_object_type_t type, uint64_t blocksize, uint64_t gen)
2249 od->od_dir = ZTEST_DIROBJ;
2250 od->od_object = 0;
2252 od->od_crtype = type;
2253 od->od_crblocksize = blocksize ? blocksize : ztest_random_blocksize();
2254 od->od_crgen = gen;
2256 od->od_type = DMU_OT_NONE;
2257 od->od_blocksize = 0;
2258 od->od_gen = 0;
2260 (void) snprintf(od->od_name, sizeof (od->od_name), "%s(%lld)[%llu]",
2261 tag, (int64_t)id, index);
2265 * Lookup or create the objects for a test using the od template.
2266 * If the objects do not all exist, or if 'remove' is specified,
2267 * remove any existing objects and create new ones. Otherwise,
2268 * use the existing objects.
2270 static int
2271 ztest_object_init(ztest_ds_t *zd, ztest_od_t *od, size_t size, boolean_t remove)
2273 int count = size / sizeof (*od);
2274 int rv = 0;
2276 VERIFY(mutex_lock(&zd->zd_dirobj_lock) == 0);
2277 if ((ztest_lookup(zd, od, count) != 0 || remove) &&
2278 (ztest_remove(zd, od, count) != 0 ||
2279 ztest_create(zd, od, count) != 0))
2280 rv = -1;
2281 zd->zd_od = od;
2282 VERIFY(mutex_unlock(&zd->zd_dirobj_lock) == 0);
2284 return (rv);
2287 /* ARGSUSED */
2288 void
2289 ztest_zil_commit(ztest_ds_t *zd, uint64_t id)
2291 zilog_t *zilog = zd->zd_zilog;
2293 (void) rw_rdlock(&zd->zd_zilog_lock);
2295 zil_commit(zilog, ztest_random(ZTEST_OBJECTS));
2298 * Remember the committed values in zd, which is in parent/child
2299 * shared memory. If we die, the next iteration of ztest_run()
2300 * will verify that the log really does contain this record.
2302 mutex_enter(&zilog->zl_lock);
2303 ASSERT(zd->zd_shared != NULL);
2304 ASSERT3U(zd->zd_shared->zd_seq, <=, zilog->zl_commit_lr_seq);
2305 zd->zd_shared->zd_seq = zilog->zl_commit_lr_seq;
2306 mutex_exit(&zilog->zl_lock);
2308 (void) rw_unlock(&zd->zd_zilog_lock);
2312 * This function is designed to simulate the operations that occur during a
2313 * mount/unmount operation. We hold the dataset across these operations in an
2314 * attempt to expose any implicit assumptions about ZIL management.
2316 /* ARGSUSED */
2317 void
2318 ztest_zil_remount(ztest_ds_t *zd, uint64_t id)
2320 objset_t *os = zd->zd_os;
2323 * We grab the zd_dirobj_lock to ensure that no other thread is
2324 * updating the zil (i.e. adding in-memory log records) and the
2325 * zd_zilog_lock to block any I/O.
2327 VERIFY0(mutex_lock(&zd->zd_dirobj_lock));
2328 (void) rw_wrlock(&zd->zd_zilog_lock);
2330 /* zfsvfs_teardown() */
2331 zil_close(zd->zd_zilog);
2333 /* zfsvfs_setup() */
2334 VERIFY(zil_open(os, ztest_get_data) == zd->zd_zilog);
2335 zil_replay(os, zd, ztest_replay_vector);
2337 (void) rw_unlock(&zd->zd_zilog_lock);
2338 VERIFY(mutex_unlock(&zd->zd_dirobj_lock) == 0);
2342 * Verify that we can't destroy an active pool, create an existing pool,
2343 * or create a pool with a bad vdev spec.
2345 /* ARGSUSED */
2346 void
2347 ztest_spa_create_destroy(ztest_ds_t *zd, uint64_t id)
2349 ztest_shared_opts_t *zo = &ztest_opts;
2350 spa_t *spa;
2351 nvlist_t *nvroot;
2354 * Attempt to create using a bad file.
2356 nvroot = make_vdev_root("/dev/bogus", NULL, NULL, 0, 0, 0, 0, 0, 1);
2357 VERIFY3U(ENOENT, ==,
2358 spa_create("ztest_bad_file", nvroot, NULL, NULL));
2359 nvlist_free(nvroot);
2362 * Attempt to create using a bad mirror.
2364 nvroot = make_vdev_root("/dev/bogus", NULL, NULL, 0, 0, 0, 0, 2, 1);
2365 VERIFY3U(ENOENT, ==,
2366 spa_create("ztest_bad_mirror", nvroot, NULL, NULL));
2367 nvlist_free(nvroot);
2370 * Attempt to create an existing pool. It shouldn't matter
2371 * what's in the nvroot; we should fail with EEXIST.
2373 (void) rw_rdlock(&ztest_name_lock);
2374 nvroot = make_vdev_root("/dev/bogus", NULL, NULL, 0, 0, 0, 0, 0, 1);
2375 VERIFY3U(EEXIST, ==, spa_create(zo->zo_pool, nvroot, NULL, NULL));
2376 nvlist_free(nvroot);
2377 VERIFY3U(0, ==, spa_open(zo->zo_pool, &spa, FTAG));
2378 VERIFY3U(EBUSY, ==, spa_destroy(zo->zo_pool));
2379 spa_close(spa, FTAG);
2381 (void) rw_unlock(&ztest_name_lock);
2384 /* ARGSUSED */
2385 void
2386 ztest_spa_upgrade(ztest_ds_t *zd, uint64_t id)
2388 spa_t *spa;
2389 uint64_t initial_version = SPA_VERSION_INITIAL;
2390 uint64_t version, newversion;
2391 nvlist_t *nvroot, *props;
2392 char *name;
2394 VERIFY0(mutex_lock(&ztest_vdev_lock));
2395 name = kmem_asprintf("%s_upgrade", ztest_opts.zo_pool);
2398 * Clean up from previous runs.
2400 (void) spa_destroy(name);
2402 nvroot = make_vdev_root(NULL, NULL, name, ztest_opts.zo_vdev_size, 0,
2403 0, ztest_opts.zo_raidz, ztest_opts.zo_mirrors, 1);
2406 * If we're configuring a RAIDZ device then make sure that the
2407 * the initial version is capable of supporting that feature.
2409 switch (ztest_opts.zo_raidz_parity) {
2410 case 0:
2411 case 1:
2412 initial_version = SPA_VERSION_INITIAL;
2413 break;
2414 case 2:
2415 initial_version = SPA_VERSION_RAIDZ2;
2416 break;
2417 case 3:
2418 initial_version = SPA_VERSION_RAIDZ3;
2419 break;
2423 * Create a pool with a spa version that can be upgraded. Pick
2424 * a value between initial_version and SPA_VERSION_BEFORE_FEATURES.
2426 do {
2427 version = ztest_random_spa_version(initial_version);
2428 } while (version > SPA_VERSION_BEFORE_FEATURES);
2430 props = fnvlist_alloc();
2431 fnvlist_add_uint64(props,
2432 zpool_prop_to_name(ZPOOL_PROP_VERSION), version);
2433 VERIFY0(spa_create(name, nvroot, props, NULL));
2434 fnvlist_free(nvroot);
2435 fnvlist_free(props);
2437 VERIFY0(spa_open(name, &spa, FTAG));
2438 VERIFY3U(spa_version(spa), ==, version);
2439 newversion = ztest_random_spa_version(version + 1);
2441 if (ztest_opts.zo_verbose >= 4) {
2442 (void) printf("upgrading spa version from %llu to %llu\n",
2443 (u_longlong_t)version, (u_longlong_t)newversion);
2446 spa_upgrade(spa, newversion);
2447 VERIFY3U(spa_version(spa), >, version);
2448 VERIFY3U(spa_version(spa), ==, fnvlist_lookup_uint64(spa->spa_config,
2449 zpool_prop_to_name(ZPOOL_PROP_VERSION)));
2450 spa_close(spa, FTAG);
2452 strfree(name);
2453 VERIFY0(mutex_unlock(&ztest_vdev_lock));
2456 static vdev_t *
2457 vdev_lookup_by_path(vdev_t *vd, const char *path)
2459 vdev_t *mvd;
2461 if (vd->vdev_path != NULL && strcmp(path, vd->vdev_path) == 0)
2462 return (vd);
2464 for (int c = 0; c < vd->vdev_children; c++)
2465 if ((mvd = vdev_lookup_by_path(vd->vdev_child[c], path)) !=
2466 NULL)
2467 return (mvd);
2469 return (NULL);
2473 * Find the first available hole which can be used as a top-level.
2476 find_vdev_hole(spa_t *spa)
2478 vdev_t *rvd = spa->spa_root_vdev;
2479 int c;
2481 ASSERT(spa_config_held(spa, SCL_VDEV, RW_READER) == SCL_VDEV);
2483 for (c = 0; c < rvd->vdev_children; c++) {
2484 vdev_t *cvd = rvd->vdev_child[c];
2486 if (cvd->vdev_ishole)
2487 break;
2489 return (c);
2493 * Verify that vdev_add() works as expected.
2495 /* ARGSUSED */
2496 void
2497 ztest_vdev_add_remove(ztest_ds_t *zd, uint64_t id)
2499 ztest_shared_t *zs = ztest_shared;
2500 spa_t *spa = ztest_spa;
2501 uint64_t leaves;
2502 uint64_t guid;
2503 nvlist_t *nvroot;
2504 int error;
2506 VERIFY(mutex_lock(&ztest_vdev_lock) == 0);
2507 leaves = MAX(zs->zs_mirrors + zs->zs_splits, 1) * ztest_opts.zo_raidz;
2509 spa_config_enter(spa, SCL_VDEV, FTAG, RW_READER);
2511 ztest_shared->zs_vdev_next_leaf = find_vdev_hole(spa) * leaves;
2514 * If we have slogs then remove them 1/4 of the time.
2516 if (spa_has_slogs(spa) && ztest_random(4) == 0) {
2518 * Grab the guid from the head of the log class rotor.
2520 guid = spa_log_class(spa)->mc_rotor->mg_vd->vdev_guid;
2522 spa_config_exit(spa, SCL_VDEV, FTAG);
2525 * We have to grab the zs_name_lock as writer to
2526 * prevent a race between removing a slog (dmu_objset_find)
2527 * and destroying a dataset. Removing the slog will
2528 * grab a reference on the dataset which may cause
2529 * dmu_objset_destroy() to fail with EBUSY thus
2530 * leaving the dataset in an inconsistent state.
2532 VERIFY(rw_wrlock(&ztest_name_lock) == 0);
2533 error = spa_vdev_remove(spa, guid, B_FALSE);
2534 VERIFY(rw_unlock(&ztest_name_lock) == 0);
2536 if (error && error != EEXIST)
2537 fatal(0, "spa_vdev_remove() = %d", error);
2538 } else {
2539 spa_config_exit(spa, SCL_VDEV, FTAG);
2542 * Make 1/4 of the devices be log devices.
2544 nvroot = make_vdev_root(NULL, NULL, NULL,
2545 ztest_opts.zo_vdev_size, 0,
2546 ztest_random(4) == 0, ztest_opts.zo_raidz,
2547 zs->zs_mirrors, 1);
2549 error = spa_vdev_add(spa, nvroot);
2550 nvlist_free(nvroot);
2552 if (error == ENOSPC)
2553 ztest_record_enospc("spa_vdev_add");
2554 else if (error != 0)
2555 fatal(0, "spa_vdev_add() = %d", error);
2558 VERIFY(mutex_unlock(&ztest_vdev_lock) == 0);
2562 * Verify that adding/removing aux devices (l2arc, hot spare) works as expected.
2564 /* ARGSUSED */
2565 void
2566 ztest_vdev_aux_add_remove(ztest_ds_t *zd, uint64_t id)
2568 ztest_shared_t *zs = ztest_shared;
2569 spa_t *spa = ztest_spa;
2570 vdev_t *rvd = spa->spa_root_vdev;
2571 spa_aux_vdev_t *sav;
2572 char *aux;
2573 uint64_t guid = 0;
2574 int error;
2576 if (ztest_random(2) == 0) {
2577 sav = &spa->spa_spares;
2578 aux = ZPOOL_CONFIG_SPARES;
2579 } else {
2580 sav = &spa->spa_l2cache;
2581 aux = ZPOOL_CONFIG_L2CACHE;
2584 VERIFY(mutex_lock(&ztest_vdev_lock) == 0);
2586 spa_config_enter(spa, SCL_VDEV, FTAG, RW_READER);
2588 if (sav->sav_count != 0 && ztest_random(4) == 0) {
2590 * Pick a random device to remove.
2592 guid = sav->sav_vdevs[ztest_random(sav->sav_count)]->vdev_guid;
2593 } else {
2595 * Find an unused device we can add.
2597 zs->zs_vdev_aux = 0;
2598 for (;;) {
2599 char path[MAXPATHLEN];
2600 int c;
2601 (void) snprintf(path, sizeof (path), ztest_aux_template,
2602 ztest_opts.zo_dir, ztest_opts.zo_pool, aux,
2603 zs->zs_vdev_aux);
2604 for (c = 0; c < sav->sav_count; c++)
2605 if (strcmp(sav->sav_vdevs[c]->vdev_path,
2606 path) == 0)
2607 break;
2608 if (c == sav->sav_count &&
2609 vdev_lookup_by_path(rvd, path) == NULL)
2610 break;
2611 zs->zs_vdev_aux++;
2615 spa_config_exit(spa, SCL_VDEV, FTAG);
2617 if (guid == 0) {
2619 * Add a new device.
2621 nvlist_t *nvroot = make_vdev_root(NULL, aux, NULL,
2622 (ztest_opts.zo_vdev_size * 5) / 4, 0, 0, 0, 0, 1);
2623 error = spa_vdev_add(spa, nvroot);
2624 if (error != 0)
2625 fatal(0, "spa_vdev_add(%p) = %d", nvroot, error);
2626 nvlist_free(nvroot);
2627 } else {
2629 * Remove an existing device. Sometimes, dirty its
2630 * vdev state first to make sure we handle removal
2631 * of devices that have pending state changes.
2633 if (ztest_random(2) == 0)
2634 (void) vdev_online(spa, guid, 0, NULL);
2636 error = spa_vdev_remove(spa, guid, B_FALSE);
2637 if (error != 0 && error != EBUSY)
2638 fatal(0, "spa_vdev_remove(%llu) = %d", guid, error);
2641 VERIFY(mutex_unlock(&ztest_vdev_lock) == 0);
2645 * split a pool if it has mirror tlvdevs
2647 /* ARGSUSED */
2648 void
2649 ztest_split_pool(ztest_ds_t *zd, uint64_t id)
2651 ztest_shared_t *zs = ztest_shared;
2652 spa_t *spa = ztest_spa;
2653 vdev_t *rvd = spa->spa_root_vdev;
2654 nvlist_t *tree, **child, *config, *split, **schild;
2655 uint_t c, children, schildren = 0, lastlogid = 0;
2656 int error = 0;
2658 VERIFY(mutex_lock(&ztest_vdev_lock) == 0);
2660 /* ensure we have a useable config; mirrors of raidz aren't supported */
2661 if (zs->zs_mirrors < 3 || ztest_opts.zo_raidz > 1) {
2662 VERIFY(mutex_unlock(&ztest_vdev_lock) == 0);
2663 return;
2666 /* clean up the old pool, if any */
2667 (void) spa_destroy("splitp");
2669 spa_config_enter(spa, SCL_VDEV, FTAG, RW_READER);
2671 /* generate a config from the existing config */
2672 mutex_enter(&spa->spa_props_lock);
2673 VERIFY(nvlist_lookup_nvlist(spa->spa_config, ZPOOL_CONFIG_VDEV_TREE,
2674 &tree) == 0);
2675 mutex_exit(&spa->spa_props_lock);
2677 VERIFY(nvlist_lookup_nvlist_array(tree, ZPOOL_CONFIG_CHILDREN, &child,
2678 &children) == 0);
2680 schild = malloc(rvd->vdev_children * sizeof (nvlist_t *));
2681 for (c = 0; c < children; c++) {
2682 vdev_t *tvd = rvd->vdev_child[c];
2683 nvlist_t **mchild;
2684 uint_t mchildren;
2686 if (tvd->vdev_islog || tvd->vdev_ops == &vdev_hole_ops) {
2687 VERIFY(nvlist_alloc(&schild[schildren], NV_UNIQUE_NAME,
2688 0) == 0);
2689 VERIFY(nvlist_add_string(schild[schildren],
2690 ZPOOL_CONFIG_TYPE, VDEV_TYPE_HOLE) == 0);
2691 VERIFY(nvlist_add_uint64(schild[schildren],
2692 ZPOOL_CONFIG_IS_HOLE, 1) == 0);
2693 if (lastlogid == 0)
2694 lastlogid = schildren;
2695 ++schildren;
2696 continue;
2698 lastlogid = 0;
2699 VERIFY(nvlist_lookup_nvlist_array(child[c],
2700 ZPOOL_CONFIG_CHILDREN, &mchild, &mchildren) == 0);
2701 VERIFY(nvlist_dup(mchild[0], &schild[schildren++], 0) == 0);
2704 /* OK, create a config that can be used to split */
2705 VERIFY(nvlist_alloc(&split, NV_UNIQUE_NAME, 0) == 0);
2706 VERIFY(nvlist_add_string(split, ZPOOL_CONFIG_TYPE,
2707 VDEV_TYPE_ROOT) == 0);
2708 VERIFY(nvlist_add_nvlist_array(split, ZPOOL_CONFIG_CHILDREN, schild,
2709 lastlogid != 0 ? lastlogid : schildren) == 0);
2711 VERIFY(nvlist_alloc(&config, NV_UNIQUE_NAME, 0) == 0);
2712 VERIFY(nvlist_add_nvlist(config, ZPOOL_CONFIG_VDEV_TREE, split) == 0);
2714 for (c = 0; c < schildren; c++)
2715 nvlist_free(schild[c]);
2716 free(schild);
2717 nvlist_free(split);
2719 spa_config_exit(spa, SCL_VDEV, FTAG);
2721 (void) rw_wrlock(&ztest_name_lock);
2722 error = spa_vdev_split_mirror(spa, "splitp", config, NULL, B_FALSE);
2723 (void) rw_unlock(&ztest_name_lock);
2725 nvlist_free(config);
2727 if (error == 0) {
2728 (void) printf("successful split - results:\n");
2729 mutex_enter(&spa_namespace_lock);
2730 show_pool_stats(spa);
2731 show_pool_stats(spa_lookup("splitp"));
2732 mutex_exit(&spa_namespace_lock);
2733 ++zs->zs_splits;
2734 --zs->zs_mirrors;
2736 VERIFY(mutex_unlock(&ztest_vdev_lock) == 0);
2741 * Verify that we can attach and detach devices.
2743 /* ARGSUSED */
2744 void
2745 ztest_vdev_attach_detach(ztest_ds_t *zd, uint64_t id)
2747 ztest_shared_t *zs = ztest_shared;
2748 spa_t *spa = ztest_spa;
2749 spa_aux_vdev_t *sav = &spa->spa_spares;
2750 vdev_t *rvd = spa->spa_root_vdev;
2751 vdev_t *oldvd, *newvd, *pvd;
2752 nvlist_t *root;
2753 uint64_t leaves;
2754 uint64_t leaf, top;
2755 uint64_t ashift = ztest_get_ashift();
2756 uint64_t oldguid, pguid;
2757 uint64_t oldsize, newsize;
2758 char oldpath[MAXPATHLEN], newpath[MAXPATHLEN];
2759 int replacing;
2760 int oldvd_has_siblings = B_FALSE;
2761 int newvd_is_spare = B_FALSE;
2762 int oldvd_is_log;
2763 int error, expected_error;
2765 VERIFY(mutex_lock(&ztest_vdev_lock) == 0);
2766 leaves = MAX(zs->zs_mirrors, 1) * ztest_opts.zo_raidz;
2768 spa_config_enter(spa, SCL_VDEV, FTAG, RW_READER);
2771 * Decide whether to do an attach or a replace.
2773 replacing = ztest_random(2);
2776 * Pick a random top-level vdev.
2778 top = ztest_random_vdev_top(spa, B_TRUE);
2781 * Pick a random leaf within it.
2783 leaf = ztest_random(leaves);
2786 * Locate this vdev.
2788 oldvd = rvd->vdev_child[top];
2789 if (zs->zs_mirrors >= 1) {
2790 ASSERT(oldvd->vdev_ops == &vdev_mirror_ops);
2791 ASSERT(oldvd->vdev_children >= zs->zs_mirrors);
2792 oldvd = oldvd->vdev_child[leaf / ztest_opts.zo_raidz];
2794 if (ztest_opts.zo_raidz > 1) {
2795 ASSERT(oldvd->vdev_ops == &vdev_raidz_ops);
2796 ASSERT(oldvd->vdev_children == ztest_opts.zo_raidz);
2797 oldvd = oldvd->vdev_child[leaf % ztest_opts.zo_raidz];
2801 * If we're already doing an attach or replace, oldvd may be a
2802 * mirror vdev -- in which case, pick a random child.
2804 while (oldvd->vdev_children != 0) {
2805 oldvd_has_siblings = B_TRUE;
2806 ASSERT(oldvd->vdev_children >= 2);
2807 oldvd = oldvd->vdev_child[ztest_random(oldvd->vdev_children)];
2810 oldguid = oldvd->vdev_guid;
2811 oldsize = vdev_get_min_asize(oldvd);
2812 oldvd_is_log = oldvd->vdev_top->vdev_islog;
2813 (void) strcpy(oldpath, oldvd->vdev_path);
2814 pvd = oldvd->vdev_parent;
2815 pguid = pvd->vdev_guid;
2818 * If oldvd has siblings, then half of the time, detach it.
2820 if (oldvd_has_siblings && ztest_random(2) == 0) {
2821 spa_config_exit(spa, SCL_VDEV, FTAG);
2822 error = spa_vdev_detach(spa, oldguid, pguid, B_FALSE);
2823 if (error != 0 && error != ENODEV && error != EBUSY &&
2824 error != ENOTSUP)
2825 fatal(0, "detach (%s) returned %d", oldpath, error);
2826 VERIFY(mutex_unlock(&ztest_vdev_lock) == 0);
2827 return;
2831 * For the new vdev, choose with equal probability between the two
2832 * standard paths (ending in either 'a' or 'b') or a random hot spare.
2834 if (sav->sav_count != 0 && ztest_random(3) == 0) {
2835 newvd = sav->sav_vdevs[ztest_random(sav->sav_count)];
2836 newvd_is_spare = B_TRUE;
2837 (void) strcpy(newpath, newvd->vdev_path);
2838 } else {
2839 (void) snprintf(newpath, sizeof (newpath), ztest_dev_template,
2840 ztest_opts.zo_dir, ztest_opts.zo_pool,
2841 top * leaves + leaf);
2842 if (ztest_random(2) == 0)
2843 newpath[strlen(newpath) - 1] = 'b';
2844 newvd = vdev_lookup_by_path(rvd, newpath);
2847 if (newvd) {
2848 newsize = vdev_get_min_asize(newvd);
2849 } else {
2851 * Make newsize a little bigger or smaller than oldsize.
2852 * If it's smaller, the attach should fail.
2853 * If it's larger, and we're doing a replace,
2854 * we should get dynamic LUN growth when we're done.
2856 newsize = 10 * oldsize / (9 + ztest_random(3));
2860 * If pvd is not a mirror or root, the attach should fail with ENOTSUP,
2861 * unless it's a replace; in that case any non-replacing parent is OK.
2863 * If newvd is already part of the pool, it should fail with EBUSY.
2865 * If newvd is too small, it should fail with EOVERFLOW.
2867 if (pvd->vdev_ops != &vdev_mirror_ops &&
2868 pvd->vdev_ops != &vdev_root_ops && (!replacing ||
2869 pvd->vdev_ops == &vdev_replacing_ops ||
2870 pvd->vdev_ops == &vdev_spare_ops))
2871 expected_error = ENOTSUP;
2872 else if (newvd_is_spare && (!replacing || oldvd_is_log))
2873 expected_error = ENOTSUP;
2874 else if (newvd == oldvd)
2875 expected_error = replacing ? 0 : EBUSY;
2876 else if (vdev_lookup_by_path(rvd, newpath) != NULL)
2877 expected_error = EBUSY;
2878 else if (newsize < oldsize)
2879 expected_error = EOVERFLOW;
2880 else if (ashift > oldvd->vdev_top->vdev_ashift)
2881 expected_error = EDOM;
2882 else
2883 expected_error = 0;
2885 spa_config_exit(spa, SCL_VDEV, FTAG);
2888 * Build the nvlist describing newpath.
2890 root = make_vdev_root(newpath, NULL, NULL, newvd == NULL ? newsize : 0,
2891 ashift, 0, 0, 0, 1);
2893 error = spa_vdev_attach(spa, oldguid, root, replacing);
2895 nvlist_free(root);
2898 * If our parent was the replacing vdev, but the replace completed,
2899 * then instead of failing with ENOTSUP we may either succeed,
2900 * fail with ENODEV, or fail with EOVERFLOW.
2902 if (expected_error == ENOTSUP &&
2903 (error == 0 || error == ENODEV || error == EOVERFLOW))
2904 expected_error = error;
2907 * If someone grew the LUN, the replacement may be too small.
2909 if (error == EOVERFLOW || error == EBUSY)
2910 expected_error = error;
2912 /* XXX workaround 6690467 */
2913 if (error != expected_error && expected_error != EBUSY) {
2914 fatal(0, "attach (%s %llu, %s %llu, %d) "
2915 "returned %d, expected %d",
2916 oldpath, oldsize, newpath,
2917 newsize, replacing, error, expected_error);
2920 VERIFY(mutex_unlock(&ztest_vdev_lock) == 0);
2924 * Callback function which expands the physical size of the vdev.
2926 vdev_t *
2927 grow_vdev(vdev_t *vd, void *arg)
2929 spa_t *spa = vd->vdev_spa;
2930 size_t *newsize = arg;
2931 size_t fsize;
2932 int fd;
2934 ASSERT(spa_config_held(spa, SCL_STATE, RW_READER) == SCL_STATE);
2935 ASSERT(vd->vdev_ops->vdev_op_leaf);
2937 if ((fd = open(vd->vdev_path, O_RDWR)) == -1)
2938 return (vd);
2940 fsize = lseek(fd, 0, SEEK_END);
2941 (void) ftruncate(fd, *newsize);
2943 if (ztest_opts.zo_verbose >= 6) {
2944 (void) printf("%s grew from %lu to %lu bytes\n",
2945 vd->vdev_path, (ulong_t)fsize, (ulong_t)*newsize);
2947 (void) close(fd);
2948 return (NULL);
2952 * Callback function which expands a given vdev by calling vdev_online().
2954 /* ARGSUSED */
2955 vdev_t *
2956 online_vdev(vdev_t *vd, void *arg)
2958 spa_t *spa = vd->vdev_spa;
2959 vdev_t *tvd = vd->vdev_top;
2960 uint64_t guid = vd->vdev_guid;
2961 uint64_t generation = spa->spa_config_generation + 1;
2962 vdev_state_t newstate = VDEV_STATE_UNKNOWN;
2963 int error;
2965 ASSERT(spa_config_held(spa, SCL_STATE, RW_READER) == SCL_STATE);
2966 ASSERT(vd->vdev_ops->vdev_op_leaf);
2968 /* Calling vdev_online will initialize the new metaslabs */
2969 spa_config_exit(spa, SCL_STATE, spa);
2970 error = vdev_online(spa, guid, ZFS_ONLINE_EXPAND, &newstate);
2971 spa_config_enter(spa, SCL_STATE, spa, RW_READER);
2974 * If vdev_online returned an error or the underlying vdev_open
2975 * failed then we abort the expand. The only way to know that
2976 * vdev_open fails is by checking the returned newstate.
2978 if (error || newstate != VDEV_STATE_HEALTHY) {
2979 if (ztest_opts.zo_verbose >= 5) {
2980 (void) printf("Unable to expand vdev, state %llu, "
2981 "error %d\n", (u_longlong_t)newstate, error);
2983 return (vd);
2985 ASSERT3U(newstate, ==, VDEV_STATE_HEALTHY);
2988 * Since we dropped the lock we need to ensure that we're
2989 * still talking to the original vdev. It's possible this
2990 * vdev may have been detached/replaced while we were
2991 * trying to online it.
2993 if (generation != spa->spa_config_generation) {
2994 if (ztest_opts.zo_verbose >= 5) {
2995 (void) printf("vdev configuration has changed, "
2996 "guid %llu, state %llu, expected gen %llu, "
2997 "got gen %llu\n",
2998 (u_longlong_t)guid,
2999 (u_longlong_t)tvd->vdev_state,
3000 (u_longlong_t)generation,
3001 (u_longlong_t)spa->spa_config_generation);
3003 return (vd);
3005 return (NULL);
3009 * Traverse the vdev tree calling the supplied function.
3010 * We continue to walk the tree until we either have walked all
3011 * children or we receive a non-NULL return from the callback.
3012 * If a NULL callback is passed, then we just return back the first
3013 * leaf vdev we encounter.
3015 vdev_t *
3016 vdev_walk_tree(vdev_t *vd, vdev_t *(*func)(vdev_t *, void *), void *arg)
3018 if (vd->vdev_ops->vdev_op_leaf) {
3019 if (func == NULL)
3020 return (vd);
3021 else
3022 return (func(vd, arg));
3025 for (uint_t c = 0; c < vd->vdev_children; c++) {
3026 vdev_t *cvd = vd->vdev_child[c];
3027 if ((cvd = vdev_walk_tree(cvd, func, arg)) != NULL)
3028 return (cvd);
3030 return (NULL);
3034 * Verify that dynamic LUN growth works as expected.
3036 /* ARGSUSED */
3037 void
3038 ztest_vdev_LUN_growth(ztest_ds_t *zd, uint64_t id)
3040 spa_t *spa = ztest_spa;
3041 vdev_t *vd, *tvd;
3042 metaslab_class_t *mc;
3043 metaslab_group_t *mg;
3044 size_t psize, newsize;
3045 uint64_t top;
3046 uint64_t old_class_space, new_class_space, old_ms_count, new_ms_count;
3048 VERIFY(mutex_lock(&ztest_vdev_lock) == 0);
3049 spa_config_enter(spa, SCL_STATE, spa, RW_READER);
3051 top = ztest_random_vdev_top(spa, B_TRUE);
3053 tvd = spa->spa_root_vdev->vdev_child[top];
3054 mg = tvd->vdev_mg;
3055 mc = mg->mg_class;
3056 old_ms_count = tvd->vdev_ms_count;
3057 old_class_space = metaslab_class_get_space(mc);
3060 * Determine the size of the first leaf vdev associated with
3061 * our top-level device.
3063 vd = vdev_walk_tree(tvd, NULL, NULL);
3064 ASSERT3P(vd, !=, NULL);
3065 ASSERT(vd->vdev_ops->vdev_op_leaf);
3067 psize = vd->vdev_psize;
3070 * We only try to expand the vdev if it's healthy, less than 4x its
3071 * original size, and it has a valid psize.
3073 if (tvd->vdev_state != VDEV_STATE_HEALTHY ||
3074 psize == 0 || psize >= 4 * ztest_opts.zo_vdev_size) {
3075 spa_config_exit(spa, SCL_STATE, spa);
3076 VERIFY(mutex_unlock(&ztest_vdev_lock) == 0);
3077 return;
3079 ASSERT(psize > 0);
3080 newsize = psize + psize / 8;
3081 ASSERT3U(newsize, >, psize);
3083 if (ztest_opts.zo_verbose >= 6) {
3084 (void) printf("Expanding LUN %s from %lu to %lu\n",
3085 vd->vdev_path, (ulong_t)psize, (ulong_t)newsize);
3089 * Growing the vdev is a two step process:
3090 * 1). expand the physical size (i.e. relabel)
3091 * 2). online the vdev to create the new metaslabs
3093 if (vdev_walk_tree(tvd, grow_vdev, &newsize) != NULL ||
3094 vdev_walk_tree(tvd, online_vdev, NULL) != NULL ||
3095 tvd->vdev_state != VDEV_STATE_HEALTHY) {
3096 if (ztest_opts.zo_verbose >= 5) {
3097 (void) printf("Could not expand LUN because "
3098 "the vdev configuration changed.\n");
3100 spa_config_exit(spa, SCL_STATE, spa);
3101 VERIFY(mutex_unlock(&ztest_vdev_lock) == 0);
3102 return;
3105 spa_config_exit(spa, SCL_STATE, spa);
3108 * Expanding the LUN will update the config asynchronously,
3109 * thus we must wait for the async thread to complete any
3110 * pending tasks before proceeding.
3112 for (;;) {
3113 boolean_t done;
3114 mutex_enter(&spa->spa_async_lock);
3115 done = (spa->spa_async_thread == NULL && !spa->spa_async_tasks);
3116 mutex_exit(&spa->spa_async_lock);
3117 if (done)
3118 break;
3119 txg_wait_synced(spa_get_dsl(spa), 0);
3120 (void) poll(NULL, 0, 100);
3123 spa_config_enter(spa, SCL_STATE, spa, RW_READER);
3125 tvd = spa->spa_root_vdev->vdev_child[top];
3126 new_ms_count = tvd->vdev_ms_count;
3127 new_class_space = metaslab_class_get_space(mc);
3129 if (tvd->vdev_mg != mg || mg->mg_class != mc) {
3130 if (ztest_opts.zo_verbose >= 5) {
3131 (void) printf("Could not verify LUN expansion due to "
3132 "intervening vdev offline or remove.\n");
3134 spa_config_exit(spa, SCL_STATE, spa);
3135 VERIFY(mutex_unlock(&ztest_vdev_lock) == 0);
3136 return;
3140 * Make sure we were able to grow the vdev.
3142 if (new_ms_count <= old_ms_count)
3143 fatal(0, "LUN expansion failed: ms_count %llu <= %llu\n",
3144 old_ms_count, new_ms_count);
3147 * Make sure we were able to grow the pool.
3149 if (new_class_space <= old_class_space)
3150 fatal(0, "LUN expansion failed: class_space %llu <= %llu\n",
3151 old_class_space, new_class_space);
3153 if (ztest_opts.zo_verbose >= 5) {
3154 char oldnumbuf[6], newnumbuf[6];
3156 nicenum(old_class_space, oldnumbuf);
3157 nicenum(new_class_space, newnumbuf);
3158 (void) printf("%s grew from %s to %s\n",
3159 spa->spa_name, oldnumbuf, newnumbuf);
3162 spa_config_exit(spa, SCL_STATE, spa);
3163 VERIFY(mutex_unlock(&ztest_vdev_lock) == 0);
3167 * Verify that dmu_objset_{create,destroy,open,close} work as expected.
3169 /* ARGSUSED */
3170 static void
3171 ztest_objset_create_cb(objset_t *os, void *arg, cred_t *cr, dmu_tx_t *tx)
3174 * Create the objects common to all ztest datasets.
3176 VERIFY(zap_create_claim(os, ZTEST_DIROBJ,
3177 DMU_OT_ZAP_OTHER, DMU_OT_NONE, 0, tx) == 0);
3180 static int
3181 ztest_dataset_create(char *dsname)
3183 uint64_t zilset = ztest_random(100);
3184 int err = dmu_objset_create(dsname, DMU_OST_OTHER, 0,
3185 ztest_objset_create_cb, NULL);
3187 if (err || zilset < 80)
3188 return (err);
3190 if (ztest_opts.zo_verbose >= 6)
3191 (void) printf("Setting dataset %s to sync always\n", dsname);
3192 return (ztest_dsl_prop_set_uint64(dsname, ZFS_PROP_SYNC,
3193 ZFS_SYNC_ALWAYS, B_FALSE));
3196 /* ARGSUSED */
3197 static int
3198 ztest_objset_destroy_cb(const char *name, void *arg)
3200 objset_t *os;
3201 dmu_object_info_t doi;
3202 int error;
3205 * Verify that the dataset contains a directory object.
3207 VERIFY0(dmu_objset_own(name, DMU_OST_OTHER, B_TRUE, FTAG, &os));
3208 error = dmu_object_info(os, ZTEST_DIROBJ, &doi);
3209 if (error != ENOENT) {
3210 /* We could have crashed in the middle of destroying it */
3211 ASSERT0(error);
3212 ASSERT3U(doi.doi_type, ==, DMU_OT_ZAP_OTHER);
3213 ASSERT3S(doi.doi_physical_blocks_512, >=, 0);
3215 dmu_objset_disown(os, FTAG);
3218 * Destroy the dataset.
3220 if (strchr(name, '@') != NULL) {
3221 VERIFY0(dsl_destroy_snapshot(name, B_TRUE));
3222 } else {
3223 error = dsl_destroy_head(name);
3224 /* There could be a hold on this dataset */
3225 if (error != EBUSY)
3226 ASSERT0(error);
3228 return (0);
3231 static boolean_t
3232 ztest_snapshot_create(char *osname, uint64_t id)
3234 char snapname[ZFS_MAX_DATASET_NAME_LEN];
3235 int error;
3237 (void) snprintf(snapname, sizeof (snapname), "%llu", (u_longlong_t)id);
3239 error = dmu_objset_snapshot_one(osname, snapname);
3240 if (error == ENOSPC) {
3241 ztest_record_enospc(FTAG);
3242 return (B_FALSE);
3244 if (error != 0 && error != EEXIST) {
3245 fatal(0, "ztest_snapshot_create(%s@%s) = %d", osname,
3246 snapname, error);
3248 return (B_TRUE);
3251 static boolean_t
3252 ztest_snapshot_destroy(char *osname, uint64_t id)
3254 char snapname[ZFS_MAX_DATASET_NAME_LEN];
3255 int error;
3257 (void) snprintf(snapname, sizeof (snapname), "%s@%llu", osname,
3258 (u_longlong_t)id);
3260 error = dsl_destroy_snapshot(snapname, B_FALSE);
3261 if (error != 0 && error != ENOENT)
3262 fatal(0, "ztest_snapshot_destroy(%s) = %d", snapname, error);
3263 return (B_TRUE);
3266 /* ARGSUSED */
3267 void
3268 ztest_dmu_objset_create_destroy(ztest_ds_t *zd, uint64_t id)
3270 ztest_ds_t zdtmp;
3271 int iters;
3272 int error;
3273 objset_t *os, *os2;
3274 char name[ZFS_MAX_DATASET_NAME_LEN];
3275 zilog_t *zilog;
3277 (void) rw_rdlock(&ztest_name_lock);
3279 (void) snprintf(name, sizeof (name), "%s/temp_%llu",
3280 ztest_opts.zo_pool, (u_longlong_t)id);
3283 * If this dataset exists from a previous run, process its replay log
3284 * half of the time. If we don't replay it, then dmu_objset_destroy()
3285 * (invoked from ztest_objset_destroy_cb()) should just throw it away.
3287 if (ztest_random(2) == 0 &&
3288 dmu_objset_own(name, DMU_OST_OTHER, B_FALSE, FTAG, &os) == 0) {
3289 ztest_zd_init(&zdtmp, NULL, os);
3290 zil_replay(os, &zdtmp, ztest_replay_vector);
3291 ztest_zd_fini(&zdtmp);
3292 dmu_objset_disown(os, FTAG);
3296 * There may be an old instance of the dataset we're about to
3297 * create lying around from a previous run. If so, destroy it
3298 * and all of its snapshots.
3300 (void) dmu_objset_find(name, ztest_objset_destroy_cb, NULL,
3301 DS_FIND_CHILDREN | DS_FIND_SNAPSHOTS);
3304 * Verify that the destroyed dataset is no longer in the namespace.
3306 VERIFY3U(ENOENT, ==, dmu_objset_own(name, DMU_OST_OTHER, B_TRUE,
3307 FTAG, &os));
3310 * Verify that we can create a new dataset.
3312 error = ztest_dataset_create(name);
3313 if (error) {
3314 if (error == ENOSPC) {
3315 ztest_record_enospc(FTAG);
3316 (void) rw_unlock(&ztest_name_lock);
3317 return;
3319 fatal(0, "dmu_objset_create(%s) = %d", name, error);
3322 VERIFY0(dmu_objset_own(name, DMU_OST_OTHER, B_FALSE, FTAG, &os));
3324 ztest_zd_init(&zdtmp, NULL, os);
3327 * Open the intent log for it.
3329 zilog = zil_open(os, ztest_get_data);
3332 * Put some objects in there, do a little I/O to them,
3333 * and randomly take a couple of snapshots along the way.
3335 iters = ztest_random(5);
3336 for (int i = 0; i < iters; i++) {
3337 ztest_dmu_object_alloc_free(&zdtmp, id);
3338 if (ztest_random(iters) == 0)
3339 (void) ztest_snapshot_create(name, i);
3343 * Verify that we cannot create an existing dataset.
3345 VERIFY3U(EEXIST, ==,
3346 dmu_objset_create(name, DMU_OST_OTHER, 0, NULL, NULL));
3349 * Verify that we can hold an objset that is also owned.
3351 VERIFY3U(0, ==, dmu_objset_hold(name, FTAG, &os2));
3352 dmu_objset_rele(os2, FTAG);
3355 * Verify that we cannot own an objset that is already owned.
3357 VERIFY3U(EBUSY, ==,
3358 dmu_objset_own(name, DMU_OST_OTHER, B_FALSE, FTAG, &os2));
3360 zil_close(zilog);
3361 dmu_objset_disown(os, FTAG);
3362 ztest_zd_fini(&zdtmp);
3364 (void) rw_unlock(&ztest_name_lock);
3368 * Verify that dmu_snapshot_{create,destroy,open,close} work as expected.
3370 void
3371 ztest_dmu_snapshot_create_destroy(ztest_ds_t *zd, uint64_t id)
3373 (void) rw_rdlock(&ztest_name_lock);
3374 (void) ztest_snapshot_destroy(zd->zd_name, id);
3375 (void) ztest_snapshot_create(zd->zd_name, id);
3376 (void) rw_unlock(&ztest_name_lock);
3380 * Cleanup non-standard snapshots and clones.
3382 void
3383 ztest_dsl_dataset_cleanup(char *osname, uint64_t id)
3385 char snap1name[ZFS_MAX_DATASET_NAME_LEN];
3386 char clone1name[ZFS_MAX_DATASET_NAME_LEN];
3387 char snap2name[ZFS_MAX_DATASET_NAME_LEN];
3388 char clone2name[ZFS_MAX_DATASET_NAME_LEN];
3389 char snap3name[ZFS_MAX_DATASET_NAME_LEN];
3390 int error;
3392 (void) snprintf(snap1name, sizeof (snap1name),
3393 "%s@s1_%llu", osname, id);
3394 (void) snprintf(clone1name, sizeof (clone1name),
3395 "%s/c1_%llu", osname, id);
3396 (void) snprintf(snap2name, sizeof (snap2name),
3397 "%s@s2_%llu", clone1name, id);
3398 (void) snprintf(clone2name, sizeof (clone2name),
3399 "%s/c2_%llu", osname, id);
3400 (void) snprintf(snap3name, sizeof (snap3name),
3401 "%s@s3_%llu", clone1name, id);
3403 error = dsl_destroy_head(clone2name);
3404 if (error && error != ENOENT)
3405 fatal(0, "dsl_destroy_head(%s) = %d", clone2name, error);
3406 error = dsl_destroy_snapshot(snap3name, B_FALSE);
3407 if (error && error != ENOENT)
3408 fatal(0, "dsl_destroy_snapshot(%s) = %d", snap3name, error);
3409 error = dsl_destroy_snapshot(snap2name, B_FALSE);
3410 if (error && error != ENOENT)
3411 fatal(0, "dsl_destroy_snapshot(%s) = %d", snap2name, error);
3412 error = dsl_destroy_head(clone1name);
3413 if (error && error != ENOENT)
3414 fatal(0, "dsl_destroy_head(%s) = %d", clone1name, error);
3415 error = dsl_destroy_snapshot(snap1name, B_FALSE);
3416 if (error && error != ENOENT)
3417 fatal(0, "dsl_destroy_snapshot(%s) = %d", snap1name, error);
3421 * Verify dsl_dataset_promote handles EBUSY
3423 void
3424 ztest_dsl_dataset_promote_busy(ztest_ds_t *zd, uint64_t id)
3426 objset_t *os;
3427 char snap1name[ZFS_MAX_DATASET_NAME_LEN];
3428 char clone1name[ZFS_MAX_DATASET_NAME_LEN];
3429 char snap2name[ZFS_MAX_DATASET_NAME_LEN];
3430 char clone2name[ZFS_MAX_DATASET_NAME_LEN];
3431 char snap3name[ZFS_MAX_DATASET_NAME_LEN];
3432 char *osname = zd->zd_name;
3433 int error;
3435 (void) rw_rdlock(&ztest_name_lock);
3437 ztest_dsl_dataset_cleanup(osname, id);
3439 (void) snprintf(snap1name, sizeof (snap1name),
3440 "%s@s1_%llu", osname, id);
3441 (void) snprintf(clone1name, sizeof (clone1name),
3442 "%s/c1_%llu", osname, id);
3443 (void) snprintf(snap2name, sizeof (snap2name),
3444 "%s@s2_%llu", clone1name, id);
3445 (void) snprintf(clone2name, sizeof (clone2name),
3446 "%s/c2_%llu", osname, id);
3447 (void) snprintf(snap3name, sizeof (snap3name),
3448 "%s@s3_%llu", clone1name, id);
3450 error = dmu_objset_snapshot_one(osname, strchr(snap1name, '@') + 1);
3451 if (error && error != EEXIST) {
3452 if (error == ENOSPC) {
3453 ztest_record_enospc(FTAG);
3454 goto out;
3456 fatal(0, "dmu_take_snapshot(%s) = %d", snap1name, error);
3459 error = dmu_objset_clone(clone1name, snap1name);
3460 if (error) {
3461 if (error == ENOSPC) {
3462 ztest_record_enospc(FTAG);
3463 goto out;
3465 fatal(0, "dmu_objset_create(%s) = %d", clone1name, error);
3468 error = dmu_objset_snapshot_one(clone1name, strchr(snap2name, '@') + 1);
3469 if (error && error != EEXIST) {
3470 if (error == ENOSPC) {
3471 ztest_record_enospc(FTAG);
3472 goto out;
3474 fatal(0, "dmu_open_snapshot(%s) = %d", snap2name, error);
3477 error = dmu_objset_snapshot_one(clone1name, strchr(snap3name, '@') + 1);
3478 if (error && error != EEXIST) {
3479 if (error == ENOSPC) {
3480 ztest_record_enospc(FTAG);
3481 goto out;
3483 fatal(0, "dmu_open_snapshot(%s) = %d", snap3name, error);
3486 error = dmu_objset_clone(clone2name, snap3name);
3487 if (error) {
3488 if (error == ENOSPC) {
3489 ztest_record_enospc(FTAG);
3490 goto out;
3492 fatal(0, "dmu_objset_create(%s) = %d", clone2name, error);
3495 error = dmu_objset_own(snap2name, DMU_OST_ANY, B_TRUE, FTAG, &os);
3496 if (error)
3497 fatal(0, "dmu_objset_own(%s) = %d", snap2name, error);
3498 error = dsl_dataset_promote(clone2name, NULL);
3499 if (error == ENOSPC) {
3500 dmu_objset_disown(os, FTAG);
3501 ztest_record_enospc(FTAG);
3502 goto out;
3504 if (error != EBUSY)
3505 fatal(0, "dsl_dataset_promote(%s), %d, not EBUSY", clone2name,
3506 error);
3507 dmu_objset_disown(os, FTAG);
3509 out:
3510 ztest_dsl_dataset_cleanup(osname, id);
3512 (void) rw_unlock(&ztest_name_lock);
3516 * Verify that dmu_object_{alloc,free} work as expected.
3518 void
3519 ztest_dmu_object_alloc_free(ztest_ds_t *zd, uint64_t id)
3521 ztest_od_t od[4];
3522 int batchsize = sizeof (od) / sizeof (od[0]);
3524 for (int b = 0; b < batchsize; b++)
3525 ztest_od_init(&od[b], id, FTAG, b, DMU_OT_UINT64_OTHER, 0, 0);
3528 * Destroy the previous batch of objects, create a new batch,
3529 * and do some I/O on the new objects.
3531 if (ztest_object_init(zd, od, sizeof (od), B_TRUE) != 0)
3532 return;
3534 while (ztest_random(4 * batchsize) != 0)
3535 ztest_io(zd, od[ztest_random(batchsize)].od_object,
3536 ztest_random(ZTEST_RANGE_LOCKS) << SPA_MAXBLOCKSHIFT);
3540 * Verify that dmu_{read,write} work as expected.
3542 void
3543 ztest_dmu_read_write(ztest_ds_t *zd, uint64_t id)
3545 objset_t *os = zd->zd_os;
3546 ztest_od_t od[2];
3547 dmu_tx_t *tx;
3548 int i, freeit, error;
3549 uint64_t n, s, txg;
3550 bufwad_t *packbuf, *bigbuf, *pack, *bigH, *bigT;
3551 uint64_t packobj, packoff, packsize, bigobj, bigoff, bigsize;
3552 uint64_t chunksize = (1000 + ztest_random(1000)) * sizeof (uint64_t);
3553 uint64_t regions = 997;
3554 uint64_t stride = 123456789ULL;
3555 uint64_t width = 40;
3556 int free_percent = 5;
3559 * This test uses two objects, packobj and bigobj, that are always
3560 * updated together (i.e. in the same tx) so that their contents are
3561 * in sync and can be compared. Their contents relate to each other
3562 * in a simple way: packobj is a dense array of 'bufwad' structures,
3563 * while bigobj is a sparse array of the same bufwads. Specifically,
3564 * for any index n, there are three bufwads that should be identical:
3566 * packobj, at offset n * sizeof (bufwad_t)
3567 * bigobj, at the head of the nth chunk
3568 * bigobj, at the tail of the nth chunk
3570 * The chunk size is arbitrary. It doesn't have to be a power of two,
3571 * and it doesn't have any relation to the object blocksize.
3572 * The only requirement is that it can hold at least two bufwads.
3574 * Normally, we write the bufwad to each of these locations.
3575 * However, free_percent of the time we instead write zeroes to
3576 * packobj and perform a dmu_free_range() on bigobj. By comparing
3577 * bigobj to packobj, we can verify that the DMU is correctly
3578 * tracking which parts of an object are allocated and free,
3579 * and that the contents of the allocated blocks are correct.
3583 * Read the directory info. If it's the first time, set things up.
3585 ztest_od_init(&od[0], id, FTAG, 0, DMU_OT_UINT64_OTHER, 0, chunksize);
3586 ztest_od_init(&od[1], id, FTAG, 1, DMU_OT_UINT64_OTHER, 0, chunksize);
3588 if (ztest_object_init(zd, od, sizeof (od), B_FALSE) != 0)
3589 return;
3591 bigobj = od[0].od_object;
3592 packobj = od[1].od_object;
3593 chunksize = od[0].od_gen;
3594 ASSERT(chunksize == od[1].od_gen);
3597 * Prefetch a random chunk of the big object.
3598 * Our aim here is to get some async reads in flight
3599 * for blocks that we may free below; the DMU should
3600 * handle this race correctly.
3602 n = ztest_random(regions) * stride + ztest_random(width);
3603 s = 1 + ztest_random(2 * width - 1);
3604 dmu_prefetch(os, bigobj, 0, n * chunksize, s * chunksize,
3605 ZIO_PRIORITY_SYNC_READ);
3608 * Pick a random index and compute the offsets into packobj and bigobj.
3610 n = ztest_random(regions) * stride + ztest_random(width);
3611 s = 1 + ztest_random(width - 1);
3613 packoff = n * sizeof (bufwad_t);
3614 packsize = s * sizeof (bufwad_t);
3616 bigoff = n * chunksize;
3617 bigsize = s * chunksize;
3619 packbuf = umem_alloc(packsize, UMEM_NOFAIL);
3620 bigbuf = umem_alloc(bigsize, UMEM_NOFAIL);
3623 * free_percent of the time, free a range of bigobj rather than
3624 * overwriting it.
3626 freeit = (ztest_random(100) < free_percent);
3629 * Read the current contents of our objects.
3631 error = dmu_read(os, packobj, packoff, packsize, packbuf,
3632 DMU_READ_PREFETCH);
3633 ASSERT0(error);
3634 error = dmu_read(os, bigobj, bigoff, bigsize, bigbuf,
3635 DMU_READ_PREFETCH);
3636 ASSERT0(error);
3639 * Get a tx for the mods to both packobj and bigobj.
3641 tx = dmu_tx_create(os);
3643 dmu_tx_hold_write(tx, packobj, packoff, packsize);
3645 if (freeit)
3646 dmu_tx_hold_free(tx, bigobj, bigoff, bigsize);
3647 else
3648 dmu_tx_hold_write(tx, bigobj, bigoff, bigsize);
3650 /* This accounts for setting the checksum/compression. */
3651 dmu_tx_hold_bonus(tx, bigobj);
3653 txg = ztest_tx_assign(tx, TXG_MIGHTWAIT, FTAG);
3654 if (txg == 0) {
3655 umem_free(packbuf, packsize);
3656 umem_free(bigbuf, bigsize);
3657 return;
3660 enum zio_checksum cksum;
3661 do {
3662 cksum = (enum zio_checksum)
3663 ztest_random_dsl_prop(ZFS_PROP_CHECKSUM);
3664 } while (cksum >= ZIO_CHECKSUM_LEGACY_FUNCTIONS);
3665 dmu_object_set_checksum(os, bigobj, cksum, tx);
3667 enum zio_compress comp;
3668 do {
3669 comp = (enum zio_compress)
3670 ztest_random_dsl_prop(ZFS_PROP_COMPRESSION);
3671 } while (comp >= ZIO_COMPRESS_LEGACY_FUNCTIONS);
3672 dmu_object_set_compress(os, bigobj, comp, tx);
3675 * For each index from n to n + s, verify that the existing bufwad
3676 * in packobj matches the bufwads at the head and tail of the
3677 * corresponding chunk in bigobj. Then update all three bufwads
3678 * with the new values we want to write out.
3680 for (i = 0; i < s; i++) {
3681 /* LINTED */
3682 pack = (bufwad_t *)((char *)packbuf + i * sizeof (bufwad_t));
3683 /* LINTED */
3684 bigH = (bufwad_t *)((char *)bigbuf + i * chunksize);
3685 /* LINTED */
3686 bigT = (bufwad_t *)((char *)bigH + chunksize) - 1;
3688 ASSERT((uintptr_t)bigH - (uintptr_t)bigbuf < bigsize);
3689 ASSERT((uintptr_t)bigT - (uintptr_t)bigbuf < bigsize);
3691 if (pack->bw_txg > txg)
3692 fatal(0, "future leak: got %llx, open txg is %llx",
3693 pack->bw_txg, txg);
3695 if (pack->bw_data != 0 && pack->bw_index != n + i)
3696 fatal(0, "wrong index: got %llx, wanted %llx+%llx",
3697 pack->bw_index, n, i);
3699 if (bcmp(pack, bigH, sizeof (bufwad_t)) != 0)
3700 fatal(0, "pack/bigH mismatch in %p/%p", pack, bigH);
3702 if (bcmp(pack, bigT, sizeof (bufwad_t)) != 0)
3703 fatal(0, "pack/bigT mismatch in %p/%p", pack, bigT);
3705 if (freeit) {
3706 bzero(pack, sizeof (bufwad_t));
3707 } else {
3708 pack->bw_index = n + i;
3709 pack->bw_txg = txg;
3710 pack->bw_data = 1 + ztest_random(-2ULL);
3712 *bigH = *pack;
3713 *bigT = *pack;
3717 * We've verified all the old bufwads, and made new ones.
3718 * Now write them out.
3720 dmu_write(os, packobj, packoff, packsize, packbuf, tx);
3722 if (freeit) {
3723 if (ztest_opts.zo_verbose >= 7) {
3724 (void) printf("freeing offset %llx size %llx"
3725 " txg %llx\n",
3726 (u_longlong_t)bigoff,
3727 (u_longlong_t)bigsize,
3728 (u_longlong_t)txg);
3730 VERIFY(0 == dmu_free_range(os, bigobj, bigoff, bigsize, tx));
3731 } else {
3732 if (ztest_opts.zo_verbose >= 7) {
3733 (void) printf("writing offset %llx size %llx"
3734 " txg %llx\n",
3735 (u_longlong_t)bigoff,
3736 (u_longlong_t)bigsize,
3737 (u_longlong_t)txg);
3739 dmu_write(os, bigobj, bigoff, bigsize, bigbuf, tx);
3742 dmu_tx_commit(tx);
3745 * Sanity check the stuff we just wrote.
3748 void *packcheck = umem_alloc(packsize, UMEM_NOFAIL);
3749 void *bigcheck = umem_alloc(bigsize, UMEM_NOFAIL);
3751 VERIFY(0 == dmu_read(os, packobj, packoff,
3752 packsize, packcheck, DMU_READ_PREFETCH));
3753 VERIFY(0 == dmu_read(os, bigobj, bigoff,
3754 bigsize, bigcheck, DMU_READ_PREFETCH));
3756 ASSERT(bcmp(packbuf, packcheck, packsize) == 0);
3757 ASSERT(bcmp(bigbuf, bigcheck, bigsize) == 0);
3759 umem_free(packcheck, packsize);
3760 umem_free(bigcheck, bigsize);
3763 umem_free(packbuf, packsize);
3764 umem_free(bigbuf, bigsize);
3767 void
3768 compare_and_update_pbbufs(uint64_t s, bufwad_t *packbuf, bufwad_t *bigbuf,
3769 uint64_t bigsize, uint64_t n, uint64_t chunksize, uint64_t txg)
3771 uint64_t i;
3772 bufwad_t *pack;
3773 bufwad_t *bigH;
3774 bufwad_t *bigT;
3777 * For each index from n to n + s, verify that the existing bufwad
3778 * in packobj matches the bufwads at the head and tail of the
3779 * corresponding chunk in bigobj. Then update all three bufwads
3780 * with the new values we want to write out.
3782 for (i = 0; i < s; i++) {
3783 /* LINTED */
3784 pack = (bufwad_t *)((char *)packbuf + i * sizeof (bufwad_t));
3785 /* LINTED */
3786 bigH = (bufwad_t *)((char *)bigbuf + i * chunksize);
3787 /* LINTED */
3788 bigT = (bufwad_t *)((char *)bigH + chunksize) - 1;
3790 ASSERT((uintptr_t)bigH - (uintptr_t)bigbuf < bigsize);
3791 ASSERT((uintptr_t)bigT - (uintptr_t)bigbuf < bigsize);
3793 if (pack->bw_txg > txg)
3794 fatal(0, "future leak: got %llx, open txg is %llx",
3795 pack->bw_txg, txg);
3797 if (pack->bw_data != 0 && pack->bw_index != n + i)
3798 fatal(0, "wrong index: got %llx, wanted %llx+%llx",
3799 pack->bw_index, n, i);
3801 if (bcmp(pack, bigH, sizeof (bufwad_t)) != 0)
3802 fatal(0, "pack/bigH mismatch in %p/%p", pack, bigH);
3804 if (bcmp(pack, bigT, sizeof (bufwad_t)) != 0)
3805 fatal(0, "pack/bigT mismatch in %p/%p", pack, bigT);
3807 pack->bw_index = n + i;
3808 pack->bw_txg = txg;
3809 pack->bw_data = 1 + ztest_random(-2ULL);
3811 *bigH = *pack;
3812 *bigT = *pack;
3816 void
3817 ztest_dmu_read_write_zcopy(ztest_ds_t *zd, uint64_t id)
3819 objset_t *os = zd->zd_os;
3820 ztest_od_t od[2];
3821 dmu_tx_t *tx;
3822 uint64_t i;
3823 int error;
3824 uint64_t n, s, txg;
3825 bufwad_t *packbuf, *bigbuf;
3826 uint64_t packobj, packoff, packsize, bigobj, bigoff, bigsize;
3827 uint64_t blocksize = ztest_random_blocksize();
3828 uint64_t chunksize = blocksize;
3829 uint64_t regions = 997;
3830 uint64_t stride = 123456789ULL;
3831 uint64_t width = 9;
3832 dmu_buf_t *bonus_db;
3833 arc_buf_t **bigbuf_arcbufs;
3834 dmu_object_info_t doi;
3837 * This test uses two objects, packobj and bigobj, that are always
3838 * updated together (i.e. in the same tx) so that their contents are
3839 * in sync and can be compared. Their contents relate to each other
3840 * in a simple way: packobj is a dense array of 'bufwad' structures,
3841 * while bigobj is a sparse array of the same bufwads. Specifically,
3842 * for any index n, there are three bufwads that should be identical:
3844 * packobj, at offset n * sizeof (bufwad_t)
3845 * bigobj, at the head of the nth chunk
3846 * bigobj, at the tail of the nth chunk
3848 * The chunk size is set equal to bigobj block size so that
3849 * dmu_assign_arcbuf() can be tested for object updates.
3853 * Read the directory info. If it's the first time, set things up.
3855 ztest_od_init(&od[0], id, FTAG, 0, DMU_OT_UINT64_OTHER, blocksize, 0);
3856 ztest_od_init(&od[1], id, FTAG, 1, DMU_OT_UINT64_OTHER, 0, chunksize);
3858 if (ztest_object_init(zd, od, sizeof (od), B_FALSE) != 0)
3859 return;
3861 bigobj = od[0].od_object;
3862 packobj = od[1].od_object;
3863 blocksize = od[0].od_blocksize;
3864 chunksize = blocksize;
3865 ASSERT(chunksize == od[1].od_gen);
3867 VERIFY(dmu_object_info(os, bigobj, &doi) == 0);
3868 VERIFY(ISP2(doi.doi_data_block_size));
3869 VERIFY(chunksize == doi.doi_data_block_size);
3870 VERIFY(chunksize >= 2 * sizeof (bufwad_t));
3873 * Pick a random index and compute the offsets into packobj and bigobj.
3875 n = ztest_random(regions) * stride + ztest_random(width);
3876 s = 1 + ztest_random(width - 1);
3878 packoff = n * sizeof (bufwad_t);
3879 packsize = s * sizeof (bufwad_t);
3881 bigoff = n * chunksize;
3882 bigsize = s * chunksize;
3884 packbuf = umem_zalloc(packsize, UMEM_NOFAIL);
3885 bigbuf = umem_zalloc(bigsize, UMEM_NOFAIL);
3887 VERIFY3U(0, ==, dmu_bonus_hold(os, bigobj, FTAG, &bonus_db));
3889 bigbuf_arcbufs = umem_zalloc(2 * s * sizeof (arc_buf_t *), UMEM_NOFAIL);
3892 * Iteration 0 test zcopy for DB_UNCACHED dbufs.
3893 * Iteration 1 test zcopy to already referenced dbufs.
3894 * Iteration 2 test zcopy to dirty dbuf in the same txg.
3895 * Iteration 3 test zcopy to dbuf dirty in previous txg.
3896 * Iteration 4 test zcopy when dbuf is no longer dirty.
3897 * Iteration 5 test zcopy when it can't be done.
3898 * Iteration 6 one more zcopy write.
3900 for (i = 0; i < 7; i++) {
3901 uint64_t j;
3902 uint64_t off;
3905 * In iteration 5 (i == 5) use arcbufs
3906 * that don't match bigobj blksz to test
3907 * dmu_assign_arcbuf() when it can't directly
3908 * assign an arcbuf to a dbuf.
3910 for (j = 0; j < s; j++) {
3911 if (i != 5 || chunksize < (SPA_MINBLOCKSIZE * 2)) {
3912 bigbuf_arcbufs[j] =
3913 dmu_request_arcbuf(bonus_db, chunksize);
3914 } else {
3915 bigbuf_arcbufs[2 * j] =
3916 dmu_request_arcbuf(bonus_db, chunksize / 2);
3917 bigbuf_arcbufs[2 * j + 1] =
3918 dmu_request_arcbuf(bonus_db, chunksize / 2);
3923 * Get a tx for the mods to both packobj and bigobj.
3925 tx = dmu_tx_create(os);
3927 dmu_tx_hold_write(tx, packobj, packoff, packsize);
3928 dmu_tx_hold_write(tx, bigobj, bigoff, bigsize);
3930 txg = ztest_tx_assign(tx, TXG_MIGHTWAIT, FTAG);
3931 if (txg == 0) {
3932 umem_free(packbuf, packsize);
3933 umem_free(bigbuf, bigsize);
3934 for (j = 0; j < s; j++) {
3935 if (i != 5 ||
3936 chunksize < (SPA_MINBLOCKSIZE * 2)) {
3937 dmu_return_arcbuf(bigbuf_arcbufs[j]);
3938 } else {
3939 dmu_return_arcbuf(
3940 bigbuf_arcbufs[2 * j]);
3941 dmu_return_arcbuf(
3942 bigbuf_arcbufs[2 * j + 1]);
3945 umem_free(bigbuf_arcbufs, 2 * s * sizeof (arc_buf_t *));
3946 dmu_buf_rele(bonus_db, FTAG);
3947 return;
3951 * 50% of the time don't read objects in the 1st iteration to
3952 * test dmu_assign_arcbuf() for the case when there're no
3953 * existing dbufs for the specified offsets.
3955 if (i != 0 || ztest_random(2) != 0) {
3956 error = dmu_read(os, packobj, packoff,
3957 packsize, packbuf, DMU_READ_PREFETCH);
3958 ASSERT0(error);
3959 error = dmu_read(os, bigobj, bigoff, bigsize,
3960 bigbuf, DMU_READ_PREFETCH);
3961 ASSERT0(error);
3963 compare_and_update_pbbufs(s, packbuf, bigbuf, bigsize,
3964 n, chunksize, txg);
3967 * We've verified all the old bufwads, and made new ones.
3968 * Now write them out.
3970 dmu_write(os, packobj, packoff, packsize, packbuf, tx);
3971 if (ztest_opts.zo_verbose >= 7) {
3972 (void) printf("writing offset %llx size %llx"
3973 " txg %llx\n",
3974 (u_longlong_t)bigoff,
3975 (u_longlong_t)bigsize,
3976 (u_longlong_t)txg);
3978 for (off = bigoff, j = 0; j < s; j++, off += chunksize) {
3979 dmu_buf_t *dbt;
3980 if (i != 5 || chunksize < (SPA_MINBLOCKSIZE * 2)) {
3981 bcopy((caddr_t)bigbuf + (off - bigoff),
3982 bigbuf_arcbufs[j]->b_data, chunksize);
3983 } else {
3984 bcopy((caddr_t)bigbuf + (off - bigoff),
3985 bigbuf_arcbufs[2 * j]->b_data,
3986 chunksize / 2);
3987 bcopy((caddr_t)bigbuf + (off - bigoff) +
3988 chunksize / 2,
3989 bigbuf_arcbufs[2 * j + 1]->b_data,
3990 chunksize / 2);
3993 if (i == 1) {
3994 VERIFY(dmu_buf_hold(os, bigobj, off,
3995 FTAG, &dbt, DMU_READ_NO_PREFETCH) == 0);
3997 if (i != 5 || chunksize < (SPA_MINBLOCKSIZE * 2)) {
3998 dmu_assign_arcbuf(bonus_db, off,
3999 bigbuf_arcbufs[j], tx);
4000 } else {
4001 dmu_assign_arcbuf(bonus_db, off,
4002 bigbuf_arcbufs[2 * j], tx);
4003 dmu_assign_arcbuf(bonus_db,
4004 off + chunksize / 2,
4005 bigbuf_arcbufs[2 * j + 1], tx);
4007 if (i == 1) {
4008 dmu_buf_rele(dbt, FTAG);
4011 dmu_tx_commit(tx);
4014 * Sanity check the stuff we just wrote.
4017 void *packcheck = umem_alloc(packsize, UMEM_NOFAIL);
4018 void *bigcheck = umem_alloc(bigsize, UMEM_NOFAIL);
4020 VERIFY(0 == dmu_read(os, packobj, packoff,
4021 packsize, packcheck, DMU_READ_PREFETCH));
4022 VERIFY(0 == dmu_read(os, bigobj, bigoff,
4023 bigsize, bigcheck, DMU_READ_PREFETCH));
4025 ASSERT(bcmp(packbuf, packcheck, packsize) == 0);
4026 ASSERT(bcmp(bigbuf, bigcheck, bigsize) == 0);
4028 umem_free(packcheck, packsize);
4029 umem_free(bigcheck, bigsize);
4031 if (i == 2) {
4032 txg_wait_open(dmu_objset_pool(os), 0);
4033 } else if (i == 3) {
4034 txg_wait_synced(dmu_objset_pool(os), 0);
4038 dmu_buf_rele(bonus_db, FTAG);
4039 umem_free(packbuf, packsize);
4040 umem_free(bigbuf, bigsize);
4041 umem_free(bigbuf_arcbufs, 2 * s * sizeof (arc_buf_t *));
4044 /* ARGSUSED */
4045 void
4046 ztest_dmu_write_parallel(ztest_ds_t *zd, uint64_t id)
4048 ztest_od_t od[1];
4049 uint64_t offset = (1ULL << (ztest_random(20) + 43)) +
4050 (ztest_random(ZTEST_RANGE_LOCKS) << SPA_MAXBLOCKSHIFT);
4053 * Have multiple threads write to large offsets in an object
4054 * to verify that parallel writes to an object -- even to the
4055 * same blocks within the object -- doesn't cause any trouble.
4057 ztest_od_init(&od[0], ID_PARALLEL, FTAG, 0, DMU_OT_UINT64_OTHER, 0, 0);
4059 if (ztest_object_init(zd, od, sizeof (od), B_FALSE) != 0)
4060 return;
4062 while (ztest_random(10) != 0)
4063 ztest_io(zd, od[0].od_object, offset);
4066 void
4067 ztest_dmu_prealloc(ztest_ds_t *zd, uint64_t id)
4069 ztest_od_t od[1];
4070 uint64_t offset = (1ULL << (ztest_random(4) + SPA_MAXBLOCKSHIFT)) +
4071 (ztest_random(ZTEST_RANGE_LOCKS) << SPA_MAXBLOCKSHIFT);
4072 uint64_t count = ztest_random(20) + 1;
4073 uint64_t blocksize = ztest_random_blocksize();
4074 void *data;
4076 ztest_od_init(&od[0], id, FTAG, 0, DMU_OT_UINT64_OTHER, blocksize, 0);
4078 if (ztest_object_init(zd, od, sizeof (od), !ztest_random(2)) != 0)
4079 return;
4081 if (ztest_truncate(zd, od[0].od_object, offset, count * blocksize) != 0)
4082 return;
4084 ztest_prealloc(zd, od[0].od_object, offset, count * blocksize);
4086 data = umem_zalloc(blocksize, UMEM_NOFAIL);
4088 while (ztest_random(count) != 0) {
4089 uint64_t randoff = offset + (ztest_random(count) * blocksize);
4090 if (ztest_write(zd, od[0].od_object, randoff, blocksize,
4091 data) != 0)
4092 break;
4093 while (ztest_random(4) != 0)
4094 ztest_io(zd, od[0].od_object, randoff);
4097 umem_free(data, blocksize);
4101 * Verify that zap_{create,destroy,add,remove,update} work as expected.
4103 #define ZTEST_ZAP_MIN_INTS 1
4104 #define ZTEST_ZAP_MAX_INTS 4
4105 #define ZTEST_ZAP_MAX_PROPS 1000
4107 void
4108 ztest_zap(ztest_ds_t *zd, uint64_t id)
4110 objset_t *os = zd->zd_os;
4111 ztest_od_t od[1];
4112 uint64_t object;
4113 uint64_t txg, last_txg;
4114 uint64_t value[ZTEST_ZAP_MAX_INTS];
4115 uint64_t zl_ints, zl_intsize, prop;
4116 int i, ints;
4117 dmu_tx_t *tx;
4118 char propname[100], txgname[100];
4119 int error;
4120 char *hc[2] = { "s.acl.h", ".s.open.h.hyLZlg" };
4122 ztest_od_init(&od[0], id, FTAG, 0, DMU_OT_ZAP_OTHER, 0, 0);
4124 if (ztest_object_init(zd, od, sizeof (od), !ztest_random(2)) != 0)
4125 return;
4127 object = od[0].od_object;
4130 * Generate a known hash collision, and verify that
4131 * we can lookup and remove both entries.
4133 tx = dmu_tx_create(os);
4134 dmu_tx_hold_zap(tx, object, B_TRUE, NULL);
4135 txg = ztest_tx_assign(tx, TXG_MIGHTWAIT, FTAG);
4136 if (txg == 0)
4137 return;
4138 for (i = 0; i < 2; i++) {
4139 value[i] = i;
4140 VERIFY3U(0, ==, zap_add(os, object, hc[i], sizeof (uint64_t),
4141 1, &value[i], tx));
4143 for (i = 0; i < 2; i++) {
4144 VERIFY3U(EEXIST, ==, zap_add(os, object, hc[i],
4145 sizeof (uint64_t), 1, &value[i], tx));
4146 VERIFY3U(0, ==,
4147 zap_length(os, object, hc[i], &zl_intsize, &zl_ints));
4148 ASSERT3U(zl_intsize, ==, sizeof (uint64_t));
4149 ASSERT3U(zl_ints, ==, 1);
4151 for (i = 0; i < 2; i++) {
4152 VERIFY3U(0, ==, zap_remove(os, object, hc[i], tx));
4154 dmu_tx_commit(tx);
4157 * Generate a buch of random entries.
4159 ints = MAX(ZTEST_ZAP_MIN_INTS, object % ZTEST_ZAP_MAX_INTS);
4161 prop = ztest_random(ZTEST_ZAP_MAX_PROPS);
4162 (void) sprintf(propname, "prop_%llu", (u_longlong_t)prop);
4163 (void) sprintf(txgname, "txg_%llu", (u_longlong_t)prop);
4164 bzero(value, sizeof (value));
4165 last_txg = 0;
4168 * If these zap entries already exist, validate their contents.
4170 error = zap_length(os, object, txgname, &zl_intsize, &zl_ints);
4171 if (error == 0) {
4172 ASSERT3U(zl_intsize, ==, sizeof (uint64_t));
4173 ASSERT3U(zl_ints, ==, 1);
4175 VERIFY(zap_lookup(os, object, txgname, zl_intsize,
4176 zl_ints, &last_txg) == 0);
4178 VERIFY(zap_length(os, object, propname, &zl_intsize,
4179 &zl_ints) == 0);
4181 ASSERT3U(zl_intsize, ==, sizeof (uint64_t));
4182 ASSERT3U(zl_ints, ==, ints);
4184 VERIFY(zap_lookup(os, object, propname, zl_intsize,
4185 zl_ints, value) == 0);
4187 for (i = 0; i < ints; i++) {
4188 ASSERT3U(value[i], ==, last_txg + object + i);
4190 } else {
4191 ASSERT3U(error, ==, ENOENT);
4195 * Atomically update two entries in our zap object.
4196 * The first is named txg_%llu, and contains the txg
4197 * in which the property was last updated. The second
4198 * is named prop_%llu, and the nth element of its value
4199 * should be txg + object + n.
4201 tx = dmu_tx_create(os);
4202 dmu_tx_hold_zap(tx, object, B_TRUE, NULL);
4203 txg = ztest_tx_assign(tx, TXG_MIGHTWAIT, FTAG);
4204 if (txg == 0)
4205 return;
4207 if (last_txg > txg)
4208 fatal(0, "zap future leak: old %llu new %llu", last_txg, txg);
4210 for (i = 0; i < ints; i++)
4211 value[i] = txg + object + i;
4213 VERIFY3U(0, ==, zap_update(os, object, txgname, sizeof (uint64_t),
4214 1, &txg, tx));
4215 VERIFY3U(0, ==, zap_update(os, object, propname, sizeof (uint64_t),
4216 ints, value, tx));
4218 dmu_tx_commit(tx);
4221 * Remove a random pair of entries.
4223 prop = ztest_random(ZTEST_ZAP_MAX_PROPS);
4224 (void) sprintf(propname, "prop_%llu", (u_longlong_t)prop);
4225 (void) sprintf(txgname, "txg_%llu", (u_longlong_t)prop);
4227 error = zap_length(os, object, txgname, &zl_intsize, &zl_ints);
4229 if (error == ENOENT)
4230 return;
4232 ASSERT0(error);
4234 tx = dmu_tx_create(os);
4235 dmu_tx_hold_zap(tx, object, B_TRUE, NULL);
4236 txg = ztest_tx_assign(tx, TXG_MIGHTWAIT, FTAG);
4237 if (txg == 0)
4238 return;
4239 VERIFY3U(0, ==, zap_remove(os, object, txgname, tx));
4240 VERIFY3U(0, ==, zap_remove(os, object, propname, tx));
4241 dmu_tx_commit(tx);
4245 * Testcase to test the upgrading of a microzap to fatzap.
4247 void
4248 ztest_fzap(ztest_ds_t *zd, uint64_t id)
4250 objset_t *os = zd->zd_os;
4251 ztest_od_t od[1];
4252 uint64_t object, txg;
4254 ztest_od_init(&od[0], id, FTAG, 0, DMU_OT_ZAP_OTHER, 0, 0);
4256 if (ztest_object_init(zd, od, sizeof (od), !ztest_random(2)) != 0)
4257 return;
4259 object = od[0].od_object;
4262 * Add entries to this ZAP and make sure it spills over
4263 * and gets upgraded to a fatzap. Also, since we are adding
4264 * 2050 entries we should see ptrtbl growth and leaf-block split.
4266 for (int i = 0; i < 2050; i++) {
4267 char name[ZFS_MAX_DATASET_NAME_LEN];
4268 uint64_t value = i;
4269 dmu_tx_t *tx;
4270 int error;
4272 (void) snprintf(name, sizeof (name), "fzap-%llu-%llu",
4273 id, value);
4275 tx = dmu_tx_create(os);
4276 dmu_tx_hold_zap(tx, object, B_TRUE, name);
4277 txg = ztest_tx_assign(tx, TXG_MIGHTWAIT, FTAG);
4278 if (txg == 0)
4279 return;
4280 error = zap_add(os, object, name, sizeof (uint64_t), 1,
4281 &value, tx);
4282 ASSERT(error == 0 || error == EEXIST);
4283 dmu_tx_commit(tx);
4287 /* ARGSUSED */
4288 void
4289 ztest_zap_parallel(ztest_ds_t *zd, uint64_t id)
4291 objset_t *os = zd->zd_os;
4292 ztest_od_t od[1];
4293 uint64_t txg, object, count, wsize, wc, zl_wsize, zl_wc;
4294 dmu_tx_t *tx;
4295 int i, namelen, error;
4296 int micro = ztest_random(2);
4297 char name[20], string_value[20];
4298 void *data;
4300 ztest_od_init(&od[0], ID_PARALLEL, FTAG, micro, DMU_OT_ZAP_OTHER, 0, 0);
4302 if (ztest_object_init(zd, od, sizeof (od), B_FALSE) != 0)
4303 return;
4305 object = od[0].od_object;
4308 * Generate a random name of the form 'xxx.....' where each
4309 * x is a random printable character and the dots are dots.
4310 * There are 94 such characters, and the name length goes from
4311 * 6 to 20, so there are 94^3 * 15 = 12,458,760 possible names.
4313 namelen = ztest_random(sizeof (name) - 5) + 5 + 1;
4315 for (i = 0; i < 3; i++)
4316 name[i] = '!' + ztest_random('~' - '!' + 1);
4317 for (; i < namelen - 1; i++)
4318 name[i] = '.';
4319 name[i] = '\0';
4321 if ((namelen & 1) || micro) {
4322 wsize = sizeof (txg);
4323 wc = 1;
4324 data = &txg;
4325 } else {
4326 wsize = 1;
4327 wc = namelen;
4328 data = string_value;
4331 count = -1ULL;
4332 VERIFY0(zap_count(os, object, &count));
4333 ASSERT(count != -1ULL);
4336 * Select an operation: length, lookup, add, update, remove.
4338 i = ztest_random(5);
4340 if (i >= 2) {
4341 tx = dmu_tx_create(os);
4342 dmu_tx_hold_zap(tx, object, B_TRUE, NULL);
4343 txg = ztest_tx_assign(tx, TXG_MIGHTWAIT, FTAG);
4344 if (txg == 0)
4345 return;
4346 bcopy(name, string_value, namelen);
4347 } else {
4348 tx = NULL;
4349 txg = 0;
4350 bzero(string_value, namelen);
4353 switch (i) {
4355 case 0:
4356 error = zap_length(os, object, name, &zl_wsize, &zl_wc);
4357 if (error == 0) {
4358 ASSERT3U(wsize, ==, zl_wsize);
4359 ASSERT3U(wc, ==, zl_wc);
4360 } else {
4361 ASSERT3U(error, ==, ENOENT);
4363 break;
4365 case 1:
4366 error = zap_lookup(os, object, name, wsize, wc, data);
4367 if (error == 0) {
4368 if (data == string_value &&
4369 bcmp(name, data, namelen) != 0)
4370 fatal(0, "name '%s' != val '%s' len %d",
4371 name, data, namelen);
4372 } else {
4373 ASSERT3U(error, ==, ENOENT);
4375 break;
4377 case 2:
4378 error = zap_add(os, object, name, wsize, wc, data, tx);
4379 ASSERT(error == 0 || error == EEXIST);
4380 break;
4382 case 3:
4383 VERIFY(zap_update(os, object, name, wsize, wc, data, tx) == 0);
4384 break;
4386 case 4:
4387 error = zap_remove(os, object, name, tx);
4388 ASSERT(error == 0 || error == ENOENT);
4389 break;
4392 if (tx != NULL)
4393 dmu_tx_commit(tx);
4397 * Commit callback data.
4399 typedef struct ztest_cb_data {
4400 list_node_t zcd_node;
4401 uint64_t zcd_txg;
4402 int zcd_expected_err;
4403 boolean_t zcd_added;
4404 boolean_t zcd_called;
4405 spa_t *zcd_spa;
4406 } ztest_cb_data_t;
4408 /* This is the actual commit callback function */
4409 static void
4410 ztest_commit_callback(void *arg, int error)
4412 ztest_cb_data_t *data = arg;
4413 uint64_t synced_txg;
4415 VERIFY(data != NULL);
4416 VERIFY3S(data->zcd_expected_err, ==, error);
4417 VERIFY(!data->zcd_called);
4419 synced_txg = spa_last_synced_txg(data->zcd_spa);
4420 if (data->zcd_txg > synced_txg)
4421 fatal(0, "commit callback of txg %" PRIu64 " called prematurely"
4422 ", last synced txg = %" PRIu64 "\n", data->zcd_txg,
4423 synced_txg);
4425 data->zcd_called = B_TRUE;
4427 if (error == ECANCELED) {
4428 ASSERT0(data->zcd_txg);
4429 ASSERT(!data->zcd_added);
4432 * The private callback data should be destroyed here, but
4433 * since we are going to check the zcd_called field after
4434 * dmu_tx_abort(), we will destroy it there.
4436 return;
4439 /* Was this callback added to the global callback list? */
4440 if (!data->zcd_added)
4441 goto out;
4443 ASSERT3U(data->zcd_txg, !=, 0);
4445 /* Remove our callback from the list */
4446 (void) mutex_lock(&zcl.zcl_callbacks_lock);
4447 list_remove(&zcl.zcl_callbacks, data);
4448 (void) mutex_unlock(&zcl.zcl_callbacks_lock);
4450 out:
4451 umem_free(data, sizeof (ztest_cb_data_t));
4454 /* Allocate and initialize callback data structure */
4455 static ztest_cb_data_t *
4456 ztest_create_cb_data(objset_t *os, uint64_t txg)
4458 ztest_cb_data_t *cb_data;
4460 cb_data = umem_zalloc(sizeof (ztest_cb_data_t), UMEM_NOFAIL);
4462 cb_data->zcd_txg = txg;
4463 cb_data->zcd_spa = dmu_objset_spa(os);
4465 return (cb_data);
4469 * If a number of txgs equal to this threshold have been created after a commit
4470 * callback has been registered but not called, then we assume there is an
4471 * implementation bug.
4473 #define ZTEST_COMMIT_CALLBACK_THRESH (TXG_CONCURRENT_STATES + 2)
4476 * Commit callback test.
4478 void
4479 ztest_dmu_commit_callbacks(ztest_ds_t *zd, uint64_t id)
4481 objset_t *os = zd->zd_os;
4482 ztest_od_t od[1];
4483 dmu_tx_t *tx;
4484 ztest_cb_data_t *cb_data[3], *tmp_cb;
4485 uint64_t old_txg, txg;
4486 int i, error;
4488 ztest_od_init(&od[0], id, FTAG, 0, DMU_OT_UINT64_OTHER, 0, 0);
4490 if (ztest_object_init(zd, od, sizeof (od), B_FALSE) != 0)
4491 return;
4493 tx = dmu_tx_create(os);
4495 cb_data[0] = ztest_create_cb_data(os, 0);
4496 dmu_tx_callback_register(tx, ztest_commit_callback, cb_data[0]);
4498 dmu_tx_hold_write(tx, od[0].od_object, 0, sizeof (uint64_t));
4500 /* Every once in a while, abort the transaction on purpose */
4501 if (ztest_random(100) == 0)
4502 error = -1;
4504 if (!error)
4505 error = dmu_tx_assign(tx, TXG_NOWAIT);
4507 txg = error ? 0 : dmu_tx_get_txg(tx);
4509 cb_data[0]->zcd_txg = txg;
4510 cb_data[1] = ztest_create_cb_data(os, txg);
4511 dmu_tx_callback_register(tx, ztest_commit_callback, cb_data[1]);
4513 if (error) {
4515 * It's not a strict requirement to call the registered
4516 * callbacks from inside dmu_tx_abort(), but that's what
4517 * it's supposed to happen in the current implementation
4518 * so we will check for that.
4520 for (i = 0; i < 2; i++) {
4521 cb_data[i]->zcd_expected_err = ECANCELED;
4522 VERIFY(!cb_data[i]->zcd_called);
4525 dmu_tx_abort(tx);
4527 for (i = 0; i < 2; i++) {
4528 VERIFY(cb_data[i]->zcd_called);
4529 umem_free(cb_data[i], sizeof (ztest_cb_data_t));
4532 return;
4535 cb_data[2] = ztest_create_cb_data(os, txg);
4536 dmu_tx_callback_register(tx, ztest_commit_callback, cb_data[2]);
4539 * Read existing data to make sure there isn't a future leak.
4541 VERIFY(0 == dmu_read(os, od[0].od_object, 0, sizeof (uint64_t),
4542 &old_txg, DMU_READ_PREFETCH));
4544 if (old_txg > txg)
4545 fatal(0, "future leak: got %" PRIu64 ", open txg is %" PRIu64,
4546 old_txg, txg);
4548 dmu_write(os, od[0].od_object, 0, sizeof (uint64_t), &txg, tx);
4550 (void) mutex_lock(&zcl.zcl_callbacks_lock);
4553 * Since commit callbacks don't have any ordering requirement and since
4554 * it is theoretically possible for a commit callback to be called
4555 * after an arbitrary amount of time has elapsed since its txg has been
4556 * synced, it is difficult to reliably determine whether a commit
4557 * callback hasn't been called due to high load or due to a flawed
4558 * implementation.
4560 * In practice, we will assume that if after a certain number of txgs a
4561 * commit callback hasn't been called, then most likely there's an
4562 * implementation bug..
4564 tmp_cb = list_head(&zcl.zcl_callbacks);
4565 if (tmp_cb != NULL &&
4566 (txg - ZTEST_COMMIT_CALLBACK_THRESH) > tmp_cb->zcd_txg) {
4567 fatal(0, "Commit callback threshold exceeded, oldest txg: %"
4568 PRIu64 ", open txg: %" PRIu64 "\n", tmp_cb->zcd_txg, txg);
4572 * Let's find the place to insert our callbacks.
4574 * Even though the list is ordered by txg, it is possible for the
4575 * insertion point to not be the end because our txg may already be
4576 * quiescing at this point and other callbacks in the open txg
4577 * (from other objsets) may have sneaked in.
4579 tmp_cb = list_tail(&zcl.zcl_callbacks);
4580 while (tmp_cb != NULL && tmp_cb->zcd_txg > txg)
4581 tmp_cb = list_prev(&zcl.zcl_callbacks, tmp_cb);
4583 /* Add the 3 callbacks to the list */
4584 for (i = 0; i < 3; i++) {
4585 if (tmp_cb == NULL)
4586 list_insert_head(&zcl.zcl_callbacks, cb_data[i]);
4587 else
4588 list_insert_after(&zcl.zcl_callbacks, tmp_cb,
4589 cb_data[i]);
4591 cb_data[i]->zcd_added = B_TRUE;
4592 VERIFY(!cb_data[i]->zcd_called);
4594 tmp_cb = cb_data[i];
4597 (void) mutex_unlock(&zcl.zcl_callbacks_lock);
4599 dmu_tx_commit(tx);
4602 /* ARGSUSED */
4603 void
4604 ztest_dsl_prop_get_set(ztest_ds_t *zd, uint64_t id)
4606 zfs_prop_t proplist[] = {
4607 ZFS_PROP_CHECKSUM,
4608 ZFS_PROP_COMPRESSION,
4609 ZFS_PROP_COPIES,
4610 ZFS_PROP_DEDUP
4613 (void) rw_rdlock(&ztest_name_lock);
4615 for (int p = 0; p < sizeof (proplist) / sizeof (proplist[0]); p++)
4616 (void) ztest_dsl_prop_set_uint64(zd->zd_name, proplist[p],
4617 ztest_random_dsl_prop(proplist[p]), (int)ztest_random(2));
4619 (void) rw_unlock(&ztest_name_lock);
4622 /* ARGSUSED */
4623 void
4624 ztest_spa_prop_get_set(ztest_ds_t *zd, uint64_t id)
4626 nvlist_t *props = NULL;
4628 (void) rw_rdlock(&ztest_name_lock);
4630 (void) ztest_spa_prop_set_uint64(ZPOOL_PROP_DEDUPDITTO,
4631 ZIO_DEDUPDITTO_MIN + ztest_random(ZIO_DEDUPDITTO_MIN));
4633 VERIFY0(spa_prop_get(ztest_spa, &props));
4635 if (ztest_opts.zo_verbose >= 6)
4636 dump_nvlist(props, 4);
4638 nvlist_free(props);
4640 (void) rw_unlock(&ztest_name_lock);
4643 static int
4644 user_release_one(const char *snapname, const char *holdname)
4646 nvlist_t *snaps, *holds;
4647 int error;
4649 snaps = fnvlist_alloc();
4650 holds = fnvlist_alloc();
4651 fnvlist_add_boolean(holds, holdname);
4652 fnvlist_add_nvlist(snaps, snapname, holds);
4653 fnvlist_free(holds);
4654 error = dsl_dataset_user_release(snaps, NULL);
4655 fnvlist_free(snaps);
4656 return (error);
4660 * Test snapshot hold/release and deferred destroy.
4662 void
4663 ztest_dmu_snapshot_hold(ztest_ds_t *zd, uint64_t id)
4665 int error;
4666 objset_t *os = zd->zd_os;
4667 objset_t *origin;
4668 char snapname[100];
4669 char fullname[100];
4670 char clonename[100];
4671 char tag[100];
4672 char osname[ZFS_MAX_DATASET_NAME_LEN];
4673 nvlist_t *holds;
4675 (void) rw_rdlock(&ztest_name_lock);
4677 dmu_objset_name(os, osname);
4679 (void) snprintf(snapname, sizeof (snapname), "sh1_%llu", id);
4680 (void) snprintf(fullname, sizeof (fullname), "%s@%s", osname, snapname);
4681 (void) snprintf(clonename, sizeof (clonename),
4682 "%s/ch1_%llu", osname, id);
4683 (void) snprintf(tag, sizeof (tag), "tag_%llu", id);
4686 * Clean up from any previous run.
4688 error = dsl_destroy_head(clonename);
4689 if (error != ENOENT)
4690 ASSERT0(error);
4691 error = user_release_one(fullname, tag);
4692 if (error != ESRCH && error != ENOENT)
4693 ASSERT0(error);
4694 error = dsl_destroy_snapshot(fullname, B_FALSE);
4695 if (error != ENOENT)
4696 ASSERT0(error);
4699 * Create snapshot, clone it, mark snap for deferred destroy,
4700 * destroy clone, verify snap was also destroyed.
4702 error = dmu_objset_snapshot_one(osname, snapname);
4703 if (error) {
4704 if (error == ENOSPC) {
4705 ztest_record_enospc("dmu_objset_snapshot");
4706 goto out;
4708 fatal(0, "dmu_objset_snapshot(%s) = %d", fullname, error);
4711 error = dmu_objset_clone(clonename, fullname);
4712 if (error) {
4713 if (error == ENOSPC) {
4714 ztest_record_enospc("dmu_objset_clone");
4715 goto out;
4717 fatal(0, "dmu_objset_clone(%s) = %d", clonename, error);
4720 error = dsl_destroy_snapshot(fullname, B_TRUE);
4721 if (error) {
4722 fatal(0, "dsl_destroy_snapshot(%s, B_TRUE) = %d",
4723 fullname, error);
4726 error = dsl_destroy_head(clonename);
4727 if (error)
4728 fatal(0, "dsl_destroy_head(%s) = %d", clonename, error);
4730 error = dmu_objset_hold(fullname, FTAG, &origin);
4731 if (error != ENOENT)
4732 fatal(0, "dmu_objset_hold(%s) = %d", fullname, error);
4735 * Create snapshot, add temporary hold, verify that we can't
4736 * destroy a held snapshot, mark for deferred destroy,
4737 * release hold, verify snapshot was destroyed.
4739 error = dmu_objset_snapshot_one(osname, snapname);
4740 if (error) {
4741 if (error == ENOSPC) {
4742 ztest_record_enospc("dmu_objset_snapshot");
4743 goto out;
4745 fatal(0, "dmu_objset_snapshot(%s) = %d", fullname, error);
4748 holds = fnvlist_alloc();
4749 fnvlist_add_string(holds, fullname, tag);
4750 error = dsl_dataset_user_hold(holds, 0, NULL);
4751 fnvlist_free(holds);
4753 if (error == ENOSPC) {
4754 ztest_record_enospc("dsl_dataset_user_hold");
4755 goto out;
4756 } else if (error) {
4757 fatal(0, "dsl_dataset_user_hold(%s, %s) = %u",
4758 fullname, tag, error);
4761 error = dsl_destroy_snapshot(fullname, B_FALSE);
4762 if (error != EBUSY) {
4763 fatal(0, "dsl_destroy_snapshot(%s, B_FALSE) = %d",
4764 fullname, error);
4767 error = dsl_destroy_snapshot(fullname, B_TRUE);
4768 if (error) {
4769 fatal(0, "dsl_destroy_snapshot(%s, B_TRUE) = %d",
4770 fullname, error);
4773 error = user_release_one(fullname, tag);
4774 if (error)
4775 fatal(0, "user_release_one(%s, %s) = %d", fullname, tag, error);
4777 VERIFY3U(dmu_objset_hold(fullname, FTAG, &origin), ==, ENOENT);
4779 out:
4780 (void) rw_unlock(&ztest_name_lock);
4784 * Inject random faults into the on-disk data.
4786 /* ARGSUSED */
4787 void
4788 ztest_fault_inject(ztest_ds_t *zd, uint64_t id)
4790 ztest_shared_t *zs = ztest_shared;
4791 spa_t *spa = ztest_spa;
4792 int fd;
4793 uint64_t offset;
4794 uint64_t leaves;
4795 uint64_t bad = 0x1990c0ffeedecade;
4796 uint64_t top, leaf;
4797 char path0[MAXPATHLEN];
4798 char pathrand[MAXPATHLEN];
4799 size_t fsize;
4800 int bshift = SPA_MAXBLOCKSHIFT + 2;
4801 int iters = 1000;
4802 int maxfaults;
4803 int mirror_save;
4804 vdev_t *vd0 = NULL;
4805 uint64_t guid0 = 0;
4806 boolean_t islog = B_FALSE;
4808 VERIFY(mutex_lock(&ztest_vdev_lock) == 0);
4809 maxfaults = MAXFAULTS();
4810 leaves = MAX(zs->zs_mirrors, 1) * ztest_opts.zo_raidz;
4811 mirror_save = zs->zs_mirrors;
4812 VERIFY(mutex_unlock(&ztest_vdev_lock) == 0);
4814 ASSERT(leaves >= 1);
4817 * Grab the name lock as reader. There are some operations
4818 * which don't like to have their vdevs changed while
4819 * they are in progress (i.e. spa_change_guid). Those
4820 * operations will have grabbed the name lock as writer.
4822 (void) rw_rdlock(&ztest_name_lock);
4825 * We need SCL_STATE here because we're going to look at vd0->vdev_tsd.
4827 spa_config_enter(spa, SCL_STATE, FTAG, RW_READER);
4829 if (ztest_random(2) == 0) {
4831 * Inject errors on a normal data device or slog device.
4833 top = ztest_random_vdev_top(spa, B_TRUE);
4834 leaf = ztest_random(leaves) + zs->zs_splits;
4837 * Generate paths to the first leaf in this top-level vdev,
4838 * and to the random leaf we selected. We'll induce transient
4839 * write failures and random online/offline activity on leaf 0,
4840 * and we'll write random garbage to the randomly chosen leaf.
4842 (void) snprintf(path0, sizeof (path0), ztest_dev_template,
4843 ztest_opts.zo_dir, ztest_opts.zo_pool,
4844 top * leaves + zs->zs_splits);
4845 (void) snprintf(pathrand, sizeof (pathrand), ztest_dev_template,
4846 ztest_opts.zo_dir, ztest_opts.zo_pool,
4847 top * leaves + leaf);
4849 vd0 = vdev_lookup_by_path(spa->spa_root_vdev, path0);
4850 if (vd0 != NULL && vd0->vdev_top->vdev_islog)
4851 islog = B_TRUE;
4854 * If the top-level vdev needs to be resilvered
4855 * then we only allow faults on the device that is
4856 * resilvering.
4858 if (vd0 != NULL && maxfaults != 1 &&
4859 (!vdev_resilver_needed(vd0->vdev_top, NULL, NULL) ||
4860 vd0->vdev_resilver_txg != 0)) {
4862 * Make vd0 explicitly claim to be unreadable,
4863 * or unwriteable, or reach behind its back
4864 * and close the underlying fd. We can do this if
4865 * maxfaults == 0 because we'll fail and reexecute,
4866 * and we can do it if maxfaults >= 2 because we'll
4867 * have enough redundancy. If maxfaults == 1, the
4868 * combination of this with injection of random data
4869 * corruption below exceeds the pool's fault tolerance.
4871 vdev_file_t *vf = vd0->vdev_tsd;
4873 if (vf != NULL && ztest_random(3) == 0) {
4874 (void) close(vf->vf_vnode->v_fd);
4875 vf->vf_vnode->v_fd = -1;
4876 } else if (ztest_random(2) == 0) {
4877 vd0->vdev_cant_read = B_TRUE;
4878 } else {
4879 vd0->vdev_cant_write = B_TRUE;
4881 guid0 = vd0->vdev_guid;
4883 } else {
4885 * Inject errors on an l2cache device.
4887 spa_aux_vdev_t *sav = &spa->spa_l2cache;
4889 if (sav->sav_count == 0) {
4890 spa_config_exit(spa, SCL_STATE, FTAG);
4891 (void) rw_unlock(&ztest_name_lock);
4892 return;
4894 vd0 = sav->sav_vdevs[ztest_random(sav->sav_count)];
4895 guid0 = vd0->vdev_guid;
4896 (void) strcpy(path0, vd0->vdev_path);
4897 (void) strcpy(pathrand, vd0->vdev_path);
4899 leaf = 0;
4900 leaves = 1;
4901 maxfaults = INT_MAX; /* no limit on cache devices */
4904 spa_config_exit(spa, SCL_STATE, FTAG);
4905 (void) rw_unlock(&ztest_name_lock);
4908 * If we can tolerate two or more faults, or we're dealing
4909 * with a slog, randomly online/offline vd0.
4911 if ((maxfaults >= 2 || islog) && guid0 != 0) {
4912 if (ztest_random(10) < 6) {
4913 int flags = (ztest_random(2) == 0 ?
4914 ZFS_OFFLINE_TEMPORARY : 0);
4917 * We have to grab the zs_name_lock as writer to
4918 * prevent a race between offlining a slog and
4919 * destroying a dataset. Offlining the slog will
4920 * grab a reference on the dataset which may cause
4921 * dmu_objset_destroy() to fail with EBUSY thus
4922 * leaving the dataset in an inconsistent state.
4924 if (islog)
4925 (void) rw_wrlock(&ztest_name_lock);
4927 VERIFY(vdev_offline(spa, guid0, flags) != EBUSY);
4929 if (islog)
4930 (void) rw_unlock(&ztest_name_lock);
4931 } else {
4933 * Ideally we would like to be able to randomly
4934 * call vdev_[on|off]line without holding locks
4935 * to force unpredictable failures but the side
4936 * effects of vdev_[on|off]line prevent us from
4937 * doing so. We grab the ztest_vdev_lock here to
4938 * prevent a race between injection testing and
4939 * aux_vdev removal.
4941 VERIFY(mutex_lock(&ztest_vdev_lock) == 0);
4942 (void) vdev_online(spa, guid0, 0, NULL);
4943 VERIFY(mutex_unlock(&ztest_vdev_lock) == 0);
4947 if (maxfaults == 0)
4948 return;
4951 * We have at least single-fault tolerance, so inject data corruption.
4953 fd = open(pathrand, O_RDWR);
4955 if (fd == -1) /* we hit a gap in the device namespace */
4956 return;
4958 fsize = lseek(fd, 0, SEEK_END);
4960 while (--iters != 0) {
4962 * The offset must be chosen carefully to ensure that
4963 * we do not inject a given logical block with errors
4964 * on two different leaf devices, because ZFS can not
4965 * tolerate that (if maxfaults==1).
4967 * We divide each leaf into chunks of size
4968 * (# leaves * SPA_MAXBLOCKSIZE * 4). Within each chunk
4969 * there is a series of ranges to which we can inject errors.
4970 * Each range can accept errors on only a single leaf vdev.
4971 * The error injection ranges are separated by ranges
4972 * which we will not inject errors on any device (DMZs).
4973 * Each DMZ must be large enough such that a single block
4974 * can not straddle it, so that a single block can not be
4975 * a target in two different injection ranges (on different
4976 * leaf vdevs).
4978 * For example, with 3 leaves, each chunk looks like:
4979 * 0 to 32M: injection range for leaf 0
4980 * 32M to 64M: DMZ - no injection allowed
4981 * 64M to 96M: injection range for leaf 1
4982 * 96M to 128M: DMZ - no injection allowed
4983 * 128M to 160M: injection range for leaf 2
4984 * 160M to 192M: DMZ - no injection allowed
4986 offset = ztest_random(fsize / (leaves << bshift)) *
4987 (leaves << bshift) + (leaf << bshift) +
4988 (ztest_random(1ULL << (bshift - 1)) & -8ULL);
4991 * Only allow damage to the labels at one end of the vdev.
4993 * If all labels are damaged, the device will be totally
4994 * inaccessible, which will result in loss of data,
4995 * because we also damage (parts of) the other side of
4996 * the mirror/raidz.
4998 * Additionally, we will always have both an even and an
4999 * odd label, so that we can handle crashes in the
5000 * middle of vdev_config_sync().
5002 if ((leaf & 1) == 0 && offset < VDEV_LABEL_START_SIZE)
5003 continue;
5006 * The two end labels are stored at the "end" of the disk, but
5007 * the end of the disk (vdev_psize) is aligned to
5008 * sizeof (vdev_label_t).
5010 uint64_t psize = P2ALIGN(fsize, sizeof (vdev_label_t));
5011 if ((leaf & 1) == 1 &&
5012 offset + sizeof (bad) > psize - VDEV_LABEL_END_SIZE)
5013 continue;
5015 VERIFY(mutex_lock(&ztest_vdev_lock) == 0);
5016 if (mirror_save != zs->zs_mirrors) {
5017 VERIFY(mutex_unlock(&ztest_vdev_lock) == 0);
5018 (void) close(fd);
5019 return;
5022 if (pwrite(fd, &bad, sizeof (bad), offset) != sizeof (bad))
5023 fatal(1, "can't inject bad word at 0x%llx in %s",
5024 offset, pathrand);
5026 VERIFY(mutex_unlock(&ztest_vdev_lock) == 0);
5028 if (ztest_opts.zo_verbose >= 7)
5029 (void) printf("injected bad word into %s,"
5030 " offset 0x%llx\n", pathrand, (u_longlong_t)offset);
5033 (void) close(fd);
5037 * Verify that DDT repair works as expected.
5039 void
5040 ztest_ddt_repair(ztest_ds_t *zd, uint64_t id)
5042 ztest_shared_t *zs = ztest_shared;
5043 spa_t *spa = ztest_spa;
5044 objset_t *os = zd->zd_os;
5045 ztest_od_t od[1];
5046 uint64_t object, blocksize, txg, pattern, psize;
5047 enum zio_checksum checksum = spa_dedup_checksum(spa);
5048 dmu_buf_t *db;
5049 dmu_tx_t *tx;
5050 abd_t *abd;
5051 blkptr_t blk;
5052 int copies = 2 * ZIO_DEDUPDITTO_MIN;
5054 blocksize = ztest_random_blocksize();
5055 blocksize = MIN(blocksize, 2048); /* because we write so many */
5057 ztest_od_init(&od[0], id, FTAG, 0, DMU_OT_UINT64_OTHER, blocksize, 0);
5059 if (ztest_object_init(zd, od, sizeof (od), B_FALSE) != 0)
5060 return;
5063 * Take the name lock as writer to prevent anyone else from changing
5064 * the pool and dataset properies we need to maintain during this test.
5066 (void) rw_wrlock(&ztest_name_lock);
5068 if (ztest_dsl_prop_set_uint64(zd->zd_name, ZFS_PROP_DEDUP, checksum,
5069 B_FALSE) != 0 ||
5070 ztest_dsl_prop_set_uint64(zd->zd_name, ZFS_PROP_COPIES, 1,
5071 B_FALSE) != 0) {
5072 (void) rw_unlock(&ztest_name_lock);
5073 return;
5076 dmu_objset_stats_t dds;
5077 dsl_pool_config_enter(dmu_objset_pool(os), FTAG);
5078 dmu_objset_fast_stat(os, &dds);
5079 dsl_pool_config_exit(dmu_objset_pool(os), FTAG);
5081 object = od[0].od_object;
5082 blocksize = od[0].od_blocksize;
5083 pattern = zs->zs_guid ^ dds.dds_guid;
5085 ASSERT(object != 0);
5087 tx = dmu_tx_create(os);
5088 dmu_tx_hold_write(tx, object, 0, copies * blocksize);
5089 txg = ztest_tx_assign(tx, TXG_WAIT, FTAG);
5090 if (txg == 0) {
5091 (void) rw_unlock(&ztest_name_lock);
5092 return;
5096 * Write all the copies of our block.
5098 for (int i = 0; i < copies; i++) {
5099 uint64_t offset = i * blocksize;
5100 int error = dmu_buf_hold(os, object, offset, FTAG, &db,
5101 DMU_READ_NO_PREFETCH);
5102 if (error != 0) {
5103 fatal(B_FALSE, "dmu_buf_hold(%p, %llu, %llu) = %u",
5104 os, (long long)object, (long long) offset, error);
5106 ASSERT(db->db_offset == offset);
5107 ASSERT(db->db_size == blocksize);
5108 ASSERT(ztest_pattern_match(db->db_data, db->db_size, pattern) ||
5109 ztest_pattern_match(db->db_data, db->db_size, 0ULL));
5110 dmu_buf_will_fill(db, tx);
5111 ztest_pattern_set(db->db_data, db->db_size, pattern);
5112 dmu_buf_rele(db, FTAG);
5115 dmu_tx_commit(tx);
5116 txg_wait_synced(spa_get_dsl(spa), txg);
5119 * Find out what block we got.
5121 VERIFY0(dmu_buf_hold(os, object, 0, FTAG, &db,
5122 DMU_READ_NO_PREFETCH));
5123 blk = *((dmu_buf_impl_t *)db)->db_blkptr;
5124 dmu_buf_rele(db, FTAG);
5127 * Damage the block. Dedup-ditto will save us when we read it later.
5129 psize = BP_GET_PSIZE(&blk);
5130 abd = abd_alloc_linear(psize, B_TRUE);
5131 ztest_pattern_set(abd_to_buf(abd), psize, ~pattern);
5133 (void) zio_wait(zio_rewrite(NULL, spa, 0, &blk,
5134 abd, psize, NULL, NULL, ZIO_PRIORITY_SYNC_WRITE,
5135 ZIO_FLAG_CANFAIL | ZIO_FLAG_INDUCE_DAMAGE, NULL));
5137 abd_free(abd);
5139 (void) rw_unlock(&ztest_name_lock);
5143 * Scrub the pool.
5145 /* ARGSUSED */
5146 void
5147 ztest_scrub(ztest_ds_t *zd, uint64_t id)
5149 spa_t *spa = ztest_spa;
5151 (void) spa_scan(spa, POOL_SCAN_SCRUB);
5152 (void) poll(NULL, 0, 100); /* wait a moment, then force a restart */
5153 (void) spa_scan(spa, POOL_SCAN_SCRUB);
5157 * Change the guid for the pool.
5159 /* ARGSUSED */
5160 void
5161 ztest_reguid(ztest_ds_t *zd, uint64_t id)
5163 spa_t *spa = ztest_spa;
5164 uint64_t orig, load;
5165 int error;
5167 orig = spa_guid(spa);
5168 load = spa_load_guid(spa);
5170 (void) rw_wrlock(&ztest_name_lock);
5171 error = spa_change_guid(spa);
5172 (void) rw_unlock(&ztest_name_lock);
5174 if (error != 0)
5175 return;
5177 if (ztest_opts.zo_verbose >= 4) {
5178 (void) printf("Changed guid old %llu -> %llu\n",
5179 (u_longlong_t)orig, (u_longlong_t)spa_guid(spa));
5182 VERIFY3U(orig, !=, spa_guid(spa));
5183 VERIFY3U(load, ==, spa_load_guid(spa));
5187 * Rename the pool to a different name and then rename it back.
5189 /* ARGSUSED */
5190 void
5191 ztest_spa_rename(ztest_ds_t *zd, uint64_t id)
5193 char *oldname, *newname;
5194 spa_t *spa;
5196 (void) rw_wrlock(&ztest_name_lock);
5198 oldname = ztest_opts.zo_pool;
5199 newname = umem_alloc(strlen(oldname) + 5, UMEM_NOFAIL);
5200 (void) strcpy(newname, oldname);
5201 (void) strcat(newname, "_tmp");
5204 * Do the rename
5206 VERIFY3U(0, ==, spa_rename(oldname, newname));
5209 * Try to open it under the old name, which shouldn't exist
5211 VERIFY3U(ENOENT, ==, spa_open(oldname, &spa, FTAG));
5214 * Open it under the new name and make sure it's still the same spa_t.
5216 VERIFY3U(0, ==, spa_open(newname, &spa, FTAG));
5218 ASSERT(spa == ztest_spa);
5219 spa_close(spa, FTAG);
5222 * Rename it back to the original
5224 VERIFY3U(0, ==, spa_rename(newname, oldname));
5227 * Make sure it can still be opened
5229 VERIFY3U(0, ==, spa_open(oldname, &spa, FTAG));
5231 ASSERT(spa == ztest_spa);
5232 spa_close(spa, FTAG);
5234 umem_free(newname, strlen(newname) + 1);
5236 (void) rw_unlock(&ztest_name_lock);
5240 * Verify pool integrity by running zdb.
5242 static void
5243 ztest_run_zdb(char *pool)
5245 int status;
5246 char zdb[MAXPATHLEN + MAXNAMELEN + 20];
5247 char zbuf[1024];
5248 char *bin;
5249 char *ztest;
5250 char *isa;
5251 int isalen;
5252 FILE *fp;
5254 (void) realpath(getexecname(), zdb);
5256 /* zdb lives in /usr/sbin, while ztest lives in /usr/bin */
5257 bin = strstr(zdb, "/usr/bin/");
5258 ztest = strstr(bin, "/ztest");
5259 isa = bin + 8;
5260 isalen = ztest - isa;
5261 isa = strdup(isa);
5262 /* LINTED */
5263 (void) sprintf(bin,
5264 "/usr/sbin%.*s/zdb -bcc%s%s -G -d -U %s %s",
5265 isalen,
5266 isa,
5267 ztest_opts.zo_verbose >= 3 ? "s" : "",
5268 ztest_opts.zo_verbose >= 4 ? "v" : "",
5269 spa_config_path,
5270 pool);
5271 free(isa);
5273 if (ztest_opts.zo_verbose >= 5)
5274 (void) printf("Executing %s\n", strstr(zdb, "zdb "));
5276 fp = popen(zdb, "r");
5278 while (fgets(zbuf, sizeof (zbuf), fp) != NULL)
5279 if (ztest_opts.zo_verbose >= 3)
5280 (void) printf("%s", zbuf);
5282 status = pclose(fp);
5284 if (status == 0)
5285 return;
5287 ztest_dump_core = 0;
5288 if (WIFEXITED(status))
5289 fatal(0, "'%s' exit code %d", zdb, WEXITSTATUS(status));
5290 else
5291 fatal(0, "'%s' died with signal %d", zdb, WTERMSIG(status));
5294 static void
5295 ztest_walk_pool_directory(char *header)
5297 spa_t *spa = NULL;
5299 if (ztest_opts.zo_verbose >= 6)
5300 (void) printf("%s\n", header);
5302 mutex_enter(&spa_namespace_lock);
5303 while ((spa = spa_next(spa)) != NULL)
5304 if (ztest_opts.zo_verbose >= 6)
5305 (void) printf("\t%s\n", spa_name(spa));
5306 mutex_exit(&spa_namespace_lock);
5309 static void
5310 ztest_spa_import_export(char *oldname, char *newname)
5312 nvlist_t *config, *newconfig;
5313 uint64_t pool_guid;
5314 spa_t *spa;
5315 int error;
5317 if (ztest_opts.zo_verbose >= 4) {
5318 (void) printf("import/export: old = %s, new = %s\n",
5319 oldname, newname);
5323 * Clean up from previous runs.
5325 (void) spa_destroy(newname);
5328 * Get the pool's configuration and guid.
5330 VERIFY3U(0, ==, spa_open(oldname, &spa, FTAG));
5333 * Kick off a scrub to tickle scrub/export races.
5335 if (ztest_random(2) == 0)
5336 (void) spa_scan(spa, POOL_SCAN_SCRUB);
5338 pool_guid = spa_guid(spa);
5339 spa_close(spa, FTAG);
5341 ztest_walk_pool_directory("pools before export");
5344 * Export it.
5346 VERIFY3U(0, ==, spa_export(oldname, &config, B_FALSE, B_FALSE));
5348 ztest_walk_pool_directory("pools after export");
5351 * Try to import it.
5353 newconfig = spa_tryimport(config);
5354 ASSERT(newconfig != NULL);
5355 nvlist_free(newconfig);
5358 * Import it under the new name.
5360 error = spa_import(newname, config, NULL, 0);
5361 if (error != 0) {
5362 dump_nvlist(config, 0);
5363 fatal(B_FALSE, "couldn't import pool %s as %s: error %u",
5364 oldname, newname, error);
5367 ztest_walk_pool_directory("pools after import");
5370 * Try to import it again -- should fail with EEXIST.
5372 VERIFY3U(EEXIST, ==, spa_import(newname, config, NULL, 0));
5375 * Try to import it under a different name -- should fail with EEXIST.
5377 VERIFY3U(EEXIST, ==, spa_import(oldname, config, NULL, 0));
5380 * Verify that the pool is no longer visible under the old name.
5382 VERIFY3U(ENOENT, ==, spa_open(oldname, &spa, FTAG));
5385 * Verify that we can open and close the pool using the new name.
5387 VERIFY3U(0, ==, spa_open(newname, &spa, FTAG));
5388 ASSERT(pool_guid == spa_guid(spa));
5389 spa_close(spa, FTAG);
5391 nvlist_free(config);
5394 static void
5395 ztest_resume(spa_t *spa)
5397 if (spa_suspended(spa) && ztest_opts.zo_verbose >= 6)
5398 (void) printf("resuming from suspended state\n");
5399 spa_vdev_state_enter(spa, SCL_NONE);
5400 vdev_clear(spa, NULL);
5401 (void) spa_vdev_state_exit(spa, NULL, 0);
5402 (void) zio_resume(spa);
5405 static void *
5406 ztest_resume_thread(void *arg)
5408 spa_t *spa = arg;
5410 while (!ztest_exiting) {
5411 if (spa_suspended(spa))
5412 ztest_resume(spa);
5413 (void) poll(NULL, 0, 100);
5416 * Periodically change the zfs_compressed_arc_enabled setting.
5418 if (ztest_random(10) == 0)
5419 zfs_compressed_arc_enabled = ztest_random(2);
5422 * Periodically change the zfs_abd_scatter_enabled setting.
5424 if (ztest_random(10) == 0)
5425 zfs_abd_scatter_enabled = ztest_random(2);
5427 return (NULL);
5430 static void *
5431 ztest_deadman_thread(void *arg)
5433 ztest_shared_t *zs = arg;
5434 spa_t *spa = ztest_spa;
5435 hrtime_t delta, total = 0;
5437 for (;;) {
5438 delta = zs->zs_thread_stop - zs->zs_thread_start +
5439 MSEC2NSEC(zfs_deadman_synctime_ms);
5441 (void) poll(NULL, 0, (int)NSEC2MSEC(delta));
5444 * If the pool is suspended then fail immediately. Otherwise,
5445 * check to see if the pool is making any progress. If
5446 * vdev_deadman() discovers that there hasn't been any recent
5447 * I/Os then it will end up aborting the tests.
5449 if (spa_suspended(spa) || spa->spa_root_vdev == NULL) {
5450 fatal(0, "aborting test after %llu seconds because "
5451 "pool has transitioned to a suspended state.",
5452 zfs_deadman_synctime_ms / 1000);
5453 return (NULL);
5455 vdev_deadman(spa->spa_root_vdev);
5457 total += zfs_deadman_synctime_ms/1000;
5458 (void) printf("ztest has been running for %lld seconds\n",
5459 total);
5463 static void
5464 ztest_execute(int test, ztest_info_t *zi, uint64_t id)
5466 ztest_ds_t *zd = &ztest_ds[id % ztest_opts.zo_datasets];
5467 ztest_shared_callstate_t *zc = ZTEST_GET_SHARED_CALLSTATE(test);
5468 hrtime_t functime = gethrtime();
5470 for (int i = 0; i < zi->zi_iters; i++)
5471 zi->zi_func(zd, id);
5473 functime = gethrtime() - functime;
5475 atomic_add_64(&zc->zc_count, 1);
5476 atomic_add_64(&zc->zc_time, functime);
5478 if (ztest_opts.zo_verbose >= 4) {
5479 Dl_info dli;
5480 (void) dladdr((void *)zi->zi_func, &dli);
5481 (void) printf("%6.2f sec in %s\n",
5482 (double)functime / NANOSEC, dli.dli_sname);
5486 static void *
5487 ztest_thread(void *arg)
5489 int rand;
5490 uint64_t id = (uintptr_t)arg;
5491 ztest_shared_t *zs = ztest_shared;
5492 uint64_t call_next;
5493 hrtime_t now;
5494 ztest_info_t *zi;
5495 ztest_shared_callstate_t *zc;
5497 while ((now = gethrtime()) < zs->zs_thread_stop) {
5499 * See if it's time to force a crash.
5501 if (now > zs->zs_thread_kill)
5502 ztest_kill(zs);
5505 * If we're getting ENOSPC with some regularity, stop.
5507 if (zs->zs_enospc_count > 10)
5508 break;
5511 * Pick a random function to execute.
5513 rand = ztest_random(ZTEST_FUNCS);
5514 zi = &ztest_info[rand];
5515 zc = ZTEST_GET_SHARED_CALLSTATE(rand);
5516 call_next = zc->zc_next;
5518 if (now >= call_next &&
5519 atomic_cas_64(&zc->zc_next, call_next, call_next +
5520 ztest_random(2 * zi->zi_interval[0] + 1)) == call_next) {
5521 ztest_execute(rand, zi, id);
5525 return (NULL);
5528 static void
5529 ztest_dataset_name(char *dsname, char *pool, int d)
5531 (void) snprintf(dsname, ZFS_MAX_DATASET_NAME_LEN, "%s/ds_%d", pool, d);
5534 static void
5535 ztest_dataset_destroy(int d)
5537 char name[ZFS_MAX_DATASET_NAME_LEN];
5539 ztest_dataset_name(name, ztest_opts.zo_pool, d);
5541 if (ztest_opts.zo_verbose >= 3)
5542 (void) printf("Destroying %s to free up space\n", name);
5545 * Cleanup any non-standard clones and snapshots. In general,
5546 * ztest thread t operates on dataset (t % zopt_datasets),
5547 * so there may be more than one thing to clean up.
5549 for (int t = d; t < ztest_opts.zo_threads;
5550 t += ztest_opts.zo_datasets) {
5551 ztest_dsl_dataset_cleanup(name, t);
5554 (void) dmu_objset_find(name, ztest_objset_destroy_cb, NULL,
5555 DS_FIND_SNAPSHOTS | DS_FIND_CHILDREN);
5558 static void
5559 ztest_dataset_dirobj_verify(ztest_ds_t *zd)
5561 uint64_t usedobjs, dirobjs, scratch;
5564 * ZTEST_DIROBJ is the object directory for the entire dataset.
5565 * Therefore, the number of objects in use should equal the
5566 * number of ZTEST_DIROBJ entries, +1 for ZTEST_DIROBJ itself.
5567 * If not, we have an object leak.
5569 * Note that we can only check this in ztest_dataset_open(),
5570 * when the open-context and syncing-context values agree.
5571 * That's because zap_count() returns the open-context value,
5572 * while dmu_objset_space() returns the rootbp fill count.
5574 VERIFY3U(0, ==, zap_count(zd->zd_os, ZTEST_DIROBJ, &dirobjs));
5575 dmu_objset_space(zd->zd_os, &scratch, &scratch, &usedobjs, &scratch);
5576 ASSERT3U(dirobjs + 1, ==, usedobjs);
5579 static int
5580 ztest_dataset_open(int d)
5582 ztest_ds_t *zd = &ztest_ds[d];
5583 uint64_t committed_seq = ZTEST_GET_SHARED_DS(d)->zd_seq;
5584 objset_t *os;
5585 zilog_t *zilog;
5586 char name[ZFS_MAX_DATASET_NAME_LEN];
5587 int error;
5589 ztest_dataset_name(name, ztest_opts.zo_pool, d);
5591 (void) rw_rdlock(&ztest_name_lock);
5593 error = ztest_dataset_create(name);
5594 if (error == ENOSPC) {
5595 (void) rw_unlock(&ztest_name_lock);
5596 ztest_record_enospc(FTAG);
5597 return (error);
5599 ASSERT(error == 0 || error == EEXIST);
5601 VERIFY0(dmu_objset_own(name, DMU_OST_OTHER, B_FALSE, zd, &os));
5602 (void) rw_unlock(&ztest_name_lock);
5604 ztest_zd_init(zd, ZTEST_GET_SHARED_DS(d), os);
5606 zilog = zd->zd_zilog;
5608 if (zilog->zl_header->zh_claim_lr_seq != 0 &&
5609 zilog->zl_header->zh_claim_lr_seq < committed_seq)
5610 fatal(0, "missing log records: claimed %llu < committed %llu",
5611 zilog->zl_header->zh_claim_lr_seq, committed_seq);
5613 ztest_dataset_dirobj_verify(zd);
5615 zil_replay(os, zd, ztest_replay_vector);
5617 ztest_dataset_dirobj_verify(zd);
5619 if (ztest_opts.zo_verbose >= 6)
5620 (void) printf("%s replay %llu blocks, %llu records, seq %llu\n",
5621 zd->zd_name,
5622 (u_longlong_t)zilog->zl_parse_blk_count,
5623 (u_longlong_t)zilog->zl_parse_lr_count,
5624 (u_longlong_t)zilog->zl_replaying_seq);
5626 zilog = zil_open(os, ztest_get_data);
5628 if (zilog->zl_replaying_seq != 0 &&
5629 zilog->zl_replaying_seq < committed_seq)
5630 fatal(0, "missing log records: replayed %llu < committed %llu",
5631 zilog->zl_replaying_seq, committed_seq);
5633 return (0);
5636 static void
5637 ztest_dataset_close(int d)
5639 ztest_ds_t *zd = &ztest_ds[d];
5641 zil_close(zd->zd_zilog);
5642 dmu_objset_disown(zd->zd_os, zd);
5644 ztest_zd_fini(zd);
5648 * Kick off threads to run tests on all datasets in parallel.
5650 static void
5651 ztest_run(ztest_shared_t *zs)
5653 thread_t *tid;
5654 spa_t *spa;
5655 objset_t *os;
5656 thread_t resume_tid;
5657 int error;
5659 ztest_exiting = B_FALSE;
5662 * Initialize parent/child shared state.
5664 VERIFY(_mutex_init(&ztest_vdev_lock, USYNC_THREAD, NULL) == 0);
5665 VERIFY(rwlock_init(&ztest_name_lock, USYNC_THREAD, NULL) == 0);
5667 zs->zs_thread_start = gethrtime();
5668 zs->zs_thread_stop =
5669 zs->zs_thread_start + ztest_opts.zo_passtime * NANOSEC;
5670 zs->zs_thread_stop = MIN(zs->zs_thread_stop, zs->zs_proc_stop);
5671 zs->zs_thread_kill = zs->zs_thread_stop;
5672 if (ztest_random(100) < ztest_opts.zo_killrate) {
5673 zs->zs_thread_kill -=
5674 ztest_random(ztest_opts.zo_passtime * NANOSEC);
5677 (void) _mutex_init(&zcl.zcl_callbacks_lock, USYNC_THREAD, NULL);
5679 list_create(&zcl.zcl_callbacks, sizeof (ztest_cb_data_t),
5680 offsetof(ztest_cb_data_t, zcd_node));
5683 * Open our pool.
5685 kernel_init(FREAD | FWRITE);
5686 VERIFY0(spa_open(ztest_opts.zo_pool, &spa, FTAG));
5687 spa->spa_debug = B_TRUE;
5688 metaslab_preload_limit = ztest_random(20) + 1;
5689 ztest_spa = spa;
5691 dmu_objset_stats_t dds;
5692 VERIFY0(dmu_objset_own(ztest_opts.zo_pool,
5693 DMU_OST_ANY, B_TRUE, FTAG, &os));
5694 dsl_pool_config_enter(dmu_objset_pool(os), FTAG);
5695 dmu_objset_fast_stat(os, &dds);
5696 dsl_pool_config_exit(dmu_objset_pool(os), FTAG);
5697 zs->zs_guid = dds.dds_guid;
5698 dmu_objset_disown(os, FTAG);
5700 spa->spa_dedup_ditto = 2 * ZIO_DEDUPDITTO_MIN;
5703 * We don't expect the pool to suspend unless maxfaults == 0,
5704 * in which case ztest_fault_inject() temporarily takes away
5705 * the only valid replica.
5707 if (MAXFAULTS() == 0)
5708 spa->spa_failmode = ZIO_FAILURE_MODE_WAIT;
5709 else
5710 spa->spa_failmode = ZIO_FAILURE_MODE_PANIC;
5713 * Create a thread to periodically resume suspended I/O.
5715 VERIFY(thr_create(0, 0, ztest_resume_thread, spa, THR_BOUND,
5716 &resume_tid) == 0);
5719 * Create a deadman thread to abort() if we hang.
5721 VERIFY(thr_create(0, 0, ztest_deadman_thread, zs, THR_BOUND,
5722 NULL) == 0);
5725 * Verify that we can safely inquire about about any object,
5726 * whether it's allocated or not. To make it interesting,
5727 * we probe a 5-wide window around each power of two.
5728 * This hits all edge cases, including zero and the max.
5730 for (int t = 0; t < 64; t++) {
5731 for (int d = -5; d <= 5; d++) {
5732 error = dmu_object_info(spa->spa_meta_objset,
5733 (1ULL << t) + d, NULL);
5734 ASSERT(error == 0 || error == ENOENT ||
5735 error == EINVAL);
5740 * If we got any ENOSPC errors on the previous run, destroy something.
5742 if (zs->zs_enospc_count != 0) {
5743 int d = ztest_random(ztest_opts.zo_datasets);
5744 ztest_dataset_destroy(d);
5746 zs->zs_enospc_count = 0;
5748 tid = umem_zalloc(ztest_opts.zo_threads * sizeof (thread_t),
5749 UMEM_NOFAIL);
5751 if (ztest_opts.zo_verbose >= 4)
5752 (void) printf("starting main threads...\n");
5755 * Kick off all the tests that run in parallel.
5757 for (int t = 0; t < ztest_opts.zo_threads; t++) {
5758 if (t < ztest_opts.zo_datasets &&
5759 ztest_dataset_open(t) != 0)
5760 return;
5761 VERIFY(thr_create(0, 0, ztest_thread, (void *)(uintptr_t)t,
5762 THR_BOUND, &tid[t]) == 0);
5766 * Wait for all of the tests to complete. We go in reverse order
5767 * so we don't close datasets while threads are still using them.
5769 for (int t = ztest_opts.zo_threads - 1; t >= 0; t--) {
5770 VERIFY(thr_join(tid[t], NULL, NULL) == 0);
5771 if (t < ztest_opts.zo_datasets)
5772 ztest_dataset_close(t);
5775 txg_wait_synced(spa_get_dsl(spa), 0);
5777 zs->zs_alloc = metaslab_class_get_alloc(spa_normal_class(spa));
5778 zs->zs_space = metaslab_class_get_space(spa_normal_class(spa));
5779 zfs_dbgmsg_print(FTAG);
5781 umem_free(tid, ztest_opts.zo_threads * sizeof (thread_t));
5783 /* Kill the resume thread */
5784 ztest_exiting = B_TRUE;
5785 VERIFY(thr_join(resume_tid, NULL, NULL) == 0);
5786 ztest_resume(spa);
5789 * Right before closing the pool, kick off a bunch of async I/O;
5790 * spa_close() should wait for it to complete.
5792 for (uint64_t object = 1; object < 50; object++) {
5793 dmu_prefetch(spa->spa_meta_objset, object, 0, 0, 1ULL << 20,
5794 ZIO_PRIORITY_SYNC_READ);
5797 spa_close(spa, FTAG);
5800 * Verify that we can loop over all pools.
5802 mutex_enter(&spa_namespace_lock);
5803 for (spa = spa_next(NULL); spa != NULL; spa = spa_next(spa))
5804 if (ztest_opts.zo_verbose > 3)
5805 (void) printf("spa_next: found %s\n", spa_name(spa));
5806 mutex_exit(&spa_namespace_lock);
5809 * Verify that we can export the pool and reimport it under a
5810 * different name.
5812 if (ztest_random(2) == 0) {
5813 char name[ZFS_MAX_DATASET_NAME_LEN];
5814 (void) snprintf(name, sizeof (name), "%s_import",
5815 ztest_opts.zo_pool);
5816 ztest_spa_import_export(ztest_opts.zo_pool, name);
5817 ztest_spa_import_export(name, ztest_opts.zo_pool);
5820 kernel_fini();
5822 list_destroy(&zcl.zcl_callbacks);
5824 (void) _mutex_destroy(&zcl.zcl_callbacks_lock);
5826 (void) rwlock_destroy(&ztest_name_lock);
5827 (void) _mutex_destroy(&ztest_vdev_lock);
5830 static void
5831 ztest_freeze(void)
5833 ztest_ds_t *zd = &ztest_ds[0];
5834 spa_t *spa;
5835 int numloops = 0;
5837 if (ztest_opts.zo_verbose >= 3)
5838 (void) printf("testing spa_freeze()...\n");
5840 kernel_init(FREAD | FWRITE);
5841 VERIFY3U(0, ==, spa_open(ztest_opts.zo_pool, &spa, FTAG));
5842 VERIFY3U(0, ==, ztest_dataset_open(0));
5843 spa->spa_debug = B_TRUE;
5844 ztest_spa = spa;
5847 * Force the first log block to be transactionally allocated.
5848 * We have to do this before we freeze the pool -- otherwise
5849 * the log chain won't be anchored.
5851 while (BP_IS_HOLE(&zd->zd_zilog->zl_header->zh_log)) {
5852 ztest_dmu_object_alloc_free(zd, 0);
5853 zil_commit(zd->zd_zilog, 0);
5856 txg_wait_synced(spa_get_dsl(spa), 0);
5859 * Freeze the pool. This stops spa_sync() from doing anything,
5860 * so that the only way to record changes from now on is the ZIL.
5862 spa_freeze(spa);
5865 * Because it is hard to predict how much space a write will actually
5866 * require beforehand, we leave ourselves some fudge space to write over
5867 * capacity.
5869 uint64_t capacity = metaslab_class_get_space(spa_normal_class(spa)) / 2;
5872 * Run tests that generate log records but don't alter the pool config
5873 * or depend on DSL sync tasks (snapshots, objset create/destroy, etc).
5874 * We do a txg_wait_synced() after each iteration to force the txg
5875 * to increase well beyond the last synced value in the uberblock.
5876 * The ZIL should be OK with that.
5878 * Run a random number of times less than zo_maxloops and ensure we do
5879 * not run out of space on the pool.
5881 while (ztest_random(10) != 0 &&
5882 numloops++ < ztest_opts.zo_maxloops &&
5883 metaslab_class_get_alloc(spa_normal_class(spa)) < capacity) {
5884 ztest_od_t od;
5885 ztest_od_init(&od, 0, FTAG, 0, DMU_OT_UINT64_OTHER, 0, 0);
5886 VERIFY0(ztest_object_init(zd, &od, sizeof (od), B_FALSE));
5887 ztest_io(zd, od.od_object,
5888 ztest_random(ZTEST_RANGE_LOCKS) << SPA_MAXBLOCKSHIFT);
5889 txg_wait_synced(spa_get_dsl(spa), 0);
5893 * Commit all of the changes we just generated.
5895 zil_commit(zd->zd_zilog, 0);
5896 txg_wait_synced(spa_get_dsl(spa), 0);
5899 * Close our dataset and close the pool.
5901 ztest_dataset_close(0);
5902 spa_close(spa, FTAG);
5903 kernel_fini();
5906 * Open and close the pool and dataset to induce log replay.
5908 kernel_init(FREAD | FWRITE);
5909 VERIFY3U(0, ==, spa_open(ztest_opts.zo_pool, &spa, FTAG));
5910 ASSERT(spa_freeze_txg(spa) == UINT64_MAX);
5911 VERIFY3U(0, ==, ztest_dataset_open(0));
5912 ztest_dataset_close(0);
5914 spa->spa_debug = B_TRUE;
5915 ztest_spa = spa;
5916 txg_wait_synced(spa_get_dsl(spa), 0);
5917 ztest_reguid(NULL, 0);
5919 spa_close(spa, FTAG);
5920 kernel_fini();
5923 void
5924 print_time(hrtime_t t, char *timebuf)
5926 hrtime_t s = t / NANOSEC;
5927 hrtime_t m = s / 60;
5928 hrtime_t h = m / 60;
5929 hrtime_t d = h / 24;
5931 s -= m * 60;
5932 m -= h * 60;
5933 h -= d * 24;
5935 timebuf[0] = '\0';
5937 if (d)
5938 (void) sprintf(timebuf,
5939 "%llud%02lluh%02llum%02llus", d, h, m, s);
5940 else if (h)
5941 (void) sprintf(timebuf, "%lluh%02llum%02llus", h, m, s);
5942 else if (m)
5943 (void) sprintf(timebuf, "%llum%02llus", m, s);
5944 else
5945 (void) sprintf(timebuf, "%llus", s);
5948 static nvlist_t *
5949 make_random_props()
5951 nvlist_t *props;
5953 VERIFY(nvlist_alloc(&props, NV_UNIQUE_NAME, 0) == 0);
5954 if (ztest_random(2) == 0)
5955 return (props);
5956 VERIFY(nvlist_add_uint64(props, "autoreplace", 1) == 0);
5958 return (props);
5962 * Create a storage pool with the given name and initial vdev size.
5963 * Then test spa_freeze() functionality.
5965 static void
5966 ztest_init(ztest_shared_t *zs)
5968 spa_t *spa;
5969 nvlist_t *nvroot, *props;
5971 VERIFY(_mutex_init(&ztest_vdev_lock, USYNC_THREAD, NULL) == 0);
5972 VERIFY(rwlock_init(&ztest_name_lock, USYNC_THREAD, NULL) == 0);
5974 kernel_init(FREAD | FWRITE);
5977 * Create the storage pool.
5979 (void) spa_destroy(ztest_opts.zo_pool);
5980 ztest_shared->zs_vdev_next_leaf = 0;
5981 zs->zs_splits = 0;
5982 zs->zs_mirrors = ztest_opts.zo_mirrors;
5983 nvroot = make_vdev_root(NULL, NULL, NULL, ztest_opts.zo_vdev_size, 0,
5984 0, ztest_opts.zo_raidz, zs->zs_mirrors, 1);
5985 props = make_random_props();
5986 for (int i = 0; i < SPA_FEATURES; i++) {
5987 char buf[1024];
5988 (void) snprintf(buf, sizeof (buf), "feature@%s",
5989 spa_feature_table[i].fi_uname);
5990 VERIFY3U(0, ==, nvlist_add_uint64(props, buf, 0));
5992 VERIFY3U(0, ==, spa_create(ztest_opts.zo_pool, nvroot, props, NULL));
5993 nvlist_free(nvroot);
5994 nvlist_free(props);
5996 VERIFY3U(0, ==, spa_open(ztest_opts.zo_pool, &spa, FTAG));
5997 zs->zs_metaslab_sz =
5998 1ULL << spa->spa_root_vdev->vdev_child[0]->vdev_ms_shift;
6000 spa_close(spa, FTAG);
6002 kernel_fini();
6004 ztest_run_zdb(ztest_opts.zo_pool);
6006 ztest_freeze();
6008 ztest_run_zdb(ztest_opts.zo_pool);
6010 (void) rwlock_destroy(&ztest_name_lock);
6011 (void) _mutex_destroy(&ztest_vdev_lock);
6014 static void
6015 setup_data_fd(void)
6017 static char ztest_name_data[] = "/tmp/ztest.data.XXXXXX";
6019 ztest_fd_data = mkstemp(ztest_name_data);
6020 ASSERT3S(ztest_fd_data, >=, 0);
6021 (void) unlink(ztest_name_data);
6025 static int
6026 shared_data_size(ztest_shared_hdr_t *hdr)
6028 int size;
6030 size = hdr->zh_hdr_size;
6031 size += hdr->zh_opts_size;
6032 size += hdr->zh_size;
6033 size += hdr->zh_stats_size * hdr->zh_stats_count;
6034 size += hdr->zh_ds_size * hdr->zh_ds_count;
6036 return (size);
6039 static void
6040 setup_hdr(void)
6042 int size;
6043 ztest_shared_hdr_t *hdr;
6045 hdr = mmap(NULL, P2ROUNDUP(sizeof (*hdr), getpagesize()),
6046 PROT_READ | PROT_WRITE, MAP_SHARED, ztest_fd_data, 0);
6047 ASSERT(hdr != MAP_FAILED);
6049 VERIFY3U(0, ==, ftruncate(ztest_fd_data, sizeof (ztest_shared_hdr_t)));
6051 hdr->zh_hdr_size = sizeof (ztest_shared_hdr_t);
6052 hdr->zh_opts_size = sizeof (ztest_shared_opts_t);
6053 hdr->zh_size = sizeof (ztest_shared_t);
6054 hdr->zh_stats_size = sizeof (ztest_shared_callstate_t);
6055 hdr->zh_stats_count = ZTEST_FUNCS;
6056 hdr->zh_ds_size = sizeof (ztest_shared_ds_t);
6057 hdr->zh_ds_count = ztest_opts.zo_datasets;
6059 size = shared_data_size(hdr);
6060 VERIFY3U(0, ==, ftruncate(ztest_fd_data, size));
6062 (void) munmap((caddr_t)hdr, P2ROUNDUP(sizeof (*hdr), getpagesize()));
6065 static void
6066 setup_data(void)
6068 int size, offset;
6069 ztest_shared_hdr_t *hdr;
6070 uint8_t *buf;
6072 hdr = mmap(NULL, P2ROUNDUP(sizeof (*hdr), getpagesize()),
6073 PROT_READ, MAP_SHARED, ztest_fd_data, 0);
6074 ASSERT(hdr != MAP_FAILED);
6076 size = shared_data_size(hdr);
6078 (void) munmap((caddr_t)hdr, P2ROUNDUP(sizeof (*hdr), getpagesize()));
6079 hdr = ztest_shared_hdr = mmap(NULL, P2ROUNDUP(size, getpagesize()),
6080 PROT_READ | PROT_WRITE, MAP_SHARED, ztest_fd_data, 0);
6081 ASSERT(hdr != MAP_FAILED);
6082 buf = (uint8_t *)hdr;
6084 offset = hdr->zh_hdr_size;
6085 ztest_shared_opts = (void *)&buf[offset];
6086 offset += hdr->zh_opts_size;
6087 ztest_shared = (void *)&buf[offset];
6088 offset += hdr->zh_size;
6089 ztest_shared_callstate = (void *)&buf[offset];
6090 offset += hdr->zh_stats_size * hdr->zh_stats_count;
6091 ztest_shared_ds = (void *)&buf[offset];
6094 static boolean_t
6095 exec_child(char *cmd, char *libpath, boolean_t ignorekill, int *statusp)
6097 pid_t pid;
6098 int status;
6099 char *cmdbuf = NULL;
6101 pid = fork();
6103 if (cmd == NULL) {
6104 cmdbuf = umem_alloc(MAXPATHLEN, UMEM_NOFAIL);
6105 (void) strlcpy(cmdbuf, getexecname(), MAXPATHLEN);
6106 cmd = cmdbuf;
6109 if (pid == -1)
6110 fatal(1, "fork failed");
6112 if (pid == 0) { /* child */
6113 char *emptyargv[2] = { cmd, NULL };
6114 char fd_data_str[12];
6116 struct rlimit rl = { 1024, 1024 };
6117 (void) setrlimit(RLIMIT_NOFILE, &rl);
6119 (void) close(ztest_fd_rand);
6120 VERIFY3U(11, >=,
6121 snprintf(fd_data_str, 12, "%d", ztest_fd_data));
6122 VERIFY0(setenv("ZTEST_FD_DATA", fd_data_str, 1));
6124 (void) enable_extended_FILE_stdio(-1, -1);
6125 if (libpath != NULL)
6126 VERIFY(0 == setenv("LD_LIBRARY_PATH", libpath, 1));
6127 (void) execv(cmd, emptyargv);
6128 ztest_dump_core = B_FALSE;
6129 fatal(B_TRUE, "exec failed: %s", cmd);
6132 if (cmdbuf != NULL) {
6133 umem_free(cmdbuf, MAXPATHLEN);
6134 cmd = NULL;
6137 while (waitpid(pid, &status, 0) != pid)
6138 continue;
6139 if (statusp != NULL)
6140 *statusp = status;
6142 if (WIFEXITED(status)) {
6143 if (WEXITSTATUS(status) != 0) {
6144 (void) fprintf(stderr, "child exited with code %d\n",
6145 WEXITSTATUS(status));
6146 exit(2);
6148 return (B_FALSE);
6149 } else if (WIFSIGNALED(status)) {
6150 if (!ignorekill || WTERMSIG(status) != SIGKILL) {
6151 (void) fprintf(stderr, "child died with signal %d\n",
6152 WTERMSIG(status));
6153 exit(3);
6155 return (B_TRUE);
6156 } else {
6157 (void) fprintf(stderr, "something strange happened to child\n");
6158 exit(4);
6159 /* NOTREACHED */
6163 static void
6164 ztest_run_init(void)
6166 ztest_shared_t *zs = ztest_shared;
6168 ASSERT(ztest_opts.zo_init != 0);
6171 * Blow away any existing copy of zpool.cache
6173 (void) remove(spa_config_path);
6176 * Create and initialize our storage pool.
6178 for (int i = 1; i <= ztest_opts.zo_init; i++) {
6179 bzero(zs, sizeof (ztest_shared_t));
6180 if (ztest_opts.zo_verbose >= 3 &&
6181 ztest_opts.zo_init != 1) {
6182 (void) printf("ztest_init(), pass %d\n", i);
6184 ztest_init(zs);
6189 main(int argc, char **argv)
6191 int kills = 0;
6192 int iters = 0;
6193 int older = 0;
6194 int newer = 0;
6195 ztest_shared_t *zs;
6196 ztest_info_t *zi;
6197 ztest_shared_callstate_t *zc;
6198 char timebuf[100];
6199 char numbuf[6];
6200 spa_t *spa;
6201 char *cmd;
6202 boolean_t hasalt;
6203 char *fd_data_str = getenv("ZTEST_FD_DATA");
6205 (void) setvbuf(stdout, NULL, _IOLBF, 0);
6207 dprintf_setup(&argc, argv);
6208 zfs_deadman_synctime_ms = 300000;
6210 ztest_fd_rand = open("/dev/urandom", O_RDONLY);
6211 ASSERT3S(ztest_fd_rand, >=, 0);
6213 if (!fd_data_str) {
6214 process_options(argc, argv);
6216 setup_data_fd();
6217 setup_hdr();
6218 setup_data();
6219 bcopy(&ztest_opts, ztest_shared_opts,
6220 sizeof (*ztest_shared_opts));
6221 } else {
6222 ztest_fd_data = atoi(fd_data_str);
6223 setup_data();
6224 bcopy(ztest_shared_opts, &ztest_opts, sizeof (ztest_opts));
6226 ASSERT3U(ztest_opts.zo_datasets, ==, ztest_shared_hdr->zh_ds_count);
6228 /* Override location of zpool.cache */
6229 VERIFY3U(asprintf((char **)&spa_config_path, "%s/zpool.cache",
6230 ztest_opts.zo_dir), !=, -1);
6232 ztest_ds = umem_alloc(ztest_opts.zo_datasets * sizeof (ztest_ds_t),
6233 UMEM_NOFAIL);
6234 zs = ztest_shared;
6236 if (fd_data_str) {
6237 metaslab_gang_bang = ztest_opts.zo_metaslab_gang_bang;
6238 metaslab_df_alloc_threshold =
6239 zs->zs_metaslab_df_alloc_threshold;
6241 if (zs->zs_do_init)
6242 ztest_run_init();
6243 else
6244 ztest_run(zs);
6245 exit(0);
6248 hasalt = (strlen(ztest_opts.zo_alt_ztest) != 0);
6250 if (ztest_opts.zo_verbose >= 1) {
6251 (void) printf("%llu vdevs, %d datasets, %d threads,"
6252 " %llu seconds...\n",
6253 (u_longlong_t)ztest_opts.zo_vdevs,
6254 ztest_opts.zo_datasets,
6255 ztest_opts.zo_threads,
6256 (u_longlong_t)ztest_opts.zo_time);
6259 cmd = umem_alloc(MAXNAMELEN, UMEM_NOFAIL);
6260 (void) strlcpy(cmd, getexecname(), MAXNAMELEN);
6262 zs->zs_do_init = B_TRUE;
6263 if (strlen(ztest_opts.zo_alt_ztest) != 0) {
6264 if (ztest_opts.zo_verbose >= 1) {
6265 (void) printf("Executing older ztest for "
6266 "initialization: %s\n", ztest_opts.zo_alt_ztest);
6268 VERIFY(!exec_child(ztest_opts.zo_alt_ztest,
6269 ztest_opts.zo_alt_libpath, B_FALSE, NULL));
6270 } else {
6271 VERIFY(!exec_child(NULL, NULL, B_FALSE, NULL));
6273 zs->zs_do_init = B_FALSE;
6275 zs->zs_proc_start = gethrtime();
6276 zs->zs_proc_stop = zs->zs_proc_start + ztest_opts.zo_time * NANOSEC;
6278 for (int f = 0; f < ZTEST_FUNCS; f++) {
6279 zi = &ztest_info[f];
6280 zc = ZTEST_GET_SHARED_CALLSTATE(f);
6281 if (zs->zs_proc_start + zi->zi_interval[0] > zs->zs_proc_stop)
6282 zc->zc_next = UINT64_MAX;
6283 else
6284 zc->zc_next = zs->zs_proc_start +
6285 ztest_random(2 * zi->zi_interval[0] + 1);
6289 * Run the tests in a loop. These tests include fault injection
6290 * to verify that self-healing data works, and forced crashes
6291 * to verify that we never lose on-disk consistency.
6293 while (gethrtime() < zs->zs_proc_stop) {
6294 int status;
6295 boolean_t killed;
6298 * Initialize the workload counters for each function.
6300 for (int f = 0; f < ZTEST_FUNCS; f++) {
6301 zc = ZTEST_GET_SHARED_CALLSTATE(f);
6302 zc->zc_count = 0;
6303 zc->zc_time = 0;
6306 /* Set the allocation switch size */
6307 zs->zs_metaslab_df_alloc_threshold =
6308 ztest_random(zs->zs_metaslab_sz / 4) + 1;
6310 if (!hasalt || ztest_random(2) == 0) {
6311 if (hasalt && ztest_opts.zo_verbose >= 1) {
6312 (void) printf("Executing newer ztest: %s\n",
6313 cmd);
6315 newer++;
6316 killed = exec_child(cmd, NULL, B_TRUE, &status);
6317 } else {
6318 if (hasalt && ztest_opts.zo_verbose >= 1) {
6319 (void) printf("Executing older ztest: %s\n",
6320 ztest_opts.zo_alt_ztest);
6322 older++;
6323 killed = exec_child(ztest_opts.zo_alt_ztest,
6324 ztest_opts.zo_alt_libpath, B_TRUE, &status);
6327 if (killed)
6328 kills++;
6329 iters++;
6331 if (ztest_opts.zo_verbose >= 1) {
6332 hrtime_t now = gethrtime();
6334 now = MIN(now, zs->zs_proc_stop);
6335 print_time(zs->zs_proc_stop - now, timebuf);
6336 nicenum(zs->zs_space, numbuf);
6338 (void) printf("Pass %3d, %8s, %3llu ENOSPC, "
6339 "%4.1f%% of %5s used, %3.0f%% done, %8s to go\n",
6340 iters,
6341 WIFEXITED(status) ? "Complete" : "SIGKILL",
6342 (u_longlong_t)zs->zs_enospc_count,
6343 100.0 * zs->zs_alloc / zs->zs_space,
6344 numbuf,
6345 100.0 * (now - zs->zs_proc_start) /
6346 (ztest_opts.zo_time * NANOSEC), timebuf);
6349 if (ztest_opts.zo_verbose >= 2) {
6350 (void) printf("\nWorkload summary:\n\n");
6351 (void) printf("%7s %9s %s\n",
6352 "Calls", "Time", "Function");
6353 (void) printf("%7s %9s %s\n",
6354 "-----", "----", "--------");
6355 for (int f = 0; f < ZTEST_FUNCS; f++) {
6356 Dl_info dli;
6358 zi = &ztest_info[f];
6359 zc = ZTEST_GET_SHARED_CALLSTATE(f);
6360 print_time(zc->zc_time, timebuf);
6361 (void) dladdr((void *)zi->zi_func, &dli);
6362 (void) printf("%7llu %9s %s\n",
6363 (u_longlong_t)zc->zc_count, timebuf,
6364 dli.dli_sname);
6366 (void) printf("\n");
6370 * It's possible that we killed a child during a rename test,
6371 * in which case we'll have a 'ztest_tmp' pool lying around
6372 * instead of 'ztest'. Do a blind rename in case this happened.
6374 kernel_init(FREAD);
6375 if (spa_open(ztest_opts.zo_pool, &spa, FTAG) == 0) {
6376 spa_close(spa, FTAG);
6377 } else {
6378 char tmpname[ZFS_MAX_DATASET_NAME_LEN];
6379 kernel_fini();
6380 kernel_init(FREAD | FWRITE);
6381 (void) snprintf(tmpname, sizeof (tmpname), "%s_tmp",
6382 ztest_opts.zo_pool);
6383 (void) spa_rename(tmpname, ztest_opts.zo_pool);
6385 kernel_fini();
6387 ztest_run_zdb(ztest_opts.zo_pool);
6390 if (ztest_opts.zo_verbose >= 1) {
6391 if (hasalt) {
6392 (void) printf("%d runs of older ztest: %s\n", older,
6393 ztest_opts.zo_alt_ztest);
6394 (void) printf("%d runs of newer ztest: %s\n", newer,
6395 cmd);
6397 (void) printf("%d killed, %d completed, %.0f%% kill rate\n",
6398 kills, iters - kills, (100.0 * kills) / MAX(1, iters));
6401 umem_free(cmd, MAXNAMELEN);
6403 return (0);