773f10698c83433748e78791431dcbf5a78883bc
[fio.git] / fio.c
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
41 unsigned long page_mask;
42 unsigned long page_size;
43 #define ALIGN(buf)      \
44         (char *) (((unsigned long) (buf) + page_mask) & ~page_mask)
45
46 int groupid = 0;
47 int thread_number = 0;
48 int nr_process = 0;
49 int nr_thread = 0;
50 int shm_id = 0;
51 int temp_stall_ts;
52 unsigned long done_secs = 0;
53
54 static struct fio_mutex *startup_mutex;
55 static volatile int fio_abort;
56 static int exit_value;
57 static struct itimerval itimer;
58
59 struct io_log *agg_io_log[2];
60
61 #define TERMINATE_ALL           (-1)
62 #define JOB_START_TIMEOUT       (5 * 1000)
63
64 void td_set_runstate(struct thread_data *td, int runstate)
65 {
66         if (td->runstate == runstate)
67                 return;
68
69         dprint(FD_PROCESS, "pid=%d: runstate %d -> %d\n", (int) td->pid,
70                                                 td->runstate, runstate);
71         td->runstate = runstate;
72 }
73
74 static void terminate_threads(int group_id)
75 {
76         struct thread_data *td;
77         int i;
78
79         dprint(FD_PROCESS, "terminate group_id=%d\n", group_id);
80
81         for_each_td(td, i) {
82                 if (group_id == TERMINATE_ALL || groupid == td->groupid) {
83                         dprint(FD_PROCESS, "setting terminate on %s/%d\n",
84                                                 td->o.name, (int) td->pid);
85                         td->terminate = 1;
86                         td->o.start_delay = 0;
87
88                         /*
89                          * if the thread is running, just let it exit
90                          */
91                         if (td->runstate < TD_RUNNING)
92                                 kill(td->pid, SIGQUIT);
93                         else {
94                                 struct ioengine_ops *ops = td->io_ops;
95
96                                 if (ops && (ops->flags & FIO_SIGQUIT))
97                                         kill(td->pid, SIGQUIT);
98                         }
99                 }
100         }
101 }
102
103 static void status_timer_arm(void)
104 {
105         itimer.it_value.tv_sec = 0;
106         itimer.it_value.tv_usec = DISK_UTIL_MSEC * 1000;
107         setitimer(ITIMER_REAL, &itimer, NULL);
108 }
109
110 static void sig_alrm(int fio_unused sig)
111 {
112         if (threads) {
113                 update_io_ticks();
114                 print_thread_status();
115                 status_timer_arm();
116         }
117 }
118
119 static void sig_int(int sig)
120 {
121         if (threads) {
122                 printf("\nfio: terminating on signal %d\n", sig);
123                 fflush(stdout);
124                 terminate_threads(TERMINATE_ALL);
125         }
126 }
127
128 static void sig_ill(int fio_unused sig)
129 {
130         if (!threads)
131                 return;
132
133         log_err("fio: illegal instruction. your cpu does not support "
134                 "the sse4.2 instruction for crc32c\n");
135         terminate_threads(TERMINATE_ALL);
136         exit(4);
137 }
138
139 static void set_sig_handlers(void)
140 {
141         struct sigaction act;
142
143         memset(&act, 0, sizeof(act));
144         act.sa_handler = sig_alrm;
145         act.sa_flags = SA_RESTART;
146         sigaction(SIGALRM, &act, NULL);
147
148         memset(&act, 0, sizeof(act));
149         act.sa_handler = sig_int;
150         act.sa_flags = SA_RESTART;
151         sigaction(SIGINT, &act, NULL);
152
153         memset(&act, 0, sizeof(act));
154         act.sa_handler = sig_ill;
155         act.sa_flags = SA_RESTART;
156         sigaction(SIGILL, &act, NULL);
157 }
158
159 /*
160  * Check if we are above the minimum rate given.
161  */
162 static int check_min_rate(struct thread_data *td, struct timeval *now)
163 {
164         unsigned long long bytes = 0;
165         unsigned long iops = 0;
166         unsigned long spent;
167         unsigned long rate;
168
169         /*
170          * No minimum rate set, always ok
171          */
172         if (!td->o.ratemin && !td->o.rate_iops_min)
173                 return 0;
174
175         /*
176          * allow a 2 second settle period in the beginning
177          */
178         if (mtime_since(&td->start, now) < 2000)
179                 return 0;
180
181         if (td_read(td)) {
182                 iops += td->io_blocks[DDIR_READ];
183                 bytes += td->this_io_bytes[DDIR_READ];
184         }
185         if (td_write(td)) {
186                 iops += td->io_blocks[DDIR_WRITE];
187                 bytes += td->this_io_bytes[DDIR_WRITE];
188         }
189
190         /*
191          * if rate blocks is set, sample is running
192          */
193         if (td->rate_bytes || td->rate_blocks) {
194                 spent = mtime_since(&td->lastrate, now);
195                 if (spent < td->o.ratecycle)
196                         return 0;
197
198                 if (td->o.rate) {
199                         /*
200                          * check bandwidth specified rate
201                          */
202                         if (bytes < td->rate_bytes) {
203                                 log_err("%s: min rate %u not met\n", td->o.name,
204                                                                 td->o.ratemin);
205                                 return 1;
206                         } else {
207                                 rate = (bytes - td->rate_bytes) / spent;
208                                 if (rate < td->o.ratemin ||
209                                     bytes < td->rate_bytes) {
210                                         log_err("%s: min rate %u not met, got"
211                                                 " %luKiB/sec\n", td->o.name,
212                                                         td->o.ratemin, rate);
213                                         return 1;
214                                 }
215                         }
216                 } else {
217                         /*
218                          * checks iops specified rate
219                          */
220                         if (iops < td->o.rate_iops) {
221                                 log_err("%s: min iops rate %u not met\n",
222                                                 td->o.name, td->o.rate_iops);
223                                 return 1;
224                         } else {
225                                 rate = (iops - td->rate_blocks) / spent;
226                                 if (rate < td->o.rate_iops_min ||
227                                     iops < td->rate_blocks) {
228                                         log_err("%s: min iops rate %u not met,"
229                                                 " got %lu\n", td->o.name,
230                                                         td->o.rate_iops_min,
231                                                         rate);
232                                 }
233                         }
234                 }
235         }
236
237         td->rate_bytes = bytes;
238         td->rate_blocks = iops;
239         memcpy(&td->lastrate, now, sizeof(*now));
240         return 0;
241 }
242
243 static inline int runtime_exceeded(struct thread_data *td, struct timeval *t)
244 {
245         if (!td->o.timeout)
246                 return 0;
247         if (mtime_since(&td->epoch, t) >= td->o.timeout * 1000)
248                 return 1;
249
250         return 0;
251 }
252
253 /*
254  * When job exits, we can cancel the in-flight IO if we are using async
255  * io. Attempt to do so.
256  */
257 static void cleanup_pending_aio(struct thread_data *td)
258 {
259         struct flist_head *entry, *n;
260         struct io_u *io_u;
261         int r;
262
263         /*
264          * get immediately available events, if any
265          */
266         r = io_u_queued_complete(td, 0);
267         if (r < 0)
268                 return;
269
270         /*
271          * now cancel remaining active events
272          */
273         if (td->io_ops->cancel) {
274                 flist_for_each_safe(entry, n, &td->io_u_busylist) {
275                         io_u = flist_entry(entry, struct io_u, list);
276
277                         /*
278                          * if the io_u isn't in flight, then that generally
279                          * means someone leaked an io_u. complain but fix
280                          * it up, so we don't stall here.
281                          */
282                         if ((io_u->flags & IO_U_F_FLIGHT) == 0) {
283                                 log_err("fio: non-busy IO on busy list\n");
284                                 put_io_u(td, io_u);
285                         } else {
286                                 r = td->io_ops->cancel(td, io_u);
287                                 if (!r)
288                                         put_io_u(td, io_u);
289                         }
290                 }
291         }
292
293         if (td->cur_depth)
294                 r = io_u_queued_complete(td, td->cur_depth);
295 }
296
297 /*
298  * Helper to handle the final sync of a file. Works just like the normal
299  * io path, just does everything sync.
300  */
301 static int fio_io_sync(struct thread_data *td, struct fio_file *f)
302 {
303         struct io_u *io_u = __get_io_u(td);
304         int ret;
305
306         if (!io_u)
307                 return 1;
308
309         io_u->ddir = DDIR_SYNC;
310         io_u->file = f;
311
312         if (td_io_prep(td, io_u)) {
313                 put_io_u(td, io_u);
314                 return 1;
315         }
316
317 requeue:
318         ret = td_io_queue(td, io_u);
319         if (ret < 0) {
320                 td_verror(td, io_u->error, "td_io_queue");
321                 put_io_u(td, io_u);
322                 return 1;
323         } else if (ret == FIO_Q_QUEUED) {
324                 if (io_u_queued_complete(td, 1) < 0)
325                         return 1;
326         } else if (ret == FIO_Q_COMPLETED) {
327                 if (io_u->error) {
328                         td_verror(td, io_u->error, "td_io_queue");
329                         return 1;
330                 }
331
332                 if (io_u_sync_complete(td, io_u) < 0)
333                         return 1;
334         } else if (ret == FIO_Q_BUSY) {
335                 if (td_io_commit(td))
336                         return 1;
337                 goto requeue;
338         }
339
340         return 0;
341 }
342
343 /*
344  * The main verify engine. Runs over the writes we previously submitted,
345  * reads the blocks back in, and checks the crc/md5 of the data.
346  */
347 static void do_verify(struct thread_data *td)
348 {
349         struct fio_file *f;
350         struct io_u *io_u;
351         int ret, min_events;
352         unsigned int i;
353
354         /*
355          * sync io first and invalidate cache, to make sure we really
356          * read from disk.
357          */
358         for_each_file(td, f, i) {
359                 if (!(f->flags & FIO_FILE_OPEN))
360                         continue;
361                 if (fio_io_sync(td, f))
362                         break;
363                 if (file_invalidate_cache(td, f))
364                         break;
365         }
366
367         if (td->error)
368                 return;
369
370         td_set_runstate(td, TD_VERIFYING);
371
372         io_u = NULL;
373         while (!td->terminate) {
374                 int ret2, full;
375
376                 io_u = __get_io_u(td);
377                 if (!io_u)
378                         break;
379
380                 if (runtime_exceeded(td, &io_u->start_time)) {
381                         put_io_u(td, io_u);
382                         td->terminate = 1;
383                         break;
384                 }
385
386                 if (get_next_verify(td, io_u)) {
387                         put_io_u(td, io_u);
388                         break;
389                 }
390
391                 if (td_io_prep(td, io_u)) {
392                         put_io_u(td, io_u);
393                         break;
394                 }
395
396                 io_u->end_io = verify_io_u;
397
398                 ret = td_io_queue(td, io_u);
399                 switch (ret) {
400                 case FIO_Q_COMPLETED:
401                         if (io_u->error)
402                                 ret = -io_u->error;
403                         else if (io_u->resid) {
404                                 int bytes = io_u->xfer_buflen - io_u->resid;
405                                 struct fio_file *f = io_u->file;
406
407                                 /*
408                                  * zero read, fail
409                                  */
410                                 if (!bytes) {
411                                         td_verror(td, EIO, "full resid");
412                                         put_io_u(td, io_u);
413                                         break;
414                                 }
415
416                                 io_u->xfer_buflen = io_u->resid;
417                                 io_u->xfer_buf += bytes;
418                                 io_u->offset += bytes;
419
420                                 td->ts.short_io_u[io_u->ddir]++;
421
422                                 if (io_u->offset == f->real_file_size)
423                                         goto sync_done;
424
425                                 requeue_io_u(td, &io_u);
426                         } else {
427 sync_done:
428                                 ret = io_u_sync_complete(td, io_u);
429                                 if (ret < 0)
430                                         break;
431                         }
432                         continue;
433                 case FIO_Q_QUEUED:
434                         break;
435                 case FIO_Q_BUSY:
436                         requeue_io_u(td, &io_u);
437                         ret2 = td_io_commit(td);
438                         if (ret2 < 0)
439                                 ret = ret2;
440                         break;
441                 default:
442                         assert(ret < 0);
443                         td_verror(td, -ret, "td_io_queue");
444                         break;
445                 }
446
447                 if (ret < 0 || td->error)
448                         break;
449
450                 /*
451                  * if we can queue more, do so. but check if there are
452                  * completed io_u's first.
453                  */
454                 full = queue_full(td) || ret == FIO_Q_BUSY;
455                 if (full || !td->o.iodepth_batch_complete) {
456                         min_events = td->o.iodepth_batch_complete;
457                         if (full && !min_events)
458                                 min_events = 1;
459
460                         do {
461                                 /*
462                                  * Reap required number of io units, if any,
463                                  * and do the verification on them through
464                                  * the callback handler
465                                  */
466                                 if (io_u_queued_complete(td, min_events) < 0) {
467                                         ret = -1;
468                                         break;
469                                 }
470                         } while (full && (td->cur_depth > td->o.iodepth_low));
471                 }
472                 if (ret < 0)
473                         break;
474         }
475
476         if (!td->error) {
477                 min_events = td->cur_depth;
478
479                 if (min_events)
480                         ret = io_u_queued_complete(td, min_events);
481         } else
482                 cleanup_pending_aio(td);
483
484         td_set_runstate(td, TD_RUNNING);
485 }
486
487 /*
488  * Main IO worker function. It retrieves io_u's to process and queues
489  * and reaps them, checking for rate and errors along the way.
490  */
491 static void do_io(struct thread_data *td)
492 {
493         struct timeval s;
494         unsigned long usec;
495         unsigned int i;
496         int ret = 0;
497
498         if (in_ramp_time(td))
499                 td_set_runstate(td, TD_RAMP);
500         else
501                 td_set_runstate(td, TD_RUNNING);
502
503         while ((td->this_io_bytes[0] + td->this_io_bytes[1]) < td->o.size) {
504                 struct timeval comp_time;
505                 long bytes_done = 0;
506                 int min_evts = 0;
507                 struct io_u *io_u;
508                 int ret2, full;
509
510                 if (td->terminate)
511                         break;
512
513                 io_u = get_io_u(td);
514                 if (!io_u)
515                         break;
516
517                 memcpy(&s, &io_u->start_time, sizeof(s));
518
519                 if (runtime_exceeded(td, &s)) {
520                         put_io_u(td, io_u);
521                         td->terminate = 1;
522                         break;
523                 }
524
525                 /*
526                  * Add verification end_io handler, if asked to verify
527                  * a previously written file.
528                  */
529                 if (td->o.verify != VERIFY_NONE && io_u->ddir == DDIR_READ) {
530                         io_u->end_io = verify_io_u;
531                         td_set_runstate(td, TD_VERIFYING);
532                 } else if (in_ramp_time(td))
533                         td_set_runstate(td, TD_RAMP);
534                 else
535                         td_set_runstate(td, TD_RUNNING);
536
537                 ret = td_io_queue(td, io_u);
538                 switch (ret) {
539                 case FIO_Q_COMPLETED:
540                         if (io_u->error)
541                                 ret = -io_u->error;
542                         else if (io_u->resid) {
543                                 int bytes = io_u->xfer_buflen - io_u->resid;
544                                 struct fio_file *f = io_u->file;
545
546                                 /*
547                                  * zero read, fail
548                                  */
549                                 if (!bytes) {
550                                         td_verror(td, EIO, "full resid");
551                                         put_io_u(td, io_u);
552                                         break;
553                                 }
554
555                                 io_u->xfer_buflen = io_u->resid;
556                                 io_u->xfer_buf += bytes;
557                                 io_u->offset += bytes;
558
559                                 td->ts.short_io_u[io_u->ddir]++;
560
561                                 if (io_u->offset == f->real_file_size)
562                                         goto sync_done;
563
564                                 requeue_io_u(td, &io_u);
565                         } else {
566 sync_done:
567                                 fio_gettime(&comp_time, NULL);
568                                 bytes_done = io_u_sync_complete(td, io_u);
569                                 if (bytes_done < 0)
570                                         ret = bytes_done;
571                         }
572                         break;
573                 case FIO_Q_QUEUED:
574                         /*
575                          * if the engine doesn't have a commit hook,
576                          * the io_u is really queued. if it does have such
577                          * a hook, it has to call io_u_queued() itself.
578                          */
579                         if (td->io_ops->commit == NULL)
580                                 io_u_queued(td, io_u);
581                         break;
582                 case FIO_Q_BUSY:
583                         requeue_io_u(td, &io_u);
584                         ret2 = td_io_commit(td);
585                         if (ret2 < 0)
586                                 ret = ret2;
587                         break;
588                 default:
589                         assert(ret < 0);
590                         put_io_u(td, io_u);
591                         break;
592                 }
593
594                 if (ret < 0 || td->error)
595                         break;
596
597                 /*
598                  * See if we need to complete some commands
599                  */
600                 full = queue_full(td) || ret == FIO_Q_BUSY;
601                 if (full || !td->o.iodepth_batch_complete) {
602                         min_evts = td->o.iodepth_batch_complete;
603                         if (full && !min_evts)
604                                 min_evts = 1;
605
606                         fio_gettime(&comp_time, NULL);
607
608                         do {
609                                 ret = io_u_queued_complete(td, min_evts);
610                                 if (ret <= 0)
611                                         break;
612
613                                 bytes_done += ret;
614                         } while (full && (td->cur_depth > td->o.iodepth_low));
615                 }
616
617                 if (ret < 0)
618                         break;
619                 if (!bytes_done)
620                         continue;
621
622                 /*
623                  * the rate is batched for now, it should work for batches
624                  * of completions except the very first one which may look
625                  * a little bursty
626                  */
627                 if (!in_ramp_time(td)) {
628                         usec = utime_since(&s, &comp_time);
629
630                         rate_throttle(td, usec, bytes_done);
631
632                         if (check_min_rate(td, &comp_time)) {
633                                 if (exitall_on_terminate)
634                                         terminate_threads(td->groupid);
635                                 td_verror(td, EIO, "check_min_rate");
636                                 break;
637                         }
638                 }
639
640                 if (td->o.thinktime) {
641                         unsigned long long b;
642
643                         b = td->io_blocks[0] + td->io_blocks[1];
644                         if (!(b % td->o.thinktime_blocks)) {
645                                 int left;
646
647                                 if (td->o.thinktime_spin)
648                                         __usec_sleep(td->o.thinktime_spin);
649
650                                 left = td->o.thinktime - td->o.thinktime_spin;
651                                 if (left)
652                                         usec_sleep(td, left);
653                         }
654                 }
655         }
656
657         if (td->o.fill_device && td->error == ENOSPC) {
658                 td->error = 0;
659                 td->terminate = 1;
660         }
661         if (!td->error) {
662                 struct fio_file *f;
663
664                 i = td->cur_depth;
665                 if (i)
666                         ret = io_u_queued_complete(td, i);
667
668                 if (should_fsync(td) && td->o.end_fsync) {
669                         td_set_runstate(td, TD_FSYNCING);
670
671                         for_each_file(td, f, i) {
672                                 if (!(f->flags & FIO_FILE_OPEN))
673                                         continue;
674                                 fio_io_sync(td, f);
675                         }
676                 }
677         } else
678                 cleanup_pending_aio(td);
679
680         /*
681          * stop job if we failed doing any IO
682          */
683         if ((td->this_io_bytes[0] + td->this_io_bytes[1]) == 0)
684                 td->done = 1;
685 }
686
687 static void cleanup_io_u(struct thread_data *td)
688 {
689         struct flist_head *entry, *n;
690         struct io_u *io_u;
691
692         flist_for_each_safe(entry, n, &td->io_u_freelist) {
693                 io_u = flist_entry(entry, struct io_u, list);
694
695                 flist_del(&io_u->list);
696                 free(io_u);
697         }
698
699         free_io_mem(td);
700 }
701
702 static int init_io_u(struct thread_data *td)
703 {
704         struct io_u *io_u;
705         unsigned int max_bs;
706         int i, max_units;
707         char *p;
708
709         max_units = td->o.iodepth;
710         max_bs = max(td->o.max_bs[DDIR_READ], td->o.max_bs[DDIR_WRITE]);
711         td->orig_buffer_size = (unsigned long long) max_bs
712                                         * (unsigned long long) max_units;
713
714         if (td->o.mem_type == MEM_SHMHUGE || td->o.mem_type == MEM_MMAPHUGE) {
715                 unsigned long bs;
716
717                 bs = td->orig_buffer_size + td->o.hugepage_size - 1;
718                 td->orig_buffer_size = bs & ~(td->o.hugepage_size - 1);
719         }
720
721         if (td->orig_buffer_size != (size_t) td->orig_buffer_size) {
722                 log_err("fio: IO memory too large. Reduce max_bs or iodepth\n");
723                 return 1;
724         }
725
726         if (allocate_io_mem(td))
727                 return 1;
728
729         if (td->o.odirect)
730                 p = ALIGN(td->orig_buffer);
731         else
732                 p = td->orig_buffer;
733
734         for (i = 0; i < max_units; i++) {
735                 if (td->terminate)
736                         return 1;
737                 io_u = malloc(sizeof(*io_u));
738                 memset(io_u, 0, sizeof(*io_u));
739                 INIT_FLIST_HEAD(&io_u->list);
740
741                 if (!(td->io_ops->flags & FIO_NOIO)) {
742                         io_u->buf = p + max_bs * i;
743
744                         if (td_write(td) && !td->o.refill_buffers)
745                                 io_u_fill_buffer(td, io_u, max_bs);
746                 }
747
748                 io_u->index = i;
749                 io_u->flags = IO_U_F_FREE;
750                 flist_add(&io_u->list, &td->io_u_freelist);
751         }
752
753         io_u_init_timeout();
754
755         return 0;
756 }
757
758 static int switch_ioscheduler(struct thread_data *td)
759 {
760         char tmp[256], tmp2[128];
761         FILE *f;
762         int ret;
763
764         if (td->io_ops->flags & FIO_DISKLESSIO)
765                 return 0;
766
767         sprintf(tmp, "%s/queue/scheduler", td->sysfs_root);
768
769         f = fopen(tmp, "r+");
770         if (!f) {
771                 if (errno == ENOENT) {
772                         log_err("fio: os or kernel doesn't support IO scheduler"
773                                 " switching\n");
774                         return 0;
775                 }
776                 td_verror(td, errno, "fopen iosched");
777                 return 1;
778         }
779
780         /*
781          * Set io scheduler.
782          */
783         ret = fwrite(td->o.ioscheduler, strlen(td->o.ioscheduler), 1, f);
784         if (ferror(f) || ret != 1) {
785                 td_verror(td, errno, "fwrite");
786                 fclose(f);
787                 return 1;
788         }
789
790         rewind(f);
791
792         /*
793          * Read back and check that the selected scheduler is now the default.
794          */
795         ret = fread(tmp, 1, sizeof(tmp), f);
796         if (ferror(f) || ret < 0) {
797                 td_verror(td, errno, "fread");
798                 fclose(f);
799                 return 1;
800         }
801
802         sprintf(tmp2, "[%s]", td->o.ioscheduler);
803         if (!strstr(tmp, tmp2)) {
804                 log_err("fio: io scheduler %s not found\n", td->o.ioscheduler);
805                 td_verror(td, EINVAL, "iosched_switch");
806                 fclose(f);
807                 return 1;
808         }
809
810         fclose(f);
811         return 0;
812 }
813
814 static int keep_running(struct thread_data *td)
815 {
816         unsigned long long io_done;
817
818         if (td->done)
819                 return 0;
820         if (td->o.time_based)
821                 return 1;
822         if (td->o.loops) {
823                 td->o.loops--;
824                 return 1;
825         }
826
827         io_done = td->io_bytes[DDIR_READ] + td->io_bytes[DDIR_WRITE]
828                         + td->io_skip_bytes;
829         if (io_done < td->o.size)
830                 return 1;
831
832         return 0;
833 }
834
835 static void reset_io_counters(struct thread_data *td)
836 {
837         td->ts.stat_io_bytes[0] = td->ts.stat_io_bytes[1] = 0;
838         td->this_io_bytes[0] = td->this_io_bytes[1] = 0;
839         td->zone_bytes = 0;
840         td->rate_bytes = 0;
841         td->rate_blocks = 0;
842         td->rw_end_set[0] = td->rw_end_set[1] = 0;
843
844         td->last_was_sync = 0;
845
846         /*
847          * reset file done count if we are to start over
848          */
849         if (td->o.time_based || td->o.loops)
850                 td->nr_done_files = 0;
851 }
852
853 void reset_all_stats(struct thread_data *td)
854 {
855         struct timeval tv;
856         int i;
857
858         reset_io_counters(td);
859
860         for (i = 0; i < 2; i++) {
861                 td->io_bytes[i] = 0;
862                 td->io_blocks[i] = 0;
863                 td->io_issues[i] = 0;
864                 td->ts.total_io_u[i] = 0;
865         }
866         
867         fio_gettime(&tv, NULL);
868         memcpy(&td->epoch, &tv, sizeof(tv));
869         memcpy(&td->start, &tv, sizeof(tv));
870 }
871
872 static int clear_io_state(struct thread_data *td)
873 {
874         struct fio_file *f;
875         unsigned int i;
876         int ret;
877
878         reset_io_counters(td);
879
880         close_files(td);
881
882         ret = 0;
883         for_each_file(td, f, i) {
884                 f->flags &= ~FIO_FILE_DONE;
885                 ret = td_io_open_file(td, f);
886                 if (ret)
887                         break;
888         }
889
890         return ret;
891 }
892
893 /*
894  * Entry point for the thread based jobs. The process based jobs end up
895  * here as well, after a little setup.
896  */
897 static void *thread_main(void *data)
898 {
899         unsigned long long runtime[2], elapsed;
900         struct thread_data *td = data;
901         int clear_state;
902
903         if (!td->o.use_thread)
904                 setsid();
905
906         td->pid = getpid();
907
908         dprint(FD_PROCESS, "jobs pid=%d started\n", (int) td->pid);
909
910         INIT_FLIST_HEAD(&td->io_u_freelist);
911         INIT_FLIST_HEAD(&td->io_u_busylist);
912         INIT_FLIST_HEAD(&td->io_u_requeues);
913         INIT_FLIST_HEAD(&td->io_log_list);
914         INIT_FLIST_HEAD(&td->io_hist_list);
915         td->io_hist_tree = RB_ROOT;
916
917         td_set_runstate(td, TD_INITIALIZED);
918         fio_mutex_up(startup_mutex);
919         fio_mutex_down(td->mutex);
920
921         /*
922          * the ->mutex mutex is now no longer used, close it to avoid
923          * eating a file descriptor
924          */
925         fio_mutex_remove(td->mutex);
926
927         /*
928          * May alter parameters that init_io_u() will use, so we need to
929          * do this first.
930          */
931         if (init_iolog(td))
932                 goto err;
933
934         if (init_io_u(td))
935                 goto err;
936
937         if (td->o.cpumask_set && fio_setaffinity(td) == -1) {
938                 td_verror(td, errno, "cpu_set_affinity");
939                 goto err;
940         }
941
942         if (td->ioprio_set) {
943                 if (ioprio_set(IOPRIO_WHO_PROCESS, 0, td->ioprio) == -1) {
944                         td_verror(td, errno, "ioprio_set");
945                         goto err;
946                 }
947         }
948
949         if (nice(td->o.nice) == -1) {
950                 td_verror(td, errno, "nice");
951                 goto err;
952         }
953
954         if (td->o.ioscheduler && switch_ioscheduler(td))
955                 goto err;
956
957         if (!td->o.create_serialize && setup_files(td))
958                 goto err;
959
960         if (td_io_init(td))
961                 goto err;
962
963         if (open_files(td))
964                 goto err;
965
966         if (init_random_map(td))
967                 goto err;
968
969         if (td->o.exec_prerun) {
970                 if (system(td->o.exec_prerun) < 0)
971                         goto err;
972         }
973
974         fio_gettime(&td->epoch, NULL);
975         memcpy(&td->timeout_end, &td->epoch, sizeof(td->epoch));
976         getrusage(RUSAGE_SELF, &td->ts.ru_start);
977
978         runtime[0] = runtime[1] = 0;
979         clear_state = 0;
980         while (keep_running(td)) {
981                 fio_gettime(&td->start, NULL);
982                 memcpy(&td->ts.stat_sample_time, &td->start, sizeof(td->start));
983
984                 if (td->o.ratemin)
985                         memcpy(&td->lastrate, &td->ts.stat_sample_time,
986                                                         sizeof(td->lastrate));
987
988                 if (clear_state && clear_io_state(td))
989                         break;
990
991                 prune_io_piece_log(td);
992
993                 do_io(td);
994
995                 clear_state = 1;
996
997                 if (td_read(td) && td->io_bytes[DDIR_READ]) {
998                         if (td->rw_end_set[DDIR_READ])
999                                 elapsed = utime_since(&td->start,
1000                                                       &td->rw_end[DDIR_READ]);
1001                         else
1002                                 elapsed = utime_since_now(&td->start);
1003
1004                         runtime[DDIR_READ] += elapsed;
1005                 }
1006                 if (td_write(td) && td->io_bytes[DDIR_WRITE]) {
1007                         if (td->rw_end_set[DDIR_WRITE])
1008                                 elapsed = utime_since(&td->start,
1009                                                       &td->rw_end[DDIR_WRITE]);
1010                         else
1011                                 elapsed = utime_since_now(&td->start);
1012
1013                         runtime[DDIR_WRITE] += elapsed;
1014                 }
1015
1016                 if (td->error || td->terminate)
1017                         break;
1018
1019                 if (!td->o.do_verify ||
1020                     td->o.verify == VERIFY_NONE ||
1021                     (td->io_ops->flags & FIO_UNIDIR))
1022                         continue;
1023
1024                 if (clear_io_state(td))
1025                         break;
1026
1027                 fio_gettime(&td->start, NULL);
1028
1029                 do_verify(td);
1030
1031                 runtime[DDIR_READ] += utime_since_now(&td->start);
1032
1033                 if (td->error || td->terminate)
1034                         break;
1035         }
1036
1037         update_rusage_stat(td);
1038         td->ts.runtime[0] = (runtime[0] + 999) / 1000;
1039         td->ts.runtime[1] = (runtime[1] + 999) / 1000;
1040         td->ts.total_run_time = mtime_since_now(&td->epoch);
1041         td->ts.io_bytes[0] = td->io_bytes[0];
1042         td->ts.io_bytes[1] = td->io_bytes[1];
1043
1044         if (td->ts.bw_log)
1045                 finish_log(td, td->ts.bw_log, "bw");
1046         if (td->ts.slat_log)
1047                 finish_log(td, td->ts.slat_log, "slat");
1048         if (td->ts.clat_log)
1049                 finish_log(td, td->ts.clat_log, "clat");
1050         if (td->o.exec_postrun) {
1051                 if (system(td->o.exec_postrun) < 0)
1052                         log_err("fio: postrun %s failed\n", td->o.exec_postrun);
1053         }
1054
1055         if (exitall_on_terminate)
1056                 terminate_threads(td->groupid);
1057
1058 err:
1059         if (td->error)
1060                 printf("fio: pid=%d, err=%d/%s\n", (int) td->pid, td->error,
1061                                                         td->verror);
1062         close_and_free_files(td);
1063         close_ioengine(td);
1064         cleanup_io_u(td);
1065
1066         /*
1067          * do this very late, it will log file closing as well
1068          */
1069         if (td->o.write_iolog_file)
1070                 write_iolog_close(td);
1071
1072         options_mem_free(td);
1073         td_set_runstate(td, TD_EXITED);
1074         return (void *) (unsigned long) td->error;
1075 }
1076
1077 /*
1078  * We cannot pass the td data into a forked process, so attach the td and
1079  * pass it to the thread worker.
1080  */
1081 static int fork_main(int shmid, int offset)
1082 {
1083         struct thread_data *td;
1084         void *data, *ret;
1085
1086         data = shmat(shmid, NULL, 0);
1087         if (data == (void *) -1) {
1088                 int __err = errno;
1089
1090                 perror("shmat");
1091                 return __err;
1092         }
1093
1094         td = data + offset * sizeof(struct thread_data);
1095         ret = thread_main(td);
1096         shmdt(data);
1097         return (int) (unsigned long) ret;
1098 }
1099
1100 /*
1101  * Run over the job map and reap the threads that have exited, if any.
1102  */
1103 static void reap_threads(int *nr_running, int *t_rate, int *m_rate)
1104 {
1105         struct thread_data *td;
1106         int i, cputhreads, realthreads, pending, status, ret;
1107
1108         /*
1109          * reap exited threads (TD_EXITED -> TD_REAPED)
1110          */
1111         realthreads = pending = cputhreads = 0;
1112         for_each_td(td, i) {
1113                 int flags = 0;
1114
1115                 /*
1116                  * ->io_ops is NULL for a thread that has closed its
1117                  * io engine
1118                  */
1119                 if (td->io_ops && !strcmp(td->io_ops->name, "cpuio"))
1120                         cputhreads++;
1121                 else
1122                         realthreads++;
1123
1124                 if (!td->pid) {
1125                         pending++;
1126                         continue;
1127                 }
1128                 if (td->runstate == TD_REAPED)
1129                         continue;
1130                 if (td->o.use_thread) {
1131                         if (td->runstate == TD_EXITED) {
1132                                 td_set_runstate(td, TD_REAPED);
1133                                 goto reaped;
1134                         }
1135                         continue;
1136                 }
1137
1138                 flags = WNOHANG;
1139                 if (td->runstate == TD_EXITED)
1140                         flags = 0;
1141
1142                 /*
1143                  * check if someone quit or got killed in an unusual way
1144                  */
1145                 ret = waitpid(td->pid, &status, flags);
1146                 if (ret < 0) {
1147                         if (errno == ECHILD) {
1148                                 log_err("fio: pid=%d disappeared %d\n",
1149                                                 (int) td->pid, td->runstate);
1150                                 td_set_runstate(td, TD_REAPED);
1151                                 goto reaped;
1152                         }
1153                         perror("waitpid");
1154                 } else if (ret == td->pid) {
1155                         if (WIFSIGNALED(status)) {
1156                                 int sig = WTERMSIG(status);
1157
1158                                 if (sig != SIGQUIT)
1159                                         log_err("fio: pid=%d, got signal=%d\n",
1160                                                         (int) td->pid, sig);
1161                                 td_set_runstate(td, TD_REAPED);
1162                                 goto reaped;
1163                         }
1164                         if (WIFEXITED(status)) {
1165                                 if (WEXITSTATUS(status) && !td->error)
1166                                         td->error = WEXITSTATUS(status);
1167
1168                                 td_set_runstate(td, TD_REAPED);
1169                                 goto reaped;
1170                         }
1171                 }
1172
1173                 /*
1174                  * thread is not dead, continue
1175                  */
1176                 pending++;
1177                 continue;
1178 reaped:
1179                 (*nr_running)--;
1180                 (*m_rate) -= td->o.ratemin;
1181                 (*t_rate) -= td->o.rate;
1182                 if (!td->pid)
1183                         pending--;
1184
1185                 if (td->error)
1186                         exit_value++;
1187
1188                 done_secs += mtime_since_now(&td->epoch) / 1000;
1189         }
1190
1191         if (*nr_running == cputhreads && !pending && realthreads)
1192                 terminate_threads(TERMINATE_ALL);
1193 }
1194
1195 /*
1196  * Main function for kicking off and reaping jobs, as needed.
1197  */
1198 static void run_threads(void)
1199 {
1200         struct thread_data *td;
1201         unsigned long spent;
1202         int i, todo, nr_running, m_rate, t_rate, nr_started;
1203
1204         if (fio_pin_memory())
1205                 return;
1206
1207         if (!terse_output) {
1208                 printf("Starting ");
1209                 if (nr_thread)
1210                         printf("%d thread%s", nr_thread,
1211                                                 nr_thread > 1 ? "s" : "");
1212                 if (nr_process) {
1213                         if (nr_thread)
1214                                 printf(" and ");
1215                         printf("%d process%s", nr_process,
1216                                                 nr_process > 1 ? "es" : "");
1217                 }
1218                 printf("\n");
1219                 fflush(stdout);
1220         }
1221
1222         set_sig_handlers();
1223
1224         todo = thread_number;
1225         nr_running = 0;
1226         nr_started = 0;
1227         m_rate = t_rate = 0;
1228
1229         for_each_td(td, i) {
1230                 print_status_init(td->thread_number - 1);
1231
1232                 if (!td->o.create_serialize) {
1233                         init_disk_util(td);
1234                         continue;
1235                 }
1236
1237                 /*
1238                  * do file setup here so it happens sequentially,
1239                  * we don't want X number of threads getting their
1240                  * client data interspersed on disk
1241                  */
1242                 if (setup_files(td)) {
1243                         exit_value++;
1244                         if (td->error)
1245                                 log_err("fio: pid=%d, err=%d/%s\n",
1246                                         (int) td->pid, td->error, td->verror);
1247                         td_set_runstate(td, TD_REAPED);
1248                         todo--;
1249                 } else {
1250                         struct fio_file *f;
1251                         unsigned int i;
1252
1253                         /*
1254                          * for sharing to work, each job must always open
1255                          * its own files. so close them, if we opened them
1256                          * for creation
1257                          */
1258                         for_each_file(td, f, i)
1259                                 td_io_close_file(td, f);
1260                 }
1261
1262                 init_disk_util(td);
1263         }
1264
1265         set_genesis_time();
1266
1267         while (todo) {
1268                 struct thread_data *map[MAX_JOBS];
1269                 struct timeval this_start;
1270                 int this_jobs = 0, left;
1271
1272                 /*
1273                  * create threads (TD_NOT_CREATED -> TD_CREATED)
1274                  */
1275                 for_each_td(td, i) {
1276                         if (td->runstate != TD_NOT_CREATED)
1277                                 continue;
1278
1279                         /*
1280                          * never got a chance to start, killed by other
1281                          * thread for some reason
1282                          */
1283                         if (td->terminate) {
1284                                 todo--;
1285                                 continue;
1286                         }
1287
1288                         if (td->o.start_delay) {
1289                                 spent = mtime_since_genesis();
1290
1291                                 if (td->o.start_delay * 1000 > spent)
1292                                         continue;
1293                         }
1294
1295                         if (td->o.stonewall && (nr_started || nr_running)) {
1296                                 dprint(FD_PROCESS, "%s: stonewall wait\n",
1297                                                         td->o.name);
1298                                 break;
1299                         }
1300
1301                         /*
1302                          * Set state to created. Thread will transition
1303                          * to TD_INITIALIZED when it's done setting up.
1304                          */
1305                         td_set_runstate(td, TD_CREATED);
1306                         map[this_jobs++] = td;
1307                         nr_started++;
1308
1309                         if (td->o.use_thread) {
1310                                 dprint(FD_PROCESS, "will pthread_create\n");
1311                                 if (pthread_create(&td->thread, NULL,
1312                                                    thread_main, td)) {
1313                                         perror("pthread_create");
1314                                         nr_started--;
1315                                         break;
1316                                 }
1317                                 if (pthread_detach(td->thread) < 0)
1318                                         perror("pthread_detach");
1319                         } else {
1320                                 pid_t pid;
1321                                 dprint(FD_PROCESS, "will fork\n");
1322                                 pid = fork();
1323                                 if (!pid) {
1324                                         int ret = fork_main(shm_id, i);
1325
1326                                         _exit(ret);
1327                                 } else if (i == fio_debug_jobno)
1328                                         *fio_debug_jobp = pid;
1329                         }
1330                         fio_mutex_down(startup_mutex);
1331                 }
1332
1333                 /*
1334                  * Wait for the started threads to transition to
1335                  * TD_INITIALIZED.
1336                  */
1337                 fio_gettime(&this_start, NULL);
1338                 left = this_jobs;
1339                 while (left && !fio_abort) {
1340                         if (mtime_since_now(&this_start) > JOB_START_TIMEOUT)
1341                                 break;
1342
1343                         usleep(100000);
1344
1345                         for (i = 0; i < this_jobs; i++) {
1346                                 td = map[i];
1347                                 if (!td)
1348                                         continue;
1349                                 if (td->runstate == TD_INITIALIZED) {
1350                                         map[i] = NULL;
1351                                         left--;
1352                                 } else if (td->runstate >= TD_EXITED) {
1353                                         map[i] = NULL;
1354                                         left--;
1355                                         todo--;
1356                                         nr_running++; /* work-around... */
1357                                 }
1358                         }
1359                 }
1360
1361                 if (left) {
1362                         log_err("fio: %d jobs failed to start\n", left);
1363                         for (i = 0; i < this_jobs; i++) {
1364                                 td = map[i];
1365                                 if (!td)
1366                                         continue;
1367                                 kill(td->pid, SIGTERM);
1368                         }
1369                         break;
1370                 }
1371
1372                 /*
1373                  * start created threads (TD_INITIALIZED -> TD_RUNNING).
1374                  */
1375                 for_each_td(td, i) {
1376                         if (td->runstate != TD_INITIALIZED)
1377                                 continue;
1378
1379                         if (in_ramp_time(td))
1380                                 td_set_runstate(td, TD_RAMP);
1381                         else
1382                                 td_set_runstate(td, TD_RUNNING);
1383                         nr_running++;
1384                         nr_started--;
1385                         m_rate += td->o.ratemin;
1386                         t_rate += td->o.rate;
1387                         todo--;
1388                         fio_mutex_up(td->mutex);
1389                 }
1390
1391                 reap_threads(&nr_running, &t_rate, &m_rate);
1392
1393                 if (todo)
1394                         usleep(100000);
1395         }
1396
1397         while (nr_running) {
1398                 reap_threads(&nr_running, &t_rate, &m_rate);
1399                 usleep(10000);
1400         }
1401
1402         update_io_ticks();
1403         fio_unpin_memory();
1404 }
1405
1406 int main(int argc, char *argv[])
1407 {
1408         long ps;
1409
1410         sinit();
1411
1412         /*
1413          * We need locale for number printing, if it isn't set then just
1414          * go with the US format.
1415          */
1416         if (!getenv("LC_NUMERIC"))
1417                 setlocale(LC_NUMERIC, "en_US");
1418
1419         if (parse_options(argc, argv))
1420                 return 1;
1421
1422         if (!thread_number)
1423                 return 0;
1424
1425         ps = sysconf(_SC_PAGESIZE);
1426         if (ps < 0) {
1427                 log_err("Failed to get page size\n");
1428                 return 1;
1429         }
1430
1431         page_size = ps;
1432         page_mask = ps - 1;
1433
1434         if (write_bw_log) {
1435                 setup_log(&agg_io_log[DDIR_READ]);
1436                 setup_log(&agg_io_log[DDIR_WRITE]);
1437         }
1438
1439         startup_mutex = fio_mutex_init(0);
1440
1441         set_genesis_time();
1442
1443         status_timer_arm();
1444
1445         run_threads();
1446
1447         if (!fio_abort) {
1448                 show_run_stats();
1449                 if (write_bw_log) {
1450                         __finish_log(agg_io_log[DDIR_READ], "agg-read_bw.log");
1451                         __finish_log(agg_io_log[DDIR_WRITE],
1452                                         "agg-write_bw.log");
1453                 }
1454         }
1455
1456         fio_mutex_remove(startup_mutex);
1457         return exit_value;
1458 }