Fio 1.34.2
[fio.git] / fio.c
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1/*
2 * fio - the flexible io tester
3 *
4 * Copyright (C) 2005 Jens Axboe <axboe@suse.de>
5 * Copyright (C) 2006 Jens Axboe <axboe@kernel.dk>
6 *
7 * The license below covers all files distributed with fio unless otherwise
8 * noted in the file itself.
9 *
10 * This program is free software; you can redistribute it and/or modify
11 * it under the terms of the GNU General Public License version 2 as
12 * published by the Free Software Foundation.
13 *
14 * This program is distributed in the hope that it will be useful,
15 * but WITHOUT ANY WARRANTY; without even the implied warranty of
16 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 * GNU General Public License for more details.
18 *
19 * You should have received a copy of the GNU General Public License
20 * along with this program; if not, write to the Free Software
21 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
22 *
23 */
24#include <unistd.h>
25#include <fcntl.h>
26#include <string.h>
27#include <signal.h>
28#include <time.h>
29#include <locale.h>
30#include <assert.h>
31#include <sys/stat.h>
32#include <sys/wait.h>
33#include <sys/ipc.h>
34#include <sys/shm.h>
35#include <sys/mman.h>
36
37#include "fio.h"
38#include "hash.h"
39#include "smalloc.h"
40#include "verify.h"
41#include "diskutil.h"
42
43unsigned long page_mask;
44unsigned long page_size;
45
46#define PAGE_ALIGN(buf) \
47 (char *) (((unsigned long) (buf) + page_mask) & ~page_mask)
48
49int groupid = 0;
50int thread_number = 0;
51int nr_process = 0;
52int nr_thread = 0;
53int shm_id = 0;
54int temp_stall_ts;
55unsigned long done_secs = 0;
56
57static struct fio_mutex *startup_mutex;
58static struct fio_mutex *writeout_mutex;
59static volatile int fio_abort;
60static int exit_value;
61static struct itimerval itimer;
62static pthread_t gtod_thread;
63
64struct io_log *agg_io_log[2];
65
66#define TERMINATE_ALL (-1)
67#define JOB_START_TIMEOUT (5 * 1000)
68
69void td_set_runstate(struct thread_data *td, int runstate)
70{
71 if (td->runstate == runstate)
72 return;
73
74 dprint(FD_PROCESS, "pid=%d: runstate %d -> %d\n", (int) td->pid,
75 td->runstate, runstate);
76 td->runstate = runstate;
77}
78
79static void terminate_threads(int group_id)
80{
81 struct thread_data *td;
82 int i;
83
84 dprint(FD_PROCESS, "terminate group_id=%d\n", group_id);
85
86 for_each_td(td, i) {
87 if (group_id == TERMINATE_ALL || groupid == td->groupid) {
88 dprint(FD_PROCESS, "setting terminate on %s/%d\n",
89 td->o.name, (int) td->pid);
90 td->terminate = 1;
91 td->o.start_delay = 0;
92
93 /*
94 * if the thread is running, just let it exit
95 */
96 if (td->runstate < TD_RUNNING)
97 kill(td->pid, SIGQUIT);
98 else {
99 struct ioengine_ops *ops = td->io_ops;
100
101 if (ops && (ops->flags & FIO_SIGQUIT))
102 kill(td->pid, SIGQUIT);
103 }
104 }
105 }
106}
107
108static void status_timer_arm(void)
109{
110 itimer.it_value.tv_sec = 0;
111 itimer.it_value.tv_usec = DISK_UTIL_MSEC * 1000;
112 setitimer(ITIMER_REAL, &itimer, NULL);
113}
114
115static void sig_alrm(int fio_unused sig)
116{
117 if (threads) {
118 update_io_ticks();
119 print_thread_status();
120 status_timer_arm();
121 }
122}
123
124/*
125 * Happens on thread runs with ctrl-c, ignore our own SIGQUIT
126 */
127static void sig_quit(int sig)
128{
129}
130
131static void sig_int(int sig)
132{
133 if (threads) {
134 printf("\nfio: terminating on signal %d\n", sig);
135 fflush(stdout);
136 terminate_threads(TERMINATE_ALL);
137 }
138}
139
140static void sig_ill(int fio_unused sig)
141{
142 if (!threads)
143 return;
144
145 log_err("fio: illegal instruction. your cpu does not support "
146 "the sse4.2 instruction for crc32c\n");
147 terminate_threads(TERMINATE_ALL);
148 exit(4);
149}
150
151static void set_sig_handlers(void)
152{
153 struct sigaction act;
154
155 memset(&act, 0, sizeof(act));
156 act.sa_handler = sig_alrm;
157 act.sa_flags = SA_RESTART;
158 sigaction(SIGALRM, &act, NULL);
159
160 memset(&act, 0, sizeof(act));
161 act.sa_handler = sig_int;
162 act.sa_flags = SA_RESTART;
163 sigaction(SIGINT, &act, NULL);
164
165 memset(&act, 0, sizeof(act));
166 act.sa_handler = sig_ill;
167 act.sa_flags = SA_RESTART;
168 sigaction(SIGILL, &act, NULL);
169
170 memset(&act, 0, sizeof(act));
171 act.sa_handler = sig_quit;
172 act.sa_flags = SA_RESTART;
173 sigaction(SIGQUIT, &act, NULL);
174}
175
176/*
177 * Check if we are above the minimum rate given.
178 */
179static int __check_min_rate(struct thread_data *td, struct timeval *now,
180 enum td_ddir ddir)
181{
182 unsigned long long bytes = 0;
183 unsigned long iops = 0;
184 unsigned long spent;
185 unsigned long rate;
186 unsigned int ratemin = 0;
187 unsigned int rate_iops = 0;
188 unsigned int rate_iops_min = 0;
189
190 if (!td->o.ratemin[ddir] && !td->o.rate_iops_min[ddir])
191 return 0;
192
193 /*
194 * allow a 2 second settle period in the beginning
195 */
196 if (mtime_since(&td->start, now) < 2000)
197 return 0;
198
199 iops += td->io_blocks[ddir];
200 bytes += td->this_io_bytes[ddir];
201 ratemin += td->o.ratemin[ddir];
202 rate_iops += td->o.rate_iops[ddir];
203 rate_iops_min += td->o.rate_iops_min[ddir];
204
205 /*
206 * if rate blocks is set, sample is running
207 */
208 if (td->rate_bytes[ddir] || td->rate_blocks[ddir]) {
209 spent = mtime_since(&td->lastrate[ddir], now);
210 if (spent < td->o.ratecycle)
211 return 0;
212
213 if (td->o.rate[ddir]) {
214 /*
215 * check bandwidth specified rate
216 */
217 if (bytes < td->rate_bytes[ddir]) {
218 log_err("%s: min rate %u not met\n", td->o.name,
219 ratemin);
220 return 1;
221 } else {
222 rate = ((bytes - td->rate_bytes[ddir]) * 1000) / spent;
223 if (rate < ratemin ||
224 bytes < td->rate_bytes[ddir]) {
225 log_err("%s: min rate %u not met, got"
226 " %luKB/sec\n", td->o.name,
227 ratemin, rate);
228 return 1;
229 }
230 }
231 } else {
232 /*
233 * checks iops specified rate
234 */
235 if (iops < rate_iops) {
236 log_err("%s: min iops rate %u not met\n",
237 td->o.name, rate_iops);
238 return 1;
239 } else {
240 rate = ((iops - td->rate_blocks[ddir]) * 1000) / spent;
241 if (rate < rate_iops_min ||
242 iops < td->rate_blocks[ddir]) {
243 log_err("%s: min iops rate %u not met,"
244 " got %lu\n", td->o.name,
245 rate_iops_min, rate);
246 }
247 }
248 }
249 }
250
251 td->rate_bytes[ddir] = bytes;
252 td->rate_blocks[ddir] = iops;
253 memcpy(&td->lastrate[ddir], now, sizeof(*now));
254 return 0;
255}
256
257static int check_min_rate(struct thread_data *td, struct timeval *now,
258 unsigned long *bytes_done)
259{
260 int ret = 0;
261
262 if (bytes_done[0])
263 ret |= __check_min_rate(td, now, 0);
264 if (bytes_done[1])
265 ret |= __check_min_rate(td, now, 1);
266
267 return ret;
268}
269
270static inline int runtime_exceeded(struct thread_data *td, struct timeval *t)
271{
272 if (!td->o.timeout)
273 return 0;
274 if (mtime_since(&td->epoch, t) >= td->o.timeout * 1000)
275 return 1;
276
277 return 0;
278}
279
280/*
281 * When job exits, we can cancel the in-flight IO if we are using async
282 * io. Attempt to do so.
283 */
284static void cleanup_pending_aio(struct thread_data *td)
285{
286 struct flist_head *entry, *n;
287 struct io_u *io_u;
288 int r;
289
290 /*
291 * get immediately available events, if any
292 */
293 r = io_u_queued_complete(td, 0, NULL);
294 if (r < 0)
295 return;
296
297 /*
298 * now cancel remaining active events
299 */
300 if (td->io_ops->cancel) {
301 flist_for_each_safe(entry, n, &td->io_u_busylist) {
302 io_u = flist_entry(entry, struct io_u, list);
303
304 /*
305 * if the io_u isn't in flight, then that generally
306 * means someone leaked an io_u. complain but fix
307 * it up, so we don't stall here.
308 */
309 if ((io_u->flags & IO_U_F_FLIGHT) == 0) {
310 log_err("fio: non-busy IO on busy list\n");
311 put_io_u(td, io_u);
312 } else {
313 r = td->io_ops->cancel(td, io_u);
314 if (!r)
315 put_io_u(td, io_u);
316 }
317 }
318 }
319
320 if (td->cur_depth)
321 r = io_u_queued_complete(td, td->cur_depth, NULL);
322}
323
324/*
325 * Helper to handle the final sync of a file. Works just like the normal
326 * io path, just does everything sync.
327 */
328static int fio_io_sync(struct thread_data *td, struct fio_file *f)
329{
330 struct io_u *io_u = __get_io_u(td);
331 int ret;
332
333 if (!io_u)
334 return 1;
335
336 io_u->ddir = DDIR_SYNC;
337 io_u->file = f;
338
339 if (td_io_prep(td, io_u)) {
340 put_io_u(td, io_u);
341 return 1;
342 }
343
344requeue:
345 ret = td_io_queue(td, io_u);
346 if (ret < 0) {
347 td_verror(td, io_u->error, "td_io_queue");
348 put_io_u(td, io_u);
349 return 1;
350 } else if (ret == FIO_Q_QUEUED) {
351 if (io_u_queued_complete(td, 1, NULL) < 0)
352 return 1;
353 } else if (ret == FIO_Q_COMPLETED) {
354 if (io_u->error) {
355 td_verror(td, io_u->error, "td_io_queue");
356 return 1;
357 }
358
359 if (io_u_sync_complete(td, io_u, NULL) < 0)
360 return 1;
361 } else if (ret == FIO_Q_BUSY) {
362 if (td_io_commit(td))
363 return 1;
364 goto requeue;
365 }
366
367 return 0;
368}
369
370static inline void update_tv_cache(struct thread_data *td)
371{
372 if ((++td->tv_cache_nr & td->tv_cache_mask) == td->tv_cache_mask)
373 fio_gettime(&td->tv_cache, NULL);
374}
375
376static int break_on_this_error(struct thread_data *td, int *retptr)
377{
378 int ret = *retptr;
379
380 if (ret < 0 || td->error) {
381 int err;
382
383 if (!td->o.continue_on_error)
384 return 1;
385
386 if (ret < 0)
387 err = -ret;
388 else
389 err = td->error;
390
391 if (td_non_fatal_error(err)) {
392 /*
393 * Continue with the I/Os in case of
394 * a non fatal error.
395 */
396 update_error_count(td, err);
397 td_clear_error(td);
398 *retptr = 0;
399 return 0;
400 } else if (td->o.fill_device && err == ENOSPC) {
401 /*
402 * We expect to hit this error if
403 * fill_device option is set.
404 */
405 td_clear_error(td);
406 td->terminate = 1;
407 return 1;
408 } else {
409 /*
410 * Stop the I/O in case of a fatal
411 * error.
412 */
413 update_error_count(td, err);
414 return 1;
415 }
416 }
417
418 return 0;
419}
420
421/*
422 * The main verify engine. Runs over the writes we previously submitted,
423 * reads the blocks back in, and checks the crc/md5 of the data.
424 */
425static void do_verify(struct thread_data *td)
426{
427 struct fio_file *f;
428 struct io_u *io_u;
429 int ret, min_events;
430 unsigned int i;
431
432 /*
433 * sync io first and invalidate cache, to make sure we really
434 * read from disk.
435 */
436 for_each_file(td, f, i) {
437 if (!fio_file_open(f))
438 continue;
439 if (fio_io_sync(td, f))
440 break;
441 if (file_invalidate_cache(td, f))
442 break;
443 }
444
445 if (td->error)
446 return;
447
448 td_set_runstate(td, TD_VERIFYING);
449
450 io_u = NULL;
451 while (!td->terminate) {
452 int ret2, full;
453
454 update_tv_cache(td);
455
456 if (runtime_exceeded(td, &td->tv_cache)) {
457 td->terminate = 1;
458 break;
459 }
460
461 io_u = __get_io_u(td);
462 if (!io_u)
463 break;
464
465 if (get_next_verify(td, io_u)) {
466 put_io_u(td, io_u);
467 break;
468 }
469
470 if (td_io_prep(td, io_u)) {
471 put_io_u(td, io_u);
472 break;
473 }
474
475 if (td->o.verify_async)
476 io_u->end_io = verify_io_u_async;
477 else
478 io_u->end_io = verify_io_u;
479
480 ret = td_io_queue(td, io_u);
481 switch (ret) {
482 case FIO_Q_COMPLETED:
483 if (io_u->error) {
484 ret = -io_u->error;
485 clear_io_u(td, io_u);
486 } else if (io_u->resid) {
487 int bytes = io_u->xfer_buflen - io_u->resid;
488 struct fio_file *f = io_u->file;
489
490 /*
491 * zero read, fail
492 */
493 if (!bytes) {
494 td_verror(td, EIO, "full resid");
495 put_io_u(td, io_u);
496 break;
497 }
498
499 io_u->xfer_buflen = io_u->resid;
500 io_u->xfer_buf += bytes;
501 io_u->offset += bytes;
502
503 td->ts.short_io_u[io_u->ddir]++;
504
505 if (io_u->offset == f->real_file_size)
506 goto sync_done;
507
508 requeue_io_u(td, &io_u);
509 } else {
510sync_done:
511 ret = io_u_sync_complete(td, io_u, NULL);
512 if (ret < 0)
513 break;
514 }
515 continue;
516 case FIO_Q_QUEUED:
517 break;
518 case FIO_Q_BUSY:
519 requeue_io_u(td, &io_u);
520 ret2 = td_io_commit(td);
521 if (ret2 < 0)
522 ret = ret2;
523 break;
524 default:
525 assert(ret < 0);
526 td_verror(td, -ret, "td_io_queue");
527 break;
528 }
529
530 if (break_on_this_error(td, &ret))
531 break;
532
533 /*
534 * if we can queue more, do so. but check if there are
535 * completed io_u's first.
536 */
537 full = queue_full(td) || ret == FIO_Q_BUSY;
538 if (full || !td->o.iodepth_batch_complete) {
539 min_events = td->o.iodepth_batch_complete;
540 if (full && !min_events)
541 min_events = 1;
542
543 do {
544 /*
545 * Reap required number of io units, if any,
546 * and do the verification on them through
547 * the callback handler
548 */
549 if (io_u_queued_complete(td, min_events, NULL) < 0) {
550 ret = -1;
551 break;
552 }
553 } while (full && (td->cur_depth > td->o.iodepth_low));
554 }
555 if (ret < 0)
556 break;
557 }
558
559 if (!td->error) {
560 min_events = td->cur_depth;
561
562 if (min_events)
563 ret = io_u_queued_complete(td, min_events, NULL);
564 } else
565 cleanup_pending_aio(td);
566
567 td_set_runstate(td, TD_RUNNING);
568}
569
570/*
571 * Main IO worker function. It retrieves io_u's to process and queues
572 * and reaps them, checking for rate and errors along the way.
573 */
574static void do_io(struct thread_data *td)
575{
576 unsigned int i;
577 int ret = 0;
578
579 if (in_ramp_time(td))
580 td_set_runstate(td, TD_RAMP);
581 else
582 td_set_runstate(td, TD_RUNNING);
583
584 while ((td->this_io_bytes[0] + td->this_io_bytes[1]) < td->o.size) {
585 struct timeval comp_time;
586 unsigned long bytes_done[2] = { 0, 0 };
587 int min_evts = 0;
588 struct io_u *io_u;
589 int ret2, full;
590
591 if (td->terminate)
592 break;
593
594 update_tv_cache(td);
595
596 if (runtime_exceeded(td, &td->tv_cache)) {
597 td->terminate = 1;
598 break;
599 }
600
601 io_u = get_io_u(td);
602 if (!io_u)
603 break;
604
605 /*
606 * Add verification end_io handler, if asked to verify
607 * a previously written file.
608 */
609 if (td->o.verify != VERIFY_NONE && io_u->ddir == DDIR_READ &&
610 !td_rw(td)) {
611 if (td->o.verify_async)
612 io_u->end_io = verify_io_u_async;
613 else
614 io_u->end_io = verify_io_u;
615 td_set_runstate(td, TD_VERIFYING);
616 } else if (in_ramp_time(td))
617 td_set_runstate(td, TD_RAMP);
618 else
619 td_set_runstate(td, TD_RUNNING);
620
621 ret = td_io_queue(td, io_u);
622 switch (ret) {
623 case FIO_Q_COMPLETED:
624 if (io_u->error) {
625 ret = -io_u->error;
626 clear_io_u(td, io_u);
627 } else if (io_u->resid) {
628 int bytes = io_u->xfer_buflen - io_u->resid;
629 struct fio_file *f = io_u->file;
630
631 /*
632 * zero read, fail
633 */
634 if (!bytes) {
635 td_verror(td, EIO, "full resid");
636 put_io_u(td, io_u);
637 break;
638 }
639
640 io_u->xfer_buflen = io_u->resid;
641 io_u->xfer_buf += bytes;
642 io_u->offset += bytes;
643
644 td->ts.short_io_u[io_u->ddir]++;
645
646 if (io_u->offset == f->real_file_size)
647 goto sync_done;
648
649 requeue_io_u(td, &io_u);
650 } else {
651sync_done:
652 if (__should_check_rate(td, 0) ||
653 __should_check_rate(td, 1))
654 fio_gettime(&comp_time, NULL);
655
656 ret = io_u_sync_complete(td, io_u, bytes_done);
657 if (ret < 0)
658 break;
659 }
660 break;
661 case FIO_Q_QUEUED:
662 /*
663 * if the engine doesn't have a commit hook,
664 * the io_u is really queued. if it does have such
665 * a hook, it has to call io_u_queued() itself.
666 */
667 if (td->io_ops->commit == NULL)
668 io_u_queued(td, io_u);
669 break;
670 case FIO_Q_BUSY:
671 requeue_io_u(td, &io_u);
672 ret2 = td_io_commit(td);
673 if (ret2 < 0)
674 ret = ret2;
675 break;
676 default:
677 assert(ret < 0);
678 put_io_u(td, io_u);
679 break;
680 }
681
682 if (break_on_this_error(td, &ret))
683 break;
684
685 /*
686 * See if we need to complete some commands
687 */
688 full = queue_full(td) || ret == FIO_Q_BUSY;
689 if (full || !td->o.iodepth_batch_complete) {
690 min_evts = td->o.iodepth_batch_complete;
691 if (full && !min_evts)
692 min_evts = 1;
693
694 if (__should_check_rate(td, 0) ||
695 __should_check_rate(td, 1))
696 fio_gettime(&comp_time, NULL);
697
698 do {
699 ret = io_u_queued_complete(td, min_evts, bytes_done);
700 if (ret < 0)
701 break;
702
703 } while (full && (td->cur_depth > td->o.iodepth_low));
704 }
705
706 if (ret < 0)
707 break;
708 if (!(bytes_done[0] + bytes_done[1]))
709 continue;
710
711 if (!in_ramp_time(td) && should_check_rate(td, bytes_done)) {
712 if (check_min_rate(td, &comp_time, bytes_done)) {
713 if (exitall_on_terminate)
714 terminate_threads(td->groupid);
715 td_verror(td, EIO, "check_min_rate");
716 break;
717 }
718 }
719
720 if (td->o.thinktime) {
721 unsigned long long b;
722
723 b = td->io_blocks[0] + td->io_blocks[1];
724 if (!(b % td->o.thinktime_blocks)) {
725 int left;
726
727 if (td->o.thinktime_spin)
728 usec_spin(td->o.thinktime_spin);
729
730 left = td->o.thinktime - td->o.thinktime_spin;
731 if (left)
732 usec_sleep(td, left);
733 }
734 }
735 }
736
737 if (td->o.fill_device && td->error == ENOSPC) {
738 td->error = 0;
739 td->terminate = 1;
740 }
741 if (!td->error) {
742 struct fio_file *f;
743
744 i = td->cur_depth;
745 if (i)
746 ret = io_u_queued_complete(td, i, NULL);
747
748 if (should_fsync(td) && td->o.end_fsync) {
749 td_set_runstate(td, TD_FSYNCING);
750
751 for_each_file(td, f, i) {
752 if (!fio_file_open(f))
753 continue;
754 fio_io_sync(td, f);
755 }
756 }
757 } else
758 cleanup_pending_aio(td);
759
760 /*
761 * stop job if we failed doing any IO
762 */
763 if ((td->this_io_bytes[0] + td->this_io_bytes[1]) == 0)
764 td->done = 1;
765}
766
767static void cleanup_io_u(struct thread_data *td)
768{
769 struct flist_head *entry, *n;
770 struct io_u *io_u;
771
772 flist_for_each_safe(entry, n, &td->io_u_freelist) {
773 io_u = flist_entry(entry, struct io_u, list);
774
775 flist_del(&io_u->list);
776 free(io_u);
777 }
778
779 free_io_mem(td);
780}
781
782static int init_io_u(struct thread_data *td)
783{
784 struct io_u *io_u;
785 unsigned int max_bs;
786 int cl_align, i, max_units;
787 char *p;
788
789 max_units = td->o.iodepth;
790 max_bs = max(td->o.max_bs[DDIR_READ], td->o.max_bs[DDIR_WRITE]);
791 td->orig_buffer_size = (unsigned long long) max_bs
792 * (unsigned long long) max_units;
793
794 if (td->o.mem_type == MEM_SHMHUGE || td->o.mem_type == MEM_MMAPHUGE) {
795 unsigned long bs;
796
797 bs = td->orig_buffer_size + td->o.hugepage_size - 1;
798 td->orig_buffer_size = bs & ~(td->o.hugepage_size - 1);
799 }
800
801 if (td->orig_buffer_size != (size_t) td->orig_buffer_size) {
802 log_err("fio: IO memory too large. Reduce max_bs or iodepth\n");
803 return 1;
804 }
805
806 if (allocate_io_mem(td))
807 return 1;
808
809 if (td->o.odirect || td->o.mem_align)
810 p = PAGE_ALIGN(td->orig_buffer) + td->o.mem_align;
811 else
812 p = td->orig_buffer;
813
814 cl_align = os_cache_line_size();
815
816 for (i = 0; i < max_units; i++) {
817 void *ptr;
818
819 if (td->terminate)
820 return 1;
821
822 if (posix_memalign(&ptr, cl_align, sizeof(*io_u))) {
823 log_err("fio: posix_memalign=%s\n", strerror(errno));
824 break;
825 }
826
827 io_u = ptr;
828 memset(io_u, 0, sizeof(*io_u));
829 INIT_FLIST_HEAD(&io_u->list);
830 dprint(FD_MEM, "io_u alloc %p, index %u\n", io_u, i);
831
832 if (!(td->io_ops->flags & FIO_NOIO)) {
833 io_u->buf = p + max_bs * i;
834 dprint(FD_MEM, "io_u %p, mem %p\n", io_u, io_u->buf);
835
836 if (td_write(td) && !td->o.refill_buffers)
837 io_u_fill_buffer(td, io_u, max_bs);
838 }
839
840 io_u->index = i;
841 io_u->flags = IO_U_F_FREE;
842 flist_add(&io_u->list, &td->io_u_freelist);
843 }
844
845 return 0;
846}
847
848static int switch_ioscheduler(struct thread_data *td)
849{
850 char tmp[256], tmp2[128];
851 FILE *f;
852 int ret;
853
854 if (td->io_ops->flags & FIO_DISKLESSIO)
855 return 0;
856
857 sprintf(tmp, "%s/queue/scheduler", td->sysfs_root);
858
859 f = fopen(tmp, "r+");
860 if (!f) {
861 if (errno == ENOENT) {
862 log_err("fio: os or kernel doesn't support IO scheduler"
863 " switching\n");
864 return 0;
865 }
866 td_verror(td, errno, "fopen iosched");
867 return 1;
868 }
869
870 /*
871 * Set io scheduler.
872 */
873 ret = fwrite(td->o.ioscheduler, strlen(td->o.ioscheduler), 1, f);
874 if (ferror(f) || ret != 1) {
875 td_verror(td, errno, "fwrite");
876 fclose(f);
877 return 1;
878 }
879
880 rewind(f);
881
882 /*
883 * Read back and check that the selected scheduler is now the default.
884 */
885 ret = fread(tmp, 1, sizeof(tmp), f);
886 if (ferror(f) || ret < 0) {
887 td_verror(td, errno, "fread");
888 fclose(f);
889 return 1;
890 }
891
892 sprintf(tmp2, "[%s]", td->o.ioscheduler);
893 if (!strstr(tmp, tmp2)) {
894 log_err("fio: io scheduler %s not found\n", td->o.ioscheduler);
895 td_verror(td, EINVAL, "iosched_switch");
896 fclose(f);
897 return 1;
898 }
899
900 fclose(f);
901 return 0;
902}
903
904static int keep_running(struct thread_data *td)
905{
906 unsigned long long io_done;
907
908 if (td->done)
909 return 0;
910 if (td->o.time_based)
911 return 1;
912 if (td->o.loops) {
913 td->o.loops--;
914 return 1;
915 }
916
917 io_done = td->io_bytes[DDIR_READ] + td->io_bytes[DDIR_WRITE]
918 + td->io_skip_bytes;
919 if (io_done < td->o.size)
920 return 1;
921
922 return 0;
923}
924
925static void reset_io_counters(struct thread_data *td)
926{
927 td->ts.stat_io_bytes[0] = td->ts.stat_io_bytes[1] = 0;
928 td->this_io_bytes[0] = td->this_io_bytes[1] = 0;
929 td->zone_bytes = 0;
930 td->rate_bytes[0] = td->rate_bytes[1] = 0;
931 td->rate_blocks[0] = td->rate_blocks[1] = 0;
932
933 td->last_was_sync = 0;
934
935 /*
936 * reset file done count if we are to start over
937 */
938 if (td->o.time_based || td->o.loops)
939 td->nr_done_files = 0;
940
941 /*
942 * Set the same seed to get repeatable runs
943 */
944 td_fill_rand_seeds(td);
945}
946
947void reset_all_stats(struct thread_data *td)
948{
949 struct timeval tv;
950 int i;
951
952 reset_io_counters(td);
953
954 for (i = 0; i < 2; i++) {
955 td->io_bytes[i] = 0;
956 td->io_blocks[i] = 0;
957 td->io_issues[i] = 0;
958 td->ts.total_io_u[i] = 0;
959 }
960
961 fio_gettime(&tv, NULL);
962 memcpy(&td->epoch, &tv, sizeof(tv));
963 memcpy(&td->start, &tv, sizeof(tv));
964}
965
966static void clear_io_state(struct thread_data *td)
967{
968 struct fio_file *f;
969 unsigned int i;
970
971 reset_io_counters(td);
972
973 close_files(td);
974 for_each_file(td, f, i)
975 fio_file_clear_done(f);
976}
977
978static int exec_string(const char *string)
979{
980 int ret, newlen = strlen(string) + 1 + 8;
981 char *str;
982
983 str = malloc(newlen);
984 sprintf(str, "sh -c %s", string);
985
986 ret = system(str);
987 if (ret == -1)
988 log_err("fio: exec of cmd <%s> failed\n", str);
989
990 free(str);
991 return ret;
992}
993
994/*
995 * Entry point for the thread based jobs. The process based jobs end up
996 * here as well, after a little setup.
997 */
998static void *thread_main(void *data)
999{
1000 unsigned long long runtime[2], elapsed;
1001 struct thread_data *td = data;
1002 pthread_condattr_t attr;
1003 int clear_state;
1004
1005 if (!td->o.use_thread)
1006 setsid();
1007
1008 td->pid = getpid();
1009
1010 dprint(FD_PROCESS, "jobs pid=%d started\n", (int) td->pid);
1011
1012 INIT_FLIST_HEAD(&td->io_u_freelist);
1013 INIT_FLIST_HEAD(&td->io_u_busylist);
1014 INIT_FLIST_HEAD(&td->io_u_requeues);
1015 INIT_FLIST_HEAD(&td->io_log_list);
1016 INIT_FLIST_HEAD(&td->io_hist_list);
1017 INIT_FLIST_HEAD(&td->verify_list);
1018 pthread_mutex_init(&td->io_u_lock, NULL);
1019 td->io_hist_tree = RB_ROOT;
1020
1021 pthread_condattr_init(&attr);
1022 pthread_cond_init(&td->verify_cond, &attr);
1023 pthread_cond_init(&td->free_cond, &attr);
1024
1025 td_set_runstate(td, TD_INITIALIZED);
1026 dprint(FD_MUTEX, "up startup_mutex\n");
1027 fio_mutex_up(startup_mutex);
1028 dprint(FD_MUTEX, "wait on td->mutex\n");
1029 fio_mutex_down(td->mutex);
1030 dprint(FD_MUTEX, "done waiting on td->mutex\n");
1031
1032 /*
1033 * the ->mutex mutex is now no longer used, close it to avoid
1034 * eating a file descriptor
1035 */
1036 fio_mutex_remove(td->mutex);
1037
1038 /*
1039 * May alter parameters that init_io_u() will use, so we need to
1040 * do this first.
1041 */
1042 if (init_iolog(td))
1043 goto err;
1044
1045 if (init_io_u(td))
1046 goto err;
1047
1048 if (td->o.verify_async && verify_async_init(td))
1049 goto err;
1050
1051 if (td->o.cpumask_set && fio_setaffinity(td->pid, td->o.cpumask) == -1) {
1052 td_verror(td, errno, "cpu_set_affinity");
1053 goto err;
1054 }
1055
1056 /*
1057 * If we have a gettimeofday() thread, make sure we exclude that
1058 * thread from this job
1059 */
1060 if (td->o.gtod_cpu) {
1061 fio_cpu_clear(&td->o.cpumask, td->o.gtod_cpu);
1062 if (fio_setaffinity(td->pid, td->o.cpumask) == -1) {
1063 td_verror(td, errno, "cpu_set_affinity");
1064 goto err;
1065 }
1066 }
1067
1068 if (td->ioprio_set) {
1069 if (ioprio_set(IOPRIO_WHO_PROCESS, 0, td->ioprio) == -1) {
1070 td_verror(td, errno, "ioprio_set");
1071 goto err;
1072 }
1073 }
1074
1075 if (nice(td->o.nice) == -1) {
1076 td_verror(td, errno, "nice");
1077 goto err;
1078 }
1079
1080 if (td->o.ioscheduler && switch_ioscheduler(td))
1081 goto err;
1082
1083 if (!td->o.create_serialize && setup_files(td))
1084 goto err;
1085
1086 if (td_io_init(td))
1087 goto err;
1088
1089 if (init_random_map(td))
1090 goto err;
1091
1092 if (td->o.exec_prerun) {
1093 if (exec_string(td->o.exec_prerun))
1094 goto err;
1095 }
1096
1097 if (td->o.pre_read) {
1098 if (pre_read_files(td) < 0)
1099 goto err;
1100 }
1101
1102 fio_gettime(&td->epoch, NULL);
1103 getrusage(RUSAGE_SELF, &td->ts.ru_start);
1104
1105 runtime[0] = runtime[1] = 0;
1106 clear_state = 0;
1107 while (keep_running(td)) {
1108 fio_gettime(&td->start, NULL);
1109 memcpy(&td->ts.stat_sample_time[0], &td->start,
1110 sizeof(td->start));
1111 memcpy(&td->ts.stat_sample_time[1], &td->start,
1112 sizeof(td->start));
1113 memcpy(&td->tv_cache, &td->start, sizeof(td->start));
1114
1115 if (td->o.ratemin[0] || td->o.ratemin[1])
1116 memcpy(&td->lastrate, &td->ts.stat_sample_time,
1117 sizeof(td->lastrate));
1118
1119 if (clear_state)
1120 clear_io_state(td);
1121
1122 prune_io_piece_log(td);
1123
1124 do_io(td);
1125
1126 clear_state = 1;
1127
1128 if (td_read(td) && td->io_bytes[DDIR_READ]) {
1129 elapsed = utime_since_now(&td->start);
1130 runtime[DDIR_READ] += elapsed;
1131 }
1132 if (td_write(td) && td->io_bytes[DDIR_WRITE]) {
1133 elapsed = utime_since_now(&td->start);
1134 runtime[DDIR_WRITE] += elapsed;
1135 }
1136
1137 if (td->error || td->terminate)
1138 break;
1139
1140 if (!td->o.do_verify ||
1141 td->o.verify == VERIFY_NONE ||
1142 (td->io_ops->flags & FIO_UNIDIR))
1143 continue;
1144
1145 clear_io_state(td);
1146
1147 fio_gettime(&td->start, NULL);
1148
1149 do_verify(td);
1150
1151 runtime[DDIR_READ] += utime_since_now(&td->start);
1152
1153 if (td->error || td->terminate)
1154 break;
1155 }
1156
1157 update_rusage_stat(td);
1158 td->ts.runtime[0] = (runtime[0] + 999) / 1000;
1159 td->ts.runtime[1] = (runtime[1] + 999) / 1000;
1160 td->ts.total_run_time = mtime_since_now(&td->epoch);
1161 td->ts.io_bytes[0] = td->io_bytes[0];
1162 td->ts.io_bytes[1] = td->io_bytes[1];
1163
1164 fio_mutex_down(writeout_mutex);
1165 if (td->ts.bw_log) {
1166 if (td->o.bw_log_file) {
1167 finish_log_named(td, td->ts.bw_log,
1168 td->o.bw_log_file, "bw");
1169 } else
1170 finish_log(td, td->ts.bw_log, "bw");
1171 }
1172 if (td->ts.slat_log) {
1173 if (td->o.lat_log_file) {
1174 finish_log_named(td, td->ts.slat_log,
1175 td->o.lat_log_file, "slat");
1176 } else
1177 finish_log(td, td->ts.slat_log, "slat");
1178 }
1179 if (td->ts.clat_log) {
1180 if (td->o.lat_log_file) {
1181 finish_log_named(td, td->ts.clat_log,
1182 td->o.lat_log_file, "clat");
1183 } else
1184 finish_log(td, td->ts.clat_log, "clat");
1185 }
1186 fio_mutex_up(writeout_mutex);
1187 if (td->o.exec_postrun)
1188 exec_string(td->o.exec_postrun);
1189
1190 if (exitall_on_terminate)
1191 terminate_threads(td->groupid);
1192
1193err:
1194 if (td->error)
1195 printf("fio: pid=%d, err=%d/%s\n", (int) td->pid, td->error,
1196 td->verror);
1197 close_and_free_files(td);
1198 close_ioengine(td);
1199 cleanup_io_u(td);
1200
1201 if (td->o.cpumask_set) {
1202 int ret = fio_cpuset_exit(&td->o.cpumask);
1203
1204 td_verror(td, ret, "fio_cpuset_exit");
1205 }
1206
1207 if (td->o.verify_async)
1208 verify_async_exit(td);
1209
1210 /*
1211 * do this very late, it will log file closing as well
1212 */
1213 if (td->o.write_iolog_file)
1214 write_iolog_close(td);
1215
1216 options_mem_free(td);
1217 td_set_runstate(td, TD_EXITED);
1218 return (void *) (unsigned long) td->error;
1219}
1220
1221/*
1222 * We cannot pass the td data into a forked process, so attach the td and
1223 * pass it to the thread worker.
1224 */
1225static int fork_main(int shmid, int offset)
1226{
1227 struct thread_data *td;
1228 void *data, *ret;
1229
1230 data = shmat(shmid, NULL, 0);
1231 if (data == (void *) -1) {
1232 int __err = errno;
1233
1234 perror("shmat");
1235 return __err;
1236 }
1237
1238 td = data + offset * sizeof(struct thread_data);
1239 ret = thread_main(td);
1240 shmdt(data);
1241 return (int) (unsigned long) ret;
1242}
1243
1244/*
1245 * Run over the job map and reap the threads that have exited, if any.
1246 */
1247static void reap_threads(int *nr_running, int *t_rate, int *m_rate)
1248{
1249 struct thread_data *td;
1250 int i, cputhreads, realthreads, pending, status, ret;
1251
1252 /*
1253 * reap exited threads (TD_EXITED -> TD_REAPED)
1254 */
1255 realthreads = pending = cputhreads = 0;
1256 for_each_td(td, i) {
1257 int flags = 0;
1258
1259 /*
1260 * ->io_ops is NULL for a thread that has closed its
1261 * io engine
1262 */
1263 if (td->io_ops && !strcmp(td->io_ops->name, "cpuio"))
1264 cputhreads++;
1265 else
1266 realthreads++;
1267
1268 if (!td->pid) {
1269 pending++;
1270 continue;
1271 }
1272 if (td->runstate == TD_REAPED)
1273 continue;
1274 if (td->o.use_thread) {
1275 if (td->runstate == TD_EXITED) {
1276 td_set_runstate(td, TD_REAPED);
1277 goto reaped;
1278 }
1279 continue;
1280 }
1281
1282 flags = WNOHANG;
1283 if (td->runstate == TD_EXITED)
1284 flags = 0;
1285
1286 /*
1287 * check if someone quit or got killed in an unusual way
1288 */
1289 ret = waitpid(td->pid, &status, flags);
1290 if (ret < 0) {
1291 if (errno == ECHILD) {
1292 log_err("fio: pid=%d disappeared %d\n",
1293 (int) td->pid, td->runstate);
1294 td_set_runstate(td, TD_REAPED);
1295 goto reaped;
1296 }
1297 perror("waitpid");
1298 } else if (ret == td->pid) {
1299 if (WIFSIGNALED(status)) {
1300 int sig = WTERMSIG(status);
1301
1302 if (sig != SIGQUIT)
1303 log_err("fio: pid=%d, got signal=%d\n",
1304 (int) td->pid, sig);
1305 td_set_runstate(td, TD_REAPED);
1306 goto reaped;
1307 }
1308 if (WIFEXITED(status)) {
1309 if (WEXITSTATUS(status) && !td->error)
1310 td->error = WEXITSTATUS(status);
1311
1312 td_set_runstate(td, TD_REAPED);
1313 goto reaped;
1314 }
1315 }
1316
1317 /*
1318 * thread is not dead, continue
1319 */
1320 pending++;
1321 continue;
1322reaped:
1323 (*nr_running)--;
1324 (*m_rate) -= (td->o.ratemin[0] + td->o.ratemin[1]);
1325 (*t_rate) -= (td->o.rate[0] + td->o.rate[1]);
1326 if (!td->pid)
1327 pending--;
1328
1329 if (td->error)
1330 exit_value++;
1331
1332 done_secs += mtime_since_now(&td->epoch) / 1000;
1333 }
1334
1335 if (*nr_running == cputhreads && !pending && realthreads)
1336 terminate_threads(TERMINATE_ALL);
1337}
1338
1339static void *gtod_thread_main(void *data)
1340{
1341 fio_mutex_up(startup_mutex);
1342
1343 /*
1344 * As long as we have jobs around, update the clock. It would be nice
1345 * to have some way of NOT hammering that CPU with gettimeofday(),
1346 * but I'm not sure what to use outside of a simple CPU nop to relax
1347 * it - we don't want to lose precision.
1348 */
1349 while (threads) {
1350 fio_gtod_update();
1351 nop;
1352 }
1353
1354 return NULL;
1355}
1356
1357static int fio_start_gtod_thread(void)
1358{
1359 int ret;
1360
1361 ret = pthread_create(&gtod_thread, NULL, gtod_thread_main, NULL);
1362 if (ret) {
1363 log_err("Can't create gtod thread: %s\n", strerror(ret));
1364 return 1;
1365 }
1366
1367 ret = pthread_detach(gtod_thread);
1368 if (ret) {
1369 log_err("Can't detatch gtod thread: %s\n", strerror(ret));
1370 return 1;
1371 }
1372
1373 dprint(FD_MUTEX, "wait on startup_mutex\n");
1374 fio_mutex_down(startup_mutex);
1375 dprint(FD_MUTEX, "done waiting on startup_mutex\n");
1376 return 0;
1377}
1378
1379/*
1380 * Main function for kicking off and reaping jobs, as needed.
1381 */
1382static void run_threads(void)
1383{
1384 struct thread_data *td;
1385 unsigned long spent;
1386 int i, todo, nr_running, m_rate, t_rate, nr_started;
1387
1388 if (fio_pin_memory())
1389 return;
1390
1391 if (fio_gtod_offload && fio_start_gtod_thread())
1392 return;
1393
1394 if (!terse_output) {
1395 printf("Starting ");
1396 if (nr_thread)
1397 printf("%d thread%s", nr_thread,
1398 nr_thread > 1 ? "s" : "");
1399 if (nr_process) {
1400 if (nr_thread)
1401 printf(" and ");
1402 printf("%d process%s", nr_process,
1403 nr_process > 1 ? "es" : "");
1404 }
1405 printf("\n");
1406 fflush(stdout);
1407 }
1408
1409 set_sig_handlers();
1410
1411 todo = thread_number;
1412 nr_running = 0;
1413 nr_started = 0;
1414 m_rate = t_rate = 0;
1415
1416 for_each_td(td, i) {
1417 print_status_init(td->thread_number - 1);
1418
1419 if (!td->o.create_serialize) {
1420 init_disk_util(td);
1421 continue;
1422 }
1423
1424 /*
1425 * do file setup here so it happens sequentially,
1426 * we don't want X number of threads getting their
1427 * client data interspersed on disk
1428 */
1429 if (setup_files(td)) {
1430 exit_value++;
1431 if (td->error)
1432 log_err("fio: pid=%d, err=%d/%s\n",
1433 (int) td->pid, td->error, td->verror);
1434 td_set_runstate(td, TD_REAPED);
1435 todo--;
1436 } else {
1437 struct fio_file *f;
1438 unsigned int i;
1439
1440 /*
1441 * for sharing to work, each job must always open
1442 * its own files. so close them, if we opened them
1443 * for creation
1444 */
1445 for_each_file(td, f, i) {
1446 if (fio_file_open(f))
1447 td_io_close_file(td, f);
1448 }
1449 }
1450
1451 init_disk_util(td);
1452 }
1453
1454 set_genesis_time();
1455
1456 while (todo) {
1457 struct thread_data *map[MAX_JOBS];
1458 struct timeval this_start;
1459 int this_jobs = 0, left;
1460
1461 /*
1462 * create threads (TD_NOT_CREATED -> TD_CREATED)
1463 */
1464 for_each_td(td, i) {
1465 if (td->runstate != TD_NOT_CREATED)
1466 continue;
1467
1468 /*
1469 * never got a chance to start, killed by other
1470 * thread for some reason
1471 */
1472 if (td->terminate) {
1473 todo--;
1474 continue;
1475 }
1476
1477 if (td->o.start_delay) {
1478 spent = mtime_since_genesis();
1479
1480 if (td->o.start_delay * 1000 > spent)
1481 continue;
1482 }
1483
1484 if (td->o.stonewall && (nr_started || nr_running)) {
1485 dprint(FD_PROCESS, "%s: stonewall wait\n",
1486 td->o.name);
1487 break;
1488 }
1489
1490 /*
1491 * Set state to created. Thread will transition
1492 * to TD_INITIALIZED when it's done setting up.
1493 */
1494 td_set_runstate(td, TD_CREATED);
1495 map[this_jobs++] = td;
1496 nr_started++;
1497
1498 if (td->o.use_thread) {
1499 int ret;
1500
1501 dprint(FD_PROCESS, "will pthread_create\n");
1502 ret = pthread_create(&td->thread, NULL,
1503 thread_main, td);
1504 if (ret) {
1505 log_err("pthread_create: %s\n",
1506 strerror(ret));
1507 nr_started--;
1508 break;
1509 }
1510 ret = pthread_detach(td->thread);
1511 if (ret)
1512 log_err("pthread_detach: %s",
1513 strerror(ret));
1514 } else {
1515 pid_t pid;
1516 dprint(FD_PROCESS, "will fork\n");
1517 pid = fork();
1518 if (!pid) {
1519 int ret = fork_main(shm_id, i);
1520
1521 _exit(ret);
1522 } else if (i == fio_debug_jobno)
1523 *fio_debug_jobp = pid;
1524 }
1525 dprint(FD_MUTEX, "wait on startup_mutex\n");
1526 if (fio_mutex_down_timeout(startup_mutex, 10)) {
1527 log_err("fio: job startup hung? exiting.\n");
1528 terminate_threads(TERMINATE_ALL);
1529 fio_abort = 1;
1530 nr_started--;
1531 break;
1532 }
1533 dprint(FD_MUTEX, "done waiting on startup_mutex\n");
1534 }
1535
1536 /*
1537 * Wait for the started threads to transition to
1538 * TD_INITIALIZED.
1539 */
1540 fio_gettime(&this_start, NULL);
1541 left = this_jobs;
1542 while (left && !fio_abort) {
1543 if (mtime_since_now(&this_start) > JOB_START_TIMEOUT)
1544 break;
1545
1546 usleep(100000);
1547
1548 for (i = 0; i < this_jobs; i++) {
1549 td = map[i];
1550 if (!td)
1551 continue;
1552 if (td->runstate == TD_INITIALIZED) {
1553 map[i] = NULL;
1554 left--;
1555 } else if (td->runstate >= TD_EXITED) {
1556 map[i] = NULL;
1557 left--;
1558 todo--;
1559 nr_running++; /* work-around... */
1560 }
1561 }
1562 }
1563
1564 if (left) {
1565 log_err("fio: %d jobs failed to start\n", left);
1566 for (i = 0; i < this_jobs; i++) {
1567 td = map[i];
1568 if (!td)
1569 continue;
1570 kill(td->pid, SIGTERM);
1571 }
1572 break;
1573 }
1574
1575 /*
1576 * start created threads (TD_INITIALIZED -> TD_RUNNING).
1577 */
1578 for_each_td(td, i) {
1579 if (td->runstate != TD_INITIALIZED)
1580 continue;
1581
1582 if (in_ramp_time(td))
1583 td_set_runstate(td, TD_RAMP);
1584 else
1585 td_set_runstate(td, TD_RUNNING);
1586 nr_running++;
1587 nr_started--;
1588 m_rate += td->o.ratemin[0] + td->o.ratemin[1];
1589 t_rate += td->o.rate[0] + td->o.rate[1];
1590 todo--;
1591 fio_mutex_up(td->mutex);
1592 }
1593
1594 reap_threads(&nr_running, &t_rate, &m_rate);
1595
1596 if (todo)
1597 usleep(100000);
1598 }
1599
1600 while (nr_running) {
1601 reap_threads(&nr_running, &t_rate, &m_rate);
1602 usleep(10000);
1603 }
1604
1605 update_io_ticks();
1606 fio_unpin_memory();
1607}
1608
1609int main(int argc, char *argv[])
1610{
1611 long ps;
1612
1613 sinit();
1614
1615 /*
1616 * We need locale for number printing, if it isn't set then just
1617 * go with the US format.
1618 */
1619 if (!getenv("LC_NUMERIC"))
1620 setlocale(LC_NUMERIC, "en_US");
1621
1622 ps = sysconf(_SC_PAGESIZE);
1623 if (ps < 0) {
1624 log_err("Failed to get page size\n");
1625 return 1;
1626 }
1627
1628 page_size = ps;
1629 page_mask = ps - 1;
1630
1631 fio_keywords_init();
1632
1633 if (parse_options(argc, argv))
1634 return 1;
1635
1636 if (!thread_number)
1637 return 0;
1638
1639 if (write_bw_log) {
1640 setup_log(&agg_io_log[DDIR_READ]);
1641 setup_log(&agg_io_log[DDIR_WRITE]);
1642 }
1643
1644 startup_mutex = fio_mutex_init(0);
1645 writeout_mutex = fio_mutex_init(1);
1646
1647 set_genesis_time();
1648
1649 status_timer_arm();
1650
1651 run_threads();
1652
1653 if (!fio_abort) {
1654 show_run_stats();
1655 if (write_bw_log) {
1656 __finish_log(agg_io_log[DDIR_READ], "agg-read_bw.log");
1657 __finish_log(agg_io_log[DDIR_WRITE],
1658 "agg-write_bw.log");
1659 }
1660 }
1661
1662 fio_mutex_remove(startup_mutex);
1663 fio_mutex_remove(writeout_mutex);
1664 return exit_value;
1665}