fix a weird check of the return value of aio_cancel.
[fio.git] / io_u.c
... / ...
CommitLineData
1#include <unistd.h>
2#include <fcntl.h>
3#include <string.h>
4#include <signal.h>
5#include <time.h>
6#include <assert.h>
7
8#include "fio.h"
9#include "hash.h"
10#include "verify.h"
11#include "lib/rand.h"
12
13struct io_completion_data {
14 int nr; /* input */
15
16 int error; /* output */
17 unsigned long bytes_done[2]; /* output */
18 struct timeval time; /* output */
19};
20
21/*
22 * The ->file_map[] contains a map of blocks we have or have not done io
23 * to yet. Used to make sure we cover the entire range in a fair fashion.
24 */
25static int random_map_free(struct fio_file *f, const unsigned long long block)
26{
27 unsigned int idx = RAND_MAP_IDX(f, block);
28 unsigned int bit = RAND_MAP_BIT(f, block);
29
30 dprint(FD_RANDOM, "free: b=%llu, idx=%u, bit=%u\n", block, idx, bit);
31
32 return (f->file_map[idx] & (1 << bit)) == 0;
33}
34
35/*
36 * Mark a given offset as used in the map.
37 */
38static void mark_random_map(struct thread_data *td, struct io_u *io_u)
39{
40 unsigned int min_bs = td->o.rw_min_bs;
41 struct fio_file *f = io_u->file;
42 unsigned long long block;
43 unsigned int blocks, nr_blocks;
44
45 block = (io_u->offset - f->file_offset) / (unsigned long long) min_bs;
46 nr_blocks = (io_u->buflen + min_bs - 1) / min_bs;
47 blocks = 0;
48
49 while (nr_blocks) {
50 unsigned int this_blocks, mask;
51 unsigned int idx, bit;
52
53 /*
54 * If we have a mixed random workload, we may
55 * encounter blocks we already did IO to.
56 */
57 if ((td->o.ddir_nr == 1) && !random_map_free(f, block)) {
58 if (!blocks)
59 blocks = 1;
60 break;
61 }
62
63 idx = RAND_MAP_IDX(f, block);
64 bit = RAND_MAP_BIT(f, block);
65
66 fio_assert(td, idx < f->num_maps);
67
68 this_blocks = nr_blocks;
69 if (this_blocks + bit > BLOCKS_PER_MAP)
70 this_blocks = BLOCKS_PER_MAP - bit;
71
72 if (this_blocks == BLOCKS_PER_MAP)
73 mask = -1U;
74 else
75 mask = ((1U << this_blocks) - 1) << bit;
76
77 f->file_map[idx] |= mask;
78 nr_blocks -= this_blocks;
79 blocks += this_blocks;
80 block += this_blocks;
81 }
82
83 if ((blocks * min_bs) < io_u->buflen)
84 io_u->buflen = blocks * min_bs;
85}
86
87static unsigned long long last_block(struct thread_data *td, struct fio_file *f,
88 enum fio_ddir ddir)
89{
90 unsigned long long max_blocks;
91 unsigned long long max_size;
92
93 /*
94 * Hmm, should we make sure that ->io_size <= ->real_file_size?
95 */
96 max_size = f->io_size;
97 if (max_size > f->real_file_size)
98 max_size = f->real_file_size;
99
100 max_blocks = max_size / (unsigned long long) td->o.ba[ddir];
101 if (!max_blocks)
102 return 0;
103
104 return max_blocks;
105}
106
107/*
108 * Return the next free block in the map.
109 */
110static int get_next_free_block(struct thread_data *td, struct fio_file *f,
111 enum fio_ddir ddir, unsigned long long *b)
112{
113 unsigned long long min_bs = td->o.rw_min_bs;
114 int i;
115
116 i = f->last_free_lookup;
117 *b = (i * BLOCKS_PER_MAP);
118 while ((*b) * min_bs < f->real_file_size &&
119 (*b) * min_bs < f->io_size) {
120 if (f->file_map[i] != (unsigned int) -1) {
121 *b += ffz(f->file_map[i]);
122 if (*b > last_block(td, f, ddir))
123 break;
124 f->last_free_lookup = i;
125 return 0;
126 }
127
128 *b += BLOCKS_PER_MAP;
129 i++;
130 }
131
132 dprint(FD_IO, "failed finding a free block\n");
133 return 1;
134}
135
136static int get_next_rand_offset(struct thread_data *td, struct fio_file *f,
137 enum fio_ddir ddir, unsigned long long *b)
138{
139 unsigned long long r;
140 int loops = 5;
141
142 do {
143 r = os_random_long(&td->random_state);
144 dprint(FD_RANDOM, "off rand %llu\n", r);
145 *b = (last_block(td, f, ddir) - 1)
146 * (r / ((unsigned long long) OS_RAND_MAX + 1.0));
147
148 /*
149 * if we are not maintaining a random map, we are done.
150 */
151 if (!file_randommap(td, f))
152 return 0;
153
154 /*
155 * calculate map offset and check if it's free
156 */
157 if (random_map_free(f, *b))
158 return 0;
159
160 dprint(FD_RANDOM, "get_next_rand_offset: offset %llu busy\n",
161 *b);
162 } while (--loops);
163
164 /*
165 * we get here, if we didn't suceed in looking up a block. generate
166 * a random start offset into the filemap, and find the first free
167 * block from there.
168 */
169 loops = 10;
170 do {
171 f->last_free_lookup = (f->num_maps - 1) *
172 (r / (OS_RAND_MAX + 1.0));
173 if (!get_next_free_block(td, f, ddir, b))
174 return 0;
175
176 r = os_random_long(&td->random_state);
177 } while (--loops);
178
179 /*
180 * that didn't work either, try exhaustive search from the start
181 */
182 f->last_free_lookup = 0;
183 return get_next_free_block(td, f, ddir, b);
184}
185
186/*
187 * For random io, generate a random new block and see if it's used. Repeat
188 * until we find a free one. For sequential io, just return the end of
189 * the last io issued.
190 */
191static int __get_next_offset(struct thread_data *td, struct io_u *io_u)
192{
193 struct fio_file *f = io_u->file;
194 unsigned long long b;
195 enum fio_ddir ddir = io_u->ddir;
196
197 if (td_random(td) && (td->o.ddir_nr && !--td->ddir_nr)) {
198 td->ddir_nr = td->o.ddir_nr;
199
200 if (get_next_rand_offset(td, f, ddir, &b)) {
201 dprint(FD_IO, "%s: getting rand offset failed\n",
202 f->file_name);
203 return 1;
204 }
205 } else {
206 if (f->last_pos >= f->real_file_size) {
207 if (!td_random(td) ||
208 get_next_rand_offset(td, f, ddir, &b)) {
209 dprint(FD_IO, "%s: pos %llu > size %llu\n",
210 f->file_name, f->last_pos,
211 f->real_file_size);
212 return 1;
213 }
214 } else
215 b = (f->last_pos - f->file_offset) / td->o.min_bs[ddir];
216 }
217
218 io_u->offset = b * td->o.ba[ddir];
219 if (io_u->offset >= f->io_size) {
220 dprint(FD_IO, "get_next_offset: offset %llu >= io_size %llu\n",
221 io_u->offset, f->io_size);
222 return 1;
223 }
224
225 io_u->offset += f->file_offset;
226 if (io_u->offset >= f->real_file_size) {
227 dprint(FD_IO, "get_next_offset: offset %llu >= size %llu\n",
228 io_u->offset, f->real_file_size);
229 return 1;
230 }
231
232 return 0;
233}
234
235static int get_next_offset(struct thread_data *td, struct io_u *io_u)
236{
237 struct prof_io_ops *ops = &td->prof_io_ops;
238
239 if (ops->fill_io_u_off)
240 return ops->fill_io_u_off(td, io_u);
241
242 return __get_next_offset(td, io_u);
243}
244
245static unsigned int __get_next_buflen(struct thread_data *td, struct io_u *io_u)
246{
247 const int ddir = io_u->ddir;
248 unsigned int uninitialized_var(buflen);
249 unsigned int minbs, maxbs;
250 long r;
251
252 minbs = td->o.min_bs[ddir];
253 maxbs = td->o.max_bs[ddir];
254
255 if (minbs == maxbs)
256 buflen = minbs;
257 else {
258 r = os_random_long(&td->bsrange_state);
259 if (!td->o.bssplit_nr[ddir]) {
260 buflen = 1 + (unsigned int) ((double) maxbs *
261 (r / (OS_RAND_MAX + 1.0)));
262 if (buflen < minbs)
263 buflen = minbs;
264 } else {
265 long perc = 0;
266 unsigned int i;
267
268 for (i = 0; i < td->o.bssplit_nr[ddir]; i++) {
269 struct bssplit *bsp = &td->o.bssplit[ddir][i];
270
271 buflen = bsp->bs;
272 perc += bsp->perc;
273 if (r <= ((OS_RAND_MAX / 100L) * perc))
274 break;
275 }
276 }
277 if (!td->o.bs_unaligned && is_power_of_2(minbs))
278 buflen = (buflen + minbs - 1) & ~(minbs - 1);
279 }
280
281 if (io_u->offset + buflen > io_u->file->real_file_size) {
282 dprint(FD_IO, "lower buflen %u -> %u (ddir=%d)\n", buflen,
283 minbs, ddir);
284 buflen = minbs;
285 }
286
287 return buflen;
288}
289
290static unsigned int get_next_buflen(struct thread_data *td, struct io_u *io_u)
291{
292 struct prof_io_ops *ops = &td->prof_io_ops;
293
294 if (ops->fill_io_u_size)
295 return ops->fill_io_u_size(td, io_u);
296
297 return __get_next_buflen(td, io_u);
298}
299
300static void set_rwmix_bytes(struct thread_data *td)
301{
302 unsigned int diff;
303
304 /*
305 * we do time or byte based switch. this is needed because
306 * buffered writes may issue a lot quicker than they complete,
307 * whereas reads do not.
308 */
309 diff = td->o.rwmix[td->rwmix_ddir ^ 1];
310 td->rwmix_issues = (td->io_issues[td->rwmix_ddir] * diff) / 100;
311}
312
313static inline enum fio_ddir get_rand_ddir(struct thread_data *td)
314{
315 unsigned int v;
316 long r;
317
318 r = os_random_long(&td->rwmix_state);
319 v = 1 + (int) (100.0 * (r / (OS_RAND_MAX + 1.0)));
320 if (v <= td->o.rwmix[DDIR_READ])
321 return DDIR_READ;
322
323 return DDIR_WRITE;
324}
325
326static enum fio_ddir rate_ddir(struct thread_data *td, enum fio_ddir ddir)
327{
328 enum fio_ddir odir = ddir ^ 1;
329 struct timeval t;
330 long usec;
331
332 if (td->rate_pending_usleep[ddir] <= 0)
333 return ddir;
334
335 /*
336 * We have too much pending sleep in this direction. See if we
337 * should switch.
338 */
339 if (td_rw(td)) {
340 /*
341 * Other direction does not have too much pending, switch
342 */
343 if (td->rate_pending_usleep[odir] < 100000)
344 return odir;
345
346 /*
347 * Both directions have pending sleep. Sleep the minimum time
348 * and deduct from both.
349 */
350 if (td->rate_pending_usleep[ddir] <=
351 td->rate_pending_usleep[odir]) {
352 usec = td->rate_pending_usleep[ddir];
353 } else {
354 usec = td->rate_pending_usleep[odir];
355 ddir = odir;
356 }
357 } else
358 usec = td->rate_pending_usleep[ddir];
359
360 fio_gettime(&t, NULL);
361 usec_sleep(td, usec);
362 usec = utime_since_now(&t);
363
364 td->rate_pending_usleep[ddir] -= usec;
365
366 odir = ddir ^ 1;
367 if (td_rw(td) && __should_check_rate(td, odir))
368 td->rate_pending_usleep[odir] -= usec;
369
370 return ddir;
371}
372
373/*
374 * Return the data direction for the next io_u. If the job is a
375 * mixed read/write workload, check the rwmix cycle and switch if
376 * necessary.
377 */
378static enum fio_ddir get_rw_ddir(struct thread_data *td)
379{
380 enum fio_ddir ddir;
381
382 /*
383 * see if it's time to fsync
384 */
385 if (td->o.fsync_blocks &&
386 !(td->io_issues[DDIR_WRITE] % td->o.fsync_blocks) &&
387 td->io_issues[DDIR_WRITE] && should_fsync(td))
388 return DDIR_SYNC;
389
390 /*
391 * see if it's time to fdatasync
392 */
393 if (td->o.fdatasync_blocks &&
394 !(td->io_issues[DDIR_WRITE] % td->o.fdatasync_blocks) &&
395 td->io_issues[DDIR_WRITE] && should_fsync(td))
396 return DDIR_DATASYNC;
397
398 /*
399 * see if it's time to sync_file_range
400 */
401 if (td->sync_file_range_nr &&
402 !(td->io_issues[DDIR_WRITE] % td->sync_file_range_nr) &&
403 td->io_issues[DDIR_WRITE] && should_fsync(td))
404 return DDIR_SYNC_FILE_RANGE;
405
406 if (td_rw(td)) {
407 /*
408 * Check if it's time to seed a new data direction.
409 */
410 if (td->io_issues[td->rwmix_ddir] >= td->rwmix_issues) {
411 /*
412 * Put a top limit on how many bytes we do for
413 * one data direction, to avoid overflowing the
414 * ranges too much
415 */
416 ddir = get_rand_ddir(td);
417
418 if (ddir != td->rwmix_ddir)
419 set_rwmix_bytes(td);
420
421 td->rwmix_ddir = ddir;
422 }
423 ddir = td->rwmix_ddir;
424 } else if (td_read(td))
425 ddir = DDIR_READ;
426 else
427 ddir = DDIR_WRITE;
428
429 td->rwmix_ddir = rate_ddir(td, ddir);
430 return td->rwmix_ddir;
431}
432
433void put_file_log(struct thread_data *td, struct fio_file *f)
434{
435 int ret = put_file(td, f);
436
437 if (ret)
438 td_verror(td, ret, "file close");
439}
440
441void put_io_u(struct thread_data *td, struct io_u *io_u)
442{
443 td_io_u_lock(td);
444
445 io_u->flags |= IO_U_F_FREE;
446 io_u->flags &= ~IO_U_F_FREE_DEF;
447
448 if (io_u->file)
449 put_file_log(td, io_u->file);
450
451 io_u->file = NULL;
452 if (io_u->flags & IO_U_F_IN_CUR_DEPTH)
453 td->cur_depth--;
454 flist_del_init(&io_u->list);
455 flist_add(&io_u->list, &td->io_u_freelist);
456 td_io_u_unlock(td);
457 td_io_u_free_notify(td);
458}
459
460void clear_io_u(struct thread_data *td, struct io_u *io_u)
461{
462 io_u->flags &= ~IO_U_F_FLIGHT;
463 put_io_u(td, io_u);
464}
465
466void requeue_io_u(struct thread_data *td, struct io_u **io_u)
467{
468 struct io_u *__io_u = *io_u;
469
470 dprint(FD_IO, "requeue %p\n", __io_u);
471
472 td_io_u_lock(td);
473
474 __io_u->flags |= IO_U_F_FREE;
475 if ((__io_u->flags & IO_U_F_FLIGHT) && !ddir_sync(__io_u->ddir))
476 td->io_issues[__io_u->ddir]--;
477
478 __io_u->flags &= ~IO_U_F_FLIGHT;
479 if (__io_u->flags & IO_U_F_IN_CUR_DEPTH)
480 td->cur_depth--;
481 flist_del(&__io_u->list);
482 flist_add_tail(&__io_u->list, &td->io_u_requeues);
483 td_io_u_unlock(td);
484 *io_u = NULL;
485}
486
487static int fill_io_u(struct thread_data *td, struct io_u *io_u)
488{
489 if (td->io_ops->flags & FIO_NOIO)
490 goto out;
491
492 io_u->ddir = get_rw_ddir(td);
493
494 /*
495 * fsync() or fdatasync(), we are done
496 */
497 if (ddir_sync(io_u->ddir))
498 goto out;
499
500 /*
501 * See if it's time to switch to a new zone
502 */
503 if (td->zone_bytes >= td->o.zone_size) {
504 td->zone_bytes = 0;
505 io_u->file->last_pos += td->o.zone_skip;
506 td->io_skip_bytes += td->o.zone_skip;
507 }
508
509 /*
510 * No log, let the seq/rand engine retrieve the next buflen and
511 * position.
512 */
513 if (get_next_offset(td, io_u)) {
514 dprint(FD_IO, "io_u %p, failed getting offset\n", io_u);
515 return 1;
516 }
517
518 io_u->buflen = get_next_buflen(td, io_u);
519 if (!io_u->buflen) {
520 dprint(FD_IO, "io_u %p, failed getting buflen\n", io_u);
521 return 1;
522 }
523
524 if (io_u->offset + io_u->buflen > io_u->file->real_file_size) {
525 dprint(FD_IO, "io_u %p, offset too large\n", io_u);
526 dprint(FD_IO, " off=%llu/%lu > %llu\n", io_u->offset,
527 io_u->buflen, io_u->file->real_file_size);
528 return 1;
529 }
530
531 /*
532 * mark entry before potentially trimming io_u
533 */
534 if (td_random(td) && file_randommap(td, io_u->file))
535 mark_random_map(td, io_u);
536
537 /*
538 * If using a write iolog, store this entry.
539 */
540out:
541 dprint_io_u(io_u, "fill_io_u");
542 td->zone_bytes += io_u->buflen;
543 log_io_u(td, io_u);
544 return 0;
545}
546
547static void __io_u_mark_map(unsigned int *map, unsigned int nr)
548{
549 int index = 0;
550
551 switch (nr) {
552 default:
553 index = 6;
554 break;
555 case 33 ... 64:
556 index = 5;
557 break;
558 case 17 ... 32:
559 index = 4;
560 break;
561 case 9 ... 16:
562 index = 3;
563 break;
564 case 5 ... 8:
565 index = 2;
566 break;
567 case 1 ... 4:
568 index = 1;
569 case 0:
570 break;
571 }
572
573 map[index]++;
574}
575
576void io_u_mark_submit(struct thread_data *td, unsigned int nr)
577{
578 __io_u_mark_map(td->ts.io_u_submit, nr);
579 td->ts.total_submit++;
580}
581
582void io_u_mark_complete(struct thread_data *td, unsigned int nr)
583{
584 __io_u_mark_map(td->ts.io_u_complete, nr);
585 td->ts.total_complete++;
586}
587
588void io_u_mark_depth(struct thread_data *td, unsigned int nr)
589{
590 int index = 0;
591
592 switch (td->cur_depth) {
593 default:
594 index = 6;
595 break;
596 case 32 ... 63:
597 index = 5;
598 break;
599 case 16 ... 31:
600 index = 4;
601 break;
602 case 8 ... 15:
603 index = 3;
604 break;
605 case 4 ... 7:
606 index = 2;
607 break;
608 case 2 ... 3:
609 index = 1;
610 case 1:
611 break;
612 }
613
614 td->ts.io_u_map[index] += nr;
615}
616
617static void io_u_mark_lat_usec(struct thread_data *td, unsigned long usec)
618{
619 int index = 0;
620
621 assert(usec < 1000);
622
623 switch (usec) {
624 case 750 ... 999:
625 index = 9;
626 break;
627 case 500 ... 749:
628 index = 8;
629 break;
630 case 250 ... 499:
631 index = 7;
632 break;
633 case 100 ... 249:
634 index = 6;
635 break;
636 case 50 ... 99:
637 index = 5;
638 break;
639 case 20 ... 49:
640 index = 4;
641 break;
642 case 10 ... 19:
643 index = 3;
644 break;
645 case 4 ... 9:
646 index = 2;
647 break;
648 case 2 ... 3:
649 index = 1;
650 case 0 ... 1:
651 break;
652 }
653
654 assert(index < FIO_IO_U_LAT_U_NR);
655 td->ts.io_u_lat_u[index]++;
656}
657
658static void io_u_mark_lat_msec(struct thread_data *td, unsigned long msec)
659{
660 int index = 0;
661
662 switch (msec) {
663 default:
664 index = 11;
665 break;
666 case 1000 ... 1999:
667 index = 10;
668 break;
669 case 750 ... 999:
670 index = 9;
671 break;
672 case 500 ... 749:
673 index = 8;
674 break;
675 case 250 ... 499:
676 index = 7;
677 break;
678 case 100 ... 249:
679 index = 6;
680 break;
681 case 50 ... 99:
682 index = 5;
683 break;
684 case 20 ... 49:
685 index = 4;
686 break;
687 case 10 ... 19:
688 index = 3;
689 break;
690 case 4 ... 9:
691 index = 2;
692 break;
693 case 2 ... 3:
694 index = 1;
695 case 0 ... 1:
696 break;
697 }
698
699 assert(index < FIO_IO_U_LAT_M_NR);
700 td->ts.io_u_lat_m[index]++;
701}
702
703static void io_u_mark_latency(struct thread_data *td, unsigned long usec)
704{
705 if (usec < 1000)
706 io_u_mark_lat_usec(td, usec);
707 else
708 io_u_mark_lat_msec(td, usec / 1000);
709}
710
711/*
712 * Get next file to service by choosing one at random
713 */
714static struct fio_file *get_next_file_rand(struct thread_data *td,
715 enum fio_file_flags goodf,
716 enum fio_file_flags badf)
717{
718 struct fio_file *f;
719 int fno;
720
721 do {
722 long r = os_random_long(&td->next_file_state);
723 int opened = 0;
724
725 fno = (unsigned int) ((double) td->o.nr_files
726 * (r / (OS_RAND_MAX + 1.0)));
727 f = td->files[fno];
728 if (fio_file_done(f))
729 continue;
730
731 if (!fio_file_open(f)) {
732 int err;
733
734 err = td_io_open_file(td, f);
735 if (err)
736 continue;
737 opened = 1;
738 }
739
740 if ((!goodf || (f->flags & goodf)) && !(f->flags & badf)) {
741 dprint(FD_FILE, "get_next_file_rand: %p\n", f);
742 return f;
743 }
744 if (opened)
745 td_io_close_file(td, f);
746 } while (1);
747}
748
749/*
750 * Get next file to service by doing round robin between all available ones
751 */
752static struct fio_file *get_next_file_rr(struct thread_data *td, int goodf,
753 int badf)
754{
755 unsigned int old_next_file = td->next_file;
756 struct fio_file *f;
757
758 do {
759 int opened = 0;
760
761 f = td->files[td->next_file];
762
763 td->next_file++;
764 if (td->next_file >= td->o.nr_files)
765 td->next_file = 0;
766
767 dprint(FD_FILE, "trying file %s %x\n", f->file_name, f->flags);
768 if (fio_file_done(f)) {
769 f = NULL;
770 continue;
771 }
772
773 if (!fio_file_open(f)) {
774 int err;
775
776 err = td_io_open_file(td, f);
777 if (err) {
778 dprint(FD_FILE, "error %d on open of %s\n",
779 err, f->file_name);
780 f = NULL;
781 continue;
782 }
783 opened = 1;
784 }
785
786 dprint(FD_FILE, "goodf=%x, badf=%x, ff=%x\n", goodf, badf,
787 f->flags);
788 if ((!goodf || (f->flags & goodf)) && !(f->flags & badf))
789 break;
790
791 if (opened)
792 td_io_close_file(td, f);
793
794 f = NULL;
795 } while (td->next_file != old_next_file);
796
797 dprint(FD_FILE, "get_next_file_rr: %p\n", f);
798 return f;
799}
800
801static struct fio_file *__get_next_file(struct thread_data *td)
802{
803 struct fio_file *f;
804
805 assert(td->o.nr_files <= td->files_index);
806
807 if (td->nr_done_files >= td->o.nr_files) {
808 dprint(FD_FILE, "get_next_file: nr_open=%d, nr_done=%d,"
809 " nr_files=%d\n", td->nr_open_files,
810 td->nr_done_files,
811 td->o.nr_files);
812 return NULL;
813 }
814
815 f = td->file_service_file;
816 if (f && fio_file_open(f) && !fio_file_closing(f)) {
817 if (td->o.file_service_type == FIO_FSERVICE_SEQ)
818 goto out;
819 if (td->file_service_left--)
820 goto out;
821 }
822
823 if (td->o.file_service_type == FIO_FSERVICE_RR ||
824 td->o.file_service_type == FIO_FSERVICE_SEQ)
825 f = get_next_file_rr(td, FIO_FILE_open, FIO_FILE_closing);
826 else
827 f = get_next_file_rand(td, FIO_FILE_open, FIO_FILE_closing);
828
829 td->file_service_file = f;
830 td->file_service_left = td->file_service_nr - 1;
831out:
832 dprint(FD_FILE, "get_next_file: %p [%s]\n", f, f->file_name);
833 return f;
834}
835
836static struct fio_file *get_next_file(struct thread_data *td)
837{
838 struct prof_io_ops *ops = &td->prof_io_ops;
839
840 if (ops->get_next_file)
841 return ops->get_next_file(td);
842
843 return __get_next_file(td);
844}
845
846static int set_io_u_file(struct thread_data *td, struct io_u *io_u)
847{
848 struct fio_file *f;
849
850 do {
851 f = get_next_file(td);
852 if (!f)
853 return 1;
854
855 io_u->file = f;
856 get_file(f);
857
858 if (!fill_io_u(td, io_u))
859 break;
860
861 put_file_log(td, f);
862 td_io_close_file(td, f);
863 io_u->file = NULL;
864 fio_file_set_done(f);
865 td->nr_done_files++;
866 dprint(FD_FILE, "%s: is done (%d of %d)\n", f->file_name,
867 td->nr_done_files, td->o.nr_files);
868 } while (1);
869
870 return 0;
871}
872
873
874struct io_u *__get_io_u(struct thread_data *td)
875{
876 struct io_u *io_u = NULL;
877
878 td_io_u_lock(td);
879
880again:
881 if (!flist_empty(&td->io_u_requeues))
882 io_u = flist_entry(td->io_u_requeues.next, struct io_u, list);
883 else if (!queue_full(td)) {
884 io_u = flist_entry(td->io_u_freelist.next, struct io_u, list);
885
886 io_u->buflen = 0;
887 io_u->resid = 0;
888 io_u->file = NULL;
889 io_u->end_io = NULL;
890 }
891
892 if (io_u) {
893 assert(io_u->flags & IO_U_F_FREE);
894 io_u->flags &= ~(IO_U_F_FREE | IO_U_F_FREE_DEF);
895
896 io_u->error = 0;
897 flist_del(&io_u->list);
898 flist_add(&io_u->list, &td->io_u_busylist);
899 td->cur_depth++;
900 io_u->flags |= IO_U_F_IN_CUR_DEPTH;
901 } else if (td->o.verify_async) {
902 /*
903 * We ran out, wait for async verify threads to finish and
904 * return one
905 */
906 pthread_cond_wait(&td->free_cond, &td->io_u_lock);
907 goto again;
908 }
909
910 td_io_u_unlock(td);
911 return io_u;
912}
913
914/*
915 * Return an io_u to be processed. Gets a buflen and offset, sets direction,
916 * etc. The returned io_u is fully ready to be prepped and submitted.
917 */
918struct io_u *get_io_u(struct thread_data *td)
919{
920 struct fio_file *f;
921 struct io_u *io_u;
922
923 io_u = __get_io_u(td);
924 if (!io_u) {
925 dprint(FD_IO, "__get_io_u failed\n");
926 return NULL;
927 }
928
929 /*
930 * from a requeue, io_u already setup
931 */
932 if (io_u->file)
933 goto out;
934
935 /*
936 * If using an iolog, grab next piece if any available.
937 */
938 if (td->o.read_iolog_file) {
939 if (read_iolog_get(td, io_u))
940 goto err_put;
941 } else if (set_io_u_file(td, io_u)) {
942 dprint(FD_IO, "io_u %p, setting file failed\n", io_u);
943 goto err_put;
944 }
945
946 f = io_u->file;
947 assert(fio_file_open(f));
948
949 if (!ddir_sync(io_u->ddir)) {
950 if (!io_u->buflen && !(td->io_ops->flags & FIO_NOIO)) {
951 dprint(FD_IO, "get_io_u: zero buflen on %p\n", io_u);
952 goto err_put;
953 }
954
955 f->last_pos = io_u->offset + io_u->buflen;
956
957 if (td->o.verify != VERIFY_NONE && io_u->ddir == DDIR_WRITE)
958 populate_verify_io_u(td, io_u);
959 else if (td->o.refill_buffers && io_u->ddir == DDIR_WRITE)
960 io_u_fill_buffer(td, io_u, io_u->xfer_buflen);
961 }
962
963 /*
964 * Set io data pointers.
965 */
966 io_u->xfer_buf = io_u->buf;
967 io_u->xfer_buflen = io_u->buflen;
968
969out:
970 if (!td_io_prep(td, io_u)) {
971 if (!td->o.disable_slat)
972 fio_gettime(&io_u->start_time, NULL);
973 return io_u;
974 }
975err_put:
976 dprint(FD_IO, "get_io_u failed\n");
977 put_io_u(td, io_u);
978 return NULL;
979}
980
981void io_u_log_error(struct thread_data *td, struct io_u *io_u)
982{
983 const char *msg[] = { "read", "write", "sync" };
984
985 log_err("fio: io_u error");
986
987 if (io_u->file)
988 log_err(" on file %s", io_u->file->file_name);
989
990 log_err(": %s\n", strerror(io_u->error));
991
992 log_err(" %s offset=%llu, buflen=%lu\n", msg[io_u->ddir],
993 io_u->offset, io_u->xfer_buflen);
994
995 if (!td->error)
996 td_verror(td, io_u->error, "io_u error");
997}
998
999static void io_completed(struct thread_data *td, struct io_u *io_u,
1000 struct io_completion_data *icd)
1001{
1002 /*
1003 * Older gcc's are too dumb to realize that usec is always used
1004 * initialized, silence that warning.
1005 */
1006 unsigned long uninitialized_var(usec);
1007 struct fio_file *f;
1008
1009 dprint_io_u(io_u, "io complete");
1010
1011 td_io_u_lock(td);
1012 assert(io_u->flags & IO_U_F_FLIGHT);
1013 io_u->flags &= ~IO_U_F_FLIGHT;
1014 td_io_u_unlock(td);
1015
1016 if (ddir_sync(io_u->ddir)) {
1017 td->last_was_sync = 1;
1018 f = io_u->file;
1019 if (f) {
1020 f->first_write = -1ULL;
1021 f->last_write = -1ULL;
1022 }
1023 return;
1024 }
1025
1026 td->last_was_sync = 0;
1027
1028 if (!io_u->error) {
1029 unsigned int bytes = io_u->buflen - io_u->resid;
1030 const enum fio_ddir idx = io_u->ddir;
1031 const enum fio_ddir odx = io_u->ddir ^ 1;
1032 int ret;
1033
1034 td->io_blocks[idx]++;
1035 td->io_bytes[idx] += bytes;
1036 td->this_io_bytes[idx] += bytes;
1037
1038 if (idx == DDIR_WRITE) {
1039 f = io_u->file;
1040 if (f) {
1041 if (f->first_write == -1ULL ||
1042 io_u->offset < f->first_write)
1043 f->first_write = io_u->offset;
1044 if (f->last_write == -1ULL ||
1045 ((io_u->offset + bytes) > f->last_write))
1046 f->last_write = io_u->offset + bytes;
1047 }
1048 }
1049
1050 if (ramp_time_over(td)) {
1051 unsigned long uninitialized_var(lusec);
1052
1053 if (!td->o.disable_clat || !td->o.disable_bw)
1054 lusec = utime_since(&io_u->issue_time,
1055 &icd->time);
1056
1057 if (!td->o.disable_clat) {
1058 add_clat_sample(td, idx, lusec, bytes);
1059 io_u_mark_latency(td, lusec);
1060 }
1061 if (!td->o.disable_bw)
1062 add_bw_sample(td, idx, bytes, &icd->time);
1063 if (__should_check_rate(td, idx)) {
1064 td->rate_pending_usleep[idx] =
1065 ((td->this_io_bytes[idx] *
1066 td->rate_nsec_cycle[idx]) / 1000 -
1067 utime_since_now(&td->start));
1068 }
1069 if (__should_check_rate(td, idx ^ 1))
1070 td->rate_pending_usleep[odx] =
1071 ((td->this_io_bytes[odx] *
1072 td->rate_nsec_cycle[odx]) / 1000 -
1073 utime_since_now(&td->start));
1074 }
1075
1076 if (td_write(td) && idx == DDIR_WRITE &&
1077 td->o.do_verify &&
1078 td->o.verify != VERIFY_NONE)
1079 log_io_piece(td, io_u);
1080
1081 icd->bytes_done[idx] += bytes;
1082
1083 if (io_u->end_io) {
1084 ret = io_u->end_io(td, io_u);
1085 if (ret && !icd->error)
1086 icd->error = ret;
1087 }
1088 } else {
1089 icd->error = io_u->error;
1090 io_u_log_error(td, io_u);
1091 }
1092 if (td->o.continue_on_error && icd->error &&
1093 td_non_fatal_error(icd->error)) {
1094 /*
1095 * If there is a non_fatal error, then add to the error count
1096 * and clear all the errors.
1097 */
1098 update_error_count(td, icd->error);
1099 td_clear_error(td);
1100 icd->error = 0;
1101 io_u->error = 0;
1102 }
1103}
1104
1105static void init_icd(struct thread_data *td, struct io_completion_data *icd,
1106 int nr)
1107{
1108 if (!td->o.disable_clat || !td->o.disable_bw)
1109 fio_gettime(&icd->time, NULL);
1110
1111 icd->nr = nr;
1112
1113 icd->error = 0;
1114 icd->bytes_done[0] = icd->bytes_done[1] = 0;
1115}
1116
1117static void ios_completed(struct thread_data *td,
1118 struct io_completion_data *icd)
1119{
1120 struct io_u *io_u;
1121 int i;
1122
1123 for (i = 0; i < icd->nr; i++) {
1124 io_u = td->io_ops->event(td, i);
1125
1126 io_completed(td, io_u, icd);
1127
1128 if (!(io_u->flags & IO_U_F_FREE_DEF))
1129 put_io_u(td, io_u);
1130 }
1131}
1132
1133/*
1134 * Complete a single io_u for the sync engines.
1135 */
1136int io_u_sync_complete(struct thread_data *td, struct io_u *io_u,
1137 unsigned long *bytes)
1138{
1139 struct io_completion_data icd;
1140
1141 init_icd(td, &icd, 1);
1142 io_completed(td, io_u, &icd);
1143
1144 if (!(io_u->flags & IO_U_F_FREE_DEF))
1145 put_io_u(td, io_u);
1146
1147 if (icd.error) {
1148 td_verror(td, icd.error, "io_u_sync_complete");
1149 return -1;
1150 }
1151
1152 if (bytes) {
1153 bytes[0] += icd.bytes_done[0];
1154 bytes[1] += icd.bytes_done[1];
1155 }
1156
1157 return 0;
1158}
1159
1160/*
1161 * Called to complete min_events number of io for the async engines.
1162 */
1163int io_u_queued_complete(struct thread_data *td, int min_evts,
1164 unsigned long *bytes)
1165{
1166 struct io_completion_data icd;
1167 struct timespec *tvp = NULL;
1168 int ret;
1169 struct timespec ts = { .tv_sec = 0, .tv_nsec = 0, };
1170
1171 dprint(FD_IO, "io_u_queued_completed: min=%d\n", min_evts);
1172
1173 if (!min_evts)
1174 tvp = &ts;
1175
1176 ret = td_io_getevents(td, min_evts, td->o.iodepth_batch_complete, tvp);
1177 if (ret < 0) {
1178 td_verror(td, -ret, "td_io_getevents");
1179 return ret;
1180 } else if (!ret)
1181 return ret;
1182
1183 init_icd(td, &icd, ret);
1184 ios_completed(td, &icd);
1185 if (icd.error) {
1186 td_verror(td, icd.error, "io_u_queued_complete");
1187 return -1;
1188 }
1189
1190 if (bytes) {
1191 bytes[0] += icd.bytes_done[0];
1192 bytes[1] += icd.bytes_done[1];
1193 }
1194
1195 return 0;
1196}
1197
1198/*
1199 * Call when io_u is really queued, to update the submission latency.
1200 */
1201void io_u_queued(struct thread_data *td, struct io_u *io_u)
1202{
1203 if (!td->o.disable_slat) {
1204 unsigned long slat_time;
1205
1206 slat_time = utime_since(&io_u->start_time, &io_u->issue_time);
1207 add_slat_sample(td, io_u->ddir, slat_time, io_u->xfer_buflen);
1208 }
1209}
1210
1211/*
1212 * "randomly" fill the buffer contents
1213 */
1214void io_u_fill_buffer(struct thread_data *td, struct io_u *io_u,
1215 unsigned int max_bs)
1216{
1217 long *ptr = io_u->buf;
1218
1219 if (!td->o.zero_buffers) {
1220 unsigned long r = __rand(&__fio_rand_state);
1221
1222 if (sizeof(int) != sizeof(*ptr))
1223 r *= (unsigned long) __rand(&__fio_rand_state);
1224
1225 while ((void *) ptr - io_u->buf < max_bs) {
1226 *ptr = r;
1227 ptr++;
1228 r *= GOLDEN_RATIO_PRIME;
1229 r >>= 3;
1230 }
1231 } else
1232 memset(ptr, 0, max_bs);
1233}